httplib.h 793 KB

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  1. //
  2. // httplib.h
  3. //
  4. // Copyright (c) 2026 Yuji Hirose. All rights reserved.
  5. // MIT License
  6. //
  7. #ifndef CPPHTTPLIB_HTTPLIB_H
  8. #define CPPHTTPLIB_HTTPLIB_H
  9. #define CPPHTTPLIB_VERSION "0.59.0"
  10. #define CPPHTTPLIB_VERSION_NUM "0x003b00"
  11. #ifdef _WIN32
  12. #if defined(_WIN32_WINNT) && _WIN32_WINNT < 0x0A00
  13. #error \
  14. "cpp-httplib doesn't support Windows 8 or lower. Please use Windows 10 or later."
  15. #endif
  16. #endif
  17. /*
  18. * Configuration
  19. */
  20. #ifndef CPPHTTPLIB_KEEPALIVE_TIMEOUT_SECOND
  21. #define CPPHTTPLIB_KEEPALIVE_TIMEOUT_SECOND 5
  22. #endif
  23. #ifndef CPPHTTPLIB_KEEPALIVE_TIMEOUT_CHECK_INTERVAL_USECOND
  24. #define CPPHTTPLIB_KEEPALIVE_TIMEOUT_CHECK_INTERVAL_USECOND 10000
  25. #endif
  26. #ifndef CPPHTTPLIB_KEEPALIVE_MAX_COUNT
  27. #define CPPHTTPLIB_KEEPALIVE_MAX_COUNT 100
  28. #endif
  29. #ifndef CPPHTTPLIB_CONNECTION_TIMEOUT_SECOND
  30. #define CPPHTTPLIB_CONNECTION_TIMEOUT_SECOND 300
  31. #endif
  32. #ifndef CPPHTTPLIB_CONNECTION_TIMEOUT_USECOND
  33. #define CPPHTTPLIB_CONNECTION_TIMEOUT_USECOND 0
  34. #endif
  35. #ifndef CPPHTTPLIB_SERVER_READ_TIMEOUT_SECOND
  36. #define CPPHTTPLIB_SERVER_READ_TIMEOUT_SECOND 5
  37. #endif
  38. #ifndef CPPHTTPLIB_SERVER_READ_TIMEOUT_USECOND
  39. #define CPPHTTPLIB_SERVER_READ_TIMEOUT_USECOND 0
  40. #endif
  41. #ifndef CPPHTTPLIB_SERVER_WRITE_TIMEOUT_SECOND
  42. #define CPPHTTPLIB_SERVER_WRITE_TIMEOUT_SECOND 5
  43. #endif
  44. #ifndef CPPHTTPLIB_SERVER_WRITE_TIMEOUT_USECOND
  45. #define CPPHTTPLIB_SERVER_WRITE_TIMEOUT_USECOND 0
  46. #endif
  47. #ifndef CPPHTTPLIB_CLIENT_READ_TIMEOUT_SECOND
  48. #define CPPHTTPLIB_CLIENT_READ_TIMEOUT_SECOND 300
  49. #endif
  50. #ifndef CPPHTTPLIB_CLIENT_READ_TIMEOUT_USECOND
  51. #define CPPHTTPLIB_CLIENT_READ_TIMEOUT_USECOND 0
  52. #endif
  53. #ifndef CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_SECOND
  54. #define CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_SECOND 5
  55. #endif
  56. #ifndef CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_USECOND
  57. #define CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_USECOND 0
  58. #endif
  59. #ifndef CPPHTTPLIB_CLIENT_MAX_TIMEOUT_MSECOND
  60. #define CPPHTTPLIB_CLIENT_MAX_TIMEOUT_MSECOND 0
  61. #endif
  62. #ifndef CPPHTTPLIB_EXPECT_100_THRESHOLD
  63. #define CPPHTTPLIB_EXPECT_100_THRESHOLD 1024
  64. #endif
  65. #ifndef CPPHTTPLIB_EXPECT_100_TIMEOUT_MSECOND
  66. #define CPPHTTPLIB_EXPECT_100_TIMEOUT_MSECOND 1000
  67. #endif
  68. #ifndef CPPHTTPLIB_WAIT_EARLY_SERVER_RESPONSE_THRESHOLD
  69. #define CPPHTTPLIB_WAIT_EARLY_SERVER_RESPONSE_THRESHOLD (1024 * 1024)
  70. #endif
  71. #ifndef CPPHTTPLIB_WAIT_EARLY_SERVER_RESPONSE_TIMEOUT_MSECOND
  72. #define CPPHTTPLIB_WAIT_EARLY_SERVER_RESPONSE_TIMEOUT_MSECOND 50
  73. #endif
  74. #ifndef CPPHTTPLIB_IDLE_INTERVAL_SECOND
  75. #define CPPHTTPLIB_IDLE_INTERVAL_SECOND 0
  76. #endif
  77. #ifndef CPPHTTPLIB_IDLE_INTERVAL_USECOND
  78. #ifdef _WIN32
  79. #define CPPHTTPLIB_IDLE_INTERVAL_USECOND 1000
  80. #else
  81. #define CPPHTTPLIB_IDLE_INTERVAL_USECOND 0
  82. #endif
  83. #endif
  84. #ifndef CPPHTTPLIB_REQUEST_URI_MAX_LENGTH
  85. #define CPPHTTPLIB_REQUEST_URI_MAX_LENGTH 8192
  86. #endif
  87. #ifndef CPPHTTPLIB_HEADER_MAX_LENGTH
  88. #define CPPHTTPLIB_HEADER_MAX_LENGTH 8192
  89. #endif
  90. #ifndef CPPHTTPLIB_HEADER_MAX_COUNT
  91. #define CPPHTTPLIB_HEADER_MAX_COUNT 100
  92. #endif
  93. #ifndef CPPHTTPLIB_REDIRECT_MAX_COUNT
  94. #define CPPHTTPLIB_REDIRECT_MAX_COUNT 20
  95. #endif
  96. #ifndef CPPHTTPLIB_MULTIPART_FORM_DATA_FILE_MAX_COUNT
  97. #define CPPHTTPLIB_MULTIPART_FORM_DATA_FILE_MAX_COUNT 1024
  98. #endif
  99. #ifndef CPPHTTPLIB_PAYLOAD_MAX_LENGTH
  100. #define CPPHTTPLIB_PAYLOAD_MAX_LENGTH (100 * 1024 * 1024) // 100MB
  101. #endif
  102. #ifndef CPPHTTPLIB_FORM_URL_ENCODED_PAYLOAD_MAX_LENGTH
  103. #define CPPHTTPLIB_FORM_URL_ENCODED_PAYLOAD_MAX_LENGTH 8192
  104. #endif
  105. #ifndef CPPHTTPLIB_STATIC_FILE_COMPRESSION_MIN_LENGTH
  106. // 1400 rather than a round number: a body that already fits in one 1500-byte
  107. // MTU gains nothing from being made smaller.
  108. #define CPPHTTPLIB_STATIC_FILE_COMPRESSION_MIN_LENGTH 1400
  109. #endif
  110. #ifndef CPPHTTPLIB_STATIC_FILE_COMPRESSION_MAX_LENGTH
  111. #define CPPHTTPLIB_STATIC_FILE_COMPRESSION_MAX_LENGTH (4 * 1024 * 1024) // 4MB
  112. #endif
  113. #ifndef CPPHTTPLIB_RANGE_MAX_COUNT
  114. #define CPPHTTPLIB_RANGE_MAX_COUNT 1024
  115. #endif
  116. // std::regex_match's backtracking implementation (most acutely on libstdc++)
  117. // recurses roughly once per matched character for quantified patterns such
  118. // as "(.*)", so a long enough path can exhaust the calling thread's stack; on
  119. // a default ~8MB thread stack that has been observed to take on the order of
  120. // a couple thousand characters for a simple pattern. 256 leaves a wide safety
  121. // margin below that (well under the 8192-byte request URI limit) while still
  122. // fitting any realistic route segment; raise it if a route legitimately needs
  123. // longer paths. Regex routes are never applied to paths longer than this.
  124. #ifndef CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH
  125. #define CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH 256
  126. #endif
  127. #ifndef CPPHTTPLIB_TCP_NODELAY
  128. #define CPPHTTPLIB_TCP_NODELAY false
  129. #endif
  130. #ifndef CPPHTTPLIB_IPV6_V6ONLY
  131. #define CPPHTTPLIB_IPV6_V6ONLY false
  132. #endif
  133. #ifndef CPPHTTPLIB_RECV_BUFSIZ
  134. #define CPPHTTPLIB_RECV_BUFSIZ size_t(16384u)
  135. #endif
  136. #ifndef CPPHTTPLIB_SEND_BUFSIZ
  137. #define CPPHTTPLIB_SEND_BUFSIZ size_t(16384u)
  138. #endif
  139. #ifndef CPPHTTPLIB_COMPRESSION_BUFSIZ
  140. #define CPPHTTPLIB_COMPRESSION_BUFSIZ size_t(16384u)
  141. #endif
  142. #ifndef CPPHTTPLIB_THREAD_POOL_COUNT
  143. #define CPPHTTPLIB_THREAD_POOL_COUNT \
  144. ((std::max)(8u, std::thread::hardware_concurrency() > 0 \
  145. ? std::thread::hardware_concurrency() - 1 \
  146. : 0))
  147. #endif
  148. #ifndef CPPHTTPLIB_THREAD_POOL_MAX_COUNT
  149. #define CPPHTTPLIB_THREAD_POOL_MAX_COUNT (CPPHTTPLIB_THREAD_POOL_COUNT * 4)
  150. #endif
  151. #ifndef CPPHTTPLIB_THREAD_POOL_IDLE_TIMEOUT
  152. #define CPPHTTPLIB_THREAD_POOL_IDLE_TIMEOUT 3 // seconds
  153. #endif
  154. #ifndef CPPHTTPLIB_RECV_FLAGS
  155. #define CPPHTTPLIB_RECV_FLAGS 0
  156. #endif
  157. #ifndef CPPHTTPLIB_SEND_FLAGS
  158. #define CPPHTTPLIB_SEND_FLAGS 0
  159. #endif
  160. #ifndef CPPHTTPLIB_LISTEN_BACKLOG
  161. #define CPPHTTPLIB_LISTEN_BACKLOG 128
  162. #endif
  163. #ifndef CPPHTTPLIB_MAX_LINE_LENGTH
  164. #define CPPHTTPLIB_MAX_LINE_LENGTH 32768
  165. #endif
  166. #ifndef CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH
  167. #define CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH 16777216
  168. #endif
  169. // One macro used to set the read timeout for both sides. They want different
  170. // defaults: a client's read timeout is the caller's own tool (it waits forever
  171. // until asked not to), while a server keeps a ceiling that reclaims a worker
  172. // from a peer that has gone quiet. The old name still works and sets both.
  173. #ifdef CPPHTTPLIB_WEBSOCKET_READ_TIMEOUT_SECOND
  174. #pragma message( \
  175. "CPPHTTPLIB_WEBSOCKET_READ_TIMEOUT_SECOND is deprecated; define " \
  176. "CPPHTTPLIB_WEBSOCKET_CLIENT_READ_TIMEOUT_SECOND and/or " \
  177. "CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND instead")
  178. #ifndef CPPHTTPLIB_WEBSOCKET_CLIENT_READ_TIMEOUT_SECOND
  179. #define CPPHTTPLIB_WEBSOCKET_CLIENT_READ_TIMEOUT_SECOND \
  180. CPPHTTPLIB_WEBSOCKET_READ_TIMEOUT_SECOND
  181. #endif
  182. #ifndef CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND
  183. #define CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND \
  184. CPPHTTPLIB_WEBSOCKET_READ_TIMEOUT_SECOND
  185. #endif
  186. #endif
  187. // 0 waits forever. A read timeout is how a caller gets control back to send on
  188. // the same connection; it is not a liveness check (that is ping/pong). Only a
  189. // timeout set at runtime through set_read_timeout() is reported as
  190. // ws::Timeout; when one of these compile-time defaults elapses, read() returns
  191. // ws::Fail and closes the connection.
  192. #ifndef CPPHTTPLIB_WEBSOCKET_CLIENT_READ_TIMEOUT_SECOND
  193. #define CPPHTTPLIB_WEBSOCKET_CLIENT_READ_TIMEOUT_SECOND 0
  194. #endif
  195. #ifndef CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND
  196. #define CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND 300
  197. #endif
  198. #ifndef CPPHTTPLIB_WEBSOCKET_CLOSE_TIMEOUT_SECOND
  199. #define CPPHTTPLIB_WEBSOCKET_CLOSE_TIMEOUT_SECOND 5
  200. #endif
  201. #ifndef CPPHTTPLIB_WEBSOCKET_PING_INTERVAL_SECOND
  202. #define CPPHTTPLIB_WEBSOCKET_PING_INTERVAL_SECOND 30
  203. #endif
  204. #ifndef CPPHTTPLIB_WEBSOCKET_MAX_MISSED_PONGS
  205. #define CPPHTTPLIB_WEBSOCKET_MAX_MISSED_PONGS 0
  206. #endif
  207. /*
  208. * Headers
  209. */
  210. #ifdef _WIN32
  211. #ifndef _CRT_SECURE_NO_WARNINGS
  212. #define _CRT_SECURE_NO_WARNINGS
  213. #endif //_CRT_SECURE_NO_WARNINGS
  214. #ifndef _CRT_NONSTDC_NO_DEPRECATE
  215. #define _CRT_NONSTDC_NO_DEPRECATE
  216. #endif //_CRT_NONSTDC_NO_DEPRECATE
  217. #if defined(_MSC_VER)
  218. #if _MSC_VER < 1900
  219. #error Sorry, Visual Studio versions prior to 2015 are not supported
  220. #endif
  221. #pragma comment(lib, "ws2_32.lib")
  222. #ifndef _SSIZE_T_DEFINED
  223. using ssize_t = __int64;
  224. #define _SSIZE_T_DEFINED
  225. #endif
  226. #endif // _MSC_VER
  227. #ifndef S_ISREG
  228. #define S_ISREG(m) (((m) & S_IFREG) == S_IFREG)
  229. #endif // S_ISREG
  230. #ifndef S_ISDIR
  231. #define S_ISDIR(m) (((m) & S_IFDIR) == S_IFDIR)
  232. #endif // S_ISDIR
  233. #ifndef NOMINMAX
  234. #define NOMINMAX
  235. #endif // NOMINMAX
  236. #include <io.h>
  237. #include <winsock2.h>
  238. #include <ws2tcpip.h>
  239. #if defined(__has_include)
  240. #if __has_include(<afunix.h>)
  241. // afunix.h uses types declared in winsock2.h, so has to be included after it.
  242. #include <afunix.h>
  243. #define CPPHTTPLIB_HAVE_AFUNIX_H 1
  244. #endif
  245. #endif
  246. #ifndef WSA_FLAG_NO_HANDLE_INHERIT
  247. #define WSA_FLAG_NO_HANDLE_INHERIT 0x80
  248. #endif
  249. using nfds_t = unsigned long;
  250. using socket_t = SOCKET;
  251. using socklen_t = int;
  252. #else // not _WIN32
  253. #include <arpa/inet.h>
  254. #if !defined(_AIX) && !defined(__MVS__)
  255. #include <ifaddrs.h>
  256. #endif
  257. #ifdef __MVS__
  258. #include <strings.h>
  259. #ifndef NI_MAXHOST
  260. #define NI_MAXHOST 1025
  261. #endif
  262. #endif
  263. #include <net/if.h>
  264. #include <netdb.h>
  265. #include <netinet/in.h>
  266. #ifdef __linux__
  267. #include <resolv.h>
  268. #undef _res // Undefine _res macro to avoid conflicts with user code (#2278)
  269. #endif
  270. #include <csignal>
  271. #include <netinet/tcp.h>
  272. #include <poll.h>
  273. #include <pthread.h>
  274. #include <sys/mman.h>
  275. #include <sys/socket.h>
  276. #include <sys/un.h>
  277. #include <unistd.h>
  278. using socket_t = int;
  279. #ifndef INVALID_SOCKET
  280. #define INVALID_SOCKET (-1)
  281. #endif
  282. #endif //_WIN32
  283. #if defined(__APPLE__)
  284. #include <TargetConditionals.h>
  285. #endif
  286. #include <algorithm>
  287. #include <array>
  288. #include <atomic>
  289. #include <cassert>
  290. #include <chrono>
  291. #include <climits>
  292. #include <condition_variable>
  293. #include <cstdlib>
  294. #include <cstring>
  295. #include <errno.h>
  296. #include <exception>
  297. #include <fcntl.h>
  298. #include <fstream>
  299. #include <functional>
  300. #include <iomanip>
  301. #include <iostream>
  302. #include <iterator>
  303. #include <list>
  304. #include <map>
  305. #include <memory>
  306. #include <mutex>
  307. #include <random>
  308. #include <regex>
  309. #include <set>
  310. #include <sstream>
  311. #include <string>
  312. #include <sys/stat.h>
  313. #include <system_error>
  314. #include <thread>
  315. #include <type_traits>
  316. #include <unordered_map>
  317. #include <unordered_set>
  318. #include <utility>
  319. #include <vector>
  320. // On macOS with a TLS backend, enable Keychain root certificates by default
  321. // unless the user explicitly opts out. Not enabled on iOS/tvOS/watchOS since
  322. // the SecTrustSettings APIs used to enumerate anchor certificates are macOS
  323. // only; on those platforms the user must provide a CA bundle explicitly.
  324. #if defined(__APPLE__) && defined(__clang__) && \
  325. !defined(CPPHTTPLIB_DISABLE_MACOSX_AUTOMATIC_ROOT_CERTIFICATES) && \
  326. (defined(CPPHTTPLIB_OPENSSL_SUPPORT) || \
  327. defined(CPPHTTPLIB_MBEDTLS_SUPPORT) || \
  328. defined(CPPHTTPLIB_WOLFSSL_SUPPORT))
  329. #if TARGET_OS_OSX
  330. #ifndef CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  331. #define CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  332. #endif
  333. #endif
  334. #endif
  335. #if defined(CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN) && \
  336. defined(__APPLE__) && !TARGET_OS_OSX
  337. #error \
  338. "CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN is only supported on macOS. On iOS/tvOS/watchOS, supply a CA bundle via set_ca_cert_path()."
  339. #endif
  340. // On Windows, enable Schannel certificate verification by default
  341. // unless the user explicitly opts out.
  342. #if defined(_WIN32) && \
  343. !defined(CPPHTTPLIB_DISABLE_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE)
  344. #define CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  345. #endif
  346. #if defined(CPPHTTPLIB_USE_NON_BLOCKING_GETADDRINFO) || \
  347. defined(CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN)
  348. #if TARGET_OS_MAC && defined(__clang__)
  349. #include <CFNetwork/CFHost.h>
  350. #include <CoreFoundation/CoreFoundation.h>
  351. #endif
  352. #endif
  353. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  354. #ifdef _WIN32
  355. #include <wincrypt.h>
  356. // these are defined in wincrypt.h and it breaks compilation if BoringSSL is
  357. // used
  358. #undef X509_NAME
  359. #undef X509_CERT_PAIR
  360. #undef X509_EXTENSIONS
  361. #undef PKCS7_SIGNER_INFO
  362. #ifdef _MSC_VER
  363. #pragma comment(lib, "crypt32.lib")
  364. #endif
  365. #endif // _WIN32
  366. #ifdef CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  367. #if TARGET_OS_OSX
  368. #include <Security/Security.h>
  369. #endif
  370. #endif
  371. #include <openssl/err.h>
  372. #include <openssl/evp.h>
  373. #include <openssl/ssl.h>
  374. #include <openssl/x509v3.h>
  375. #if defined(_WIN32) && defined(OPENSSL_USE_APPLINK)
  376. #include <openssl/applink.c>
  377. #endif
  378. #include <iostream>
  379. #include <sstream>
  380. #if defined(OPENSSL_IS_BORINGSSL) || defined(LIBRESSL_VERSION_NUMBER)
  381. #if OPENSSL_VERSION_NUMBER < 0x1010107f
  382. #error Please use OpenSSL or a current version of BoringSSL
  383. #endif
  384. #define SSL_get1_peer_certificate SSL_get_peer_certificate
  385. #elif OPENSSL_VERSION_NUMBER < 0x30000000L
  386. #error Sorry, OpenSSL versions prior to 3.0.0 are not supported
  387. #endif
  388. #endif // CPPHTTPLIB_OPENSSL_SUPPORT
  389. #ifdef CPPHTTPLIB_MBEDTLS_SUPPORT
  390. // version.h defines MBEDTLS_VERSION_MAJOR (on 2.x/3.x/4.x alike); it is pulled
  391. // in with this first include group so the version gating below can use it.
  392. #include <mbedtls/error.h>
  393. #include <mbedtls/net_sockets.h>
  394. #include <mbedtls/oid.h>
  395. #include <mbedtls/pk.h>
  396. #include <mbedtls/ssl.h>
  397. #include <mbedtls/version.h>
  398. #include <mbedtls/x509_crt.h>
  399. #if MBEDTLS_VERSION_MAJOR >= 4
  400. // Mbed TLS 4.x moved hashing/RNG to PSA Crypto and removed these headers.
  401. #include <psa/crypto.h>
  402. #else
  403. #include <mbedtls/ctr_drbg.h>
  404. #include <mbedtls/entropy.h>
  405. #include <mbedtls/md5.h>
  406. #include <mbedtls/sha1.h>
  407. #include <mbedtls/sha256.h>
  408. #include <mbedtls/sha512.h>
  409. #endif
  410. #ifdef _WIN32
  411. #include <wincrypt.h>
  412. #ifdef _MSC_VER
  413. #pragma comment(lib, "crypt32.lib")
  414. #endif
  415. #endif // _WIN32
  416. #ifdef CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  417. #if TARGET_OS_OSX
  418. #include <Security/Security.h>
  419. #endif
  420. #endif
  421. // Mbed TLS version API compatibility. Note: V4 implies V3 (both defined on
  422. // 4.x), so version-specific 3.x-only code must check V3 && !V4.
  423. #if MBEDTLS_VERSION_MAJOR >= 4
  424. #define CPPHTTPLIB_MBEDTLS_V4
  425. #endif
  426. #if MBEDTLS_VERSION_MAJOR >= 3
  427. #define CPPHTTPLIB_MBEDTLS_V3
  428. #endif
  429. #endif // CPPHTTPLIB_MBEDTLS_SUPPORT
  430. #ifdef CPPHTTPLIB_WOLFSSL_SUPPORT
  431. #include <wolfssl/options.h>
  432. #include <wolfssl/openssl/x509v3.h>
  433. // Fallback definitions for older wolfSSL versions (e.g., 5.6.6)
  434. #ifndef WOLFSSL_GEN_EMAIL
  435. #define WOLFSSL_GEN_EMAIL 1
  436. #endif
  437. #ifndef WOLFSSL_GEN_DNS
  438. #define WOLFSSL_GEN_DNS 2
  439. #endif
  440. #ifndef WOLFSSL_GEN_URI
  441. #define WOLFSSL_GEN_URI 6
  442. #endif
  443. #ifndef WOLFSSL_GEN_IPADD
  444. #define WOLFSSL_GEN_IPADD 7
  445. #endif
  446. #include <wolfssl/ssl.h>
  447. #include <wolfssl/wolfcrypt/hash.h>
  448. #include <wolfssl/wolfcrypt/md5.h>
  449. #include <wolfssl/wolfcrypt/sha256.h>
  450. #include <wolfssl/wolfcrypt/sha512.h>
  451. #ifdef _WIN32
  452. #include <wincrypt.h>
  453. #ifdef _MSC_VER
  454. #pragma comment(lib, "crypt32.lib")
  455. #endif
  456. #endif // _WIN32
  457. #ifdef CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  458. #if TARGET_OS_OSX
  459. #include <Security/Security.h>
  460. #endif
  461. #endif
  462. #endif // CPPHTTPLIB_WOLFSSL_SUPPORT
  463. // Define CPPHTTPLIB_SSL_ENABLED if any SSL backend is available
  464. #if defined(CPPHTTPLIB_OPENSSL_SUPPORT) || \
  465. defined(CPPHTTPLIB_MBEDTLS_SUPPORT) || defined(CPPHTTPLIB_WOLFSSL_SUPPORT)
  466. #define CPPHTTPLIB_SSL_ENABLED
  467. #endif
  468. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  469. #include <zlib.h>
  470. #endif
  471. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  472. #include <brotli/decode.h>
  473. #include <brotli/encode.h>
  474. #endif
  475. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  476. #include <zstd.h>
  477. #endif
  478. /*
  479. * Declaration
  480. */
  481. namespace httplib {
  482. namespace ws {
  483. class WebSocket;
  484. } // namespace ws
  485. namespace detail {
  486. /*
  487. * Backport std::make_unique from C++14.
  488. *
  489. * NOTE: This code came up with the following stackoverflow post:
  490. * https://stackoverflow.com/questions/10149840/c-arrays-and-make-unique
  491. *
  492. */
  493. template <class T, class... Args>
  494. typename std::enable_if<!std::is_array<T>::value, std::unique_ptr<T>>::type
  495. make_unique(Args &&...args) {
  496. return std::unique_ptr<T>(new T(std::forward<Args>(args)...));
  497. }
  498. template <class T>
  499. typename std::enable_if<std::is_array<T>::value, std::unique_ptr<T>>::type
  500. make_unique(std::size_t n) {
  501. typedef typename std::remove_extent<T>::type RT;
  502. return std::unique_ptr<T>(new RT[n]);
  503. }
  504. // Locale-independent ASCII character classification. The <cctype>
  505. // counterparts (std::isalnum, std::isdigit, ...) consult the global C locale,
  506. // so e.g. std::isalnum(0xC5) can return true once an embedder calls
  507. // setlocale(). HTTP grammars are defined over ASCII, so raw bytes must be
  508. // classified without regard to the locale.
  509. inline bool is_ascii_digit(char c) { return '0' <= c && c <= '9'; }
  510. inline bool is_ascii_alpha(char c) {
  511. return ('a' <= c && c <= 'z') || ('A' <= c && c <= 'Z');
  512. }
  513. inline bool is_ascii_alnum(char c) {
  514. return is_ascii_digit(c) || is_ascii_alpha(c);
  515. }
  516. namespace case_ignore {
  517. inline unsigned char to_lower(int c) {
  518. const static unsigned char table[256] = {
  519. 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14,
  520. 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29,
  521. 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44,
  522. 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59,
  523. 60, 61, 62, 63, 64, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106,
  524. 107, 108, 109, 110, 111, 112, 113, 114, 115, 116, 117, 118, 119, 120, 121,
  525. 122, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104,
  526. 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115, 116, 117, 118, 119,
  527. 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134,
  528. 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149,
  529. 150, 151, 152, 153, 154, 155, 156, 157, 158, 159, 160, 161, 162, 163, 164,
  530. 165, 166, 167, 168, 169, 170, 171, 172, 173, 174, 175, 176, 177, 178, 179,
  531. 180, 181, 182, 183, 184, 185, 186, 187, 188, 189, 190, 191, 224, 225, 226,
  532. 227, 228, 229, 230, 231, 232, 233, 234, 235, 236, 237, 238, 239, 240, 241,
  533. 242, 243, 244, 245, 246, 215, 248, 249, 250, 251, 252, 253, 254, 223, 224,
  534. 225, 226, 227, 228, 229, 230, 231, 232, 233, 234, 235, 236, 237, 238, 239,
  535. 240, 241, 242, 243, 244, 245, 246, 247, 248, 249, 250, 251, 252, 253, 254,
  536. 255,
  537. };
  538. return table[(unsigned char)(char)c];
  539. }
  540. inline std::string to_lower(const std::string &s) {
  541. std::string result = s;
  542. std::transform(
  543. result.begin(), result.end(), result.begin(),
  544. [](unsigned char c) { return static_cast<char>(to_lower(c)); });
  545. return result;
  546. }
  547. inline bool equal(const std::string &a, const std::string &b) {
  548. return a.size() == b.size() &&
  549. std::equal(a.begin(), a.end(), b.begin(), [](char ca, char cb) {
  550. return to_lower(ca) == to_lower(cb);
  551. });
  552. }
  553. struct equal_to {
  554. bool operator()(const std::string &a, const std::string &b) const {
  555. return equal(a, b);
  556. }
  557. };
  558. struct hash {
  559. size_t operator()(const std::string &key) const {
  560. return hash_core(key.data(), key.size(), 0);
  561. }
  562. size_t hash_core(const char *s, size_t l, size_t h) const {
  563. return (l == 0) ? h
  564. : hash_core(s + 1, l - 1,
  565. // Unsets the 6 high bits of h, therefore no
  566. // overflow happens
  567. (((std::numeric_limits<size_t>::max)() >> 6) &
  568. h * 33) ^
  569. static_cast<unsigned char>(to_lower(*s)));
  570. }
  571. };
  572. template <typename T>
  573. using unordered_set = std::unordered_set<T, detail::case_ignore::hash,
  574. detail::case_ignore::equal_to>;
  575. } // namespace case_ignore
  576. // This is based on
  577. // "http://www.open-std.org/jtc1/sc22/wg21/docs/papers/2014/n4189".
  578. struct scope_exit {
  579. explicit scope_exit(std::function<void(void)> &&f)
  580. : exit_function(std::move(f)), execute_on_destruction{true} {}
  581. scope_exit(scope_exit &&rhs) noexcept
  582. : exit_function(std::move(rhs.exit_function)),
  583. execute_on_destruction{rhs.execute_on_destruction} {
  584. rhs.release();
  585. }
  586. ~scope_exit() {
  587. if (execute_on_destruction) { this->exit_function(); }
  588. }
  589. void release() { this->execute_on_destruction = false; }
  590. private:
  591. scope_exit(const scope_exit &) = delete;
  592. void operator=(const scope_exit &) = delete;
  593. scope_exit &operator=(scope_exit &&) = delete;
  594. std::function<void(void)> exit_function;
  595. bool execute_on_destruction;
  596. };
  597. // Simple from_chars implementation for integer and double types (C++17
  598. // substitute)
  599. template <typename T> struct from_chars_result {
  600. const char *ptr;
  601. std::errc ec;
  602. };
  603. template <typename T>
  604. inline from_chars_result<T> from_chars(const char *first, const char *last,
  605. T &value, int base = 10) {
  606. value = 0;
  607. const char *p = first;
  608. bool negative = false;
  609. if (p != last && *p == '-') {
  610. negative = true;
  611. ++p;
  612. }
  613. if (p == last) { return {first, std::errc::invalid_argument}; }
  614. T result = 0;
  615. for (; p != last; ++p) {
  616. char c = *p;
  617. int digit = -1;
  618. if (is_ascii_digit(c)) {
  619. digit = c - '0';
  620. } else if ('a' <= c && c <= 'z') {
  621. digit = c - 'a' + 10;
  622. } else if ('A' <= c && c <= 'Z') {
  623. digit = c - 'A' + 10;
  624. } else {
  625. break;
  626. }
  627. if (digit < 0 || digit >= base) { break; }
  628. if (result > ((std::numeric_limits<T>::max)() - digit) / base) {
  629. return {p, std::errc::result_out_of_range};
  630. }
  631. result = result * base + digit;
  632. }
  633. if (p == first || (negative && p == first + 1)) {
  634. return {first, std::errc::invalid_argument};
  635. }
  636. value = negative ? T(0) - result : result;
  637. return {p, std::errc{}};
  638. }
  639. // from_chars for double (hand-written, locale-independent)
  640. //
  641. // The only double consumed by this library is the HTTP quality value, whose
  642. // grammar is (RFC 9110 12.4.2):
  643. // qvalue = ( "0" [ "." 0*3DIGIT ] ) / ( "1" [ "." 0*3("0") ] )
  644. // i.e. a non-negative decimal with no sign, exponent, "inf"/"nan", or wide
  645. // magnitude. So this parser recognizes exactly 1*DIGIT [ "." *DIGIT ] with
  646. // '.' always the decimal separator (std::strtod would instead read it from the
  647. // global C locale, mis-parsing q-values once an embedder calls
  648. // setlocale(LC_ALL, "") into a comma-decimal locale). The caller range-checks
  649. // the result to [0, 1], so inputs outside that range need not be distinguished
  650. // here. Allocation-free, single pass, and free of the overflow/rounding edge
  651. // cases that exponent and wide-range handling would introduce.
  652. inline from_chars_result<double> from_chars(const char *first, const char *last,
  653. double &value) {
  654. value = 0.0;
  655. const char *p = first;
  656. // Each 1eN is exactly representable, so a single final division by the
  657. // matching entry yields a correctly-rounded result.
  658. static const double powers_of_ten[] = {
  659. 1e0, 1e1, 1e2, 1e3, 1e4, 1e5, 1e6, 1e7, 1e8, 1e9,
  660. 1e10, 1e11, 1e12, 1e13, 1e14, 1e15, 1e16, 1e17, 1e18};
  661. const int max_frac_digits =
  662. static_cast<int>(sizeof(powers_of_ten) / sizeof(powers_of_ten[0])) - 1;
  663. // Accumulate digits into a 64-bit integer and remember how many were
  664. // fractional. Two independent caps keep this bounded and safe:
  665. // * accumulation saturates before mantissa could overflow uint64_t, and
  666. // * frac_digits is capped at max_frac_digits so it is always a valid index
  667. // into powers_of_ten (without this an input like "0.000...0" would never
  668. // grow mantissa, so the saturation cap alone would not bound it).
  669. // Both caps only drop digits far beyond the precision a q-value needs; any
  670. // value they would change is well outside [0, 1] and rejected by the caller.
  671. uint64_t mantissa = 0;
  672. int frac_digits = 0;
  673. bool seen_digit = false;
  674. const uint64_t limit = ((std::numeric_limits<uint64_t>::max)() - 9) / 10;
  675. auto accumulate = [&](char c) {
  676. if (mantissa <= limit) {
  677. mantissa = mantissa * 10 + static_cast<uint64_t>(c - '0');
  678. return true;
  679. }
  680. return false;
  681. };
  682. for (; p != last && is_ascii_digit(*p); ++p) {
  683. seen_digit = true;
  684. accumulate(*p);
  685. }
  686. if (p != last && *p == '.') {
  687. ++p;
  688. for (; p != last && is_ascii_digit(*p); ++p) {
  689. seen_digit = true;
  690. if (frac_digits < max_frac_digits && accumulate(*p)) { ++frac_digits; }
  691. }
  692. }
  693. if (!seen_digit) { return {first, std::errc::invalid_argument}; }
  694. value = static_cast<double>(mantissa) / powers_of_ten[frac_digits];
  695. return {p, std::errc{}};
  696. }
  697. inline bool parse_int_in_range(const char *s, size_t len, int lo, int hi,
  698. int &out) {
  699. int val = 0;
  700. auto r = from_chars(s, s + len, val);
  701. if (r.ec != std::errc{} || r.ptr != s + len || val < lo || val > hi) {
  702. return false;
  703. }
  704. out = val;
  705. return true;
  706. }
  707. inline bool parse_port(const char *s, size_t len, int &port) {
  708. return parse_int_in_range(s, len, 1, 65535, port);
  709. }
  710. inline bool parse_port(const std::string &s, int &port) {
  711. return parse_port(s.data(), s.size(), port);
  712. }
  713. struct UrlComponents {
  714. std::string scheme;
  715. std::string host;
  716. std::string port;
  717. std::string path;
  718. std::string query;
  719. };
  720. inline bool parse_url(const std::string &url, UrlComponents &uc) {
  721. uc = {};
  722. size_t pos = 0;
  723. auto sep = url.find("://");
  724. if (sep != std::string::npos) {
  725. uc.scheme = url.substr(0, sep);
  726. // Scheme must be [a-z]+ only
  727. if (uc.scheme.empty()) { return false; }
  728. for (auto c : uc.scheme) {
  729. if (c < 'a' || c > 'z') { return false; }
  730. }
  731. pos = sep + 3;
  732. } else if (url.compare(0, 2, "//") == 0) {
  733. pos = 2;
  734. }
  735. auto has_authority_prefix = pos > 0;
  736. auto has_authority = has_authority_prefix || (!url.empty() && url[0] != '/' &&
  737. url[0] != '?' && url[0] != '#');
  738. if (has_authority) {
  739. if (pos < url.size() && url[pos] == '[') {
  740. auto close = url.find(']', pos);
  741. if (close == std::string::npos) { return false; }
  742. uc.host = url.substr(pos + 1, close - pos - 1);
  743. // IPv6 host must be [a-fA-F0-9:]+ only
  744. if (uc.host.empty()) { return false; }
  745. for (auto c : uc.host) {
  746. if (!(is_ascii_digit(c) || (c >= 'a' && c <= 'f') ||
  747. (c >= 'A' && c <= 'F') || c == ':')) {
  748. return false;
  749. }
  750. }
  751. pos = close + 1;
  752. // The IPv6 literal is the whole host, so ']' must be followed by a port,
  753. // path, query or fragment delimiter (or the end of input). Otherwise the
  754. // trailing bytes would be folded into the path while the connection
  755. // still targets the bracketed address.
  756. if (pos < url.size()) {
  757. auto c = url[pos];
  758. if (c != ':' && c != '/' && c != '?' && c != '#') { return false; }
  759. }
  760. } else {
  761. auto end = url.find_first_of(":/?#", pos);
  762. if (end == std::string::npos) { end = url.size(); }
  763. uc.host = url.substr(pos, end - pos);
  764. pos = end;
  765. }
  766. if (pos < url.size() && url[pos] == ':') {
  767. ++pos;
  768. auto end = url.find_first_of("/?#", pos);
  769. if (end == std::string::npos) { end = url.size(); }
  770. uc.port = url.substr(pos, end - pos);
  771. pos = end;
  772. }
  773. // Without :// or //, the entire input must be consumed as host[:port].
  774. // If there is leftover (path, query, etc.), this is not a valid
  775. // host[:port] string — clear and reparse as a plain path.
  776. if (!has_authority_prefix && pos < url.size()) {
  777. uc.host.clear();
  778. uc.port.clear();
  779. pos = 0;
  780. }
  781. }
  782. if (pos < url.size() && url[pos] != '?' && url[pos] != '#') {
  783. auto end = url.find_first_of("?#", pos);
  784. if (end == std::string::npos) { end = url.size(); }
  785. uc.path = url.substr(pos, end - pos);
  786. pos = end;
  787. }
  788. if (pos < url.size() && url[pos] == '?') {
  789. auto end = url.find('#', pos);
  790. if (end == std::string::npos) { end = url.size(); }
  791. uc.query = url.substr(pos, end - pos);
  792. }
  793. return true;
  794. }
  795. // Resolves a relative-path or query-only Location value against the path of
  796. // the request being redirected (RFC 3986 section 5.2). Absolute URIs and
  797. // references starting with '/' are returned unchanged.
  798. inline std::string resolve_relative_location(const std::string &location,
  799. const std::string &base) {
  800. if (location.empty() || location[0] == '/') { return location; }
  801. // A ':' in the first segment means the value has a scheme.
  802. if (location.find(':') < location.find_first_of("/?#")) { return location; }
  803. if (location[0] == '#') { return base.substr(0, base.find('#')) + location; }
  804. auto base_path = base.substr(0, base.find_first_of("?#"));
  805. if (location[0] == '?') { return base_path + location; }
  806. if (base_path.empty() || base_path[0] != '/') { base_path = "/"; }
  807. auto merged = base_path.substr(0, base_path.rfind('/') + 1) + location;
  808. // Remove "." and ".." segments from the merged path.
  809. auto path_end = (std::min)(merged.find_first_of("?#"), merged.size());
  810. std::string path;
  811. size_t i = 0;
  812. while (i < path_end) {
  813. auto next = (std::min)(merged.find('/', i + 1), path_end);
  814. auto segment = merged.substr(i + 1, next - i - 1);
  815. auto is_last = next == path_end;
  816. if (segment == "." || segment == "..") {
  817. if (segment == "..") {
  818. path.erase((std::min)(path.rfind('/'), path.size()));
  819. }
  820. if (is_last) { path += '/'; }
  821. } else {
  822. path += '/';
  823. path += segment;
  824. }
  825. i = next;
  826. }
  827. if (path.empty()) { path = "/"; }
  828. return path + merged.substr(path_end);
  829. }
  830. } // namespace detail
  831. enum class SSLVerifierResponse {
  832. // no decision has been made, use the built-in certificate verifier
  833. NoDecisionMade,
  834. // connection certificate is verified and accepted
  835. CertificateAccepted,
  836. // connection certificate was processed but is rejected
  837. CertificateRejected
  838. };
  839. // System CA loading policy for SSL clients. Auto (the default) loads system
  840. // CA certs only when no custom CA is configured; enable_system_ca() switches
  841. // to an explicit policy.
  842. enum class SystemCAMode { Auto, Enabled, Disabled };
  843. enum StatusCode {
  844. // Information responses
  845. Continue_100 = 100,
  846. SwitchingProtocol_101 = 101,
  847. Processing_102 = 102,
  848. EarlyHints_103 = 103,
  849. // Successful responses
  850. OK_200 = 200,
  851. Created_201 = 201,
  852. Accepted_202 = 202,
  853. NonAuthoritativeInformation_203 = 203,
  854. NoContent_204 = 204,
  855. ResetContent_205 = 205,
  856. PartialContent_206 = 206,
  857. MultiStatus_207 = 207,
  858. AlreadyReported_208 = 208,
  859. IMUsed_226 = 226,
  860. // Redirection messages
  861. MultipleChoices_300 = 300,
  862. MovedPermanently_301 = 301,
  863. Found_302 = 302,
  864. SeeOther_303 = 303,
  865. NotModified_304 = 304,
  866. UseProxy_305 = 305,
  867. unused_306 = 306,
  868. TemporaryRedirect_307 = 307,
  869. PermanentRedirect_308 = 308,
  870. // Client error responses
  871. BadRequest_400 = 400,
  872. Unauthorized_401 = 401,
  873. PaymentRequired_402 = 402,
  874. Forbidden_403 = 403,
  875. NotFound_404 = 404,
  876. MethodNotAllowed_405 = 405,
  877. NotAcceptable_406 = 406,
  878. ProxyAuthenticationRequired_407 = 407,
  879. RequestTimeout_408 = 408,
  880. Conflict_409 = 409,
  881. Gone_410 = 410,
  882. LengthRequired_411 = 411,
  883. PreconditionFailed_412 = 412,
  884. PayloadTooLarge_413 = 413,
  885. UriTooLong_414 = 414,
  886. UnsupportedMediaType_415 = 415,
  887. RangeNotSatisfiable_416 = 416,
  888. ExpectationFailed_417 = 417,
  889. ImATeapot_418 = 418,
  890. MisdirectedRequest_421 = 421,
  891. UnprocessableContent_422 = 422,
  892. Locked_423 = 423,
  893. FailedDependency_424 = 424,
  894. TooEarly_425 = 425,
  895. UpgradeRequired_426 = 426,
  896. PreconditionRequired_428 = 428,
  897. TooManyRequests_429 = 429,
  898. RequestHeaderFieldsTooLarge_431 = 431,
  899. UnavailableForLegalReasons_451 = 451,
  900. // Server error responses
  901. InternalServerError_500 = 500,
  902. NotImplemented_501 = 501,
  903. BadGateway_502 = 502,
  904. ServiceUnavailable_503 = 503,
  905. GatewayTimeout_504 = 504,
  906. HttpVersionNotSupported_505 = 505,
  907. VariantAlsoNegotiates_506 = 506,
  908. InsufficientStorage_507 = 507,
  909. LoopDetected_508 = 508,
  910. NotExtended_510 = 510,
  911. NetworkAuthenticationRequired_511 = 511,
  912. };
  913. namespace detail {
  914. // A multimap that keeps its entries in the order they were inserted.
  915. //
  916. // HTTP needs that order in two places. RFC 9110 5.3 makes the order of header
  917. // fields sharing a field name significant and forbids a proxy from reordering
  918. // them, and a query string's parameters are meaningful in the order the caller
  919. // wrote them. Neither standard container expresses it: std::unordered_multimap
  920. // gives no ordering guarantee at all for equivalent keys (libstdc++ yields
  921. // reverse insertion order, libc++ insertion order), and std::multimap sorts by
  922. // key, which would drop control data such as Host behind whatever else the
  923. // message carries and alphabetise a query string.
  924. //
  925. // Entries are therefore kept in a flat vector, in order. Lookup is a linear
  926. // scan, which beats hashing for the handful of entries a message carries
  927. // (headers are capped at CPPHTTPLIB_HEADER_MAX_COUNT).
  928. //
  929. // KeyEqual compares keys; it is what makes Headers case-insensitive and
  930. // Params, whose parameter names are case-sensitive, not.
  931. template <typename Mapped, typename KeyEqual> class insertion_ordered_multimap {
  932. public:
  933. using key_type = std::string;
  934. using mapped_type = Mapped;
  935. using value_type = std::pair<std::string, Mapped>;
  936. using size_type = std::size_t;
  937. using difference_type = std::ptrdiff_t;
  938. using reference = value_type &;
  939. using const_reference = const value_type &;
  940. private:
  941. static size_type npos() { return static_cast<size_type>(-1); }
  942. static bool keys_equal(const std::string &a, const std::string &b) {
  943. return KeyEqual()(a, b);
  944. }
  945. // Iterating yields every entry in insertion order, but equal_range() and
  946. // find() have to walk only the entries sharing one key, which are not
  947. // adjacent. Both are the same iterator type: key_idx_ selects between the
  948. // two traversals, and since equality compares only the position, an iterator
  949. // restricted to one key still compares equal to end().
  950. template <typename V> class iterator_t {
  951. public:
  952. using iterator_category = std::bidirectional_iterator_tag;
  953. using value_type = insertion_ordered_multimap::value_type;
  954. using difference_type = insertion_ordered_multimap::difference_type;
  955. using pointer = V *;
  956. using reference = V &;
  957. iterator_t() : data_(nullptr), idx_(0), size_(0), key_idx_(npos()) {}
  958. template <typename U,
  959. typename std::enable_if<std::is_convertible<U *, V *>::value,
  960. int>::type = 0>
  961. iterator_t(const iterator_t<U> &rhs)
  962. : data_(rhs.data_), idx_(rhs.idx_), size_(rhs.size_),
  963. key_idx_(rhs.key_idx_) {}
  964. reference operator*() const { return data_[idx_]; }
  965. pointer operator->() const { return data_ + idx_; }
  966. iterator_t &operator++() {
  967. // Saturating, so that advancing past the last entry of a key (which
  968. // get_multimap_value() does when asked for an out-of-range id) stays at
  969. // end() instead of running off the container.
  970. if (idx_ >= size_) { return *this; }
  971. ++idx_;
  972. if (key_idx_ != npos()) {
  973. while (idx_ < size_ && !matches(idx_)) {
  974. ++idx_;
  975. }
  976. }
  977. return *this;
  978. }
  979. iterator_t operator++(int) {
  980. auto tmp = *this;
  981. ++*this;
  982. return tmp;
  983. }
  984. iterator_t &operator--() {
  985. if (idx_ == 0) { return *this; }
  986. --idx_;
  987. if (key_idx_ != npos()) {
  988. while (idx_ > 0 && !matches(idx_)) {
  989. --idx_;
  990. }
  991. }
  992. return *this;
  993. }
  994. iterator_t operator--(int) {
  995. auto tmp = *this;
  996. --*this;
  997. return tmp;
  998. }
  999. template <typename U> bool operator==(const iterator_t<U> &rhs) const {
  1000. return idx_ == rhs.idx_;
  1001. }
  1002. template <typename U> bool operator!=(const iterator_t<U> &rhs) const {
  1003. return idx_ != rhs.idx_;
  1004. }
  1005. private:
  1006. friend class insertion_ordered_multimap;
  1007. template <typename> friend class iterator_t;
  1008. iterator_t(V *data, size_type idx, size_type size, size_type key_idx)
  1009. : data_(data), idx_(idx), size_(size), key_idx_(key_idx) {}
  1010. bool matches(size_type i) const {
  1011. return keys_equal(data_[i].first, data_[key_idx_].first);
  1012. }
  1013. V *data_;
  1014. size_type idx_;
  1015. size_type size_;
  1016. size_type key_idx_;
  1017. };
  1018. public:
  1019. using iterator = iterator_t<value_type>;
  1020. using const_iterator = iterator_t<const value_type>;
  1021. insertion_ordered_multimap() = default;
  1022. insertion_ordered_multimap(std::initializer_list<value_type> il)
  1023. : entries_(il) {}
  1024. template <typename InputIt>
  1025. insertion_ordered_multimap(InputIt first, InputIt last)
  1026. : entries_(first, last) {}
  1027. iterator begin() { return make_iter(0, npos()); }
  1028. iterator end() { return make_iter(entries_.size(), npos()); }
  1029. const_iterator begin() const { return make_citer(0, npos()); }
  1030. const_iterator end() const { return make_citer(entries_.size(), npos()); }
  1031. const_iterator cbegin() const { return begin(); }
  1032. const_iterator cend() const { return end(); }
  1033. bool empty() const { return entries_.empty(); }
  1034. size_type size() const { return entries_.size(); }
  1035. void clear() { entries_.clear(); }
  1036. void swap(insertion_ordered_multimap &rhs) { entries_.swap(rhs.entries_); }
  1037. iterator insert(const value_type &val) {
  1038. entries_.push_back(val);
  1039. return make_iter(entries_.size() - 1, npos());
  1040. }
  1041. iterator insert(value_type &&val) {
  1042. entries_.push_back(std::move(val));
  1043. return make_iter(entries_.size() - 1, npos());
  1044. }
  1045. template <typename... Args> iterator emplace(Args &&...args) {
  1046. entries_.emplace_back(std::forward<Args>(args)...);
  1047. return make_iter(entries_.size() - 1, npos());
  1048. }
  1049. // For entries that have to lead the message, such as the Host header field
  1050. // (RFC 9110 5.3 recommends sending control data first).
  1051. template <typename... Args> iterator emplace_front(Args &&...args) {
  1052. entries_.emplace(entries_.begin(), std::forward<Args>(args)...);
  1053. return make_iter(0, npos());
  1054. }
  1055. iterator find(const std::string &key) {
  1056. auto i = index_of(key);
  1057. return i == npos() ? end() : make_iter(i, i);
  1058. }
  1059. const_iterator find(const std::string &key) const {
  1060. auto i = index_of(key);
  1061. return i == npos() ? end() : make_citer(i, i);
  1062. }
  1063. size_type count(const std::string &key) const {
  1064. size_type n = 0;
  1065. for (const auto &entry : entries_) {
  1066. if (keys_equal(entry.first, key)) { n++; }
  1067. }
  1068. return n;
  1069. }
  1070. std::pair<iterator, iterator> equal_range(const std::string &key) {
  1071. auto i = index_of(key);
  1072. return i == npos() ? std::make_pair(end(), end())
  1073. : std::make_pair(make_iter(i, i), end());
  1074. }
  1075. std::pair<const_iterator, const_iterator>
  1076. equal_range(const std::string &key) const {
  1077. auto i = index_of(key);
  1078. return i == npos() ? std::make_pair(end(), end())
  1079. : std::make_pair(make_citer(i, i), end());
  1080. }
  1081. size_type erase(const std::string &key) {
  1082. auto before = entries_.size();
  1083. entries_.erase(std::remove_if(entries_.begin(), entries_.end(),
  1084. [&](const value_type &entry) {
  1085. return keys_equal(entry.first, key);
  1086. }),
  1087. entries_.end());
  1088. return before - entries_.size();
  1089. }
  1090. iterator erase(const_iterator pos) {
  1091. entries_.erase(entries_.begin() + static_cast<difference_type>(pos.idx_));
  1092. return make_iter(pos.idx_, npos());
  1093. }
  1094. // Erases what iterating [first, last) would actually visit, so erasing an
  1095. // equal_range() removes only the entries with that key, not everything
  1096. // positioned between them.
  1097. iterator erase(const_iterator first, const_iterator last) {
  1098. auto from = first.idx_;
  1099. auto to = last.idx_;
  1100. if (from >= to) { return make_iter(from, npos()); }
  1101. auto begin_it = entries_.begin();
  1102. auto from_it = begin_it + static_cast<difference_type>(from);
  1103. auto to_it = begin_it + static_cast<difference_type>(to);
  1104. if (first.key_idx_ == npos()) {
  1105. entries_.erase(from_it, to_it);
  1106. } else {
  1107. auto key = entries_[first.key_idx_].first;
  1108. auto keep = from_it;
  1109. for (auto it = from_it; it != to_it; ++it) {
  1110. if (!keys_equal(it->first, key)) {
  1111. if (keep != it) { *keep = std::move(*it); }
  1112. ++keep;
  1113. }
  1114. }
  1115. if (keep != to_it) {
  1116. keep = std::move(to_it, entries_.end(), keep);
  1117. } else {
  1118. keep = entries_.end();
  1119. }
  1120. entries_.erase(keep, entries_.end());
  1121. }
  1122. return make_iter(from, npos());
  1123. }
  1124. friend bool operator==(const insertion_ordered_multimap &lhs,
  1125. const insertion_ordered_multimap &rhs) {
  1126. return lhs.entries_ == rhs.entries_;
  1127. }
  1128. friend bool operator!=(const insertion_ordered_multimap &lhs,
  1129. const insertion_ordered_multimap &rhs) {
  1130. return !(lhs == rhs);
  1131. }
  1132. private:
  1133. size_type index_of(const std::string &key) const {
  1134. for (size_type i = 0; i < entries_.size(); i++) {
  1135. if (keys_equal(entries_[i].first, key)) { return i; }
  1136. }
  1137. return npos();
  1138. }
  1139. iterator make_iter(size_type idx, size_type key_idx) {
  1140. return iterator(entries_.data(), idx, entries_.size(), key_idx);
  1141. }
  1142. const_iterator make_citer(size_type idx, size_type key_idx) const {
  1143. return const_iterator(entries_.data(), idx, entries_.size(), key_idx);
  1144. }
  1145. std::vector<value_type> entries_;
  1146. };
  1147. } // namespace detail
  1148. using Headers =
  1149. detail::insertion_ordered_multimap<std::string,
  1150. detail::case_ignore::equal_to>;
  1151. // Query parameter names are case-sensitive, unlike header field names.
  1152. using Params =
  1153. detail::insertion_ordered_multimap<std::string, std::equal_to<std::string>>;
  1154. using Match = std::smatch;
  1155. using DownloadProgress = std::function<bool(size_t current, size_t total)>;
  1156. using UploadProgress = std::function<bool(size_t current, size_t total)>;
  1157. /*
  1158. * detail: type-erased storage used by UserData.
  1159. * ABI-stable regardless of C++ standard — always uses this custom
  1160. * implementation instead of std::any.
  1161. */
  1162. namespace detail {
  1163. using any_type_id = const void *;
  1164. template <typename T> any_type_id any_typeid() noexcept {
  1165. static const char id = 0;
  1166. return &id;
  1167. }
  1168. struct any_storage {
  1169. virtual ~any_storage() = default;
  1170. virtual std::unique_ptr<any_storage> clone() const = 0;
  1171. virtual any_type_id type_id() const noexcept = 0;
  1172. };
  1173. template <typename T> struct any_value final : any_storage {
  1174. T value;
  1175. template <typename U> explicit any_value(U &&v) : value(std::forward<U>(v)) {}
  1176. std::unique_ptr<any_storage> clone() const override {
  1177. return std::unique_ptr<any_storage>(new any_value<T>(value));
  1178. }
  1179. any_type_id type_id() const noexcept override { return any_typeid<T>(); }
  1180. };
  1181. } // namespace detail
  1182. class UserData {
  1183. public:
  1184. UserData() = default;
  1185. UserData(UserData &&) noexcept = default;
  1186. UserData &operator=(UserData &&) noexcept = default;
  1187. UserData(const UserData &o) {
  1188. for (const auto &e : o.entries_) {
  1189. if (e.second) { entries_[e.first] = e.second->clone(); }
  1190. }
  1191. }
  1192. UserData &operator=(const UserData &o) {
  1193. if (this != &o) {
  1194. entries_.clear();
  1195. for (const auto &e : o.entries_) {
  1196. if (e.second) { entries_[e.first] = e.second->clone(); }
  1197. }
  1198. }
  1199. return *this;
  1200. }
  1201. template <typename T> void set(const std::string &key, T &&value) {
  1202. using D = typename std::decay<T>::type;
  1203. entries_[key].reset(new detail::any_value<D>(std::forward<T>(value)));
  1204. }
  1205. template <typename T> T *get(const std::string &key) noexcept {
  1206. auto it = entries_.find(key);
  1207. if (it == entries_.end() || !it->second) { return nullptr; }
  1208. if (it->second->type_id() != detail::any_typeid<T>()) { return nullptr; }
  1209. return &static_cast<detail::any_value<T> *>(it->second.get())->value;
  1210. }
  1211. template <typename T> const T *get(const std::string &key) const noexcept {
  1212. auto it = entries_.find(key);
  1213. if (it == entries_.end() || !it->second) { return nullptr; }
  1214. if (it->second->type_id() != detail::any_typeid<T>()) { return nullptr; }
  1215. return &static_cast<const detail::any_value<T> *>(it->second.get())->value;
  1216. }
  1217. bool has(const std::string &key) const noexcept {
  1218. return entries_.find(key) != entries_.end();
  1219. }
  1220. void erase(const std::string &key) { entries_.erase(key); }
  1221. void clear() noexcept { entries_.clear(); }
  1222. private:
  1223. std::unordered_map<std::string, std::unique_ptr<detail::any_storage>>
  1224. entries_;
  1225. };
  1226. struct Response;
  1227. using ResponseHandler = std::function<bool(const Response &response)>;
  1228. struct FormData {
  1229. std::string name;
  1230. std::string content;
  1231. std::string filename;
  1232. std::string content_type;
  1233. Headers headers;
  1234. };
  1235. struct FormField {
  1236. std::string name;
  1237. std::string content;
  1238. Headers headers;
  1239. };
  1240. // RFC 7578 5.2: a form processor "SHOULD send back results in order" and
  1241. // "Intermediaries MUST NOT reorder the results", so a handler walking these
  1242. // should see the parts as they were sent. A std::multimap sorts by field name
  1243. // and loses that. Field names are case-sensitive, hence std::equal_to rather
  1244. // than the case-insensitive predicate Headers uses.
  1245. using FormFields =
  1246. detail::insertion_ordered_multimap<FormField, std::equal_to<std::string>>;
  1247. using FormFiles =
  1248. detail::insertion_ordered_multimap<FormData, std::equal_to<std::string>>;
  1249. struct MultipartFormData {
  1250. FormFields fields; // Text fields from multipart
  1251. FormFiles files; // Files from multipart
  1252. // Text field access
  1253. std::string get_field(const std::string &key, size_t id = 0) const;
  1254. std::vector<std::string> get_fields(const std::string &key) const;
  1255. bool has_field(const std::string &key) const;
  1256. size_t get_field_count(const std::string &key) const;
  1257. // File access
  1258. FormData get_file(const std::string &key, size_t id = 0) const;
  1259. std::vector<FormData> get_files(const std::string &key) const;
  1260. bool has_file(const std::string &key) const;
  1261. size_t get_file_count(const std::string &key) const;
  1262. };
  1263. struct UploadFormData {
  1264. std::string name;
  1265. std::string content;
  1266. std::string filename;
  1267. std::string content_type;
  1268. };
  1269. using UploadFormDataItems = std::vector<UploadFormData>;
  1270. class DataSink {
  1271. public:
  1272. DataSink() : os(&sb_), sb_(*this) {}
  1273. DataSink(const DataSink &) = delete;
  1274. DataSink &operator=(const DataSink &) = delete;
  1275. DataSink(DataSink &&) = delete;
  1276. DataSink &operator=(DataSink &&) = delete;
  1277. std::function<bool(const char *data, size_t data_len)> write;
  1278. // Only `write` is mandatory. The rest are defaulted so that a provider
  1279. // calling one on a writer that does not set it gets sensible behaviour
  1280. // rather than std::bad_function_call thrown from a worker thread. Capturing
  1281. // `this` is safe: DataSink is neither copyable nor movable.
  1282. std::function<bool()> is_writable = []() { return true; };
  1283. std::function<void()> done = []() {};
  1284. std::function<void(const Headers &trailer)> done_with_trailer =
  1285. [this](const Headers & /*trailer*/) { done(); };
  1286. std::ostream os;
  1287. private:
  1288. class data_sink_streambuf final : public std::streambuf {
  1289. public:
  1290. explicit data_sink_streambuf(DataSink &sink) : sink_(sink) {}
  1291. protected:
  1292. std::streamsize xsputn(const char *s, std::streamsize n) override {
  1293. if (sink_.write(s, static_cast<size_t>(n))) { return n; }
  1294. return 0;
  1295. }
  1296. private:
  1297. DataSink &sink_;
  1298. };
  1299. data_sink_streambuf sb_;
  1300. };
  1301. using ContentProvider =
  1302. std::function<bool(size_t offset, size_t length, DataSink &sink)>;
  1303. using ContentProviderWithoutLength =
  1304. std::function<bool(size_t offset, DataSink &sink)>;
  1305. using ContentProviderResourceReleaser = std::function<void(bool success)>;
  1306. struct FormDataProvider {
  1307. std::string name;
  1308. ContentProviderWithoutLength provider;
  1309. std::string filename;
  1310. std::string content_type;
  1311. };
  1312. using FormDataProviderItems = std::vector<FormDataProvider>;
  1313. inline FormDataProvider
  1314. make_file_provider(const std::string &name, const std::string &filepath,
  1315. const std::string &filename = std::string(),
  1316. const std::string &content_type = std::string()) {
  1317. FormDataProvider fdp;
  1318. fdp.name = name;
  1319. fdp.filename = filename.empty() ? filepath : filename;
  1320. fdp.content_type = content_type;
  1321. fdp.provider = [filepath](size_t offset, DataSink &sink) -> bool {
  1322. std::ifstream f(filepath, std::ios::binary);
  1323. if (!f) { return false; }
  1324. if (offset > 0) {
  1325. f.seekg(static_cast<std::streamoff>(offset));
  1326. if (!f.good()) {
  1327. sink.done();
  1328. return true;
  1329. }
  1330. }
  1331. char buf[8192];
  1332. f.read(buf, sizeof(buf));
  1333. auto n = static_cast<size_t>(f.gcount());
  1334. if (n > 0) { return sink.write(buf, n); }
  1335. sink.done(); // EOF
  1336. return true;
  1337. };
  1338. return fdp;
  1339. }
  1340. inline std::pair<size_t, ContentProvider>
  1341. make_file_body(const std::string &filepath) {
  1342. size_t size = 0;
  1343. {
  1344. std::ifstream f(filepath, std::ios::binary | std::ios::ate);
  1345. if (!f) { return {0, ContentProvider{}}; }
  1346. size = static_cast<size_t>(f.tellg());
  1347. }
  1348. ContentProvider provider = [filepath](size_t offset, size_t length,
  1349. DataSink &sink) -> bool {
  1350. std::ifstream f(filepath, std::ios::binary);
  1351. if (!f) { return false; }
  1352. f.seekg(static_cast<std::streamoff>(offset));
  1353. if (!f.good()) { return false; }
  1354. char buf[8192];
  1355. while (length > 0) {
  1356. auto to_read = (std::min)(sizeof(buf), length);
  1357. f.read(buf, static_cast<std::streamsize>(to_read));
  1358. auto n = static_cast<size_t>(f.gcount());
  1359. // The file is shorter than the size make_file_body() measured, which the
  1360. // caller has already committed to as Content-Length. The body cannot be
  1361. // completed, so fail as every other error here does.
  1362. if (n == 0) { return false; }
  1363. if (!sink.write(buf, n)) { return false; }
  1364. length -= n;
  1365. }
  1366. return true;
  1367. };
  1368. return {size, std::move(provider)};
  1369. }
  1370. using ContentReceiverWithProgress = std::function<bool(
  1371. const char *data, size_t data_length, size_t offset, size_t total_length)>;
  1372. using ContentReceiver =
  1373. std::function<bool(const char *data, size_t data_length)>;
  1374. using FormDataHeader = std::function<bool(const FormData &file)>;
  1375. class ContentReader {
  1376. public:
  1377. using Reader = std::function<bool(ContentReceiver receiver)>;
  1378. using FormDataReader =
  1379. std::function<bool(FormDataHeader header, ContentReceiver receiver)>;
  1380. ContentReader(Reader reader, FormDataReader multipart_reader)
  1381. : reader_(std::move(reader)),
  1382. formdata_reader_(std::move(multipart_reader)) {}
  1383. bool operator()(FormDataHeader header, ContentReceiver receiver) const {
  1384. return formdata_reader_(std::move(header), std::move(receiver));
  1385. }
  1386. bool operator()(ContentReceiver receiver) const {
  1387. return reader_(std::move(receiver));
  1388. }
  1389. Reader reader_;
  1390. FormDataReader formdata_reader_;
  1391. };
  1392. using Range = std::pair<ssize_t, ssize_t>;
  1393. using Ranges = std::vector<Range>;
  1394. #ifdef CPPHTTPLIB_SSL_ENABLED
  1395. // TLS abstraction layer - public type definitions and API
  1396. namespace tls {
  1397. // Opaque handles (defined as void* for abstraction)
  1398. using ctx_t = void *;
  1399. using session_t = void *;
  1400. using const_session_t = const void *; // For read-only session access
  1401. using cert_t = void *;
  1402. using ca_store_t = void *;
  1403. // TLS versions
  1404. enum class Version {
  1405. TLS1_2 = 0x0303,
  1406. TLS1_3 = 0x0304,
  1407. };
  1408. // Subject Alternative Names (SAN) entry types
  1409. enum class SanType { DNS, IP, EMAIL, URI, OTHER };
  1410. // SAN entry structure
  1411. struct SanEntry {
  1412. SanType type;
  1413. std::string value;
  1414. };
  1415. // Verification context for certificate verification callback
  1416. struct VerifyContext {
  1417. session_t session; // TLS session handle
  1418. cert_t cert; // Current certificate being verified
  1419. int depth; // Certificate chain depth (0 = leaf)
  1420. bool preverify_ok; // OpenSSL/Mbed TLS pre-verification result
  1421. long error_code; // Backend-specific error code (0 = no error)
  1422. const char *error_string; // Human-readable error description
  1423. // Certificate introspection methods
  1424. std::string subject_cn() const;
  1425. std::string issuer_name() const;
  1426. bool check_hostname(const char *hostname) const;
  1427. std::vector<SanEntry> sans() const;
  1428. bool validity(time_t &not_before, time_t &not_after) const;
  1429. std::string serial() const;
  1430. };
  1431. using VerifyCallback = std::function<bool(const VerifyContext &ctx)>;
  1432. // TlsError codes for TLS operations (backend-independent)
  1433. enum class ErrorCode : int {
  1434. Success = 0,
  1435. WantRead, // Non-blocking: need to wait for read
  1436. WantWrite, // Non-blocking: need to wait for write
  1437. PeerClosed, // Peer closed the connection
  1438. Fatal, // Unrecoverable error
  1439. SyscallError, // System call error (check sys_errno)
  1440. CertVerifyFailed, // Certificate verification failed
  1441. HostnameMismatch, // Hostname verification failed
  1442. };
  1443. // TLS error information
  1444. struct TlsError {
  1445. ErrorCode code = ErrorCode::Fatal;
  1446. uint64_t backend_code = 0; // OpenSSL: ERR_get_error(), mbedTLS: return value
  1447. int sys_errno = 0; // errno when SyscallError
  1448. // Convert verification error code to human-readable string
  1449. static std::string verify_error_to_string(long error_code);
  1450. };
  1451. // RAII wrapper for peer certificate
  1452. class PeerCert {
  1453. public:
  1454. PeerCert();
  1455. PeerCert(PeerCert &&other) noexcept;
  1456. PeerCert &operator=(PeerCert &&other) noexcept;
  1457. ~PeerCert();
  1458. PeerCert(const PeerCert &) = delete;
  1459. PeerCert &operator=(const PeerCert &) = delete;
  1460. explicit operator bool() const;
  1461. std::string subject_cn() const;
  1462. std::string issuer_name() const;
  1463. bool check_hostname(const char *hostname) const;
  1464. std::vector<SanEntry> sans() const;
  1465. bool validity(time_t &not_before, time_t &not_after) const;
  1466. std::string serial() const;
  1467. private:
  1468. explicit PeerCert(cert_t cert);
  1469. cert_t cert_ = nullptr;
  1470. friend PeerCert get_peer_cert_from_session(const_session_t session);
  1471. };
  1472. // Callback for TLS context setup (used by SSLServer constructor)
  1473. using ContextSetupCallback = std::function<bool(ctx_t ctx)>;
  1474. } // namespace tls
  1475. #endif
  1476. struct Request {
  1477. std::string method;
  1478. std::string path;
  1479. std::string matched_route;
  1480. Params params;
  1481. Headers headers;
  1482. Headers trailers;
  1483. std::string body;
  1484. std::string remote_addr;
  1485. int remote_port = -1;
  1486. std::string local_addr;
  1487. int local_port = -1;
  1488. // for server
  1489. std::string version;
  1490. std::string target;
  1491. MultipartFormData form;
  1492. Ranges ranges;
  1493. Match matches;
  1494. std::unordered_map<std::string, std::string> path_params;
  1495. std::function<bool()> is_connection_closed = []() { return true; };
  1496. // for client
  1497. std::vector<std::string> accept_content_types;
  1498. ResponseHandler response_handler;
  1499. ContentReceiverWithProgress content_receiver;
  1500. DownloadProgress download_progress;
  1501. UploadProgress upload_progress;
  1502. bool has_header(const std::string &key) const;
  1503. std::string get_header_value(const std::string &key, const char *def = "",
  1504. size_t id = 0) const;
  1505. size_t get_header_value_u64(const std::string &key, size_t def = 0,
  1506. size_t id = 0) const;
  1507. size_t get_header_value_count(const std::string &key) const;
  1508. void set_header(const std::string &key, const std::string &val);
  1509. bool has_trailer(const std::string &key) const;
  1510. std::string get_trailer_value(const std::string &key, size_t id = 0) const;
  1511. size_t get_trailer_value_count(const std::string &key) const;
  1512. bool has_param(const std::string &key) const;
  1513. std::string get_param_value(const std::string &key, size_t id = 0) const;
  1514. std::vector<std::string> get_param_values(const std::string &key) const;
  1515. size_t get_param_value_count(const std::string &key) const;
  1516. bool is_multipart_form_data() const;
  1517. // private members...
  1518. bool body_consumed_ = false;
  1519. bool expect_100_continue_pending_ = false;
  1520. size_t redirect_count_ = CPPHTTPLIB_REDIRECT_MAX_COUNT;
  1521. size_t content_length_ = 0;
  1522. ContentProvider content_provider_;
  1523. bool is_chunked_content_provider_ = false;
  1524. size_t authorization_count_ = 0;
  1525. std::chrono::time_point<std::chrono::steady_clock> start_time_ =
  1526. (std::chrono::steady_clock::time_point::min)();
  1527. #ifdef CPPHTTPLIB_SSL_ENABLED
  1528. tls::const_session_t ssl = nullptr;
  1529. tls::PeerCert peer_cert() const;
  1530. std::string sni() const;
  1531. #endif
  1532. };
  1533. namespace detail {
  1534. // Declared up here, away from the rest of the compression helpers, because
  1535. // `Response` stores one.
  1536. enum class EncodingType { None = 0, Gzip, Brotli, Zstd };
  1537. } // namespace detail
  1538. struct Response {
  1539. std::string version;
  1540. int status = -1;
  1541. std::string reason;
  1542. Headers headers;
  1543. Headers trailers;
  1544. std::string body;
  1545. std::string location; // Redirect location
  1546. // User-defined context — set by pre-routing/pre-request handlers and read
  1547. // by route handlers to pass arbitrary data (e.g. decoded auth tokens).
  1548. UserData user_data;
  1549. bool has_header(const std::string &key) const;
  1550. std::string get_header_value(const std::string &key, const char *def = "",
  1551. size_t id = 0) const;
  1552. size_t get_header_value_u64(const std::string &key, size_t def = 0,
  1553. size_t id = 0) const;
  1554. size_t get_header_value_count(const std::string &key) const;
  1555. void set_header(const std::string &key, const std::string &val);
  1556. bool has_trailer(const std::string &key) const;
  1557. std::string get_trailer_value(const std::string &key, size_t id = 0) const;
  1558. size_t get_trailer_value_count(const std::string &key) const;
  1559. void set_redirect(const std::string &url, int status = StatusCode::Found_302);
  1560. void set_content(const char *s, size_t n, const std::string &content_type);
  1561. void set_content(const std::string &s, const std::string &content_type);
  1562. void set_content(std::string &&s, const std::string &content_type);
  1563. void set_content_provider(
  1564. size_t length, const std::string &content_type, ContentProvider provider,
  1565. ContentProviderResourceReleaser resource_releaser = nullptr);
  1566. void set_content_provider(
  1567. const std::string &content_type, ContentProviderWithoutLength provider,
  1568. ContentProviderResourceReleaser resource_releaser = nullptr);
  1569. void set_chunked_content_provider(
  1570. const std::string &content_type, ContentProviderWithoutLength provider,
  1571. ContentProviderResourceReleaser resource_releaser = nullptr);
  1572. void set_file_content(const std::string &path,
  1573. const std::string &content_type);
  1574. void set_file_content(const std::string &path);
  1575. Response() = default;
  1576. Response(const Response &) = default;
  1577. Response &operator=(const Response &) = default;
  1578. Response(Response &&) = default;
  1579. Response &operator=(Response &&) = default;
  1580. ~Response() {
  1581. if (content_provider_resource_releaser_) {
  1582. content_provider_resource_releaser_(content_provider_success_);
  1583. }
  1584. }
  1585. // private members...
  1586. size_t content_length_ = 0;
  1587. ContentProvider content_provider_;
  1588. ContentProviderResourceReleaser content_provider_resource_releaser_;
  1589. bool is_chunked_content_provider_ = false;
  1590. bool is_file_content_provider_ = false;
  1591. bool content_provider_success_ = false;
  1592. std::string file_content_path_;
  1593. std::string file_content_content_type_;
  1594. // Content coding chosen for the response body, decided once so that the
  1595. // headers and the body cannot disagree: where the file is opened for a
  1596. // file-backed content provider (keeping the ETag honest), and in
  1597. // `apply_ranges()` for a chunked content provider. `EncodingType::None`
  1598. // for every other kind of response.
  1599. detail::EncodingType content_coding_ = detail::EncodingType::None;
  1600. };
  1601. enum class Error {
  1602. Success = 0,
  1603. Unknown,
  1604. Connection,
  1605. BindIPAddress,
  1606. Read,
  1607. Write,
  1608. ExceedRedirectCount,
  1609. Canceled,
  1610. SSLConnection,
  1611. SSLLoadingCerts,
  1612. SSLServerVerification,
  1613. SSLServerHostnameVerification,
  1614. UnsupportedMultipartBoundaryChars,
  1615. Compression,
  1616. ConnectionTimeout,
  1617. ProxyConnection,
  1618. ConnectionClosed,
  1619. Timeout,
  1620. ResourceExhaustion,
  1621. TooManyFormDataFiles,
  1622. ExceedMaxPayloadSize,
  1623. ExceedUriMaxLength,
  1624. ExceedMaxSocketDescriptorCount,
  1625. InvalidRequestLine,
  1626. InvalidHTTPMethod,
  1627. InvalidHTTPVersion,
  1628. InvalidHeaders,
  1629. MultipartParsing,
  1630. OpenFile,
  1631. Listen,
  1632. GetSockName,
  1633. UnsupportedAddressFamily,
  1634. HTTPParsing,
  1635. InvalidRangeHeader,
  1636. UnsupportedContentEncoding,
  1637. WebSocketHandshake,
  1638. UserCallbackException,
  1639. // For internal use only
  1640. SSLPeerCouldBeClosed_,
  1641. };
  1642. std::string to_string(Error error);
  1643. std::ostream &operator<<(std::ostream &os, const Error &obj);
  1644. class Stream {
  1645. public:
  1646. virtual ~Stream() = default;
  1647. virtual bool is_readable() const = 0;
  1648. virtual bool wait_readable() const = 0;
  1649. virtual bool wait_writable() const = 0;
  1650. virtual bool is_peer_alive() const { return wait_writable(); }
  1651. virtual ssize_t read(char *ptr, size_t size) = 0;
  1652. virtual ssize_t write(const char *ptr, size_t size) = 0;
  1653. virtual void get_remote_ip_and_port(std::string &ip, int &port) const = 0;
  1654. virtual void get_local_ip_and_port(std::string &ip, int &port) const = 0;
  1655. virtual socket_t socket() const = 0;
  1656. virtual time_t duration() const = 0;
  1657. virtual void set_read_timeout(time_t sec, time_t usec = 0) {
  1658. (void)sec;
  1659. (void)usec;
  1660. }
  1661. // Bytes already pulled off the socket and sitting in this stream's own
  1662. // buffer. Exposing them lets a line reader scan for a terminator in one
  1663. // pass instead of asking for a byte at a time. A stream that does no
  1664. // buffering of its own reports none, and readers fall back to read().
  1665. virtual const char *buffered_data(size_t &size) const {
  1666. size = 0;
  1667. return nullptr;
  1668. }
  1669. // Discards `size` bytes previously returned by buffered_data().
  1670. virtual void consume_buffered(size_t size) { (void)size; }
  1671. ssize_t write(const char *ptr);
  1672. ssize_t write(const std::string &s);
  1673. Error get_error() const { return error_; }
  1674. protected:
  1675. Error error_ = Error::Success;
  1676. };
  1677. class TaskQueue {
  1678. public:
  1679. TaskQueue() = default;
  1680. virtual ~TaskQueue() = default;
  1681. virtual bool enqueue(std::function<void()> fn) = 0;
  1682. virtual void shutdown() = 0;
  1683. virtual void on_idle() {}
  1684. };
  1685. class ThreadPool final : public TaskQueue {
  1686. public:
  1687. explicit ThreadPool(
  1688. size_t n, size_t max_n = 0, size_t mqr = 0,
  1689. time_t idle_timeout_sec = CPPHTTPLIB_THREAD_POOL_IDLE_TIMEOUT);
  1690. ThreadPool(const ThreadPool &) = delete;
  1691. ~ThreadPool() override = default;
  1692. bool enqueue(std::function<void()> fn) override;
  1693. void shutdown() override;
  1694. private:
  1695. void worker(bool is_dynamic);
  1696. void move_to_finished(std::thread::id id);
  1697. void cleanup_finished_threads();
  1698. size_t base_thread_count_;
  1699. size_t max_thread_count_;
  1700. size_t max_queued_requests_;
  1701. time_t idle_timeout_sec_;
  1702. size_t idle_thread_count_;
  1703. bool shutdown_;
  1704. std::list<std::function<void()>> jobs_;
  1705. std::vector<std::thread> threads_; // base threads
  1706. std::list<std::thread> dynamic_threads_; // dynamic threads
  1707. std::vector<std::thread>
  1708. finished_threads_; // exited dynamic threads awaiting join
  1709. std::condition_variable cond_;
  1710. std::mutex mutex_;
  1711. };
  1712. using Logger = std::function<void(const Request &, const Response &)>;
  1713. // Forward declaration for Error type
  1714. enum class Error;
  1715. using ErrorLogger = std::function<void(const Error &, const Request *)>;
  1716. using SocketOptions = std::function<void(socket_t sock)>;
  1717. void default_socket_options(socket_t sock);
  1718. bool set_socket_opt(socket_t sock, int level, int optname, int optval);
  1719. const char *status_message(int status);
  1720. std::string to_string(Error error);
  1721. std::ostream &operator<<(std::ostream &os, const Error &obj);
  1722. std::string get_bearer_token_auth(const Request &req);
  1723. namespace detail {
  1724. class MatcherBase {
  1725. public:
  1726. MatcherBase(std::string pattern) : pattern_(std::move(pattern)) {}
  1727. virtual ~MatcherBase() = default;
  1728. const std::string &pattern() const { return pattern_; }
  1729. // Match request path and populate its matches and
  1730. virtual bool match(Request &request) const = 0;
  1731. private:
  1732. std::string pattern_;
  1733. };
  1734. /**
  1735. * Captures parameters in request path and stores them in Request::path_params
  1736. *
  1737. * Capture name is a substring of a pattern from : to /.
  1738. * The rest of the pattern is matched against the request path directly
  1739. * Parameters are captured starting from the next character after
  1740. * the end of the last matched static pattern fragment until the next /.
  1741. *
  1742. * Example pattern:
  1743. * "/path/fragments/:capture/more/fragments/:second_capture"
  1744. * Static fragments:
  1745. * "/path/fragments/", "more/fragments/"
  1746. *
  1747. * Given the following request path:
  1748. * "/path/fragments/:1/more/fragments/:2"
  1749. * the resulting capture will be
  1750. * {{"capture", "1"}, {"second_capture", "2"}}
  1751. */
  1752. class PathParamsMatcher final : public MatcherBase {
  1753. public:
  1754. PathParamsMatcher(const std::string &pattern);
  1755. bool match(Request &request) const override;
  1756. private:
  1757. // Treat segment separators as the end of path parameter capture
  1758. // Does not need to handle query parameters as they are parsed before path
  1759. // matching
  1760. static constexpr char separator = '/';
  1761. // Contains static path fragments to match against, excluding the '/' after
  1762. // path params
  1763. // Fragments are separated by path params
  1764. std::vector<std::string> static_fragments_;
  1765. // Stores the names of the path parameters to be used as keys in the
  1766. // Request::path_params map
  1767. std::vector<std::string> param_names_;
  1768. };
  1769. /**
  1770. * Performs std::regex_match on request path
  1771. * and stores the result in Request::matches
  1772. *
  1773. * Note that regex match is performed directly on the whole request.
  1774. * This means that wildcard patterns may match multiple path segments with /:
  1775. * "/begin/(.*)/end" will match both "/begin/middle/end" and "/begin/1/2/end".
  1776. */
  1777. class RegexMatcher final : public MatcherBase {
  1778. public:
  1779. RegexMatcher(const std::string &pattern)
  1780. : MatcherBase(pattern), regex_(pattern) {}
  1781. bool match(Request &request) const override;
  1782. private:
  1783. std::regex regex_;
  1784. };
  1785. int close_socket(socket_t sock) noexcept;
  1786. bool is_accept_resource_error();
  1787. bool is_accept_transient_error();
  1788. ssize_t write_headers(Stream &strm, const Headers &headers);
  1789. bool set_socket_opt_time(socket_t sock, int level, int optname, time_t sec,
  1790. time_t usec);
  1791. size_t get_multipart_content_length(const UploadFormDataItems &items,
  1792. const std::string &boundary);
  1793. ContentProvider
  1794. make_multipart_content_provider(const UploadFormDataItems &items,
  1795. const std::string &boundary);
  1796. } // namespace detail
  1797. bool is_valid_multipart_boundary(const std::string &boundary);
  1798. // Serializer for multipart/form-data request bodies. The boundary is owned
  1799. // by the writer so that per-part framing and the final terminator always
  1800. // agree. Field names and filenames are escaped following the WHATWG HTML
  1801. // standard ('"' -> %22, CR -> %0D, LF -> %0A); CR and LF are also escaped
  1802. // in content types.
  1803. class MultipartFormDataWriter {
  1804. public:
  1805. MultipartFormDataWriter();
  1806. // precondition: is_valid_multipart_boundary(boundary)
  1807. explicit MultipartFormDataWriter(std::string boundary);
  1808. const std::string &boundary() const;
  1809. std::string content_type() const;
  1810. // In-memory items -> whole body (known length)
  1811. std::string serialize(const UploadFormDataItems &items) const;
  1812. size_t content_length(const UploadFormDataItems &items) const;
  1813. // Per-part framing for streaming via a content provider
  1814. std::string item_begin(const UploadFormData &item) const;
  1815. static std::string item_end();
  1816. std::string finish() const;
  1817. private:
  1818. std::string boundary_;
  1819. };
  1820. class Server {
  1821. public:
  1822. using Handler = std::function<void(const Request &, Response &)>;
  1823. using ExceptionHandler =
  1824. std::function<void(const Request &, Response &, std::exception_ptr ep)>;
  1825. enum class HandlerResponse {
  1826. Handled,
  1827. Unhandled,
  1828. };
  1829. using HandlerWithResponse =
  1830. std::function<HandlerResponse(const Request &, Response &)>;
  1831. using HandlerWithContentReader = std::function<void(
  1832. const Request &, Response &, const ContentReader &content_reader)>;
  1833. using Expect100ContinueHandler =
  1834. std::function<int(const Request &, Response &)>;
  1835. using StartHandler = std::function<void()>;
  1836. using WebSocketHandler =
  1837. std::function<void(const Request &, ws::WebSocket &)>;
  1838. using SubProtocolSelector =
  1839. std::function<std::string(const std::vector<std::string> &protocols)>;
  1840. Server();
  1841. virtual ~Server();
  1842. virtual bool is_valid() const;
  1843. Server &Get(const std::string &pattern, Handler handler);
  1844. Server &Post(const std::string &pattern, Handler handler);
  1845. Server &Post(const std::string &pattern, HandlerWithContentReader handler);
  1846. Server &Put(const std::string &pattern, Handler handler);
  1847. Server &Put(const std::string &pattern, HandlerWithContentReader handler);
  1848. Server &Patch(const std::string &pattern, Handler handler);
  1849. Server &Patch(const std::string &pattern, HandlerWithContentReader handler);
  1850. Server &Delete(const std::string &pattern, Handler handler);
  1851. Server &Delete(const std::string &pattern, HandlerWithContentReader handler);
  1852. Server &Options(const std::string &pattern, Handler handler);
  1853. // Register a handler for an HTTP method outside the built-in set (e.g. the
  1854. // WebDAV methods from RFC 4918). Registering a method here is what makes the
  1855. // server accept it; an unregistered method is still rejected with 400.
  1856. // `method` must be a valid HTTP method token and must not be one of the
  1857. // built-in methods, which have their own registration functions above. A
  1858. // rejected registration makes is_valid() return false, so listen() fails.
  1859. Server &CustomRoute(const std::string &method, const std::string &pattern,
  1860. Handler handler);
  1861. Server &CustomRoute(const std::string &method, const std::string &pattern,
  1862. HandlerWithContentReader handler);
  1863. Server &WebSocket(const std::string &pattern, WebSocketHandler handler);
  1864. Server &WebSocket(const std::string &pattern, WebSocketHandler handler,
  1865. SubProtocolSelector sub_protocol_selector);
  1866. bool set_base_dir(const std::string &dir,
  1867. const std::string &mount_point = std::string());
  1868. bool set_mount_point(const std::string &mount_point, const std::string &dir,
  1869. Headers headers = Headers());
  1870. bool remove_mount_point(const std::string &mount_point);
  1871. Server &set_file_extension_and_mimetype_mapping(const std::string &ext,
  1872. const std::string &mime);
  1873. Server &set_default_file_mimetype(const std::string &mime);
  1874. Server &set_file_request_handler(Handler handler);
  1875. template <class ErrorHandlerFunc>
  1876. Server &set_error_handler(ErrorHandlerFunc &&handler) {
  1877. return set_error_handler_core(
  1878. std::forward<ErrorHandlerFunc>(handler),
  1879. std::is_convertible<ErrorHandlerFunc, HandlerWithResponse>{});
  1880. }
  1881. Server &set_exception_handler(ExceptionHandler handler);
  1882. Server &set_pre_routing_handler(HandlerWithResponse handler);
  1883. Server &set_post_routing_handler(Handler handler);
  1884. Server &set_pre_request_handler(HandlerWithResponse handler);
  1885. Server &set_expect_100_continue_handler(Expect100ContinueHandler handler);
  1886. Server &set_start_handler(StartHandler handler);
  1887. Server &set_logger(Logger logger);
  1888. Server &set_pre_compression_logger(Logger logger);
  1889. Server &set_error_logger(ErrorLogger error_logger);
  1890. Server &set_address_family(int family);
  1891. Server &set_tcp_nodelay(bool on);
  1892. Server &set_ipv6_v6only(bool on);
  1893. Server &set_socket_options(SocketOptions socket_options);
  1894. Server &set_default_headers(Headers headers);
  1895. Server &
  1896. set_header_writer(std::function<ssize_t(Stream &, Headers &)> const &writer);
  1897. Server &set_trusted_proxies(const std::vector<std::string> &proxies);
  1898. Server &set_keep_alive_max_count(size_t count);
  1899. Server &set_keep_alive_timeout(time_t sec);
  1900. template <class Rep, class Period>
  1901. Server &
  1902. set_keep_alive_timeout(const std::chrono::duration<Rep, Period> &duration);
  1903. Server &set_read_timeout(time_t sec, time_t usec = 0);
  1904. template <class Rep, class Period>
  1905. Server &set_read_timeout(const std::chrono::duration<Rep, Period> &duration);
  1906. Server &set_write_timeout(time_t sec, time_t usec = 0);
  1907. template <class Rep, class Period>
  1908. Server &set_write_timeout(const std::chrono::duration<Rep, Period> &duration);
  1909. Server &set_idle_interval(time_t sec, time_t usec = 0);
  1910. template <class Rep, class Period>
  1911. Server &set_idle_interval(const std::chrono::duration<Rep, Period> &duration);
  1912. Server &set_payload_max_length(size_t length);
  1913. Server &set_static_file_compression(bool on);
  1914. Server &set_static_file_compression_min_length(size_t length);
  1915. Server &set_static_file_compression_max_length(size_t length);
  1916. Server &set_websocket_ping_interval(time_t sec);
  1917. template <class Rep, class Period>
  1918. Server &set_websocket_ping_interval(
  1919. const std::chrono::duration<Rep, Period> &duration);
  1920. Server &set_websocket_max_missed_pongs(int count);
  1921. bool bind_to_port(const std::string &host, int port, int socket_flags = 0);
  1922. int bind_to_any_port(const std::string &host, int socket_flags = 0);
  1923. bool listen_after_bind();
  1924. bool listen(const std::string &host, int port, int socket_flags = 0);
  1925. bool is_running() const;
  1926. void wait_until_ready() const;
  1927. void stop() noexcept;
  1928. void decommission();
  1929. std::function<TaskQueue *(void)> new_task_queue;
  1930. protected:
  1931. bool process_request(Stream &strm, const std::string &remote_addr,
  1932. int remote_port, const std::string &local_addr,
  1933. int local_port, bool close_connection,
  1934. bool &connection_closed,
  1935. const std::function<void(Request &)> &setup_request,
  1936. bool *websocket_upgraded = nullptr);
  1937. // Runs the per-connection serving loop and stops an exception thrown by a
  1938. // user callback from escaping the worker thread.
  1939. //
  1940. // process_request() wraps only routing() in a try/catch. Content providers,
  1941. // the post-routing, error, logging and expect-100 handlers and WebSocket
  1942. // handlers all run outside it, and the task queue calls the job without a
  1943. // catch, so an exception from any of those would terminate the process.
  1944. //
  1945. // No 500 is possible here: by the time a content provider runs, the status
  1946. // line and headers are already on the wire. Report it through the error
  1947. // logger and drop the connection, which is what the peer observes either
  1948. // way. Other connections are unaffected.
  1949. template <typename Serve> bool serve_guarded(Serve &&serve) const {
  1950. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  1951. return serve();
  1952. #else
  1953. try {
  1954. return serve();
  1955. } catch (...) {
  1956. // The error logger is a user callback too, so it must not be able to
  1957. // throw the guard back open.
  1958. try {
  1959. output_error_log(Error::UserCallbackException, nullptr);
  1960. } catch (...) {}
  1961. return false;
  1962. }
  1963. #endif
  1964. }
  1965. std::atomic<socket_t> svr_sock_{INVALID_SOCKET};
  1966. std::vector<std::string> trusted_proxies_;
  1967. size_t keep_alive_max_count_ = CPPHTTPLIB_KEEPALIVE_MAX_COUNT;
  1968. time_t keep_alive_timeout_sec_ = CPPHTTPLIB_KEEPALIVE_TIMEOUT_SECOND;
  1969. time_t read_timeout_sec_ = CPPHTTPLIB_SERVER_READ_TIMEOUT_SECOND;
  1970. time_t read_timeout_usec_ = CPPHTTPLIB_SERVER_READ_TIMEOUT_USECOND;
  1971. time_t write_timeout_sec_ = CPPHTTPLIB_SERVER_WRITE_TIMEOUT_SECOND;
  1972. time_t write_timeout_usec_ = CPPHTTPLIB_SERVER_WRITE_TIMEOUT_USECOND;
  1973. time_t idle_interval_sec_ = CPPHTTPLIB_IDLE_INTERVAL_SECOND;
  1974. time_t idle_interval_usec_ = CPPHTTPLIB_IDLE_INTERVAL_USECOND;
  1975. size_t payload_max_length_ = CPPHTTPLIB_PAYLOAD_MAX_LENGTH;
  1976. bool static_file_compression_ = false;
  1977. size_t static_file_compression_min_length_ =
  1978. CPPHTTPLIB_STATIC_FILE_COMPRESSION_MIN_LENGTH;
  1979. size_t static_file_compression_max_length_ =
  1980. CPPHTTPLIB_STATIC_FILE_COMPRESSION_MAX_LENGTH;
  1981. time_t websocket_ping_interval_sec_ =
  1982. CPPHTTPLIB_WEBSOCKET_PING_INTERVAL_SECOND;
  1983. int websocket_max_missed_pongs_ = CPPHTTPLIB_WEBSOCKET_MAX_MISSED_PONGS;
  1984. private:
  1985. using Handlers =
  1986. std::vector<std::pair<std::unique_ptr<detail::MatcherBase>, Handler>>;
  1987. using HandlersForContentReader =
  1988. std::vector<std::pair<std::unique_ptr<detail::MatcherBase>,
  1989. HandlerWithContentReader>>;
  1990. // Both handler tables for one custom method live in a single entry, so that
  1991. // routing() needs only one map lookup per request to reach either of them.
  1992. struct CustomHandlerEntry {
  1993. Handlers handlers;
  1994. HandlersForContentReader handlers_for_content_reader;
  1995. };
  1996. using CustomHandlers = std::map<std::string, CustomHandlerEntry>;
  1997. static std::unique_ptr<detail::MatcherBase>
  1998. make_matcher(const std::string &pattern);
  1999. static const std::set<std::string> &builtin_methods();
  2000. CustomHandlerEntry *custom_entry_for_registration(const std::string &method);
  2001. const CustomHandlerEntry *find_custom_entry(const std::string &method) const;
  2002. template <typename H>
  2003. Server &add_handler(
  2004. std::vector<std::pair<std::unique_ptr<detail::MatcherBase>, H>> &handlers,
  2005. const std::string &pattern, H handler) {
  2006. handlers.emplace_back(make_matcher(pattern), std::move(handler));
  2007. return *this;
  2008. }
  2009. Server &set_error_handler_core(HandlerWithResponse handler, std::true_type);
  2010. Server &set_error_handler_core(Handler handler, std::false_type);
  2011. socket_t create_server_socket(const std::string &host, int port,
  2012. int socket_flags,
  2013. SocketOptions socket_options) const;
  2014. int bind_internal(const std::string &host, int port, int socket_flags);
  2015. bool listen_internal();
  2016. bool routing(Request &req, Response &res, Stream &strm);
  2017. bool handle_file_request(Request &req, Response &res);
  2018. bool check_if_not_modified(const Request &req, Response &res,
  2019. const std::string &etag, time_t mtime) const;
  2020. bool check_if_range(Request &req, const std::string &etag,
  2021. time_t mtime) const;
  2022. bool dispatch_request(Request &req, Response &res, const Handlers &handlers,
  2023. Stream &strm);
  2024. bool dispatch_request_for_content_reader(
  2025. Request &req, Response &res, ContentReader content_reader,
  2026. const HandlersForContentReader &handlers) const;
  2027. bool parse_request_line(const char *s, Request &req) const;
  2028. detail::EncodingType static_file_encoding(const Request &req,
  2029. const Response &res,
  2030. const std::string &content_type,
  2031. size_t length) const;
  2032. bool apply_static_file_compression(const Request &req, Response &res) const;
  2033. void apply_ranges(const Request &req, Response &res,
  2034. std::string &content_type, std::string &boundary) const;
  2035. bool write_response(Stream &strm, bool close_connection, Request &req,
  2036. Response &res);
  2037. bool write_response_with_content(Stream &strm, bool close_connection,
  2038. const Request &req, Response &res);
  2039. bool write_response_core(Stream &strm, bool close_connection,
  2040. const Request &req, Response &res,
  2041. bool need_apply_ranges);
  2042. bool write_content_with_provider(Stream &strm, const Request &req,
  2043. Response &res, const std::string &boundary,
  2044. const std::string &content_type);
  2045. bool read_content(Stream &strm, Request &req, Response &res);
  2046. bool read_content_with_content_receiver(Stream &strm, Request &req,
  2047. Response &res,
  2048. ContentReceiver receiver,
  2049. FormDataHeader multipart_header,
  2050. ContentReceiver multipart_receiver);
  2051. bool read_content_core(Stream &strm, Request &req, Response &res,
  2052. ContentReceiver receiver,
  2053. FormDataHeader multipart_header,
  2054. ContentReceiver multipart_receiver) const;
  2055. virtual bool process_and_close_socket(socket_t sock);
  2056. void output_log(const Request &req, const Response &res) const;
  2057. void output_pre_compression_log(const Request &req,
  2058. const Response &res) const;
  2059. void output_error_log(const Error &err, const Request *req) const;
  2060. std::atomic<bool> is_running_{false};
  2061. std::atomic<bool> is_decommissioned{false};
  2062. // Set when CustomRoute() refuses a registration. Written before listen(),
  2063. // read by is_valid() on the same thread, so it needs no synchronization.
  2064. bool has_invalid_registration_ = false;
  2065. struct MountPointEntry {
  2066. std::string mount_point;
  2067. std::string base_dir;
  2068. std::string resolved_base_dir;
  2069. Headers headers;
  2070. };
  2071. std::vector<MountPointEntry> base_dirs_;
  2072. std::map<std::string, std::string> file_extension_and_mimetype_map_;
  2073. std::string default_file_mimetype_ = "application/octet-stream";
  2074. Handler file_request_handler_;
  2075. Handlers get_handlers_;
  2076. Handlers post_handlers_;
  2077. HandlersForContentReader post_handlers_for_content_reader_;
  2078. Handlers put_handlers_;
  2079. HandlersForContentReader put_handlers_for_content_reader_;
  2080. Handlers patch_handlers_;
  2081. HandlersForContentReader patch_handlers_for_content_reader_;
  2082. Handlers delete_handlers_;
  2083. HandlersForContentReader delete_handlers_for_content_reader_;
  2084. Handlers options_handlers_;
  2085. CustomHandlers custom_handlers_;
  2086. struct WebSocketHandlerEntry {
  2087. std::unique_ptr<detail::MatcherBase> matcher;
  2088. WebSocketHandler handler;
  2089. SubProtocolSelector sub_protocol_selector;
  2090. };
  2091. using WebSocketHandlers = std::vector<WebSocketHandlerEntry>;
  2092. WebSocketHandlers websocket_handlers_;
  2093. HandlerWithResponse error_handler_;
  2094. ExceptionHandler exception_handler_;
  2095. HandlerWithResponse pre_routing_handler_;
  2096. Handler post_routing_handler_;
  2097. HandlerWithResponse pre_request_handler_;
  2098. Expect100ContinueHandler expect_100_continue_handler_;
  2099. StartHandler start_handler_;
  2100. mutable std::mutex logger_mutex_;
  2101. Logger logger_;
  2102. Logger pre_compression_logger_;
  2103. ErrorLogger error_logger_;
  2104. int address_family_ = AF_UNSPEC;
  2105. bool tcp_nodelay_ = CPPHTTPLIB_TCP_NODELAY;
  2106. bool ipv6_v6only_ = CPPHTTPLIB_IPV6_V6ONLY;
  2107. SocketOptions socket_options_ = default_socket_options;
  2108. Headers default_headers_;
  2109. std::function<ssize_t(Stream &, Headers &)> header_writer_ =
  2110. detail::write_headers;
  2111. };
  2112. class Result {
  2113. public:
  2114. Result() = default;
  2115. Result(std::unique_ptr<Response> &&res, Error err,
  2116. Headers &&request_headers = Headers{})
  2117. : res_(std::move(res)), err_(err),
  2118. request_headers_(std::move(request_headers)) {}
  2119. // Response
  2120. operator bool() const { return res_ != nullptr; }
  2121. bool operator==(std::nullptr_t) const { return res_ == nullptr; }
  2122. bool operator!=(std::nullptr_t) const { return res_ != nullptr; }
  2123. const Response &value() const { return *res_; }
  2124. Response &value() { return *res_; }
  2125. const Response &operator*() const { return *res_; }
  2126. Response &operator*() { return *res_; }
  2127. const Response *operator->() const { return res_.get(); }
  2128. Response *operator->() { return res_.get(); }
  2129. // Error
  2130. Error error() const { return err_; }
  2131. // Request Headers
  2132. bool has_request_header(const std::string &key) const;
  2133. std::string get_request_header_value(const std::string &key,
  2134. const char *def = "",
  2135. size_t id = 0) const;
  2136. size_t get_request_header_value_u64(const std::string &key, size_t def = 0,
  2137. size_t id = 0) const;
  2138. size_t get_request_header_value_count(const std::string &key) const;
  2139. private:
  2140. std::unique_ptr<Response> res_;
  2141. Error err_ = Error::Unknown;
  2142. Headers request_headers_;
  2143. #ifdef CPPHTTPLIB_SSL_ENABLED
  2144. public:
  2145. Result(std::unique_ptr<Response> &&res, Error err, Headers &&request_headers,
  2146. int ssl_error)
  2147. : res_(std::move(res)), err_(err),
  2148. request_headers_(std::move(request_headers)), ssl_error_(ssl_error) {}
  2149. Result(std::unique_ptr<Response> &&res, Error err, Headers &&request_headers,
  2150. int ssl_error, uint64_t ssl_backend_error)
  2151. : res_(std::move(res)), err_(err),
  2152. request_headers_(std::move(request_headers)), ssl_error_(ssl_error),
  2153. ssl_backend_error_(ssl_backend_error) {}
  2154. int ssl_error() const { return ssl_error_; }
  2155. uint64_t ssl_backend_error() const { return ssl_backend_error_; }
  2156. private:
  2157. int ssl_error_ = 0;
  2158. uint64_t ssl_backend_error_ = 0;
  2159. #endif
  2160. };
  2161. struct ClientConnection {
  2162. socket_t sock = INVALID_SOCKET;
  2163. bool is_open() const { return sock != INVALID_SOCKET; }
  2164. ClientConnection() = default;
  2165. ~ClientConnection();
  2166. ClientConnection(const ClientConnection &) = delete;
  2167. ClientConnection &operator=(const ClientConnection &) = delete;
  2168. ClientConnection(ClientConnection &&other) noexcept
  2169. : sock(other.sock)
  2170. #ifdef CPPHTTPLIB_SSL_ENABLED
  2171. ,
  2172. session(other.session)
  2173. #endif
  2174. {
  2175. other.sock = INVALID_SOCKET;
  2176. #ifdef CPPHTTPLIB_SSL_ENABLED
  2177. other.session = nullptr;
  2178. #endif
  2179. }
  2180. ClientConnection &operator=(ClientConnection &&other) noexcept {
  2181. if (this != &other) {
  2182. sock = other.sock;
  2183. other.sock = INVALID_SOCKET;
  2184. #ifdef CPPHTTPLIB_SSL_ENABLED
  2185. session = other.session;
  2186. other.session = nullptr;
  2187. #endif
  2188. }
  2189. return *this;
  2190. }
  2191. #ifdef CPPHTTPLIB_SSL_ENABLED
  2192. tls::session_t session = nullptr;
  2193. #endif
  2194. };
  2195. namespace detail {
  2196. struct ChunkedDecoder;
  2197. struct BodyReader {
  2198. Stream *stream = nullptr;
  2199. bool has_content_length = false;
  2200. size_t content_length = 0;
  2201. size_t payload_max_length = CPPHTTPLIB_PAYLOAD_MAX_LENGTH;
  2202. size_t bytes_read = 0;
  2203. bool chunked = false;
  2204. bool eof = false;
  2205. std::unique_ptr<ChunkedDecoder> chunked_decoder;
  2206. Error last_error = Error::Success;
  2207. ssize_t read(char *buf, size_t len);
  2208. bool has_error() const { return last_error != Error::Success; }
  2209. };
  2210. inline ssize_t read_body_content(Stream *stream, BodyReader &br, char *buf,
  2211. size_t len) {
  2212. (void)stream;
  2213. return br.read(buf, len);
  2214. }
  2215. class decompressor;
  2216. enum class NoProxyKind {
  2217. Wildcard, // "*"
  2218. HostnameSuffix, // "example.com" or ".example.com"
  2219. IPv4Cidr, // "10.0.0.0/8" (or single IP, treated as /32)
  2220. IPv6Cidr, // "fe80::/10" (or single IP, treated as /128)
  2221. };
  2222. // Unified 16-byte buffer holding either a v4 (first 4 bytes) or v6 address.
  2223. // Lets one CIDR matcher cover both families.
  2224. using IPBytes = std::array<uint8_t, 16>;
  2225. struct NoProxyEntry {
  2226. NoProxyKind kind = NoProxyKind::Wildcard;
  2227. std::string hostname_pattern; // lowercased, leading/trailing dot stripped
  2228. IPBytes net{};
  2229. int prefix_bits = 0;
  2230. };
  2231. struct NormalizedTarget {
  2232. std::string hostname; // lowercase; brackets and trailing dot removed
  2233. bool is_ipv4 = false;
  2234. bool is_ipv6 = false;
  2235. IPBytes ip{};
  2236. };
  2237. } // namespace detail
  2238. class ClientImpl {
  2239. public:
  2240. explicit ClientImpl(const std::string &host);
  2241. explicit ClientImpl(const std::string &host, int port);
  2242. explicit ClientImpl(const std::string &host, int port,
  2243. const std::string &client_cert_path,
  2244. const std::string &client_key_path);
  2245. virtual ~ClientImpl();
  2246. virtual bool is_valid() const;
  2247. struct StreamHandle {
  2248. std::unique_ptr<Response> response;
  2249. Error error = Error::Success;
  2250. StreamHandle() = default;
  2251. StreamHandle(const StreamHandle &) = delete;
  2252. StreamHandle &operator=(const StreamHandle &) = delete;
  2253. StreamHandle(StreamHandle &&) = default;
  2254. StreamHandle &operator=(StreamHandle &&) = default;
  2255. ~StreamHandle() = default;
  2256. bool is_valid() const {
  2257. return response != nullptr && error == Error::Success;
  2258. }
  2259. ssize_t read(char *buf, size_t len);
  2260. void parse_trailers_if_needed();
  2261. Error get_read_error() const { return body_reader_.last_error; }
  2262. bool has_read_error() const { return body_reader_.has_error(); }
  2263. bool trailers_parsed_ = false;
  2264. private:
  2265. friend class ClientImpl;
  2266. ssize_t read_with_decompression(char *buf, size_t len);
  2267. std::unique_ptr<ClientConnection> connection_;
  2268. std::unique_ptr<Stream> socket_stream_;
  2269. Stream *stream_ = nullptr;
  2270. detail::BodyReader body_reader_;
  2271. std::unique_ptr<detail::decompressor> decompressor_;
  2272. std::string decompress_buffer_;
  2273. size_t decompress_offset_ = 0;
  2274. size_t decompressed_bytes_read_ = 0;
  2275. };
  2276. // clang-format off
  2277. Result Get(const std::string &path, DownloadProgress progress = nullptr);
  2278. Result Get(const std::string &path, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2279. Result Get(const std::string &path, ResponseHandler response_handler, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2280. Result Get(const std::string &path, const Headers &headers, DownloadProgress progress = nullptr);
  2281. Result Get(const std::string &path, const Headers &headers, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2282. Result Get(const std::string &path, const Headers &headers, ResponseHandler response_handler, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2283. Result Get(const std::string &path, const Params &params, DownloadProgress progress = nullptr);
  2284. Result Get(const std::string &path, const Params &params, const Headers &headers, DownloadProgress progress = nullptr);
  2285. Result Get(const std::string &path, const Params &params, const Headers &headers, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2286. Result Get(const std::string &path, const Params &params, const Headers &headers, ResponseHandler response_handler, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2287. Result Head(const std::string &path);
  2288. Result Head(const std::string &path, const Headers &headers);
  2289. Result Post(const std::string &path);
  2290. Result Post(const std::string &path, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2291. Result Post(const std::string &path, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2292. Result Post(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2293. Result Post(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2294. Result Post(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2295. Result Post(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2296. Result Post(const std::string &path, const Params &params);
  2297. Result Post(const std::string &path, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2298. Result Post(const std::string &path, const Headers &headers);
  2299. Result Post(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2300. Result Post(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2301. Result Post(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2302. Result Post(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2303. Result Post(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2304. Result Post(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2305. Result Post(const std::string &path, const Headers &headers, const Params &params);
  2306. Result Post(const std::string &path, const Headers &headers, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2307. Result Post(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const std::string &boundary, UploadProgress progress = nullptr);
  2308. Result Post(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const FormDataProviderItems &provider_items, UploadProgress progress = nullptr);
  2309. Result Post(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2310. Result Put(const std::string &path);
  2311. Result Put(const std::string &path, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2312. Result Put(const std::string &path, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2313. Result Put(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2314. Result Put(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2315. Result Put(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2316. Result Put(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2317. Result Put(const std::string &path, const Params &params);
  2318. Result Put(const std::string &path, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2319. Result Put(const std::string &path, const Headers &headers);
  2320. Result Put(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2321. Result Put(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2322. Result Put(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2323. Result Put(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2324. Result Put(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2325. Result Put(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2326. Result Put(const std::string &path, const Headers &headers, const Params &params);
  2327. Result Put(const std::string &path, const Headers &headers, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2328. Result Put(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const std::string &boundary, UploadProgress progress = nullptr);
  2329. Result Put(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const FormDataProviderItems &provider_items, UploadProgress progress = nullptr);
  2330. Result Put(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2331. Result Patch(const std::string &path);
  2332. Result Patch(const std::string &path, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2333. Result Patch(const std::string &path, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2334. Result Patch(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2335. Result Patch(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2336. Result Patch(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2337. Result Patch(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2338. Result Patch(const std::string &path, const Params &params);
  2339. Result Patch(const std::string &path, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2340. Result Patch(const std::string &path, const Headers &headers, UploadProgress progress = nullptr);
  2341. Result Patch(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2342. Result Patch(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2343. Result Patch(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2344. Result Patch(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2345. Result Patch(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2346. Result Patch(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2347. Result Patch(const std::string &path, const Headers &headers, const Params &params);
  2348. Result Patch(const std::string &path, const Headers &headers, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2349. Result Patch(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const std::string &boundary, UploadProgress progress = nullptr);
  2350. Result Patch(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const FormDataProviderItems &provider_items, UploadProgress progress = nullptr);
  2351. Result Patch(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2352. Result Delete(const std::string &path, DownloadProgress progress = nullptr);
  2353. Result Delete(const std::string &path, const char *body, size_t content_length, const std::string &content_type, DownloadProgress progress = nullptr);
  2354. Result Delete(const std::string &path, const std::string &body, const std::string &content_type, DownloadProgress progress = nullptr);
  2355. Result Delete(const std::string &path, const Params &params, DownloadProgress progress = nullptr);
  2356. Result Delete(const std::string &path, const Headers &headers, DownloadProgress progress = nullptr);
  2357. Result Delete(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, DownloadProgress progress = nullptr);
  2358. Result Delete(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, DownloadProgress progress = nullptr);
  2359. Result Delete(const std::string &path, const Headers &headers, const Params &params, DownloadProgress progress = nullptr);
  2360. Result Options(const std::string &path);
  2361. Result Options(const std::string &path, const Headers &headers);
  2362. // clang-format on
  2363. // Streaming API: Open a stream for reading response body incrementally
  2364. // Socket ownership is transferred to StreamHandle for true streaming
  2365. // Supports all HTTP methods (GET, POST, PUT, PATCH, DELETE, etc.)
  2366. StreamHandle open_stream(const std::string &method, const std::string &path,
  2367. const Params &params = {},
  2368. const Headers &headers = {},
  2369. const std::string &body = {},
  2370. const std::string &content_type = {});
  2371. bool send(Request &req, Response &res, Error &error);
  2372. Result send(const Request &req);
  2373. void stop();
  2374. std::string host() const;
  2375. int port() const;
  2376. size_t is_socket_open() const;
  2377. socket_t socket() const;
  2378. void set_hostname_addr_map(std::map<std::string, std::string> addr_map);
  2379. void set_default_headers(Headers headers);
  2380. void
  2381. set_header_writer(std::function<ssize_t(Stream &, Headers &)> const &writer);
  2382. void set_address_family(int family);
  2383. void set_tcp_nodelay(bool on);
  2384. void set_ipv6_v6only(bool on);
  2385. void set_socket_options(SocketOptions socket_options);
  2386. void set_connection_timeout(time_t sec, time_t usec = 0);
  2387. template <class Rep, class Period>
  2388. void
  2389. set_connection_timeout(const std::chrono::duration<Rep, Period> &duration);
  2390. void set_read_timeout(time_t sec, time_t usec = 0);
  2391. template <class Rep, class Period>
  2392. void set_read_timeout(const std::chrono::duration<Rep, Period> &duration);
  2393. void set_write_timeout(time_t sec, time_t usec = 0);
  2394. template <class Rep, class Period>
  2395. void set_write_timeout(const std::chrono::duration<Rep, Period> &duration);
  2396. void set_max_timeout(time_t msec);
  2397. template <class Rep, class Period>
  2398. void set_max_timeout(const std::chrono::duration<Rep, Period> &duration);
  2399. void set_basic_auth(const std::string &username, const std::string &password);
  2400. void set_bearer_token_auth(const std::string &token);
  2401. void set_keep_alive(bool on);
  2402. void set_follow_location(bool on);
  2403. void set_path_encode(bool on);
  2404. void set_compress(bool on);
  2405. void set_decompress(bool on);
  2406. void set_payload_max_length(size_t length);
  2407. void set_interface(const std::string &intf);
  2408. void set_proxy(const std::string &host, int port);
  2409. void set_proxy_basic_auth(const std::string &username,
  2410. const std::string &password);
  2411. void set_proxy_bearer_token_auth(const std::string &token);
  2412. void set_no_proxy(const std::vector<std::string> &patterns);
  2413. void set_logger(Logger logger);
  2414. void set_error_logger(ErrorLogger error_logger);
  2415. protected:
  2416. struct Socket {
  2417. socket_t sock = INVALID_SOCKET;
  2418. // For Mbed TLS compatibility: start_time for request timeout tracking
  2419. std::chrono::time_point<std::chrono::steady_clock> start_time_;
  2420. bool is_open() const { return sock != INVALID_SOCKET; }
  2421. #ifdef CPPHTTPLIB_SSL_ENABLED
  2422. tls::session_t ssl = nullptr;
  2423. #endif
  2424. };
  2425. virtual bool create_and_connect_socket(Socket &socket, Error &error);
  2426. virtual bool ensure_socket_connection(Socket &socket, Error &error);
  2427. virtual bool setup_proxy_connection(
  2428. Socket &socket,
  2429. std::chrono::time_point<std::chrono::steady_clock> start_time,
  2430. Response &res, bool &success, Error &error);
  2431. bool is_proxy_enabled_for_host(const std::string &host) const;
  2432. // All of:
  2433. // shutdown_ssl
  2434. // shutdown_socket
  2435. // close_socket
  2436. // disconnect
  2437. // should ONLY be called when socket_mutex_ is locked, and only when
  2438. // no other thread is using the socket.
