test.cc 738 KB

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  1. // NOTE: This file should be saved as UTF-8 w/ BOM
  2. #include <httplib.h>
  3. #include <signal.h>
  4. #ifndef _WIN32
  5. #include <arpa/inet.h>
  6. #include <ctime>
  7. #include <curl/curl.h>
  8. #include <netinet/in.h>
  9. #include <sys/socket.h>
  10. #include <sys/time.h>
  11. #include <unistd.h>
  12. #endif
  13. #include <gtest/gtest.h>
  14. #include <algorithm>
  15. #include <atomic>
  16. #include <cctype>
  17. #include <chrono>
  18. #include <clocale>
  19. #include <cstdio>
  20. #include <fstream>
  21. #include <future>
  22. #include <limits>
  23. #include <memory>
  24. #include <sstream>
  25. #include <stdexcept>
  26. #include <thread>
  27. #include <type_traits>
  28. #include <vector>
  29. #if __cplusplus >= 202002L
  30. inline std::string u8_to_string(const char8_t *s) {
  31. return std::string(reinterpret_cast<const char *>(s));
  32. }
  33. #define U8(x) u8_to_string(u8##x)
  34. #else
  35. #define U8(x) u8##x
  36. #endif
  37. #define SERVER_CERT_FILE "./cert.pem"
  38. #define SERVER_CERT2_FILE "./cert2.pem"
  39. #define SERVER_CERT_IP_CN_FILE "./cert_ip_cn.pem"
  40. #define SERVER_CERT_IPV6_FILE "./cert_ipv6.pem"
  41. #define SERVER_PRIVATE_KEY_FILE "./key.pem"
  42. #define CA_CERT_FILE "./ca-bundle.crt"
  43. #define CLIENT_CA_CERT_FILE "./rootCA.cert.pem"
  44. #define CLIENT_CA_CERT_DIR "."
  45. #define CLIENT_CERT_FILE "./client.cert.pem"
  46. #define CLIENT_PRIVATE_KEY_FILE "./client.key.pem"
  47. #define CLIENT_ENCRYPTED_CERT_FILE "./client_encrypted.cert.pem"
  48. // Mbed TLS < 3.6 (e.g. Ubuntu's 2.28) has no PBES2-AES and needs the PBES1-3DES
  49. // key; 3.6+/4.x (4.x dropped DES) and OpenSSL/wolfSSL use the PBES2 AES key.
  50. #if defined(CPPHTTPLIB_MBEDTLS_SUPPORT) && (MBEDTLS_VERSION_NUMBER < 0x03060000)
  51. #define CLIENT_ENCRYPTED_PRIVATE_KEY_FILE "./client_encrypted_pbes1.key.pem"
  52. #else
  53. #define CLIENT_ENCRYPTED_PRIVATE_KEY_FILE "./client_encrypted.key.pem"
  54. #endif
  55. #define CLIENT_ENCRYPTED_PRIVATE_KEY_PASS "test012!"
  56. #define SERVER_ENCRYPTED_CERT_FILE "./cert_encrypted.pem"
  57. #define SERVER_ENCRYPTED_PRIVATE_KEY_FILE "./key_encrypted.pem"
  58. #define SERVER_ENCRYPTED_PRIVATE_KEY_PASS "test123!"
  59. #ifdef CPPHTTPLIB_SSL_ENABLED
  60. namespace httplib {
  61. namespace tls {
  62. // Declared here for the split build, where the TLS abstraction declarations
  63. // live below the split border; the definition is linked from httplib.cc.
  64. ca_store_t create_ca_store(const char *pem, size_t len);
  65. } // namespace tls
  66. } // namespace httplib
  67. #endif
  68. using namespace std;
  69. using namespace httplib;
  70. const char *HOST = "localhost";
  71. static int get_base_port() {
  72. const char *shard = getenv("GTEST_SHARD_INDEX");
  73. return shard ? 11234 + std::atoi(shard) * 100 : 1234;
  74. }
  75. // NOTE: PORT is only for legacy fixtures (ServerTest, etc.).
  76. // New standalone tests MUST use svr.bind_to_any_port() instead.
  77. const int PORT = get_base_port();
  78. const string LONG_QUERY_VALUE = string(25000, '@');
  79. const string LONG_QUERY_URL = "/long-query-value?key=" + LONG_QUERY_VALUE;
  80. const string TOO_LONG_QUERY_VALUE = string(35000, '@');
  81. const string TOO_LONG_QUERY_URL =
  82. "/too-long-query-value?key=" + TOO_LONG_QUERY_VALUE;
  83. const std::string JSON_DATA = "{\"hello\":\"world\"}";
  84. const string LARGE_DATA = string(1024 * 1024 * 100, '@'); // 100MB
  85. FormData &get_file_value(std::vector<FormData> &items, const char *key) {
  86. auto it = std::find_if(items.begin(), items.end(), [&](const FormData &file) {
  87. return file.name == key;
  88. });
  89. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  90. return *it;
  91. #else
  92. if (it != items.end()) { return *it; }
  93. throw std::runtime_error("invalid multipart form data name error");
  94. #endif
  95. }
  96. static void read_file(const std::string &path, std::string &out) {
  97. std::ifstream fs(path, std::ios_base::binary);
  98. if (!fs) {
  99. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  100. return;
  101. #else
  102. throw std::runtime_error("File not found: " + path);
  103. #endif
  104. }
  105. fs.seekg(0, std::ios_base::end);
  106. auto size = fs.tellg();
  107. fs.seekg(0);
  108. out.resize(static_cast<size_t>(size));
  109. fs.read(&out[0], static_cast<std::streamsize>(size));
  110. }
  111. class UnixSocketTest : public ::testing::Test {
  112. protected:
  113. void TearDown() override { std::remove(pathname_.c_str()); }
  114. void client_GET(const std::string &addr) {
  115. httplib::Client cli{addr};
  116. cli.set_address_family(AF_UNIX);
  117. ASSERT_TRUE(cli.is_valid());
  118. const auto &result = cli.Get(pattern_);
  119. ASSERT_TRUE(result) << "error: " << result.error();
  120. const auto &resp = result.value();
  121. EXPECT_EQ(resp.status, StatusCode::OK_200);
  122. EXPECT_EQ(resp.body, content_);
  123. }
  124. static std::string make_sock_path() {
  125. const char *shard = getenv("GTEST_SHARD_INDEX");
  126. return shard ? std::string("./httplib-server-") + shard + ".sock"
  127. : "./httplib-server.sock";
  128. }
  129. const std::string pathname_{make_sock_path()};
  130. const std::string pattern_{"/hi"};
  131. const std::string content_{"Hello World!"};
  132. };
  133. TEST_F(UnixSocketTest, pathname) {
  134. httplib::Server svr;
  135. svr.Get(pattern_, [&](const httplib::Request &, httplib::Response &res) {
  136. res.set_content(content_, "text/plain");
  137. });
  138. std::thread t{[&] {
  139. ASSERT_TRUE(svr.set_address_family(AF_UNIX).listen(pathname_, 80));
  140. }};
  141. auto se = detail::scope_exit([&] {
  142. svr.stop();
  143. t.join();
  144. ASSERT_FALSE(svr.is_running());
  145. });
  146. svr.wait_until_ready();
  147. ASSERT_TRUE(svr.is_running());
  148. client_GET(pathname_);
  149. }
  150. #if defined(__linux__) || \
  151. /* __APPLE__ */ (defined(SOL_LOCAL) && defined(SO_PEERPID))
  152. TEST_F(UnixSocketTest, PeerPid) {
  153. httplib::Server svr;
  154. std::string remote_port_val;
  155. svr.Get(pattern_, [&](const httplib::Request &req, httplib::Response &res) {
  156. res.set_content(content_, "text/plain");
  157. remote_port_val = std::to_string(req.remote_port);
  158. });
  159. std::thread t{[&] {
  160. ASSERT_TRUE(svr.set_address_family(AF_UNIX).listen(pathname_, 80));
  161. }};
  162. auto se = detail::scope_exit([&] {
  163. svr.stop();
  164. t.join();
  165. ASSERT_FALSE(svr.is_running());
  166. });
  167. svr.wait_until_ready();
  168. ASSERT_TRUE(svr.is_running());
  169. client_GET(pathname_);
  170. EXPECT_EQ(std::to_string(getpid()), remote_port_val);
  171. }
  172. #endif
  173. #ifdef __linux__
  174. TEST_F(UnixSocketTest, abstract) {
  175. constexpr char svr_path[]{"\x00httplib-server.sock"};
  176. const std::string abstract_addr{svr_path, sizeof(svr_path) - 1};
  177. httplib::Server svr;
  178. svr.Get(pattern_, [&](const httplib::Request &, httplib::Response &res) {
  179. res.set_content(content_, "text/plain");
  180. });
  181. std::thread t{[&] {
  182. ASSERT_TRUE(svr.set_address_family(AF_UNIX).listen(abstract_addr, 80));
  183. }};
  184. auto se = detail::scope_exit([&] {
  185. svr.stop();
  186. t.join();
  187. ASSERT_FALSE(svr.is_running());
  188. });
  189. svr.wait_until_ready();
  190. ASSERT_TRUE(svr.is_running());
  191. client_GET(abstract_addr);
  192. }
  193. #endif
  194. TEST_F(UnixSocketTest, HostHeaderAutoSet) {
  195. httplib::Server svr;
  196. std::string received_host_header;
  197. svr.Get(pattern_, [&](const httplib::Request &req, httplib::Response &res) {
  198. // Capture the Host header sent by the client
  199. auto host_iter = req.headers.find("Host");
  200. if (host_iter != req.headers.end()) {
  201. received_host_header = host_iter->second;
  202. }
  203. res.set_content(content_, "text/plain");
  204. });
  205. std::thread t{[&] {
  206. ASSERT_TRUE(svr.set_address_family(AF_UNIX).listen(pathname_, 80));
  207. }};
  208. auto se = detail::scope_exit([&] {
  209. svr.stop();
  210. t.join();
  211. ASSERT_FALSE(svr.is_running());
  212. });
  213. svr.wait_until_ready();
  214. ASSERT_TRUE(svr.is_running());
  215. // Test that Host header is automatically set to "localhost" for Unix socket
  216. // connections
  217. httplib::Client cli{pathname_};
  218. cli.set_address_family(AF_UNIX);
  219. ASSERT_TRUE(cli.is_valid());
  220. const auto &result = cli.Get(pattern_);
  221. ASSERT_TRUE(result) << "error: " << result.error();
  222. const auto &resp = result.value();
  223. EXPECT_EQ(resp.status, StatusCode::OK_200);
  224. EXPECT_EQ(resp.body, content_);
  225. // Verify that Host header was automatically set to "localhost"
  226. EXPECT_EQ(received_host_header, "localhost");
  227. }
  228. #ifndef _WIN32
  229. TEST(SocketStream, wait_writable_UNIX) {
  230. int fds[2];
  231. ASSERT_EQ(0, socketpair(AF_UNIX, SOCK_STREAM, 0, fds));
  232. const auto asSocketStream = [&](socket_t fd,
  233. std::function<bool(Stream &)> func) {
  234. return detail::process_client_socket(
  235. fd, 0, 0, 0, 0, 0, std::chrono::steady_clock::time_point::min(), func);
  236. };
  237. asSocketStream(fds[0], [&](Stream &s0) {
  238. EXPECT_EQ(s0.socket(), fds[0]);
  239. EXPECT_TRUE(s0.wait_writable());
  240. EXPECT_TRUE(s0.is_peer_alive());
  241. EXPECT_EQ(0, close(fds[1]));
  242. EXPECT_FALSE(s0.is_peer_alive());
  243. return true;
  244. });
  245. EXPECT_EQ(0, close(fds[0]));
  246. }
  247. TEST(SocketStream, wait_writable_INET) {
  248. sockaddr_in addr;
  249. memset(&addr, 0, sizeof(addr));
  250. addr.sin_family = AF_INET;
  251. addr.sin_port = htons(static_cast<uint16_t>(PORT + 1));
  252. addr.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
  253. int disconnected_svr_sock = -1;
  254. std::thread svr{[&] {
  255. const int s = socket(AF_INET, SOCK_STREAM, 0);
  256. ASSERT_LE(0, s);
  257. // PORT + 1 is shared with the SSL redirect tests and with
  258. // VulnerabilityTest.CRLFInjectionInHeaders, all of which set this. Without
  259. // it, a TIME_WAIT one of them left behind makes bind() fail here, and
  260. // because that happens on a worker thread the ASSERT does not stop the
  261. // test: it runs on and fails at the disconnected_svr_sock check instead.
  262. default_socket_options(s);
  263. ASSERT_EQ(0, ::bind(s, reinterpret_cast<sockaddr *>(&addr), sizeof(addr)));
  264. ASSERT_EQ(0, listen(s, 1));
  265. ASSERT_LE(0, disconnected_svr_sock = accept(s, nullptr, nullptr));
  266. ASSERT_EQ(0, close(s));
  267. }};
  268. std::this_thread::sleep_for(std::chrono::milliseconds(100));
  269. std::thread cli{[&] {
  270. const int s = socket(AF_INET, SOCK_STREAM, 0);
  271. ASSERT_LE(0, s);
  272. ASSERT_EQ(0, connect(s, reinterpret_cast<sockaddr *>(&addr), sizeof(addr)));
  273. ASSERT_EQ(0, close(s));
  274. }};
  275. cli.join();
  276. svr.join();
  277. ASSERT_NE(disconnected_svr_sock, -1);
  278. const auto asSocketStream = [&](socket_t fd,
  279. std::function<bool(Stream &)> func) {
  280. return detail::process_client_socket(
  281. fd, 0, 0, 0, 0, 0, std::chrono::steady_clock::time_point::min(), func);
  282. };
  283. asSocketStream(disconnected_svr_sock, [&](Stream &ss) {
  284. EXPECT_EQ(ss.socket(), disconnected_svr_sock);
  285. // wait_writable() returns true because select_write() only checks if the
  286. // send buffer has space. Peer disconnection is detected later by send().
  287. EXPECT_TRUE(ss.wait_writable());
  288. return true;
  289. });
  290. ASSERT_EQ(0, close(disconnected_svr_sock));
  291. }
  292. #endif // #ifndef _WIN32
  293. TEST(SetSocketOptTest, TcpNoDelay) {
  294. auto sock = ::socket(AF_INET, SOCK_STREAM, 0);
  295. ASSERT_NE(sock, INVALID_SOCKET);
  296. EXPECT_TRUE(set_socket_opt(sock, IPPROTO_TCP, TCP_NODELAY, 1));
  297. int val = 0;
  298. socklen_t len = sizeof(val);
  299. ASSERT_EQ(0, ::getsockopt(sock, IPPROTO_TCP, TCP_NODELAY,
  300. reinterpret_cast<char *>(&val), &len));
  301. EXPECT_NE(val, 0);
  302. detail::close_socket(sock);
  303. }
  304. TEST(ClientTest, MoveConstructible) {
  305. EXPECT_FALSE(std::is_copy_constructible<Client>::value);
  306. EXPECT_TRUE(std::is_nothrow_move_constructible<Client>::value);
  307. }
  308. TEST(ClientTest, MoveAssignable) {
  309. EXPECT_FALSE(std::is_copy_assignable<Client>::value);
  310. EXPECT_TRUE(std::is_nothrow_move_assignable<Client>::value);
  311. }
  312. #ifdef _WIN32
  313. TEST(StartupTest, WSAStartup) {
  314. WSADATA wsaData;
  315. int ret = WSAStartup(0x0002, &wsaData);
  316. ASSERT_EQ(0, ret);
  317. }
  318. #endif
  319. TEST(DecodePathTest, PercentCharacter) {
  320. EXPECT_EQ(
  321. decode_path_component(
  322. R"(descrip=Gastos%20%C3%A1%C3%A9%C3%AD%C3%B3%C3%BA%C3%B1%C3%91%206)"),
  323. U8("descrip=Gastos áéíóúñÑ 6"));
  324. }
  325. TEST(DecodePathTest, PercentCharacterNUL) {
  326. string expected;
  327. expected.push_back('x');
  328. expected.push_back('\0');
  329. expected.push_back('x');
  330. EXPECT_EQ(decode_path_component("x%00x"), expected);
  331. }
  332. TEST(DecodePathTest, UnicodeEncoding) {
  333. // %u0041 = 'A' (1-byte UTF-8)
  334. EXPECT_EQ("A", decode_path_component("%u0041"));
  335. // %u00E9 = 'é' (2-byte UTF-8)
  336. EXPECT_EQ(U8("é"), decode_path_component("%u00E9"));
  337. // %u3042 = 'あ' (3-byte UTF-8)
  338. EXPECT_EQ(U8("あ"), decode_path_component("%u3042"));
  339. // %uFFFF = max 4-digit hex (3-byte UTF-8, must not overflow buff[4])
  340. EXPECT_FALSE(decode_path_component("%uFFFF").empty());
  341. // %uD800 = surrogate (invalid, silently dropped)
  342. EXPECT_EQ("", decode_path_component("%uD800"));
  343. }
  344. TEST(DecodeQueryTest, RejectsNonHexEscapes) {
  345. // A sign or whitespace inside the two-character escape window must not be
  346. // accepted as a valid percent-encoding; the sequence is passed through
  347. // literally, matching decode_uri_component / decode_path_component.
  348. EXPECT_EQ("%-1", decode_query_component("%-1", false));
  349. EXPECT_EQ("%-0", decode_query_component("%-0", false));
  350. EXPECT_EQ("%+5", decode_query_component("%+5", false));
  351. EXPECT_EQ("% 5", decode_query_component("% 5", false));
  352. // Well-formed escapes still decode.
  353. EXPECT_EQ("-", decode_query_component("%2D", false));
  354. EXPECT_EQ("A", decode_query_component("%41", false));
  355. }
  356. TEST(SanitizeFilenameTest, VariousPatterns) {
  357. // Path traversal
  358. EXPECT_EQ("passwd", httplib::sanitize_filename("../../../etc/passwd"));
  359. EXPECT_EQ("passwd", httplib::sanitize_filename("..\\..\\etc\\passwd"));
  360. EXPECT_EQ("file.txt", httplib::sanitize_filename("path/to\\..\\file.txt"));
  361. // Normal and edge cases
  362. EXPECT_EQ("photo.jpg", httplib::sanitize_filename("photo.jpg"));
  363. EXPECT_EQ("filename.txt",
  364. httplib::sanitize_filename("/path/to/filename.txt"));
  365. EXPECT_EQ(".gitignore", httplib::sanitize_filename(".gitignore"));
  366. EXPECT_EQ("", httplib::sanitize_filename(".."));
  367. EXPECT_EQ("", httplib::sanitize_filename(""));
  368. // Null bytes stripped
  369. EXPECT_EQ("safe.txt",
  370. httplib::sanitize_filename(std::string("safe\0.txt", 9)));
  371. // Whitespace-only rejected
  372. EXPECT_EQ("", httplib::sanitize_filename(" "));
  373. }
  374. // Forward declaration (see the base64_encode note below): split builds move the
  375. // definition into httplib.cc, so re-declaring it here lets the test link.
  376. namespace httplib {
  377. namespace detail {
  378. bool is_chunked_transfer_encoding(const Headers &headers);
  379. } // namespace detail
  380. } // namespace httplib
  381. TEST(ChunkedTransferEncodingTest, DetectsChunkedAsFinalCoding) {
  382. // Build a Headers with the given Transfer-Encoding lines (nullptr = none).
  383. auto make = [](std::initializer_list<const char *> lines) {
  384. Headers h;
  385. for (auto te : lines) {
  386. if (te) { h.emplace("Transfer-Encoding", te); }
  387. }
  388. return h;
  389. };
  390. // Sole coding, matched case-insensitively.
  391. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"chunked"})));
  392. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"Chunked"})));
  393. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"CHUNKED"})));
  394. // RFC 9112 6.1: chunked as the final coding of a list still frames the body.
  395. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"gzip, chunked"})));
  396. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"gzip,chunked"})));
  397. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"gzip, Chunked "})));
  398. // Single line: chunked absent, or not the final coding -> not chunk-framed.
  399. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({"gzip"})));
  400. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({"chunked, gzip"})));
  401. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({""})));
  402. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({nullptr})));
  403. // RFC 9110 5.3: multiple Transfer-Encoding lines combine, in the order they
  404. // were received, into one list. Headers preserves that order, so the answer
  405. // is decided by the last coding of the last line and the order the lines
  406. // arrived in is significant.
  407. EXPECT_TRUE(detail::is_chunked_transfer_encoding(make({"gzip", "chunked"})));
  408. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({"chunked", "gzip"})));
  409. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({"gzip", "deflate"})));
  410. // The split can fall anywhere in the list.
  411. EXPECT_TRUE(
  412. detail::is_chunked_transfer_encoding(make({"deflate", "gzip, chunked"})));
  413. EXPECT_FALSE(
  414. detail::is_chunked_transfer_encoding(make({"gzip, chunked", "deflate"})));
  415. // A trailing line naming no coding leaves the list ending in nothing, so it
  416. // must not inherit the chunked from the line before it.
  417. EXPECT_FALSE(detail::is_chunked_transfer_encoding(make({"chunked", ""})));
  418. }
  419. // Forward declaration: in split builds split.py strips `inline` and moves the
  420. // definition into httplib.cc, so detail::base64_encode is not visible from the
  421. // public httplib.h. Re-declaring it here lets the tests link against the symbol
  422. // in both header-only and split builds.
  423. namespace httplib {
  424. namespace detail {
  425. std::string base64_encode(const std::string &in);
  426. } // namespace detail
  427. } // namespace httplib
  428. TEST(Base64EncodeTest, KnownAnswers) {
  429. // RFC 4648 test vectors. Inputs of four bytes or more exercise the round
  430. // where the accumulator's top bit is already set before the next shift.
  431. EXPECT_EQ("", detail::base64_encode(""));
  432. EXPECT_EQ("Zg==", detail::base64_encode("f"));
  433. EXPECT_EQ("Zm8=", detail::base64_encode("fo"));
  434. EXPECT_EQ("Zm9v", detail::base64_encode("foo"));
  435. EXPECT_EQ("Zm9vYg==", detail::base64_encode("foob"));
  436. EXPECT_EQ("Zm9vYmE=", detail::base64_encode("fooba"));
  437. EXPECT_EQ("Zm9vYmFy", detail::base64_encode("foobar"));
  438. // High bytes keep the top bit set across several rounds.
  439. EXPECT_EQ("AAECA//+wIB/", detail::base64_encode(std::string(
  440. "\x00\x01\x02\x03\xff\xfe\xc0\x80\x7f", 9)));
  441. }
  442. TEST(EncodeQueryParamTest, ParseUnescapedChararactersTest) {
  443. string unescapedCharacters = "-_.!~*'()";
  444. EXPECT_EQ(httplib::encode_uri_component(unescapedCharacters), "-_.!~*'()");
  445. }
  446. TEST(EncodeQueryParamTest, ParseReservedCharactersTest) {
  447. string reservedCharacters = ";,/?:@&=+$";
  448. EXPECT_EQ(httplib::encode_uri_component(reservedCharacters),
  449. "%3B%2C%2F%3F%3A%40%26%3D%2B%24");
  450. }
  451. TEST(ClientQueryOrder, PreserveOrder) {
  452. // This test reproduces Issue #2259: client may reorder query parameters
  453. // when sending a GET request. The expected behavior is that the client
  454. // preserves the original query string order when the caller supplied it
  455. // as part of the path.
  456. Server svr;
  457. svr.Get("/", [&](const Request &req, Response &res) {
  458. // Echo back the raw target so the test can assert ordering
  459. res.set_content(req.target, "text/plain");
  460. });
  461. std::thread t{[&] { svr.listen(HOST, PORT); }};
  462. auto se = detail::scope_exit([&] {
  463. svr.stop();
  464. t.join();
  465. ASSERT_FALSE(svr.is_running());
  466. });
  467. svr.wait_until_ready();
  468. Client cli(HOST, PORT);
  469. ASSERT_TRUE(cli.is_valid());
  470. const std::string original = "/?z=1&y=2&x=3&c=7&b=8&a=9";
  471. auto res = cli.Get(original);
  472. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  473. // Expect the echoed target to exactly match the original path (order
  474. // preserved)
  475. EXPECT_EQ(res->body, original);
  476. }
  477. TEST(EncodeQueryParamTest, TestUTF8Characters) {
  478. string chineseCharacters = U8("中国語");
  479. string russianCharacters = U8("дом");
  480. string brazilianCharacters = U8("óculos");
  481. EXPECT_EQ(httplib::encode_uri_component(chineseCharacters),
  482. "%E4%B8%AD%E5%9B%BD%E8%AA%9E");
  483. EXPECT_EQ(httplib::encode_uri_component(russianCharacters),
  484. "%D0%B4%D0%BE%D0%BC");
  485. EXPECT_EQ(httplib::encode_uri_component(brazilianCharacters), "%C3%B3culos");
  486. }
  487. TEST(EncodeUriComponentTest, ParseUnescapedChararactersTest) {
  488. string unescapedCharacters = "-_.!~*'()";
  489. EXPECT_EQ(httplib::encode_uri_component(unescapedCharacters), "-_.!~*'()");
  490. }
  491. TEST(EncodeUriComponentTest, ParseReservedCharactersTest) {
  492. string reservedCharacters = ";,/?:@&=+$";
  493. EXPECT_EQ(httplib::encode_uri_component(reservedCharacters),
  494. "%3B%2C%2F%3F%3A%40%26%3D%2B%24");
  495. }
  496. TEST(EncodeUriComponentTest, TestUTF8Characters) {
  497. string chineseCharacters = U8("中国語");
  498. string russianCharacters = U8("дом");
  499. string brazilianCharacters = U8("óculos");
  500. EXPECT_EQ(httplib::encode_uri_component(chineseCharacters),
  501. "%E4%B8%AD%E5%9B%BD%E8%AA%9E");
  502. EXPECT_EQ(httplib::encode_uri_component(russianCharacters),
  503. "%D0%B4%D0%BE%D0%BC");
  504. EXPECT_EQ(httplib::encode_uri_component(brazilianCharacters), "%C3%B3culos");
  505. }
  506. TEST(EncodeUriComponentTest, TestPathComponentEncoding) {
  507. // Issue #2082 use case: encoding path component with ampersand
  508. string pathWithAmpersand = "Piri Tommy Villiers - on & on";
  509. EXPECT_EQ(httplib::encode_uri_component(pathWithAmpersand),
  510. "Piri%20Tommy%20Villiers%20-%20on%20%26%20on");
  511. }
  512. TEST(EncodeUriTest, ParseUnescapedChararactersTest) {
  513. string unescapedCharacters = "-_.!~*'()";
  514. EXPECT_EQ(httplib::encode_uri(unescapedCharacters), "-_.!~*'()");
  515. }
  516. TEST(EncodeUriTest, ParseReservedCharactersTest) {
  517. string reservedCharacters = ";,/?:@&=+$#";
  518. EXPECT_EQ(httplib::encode_uri(reservedCharacters), ";,/?:@&=+$#");
  519. }
  520. TEST(EncodeUriTest, TestUTF8Characters) {
  521. string chineseCharacters = U8("中国語");
  522. string russianCharacters = U8("дом");
  523. string brazilianCharacters = U8("óculos");
  524. EXPECT_EQ(httplib::encode_uri(chineseCharacters),
  525. "%E4%B8%AD%E5%9B%BD%E8%AA%9E");
  526. EXPECT_EQ(httplib::encode_uri(russianCharacters), "%D0%B4%D0%BE%D0%BC");
  527. EXPECT_EQ(httplib::encode_uri(brazilianCharacters), "%C3%B3culos");
  528. }
  529. TEST(EncodeUriTest, TestCompleteUri) {
  530. string uri =
  531. "https://example.com/path/to/resource?query=value&param=test#fragment";
  532. EXPECT_EQ(
  533. httplib::encode_uri(uri),
  534. "https://example.com/path/to/resource?query=value&param=test#fragment");
  535. }
  536. TEST(EncodeUriTest, TestUriWithSpacesAndSpecialChars) {
  537. string uri =
  538. "https://example.com/path with spaces/file name.html?q=hello world";
  539. EXPECT_EQ(httplib::encode_uri(uri),
  540. "https://example.com/path%20with%20spaces/"
  541. "file%20name.html?q=hello%20world");
  542. }
  543. TEST(DecodeUriComponentTest, ParseEncodedChararactersTest) {
  544. string encodedString = "%3B%2C%2F%3F%3A%40%26%3D%2B%24";
  545. EXPECT_EQ(httplib::decode_uri_component(encodedString), ";,/?:@&=+$");
  546. }
  547. TEST(DecodeUriComponentTest, ParseUnescapedChararactersTest) {
  548. string unescapedCharacters = "-_.!~*'()";
  549. EXPECT_EQ(httplib::decode_uri_component(unescapedCharacters), "-_.!~*'()");
  550. }
  551. TEST(DecodeUriComponentTest, TestUTF8Characters) {
  552. string encodedChinese = "%E4%B8%AD%E5%9B%BD%E8%AA%9E";
  553. string encodedRussian = "%D0%B4%D0%BE%D0%BC";
  554. string encodedBrazilian = "%C3%B3culos";
  555. EXPECT_EQ(httplib::decode_uri_component(encodedChinese), U8("中国語"));
  556. EXPECT_EQ(httplib::decode_uri_component(encodedRussian), U8("дом"));
  557. EXPECT_EQ(httplib::decode_uri_component(encodedBrazilian), U8("óculos"));
  558. }
  559. TEST(DecodeUriComponentTest, TestPathComponentDecoding) {
  560. string encodedPath = "Piri%20Tommy%20Villiers%20-%20on%20%26%20on";
  561. EXPECT_EQ(httplib::decode_uri_component(encodedPath),
  562. "Piri Tommy Villiers - on & on");
  563. }
  564. TEST(DecodeUriTest, ParseEncodedChararactersTest) {
  565. string encodedString = "%20%22%3C%3E%5C%5E%60%7B%7D%7C";
  566. EXPECT_EQ(httplib::decode_uri(encodedString), " \"<>\\^`{}|");
  567. }
  568. TEST(DecodeUriTest, ParseUnescapedChararactersTest) {
  569. string unescapedCharacters = "-_.!~*'();,/?:@&=+$#";
  570. EXPECT_EQ(httplib::decode_uri(unescapedCharacters), "-_.!~*'();,/?:@&=+$#");
  571. }
  572. TEST(DecodeUriTest, TestUTF8Characters) {
  573. string encodedChinese = "%E4%B8%AD%E5%9B%BD%E8%AA%9E";
  574. string encodedRussian = "%D0%B4%D0%BE%D0%BC";
  575. string encodedBrazilian = "%C3%B3culos";
  576. EXPECT_EQ(httplib::decode_uri(encodedChinese), U8("中国語"));
  577. EXPECT_EQ(httplib::decode_uri(encodedRussian), U8("дом"));
  578. EXPECT_EQ(httplib::decode_uri(encodedBrazilian), U8("óculos"));
  579. }
  580. TEST(DecodeUriTest, TestCompleteUri) {
  581. string encodedUri = "https://example.com/path%20with%20spaces/"
  582. "file%20name.html?q=hello%20world";
  583. EXPECT_EQ(
  584. httplib::decode_uri(encodedUri),
  585. "https://example.com/path with spaces/file name.html?q=hello world");
  586. }
  587. TEST(DecodeUriTest, TestRoundTripWithEncodeUri) {
  588. string original =
  589. "https://example.com/path with spaces/file name.html?q=hello world";
  590. string encoded = httplib::encode_uri(original);
  591. string decoded = httplib::decode_uri(encoded);
  592. EXPECT_EQ(decoded, original);
  593. }
  594. TEST(DecodeUriTest, KeepsReservedCharacterEscapes) {
  595. // decode_uri is the inverse of encode_uri: an escaped reserved character
  596. // stays encoded so it is not promoted into a real delimiter, while
  597. // non-reserved escapes still decode (like JS decodeURI).
  598. EXPECT_EQ(httplib::decode_uri("%2F"), "%2F");
  599. EXPECT_EQ(httplib::decode_uri("%23"), "%23");
  600. EXPECT_EQ(httplib::decode_uri("%3F%3A%40%26%3D%2B%24%2C%3B"),
  601. "%3F%3A%40%26%3D%2B%24%2C%3B");
  602. EXPECT_EQ(httplib::decode_uri("%2D"), "-");
  603. EXPECT_EQ(httplib::decode_uri("%20"), " ");
  604. EXPECT_EQ(httplib::decode_uri("http://example.com/a%2Fb"),
  605. "http://example.com/a%2Fb");
  606. // decode_uri_component still decodes the reserved character.
  607. EXPECT_EQ(httplib::decode_uri_component("%2F"), "/");
  608. }
  609. TEST(DecodeUriComponentTest, TestRoundTripWithEncodeUriComponent) {
  610. string original = "Piri Tommy Villiers - on & on";
  611. string encoded = httplib::encode_uri_component(original);
  612. string decoded = httplib::decode_uri_component(encoded);
  613. EXPECT_EQ(decoded, original);
  614. }
  615. TEST(TrimTests, TrimStringTests) {
  616. EXPECT_EQ("abc", detail::trim_copy("abc"));
  617. EXPECT_EQ("abc", detail::trim_copy(" abc "));
  618. EXPECT_TRUE(detail::trim_copy("").empty());
  619. }
  620. TEST(AsciiTest, LocaleIndependentClassification) {
  621. // detail::is_ascii_digit/alpha/alnum replace the <cctype> classifiers,
  622. // which consult the global C locale: std::isalnum(0xC5) can return true
  623. // once an embedder calls setlocale() (observed on macOS). The is_ascii_*
  624. // helpers must classify every byte by the ASCII grammar alone.
  625. for (int i = 0; i < 256; i++) {
  626. auto c = static_cast<char>(i);
  627. auto is_digit = i >= '0' && i <= '9';
  628. auto is_upper = i >= 'A' && i <= 'Z';
  629. auto is_lower = i >= 'a' && i <= 'z';
  630. EXPECT_EQ(is_digit, detail::is_ascii_digit(c)) << "byte " << i;
  631. EXPECT_EQ(is_upper || is_lower, detail::is_ascii_alpha(c)) << "byte " << i;
  632. EXPECT_EQ(is_digit || is_upper || is_lower, detail::is_ascii_alnum(c))
  633. << "byte " << i;
  634. }
  635. // Regression check for the reported byte: 0xC5 is not alphanumeric.
  636. EXPECT_FALSE(detail::is_ascii_alnum(static_cast<char>(0xC5)));
  637. // Non-ASCII bytes must be percent-encoded, never passed through as
  638. // alphanumeric.
  639. EXPECT_EQ("%C5", httplib::encode_uri_component("\xC5"));
  640. }
  641. TEST(FromCharsTest, Double) {
  642. // detail::from_chars(double) recognizes exactly the HTTP quality-value
  643. // grammar (RFC 9110 12.4.2): a non-negative decimal "1*DIGIT [ '.' *DIGIT ]"
  644. // with no sign, exponent, or "inf"/"nan", parsed locale-independently.
  645. auto parse = [](const std::string &s, double &v) {
  646. return detail::from_chars(s.data(), s.data() + s.size(), v);
  647. };
  648. double v = -1.0;
  649. // Representative quality values.
  650. EXPECT_EQ(parse("0", v).ec, std::errc{});
  651. EXPECT_DOUBLE_EQ(v, 0.0);
  652. EXPECT_EQ(parse("1", v).ec, std::errc{});
  653. EXPECT_DOUBLE_EQ(v, 1.0);
  654. EXPECT_EQ(parse("0.8", v).ec, std::errc{});
  655. EXPECT_DOUBLE_EQ(v, 0.8);
  656. EXPECT_EQ(parse("0.001", v).ec, std::errc{});
  657. EXPECT_DOUBLE_EQ(v, 0.001);
  658. EXPECT_EQ(parse("1.000", v).ec, std::errc{});
  659. EXPECT_DOUBLE_EQ(v, 1.0);
  660. // A missing integer or fractional part is tolerated.
  661. EXPECT_EQ(parse(".5", v).ec, std::errc{});
  662. EXPECT_DOUBLE_EQ(v, 0.5);
  663. EXPECT_EQ(parse("5.", v).ec, std::errc{});
  664. EXPECT_DOUBLE_EQ(v, 5.0);
  665. // Values outside [0, 1] still parse; the caller range-checks them.
  666. EXPECT_EQ(parse("123.456", v).ec, std::errc{});
  667. EXPECT_DOUBLE_EQ(v, 123.456);
  668. // Stops at the first byte that is not part of the number and reports where.
  669. std::string trailing = "0.9, text/html";
  670. auto r = parse(trailing, v);
  671. EXPECT_EQ(r.ec, std::errc{});
  672. EXPECT_DOUBLE_EQ(v, 0.9);
  673. EXPECT_EQ(*r.ptr, ',');
  674. // Sign and exponent are NOT part of the grammar: '+'/'-' are rejected
  675. // outright, and an 'e'/'E' simply ends the number.
  676. EXPECT_EQ(parse("-3.25", v).ec, std::errc::invalid_argument);
  677. EXPECT_EQ(parse("+2.5", v).ec, std::errc::invalid_argument);
  678. std::string exp_input = "1.5e3";
  679. r = parse(exp_input, v);
  680. EXPECT_EQ(r.ec, std::errc{});
  681. EXPECT_DOUBLE_EQ(v, 1.5);
  682. EXPECT_EQ(*r.ptr, 'e');
  683. // Invalid inputs.
  684. EXPECT_EQ(parse("", v).ec, std::errc::invalid_argument);
  685. EXPECT_EQ(parse(".", v).ec, std::errc::invalid_argument);
  686. EXPECT_EQ(parse("abc", v).ec, std::errc::invalid_argument);
  687. EXPECT_EQ(parse("nan", v).ec, std::errc::invalid_argument);
  688. EXPECT_EQ(parse("inf", v).ec, std::errc::invalid_argument);
  689. // Pathological but well-formed inputs must stay bounded (no overflow, no
  690. // out-of-bounds table access) and stay within [0, 1] for the caller.