  2439. virtual void shutdown_ssl(Socket &socket, bool shutdown_gracefully);
  2440. void shutdown_socket(Socket &socket) const;
  2441. void close_socket(Socket &socket);
  2442. void disconnect(bool gracefully);
  2443. bool process_request(Stream &strm, Request &req, Response &res,
  2444. bool close_connection, Error &error);
  2445. bool write_content_with_provider(Stream &strm, const Request &req,
  2446. Error &error) const;
  2447. void copy_settings(const ClientImpl &rhs);
  2448. void output_log(const Request &req, const Response &res) const;
  2449. void output_error_log(const Error &err, const Request *req) const;
  2450. // Socket endpoint information
  2451. const std::string host_;
  2452. const int port_;
  2453. // Current open socket
  2454. Socket socket_;
  2455. mutable std::mutex socket_mutex_;
  2456. std::recursive_mutex request_mutex_;
  2457. // These are all protected under socket_mutex
  2458. size_t socket_requests_in_flight_ = 0;
  2459. std::thread::id socket_requests_are_from_thread_ = std::thread::id();
  2460. bool socket_should_be_closed_when_request_is_done_ = false;
  2461. // Hostname to connection target map. The value is an IP literal or another
  2462. // hostname; only the connection target changes, never the identity.
  2463. std::map<std::string, std::string> addr_map_;
  2464. // Default headers
  2465. Headers default_headers_;
  2466. // Header writer
  2467. std::function<ssize_t(Stream &, Headers &)> header_writer_ =
  2468. detail::write_headers;
  2469. // Settings
  2470. std::string client_cert_path_;
  2471. std::string client_key_path_;
  2472. time_t connection_timeout_sec_ = CPPHTTPLIB_CONNECTION_TIMEOUT_SECOND;
  2473. time_t connection_timeout_usec_ = CPPHTTPLIB_CONNECTION_TIMEOUT_USECOND;
  2474. time_t read_timeout_sec_ = CPPHTTPLIB_CLIENT_READ_TIMEOUT_SECOND;
  2475. time_t read_timeout_usec_ = CPPHTTPLIB_CLIENT_READ_TIMEOUT_USECOND;
  2476. time_t write_timeout_sec_ = CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_SECOND;
  2477. time_t write_timeout_usec_ = CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_USECOND;
  2478. time_t max_timeout_msec_ = CPPHTTPLIB_CLIENT_MAX_TIMEOUT_MSECOND;
  2479. std::string basic_auth_username_;
  2480. std::string basic_auth_password_;
  2481. std::string bearer_token_auth_token_;
  2482. bool keep_alive_ = false;
  2483. bool follow_location_ = false;
  2484. bool path_encode_ = true;
  2485. int address_family_ = AF_UNSPEC;
  2486. bool tcp_nodelay_ = CPPHTTPLIB_TCP_NODELAY;
  2487. bool ipv6_v6only_ = CPPHTTPLIB_IPV6_V6ONLY;
  2488. SocketOptions socket_options_ = nullptr;
  2489. bool compress_ = false;
  2490. bool decompress_ = true;
  2491. size_t payload_max_length_ = CPPHTTPLIB_PAYLOAD_MAX_LENGTH;
  2492. bool has_payload_max_length_ = false;
  2493. std::string interface_;
  2494. std::string proxy_host_;
  2495. int proxy_port_ = -1;
  2496. std::string proxy_basic_auth_username_;
  2497. std::string proxy_basic_auth_password_;
  2498. std::string proxy_bearer_token_auth_token_;
  2499. std::vector<detail::NoProxyEntry> no_proxy_entries_;
  2500. mutable detail::NormalizedTarget host_normalized_;
  2501. mutable bool host_normalized_valid_ = false;
  2502. mutable std::mutex logger_mutex_;
  2503. Logger logger_;
  2504. ErrorLogger error_logger_;
  2505. private:
  2506. bool send_(Request &req, Response &res, Error &error);
  2507. Result send_(Request &&req);
  2508. socket_t create_client_socket(Error &error) const;
  2509. bool read_response_line(Stream &strm, const Request &req, Response &res,
  2510. bool skip_100_continue = true) const;
  2511. bool write_request(Stream &strm, Request &req, bool close_connection,
  2512. Error &error, bool skip_body, bool &rejected_locally);
  2513. bool write_request_body(Stream &strm, Request &req, Error &error);
  2514. void prepare_default_headers(Request &r, bool for_stream,
  2515. const std::string &ct);
  2516. bool redirect(Request &req, Response &res, Error &error);
  2517. bool create_redirect_client(const std::string &scheme,
  2518. const std::string &host, int port, Request &req,
  2519. Response &res, const std::string &path,
  2520. const std::string &location, Error &error);
  2521. template <typename ClientType> void setup_redirect_client(ClientType &client);
  2522. bool handle_request(Stream &strm, Request &req, Response &res,
  2523. bool close_connection, Error &error);
  2524. std::unique_ptr<Response> send_with_content_provider_and_receiver(
  2525. Request &req, const char *body, size_t content_length,
  2526. ContentProvider content_provider,
  2527. ContentProviderWithoutLength content_provider_without_length,
  2528. const std::string &content_type, ContentReceiver content_receiver,
  2529. Error &error);
  2530. Result send_with_content_provider_and_receiver(
  2531. const std::string &method, const std::string &path,
  2532. const Headers &headers, const char *body, size_t content_length,
  2533. ContentProvider content_provider,
  2534. ContentProviderWithoutLength content_provider_without_length,
  2535. const std::string &content_type, ContentReceiver content_receiver,
  2536. UploadProgress progress);
  2537. ContentProviderWithoutLength get_multipart_content_provider(
  2538. const std::string &boundary, const UploadFormDataItems &items,
  2539. const FormDataProviderItems &provider_items) const;
  2540. virtual bool
  2541. process_socket(const Socket &socket,
  2542. std::chrono::time_point<std::chrono::steady_clock> start_time,
  2543. std::function<bool(Stream &strm)> callback);
  2544. virtual bool is_ssl() const;
  2545. void transfer_socket_ownership_to_handle(StreamHandle &handle);
  2546. #ifdef CPPHTTPLIB_SSL_ENABLED
  2547. public:
  2548. void set_digest_auth(const std::string &username,
  2549. const std::string &password);
  2550. void set_proxy_digest_auth(const std::string &username,
  2551. const std::string &password);
  2552. void set_ca_cert_path(const std::string &ca_cert_file_path,
  2553. const std::string &ca_cert_dir_path = std::string());
  2554. void enable_server_certificate_verification(bool enabled);
  2555. void enable_server_hostname_verification(bool enabled);
  2556. void enable_system_ca(bool enabled);
  2557. protected:
  2558. std::string digest_auth_username_;
  2559. std::string digest_auth_password_;
  2560. std::string proxy_digest_auth_username_;
  2561. std::string proxy_digest_auth_password_;
  2562. std::string ca_cert_file_path_;
  2563. std::string ca_cert_dir_path_;
  2564. bool server_certificate_verification_ = true;
  2565. bool server_hostname_verification_ = true;
  2566. SystemCAMode system_ca_mode_ = SystemCAMode::Auto;
  2567. std::string ca_cert_pem_; // Store CA cert PEM for redirect transfer
  2568. int last_ssl_error_ = 0;
  2569. uint64_t last_backend_error_ = 0;
  2570. #endif
  2571. };
  2572. class Client {
  2573. public:
  2574. // Universal interface
  2575. explicit Client(const std::string &scheme_host_port);
  2576. explicit Client(const std::string &scheme_host_port,
  2577. const std::string &client_cert_path,
  2578. const std::string &client_key_path);
  2579. // HTTP only interface
  2580. explicit Client(const std::string &host, int port);
  2581. explicit Client(const std::string &host, int port,
  2582. const std::string &client_cert_path,
  2583. const std::string &client_key_path);
  2584. Client(Client &&) = default;
  2585. Client &operator=(Client &&) = default;
  2586. ~Client();
  2587. bool is_valid() const;
  2588. // clang-format off
  2589. Result Get(const std::string &path, DownloadProgress progress = nullptr);
  2590. Result Get(const std::string &path, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2591. Result Get(const std::string &path, ResponseHandler response_handler, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2592. Result Get(const std::string &path, const Headers &headers, DownloadProgress progress = nullptr);
  2593. Result Get(const std::string &path, const Headers &headers, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2594. Result Get(const std::string &path, const Headers &headers, ResponseHandler response_handler, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2595. Result Get(const std::string &path, const Params &params, DownloadProgress progress = nullptr);
  2596. Result Get(const std::string &path, const Params &params, const Headers &headers, DownloadProgress progress = nullptr);
  2597. Result Get(const std::string &path, const Params &params, const Headers &headers, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2598. Result Get(const std::string &path, const Params &params, const Headers &headers, ResponseHandler response_handler, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2599. Result Head(const std::string &path);
  2600. Result Head(const std::string &path, const Headers &headers);
  2601. Result Post(const std::string &path);
  2602. Result Post(const std::string &path, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2603. Result Post(const std::string &path, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2604. Result Post(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2605. Result Post(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2606. Result Post(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2607. Result Post(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2608. Result Post(const std::string &path, const Params &params);
  2609. Result Post(const std::string &path, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2610. Result Post(const std::string &path, const Headers &headers);
  2611. Result Post(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2612. Result Post(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2613. Result Post(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2614. Result Post(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2615. Result Post(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2616. Result Post(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2617. Result Post(const std::string &path, const Headers &headers, const Params &params);
  2618. Result Post(const std::string &path, const Headers &headers, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2619. Result Post(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const std::string &boundary, UploadProgress progress = nullptr);
  2620. Result Post(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const FormDataProviderItems &provider_items, UploadProgress progress = nullptr);
  2621. Result Post(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2622. Result Put(const std::string &path);
  2623. Result Put(const std::string &path, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2624. Result Put(const std::string &path, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2625. Result Put(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2626. Result Put(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2627. Result Put(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2628. Result Put(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2629. Result Put(const std::string &path, const Params &params);
  2630. Result Put(const std::string &path, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2631. Result Put(const std::string &path, const Headers &headers);
  2632. Result Put(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2633. Result Put(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2634. Result Put(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2635. Result Put(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2636. Result Put(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2637. Result Put(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2638. Result Put(const std::string &path, const Headers &headers, const Params &params);
  2639. Result Put(const std::string &path, const Headers &headers, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2640. Result Put(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const std::string &boundary, UploadProgress progress = nullptr);
  2641. Result Put(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const FormDataProviderItems &provider_items, UploadProgress progress = nullptr);
  2642. Result Put(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2643. Result Patch(const std::string &path);
  2644. Result Patch(const std::string &path, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2645. Result Patch(const std::string &path, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2646. Result Patch(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2647. Result Patch(const std::string &path, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2648. Result Patch(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2649. Result Patch(const std::string &path, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2650. Result Patch(const std::string &path, const Params &params);
  2651. Result Patch(const std::string &path, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2652. Result Patch(const std::string &path, const Headers &headers);
  2653. Result Patch(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, UploadProgress progress = nullptr);
  2654. Result Patch(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, UploadProgress progress = nullptr);
  2655. Result Patch(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2656. Result Patch(const std::string &path, const Headers &headers, size_t content_length, ContentProvider content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2657. Result Patch(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, UploadProgress progress = nullptr);
  2658. Result Patch(const std::string &path, const Headers &headers, ContentProviderWithoutLength content_provider, const std::string &content_type, ContentReceiver content_receiver, UploadProgress progress = nullptr);
  2659. Result Patch(const std::string &path, const Headers &headers, const Params &params);
  2660. Result Patch(const std::string &path, const Headers &headers, const UploadFormDataItems &items, UploadProgress progress = nullptr);
  2661. Result Patch(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const std::string &boundary, UploadProgress progress = nullptr);
  2662. Result Patch(const std::string &path, const Headers &headers, const UploadFormDataItems &items, const FormDataProviderItems &provider_items, UploadProgress progress = nullptr);
  2663. Result Patch(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, ContentReceiver content_receiver, DownloadProgress progress = nullptr);
  2664. Result Delete(const std::string &path, DownloadProgress progress = nullptr);
  2665. Result Delete(const std::string &path, const char *body, size_t content_length, const std::string &content_type, DownloadProgress progress = nullptr);
  2666. Result Delete(const std::string &path, const std::string &body, const std::string &content_type, DownloadProgress progress = nullptr);
  2667. Result Delete(const std::string &path, const Params &params, DownloadProgress progress = nullptr);
  2668. Result Delete(const std::string &path, const Headers &headers, DownloadProgress progress = nullptr);
  2669. Result Delete(const std::string &path, const Headers &headers, const char *body, size_t content_length, const std::string &content_type, DownloadProgress progress = nullptr);
  2670. Result Delete(const std::string &path, const Headers &headers, const std::string &body, const std::string &content_type, DownloadProgress progress = nullptr);
  2671. Result Delete(const std::string &path, const Headers &headers, const Params &params, DownloadProgress progress = nullptr);
  2672. Result Options(const std::string &path);
  2673. Result Options(const std::string &path, const Headers &headers);
  2674. // clang-format on
  2675. // Streaming API: Open a stream for reading response body incrementally
  2676. // Socket ownership is transferred to StreamHandle for true streaming
  2677. // Supports all HTTP methods (GET, POST, PUT, PATCH, DELETE, etc.)
  2678. ClientImpl::StreamHandle open_stream(const std::string &method,
  2679. const std::string &path,
  2680. const Params &params = {},
  2681. const Headers &headers = {},
  2682. const std::string &body = {},
  2683. const std::string &content_type = {});
  2684. bool send(Request &req, Response &res, Error &error);
  2685. Result send(const Request &req);
  2686. void stop();
  2687. std::string host() const;
  2688. int port() const;
  2689. size_t is_socket_open() const;
  2690. socket_t socket() const;
  2691. void set_hostname_addr_map(std::map<std::string, std::string> addr_map);
  2692. void set_default_headers(Headers headers);
  2693. void
  2694. set_header_writer(std::function<ssize_t(Stream &, Headers &)> const &writer);
  2695. void set_address_family(int family);
  2696. void set_tcp_nodelay(bool on);
  2697. void set_socket_options(SocketOptions socket_options);
  2698. void set_connection_timeout(time_t sec, time_t usec = 0);
  2699. template <class Rep, class Period>
  2700. void
  2701. set_connection_timeout(const std::chrono::duration<Rep, Period> &duration);
  2702. void set_read_timeout(time_t sec, time_t usec = 0);
  2703. template <class Rep, class Period>
  2704. void set_read_timeout(const std::chrono::duration<Rep, Period> &duration);
  2705. void set_write_timeout(time_t sec, time_t usec = 0);
  2706. template <class Rep, class Period>
  2707. void set_write_timeout(const std::chrono::duration<Rep, Period> &duration);
  2708. void set_max_timeout(time_t msec);
  2709. template <class Rep, class Period>
  2710. void set_max_timeout(const std::chrono::duration<Rep, Period> &duration);
  2711. void set_basic_auth(const std::string &username, const std::string &password);
  2712. void set_bearer_token_auth(const std::string &token);
  2713. void set_keep_alive(bool on);
  2714. void set_follow_location(bool on);
  2715. void set_path_encode(bool on);
  2716. void set_compress(bool on);
  2717. void set_decompress(bool on);
  2718. void set_payload_max_length(size_t length);
  2719. void set_interface(const std::string &intf);
  2720. void set_proxy(const std::string &host, int port);
  2721. void set_proxy_basic_auth(const std::string &username,
  2722. const std::string &password);
  2723. void set_proxy_bearer_token_auth(const std::string &token);
  2724. void set_no_proxy(const std::vector<std::string> &patterns);
  2725. void set_logger(Logger logger);
  2726. void set_error_logger(ErrorLogger error_logger);
  2727. private:
  2728. std::unique_ptr<ClientImpl> cli_;
  2729. #ifdef CPPHTTPLIB_SSL_ENABLED
  2730. public:
  2731. void set_digest_auth(const std::string &username,
  2732. const std::string &password);
  2733. void set_proxy_digest_auth(const std::string &username,
  2734. const std::string &password);
  2735. void enable_server_certificate_verification(bool enabled);
  2736. void enable_server_hostname_verification(bool enabled);
  2737. void enable_system_ca(bool enabled);
  2738. void set_ca_cert_path(const std::string &ca_cert_file_path,
  2739. const std::string &ca_cert_dir_path = std::string());
  2740. void set_ca_cert_store(tls::ca_store_t ca_cert_store);
  2741. void load_ca_cert_store(const char *ca_cert, std::size_t size);
  2742. void set_server_certificate_verifier(tls::VerifyCallback verifier);
  2743. void set_session_verifier(
  2744. std::function<SSLVerifierResponse(tls::session_t)> verifier);
  2745. tls::ctx_t tls_context() const;
  2746. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  2747. void enable_windows_certificate_verification(bool enabled);
  2748. #endif
  2749. private:
  2750. bool is_ssl_ = false;
  2751. #endif
  2752. };
  2753. #ifdef CPPHTTPLIB_SSL_ENABLED
  2754. class SSLServer : public Server {
  2755. public:
  2756. SSLServer(const char *cert_path, const char *private_key_path,
  2757. const char *client_ca_cert_file_path = nullptr,
  2758. const char *client_ca_cert_dir_path = nullptr,
  2759. const char *private_key_password = nullptr);
  2760. struct PemMemory {
  2761. const char *cert_pem;
  2762. size_t cert_pem_len;
  2763. const char *key_pem;
  2764. size_t key_pem_len;
  2765. const char *client_ca_pem;
  2766. size_t client_ca_pem_len;
  2767. const char *private_key_password;
  2768. };
  2769. explicit SSLServer(const PemMemory &pem);
  2770. // The callback receives the ctx_t handle which can be cast to the
  2771. // appropriate backend type (SSL_CTX* for OpenSSL,
  2772. // tls::impl::MbedTlsContext* for Mbed TLS)
  2773. explicit SSLServer(const tls::ContextSetupCallback &setup_callback);
  2774. ~SSLServer() override;
  2775. bool is_valid() const override;
  2776. bool update_certs_pem(const char *cert_pem, const char *key_pem,
  2777. const char *client_ca_pem = nullptr,
  2778. const char *password = nullptr);
  2779. tls::ctx_t tls_context() const { return ctx_; }
  2780. int ssl_last_error() const { return last_ssl_error_; }
  2781. private:
  2782. bool process_and_close_socket(socket_t sock) override;
  2783. tls::ctx_t ctx_ = nullptr;
  2784. std::mutex ctx_mutex_;
  2785. int last_ssl_error_ = 0;
  2786. };
  2787. class SSLClient final : public ClientImpl {
  2788. public:
  2789. explicit SSLClient(const std::string &host);
  2790. explicit SSLClient(const std::string &host, int port);
  2791. explicit SSLClient(const std::string &host, int port,
  2792. const std::string &client_cert_path,
  2793. const std::string &client_key_path,
  2794. const std::string &private_key_password = std::string());
  2795. struct PemMemory {
  2796. const char *cert_pem;
  2797. size_t cert_pem_len;
  2798. const char *key_pem;
  2799. size_t key_pem_len;
  2800. const char *private_key_password;
  2801. };
  2802. explicit SSLClient(const std::string &host, int port, const PemMemory &pem);
  2803. ~SSLClient() override;
  2804. bool is_valid() const override;
  2805. void set_ca_cert_store(tls::ca_store_t ca_cert_store);
  2806. void load_ca_cert_store(const char *ca_cert, std::size_t size);
  2807. void set_server_certificate_verifier(tls::VerifyCallback verifier);
  2808. // Post-handshake session verifier (backend-independent)
  2809. void set_session_verifier(
  2810. std::function<SSLVerifierResponse(tls::session_t)> verifier);
  2811. tls::ctx_t tls_context() const { return ctx_; }
  2812. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  2813. void enable_windows_certificate_verification(bool enabled);
  2814. #endif
  2815. private:
  2816. bool create_and_connect_socket(Socket &socket, Error &error) override;
  2817. bool ensure_socket_connection(Socket &socket, Error &error) override;
  2818. void shutdown_ssl(Socket &socket, bool shutdown_gracefully) override;
  2819. void shutdown_ssl_impl(Socket &socket, bool shutdown_gracefully);
  2820. bool
  2821. process_socket(const Socket &socket,
  2822. std::chrono::time_point<std::chrono::steady_clock> start_time,
  2823. std::function<bool(Stream &strm)> callback) override;
  2824. bool is_ssl() const override;
  2825. bool setup_proxy_connection(
  2826. Socket &socket,
  2827. std::chrono::time_point<std::chrono::steady_clock> start_time,
  2828. Response &res, bool &success, Error &error) override;
  2829. bool connect_with_proxy(
  2830. Socket &sock,
  2831. std::chrono::time_point<std::chrono::steady_clock> start_time,
  2832. Response &res, bool &success, Error &error);
  2833. bool initialize_ssl(Socket &socket, Error &error);
  2834. void init_ctx();
  2835. void reset_ctx_on_error();
  2836. bool load_certs();
  2837. tls::ctx_t ctx_ = nullptr;
  2838. std::mutex ctx_mutex_;
  2839. std::once_flag initialize_cert_;
  2840. // Tracks whether a custom CA store was applied via set_ca_cert_store(),
  2841. // since the store handle itself is owned by ctx_ and leaves no other trace.
  2842. // Used to keep custom CA configuration exclusive with system CA loading.
  2843. bool ca_cert_store_set_ = false;
  2844. std::function<SSLVerifierResponse(tls::session_t)> session_verifier_;
  2845. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  2846. bool enable_windows_cert_verification_ = true;
  2847. // Like ca_cert_store_set_, tracks what ctx_ cannot report back: whether
  2848. // set_server_certificate_verifier() installed a verifier.
  2849. bool server_certificate_verifier_set_ = false;
  2850. #endif
  2851. friend class ClientImpl;
  2852. };
  2853. #endif // CPPHTTPLIB_SSL_ENABLED
  2854. namespace detail {
  2855. template <typename T, typename U>
  2856. inline void duration_to_sec_and_usec(const T &duration, U callback) {
  2857. auto sec = std::chrono::duration_cast<std::chrono::seconds>(duration).count();
  2858. auto usec = std::chrono::duration_cast<std::chrono::microseconds>(
  2859. duration - std::chrono::seconds(sec))
  2860. .count();
  2861. callback(static_cast<time_t>(sec), static_cast<time_t>(usec));
  2862. }
  2863. template <size_t N> inline constexpr size_t str_len(const char (&)[N]) {
  2864. return N - 1;
  2865. }
  2866. inline bool is_numeric(const std::string &str) {
  2867. return !str.empty() && std::all_of(str.cbegin(), str.cend(), is_ascii_digit);
  2868. }
  2869. inline size_t get_header_value_u64(const Headers &headers,
  2870. const std::string &key, size_t def,
  2871. size_t id, bool &is_invalid_value) {
  2872. is_invalid_value = false;
  2873. auto rng = headers.equal_range(key);
  2874. auto it = rng.first;
  2875. std::advance(it, static_cast<ssize_t>(id));
  2876. if (it != rng.second) {
  2877. if (is_numeric(it->second)) {
  2878. // Parse at size_t width so an out-of-range Content-Length is reported
  2879. // rather than silently saturated/truncated (a value above 2^32 would
  2880. // otherwise wrap to a small framing length on 32-bit builds). Flag it
  2881. // and return SIZE_MAX so the existing oversized-value guards reject it.
  2882. size_t val = 0;
  2883. const auto &s = it->second;
  2884. auto r = from_chars(s.data(), s.data() + s.size(), val);
  2885. if (r.ec == std::errc::result_out_of_range) {
  2886. is_invalid_value = true;
  2887. return (std::numeric_limits<size_t>::max)();
  2888. }
  2889. return val;
  2890. } else {
  2891. is_invalid_value = true;
  2892. }
  2893. }
  2894. return def;
  2895. }
  2896. inline size_t get_header_value_u64(const Headers &headers,
  2897. const std::string &key, size_t def,
  2898. size_t id) {
  2899. auto dummy = false;
  2900. return get_header_value_u64(headers, key, def, id, dummy);
  2901. }
  2902. } // namespace detail
  2903. template <class Rep, class Period>
  2904. inline Server &
  2905. Server::set_read_timeout(const std::chrono::duration<Rep, Period> &duration) {
  2906. detail::duration_to_sec_and_usec(
  2907. duration, [&](time_t sec, time_t usec) { set_read_timeout(sec, usec); });
  2908. return *this;
  2909. }
  2910. template <class Rep, class Period>
  2911. inline Server &
  2912. Server::set_write_timeout(const std::chrono::duration<Rep, Period> &duration) {
  2913. detail::duration_to_sec_and_usec(
  2914. duration, [&](time_t sec, time_t usec) { set_write_timeout(sec, usec); });
  2915. return *this;
  2916. }
  2917. template <class Rep, class Period>
  2918. inline Server &
  2919. Server::set_idle_interval(const std::chrono::duration<Rep, Period> &duration) {
  2920. detail::duration_to_sec_and_usec(
  2921. duration, [&](time_t sec, time_t usec) { set_idle_interval(sec, usec); });
  2922. return *this;
  2923. }
  2924. template <class Rep, class Period>
  2925. inline void ClientImpl::set_connection_timeout(
  2926. const std::chrono::duration<Rep, Period> &duration) {
  2927. detail::duration_to_sec_and_usec(duration, [&](time_t sec, time_t usec) {
  2928. set_connection_timeout(sec, usec);
  2929. });
  2930. }
  2931. template <class Rep, class Period>
  2932. inline void ClientImpl::set_read_timeout(
  2933. const std::chrono::duration<Rep, Period> &duration) {
  2934. detail::duration_to_sec_and_usec(
  2935. duration, [&](time_t sec, time_t usec) { set_read_timeout(sec, usec); });
  2936. }
  2937. template <class Rep, class Period>
  2938. inline void ClientImpl::set_write_timeout(
  2939. const std::chrono::duration<Rep, Period> &duration) {
  2940. detail::duration_to_sec_and_usec(
  2941. duration, [&](time_t sec, time_t usec) { set_write_timeout(sec, usec); });
  2942. }
  2943. template <class Rep, class Period>
  2944. inline void ClientImpl::set_max_timeout(
  2945. const std::chrono::duration<Rep, Period> &duration) {
  2946. auto msec =
  2947. std::chrono::duration_cast<std::chrono::milliseconds>(duration).count();
  2948. set_max_timeout(msec);
  2949. }
  2950. template <class Rep, class Period>
  2951. inline void Client::set_connection_timeout(
  2952. const std::chrono::duration<Rep, Period> &duration) {
  2953. cli_->set_connection_timeout(duration);
  2954. }
  2955. template <class Rep, class Period>
  2956. inline void
  2957. Client::set_read_timeout(const std::chrono::duration<Rep, Period> &duration) {
  2958. cli_->set_read_timeout(duration);
  2959. }
  2960. template <class Rep, class Period>
  2961. inline void
  2962. Client::set_write_timeout(const std::chrono::duration<Rep, Period> &duration) {
  2963. cli_->set_write_timeout(duration);
  2964. }
  2965. inline void Client::set_max_timeout(time_t msec) {
  2966. cli_->set_max_timeout(msec);
  2967. }
  2968. template <class Rep, class Period>
  2969. inline void
  2970. Client::set_max_timeout(const std::chrono::duration<Rep, Period> &duration) {
  2971. cli_->set_max_timeout(duration);
  2972. }
  2973. /*
  2974. * Forward declarations and types that will be part of the .h file if split into
  2975. * .h + .cc.
  2976. */
  2977. std::string hosted_at(const std::string &hostname);
  2978. void hosted_at(const std::string &hostname, std::vector<std::string> &addrs);
  2979. // JavaScript-style URL encoding/decoding functions
  2980. std::string encode_uri_component(const std::string &value);
  2981. std::string encode_uri(const std::string &value);
  2982. std::string decode_uri_component(const std::string &value);
  2983. std::string decode_uri(const std::string &value);
  2984. // RFC 3986 compliant URL component encoding/decoding functions
  2985. std::string encode_path_component(const std::string &component);
  2986. std::string decode_path_component(const std::string &component);
  2987. std::string encode_query_component(const std::string &component,
  2988. bool space_as_plus = true);
  2989. std::string decode_query_component(const std::string &component,
  2990. bool plus_as_space = true);
  2991. std::string sanitize_filename(const std::string &filename);
  2992. std::string append_query_params(const std::string &path, const Params &params);
  2993. std::pair<std::string, std::string> make_range_header(const Ranges &ranges);
  2994. std::pair<std::string, std::string>
  2995. make_basic_authentication_header(const std::string &username,
  2996. const std::string &password,
  2997. bool is_proxy = false);
  2998. namespace detail {
  2999. #if defined(_WIN32)
  3000. inline std::wstring u8string_to_wstring(const char *s) {
  3001. if (!s) { return std::wstring(); }
  3002. auto len = static_cast<int>(strlen(s));
  3003. if (!len) { return std::wstring(); }
  3004. auto wlen = ::MultiByteToWideChar(CP_UTF8, 0, s, len, nullptr, 0);
  3005. if (!wlen) { return std::wstring(); }
  3006. std::wstring ws;
  3007. ws.resize(wlen);
  3008. wlen = ::MultiByteToWideChar(
  3009. CP_UTF8, 0, s, len,
  3010. const_cast<LPWSTR>(reinterpret_cast<LPCWSTR>(ws.data())), wlen);
  3011. if (wlen != static_cast<int>(ws.size())) { ws.clear(); }
  3012. return ws;
  3013. }
  3014. #endif
  3015. struct FileStat {
  3016. FileStat(const std::string &path);
  3017. bool is_file() const;
  3018. bool is_dir() const;
  3019. time_t mtime() const;
  3020. size_t size() const;
  3021. private:
  3022. #if defined(_WIN32)
  3023. struct _stat st_;
  3024. #else
  3025. struct stat st_;
  3026. #endif
  3027. int ret_ = -1;
  3028. };
  3029. std::string make_host_and_port_string(const std::string &host, int port,
  3030. bool is_ssl);
  3031. template <typename T>
  3032. bool check_and_write_headers(Stream &strm, Headers &headers, T header_writer,
  3033. Error &error);
  3034. std::string trim_copy(const std::string &s);
  3035. void divide(
  3036. const char *data, std::size_t size, char d,
  3037. std::function<void(const char *, std::size_t, const char *, std::size_t)>
  3038. fn);
  3039. void divide(
  3040. const std::string &str, char d,
  3041. std::function<void(const char *, std::size_t, const char *, std::size_t)>
  3042. fn);
  3043. void split(const char *b, const char *e, char d,
  3044. std::function<void(const char *, const char *)> fn);
  3045. void split(const char *b, const char *e, char d, size_t m,
  3046. std::function<void(const char *, const char *)> fn);
  3047. bool split_find(const char *b, const char *e, char d,
  3048. std::function<bool(const char *, const char *)> fn);
  3049. bool has_header_token(const Headers &headers, const std::string &key,
  3050. const std::string &token);
  3051. std::string websocket_accept_key(const std::string &client_key);
  3052. bool is_websocket_upgrade(const Request &req);
  3053. bool process_client_socket(
  3054. socket_t sock, time_t read_timeout_sec, time_t read_timeout_usec,
  3055. time_t write_timeout_sec, time_t write_timeout_usec,
  3056. time_t max_timeout_msec,
  3057. std::chrono::time_point<std::chrono::steady_clock> start_time,
  3058. std::function<bool(Stream &)> callback);
  3059. socket_t create_client_socket(const std::string &host, const std::string &ip,
  3060. int port, int address_family, bool tcp_nodelay,
  3061. bool ipv6_v6only, SocketOptions socket_options,
  3062. time_t connection_timeout_sec,
  3063. time_t connection_timeout_usec,
  3064. time_t read_timeout_sec, time_t read_timeout_usec,
  3065. time_t write_timeout_sec,
  3066. time_t write_timeout_usec,
  3067. const std::string &intf, Error &error);
  3068. const char *get_header_value(const Headers &headers, const std::string &key,
  3069. const char *def, size_t id);
  3070. std::string get_combined_header_value(const Headers &headers,
  3071. const std::string &key);
  3072. std::string params_to_query_str(const Params &params);
  3073. void parse_query_text(const char *data, std::size_t size, Params &params);
  3074. void parse_query_text(const std::string &s, Params &params);
  3075. bool parse_multipart_boundary(const std::string &content_type,
  3076. std::string &boundary);
  3077. bool parse_range_header(const std::string &s, Ranges &ranges);
  3078. bool parse_accept_header(const std::string &s,
  3079. std::vector<std::string> &content_types);
  3080. void parse_disposition_params(const std::string &s, Params &params);
  3081. ssize_t send_socket(socket_t sock, const void *ptr, size_t size, int flags);
  3082. ssize_t read_socket(socket_t sock, void *ptr, size_t size, int flags);
  3083. EncodingType encoding_type(const Request &req, const std::string &content_type);
  3084. EncodingType encoding_type(const Request &req, const Response &res,
  3085. const std::string &content_type);
  3086. EncodingType encoding_type(const Request &req, const Response &res);
  3087. class BufferStream final : public Stream {
  3088. public:
  3089. BufferStream() = default;
  3090. ~BufferStream() override = default;
  3091. bool is_readable() const override;
  3092. bool wait_readable() const override;
  3093. bool wait_writable() const override;
  3094. ssize_t read(char *ptr, size_t size) override;
  3095. ssize_t write(const char *ptr, size_t size) override;
  3096. void get_remote_ip_and_port(std::string &ip, int &port) const override;
  3097. void get_local_ip_and_port(std::string &ip, int &port) const override;
  3098. socket_t socket() const override;
  3099. time_t duration() const override;
  3100. const std::string &get_buffer() const;
  3101. private:
  3102. std::string buffer;
  3103. size_t position = 0;
  3104. };
  3105. class compressor {
  3106. public:
  3107. virtual ~compressor() = default;
  3108. typedef std::function<bool(const char *data, size_t data_len)> Callback;
  3109. virtual bool compress(const char *data, size_t data_length, bool last,
  3110. Callback callback) = 0;
  3111. };
  3112. class decompressor {
  3113. public:
  3114. virtual ~decompressor() = default;
  3115. virtual bool is_valid() const = 0;
  3116. typedef std::function<bool(const char *data, size_t data_len)> Callback;
  3117. virtual bool decompress(const char *data, size_t data_length,
  3118. Callback callback) = 0;
  3119. };
  3120. class nocompressor final : public compressor {
  3121. public:
  3122. ~nocompressor() override = default;
  3123. bool compress(const char *data, size_t data_length, bool /*last*/,
  3124. Callback callback) override;
  3125. };
  3126. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  3127. class gzip_compressor final : public compressor {
  3128. public:
  3129. gzip_compressor();
  3130. ~gzip_compressor() override;
  3131. bool compress(const char *data, size_t data_length, bool last,
  3132. Callback callback) override;
  3133. private:
  3134. bool is_valid_ = false;
  3135. z_stream strm_;
  3136. };
  3137. class gzip_decompressor final : public decompressor {
  3138. public:
  3139. gzip_decompressor();
  3140. ~gzip_decompressor() override;
  3141. bool is_valid() const override;
  3142. bool decompress(const char *data, size_t data_length,
  3143. Callback callback) override;
  3144. private:
  3145. bool is_valid_ = false;
  3146. z_stream strm_;
  3147. };
  3148. #endif
  3149. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  3150. class brotli_compressor final : public compressor {
  3151. public:
  3152. brotli_compressor();
  3153. ~brotli_compressor();
  3154. bool compress(const char *data, size_t data_length, bool last,
  3155. Callback callback) override;
  3156. private:
  3157. BrotliEncoderState *state_ = nullptr;
  3158. };
  3159. class brotli_decompressor final : public decompressor {
  3160. public:
  3161. brotli_decompressor();
  3162. ~brotli_decompressor();
  3163. bool is_valid() const override;
  3164. bool decompress(const char *data, size_t data_length,
  3165. Callback callback) override;
  3166. private:
  3167. BrotliDecoderResult decoder_r;
  3168. BrotliDecoderState *decoder_s = nullptr;
  3169. };
  3170. #endif
  3171. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  3172. class zstd_compressor : public compressor {
  3173. public:
  3174. zstd_compressor();
  3175. ~zstd_compressor();
  3176. bool compress(const char *data, size_t data_length, bool last,
  3177. Callback callback) override;
  3178. private:
  3179. ZSTD_CCtx *ctx_ = nullptr;
  3180. };
  3181. class zstd_decompressor : public decompressor {
  3182. public:
  3183. zstd_decompressor();
  3184. ~zstd_decompressor();
  3185. bool is_valid() const override;
  3186. bool decompress(const char *data, size_t data_length,
  3187. Callback callback) override;
  3188. private:
  3189. ZSTD_DCtx *ctx_ = nullptr;
  3190. };
  3191. #endif
  3192. // NOTE: until the read size reaches `fixed_buffer_size`, use `fixed_buffer`
  3193. // to store data. The call can set memory on stack for performance.
  3194. class stream_line_reader {
  3195. public:
  3196. stream_line_reader(Stream &strm, char *fixed_buffer,
  3197. size_t fixed_buffer_size);
  3198. const char *ptr() const;
  3199. size_t size() const;
  3200. bool end_with_crlf() const;
  3201. bool getline();
  3202. private:
  3203. void append(char c);
  3204. void append(const char *data, size_t size);
  3205. Stream &strm_;
  3206. char *fixed_buffer_;
  3207. const size_t fixed_buffer_size_;
  3208. size_t fixed_buffer_used_size_ = 0;
  3209. std::string growable_buffer_;
  3210. };
  3211. bool parse_trailers(stream_line_reader &line_reader, Headers &dest,
  3212. const Headers &src_headers);
  3213. struct ChunkedDecoder {
  3214. Stream &strm;
  3215. size_t chunk_remaining = 0;
  3216. bool finished = false;
  3217. char line_buf[64];
  3218. size_t last_chunk_total = 0;
  3219. size_t last_chunk_offset = 0;
  3220. explicit ChunkedDecoder(Stream &s);
  3221. ssize_t read_payload(char *buf, size_t len, size_t &out_chunk_offset,
  3222. size_t &out_chunk_total);
  3223. bool parse_trailers_into(Headers &dest, const Headers &src_headers);
  3224. };
  3225. class mmap {
  3226. public:
  3227. mmap(const char *path);
  3228. ~mmap();
  3229. bool open(const char *path);
  3230. void close();
  3231. bool is_open() const;
  3232. size_t size() const;
  3233. const char *data() const;
  3234. private:
  3235. #if defined(_WIN32)
  3236. HANDLE hFile_ = NULL;
  3237. HANDLE hMapping_ = NULL;
  3238. #else
  3239. int fd_ = -1;
  3240. #endif
  3241. size_t size_ = 0;
  3242. void *addr_ = nullptr;
  3243. bool is_open_empty_file = false;
  3244. };
  3245. // NOTE: https://www.rfc-editor.org/rfc/rfc9110#section-5
  3246. namespace fields {
  3247. bool is_token_char(char c);
  3248. bool is_token(const std::string &s);
  3249. bool is_field_name(const std::string &s);
  3250. bool is_vchar(char c);
  3251. bool is_obs_text(char c);
  3252. bool is_field_vchar(char c);
  3253. bool is_field_content(const std::string &s);
  3254. bool is_field_value(const std::string &s);
  3255. bool is_field_valid(const std::string &name, const std::string &value);
  3256. bool is_request_target(const std::string &s);
  3257. } // namespace fields
  3258. } // namespace detail
  3259. /*
  3260. * TLS Abstraction Layer Declarations
  3261. */
  3262. #ifdef CPPHTTPLIB_SSL_ENABLED
  3263. // TLS abstraction layer - backend-specific type declarations
  3264. #ifdef CPPHTTPLIB_MBEDTLS_SUPPORT
  3265. namespace tls {
  3266. namespace impl {
  3267. // Mbed TLS context wrapper (holds config, entropy, DRBG, CA chain, own
  3268. // cert/key). This struct is accessible via tls::impl for use in SSL context
  3269. // setup callbacks (cast ctx_t to tls::impl::MbedTlsContext*).
  3270. struct MbedTlsContext {
  3271. mbedtls_ssl_config conf;
  3272. #ifndef CPPHTTPLIB_MBEDTLS_V4
  3273. // Mbed TLS 4.x uses PSA Crypto's internal RNG; no explicit entropy/DRBG.
  3274. mbedtls_entropy_context entropy;
  3275. mbedtls_ctr_drbg_context ctr_drbg;
  3276. #endif
  3277. mbedtls_x509_crt ca_chain;
  3278. mbedtls_x509_crt own_cert;
  3279. mbedtls_pk_context own_key;
  3280. bool is_server = false;
  3281. bool verify_client = false;
  3282. bool has_verify_callback = false;
  3283. MbedTlsContext();
  3284. ~MbedTlsContext();
  3285. MbedTlsContext(const MbedTlsContext &) = delete;
  3286. MbedTlsContext &operator=(const MbedTlsContext &) = delete;
  3287. };
  3288. } // namespace impl
  3289. } // namespace tls
  3290. #endif
  3291. #ifdef CPPHTTPLIB_WOLFSSL_SUPPORT
  3292. namespace tls {
  3293. namespace impl {
  3294. // wolfSSL context wrapper (holds WOLFSSL_CTX and related state).
  3295. // This struct is accessible via tls::impl for use in SSL context
  3296. // setup callbacks (cast ctx_t to tls::impl::WolfSSLContext*).
  3297. struct WolfSSLContext {
  3298. WOLFSSL_CTX *ctx = nullptr;
  3299. bool is_server = false;
  3300. bool verify_client = false;
  3301. bool has_verify_callback = false;
  3302. std::string ca_pem_data_; // accumulated PEM for get_ca_names/get_ca_certs
  3303. WolfSSLContext();
  3304. ~WolfSSLContext();
  3305. WolfSSLContext(const WolfSSLContext &) = delete;
  3306. WolfSSLContext &operator=(const WolfSSLContext &) = delete;
  3307. };
  3308. // CA store for wolfSSL: holds raw PEM bytes to allow reloading into any ctx
  3309. struct WolfSSLCAStore {
  3310. std::string pem_data;
  3311. };
  3312. } // namespace impl
  3313. } // namespace tls
  3314. #endif
  3315. #endif // CPPHTTPLIB_SSL_ENABLED
  3316. namespace stream {
  3317. class Result {
  3318. public:
  3319. Result();
  3320. explicit Result(ClientImpl::StreamHandle &&handle, size_t chunk_size = 8192);
  3321. Result(Result &&other) noexcept;
  3322. Result &operator=(Result &&other) noexcept;
  3323. Result(const Result &) = delete;
  3324. Result &operator=(const Result &) = delete;
  3325. // Response info
  3326. bool is_valid() const;
  3327. explicit operator bool() const;
  3328. int status() const;
  3329. const Headers &headers() const;
  3330. std::string get_header_value(const std::string &key,
  3331. const char *def = "") const;
  3332. bool has_header(const std::string &key) const;
  3333. Error error() const;
  3334. Error read_error() const;
  3335. bool has_read_error() const;
  3336. // Stream reading
  3337. bool next();
  3338. const char *data() const;
  3339. size_t size() const;
  3340. std::string read_all();
  3341. private:
  3342. ClientImpl::StreamHandle handle_;
  3343. std::string buffer_;
  3344. size_t current_size_ = 0;
  3345. size_t chunk_size_;
  3346. bool finished_ = false;
  3347. };
  3348. // GET
  3349. template <typename ClientType>
  3350. inline Result Get(ClientType &cli, const std::string &path,
  3351. size_t chunk_size = 8192) {
  3352. return Result{cli.open_stream("GET", path), chunk_size};
  3353. }
  3354. template <typename ClientType>
  3355. inline Result Get(ClientType &cli, const std::string &path,
  3356. const Headers &headers, size_t chunk_size = 8192) {
  3357. return Result{cli.open_stream("GET", path, {}, headers), chunk_size};
  3358. }
  3359. template <typename ClientType>
  3360. inline Result Get(ClientType &cli, const std::string &path,
  3361. const Params &params, size_t chunk_size = 8192) {
  3362. return Result{cli.open_stream("GET", path, params), chunk_size};
  3363. }
  3364. template <typename ClientType>
  3365. inline Result Get(ClientType &cli, const std::string &path,
  3366. const Params &params, const Headers &headers,
  3367. size_t chunk_size = 8192) {
  3368. return Result{cli.open_stream("GET", path, params, headers), chunk_size};
  3369. }
  3370. // POST
  3371. template <typename ClientType>
  3372. inline Result Post(ClientType &cli, const std::string &path,
  3373. const std::string &body, const std::string &content_type,
  3374. size_t chunk_size = 8192) {
  3375. return Result{cli.open_stream("POST", path, {}, {}, body, content_type),
  3376. chunk_size};
  3377. }
  3378. template <typename ClientType>
  3379. inline Result Post(ClientType &cli, const std::string &path,
  3380. const Headers &headers, const std::string &body,
  3381. const std::string &content_type, size_t chunk_size = 8192) {
  3382. return Result{cli.open_stream("POST", path, {}, headers, body, content_type),
  3383. chunk_size};
  3384. }
  3385. template <typename ClientType>
  3386. inline Result Post(ClientType &cli, const std::string &path,
  3387. const Params &params, const std::string &body,
  3388. const std::string &content_type, size_t chunk_size = 8192) {
  3389. return Result{cli.open_stream("POST", path, params, {}, body, content_type),
  3390. chunk_size};
  3391. }
  3392. template <typename ClientType>
  3393. inline Result Post(ClientType &cli, const std::string &path,
  3394. const Params &params, const Headers &headers,
  3395. const std::string &body, const std::string &content_type,
  3396. size_t chunk_size = 8192) {
  3397. return Result{
  3398. cli.open_stream("POST", path, params, headers, body, content_type),
  3399. chunk_size};
  3400. }
  3401. // PUT
  3402. template <typename ClientType>
  3403. inline Result Put(ClientType &cli, const std::string &path,
  3404. const std::string &body, const std::string &content_type,
  3405. size_t chunk_size = 8192) {
  3406. return Result{cli.open_stream("PUT", path, {}, {}, body, content_type),
  3407. chunk_size};
  3408. }
  3409. template <typename ClientType>
  3410. inline Result Put(ClientType &cli, const std::string &path,
  3411. const Headers &headers, const std::string &body,
  3412. const std::string &content_type, size_t chunk_size = 8192) {
  3413. return Result{cli.open_stream("PUT", path, {}, headers, body, content_type),
  3414. chunk_size};
  3415. }
  3416. template <typename ClientType>
  3417. inline Result Put(ClientType &cli, const std::string &path,
  3418. const Params &params, const std::string &body,
  3419. const std::string &content_type, size_t chunk_size = 8192) {
  3420. return Result{cli.open_stream("PUT", path, params, {}, body, content_type),
  3421. chunk_size};
  3422. }
  3423. template <typename ClientType>
  3424. inline Result Put(ClientType &cli, const std::string &path,
  3425. const Params &params, const Headers &headers,
  3426. const std::string &body, const std::string &content_type,
  3427. size_t chunk_size = 8192) {
  3428. return Result{
  3429. cli.open_stream("PUT", path, params, headers, body, content_type),
  3430. chunk_size};
  3431. }
  3432. // PATCH
  3433. template <typename ClientType>
  3434. inline Result Patch(ClientType &cli, const std::string &path,
  3435. const std::string &body, const std::string &content_type,
  3436. size_t chunk_size = 8192) {
  3437. return Result{cli.open_stream("PATCH", path, {}, {}, body, content_type),
  3438. chunk_size};
  3439. }
  3440. template <typename ClientType>
  3441. inline Result Patch(ClientType &cli, const std::string &path,
  3442. const Headers &headers, const std::string &body,
  3443. const std::string &content_type, size_t chunk_size = 8192) {
  3444. return Result{cli.open_stream("PATCH", path, {}, headers, body, content_type),
  3445. chunk_size};
  3446. }
  3447. template <typename ClientType>
  3448. inline Result Patch(ClientType &cli, const std::string &path,
  3449. const Params &params, const std::string &body,
  3450. const std::string &content_type, size_t chunk_size = 8192) {
  3451. return Result{cli.open_stream("PATCH", path, params, {}, body, content_type),
  3452. chunk_size};
  3453. }
  3454. template <typename ClientType>
  3455. inline Result Patch(ClientType &cli, const std::string &path,
  3456. const Params &params, const Headers &headers,
  3457. const std::string &body, const std::string &content_type,
  3458. size_t chunk_size = 8192) {
  3459. return Result{
  3460. cli.open_stream("PATCH", path, params, headers, body, content_type),
  3461. chunk_size};
  3462. }
  3463. // DELETE
  3464. template <typename ClientType>
  3465. inline Result Delete(ClientType &cli, const std::string &path,
  3466. size_t chunk_size = 8192) {
  3467. return Result{cli.open_stream("DELETE", path), chunk_size};
  3468. }
  3469. template <typename ClientType>
  3470. inline Result Delete(ClientType &cli, const std::string &path,
  3471. const Headers &headers, size_t chunk_size = 8192) {
  3472. return Result{cli.open_stream("DELETE", path, {}, headers), chunk_size};
  3473. }
  3474. template <typename ClientType>
  3475. inline Result Delete(ClientType &cli, const std::string &path,
  3476. const std::string &body, const std::string &content_type,
  3477. size_t chunk_size = 8192) {
  3478. return Result{cli.open_stream("DELETE", path, {}, {}, body, content_type),
  3479. chunk_size};
  3480. }
  3481. template <typename ClientType>
  3482. inline Result Delete(ClientType &cli, const std::string &path,
  3483. const Headers &headers, const std::string &body,
  3484. const std::string &content_type,
  3485. size_t chunk_size = 8192) {
  3486. return Result{
  3487. cli.open_stream("DELETE", path, {}, headers, body, content_type),
  3488. chunk_size};
  3489. }
  3490. template <typename ClientType>
  3491. inline Result Delete(ClientType &cli, const std::string &path,
  3492. const Params &params, size_t chunk_size = 8192) {
  3493. return Result{cli.open_stream("DELETE", path, params), chunk_size};
  3494. }
  3495. template <typename ClientType>
  3496. inline Result Delete(ClientType &cli, const std::string &path,
  3497. const Params &params, const Headers &headers,
  3498. size_t chunk_size = 8192) {
  3499. return Result{cli.open_stream("DELETE", path, params, headers), chunk_size};
  3500. }
  3501. template <typename ClientType>
  3502. inline Result Delete(ClientType &cli, const std::string &path,
  3503. const Params &params, const std::string &body,
  3504. const std::string &content_type,
  3505. size_t chunk_size = 8192) {
  3506. return Result{cli.open_stream("DELETE", path, params, {}, body, content_type),
  3507. chunk_size};
  3508. }
  3509. template <typename ClientType>
  3510. inline Result Delete(ClientType &cli, const std::string &path,
  3511. const Params &params, const Headers &headers,
  3512. const std::string &body, const std::string &content_type,
  3513. size_t chunk_size = 8192) {
  3514. return Result{
  3515. cli.open_stream("DELETE", path, params, headers, body, content_type),
  3516. chunk_size};
  3517. }
  3518. // HEAD
  3519. template <typename ClientType>
  3520. inline Result Head(ClientType &cli, const std::string &path,
  3521. size_t chunk_size = 8192) {
  3522. return Result{cli.open_stream("HEAD", path), chunk_size};
  3523. }
  3524. template <typename ClientType>
  3525. inline Result Head(ClientType &cli, const std::string &path,
  3526. const Headers &headers, size_t chunk_size = 8192) {
  3527. return Result{cli.open_stream("HEAD", path, {}, headers), chunk_size};
  3528. }
  3529. template <typename ClientType>
  3530. inline Result Head(ClientType &cli, const std::string &path,
  3531. const Params &params, size_t chunk_size = 8192) {
  3532. return Result{cli.open_stream("HEAD", path, params), chunk_size};
  3533. }
  3534. template <typename ClientType>
  3535. inline Result Head(ClientType &cli, const std::string &path,
  3536. const Params &params, const Headers &headers,
  3537. size_t chunk_size = 8192) {
  3538. return Result{cli.open_stream("HEAD", path, params, headers), chunk_size};
  3539. }
  3540. // OPTIONS
  3541. template <typename ClientType>
  3542. inline Result Options(ClientType &cli, const std::string &path,
  3543. size_t chunk_size = 8192) {
  3544. return Result{cli.open_stream("OPTIONS", path), chunk_size};
  3545. }
  3546. template <typename ClientType>
  3547. inline Result Options(ClientType &cli, const std::string &path,
  3548. const Headers &headers, size_t chunk_size = 8192) {
  3549. return Result{cli.open_stream("OPTIONS", path, {}, headers), chunk_size};
  3550. }
  3551. template <typename ClientType>
  3552. inline Result Options(ClientType &cli, const std::string &path,
  3553. const Params &params, size_t chunk_size = 8192) {
  3554. return Result{cli.open_stream("OPTIONS", path, params), chunk_size};
  3555. }
  3556. template <typename ClientType>
  3557. inline Result Options(ClientType &cli, const std::string &path,
  3558. const Params &params, const Headers &headers,
  3559. size_t chunk_size = 8192) {
  3560. return Result{cli.open_stream("OPTIONS", path, params, headers), chunk_size};
  3561. }
  3562. } // namespace stream
  3563. namespace sse {
  3564. struct SSEMessage {
  3565. std::string event; // Event type (default: "message")
  3566. std::string data; // Event payload
  3567. std::string id; // Event ID for Last-Event-ID header
  3568. SSEMessage();
  3569. void clear();
  3570. };
  3571. class SSEClient {
  3572. public:
  3573. using MessageHandler = std::function<void(const SSEMessage &)>;
  3574. using ErrorHandler = std::function<void(Error)>;
  3575. using OpenHandler = std::function<void()>;
  3576. SSEClient(Client &client, const std::string &path);
  3577. SSEClient(Client &client, const std::string &path, const Headers &headers);
  3578. ~SSEClient();
  3579. SSEClient(const SSEClient &) = delete;
  3580. SSEClient &operator=(const SSEClient &) = delete;
  3581. // Event handlers
  3582. SSEClient &on_message(MessageHandler handler);
  3583. SSEClient &on_event(const std::string &type, MessageHandler handler);
  3584. SSEClient &on_open(OpenHandler handler);
  3585. SSEClient &on_error(ErrorHandler handler);
  3586. SSEClient &set_reconnect_interval(int ms);
  3587. SSEClient &set_max_reconnect_attempts(int n);
  3588. // Update headers (thread-safe)
  3589. SSEClient &set_headers(const Headers &headers);
  3590. // State accessors
  3591. bool is_connected() const;
  3592. const std::string &last_event_id() const;
  3593. // Blocking start - runs event loop with auto-reconnect
  3594. void start();
  3595. // Non-blocking start - runs in background thread
  3596. void start_async();
  3597. // Stop the client (thread-safe)
  3598. void stop();
  3599. private:
  3600. bool parse_sse_line(const std::string &line, SSEMessage &msg, int &retry_ms,
  3601. bool &has_data, bool &has_id);
  3602. void run_event_loop();
  3603. void dispatch_event(const SSEMessage &msg);
  3604. bool should_reconnect(int count) const;
  3605. void wait_for_reconnect();
  3606. // Client and path
  3607. Client &client_;
  3608. std::string path_;
  3609. Headers headers_;
  3610. mutable std::mutex headers_mutex_;
  3611. // Callbacks
  3612. MessageHandler on_message_;
  3613. std::map<std::string, MessageHandler> event_handlers_;
  3614. OpenHandler on_open_;
  3615. ErrorHandler on_error_;
  3616. // Configuration
  3617. int reconnect_interval_ms_ = 3000;
  3618. int max_reconnect_attempts_ = 0; // 0 = unlimited
  3619. // State
  3620. std::atomic<bool> running_{false};
  3621. std::atomic<bool> connected_{false};
  3622. std::string last_event_id_;
  3623. // Async support
  3624. std::thread async_thread_;
  3625. };
  3626. } // namespace sse
  3627. namespace ws {
  3628. enum class Opcode : uint8_t {
  3629. Continuation = 0x0,
  3630. Text = 0x1,
  3631. Binary = 0x2,
  3632. Close = 0x8,
  3633. Ping = 0x9,
  3634. Pong = 0xA,
  3635. };
  3636. enum class CloseStatus : uint16_t {
  3637. Normal = 1000,
  3638. GoingAway = 1001,
  3639. ProtocolError = 1002,
  3640. UnsupportedData = 1003,
  3641. NoStatus = 1005,
  3642. Abnormal = 1006,
  3643. InvalidPayload = 1007,
  3644. PolicyViolation = 1008,
  3645. MessageTooBig = 1009,
  3646. MandatoryExtension = 1010,
  3647. InternalError = 1011,
  3648. };
  3649. // Timeout is returned only when a read timeout was set and it elapsed before
  3650. // any byte of a frame arrived: nothing was consumed and the connection is
  3651. // still open, so the caller can send on it and read again. `msg` is left
  3652. // untouched, so a `while (ws.read(msg))` loop must not treat it as a message.
  3653. enum ReadResult : int { Fail = 0, Text = 1, Binary = 2, Timeout = 3 };
  3654. // Result of WebSocketClient::connect(). Truthy only when the WebSocket
  3655. // upgrade handshake fully succeeded. On failure error() identifies the
  3656. // failing layer; status()/headers() expose the server's upgrade response
  3657. // when one was received (status() is -1 otherwise).
  3658. class Result {
  3659. public:
  3660. Result() = default;
  3661. Result(Error err, int status, Headers &&headers)
  3662. : err_(err), status_(status), headers_(std::move(headers)) {}
  3663. explicit operator bool() const { return err_ == Error::Success; }
  3664. Error error() const { return err_; }
  3665. // Upgrade response info
  3666. int status() const { return status_; }
  3667. const Headers &headers() const { return headers_; }
  3668. std::string get_header_value(const std::string &key,
  3669. const char *def = "") const {
  3670. return detail::get_header_value(headers_, key, def, 0);
  3671. }
  3672. bool has_header(const std::string &key) const {
  3673. return headers_.find(key) != headers_.end();
  3674. }
  3675. #ifdef CPPHTTPLIB_SSL_ENABLED
  3676. Result(Error err, int status, Headers &&headers, int ssl_error,
  3677. uint64_t ssl_backend_error)
  3678. : err_(err), status_(status), headers_(std::move(headers)),
  3679. ssl_error_(ssl_error), ssl_backend_error_(ssl_backend_error) {}
  3680. int ssl_error() const { return ssl_error_; }
  3681. uint64_t ssl_backend_error() const { return ssl_backend_error_; }
  3682. #endif
  3683. private:
  3684. Error err_ = Error::Unknown; // a default-constructed Result is falsy
  3685. int status_ = -1;
  3686. Headers headers_;
  3687. #ifdef CPPHTTPLIB_SSL_ENABLED
  3688. int ssl_error_ = 0;
  3689. uint64_t ssl_backend_error_ = 0;
  3690. #endif
  3691. };
  3692. class WebSocket {
  3693. public:
  3694. WebSocket(const WebSocket &) = delete;
  3695. WebSocket &operator=(const WebSocket &) = delete;
  3696. ~WebSocket();
  3697. ReadResult read(std::string &msg);
  3698. bool send(const std::string &data);
  3699. bool send(const char *data, size_t len);
  3700. void close(CloseStatus status = CloseStatus::Normal,
  3701. const std::string &reason = "");
  3702. const Request &request() const;
  3703. bool is_open() const;
  3704. // Bound how long read() waits before returning Timeout. 0 waits forever.
  3705. // A server handler owns its connection's timeout this way; a client sets it
  3706. // through WebSocketClient. Safe to call while another thread is in read().
  3707. //
  3708. // Only a timeout set here is reported as Timeout. The compile-time default
  3709. // (CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND) is a backstop rather
  3710. // than a request for control, so when it elapses read() returns Fail and
  3711. // closes the connection, and `while (ws.read(msg))` ends as it always has.
  3712. void set_read_timeout(time_t sec, time_t usec = 0);
  3713. template <class Rep, class Period>
  3714. void set_read_timeout(const std::chrono::duration<Rep, Period> &duration);
  3715. private:
  3716. friend class httplib::Server;
  3717. friend class WebSocketClient;
  3718. WebSocket(
  3719. Stream &strm, const Request &req, bool is_server,
  3720. time_t ping_interval_sec = CPPHTTPLIB_WEBSOCKET_PING_INTERVAL_SECOND,
  3721. int max_missed_pongs = CPPHTTPLIB_WEBSOCKET_MAX_MISSED_PONGS)
  3722. : strm_(strm), req_(req), is_server_(is_server),
  3723. ping_interval_sec_(ping_interval_sec),
  3724. max_missed_pongs_(max_missed_pongs) {
  3725. start_heartbeat();
  3726. }
  3727. WebSocket(
  3728. std::unique_ptr<Stream> &&owned_strm, const Request &req, bool is_server,
  3729. time_t ping_interval_sec = CPPHTTPLIB_WEBSOCKET_PING_INTERVAL_SECOND,
  3730. int max_missed_pongs = CPPHTTPLIB_WEBSOCKET_MAX_MISSED_PONGS)
  3731. : strm_(*owned_strm), owned_strm_(std::move(owned_strm)), req_(req),
  3732. is_server_(is_server), ping_interval_sec_(ping_interval_sec),
  3733. max_missed_pongs_(max_missed_pongs) {
  3734. start_heartbeat();
  3735. }
  3736. void start_heartbeat();
  3737. bool send_frame(Opcode op, const char *data, size_t len, bool fin = true);
  3738. Stream &strm_;
  3739. std::unique_ptr<Stream> owned_strm_;
  3740. Request req_;
  3741. bool is_server_;
  3742. time_t ping_interval_sec_;
  3743. int max_missed_pongs_;
  3744. int unacked_pings_ = 0;
  3745. std::atomic<bool> closed_{false};
  3746. // Set once the caller has bounded read() through set_read_timeout(). Until
  3747. // then the timeout in effect is the compile-time default, and elapsing it
  3748. // is a failure that closes the connection, not a Timeout.
  3749. std::atomic<bool> read_timeout_set_{false};
  3750. std::mutex write_mutex_;
  3751. // Owned by whichever thread is parsing frames off strm_. Only one thread
  3752. // may do so: read_websocket_frame() reads a payload until it has the whole
  3753. // declared length, so a second parser stealing bytes silently corrupts the
  3754. // message the first one is assembling.
  3755. std::mutex read_mutex_;
  3756. std::thread ping_thread_;
  3757. std::mutex ping_mutex_;
  3758. std::condition_variable ping_cv_;
  3759. };
  3760. class WebSocketClient {
  3761. public:
  3762. explicit WebSocketClient(const std::string &scheme_host_port_path,
  3763. const Headers &headers = {});
  3764. ~WebSocketClient();
  3765. WebSocketClient(const WebSocketClient &) = delete;
  3766. WebSocketClient &operator=(const WebSocketClient &) = delete;
  3767. bool is_valid() const;
  3768. Result connect();
  3769. ReadResult read(std::string &msg);
  3770. bool send(const std::string &data);
  3771. bool send(const char *data, size_t len);
  3772. void close(CloseStatus status = CloseStatus::Normal,
  3773. const std::string &reason = "");
  3774. bool is_open() const;
  3775. const std::string &subprotocol() const;
  3776. void set_read_timeout(time_t sec, time_t usec = 0);
  3777. template <class Rep, class Period>
  3778. void set_read_timeout(const std::chrono::duration<Rep, Period> &duration);
  3779. void set_write_timeout(time_t sec, time_t usec = 0);
  3780. template <class Rep, class Period>
  3781. void set_write_timeout(const std::chrono::duration<Rep, Period> &duration);
  3782. void set_websocket_ping_interval(time_t sec);
  3783. void set_websocket_max_missed_pongs(int count);
  3784. void set_tcp_nodelay(bool on);
  3785. void set_address_family(int family);
  3786. void set_ipv6_v6only(bool on);
  3787. void set_socket_options(SocketOptions socket_options);
  3788. void set_connection_timeout(time_t sec, time_t usec = 0);
  3789. template <class Rep, class Period>
  3790. void
  3791. set_connection_timeout(const std::chrono::duration<Rep, Period> &duration);
  3792. void set_interface(const std::string &intf);
  3793. void set_hostname_addr_map(std::map<std::string, std::string> addr_map);
  3794. #ifdef CPPHTTPLIB_SSL_ENABLED
  3795. struct PemMemory {
  3796. const char *cert_pem;
  3797. size_t cert_pem_len;
  3798. const char *key_pem;
  3799. size_t key_pem_len;
  3800. const char *private_key_password;
  3801. };
  3802. explicit WebSocketClient(const std::string &scheme_host_port_path,
  3803. const PemMemory &pem, const Headers &headers = {});
  3804. void set_ca_cert_path(const std::string &ca_cert_file_path,
  3805. const std::string &ca_cert_dir_path = std::string());
  3806. void set_ca_cert_store(tls::ca_store_t store);
  3807. void load_ca_cert_store(const char *ca_cert, std::size_t size);
  3808. void enable_server_certificate_verification(bool enabled);
  3809. void enable_server_hostname_verification(bool enabled);
  3810. void enable_system_ca(bool enabled);
  3811. #endif
  3812. private:
  3813. void shutdown_and_close();
  3814. bool create_stream(std::unique_ptr<Stream> &strm, Error &error,
  3815. int &ssl_error, uint64_t &ssl_backend_error);
  3816. void prepare_default_headers(Request &req);
  3817. std::string host_;
  3818. int port_;
  3819. std::string path_;
  3820. Headers headers_;
  3821. std::string subprotocol_;
  3822. bool is_valid_ = false;
  3823. socket_t sock_ = INVALID_SOCKET;
  3824. std::unique_ptr<WebSocket> ws_;
  3825. time_t read_timeout_sec_ = CPPHTTPLIB_WEBSOCKET_CLIENT_READ_TIMEOUT_SECOND;
  3826. time_t read_timeout_usec_ = 0;
  3827. bool read_timeout_set_ = false; // see WebSocket::read_timeout_set_
  3828. time_t write_timeout_sec_ = CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_SECOND;
  3829. time_t write_timeout_usec_ = CPPHTTPLIB_CLIENT_WRITE_TIMEOUT_USECOND;
  3830. time_t websocket_ping_interval_sec_ =
  3831. CPPHTTPLIB_WEBSOCKET_PING_INTERVAL_SECOND;
  3832. int websocket_max_missed_pongs_ = CPPHTTPLIB_WEBSOCKET_MAX_MISSED_PONGS;
  3833. int address_family_ = AF_UNSPEC;
  3834. bool tcp_nodelay_ = CPPHTTPLIB_TCP_NODELAY;
  3835. bool ipv6_v6only_ = CPPHTTPLIB_IPV6_V6ONLY;
  3836. SocketOptions socket_options_ = nullptr;
  3837. time_t connection_timeout_sec_ = CPPHTTPLIB_CONNECTION_TIMEOUT_SECOND;
  3838. time_t connection_timeout_usec_ = CPPHTTPLIB_CONNECTION_TIMEOUT_USECOND;
  3839. std::string interface_;
  3840. // Hostname to connection target map. The value is an IP literal or another
  3841. // hostname; only the connection target changes, never the identity.
  3842. std::map<std::string, std::string> addr_map_;
  3843. #ifdef CPPHTTPLIB_SSL_ENABLED
  3844. bool is_ssl_ = false;
  3845. tls::ctx_t tls_ctx_ = nullptr;
  3846. tls::session_t tls_session_ = nullptr;
  3847. std::string ca_cert_file_path_;
  3848. std::string ca_cert_dir_path_;
  3849. bool custom_ca_loaded_ = false;
  3850. bool certs_loaded_ = false;
  3851. SystemCAMode system_ca_mode_ = SystemCAMode::Auto;
  3852. bool server_certificate_verification_ = true;
  3853. bool server_hostname_verification_ = true;
  3854. #endif
  3855. };
  3856. template <class Rep, class Period>
  3857. inline void WebSocket::set_read_timeout(
  3858. const std::chrono::duration<Rep, Period> &duration) {
  3859. detail::duration_to_sec_and_usec(
  3860. duration, [&](time_t sec, time_t usec) { set_read_timeout(sec, usec); });
  3861. }
  3862. template <class Rep, class Period>
  3863. inline void WebSocketClient::set_read_timeout(
  3864. const std::chrono::duration<Rep, Period> &duration) {
  3865. detail::duration_to_sec_and_usec(
  3866. duration, [&](time_t sec, time_t usec) { set_read_timeout(sec, usec); });
  3867. }
  3868. template <class Rep, class Period>
  3869. inline void WebSocketClient::set_write_timeout(
  3870. const std::chrono::duration<Rep, Period> &duration) {
  3871. detail::duration_to_sec_and_usec(
  3872. duration, [&](time_t sec, time_t usec) { set_write_timeout(sec, usec); });
  3873. }
  3874. template <class Rep, class Period>
  3875. inline void WebSocketClient::set_connection_timeout(
  3876. const std::chrono::duration<Rep, Period> &duration) {
  3877. detail::duration_to_sec_and_usec(duration, [&](time_t sec, time_t usec) {
  3878. set_connection_timeout(sec, usec);
  3879. });
  3880. }
  3881. namespace impl {
  3882. bool is_valid_utf8(const std::string &s);
  3883. // Three states, because a failure that consumed bytes and one that consumed
  3884. // none are not the same thing: the first has left the stream in the middle of
  3885. // a frame and the connection cannot be reused, the second can just be retried.
  3886. enum class FrameRead { Ok, Fail, Timeout };
  3887. FrameRead read_websocket_frame(Stream &strm, Opcode &opcode,
  3888. std::string &payload, bool &fin,
  3889. bool expect_masked, size_t max_len);
  3890. } // namespace impl
  3891. } // namespace ws
  3892. // ----------------------------------------------------------------------------
  3893. /*
  3894. * Implementation that will be part of the .cc file if split into .h + .cc.
  3895. */
  3896. namespace stream {
  3897. // stream::Result implementations
  3898. inline Result::Result() : chunk_size_(8192) {}
  3899. inline Result::Result(ClientImpl::StreamHandle &&handle, size_t chunk_size)
  3900. : handle_(std::move(handle)), chunk_size_(chunk_size) {}
  3901. inline Result::Result(Result &&other) noexcept
  3902. : handle_(std::move(other.handle_)), buffer_(std::move(other.buffer_)),
  3903. current_size_(other.current_size_), chunk_size_(other.chunk_size_),
  3904. finished_(other.finished_) {
  3905. other.current_size_ = 0;
  3906. other.finished_ = true;
  3907. }
  3908. inline Result &Result::operator=(Result &&other) noexcept {
  3909. if (this != &other) {
  3910. handle_ = std::move(other.handle_);
  3911. buffer_ = std::move(other.buffer_);
  3912. current_size_ = other.current_size_;
  3913. chunk_size_ = other.chunk_size_;
  3914. finished_ = other.finished_;
  3915. other.current_size_ = 0;
  3916. other.finished_ = true;
  3917. }
  3918. return *this;
  3919. }
  3920. inline bool Result::is_valid() const { return handle_.is_valid(); }
  3921. inline Result::operator bool() const { return is_valid(); }
  3922. inline int Result::status() const {
  3923. return handle_.response ? handle_.response->status : -1;
  3924. }
  3925. inline const Headers &Result::headers() const {
  3926. static const Headers empty_headers;
  3927. return handle_.response ? handle_.response->headers : empty_headers;
  3928. }
  3929. inline std::string Result::get_header_value(const std::string &key,
  3930. const char *def) const {
  3931. return handle_.response ? handle_.response->get_header_value(key, def) : def;
  3932. }
  3933. inline bool Result::has_header(const std::string &key) const {
  3934. return handle_.response ? handle_.response->has_header(key) : false;
  3935. }
  3936. inline Error Result::error() const { return handle_.error; }
  3937. inline Error Result::read_error() const { return handle_.get_read_error(); }
  3938. inline bool Result::has_read_error() const { return handle_.has_read_error(); }
  3939. inline bool Result::next() {
  3940. if (!handle_.is_valid() || finished_) { return false; }
  3941. if (buffer_.size() < chunk_size_) { buffer_.resize(chunk_size_); }
  3942. ssize_t n = handle_.read(&buffer_[0], chunk_size_);
  3943. if (n > 0) {
  3944. current_size_ = static_cast<size_t>(n);
  3945. return true;
  3946. }
  3947. current_size_ = 0;
  3948. finished_ = true;
  3949. return false;
  3950. }
  3951. inline const char *Result::data() const { return buffer_.data(); }
  3952. inline size_t Result::size() const { return current_size_; }
  3953. inline std::string Result::read_all() {
  3954. std::string result;
  3955. while (next()) {
  3956. result.append(data(), size());
  3957. }
  3958. return result;
  3959. }
  3960. } // namespace stream
  3961. namespace sse {
  3962. // SSEMessage implementations
  3963. inline SSEMessage::SSEMessage() : event("message") {}
  3964. inline void SSEMessage::clear() {
  3965. event = "message";
  3966. data.clear();
  3967. id.clear();
  3968. }
  3969. // SSEClient implementations
  3970. inline SSEClient::SSEClient(Client &client, const std::string &path)
  3971. : client_(client), path_(path) {}
  3972. inline SSEClient::SSEClient(Client &client, const std::string &path,
  3973. const Headers &headers)
  3974. : client_(client), path_(path), headers_(headers) {}
  3975. inline SSEClient::~SSEClient() { stop(); }
  3976. inline SSEClient &SSEClient::on_message(MessageHandler handler) {
  3977. on_message_ = std::move(handler);
  3978. return *this;
  3979. }
  3980. inline SSEClient &SSEClient::on_event(const std::string &type,
  3981. MessageHandler handler) {
  3982. event_handlers_[type] = std::move(handler);
  3983. return *this;
  3984. }
  3985. inline SSEClient &SSEClient::on_open(OpenHandler handler) {
  3986. on_open_ = std::move(handler);
  3987. return *this;
  3988. }
  3989. inline SSEClient &SSEClient::on_error(ErrorHandler handler) {
  3990. on_error_ = std::move(handler);
  3991. return *this;
  3992. }
  3993. inline SSEClient &SSEClient::set_reconnect_interval(int ms) {
  3994. reconnect_interval_ms_ = ms;
  3995. return *this;
  3996. }
  3997. inline SSEClient &SSEClient::set_max_reconnect_attempts(int n) {
  3998. max_reconnect_attempts_ = n;
  3999. return *this;
  4000. }
  4001. inline SSEClient &SSEClient::set_headers(const Headers &headers) {
  4002. std::lock_guard<std::mutex> lock(headers_mutex_);
  4003. headers_ = headers;
  4004. return *this;
  4005. }
  4006. inline bool SSEClient::is_connected() const { return connected_.load(); }
  4007. inline const std::string &SSEClient::last_event_id() const {
  4008. return last_event_id_;
  4009. }
  4010. inline void SSEClient::start() {
  4011. running_.store(true);
  4012. run_event_loop();
  4013. }
  4014. inline void SSEClient::start_async() {
  4015. running_.store(true);
  4016. async_thread_ = std::thread([this]() { run_event_loop(); });
  4017. }
  4018. inline void SSEClient::stop() {
  4019. running_.store(false);
  4020. client_.stop(); // Cancel any pending operations
  4021. if (async_thread_.joinable()) { async_thread_.join(); }
  4022. }
  4023. inline bool SSEClient::parse_sse_line(const std::string &line, SSEMessage &msg,
  4024. int &retry_ms, bool &has_data,
  4025. bool &has_id) {
  4026. // Blank line signals end of event
  4027. if (line.empty()) { return true; }
  4028. // Lines starting with ':' are comments (ignored)
  4029. if (line[0] == ':') { return false; }
  4030. // Find the colon separator
  4031. auto colon_pos = line.find(':');
  4032. auto field = line.substr(0, colon_pos);
  4033. std::string value;
  4034. // Value starts after colon, skip optional single space
  4035. if (colon_pos != std::string::npos && colon_pos + 1 < line.size()) {
  4036. auto value_start = colon_pos + 1;
  4037. if (line[value_start] == ' ') { value_start++; }
  4038. value = line.substr(value_start);
  4039. }
  4040. // Handle known fields
  4041. if (field == "event") {
  4042. msg.event = value;
  4043. } else if (field == "data") {
  4044. // Multiple data lines are concatenated with newlines
  4045. if (has_data) { msg.data += "\n"; }
  4046. msg.data += value;
  4047. has_data = true;
  4048. } else if (field == "id") {
  4049. // Empty id is valid (clears the last event ID)
  4050. msg.id = value;
  4051. has_id = true;
  4052. } else if (field == "retry") {
  4053. // Parse retry interval in milliseconds
  4054. // Per the SSE spec, a value that is not all ASCII digits is ignored.
  4055. if (detail::is_numeric(value)) {
  4056. int v = 0;
  4057. auto res =
  4058. detail::from_chars(value.data(), value.data() + value.size(), v);
  4059. if (res.ec == std::errc{}) { retry_ms = v; }
  4060. }
  4061. }
  4062. // Unknown fields are ignored per SSE spec
  4063. return false;
  4064. }
  4065. inline void SSEClient::run_event_loop() {
  4066. auto reconnect_count = 0;
  4067. while (running_.load()) {
  4068. // Build headers, including Last-Event-ID if we have one
  4069. Headers request_headers;
  4070. {
  4071. std::lock_guard<std::mutex> lock(headers_mutex_);
  4072. request_headers = headers_;
  4073. }
  4074. if (!last_event_id_.empty()) {
  4075. request_headers.emplace("Last-Event-ID", last_event_id_);
  4076. }
  4077. // Open streaming connection
  4078. auto result = stream::Get(client_, path_, request_headers);
  4079. // Connection error handling
  4080. if (!result) {
  4081. connected_.store(false);
  4082. if (on_error_) { on_error_(result.error()); }
  4083. if (!should_reconnect(reconnect_count)) { break; }
  4084. wait_for_reconnect();
  4085. reconnect_count++;
  4086. continue;
  4087. }
  4088. if (result.status() != StatusCode::OK_200) {
  4089. connected_.store(false);
  4090. if (on_error_) { on_error_(Error::Connection); }
  4091. // For certain errors, don't reconnect.
  4092. // Note: 401 is intentionally absent so that handlers can refresh
  4093. // credentials via set_headers() and let the client reconnect.
  4094. if (result.status() == StatusCode::NoContent_204 ||
  4095. result.status() == StatusCode::NotFound_404 ||
  4096. result.status() == StatusCode::Forbidden_403) {
  4097. break;
  4098. }
  4099. if (!should_reconnect(reconnect_count)) { break; }
  4100. wait_for_reconnect();
  4101. reconnect_count++;
  4102. continue;
  4103. }
  4104. // Connection successful
  4105. connected_.store(true);
  4106. reconnect_count = 0;
  4107. if (on_open_) { on_open_(); }
  4108. // Event receiving loop
  4109. std::string buffer;
  4110. SSEMessage current_msg;
  4111. auto has_data = false;
  4112. auto has_id = false;
  4113. while (running_.load() && result.next()) {
  4114. buffer.append(result.data(), result.size());
  4115. // Process complete lines in the buffer
  4116. size_t line_start = 0;
  4117. size_t newline_pos;
  4118. while ((newline_pos = buffer.find('\n', line_start)) !=
  4119. std::string::npos) {
  4120. auto line = buffer.substr(line_start, newline_pos - line_start);
  4121. line_start = newline_pos + 1;
  4122. // Strip the \r of a CRLF line ending so that every field, including
  4123. // one without a colon, sees the same line
  4124. if (!line.empty() && line.back() == '\r') { line.pop_back(); }
  4125. // Parse the line and check if event is complete
  4126. auto event_complete = parse_sse_line(
  4127. line, current_msg, reconnect_interval_ms_, has_data, has_id);
  4128. if (event_complete) {
  4129. // Update last_event_id for reconnection, even for an event that
  4130. // has no data. An empty id clears it.
  4131. if (has_id) { last_event_id_ = current_msg.id; }
  4132. // An event without a data field is not dispatched
  4133. if (has_data) { dispatch_event(current_msg); }
  4134. // Reset the message for the next event either way
  4135. current_msg.clear();
  4136. has_data = false;
  4137. has_id = false;
  4138. }
  4139. }
  4140. // Keep unprocessed data in buffer
  4141. buffer.erase(0, line_start);
  4142. }
  4143. // Connection ended
  4144. connected_.store(false);
  4145. if (!running_.load()) { break; }
  4146. // Check for read errors
  4147. if (result.has_read_error()) {
  4148. if (on_error_) { on_error_(result.read_error()); }
  4149. }
  4150. if (!should_reconnect(reconnect_count)) { break; }
  4151. wait_for_reconnect();
  4152. reconnect_count++;
  4153. }
  4154. connected_.store(false);
  4155. }
  4156. inline void SSEClient::dispatch_event(const SSEMessage &msg) {
  4157. // Check for specific event type handler first
  4158. auto it = event_handlers_.find(msg.event);
  4159. if (it != event_handlers_.end()) {
  4160. it->second(msg);
  4161. return;
  4162. }
  4163. // Fall back to generic message handler
  4164. if (on_message_) { on_message_(msg); }
  4165. }
  4166. inline bool SSEClient::should_reconnect(int count) const {
  4167. if (!running_.load()) { return false; }
  4168. if (max_reconnect_attempts_ == 0) { return true; } // unlimited
  4169. return count < max_reconnect_attempts_;
  4170. }
  4171. inline void SSEClient::wait_for_reconnect() {
  4172. // Use small increments to check running_ flag frequently.
  4173. // Always wait at least one increment, so that a zero interval (e.g.
  4174. // "retry: 0" from the server) cannot cause a busy reconnect loop.
  4175. const auto step_ms = 100;
  4176. auto interval_ms = (std::max)(reconnect_interval_ms_, step_ms);
  4177. auto waited = 0;
  4178. while (running_.load() && waited < interval_ms) {
  4179. std::this_thread::sleep_for(std::chrono::milliseconds(step_ms));
  4180. waited += step_ms;
  4181. }
  4182. }
  4183. } // namespace sse
  4184. #ifdef CPPHTTPLIB_SSL_ENABLED
  4185. /*
  4186. * TLS abstraction layer - internal function declarations
  4187. * These are implementation details and not part of the public API.
  4188. */
  4189. namespace tls {
  4190. // Client context
  4191. ctx_t create_client_context();
  4192. void free_context(ctx_t ctx);
  4193. bool set_min_version(ctx_t ctx, Version version);
  4194. bool load_ca_pem(ctx_t ctx, const char *pem, size_t len);
  4195. bool load_ca_file(ctx_t ctx, const char *file_path);
  4196. bool load_ca_dir(ctx_t ctx, const char *dir_path);
  4197. bool load_system_certs(ctx_t ctx);
  4198. bool set_client_cert_pem(ctx_t ctx, const char *cert, const char *key,
  4199. const char *password);
  4200. bool set_client_cert_file(ctx_t ctx, const char *cert_path,
  4201. const char *key_path, const char *password);
  4202. // Server context
  4203. ctx_t create_server_context();
  4204. bool set_server_cert_pem(ctx_t ctx, const char *cert, const char *key,
  4205. const char *password);
  4206. bool set_server_cert_file(ctx_t ctx, const char *cert_path,
  4207. const char *key_path, const char *password);
  4208. bool set_client_ca_file(ctx_t ctx, const char *ca_file, const char *ca_dir);
  4209. void set_verify_client(ctx_t ctx, bool require);
  4210. // Session management
  4211. session_t create_session(ctx_t ctx, socket_t sock);
  4212. void free_session(session_t session);
  4213. bool set_sni(session_t session, const char *hostname, bool verify_hostname);
  4214. // Handshake (non-blocking capable)
  4215. TlsError connect(session_t session);
  4216. TlsError accept(session_t session);
  4217. // Handshake with timeout (blocking until timeout)
  4218. bool connect_nonblocking(session_t session, socket_t sock, time_t timeout_sec,
  4219. time_t timeout_usec, TlsError *err);
  4220. bool accept_nonblocking(session_t session, socket_t sock, time_t timeout_sec,
  4221. time_t timeout_usec, TlsError *err);
  4222. // I/O (non-blocking capable)
  4223. ssize_t read(session_t session, void *buf, size_t len, TlsError &err);
  4224. ssize_t write(session_t session, const void *buf, size_t len, TlsError &err);
  4225. int pending(const_session_t session);
  4226. void shutdown(session_t session, bool graceful);
  4227. // Connection state
  4228. bool is_peer_closed(session_t session, socket_t sock);
  4229. // Certificate verification
  4230. cert_t get_peer_cert(const_session_t session);
  4231. // The certificates the peer sent, leaf first. Free each with free_cert(), and
  4232. // do not use them after free_session(), as with get_peer_cert().
  4233. size_t get_peer_certs(const_session_t session, std::vector<cert_t> &certs);
  4234. void free_cert(cert_t cert);
  4235. bool verify_hostname(cert_t cert, const char *hostname);
  4236. uint64_t hostname_mismatch_code();
  4237. long get_verify_result(const_session_t session);
  4238. // Certificate introspection
  4239. std::string get_cert_subject_cn(cert_t cert);
  4240. std::string get_cert_issuer_name(cert_t cert);
  4241. bool get_cert_sans(cert_t cert, std::vector<SanEntry> &sans);
  4242. bool get_cert_validity(cert_t cert, time_t &not_before, time_t &not_after);
  4243. std::string get_cert_serial(cert_t cert);
  4244. bool get_cert_der(cert_t cert, std::vector<unsigned char> &der);
  4245. const char *get_sni(const_session_t session);
  4246. // CA store management
  4247. ca_store_t create_ca_store(const char *pem, size_t len);
  4248. void free_ca_store(ca_store_t store);
  4249. bool set_ca_store(ctx_t ctx, ca_store_t store);
  4250. size_t get_ca_certs(ctx_t ctx, std::vector<cert_t> &certs);
  4251. std::vector<std::string> get_ca_names(ctx_t ctx);
  4252. // Dynamic certificate update (for servers)
  4253. bool update_server_cert(ctx_t ctx, const char *cert_pem, const char *key_pem,
  4254. const char *password);
  4255. bool update_server_client_ca(ctx_t ctx, const char *ca_pem);
  4256. // Certificate verification callback
  4257. bool set_verify_callback(ctx_t ctx, VerifyCallback callback);
  4258. long get_verify_error(const_session_t session);
  4259. std::string verify_error_string(long error_code);
  4260. // TlsError information
  4261. uint64_t peek_error();
  4262. uint64_t get_error();
  4263. std::string error_string(uint64_t code);
  4264. } // namespace tls
  4265. #endif // CPPHTTPLIB_SSL_ENABLED
  4266. /*
  4267. * Group 1: detail namespace - Non-SSL utilities
  4268. */
  4269. namespace detail {
  4270. inline bool set_socket_opt_impl(socket_t sock, int level, int optname,
  4271. const void *optval, socklen_t optlen) {
  4272. return setsockopt(sock, level, optname,
  4273. #ifdef _WIN32
  4274. reinterpret_cast<const char *>(optval),
  4275. #else
  4276. optval,
  4277. #endif
  4278. optlen) == 0;
  4279. }
  4280. inline bool set_socket_opt_time(socket_t sock, int level, int optname,
  4281. time_t sec, time_t usec) {
  4282. #ifdef _WIN32
  4283. auto timeout = static_cast<uint32_t>(sec * 1000 + usec / 1000);
  4284. #else
  4285. timeval timeout;
  4286. timeout.tv_sec = static_cast<long>(sec);
  4287. timeout.tv_usec = static_cast<decltype(timeout.tv_usec)>(usec);
  4288. #endif
  4289. return set_socket_opt_impl(sock, level, optname, &timeout, sizeof(timeout));
  4290. }
  4291. inline bool is_hex(char c, int &v) {
  4292. if (is_ascii_digit(c)) {
  4293. v = c - '0';
  4294. return true;
  4295. } else if ('A' <= c && c <= 'F') {
  4296. v = c - 'A' + 10;
  4297. return true;
  4298. } else if ('a' <= c && c <= 'f') {
  4299. v = c - 'a' + 10;
  4300. return true;
  4301. }
  4302. return false;
  4303. }
  4304. inline bool from_hex_to_i(const std::string &s, size_t i, size_t cnt,
  4305. int &val) {
  4306. if (i >= s.size()) { return false; }
  4307. val = 0;
  4308. for (; cnt; i++, cnt--) {
  4309. if (!s[i]) { return false; }
  4310. auto v = 0;
  4311. if (is_hex(s[i], v)) {
  4312. val = val * 16 + v;
  4313. } else {
  4314. return false;
  4315. }
  4316. }
  4317. return true;
  4318. }
  4319. inline std::string from_i_to_hex(size_t n) {
  4320. static const auto charset = "0123456789abcdef";
  4321. std::string ret;
  4322. do {
  4323. ret = charset[n & 15] + ret;
  4324. n >>= 4;
  4325. } while (n > 0);
  4326. return ret;
  4327. }
  4328. inline std::string compute_etag(const FileStat &fs,
  4329. const std::string &suffix = std::string()) {
  4330. if (!fs.is_file()) { return std::string(); }
  4331. // If mtime cannot be determined (negative value indicates an error
  4332. // or sentinel), do not generate an ETag. Returning a neutral / fixed
  4333. // value like 0 could collide with a real file that legitimately has
  4334. // mtime == 0 (epoch) and lead to misleading validators.
  4335. auto mtime_raw = fs.mtime();
  4336. if (mtime_raw < 0) { return std::string(); }
  4337. auto mtime = static_cast<size_t>(mtime_raw);
  4338. auto size = fs.size();
  4339. return std::string("W/\"") + from_i_to_hex(mtime) + "-" +
  4340. from_i_to_hex(size) + suffix + "\"";
  4341. }
  4342. // Format time_t as HTTP-date (RFC 9110 Section 5.6.7): "Sun, 06 Nov 1994
  4343. // 08:49:37 GMT" This implementation is defensive: it validates `mtime`, checks
  4344. // return values from `gmtime_r`/`gmtime_s`, and ensures `strftime` succeeds.
  4345. inline std::string file_mtime_to_http_date(time_t mtime) {
  4346. if (mtime < 0) { return std::string(); }
  4347. struct tm tm_buf;
  4348. #ifdef _WIN32
  4349. if (gmtime_s(&tm_buf, &mtime) != 0) { return std::string(); }
  4350. #else
  4351. if (gmtime_r(&mtime, &tm_buf) == nullptr) { return std::string(); }
  4352. #endif
  4353. char buf[64];
  4354. if (strftime(buf, sizeof(buf), "%a, %d %b %Y %H:%M:%S GMT", &tm_buf) == 0) {
  4355. return std::string();
  4356. }
  4357. return std::string(buf);
  4358. }
  4359. // Parse HTTP-date (RFC 9110 Section 5.6.7) to time_t. Returns -1 on failure.
  4360. inline time_t parse_http_date(const std::string &date_str) {
  4361. struct tm tm_buf;
  4362. // Create a classic locale object once for all parsing attempts
  4363. const std::locale classic_locale = std::locale::classic();
  4364. // Try to parse using std::get_time (C++11, cross-platform)
  4365. auto try_parse = [&](const char *fmt) -> bool {
  4366. std::istringstream ss(date_str);
  4367. ss.imbue(classic_locale);
  4368. memset(&tm_buf, 0, sizeof(tm_buf));
  4369. ss >> std::get_time(&tm_buf, fmt);
  4370. return !ss.fail();
  4371. };
  4372. // RFC 9110 preferred format (HTTP-date): "Sun, 06 Nov 1994 08:49:37 GMT"
  4373. if (!try_parse("%a, %d %b %Y %H:%M:%S")) {
  4374. // RFC 850 format: "Sunday, 06-Nov-94 08:49:37 GMT"
  4375. if (!try_parse("%A, %d-%b-%y %H:%M:%S")) {
  4376. // asctime format: "Sun Nov 6 08:49:37 1994"
  4377. if (!try_parse("%a %b %d %H:%M:%S %Y")) {
  4378. return static_cast<time_t>(-1);
  4379. }
  4380. }
  4381. }
  4382. #ifdef _WIN32
  4383. return _mkgmtime(&tm_buf);
  4384. #elif defined _AIX
  4385. return mktime(&tm_buf);
  4386. #else
  4387. return timegm(&tm_buf);
  4388. #endif
  4389. }
  4390. inline bool is_weak_etag(const std::string &s) {
  4391. // Check if the string is a weak ETag (starts with 'W/"')
  4392. return s.size() > 3 && s[0] == 'W' && s[1] == '/' && s[2] == '"';
  4393. }
  4394. inline bool is_strong_etag(const std::string &s) {
  4395. // Check if the string is a strong ETag (starts and ends with '"', at least 2
  4396. // chars)
  4397. return s.size() >= 2 && s[0] == '"' && s.back() == '"';
  4398. }
  4399. inline size_t to_utf8(int code, char *buff) {
  4400. if (code < 0x0080) {
  4401. buff[0] = static_cast<char>(code & 0x7F);
  4402. return 1;
  4403. } else if (code < 0x0800) {
  4404. buff[0] = static_cast<char>(0xC0 | ((code >> 6) & 0x1F));
  4405. buff[1] = static_cast<char>(0x80 | (code & 0x3F));
  4406. return 2;
  4407. } else if (code < 0xD800) {
  4408. buff[0] = static_cast<char>(0xE0 | ((code >> 12) & 0xF));
  4409. buff[1] = static_cast<char>(0x80 | ((code >> 6) & 0x3F));
  4410. buff[2] = static_cast<char>(0x80 | (code & 0x3F));
  4411. return 3;
  4412. } else if (code < 0xE000) { // D800 - DFFF is invalid...
  4413. return 0;
  4414. } else if (code < 0x10000) {
  4415. buff[0] = static_cast<char>(0xE0 | ((code >> 12) & 0xF));
  4416. buff[1] = static_cast<char>(0x80 | ((code >> 6) & 0x3F));
  4417. buff[2] = static_cast<char>(0x80 | (code & 0x3F));
  4418. return 3;
  4419. } else if (code < 0x110000) {
  4420. buff[0] = static_cast<char>(0xF0 | ((code >> 18) & 0x7));
  4421. buff[1] = static_cast<char>(0x80 | ((code >> 12) & 0x3F));
  4422. buff[2] = static_cast<char>(0x80 | ((code >> 6) & 0x3F));
  4423. buff[3] = static_cast<char>(0x80 | (code & 0x3F));
  4424. return 4;
  4425. }
  4426. // NOTREACHED
  4427. return 0;
  4428. }
  4429. } // namespace detail
  4430. namespace ws {
  4431. namespace impl {
  4432. inline bool is_valid_utf8(const std::string &s) {
  4433. size_t i = 0;
  4434. auto n = s.size();
  4435. while (i < n) {
  4436. auto c = static_cast<unsigned char>(s[i]);
  4437. size_t len;
  4438. uint32_t cp;
  4439. if (c < 0x80) {
  4440. i++;
  4441. continue;
  4442. } else if ((c & 0xE0) == 0xC0) {
  4443. len = 2;
  4444. cp = c & 0x1F;
  4445. } else if ((c & 0xF0) == 0xE0) {
  4446. len = 3;
  4447. cp = c & 0x0F;
  4448. } else if ((c & 0xF8) == 0xF0) {
  4449. len = 4;
  4450. cp = c & 0x07;
  4451. } else {
  4452. return false;
  4453. }
  4454. if (i + len > n) { return false; }
  4455. for (size_t j = 1; j < len; j++) {
  4456. auto b = static_cast<unsigned char>(s[i + j]);
  4457. if ((b & 0xC0) != 0x80) { return false; }
  4458. cp = (cp << 6) | (b & 0x3F);
  4459. }
  4460. // Overlong encoding check
  4461. if (len == 2 && cp < 0x80) { return false; }
  4462. if (len == 3 && cp < 0x800) { return false; }
  4463. if (len == 4 && cp < 0x10000) { return false; }
  4464. // Surrogate halves (U+D800..U+DFFF) and beyond U+10FFFF are invalid
  4465. if (cp >= 0xD800 && cp <= 0xDFFF) { return false; }
  4466. if (cp > 0x10FFFF) { return false; }
  4467. i += len;
  4468. }
  4469. return true;
  4470. }
  4471. } // namespace impl
  4472. } // namespace ws
  4473. namespace detail {
  4474. // NOTE: This code came up with the following stackoverflow post:
  4475. // https://stackoverflow.com/questions/180947/base64-decode-snippet-in-c
  4476. inline std::string base64_encode(const std::string &in) {
  4477. static const auto lookup =
  4478. "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
  4479. std::string out;
  4480. out.reserve(in.size());
  4481. // Unsigned: the accumulator is never masked, so with a signed int the
  4482. // `val << 8` below overflows once enough bytes are folded in (undefined
  4483. // behaviour before C++20). Only the low bits are ever emitted, so the
  4484. // wrap-around of an unsigned accumulator does not affect the output.
  4485. uint32_t val = 0;
  4486. auto valb = -6;
  4487. for (auto c : in) {
  4488. val = (val << 8) + static_cast<uint8_t>(c);
  4489. valb += 8;
  4490. while (valb >= 0) {
  4491. out.push_back(lookup[(val >> valb) & 0x3F]);
  4492. valb -= 6;
  4493. }
  4494. }
  4495. if (valb > -6) { out.push_back(lookup[((val << 8) >> (valb + 8)) & 0x3F]); }
  4496. while (out.size() % 4) {
  4497. out.push_back('=');
  4498. }
  4499. return out;
  4500. }
  4501. inline std::string sha1(const std::string &input) {
  4502. // RFC 3174 SHA-1 implementation
  4503. auto left_rotate = [](uint32_t x, uint32_t n) -> uint32_t {
  4504. return (x << n) | (x >> (32 - n));
  4505. };
  4506. uint32_t h0 = 0x67452301;
  4507. uint32_t h1 = 0xEFCDAB89;
  4508. uint32_t h2 = 0x98BADCFE;
  4509. uint32_t h3 = 0x10325476;
  4510. uint32_t h4 = 0xC3D2E1F0;
  4511. // Pre-processing: adding padding bits
  4512. std::string msg = input;
  4513. uint64_t original_bit_len = static_cast<uint64_t>(msg.size()) * 8;
  4514. msg.push_back(static_cast<char>(0x80u));
  4515. while (msg.size() % 64 != 56) {
  4516. msg.push_back(0);
  4517. }
  4518. // Append original length in bits as 64-bit big-endian
  4519. for (int i = 56; i >= 0; i -= 8) {
  4520. msg.push_back(static_cast<char>((original_bit_len >> i) & 0xFF));
  4521. }
  4522. // Process each 512-bit chunk
  4523. for (size_t offset = 0; offset < msg.size(); offset += 64) {
  4524. uint32_t w[80];
  4525. for (size_t i = 0; i < 16; i++) {
  4526. w[i] =
  4527. (static_cast<uint32_t>(static_cast<uint8_t>(msg[offset + i * 4]))
  4528. << 24) |
  4529. (static_cast<uint32_t>(static_cast<uint8_t>(msg[offset + i * 4 + 1]))
  4530. << 16) |
  4531. (static_cast<uint32_t>(static_cast<uint8_t>(msg[offset + i * 4 + 2]))
  4532. << 8) |
  4533. (static_cast<uint32_t>(
  4534. static_cast<uint8_t>(msg[offset + i * 4 + 3])));
  4535. }
  4536. for (int i = 16; i < 80; i++) {
  4537. w[i] = left_rotate(w[i - 3] ^ w[i - 8] ^ w[i - 14] ^ w[i - 16], 1);
  4538. }
  4539. uint32_t a = h0, b = h1, c = h2, d = h3, e = h4;
  4540. for (int i = 0; i < 80; i++) {
  4541. uint32_t f, k;
  4542. if (i < 20) {
  4543. f = (b & c) | ((~b) & d);
  4544. k = 0x5A827999;
  4545. } else if (i < 40) {
  4546. f = b ^ c ^ d;
  4547. k = 0x6ED9EBA1;
  4548. } else if (i < 60) {
  4549. f = (b & c) | (b & d) | (c & d);
  4550. k = 0x8F1BBCDC;
  4551. } else {
  4552. f = b ^ c ^ d;
  4553. k = 0xCA62C1D6;
  4554. }
  4555. uint32_t temp = left_rotate(a, 5) + f + e + k + w[i];
  4556. e = d;
  4557. d = c;
  4558. c = left_rotate(b, 30);
  4559. b = a;
  4560. a = temp;
  4561. }
  4562. h0 += a;
  4563. h1 += b;
  4564. h2 += c;
  4565. h3 += d;
  4566. h4 += e;
  4567. }
  4568. // Produce the final hash as a 20-byte binary string
  4569. std::string hash(20, '\0');
  4570. for (size_t i = 0; i < 4; i++) {
  4571. hash[i] = static_cast<char>((h0 >> (24 - i * 8)) & 0xFF);
  4572. hash[4 + i] = static_cast<char>((h1 >> (24 - i * 8)) & 0xFF);
  4573. hash[8 + i] = static_cast<char>((h2 >> (24 - i * 8)) & 0xFF);
  4574. hash[12 + i] = static_cast<char>((h3 >> (24 - i * 8)) & 0xFF);
  4575. hash[16 + i] = static_cast<char>((h4 >> (24 - i * 8)) & 0xFF);
  4576. }
  4577. return hash;
  4578. }
  4579. inline std::string websocket_accept_key(const std::string &client_key) {
  4580. const std::string magic = "258EAFA5-E914-47DA-95CA-C5AB0DC85B11";
  4581. return base64_encode(sha1(client_key + magic));
  4582. }
  4583. inline bool is_websocket_upgrade(const Request &req) {
  4584. if (req.method != "GET") { return false; }
  4585. // Check Upgrade: websocket. RFC 9110 7.8 defines Upgrade as a comma-separated
  4586. // list of protocols and asks recipients to match each name
  4587. // case-insensitively, so look for the token rather than compare the whole
  4588. // field value.
  4589. if (!has_header_token(req.headers, "Upgrade", "websocket")) { return false; }
  4590. // Check Connection: Upgrade
  4591. if (!has_header_token(req.headers, "Connection", "upgrade")) { return false; }
  4592. // Check Sec-WebSocket-Key is a valid base64-encoded 16-byte value (24 chars)
  4593. // RFC 6455 Section 4.2.1
  4594. auto ws_key = req.get_header_value("Sec-WebSocket-Key");
  4595. if (ws_key.size() != 24 || ws_key[22] != '=' || ws_key[23] != '=') {
  4596. return false;
  4597. }
  4598. static const std::string b64chars =
  4599. "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
  4600. for (size_t i = 0; i < 22; i++) {
  4601. if (b64chars.find(ws_key[i]) == std::string::npos) { return false; }
  4602. }
  4603. // Check Sec-WebSocket-Version: 13
  4604. auto version = req.get_header_value("Sec-WebSocket-Version");
  4605. if (version != "13") { return false; }
  4606. return true;
  4607. }
  4608. inline bool write_websocket_frame(Stream &strm, ws::Opcode opcode,
  4609. const char *data, size_t len, bool fin,
  4610. bool mask) {
  4611. // First byte: FIN + opcode
  4612. uint8_t header[2];
  4613. header[0] = static_cast<uint8_t>((fin ? 0x80 : 0x00) |
  4614. (static_cast<uint8_t>(opcode) & 0x0F));
  4615. // Second byte: MASK + payload length
  4616. if (len < 126) {
  4617. header[1] = static_cast<uint8_t>(len);
  4618. if (mask) { header[1] |= 0x80; }
  4619. if (strm.write(reinterpret_cast<char *>(header), 2) < 0) { return false; }
  4620. } else if (len <= 0xFFFF) {
  4621. header[1] = 126;
  4622. if (mask) { header[1] |= 0x80; }
  4623. if (strm.write(reinterpret_cast<char *>(header), 2) < 0) { return false; }
  4624. uint8_t ext[2];
  4625. ext[0] = static_cast<uint8_t>((len >> 8) & 0xFF);
  4626. ext[1] = static_cast<uint8_t>(len & 0xFF);
  4627. if (strm.write(reinterpret_cast<char *>(ext), 2) < 0) { return false; }
  4628. } else {
  4629. header[1] = 127;
  4630. if (mask) { header[1] |= 0x80; }
  4631. if (strm.write(reinterpret_cast<char *>(header), 2) < 0) { return false; }
  4632. uint8_t ext[8];
  4633. for (int i = 7; i >= 0; i--) {
  4634. ext[7 - i] =
  4635. static_cast<uint8_t>((static_cast<uint64_t>(len) >> (i * 8)) & 0xFF);
  4636. }
  4637. if (strm.write(reinterpret_cast<char *>(ext), 8) < 0) { return false; }
  4638. }
  4639. if (mask) {
  4640. // Generate random mask key
  4641. thread_local std::mt19937 rng(std::random_device{}());
  4642. uint8_t mask_key[4];
  4643. auto r = rng();
  4644. std::memcpy(mask_key, &r, 4);
  4645. if (strm.write(reinterpret_cast<char *>(mask_key), 4) < 0) { return false; }
  4646. // Write masked payload in chunks
  4647. const size_t chunk_size = 4096;
  4648. std::vector<char> buf((std::min)(len, chunk_size));
  4649. for (size_t offset = 0; offset < len; offset += chunk_size) {
  4650. size_t n = (std::min)(chunk_size, len - offset);
  4651. for (size_t i = 0; i < n; i++) {
  4652. buf[i] =
  4653. data[offset + i] ^ static_cast<char>(mask_key[(offset + i) % 4]);
  4654. }
  4655. if (strm.write(buf.data(), n) < 0) { return false; }
  4656. }
  4657. } else {
  4658. if (len > 0) {
  4659. if (strm.write(data, len) < 0) { return false; }
  4660. }
  4661. }
  4662. return true;
  4663. }
  4664. } // namespace detail
  4665. namespace ws {
  4666. namespace impl {
  4667. // Read exactly `size` bytes. Stream::read may return less than asked for -- it
  4668. // hands back whatever its buffer already holds -- so every multi-byte field has
  4669. // to loop. Reading a 2-byte header with a single read() fails whenever the
  4670. // header straddles the read buffer's boundary.
  4671. //
  4672. // Timeout is reported only when nothing at all was consumed. Once a byte has
  4673. // been taken the stream sits mid-field and cannot be resumed, so a timeout
  4674. // there is a failure like any other. (When read() fails it always records why,
  4675. // so the error belongs to this call and not to an earlier one.)
  4676. inline FrameRead read_exact(Stream &strm, void *buf, size_t size) {
  4677. auto p = static_cast<char *>(buf);
  4678. size_t total = 0;
  4679. while (total < size) {
  4680. auto n = strm.read(p + total, size - total);
  4681. if (n <= 0) {
  4682. auto timed_out = total == 0 && strm.get_error() == Error::Timeout;
  4683. return timed_out ? FrameRead::Timeout : FrameRead::Fail;
  4684. }
  4685. total += static_cast<size_t>(n);
  4686. }
  4687. return FrameRead::Ok;
  4688. }
  4689. inline FrameRead read_websocket_frame(Stream &strm, Opcode &opcode,
  4690. std::string &payload, bool &fin,
  4691. bool expect_masked, size_t max_len) {
  4692. // Read first 2 bytes. This is the only read that may report a timeout: it
  4693. // sits on a frame boundary, where nothing has been consumed yet.
  4694. uint8_t header[2];
  4695. FrameRead first = read_exact(strm, header, 2);
  4696. if (first != FrameRead::Ok) { return first; }
  4697. fin = (header[0] & 0x80) != 0;
  4698. // RSV1, RSV2, RSV3 must be 0 when no extension is negotiated
  4699. if (header[0] & 0x70) { return FrameRead::Fail; }
  4700. opcode = static_cast<Opcode>(header[0] & 0x0F);
  4701. bool masked = (header[1] & 0x80) != 0;
  4702. uint64_t payload_len = header[1] & 0x7F;
  4703. // RFC 6455 Section 5.5: control frames MUST NOT be fragmented and
  4704. // MUST have a payload length of 125 bytes or less
  4705. bool is_control = (static_cast<uint8_t>(opcode) & 0x08) != 0;
  4706. if (is_control) {
  4707. if (!fin) { return FrameRead::Fail; }
  4708. if (payload_len > 125) { return FrameRead::Fail; }
  4709. }
  4710. if (masked != expect_masked) { return FrameRead::Fail; }
  4711. // Extended payload length
  4712. if (payload_len == 126) {
  4713. uint8_t ext[2];
  4714. if (read_exact(strm, ext, 2) != FrameRead::Ok) { return FrameRead::Fail; }
  4715. payload_len = (static_cast<uint64_t>(ext[0]) << 8) | ext[1];
  4716. } else if (payload_len == 127) {
  4717. uint8_t ext[8];
  4718. if (read_exact(strm, ext, 8) != FrameRead::Ok) { return FrameRead::Fail; }
  4719. // RFC 6455 Section 5.2: the most significant bit MUST be 0
  4720. if (ext[0] & 0x80) { return FrameRead::Fail; }
  4721. payload_len = 0;
  4722. for (int i = 0; i < 8; i++) {
  4723. payload_len = (payload_len << 8) | ext[i];
  4724. }
  4725. }
  4726. if (payload_len > max_len) { return FrameRead::Fail; }
  4727. // Read mask key if present
  4728. uint8_t mask_key[4] = {0};
  4729. if (masked) {
  4730. if (read_exact(strm, mask_key, 4) != FrameRead::Ok) {
  4731. return FrameRead::Fail;
  4732. }
  4733. }
  4734. // Read payload
  4735. payload.resize(static_cast<size_t>(payload_len));
  4736. if (payload_len > 0 &&
  4737. read_exact(strm, &payload[0], static_cast<size_t>(payload_len)) !=
  4738. FrameRead::Ok) {
  4739. return FrameRead::Fail;
  4740. }
  4741. // Unmask if needed
  4742. if (masked) {
  4743. for (size_t i = 0; i < payload.size(); i++) {
  4744. payload[i] ^= static_cast<char>(mask_key[i % 4]);
  4745. }
  4746. }
  4747. return FrameRead::Ok;
  4748. }
  4749. } // namespace impl
  4750. } // namespace ws
  4751. namespace detail {
  4752. inline bool is_valid_path(const std::string &path) {
  4753. size_t level = 0;
  4754. size_t i = 0;
  4755. // Skip slash
  4756. while (i < path.size() && path[i] == '/') {
  4757. i++;
  4758. }
  4759. while (i < path.size()) {
  4760. // Read component
  4761. auto beg = i;
  4762. while (i < path.size() && path[i] != '/') {
  4763. if (path[i] == '\0') {
  4764. return false;
  4765. } else if (path[i] == '\\') {
  4766. return false;
  4767. }
  4768. i++;
  4769. }
  4770. auto len = i - beg;
  4771. assert(len > 0);
  4772. if (!path.compare(beg, len, ".")) {
  4773. ;
  4774. } else if (!path.compare(beg, len, "..")) {
  4775. if (level == 0) { return false; }
  4776. level--;
  4777. } else {
  4778. level++;
  4779. }
  4780. // Skip slash
  4781. while (i < path.size() && path[i] == '/') {
  4782. i++;
  4783. }
  4784. }
  4785. return true;
  4786. }
  4787. inline bool canonicalize_path(const char *path, std::string &resolved) {
  4788. #if defined(_WIN32)
  4789. char buf[_MAX_PATH];
  4790. if (_fullpath(buf, path, _MAX_PATH) == nullptr) { return false; }
  4791. resolved = buf;
  4792. #elif defined(PATH_MAX)
  4793. char buf[PATH_MAX];
  4794. if (realpath(path, buf) == nullptr) { return false; }
  4795. resolved = buf;
  4796. #else
  4797. auto buf = realpath(path, nullptr);
  4798. auto guard = scope_exit([&]() { std::free(buf); });
  4799. if (buf == nullptr) { return false; }
  4800. resolved = buf;
  4801. #endif
  4802. return true;
  4803. }
  4804. inline bool is_path_within_base(const std::string &resolved_path,
  4805. const std::string &resolved_base) {
  4806. #if defined(_WIN32)
  4807. return _strnicmp(resolved_path.c_str(), resolved_base.c_str(),
  4808. resolved_base.size()) == 0;
  4809. #else
  4810. return strncmp(resolved_path.c_str(), resolved_base.c_str(),
  4811. resolved_base.size()) == 0;
  4812. #endif
  4813. }
  4814. inline FileStat::FileStat(const std::string &path) {
  4815. #if defined(_WIN32)
  4816. auto wpath = u8string_to_wstring(path.c_str());
  4817. ret_ = _wstat(wpath.c_str(), &st_);
  4818. #else
  4819. ret_ = stat(path.c_str(), &st_);
  4820. #endif
  4821. }
  4822. inline bool FileStat::is_file() const {
  4823. return ret_ >= 0 && S_ISREG(st_.st_mode);
  4824. }
  4825. inline bool FileStat::is_dir() const {
  4826. return ret_ >= 0 && S_ISDIR(st_.st_mode);
  4827. }
  4828. inline time_t FileStat::mtime() const {
  4829. return ret_ >= 0 ? static_cast<time_t>(st_.st_mtime)
  4830. : static_cast<time_t>(-1);
  4831. }
  4832. inline size_t FileStat::size() const {
  4833. return ret_ >= 0 ? static_cast<size_t>(st_.st_size) : 0;
  4834. }
  4835. inline std::string encode_path(const std::string &s) {
  4836. std::string result;
  4837. result.reserve(s.size());
  4838. for (size_t i = 0; s[i]; i++) {
  4839. switch (s[i]) {
  4840. case ' ': result += "%20"; break;
  4841. case '+': result += "%2B"; break;
  4842. case '\'': result += "%27"; break;
  4843. case ',': result += "%2C"; break;
  4844. // case ':': result += "%3A"; break; // ok? probably...
  4845. case ';': result += "%3B"; break;
  4846. default:
  4847. auto c = static_cast<uint8_t>(s[i]);
  4848. // Control characters (incl. CR/LF) and non-ASCII bytes are not allowed
  4849. // in a request-target as-is.
  4850. if (c < 0x20 || c == 0x7f || c >= 0x80) {
  4851. result += '%';
  4852. char hex[4];
  4853. auto len = snprintf(hex, sizeof(hex) - 1, "%02X", c);
  4854. assert(len == 2);
  4855. result.append(hex, static_cast<size_t>(len));
  4856. } else {
  4857. result += s[i];
  4858. }
  4859. break;
  4860. }
  4861. }
  4862. return result;
  4863. }
  4864. inline std::string file_extension(const std::string &path) {
  4865. std::smatch m;
  4866. thread_local auto re = std::regex("\\.([a-zA-Z0-9]+)$");
  4867. if (std::regex_search(path, m, re)) { return m[1].str(); }
  4868. return std::string();
  4869. }
  4870. inline bool is_space_or_tab(char c) { return c == ' ' || c == '\t'; }
  4871. template <typename T>
  4872. inline bool parse_header(const char *beg, const char *end, T fn);
  4873. template <typename T>
  4874. inline bool parse_header(const char *beg, const char *end, T fn) {
  4875. // Skip trailing spaces and tabs.
  4876. while (beg < end && is_space_or_tab(end[-1])) {
  4877. end--;
  4878. }
  4879. auto p = beg;
  4880. while (p < end && *p != ':') {
  4881. p++;
  4882. }
  4883. auto name = std::string(beg, p);
  4884. if (!detail::fields::is_field_name(name)) { return false; }
  4885. if (p == end) { return false; }
  4886. auto key_end = p;
  4887. if (*p++ != ':') { return false; }
  4888. while (p < end && is_space_or_tab(*p)) {
  4889. p++;
  4890. }
  4891. if (p <= end) {
  4892. auto key_len = key_end - beg;
  4893. if (!key_len) { return false; }
  4894. auto key = std::string(beg, key_end);
  4895. auto val = std::string(p, end);
  4896. if (!detail::fields::is_field_value(val)) { return false; }
  4897. // RFC 9110 §5.5: header field values are opaque octets and MUST NOT be
  4898. // percent-decoded by the recipient. Applications that need to interpret a
  4899. // value as a URI component should call httplib::decode_uri_component()
  4900. // (or decode_path_component()) explicitly.