  691. EXPECT_EQ(parse(std::string("0.") + std::string(500, '0'), v).ec,
  692. std::errc{});
  693. EXPECT_DOUBLE_EQ(v, 0.0);
  694. EXPECT_EQ(parse(std::string("0.") + std::string(500, '9'), v).ec,
  695. std::errc{});
  696. EXPECT_GE(v, 0.0);
  697. EXPECT_LE(v, 1.0);
  698. EXPECT_EQ(parse(std::string(500, '9'), v).ec, std::errc{});
  699. EXPECT_GT(v, 1.0); // huge integer: finite, > 1, so the caller rejects it
  700. }
  701. TEST(ParseAcceptHeaderTest, BasicAcceptParsing) {
  702. // Simple case without quality values
  703. std::vector<std::string> result1;
  704. EXPECT_TRUE(detail::parse_accept_header(
  705. "text/html,application/json,text/plain", result1));
  706. EXPECT_EQ(result1.size(), 3U);
  707. EXPECT_EQ(result1[0], "text/html");
  708. EXPECT_EQ(result1[1], "application/json");
  709. EXPECT_EQ(result1[2], "text/plain");
  710. // With quality values
  711. std::vector<std::string> result2;
  712. EXPECT_TRUE(detail::parse_accept_header(
  713. "text/html;q=0.9,application/json;q=1.0,text/plain;q=0.8", result2));
  714. EXPECT_EQ(result2.size(), 3U);
  715. EXPECT_EQ(result2[0], "application/json"); // highest q value
  716. EXPECT_EQ(result2[1], "text/html");
  717. EXPECT_EQ(result2[2], "text/plain"); // lowest q value
  718. }
  719. TEST(ParseAcceptHeaderTest, MixedQualityValues) {
  720. // Mixed with and without quality values
  721. std::vector<std::string> result;
  722. EXPECT_TRUE(detail::parse_accept_header(
  723. "text/html,application/json;q=0.5,text/plain;q=0.8", result));
  724. EXPECT_EQ(result.size(), 3U);
  725. EXPECT_EQ(result[0], "text/html"); // no q value means 1.0
  726. EXPECT_EQ(result[1], "text/plain"); // q=0.8
  727. EXPECT_EQ(result[2], "application/json"); // q=0.5
  728. }
  729. TEST(ParseAcceptHeaderTest, EdgeCases) {
  730. // Empty header
  731. std::vector<std::string> empty_result;
  732. EXPECT_TRUE(detail::parse_accept_header("", empty_result));
  733. EXPECT_TRUE(empty_result.empty());
  734. // Single type
  735. std::vector<std::string> single_result;
  736. EXPECT_TRUE(detail::parse_accept_header("application/json", single_result));
  737. EXPECT_EQ(single_result.size(), 1U);
  738. EXPECT_EQ(single_result[0], "application/json");
  739. // Wildcard types
  740. std::vector<std::string> wildcard_result;
  741. EXPECT_TRUE(detail::parse_accept_header(
  742. "text/*;q=0.5,*/*;q=0.1,application/json", wildcard_result));
  743. EXPECT_EQ(wildcard_result.size(), 3U);
  744. EXPECT_EQ(wildcard_result[0], "application/json");
  745. EXPECT_EQ(wildcard_result[1], "text/*");
  746. EXPECT_EQ(wildcard_result[2], "*/*");
  747. }
  748. TEST(ParseAcceptHeaderTest, RealWorldExamples) {
  749. // Common browser Accept header
  750. std::vector<std::string> browser_result;
  751. EXPECT_TRUE(
  752. detail::parse_accept_header("text/html,application/xhtml+xml,application/"
  753. "xml;q=0.9,image/webp,image/apng,*/*;q=0.8",
  754. browser_result));
  755. EXPECT_EQ(browser_result.size(), 6U);
  756. EXPECT_EQ(browser_result[0], "text/html"); // q=1.0 (default)
  757. EXPECT_EQ(browser_result[1], "application/xhtml+xml"); // q=1.0 (default)
  758. EXPECT_EQ(browser_result[2], "image/webp"); // q=1.0 (default)
  759. EXPECT_EQ(browser_result[3], "image/apng"); // q=1.0 (default)
  760. EXPECT_EQ(browser_result[4], "application/xml"); // q=0.9
  761. EXPECT_EQ(browser_result[5], "*/*"); // q=0.8
  762. // API client header
  763. std::vector<std::string> api_result;
  764. EXPECT_TRUE(detail::parse_accept_header(
  765. "application/json;q=0.9,application/xml;q=0.8,text/plain;q=0.1",
  766. api_result));
  767. EXPECT_EQ(api_result.size(), 3U);
  768. EXPECT_EQ(api_result[0], "application/json");
  769. EXPECT_EQ(api_result[1], "application/xml");
  770. EXPECT_EQ(api_result[2], "text/plain");
  771. }
  772. TEST(ParseAcceptHeaderTest, SpecialCases) {
  773. // Quality value with 3 decimal places
  774. std::vector<std::string> decimal_result;
  775. EXPECT_TRUE(detail::parse_accept_header(
  776. "text/html;q=0.123,application/json;q=0.456", decimal_result));
  777. EXPECT_EQ(decimal_result.size(), 2U);
  778. EXPECT_EQ(decimal_result[0], "application/json"); // Higher q value
  779. EXPECT_EQ(decimal_result[1], "text/html");
  780. // Zero quality (should still be included but with lowest priority)
  781. std::vector<std::string> zero_q_result;
  782. EXPECT_TRUE(detail::parse_accept_header("text/html;q=0,application/json;q=1",
  783. zero_q_result));
  784. EXPECT_EQ(zero_q_result.size(), 2U);
  785. EXPECT_EQ(zero_q_result[0], "application/json"); // q=1
  786. EXPECT_EQ(zero_q_result[1], "text/html"); // q=0
  787. // No spaces around commas
  788. std::vector<std::string> no_space_result;
  789. EXPECT_TRUE(detail::parse_accept_header(
  790. "text/html;q=0.9,application/json;q=0.8,text/plain;q=0.7",
  791. no_space_result));
  792. EXPECT_EQ(no_space_result.size(), 3U);
  793. EXPECT_EQ(no_space_result[0], "text/html");
  794. EXPECT_EQ(no_space_result[1], "application/json");
  795. EXPECT_EQ(no_space_result[2], "text/plain");
  796. }
  797. TEST(ParseAcceptHeaderTest, QualityValueLocaleIndependence) {
  798. // Quality values always use '.' as the decimal separator, so parsing must
  799. // not depend on the process locale. An embedding application may have
  800. // switched to a locale that uses ',' via setlocale(LC_ALL, "").
  801. const char *cur = std::setlocale(LC_NUMERIC, nullptr);
  802. std::string saved = cur ? cur : "C";
  803. const char *comma_locales[] = {"de_DE.UTF-8", "de_DE.utf8", "nl_NL.UTF-8",
  804. "fr_FR.UTF-8"};
  805. bool switched = false;
  806. for (const auto loc : comma_locales) {
  807. if (std::setlocale(LC_NUMERIC, loc) != nullptr &&
  808. std::localeconv()->decimal_point[0] == ',') {
  809. switched = true;
  810. break;
  811. }
  812. }
  813. if (!switched) {
  814. std::setlocale(LC_NUMERIC, saved.c_str());
  815. GTEST_SKIP() << "no comma-decimal locale available on this host";
  816. }
  817. // The higher-weighted type appears later in the list, so a correct parse
  818. // must reorder it ahead of the earlier, lower-weighted one. A locale-
  819. // sensitive parse reads both weights as 0 and leaves the original order.
  820. std::vector<std::string> result;
  821. EXPECT_TRUE(detail::parse_accept_header(
  822. "application/json;q=0.1,text/html;q=0.9", result));
  823. ASSERT_EQ(result.size(), 2U);
  824. EXPECT_EQ(result[0], "text/html");
  825. EXPECT_EQ(result[1], "application/json");
  826. std::setlocale(LC_NUMERIC, saved.c_str());
  827. }
  828. TEST(ParseAcceptHeaderTest, InvalidCases) {
  829. std::vector<std::string> result;
  830. // Invalid quality value (> 1.0)
  831. EXPECT_FALSE(
  832. detail::parse_accept_header("text/html;q=1.5,application/json", result));
  833. // Invalid quality value (< 0.0)
  834. EXPECT_FALSE(
  835. detail::parse_accept_header("text/html;q=-0.1,application/json", result));
  836. // Invalid quality value (not a number)
  837. EXPECT_FALSE(detail::parse_accept_header(
  838. "text/html;q=invalid,application/json", result));
  839. // Empty quality value
  840. EXPECT_FALSE(
  841. detail::parse_accept_header("text/html;q=,application/json", result));
  842. // Invalid media type format (no slash and not wildcard)
  843. EXPECT_FALSE(
  844. detail::parse_accept_header("invalidtype,application/json", result));
  845. // Empty media type
  846. result.clear();
  847. EXPECT_FALSE(detail::parse_accept_header(",application/json", result));
  848. // Only commas
  849. result.clear();
  850. EXPECT_FALSE(detail::parse_accept_header(",,,", result));
  851. // Valid cases should still work
  852. EXPECT_TRUE(detail::parse_accept_header("*/*", result));
  853. EXPECT_EQ(result.size(), 1U);
  854. EXPECT_EQ(result[0], "*/*");
  855. EXPECT_TRUE(detail::parse_accept_header("*", result));
  856. EXPECT_EQ(result.size(), 1U);
  857. EXPECT_EQ(result[0], "*");
  858. EXPECT_TRUE(detail::parse_accept_header("text/*", result));
  859. EXPECT_EQ(result.size(), 1U);
  860. EXPECT_EQ(result[0], "text/*");
  861. }
  862. TEST(ParseAcceptHeaderTest, ContentTypesPopulatedAndInvalidHeaderHandling) {
  863. Server svr;
  864. svr.Get("/accept_ok", [&](const Request &req, Response &res) {
  865. EXPECT_EQ(req.accept_content_types.size(), 3U);
  866. EXPECT_EQ(req.accept_content_types[0], "application/json");
  867. EXPECT_EQ(req.accept_content_types[1], "text/html");
  868. EXPECT_EQ(req.accept_content_types[2], "*/*");
  869. res.set_content("ok", "text/plain");
  870. });
  871. svr.Get("/accept_bad_request", [&](const Request & /*req*/, Response &res) {
  872. EXPECT_TRUE(false);
  873. res.set_content("bad request", "text/plain");
  874. });
  875. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  876. auto se = detail::scope_exit([&] {
  877. svr.stop();
  878. listen_thread.join();
  879. ASSERT_FALSE(svr.is_running());
  880. });
  881. svr.wait_until_ready();
  882. Client cli("localhost", PORT);
  883. {
  884. auto res = cli.Get(
  885. "/accept_ok",
  886. Headers{{"Accept", "application/json, text/html;q=0.8, */*;q=0.1"}});
  887. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  888. EXPECT_EQ(StatusCode::OK_200, res->status);
  889. }
  890. {
  891. auto res = cli.Get("/accept_bad_request",
  892. Headers{{"Accept", "text/html;q=abc,application/json"}});
  893. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  894. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  895. }
  896. }
  897. TEST(ServerStartHandlerTest, CalledOnceWhenReady) {
  898. Server svr;
  899. svr.Get("/", [](const Request & /*req*/, Response &res) {
  900. res.set_content("ok", "text/plain");
  901. });
  902. std::atomic<int> start_count{0};
  903. std::atomic<bool> running_when_called{false};
  904. svr.set_start_handler([&]() {
  905. running_when_called = svr.is_running();
  906. start_count++;
  907. });
  908. auto port = svr.bind_to_any_port(HOST);
  909. std::thread t([&]() { svr.listen_after_bind(); });
  910. auto se = detail::scope_exit([&] {
  911. svr.stop();
  912. t.join();
  913. ASSERT_FALSE(svr.is_running());
  914. });
  915. svr.wait_until_ready();
  916. // A successful request proves the accept loop is running, which the start
  917. // handler precedes; so by now the handler must have run exactly once.
  918. Client cli(HOST, port);
  919. cli.set_connection_timeout(std::chrono::seconds(5));
  920. auto res = cli.Get("/");
  921. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  922. EXPECT_EQ(StatusCode::OK_200, res->status);
  923. EXPECT_EQ(1, start_count.load());
  924. EXPECT_TRUE(running_when_called.load());
  925. }
  926. TEST(DivideTest, DivideStringTests) {
  927. auto divide = [](const std::string &str, char d) {
  928. std::string lhs;
  929. std::string rhs;
  930. detail::divide(str, d,
  931. [&](const char *lhs_data, std::size_t lhs_size,
  932. const char *rhs_data, std::size_t rhs_size) {
  933. lhs.assign(lhs_data, lhs_size);
  934. rhs.assign(rhs_data, rhs_size);
  935. });
  936. return std::make_pair(std::move(lhs), std::move(rhs));
  937. };
  938. {
  939. const auto res = divide("", '=');
  940. EXPECT_EQ(res.first, "");
  941. EXPECT_EQ(res.second, "");
  942. }
  943. {
  944. const auto res = divide("=", '=');
  945. EXPECT_EQ(res.first, "");
  946. EXPECT_EQ(res.second, "");
  947. }
  948. {
  949. const auto res = divide(" ", '=');
  950. EXPECT_EQ(res.first, " ");
  951. EXPECT_EQ(res.second, "");
  952. }
  953. {
  954. const auto res = divide("a", '=');
  955. EXPECT_EQ(res.first, "a");
  956. EXPECT_EQ(res.second, "");
  957. }
  958. {
  959. const auto res = divide("a=", '=');
  960. EXPECT_EQ(res.first, "a");
  961. EXPECT_EQ(res.second, "");
  962. }
  963. {
  964. const auto res = divide("=b", '=');
  965. EXPECT_EQ(res.first, "");
  966. EXPECT_EQ(res.second, "b");
  967. }
  968. {
  969. const auto res = divide("a=b", '=');
  970. EXPECT_EQ(res.first, "a");
  971. EXPECT_EQ(res.second, "b");
  972. }
  973. {
  974. const auto res = divide("a=b=", '=');
  975. EXPECT_EQ(res.first, "a");
  976. EXPECT_EQ(res.second, "b=");
  977. }
  978. {
  979. const auto res = divide("a=b=c", '=');
  980. EXPECT_EQ(res.first, "a");
  981. EXPECT_EQ(res.second, "b=c");
  982. }
  983. }
  984. TEST(SplitTest, ParseQueryString) {
  985. string s = "key1=val1&key2=val2&key3=val3";
  986. Params dic;
  987. detail::split(s.c_str(), s.c_str() + s.size(), '&',
  988. [&](const char *b, const char *e) {
  989. string key, val;
  990. detail::split(b, e, '=', [&](const char *b2, const char *e2) {
  991. if (key.empty()) {
  992. key.assign(b2, e2);
  993. } else {
  994. val.assign(b2, e2);
  995. }
  996. });
  997. dic.emplace(key, val);
  998. });
  999. EXPECT_EQ("val1", dic.find("key1")->second);
  1000. EXPECT_EQ("val2", dic.find("key2")->second);
  1001. EXPECT_EQ("val3", dic.find("key3")->second);
  1002. }
  1003. TEST(SplitTest, ParseInvalidQueryTests) {
  1004. {
  1005. string s = " ";
  1006. Params dict;
  1007. detail::parse_query_text(s, dict);
  1008. EXPECT_TRUE(dict.empty());
  1009. }
  1010. {
  1011. string s = " = =";
  1012. Params dict;
  1013. detail::parse_query_text(s, dict);
  1014. EXPECT_TRUE(dict.empty());
  1015. }
  1016. }
  1017. TEST(ParseQueryTest, ParseQueryString) {
  1018. {
  1019. std::string s = "key1=val1&key2=val2&key3=val3";
  1020. Params dic;
  1021. detail::parse_query_text(s, dic);
  1022. EXPECT_EQ("val1", dic.find("key1")->second);
  1023. EXPECT_EQ("val2", dic.find("key2")->second);
  1024. EXPECT_EQ("val3", dic.find("key3")->second);
  1025. }
  1026. {
  1027. std::string s = "key1&key2=val1&key3=val1=val2&key4=val1=val2=val3";
  1028. Params dic;
  1029. detail::parse_query_text(s, dic);
  1030. EXPECT_EQ("", dic.find("key1")->second);
  1031. EXPECT_EQ("val1", dic.find("key2")->second);
  1032. EXPECT_EQ("val1=val2", dic.find("key3")->second);
  1033. EXPECT_EQ("val1=val2=val3", dic.find("key4")->second);
  1034. }
  1035. }
  1036. TEST(ParamsToQueryTest, ConvertParamsToQuery) {
  1037. Params dic;
  1038. EXPECT_EQ(detail::params_to_query_str(dic), "");
  1039. dic.emplace("key1", "val1");
  1040. EXPECT_EQ(detail::params_to_query_str(dic), "key1=val1");
  1041. dic.emplace("key2", "val2");
  1042. dic.emplace("key3", "val3");
  1043. EXPECT_EQ(detail::params_to_query_str(dic), "key1=val1&key2=val2&key3=val3");
  1044. }
  1045. // Joins every entry of a Headers or Params into "key=value " so a whole
  1046. // traversal can be compared in one assertion. Both are instantiations of the
  1047. // same insertion-ordered container, so one helper serves both.
  1048. template <typename Map> static std::string entries_to_string(const Map &m) {
  1049. std::string s;
  1050. for (const auto &entry : m) {
  1051. s += entry.first + "=" + entry.second + " ";
  1052. }
  1053. return s;
  1054. }
  1055. TEST(ParamsOrderTest, QueryIsBuiltInInsertionOrderNotSorted) {
  1056. // Params used to be a std::multimap, which sorted by name and handed the
  1057. // caller's query back alphabetised. A client signing its query string could
  1058. // not reproduce the order it asked for.
  1059. Params dic;
  1060. dic.emplace("zulu", "1");
  1061. dic.emplace("alpha", "2");
  1062. dic.emplace("mike", "3");
  1063. EXPECT_EQ("zulu=1&alpha=2&mike=3", detail::params_to_query_str(dic));
  1064. EXPECT_EQ("/p?zulu=1&alpha=2&mike=3", append_query_params("/p", dic));
  1065. }
  1066. TEST(ParamsOrderTest, ParsingKeepsTheOrderReceived) {
  1067. Params dic;
  1068. detail::parse_query_text("zulu=1&alpha=2&mike=3", dic);
  1069. EXPECT_EQ("zulu=1 alpha=2 mike=3 ", entries_to_string(dic));
  1070. }
  1071. TEST(ParamsOrderTest, RepeatedNamesKeepTheirOrder) {
  1072. Request req;
  1073. detail::parse_query_text("tag=first&other=x&tag=second&tag=third",
  1074. req.params);
  1075. EXPECT_EQ(3U, req.get_param_value_count("tag"));
  1076. EXPECT_EQ("first", req.get_param_value("tag"));
  1077. EXPECT_EQ("first", req.get_param_value("tag", 0));
  1078. EXPECT_EQ("second", req.get_param_value("tag", 1));
  1079. EXPECT_EQ("third", req.get_param_value("tag", 2));
  1080. EXPECT_EQ("", req.get_param_value("tag", 3));
  1081. }
  1082. TEST(ParamsOrderTest, LookupStaysCaseSensitive) {
  1083. // Params shares its container with Headers, which matches field names
  1084. // case-insensitively. Parameter names must not pick that up.
  1085. Params dic;
  1086. dic.emplace("Key", "upper");
  1087. dic.emplace("key", "lower");
  1088. EXPECT_EQ(2U, dic.size());
  1089. EXPECT_EQ(1U, dic.count("Key"));
  1090. EXPECT_EQ(1U, dic.count("key"));
  1091. EXPECT_EQ("upper", dic.find("Key")->second);
  1092. EXPECT_EQ("lower", dic.find("key")->second);
  1093. EXPECT_TRUE(dic.find("KEY") == dic.end());
  1094. }
  1095. TEST(ParamsOrderTest, ServerSeesTheOrderTheClientSent) {
  1096. Server svr;
  1097. std::string order;
  1098. svr.Get("/order", [&](const Request &req, Response &res) {
  1099. order = entries_to_string(req.params);
  1100. res.set_content("ok", "text/plain");
  1101. });
  1102. auto port = svr.bind_to_any_port(HOST);
  1103. thread t = thread([&] { svr.listen_after_bind(); });
  1104. auto se = detail::scope_exit([&] {
  1105. svr.stop();
  1106. t.join();
  1107. ASSERT_FALSE(svr.is_running());
  1108. });
  1109. svr.wait_until_ready();
  1110. Client cli(HOST, port);
  1111. auto res = cli.Get("/order?zulu=1&alpha=2&tag=x&mike=3&tag=y");
  1112. ASSERT_TRUE(res);
  1113. EXPECT_EQ("zulu=1 alpha=2 tag=x mike=3 tag=y ", order);
  1114. }
  1115. TEST(MultipartOrderTest, PartsKeepTheOrderSent) {
  1116. Server svr;
  1117. std::string field_order, file_order;
  1118. svr.Post("/order", [&](const Request &req, Response &res) {
  1119. for (const auto &field : req.form.fields) {
  1120. field_order += field.first + "=" + field.second.content + " ";
  1121. }
  1122. for (const auto &file : req.form.files) {
  1123. file_order += file.first + "=" + file.second.filename + " ";
  1124. }
  1125. res.set_content("ok", "text/plain");
  1126. });
  1127. auto port = svr.bind_to_any_port(HOST);
  1128. thread t = thread([&] { svr.listen_after_bind(); });
  1129. auto se = detail::scope_exit([&] {
  1130. svr.stop();
  1131. t.join();
  1132. ASSERT_FALSE(svr.is_running());
  1133. });
  1134. svr.wait_until_ready();
  1135. UploadFormDataItems items = {
  1136. {"zulu", "1", "", ""},
  1137. {"alpha", "2", "", ""},
  1138. {"mike", "3", "", ""},
  1139. {"zebra", "z", "z.txt", "text/plain"},
  1140. {"apple", "a", "a.txt", "text/plain"},
  1141. };
  1142. Client cli(HOST, port);
  1143. auto res = cli.Post("/order", items);
  1144. ASSERT_TRUE(res);
  1145. EXPECT_EQ("zulu=1 alpha=2 mike=3 ", field_order);
  1146. EXPECT_EQ("zebra=z.txt apple=a.txt ", file_order);
  1147. }
  1148. TEST(MultipartOrderTest, RepeatedNamesKeepTheirOrder) {
  1149. Server svr;
  1150. std::vector<std::string> values;
  1151. std::string first, second, out_of_range, order;
  1152. svr.Post("/repeated", [&](const Request &req, Response &res) {
  1153. values = req.form.get_fields("tag");
  1154. first = req.form.get_field("tag", 0);
  1155. second = req.form.get_field("tag", 1);
  1156. out_of_range = req.form.get_field("tag", 2);
  1157. for (const auto &field : req.form.fields) {
  1158. order += field.first + "=" + field.second.content + " ";
  1159. }
  1160. res.set_content("ok", "text/plain");
  1161. });
  1162. auto port = svr.bind_to_any_port(HOST);
  1163. thread t = thread([&] { svr.listen_after_bind(); });
  1164. auto se = detail::scope_exit([&] {
  1165. svr.stop();
  1166. t.join();
  1167. ASSERT_FALSE(svr.is_running());
  1168. });
  1169. svr.wait_until_ready();
  1170. // "other" sits between the two "tag" parts, so the entries sharing a name are
  1171. // not adjacent in the container.
  1172. UploadFormDataItems items = {
  1173. {"tag", "first", "", ""},
  1174. {"other", "x", "", ""},
  1175. {"tag", "second", "", ""},
  1176. };
  1177. Client cli(HOST, port);
  1178. auto res = cli.Post("/repeated", items);
  1179. ASSERT_TRUE(res);
  1180. ASSERT_EQ(2U, values.size());
  1181. EXPECT_EQ("first", values[0]);
  1182. EXPECT_EQ("second", values[1]);
  1183. EXPECT_EQ("first", first);
  1184. EXPECT_EQ("second", second);
  1185. // std::multimap already kept entries sharing a name in insertion order, so
  1186. // everything above passes without this change too. The whole traversal is
  1187. // what tells the two apart: sorting by name would hoist "other" to the front
  1188. // and the two "tag" parts would end up adjacent.
  1189. EXPECT_EQ("tag=first other=x tag=second ", order);
  1190. // Advancing past the last entry of a name used to run off the container;
  1191. // the container's saturating increment makes it return the default instead.
  1192. EXPECT_EQ("", out_of_range);
  1193. }
  1194. TEST(MultipartOrderTest, ContentSurvivesContainerGrowth) {
  1195. // Server::read_content() keeps a FormFields::iterator alive across the
  1196. // content callbacks that fill the part it points at. The container is
  1197. // vector-backed, so a later emplace can reallocate and invalidate an older
  1198. // iterator; 64 parts grow the vector through seven reallocations, which
  1199. // checks that every part's content still lands in its own entry.
  1200. const size_t part_count = 64;
  1201. // One formula for both the parts sent and the values expected back, so the
  1202. // two cannot drift apart.
  1203. auto name_of = [](size_t i) { return "f" + std::to_string(i); };
  1204. auto content_of = [](size_t i) {
  1205. return std::string(64, static_cast<char>('a' + (i % 26)));
  1206. };
  1207. Server svr;
  1208. std::vector<std::pair<std::string, std::string>> received;
  1209. svr.Post("/many", [&](const Request &req, Response &res) {
  1210. for (const auto &field : req.form.fields) {
  1211. received.emplace_back(field.first, field.second.content);
  1212. }
  1213. res.set_content("ok", "text/plain");
  1214. });
  1215. auto port = svr.bind_to_any_port(HOST);
  1216. thread t = thread([&] { svr.listen_after_bind(); });
  1217. auto se = detail::scope_exit([&] {
  1218. svr.stop();
  1219. t.join();
  1220. ASSERT_FALSE(svr.is_running());
  1221. });
  1222. svr.wait_until_ready();
  1223. UploadFormDataItems items;
  1224. for (size_t i = 0; i < part_count; i++) {
  1225. items.push_back({name_of(i), content_of(i), "", ""});
  1226. }
  1227. Client cli(HOST, port);
  1228. auto res = cli.Post("/many", items);
  1229. ASSERT_TRUE(res);
  1230. ASSERT_EQ(part_count, received.size());
  1231. for (size_t i = 0; i < part_count; i++) {
  1232. EXPECT_EQ(name_of(i), received[i].first) << "part " << i;
  1233. EXPECT_EQ(content_of(i), received[i].second) << "part " << i;
  1234. }
  1235. }
  1236. TEST(ParseMultipartBoundaryTest, DefaultValue) {
  1237. string content_type = "multipart/form-data; boundary=something";
  1238. string boundary;
  1239. auto ret = detail::parse_multipart_boundary(content_type, boundary);
  1240. EXPECT_TRUE(ret);
  1241. EXPECT_EQ(boundary, "something");
  1242. }
  1243. TEST(ParseMultipartBoundaryTest, ValueWithQuote) {
  1244. string content_type = "multipart/form-data; boundary=\"gc0pJq0M:08jU534c0p\"";
  1245. string boundary;
  1246. auto ret = detail::parse_multipart_boundary(content_type, boundary);
  1247. EXPECT_TRUE(ret);
  1248. EXPECT_EQ(boundary, "gc0pJq0M:08jU534c0p");
  1249. }
  1250. TEST(ParseMultipartBoundaryTest, ValueWithCharset) {
  1251. string content_type =
  1252. "multipart/mixed; boundary=THIS_STRING_SEPARATES;charset=UTF-8";
  1253. string boundary;
  1254. auto ret = detail::parse_multipart_boundary(content_type, boundary);
  1255. EXPECT_TRUE(ret);
  1256. EXPECT_EQ(boundary, "THIS_STRING_SEPARATES");
  1257. }
  1258. TEST(ParseMultipartBoundaryTest, ValueWithQuotesAndCharset) {
  1259. string content_type =
  1260. "multipart/mixed; boundary=\"cpp-httplib-multipart-data\"; charset=UTF-8";
  1261. string boundary;
  1262. auto ret = detail::parse_multipart_boundary(content_type, boundary);
  1263. EXPECT_TRUE(ret);
  1264. EXPECT_EQ(boundary, "cpp-httplib-multipart-data");
  1265. }
  1266. TEST(GetHeaderValueTest, DefaultValue) {
  1267. Headers headers = {{"Dummy", "Dummy"}};
  1268. auto val = detail::get_header_value(headers, "Content-Type", "text/plain", 0);
  1269. EXPECT_STREQ("text/plain", val);
  1270. }
  1271. TEST(GetHeaderValueTest, DefaultValueInt) {
  1272. Headers headers = {{"Dummy", "Dummy"}};
  1273. auto val = detail::get_header_value_u64(headers, "Content-Length", 100, 0);
  1274. EXPECT_EQ(100ull, val);
  1275. }
  1276. TEST(GetHeaderValueTest, RegularValue) {
  1277. Headers headers = {{"Content-Type", "text/html"}, {"Dummy", "Dummy"}};
  1278. auto val = detail::get_header_value(headers, "Content-Type", "text/plain", 0);
  1279. EXPECT_STREQ("text/html", val);
  1280. }
  1281. TEST(GetHeaderValueTest, RegularValueWithDifferentCase) {
  1282. Headers headers = {{"Content-Type", "text/html"}, {"Dummy", "Dummy"}};
  1283. auto val = detail::get_header_value(headers, "content-type", "text/plain", 0);
  1284. EXPECT_STREQ("text/html", val);
  1285. }
  1286. TEST(GetHeaderValueTest, SetContent) {
  1287. Response res;
  1288. res.set_content("html", "text/html");
  1289. EXPECT_EQ("text/html", res.get_header_value("Content-Type"));
  1290. res.set_content("text", "text/plain");
  1291. EXPECT_EQ(1U, res.get_header_value_count("Content-Type"));
  1292. EXPECT_EQ("text/plain", res.get_header_value("Content-Type"));
  1293. }
  1294. TEST(GetHeaderValueTest, RegularValueInt) {
  1295. Headers headers = {{"Content-Length", "100"}, {"Dummy", "Dummy"}};
  1296. auto val = detail::get_header_value_u64(headers, "Content-Length", 0, 0);
  1297. EXPECT_EQ(100ull, val);
  1298. }
  1299. TEST(GetHeaderValueTest, RegularInvalidValueInt) {
  1300. Headers headers = {{"Content-Length", "x"}};
  1301. auto is_invalid_value = false;
  1302. auto val = detail::get_header_value_u64(headers, "Content-Length", 0, 0,
  1303. is_invalid_value);
  1304. EXPECT_EQ(0ull, val);
  1305. EXPECT_TRUE(is_invalid_value);
  1306. }
  1307. TEST(GetHeaderValueTest, OutOfRangeValueInt) {
  1308. // An all-digit value that overflows size_t must be reported as invalid, not
  1309. // silently saturated/truncated: parsing at size_t width would otherwise wrap
  1310. // a large length to a small one on 32-bit builds, leaving the framing length
  1311. // wrong while is_invalid_value stayed false.
  1312. Headers headers = {{"Content-Length", "99999999999999999999999999"}};
  1313. auto is_invalid_value = false;
  1314. detail::get_header_value_u64(headers, "Content-Length", 0, 0,
  1315. is_invalid_value);
  1316. EXPECT_TRUE(is_invalid_value);
  1317. // A well-formed length is unaffected.
  1318. Headers ok = {{"Content-Length", "1234"}};
  1319. is_invalid_value = false;
  1320. auto val = detail::get_header_value_u64(ok, "Content-Length", 0, 0,
  1321. is_invalid_value);
  1322. EXPECT_EQ(1234ull, val);
  1323. EXPECT_FALSE(is_invalid_value);
  1324. }
  1325. TEST(GetHeaderValueTest, Range) {
  1326. {
  1327. Headers headers = {make_range_header({{1, -1}})};
  1328. auto val = detail::get_header_value(headers, "Range", 0, 0);
  1329. EXPECT_STREQ("bytes=1-", val);
  1330. }
  1331. {
  1332. Headers headers = {make_range_header({{-1, 1}})};
  1333. auto val = detail::get_header_value(headers, "Range", 0, 0);
  1334. EXPECT_STREQ("bytes=-1", val);
  1335. }
  1336. {
  1337. Headers headers = {make_range_header({{1, 10}})};
  1338. auto val = detail::get_header_value(headers, "Range", 0, 0);
  1339. EXPECT_STREQ("bytes=1-10", val);
  1340. }
  1341. {
  1342. Headers headers = {make_range_header({{1, 10}, {100, -1}})};
  1343. auto val = detail::get_header_value(headers, "Range", 0, 0);
  1344. EXPECT_STREQ("bytes=1-10, 100-", val);
  1345. }
  1346. {
  1347. Headers headers = {make_range_header({{1, 10}, {100, 200}})};
  1348. auto val = detail::get_header_value(headers, "Range", 0, 0);
  1349. EXPECT_STREQ("bytes=1-10, 100-200", val);
  1350. }
  1351. {
  1352. Headers headers = {make_range_header({{0, 0}, {-1, 1}})};
  1353. auto val = detail::get_header_value(headers, "Range", 0, 0);
  1354. EXPECT_STREQ("bytes=0-0, -1", val);
  1355. }
  1356. }
  1357. TEST(HeadersOrderTest, DuplicateFieldsKeepInsertionOrder) {
  1358. // RFC 9110 5.3: the order of fields sharing a name is significant. This used
  1359. // to depend on the standard library (libstdc++ handed back duplicates in
  1360. // reverse insertion order, libc++ in insertion order).
  1361. Request req;
  1362. req.set_header("Accept-Encoding", "gzip");
  1363. req.set_header("Accept-Encoding", "deflate");
  1364. req.set_header("Accept-Encoding", "br");
  1365. EXPECT_EQ(3U, req.get_header_value_count("Accept-Encoding"));
  1366. EXPECT_EQ("gzip", req.get_header_value("Accept-Encoding"));
  1367. EXPECT_EQ("gzip", req.get_header_value("Accept-Encoding", "", 0));
  1368. EXPECT_EQ("deflate", req.get_header_value("Accept-Encoding", "", 1));
  1369. EXPECT_EQ("br", req.get_header_value("Accept-Encoding", "", 2));
  1370. }
  1371. TEST(HeadersOrderTest, IdBeyondTheLastDuplicateYieldsDefault) {
  1372. Request req;
  1373. req.set_header("X-Test", "only");
  1374. EXPECT_EQ("only", req.get_header_value("X-Test", "def", 0));
  1375. EXPECT_EQ("def", req.get_header_value("X-Test", "def", 1));
  1376. EXPECT_EQ("def", req.get_header_value("X-Test", "def", 99));
  1377. EXPECT_EQ("def", req.get_header_value("X-Missing", "def", 3));
  1378. }
  1379. TEST(HeadersOrderTest, TraversalFollowsInsertionOrder) {
  1380. Headers headers;
  1381. headers.emplace("Host", "example.com");
  1382. headers.emplace("Accept-Encoding", "gzip");
  1383. headers.emplace("User-Agent", "test");
  1384. headers.emplace("Accept-Encoding", "deflate");
  1385. EXPECT_EQ("Host=example.com Accept-Encoding=gzip User-Agent=test "
  1386. "Accept-Encoding=deflate ",
  1387. entries_to_string(headers));
  1388. }
  1389. TEST(HeadersOrderTest, LookupIsCaseInsensitiveAndPicksTheFirstField) {
  1390. Headers headers = {{"Content-Type", "text/html"},
  1391. {"CONTENT-TYPE", "text/xml"}};
  1392. EXPECT_EQ(2U, headers.count("content-type"));
  1393. auto it = headers.find("content-type");
  1394. ASSERT_TRUE(it != headers.end());
  1395. EXPECT_EQ("text/html", it->second);
  1396. }
  1397. TEST(HeadersOrderTest, ErasingAnEqualRangeSparesInterleavedFields) {
  1398. // The fields sharing a name are not adjacent, so an equal_range() erase must
  1399. // drop only those fields and leave everything positioned between them.
  1400. Headers headers = {{"A", "1"}, {"X", "x"}, {"A", "2"},
  1401. {"Y", "y"}, {"A", "3"}, {"Z", "z"}};
  1402. auto rng = headers.equal_range("a");
  1403. headers.erase(rng.first, rng.second);
  1404. EXPECT_EQ("X=x Y=y Z=z ", entries_to_string(headers));
  1405. }
  1406. TEST(HeadersOrderTest, ErasingByNameKeepsTheRemainingOrder) {
  1407. Headers headers = {
  1408. {"A", "1"}, {"B", "2"}, {"a", "3"}, {"C", "4"}, {"A", "5"}};
  1409. EXPECT_EQ(3U, headers.erase("A"));
  1410. EXPECT_EQ(0U, headers.count("A"));
  1411. EXPECT_EQ("B=2 C=4 ", entries_to_string(headers));
  1412. }
  1413. TEST(HeadersOrderTest, EmplaceFrontPrepends) {
  1414. Headers headers = {{"Accept", "*/*"}, {"User-Agent", "test"}};
  1415. headers.emplace_front("Host", "example.com");
  1416. EXPECT_EQ("Host=example.com Accept=*/* User-Agent=test ",
  1417. entries_to_string(headers));
  1418. }
  1419. TEST(ParseHeaderValueTest, Range) {
  1420. {
  1421. Ranges ranges;
  1422. auto ret = detail::parse_range_header("bytes=1-", ranges);
  1423. EXPECT_TRUE(ret);
  1424. EXPECT_EQ(1u, ranges.size());
  1425. EXPECT_EQ(1u, ranges[0].first);
  1426. EXPECT_EQ(-1, ranges[0].second);
  1427. }
  1428. {
  1429. Ranges ranges;
  1430. auto ret = detail::parse_range_header("bytes=-1", ranges);
  1431. EXPECT_TRUE(ret);
  1432. EXPECT_EQ(1u, ranges.size());
  1433. EXPECT_EQ(-1, ranges[0].first);
  1434. EXPECT_EQ(1u, ranges[0].second);
  1435. }
  1436. {
  1437. Ranges ranges;
  1438. auto ret = detail::parse_range_header("bytes=1-10", ranges);
  1439. EXPECT_TRUE(ret);
  1440. EXPECT_EQ(1u, ranges.size());
  1441. EXPECT_EQ(1u, ranges[0].first);
  1442. EXPECT_EQ(10u, ranges[0].second);
  1443. }
  1444. {
  1445. Ranges ranges;
  1446. auto ret = detail::parse_range_header("bytes=10-1", ranges);
  1447. EXPECT_FALSE(ret);
  1448. }
  1449. {
  1450. Ranges ranges;
  1451. auto ret = detail::parse_range_header("bytes=1-10, 100-", ranges);
  1452. EXPECT_TRUE(ret);
  1453. EXPECT_EQ(2u, ranges.size());
  1454. EXPECT_EQ(1u, ranges[0].first);
  1455. EXPECT_EQ(10u, ranges[0].second);
  1456. EXPECT_EQ(100u, ranges[1].first);
  1457. EXPECT_EQ(-1, ranges[1].second);
  1458. }
  1459. {
  1460. Ranges ranges;
  1461. auto ret =
  1462. detail::parse_range_header("bytes=1-10, 100-200, 300-400", ranges);
  1463. EXPECT_TRUE(ret);
  1464. EXPECT_EQ(3u, ranges.size());
  1465. EXPECT_EQ(1u, ranges[0].first);
  1466. EXPECT_EQ(10u, ranges[0].second);
  1467. EXPECT_EQ(100u, ranges[1].first);
  1468. EXPECT_EQ(200u, ranges[1].second);
  1469. EXPECT_EQ(300u, ranges[2].first);
  1470. EXPECT_EQ(400u, ranges[2].second);
  1471. }
  1472. {
  1473. Ranges ranges;
  1474. EXPECT_FALSE(detail::parse_range_header("bytes", ranges));
  1475. EXPECT_FALSE(detail::parse_range_header("bytes=", ranges));
  1476. EXPECT_FALSE(detail::parse_range_header("bytes=0", ranges));
  1477. EXPECT_FALSE(detail::parse_range_header("bytes=-", ranges));
  1478. EXPECT_FALSE(detail::parse_range_header("bytes= ", ranges));
  1479. EXPECT_FALSE(detail::parse_range_header("bytes=,", ranges));
  1480. EXPECT_FALSE(detail::parse_range_header("bytes=,,", ranges));
  1481. EXPECT_FALSE(detail::parse_range_header("bytes=,,,", ranges));
  1482. EXPECT_FALSE(detail::parse_range_header("bytes=a-b", ranges));
  1483. EXPECT_FALSE(detail::parse_range_header("bytes=1-0", ranges));
  1484. EXPECT_FALSE(detail::parse_range_header("bytes=0--1", ranges));
  1485. EXPECT_FALSE(detail::parse_range_header("bytes=0- 1", ranges));
  1486. EXPECT_FALSE(detail::parse_range_header("bytes=0 -1", ranges));
  1487. EXPECT_TRUE(ranges.empty());
  1488. }
  1489. }
  1490. TEST(ParseAcceptEncoding1, AcceptEncoding) {
  1491. Request req;
  1492. req.set_header("Accept-Encoding", "gzip");
  1493. Response res;
  1494. res.set_header("Content-Type", "text/plain");
  1495. auto ret = detail::encoding_type(req, res);
  1496. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  1497. EXPECT_TRUE(ret == detail::EncodingType::Gzip);
  1498. #else
  1499. EXPECT_TRUE(ret == detail::EncodingType::None);
  1500. #endif
  1501. }
  1502. TEST(ParseAcceptEncoding2, AcceptEncoding) {
  1503. Request req;
  1504. req.set_header("Accept-Encoding", "gzip, deflate, br, zstd");
  1505. Response res;
  1506. res.set_header("Content-Type", "text/plain");
  1507. auto ret = detail::encoding_type(req, res);
  1508. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  1509. EXPECT_TRUE(ret == detail::EncodingType::Brotli);
  1510. #elif CPPHTTPLIB_ZLIB_SUPPORT
  1511. EXPECT_TRUE(ret == detail::EncodingType::Gzip);
  1512. #elif CPPHTTPLIB_ZSTD_SUPPORT
  1513. EXPECT_TRUE(ret == detail::EncodingType::Zstd);
  1514. #else
  1515. EXPECT_TRUE(ret == detail::EncodingType::None);
  1516. #endif
  1517. }
  1518. TEST(ParseAcceptEncoding3, AcceptEncoding) {
  1519. Request req;
  1520. req.set_header("Accept-Encoding",
  1521. "br;q=1.0, gzip;q=0.8, zstd;q=0.8, *;q=0.1");
  1522. Response res;
  1523. res.set_header("Content-Type", "text/plain");
  1524. auto ret = detail::encoding_type(req, res);
  1525. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  1526. EXPECT_TRUE(ret == detail::EncodingType::Brotli);
  1527. #elif CPPHTTPLIB_ZLIB_SUPPORT
  1528. EXPECT_TRUE(ret == detail::EncodingType::Gzip);
  1529. #elif CPPHTTPLIB_ZSTD_SUPPORT
  1530. EXPECT_TRUE(ret == detail::EncodingType::Zstd);
  1531. #else
  1532. EXPECT_TRUE(ret == detail::EncodingType::None);
  1533. #endif
  1534. }
  1535. TEST(ParseAcceptEncoding4, AcceptEncodingQZero) {
  1536. // All supported encodings rejected with q=0 should return None
  1537. Request req;
  1538. req.set_header("Accept-Encoding", "gzip;q=0, br;q=0, zstd;q=0, deflate");
  1539. Response res;
  1540. res.set_header("Content-Type", "text/plain");
  1541. auto ret = detail::encoding_type(req, res);
  1542. EXPECT_TRUE(ret == detail::EncodingType::None);
  1543. }
  1544. TEST(ParseAcceptEncoding5, AcceptEncodingQZeroVariants) {
  1545. // q=0.0, q=0.00, q=0.000 should also be treated as rejected
  1546. Request req;
  1547. req.set_header("Accept-Encoding", "gzip;q=0.000, br;q=0.0, zstd;q=0.00");
  1548. Response res;
  1549. res.set_header("Content-Type", "text/plain");
  1550. auto ret = detail::encoding_type(req, res);
  1551. EXPECT_TRUE(ret == detail::EncodingType::None);
  1552. }
  1553. TEST(ParseAcceptEncoding6, AcceptEncodingXGzipQZero) {
  1554. // x-gzip;q=0 should not cause "gzip" to be incorrectly detected
  1555. Request req;
  1556. req.set_header("Accept-Encoding", "x-gzip;q=0");
  1557. Response res;
  1558. res.set_header("Content-Type", "text/plain");
  1559. auto ret = detail::encoding_type(req, res);
  1560. EXPECT_TRUE(ret == detail::EncodingType::None);
  1561. }
  1562. TEST(ParseAcceptEncoding7, AcceptEncodingCaseInsensitive) {
  1563. // RFC 7231: Accept-Encoding values are case-insensitive
  1564. Request req;
  1565. req.set_header("Accept-Encoding", "GZIP, BR, ZSTD");
  1566. Response res;
  1567. res.set_header("Content-Type", "text/plain");
  1568. auto ret = detail::encoding_type(req, res);
  1569. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  1570. EXPECT_TRUE(ret == detail::EncodingType::Brotli);
  1571. #elif CPPHTTPLIB_ZLIB_SUPPORT
  1572. EXPECT_TRUE(ret == detail::EncodingType::Gzip);
  1573. #elif CPPHTTPLIB_ZSTD_SUPPORT
  1574. EXPECT_TRUE(ret == detail::EncodingType::Zstd);
  1575. #else
  1576. EXPECT_TRUE(ret == detail::EncodingType::None);
  1577. #endif
  1578. }
  1579. TEST(ParseAcceptEncoding8, AcceptEncodingQValuePriority) {
  1580. // q value should determine priority, not hardcoded order
  1581. Request req;
  1582. req.set_header("Accept-Encoding", "br;q=0.5, gzip;q=1.0, zstd;q=0.8");
  1583. Response res;
  1584. res.set_header("Content-Type", "text/plain");
  1585. auto ret = detail::encoding_type(req, res);
  1586. // gzip has highest q=1.0, so it should be selected even though
  1587. // br and zstd are also supported
  1588. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  1589. EXPECT_TRUE(ret == detail::EncodingType::Gzip);
  1590. #elif CPPHTTPLIB_ZSTD_SUPPORT
  1591. EXPECT_TRUE(ret == detail::EncodingType::Zstd);
  1592. #elif CPPHTTPLIB_BROTLI_SUPPORT
  1593. EXPECT_TRUE(ret == detail::EncodingType::Brotli);
  1594. #else
  1595. EXPECT_TRUE(ret == detail::EncodingType::None);
  1596. #endif
  1597. }
  1598. TEST(BufferStreamTest, read) {
  1599. detail::BufferStream strm1;
  1600. Stream &strm = strm1;
  1601. EXPECT_EQ(5, strm.write("hello"));
  1602. char buf[512];
  1603. EXPECT_EQ(2, strm.read(buf, 2));
  1604. EXPECT_EQ('h', buf[0]);
  1605. EXPECT_EQ('e', buf[1]);
  1606. EXPECT_EQ(2, strm.read(buf, 2));
  1607. EXPECT_EQ('l', buf[0]);
  1608. EXPECT_EQ('l', buf[1]);
  1609. EXPECT_EQ(1, strm.read(buf, 1));
  1610. EXPECT_EQ('o', buf[0]);
  1611. EXPECT_EQ(0, strm.read(buf, 1));
  1612. }
  1613. TEST(HostnameToIPConversionTest, HTTPWatch_Online) {
  1614. auto host = "www.httpwatch.com";
  1615. auto ip = hosted_at(host);
  1616. EXPECT_EQ("23.96.13.243", ip);
  1617. std::vector<std::string> addrs;
  1618. hosted_at(host, addrs);
  1619. EXPECT_EQ(1u, addrs.size());
  1620. }
  1621. #if 0 // It depends on each test environment...