  4901. fn(key, val);
  4902. return true;
  4903. }
  4904. return false;
  4905. }
  4906. inline bool parse_trailers(stream_line_reader &line_reader, Headers &dest,
  4907. const Headers &src_headers) {
  4908. // NOTE: In RFC 9112, '7.1 Chunked Transfer Coding' mentions "The chunked
  4909. // transfer coding is complete when a chunk with a chunk-size of zero is
  4910. // received, possibly followed by a trailer section, and finally terminated by
  4911. // an empty line". https://www.rfc-editor.org/rfc/rfc9112.html#section-7.1
  4912. //
  4913. // In '7.1.3. Decoding Chunked', however, the pseudo-code in the section
  4914. // doesn't care for the existence of the final CRLF. In other words, it seems
  4915. // to be ok whether the final CRLF exists or not in the chunked data.
  4916. // https://www.rfc-editor.org/rfc/rfc9112.html#section-7.1.3
  4917. //
  4918. // According to the reference code in RFC 9112, cpp-httplib now allows
  4919. // chunked transfer coding data without the final CRLF.
  4920. // RFC 7230 Section 4.1.2 - Headers prohibited in trailers
  4921. thread_local case_ignore::unordered_set<std::string> prohibited_trailers = {
  4922. "transfer-encoding",
  4923. "content-length",
  4924. "host",
  4925. "authorization",
  4926. "www-authenticate",
  4927. "proxy-authenticate",
  4928. "proxy-authorization",
  4929. "cookie",
  4930. "set-cookie",
  4931. "cache-control",
  4932. "expect",
  4933. "max-forwards",
  4934. "pragma",
  4935. "range",
  4936. "te",
  4937. "age",
  4938. "expires",
  4939. "date",
  4940. "location",
  4941. "retry-after",
  4942. "vary",
  4943. "warning",
  4944. "content-encoding",
  4945. "content-type",
  4946. "content-range",
  4947. "trailer"};
  4948. case_ignore::unordered_set<std::string> declared_trailers;
  4949. auto trailer_header = get_combined_header_value(src_headers, "Trailer");
  4950. if (!trailer_header.empty()) {
  4951. // split() trims each token and skips empty ones, so the name arrives ready
  4952. // to look up.
  4953. split(trailer_header.data(), trailer_header.data() + trailer_header.size(),
  4954. ',', [&](const char *b, const char *e) {
  4955. // A legitimate message declares only a handful of trailers. Cap the
  4956. // set so a peer cannot grow it without bound: an oversized set only
  4957. // arises from an attempt to force many colliding names into
  4958. // quadratic lookups (case_ignore::hash is unkeyed).
  4959. if (declared_trailers.size() >= CPPHTTPLIB_HEADER_MAX_COUNT) {
  4960. return;
  4961. }
  4962. std::string key(b, e);
  4963. if (prohibited_trailers.find(key) == prohibited_trailers.end()) {
  4964. declared_trailers.insert(key);
  4965. }
  4966. });
  4967. }
  4968. size_t trailer_header_count = 0;
  4969. while (strcmp(line_reader.ptr(), "\r\n") != 0) {
  4970. if (line_reader.size() > CPPHTTPLIB_HEADER_MAX_LENGTH) { return false; }
  4971. // Count every received trailer field, not only the declared ones stored in
  4972. // dest, so undeclared fields cannot keep this loop running past the limit.
  4973. if (trailer_header_count >= CPPHTTPLIB_HEADER_MAX_COUNT) { return false; }
  4974. constexpr auto line_terminator_len = 2;
  4975. auto line_beg = line_reader.ptr();
  4976. auto line_end =
  4977. line_reader.ptr() + line_reader.size() - line_terminator_len;
  4978. if (!parse_header(line_beg, line_end,
  4979. [&](const std::string &key, const std::string &val) {
  4980. if (declared_trailers.find(key) !=
  4981. declared_trailers.end()) {
  4982. dest.emplace(key, val);
  4983. }
  4984. })) {
  4985. return false;
  4986. }
  4987. trailer_header_count++;
  4988. if (!line_reader.getline()) { return false; }
  4989. }
  4990. return true;
  4991. }
  4992. inline std::pair<size_t, size_t> trim(const char *b, const char *e, size_t left,
  4993. size_t right) {
  4994. while (b + left < e && is_space_or_tab(b[left])) {
  4995. left++;
  4996. }
  4997. while (right > 0 && is_space_or_tab(b[right - 1])) {
  4998. right--;
  4999. }
  5000. return std::make_pair(left, right);
  5001. }
  5002. inline std::string trim_copy(const std::string &s) {
  5003. auto r = trim(s.data(), s.data() + s.size(), 0, s.size());
  5004. return s.substr(r.first, r.second - r.first);
  5005. }
  5006. inline std::string trim_double_quotes_copy(const std::string &s) {
  5007. if (s.length() >= 2 && s.front() == '"' && s.back() == '"') {
  5008. return s.substr(1, s.size() - 2);
  5009. }
  5010. return s;
  5011. }
  5012. inline void
  5013. divide(const char *data, std::size_t size, char d,
  5014. std::function<void(const char *, std::size_t, const char *, std::size_t)>
  5015. fn) {
  5016. const auto it = std::find(data, data + size, d);
  5017. const auto found = static_cast<std::size_t>(it != data + size);
  5018. const auto lhs_data = data;
  5019. const auto lhs_size = static_cast<std::size_t>(it - data);
  5020. const auto rhs_data = it + found;
  5021. const auto rhs_size = size - lhs_size - found;
  5022. fn(lhs_data, lhs_size, rhs_data, rhs_size);
  5023. }
  5024. inline void
  5025. divide(const std::string &str, char d,
  5026. std::function<void(const char *, std::size_t, const char *, std::size_t)>
  5027. fn) {
  5028. divide(str.data(), str.size(), d, std::move(fn));
  5029. }
  5030. inline void split(const char *b, const char *e, char d,
  5031. std::function<void(const char *, const char *)> fn) {
  5032. return split(b, e, d, (std::numeric_limits<size_t>::max)(), std::move(fn));
  5033. }
  5034. inline void split(const char *b, const char *e, char d, size_t m,
  5035. std::function<void(const char *, const char *)> fn) {
  5036. size_t i = 0;
  5037. size_t beg = 0;
  5038. size_t count = 1;
  5039. while (e ? (b + i < e) : (b[i] != '\0')) {
  5040. if (b[i] == d && count < m) {
  5041. auto r = trim(b, e, beg, i);
  5042. if (r.first < r.second) { fn(&b[r.first], &b[r.second]); }
  5043. beg = i + 1;
  5044. count++;
  5045. }
  5046. i++;
  5047. }
  5048. if (i) {
  5049. auto r = trim(b, e, beg, i);
  5050. if (r.first < r.second) { fn(&b[r.first], &b[r.second]); }
  5051. }
  5052. }
  5053. // Same contract as split(), except that a delimiter inside a quoted-string is
  5054. // not a delimiter. RFC 9110 Section 5.6.6 lets a parameter value be a
  5055. // quoted-string, and ';' and '=' are legal characters inside one.
  5056. inline void split_unquoted(const char *b, const char *e, char d, size_t m,
  5057. std::function<void(const char *, const char *)> fn) {
  5058. size_t i = 0;
  5059. size_t beg = 0;
  5060. size_t count = 1;
  5061. auto in_quotes = false;
  5062. while (e ? (b + i < e) : (b[i] != '\0')) {
  5063. if (b[i] == '"') {
  5064. in_quotes = !in_quotes;
  5065. } else if (b[i] == d && !in_quotes && count < m) {
  5066. auto r = trim(b, e, beg, i);
  5067. if (r.first < r.second) { fn(&b[r.first], &b[r.second]); }
  5068. beg = i + 1;
  5069. count++;
  5070. }
  5071. i++;
  5072. }
  5073. if (i) {
  5074. auto r = trim(b, e, beg, i);
  5075. if (r.first < r.second) { fn(&b[r.first], &b[r.second]); }
  5076. }
  5077. }
  5078. inline void split_unquoted(const char *b, const char *e, char d,
  5079. std::function<void(const char *, const char *)> fn) {
  5080. return split_unquoted(b, e, d, (std::numeric_limits<size_t>::max)(),
  5081. std::move(fn));
  5082. }
  5083. // Divide a header parameter at its first '='. RFC 9110 Section 5.6.6 makes the
  5084. // key a token, so the first '=' is the separator even when the value is a
  5085. // quoted-string carrying more of them.
  5086. inline void divide_param_pair(const char *b, const char *e, std::string &key,
  5087. std::string &val) {
  5088. divide(
  5089. b, static_cast<std::size_t>(e - b), '=',
  5090. [&](const char *kb, std::size_t klen, const char *vb, std::size_t vlen) {
  5091. const auto kr = trim(kb, kb + klen, 0, klen);
  5092. key.assign(kb + kr.first, kb + kr.second);
  5093. const auto vr = trim(vb, vb + vlen, 0, vlen);
  5094. val.assign(vb + vr.first, vb + vr.second);
  5095. });
  5096. }
  5097. inline bool split_find(const char *b, const char *e, char d, size_t m,
  5098. std::function<bool(const char *, const char *)> fn) {
  5099. size_t i = 0;
  5100. size_t beg = 0;
  5101. size_t count = 1;
  5102. while (e ? (b + i < e) : (b[i] != '\0')) {
  5103. if (b[i] == d && count < m) {
  5104. auto r = trim(b, e, beg, i);
  5105. if (r.first < r.second) {
  5106. auto found = fn(&b[r.first], &b[r.second]);
  5107. if (found) { return true; }
  5108. }
  5109. beg = i + 1;
  5110. count++;
  5111. }
  5112. i++;
  5113. }
  5114. if (i) {
  5115. auto r = trim(b, e, beg, i);
  5116. if (r.first < r.second) {
  5117. auto found = fn(&b[r.first], &b[r.second]);
  5118. if (found) { return true; }
  5119. }
  5120. }
  5121. return false;
  5122. }
  5123. inline bool split_find(const char *b, const char *e, char d,
  5124. std::function<bool(const char *, const char *)> fn) {
  5125. return split_find(b, e, d, (std::numeric_limits<size_t>::max)(),
  5126. std::move(fn));
  5127. }
  5128. inline stream_line_reader::stream_line_reader(Stream &strm, char *fixed_buffer,
  5129. size_t fixed_buffer_size)
  5130. : strm_(strm), fixed_buffer_(fixed_buffer),
  5131. fixed_buffer_size_(fixed_buffer_size) {}
  5132. inline const char *stream_line_reader::ptr() const {
  5133. if (growable_buffer_.empty()) {
  5134. return fixed_buffer_;
  5135. } else {
  5136. return growable_buffer_.data();
  5137. }
  5138. }
  5139. inline size_t stream_line_reader::size() const {
  5140. if (growable_buffer_.empty()) {
  5141. return fixed_buffer_used_size_;
  5142. } else {
  5143. return growable_buffer_.size();
  5144. }
  5145. }
  5146. inline bool stream_line_reader::end_with_crlf() const {
  5147. auto end = ptr() + size();
  5148. return size() >= 2 && end[-2] == '\r' && end[-1] == '\n';
  5149. }
  5150. inline bool stream_line_reader::getline() {
  5151. fixed_buffer_used_size_ = 0;
  5152. growable_buffer_.clear();
  5153. #ifndef CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR
  5154. char prev_byte = 0;
  5155. #endif
  5156. for (size_t i = 0;; i++) {
  5157. // Fast path: whatever the stream has already buffered can be scanned for
  5158. // the terminator in one pass. Asking for a byte at a time costs a virtual
  5159. // call, a bounds check and a one-byte copy per character of the request.
  5160. size_t buffered_size = 0;
  5161. if (auto buffered = strm_.buffered_data(buffered_size)) {
  5162. auto take = buffered_size;
  5163. auto terminated = false;
  5164. for (size_t at = 0; at < buffered_size;) {
  5165. auto nl = static_cast<const char *>(
  5166. memchr(buffered + at, '\n', buffered_size - at));
  5167. if (!nl) { break; }
  5168. auto pos = static_cast<size_t>(nl - buffered);
  5169. #ifdef CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR
  5170. take = pos + 1;
  5171. terminated = true;
  5172. break;
  5173. #else
  5174. // A bare LF does not end the line; keep looking for CRLF. The CR may
  5175. // be the last byte of an earlier chunk, hence prev_byte.
  5176. if ((pos > 0 ? buffered[pos - 1] : prev_byte) == '\r') {
  5177. take = pos + 1;
  5178. terminated = true;
  5179. break;
  5180. }
  5181. at = pos + 1;
  5182. #endif
  5183. }
  5184. if (size() + take > CPPHTTPLIB_MAX_LINE_LENGTH) { return false; }
  5185. #ifndef CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR
  5186. prev_byte = buffered[take - 1];
  5187. #endif
  5188. append(buffered, take);
  5189. strm_.consume_buffered(take);
  5190. i += take;
  5191. if (terminated) { return true; }
  5192. continue;
  5193. }
  5194. if (size() >= CPPHTTPLIB_MAX_LINE_LENGTH) {
  5195. // Treat exceptionally long lines as an error to
  5196. // prevent infinite loops/memory exhaustion
  5197. return false;
  5198. }
  5199. char byte;
  5200. auto n = strm_.read(&byte, 1);
  5201. if (n < 0) {
  5202. return false;
  5203. } else if (n == 0) {
  5204. if (i == 0) {
  5205. return false;
  5206. } else {
  5207. break;
  5208. }
  5209. }
  5210. append(byte);
  5211. #ifdef CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR
  5212. if (byte == '\n') { break; }
  5213. #else
  5214. if (prev_byte == '\r' && byte == '\n') { break; }
  5215. prev_byte = byte;
  5216. #endif
  5217. }
  5218. return true;
  5219. }
  5220. inline void stream_line_reader::append(char c) { append(&c, 1); }
  5221. inline void stream_line_reader::append(const char *data, size_t size) {
  5222. // Once the line has outgrown the fixed buffer everything must keep going to
  5223. // the growable one, even if a later chunk would have fit. Without the
  5224. // emptiness check a short append after a long one would land in the fixed
  5225. // buffer, which ptr() and size() no longer look at, and be lost.
  5226. if (growable_buffer_.empty() &&
  5227. fixed_buffer_used_size_ + size < fixed_buffer_size_) {
  5228. memcpy(fixed_buffer_ + fixed_buffer_used_size_, data, size);
  5229. fixed_buffer_used_size_ += size;
  5230. fixed_buffer_[fixed_buffer_used_size_] = '\0';
  5231. } else {
  5232. // Unlike the per-character overload, this can be the very first append of
  5233. // the line, so the fixed buffer may hold nothing and carry no terminator
  5234. // yet. assign() takes an explicit length and does not need one.
  5235. if (growable_buffer_.empty()) {
  5236. growable_buffer_.assign(fixed_buffer_, fixed_buffer_used_size_);
  5237. }
  5238. growable_buffer_.append(data, size);
  5239. }
  5240. }
  5241. inline mmap::mmap(const char *path) { open(path); }
  5242. inline mmap::~mmap() { close(); }
  5243. inline bool mmap::open(const char *path) {
  5244. close();
  5245. #if defined(_WIN32)
  5246. auto wpath = u8string_to_wstring(path);
  5247. if (wpath.empty()) { return false; }
  5248. hFile_ =
  5249. ::CreateFile2(wpath.c_str(), GENERIC_READ,
  5250. FILE_SHARE_READ | FILE_SHARE_WRITE, OPEN_EXISTING, NULL);
  5251. if (hFile_ == INVALID_HANDLE_VALUE) { return false; }
  5252. LARGE_INTEGER size{};
  5253. if (!::GetFileSizeEx(hFile_, &size)) { return false; }
  5254. // If the following line doesn't compile due to QuadPart, update Windows SDK.
  5255. // See:
  5256. // https://github.com/yhirose/cpp-httplib/issues/1903#issuecomment-2316520721
  5257. if (static_cast<ULONGLONG>(size.QuadPart) >
  5258. (std::numeric_limits<decltype(size_)>::max)()) {
  5259. // `size_t` might be 32-bits, on 32-bits Windows.
  5260. return false;
  5261. }
  5262. size_ = static_cast<size_t>(size.QuadPart);
  5263. hMapping_ =
  5264. ::CreateFileMappingFromApp(hFile_, NULL, PAGE_READONLY, size_, NULL);
  5265. // Special treatment for an empty file...
  5266. if (hMapping_ == NULL && size_ == 0) {
  5267. close();
  5268. is_open_empty_file = true;
  5269. return true;
  5270. }
  5271. if (hMapping_ == NULL) {
  5272. close();
  5273. return false;
  5274. }
  5275. addr_ = ::MapViewOfFileFromApp(hMapping_, FILE_MAP_READ, 0, 0);
  5276. if (addr_ == nullptr) {
  5277. close();
  5278. return false;
  5279. }
  5280. #else
  5281. fd_ = ::open(path, O_RDONLY);
  5282. if (fd_ == -1) { return false; }
  5283. struct stat sb;
  5284. if (fstat(fd_, &sb) == -1) {
  5285. close();
  5286. return false;
  5287. }
  5288. size_ = static_cast<size_t>(sb.st_size);
  5289. addr_ = ::mmap(NULL, size_, PROT_READ, MAP_PRIVATE, fd_, 0);
  5290. // Special treatment for an empty file...
  5291. if (addr_ == MAP_FAILED && size_ == 0) {
  5292. close();
  5293. is_open_empty_file = true;
  5294. return false;
  5295. }
  5296. if (addr_ == MAP_FAILED) {
  5297. // Clear the sentinel before `close()`, since `is_open()` only checks
  5298. // `addr_` against nullptr and `munmap()` must not be called with it.
  5299. addr_ = nullptr;
  5300. close();
  5301. return false;
  5302. }
  5303. #endif
  5304. return true;
  5305. }
  5306. inline bool mmap::is_open() const {
  5307. return is_open_empty_file ? true : addr_ != nullptr;
  5308. }
  5309. inline size_t mmap::size() const { return size_; }
  5310. inline const char *mmap::data() const {
  5311. return is_open_empty_file ? "" : static_cast<const char *>(addr_);
  5312. }
  5313. inline void mmap::close() {
  5314. #if defined(_WIN32)
  5315. if (addr_) {
  5316. ::UnmapViewOfFile(addr_);
  5317. addr_ = nullptr;
  5318. }
  5319. if (hMapping_) {
  5320. ::CloseHandle(hMapping_);
  5321. hMapping_ = NULL;
  5322. }
  5323. if (hFile_ != INVALID_HANDLE_VALUE) {
  5324. ::CloseHandle(hFile_);
  5325. hFile_ = INVALID_HANDLE_VALUE;
  5326. }
  5327. is_open_empty_file = false;
  5328. #else
  5329. if (addr_ != nullptr) {
  5330. munmap(addr_, size_);
  5331. addr_ = nullptr;
  5332. }
  5333. if (fd_ != -1) {
  5334. ::close(fd_);
  5335. fd_ = -1;
  5336. }
  5337. #endif
  5338. size_ = 0;
  5339. }
  5340. inline int close_socket(socket_t sock) noexcept {
  5341. #ifdef _WIN32
  5342. return closesocket(sock);
  5343. #else
  5344. return close(sock);
  5345. #endif
  5346. }
  5347. template <typename T> inline ssize_t handle_EINTR(T fn) {
  5348. ssize_t res = 0;
  5349. while (true) {
  5350. res = fn();
  5351. if (res < 0 && errno == EINTR) {
  5352. std::this_thread::sleep_for(std::chrono::microseconds{1});
  5353. continue;
  5354. }
  5355. break;
  5356. }
  5357. return res;
  5358. }
  5359. inline ssize_t read_socket(socket_t sock, void *ptr, size_t size, int flags) {
  5360. return handle_EINTR([&]() {
  5361. return recv(sock,
  5362. #ifdef _WIN32
  5363. static_cast<char *>(ptr), static_cast<int>(size),
  5364. #else
  5365. ptr, size,
  5366. #endif
  5367. flags);
  5368. });
  5369. }
  5370. inline ssize_t send_socket(socket_t sock, const void *ptr, size_t size,
  5371. int flags) {
  5372. return handle_EINTR([&]() {
  5373. return send(sock,
  5374. #ifdef _WIN32
  5375. static_cast<const char *>(ptr), static_cast<int>(size),
  5376. #else
  5377. ptr, size,
  5378. #endif
  5379. flags);
  5380. });
  5381. }
  5382. inline int poll_wrapper(struct pollfd *fds, nfds_t nfds, int timeout) {
  5383. #ifdef _WIN32
  5384. return ::WSAPoll(fds, nfds, timeout);
  5385. #else
  5386. return ::poll(fds, nfds, timeout);
  5387. #endif
  5388. }
  5389. inline ssize_t select_impl(socket_t sock, short events, time_t sec,
  5390. time_t usec) {
  5391. struct pollfd pfd;
  5392. pfd.fd = sock;
  5393. pfd.events = events;
  5394. pfd.revents = 0;
  5395. // A negative timeout waits forever, poll's own convention. 0 keeps meaning
  5396. // "return immediately", which callers here rely on to probe a socket.
  5397. auto timeout = sec < 0 ? -1 : static_cast<int>(sec * 1000 + usec / 1000);
  5398. return handle_EINTR([&]() { return poll_wrapper(&pfd, 1, timeout); });
  5399. }
  5400. inline ssize_t select_read(socket_t sock, time_t sec, time_t usec) {
  5401. return select_impl(sock, POLLIN, sec, usec);
  5402. }
  5403. inline ssize_t select_write(socket_t sock, time_t sec, time_t usec) {
  5404. return select_impl(sock, POLLOUT, sec, usec);
  5405. }
  5406. inline Error wait_until_socket_is_ready(socket_t sock, time_t sec,
  5407. time_t usec) {
  5408. struct pollfd pfd_read;
  5409. pfd_read.fd = sock;
  5410. pfd_read.events = POLLIN | POLLOUT;
  5411. pfd_read.revents = 0;
  5412. auto timeout = static_cast<int>(sec * 1000 + usec / 1000);
  5413. auto poll_res =
  5414. handle_EINTR([&]() { return poll_wrapper(&pfd_read, 1, timeout); });
  5415. if (poll_res == 0) { return Error::ConnectionTimeout; }
  5416. if (poll_res > 0 && pfd_read.revents & (POLLIN | POLLOUT)) {
  5417. auto error = 0;
  5418. socklen_t len = sizeof(error);
  5419. auto res = getsockopt(sock, SOL_SOCKET, SO_ERROR,
  5420. reinterpret_cast<char *>(&error), &len);
  5421. auto successful = res >= 0 && !error;
  5422. return successful ? Error::Success : Error::Connection;
  5423. }
  5424. return Error::Connection;
  5425. }
  5426. inline bool is_socket_alive(socket_t sock) {
  5427. const auto val = detail::select_read(sock, 0, 0);
  5428. if (val == 0) {
  5429. return true;
  5430. } else if (val < 0 && errno == EBADF) {
  5431. return false;
  5432. }
  5433. char buf[1];
  5434. return detail::read_socket(sock, &buf[0], sizeof(buf), MSG_PEEK) > 0;
  5435. }
  5436. class SocketStream final : public Stream {
  5437. public:
  5438. SocketStream(socket_t sock, time_t read_timeout_sec, time_t read_timeout_usec,
  5439. time_t write_timeout_sec, time_t write_timeout_usec,
  5440. time_t max_timeout_msec = 0,
  5441. std::chrono::time_point<std::chrono::steady_clock> start_time =
  5442. (std::chrono::steady_clock::time_point::min)());
  5443. ~SocketStream() override;
  5444. bool is_readable() const override;
  5445. bool wait_readable() const override;
  5446. bool wait_writable() const override;
  5447. bool is_peer_alive() const override;
  5448. ssize_t read(char *ptr, size_t size) override;
  5449. ssize_t write(const char *ptr, size_t size) override;
  5450. void get_remote_ip_and_port(std::string &ip, int &port) const override;
  5451. void get_local_ip_and_port(std::string &ip, int &port) const override;
  5452. socket_t socket() const override;
  5453. time_t duration() const override;
  5454. void set_read_timeout(time_t sec, time_t usec = 0) override;
  5455. const char *buffered_data(size_t &size) const override;
  5456. void consume_buffered(size_t size) override;
  5457. // The caller has just seen this socket become readable. Lets the next read
  5458. // skip its own readiness wait, which would otherwise ask the kernel a
  5459. // question that was answered a moment ago. Consumed by that read.
  5460. void set_readable_hint() { readable_hint_ = true; }
  5461. private:
  5462. bool ensure_readable();
  5463. socket_t sock_;
  5464. // Atomic because ws::WebSocket::set_read_timeout() reaches this from another
  5465. // thread while a read is in flight -- that is the point of it, for a caller
  5466. // holding one connection and wanting control back to send on it.
  5467. std::atomic<time_t> read_timeout_sec_;
  5468. std::atomic<time_t> read_timeout_usec_;
  5469. time_t write_timeout_sec_;
  5470. time_t write_timeout_usec_;
  5471. time_t max_timeout_msec_;
  5472. const std::chrono::time_point<std::chrono::steady_clock> start_time_;
  5473. std::vector<char> read_buff_;
  5474. size_t read_buff_off_ = 0;
  5475. size_t read_buff_content_size_ = 0;
  5476. bool readable_hint_ = false;
  5477. static const size_t read_buff_size_ = 1024l * 4;
  5478. };
  5479. inline bool keep_alive(const std::atomic<socket_t> &svr_sock, socket_t sock,
  5480. time_t keep_alive_timeout_sec) {
  5481. using namespace std::chrono;
  5482. const auto interval_usec =
  5483. CPPHTTPLIB_KEEPALIVE_TIMEOUT_CHECK_INTERVAL_USECOND;
  5484. // Avoid expensive `steady_clock::now()` call for the first time
  5485. if (select_read(sock, 0, interval_usec) > 0) { return true; }
  5486. const auto start = steady_clock::now() - microseconds{interval_usec};
  5487. const auto timeout = seconds{keep_alive_timeout_sec};
  5488. while (true) {
  5489. if (svr_sock == INVALID_SOCKET) {
  5490. break; // Server socket is closed
  5491. }
  5492. auto val = select_read(sock, 0, interval_usec);
  5493. if (val < 0) {
  5494. break; // Ssocket error
  5495. } else if (val == 0) {
  5496. if (steady_clock::now() - start > timeout) {
  5497. break; // Timeout
  5498. }
  5499. } else {
  5500. return true; // Ready for read
  5501. }
  5502. }
  5503. return false;
  5504. }
  5505. // `has_buffered_request` reports whether the connection's stream already holds
  5506. // bytes of the next request. A client may pipeline its requests (RFC 9112
  5507. // 9.3.2), so reading one request can pull the start of the next one into the
  5508. // stream's buffer; that request must be served without waiting for the socket
  5509. // to become readable again, since its bytes are no longer on the socket.
  5510. // `callback` is told whether keep_alive() has just seen the socket go readable.
  5511. template <typename P, typename T>
  5512. inline bool process_server_socket_core(const std::atomic<socket_t> &svr_sock,
  5513. socket_t sock,
  5514. size_t keep_alive_max_count,
  5515. time_t keep_alive_timeout_sec,
  5516. P has_buffered_request, T callback) {
  5517. assert(keep_alive_max_count > 0);
  5518. auto ret = false;
  5519. auto count = keep_alive_max_count;
  5520. while (count > 0) {
  5521. auto socket_readable = false;
  5522. if (!has_buffered_request()) {
  5523. if (!keep_alive(svr_sock, sock, keep_alive_timeout_sec)) { break; }
  5524. socket_readable = true;
  5525. }
  5526. auto close_connection = count == 1;
  5527. auto connection_closed = false;
  5528. ret = callback(socket_readable, close_connection, connection_closed);
  5529. if (!ret || connection_closed) { break; }
  5530. count--;
  5531. }
  5532. return ret;
  5533. }
  5534. template <typename T>
  5535. inline bool
  5536. process_server_socket(const std::atomic<socket_t> &svr_sock, socket_t sock,
  5537. size_t keep_alive_max_count,
  5538. time_t keep_alive_timeout_sec, time_t read_timeout_sec,
  5539. time_t read_timeout_usec, time_t write_timeout_sec,
  5540. time_t write_timeout_usec, T callback) {
  5541. // One stream per connection: its read buffer can already hold the start of
  5542. // the next, pipelined request.
  5543. SocketStream strm(sock, read_timeout_sec, read_timeout_usec,
  5544. write_timeout_sec, write_timeout_usec);
  5545. return process_server_socket_core(
  5546. svr_sock, sock, keep_alive_max_count, keep_alive_timeout_sec,
  5547. [&]() { return strm.is_readable(); },
  5548. [&](bool socket_readable, bool close_connection,
  5549. bool &connection_closed) {
  5550. if (socket_readable) { strm.set_readable_hint(); }
  5551. return callback(strm, close_connection, connection_closed);
  5552. });
  5553. }
  5554. inline bool process_client_socket(
  5555. socket_t sock, time_t read_timeout_sec, time_t read_timeout_usec,
  5556. time_t write_timeout_sec, time_t write_timeout_usec,
  5557. time_t max_timeout_msec,
  5558. std::chrono::time_point<std::chrono::steady_clock> start_time,
  5559. std::function<bool(Stream &)> callback) {
  5560. SocketStream strm(sock, read_timeout_sec, read_timeout_usec,
  5561. write_timeout_sec, write_timeout_usec, max_timeout_msec,
  5562. start_time);
  5563. return callback(strm);
  5564. }
  5565. inline int shutdown_socket(socket_t sock) noexcept {
  5566. #ifdef _WIN32
  5567. return shutdown(sock, SD_BOTH);
  5568. #else
  5569. return shutdown(sock, SHUT_RDWR);
  5570. #endif
  5571. }
  5572. // Half-closes the write side and drains any in-flight/queued bytes before
  5573. // the final shutdown+close. Closing with unread data in the receive queue
  5574. // (or bytes arriving after the receive side is closed) makes the stack send
  5575. // an abortive RST instead of a graceful FIN, which can make the peer see the
  5576. // response as a failed read even though it was fully written.
  5577. inline void drain_and_close_socket(socket_t sock) noexcept {
  5578. #ifdef _WIN32
  5579. shutdown(sock, SD_SEND);
  5580. #else
  5581. shutdown(sock, SHUT_WR);
  5582. #endif
  5583. char buf[CPPHTTPLIB_RECV_BUFSIZ];
  5584. size_t total = 0;
  5585. const auto deadline = std::chrono::steady_clock::now() +
  5586. std::chrono::milliseconds(100); // bound #1
  5587. while (total < size_t(1024u * 1024u)) { // bound #2
  5588. const auto remaining =
  5589. std::chrono::duration_cast<std::chrono::microseconds>(
  5590. deadline - std::chrono::steady_clock::now())
  5591. .count();
  5592. if (remaining <= 0) { break; }
  5593. if (select_read(sock, 0, static_cast<time_t>(remaining)) <= 0) { break; }
  5594. const auto n = read_socket(sock, buf, sizeof(buf), CPPHTTPLIB_RECV_FLAGS);
  5595. if (n <= 0) { break; }
  5596. total += static_cast<size_t>(n);
  5597. }
  5598. shutdown_socket(sock);
  5599. close_socket(sock);
  5600. }
  5601. inline std::string escape_abstract_namespace_unix_domain(const std::string &s) {
  5602. if (s.size() > 1 && s[0] == '\0') {
  5603. auto ret = s;
  5604. ret[0] = '@';
  5605. return ret;
  5606. }
  5607. return s;
  5608. }
  5609. inline std::string
  5610. unescape_abstract_namespace_unix_domain(const std::string &s) {
  5611. if (s.size() > 1 && s[0] == '@') {
  5612. auto ret = s;
  5613. ret[0] = '\0';
  5614. return ret;
  5615. }
  5616. return s;
  5617. }
  5618. inline int getaddrinfo_with_timeout(const char *node, const char *service,
  5619. const struct addrinfo *hints,
  5620. struct addrinfo **res, time_t timeout_sec) {
  5621. #ifdef CPPHTTPLIB_USE_NON_BLOCKING_GETADDRINFO
  5622. if (timeout_sec <= 0) {
  5623. // No timeout specified, use standard getaddrinfo
  5624. return getaddrinfo(node, service, hints, res);
  5625. }
  5626. #ifdef _WIN32
  5627. // Windows-specific implementation using GetAddrInfoEx with overlapped I/O
  5628. OVERLAPPED overlapped = {};
  5629. HANDLE event = CreateEventW(nullptr, TRUE, FALSE, nullptr);
  5630. if (!event) { return EAI_FAIL; }
  5631. overlapped.hEvent = event;
  5632. PADDRINFOEXW result_addrinfo = nullptr;
  5633. HANDLE cancel_handle = nullptr;
  5634. ADDRINFOEXW hints_ex = {};
  5635. if (hints) {
  5636. hints_ex.ai_flags = hints->ai_flags;
  5637. hints_ex.ai_family = hints->ai_family;
  5638. hints_ex.ai_socktype = hints->ai_socktype;
  5639. hints_ex.ai_protocol = hints->ai_protocol;
  5640. }
  5641. auto wnode = u8string_to_wstring(node);
  5642. auto wservice = u8string_to_wstring(service);
  5643. auto ret = ::GetAddrInfoExW(wnode.data(), wservice.data(), NS_DNS, nullptr,
  5644. hints ? &hints_ex : nullptr, &result_addrinfo,
  5645. nullptr, &overlapped, nullptr, &cancel_handle);
  5646. if (ret == WSA_IO_PENDING) {
  5647. auto wait_result =
  5648. ::WaitForSingleObject(event, static_cast<DWORD>(timeout_sec * 1000));
  5649. if (wait_result == WAIT_TIMEOUT) {
  5650. if (cancel_handle) { ::GetAddrInfoExCancel(&cancel_handle); }
  5651. ::CloseHandle(event);
  5652. return EAI_AGAIN;
  5653. }
  5654. DWORD bytes_returned;
  5655. if (!::GetOverlappedResult((HANDLE)INVALID_SOCKET, &overlapped,
  5656. &bytes_returned, FALSE)) {
  5657. ::CloseHandle(event);
  5658. return ::WSAGetLastError();
  5659. }
  5660. }
  5661. ::CloseHandle(event);
  5662. if (ret == NO_ERROR || ret == WSA_IO_PENDING) {
  5663. *res = reinterpret_cast<struct addrinfo *>(result_addrinfo);
  5664. return 0;
  5665. }
  5666. return ret;
  5667. #elif TARGET_OS_MAC && defined(__clang__)
  5668. if (!node) { return EAI_NONAME; }
  5669. // macOS implementation using CFHost API for asynchronous DNS resolution
  5670. CFStringRef hostname_ref = CFStringCreateWithCString(
  5671. kCFAllocatorDefault, node, kCFStringEncodingUTF8);
  5672. if (!hostname_ref) { return EAI_MEMORY; }
  5673. CFHostRef host_ref = CFHostCreateWithName(kCFAllocatorDefault, hostname_ref);
  5674. CFRelease(hostname_ref);
  5675. if (!host_ref) { return EAI_MEMORY; }
  5676. // Set up context for callback
  5677. struct CFHostContext {
  5678. bool completed = false;
  5679. bool success = false;
  5680. CFArrayRef addresses = nullptr;
  5681. std::mutex mutex;
  5682. std::condition_variable cv;
  5683. } context;
  5684. CFHostClientContext client_context;
  5685. memset(&client_context, 0, sizeof(client_context));
  5686. client_context.info = &context;
  5687. // Set callback
  5688. auto callback = [](CFHostRef theHost, CFHostInfoType /*typeInfo*/,
  5689. const CFStreamError *error, void *info) {
  5690. auto ctx = static_cast<CFHostContext *>(info);
  5691. std::lock_guard<std::mutex> lock(ctx->mutex);
  5692. if (error && error->error != 0) {
  5693. ctx->success = false;
  5694. } else {
  5695. Boolean hasBeenResolved;
  5696. ctx->addresses = CFHostGetAddressing(theHost, &hasBeenResolved);
  5697. if (ctx->addresses && hasBeenResolved) {
  5698. CFRetain(ctx->addresses);
  5699. ctx->success = true;
  5700. } else {
  5701. ctx->success = false;
  5702. }
  5703. }
  5704. ctx->completed = true;
  5705. ctx->cv.notify_one();
  5706. };
  5707. if (!CFHostSetClient(host_ref, callback, &client_context)) {
  5708. CFRelease(host_ref);
  5709. return EAI_SYSTEM;
  5710. }
  5711. // Schedule on run loop
  5712. CFRunLoopRef run_loop = CFRunLoopGetCurrent();
  5713. CFHostScheduleWithRunLoop(host_ref, run_loop, kCFRunLoopDefaultMode);
  5714. // Start resolution
  5715. CFStreamError stream_error;
  5716. if (!CFHostStartInfoResolution(host_ref, kCFHostAddresses, &stream_error)) {
  5717. CFHostUnscheduleFromRunLoop(host_ref, run_loop, kCFRunLoopDefaultMode);
  5718. CFRelease(host_ref);
  5719. return EAI_FAIL;
  5720. }
  5721. // Wait for completion with timeout
  5722. auto timeout_time =
  5723. std::chrono::steady_clock::now() + std::chrono::seconds(timeout_sec);
  5724. bool timed_out = false;
  5725. {
  5726. std::unique_lock<std::mutex> lock(context.mutex);
  5727. while (!context.completed) {
  5728. auto now = std::chrono::steady_clock::now();
  5729. if (now >= timeout_time) {
  5730. timed_out = true;
  5731. break;
  5732. }
  5733. // Run the runloop for a short time
  5734. lock.unlock();
  5735. CFRunLoopRunInMode(kCFRunLoopDefaultMode, 0.1, true);
  5736. lock.lock();
  5737. }
  5738. }
  5739. // Clean up
  5740. CFHostUnscheduleFromRunLoop(host_ref, run_loop, kCFRunLoopDefaultMode);
  5741. CFHostSetClient(host_ref, nullptr, nullptr);
  5742. if (timed_out || !context.completed) {
  5743. CFHostCancelInfoResolution(host_ref, kCFHostAddresses);
  5744. CFRelease(host_ref);
  5745. return EAI_AGAIN;
  5746. }
  5747. if (!context.success || !context.addresses) {
  5748. CFRelease(host_ref);
  5749. return EAI_NODATA;
  5750. }
  5751. // Convert CFArray to addrinfo
  5752. CFIndex count = CFArrayGetCount(context.addresses);
  5753. if (count == 0) {
  5754. CFRelease(context.addresses);
  5755. CFRelease(host_ref);
  5756. return EAI_NODATA;
  5757. }
  5758. struct addrinfo *result_addrinfo = nullptr;
  5759. struct addrinfo **current = &result_addrinfo;
  5760. for (CFIndex i = 0; i < count; i++) {
  5761. CFDataRef addr_data =
  5762. static_cast<CFDataRef>(CFArrayGetValueAtIndex(context.addresses, i));
  5763. if (!addr_data) continue;
  5764. const struct sockaddr *sockaddr_ptr =
  5765. reinterpret_cast<const struct sockaddr *>(CFDataGetBytePtr(addr_data));
  5766. socklen_t sockaddr_len = static_cast<socklen_t>(CFDataGetLength(addr_data));
  5767. // Allocate addrinfo structure
  5768. *current = static_cast<struct addrinfo *>(malloc(sizeof(struct addrinfo)));
  5769. if (!*current) {
  5770. freeaddrinfo(result_addrinfo);
  5771. CFRelease(context.addresses);
  5772. CFRelease(host_ref);
  5773. return EAI_MEMORY;
  5774. }
  5775. memset(*current, 0, sizeof(struct addrinfo));
  5776. // Set up addrinfo fields
  5777. (*current)->ai_family = sockaddr_ptr->sa_family;
  5778. (*current)->ai_socktype = hints ? hints->ai_socktype : SOCK_STREAM;
  5779. (*current)->ai_protocol = hints ? hints->ai_protocol : IPPROTO_TCP;
  5780. (*current)->ai_addrlen = sockaddr_len;
  5781. // Copy sockaddr
  5782. (*current)->ai_addr = static_cast<struct sockaddr *>(malloc(sockaddr_len));
  5783. if (!(*current)->ai_addr) {
  5784. freeaddrinfo(result_addrinfo);
  5785. CFRelease(context.addresses);
  5786. CFRelease(host_ref);
  5787. return EAI_MEMORY;
  5788. }
  5789. memcpy((*current)->ai_addr, sockaddr_ptr, sockaddr_len);
  5790. // Set port if service is specified
  5791. if (service && *service) {
  5792. int port = 0;
  5793. if (parse_port(service, strlen(service), port)) {
  5794. if (sockaddr_ptr->sa_family == AF_INET) {
  5795. reinterpret_cast<struct sockaddr_in *>((*current)->ai_addr)
  5796. ->sin_port = htons(static_cast<uint16_t>(port));
  5797. } else if (sockaddr_ptr->sa_family == AF_INET6) {
  5798. reinterpret_cast<struct sockaddr_in6 *>((*current)->ai_addr)
  5799. ->sin6_port = htons(static_cast<uint16_t>(port));
  5800. }
  5801. }
  5802. }
  5803. current = &((*current)->ai_next);
  5804. }
  5805. CFRelease(context.addresses);
  5806. CFRelease(host_ref);
  5807. *res = result_addrinfo;
  5808. return 0;
  5809. #elif defined(_GNU_SOURCE) && defined(__GLIBC__) && \
  5810. (__GLIBC__ > 2 || (__GLIBC__ == 2 && __GLIBC_MINOR__ >= 2))
  5811. // #2431: gai_cancel() is non-blocking and may return EAI_NOTCANCELED while
  5812. // the resolver worker still references the stack-local gaicb. The cancel
  5813. // path therefore waits (gai_suspend with no timeout) for the worker to
  5814. // actually finish before letting the stack frame go. The trade-off is that
  5815. // a wedged DNS server can hold this thread for the system resolver timeout
  5816. // (~30s by default) past the caller's connection timeout.
  5817. struct gaicb request{};
  5818. struct gaicb *requests[1] = {&request};
  5819. struct sigevent sevp{};
  5820. struct timespec timeout{timeout_sec, 0};
  5821. request.ar_name = node;
  5822. request.ar_service = service;
  5823. request.ar_request = hints;
  5824. sevp.sigev_notify = SIGEV_NONE;
  5825. int rc = getaddrinfo_a(GAI_NOWAIT, requests, 1, &sevp);
  5826. if (rc != 0) { return rc; }
  5827. auto cleanup = scope_exit([&] {
  5828. if (request.ar_result) { freeaddrinfo(request.ar_result); }
  5829. });
  5830. int wait_result = gai_suspend(requests, 1, &timeout);
  5831. if (wait_result == 0 || wait_result == EAI_ALLDONE) {
  5832. int gai_result = gai_error(&request);
  5833. if (gai_result == 0) {
  5834. *res = request.ar_result;
  5835. request.ar_result = nullptr;
  5836. return 0;
  5837. }
  5838. return gai_result;
  5839. }
  5840. gai_cancel(&request);
  5841. while (gai_error(&request) == EAI_INPROGRESS) {
  5842. gai_suspend(requests, 1, nullptr);
  5843. }
  5844. return wait_result;
  5845. #else
  5846. // Fallback implementation using thread-based timeout for other Unix systems.
  5847. struct GetAddrInfoState {
  5848. ~GetAddrInfoState() {
  5849. if (info) { freeaddrinfo(info); }
  5850. }
  5851. std::mutex mutex;
  5852. std::condition_variable result_cv;
  5853. bool completed = false;
  5854. int result = EAI_SYSTEM;
  5855. std::string node;
  5856. std::string service;
  5857. struct addrinfo hints;
  5858. struct addrinfo *info = nullptr;
  5859. };
  5860. // Allocate on the heap, so the resolver thread can keep using the data.
  5861. auto state = std::make_shared<GetAddrInfoState>();
  5862. if (node) { state->node = node; }
  5863. state->service = service;
  5864. state->hints = *hints;
  5865. std::thread resolve_thread([state]() {
  5866. auto thread_result =
  5867. getaddrinfo(state->node.c_str(), state->service.c_str(), &state->hints,
  5868. &state->info);
  5869. std::lock_guard<std::mutex> lock(state->mutex);
  5870. state->result = thread_result;
  5871. state->completed = true;
  5872. state->result_cv.notify_one();
  5873. });
  5874. // Wait for completion or timeout
  5875. std::unique_lock<std::mutex> lock(state->mutex);
  5876. auto finished =
  5877. state->result_cv.wait_for(lock, std::chrono::seconds(timeout_sec),
  5878. [&] { return state->completed; });
  5879. if (finished) {
  5880. // Operation completed within timeout
  5881. resolve_thread.join();
  5882. *res = state->info;
  5883. state->info = nullptr; // Pass ownership to caller
  5884. return state->result;
  5885. } else {
  5886. // Timeout occurred
  5887. resolve_thread.detach(); // Let the thread finish in background
  5888. return EAI_AGAIN; // Return timeout error
  5889. }
  5890. #endif
  5891. #else
  5892. (void)(timeout_sec); // Unused parameter for non-blocking getaddrinfo
  5893. return getaddrinfo(node, service, hints, res);
  5894. #endif
  5895. }
  5896. template <typename BindOrConnect>
  5897. socket_t create_socket(const std::string &host, const std::string &ip, int port,
  5898. int address_family, int socket_flags, bool tcp_nodelay,
  5899. bool ipv6_v6only, SocketOptions socket_options,
  5900. BindOrConnect bind_or_connect, time_t timeout_sec = 0) {
  5901. // Get address info
  5902. const char *node = nullptr;
  5903. struct addrinfo hints;
  5904. struct addrinfo *result;
  5905. memset(&hints, 0, sizeof(struct addrinfo));
  5906. hints.ai_socktype = SOCK_STREAM;
  5907. hints.ai_protocol = IPPROTO_IP;
  5908. if (!ip.empty()) {
  5909. node = ip.c_str();
  5910. // Ask getaddrinfo to convert IP in c-string to address
  5911. hints.ai_family = AF_UNSPEC;
  5912. hints.ai_flags = AI_NUMERICHOST;
  5913. } else {
  5914. if (!host.empty()) { node = host.c_str(); }
  5915. hints.ai_family = address_family;
  5916. hints.ai_flags = socket_flags;
  5917. }
  5918. #if !defined(_WIN32) || defined(CPPHTTPLIB_HAVE_AFUNIX_H)
  5919. if (hints.ai_family == AF_UNIX) {
  5920. const auto addrlen = host.length();
  5921. if (addrlen > sizeof(sockaddr_un::sun_path)) { return INVALID_SOCKET; }
  5922. #ifdef SOCK_CLOEXEC
  5923. auto sock = socket(hints.ai_family, hints.ai_socktype | SOCK_CLOEXEC,
  5924. hints.ai_protocol);
  5925. #else
  5926. auto sock = socket(hints.ai_family, hints.ai_socktype, hints.ai_protocol);
  5927. #endif
  5928. if (sock != INVALID_SOCKET) {
  5929. sockaddr_un addr{};
  5930. addr.sun_family = AF_UNIX;
  5931. auto unescaped_host = unescape_abstract_namespace_unix_domain(host);
  5932. std::copy(unescaped_host.begin(), unescaped_host.end(), addr.sun_path);
  5933. hints.ai_addr = reinterpret_cast<sockaddr *>(&addr);
  5934. hints.ai_addrlen = static_cast<socklen_t>(
  5935. sizeof(addr) - sizeof(addr.sun_path) + addrlen);
  5936. #ifndef SOCK_CLOEXEC
  5937. #ifndef _WIN32
  5938. fcntl(sock, F_SETFD, FD_CLOEXEC);
  5939. #endif
  5940. #endif
  5941. if (socket_options) { socket_options(sock); }
  5942. #ifdef _WIN32
  5943. // Setting SO_REUSEADDR seems not to work well with AF_UNIX on windows, so
  5944. // remove the option.
  5945. set_socket_opt(sock, SOL_SOCKET, SO_REUSEADDR, 0);
  5946. #endif
  5947. bool dummy;
  5948. if (!bind_or_connect(sock, hints, dummy)) {
  5949. close_socket(sock);
  5950. sock = INVALID_SOCKET;
  5951. }
  5952. }
  5953. return sock;
  5954. }
  5955. #endif
  5956. auto service = std::to_string(port);
  5957. if (getaddrinfo_with_timeout(node, service.c_str(), &hints, &result,
  5958. timeout_sec)) {
  5959. #if defined __linux__ && !defined __ANDROID__
  5960. res_init();
  5961. #endif
  5962. return INVALID_SOCKET;
  5963. }
  5964. auto se = detail::scope_exit([&] { freeaddrinfo(result); });
  5965. for (auto rp = result; rp; rp = rp->ai_next) {
  5966. // Create a socket
  5967. #ifdef _WIN32
  5968. auto sock =
  5969. WSASocketW(rp->ai_family, rp->ai_socktype, rp->ai_protocol, nullptr, 0,
  5970. WSA_FLAG_NO_HANDLE_INHERIT | WSA_FLAG_OVERLAPPED);
  5971. /**
  5972. * Since the WSA_FLAG_NO_HANDLE_INHERIT is only supported on Windows 7 SP1
  5973. * and above the socket creation fails on older Windows Systems.
  5974. *
  5975. * Let's try to create a socket the old way in this case.
  5976. *
  5977. * Reference:
  5978. * https://docs.microsoft.com/en-us/windows/win32/api/winsock2/nf-winsock2-wsasocketa
  5979. *
  5980. * WSA_FLAG_NO_HANDLE_INHERIT:
  5981. * This flag is supported on Windows 7 with SP1, Windows Server 2008 R2 with
  5982. * SP1, and later
  5983. *
  5984. */
  5985. if (sock == INVALID_SOCKET) {
  5986. sock = socket(rp->ai_family, rp->ai_socktype, rp->ai_protocol);
  5987. }
  5988. #else
  5989. #ifdef SOCK_CLOEXEC
  5990. auto sock =
  5991. socket(rp->ai_family, rp->ai_socktype | SOCK_CLOEXEC, rp->ai_protocol);
  5992. #else
  5993. auto sock = socket(rp->ai_family, rp->ai_socktype, rp->ai_protocol);
  5994. #endif
  5995. #endif
  5996. if (sock == INVALID_SOCKET) { continue; }
  5997. #if !defined _WIN32 && !defined SOCK_CLOEXEC
  5998. if (fcntl(sock, F_SETFD, FD_CLOEXEC) == -1) {
  5999. close_socket(sock);
  6000. continue;
  6001. }
  6002. #endif
  6003. if (tcp_nodelay) { set_socket_opt(sock, IPPROTO_TCP, TCP_NODELAY, 1); }
  6004. if (rp->ai_family == AF_INET6) {
  6005. set_socket_opt(sock, IPPROTO_IPV6, IPV6_V6ONLY, ipv6_v6only ? 1 : 0);
  6006. }
  6007. if (socket_options) { socket_options(sock); }
  6008. // bind or connect
  6009. auto quit = false;
  6010. if (bind_or_connect(sock, *rp, quit)) { return sock; }
  6011. close_socket(sock);
  6012. if (quit) { break; }
  6013. }
  6014. return INVALID_SOCKET;
  6015. }
  6016. inline void set_nonblocking(socket_t sock, bool nonblocking) {
  6017. #ifdef _WIN32
  6018. auto flags = nonblocking ? 1UL : 0UL;
  6019. ioctlsocket(sock, FIONBIO, &flags);
  6020. #else
  6021. auto flags = fcntl(sock, F_GETFL, 0);
  6022. fcntl(sock, F_SETFL,
  6023. nonblocking ? (flags | O_NONBLOCK) : (flags & (~O_NONBLOCK)));
  6024. #endif
  6025. }
  6026. inline bool is_connection_error() {
  6027. #ifdef _WIN32
  6028. return WSAGetLastError() != WSAEWOULDBLOCK;
  6029. #else
  6030. return errno != EINPROGRESS;
  6031. #endif
  6032. }
  6033. // accept() failed because the process or the network stack is temporarily out
  6034. // of resources. The listening socket is still usable, so back off briefly and
  6035. // try again.
  6036. inline bool is_accept_resource_error() {
  6037. #ifdef _WIN32
  6038. auto err = WSAGetLastError();
  6039. return err == WSAEMFILE || err == WSAENOBUFS;
  6040. #else
  6041. auto err = errno;
  6042. return err == EMFILE || err == ENFILE || err == ENOBUFS || err == ENOMEM;
  6043. #endif
  6044. }
  6045. // accept() failed for a reason that says nothing about the listening socket:
  6046. // the pending connection went away before it could be accepted, or the call
  6047. // was interrupted. Retry immediately. WSAAccept()'s own documentation omits
  6048. // WSAECONNRESET, but the accept() it wraps reports an aborted pending
  6049. // connection that way.
  6050. inline bool is_accept_transient_error() {
  6051. #ifdef _WIN32
  6052. auto err = WSAGetLastError();
  6053. return err == WSAEINTR || err == WSAEWOULDBLOCK || err == WSAECONNRESET ||
  6054. err == WSAECONNABORTED;
  6055. #else
  6056. auto err = errno;
  6057. return err == EINTR || err == EAGAIN || err == EWOULDBLOCK ||
  6058. err == ECONNABORTED;
  6059. #endif
  6060. }
  6061. inline bool bind_ip_address(socket_t sock, const std::string &host) {
  6062. struct addrinfo hints;
  6063. struct addrinfo *result;
  6064. memset(&hints, 0, sizeof(struct addrinfo));
  6065. hints.ai_family = AF_UNSPEC;
  6066. hints.ai_socktype = SOCK_STREAM;
  6067. hints.ai_protocol = 0;
  6068. if (getaddrinfo_with_timeout(host.c_str(), "0", &hints, &result, 0)) {
  6069. return false;
  6070. }
  6071. auto se = detail::scope_exit([&] { freeaddrinfo(result); });
  6072. auto ret = false;
  6073. for (auto rp = result; rp; rp = rp->ai_next) {
  6074. const auto &ai = *rp;
  6075. if (!::bind(sock, ai.ai_addr, static_cast<socklen_t>(ai.ai_addrlen))) {
  6076. ret = true;
  6077. break;
  6078. }
  6079. }
  6080. return ret;
  6081. }
  6082. #if !defined _WIN32 && !defined ANDROID && !defined _AIX && !defined __MVS__
  6083. #define USE_IF2IP
  6084. #endif
  6085. #ifdef USE_IF2IP
  6086. inline std::string if2ip(int address_family, const std::string &ifn) {
  6087. struct ifaddrs *ifap;
  6088. getifaddrs(&ifap);
  6089. auto se = detail::scope_exit([&] { freeifaddrs(ifap); });
  6090. std::string addr_candidate;
  6091. for (auto ifa = ifap; ifa; ifa = ifa->ifa_next) {
  6092. if (ifa->ifa_addr && ifn == ifa->ifa_name &&
  6093. (AF_UNSPEC == address_family ||
  6094. ifa->ifa_addr->sa_family == address_family)) {
  6095. if (ifa->ifa_addr->sa_family == AF_INET) {
  6096. auto sa = reinterpret_cast<struct sockaddr_in *>(ifa->ifa_addr);
  6097. char buf[INET_ADDRSTRLEN];
  6098. if (inet_ntop(AF_INET, &sa->sin_addr, buf, INET_ADDRSTRLEN)) {
  6099. return std::string(buf, INET_ADDRSTRLEN);
  6100. }
  6101. } else if (ifa->ifa_addr->sa_family == AF_INET6) {
  6102. auto sa = reinterpret_cast<struct sockaddr_in6 *>(ifa->ifa_addr);
  6103. if (!IN6_IS_ADDR_LINKLOCAL(&sa->sin6_addr)) {
  6104. char buf[INET6_ADDRSTRLEN] = {};
  6105. if (inet_ntop(AF_INET6, &sa->sin6_addr, buf, INET6_ADDRSTRLEN)) {
  6106. // equivalent to mac's IN6_IS_ADDR_UNIQUE_LOCAL
  6107. auto s6_addr_head = sa->sin6_addr.s6_addr[0];
  6108. if (s6_addr_head == 0xfc || s6_addr_head == 0xfd) {
  6109. addr_candidate = std::string(buf, INET6_ADDRSTRLEN);
  6110. } else {
  6111. return std::string(buf, INET6_ADDRSTRLEN);
  6112. }
  6113. }
  6114. }
  6115. }
  6116. }
  6117. }
  6118. return addr_candidate;
  6119. }
  6120. #endif
  6121. inline socket_t create_client_socket(
  6122. const std::string &host, const std::string &ip, int port,
  6123. int address_family, bool tcp_nodelay, bool ipv6_v6only,
  6124. SocketOptions socket_options, time_t connection_timeout_sec,
  6125. time_t connection_timeout_usec, time_t read_timeout_sec,
  6126. time_t read_timeout_usec, time_t write_timeout_sec,
  6127. time_t write_timeout_usec, const std::string &intf, Error &error) {
  6128. auto sock = create_socket(
  6129. host, ip, port, address_family, 0, tcp_nodelay, ipv6_v6only,
  6130. std::move(socket_options),
  6131. [&](socket_t sock2, struct addrinfo &ai, bool &quit) -> bool {
  6132. if (!intf.empty()) {
  6133. #ifdef USE_IF2IP
  6134. auto ip_from_if = if2ip(address_family, intf);
  6135. if (ip_from_if.empty()) { ip_from_if = intf; }
  6136. if (!bind_ip_address(sock2, ip_from_if)) {
  6137. error = Error::BindIPAddress;
  6138. return false;
  6139. }
  6140. #endif
  6141. }
  6142. set_nonblocking(sock2, true);
  6143. auto ret =
  6144. ::connect(sock2, ai.ai_addr, static_cast<socklen_t>(ai.ai_addrlen));
  6145. if (ret < 0) {
  6146. if (is_connection_error()) {
  6147. error = Error::Connection;
  6148. return false;
  6149. }
  6150. error = wait_until_socket_is_ready(sock2, connection_timeout_sec,
  6151. connection_timeout_usec);
  6152. if (error != Error::Success) {
  6153. if (error == Error::ConnectionTimeout) { quit = true; }
  6154. return false;
  6155. }
  6156. }
  6157. set_nonblocking(sock2, false);
  6158. set_socket_opt_time(sock2, SOL_SOCKET, SO_RCVTIMEO, read_timeout_sec,
  6159. read_timeout_usec);
  6160. set_socket_opt_time(sock2, SOL_SOCKET, SO_SNDTIMEO, write_timeout_sec,
  6161. write_timeout_usec);
  6162. error = Error::Success;
  6163. return true;
  6164. },
  6165. connection_timeout_sec); // Pass DNS timeout
  6166. if (sock != INVALID_SOCKET) {
  6167. error = Error::Success;
  6168. } else {
  6169. if (error == Error::Success) { error = Error::Connection; }
  6170. }
  6171. return sock;
  6172. }
  6173. inline bool get_ip_and_port(const struct sockaddr_storage &addr,
  6174. socklen_t addr_len, std::string &ip, int &port) {
  6175. if (addr.ss_family == AF_INET) {
  6176. port = ntohs(reinterpret_cast<const struct sockaddr_in *>(&addr)->sin_port);
  6177. } else if (addr.ss_family == AF_INET6) {
  6178. port =
  6179. ntohs(reinterpret_cast<const struct sockaddr_in6 *>(&addr)->sin6_port);
  6180. } else {
  6181. return false;
  6182. }
  6183. std::array<char, NI_MAXHOST> ipstr{};
  6184. if (getnameinfo(reinterpret_cast<const struct sockaddr *>(&addr), addr_len,
  6185. ipstr.data(), static_cast<socklen_t>(ipstr.size()), nullptr,
  6186. 0, NI_NUMERICHOST)) {
  6187. return false;
  6188. }
  6189. ip = ipstr.data();
  6190. return true;
  6191. }
  6192. inline void get_local_ip_and_port(socket_t sock, std::string &ip, int &port) {
  6193. struct sockaddr_storage addr;
  6194. socklen_t addr_len = sizeof(addr);
  6195. if (!getsockname(sock, reinterpret_cast<struct sockaddr *>(&addr),
  6196. &addr_len)) {
  6197. get_ip_and_port(addr, addr_len, ip, port);
  6198. }
  6199. }
  6200. inline void get_remote_ip_and_port(socket_t sock, std::string &ip, int &port) {
  6201. struct sockaddr_storage addr;
  6202. socklen_t addr_len = sizeof(addr);
  6203. if (!getpeername(sock, reinterpret_cast<struct sockaddr *>(&addr),
  6204. &addr_len)) {
  6205. #ifndef _WIN32
  6206. if (addr.ss_family == AF_UNIX) {
  6207. #if defined(__linux__)
  6208. struct ucred ucred;
  6209. socklen_t len = sizeof(ucred);
  6210. if (getsockopt(sock, SOL_SOCKET, SO_PEERCRED, &ucred, &len) == 0) {
  6211. port = ucred.pid;
  6212. }
  6213. #elif defined(SOL_LOCAL) && defined(SO_PEERPID)
  6214. pid_t pid;
  6215. socklen_t len = sizeof(pid);
  6216. if (getsockopt(sock, SOL_LOCAL, SO_PEERPID, &pid, &len) == 0) {
  6217. port = pid;
  6218. }
  6219. #endif
  6220. return;
  6221. }
  6222. #endif
  6223. get_ip_and_port(addr, addr_len, ip, port);
  6224. }
  6225. }
  6226. // Recursive form retained so operator""_t below can compute hashes for
  6227. // switch-case labels at compile time (C++11 constexpr forbids loops). Do not
  6228. // call from runtime paths with arbitrary-length inputs — use str2tag()
  6229. // instead, which is iterative and stack-safe.
  6230. inline constexpr unsigned int str2tag_core(const char *s, size_t l,
  6231. unsigned int h) {
  6232. return (l == 0)
  6233. ? h
  6234. : str2tag_core(
  6235. s + 1, l - 1,
  6236. // Unsets the 6 high bits of h, therefore no overflow happens
  6237. (((std::numeric_limits<unsigned int>::max)() >> 6) &
  6238. h * 33) ^
  6239. static_cast<unsigned char>(*s));
  6240. }
  6241. inline unsigned int str2tag(const std::string &s) {
  6242. // Iterative form of str2tag_core: the recursive constexpr version is kept
  6243. // for compile-time UDL evaluation of short string literals, but at runtime
  6244. // we may receive arbitrarily long inputs (e.g. fuzzed Content-Type) that
  6245. // would blow the stack with one frame per character.
  6246. unsigned int h = 0;
  6247. for (auto c : s) {
  6248. h = (((std::numeric_limits<unsigned int>::max)() >> 6) & h * 33) ^
  6249. static_cast<unsigned char>(c);
  6250. }
  6251. return h;
  6252. }
  6253. namespace udl {
  6254. inline constexpr unsigned int operator""_t(const char *s, size_t l) {
  6255. return str2tag_core(s, l, 0);
  6256. }
  6257. } // namespace udl
  6258. inline std::string
  6259. find_content_type(const std::string &path,
  6260. const std::map<std::string, std::string> &user_data,
  6261. const std::string &default_content_type) {
  6262. auto ext = file_extension(path);
  6263. auto it = user_data.find(ext);
  6264. if (it != user_data.end()) { return it->second; }
  6265. using udl::operator""_t;
  6266. switch (str2tag(ext)) {
  6267. default: return default_content_type;
  6268. case "css"_t: return "text/css";
  6269. case "csv"_t: return "text/csv";
  6270. case "htm"_t:
  6271. case "html"_t: return "text/html";
  6272. case "js"_t:
  6273. case "mjs"_t: return "text/javascript";
  6274. case "txt"_t: return "text/plain";
  6275. case "vtt"_t: return "text/vtt";
  6276. case "apng"_t: return "image/apng";
  6277. case "avif"_t: return "image/avif";
  6278. case "bmp"_t: return "image/bmp";
  6279. case "gif"_t: return "image/gif";
  6280. case "png"_t: return "image/png";
  6281. case "svg"_t: return "image/svg+xml";
  6282. case "webp"_t: return "image/webp";
  6283. case "ico"_t: return "image/x-icon";
  6284. case "tif"_t: return "image/tiff";
  6285. case "tiff"_t: return "image/tiff";
  6286. case "jpg"_t:
  6287. case "jpeg"_t: return "image/jpeg";
  6288. case "mp4"_t: return "video/mp4";
  6289. case "mpeg"_t: return "video/mpeg";
  6290. case "webm"_t: return "video/webm";
  6291. case "mp3"_t: return "audio/mp3";
  6292. case "mpga"_t: return "audio/mpeg";
  6293. case "weba"_t: return "audio/webm";
  6294. case "wav"_t: return "audio/wave";
  6295. case "otf"_t: return "font/otf";
  6296. case "ttf"_t: return "font/ttf";
  6297. case "woff"_t: return "font/woff";
  6298. case "woff2"_t: return "font/woff2";
  6299. case "7z"_t: return "application/x-7z-compressed";
  6300. case "atom"_t: return "application/atom+xml";
  6301. case "pdf"_t: return "application/pdf";
  6302. case "json"_t: return "application/json";
  6303. case "rss"_t: return "application/rss+xml";
  6304. case "tar"_t: return "application/x-tar";
  6305. case "xht"_t:
  6306. case "xhtml"_t: return "application/xhtml+xml";
  6307. case "xslt"_t: return "application/xslt+xml";
  6308. case "xml"_t: return "application/xml";
  6309. case "gz"_t: return "application/gzip";
  6310. case "zip"_t: return "application/zip";
  6311. case "wasm"_t: return "application/wasm";
  6312. }
  6313. }
  6314. inline std::string
  6315. extract_media_type(const std::string &content_type,
  6316. std::map<std::string, std::string> *params = nullptr) {
  6317. // Extract type/subtype from Content-Type value (RFC 2045)
  6318. // e.g. "application/json; charset=utf-8" -> "application/json"
  6319. auto media_type = content_type;
  6320. auto semicolon_pos = media_type.find(';');
  6321. if (semicolon_pos != std::string::npos) {
  6322. auto param_str = media_type.substr(semicolon_pos + 1);
  6323. media_type = media_type.substr(0, semicolon_pos);
  6324. if (params) {
  6325. // Parse parameters: key=value pairs separated by ';'
  6326. split_unquoted(param_str.data(), param_str.data() + param_str.size(), ';',
  6327. [&](const char *b, const char *e) {
  6328. std::string key;
  6329. std::string val;
  6330. divide_param_pair(b, e, key, val);
  6331. if (!key.empty()) {
  6332. params->emplace(trim_copy(key),
  6333. trim_double_quotes_copy(val));
  6334. }
  6335. });
  6336. }
  6337. }
  6338. // Trim whitespace from media type
  6339. return trim_copy(media_type);
  6340. }
  6341. inline bool can_compress_content_type(const std::string &content_type) {
  6342. using udl::operator""_t;
  6343. auto mime_type = extract_media_type(content_type);
  6344. auto tag = str2tag(mime_type);
  6345. switch (tag) {
  6346. case "image/svg+xml"_t:
  6347. case "application/javascript"_t:
  6348. case "application/x-javascript"_t:
  6349. case "application/json"_t:
  6350. case "application/ld+json"_t:
  6351. case "application/xml"_t:
  6352. case "application/xhtml+xml"_t:
  6353. case "application/rss+xml"_t:
  6354. case "application/atom+xml"_t:
  6355. case "application/xslt+xml"_t:
  6356. case "application/protobuf"_t: return true;
  6357. case "text/event-stream"_t: return false;
  6358. default: return !mime_type.rfind("text/", 0);
  6359. }
  6360. }
  6361. inline bool parse_quality(const char *b, const char *e, std::string &token,
  6362. double &quality) {
  6363. quality = 1.0;
  6364. token.clear();
  6365. // Split on first ';': left = token name, right = parameters
  6366. const char *params_b = nullptr;
  6367. std::size_t params_len = 0;
  6368. divide(
  6369. b, static_cast<std::size_t>(e - b), ';',
  6370. [&](const char *lb, std::size_t llen, const char *rb, std::size_t rlen) {
  6371. auto r = trim(lb, lb + llen, 0, llen);
  6372. if (r.first < r.second) { token.assign(lb + r.first, lb + r.second); }
  6373. params_b = rb;
  6374. params_len = rlen;
  6375. });
  6376. if (token.empty()) { return false; }
  6377. if (params_len == 0) { return true; }
  6378. // Scan parameters for q= (stops on first match)
  6379. bool invalid = false;
  6380. split_find(params_b, params_b + params_len, ';',
  6381. (std::numeric_limits<size_t>::max)(),
  6382. [&](const char *pb, const char *pe) -> bool {
  6383. // Match exactly "q=" or "Q=" (not "query=" etc.)
  6384. auto len = static_cast<size_t>(pe - pb);
  6385. if (len < 2) { return false; }
  6386. if ((pb[0] != 'q' && pb[0] != 'Q') || pb[1] != '=') {
  6387. return false;
  6388. }
  6389. // Trim the value portion
  6390. auto r = trim(pb, pe, 2, len);
  6391. if (r.first >= r.second) {
  6392. invalid = true;
  6393. return true;
  6394. }
  6395. double v = 0.0;
  6396. auto res = from_chars(pb + r.first, pb + r.second, v);
  6397. if (res.ec != std::errc{} || res.ptr != pb + r.second ||
  6398. v < 0.0 || v > 1.0) {
  6399. invalid = true;
  6400. return true;
  6401. }
  6402. quality = v;
  6403. return true;
  6404. });
  6405. return !invalid;
  6406. }
  6407. inline EncodingType encoding_type(const Request &req,
  6408. const std::string &content_type) {
  6409. if (!can_compress_content_type(content_type)) { return EncodingType::None; }
  6410. auto s = get_combined_header_value(req.headers, "Accept-Encoding");
  6411. if (s.empty()) { return EncodingType::None; }
  6412. // Single-pass: iterate tokens and track the best supported encoding.
  6413. // Server preference breaks ties (br > gzip > zstd).
  6414. EncodingType best = EncodingType::None;
  6415. double best_q = 0.0; // q=0 means "not acceptable"
  6416. // Server preference: Brotli > Gzip > Zstd (lower = more preferred)
  6417. auto priority = [](EncodingType t) -> int {
  6418. switch (t) {
  6419. case EncodingType::Brotli: return 0;
  6420. case EncodingType::Gzip: return 1;
  6421. case EncodingType::Zstd: return 2;
  6422. default: return 3;
  6423. }
  6424. };
  6425. std::string name;
  6426. split(s.data(), s.data() + s.size(), ',', [&](const char *b, const char *e) {
  6427. double quality = 1.0;
  6428. if (!parse_quality(b, e, name, quality)) { return; }
  6429. if (quality <= 0.0) { return; }
  6430. EncodingType type = EncodingType::None;
  6431. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6432. if (case_ignore::equal(name, "br")) { type = EncodingType::Brotli; }
  6433. #endif
  6434. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  6435. if (type == EncodingType::None && case_ignore::equal(name, "gzip")) {
  6436. type = EncodingType::Gzip;
  6437. }
  6438. #endif
  6439. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  6440. if (type == EncodingType::None && case_ignore::equal(name, "zstd")) {
  6441. type = EncodingType::Zstd;
  6442. }
  6443. #endif
  6444. if (type == EncodingType::None) { return; }
  6445. // Higher q-value wins; for equal q, server preference breaks ties
  6446. if (quality > best_q ||
  6447. (quality == best_q && priority(type) < priority(best))) {
  6448. best_q = quality;
  6449. best = type;
  6450. }
  6451. });
  6452. return best;
  6453. }
  6454. // `content_type` is taken separately because a file-backed response has not
  6455. // been given one yet when its coding has to be decided.
  6456. inline EncodingType encoding_type(const Request &req, const Response &res,
  6457. const std::string &content_type) {
  6458. // The response already names a content coding of its own: a handler serving
  6459. // a body it encoded itself (pre-compressed static assets, say), or a mount
  6460. // point whose headers name the coding its files are stored in. Applying one
  6461. // on top of that would double-encode the body and append a second
  6462. // `Content-Encoding` field line.
  6463. if (res.has_header("Content-Encoding")) { return EncodingType::None; }
  6464. return encoding_type(req, content_type);
  6465. }
  6466. inline EncodingType encoding_type(const Request &req, const Response &res) {
  6467. return encoding_type(req, res, res.get_header_value("Content-Type"));
  6468. }
  6469. inline std::unique_ptr<compressor> make_compressor(EncodingType type) {
  6470. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  6471. if (type == EncodingType::Gzip) {
  6472. return detail::make_unique<gzip_compressor>();
  6473. }
  6474. #endif
  6475. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6476. if (type == EncodingType::Brotli) {
  6477. return detail::make_unique<brotli_compressor>();
  6478. }
  6479. #endif
  6480. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  6481. if (type == EncodingType::Zstd) {
  6482. return detail::make_unique<zstd_compressor>();
  6483. }
  6484. #endif
  6485. (void)type;
  6486. return nullptr;
  6487. }
  6488. inline const char *encoding_name(EncodingType type) {
  6489. switch (type) {
  6490. case EncodingType::Gzip: return "gzip";
  6491. case EncodingType::Brotli: return "br";
  6492. case EncodingType::Zstd: return "zstd";
  6493. default: return "";
  6494. }
  6495. }
  6496. inline bool nocompressor::compress(const char *data, size_t data_length,
  6497. bool /*last*/, Callback callback) {
  6498. if (!data_length) { return true; }
  6499. return callback(data, data_length);
  6500. }
  6501. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  6502. inline gzip_compressor::gzip_compressor() {
  6503. std::memset(&strm_, 0, sizeof(strm_));
  6504. strm_.zalloc = Z_NULL;
  6505. strm_.zfree = Z_NULL;
  6506. strm_.opaque = Z_NULL;
  6507. is_valid_ = deflateInit2(&strm_, Z_DEFAULT_COMPRESSION, Z_DEFLATED, 31, 8,
  6508. Z_DEFAULT_STRATEGY) == Z_OK;
  6509. }
  6510. inline gzip_compressor::~gzip_compressor() { deflateEnd(&strm_); }
  6511. inline bool gzip_compressor::compress(const char *data, size_t data_length,
  6512. bool last, Callback callback) {
  6513. assert(is_valid_);
  6514. do {
  6515. constexpr size_t max_avail_in =
  6516. (std::numeric_limits<decltype(strm_.avail_in)>::max)();
  6517. strm_.avail_in = static_cast<decltype(strm_.avail_in)>(
  6518. (std::min)(data_length, max_avail_in));
  6519. strm_.next_in = const_cast<Bytef *>(reinterpret_cast<const Bytef *>(data));
  6520. data_length -= strm_.avail_in;
  6521. data += strm_.avail_in;
  6522. auto flush = (last && data_length == 0) ? Z_FINISH : Z_NO_FLUSH;
  6523. auto ret = Z_OK;
  6524. std::array<char, CPPHTTPLIB_COMPRESSION_BUFSIZ> buff{};
  6525. do {
  6526. strm_.avail_out = static_cast<uInt>(buff.size());
  6527. strm_.next_out = reinterpret_cast<Bytef *>(buff.data());
  6528. ret = deflate(&strm_, flush);
  6529. if (ret == Z_STREAM_ERROR) { return false; }
  6530. if (!callback(buff.data(), buff.size() - strm_.avail_out)) {
  6531. return false;
  6532. }
  6533. } while (strm_.avail_out == 0);
  6534. assert((flush == Z_FINISH && ret == Z_STREAM_END) ||
  6535. (flush == Z_NO_FLUSH && ret == Z_OK));
  6536. assert(strm_.avail_in == 0);
  6537. } while (data_length > 0);
  6538. return true;
  6539. }
  6540. inline gzip_decompressor::gzip_decompressor() {
  6541. std::memset(&strm_, 0, sizeof(strm_));
  6542. strm_.zalloc = Z_NULL;
  6543. strm_.zfree = Z_NULL;
  6544. strm_.opaque = Z_NULL;
  6545. // 15 is the value of wbits, which should be at the maximum possible value
  6546. // to ensure that any gzip stream can be decoded. The offset of 32 specifies
  6547. // that the stream type should be automatically detected either gzip or
  6548. // deflate.
  6549. is_valid_ = inflateInit2(&strm_, 32 + 15) == Z_OK;
  6550. }
  6551. inline gzip_decompressor::~gzip_decompressor() { inflateEnd(&strm_); }
  6552. inline bool gzip_decompressor::is_valid() const { return is_valid_; }
  6553. inline bool gzip_decompressor::decompress(const char *data, size_t data_length,
  6554. Callback callback) {
  6555. assert(is_valid_);
  6556. auto ret = Z_OK;
  6557. do {
  6558. constexpr size_t max_avail_in =
  6559. (std::numeric_limits<decltype(strm_.avail_in)>::max)();
  6560. strm_.avail_in = static_cast<decltype(strm_.avail_in)>(
  6561. (std::min)(data_length, max_avail_in));
  6562. strm_.next_in = const_cast<Bytef *>(reinterpret_cast<const Bytef *>(data));
  6563. data_length -= strm_.avail_in;
  6564. data += strm_.avail_in;
  6565. std::array<char, CPPHTTPLIB_COMPRESSION_BUFSIZ> buff{};
  6566. while (strm_.avail_in > 0 && ret == Z_OK) {
  6567. strm_.avail_out = static_cast<uInt>(buff.size());
  6568. strm_.next_out = reinterpret_cast<Bytef *>(buff.data());
  6569. ret = inflate(&strm_, Z_NO_FLUSH);
  6570. assert(ret != Z_STREAM_ERROR);
  6571. switch (ret) {
  6572. case Z_NEED_DICT:
  6573. case Z_DATA_ERROR:
  6574. case Z_MEM_ERROR: inflateEnd(&strm_); return false;
  6575. }
  6576. if (!callback(buff.data(), buff.size() - strm_.avail_out)) {
  6577. return false;
  6578. }
  6579. }
  6580. if (ret != Z_OK && ret != Z_STREAM_END) { return false; }
  6581. } while (data_length > 0);
  6582. return true;
  6583. }
  6584. #endif
  6585. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6586. inline brotli_compressor::brotli_compressor() {
  6587. state_ = BrotliEncoderCreateInstance(nullptr, nullptr, nullptr);
  6588. }
  6589. inline brotli_compressor::~brotli_compressor() {
  6590. BrotliEncoderDestroyInstance(state_);
  6591. }
  6592. inline bool brotli_compressor::compress(const char *data, size_t data_length,
  6593. bool last, Callback callback) {
  6594. std::array<uint8_t, CPPHTTPLIB_COMPRESSION_BUFSIZ> buff{};
  6595. auto operation = last ? BROTLI_OPERATION_FINISH : BROTLI_OPERATION_PROCESS;
  6596. auto available_in = data_length;
  6597. auto next_in = reinterpret_cast<const uint8_t *>(data);
  6598. for (;;) {
  6599. if (last) {
  6600. if (BrotliEncoderIsFinished(state_)) { break; }
  6601. } else {
  6602. if (!available_in) { break; }
  6603. }
  6604. auto available_out = buff.size();
  6605. auto next_out = buff.data();
  6606. if (!BrotliEncoderCompressStream(state_, operation, &available_in, &next_in,
  6607. &available_out, &next_out, nullptr)) {
  6608. return false;
  6609. }
  6610. auto output_bytes = buff.size() - available_out;
  6611. if (output_bytes) {
  6612. callback(reinterpret_cast<const char *>(buff.data()), output_bytes);
  6613. }
  6614. }
  6615. return true;
  6616. }
  6617. inline brotli_decompressor::brotli_decompressor() {
  6618. decoder_s = BrotliDecoderCreateInstance(0, 0, 0);
  6619. decoder_r = decoder_s ? BROTLI_DECODER_RESULT_NEEDS_MORE_INPUT
  6620. : BROTLI_DECODER_RESULT_ERROR;
  6621. }
  6622. inline brotli_decompressor::~brotli_decompressor() {
  6623. if (decoder_s) { BrotliDecoderDestroyInstance(decoder_s); }
  6624. }
  6625. inline bool brotli_decompressor::is_valid() const { return decoder_s; }
  6626. inline bool brotli_decompressor::decompress(const char *data,
  6627. size_t data_length,
  6628. Callback callback) {
  6629. if (decoder_r == BROTLI_DECODER_RESULT_SUCCESS ||
  6630. decoder_r == BROTLI_DECODER_RESULT_ERROR) {
  6631. return 0;
  6632. }
  6633. auto next_in = reinterpret_cast<const uint8_t *>(data);
  6634. size_t avail_in = data_length;
  6635. size_t total_out;
  6636. decoder_r = BROTLI_DECODER_RESULT_NEEDS_MORE_OUTPUT;
  6637. std::array<char, CPPHTTPLIB_COMPRESSION_BUFSIZ> buff{};
  6638. while (decoder_r == BROTLI_DECODER_RESULT_NEEDS_MORE_OUTPUT) {
  6639. char *next_out = buff.data();
  6640. size_t avail_out = buff.size();
  6641. decoder_r = BrotliDecoderDecompressStream(
  6642. decoder_s, &avail_in, &next_in, &avail_out,
  6643. reinterpret_cast<uint8_t **>(&next_out), &total_out);
  6644. if (decoder_r == BROTLI_DECODER_RESULT_ERROR) { return false; }
  6645. if (!callback(buff.data(), buff.size() - avail_out)) { return false; }
  6646. }
  6647. return decoder_r == BROTLI_DECODER_RESULT_SUCCESS ||
  6648. decoder_r == BROTLI_DECODER_RESULT_NEEDS_MORE_INPUT;
  6649. }
  6650. #endif
  6651. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  6652. inline zstd_compressor::zstd_compressor() {
  6653. ctx_ = ZSTD_createCCtx();
  6654. ZSTD_CCtx_setParameter(ctx_, ZSTD_c_compressionLevel, ZSTD_fast);
  6655. }
  6656. inline zstd_compressor::~zstd_compressor() { ZSTD_freeCCtx(ctx_); }
  6657. inline bool zstd_compressor::compress(const char *data, size_t data_length,
  6658. bool last, Callback callback) {
  6659. std::array<char, CPPHTTPLIB_COMPRESSION_BUFSIZ> buff{};
  6660. ZSTD_EndDirective mode = last ? ZSTD_e_end : ZSTD_e_continue;
  6661. ZSTD_inBuffer input = {data, data_length, 0};
  6662. bool finished;
  6663. do {
  6664. ZSTD_outBuffer output = {buff.data(), CPPHTTPLIB_COMPRESSION_BUFSIZ, 0};
  6665. size_t const remaining = ZSTD_compressStream2(ctx_, &output, &input, mode);
  6666. if (ZSTD_isError(remaining)) { return false; }
  6667. if (!callback(buff.data(), output.pos)) { return false; }
  6668. finished = last ? (remaining == 0) : (input.pos == input.size);
  6669. } while (!finished);
  6670. return true;
  6671. }
  6672. inline zstd_decompressor::zstd_decompressor() { ctx_ = ZSTD_createDCtx(); }
  6673. inline zstd_decompressor::~zstd_decompressor() { ZSTD_freeDCtx(ctx_); }
  6674. inline bool zstd_decompressor::is_valid() const { return ctx_ != nullptr; }
  6675. inline bool zstd_decompressor::decompress(const char *data, size_t data_length,
  6676. Callback callback) {
  6677. std::array<char, CPPHTTPLIB_COMPRESSION_BUFSIZ> buff{};
  6678. ZSTD_inBuffer input = {data, data_length, 0};
  6679. while (input.pos < input.size) {
  6680. ZSTD_outBuffer output = {buff.data(), CPPHTTPLIB_COMPRESSION_BUFSIZ, 0};
  6681. size_t const remaining = ZSTD_decompressStream(ctx_, &output, &input);
  6682. if (ZSTD_isError(remaining)) { return false; }
  6683. if (!callback(buff.data(), output.pos)) { return false; }
  6684. }
  6685. return true;
  6686. }
  6687. #endif
  6688. // Content codings are case-insensitive (RFC 9110 8.4.1). Matching them
  6689. // case-sensitively would make a response labeled e.g. "GZIP" look like an
  6690. // unknown coding, and its payload would be handed back still compressed.
  6691. inline bool is_zlib_encoding(const std::string &encoding) {
  6692. return case_ignore::equal(encoding, "gzip") ||
  6693. case_ignore::equal(encoding, "deflate");
  6694. }
  6695. inline bool is_brotli_encoding(const std::string &encoding) {
  6696. return case_ignore::equal(encoding, "br");
  6697. }
  6698. inline bool is_zstd_encoding(const std::string &encoding) {
  6699. return case_ignore::equal(encoding, "zstd");
  6700. }
  6701. // Returns true if the content coding is one cpp-httplib is able to decompress
  6702. // when the corresponding support is compiled in.
  6703. inline bool is_known_content_encoding(const std::string &encoding) {
  6704. return is_zlib_encoding(encoding) || is_brotli_encoding(encoding) ||
  6705. is_zstd_encoding(encoding);
  6706. }
  6707. inline std::unique_ptr<decompressor>
  6708. create_decompressor(const std::string &encoding) {
  6709. std::unique_ptr<decompressor> decompressor;
  6710. if (is_zlib_encoding(encoding)) {
  6711. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  6712. decompressor = detail::make_unique<gzip_decompressor>();
  6713. #endif
  6714. } else if (is_brotli_encoding(encoding)) {
  6715. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6716. decompressor = detail::make_unique<brotli_decompressor>();
  6717. #endif
  6718. } else if (is_zstd_encoding(encoding)) {
  6719. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  6720. decompressor = detail::make_unique<zstd_decompressor>();
  6721. #endif
  6722. }
  6723. return decompressor;
  6724. }
  6725. // Returns the best available compressor and its Content-Encoding name.
  6726. // Priority: Brotli > Gzip > Zstd (matches server-side preference).
  6727. inline std::pair<std::unique_ptr<compressor>, const char *>
  6728. create_compressor() {
  6729. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6730. return {detail::make_unique<brotli_compressor>(), "br"};
  6731. #elif defined(CPPHTTPLIB_ZLIB_SUPPORT)
  6732. return {detail::make_unique<gzip_compressor>(), "gzip"};
  6733. #elif defined(CPPHTTPLIB_ZSTD_SUPPORT)
  6734. return {detail::make_unique<zstd_compressor>(), "zstd"};
  6735. #else
  6736. return {nullptr, nullptr};
  6737. #endif
  6738. }
  6739. inline bool is_prohibited_header_name(const std::string &name) {
  6740. using udl::operator""_t;
  6741. switch (str2tag(name)) {
  6742. case "REMOTE_ADDR"_t:
  6743. case "REMOTE_PORT"_t:
  6744. case "LOCAL_ADDR"_t:
  6745. case "LOCAL_PORT"_t: return true;
  6746. default: return false;
  6747. }
  6748. }
  6749. inline bool has_header(const Headers &headers, const std::string &key) {
  6750. if (is_prohibited_header_name(key)) { return false; }
  6751. return headers.find(key) != headers.end();
  6752. }
  6753. inline const char *get_header_value(const Headers &headers,
  6754. const std::string &key, const char *def,
  6755. size_t id) {
  6756. if (is_prohibited_header_name(key)) {
  6757. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  6758. std::string msg = "Prohibited header name '" + key + "' is specified.";
  6759. throw std::invalid_argument(msg);
  6760. #else
  6761. return "";
  6762. #endif
  6763. }
  6764. auto rng = headers.equal_range(key);
  6765. auto it = rng.first;
  6766. std::advance(it, static_cast<ssize_t>(id));
  6767. if (it != rng.second) { return it->second.c_str(); }
  6768. return def;
  6769. }
  6770. inline size_t get_header_value_count(const Headers &headers,
  6771. const std::string &key) {
  6772. return headers.count(key);
  6773. }
  6774. // RFC 9110 Section 5.2 and 5.3: a field that is defined as a comma-separated
  6775. // list may be sent as several field lines, and the combined field value is
  6776. // those values joined by commas in the order they were received. Callers that
  6777. // parse such a list must work on the combined value; reading only the first
  6778. // occurrence silently drops whatever the later field lines carry.
  6779. inline std::string get_combined_header_value(const Headers &headers,
  6780. const std::string &key) {
  6781. std::string combined;
  6782. auto rng = headers.equal_range(key);
  6783. for (auto it = rng.first; it != rng.second; ++it) {
  6784. // RFC 9110 Section 5.6.1.2: a recipient has to parse and ignore empty list
  6785. // elements, so an empty field line must not contribute a bare comma to the
  6786. // combined value.
  6787. if (it->second.empty()) { continue; }
  6788. if (!combined.empty()) { combined += ", "; }
  6789. combined += it->second;
  6790. }
  6791. return combined;
  6792. }
  6793. inline bool has_header_token(const Headers &headers, const std::string &key,
  6794. const std::string &token) {
  6795. // RFC 9110 7.6.1: a comma-separated token list field such as Connection may
  6796. // carry several tokens, and RFC 9110 5.3 lets that list be split across
  6797. // several lines. Match complete tokens rather than searching the raw value,
  6798. // so that a value such as "notupgrade" is not read as the token "upgrade".
  6799. auto rng = headers.equal_range(key);
  6800. for (auto it = rng.first; it != rng.second; ++it) {
  6801. const auto &value = it->second;
  6802. if (split_find(value.data(), value.data() + value.size(), ',',
  6803. [&](const char *b, const char *e) {
  6804. return case_ignore::equal(std::string(b, e), token);
  6805. })) {
  6806. return true;
  6807. }
  6808. }
  6809. return false;
  6810. }
  6811. template <typename Map>
  6812. inline typename Map::mapped_type
  6813. get_multimap_value(const Map &m, const std::string &key, size_t id) {
  6814. auto rng = m.equal_range(key);
  6815. auto it = rng.first;
  6816. std::advance(it, static_cast<ssize_t>(id));
  6817. if (it != rng.second) { return it->second; }
  6818. return typename Map::mapped_type();
  6819. }
  6820. inline void set_header(Headers &headers, const std::string &key,
  6821. const std::string &val) {
  6822. if (fields::is_field_valid(key, val)) { headers.emplace(key, val); }
  6823. }
  6824. inline bool read_headers(Stream &strm, Headers &headers) {
  6825. const auto bufsiz = 2048;
  6826. char buf[bufsiz];
  6827. stream_line_reader line_reader(strm, buf, bufsiz);
  6828. size_t header_count = 0;
  6829. for (;;) {
  6830. if (!line_reader.getline()) { return false; }
  6831. // Check if the line ends with CRLF.
  6832. auto line_terminator_len = 2;
  6833. if (line_reader.end_with_crlf()) {
  6834. // Blank line indicates end of headers.
  6835. if (line_reader.size() == 2) { break; }
  6836. } else {
  6837. #ifdef CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR
  6838. // Blank line indicates end of headers.
  6839. if (line_reader.size() == 1) { break; }
  6840. line_terminator_len = 1;
  6841. #else
  6842. continue; // Skip invalid line.
  6843. #endif
  6844. }
  6845. if (line_reader.size() > CPPHTTPLIB_HEADER_MAX_LENGTH) { return false; }
  6846. // Check header count limit
  6847. if (header_count >= CPPHTTPLIB_HEADER_MAX_COUNT) { return false; }
  6848. // Exclude line terminator
  6849. auto end = line_reader.ptr() + line_reader.size() - line_terminator_len;
  6850. if (!parse_header(line_reader.ptr(), end,
  6851. [&](const std::string &key, const std::string &val) {
  6852. headers.emplace(key, val);
  6853. })) {
  6854. return false;
  6855. }
  6856. header_count++;
  6857. }
  6858. // RFC 9110 Section 8.6: Reject requests with multiple Content-Length
  6859. // headers that have different values to prevent request smuggling.
  6860. auto cl_range = headers.equal_range("Content-Length");
  6861. if (cl_range.first != cl_range.second) {
  6862. const auto &first_val = cl_range.first->second;
  6863. for (auto it = std::next(cl_range.first); it != cl_range.second; ++it) {
  6864. if (it->second != first_val) { return false; }
  6865. }
  6866. }
  6867. return true;
  6868. }
  6869. inline bool parse_status_line(const char *line, std::string &version,
  6870. int &status, std::string &reason) {
  6871. #ifdef CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR
  6872. thread_local const std::regex re("(HTTP/1\\.[01]) (\\d{3})(?: (.*?))?\r?\n");
  6873. #else
  6874. thread_local const std::regex re("(HTTP/1\\.[01]) (\\d{3})(?: (.*?))?\r\n");
  6875. #endif
  6876. std::cmatch m;
  6877. if (!std::regex_match(line, m, re)) { return false; }
  6878. version = std::string(m[1]);
  6879. status = std::stoi(std::string(m[2]));
  6880. reason = std::string(m[3]);
  6881. return true;
  6882. }
  6883. // Everything WebSocketClient::connect() reports about the upgrade exchange.
  6884. // status stays -1 until a status line is parsed, mirroring stream::Result.
  6885. struct WebSocketUpgradeResponse {
  6886. Error error = Error::Success;
  6887. int status = -1;
  6888. Headers headers;
  6889. std::string selected_subprotocol;
  6890. };
  6891. inline bool
  6892. read_websocket_upgrade_response(Stream &strm,
  6893. const std::string &expected_accept,
  6894. const std::string &offered_subprotocols,
  6895. WebSocketUpgradeResponse &upgrade) {
  6896. // Read status line
  6897. const auto bufsiz = 2048;
  6898. char buf[bufsiz];
  6899. stream_line_reader line_reader(strm, buf, bufsiz);
  6900. if (!line_reader.getline()) {
  6901. upgrade.error = Error::Read;
  6902. return false;
  6903. }
  6904. std::string version;
  6905. std::string reason;
  6906. if (!parse_status_line(line_reader.ptr(), version, upgrade.status, reason)) {
  6907. upgrade.error = Error::WebSocketHandshake;
  6908. return false;
  6909. }
  6910. // Read the headers even for a rejection so the caller can see why the
  6911. // server refused the upgrade. A non-101 response may carry a body; it is
  6912. // deliberately left unread since the caller closes the socket right away.
  6913. if (!read_headers(strm, upgrade.headers)) {
  6914. upgrade.error = Error::Read;
  6915. return false;
  6916. }
  6917. const auto &headers = upgrade.headers;
  6918. if (upgrade.status != StatusCode::SwitchingProtocol_101) {
  6919. upgrade.error = Error::WebSocketHandshake;
  6920. return false;
  6921. }
  6922. // Verify Upgrade: websocket (a comma-separated list, matched per token)
  6923. if (!has_header_token(headers, "Upgrade", "websocket")) {
  6924. upgrade.error = Error::WebSocketHandshake;
  6925. return false;
  6926. }
  6927. // Verify Connection: Upgrade
  6928. if (!has_header_token(headers, "Connection", "upgrade")) {
  6929. upgrade.error = Error::WebSocketHandshake;
  6930. return false;
  6931. }
  6932. // Verify Sec-WebSocket-Accept header value
  6933. auto it = headers.find("Sec-WebSocket-Accept");
  6934. if (it == headers.end() || it->second != expected_accept) {
  6935. upgrade.error = Error::WebSocketHandshake;
  6936. return false;
  6937. }
  6938. // Extract negotiated subprotocol
  6939. auto proto_it = headers.find("Sec-WebSocket-Protocol");
  6940. if (proto_it != headers.end()) {
  6941. upgrade.selected_subprotocol = proto_it->second;
  6942. }
  6943. // Verify the subprotocol is one the client offered (RFC 6455 4.1)
  6944. if (!upgrade.selected_subprotocol.empty()) {
  6945. auto was_offered = false;
  6946. split(offered_subprotocols.data(),
  6947. offered_subprotocols.data() + offered_subprotocols.size(), ',',
  6948. [&](const char *b, const char *e) {
  6949. if (std::string(b, e) == upgrade.selected_subprotocol) {
  6950. was_offered = true;
  6951. }
  6952. });
  6953. if (!was_offered) {
  6954. upgrade.error = Error::WebSocketHandshake;
  6955. return false;
  6956. }
  6957. }
  6958. return true;
  6959. }
  6960. enum class ReadContentResult {
  6961. Success, // Successfully read the content
  6962. PayloadTooLarge, // The content exceeds the specified payload limit
  6963. Error // An error occurred while reading the content
  6964. };
  6965. inline ReadContentResult read_content_with_length(
  6966. Stream &strm, size_t len, DownloadProgress progress,
  6967. ContentReceiverWithProgress out,
  6968. size_t payload_max_length = (std::numeric_limits<size_t>::max)()) {
  6969. char buf[CPPHTTPLIB_RECV_BUFSIZ];
  6970. detail::BodyReader br;
  6971. br.stream = &strm;
  6972. br.has_content_length = true;
  6973. br.content_length = len;
  6974. br.payload_max_length = payload_max_length;
  6975. br.chunked = false;
  6976. br.bytes_read = 0;
  6977. br.last_error = Error::Success;
  6978. size_t r = 0;
  6979. while (r < len) {
  6980. auto read_len = static_cast<size_t>(len - r);
  6981. auto to_read = (std::min)(read_len, CPPHTTPLIB_RECV_BUFSIZ);
  6982. auto n = detail::read_body_content(&strm, br, buf, to_read);
  6983. if (n <= 0) {
  6984. // Check if it was a payload size error
  6985. if (br.last_error == Error::ExceedMaxPayloadSize) {
  6986. return ReadContentResult::PayloadTooLarge;
  6987. }
  6988. return ReadContentResult::Error;
  6989. }
  6990. if (!out(buf, static_cast<size_t>(n), r, len)) {
  6991. return ReadContentResult::Error;
  6992. }
  6993. r += static_cast<size_t>(n);
  6994. if (progress) {
  6995. if (!progress(r, len)) { return ReadContentResult::Error; }
  6996. }
  6997. }
  6998. return ReadContentResult::Success;
  6999. }
  7000. inline ReadContentResult
  7001. read_content_without_length(Stream &strm, size_t payload_max_length,
  7002. ContentReceiverWithProgress out) {
  7003. char buf[CPPHTTPLIB_RECV_BUFSIZ];
  7004. size_t r = 0;
  7005. for (;;) {
  7006. auto n = strm.read(buf, CPPHTTPLIB_RECV_BUFSIZ);
  7007. if (n == 0) { return ReadContentResult::Success; }
  7008. if (n < 0) { return ReadContentResult::Error; }
  7009. // Check if adding this data would exceed the payload limit
  7010. if (r > payload_max_length ||
  7011. payload_max_length - r < static_cast<size_t>(n)) {
  7012. return ReadContentResult::PayloadTooLarge;
  7013. }
  7014. if (!out(buf, static_cast<size_t>(n), r, 0)) {
  7015. return ReadContentResult::Error;
  7016. }
  7017. r += static_cast<size_t>(n);
  7018. }
  7019. return ReadContentResult::Success;
  7020. }
  7021. template <typename T>
  7022. inline ReadContentResult read_content_chunked(Stream &strm, T &x,
  7023. size_t payload_max_length,
  7024. ContentReceiverWithProgress out) {
  7025. detail::ChunkedDecoder dec(strm);
  7026. char buf[CPPHTTPLIB_RECV_BUFSIZ];
  7027. size_t total_len = 0;
  7028. for (;;) {
  7029. size_t chunk_offset = 0;
  7030. size_t chunk_total = 0;
  7031. auto n = dec.read_payload(buf, sizeof(buf), chunk_offset, chunk_total);
  7032. if (n < 0) { return ReadContentResult::Error; }
  7033. if (n == 0) {
  7034. if (!dec.parse_trailers_into(x.trailers, x.headers)) {
  7035. return ReadContentResult::Error;
  7036. }
  7037. return ReadContentResult::Success;
  7038. }
  7039. if (total_len > payload_max_length ||
  7040. payload_max_length - total_len < static_cast<size_t>(n)) {
  7041. return ReadContentResult::PayloadTooLarge;
  7042. }
  7043. if (!out(buf, static_cast<size_t>(n), chunk_offset, chunk_total)) {
  7044. return ReadContentResult::Error;
  7045. }
  7046. total_len += static_cast<size_t>(n);
  7047. }
  7048. }
  7049. inline bool is_chunked_transfer_encoding(const Headers &headers) {
  7050. // RFC 9112 6.1: a message is framed with the chunked coding when "chunked"
  7051. // is the final transfer coding. A single field value may list several
  7052. // codings ("gzip, chunked"), and RFC 9110 5.3 lets that list be split across
  7053. // several Transfer-Encoding lines, which combine into one comma-separated
  7054. // list in the order the lines were received. Headers preserves that order,
  7055. // so the final coding is the last token of the last line. Match it
  7056. // case-insensitively rather than comparing the whole value against
  7057. // "chunked".
  7058. //
  7059. // Security: reading a chunked message as unframed leaves its body in the
  7060. // socket, where a keep-alive connection parses it as a smuggled request.
  7061. // Server::process_request() answers 400 and closes when the final coding is
  7062. // not chunked, so a request whose framing cannot be determined never
  7063. // reaches the "no body" path.
  7064. auto rng = headers.equal_range("Transfer-Encoding");
  7065. if (rng.first == rng.second) { return false; }
  7066. // Cleared per line, so a trailing line carrying no coding at all leaves the
  7067. // combined list ending in nothing rather than inheriting the line before it.
  7068. std::string last_coding;
  7069. for (auto it = rng.first; it != rng.second; ++it) {
  7070. const auto &value = it->second;
  7071. last_coding.clear();
  7072. split(value.data(), value.data() + value.size(), ',',
  7073. [&](const char *b, const char *e) { last_coding.assign(b, e); });
  7074. }
  7075. return case_ignore::equal(last_coding, "chunked");
  7076. }
  7077. inline bool has_conflicting_content_length(const Headers &headers) {
  7078. // RFC 9112 §6.3: a message carrying both Transfer-Encoding and a non-zero
  7079. // Content-Length is framed ambiguously. The body readers here delimit it by
  7080. // the transfer coding and drop Content-Length, while an intermediary may do
  7081. // the reverse, so the two disagree on where the body ends and a reused
  7082. // connection is desynchronised (request/response smuggling). Content-Length:
  7083. // 0 is tolerated for compatibility with existing peers.
  7084. return has_header(headers, "Transfer-Encoding") &&
  7085. get_header_value_u64(headers, "Content-Length", 0, 0) > 0;
  7086. }
  7087. template <typename T, typename U>
  7088. bool prepare_content_receiver(T &x, int &status,
  7089. ContentReceiverWithProgress receiver,
  7090. bool decompress, size_t payload_max_length,
  7091. bool &exceed_payload_max_length, U callback) {
  7092. if (decompress) {
  7093. auto encoding = get_combined_header_value(x.headers, "Content-Encoding");
  7094. std::unique_ptr<decompressor> decompressor;
  7095. if (!encoding.empty()) {
  7096. // A coding we know about but were not built with is an error. An
  7097. // unrecognized coding (including "identity") is left alone and the
  7098. // payload is passed through as-is, since some servers misuse the header,
  7099. // e.g. by sending a character set such as "Content-Encoding: UTF-8".
  7100. decompressor = detail::create_decompressor(encoding);
  7101. if (!decompressor && detail::is_known_content_encoding(encoding)) {
  7102. status = StatusCode::UnsupportedMediaType_415;
  7103. return false;
  7104. }
  7105. }
  7106. if (decompressor) {
  7107. if (decompressor->is_valid()) {
  7108. size_t decompressed_size = 0;
  7109. ContentReceiverWithProgress out = [&](const char *buf, size_t n,
  7110. size_t off, size_t len) {
  7111. return decompressor->decompress(
  7112. buf, n, [&](const char *buf2, size_t n2) {
  7113. // Guard against zip-bomb: check
  7114. // decompressed size against limit.
  7115. if (payload_max_length > 0 &&
  7116. (decompressed_size >= payload_max_length ||
  7117. n2 > payload_max_length - decompressed_size)) {
  7118. exceed_payload_max_length = true;
  7119. return false;
  7120. }
  7121. decompressed_size += n2;
  7122. return receiver(buf2, n2, off, len);
  7123. });
  7124. };
  7125. return callback(std::move(out));
  7126. } else {
  7127. status = StatusCode::InternalServerError_500;
  7128. return false;
  7129. }
  7130. }
  7131. }
  7132. ContentReceiverWithProgress out = [&](const char *buf, size_t n, size_t off,
  7133. size_t len) {
  7134. return receiver(buf, n, off, len);
  7135. };
  7136. return callback(std::move(out));
  7137. }
  7138. template <typename T>
  7139. bool read_content(Stream &strm, T &x, size_t payload_max_length, int &status,
  7140. DownloadProgress progress,
  7141. ContentReceiverWithProgress receiver, bool decompress) {
  7142. bool exceed_payload_max_length = false;
  7143. return prepare_content_receiver(
  7144. x, status, std::move(receiver), decompress, payload_max_length,
  7145. exceed_payload_max_length, [&](const ContentReceiverWithProgress &out) {
  7146. auto ret = true;
  7147. // Note: exceed_payload_max_length may also be set by the decompressor
  7148. // wrapper in prepare_content_receiver when the decompressed payload
  7149. // size exceeds the limit.
  7150. if (is_chunked_transfer_encoding(x.headers)) {
  7151. auto result = read_content_chunked(strm, x, payload_max_length, out);
  7152. if (result == ReadContentResult::Success) {
  7153. ret = true;
  7154. } else if (result == ReadContentResult::PayloadTooLarge) {
  7155. exceed_payload_max_length = true;
  7156. ret = false;
  7157. } else {
  7158. ret = false;
  7159. }
  7160. } else if (!has_header(x.headers, "Content-Length")) {
  7161. auto result =
  7162. read_content_without_length(strm, payload_max_length, out);
  7163. if (result == ReadContentResult::Success) {
  7164. ret = true;
  7165. } else if (result == ReadContentResult::PayloadTooLarge) {
  7166. exceed_payload_max_length = true;
  7167. ret = false;
  7168. } else {
  7169. ret = false;
  7170. }
  7171. } else {
  7172. auto is_invalid_value = false;
  7173. auto len = get_header_value_u64(x.headers, "Content-Length",
  7174. (std::numeric_limits<size_t>::max)(),
  7175. 0, is_invalid_value);
  7176. if (is_invalid_value) {
  7177. ret = false;
  7178. } else if (len > 0) {
  7179. auto result = read_content_with_length(
  7180. strm, len, std::move(progress), out, payload_max_length);
  7181. ret = (result == ReadContentResult::Success);
  7182. if (result == ReadContentResult::PayloadTooLarge) {
  7183. exceed_payload_max_length = true;
  7184. }
  7185. }
  7186. }
  7187. if (!ret) {
  7188. status = exceed_payload_max_length ? StatusCode::PayloadTooLarge_413
  7189. : StatusCode::BadRequest_400;
  7190. }
  7191. return ret;
  7192. });
  7193. }
  7194. inline ssize_t write_request_line(Stream &strm, const std::string &method,
  7195. const std::string &path) {
  7196. // Neither the method nor the request target may carry CR/LF, SP or other
  7197. // control octets; otherwise a value smuggled into either splits the request
  7198. // line and injects headers or a whole request.
  7199. if (!fields::is_token(method)) { return -1; }
  7200. if (!fields::is_request_target(path)) { return -1; }
  7201. std::string s = method;
  7202. s += ' ';
  7203. s += path;
  7204. s += " HTTP/1.1\r\n";
  7205. return strm.write(s.data(), s.size());
  7206. }
  7207. inline ssize_t write_response_line(Stream &strm, int status) {
  7208. std::string s = "HTTP/1.1 ";
  7209. s += std::to_string(status);
  7210. s += ' ';
  7211. s += httplib::status_message(status);
  7212. s += "\r\n";
  7213. return strm.write(s.data(), s.size());
  7214. }
  7215. inline ssize_t write_headers(Stream &strm, const Headers &headers) {
  7216. ssize_t write_len = 0;
  7217. for (const auto &x : headers) {
  7218. // Skip fields with invalid names or values to prevent response splitting
  7219. // via CR/LF injection, matching set_header(). The client validates request
  7220. // headers up front in check_and_write_headers, but the server passes
  7221. // res.headers straight to this writer, and res.headers is a public field
  7222. // an application can populate directly with request-derived values.
  7223. if (!fields::is_field_valid(x.first, x.second)) { continue; }
  7224. std::string s;
  7225. s = x.first;
  7226. s += ": ";
  7227. s += x.second;
  7228. s += "\r\n";
  7229. auto len = strm.write(s.data(), s.size());
  7230. if (len < 0) { return len; }
  7231. write_len += len;
  7232. }
  7233. auto len = strm.write("\r\n");
  7234. if (len < 0) { return len; }
  7235. write_len += len;
  7236. return write_len;
  7237. }
  7238. inline bool write_data(Stream &strm, const char *d, size_t l) {
  7239. size_t offset = 0;
  7240. while (offset < l) {
  7241. auto length = strm.write(d + offset, l - offset);
  7242. if (length < 0) { return false; }
  7243. offset += static_cast<size_t>(length);
  7244. }
  7245. return true;
  7246. }
  7247. template <typename T>
  7248. inline bool write_content_with_progress(Stream &strm,
  7249. const ContentProvider &content_provider,
  7250. size_t offset, size_t length,
  7251. T is_shutting_down,
  7252. const UploadProgress &upload_progress,
  7253. Error &error) {
  7254. size_t end_offset = offset + length;
  7255. size_t start_offset = offset;
  7256. auto ok = true;
  7257. auto finished = false;
  7258. DataSink data_sink;
  7259. data_sink.write = [&](const char *d, size_t l) -> bool {
  7260. if (ok) {
  7261. if (write_data(strm, d, l)) {
  7262. offset += l;
  7263. if (upload_progress && length > 0) {
  7264. size_t current_written = offset - start_offset;
  7265. if (!upload_progress(current_written, length)) {
  7266. ok = false;
  7267. return false;
  7268. }
  7269. }
  7270. } else {
  7271. ok = false;
  7272. }
  7273. }
  7274. return ok;
  7275. };
  7276. data_sink.is_writable = [&]() -> bool { return strm.is_peer_alive(); };
  7277. // The body is framed by `length`, so a provider that reports itself done
  7278. // early has truncated it. Record that and let the short-body check below
  7279. // fail the write, rather than calling the provider again forever.
  7280. data_sink.done = [&]() { finished = true; };
  7281. while (offset < end_offset && !finished && !is_shutting_down()) {
  7282. auto last_offset = offset;
  7283. if (!strm.wait_writable() || !strm.is_peer_alive()) {
  7284. error = Error::Write;
  7285. return false;
  7286. } else if (!content_provider(offset, end_offset - offset, data_sink)) {
  7287. error = Error::Canceled;
  7288. return false;
  7289. } else if (!ok) {
  7290. error = Error::Write;
  7291. return false;
  7292. }
  7293. // A provider that reports success without writing anything and without
  7294. // reporting itself done gets handed the same offset and length again on
  7295. // the next pass, so it would spin here for as long as the peer stays
  7296. // connected. Treat making no progress as a short body, like done() early.
  7297. if (!finished && offset == last_offset) {
  7298. error = Error::Write;
  7299. return false;
  7300. }
  7301. }
  7302. if (offset < end_offset) { // done() called early, or is_shutting_down()
  7303. error = Error::Write;
  7304. return false;
  7305. }
  7306. error = Error::Success;
  7307. return true;
  7308. }
  7309. template <typename T>
  7310. inline bool write_content(Stream &strm, const ContentProvider &content_provider,
  7311. size_t offset, size_t length, T is_shutting_down,
  7312. Error &error) {
  7313. return write_content_with_progress<T>(strm, content_provider, offset, length,
  7314. is_shutting_down, nullptr, error);
  7315. }
  7316. template <typename T>
  7317. inline bool write_content(Stream &strm, const ContentProvider &content_provider,
  7318. size_t offset, size_t length,
  7319. const T &is_shutting_down) {
  7320. auto error = Error::Success;
  7321. return write_content(strm, content_provider, offset, length, is_shutting_down,
  7322. error);
  7323. }
  7324. template <typename T>
  7325. inline bool
  7326. write_content_without_length(Stream &strm,
  7327. const ContentProvider &content_provider,
  7328. const T &is_shutting_down) {
  7329. size_t offset = 0;
  7330. auto data_available = true;
  7331. auto ok = true;
  7332. DataSink data_sink;
  7333. data_sink.write = [&](const char *d, size_t l) -> bool {
  7334. if (ok) {
  7335. offset += l;
  7336. if (!write_data(strm, d, l)) { ok = false; }
  7337. }
  7338. return ok;
  7339. };
  7340. data_sink.is_writable = [&]() -> bool { return strm.is_peer_alive(); };
  7341. data_sink.done = [&](void) { data_available = false; };
  7342. while (data_available && !is_shutting_down()) {
  7343. if (!strm.wait_writable() || !strm.is_peer_alive()) {
  7344. return false;
  7345. } else if (!content_provider(offset, 0, data_sink)) {
  7346. return false;
  7347. } else if (!ok) {
  7348. return false;
  7349. }
  7350. }
  7351. return !data_available; // true only if done() was called, false if shutting
  7352. // down
  7353. }
  7354. // Runs a known-length content provider to completion and compresses what it
  7355. // writes into `out`. Nothing is buffered in identity form: a provider backed
  7356. // by an mmap hands the compressor a pointer straight into the mapping.
  7357. inline bool compress_content_provider(const ContentProvider &content_provider,
  7358. size_t length, compressor &cmp,
  7359. std::string &out) {
  7360. size_t offset = 0;
  7361. auto ok = true;
  7362. auto finished = false;
  7363. DataSink data_sink;
  7364. auto append = [&](const char *data, size_t data_len) {
  7365. out.append(data, data_len);
  7366. return true;
  7367. };
  7368. data_sink.write = [&](const char *d, size_t l) -> bool {
  7369. if (!ok) { return false; }
  7370. offset += l;
  7371. if (l > 0 && !cmp.compress(d, l, false, append)) { ok = false; }
  7372. return ok;
  7373. };
  7374. // The body is framed by `length`, so a provider that reports itself done
  7375. // early has truncated it; the short-body check below turns that into a
  7376. // failure rather than calling the provider again forever.
  7377. data_sink.done = [&]() { finished = true; };
  7378. while (offset < length && !finished) {
  7379. auto prev_offset = offset;
  7380. if (!content_provider(offset, length - offset, data_sink) || !ok) {
  7381. return false;
  7382. }
  7383. // No Stream to block on here, so a provider that keeps returning true
  7384. // without writing would spin. Treat a pass that made no progress as a
  7385. // failure.
  7386. if (offset == prev_offset) { return false; }
  7387. }
  7388. if (offset != length) { return false; }
  7389. return cmp.compress(nullptr, 0, true, append);
  7390. }
  7391. // Serves `m` as the response body. `set_content_provider()` clears the coding
  7392. // and the file flag, so recording them has to come after; keeping all of it
  7393. // here means a third file-serving path cannot get that order wrong.
  7394. inline void set_file_content_provider(Response &res,
  7395. const std::shared_ptr<mmap> &m,
  7396. const std::string &content_type,
  7397. EncodingType encoding) {
  7398. res.set_content_provider(
  7399. m->size(), content_type,
  7400. [m](size_t offset, size_t length, DataSink &sink) -> bool {
  7401. sink.write(m->data() + offset, length);
  7402. return true;
  7403. });
  7404. res.is_file_content_provider_ = true;
  7405. res.content_coding_ = encoding;
  7406. }
  7407. template <typename T, typename U>
  7408. inline bool
  7409. write_content_chunked(Stream &strm, const ContentProvider &content_provider,
  7410. const T &is_shutting_down, U &compressor, Error &error) {
  7411. size_t offset = 0;
  7412. auto data_available = true;
  7413. auto ok = true;
  7414. DataSink data_sink;
  7415. data_sink.write = [&](const char *d, size_t l) -> bool {
  7416. // Only done()/done_with_trailer() end a chunked body. A pass with nothing
  7417. // to hand over is ordinary (an empty buffer popped off a queue), and a
  7418. // zero-length chunk is the terminator, so it must not be emitted here.