  1622. TEST(HostnameToIPConversionTest, YouTube_Online) {
  1623. auto host = "www.youtube.com";
  1624. std::vector<std::string> addrs;
  1625. hosted_at(host, addrs);
  1626. EXPECT_EQ(20u, addrs.size());
  1627. auto it = std::find(addrs.begin(), addrs.end(), "2607:f8b0:4006:809::200e");
  1628. EXPECT_TRUE(it != addrs.end());
  1629. }
  1630. #endif
  1631. class ChunkedEncodingTest : public ::testing::Test {
  1632. protected:
  1633. ChunkedEncodingTest()
  1634. : cli_(HOST, PORT)
  1635. #ifdef CPPHTTPLIB_SSL_ENABLED
  1636. ,
  1637. svr_(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE)
  1638. #endif
  1639. {
  1640. cli_.set_connection_timeout(2);
  1641. #ifdef CPPHTTPLIB_SSL_ENABLED
  1642. cli_.enable_server_certificate_verification(false);
  1643. #endif
  1644. }
  1645. virtual void SetUp() {
  1646. read_file("./image.jpg", image_data_);
  1647. svr_.Get("/hi", [&](const Request & /*req*/, Response &res) {
  1648. res.set_content("Hello World!", "text/plain");
  1649. });
  1650. svr_.Get(
  1651. "/chunked", [this](const httplib::Request &, httplib::Response &res) {
  1652. res.set_chunked_content_provider(
  1653. "image/jpeg", [this](size_t offset, httplib::DataSink &sink) {
  1654. size_t remaining = image_data_.size() - offset;
  1655. if (remaining == 0) {
  1656. sink.done();
  1657. } else {
  1658. constexpr size_t CHUNK_SIZE = 1024;
  1659. size_t send_size = std::min(CHUNK_SIZE, remaining);
  1660. sink.write(&image_data_[offset], send_size);
  1661. std::this_thread::sleep_for(std::chrono::milliseconds(10));
  1662. }
  1663. return true;
  1664. });
  1665. });
  1666. t_ = thread([&]() { ASSERT_TRUE(svr_.listen(HOST, PORT)); });
  1667. svr_.wait_until_ready();
  1668. }
  1669. virtual void TearDown() {
  1670. svr_.stop();
  1671. if (!request_threads_.empty()) {
  1672. std::this_thread::sleep_for(std::chrono::seconds(1));
  1673. for (auto &t : request_threads_) {
  1674. t.join();
  1675. }
  1676. }
  1677. t_.join();
  1678. }
  1679. #ifdef CPPHTTPLIB_SSL_ENABLED
  1680. SSLClient cli_;
  1681. SSLServer svr_;
  1682. #else
  1683. Client cli_;
  1684. Server svr_;
  1685. #endif
  1686. thread t_;
  1687. std::vector<thread> request_threads_;
  1688. std::string image_data_;
  1689. };
  1690. TEST_F(ChunkedEncodingTest, NormalGet) {
  1691. auto res = cli_.Get("/chunked");
  1692. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1693. std::string out;
  1694. read_file("./image.jpg", out);
  1695. EXPECT_EQ(StatusCode::OK_200, res->status);
  1696. EXPECT_EQ(out, res->body);
  1697. }
  1698. TEST_F(ChunkedEncodingTest, WithContentReceiver) {
  1699. std::string body;
  1700. auto res = cli_.Get("/chunked", [&](const char *data, size_t data_length) {
  1701. body.append(data, data_length);
  1702. return true;
  1703. });
  1704. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1705. std::string out;
  1706. read_file("./image.jpg", out);
  1707. EXPECT_EQ(StatusCode::OK_200, res->status);
  1708. EXPECT_EQ(out, body);
  1709. }
  1710. TEST_F(ChunkedEncodingTest, WithResponseHandlerAndContentReceiver) {
  1711. std::string body;
  1712. auto res = cli_.Get(
  1713. "/chunked",
  1714. [&](const Response &response) {
  1715. EXPECT_EQ(StatusCode::OK_200, response.status);
  1716. return true;
  1717. },
  1718. [&](const char *data, size_t data_length) {
  1719. body.append(data, data_length);
  1720. return true;
  1721. });
  1722. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1723. std::string out;
  1724. read_file("./image.jpg", out);
  1725. EXPECT_EQ(StatusCode::OK_200, res->status);
  1726. EXPECT_EQ(out, body);
  1727. }
  1728. TEST(RangeTest, FromHTTPBin_Online) {
  1729. auto host = "httpbingo.org";
  1730. auto path = std::string{"/range/32"};
  1731. #ifdef CPPHTTPLIB_SSL_ENABLED
  1732. auto port = 443;
  1733. SSLClient cli(host, port);
  1734. #else
  1735. auto port = 80;
  1736. Client cli(host, port);
  1737. #endif
  1738. cli.set_connection_timeout(5);
  1739. {
  1740. auto res = cli.Get(path);
  1741. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1742. EXPECT_EQ("abcdefghijklmnopqrstuvwxyzabcdef", res->body);
  1743. EXPECT_EQ(StatusCode::OK_200, res->status);
  1744. }
  1745. {
  1746. Headers headers = {make_range_header({{1, -1}})};
  1747. auto res = cli.Get(path, headers);
  1748. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1749. EXPECT_EQ("bcdefghijklmnopqrstuvwxyzabcdef", res->body);
  1750. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  1751. }
  1752. {
  1753. Headers headers = {make_range_header({{1, 10}})};
  1754. auto res = cli.Get(path, headers);
  1755. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1756. EXPECT_EQ("bcdefghijk", res->body);
  1757. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  1758. }
  1759. // go-httpbin (httpbingo.org) returns 206 even when the range covers the
  1760. // entire resource, while the original httpbin returned 200. Both are
  1761. // acceptable per RFC 9110 §15.3.7, so we accept either status code.
  1762. {
  1763. Headers headers = {make_range_header({{0, 31}})};
  1764. auto res = cli.Get(path, headers);
  1765. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1766. EXPECT_EQ("abcdefghijklmnopqrstuvwxyzabcdef", res->body);
  1767. EXPECT_TRUE(res->status == StatusCode::OK_200 ||
  1768. res->status == StatusCode::PartialContent_206);
  1769. }
  1770. {
  1771. Headers headers = {make_range_header({{0, -1}})};
  1772. auto res = cli.Get(path, headers);
  1773. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1774. EXPECT_EQ("abcdefghijklmnopqrstuvwxyzabcdef", res->body);
  1775. EXPECT_TRUE(res->status == StatusCode::OK_200 ||
  1776. res->status == StatusCode::PartialContent_206);
  1777. }
  1778. // go-httpbin returns 206 with clamped range for over-range requests,
  1779. // while the original httpbin returned 416. Both behaviors are observed
  1780. // in real servers, so we only verify the request succeeds.
  1781. {
  1782. Headers headers = {make_range_header({{0, 32}})};
  1783. auto res = cli.Get(path, headers);
  1784. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  1785. }
  1786. }
  1787. TEST(GetAddrInfoDanglingRefTest, LongTimeout) {
  1788. auto host = "unresolvableaddress.local";
  1789. auto path = std::string{"/"};
  1790. #ifdef CPPHTTPLIB_SSL_ENABLED
  1791. auto port = 443;
  1792. SSLClient cli(host, port);
  1793. #else
  1794. auto port = 80;
  1795. Client cli(host, port);
  1796. #endif
  1797. cli.set_connection_timeout(1);
  1798. {
  1799. auto res = cli.Get(path);
  1800. ASSERT_FALSE(res);
  1801. }
  1802. std::this_thread::sleep_for(std::chrono::seconds(8));
  1803. }
  1804. #if defined(__linux__) && defined(__GLIBC__) && \
  1805. defined(CPPHTTPLIB_USE_NON_BLOCKING_GETADDRINFO)
  1806. // Forward declaration: in split builds split.py strips `inline` and moves the
  1807. // definition into httplib.cc, so detail::getaddrinfo_with_timeout is not
  1808. // visible from the public httplib.h. Re-declaring it here lets the tests link
  1809. // against the symbol in both header-only and split builds.
  1810. namespace httplib {
  1811. namespace detail {
  1812. int getaddrinfo_with_timeout(const char *node, const char *service,
  1813. const struct addrinfo *hints,
  1814. struct addrinfo **res, time_t timeout_sec);
  1815. } // namespace detail
  1816. } // namespace httplib
  1817. // Reproducer for https://github.com/yhirose/cpp-httplib/issues/2431.
  1818. //
  1819. // On Linux/glibc, getaddrinfo_with_timeout() runs the lookup via
  1820. // getaddrinfo_a(GAI_NOWAIT) using a stack-local `struct gaicb`. When the
  1821. // gai_suspend() call hits the connection timeout the function calls
  1822. // gai_cancel() and returns immediately. gai_cancel() is non-blocking and
  1823. // can return EAI_NOTCANCELED, in which case the resolver worker thread is
  1824. // still alive and still references the now-destroyed stack frame.
  1825. //
  1826. // Triggering the bug requires DNS to actually hang (UDP/53 dropped, etc.),
  1827. // so these tests are gated on CPPHTTPLIB_TEST_ISSUE_2431=1 and are skipped
  1828. // during normal runs. test/run_issue_2431_repro.sh sets up the environment
  1829. // and runs them in a container.
  1830. namespace {
  1831. bool should_run_issue_2431_tests() {
  1832. const char *v = getenv("CPPHTTPLIB_TEST_ISSUE_2431");
  1833. return v && *v && std::string(v) != "0";
  1834. }
  1835. std::string unique_unresolvable_host(int n) {
  1836. // .invalid is reserved (RFC 6761) and is never served by real DNS, but
  1837. // glibc still asks the configured nameserver — which is exactly the path
  1838. // we want to exercise. A unique label per call avoids the resolver cache.
  1839. auto t = std::chrono::steady_clock::now().time_since_epoch().count();
  1840. return "h-" + std::to_string(::getpid()) + "-" + std::to_string(t) + "-" +
  1841. std::to_string(n) + ".invalid";
  1842. }
  1843. } // namespace
  1844. TEST(GetAddrInfoAsyncCancelTest, DirectCallSingleThread) {
  1845. if (!should_run_issue_2431_tests()) {
  1846. GTEST_SKIP()
  1847. << "Set CPPHTTPLIB_TEST_ISSUE_2431=1 (and sinkhole DNS) to run";
  1848. }
  1849. for (int i = 0; i < 8; ++i) {
  1850. struct addrinfo hints;
  1851. memset(&hints, 0, sizeof(hints));
  1852. hints.ai_family = AF_UNSPEC;
  1853. hints.ai_socktype = SOCK_STREAM;
  1854. auto host = unique_unresolvable_host(i);
  1855. struct addrinfo *result = nullptr;
  1856. int rc = detail::getaddrinfo_with_timeout(host.c_str(), "80", &hints,
  1857. &result, /*timeout_sec=*/1);
  1858. if (rc == 0 && result) { freeaddrinfo(result); }
  1859. }
  1860. // Give orphaned getaddrinfo_a worker threads a chance to write into the
  1861. // stack region they still believe holds their gaicb.
  1862. std::this_thread::sleep_for(std::chrono::seconds(3));
  1863. }
  1864. TEST(GetAddrInfoAsyncCancelTest, DirectCallMultiThread) {
  1865. if (!should_run_issue_2431_tests()) {
  1866. GTEST_SKIP()
  1867. << "Set CPPHTTPLIB_TEST_ISSUE_2431=1 (and sinkhole DNS) to run";
  1868. }
  1869. std::atomic<bool> stop{false};
  1870. std::vector<std::thread> threads;
  1871. for (int t = 0; t < 8; ++t) {
  1872. threads.emplace_back([t, &stop] {
  1873. int i = 0;
  1874. while (!stop.load(std::memory_order_relaxed)) {
  1875. struct addrinfo hints;
  1876. memset(&hints, 0, sizeof(hints));
  1877. hints.ai_family = AF_UNSPEC;
  1878. hints.ai_socktype = SOCK_STREAM;
  1879. auto host = unique_unresolvable_host(t * 100000 + i++);
  1880. struct addrinfo *result = nullptr;
  1881. int rc = detail::getaddrinfo_with_timeout(host.c_str(), "80", &hints,
  1882. &result, /*timeout_sec=*/1);
  1883. if (rc == 0 && result) { freeaddrinfo(result); }
  1884. }
  1885. });
  1886. }
  1887. std::this_thread::sleep_for(std::chrono::seconds(8));
  1888. stop.store(true, std::memory_order_relaxed);
  1889. for (auto &th : threads) {
  1890. th.join();
  1891. }
  1892. std::this_thread::sleep_for(std::chrono::seconds(3));
  1893. }
  1894. TEST(GetAddrInfoAsyncCancelTest, ClientGetMultiThread) {
  1895. if (!should_run_issue_2431_tests()) {
  1896. GTEST_SKIP()
  1897. << "Set CPPHTTPLIB_TEST_ISSUE_2431=1 (and sinkhole DNS) to run";
  1898. }
  1899. std::atomic<bool> stop{false};
  1900. std::vector<std::thread> threads;
  1901. for (int t = 0; t < 8; ++t) {
  1902. threads.emplace_back([t, &stop] {
  1903. int i = 0;
  1904. while (!stop.load(std::memory_order_relaxed)) {
  1905. auto host = unique_unresolvable_host(t * 100000 + i++);
  1906. Client cli(host, 80);
  1907. cli.set_connection_timeout(1, 0);
  1908. cli.set_read_timeout(1, 0);
  1909. cli.set_write_timeout(1, 0);
  1910. (void)cli.Get("/");
  1911. }
  1912. });
  1913. }
  1914. std::this_thread::sleep_for(std::chrono::seconds(8));
  1915. stop.store(true, std::memory_order_relaxed);
  1916. for (auto &th : threads) {
  1917. th.join();
  1918. }
  1919. std::this_thread::sleep_for(std::chrono::seconds(3));
  1920. }
  1921. #endif // __linux__ && __GLIBC__ && CPPHTTPLIB_USE_NON_BLOCKING_GETADDRINFO
  1922. TEST(ConnectionErrorTest, InvalidHost) {
  1923. auto host = "-abcde.com";
  1924. #ifdef CPPHTTPLIB_SSL_ENABLED
  1925. auto port = 443;
  1926. SSLClient cli(host, port);
  1927. #else
  1928. auto port = 80;
  1929. Client cli(host, port);
  1930. #endif
  1931. cli.set_connection_timeout(std::chrono::seconds(2));
  1932. auto res = cli.Get("/");
  1933. ASSERT_TRUE(!res);
  1934. EXPECT_EQ(Error::Connection, res.error());
  1935. }
  1936. TEST(ConnectionErrorTest, InvalidHost2) {
  1937. auto host = "httpcan.org/";
  1938. #ifdef CPPHTTPLIB_SSL_ENABLED
  1939. SSLClient cli(host);
  1940. #else
  1941. Client cli(host);
  1942. #endif
  1943. cli.set_connection_timeout(std::chrono::seconds(2));
  1944. auto res = cli.Get("/");
  1945. ASSERT_TRUE(!res);
  1946. EXPECT_EQ(Error::Connection, res.error());
  1947. }
  1948. TEST(ConnectionErrorTest, InvalidHostCheckResultErrorToString) {
  1949. auto host = "httpcan.org/";
  1950. #ifdef CPPHTTPLIB_SSL_ENABLED
  1951. SSLClient cli(host);
  1952. #else
  1953. Client cli(host);
  1954. #endif
  1955. cli.set_connection_timeout(std::chrono::seconds(2));
  1956. auto res = cli.Get("/");
  1957. ASSERT_TRUE(!res);
  1958. stringstream s;
  1959. s << "error code: " << res.error();
  1960. EXPECT_EQ("error code: Could not establish connection (2)", s.str());
  1961. }
  1962. TEST(ConnectionErrorTest, InvalidPort) {
  1963. auto host = "localhost";
  1964. auto port = 44380;
  1965. #ifdef CPPHTTPLIB_SSL_ENABLED
  1966. SSLClient cli(host, port);
  1967. #else
  1968. Client cli(host, port);
  1969. #endif
  1970. cli.set_connection_timeout(std::chrono::seconds(2));
  1971. auto res = cli.Get("/");
  1972. ASSERT_TRUE(!res);
  1973. EXPECT_TRUE(Error::Connection == res.error() ||
  1974. Error::ConnectionTimeout == res.error());
  1975. }
  1976. TEST(ConnectionErrorTest, Timeout_Online) {
  1977. auto host = "google.com";
  1978. #ifdef CPPHTTPLIB_SSL_ENABLED
  1979. auto port = 44380;
  1980. SSLClient cli(host, port);
  1981. #else
  1982. auto port = 8080;
  1983. Client cli(host, port);
  1984. #endif
  1985. cli.set_connection_timeout(std::chrono::seconds(2));
  1986. // only probe one address type so that the error reason
  1987. // correlates to the timed-out IPv4, not the unsupported
  1988. // IPv6 connection attempt
  1989. cli.set_address_family(AF_INET);
  1990. auto res = cli.Get("/");
  1991. ASSERT_TRUE(!res);
  1992. EXPECT_EQ(Error::ConnectionTimeout, res.error());
  1993. }
  1994. TEST(CancelTest, NoCancel_Online) {
  1995. auto host = "httpbingo.org";
  1996. auto path = std::string{"/range/32"};
  1997. #ifdef CPPHTTPLIB_SSL_ENABLED
  1998. auto port = 443;
  1999. SSLClient cli(host, port);
  2000. #else
  2001. auto port = 80;
  2002. Client cli(host, port);
  2003. #endif
  2004. cli.set_connection_timeout(std::chrono::seconds(5));
  2005. auto res = cli.Get(path, [](uint64_t, uint64_t) { return true; });
  2006. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2007. EXPECT_EQ("abcdefghijklmnopqrstuvwxyzabcdef", res->body);
  2008. EXPECT_EQ(StatusCode::OK_200, res->status);
  2009. }
  2010. TEST(CancelTest, WithCancelSmallPayload_Online) {
  2011. // Use /bytes with a large payload so that the DownloadProgress callback
  2012. // (which only fires for Content-Length responses) is invoked before the
  2013. // entire body is received, giving cancellation a chance to fire.
  2014. auto host = "httpbingo.org";
  2015. auto path = std::string{"/bytes/524288"};
  2016. #ifdef CPPHTTPLIB_SSL_ENABLED
  2017. auto port = 443;
  2018. SSLClient cli(host, port);
  2019. #else
  2020. auto port = 80;
  2021. Client cli(host, port);
  2022. #endif
  2023. auto res = cli.Get(path, [](uint64_t, uint64_t) { return false; });
  2024. cli.set_connection_timeout(std::chrono::seconds(5));
  2025. ASSERT_TRUE(!res);
  2026. EXPECT_EQ(Error::Canceled, res.error());
  2027. }
  2028. TEST(CancelTest, WithCancelLargePayload_Online) {
  2029. auto host = "httpbingo.org";
  2030. auto path = std::string{"/bytes/524288"};
  2031. #ifdef CPPHTTPLIB_SSL_ENABLED
  2032. auto port = 443;
  2033. SSLClient cli(host, port);
  2034. #else
  2035. auto port = 80;
  2036. Client cli(host, port);
  2037. #endif
  2038. cli.set_connection_timeout(std::chrono::seconds(5));
  2039. uint32_t count = 0;
  2040. auto res =
  2041. cli.Get(path, [&count](uint64_t, uint64_t) { return (count++ == 0); });
  2042. ASSERT_TRUE(!res);
  2043. EXPECT_EQ(Error::Canceled, res.error());
  2044. }
  2045. TEST(CancelTest, NoCancelPost) {
  2046. Server svr;
  2047. svr.Post("/", [&](const Request & /*req*/, Response &res) {
  2048. res.set_content("Hello World!", "text/plain");
  2049. });
  2050. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2051. auto se = detail::scope_exit([&] {
  2052. svr.stop();
  2053. thread.join();
  2054. ASSERT_FALSE(svr.is_running());
  2055. });
  2056. svr.wait_until_ready();
  2057. Client cli(HOST, PORT);
  2058. cli.set_connection_timeout(std::chrono::seconds(5));
  2059. auto res =
  2060. cli.Post("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2061. "application/json", [](uint64_t, uint64_t) { return true; });
  2062. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2063. EXPECT_EQ("Hello World!", res->body);
  2064. EXPECT_EQ(StatusCode::OK_200, res->status);
  2065. }
  2066. TEST(CancelTest, WithCancelSmallPayloadPost) {
  2067. Server svr;
  2068. svr.Post("/", [&](const Request & /*req*/, Response &res) {
  2069. res.set_content("Hello World!", "text/plain");
  2070. });
  2071. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2072. auto se = detail::scope_exit([&] {
  2073. svr.stop();
  2074. thread.join();
  2075. ASSERT_FALSE(svr.is_running());
  2076. });
  2077. svr.wait_until_ready();
  2078. Client cli(HOST, PORT);
  2079. cli.set_connection_timeout(std::chrono::seconds(5));
  2080. auto res =
  2081. cli.Post("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2082. "application/json", [](uint64_t, uint64_t) { return false; });
  2083. ASSERT_TRUE(!res);
  2084. EXPECT_EQ(Error::Canceled, res.error());
  2085. }
  2086. TEST(CancelTest, WithCancelLargePayloadPost) {
  2087. Server svr;
  2088. svr.set_payload_max_length(200 * 1024 * 1024);
  2089. svr.Post("/", [&](const Request & /*req*/, Response &res) {
  2090. res.set_content(LARGE_DATA, "text/plain");
  2091. });
  2092. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2093. auto se = detail::scope_exit([&] {
  2094. svr.stop();
  2095. thread.join();
  2096. ASSERT_FALSE(svr.is_running());
  2097. });
  2098. svr.wait_until_ready();
  2099. Client cli(HOST, PORT);
  2100. cli.set_payload_max_length(200 * 1024 * 1024);
  2101. cli.set_connection_timeout(std::chrono::seconds(5));
  2102. auto res =
  2103. cli.Post("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2104. "application/json", [](uint64_t, uint64_t) { return false; });
  2105. ASSERT_TRUE(!res);
  2106. EXPECT_EQ(Error::Canceled, res.error());
  2107. }
  2108. TEST(CancelTest, NoCancelPut) {
  2109. Server svr;
  2110. svr.Put("/", [&](const Request & /*req*/, Response &res) {
  2111. res.set_content("Hello World!", "text/plain");
  2112. });
  2113. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2114. auto se = detail::scope_exit([&] {
  2115. svr.stop();
  2116. thread.join();
  2117. ASSERT_FALSE(svr.is_running());
  2118. });
  2119. svr.wait_until_ready();
  2120. Client cli(HOST, PORT);
  2121. cli.set_connection_timeout(std::chrono::seconds(5));
  2122. auto res =
  2123. cli.Put("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2124. "application/json", [](uint64_t, uint64_t) { return true; });
  2125. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2126. EXPECT_EQ("Hello World!", res->body);
  2127. EXPECT_EQ(StatusCode::OK_200, res->status);
  2128. }
  2129. TEST(CancelTest, WithCancelSmallPayloadPut) {
  2130. Server svr;
  2131. svr.Put("/", [&](const Request & /*req*/, Response &res) {
  2132. res.set_content("Hello World!", "text/plain");
  2133. });
  2134. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2135. auto se = detail::scope_exit([&] {
  2136. svr.stop();
  2137. thread.join();
  2138. ASSERT_FALSE(svr.is_running());
  2139. });
  2140. svr.wait_until_ready();
  2141. Client cli(HOST, PORT);
  2142. cli.set_connection_timeout(std::chrono::seconds(5));
  2143. auto res =
  2144. cli.Put("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2145. "application/json", [](uint64_t, uint64_t) { return false; });
  2146. ASSERT_TRUE(!res);
  2147. EXPECT_EQ(Error::Canceled, res.error());
  2148. }
  2149. TEST(CancelTest, WithCancelLargePayloadPut) {
  2150. Server svr;
  2151. svr.set_payload_max_length(200 * 1024 * 1024);
  2152. svr.Put("/", [&](const Request & /*req*/, Response &res) {
  2153. res.set_content(LARGE_DATA, "text/plain");
  2154. });
  2155. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2156. auto se = detail::scope_exit([&] {
  2157. svr.stop();
  2158. thread.join();
  2159. ASSERT_FALSE(svr.is_running());
  2160. });
  2161. svr.wait_until_ready();
  2162. Client cli(HOST, PORT);
  2163. cli.set_payload_max_length(200 * 1024 * 1024);
  2164. cli.set_connection_timeout(std::chrono::seconds(5));
  2165. auto res =
  2166. cli.Put("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2167. "application/json", [](uint64_t, uint64_t) { return false; });
  2168. ASSERT_TRUE(!res);
  2169. EXPECT_EQ(Error::Canceled, res.error());
  2170. }
  2171. TEST(CancelTest, NoCancelPatch) {
  2172. Server svr;
  2173. svr.Patch("/", [&](const Request & /*req*/, Response &res) {
  2174. res.set_content("Hello World!", "text/plain");
  2175. });
  2176. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2177. auto se = detail::scope_exit([&] {
  2178. svr.stop();
  2179. thread.join();
  2180. ASSERT_FALSE(svr.is_running());
  2181. });
  2182. svr.wait_until_ready();
  2183. Client cli(HOST, PORT);
  2184. cli.set_connection_timeout(std::chrono::seconds(5));
  2185. auto res =
  2186. cli.Patch("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2187. "application/json", [](uint64_t, uint64_t) { return true; });
  2188. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2189. EXPECT_EQ("Hello World!", res->body);
  2190. EXPECT_EQ(StatusCode::OK_200, res->status);
  2191. }
  2192. TEST(CancelTest, WithCancelSmallPayloadPatch) {
  2193. Server svr;
  2194. svr.Patch("/", [&](const Request & /*req*/, Response &res) {
  2195. res.set_content("Hello World!", "text/plain");
  2196. });
  2197. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2198. auto se = detail::scope_exit([&] {
  2199. svr.stop();
  2200. thread.join();
  2201. ASSERT_FALSE(svr.is_running());
  2202. });
  2203. svr.wait_until_ready();
  2204. Client cli(HOST, PORT);
  2205. cli.set_connection_timeout(std::chrono::seconds(5));
  2206. auto res =
  2207. cli.Patch("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2208. "application/json", [](uint64_t, uint64_t) { return false; });
  2209. ASSERT_TRUE(!res);
  2210. EXPECT_EQ(Error::Canceled, res.error());
  2211. }
  2212. TEST(CancelTest, WithCancelLargePayloadPatch) {
  2213. Server svr;
  2214. svr.set_payload_max_length(200 * 1024 * 1024);
  2215. svr.Patch("/", [&](const Request & /*req*/, Response &res) {
  2216. res.set_content(LARGE_DATA, "text/plain");
  2217. });
  2218. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2219. auto se = detail::scope_exit([&] {
  2220. svr.stop();
  2221. thread.join();
  2222. ASSERT_FALSE(svr.is_running());
  2223. });
  2224. svr.wait_until_ready();
  2225. Client cli(HOST, PORT);
  2226. cli.set_payload_max_length(200 * 1024 * 1024);
  2227. cli.set_connection_timeout(std::chrono::seconds(5));
  2228. auto res =
  2229. cli.Patch("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2230. "application/json", [](uint64_t, uint64_t) { return false; });
  2231. ASSERT_TRUE(!res);
  2232. EXPECT_EQ(Error::Canceled, res.error());
  2233. }
  2234. TEST(CancelTest, NoCancelDelete) {
  2235. Server svr;
  2236. svr.Delete("/", [&](const Request & /*req*/, Response &res) {
  2237. res.set_content("Hello World!", "text/plain");
  2238. });
  2239. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2240. auto se = detail::scope_exit([&] {
  2241. svr.stop();
  2242. thread.join();
  2243. ASSERT_FALSE(svr.is_running());
  2244. });
  2245. svr.wait_until_ready();
  2246. Client cli(HOST, PORT);
  2247. cli.set_connection_timeout(std::chrono::seconds(5));
  2248. auto res =
  2249. cli.Delete("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2250. "application/json", [](uint64_t, uint64_t) { return true; });
  2251. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2252. EXPECT_EQ("Hello World!", res->body);
  2253. EXPECT_EQ(StatusCode::OK_200, res->status);
  2254. }
  2255. TEST(CancelTest, WithCancelSmallPayloadDelete) {
  2256. Server svr;
  2257. svr.Delete("/", [&](const Request & /*req*/, Response &res) {
  2258. res.set_content("Hello World!", "text/plain");
  2259. });
  2260. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2261. auto se = detail::scope_exit([&] {
  2262. svr.stop();
  2263. thread.join();
  2264. ASSERT_FALSE(svr.is_running());
  2265. });
  2266. svr.wait_until_ready();
  2267. Client cli(HOST, PORT);
  2268. cli.set_connection_timeout(std::chrono::seconds(5));
  2269. auto res =
  2270. cli.Delete("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2271. "application/json", [](uint64_t, uint64_t) { return false; });
  2272. ASSERT_TRUE(!res);
  2273. EXPECT_EQ(Error::Canceled, res.error());
  2274. }
  2275. TEST(CancelTest, WithCancelLargePayloadDelete) {
  2276. Server svr;
  2277. svr.set_payload_max_length(200 * 1024 * 1024);
  2278. svr.Delete("/", [&](const Request & /*req*/, Response &res) {
  2279. res.set_content(LARGE_DATA, "text/plain");
  2280. });
  2281. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2282. auto se = detail::scope_exit([&] {
  2283. svr.stop();
  2284. thread.join();
  2285. ASSERT_FALSE(svr.is_running());
  2286. });
  2287. svr.wait_until_ready();
  2288. Client cli(HOST, PORT);
  2289. cli.set_payload_max_length(200 * 1024 * 1024);
  2290. cli.set_connection_timeout(std::chrono::seconds(5));
  2291. auto res =
  2292. cli.Delete("/", Headers(), JSON_DATA.data(), JSON_DATA.size(),
  2293. "application/json", [](uint64_t, uint64_t) { return false; });
  2294. ASSERT_TRUE(!res);
  2295. EXPECT_EQ(Error::Canceled, res.error());
  2296. }
  2297. static std::string remove_whitespace(const std::string &input) {
  2298. std::string output;
  2299. output.reserve(input.size());
  2300. std::copy_if(input.begin(), input.end(), std::back_inserter(output),
  2301. [](unsigned char c) { return !std::isspace(c); });
  2302. return output;
  2303. }
  2304. TEST(BaseAuthTest, FromHTTPWatch_Online) {
  2305. auto host = "httpbingo.org";
  2306. auto path = std::string{"/basic-auth/hello/world"};
  2307. #ifdef CPPHTTPLIB_SSL_ENABLED
  2308. auto port = 443;
  2309. SSLClient cli(host, port);
  2310. #else
  2311. auto port = 80;
  2312. Client cli(host, port);
  2313. #endif
  2314. {
  2315. auto res = cli.Get(path);
  2316. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2317. EXPECT_EQ(StatusCode::Unauthorized_401, res->status);
  2318. }
  2319. {
  2320. auto res = cli.Get(
  2321. path, Headers{make_basic_authentication_header("hello", "world")});
  2322. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2323. auto body = remove_whitespace(res->body);
  2324. EXPECT_TRUE(body.find("\"authenticated\":true") != std::string::npos);
  2325. EXPECT_TRUE(body.find("\"user\":\"hello\"") != std::string::npos);
  2326. EXPECT_EQ(StatusCode::OK_200, res->status);
  2327. }
  2328. {
  2329. cli.set_basic_auth("hello", "world");
  2330. auto res = cli.Get(path);
  2331. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2332. auto body = remove_whitespace(res->body);
  2333. EXPECT_TRUE(body.find("\"authenticated\":true") != std::string::npos);
  2334. EXPECT_TRUE(body.find("\"user\":\"hello\"") != std::string::npos);
  2335. EXPECT_EQ(StatusCode::OK_200, res->status);
  2336. }
  2337. {
  2338. cli.set_basic_auth("hello", "bad");
  2339. auto res = cli.Get(path);
  2340. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2341. EXPECT_EQ(StatusCode::Unauthorized_401, res->status);
  2342. }
  2343. {
  2344. cli.set_basic_auth("bad", "world");
  2345. auto res = cli.Get(path);
  2346. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2347. EXPECT_EQ(StatusCode::Unauthorized_401, res->status);
  2348. }
  2349. }
  2350. #ifdef CPPHTTPLIB_SSL_ENABLED
  2351. TEST(DigestAuthTest, FromHTTPWatch_Online) {
  2352. auto host = "httpbingo.org";
  2353. auto unauth_path = std::string{"/digest-auth/auth/hello/world"};
  2354. auto paths = std::vector<std::string>{
  2355. "/digest-auth/auth/hello/world/MD5",
  2356. "/digest-auth/auth/hello/world/SHA-256",
  2357. };
  2358. auto port = 443;
  2359. SSLClient cli(host, port);
  2360. {
  2361. auto res = cli.Get(unauth_path);
  2362. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2363. EXPECT_EQ(StatusCode::Unauthorized_401, res->status);
  2364. }
  2365. {
  2366. cli.set_digest_auth("hello", "world");
  2367. for (const auto &path : paths) {
  2368. auto res = cli.Get(path.c_str());
  2369. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2370. auto body = remove_whitespace(res->body);
  2371. EXPECT_TRUE(body.find("\"authenticated\":true") != std::string::npos);
  2372. EXPECT_TRUE(body.find("\"user\":\"hello\"") != std::string::npos);
  2373. EXPECT_EQ(StatusCode::OK_200, res->status);
  2374. }
  2375. cli.set_digest_auth("hello", "bad");
  2376. for (const auto &path : paths) {
  2377. auto res = cli.Get(path.c_str());
  2378. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2379. EXPECT_EQ(StatusCode::Unauthorized_401, res->status);
  2380. }
  2381. }
  2382. }
  2383. #endif
  2384. TEST(SpecifyServerIPAddressTest, AnotherHostname_Online) {
  2385. auto host = "google.com";
  2386. auto another_host = "example.com";
  2387. auto wrong_ip = "0.0.0.0";
  2388. #ifdef CPPHTTPLIB_SSL_ENABLED
  2389. SSLClient cli(host);
  2390. #else
  2391. Client cli(host);
  2392. #endif
  2393. cli.set_hostname_addr_map({{another_host, wrong_ip}});
  2394. auto res = cli.Get("/");
  2395. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2396. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  2397. }
  2398. TEST(SpecifyServerIPAddressTest, RealHostname_Online) {
  2399. auto host = "google.com";
  2400. auto wrong_ip = "0.0.0.0";
  2401. #ifdef CPPHTTPLIB_SSL_ENABLED
  2402. SSLClient cli(host);
  2403. #else
  2404. Client cli(host);
  2405. #endif
  2406. cli.set_hostname_addr_map({{host, wrong_ip}});
  2407. auto res = cli.Get("/");
  2408. ASSERT_TRUE(!res);
  2409. EXPECT_EQ(Error::Connection, res.error());
  2410. }
  2411. TEST(SpecifyServerIPAddressTest, HostnameAsAddrMapValue) {
  2412. // A mapped value that is not an IP literal must be resolved. "localhost"
  2413. // resolves from the hosts file, so this test needs no external DNS.
  2414. // "target.invalid" (RFC 6761) is only a map key and the Host header value.
  2415. auto host = "target.invalid";
  2416. Server svr;
  2417. std::string received_host;
  2418. svr.Get("/hi", [&](const Request &req, Response &res) {
  2419. received_host = req.get_header_value("Host");
  2420. res.set_content("Hello World!", "text/plain");
  2421. });
  2422. auto port = svr.bind_to_any_port(HOST);
  2423. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  2424. auto se = detail::scope_exit([&] {
  2425. svr.stop();
  2426. thread.join();
  2427. ASSERT_FALSE(svr.is_running());
  2428. });
  2429. svr.wait_until_ready();
  2430. Client cli(host, port);
  2431. cli.set_hostname_addr_map({{host, HOST}});
  2432. auto res = cli.Get("/hi");
  2433. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2434. EXPECT_EQ(StatusCode::OK_200, res->status);
  2435. // The mapping only redirects the connection; the identity stays host_.
  2436. EXPECT_EQ(std::string(host) + ":" + std::to_string(port), received_host);
  2437. }
  2438. TEST(SpecifyServerIPAddressTest, IPAddressAsAddrMapValue) {
  2439. // A mapped value that is an IP literal keeps the AI_NUMERICHOST path.
  2440. auto host = "target.invalid";
  2441. Server svr;
  2442. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  2443. res.set_content("Hello World!", "text/plain");
  2444. });
  2445. auto port = svr.bind_to_any_port("127.0.0.1");
  2446. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  2447. auto se = detail::scope_exit([&] {
  2448. svr.stop();
  2449. thread.join();
  2450. ASSERT_FALSE(svr.is_running());
  2451. });
  2452. svr.wait_until_ready();
  2453. Client cli(host, port);
  2454. cli.set_hostname_addr_map({{host, "127.0.0.1"}});
  2455. auto res = cli.Get("/hi");
  2456. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2457. EXPECT_EQ(StatusCode::OK_200, res->status);
  2458. }
  2459. TEST(SpecifyServerIPAddressTest, EmptyAddrMapValueIsIgnored) {
  2460. // An empty mapped value must leave host_ as the connection target. Without
  2461. // that guard the empty value would become the host argument, getaddrinfo
  2462. // would be called with a null node, and (no AI_PASSIVE) it would resolve to
  2463. // loopback - silently connecting somewhere the caller never asked for.
  2464. // The server listens on loopback, so such a fallback would succeed and is
  2465. // therefore observable as a failure of this test.
  2466. auto blackhole = "192.0.2.1"; // TEST-NET-1, never routable
  2467. Server svr;
  2468. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  2469. res.set_content("Hello World!", "text/plain");
  2470. });
  2471. auto port = svr.bind_to_any_port(HOST);
  2472. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  2473. auto se = detail::scope_exit([&] {
  2474. svr.stop();
  2475. thread.join();
  2476. ASSERT_FALSE(svr.is_running());
  2477. });
  2478. svr.wait_until_ready();
  2479. Client cli(blackhole, port);
  2480. cli.set_hostname_addr_map({{blackhole, ""}});
  2481. cli.set_connection_timeout(1);
  2482. auto res = cli.Get("/hi");
  2483. EXPECT_FALSE(res) << "empty mapping must not redirect to loopback";
  2484. }
  2485. TEST(AbsoluteRedirectTest, Redirect_Online) {
  2486. auto host = "httpbingo.org";
  2487. auto path = std::string{"/absolute-redirect/3"};
  2488. #ifdef CPPHTTPLIB_SSL_ENABLED
  2489. SSLClient cli(host);
  2490. #else
  2491. Client cli(host);
  2492. #endif
  2493. cli.set_follow_location(true);
  2494. auto res = cli.Get(path);
  2495. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2496. EXPECT_EQ(StatusCode::OK_200, res->status);
  2497. }
  2498. TEST(RedirectTest, Redirect_Online) {
  2499. auto host = "httpbingo.org";
  2500. auto path = std::string{"/redirect/3"};
  2501. #ifdef CPPHTTPLIB_SSL_ENABLED
  2502. SSLClient cli(host);
  2503. #else
  2504. Client cli(host);
  2505. #endif
  2506. cli.set_follow_location(true);
  2507. auto res = cli.Get(path);
  2508. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2509. EXPECT_EQ(StatusCode::OK_200, res->status);
  2510. }
  2511. TEST(RelativeRedirectTest, Redirect_Online) {
  2512. auto host = "httpbingo.org";
  2513. auto path = std::string{"/relative-redirect/3"};
  2514. #ifdef CPPHTTPLIB_SSL_ENABLED
  2515. SSLClient cli(host);
  2516. #else
  2517. Client cli(host);
  2518. #endif
  2519. cli.set_follow_location(true);
  2520. auto res = cli.Get(path);
  2521. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2522. EXPECT_EQ(StatusCode::OK_200, res->status);
  2523. }
  2524. TEST(TooManyRedirectTest, Redirect_Online) {
  2525. auto host = "httpbingo.org";
  2526. auto path = std::string{"/redirect/21"};
  2527. #ifdef CPPHTTPLIB_SSL_ENABLED
  2528. SSLClient cli(host);
  2529. #else
  2530. Client cli(host);
  2531. #endif
  2532. cli.set_follow_location(true);
  2533. auto res = cli.Get(path);
  2534. ASSERT_TRUE(!res);
  2535. EXPECT_EQ(Error::ExceedRedirectCount, res.error());
  2536. }
  2537. #ifdef CPPHTTPLIB_SSL_ENABLED
  2538. TEST(YahooRedirectTest, Redirect_Online) {
  2539. Client cli("yahoo.com");
  2540. auto res = cli.Get("/");
  2541. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2542. EXPECT_EQ(StatusCode::MovedPermanently_301, res->status);
  2543. cli.set_follow_location(true);
  2544. res = cli.Get("/");
  2545. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2546. EXPECT_EQ(StatusCode::OK_200, res->status);
  2547. EXPECT_EQ("https://www.yahoo.com/", res->location);
  2548. }
  2549. // Previously "nghttp2.org" "/httpbin/redirect-to"
  2550. #define REDIR_HOST "httpbingo.org"
  2551. #define REDIR_PATH "/redirect-to"
  2552. TEST(HttpsToHttpRedirectTest, Redirect_Online) {
  2553. SSLClient cli(REDIR_HOST);
  2554. cli.set_follow_location(true);
  2555. auto res =
  2556. cli.Get(REDIR_PATH "?url=http%3A%2F%2Fexample.com&status_code=302");
  2557. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2558. EXPECT_EQ(StatusCode::OK_200, res->status);
  2559. }
  2560. TEST(HttpsToHttpRedirectTest2, Redirect_Online) {
  2561. SSLClient cli(REDIR_HOST);
  2562. cli.set_follow_location(true);
  2563. Params params;
  2564. params.emplace("url", "http://example.com");
  2565. params.emplace("status_code", "302");
  2566. auto res = cli.Get(REDIR_PATH, params, Headers{});
  2567. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2568. EXPECT_EQ(StatusCode::OK_200, res->status);
  2569. }
  2570. TEST(HttpsToHttpRedirectTest3, Redirect_Online) {
  2571. SSLClient cli(REDIR_HOST);
  2572. cli.set_follow_location(true);
  2573. Params params;
  2574. params.emplace("url", "http://example.com");
  2575. auto res = cli.Get(REDIR_PATH "?status_code=302", params, Headers{});
  2576. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2577. EXPECT_EQ(StatusCode::OK_200, res->status);
  2578. }
  2579. TEST(UrlWithSpace, Redirect_Online) {
  2580. SSLClient cli("edge.forgecdn.net");
  2581. cli.set_follow_location(true);
  2582. auto res = cli.Get("/files/2595/310/Neat 1.4-17.jar");
  2583. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2584. EXPECT_EQ(StatusCode::OK_200, res->status);
  2585. EXPECT_EQ(18527U, res->get_header_value_u64("Content-Length"));
  2586. }
  2587. #endif
  2588. #if !defined(_WIN32) && !defined(_WIN64)
  2589. TEST(ReceiveSignals, Signal) {
  2590. auto setupSignalHandlers = []() {
  2591. struct sigaction act;
  2592. sigemptyset(&act.sa_mask);
  2593. act.sa_flags = SA_SIGINFO;
  2594. act.sa_sigaction = [](int sig, siginfo_t *, void *) {
  2595. switch (sig) {
  2596. case SIGINT:
  2597. default: break;
  2598. }
  2599. };
  2600. ::sigaction(SIGINT, &act, nullptr);
  2601. };
  2602. Server svr;
  2603. int port = 0;
  2604. auto thread = std::thread([&]() {
  2605. setupSignalHandlers();
  2606. port = svr.bind_to_any_port(HOST);
  2607. svr.listen_after_bind();
  2608. });
  2609. auto se = detail::scope_exit([&] {
  2610. svr.stop();
  2611. thread.join();
  2612. ASSERT_FALSE(svr.is_running());
  2613. });
  2614. svr.wait_until_ready();
  2615. ASSERT_TRUE(svr.is_running());
  2616. pthread_kill(thread.native_handle(), SIGINT);
  2617. std::this_thread::sleep_for(std::chrono::milliseconds(100));
  2618. ASSERT_TRUE(svr.is_running());
  2619. }
  2620. #endif
  2621. TEST(RedirectToDifferentPort, Redirect) {
  2622. Server svr1;
  2623. svr1.Get("/1", [&](const Request & /*req*/, Response &res) {
  2624. res.set_content("Hello World!", "text/plain");
  2625. });
  2626. int svr1_port = 0;
  2627. auto thread1 = std::thread([&]() {
  2628. svr1_port = svr1.bind_to_any_port(HOST);
  2629. svr1.listen_after_bind();
  2630. });
  2631. Server svr2;
  2632. svr2.Get("/2", [&](const Request & /*req*/, Response &res) {
  2633. res.set_redirect("http://localhost:" + std::to_string(svr1_port) + "/1");
  2634. });
  2635. int svr2_port = 0;
  2636. auto thread2 = std::thread([&]() {
  2637. svr2_port = svr2.bind_to_any_port(HOST);
  2638. svr2.listen_after_bind();
  2639. });
  2640. auto se = detail::scope_exit([&] {
  2641. svr2.stop();
  2642. thread2.join();
  2643. svr1.stop();
  2644. thread1.join();
  2645. ASSERT_FALSE(svr2.is_running());
  2646. ASSERT_FALSE(svr1.is_running());
  2647. });
  2648. svr1.wait_until_ready();
  2649. svr2.wait_until_ready();
  2650. Client cli("localhost", svr2_port);
  2651. cli.set_follow_location(true);
  2652. auto res = cli.Get("/2");
  2653. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2654. EXPECT_EQ(StatusCode::OK_200, res->status);
  2655. EXPECT_EQ("Hello World!", res->body);
  2656. }
  2657. static void
  2658. TestDoNotForwardCredentialsOnRedirect(std::function<void(Client &)> set_auth) {
  2659. Server svr1;
  2660. std::string captured_authorization;
  2661. svr1.Get("/target", [&](const Request &req, Response &res) {
  2662. captured_authorization = req.get_header_value("Authorization");
  2663. res.set_content("OK", "text/plain");
  2664. });
  2665. int svr1_port = 0;
  2666. auto thread1 = std::thread([&]() {
  2667. svr1_port = svr1.bind_to_any_port(HOST);
  2668. svr1.listen_after_bind();
  2669. });
  2670. Server svr2;
  2671. svr2.Get("/redir", [&](const Request & /*req*/, Response &res) {
  2672. res.set_redirect(
  2673. "http://localhost:" + std::to_string(svr1_port) + "/target", 302);
  2674. });
  2675. int svr2_port = 0;
  2676. auto thread2 = std::thread([&]() {
  2677. svr2_port = svr2.bind_to_any_port(HOST);
  2678. svr2.listen_after_bind();
  2679. });
  2680. auto se = detail::scope_exit([&] {
  2681. svr2.stop();
  2682. thread2.join();
  2683. svr1.stop();
  2684. thread1.join();
  2685. ASSERT_FALSE(svr2.is_running());
  2686. ASSERT_FALSE(svr1.is_running());
  2687. });
  2688. svr1.wait_until_ready();
  2689. svr2.wait_until_ready();
  2690. Client cli("localhost", svr2_port);
  2691. cli.set_follow_location(true);
  2692. set_auth(cli);
  2693. auto res = cli.Get("/redir");
  2694. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2695. EXPECT_EQ(StatusCode::OK_200, res->status);
  2696. // RFC 9110: credentials MUST NOT be forwarded to a different host
  2697. EXPECT_TRUE(captured_authorization.empty());
  2698. }
  2699. TEST(RedirectToDifferentPort, DoNotForwardCredentialsBasicAuth) {
  2700. TestDoNotForwardCredentialsOnRedirect(
  2701. [](Client &cli) { cli.set_basic_auth("admin", "secret"); });
  2702. }
  2703. TEST(RedirectToDifferentPort, DoNotForwardCredentialsBearerToken) {
  2704. TestDoNotForwardCredentialsOnRedirect(
  2705. [](Client &cli) { cli.set_bearer_token_auth("my-secret-token"); });
  2706. }
  2707. TEST(RedirectToDifferentPort, DoNotForwardCookie) {
  2708. Server svr1;
  2709. std::string captured_cookie;
  2710. bool target_hit = false;
  2711. svr1.Get("/target", [&](const Request &req, Response &res) {
  2712. captured_cookie = req.get_header_value("Cookie");
  2713. target_hit = true;
  2714. res.set_content("OK", "text/plain");
  2715. });
  2716. int svr1_port = 0;
  2717. auto thread1 = std::thread([&]() {
  2718. svr1_port = svr1.bind_to_any_port(HOST);
  2719. svr1.listen_after_bind();
  2720. });
  2721. Server svr2;
  2722. svr2.Get("/redir", [&](const Request & /*req*/, Response &res) {
  2723. res.set_redirect(
  2724. "http://localhost:" + std::to_string(svr1_port) + "/target", 302);
  2725. });
  2726. int svr2_port = 0;
  2727. auto thread2 = std::thread([&]() {
  2728. svr2_port = svr2.bind_to_any_port(HOST);
  2729. svr2.listen_after_bind();
  2730. });
  2731. auto se = detail::scope_exit([&] {
  2732. svr2.stop();
  2733. thread2.join();
  2734. svr1.stop();
  2735. thread1.join();
  2736. ASSERT_FALSE(svr2.is_running());
  2737. ASSERT_FALSE(svr1.is_running());
  2738. });
  2739. svr1.wait_until_ready();
  2740. svr2.wait_until_ready();
  2741. Client cli("localhost", svr2_port);
  2742. cli.set_follow_location(true);
  2743. Headers headers = {{"Cookie", "session_id=SECRET; auth=PRIVATE"}};
  2744. auto res = cli.Get("/redir", headers);
  2745. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2746. EXPECT_EQ(StatusCode::OK_200, res->status);
  2747. EXPECT_TRUE(target_hit);
  2748. // Cookie MUST NOT be forwarded to a different host (GHSA-22mf-w2v3-r2jv)
  2749. EXPECT_TRUE(captured_cookie.empty());
  2750. }
  2751. TEST(RedirectToSamePort, ForwardCookie) {
  2752. // A same-origin redirect (same scheme/host/port) should preserve the Cookie
  2753. // header so that ordinary session flows keep working.
  2754. Server svr;
  2755. std::string captured_cookie;
  2756. svr.Get("/redir", [&](const Request & /*req*/, Response &res) {
  2757. res.set_redirect("/target", 302);
  2758. });
  2759. svr.Get("/target", [&](const Request &req, Response &res) {
  2760. captured_cookie = req.get_header_value("Cookie");
  2761. res.set_content("OK", "text/plain");
  2762. });
  2763. auto port = svr.bind_to_any_port(HOST);
  2764. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  2765. auto se = detail::scope_exit([&] {
  2766. svr.stop();
  2767. thread.join();
  2768. ASSERT_FALSE(svr.is_running());
  2769. });
  2770. svr.wait_until_ready();
  2771. Client cli(HOST, port);
  2772. cli.set_follow_location(true);
  2773. Headers headers = {{"Cookie", "session_id=SECRET"}};
  2774. auto res = cli.Get("/redir", headers);
  2775. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2776. EXPECT_EQ(StatusCode::OK_200, res->status);
  2777. EXPECT_EQ("session_id=SECRET", captured_cookie);
  2778. }
  2779. TEST(RedirectToDifferentPort, OverflowPortNumber) {
  2780. Server svr;
  2781. svr.Get("/redir", [&](const Request & /*req*/, Response &res) {
  2782. // Port number that overflows int — should not crash
  2783. res.set_redirect("http://localhost:99999999999999999999/target");
  2784. });
  2785. auto port = svr.bind_to_any_port(HOST);
  2786. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  2787. auto se = detail::scope_exit([&] {
  2788. svr.stop();
  2789. thread.join();
  2790. ASSERT_FALSE(svr.is_running());
  2791. });
  2792. svr.wait_until_ready();
  2793. Client cli(HOST, port);
  2794. cli.set_follow_location(true);
  2795. auto res = cli.Get("/redir");
  2796. // Should fail gracefully, not crash (no valid response due to bad port)
  2797. EXPECT_FALSE(res);
  2798. }
  2799. TEST(RedirectFromPageWithContent, Redirect) {
  2800. Server svr;
  2801. svr.Get("/1", [&](const Request & /*req*/, Response &res) {
  2802. res.set_content("___", "text/plain");
  2803. res.set_redirect("/2");
  2804. });
  2805. svr.Get("/2", [&](const Request & /*req*/, Response &res) {
  2806. res.set_content("Hello World!", "text/plain");
  2807. });
  2808. auto th = std::thread([&]() { svr.listen("localhost", PORT); });
  2809. auto se = detail::scope_exit([&] {
  2810. svr.stop();
  2811. th.join();
  2812. ASSERT_FALSE(svr.is_running());
  2813. });
  2814. svr.wait_until_ready();
  2815. {
  2816. Client cli("localhost", PORT);
  2817. cli.set_follow_location(true);
  2818. std::string body;
  2819. auto res = cli.Get("/1", [&](const char *data, size_t data_length) {
  2820. body.append(data, data_length);
  2821. return true;
  2822. });
  2823. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2824. EXPECT_EQ(StatusCode::OK_200, res->status);
  2825. EXPECT_EQ("Hello World!", body);
  2826. }
  2827. {
  2828. Client cli("localhost", PORT);
  2829. std::string body;
  2830. auto res = cli.Get("/1", [&](const char *data, size_t data_length) {
  2831. body.append(data, data_length);
  2832. return true;
  2833. });
  2834. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2835. EXPECT_EQ(StatusCode::Found_302, res->status);
  2836. EXPECT_EQ("___", body);
  2837. }
  2838. }
  2839. TEST(RedirectFromPageWithContentIP6, Redirect) {
  2840. Server svr;
  2841. auto port_str = std::to_string(PORT);
  2842. auto redirect_url = "http://[::1]:" + port_str + "/2";
  2843. auto expected_host = "[::1]:" + port_str;
  2844. svr.Get("/1", [&](const Request & /*req*/, Response &res) {
  2845. res.set_content("___", "text/plain");
  2846. // res.set_redirect("/2");
  2847. res.set_redirect(redirect_url);
  2848. });
  2849. svr.Get("/2", [&](const Request &req, Response &res) {
  2850. auto host_header = req.headers.find("Host");
  2851. ASSERT_TRUE(host_header != req.headers.end());
  2852. EXPECT_EQ(expected_host, host_header->second);
  2853. res.set_content("Hello World!", "text/plain");
  2854. });
  2855. auto th = std::thread([&]() { svr.listen("::1", PORT); });
  2856. auto se = detail::scope_exit([&] {
  2857. svr.stop();
  2858. th.join();
  2859. ASSERT_FALSE(svr.is_running());
  2860. });
  2861. // When IPV6 support isn't available svr.listen("::1", PORT) never
  2862. // actually starts anything, so the condition !svr.is_running() will
  2863. // always remain true, and the loop never stops.
  2864. // This basically counts how many milliseconds have passed since the
  2865. // call to svr.listen(), and if after 5 seconds nothing started yet
  2866. // aborts the test.
  2867. for (unsigned int milliseconds = 0; !svr.is_running(); milliseconds++) {
  2868. std::this_thread::sleep_for(std::chrono::milliseconds(1));
  2869. ASSERT_LT(milliseconds, 5000U);
  2870. }
  2871. {
  2872. Client cli("::1", PORT);
  2873. cli.set_follow_location(true);
  2874. std::string body;
  2875. auto res = cli.Get("/1", [&](const char *data, size_t data_length) {
  2876. body.append(data, data_length);
  2877. return true;
  2878. });
  2879. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2880. EXPECT_EQ(StatusCode::OK_200, res->status);
  2881. EXPECT_EQ("Hello World!", body);
  2882. }
  2883. {
  2884. Client cli("::1", PORT);
  2885. std::string body;
  2886. auto res = cli.Get("/1", [&](const char *data, size_t data_length) {
  2887. body.append(data, data_length);
  2888. return true;
  2889. });
  2890. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2891. EXPECT_EQ(StatusCode::Found_302, res->status);
  2892. EXPECT_EQ("___", body);
  2893. }
  2894. }
  2895. TEST(PathUrlEncodeTest, PathUrlEncode) {
  2896. Server svr;
  2897. svr.Get("/foo", [](const Request &req, Response &res) {
  2898. auto a = req.params.find("a");
  2899. if (a != req.params.end()) {
  2900. res.set_content((*a).second, "text/plain");
  2901. res.status = StatusCode::OK_200;
  2902. } else {
  2903. res.status = StatusCode::BadRequest_400;
  2904. }
  2905. });
  2906. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2907. auto se = detail::scope_exit([&] {
  2908. svr.stop();
  2909. thread.join();
  2910. ASSERT_FALSE(svr.is_running());
  2911. });
  2912. svr.wait_until_ready();
  2913. {
  2914. Client cli(HOST, PORT);
  2915. cli.set_path_encode(false);
  2916. auto res = cli.Get("/foo?a=explicitly+encoded");
  2917. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2918. EXPECT_EQ(StatusCode::OK_200, res->status);
  2919. // This expects it back with a space, as the `+` won't have been
  2920. // url-encoded, and server-side the params get decoded turning `+`
  2921. // into spaces.
  2922. EXPECT_EQ("explicitly encoded", res->body);
  2923. }
  2924. }
  2925. TEST(PathUrlEncodeTest, PreEncodedQueryNotReencoded) {
  2926. // When path encoding is disabled the client must transmit the supplied
  2927. // query verbatim. Decoding-then-re-encoding it (the previous behavior)
  2928. // corrupts pre-encoded binary payloads: e.g. `%20` would be turned into
  2929. // `+`, which a strict RFC 3986 server decodes back as `+` (0x2B) rather
  2930. // than a space (0x20). Assert on the raw wire target to catch this.
  2931. Server svr;
  2932. const std::string expected_target = "/foo?q=a%20b%2Cc%24d%3Bx&a=%00%FF";
  2933. svr.Get("/foo", [&](const Request &req, Response &res) {
  2934. EXPECT_EQ(expected_target, req.target);
  2935. res.status = StatusCode::OK_200;
  2936. });
  2937. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  2938. auto se = detail::scope_exit([&] {
  2939. svr.stop();
  2940. thread.join();
  2941. ASSERT_FALSE(svr.is_running());
  2942. });
  2943. svr.wait_until_ready();
  2944. {
  2945. Client cli(HOST, PORT);
  2946. cli.set_path_encode(false);
  2947. auto res = cli.Get(expected_target.c_str());
  2948. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2949. EXPECT_EQ(StatusCode::OK_200, res->status);
  2950. }
  2951. }
  2952. TEST(PathUrlEncodeTest, StreamingMatchesBufferedTarget) {
  2953. // `open_stream()` used to skip the path encoding that the buffered send
  2954. // path applies, so the same `path` produced different bytes in the request
  2955. // line depending on which API was used. Assert the two agree.
  2956. Server svr;
  2957. std::string target;
  2958. svr.Get(".*", [&](const Request &req, Response &res) {
  2959. target = req.target;
  2960. res.status = StatusCode::OK_200;
  2961. });
  2962. auto port = svr.bind_to_any_port(HOST);
  2963. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  2964. auto se = detail::scope_exit([&] {
  2965. svr.stop();
  2966. thread.join();
  2967. ASSERT_FALSE(svr.is_running());
  2968. });
  2969. svr.wait_until_ready();
  2970. struct {
  2971. const char *path;
  2972. const char *expected;
  2973. } cases[] = {
  2974. {"/a b?x=1", "/a%20b?x=1"},
  2975. {"/\xE6\x97\xA5\xE6\x9C\xAC", "/%E6%97%A5%E6%9C%AC"},
  2976. {"/a,b;c+d", "/a%2Cb%3Bc%2Bd"},
  2977. };
  2978. for (const auto &c : cases) {
  2979. Client cli(HOST, port);
  2980. target.clear();
  2981. auto res = cli.Get(c.path);
  2982. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  2983. EXPECT_EQ(c.expected, target) << "buffered path: " << c.path;
  2984. auto buffered_target = target;
  2985. target.clear();
  2986. auto handle = cli.open_stream("GET", c.path);
  2987. EXPECT_TRUE(handle.is_valid())
  2988. << "streaming path: " << c.path << ", " << to_string(handle.error);
  2989. EXPECT_EQ(buffered_target, target) << "streaming path: " << c.path;
  2990. }
  2991. }
  2992. TEST(PathUrlEncodeTest, StreamingPreEncodedQueryNotReencoded) {
  2993. // The `set_path_encode(false)` contract — transmit the supplied target
  2994. // verbatim — must hold for the streaming API too.
  2995. Server svr;
  2996. const std::string expected_target = "/foo?q=a%20b%2Cc%24d%3Bx&a=%00%FF";
  2997. std::string target;
  2998. svr.Get("/foo", [&](const Request &req, Response &res) {
  2999. target = req.target;
  3000. res.status = StatusCode::OK_200;
  3001. });
  3002. auto port = svr.bind_to_any_port(HOST);
  3003. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  3004. auto se = detail::scope_exit([&] {
  3005. svr.stop();
  3006. thread.join();
  3007. ASSERT_FALSE(svr.is_running());
  3008. });
  3009. svr.wait_until_ready();
  3010. {
  3011. Client cli(HOST, port);
  3012. cli.set_path_encode(false);
  3013. auto handle = cli.open_stream("GET", expected_target);
  3014. EXPECT_TRUE(handle.is_valid()) << to_string(handle.error);
  3015. EXPECT_EQ(expected_target, target);
  3016. }
  3017. }
  3018. TEST(PathUrlEncodeTest, StreamingCRLFInTargetIsEncoded) {
  3019. // With path encoding enabled a CR/LF in the target is percent-encoded
  3020. // rather than rejected, matching the buffered send path. The CR/LF guard in
  3021. // write_request_line still backstops `set_path_encode(false)`, which is
  3022. // covered by StreamingCRLFRejectedWhenPathEncodeDisabled.
  3023. Server svr;
  3024. // Captured before routing: the decoded path contains a newline, which a
  3025. // `.*` handler pattern would not match (`.` excludes `\n` in std::regex).
  3026. std::string target;
  3027. svr.set_pre_routing_handler([&](const Request &req, Response &res) {
  3028. target = req.target;
  3029. res.status = StatusCode::OK_200;
  3030. return Server::HandlerResponse::Handled;
  3031. });
  3032. auto port = svr.bind_to_any_port(HOST);
  3033. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  3034. auto se = detail::scope_exit([&] {
  3035. svr.stop();
  3036. thread.join();
  3037. ASSERT_FALSE(svr.is_running());
  3038. });
  3039. svr.wait_until_ready();
  3040. {
  3041. Client cli(HOST, port);
  3042. auto handle = cli.open_stream("GET", "/a\r\nX-Injected: 1");
  3043. EXPECT_TRUE(handle.is_valid()) << to_string(handle.error);
  3044. EXPECT_EQ("/a%0D%0AX-Injected:%201", target);
  3045. }
  3046. }
  3047. TEST(PathUrlEncodeTest, StreamingCRLFRejectedWhenPathEncodeDisabled) {
  3048. // Nothing may reach the wire: a raw CR/LF target would split the request
  3049. // line and inject headers.
  3050. Server svr;
  3051. // Pre-routing so that "not called" means nothing reached the server at all,
  3052. // rather than merely failing to match a handler pattern.
  3053. auto handler_called = false;
  3054. svr.set_pre_routing_handler([&](const Request & /*req*/, Response &res) {
  3055. handler_called = true;
  3056. res.status = StatusCode::OK_200;
  3057. return Server::HandlerResponse::Handled;
  3058. });
  3059. auto port = svr.bind_to_any_port(HOST);
  3060. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  3061. auto se = detail::scope_exit([&] {
  3062. svr.stop();
  3063. thread.join();
  3064. ASSERT_FALSE(svr.is_running());
  3065. });
  3066. svr.wait_until_ready();
  3067. {
  3068. Client cli(HOST, port);
  3069. cli.set_path_encode(false);
  3070. auto handle = cli.open_stream("GET", "/a\r\nX-Injected: 1");
  3071. EXPECT_FALSE(handle.is_valid());
  3072. EXPECT_EQ(Error::Write, handle.error);
  3073. EXPECT_FALSE(handler_called);
  3074. }
  3075. }
  3076. TEST(PathUrlEncodeTest, RequestParamsBranchSelection) {
  3077. // Which of the two branches runs is decided by whether the query component
  3078. // is empty, not by whether `req.path` contains a `?`: a trailing `?` yields
  3079. // an empty query and must still fall back to building one from
  3080. // `req.params`, while a non-empty query must win over `req.params`.
  3081. Server svr;
  3082. std::string target;
  3083. svr.Get("/foo", [&](const Request &req, Response &res) {
  3084. target = req.target;
  3085. res.status = StatusCode::OK_200;
  3086. });
  3087. auto port = svr.bind_to_any_port(HOST);
  3088. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  3089. auto se = detail::scope_exit([&] {
  3090. svr.stop();
  3091. thread.join();
  3092. ASSERT_FALSE(svr.is_running());
  3093. });
  3094. svr.wait_until_ready();
  3095. {
  3096. // Trailing `?` -> empty query component -> `req.params` is used.
  3097. Client cli(HOST, port);
  3098. Request req;
  3099. req.method = "GET";
  3100. req.path = "/foo?";
  3101. req.params.emplace("a", "1");
  3102. target.clear();
  3103. auto res = cli.send(req);
  3104. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3105. EXPECT_EQ("/foo?a=1", target);
  3106. }
  3107. {
  3108. // Non-empty query in `req.path` -> `req.params` is not appended.
  3109. Client cli(HOST, port);
  3110. Request req;
  3111. req.method = "GET";
  3112. req.path = "/foo?b=2";
  3113. req.params.emplace("a", "1");
  3114. target.clear();
  3115. auto res = cli.send(req);
  3116. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3117. EXPECT_EQ("/foo?b=2", target);
  3118. }
  3119. }
  3120. TEST(PathUrlEncodeTest, IncludePercentEncodingLF) {
  3121. Server svr;
  3122. svr.Get("/", [](const Request &req, Response &) {
  3123. EXPECT_EQ("\x0A", req.get_param_value("something"));
  3124. });
  3125. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3126. auto se = detail::scope_exit([&] {
  3127. svr.stop();
  3128. thread.join();
  3129. ASSERT_FALSE(svr.is_running());
  3130. });
  3131. svr.wait_until_ready();
  3132. {
  3133. Client cli(HOST, PORT);
  3134. cli.set_path_encode(false);
  3135. auto res = cli.Get("/?something=%0A");
  3136. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3137. EXPECT_EQ(StatusCode::OK_200, res->status);
  3138. }
  3139. }
  3140. TEST(BindServerTest, BindDualStack) {
  3141. Server svr;
  3142. svr.Get("/1", [&](const Request & /*req*/, Response &res) {
  3143. res.set_content("Hello World!", "text/plain");
  3144. });
  3145. auto thread = std::thread([&]() { svr.listen("::", PORT); });
  3146. auto se = detail::scope_exit([&] {
  3147. svr.stop();
  3148. thread.join();
  3149. ASSERT_FALSE(svr.is_running());
  3150. });
  3151. svr.wait_until_ready();
  3152. {
  3153. Client cli("127.0.0.1", PORT);
  3154. auto res = cli.Get("/1");
  3155. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3156. EXPECT_EQ(StatusCode::OK_200, res->status);
  3157. EXPECT_EQ("Hello World!", res->body);
  3158. }
  3159. {
  3160. Client cli("::1", PORT);
  3161. auto res = cli.Get("/1");
  3162. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3163. EXPECT_EQ(StatusCode::OK_200, res->status);
  3164. EXPECT_EQ("Hello World!", res->body);
  3165. }
  3166. }
  3167. TEST(BindServerTest, BindAndListenSeparately) {
  3168. Server svr;
  3169. int port = svr.bind_to_any_port("0.0.0.0");
  3170. ASSERT_TRUE(svr.is_valid());
  3171. ASSERT_TRUE(port > 0);
  3172. svr.stop();
  3173. }
  3174. // Reports whether anything is still listening on a loopback port. A plain
  3175. // connect() is used instead of a Client request because a socket left bound by
  3176. // mistake accepts the connection into its backlog and never answers, which
  3177. // would hang the test instead of failing it.
  3178. static bool is_loopback_port_accepting(int port) {
  3179. sockaddr_in addr{};
  3180. addr.sin_family = AF_INET;
  3181. addr.sin_port = htons(static_cast<uint16_t>(port));
  3182. addr.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
  3183. socket_t sock = ::socket(AF_INET, SOCK_STREAM, 0);
  3184. EXPECT_NE(sock, INVALID_SOCKET);
  3185. if (sock == INVALID_SOCKET) { return false; }
  3186. auto ret = ::connect(sock, reinterpret_cast<sockaddr *>(&addr),
  3187. static_cast<socklen_t>(sizeof(addr)));
  3188. detail::close_socket(sock);
  3189. return ret == 0;
  3190. }
  3191. TEST(BindServerTest, StopClosesBoundSocketWithoutListen) {
  3192. Server svr;
  3193. auto port = svr.bind_to_any_port("127.0.0.1");
  3194. ASSERT_TRUE(port > 0);
  3195. svr.stop();
  3196. // bind_to_any_port() already called listen(2), so until stop() closed the
  3197. // descriptor the port kept accepting connections into the backlog. ASSERT
  3198. // rather than EXPECT: with the socket still open, the listen_after_bind()
  3199. // below blocks forever in the accept loop.
  3200. ASSERT_FALSE(is_loopback_port_accepting(port));
  3201. // Nothing is left to accept on, so listen_after_bind() must report failure
  3202. // instead of returning success without ever serving.
  3203. EXPECT_FALSE(svr.listen_after_bind());
  3204. // The failed listen marks the server decommissioned, so a waiter returns
  3205. // instead of spinning forever.