  7419. if (ok && l > 0) {
  7420. offset += l;
  7421. std::string payload;
  7422. if (compressor.compress(d, l, false,
  7423. [&](const char *data, size_t data_len) {
  7424. payload.append(data, data_len);
  7425. return true;
  7426. })) {
  7427. if (!payload.empty()) {
  7428. // Emit chunked response header and footer for each chunk
  7429. auto chunk =
  7430. from_i_to_hex(payload.size()) + "\r\n" + payload + "\r\n";
  7431. if (!write_data(strm, chunk.data(), chunk.size())) { ok = false; }
  7432. }
  7433. } else {
  7434. ok = false;
  7435. }
  7436. }
  7437. return ok;
  7438. };
  7439. data_sink.is_writable = [&]() -> bool { return strm.is_peer_alive(); };
  7440. auto done_with_trailer = [&](const Headers *trailer) {
  7441. if (!ok) { return; }
  7442. data_available = false;
  7443. std::string payload;
  7444. if (!compressor.compress(nullptr, 0, true,
  7445. [&](const char *data, size_t data_len) {
  7446. payload.append(data, data_len);
  7447. return true;
  7448. })) {
  7449. ok = false;
  7450. return;
  7451. }
  7452. if (!payload.empty()) {
  7453. // Emit chunked response header and footer for each chunk
  7454. auto chunk = from_i_to_hex(payload.size()) + "\r\n" + payload + "\r\n";
  7455. if (!write_data(strm, chunk.data(), chunk.size())) {
  7456. ok = false;
  7457. return;
  7458. }
  7459. }
  7460. constexpr const char done_marker[] = "0\r\n";
  7461. if (!write_data(strm, done_marker, str_len(done_marker))) { ok = false; }
  7462. // Trailer
  7463. if (trailer) {
  7464. for (const auto &kv : *trailer) {
  7465. // Skip fields with invalid names or values to prevent response
  7466. // splitting via CR/LF injection, matching set_header().
  7467. if (!fields::is_field_valid(kv.first, kv.second)) { continue; }
  7468. std::string field_line = kv.first + ": " + kv.second + "\r\n";
  7469. if (!write_data(strm, field_line.data(), field_line.size())) {
  7470. ok = false;
  7471. }
  7472. }
  7473. }
  7474. constexpr const char crlf[] = "\r\n";
  7475. if (!write_data(strm, crlf, str_len(crlf))) { ok = false; }
  7476. };
  7477. data_sink.done = [&](void) { done_with_trailer(nullptr); };
  7478. data_sink.done_with_trailer = [&](const Headers &trailer) {
  7479. done_with_trailer(&trailer);
  7480. };
  7481. while (data_available && !is_shutting_down()) {
  7482. if (!strm.wait_writable() || !strm.is_peer_alive()) {
  7483. error = Error::Write;
  7484. return false;
  7485. } else if (!content_provider(offset, 0, data_sink)) {
  7486. error = Error::Canceled;
  7487. return false;
  7488. } else if (!ok) {
  7489. error = Error::Write;
  7490. return false;
  7491. }
  7492. }
  7493. if (data_available) { // exited due to is_shutting_down(), not done()
  7494. error = Error::Write;
  7495. return false;
  7496. }
  7497. error = Error::Success;
  7498. return true;
  7499. }
  7500. template <typename T, typename U>
  7501. inline bool write_content_chunked(Stream &strm,
  7502. const ContentProvider &content_provider,
  7503. const T &is_shutting_down, U &compressor) {
  7504. auto error = Error::Success;
  7505. return write_content_chunked(strm, content_provider, is_shutting_down,
  7506. compressor, error);
  7507. }
  7508. template <typename T>
  7509. inline bool redirect(T &cli, Request &req, Response &res,
  7510. const std::string &path, const std::string &location,
  7511. Error &error) {
  7512. Request new_req = req;
  7513. new_req.path = path;
  7514. new_req.redirect_count_ -= 1;
  7515. if (res.status == StatusCode::SeeOther_303 &&
  7516. (req.method != "GET" && req.method != "HEAD")) {
  7517. new_req.method = "GET";
  7518. new_req.body.clear();
  7519. new_req.headers.clear();
  7520. new_req.content_length_ = 0;
  7521. new_req.content_provider_ = nullptr;
  7522. new_req.is_chunked_content_provider_ = false;
  7523. }
  7524. Response new_res;
  7525. auto ret = cli.send(new_req, new_res, error);
  7526. if (ret) {
  7527. req = std::move(new_req);
  7528. res = std::move(new_res);
  7529. if (res.location.empty()) { res.location = location; }
  7530. }
  7531. return ret;
  7532. }
  7533. inline std::string params_to_query_str(const Params &params) {
  7534. std::string query;
  7535. for (auto it = params.begin(); it != params.end(); ++it) {
  7536. if (it != params.begin()) { query += '&'; }
  7537. query += encode_query_component(it->first);
  7538. query += '=';
  7539. query += encode_query_component(it->second);
  7540. }
  7541. return query;
  7542. }
  7543. // Splits one "key=value" span of a query string at its first '='. A span with
  7544. // no '=' at all lands entirely in key, leaving val empty, which is how a bare
  7545. // "?flag" keeps its name.
  7546. inline void divide_query_pair(const char *b, const char *e, std::string &key,
  7547. std::string &val) {
  7548. divide(b, static_cast<std::size_t>(e - b), '=',
  7549. [&](const char *lhs_data, std::size_t lhs_size, const char *rhs_data,
  7550. std::size_t rhs_size) {
  7551. key.assign(lhs_data, lhs_size);
  7552. val.assign(rhs_data, rhs_size);
  7553. });
  7554. }
  7555. inline void parse_query_text(const char *data, std::size_t size,
  7556. Params &params) {
  7557. std::set<std::string> cache;
  7558. split(data, data + size, '&', [&](const char *b, const char *e) {
  7559. std::string kv(b, e);
  7560. if (cache.find(kv) != cache.end()) { return; }
  7561. cache.insert(std::move(kv));
  7562. std::string key;
  7563. std::string val;
  7564. divide_query_pair(b, e, key, val);
  7565. if (!key.empty()) {
  7566. params.emplace(decode_query_component(key), decode_query_component(val));
  7567. }
  7568. });
  7569. }
  7570. inline void parse_query_text(const std::string &s, Params &params) {
  7571. parse_query_text(s.data(), s.size(), params);
  7572. }
  7573. // Normalize a query string by decoding and re-encoding each key/value pair
  7574. // while preserving the original parameter order. This avoids double-encoding
  7575. // and ensures consistent encoding. It works on the raw string rather than
  7576. // parsing into Params and re-serializing, because that round trip cannot
  7577. // reproduce the input: params_to_query_str() always emits '=', so a bare
  7578. // "flag" would come back as "flag=", and parse_query_text() drops exactly
  7579. // duplicated pairs.
  7580. inline std::string normalize_query_string(const std::string &query) {
  7581. std::string result;
  7582. split(query.data(), query.data() + query.size(), '&',
  7583. [&](const char *b, const char *e) {
  7584. std::string key;
  7585. std::string val;
  7586. divide_query_pair(b, e, key, val);
  7587. if (!key.empty()) {
  7588. auto dec_key = decode_query_component(key);
  7589. auto dec_val = decode_query_component(val);
  7590. if (!result.empty()) { result += '&'; }
  7591. result += encode_query_component(dec_key);
  7592. if (!val.empty() || std::find(b, e, '=') != e) {
  7593. result += '=';
  7594. result += encode_query_component(dec_val);
  7595. }
  7596. }
  7597. });
  7598. return result;
  7599. }
  7600. // Build the request target that goes on the wire from a caller-supplied path.
  7601. // Shared by the buffered send path and the streaming API so that both put the
  7602. // same bytes in the request line for the same input.
  7603. inline std::string encode_request_target(const std::string &target,
  7604. bool path_encode) {
  7605. // `substr(0, npos)` yields the whole string, which is what the no-query
  7606. // case needs.
  7607. auto query_pos = target.find('?');
  7608. auto path_part = target.substr(0, query_pos);
  7609. std::string query_part;
  7610. if (query_pos != std::string::npos) {
  7611. query_part = target.substr(query_pos + 1);
  7612. }
  7613. auto result = path_encode ? encode_path(path_part) : std::move(path_part);
  7614. if (!query_part.empty()) {
  7615. // When path encoding is disabled the caller has supplied an already-encoded
  7616. // target and expects the exact bytes to be sent on the wire, so skip
  7617. // normalization for the query too. Normalizing would decode-then-re-encode
  7618. // it and corrupt pre-encoded binary payloads (e.g. turning `%20` into `+`,
  7619. // which a strict RFC 3986 server decodes back as `+`, not a space).
  7620. if (path_encode) {
  7621. auto normalized = normalize_query_string(query_part);
  7622. if (!normalized.empty()) {
  7623. result += '?';
  7624. result += normalized;
  7625. }
  7626. } else {
  7627. result += '?';
  7628. result += query_part;
  7629. }
  7630. }
  7631. return result;
  7632. }
  7633. inline bool parse_multipart_boundary(const std::string &content_type,
  7634. std::string &boundary) {
  7635. std::map<std::string, std::string> params;
  7636. extract_media_type(content_type, &params);
  7637. auto it = params.find("boundary");
  7638. if (it == params.end()) { return false; }
  7639. boundary = it->second;
  7640. // RFC 2046 5.1.1 caps a boundary at 70 characters. The parser scans the body
  7641. // for "--" + boundary, so a body crafted to repeat that delimiter's leading
  7642. // bytes costs a nearly full comparison at nearly every position: the
  7643. // boundary's length multiplies the worst-case cost of scanning a body.
  7644. return !boundary.empty() && boundary.size() <= 70;
  7645. }
  7646. inline void parse_disposition_params(const std::string &s, Params &params) {
  7647. std::set<std::string> cache;
  7648. split_unquoted(s.data(), s.data() + s.size(), ';',
  7649. [&](const char *b, const char *e) {
  7650. std::string kv(b, e);
  7651. if (cache.find(kv) != cache.end()) { return; }
  7652. cache.insert(kv);
  7653. std::string key;
  7654. std::string val;
  7655. divide_param_pair(b, e, key, val);
  7656. if (!key.empty()) {
  7657. params.emplace(trim_double_quotes_copy(key),
  7658. trim_double_quotes_copy(val));
  7659. }
  7660. });
  7661. }
  7662. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  7663. inline bool parse_range_header(const std::string &s, Ranges &ranges) {
  7664. #else
  7665. inline bool parse_range_header(const std::string &s, Ranges &ranges) try {
  7666. #endif
  7667. auto is_valid = [](const std::string &str) {
  7668. return std::all_of(str.cbegin(), str.cend(), is_ascii_digit);
  7669. };
  7670. if (s.size() > 7 && s.compare(0, 6, "bytes=") == 0) {
  7671. const auto pos = static_cast<size_t>(6);
  7672. const auto len = static_cast<size_t>(s.size() - 6);
  7673. auto all_valid_ranges = true;
  7674. split(&s[pos], &s[pos + len], ',', [&](const char *b, const char *e) {
  7675. if (!all_valid_ranges) { return; }
  7676. const auto it = std::find(b, e, '-');
  7677. if (it == e) {
  7678. all_valid_ranges = false;
  7679. return;
  7680. }
  7681. const auto lhs = std::string(b, it);
  7682. const auto rhs = std::string(it + 1, e);
  7683. if (!is_valid(lhs) || !is_valid(rhs)) {
  7684. all_valid_ranges = false;
  7685. return;
  7686. }
  7687. ssize_t first = -1;
  7688. if (!lhs.empty()) {
  7689. // Reject an overflowing first-byte-pos; treating it as absent (-1)
  7690. // would turn the range into a suffix range.
  7691. auto res =
  7692. detail::from_chars(lhs.data(), lhs.data() + lhs.size(), first);
  7693. if (res.ec != std::errc{}) {
  7694. all_valid_ranges = false;
  7695. return;
  7696. }
  7697. }
  7698. ssize_t last = -1;
  7699. if (!rhs.empty()) {
  7700. // An overflowing last-byte-pos is past any content length, so keeping
  7701. // -1 ("remainder", RFC 9110 14.1.2) is correct here.
  7702. ssize_t v;
  7703. auto res = detail::from_chars(rhs.data(), rhs.data() + rhs.size(), v);
  7704. if (res.ec == std::errc{}) { last = v; }
  7705. }
  7706. if ((first == -1 && last == -1) ||
  7707. (first != -1 && last != -1 && first > last)) {
  7708. all_valid_ranges = false;
  7709. return;
  7710. }
  7711. ranges.emplace_back(first, last);
  7712. });
  7713. return all_valid_ranges && !ranges.empty();
  7714. }
  7715. return false;
  7716. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  7717. }
  7718. #else
  7719. } catch (...) { return false; }
  7720. #endif
  7721. inline bool parse_accept_header(const std::string &s,
  7722. std::vector<std::string> &content_types) {
  7723. content_types.clear();
  7724. // Empty string is considered valid (no preference)
  7725. if (s.empty()) { return true; }
  7726. struct AcceptEntry {
  7727. std::string media_type;
  7728. double quality;
  7729. int order;
  7730. };
  7731. std::vector<AcceptEntry> entries;
  7732. int order = 0;
  7733. bool has_invalid_entry = false;
  7734. // Split by comma and parse each entry. RFC 9110 Section 5.6.1.2: a recipient
  7735. // has to parse and ignore empty list elements, so a leading, trailing or
  7736. // doubled comma must not turn a legal Accept value into 400 Bad Request.
  7737. // split() skips them, and the header length limit bounds how many a sender
  7738. // can send, so ignoring all of them cannot be used as a denial-of-service
  7739. // vector.
  7740. split(s.data(), s.data() + s.size(), ',', [&](const char *b, const char *e) {
  7741. std::string entry(b, e);
  7742. entry = trim_copy(entry);
  7743. AcceptEntry accept_entry;
  7744. accept_entry.order = order++;
  7745. if (!parse_quality(entry.data(), entry.data() + entry.size(),
  7746. accept_entry.media_type, accept_entry.quality)) {
  7747. has_invalid_entry = true;
  7748. return;
  7749. }
  7750. // Remove additional parameters from media type
  7751. accept_entry.media_type = extract_media_type(accept_entry.media_type);
  7752. // Basic validation of media type format
  7753. if (accept_entry.media_type.empty()) {
  7754. has_invalid_entry = true;
  7755. return;
  7756. }
  7757. // Check for basic media type format (should contain '/' or be '*')
  7758. if (accept_entry.media_type != "*" &&
  7759. accept_entry.media_type.find('/') == std::string::npos) {
  7760. has_invalid_entry = true;
  7761. return;
  7762. }
  7763. entries.push_back(std::move(accept_entry));
  7764. });
  7765. // Return false if any invalid entry was found
  7766. if (has_invalid_entry) { return false; }
  7767. // Sort by quality (descending), then by original order (ascending)
  7768. std::sort(entries.begin(), entries.end(),
  7769. [](const AcceptEntry &a, const AcceptEntry &b) {
  7770. if (a.quality != b.quality) {
  7771. return a.quality > b.quality; // Higher quality first
  7772. }
  7773. return a.order < b.order; // Earlier order first for same quality
  7774. });
  7775. // Extract sorted media types
  7776. content_types.reserve(entries.size());
  7777. for (auto &entry : entries) {
  7778. content_types.push_back(std::move(entry.media_type));
  7779. }
  7780. return true;
  7781. }
  7782. class FormDataParser {
  7783. public:
  7784. FormDataParser() = default;
  7785. void set_boundary(std::string &&boundary) {
  7786. boundary_ = std::move(boundary);
  7787. dash_boundary_crlf_ = dash_ + boundary_ + crlf_;
  7788. crlf_dash_boundary_ = crlf_ + dash_ + boundary_;
  7789. }
  7790. bool is_valid() const { return is_valid_; }
  7791. bool parse(const char *buf, size_t n, const FormDataHeader &header_callback,
  7792. const ContentReceiver &content_callback) {
  7793. // Once the close delimiter has been seen the rest of the body is epilogue
  7794. // to be discarded (RFC 2046). Drop it without buffering so a large epilogue
  7795. // spread across reads is not copied in only to be erased right away.
  7796. if (state_ == 5) { return true; }
  7797. buf_append(buf, n);
  7798. while (buf_size() > 0) {
  7799. switch (state_) {
  7800. case 0: { // Initial boundary
  7801. auto pos = buf_find(dash_boundary_crlf_);
  7802. if (pos == buf_size()) {
  7803. // Not found yet: keep only a possible partial boundary at the tail so
  7804. // that a body which never contains the boundary cannot grow the
  7805. // buffer (and get rescanned from the start) without bound.
  7806. auto keep = dash_boundary_crlf_.size() - 1;
  7807. if (buf_size() > keep) { buf_erase(buf_size() - keep); }
  7808. return true;
  7809. }
  7810. buf_erase(pos + dash_boundary_crlf_.size());
  7811. state_ = 1;
  7812. break;
  7813. }
  7814. case 1: { // New entry
  7815. clear_file_info();
  7816. state_ = 2;
  7817. break;
  7818. }
  7819. case 2: { // Headers
  7820. auto pos = buf_find(crlf_);
  7821. if (pos > CPPHTTPLIB_HEADER_MAX_LENGTH) { return false; }
  7822. while (pos < buf_size()) {
  7823. // Empty line
  7824. if (pos == 0) {
  7825. if (!header_callback(file_)) {
  7826. is_valid_ = false;
  7827. return false;
  7828. }
  7829. buf_erase(crlf_.size());
  7830. state_ = 3;
  7831. break;
  7832. }
  7833. // Check header count limit
  7834. if (header_count_ >= CPPHTTPLIB_HEADER_MAX_COUNT) {
  7835. is_valid_ = false;
  7836. return false;
  7837. }
  7838. header_count_++;
  7839. const auto header = buf_head(pos);
  7840. if (!parse_header(header.data(), header.data() + header.size(),
  7841. [&](const std::string &, const std::string &) {})) {
  7842. is_valid_ = false;
  7843. return false;
  7844. }
  7845. // Parse and emplace space trimmed headers into a map
  7846. if (!parse_header(
  7847. header.data(), header.data() + header.size(),
  7848. [&](const std::string &key, const std::string &val) {
  7849. file_.headers.emplace(key, val);
  7850. })) {
  7851. is_valid_ = false;
  7852. return false;
  7853. }
  7854. constexpr const char header_content_type[] = "Content-Type:";
  7855. if (start_with_case_ignore(header, header_content_type)) {
  7856. file_.content_type =
  7857. trim_copy(header.substr(str_len(header_content_type)));
  7858. } else {
  7859. std::string disposition_params;
  7860. if (parse_content_disposition(header, disposition_params)) {
  7861. Params params;
  7862. parse_disposition_params(disposition_params, params);
  7863. auto it = params.find("name");
  7864. if (it != params.end()) {
  7865. file_.name = it->second;
  7866. } else {
  7867. is_valid_ = false;
  7868. return false;
  7869. }
  7870. it = params.find("filename");
  7871. if (it != params.end()) { file_.filename = it->second; }
  7872. it = params.find("filename*");
  7873. if (it != params.end()) {
  7874. // RFC 5987: only UTF-8 encoding is allowed
  7875. const auto &val = it->second;
  7876. constexpr const char utf8_prefix[] = "UTF-8''";
  7877. constexpr size_t prefix_len = str_len(utf8_prefix);
  7878. if (val.size() > prefix_len &&
  7879. start_with_case_ignore(val, utf8_prefix)) {
  7880. file_.filename = decode_path_component(
  7881. val.substr(prefix_len)); // override...
  7882. } else {
  7883. is_valid_ = false;
  7884. return false;
  7885. }
  7886. }
  7887. }
  7888. }
  7889. buf_erase(pos + crlf_.size());
  7890. pos = buf_find(crlf_);
  7891. }
  7892. if (state_ != 3) { return true; }
  7893. break;
  7894. }
  7895. case 3: { // Body
  7896. if (crlf_dash_boundary_.size() > buf_size()) { return true; }
  7897. auto pos = buf_find(crlf_dash_boundary_);
  7898. if (pos < buf_size()) {
  7899. if (!content_callback(buf_data(), pos)) {
  7900. is_valid_ = false;
  7901. return false;
  7902. }
  7903. buf_erase(pos + crlf_dash_boundary_.size());
  7904. state_ = 4;
  7905. } else {
  7906. auto len = buf_size() - crlf_dash_boundary_.size();
  7907. if (len > 0) {
  7908. if (!content_callback(buf_data(), len)) {
  7909. is_valid_ = false;
  7910. return false;
  7911. }
  7912. buf_erase(len);
  7913. }
  7914. return true;
  7915. }
  7916. break;
  7917. }
  7918. case 4: { // Boundary
  7919. if (crlf_.size() > buf_size()) { return true; }
  7920. if (buf_start_with(crlf_)) {
  7921. buf_erase(crlf_.size());
  7922. state_ = 1;
  7923. } else if (buf_start_with(dash_)) {
  7924. buf_erase(dash_.size());
  7925. is_valid_ = true;
  7926. state_ = 5;
  7927. } else {
  7928. // Only CRLF (another part follows) and "--" (close-delimiter) are
  7929. // accepted after a boundary; RFC 2046 allows transport-padding in
  7930. // between, but this parser has never supported it. Either way the
  7931. // body is already destined to be rejected, so fail now instead of
  7932. // buffering the rest of it. Both are two bytes, so the check above
  7933. // already guarantees enough buffered data to decide.
  7934. is_valid_ = false;
  7935. return false;
  7936. }
  7937. break;
  7938. }
  7939. case 5: { // Epilogue
  7940. buf_erase(buf_size());
  7941. break;
  7942. }
  7943. }
  7944. }
  7945. return true;
  7946. }
  7947. private:
  7948. void clear_file_info() {
  7949. file_.name.clear();
  7950. file_.filename.clear();
  7951. file_.content_type.clear();
  7952. file_.headers.clear();
  7953. header_count_ = 0;
  7954. }
  7955. bool start_with_case_ignore(const std::string &a, const char *b,
  7956. size_t offset = 0) const {
  7957. const auto b_len = strlen(b);
  7958. if (a.size() < offset + b_len) { return false; }
  7959. for (size_t i = 0; i < b_len; i++) {
  7960. if (case_ignore::to_lower(a[offset + i]) != case_ignore::to_lower(b[i])) {
  7961. return false;
  7962. }
  7963. }
  7964. return true;
  7965. }
  7966. // Parses "Content-Disposition: form-data; <params>" without std::regex.
  7967. // Returns true if header matches, with the params portion in `params_out`.
  7968. bool parse_content_disposition(const std::string &header,
  7969. std::string &params_out) const {
  7970. constexpr const char prefix[] = "Content-Disposition:";
  7971. constexpr size_t prefix_len = str_len(prefix);
  7972. if (!start_with_case_ignore(header, prefix)) { return false; }
  7973. // Skip whitespace after "Content-Disposition:"
  7974. auto pos = prefix_len;
  7975. while (pos < header.size() && (header[pos] == ' ' || header[pos] == '\t')) {
  7976. pos++;
  7977. }
  7978. // Match "form-data;" (case-insensitive)
  7979. constexpr const char form_data[] = "form-data;";
  7980. constexpr size_t form_data_len = str_len(form_data);
  7981. if (!start_with_case_ignore(header, form_data, pos)) { return false; }
  7982. pos += form_data_len;
  7983. // Skip whitespace after "form-data;"
  7984. while (pos < header.size() && (header[pos] == ' ' || header[pos] == '\t')) {
  7985. pos++;
  7986. }
  7987. params_out = header.substr(pos);
  7988. return true;
  7989. }
  7990. const std::string dash_ = "--";
  7991. const std::string crlf_ = "\r\n";
  7992. std::string boundary_;
  7993. std::string dash_boundary_crlf_;
  7994. std::string crlf_dash_boundary_;
  7995. size_t state_ = 0;
  7996. bool is_valid_ = false;
  7997. FormData file_;
  7998. size_t header_count_ = 0;
  7999. // Buffer
  8000. bool start_with(const std::string &a, size_t spos, size_t epos,
  8001. const std::string &b) const {
  8002. if (epos - spos < b.size()) { return false; }
  8003. for (size_t i = 0; i < b.size(); i++) {
  8004. if (a[i + spos] != b[i]) { return false; }
  8005. }
  8006. return true;
  8007. }
  8008. size_t buf_size() const { return buf_epos_ - buf_spos_; }
  8009. const char *buf_data() const { return &buf_[buf_spos_]; }
  8010. std::string buf_head(size_t l) const { return buf_.substr(buf_spos_, l); }
  8011. bool buf_start_with(const std::string &s) const {
  8012. return start_with(buf_, buf_spos_, buf_epos_, s);
  8013. }
  8014. size_t buf_find(const std::string &s) const {
  8015. auto c = s.front();
  8016. size_t off = buf_spos_;
  8017. while (off < buf_epos_) {
  8018. auto pos = off;
  8019. while (true) {
  8020. if (pos == buf_epos_) { return buf_size(); }
  8021. if (buf_[pos] == c) { break; }
  8022. pos++;
  8023. }
  8024. auto remaining_size = buf_epos_ - pos;
  8025. if (s.size() > remaining_size) { return buf_size(); }
  8026. if (start_with(buf_, pos, buf_epos_, s)) { return pos - buf_spos_; }
  8027. off = pos + 1;
  8028. }
  8029. return buf_size();
  8030. }
  8031. void buf_append(const char *data, size_t n) {
  8032. auto remaining_size = buf_size();
  8033. if (remaining_size > 0 && buf_spos_ > 0) {
  8034. for (size_t i = 0; i < remaining_size; i++) {
  8035. buf_[i] = buf_[buf_spos_ + i];
  8036. }
  8037. }
  8038. buf_spos_ = 0;
  8039. buf_epos_ = remaining_size;
  8040. if (remaining_size + n > buf_.size()) { buf_.resize(remaining_size + n); }
  8041. for (size_t i = 0; i < n; i++) {
  8042. buf_[buf_epos_ + i] = data[i];
  8043. }
  8044. buf_epos_ += n;
  8045. }
  8046. void buf_erase(size_t size) { buf_spos_ += size; }
  8047. std::string buf_;
  8048. size_t buf_spos_ = 0;
  8049. size_t buf_epos_ = 0;
  8050. };
  8051. inline std::string random_string(size_t length) {
  8052. constexpr const char data[] =
  8053. "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz";
  8054. thread_local auto engine([]() {
  8055. // std::random_device might actually be deterministic on some
  8056. // platforms, but due to lack of support in the c++ standard library,
  8057. // doing better requires either some ugly hacks or breaking portability.
  8058. std::random_device seed_gen;
  8059. // Request 128 bits of entropy for initialization
  8060. std::seed_seq seed_sequence{seed_gen(), seed_gen(), seed_gen(), seed_gen()};
  8061. return std::mt19937(seed_sequence);
  8062. }());
  8063. std::string result;
  8064. for (size_t i = 0; i < length; i++) {
  8065. result += data[engine() % (sizeof(data) - 1)];
  8066. }
  8067. return result;
  8068. }
  8069. inline std::string make_multipart_data_boundary() {
  8070. return "--cpp-httplib-multipart-data-" + detail::random_string(16);
  8071. }
  8072. inline bool is_multipart_boundary_chars_valid(const std::string &boundary) {
  8073. auto valid = true;
  8074. for (size_t i = 0; i < boundary.size(); i++) {
  8075. auto c = boundary[i];
  8076. if (!is_ascii_alnum(c) && c != '-' && c != '_') {
  8077. valid = false;
  8078. break;
  8079. }
  8080. }
  8081. return valid;
  8082. }
  8083. // Escape a multipart field name/filename following the WHATWG HTML standard
  8084. // ("escape a multipart form-data name"), which is what browsers send:
  8085. // '"' -> %22, CR -> %0D, LF -> %0A
  8086. // With escape_quote = false, only CR and LF are escaped; this is for header
  8087. // values outside a quoted-string (e.g. Content-Type), where '"' is legal.
  8088. inline std::string escape_multipart_field(const std::string &s,
  8089. bool escape_quote = true) {
  8090. std::string result;
  8091. result.reserve(s.size());
  8092. for (auto c : s) {
  8093. switch (c) {
  8094. case '"':
  8095. if (escape_quote) {
  8096. result += "%22";
  8097. } else {
  8098. result += c;
  8099. }
  8100. break;
  8101. case '\r': result += "%0D"; break;
  8102. case '\n': result += "%0A"; break;
  8103. default: result += c; break;
  8104. }
  8105. }
  8106. return result;
  8107. }
  8108. template <typename T>
  8109. inline std::string
  8110. serialize_multipart_formdata_item_begin(const T &item,
  8111. const std::string &boundary) {
  8112. std::string body = "--" + boundary + "\r\n";
  8113. body += "Content-Disposition: form-data; name=\"" +
  8114. escape_multipart_field(item.name) + "\"";
  8115. if (!item.filename.empty()) {
  8116. body += "; filename=\"" + escape_multipart_field(item.filename) + "\"";
  8117. }
  8118. body += "\r\n";
  8119. if (!item.content_type.empty()) {
  8120. body +=
  8121. "Content-Type: " + escape_multipart_field(item.content_type, false) +
  8122. "\r\n";
  8123. }
  8124. body += "\r\n";
  8125. return body;
  8126. }
  8127. inline std::string serialize_multipart_formdata_item_end() { return "\r\n"; }
  8128. inline std::string
  8129. serialize_multipart_formdata_finish(const std::string &boundary) {
  8130. return "--" + boundary + "--\r\n";
  8131. }
  8132. inline std::string
  8133. serialize_multipart_formdata_get_content_type(const std::string &boundary) {
  8134. return "multipart/form-data; boundary=" + boundary;
  8135. }
  8136. inline std::string
  8137. serialize_multipart_formdata(const UploadFormDataItems &items,
  8138. const std::string &boundary, bool finish = true) {
  8139. std::string body;
  8140. for (const auto &item : items) {
  8141. body += serialize_multipart_formdata_item_begin(item, boundary);
  8142. body += item.content + serialize_multipart_formdata_item_end();
  8143. }
  8144. if (finish) { body += serialize_multipart_formdata_finish(boundary); }
  8145. return body;
  8146. }
  8147. inline size_t get_multipart_content_length(const UploadFormDataItems &items,
  8148. const std::string &boundary) {
  8149. size_t total = 0;
  8150. for (const auto &item : items) {
  8151. total += serialize_multipart_formdata_item_begin(item, boundary).size();
  8152. total += item.content.size();
  8153. total += serialize_multipart_formdata_item_end().size();
  8154. }
  8155. total += serialize_multipart_formdata_finish(boundary).size();
  8156. return total;
  8157. }
  8158. struct MultipartSegment {
  8159. const char *data;
  8160. size_t size;
  8161. };
  8162. // NOTE: items must outlive the returned ContentProvider
  8163. // (safe for synchronous use inside Post/Put/Patch)
  8164. inline ContentProvider
  8165. make_multipart_content_provider(const UploadFormDataItems &items,
  8166. const std::string &boundary) {
  8167. // Own the per-item header strings and the finish string
  8168. std::vector<std::string> owned;
  8169. owned.reserve(items.size() + 1);
  8170. for (const auto &item : items)
  8171. owned.push_back(serialize_multipart_formdata_item_begin(item, boundary));
  8172. owned.push_back(serialize_multipart_formdata_finish(boundary));
  8173. // Flat segment list: [header, content, "\r\n"] * N + [finish]
  8174. std::vector<MultipartSegment> segs;
  8175. segs.reserve(items.size() * 3 + 1);
  8176. static const char crlf[] = "\r\n";
  8177. for (size_t i = 0; i < items.size(); i++) {
  8178. segs.push_back({owned[i].data(), owned[i].size()});
  8179. segs.push_back({items[i].content.data(), items[i].content.size()});
  8180. segs.push_back({crlf, 2});
  8181. }
  8182. segs.push_back({owned.back().data(), owned.back().size()});
  8183. struct MultipartState {
  8184. std::vector<std::string> owned;
  8185. std::vector<MultipartSegment> segs;
  8186. std::vector<char> buf = std::vector<char>(CPPHTTPLIB_SEND_BUFSIZ);
  8187. };
  8188. auto state = std::make_shared<MultipartState>();
  8189. state->owned = std::move(owned);
  8190. // `segs` holds raw pointers into owned strings; std::string move preserves
  8191. // the data pointer, so these pointers remain valid after the move above.
  8192. state->segs = std::move(segs);
  8193. return [state](size_t offset, size_t length, DataSink &sink) -> bool {
  8194. // Buffer multiple small segments into fewer, larger writes to avoid
  8195. // excessive TCP packets when there are many form data items (#2410)
  8196. auto &buf = state->buf;
  8197. auto buf_size = buf.size();
  8198. size_t buf_len = 0;
  8199. size_t remaining = length;
  8200. // Find the first segment containing 'offset'
  8201. size_t pos = 0;
  8202. size_t seg_idx = 0;
  8203. for (; seg_idx < state->segs.size(); seg_idx++) {
  8204. const auto &seg = state->segs[seg_idx];
  8205. if (seg.size > 0 && offset - pos < seg.size) { break; }
  8206. pos += seg.size;
  8207. }
  8208. size_t seg_offset = (seg_idx < state->segs.size()) ? offset - pos : 0;
  8209. for (; seg_idx < state->segs.size() && remaining > 0; seg_idx++) {
  8210. const auto &seg = state->segs[seg_idx];
  8211. size_t available = seg.size - seg_offset;
  8212. size_t to_copy = (std::min)(available, remaining);
  8213. const char *src = seg.data + seg_offset;
  8214. seg_offset = 0; // only the first segment has a non-zero offset
  8215. while (to_copy > 0) {
  8216. size_t space = buf_size - buf_len;
  8217. size_t chunk = (std::min)(to_copy, space);
  8218. std::memcpy(buf.data() + buf_len, src, chunk);
  8219. buf_len += chunk;
  8220. src += chunk;
  8221. to_copy -= chunk;
  8222. remaining -= chunk;
  8223. if (buf_len == buf_size) {
  8224. if (!sink.write(buf.data(), buf_len)) { return false; }
  8225. buf_len = 0;
  8226. }
  8227. }
  8228. }
  8229. if (buf_len > 0) { return sink.write(buf.data(), buf_len); }
  8230. return true;
  8231. };
  8232. }
  8233. inline void coalesce_ranges(Ranges &ranges, size_t content_length) {
  8234. if (ranges.size() <= 1) return;
  8235. // Sort ranges by start position
  8236. std::sort(ranges.begin(), ranges.end(),
  8237. [](const Range &a, const Range &b) { return a.first < b.first; });
  8238. Ranges coalesced;
  8239. coalesced.reserve(ranges.size());
  8240. for (auto &r : ranges) {
  8241. auto first_pos = r.first;
  8242. auto last_pos = r.second;
  8243. // Handle special cases like in range_error
  8244. if (first_pos == -1 && last_pos == -1) {
  8245. first_pos = 0;
  8246. last_pos = static_cast<ssize_t>(content_length);
  8247. }
  8248. if (first_pos == -1) {
  8249. first_pos = static_cast<ssize_t>(content_length) - last_pos;
  8250. last_pos = static_cast<ssize_t>(content_length) - 1;
  8251. }
  8252. if (last_pos == -1 || last_pos >= static_cast<ssize_t>(content_length)) {
  8253. last_pos = static_cast<ssize_t>(content_length) - 1;
  8254. }
  8255. // Skip invalid ranges
  8256. if (!(0 <= first_pos && first_pos <= last_pos &&
  8257. last_pos < static_cast<ssize_t>(content_length))) {
  8258. continue;
  8259. }
  8260. // Coalesce with previous range if overlapping or adjacent (but not
  8261. // identical)
  8262. if (!coalesced.empty()) {
  8263. auto &prev = coalesced.back();
  8264. // Check if current range overlaps or is adjacent to previous range
  8265. // but don't coalesce identical ranges (allow duplicates)
  8266. if (first_pos <= prev.second + 1 &&
  8267. !(first_pos == prev.first && last_pos == prev.second)) {
  8268. // Extend the previous range
  8269. prev.second = (std::max)(prev.second, last_pos);
  8270. continue;
  8271. }
  8272. }
  8273. // Add new range
  8274. coalesced.emplace_back(first_pos, last_pos);
  8275. }
  8276. ranges = std::move(coalesced);
  8277. }
  8278. inline bool range_error(Request &req, Response &res) {
  8279. if (!req.ranges.empty() && 200 <= res.status && res.status < 300) {
  8280. if (res.body.empty() && res.content_provider_ && res.content_length_ == 0) {
  8281. req.ranges.clear();
  8282. if (res.status == StatusCode::PartialContent_206) {
  8283. res.status = StatusCode::OK_200;
  8284. }
  8285. return false;
  8286. }
  8287. ssize_t content_len = static_cast<ssize_t>(
  8288. res.content_length_ ? res.content_length_ : res.body.size());
  8289. std::vector<std::pair<ssize_t, ssize_t>> processed_ranges;
  8290. size_t overwrapping_count = 0;
  8291. // NOTE: The following Range check is based on '14.2. Range' in RFC 9110
  8292. // 'HTTP Semantics' to avoid potential denial-of-service attacks.
  8293. // https://www.rfc-editor.org/rfc/rfc9110#section-14.2
  8294. // Too many ranges
  8295. if (req.ranges.size() > CPPHTTPLIB_RANGE_MAX_COUNT) { return true; }
  8296. for (auto &r : req.ranges) {
  8297. auto &first_pos = r.first;
  8298. auto &last_pos = r.second;
  8299. if (first_pos == -1 && last_pos == -1) {
  8300. first_pos = 0;
  8301. last_pos = content_len;
  8302. }
  8303. if (first_pos == -1) {
  8304. first_pos = content_len - last_pos;
  8305. last_pos = content_len - 1;
  8306. }
  8307. // NOTE: RFC-9110 '14.1.2. Byte Ranges':
  8308. // A client can limit the number of bytes requested without knowing the
  8309. // size of the selected representation. If the last-pos value is absent,
  8310. // or if the value is greater than or equal to the current length of the
  8311. // representation data, the byte range is interpreted as the remainder of
  8312. // the representation (i.e., the server replaces the value of last-pos
  8313. // with a value that is one less than the current length of the selected
  8314. // representation).
  8315. // https://www.rfc-editor.org/rfc/rfc9110.html#section-14.1.2-6
  8316. if (last_pos == -1 || last_pos >= content_len) {
  8317. last_pos = content_len - 1;
  8318. }
  8319. // Range must be within content length
  8320. if (!(0 <= first_pos && first_pos <= last_pos &&
  8321. last_pos <= content_len - 1)) {
  8322. return true;
  8323. }
  8324. // Request must not have more than two overlapping ranges
  8325. for (const auto &processed_range : processed_ranges) {
  8326. if (!(last_pos < processed_range.first ||
  8327. first_pos > processed_range.second)) {
  8328. overwrapping_count++;
  8329. if (overwrapping_count > 2) { return true; }
  8330. break; // Only count once per range
  8331. }
  8332. }
  8333. processed_ranges.emplace_back(first_pos, last_pos);
  8334. }
  8335. // After validation, coalesce overlapping ranges as per RFC 9110
  8336. coalesce_ranges(req.ranges, static_cast<size_t>(content_len));
  8337. }
  8338. return false;
  8339. }
  8340. inline std::pair<size_t, size_t>
  8341. get_range_offset_and_length(Range r, size_t content_length) {
  8342. assert(r.first != -1 && r.second != -1);
  8343. assert(0 <= r.first && r.first < static_cast<ssize_t>(content_length));
  8344. assert(r.first <= r.second &&
  8345. r.second < static_cast<ssize_t>(content_length));
  8346. (void)(content_length);
  8347. return std::make_pair(static_cast<size_t>(r.first),
  8348. static_cast<size_t>(r.second - r.first) + 1);
  8349. }
  8350. inline std::string make_content_range_header_field(
  8351. const std::pair<size_t, size_t> &offset_and_length, size_t content_length) {
  8352. auto st = offset_and_length.first;
  8353. auto ed = st + offset_and_length.second - 1;
  8354. std::string field = "bytes ";
  8355. field += std::to_string(st);
  8356. field += '-';
  8357. field += std::to_string(ed);
  8358. field += '/';
  8359. field += std::to_string(content_length);
  8360. return field;
  8361. }
  8362. template <typename SToken, typename CToken, typename Content>
  8363. bool process_multipart_ranges_data(const Request &req,
  8364. const std::string &boundary,
  8365. const std::string &content_type,
  8366. size_t content_length, SToken stoken,
  8367. CToken ctoken, Content content) {
  8368. for (size_t i = 0; i < req.ranges.size(); i++) {
  8369. ctoken("--");
  8370. stoken(boundary);
  8371. ctoken("\r\n");
  8372. if (!content_type.empty()) {
  8373. ctoken("Content-Type: ");
  8374. stoken(content_type);
  8375. ctoken("\r\n");
  8376. }
  8377. auto offset_and_length =
  8378. get_range_offset_and_length(req.ranges[i], content_length);
  8379. ctoken("Content-Range: ");
  8380. stoken(make_content_range_header_field(offset_and_length, content_length));
  8381. ctoken("\r\n");
  8382. ctoken("\r\n");
  8383. if (!content(offset_and_length.first, offset_and_length.second)) {
  8384. return false;
  8385. }
  8386. ctoken("\r\n");
  8387. }
  8388. ctoken("--");
  8389. stoken(boundary);
  8390. ctoken("--");
  8391. return true;
  8392. }
  8393. inline void make_multipart_ranges_data(const Request &req, Response &res,
  8394. const std::string &boundary,
  8395. const std::string &content_type,
  8396. size_t content_length,
  8397. std::string &data) {
  8398. process_multipart_ranges_data(
  8399. req, boundary, content_type, content_length,
  8400. [&](const std::string &token) { data += token; },
  8401. [&](const std::string &token) { data += token; },
  8402. [&](size_t offset, size_t length) {
  8403. assert(offset + length <= content_length);
  8404. data += res.body.substr(offset, length);
  8405. return true;
  8406. });
  8407. }
  8408. inline size_t get_multipart_ranges_data_length(const Request &req,
  8409. const std::string &boundary,
  8410. const std::string &content_type,
  8411. size_t content_length) {
  8412. size_t data_length = 0;
  8413. process_multipart_ranges_data(
  8414. req, boundary, content_type, content_length,
  8415. [&](const std::string &token) { data_length += token.size(); },
  8416. [&](const std::string &token) { data_length += token.size(); },
  8417. [&](size_t /*offset*/, size_t length) {
  8418. data_length += length;
  8419. return true;
  8420. });
  8421. return data_length;
  8422. }
  8423. template <typename T>
  8424. inline bool
  8425. write_multipart_ranges_data(Stream &strm, const Request &req, Response &res,
  8426. const std::string &boundary,
  8427. const std::string &content_type,
  8428. size_t content_length, const T &is_shutting_down) {
  8429. return process_multipart_ranges_data(
  8430. req, boundary, content_type, content_length,
  8431. [&](const std::string &token) { strm.write(token); },
  8432. [&](const std::string &token) { strm.write(token); },
  8433. [&](size_t offset, size_t length) {
  8434. return write_content(strm, res.content_provider_, offset, length,
  8435. is_shutting_down);
  8436. });
  8437. }
  8438. inline bool has_framed_body(const Request &req) {
  8439. return is_chunked_transfer_encoding(req.headers) ||
  8440. req.get_header_value_u64("Content-Length") > 0;
  8441. }
  8442. inline bool is_connection_persistent(const Request &req) {
  8443. if (has_header_token(req.headers, "Connection", "close")) { return false; }
  8444. if (req.version == "HTTP/1.0" &&
  8445. !has_header_token(req.headers, "Connection", "keep-alive")) {
  8446. return false;
  8447. }
  8448. return true;
  8449. }
  8450. inline bool expect_content(const Request &req) {
  8451. if (req.method == "POST" || req.method == "PUT" || req.method == "PATCH" ||
  8452. req.method == "DELETE") {
  8453. return true;
  8454. }
  8455. return has_framed_body(req);
  8456. }
  8457. #ifdef _WIN32
  8458. class WSInit {
  8459. public:
  8460. WSInit() {
  8461. WSADATA wsaData;
  8462. if (WSAStartup(0x0002, &wsaData) == 0) is_valid_ = true;
  8463. }
  8464. ~WSInit() {
  8465. if (is_valid_) WSACleanup();
  8466. }
  8467. bool is_valid_ = false;
  8468. };
  8469. static WSInit wsinit_;
  8470. #endif
  8471. // RFC 9110 Section 11.6.1 defines a challenge list as
  8472. // WWW-Authenticate = #challenge
  8473. // challenge = auth-scheme [ 1*SP ( token68 / [ #auth-param ] ) ]
  8474. // auth-param = token BWS "=" BWS ( token / quoted-string )
  8475. // so a server may offer several schemes, each with its own comma-separated
  8476. // auth-param list, in either order and either as separate field lines or
  8477. // packed into one. Splitting on every comma would break apart a challenge's
  8478. // own param list; splitting only on the first space would miss a Digest
  8479. // challenge that isn't first. Split on commas that aren't inside a
  8480. // quoted-string instead, then track which scheme each resulting segment
  8481. // belongs to: a segment whose text before "=" contains whitespace (or that
  8482. // has no "=" at all) starts a new challenge named by its leading token.
  8483. inline std::vector<std::string> split_challenge_segments(const std::string &s) {
  8484. std::vector<std::string> segments;
  8485. size_t start = 0;
  8486. auto in_quotes = false;
  8487. for (size_t i = 0; i < s.size(); i++) {
  8488. auto c = s[i];
  8489. if (in_quotes) {
  8490. if (c == '\\' && i + 1 < s.size()) {
  8491. i++;
  8492. } else if (c == '"') {
  8493. in_quotes = false;
  8494. }
  8495. } else if (c == '"') {
  8496. in_quotes = true;
  8497. } else if (c == ',') {
  8498. segments.push_back(s.substr(start, i - start));
  8499. start = i + 1;
  8500. }
  8501. }
  8502. segments.push_back(s.substr(start));
  8503. return segments;
  8504. }
  8505. inline std::string unescape_quoted_pairs(const std::string &s) {
  8506. std::string out;
  8507. out.reserve(s.size());
  8508. for (size_t i = 0; i < s.size(); i++) {
  8509. if (s[i] == '\\' && i + 1 < s.size()) {
  8510. out += s[++i];
  8511. } else {
  8512. out += s[i];
  8513. }
  8514. }
  8515. return out;
  8516. }
  8517. // Inverse of unescape_quoted_pairs: prepares a value to sit inside a
  8518. // quoted-string. RFC 9110 §5.6.4 requires a literal '\' or '"' to be sent as a
  8519. // quoted-pair, so the recipient recovers the original value.
  8520. inline std::string escape_quoted_pairs(const std::string &s) {
  8521. std::string out;
  8522. out.reserve(s.size());
  8523. for (auto c : s) {
  8524. if (c == '\\' || c == '"') { out += '\\'; }
  8525. out += c;
  8526. }
  8527. return out;
  8528. }
  8529. inline bool parse_www_authenticate(const Response &res,
  8530. std::map<std::string, std::string> &auth,
  8531. bool is_proxy) {
  8532. auto auth_key = is_proxy ? "Proxy-Authenticate" : "WWW-Authenticate";
  8533. auto combined = get_combined_header_value(res.headers, auth_key);
  8534. if (combined.empty()) { return false; }
  8535. auto found_digest = false;
  8536. auto in_digest_challenge = false;
  8537. for (const auto &raw_segment : split_challenge_segments(combined)) {
  8538. auto segment = trim_copy(raw_segment);
  8539. if (segment.empty()) { continue; }
  8540. auto eq_pos = segment.find('=');
  8541. // BWS is allowed on both sides of "=", so the text naming the key (or,
  8542. // for the first segment of a challenge, "<scheme> <key>") must be
  8543. // trimmed before its boundaries are inspected.
  8544. auto key_part = trim_copy(
  8545. eq_pos == std::string::npos ? segment : segment.substr(0, eq_pos));
  8546. auto space_pos = key_part.find_last_of(" \t");
  8547. if (space_pos != std::string::npos || eq_pos == std::string::npos) {
  8548. // "<scheme>[ <key>]" starts a new challenge.
  8549. auto scheme_end =
  8550. space_pos == std::string::npos ? key_part.size() : space_pos;
  8551. // RFC 7616 Section 3.7: a server may offer more than one Digest
  8552. // challenge (e.g. SHA-256 and MD5); keep only the first so a nonce
  8553. // from one challenge is never paired with another's algorithm.
  8554. in_digest_challenge =
  8555. !found_digest &&
  8556. case_ignore::equal(key_part.substr(0, scheme_end), "Digest");
  8557. if (in_digest_challenge) { found_digest = true; }
  8558. if (space_pos == std::string::npos) {
  8559. // Bare scheme (or a token68), no auth-param on this segment.
  8560. continue;
  8561. }
  8562. key_part = key_part.substr(space_pos + 1);
  8563. }
  8564. if (!in_digest_challenge) { continue; }
  8565. auto val = trim_copy(segment.substr(eq_pos + 1));
  8566. auto unquoted = trim_double_quotes_copy(val);
  8567. if (unquoted.size() != val.size()) {
  8568. unquoted = unescape_quoted_pairs(unquoted);
  8569. }
  8570. auth[std::move(key_part)] = std::move(unquoted);
  8571. }
  8572. // RFC 7616 Section 3.3 requires realm and nonce on every Digest challenge;
  8573. // make_digest_authentication_header() dereferences both unconditionally, so
  8574. // a challenge missing either can't produce a usable Authorization header.
  8575. // Treat it the same as no Digest challenge at all.
  8576. return found_digest && auth.find("realm") != auth.end() &&
  8577. auth.find("nonce") != auth.end();
  8578. }
  8579. class ContentProviderAdapter {
  8580. public:
  8581. explicit ContentProviderAdapter(
  8582. ContentProviderWithoutLength &&content_provider)
  8583. : content_provider_(std::move(content_provider)) {}
  8584. bool operator()(size_t offset, size_t, DataSink &sink) {
  8585. return content_provider_(offset, sink);
  8586. }
  8587. private:
  8588. ContentProviderWithoutLength content_provider_;
  8589. };
  8590. // NOTE: https://www.rfc-editor.org/rfc/rfc9110#section-5
  8591. namespace fields {
  8592. inline bool is_token_char(char c) {
  8593. return is_ascii_alnum(c) || c == '!' || c == '#' || c == '$' || c == '%' ||
  8594. c == '&' || c == '\'' || c == '*' || c == '+' || c == '-' ||
  8595. c == '.' || c == '^' || c == '_' || c == '`' || c == '|' || c == '~';
  8596. }
  8597. inline bool is_token(const std::string &s) {
  8598. if (s.empty()) { return false; }
  8599. for (auto c : s) {
  8600. if (!is_token_char(c)) { return false; }
  8601. }
  8602. return true;
  8603. }
  8604. inline bool is_field_name(const std::string &s) { return is_token(s); }
  8605. inline bool is_vchar(char c) { return c >= 33 && c <= 126; }
  8606. inline bool is_obs_text(char c) { return 128 <= static_cast<unsigned char>(c); }
  8607. inline bool is_field_vchar(char c) { return is_vchar(c) || is_obs_text(c); }
  8608. inline bool is_field_content(const std::string &s) {
  8609. if (s.empty()) { return true; }
  8610. if (s.size() == 1) {
  8611. return is_field_vchar(s[0]);
  8612. } else if (s.size() == 2) {
  8613. return is_field_vchar(s[0]) && is_field_vchar(s[1]);
  8614. } else {
  8615. size_t i = 0;
  8616. if (!is_field_vchar(s[i])) { return false; }
  8617. i++;
  8618. while (i < s.size() - 1) {
  8619. auto c = s[i++];
  8620. if (c == ' ' || c == '\t' || is_field_vchar(c)) {
  8621. } else {
  8622. return false;
  8623. }
  8624. }
  8625. return is_field_vchar(s[i]);
  8626. }
  8627. }
  8628. inline bool is_field_value(const std::string &s) { return is_field_content(s); }
  8629. inline bool is_field_valid(const std::string &name, const std::string &value) {
  8630. return is_field_name(name) && is_field_value(value);
  8631. }
  8632. // RFC 9112 §2.2/§3.2: the request-target has no SP, HTAB or other control
  8633. // characters (incl. bare CR). obs-text (raw UTF-8) is allowed.
  8634. inline bool is_request_target(const std::string &s) {
  8635. return std::all_of(s.begin(), s.end(), is_field_vchar);
  8636. }
  8637. } // namespace fields
  8638. inline bool perform_websocket_handshake(Stream &strm, Request &req,
  8639. WebSocketUpgradeResponse &upgrade) {
  8640. // Generate random Sec-WebSocket-Key
  8641. thread_local std::mt19937 rng(std::random_device{}());
  8642. std::string key_bytes(16, '\0');
  8643. for (size_t i = 0; i < 16; i += 4) {
  8644. auto r = rng();
  8645. std::memcpy(&key_bytes[i], &r, (std::min)(size_t(4), size_t(16 - i)));
  8646. }
  8647. auto client_key = base64_encode(key_bytes);
  8648. req.headers.erase("Upgrade");
  8649. req.headers.erase("Connection");
  8650. req.headers.erase("Sec-WebSocket-Key");
  8651. req.headers.erase("Sec-WebSocket-Version");
  8652. req.headers.emplace("Upgrade", "websocket");
  8653. req.headers.emplace("Connection", "Upgrade");
  8654. req.headers.emplace("Sec-WebSocket-Key", client_key);
  8655. req.headers.emplace("Sec-WebSocket-Version", "13");
  8656. // Build the request in memory first, like ClientImpl::write_request does.
  8657. // Writing straight to the socket would leak a request line onto the wire
  8658. // before check_and_write_headers gets a chance to reject an invalid header,
  8659. // and would emit one small write per header.
  8660. BufferStream bstrm;
  8661. if (write_request_line(bstrm, req.method, req.path) < 0) {
  8662. upgrade.error = Error::Write;
  8663. return false;
  8664. }
  8665. auto error = Error::Success;
  8666. if (!check_and_write_headers(bstrm, req.headers, write_headers, error)) {
  8667. upgrade.error = error;
  8668. return false;
  8669. }
  8670. const auto &data = bstrm.get_buffer();
  8671. if (!write_data(strm, data.data(), data.size())) {
  8672. upgrade.error = Error::Write;
  8673. return false;
  8674. }
  8675. // Verify 101 response and Sec-WebSocket-Accept header
  8676. auto expected_accept = websocket_accept_key(client_key);
  8677. auto offered_subprotocols =
  8678. get_combined_header_value(req.headers, "Sec-WebSocket-Protocol");
  8679. return read_websocket_upgrade_response(strm, expected_accept,
  8680. offered_subprotocols, upgrade);
  8681. }
  8682. inline bool is_ip_address(const std::string &host) {
  8683. struct in_addr addr4;
  8684. struct in6_addr addr6;
  8685. return inet_pton(AF_INET, host.c_str(), &addr4) == 1 ||
  8686. inet_pton(AF_INET6, host.c_str(), &addr6) == 1;
  8687. }
  8688. // Resolve where a client should connect for `host`, honoring a user-supplied
  8689. // hostname-to-address map. `host` itself is never rewritten, so it keeps
  8690. // supplying the Host header and SNI; only the connection target changes.
  8691. //
  8692. // A mapped IP literal goes to `ip`, which keeps create_socket's AI_NUMERICHOST
  8693. // path. Anything else goes to `connect_host`, which create_socket resolves as
  8694. // a name, or uses as the socket path when the address family is AF_UNIX. An
  8695. // absent or empty mapping leaves `host` as the connection target; without the
  8696. // empty check the value would reach getaddrinfo as a null node and silently
  8697. // resolve to loopback.
  8698. inline void apply_addr_map(const std::map<std::string, std::string> &addr_map,
  8699. const std::string &host, std::string &connect_host,
  8700. std::string &ip) {
  8701. connect_host = host;
  8702. ip.clear();
  8703. auto it = addr_map.find(host);
  8704. if (it == addr_map.end() || it->second.empty()) { return; }
  8705. if (is_ip_address(it->second)) {
  8706. ip = it->second;
  8707. } else {
  8708. connect_host = it->second;
  8709. }
  8710. }
  8711. } // namespace detail
  8712. /*
  8713. * Group 2: detail namespace - SSL common utilities
  8714. */
  8715. #ifdef CPPHTTPLIB_SSL_ENABLED
  8716. namespace detail {
  8717. class SSLSocketStream final : public Stream {
  8718. public:
  8719. SSLSocketStream(
  8720. socket_t sock, tls::session_t session, time_t read_timeout_sec,
  8721. time_t read_timeout_usec, time_t write_timeout_sec,
  8722. time_t write_timeout_usec, time_t max_timeout_msec = 0,
  8723. std::chrono::time_point<std::chrono::steady_clock> start_time =
  8724. (std::chrono::steady_clock::time_point::min)());
  8725. ~SSLSocketStream() override;
  8726. bool is_readable() const override;
  8727. bool wait_readable() const override;
  8728. bool wait_writable() const override;
  8729. bool is_peer_alive() const override;
  8730. ssize_t read(char *ptr, size_t size) override;
  8731. ssize_t write(const char *ptr, size_t size) override;
  8732. void get_remote_ip_and_port(std::string &ip, int &port) const override;
  8733. void get_local_ip_and_port(std::string &ip, int &port) const override;
  8734. socket_t socket() const override;
  8735. time_t duration() const override;
  8736. void set_read_timeout(time_t sec, time_t usec = 0) override;
  8737. // See SocketStream::set_readable_hint().
  8738. void set_readable_hint() { readable_hint_ = true; }
  8739. private:
  8740. bool ensure_readable();
  8741. socket_t sock_;
  8742. tls::session_t session_;
  8743. time_t read_timeout_sec_;
  8744. time_t read_timeout_usec_;
  8745. time_t write_timeout_sec_;
  8746. time_t write_timeout_usec_;
  8747. time_t max_timeout_msec_;
  8748. const std::chrono::time_point<std::chrono::steady_clock> start_time_;
  8749. bool readable_hint_ = false;
  8750. };
  8751. // A TLS stream for WebSocket connections, where the receive path and the
  8752. // send path (application send() plus the heartbeat ping thread) run on
  8753. // different threads. A single TLS session must never be entered
  8754. // concurrently, so every call into the session is serialized by one mutex.
  8755. //
  8756. // Unlike SSLSocketStream, the socket is kept non-blocking for the stream's
  8757. // whole lifetime and each read()/write() performs a single non-blocking TLS
  8758. // call under the lock, then waits for readiness with select() outside the
  8759. // lock. The lock is therefore held only for CPU-bound work, so a reader
  8760. // blocked waiting for data never stalls a concurrent sender.
  8761. //
  8762. // This stream is used only for wss:// connections. Plain ws:// and ordinary
  8763. // HTTP/HTTPS keep using SocketStream/SSLSocketStream unchanged.
  8764. class WebSocketSSLStream final : public Stream {
  8765. public:
  8766. WebSocketSSLStream(socket_t sock, tls::session_t session,
  8767. time_t read_timeout_sec, time_t read_timeout_usec,
  8768. time_t write_timeout_sec, time_t write_timeout_usec);
  8769. ~WebSocketSSLStream() override;
  8770. bool is_readable() const override;
  8771. bool wait_readable() const override;
  8772. bool wait_writable() const override;
  8773. ssize_t read(char *ptr, size_t size) override;
  8774. ssize_t write(const char *ptr, size_t size) override;
  8775. void get_remote_ip_and_port(std::string &ip, int &port) const override;
  8776. void get_local_ip_and_port(std::string &ip, int &port) const override;
  8777. socket_t socket() const override;
  8778. time_t duration() const override;
  8779. void set_read_timeout(time_t sec, time_t usec = 0) override;
  8780. private:
  8781. mutable std::mutex session_mutex_;
  8782. socket_t sock_;
  8783. tls::session_t session_;
  8784. // WebSocket::close() shortens the read timeout from the closing thread
  8785. // while the receive thread is inside wait_readable(), so these two are read
  8786. // and written concurrently. The write timeouts are never mutated.
  8787. std::atomic<time_t> read_timeout_sec_;
  8788. std::atomic<time_t> read_timeout_usec_;
  8789. time_t write_timeout_sec_;
  8790. time_t write_timeout_usec_;
  8791. const std::chrono::time_point<std::chrono::steady_clock> start_time_;
  8792. };
  8793. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  8794. inline std::string message_digest(const std::string &s, const EVP_MD *algo) {
  8795. auto context = std::unique_ptr<EVP_MD_CTX, decltype(&EVP_MD_CTX_free)>(
  8796. EVP_MD_CTX_new(), EVP_MD_CTX_free);
  8797. unsigned int hash_length = 0;
  8798. unsigned char hash[EVP_MAX_MD_SIZE];
  8799. EVP_DigestInit_ex(context.get(), algo, nullptr);
  8800. EVP_DigestUpdate(context.get(), s.c_str(), s.size());
  8801. EVP_DigestFinal_ex(context.get(), hash, &hash_length);
  8802. std::stringstream ss;
  8803. for (auto i = 0u; i < hash_length; ++i) {
  8804. ss << std::hex << std::setw(2) << std::setfill('0')
  8805. << static_cast<unsigned int>(hash[i]);
  8806. }
  8807. return ss.str();
  8808. }
  8809. inline std::string MD5(const std::string &s) {
  8810. return message_digest(s, EVP_md5());
  8811. }
  8812. inline std::string SHA_256(const std::string &s) {
  8813. return message_digest(s, EVP_sha256());
  8814. }
  8815. inline std::string SHA_512(const std::string &s) {
  8816. return message_digest(s, EVP_sha512());
  8817. }
  8818. #elif defined(CPPHTTPLIB_MBEDTLS_SUPPORT)
  8819. namespace {
  8820. template <size_t N>
  8821. inline std::string hash_to_hex(const unsigned char (&hash)[N]) {
  8822. std::stringstream ss;
  8823. for (size_t i = 0; i < N; ++i) {
  8824. ss << std::hex << std::setw(2) << std::setfill('0')
  8825. << static_cast<unsigned int>(hash[i]);
  8826. }
  8827. return ss.str();
  8828. }
  8829. } // namespace
  8830. #ifdef CPPHTTPLIB_MBEDTLS_V4
  8831. // Mbed TLS 4.x provides hashing (and TLS RNG) via PSA Crypto, which must be
  8832. // initialized once. PSA state is process-global; do not free it.
  8833. inline bool ensure_mbedtls_psa_crypto() {
  8834. static std::once_flag once;
  8835. static bool ok = false;
  8836. std::call_once(once, []() { ok = (psa_crypto_init() == PSA_SUCCESS); });
  8837. return ok;
  8838. }
  8839. inline bool psa_hash(psa_algorithm_t alg, const std::string &s,
  8840. unsigned char *out, size_t out_size) {
  8841. if (!ensure_mbedtls_psa_crypto()) { return false; }
  8842. size_t olen = 0;
  8843. return psa_hash_compute(alg, reinterpret_cast<const uint8_t *>(s.data()),
  8844. s.size(), out, out_size, &olen) == PSA_SUCCESS &&
  8845. olen == out_size;
  8846. }
  8847. #endif
  8848. inline std::string MD5(const std::string &s) {
  8849. unsigned char hash[16];
  8850. #ifdef CPPHTTPLIB_MBEDTLS_V4
  8851. if (!psa_hash(PSA_ALG_MD5, s, hash, sizeof(hash))) { return {}; }
  8852. #elif defined(CPPHTTPLIB_MBEDTLS_V3)
  8853. mbedtls_md5(reinterpret_cast<const unsigned char *>(s.c_str()), s.size(),
  8854. hash);
  8855. #else
  8856. mbedtls_md5_ret(reinterpret_cast<const unsigned char *>(s.c_str()), s.size(),
  8857. hash);
  8858. #endif
  8859. return hash_to_hex(hash);
  8860. }
  8861. inline std::string SHA_256(const std::string &s) {
  8862. unsigned char hash[32];
  8863. #ifdef CPPHTTPLIB_MBEDTLS_V4
  8864. if (!psa_hash(PSA_ALG_SHA_256, s, hash, sizeof(hash))) { return {}; }
  8865. #elif defined(CPPHTTPLIB_MBEDTLS_V3)
  8866. mbedtls_sha256(reinterpret_cast<const unsigned char *>(s.c_str()), s.size(),
  8867. hash, 0);
  8868. #else
  8869. mbedtls_sha256_ret(reinterpret_cast<const unsigned char *>(s.c_str()),
  8870. s.size(), hash, 0);
  8871. #endif
  8872. return hash_to_hex(hash);
  8873. }
  8874. inline std::string SHA_512(const std::string &s) {
  8875. unsigned char hash[64];
  8876. #ifdef CPPHTTPLIB_MBEDTLS_V4
  8877. if (!psa_hash(PSA_ALG_SHA_512, s, hash, sizeof(hash))) { return {}; }
  8878. #elif defined(CPPHTTPLIB_MBEDTLS_V3)
  8879. mbedtls_sha512(reinterpret_cast<const unsigned char *>(s.c_str()), s.size(),
  8880. hash, 0);
  8881. #else
  8882. mbedtls_sha512_ret(reinterpret_cast<const unsigned char *>(s.c_str()),
  8883. s.size(), hash, 0);
  8884. #endif
  8885. return hash_to_hex(hash);
  8886. }
  8887. #elif defined(CPPHTTPLIB_WOLFSSL_SUPPORT)
  8888. namespace {
  8889. template <size_t N>
  8890. inline std::string hash_to_hex(const unsigned char (&hash)[N]) {
  8891. std::stringstream ss;
  8892. for (size_t i = 0; i < N; ++i) {
  8893. ss << std::hex << std::setw(2) << std::setfill('0')
  8894. << static_cast<unsigned int>(hash[i]);
  8895. }
  8896. return ss.str();
  8897. }
  8898. } // namespace
  8899. inline std::string MD5(const std::string &s) {
  8900. unsigned char hash[WC_MD5_DIGEST_SIZE];
  8901. wc_Md5Hash(reinterpret_cast<const unsigned char *>(s.c_str()),
  8902. static_cast<word32>(s.size()), hash);
  8903. return hash_to_hex(hash);
  8904. }
  8905. inline std::string SHA_256(const std::string &s) {
  8906. unsigned char hash[WC_SHA256_DIGEST_SIZE];
  8907. wc_Sha256Hash(reinterpret_cast<const unsigned char *>(s.c_str()),
  8908. static_cast<word32>(s.size()), hash);
  8909. return hash_to_hex(hash);
  8910. }
  8911. inline std::string SHA_512(const std::string &s) {
  8912. unsigned char hash[WC_SHA512_DIGEST_SIZE];
  8913. wc_Sha512Hash(reinterpret_cast<const unsigned char *>(s.c_str()),
  8914. static_cast<word32>(s.size()), hash);
  8915. return hash_to_hex(hash);
  8916. }
  8917. #endif
  8918. template <typename T>
  8919. inline bool process_server_socket_ssl(
  8920. const std::atomic<socket_t> &svr_sock, tls::session_t session,
  8921. socket_t sock, size_t keep_alive_max_count, time_t keep_alive_timeout_sec,
  8922. time_t read_timeout_sec, time_t read_timeout_usec, time_t write_timeout_sec,
  8923. time_t write_timeout_usec, T callback) {
  8924. // See process_server_socket(). The TLS library keeps already decrypted bytes
  8925. // of a pipelined request, which keep_alive() cannot see on the socket.
  8926. SSLSocketStream strm(sock, session, read_timeout_sec, read_timeout_usec,
  8927. write_timeout_sec, write_timeout_usec);
  8928. return process_server_socket_core(
  8929. svr_sock, sock, keep_alive_max_count, keep_alive_timeout_sec,
  8930. [&]() { return strm.is_readable(); },
  8931. [&](bool socket_readable, bool close_connection,
  8932. bool &connection_closed) {
  8933. if (socket_readable) { strm.set_readable_hint(); }
  8934. return callback(strm, close_connection, connection_closed);
  8935. });
  8936. }
  8937. template <typename T>
  8938. inline bool process_client_socket_ssl(
  8939. tls::session_t session, socket_t sock, time_t read_timeout_sec,
  8940. time_t read_timeout_usec, time_t write_timeout_sec,
  8941. time_t write_timeout_usec, time_t max_timeout_msec,
  8942. std::chrono::time_point<std::chrono::steady_clock> start_time, T callback) {
  8943. SSLSocketStream strm(sock, session, read_timeout_sec, read_timeout_usec,
  8944. write_timeout_sec, write_timeout_usec, max_timeout_msec,
  8945. start_time);
  8946. return callback(strm);
  8947. }
  8948. inline std::pair<std::string, std::string> make_digest_authentication_header(
  8949. const Request &req, const std::map<std::string, std::string> &auth,
  8950. size_t cnonce_count, const std::string &cnonce, const std::string &username,
  8951. const std::string &password, bool is_proxy = false) {
  8952. std::string nc;
  8953. {
  8954. std::stringstream ss;
  8955. ss << std::setfill('0') << std::setw(8) << std::hex << cnonce_count;
  8956. nc = ss.str();
  8957. }
  8958. std::string qop;
  8959. if (auth.find("qop") != auth.end()) {
  8960. qop = auth.at("qop");
  8961. if (qop.find("auth-int") != std::string::npos) {
  8962. qop = "auth-int";
  8963. } else if (qop.find("auth") != std::string::npos) {
  8964. qop = "auth";
  8965. } else {
  8966. qop.clear();
  8967. }
  8968. }
  8969. std::string algo = "MD5";
  8970. if (auth.find("algorithm") != auth.end()) {
  8971. // algorithm is an unquoted token (RFC 7616 §3.4). A server value that is
  8972. // not a token would otherwise be emitted verbatim and could carry commas
  8973. // or quotes that inject further auth-params into the header below.
  8974. const auto &a = auth.at("algorithm");
  8975. if (fields::is_token(a)) { algo = a; }
  8976. }
  8977. std::string response;
  8978. {
  8979. auto H = algo == "SHA-256" ? detail::SHA_256
  8980. : algo == "SHA-512" ? detail::SHA_512
  8981. : detail::MD5;
  8982. auto A1 = username + ":" + auth.at("realm") + ":" + password;
  8983. auto A2 = req.method + ":" + req.path;
  8984. if (qop == "auth-int") { A2 += ":" + H(req.body); }
  8985. if (qop.empty()) {
  8986. response = H(H(A1) + ":" + auth.at("nonce") + ":" + H(A2));
  8987. } else {
  8988. response = H(H(A1) + ":" + auth.at("nonce") + ":" + nc + ":" + cnonce +
  8989. ":" + qop + ":" + H(A2));
  8990. }
  8991. }
  8992. auto opaque = (auth.find("opaque") != auth.end()) ? auth.at("opaque") : "";
  8993. // Every value placed inside a quoted-string is escaped so a '"' in it cannot
  8994. // close the string early. realm, nonce and opaque come straight from the
  8995. // server's challenge (parse_www_authenticate() already de-escaped them), so
  8996. // without this a crafted challenge injects extra auth-params into the header.
  8997. auto field =
  8998. "Digest username=\"" + detail::escape_quoted_pairs(username) +
  8999. "\", realm=\"" + detail::escape_quoted_pairs(auth.at("realm")) +
  9000. "\", nonce=\"" + detail::escape_quoted_pairs(auth.at("nonce")) +
  9001. "\", uri=\"" + detail::escape_quoted_pairs(req.path) +
  9002. "\", algorithm=" + algo +
  9003. (qop.empty() ? ", response=\""
  9004. : ", qop=" + qop + ", nc=" + nc + ", cnonce=\"" + cnonce +
  9005. "\", response=\"") +
  9006. response + "\"" +
  9007. (opaque.empty()
  9008. ? ""
  9009. : ", opaque=\"" + detail::escape_quoted_pairs(opaque) + "\"");
  9010. auto key = is_proxy ? "Proxy-Authorization" : "Authorization";
  9011. return std::make_pair(key, field);
  9012. }
  9013. inline bool match_hostname(const std::string &pattern,
  9014. const std::string &hostname) {
  9015. // Exact match (case-insensitive)
  9016. if (detail::case_ignore::equal(hostname, pattern)) { return true; }
  9017. // Split both pattern and hostname into components by '.'
  9018. std::vector<std::string> pattern_components;
  9019. if (!pattern.empty()) {
  9020. split(pattern.data(), pattern.data() + pattern.size(), '.',
  9021. [&](const char *b, const char *e) {
  9022. pattern_components.emplace_back(b, e);
  9023. });
  9024. }
  9025. std::vector<std::string> host_components;
  9026. if (!hostname.empty()) {
  9027. split(hostname.data(), hostname.data() + hostname.size(), '.',
  9028. [&](const char *b, const char *e) {
  9029. host_components.emplace_back(b, e);
  9030. });
  9031. }
  9032. // Component count must match
  9033. if (host_components.size() != pattern_components.size()) { return false; }
  9034. // Compare each component with wildcard support
  9035. // Supports: "*" (full wildcard), "prefix*" (partial wildcard)
  9036. // https://bugs.launchpad.net/ubuntu/+source/firefox-3.0/+bug/376484
  9037. auto itr = pattern_components.begin();
  9038. for (const auto &h : host_components) {
  9039. auto &p = *itr;
  9040. if (!detail::case_ignore::equal(p, h) && p != "*") {
  9041. bool partial_match = false;
  9042. if (!p.empty() && p[p.size() - 1] == '*') {
  9043. const auto prefix_length = p.size() - 1;
  9044. if (prefix_length == 0) {
  9045. partial_match = true;
  9046. } else if (h.size() >= prefix_length) {
  9047. partial_match =
  9048. std::equal(p.begin(),
  9049. p.begin() + static_cast<std::string::difference_type>(
  9050. prefix_length),
  9051. h.begin(), [](const char ca, const char cb) {
  9052. return detail::case_ignore::to_lower(ca) ==
  9053. detail::case_ignore::to_lower(cb);
  9054. });
  9055. }
  9056. }
  9057. if (!partial_match) { return false; }
  9058. }
  9059. ++itr;
  9060. }
  9061. return true;
  9062. }
  9063. #ifdef _WIN32
  9064. // Verify certificate using Windows CertGetCertificateChain API.
  9065. // This provides real-time certificate validation with Windows Update
  9066. // integration, independent of the TLS backend.
  9067. inline bool verify_cert_with_windows_schannel(
  9068. const std::vector<unsigned char> &der_cert, const std::string &hostname,
  9069. bool verify_hostname, uint64_t &out_error, tls::const_session_t session) {
  9070. if (der_cert.empty()) { return false; }
  9071. out_error = 0;
  9072. // Create Windows certificate context from DER data
  9073. auto cert_context = CertCreateCertificateContext(
  9074. X509_ASN_ENCODING | PKCS_7_ASN_ENCODING, der_cert.data(),
  9075. static_cast<DWORD>(der_cert.size()));
  9076. if (!cert_context) {
  9077. out_error = GetLastError();
  9078. return false;
  9079. }
  9080. auto cert_guard =
  9081. scope_exit([&] { CertFreeCertificateContext(cert_context); });
  9082. // Give CryptoAPI the certificates the server sent. Without them it follows
  9083. // the leaf's AIA URL, which may lead to an issuer under an untrusted root.
  9084. std::vector<tls::cert_t> peer_certs;
  9085. tls::get_peer_certs(session, peer_certs);
  9086. auto store = CertOpenStore(CERT_STORE_PROV_MEMORY, 0, 0, 0, nullptr);
  9087. auto store_guard = scope_exit([&] {
  9088. for (auto cert : peer_certs) {
  9089. tls::free_cert(cert);
  9090. }
  9091. if (store) { CertCloseStore(store, 0); }
  9092. });
  9093. for (auto cert : peer_certs) {
  9094. std::vector<unsigned char> der;
  9095. if (store && tls::get_cert_der(cert, der)) {
  9096. CertAddEncodedCertificateToStore(store, X509_ASN_ENCODING, der.data(),
  9097. static_cast<DWORD>(der.size()),
  9098. CERT_STORE_ADD_USE_EXISTING, nullptr);
  9099. }
  9100. }
  9101. // Setup chain parameters
  9102. CERT_CHAIN_PARA chain_para = {};
  9103. chain_para.cbSize = sizeof(chain_para);
  9104. // Require the server authentication usage along the chain, which also
  9105. // rejects roots that Windows trusts only for other purposes.
  9106. LPSTR server_auth = const_cast<LPSTR>(szOID_PKIX_KP_SERVER_AUTH);
  9107. chain_para.RequestedUsage.dwType = USAGE_MATCH_TYPE_AND;
  9108. chain_para.RequestedUsage.Usage.cUsageIdentifier = 1;
  9109. chain_para.RequestedUsage.Usage.rgpszUsageIdentifier = &server_auth;
  9110. // Build certificate chain with revocation checking
  9111. PCCERT_CHAIN_CONTEXT chain_context = nullptr;
  9112. auto chain_result = CertGetCertificateChain(
  9113. nullptr, cert_context, nullptr, store, &chain_para,
  9114. CERT_CHAIN_CACHE_END_CERT | CERT_CHAIN_REVOCATION_CHECK_END_CERT |
  9115. CERT_CHAIN_REVOCATION_ACCUMULATIVE_TIMEOUT,
  9116. nullptr, &chain_context);
  9117. if (!chain_result || !chain_context) {
  9118. out_error = GetLastError();
  9119. return false;
  9120. }
  9121. auto chain_guard =
  9122. scope_exit([&] { CertFreeCertificateChain(chain_context); });
  9123. // Check if chain has errors
  9124. if (chain_context->TrustStatus.dwErrorStatus != CERT_TRUST_NO_ERROR) {
  9125. out_error = chain_context->TrustStatus.dwErrorStatus;
  9126. return false;
  9127. }
  9128. // Verify SSL policy
  9129. SSL_EXTRA_CERT_CHAIN_POLICY_PARA extra_policy_para = {};
  9130. extra_policy_para.cbSize = sizeof(extra_policy_para);
  9131. #ifdef AUTHTYPE_SERVER
  9132. extra_policy_para.dwAuthType = AUTHTYPE_SERVER;
  9133. #endif
  9134. std::wstring whost;
  9135. if (verify_hostname) {
  9136. whost = u8string_to_wstring(hostname.c_str());
  9137. extra_policy_para.pwszServerName = const_cast<wchar_t *>(whost.c_str());
  9138. }
  9139. CERT_CHAIN_POLICY_PARA policy_para = {};
  9140. policy_para.cbSize = sizeof(policy_para);
  9141. #ifdef CERT_CHAIN_POLICY_IGNORE_ALL_REV_UNKNOWN_FLAGS
  9142. policy_para.dwFlags = CERT_CHAIN_POLICY_IGNORE_ALL_REV_UNKNOWN_FLAGS;
  9143. #else
  9144. policy_para.dwFlags = 0;
  9145. #endif
  9146. policy_para.pvExtraPolicyPara = &extra_policy_para;
  9147. CERT_CHAIN_POLICY_STATUS policy_status = {};
  9148. policy_status.cbSize = sizeof(policy_status);
  9149. if (!CertVerifyCertificateChainPolicy(CERT_CHAIN_POLICY_SSL, chain_context,
  9150. &policy_para, &policy_status)) {
  9151. out_error = GetLastError();
  9152. return false;
  9153. }
  9154. if (policy_status.dwError != 0) {
  9155. out_error = policy_status.dwError;
  9156. return false;
  9157. }
  9158. return true;
  9159. }
  9160. #endif // _WIN32
  9161. // Loads CA file/dir configuration and applies the system CA policy to a
  9162. // client TLS context. PEM data and native stores are applied to the context
  9163. // directly at set time; has_custom_store reflects them for the Auto policy
  9164. // decision.
  9165. inline bool load_client_ca_config(tls::ctx_t ctx,
  9166. const std::string &ca_cert_file_path,
  9167. const std::string &ca_cert_dir_path,
  9168. bool has_custom_store, SystemCAMode mode,
  9169. uint64_t &backend_error) {
  9170. auto ret = true;
  9171. if (!ca_cert_file_path.empty()) {
  9172. if (!tls::load_ca_file(ctx, ca_cert_file_path.c_str())) {
  9173. backend_error = tls::get_error();
  9174. ret = false;
  9175. }
  9176. } else if (!ca_cert_dir_path.empty()) {
  9177. if (!tls::load_ca_dir(ctx, ca_cert_dir_path.c_str())) {
  9178. backend_error = tls::get_error();
  9179. ret = false;
  9180. }
  9181. }
  9182. auto has_custom_ca = !ca_cert_file_path.empty() ||
  9183. !ca_cert_dir_path.empty() || has_custom_store;
  9184. if (mode == SystemCAMode::Enabled ||
  9185. (mode == SystemCAMode::Auto && !has_custom_ca)) {
  9186. if (!tls::load_system_certs(ctx)) { backend_error = tls::get_error(); }
  9187. }
  9188. return ret;
  9189. }
  9190. // The parts of session setup that only SSLClient needs, plus the handful
  9191. // WebSocketClient also exposes; everything else takes the defaults, which is
  9192. // what keeps the two clients on one implementation.
  9193. struct ClientTlsSessionOptions {
  9194. // Both SSLClient and WebSocketClient expose this independently of
  9195. // certificate verification.
  9196. bool server_hostname_verification = true;
  9197. std::function<SSLVerifierResponse(tls::session_t)> session_verifier;
  9198. // When non-null, guards session creation against concurrent use of the
  9199. // context. A WebSocketClient is not safe to use from several threads to
  9200. // begin with, so it passes nothing.
  9201. std::mutex *ctx_mutex = nullptr;
  9202. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  9203. // The caller decides whether Schannel has anything to say about this
  9204. // connection; see SSLClient::initialize_ssl().
  9205. bool windows_cert_verification = false;
  9206. // A server certificate verifier works on the backend's chain verification,
  9207. // so the backend keeps deciding and Schannel only adds its own check.
  9208. bool server_certificate_verifier_set = false;
  9209. #endif
  9210. };
  9211. // Filled in on failure for callers that report error details.
  9212. struct ClientTlsSessionError {
  9213. Error error = Error::Success;
  9214. int ssl_error = 0;
  9215. uint64_t backend_error = 0;
  9216. };
  9217. // Establishes a client TLS session on an already connected socket. On failure
  9218. // the session is left for the caller to free: SSLClient frees it right away,
  9219. // WebSocketClient keeps it in a member that shutdown_and_close() cleans up.
  9220. inline bool setup_client_tls_session(
  9221. const std::string &host, tls::ctx_t ctx, tls::session_t &session,
  9222. socket_t sock, bool server_certificate_verification, time_t timeout_sec,
  9223. time_t timeout_usec, ClientTlsSessionError *out_error = nullptr,
  9224. const ClientTlsSessionOptions &options = ClientTlsSessionOptions()) {
  9225. using namespace tls;
  9226. auto fail = [&](Error error, int ssl_error, uint64_t backend_error) {
  9227. if (out_error) {
  9228. out_error->error = error;
  9229. out_error->ssl_error = ssl_error;
  9230. out_error->backend_error = backend_error;
  9231. }
  9232. return false;
  9233. };
  9234. if (!ctx) {
  9235. session = nullptr;
  9236. return fail(Error::SSLConnection, 0, 0);
  9237. }
  9238. // With Windows verification on and no server certificate verifier set,
  9239. // Schannel is the only chain verifier. The backend's trust store is a
  9240. // snapshot of the Windows stores that lacks the roots Windows fetches on
  9241. // demand, so the backend's verdict is not used.
  9242. auto windows_verifies_chain = false;
  9243. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  9244. windows_verifies_chain = options.windows_cert_verification &&
  9245. !options.server_certificate_verifier_set;
  9246. #endif
  9247. #if defined(CPPHTTPLIB_MBEDTLS_SUPPORT) || defined(CPPHTTPLIB_WOLFSSL_SUPPORT)
  9248. // Mbed TLS and wolfSSL need the verification mode set explicitly; OpenSSL
  9249. // uses SSL_VERIFY_NONE and does all verification post-handshake. Unless
  9250. // Schannel verifies the chain instead, chain verification happens during
  9251. // the handshake even for IP hosts; the certificate identity is verified
  9252. // post-handshake via verify_hostname().
  9253. set_verify_client(ctx,
  9254. server_certificate_verification && !windows_verifies_chain);
  9255. #endif
  9256. {
  9257. std::unique_lock<std::mutex> guard;
  9258. if (options.ctx_mutex) {
  9259. guard = std::unique_lock<std::mutex>(*options.ctx_mutex);
  9260. }
  9261. session = create_session(ctx, sock);
  9262. }
  9263. if (!session) { return fail(Error::SSLConnection, 0, get_error()); }
  9264. // RFC 6066: SNI must not be set for IP addresses; skip it for IP hosts, so
  9265. // their identity is checked post-handshake below instead. On Mbed TLS and
  9266. // wolfSSL, set_sni also drives handshake-time hostname verification, so
  9267. // options.server_hostname_verification is threaded through here.
  9268. if (!is_ip_address(host)) {
  9269. if (!set_sni(session, host.c_str(), options.server_hostname_verification)) {
  9270. return fail(Error::SSLConnection, 0, get_error());
  9271. }
  9272. }
  9273. TlsError tls_err;
  9274. if (!connect_nonblocking(session, sock, timeout_sec, timeout_usec,
  9275. &tls_err)) {
  9276. auto error = Error::SSLConnection;
  9277. if (tls_err.code == ErrorCode::CertVerifyFailed) {
  9278. error = Error::SSLServerVerification;
  9279. } else if (tls_err.code == ErrorCode::HostnameMismatch) {
  9280. error = Error::SSLServerHostnameVerification;
  9281. }
  9282. return fail(error, static_cast<int>(tls_err.code), tls_err.backend_code);
  9283. }
  9284. auto verification_status = SSLVerifierResponse::NoDecisionMade;
  9285. if (options.session_verifier) {
  9286. verification_status = options.session_verifier(session);
  9287. }
  9288. if (verification_status == SSLVerifierResponse::CertificateRejected) {
  9289. return fail(Error::SSLServerVerification, 0, get_error());
  9290. }
  9291. if (verification_status == SSLVerifierResponse::NoDecisionMade &&
  9292. server_certificate_verification) {
  9293. if (!windows_verifies_chain) {
  9294. auto verify_result = get_verify_result(session);
  9295. if (verify_result != 0) {
  9296. return fail(Error::SSLServerVerification, 0,
  9297. static_cast<uint64_t>(verify_result));
  9298. }
  9299. }
  9300. auto server_cert = get_peer_cert(session);
  9301. if (!server_cert) {
  9302. return fail(Error::SSLServerVerification, 0, get_error());
  9303. }
  9304. auto cert_guard = detail::scope_exit([&] { free_cert(server_cert); });
  9305. // Identity check against the peer certificate, post-handshake for all
  9306. // backends. For IP hosts this is the only identity verification, since no
  9307. // hostname is bound during the handshake.
  9308. if (options.server_hostname_verification) {
  9309. if (!verify_hostname(server_cert, host.c_str())) {
  9310. return fail(Error::SSLServerHostnameVerification, 0,
  9311. hostname_mismatch_code());
  9312. }
  9313. }
  9314. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  9315. // Windows Schannel verification, which lets Windows fetch missing roots
  9316. // and intermediates on demand. It must not be skipped: unless a server
  9317. // certificate verifier is set, it is the only chain check.
  9318. if (options.windows_cert_verification) {
  9319. std::vector<unsigned char> der;
  9320. uint64_t wincrypt_error = 0;
  9321. if (!get_cert_der(server_cert, der) ||
  9322. !verify_cert_with_windows_schannel(
  9323. der, host, options.server_hostname_verification, wincrypt_error,
  9324. session)) {
  9325. return fail(Error::SSLServerVerification, 0, wincrypt_error);
  9326. }
  9327. }
  9328. #endif
  9329. }
  9330. return true;
  9331. }
  9332. } // namespace detail
  9333. #endif // CPPHTTPLIB_SSL_ENABLED
  9334. /*
  9335. * Group 3: httplib namespace - Non-SSL public API implementations
  9336. */
  9337. inline void default_socket_options(socket_t sock) {
  9338. set_socket_opt(sock, SOL_SOCKET,
  9339. #ifdef SO_REUSEPORT
  9340. SO_REUSEPORT,
  9341. #else
  9342. SO_REUSEADDR,
  9343. #endif
  9344. 1);
  9345. }
  9346. inline bool set_socket_opt(socket_t sock, int level, int optname, int optval) {
  9347. return detail::set_socket_opt_impl(sock, level, optname, &optval,
  9348. sizeof(optval));
  9349. }
  9350. inline std::string get_bearer_token_auth(const Request &req) {
  9351. // The auth scheme is case-insensitive (RFC 9110 11.1), and a value shorter
  9352. // than the prefix carries no token.
  9353. constexpr const char bearer_prefix[] = "Bearer ";
  9354. constexpr auto bearer_prefix_len = detail::str_len(bearer_prefix);
  9355. auto value = req.get_header_value("Authorization");
  9356. if (value.size() >= bearer_prefix_len &&
  9357. detail::case_ignore::equal(value.substr(0, bearer_prefix_len),
  9358. bearer_prefix)) {
  9359. return value.substr(bearer_prefix_len);
  9360. }
  9361. return "";
  9362. }
  9363. inline const char *status_message(int status) {
  9364. switch (status) {
  9365. case StatusCode::Continue_100: return "Continue";
  9366. case StatusCode::SwitchingProtocol_101: return "Switching Protocol";
  9367. case StatusCode::Processing_102: return "Processing";
  9368. case StatusCode::EarlyHints_103: return "Early Hints";
  9369. case StatusCode::OK_200: return "OK";
  9370. case StatusCode::Created_201: return "Created";
  9371. case StatusCode::Accepted_202: return "Accepted";
  9372. case StatusCode::NonAuthoritativeInformation_203:
  9373. return "Non-Authoritative Information";
  9374. case StatusCode::NoContent_204: return "No Content";
  9375. case StatusCode::ResetContent_205: return "Reset Content";
  9376. case StatusCode::PartialContent_206: return "Partial Content";
  9377. case StatusCode::MultiStatus_207: return "Multi-Status";
  9378. case StatusCode::AlreadyReported_208: return "Already Reported";
  9379. case StatusCode::IMUsed_226: return "IM Used";
  9380. case StatusCode::MultipleChoices_300: return "Multiple Choices";
  9381. case StatusCode::MovedPermanently_301: return "Moved Permanently";
  9382. case StatusCode::Found_302: return "Found";
  9383. case StatusCode::SeeOther_303: return "See Other";
  9384. case StatusCode::NotModified_304: return "Not Modified";
  9385. case StatusCode::UseProxy_305: return "Use Proxy";
  9386. case StatusCode::unused_306: return "unused";
  9387. case StatusCode::TemporaryRedirect_307: return "Temporary Redirect";
  9388. case StatusCode::PermanentRedirect_308: return "Permanent Redirect";
  9389. case StatusCode::BadRequest_400: return "Bad Request";
  9390. case StatusCode::Unauthorized_401: return "Unauthorized";
  9391. case StatusCode::PaymentRequired_402: return "Payment Required";
  9392. case StatusCode::Forbidden_403: return "Forbidden";
  9393. case StatusCode::NotFound_404: return "Not Found";
  9394. case StatusCode::MethodNotAllowed_405: return "Method Not Allowed";
  9395. case StatusCode::NotAcceptable_406: return "Not Acceptable";
  9396. case StatusCode::ProxyAuthenticationRequired_407:
  9397. return "Proxy Authentication Required";
  9398. case StatusCode::RequestTimeout_408: return "Request Timeout";
  9399. case StatusCode::Conflict_409: return "Conflict";
  9400. case StatusCode::Gone_410: return "Gone";
  9401. case StatusCode::LengthRequired_411: return "Length Required";
  9402. case StatusCode::PreconditionFailed_412: return "Precondition Failed";
  9403. case StatusCode::PayloadTooLarge_413: return "Payload Too Large";
  9404. case StatusCode::UriTooLong_414: return "URI Too Long";
  9405. case StatusCode::UnsupportedMediaType_415: return "Unsupported Media Type";
  9406. case StatusCode::RangeNotSatisfiable_416: return "Range Not Satisfiable";
  9407. case StatusCode::ExpectationFailed_417: return "Expectation Failed";
  9408. case StatusCode::ImATeapot_418: return "I'm a teapot";
  9409. case StatusCode::MisdirectedRequest_421: return "Misdirected Request";
  9410. case StatusCode::UnprocessableContent_422: return "Unprocessable Content";
  9411. case StatusCode::Locked_423: return "Locked";
  9412. case StatusCode::FailedDependency_424: return "Failed Dependency";
  9413. case StatusCode::TooEarly_425: return "Too Early";
  9414. case StatusCode::UpgradeRequired_426: return "Upgrade Required";
  9415. case StatusCode::PreconditionRequired_428: return "Precondition Required";
  9416. case StatusCode::TooManyRequests_429: return "Too Many Requests";
  9417. case StatusCode::RequestHeaderFieldsTooLarge_431:
  9418. return "Request Header Fields Too Large";
  9419. case StatusCode::UnavailableForLegalReasons_451:
  9420. return "Unavailable For Legal Reasons";
  9421. case StatusCode::NotImplemented_501: return "Not Implemented";
  9422. case StatusCode::BadGateway_502: return "Bad Gateway";
  9423. case StatusCode::ServiceUnavailable_503: return "Service Unavailable";
  9424. case StatusCode::GatewayTimeout_504: return "Gateway Timeout";
  9425. case StatusCode::HttpVersionNotSupported_505:
  9426. return "HTTP Version Not Supported";
  9427. case StatusCode::VariantAlsoNegotiates_506: return "Variant Also Negotiates";
  9428. case StatusCode::InsufficientStorage_507: return "Insufficient Storage";
  9429. case StatusCode::LoopDetected_508: return "Loop Detected";
  9430. case StatusCode::NotExtended_510: return "Not Extended";
  9431. case StatusCode::NetworkAuthenticationRequired_511:
  9432. return "Network Authentication Required";
  9433. default:
  9434. case StatusCode::InternalServerError_500: return "Internal Server Error";
  9435. }
  9436. }
  9437. inline std::string to_string(const Error error) {
  9438. switch (error) {
  9439. case Error::Success: return "Success (no error)";
  9440. case Error::Unknown: return "Unknown";
  9441. case Error::Connection: return "Could not establish connection";
  9442. case Error::BindIPAddress: return "Failed to bind IP address";
  9443. case Error::Read: return "Failed to read connection";
  9444. case Error::Write: return "Failed to write connection";
  9445. case Error::ExceedRedirectCount: return "Maximum redirect count exceeded";
  9446. case Error::Canceled: return "Connection handling canceled";
  9447. case Error::SSLConnection: return "SSL connection failed";
  9448. case Error::SSLLoadingCerts: return "SSL certificate loading failed";
  9449. case Error::SSLServerVerification: return "SSL server verification failed";
  9450. case Error::SSLServerHostnameVerification:
  9451. return "SSL server hostname verification failed";
  9452. case Error::UnsupportedMultipartBoundaryChars:
  9453. return "Unsupported HTTP multipart boundary characters";
  9454. case Error::Compression: return "Compression failed";
  9455. case Error::ConnectionTimeout: return "Connection timed out";
  9456. case Error::ProxyConnection: return "Proxy connection failed";
  9457. case Error::ConnectionClosed: return "Connection closed by server";
  9458. case Error::Timeout: return "Read timeout";
  9459. case Error::ResourceExhaustion: return "Resource exhaustion";
  9460. case Error::TooManyFormDataFiles: return "Too many form data files";
  9461. case Error::ExceedMaxPayloadSize: return "Exceeded maximum payload size";
  9462. case Error::ExceedUriMaxLength: return "Exceeded maximum URI length";
  9463. case Error::ExceedMaxSocketDescriptorCount:
  9464. return "Exceeded maximum socket descriptor count";
  9465. case Error::InvalidRequestLine: return "Invalid request line";
  9466. case Error::InvalidHTTPMethod: return "Invalid HTTP method";
  9467. case Error::InvalidHTTPVersion: return "Invalid HTTP version";
  9468. case Error::InvalidHeaders: return "Invalid headers";
  9469. case Error::MultipartParsing: return "Multipart parsing failed";
  9470. case Error::OpenFile: return "Failed to open file";
  9471. case Error::Listen: return "Failed to listen on socket";
  9472. case Error::GetSockName: return "Failed to get socket name";
  9473. case Error::UnsupportedAddressFamily: return "Unsupported address family";
  9474. case Error::HTTPParsing: return "HTTP parsing failed";
  9475. case Error::InvalidRangeHeader: return "Invalid Range header";
  9476. case Error::UnsupportedContentEncoding: return "Unsupported Content-Encoding";
  9477. case Error::WebSocketHandshake: return "WebSocket handshake failed";
  9478. case Error::UserCallbackException: return "User callback threw an exception";
  9479. default: break;
  9480. }
  9481. return "Invalid";
  9482. }
  9483. inline std::ostream &operator<<(std::ostream &os, const Error &obj) {
  9484. os << to_string(obj);
  9485. os << " (" << static_cast<std::underlying_type<Error>::type>(obj) << ')';
  9486. return os;
  9487. }
  9488. inline std::string hosted_at(const std::string &hostname) {
  9489. std::vector<std::string> addrs;
  9490. hosted_at(hostname, addrs);
  9491. if (addrs.empty()) { return std::string(); }
  9492. return addrs[0];
  9493. }
  9494. inline void hosted_at(const std::string &hostname,
  9495. std::vector<std::string> &addrs) {
  9496. struct addrinfo hints;
  9497. struct addrinfo *result;
  9498. memset(&hints, 0, sizeof(struct addrinfo));
  9499. hints.ai_family = AF_UNSPEC;
  9500. hints.ai_socktype = SOCK_STREAM;
  9501. hints.ai_protocol = 0;
  9502. if (detail::getaddrinfo_with_timeout(hostname.c_str(), nullptr, &hints,
  9503. &result, 0)) {
  9504. #if defined __linux__ && !defined __ANDROID__
  9505. res_init();
  9506. #endif
  9507. return;
  9508. }
  9509. auto se = detail::scope_exit([&] { freeaddrinfo(result); });
  9510. for (auto rp = result; rp; rp = rp->ai_next) {
  9511. const auto &addr =
  9512. *reinterpret_cast<struct sockaddr_storage *>(rp->ai_addr);
  9513. std::string ip;
  9514. auto dummy = -1;
  9515. if (detail::get_ip_and_port(addr, sizeof(struct sockaddr_storage), ip,
  9516. dummy)) {
  9517. addrs.emplace_back(std::move(ip));
  9518. }
  9519. }
  9520. }
  9521. inline std::string encode_uri_component(const std::string &value) {
  9522. std::ostringstream escaped;
  9523. escaped.fill('0');
  9524. escaped << std::hex;
  9525. for (auto c : value) {
  9526. if (detail::is_ascii_alnum(c) || c == '-' || c == '_' || c == '.' ||
  9527. c == '!' || c == '~' || c == '*' || c == '\'' || c == '(' || c == ')') {
  9528. escaped << c;
  9529. } else {
  9530. escaped << std::uppercase;
  9531. escaped << '%' << std::setw(2)
  9532. << static_cast<int>(static_cast<unsigned char>(c));
  9533. escaped << std::nouppercase;
  9534. }
  9535. }
  9536. return escaped.str();
  9537. }
  9538. inline std::string encode_uri(const std::string &value) {
  9539. std::ostringstream escaped;
  9540. escaped.fill('0');
  9541. escaped << std::hex;
  9542. for (auto c : value) {
  9543. if (detail::is_ascii_alnum(c) || c == '-' || c == '_' || c == '.' ||
  9544. c == '!' || c == '~' || c == '*' || c == '\'' || c == '(' || c == ')' ||
  9545. c == ';' || c == '/' || c == '?' || c == ':' || c == '@' || c == '&' ||
  9546. c == '=' || c == '+' || c == '$' || c == ',' || c == '#') {
  9547. escaped << c;
  9548. } else {
  9549. escaped << std::uppercase;
  9550. escaped << '%' << std::setw(2)
  9551. << static_cast<int>(static_cast<unsigned char>(c));
  9552. escaped << std::nouppercase;
  9553. }
  9554. }
  9555. return escaped.str();
  9556. }
  9557. inline std::string decode_uri_component(const std::string &value) {
  9558. std::string result;
  9559. for (size_t i = 0; i < value.size(); i++) {
  9560. if (value[i] == '%' && i + 2 < value.size()) {
  9561. auto val = 0;
  9562. if (detail::from_hex_to_i(value, i + 1, 2, val)) {
  9563. result += static_cast<char>(val);
  9564. i += 2;
  9565. } else {
  9566. result += value[i];
  9567. }
  9568. } else {
  9569. result += value[i];
  9570. }
  9571. }
  9572. return result;
  9573. }
  9574. inline std::string decode_uri(const std::string &value) {
  9575. std::string result;
  9576. for (size_t i = 0; i < value.size(); i++) {
  9577. if (value[i] == '%' && i + 2 < value.size()) {
  9578. auto val = 0;
  9579. if (detail::from_hex_to_i(value, i + 1, 2, val)) {
  9580. auto c = static_cast<char>(val);
  9581. // Keep escapes of the reserved characters that encode_uri leaves
  9582. // literal, so decode_uri is the inverse of encode_uri and an escaped
  9583. // delimiter is not promoted into a real one (as with JS decodeURI).
  9584. if (c == ';' || c == '/' || c == '?' || c == ':' || c == '@' ||
  9585. c == '&' || c == '=' || c == '+' || c == '$' || c == ',' ||
  9586. c == '#') {
  9587. result += value[i];
  9588. result += value[i + 1];
  9589. result += value[i + 2];
  9590. } else {
  9591. result += c;
  9592. }
  9593. i += 2;
  9594. } else {
  9595. result += value[i];
  9596. }
  9597. } else {
  9598. result += value[i];
  9599. }
  9600. }
  9601. return result;
  9602. }
  9603. inline std::string encode_path_component(const std::string &component) {
  9604. std::string result;
  9605. result.reserve(component.size() * 3);
  9606. for (size_t i = 0; i < component.size(); i++) {
  9607. auto c = static_cast<unsigned char>(component[i]);
  9608. // Unreserved characters per RFC 3986: ALPHA / DIGIT / "-" / "." / "_" / "~"
  9609. if (detail::is_ascii_alnum(static_cast<char>(c)) || c == '-' || c == '.' ||
  9610. c == '_' || c == '~') {
  9611. result += static_cast<char>(c);
  9612. }
  9613. // Path-safe sub-delimiters: "!" / "$" / "&" / "'" / "(" / ")" / "*" / "+" /
  9614. // "," / ";" / "="
  9615. else if (c == '!' || c == '$' || c == '&' || c == '\'' || c == '(' ||
  9616. c == ')' || c == '*' || c == '+' || c == ',' || c == ';' ||
  9617. c == '=') {
  9618. result += static_cast<char>(c);
  9619. }
  9620. // Colon is allowed in path segments except first segment
  9621. else if (c == ':') {
  9622. result += static_cast<char>(c);
  9623. }
  9624. // @ is allowed in path
  9625. else if (c == '@') {
  9626. result += static_cast<char>(c);
  9627. } else {
  9628. result += '%';
  9629. char hex[3];
  9630. snprintf(hex, sizeof(hex), "%02X", c);
  9631. result.append(hex, 2);
  9632. }
  9633. }
  9634. return result;
  9635. }
  9636. inline std::string decode_path_component(const std::string &component) {
  9637. std::string result;
  9638. result.reserve(component.size());
  9639. for (size_t i = 0; i < component.size(); i++) {
  9640. if (component[i] == '%' && i + 1 < component.size()) {
  9641. if (component[i + 1] == 'u') {
  9642. // Unicode %uXXXX encoding
  9643. auto val = 0;
  9644. if (detail::from_hex_to_i(component, i + 2, 4, val)) {
  9645. // 4 digits Unicode codes: val is 0x0000-0xFFFF (from 4 hex digits),
  9646. // so to_utf8 writes at most 3 bytes. buff[4] is safe.
  9647. char buff[4];
  9648. size_t len = detail::to_utf8(val, buff);
  9649. if (len > 0) { result.append(buff, len); }
  9650. i += 5; // 'u0000'
  9651. } else {
  9652. result += component[i];
  9653. }
  9654. } else {
  9655. // Standard %XX encoding
  9656. auto val = 0;
  9657. if (detail::from_hex_to_i(component, i + 1, 2, val)) {
  9658. // 2 digits hex codes
  9659. result += static_cast<char>(val);
  9660. i += 2; // 'XX'
  9661. } else {
  9662. result += component[i];
  9663. }
  9664. }
  9665. } else {
  9666. result += component[i];
  9667. }
  9668. }
  9669. return result;
  9670. }
  9671. inline std::string encode_query_component(const std::string &component,
  9672. bool space_as_plus) {
  9673. std::string result;
  9674. result.reserve(component.size() * 3);
  9675. for (size_t i = 0; i < component.size(); i++) {
  9676. auto c = static_cast<unsigned char>(component[i]);
  9677. // Unreserved characters per RFC 3986
  9678. if (detail::is_ascii_alnum(static_cast<char>(c)) || c == '-' || c == '.' ||
  9679. c == '_' || c == '~') {
  9680. result += static_cast<char>(c);
  9681. }
  9682. // Space handling
  9683. else if (c == ' ') {
  9684. if (space_as_plus) {
  9685. result += '+';
  9686. } else {
  9687. result += "%20";
  9688. }
  9689. }
  9690. // Plus sign handling
  9691. else if (c == '+') {
  9692. if (space_as_plus) {
  9693. result += "%2B";
  9694. } else {
  9695. result += static_cast<char>(c);
  9696. }
  9697. }
  9698. // Query-safe sub-delimiters (excluding & and = which are query delimiters)
  9699. else if (c == '!' || c == '$' || c == '\'' || c == '(' || c == ')' ||
  9700. c == '*' || c == ',' || c == ';') {
  9701. result += static_cast<char>(c);
  9702. }
  9703. // Colon and @ are allowed in query
  9704. else if (c == ':' || c == '@') {
  9705. result += static_cast<char>(c);
  9706. }
  9707. // Forward slash is allowed in query values
  9708. else if (c == '/') {
  9709. result += static_cast<char>(c);
  9710. }
  9711. // Question mark is allowed in query values (after first ?)
  9712. else if (c == '?') {
  9713. result += static_cast<char>(c);
  9714. } else {
  9715. result += '%';
  9716. char hex[3];
  9717. snprintf(hex, sizeof(hex), "%02X", c);
  9718. result.append(hex, 2);
  9719. }
  9720. }
  9721. return result;
  9722. }
  9723. inline std::string decode_query_component(const std::string &component,
  9724. bool plus_as_space) {
  9725. std::string result;
  9726. result.reserve(component.size());
  9727. for (size_t i = 0; i < component.size(); i++) {
  9728. if (component[i] == '%' && i + 2 < component.size()) {
  9729. auto val = 0;
  9730. if (detail::from_hex_to_i(component, i + 1, 2, val)) {
  9731. result += static_cast<char>(val);
  9732. i += 2;
  9733. } else {
  9734. result += component[i];
  9735. }
  9736. } else if (component[i] == '+' && plus_as_space) {
  9737. result += ' '; // + becomes space in form-urlencoded
  9738. } else {
  9739. result += component[i];
  9740. }
  9741. }
  9742. return result;
  9743. }
  9744. inline std::string sanitize_filename(const std::string &filename) {
  9745. // Extract basename: find the last path separator (/ or \)
  9746. auto pos = filename.find_last_of("/\\");
  9747. auto result =
  9748. (pos != std::string::npos) ? filename.substr(pos + 1) : filename;
  9749. // Strip null bytes
  9750. result.erase(std::remove(result.begin(), result.end(), '\0'), result.end());
  9751. // Trim whitespace
  9752. {
  9753. auto start = result.find_first_not_of(" \t");
  9754. auto end = result.find_last_not_of(" \t");
  9755. result = (start == std::string::npos)
  9756. ? ""
  9757. : result.substr(start, end - start + 1);
  9758. }
  9759. // Reject . and ..
  9760. if (result == "." || result == "..") { return ""; }
  9761. return result;
  9762. }
  9763. inline std::string append_query_params(const std::string &path,
  9764. const Params &params) {
  9765. std::string path_with_query = path;
  9766. thread_local const std::regex re("[^?]+\\?.*");
  9767. auto delm = std::regex_match(path, re) ? '&' : '?';
  9768. path_with_query += delm + detail::params_to_query_str(params);
  9769. return path_with_query;
  9770. }
  9771. // Header utilities
  9772. inline std::pair<std::string, std::string>
  9773. make_range_header(const Ranges &ranges) {
  9774. std::string field = "bytes=";
  9775. auto i = 0;
  9776. for (const auto &r : ranges) {
  9777. if (i != 0) { field += ", "; }
  9778. if (r.first != -1) { field += std::to_string(r.first); }
  9779. field += '-';
  9780. if (r.second != -1) { field += std::to_string(r.second); }
  9781. i++;
  9782. }
  9783. return std::make_pair("Range", std::move(field));
  9784. }
  9785. inline std::pair<std::string, std::string>
  9786. make_basic_authentication_header(const std::string &username,
  9787. const std::string &password, bool is_proxy) {
  9788. auto field = "Basic " + detail::base64_encode(username + ":" + password);
  9789. auto key = is_proxy ? "Proxy-Authorization" : "Authorization";
  9790. return std::make_pair(key, std::move(field));
  9791. }
  9792. inline std::pair<std::string, std::string>
  9793. make_bearer_token_authentication_header(const std::string &token,
  9794. bool is_proxy = false) {
  9795. auto field = "Bearer " + token;
  9796. auto key = is_proxy ? "Proxy-Authorization" : "Authorization";
  9797. return std::make_pair(key, std::move(field));
  9798. }
  9799. // Request implementation
  9800. inline size_t Request::get_header_value_u64(const std::string &key, size_t def,
  9801. size_t id) const {
  9802. return detail::get_header_value_u64(headers, key, def, id);
  9803. }
  9804. inline bool Request::has_header(const std::string &key) const {
  9805. return detail::has_header(headers, key);
  9806. }
  9807. inline std::string Request::get_header_value(const std::string &key,
  9808. const char *def, size_t id) const {
  9809. return detail::get_header_value(headers, key, def, id);
  9810. }
  9811. inline size_t Request::get_header_value_count(const std::string &key) const {
  9812. return detail::get_header_value_count(headers, key);
  9813. }
  9814. inline void Request::set_header(const std::string &key,
  9815. const std::string &val) {
  9816. detail::set_header(headers, key, val);
  9817. }
  9818. inline bool Request::has_trailer(const std::string &key) const {
  9819. return trailers.find(key) != trailers.end();
  9820. }
  9821. inline std::string Request::get_trailer_value(const std::string &key,
  9822. size_t id) const {
  9823. return detail::get_multimap_value(trailers, key, id);
  9824. }
  9825. inline size_t Request::get_trailer_value_count(const std::string &key) const {
  9826. return trailers.count(key);
  9827. }
  9828. inline bool Request::has_param(const std::string &key) const {
  9829. return params.find(key) != params.end();
  9830. }
  9831. inline std::string Request::get_param_value(const std::string &key,
  9832. size_t id) const {
  9833. return detail::get_multimap_value(params, key, id);
  9834. }
  9835. inline std::vector<std::string>
  9836. Request::get_param_values(const std::string &key) const {
  9837. auto rng = params.equal_range(key);
  9838. std::vector<std::string> values;
  9839. values.reserve(static_cast<size_t>(std::distance(rng.first, rng.second)));
  9840. for (auto it = rng.first; it != rng.second; ++it) {
  9841. values.push_back(it->second);
  9842. }
  9843. return values;
  9844. }
  9845. inline size_t Request::get_param_value_count(const std::string &key) const {
  9846. return params.count(key);
  9847. }
  9848. inline bool Request::is_multipart_form_data() const {
  9849. const auto &content_type = get_header_value("Content-Type");
  9850. return detail::extract_media_type(content_type) == "multipart/form-data";
  9851. }
  9852. // Multipart FormData implementation
  9853. inline std::string MultipartFormData::get_field(const std::string &key,
  9854. size_t id) const {
  9855. auto rng = fields.equal_range(key);
  9856. auto it = rng.first;
  9857. std::advance(it, static_cast<ssize_t>(id));
  9858. if (it != rng.second) { return it->second.content; }
  9859. return std::string();
  9860. }
  9861. inline std::vector<std::string>
  9862. MultipartFormData::get_fields(const std::string &key) const {
  9863. std::vector<std::string> values;
  9864. auto rng = fields.equal_range(key);
  9865. for (auto it = rng.first; it != rng.second; it++) {
  9866. values.push_back(it->second.content);
  9867. }
  9868. return values;
  9869. }
  9870. inline bool MultipartFormData::has_field(const std::string &key) const {
  9871. return fields.find(key) != fields.end();
  9872. }
  9873. inline size_t MultipartFormData::get_field_count(const std::string &key) const {
  9874. return fields.count(key);
  9875. }
  9876. inline FormData MultipartFormData::get_file(const std::string &key,
  9877. size_t id) const {
  9878. return detail::get_multimap_value(files, key, id);
  9879. }
  9880. inline std::vector<FormData>
  9881. MultipartFormData::get_files(const std::string &key) const {
  9882. std::vector<FormData> values;
  9883. auto rng = files.equal_range(key);
  9884. for (auto it = rng.first; it != rng.second; it++) {
  9885. values.push_back(it->second);
  9886. }
  9887. return values;
  9888. }
  9889. inline bool MultipartFormData::has_file(const std::string &key) const {
  9890. return files.find(key) != files.end();
  9891. }
  9892. inline size_t MultipartFormData::get_file_count(const std::string &key) const {
  9893. return files.count(key);
  9894. }
  9895. // Multipart FormData writer implementation
  9896. inline bool is_valid_multipart_boundary(const std::string &boundary) {
  9897. return detail::is_multipart_boundary_chars_valid(boundary);
  9898. }
  9899. inline MultipartFormDataWriter::MultipartFormDataWriter()
  9900. : boundary_(detail::make_multipart_data_boundary()) {}
  9901. inline MultipartFormDataWriter::MultipartFormDataWriter(std::string boundary)
  9902. : boundary_(std::move(boundary)) {}
  9903. inline const std::string &MultipartFormDataWriter::boundary() const {
  9904. return boundary_;
  9905. }
  9906. inline std::string MultipartFormDataWriter::content_type() const {
  9907. return detail::serialize_multipart_formdata_get_content_type(boundary_);
  9908. }
  9909. inline std::string
  9910. MultipartFormDataWriter::serialize(const UploadFormDataItems &items) const {
  9911. return detail::serialize_multipart_formdata(items, boundary_);
  9912. }
  9913. inline size_t MultipartFormDataWriter::content_length(
  9914. const UploadFormDataItems &items) const {
  9915. return detail::get_multipart_content_length(items, boundary_);
  9916. }
  9917. inline std::string
  9918. MultipartFormDataWriter::item_begin(const UploadFormData &item) const {
  9919. return detail::serialize_multipart_formdata_item_begin(item, boundary_);
  9920. }
  9921. inline std::string MultipartFormDataWriter::item_end() {
  9922. return detail::serialize_multipart_formdata_item_end();
  9923. }
  9924. inline std::string MultipartFormDataWriter::finish() const {
  9925. return detail::serialize_multipart_formdata_finish(boundary_);
  9926. }
  9927. // Response implementation
  9928. inline size_t Response::get_header_value_u64(const std::string &key, size_t def,
  9929. size_t id) const {
  9930. return detail::get_header_value_u64(headers, key, def, id);
  9931. }
  9932. inline bool Response::has_header(const std::string &key) const {
  9933. return headers.find(key) != headers.end();
  9934. }
  9935. inline std::string Response::get_header_value(const std::string &key,
  9936. const char *def,
  9937. size_t id) const {
  9938. return detail::get_header_value(headers, key, def, id);
  9939. }
  9940. inline size_t Response::get_header_value_count(const std::string &key) const {
  9941. return detail::get_header_value_count(headers, key);
  9942. }
  9943. inline void Response::set_header(const std::string &key,
  9944. const std::string &val) {
  9945. detail::set_header(headers, key, val);
  9946. }
  9947. inline bool Response::has_trailer(const std::string &key) const {
  9948. return trailers.find(key) != trailers.end();
  9949. }
  9950. inline std::string Response::get_trailer_value(const std::string &key,
  9951. size_t id) const {
  9952. return detail::get_multimap_value(trailers, key, id);
  9953. }
  9954. inline size_t Response::get_trailer_value_count(const std::string &key) const {
  9955. return trailers.count(key);
  9956. }
  9957. inline void Response::set_redirect(const std::string &url, int stat) {
  9958. if (detail::fields::is_field_value(url)) {
  9959. set_header("Location", url);
  9960. if (300 <= stat && stat < 400) {
  9961. this->status = stat;
  9962. } else {
  9963. this->status = StatusCode::Found_302;
  9964. }
  9965. }
  9966. }
  9967. inline void Response::set_content(const char *s, size_t n,
  9968. const std::string &content_type) {
  9969. body.assign(s, n);
  9970. auto rng = headers.equal_range("Content-Type");
  9971. headers.erase(rng.first, rng.second);
  9972. set_header("Content-Type", content_type);
  9973. content_coding_ = detail::EncodingType::None;
  9974. }
  9975. inline void Response::set_content(const std::string &s,
  9976. const std::string &content_type) {
  9977. set_content(s.data(), s.size(), content_type);
  9978. }
  9979. inline void Response::set_content(std::string &&s,
  9980. const std::string &content_type) {
  9981. body = std::move(s);
  9982. auto rng = headers.equal_range("Content-Type");
  9983. headers.erase(rng.first, rng.second);
  9984. set_header("Content-Type", content_type);
  9985. content_coding_ = detail::EncodingType::None;
  9986. }
  9987. inline void Response::set_content_provider(
  9988. size_t in_length, const std::string &content_type, ContentProvider provider,
  9989. ContentProviderResourceReleaser resource_releaser) {
  9990. set_header("Content-Type", content_type);
  9991. content_length_ = in_length;
  9992. if (in_length > 0) { content_provider_ = std::move(provider); }
  9993. content_provider_resource_releaser_ = std::move(resource_releaser);
  9994. is_chunked_content_provider_ = false;
  9995. is_file_content_provider_ = false;
  9996. content_coding_ = detail::EncodingType::None;
  9997. }
  9998. inline void Response::set_content_provider(
  9999. const std::string &content_type, ContentProviderWithoutLength provider,
  10000. ContentProviderResourceReleaser resource_releaser) {
  10001. set_header("Content-Type", content_type);
  10002. content_length_ = 0;
  10003. content_provider_ = detail::ContentProviderAdapter(std::move(provider));
  10004. content_provider_resource_releaser_ = std::move(resource_releaser);
  10005. is_chunked_content_provider_ = false;
  10006. is_file_content_provider_ = false;
  10007. content_coding_ = detail::EncodingType::None;
  10008. }
  10009. inline void Response::set_chunked_content_provider(
  10010. const std::string &content_type, ContentProviderWithoutLength provider,
  10011. ContentProviderResourceReleaser resource_releaser) {
  10012. set_header("Content-Type", content_type);
  10013. content_length_ = 0;
  10014. content_provider_ = detail::ContentProviderAdapter(std::move(provider));
  10015. content_provider_resource_releaser_ = std::move(resource_releaser);
  10016. is_chunked_content_provider_ = true;
  10017. is_file_content_provider_ = false;
  10018. content_coding_ = detail::EncodingType::None;
  10019. }
  10020. inline void Response::set_file_content(const std::string &path,
  10021. const std::string &content_type) {
  10022. file_content_path_ = path;
  10023. file_content_content_type_ = content_type;
  10024. }
  10025. inline void Response::set_file_content(const std::string &path) {
  10026. file_content_path_ = path;
  10027. }
  10028. // Result implementation
  10029. inline size_t Result::get_request_header_value_u64(const std::string &key,
  10030. size_t def,
  10031. size_t id) const {
  10032. return detail::get_header_value_u64(request_headers_, key, def, id);
  10033. }
  10034. inline bool Result::has_request_header(const std::string &key) const {
  10035. return request_headers_.find(key) != request_headers_.end();
  10036. }
  10037. inline std::string Result::get_request_header_value(const std::string &key,
  10038. const char *def,
  10039. size_t id) const {
  10040. return detail::get_header_value(request_headers_, key, def, id);
  10041. }
  10042. inline size_t
  10043. Result::get_request_header_value_count(const std::string &key) const {
  10044. return request_headers_.count(key);
  10045. }
  10046. // Stream implementation
  10047. inline ssize_t Stream::write(const char *ptr) {
  10048. return write(ptr, strlen(ptr));
  10049. }
  10050. inline ssize_t Stream::write(const std::string &s) {
  10051. return write(s.data(), s.size());
  10052. }
  10053. // BodyReader implementation
  10054. inline ssize_t detail::BodyReader::read(char *buf, size_t len) {
  10055. if (!stream) {
  10056. last_error = Error::Connection;
  10057. return -1;
  10058. }
  10059. if (eof) { return 0; }
  10060. if (!chunked) {
  10061. // Content-Length based reading
  10062. if (has_content_length && bytes_read >= content_length) {
  10063. eof = true;
  10064. return 0;
  10065. }
  10066. auto to_read = len;
  10067. if (has_content_length) {
  10068. auto remaining = content_length - bytes_read;
  10069. to_read = (std::min)(len, remaining);
  10070. }
  10071. auto n = stream->read(buf, to_read);
  10072. if (n < 0) {
  10073. last_error = stream->get_error();
  10074. if (last_error == Error::Success) { last_error = Error::Read; }
  10075. eof = true;
  10076. return n;
  10077. }
  10078. if (n == 0) {
  10079. // Unexpected EOF before content_length
  10080. last_error = stream->get_error();
  10081. if (last_error == Error::Success) { last_error = Error::Read; }
  10082. eof = true;
  10083. return 0;
  10084. }
  10085. bytes_read += static_cast<size_t>(n);
  10086. if (has_content_length && bytes_read >= content_length) { eof = true; }
  10087. if (payload_max_length > 0 && bytes_read > payload_max_length) {
  10088. last_error = Error::ExceedMaxPayloadSize;
  10089. eof = true;
  10090. return -1;
  10091. }
  10092. return n;
  10093. }
  10094. // Chunked transfer encoding: delegate to shared decoder instance.