  3206. svr.wait_until_ready();
  3207. }
  3208. #ifdef CPPHTTPLIB_SSL_ENABLED
  3209. TEST(BindServerTest, BindAndListenSeparatelySSL) {
  3210. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE,
  3211. CLIENT_CA_CERT_DIR);
  3212. int port = svr.bind_to_any_port("0.0.0.0");
  3213. ASSERT_TRUE(svr.is_valid());
  3214. ASSERT_TRUE(port > 0);
  3215. svr.stop();
  3216. }
  3217. TEST(BindServerTest, BindAndListenSeparatelySSLEncryptedKey) {
  3218. SSLServer svr(SERVER_ENCRYPTED_CERT_FILE, SERVER_ENCRYPTED_PRIVATE_KEY_FILE,
  3219. nullptr, nullptr, SERVER_ENCRYPTED_PRIVATE_KEY_PASS);
  3220. int port = svr.bind_to_any_port("0.0.0.0");
  3221. ASSERT_TRUE(svr.is_valid());
  3222. ASSERT_TRUE(port > 0);
  3223. svr.stop();
  3224. }
  3225. TEST(BindServerTest, UpdateCertsPem) {
  3226. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  3227. int port = svr.bind_to_any_port("0.0.0.0");
  3228. ASSERT_TRUE(svr.is_valid());
  3229. ASSERT_TRUE(port > 0);
  3230. // Read PEM files
  3231. std::string cert_pem, key_pem, ca_pem;
  3232. read_file(SERVER_CERT_FILE, cert_pem);
  3233. read_file(SERVER_PRIVATE_KEY_FILE, key_pem);
  3234. read_file(CLIENT_CA_CERT_FILE, ca_pem);
  3235. // Update server certificates using PEM API
  3236. ASSERT_TRUE(
  3237. svr.update_certs_pem(cert_pem.c_str(), key_pem.c_str(), ca_pem.c_str()));
  3238. ASSERT_TRUE(svr.is_valid());
  3239. svr.stop();
  3240. }
  3241. TEST(SSLClientServerTest, UpdateCertsPemWithClientAuth) {
  3242. // Start server with client CA (enables client auth)
  3243. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  3244. ASSERT_TRUE(svr.is_valid());
  3245. bool handler_called = false;
  3246. svr.Get("/test", [&](const Request &req, Response &res) {
  3247. handler_called = true;
  3248. // Verify client certificate is present
  3249. auto cert = req.peer_cert();
  3250. EXPECT_TRUE(static_cast<bool>(cert));
  3251. res.set_content("ok", "text/plain");
  3252. });
  3253. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  3254. auto se = detail::scope_exit([&] {
  3255. svr.stop();
  3256. t.join();
  3257. ASSERT_FALSE(svr.is_running());
  3258. });
  3259. svr.wait_until_ready();
  3260. // Read PEM files
  3261. std::string cert_pem, key_pem, ca_pem;
  3262. read_file(SERVER_CERT_FILE, cert_pem);
  3263. read_file(SERVER_PRIVATE_KEY_FILE, key_pem);
  3264. read_file(CLIENT_CA_CERT_FILE, ca_pem);
  3265. // Update server certificates and client CA using PEM API while server running
  3266. ASSERT_TRUE(
  3267. svr.update_certs_pem(cert_pem.c_str(), key_pem.c_str(), ca_pem.c_str()));
  3268. // Connect with client certificate
  3269. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  3270. cli.enable_server_certificate_verification(false);
  3271. cli.set_connection_timeout(30);
  3272. auto res = cli.Get("/test");
  3273. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3274. ASSERT_EQ(StatusCode::OK_200, res->status);
  3275. ASSERT_TRUE(handler_called);
  3276. EXPECT_EQ("ok", res->body);
  3277. }
  3278. #endif
  3279. TEST(ErrorHandlerTest, ContentLength) {
  3280. Server svr;
  3281. svr.set_error_handler([](const Request & /*req*/, Response &res) {
  3282. res.status = StatusCode::OK_200;
  3283. res.set_content("abcdefghijklmnopqrstuvwxyz",
  3284. "text/html"); // <= Content-Length still 13
  3285. });
  3286. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  3287. res.set_content("Hello World!\n", "text/plain");
  3288. res.status = 524;
  3289. });
  3290. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3291. auto se = detail::scope_exit([&] {
  3292. svr.stop();
  3293. thread.join();
  3294. ASSERT_FALSE(svr.is_running());
  3295. });
  3296. svr.wait_until_ready();
  3297. {
  3298. Client cli(HOST, PORT);
  3299. auto res = cli.Get("/hi", Headers{{"Accept-Encoding", ""}});
  3300. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3301. EXPECT_EQ(StatusCode::OK_200, res->status);
  3302. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  3303. EXPECT_EQ("26", res->get_header_value("Content-Length"));
  3304. EXPECT_EQ("abcdefghijklmnopqrstuvwxyz", res->body);
  3305. }
  3306. }
  3307. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  3308. TEST(ExceptionTest, WithoutExceptionHandler) {
  3309. Server svr;
  3310. svr.Get("/exception", [&](const Request & /*req*/, Response & /*res*/) {
  3311. throw std::runtime_error("exception...");
  3312. });
  3313. svr.Get("/unknown", [&](const Request & /*req*/, Response & /*res*/) {
  3314. throw std::runtime_error("exception\r\n...");
  3315. });
  3316. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  3317. auto se = detail::scope_exit([&] {
  3318. svr.stop();
  3319. listen_thread.join();
  3320. ASSERT_FALSE(svr.is_running());
  3321. });
  3322. svr.wait_until_ready();
  3323. Client cli("localhost", PORT);
  3324. {
  3325. auto res = cli.Get("/exception");
  3326. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3327. EXPECT_EQ(StatusCode::InternalServerError_500, res->status);
  3328. EXPECT_FALSE(res->has_header("EXCEPTION_WHAT"));
  3329. }
  3330. {
  3331. auto res = cli.Get("/unknown");
  3332. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3333. EXPECT_EQ(StatusCode::InternalServerError_500, res->status);
  3334. EXPECT_FALSE(res->has_header("EXCEPTION_WHAT"));
  3335. }
  3336. }
  3337. TEST(ExceptionTest, WithExceptionHandler) {
  3338. Server svr;
  3339. svr.set_exception_handler([](const Request & /*req*/, Response &res,
  3340. std::exception_ptr ep) {
  3341. EXPECT_FALSE(ep == nullptr);
  3342. try {
  3343. std::rethrow_exception(ep);
  3344. } catch (std::exception &e) {
  3345. EXPECT_EQ("abc", std::string(e.what()));
  3346. } catch (...) {}
  3347. res.status = StatusCode::InternalServerError_500;
  3348. res.set_content("abcdefghijklmnopqrstuvwxyz",
  3349. "text/html"); // <= Content-Length still 13 at this point
  3350. });
  3351. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  3352. res.set_content("Hello World!\n", "text/plain");
  3353. throw std::runtime_error("abc");
  3354. });
  3355. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3356. auto se = detail::scope_exit([&] {
  3357. svr.stop();
  3358. thread.join();
  3359. ASSERT_FALSE(svr.is_running());
  3360. });
  3361. svr.wait_until_ready();
  3362. for (size_t i = 0; i < 10; i++) {
  3363. Client cli(HOST, PORT);
  3364. for (size_t j = 0; j < 100; j++) {
  3365. auto res = cli.Get("/hi", Headers{{"Accept-Encoding", ""}});
  3366. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3367. EXPECT_EQ(StatusCode::InternalServerError_500, res->status);
  3368. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  3369. EXPECT_EQ("26", res->get_header_value("Content-Length"));
  3370. EXPECT_EQ("abcdefghijklmnopqrstuvwxyz", res->body);
  3371. }
  3372. cli.set_keep_alive(true);
  3373. for (size_t j = 0; j < 100; j++) {
  3374. auto res = cli.Get("/hi", Headers{{"Accept-Encoding", ""}});
  3375. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3376. EXPECT_EQ(StatusCode::InternalServerError_500, res->status);
  3377. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  3378. EXPECT_EQ("26", res->get_header_value("Content-Length"));
  3379. EXPECT_EQ("abcdefghijklmnopqrstuvwxyz", res->body);
  3380. }
  3381. }
  3382. }
  3383. TEST(ExceptionTest, AndErrorHandler) {
  3384. Server svr;
  3385. svr.set_error_handler([](const Request & /*req*/, Response &res) {
  3386. if (res.body.empty()) { res.set_content("NOT_FOUND", "text/html"); }
  3387. });
  3388. svr.set_exception_handler(
  3389. [](const Request & /*req*/, Response &res, std::exception_ptr ep) {
  3390. EXPECT_FALSE(ep == nullptr);
  3391. try {
  3392. std::rethrow_exception(ep);
  3393. } catch (std::exception &e) {
  3394. res.set_content(e.what(), "text/html");
  3395. } catch (...) {}
  3396. res.status = StatusCode::InternalServerError_500;
  3397. });
  3398. svr.Get("/exception", [](const Request & /*req*/, Response & /*res*/) {
  3399. throw std::runtime_error("EXCEPTION");
  3400. });
  3401. svr.Get("/error", [](const Request & /*req*/, Response &res) {
  3402. res.set_content("ERROR", "text/html");
  3403. res.status = StatusCode::InternalServerError_500;
  3404. });
  3405. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3406. auto se = detail::scope_exit([&] {
  3407. svr.stop();
  3408. thread.join();
  3409. ASSERT_FALSE(svr.is_running());
  3410. });
  3411. svr.wait_until_ready();
  3412. Client cli(HOST, PORT);
  3413. {
  3414. auto res = cli.Get("/exception");
  3415. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3416. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  3417. EXPECT_EQ("EXCEPTION", res->body);
  3418. }
  3419. {
  3420. auto res = cli.Get("/error");
  3421. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3422. EXPECT_EQ(StatusCode::InternalServerError_500, res->status);
  3423. EXPECT_EQ("ERROR", res->body);
  3424. }
  3425. {
  3426. auto res = cli.Get("/invalid");
  3427. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3428. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  3429. EXPECT_EQ("NOT_FOUND", res->body);
  3430. }
  3431. }
  3432. #endif
  3433. TEST(NoContentTest, ContentLength) {
  3434. Server svr;
  3435. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  3436. res.status = StatusCode::NoContent_204;
  3437. });
  3438. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3439. auto se = detail::scope_exit([&] {
  3440. svr.stop();
  3441. thread.join();
  3442. ASSERT_FALSE(svr.is_running());
  3443. });
  3444. svr.wait_until_ready();
  3445. {
  3446. Client cli(HOST, PORT);
  3447. auto res = cli.Get("/hi");
  3448. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3449. EXPECT_EQ(StatusCode::NoContent_204, res->status);
  3450. EXPECT_EQ("0", res->get_header_value("Content-Length"));
  3451. }
  3452. }
  3453. TEST(RoutingHandlerTest, PreAndPostRoutingHandlers) {
  3454. #ifdef CPPHTTPLIB_SSL_ENABLED
  3455. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  3456. ASSERT_TRUE(svr.is_valid());
  3457. #else
  3458. Server svr;
  3459. #endif
  3460. svr.set_pre_routing_handler([](const Request &req, Response &res) {
  3461. if (req.path == "/routing_handler") {
  3462. res.set_header("PRE_ROUTING", "on");
  3463. res.set_content("Routing Handler", "text/plain");
  3464. return httplib::Server::HandlerResponse::Handled;
  3465. }
  3466. return httplib::Server::HandlerResponse::Unhandled;
  3467. });
  3468. svr.set_error_handler([](const Request & /*req*/, Response &res) {
  3469. res.set_content("Error", "text/html");
  3470. });
  3471. svr.set_post_routing_handler([](const Request &req, Response &res) {
  3472. if (req.path == "/routing_handler") {
  3473. res.set_header("POST_ROUTING", "on");
  3474. }
  3475. });
  3476. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  3477. res.set_content("Hello World!\n", "text/plain");
  3478. });
  3479. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3480. auto se = detail::scope_exit([&] {
  3481. svr.stop();
  3482. thread.join();
  3483. ASSERT_FALSE(svr.is_running());
  3484. });
  3485. svr.wait_until_ready();
  3486. {
  3487. #ifdef CPPHTTPLIB_SSL_ENABLED
  3488. SSLClient cli(HOST, PORT);
  3489. cli.enable_server_certificate_verification(false);
  3490. #else
  3491. Client cli(HOST, PORT);
  3492. #endif
  3493. auto res = cli.Get("/routing_handler");
  3494. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3495. EXPECT_EQ(StatusCode::OK_200, res->status);
  3496. EXPECT_EQ("Routing Handler", res->body);
  3497. EXPECT_EQ(1U, res->get_header_value_count("PRE_ROUTING"));
  3498. EXPECT_EQ("on", res->get_header_value("PRE_ROUTING"));
  3499. EXPECT_EQ(1U, res->get_header_value_count("POST_ROUTING"));
  3500. EXPECT_EQ("on", res->get_header_value("POST_ROUTING"));
  3501. }
  3502. {
  3503. #ifdef CPPHTTPLIB_SSL_ENABLED
  3504. SSLClient cli(HOST, PORT);
  3505. cli.enable_server_certificate_verification(false);
  3506. #else
  3507. Client cli(HOST, PORT);
  3508. #endif
  3509. auto res = cli.Get("/hi");
  3510. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3511. EXPECT_EQ(StatusCode::OK_200, res->status);
  3512. EXPECT_EQ("Hello World!\n", res->body);
  3513. EXPECT_EQ(0U, res->get_header_value_count("PRE_ROUTING"));
  3514. EXPECT_EQ(0U, res->get_header_value_count("POST_ROUTING"));
  3515. }
  3516. {
  3517. #ifdef CPPHTTPLIB_SSL_ENABLED
  3518. SSLClient cli(HOST, PORT);
  3519. cli.enable_server_certificate_verification(false);
  3520. #else
  3521. Client cli(HOST, PORT);
  3522. #endif
  3523. auto res = cli.Get("/aaa");
  3524. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3525. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  3526. EXPECT_EQ("Error", res->body);
  3527. EXPECT_EQ(0U, res->get_header_value_count("PRE_ROUTING"));
  3528. EXPECT_EQ(0U, res->get_header_value_count("POST_ROUTING"));
  3529. }
  3530. }
  3531. TEST(RequestHandlerTest, PreRequestHandler) {
  3532. auto route_path = "/user/:user";
  3533. Server svr;
  3534. svr.Get("/hi", [](const Request &, Response &res) {
  3535. res.set_content("hi", "text/plain");
  3536. });
  3537. svr.Get(route_path, [](const Request &req, Response &res) {
  3538. res.set_content(req.path_params.at("user"), "text/plain");
  3539. });
  3540. svr.set_pre_request_handler([&](const Request &req, Response &res) {
  3541. if (req.matched_route == route_path) {
  3542. auto user = req.path_params.at("user");
  3543. if (user != "john") {
  3544. res.status = StatusCode::Forbidden_403;
  3545. res.set_content("error", "text/html");
  3546. return Server::HandlerResponse::Handled;
  3547. }
  3548. }
  3549. return Server::HandlerResponse::Unhandled;
  3550. });
  3551. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3552. auto se = detail::scope_exit([&] {
  3553. svr.stop();
  3554. thread.join();
  3555. ASSERT_FALSE(svr.is_running());
  3556. });
  3557. svr.wait_until_ready();
  3558. Client cli(HOST, PORT);
  3559. {
  3560. auto res = cli.Get("/hi");
  3561. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3562. EXPECT_EQ(StatusCode::OK_200, res->status);
  3563. EXPECT_EQ("hi", res->body);
  3564. }
  3565. {
  3566. auto res = cli.Get("/user/john");
  3567. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3568. EXPECT_EQ(StatusCode::OK_200, res->status);
  3569. EXPECT_EQ("john", res->body);
  3570. }
  3571. {
  3572. auto res = cli.Get("/user/invalid-user");
  3573. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3574. EXPECT_EQ(StatusCode::Forbidden_403, res->status);
  3575. EXPECT_EQ("error", res->body);
  3576. }
  3577. }
  3578. // The pre-request handler must run before the request body is read, so a
  3579. // rejected request never forces the server to buffer a (potentially large)
  3580. // body. Here the posted body is larger than the payload limit: if the body
  3581. // were read first the server would answer 413, but because the pre-request
  3582. // handler runs first it answers 403 and the body is never read.
  3583. TEST(RequestHandlerTest, PreRequestHandlerRunsBeforeBodyIsRead) {
  3584. Server svr;
  3585. svr.set_payload_max_length(8);
  3586. auto handler_ran = false;
  3587. svr.Post("/reject", [&](const Request &req, Response &res) {
  3588. handler_ran = true;
  3589. res.set_content(req.body, "text/plain");
  3590. });
  3591. svr.Post("/accept", [](const Request &req, Response &res) {
  3592. res.set_content(req.body, "text/plain");
  3593. });
  3594. svr.set_pre_request_handler([](const Request &req, Response &res) {
  3595. if (req.matched_route == "/reject") {
  3596. res.status = StatusCode::Forbidden_403;
  3597. res.set_content("denied", "text/plain");
  3598. return Server::HandlerResponse::Handled;
  3599. }
  3600. return Server::HandlerResponse::Unhandled;
  3601. });
  3602. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3603. auto se = detail::scope_exit([&] {
  3604. svr.stop();
  3605. thread.join();
  3606. ASSERT_FALSE(svr.is_running());
  3607. });
  3608. svr.wait_until_ready();
  3609. Client cli(HOST, PORT);
  3610. // Body (10 bytes) exceeds the 8-byte limit, yet the pre-request handler
  3611. // rejects with 403 before the body is read, so 413 is never reached.
  3612. {
  3613. auto res = cli.Post("/reject", "0123456789", "text/plain");
  3614. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3615. EXPECT_EQ(StatusCode::Forbidden_403, res->status);
  3616. EXPECT_EQ("denied", res->body);
  3617. EXPECT_FALSE(handler_ran);
  3618. }
  3619. // An approved route still reads the body and enforces the payload limit.
  3620. {
  3621. auto res = cli.Post("/accept", "0123456789", "text/plain");
  3622. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3623. EXPECT_EQ(StatusCode::PayloadTooLarge_413, res->status);
  3624. }
  3625. }
  3626. TEST(UserDataTest, BasicOperations) {
  3627. httplib::UserData ud;
  3628. // Initially empty
  3629. EXPECT_FALSE(ud.has("key"));
  3630. EXPECT_EQ(nullptr, ud.get<int>("key"));
  3631. // set and get
  3632. ud.set("key", 42);
  3633. EXPECT_TRUE(ud.has("key"));
  3634. auto *p = ud.get<int>("key");
  3635. ASSERT_NE(nullptr, p);
  3636. EXPECT_EQ(42, *p);
  3637. // Type mismatch → nullptr
  3638. EXPECT_EQ(nullptr, ud.get<std::string>("key"));
  3639. // Overwrite with different type
  3640. ud.set("key", std::string("hello"));
  3641. EXPECT_EQ(nullptr, ud.get<int>("key"));
  3642. auto *s = ud.get<std::string>("key");
  3643. ASSERT_NE(nullptr, s);
  3644. EXPECT_EQ("hello", *s);
  3645. // erase
  3646. ud.erase("key");
  3647. EXPECT_FALSE(ud.has("key"));
  3648. // clear
  3649. ud.set("a", 1);
  3650. ud.set("b", 2);
  3651. ud.clear();
  3652. EXPECT_FALSE(ud.has("a"));
  3653. EXPECT_FALSE(ud.has("b"));
  3654. }
  3655. TEST(RequestHandlerTest, ResponseUserDataInPreRouting) {
  3656. struct AuthCtx {
  3657. std::string user_id;
  3658. };
  3659. Server svr;
  3660. svr.set_pre_routing_handler([](const Request & /*req*/, Response &res) {
  3661. res.user_data.set("auth", AuthCtx{"alice"});
  3662. return Server::HandlerResponse::Unhandled;
  3663. });
  3664. svr.Get("/me", [](const Request & /*req*/, Response &res) {
  3665. auto *ctx = res.user_data.get<AuthCtx>("auth");
  3666. ASSERT_NE(nullptr, ctx);
  3667. res.set_content("Hello " + ctx->user_id, "text/plain");
  3668. });
  3669. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3670. auto se = detail::scope_exit([&] {
  3671. svr.stop();
  3672. thread.join();
  3673. ASSERT_FALSE(svr.is_running());
  3674. });
  3675. svr.wait_until_ready();
  3676. Client cli(HOST, PORT);
  3677. auto res = cli.Get("/me");
  3678. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3679. EXPECT_EQ(StatusCode::OK_200, res->status);
  3680. EXPECT_EQ("Hello alice", res->body);
  3681. }
  3682. TEST(RequestHandlerTest, ResponseUserDataInPreRequest) {
  3683. struct RoleCtx {
  3684. std::string role;
  3685. };
  3686. Server svr;
  3687. svr.set_pre_request_handler([](const Request & /*req*/, Response &res) {
  3688. res.user_data.set("role", RoleCtx{"admin"});
  3689. return Server::HandlerResponse::Unhandled;
  3690. });
  3691. svr.Get("/role", [](const Request & /*req*/, Response &res) {
  3692. auto *ctx = res.user_data.get<RoleCtx>("role");
  3693. ASSERT_NE(nullptr, ctx);
  3694. res.set_content(ctx->role, "text/plain");
  3695. });
  3696. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3697. auto se = detail::scope_exit([&] {
  3698. svr.stop();
  3699. thread.join();
  3700. ASSERT_FALSE(svr.is_running());
  3701. });
  3702. svr.wait_until_ready();
  3703. Client cli(HOST, PORT);
  3704. auto res = cli.Get("/role");
  3705. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  3706. EXPECT_EQ(StatusCode::OK_200, res->status);
  3707. EXPECT_EQ("admin", res->body);
  3708. }
  3709. TEST(InvalidFormatTest, StatusCode) {
  3710. Server svr;
  3711. svr.Get("/hi", [](const Request & /*req*/, Response &res) {
  3712. res.set_content("Hello World!\n", "text/plain");
  3713. res.status = 9999; // Status should be a three-digit code...
  3714. });
  3715. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3716. auto se = detail::scope_exit([&] {
  3717. svr.stop();
  3718. thread.join();
  3719. ASSERT_FALSE(svr.is_running());
  3720. });
  3721. svr.wait_until_ready();
  3722. {
  3723. Client cli(HOST, PORT);
  3724. auto res = cli.Get("/hi");
  3725. ASSERT_FALSE(res);
  3726. }
  3727. }
  3728. TEST(URLFragmentTest, WithFragment) {
  3729. Server svr;
  3730. svr.Get("/hi", [](const Request &req, Response & /*res*/) {
  3731. EXPECT_TRUE(req.target == "/hi");
  3732. });
  3733. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3734. auto se = detail::scope_exit([&] {
  3735. svr.stop();
  3736. thread.join();
  3737. ASSERT_FALSE(svr.is_running());
  3738. });
  3739. svr.wait_until_ready();
  3740. {
  3741. Client cli(HOST, PORT);
  3742. auto res = cli.Get("/hi#key1=val1=key2=val2");
  3743. EXPECT_TRUE(res);
  3744. EXPECT_EQ(StatusCode::OK_200, res->status);
  3745. res = cli.Get("/hi%23key1=val1=key2=val2");
  3746. EXPECT_TRUE(res);
  3747. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  3748. }
  3749. }
  3750. TEST(HeaderWriter, SetHeaderWriter) {
  3751. Server svr;
  3752. svr.set_header_writer([](Stream &strm, Headers &hdrs) {
  3753. hdrs.emplace("CustomServerHeader", "CustomServerValue");
  3754. return detail::write_headers(strm, hdrs);
  3755. });
  3756. svr.Get("/hi", [](const Request &req, Response &res) {
  3757. auto it = req.headers.find("CustomClientHeader");
  3758. EXPECT_TRUE(it != req.headers.end());
  3759. EXPECT_EQ(it->second, "CustomClientValue");
  3760. res.set_content("Hello World!\n", "text/plain");
  3761. });
  3762. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  3763. auto se = detail::scope_exit([&] {
  3764. svr.stop();
  3765. thread.join();
  3766. ASSERT_FALSE(svr.is_running());
  3767. });
  3768. svr.wait_until_ready();
  3769. {
  3770. Client cli(HOST, PORT);
  3771. cli.set_header_writer([](Stream &strm, Headers &hdrs) {
  3772. hdrs.emplace("CustomClientHeader", "CustomClientValue");
  3773. return detail::write_headers(strm, hdrs);
  3774. });
  3775. auto res = cli.Get("/hi");
  3776. EXPECT_TRUE(res);
  3777. EXPECT_EQ(StatusCode::OK_200, res->status);
  3778. auto it = res->headers.find("CustomServerHeader");
  3779. EXPECT_TRUE(it != res->headers.end());
  3780. EXPECT_EQ(it->second, "CustomServerValue");
  3781. }
  3782. }
  3783. class ServerTest : public ::testing::Test {
  3784. protected:
  3785. ServerTest()
  3786. : cli_(HOST, PORT)
  3787. #ifdef CPPHTTPLIB_SSL_ENABLED
  3788. ,
  3789. svr_(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE)
  3790. #endif
  3791. {
  3792. #ifdef CPPHTTPLIB_SSL_ENABLED
  3793. cli_.enable_server_certificate_verification(false);
  3794. #endif
  3795. // Allow LARGE_DATA (100MB) responses
  3796. cli_.set_payload_max_length(200 * 1024 * 1024);
  3797. }
  3798. virtual void SetUp() {
  3799. // Allow LARGE_DATA (100MB) tests to pass with new 100MB default limit
  3800. svr_.set_payload_max_length(200 * 1024 * 1024);
  3801. svr_.set_mount_point("/", "./www");
  3802. svr_.set_mount_point("/mount", "./www2");
  3803. svr_.set_file_extension_and_mimetype_mapping("abcde", "text/abcde");
  3804. svr_.Get("/hi",
  3805. [&](const Request & /*req*/, Response &res) {
  3806. res.set_content("Hello World!", "text/plain");
  3807. })
  3808. .Get("/file_content",
  3809. [&](const Request & /*req*/, Response &res) {
  3810. res.set_file_content("./www/dir/test.html");
  3811. })
  3812. .Get("/file_content_with_content_type",
  3813. [&](const Request & /*req*/, Response &res) {
  3814. res.set_file_content("./www/file", "text/plain");
  3815. })
  3816. .Get("/invalid_file_content",
  3817. [&](const Request & /*req*/, Response &res) {
  3818. res.set_file_content("./www/dir/invalid_file_path");
  3819. })
  3820. .Get("/http_response_splitting",
  3821. [&](const Request & /*req*/, Response &res) {
  3822. res.set_header("a", "1\r\nSet-Cookie: a=1");
  3823. EXPECT_EQ(0U, res.headers.size());
  3824. EXPECT_FALSE(res.has_header("a"));
  3825. res.set_header("a", "1\nSet-Cookie: a=1");
  3826. EXPECT_EQ(0U, res.headers.size());
  3827. EXPECT_FALSE(res.has_header("a"));
  3828. res.set_header("a", "1\rSet-Cookie: a=1");
  3829. EXPECT_EQ(0U, res.headers.size());
  3830. EXPECT_FALSE(res.has_header("a"));
  3831. res.set_header("a\r\nb", "0");
  3832. EXPECT_EQ(0U, res.headers.size());
  3833. EXPECT_FALSE(res.has_header("a"));
  3834. res.set_header("a\rb", "0");
  3835. EXPECT_EQ(0U, res.headers.size());
  3836. EXPECT_FALSE(res.has_header("a"));
  3837. res.set_header("a\nb", "0");
  3838. EXPECT_EQ(0U, res.headers.size());
  3839. EXPECT_FALSE(res.has_header("a"));
  3840. res.set_redirect("1\r\nSet-Cookie: a=1");
  3841. EXPECT_EQ(0U, res.headers.size());
  3842. EXPECT_FALSE(res.has_header("Location"));
  3843. })
  3844. .Get("/slow",
  3845. [&](const Request & /*req*/, Response &res) {
  3846. std::this_thread::sleep_for(std::chrono::seconds(4));
  3847. res.set_content("slow", "text/plain");
  3848. })
  3849. #if 0
  3850. .Post("/slowpost",
  3851. [&](const Request & /*req*/, Response &res) {
  3852. std::this_thread::sleep_for(std::chrono::seconds(2));
  3853. res.set_content("slow", "text/plain");
  3854. })
  3855. #endif
  3856. .Get("/remote_addr",
  3857. [&](const Request &req, Response &res) {
  3858. ASSERT_FALSE(req.has_header("REMOTE_ADDR"));
  3859. ASSERT_FALSE(req.has_header("REMOTE_PORT"));
  3860. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  3861. ASSERT_ANY_THROW(req.get_header_value("REMOTE_ADDR"));
  3862. ASSERT_ANY_THROW(req.get_header_value("REMOTE_PORT"));
  3863. #endif
  3864. res.set_content(req.remote_addr, "text/plain");
  3865. })
  3866. .Get("/local_addr",
  3867. [&](const Request &req, Response &res) {
  3868. ASSERT_FALSE(req.has_header("LOCAL_ADDR"));
  3869. ASSERT_FALSE(req.has_header("LOCAL_PORT"));
  3870. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  3871. ASSERT_ANY_THROW(req.get_header_value("LOCAL_ADDR"));
  3872. ASSERT_ANY_THROW(req.get_header_value("LOCAL_PORT"));
  3873. #endif
  3874. auto local_addr = req.local_addr;
  3875. auto local_port = std::to_string(req.local_port);
  3876. res.set_content(local_addr.append(":").append(local_port),
  3877. "text/plain");
  3878. })
  3879. .Get("/endwith%",
  3880. [&](const Request & /*req*/, Response &res) {
  3881. res.set_content("Hello World!", "text/plain");
  3882. })
  3883. .Get("/a\\+\\+b",
  3884. [&](const Request &req, Response &res) {
  3885. ASSERT_TRUE(req.has_param("a +b"));
  3886. auto val = req.get_param_value("a +b");
  3887. res.set_content(val, "text/plain");
  3888. })
  3889. .Get("/", [&](const Request & /*req*/,
  3890. Response &res) { res.set_redirect("/hi"); })
  3891. .Post("/1",
  3892. [](const Request & /*req*/, Response &res) {
  3893. res.set_redirect("/2", StatusCode::SeeOther_303);
  3894. })
  3895. .Get("/2",
  3896. [](const Request & /*req*/, Response &res) {
  3897. res.set_content("redirected.", "text/plain");
  3898. res.status = StatusCode::OK_200;
  3899. })
  3900. .Post("/person",
  3901. [&](const Request &req, Response &res) {
  3902. if (req.has_param("name") && req.has_param("note")) {
  3903. persons_[req.get_param_value("name")] =
  3904. req.get_param_value("note");
  3905. } else {
  3906. res.status = StatusCode::BadRequest_400;
  3907. }
  3908. })
  3909. .Put("/person",
  3910. [&](const Request &req, Response &res) {
  3911. if (req.has_param("name") && req.has_param("note")) {
  3912. persons_[req.get_param_value("name")] =
  3913. req.get_param_value("note");
  3914. } else {
  3915. res.status = StatusCode::BadRequest_400;
  3916. }
  3917. })
  3918. .Get("/person/(.*)",
  3919. [&](const Request &req, Response &res) {
  3920. string name = req.matches[1];
  3921. if (persons_.find(name) != persons_.end()) {
  3922. auto note = persons_[name];
  3923. res.set_content(note, "text/plain");
  3924. } else {
  3925. res.status = StatusCode::NotFound_404;
  3926. }
  3927. })
  3928. .Delete("/person",
  3929. [&](const Request &req, Response &res) {
  3930. if (req.has_param("name")) {
  3931. string name = req.get_param_value("name");
  3932. if (persons_.find(name) != persons_.end()) {
  3933. persons_.erase(name);
  3934. res.set_content("DELETED", "text/plain");
  3935. } else {
  3936. res.status = StatusCode::NotFound_404;
  3937. }
  3938. } else {
  3939. res.status = StatusCode::BadRequest_400;
  3940. }
  3941. })
  3942. .Post("/x-www-form-urlencoded-json",
  3943. [&](const Request &req, Response &res) {
  3944. auto json = req.get_param_value("json");
  3945. ASSERT_EQ(JSON_DATA, json);
  3946. res.set_content(json, "appliation/json");
  3947. res.status = StatusCode::OK_200;
  3948. })
  3949. .Get("/streamed-chunked",
  3950. [&](const Request & /*req*/, Response &res) {
  3951. res.set_chunked_content_provider(
  3952. "text/plain", [](size_t /*offset*/, DataSink &sink) {
  3953. sink.os << "123";
  3954. sink.os << "456";
  3955. sink.os << "789";
  3956. sink.done();
  3957. return true;
  3958. });
  3959. })
  3960. .Get("/streamed-chunked-with-prohibited-trailer",
  3961. [&](const Request & /*req*/, Response &res) {
  3962. auto i = new int(0);
  3963. // Declare both a prohibited trailer (Content-Length) and an
  3964. // allowed one
  3965. res.set_header("Trailer", "Content-Length, X-Allowed");
  3966. res.set_chunked_content_provider(
  3967. "text/plain",
  3968. [i](size_t /*offset*/, DataSink &sink) {
  3969. switch (*i) {
  3970. case 0: sink.os << "123"; break;
  3971. case 1: sink.os << "456"; break;
  3972. case 2: sink.os << "789"; break;
  3973. case 3: {
  3974. sink.done_with_trailer(
  3975. {{"Content-Length", "5"}, {"X-Allowed", "yes"}});
  3976. } break;
  3977. }
  3978. (*i)++;
  3979. return true;
  3980. },
  3981. [i](bool success) {
  3982. EXPECT_TRUE(success);
  3983. delete i;
  3984. });
  3985. })
  3986. .Get("/streamed-chunked2",
  3987. [&](const Request & /*req*/, Response &res) {
  3988. auto i = new int(0);
  3989. res.set_chunked_content_provider(
  3990. "text/plain",
  3991. [i](size_t /*offset*/, DataSink &sink) {
  3992. switch (*i) {
  3993. case 0: sink.os << "123"; break;
  3994. case 1: sink.os << "456"; break;
  3995. case 2: sink.os << "789"; break;
  3996. case 3: sink.done(); break;
  3997. }
  3998. (*i)++;
  3999. return true;
  4000. },
  4001. [i](bool success) {
  4002. EXPECT_TRUE(success);
  4003. delete i;
  4004. });
  4005. })
  4006. .Get("/streamed-chunked-with-trailer",
  4007. [&](const Request & /*req*/, Response &res) {
  4008. auto i = new int(0);
  4009. res.set_header("Trailer", "Dummy1, Dummy2");
  4010. res.set_chunked_content_provider(
  4011. "text/plain",
  4012. [i](size_t /*offset*/, DataSink &sink) {
  4013. switch (*i) {
  4014. case 0: sink.os << "123"; break;
  4015. case 1: sink.os << "456"; break;
  4016. case 2: sink.os << "789"; break;
  4017. case 3: {
  4018. sink.done_with_trailer(
  4019. {{"Dummy1", "DummyVal1"}, {"Dummy2", "DummyVal2"}});
  4020. } break;
  4021. }
  4022. (*i)++;
  4023. return true;
  4024. },
  4025. [i](bool success) {
  4026. EXPECT_TRUE(success);
  4027. delete i;
  4028. });
  4029. })
  4030. .Get("/streamed",
  4031. [&](const Request & /*req*/, Response &res) {
  4032. res.set_content_provider(
  4033. 6, "text/plain",
  4034. [](size_t offset, size_t /*length*/, DataSink &sink) {
  4035. sink.os << (offset < 3 ? "a" : "b");
  4036. return true;
  4037. });
  4038. })
  4039. .Get("/streamed-without-length",
  4040. [&](const Request & /*req*/, Response &res) {
  4041. auto data = new std::string("abcdefg");
  4042. res.set_content_provider(
  4043. "text/plain",
  4044. [data](size_t offset, DataSink &sink) {
  4045. if (offset < data->size()) {
  4046. sink.os << data->substr(offset);
  4047. }
  4048. sink.done();
  4049. return true;
  4050. },
  4051. [data](bool success) {
  4052. EXPECT_TRUE(success);
  4053. delete data;
  4054. });
  4055. })
  4056. .Get("/streamed-with-range",
  4057. [&](const Request &req, Response &res) {
  4058. auto data = new std::string("abcdefg");
  4059. // An explicit status keeps the server from picking the 206 it
  4060. // would otherwise choose for a ranged request, so the response
  4061. // is not a partial representation.