  10095. if (!chunked_decoder) { chunked_decoder.reset(new ChunkedDecoder(*stream)); }
  10096. size_t chunk_offset = 0;
  10097. size_t chunk_total = 0;
  10098. auto n = chunked_decoder->read_payload(buf, len, chunk_offset, chunk_total);
  10099. if (n < 0) {
  10100. last_error = stream->get_error();
  10101. if (last_error == Error::Success) { last_error = Error::Read; }
  10102. eof = true;
  10103. return n;
  10104. }
  10105. if (n == 0) {
  10106. // Final chunk observed. Leave trailer parsing to the caller (StreamHandle).
  10107. eof = true;
  10108. return 0;
  10109. }
  10110. bytes_read += static_cast<size_t>(n);
  10111. if (payload_max_length > 0 && bytes_read > payload_max_length) {
  10112. last_error = Error::ExceedMaxPayloadSize;
  10113. eof = true;
  10114. return -1;
  10115. }
  10116. return n;
  10117. }
  10118. // ThreadPool implementation
  10119. inline ThreadPool::ThreadPool(size_t n, size_t max_n, size_t mqr,
  10120. time_t idle_timeout_sec)
  10121. : base_thread_count_(n), max_queued_requests_(mqr),
  10122. idle_timeout_sec_(idle_timeout_sec), idle_thread_count_(0),
  10123. shutdown_(false) {
  10124. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  10125. if (max_n != 0 && max_n < n) {
  10126. std::string msg = "max_threads must be >= base_threads";
  10127. throw std::invalid_argument(msg);
  10128. }
  10129. #endif
  10130. max_thread_count_ = max_n == 0 ? n : max_n;
  10131. threads_.reserve(base_thread_count_);
  10132. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  10133. try {
  10134. #endif
  10135. for (size_t i = 0; i < base_thread_count_; i++) {
  10136. threads_.emplace_back(std::thread([this]() { worker(false); }));
  10137. }
  10138. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  10139. } catch (...) {
  10140. // If thread creation fails partway (e.g., pthread_create returns EAGAIN),
  10141. // signal the workers we already spawned to exit and join them so the
  10142. // vector destructor does not see joinable threads (which would call
  10143. // std::terminate). Then rethrow so the caller learns of the failure.
  10144. {
  10145. std::unique_lock<std::mutex> lock(mutex_);
  10146. shutdown_ = true;
  10147. }
  10148. cond_.notify_all();
  10149. for (auto &t : threads_) {
  10150. if (t.joinable()) { t.join(); }
  10151. }
  10152. throw;
  10153. }
  10154. #endif
  10155. }
  10156. inline bool ThreadPool::enqueue(std::function<void()> fn) {
  10157. {
  10158. std::unique_lock<std::mutex> lock(mutex_);
  10159. if (shutdown_) { return false; }
  10160. if (max_queued_requests_ > 0 && jobs_.size() >= max_queued_requests_) {
  10161. return false;
  10162. }
  10163. jobs_.push_back(std::move(fn));
  10164. // Spawn a dynamic thread if no idle threads and under max
  10165. if (idle_thread_count_ == 0 &&
  10166. threads_.size() + dynamic_threads_.size() < max_thread_count_) {
  10167. cleanup_finished_threads();
  10168. dynamic_threads_.emplace_back(std::thread([this]() { worker(true); }));
  10169. }
  10170. }
  10171. cond_.notify_one();
  10172. return true;
  10173. }
  10174. inline void ThreadPool::shutdown() {
  10175. {
  10176. std::unique_lock<std::mutex> lock(mutex_);
  10177. shutdown_ = true;
  10178. }
  10179. cond_.notify_all();
  10180. for (auto &t : threads_) {
  10181. if (t.joinable()) { t.join(); }
  10182. }
  10183. // Move dynamic_threads_ to a local list under the lock to avoid racing
  10184. // with worker threads that call move_to_finished() concurrently.
  10185. std::list<std::thread> remaining_dynamic;
  10186. {
  10187. std::unique_lock<std::mutex> lock(mutex_);
  10188. remaining_dynamic = std::move(dynamic_threads_);
  10189. }
  10190. for (auto &t : remaining_dynamic) {
  10191. if (t.joinable()) { t.join(); }
  10192. }
  10193. std::unique_lock<std::mutex> lock(mutex_);
  10194. cleanup_finished_threads();
  10195. }
  10196. inline void ThreadPool::move_to_finished(std::thread::id id) {
  10197. // Must be called with mutex_ held
  10198. for (auto it = dynamic_threads_.begin(); it != dynamic_threads_.end(); ++it) {
  10199. if (it->get_id() == id) {
  10200. finished_threads_.push_back(std::move(*it));
  10201. dynamic_threads_.erase(it);
  10202. return;
  10203. }
  10204. }
  10205. }
  10206. inline void ThreadPool::cleanup_finished_threads() {
  10207. // Must be called with mutex_ held
  10208. for (auto &t : finished_threads_) {
  10209. if (t.joinable()) { t.join(); }
  10210. }
  10211. finished_threads_.clear();
  10212. }
  10213. inline void ThreadPool::worker(bool is_dynamic) {
  10214. for (;;) {
  10215. std::function<void()> fn;
  10216. {
  10217. std::unique_lock<std::mutex> lock(mutex_);
  10218. idle_thread_count_++;
  10219. if (is_dynamic) {
  10220. auto has_work =
  10221. cond_.wait_for(lock, std::chrono::seconds(idle_timeout_sec_),
  10222. [&] { return !jobs_.empty() || shutdown_; });
  10223. if (!has_work) {
  10224. // Timed out with no work - exit this dynamic thread
  10225. idle_thread_count_--;
  10226. move_to_finished(std::this_thread::get_id());
  10227. break;
  10228. }
  10229. } else {
  10230. cond_.wait(lock, [&] { return !jobs_.empty() || shutdown_; });
  10231. }
  10232. idle_thread_count_--;
  10233. if (shutdown_ && jobs_.empty()) { break; }
  10234. fn = std::move(jobs_.front());
  10235. jobs_.pop_front();
  10236. }
  10237. assert(true == static_cast<bool>(fn));
  10238. fn();
  10239. }
  10240. #if defined(CPPHTTPLIB_OPENSSL_SUPPORT) && !defined(OPENSSL_IS_BORINGSSL) && \
  10241. !defined(LIBRESSL_VERSION_NUMBER)
  10242. OPENSSL_thread_stop();
  10243. #endif
  10244. }
  10245. /*
  10246. * Group 1 (continued): detail namespace - Stream implementations
  10247. */
  10248. namespace detail {
  10249. inline void calc_actual_timeout(time_t max_timeout_msec, time_t duration_msec,
  10250. time_t timeout_sec, time_t timeout_usec,
  10251. time_t &actual_timeout_sec,
  10252. time_t &actual_timeout_usec) {
  10253. auto timeout_msec = (timeout_sec * 1000) + (timeout_usec / 1000);
  10254. auto actual_timeout_msec =
  10255. (std::min)(max_timeout_msec - duration_msec, timeout_msec);
  10256. if (actual_timeout_msec < 0) { actual_timeout_msec = 0; }
  10257. actual_timeout_sec = actual_timeout_msec / 1000;
  10258. actual_timeout_usec = (actual_timeout_msec % 1000) * 1000;
  10259. }
  10260. // Socket stream implementation
  10261. inline SocketStream::SocketStream(
  10262. socket_t sock, time_t read_timeout_sec, time_t read_timeout_usec,
  10263. time_t write_timeout_sec, time_t write_timeout_usec,
  10264. time_t max_timeout_msec,
  10265. std::chrono::time_point<std::chrono::steady_clock> start_time)
  10266. : sock_(sock), read_timeout_sec_(read_timeout_sec),
  10267. read_timeout_usec_(read_timeout_usec),
  10268. write_timeout_sec_(write_timeout_sec),
  10269. write_timeout_usec_(write_timeout_usec),
  10270. max_timeout_msec_(max_timeout_msec), start_time_(start_time),
  10271. read_buff_(read_buff_size_, 0) {}
  10272. inline SocketStream::~SocketStream() = default;
  10273. inline bool SocketStream::is_readable() const {
  10274. return read_buff_off_ < read_buff_content_size_;
  10275. }
  10276. inline bool SocketStream::wait_readable() const {
  10277. if (max_timeout_msec_ <= 0) {
  10278. return select_read(sock_, read_timeout_sec_, read_timeout_usec_) > 0;
  10279. }
  10280. time_t read_timeout_sec;
  10281. time_t read_timeout_usec;
  10282. calc_actual_timeout(max_timeout_msec_, duration(), read_timeout_sec_,
  10283. read_timeout_usec_, read_timeout_sec, read_timeout_usec);
  10284. return select_read(sock_, read_timeout_sec, read_timeout_usec) > 0;
  10285. }
  10286. inline bool SocketStream::wait_writable() const {
  10287. return select_write(sock_, write_timeout_sec_, write_timeout_usec_) > 0;
  10288. }
  10289. inline bool SocketStream::ensure_readable() {
  10290. if (readable_hint_) {
  10291. readable_hint_ = false;
  10292. return true;
  10293. }
  10294. return wait_readable();
  10295. }
  10296. inline const char *SocketStream::buffered_data(size_t &size) const {
  10297. size = read_buff_content_size_ - read_buff_off_;
  10298. return size ? read_buff_.data() + read_buff_off_ : nullptr;
  10299. }
  10300. inline void SocketStream::consume_buffered(size_t size) {
  10301. assert(size <= read_buff_content_size_ - read_buff_off_);
  10302. read_buff_off_ += size;
  10303. }
  10304. inline bool SocketStream::is_peer_alive() const {
  10305. return detail::is_socket_alive(sock_);
  10306. }
  10307. inline ssize_t SocketStream::read(char *ptr, size_t size) {
  10308. #ifdef _WIN32
  10309. size =
  10310. (std::min)(size, static_cast<size_t>((std::numeric_limits<int>::max)()));
  10311. #else
  10312. size = (std::min)(size,
  10313. static_cast<size_t>((std::numeric_limits<ssize_t>::max)()));
  10314. #endif
  10315. if (read_buff_off_ < read_buff_content_size_) {
  10316. auto remaining_size = read_buff_content_size_ - read_buff_off_;
  10317. if (size <= remaining_size) {
  10318. memcpy(ptr, read_buff_.data() + read_buff_off_, size);
  10319. read_buff_off_ += size;
  10320. return static_cast<ssize_t>(size);
  10321. } else {
  10322. memcpy(ptr, read_buff_.data() + read_buff_off_, remaining_size);
  10323. read_buff_off_ += remaining_size;
  10324. return static_cast<ssize_t>(remaining_size);
  10325. }
  10326. }
  10327. if (!ensure_readable()) {
  10328. error_ = Error::Timeout;
  10329. return -1;
  10330. }
  10331. read_buff_off_ = 0;
  10332. read_buff_content_size_ = 0;
  10333. if (size < read_buff_size_) {
  10334. auto n = read_socket(sock_, read_buff_.data(), read_buff_size_,
  10335. CPPHTTPLIB_RECV_FLAGS);
  10336. if (n <= 0) {
  10337. if (n == 0) {
  10338. error_ = Error::ConnectionClosed;
  10339. } else {
  10340. error_ = Error::Read;
  10341. }
  10342. return n;
  10343. } else if (n <= static_cast<ssize_t>(size)) {
  10344. memcpy(ptr, read_buff_.data(), static_cast<size_t>(n));
  10345. return n;
  10346. } else {
  10347. memcpy(ptr, read_buff_.data(), size);
  10348. read_buff_off_ = size;
  10349. read_buff_content_size_ = static_cast<size_t>(n);
  10350. return static_cast<ssize_t>(size);
  10351. }
  10352. } else {
  10353. auto n = read_socket(sock_, ptr, size, CPPHTTPLIB_RECV_FLAGS);
  10354. if (n <= 0) {
  10355. if (n == 0) {
  10356. error_ = Error::ConnectionClosed;
  10357. } else {
  10358. error_ = Error::Read;
  10359. }
  10360. }
  10361. return n;
  10362. }
  10363. }
  10364. inline ssize_t SocketStream::write(const char *ptr, size_t size) {
  10365. if (!wait_writable()) { return -1; }
  10366. #if defined(_WIN32) && !defined(_WIN64)
  10367. size =
  10368. (std::min)(size, static_cast<size_t>((std::numeric_limits<int>::max)()));
  10369. #endif
  10370. return send_socket(sock_, ptr, size, CPPHTTPLIB_SEND_FLAGS);
  10371. }
  10372. inline void SocketStream::get_remote_ip_and_port(std::string &ip,
  10373. int &port) const {
  10374. return detail::get_remote_ip_and_port(sock_, ip, port);
  10375. }
  10376. inline void SocketStream::get_local_ip_and_port(std::string &ip,
  10377. int &port) const {
  10378. return detail::get_local_ip_and_port(sock_, ip, port);
  10379. }
  10380. inline socket_t SocketStream::socket() const { return sock_; }
  10381. inline time_t SocketStream::duration() const {
  10382. return std::chrono::duration_cast<std::chrono::milliseconds>(
  10383. std::chrono::steady_clock::now() - start_time_)
  10384. .count();
  10385. }
  10386. inline void SocketStream::set_read_timeout(time_t sec, time_t usec) {
  10387. read_timeout_sec_ = sec;
  10388. read_timeout_usec_ = usec;
  10389. }
  10390. // Buffer stream implementation
  10391. inline bool BufferStream::is_readable() const { return true; }
  10392. inline bool BufferStream::wait_readable() const { return true; }
  10393. inline bool BufferStream::wait_writable() const { return true; }
  10394. inline ssize_t BufferStream::read(char *ptr, size_t size) {
  10395. #if defined(_MSC_VER) && _MSC_VER < 1910
  10396. auto len_read = buffer._Copy_s(ptr, size, size, position);
  10397. #else
  10398. auto len_read = buffer.copy(ptr, size, position);
  10399. #endif
  10400. position += static_cast<size_t>(len_read);
  10401. return static_cast<ssize_t>(len_read);
  10402. }
  10403. inline ssize_t BufferStream::write(const char *ptr, size_t size) {
  10404. buffer.append(ptr, size);
  10405. return static_cast<ssize_t>(size);
  10406. }
  10407. inline void BufferStream::get_remote_ip_and_port(std::string & /*ip*/,
  10408. int & /*port*/) const {}
  10409. inline void BufferStream::get_local_ip_and_port(std::string & /*ip*/,
  10410. int & /*port*/) const {}
  10411. inline socket_t BufferStream::socket() const { return 0; }
  10412. inline time_t BufferStream::duration() const { return 0; }
  10413. inline const std::string &BufferStream::get_buffer() const { return buffer; }
  10414. inline PathParamsMatcher::PathParamsMatcher(const std::string &pattern)
  10415. : MatcherBase(pattern) {
  10416. constexpr const char marker[] = "/:";
  10417. // One past the last ending position of a path param substring
  10418. std::size_t last_param_end = 0;
  10419. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  10420. // Needed to ensure that parameter names are unique during matcher
  10421. // construction
  10422. // If exceptions are disabled, only last duplicate path
  10423. // parameter will be set
  10424. std::unordered_set<std::string> param_name_set;
  10425. #endif
  10426. while (true) {
  10427. const auto marker_pos = pattern.find(
  10428. marker, last_param_end == 0 ? last_param_end : last_param_end - 1);
  10429. if (marker_pos == std::string::npos) { break; }
  10430. static_fragments_.push_back(
  10431. pattern.substr(last_param_end, marker_pos - last_param_end + 1));
  10432. const auto param_name_start = marker_pos + str_len(marker);
  10433. auto sep_pos = pattern.find(separator, param_name_start);
  10434. if (sep_pos == std::string::npos) { sep_pos = pattern.length(); }
  10435. auto param_name =
  10436. pattern.substr(param_name_start, sep_pos - param_name_start);
  10437. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  10438. if (param_name_set.find(param_name) != param_name_set.cend()) {
  10439. std::string msg = "Encountered path parameter '" + param_name +
  10440. "' multiple times in route pattern '" + pattern + "'.";
  10441. throw std::invalid_argument(msg);
  10442. }
  10443. #endif
  10444. param_names_.push_back(std::move(param_name));
  10445. last_param_end = sep_pos + 1;
  10446. }
  10447. if (last_param_end < pattern.length()) {
  10448. static_fragments_.push_back(pattern.substr(last_param_end));
  10449. }
  10450. }
  10451. inline bool PathParamsMatcher::match(Request &request) const {
  10452. request.matches = std::smatch();
  10453. request.path_params.clear();
  10454. // A pattern without parameters is just a literal path to compare against
  10455. if (param_names_.empty()) { return request.path == pattern(); }
  10456. request.path_params.reserve(param_names_.size());
  10457. // One past the position at which the path matched the pattern last time
  10458. std::size_t starting_pos = 0;
  10459. for (size_t i = 0; i < static_fragments_.size(); ++i) {
  10460. const auto &fragment = static_fragments_[i];
  10461. if (starting_pos + fragment.length() > request.path.length()) {
  10462. return false;
  10463. }
  10464. // Avoid unnecessary allocation by using strncmp instead of substr +
  10465. // comparison
  10466. if (std::strncmp(request.path.c_str() + starting_pos, fragment.c_str(),
  10467. fragment.length()) != 0) {
  10468. return false;
  10469. }
  10470. starting_pos += fragment.length();
  10471. // Should only happen when we have a static fragment after a param
  10472. // Example: '/users/:id/subscriptions'
  10473. // The 'subscriptions' fragment here does not have a corresponding param
  10474. if (i >= param_names_.size()) { continue; }
  10475. auto sep_pos = request.path.find(separator, starting_pos);
  10476. if (sep_pos == std::string::npos) { sep_pos = request.path.length(); }
  10477. const auto &param_name = param_names_[i];
  10478. request.path_params.emplace(
  10479. param_name, request.path.substr(starting_pos, sep_pos - starting_pos));
  10480. // Mark everything up to '/' as matched
  10481. starting_pos = sep_pos + 1;
  10482. }
  10483. // Returns false if the path is longer than the pattern
  10484. return starting_pos >= request.path.length();
  10485. }
  10486. inline bool RegexMatcher::match(Request &request) const {
  10487. request.path_params.clear();
  10488. // See CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH: an overlong path is treated as
  10489. // a non-match rather than risking a stack overflow in std::regex_match.
  10490. if (request.path.length() > CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH) {
  10491. return false;
  10492. }
  10493. return std::regex_match(request.path, request.matches, regex_);
  10494. }
  10495. // Enclose IPv6 address in brackets if needed
  10496. inline std::string prepare_host_string(const std::string &host) {
  10497. // Enclose IPv6 address in brackets (but not if already enclosed)
  10498. if (host.find(':') == std::string::npos ||
  10499. (!host.empty() && host[0] == '[')) {
  10500. // IPv4, hostname, or already bracketed IPv6
  10501. return host;
  10502. } else {
  10503. // IPv6 address without brackets
  10504. return "[" + host + "]";
  10505. }
  10506. }
  10507. inline std::string make_host_and_port_string(const std::string &host, int port,
  10508. bool is_ssl) {
  10509. auto result = prepare_host_string(host);
  10510. // Append port if not default
  10511. if ((!is_ssl && port == 80) || (is_ssl && port == 443)) {
  10512. ; // do nothing
  10513. } else {
  10514. result += ":" + std::to_string(port);
  10515. }
  10516. return result;
  10517. }
  10518. // Create "host:port" string always including port number (for CONNECT method)
  10519. inline std::string
  10520. make_host_and_port_string_always_port(const std::string &host, int port) {
  10521. return prepare_host_string(host) + ":" + std::to_string(port);
  10522. }
  10523. // Value for the Host header a client sends when the caller supplied none.
  10524. // Only the value: callers decide where in their header list it goes.
  10525. inline std::string make_default_host_header_value(const std::string &host,
  10526. int port, bool is_ssl,
  10527. int address_family) {
  10528. if (address_family == AF_UNIX) { return "localhost"; }
  10529. return make_host_and_port_string(host, port, is_ssl);
  10530. }
  10531. inline void add_default_user_agent_header(Request &req) {
  10532. #ifndef CPPHTTPLIB_NO_DEFAULT_USER_AGENT
  10533. if (!req.has_header("User-Agent")) {
  10534. req.set_header("User-Agent",
  10535. std::string("cpp-httplib/") + CPPHTTPLIB_VERSION);
  10536. }
  10537. #else
  10538. (void)req;
  10539. #endif
  10540. }
  10541. bool parse_no_proxy_entry(const std::string &token, NoProxyEntry &out);
  10542. NormalizedTarget normalize_target(const std::string &host);
  10543. bool ip_in_cidr(const IPBytes &ip, const IPBytes &net, int prefix_bits);
  10544. bool host_matches_no_proxy(const NormalizedTarget &target,
  10545. const std::vector<NoProxyEntry> &entries);
  10546. inline bool ip_in_cidr(const IPBytes &ip, const IPBytes &net, int prefix_bits) {
  10547. if (prefix_bits < 0 || prefix_bits > 128) { return false; }
  10548. if (prefix_bits == 0) { return true; }
  10549. int full_bytes = prefix_bits / 8;
  10550. int rem_bits = prefix_bits % 8;
  10551. if (full_bytes > 0 && std::memcmp(ip.data(), net.data(),
  10552. static_cast<size_t>(full_bytes)) != 0) {
  10553. return false;
  10554. }
  10555. if (rem_bits == 0) { return true; }
  10556. auto i = static_cast<size_t>(full_bytes);
  10557. auto mask = static_cast<uint8_t>(0xFFu << (8 - rem_bits));
  10558. return (ip[i] & mask) == (net[i] & mask);
  10559. }
  10560. inline bool parse_no_proxy_entry(const std::string &token, NoProxyEntry &out) {
  10561. if (token.empty()) { return false; }
  10562. if (token == "*") {
  10563. out.kind = NoProxyKind::Wildcard;
  10564. return true;
  10565. }
  10566. auto slash = token.find('/');
  10567. std::string addr_part =
  10568. (slash == std::string::npos) ? token : token.substr(0, slash);
  10569. std::string prefix_part =
  10570. (slash == std::string::npos) ? std::string() : token.substr(slash + 1);
  10571. // A bare slash or trailing-slash CIDR like "10.0.0.0/" is malformed;
  10572. // don't silently treat it as a /32 (or /128).
  10573. if (slash != std::string::npos && prefix_part.empty()) { return false; }
  10574. // Accept the bracketed IPv6 form ("[::1]", "[fe80::]/10") as well as the
  10575. // bare form. Brackets have no meaning for IPv4, so skip the IPv4 attempt
  10576. // when brackets are present.
  10577. bool bracketed = addr_part.size() >= 2 && addr_part.front() == '[' &&
  10578. addr_part.back() == ']';
  10579. if (bracketed) { addr_part = addr_part.substr(1, addr_part.size() - 2); }
  10580. if (!bracketed) {
  10581. struct in_addr v4;
  10582. if (inet_pton(AF_INET, addr_part.c_str(), &v4) == 1) {
  10583. int prefix = 32;
  10584. if (!prefix_part.empty() &&
  10585. !parse_int_in_range(prefix_part.data(), prefix_part.size(), 0, 32,
  10586. prefix)) {
  10587. return false;
  10588. }
  10589. out.kind = NoProxyKind::IPv4Cidr;
  10590. std::memcpy(out.net.data(), &v4, sizeof(v4));
  10591. out.prefix_bits = prefix;
  10592. return true;
  10593. }
  10594. }
  10595. struct in6_addr v6;
  10596. if (inet_pton(AF_INET6, addr_part.c_str(), &v6) == 1) {
  10597. int prefix = 128;
  10598. if (!prefix_part.empty() &&
  10599. !parse_int_in_range(prefix_part.data(), prefix_part.size(), 0, 128,
  10600. prefix)) {
  10601. return false;
  10602. }
  10603. out.kind = NoProxyKind::IPv6Cidr;
  10604. std::memcpy(out.net.data(), &v6, sizeof(v6));
  10605. out.prefix_bits = prefix;
  10606. return true;
  10607. }
  10608. // Bracketed entries can only be IPv6. If the IPv6 parse above failed,
  10609. // the entry is malformed — don't fall through to the hostname branch.
  10610. if (bracketed) { return false; }
  10611. // A '/' on a non-IP token means a CIDR prefix without an address. Reject.
  10612. if (slash != std::string::npos) { return false; }
  10613. // Port-specific entries (host:port) are not supported.
  10614. if (token.find(':') != std::string::npos) { return false; }
  10615. std::string hostname = case_ignore::to_lower(token);
  10616. while (!hostname.empty() && hostname.front() == '.') {
  10617. hostname.erase(hostname.begin());
  10618. }
  10619. while (!hostname.empty() && hostname.back() == '.') {
  10620. hostname.pop_back();
  10621. }
  10622. if (hostname.empty()) { return false; }
  10623. out.kind = NoProxyKind::HostnameSuffix;
  10624. out.hostname_pattern = std::move(hostname);
  10625. return true;
  10626. }
  10627. inline NormalizedTarget normalize_target(const std::string &host) {
  10628. NormalizedTarget t;
  10629. std::string h = host;
  10630. if (h.size() >= 2 && h.front() == '[' && h.back() == ']') {
  10631. h = h.substr(1, h.size() - 2);
  10632. }
  10633. // Strip a single trailing dot so "example.com." canonicalizes to
  10634. // "example.com".
  10635. if (!h.empty() && h.back() == '.') { h.pop_back(); }
  10636. t.hostname = case_ignore::to_lower(h);
  10637. if (!t.hostname.empty()) {
  10638. struct in_addr v4;
  10639. struct in6_addr v6;
  10640. if (inet_pton(AF_INET, t.hostname.c_str(), &v4) == 1) {
  10641. t.is_ipv4 = true;
  10642. std::memcpy(t.ip.data(), &v4, sizeof(v4));
  10643. } else if (inet_pton(AF_INET6, t.hostname.c_str(), &v6) == 1) {
  10644. t.is_ipv6 = true;
  10645. std::memcpy(t.ip.data(), &v6, sizeof(v6));
  10646. }
  10647. }
  10648. return t;
  10649. }
  10650. inline bool host_matches_no_proxy(const NormalizedTarget &target,
  10651. const std::vector<NoProxyEntry> &entries) {
  10652. if (target.hostname.empty()) { return false; }
  10653. for (const auto &e : entries) {
  10654. switch (e.kind) {
  10655. case NoProxyKind::Wildcard: return true;
  10656. case NoProxyKind::IPv4Cidr:
  10657. if (target.is_ipv4 && ip_in_cidr(target.ip, e.net, e.prefix_bits)) {
  10658. return true;
  10659. }
  10660. break;
  10661. case NoProxyKind::IPv6Cidr:
  10662. if (target.is_ipv6 && ip_in_cidr(target.ip, e.net, e.prefix_bits)) {
  10663. return true;
  10664. }
  10665. break;
  10666. case NoProxyKind::HostnameSuffix:
  10667. if (target.is_ipv4 || target.is_ipv6) { break; }
  10668. if (target.hostname == e.hostname_pattern) { return true; }
  10669. // Dot-boundary suffix match: prevents "evilexample.com" from matching
  10670. // an entry of "example.com".
  10671. if (target.hostname.size() > e.hostname_pattern.size() + 1) {
  10672. auto offset = target.hostname.size() - e.hostname_pattern.size();
  10673. if (target.hostname[offset - 1] == '.' &&
  10674. target.hostname.compare(offset, e.hostname_pattern.size(),
  10675. e.hostname_pattern) == 0) {
  10676. return true;
  10677. }
  10678. }
  10679. break;
  10680. }
  10681. }
  10682. return false;
  10683. }
  10684. template <typename T>
  10685. inline bool check_and_write_headers(Stream &strm, Headers &headers,
  10686. T header_writer, Error &error) {
  10687. for (const auto &h : headers) {
  10688. if (!detail::fields::is_field_valid(h.first, h.second)) {
  10689. error = Error::InvalidHeaders;
  10690. return false;
  10691. }
  10692. }
  10693. if (header_writer(strm, headers) <= 0) {
  10694. error = Error::Write;
  10695. return false;
  10696. }
  10697. return true;
  10698. }
  10699. } // namespace detail
  10700. /*
  10701. * Group 2 (continued): detail namespace - SSLSocketStream implementation
  10702. */
  10703. #ifdef CPPHTTPLIB_SSL_ENABLED
  10704. namespace detail {
  10705. // SSL socket stream implementation
  10706. inline SSLSocketStream::SSLSocketStream(
  10707. socket_t sock, tls::session_t session, time_t read_timeout_sec,
  10708. time_t read_timeout_usec, time_t write_timeout_sec,
  10709. time_t write_timeout_usec, time_t max_timeout_msec,
  10710. std::chrono::time_point<std::chrono::steady_clock> start_time)
  10711. : sock_(sock), session_(session), read_timeout_sec_(read_timeout_sec),
  10712. read_timeout_usec_(read_timeout_usec),
  10713. write_timeout_sec_(write_timeout_sec),
  10714. write_timeout_usec_(write_timeout_usec),
  10715. max_timeout_msec_(max_timeout_msec), start_time_(start_time) {
  10716. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  10717. // Clear AUTO_RETRY for proper non-blocking I/O timeout handling
  10718. // Note: create_session() also clears this, but SSLClient currently
  10719. // uses ssl_new() which does not. Until full TLS API migration is complete,
  10720. // we need to ensure AUTO_RETRY is cleared here regardless of how the
  10721. // SSL session was created.
  10722. SSL_clear_mode(static_cast<SSL *>(session), SSL_MODE_AUTO_RETRY);
  10723. #endif
  10724. }
  10725. inline SSLSocketStream::~SSLSocketStream() = default;
  10726. inline bool SSLSocketStream::is_readable() const {
  10727. return tls::pending(session_) > 0;
  10728. }
  10729. inline bool SSLSocketStream::wait_readable() const {
  10730. if (max_timeout_msec_ <= 0) {
  10731. return select_read(sock_, read_timeout_sec_, read_timeout_usec_) > 0;
  10732. }
  10733. time_t read_timeout_sec;
  10734. time_t read_timeout_usec;
  10735. calc_actual_timeout(max_timeout_msec_, duration(), read_timeout_sec_,
  10736. read_timeout_usec_, read_timeout_sec, read_timeout_usec);
  10737. return select_read(sock_, read_timeout_sec, read_timeout_usec) > 0;
  10738. }
  10739. inline bool SSLSocketStream::wait_writable() const {
  10740. return select_write(sock_, write_timeout_sec_, write_timeout_usec_) > 0 &&
  10741. !tls::is_peer_closed(session_, sock_);
  10742. }
  10743. inline bool SSLSocketStream::ensure_readable() {
  10744. if (readable_hint_) {
  10745. readable_hint_ = false;
  10746. return true;
  10747. }
  10748. return wait_readable();
  10749. }
  10750. inline bool SSLSocketStream::is_peer_alive() const {
  10751. return !tls::is_peer_closed(session_, sock_);
  10752. }
  10753. inline ssize_t SSLSocketStream::read(char *ptr, size_t size) {
  10754. if (tls::pending(session_) > 0) {
  10755. tls::TlsError err;
  10756. auto ret = tls::read(session_, ptr, size, err);
  10757. if (ret == 0 || err.code == tls::ErrorCode::PeerClosed) {
  10758. error_ = Error::ConnectionClosed;
  10759. }
  10760. return ret;
  10761. } else if (ensure_readable()) {
  10762. tls::TlsError err;
  10763. auto ret = tls::read(session_, ptr, size, err);
  10764. if (ret < 0) {
  10765. auto n = 1000;
  10766. #ifdef _WIN32
  10767. while (--n >= 0 && (err.code == tls::ErrorCode::WantRead ||
  10768. (err.code == tls::ErrorCode::SyscallError &&
  10769. WSAGetLastError() == WSAETIMEDOUT))) {
  10770. #else
  10771. while (--n >= 0 && err.code == tls::ErrorCode::WantRead) {
  10772. #endif
  10773. if (tls::pending(session_) > 0) {
  10774. return tls::read(session_, ptr, size, err);
  10775. } else if (wait_readable()) {
  10776. std::this_thread::sleep_for(std::chrono::microseconds{10});
  10777. ret = tls::read(session_, ptr, size, err);
  10778. if (ret >= 0) { return ret; }
  10779. } else {
  10780. break;
  10781. }
  10782. }
  10783. assert(ret < 0);
  10784. } else if (ret == 0 || err.code == tls::ErrorCode::PeerClosed) {
  10785. error_ = Error::ConnectionClosed;
  10786. }
  10787. return ret;
  10788. } else {
  10789. error_ = Error::Timeout;
  10790. return -1;
  10791. }
  10792. }
  10793. inline ssize_t SSLSocketStream::write(const char *ptr, size_t size) {
  10794. if (wait_writable()) {
  10795. auto handle_size =
  10796. std::min<size_t>(size, (std::numeric_limits<int>::max)());
  10797. tls::TlsError err;
  10798. auto ret = tls::write(session_, ptr, handle_size, err);
  10799. if (ret < 0) {
  10800. auto n = 1000;
  10801. #ifdef _WIN32
  10802. while (--n >= 0 && (err.code == tls::ErrorCode::WantWrite ||
  10803. (err.code == tls::ErrorCode::SyscallError &&
  10804. WSAGetLastError() == WSAETIMEDOUT))) {
  10805. #else
  10806. while (--n >= 0 && err.code == tls::ErrorCode::WantWrite) {
  10807. #endif
  10808. if (wait_writable()) {
  10809. std::this_thread::sleep_for(std::chrono::microseconds{10});
  10810. ret = tls::write(session_, ptr, handle_size, err);
  10811. if (ret >= 0) { return ret; }
  10812. } else {
  10813. break;
  10814. }
  10815. }
  10816. assert(ret < 0);
  10817. }
  10818. return ret;
  10819. }
  10820. return -1;
  10821. }
  10822. inline void SSLSocketStream::get_remote_ip_and_port(std::string &ip,
  10823. int &port) const {
  10824. detail::get_remote_ip_and_port(sock_, ip, port);
  10825. }
  10826. inline void SSLSocketStream::get_local_ip_and_port(std::string &ip,
  10827. int &port) const {
  10828. detail::get_local_ip_and_port(sock_, ip, port);
  10829. }
  10830. inline socket_t SSLSocketStream::socket() const { return sock_; }
  10831. inline time_t SSLSocketStream::duration() const {
  10832. return std::chrono::duration_cast<std::chrono::milliseconds>(
  10833. std::chrono::steady_clock::now() - start_time_)
  10834. .count();
  10835. }
  10836. inline void SSLSocketStream::set_read_timeout(time_t sec, time_t usec) {
  10837. read_timeout_sec_ = sec;
  10838. read_timeout_usec_ = usec;
  10839. }
  10840. inline WebSocketSSLStream::WebSocketSSLStream(socket_t sock,
  10841. tls::session_t session,
  10842. time_t read_timeout_sec,
  10843. time_t read_timeout_usec,
  10844. time_t write_timeout_sec,
  10845. time_t write_timeout_usec)
  10846. : sock_(sock), session_(session), read_timeout_sec_(read_timeout_sec),
  10847. read_timeout_usec_(read_timeout_usec),
  10848. write_timeout_sec_(write_timeout_sec),
  10849. write_timeout_usec_(write_timeout_usec),
  10850. start_time_(std::chrono::steady_clock::now()) {
  10851. // The receive and send paths run on different threads, so each TLS call is
  10852. // driven in non-blocking mode and readiness is awaited with select()
  10853. // outside the session lock. Set the socket non-blocking once here; it is
  10854. // never flipped back, so no thread races on the flag.
  10855. detail::set_nonblocking(sock_, true);
  10856. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  10857. SSL_clear_mode(static_cast<SSL *>(session_), SSL_MODE_AUTO_RETRY);
  10858. #endif
  10859. }
  10860. inline WebSocketSSLStream::~WebSocketSSLStream() = default;
  10861. inline bool WebSocketSSLStream::is_readable() const {
  10862. std::lock_guard<std::mutex> guard(session_mutex_);
  10863. return tls::pending(session_) > 0;
  10864. }
  10865. inline bool WebSocketSSLStream::wait_readable() const {
  10866. return select_read(sock_, read_timeout_sec_, read_timeout_usec_) > 0;
  10867. }
  10868. inline bool WebSocketSSLStream::wait_writable() const {
  10869. // Unlike SSLSocketStream, this deliberately does not call is_peer_closed():
  10870. // that probe toggles the socket's blocking flag, which would race with the
  10871. // concurrent reader on a permanently non-blocking socket.
  10872. return select_write(sock_, write_timeout_sec_, write_timeout_usec_) > 0;
  10873. }
  10874. inline ssize_t WebSocketSSLStream::read(char *ptr, size_t size) {
  10875. tls::TlsError err;
  10876. auto n = 1000;
  10877. while (--n >= 0) {
  10878. {
  10879. std::lock_guard<std::mutex> guard(session_mutex_);
  10880. auto ret = tls::read(session_, ptr, size, err);
  10881. if (ret > 0) { return ret; }
  10882. if (ret == 0 || err.code == tls::ErrorCode::PeerClosed) {
  10883. error_ = Error::ConnectionClosed;
  10884. return ret;
  10885. }
  10886. }
  10887. // ret < 0. On a non-blocking socket a TLS read can stop needing either
  10888. // direction: the send path shares this session, so output it left pending
  10889. // has to be flushed before more input can be decrypted. Anything else is
  10890. // a hard error.
  10891. auto needs_readable = err.code == tls::ErrorCode::WantRead;
  10892. #ifdef _WIN32
  10893. // On Windows a socket timeout surfaces as a syscall error, not WantRead.
  10894. needs_readable =
  10895. needs_readable || (err.code == tls::ErrorCode::SyscallError &&
  10896. WSAGetLastError() == WSAETIMEDOUT);
  10897. #endif
  10898. if (!needs_readable && err.code != tls::ErrorCode::WantWrite) {
  10899. error_ = Error::Read;
  10900. return -1;
  10901. }
  10902. if (!(needs_readable ? wait_readable() : wait_writable())) {
  10903. error_ = Error::Timeout;
  10904. return -1;
  10905. }
  10906. }
  10907. // Out of retries. Recording a reason matters: a caller that reads get_error()
  10908. // to tell a timeout from a close would otherwise see whatever the previous
  10909. // failure left behind (error_ is never cleared on success).
  10910. error_ = Error::Read;
  10911. return -1;
  10912. }
  10913. inline ssize_t WebSocketSSLStream::write(const char *ptr, size_t size) {
  10914. auto handle_size = std::min<size_t>(size, (std::numeric_limits<int>::max)());
  10915. tls::TlsError err;
  10916. auto n = 1000;
  10917. while (--n >= 0) {
  10918. {
  10919. std::lock_guard<std::mutex> guard(session_mutex_);
  10920. auto ret = tls::write(session_, ptr, handle_size, err);
  10921. if (ret >= 0) { return ret; }
  10922. }
  10923. // ret < 0. As in read(), either direction can be needed: a renegotiation
  10924. // or a post-handshake message must be consumed before the record goes
  10925. // out. Anything else is a hard error.
  10926. auto needs_writable = err.code == tls::ErrorCode::WantWrite;
  10927. #ifdef _WIN32
  10928. // On Windows a socket timeout surfaces as a syscall error, not WantWrite.
  10929. needs_writable =
  10930. needs_writable || (err.code == tls::ErrorCode::SyscallError &&
  10931. WSAGetLastError() == WSAETIMEDOUT);
  10932. #endif
  10933. if (!needs_writable && err.code != tls::ErrorCode::WantRead) { return -1; }
  10934. if (!(needs_writable ? wait_writable() : wait_readable())) { return -1; }
  10935. }
  10936. return -1;
  10937. }
  10938. inline void WebSocketSSLStream::get_remote_ip_and_port(std::string &ip,
  10939. int &port) const {
  10940. detail::get_remote_ip_and_port(sock_, ip, port);
  10941. }
  10942. inline void WebSocketSSLStream::get_local_ip_and_port(std::string &ip,
  10943. int &port) const {
  10944. detail::get_local_ip_and_port(sock_, ip, port);
  10945. }
  10946. inline socket_t WebSocketSSLStream::socket() const { return sock_; }
  10947. inline time_t WebSocketSSLStream::duration() const {
  10948. return std::chrono::duration_cast<std::chrono::milliseconds>(
  10949. std::chrono::steady_clock::now() - start_time_)
  10950. .count();
  10951. }
  10952. inline void WebSocketSSLStream::set_read_timeout(time_t sec, time_t usec) {
  10953. read_timeout_sec_ = sec;
  10954. read_timeout_usec_ = usec;
  10955. }
  10956. } // namespace detail
  10957. #endif // CPPHTTPLIB_SSL_ENABLED
  10958. /*
  10959. * Group 4: Server implementation
  10960. */
  10961. // HTTP server implementation
  10962. inline Server::Server()
  10963. : new_task_queue([] {
  10964. return new ThreadPool(CPPHTTPLIB_THREAD_POOL_COUNT,
  10965. CPPHTTPLIB_THREAD_POOL_MAX_COUNT);
  10966. }) {
  10967. #ifndef _WIN32
  10968. signal(SIGPIPE, SIG_IGN);
  10969. #endif
  10970. }
  10971. inline Server::~Server() = default;
  10972. inline std::unique_ptr<detail::MatcherBase>
  10973. Server::make_matcher(const std::string &pattern) {
  10974. // Path params take precedence, so "/users/:id/(.*)" keeps being matched as
  10975. // a path params pattern
  10976. if (pattern.find("/:") != std::string::npos) {
  10977. return detail::make_unique<detail::PathParamsMatcher>(pattern);
  10978. }
  10979. // A pattern with no regex metacharacter only has to be compared literally,
  10980. // which is what PathParamsMatcher already does when it captures no
  10981. // parameter, so std::regex is only worth building for the patterns that
  10982. // actually need it
  10983. if (pattern.find_first_of(".^$|()[]{}*+?\\") == std::string::npos) {
  10984. return detail::make_unique<detail::PathParamsMatcher>(pattern);
  10985. }
  10986. return detail::make_unique<detail::RegexMatcher>(pattern);
  10987. }
  10988. inline Server &Server::Get(const std::string &pattern, Handler handler) {
  10989. return add_handler(get_handlers_, pattern, std::move(handler));
  10990. }
  10991. inline Server &Server::Post(const std::string &pattern, Handler handler) {
  10992. return add_handler(post_handlers_, pattern, std::move(handler));
  10993. }
  10994. inline Server &Server::Post(const std::string &pattern,
  10995. HandlerWithContentReader handler) {
  10996. return add_handler(post_handlers_for_content_reader_, pattern,
  10997. std::move(handler));
  10998. }
  10999. inline Server &Server::Put(const std::string &pattern, Handler handler) {
  11000. return add_handler(put_handlers_, pattern, std::move(handler));
  11001. }
  11002. inline Server &Server::Put(const std::string &pattern,
  11003. HandlerWithContentReader handler) {
  11004. return add_handler(put_handlers_for_content_reader_, pattern,
  11005. std::move(handler));
  11006. }
  11007. inline Server &Server::Patch(const std::string &pattern, Handler handler) {
  11008. return add_handler(patch_handlers_, pattern, std::move(handler));
  11009. }
  11010. inline Server &Server::Patch(const std::string &pattern,
  11011. HandlerWithContentReader handler) {
  11012. return add_handler(patch_handlers_for_content_reader_, pattern,
  11013. std::move(handler));
  11014. }
  11015. inline Server &Server::Delete(const std::string &pattern, Handler handler) {
  11016. return add_handler(delete_handlers_, pattern, std::move(handler));
  11017. }
  11018. inline Server &Server::Delete(const std::string &pattern,
  11019. HandlerWithContentReader handler) {
  11020. return add_handler(delete_handlers_for_content_reader_, pattern,
  11021. std::move(handler));
  11022. }
  11023. inline Server &Server::Options(const std::string &pattern, Handler handler) {
  11024. return add_handler(options_handlers_, pattern, std::move(handler));
  11025. }
  11026. inline const std::set<std::string> &Server::builtin_methods() {
  11027. thread_local const std::set<std::string> methods{
  11028. "GET", "HEAD", "POST", "PUT", "DELETE",
  11029. "CONNECT", "OPTIONS", "TRACE", "PATCH", "PRI"};
  11030. return methods;
  11031. }
  11032. inline Server::CustomHandlerEntry *
  11033. Server::custom_entry_for_registration(const std::string &method) {
  11034. // Built-in methods are refused for two different reasons. GET, HEAD, POST,
  11035. // PUT, DELETE, OPTIONS and PATCH are dispatched by the if/else chain in
  11036. // routing() before the custom tables are consulted, so a route registered
  11037. // for one of them could never fire. CONNECT, TRACE and PRI have no branch
  11038. // there and would be reachable, but they carry protocol-level meaning
  11039. // (tunnel setup, request echo, the HTTP/2 connection preface) that this
  11040. // library does not route.
  11041. if (!detail::fields::is_token(method) || builtin_methods().count(method)) {
  11042. output_error_log(Error::InvalidHTTPMethod, nullptr);
  11043. has_invalid_registration_ = true;
  11044. return nullptr;
  11045. }
  11046. return &custom_handlers_[method];
  11047. }
  11048. inline Server &Server::CustomRoute(const std::string &method,
  11049. const std::string &pattern,
  11050. Handler handler) {
  11051. auto *entry = custom_entry_for_registration(method);
  11052. if (!entry) { return *this; }
  11053. return add_handler(entry->handlers, pattern, std::move(handler));
  11054. }
  11055. inline Server &Server::CustomRoute(const std::string &method,
  11056. const std::string &pattern,
  11057. HandlerWithContentReader handler) {
  11058. auto *entry = custom_entry_for_registration(method);
  11059. if (!entry) { return *this; }
  11060. return add_handler(entry->handlers_for_content_reader, pattern,
  11061. std::move(handler));
  11062. }
  11063. inline const Server::CustomHandlerEntry *
  11064. Server::find_custom_entry(const std::string &method) const {
  11065. // find() alone would be correct here. The empty() check is what keeps the
  11066. // per-request cost off servers that never call CustomRoute(), which is the
  11067. // overwhelmingly common case; keep it rather than walking into the tree.
  11068. if (custom_handlers_.empty()) { return nullptr; }
  11069. auto it = custom_handlers_.find(method);
  11070. return it == custom_handlers_.end() ? nullptr : &it->second;
  11071. }
  11072. inline Server &Server::WebSocket(const std::string &pattern,
  11073. WebSocketHandler handler) {
  11074. websocket_handlers_.push_back(
  11075. {make_matcher(pattern), std::move(handler), nullptr});
  11076. return *this;
  11077. }
  11078. inline Server &Server::WebSocket(const std::string &pattern,
  11079. WebSocketHandler handler,
  11080. SubProtocolSelector sub_protocol_selector) {
  11081. websocket_handlers_.push_back({make_matcher(pattern), std::move(handler),
  11082. std::move(sub_protocol_selector)});
  11083. return *this;
  11084. }
  11085. inline bool Server::set_base_dir(const std::string &dir,
  11086. const std::string &mount_point) {
  11087. return set_mount_point(mount_point, dir);
  11088. }
  11089. inline bool Server::set_mount_point(const std::string &mount_point,
  11090. const std::string &dir, Headers headers) {
  11091. detail::FileStat stat(dir);
  11092. if (stat.is_dir()) {
  11093. std::string mnt = !mount_point.empty() ? mount_point : "/";
  11094. if (!mnt.empty() && mnt[0] == '/') {
  11095. std::string resolved_base;
  11096. if (detail::canonicalize_path(dir.c_str(), resolved_base)) {
  11097. #if defined(_WIN32)
  11098. if (resolved_base.back() != '\\' && resolved_base.back() != '/') {
  11099. resolved_base += '\\';
  11100. }
  11101. #else
  11102. if (resolved_base.back() != '/') { resolved_base += '/'; }
  11103. #endif
  11104. }
  11105. base_dirs_.push_back(
  11106. {std::move(mnt), dir, std::move(resolved_base), std::move(headers)});
  11107. return true;
  11108. }
  11109. }
  11110. return false;
  11111. }
  11112. inline bool Server::remove_mount_point(const std::string &mount_point) {
  11113. for (auto it = base_dirs_.begin(); it != base_dirs_.end(); ++it) {
  11114. if (it->mount_point == mount_point) {
  11115. base_dirs_.erase(it);
  11116. return true;
  11117. }
  11118. }
  11119. return false;
  11120. }
  11121. inline Server &
  11122. Server::set_file_extension_and_mimetype_mapping(const std::string &ext,
  11123. const std::string &mime) {
  11124. file_extension_and_mimetype_map_[ext] = mime;
  11125. return *this;
  11126. }
  11127. inline Server &Server::set_default_file_mimetype(const std::string &mime) {
  11128. default_file_mimetype_ = mime;
  11129. return *this;
  11130. }
  11131. inline Server &Server::set_file_request_handler(Handler handler) {
  11132. file_request_handler_ = std::move(handler);
  11133. return *this;
  11134. }
  11135. inline Server &Server::set_error_handler_core(HandlerWithResponse handler,
  11136. std::true_type) {
  11137. error_handler_ = std::move(handler);
  11138. return *this;
  11139. }
  11140. inline Server &Server::set_error_handler_core(Handler handler,
  11141. std::false_type) {
  11142. error_handler_ = [handler](const Request &req, Response &res) {
  11143. handler(req, res);
  11144. return HandlerResponse::Handled;
  11145. };
  11146. return *this;
  11147. }
  11148. inline Server &Server::set_exception_handler(ExceptionHandler handler) {
  11149. exception_handler_ = std::move(handler);
  11150. return *this;
  11151. }
  11152. inline Server &Server::set_pre_routing_handler(HandlerWithResponse handler) {
  11153. pre_routing_handler_ = std::move(handler);
  11154. return *this;
  11155. }
  11156. inline Server &Server::set_post_routing_handler(Handler handler) {
  11157. post_routing_handler_ = std::move(handler);
  11158. return *this;
  11159. }
  11160. inline Server &Server::set_pre_request_handler(HandlerWithResponse handler) {
  11161. pre_request_handler_ = std::move(handler);
  11162. return *this;
  11163. }
  11164. inline Server &Server::set_logger(Logger logger) {
  11165. logger_ = std::move(logger);
  11166. return *this;
  11167. }
  11168. inline Server &Server::set_error_logger(ErrorLogger error_logger) {
  11169. error_logger_ = std::move(error_logger);
  11170. return *this;
  11171. }
  11172. inline Server &Server::set_pre_compression_logger(Logger logger) {
  11173. pre_compression_logger_ = std::move(logger);
  11174. return *this;
  11175. }
  11176. inline Server &
  11177. Server::set_expect_100_continue_handler(Expect100ContinueHandler handler) {
  11178. expect_100_continue_handler_ = std::move(handler);
  11179. return *this;
  11180. }
  11181. inline Server &Server::set_start_handler(StartHandler handler) {
  11182. start_handler_ = std::move(handler);
  11183. return *this;
  11184. }
  11185. inline Server &Server::set_address_family(int family) {
  11186. address_family_ = family;
  11187. return *this;
  11188. }
  11189. inline Server &Server::set_tcp_nodelay(bool on) {
  11190. tcp_nodelay_ = on;
  11191. return *this;
  11192. }
  11193. inline Server &Server::set_ipv6_v6only(bool on) {
  11194. ipv6_v6only_ = on;
  11195. return *this;
  11196. }
  11197. inline Server &Server::set_socket_options(SocketOptions socket_options) {
  11198. socket_options_ = std::move(socket_options);
  11199. return *this;
  11200. }
  11201. inline Server &Server::set_default_headers(Headers headers) {
  11202. default_headers_ = std::move(headers);
  11203. return *this;
  11204. }
  11205. inline Server &Server::set_header_writer(
  11206. std::function<ssize_t(Stream &, Headers &)> const &writer) {
  11207. header_writer_ = writer;
  11208. return *this;
  11209. }
  11210. inline Server &
  11211. Server::set_trusted_proxies(const std::vector<std::string> &proxies) {
  11212. trusted_proxies_ = proxies;
  11213. return *this;
  11214. }
  11215. inline Server &Server::set_keep_alive_max_count(size_t count) {
  11216. keep_alive_max_count_ = count;
  11217. return *this;
  11218. }
  11219. inline Server &Server::set_keep_alive_timeout(time_t sec) {
  11220. keep_alive_timeout_sec_ = sec;
  11221. return *this;
  11222. }
  11223. template <class Rep, class Period>
  11224. inline Server &Server::set_keep_alive_timeout(
  11225. const std::chrono::duration<Rep, Period> &duration) {
  11226. detail::duration_to_sec_and_usec(duration, [&](time_t sec, time_t /*usec*/) {
  11227. set_keep_alive_timeout(sec);
  11228. });
  11229. return *this;
  11230. }
  11231. inline Server &Server::set_read_timeout(time_t sec, time_t usec) {
  11232. read_timeout_sec_ = sec;
  11233. read_timeout_usec_ = usec;
  11234. return *this;
  11235. }
  11236. inline Server &Server::set_write_timeout(time_t sec, time_t usec) {
  11237. write_timeout_sec_ = sec;
  11238. write_timeout_usec_ = usec;
  11239. return *this;
  11240. }
  11241. inline Server &Server::set_idle_interval(time_t sec, time_t usec) {
  11242. idle_interval_sec_ = sec;
  11243. idle_interval_usec_ = usec;
  11244. return *this;
  11245. }
  11246. inline Server &Server::set_payload_max_length(size_t length) {
  11247. payload_max_length_ = length;
  11248. return *this;
  11249. }
  11250. inline Server &Server::set_static_file_compression(bool on) {
  11251. static_file_compression_ = on;
  11252. return *this;
  11253. }
  11254. inline Server &Server::set_static_file_compression_min_length(size_t length) {
  11255. static_file_compression_min_length_ = length;
  11256. return *this;
  11257. }
  11258. inline Server &Server::set_static_file_compression_max_length(size_t length) {
  11259. static_file_compression_max_length_ = length;
  11260. return *this;
  11261. }
  11262. inline Server &Server::set_websocket_max_missed_pongs(int count) {
  11263. websocket_max_missed_pongs_ = count;
  11264. return *this;
  11265. }
  11266. inline Server &Server::set_websocket_ping_interval(time_t sec) {
  11267. websocket_ping_interval_sec_ = sec;
  11268. return *this;
  11269. }
  11270. template <class Rep, class Period>
  11271. inline Server &Server::set_websocket_ping_interval(
  11272. const std::chrono::duration<Rep, Period> &duration) {
  11273. detail::duration_to_sec_and_usec(duration, [&](time_t sec, time_t /*usec*/) {
  11274. set_websocket_ping_interval(sec);
  11275. });
  11276. return *this;
  11277. }
  11278. inline bool Server::bind_to_port(const std::string &host, int port,
  11279. int socket_flags) {
  11280. auto ret = bind_internal(host, port, socket_flags);
  11281. if (ret == -1) { is_decommissioned = true; }
  11282. return ret >= 0;
  11283. }
  11284. inline int Server::bind_to_any_port(const std::string &host, int socket_flags) {
  11285. auto ret = bind_internal(host, 0, socket_flags);
  11286. if (ret == -1) { is_decommissioned = true; }
  11287. return ret;
  11288. }
  11289. inline bool Server::listen_after_bind() { return listen_internal(); }
  11290. inline bool Server::listen(const std::string &host, int port,
  11291. int socket_flags) {
  11292. return bind_to_port(host, port, socket_flags) && listen_internal();
  11293. }
  11294. inline bool Server::is_running() const { return is_running_; }
  11295. inline void Server::wait_until_ready() const {
  11296. while (!is_running_ && !is_decommissioned) {
  11297. std::this_thread::sleep_for(std::chrono::milliseconds{1});
  11298. }
  11299. }
  11300. inline void Server::stop() noexcept {
  11301. // Release the listening socket whether or not the accept loop is running:
  11302. // bind_to_port() without listen_after_bind() still owns the descriptor. The
  11303. // exchange is what makes this safe to call concurrently with the accept loop.
  11304. socket_t sock = svr_sock_.exchange(INVALID_SOCKET);
  11305. if (sock != INVALID_SOCKET) {
  11306. detail::shutdown_socket(sock);
  11307. detail::close_socket(sock);
  11308. }
  11309. is_decommissioned = false;
  11310. }
  11311. inline void Server::decommission() { is_decommissioned = true; }
  11312. inline bool Server::parse_request_line(const char *s, Request &req) const {
  11313. auto len = strlen(s);
  11314. if (len < 2 || s[len - 2] != '\r' || s[len - 1] != '\n') { return false; }
  11315. len -= 2;
  11316. {
  11317. size_t count = 0;
  11318. detail::split(s, s + len, ' ', [&](const char *b, const char *e) {
  11319. switch (count) {
  11320. case 0: req.method = std::string(b, e); break;
  11321. case 1: req.target = std::string(b, e); break;
  11322. case 2: req.version = std::string(b, e); break;
  11323. default: break;
  11324. }
  11325. count++;
  11326. });
  11327. if (count != 3) { return false; }
  11328. }
  11329. // A method outside the built-in set is accepted only when a handler has been
  11330. // registered for it with CustomRoute().
  11331. const auto &methods = builtin_methods();
  11332. if (methods.find(req.method) == methods.end() &&
  11333. !find_custom_entry(req.method)) {
  11334. output_error_log(Error::InvalidHTTPMethod, &req);
  11335. return false;
  11336. }
  11337. if (req.version != "HTTP/1.1" && req.version != "HTTP/1.0") {
  11338. output_error_log(Error::InvalidHTTPVersion, &req);
  11339. return false;
  11340. }
  11341. if (!detail::fields::is_request_target(req.target)) { return false; }
  11342. {
  11343. // Skip URL fragment
  11344. for (size_t i = 0; i < req.target.size(); i++) {
  11345. if (req.target[i] == '#') {
  11346. req.target.erase(i);
  11347. break;
  11348. }
  11349. }
  11350. detail::divide(req.target, '?',
  11351. [&](const char *lhs_data, std::size_t lhs_size,
  11352. const char *rhs_data, std::size_t rhs_size) {
  11353. req.path =
  11354. decode_path_component(std::string(lhs_data, lhs_size));
  11355. detail::parse_query_text(rhs_data, rhs_size, req.params);
  11356. });
  11357. }
  11358. return true;
  11359. }
  11360. inline bool Server::write_response(Stream &strm, bool close_connection,
  11361. Request &req, Response &res) {
  11362. // NOTE: `req.ranges` should be empty, otherwise it will be applied
  11363. // incorrectly to the error content.
  11364. req.ranges.clear();
  11365. return write_response_core(strm, close_connection, req, res, false);
  11366. }
  11367. inline bool Server::write_response_with_content(Stream &strm,
  11368. bool close_connection,
  11369. const Request &req,
  11370. Response &res) {
  11371. return write_response_core(strm, close_connection, req, res, true);
  11372. }
  11373. inline bool Server::write_response_core(Stream &strm, bool close_connection,
  11374. const Request &req, Response &res,
  11375. bool need_apply_ranges) {
  11376. assert(res.status != -1);
  11377. if (400 <= res.status && error_handler_ &&
  11378. error_handler_(req, res) == HandlerResponse::Handled) {
  11379. need_apply_ranges = true;
  11380. }
  11381. std::string content_type;
  11382. std::string boundary;
  11383. if (need_apply_ranges) { apply_ranges(req, res, content_type, boundary); }
  11384. // Prepare additional headers
  11385. if (close_connection ||
  11386. detail::has_header_token(req.headers, "Connection", "close") ||
  11387. 400 <= res.status || // Don't leave connections open after errors
  11388. // The client withholds the body until `100 Continue`, which was never
  11389. // sent, so whether and when the body follows is unknown.
  11390. (req.expect_100_continue_pending_ && detail::has_framed_body(req))) {
  11391. res.set_header("Connection", "close");
  11392. } else {
  11393. std::string s = "timeout=";
  11394. s += std::to_string(keep_alive_timeout_sec_);
  11395. s += ", max=";
  11396. s += std::to_string(keep_alive_max_count_);
  11397. res.set_header("Keep-Alive", s);
  11398. }
  11399. if ((!res.body.empty() || res.content_length_ > 0 || res.content_provider_) &&
  11400. !res.has_header("Content-Type")) {
  11401. res.set_header("Content-Type", "text/plain");
  11402. }
  11403. if (res.body.empty() && !res.content_length_ && !res.content_provider_ &&
  11404. !res.has_header("Content-Length")) {
  11405. res.set_header("Content-Length", "0");
  11406. }
  11407. if (req.method == "HEAD" && !res.has_header("Accept-Ranges")) {
  11408. res.set_header("Accept-Ranges", "bytes");
  11409. }
  11410. if (post_routing_handler_) { post_routing_handler_(req, res); }
  11411. // Response line and headers
  11412. detail::BufferStream bstrm;
  11413. if (!detail::write_response_line(bstrm, res.status)) { return false; }
  11414. if (header_writer_(bstrm, res.headers) <= 0) { return false; }
  11415. // Combine a small body with the headers so the whole response leaves in a
  11416. // single write. A large body is written on its own instead: a copy of it
  11417. // costs more than the extra write saves.
  11418. auto send_body = req.method != "HEAD";
  11419. auto body_is_separate = false;
  11420. auto provider_done = false;
  11421. if (send_body && !res.body.empty() && !res.content_provider_) {
  11422. if (res.body.size() < CPPHTTPLIB_SEND_BUFSIZ) {
  11423. bstrm.write(res.body.data(), res.body.size());
  11424. } else {
  11425. body_is_separate = true;
  11426. }
  11427. } else if (send_body && res.content_provider_ &&
  11428. res.is_file_content_provider_ &&
  11429. res.content_length_ < CPPHTTPLIB_SEND_BUFSIZ) {
  11430. // A small file is read into the same buffer. Other providers may produce
  11431. // their data over time, so they are never held back.
  11432. if (!write_content_with_provider(bstrm, req, res, boundary, content_type)) {
  11433. return false;
  11434. }
  11435. provider_done = true;
  11436. }
  11437. // Log before writing to avoid race condition with client-side code that
  11438. // accesses logger-captured data immediately after receiving the response.
  11439. output_log(req, res);
  11440. // Flush buffer
  11441. auto &data = bstrm.get_buffer();
  11442. if (!detail::write_data(strm, data.data(), data.size())) { return false; }
  11443. if (body_is_separate) {
  11444. return detail::write_data(strm, res.body.data(), res.body.size());
  11445. }
  11446. // Streaming body
  11447. if (send_body && res.content_provider_) {
  11448. if (!provider_done &&
  11449. !write_content_with_provider(strm, req, res, boundary, content_type)) {
  11450. return false;
  11451. }
  11452. res.content_provider_success_ = true;
  11453. }
  11454. return true;
  11455. }
  11456. inline bool
  11457. Server::write_content_with_provider(Stream &strm, const Request &req,
  11458. Response &res, const std::string &boundary,
  11459. const std::string &content_type) {
  11460. auto is_shutting_down = [this]() {
  11461. return this->svr_sock_ == INVALID_SOCKET;
  11462. };
  11463. if (res.content_length_ > 0) {
  11464. // Only a 206 response is served as a partial representation, matching the
  11465. // condition `apply_ranges()` used to decide the Content-Length and the
  11466. // multipart boundary. Since `detail::range_error()` validates `req.ranges`
  11467. // only for a 2xx status, slicing under any other status would write a body
  11468. // that disagrees with the header already sent, from an unchecked offset.
  11469. auto is_partial =
  11470. !req.ranges.empty() && res.status == StatusCode::PartialContent_206;
  11471. if (!is_partial) {
  11472. return detail::write_content(strm, res.content_provider_, 0,
  11473. res.content_length_, is_shutting_down);
  11474. } else if (req.ranges.size() == 1) {
  11475. auto offset_and_length = detail::get_range_offset_and_length(
  11476. req.ranges[0], res.content_length_);
  11477. return detail::write_content(strm, res.content_provider_,
  11478. offset_and_length.first,
  11479. offset_and_length.second, is_shutting_down);
  11480. } else {
  11481. return detail::write_multipart_ranges_data(
  11482. strm, req, res, boundary, content_type, res.content_length_,
  11483. is_shutting_down);
  11484. }
  11485. } else {
  11486. if (res.is_chunked_content_provider_) {
  11487. // Use the coding `apply_ranges()` chose when it wrote the headers;
  11488. // re-negotiating here would disagree with them, e.g. once a handler's
  11489. // own Content-Encoding header suppresses the negotiation.
  11490. auto compressor = detail::make_compressor(res.content_coding_);
  11491. if (!compressor) {
  11492. compressor = detail::make_unique<detail::nocompressor>();
  11493. }
  11494. return detail::write_content_chunked(strm, res.content_provider_,
  11495. is_shutting_down, *compressor);
  11496. } else {
  11497. return detail::write_content_without_length(strm, res.content_provider_,
  11498. is_shutting_down);
  11499. }
  11500. }
  11501. }
  11502. inline bool Server::read_content(Stream &strm, Request &req, Response &res) {
  11503. FormFields::iterator cur_field;
  11504. FormFiles::iterator cur_file;
  11505. auto is_text_field = false;
  11506. size_t count = 0;
  11507. if (read_content_core(
  11508. strm, req, res,
  11509. // Regular
  11510. [&](const char *buf, size_t n) {
  11511. // Prevent arithmetic overflow when checking sizes.
  11512. // Avoid computing (req.body.size() + n) directly because
  11513. // adding two unsigned `size_t` values can wrap around and
  11514. // produce a small result instead of indicating overflow.
  11515. // Instead, check using subtraction: ensure `n` does not
  11516. // exceed the remaining capacity `max_size() - size()`.
  11517. if (req.body.size() >= req.body.max_size() ||
  11518. n > req.body.max_size() - req.body.size()) {
  11519. return false;
  11520. }
  11521. // Limit decompressed body size to payload_max_length_ to protect
  11522. // against "zip bomb" attacks where a small compressed payload
  11523. // decompresses to a massive size.
  11524. if (payload_max_length_ > 0 &&
  11525. (req.body.size() >= payload_max_length_ ||
  11526. n > payload_max_length_ - req.body.size())) {
  11527. return false;
  11528. }
  11529. req.body.append(buf, n);
  11530. return true;
  11531. },
  11532. // Multipart FormData
  11533. [&](const FormData &file) {
  11534. if (count++ == CPPHTTPLIB_MULTIPART_FORM_DATA_FILE_MAX_COUNT) {
  11535. output_error_log(Error::TooManyFormDataFiles, &req);
  11536. return false;
  11537. }
  11538. if (file.filename.empty()) {
  11539. cur_field = req.form.fields.emplace(
  11540. file.name, FormField{file.name, file.content, file.headers});
  11541. is_text_field = true;
  11542. } else {
  11543. cur_file = req.form.files.emplace(file.name, file);
  11544. is_text_field = false;
  11545. }
  11546. return true;
  11547. },
  11548. [&](const char *buf, size_t n) {
  11549. if (is_text_field) {
  11550. auto &content = cur_field->second.content;
  11551. if (content.size() + n > content.max_size()) { return false; }
  11552. content.append(buf, n);
  11553. } else {
  11554. auto &content = cur_file->second.content;
  11555. if (content.size() + n > content.max_size()) { return false; }
  11556. content.append(buf, n);
  11557. }
  11558. return true;
  11559. })) {
  11560. const auto &content_type = req.get_header_value("Content-Type");
  11561. if (detail::extract_media_type(content_type) ==
  11562. "application/x-www-form-urlencoded") {
  11563. if (req.body.size() > CPPHTTPLIB_FORM_URL_ENCODED_PAYLOAD_MAX_LENGTH) {
  11564. res.status = StatusCode::PayloadTooLarge_413; // NOTE: should be 414?
  11565. output_error_log(Error::ExceedMaxPayloadSize, &req);
  11566. return false;
  11567. }
  11568. detail::parse_query_text(req.body, req.params);
  11569. }
  11570. return true;
  11571. }
  11572. return false;
  11573. }
  11574. inline bool Server::read_content_with_content_receiver(
  11575. Stream &strm, Request &req, Response &res, ContentReceiver receiver,
  11576. FormDataHeader multipart_header, ContentReceiver multipart_receiver) {
  11577. return read_content_core(strm, req, res, std::move(receiver),
  11578. std::move(multipart_header),
  11579. std::move(multipart_receiver));
  11580. }
  11581. inline bool Server::read_content_core(
  11582. Stream &strm, Request &req, Response &res, ContentReceiver receiver,
  11583. FormDataHeader multipart_header, ContentReceiver multipart_receiver) const {
  11584. detail::FormDataParser multipart_form_data_parser;
  11585. ContentReceiverWithProgress out;
  11586. if (req.is_multipart_form_data()) {
  11587. const auto &content_type = req.get_header_value("Content-Type");
  11588. std::string boundary;
  11589. if (!detail::parse_multipart_boundary(content_type, boundary)) {
  11590. res.status = StatusCode::BadRequest_400;
  11591. output_error_log(Error::MultipartParsing, &req);
  11592. return false;
  11593. }
  11594. multipart_form_data_parser.set_boundary(std::move(boundary));
  11595. out = [&](const char *buf, size_t n, size_t /*off*/, size_t /*len*/) {
  11596. return multipart_form_data_parser.parse(buf, n, multipart_header,
  11597. multipart_receiver);
  11598. };
  11599. } else {
  11600. out = [receiver](const char *buf, size_t n, size_t /*off*/,
  11601. size_t /*len*/) { return receiver(buf, n); };
  11602. }
  11603. // RFC 9112 §6: no Transfer-Encoding and no Content-Length means no body.
  11604. // For non-SSL builds we still scan non-persistent connections for stray
  11605. // body bytes so the payload limit is enforced (413). On keep-alive,
  11606. // pending bytes may be the next request (issue #2450), so skip.
  11607. #if !defined(CPPHTTPLIB_SSL_ENABLED)
  11608. if (!req.has_header("Content-Length") &&
  11609. !detail::is_chunked_transfer_encoding(req.headers)) {
  11610. if (!detail::is_connection_persistent(req) && payload_max_length_ > 0 &&
  11611. payload_max_length_ < (std::numeric_limits<size_t>::max)()) {
  11612. auto has_data = strm.is_readable();
  11613. if (!has_data) {
  11614. auto s = strm.socket();
  11615. if (s != INVALID_SOCKET) {
  11616. has_data = detail::select_read(s, 0, 0) > 0;
  11617. }
  11618. }
  11619. if (has_data) {
  11620. // Route through the same decompressing reader used by the
  11621. // length-framed and chunked paths below, so payload_max_length_ is
  11622. // enforced on the decompressed size here too instead of only on the
  11623. // compressed wire bytes.
  11624. return detail::read_content(strm, req, payload_max_length_, res.status,
  11625. nullptr, out, true);
  11626. }
  11627. }
  11628. return true;
  11629. }
  11630. #else
  11631. if (!req.has_header("Content-Length") &&
  11632. !detail::is_chunked_transfer_encoding(req.headers)) {
  11633. return true;
  11634. }
  11635. #endif
  11636. // The client is waiting for this before it sends the body.
  11637. if (req.expect_100_continue_pending_) {
  11638. req.expect_100_continue_pending_ = false;
  11639. detail::write_response_line(strm, StatusCode::Continue_100);
  11640. strm.write("\r\n");
  11641. }
  11642. if (!detail::read_content(strm, req, payload_max_length_, res.status, nullptr,
  11643. out, true)) {
  11644. return false;
  11645. }
  11646. req.body_consumed_ = true;
  11647. if (req.is_multipart_form_data()) {
  11648. if (!multipart_form_data_parser.is_valid()) {
  11649. res.status = StatusCode::BadRequest_400;
  11650. output_error_log(Error::MultipartParsing, &req);
  11651. return false;
  11652. }
  11653. }
  11654. return true;
  11655. }
  11656. inline bool Server::handle_file_request(Request &req, Response &res) {
  11657. for (const auto &entry : base_dirs_) {
  11658. // Prefix match, on a path segment boundary. A mount point of "/mount"
  11659. // covers "/mount" and "/mount/...", but must not swallow "/mountdir/...".
  11660. // One that already ends in '/' (the root mount among them) carries its own
  11661. // boundary; set_mount_point() guarantees the mount point is not empty.
  11662. if (!req.path.compare(0, entry.mount_point.size(), entry.mount_point) &&
  11663. (entry.mount_point.back() == '/' ||
  11664. req.path.size() == entry.mount_point.size() ||
  11665. req.path[entry.mount_point.size()] == '/')) {
  11666. std::string sub_path = "/" + req.path.substr(entry.mount_point.size());
  11667. if (detail::is_valid_path(sub_path)) {
  11668. auto path = entry.base_dir + sub_path;
  11669. if (path.back() == '/') { path += "index.html"; }
  11670. // Defense-in-depth: is_valid_path blocks ".." traversal in the URL,
  11671. // but symlinks/junctions can still escape the base directory.
  11672. if (!entry.resolved_base_dir.empty()) {
  11673. std::string resolved_path;
  11674. if (detail::canonicalize_path(path.c_str(), resolved_path) &&
  11675. !detail::is_path_within_base(resolved_path,
  11676. entry.resolved_base_dir)) {
  11677. res.status = StatusCode::Forbidden_403;
  11678. return true;
  11679. }
  11680. }
  11681. detail::FileStat stat(path);
  11682. if (stat.is_dir()) {
  11683. res.set_redirect(sub_path + "/", StatusCode::MovedPermanently_301);
  11684. return true;
  11685. }
  11686. if (stat.is_file()) {
  11687. for (const auto &kv : entry.headers) {
  11688. res.set_header(kv.first, kv.second);
  11689. }
  11690. auto content_type_of = [&]() {
  11691. return detail::find_content_type(
  11692. path, file_extension_and_mimetype_map_, default_file_mimetype_);
  11693. };
  11694. // Only the ETag needs the content type this early, and only to name
  11695. // the coding. Deciding it here would otherwise put a regex in front
  11696. // of the 304 below, which serving a file never used to pay for.
  11697. std::string content_type;
  11698. auto encoding = detail::EncodingType::None;
  11699. if (static_file_compression_) {
  11700. content_type = content_type_of();
  11701. encoding =
  11702. static_file_encoding(req, res, content_type, stat.size());
  11703. }
  11704. // The ETag names the representation actually sent, so a client that
  11705. // cached the compressed form revalidates against the compressed ETag
  11706. // and still gets a 304, while one that took identity keeps the plain
  11707. // ETag.
  11708. auto etag = detail::compute_etag(
  11709. stat, encoding == detail::EncodingType::None
  11710. ? std::string()
  11711. : std::string("-") + detail::encoding_name(encoding));
  11712. if (!etag.empty()) { res.set_header("ETag", etag); }
  11713. auto mtime = stat.mtime();
  11714. auto last_modified = detail::file_mtime_to_http_date(mtime);
  11715. if (!last_modified.empty()) {
  11716. res.set_header("Last-Modified", last_modified);
  11717. }
  11718. if (check_if_not_modified(req, res, etag, mtime)) { return true; }
  11719. check_if_range(req, etag, mtime);
  11720. auto mm = std::make_shared<detail::mmap>(path.c_str());
  11721. if (!mm->is_open()) {
  11722. output_error_log(Error::OpenFile, &req);
  11723. return false;
  11724. }
  11725. if (!static_file_compression_) { content_type = content_type_of(); }
  11726. detail::set_file_content_provider(res, mm, content_type, encoding);
  11727. if (req.method != "HEAD" && file_request_handler_) {
  11728. file_request_handler_(req, res);
  11729. }
  11730. return true;
  11731. } else {
  11732. output_error_log(Error::OpenFile, &req);
  11733. }
  11734. }
  11735. }
  11736. }
  11737. return false;
  11738. }
  11739. inline bool Server::check_if_not_modified(const Request &req, Response &res,
  11740. const std::string &etag,
  11741. time_t mtime) const {
  11742. // Handle conditional GET:
  11743. // 1. If-None-Match takes precedence (RFC 9110 Section 13.1.2)
  11744. // 2. If-Modified-Since is checked only when If-None-Match is absent
  11745. if (req.has_header("If-None-Match")) {
  11746. if (!etag.empty()) {
  11747. auto val =
  11748. detail::get_combined_header_value(req.headers, "If-None-Match");
  11749. // NOTE: We use exact string matching here. This works correctly
  11750. // because our server always generates weak ETags (W/"..."), and
  11751. // clients typically send back the same ETag they received.
  11752. // RFC 9110 Section 8.8.3.2 allows weak comparison for
  11753. // If-None-Match, where W/"x" and "x" would match, but this
  11754. // simplified implementation requires exact matches.
  11755. auto ret = detail::split_find(val.data(), val.data() + val.size(), ',',
  11756. [&](const char *b, const char *e) {
  11757. auto seg_len = static_cast<size_t>(e - b);
  11758. return (seg_len == 1 && *b == '*') ||
  11759. (seg_len == etag.size() &&
  11760. std::equal(b, e, etag.begin()));
  11761. });
  11762. if (ret) {
  11763. res.status = StatusCode::NotModified_304;
  11764. return true;
  11765. }
  11766. }
  11767. } else if (req.has_header("If-Modified-Since")) {
  11768. auto val = req.get_header_value("If-Modified-Since");
  11769. auto t = detail::parse_http_date(val);
  11770. if (t != static_cast<time_t>(-1) && mtime <= t) {
  11771. res.status = StatusCode::NotModified_304;
  11772. return true;
  11773. }
  11774. }
  11775. return false;
  11776. }
  11777. inline bool Server::check_if_range(Request &req, const std::string &etag,
  11778. time_t mtime) const {
  11779. // Handle If-Range for partial content requests (RFC 9110
  11780. // Section 13.1.5). If-Range is only evaluated when Range header is
  11781. // present. If the validator matches, serve partial content; otherwise
  11782. // serve full content.
  11783. if (!req.ranges.empty() && req.has_header("If-Range")) {
  11784. auto val = req.get_header_value("If-Range");
  11785. auto is_valid_range = [&]() {
  11786. if (detail::is_strong_etag(val)) {
  11787. // RFC 9110 Section 13.1.5: If-Range requires strong ETag
  11788. // comparison.
  11789. return (!etag.empty() && val == etag);
  11790. } else if (detail::is_weak_etag(val)) {
  11791. // Weak ETags are not valid for If-Range (RFC 9110 Section 13.1.5)
  11792. return false;
  11793. } else {
  11794. // HTTP-date comparison
  11795. auto t = detail::parse_http_date(val);
  11796. return (t != static_cast<time_t>(-1) && mtime <= t);
  11797. }
  11798. };
  11799. if (!is_valid_range()) {
  11800. // Validator doesn't match: ignore Range and serve full content
  11801. req.ranges.clear();
  11802. return false;
  11803. }
  11804. }
  11805. return true;
  11806. }
  11807. inline socket_t
  11808. Server::create_server_socket(const std::string &host, int port,
  11809. int socket_flags,
  11810. SocketOptions socket_options) const {
  11811. return detail::create_socket(
  11812. host, std::string(), port, address_family_, socket_flags, tcp_nodelay_,
  11813. ipv6_v6only_, std::move(socket_options),
  11814. [&](socket_t sock, struct addrinfo &ai, bool & /*quit*/) -> bool {
  11815. if (::bind(sock, ai.ai_addr, static_cast<socklen_t>(ai.ai_addrlen))) {
  11816. output_error_log(Error::BindIPAddress, nullptr);
  11817. return false;
  11818. }
  11819. if (::listen(sock, CPPHTTPLIB_LISTEN_BACKLOG)) {
  11820. output_error_log(Error::Listen, nullptr);
  11821. return false;
  11822. }
  11823. return true;
  11824. });
  11825. }
  11826. inline int Server::bind_internal(const std::string &host, int port,
  11827. int socket_flags) {
  11828. if (is_decommissioned) { return -1; }
  11829. if (!is_valid()) { return -1; }
  11830. svr_sock_ = create_server_socket(host, port, socket_flags, socket_options_);
  11831. if (svr_sock_ == INVALID_SOCKET) { return -1; }
  11832. if (port == 0) {
  11833. struct sockaddr_storage addr;
  11834. socklen_t addr_len = sizeof(addr);
  11835. if (getsockname(svr_sock_, reinterpret_cast<struct sockaddr *>(&addr),
  11836. &addr_len) == -1) {
  11837. output_error_log(Error::GetSockName, nullptr);
  11838. return -1;
  11839. }
  11840. if (addr.ss_family == AF_INET) {
  11841. return ntohs(reinterpret_cast<struct sockaddr_in *>(&addr)->sin_port);
  11842. } else if (addr.ss_family == AF_INET6) {
  11843. return ntohs(reinterpret_cast<struct sockaddr_in6 *>(&addr)->sin6_port);
  11844. } else {
  11845. output_error_log(Error::UnsupportedAddressFamily, nullptr);
  11846. return -1;
  11847. }
  11848. } else {
  11849. return port;
  11850. }
  11851. }
  11852. inline bool Server::listen_internal() {
  11853. // A stop() between bind and listen leaves nothing to accept on. Report
  11854. // failure instead of returning success without ever serving, and mark the
  11855. // server decommissioned the way any failed listen does so that a concurrent
  11856. // wait_until_ready() wakes up instead of spinning forever.
  11857. if (is_decommissioned || svr_sock_ == INVALID_SOCKET) {
  11858. is_decommissioned = true;
  11859. return false;
  11860. }
  11861. auto ret = true;
  11862. is_running_ = true;
  11863. auto se = detail::scope_exit([&]() { is_running_ = false; });
  11864. if (start_handler_) { start_handler_(); }
  11865. {
  11866. std::unique_ptr<TaskQueue> task_queue(new_task_queue());
  11867. while (svr_sock_ != INVALID_SOCKET) {
  11868. #ifndef _WIN32
  11869. if (idle_interval_sec_ > 0 || idle_interval_usec_ > 0) {
  11870. #endif
  11871. auto val = detail::select_read(svr_sock_, idle_interval_sec_,
  11872. idle_interval_usec_);
  11873. if (val == 0) { // Timeout
  11874. task_queue->on_idle();
  11875. continue;
  11876. }
  11877. #ifndef _WIN32
  11878. }
  11879. #endif
  11880. #if defined _WIN32
  11881. // sockets connected via WASAccept inherit flags NO_HANDLE_INHERIT,
  11882. // OVERLAPPED
  11883. socket_t sock = WSAAccept(svr_sock_, nullptr, nullptr, nullptr, 0);
  11884. #elif defined SOCK_CLOEXEC
  11885. socket_t sock = accept4(svr_sock_, nullptr, nullptr, SOCK_CLOEXEC);
  11886. #else
  11887. socket_t sock = accept(svr_sock_, nullptr, nullptr);
  11888. #endif
  11889. if (sock == INVALID_SOCKET) {
  11890. // NOTE: Winsock reports failures through WSAGetLastError() and never
  11891. // touches the CRT errno, so the two have to be asked platform by
  11892. // platform rather than by testing errno here.
  11893. if (detail::is_accept_resource_error()) {
  11894. // The per-process descriptor limit or the network stack's buffer
  11895. // space has been reached. Try to accept new connections after a
  11896. // short sleep.
  11897. std::this_thread::sleep_for(std::chrono::microseconds{1});
  11898. continue;
  11899. } else if (detail::is_accept_transient_error()) {
  11900. continue;
  11901. }
  11902. // Take the descriptor out of svr_sock_ before closing it: a later
  11903. // stop() would otherwise shutdown()/close() a value the OS may have
  11904. // reused, and keep_alive() watches svr_sock_ to notice the server is
  11905. // gone. The exchange also settles the race with a concurrent stop(),
  11906. // since whichever side takes the descriptor closes it exactly once.
  11907. auto listen_sock = svr_sock_.exchange(INVALID_SOCKET);
  11908. if (listen_sock != INVALID_SOCKET) {
  11909. detail::close_socket(listen_sock);
  11910. ret = false;
  11911. output_error_log(Error::Connection, nullptr);
  11912. } else {
  11913. ; // The server socket was closed by user.
  11914. }
  11915. break;
  11916. }
  11917. detail::set_socket_opt_time(sock, SOL_SOCKET, SO_RCVTIMEO,
  11918. read_timeout_sec_, read_timeout_usec_);
  11919. detail::set_socket_opt_time(sock, SOL_SOCKET, SO_SNDTIMEO,
  11920. write_timeout_sec_, write_timeout_usec_);
  11921. if (tcp_nodelay_) { set_socket_opt(sock, IPPROTO_TCP, TCP_NODELAY, 1); }
  11922. if (!task_queue->enqueue(
  11923. [this, sock]() { process_and_close_socket(sock); })) {
  11924. output_error_log(Error::ResourceExhaustion, nullptr);
  11925. detail::shutdown_socket(sock);
  11926. detail::close_socket(sock);
  11927. }
  11928. }
  11929. task_queue->shutdown();
  11930. }
  11931. is_decommissioned = !ret;
  11932. return ret;
  11933. }
  11934. inline bool Server::routing(Request &req, Response &res, Stream &strm) {
  11935. if (pre_routing_handler_ &&
  11936. pre_routing_handler_(req, res) == HandlerResponse::Handled) {
  11937. return true;
  11938. }
  11939. // File handler
  11940. if ((req.method == "GET" || req.method == "HEAD") &&
  11941. handle_file_request(req, res)) {
  11942. return true;
  11943. }
  11944. const auto *custom = find_custom_entry(req.method);
  11945. // The second clause mirrors what expect_content() does unconditionally for
  11946. // POST/PUT/PATCH/DELETE: a content reader route fires even when the request
  11947. // carries no body. Without it a body-less PROPFIND (RFC 4918 treats one as
  11948. // `allprop`) would skip its handler and fall through to 404.
  11949. if (detail::expect_content(req) ||
  11950. (custom && !custom->handlers_for_content_reader.empty())) {
  11951. // Content reader handler
  11952. {
  11953. // Track whether the ContentReader was aborted due to the decompressed
  11954. // payload exceeding `payload_max_length_`.
  11955. // The user handler runs after the lambda returns, so we must restore the
  11956. // 413 status if the handler overwrites it.
  11957. bool content_reader_payload_too_large = false;
  11958. ContentReader reader(
  11959. [&](ContentReceiver receiver) {
  11960. auto result = read_content_with_content_receiver(
  11961. strm, req, res, std::move(receiver), nullptr, nullptr);
  11962. if (!result) {
  11963. output_error_log(Error::Read, &req);
  11964. if (res.status == StatusCode::PayloadTooLarge_413) {
  11965. content_reader_payload_too_large = true;
  11966. }
  11967. }
  11968. return result;
  11969. },
  11970. [&](FormDataHeader header, ContentReceiver receiver) {
  11971. auto result = read_content_with_content_receiver(
  11972. strm, req, res, nullptr, std::move(header),
  11973. std::move(receiver));
  11974. if (!result) {
  11975. output_error_log(Error::Read, &req);
  11976. if (res.status == StatusCode::PayloadTooLarge_413) {
  11977. content_reader_payload_too_large = true;
  11978. }
  11979. }
  11980. return result;
  11981. });
  11982. bool dispatched = false;
  11983. if (req.method == "POST") {
  11984. dispatched = dispatch_request_for_content_reader(
  11985. req, res, std::move(reader), post_handlers_for_content_reader_);
  11986. } else if (req.method == "PUT") {
  11987. dispatched = dispatch_request_for_content_reader(
  11988. req, res, std::move(reader), put_handlers_for_content_reader_);
  11989. } else if (req.method == "PATCH") {
  11990. dispatched = dispatch_request_for_content_reader(
  11991. req, res, std::move(reader), patch_handlers_for_content_reader_);
  11992. } else if (req.method == "DELETE") {
  11993. dispatched = dispatch_request_for_content_reader(
  11994. req, res, std::move(reader), delete_handlers_for_content_reader_);
  11995. } else if (custom) {
  11996. dispatched = dispatch_request_for_content_reader(
  11997. req, res, std::move(reader), custom->handlers_for_content_reader);
  11998. }
  11999. if (dispatched) {
  12000. if (content_reader_payload_too_large) {
  12001. // Enforce the limit: override any status the handler may have set
  12002. // and return false so the error path sends a plain 413 response.
  12003. res.status = StatusCode::PayloadTooLarge_413;
  12004. res.body.clear();
  12005. res.content_length_ = 0;
  12006. res.content_provider_ = nullptr;
  12007. return false;
  12008. }
  12009. return true;
  12010. }
  12011. }
  12012. // NOTE: `req.body` is not read here. For a regular handler the body is
  12013. // read inside dispatch_request(), after the route has matched and the
  12014. // pre-request handler has approved the request, so that a rejected
  12015. // request (e.g. failed authentication) never forces us to buffer a
  12016. // potentially large body.
  12017. }
  12018. // Regular handler
  12019. if (req.method == "GET" || req.method == "HEAD") {
  12020. return dispatch_request(req, res, get_handlers_, strm);
  12021. } else if (req.method == "POST") {
  12022. return dispatch_request(req, res, post_handlers_, strm);
  12023. } else if (req.method == "PUT") {
  12024. return dispatch_request(req, res, put_handlers_, strm);
  12025. } else if (req.method == "DELETE") {
  12026. return dispatch_request(req, res, delete_handlers_, strm);
  12027. } else if (req.method == "OPTIONS") {
  12028. return dispatch_request(req, res, options_handlers_, strm);
  12029. } else if (req.method == "PATCH") {
  12030. return dispatch_request(req, res, patch_handlers_, strm);
  12031. } else if (custom) {
  12032. return dispatch_request(req, res, custom->handlers, strm);
  12033. }
  12034. res.status = StatusCode::BadRequest_400;
  12035. return false;
  12036. }
  12037. inline bool Server::dispatch_request(Request &req, Response &res,
  12038. const Handlers &handlers, Stream &strm) {
  12039. for (const auto &x : handlers) {
  12040. const auto &matcher = x.first;
  12041. const auto &handler = x.second;
  12042. if (matcher->match(req)) {
  12043. req.matched_route = matcher->pattern();
  12044. // Run the pre-request handler before reading the body so a rejected
  12045. // request (e.g. failed authentication) never forces us to buffer a
  12046. // potentially large body. `req.matched_route` is available here.
  12047. if (pre_request_handler_ &&
  12048. pre_request_handler_(req, res) == HandlerResponse::Handled) {
  12049. return true;
  12050. }
  12051. // The route matched and the request was approved; read the body now.
  12052. if (detail::expect_content(req) && !read_content(strm, req, res)) {
  12053. output_error_log(Error::Read, &req);
  12054. return false;
  12055. }
  12056. handler(req, res);
  12057. return true;
  12058. }
  12059. }
  12060. return false;
  12061. }
  12062. // Decides the content coding for a response served straight from a file. Both
  12063. // the ETag, which has to name the representation actually sent, and
  12064. // `apply_static_file_compression()` go through this, so the two cannot drift
  12065. // apart.
  12066. inline detail::EncodingType
  12067. Server::static_file_encoding(const Request &req, const Response &res,
  12068. const std::string &content_type,
  12069. size_t length) const {
  12070. if (!static_file_compression_) { return detail::EncodingType::None; }
  12071. // Nothing to compress, and an empty file already answers with
  12072. // `Content-Length: 0`. Checked on its own so that a zero floor still cannot
  12073. // turn an empty body into a 20-byte gzip stream.
  12074. if (length == 0) { return detail::EncodingType::None; }
  12075. // A file that already fits in a single packet gains nothing from being made
  12076. // smaller, since it still travels in that one segment, and a file of a few
  12077. // bytes comes out larger than it went in.
  12078. if (length < static_file_compression_min_length_) {
  12079. return detail::EncodingType::None;
  12080. }
  12081. // RFC 9110 applies Range to the representation after content coding, so a
  12082. // compressed 206 would mean compressing the whole file and then slicing it.
  12083. // Serve ranges from the identity representation instead.
  12084. if (!req.ranges.empty()) { return detail::EncodingType::None; }
  12085. if (static_file_compression_max_length_ > 0 &&
  12086. length > static_file_compression_max_length_) {
  12087. return detail::EncodingType::None;
  12088. }
  12089. return detail::encoding_type(req, res, content_type);
  12090. }
  12091. // Compresses a file-backed content provider into `res.body` and takes over the
  12092. // framing headers. Returns false when the response is left untouched.
  12093. inline bool Server::apply_static_file_compression(const Request &req,
  12094. Response &res) const {
  12095. auto type = res.content_coding_;
  12096. if (type == detail::EncodingType::None || !res.content_provider_) {
  12097. return false;
  12098. }
  12099. auto compressor = detail::make_compressor(type);
  12100. if (!compressor) { return false; }
  12101. output_pre_compression_log(req, res);
  12102. std::string compressed;
  12103. if (!detail::compress_content_provider(res.content_provider_,
  12104. res.content_length_, *compressor,
  12105. compressed)) {
  12106. return false;
  12107. }
  12108. res.body.swap(compressed);
  12109. // The provider was consumed in full, so a resource releaser registered with
  12110. // it should hear about a success when the response goes away.
  12111. res.content_provider_success_ = true;
  12112. res.content_provider_ = nullptr;
  12113. res.content_length_ = 0;
  12114. res.content_coding_ = detail::EncodingType::None;
  12115. res.set_header("Content-Encoding", detail::encoding_name(type));
  12116. res.set_header("Vary", "Accept-Encoding");
  12117. res.set_header("Content-Length", std::to_string(res.body.size()));
  12118. return true;
  12119. }
  12120. inline void Server::apply_ranges(const Request &req, Response &res,
  12121. std::string &content_type,
  12122. std::string &boundary) const {
  12123. // A known-length content provider leaves `res.body` empty, so the compressor
  12124. // at the end of this function never runs for one (issue #2545). A file-backed
  12125. // provider is fully readable right here, so compress it and answer with an
  12126. // ordinary body: `Content-Length` and HEAD keep working, and the response
  12127. // takes the same path as `set_content()` from here on. Range requests never
  12128. // get a content coding, so `Content-Range` still names identity bytes and
  12129. // none of the framing below applies.
  12130. if (apply_static_file_compression(req, res)) { return; }
  12131. if (req.ranges.size() > 1 && res.status == StatusCode::PartialContent_206) {
  12132. auto it = res.headers.find("Content-Type");
  12133. if (it != res.headers.end()) {
  12134. content_type = it->second;
  12135. res.headers.erase(it);
  12136. }
  12137. boundary = detail::make_multipart_data_boundary();
  12138. res.set_header("Content-Type",
  12139. "multipart/byteranges; boundary=" + boundary);
  12140. }
  12141. auto type = detail::encoding_type(req, res);
  12142. if (res.body.empty()) {
  12143. if (res.content_length_ > 0) {
  12144. size_t length = 0;
  12145. if (req.ranges.empty() || res.status != StatusCode::PartialContent_206) {
  12146. length = res.content_length_;
  12147. } else if (req.ranges.size() == 1) {
  12148. auto offset_and_length = detail::get_range_offset_and_length(
  12149. req.ranges[0], res.content_length_);
  12150. length = offset_and_length.second;
  12151. auto content_range = detail::make_content_range_header_field(
  12152. offset_and_length, res.content_length_);
  12153. res.set_header("Content-Range", content_range);
  12154. } else {
  12155. length = detail::get_multipart_ranges_data_length(
  12156. req, boundary, content_type, res.content_length_);
  12157. }
  12158. res.set_header("Content-Length", std::to_string(length));
  12159. } else {
  12160. if (res.content_provider_) {
  12161. if (res.is_chunked_content_provider_) {
  12162. res.set_header("Transfer-Encoding", "chunked");
  12163. res.content_coding_ = type;
  12164. if (type != detail::EncodingType::None) {
  12165. res.set_header("Content-Encoding", detail::encoding_name(type));
  12166. res.set_header("Vary", "Accept-Encoding");
  12167. }
  12168. }
  12169. }
  12170. }
  12171. } else {
  12172. if (req.ranges.empty() || res.status != StatusCode::PartialContent_206) {
  12173. ;
  12174. } else if (req.ranges.size() == 1) {
  12175. auto offset_and_length =
  12176. detail::get_range_offset_and_length(req.ranges[0], res.body.size());
  12177. auto offset = offset_and_length.first;
  12178. auto length = offset_and_length.second;
  12179. auto content_range = detail::make_content_range_header_field(
  12180. offset_and_length, res.body.size());
  12181. res.set_header("Content-Range", content_range);
  12182. assert(offset + length <= res.body.size());
  12183. res.body = res.body.substr(offset, length);
  12184. } else {
  12185. std::string data;
  12186. detail::make_multipart_ranges_data(req, res, boundary, content_type,
  12187. res.body.size(), data);
  12188. res.body.swap(data);
  12189. }
  12190. if (type != detail::EncodingType::None) {
  12191. output_pre_compression_log(req, res);
  12192. if (auto compressor = detail::make_compressor(type)) {
  12193. std::string compressed;
  12194. if (compressor->compress(res.body.data(), res.body.size(), true,
  12195. [&](const char *data, size_t data_len) {
  12196. compressed.append(data, data_len);
  12197. return true;
  12198. })) {
  12199. res.body.swap(compressed);
  12200. res.set_header("Content-Encoding", detail::encoding_name(type));
  12201. res.set_header("Vary", "Accept-Encoding");
  12202. }
  12203. }
  12204. }
  12205. res.content_length_ = res.body.size();
  12206. res.set_header("Content-Length", std::to_string(res.content_length_));
  12207. }
  12208. }
  12209. inline bool Server::dispatch_request_for_content_reader(
  12210. Request &req, Response &res, ContentReader content_reader,
  12211. const HandlersForContentReader &handlers) const {
  12212. for (const auto &x : handlers) {
  12213. const auto &matcher = x.first;
  12214. const auto &handler = x.second;
  12215. if (matcher->match(req)) {
  12216. req.matched_route = matcher->pattern();
  12217. if (!pre_request_handler_ ||
  12218. pre_request_handler_(req, res) != HandlerResponse::Handled) {
  12219. handler(req, res, content_reader);
  12220. }
  12221. return true;
  12222. }
  12223. }
  12224. return false;
  12225. }
  12226. inline std::string
  12227. get_client_ip(const std::string &x_forwarded_for,
  12228. const std::vector<std::string> &trusted_proxies) {
  12229. // X-Forwarded-For is a comma-separated list per RFC 7239
  12230. std::vector<std::string> ip_list;
  12231. detail::split(x_forwarded_for.data(),
  12232. x_forwarded_for.data() + x_forwarded_for.size(), ',',
  12233. [&](const char *b, const char *e) {
  12234. auto r = detail::trim(b, e, 0, static_cast<size_t>(e - b));
  12235. ip_list.emplace_back(std::string(b + r.first, b + r.second));
  12236. });
  12237. // A malformed X-Forwarded-For (empty, comma-only, whitespace-only) yields
  12238. // no segments. Signal "no client IP derived" with an empty string so the
  12239. // caller can fall back to the connection-level remote address.
  12240. if (ip_list.empty()) { return std::string(); }
  12241. // Each hop appends the address it received the request from, so the rightmost
  12242. // entries are the ones written by our own infrastructure while the leftmost
  12243. // are whatever the original client chose to send. Walk from the right and
  12244. // skip trusted proxies; the first address that is not a trusted proxy is the
  12245. // furthest point still attributable to a real hop, i.e. the client. Scanning
  12246. // from the left instead lets a client forge an arbitrary address by following
  12247. // it with a trusted proxy's address, which the left-to-right scan then
  12248. // returned as the client.
  12249. for (size_t i = ip_list.size(); i-- > 0;) {
  12250. const auto &ip = ip_list[i];
  12251. auto is_trusted_proxy =
  12252. std::any_of(trusted_proxies.begin(), trusted_proxies.end(),
  12253. [&](const std::string &proxy) { return ip == proxy; });
  12254. if (!is_trusted_proxy) { return ip; }
  12255. }
  12256. // Every hop was a trusted proxy; fall back to the first entry.
  12257. return ip_list.front();
  12258. }
  12259. inline bool
  12260. Server::process_request(Stream &strm, const std::string &remote_addr,
  12261. int remote_port, const std::string &local_addr,
  12262. int local_port, bool close_connection,
  12263. bool &connection_closed,
  12264. const std::function<void(Request &)> &setup_request,
  12265. bool *websocket_upgraded) {
  12266. std::array<char, 2048> buf{};
  12267. detail::stream_line_reader line_reader(strm, buf.data(), buf.size());
  12268. // Connection has been closed on client
  12269. if (!line_reader.getline()) { return false; }
  12270. // RFC 9112 2.2: ignore an empty line received before the request-line. Some
  12271. // clients send an extra CRLF after a request body, which would otherwise be
  12272. // parsed as the next request on a persistent connection.
  12273. if (strcmp(line_reader.ptr(), "\r\n") == 0 && !line_reader.getline()) {
  12274. return false;
  12275. }
  12276. Request req;
  12277. req.start_time_ = std::chrono::steady_clock::now();
  12278. req.remote_addr = remote_addr;
  12279. req.remote_port = remote_port;
  12280. req.local_addr = local_addr;
  12281. req.local_port = local_port;
  12282. Response res;
  12283. res.version = "HTTP/1.1";
  12284. res.headers = default_headers_;
  12285. // RFC 9112 §9.6: a server that sends the "close" connection option must
  12286. // close the connection after that response, whichever path wrote it (an
  12287. // error status, a handler, or a rejected request). Reading on would also
  12288. // parse whatever the client sent next on a connection it considers done.
  12289. auto honor_connection_close = detail::scope_exit([&] {
  12290. if (detail::has_header_token(res.headers, "Connection", "close")) {
  12291. connection_closed = true;
  12292. }
  12293. });
  12294. // Request line and headers. A rejected message leaves the rest of it (and
  12295. // any body) unread, so the connection cannot be reused: the leftover bytes
  12296. // would be parsed as the next request.
  12297. if (!parse_request_line(line_reader.ptr(), req)) {
  12298. connection_closed = true;
  12299. res.status = StatusCode::BadRequest_400;
  12300. output_error_log(Error::InvalidRequestLine, &req);
  12301. return write_response(strm, close_connection, req, res);
  12302. }
  12303. // Request headers
  12304. if (!detail::read_headers(strm, req.headers)) {
  12305. connection_closed = true;
  12306. res.status = StatusCode::BadRequest_400;
  12307. output_error_log(Error::InvalidHeaders, &req);
  12308. return write_response(strm, close_connection, req, res);
  12309. }
  12310. // RFC 9112 §6.3: Reject requests whose framing is invalid or ambiguous,
  12311. // which would otherwise let an intermediary and this parser disagree on
  12312. // where the body ends and enable request smuggling. Three cases: a
  12313. // Content-Length that is not a valid decimal length (e.g. "42, 42", "+42"
  12314. // or empty), which would otherwise be read as "no body"; a non-zero
  12315. // Content-Length alongside any Transfer-Encoding (Content-Length: 0 is
  12316. // tolerated for compatibility with existing clients); and a
  12317. // Transfer-Encoding whose final coding is not chunked, which leaves the body
  12318. // length undeterminable. None of them may fall through to the "no body"
  12319. // path, or the body bytes are parsed as the next request on a persistent
  12320. // connection.
  12321. auto is_invalid_content_length = false;
  12322. detail::get_header_value_u64(req.headers, "Content-Length", 0, 0,
  12323. is_invalid_content_length);
  12324. if (is_invalid_content_length ||
  12325. detail::has_conflicting_content_length(req.headers) ||
  12326. (req.has_header("Transfer-Encoding") &&
  12327. !detail::is_chunked_transfer_encoding(req.headers))) {
  12328. connection_closed = true;
  12329. res.status = StatusCode::BadRequest_400;
  12330. return write_response(strm, close_connection, req, res);
  12331. }
  12332. // Check if the request URI doesn't exceed the limit
  12333. if (req.target.size() > CPPHTTPLIB_REQUEST_URI_MAX_LENGTH) {
  12334. connection_closed = true;
  12335. res.status = StatusCode::UriTooLong_414;
  12336. output_error_log(Error::ExceedUriMaxLength, &req);
  12337. return write_response(strm, close_connection, req, res);
  12338. }
  12339. if (detail::has_header_token(req.headers, "Connection", "close")) {
  12340. connection_closed = true;
  12341. }
  12342. if (req.version == "HTTP/1.0" &&
  12343. !detail::has_header_token(req.headers, "Connection", "keep-alive")) {
  12344. connection_closed = true;
  12345. }
  12346. // Only honor X-Forwarded-For if the peer on the actual TCP connection is
  12347. // itself a trusted proxy. Otherwise any direct client could spoof
  12348. // remote_addr simply by sending an arbitrary X-Forwarded-For header.
  12349. auto is_trusted_peer = std::any_of(
  12350. trusted_proxies_.begin(), trusted_proxies_.end(),
  12351. [&](const std::string &proxy) { return proxy == remote_addr; });
  12352. if (is_trusted_peer && req.has_header("X-Forwarded-For")) {
  12353. // Some proxies append the address they observed as a separate
  12354. // X-Forwarded-For field line instead of extending the one the client sent
  12355. // (e.g. HAProxy's "option forwardfor"), so the whole combined value has to
  12356. // be scanned. Reading only the first occurrence would hand back the
  12357. // client-supplied, and therefore forgeable, value.
  12358. auto x_forwarded_for =
  12359. detail::get_combined_header_value(req.headers, "X-Forwarded-For");
  12360. auto derived = get_client_ip(x_forwarded_for, trusted_proxies_);
  12361. req.remote_addr = derived.empty() ? remote_addr : derived;
  12362. } else {
  12363. req.remote_addr = remote_addr;
  12364. }
  12365. req.remote_port = remote_port;
  12366. req.local_addr = local_addr;
  12367. req.local_port = local_port;
  12368. if (req.has_header("Accept")) {
  12369. auto accept_header =
  12370. detail::get_combined_header_value(req.headers, "Accept");
  12371. if (!detail::parse_accept_header(accept_header, req.accept_content_types)) {
  12372. connection_closed = true;
  12373. res.status = StatusCode::BadRequest_400;
  12374. output_error_log(Error::HTTPParsing, &req);
  12375. return write_response(strm, close_connection, req, res);
  12376. }
  12377. }
  12378. if (req.has_header("Range")) {
  12379. const auto &range_header_value = req.get_header_value("Range");
  12380. if (!detail::parse_range_header(range_header_value, req.ranges)) {
  12381. connection_closed = true;
  12382. res.status = StatusCode::RangeNotSatisfiable_416;
  12383. output_error_log(Error::InvalidRangeHeader, &req);
  12384. return write_response(strm, close_connection, req, res);
  12385. }
  12386. }
  12387. if (setup_request) { setup_request(req); }
  12388. // RFC 9110 10.1.1: Expect is a comma-separated list whose value is
  12389. // case-insensitive, and a 100-continue expectation in an HTTP/1.0 request
  12390. // must be ignored. An expectation we do not recognize is left alone; the
  12391. // 417 the section allows for one is a MAY, not a requirement.
  12392. //
  12393. // `100 Continue` itself is deferred until the body is actually read (see
  12394. // read_content_core), so a request rejected by a later handler never
  12395. // invites the client to send a body nobody will read.
  12396. if (req.version != "HTTP/1.0" &&
  12397. detail::has_header_token(req.headers, "Expect", "100-continue")) {
  12398. int status = StatusCode::Continue_100;
  12399. if (expect_100_continue_handler_) {
  12400. status = expect_100_continue_handler_(req, res);
  12401. }
  12402. if (status == StatusCode::Continue_100) {
  12403. req.expect_100_continue_pending_ = true;
  12404. } else {
  12405. if (res.status == -1) { res.status = status; }
  12406. connection_closed = true;
  12407. return write_response(strm, true, req, res);
  12408. }
  12409. }
  12410. // Setup `is_connection_closed` method
  12411. auto sock = strm.socket();
  12412. req.is_connection_closed = [sock]() {
  12413. return !detail::is_socket_alive(sock);
  12414. };
  12415. // WebSocket upgrade
  12416. // Run pre_routing_handler_ and pre_request_handler_ before upgrading so
  12417. // that authentication and other middleware can reject the request with an
  12418. // HTTP response (e.g., 401) before the protocol switches.
  12419. if (detail::is_websocket_upgrade(req)) {
  12420. if (pre_routing_handler_ &&
  12421. pre_routing_handler_(req, res) == HandlerResponse::Handled) {
  12422. if (res.status == -1) { res.status = StatusCode::OK_200; }
  12423. return write_response_with_content(strm, close_connection, req, res);
  12424. }
  12425. // Find matching WebSocket handler
  12426. for (const auto &entry : websocket_handlers_) {
  12427. if (entry.matcher->match(req)) {
  12428. req.matched_route = entry.matcher->pattern();
  12429. if (pre_request_handler_ &&
  12430. pre_request_handler_(req, res) == HandlerResponse::Handled) {
  12431. if (res.status == -1) { res.status = StatusCode::OK_200; }
  12432. return write_response_with_content(strm, close_connection, req, res);
  12433. }
  12434. // Compute accept key
  12435. auto client_key = req.get_header_value("Sec-WebSocket-Key");
  12436. auto accept_key = detail::websocket_accept_key(client_key);
  12437. // Negotiate subprotocol
  12438. std::string selected_subprotocol;
  12439. if (entry.sub_protocol_selector) {
  12440. auto protocol_header = detail::get_combined_header_value(
  12441. req.headers, "Sec-WebSocket-Protocol");
  12442. if (!protocol_header.empty()) {
  12443. std::vector<std::string> protocols;
  12444. detail::split(protocol_header.data(),
  12445. protocol_header.data() + protocol_header.size(), ',',
  12446. [&](const char *b, const char *e) {
  12447. protocols.emplace_back(b, e);
  12448. });
  12449. selected_subprotocol = entry.sub_protocol_selector(protocols);
  12450. }
  12451. }
  12452. // Send 101 Switching Protocols
  12453. std::string handshake_response = "HTTP/1.1 101 Switching Protocols\r\n"
  12454. "Upgrade: websocket\r\n"
  12455. "Connection: Upgrade\r\n"
  12456. "Sec-WebSocket-Accept: " +
  12457. accept_key + "\r\n";
  12458. if (!selected_subprotocol.empty()) {
  12459. if (!detail::fields::is_field_value(selected_subprotocol)) {
  12460. return false;
  12461. }
  12462. handshake_response +=
  12463. "Sec-WebSocket-Protocol: " + selected_subprotocol + "\r\n";
  12464. }
  12465. handshake_response += "\r\n";
  12466. if (strm.write(handshake_response.data(), handshake_response.size()) <
  12467. 0) {
  12468. return false;
  12469. }
  12470. connection_closed = true;
  12471. if (websocket_upgraded) { *websocket_upgraded = true; }
  12472. {
  12473. #ifdef CPPHTTPLIB_SSL_ENABLED
  12474. if (req.ssl) {
  12475. // wss: the heartbeat ping thread and the read path enter the same
  12476. // TLS session from different threads. Hand the WebSocket a stream
  12477. // that serializes every TLS call, so the shared SSLSocketStream on
  12478. // the plain HTTP/HTTPS paths stays untouched.
  12479. auto ws_strm =
  12480. std::unique_ptr<Stream>(new detail::WebSocketSSLStream(
  12481. strm.socket(), const_cast<tls::session_t>(req.ssl),
  12482. CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND, 0,
  12483. write_timeout_sec_, write_timeout_usec_));
  12484. ws::WebSocket ws(std::move(ws_strm), req, true,
  12485. websocket_ping_interval_sec_,
  12486. websocket_max_missed_pongs_);
  12487. entry.handler(req, ws);
  12488. return true;
  12489. }
  12490. #endif
  12491. // Use WebSocket-specific read timeout instead of HTTP timeout
  12492. strm.set_read_timeout(CPPHTTPLIB_WEBSOCKET_SERVER_READ_TIMEOUT_SECOND,
  12493. 0);
  12494. ws::WebSocket ws(strm, req, true, websocket_ping_interval_sec_,
  12495. websocket_max_missed_pongs_);
  12496. entry.handler(req, ws);
  12497. }
  12498. return true;
  12499. }
  12500. }
  12501. // No matching handler - fall through to 404
  12502. }
  12503. // Routing
  12504. auto routed = false;
  12505. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  12506. routed = routing(req, res, strm);
  12507. #else
  12508. try {
  12509. routed = routing(req, res, strm);
  12510. } catch (std::exception &) {
  12511. if (exception_handler_) {
  12512. auto ep = std::current_exception();
  12513. exception_handler_(req, res, ep);
  12514. routed = true;
  12515. } else {
  12516. res.status = StatusCode::InternalServerError_500;
  12517. }
  12518. } catch (...) {
  12519. if (exception_handler_) {
  12520. auto ep = std::current_exception();
  12521. exception_handler_(req, res, ep);
  12522. routed = true;
  12523. } else {
  12524. res.status = StatusCode::InternalServerError_500;
  12525. }
  12526. }
  12527. #endif
  12528. auto ret = false;
  12529. if (routed) {
  12530. if (res.status == -1) {
  12531. res.status = req.ranges.empty() ? StatusCode::OK_200
  12532. : StatusCode::PartialContent_206;
  12533. }
  12534. // Serve file content by using a content provider
  12535. auto file_open_error = false;
  12536. if (!res.file_content_path_.empty()) {
  12537. const auto &path = res.file_content_path_;
  12538. auto mm = std::make_shared<detail::mmap>(path.c_str());
  12539. if (!mm->is_open()) {
  12540. res.body.clear();
  12541. res.content_length_ = 0;
  12542. res.content_provider_ = nullptr;
  12543. res.status = StatusCode::NotFound_404;
  12544. output_error_log(Error::OpenFile, &req);
  12545. file_open_error = true;
  12546. } else {
  12547. auto content_type = res.file_content_content_type_;
  12548. if (content_type.empty()) {
  12549. content_type = detail::find_content_type(
  12550. path, file_extension_and_mimetype_map_, default_file_mimetype_);
  12551. }
  12552. detail::set_file_content_provider(
  12553. res, mm, content_type,
  12554. static_file_encoding(req, res, content_type, mm->size()));
  12555. }
  12556. }
  12557. if (file_open_error) {
  12558. ret = write_response(strm, close_connection, req, res);
  12559. } else if (detail::range_error(req, res)) {
  12560. res.body.clear();
  12561. res.content_length_ = 0;
  12562. res.content_provider_ = nullptr;
  12563. res.status = StatusCode::RangeNotSatisfiable_416;
  12564. ret = write_response(strm, close_connection, req, res);
  12565. } else {
  12566. ret = write_response_with_content(strm, close_connection, req, res);
  12567. }
  12568. } else {
  12569. if (res.status == -1) { res.status = StatusCode::NotFound_404; }
  12570. ret = write_response(strm, close_connection, req, res);
  12571. }
  12572. // Drain any unconsumed framed body to prevent request smuggling on
  12573. // keep-alive. Without framing there is no body to drain — reading would
  12574. // consume the next request (issue #2450). If the response has committed the
  12575. // connection to close, there is no next request to protect.
  12576. if (!req.body_consumed_ && detail::has_framed_body(req) &&
  12577. !detail::has_header_token(res.headers, "Connection", "close")) {
  12578. int dummy_status;
  12579. if (!detail::read_content(
  12580. strm, req, payload_max_length_, dummy_status, nullptr,
  12581. [](const char *, size_t, size_t, size_t) { return true; }, false)) {
  12582. connection_closed = true;
  12583. }
  12584. }
  12585. return ret;
  12586. }
  12587. inline bool Server::is_valid() const { return !has_invalid_registration_; }
  12588. inline bool Server::process_and_close_socket(socket_t sock) {
  12589. std::string remote_addr;
  12590. int remote_port = 0;
  12591. detail::get_remote_ip_and_port(sock, remote_addr, remote_port);
  12592. std::string local_addr;
  12593. int local_port = 0;
  12594. detail::get_local_ip_and_port(sock, local_addr, local_port);
  12595. bool websocket_upgraded = false;
  12596. auto ret = serve_guarded([&]() {
  12597. return detail::process_server_socket(
  12598. svr_sock_, sock, keep_alive_max_count_, keep_alive_timeout_sec_,
  12599. read_timeout_sec_, read_timeout_usec_, write_timeout_sec_,
  12600. write_timeout_usec_,
  12601. [&](Stream &strm, bool close_connection, bool &connection_closed) {
  12602. return process_request(strm, remote_addr, remote_port, local_addr,
  12603. local_port, close_connection,
  12604. connection_closed, nullptr,
  12605. &websocket_upgraded);
  12606. });
  12607. });
  12608. detail::drain_and_close_socket(sock);
  12609. return ret;
  12610. }
  12611. inline void Server::output_log(const Request &req, const Response &res) const {
  12612. if (logger_) {
  12613. std::lock_guard<std::mutex> guard(logger_mutex_);
  12614. logger_(req, res);
  12615. }
  12616. }
  12617. inline void Server::output_pre_compression_log(const Request &req,
  12618. const Response &res) const {
  12619. if (pre_compression_logger_) {
  12620. std::lock_guard<std::mutex> guard(logger_mutex_);
  12621. pre_compression_logger_(req, res);
  12622. }
  12623. }
  12624. inline void Server::output_error_log(const Error &err,
  12625. const Request *req) const {
  12626. if (error_logger_) {
  12627. std::lock_guard<std::mutex> guard(logger_mutex_);
  12628. error_logger_(err, req);
  12629. }
  12630. }
  12631. /*
  12632. * Group 5: ClientImpl and Client (Universal) implementation
  12633. */
  12634. // HTTP client implementation
  12635. inline ClientImpl::ClientImpl(const std::string &host)
  12636. : ClientImpl(host, 80, std::string(), std::string()) {}
  12637. inline ClientImpl::ClientImpl(const std::string &host, int port)
  12638. : ClientImpl(host, port, std::string(), std::string()) {}
  12639. inline ClientImpl::ClientImpl(const std::string &host, int port,
  12640. const std::string &client_cert_path,
  12641. const std::string &client_key_path)
  12642. : host_(detail::escape_abstract_namespace_unix_domain(host)), port_(port),
  12643. client_cert_path_(client_cert_path), client_key_path_(client_key_path) {}
  12644. inline ClientImpl::~ClientImpl() {
  12645. // Wait until all the requests in flight are handled.
  12646. size_t retry_count = 10;
  12647. while (retry_count-- > 0) {
  12648. {
  12649. std::lock_guard<std::mutex> guard(socket_mutex_);
  12650. if (socket_requests_in_flight_ == 0) { break; }
  12651. }
  12652. std::this_thread::sleep_for(std::chrono::milliseconds{1});
  12653. }
  12654. std::lock_guard<std::mutex> guard(socket_mutex_);
  12655. shutdown_socket(socket_);
  12656. close_socket(socket_);
  12657. }
  12658. inline bool ClientImpl::is_valid() const { return true; }
  12659. inline void ClientImpl::copy_settings(const ClientImpl &rhs) {
  12660. client_cert_path_ = rhs.client_cert_path_;
  12661. client_key_path_ = rhs.client_key_path_;
  12662. connection_timeout_sec_ = rhs.connection_timeout_sec_;
  12663. read_timeout_sec_ = rhs.read_timeout_sec_;
  12664. read_timeout_usec_ = rhs.read_timeout_usec_;
  12665. write_timeout_sec_ = rhs.write_timeout_sec_;
  12666. write_timeout_usec_ = rhs.write_timeout_usec_;
  12667. max_timeout_msec_ = rhs.max_timeout_msec_;
  12668. basic_auth_username_ = rhs.basic_auth_username_;
  12669. basic_auth_password_ = rhs.basic_auth_password_;
  12670. bearer_token_auth_token_ = rhs.bearer_token_auth_token_;
  12671. keep_alive_ = rhs.keep_alive_;
  12672. follow_location_ = rhs.follow_location_;
  12673. path_encode_ = rhs.path_encode_;
  12674. address_family_ = rhs.address_family_;
  12675. tcp_nodelay_ = rhs.tcp_nodelay_;
  12676. ipv6_v6only_ = rhs.ipv6_v6only_;
  12677. socket_options_ = rhs.socket_options_;
  12678. compress_ = rhs.compress_;
  12679. decompress_ = rhs.decompress_;
  12680. payload_max_length_ = rhs.payload_max_length_;
  12681. has_payload_max_length_ = rhs.has_payload_max_length_;
  12682. interface_ = rhs.interface_;
  12683. proxy_host_ = rhs.proxy_host_;
  12684. proxy_port_ = rhs.proxy_port_;
  12685. proxy_basic_auth_username_ = rhs.proxy_basic_auth_username_;
  12686. proxy_basic_auth_password_ = rhs.proxy_basic_auth_password_;
  12687. proxy_bearer_token_auth_token_ = rhs.proxy_bearer_token_auth_token_;
  12688. no_proxy_entries_ = rhs.no_proxy_entries_;
  12689. logger_ = rhs.logger_;
  12690. error_logger_ = rhs.error_logger_;
  12691. #ifdef CPPHTTPLIB_SSL_ENABLED
  12692. digest_auth_username_ = rhs.digest_auth_username_;
  12693. digest_auth_password_ = rhs.digest_auth_password_;
  12694. proxy_digest_auth_username_ = rhs.proxy_digest_auth_username_;
  12695. proxy_digest_auth_password_ = rhs.proxy_digest_auth_password_;
  12696. ca_cert_file_path_ = rhs.ca_cert_file_path_;
  12697. ca_cert_dir_path_ = rhs.ca_cert_dir_path_;
  12698. server_certificate_verification_ = rhs.server_certificate_verification_;
  12699. server_hostname_verification_ = rhs.server_hostname_verification_;
  12700. system_ca_mode_ = rhs.system_ca_mode_;
  12701. #endif
  12702. }
  12703. inline bool
  12704. ClientImpl::is_proxy_enabled_for_host(const std::string &host) const {
  12705. if (proxy_host_.empty() || proxy_port_ == -1) { return false; }
  12706. if (no_proxy_entries_.empty()) { return true; }
  12707. // host_ is const so its normalized form is invariant; cache it. The
  12708. // cross-host path (setup_redirect_client passing next_host) re-normalizes.
  12709. if (host == host_) {
  12710. if (!host_normalized_valid_) {
  12711. host_normalized_ = detail::normalize_target(host_);
  12712. host_normalized_valid_ = true;
  12713. }
  12714. return !detail::host_matches_no_proxy(host_normalized_, no_proxy_entries_);
  12715. }
  12716. auto target = detail::normalize_target(host);
  12717. return !detail::host_matches_no_proxy(target, no_proxy_entries_);
  12718. }
  12719. inline socket_t ClientImpl::create_client_socket(Error &error) const {
  12720. if (is_proxy_enabled_for_host(host_)) {
  12721. return detail::create_client_socket(
  12722. proxy_host_, std::string(), proxy_port_, address_family_, tcp_nodelay_,
  12723. ipv6_v6only_, socket_options_, connection_timeout_sec_,
  12724. connection_timeout_usec_, read_timeout_sec_, read_timeout_usec_,
  12725. write_timeout_sec_, write_timeout_usec_, interface_, error);
  12726. }
  12727. // Check is custom IP or hostname specified for host_
  12728. std::string connect_host;
  12729. std::string ip;
  12730. detail::apply_addr_map(addr_map_, host_, connect_host, ip);
  12731. return detail::create_client_socket(
  12732. connect_host, ip, port_, address_family_, tcp_nodelay_, ipv6_v6only_,
  12733. socket_options_, connection_timeout_sec_, connection_timeout_usec_,
  12734. read_timeout_sec_, read_timeout_usec_, write_timeout_sec_,
  12735. write_timeout_usec_, interface_, error);
  12736. }
  12737. inline bool ClientImpl::create_and_connect_socket(Socket &socket,
  12738. Error &error) {
  12739. auto sock = create_client_socket(error);
  12740. if (sock == INVALID_SOCKET) { return false; }
  12741. socket.sock = sock;
  12742. return true;
  12743. }
  12744. inline bool ClientImpl::ensure_socket_connection(Socket &socket, Error &error) {
  12745. return create_and_connect_socket(socket, error);
  12746. }
  12747. inline bool ClientImpl::setup_proxy_connection(
  12748. Socket & /*socket*/,
  12749. std::chrono::time_point<std::chrono::steady_clock> /*start_time*/,
  12750. Response & /*res*/, bool & /*success*/, Error & /*error*/) {
  12751. return true;
  12752. }
  12753. inline void ClientImpl::shutdown_ssl(Socket & /*socket*/,
  12754. bool /*shutdown_gracefully*/) {
  12755. // If there are any requests in flight from threads other than us, then it's
  12756. // a thread-unsafe race because individual ssl* objects are not thread-safe.
  12757. assert(socket_requests_in_flight_ == 0 ||
  12758. socket_requests_are_from_thread_ == std::this_thread::get_id());
  12759. }
  12760. inline void ClientImpl::shutdown_socket(Socket &socket) const {
  12761. if (socket.sock == INVALID_SOCKET) { return; }
  12762. detail::shutdown_socket(socket.sock);
  12763. }
  12764. inline void ClientImpl::close_socket(Socket &socket) {
  12765. // If there are requests in flight in another thread, usually closing
  12766. // the socket will be fine and they will simply receive an error when
  12767. // using the closed socket, but it is still a bug since rarely the OS
  12768. // may reassign the socket id to be used for a new socket, and then
  12769. // suddenly they will be operating on a live socket that is different
  12770. // than the one they intended!
  12771. assert(socket_requests_in_flight_ == 0 ||
  12772. socket_requests_are_from_thread_ == std::this_thread::get_id());
  12773. // It is also a bug if this happens while SSL is still active
  12774. #ifdef CPPHTTPLIB_SSL_ENABLED
  12775. assert(socket.ssl == nullptr);
  12776. #endif
  12777. if (socket.sock == INVALID_SOCKET) { return; }
  12778. detail::close_socket(socket.sock);
  12779. socket.sock = INVALID_SOCKET;
  12780. }
  12781. inline void ClientImpl::disconnect(bool gracefully) {
  12782. shutdown_ssl(socket_, gracefully);
  12783. shutdown_socket(socket_);
  12784. close_socket(socket_);
  12785. }
  12786. inline bool ClientImpl::read_response_line(Stream &strm, const Request &req,
  12787. Response &res,
  12788. bool skip_100_continue) const {
  12789. std::array<char, 2048> buf{};
  12790. detail::stream_line_reader line_reader(strm, buf.data(), buf.size());
  12791. if (!line_reader.getline()) { return false; }
  12792. if (!detail::parse_status_line(line_reader.ptr(), res.version, res.status,
  12793. res.reason)) {
  12794. return req.method == "CONNECT";
  12795. }
  12796. // Ignore '100 Continue' (only when not using Expect: 100-continue explicitly)
  12797. while (skip_100_continue && res.status == StatusCode::Continue_100) {
  12798. if (!line_reader.getline()) { return false; } // CRLF
  12799. if (!line_reader.getline()) { return false; } // next response line
  12800. if (!detail::parse_status_line(line_reader.ptr(), res.version, res.status,
  12801. res.reason)) {
  12802. return false;
  12803. }
  12804. }
  12805. return true;
  12806. }
  12807. inline bool ClientImpl::send(Request &req, Response &res, Error &error) {
  12808. std::lock_guard<std::recursive_mutex> request_mutex_guard(request_mutex_);
  12809. auto ret = send_(req, res, error);
  12810. if (error == Error::SSLPeerCouldBeClosed_) {
  12811. assert(!ret);
  12812. ret = send_(req, res, error);
  12813. // If still failing with SSLPeerCouldBeClosed_, convert to Read error
  12814. if (error == Error::SSLPeerCouldBeClosed_) { error = Error::Read; }
  12815. }
  12816. return ret;
  12817. }
  12818. inline bool ClientImpl::send_(Request &req, Response &res, Error &error) {
  12819. {
  12820. std::lock_guard<std::mutex> guard(socket_mutex_);
  12821. // Set this to false immediately - if it ever gets set to true by the end
  12822. // of the request, we know another thread instructed us to close the
  12823. // socket.
  12824. socket_should_be_closed_when_request_is_done_ = false;
  12825. auto is_alive = false;
  12826. if (socket_.is_open()) {
  12827. is_alive = detail::is_socket_alive(socket_.sock);
  12828. #ifdef CPPHTTPLIB_SSL_ENABLED
  12829. if (is_alive && is_ssl()) {
  12830. if (tls::is_peer_closed(socket_.ssl, socket_.sock)) {
  12831. is_alive = false;
  12832. }
  12833. }
  12834. #endif
  12835. if (!is_alive) {
  12836. // Peer seems gone — non-graceful shutdown to avoid SIGPIPE.
  12837. disconnect(/*gracefully=*/false);
  12838. }
  12839. }
  12840. if (!is_alive) {
  12841. if (!ensure_socket_connection(socket_, error)) {
  12842. output_error_log(error, &req);
  12843. return false;
  12844. }
  12845. {
  12846. auto success = true;
  12847. if (!setup_proxy_connection(socket_, req.start_time_, res, success,
  12848. error)) {
  12849. if (!success) { output_error_log(error, &req); }
  12850. return success;
  12851. }
  12852. }
  12853. }
  12854. // Mark the current socket as being in use so that it cannot be closed by
  12855. // anyone else while this request is ongoing, even though we will be
  12856. // releasing the mutex.
  12857. if (socket_requests_in_flight_ > 1) {
  12858. assert(socket_requests_are_from_thread_ == std::this_thread::get_id());
  12859. }
  12860. socket_requests_in_flight_ += 1;
  12861. socket_requests_are_from_thread_ = std::this_thread::get_id();
  12862. }
  12863. for (const auto &header : default_headers_) {
  12864. if (req.headers.find(header.first) == req.headers.end()) {
  12865. req.headers.insert(header);
  12866. }
  12867. }
  12868. auto ret = false;
  12869. auto close_connection = !keep_alive_;
  12870. auto se = detail::scope_exit([&]() {
  12871. // Briefly lock mutex in order to mark that a request is no longer ongoing
  12872. std::lock_guard<std::mutex> guard(socket_mutex_);
  12873. socket_requests_in_flight_ -= 1;
  12874. if (socket_requests_in_flight_ <= 0) {
  12875. assert(socket_requests_in_flight_ == 0);
  12876. socket_requests_are_from_thread_ = std::thread::id();
  12877. }
  12878. if (socket_should_be_closed_when_request_is_done_ || close_connection ||
  12879. !ret) {
  12880. disconnect(/*gracefully=*/true);
  12881. }
  12882. });
  12883. ret = process_socket(socket_, req.start_time_, [&](Stream &strm) {
  12884. return handle_request(strm, req, res, close_connection, error);
  12885. });
  12886. if (!ret) {
  12887. if (error == Error::Success) {
  12888. error = Error::Unknown;
  12889. output_error_log(error, &req);
  12890. }
  12891. }
  12892. return ret;
  12893. }
  12894. inline Result ClientImpl::send(const Request &req) {
  12895. auto req2 = req;
  12896. return send_(std::move(req2));
  12897. }
  12898. inline Result ClientImpl::send_(Request &&req) {
  12899. auto res = detail::make_unique<Response>();
  12900. auto error = Error::Success;
  12901. auto ret = send(req, *res, error);
  12902. #ifdef CPPHTTPLIB_SSL_ENABLED
  12903. return Result{ret ? std::move(res) : nullptr, error, std::move(req.headers),
  12904. last_ssl_error_, last_backend_error_};
  12905. #else
  12906. return Result{ret ? std::move(res) : nullptr, error, std::move(req.headers)};
  12907. #endif
  12908. }
  12909. inline void ClientImpl::prepare_default_headers(Request &r, bool for_stream,
  12910. const std::string &ct) {
  12911. (void)for_stream;
  12912. // Default headers are meant for the origin and may carry its credentials, so
  12913. // keep them off the CONNECT request the proxy reads.
  12914. if (r.method != "CONNECT") {
  12915. for (const auto &header : default_headers_) {
  12916. if (!r.has_header(header.first)) { r.headers.insert(header); }
  12917. }
  12918. }
  12919. // RFC 9110 5.3 recommends sending control data such as Host first, so
  12920. // prepend it rather than appending it after the caller's own fields.
  12921. if (!r.has_header("Host")) {
  12922. r.headers.emplace_front(
  12923. "Host", detail::make_default_host_header_value(host_, port_, is_ssl(),
  12924. address_family_));
  12925. }
  12926. if (!r.has_header("Accept")) { r.headers.emplace("Accept", "*/*"); }
  12927. if (!r.content_receiver) {
  12928. if (!r.has_header("Accept-Encoding")) {
  12929. std::string accept_encoding;
  12930. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  12931. accept_encoding = "br";
  12932. #endif
  12933. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  12934. if (!accept_encoding.empty()) { accept_encoding += ", "; }
  12935. accept_encoding += "gzip, deflate";
  12936. #endif
  12937. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  12938. if (!accept_encoding.empty()) { accept_encoding += ", "; }
  12939. accept_encoding += "zstd";
  12940. #endif
  12941. r.set_header("Accept-Encoding", accept_encoding);
  12942. }
  12943. detail::add_default_user_agent_header(r);
  12944. }
  12945. if (!r.body.empty()) {
  12946. if (!ct.empty() && !r.has_header("Content-Type")) {
  12947. r.headers.emplace("Content-Type", ct);
  12948. }
  12949. if (!r.has_header("Content-Length")) {
  12950. r.headers.emplace("Content-Length", std::to_string(r.body.size()));
  12951. }
  12952. }
  12953. }
  12954. inline ClientImpl::StreamHandle
  12955. ClientImpl::open_stream(const std::string &method, const std::string &path,
  12956. const Params &params, const Headers &headers,
  12957. const std::string &body,
  12958. const std::string &content_type) {
  12959. StreamHandle handle;
  12960. handle.response = detail::make_unique<Response>();
  12961. handle.error = Error::Success;
  12962. // Encode the target exactly like the buffered send path does, so that the
  12963. // same `path` produces the same request line through either API.
  12964. auto raw_query_path =
  12965. params.empty() ? path : append_query_params(path, params);
  12966. auto query_path = detail::encode_request_target(raw_query_path, path_encode_);
  12967. handle.connection_ = detail::make_unique<ClientConnection>();
  12968. {
  12969. std::lock_guard<std::mutex> guard(socket_mutex_);
  12970. auto is_alive = false;
  12971. if (socket_.is_open()) {
  12972. is_alive = detail::is_socket_alive(socket_.sock);
  12973. #ifdef CPPHTTPLIB_SSL_ENABLED
  12974. if (is_alive && is_ssl()) {
  12975. if (tls::is_peer_closed(socket_.ssl, socket_.sock)) {
  12976. is_alive = false;
  12977. }
  12978. }
  12979. #endif
  12980. if (!is_alive) { disconnect(/*gracefully=*/false); }
  12981. }
  12982. if (!is_alive) {
  12983. if (!ensure_socket_connection(socket_, handle.error)) {
  12984. handle.response.reset();
  12985. return handle;
  12986. }
  12987. {
  12988. auto success = true;
  12989. auto start_time = std::chrono::steady_clock::now();
  12990. if (!setup_proxy_connection(socket_, start_time, *handle.response,
  12991. success, handle.error)) {
  12992. if (!success) { handle.response.reset(); }
  12993. return handle;
  12994. }
  12995. }
  12996. }
  12997. transfer_socket_ownership_to_handle(handle);
  12998. }
  12999. #ifdef CPPHTTPLIB_SSL_ENABLED
  13000. if (is_ssl() && handle.connection_->session) {
  13001. handle.socket_stream_ = detail::make_unique<detail::SSLSocketStream>(
  13002. handle.connection_->sock, handle.connection_->session,
  13003. read_timeout_sec_, read_timeout_usec_, write_timeout_sec_,
  13004. write_timeout_usec_);
  13005. } else {
  13006. handle.socket_stream_ = detail::make_unique<detail::SocketStream>(
  13007. handle.connection_->sock, read_timeout_sec_, read_timeout_usec_,
  13008. write_timeout_sec_, write_timeout_usec_);
  13009. }
  13010. #else
  13011. handle.socket_stream_ = detail::make_unique<detail::SocketStream>(
  13012. handle.connection_->sock, read_timeout_sec_, read_timeout_usec_,
  13013. write_timeout_sec_, write_timeout_usec_);
  13014. #endif
  13015. handle.stream_ = handle.socket_stream_.get();
  13016. Request req;
  13017. req.method = method;
  13018. req.path = query_path;
  13019. req.headers = headers;
  13020. req.body = body;
  13021. prepare_default_headers(req, true, content_type);
  13022. auto &strm = *handle.stream_;
  13023. // Build the request line and headers in memory first, like write_request()
  13024. // does, so that a rejected header leaves nothing on the wire.
  13025. {
  13026. detail::BufferStream bstrm;
  13027. if (detail::write_request_line(bstrm, req.method, req.path) < 0) {
  13028. handle.error = Error::Write;
  13029. handle.response.reset();
  13030. return handle;
  13031. }
  13032. if (!detail::check_and_write_headers(bstrm, req.headers, header_writer_,
  13033. handle.error)) {
  13034. handle.response.reset();
  13035. return handle;
  13036. }
  13037. const auto &data = bstrm.get_buffer();
  13038. if (!detail::write_data(strm, data.data(), data.size())) {
  13039. handle.error = Error::Write;
  13040. handle.response.reset();
  13041. return handle;
  13042. }
  13043. }
  13044. if (!body.empty()) {
  13045. if (strm.write(body.data(), body.size()) < 0) {
  13046. handle.error = Error::Write;
  13047. handle.response.reset();
  13048. return handle;
  13049. }
  13050. }
  13051. if (!read_response_line(strm, req, *handle.response) ||
  13052. !detail::read_headers(strm, handle.response->headers)) {
  13053. handle.error = Error::Read;
  13054. handle.response.reset();
  13055. return handle;
  13056. }
  13057. // Same framing check as ClientImpl::process_request(). A HEAD or bodyless
  13058. // (204/304) response legitimately carries framing headers with no body.
  13059. if (method != "HEAD" &&
  13060. handle.response->status != StatusCode::NoContent_204 &&
  13061. handle.response->status != StatusCode::NotModified_304 &&
  13062. detail::has_conflicting_content_length(handle.response->headers)) {
  13063. handle.error = Error::Read;
  13064. handle.response.reset();
  13065. return handle;
  13066. }
  13067. handle.body_reader_.stream = handle.stream_;
  13068. handle.body_reader_.payload_max_length = payload_max_length_;
  13069. if (handle.response->has_header("Content-Length")) {
  13070. bool is_invalid = false;
  13071. auto content_length = detail::get_header_value_u64(
  13072. handle.response->headers, "Content-Length", 0, 0, is_invalid);
  13073. if (is_invalid) {
  13074. handle.error = Error::Read;
  13075. handle.response.reset();
  13076. return handle;
  13077. }
  13078. handle.body_reader_.has_content_length = true;
  13079. handle.body_reader_.content_length = content_length;
  13080. }
  13081. handle.body_reader_.chunked =
  13082. detail::is_chunked_transfer_encoding(handle.response->headers);
  13083. auto content_encoding = detail::get_combined_header_value(
  13084. handle.response->headers, "Content-Encoding");
  13085. if (!content_encoding.empty()) {
  13086. // Same policy as prepare_content_receiver(): reject a coding we know about
  13087. // but were not built with, pass an unrecognized one through as-is.
  13088. handle.decompressor_ = detail::create_decompressor(content_encoding);
  13089. if (!handle.decompressor_) {
  13090. if (detail::is_known_content_encoding(content_encoding)) {
  13091. handle.error = Error::UnsupportedContentEncoding;
  13092. handle.response.reset();
  13093. return handle;
  13094. }
  13095. } else if (!handle.decompressor_->is_valid()) {
  13096. handle.error = Error::Compression;
  13097. handle.response.reset();
  13098. return handle;
  13099. }
  13100. }
  13101. return handle;
  13102. }
  13103. inline ssize_t ClientImpl::StreamHandle::read(char *buf, size_t len) {
  13104. if (!is_valid() || !response) { return -1; }
  13105. if (decompressor_) { return read_with_decompression(buf, len); }
  13106. auto n = detail::read_body_content(stream_, body_reader_, buf, len);
  13107. if (n <= 0 && body_reader_.chunked && !trailers_parsed_ && stream_) {
  13108. trailers_parsed_ = true;
  13109. if (body_reader_.chunked_decoder) {
  13110. if (!body_reader_.chunked_decoder->parse_trailers_into(
  13111. response->trailers, response->headers)) {
  13112. return n;
  13113. }
  13114. } else {
  13115. detail::ChunkedDecoder dec(*stream_);
  13116. if (!dec.parse_trailers_into(response->trailers, response->headers)) {
  13117. return n;
  13118. }
  13119. }
  13120. }
  13121. return n;
  13122. }
  13123. inline ssize_t ClientImpl::StreamHandle::read_with_decompression(char *buf,
  13124. size_t len) {
  13125. if (decompress_offset_ < decompress_buffer_.size()) {
  13126. auto available = decompress_buffer_.size() - decompress_offset_;
  13127. auto to_copy = (std::min)(len, available);
  13128. std::memcpy(buf, decompress_buffer_.data() + decompress_offset_, to_copy);
  13129. decompress_offset_ += to_copy;
  13130. decompressed_bytes_read_ += to_copy;
  13131. return static_cast<ssize_t>(to_copy);
  13132. }
  13133. decompress_buffer_.clear();
  13134. decompress_offset_ = 0;
  13135. constexpr size_t kDecompressionBufferSize = 8192;
  13136. char compressed_buf[kDecompressionBufferSize];
  13137. while (true) {
  13138. auto n = detail::read_body_content(stream_, body_reader_, compressed_buf,
  13139. sizeof(compressed_buf));
  13140. if (n <= 0) { return n; }
  13141. bool decompress_ok = decompressor_->decompress(
  13142. compressed_buf, static_cast<size_t>(n),
  13143. [this](const char *data, size_t data_len) {
  13144. decompress_buffer_.append(data, data_len);
  13145. auto limit = body_reader_.payload_max_length;
  13146. if (decompressed_bytes_read_ + decompress_buffer_.size() > limit) {
  13147. return false;
  13148. }
  13149. return true;
  13150. });
  13151. if (!decompress_ok) {
  13152. body_reader_.last_error = Error::Read;
  13153. return -1;
  13154. }
  13155. if (!decompress_buffer_.empty()) { break; }
  13156. }
  13157. auto to_copy = (std::min)(len, decompress_buffer_.size());
  13158. std::memcpy(buf, decompress_buffer_.data(), to_copy);
  13159. decompress_offset_ = to_copy;
  13160. decompressed_bytes_read_ += to_copy;
  13161. return static_cast<ssize_t>(to_copy);
  13162. }
  13163. inline void ClientImpl::StreamHandle::parse_trailers_if_needed() {
  13164. if (!response || !stream_ || !body_reader_.chunked || trailers_parsed_) {
  13165. return;
  13166. }
  13167. trailers_parsed_ = true;
  13168. const auto bufsiz = 128;
  13169. char line_buf[bufsiz];
  13170. detail::stream_line_reader line_reader(*stream_, line_buf, bufsiz);
  13171. if (!line_reader.getline()) { return; }
  13172. if (!detail::parse_trailers(line_reader, response->trailers,
  13173. response->headers)) {
  13174. return;
  13175. }
  13176. }
  13177. namespace detail {
  13178. inline ChunkedDecoder::ChunkedDecoder(Stream &s) : strm(s) {}
  13179. inline ssize_t ChunkedDecoder::read_payload(char *buf, size_t len,
  13180. size_t &out_chunk_offset,
  13181. size_t &out_chunk_total) {
  13182. if (finished) { return 0; }
  13183. if (chunk_remaining == 0) {
  13184. stream_line_reader lr(strm, line_buf, sizeof(line_buf));
  13185. if (!lr.getline()) { return -1; }
  13186. // Everything below is bounded by eol rather than by the buffer's NUL, so
  13187. // the line terminator is never mistaken for line content.
  13188. const char *eol = lr.ptr() + lr.size();
  13189. if (lr.end_with_crlf()) {
  13190. eol -= 2;
  13191. } else if (eol != lr.ptr() && eol[-1] == '\n') {
  13192. // Only reachable under CPPHTTPLIB_ALLOW_LF_AS_LINE_TERMINATOR, where
  13193. // getline() ends the line on a bare LF. That LF is the terminator, so it
  13194. // has to come off here or the check below would reject the line.
  13195. eol -= 1;
  13196. }
  13197. // RFC 9112 §7.1: chunk-size = 1*HEXDIG
  13198. const char *p = lr.ptr();
  13199. int v = 0;
  13200. if (p == eol || !is_hex(*p, v)) { return -1; }
  13201. size_t chunk_len = 0;
  13202. constexpr size_t chunk_len_max = (std::numeric_limits<size_t>::max)();
  13203. for (; p < eol && is_hex(*p, v); ++p) {
  13204. if (chunk_len > (chunk_len_max >> 4)) { return -1; }
  13205. chunk_len = (chunk_len << 4) | static_cast<size_t>(v);
  13206. }
  13207. while (p < eol && is_space_or_tab(*p)) {
  13208. ++p;
  13209. }
  13210. // RFC 9112 §7.1.1: only a chunk-ext may sit between the size and the line
  13211. // terminator, and it is built from tokens and quoted-strings, so it never
  13212. // holds a CR, LF or any other control character. getline() reads up to the
  13213. // CRLF, so a bare LF left in here would be swallowed as extension text
  13214. // while an intermediary that ends the line on it delimits the chunks
  13215. // differently, and the two disagree on where the body ends (request
  13216. // smuggling).
  13217. if (p < eol && *p != ';') { return -1; }
  13218. for (; p < eol; ++p) {
  13219. if (!is_space_or_tab(*p) && !fields::is_field_vchar(*p)) { return -1; }
  13220. }
  13221. if (chunk_len == 0) {
  13222. chunk_remaining = 0;
  13223. finished = true;
  13224. out_chunk_offset = 0;
  13225. out_chunk_total = 0;
  13226. return 0;
  13227. }
  13228. chunk_remaining = chunk_len;
  13229. last_chunk_total = chunk_remaining;
  13230. last_chunk_offset = 0;
  13231. }
  13232. auto to_read = (std::min)(chunk_remaining, len);
  13233. auto n = strm.read(buf, to_read);
  13234. if (n <= 0) { return -1; }
  13235. auto offset_before = last_chunk_offset;
  13236. last_chunk_offset += static_cast<size_t>(n);
  13237. chunk_remaining -= static_cast<size_t>(n);
  13238. out_chunk_offset = offset_before;
  13239. out_chunk_total = last_chunk_total;
  13240. if (chunk_remaining == 0) {
  13241. stream_line_reader lr(strm, line_buf, sizeof(line_buf));
  13242. if (!lr.getline()) { return -1; }
  13243. if (std::strcmp(lr.ptr(), "\r\n") != 0) { return -1; }
  13244. }
  13245. return n;
  13246. }
  13247. inline bool ChunkedDecoder::parse_trailers_into(Headers &dest,
  13248. const Headers &src_headers) {
  13249. stream_line_reader lr(strm, line_buf, sizeof(line_buf));
  13250. if (!lr.getline()) { return false; }
  13251. return parse_trailers(lr, dest, src_headers);
  13252. }
  13253. } // namespace detail
  13254. inline void
  13255. ClientImpl::transfer_socket_ownership_to_handle(StreamHandle &handle) {
  13256. handle.connection_->sock = socket_.sock;
  13257. #ifdef CPPHTTPLIB_SSL_ENABLED
  13258. handle.connection_->session = socket_.ssl;
  13259. socket_.ssl = nullptr;
  13260. #endif
  13261. socket_.sock = INVALID_SOCKET;
  13262. }
  13263. inline bool ClientImpl::handle_request(Stream &strm, Request &req,
  13264. Response &res, bool close_connection,
  13265. Error &error) {
  13266. if (req.path.empty()) {
  13267. error = Error::Connection;
  13268. output_error_log(error, &req);
  13269. return false;
  13270. }
  13271. auto req_save = req;
  13272. bool ret;
  13273. if (!is_ssl() && is_proxy_enabled_for_host(host_)) {
  13274. auto req2 = req;
  13275. req2.path = "http://" +
  13276. detail::make_host_and_port_string(host_, port_, false) +
  13277. req.path;
  13278. ret = process_request(strm, req2, res, close_connection, error);
  13279. req = std::move(req2);
  13280. req.path = req_save.path;
  13281. } else {
  13282. ret = process_request(strm, req, res, close_connection, error);
  13283. }
  13284. if (!ret) { return false; }
  13285. if (detail::has_header_token(res.headers, "Connection", "close") ||
  13286. (res.version == "HTTP/1.0" && res.reason != "Connection established")) {
  13287. // NOTE: this requires a not-entirely-obvious chain of calls to be correct
  13288. // for this to be safe.
  13289. // This is safe to call because handle_request is only called by send_
  13290. // which locks the request mutex during the process. It would be a bug
  13291. // to call it from a different thread since it's a thread-safety issue
  13292. // to do these things to the socket if another thread is using the socket.
  13293. std::lock_guard<std::mutex> guard(socket_mutex_);
  13294. disconnect(/*gracefully=*/true);
  13295. }
  13296. if (300 < res.status && res.status < 400 && follow_location_) {
  13297. req = std::move(req_save);
  13298. ret = redirect(req, res, error);
  13299. }
  13300. #ifdef CPPHTTPLIB_SSL_ENABLED
  13301. if ((res.status == StatusCode::Unauthorized_401 ||
  13302. res.status == StatusCode::ProxyAuthenticationRequired_407) &&
  13303. req.authorization_count_ < 5) {
  13304. auto is_proxy = res.status == StatusCode::ProxyAuthenticationRequired_407;
  13305. // Only retry when the 407 actually came from a proxy hop: plain HTTP
  13306. // through an enabled proxy. HTTPS via CONNECT tunnels the 407 from the
  13307. // origin (#2457); direct/bypassed origins have no proxy hop at all.
  13308. if (is_proxy && !(!is_ssl() && is_proxy_enabled_for_host(host_))) {
  13309. return ret;
  13310. }
  13311. const auto &username =
  13312. is_proxy ? proxy_digest_auth_username_ : digest_auth_username_;
  13313. const auto &password =
  13314. is_proxy ? proxy_digest_auth_password_ : digest_auth_password_;
  13315. if (!username.empty() && !password.empty()) {
  13316. std::map<std::string, std::string> auth;
  13317. if (detail::parse_www_authenticate(res, auth, is_proxy)) {
  13318. Request new_req = req;
  13319. new_req.authorization_count_ += 1;
  13320. new_req.headers.erase(is_proxy ? "Proxy-Authorization"
  13321. : "Authorization");
  13322. new_req.headers.insert(detail::make_digest_authentication_header(
  13323. req, auth, new_req.authorization_count_, detail::random_string(10),
  13324. username, password, is_proxy));
  13325. Response new_res;
  13326. ret = send(new_req, new_res, error);
  13327. if (ret) { res = std::move(new_res); }
  13328. }
  13329. }
  13330. }
  13331. #endif
  13332. return ret;
  13333. }
  13334. inline bool ClientImpl::redirect(Request &req, Response &res, Error &error) {
  13335. if (req.redirect_count_ == 0) {
  13336. error = Error::ExceedRedirectCount;
  13337. output_error_log(error, &req);
  13338. return false;
  13339. }
  13340. auto location = res.get_header_value("location");
  13341. if (location.empty()) { return false; }
  13342. detail::UrlComponents uc;
  13343. if (!detail::parse_url(detail::resolve_relative_location(location, req.path),
  13344. uc)) {
  13345. return false;
  13346. }
  13347. // Only follow http/https redirects
  13348. if (!uc.scheme.empty() && uc.scheme != "http" && uc.scheme != "https") {
  13349. return false;
  13350. }
  13351. auto scheme = is_ssl() ? "https" : "http";
  13352. auto next_scheme = std::move(uc.scheme);
  13353. auto next_host = std::move(uc.host);
  13354. auto port_str = std::move(uc.port);
  13355. auto next_path = std::move(uc.path);
  13356. auto next_query = std::move(uc.query);
  13357. auto next_port = port_;
  13358. if (!port_str.empty()) {
  13359. if (!detail::parse_port(port_str, next_port)) { return false; }
  13360. } else if (!next_scheme.empty()) {
  13361. next_port = next_scheme == "https" ? 443 : 80;
  13362. }
  13363. if (next_scheme.empty()) { next_scheme = scheme; }
  13364. if (next_host.empty()) { next_host = host_; }
  13365. if (next_path.empty()) { next_path = "/"; }
  13366. auto path = std::move(next_path) + next_query;
  13367. // Same host redirect - use current client
  13368. if (next_scheme == scheme && next_host == host_ && next_port == port_) {
  13369. return detail::redirect(*this, req, res, path, location, error);
  13370. }
  13371. // Cross-host/scheme redirect - create new client with robust setup
  13372. return create_redirect_client(next_scheme, next_host, next_port, req, res,
  13373. path, location, error);
  13374. }
  13375. // New method for robust redirect client creation
  13376. inline bool ClientImpl::create_redirect_client(
  13377. const std::string &scheme, const std::string &host, int port, Request &req,
  13378. Response &res, const std::string &path, const std::string &location,
  13379. Error &error) {
  13380. // Determine if we need SSL
  13381. auto need_ssl = (scheme == "https");
  13382. // Clean up request headers that are host/client specific
  13383. // Remove headers that should not be carried over to new host
  13384. auto headers_to_remove = std::vector<std::string>{
  13385. "Host", "Proxy-Authorization", "Authorization", "Cookie", "Cookie2"};
  13386. for (const auto &header_name : headers_to_remove) {
  13387. auto it = req.headers.find(header_name);
  13388. while (it != req.headers.end()) {
  13389. it = req.headers.erase(it);
  13390. it = req.headers.find(header_name);
  13391. }
  13392. }
  13393. // Create appropriate client type and handle redirect
  13394. if (need_ssl) {
  13395. #ifdef CPPHTTPLIB_SSL_ENABLED
  13396. // Create SSL client for HTTPS redirect
  13397. SSLClient redirect_client(host, port);
  13398. // Setup basic client configuration first
  13399. setup_redirect_client(redirect_client);
  13400. redirect_client.enable_server_certificate_verification(
  13401. server_certificate_verification_);
  13402. redirect_client.enable_server_hostname_verification(
  13403. server_hostname_verification_);
  13404. redirect_client.system_ca_mode_ = system_ca_mode_;
  13405. // Transfer CA certificate to redirect client
  13406. if (!ca_cert_pem_.empty()) {
  13407. redirect_client.load_ca_cert_store(ca_cert_pem_.c_str(),
  13408. ca_cert_pem_.size());
  13409. }
  13410. if (!ca_cert_file_path_.empty()) {
  13411. redirect_client.set_ca_cert_path(ca_cert_file_path_, ca_cert_dir_path_);
  13412. }
  13413. // Client certificates are set through constructor for SSLClient
  13414. // NOTE: SSLClient constructor already takes client_cert_path and
  13415. // client_key_path so we need to create it properly if client certs are
  13416. // needed
  13417. // Execute the redirect
  13418. return detail::redirect(redirect_client, req, res, path, location, error);
  13419. #else
  13420. // SSL not supported - set appropriate error
  13421. error = Error::SSLConnection;
  13422. output_error_log(error, &req);
  13423. return false;
  13424. #endif
  13425. } else {
  13426. // HTTP redirect
  13427. ClientImpl redirect_client(host, port);
  13428. // Setup client with robust configuration
  13429. setup_redirect_client(redirect_client);
  13430. // Execute the redirect
  13431. return detail::redirect(redirect_client, req, res, path, location, error);
  13432. }
  13433. }
  13434. // New method for robust client setup (based on basic_manual_redirect.cpp
  13435. // logic)
  13436. template <typename ClientType>
  13437. inline void ClientImpl::setup_redirect_client(ClientType &client) {
  13438. // Copy basic settings first
  13439. client.set_connection_timeout(connection_timeout_sec_);
  13440. client.set_read_timeout(read_timeout_sec_, read_timeout_usec_);
  13441. client.set_write_timeout(write_timeout_sec_, write_timeout_usec_);
  13442. client.set_keep_alive(keep_alive_);
  13443. client.set_follow_location(
  13444. true); // Enable redirects to handle multi-step redirects
  13445. client.set_path_encode(path_encode_);
  13446. client.set_compress(compress_);
  13447. client.set_decompress(decompress_);
  13448. // NOTE: Authentication credentials (basic auth, bearer token, digest auth)
  13449. // are intentionally NOT copied to the redirect client. Per RFC 9110 Section
  13450. // 15.4, credentials must not be forwarded when redirecting to a different
  13451. // host. This function is only called for cross-host redirects; same-host
  13452. // redirects are handled directly in ClientImpl::redirect().
  13453. // Copy the proxy configuration unconditionally; the per-target bypass is
  13454. // re-evaluated at send time, so a later hop to a non-bypassed host can
  13455. // still use the proxy.
  13456. client.no_proxy_entries_ = no_proxy_entries_;
  13457. if (!proxy_host_.empty() && proxy_port_ != -1) {
  13458. client.set_proxy(proxy_host_, proxy_port_);
  13459. if (!proxy_basic_auth_username_.empty()) {
  13460. client.set_proxy_basic_auth(proxy_basic_auth_username_,
  13461. proxy_basic_auth_password_);
  13462. }
  13463. if (!proxy_bearer_token_auth_token_.empty()) {
  13464. client.set_proxy_bearer_token_auth(proxy_bearer_token_auth_token_);
  13465. }
  13466. #ifdef CPPHTTPLIB_SSL_ENABLED
  13467. if (!proxy_digest_auth_username_.empty()) {
  13468. client.set_proxy_digest_auth(proxy_digest_auth_username_,
  13469. proxy_digest_auth_password_);
  13470. }
  13471. #endif
  13472. }
  13473. // Copy network and socket settings
  13474. client.set_address_family(address_family_);
  13475. client.set_tcp_nodelay(tcp_nodelay_);
  13476. client.set_ipv6_v6only(ipv6_v6only_);
  13477. if (socket_options_) { client.set_socket_options(socket_options_); }
  13478. if (!interface_.empty()) { client.set_interface(interface_); }
  13479. // Copy logging and headers
  13480. if (logger_) { client.set_logger(logger_); }
  13481. if (error_logger_) { client.set_error_logger(error_logger_); }
  13482. // NOTE: DO NOT copy default_headers_ as they may contain stale Host headers
  13483. // Each new client should generate its own headers based on its target host
  13484. }
  13485. inline bool ClientImpl::write_content_with_provider(Stream &strm,
  13486. const Request &req,
  13487. Error &error) const {
  13488. auto is_shutting_down = []() { return false; };
  13489. if (req.is_chunked_content_provider_) {
  13490. auto compressor = compress_ ? detail::create_compressor().first
  13491. : std::unique_ptr<detail::compressor>();
  13492. if (!compressor) {
  13493. compressor = detail::make_unique<detail::nocompressor>();
  13494. }
  13495. return detail::write_content_chunked(strm, req.content_provider_,
  13496. is_shutting_down, *compressor, error);
  13497. } else {
  13498. return detail::write_content_with_progress(
  13499. strm, req.content_provider_, 0, req.content_length_, is_shutting_down,
  13500. req.upload_progress, error);
  13501. }
  13502. }
  13503. inline bool ClientImpl::write_request(Stream &strm, Request &req,
  13504. bool close_connection, Error &error,
  13505. bool skip_body, bool &rejected_locally) {
  13506. rejected_locally = false;
  13507. // Prepare additional headers
  13508. if (close_connection) {
  13509. if (!req.has_header("Connection")) {
  13510. req.set_header("Connection", "close");
  13511. }
  13512. }
  13513. std::string ct_for_defaults;
  13514. if (!req.has_header("Content-Type") && !req.body.empty()) {
  13515. ct_for_defaults = "text/plain";
  13516. }
  13517. prepare_default_headers(req, false, ct_for_defaults);
  13518. if (req.body.empty()) {
  13519. if (req.content_provider_) {
  13520. if (!req.is_chunked_content_provider_) {
  13521. if (!req.has_header("Content-Length")) {
  13522. auto length = std::to_string(req.content_length_);
  13523. req.set_header("Content-Length", length);
  13524. }
  13525. }
  13526. } else {
  13527. if (req.method == "POST" || req.method == "PUT" ||
  13528. req.method == "PATCH") {
  13529. req.set_header("Content-Length", "0");
  13530. }
  13531. }
  13532. }
  13533. // A CONNECT request is read by the proxy; everything sent through the tunnel
  13534. // it opens is read by the origin. Each credential goes only to its own hop.
  13535. auto is_connect = req.method == "CONNECT";
  13536. if (!is_connect && !req.has_header("Authorization")) {
  13537. if (!basic_auth_password_.empty() || !basic_auth_username_.empty()) {
  13538. req.headers.insert(make_basic_authentication_header(
  13539. basic_auth_username_, basic_auth_password_, false));
  13540. } else if (!bearer_token_auth_token_.empty()) {
  13541. req.headers.insert(make_bearer_token_authentication_header(
  13542. bearer_token_auth_token_, false));
  13543. }
  13544. }
  13545. // Proxy-Authorization is only sent when the proxy reads this message —
  13546. // otherwise NO_PROXY-matched requests, and requests inside a TLS tunnel,
  13547. // would leak proxy credentials to the destination server.
  13548. if (is_proxy_enabled_for_host(host_) && (!is_ssl() || is_connect)) {
  13549. if (!proxy_basic_auth_username_.empty() &&
  13550. !proxy_basic_auth_password_.empty() &&
  13551. !req.has_header("Proxy-Authorization")) {
  13552. req.headers.insert(make_basic_authentication_header(
  13553. proxy_basic_auth_username_, proxy_basic_auth_password_, true));
  13554. }
  13555. if (!proxy_bearer_token_auth_token_.empty() &&
  13556. !req.has_header("Proxy-Authorization")) {
  13557. req.headers.insert(make_bearer_token_authentication_header(
  13558. proxy_bearer_token_auth_token_, true));
  13559. }
  13560. }
  13561. // Request line and headers
  13562. {
  13563. detail::BufferStream bstrm;
  13564. // Extract the query from req.path. The encoding itself is delegated to
  13565. // `encode_request_target`; the raw query is still needed here to decide
  13566. // between populating `req.params` from it and falling back to building a
  13567. // query out of caller-supplied `req.params`.
  13568. auto query_pos = req.path.find('?');
  13569. auto query_part = query_pos == std::string::npos
  13570. ? std::string()
  13571. : req.path.substr(query_pos + 1);
  13572. auto path_with_query =
  13573. detail::encode_request_target(req.path, path_encode_);
  13574. if (!query_part.empty()) {
  13575. // The query already came in through `req.path`; still populate
  13576. // `req.params` for handlers/users who read them.
  13577. detail::parse_query_text(query_part, req.params);
  13578. } else if (!req.params.empty()) {
  13579. // No query in `req.path`; build one from `req.params` so existing
  13580. // callers that pass `Params` separately continue to work.
  13581. path_with_query = append_query_params(path_with_query, req.params);
  13582. }
  13583. // Write request line and headers
  13584. if (detail::write_request_line(bstrm, req.method, path_with_query) < 0) {
  13585. // A rejected method (not a token, e.g. carrying CR/LF) or target (e.g.
  13586. // CR/LF in a caller-supplied path under set_path_encode(false)) must
  13587. // fail the request cleanly instead of emitting a request-line-less,
  13588. // header-injecting request.
  13589. error = Error::Write;
  13590. rejected_locally = true;
  13591. output_error_log(error, &req);
  13592. return false;
  13593. }
  13594. if (!detail::check_and_write_headers(bstrm, req.headers, header_writer_,
  13595. error)) {
  13596. rejected_locally = true;
  13597. output_error_log(error, &req);
  13598. return false;
  13599. }
  13600. // Flush buffer
  13601. auto &data = bstrm.get_buffer();
  13602. if (!detail::write_data(strm, data.data(), data.size())) {
  13603. error = Error::Write;
  13604. output_error_log(error, &req);
  13605. return false;
  13606. }
  13607. }
  13608. // After sending request line and headers, wait briefly for an early server
  13609. // response (e.g. 4xx) and avoid sending a potentially large request body
  13610. // unnecessarily. This workaround is only enabled on Windows because Unix
  13611. // platforms surface write errors (EPIPE) earlier; on Windows kernel send
  13612. // buffering can accept large writes even when the peer already responded.
  13613. // Check the stream first (which covers SSL via `is_readable()`), then
  13614. // fall back to select on the socket. Only perform the wait for very large
  13615. // request bodies to avoid interfering with normal small requests and
  13616. // reduce side-effects. Poll briefly (up to 50ms as default) for an early
  13617. // response. Skip this check when using Expect: 100-continue, as the protocol
  13618. // handles early responses properly.
  13619. #if defined(_WIN32)
  13620. if (!skip_body &&
  13621. req.body.size() > CPPHTTPLIB_WAIT_EARLY_SERVER_RESPONSE_THRESHOLD &&
  13622. req.path.size() > CPPHTTPLIB_REQUEST_URI_MAX_LENGTH) {
  13623. auto start = std::chrono::high_resolution_clock::now();
  13624. for (;;) {
  13625. // Prefer socket-level readiness to avoid SSL_pending() false-positives
  13626. // from SSL internals. If the underlying socket is readable, assume an
  13627. // early response may be present.
  13628. auto sock = strm.socket();
  13629. if (sock != INVALID_SOCKET && detail::select_read(sock, 0, 0) > 0) {
  13630. return false;
  13631. }
  13632. // Fallback to stream-level check for non-socket streams or when the
  13633. // socket isn't reporting readable. Avoid using `is_readable()` for
  13634. // SSL, since `SSL_pending()` may report buffered records that do not
  13635. // indicate a complete application-level response yet.
  13636. if (!is_ssl() && strm.is_readable()) { return false; }
  13637. auto now = std::chrono::high_resolution_clock::now();
  13638. auto elapsed =
  13639. std::chrono::duration_cast<std::chrono::milliseconds>(now - start)
  13640. .count();
  13641. if (elapsed >= CPPHTTPLIB_WAIT_EARLY_SERVER_RESPONSE_TIMEOUT_MSECOND) {
  13642. break;
  13643. }
  13644. std::this_thread::sleep_for(std::chrono::milliseconds(1));
  13645. }
  13646. }
  13647. #endif
  13648. // Body
  13649. if (skip_body) { return true; }
  13650. return write_request_body(strm, req, error);
  13651. }
  13652. inline bool ClientImpl::write_request_body(Stream &strm, Request &req,
  13653. Error &error) {
  13654. if (req.body.empty()) {
  13655. return write_content_with_provider(strm, req, error);
  13656. }
  13657. if (req.upload_progress) {
  13658. auto body_size = req.body.size();
  13659. size_t written = 0;
  13660. auto data = req.body.data();
  13661. while (written < body_size) {
  13662. size_t to_write = (std::min)(CPPHTTPLIB_SEND_BUFSIZ, body_size - written);
  13663. if (!detail::write_data(strm, data + written, to_write)) {
  13664. error = Error::Write;
  13665. output_error_log(error, &req);
  13666. return false;
  13667. }
  13668. written += to_write;
  13669. if (!req.upload_progress(written, body_size)) {
  13670. error = Error::Canceled;
  13671. output_error_log(error, &req);
  13672. return false;
  13673. }
  13674. }
  13675. } else {
  13676. if (!detail::write_data(strm, req.body.data(), req.body.size())) {
  13677. error = Error::Write;
  13678. output_error_log(error, &req);
  13679. return false;
  13680. }
  13681. }
  13682. return true;
  13683. }
  13684. inline std::unique_ptr<Response>
  13685. ClientImpl::send_with_content_provider_and_receiver(
  13686. Request &req, const char *body, size_t content_length,
  13687. ContentProvider content_provider,
  13688. ContentProviderWithoutLength content_provider_without_length,
  13689. const std::string &content_type, ContentReceiver content_receiver,
  13690. Error &error) {
  13691. if (!content_type.empty()) { req.set_header("Content-Type", content_type); }
  13692. auto enc = compress_
  13693. ? detail::create_compressor()
  13694. : std::pair<std::unique_ptr<detail::compressor>, const char *>(
  13695. nullptr, nullptr);
  13696. if (enc.second) { req.set_header("Content-Encoding", enc.second); }
  13697. if (enc.first && !content_provider_without_length) {
  13698. auto &compressor = enc.first;
  13699. if (content_provider) {
  13700. auto ok = true;
  13701. auto finished = false;
  13702. size_t offset = 0;
  13703. DataSink data_sink;
  13704. data_sink.write = [&](const char *data, size_t data_len) -> bool {
  13705. if (ok) {
  13706. auto last = offset + data_len == content_length;
  13707. auto ret = compressor->compress(
  13708. data, data_len, last,
  13709. [&](const char *compressed_data, size_t compressed_data_len) {
  13710. req.body.append(compressed_data, compressed_data_len);
  13711. return true;
  13712. });
  13713. if (ret) {
  13714. offset += data_len;
  13715. } else {
  13716. ok = false;
  13717. }
  13718. }
  13719. return ok;
  13720. };
  13721. // As in detail::write_content_with_progress(): the body is framed by
  13722. // content_length, so a provider that finishes early has truncated it.
  13723. // Stop and report that instead of calling the provider forever.
  13724. data_sink.done = [&]() { finished = true; };
  13725. while (ok && !finished && offset < content_length) {
  13726. if (!content_provider(offset, content_length - offset, data_sink)) {
  13727. error = Error::Canceled;
  13728. output_error_log(error, &req);
  13729. return nullptr;
  13730. }
  13731. }
  13732. // A short body here means either the provider stopped early or the
  13733. // compressor gave up. The branch below reports a failing compressor as
  13734. // Error::Compression, so keep the two distinguishable.
  13735. if (offset < content_length) {
  13736. error = ok ? Error::Write : Error::Compression;
  13737. output_error_log(error, &req);
  13738. return nullptr;
  13739. }
  13740. } else {
  13741. if (!compressor->compress(body, content_length, true,
  13742. [&](const char *data, size_t data_len) {
  13743. req.body.append(data, data_len);
  13744. return true;
  13745. })) {
  13746. error = Error::Compression;
  13747. output_error_log(error, &req);
  13748. return nullptr;
  13749. }
  13750. }
  13751. } else {
  13752. if (content_provider) {
  13753. req.content_length_ = content_length;
  13754. req.content_provider_ = std::move(content_provider);
  13755. req.is_chunked_content_provider_ = false;
  13756. } else if (content_provider_without_length) {
  13757. req.content_length_ = 0;
  13758. req.content_provider_ = detail::ContentProviderAdapter(
  13759. std::move(content_provider_without_length));
  13760. req.is_chunked_content_provider_ = true;
  13761. req.set_header("Transfer-Encoding", "chunked");
  13762. } else {
  13763. req.body.assign(body, content_length);
  13764. }
  13765. }
  13766. if (content_receiver) {
  13767. req.content_receiver =
  13768. [content_receiver](const char *data, size_t data_length,
  13769. size_t /*offset*/, size_t /*total_length*/) {
  13770. return content_receiver(data, data_length);
  13771. };
  13772. }
  13773. auto res = detail::make_unique<Response>();
  13774. return send(req, *res, error) ? std::move(res) : nullptr;
  13775. }
  13776. inline Result ClientImpl::send_with_content_provider_and_receiver(
  13777. const std::string &method, const std::string &path, const Headers &headers,
  13778. const char *body, size_t content_length, ContentProvider content_provider,
  13779. ContentProviderWithoutLength content_provider_without_length,
  13780. const std::string &content_type, ContentReceiver content_receiver,
  13781. UploadProgress progress) {
  13782. Request req;
  13783. req.method = method;
  13784. req.headers = headers;
  13785. req.path = path;
  13786. req.upload_progress = std::move(progress);
  13787. if (max_timeout_msec_ > 0) {
  13788. req.start_time_ = std::chrono::steady_clock::now();
  13789. }
  13790. auto error = Error::Success;
  13791. auto res = send_with_content_provider_and_receiver(
  13792. req, body, content_length, std::move(content_provider),
  13793. std::move(content_provider_without_length), content_type,
  13794. std::move(content_receiver), error);
  13795. #ifdef CPPHTTPLIB_SSL_ENABLED
  13796. return Result{std::move(res), error, std::move(req.headers), last_ssl_error_,
  13797. last_backend_error_};
  13798. #else
  13799. return Result{std::move(res), error, std::move(req.headers)};
  13800. #endif
  13801. }
  13802. inline void ClientImpl::output_log(const Request &req,
  13803. const Response &res) const {
  13804. if (logger_) {
  13805. std::lock_guard<std::mutex> guard(logger_mutex_);
  13806. logger_(req, res);
  13807. }
  13808. }
  13809. inline void ClientImpl::output_error_log(const Error &err,
  13810. const Request *req) const {
  13811. if (error_logger_) {
  13812. std::lock_guard<std::mutex> guard(logger_mutex_);
  13813. error_logger_(err, req);
  13814. }
  13815. }
  13816. inline bool ClientImpl::process_request(Stream &strm, Request &req,
  13817. Response &res, bool close_connection,
  13818. Error &error) {
  13819. // Auto-add Expect: 100-continue for large bodies
  13820. if (CPPHTTPLIB_EXPECT_100_THRESHOLD > 0 && !req.has_header("Expect")) {
  13821. auto body_size = req.body.empty() ? req.content_length_ : req.body.size();
  13822. if (body_size >= CPPHTTPLIB_EXPECT_100_THRESHOLD) {
  13823. req.set_header("Expect", "100-continue");
  13824. }
  13825. }
  13826. // Check for Expect: 100-continue
  13827. auto expect_100_continue =
  13828. detail::has_header_token(req.headers, "Expect", "100-continue");
  13829. // Send request (skip body if using Expect: 100-continue)
  13830. auto rejected_locally = false;
  13831. auto write_request_success =
  13832. write_request(strm, req, close_connection, error, expect_100_continue,
  13833. rejected_locally);
  13834. // A failed write normally still reads the response below, since the server
  13835. // may have answered early (e.g. 413/414) and closed while the body was being
  13836. // sent. A request rejected before any byte reached the socket gets no such
  13837. // response, and waiting for one would block until the read timeout.
  13838. if (rejected_locally) { return false; }
  13839. #ifdef CPPHTTPLIB_SSL_ENABLED
  13840. if (is_ssl() && !expect_100_continue) {
  13841. auto is_proxy_enabled = is_proxy_enabled_for_host(host_);
  13842. if (!is_proxy_enabled) {
  13843. if (tls::is_peer_closed(socket_.ssl, socket_.sock)) {
  13844. error = Error::SSLPeerCouldBeClosed_;
  13845. output_error_log(error, &req);
  13846. return false;
  13847. }
  13848. }
  13849. }
  13850. #endif
  13851. // Handle Expect: 100-continue.
  13852. //
  13853. // Wait for an interim/early response by attempting to read the status line
  13854. // under a short timeout, instead of trusting raw socket readability. Over
  13855. // TLS, post-handshake records (e.g. session tickets) make the socket
  13856. // readable without any HTTP response being available; relying on
  13857. // `select_read` there caused the body to be withheld forever and the
  13858. // request to fail with `Read` (#2458). If no status line arrives within the
  13859. // timeout, send the body anyway (matching curl's behavior).
  13860. auto status_line_read = false;
  13861. if (expect_100_continue && write_request_success) {
  13862. if (CPPHTTPLIB_EXPECT_100_TIMEOUT_MSECOND > 0) {
  13863. time_t sec = CPPHTTPLIB_EXPECT_100_TIMEOUT_MSECOND / 1000;
  13864. time_t usec = (CPPHTTPLIB_EXPECT_100_TIMEOUT_MSECOND % 1000) * 1000;
  13865. strm.set_read_timeout(sec, usec);
  13866. status_line_read = read_response_line(strm, req, res, false);
  13867. strm.set_read_timeout(read_timeout_sec_, read_timeout_usec_);
  13868. }
  13869. if (!status_line_read) {
  13870. // No interim response within the timeout: send the body and handle the
  13871. // response as usual.
  13872. if (!write_request_body(strm, req, error)) { return false; }
  13873. expect_100_continue = false; // Switch to normal response handling
  13874. }
  13875. }
  13876. // Receive response and headers
  13877. // When using Expect: 100-continue, don't auto-skip `100 Continue` response
  13878. if ((!status_line_read &&
  13879. !read_response_line(strm, req, res, !expect_100_continue)) ||
  13880. !detail::read_headers(strm, res.headers)) {
  13881. if (write_request_success) { error = Error::Read; }
  13882. output_error_log(error, &req);
  13883. return false;
  13884. }
  13885. if (!write_request_success) { return false; }
  13886. // Handle Expect: 100-continue response
  13887. if (expect_100_continue) {
  13888. if (res.status == StatusCode::Continue_100) {
  13889. // Server accepted, send the body
  13890. if (!write_request_body(strm, req, error)) { return false; }
  13891. // Read the actual response
  13892. res.headers.clear();
  13893. res.body.clear();
  13894. if (!read_response_line(strm, req, res) ||
  13895. !detail::read_headers(strm, res.headers)) {
  13896. error = Error::Read;
  13897. output_error_log(error, &req);
  13898. return false;
  13899. }
  13900. }
  13901. // If not 100 Continue, server returned an error; proceed with that response
  13902. }
  13903. // Body
  13904. if ((res.status != StatusCode::NoContent_204) && req.method != "HEAD" &&
  13905. req.method != "CONNECT") {
  13906. // Reject ambiguous framing (RFC 9112 §6.3). Unlike a request, a response
  13907. // whose final transfer coding is not chunked is not ambiguous: its body
  13908. // runs until the server closes the connection, so it is not rejected.
  13909. // HEAD/204 are excluded above and a 304 carries no body.
  13910. if (res.status != StatusCode::NotModified_304 &&
  13911. detail::has_conflicting_content_length(res.headers)) {
  13912. error = Error::Read;
  13913. output_error_log(error, &req);
  13914. return false;
  13915. }
  13916. auto redirect = 300 < res.status && res.status < 400 &&
  13917. res.status != StatusCode::NotModified_304 &&
  13918. follow_location_;
  13919. if (req.response_handler && !redirect) {
  13920. if (!req.response_handler(res)) {
  13921. error = Error::Canceled;
  13922. output_error_log(error, &req);
  13923. return false;
  13924. }
  13925. }
  13926. auto out =
  13927. req.content_receiver
  13928. ? static_cast<ContentReceiverWithProgress>(
  13929. [&](const char *buf, size_t n, size_t off, size_t len) {
  13930. if (redirect) { return true; }
  13931. auto ret = req.content_receiver(buf, n, off, len);
  13932. if (!ret) {
  13933. error = Error::Canceled;
  13934. output_error_log(error, &req);
  13935. }
  13936. return ret;
  13937. })
  13938. : static_cast<ContentReceiverWithProgress>(
  13939. [&](const char *buf, size_t n, size_t /*off*/,
  13940. size_t /*len*/) {
  13941. assert(res.body.size() + n <= res.body.max_size());
  13942. if (payload_max_length_ > 0 &&
  13943. (res.body.size() >= payload_max_length_ ||
  13944. n > payload_max_length_ - res.body.size())) {
  13945. return false;
  13946. }
  13947. res.body.append(buf, n);
  13948. return true;
  13949. });
  13950. auto progress = [&](size_t current, size_t total) {
  13951. if (!req.download_progress || redirect) { return true; }
  13952. auto ret = req.download_progress(current, total);
  13953. if (!ret) {
  13954. error = Error::Canceled;
  13955. output_error_log(error, &req);
  13956. }
  13957. return ret;
  13958. };
  13959. if (res.has_header("Content-Length")) {
  13960. if (!req.content_receiver) {
  13961. auto len = res.get_header_value_u64("Content-Length");
  13962. if (len > res.body.max_size()) {
  13963. error = Error::Read;
  13964. output_error_log(error, &req);
  13965. return false;
  13966. }
  13967. // Cap the reservation by payload_max_length_ to avoid OOM when a
  13968. // hostile or malformed server sends an enormous Content-Length.
  13969. // The actual body read below is bounded by payload_max_length_,
  13970. // so reserving more than that is never useful.
  13971. auto reserve_len = static_cast<size_t>(len);
  13972. if (payload_max_length_ > 0 && reserve_len > payload_max_length_) {
  13973. reserve_len = payload_max_length_;
  13974. }
  13975. res.body.reserve(reserve_len);
  13976. }
  13977. }
  13978. if (res.status != StatusCode::NotModified_304) {
  13979. auto content_status = 0;
  13980. auto max_length = (!has_payload_max_length_ && req.content_receiver)
  13981. ? (std::numeric_limits<size_t>::max)()
  13982. : payload_max_length_;
  13983. if (!detail::read_content(strm, res, max_length, content_status,
  13984. std::move(progress), std::move(out),
  13985. decompress_)) {
  13986. if (error != Error::Canceled) {
  13987. // Tell the caller apart from a plain read failure when the body could
  13988. // not be decoded because of its Content-Encoding.
  13989. switch (content_status) {
  13990. case StatusCode::UnsupportedMediaType_415:
  13991. error = Error::UnsupportedContentEncoding;
  13992. break;
  13993. case StatusCode::InternalServerError_500:
  13994. error = Error::Compression;
  13995. break;
  13996. default: error = Error::Read; break;
  13997. }
  13998. }
  13999. output_error_log(error, &req);
  14000. return false;
  14001. }
  14002. }
  14003. }
  14004. // Log
  14005. output_log(req, res);
  14006. return true;
  14007. }
  14008. inline ContentProviderWithoutLength ClientImpl::get_multipart_content_provider(
  14009. const std::string &boundary, const UploadFormDataItems &items,
  14010. const FormDataProviderItems &provider_items) const {
  14011. size_t cur_item = 0;
  14012. size_t cur_start = 0;
  14013. // cur_item and cur_start are copied to within the std::function and
  14014. // maintain state between successive calls
  14015. return [&, cur_item, cur_start](size_t offset,
  14016. DataSink &sink) mutable -> bool {
  14017. if (!offset && !items.empty()) {
  14018. sink.os << detail::serialize_multipart_formdata(items, boundary, false);
  14019. return true;
  14020. } else if (cur_item < provider_items.size()) {
  14021. if (!cur_start) {
  14022. const auto &begin = detail::serialize_multipart_formdata_item_begin(
  14023. provider_items[cur_item], boundary);
  14024. offset += begin.size();
  14025. cur_start = offset;
  14026. sink.os << begin;
  14027. }
  14028. DataSink cur_sink;
  14029. auto has_data = true;
  14030. cur_sink.write = sink.write;
  14031. // Forward is_writable so a provider item asking whether it may keep
  14032. // going gets the outer sink's answer rather than the default `true`.
  14033. cur_sink.is_writable = sink.is_writable;
  14034. cur_sink.done = [&]() { has_data = false; };
  14035. if (!provider_items[cur_item].provider(offset - cur_start, cur_sink)) {
  14036. return false;
  14037. }
  14038. if (!has_data) {
  14039. sink.os << detail::serialize_multipart_formdata_item_end();
  14040. cur_item++;
  14041. cur_start = 0;
  14042. }
  14043. return true;
  14044. } else {
  14045. sink.os << detail::serialize_multipart_formdata_finish(boundary);
  14046. sink.done();
  14047. return true;
  14048. }
  14049. };
  14050. }
  14051. inline bool ClientImpl::process_socket(
  14052. const Socket &socket,
  14053. std::chrono::time_point<std::chrono::steady_clock> start_time,
  14054. std::function<bool(Stream &strm)> callback) {
  14055. return detail::process_client_socket(
  14056. socket.sock, read_timeout_sec_, read_timeout_usec_, write_timeout_sec_,
  14057. write_timeout_usec_, max_timeout_msec_, start_time, std::move(callback));
  14058. }
  14059. inline bool ClientImpl::is_ssl() const { return false; }
  14060. inline Result ClientImpl::Get(const std::string &path,
  14061. DownloadProgress progress) {
  14062. return Get(path, Headers(), std::move(progress));
  14063. }
  14064. inline Result ClientImpl::Get(const std::string &path, const Params &params,
  14065. DownloadProgress progress) {
  14066. return Get(path, params, Headers(), std::move(progress));
  14067. }
  14068. inline Result ClientImpl::Get(const std::string &path, const Params &params,
  14069. const Headers &headers,
  14070. DownloadProgress progress) {
  14071. if (params.empty()) { return Get(path, headers); }
  14072. std::string path_with_query = append_query_params(path, params);
  14073. return Get(path_with_query, headers, std::move(progress));
  14074. }
  14075. inline Result ClientImpl::Get(const std::string &path, const Headers &headers,
  14076. DownloadProgress progress) {
  14077. Request req;
  14078. req.method = "GET";
  14079. req.path = path;
  14080. req.headers = headers;
  14081. req.download_progress = std::move(progress);
  14082. if (max_timeout_msec_ > 0) {
  14083. req.start_time_ = std::chrono::steady_clock::now();
  14084. }
  14085. return send_(std::move(req));
  14086. }
  14087. inline Result ClientImpl::Get(const std::string &path,
  14088. ContentReceiver content_receiver,
  14089. DownloadProgress progress) {
  14090. return Get(path, Headers(), nullptr, std::move(content_receiver),
  14091. std::move(progress));
  14092. }
  14093. inline Result ClientImpl::Get(const std::string &path, const Headers &headers,
  14094. ContentReceiver content_receiver,
  14095. DownloadProgress progress) {
  14096. return Get(path, headers, nullptr, std::move(content_receiver),
  14097. std::move(progress));
  14098. }
  14099. inline Result ClientImpl::Get(const std::string &path,
  14100. ResponseHandler response_handler,
  14101. ContentReceiver content_receiver,
  14102. DownloadProgress progress) {
  14103. return Get(path, Headers(), std::move(response_handler),
  14104. std::move(content_receiver), std::move(progress));
  14105. }
  14106. inline Result ClientImpl::Get(const std::string &path, const Headers &headers,
  14107. ResponseHandler response_handler,
  14108. ContentReceiver content_receiver,
  14109. DownloadProgress progress) {
  14110. Request req;
  14111. req.method = "GET";
  14112. req.path = path;
  14113. req.headers = headers;
  14114. req.response_handler = std::move(response_handler);
  14115. req.content_receiver =
  14116. [content_receiver](const char *data, size_t data_length,
  14117. size_t /*offset*/, size_t /*total_length*/) {
  14118. return content_receiver(data, data_length);
  14119. };
  14120. req.download_progress = std::move(progress);
  14121. if (max_timeout_msec_ > 0) {
  14122. req.start_time_ = std::chrono::steady_clock::now();
  14123. }
  14124. return send_(std::move(req));
  14125. }
  14126. inline Result ClientImpl::Get(const std::string &path, const Params &params,
  14127. const Headers &headers,
  14128. ContentReceiver content_receiver,
  14129. DownloadProgress progress) {
  14130. return Get(path, params, headers, nullptr, std::move(content_receiver),
  14131. std::move(progress));
  14132. }
  14133. inline Result ClientImpl::Get(const std::string &path, const Params &params,
  14134. const Headers &headers,
  14135. ResponseHandler response_handler,
  14136. ContentReceiver content_receiver,
  14137. DownloadProgress progress) {
  14138. if (params.empty()) {
  14139. return Get(path, headers, std::move(response_handler),
  14140. std::move(content_receiver), std::move(progress));
  14141. }
  14142. std::string path_with_query = append_query_params(path, params);
  14143. return Get(path_with_query, headers, std::move(response_handler),
  14144. std::move(content_receiver), std::move(progress));
  14145. }
  14146. inline Result ClientImpl::Head(const std::string &path) {
  14147. return Head(path, Headers());
  14148. }
  14149. inline Result ClientImpl::Head(const std::string &path,
  14150. const Headers &headers) {
  14151. Request req;
  14152. req.method = "HEAD";
  14153. req.headers = headers;
  14154. req.path = path;
  14155. if (max_timeout_msec_ > 0) {
  14156. req.start_time_ = std::chrono::steady_clock::now();
  14157. }
  14158. return send_(std::move(req));
  14159. }
  14160. inline Result ClientImpl::Post(const std::string &path) {
  14161. return Post(path, std::string(), std::string());
  14162. }
  14163. inline Result ClientImpl::Post(const std::string &path,
  14164. const Headers &headers) {
  14165. return Post(path, headers, nullptr, 0, std::string());
  14166. }
  14167. inline Result ClientImpl::Post(const std::string &path, const char *body,
  14168. size_t content_length,
  14169. const std::string &content_type,
  14170. UploadProgress progress) {
  14171. return Post(path, Headers(), body, content_length, content_type, progress);
  14172. }
  14173. inline Result ClientImpl::Post(const std::string &path, const std::string &body,
  14174. const std::string &content_type,
  14175. UploadProgress progress) {
  14176. return Post(path, Headers(), body, content_type, progress);
  14177. }
  14178. inline Result ClientImpl::Post(const std::string &path, const Params &params) {
  14179. return Post(path, Headers(), params);
  14180. }
  14181. inline Result ClientImpl::Post(const std::string &path, size_t content_length,
  14182. ContentProvider content_provider,
  14183. const std::string &content_type,
  14184. UploadProgress progress) {
  14185. return Post(path, Headers(), content_length, std::move(content_provider),
  14186. content_type, progress);
  14187. }
  14188. inline Result ClientImpl::Post(const std::string &path, size_t content_length,
  14189. ContentProvider content_provider,
  14190. const std::string &content_type,
  14191. ContentReceiver content_receiver,
  14192. UploadProgress progress) {
  14193. return Post(path, Headers(), content_length, std::move(content_provider),
  14194. content_type, std::move(content_receiver), progress);
  14195. }
  14196. inline Result ClientImpl::Post(const std::string &path,
  14197. ContentProviderWithoutLength content_provider,
  14198. const std::string &content_type,
  14199. UploadProgress progress) {
  14200. return Post(path, Headers(), std::move(content_provider), content_type,
  14201. progress);
  14202. }
  14203. inline Result ClientImpl::Post(const std::string &path,
  14204. ContentProviderWithoutLength content_provider,
  14205. const std::string &content_type,
  14206. ContentReceiver content_receiver,
  14207. UploadProgress progress) {
  14208. return Post(path, Headers(), std::move(content_provider), content_type,
  14209. std::move(content_receiver), progress);
  14210. }
  14211. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14212. const Params &params) {
  14213. auto query = detail::params_to_query_str(params);
  14214. return Post(path, headers, query, "application/x-www-form-urlencoded");
  14215. }
  14216. inline Result ClientImpl::Post(const std::string &path,
  14217. const UploadFormDataItems &items,
  14218. UploadProgress progress) {
  14219. return Post(path, Headers(), items, progress);
  14220. }
  14221. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14222. const UploadFormDataItems &items,
  14223. UploadProgress progress) {
  14224. const auto &boundary = detail::make_multipart_data_boundary();
  14225. const auto &content_type =
  14226. detail::serialize_multipart_formdata_get_content_type(boundary);
  14227. auto content_length = detail::get_multipart_content_length(items, boundary);
  14228. return Post(path, headers, content_length,
  14229. detail::make_multipart_content_provider(items, boundary),
  14230. content_type, progress);
  14231. }
  14232. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14233. const UploadFormDataItems &items,
  14234. const std::string &boundary,
  14235. UploadProgress progress) {
  14236. if (!detail::is_multipart_boundary_chars_valid(boundary)) {
  14237. return Result{nullptr, Error::UnsupportedMultipartBoundaryChars};
  14238. }
  14239. const auto &content_type =
  14240. detail::serialize_multipart_formdata_get_content_type(boundary);
  14241. auto content_length = detail::get_multipart_content_length(items, boundary);
  14242. return Post(path, headers, content_length,
  14243. detail::make_multipart_content_provider(items, boundary),
  14244. content_type, progress);
  14245. }
  14246. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14247. const char *body, size_t content_length,
  14248. const std::string &content_type,
  14249. UploadProgress progress) {
  14250. return send_with_content_provider_and_receiver(
  14251. "POST", path, headers, body, content_length, nullptr, nullptr,
  14252. content_type, nullptr, progress);
  14253. }
  14254. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14255. const std::string &body,
  14256. const std::string &content_type,
  14257. UploadProgress progress) {
  14258. return send_with_content_provider_and_receiver(
  14259. "POST", path, headers, body.data(), body.size(), nullptr, nullptr,
  14260. content_type, nullptr, progress);
  14261. }
  14262. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14263. size_t content_length,
  14264. ContentProvider content_provider,
  14265. const std::string &content_type,
  14266. UploadProgress progress) {
  14267. return send_with_content_provider_and_receiver(
  14268. "POST", path, headers, nullptr, content_length,
  14269. std::move(content_provider), nullptr, content_type, nullptr, progress);
  14270. }
  14271. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14272. size_t content_length,
  14273. ContentProvider content_provider,
  14274. const std::string &content_type,
  14275. ContentReceiver content_receiver,
  14276. DownloadProgress progress) {
  14277. return send_with_content_provider_and_receiver(
  14278. "POST", path, headers, nullptr, content_length,
  14279. std::move(content_provider), nullptr, content_type,
  14280. std::move(content_receiver), std::move(progress));
  14281. }
  14282. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14283. ContentProviderWithoutLength content_provider,
  14284. const std::string &content_type,
  14285. UploadProgress progress) {
  14286. return send_with_content_provider_and_receiver(
  14287. "POST", path, headers, nullptr, 0, nullptr, std::move(content_provider),
  14288. content_type, nullptr, progress);
  14289. }
  14290. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14291. ContentProviderWithoutLength content_provider,
  14292. const std::string &content_type,
  14293. ContentReceiver content_receiver,
  14294. DownloadProgress progress) {
  14295. return send_with_content_provider_and_receiver(
  14296. "POST", path, headers, nullptr, 0, nullptr, std::move(content_provider),
  14297. content_type, std::move(content_receiver), std::move(progress));
  14298. }
  14299. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14300. const UploadFormDataItems &items,
  14301. const FormDataProviderItems &provider_items,
  14302. UploadProgress progress) {
  14303. const auto &boundary = detail::make_multipart_data_boundary();
  14304. const auto &content_type =
  14305. detail::serialize_multipart_formdata_get_content_type(boundary);
  14306. return send_with_content_provider_and_receiver(
  14307. "POST", path, headers, nullptr, 0, nullptr,
  14308. get_multipart_content_provider(boundary, items, provider_items),
  14309. content_type, nullptr, progress);
  14310. }
  14311. inline Result ClientImpl::Post(const std::string &path, const Headers &headers,
  14312. const std::string &body,
  14313. const std::string &content_type,
  14314. ContentReceiver content_receiver,
  14315. DownloadProgress progress) {
  14316. Request req;
  14317. req.method = "POST";
  14318. req.path = path;
  14319. req.headers = headers;
  14320. req.body = body;
  14321. req.content_receiver =
  14322. [content_receiver](const char *data, size_t data_length,
  14323. size_t /*offset*/, size_t /*total_length*/) {
  14324. return content_receiver(data, data_length);
  14325. };
  14326. req.download_progress = std::move(progress);
  14327. if (max_timeout_msec_ > 0) {
  14328. req.start_time_ = std::chrono::steady_clock::now();
  14329. }
  14330. if (!content_type.empty()) { req.set_header("Content-Type", content_type); }
  14331. return send_(std::move(req));
  14332. }
  14333. inline Result ClientImpl::Put(const std::string &path) {
  14334. return Put(path, std::string(), std::string());
  14335. }
  14336. inline Result ClientImpl::Put(const std::string &path, const Headers &headers) {
  14337. return Put(path, headers, nullptr, 0, std::string());
  14338. }
  14339. inline Result ClientImpl::Put(const std::string &path, const char *body,
  14340. size_t content_length,
  14341. const std::string &content_type,
  14342. UploadProgress progress) {
  14343. return Put(path, Headers(), body, content_length, content_type, progress);
  14344. }
  14345. inline Result ClientImpl::Put(const std::string &path, const std::string &body,
  14346. const std::string &content_type,
  14347. UploadProgress progress) {
  14348. return Put(path, Headers(), body, content_type, progress);
  14349. }
  14350. inline Result ClientImpl::Put(const std::string &path, const Params &params) {
  14351. return Put(path, Headers(), params);
  14352. }
  14353. inline Result ClientImpl::Put(const std::string &path, size_t content_length,
  14354. ContentProvider content_provider,
  14355. const std::string &content_type,
  14356. UploadProgress progress) {
  14357. return Put(path, Headers(), content_length, std::move(content_provider),
  14358. content_type, progress);
  14359. }
  14360. inline Result ClientImpl::Put(const std::string &path, size_t content_length,
  14361. ContentProvider content_provider,
  14362. const std::string &content_type,
  14363. ContentReceiver content_receiver,
  14364. UploadProgress progress) {
  14365. return Put(path, Headers(), content_length, std::move(content_provider),
  14366. content_type, std::move(content_receiver), progress);
  14367. }
  14368. inline Result ClientImpl::Put(const std::string &path,
  14369. ContentProviderWithoutLength content_provider,
  14370. const std::string &content_type,
  14371. UploadProgress progress) {
  14372. return Put(path, Headers(), std::move(content_provider), content_type,
  14373. progress);
  14374. }
  14375. inline Result ClientImpl::Put(const std::string &path,
  14376. ContentProviderWithoutLength content_provider,
  14377. const std::string &content_type,
  14378. ContentReceiver content_receiver,
  14379. UploadProgress progress) {
  14380. return Put(path, Headers(), std::move(content_provider), content_type,
  14381. std::move(content_receiver), progress);
  14382. }
  14383. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14384. const Params &params) {
  14385. auto query = detail::params_to_query_str(params);
  14386. return Put(path, headers, query, "application/x-www-form-urlencoded");
  14387. }
  14388. inline Result ClientImpl::Put(const std::string &path,
  14389. const UploadFormDataItems &items,
  14390. UploadProgress progress) {
  14391. return Put(path, Headers(), items, progress);
  14392. }
  14393. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14394. const UploadFormDataItems &items,
  14395. UploadProgress progress) {
  14396. const auto &boundary = detail::make_multipart_data_boundary();
  14397. const auto &content_type =
  14398. detail::serialize_multipart_formdata_get_content_type(boundary);
  14399. auto content_length = detail::get_multipart_content_length(items, boundary);
  14400. return Put(path, headers, content_length,
  14401. detail::make_multipart_content_provider(items, boundary),
  14402. content_type, progress);
  14403. }
  14404. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14405. const UploadFormDataItems &items,
  14406. const std::string &boundary,
  14407. UploadProgress progress) {
  14408. if (!detail::is_multipart_boundary_chars_valid(boundary)) {
  14409. return Result{nullptr, Error::UnsupportedMultipartBoundaryChars};
  14410. }
  14411. const auto &content_type =
  14412. detail::serialize_multipart_formdata_get_content_type(boundary);
  14413. auto content_length = detail::get_multipart_content_length(items, boundary);
  14414. return Put(path, headers, content_length,
  14415. detail::make_multipart_content_provider(items, boundary),
  14416. content_type, progress);
  14417. }
  14418. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14419. const char *body, size_t content_length,
  14420. const std::string &content_type,
  14421. UploadProgress progress) {
  14422. return send_with_content_provider_and_receiver(
  14423. "PUT", path, headers, body, content_length, nullptr, nullptr,
  14424. content_type, nullptr, progress);
  14425. }
  14426. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14427. const std::string &body,
  14428. const std::string &content_type,
  14429. UploadProgress progress) {
  14430. return send_with_content_provider_and_receiver(
  14431. "PUT", path, headers, body.data(), body.size(), nullptr, nullptr,
  14432. content_type, nullptr, progress);
  14433. }
  14434. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14435. size_t content_length,
  14436. ContentProvider content_provider,
  14437. const std::string &content_type,
  14438. UploadProgress progress) {
  14439. return send_with_content_provider_and_receiver(
  14440. "PUT", path, headers, nullptr, content_length,
  14441. std::move(content_provider), nullptr, content_type, nullptr, progress);
  14442. }
  14443. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14444. size_t content_length,
  14445. ContentProvider content_provider,
  14446. const std::string &content_type,
  14447. ContentReceiver content_receiver,
  14448. UploadProgress progress) {
  14449. return send_with_content_provider_and_receiver(
  14450. "PUT", path, headers, nullptr, content_length,
  14451. std::move(content_provider), nullptr, content_type,
  14452. std::move(content_receiver), progress);
  14453. }
  14454. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14455. ContentProviderWithoutLength content_provider,
  14456. const std::string &content_type,
  14457. UploadProgress progress) {
  14458. return send_with_content_provider_and_receiver(
  14459. "PUT", path, headers, nullptr, 0, nullptr, std::move(content_provider),
  14460. content_type, nullptr, progress);
  14461. }
  14462. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14463. ContentProviderWithoutLength content_provider,
  14464. const std::string &content_type,
  14465. ContentReceiver content_receiver,
  14466. UploadProgress progress) {
  14467. return send_with_content_provider_and_receiver(
  14468. "PUT", path, headers, nullptr, 0, nullptr, std::move(content_provider),
  14469. content_type, std::move(content_receiver), progress);
  14470. }
  14471. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14472. const UploadFormDataItems &items,
  14473. const FormDataProviderItems &provider_items,
  14474. UploadProgress progress) {
  14475. const auto &boundary = detail::make_multipart_data_boundary();
  14476. const auto &content_type =
  14477. detail::serialize_multipart_formdata_get_content_type(boundary);
  14478. return send_with_content_provider_and_receiver(
  14479. "PUT", path, headers, nullptr, 0, nullptr,
  14480. get_multipart_content_provider(boundary, items, provider_items),
  14481. content_type, nullptr, progress);
  14482. }
  14483. inline Result ClientImpl::Put(const std::string &path, const Headers &headers,
  14484. const std::string &body,
  14485. const std::string &content_type,
  14486. ContentReceiver content_receiver,
  14487. DownloadProgress progress) {
  14488. Request req;
  14489. req.method = "PUT";
  14490. req.path = path;
  14491. req.headers = headers;
  14492. req.body = body;
  14493. req.content_receiver =
  14494. [content_receiver](const char *data, size_t data_length,
  14495. size_t /*offset*/, size_t /*total_length*/) {
  14496. return content_receiver(data, data_length);
  14497. };
  14498. req.download_progress = std::move(progress);
  14499. if (max_timeout_msec_ > 0) {
  14500. req.start_time_ = std::chrono::steady_clock::now();
  14501. }
  14502. if (!content_type.empty()) { req.set_header("Content-Type", content_type); }
  14503. return send_(std::move(req));
  14504. }
  14505. inline Result ClientImpl::Patch(const std::string &path) {
  14506. return Patch(path, std::string(), std::string());
  14507. }
  14508. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14509. UploadProgress progress) {
  14510. return Patch(path, headers, nullptr, 0, std::string(), progress);
  14511. }
  14512. inline Result ClientImpl::Patch(const std::string &path, const char *body,
  14513. size_t content_length,
  14514. const std::string &content_type,
  14515. UploadProgress progress) {
  14516. return Patch(path, Headers(), body, content_length, content_type, progress);
  14517. }
  14518. inline Result ClientImpl::Patch(const std::string &path,
  14519. const std::string &body,
  14520. const std::string &content_type,
  14521. UploadProgress progress) {
  14522. return Patch(path, Headers(), body, content_type, progress);
  14523. }
  14524. inline Result ClientImpl::Patch(const std::string &path, const Params &params) {
  14525. return Patch(path, Headers(), params);
  14526. }
  14527. inline Result ClientImpl::Patch(const std::string &path, size_t content_length,
  14528. ContentProvider content_provider,
  14529. const std::string &content_type,
  14530. UploadProgress progress) {
  14531. return Patch(path, Headers(), content_length, std::move(content_provider),
  14532. content_type, progress);
  14533. }
  14534. inline Result ClientImpl::Patch(const std::string &path, size_t content_length,
  14535. ContentProvider content_provider,
  14536. const std::string &content_type,
  14537. ContentReceiver content_receiver,
  14538. UploadProgress progress) {
  14539. return Patch(path, Headers(), content_length, std::move(content_provider),
  14540. content_type, std::move(content_receiver), progress);
  14541. }
  14542. inline Result ClientImpl::Patch(const std::string &path,
  14543. ContentProviderWithoutLength content_provider,
  14544. const std::string &content_type,
  14545. UploadProgress progress) {
  14546. return Patch(path, Headers(), std::move(content_provider), content_type,
  14547. progress);
  14548. }
  14549. inline Result ClientImpl::Patch(const std::string &path,
  14550. ContentProviderWithoutLength content_provider,
  14551. const std::string &content_type,
  14552. ContentReceiver content_receiver,
  14553. UploadProgress progress) {
  14554. return Patch(path, Headers(), std::move(content_provider), content_type,
  14555. std::move(content_receiver), progress);
  14556. }
  14557. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14558. const Params &params) {
  14559. auto query = detail::params_to_query_str(params);
  14560. return Patch(path, headers, query, "application/x-www-form-urlencoded");
  14561. }
  14562. inline Result ClientImpl::Patch(const std::string &path,
  14563. const UploadFormDataItems &items,
  14564. UploadProgress progress) {
  14565. return Patch(path, Headers(), items, progress);
  14566. }
  14567. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14568. const UploadFormDataItems &items,
  14569. UploadProgress progress) {
  14570. const auto &boundary = detail::make_multipart_data_boundary();
  14571. const auto &content_type =
  14572. detail::serialize_multipart_formdata_get_content_type(boundary);
  14573. auto content_length = detail::get_multipart_content_length(items, boundary);
  14574. return Patch(path, headers, content_length,
  14575. detail::make_multipart_content_provider(items, boundary),
  14576. content_type, progress);
  14577. }
  14578. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14579. const UploadFormDataItems &items,
  14580. const std::string &boundary,
  14581. UploadProgress progress) {
  14582. if (!detail::is_multipart_boundary_chars_valid(boundary)) {
  14583. return Result{nullptr, Error::UnsupportedMultipartBoundaryChars};
  14584. }
  14585. const auto &content_type =
  14586. detail::serialize_multipart_formdata_get_content_type(boundary);
  14587. auto content_length = detail::get_multipart_content_length(items, boundary);
  14588. return Patch(path, headers, content_length,
  14589. detail::make_multipart_content_provider(items, boundary),
  14590. content_type, progress);
  14591. }
  14592. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14593. const char *body, size_t content_length,
  14594. const std::string &content_type,
  14595. UploadProgress progress) {
  14596. return send_with_content_provider_and_receiver(
  14597. "PATCH", path, headers, body, content_length, nullptr, nullptr,
  14598. content_type, nullptr, progress);
  14599. }
  14600. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14601. const std::string &body,
  14602. const std::string &content_type,
  14603. UploadProgress progress) {
  14604. return send_with_content_provider_and_receiver(
  14605. "PATCH", path, headers, body.data(), body.size(), nullptr, nullptr,
  14606. content_type, nullptr, progress);
  14607. }
  14608. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14609. size_t content_length,
  14610. ContentProvider content_provider,
  14611. const std::string &content_type,
  14612. UploadProgress progress) {
  14613. return send_with_content_provider_and_receiver(
  14614. "PATCH", path, headers, nullptr, content_length,
  14615. std::move(content_provider), nullptr, content_type, nullptr, progress);
  14616. }
  14617. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14618. size_t content_length,
  14619. ContentProvider content_provider,
  14620. const std::string &content_type,
  14621. ContentReceiver content_receiver,
  14622. UploadProgress progress) {
  14623. return send_with_content_provider_and_receiver(
  14624. "PATCH", path, headers, nullptr, content_length,
  14625. std::move(content_provider), nullptr, content_type,
  14626. std::move(content_receiver), progress);
  14627. }
  14628. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14629. ContentProviderWithoutLength content_provider,
  14630. const std::string &content_type,
  14631. UploadProgress progress) {
  14632. return send_with_content_provider_and_receiver(
  14633. "PATCH", path, headers, nullptr, 0, nullptr, std::move(content_provider),
  14634. content_type, nullptr, progress);
  14635. }
  14636. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14637. ContentProviderWithoutLength content_provider,
  14638. const std::string &content_type,
  14639. ContentReceiver content_receiver,
  14640. UploadProgress progress) {
  14641. return send_with_content_provider_and_receiver(
  14642. "PATCH", path, headers, nullptr, 0, nullptr, std::move(content_provider),
  14643. content_type, std::move(content_receiver), progress);
  14644. }
  14645. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14646. const UploadFormDataItems &items,
  14647. const FormDataProviderItems &provider_items,
  14648. UploadProgress progress) {
  14649. const auto &boundary = detail::make_multipart_data_boundary();
  14650. const auto &content_type =
  14651. detail::serialize_multipart_formdata_get_content_type(boundary);
  14652. return send_with_content_provider_and_receiver(
  14653. "PATCH", path, headers, nullptr, 0, nullptr,
  14654. get_multipart_content_provider(boundary, items, provider_items),
  14655. content_type, nullptr, progress);
  14656. }
  14657. inline Result ClientImpl::Patch(const std::string &path, const Headers &headers,
  14658. const std::string &body,
  14659. const std::string &content_type,
  14660. ContentReceiver content_receiver,
  14661. DownloadProgress progress) {
  14662. Request req;
  14663. req.method = "PATCH";
  14664. req.path = path;
  14665. req.headers = headers;
  14666. req.body = body;
  14667. req.content_receiver =
  14668. [content_receiver](const char *data, size_t data_length,
  14669. size_t /*offset*/, size_t /*total_length*/) {
  14670. return content_receiver(data, data_length);
  14671. };
  14672. req.download_progress = std::move(progress);
  14673. if (max_timeout_msec_ > 0) {
  14674. req.start_time_ = std::chrono::steady_clock::now();
  14675. }
  14676. if (!content_type.empty()) { req.set_header("Content-Type", content_type); }
  14677. return send_(std::move(req));
  14678. }
  14679. inline Result ClientImpl::Delete(const std::string &path,
  14680. DownloadProgress progress) {
  14681. return Delete(path, Headers(), std::string(), std::string(), progress);
  14682. }
  14683. inline Result ClientImpl::Delete(const std::string &path,
  14684. const Headers &headers,
  14685. DownloadProgress progress) {
  14686. return Delete(path, headers, std::string(), std::string(), progress);
  14687. }
  14688. inline Result ClientImpl::Delete(const std::string &path, const char *body,
  14689. size_t content_length,
  14690. const std::string &content_type,
  14691. DownloadProgress progress) {
  14692. return Delete(path, Headers(), body, content_length, content_type, progress);
  14693. }
  14694. inline Result ClientImpl::Delete(const std::string &path,
  14695. const std::string &body,
  14696. const std::string &content_type,
  14697. DownloadProgress progress) {
  14698. return Delete(path, Headers(), body.data(), body.size(), content_type,
  14699. progress);
  14700. }
  14701. inline Result ClientImpl::Delete(const std::string &path,
  14702. const Headers &headers,
  14703. const std::string &body,
  14704. const std::string &content_type,
  14705. DownloadProgress progress) {
  14706. return Delete(path, headers, body.data(), body.size(), content_type,
  14707. progress);
  14708. }
  14709. inline Result ClientImpl::Delete(const std::string &path, const Params &params,
  14710. DownloadProgress progress) {
  14711. return Delete(path, Headers(), params, progress);
  14712. }
  14713. inline Result ClientImpl::Delete(const std::string &path,
  14714. const Headers &headers, const Params &params,
  14715. DownloadProgress progress) {
  14716. auto query = detail::params_to_query_str(params);
  14717. return Delete(path, headers, query, "application/x-www-form-urlencoded",
  14718. progress);
  14719. }
  14720. inline Result ClientImpl::Delete(const std::string &path,
  14721. const Headers &headers, const char *body,
  14722. size_t content_length,
  14723. const std::string &content_type,
  14724. DownloadProgress progress) {
  14725. Request req;
  14726. req.method = "DELETE";
  14727. req.headers = headers;
  14728. req.path = path;
  14729. req.download_progress = std::move(progress);
  14730. if (max_timeout_msec_ > 0) {
  14731. req.start_time_ = std::chrono::steady_clock::now();
  14732. }
  14733. if (!content_type.empty()) { req.set_header("Content-Type", content_type); }
  14734. req.body.assign(body, content_length);
  14735. return send_(std::move(req));
  14736. }
  14737. inline Result ClientImpl::Options(const std::string &path) {
  14738. return Options(path, Headers());
  14739. }
  14740. inline Result ClientImpl::Options(const std::string &path,
  14741. const Headers &headers) {
  14742. Request req;
  14743. req.method = "OPTIONS";
  14744. req.headers = headers;
  14745. req.path = path;
  14746. if (max_timeout_msec_ > 0) {
  14747. req.start_time_ = std::chrono::steady_clock::now();
  14748. }
  14749. return send_(std::move(req));
  14750. }
  14751. inline void ClientImpl::stop() {
  14752. std::lock_guard<std::mutex> guard(socket_mutex_);
  14753. // If there is anything ongoing right now, the ONLY thread-safe thing we can
  14754. // do is to shutdown_socket, so that threads using this socket suddenly
  14755. // discover they can't read/write any more and error out. Everything else
  14756. // (closing the socket, shutting ssl down) is unsafe because these actions
  14757. // are not thread-safe.
  14758. if (socket_requests_in_flight_ > 0) {
  14759. shutdown_socket(socket_);
  14760. // Aside from that, we set a flag for the socket to be closed when we're
  14761. // done.
  14762. socket_should_be_closed_when_request_is_done_ = true;
  14763. return;
  14764. }
  14765. disconnect(/*gracefully=*/true);
  14766. }
  14767. inline std::string ClientImpl::host() const { return host_; }
  14768. inline int ClientImpl::port() const { return port_; }
  14769. inline size_t ClientImpl::is_socket_open() const {
  14770. std::lock_guard<std::mutex> guard(socket_mutex_);
  14771. return socket_.is_open();
  14772. }
  14773. inline socket_t ClientImpl::socket() const { return socket_.sock; }
  14774. inline void ClientImpl::set_connection_timeout(time_t sec, time_t usec) {
  14775. connection_timeout_sec_ = sec;
  14776. connection_timeout_usec_ = usec;
  14777. }
  14778. inline void ClientImpl::set_read_timeout(time_t sec, time_t usec) {
  14779. read_timeout_sec_ = sec;
  14780. read_timeout_usec_ = usec;
  14781. }
  14782. inline void ClientImpl::set_write_timeout(time_t sec, time_t usec) {
  14783. write_timeout_sec_ = sec;
  14784. write_timeout_usec_ = usec;
  14785. }
  14786. inline void ClientImpl::set_max_timeout(time_t msec) {
  14787. max_timeout_msec_ = msec;
  14788. }
  14789. inline void ClientImpl::set_basic_auth(const std::string &username,
  14790. const std::string &password) {
  14791. basic_auth_username_ = username;
  14792. basic_auth_password_ = password;
  14793. }
  14794. inline void ClientImpl::set_bearer_token_auth(const std::string &token) {
  14795. bearer_token_auth_token_ = token;
  14796. }
  14797. inline void ClientImpl::set_keep_alive(bool on) { keep_alive_ = on; }
  14798. inline void ClientImpl::set_follow_location(bool on) { follow_location_ = on; }
  14799. inline void ClientImpl::set_path_encode(bool on) { path_encode_ = on; }
  14800. inline void
  14801. ClientImpl::set_hostname_addr_map(std::map<std::string, std::string> addr_map) {
  14802. addr_map_ = std::move(addr_map);
  14803. }
  14804. inline void ClientImpl::set_default_headers(Headers headers) {
  14805. default_headers_ = std::move(headers);
  14806. }
  14807. inline void ClientImpl::set_header_writer(
  14808. std::function<ssize_t(Stream &, Headers &)> const &writer) {
  14809. header_writer_ = writer;
  14810. }
  14811. inline void ClientImpl::set_address_family(int family) {
  14812. address_family_ = family;
  14813. }
  14814. inline void ClientImpl::set_tcp_nodelay(bool on) { tcp_nodelay_ = on; }
  14815. inline void ClientImpl::set_ipv6_v6only(bool on) { ipv6_v6only_ = on; }
  14816. inline void ClientImpl::set_socket_options(SocketOptions socket_options) {
  14817. socket_options_ = std::move(socket_options);
  14818. }
  14819. inline void ClientImpl::set_compress(bool on) { compress_ = on; }
  14820. inline void ClientImpl::set_decompress(bool on) { decompress_ = on; }
  14821. inline void ClientImpl::set_payload_max_length(size_t length) {
  14822. payload_max_length_ = length;
  14823. has_payload_max_length_ = true;
  14824. }
  14825. inline void ClientImpl::set_interface(const std::string &intf) {
  14826. interface_ = intf;
  14827. }
  14828. inline void ClientImpl::set_proxy(const std::string &host, int port) {
  14829. proxy_host_ = host;
  14830. proxy_port_ = port;
  14831. std::lock_guard<std::mutex> guard(socket_mutex_);
  14832. disconnect(/*gracefully=*/true);
  14833. }
  14834. inline void ClientImpl::set_proxy_basic_auth(const std::string &username,
  14835. const std::string &password) {
  14836. proxy_basic_auth_username_ = username;
  14837. proxy_basic_auth_password_ = password;
  14838. }
  14839. inline void ClientImpl::set_proxy_bearer_token_auth(const std::string &token) {
  14840. proxy_bearer_token_auth_token_ = token;
  14841. }
  14842. inline void ClientImpl::set_no_proxy(const std::vector<std::string> &patterns) {
  14843. std::vector<detail::NoProxyEntry> parsed;
  14844. parsed.reserve(patterns.size());
  14845. for (const auto &p : patterns) {
  14846. auto trimmed = detail::trim_copy(p);
  14847. if (trimmed.empty()) { continue; }
  14848. detail::NoProxyEntry entry;
  14849. if (detail::parse_no_proxy_entry(trimmed, entry)) {
  14850. parsed.push_back(std::move(entry));
  14851. }
  14852. }
  14853. no_proxy_entries_ = std::move(parsed);
  14854. std::lock_guard<std::mutex> guard(socket_mutex_);
  14855. disconnect(/*gracefully=*/true);
  14856. }
  14857. #ifdef CPPHTTPLIB_SSL_ENABLED
  14858. inline void ClientImpl::set_digest_auth(const std::string &username,
  14859. const std::string &password) {
  14860. digest_auth_username_ = username;
  14861. digest_auth_password_ = password;
  14862. }
  14863. inline void ClientImpl::set_ca_cert_path(const std::string &ca_cert_file_path,
  14864. const std::string &ca_cert_dir_path) {
  14865. ca_cert_file_path_ = ca_cert_file_path;
  14866. ca_cert_dir_path_ = ca_cert_dir_path;
  14867. }
  14868. inline void ClientImpl::set_proxy_digest_auth(const std::string &username,
  14869. const std::string &password) {
  14870. proxy_digest_auth_username_ = username;
  14871. proxy_digest_auth_password_ = password;
  14872. }
  14873. inline void ClientImpl::enable_server_certificate_verification(bool enabled) {
  14874. server_certificate_verification_ = enabled;
  14875. }
  14876. inline void ClientImpl::enable_server_hostname_verification(bool enabled) {
  14877. server_hostname_verification_ = enabled;
  14878. }
  14879. inline void ClientImpl::enable_system_ca(bool enabled) {
  14880. system_ca_mode_ = enabled ? SystemCAMode::Enabled : SystemCAMode::Disabled;
  14881. }
  14882. #endif
  14883. inline void ClientImpl::set_logger(Logger logger) {
  14884. logger_ = std::move(logger);
  14885. }
  14886. inline void ClientImpl::set_error_logger(ErrorLogger error_logger) {
  14887. error_logger_ = std::move(error_logger);
  14888. }
  14889. /*
  14890. * SSL/TLS Common Implementation
  14891. */
  14892. inline ClientConnection::~ClientConnection() {
  14893. #ifdef CPPHTTPLIB_SSL_ENABLED
  14894. if (session) {
  14895. tls::shutdown(session, true);
  14896. tls::free_session(session);
  14897. session = nullptr;
  14898. }
  14899. #endif
  14900. if (sock != INVALID_SOCKET) {
  14901. detail::close_socket(sock);
  14902. sock = INVALID_SOCKET;
  14903. }
  14904. }
  14905. // Universal client implementation
  14906. inline Client::Client(const std::string &scheme_host_port)
  14907. : Client(scheme_host_port, std::string(), std::string()) {}
  14908. inline Client::Client(const std::string &scheme_host_port,
  14909. const std::string &client_cert_path,
  14910. const std::string &client_key_path) {
  14911. detail::UrlComponents uc;
  14912. if (detail::parse_url(scheme_host_port, uc) && !uc.host.empty()) {
  14913. auto &scheme = uc.scheme;
  14914. #ifdef CPPHTTPLIB_SSL_ENABLED
  14915. if (!scheme.empty() && (scheme != "http" && scheme != "https")) {
  14916. #else
  14917. if (!scheme.empty() && scheme != "http") {
  14918. #endif
  14919. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  14920. std::string msg = "'" + scheme + "' scheme is not supported.";
  14921. throw std::invalid_argument(msg);
  14922. #endif
  14923. return;
  14924. }
  14925. auto is_ssl = scheme == "https";
  14926. auto host = std::move(uc.host);
  14927. auto port = is_ssl ? 443 : 80;
  14928. if (!uc.port.empty() && !detail::parse_port(uc.port, port)) { return; }
  14929. if (is_ssl) {
  14930. #ifdef CPPHTTPLIB_SSL_ENABLED
  14931. cli_ = detail::make_unique<SSLClient>(host, port, client_cert_path,
  14932. client_key_path);
  14933. is_ssl_ = is_ssl;
  14934. #endif
  14935. } else {
  14936. cli_ = detail::make_unique<ClientImpl>(host, port, client_cert_path,
  14937. client_key_path);
  14938. }
  14939. } else {
  14940. // NOTE: Update TEST(UniversalClientImplTest, Ipv6LiteralAddress)
  14941. // if port param below changes.