  4062. auto status = req.get_param_value("status");
  4063. if (status == "200") {
  4064. res.status = StatusCode::OK_200;
  4065. } else if (status == "403") {
  4066. res.status = StatusCode::Forbidden_403;
  4067. }
  4068. res.set_content_provider(
  4069. data->size(), "text/plain",
  4070. [data](size_t offset, size_t length, DataSink &sink) {
  4071. size_t DATA_CHUNK_SIZE = 4;
  4072. const auto &d = *data;
  4073. auto out_len =
  4074. std::min(static_cast<size_t>(length), DATA_CHUNK_SIZE);
  4075. auto ret =
  4076. sink.write(&d[static_cast<size_t>(offset)], out_len);
  4077. EXPECT_TRUE(ret);
  4078. return true;
  4079. },
  4080. [data, &req](bool success) {
  4081. EXPECT_EQ(success, !req.has_param("error"));
  4082. delete data;
  4083. });
  4084. })
  4085. .Get("/streamed-cancel",
  4086. [&](const Request & /*req*/, Response &res) {
  4087. res.set_content_provider(
  4088. size_t(-1), "text/plain",
  4089. [](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  4090. sink.os << "data_chunk";
  4091. return true;
  4092. });
  4093. })
  4094. .Get("/regex-with-delimiter",
  4095. [&](const Request &req, Response & /*res*/) {
  4096. ASSERT_TRUE(req.has_param("key"));
  4097. EXPECT_EQ("^(?.*(value))", req.get_param_value("key"));
  4098. })
  4099. .Get("/with-range",
  4100. [&](const Request & /*req*/, Response &res) {
  4101. res.set_content("abcdefg", "text/plain");
  4102. })
  4103. .Get("/test-start-time",
  4104. [&](const Request &req, Response & /*res*/) {
  4105. EXPECT_NE(req.start_time_,
  4106. std::chrono::steady_clock::time_point::min());
  4107. })
  4108. .Get("/with-range-customized-response",
  4109. [&](const Request & /*req*/, Response &res) {
  4110. res.status = StatusCode::BadRequest_400;
  4111. res.set_content(JSON_DATA, "application/json");
  4112. })
  4113. .Post("/chunked",
  4114. [&](const Request &req, Response & /*res*/) {
  4115. EXPECT_EQ(req.body, "dechunked post body");
  4116. })
  4117. .Post("/large-chunked",
  4118. [&](const Request &req, Response & /*res*/) {
  4119. std::string expected(6 * 30 * 1024u, 'a');
  4120. EXPECT_EQ(req.body, expected);
  4121. })
  4122. .Post("/multipart",
  4123. [&](const Request &req, Response & /*res*/) {
  4124. EXPECT_EQ(4u, req.form.get_field_count("text1") +
  4125. req.form.get_field_count("text2") +
  4126. req.form.get_field_count("file3") +
  4127. req.form.get_field_count("file4"));
  4128. EXPECT_EQ(2u, req.form.get_file_count("file1") +
  4129. req.form.get_file_count("file2"));
  4130. ASSERT_TRUE(!req.form.has_file("???"));
  4131. ASSERT_TRUE(!req.form.has_field("???"));
  4132. ASSERT_TRUE(req.body.empty());
  4133. {
  4134. const auto &text = req.form.get_field("text1");
  4135. EXPECT_EQ("text default", text);
  4136. }
  4137. {
  4138. const auto &text = req.form.get_field("text2");
  4139. EXPECT_EQ("aωb", text);
  4140. }
  4141. {
  4142. const auto &file = req.form.get_file("file1");
  4143. EXPECT_EQ("hello.txt", file.filename);
  4144. EXPECT_EQ("text/plain", file.content_type);
  4145. EXPECT_EQ("h\ne\n\nl\nl\no\n", file.content);
  4146. }
  4147. {
  4148. const auto &file = req.form.get_file("file2");
  4149. EXPECT_EQ("world.json", file.filename);
  4150. EXPECT_EQ("application/json", file.content_type);
  4151. EXPECT_EQ("{\n \"world\", true\n}\n", file.content);
  4152. }
  4153. {
  4154. const auto &text = req.form.get_field("file3");
  4155. EXPECT_EQ(0u, text.size());
  4156. }
  4157. {
  4158. const auto &text = req.form.get_field("file4");
  4159. EXPECT_EQ(0u, text.size());
  4160. }
  4161. })
  4162. .Post("/multipart/multi_file_values",
  4163. [&](const Request &req, Response & /*res*/) {
  4164. EXPECT_EQ(3u, req.form.get_field_count("text") +
  4165. req.form.get_field_count("multi_text1"));
  4166. EXPECT_EQ(2u, req.form.get_file_count("multi_file1"));
  4167. ASSERT_TRUE(!req.form.has_file("???"));
  4168. ASSERT_TRUE(!req.form.has_field("???"));
  4169. ASSERT_TRUE(req.body.empty());
  4170. {
  4171. const auto &text = req.form.get_field("text");
  4172. EXPECT_EQ("default text", text);
  4173. }
  4174. {
  4175. const auto &text1_values = req.form.get_fields("multi_text1");
  4176. EXPECT_EQ(2u, text1_values.size());
  4177. EXPECT_EQ("aaaaa", text1_values[0]);
  4178. EXPECT_EQ("bbbbb", text1_values[1]);
  4179. }
  4180. {
  4181. const auto &file1_values = req.form.get_files("multi_file1");
  4182. EXPECT_EQ(2u, file1_values.size());
  4183. auto file1 = file1_values[0];
  4184. EXPECT_EQ(file1.filename, "hello.txt");
  4185. EXPECT_EQ(file1.content_type, "text/plain");
  4186. EXPECT_EQ("h\ne\n\nl\nl\no\n", file1.content);
  4187. auto file2 = file1_values[1];
  4188. EXPECT_EQ(file2.filename, "world.json");
  4189. EXPECT_EQ(file2.content_type, "application/json");
  4190. EXPECT_EQ("{\n \"world\", true\n}\n", file2.content);
  4191. }
  4192. })
  4193. .Post("/empty",
  4194. [&](const Request &req, Response &res) {
  4195. EXPECT_EQ(req.body, "");
  4196. EXPECT_EQ("text/plain", req.get_header_value("Content-Type"));
  4197. EXPECT_EQ("0", req.get_header_value("Content-Length"));
  4198. res.set_content("empty", "text/plain");
  4199. })
  4200. .Post("/empty-no-content-type",
  4201. [&](const Request &req, Response &res) {
  4202. EXPECT_EQ(req.body, "");
  4203. EXPECT_FALSE(req.has_header("Content-Type"));
  4204. EXPECT_EQ("0", req.get_header_value("Content-Length"));
  4205. res.set_content("empty-no-content-type", "text/plain");
  4206. })
  4207. .Post("/path-only",
  4208. [&](const Request &req, Response &res) {
  4209. EXPECT_EQ(req.body, "");
  4210. EXPECT_EQ("", req.get_header_value("Content-Type"));
  4211. EXPECT_EQ("0", req.get_header_value("Content-Length"));
  4212. res.set_content("path-only", "text/plain");
  4213. })
  4214. .Post("/path-headers-only",
  4215. [&](const Request &req, Response &res) {
  4216. EXPECT_EQ(req.body, "");
  4217. EXPECT_EQ("", req.get_header_value("Content-Type"));
  4218. EXPECT_EQ("0", req.get_header_value("Content-Length"));
  4219. EXPECT_EQ("world", req.get_header_value("hello"));
  4220. EXPECT_EQ("world2", req.get_header_value("hello2"));
  4221. res.set_content("path-headers-only", "text/plain");
  4222. })
  4223. .Post("/post-large",
  4224. [&](const Request &req, Response &res) {
  4225. EXPECT_EQ(req.body, LARGE_DATA);
  4226. res.set_content(req.body, "text/plain");
  4227. })
  4228. .Post("/post-loopback",
  4229. [&](const Request &, Response &res,
  4230. ContentReader const &content_reader) {
  4231. std::string body;
  4232. content_reader([&](const char *data, size_t data_length) {
  4233. body.append(data, data_length);
  4234. return true;
  4235. });
  4236. res.set_content(body, "text/plain");
  4237. })
  4238. .Put("/put-loopback",
  4239. [&](const Request &, Response &res,
  4240. ContentReader const &content_reader) {
  4241. std::string body;
  4242. content_reader([&](const char *data, size_t data_length) {
  4243. body.append(data, data_length);
  4244. return true;
  4245. });
  4246. res.set_content(body, "text/plain");
  4247. })
  4248. .Patch("/patch-loopback",
  4249. [&](const Request &, Response &res,
  4250. ContentReader const &content_reader) {
  4251. std::string body;
  4252. content_reader([&](const char *data, size_t data_length) {
  4253. body.append(data, data_length);
  4254. return true;
  4255. });
  4256. res.set_content(body, "text/plain");
  4257. })
  4258. .Put("/empty-no-content-type",
  4259. [&](const Request &req, Response &res) {
  4260. EXPECT_EQ(req.body, "");
  4261. EXPECT_FALSE(req.has_header("Content-Type"));
  4262. EXPECT_EQ("0", req.get_header_value("Content-Length"));
  4263. res.set_content("empty-no-content-type", "text/plain");
  4264. })
  4265. .Put("/put",
  4266. [&](const Request &req, Response &res) {
  4267. EXPECT_EQ(req.body, "PUT");
  4268. res.set_content(req.body, "text/plain");
  4269. })
  4270. .Put("/put-large",
  4271. [&](const Request &req, Response &res) {
  4272. EXPECT_EQ(req.body, LARGE_DATA);
  4273. res.set_content(req.body, "text/plain");
  4274. })
  4275. .Patch("/patch",
  4276. [&](const Request &req, Response &res) {
  4277. EXPECT_EQ(req.body, "PATCH");
  4278. res.set_content(req.body, "text/plain");
  4279. })
  4280. .Delete("/delete",
  4281. [&](const Request & /*req*/, Response &res) {
  4282. res.set_content("DELETE", "text/plain");
  4283. })
  4284. .Delete("/delete-body",
  4285. [&](const Request &req, Response &res) {
  4286. EXPECT_EQ(req.body, "content");
  4287. res.set_content(req.body, "text/plain");
  4288. })
  4289. .Options(R"(\*)",
  4290. [&](const Request & /*req*/, Response &res) {
  4291. res.set_header("Allow", "GET, POST, HEAD, OPTIONS");
  4292. })
  4293. .Get("/request-target",
  4294. [&](const Request &req, Response & /*res*/) {
  4295. EXPECT_EQ("/request-target?aaa=bbb&ccc=ddd", req.target);
  4296. EXPECT_EQ("bbb", req.get_param_value("aaa"));
  4297. EXPECT_EQ("ddd", req.get_param_value("ccc"));
  4298. })
  4299. .Get("/long-query-value",
  4300. [&](const Request &req, Response & /*res*/) {
  4301. EXPECT_EQ(LONG_QUERY_URL, req.target);
  4302. EXPECT_EQ(LONG_QUERY_VALUE, req.get_param_value("key"));
  4303. })
  4304. .Get("/too-long-query-value",
  4305. [&](const Request &req, Response & /*res*/) {
  4306. EXPECT_EQ(TOO_LONG_QUERY_URL, req.target);
  4307. EXPECT_EQ(TOO_LONG_QUERY_VALUE, req.get_param_value("key"));
  4308. })
  4309. .Get("/array-param",
  4310. [&](const Request &req, Response & /*res*/) {
  4311. EXPECT_EQ(3u, req.get_param_value_count("array"));
  4312. EXPECT_EQ("value1", req.get_param_value("array", 0));
  4313. EXPECT_EQ("value2", req.get_param_value("array", 1));
  4314. EXPECT_EQ("value3", req.get_param_value("array", 2));
  4315. })
  4316. .Get("/array-param-values",
  4317. [&](const Request &req, Response & /*res*/) {
  4318. auto values = req.get_param_values("array");
  4319. EXPECT_EQ(3u, values.size());
  4320. EXPECT_EQ("value1", values[0]);
  4321. EXPECT_EQ("value2", values[1]);
  4322. EXPECT_EQ("value3", values[2]);
  4323. auto empty = req.get_param_values("nonexistent");
  4324. EXPECT_TRUE(empty.empty());
  4325. })
  4326. .Post("/validate-no-multiple-headers",
  4327. [&](const Request &req, Response & /*res*/) {
  4328. EXPECT_EQ(1u, req.get_header_value_count("Content-Length"));
  4329. EXPECT_EQ("5", req.get_header_value("Content-Length"));
  4330. })
  4331. .Post("/content_receiver",
  4332. [&](const Request &req, Response &res,
  4333. const ContentReader &content_reader) {
  4334. if (req.is_multipart_form_data()) {
  4335. std::vector<FormData> items;
  4336. content_reader(
  4337. [&](const FormData &file) {
  4338. items.push_back(file);
  4339. return true;
  4340. },
  4341. [&](const char *data, size_t data_length) {
  4342. items.back().content.append(data, data_length);
  4343. return true;
  4344. });
  4345. EXPECT_EQ(5u, items.size());
  4346. {
  4347. const auto &file = get_file_value(items, "text1");
  4348. EXPECT_TRUE(file.filename.empty());
  4349. EXPECT_EQ("text default", file.content);
  4350. }
  4351. {
  4352. const auto &file = get_file_value(items, "text2");
  4353. EXPECT_TRUE(file.filename.empty());
  4354. EXPECT_EQ("aωb", file.content);
  4355. }
  4356. {
  4357. const auto &file = get_file_value(items, "file1");
  4358. EXPECT_EQ("hello.txt", file.filename);
  4359. EXPECT_EQ("text/plain", file.content_type);
  4360. EXPECT_EQ("h\ne\n\nl\nl\no\n", file.content);
  4361. }
  4362. {
  4363. const auto &file = get_file_value(items, "file2");
  4364. EXPECT_EQ("world.json", file.filename);
  4365. EXPECT_EQ("application/json", file.content_type);
  4366. EXPECT_EQ(R"({\n "world": true\n}\n)", file.content);
  4367. }
  4368. {
  4369. const auto &file = get_file_value(items, "file3");
  4370. EXPECT_TRUE(file.filename.empty());
  4371. EXPECT_EQ("application/octet-stream", file.content_type);
  4372. EXPECT_EQ(0u, file.content.size());
  4373. }
  4374. } else {
  4375. std::string body;
  4376. content_reader([&](const char *data, size_t data_length) {
  4377. EXPECT_EQ(7U, data_length);
  4378. body.append(data, data_length);
  4379. return true;
  4380. });
  4381. EXPECT_EQ(body, "content");
  4382. res.set_content(body, "text/plain");
  4383. }
  4384. })
  4385. .Put("/content_receiver",
  4386. [&](const Request & /*req*/, Response &res,
  4387. const ContentReader &content_reader) {
  4388. std::string body;
  4389. content_reader([&](const char *data, size_t data_length) {
  4390. body.append(data, data_length);
  4391. return true;
  4392. });
  4393. EXPECT_EQ(body, "content");
  4394. res.set_content(body, "text/plain");
  4395. })
  4396. .Patch("/content_receiver",
  4397. [&](const Request & /*req*/, Response &res,
  4398. const ContentReader &content_reader) {
  4399. std::string body;
  4400. content_reader([&](const char *data, size_t data_length) {
  4401. body.append(data, data_length);
  4402. return true;
  4403. });
  4404. EXPECT_EQ(body, "content");
  4405. res.set_content(body, "text/plain");
  4406. })
  4407. .Post("/query-string-and-body",
  4408. [&](const Request &req, Response & /*res*/) {
  4409. ASSERT_TRUE(req.has_param("key"));
  4410. EXPECT_EQ(req.get_param_value("key"), "value");
  4411. EXPECT_EQ(req.body, "content");
  4412. })
  4413. .Get("/last-request",
  4414. [&](const Request &req, Response & /*res*/) {
  4415. EXPECT_EQ("close", req.get_header_value("Connection"));
  4416. })
  4417. .Get(R"(/redirect/(\d+))",
  4418. [&](const Request &req, Response &res) {
  4419. auto num = std::stoi(req.matches[1]) + 1;
  4420. std::string url = "/redirect/" + std::to_string(num);
  4421. res.set_redirect(url);
  4422. })
  4423. .Post("/binary",
  4424. [&](const Request &req, Response &res) {
  4425. EXPECT_EQ(4U, req.body.size());
  4426. EXPECT_EQ("application/octet-stream",
  4427. req.get_header_value("Content-Type"));
  4428. EXPECT_EQ("4", req.get_header_value("Content-Length"));
  4429. res.set_content(req.body, "application/octet-stream");
  4430. })
  4431. .Put("/binary",
  4432. [&](const Request &req, Response &res) {
  4433. EXPECT_EQ(4U, req.body.size());
  4434. EXPECT_EQ("application/octet-stream",
  4435. req.get_header_value("Content-Type"));
  4436. EXPECT_EQ("4", req.get_header_value("Content-Length"));
  4437. res.set_content(req.body, "application/octet-stream");
  4438. })
  4439. .Patch("/binary",
  4440. [&](const Request &req, Response &res) {
  4441. EXPECT_EQ(4U, req.body.size());
  4442. EXPECT_EQ("application/octet-stream",
  4443. req.get_header_value("Content-Type"));
  4444. EXPECT_EQ("4", req.get_header_value("Content-Length"));
  4445. res.set_content(req.body, "application/octet-stream");
  4446. })
  4447. .Delete("/binary",
  4448. [&](const Request &req, Response &res) {
  4449. EXPECT_EQ(4U, req.body.size());
  4450. EXPECT_EQ("application/octet-stream",
  4451. req.get_header_value("Content-Type"));
  4452. EXPECT_EQ("4", req.get_header_value("Content-Length"));
  4453. res.set_content(req.body, "application/octet-stream");
  4454. })
  4455. .Get("/issue1772",
  4456. [&](const Request & /*req*/, Response &res) {
  4457. res.status = 401;
  4458. res.set_header("WWW-Authenticate", "Basic realm=123456");
  4459. })
  4460. .Delete("/issue609",
  4461. [](const httplib::Request &, httplib::Response &res,
  4462. const httplib::ContentReader &) {
  4463. res.set_content("ok", "text/plain");
  4464. })
  4465. #if defined(CPPHTTPLIB_ZLIB_SUPPORT) || defined(CPPHTTPLIB_BROTLI_SUPPORT) || \
  4466. defined(CPPHTTPLIB_ZSTD_SUPPORT)
  4467. .Get("/compress",
  4468. [&](const Request & /*req*/, Response &res) {
  4469. res.set_content(
  4470. "12345678901234567890123456789012345678901234567890123456789"
  4471. "01234567890123456789012345678901234567890",
  4472. "text/plain");
  4473. })
  4474. .Get("/compress-with-charset",
  4475. [&](const Request & /*req*/, Response &res) {
  4476. res.set_content(
  4477. "12345678901234567890123456789012345678901234567890123456789"
  4478. "01234567890123456789012345678901234567890",
  4479. "application/json; charset=utf-8");
  4480. })
  4481. .Get("/nocompress",
  4482. [&](const Request & /*req*/, Response &res) {
  4483. res.set_content(
  4484. "12345678901234567890123456789012345678901234567890123456789"
  4485. "01234567890123456789012345678901234567890",
  4486. "application/octet-stream");
  4487. })
  4488. .Post("/compress-multipart",
  4489. [&](const Request &req, Response & /*res*/) {
  4490. EXPECT_EQ(2u, req.form.fields.size());
  4491. ASSERT_TRUE(!req.form.has_field("???"));
  4492. {
  4493. const auto &text = req.form.get_field("key1");
  4494. EXPECT_EQ("test", text);
  4495. }
  4496. {
  4497. const auto &text = req.form.get_field("key2");
  4498. EXPECT_EQ("--abcdefg123", text);
  4499. }
  4500. })
  4501. #endif
  4502. ;
  4503. persons_["john"] = "programmer";
  4504. t_ = thread([&]() { ASSERT_TRUE(svr_.listen(HOST, PORT)); });
  4505. svr_.wait_until_ready();
  4506. }
  4507. virtual void TearDown() {
  4508. svr_.stop();
  4509. if (!request_threads_.empty()) {
  4510. std::this_thread::sleep_for(std::chrono::seconds(1));
  4511. for (auto &t : request_threads_) {
  4512. t.join();
  4513. }
  4514. }
  4515. t_.join();
  4516. }
  4517. map<string, string> persons_;
  4518. #ifdef CPPHTTPLIB_SSL_ENABLED
  4519. SSLClient cli_;
  4520. SSLServer svr_;
  4521. #else
  4522. Client cli_;
  4523. Server svr_;
  4524. #endif
  4525. thread t_;
  4526. std::vector<thread> request_threads_;
  4527. };
  4528. TEST_F(ServerTest, GetMethod200) {
  4529. auto res = cli_.Get("/hi");
  4530. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4531. EXPECT_EQ("HTTP/1.1", res->version);
  4532. EXPECT_EQ(StatusCode::OK_200, res->status);
  4533. EXPECT_EQ("OK", res->reason);
  4534. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4535. EXPECT_EQ(1U, res->get_header_value_count("Content-Type"));
  4536. EXPECT_EQ("Hello World!", res->body);
  4537. }
  4538. TEST_F(ServerTest, GetEmptyFile) {
  4539. auto res = cli_.Get("/empty_file");
  4540. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4541. EXPECT_EQ(StatusCode::OK_200, res->status);
  4542. EXPECT_EQ("application/octet-stream", res->get_header_value("Content-Type"));
  4543. EXPECT_EQ(0, std::stoi(res->get_header_value("Content-Length")));
  4544. EXPECT_EQ("", res->body);
  4545. }
  4546. TEST_F(ServerTest, GetFileContent) {
  4547. auto res = cli_.Get("/file_content");
  4548. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4549. EXPECT_EQ(StatusCode::OK_200, res->status);
  4550. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4551. EXPECT_EQ(9, std::stoi(res->get_header_value("Content-Length")));
  4552. EXPECT_EQ("test.html", res->body);
  4553. }
  4554. TEST_F(ServerTest, GetFileContentWithRange) {
  4555. auto res = cli_.Get("/file_content", Headers{{make_range_header({{1, 3}})}});
  4556. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4557. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  4558. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4559. EXPECT_EQ("bytes 1-3/9", res->get_header_value("Content-Range"));
  4560. EXPECT_EQ(3, std::stoi(res->get_header_value("Content-Length")));
  4561. EXPECT_EQ("est", res->body);
  4562. }
  4563. TEST_F(ServerTest, GetFileContentWithContentType) {
  4564. auto res = cli_.Get("/file_content_with_content_type");
  4565. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4566. EXPECT_EQ(StatusCode::OK_200, res->status);
  4567. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4568. EXPECT_EQ(5, std::stoi(res->get_header_value("Content-Length")));
  4569. EXPECT_EQ("file\n", res->body);
  4570. }
  4571. TEST_F(ServerTest, GetInvalidFileContent) {
  4572. auto res = cli_.Get("/invalid_file_content");
  4573. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4574. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4575. }
  4576. TEST_F(ServerTest, GetMethod200withPercentEncoding) {
  4577. auto res = cli_.Get("/%68%69"); // auto res = cli_.Get("/hi");
  4578. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4579. EXPECT_EQ("HTTP/1.1", res->version);
  4580. EXPECT_EQ(StatusCode::OK_200, res->status);
  4581. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4582. EXPECT_EQ(1U, res->get_header_value_count("Content-Type"));
  4583. EXPECT_EQ("Hello World!", res->body);
  4584. }
  4585. TEST_F(ServerTest, GetMethod302) {
  4586. auto res = cli_.Get("/");
  4587. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4588. EXPECT_EQ(StatusCode::Found_302, res->status);
  4589. EXPECT_EQ("/hi", res->get_header_value("Location"));
  4590. }
  4591. TEST_F(ServerTest, GetMethod302Redirect) {
  4592. cli_.set_follow_location(true);
  4593. auto res = cli_.Get("/");
  4594. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4595. EXPECT_EQ(StatusCode::OK_200, res->status);
  4596. EXPECT_EQ("Hello World!", res->body);
  4597. EXPECT_EQ("/hi", res->location);
  4598. }
  4599. TEST_F(ServerTest, GetMethod404) {
  4600. auto res = cli_.Get("/invalid");
  4601. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4602. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4603. }
  4604. TEST_F(ServerTest, HeadMethod200) {
  4605. auto res = cli_.Head("/hi");
  4606. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4607. EXPECT_EQ(StatusCode::OK_200, res->status);
  4608. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4609. EXPECT_TRUE(res->body.empty());
  4610. }
  4611. TEST_F(ServerTest, HeadMethod200Static) {
  4612. auto res = cli_.Head("/mount/dir/index.html");
  4613. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4614. EXPECT_EQ(StatusCode::OK_200, res->status);
  4615. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4616. EXPECT_EQ(104, std::stoi(res->get_header_value("Content-Length")));
  4617. EXPECT_TRUE(res->body.empty());
  4618. }
  4619. TEST_F(ServerTest, HeadMethod404) {
  4620. auto res = cli_.Head("/invalid");
  4621. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4622. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4623. EXPECT_TRUE(res->body.empty());
  4624. }
  4625. TEST_F(ServerTest, GetMethodPersonJohn) {
  4626. auto res = cli_.Get("/person/john");
  4627. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4628. EXPECT_EQ(StatusCode::OK_200, res->status);
  4629. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4630. EXPECT_EQ("programmer", res->body);
  4631. }
  4632. TEST_F(ServerTest, PostMethod1) {
  4633. auto res = cli_.Get("/person/john1");
  4634. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4635. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4636. res = cli_.Post("/person", "name=john1&note=coder",
  4637. "application/x-www-form-urlencoded");
  4638. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4639. ASSERT_EQ(StatusCode::OK_200, res->status);
  4640. res = cli_.Get("/person/john1");
  4641. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4642. ASSERT_EQ(StatusCode::OK_200, res->status);
  4643. ASSERT_EQ("text/plain", res->get_header_value("Content-Type"));
  4644. ASSERT_EQ("coder", res->body);
  4645. }
  4646. TEST_F(ServerTest, PostMethod2) {
  4647. auto res = cli_.Get("/person/john2");
  4648. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4649. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4650. Params params;
  4651. params.emplace("name", "john2");
  4652. params.emplace("note", "coder");
  4653. res = cli_.Post("/person", params);
  4654. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4655. ASSERT_EQ(StatusCode::OK_200, res->status);
  4656. res = cli_.Get("/person/john2");
  4657. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4658. ASSERT_EQ(StatusCode::OK_200, res->status);
  4659. ASSERT_EQ("text/plain", res->get_header_value("Content-Type"));
  4660. ASSERT_EQ("coder", res->body);
  4661. }
  4662. TEST_F(ServerTest, PutMethod3) {
  4663. auto res = cli_.Get("/person/john3");
  4664. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4665. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4666. Params params;
  4667. params.emplace("name", "john3");
  4668. params.emplace("note", "coder");
  4669. res = cli_.Put("/person", params);
  4670. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4671. ASSERT_EQ(StatusCode::OK_200, res->status);
  4672. res = cli_.Get("/person/john3");
  4673. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4674. ASSERT_EQ(StatusCode::OK_200, res->status);
  4675. ASSERT_EQ("text/plain", res->get_header_value("Content-Type"));
  4676. ASSERT_EQ("coder", res->body);
  4677. }
  4678. TEST_F(ServerTest, DeleteMethod1) {
  4679. auto res = cli_.Get("/person/john4");
  4680. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4681. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4682. Params params;
  4683. params.emplace("name", "john4");
  4684. params.emplace("note", "coder");
  4685. res = cli_.Post("/person", params);
  4686. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4687. ASSERT_EQ(StatusCode::OK_200, res->status);
  4688. res = cli_.Get("/person/john4");
  4689. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4690. ASSERT_EQ(StatusCode::OK_200, res->status);
  4691. ASSERT_EQ("text/plain", res->get_header_value("Content-Type"));
  4692. ASSERT_EQ("coder", res->body);
  4693. Params delete_params;
  4694. delete_params.emplace("name", "john4");
  4695. res = cli_.Delete("/person", delete_params);
  4696. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4697. ASSERT_EQ(StatusCode::OK_200, res->status);
  4698. ASSERT_EQ("DELETED", res->body);
  4699. res = cli_.Get("/person/john4");
  4700. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4701. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4702. }
  4703. TEST_F(ServerTest, DeleteMethod2) {
  4704. auto res = cli_.Get("/person/john5");
  4705. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4706. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4707. Params params;
  4708. params.emplace("name", "john5");
  4709. params.emplace("note", "developer");
  4710. res = cli_.Post("/person", params);
  4711. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4712. ASSERT_EQ(StatusCode::OK_200, res->status);
  4713. res = cli_.Get("/person/john5");
  4714. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4715. ASSERT_EQ(StatusCode::OK_200, res->status);
  4716. ASSERT_EQ("text/plain", res->get_header_value("Content-Type"));
  4717. ASSERT_EQ("developer", res->body);
  4718. Params delete_params;
  4719. delete_params.emplace("name", "john5");
  4720. Headers headers;
  4721. headers.emplace("Custom-Header", "test-value");
  4722. res = cli_.Delete("/person", headers, delete_params);
  4723. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4724. ASSERT_EQ(StatusCode::OK_200, res->status);
  4725. ASSERT_EQ("DELETED", res->body);
  4726. res = cli_.Get("/person/john5");
  4727. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4728. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4729. }
  4730. TEST_F(ServerTest, DeleteMethod3) {
  4731. auto res = cli_.Get("/person/john6");
  4732. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4733. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4734. Params params;
  4735. params.emplace("name", "john6");
  4736. params.emplace("note", "tester");
  4737. res = cli_.Post("/person", params);
  4738. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4739. ASSERT_EQ(StatusCode::OK_200, res->status);
  4740. res = cli_.Get("/person/john6");
  4741. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4742. ASSERT_EQ(StatusCode::OK_200, res->status);
  4743. ASSERT_EQ("text/plain", res->get_header_value("Content-Type"));
  4744. ASSERT_EQ("tester", res->body);
  4745. Params delete_params;
  4746. delete_params.emplace("name", "john6");
  4747. Headers headers;
  4748. headers.emplace("Custom-Header", "test-value");
  4749. res = cli_.Delete("/person", headers, delete_params, nullptr);
  4750. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4751. ASSERT_EQ(StatusCode::OK_200, res->status);
  4752. ASSERT_EQ("DELETED", res->body);
  4753. res = cli_.Get("/person/john6");
  4754. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4755. ASSERT_EQ(StatusCode::NotFound_404, res->status);
  4756. }
  4757. TEST_F(ServerTest, PostWwwFormUrlEncodedJson) {
  4758. Params params;
  4759. params.emplace("json", JSON_DATA);
  4760. auto res = cli_.Post("/x-www-form-urlencoded-json", params);
  4761. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4762. ASSERT_EQ(StatusCode::OK_200, res->status);
  4763. ASSERT_EQ(JSON_DATA, res->body);
  4764. }
  4765. TEST_F(ServerTest, PostEmptyContent) {
  4766. auto res = cli_.Post("/empty", "", "text/plain");
  4767. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4768. ASSERT_EQ(StatusCode::OK_200, res->status);
  4769. ASSERT_EQ("empty", res->body);
  4770. }
  4771. TEST_F(ServerTest, PostEmptyContentWithNoContentType) {
  4772. auto res = cli_.Post("/empty-no-content-type");
  4773. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4774. ASSERT_EQ(StatusCode::OK_200, res->status);
  4775. ASSERT_EQ("empty-no-content-type", res->body);
  4776. }
  4777. TEST_F(ServerTest, PostPathOnly) {
  4778. auto res = cli_.Post("/path-only");
  4779. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4780. ASSERT_EQ(StatusCode::OK_200, res->status);
  4781. ASSERT_EQ("path-only", res->body);
  4782. }
  4783. TEST_F(ServerTest, PostPathAndHeadersOnly) {
  4784. auto res = cli_.Post("/path-headers-only",
  4785. Headers({{"hello", "world"}, {"hello2", "world2"}}));
  4786. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4787. ASSERT_EQ(StatusCode::OK_200, res->status);
  4788. ASSERT_EQ("path-headers-only", res->body);
  4789. }
  4790. TEST_F(ServerTest, PostLarge) {
  4791. auto res = cli_.Post("/post-large", LARGE_DATA, "text/plain");
  4792. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4793. ASSERT_EQ(StatusCode::OK_200, res->status);
  4794. EXPECT_EQ(LARGE_DATA, res->body);
  4795. }
  4796. TEST_F(ServerTest, PutEmptyContentWithNoContentType) {
  4797. auto res = cli_.Put("/empty-no-content-type");
  4798. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4799. ASSERT_EQ(StatusCode::OK_200, res->status);
  4800. ASSERT_EQ("empty-no-content-type", res->body);
  4801. }
  4802. TEST_F(ServerTest, GetMethodDir) {
  4803. auto res = cli_.Get("/dir/");
  4804. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4805. EXPECT_EQ(StatusCode::OK_200, res->status);
  4806. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4807. auto body = R"(<html>
  4808. <head>
  4809. </head>
  4810. <body>
  4811. <a href="/dir/test.html">Test</a>
  4812. <a href="/hi">hi</a>
  4813. </body>
  4814. </html>
  4815. )";
  4816. EXPECT_EQ(body, res->body);
  4817. }
  4818. TEST_F(ServerTest, GetMethodDirTest) {
  4819. auto res = cli_.Get("/dir/test.html");
  4820. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4821. EXPECT_EQ(StatusCode::OK_200, res->status);
  4822. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4823. EXPECT_EQ("test.html", res->body);
  4824. }
  4825. TEST_F(ServerTest, GetMethodDirTestWithDoubleDots) {
  4826. auto res = cli_.Get("/dir/../dir/test.html");
  4827. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4828. EXPECT_EQ(StatusCode::OK_200, res->status);
  4829. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4830. EXPECT_EQ("test.html", res->body);
  4831. }
  4832. TEST_F(ServerTest, GetMethodInvalidPath) {
  4833. auto res = cli_.Get("/dir/../test.html");
  4834. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4835. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4836. }
  4837. TEST_F(ServerTest, GetMethodOutOfBaseDir) {
  4838. auto res = cli_.Get("/../www/dir/test.html");
  4839. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4840. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4841. }
  4842. TEST_F(ServerTest, GetMethodOutOfBaseDir2) {
  4843. auto res = cli_.Get("/dir/../../www/dir/test.html");
  4844. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4845. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4846. }
  4847. TEST_F(ServerTest, GetMethodDirMountTest) {
  4848. auto res = cli_.Get("/mount/dir/test.html");
  4849. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4850. EXPECT_EQ(StatusCode::OK_200, res->status);
  4851. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4852. EXPECT_EQ("test.html", res->body);
  4853. }
  4854. TEST_F(ServerTest, GetMethodDirMountTestWithDoubleDots) {
  4855. auto res = cli_.Get("/mount/dir/../dir/test.html");
  4856. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4857. EXPECT_EQ(StatusCode::OK_200, res->status);
  4858. EXPECT_EQ("text/html", res->get_header_value("Content-Type"));
  4859. EXPECT_EQ("test.html", res->body);
  4860. }
  4861. TEST_F(ServerTest, GetMethodInvalidMountPath) {
  4862. auto res = cli_.Get("/mount/dir/../test.html");
  4863. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4864. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4865. }
  4866. TEST_F(ServerTest, GetMethodEmbeddedNUL) {
  4867. auto res = cli_.Get("/mount/dir/test.html%00.js");
  4868. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4869. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4870. }
  4871. TEST_F(ServerTest, GetMethodOutOfBaseDirMount) {
  4872. auto res = cli_.Get("/mount/../www2/dir/test.html");
  4873. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4874. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4875. }
  4876. TEST_F(ServerTest, GetMethodOutOfBaseDirMount2) {
  4877. auto res = cli_.Get("/mount/dir/../../www2/dir/test.html");
  4878. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4879. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4880. }
  4881. TEST_F(ServerTest, GetMethodOutOfBaseDirMountWithBackslash) {
  4882. auto res = cli_.Get("/mount/%2e%2e%5c/www2/dir/test.html");
  4883. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4884. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  4885. }
  4886. TEST_F(ServerTest, PostMethod303) {
  4887. auto res = cli_.Post("/1", "body", "text/plain");
  4888. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4889. EXPECT_EQ(StatusCode::SeeOther_303, res->status);
  4890. EXPECT_EQ("/2", res->get_header_value("Location"));
  4891. }
  4892. TEST_F(ServerTest, PostMethod303Redirect) {
  4893. cli_.set_follow_location(true);
  4894. auto res = cli_.Post("/1", "body", "text/plain");
  4895. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4896. EXPECT_EQ(StatusCode::OK_200, res->status);
  4897. EXPECT_EQ("redirected.", res->body);
  4898. EXPECT_EQ("/2", res->location);
  4899. }
  4900. TEST_F(ServerTest, UserDefinedMIMETypeMapping) {
  4901. auto res = cli_.Get("/dir/test.abcde");
  4902. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4903. EXPECT_EQ(StatusCode::OK_200, res->status);
  4904. EXPECT_EQ("text/abcde", res->get_header_value("Content-Type"));
  4905. EXPECT_EQ("abcde", res->body);
  4906. }
  4907. TEST_F(ServerTest, StaticFileRange) {
  4908. auto res =
  4909. cli_.Get("/dir/test.abcde", Headers{{make_range_header({{2, 3}})}});
  4910. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4911. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  4912. EXPECT_EQ("text/abcde", res->get_header_value("Content-Type"));
  4913. EXPECT_EQ("2", res->get_header_value("Content-Length"));
  4914. EXPECT_EQ(true, res->has_header("Content-Range"));
  4915. EXPECT_EQ("bytes 2-3/5", res->get_header_value("Content-Range"));
  4916. EXPECT_EQ(std::string("cd"), res->body);
  4917. }
  4918. TEST_F(ServerTest, StaticFileRanges) {
  4919. auto res = cli_.Get("/dir/test.abcde",
  4920. Headers{{make_range_header({{1, 2}, {4, -1}})}});
  4921. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4922. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  4923. EXPECT_TRUE(
  4924. res->get_header_value("Content-Type")
  4925. .find(
  4926. "multipart/byteranges; boundary=--cpp-httplib-multipart-data-") ==
  4927. 0);
  4928. EXPECT_EQ("266", res->get_header_value("Content-Length"));
  4929. }
  4930. TEST_F(ServerTest, StaticFileRangeHead) {
  4931. auto res = cli_.Head("/dir/test.abcde", {{make_range_header({{2, 3}})}});
  4932. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4933. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  4934. EXPECT_EQ("text/abcde", res->get_header_value("Content-Type"));
  4935. EXPECT_EQ("2", res->get_header_value("Content-Length"));
  4936. EXPECT_EQ(true, res->has_header("Content-Range"));
  4937. EXPECT_EQ("bytes 2-3/5", res->get_header_value("Content-Range"));
  4938. }
  4939. TEST_F(ServerTest, StaticFileRangeBigFile) {
  4940. auto res = cli_.Get("/dir/1MB.txt", Headers{{make_range_header({{-1, 5}})}});
  4941. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4942. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  4943. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4944. EXPECT_EQ("5", res->get_header_value("Content-Length"));
  4945. EXPECT_EQ(true, res->has_header("Content-Range"));
  4946. EXPECT_EQ("bytes 1048571-1048575/1048576",
  4947. res->get_header_value("Content-Range"));
  4948. EXPECT_EQ("LAST\n", res->body);
  4949. }
  4950. TEST_F(ServerTest, StaticFileRangeBigFile2) {
  4951. auto res =
  4952. cli_.Get("/dir/1MB.txt", Headers{{make_range_header({{1, 4097}})}});
  4953. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4954. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  4955. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4956. EXPECT_EQ("4097", res->get_header_value("Content-Length"));
  4957. EXPECT_EQ(true, res->has_header("Content-Range"));
  4958. EXPECT_EQ("bytes 1-4097/1048576", res->get_header_value("Content-Range"));
  4959. }
  4960. TEST_F(ServerTest, StaticFileBigFile) {
  4961. auto res = cli_.Get("/dir/1MB.txt");
  4962. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4963. EXPECT_EQ(StatusCode::OK_200, res->status);
  4964. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  4965. EXPECT_EQ("1048576", res->get_header_value("Content-Length"));
  4966. }
  4967. TEST_F(ServerTest, InvalidBaseDirMount) {
  4968. EXPECT_EQ(false, svr_.set_mount_point("invalid_mount_point", "./www3"));
  4969. }
  4970. TEST_F(ServerTest, Binary) {
  4971. std::vector<char> binary{0x00, 0x01, 0x02, 0x03};
  4972. auto res = cli_.Post("/binary", binary.data(), binary.size(),
  4973. "application/octet-stream");
  4974. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4975. ASSERT_EQ(StatusCode::OK_200, res->status);
  4976. ASSERT_EQ(4U, res->body.size());
  4977. res = cli_.Put("/binary", binary.data(), binary.size(),
  4978. "application/octet-stream");
  4979. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4980. ASSERT_EQ(StatusCode::OK_200, res->status);
  4981. ASSERT_EQ(4U, res->body.size());
  4982. res = cli_.Patch("/binary", binary.data(), binary.size(),
  4983. "application/octet-stream");
  4984. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4985. ASSERT_EQ(StatusCode::OK_200, res->status);
  4986. ASSERT_EQ(4U, res->body.size());
  4987. res = cli_.Delete("/binary", binary.data(), binary.size(),
  4988. "application/octet-stream");
  4989. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4990. ASSERT_EQ(StatusCode::OK_200, res->status);
  4991. ASSERT_EQ(4U, res->body.size());
  4992. }
  4993. TEST_F(ServerTest, BinaryString) {
  4994. auto binary = std::string("\x00\x01\x02\x03", 4);
  4995. auto res = cli_.Post("/binary", binary, "application/octet-stream");
  4996. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  4997. ASSERT_EQ(StatusCode::OK_200, res->status);
  4998. ASSERT_EQ(4U, res->body.size());
  4999. res = cli_.Put("/binary", binary, "application/octet-stream");
  5000. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5001. ASSERT_EQ(StatusCode::OK_200, res->status);
  5002. ASSERT_EQ(4U, res->body.size());
  5003. res = cli_.Patch("/binary", binary, "application/octet-stream");
  5004. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5005. ASSERT_EQ(StatusCode::OK_200, res->status);
  5006. ASSERT_EQ(4U, res->body.size());
  5007. res = cli_.Delete("/binary", binary, "application/octet-stream");
  5008. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5009. ASSERT_EQ(StatusCode::OK_200, res->status);
  5010. ASSERT_EQ(4U, res->body.size());
  5011. }
  5012. TEST_F(ServerTest, EmptyRequest) {
  5013. auto res = cli_.Get("");
  5014. ASSERT_TRUE(!res);
  5015. EXPECT_EQ(Error::Connection, res.error());
  5016. }
  5017. TEST_F(ServerTest, LongRequest) {
  5018. std::string request;
  5019. for (size_t i = 0; i < 545; i++) {
  5020. request += "/TooLongRequest";
  5021. }
  5022. request += "OK";
  5023. auto res = cli_.Get(request.c_str());
  5024. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5025. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  5026. }
  5027. TEST_F(ServerTest, TooLongRequest) {
  5028. std::string request;
  5029. for (size_t i = 0; i < 546; i++) {
  5030. request += "/TooLongRequest";
  5031. }
  5032. request += "_NG";
  5033. auto start = std::chrono::high_resolution_clock::now();
  5034. cli_.set_keep_alive(true);
  5035. auto res = cli_.Get(request.c_str());
  5036. auto end = std::chrono::high_resolution_clock::now();
  5037. auto elapsed =
  5038. std::chrono::duration_cast<std::chrono::milliseconds>(end - start)
  5039. .count();
  5040. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5041. EXPECT_EQ(StatusCode::UriTooLong_414, res->status);
  5042. EXPECT_LE(elapsed, 1000);
  5043. EXPECT_EQ("close", res->get_header_value("Connection"));
  5044. EXPECT_FALSE(cli_.is_socket_open());
  5045. }
  5046. TEST_F(ServerTest, AlmostTooLongRequest) {
  5047. // test for #2046 - URI length check shouldn't include other content on req
  5048. // line URI is max URI length, minus 14 other chars in req line (GET, space,
  5049. // leading /, space, HTTP/1.1)
  5050. std::string request =
  5051. "/" + string(CPPHTTPLIB_REQUEST_URI_MAX_LENGTH - 14, 'A');
  5052. auto res = cli_.Get(request.c_str());
  5053. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5054. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  5055. }
  5056. TEST_F(ServerTest, LongHeader) {
  5057. Request req;
  5058. req.method = "GET";
  5059. req.path = "/hi";
  5060. std::string host_and_port;
  5061. host_and_port += HOST;
  5062. host_and_port += ":";
  5063. host_and_port += std::to_string(PORT);
  5064. req.headers.emplace("Host", host_and_port.c_str());
  5065. req.headers.emplace("Accept", "*/*");
  5066. req.headers.emplace("User-Agent", "cpp-httplib/0.1");
  5067. req.headers.emplace(
  5068. "Header-Name",
  5069. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5070. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5071. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5072. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5073. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5074. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5075. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5076. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5077. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5078. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5079. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5080. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5081. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5082. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5083. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5084. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5085. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5086. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5087. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5088. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5089. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5090. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5091. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5092. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5093. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5094. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5095. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5096. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5097. "@@@@@@@@@@@@@@@@");
  5098. auto res = std::make_shared<Response>();
  5099. auto error = Error::Success;
  5100. auto ret = cli_.send(req, *res, error);
  5101. ASSERT_TRUE(ret);
  5102. EXPECT_EQ(StatusCode::OK_200, res->status);
  5103. }
  5104. TEST_F(ServerTest, LongQueryValue) {
  5105. auto start = std::chrono::high_resolution_clock::now();
  5106. cli_.set_keep_alive(true);
  5107. auto res = cli_.Get(LONG_QUERY_URL.c_str());
  5108. auto end = std::chrono::high_resolution_clock::now();
  5109. auto elapsed =
  5110. std::chrono::duration_cast<std::chrono::milliseconds>(end - start)
  5111. .count();
  5112. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5113. EXPECT_EQ(StatusCode::UriTooLong_414, res->status);
  5114. EXPECT_LE(elapsed, 1000);
  5115. EXPECT_EQ("close", res->get_header_value("Connection"));
  5116. EXPECT_FALSE(cli_.is_socket_open());
  5117. }
  5118. TEST_F(ServerTest, TooLongQueryValue) {
  5119. auto res = cli_.Get(TOO_LONG_QUERY_URL.c_str());
  5120. ASSERT_FALSE(res);
  5121. EXPECT_EQ(Error::Read, res.error());
  5122. }
  5123. TEST_F(ServerTest, TooLongHeader) {
  5124. Request req;
  5125. req.method = "GET";
  5126. req.path = "/hi";
  5127. std::string host_and_port;
  5128. host_and_port += HOST;
  5129. host_and_port += ":";
  5130. host_and_port += std::to_string(PORT);
  5131. req.headers.emplace("Host", host_and_port.c_str());
  5132. req.headers.emplace("Accept", "*/*");
  5133. req.headers.emplace("User-Agent", "cpp-httplib/0.1");
  5134. req.headers.emplace(
  5135. "Header-Name",
  5136. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5137. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5138. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5139. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5140. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5141. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5142. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5143. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5144. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5145. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5146. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5147. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5148. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5149. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5150. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5151. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5152. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5153. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5154. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5155. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5156. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5157. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5158. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5159. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5160. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5161. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5162. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5163. "@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@@"
  5164. "@@@@@@@@@@@@@@@@@");
  5165. auto res = std::make_shared<Response>();
  5166. auto error = Error::Success;
  5167. auto ret = cli_.send(req, *res, error);
  5168. ASSERT_TRUE(ret);
  5169. EXPECT_EQ(StatusCode::OK_200, res->status);
  5170. }
  5171. TEST_F(ServerTest, HeaderCountAtLimit) {
  5172. // Test with headers just under the 100 limit
  5173. httplib::Headers headers;
  5174. // Add 95 custom headers (the client will add Host, User-Agent, Accept, etc.)