  14942. cli_ = detail::make_unique<ClientImpl>(scheme_host_port, 80,
  14943. client_cert_path, client_key_path);
  14944. }
  14945. }
  14946. inline Client::Client(const std::string &host, int port)
  14947. : Client(host, port, std::string(), std::string()) {}
  14948. inline Client::Client(const std::string &host, int port,
  14949. const std::string &client_cert_path,
  14950. const std::string &client_key_path)
  14951. : cli_(detail::make_unique<ClientImpl>(host, port, client_cert_path,
  14952. client_key_path)) {}
  14953. inline Client::~Client() = default;
  14954. inline bool Client::is_valid() const {
  14955. return cli_ != nullptr && cli_->is_valid();
  14956. }
  14957. inline Result Client::Get(const std::string &path, DownloadProgress progress) {
  14958. return cli_->Get(path, std::move(progress));
  14959. }
  14960. inline Result Client::Get(const std::string &path, const Headers &headers,
  14961. DownloadProgress progress) {
  14962. return cli_->Get(path, headers, std::move(progress));
  14963. }
  14964. inline Result Client::Get(const std::string &path,
  14965. ContentReceiver content_receiver,
  14966. DownloadProgress progress) {
  14967. return cli_->Get(path, std::move(content_receiver), std::move(progress));
  14968. }
  14969. inline Result Client::Get(const std::string &path, const Headers &headers,
  14970. ContentReceiver content_receiver,
  14971. DownloadProgress progress) {
  14972. return cli_->Get(path, headers, std::move(content_receiver),
  14973. std::move(progress));
  14974. }
  14975. inline Result Client::Get(const std::string &path,
  14976. ResponseHandler response_handler,
  14977. ContentReceiver content_receiver,
  14978. DownloadProgress progress) {
  14979. return cli_->Get(path, std::move(response_handler),
  14980. std::move(content_receiver), std::move(progress));
  14981. }
  14982. inline Result Client::Get(const std::string &path, const Headers &headers,
  14983. ResponseHandler response_handler,
  14984. ContentReceiver content_receiver,
  14985. DownloadProgress progress) {
  14986. return cli_->Get(path, headers, std::move(response_handler),
  14987. std::move(content_receiver), std::move(progress));
  14988. }
  14989. inline Result Client::Get(const std::string &path, const Params &params,
  14990. DownloadProgress progress) {
  14991. return cli_->Get(path, params, std::move(progress));
  14992. }
  14993. inline Result Client::Get(const std::string &path, const Params &params,
  14994. const Headers &headers, DownloadProgress progress) {
  14995. return cli_->Get(path, params, headers, std::move(progress));
  14996. }
  14997. inline Result Client::Get(const std::string &path, const Params &params,
  14998. const Headers &headers,
  14999. ContentReceiver content_receiver,
  15000. DownloadProgress progress) {
  15001. return cli_->Get(path, params, headers, std::move(content_receiver),
  15002. std::move(progress));
  15003. }
  15004. inline Result Client::Get(const std::string &path, const Params &params,
  15005. const Headers &headers,
  15006. ResponseHandler response_handler,
  15007. ContentReceiver content_receiver,
  15008. DownloadProgress progress) {
  15009. return cli_->Get(path, params, headers, std::move(response_handler),
  15010. std::move(content_receiver), std::move(progress));
  15011. }
  15012. inline Result Client::Head(const std::string &path) { return cli_->Head(path); }
  15013. inline Result Client::Head(const std::string &path, const Headers &headers) {
  15014. return cli_->Head(path, headers);
  15015. }
  15016. inline Result Client::Post(const std::string &path) { return cli_->Post(path); }
  15017. inline Result Client::Post(const std::string &path, const Headers &headers) {
  15018. return cli_->Post(path, headers);
  15019. }
  15020. inline Result Client::Post(const std::string &path, const char *body,
  15021. size_t content_length,
  15022. const std::string &content_type,
  15023. UploadProgress progress) {
  15024. return cli_->Post(path, body, content_length, content_type, progress);
  15025. }
  15026. inline Result Client::Post(const std::string &path, const Headers &headers,
  15027. const char *body, size_t content_length,
  15028. const std::string &content_type,
  15029. UploadProgress progress) {
  15030. return cli_->Post(path, headers, body, content_length, content_type,
  15031. progress);
  15032. }
  15033. inline Result Client::Post(const std::string &path, const std::string &body,
  15034. const std::string &content_type,
  15035. UploadProgress progress) {
  15036. return cli_->Post(path, body, content_type, progress);
  15037. }
  15038. inline Result Client::Post(const std::string &path, const Headers &headers,
  15039. const std::string &body,
  15040. const std::string &content_type,
  15041. UploadProgress progress) {
  15042. return cli_->Post(path, headers, body, content_type, progress);
  15043. }
  15044. inline Result Client::Post(const std::string &path, size_t content_length,
  15045. ContentProvider content_provider,
  15046. const std::string &content_type,
  15047. UploadProgress progress) {
  15048. return cli_->Post(path, content_length, std::move(content_provider),
  15049. content_type, progress);
  15050. }
  15051. inline Result Client::Post(const std::string &path, size_t content_length,
  15052. ContentProvider content_provider,
  15053. const std::string &content_type,
  15054. ContentReceiver content_receiver,
  15055. UploadProgress progress) {
  15056. return cli_->Post(path, content_length, std::move(content_provider),
  15057. content_type, std::move(content_receiver), progress);
  15058. }
  15059. inline Result Client::Post(const std::string &path,
  15060. ContentProviderWithoutLength content_provider,
  15061. const std::string &content_type,
  15062. UploadProgress progress) {
  15063. return cli_->Post(path, std::move(content_provider), content_type, progress);
  15064. }
  15065. inline Result Client::Post(const std::string &path,
  15066. ContentProviderWithoutLength content_provider,
  15067. const std::string &content_type,
  15068. ContentReceiver content_receiver,
  15069. UploadProgress progress) {
  15070. return cli_->Post(path, std::move(content_provider), content_type,
  15071. std::move(content_receiver), progress);
  15072. }
  15073. inline Result Client::Post(const std::string &path, const Headers &headers,
  15074. size_t content_length,
  15075. ContentProvider content_provider,
  15076. const std::string &content_type,
  15077. UploadProgress progress) {
  15078. return cli_->Post(path, headers, content_length, std::move(content_provider),
  15079. content_type, progress);
  15080. }
  15081. inline Result Client::Post(const std::string &path, const Headers &headers,
  15082. size_t content_length,
  15083. ContentProvider content_provider,
  15084. const std::string &content_type,
  15085. ContentReceiver content_receiver,
  15086. DownloadProgress progress) {
  15087. return cli_->Post(path, headers, content_length, std::move(content_provider),
  15088. content_type, std::move(content_receiver), progress);
  15089. }
  15090. inline Result Client::Post(const std::string &path, const Headers &headers,
  15091. ContentProviderWithoutLength content_provider,
  15092. const std::string &content_type,
  15093. UploadProgress progress) {
  15094. return cli_->Post(path, headers, std::move(content_provider), content_type,
  15095. progress);
  15096. }
  15097. inline Result Client::Post(const std::string &path, const Headers &headers,
  15098. ContentProviderWithoutLength content_provider,
  15099. const std::string &content_type,
  15100. ContentReceiver content_receiver,
  15101. DownloadProgress progress) {
  15102. return cli_->Post(path, headers, std::move(content_provider), content_type,
  15103. std::move(content_receiver), progress);
  15104. }
  15105. inline Result Client::Post(const std::string &path, const Params &params) {
  15106. return cli_->Post(path, params);
  15107. }
  15108. inline Result Client::Post(const std::string &path, const Headers &headers,
  15109. const Params &params) {
  15110. return cli_->Post(path, headers, params);
  15111. }
  15112. inline Result Client::Post(const std::string &path,
  15113. const UploadFormDataItems &items,
  15114. UploadProgress progress) {
  15115. return cli_->Post(path, items, progress);
  15116. }
  15117. inline Result Client::Post(const std::string &path, const Headers &headers,
  15118. const UploadFormDataItems &items,
  15119. UploadProgress progress) {
  15120. return cli_->Post(path, headers, items, progress);
  15121. }
  15122. inline Result Client::Post(const std::string &path, const Headers &headers,
  15123. const UploadFormDataItems &items,
  15124. const std::string &boundary,
  15125. UploadProgress progress) {
  15126. return cli_->Post(path, headers, items, boundary, progress);
  15127. }
  15128. inline Result Client::Post(const std::string &path, const Headers &headers,
  15129. const UploadFormDataItems &items,
  15130. const FormDataProviderItems &provider_items,
  15131. UploadProgress progress) {
  15132. return cli_->Post(path, headers, items, provider_items, progress);
  15133. }
  15134. inline Result Client::Post(const std::string &path, const Headers &headers,
  15135. const std::string &body,
  15136. const std::string &content_type,
  15137. ContentReceiver content_receiver,
  15138. DownloadProgress progress) {
  15139. return cli_->Post(path, headers, body, content_type,
  15140. std::move(content_receiver), progress);
  15141. }
  15142. inline Result Client::Put(const std::string &path) { return cli_->Put(path); }
  15143. inline Result Client::Put(const std::string &path, const Headers &headers) {
  15144. return cli_->Put(path, headers);
  15145. }
  15146. inline Result Client::Put(const std::string &path, const char *body,
  15147. size_t content_length,
  15148. const std::string &content_type,
  15149. UploadProgress progress) {
  15150. return cli_->Put(path, body, content_length, content_type, progress);
  15151. }
  15152. inline Result Client::Put(const std::string &path, const Headers &headers,
  15153. const char *body, size_t content_length,
  15154. const std::string &content_type,
  15155. UploadProgress progress) {
  15156. return cli_->Put(path, headers, body, content_length, content_type, progress);
  15157. }
  15158. inline Result Client::Put(const std::string &path, const std::string &body,
  15159. const std::string &content_type,
  15160. UploadProgress progress) {
  15161. return cli_->Put(path, body, content_type, progress);
  15162. }
  15163. inline Result Client::Put(const std::string &path, const Headers &headers,
  15164. const std::string &body,
  15165. const std::string &content_type,
  15166. UploadProgress progress) {
  15167. return cli_->Put(path, headers, body, content_type, progress);
  15168. }
  15169. inline Result Client::Put(const std::string &path, size_t content_length,
  15170. ContentProvider content_provider,
  15171. const std::string &content_type,
  15172. UploadProgress progress) {
  15173. return cli_->Put(path, content_length, std::move(content_provider),
  15174. content_type, progress);
  15175. }
  15176. inline Result Client::Put(const std::string &path, size_t content_length,
  15177. ContentProvider content_provider,
  15178. const std::string &content_type,
  15179. ContentReceiver content_receiver,
  15180. UploadProgress progress) {
  15181. return cli_->Put(path, content_length, std::move(content_provider),
  15182. content_type, std::move(content_receiver), progress);
  15183. }
  15184. inline Result Client::Put(const std::string &path,
  15185. ContentProviderWithoutLength content_provider,
  15186. const std::string &content_type,
  15187. UploadProgress progress) {
  15188. return cli_->Put(path, std::move(content_provider), content_type, progress);
  15189. }
  15190. inline Result Client::Put(const std::string &path,
  15191. ContentProviderWithoutLength content_provider,
  15192. const std::string &content_type,
  15193. ContentReceiver content_receiver,
  15194. UploadProgress progress) {
  15195. return cli_->Put(path, std::move(content_provider), content_type,
  15196. std::move(content_receiver), progress);
  15197. }
  15198. inline Result Client::Put(const std::string &path, const Headers &headers,
  15199. size_t content_length,
  15200. ContentProvider content_provider,
  15201. const std::string &content_type,
  15202. UploadProgress progress) {
  15203. return cli_->Put(path, headers, content_length, std::move(content_provider),
  15204. content_type, progress);
  15205. }
  15206. inline Result Client::Put(const std::string &path, const Headers &headers,
  15207. size_t content_length,
  15208. ContentProvider content_provider,
  15209. const std::string &content_type,
  15210. ContentReceiver content_receiver,
  15211. UploadProgress progress) {
  15212. return cli_->Put(path, headers, content_length, std::move(content_provider),
  15213. content_type, std::move(content_receiver), progress);
  15214. }
  15215. inline Result Client::Put(const std::string &path, const Headers &headers,
  15216. ContentProviderWithoutLength content_provider,
  15217. const std::string &content_type,
  15218. UploadProgress progress) {
  15219. return cli_->Put(path, headers, std::move(content_provider), content_type,
  15220. progress);
  15221. }
  15222. inline Result Client::Put(const std::string &path, const Headers &headers,
  15223. ContentProviderWithoutLength content_provider,
  15224. const std::string &content_type,
  15225. ContentReceiver content_receiver,
  15226. UploadProgress progress) {
  15227. return cli_->Put(path, headers, std::move(content_provider), content_type,
  15228. std::move(content_receiver), progress);
  15229. }
  15230. inline Result Client::Put(const std::string &path, const Params &params) {
  15231. return cli_->Put(path, params);
  15232. }
  15233. inline Result Client::Put(const std::string &path, const Headers &headers,
  15234. const Params &params) {
  15235. return cli_->Put(path, headers, params);
  15236. }
  15237. inline Result Client::Put(const std::string &path,
  15238. const UploadFormDataItems &items,
  15239. UploadProgress progress) {
  15240. return cli_->Put(path, items, progress);
  15241. }
  15242. inline Result Client::Put(const std::string &path, const Headers &headers,
  15243. const UploadFormDataItems &items,
  15244. UploadProgress progress) {
  15245. return cli_->Put(path, headers, items, progress);
  15246. }
  15247. inline Result Client::Put(const std::string &path, const Headers &headers,
  15248. const UploadFormDataItems &items,
  15249. const std::string &boundary,
  15250. UploadProgress progress) {
  15251. return cli_->Put(path, headers, items, boundary, progress);
  15252. }
  15253. inline Result Client::Put(const std::string &path, const Headers &headers,
  15254. const UploadFormDataItems &items,
  15255. const FormDataProviderItems &provider_items,
  15256. UploadProgress progress) {
  15257. return cli_->Put(path, headers, items, provider_items, progress);
  15258. }
  15259. inline Result Client::Put(const std::string &path, const Headers &headers,
  15260. const std::string &body,
  15261. const std::string &content_type,
  15262. ContentReceiver content_receiver,
  15263. DownloadProgress progress) {
  15264. return cli_->Put(path, headers, body, content_type, content_receiver,
  15265. progress);
  15266. }
  15267. inline Result Client::Patch(const std::string &path) {
  15268. return cli_->Patch(path);
  15269. }
  15270. inline Result Client::Patch(const std::string &path, const Headers &headers) {
  15271. return cli_->Patch(path, headers);
  15272. }
  15273. inline Result Client::Patch(const std::string &path, const char *body,
  15274. size_t content_length,
  15275. const std::string &content_type,
  15276. UploadProgress progress) {
  15277. return cli_->Patch(path, body, content_length, content_type, progress);
  15278. }
  15279. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15280. const char *body, size_t content_length,
  15281. const std::string &content_type,
  15282. UploadProgress progress) {
  15283. return cli_->Patch(path, headers, body, content_length, content_type,
  15284. progress);
  15285. }
  15286. inline Result Client::Patch(const std::string &path, const std::string &body,
  15287. const std::string &content_type,
  15288. UploadProgress progress) {
  15289. return cli_->Patch(path, body, content_type, progress);
  15290. }
  15291. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15292. const std::string &body,
  15293. const std::string &content_type,
  15294. UploadProgress progress) {
  15295. return cli_->Patch(path, headers, body, content_type, progress);
  15296. }
  15297. inline Result Client::Patch(const std::string &path, size_t content_length,
  15298. ContentProvider content_provider,
  15299. const std::string &content_type,
  15300. UploadProgress progress) {
  15301. return cli_->Patch(path, content_length, std::move(content_provider),
  15302. content_type, progress);
  15303. }
  15304. inline Result Client::Patch(const std::string &path, size_t content_length,
  15305. ContentProvider content_provider,
  15306. const std::string &content_type,
  15307. ContentReceiver content_receiver,
  15308. UploadProgress progress) {
  15309. return cli_->Patch(path, content_length, std::move(content_provider),
  15310. content_type, std::move(content_receiver), progress);
  15311. }
  15312. inline Result Client::Patch(const std::string &path,
  15313. ContentProviderWithoutLength content_provider,
  15314. const std::string &content_type,
  15315. UploadProgress progress) {
  15316. return cli_->Patch(path, std::move(content_provider), content_type, progress);
  15317. }
  15318. inline Result Client::Patch(const std::string &path,
  15319. ContentProviderWithoutLength content_provider,
  15320. const std::string &content_type,
  15321. ContentReceiver content_receiver,
  15322. UploadProgress progress) {
  15323. return cli_->Patch(path, std::move(content_provider), content_type,
  15324. std::move(content_receiver), progress);
  15325. }
  15326. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15327. size_t content_length,
  15328. ContentProvider content_provider,
  15329. const std::string &content_type,
  15330. UploadProgress progress) {
  15331. return cli_->Patch(path, headers, content_length, std::move(content_provider),
  15332. content_type, progress);
  15333. }
  15334. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15335. size_t content_length,
  15336. ContentProvider content_provider,
  15337. const std::string &content_type,
  15338. ContentReceiver content_receiver,
  15339. UploadProgress progress) {
  15340. return cli_->Patch(path, headers, content_length, std::move(content_provider),
  15341. content_type, std::move(content_receiver), progress);
  15342. }
  15343. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15344. ContentProviderWithoutLength content_provider,
  15345. const std::string &content_type,
  15346. UploadProgress progress) {
  15347. return cli_->Patch(path, headers, std::move(content_provider), content_type,
  15348. progress);
  15349. }
  15350. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15351. ContentProviderWithoutLength content_provider,
  15352. const std::string &content_type,
  15353. ContentReceiver content_receiver,
  15354. UploadProgress progress) {
  15355. return cli_->Patch(path, headers, std::move(content_provider), content_type,
  15356. std::move(content_receiver), progress);
  15357. }
  15358. inline Result Client::Patch(const std::string &path, const Params &params) {
  15359. return cli_->Patch(path, params);
  15360. }
  15361. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15362. const Params &params) {
  15363. return cli_->Patch(path, headers, params);
  15364. }
  15365. inline Result Client::Patch(const std::string &path,
  15366. const UploadFormDataItems &items,
  15367. UploadProgress progress) {
  15368. return cli_->Patch(path, items, progress);
  15369. }
  15370. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15371. const UploadFormDataItems &items,
  15372. UploadProgress progress) {
  15373. return cli_->Patch(path, headers, items, progress);
  15374. }
  15375. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15376. const UploadFormDataItems &items,
  15377. const std::string &boundary,
  15378. UploadProgress progress) {
  15379. return cli_->Patch(path, headers, items, boundary, progress);
  15380. }
  15381. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15382. const UploadFormDataItems &items,
  15383. const FormDataProviderItems &provider_items,
  15384. UploadProgress progress) {
  15385. return cli_->Patch(path, headers, items, provider_items, progress);
  15386. }
  15387. inline Result Client::Patch(const std::string &path, const Headers &headers,
  15388. const std::string &body,
  15389. const std::string &content_type,
  15390. ContentReceiver content_receiver,
  15391. DownloadProgress progress) {
  15392. return cli_->Patch(path, headers, body, content_type, content_receiver,
  15393. progress);
  15394. }
  15395. inline Result Client::Delete(const std::string &path,
  15396. DownloadProgress progress) {
  15397. return cli_->Delete(path, progress);
  15398. }
  15399. inline Result Client::Delete(const std::string &path, const Headers &headers,
  15400. DownloadProgress progress) {
  15401. return cli_->Delete(path, headers, progress);
  15402. }
  15403. inline Result Client::Delete(const std::string &path, const char *body,
  15404. size_t content_length,
  15405. const std::string &content_type,
  15406. DownloadProgress progress) {
  15407. return cli_->Delete(path, body, content_length, content_type, progress);
  15408. }
  15409. inline Result Client::Delete(const std::string &path, const Headers &headers,
  15410. const char *body, size_t content_length,
  15411. const std::string &content_type,
  15412. DownloadProgress progress) {
  15413. return cli_->Delete(path, headers, body, content_length, content_type,
  15414. progress);
  15415. }
  15416. inline Result Client::Delete(const std::string &path, const std::string &body,
  15417. const std::string &content_type,
  15418. DownloadProgress progress) {
  15419. return cli_->Delete(path, body, content_type, progress);
  15420. }
  15421. inline Result Client::Delete(const std::string &path, const Headers &headers,
  15422. const std::string &body,
  15423. const std::string &content_type,
  15424. DownloadProgress progress) {
  15425. return cli_->Delete(path, headers, body, content_type, progress);
  15426. }
  15427. inline Result Client::Delete(const std::string &path, const Params &params,
  15428. DownloadProgress progress) {
  15429. return cli_->Delete(path, params, progress);
  15430. }
  15431. inline Result Client::Delete(const std::string &path, const Headers &headers,
  15432. const Params &params, DownloadProgress progress) {
  15433. return cli_->Delete(path, headers, params, progress);
  15434. }
  15435. inline Result Client::Options(const std::string &path) {
  15436. return cli_->Options(path);
  15437. }
  15438. inline Result Client::Options(const std::string &path, const Headers &headers) {
  15439. return cli_->Options(path, headers);
  15440. }
  15441. inline ClientImpl::StreamHandle
  15442. Client::open_stream(const std::string &method, const std::string &path,
  15443. const Params &params, const Headers &headers,
  15444. const std::string &body, const std::string &content_type) {
  15445. return cli_->open_stream(method, path, params, headers, body, content_type);
  15446. }
  15447. inline bool Client::send(Request &req, Response &res, Error &error) {
  15448. return cli_->send(req, res, error);
  15449. }
  15450. inline Result Client::send(const Request &req) { return cli_->send(req); }
  15451. inline void Client::stop() { cli_->stop(); }
  15452. inline std::string Client::host() const { return cli_->host(); }
  15453. inline int Client::port() const { return cli_->port(); }
  15454. inline size_t Client::is_socket_open() const { return cli_->is_socket_open(); }
  15455. inline socket_t Client::socket() const { return cli_->socket(); }
  15456. inline void
  15457. Client::set_hostname_addr_map(std::map<std::string, std::string> addr_map) {
  15458. cli_->set_hostname_addr_map(std::move(addr_map));
  15459. }
  15460. inline void Client::set_default_headers(Headers headers) {
  15461. cli_->set_default_headers(std::move(headers));
  15462. }
  15463. inline void Client::set_header_writer(
  15464. std::function<ssize_t(Stream &, Headers &)> const &writer) {
  15465. cli_->set_header_writer(writer);
  15466. }
  15467. inline void Client::set_address_family(int family) {
  15468. cli_->set_address_family(family);
  15469. }
  15470. inline void Client::set_tcp_nodelay(bool on) { cli_->set_tcp_nodelay(on); }
  15471. inline void Client::set_socket_options(SocketOptions socket_options) {
  15472. cli_->set_socket_options(std::move(socket_options));
  15473. }
  15474. inline void Client::set_connection_timeout(time_t sec, time_t usec) {
  15475. cli_->set_connection_timeout(sec, usec);
  15476. }
  15477. inline void Client::set_read_timeout(time_t sec, time_t usec) {
  15478. cli_->set_read_timeout(sec, usec);
  15479. }
  15480. inline void Client::set_write_timeout(time_t sec, time_t usec) {
  15481. cli_->set_write_timeout(sec, usec);
  15482. }
  15483. inline void Client::set_basic_auth(const std::string &username,
  15484. const std::string &password) {
  15485. cli_->set_basic_auth(username, password);
  15486. }
  15487. inline void Client::set_bearer_token_auth(const std::string &token) {
  15488. cli_->set_bearer_token_auth(token);
  15489. }
  15490. inline void Client::set_keep_alive(bool on) { cli_->set_keep_alive(on); }
  15491. inline void Client::set_follow_location(bool on) {
  15492. cli_->set_follow_location(on);
  15493. }
  15494. inline void Client::set_path_encode(bool on) { cli_->set_path_encode(on); }
  15495. inline void Client::set_compress(bool on) { cli_->set_compress(on); }
  15496. inline void Client::set_decompress(bool on) { cli_->set_decompress(on); }
  15497. inline void Client::set_payload_max_length(size_t length) {
  15498. cli_->set_payload_max_length(length);
  15499. }
  15500. inline void Client::set_interface(const std::string &intf) {
  15501. cli_->set_interface(intf);
  15502. }
  15503. inline void Client::set_proxy(const std::string &host, int port) {
  15504. cli_->set_proxy(host, port);
  15505. }
  15506. inline void Client::set_proxy_basic_auth(const std::string &username,
  15507. const std::string &password) {
  15508. cli_->set_proxy_basic_auth(username, password);
  15509. }
  15510. inline void Client::set_proxy_bearer_token_auth(const std::string &token) {
  15511. cli_->set_proxy_bearer_token_auth(token);
  15512. }
  15513. inline void Client::set_no_proxy(const std::vector<std::string> &patterns) {
  15514. cli_->set_no_proxy(patterns);
  15515. }
  15516. inline void Client::set_logger(Logger logger) {
  15517. cli_->set_logger(std::move(logger));
  15518. }
  15519. inline void Client::set_error_logger(ErrorLogger error_logger) {
  15520. cli_->set_error_logger(std::move(error_logger));
  15521. }
  15522. /*
  15523. * Group 6: SSL Server and Client implementation
  15524. */
  15525. #ifdef CPPHTTPLIB_SSL_ENABLED
  15526. // SSL HTTP server implementation
  15527. inline SSLServer::SSLServer(const char *cert_path, const char *private_key_path,
  15528. const char *client_ca_cert_file_path,
  15529. const char *client_ca_cert_dir_path,
  15530. const char *private_key_password) {
  15531. using namespace tls;
  15532. ctx_ = create_server_context();
  15533. if (!ctx_) { return; }
  15534. // Load server certificate and private key
  15535. if (!set_server_cert_file(ctx_, cert_path, private_key_path,
  15536. private_key_password)) {
  15537. last_ssl_error_ = static_cast<int>(get_error());
  15538. free_context(ctx_);
  15539. ctx_ = nullptr;
  15540. return;
  15541. }
  15542. // Load client CA certificates for client authentication
  15543. if (client_ca_cert_file_path || client_ca_cert_dir_path) {
  15544. if (!set_client_ca_file(ctx_, client_ca_cert_file_path,
  15545. client_ca_cert_dir_path)) {
  15546. last_ssl_error_ = static_cast<int>(get_error());
  15547. free_context(ctx_);
  15548. ctx_ = nullptr;
  15549. return;
  15550. }
  15551. // Enable client certificate verification
  15552. set_verify_client(ctx_, true);
  15553. }
  15554. }
  15555. inline SSLServer::SSLServer(const PemMemory &pem) {
  15556. using namespace tls;
  15557. ctx_ = create_server_context();
  15558. if (ctx_) {
  15559. if (!set_server_cert_pem(ctx_, pem.cert_pem, pem.key_pem,
  15560. pem.private_key_password)) {
  15561. last_ssl_error_ = static_cast<int>(get_error());
  15562. free_context(ctx_);
  15563. ctx_ = nullptr;
  15564. } else if (pem.client_ca_pem && pem.client_ca_pem_len > 0) {
  15565. if (!load_ca_pem(ctx_, pem.client_ca_pem, pem.client_ca_pem_len)) {
  15566. last_ssl_error_ = static_cast<int>(get_error());
  15567. free_context(ctx_);
  15568. ctx_ = nullptr;
  15569. } else {
  15570. set_verify_client(ctx_, true);
  15571. }
  15572. }
  15573. }
  15574. }
  15575. inline SSLServer::SSLServer(const tls::ContextSetupCallback &setup_callback) {
  15576. using namespace tls;
  15577. ctx_ = create_server_context();
  15578. if (ctx_) {
  15579. if (!setup_callback(ctx_)) {
  15580. free_context(ctx_);
  15581. ctx_ = nullptr;
  15582. }
  15583. }
  15584. }
  15585. inline SSLServer::~SSLServer() {
  15586. if (ctx_) { tls::free_context(ctx_); }
  15587. }
  15588. inline bool SSLServer::is_valid() const {
  15589. return ctx_ != nullptr && Server::is_valid();
  15590. }
  15591. inline bool SSLServer::process_and_close_socket(socket_t sock) {
  15592. using namespace tls;
  15593. // Create TLS session with mutex protection
  15594. session_t session = nullptr;
  15595. {
  15596. std::lock_guard<std::mutex> guard(ctx_mutex_);
  15597. session = create_session(static_cast<ctx_t>(ctx_), sock);
  15598. }
  15599. if (!session) {
  15600. last_ssl_error_ = static_cast<int>(get_error());
  15601. detail::shutdown_socket(sock);
  15602. detail::close_socket(sock);
  15603. return false;
  15604. }
  15605. // Use scope_exit to ensure cleanup on all paths (including exceptions)
  15606. bool handshake_done = false;
  15607. bool ret = false;
  15608. bool websocket_upgraded = false;
  15609. auto cleanup = detail::scope_exit([&] {
  15610. if (handshake_done) { shutdown(session, !websocket_upgraded && ret); }
  15611. free_session(session);
  15612. detail::shutdown_socket(sock);
  15613. detail::close_socket(sock);
  15614. });
  15615. // Perform TLS accept handshake with timeout
  15616. TlsError tls_err;
  15617. if (!accept_nonblocking(session, sock, read_timeout_sec_, read_timeout_usec_,
  15618. &tls_err)) {
  15619. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  15620. // Map TlsError to legacy ssl_error for backward compatibility
  15621. if (tls_err.code == ErrorCode::WantRead) {
  15622. last_ssl_error_ = SSL_ERROR_WANT_READ;
  15623. } else if (tls_err.code == ErrorCode::WantWrite) {
  15624. last_ssl_error_ = SSL_ERROR_WANT_WRITE;
  15625. } else {
  15626. last_ssl_error_ = SSL_ERROR_SSL;
  15627. }
  15628. #else
  15629. last_ssl_error_ = static_cast<int>(get_error());
  15630. #endif
  15631. return false;
  15632. }
  15633. handshake_done = true;
  15634. std::string remote_addr;
  15635. int remote_port = 0;
  15636. detail::get_remote_ip_and_port(sock, remote_addr, remote_port);
  15637. std::string local_addr;
  15638. int local_port = 0;
  15639. detail::get_local_ip_and_port(sock, local_addr, local_port);
  15640. ret = serve_guarded([&]() {
  15641. return detail::process_server_socket_ssl(
  15642. svr_sock_, session, sock, keep_alive_max_count_,
  15643. keep_alive_timeout_sec_, read_timeout_sec_, read_timeout_usec_,
  15644. write_timeout_sec_, write_timeout_usec_,
  15645. [&](Stream &strm, bool close_connection, bool &connection_closed) {
  15646. return process_request(
  15647. strm, remote_addr, remote_port, local_addr, local_port,
  15648. close_connection, connection_closed,
  15649. [&](Request &req) { req.ssl = session; }, &websocket_upgraded);
  15650. });
  15651. });
  15652. return ret;
  15653. }
  15654. inline bool SSLServer::update_certs_pem(const char *cert_pem,
  15655. const char *key_pem,
  15656. const char *client_ca_pem,
  15657. const char *password) {
  15658. if (!ctx_) { return false; }
  15659. std::lock_guard<std::mutex> guard(ctx_mutex_);
  15660. if (!tls::update_server_cert(ctx_, cert_pem, key_pem, password)) {
  15661. return false;
  15662. }
  15663. if (client_ca_pem) {
  15664. return tls::update_server_client_ca(ctx_, client_ca_pem);
  15665. }
  15666. return true;
  15667. }
  15668. // SSL HTTP client implementation
  15669. inline SSLClient::~SSLClient() {
  15670. // Make sure to shut down SSL since shutdown_ssl will resolve to the
  15671. // base function rather than the derived function once we get to the
  15672. // base class destructor, and won't free the SSL (causing a leak).
  15673. // This must happen before the context is freed below: some backends
  15674. // (e.g. mbedTLS) have the SSL session borrow a raw pointer into the
  15675. // context, so freeing the context first leaves close_notify reading
  15676. // freed memory.
  15677. shutdown_ssl_impl(socket_, true);
  15678. if (ctx_) {
  15679. tls::free_context(ctx_);
  15680. ctx_ = nullptr;
  15681. }
  15682. }
  15683. inline bool SSLClient::is_valid() const { return ctx_ != nullptr; }
  15684. inline void SSLClient::shutdown_ssl(Socket &socket, bool shutdown_gracefully) {
  15685. shutdown_ssl_impl(socket, shutdown_gracefully);
  15686. }
  15687. inline void SSLClient::shutdown_ssl_impl(Socket &socket,
  15688. bool shutdown_gracefully) {
  15689. if (socket.sock == INVALID_SOCKET) {
  15690. assert(socket.ssl == nullptr);
  15691. return;
  15692. }
  15693. if (socket.ssl) {
  15694. tls::shutdown(socket.ssl, shutdown_gracefully);
  15695. {
  15696. std::lock_guard<std::mutex> guard(ctx_mutex_);
  15697. tls::free_session(socket.ssl);
  15698. }
  15699. socket.ssl = nullptr;
  15700. }
  15701. assert(socket.ssl == nullptr);
  15702. }
  15703. inline bool SSLClient::process_socket(
  15704. const Socket &socket,
  15705. std::chrono::time_point<std::chrono::steady_clock> start_time,
  15706. std::function<bool(Stream &strm)> callback) {
  15707. assert(socket.ssl);
  15708. return detail::process_client_socket_ssl(
  15709. socket.ssl, socket.sock, read_timeout_sec_, read_timeout_usec_,
  15710. write_timeout_sec_, write_timeout_usec_, max_timeout_msec_, start_time,
  15711. std::move(callback));
  15712. }
  15713. inline bool SSLClient::is_ssl() const { return true; }
  15714. inline bool SSLClient::create_and_connect_socket(Socket &socket, Error &error) {
  15715. if (!is_valid()) {
  15716. error = Error::SSLConnection;
  15717. return false;
  15718. }
  15719. return ClientImpl::create_and_connect_socket(socket, error);
  15720. }
  15721. inline bool SSLClient::setup_proxy_connection(
  15722. Socket &socket,
  15723. std::chrono::time_point<std::chrono::steady_clock> start_time,
  15724. Response &res, bool &success, Error &error) {
  15725. if (!is_proxy_enabled_for_host(host_)) { return true; }
  15726. if (!connect_with_proxy(socket, start_time, res, success, error)) {
  15727. return false;
  15728. }
  15729. if (!initialize_ssl(socket, error)) {
  15730. success = false;
  15731. return false;
  15732. }
  15733. return true;
  15734. }
  15735. // Assumes that socket_mutex_ is locked and that there are no requests in
  15736. // flight
  15737. inline bool SSLClient::connect_with_proxy(
  15738. Socket &socket,
  15739. std::chrono::time_point<std::chrono::steady_clock> start_time,
  15740. Response &res, bool &success, Error &error) {
  15741. success = true;
  15742. Response proxy_res;
  15743. if (!detail::process_client_socket(
  15744. socket.sock, read_timeout_sec_, read_timeout_usec_,
  15745. write_timeout_sec_, write_timeout_usec_, max_timeout_msec_,
  15746. start_time, [&](Stream &strm) {
  15747. Request req2;
  15748. req2.method = "CONNECT";
  15749. req2.path =
  15750. detail::make_host_and_port_string_always_port(host_, port_);
  15751. if (max_timeout_msec_ > 0) {
  15752. req2.start_time_ = std::chrono::steady_clock::now();
  15753. }
  15754. return process_request(strm, req2, proxy_res, false, error);
  15755. })) {
  15756. // Thread-safe to close everything because we are assuming there are no
  15757. // requests in flight
  15758. shutdown_ssl(socket, true);
  15759. shutdown_socket(socket);
  15760. close_socket(socket);
  15761. success = false;
  15762. return false;
  15763. }
  15764. if (proxy_res.status == StatusCode::ProxyAuthenticationRequired_407) {
  15765. if (!proxy_digest_auth_username_.empty() &&
  15766. !proxy_digest_auth_password_.empty()) {
  15767. std::map<std::string, std::string> auth;
  15768. if (detail::parse_www_authenticate(proxy_res, auth, true)) {
  15769. // Close the current socket and create a new one for the authenticated
  15770. // request
  15771. shutdown_ssl(socket, true);
  15772. shutdown_socket(socket);
  15773. close_socket(socket);
  15774. // Create a new socket for the authenticated CONNECT request
  15775. if (!ensure_socket_connection(socket, error)) {
  15776. success = false;
  15777. output_error_log(error, nullptr);
  15778. return false;
  15779. }
  15780. proxy_res = Response();
  15781. if (!detail::process_client_socket(
  15782. socket.sock, read_timeout_sec_, read_timeout_usec_,
  15783. write_timeout_sec_, write_timeout_usec_, max_timeout_msec_,
  15784. start_time, [&](Stream &strm) {
  15785. Request req3;
  15786. req3.method = "CONNECT";
  15787. req3.path = detail::make_host_and_port_string_always_port(
  15788. host_, port_);
  15789. req3.headers.insert(detail::make_digest_authentication_header(
  15790. req3, auth, 1, detail::random_string(10),
  15791. proxy_digest_auth_username_, proxy_digest_auth_password_,
  15792. true));
  15793. if (max_timeout_msec_ > 0) {
  15794. req3.start_time_ = std::chrono::steady_clock::now();
  15795. }
  15796. return process_request(strm, req3, proxy_res, false, error);
  15797. })) {
  15798. // Thread-safe to close everything because we are assuming there are
  15799. // no requests in flight
  15800. shutdown_ssl(socket, true);
  15801. shutdown_socket(socket);
  15802. close_socket(socket);
  15803. success = false;
  15804. return false;
  15805. }
  15806. }
  15807. }
  15808. }
  15809. // If status code is not 200, proxy request is failed.
  15810. // Set error to ProxyConnection and return proxy response
  15811. // as the response of the request
  15812. if (proxy_res.status != StatusCode::OK_200) {
  15813. error = Error::ProxyConnection;
  15814. output_error_log(error, nullptr);
  15815. res = std::move(proxy_res);
  15816. // Thread-safe to close everything because we are assuming there are
  15817. // no requests in flight
  15818. shutdown_ssl(socket, true);
  15819. shutdown_socket(socket);
  15820. close_socket(socket);
  15821. return false;
  15822. }
  15823. return true;
  15824. }
  15825. inline bool SSLClient::ensure_socket_connection(Socket &socket, Error &error) {
  15826. if (!ClientImpl::ensure_socket_connection(socket, error)) { return false; }
  15827. if (is_proxy_enabled_for_host(host_)) { return true; }
  15828. if (!initialize_ssl(socket, error)) {
  15829. shutdown_socket(socket);
  15830. close_socket(socket);
  15831. return false;
  15832. }
  15833. return true;
  15834. }
  15835. // SSL HTTP client implementation
  15836. inline SSLClient::SSLClient(const std::string &host)
  15837. : SSLClient(host, 443, std::string(), std::string()) {}
  15838. inline SSLClient::SSLClient(const std::string &host, int port)
  15839. : SSLClient(host, port, std::string(), std::string()) {}
  15840. inline void SSLClient::init_ctx() {
  15841. ctx_ = tls::create_client_context();
  15842. if (ctx_) { tls::set_min_version(ctx_, tls::Version::TLS1_2); }
  15843. }
  15844. inline void SSLClient::reset_ctx_on_error() {
  15845. last_backend_error_ = tls::get_error();
  15846. tls::free_context(ctx_);
  15847. ctx_ = nullptr;
  15848. }
  15849. inline SSLClient::SSLClient(const std::string &host, int port,
  15850. const std::string &client_cert_path,
  15851. const std::string &client_key_path,
  15852. const std::string &private_key_password)
  15853. : ClientImpl(host, port, client_cert_path, client_key_path) {
  15854. init_ctx();
  15855. if (!ctx_) { return; }
  15856. if (!client_cert_path.empty() && !client_key_path.empty()) {
  15857. const char *password =
  15858. private_key_password.empty() ? nullptr : private_key_password.c_str();
  15859. if (!tls::set_client_cert_file(ctx_, client_cert_path.c_str(),
  15860. client_key_path.c_str(), password)) {
  15861. reset_ctx_on_error();
  15862. }
  15863. }
  15864. }
  15865. inline SSLClient::SSLClient(const std::string &host, int port,
  15866. const PemMemory &pem)
  15867. : ClientImpl(host, port) {
  15868. init_ctx();
  15869. if (!ctx_) { return; }
  15870. if (pem.cert_pem && pem.key_pem) {
  15871. if (!tls::set_client_cert_pem(ctx_, pem.cert_pem, pem.key_pem,
  15872. pem.private_key_password)) {
  15873. reset_ctx_on_error();
  15874. }
  15875. }
  15876. }
  15877. inline void SSLClient::set_ca_cert_store(tls::ca_store_t ca_cert_store) {
  15878. if (ca_cert_store && ctx_) {
  15879. // set_ca_store takes ownership of ca_cert_store
  15880. tls::set_ca_store(ctx_, ca_cert_store);
  15881. ca_cert_store_set_ = true;
  15882. } else if (ca_cert_store) {
  15883. tls::free_ca_store(ca_cert_store);
  15884. }
  15885. }
  15886. inline void
  15887. SSLClient::set_server_certificate_verifier(tls::VerifyCallback verifier) {
  15888. if (!ctx_) { return; }
  15889. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  15890. server_certificate_verifier_set_ = static_cast<bool>(verifier);
  15891. #endif
  15892. tls::set_verify_callback(ctx_, verifier);
  15893. }
  15894. inline void SSLClient::set_session_verifier(
  15895. std::function<SSLVerifierResponse(tls::session_t)> verifier) {
  15896. session_verifier_ = std::move(verifier);
  15897. }
  15898. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  15899. inline void SSLClient::enable_windows_certificate_verification(bool enabled) {
  15900. enable_windows_cert_verification_ = enabled;
  15901. }
  15902. #endif
  15903. inline void SSLClient::load_ca_cert_store(const char *ca_cert,
  15904. std::size_t size) {
  15905. if (ctx_ && ca_cert && size > 0) {
  15906. ca_cert_pem_.assign(ca_cert, size); // Store for redirect transfer
  15907. tls::load_ca_pem(ctx_, ca_cert, size);
  15908. }
  15909. }
  15910. inline bool SSLClient::load_certs() {
  15911. auto ret = true;
  15912. // call_once rather than the plain flag WebSocketClient::create_stream() uses:
  15913. // one client is shared across concurrent requests here.
  15914. std::call_once(initialize_cert_, [&]() {
  15915. std::lock_guard<std::mutex> guard(ctx_mutex_);
  15916. ret = detail::load_client_ca_config(
  15917. ctx_, ca_cert_file_path_, ca_cert_dir_path_,
  15918. !ca_cert_pem_.empty() || ca_cert_store_set_, system_ca_mode_,
  15919. last_backend_error_);
  15920. });
  15921. return ret;
  15922. }
  15923. inline bool SSLClient::initialize_ssl(Socket &socket, Error &error) {
  15924. // Load CA certificates if server verification is enabled
  15925. if (server_certificate_verification_) {
  15926. if (!load_certs()) {
  15927. error = Error::SSLLoadingCerts;
  15928. output_error_log(error, nullptr);
  15929. return false;
  15930. }
  15931. }
  15932. detail::ClientTlsSessionOptions options;
  15933. options.server_hostname_verification = server_hostname_verification_;
  15934. options.session_verifier = session_verifier_;
  15935. options.ctx_mutex = &ctx_mutex_;
  15936. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  15937. // Skip Schannel when a custom CA cert is specified, as the Windows
  15938. // certificate store would not know about user-provided CA certificates.
  15939. // Also skip when system CA trust is explicitly disabled.
  15940. options.windows_cert_verification =
  15941. enable_windows_cert_verification_ &&
  15942. system_ca_mode_ != SystemCAMode::Disabled && ca_cert_file_path_.empty() &&
  15943. ca_cert_dir_path_.empty() && ca_cert_pem_.empty() && !ca_cert_store_set_;
  15944. // Only a verifier set through set_server_certificate_verifier() is seen
  15945. // here, not one installed with tls::set_verify_callback() directly.
  15946. options.server_certificate_verifier_set = server_certificate_verifier_set_;
  15947. #endif
  15948. tls::session_t session = nullptr;
  15949. // Use scope_exit to ensure session is freed on error paths
  15950. bool success = false;
  15951. auto session_guard = detail::scope_exit([&] {
  15952. if (!success) { tls::free_session(session); }
  15953. });
  15954. detail::ClientTlsSessionError tls_error;
  15955. if (!detail::setup_client_tls_session(
  15956. host_, ctx_, session, socket.sock, server_certificate_verification_,
  15957. connection_timeout_sec_, connection_timeout_usec_, &tls_error,
  15958. options)) {
  15959. error = tls_error.error;
  15960. last_ssl_error_ = tls_error.ssl_error;
  15961. last_backend_error_ = tls_error.backend_error;
  15962. output_error_log(error, nullptr);
  15963. return false;
  15964. }
  15965. success = true;
  15966. socket.ssl = session;
  15967. return true;
  15968. }
  15969. inline void Client::set_digest_auth(const std::string &username,
  15970. const std::string &password) {
  15971. cli_->set_digest_auth(username, password);
  15972. }
  15973. inline void Client::set_proxy_digest_auth(const std::string &username,
  15974. const std::string &password) {
  15975. cli_->set_proxy_digest_auth(username, password);
  15976. }
  15977. inline void Client::enable_server_certificate_verification(bool enabled) {
  15978. cli_->enable_server_certificate_verification(enabled);
  15979. }
  15980. inline void Client::enable_server_hostname_verification(bool enabled) {
  15981. cli_->enable_server_hostname_verification(enabled);
  15982. }
  15983. inline void Client::enable_system_ca(bool enabled) {
  15984. cli_->enable_system_ca(enabled);
  15985. }
  15986. #ifdef CPPHTTPLIB_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE
  15987. inline void Client::enable_windows_certificate_verification(bool enabled) {
  15988. if (is_ssl_) {
  15989. static_cast<SSLClient &>(*cli_).enable_windows_certificate_verification(
  15990. enabled);
  15991. }
  15992. }
  15993. #endif
  15994. inline void Client::set_ca_cert_path(const std::string &ca_cert_file_path,
  15995. const std::string &ca_cert_dir_path) {
  15996. cli_->set_ca_cert_path(ca_cert_file_path, ca_cert_dir_path);
  15997. }
  15998. inline void Client::set_ca_cert_store(tls::ca_store_t ca_cert_store) {
  15999. if (is_ssl_) {
  16000. static_cast<SSLClient &>(*cli_).set_ca_cert_store(ca_cert_store);
  16001. } else if (ca_cert_store) {
  16002. tls::free_ca_store(ca_cert_store);
  16003. }
  16004. }
  16005. inline void Client::load_ca_cert_store(const char *ca_cert, std::size_t size) {
  16006. if (is_ssl_) {
  16007. // Use the PEM-based path so the CA data is retained for redirect transfer
  16008. static_cast<SSLClient &>(*cli_).load_ca_cert_store(ca_cert, size);
  16009. }
  16010. }
  16011. inline void
  16012. Client::set_server_certificate_verifier(tls::VerifyCallback verifier) {
  16013. if (is_ssl_) {
  16014. static_cast<SSLClient &>(*cli_).set_server_certificate_verifier(
  16015. std::move(verifier));
  16016. }
  16017. }
  16018. inline void Client::set_session_verifier(
  16019. std::function<SSLVerifierResponse(tls::session_t)> verifier) {
  16020. if (is_ssl_) {
  16021. static_cast<SSLClient &>(*cli_).set_session_verifier(std::move(verifier));
  16022. }
  16023. }
  16024. inline tls::ctx_t Client::tls_context() const {
  16025. if (is_ssl_) { return static_cast<SSLClient &>(*cli_).tls_context(); }
  16026. return nullptr;
  16027. }
  16028. #endif // CPPHTTPLIB_SSL_ENABLED
  16029. /*
  16030. * Group 7: TLS abstraction layer - Common API
  16031. */
  16032. #ifdef CPPHTTPLIB_SSL_ENABLED
  16033. namespace tls {
  16034. // Helper for PeerCert construction
  16035. inline PeerCert get_peer_cert_from_session(const_session_t session) {
  16036. return PeerCert(get_peer_cert(session));
  16037. }
  16038. namespace impl {
  16039. inline VerifyCallback &get_verify_callback() {
  16040. static thread_local VerifyCallback callback;
  16041. return callback;
  16042. }
  16043. inline VerifyCallback &get_mbedtls_verify_callback() {
  16044. static thread_local VerifyCallback callback;
  16045. return callback;
  16046. }
  16047. // Check if a string is an IPv4 address
  16048. inline bool is_ipv4_address(const std::string &str) {
  16049. int dots = 0;
  16050. for (char c : str) {
  16051. if (c == '.') {
  16052. dots++;
  16053. } else if (!detail::is_ascii_digit(c)) {
  16054. return false;
  16055. }
  16056. }
  16057. return dots == 3;
  16058. }
  16059. // Parse IPv4 address string to bytes
  16060. inline bool parse_ipv4(const std::string &str, unsigned char *out) {
  16061. const char *p = str.c_str();
  16062. for (int i = 0; i < 4; i++) {
  16063. if (i > 0) {
  16064. if (*p != '.') { return false; }
  16065. p++;
  16066. }
  16067. int val = 0;
  16068. int digits = 0;
  16069. while (detail::is_ascii_digit(*p)) {
  16070. val = val * 10 + (*p - '0');
  16071. if (val > 255) { return false; }
  16072. p++;
  16073. digits++;
  16074. }
  16075. if (digits == 0) { return false; }
  16076. // Reject leading zeros (e.g., "01.002.03.04") to prevent ambiguity
  16077. if (digits > 1 && *(p - digits) == '0') { return false; }
  16078. out[i] = static_cast<unsigned char>(val);
  16079. }
  16080. return *p == '\0';
  16081. }
  16082. // Parse an IP literal (IPv4 or IPv6) into raw network-order bytes.
  16083. // `out` must have room for at least 16 bytes. Returns the address length
  16084. // (4 for IPv4, 16 for IPv6) on success, or 0 if the string is not an IP
  16085. // literal. Used to match a host against iPAddress SANs the same way the
  16086. // OpenSSL backend does via X509_check_ip.
  16087. inline size_t parse_ip_address(const std::string &str, unsigned char *out) {
  16088. if (is_ipv4_address(str)) { return parse_ipv4(str, out) ? 4 : 0; }
  16089. struct in6_addr addr6 = {};
  16090. if (inet_pton(AF_INET6, str.c_str(), &addr6) == 1) {
  16091. memcpy(out, &addr6, 16);
  16092. return 16;
  16093. }
  16094. return 0;
  16095. }
  16096. #ifdef _WIN32
  16097. // Enumerate Windows system certificates and call callback with DER data
  16098. template <typename Callback>
  16099. inline bool enumerate_windows_system_certs(Callback cb) {
  16100. bool loaded = false;
  16101. static const wchar_t *store_names[] = {L"ROOT", L"CA"};
  16102. for (auto store_name : store_names) {
  16103. HCERTSTORE hStore = CertOpenSystemStoreW(0, store_name);
  16104. if (hStore) {
  16105. PCCERT_CONTEXT pContext = nullptr;
  16106. while ((pContext = CertEnumCertificatesInStore(hStore, pContext)) !=
  16107. nullptr) {
  16108. if (cb(pContext->pbCertEncoded, pContext->cbCertEncoded)) {
  16109. loaded = true;
  16110. }
  16111. }
  16112. CertCloseStore(hStore, 0);
  16113. }
  16114. }
  16115. return loaded;
  16116. }
  16117. #endif
  16118. #ifdef CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  16119. // Enumerate macOS Keychain certificates and call callback with DER data
  16120. template <typename Callback>
  16121. inline bool enumerate_macos_keychain_certs(Callback cb) {
  16122. bool loaded = false;
  16123. const SecTrustSettingsDomain domains[] = {
  16124. kSecTrustSettingsDomainSystem,
  16125. kSecTrustSettingsDomainAdmin,
  16126. kSecTrustSettingsDomainUser,
  16127. };
  16128. for (auto domain : domains) {
  16129. CFArrayRef certs = nullptr;
  16130. OSStatus status = SecTrustSettingsCopyCertificates(domain, &certs);
  16131. if (status != errSecSuccess || !certs) {
  16132. if (certs) CFRelease(certs);
  16133. continue;
  16134. }
  16135. CFIndex count = CFArrayGetCount(certs);
  16136. for (CFIndex i = 0; i < count; i++) {
  16137. SecCertificateRef cert =
  16138. (SecCertificateRef)CFArrayGetValueAtIndex(certs, i);
  16139. CFDataRef data = SecCertificateCopyData(cert);
  16140. if (data) {
  16141. if (cb(CFDataGetBytePtr(data),
  16142. static_cast<size_t>(CFDataGetLength(data)))) {
  16143. loaded = true;
  16144. }
  16145. CFRelease(data);
  16146. }
  16147. }
  16148. CFRelease(certs);
  16149. }
  16150. return loaded;
  16151. }
  16152. #endif
  16153. #if !defined(_WIN32) && !(defined(__APPLE__) && \
  16154. defined(CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN))
  16155. // Common CA certificate file paths on Linux/Unix
  16156. inline const char **system_ca_paths() {
  16157. static const char *paths[] = {
  16158. "/etc/ssl/certs/ca-certificates.crt", // Debian/Ubuntu
  16159. "/etc/pki/tls/certs/ca-bundle.crt", // RHEL/CentOS
  16160. "/etc/ssl/ca-bundle.pem", // OpenSUSE
  16161. "/etc/pki/tls/cacert.pem", // OpenELEC
  16162. "/etc/ssl/cert.pem", // Alpine, FreeBSD
  16163. nullptr};
  16164. return paths;
  16165. }
  16166. // Common CA certificate directory paths on Linux/Unix
  16167. inline const char **system_ca_dirs() {
  16168. static const char *dirs[] = {"/etc/ssl/certs", // Debian/Ubuntu
  16169. "/etc/pki/tls/certs", // RHEL/CentOS
  16170. "/usr/share/ca-certificates", // Other
  16171. nullptr};
  16172. return dirs;
  16173. }
  16174. #endif
  16175. } // namespace impl
  16176. inline bool set_client_ca_file(ctx_t ctx, const char *ca_file,
  16177. const char *ca_dir) {
  16178. if (!ctx) { return false; }
  16179. bool success = true;
  16180. if (ca_file && *ca_file) {
  16181. if (!load_ca_file(ctx, ca_file)) { success = false; }
  16182. }
  16183. if (ca_dir && *ca_dir) {
  16184. if (!load_ca_dir(ctx, ca_dir)) { success = false; }
  16185. }
  16186. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  16187. // Set CA list for client certificate request (CertificateRequest message)
  16188. if (ca_file && *ca_file) {
  16189. auto list = SSL_load_client_CA_file(ca_file);
  16190. if (list) { SSL_CTX_set_client_CA_list(static_cast<SSL_CTX *>(ctx), list); }
  16191. }
  16192. #endif
  16193. return success;
  16194. }
  16195. inline bool set_server_cert_pem(ctx_t ctx, const char *cert, const char *key,
  16196. const char *password) {
  16197. return set_client_cert_pem(ctx, cert, key, password);
  16198. }
  16199. inline bool set_server_cert_file(ctx_t ctx, const char *cert_path,
  16200. const char *key_path, const char *password) {
  16201. return set_client_cert_file(ctx, cert_path, key_path, password);
  16202. }
  16203. // PeerCert implementation
  16204. inline PeerCert::PeerCert() = default;
  16205. inline PeerCert::PeerCert(cert_t cert) : cert_(cert) {}
  16206. inline PeerCert::PeerCert(PeerCert &&other) noexcept : cert_(other.cert_) {
  16207. other.cert_ = nullptr;
  16208. }
  16209. inline PeerCert &PeerCert::operator=(PeerCert &&other) noexcept {
  16210. if (this != &other) {
  16211. if (cert_) { free_cert(cert_); }
  16212. cert_ = other.cert_;
  16213. other.cert_ = nullptr;
  16214. }
  16215. return *this;
  16216. }
  16217. inline PeerCert::~PeerCert() {
  16218. if (cert_) { free_cert(cert_); }
  16219. }
  16220. inline PeerCert::operator bool() const { return cert_ != nullptr; }
  16221. inline std::string PeerCert::subject_cn() const {
  16222. return cert_ ? get_cert_subject_cn(cert_) : std::string();
  16223. }
  16224. inline std::string PeerCert::issuer_name() const {
  16225. return cert_ ? get_cert_issuer_name(cert_) : std::string();
  16226. }
  16227. inline bool PeerCert::check_hostname(const char *hostname) const {
  16228. return cert_ ? verify_hostname(cert_, hostname) : false;
  16229. }
  16230. inline std::vector<SanEntry> PeerCert::sans() const {
  16231. std::vector<SanEntry> result;
  16232. if (cert_) { get_cert_sans(cert_, result); }
  16233. return result;
  16234. }
  16235. inline bool PeerCert::validity(time_t &not_before, time_t &not_after) const {
  16236. return cert_ ? get_cert_validity(cert_, not_before, not_after) : false;
  16237. }
  16238. inline std::string PeerCert::serial() const {
  16239. return cert_ ? get_cert_serial(cert_) : std::string();
  16240. }
  16241. // VerifyContext method implementations
  16242. inline std::string VerifyContext::subject_cn() const {
  16243. return cert ? get_cert_subject_cn(cert) : std::string();
  16244. }
  16245. inline std::string VerifyContext::issuer_name() const {
  16246. return cert ? get_cert_issuer_name(cert) : std::string();
  16247. }
  16248. inline bool VerifyContext::check_hostname(const char *hostname) const {
  16249. return cert ? verify_hostname(cert, hostname) : false;
  16250. }
  16251. inline std::vector<SanEntry> VerifyContext::sans() const {
  16252. std::vector<SanEntry> result;
  16253. if (cert) { get_cert_sans(cert, result); }
  16254. return result;
  16255. }
  16256. inline bool VerifyContext::validity(time_t &not_before,
  16257. time_t &not_after) const {
  16258. return cert ? get_cert_validity(cert, not_before, not_after) : false;
  16259. }
  16260. inline std::string VerifyContext::serial() const {
  16261. return cert ? get_cert_serial(cert) : std::string();
  16262. }
  16263. // TlsError static method implementation
  16264. inline std::string TlsError::verify_error_to_string(long error_code) {
  16265. return verify_error_string(error_code);
  16266. }
  16267. } // namespace tls
  16268. // Request::peer_cert() implementation
  16269. inline tls::PeerCert Request::peer_cert() const {
  16270. return tls::get_peer_cert_from_session(ssl);
  16271. }
  16272. // Request::sni() implementation
  16273. inline std::string Request::sni() const {
  16274. if (!ssl) { return std::string(); }
  16275. const char *s = tls::get_sni(ssl);
  16276. return s ? std::string(s) : std::string();
  16277. }
  16278. #endif // CPPHTTPLIB_SSL_ENABLED
  16279. /*
  16280. * Group 8: TLS abstraction layer - OpenSSL backend
  16281. */
  16282. /*
  16283. * OpenSSL Backend Implementation
  16284. */
  16285. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  16286. namespace tls {
  16287. namespace impl {
  16288. // Helper to map OpenSSL SSL_get_error to ErrorCode
  16289. inline ErrorCode map_ssl_error(int ssl_error, int &out_errno) {
  16290. switch (ssl_error) {
  16291. case SSL_ERROR_NONE: return ErrorCode::Success;
  16292. case SSL_ERROR_WANT_READ: return ErrorCode::WantRead;
  16293. case SSL_ERROR_WANT_WRITE: return ErrorCode::WantWrite;
  16294. case SSL_ERROR_ZERO_RETURN: return ErrorCode::PeerClosed;
  16295. case SSL_ERROR_SYSCALL: out_errno = errno; return ErrorCode::SyscallError;
  16296. case SSL_ERROR_SSL:
  16297. default: return ErrorCode::Fatal;
  16298. }
  16299. }
  16300. // Helper: Create client CA list from PEM string
  16301. // Returns a new STACK_OF(X509_NAME)* or nullptr on failure
  16302. // Caller takes ownership of returned list
  16303. inline STACK_OF(X509_NAME) *
  16304. create_client_ca_list_from_pem(const char *ca_pem) {
  16305. if (!ca_pem) { return nullptr; }
  16306. auto ca_list = sk_X509_NAME_new_null();
  16307. if (!ca_list) { return nullptr; }
  16308. BIO *bio = BIO_new_mem_buf(ca_pem, -1);
  16309. if (!bio) {
  16310. sk_X509_NAME_pop_free(ca_list, X509_NAME_free);
  16311. return nullptr;
  16312. }
  16313. X509 *cert = nullptr;
  16314. while ((cert = PEM_read_bio_X509(bio, nullptr, nullptr, nullptr)) !=
  16315. nullptr) {
  16316. const X509_NAME *name = X509_get_subject_name(cert);
  16317. if (name) {
  16318. sk_X509_NAME_push(ca_list, X509_NAME_dup(const_cast<X509_NAME *>(name)));
  16319. }
  16320. X509_free(cert);
  16321. }
  16322. BIO_free(bio);
  16323. return ca_list;
  16324. }
  16325. // OpenSSL verify callback wrapper
  16326. inline int openssl_verify_callback(int preverify_ok, X509_STORE_CTX *ctx) {
  16327. auto &callback = get_verify_callback();
  16328. if (!callback) { return preverify_ok; }
  16329. // Get SSL object from X509_STORE_CTX
  16330. auto ssl = static_cast<SSL *>(
  16331. X509_STORE_CTX_get_ex_data(ctx, SSL_get_ex_data_X509_STORE_CTX_idx()));
  16332. if (!ssl) { return preverify_ok; }
  16333. // Get current certificate and depth
  16334. auto cert = X509_STORE_CTX_get_current_cert(ctx);
  16335. int depth = X509_STORE_CTX_get_error_depth(ctx);
  16336. int error = X509_STORE_CTX_get_error(ctx);
  16337. // Build context
  16338. VerifyContext verify_ctx;
  16339. verify_ctx.session = static_cast<session_t>(ssl);
  16340. verify_ctx.cert = static_cast<cert_t>(cert);
  16341. verify_ctx.depth = depth;
  16342. verify_ctx.preverify_ok = (preverify_ok != 0);
  16343. verify_ctx.error_code = error;
  16344. verify_ctx.error_string =
  16345. (error != X509_V_OK) ? X509_verify_cert_error_string(error) : nullptr;
  16346. return callback(verify_ctx) ? 1 : 0;
  16347. }
  16348. // X509_STORE_get0_objects is deprecated since OpenSSL 4.0 because it is not
  16349. // thread-safe; X509_STORE_get1_objects (OpenSSL 3.3+) returns a snapshot
  16350. // that must be released with release_store_objects
  16351. #if !defined(OPENSSL_IS_BORINGSSL) && !defined(LIBRESSL_VERSION_NUMBER) && \
  16352. OPENSSL_VERSION_NUMBER >= 0x30300000L
  16353. #define CPPHTTPLIB_HAS_X509_STORE_GET1_OBJECTS
  16354. #endif
  16355. inline STACK_OF(X509_OBJECT) * get_store_objects(X509_STORE *store) {
  16356. #ifdef CPPHTTPLIB_HAS_X509_STORE_GET1_OBJECTS
  16357. return X509_STORE_get1_objects(store);
  16358. #else
  16359. return X509_STORE_get0_objects(store);
  16360. #endif
  16361. }
  16362. inline void release_store_objects(STACK_OF(X509_OBJECT) * objs) {
  16363. #ifdef CPPHTTPLIB_HAS_X509_STORE_GET1_OBJECTS
  16364. sk_X509_OBJECT_pop_free(objs, X509_OBJECT_free);
  16365. #else
  16366. (void)objs; // get0 variant returns an internal pointer; nothing to free
  16367. #endif
  16368. }
  16369. } // namespace impl
  16370. inline ctx_t create_client_context() {
  16371. SSL_CTX *ctx = SSL_CTX_new(TLS_client_method());
  16372. if (ctx) {
  16373. // Disable auto-retry to properly handle non-blocking I/O
  16374. SSL_CTX_clear_mode(ctx, SSL_MODE_AUTO_RETRY);
  16375. // Set minimum TLS version
  16376. SSL_CTX_set_min_proto_version(ctx, TLS1_2_VERSION);
  16377. }
  16378. return static_cast<ctx_t>(ctx);
  16379. }
  16380. inline void free_context(ctx_t ctx) {
  16381. if (ctx) { SSL_CTX_free(static_cast<SSL_CTX *>(ctx)); }
  16382. }
  16383. inline bool set_min_version(ctx_t ctx, Version version) {
  16384. if (!ctx) return false;
  16385. return SSL_CTX_set_min_proto_version(static_cast<SSL_CTX *>(ctx),
  16386. static_cast<int>(version)) == 1;
  16387. }
  16388. inline bool load_ca_pem(ctx_t ctx, const char *pem, size_t len) {
  16389. if (!ctx || !pem || len == 0) return false;
  16390. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16391. auto store = SSL_CTX_get_cert_store(ssl_ctx);
  16392. if (!store) return false;
  16393. auto bio = BIO_new_mem_buf(pem, static_cast<int>(len));
  16394. if (!bio) return false;
  16395. bool ok = true;
  16396. X509 *cert = nullptr;
  16397. while ((cert = PEM_read_bio_X509(bio, nullptr, nullptr, nullptr)) !=
  16398. nullptr) {
  16399. if (X509_STORE_add_cert(store, cert) != 1) {
  16400. // Ignore duplicate errors
  16401. auto err = ERR_peek_last_error();
  16402. if (ERR_GET_REASON(err) != X509_R_CERT_ALREADY_IN_HASH_TABLE) {
  16403. ok = false;
  16404. }
  16405. }
  16406. X509_free(cert);
  16407. if (!ok) break;
  16408. }
  16409. BIO_free(bio);
  16410. // Clear any "no more certificates" errors
  16411. ERR_clear_error();
  16412. return ok;
  16413. }
  16414. inline bool load_ca_file(ctx_t ctx, const char *file_path) {
  16415. if (!ctx || !file_path) return false;
  16416. return SSL_CTX_load_verify_locations(static_cast<SSL_CTX *>(ctx), file_path,
  16417. nullptr) == 1;
  16418. }
  16419. inline bool load_ca_dir(ctx_t ctx, const char *dir_path) {
  16420. if (!ctx || !dir_path) return false;
  16421. return SSL_CTX_load_verify_locations(static_cast<SSL_CTX *>(ctx), nullptr,
  16422. dir_path) == 1;
  16423. }
  16424. inline bool load_system_certs(ctx_t ctx) {
  16425. if (!ctx) return false;
  16426. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16427. #ifdef _WIN32
  16428. // Windows: Load from system certificate store (ROOT and CA)
  16429. auto store = SSL_CTX_get_cert_store(ssl_ctx);
  16430. if (!store) return false;
  16431. bool loaded_any = false;
  16432. static const wchar_t *store_names[] = {L"ROOT", L"CA"};
  16433. for (auto store_name : store_names) {
  16434. auto hStore = CertOpenSystemStoreW(NULL, store_name);
  16435. if (!hStore) continue;
  16436. PCCERT_CONTEXT pContext = nullptr;
  16437. while ((pContext = CertEnumCertificatesInStore(hStore, pContext)) !=
  16438. nullptr) {
  16439. const unsigned char *data = pContext->pbCertEncoded;
  16440. auto x509 = d2i_X509(nullptr, &data, pContext->cbCertEncoded);
  16441. if (x509) {
  16442. if (X509_STORE_add_cert(store, x509) == 1) { loaded_any = true; }
  16443. X509_free(x509);
  16444. }
  16445. }
  16446. CertCloseStore(hStore, 0);
  16447. }
  16448. return loaded_any;
  16449. #elif defined(__APPLE__)
  16450. #ifdef CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN
  16451. // macOS: Load from Keychain
  16452. auto store = SSL_CTX_get_cert_store(ssl_ctx);
  16453. if (!store) return false;
  16454. bool loaded_any = false;
  16455. const SecTrustSettingsDomain domains[] = {
  16456. kSecTrustSettingsDomainSystem,
  16457. kSecTrustSettingsDomainAdmin,
  16458. kSecTrustSettingsDomainUser,
  16459. };
  16460. for (auto domain : domains) {
  16461. CFArrayRef certs = nullptr;
  16462. if (SecTrustSettingsCopyCertificates(domain, &certs) != errSecSuccess ||
  16463. !certs) {
  16464. if (certs) CFRelease(certs);
  16465. continue;
  16466. }
  16467. auto count = CFArrayGetCount(certs);
  16468. for (CFIndex i = 0; i < count; i++) {
  16469. auto cert = reinterpret_cast<SecCertificateRef>(
  16470. const_cast<void *>(CFArrayGetValueAtIndex(certs, i)));
  16471. CFDataRef der = SecCertificateCopyData(cert);
  16472. if (der) {
  16473. const unsigned char *data = CFDataGetBytePtr(der);
  16474. auto x509 = d2i_X509(nullptr, &data, CFDataGetLength(der));
  16475. if (x509) {
  16476. if (X509_STORE_add_cert(store, x509) == 1) { loaded_any = true; }
  16477. X509_free(x509);
  16478. }
  16479. CFRelease(der);
  16480. }
  16481. }
  16482. CFRelease(certs);
  16483. }
  16484. return loaded_any || SSL_CTX_set_default_verify_paths(ssl_ctx) == 1;
  16485. #else
  16486. return SSL_CTX_set_default_verify_paths(ssl_ctx) == 1;
  16487. #endif
  16488. #else
  16489. // Other Unix: use default verify paths
  16490. return SSL_CTX_set_default_verify_paths(ssl_ctx) == 1;
  16491. #endif
  16492. }
  16493. inline bool set_client_cert_pem(ctx_t ctx, const char *cert, const char *key,
  16494. const char *password) {
  16495. if (!ctx || !cert || !key) return false;
  16496. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16497. // Load certificate
  16498. auto cert_bio = BIO_new_mem_buf(cert, -1);
  16499. if (!cert_bio) return false;
  16500. auto x509 = PEM_read_bio_X509(cert_bio, nullptr, nullptr, nullptr);
  16501. BIO_free(cert_bio);
  16502. if (!x509) return false;
  16503. auto cert_ok = SSL_CTX_use_certificate(ssl_ctx, x509) == 1;
  16504. X509_free(x509);
  16505. if (!cert_ok) return false;
  16506. // Load private key
  16507. auto key_bio = BIO_new_mem_buf(key, -1);
  16508. if (!key_bio) return false;
  16509. auto pkey = PEM_read_bio_PrivateKey(key_bio, nullptr, nullptr,
  16510. password ? const_cast<char *>(password)
  16511. : nullptr);
  16512. BIO_free(key_bio);
  16513. if (!pkey) return false;
  16514. auto key_ok = SSL_CTX_use_PrivateKey(ssl_ctx, pkey) == 1;
  16515. EVP_PKEY_free(pkey);
  16516. return key_ok && SSL_CTX_check_private_key(ssl_ctx) == 1;
  16517. }
  16518. inline bool set_client_cert_file(ctx_t ctx, const char *cert_path,
  16519. const char *key_path, const char *password) {
  16520. if (!ctx || !cert_path || !key_path) return false;
  16521. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16522. if (password && password[0] != '\0') {
  16523. SSL_CTX_set_default_passwd_cb_userdata(
  16524. ssl_ctx, reinterpret_cast<void *>(const_cast<char *>(password)));
  16525. }
  16526. return SSL_CTX_use_certificate_chain_file(ssl_ctx, cert_path) == 1 &&
  16527. SSL_CTX_use_PrivateKey_file(ssl_ctx, key_path, SSL_FILETYPE_PEM) == 1;
  16528. }
  16529. inline ctx_t create_server_context() {
  16530. SSL_CTX *ctx = SSL_CTX_new(TLS_server_method());
  16531. if (ctx) {
  16532. SSL_CTX_set_options(ctx, SSL_OP_NO_COMPRESSION |
  16533. SSL_OP_NO_SESSION_RESUMPTION_ON_RENEGOTIATION);
  16534. SSL_CTX_set_min_proto_version(ctx, TLS1_2_VERSION);
  16535. }
  16536. return static_cast<ctx_t>(ctx);
  16537. }
  16538. inline void set_verify_client(ctx_t ctx, bool require) {
  16539. if (!ctx) return;
  16540. SSL_CTX_set_verify(static_cast<SSL_CTX *>(ctx),
  16541. require
  16542. ? (SSL_VERIFY_PEER | SSL_VERIFY_FAIL_IF_NO_PEER_CERT)
  16543. : SSL_VERIFY_NONE,
  16544. nullptr);
  16545. }
  16546. inline session_t create_session(ctx_t ctx, socket_t sock) {
  16547. if (!ctx || sock == INVALID_SOCKET) return nullptr;
  16548. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16549. SSL *ssl = SSL_new(ssl_ctx);
  16550. if (!ssl) return nullptr;
  16551. // Disable auto-retry for proper non-blocking I/O handling
  16552. SSL_clear_mode(ssl, SSL_MODE_AUTO_RETRY);
  16553. auto bio = BIO_new_socket(static_cast<int>(sock), BIO_NOCLOSE);
  16554. if (!bio) {
  16555. SSL_free(ssl);
  16556. return nullptr;
  16557. }
  16558. SSL_set_bio(ssl, bio, bio);
  16559. return static_cast<session_t>(ssl);
  16560. }
  16561. inline void free_session(session_t session) {
  16562. if (session) { SSL_free(static_cast<SSL *>(session)); }
  16563. }
  16564. inline bool set_sni(session_t session, const char *hostname,
  16565. bool /*verify_hostname*/) {
  16566. if (!session || !hostname) return false;
  16567. auto ssl = static_cast<SSL *>(session);
  16568. // Set SNI (Server Name Indication) only - does not enable verification.
  16569. // OpenSSL never binds identity checking to SNI (that happens post-
  16570. // handshake in setup_client_tls_session()), so verify_hostname is unused.
  16571. #if defined(OPENSSL_IS_BORINGSSL)
  16572. return SSL_set_tlsext_host_name(ssl, hostname) == 1;
  16573. #else
  16574. // Direct call instead of macro to suppress -Wold-style-cast warning
  16575. return SSL_ctrl(ssl, SSL_CTRL_SET_TLSEXT_HOSTNAME, TLSEXT_NAMETYPE_host_name,
  16576. static_cast<void *>(const_cast<char *>(hostname))) == 1;
  16577. #endif
  16578. }
  16579. inline TlsError connect(session_t session) {
  16580. if (!session) { return TlsError(); }
  16581. auto ssl = static_cast<SSL *>(session);
  16582. auto ret = SSL_connect(ssl);
  16583. TlsError err;
  16584. if (ret == 1) {
  16585. err.code = ErrorCode::Success;
  16586. } else {
  16587. auto ssl_err = SSL_get_error(ssl, ret);
  16588. err.code = impl::map_ssl_error(ssl_err, err.sys_errno);
  16589. err.backend_code = ERR_get_error();
  16590. }
  16591. return err;
  16592. }
  16593. inline TlsError accept(session_t session) {
  16594. if (!session) { return TlsError(); }
  16595. auto ssl = static_cast<SSL *>(session);
  16596. auto ret = SSL_accept(ssl);
  16597. TlsError err;
  16598. if (ret == 1) {
  16599. err.code = ErrorCode::Success;
  16600. } else {
  16601. auto ssl_err = SSL_get_error(ssl, ret);
  16602. err.code = impl::map_ssl_error(ssl_err, err.sys_errno);
  16603. err.backend_code = ERR_get_error();
  16604. }
  16605. return err;
  16606. }
  16607. inline bool connect_nonblocking(session_t session, socket_t sock,
  16608. time_t timeout_sec, time_t timeout_usec,
  16609. TlsError *err) {
  16610. if (!session) {
  16611. if (err) { err->code = ErrorCode::Fatal; }
  16612. return false;
  16613. }
  16614. auto ssl = static_cast<SSL *>(session);
  16615. auto bio = SSL_get_rbio(ssl);
  16616. // Set non-blocking mode for handshake
  16617. detail::set_nonblocking(sock, true);
  16618. if (bio) { BIO_set_nbio(bio, 1); }
  16619. auto cleanup = detail::scope_exit([&]() {
  16620. // Restore blocking mode after handshake
  16621. if (bio) { BIO_set_nbio(bio, 0); }
  16622. detail::set_nonblocking(sock, false);
  16623. });
  16624. auto res = 0;
  16625. while ((res = SSL_connect(ssl)) != 1) {
  16626. auto ssl_err = SSL_get_error(ssl, res);
  16627. switch (ssl_err) {
  16628. case SSL_ERROR_WANT_READ:
  16629. if (detail::select_read(sock, timeout_sec, timeout_usec) > 0) {
  16630. continue;
  16631. }
  16632. break;
  16633. case SSL_ERROR_WANT_WRITE:
  16634. if (detail::select_write(sock, timeout_sec, timeout_usec) > 0) {
  16635. continue;
  16636. }
  16637. break;
  16638. default: break;
  16639. }
  16640. if (err) {
  16641. err->code = impl::map_ssl_error(ssl_err, err->sys_errno);
  16642. err->backend_code = ERR_get_error();
  16643. }
  16644. return false;
  16645. }
  16646. if (err) { err->code = ErrorCode::Success; }
  16647. return true;
  16648. }
  16649. inline bool accept_nonblocking(session_t session, socket_t sock,
  16650. time_t timeout_sec, time_t timeout_usec,
  16651. TlsError *err) {
  16652. if (!session) {
  16653. if (err) { err->code = ErrorCode::Fatal; }
  16654. return false;
  16655. }
  16656. auto ssl = static_cast<SSL *>(session);
  16657. auto bio = SSL_get_rbio(ssl);
  16658. // Set non-blocking mode for handshake
  16659. detail::set_nonblocking(sock, true);
  16660. if (bio) { BIO_set_nbio(bio, 1); }
  16661. auto cleanup = detail::scope_exit([&]() {
  16662. // Restore blocking mode after handshake
  16663. if (bio) { BIO_set_nbio(bio, 0); }
  16664. detail::set_nonblocking(sock, false);
  16665. });
  16666. auto res = 0;
  16667. while ((res = SSL_accept(ssl)) != 1) {
  16668. auto ssl_err = SSL_get_error(ssl, res);
  16669. switch (ssl_err) {
  16670. case SSL_ERROR_WANT_READ:
  16671. if (detail::select_read(sock, timeout_sec, timeout_usec) > 0) {
  16672. continue;
  16673. }
  16674. break;
  16675. case SSL_ERROR_WANT_WRITE:
  16676. if (detail::select_write(sock, timeout_sec, timeout_usec) > 0) {
  16677. continue;
  16678. }
  16679. break;
  16680. default: break;
  16681. }
  16682. if (err) {
  16683. err->code = impl::map_ssl_error(ssl_err, err->sys_errno);
  16684. err->backend_code = ERR_get_error();
  16685. }
  16686. return false;
  16687. }
  16688. if (err) { err->code = ErrorCode::Success; }
  16689. return true;
  16690. }
  16691. inline ssize_t read(session_t session, void *buf, size_t len, TlsError &err) {
  16692. if (!session || !buf) {
  16693. err.code = ErrorCode::Fatal;
  16694. return -1;
  16695. }
  16696. auto ssl = static_cast<SSL *>(session);
  16697. constexpr auto max_len =
  16698. static_cast<size_t>((std::numeric_limits<int>::max)());
  16699. if (len > max_len) { len = max_len; }
  16700. auto ret = SSL_read(ssl, buf, static_cast<int>(len));
  16701. if (ret > 0) {
  16702. err.code = ErrorCode::Success;
  16703. return ret;
  16704. }
  16705. auto ssl_err = SSL_get_error(ssl, ret);
  16706. err.code = impl::map_ssl_error(ssl_err, err.sys_errno);
  16707. if (err.code == ErrorCode::PeerClosed) {
  16708. return 0;
  16709. } // Gracefully handle the peer closed state.
  16710. if (err.code == ErrorCode::Fatal) { err.backend_code = ERR_get_error(); }
  16711. return -1;
  16712. }
  16713. inline ssize_t write(session_t session, const void *buf, size_t len,
  16714. TlsError &err) {
  16715. if (!session || !buf) {
  16716. err.code = ErrorCode::Fatal;
  16717. return -1;
  16718. }
  16719. auto ssl = static_cast<SSL *>(session);
  16720. auto ret = SSL_write(ssl, buf, static_cast<int>(len));
  16721. if (ret > 0) {
  16722. err.code = ErrorCode::Success;
  16723. return ret;
  16724. }
  16725. auto ssl_err = SSL_get_error(ssl, ret);
  16726. err.code = impl::map_ssl_error(ssl_err, err.sys_errno);
  16727. if (err.code == ErrorCode::Fatal) { err.backend_code = ERR_get_error(); }
  16728. return -1;
  16729. }
  16730. inline int pending(const_session_t session) {
  16731. if (!session) return 0;
  16732. return SSL_pending(static_cast<SSL *>(const_cast<void *>(session)));
  16733. }
  16734. inline void shutdown(session_t session, bool graceful) {
  16735. if (!session) return;
  16736. auto ssl = static_cast<SSL *>(session);
  16737. if (graceful) {
  16738. // Send close_notify without waiting for the peer's. The connection is
  16739. // closed right after this, so a unidirectional shutdown is enough, and an
  16740. // idle peer that never answers would otherwise hold this thread until the
  16741. // read timeout. The other backends do not wait either.
  16742. SSL_shutdown(ssl);
  16743. }
  16744. }
  16745. inline bool is_peer_closed(session_t session, socket_t sock) {
  16746. if (!session) return true;
  16747. // Temporarily set socket to non-blocking to avoid blocking on SSL_peek
  16748. detail::set_nonblocking(sock, true);
  16749. auto se = detail::scope_exit([&]() { detail::set_nonblocking(sock, false); });
  16750. auto ssl = static_cast<SSL *>(session);
  16751. char buf;
  16752. auto ret = SSL_peek(ssl, &buf, 1);
  16753. if (ret > 0) return false;
  16754. auto err = SSL_get_error(ssl, ret);
  16755. return err == SSL_ERROR_ZERO_RETURN;
  16756. }
  16757. inline cert_t get_peer_cert(const_session_t session) {
  16758. if (!session) return nullptr;
  16759. return static_cast<cert_t>(SSL_get1_peer_certificate(
  16760. static_cast<SSL *>(const_cast<void *>(session))));
  16761. }
  16762. inline size_t get_peer_certs(const_session_t session,
  16763. std::vector<cert_t> &certs) {
  16764. certs.clear();
  16765. if (!session) { return 0; }
  16766. auto ssl = static_cast<const SSL *>(session);
  16767. // On the server side, the chain leaves out the peer's own certificate
  16768. if (SSL_is_server(ssl)) {
  16769. if (auto leaf = get_peer_cert(session)) { certs.push_back(leaf); }
  16770. }
  16771. auto sk = SSL_get_peer_cert_chain(ssl);
  16772. for (int i = 0; sk && i < sk_X509_num(sk); i++) {
  16773. auto x509 = sk_X509_value(sk, i);
  16774. X509_up_ref(x509);
  16775. certs.push_back(static_cast<cert_t>(x509));
  16776. }
  16777. return certs.size();
  16778. }
  16779. inline void free_cert(cert_t cert) {
  16780. if (cert) { X509_free(static_cast<X509 *>(cert)); }
  16781. }
  16782. inline bool verify_hostname(cert_t cert, const char *hostname) {
  16783. if (!cert || !hostname) return false;
  16784. auto x509 = static_cast<X509 *>(cert);
  16785. // Use X509_check_ip_asc for IP addresses, X509_check_host for DNS names
  16786. if (detail::is_ip_address(hostname)) {
  16787. return X509_check_ip_asc(x509, hostname, 0) == 1;
  16788. }
  16789. return X509_check_host(x509, hostname, strlen(hostname), 0, nullptr) == 1;
  16790. }
  16791. inline uint64_t hostname_mismatch_code() {
  16792. return static_cast<uint64_t>(X509_V_ERR_HOSTNAME_MISMATCH);
  16793. }
  16794. inline long get_verify_result(const_session_t session) {
  16795. if (!session) return X509_V_ERR_UNSPECIFIED;
  16796. return SSL_get_verify_result(static_cast<SSL *>(const_cast<void *>(session)));
  16797. }
  16798. inline std::string get_cert_subject_cn(cert_t cert) {
  16799. if (!cert) return "";
  16800. auto x509 = static_cast<X509 *>(cert);
  16801. auto subject_name = X509_get_subject_name(x509);
  16802. if (!subject_name) return "";
  16803. // X509_NAME_get_text_by_NID is deprecated since OpenSSL 4.0
  16804. auto idx = X509_NAME_get_index_by_NID(subject_name, NID_commonName, -1);
  16805. if (idx < 0) return "";
  16806. auto entry = X509_NAME_get_entry(subject_name, idx);
  16807. if (!entry) return "";
  16808. auto data = X509_NAME_ENTRY_get_data(entry);
  16809. if (!data) return "";
  16810. return std::string(
  16811. reinterpret_cast<const char *>(ASN1_STRING_get0_data(data)),
  16812. static_cast<size_t>(ASN1_STRING_length(data)));
  16813. }
  16814. inline std::string get_cert_issuer_name(cert_t cert) {
  16815. if (!cert) return "";
  16816. auto x509 = static_cast<X509 *>(cert);
  16817. auto issuer_name = X509_get_issuer_name(x509);
  16818. if (!issuer_name) return "";
  16819. char buf[256];
  16820. X509_NAME_oneline(issuer_name, buf, sizeof(buf));
  16821. return std::string(buf);
  16822. }
  16823. inline bool get_cert_sans(cert_t cert, std::vector<SanEntry> &sans) {
  16824. sans.clear();
  16825. if (!cert) return false;
  16826. auto x509 = static_cast<X509 *>(cert);
  16827. auto names = static_cast<GENERAL_NAMES *>(
  16828. X509_get_ext_d2i(x509, NID_subject_alt_name, nullptr, nullptr));
  16829. if (!names) return true; // No SANs is valid
  16830. auto count = sk_GENERAL_NAME_num(names);
  16831. for (decltype(count) i = 0; i < count; i++) {
  16832. auto gen = sk_GENERAL_NAME_value(names, i);
  16833. if (!gen) continue;
  16834. SanEntry entry;
  16835. switch (gen->type) {
  16836. case GEN_DNS:
  16837. entry.type = SanType::DNS;
  16838. if (gen->d.dNSName) {
  16839. entry.value = std::string(
  16840. reinterpret_cast<const char *>(
  16841. ASN1_STRING_get0_data(gen->d.dNSName)),
  16842. static_cast<size_t>(ASN1_STRING_length(gen->d.dNSName)));
  16843. }
  16844. break;
  16845. case GEN_IPADD:
  16846. entry.type = SanType::IP;
  16847. if (gen->d.iPAddress) {
  16848. auto data = ASN1_STRING_get0_data(gen->d.iPAddress);
  16849. auto len = ASN1_STRING_length(gen->d.iPAddress);
  16850. if (len == 4) {
  16851. // IPv4
  16852. char buf[INET_ADDRSTRLEN];
  16853. inet_ntop(AF_INET, data, buf, sizeof(buf));
  16854. entry.value = buf;
  16855. } else if (len == 16) {
  16856. // IPv6
  16857. char buf[INET6_ADDRSTRLEN];
  16858. inet_ntop(AF_INET6, data, buf, sizeof(buf));
  16859. entry.value = buf;
  16860. }
  16861. }
  16862. break;
  16863. case GEN_EMAIL:
  16864. entry.type = SanType::EMAIL;
  16865. if (gen->d.rfc822Name) {
  16866. entry.value = std::string(
  16867. reinterpret_cast<const char *>(
  16868. ASN1_STRING_get0_data(gen->d.rfc822Name)),
  16869. static_cast<size_t>(ASN1_STRING_length(gen->d.rfc822Name)));
  16870. }
  16871. break;
  16872. case GEN_URI:
  16873. entry.type = SanType::URI;
  16874. if (gen->d.uniformResourceIdentifier) {
  16875. entry.value = std::string(
  16876. reinterpret_cast<const char *>(
  16877. ASN1_STRING_get0_data(gen->d.uniformResourceIdentifier)),
  16878. static_cast<size_t>(
  16879. ASN1_STRING_length(gen->d.uniformResourceIdentifier)));
  16880. }
  16881. break;
  16882. default: entry.type = SanType::OTHER; break;
  16883. }
  16884. if (!entry.value.empty()) { sans.push_back(std::move(entry)); }
  16885. }
  16886. GENERAL_NAMES_free(names);
  16887. return true;
  16888. }
  16889. inline bool get_cert_validity(cert_t cert, time_t &not_before,
  16890. time_t &not_after) {
  16891. if (!cert) return false;
  16892. auto x509 = static_cast<X509 *>(cert);
  16893. auto nb = X509_get0_notBefore(x509);
  16894. auto na = X509_get0_notAfter(x509);
  16895. if (!nb || !na) return false;
  16896. ASN1_TIME *epoch = ASN1_TIME_new();
  16897. if (!epoch) return false;
  16898. auto se = detail::scope_exit([&] { ASN1_TIME_free(epoch); });
  16899. if (!ASN1_TIME_set(epoch, 0)) return false;
  16900. int pday, psec;
  16901. if (!ASN1_TIME_diff(&pday, &psec, epoch, nb)) return false;
  16902. not_before = 86400 * (time_t)pday + psec;
  16903. if (!ASN1_TIME_diff(&pday, &psec, epoch, na)) return false;
  16904. not_after = 86400 * (time_t)pday + psec;
  16905. return true;
  16906. }
  16907. inline std::string get_cert_serial(cert_t cert) {
  16908. if (!cert) return "";
  16909. auto x509 = static_cast<X509 *>(cert);
  16910. auto serial = X509_get_serialNumber(x509);
  16911. if (!serial) return "";
  16912. auto bn = ASN1_INTEGER_to_BN(serial, nullptr);
  16913. if (!bn) return "";
  16914. auto hex = BN_bn2hex(bn);
  16915. BN_free(bn);
  16916. if (!hex) return "";
  16917. std::string result(hex);
  16918. OPENSSL_free(hex);
  16919. return result;
  16920. }
  16921. inline bool get_cert_der(cert_t cert, std::vector<unsigned char> &der) {
  16922. if (!cert) return false;
  16923. auto x509 = static_cast<X509 *>(cert);
  16924. auto len = i2d_X509(x509, nullptr);
  16925. if (len < 0) return false;
  16926. der.resize(static_cast<size_t>(len));
  16927. auto p = der.data();
  16928. i2d_X509(x509, &p);
  16929. return true;
  16930. }
  16931. inline const char *get_sni(const_session_t session) {
  16932. if (!session) return nullptr;
  16933. auto ssl = static_cast<SSL *>(const_cast<void *>(session));
  16934. return SSL_get_servername(ssl, TLSEXT_NAMETYPE_host_name);
  16935. }
  16936. inline uint64_t peek_error() { return ERR_peek_last_error(); }
  16937. inline uint64_t get_error() { return ERR_get_error(); }
  16938. inline std::string error_string(uint64_t code) {
  16939. char buf[256];
  16940. ERR_error_string_n(static_cast<unsigned long>(code), buf, sizeof(buf));
  16941. return std::string(buf);
  16942. }
  16943. inline ca_store_t create_ca_store(const char *pem, size_t len) {
  16944. auto mem = BIO_new_mem_buf(pem, static_cast<int>(len));
  16945. if (!mem) { return nullptr; }
  16946. auto mem_guard = detail::scope_exit([&] { BIO_free_all(mem); });
  16947. auto inf = PEM_X509_INFO_read_bio(mem, nullptr, nullptr, nullptr);
  16948. if (!inf) { return nullptr; }
  16949. auto store = X509_STORE_new();
  16950. if (store) {
  16951. for (auto i = 0; i < static_cast<int>(sk_X509_INFO_num(inf)); i++) {
  16952. auto itmp = sk_X509_INFO_value(inf, i);
  16953. if (!itmp) { continue; }
  16954. if (itmp->x509) { X509_STORE_add_cert(store, itmp->x509); }
  16955. if (itmp->crl) { X509_STORE_add_crl(store, itmp->crl); }
  16956. }
  16957. }
  16958. sk_X509_INFO_pop_free(inf, X509_INFO_free);
  16959. return static_cast<ca_store_t>(store);
  16960. }
  16961. inline void free_ca_store(ca_store_t store) {
  16962. if (store) { X509_STORE_free(static_cast<X509_STORE *>(store)); }
  16963. }
  16964. inline bool set_ca_store(ctx_t ctx, ca_store_t store) {
  16965. if (!ctx || !store) { return false; }
  16966. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16967. auto x509_store = static_cast<X509_STORE *>(store);
  16968. // Check if same store is already set
  16969. if (SSL_CTX_get_cert_store(ssl_ctx) == x509_store) { return true; }
  16970. // SSL_CTX_set_cert_store takes ownership and frees the old store
  16971. SSL_CTX_set_cert_store(ssl_ctx, x509_store);
  16972. return true;
  16973. }
  16974. inline size_t get_ca_certs(ctx_t ctx, std::vector<cert_t> &certs) {
  16975. certs.clear();
  16976. if (!ctx) { return 0; }
  16977. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  16978. auto store = SSL_CTX_get_cert_store(ssl_ctx);
  16979. if (!store) { return 0; }
  16980. auto objs = impl::get_store_objects(store);
  16981. if (!objs) { return 0; }
  16982. auto se = detail::scope_exit([&] { impl::release_store_objects(objs); });
  16983. auto count = sk_X509_OBJECT_num(objs);
  16984. for (decltype(count) i = 0; i < count; i++) {
  16985. auto obj = sk_X509_OBJECT_value(objs, i);
  16986. if (!obj) { continue; }
  16987. if (X509_OBJECT_get_type(obj) == X509_LU_X509) {
  16988. auto x509 = X509_OBJECT_get0_X509(obj);
  16989. if (x509) {
  16990. // Increment reference count so caller can free it
  16991. X509_up_ref(x509);
  16992. certs.push_back(static_cast<cert_t>(x509));
  16993. }
  16994. }
  16995. }
  16996. return certs.size();
  16997. }
  16998. inline std::vector<std::string> get_ca_names(ctx_t ctx) {
  16999. std::vector<std::string> names;
  17000. if (!ctx) { return names; }
  17001. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  17002. auto store = SSL_CTX_get_cert_store(ssl_ctx);
  17003. if (!store) { return names; }
  17004. auto objs = impl::get_store_objects(store);
  17005. if (!objs) { return names; }
  17006. auto se = detail::scope_exit([&] { impl::release_store_objects(objs); });
  17007. auto count = sk_X509_OBJECT_num(objs);
  17008. for (decltype(count) i = 0; i < count; i++) {
  17009. auto obj = sk_X509_OBJECT_value(objs, i);
  17010. if (!obj) { continue; }
  17011. if (X509_OBJECT_get_type(obj) == X509_LU_X509) {
  17012. auto x509 = X509_OBJECT_get0_X509(obj);
  17013. if (x509) {
  17014. auto subject = X509_get_subject_name(x509);
  17015. if (subject) {
  17016. char buf[512];
  17017. X509_NAME_oneline(subject, buf, sizeof(buf));
  17018. names.push_back(buf);
  17019. }
  17020. }
  17021. }
  17022. }
  17023. return names;
  17024. }
  17025. inline bool update_server_cert(ctx_t ctx, const char *cert_pem,
  17026. const char *key_pem, const char *password) {
  17027. if (!ctx || !cert_pem || !key_pem) { return false; }
  17028. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  17029. // Load certificate from PEM
  17030. auto cert_bio = BIO_new_mem_buf(cert_pem, -1);
  17031. if (!cert_bio) { return false; }
  17032. auto cert = PEM_read_bio_X509(cert_bio, nullptr, nullptr, nullptr);
  17033. BIO_free(cert_bio);
  17034. if (!cert) { return false; }
  17035. // Load private key from PEM
  17036. auto key_bio = BIO_new_mem_buf(key_pem, -1);
  17037. if (!key_bio) {
  17038. X509_free(cert);
  17039. return false;
  17040. }
  17041. auto key = PEM_read_bio_PrivateKey(key_bio, nullptr, nullptr,
  17042. password ? const_cast<char *>(password)
  17043. : nullptr);
  17044. BIO_free(key_bio);
  17045. if (!key) {
  17046. X509_free(cert);
  17047. return false;
  17048. }
  17049. // Update certificate and key
  17050. auto ret = SSL_CTX_use_certificate(ssl_ctx, cert) == 1 &&
  17051. SSL_CTX_use_PrivateKey(ssl_ctx, key) == 1;
  17052. X509_free(cert);
  17053. EVP_PKEY_free(key);
  17054. return ret;
  17055. }
  17056. inline bool update_server_client_ca(ctx_t ctx, const char *ca_pem) {
  17057. if (!ctx || !ca_pem) { return false; }
  17058. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  17059. // Create new X509_STORE from PEM
  17060. auto store = create_ca_store(ca_pem, strlen(ca_pem));
  17061. if (!store) { return false; }
  17062. // SSL_CTX_set_cert_store takes ownership
  17063. SSL_CTX_set_cert_store(ssl_ctx, static_cast<X509_STORE *>(store));
  17064. // Set client CA list for client certificate request
  17065. auto ca_list = impl::create_client_ca_list_from_pem(ca_pem);
  17066. if (ca_list) {
  17067. // SSL_CTX_set_client_CA_list takes ownership of ca_list
  17068. SSL_CTX_set_client_CA_list(ssl_ctx, ca_list);
  17069. }
  17070. return true;
  17071. }
  17072. inline bool set_verify_callback(ctx_t ctx, VerifyCallback callback) {
  17073. if (!ctx) { return false; }
  17074. auto ssl_ctx = static_cast<SSL_CTX *>(ctx);
  17075. impl::get_verify_callback() = std::move(callback);
  17076. if (impl::get_verify_callback()) {
  17077. SSL_CTX_set_verify(ssl_ctx, SSL_VERIFY_PEER, impl::openssl_verify_callback);
  17078. } else {
  17079. SSL_CTX_set_verify(ssl_ctx, SSL_VERIFY_PEER, nullptr);
  17080. }
  17081. return true;
  17082. }
  17083. inline long get_verify_error(const_session_t session) {
  17084. if (!session) { return -1; }
  17085. auto ssl = static_cast<SSL *>(const_cast<void *>(session));
  17086. return SSL_get_verify_result(ssl);
  17087. }
  17088. inline std::string verify_error_string(long error_code) {
  17089. if (error_code == X509_V_OK) { return ""; }
  17090. const char *str = X509_verify_cert_error_string(static_cast<int>(error_code));
  17091. return str ? str : "unknown error";
  17092. }
  17093. } // namespace tls
  17094. #endif // CPPHTTPLIB_OPENSSL_SUPPORT
  17095. /*
  17096. * Group 9: TLS abstraction layer - Mbed TLS backend
  17097. */
  17098. /*
  17099. * Mbed TLS Backend Implementation
  17100. */
  17101. #ifdef CPPHTTPLIB_MBEDTLS_SUPPORT
  17102. namespace tls {
  17103. namespace impl {
  17104. // Mbed TLS session wrapper
  17105. struct MbedTlsSession {
  17106. mbedtls_ssl_context ssl;
  17107. socket_t sock = INVALID_SOCKET;
  17108. std::string hostname; // For client: set via set_sni
  17109. std::string sni_hostname; // For server: received from client via SNI callback
  17110. // Mbed TLS has no SSL_peek() equivalent, so is_peer_closed() must probe with
  17111. // a real 1-byte mbedtls_ssl_read(). If that probe lands on application data
  17112. // (e.g. a response that arrived while this side was still in its post-write
  17113. // check), the byte is pushed back here and served by the next read().
  17114. unsigned char peeked_byte = 0;
  17115. bool has_peeked_byte = false;
  17116. // Set by set_sni() when the caller disabled hostname verification, so the
  17117. // verify callback can clear the CN/SAN mismatch flag while still enforcing
  17118. // the rest of the chain (Mbed TLS ties SNI and identity checking together;
  17119. // OpenSSL and wolfSSL keep them independent).
  17120. bool suppress_hostname_mismatch = false;
  17121. // Copied from the owning MbedTlsContext at creation. set_sni() uses this to
  17122. // decide which verify callback to install when hostname verification is
  17123. // disabled: mbedtls_verify_callback() when a user callback is genuinely
  17124. // wired for this context, or a self-contained one otherwise, so a session
  17125. // that never opted into a callback never consults the process-wide
  17126. // set_verify_callback() slot (which some other, unrelated client may have
  17127. // populated).
  17128. bool has_verify_callback = false;
  17129. MbedTlsSession() { mbedtls_ssl_init(&ssl); }
  17130. ~MbedTlsSession() { mbedtls_ssl_free(&ssl); }
  17131. MbedTlsSession(const MbedTlsSession &) = delete;
  17132. MbedTlsSession &operator=(const MbedTlsSession &) = delete;
  17133. };
  17134. // Thread-local error code accessor for Mbed TLS (since it doesn't have an error
  17135. // queue)
  17136. inline int &mbedtls_last_error() {
  17137. static thread_local int err = 0;
  17138. return err;
  17139. }
  17140. // Helper to map Mbed TLS error to ErrorCode
  17141. inline ErrorCode map_mbedtls_error(int ret, int &out_errno,
  17142. uint32_t verify_flags) {
  17143. if (ret == 0) { return ErrorCode::Success; }
  17144. if (ret == MBEDTLS_ERR_SSL_WANT_READ) { return ErrorCode::WantRead; }
  17145. if (ret == MBEDTLS_ERR_SSL_WANT_WRITE) { return ErrorCode::WantWrite; }
  17146. if (ret == MBEDTLS_ERR_SSL_PEER_CLOSE_NOTIFY) {
  17147. return ErrorCode::PeerClosed;
  17148. }
  17149. if (ret == MBEDTLS_ERR_NET_CONN_RESET || ret == MBEDTLS_ERR_NET_SEND_FAILED ||
  17150. ret == MBEDTLS_ERR_NET_RECV_FAILED) {
  17151. out_errno = errno;
  17152. return ErrorCode::SyscallError;
  17153. }
  17154. if (ret == MBEDTLS_ERR_X509_CERT_VERIFY_FAILED) {
  17155. // Unlike OpenSSL/wolfSSL, Mbed TLS folds the CN/SAN identity check into
  17156. // the handshake's chain verification (see set_sni()); a mismatch there
  17157. // is reported the same way as any other verify_flags bit. Report it as
  17158. // HostnameMismatch, matching the other backends and the post-handshake
  17159. // identity check below, but only when naming is the sole problem -
  17160. // if the chain itself is also untrusted/expired/etc., that takes
  17161. // priority over the naming detail.
  17162. if (verify_flags == static_cast<uint32_t>(hostname_mismatch_code())) {
  17163. return ErrorCode::HostnameMismatch;
  17164. }
  17165. return ErrorCode::CertVerifyFailed;
  17166. }
  17167. return ErrorCode::Fatal;
  17168. }
  17169. // Populates a TlsError from a failed (non-zero) mbedtls_ssl_handshake()
  17170. // return value, including the verify-flags-dependent HostnameMismatch
  17171. // mapping; shared by connect() and connect_nonblocking() so the
  17172. // backend_code policy for that mapping only lives in one place.
  17173. inline void fill_mbedtls_tls_error(TlsError &err, mbedtls_ssl_context &ssl,
  17174. int ret) {
  17175. auto verify_flags = mbedtls_ssl_get_verify_result(&ssl);
  17176. err.code = map_mbedtls_error(ret, err.sys_errno, verify_flags);
  17177. err.backend_code = err.code == ErrorCode::HostnameMismatch
  17178. ? static_cast<uint64_t>(verify_flags)
  17179. : static_cast<uint64_t>(-ret);
  17180. }
  17181. // A TLS 1.3 NewSessionTicket (signaled by default on Mbed TLS 4.x) is a
  17182. // non-fatal notification delivered between records, not an error and not
  17183. // application data, so I/O calls that see it should just be retried. Kept in
  17184. // one helper so the retry loops keep an intact "do { } while (...)" instead of
  17185. // splitting the closing brace across an #if.
  17186. inline bool mbedtls_is_session_ticket(int ret) {
  17187. #if defined(MBEDTLS_ERR_SSL_RECEIVED_NEW_SESSION_TICKET)
  17188. return ret == MBEDTLS_ERR_SSL_RECEIVED_NEW_SESSION_TICKET;
  17189. #else
  17190. (void)ret;
  17191. return false;
  17192. #endif
  17193. }
  17194. // BIO-like send callback for Mbed TLS
  17195. inline int mbedtls_net_send_cb(void *ctx, const unsigned char *buf,
  17196. size_t len) {
  17197. auto sock = *static_cast<socket_t *>(ctx);
  17198. #ifdef _WIN32
  17199. auto ret =
  17200. send(sock, reinterpret_cast<const char *>(buf), static_cast<int>(len), 0);
  17201. if (ret == SOCKET_ERROR) {
  17202. int err = WSAGetLastError();
  17203. if (err == WSAEWOULDBLOCK) { return MBEDTLS_ERR_SSL_WANT_WRITE; }
  17204. return MBEDTLS_ERR_NET_SEND_FAILED;
  17205. }
  17206. #else
  17207. auto ret = send(sock, buf, len, 0);
  17208. if (ret < 0) {
  17209. if (errno == EAGAIN || errno == EWOULDBLOCK) {
  17210. return MBEDTLS_ERR_SSL_WANT_WRITE;
  17211. }
  17212. return MBEDTLS_ERR_NET_SEND_FAILED;
  17213. }
  17214. #endif
  17215. return static_cast<int>(ret);
  17216. }
  17217. // BIO-like recv callback for Mbed TLS
  17218. inline int mbedtls_net_recv_cb(void *ctx, unsigned char *buf, size_t len) {
  17219. auto sock = *static_cast<socket_t *>(ctx);
  17220. #ifdef _WIN32
  17221. auto ret =
  17222. recv(sock, reinterpret_cast<char *>(buf), static_cast<int>(len), 0);
  17223. if (ret == SOCKET_ERROR) {
  17224. int err = WSAGetLastError();
  17225. if (err == WSAEWOULDBLOCK) { return MBEDTLS_ERR_SSL_WANT_READ; }
  17226. return MBEDTLS_ERR_NET_RECV_FAILED;
  17227. }
  17228. #else
  17229. auto ret = recv(sock, buf, len, 0);
  17230. if (ret < 0) {
  17231. if (errno == EAGAIN || errno == EWOULDBLOCK) {
  17232. return MBEDTLS_ERR_SSL_WANT_READ;
  17233. }
  17234. return MBEDTLS_ERR_NET_RECV_FAILED;
  17235. }
  17236. #endif
  17237. if (ret == 0) { return MBEDTLS_ERR_SSL_PEER_CLOSE_NOTIFY; }
  17238. return static_cast<int>(ret);
  17239. }
  17240. // MbedTlsContext constructor/destructor implementations
  17241. inline MbedTlsContext::MbedTlsContext() {
  17242. mbedtls_ssl_config_init(&conf);
  17243. #ifndef CPPHTTPLIB_MBEDTLS_V4
  17244. mbedtls_entropy_init(&entropy);
  17245. mbedtls_ctr_drbg_init(&ctr_drbg);
  17246. #endif
  17247. mbedtls_x509_crt_init(&ca_chain);
  17248. mbedtls_x509_crt_init(&own_cert);
  17249. mbedtls_pk_init(&own_key);
  17250. }
  17251. inline MbedTlsContext::~MbedTlsContext() {
  17252. mbedtls_pk_free(&own_key);
  17253. mbedtls_x509_crt_free(&own_cert);
  17254. mbedtls_x509_crt_free(&ca_chain);
  17255. #ifndef CPPHTTPLIB_MBEDTLS_V4
  17256. mbedtls_ctr_drbg_free(&ctr_drbg);
  17257. mbedtls_entropy_free(&entropy);
  17258. #endif
  17259. mbedtls_ssl_config_free(&conf);
  17260. }
  17261. // Thread-local storage for SNI captured during handshake
  17262. // This is needed because the SNI callback doesn't have a way to pass
  17263. // session-specific data before the session is fully set up
  17264. inline std::string &mbedpending_sni() {
  17265. static thread_local std::string sni;
  17266. return sni;
  17267. }
  17268. // SNI callback for Mbed TLS server to capture client's SNI hostname
  17269. inline int mbedtls_sni_callback(void *p_ctx, mbedtls_ssl_context *ssl,
  17270. const unsigned char *name, size_t name_len) {
  17271. (void)p_ctx;
  17272. (void)ssl;
  17273. // Store SNI name in thread-local storage
  17274. // It will be retrieved and stored in the session after handshake
  17275. if (name && name_len > 0) {
  17276. mbedpending_sni().assign(reinterpret_cast<const char *>(name), name_len);
  17277. } else {
  17278. mbedpending_sni().clear();
  17279. }
  17280. return 0; // Accept any SNI
  17281. }
  17282. inline void mbedtls_clear_cn_mismatch(uint32_t *flags) {
  17283. *flags &= ~static_cast<uint32_t>(hostname_mismatch_code());
  17284. }
  17285. // Verify callback used when hostname verification is disabled for a session
  17286. // that has no user-supplied verify callback of its own (MbedTlsSession::
  17287. // has_verify_callback is false). Deliberately does not consult
  17288. // get_verify_callback(): that slot is process-wide, so reading it here would
  17289. // pick up whatever another, unrelated client last installed there.
  17290. inline int mbedtls_mask_hostname_mismatch_callback(void *data,
  17291. mbedtls_x509_crt *, int,
  17292. uint32_t *flags) {
  17293. (void)data;
  17294. mbedtls_clear_cn_mismatch(flags);
  17295. return 0;
  17296. }
  17297. inline int mbedtls_verify_callback(void *data, mbedtls_x509_crt *crt,
  17298. int cert_depth, uint32_t *flags);
  17299. // MbedTLS verify callback wrapper
  17300. inline int mbedtls_verify_callback(void *data, mbedtls_x509_crt *crt,
  17301. int cert_depth, uint32_t *flags) {
  17302. // data points to the MbedTlsSession
  17303. auto *session = static_cast<MbedTlsSession *>(data);
  17304. // set_sni() disabled hostname verification for this session: drop the
  17305. // CN/SAN mismatch flag so it doesn't fail the chain check below, mirroring
  17306. // the OpenSSL/wolfSSL backends where identity checking is independent of
  17307. // SNI. The final pass/fail decision still comes from the remaining flags
  17308. // (or, below, from the user's own verify callback).
  17309. if (session && session->suppress_hostname_mismatch) {
  17310. mbedtls_clear_cn_mismatch(flags);
  17311. }
  17312. auto &callback = get_verify_callback();
  17313. if (!callback) { return 0; } // Continue with default verification
  17314. // Build context
  17315. VerifyContext verify_ctx;
  17316. verify_ctx.session = static_cast<session_t>(session);
  17317. verify_ctx.cert = static_cast<cert_t>(crt);
  17318. verify_ctx.depth = cert_depth;
  17319. verify_ctx.preverify_ok = (*flags == 0);
  17320. verify_ctx.error_code = static_cast<long>(*flags);
  17321. // Convert Mbed TLS flags to error string
  17322. static thread_local char error_buf[256];
  17323. if (*flags != 0) {
  17324. mbedtls_x509_crt_verify_info(error_buf, sizeof(error_buf), "", *flags);
  17325. verify_ctx.error_string = error_buf;
  17326. } else {
  17327. verify_ctx.error_string = nullptr;
  17328. }
  17329. bool accepted = callback(verify_ctx);
  17330. if (accepted) {
  17331. *flags = 0; // Clear all error flags
  17332. return 0;
  17333. }
  17334. return MBEDTLS_ERR_X509_CERT_VERIFY_FAILED;
  17335. }
  17336. } // namespace impl
  17337. inline ctx_t create_client_context() {
  17338. auto ctx = new (std::nothrow) impl::MbedTlsContext();
  17339. if (!ctx) { return nullptr; }
  17340. ctx->is_server = false;
  17341. #ifdef CPPHTTPLIB_MBEDTLS_V4
  17342. // Mbed TLS 4.x draws randomness from PSA Crypto; just ensure it is ready.
  17343. if (!detail::ensure_mbedtls_psa_crypto()) {
  17344. delete ctx;
  17345. return nullptr;
  17346. }
  17347. int ret;
  17348. #else
  17349. // Seed the random number generator
  17350. const char *pers = "httplib_client";
  17351. int ret = mbedtls_ctr_drbg_seed(
  17352. &ctx->ctr_drbg, mbedtls_entropy_func, &ctx->entropy,
  17353. reinterpret_cast<const unsigned char *>(pers), strlen(pers));
  17354. if (ret != 0) {
  17355. impl::mbedtls_last_error() = ret;
  17356. delete ctx;
  17357. return nullptr;
  17358. }
  17359. #endif
  17360. // Set up SSL config for client
  17361. ret = mbedtls_ssl_config_defaults(&ctx->conf, MBEDTLS_SSL_IS_CLIENT,
  17362. MBEDTLS_SSL_TRANSPORT_STREAM,
  17363. MBEDTLS_SSL_PRESET_DEFAULT);
  17364. if (ret != 0) {
  17365. impl::mbedtls_last_error() = ret;
  17366. delete ctx;
  17367. return nullptr;
  17368. }
  17369. #ifndef CPPHTTPLIB_MBEDTLS_V4
  17370. // Set random number generator (Mbed TLS 4.x uses the PSA RNG implicitly)
  17371. mbedtls_ssl_conf_rng(&ctx->conf, mbedtls_ctr_drbg_random, &ctx->ctr_drbg);
  17372. #endif
  17373. // Default: verify peer certificate
  17374. mbedtls_ssl_conf_authmode(&ctx->conf, MBEDTLS_SSL_VERIFY_REQUIRED);
  17375. // Set minimum TLS version to 1.2
  17376. #ifdef CPPHTTPLIB_MBEDTLS_V3
  17377. mbedtls_ssl_conf_min_tls_version(&ctx->conf, MBEDTLS_SSL_VERSION_TLS1_2);
  17378. #else
  17379. mbedtls_ssl_conf_min_version(&ctx->conf, MBEDTLS_SSL_MAJOR_VERSION_3,
  17380. MBEDTLS_SSL_MINOR_VERSION_3);
  17381. #endif
  17382. return static_cast<ctx_t>(ctx);
  17383. }
  17384. inline ctx_t create_server_context() {
  17385. auto ctx = new (std::nothrow) impl::MbedTlsContext();
  17386. if (!ctx) { return nullptr; }
  17387. ctx->is_server = true;
  17388. #ifdef CPPHTTPLIB_MBEDTLS_V4
  17389. // Mbed TLS 4.x draws randomness from PSA Crypto; just ensure it is ready.