  5175. // This should keep us just under the 100 header limit
  5176. for (int i = 0; i < 95; i++) {
  5177. std::string name = "X-Test-Header-" + std::to_string(i);
  5178. std::string value = "value" + std::to_string(i);
  5179. headers.emplace(name, value);
  5180. }
  5181. // This should work fine as we're under the limit
  5182. auto res = cli_.Get("/hi", headers);
  5183. EXPECT_TRUE(res);
  5184. if (res) { EXPECT_EQ(StatusCode::OK_200, res->status); }
  5185. }
  5186. TEST_F(ServerTest, HeaderCountExceedsLimit) {
  5187. // Test with many headers to exceed the 100 limit
  5188. httplib::Headers headers;
  5189. // Add 150 headers to definitely exceed the 100 limit
  5190. for (int i = 0; i < 150; i++) {
  5191. std::string name = "X-Test-Header-" + std::to_string(i);
  5192. std::string value = "value" + std::to_string(i);
  5193. headers.emplace(name, value);
  5194. }
  5195. // This should fail due to exceeding header count limit
  5196. cli_.set_keep_alive(true);
  5197. auto res = cli_.Get("/hi", headers);
  5198. // The server should respond with 400 Bad Request
  5199. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5200. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  5201. EXPECT_EQ("close", res->get_header_value("Connection"));
  5202. EXPECT_FALSE(cli_.is_socket_open());
  5203. }
  5204. TEST_F(ServerTest, PercentEncoding) {
  5205. auto res = cli_.Get("/e%6edwith%");
  5206. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5207. EXPECT_EQ(StatusCode::OK_200, res->status);
  5208. }
  5209. TEST_F(ServerTest, PercentEncodingUnicode) {
  5210. auto res = cli_.Get("/e%u006edwith%");
  5211. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5212. EXPECT_EQ(StatusCode::OK_200, res->status);
  5213. }
  5214. TEST_F(ServerTest, InvalidPercentEncoding) {
  5215. auto res = cli_.Get("/%endwith%");
  5216. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5217. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  5218. }
  5219. TEST_F(ServerTest, InvalidPercentEncodingUnicode) {
  5220. auto res = cli_.Get("/%uendwith%");
  5221. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5222. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  5223. }
  5224. TEST_F(ServerTest, EndWithPercentCharacterInQuery) {
  5225. auto res = cli_.Get("/hello?aaa=bbb%");
  5226. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5227. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  5228. }
  5229. TEST_F(ServerTest, PlusSignEncoding) {
  5230. auto res = cli_.Get("/a+%2Bb?a %2bb=a %2Bb");
  5231. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5232. EXPECT_EQ(StatusCode::OK_200, res->status);
  5233. EXPECT_EQ("a +b", res->body);
  5234. }
  5235. TEST_F(ServerTest, HeaderCountSecurityTest) {
  5236. // This test simulates a potential DoS attack using many headers
  5237. // to verify our security fix prevents memory exhaustion
  5238. httplib::Headers attack_headers;
  5239. // Attempt to add many headers like an attacker would (200 headers to far
  5240. // exceed limit)
  5241. for (int i = 0; i < 200; i++) {
  5242. std::string name = "X-Attack-Header-" + std::to_string(i);
  5243. std::string value = "attack_payload_" + std::to_string(i);
  5244. attack_headers.emplace(name, value);
  5245. }
  5246. // Try to POST with excessive headers
  5247. cli_.set_keep_alive(true);
  5248. auto res = cli_.Post("/", attack_headers, "test_data", "text/plain");
  5249. // Should either fail or return 400 Bad Request due to security limit
  5250. if (res) {
  5251. // If we get a response, it should be 400 Bad Request
  5252. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  5253. EXPECT_EQ("close", res->get_header_value("Connection"));
  5254. }
  5255. EXPECT_FALSE(cli_.is_socket_open());
  5256. }
  5257. TEST_F(ServerTest, MultipartFormData) {
  5258. UploadFormDataItems items = {
  5259. {"text1", "text default", "", ""},
  5260. {"text2", "aωb", "", ""},
  5261. {"file1", "h\ne\n\nl\nl\no\n", "hello.txt", "text/plain"},
  5262. {"file2", "{\n \"world\", true\n}\n", "world.json", "application/json"},
  5263. {"file3", "", "", "application/octet-stream"},
  5264. {"file4", "", "", " application/json tmp-string "}};
  5265. auto res = cli_.Post("/multipart", items);
  5266. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5267. EXPECT_EQ(StatusCode::OK_200, res->status);
  5268. }
  5269. TEST_F(ServerTest, MultipartFormDataMultiFileValues) {
  5270. UploadFormDataItems items = {
  5271. {"text", "default text", "", ""},
  5272. {"multi_text1", "aaaaa", "", ""},
  5273. {"multi_text1", "bbbbb", "", ""},
  5274. {"multi_file1", "h\ne\n\nl\nl\no\n", "hello.txt", "text/plain"},
  5275. {"multi_file1", "{\n \"world\", true\n}\n", "world.json",
  5276. "application/json"},
  5277. };
  5278. auto res = cli_.Post("/multipart/multi_file_values", items);
  5279. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5280. EXPECT_EQ(StatusCode::OK_200, res->status);
  5281. }
  5282. TEST_F(ServerTest, CaseInsensitiveHeaderName) {
  5283. auto res = cli_.Get("/hi");
  5284. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5285. EXPECT_EQ(StatusCode::OK_200, res->status);
  5286. EXPECT_EQ("text/plain", res->get_header_value("content-type"));
  5287. EXPECT_EQ("Hello World!", res->body);
  5288. }
  5289. TEST_F(ServerTest, CaseInsensitiveTransferEncoding) {
  5290. Request req;
  5291. req.method = "POST";
  5292. req.path = "/chunked";
  5293. std::string host_and_port;
  5294. host_and_port += HOST;
  5295. host_and_port += ":";
  5296. host_and_port += std::to_string(PORT);
  5297. req.headers.emplace("Host", host_and_port.c_str());
  5298. req.headers.emplace("Accept", "*/*");
  5299. req.headers.emplace("User-Agent", "cpp-httplib/0.1");
  5300. req.headers.emplace("Content-Type", "text/plain");
  5301. req.headers.emplace("Content-Length", "0");
  5302. req.headers.emplace(
  5303. "Transfer-Encoding",
  5304. "Chunked"); // Note, "Chunked" rather than typical "chunked".
  5305. // Client does not chunk, so make a chunked body manually.
  5306. req.body = "4\r\ndech\r\nf\r\nunked post body\r\n0\r\n\r\n";
  5307. auto res = std::make_shared<Response>();
  5308. auto error = Error::Success;
  5309. auto ret = cli_.send(req, *res, error);
  5310. ASSERT_TRUE(ret);
  5311. EXPECT_EQ(StatusCode::OK_200, res->status);
  5312. }
  5313. // GHSA-h6wq-j5mv-f3q8: the server must reject malformed chunk-size lines
  5314. // rather than treat them as valid lengths.
  5315. template <typename ClientT>
  5316. static void expect_chunked_body_rejected(ClientT &cli, const char *body) {
  5317. Request req;
  5318. req.method = "POST";
  5319. req.path = "/chunked";
  5320. std::string host_and_port;
  5321. host_and_port += HOST;
  5322. host_and_port += ":";
  5323. host_and_port += std::to_string(PORT);
  5324. req.headers.emplace("Host", host_and_port.c_str());
  5325. req.headers.emplace("Content-Length", "0");
  5326. req.headers.emplace("Transfer-Encoding", "chunked");
  5327. req.body = body;
  5328. auto res = std::make_shared<Response>();
  5329. auto error = Error::Success;
  5330. ASSERT_TRUE(cli.send(req, *res, error));
  5331. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  5332. }
  5333. TEST_F(ServerTest, RejectsNegativeChunkSize) {
  5334. expect_chunked_body_rejected(cli_, "-2\r\nAAAA\r\n0\r\n\r\n");
  5335. }
  5336. TEST_F(ServerTest, RejectsChunkSizeWithLeadingPlus) {
  5337. expect_chunked_body_rejected(
  5338. cli_, "+4\r\ndech\r\nf\r\nunked post body\r\n0\r\n\r\n");
  5339. }
  5340. TEST_F(ServerTest, GetStreamed2) {
  5341. auto res = cli_.Get("/streamed", Headers{{make_range_header({{2, 3}})}});
  5342. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5343. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5344. EXPECT_EQ("2", res->get_header_value("Content-Length"));
  5345. EXPECT_EQ(true, res->has_header("Content-Range"));
  5346. EXPECT_EQ("bytes 2-3/6", res->get_header_value("Content-Range"));
  5347. EXPECT_EQ(std::string("ab"), res->body);
  5348. }
  5349. TEST_F(ServerTest, GetStreamed) {
  5350. auto res = cli_.Get("/streamed");
  5351. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5352. EXPECT_EQ(StatusCode::OK_200, res->status);
  5353. EXPECT_EQ("6", res->get_header_value("Content-Length"));
  5354. EXPECT_EQ(std::string("aaabbb"), res->body);
  5355. }
  5356. TEST_F(ServerTest, GetStreamedWithoutLengthWithRange) {
  5357. auto res = cli_.Get("/streamed-without-length",
  5358. Headers{make_range_header({{0, -1}})});
  5359. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5360. EXPECT_EQ(StatusCode::OK_200, res->status);
  5361. EXPECT_EQ(false, res->has_header("Content-Length"));
  5362. EXPECT_EQ(false, res->has_header("Content-Range"));
  5363. EXPECT_EQ(std::string("abcdefg"), res->body);
  5364. }
  5365. TEST_F(ServerTest, GetStreamedWithRange1) {
  5366. auto res =
  5367. cli_.Get("/streamed-with-range", Headers{{make_range_header({{3, 5}})}});
  5368. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5369. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5370. EXPECT_EQ("3", res->get_header_value("Content-Length"));
  5371. EXPECT_EQ(true, res->has_header("Content-Range"));
  5372. EXPECT_EQ("bytes 3-5/7", res->get_header_value("Content-Range"));
  5373. EXPECT_EQ(std::string("def"), res->body);
  5374. }
  5375. TEST_F(ServerTest, GetStreamedWithRange2) {
  5376. auto res =
  5377. cli_.Get("/streamed-with-range", Headers{{make_range_header({{1, -1}})}});
  5378. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5379. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5380. EXPECT_EQ("6", res->get_header_value("Content-Length"));
  5381. EXPECT_EQ(true, res->has_header("Content-Range"));
  5382. EXPECT_EQ("bytes 1-6/7", res->get_header_value("Content-Range"));
  5383. EXPECT_EQ(std::string("bcdefg"), res->body);
  5384. }
  5385. TEST_F(ServerTest, GetStreamedWithRangeSuffix1) {
  5386. auto res = cli_.Get("/streamed-with-range", Headers{{"Range", "bytes=-3"}});
  5387. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5388. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5389. EXPECT_EQ("3", res->get_header_value("Content-Length"));
  5390. EXPECT_EQ(true, res->has_header("Content-Range"));
  5391. EXPECT_EQ("bytes 4-6/7", res->get_header_value("Content-Range"));
  5392. EXPECT_EQ(std::string("efg"), res->body);
  5393. }
  5394. TEST_F(ServerTest, GetStreamedWithRangeSuffix2) {
  5395. auto res =
  5396. cli_.Get("/streamed-with-range?error", Headers{{"Range", "bytes=-9999"}});
  5397. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5398. EXPECT_EQ(StatusCode::RangeNotSatisfiable_416, res->status);
  5399. EXPECT_EQ("0", res->get_header_value("Content-Length"));
  5400. EXPECT_EQ(false, res->has_header("Content-Range"));
  5401. EXPECT_EQ(0U, res->body.size());
  5402. }
  5403. TEST_F(ServerTest, GetStreamedWithRangeAndNonPartialStatus) {
  5404. // Only a 206 is served as a partial representation. Under any other status
  5405. // `apply_ranges()` reported the full content length, so the body must match
  5406. // that header, and the content provider must never be asked for an offset
  5407. // outside the representation.
  5408. auto check = [&](int status, const char *range) {
  5409. auto path =
  5410. std::string("/streamed-with-range?status=") + std::to_string(status);
  5411. auto ctx = path + " Range: " + range;
  5412. auto res = cli_.Get(path, Headers{{"Range", range}});
  5413. ASSERT_TRUE(res) << ctx << " Error: " << to_string(res.error());
  5414. EXPECT_EQ(status, res->status) << ctx;
  5415. EXPECT_EQ("7", res->get_header_value("Content-Length")) << ctx;
  5416. EXPECT_EQ("text/plain", res->get_header_value("Content-Type")) << ctx;
  5417. EXPECT_FALSE(res->has_header("Content-Range")) << ctx;
  5418. EXPECT_EQ(std::string("abcdefg"), res->body) << ctx;
  5419. };
  5420. // Non-2xx: `detail::range_error()` never validated these ranges at all.
  5421. check(403, "bytes=3-5");
  5422. // The offset is far past the representation.
  5423. check(403, "bytes=100000-100200");
  5424. // `first_pos` is still -1 here, and the bounds asserts in
  5425. // `get_range_offset_and_length()` are compiled out under NDEBUG.
  5426. check(403, "bytes=-3");
  5427. // `apply_ranges()` makes no boundary for a non-206 response, so the
  5428. // multipart branch would have written one that is empty.
  5429. check(403, "bytes=1-2, 4-5");
  5430. // 2xx but not 206: the ranges were validated, yet the Content-Length still
  5431. // covers the whole representation.
  5432. check(200, "bytes=3-5");
  5433. check(200, "bytes=1-2, 4-5");
  5434. }
  5435. TEST_F(ServerTest, GetStreamedWithRangeError) {
  5436. auto res =
  5437. cli_.Get("/streamed-with-range",
  5438. Headers{{"Range", "bytes=92233720368547758079223372036854775806-"
  5439. "92233720368547758079223372036854775807"}});
  5440. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5441. EXPECT_EQ(StatusCode::RangeNotSatisfiable_416, res->status);
  5442. EXPECT_EQ("0", res->get_header_value("Content-Length"));
  5443. EXPECT_EQ(false, res->has_header("Content-Range"));
  5444. EXPECT_EQ(0U, res->body.size());
  5445. }
  5446. TEST_F(ServerTest, GetRangeWithMaxLongLength) {
  5447. auto res = cli_.Get(
  5448. "/with-range",
  5449. Headers{{"Range",
  5450. "bytes=0-" + std::to_string(std::numeric_limits<long>::max())},
  5451. {"Accept-Encoding", ""}});
  5452. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5453. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5454. EXPECT_EQ("7", res->get_header_value("Content-Length"));
  5455. EXPECT_EQ(true, res->has_header("Content-Range"));
  5456. EXPECT_EQ("bytes 0-6/7", res->get_header_value("Content-Range"));
  5457. EXPECT_EQ(std::string("abcdefg"), res->body);
  5458. }
  5459. TEST_F(ServerTest, GetRangeWithZeroToInfinite) {
  5460. auto res = cli_.Get("/with-range", Headers{
  5461. {"Range", "bytes=0-"},
  5462. {"Accept-Encoding", ""},
  5463. });
  5464. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5465. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5466. EXPECT_EQ("7", res->get_header_value("Content-Length"));
  5467. EXPECT_EQ(true, res->has_header("Content-Range"));
  5468. EXPECT_EQ("bytes 0-6/7", res->get_header_value("Content-Range"));
  5469. EXPECT_EQ(std::string("abcdefg"), res->body);
  5470. }
  5471. TEST_F(ServerTest, GetStreamedWithRangeMultipart) {
  5472. auto res = cli_.Get("/streamed-with-range",
  5473. Headers{{make_range_header({{1, 2}, {4, 5}})}});
  5474. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5475. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5476. EXPECT_EQ("267", res->get_header_value("Content-Length"));
  5477. EXPECT_EQ(false, res->has_header("Content-Range"));
  5478. EXPECT_EQ(267U, res->body.size());
  5479. // Check that both range contents are present
  5480. EXPECT_TRUE(res->body.find("bc\r\n") != std::string::npos);
  5481. EXPECT_TRUE(res->body.find("ef\r\n") != std::string::npos);
  5482. // Check that Content-Range headers are present for both ranges
  5483. EXPECT_TRUE(res->body.find("Content-Range: bytes 1-2/7") !=
  5484. std::string::npos);
  5485. EXPECT_TRUE(res->body.find("Content-Range: bytes 4-5/7") !=
  5486. std::string::npos);
  5487. }
  5488. TEST_F(ServerTest, GetStreamedWithTooManyRanges) {
  5489. Ranges ranges;
  5490. for (size_t i = 0; i < CPPHTTPLIB_RANGE_MAX_COUNT + 1; i++) {
  5491. ranges.emplace_back(0, -1);
  5492. }
  5493. auto res = cli_.Get("/streamed-with-range?error",
  5494. Headers{{make_range_header(ranges)}});
  5495. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5496. EXPECT_EQ(StatusCode::RangeNotSatisfiable_416, res->status);
  5497. EXPECT_EQ("0", res->get_header_value("Content-Length"));
  5498. EXPECT_EQ(false, res->has_header("Content-Range"));
  5499. EXPECT_EQ(0U, res->body.size());
  5500. }
  5501. TEST_F(ServerTest, GetStreamedWithOverwrapping) {
  5502. auto res = cli_.Get("/streamed-with-range",
  5503. Headers{{make_range_header({{1, 4}, {2, 5}})}});
  5504. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5505. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5506. EXPECT_EQ(5U, res->body.size());
  5507. // Check that overlapping ranges are coalesced into a single range
  5508. EXPECT_EQ("bcdef", res->body);
  5509. EXPECT_EQ("bytes 1-5/7", res->get_header_value("Content-Range"));
  5510. // Should be single range, not multipart
  5511. EXPECT_TRUE(res->has_header("Content-Range"));
  5512. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  5513. }
  5514. TEST_F(ServerTest, GetStreamedWithNonAscendingRanges) {
  5515. auto res = cli_.Get("/streamed-with-range",
  5516. Headers{{make_range_header({{4, 5}, {0, 2}})}});
  5517. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5518. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5519. EXPECT_EQ(268U, res->body.size());
  5520. // Check that both range contents are present
  5521. EXPECT_TRUE(res->body.find("ef\r\n") != std::string::npos);
  5522. EXPECT_TRUE(res->body.find("abc\r\n") != std::string::npos);
  5523. // Check that Content-Range headers are present for both ranges
  5524. EXPECT_TRUE(res->body.find("Content-Range: bytes 4-5/7") !=
  5525. std::string::npos);
  5526. EXPECT_TRUE(res->body.find("Content-Range: bytes 0-2/7") !=
  5527. std::string::npos);
  5528. }
  5529. TEST_F(ServerTest, GetStreamedWithDuplicateRanges) {
  5530. auto res = cli_.Get("/streamed-with-range",
  5531. Headers{{make_range_header({{0, 2}, {0, 2}})}});
  5532. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5533. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5534. EXPECT_EQ(269U, res->body.size());
  5535. // Check that both duplicate range contents are present
  5536. size_t first_abc = res->body.find("abc\r\n");
  5537. EXPECT_TRUE(first_abc != std::string::npos);
  5538. size_t second_abc = res->body.find("abc\r\n", first_abc + 1);
  5539. EXPECT_TRUE(second_abc != std::string::npos);
  5540. // Check that Content-Range headers are present for both ranges
  5541. size_t first_range = res->body.find("Content-Range: bytes 0-2/7");
  5542. EXPECT_TRUE(first_range != std::string::npos);
  5543. size_t second_range =
  5544. res->body.find("Content-Range: bytes 0-2/7", first_range + 1);
  5545. EXPECT_TRUE(second_range != std::string::npos);
  5546. }
  5547. TEST_F(ServerTest, GetStreamedWithRangesMoreThanTwoOverwrapping) {
  5548. auto res =
  5549. cli_.Get("/streamed-with-range?error",
  5550. Headers{{make_range_header({{0, 1}, {1, 2}, {2, 3}, {3, 4}})}});
  5551. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5552. EXPECT_EQ(StatusCode::RangeNotSatisfiable_416, res->status);
  5553. EXPECT_EQ("0", res->get_header_value("Content-Length"));
  5554. EXPECT_EQ(false, res->has_header("Content-Range"));
  5555. EXPECT_EQ(0U, res->body.size());
  5556. }
  5557. TEST_F(ServerTest, GetStreamedEndless) {
  5558. uint64_t offset = 0;
  5559. auto res = cli_.Get("/streamed-cancel",
  5560. [&](const char * /*data*/, uint64_t data_length) {
  5561. if (offset < 100) {
  5562. offset += data_length;
  5563. return true;
  5564. }
  5565. return false;
  5566. });
  5567. ASSERT_TRUE(!res);
  5568. EXPECT_EQ(Error::Canceled, res.error());
  5569. }
  5570. TEST_F(ServerTest, ClientStop) {
  5571. std::atomic_size_t count{4};
  5572. std::vector<std::thread> threads;
  5573. for (auto i = count.load(); i != 0; --i) {
  5574. threads.emplace_back([&]() {
  5575. auto res = cli_.Get("/streamed-cancel",
  5576. [&](const char *, uint64_t) { return true; });
  5577. --count;
  5578. ASSERT_TRUE(!res);
  5579. EXPECT_TRUE(res.error() == Error::Canceled ||
  5580. res.error() == Error::Read || res.error() == Error::Write);
  5581. });
  5582. }
  5583. std::this_thread::sleep_for(std::chrono::seconds(2));
  5584. while (count != 0) {
  5585. cli_.stop();
  5586. std::this_thread::sleep_for(std::chrono::milliseconds(10));
  5587. }
  5588. for (auto &t : threads) {
  5589. t.join();
  5590. }
  5591. }
  5592. TEST_F(ServerTest, GetWithRange1) {
  5593. auto res = cli_.Get("/with-range", Headers{
  5594. make_range_header({{3, 5}}),
  5595. {"Accept-Encoding", ""},
  5596. });
  5597. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5598. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5599. EXPECT_EQ("3", res->get_header_value("Content-Length"));
  5600. EXPECT_EQ(true, res->has_header("Content-Range"));
  5601. EXPECT_EQ("bytes 3-5/7", res->get_header_value("Content-Range"));
  5602. EXPECT_EQ(std::string("def"), res->body);
  5603. }
  5604. TEST_F(ServerTest, GetWithRange2) {
  5605. auto res = cli_.Get("/with-range", Headers{
  5606. make_range_header({{1, -1}}),
  5607. {"Accept-Encoding", ""},
  5608. });
  5609. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5610. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5611. EXPECT_EQ("6", res->get_header_value("Content-Length"));
  5612. EXPECT_EQ(true, res->has_header("Content-Range"));
  5613. EXPECT_EQ("bytes 1-6/7", res->get_header_value("Content-Range"));
  5614. EXPECT_EQ(std::string("bcdefg"), res->body);
  5615. }
  5616. TEST_F(ServerTest, GetWithRange3) {
  5617. auto res = cli_.Get("/with-range", Headers{
  5618. make_range_header({{0, 0}}),
  5619. {"Accept-Encoding", ""},
  5620. });
  5621. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5622. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5623. EXPECT_EQ("1", res->get_header_value("Content-Length"));
  5624. EXPECT_EQ(true, res->has_header("Content-Range"));
  5625. EXPECT_EQ("bytes 0-0/7", res->get_header_value("Content-Range"));
  5626. EXPECT_EQ(std::string("a"), res->body);
  5627. }
  5628. TEST_F(ServerTest, GetWithRange4) {
  5629. auto res = cli_.Get("/with-range", Headers{
  5630. make_range_header({{-1, 2}}),
  5631. {"Accept-Encoding", ""},
  5632. });
  5633. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5634. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5635. EXPECT_EQ("2", res->get_header_value("Content-Length"));
  5636. EXPECT_EQ(true, res->has_header("Content-Range"));
  5637. EXPECT_EQ("bytes 5-6/7", res->get_header_value("Content-Range"));
  5638. EXPECT_EQ(std::string("fg"), res->body);
  5639. }
  5640. TEST_F(ServerTest, GetWithRange5) {
  5641. auto res = cli_.Get("/with-range", Headers{
  5642. make_range_header({{0, 5}}),
  5643. {"Accept-Encoding", ""},
  5644. });
  5645. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5646. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5647. EXPECT_EQ("6", res->get_header_value("Content-Length"));
  5648. EXPECT_EQ(true, res->has_header("Content-Range"));
  5649. EXPECT_EQ("bytes 0-5/7", res->get_header_value("Content-Range"));
  5650. EXPECT_EQ(std::string("abcdef"), res->body);
  5651. }
  5652. TEST_F(ServerTest, GetWithRangeOffsetGreaterThanContent) {
  5653. auto res =
  5654. cli_.Get("/with-range", Headers{{make_range_header({{10000, 20000}})}});
  5655. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5656. EXPECT_EQ(StatusCode::RangeNotSatisfiable_416, res->status);
  5657. }
  5658. TEST_F(ServerTest, GetWithRangeMultipart) {
  5659. auto res =
  5660. cli_.Get("/with-range", Headers{{make_range_header({{1, 2}, {4, 5}})}});
  5661. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5662. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  5663. EXPECT_EQ("267", res->get_header_value("Content-Length"));
  5664. EXPECT_EQ(false, res->has_header("Content-Range"));
  5665. EXPECT_EQ(267U, res->body.size());
  5666. }
  5667. TEST_F(ServerTest, GetWithRangeMultipartOffsetGreaterThanContent) {
  5668. auto res = cli_.Get("/with-range",
  5669. Headers{{make_range_header({{-1, 2}, {10000, 30000}})}});
  5670. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5671. EXPECT_EQ(StatusCode::RangeNotSatisfiable_416, res->status);
  5672. }
  5673. TEST_F(ServerTest, GetWithRangeCustomizedResponse) {
  5674. auto res = cli_.Get("/with-range-customized-response",
  5675. Headers{{make_range_header({{1, 2}})}});
  5676. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5677. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  5678. EXPECT_EQ(true, res->has_header("Content-Length"));
  5679. EXPECT_EQ(false, res->has_header("Content-Range"));
  5680. EXPECT_EQ(JSON_DATA, res->body);
  5681. }
  5682. TEST_F(ServerTest, GetWithRangeMultipartCustomizedResponseMultipleRange) {
  5683. auto res = cli_.Get("/with-range-customized-response",
  5684. Headers{{make_range_header({{1, 2}, {4, 5}})}});
  5685. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5686. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  5687. EXPECT_EQ(true, res->has_header("Content-Length"));
  5688. EXPECT_EQ(false, res->has_header("Content-Range"));
  5689. EXPECT_EQ(JSON_DATA, res->body);
  5690. }
  5691. TEST_F(ServerTest, Issue1772) {
  5692. auto res = cli_.Get("/issue1772", Headers{{make_range_header({{1000, -1}})}});
  5693. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5694. EXPECT_EQ(StatusCode::Unauthorized_401, res->status);
  5695. }
  5696. TEST_F(ServerTest, Issue609) {
  5697. auto res = cli_.Delete("/issue609");
  5698. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5699. EXPECT_EQ(StatusCode::OK_200, res->status);
  5700. EXPECT_EQ(std::string("ok"), res->body);
  5701. }
  5702. TEST_F(ServerTest, GetStreamedChunked) {
  5703. auto res = cli_.Get("/streamed-chunked");
  5704. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5705. EXPECT_EQ(StatusCode::OK_200, res->status);
  5706. EXPECT_EQ(std::string("123456789"), res->body);
  5707. }
  5708. TEST_F(ServerTest, GetStreamedChunked2) {
  5709. auto res = cli_.Get("/streamed-chunked2");
  5710. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5711. EXPECT_EQ(StatusCode::OK_200, res->status);
  5712. EXPECT_EQ(std::string("123456789"), res->body);
  5713. }
  5714. TEST_F(ServerTest, GetStreamedChunkedWithTrailer) {
  5715. auto res = cli_.Get("/streamed-chunked-with-trailer");
  5716. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5717. EXPECT_EQ(StatusCode::OK_200, res->status);
  5718. EXPECT_EQ(std::string("123456789"), res->body);
  5719. EXPECT_TRUE(res->has_header("Trailer"));
  5720. EXPECT_EQ(1U, res->get_header_value_count("Trailer"));
  5721. EXPECT_EQ(std::string("Dummy1, Dummy2"), res->get_header_value("Trailer"));
  5722. // Trailers are now stored separately from headers (security fix)
  5723. EXPECT_EQ(2U, res->trailers.size());
  5724. EXPECT_TRUE(res->has_trailer("Dummy1"));
  5725. EXPECT_TRUE(res->has_trailer("Dummy2"));
  5726. EXPECT_FALSE(res->has_trailer("Dummy3"));
  5727. EXPECT_EQ(std::string("DummyVal1"), res->get_trailer_value("Dummy1"));
  5728. EXPECT_EQ(std::string("DummyVal2"), res->get_trailer_value("Dummy2"));
  5729. // Verify trailers are NOT in headers (security verification)
  5730. EXPECT_EQ(std::string(""), res->get_header_value("Dummy1"));
  5731. EXPECT_EQ(std::string(""), res->get_header_value("Dummy2"));
  5732. }
  5733. TEST_F(ServerTest, LargeChunkedPost) {
  5734. Request req;
  5735. req.method = "POST";
  5736. req.path = "/large-chunked";
  5737. std::string host_and_port;
  5738. host_and_port += HOST;
  5739. host_and_port += ":";
  5740. host_and_port += std::to_string(PORT);
  5741. req.headers.emplace("Host", host_and_port.c_str());
  5742. req.headers.emplace("Accept", "*/*");
  5743. req.headers.emplace("User-Agent", "cpp-httplib/0.1");
  5744. req.headers.emplace("Content-Type", "text/plain");
  5745. req.headers.emplace("Content-Length", "0");
  5746. req.headers.emplace("Transfer-Encoding", "chunked");
  5747. std::string long_string(30 * 1024u, 'a');
  5748. std::string chunk = "7800\r\n" + long_string + "\r\n";
  5749. // Attempt to make a large enough post to exceed OS buffers, to test that
  5750. // the server handles short reads if the full chunk data isn't available.
  5751. req.body = chunk + chunk + chunk + chunk + chunk + chunk + "0\r\n\r\n";
  5752. auto res = std::make_shared<Response>();
  5753. auto error = Error::Success;
  5754. auto ret = cli_.send(req, *res, error);
  5755. ASSERT_TRUE(ret);
  5756. EXPECT_EQ(StatusCode::OK_200, res->status);
  5757. }
  5758. TEST_F(ServerTest, GetMethodRemoteAddr) {
  5759. auto res = cli_.Get("/remote_addr");
  5760. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5761. EXPECT_EQ(StatusCode::OK_200, res->status);
  5762. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  5763. EXPECT_TRUE(res->body == "::1" || res->body == "127.0.0.1");
  5764. }
  5765. TEST_F(ServerTest, GetMethodLocalAddr) {
  5766. auto res = cli_.Get("/local_addr");
  5767. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5768. EXPECT_EQ(StatusCode::OK_200, res->status);
  5769. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  5770. EXPECT_TRUE(res->body == std::string("::1:").append(to_string(PORT)) ||
  5771. res->body == std::string("127.0.0.1:").append(to_string(PORT)));
  5772. }
  5773. TEST_F(ServerTest, HTTPResponseSplitting) {
  5774. auto res = cli_.Get("/http_response_splitting");
  5775. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5776. EXPECT_EQ(StatusCode::OK_200, res->status);
  5777. }
  5778. TEST_F(ServerTest, SlowRequest) {
  5779. request_threads_.emplace_back([this]() { auto res = cli_.Get("/slow"); });
  5780. request_threads_.emplace_back([this]() { auto res = cli_.Get("/slow"); });
  5781. request_threads_.emplace_back([this]() { auto res = cli_.Get("/slow"); });
  5782. }
  5783. #if 0
  5784. TEST_F(ServerTest, SlowPost) {
  5785. char buffer[64 * 1024];
  5786. memset(buffer, 0x42, sizeof(buffer));
  5787. auto res = cli_.Post(
  5788. "/slowpost", 64 * 1024 * 1024,
  5789. [&](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  5790. auto ret = sink.write(buffer, sizeof(buffer));
  5791. EXPECT_TRUE(ret);
  5792. return true;
  5793. },
  5794. "text/plain");
  5795. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5796. EXPECT_EQ(StatusCode::OK_200, res->status);
  5797. }
  5798. TEST_F(ServerTest, SlowPostFail) {
  5799. char buffer[64 * 1024];
  5800. memset(buffer, 0x42, sizeof(buffer));
  5801. cli_.set_write_timeout(std::chrono::seconds(0));
  5802. auto res = cli_.Post(
  5803. "/slowpost", 64 * 1024 * 1024,
  5804. [&](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  5805. sink.write(buffer, sizeof(buffer));
  5806. return true;
  5807. },
  5808. "text/plain");
  5809. ASSERT_TRUE(!res);
  5810. EXPECT_EQ(Error::Write, res.error());
  5811. }
  5812. #endif
  5813. TEST_F(ServerTest, Put) {
  5814. auto res = cli_.Put("/put", "PUT", "text/plain");
  5815. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5816. EXPECT_EQ(StatusCode::OK_200, res->status);
  5817. EXPECT_EQ("PUT", res->body);
  5818. }
  5819. TEST_F(ServerTest, PutWithContentProvider) {
  5820. auto res = cli_.Put(
  5821. "/put", 3,
  5822. [](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  5823. sink.os << "PUT";
  5824. return true;
  5825. },
  5826. "text/plain");
  5827. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5828. EXPECT_EQ(StatusCode::OK_200, res->status);
  5829. EXPECT_EQ("PUT", res->body);
  5830. }
  5831. TEST_F(ServerTest, PostWithContentProviderAbort) {
  5832. auto res = cli_.Post(
  5833. "/post", 42,
  5834. [](size_t /*offset*/, size_t /*length*/, DataSink & /*sink*/) {
  5835. return false;
  5836. },
  5837. "text/plain");
  5838. ASSERT_TRUE(!res);
  5839. EXPECT_EQ(Error::Canceled, res.error());
  5840. }
  5841. TEST_F(ServerTest, PutWithContentProviderWithoutLength) {
  5842. auto res = cli_.Put(
  5843. "/put",
  5844. [](size_t /*offset*/, DataSink &sink) {
  5845. sink.os << "PUT";
  5846. sink.done();
  5847. return true;
  5848. },
  5849. "text/plain");
  5850. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5851. EXPECT_EQ(StatusCode::OK_200, res->status);
  5852. EXPECT_EQ("PUT", res->body);
  5853. }
  5854. TEST_F(ServerTest, PostWithContentProviderWithoutLengthAbort) {
  5855. auto res = cli_.Post(
  5856. "/post", [](size_t /*offset*/, DataSink & /*sink*/) { return false; },
  5857. "text/plain");
  5858. ASSERT_TRUE(!res);
  5859. EXPECT_EQ(Error::Canceled, res.error());
  5860. }
  5861. TEST_F(ServerTest, PostLoopBack) {
  5862. std::string body;
  5863. auto res = cli_.Post(
  5864. "/post-loopback", 9,
  5865. [](size_t /*offset*/, size_t length, DataSink &sink) {
  5866. EXPECT_EQ(9u, length);
  5867. sink.write("123", 3);
  5868. sink.write("456", 3);
  5869. sink.write("789", 3);
  5870. return true;
  5871. },
  5872. "text/plain",
  5873. [&body](const char *data, size_t data_length) {
  5874. body.append(data, data_length);
  5875. return true;
  5876. });
  5877. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5878. EXPECT_EQ(StatusCode::OK_200, res->status);
  5879. EXPECT_EQ("123456789", body);
  5880. }
  5881. TEST_F(ServerTest, PutLoopBack) {
  5882. std::string body;
  5883. auto res = cli_.Put(
  5884. "/put-loopback", 9,
  5885. [](size_t /*offset*/, size_t length, DataSink &sink) {
  5886. EXPECT_EQ(9u, length);
  5887. sink.write("123", 3);
  5888. sink.write("456", 3);
  5889. sink.write("789", 3);
  5890. return true;
  5891. },
  5892. "text/plain",
  5893. [&body](const char *data, size_t data_length) {
  5894. body.append(data, data_length);
  5895. return true;
  5896. });
  5897. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5898. EXPECT_EQ(StatusCode::OK_200, res->status);
  5899. EXPECT_EQ("123456789", body);
  5900. }
  5901. TEST_F(ServerTest, PatchLoopBack) {
  5902. std::string body;
  5903. auto res = cli_.Patch(
  5904. "/patch-loopback", 9,
  5905. [](size_t /*offset*/, size_t length, DataSink &sink) {
  5906. EXPECT_EQ(9u, length);
  5907. sink.write("123", 3);
  5908. sink.write("456", 3);
  5909. sink.write("789", 3);
  5910. return true;
  5911. },
  5912. "text/plain",
  5913. [&body](const char *data, size_t data_length) {
  5914. body.append(data, data_length);
  5915. return true;
  5916. });
  5917. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5918. EXPECT_EQ(StatusCode::OK_200, res->status);
  5919. EXPECT_EQ("123456789", body);
  5920. }
  5921. TEST_F(ServerTest, PostLoopBackWithoutRequestContentLength) {
  5922. std::string body;
  5923. auto res = cli_.Post(
  5924. "/post-loopback",
  5925. [](size_t /*offset*/, DataSink &sink) {
  5926. sink.write("123", 3);
  5927. sink.write("456", 3);
  5928. sink.write("789", 3);
  5929. sink.done();
  5930. return true;
  5931. },
  5932. "text/plain",
  5933. [&body](const char *data, size_t data_length) {
  5934. body.append(data, data_length);
  5935. return true;
  5936. });
  5937. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5938. EXPECT_EQ(StatusCode::OK_200, res->status);
  5939. EXPECT_EQ("123456789", body);
  5940. }
  5941. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  5942. TEST_F(ServerTest, PutWithContentProviderWithGzip) {
  5943. cli_.set_compress(true);
  5944. auto res = cli_.Put(
  5945. "/put", 3,
  5946. [](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  5947. sink.os << "PUT";
  5948. return true;
  5949. },
  5950. "text/plain");
  5951. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5952. EXPECT_EQ(StatusCode::OK_200, res->status);
  5953. EXPECT_EQ("PUT", res->body);
  5954. }
  5955. TEST_F(ServerTest, PostWithContentProviderWithGzipAbort) {
  5956. cli_.set_compress(true);
  5957. auto res = cli_.Post(
  5958. "/post", 42,
  5959. [](size_t /*offset*/, size_t /*length*/, DataSink & /*sink*/) {
  5960. return false;
  5961. },
  5962. "text/plain");
  5963. ASSERT_TRUE(!res);
  5964. EXPECT_EQ(Error::Canceled, res.error());
  5965. }
  5966. TEST_F(ServerTest, PutWithContentProviderWithoutLengthWithGzip) {
  5967. cli_.set_compress(true);
  5968. auto res = cli_.Put(
  5969. "/put",
  5970. [](size_t /*offset*/, DataSink &sink) {
  5971. sink.os << "PUT";
  5972. sink.done();
  5973. return true;
  5974. },
  5975. "text/plain");
  5976. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5977. EXPECT_EQ(StatusCode::OK_200, res->status);
  5978. EXPECT_EQ("PUT", res->body);
  5979. }
  5980. TEST_F(ServerTest, PostWithContentProviderWithoutLengthWithGzipAbort) {
  5981. cli_.set_compress(true);
  5982. auto res = cli_.Post(
  5983. "/post", [](size_t /*offset*/, DataSink & /*sink*/) { return false; },
  5984. "text/plain");
  5985. ASSERT_TRUE(!res);
  5986. EXPECT_EQ(Error::Canceled, res.error());
  5987. }
  5988. TEST_F(ServerTest, PutLargeFileWithGzip) {
  5989. cli_.set_compress(true);
  5990. auto res = cli_.Put("/put-large", LARGE_DATA, "text/plain");
  5991. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  5992. EXPECT_EQ(StatusCode::OK_200, res->status);
  5993. EXPECT_EQ(LARGE_DATA, res->body);
  5994. }
  5995. TEST_F(ServerTest, PutLargeFileWithGzip2) {
  5996. #ifdef CPPHTTPLIB_SSL_ENABLED
  5997. std::string s = std::string("https://") + HOST + ":" + std::to_string(PORT);
  5998. Client cli(s.c_str());
  5999. cli.enable_server_certificate_verification(false);
  6000. #else
  6001. std::string s = std::string("http://") + HOST + ":" + std::to_string(PORT);
  6002. Client cli(s.c_str());
  6003. #endif
  6004. cli.set_compress(true);
  6005. auto res = cli.Put("/put-large", LARGE_DATA, "text/plain");
  6006. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6007. EXPECT_EQ(StatusCode::OK_200, res->status);
  6008. EXPECT_EQ(LARGE_DATA, res->body);
  6009. // The compressed size should be less than a 10th of the original. May vary
  6010. // depending on the zlib library.