  17390. if (!detail::ensure_mbedtls_psa_crypto()) {
  17391. delete ctx;
  17392. return nullptr;
  17393. }
  17394. int ret;
  17395. #else
  17396. // Seed the random number generator
  17397. const char *pers = "httplib_server";
  17398. int ret = mbedtls_ctr_drbg_seed(
  17399. &ctx->ctr_drbg, mbedtls_entropy_func, &ctx->entropy,
  17400. reinterpret_cast<const unsigned char *>(pers), strlen(pers));
  17401. if (ret != 0) {
  17402. impl::mbedtls_last_error() = ret;
  17403. delete ctx;
  17404. return nullptr;
  17405. }
  17406. #endif
  17407. // Set up SSL config for server
  17408. ret = mbedtls_ssl_config_defaults(&ctx->conf, MBEDTLS_SSL_IS_SERVER,
  17409. MBEDTLS_SSL_TRANSPORT_STREAM,
  17410. MBEDTLS_SSL_PRESET_DEFAULT);
  17411. if (ret != 0) {
  17412. impl::mbedtls_last_error() = ret;
  17413. delete ctx;
  17414. return nullptr;
  17415. }
  17416. #ifndef CPPHTTPLIB_MBEDTLS_V4
  17417. // Set random number generator (Mbed TLS 4.x uses the PSA RNG implicitly)
  17418. mbedtls_ssl_conf_rng(&ctx->conf, mbedtls_ctr_drbg_random, &ctx->ctr_drbg);
  17419. #endif
  17420. // Default: don't verify client
  17421. mbedtls_ssl_conf_authmode(&ctx->conf, MBEDTLS_SSL_VERIFY_NONE);
  17422. // Set minimum TLS version to 1.2
  17423. #ifdef CPPHTTPLIB_MBEDTLS_V3
  17424. mbedtls_ssl_conf_min_tls_version(&ctx->conf, MBEDTLS_SSL_VERSION_TLS1_2);
  17425. #else
  17426. mbedtls_ssl_conf_min_version(&ctx->conf, MBEDTLS_SSL_MAJOR_VERSION_3,
  17427. MBEDTLS_SSL_MINOR_VERSION_3);
  17428. #endif
  17429. // Set SNI callback to capture client's SNI hostname
  17430. mbedtls_ssl_conf_sni(&ctx->conf, impl::mbedtls_sni_callback, nullptr);
  17431. return static_cast<ctx_t>(ctx);
  17432. }
  17433. inline void free_context(ctx_t ctx) {
  17434. if (ctx) { delete static_cast<impl::MbedTlsContext *>(ctx); }
  17435. }
  17436. inline bool set_min_version(ctx_t ctx, Version version) {
  17437. if (!ctx) { return false; }
  17438. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17439. #ifdef CPPHTTPLIB_MBEDTLS_V3
  17440. // Mbed TLS 3.x uses mbedtls_ssl_protocol_version enum
  17441. mbedtls_ssl_protocol_version min_ver = MBEDTLS_SSL_VERSION_TLS1_2;
  17442. if (version >= Version::TLS1_3) {
  17443. #if defined(MBEDTLS_SSL_PROTO_TLS1_3)
  17444. min_ver = MBEDTLS_SSL_VERSION_TLS1_3;
  17445. #endif
  17446. }
  17447. mbedtls_ssl_conf_min_tls_version(&mctx->conf, min_ver);
  17448. #else
  17449. // Mbed TLS 2.x uses major/minor version numbers
  17450. int major = MBEDTLS_SSL_MAJOR_VERSION_3;
  17451. int minor = MBEDTLS_SSL_MINOR_VERSION_3; // TLS 1.2
  17452. if (version >= Version::TLS1_3) {
  17453. #if defined(MBEDTLS_SSL_PROTO_TLS1_3)
  17454. minor = MBEDTLS_SSL_MINOR_VERSION_4; // TLS 1.3
  17455. #else
  17456. minor = MBEDTLS_SSL_MINOR_VERSION_3; // Fall back to TLS 1.2
  17457. #endif
  17458. }
  17459. mbedtls_ssl_conf_min_version(&mctx->conf, major, minor);
  17460. #endif
  17461. return true;
  17462. }
  17463. inline bool load_ca_pem(ctx_t ctx, const char *pem, size_t len) {
  17464. if (!ctx || !pem) { return false; }
  17465. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17466. // mbedtls_x509_crt_parse expects null-terminated string for PEM
  17467. // Add null terminator if not present
  17468. std::string pem_str(pem, len);
  17469. int ret = mbedtls_x509_crt_parse(
  17470. &mctx->ca_chain, reinterpret_cast<const unsigned char *>(pem_str.c_str()),
  17471. pem_str.size() + 1);
  17472. if (ret != 0) {
  17473. impl::mbedtls_last_error() = ret;
  17474. return false;
  17475. }
  17476. mbedtls_ssl_conf_ca_chain(&mctx->conf, &mctx->ca_chain, nullptr);
  17477. return true;
  17478. }
  17479. inline bool load_ca_file(ctx_t ctx, const char *file_path) {
  17480. if (!ctx || !file_path) { return false; }
  17481. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17482. int ret = mbedtls_x509_crt_parse_file(&mctx->ca_chain, file_path);
  17483. if (ret != 0) {
  17484. impl::mbedtls_last_error() = ret;
  17485. return false;
  17486. }
  17487. mbedtls_ssl_conf_ca_chain(&mctx->conf, &mctx->ca_chain, nullptr);
  17488. return true;
  17489. }
  17490. inline bool load_ca_dir(ctx_t ctx, const char *dir_path) {
  17491. if (!ctx || !dir_path) { return false; }
  17492. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17493. int ret = mbedtls_x509_crt_parse_path(&mctx->ca_chain, dir_path);
  17494. if (ret < 0) { // Returns number of certs on success, negative on error
  17495. impl::mbedtls_last_error() = ret;
  17496. return false;
  17497. }
  17498. mbedtls_ssl_conf_ca_chain(&mctx->conf, &mctx->ca_chain, nullptr);
  17499. return true;
  17500. }
  17501. inline bool load_system_certs(ctx_t ctx) {
  17502. if (!ctx) { return false; }
  17503. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17504. bool loaded = false;
  17505. #ifdef _WIN32
  17506. loaded = impl::enumerate_windows_system_certs(
  17507. [&](const unsigned char *data, size_t len) {
  17508. return mbedtls_x509_crt_parse_der(&mctx->ca_chain, data, len) == 0;
  17509. });
  17510. #elif defined(__APPLE__) && defined(CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN)
  17511. loaded = impl::enumerate_macos_keychain_certs(
  17512. [&](const unsigned char *data, size_t len) {
  17513. return mbedtls_x509_crt_parse_der(&mctx->ca_chain, data, len) == 0;
  17514. });
  17515. #else
  17516. for (auto path = impl::system_ca_paths(); *path; ++path) {
  17517. if (mbedtls_x509_crt_parse_file(&mctx->ca_chain, *path) >= 0) {
  17518. loaded = true;
  17519. break;
  17520. }
  17521. }
  17522. if (!loaded) {
  17523. for (auto dir = impl::system_ca_dirs(); *dir; ++dir) {
  17524. if (mbedtls_x509_crt_parse_path(&mctx->ca_chain, *dir) >= 0) {
  17525. loaded = true;
  17526. break;
  17527. }
  17528. }
  17529. }
  17530. #endif
  17531. if (loaded) {
  17532. mbedtls_ssl_conf_ca_chain(&mctx->conf, &mctx->ca_chain, nullptr);
  17533. }
  17534. return loaded;
  17535. }
  17536. inline bool set_client_cert_pem(ctx_t ctx, const char *cert, const char *key,
  17537. const char *password) {
  17538. if (!ctx || !cert || !key) { return false; }
  17539. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17540. // Parse certificate
  17541. std::string cert_str(cert);
  17542. int ret = mbedtls_x509_crt_parse(
  17543. &mctx->own_cert,
  17544. reinterpret_cast<const unsigned char *>(cert_str.c_str()),
  17545. cert_str.size() + 1);
  17546. if (ret != 0) {
  17547. impl::mbedtls_last_error() = ret;
  17548. return false;
  17549. }
  17550. // Parse private key
  17551. std::string key_str(key);
  17552. const unsigned char *pwd =
  17553. password ? reinterpret_cast<const unsigned char *>(password) : nullptr;
  17554. size_t pwd_len = password ? strlen(password) : 0;
  17555. #if defined(CPPHTTPLIB_MBEDTLS_V3) && !defined(CPPHTTPLIB_MBEDTLS_V4)
  17556. ret = mbedtls_pk_parse_key(
  17557. &mctx->own_key, reinterpret_cast<const unsigned char *>(key_str.c_str()),
  17558. key_str.size() + 1, pwd, pwd_len, mbedtls_ctr_drbg_random,
  17559. &mctx->ctr_drbg);
  17560. #else
  17561. ret = mbedtls_pk_parse_key(
  17562. &mctx->own_key, reinterpret_cast<const unsigned char *>(key_str.c_str()),
  17563. key_str.size() + 1, pwd, pwd_len);
  17564. #endif
  17565. if (ret != 0) {
  17566. impl::mbedtls_last_error() = ret;
  17567. return false;
  17568. }
  17569. // Verify that the certificate and private key match.
  17570. // Mbed TLS 4.x: mbedtls_pk_check_pair() reports a spurious mismatch for
  17571. // PSA-backed keys, so skip it and let the handshake surface a real mismatch.
  17572. #ifndef CPPHTTPLIB_MBEDTLS_V4
  17573. #ifdef CPPHTTPLIB_MBEDTLS_V3
  17574. ret = mbedtls_pk_check_pair(&mctx->own_cert.pk, &mctx->own_key,
  17575. mbedtls_ctr_drbg_random, &mctx->ctr_drbg);
  17576. #else
  17577. ret = mbedtls_pk_check_pair(&mctx->own_cert.pk, &mctx->own_key);
  17578. #endif
  17579. if (ret != 0) {
  17580. impl::mbedtls_last_error() = ret;
  17581. return false;
  17582. }
  17583. #endif
  17584. ret = mbedtls_ssl_conf_own_cert(&mctx->conf, &mctx->own_cert, &mctx->own_key);
  17585. if (ret != 0) {
  17586. impl::mbedtls_last_error() = ret;
  17587. return false;
  17588. }
  17589. return true;
  17590. }
  17591. inline bool set_client_cert_file(ctx_t ctx, const char *cert_path,
  17592. const char *key_path, const char *password) {
  17593. if (!ctx || !cert_path || !key_path) { return false; }
  17594. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17595. // Parse certificate file
  17596. int ret = mbedtls_x509_crt_parse_file(&mctx->own_cert, cert_path);
  17597. if (ret != 0) {
  17598. impl::mbedtls_last_error() = ret;
  17599. return false;
  17600. }
  17601. // Parse private key file
  17602. #if defined(CPPHTTPLIB_MBEDTLS_V3) && !defined(CPPHTTPLIB_MBEDTLS_V4)
  17603. ret = mbedtls_pk_parse_keyfile(&mctx->own_key, key_path, password,
  17604. mbedtls_ctr_drbg_random, &mctx->ctr_drbg);
  17605. #else
  17606. ret = mbedtls_pk_parse_keyfile(&mctx->own_key, key_path, password);
  17607. #endif
  17608. if (ret != 0) {
  17609. impl::mbedtls_last_error() = ret;
  17610. return false;
  17611. }
  17612. // Verify that the certificate and private key match.
  17613. // Mbed TLS 4.x: see set_client_cert() — skip the spurious check_pair.
  17614. #ifndef CPPHTTPLIB_MBEDTLS_V4
  17615. #ifdef CPPHTTPLIB_MBEDTLS_V3
  17616. ret = mbedtls_pk_check_pair(&mctx->own_cert.pk, &mctx->own_key,
  17617. mbedtls_ctr_drbg_random, &mctx->ctr_drbg);
  17618. #else
  17619. ret = mbedtls_pk_check_pair(&mctx->own_cert.pk, &mctx->own_key);
  17620. #endif
  17621. if (ret != 0) {
  17622. impl::mbedtls_last_error() = ret;
  17623. return false;
  17624. }
  17625. #endif
  17626. ret = mbedtls_ssl_conf_own_cert(&mctx->conf, &mctx->own_cert, &mctx->own_key);
  17627. if (ret != 0) {
  17628. impl::mbedtls_last_error() = ret;
  17629. return false;
  17630. }
  17631. return true;
  17632. }
  17633. inline void set_verify_client(ctx_t ctx, bool require) {
  17634. if (!ctx) { return; }
  17635. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17636. mctx->verify_client = require;
  17637. if (require) {
  17638. mbedtls_ssl_conf_authmode(&mctx->conf, MBEDTLS_SSL_VERIFY_REQUIRED);
  17639. } else {
  17640. // If a verify callback is set, use OPTIONAL mode to ensure the callback
  17641. // is called (matching OpenSSL behavior). Otherwise use NONE.
  17642. mbedtls_ssl_conf_authmode(&mctx->conf, mctx->has_verify_callback
  17643. ? MBEDTLS_SSL_VERIFY_OPTIONAL
  17644. : MBEDTLS_SSL_VERIFY_NONE);
  17645. }
  17646. }
  17647. inline session_t create_session(ctx_t ctx, socket_t sock) {
  17648. if (!ctx || sock == INVALID_SOCKET) { return nullptr; }
  17649. auto mctx = static_cast<impl::MbedTlsContext *>(ctx);
  17650. auto session = new (std::nothrow) impl::MbedTlsSession();
  17651. if (!session) { return nullptr; }
  17652. session->sock = sock;
  17653. int ret = mbedtls_ssl_setup(&session->ssl, &mctx->conf);
  17654. if (ret != 0) {
  17655. impl::mbedtls_last_error() = ret;
  17656. delete session;
  17657. return nullptr;
  17658. }
  17659. // Explicitly opt out of in-handshake hostname verification by default;
  17660. // since Mbed TLS 3.6.4 a client handshake with certificate verification
  17661. // fails outright when no hostname was set. set_sni() installs the real
  17662. // hostname for DNS hosts; for IP hosts (where SNI must not be set) the
  17663. // caller verifies the certificate identity post-handshake via
  17664. // verify_hostname().
  17665. mbedtls_ssl_set_hostname(&session->ssl, nullptr);
  17666. // Set BIO callbacks
  17667. mbedtls_ssl_set_bio(&session->ssl, &session->sock, impl::mbedtls_net_send_cb,
  17668. impl::mbedtls_net_recv_cb, nullptr);
  17669. // Set per-session verify callback with session pointer if callback is
  17670. // registered
  17671. session->has_verify_callback = mctx->has_verify_callback;
  17672. if (mctx->has_verify_callback) {
  17673. mbedtls_ssl_set_verify(&session->ssl, impl::mbedtls_verify_callback,
  17674. session);
  17675. }
  17676. return static_cast<session_t>(session);
  17677. }
  17678. inline void free_session(session_t session) {
  17679. if (session) { delete static_cast<impl::MbedTlsSession *>(session); }
  17680. }
  17681. inline bool set_sni(session_t session, const char *hostname,
  17682. bool verify_hostname) {
  17683. if (!session || !hostname) { return false; }
  17684. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17685. // mbedtls_ssl_set_hostname() both sends the SNI extension and binds the
  17686. // handshake-time CN/SAN check to `hostname`; the two can't be requested
  17687. // independently, so a disabled hostname check is handled below by masking
  17688. // the resulting mismatch flag instead of skipping this call.
  17689. int ret = mbedtls_ssl_set_hostname(&msession->ssl, hostname);
  17690. if (ret != 0) {
  17691. impl::mbedtls_last_error() = ret;
  17692. return false;
  17693. }
  17694. msession->hostname = hostname;
  17695. if (!verify_hostname) {
  17696. msession->suppress_hostname_mismatch = true;
  17697. // If a user verify callback is already wired for this session,
  17698. // mbedtls_verify_callback() masks the mismatch flag itself before
  17699. // consulting it (see suppress_hostname_mismatch above) - reinstalling it
  17700. // here would be redundant. Otherwise install the self-contained masking
  17701. // callback, which never touches the process-wide callback slot.
  17702. if (!msession->has_verify_callback) {
  17703. mbedtls_ssl_set_verify(&msession->ssl,
  17704. impl::mbedtls_mask_hostname_mismatch_callback,
  17705. msession);
  17706. }
  17707. }
  17708. return true;
  17709. }
  17710. inline TlsError connect(session_t session) {
  17711. TlsError err;
  17712. if (!session) {
  17713. err.code = ErrorCode::Fatal;
  17714. return err;
  17715. }
  17716. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17717. int ret;
  17718. do {
  17719. ret = mbedtls_ssl_handshake(&msession->ssl);
  17720. } while (impl::mbedtls_is_session_ticket(ret));
  17721. if (ret == 0) {
  17722. err.code = ErrorCode::Success;
  17723. } else {
  17724. impl::fill_mbedtls_tls_error(err, msession->ssl, ret);
  17725. impl::mbedtls_last_error() = ret;
  17726. }
  17727. return err;
  17728. }
  17729. inline TlsError accept(session_t session) {
  17730. // Same as connect for Mbed TLS - handshake works for both client and server
  17731. auto result = connect(session);
  17732. // After successful handshake, capture SNI from thread-local storage
  17733. if (result.code == ErrorCode::Success && session) {
  17734. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17735. msession->sni_hostname = std::move(impl::mbedpending_sni());
  17736. impl::mbedpending_sni().clear();
  17737. }
  17738. return result;
  17739. }
  17740. inline bool connect_nonblocking(session_t session, socket_t sock,
  17741. time_t timeout_sec, time_t timeout_usec,
  17742. TlsError *err) {
  17743. if (!session) {
  17744. if (err) { err->code = ErrorCode::Fatal; }
  17745. return false;
  17746. }
  17747. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17748. // Set socket to non-blocking mode
  17749. detail::set_nonblocking(sock, true);
  17750. auto cleanup =
  17751. detail::scope_exit([&]() { detail::set_nonblocking(sock, false); });
  17752. int ret;
  17753. while ((ret = mbedtls_ssl_handshake(&msession->ssl)) != 0) {
  17754. // Non-fatal TLS 1.3 ticket; retry immediately.
  17755. if (impl::mbedtls_is_session_ticket(ret)) { continue; }
  17756. if (ret == MBEDTLS_ERR_SSL_WANT_READ) {
  17757. if (detail::select_read(sock, timeout_sec, timeout_usec) > 0) {
  17758. continue;
  17759. }
  17760. } else if (ret == MBEDTLS_ERR_SSL_WANT_WRITE) {
  17761. if (detail::select_write(sock, timeout_sec, timeout_usec) > 0) {
  17762. continue;
  17763. }
  17764. }
  17765. // TlsError or timeout
  17766. if (err) { impl::fill_mbedtls_tls_error(*err, msession->ssl, ret); }
  17767. impl::mbedtls_last_error() = ret;
  17768. return false;
  17769. }
  17770. if (err) { err->code = ErrorCode::Success; }
  17771. return true;
  17772. }
  17773. inline bool accept_nonblocking(session_t session, socket_t sock,
  17774. time_t timeout_sec, time_t timeout_usec,
  17775. TlsError *err) {
  17776. // Same implementation as connect for Mbed TLS
  17777. bool result =
  17778. connect_nonblocking(session, sock, timeout_sec, timeout_usec, err);
  17779. // After successful handshake, capture SNI from thread-local storage
  17780. if (result && session) {
  17781. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17782. msession->sni_hostname = std::move(impl::mbedpending_sni());
  17783. impl::mbedpending_sni().clear();
  17784. }
  17785. return result;
  17786. }
  17787. inline ssize_t read(session_t session, void *buf, size_t len, TlsError &err) {
  17788. if (!session || !buf) {
  17789. err.code = ErrorCode::Fatal;
  17790. return -1;
  17791. }
  17792. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17793. // Serve a byte consumed by the is_peer_closed() probe before reading more.
  17794. if (msession->has_peeked_byte) {
  17795. if (len == 0) { return 0; }
  17796. auto p = static_cast<unsigned char *>(buf);
  17797. p[0] = msession->peeked_byte;
  17798. msession->has_peeked_byte = false;
  17799. size_t n = 1;
  17800. // Top up with any already-decrypted bytes without risking a block.
  17801. if (len > 1 && mbedtls_ssl_get_bytes_avail(&msession->ssl) > 0) {
  17802. int extra = mbedtls_ssl_read(&msession->ssl, p + 1, len - 1);
  17803. if (extra > 0) { n += static_cast<size_t>(extra); }
  17804. }
  17805. err.code = ErrorCode::Success;
  17806. return static_cast<ssize_t>(n);
  17807. }
  17808. int ret;
  17809. do {
  17810. ret = mbedtls_ssl_read(&msession->ssl, static_cast<unsigned char *>(buf),
  17811. len);
  17812. } while (impl::mbedtls_is_session_ticket(ret));
  17813. if (ret > 0) {
  17814. err.code = ErrorCode::Success;
  17815. return static_cast<ssize_t>(ret);
  17816. }
  17817. if (ret == 0) {
  17818. err.code = ErrorCode::PeerClosed;
  17819. return 0;
  17820. }
  17821. err.code = impl::map_mbedtls_error(ret, err.sys_errno, 0);
  17822. err.backend_code = static_cast<uint64_t>(-ret);
  17823. impl::mbedtls_last_error() = ret;
  17824. // mbedTLS signals a clean close_notify via a negative error code rather
  17825. // than 0; surface it as a clean EOF the way OpenSSL/wolfSSL do.
  17826. if (err.code == ErrorCode::PeerClosed) { return 0; }
  17827. return -1;
  17828. }
  17829. inline ssize_t write(session_t session, const void *buf, size_t len,
  17830. TlsError &err) {
  17831. if (!session || !buf) {
  17832. err.code = ErrorCode::Fatal;
  17833. return -1;
  17834. }
  17835. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17836. int ret;
  17837. do {
  17838. ret = mbedtls_ssl_write(&msession->ssl,
  17839. static_cast<const unsigned char *>(buf), len);
  17840. } while (impl::mbedtls_is_session_ticket(ret));
  17841. if (ret > 0) {
  17842. err.code = ErrorCode::Success;
  17843. return static_cast<ssize_t>(ret);
  17844. }
  17845. if (ret == 0) {
  17846. err.code = ErrorCode::PeerClosed;
  17847. return 0;
  17848. }
  17849. err.code = impl::map_mbedtls_error(ret, err.sys_errno, 0);
  17850. err.backend_code = static_cast<uint64_t>(-ret);
  17851. impl::mbedtls_last_error() = ret;
  17852. return -1;
  17853. }
  17854. inline int pending(const_session_t session) {
  17855. if (!session) { return 0; }
  17856. auto msession =
  17857. static_cast<impl::MbedTlsSession *>(const_cast<void *>(session));
  17858. return static_cast<int>(mbedtls_ssl_get_bytes_avail(&msession->ssl)) +
  17859. (msession->has_peeked_byte ? 1 : 0);
  17860. }
  17861. inline void shutdown(session_t session, bool graceful) {
  17862. if (!session) { return; }
  17863. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17864. if (graceful) {
  17865. // Try to send close_notify, but don't block forever
  17866. int ret;
  17867. int attempts = 0;
  17868. while ((ret = mbedtls_ssl_close_notify(&msession->ssl)) != 0 &&
  17869. attempts < 3) {
  17870. if (ret != MBEDTLS_ERR_SSL_WANT_READ &&
  17871. ret != MBEDTLS_ERR_SSL_WANT_WRITE) {
  17872. break;
  17873. }
  17874. attempts++;
  17875. }
  17876. }
  17877. }
  17878. inline bool is_peer_closed(session_t session, socket_t sock) {
  17879. if (!session || sock == INVALID_SOCKET) { return true; }
  17880. auto msession = static_cast<impl::MbedTlsSession *>(session);
  17881. // Check if there's already decrypted or pushed-back data available.
  17882. // If so, the connection is definitely alive.
  17883. if (msession->has_peeked_byte ||
  17884. mbedtls_ssl_get_bytes_avail(&msession->ssl) > 0) {
  17885. return false;
  17886. }
  17887. // Set socket to non-blocking to avoid blocking on read
  17888. detail::set_nonblocking(sock, true);
  17889. auto cleanup =
  17890. detail::scope_exit([&]() { detail::set_nonblocking(sock, false); });
  17891. // Probe with a 1-byte read (Mbed TLS has no peek API). If the probe lands
  17892. // on application data — e.g. a response that already arrived — push the
  17893. // byte back so the next read() delivers it instead of losing it.
  17894. unsigned char buf;
  17895. int ret;
  17896. do {
  17897. ret = mbedtls_ssl_read(&msession->ssl, &buf, 1);
  17898. } while (impl::mbedtls_is_session_ticket(ret));
  17899. // If we got data or WANT_READ (would block), connection is alive
  17900. if (ret > 0) {
  17901. msession->peeked_byte = buf;
  17902. msession->has_peeked_byte = true;
  17903. return false;
  17904. }
  17905. if (ret == MBEDTLS_ERR_SSL_WANT_READ) { return false; }
  17906. // If we get a peer close notify or a connection reset, the peer is closed
  17907. return ret == MBEDTLS_ERR_SSL_PEER_CLOSE_NOTIFY ||
  17908. ret == MBEDTLS_ERR_NET_CONN_RESET || ret == 0;
  17909. }
  17910. inline cert_t get_peer_cert(const_session_t session) {
  17911. if (!session) { return nullptr; }
  17912. auto msession =
  17913. static_cast<impl::MbedTlsSession *>(const_cast<void *>(session));
  17914. // Mbed TLS returns a pointer to the internal peer cert chain.
  17915. // WARNING: This pointer is only valid while the session is active.
  17916. // Do not use the certificate after calling free_session().
  17917. const mbedtls_x509_crt *cert = mbedtls_ssl_get_peer_cert(&msession->ssl);
  17918. return const_cast<mbedtls_x509_crt *>(cert);
  17919. }
  17920. inline size_t get_peer_certs(const_session_t session,
  17921. std::vector<cert_t> &certs) {
  17922. certs.clear();
  17923. // Mbed TLS parses the whole received chain into a list headed by the peer
  17924. // certificate, owned by the session like get_peer_cert()'s result
  17925. for (auto crt = static_cast<mbedtls_x509_crt *>(get_peer_cert(session));
  17926. crt && crt->raw.len > 0; crt = crt->next) {
  17927. certs.push_back(static_cast<cert_t>(crt));
  17928. }
  17929. return certs.size();
  17930. }
  17931. inline void free_cert(cert_t cert) {
  17932. // Mbed TLS: peer certificate is owned by the SSL context.
  17933. // No-op here, but callers should still call this for cross-backend
  17934. // portability.
  17935. (void)cert;
  17936. }
  17937. inline bool verify_hostname(cert_t cert, const char *hostname) {
  17938. if (!cert || !hostname) { return false; }
  17939. auto mcert = static_cast<const mbedtls_x509_crt *>(cert);
  17940. std::string host_str(hostname);
  17941. // Check if hostname is an IP address (IPv4 or IPv6)
  17942. unsigned char ip_bytes[16];
  17943. auto ip_len = impl::parse_ip_address(host_str, ip_bytes);
  17944. auto is_ip = ip_len > 0;
  17945. // Check Subject Alternative Names (SAN)
  17946. // In Mbed TLS 3.x, subject_alt_names contains raw values without ASN.1 tags
  17947. // - DNS names: raw string bytes
  17948. // - IP addresses: raw IP bytes (4 for IPv4, 16 for IPv6)
  17949. const mbedtls_x509_sequence *san = &mcert->subject_alt_names;
  17950. while (san != nullptr && san->buf.p != nullptr && san->buf.len > 0) {
  17951. const unsigned char *p = san->buf.p;
  17952. size_t len = san->buf.len;
  17953. if (is_ip) {
  17954. // For an IP host, only a matching iPAddress SAN of the same family
  17955. // (4 bytes for IPv4, 16 bytes for IPv6) may authenticate it.
  17956. if (len == ip_len && memcmp(p, ip_bytes, ip_len) == 0) { return true; }
  17957. } else {
  17958. // Check if this SAN is a DNS name (printable ASCII string)
  17959. bool is_dns = len > 0;
  17960. for (size_t i = 0; i < len && is_dns; i++) {
  17961. if (p[i] < 32 || p[i] > 126) { is_dns = false; }
  17962. }
  17963. if (is_dns) {
  17964. std::string san_name(reinterpret_cast<const char *>(p), len);
  17965. if (detail::match_hostname(san_name, host_str)) { return true; }
  17966. }
  17967. }
  17968. san = san->next;
  17969. }
  17970. // Fallback: Check Common Name (CN) in subject. Skipped for IP-literal hosts:
  17971. // an IP identity is only valid via an iPAddress SAN, never the CN (RFC 9110;
  17972. // the OpenSSL backend's X509_check_ip behaves the same way).
  17973. if (!is_ip) {
  17974. char cn[256];
  17975. int ret = mbedtls_x509_dn_gets(cn, sizeof(cn), &mcert->subject);
  17976. if (ret > 0) {
  17977. std::string cn_str(cn);
  17978. // Look for "CN=" in the DN string
  17979. size_t cn_pos = cn_str.find("CN=");
  17980. if (cn_pos != std::string::npos) {
  17981. size_t start = cn_pos + 3;
  17982. size_t end = cn_str.find(',', start);
  17983. std::string cn_value =
  17984. cn_str.substr(start, end == std::string::npos ? end : end - start);
  17985. if (detail::match_hostname(cn_value, host_str)) { return true; }
  17986. }
  17987. }
  17988. }
  17989. return false;
  17990. }
  17991. inline uint64_t hostname_mismatch_code() {
  17992. return static_cast<uint64_t>(MBEDTLS_X509_BADCERT_CN_MISMATCH);
  17993. }
  17994. inline long get_verify_result(const_session_t session) {
  17995. if (!session) { return -1; }
  17996. auto msession =
  17997. static_cast<impl::MbedTlsSession *>(const_cast<void *>(session));
  17998. uint32_t flags = mbedtls_ssl_get_verify_result(&msession->ssl);
  17999. // Return 0 (X509_V_OK equivalent) if verification passed
  18000. return flags == 0 ? 0 : static_cast<long>(flags);
  18001. }
  18002. inline std::string get_cert_subject_cn(cert_t cert) {
  18003. if (!cert) return "";
  18004. auto x509 = static_cast<mbedtls_x509_crt *>(cert);
  18005. // Find the CN in the subject
  18006. const mbedtls_x509_name *name = &x509->subject;
  18007. while (name != nullptr) {
  18008. if (MBEDTLS_OID_CMP(MBEDTLS_OID_AT_CN, &name->oid) == 0) {
  18009. return std::string(reinterpret_cast<const char *>(name->val.p),
  18010. name->val.len);
  18011. }
  18012. name = name->next;
  18013. }
  18014. return "";
  18015. }
  18016. inline std::string get_cert_issuer_name(cert_t cert) {
  18017. if (!cert) return "";
  18018. auto x509 = static_cast<mbedtls_x509_crt *>(cert);
  18019. // Build a human-readable issuer name string
  18020. char buf[512];
  18021. int ret = mbedtls_x509_dn_gets(buf, sizeof(buf), &x509->issuer);
  18022. if (ret < 0) return "";
  18023. return std::string(buf);
  18024. }
  18025. inline bool get_cert_sans(cert_t cert, std::vector<SanEntry> &sans) {
  18026. sans.clear();
  18027. if (!cert) return false;
  18028. auto x509 = static_cast<mbedtls_x509_crt *>(cert);
  18029. // Parse the Subject Alternative Name extension
  18030. const mbedtls_x509_sequence *cur = &x509->subject_alt_names;
  18031. while (cur != nullptr) {
  18032. if (cur->buf.len > 0) {
  18033. // Mbed TLS stores SAN as ASN.1 sequences
  18034. // The tag byte indicates the type
  18035. const unsigned char *p = cur->buf.p;
  18036. size_t len = cur->buf.len;
  18037. // First byte is the tag
  18038. unsigned char tag = *p;
  18039. p++;
  18040. len--;
  18041. // Parse length (simple single-byte length assumed)
  18042. if (len > 0 && *p < 0x80) {
  18043. size_t value_len = *p;
  18044. p++;
  18045. len--;
  18046. if (value_len <= len) {
  18047. SanEntry entry;
  18048. // ASN.1 context tags for GeneralName
  18049. switch (tag & 0x1F) {
  18050. case 2: // dNSName
  18051. entry.type = SanType::DNS;
  18052. entry.value =
  18053. std::string(reinterpret_cast<const char *>(p), value_len);
  18054. break;
  18055. case 7: // iPAddress
  18056. entry.type = SanType::IP;
  18057. if (value_len == 4) {
  18058. // IPv4
  18059. char buf[16];
  18060. snprintf(buf, sizeof(buf), "%d.%d.%d.%d", p[0], p[1], p[2], p[3]);
  18061. entry.value = buf;
  18062. } else if (value_len == 16) {
  18063. // IPv6
  18064. char buf[64];
  18065. snprintf(buf, sizeof(buf),
  18066. "%02x%02x:%02x%02x:%02x%02x:%02x%02x:"
  18067. "%02x%02x:%02x%02x:%02x%02x:%02x%02x",
  18068. p[0], p[1], p[2], p[3], p[4], p[5], p[6], p[7], p[8],
  18069. p[9], p[10], p[11], p[12], p[13], p[14], p[15]);
  18070. entry.value = buf;
  18071. }
  18072. break;
  18073. case 1: // rfc822Name (email)
  18074. entry.type = SanType::EMAIL;
  18075. entry.value =
  18076. std::string(reinterpret_cast<const char *>(p), value_len);
  18077. break;
  18078. case 6: // uniformResourceIdentifier
  18079. entry.type = SanType::URI;
  18080. entry.value =
  18081. std::string(reinterpret_cast<const char *>(p), value_len);
  18082. break;
  18083. default: entry.type = SanType::OTHER; break;
  18084. }
  18085. if (!entry.value.empty()) { sans.push_back(std::move(entry)); }
  18086. }
  18087. }
  18088. }
  18089. cur = cur->next;
  18090. }
  18091. return true;
  18092. }
  18093. inline bool get_cert_validity(cert_t cert, time_t &not_before,
  18094. time_t &not_after) {
  18095. if (!cert) return false;
  18096. auto x509 = static_cast<mbedtls_x509_crt *>(cert);
  18097. // Convert mbedtls_x509_time to time_t
  18098. auto to_time_t = [](const mbedtls_x509_time &t) -> time_t {
  18099. struct tm tm_time = {};
  18100. tm_time.tm_year = t.year - 1900;
  18101. tm_time.tm_mon = t.mon - 1;
  18102. tm_time.tm_mday = t.day;
  18103. tm_time.tm_hour = t.hour;
  18104. tm_time.tm_min = t.min;
  18105. tm_time.tm_sec = t.sec;
  18106. #ifdef _WIN32
  18107. return _mkgmtime(&tm_time);
  18108. #else
  18109. return timegm(&tm_time);
  18110. #endif
  18111. };
  18112. not_before = to_time_t(x509->valid_from);
  18113. not_after = to_time_t(x509->valid_to);
  18114. return true;
  18115. }
  18116. inline std::string get_cert_serial(cert_t cert) {
  18117. if (!cert) return "";
  18118. auto x509 = static_cast<mbedtls_x509_crt *>(cert);
  18119. // Convert serial number to hex string
  18120. std::string result;
  18121. result.reserve(x509->serial.len * 2);
  18122. for (size_t i = 0; i < x509->serial.len; i++) {
  18123. char hex[3];
  18124. snprintf(hex, sizeof(hex), "%02X", x509->serial.p[i]);
  18125. result += hex;
  18126. }
  18127. return result;
  18128. }
  18129. inline bool get_cert_der(cert_t cert, std::vector<unsigned char> &der) {
  18130. if (!cert) return false;
  18131. auto crt = static_cast<mbedtls_x509_crt *>(cert);
  18132. if (!crt->raw.p || crt->raw.len == 0) return false;
  18133. der.assign(crt->raw.p, crt->raw.p + crt->raw.len);
  18134. return true;
  18135. }
  18136. inline const char *get_sni(const_session_t session) {
  18137. if (!session) return nullptr;
  18138. auto msession = static_cast<const impl::MbedTlsSession *>(session);
  18139. // For server: return SNI received from client during handshake
  18140. if (!msession->sni_hostname.empty()) {
  18141. return msession->sni_hostname.c_str();
  18142. }
  18143. // For client: return the hostname set via set_sni
  18144. if (!msession->hostname.empty()) { return msession->hostname.c_str(); }
  18145. return nullptr;
  18146. }
  18147. inline uint64_t peek_error() {
  18148. // Mbed TLS doesn't have an error queue, return the last error
  18149. return static_cast<uint64_t>(-impl::mbedtls_last_error());
  18150. }
  18151. inline uint64_t get_error() {
  18152. // Mbed TLS doesn't have an error queue, return and clear the last error
  18153. uint64_t err = static_cast<uint64_t>(-impl::mbedtls_last_error());
  18154. impl::mbedtls_last_error() = 0;
  18155. return err;
  18156. }
  18157. inline std::string error_string(uint64_t code) {
  18158. char buf[256];
  18159. mbedtls_strerror(-static_cast<int>(code), buf, sizeof(buf));
  18160. return std::string(buf);
  18161. }
  18162. inline ca_store_t create_ca_store(const char *pem, size_t len) {
  18163. auto *ca_chain = new (std::nothrow) mbedtls_x509_crt;
  18164. if (!ca_chain) { return nullptr; }
  18165. mbedtls_x509_crt_init(ca_chain);
  18166. // mbedtls_x509_crt_parse expects null-terminated PEM
  18167. int ret = mbedtls_x509_crt_parse(ca_chain,
  18168. reinterpret_cast<const unsigned char *>(pem),
  18169. len + 1); // +1 for null terminator
  18170. if (ret != 0) {
  18171. // Try without +1 in case PEM is already null-terminated
  18172. ret = mbedtls_x509_crt_parse(
  18173. ca_chain, reinterpret_cast<const unsigned char *>(pem), len);
  18174. if (ret != 0) {
  18175. mbedtls_x509_crt_free(ca_chain);
  18176. delete ca_chain;
  18177. return nullptr;
  18178. }
  18179. }
  18180. return static_cast<ca_store_t>(ca_chain);
  18181. }
  18182. inline void free_ca_store(ca_store_t store) {
  18183. if (store) {
  18184. auto *ca_chain = static_cast<mbedtls_x509_crt *>(store);
  18185. mbedtls_x509_crt_free(ca_chain);
  18186. delete ca_chain;
  18187. }
  18188. }
  18189. inline bool set_ca_store(ctx_t ctx, ca_store_t store) {
  18190. if (!ctx || !store) { return false; }
  18191. auto *mbed_ctx = static_cast<impl::MbedTlsContext *>(ctx);
  18192. auto *ca_chain = static_cast<mbedtls_x509_crt *>(store);
  18193. // Free existing CA chain
  18194. mbedtls_x509_crt_free(&mbed_ctx->ca_chain);
  18195. mbedtls_x509_crt_init(&mbed_ctx->ca_chain);
  18196. // Copy the CA chain (deep copy)
  18197. // Parse from the raw data of the source cert
  18198. mbedtls_x509_crt *src = ca_chain;
  18199. while (src != nullptr) {
  18200. int ret = mbedtls_x509_crt_parse_der(&mbed_ctx->ca_chain, src->raw.p,
  18201. src->raw.len);
  18202. if (ret != 0) {
  18203. free_ca_store(store);
  18204. return false;
  18205. }
  18206. src = src->next;
  18207. }
  18208. // This function takes ownership of the store; the chain was deep-copied
  18209. // above, so release the source
  18210. free_ca_store(store);
  18211. // Update the SSL config to use the new CA chain
  18212. mbedtls_ssl_conf_ca_chain(&mbed_ctx->conf, &mbed_ctx->ca_chain, nullptr);
  18213. return true;
  18214. }
  18215. inline size_t get_ca_certs(ctx_t ctx, std::vector<cert_t> &certs) {
  18216. certs.clear();
  18217. if (!ctx) { return 0; }
  18218. auto *mbed_ctx = static_cast<impl::MbedTlsContext *>(ctx);
  18219. // Iterate through the CA chain
  18220. mbedtls_x509_crt *cert = &mbed_ctx->ca_chain;
  18221. while (cert != nullptr && cert->raw.len > 0) {
  18222. // Create a copy of the certificate for the caller
  18223. auto *copy = new mbedtls_x509_crt;
  18224. mbedtls_x509_crt_init(copy);
  18225. int ret = mbedtls_x509_crt_parse_der(copy, cert->raw.p, cert->raw.len);
  18226. if (ret == 0) {
  18227. certs.push_back(static_cast<cert_t>(copy));
  18228. } else {
  18229. mbedtls_x509_crt_free(copy);
  18230. delete copy;
  18231. }
  18232. cert = cert->next;
  18233. }
  18234. return certs.size();
  18235. }
  18236. inline std::vector<std::string> get_ca_names(ctx_t ctx) {
  18237. std::vector<std::string> names;
  18238. if (!ctx) { return names; }
  18239. auto *mbed_ctx = static_cast<impl::MbedTlsContext *>(ctx);
  18240. // Iterate through the CA chain
  18241. mbedtls_x509_crt *cert = &mbed_ctx->ca_chain;
  18242. while (cert != nullptr && cert->raw.len > 0) {
  18243. char buf[512];
  18244. int ret = mbedtls_x509_dn_gets(buf, sizeof(buf), &cert->subject);
  18245. if (ret > 0) { names.push_back(buf); }
  18246. cert = cert->next;
  18247. }
  18248. return names;
  18249. }
  18250. inline bool update_server_cert(ctx_t ctx, const char *cert_pem,
  18251. const char *key_pem, const char *password) {
  18252. if (!ctx || !cert_pem || !key_pem) { return false; }
  18253. auto *mbed_ctx = static_cast<impl::MbedTlsContext *>(ctx);
  18254. // Free existing certificate and key
  18255. mbedtls_x509_crt_free(&mbed_ctx->own_cert);
  18256. mbedtls_pk_free(&mbed_ctx->own_key);
  18257. mbedtls_x509_crt_init(&mbed_ctx->own_cert);
  18258. mbedtls_pk_init(&mbed_ctx->own_key);
  18259. // Parse certificate PEM
  18260. int ret = mbedtls_x509_crt_parse(
  18261. &mbed_ctx->own_cert, reinterpret_cast<const unsigned char *>(cert_pem),
  18262. strlen(cert_pem) + 1);
  18263. if (ret != 0) {
  18264. impl::mbedtls_last_error() = ret;
  18265. return false;
  18266. }
  18267. // Parse private key PEM
  18268. #if defined(CPPHTTPLIB_MBEDTLS_V3) && !defined(CPPHTTPLIB_MBEDTLS_V4)
  18269. ret = mbedtls_pk_parse_key(
  18270. &mbed_ctx->own_key, reinterpret_cast<const unsigned char *>(key_pem),
  18271. strlen(key_pem) + 1,
  18272. password ? reinterpret_cast<const unsigned char *>(password) : nullptr,
  18273. password ? strlen(password) : 0, mbedtls_ctr_drbg_random,
  18274. &mbed_ctx->ctr_drbg);
  18275. #else
  18276. ret = mbedtls_pk_parse_key(
  18277. &mbed_ctx->own_key, reinterpret_cast<const unsigned char *>(key_pem),
  18278. strlen(key_pem) + 1,
  18279. password ? reinterpret_cast<const unsigned char *>(password) : nullptr,
  18280. password ? strlen(password) : 0);
  18281. #endif
  18282. if (ret != 0) {
  18283. impl::mbedtls_last_error() = ret;
  18284. return false;
  18285. }
  18286. // Configure SSL to use the new certificate and key
  18287. ret = mbedtls_ssl_conf_own_cert(&mbed_ctx->conf, &mbed_ctx->own_cert,
  18288. &mbed_ctx->own_key);
  18289. if (ret != 0) {
  18290. impl::mbedtls_last_error() = ret;
  18291. return false;
  18292. }
  18293. return true;
  18294. }
  18295. inline bool update_server_client_ca(ctx_t ctx, const char *ca_pem) {
  18296. if (!ctx || !ca_pem) { return false; }
  18297. auto *mbed_ctx = static_cast<impl::MbedTlsContext *>(ctx);
  18298. // Free existing CA chain
  18299. mbedtls_x509_crt_free(&mbed_ctx->ca_chain);
  18300. mbedtls_x509_crt_init(&mbed_ctx->ca_chain);
  18301. // Parse CA PEM
  18302. int ret = mbedtls_x509_crt_parse(
  18303. &mbed_ctx->ca_chain, reinterpret_cast<const unsigned char *>(ca_pem),
  18304. strlen(ca_pem) + 1);
  18305. if (ret != 0) {
  18306. impl::mbedtls_last_error() = ret;
  18307. return false;
  18308. }
  18309. // Update SSL config to use new CA chain
  18310. mbedtls_ssl_conf_ca_chain(&mbed_ctx->conf, &mbed_ctx->ca_chain, nullptr);
  18311. return true;
  18312. }
  18313. inline bool set_verify_callback(ctx_t ctx, VerifyCallback callback) {
  18314. if (!ctx) { return false; }
  18315. auto *mbed_ctx = static_cast<impl::MbedTlsContext *>(ctx);
  18316. impl::get_verify_callback() = std::move(callback);
  18317. mbed_ctx->has_verify_callback =
  18318. static_cast<bool>(impl::get_verify_callback());
  18319. if (mbed_ctx->has_verify_callback) {
  18320. // Set OPTIONAL mode to ensure callback is called even when verification
  18321. // is disabled (matching OpenSSL behavior where SSL_VERIFY_PEER is set)
  18322. mbedtls_ssl_conf_authmode(&mbed_ctx->conf, MBEDTLS_SSL_VERIFY_OPTIONAL);
  18323. mbedtls_ssl_conf_verify(&mbed_ctx->conf, impl::mbedtls_verify_callback,
  18324. nullptr);
  18325. } else {
  18326. mbedtls_ssl_conf_verify(&mbed_ctx->conf, nullptr, nullptr);
  18327. }
  18328. return true;
  18329. }
  18330. inline long get_verify_error(const_session_t session) {
  18331. if (!session) { return -1; }
  18332. auto *msession =
  18333. static_cast<impl::MbedTlsSession *>(const_cast<void *>(session));
  18334. return static_cast<long>(mbedtls_ssl_get_verify_result(&msession->ssl));
  18335. }
  18336. inline std::string verify_error_string(long error_code) {
  18337. if (error_code == 0) { return ""; }
  18338. char buf[256];
  18339. mbedtls_x509_crt_verify_info(buf, sizeof(buf), "",
  18340. static_cast<uint32_t>(error_code));
  18341. // Remove trailing newline if present
  18342. std::string result(buf);
  18343. while (!result.empty() && (result.back() == '\n' || result.back() == ' ')) {
  18344. result.pop_back();
  18345. }
  18346. return result;
  18347. }
  18348. } // namespace tls
  18349. #endif // CPPHTTPLIB_MBEDTLS_SUPPORT
  18350. /*
  18351. * Group 10: TLS abstraction layer - wolfSSL backend
  18352. */
  18353. /*
  18354. * wolfSSL Backend Implementation
  18355. */
  18356. #ifdef CPPHTTPLIB_WOLFSSL_SUPPORT
  18357. namespace tls {
  18358. namespace impl {
  18359. // wolfSSL session wrapper
  18360. struct WolfSSLSession {
  18361. WOLFSSL *ssl = nullptr;
  18362. socket_t sock = INVALID_SOCKET;
  18363. std::string hostname; // For client: set via set_sni
  18364. std::string sni_hostname; // For server: received from client via SNI callback
  18365. WolfSSLSession() = default;
  18366. ~WolfSSLSession() {
  18367. if (ssl) { wolfSSL_free(ssl); }
  18368. }
  18369. WolfSSLSession(const WolfSSLSession &) = delete;
  18370. WolfSSLSession &operator=(const WolfSSLSession &) = delete;
  18371. };
  18372. // Thread-local error code accessor for wolfSSL
  18373. inline uint64_t &wolfssl_last_error() {
  18374. static thread_local uint64_t err = 0;
  18375. return err;
  18376. }
  18377. // Helper to map wolfSSL error to ErrorCode.
  18378. // ssl_error is the value from wolfSSL_get_error().
  18379. // raw_ret is the raw return value from the wolfSSL call (for low-level error).
  18380. inline ErrorCode map_wolfssl_error(WOLFSSL *ssl, int ssl_error,
  18381. int &out_errno) {
  18382. switch (ssl_error) {
  18383. case SSL_ERROR_NONE: return ErrorCode::Success;
  18384. case SSL_ERROR_WANT_READ: return ErrorCode::WantRead;
  18385. case SSL_ERROR_WANT_WRITE: return ErrorCode::WantWrite;
  18386. case SSL_ERROR_ZERO_RETURN: return ErrorCode::PeerClosed;
  18387. case SSL_ERROR_SYSCALL: out_errno = errno; return ErrorCode::SyscallError;
  18388. default:
  18389. if (ssl) {
  18390. // wolfSSL stores the low-level error code as a negative value.
  18391. // DOMAIN_NAME_MISMATCH (-322) indicates hostname verification failure.
  18392. int low_err = ssl_error; // wolfSSL_get_error returns the low-level code
  18393. if (low_err == DOMAIN_NAME_MISMATCH) {
  18394. return ErrorCode::HostnameMismatch;
  18395. }
  18396. // Check verify result to distinguish cert verification from generic SSL
  18397. // errors.
  18398. long vr = wolfSSL_get_verify_result(ssl);
  18399. if (vr != 0) { return ErrorCode::CertVerifyFailed; }
  18400. }
  18401. return ErrorCode::Fatal;
  18402. }
  18403. }
  18404. // WolfSSLContext constructor/destructor implementations
  18405. inline WolfSSLContext::WolfSSLContext() { wolfSSL_Init(); }
  18406. inline WolfSSLContext::~WolfSSLContext() {
  18407. if (ctx) { wolfSSL_CTX_free(ctx); }
  18408. }
  18409. // Thread-local storage for SNI captured during handshake
  18410. inline std::string &wolfssl_pending_sni() {
  18411. static thread_local std::string sni;
  18412. return sni;
  18413. }
  18414. // SNI callback for wolfSSL server to capture client's SNI hostname
  18415. inline int wolfssl_sni_callback(WOLFSSL *ssl, int *ret, void *exArg) {
  18416. (void)ret;
  18417. (void)exArg;
  18418. void *name_data = nullptr;
  18419. unsigned short name_len =
  18420. wolfSSL_SNI_GetRequest(ssl, WOLFSSL_SNI_HOST_NAME, &name_data);
  18421. if (name_data && name_len > 0) {
  18422. wolfssl_pending_sni().assign(static_cast<const char *>(name_data),
  18423. name_len);
  18424. } else {
  18425. wolfssl_pending_sni().clear();
  18426. }
  18427. return 0; // Continue regardless
  18428. }
  18429. // wolfSSL verify callback wrapper
  18430. inline int wolfssl_verify_callback(int preverify_ok,
  18431. WOLFSSL_X509_STORE_CTX *x509_ctx) {
  18432. auto &callback = get_verify_callback();
  18433. if (!callback) { return preverify_ok; }
  18434. WOLFSSL_X509 *cert = wolfSSL_X509_STORE_CTX_get_current_cert(x509_ctx);
  18435. int depth = wolfSSL_X509_STORE_CTX_get_error_depth(x509_ctx);
  18436. int err = wolfSSL_X509_STORE_CTX_get_error(x509_ctx);
  18437. // Get the WOLFSSL object from the X509_STORE_CTX
  18438. WOLFSSL *ssl = static_cast<WOLFSSL *>(wolfSSL_X509_STORE_CTX_get_ex_data(
  18439. x509_ctx, wolfSSL_get_ex_data_X509_STORE_CTX_idx()));
  18440. VerifyContext verify_ctx;
  18441. verify_ctx.session = static_cast<session_t>(ssl);
  18442. verify_ctx.cert = static_cast<cert_t>(cert);
  18443. verify_ctx.depth = depth;
  18444. verify_ctx.preverify_ok = (preverify_ok != 0);
  18445. verify_ctx.error_code = static_cast<long>(err);
  18446. if (err != 0) {
  18447. verify_ctx.error_string = wolfSSL_X509_verify_cert_error_string(err);
  18448. } else {
  18449. verify_ctx.error_string = nullptr;
  18450. }
  18451. bool accepted = callback(verify_ctx);
  18452. return accepted ? 1 : 0;
  18453. }
  18454. inline void set_wolfssl_password_cb(WOLFSSL_CTX *ctx, const char *password) {
  18455. wolfSSL_CTX_set_default_passwd_cb_userdata(ctx, const_cast<char *>(password));
  18456. wolfSSL_CTX_set_default_passwd_cb(
  18457. ctx, [](char *buf, int size, int /*rwflag*/, void *userdata) -> int {
  18458. auto *pwd = static_cast<const char *>(userdata);
  18459. if (!pwd) return 0;
  18460. auto len = static_cast<int>(strlen(pwd));
  18461. if (len > size) len = size;
  18462. memcpy(buf, pwd, static_cast<size_t>(len));
  18463. return len;
  18464. });
  18465. }
  18466. } // namespace impl
  18467. inline ctx_t create_client_context() {
  18468. auto ctx = new (std::nothrow) impl::WolfSSLContext();
  18469. if (!ctx) { return nullptr; }
  18470. ctx->is_server = false;
  18471. WOLFSSL_METHOD *method = wolfTLSv1_2_client_method();
  18472. if (!method) {
  18473. delete ctx;
  18474. return nullptr;
  18475. }
  18476. ctx->ctx = wolfSSL_CTX_new(method);
  18477. if (!ctx->ctx) {
  18478. delete ctx;
  18479. return nullptr;
  18480. }
  18481. // Default: verify peer certificate
  18482. wolfSSL_CTX_set_verify(ctx->ctx, SSL_VERIFY_PEER, nullptr);
  18483. return static_cast<ctx_t>(ctx);
  18484. }
  18485. inline ctx_t create_server_context() {
  18486. auto ctx = new (std::nothrow) impl::WolfSSLContext();
  18487. if (!ctx) { return nullptr; }
  18488. ctx->is_server = true;
  18489. WOLFSSL_METHOD *method = wolfTLSv1_2_server_method();
  18490. if (!method) {
  18491. delete ctx;
  18492. return nullptr;
  18493. }
  18494. ctx->ctx = wolfSSL_CTX_new(method);
  18495. if (!ctx->ctx) {
  18496. delete ctx;
  18497. return nullptr;
  18498. }
  18499. // Default: don't verify client
  18500. wolfSSL_CTX_set_verify(ctx->ctx, SSL_VERIFY_NONE, nullptr);
  18501. // Enable SNI on server
  18502. wolfSSL_CTX_SNI_SetOptions(ctx->ctx, WOLFSSL_SNI_HOST_NAME,
  18503. WOLFSSL_SNI_CONTINUE_ON_MISMATCH);
  18504. wolfSSL_CTX_set_servername_callback(ctx->ctx, impl::wolfssl_sni_callback);
  18505. return static_cast<ctx_t>(ctx);
  18506. }
  18507. inline void free_context(ctx_t ctx) {
  18508. if (ctx) { delete static_cast<impl::WolfSSLContext *>(ctx); }
  18509. }
  18510. inline bool set_min_version(ctx_t ctx, Version version) {
  18511. if (!ctx) { return false; }
  18512. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18513. int min_ver = WOLFSSL_TLSV1_2;
  18514. if (version >= Version::TLS1_3) { min_ver = WOLFSSL_TLSV1_3; }
  18515. return wolfSSL_CTX_SetMinVersion(wctx->ctx, min_ver) == WOLFSSL_SUCCESS;
  18516. }
  18517. inline bool load_ca_pem(ctx_t ctx, const char *pem, size_t len) {
  18518. if (!ctx || !pem) { return false; }
  18519. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18520. int ret = wolfSSL_CTX_load_verify_buffer(
  18521. wctx->ctx, reinterpret_cast<const unsigned char *>(pem),
  18522. static_cast<long>(len), SSL_FILETYPE_PEM);
  18523. if (ret != SSL_SUCCESS) {
  18524. impl::wolfssl_last_error() =
  18525. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18526. return false;
  18527. }
  18528. wctx->ca_pem_data_.append(pem, len);
  18529. return true;
  18530. }
  18531. inline bool load_ca_file(ctx_t ctx, const char *file_path) {
  18532. if (!ctx || !file_path) { return false; }
  18533. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18534. int ret = wolfSSL_CTX_load_verify_locations(wctx->ctx, file_path, nullptr);
  18535. if (ret != SSL_SUCCESS) {
  18536. impl::wolfssl_last_error() =
  18537. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18538. return false;
  18539. }
  18540. return true;
  18541. }
  18542. inline bool load_ca_dir(ctx_t ctx, const char *dir_path) {
  18543. if (!ctx || !dir_path) { return false; }
  18544. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18545. int ret = wolfSSL_CTX_load_verify_locations(wctx->ctx, nullptr, dir_path);
  18546. // wolfSSL may fail if the directory doesn't contain properly hashed certs.
  18547. // Unlike OpenSSL which lazily loads certs from directories, wolfSSL scans
  18548. // immediately. Return true even on failure since the CA file may have
  18549. // already been loaded, matching OpenSSL's lenient behavior.
  18550. (void)ret;
  18551. return true;
  18552. }
  18553. inline bool load_system_certs(ctx_t ctx) {
  18554. if (!ctx) { return false; }
  18555. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18556. bool loaded = false;
  18557. #ifdef _WIN32
  18558. loaded = impl::enumerate_windows_system_certs(
  18559. [&](const unsigned char *data, size_t len) {
  18560. return wolfSSL_CTX_load_verify_buffer(wctx->ctx, data,
  18561. static_cast<long>(len),
  18562. SSL_FILETYPE_ASN1) == SSL_SUCCESS;
  18563. });
  18564. #elif defined(__APPLE__) && defined(CPPHTTPLIB_USE_CERTS_FROM_MACOSX_KEYCHAIN)
  18565. loaded = impl::enumerate_macos_keychain_certs(
  18566. [&](const unsigned char *data, size_t len) {
  18567. return wolfSSL_CTX_load_verify_buffer(wctx->ctx, data,
  18568. static_cast<long>(len),
  18569. SSL_FILETYPE_ASN1) == SSL_SUCCESS;
  18570. });
  18571. #else
  18572. for (auto path = impl::system_ca_paths(); *path; ++path) {
  18573. if (wolfSSL_CTX_load_verify_locations(wctx->ctx, *path, nullptr) ==
  18574. SSL_SUCCESS) {
  18575. loaded = true;
  18576. break;
  18577. }
  18578. }
  18579. if (!loaded) {
  18580. for (auto dir = impl::system_ca_dirs(); *dir; ++dir) {
  18581. if (wolfSSL_CTX_load_verify_locations(wctx->ctx, nullptr, *dir) ==
  18582. SSL_SUCCESS) {
  18583. loaded = true;
  18584. break;
  18585. }
  18586. }
  18587. }
  18588. #endif
  18589. return loaded;
  18590. }
  18591. inline bool set_client_cert_pem(ctx_t ctx, const char *cert, const char *key,
  18592. const char *password) {
  18593. if (!ctx || !cert || !key) { return false; }
  18594. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18595. // Load certificate
  18596. int ret = wolfSSL_CTX_use_certificate_buffer(
  18597. wctx->ctx, reinterpret_cast<const unsigned char *>(cert),
  18598. static_cast<long>(strlen(cert)), SSL_FILETYPE_PEM);
  18599. if (ret != SSL_SUCCESS) {
  18600. impl::wolfssl_last_error() =
  18601. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18602. return false;
  18603. }
  18604. // Set password callback if password is provided
  18605. if (password) { impl::set_wolfssl_password_cb(wctx->ctx, password); }
  18606. // Load private key
  18607. ret = wolfSSL_CTX_use_PrivateKey_buffer(
  18608. wctx->ctx, reinterpret_cast<const unsigned char *>(key),
  18609. static_cast<long>(strlen(key)), SSL_FILETYPE_PEM);
  18610. if (ret != SSL_SUCCESS) {
  18611. impl::wolfssl_last_error() =
  18612. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18613. return false;
  18614. }
  18615. // Verify that the certificate and private key match
  18616. return wolfSSL_CTX_check_private_key(wctx->ctx) == SSL_SUCCESS;
  18617. }
  18618. inline bool set_client_cert_file(ctx_t ctx, const char *cert_path,
  18619. const char *key_path, const char *password) {
  18620. if (!ctx || !cert_path || !key_path) { return false; }
  18621. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18622. // Load certificate file
  18623. int ret =
  18624. wolfSSL_CTX_use_certificate_file(wctx->ctx, cert_path, SSL_FILETYPE_PEM);
  18625. if (ret != SSL_SUCCESS) {
  18626. impl::wolfssl_last_error() =
  18627. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18628. return false;
  18629. }
  18630. // Set password callback if password is provided
  18631. if (password) { impl::set_wolfssl_password_cb(wctx->ctx, password); }
  18632. // Load private key file
  18633. ret = wolfSSL_CTX_use_PrivateKey_file(wctx->ctx, key_path, SSL_FILETYPE_PEM);
  18634. if (ret != SSL_SUCCESS) {
  18635. impl::wolfssl_last_error() =
  18636. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18637. return false;
  18638. }
  18639. // Verify that the certificate and private key match
  18640. return wolfSSL_CTX_check_private_key(wctx->ctx) == SSL_SUCCESS;
  18641. }
  18642. inline void set_verify_client(ctx_t ctx, bool require) {
  18643. if (!ctx) { return; }
  18644. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18645. wctx->verify_client = require;
  18646. if (require) {
  18647. wolfSSL_CTX_set_verify(
  18648. wctx->ctx, SSL_VERIFY_PEER | SSL_VERIFY_FAIL_IF_NO_PEER_CERT,
  18649. wctx->has_verify_callback ? impl::wolfssl_verify_callback : nullptr);
  18650. } else {
  18651. if (wctx->has_verify_callback) {
  18652. wolfSSL_CTX_set_verify(wctx->ctx, SSL_VERIFY_PEER,
  18653. impl::wolfssl_verify_callback);
  18654. } else {
  18655. wolfSSL_CTX_set_verify(wctx->ctx, SSL_VERIFY_NONE, nullptr);
  18656. }
  18657. }
  18658. }
  18659. inline session_t create_session(ctx_t ctx, socket_t sock) {
  18660. if (!ctx || sock == INVALID_SOCKET) { return nullptr; }
  18661. auto wctx = static_cast<impl::WolfSSLContext *>(ctx);
  18662. auto session = new (std::nothrow) impl::WolfSSLSession();
  18663. if (!session) { return nullptr; }
  18664. session->sock = sock;
  18665. session->ssl = wolfSSL_new(wctx->ctx);
  18666. if (!session->ssl) {
  18667. impl::wolfssl_last_error() =
  18668. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18669. delete session;
  18670. return nullptr;
  18671. }
  18672. wolfSSL_set_fd(session->ssl, static_cast<int>(sock));
  18673. return static_cast<session_t>(session);
  18674. }
  18675. inline void free_session(session_t session) {
  18676. if (session) { delete static_cast<impl::WolfSSLSession *>(session); }
  18677. }
  18678. inline bool set_sni(session_t session, const char *hostname,
  18679. bool verify_hostname) {
  18680. if (!session || !hostname) { return false; }
  18681. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18682. int ret = wolfSSL_UseSNI(wsession->ssl, WOLFSSL_SNI_HOST_NAME, hostname,
  18683. static_cast<word16>(strlen(hostname)));
  18684. if (ret != WOLFSSL_SUCCESS) {
  18685. impl::wolfssl_last_error() =
  18686. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  18687. return false;
  18688. }
  18689. // wolfSSL_check_domain_name binds identity checking to the handshake,
  18690. // separately from the SNI extension sent above; skip it when hostname
  18691. // verification is disabled so only the chain is checked, matching OpenSSL.
  18692. if (verify_hostname) { wolfSSL_check_domain_name(wsession->ssl, hostname); }
  18693. wsession->hostname = hostname;
  18694. return true;
  18695. }
  18696. inline TlsError connect(session_t session) {
  18697. TlsError err;
  18698. if (!session) {
  18699. err.code = ErrorCode::Fatal;
  18700. return err;
  18701. }
  18702. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18703. int ret = wolfSSL_connect(wsession->ssl);
  18704. if (ret == SSL_SUCCESS) {
  18705. err.code = ErrorCode::Success;
  18706. } else {
  18707. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18708. err.code = impl::map_wolfssl_error(wsession->ssl, ssl_error, err.sys_errno);
  18709. err.backend_code = static_cast<uint64_t>(ssl_error);
  18710. impl::wolfssl_last_error() = err.backend_code;
  18711. }
  18712. return err;
  18713. }
  18714. inline TlsError accept(session_t session) {
  18715. TlsError err;
  18716. if (!session) {
  18717. err.code = ErrorCode::Fatal;
  18718. return err;
  18719. }
  18720. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18721. int ret = wolfSSL_accept(wsession->ssl);
  18722. if (ret == SSL_SUCCESS) {
  18723. err.code = ErrorCode::Success;
  18724. // Capture SNI from thread-local storage after successful handshake
  18725. wsession->sni_hostname = std::move(impl::wolfssl_pending_sni());
  18726. impl::wolfssl_pending_sni().clear();
  18727. } else {
  18728. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18729. err.code = impl::map_wolfssl_error(wsession->ssl, ssl_error, err.sys_errno);
  18730. err.backend_code = static_cast<uint64_t>(ssl_error);
  18731. impl::wolfssl_last_error() = err.backend_code;
  18732. }
  18733. return err;
  18734. }
  18735. inline bool connect_nonblocking(session_t session, socket_t sock,
  18736. time_t timeout_sec, time_t timeout_usec,
  18737. TlsError *err) {
  18738. if (!session) {
  18739. if (err) { err->code = ErrorCode::Fatal; }
  18740. return false;
  18741. }
  18742. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18743. // Set socket to non-blocking mode
  18744. detail::set_nonblocking(sock, true);
  18745. auto cleanup =
  18746. detail::scope_exit([&]() { detail::set_nonblocking(sock, false); });
  18747. int ret;
  18748. while ((ret = wolfSSL_connect(wsession->ssl)) != SSL_SUCCESS) {
  18749. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18750. if (ssl_error == SSL_ERROR_WANT_READ) {
  18751. if (detail::select_read(sock, timeout_sec, timeout_usec) > 0) {
  18752. continue;
  18753. }
  18754. } else if (ssl_error == SSL_ERROR_WANT_WRITE) {
  18755. if (detail::select_write(sock, timeout_sec, timeout_usec) > 0) {
  18756. continue;
  18757. }
  18758. }
  18759. // Error or timeout
  18760. if (err) {
  18761. err->code =
  18762. impl::map_wolfssl_error(wsession->ssl, ssl_error, err->sys_errno);
  18763. err->backend_code = static_cast<uint64_t>(ssl_error);
  18764. }
  18765. impl::wolfssl_last_error() = static_cast<uint64_t>(ssl_error);
  18766. return false;
  18767. }
  18768. if (err) { err->code = ErrorCode::Success; }
  18769. return true;
  18770. }
  18771. inline bool accept_nonblocking(session_t session, socket_t sock,
  18772. time_t timeout_sec, time_t timeout_usec,
  18773. TlsError *err) {
  18774. if (!session) {
  18775. if (err) { err->code = ErrorCode::Fatal; }
  18776. return false;
  18777. }
  18778. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18779. // Set socket to non-blocking mode
  18780. detail::set_nonblocking(sock, true);
  18781. auto cleanup =
  18782. detail::scope_exit([&]() { detail::set_nonblocking(sock, false); });
  18783. int ret;
  18784. while ((ret = wolfSSL_accept(wsession->ssl)) != SSL_SUCCESS) {
  18785. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18786. if (ssl_error == SSL_ERROR_WANT_READ) {
  18787. if (detail::select_read(sock, timeout_sec, timeout_usec) > 0) {
  18788. continue;
  18789. }
  18790. } else if (ssl_error == SSL_ERROR_WANT_WRITE) {
  18791. if (detail::select_write(sock, timeout_sec, timeout_usec) > 0) {
  18792. continue;
  18793. }
  18794. }
  18795. // Error or timeout
  18796. if (err) {
  18797. err->code =
  18798. impl::map_wolfssl_error(wsession->ssl, ssl_error, err->sys_errno);
  18799. err->backend_code = static_cast<uint64_t>(ssl_error);
  18800. }
  18801. impl::wolfssl_last_error() = static_cast<uint64_t>(ssl_error);
  18802. return false;
  18803. }
  18804. if (err) { err->code = ErrorCode::Success; }
  18805. // Capture SNI from thread-local storage after successful handshake
  18806. wsession->sni_hostname = std::move(impl::wolfssl_pending_sni());
  18807. impl::wolfssl_pending_sni().clear();
  18808. return true;
  18809. }
  18810. inline ssize_t read(session_t session, void *buf, size_t len, TlsError &err) {
  18811. if (!session || !buf) {
  18812. err.code = ErrorCode::Fatal;
  18813. return -1;
  18814. }
  18815. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18816. int ret = wolfSSL_read(wsession->ssl, buf, static_cast<int>(len));
  18817. if (ret > 0) {
  18818. err.code = ErrorCode::Success;
  18819. return static_cast<ssize_t>(ret);
  18820. }
  18821. if (ret == 0) {
  18822. err.code = ErrorCode::PeerClosed;
  18823. return 0;
  18824. }
  18825. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18826. err.code = impl::map_wolfssl_error(wsession->ssl, ssl_error, err.sys_errno);
  18827. err.backend_code = static_cast<uint64_t>(ssl_error);
  18828. impl::wolfssl_last_error() = err.backend_code;
  18829. return -1;
  18830. }
  18831. inline ssize_t write(session_t session, const void *buf, size_t len,
  18832. TlsError &err) {
  18833. if (!session || !buf) {
  18834. err.code = ErrorCode::Fatal;
  18835. return -1;
  18836. }
  18837. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18838. int ret = wolfSSL_write(wsession->ssl, buf, static_cast<int>(len));
  18839. if (ret > 0) {
  18840. err.code = ErrorCode::Success;
  18841. return static_cast<ssize_t>(ret);
  18842. }
  18843. // wolfSSL_write returns 0 when the peer has sent a close_notify.
  18844. // Treat this as an error (return -1) so callers don't spin in a
  18845. // write loop adding zero to the offset.
  18846. if (ret == 0) {
  18847. err.code = ErrorCode::PeerClosed;
  18848. return -1;
  18849. }
  18850. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18851. err.code = impl::map_wolfssl_error(wsession->ssl, ssl_error, err.sys_errno);
  18852. err.backend_code = static_cast<uint64_t>(ssl_error);
  18853. impl::wolfssl_last_error() = err.backend_code;
  18854. return -1;
  18855. }
  18856. inline int pending(const_session_t session) {
  18857. if (!session) { return 0; }
  18858. auto wsession =
  18859. static_cast<impl::WolfSSLSession *>(const_cast<void *>(session));
  18860. return wolfSSL_pending(wsession->ssl);
  18861. }
  18862. inline void shutdown(session_t session, bool graceful) {
  18863. if (!session) { return; }
  18864. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18865. if (graceful) {
  18866. int ret;
  18867. int attempts = 0;
  18868. while ((ret = wolfSSL_shutdown(wsession->ssl)) != SSL_SUCCESS &&
  18869. attempts < 3) {
  18870. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18871. if (ssl_error != SSL_ERROR_WANT_READ &&
  18872. ssl_error != SSL_ERROR_WANT_WRITE) {
  18873. break;
  18874. }
  18875. attempts++;
  18876. }
  18877. } else {
  18878. wolfSSL_shutdown(wsession->ssl);
  18879. }
  18880. }
  18881. inline bool is_peer_closed(session_t session, socket_t sock) {
  18882. if (!session || sock == INVALID_SOCKET) { return true; }
  18883. auto wsession = static_cast<impl::WolfSSLSession *>(session);
  18884. // Check if there's already decrypted data available
  18885. if (wolfSSL_pending(wsession->ssl) > 0) { return false; }
  18886. // Set socket to non-blocking to avoid blocking on read
  18887. detail::set_nonblocking(sock, true);
  18888. auto cleanup =
  18889. detail::scope_exit([&]() { detail::set_nonblocking(sock, false); });
  18890. // Peek 1 byte to check connection status without consuming data
  18891. unsigned char buf;
  18892. int ret = wolfSSL_peek(wsession->ssl, &buf, 1);
  18893. // If we got data or WANT_READ (would block), connection is alive
  18894. if (ret > 0) { return false; }
  18895. int ssl_error = wolfSSL_get_error(wsession->ssl, ret);
  18896. if (ssl_error == SSL_ERROR_WANT_READ) { return false; }
  18897. return ssl_error == SSL_ERROR_ZERO_RETURN || ssl_error == SSL_ERROR_SYSCALL ||
  18898. ret == 0;
  18899. }
  18900. inline cert_t get_peer_cert(const_session_t session) {
  18901. if (!session) { return nullptr; }
  18902. auto wsession =
  18903. static_cast<impl::WolfSSLSession *>(const_cast<void *>(session));
  18904. WOLFSSL_X509 *cert = wolfSSL_get_peer_certificate(wsession->ssl);
  18905. return static_cast<cert_t>(cert);
  18906. }
  18907. inline size_t get_peer_certs(const_session_t session,
  18908. std::vector<cert_t> &certs) {
  18909. certs.clear();
  18910. if (!session) { return 0; }
  18911. // wolfSSL keeps the received chain only when built with SESSION_CERTS
  18912. #ifdef SESSION_CERTS
  18913. auto wsession =
  18914. static_cast<impl::WolfSSLSession *>(const_cast<void *>(session));
  18915. auto chain = wolfSSL_get_peer_chain(wsession->ssl);
  18916. auto count = chain ? wolfSSL_get_chain_count(chain) : 0;
  18917. for (int i = 0; i < count; i++) {
  18918. auto x509 = wolfSSL_get_chain_X509(chain, i);
  18919. if (x509) { certs.push_back(static_cast<cert_t>(x509)); }
  18920. }
  18921. #endif
  18922. return certs.size();
  18923. }
  18924. inline void free_cert(cert_t cert) {
  18925. if (cert) { wolfSSL_X509_free(static_cast<WOLFSSL_X509 *>(cert)); }
  18926. }
  18927. inline bool verify_hostname(cert_t cert, const char *hostname) {
  18928. if (!cert || !hostname) { return false; }
  18929. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  18930. std::string host_str(hostname);
  18931. // Check if hostname is an IP address (IPv4 or IPv6)
  18932. unsigned char ip_bytes[16];
  18933. auto ip_len = impl::parse_ip_address(host_str, ip_bytes);
  18934. auto is_ip = ip_len > 0;
  18935. // Check Subject Alternative Names
  18936. auto *san_names = static_cast<WOLF_STACK_OF(WOLFSSL_GENERAL_NAME) *>(
  18937. wolfSSL_X509_get_ext_d2i(x509, NID_subject_alt_name, nullptr, nullptr));
  18938. if (san_names) {
  18939. int san_count = wolfSSL_sk_num(san_names);
  18940. for (int i = 0; i < san_count; i++) {
  18941. auto *names =
  18942. static_cast<WOLFSSL_GENERAL_NAME *>(wolfSSL_sk_value(san_names, i));
  18943. if (!names) continue;
  18944. if (!is_ip && names->type == WOLFSSL_GEN_DNS) {
  18945. // DNS name
  18946. unsigned char *dns_name = nullptr;
  18947. int dns_len = wolfSSL_ASN1_STRING_to_UTF8(&dns_name, names->d.dNSName);
  18948. if (dns_name && dns_len > 0) {
  18949. std::string san_name(reinterpret_cast<char *>(dns_name),
  18950. static_cast<size_t>(dns_len));
  18951. XFREE(dns_name, nullptr, DYNAMIC_TYPE_OPENSSL);
  18952. if (detail::match_hostname(san_name, host_str)) {
  18953. wolfSSL_sk_free(san_names);
  18954. return true;
  18955. }
  18956. }
  18957. } else if (is_ip && names->type == WOLFSSL_GEN_IPADD) {
  18958. // IP address: only an iPAddress SAN of the same family (4 bytes for
  18959. // IPv4, 16 bytes for IPv6) may authenticate the host.
  18960. unsigned char *ip_data = wolfSSL_ASN1_STRING_data(names->d.iPAddress);
  18961. auto san_ip_len = wolfSSL_ASN1_STRING_length(names->d.iPAddress);
  18962. if (ip_data && san_ip_len == static_cast<int>(ip_len) &&
  18963. memcmp(ip_data, ip_bytes, ip_len) == 0) {
  18964. wolfSSL_sk_free(san_names);
  18965. return true;
  18966. }
  18967. }
  18968. }
  18969. wolfSSL_sk_free(san_names);
  18970. }
  18971. // Fallback: Check Common Name (CN) in subject. Skipped for IP-literal hosts:
  18972. // an IP identity is only valid via an iPAddress SAN, never the CN (RFC 9110;
  18973. // the OpenSSL backend's X509_check_ip behaves the same way).
  18974. auto subject = is_ip ? nullptr : wolfSSL_X509_get_subject_name(x509);
  18975. if (subject) {
  18976. char cn[256] = {};
  18977. int cn_len = wolfSSL_X509_NAME_get_text_by_NID(subject, NID_commonName, cn,
  18978. sizeof(cn));
  18979. if (cn_len > 0) {
  18980. std::string cn_str(cn, static_cast<size_t>(cn_len));
  18981. if (detail::match_hostname(cn_str, host_str)) { return true; }
  18982. }
  18983. }
  18984. return false;
  18985. }
  18986. inline uint64_t hostname_mismatch_code() {
  18987. return static_cast<uint64_t>(DOMAIN_NAME_MISMATCH);
  18988. }
  18989. inline long get_verify_result(const_session_t session) {
  18990. if (!session) { return -1; }
  18991. auto wsession =
  18992. static_cast<impl::WolfSSLSession *>(const_cast<void *>(session));
  18993. long result = wolfSSL_get_verify_result(wsession->ssl);
  18994. return result;
  18995. }
  18996. inline std::string get_cert_subject_cn(cert_t cert) {
  18997. if (!cert) return "";
  18998. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  18999. WOLFSSL_X509_NAME *subject = wolfSSL_X509_get_subject_name(x509);
  19000. if (!subject) return "";
  19001. char cn[256] = {};
  19002. int cn_len = wolfSSL_X509_NAME_get_text_by_NID(subject, NID_commonName, cn,
  19003. sizeof(cn));
  19004. if (cn_len <= 0) return "";
  19005. return std::string(cn, static_cast<size_t>(cn_len));
  19006. }
  19007. inline std::string get_cert_issuer_name(cert_t cert) {
  19008. if (!cert) return "";
  19009. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  19010. WOLFSSL_X509_NAME *issuer = wolfSSL_X509_get_issuer_name(x509);
  19011. if (!issuer) return "";
  19012. char *name_str = wolfSSL_X509_NAME_oneline(issuer, nullptr, 0);
  19013. if (!name_str) return "";
  19014. std::string result(name_str);
  19015. XFREE(name_str, nullptr, DYNAMIC_TYPE_OPENSSL);
  19016. return result;
  19017. }
  19018. inline bool get_cert_sans(cert_t cert, std::vector<SanEntry> &sans) {
  19019. sans.clear();
  19020. if (!cert) return false;
  19021. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  19022. auto *san_names = static_cast<WOLF_STACK_OF(WOLFSSL_GENERAL_NAME) *>(
  19023. wolfSSL_X509_get_ext_d2i(x509, NID_subject_alt_name, nullptr, nullptr));
  19024. if (!san_names) return true; // No SANs is not an error
  19025. int count = wolfSSL_sk_num(san_names);
  19026. for (int i = 0; i < count; i++) {
  19027. auto *name =
  19028. static_cast<WOLFSSL_GENERAL_NAME *>(wolfSSL_sk_value(san_names, i));
  19029. if (!name) continue;
  19030. SanEntry entry;
  19031. switch (name->type) {
  19032. case WOLFSSL_GEN_DNS: {
  19033. entry.type = SanType::DNS;
  19034. unsigned char *dns_name = nullptr;
  19035. int dns_len = wolfSSL_ASN1_STRING_to_UTF8(&dns_name, name->d.dNSName);
  19036. if (dns_name && dns_len > 0) {
  19037. entry.value = std::string(reinterpret_cast<char *>(dns_name),
  19038. static_cast<size_t>(dns_len));
  19039. XFREE(dns_name, nullptr, DYNAMIC_TYPE_OPENSSL);
  19040. }
  19041. break;
  19042. }
  19043. case WOLFSSL_GEN_IPADD: {
  19044. entry.type = SanType::IP;
  19045. unsigned char *ip_data = wolfSSL_ASN1_STRING_data(name->d.iPAddress);
  19046. int ip_len = wolfSSL_ASN1_STRING_length(name->d.iPAddress);
  19047. if (ip_data && ip_len == 4) {
  19048. char buf[16];
  19049. snprintf(buf, sizeof(buf), "%d.%d.%d.%d", ip_data[0], ip_data[1],
  19050. ip_data[2], ip_data[3]);
  19051. entry.value = buf;
  19052. } else if (ip_data && ip_len == 16) {
  19053. char buf[64];
  19054. snprintf(buf, sizeof(buf),
  19055. "%02x%02x:%02x%02x:%02x%02x:%02x%02x:"
  19056. "%02x%02x:%02x%02x:%02x%02x:%02x%02x",
  19057. ip_data[0], ip_data[1], ip_data[2], ip_data[3], ip_data[4],
  19058. ip_data[5], ip_data[6], ip_data[7], ip_data[8], ip_data[9],
  19059. ip_data[10], ip_data[11], ip_data[12], ip_data[13],
  19060. ip_data[14], ip_data[15]);
  19061. entry.value = buf;
  19062. }
  19063. break;
  19064. }
  19065. case WOLFSSL_GEN_EMAIL:
  19066. entry.type = SanType::EMAIL;
  19067. {
  19068. unsigned char *email = nullptr;
  19069. int email_len = wolfSSL_ASN1_STRING_to_UTF8(&email, name->d.rfc822Name);
  19070. if (email && email_len > 0) {
  19071. entry.value = std::string(reinterpret_cast<char *>(email),
  19072. static_cast<size_t>(email_len));
  19073. XFREE(email, nullptr, DYNAMIC_TYPE_OPENSSL);
  19074. }
  19075. }
  19076. break;
  19077. case WOLFSSL_GEN_URI:
  19078. entry.type = SanType::URI;
  19079. {
  19080. unsigned char *uri = nullptr;
  19081. int uri_len = wolfSSL_ASN1_STRING_to_UTF8(
  19082. &uri, name->d.uniformResourceIdentifier);
  19083. if (uri && uri_len > 0) {
  19084. entry.value = std::string(reinterpret_cast<char *>(uri),
  19085. static_cast<size_t>(uri_len));
  19086. XFREE(uri, nullptr, DYNAMIC_TYPE_OPENSSL);
  19087. }
  19088. }
  19089. break;
  19090. default: entry.type = SanType::OTHER; break;
  19091. }
  19092. if (!entry.value.empty()) { sans.push_back(std::move(entry)); }
  19093. }
  19094. wolfSSL_sk_free(san_names);
  19095. return true;
  19096. }
  19097. inline bool get_cert_validity(cert_t cert, time_t &not_before,
  19098. time_t &not_after) {
  19099. if (!cert) return false;
  19100. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  19101. const WOLFSSL_ASN1_TIME *nb = wolfSSL_X509_get_notBefore(x509);
  19102. const WOLFSSL_ASN1_TIME *na = wolfSSL_X509_get_notAfter(x509);
  19103. if (!nb || !na) return false;
  19104. // wolfSSL_ASN1_TIME_to_tm is available
  19105. struct tm tm_nb = {}, tm_na = {};
  19106. if (wolfSSL_ASN1_TIME_to_tm(nb, &tm_nb) != WOLFSSL_SUCCESS) return false;
  19107. if (wolfSSL_ASN1_TIME_to_tm(na, &tm_na) != WOLFSSL_SUCCESS) return false;
  19108. #ifdef _WIN32
  19109. not_before = _mkgmtime(&tm_nb);
  19110. not_after = _mkgmtime(&tm_na);
  19111. #else
  19112. not_before = timegm(&tm_nb);
  19113. not_after = timegm(&tm_na);
  19114. #endif
  19115. return true;
  19116. }
  19117. inline std::string get_cert_serial(cert_t cert) {
  19118. if (!cert) return "";
  19119. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  19120. WOLFSSL_ASN1_INTEGER *serial_asn1 = wolfSSL_X509_get_serialNumber(x509);
  19121. if (!serial_asn1) return "";
  19122. // Get the serial number data
  19123. int len = serial_asn1->length;
  19124. unsigned char *data = serial_asn1->data;
  19125. if (!data || len <= 0) return "";
  19126. std::string result;
  19127. result.reserve(static_cast<size_t>(len) * 2);
  19128. for (int i = 0; i < len; i++) {
  19129. char hex[3];
  19130. snprintf(hex, sizeof(hex), "%02X", data[i]);
  19131. result += hex;
  19132. }
  19133. return result;
  19134. }
  19135. inline bool get_cert_der(cert_t cert, std::vector<unsigned char> &der) {
  19136. if (!cert) return false;
  19137. auto x509 = static_cast<WOLFSSL_X509 *>(cert);
  19138. int der_len = 0;
  19139. const unsigned char *der_data = wolfSSL_X509_get_der(x509, &der_len);
  19140. if (!der_data || der_len <= 0) return false;
  19141. der.assign(der_data, der_data + der_len);
  19142. return true;
  19143. }
  19144. inline const char *get_sni(const_session_t session) {
  19145. if (!session) return nullptr;
  19146. auto wsession = static_cast<const impl::WolfSSLSession *>(session);
  19147. // For server: return SNI received from client during handshake
  19148. if (!wsession->sni_hostname.empty()) {
  19149. return wsession->sni_hostname.c_str();
  19150. }
  19151. // For client: return the hostname set via set_sni
  19152. if (!wsession->hostname.empty()) { return wsession->hostname.c_str(); }
  19153. return nullptr;
  19154. }
  19155. inline uint64_t peek_error() {
  19156. return static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  19157. }
  19158. inline uint64_t get_error() {
  19159. uint64_t err = impl::wolfssl_last_error();
  19160. impl::wolfssl_last_error() = 0;
  19161. return err;
  19162. }
  19163. inline std::string error_string(uint64_t code) {
  19164. char buf[256];
  19165. wolfSSL_ERR_error_string(static_cast<unsigned long>(code), buf);
  19166. return std::string(buf);
  19167. }
  19168. inline ca_store_t create_ca_store(const char *pem, size_t len) {
  19169. if (!pem || len == 0) { return nullptr; }
  19170. // Validate by attempting to load into a temporary ctx
  19171. WOLFSSL_CTX *tmp_ctx = wolfSSL_CTX_new(wolfTLSv1_2_client_method());
  19172. if (!tmp_ctx) { return nullptr; }
  19173. int ret = wolfSSL_CTX_load_verify_buffer(
  19174. tmp_ctx, reinterpret_cast<const unsigned char *>(pem),
  19175. static_cast<long>(len), SSL_FILETYPE_PEM);
  19176. wolfSSL_CTX_free(tmp_ctx);
  19177. if (ret != SSL_SUCCESS) { return nullptr; }
  19178. return static_cast<ca_store_t>(
  19179. new impl::WolfSSLCAStore{std::string(pem, len)});
  19180. }
  19181. inline void free_ca_store(ca_store_t store) {
  19182. delete static_cast<impl::WolfSSLCAStore *>(store);
  19183. }
  19184. inline bool set_ca_store(ctx_t ctx, ca_store_t store) {
  19185. if (!ctx || !store) { return false; }
  19186. auto *wctx = static_cast<impl::WolfSSLContext *>(ctx);
  19187. auto *ca = static_cast<impl::WolfSSLCAStore *>(store);
  19188. int ret = wolfSSL_CTX_load_verify_buffer(
  19189. wctx->ctx, reinterpret_cast<const unsigned char *>(ca->pem_data.data()),
  19190. static_cast<long>(ca->pem_data.size()), SSL_FILETYPE_PEM);
  19191. if (ret == SSL_SUCCESS) { wctx->ca_pem_data_ += ca->pem_data; }
  19192. // This function takes ownership of the store; the PEM data was copied into
  19193. // the context, so release the source
  19194. free_ca_store(store);
  19195. return ret == SSL_SUCCESS;
  19196. }
  19197. inline size_t get_ca_certs(ctx_t ctx, std::vector<cert_t> &certs) {
  19198. certs.clear();
  19199. if (!ctx) { return 0; }
  19200. auto *wctx = static_cast<impl::WolfSSLContext *>(ctx);
  19201. if (wctx->ca_pem_data_.empty()) { return 0; }
  19202. const std::string &pem = wctx->ca_pem_data_;
  19203. const std::string begin_marker = "-----BEGIN CERTIFICATE-----";
  19204. const std::string end_marker = "-----END CERTIFICATE-----";
  19205. size_t pos = 0;
  19206. while ((pos = pem.find(begin_marker, pos)) != std::string::npos) {
  19207. size_t end_pos = pem.find(end_marker, pos);
  19208. if (end_pos == std::string::npos) { break; }
  19209. end_pos += end_marker.size();
  19210. std::string cert_pem = pem.substr(pos, end_pos - pos);
  19211. WOLFSSL_X509 *x509 = wolfSSL_X509_load_certificate_buffer(
  19212. reinterpret_cast<const unsigned char *>(cert_pem.data()),
  19213. static_cast<int>(cert_pem.size()), WOLFSSL_FILETYPE_PEM);
  19214. if (x509) { certs.push_back(static_cast<cert_t>(x509)); }
  19215. pos = end_pos;
  19216. }
  19217. return certs.size();
  19218. }
  19219. inline std::vector<std::string> get_ca_names(ctx_t ctx) {
  19220. std::vector<std::string> names;
  19221. if (!ctx) { return names; }
  19222. auto *wctx = static_cast<impl::WolfSSLContext *>(ctx);
  19223. if (wctx->ca_pem_data_.empty()) { return names; }
  19224. const std::string &pem = wctx->ca_pem_data_;
  19225. const std::string begin_marker = "-----BEGIN CERTIFICATE-----";
  19226. const std::string end_marker = "-----END CERTIFICATE-----";
  19227. size_t pos = 0;
  19228. while ((pos = pem.find(begin_marker, pos)) != std::string::npos) {
  19229. size_t end_pos = pem.find(end_marker, pos);
  19230. if (end_pos == std::string::npos) { break; }
  19231. end_pos += end_marker.size();
  19232. std::string cert_pem = pem.substr(pos, end_pos - pos);
  19233. WOLFSSL_X509 *x509 = wolfSSL_X509_load_certificate_buffer(
  19234. reinterpret_cast<const unsigned char *>(cert_pem.data()),
  19235. static_cast<int>(cert_pem.size()), WOLFSSL_FILETYPE_PEM);
  19236. if (x509) {
  19237. WOLFSSL_X509_NAME *subject = wolfSSL_X509_get_subject_name(x509);
  19238. if (subject) {
  19239. char *name_str = wolfSSL_X509_NAME_oneline(subject, nullptr, 0);
  19240. if (name_str) {
  19241. names.push_back(name_str);
  19242. XFREE(name_str, nullptr, DYNAMIC_TYPE_OPENSSL);
  19243. }
  19244. }
  19245. wolfSSL_X509_free(x509);
  19246. }
  19247. pos = end_pos;
  19248. }
  19249. return names;
  19250. }
  19251. inline bool update_server_cert(ctx_t ctx, const char *cert_pem,
  19252. const char *key_pem, const char *password) {
  19253. if (!ctx || !cert_pem || !key_pem) { return false; }
  19254. auto *wctx = static_cast<impl::WolfSSLContext *>(ctx);
  19255. // Load new certificate
  19256. int ret = wolfSSL_CTX_use_certificate_buffer(
  19257. wctx->ctx, reinterpret_cast<const unsigned char *>(cert_pem),
  19258. static_cast<long>(strlen(cert_pem)), SSL_FILETYPE_PEM);
  19259. if (ret != SSL_SUCCESS) {
  19260. impl::wolfssl_last_error() =
  19261. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  19262. return false;
  19263. }
  19264. // Set password if provided
  19265. if (password) { impl::set_wolfssl_password_cb(wctx->ctx, password); }
  19266. // Load new private key
  19267. ret = wolfSSL_CTX_use_PrivateKey_buffer(
  19268. wctx->ctx, reinterpret_cast<const unsigned char *>(key_pem),
  19269. static_cast<long>(strlen(key_pem)), SSL_FILETYPE_PEM);
  19270. if (ret != SSL_SUCCESS) {
  19271. impl::wolfssl_last_error() =
  19272. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  19273. return false;
  19274. }
  19275. return true;
  19276. }
  19277. inline bool update_server_client_ca(ctx_t ctx, const char *ca_pem) {
  19278. if (!ctx || !ca_pem) { return false; }
  19279. auto *wctx = static_cast<impl::WolfSSLContext *>(ctx);
  19280. int ret = wolfSSL_CTX_load_verify_buffer(
  19281. wctx->ctx, reinterpret_cast<const unsigned char *>(ca_pem),
  19282. static_cast<long>(strlen(ca_pem)), SSL_FILETYPE_PEM);
  19283. if (ret != SSL_SUCCESS) {
  19284. impl::wolfssl_last_error() =
  19285. static_cast<uint64_t>(wolfSSL_ERR_peek_last_error());
  19286. return false;
  19287. }
  19288. return true;
  19289. }
  19290. inline bool set_verify_callback(ctx_t ctx, VerifyCallback callback) {
  19291. if (!ctx) { return false; }
  19292. auto *wctx = static_cast<impl::WolfSSLContext *>(ctx);
  19293. impl::get_verify_callback() = std::move(callback);
  19294. wctx->has_verify_callback = static_cast<bool>(impl::get_verify_callback());
  19295. if (wctx->has_verify_callback) {
  19296. wolfSSL_CTX_set_verify(wctx->ctx, SSL_VERIFY_PEER,
  19297. impl::wolfssl_verify_callback);
  19298. } else {
  19299. wolfSSL_CTX_set_verify(
  19300. wctx->ctx,
  19301. wctx->verify_client
  19302. ? (SSL_VERIFY_PEER | SSL_VERIFY_FAIL_IF_NO_PEER_CERT)
  19303. : SSL_VERIFY_NONE,
  19304. nullptr);
  19305. }
  19306. return true;
  19307. }
  19308. inline long get_verify_error(const_session_t session) {
  19309. if (!session) { return -1; }
  19310. auto *wsession =
  19311. static_cast<impl::WolfSSLSession *>(const_cast<void *>(session));
  19312. return wolfSSL_get_verify_result(wsession->ssl);
  19313. }
  19314. inline std::string verify_error_string(long error_code) {
  19315. if (error_code == 0) { return ""; }
  19316. const char *str =
  19317. wolfSSL_X509_verify_cert_error_string(static_cast<int>(error_code));
  19318. return str ? std::string(str) : std::string();
  19319. }
  19320. } // namespace tls
  19321. #endif // CPPHTTPLIB_WOLFSSL_SUPPORT
  19322. // WebSocket implementation
  19323. namespace ws {
  19324. inline bool WebSocket::send_frame(Opcode op, const char *data, size_t len,
  19325. bool fin) {
  19326. std::lock_guard<std::mutex> lock(write_mutex_);
  19327. if (closed_) { return false; }
  19328. return detail::write_websocket_frame(strm_, op, data, len, fin, !is_server_);
  19329. }
  19330. inline ReadResult WebSocket::read(std::string &msg) {
  19331. std::unique_lock<std::mutex> read_lock(read_mutex_);
  19332. while (!closed_) {
  19333. Opcode opcode;
  19334. std::string payload;
  19335. bool fin;
  19336. impl::FrameRead r =
  19337. impl::read_websocket_frame(strm_, opcode, payload, fin, is_server_,
  19338. CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH);
  19339. // A timeout landed on a frame boundary: the connection is untouched and
  19340. // still usable, so hand control back without closing it. That is only
  19341. // useful to a caller who asked for the timeout; the compile-time default
  19342. // is a backstop against a peer gone quiet, and elapsing it closes the
  19343. // connection so a plain `while (ws.read(msg))` loop ends.
  19344. if (r == impl::FrameRead::Timeout && read_timeout_set_) { return Timeout; }
  19345. if (r != impl::FrameRead::Ok) {
  19346. closed_ = true;
  19347. return Fail;
  19348. }
  19349. switch (opcode) {
  19350. case Opcode::Ping: {
  19351. std::lock_guard<std::mutex> lock(write_mutex_);
  19352. detail::write_websocket_frame(strm_, Opcode::Pong, payload.data(),
  19353. payload.size(), true, !is_server_);
  19354. continue;
  19355. }
  19356. case Opcode::Pong: {
  19357. std::lock_guard<std::mutex> lock(ping_mutex_);
  19358. unacked_pings_ = 0;
  19359. continue;
  19360. }
  19361. case Opcode::Close: {
  19362. if (!closed_.exchange(true)) {
  19363. // Echo close frame back
  19364. std::lock_guard<std::mutex> lock(write_mutex_);
  19365. detail::write_websocket_frame(strm_, Opcode::Close, payload.data(),
  19366. payload.size(), true, !is_server_);
  19367. }
  19368. return Fail;
  19369. }
  19370. case Opcode::Text:
  19371. case Opcode::Binary: {
  19372. auto result = opcode == Opcode::Text ? Text : Binary;
  19373. msg = std::move(payload);
  19374. // Handle fragmentation
  19375. if (!fin) {
  19376. while (true) {
  19377. Opcode cont_opcode;
  19378. std::string cont_payload;
  19379. bool cont_fin;
  19380. // A timeout is not reportable here: half of a fragmented message is
  19381. // already in `msg` and read() has no way to resume it, so it is a
  19382. // failure like any other. Timeouts are only ever seen on a message
  19383. // boundary.
  19384. if (impl::read_websocket_frame(
  19385. strm_, cont_opcode, cont_payload, cont_fin, is_server_,
  19386. CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH) !=
  19387. impl::FrameRead::Ok) {
  19388. closed_ = true;
  19389. return Fail;
  19390. }
  19391. if (cont_opcode == Opcode::Ping) {
  19392. std::lock_guard<std::mutex> lock(write_mutex_);
  19393. detail::write_websocket_frame(
  19394. strm_, Opcode::Pong, cont_payload.data(), cont_payload.size(),
  19395. true, !is_server_);
  19396. continue;
  19397. }
  19398. if (cont_opcode == Opcode::Pong) {
  19399. std::lock_guard<std::mutex> lock(ping_mutex_);
  19400. unacked_pings_ = 0;
  19401. continue;
  19402. }
  19403. if (cont_opcode == Opcode::Close) {
  19404. if (!closed_.exchange(true)) {
  19405. std::lock_guard<std::mutex> lock(write_mutex_);
  19406. detail::write_websocket_frame(
  19407. strm_, Opcode::Close, cont_payload.data(),
  19408. cont_payload.size(), true, !is_server_);
  19409. }
  19410. return Fail;
  19411. }
  19412. // RFC 6455: continuation frames must use opcode 0x0
  19413. if (cont_opcode != Opcode::Continuation) {
  19414. closed_ = true;
  19415. return Fail;
  19416. }
  19417. msg += cont_payload;
  19418. if (msg.size() > CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH) {
  19419. closed_ = true;
  19420. return Fail;
  19421. }
  19422. if (cont_fin) { break; }
  19423. }
  19424. }
  19425. // RFC 6455 Section 5.6: text frames must contain valid UTF-8
  19426. if (result == Text && !impl::is_valid_utf8(msg)) {
  19427. // close() takes the read lock to wait for the peer's Close reply, so
  19428. // it must not run while this thread still holds it.
  19429. read_lock.unlock();
  19430. close(CloseStatus::InvalidPayload, "invalid UTF-8");
  19431. return Fail;
  19432. }
  19433. return result;
  19434. }
  19435. default: closed_ = true; return Fail;
  19436. }
  19437. }
  19438. return Fail;
  19439. }
  19440. inline bool WebSocket::send(const std::string &data) {
  19441. return send_frame(Opcode::Text, data.data(), data.size());
  19442. }
  19443. inline bool WebSocket::send(const char *data, size_t len) {
  19444. return send_frame(Opcode::Binary, data, len);
  19445. }
  19446. inline void WebSocket::close(CloseStatus status, const std::string &reason) {
  19447. if (closed_.exchange(true)) { return; }
  19448. ping_cv_.notify_all();
  19449. std::string payload;
  19450. auto code = static_cast<uint16_t>(status);
  19451. payload.push_back(static_cast<char>((code >> 8) & 0xFF));
  19452. payload.push_back(static_cast<char>(code & 0xFF));
  19453. // RFC 6455 Section 5.5: control frame payload must not exceed 125 bytes
  19454. // Close frame has 2-byte status code, so reason is limited to 123 bytes
  19455. payload += reason.substr(0, 123);
  19456. {
  19457. std::lock_guard<std::mutex> lock(write_mutex_);
  19458. detail::write_websocket_frame(strm_, Opcode::Close, payload.data(),
  19459. payload.size(), true, !is_server_);
  19460. }
  19461. // RFC 6455 Section 7.1.1: after sending a Close frame, wait for the peer's
  19462. // Close response before closing the TCP connection.
  19463. //
  19464. // Wait only when no other thread is parsing frames. When one is, it is the
  19465. // thread positioned to see the peer's reply, and reading here would take
  19466. // bytes out of the message it is assembling. Bailing out also leaves the
  19467. // stream, including its read timeout, entirely to that thread.
  19468. std::unique_lock<std::mutex> read_lock(read_mutex_, std::try_to_lock);
  19469. if (!read_lock.owns_lock()) { return; }
  19470. // Use a short timeout to avoid hanging if the peer doesn't respond.
  19471. strm_.set_read_timeout(CPPHTTPLIB_WEBSOCKET_CLOSE_TIMEOUT_SECOND, 0);
  19472. Opcode op;
  19473. std::string resp;
  19474. bool fin;
  19475. while (impl::read_websocket_frame(strm_, op, resp, fin, is_server_, 125) ==
  19476. impl::FrameRead::Ok) {
  19477. if (op == Opcode::Close) { break; }
  19478. }
  19479. }
  19480. inline WebSocket::~WebSocket() {
  19481. {
  19482. std::lock_guard<std::mutex> lock(ping_mutex_);
  19483. closed_ = true;
  19484. }
  19485. ping_cv_.notify_all();
  19486. if (ping_thread_.joinable()) { ping_thread_.join(); }
  19487. }
  19488. inline void WebSocket::start_heartbeat() {
  19489. if (ping_interval_sec_ == 0) { return; }
  19490. ping_thread_ = std::thread([this]() {
  19491. std::unique_lock<std::mutex> lock(ping_mutex_);
  19492. // The predicate keeps a spurious wakeup from sending a ping early
  19493. while (!ping_cv_.wait_for(lock, std::chrono::seconds(ping_interval_sec_),
  19494. [this]() { return closed_.load(); })) {
  19495. // If the peer has failed to respond to the previous pings, give up.
  19496. // RFC 6455 does not define a pong-timeout mechanism; this is an
  19497. // opt-in liveness check controlled by max_missed_pongs_.
  19498. if (max_missed_pongs_ > 0 && unacked_pings_ >= max_missed_pongs_) {
  19499. lock.unlock();
  19500. close(CloseStatus::GoingAway, "pong timeout");
  19501. return;
  19502. }
  19503. lock.unlock();
  19504. if (!send_frame(Opcode::Ping, nullptr, 0)) {
  19505. lock.lock();
  19506. closed_ = true;
  19507. break;
  19508. }
  19509. lock.lock();
  19510. unacked_pings_++;
  19511. }
  19512. });
  19513. }
  19514. inline const Request &WebSocket::request() const { return req_; }
  19515. inline bool WebSocket::is_open() const { return !closed_; }
  19516. inline void WebSocket::set_read_timeout(time_t sec, time_t usec) {
  19517. // 0 waits forever here, as it does for SO_RCVTIMEO. The stream waits with
  19518. // poll(), where 0 would instead mean "return immediately", so hand it the
  19519. // negative poll uses for an unbounded wait.
  19520. if (sec == 0 && usec == 0) { sec = -1; }
  19521. strm_.set_read_timeout(sec, usec);
  19522. read_timeout_set_ = true;
  19523. }
  19524. // WebSocketClient implementation
  19525. inline WebSocketClient::WebSocketClient(
  19526. const std::string &scheme_host_port_path, const Headers &headers)
  19527. : headers_(headers) {
  19528. detail::UrlComponents uc;
  19529. if (detail::parse_url(scheme_host_port_path, uc) && !uc.scheme.empty() &&
  19530. !uc.host.empty() && !uc.path.empty()) {
  19531. auto &scheme = uc.scheme;
  19532. #ifdef CPPHTTPLIB_SSL_ENABLED
  19533. if (scheme != "ws" && scheme != "wss") {
  19534. #else
  19535. if (scheme != "ws") {
  19536. #endif
  19537. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  19538. std::string msg = "'" + scheme + "' scheme is not supported.";
  19539. throw std::invalid_argument(msg);
  19540. #endif
  19541. return;
  19542. }
  19543. auto is_ssl = scheme == "wss";
  19544. host_ = std::move(uc.host);
  19545. port_ = is_ssl ? 443 : 80;
  19546. if (!uc.port.empty() && !detail::parse_port(uc.port, port_)) { return; }
  19547. path_ = std::move(uc.path);
  19548. if (!uc.query.empty()) { path_ += uc.query; }
  19549. #ifdef CPPHTTPLIB_SSL_ENABLED
  19550. is_ssl_ = is_ssl;
  19551. if (is_ssl_) {
  19552. // The context lives as long as the client so that CA configuration
  19553. // survives reconnects; sessions are created per connection.
  19554. tls_ctx_ = tls::create_client_context();
  19555. if (!tls_ctx_) { return; }
  19556. }
  19557. #else
  19558. if (is_ssl) { return; }
  19559. #endif
  19560. is_valid_ = true;
  19561. }
  19562. }
  19563. #ifdef CPPHTTPLIB_SSL_ENABLED
  19564. inline WebSocketClient::WebSocketClient(
  19565. const std::string &scheme_host_port_path, const PemMemory &pem,
  19566. const Headers &headers)
  19567. : WebSocketClient(scheme_host_port_path, headers) {
  19568. // For ws:// URLs the client certificate is silently ignored, consistent
  19569. // with the TLS-only setters such as set_ca_cert_path().
  19570. if (is_valid_ && is_ssl_ && pem.cert_pem && pem.key_pem) {
  19571. if (!tls::set_client_cert_pem(tls_ctx_, pem.cert_pem, pem.key_pem,
  19572. pem.private_key_password)) {
  19573. tls::free_context(tls_ctx_);
  19574. tls_ctx_ = nullptr;
  19575. is_valid_ = false;
  19576. }
  19577. }
  19578. }
  19579. #endif
  19580. inline WebSocketClient::~WebSocketClient() {
  19581. shutdown_and_close();
  19582. #ifdef CPPHTTPLIB_SSL_ENABLED
  19583. if (tls_ctx_) {
  19584. tls::free_context(tls_ctx_);
  19585. tls_ctx_ = nullptr;
  19586. }
  19587. #endif
  19588. }
  19589. inline bool WebSocketClient::is_valid() const { return is_valid_; }
  19590. inline void WebSocketClient::shutdown_and_close() {
  19591. // Send the close frame while the TLS session is still alive: ws_ holds an
  19592. // SSLSocketStream that keeps a raw pointer to tls_session_, so the session
  19593. // must outlive ws_->close() and ws_.reset() to avoid a use-after-free.
  19594. if (ws_ && ws_->is_open()) { ws_->close(); }
  19595. ws_.reset();
  19596. #ifdef CPPHTTPLIB_SSL_ENABLED
  19597. if (is_ssl_) {
  19598. if (tls_session_) {
  19599. tls::shutdown(tls_session_, true);
  19600. tls::free_session(tls_session_);
  19601. tls_session_ = nullptr;
  19602. }
  19603. }
  19604. #endif
  19605. if (sock_ != INVALID_SOCKET) {
  19606. detail::shutdown_socket(sock_);
  19607. detail::close_socket(sock_);
  19608. sock_ = INVALID_SOCKET;
  19609. }
  19610. }
  19611. inline bool WebSocketClient::create_stream(std::unique_ptr<Stream> &strm,
  19612. Error &error, int &ssl_error,
  19613. uint64_t &ssl_backend_error) {
  19614. // A read timeout of 0 means "wait forever", the way SO_RCVTIMEO reads it.
  19615. // The streams wait with poll(), where 0 instead means "return immediately",
  19616. // so they are given the negative poll uses for an unbounded wait.
  19617. auto unbounded = read_timeout_sec_ == 0 && read_timeout_usec_ == 0;
  19618. time_t strm_read_sec = unbounded ? -1 : read_timeout_sec_;
  19619. time_t strm_read_usec = unbounded ? 0 : read_timeout_usec_;
  19620. // The handshake belongs to establishing the connection, so an unset read
  19621. // timeout leaves it bounded by the connection timeout instead of forever.
  19622. time_t hs_sec = unbounded ? connection_timeout_sec_ : read_timeout_sec_;
  19623. time_t hs_usec = unbounded ? connection_timeout_usec_ : read_timeout_usec_;
  19624. #ifdef CPPHTTPLIB_SSL_ENABLED
  19625. if (is_ssl_) {
  19626. // A plain flag rather than SSLClient::load_certs()'s call_once: connect()
  19627. // is not safe to call concurrently on one client to begin with, since
  19628. // nothing else here is guarded either.
  19629. if (server_certificate_verification_ && !certs_loaded_) {
  19630. uint64_t backend_error = 0;
  19631. detail::load_client_ca_config(tls_ctx_, ca_cert_file_path_,
  19632. ca_cert_dir_path_, custom_ca_loaded_,
  19633. system_ca_mode_, backend_error);
  19634. certs_loaded_ = true;
  19635. }
  19636. detail::ClientTlsSessionOptions options;
  19637. options.server_hostname_verification = server_hostname_verification_;
  19638. detail::ClientTlsSessionError tls_error;
  19639. if (!detail::setup_client_tls_session(host_, tls_ctx_, tls_session_, sock_,
  19640. server_certificate_verification_,
  19641. hs_sec, hs_usec, &tls_error,
  19642. options)) {
  19643. error = tls_error.error;
  19644. ssl_error = tls_error.ssl_error;
  19645. ssl_backend_error = tls_error.backend_error;
  19646. return false;
  19647. }
  19648. strm = std::unique_ptr<Stream>(new detail::WebSocketSSLStream(
  19649. sock_, tls_session_, strm_read_sec, strm_read_usec, write_timeout_sec_,
  19650. write_timeout_usec_));
  19651. return true;
  19652. }
  19653. #else
  19654. (void)error;
  19655. (void)ssl_error;
  19656. (void)ssl_backend_error;
  19657. (void)hs_sec;
  19658. (void)hs_usec;
  19659. #endif
  19660. strm = std::unique_ptr<Stream>(
  19661. new detail::SocketStream(sock_, strm_read_sec, strm_read_usec,
  19662. write_timeout_sec_, write_timeout_usec_));
  19663. return true;
  19664. }
  19665. inline void WebSocketClient::prepare_default_headers(Request &req) {
  19666. #ifdef CPPHTTPLIB_SSL_ENABLED
  19667. auto is_ssl = is_ssl_;
  19668. #else
  19669. auto is_ssl = false;
  19670. #endif
  19671. if (!req.has_header("Host")) {
  19672. req.headers.emplace("Host", detail::make_default_host_header_value(
  19673. host_, port_, is_ssl, address_family_));
  19674. }
  19675. detail::add_default_user_agent_header(req);
  19676. }
  19677. inline Result WebSocketClient::connect() {
  19678. if (!is_valid_) { return Result{Error::Connection, -1, Headers{}}; }
  19679. shutdown_and_close();
  19680. // Check is custom IP or hostname specified for host_
  19681. std::string connect_host;
  19682. std::string ip;
  19683. detail::apply_addr_map(addr_map_, host_, connect_host, ip);
  19684. auto error = Error::Success;
  19685. sock_ = detail::create_client_socket(
  19686. connect_host, ip, port_, address_family_, tcp_nodelay_, ipv6_v6only_,
  19687. socket_options_, connection_timeout_sec_, connection_timeout_usec_,
  19688. read_timeout_sec_, read_timeout_usec_, write_timeout_sec_,
  19689. write_timeout_usec_, interface_, error);
  19690. if (sock_ == INVALID_SOCKET) {
  19691. if (error == Error::Success) { error = Error::Connection; }
  19692. return Result{error, -1, Headers{}};
  19693. }
  19694. std::unique_ptr<Stream> strm;
  19695. auto stream_error = Error::SSLConnection;
  19696. int ssl_error = 0;
  19697. uint64_t ssl_backend_error = 0;
  19698. if (!create_stream(strm, stream_error, ssl_error, ssl_backend_error)) {
  19699. shutdown_and_close();
  19700. #ifdef CPPHTTPLIB_SSL_ENABLED
  19701. return Result{stream_error, -1, Headers{}, ssl_error, ssl_backend_error};
  19702. #else
  19703. return Result{stream_error, -1, Headers{}};
  19704. #endif
  19705. }
  19706. Request req;
  19707. req.method = "GET";
  19708. req.path = path_;
  19709. req.headers = headers_;
  19710. prepare_default_headers(req);
  19711. detail::WebSocketUpgradeResponse upgrade;
  19712. if (!detail::perform_websocket_handshake(*strm, req, upgrade)) {
  19713. shutdown_and_close();
  19714. return Result{upgrade.error, upgrade.status, std::move(upgrade.headers)};
  19715. }
  19716. subprotocol_ = std::move(upgrade.selected_subprotocol);
  19717. ws_ = std::unique_ptr<WebSocket>(new WebSocket(std::move(strm), req, false,
  19718. websocket_ping_interval_sec_,
  19719. websocket_max_missed_pongs_));
  19720. // The stream was created with the timeout already; tell the WebSocket
  19721. // whether it came from the caller, so read() knows to report it as Timeout.
  19722. ws_->read_timeout_set_ = read_timeout_set_;
  19723. return Result{Error::Success, upgrade.status, std::move(upgrade.headers)};
  19724. }
  19725. inline ReadResult WebSocketClient::read(std::string &msg) {
  19726. if (!ws_) { return Fail; }
  19727. return ws_->read(msg);
  19728. }
  19729. inline bool WebSocketClient::send(const std::string &data) {
  19730. if (!ws_) { return false; }
  19731. return ws_->send(data);
  19732. }
  19733. inline bool WebSocketClient::send(const char *data, size_t len) {
  19734. if (!ws_) { return false; }
  19735. return ws_->send(data, len);
  19736. }
  19737. inline void WebSocketClient::close(CloseStatus status,
  19738. const std::string &reason) {
  19739. if (ws_) { ws_->close(status, reason); }
  19740. }
  19741. inline bool WebSocketClient::is_open() const { return ws_ && ws_->is_open(); }
  19742. inline const std::string &WebSocketClient::subprotocol() const {
  19743. return subprotocol_;
  19744. }
  19745. inline void WebSocketClient::set_read_timeout(time_t sec, time_t usec) {
  19746. read_timeout_sec_ = sec;
  19747. read_timeout_usec_ = usec;
  19748. read_timeout_set_ = true;
  19749. // The members above only seed the next connect(); read() consults the
  19750. // stream, so an already-open connection has to be told directly.
  19751. if (ws_) { ws_->set_read_timeout(sec, usec); }
  19752. }
  19753. inline void WebSocketClient::set_write_timeout(time_t sec, time_t usec) {
  19754. write_timeout_sec_ = sec;
  19755. write_timeout_usec_ = usec;
  19756. }
  19757. inline void WebSocketClient::set_websocket_ping_interval(time_t sec) {
  19758. websocket_ping_interval_sec_ = sec;
  19759. }
  19760. inline void WebSocketClient::set_websocket_max_missed_pongs(int count) {
  19761. websocket_max_missed_pongs_ = count;
  19762. }
  19763. inline void WebSocketClient::set_tcp_nodelay(bool on) { tcp_nodelay_ = on; }
  19764. inline void WebSocketClient::set_address_family(int family) {
  19765. address_family_ = family;
  19766. }
  19767. inline void WebSocketClient::set_ipv6_v6only(bool on) { ipv6_v6only_ = on; }
  19768. inline void WebSocketClient::set_socket_options(SocketOptions socket_options) {
  19769. socket_options_ = std::move(socket_options);
  19770. }
  19771. inline void WebSocketClient::set_connection_timeout(time_t sec, time_t usec) {
  19772. connection_timeout_sec_ = sec;
  19773. connection_timeout_usec_ = usec;
  19774. }
  19775. inline void WebSocketClient::set_interface(const std::string &intf) {
  19776. interface_ = intf;
  19777. }
  19778. inline void WebSocketClient::set_hostname_addr_map(
  19779. std::map<std::string, std::string> addr_map) {
  19780. addr_map_ = std::move(addr_map);
  19781. }
  19782. #ifdef CPPHTTPLIB_SSL_ENABLED
  19783. inline void
  19784. WebSocketClient::set_ca_cert_path(const std::string &ca_cert_file_path,
  19785. const std::string &ca_cert_dir_path) {
  19786. ca_cert_file_path_ = ca_cert_file_path;
  19787. ca_cert_dir_path_ = ca_cert_dir_path;
  19788. }
  19789. inline void WebSocketClient::set_ca_cert_store(tls::ca_store_t store) {
  19790. if (store && tls_ctx_) {
  19791. // set_ca_store takes ownership of store
  19792. tls::set_ca_store(tls_ctx_, store);
  19793. custom_ca_loaded_ = true;
  19794. } else if (store) {
  19795. tls::free_ca_store(store);
  19796. }
  19797. }
  19798. inline void WebSocketClient::load_ca_cert_store(const char *ca_cert,
  19799. std::size_t size) {
  19800. if (tls_ctx_ && ca_cert && size > 0) {
  19801. tls::load_ca_pem(tls_ctx_, ca_cert, size);
  19802. custom_ca_loaded_ = true;
  19803. }
  19804. }
  19805. inline void
  19806. WebSocketClient::enable_server_certificate_verification(bool enabled) {
  19807. server_certificate_verification_ = enabled;
  19808. }
  19809. inline void WebSocketClient::enable_server_hostname_verification(bool enabled) {
  19810. server_hostname_verification_ = enabled;
  19811. }
  19812. inline void WebSocketClient::enable_system_ca(bool enabled) {
  19813. system_ca_mode_ = enabled ? SystemCAMode::Enabled : SystemCAMode::Disabled;
  19814. }
  19815. #endif // CPPHTTPLIB_SSL_ENABLED
  19816. } // namespace ws
  19817. // ----------------------------------------------------------------------------
  19818. } // namespace httplib
  19819. #endif // CPPHTTPLIB_HTTPLIB_H