  6011. EXPECT_LT(res.get_request_header_value_u64("Content-Length"),
  6012. static_cast<uint64_t>(10 * 1024 * 1024));
  6013. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6014. EXPECT_EQ("br", res.get_request_header_value("Content-Encoding"));
  6015. #elif defined(CPPHTTPLIB_ZLIB_SUPPORT)
  6016. EXPECT_EQ("gzip", res.get_request_header_value("Content-Encoding"));
  6017. #elif defined(CPPHTTPLIB_ZSTD_SUPPORT)
  6018. EXPECT_EQ("zstd", res.get_request_header_value("Content-Encoding"));
  6019. #endif
  6020. }
  6021. TEST_F(ServerTest, PutContentWithDeflate) {
  6022. cli_.set_compress(false);
  6023. Headers headers;
  6024. headers.emplace("Content-Encoding", "deflate");
  6025. // PUT in deflate format:
  6026. auto res = cli_.Put("/put", headers,
  6027. "\170\234\013\010\015\001\0\001\361\0\372", "text/plain");
  6028. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6029. EXPECT_EQ(StatusCode::OK_200, res->status);
  6030. EXPECT_EQ("PUT", res->body);
  6031. }
  6032. TEST_F(ServerTest, GetStreamedChunkedWithGzip) {
  6033. Headers headers;
  6034. headers.emplace("Accept-Encoding", "gzip, deflate");
  6035. auto res = cli_.Get("/streamed-chunked", headers);
  6036. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6037. EXPECT_EQ(StatusCode::OK_200, res->status);
  6038. EXPECT_EQ(std::string("123456789"), res->body);
  6039. }
  6040. TEST_F(ServerTest, GetStreamedChunkedWithGzip2) {
  6041. Headers headers;
  6042. headers.emplace("Accept-Encoding", "gzip, deflate");
  6043. auto res = cli_.Get("/streamed-chunked2", headers);
  6044. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6045. EXPECT_EQ(StatusCode::OK_200, res->status);
  6046. EXPECT_EQ(std::string("123456789"), res->body);
  6047. }
  6048. TEST_F(ServerTest, SplitDelimiterInPathRegex) {
  6049. auto res = cli_.Get("/regex-with-delimiter?key=^(?.*(value))");
  6050. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6051. EXPECT_EQ(StatusCode::OK_200, res->status);
  6052. }
  6053. TEST(GzipDecompressor, ChunkedDecompression) {
  6054. std::string data;
  6055. for (size_t i = 0; i < 32 * 1024; ++i) {
  6056. data.push_back(static_cast<char>('a' + i % 26));
  6057. }
  6058. std::string compressed_data;
  6059. {
  6060. httplib::detail::gzip_compressor compressor;
  6061. bool result = compressor.compress(
  6062. data.data(), data.size(),
  6063. /*last=*/true,
  6064. [&](const char *compressed_data_chunk, size_t compressed_data_size) {
  6065. compressed_data.insert(compressed_data.size(), compressed_data_chunk,
  6066. compressed_data_size);
  6067. return true;
  6068. });
  6069. ASSERT_TRUE(result);
  6070. }
  6071. std::string decompressed_data;
  6072. {
  6073. httplib::detail::gzip_decompressor decompressor;
  6074. // Chunk size is chosen specifically to have a decompressed chunk size equal
  6075. // to 16384 bytes 16384 bytes is the size of decompressor output buffer
  6076. size_t chunk_size = 130;
  6077. for (size_t chunk_begin = 0; chunk_begin < compressed_data.size();
  6078. chunk_begin += chunk_size) {
  6079. size_t current_chunk_size =
  6080. std::min(compressed_data.size() - chunk_begin, chunk_size);
  6081. bool result = decompressor.decompress(
  6082. compressed_data.data() + chunk_begin, current_chunk_size,
  6083. [&](const char *decompressed_data_chunk,
  6084. size_t decompressed_data_chunk_size) {
  6085. decompressed_data.insert(decompressed_data.size(),
  6086. decompressed_data_chunk,
  6087. decompressed_data_chunk_size);
  6088. return true;
  6089. });
  6090. ASSERT_TRUE(result);
  6091. }
  6092. }
  6093. ASSERT_EQ(data, decompressed_data);
  6094. }
  6095. TEST(GzipDecompressor, DeflateDecompression) {
  6096. std::string original_text = "Raw deflate without gzip";
  6097. unsigned char data[32] = {0x78, 0x9C, 0x0B, 0x4A, 0x2C, 0x57, 0x48, 0x49,
  6098. 0x4D, 0xCB, 0x49, 0x2C, 0x49, 0x55, 0x28, 0xCF,
  6099. 0x2C, 0xC9, 0xC8, 0x2F, 0x2D, 0x51, 0x48, 0xAF,
  6100. 0xCA, 0x2C, 0x00, 0x00, 0x6F, 0x98, 0x09, 0x2E};
  6101. std::string compressed_data(data, data + sizeof(data) / sizeof(data[0]));
  6102. std::string decompressed_data;
  6103. {
  6104. httplib::detail::gzip_decompressor decompressor;
  6105. bool result = decompressor.decompress(
  6106. compressed_data.data(), compressed_data.size(),
  6107. [&](const char *decompressed_data_chunk,
  6108. size_t decompressed_data_chunk_size) {
  6109. decompressed_data.insert(decompressed_data.size(),
  6110. decompressed_data_chunk,
  6111. decompressed_data_chunk_size);
  6112. return true;
  6113. });
  6114. ASSERT_TRUE(result);
  6115. }
  6116. ASSERT_EQ(original_text, decompressed_data);
  6117. }
  6118. TEST(GzipDecompressor, DeflateDecompressionTrailingBytes) {
  6119. std::string original_text = "Raw deflate without gzip";
  6120. unsigned char data[40] = {0x78, 0x9C, 0x0B, 0x4A, 0x2C, 0x57, 0x48, 0x49,
  6121. 0x4D, 0xCB, 0x49, 0x2C, 0x49, 0x55, 0x28, 0xCF,
  6122. 0x2C, 0xC9, 0xC8, 0x2F, 0x2D, 0x51, 0x48, 0xAF,
  6123. 0xCA, 0x2C, 0x00, 0x00, 0x6F, 0x98, 0x09, 0x2E,
  6124. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
  6125. std::string compressed_data(data, data + sizeof(data) / sizeof(data[0]));
  6126. std::string decompressed_data;
  6127. {
  6128. httplib::detail::gzip_decompressor decompressor;
  6129. bool result = decompressor.decompress(
  6130. compressed_data.data(), compressed_data.size(),
  6131. [&](const char *decompressed_data_chunk,
  6132. size_t decompressed_data_chunk_size) {
  6133. decompressed_data.insert(decompressed_data.size(),
  6134. decompressed_data_chunk,
  6135. decompressed_data_chunk_size);
  6136. return true;
  6137. });
  6138. ASSERT_TRUE(result);
  6139. }
  6140. ASSERT_EQ(original_text, decompressed_data);
  6141. }
  6142. #endif
  6143. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6144. TEST_F(ServerTest, GetStreamedChunkedWithBrotli) {
  6145. Headers headers;
  6146. headers.emplace("Accept-Encoding", "br");
  6147. auto res = cli_.Get("/streamed-chunked", headers);
  6148. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6149. EXPECT_EQ(StatusCode::OK_200, res->status);
  6150. EXPECT_EQ(std::string("123456789"), res->body);
  6151. }
  6152. TEST_F(ServerTest, GetStreamedChunkedWithBrotli2) {
  6153. Headers headers;
  6154. headers.emplace("Accept-Encoding", "br");
  6155. auto res = cli_.Get("/streamed-chunked2", headers);
  6156. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6157. EXPECT_EQ(StatusCode::OK_200, res->status);
  6158. EXPECT_EQ(std::string("123456789"), res->body);
  6159. }
  6160. TEST_F(ServerTest, PutWithContentProviderWithBrotli) {
  6161. cli_.set_compress(true);
  6162. auto res = cli_.Put(
  6163. "/put", 3,
  6164. [](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  6165. sink.os << "PUT";
  6166. return true;
  6167. },
  6168. "text/plain");
  6169. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6170. EXPECT_EQ(StatusCode::OK_200, res->status);
  6171. EXPECT_EQ("PUT", res->body);
  6172. }
  6173. TEST_F(ServerTest, PutWithContentProviderWithoutLengthWithBrotli) {
  6174. cli_.set_compress(true);
  6175. auto res = cli_.Put(
  6176. "/put",
  6177. [](size_t /*offset*/, DataSink &sink) {
  6178. sink.os << "PUT";
  6179. sink.done();
  6180. return true;
  6181. },
  6182. "text/plain");
  6183. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6184. EXPECT_EQ(StatusCode::OK_200, res->status);
  6185. EXPECT_EQ("PUT", res->body);
  6186. }
  6187. TEST_F(ServerTest, PutLargeFileWithBrotli) {
  6188. cli_.set_compress(true);
  6189. auto res = cli_.Put("/put-large", LARGE_DATA, "text/plain");
  6190. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6191. EXPECT_EQ(StatusCode::OK_200, res->status);
  6192. EXPECT_EQ(LARGE_DATA, res->body);
  6193. EXPECT_EQ("br", res.get_request_header_value("Content-Encoding"));
  6194. }
  6195. #endif
  6196. TEST_F(ServerTest, Patch) {
  6197. auto res = cli_.Patch("/patch", "PATCH", "text/plain");
  6198. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6199. EXPECT_EQ(StatusCode::OK_200, res->status);
  6200. EXPECT_EQ("PATCH", res->body);
  6201. }
  6202. TEST_F(ServerTest, Delete) {
  6203. auto res = cli_.Delete("/delete");
  6204. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6205. EXPECT_EQ(StatusCode::OK_200, res->status);
  6206. EXPECT_EQ("DELETE", res->body);
  6207. }
  6208. TEST_F(ServerTest, DeleteContentReceiver) {
  6209. auto res = cli_.Delete("/delete-body", "content", "text/plain");
  6210. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6211. EXPECT_EQ(StatusCode::OK_200, res->status);
  6212. EXPECT_EQ("content", res->body);
  6213. }
  6214. TEST_F(ServerTest, Options) {
  6215. auto res = cli_.Options("*");
  6216. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6217. EXPECT_EQ(StatusCode::OK_200, res->status);
  6218. EXPECT_EQ("GET, POST, HEAD, OPTIONS", res->get_header_value("Allow"));
  6219. EXPECT_TRUE(res->body.empty());
  6220. }
  6221. TEST_F(ServerTest, URL) {
  6222. auto res = cli_.Get("/request-target?aaa=bbb&ccc=ddd");
  6223. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6224. EXPECT_EQ(StatusCode::OK_200, res->status);
  6225. }
  6226. TEST_F(ServerTest, ArrayParam) {
  6227. auto res = cli_.Get("/array-param?array=value1&array=value2&array=value3");
  6228. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6229. EXPECT_EQ(StatusCode::OK_200, res->status);
  6230. }
  6231. TEST_F(ServerTest, ArrayParamValues) {
  6232. auto res =
  6233. cli_.Get("/array-param-values?array=value1&array=value2&array=value3");
  6234. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6235. EXPECT_EQ(StatusCode::OK_200, res->status);
  6236. }
  6237. TEST_F(ServerTest, NoMultipleHeaders) {
  6238. Headers headers = {{"Content-Length", "5"}};
  6239. auto res = cli_.Post("/validate-no-multiple-headers", headers, "hello",
  6240. "text/plain");
  6241. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6242. EXPECT_EQ(StatusCode::OK_200, res->status);
  6243. }
  6244. TEST_F(ServerTest, PostContentReceiver) {
  6245. auto res = cli_.Post("/content_receiver", "content", "text/plain");
  6246. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6247. ASSERT_EQ(StatusCode::OK_200, res->status);
  6248. ASSERT_EQ("content", res->body);
  6249. }
  6250. TEST_F(ServerTest, PostMultipartFileContentReceiver) {
  6251. UploadFormDataItems items = {
  6252. {"text1", "text default", "", ""},
  6253. {"text2", "aωb", "", ""},
  6254. {"file1", "h\ne\n\nl\nl\no\n", "hello.txt", "text/plain"},
  6255. {"file2", R"({\n "world": true\n}\n)", "world.json", "application/json"},
  6256. {"file3", "", "", "application/octet-stream"},
  6257. };
  6258. auto res = cli_.Post("/content_receiver", items);
  6259. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6260. EXPECT_EQ(StatusCode::OK_200, res->status);
  6261. }
  6262. TEST_F(ServerTest, PostMultipartPlusBoundary) {
  6263. UploadFormDataItems items = {
  6264. {"text1", "text default", "", ""},
  6265. {"text2", "aωb", "", ""},
  6266. {"file1", "h\ne\n\nl\nl\no\n", "hello.txt", "text/plain"},
  6267. {"file2", R"({\n "world": true\n}\n)", "world.json", "application/json"},
  6268. {"file3", "", "", "application/octet-stream"},
  6269. };
  6270. auto boundary = std::string("+++++");
  6271. std::string body;
  6272. for (const auto &item : items) {
  6273. body += "--" + boundary + "\r\n";
  6274. body += "Content-Disposition: form-data; name=\"" + item.name + "\"";
  6275. if (!item.filename.empty()) {
  6276. body += "; filename=\"" + item.filename + "\"";
  6277. }
  6278. body += "\r\n";
  6279. if (!item.content_type.empty()) {
  6280. body += "Content-Type: " + item.content_type + "\r\n";
  6281. }
  6282. body += "\r\n";
  6283. body += item.content + "\r\n";
  6284. }
  6285. body += "--" + boundary + "--\r\n";
  6286. std::string content_type = "multipart/form-data; boundary=" + boundary;
  6287. auto res = cli_.Post("/content_receiver", body, content_type.c_str());
  6288. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6289. EXPECT_EQ(StatusCode::OK_200, res->status);
  6290. }
  6291. TEST(MultipartFormDataTest, FieldEscaping) {
  6292. Server svr;
  6293. svr.Post("/post", [&](const Request &req, Response & /*res*/,
  6294. const ContentReader &content_reader) {
  6295. ASSERT_TRUE(req.is_multipart_form_data());
  6296. std::vector<FormData> received;
  6297. content_reader(
  6298. [&](const FormData &file) {
  6299. received.push_back(file);
  6300. return true;
  6301. },
  6302. [&](const char *data, size_t data_length) {
  6303. received.back().content.append(data, data_length);
  6304. return true;
  6305. });
  6306. // '"', CR and LF in names and filenames are escaped following the
  6307. // WHATWG HTML standard, so each part still parses as a single part
  6308. // with no injected headers. Content types get CR/LF escaped too,
  6309. // while '"' (legal there, e.g. quoted charset) is preserved.
  6310. ASSERT_EQ(4U, received.size());
  6311. EXPECT_EQ("na%22me", received[0].name);
  6312. EXPECT_EQ("quoted name", received[0].content);
  6313. EXPECT_EQ("file", received[1].name);
  6314. EXPECT_EQ("evil%0D%0AContent-Type: text/evil%0D%0A%0D%0A.pdf",
  6315. received[1].filename);
  6316. EXPECT_EQ("application/octet-stream", received[1].content_type);
  6317. EXPECT_EQ("injected", received[1].content);
  6318. EXPECT_EQ("my%0Dna%0Ame", received[2].name);
  6319. EXPECT_EQ("my%22file.txt", received[2].filename);
  6320. EXPECT_EQ("cr lf name", received[2].content);
  6321. EXPECT_EQ("typed", received[3].name);
  6322. EXPECT_EQ("text/plain; charset=\"utf-8\"%0D%0AX-Evil: 1",
  6323. received[3].content_type);
  6324. EXPECT_EQ("typed content", received[3].content);
  6325. });
  6326. auto port = svr.bind_to_any_port("localhost");
  6327. auto t = std::thread([&]() { svr.listen_after_bind(); });
  6328. auto se = detail::scope_exit([&] {
  6329. svr.stop();
  6330. t.join();
  6331. ASSERT_FALSE(svr.is_running());
  6332. });
  6333. svr.wait_until_ready();
  6334. Client cli("localhost", port);
  6335. UploadFormDataItems items = {
  6336. {"na\"me", "quoted name", "", ""},
  6337. {"file", "injected", "evil\r\nContent-Type: text/evil\r\n\r\n.pdf",
  6338. "application/octet-stream"},
  6339. {"my\rna\nme", "cr lf name", "my\"file.txt", "text/plain"},
  6340. {"typed", "typed content", "",
  6341. "text/plain; charset=\"utf-8\"\r\nX-Evil: 1"},
  6342. };
  6343. auto res = cli.Post("/post", items);
  6344. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6345. EXPECT_EQ(StatusCode::OK_200, res->status);
  6346. }
  6347. TEST(MultipartFormDataTest, PublicWriterAPI) {
  6348. const UploadFormDataItems items = {
  6349. {"name1", "Content 1", "", ""},
  6350. {"name2", "Content 2", "file2.txt", "text/plain"},
  6351. };
  6352. Server svr;
  6353. svr.Post("/post", [&](const Request &req, Response & /*res*/,
  6354. const ContentReader &content_reader) {
  6355. ASSERT_TRUE(req.is_multipart_form_data());
  6356. std::vector<FormData> received;
  6357. content_reader(
  6358. [&](const FormData &file) {
  6359. received.push_back(file);
  6360. return true;
  6361. },
  6362. [&](const char *data, size_t data_length) {
  6363. received.back().content.append(data, data_length);
  6364. return true;
  6365. });
  6366. ASSERT_EQ(2U, received.size());
  6367. EXPECT_EQ("name1", received[0].name);
  6368. EXPECT_EQ("Content 1", received[0].content);
  6369. EXPECT_EQ("name2", received[1].name);
  6370. EXPECT_EQ("Content 2", received[1].content);
  6371. EXPECT_EQ("file2.txt", received[1].filename);
  6372. EXPECT_EQ("text/plain", received[1].content_type);
  6373. });
  6374. auto port = svr.bind_to_any_port("localhost");
  6375. auto t = std::thread([&]() { svr.listen_after_bind(); });
  6376. auto se = detail::scope_exit([&] {
  6377. svr.stop();
  6378. t.join();
  6379. ASSERT_FALSE(svr.is_running());
  6380. });
  6381. svr.wait_until_ready();
  6382. Client cli("localhost", port);
  6383. // Whole-body serialization with a generated boundary
  6384. {
  6385. MultipartFormDataWriter writer;
  6386. EXPECT_TRUE(is_valid_multipart_boundary(writer.boundary()));
  6387. EXPECT_EQ("multipart/form-data; boundary=" + writer.boundary(),
  6388. writer.content_type());
  6389. auto body = writer.serialize(items);
  6390. EXPECT_EQ(body.size(), writer.content_length(items));
  6391. auto res = cli.Post("/post", body, writer.content_type());
  6392. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6393. EXPECT_EQ(StatusCode::OK_200, res->status);
  6394. }
  6395. // Per-part framing with a custom boundary via a content provider
  6396. {
  6397. EXPECT_FALSE(is_valid_multipart_boundary("bad boundary"));
  6398. ASSERT_TRUE(is_valid_multipart_boundary("custom-boundary_123"));
  6399. MultipartFormDataWriter writer("custom-boundary_123");
  6400. EXPECT_EQ("custom-boundary_123", writer.boundary());
  6401. std::string body;
  6402. for (const auto &item : items) {
  6403. body += writer.item_begin(item);
  6404. body += item.content;
  6405. body += MultipartFormDataWriter::item_end();
  6406. }
  6407. body += writer.finish();
  6408. EXPECT_EQ(body.size(), writer.content_length(items));
  6409. auto res = cli.Post(
  6410. "/post", body.size(),
  6411. [&](size_t offset, size_t length, DataSink &sink) {
  6412. sink.write(body.data() + offset, length);
  6413. return true;
  6414. },
  6415. writer.content_type());
  6416. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6417. EXPECT_EQ(StatusCode::OK_200, res->status);
  6418. }
  6419. }
  6420. TEST_F(ServerTest, PostContentReceiverGzip) {
  6421. cli_.set_compress(true);
  6422. auto res = cli_.Post("/content_receiver", "content", "text/plain");
  6423. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6424. ASSERT_EQ(StatusCode::OK_200, res->status);
  6425. ASSERT_EQ("content", res->body);
  6426. }
  6427. TEST_F(ServerTest, PutContentReceiver) {
  6428. auto res = cli_.Put("/content_receiver", "content", "text/plain");
  6429. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6430. ASSERT_EQ(StatusCode::OK_200, res->status);
  6431. ASSERT_EQ("content", res->body);
  6432. }
  6433. TEST_F(ServerTest, PatchContentReceiver) {
  6434. auto res = cli_.Patch("/content_receiver", "content", "text/plain");
  6435. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6436. ASSERT_EQ(StatusCode::OK_200, res->status);
  6437. ASSERT_EQ("content", res->body);
  6438. }
  6439. template <typename ClientType>
  6440. void TestWithHeadersAndContentReceiver(
  6441. ClientType &cli,
  6442. std::function<Result(ClientType &, const std::string &, const Headers &,
  6443. const std::string &, const std::string &,
  6444. ContentReceiver, DownloadProgress)>
  6445. request_func) {
  6446. Headers headers;
  6447. headers.emplace("X-Custom-Header", "test-value");
  6448. std::string received_body;
  6449. auto res = request_func(
  6450. cli, "/content_receiver", headers, "content", "application/json",
  6451. [&](const char *data, size_t data_length) {
  6452. received_body.append(data, data_length);
  6453. return true;
  6454. },
  6455. nullptr);
  6456. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6457. EXPECT_EQ(StatusCode::OK_200, res->status);
  6458. EXPECT_EQ("content", received_body);
  6459. }
  6460. TEST_F(ServerTest, PostWithHeadersAndContentReceiver) {
  6461. #ifdef CPPHTTPLIB_SSL_ENABLED
  6462. using ClientT = SSLClient;
  6463. #else
  6464. using ClientT = Client;
  6465. #endif
  6466. TestWithHeadersAndContentReceiver<ClientT>(
  6467. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6468. const std::string &body, const std::string &content_type,
  6469. ContentReceiver receiver, DownloadProgress progress) {
  6470. return cli.Post(path, headers, body, content_type, receiver, progress);
  6471. });
  6472. }
  6473. TEST_F(ServerTest, PutWithHeadersAndContentReceiver) {
  6474. #ifdef CPPHTTPLIB_SSL_ENABLED
  6475. using ClientT = SSLClient;
  6476. #else
  6477. using ClientT = Client;
  6478. #endif
  6479. TestWithHeadersAndContentReceiver<ClientT>(
  6480. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6481. const std::string &body, const std::string &content_type,
  6482. ContentReceiver receiver, DownloadProgress progress) {
  6483. return cli.Put(path, headers, body, content_type, receiver, progress);
  6484. });
  6485. }
  6486. TEST_F(ServerTest, PatchWithHeadersAndContentReceiver) {
  6487. #ifdef CPPHTTPLIB_SSL_ENABLED
  6488. using ClientT = SSLClient;
  6489. #else
  6490. using ClientT = Client;
  6491. #endif
  6492. TestWithHeadersAndContentReceiver<ClientT>(
  6493. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6494. const std::string &body, const std::string &content_type,
  6495. ContentReceiver receiver, DownloadProgress progress) {
  6496. return cli.Patch(path, headers, body, content_type, receiver, progress);
  6497. });
  6498. }
  6499. template <typename ClientType>
  6500. void TestWithHeadersAndContentReceiverWithProgress(
  6501. ClientType &cli,
  6502. std::function<Result(ClientType &, const std::string &, const Headers &,
  6503. const std::string &, const std::string &,
  6504. ContentReceiver, DownloadProgress)>
  6505. request_func) {
  6506. Headers headers;
  6507. headers.emplace("X-Test-Header", "progress-test");
  6508. std::string received_body;
  6509. auto progress_called = false;
  6510. auto res = request_func(
  6511. cli, "/content_receiver", headers, "content", "text/plain",
  6512. [&](const char *data, size_t data_length) {
  6513. received_body.append(data, data_length);
  6514. return true;
  6515. },
  6516. [&](uint64_t /*current*/, uint64_t /*total*/) {
  6517. progress_called = true;
  6518. return true;
  6519. });
  6520. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6521. EXPECT_EQ(StatusCode::OK_200, res->status);
  6522. EXPECT_EQ("content", received_body);
  6523. EXPECT_TRUE(progress_called);
  6524. }
  6525. TEST_F(ServerTest, PostWithHeadersAndContentReceiverWithProgress) {
  6526. #ifdef CPPHTTPLIB_SSL_ENABLED
  6527. using ClientT = SSLClient;
  6528. #else
  6529. using ClientT = Client;
  6530. #endif
  6531. TestWithHeadersAndContentReceiverWithProgress<ClientT>(
  6532. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6533. const std::string &body, const std::string &content_type,
  6534. ContentReceiver receiver, DownloadProgress progress) {
  6535. return cli.Post(path, headers, body, content_type, receiver, progress);
  6536. });
  6537. }
  6538. TEST_F(ServerTest, PutWithHeadersAndContentReceiverWithProgress) {
  6539. #ifdef CPPHTTPLIB_SSL_ENABLED
  6540. using ClientT = SSLClient;
  6541. #else
  6542. using ClientT = Client;
  6543. #endif
  6544. TestWithHeadersAndContentReceiverWithProgress<ClientT>(
  6545. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6546. const std::string &body, const std::string &content_type,
  6547. ContentReceiver receiver, DownloadProgress progress) {
  6548. return cli.Put(path, headers, body, content_type, receiver, progress);
  6549. });
  6550. }
  6551. TEST_F(ServerTest, PatchWithHeadersAndContentReceiverWithProgress) {
  6552. #ifdef CPPHTTPLIB_SSL_ENABLED
  6553. using ClientT = SSLClient;
  6554. #else
  6555. using ClientT = Client;
  6556. #endif
  6557. TestWithHeadersAndContentReceiverWithProgress<ClientT>(
  6558. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6559. const std::string &body, const std::string &content_type,
  6560. ContentReceiver receiver, DownloadProgress progress) {
  6561. return cli.Patch(path, headers, body, content_type, receiver, progress);
  6562. });
  6563. }
  6564. template <typename ClientType>
  6565. void TestWithHeadersAndContentReceiverError(
  6566. ClientType &cli, std::function<Result(ClientType &, const std::string &,
  6567. const Headers &, const std::string &,
  6568. const std::string &, ContentReceiver)>
  6569. request_func) {
  6570. Headers headers;
  6571. headers.emplace("X-Error-Test", "true");
  6572. std::string received_body;
  6573. auto receiver_failed = false;
  6574. auto res =
  6575. request_func(cli, "/content_receiver", headers, "content", "text/plain",
  6576. [&](const char *data, size_t data_length) {
  6577. received_body.append(data, data_length);
  6578. receiver_failed = true;
  6579. return false;
  6580. });
  6581. ASSERT_FALSE(res);
  6582. EXPECT_TRUE(receiver_failed);
  6583. }
  6584. TEST_F(ServerTest, PostWithHeadersAndContentReceiverError) {
  6585. #ifdef CPPHTTPLIB_SSL_ENABLED
  6586. using ClientT = SSLClient;
  6587. #else
  6588. using ClientT = Client;
  6589. #endif
  6590. TestWithHeadersAndContentReceiverError<ClientT>(
  6591. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6592. const std::string &body, const std::string &content_type,
  6593. ContentReceiver receiver) {
  6594. return cli.Post(path, headers, body, content_type, receiver);
  6595. });
  6596. }
  6597. TEST_F(ServerTest, PuttWithHeadersAndContentReceiverError) {
  6598. #ifdef CPPHTTPLIB_SSL_ENABLED
  6599. using ClientT = SSLClient;
  6600. #else
  6601. using ClientT = Client;
  6602. #endif
  6603. TestWithHeadersAndContentReceiverError<ClientT>(
  6604. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6605. const std::string &body, const std::string &content_type,
  6606. ContentReceiver receiver) {
  6607. return cli.Put(path, headers, body, content_type, receiver);
  6608. });
  6609. }
  6610. TEST_F(ServerTest, PatchWithHeadersAndContentReceiverError) {
  6611. #ifdef CPPHTTPLIB_SSL_ENABLED
  6612. using ClientT = SSLClient;
  6613. #else
  6614. using ClientT = Client;
  6615. #endif
  6616. TestWithHeadersAndContentReceiverError<ClientT>(
  6617. cli_, [](ClientT &cli, const std::string &path, const Headers &headers,
  6618. const std::string &body, const std::string &content_type,
  6619. ContentReceiver receiver) {
  6620. return cli.Patch(path, headers, body, content_type, receiver);
  6621. });
  6622. }
  6623. TEST_F(ServerTest, PostQueryStringAndBody) {
  6624. auto res =
  6625. cli_.Post("/query-string-and-body?key=value", "content", "text/plain");
  6626. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6627. ASSERT_EQ(StatusCode::OK_200, res->status);
  6628. }
  6629. TEST_F(ServerTest, HTTP2Magic) {
  6630. Request req;
  6631. req.method = "PRI";
  6632. req.path = "*";
  6633. req.body = "SM";
  6634. auto res = std::make_shared<Response>();
  6635. auto error = Error::Success;
  6636. auto ret = cli_.send(req, *res, error);
  6637. ASSERT_TRUE(ret);
  6638. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  6639. }
  6640. TEST_F(ServerTest, KeepAlive) {
  6641. auto res = cli_.Get("/hi");
  6642. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6643. EXPECT_EQ(StatusCode::OK_200, res->status);
  6644. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6645. EXPECT_EQ("Hello World!", res->body);
  6646. res = cli_.Get("/hi");
  6647. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6648. EXPECT_EQ(StatusCode::OK_200, res->status);
  6649. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6650. EXPECT_EQ("Hello World!", res->body);
  6651. res = cli_.Get("/hi");
  6652. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6653. EXPECT_EQ(StatusCode::OK_200, res->status);
  6654. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6655. EXPECT_EQ("Hello World!", res->body);
  6656. res = cli_.Get("/not-exist");
  6657. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6658. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  6659. res = cli_.Post("/empty", "", "text/plain");
  6660. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6661. EXPECT_EQ(StatusCode::OK_200, res->status);
  6662. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6663. EXPECT_EQ("empty", res->body);
  6664. EXPECT_EQ("close", res->get_header_value("Connection"));
  6665. res = cli_.Post(
  6666. "/empty", 0, [&](size_t, size_t, DataSink &) { return true; },
  6667. "text/plain");
  6668. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6669. EXPECT_EQ(StatusCode::OK_200, res->status);
  6670. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6671. EXPECT_EQ("empty", res->body);
  6672. cli_.set_keep_alive(false);
  6673. res = cli_.Get("/last-request");
  6674. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6675. EXPECT_EQ(StatusCode::OK_200, res->status);
  6676. EXPECT_EQ("close", res->get_header_value("Connection"));
  6677. }
  6678. TEST_F(ServerTest, TooManyRedirect) {
  6679. cli_.set_follow_location(true);
  6680. auto res = cli_.Get("/redirect/0");
  6681. ASSERT_TRUE(!res);
  6682. EXPECT_EQ(Error::ExceedRedirectCount, res.error());
  6683. }
  6684. TEST_F(ServerTest, BadRequestLineCancelsKeepAlive) {
  6685. Request req;
  6686. req.method = "FOOBAR";
  6687. req.path = "/hi";
  6688. cli_.set_keep_alive(true);
  6689. auto res = cli_.send(req);
  6690. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6691. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  6692. EXPECT_EQ("close", res->get_header_value("Connection"));
  6693. EXPECT_FALSE(cli_.is_socket_open());
  6694. }
  6695. TEST_F(ServerTest, StartTime) { auto res = cli_.Get("/test-start-time"); }
  6696. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  6697. TEST_F(ServerTest, Gzip) {
  6698. Headers headers;
  6699. headers.emplace("Accept-Encoding", "gzip, deflate");
  6700. auto res = cli_.Get("/compress", headers);
  6701. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6702. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  6703. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6704. EXPECT_EQ("33", res->get_header_value("Content-Length"));
  6705. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6706. "7890123456789012345678901234567890",
  6707. res->body);
  6708. EXPECT_EQ(StatusCode::OK_200, res->status);
  6709. }
  6710. TEST_F(ServerTest, GzipWithContentTypeParameters) {
  6711. Headers headers;
  6712. headers.emplace("Accept-Encoding", "gzip, deflate");
  6713. auto res = cli_.Get("/compress-with-charset", headers);
  6714. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6715. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  6716. EXPECT_EQ("application/json; charset=utf-8",
  6717. res->get_header_value("Content-Type"));
  6718. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6719. "7890123456789012345678901234567890",
  6720. res->body);
  6721. EXPECT_EQ(StatusCode::OK_200, res->status);
  6722. }
  6723. TEST_F(ServerTest, GzipWithoutAcceptEncoding) {
  6724. Headers headers;
  6725. headers.emplace("Accept-Encoding", "");
  6726. auto res = cli_.Get("/compress", headers);
  6727. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6728. EXPECT_TRUE(res->get_header_value("Content-Encoding").empty());
  6729. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6730. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6731. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6732. "7890123456789012345678901234567890",
  6733. res->body);
  6734. EXPECT_EQ(StatusCode::OK_200, res->status);
  6735. }
  6736. TEST_F(ServerTest, GzipWithContentReceiver) {
  6737. Headers headers;
  6738. headers.emplace("Accept-Encoding", "gzip, deflate");
  6739. std::string body;
  6740. auto res = cli_.Get("/compress", headers,
  6741. [&](const char *data, uint64_t data_length) {
  6742. EXPECT_EQ(100U, data_length);
  6743. body.append(data, data_length);
  6744. return true;
  6745. });
  6746. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6747. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  6748. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6749. EXPECT_EQ("33", res->get_header_value("Content-Length"));
  6750. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6751. "7890123456789012345678901234567890",
  6752. body);
  6753. EXPECT_EQ(StatusCode::OK_200, res->status);
  6754. }
  6755. TEST_F(ServerTest, GzipWithoutDecompressing) {
  6756. Headers headers;
  6757. headers.emplace("Accept-Encoding", "gzip, deflate");
  6758. cli_.set_decompress(false);
  6759. auto res = cli_.Get("/compress", headers);
  6760. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6761. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  6762. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6763. EXPECT_EQ("33", res->get_header_value("Content-Length"));
  6764. EXPECT_EQ(33U, res->body.size());
  6765. EXPECT_EQ(StatusCode::OK_200, res->status);
  6766. }
  6767. TEST_F(ServerTest, GzipWithContentReceiverWithoutAcceptEncoding) {
  6768. Headers headers;
  6769. headers.emplace("Accept-Encoding", "");
  6770. std::string body;
  6771. auto res = cli_.Get("/compress", headers,
  6772. [&](const char *data, uint64_t data_length) {
  6773. EXPECT_EQ(100U, data_length);
  6774. body.append(data, data_length);
  6775. return true;
  6776. });
  6777. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6778. EXPECT_TRUE(res->get_header_value("Content-Encoding").empty());
  6779. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6780. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6781. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6782. "7890123456789012345678901234567890",
  6783. body);
  6784. EXPECT_EQ(StatusCode::OK_200, res->status);
  6785. }
  6786. TEST_F(ServerTest, NoGzip) {
  6787. Headers headers;
  6788. headers.emplace("Accept-Encoding", "gzip, deflate");
  6789. auto res = cli_.Get("/nocompress", headers);
  6790. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6791. EXPECT_EQ(false, res->has_header("Content-Encoding"));
  6792. EXPECT_EQ("application/octet-stream", res->get_header_value("Content-Type"));
  6793. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6794. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6795. "7890123456789012345678901234567890",
  6796. res->body);
  6797. EXPECT_EQ(StatusCode::OK_200, res->status);
  6798. }
  6799. TEST_F(ServerTest, NoGzipWithContentReceiver) {
  6800. Headers headers;
  6801. headers.emplace("Accept-Encoding", "gzip, deflate");
  6802. std::string body;
  6803. auto res = cli_.Get("/nocompress", headers,
  6804. [&](const char *data, uint64_t data_length) {
  6805. EXPECT_EQ(100U, data_length);
  6806. body.append(data, data_length);
  6807. return true;
  6808. });
  6809. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6810. EXPECT_EQ(false, res->has_header("Content-Encoding"));
  6811. EXPECT_EQ("application/octet-stream", res->get_header_value("Content-Type"));
  6812. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6813. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6814. "7890123456789012345678901234567890",
  6815. body);
  6816. EXPECT_EQ(StatusCode::OK_200, res->status);
  6817. }
  6818. TEST_F(ServerTest, MultipartFormDataGzip) {
  6819. UploadFormDataItems items = {
  6820. {"key1", "test", "", ""},
  6821. {"key2", "--abcdefg123", "", ""},
  6822. };
  6823. cli_.set_compress(true);
  6824. auto res = cli_.Post("/compress-multipart", items);
  6825. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6826. EXPECT_EQ(StatusCode::OK_200, res->status);
  6827. }
  6828. #endif
  6829. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  6830. TEST_F(ServerTest, Brotli) {
  6831. Headers headers;
  6832. headers.emplace("Accept-Encoding", "br");
  6833. auto res = cli_.Get("/compress", headers);
  6834. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6835. EXPECT_EQ("br", res->get_header_value("Content-Encoding"));
  6836. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6837. EXPECT_EQ("19", res->get_header_value("Content-Length"));
  6838. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6839. "7890123456789012345678901234567890",
  6840. res->body);
  6841. EXPECT_EQ(StatusCode::OK_200, res->status);
  6842. }
  6843. #endif
  6844. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  6845. TEST_F(ServerTest, Zstd) {
  6846. Headers headers;
  6847. headers.emplace("Accept-Encoding", "zstd");
  6848. auto res = cli_.Get("/compress", headers);
  6849. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6850. EXPECT_EQ("zstd", res->get_header_value("Content-Encoding"));
  6851. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6852. EXPECT_EQ("26", res->get_header_value("Content-Length"));
  6853. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6854. "7890123456789012345678901234567890",
  6855. res->body);
  6856. EXPECT_EQ(StatusCode::OK_200, res->status);
  6857. }
  6858. TEST_F(ServerTest, ZstdWithoutAcceptEncoding) {
  6859. Headers headers;
  6860. headers.emplace("Accept-Encoding", "");
  6861. auto res = cli_.Get("/compress", headers);
  6862. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6863. EXPECT_TRUE(res->get_header_value("Content-Encoding").empty());
  6864. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6865. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6866. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6867. "7890123456789012345678901234567890",
  6868. res->body);
  6869. EXPECT_EQ(StatusCode::OK_200, res->status);
  6870. }
  6871. TEST_F(ServerTest, ZstdWithContentReceiver) {
  6872. Headers headers;
  6873. headers.emplace("Accept-Encoding", "zstd");
  6874. std::string body;
  6875. auto res = cli_.Get("/compress", headers,
  6876. [&](const char *data, uint64_t data_length) {
  6877. EXPECT_EQ(100U, data_length);
  6878. body.append(data, data_length);
  6879. return true;
  6880. });
  6881. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6882. EXPECT_EQ("zstd", res->get_header_value("Content-Encoding"));
  6883. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6884. EXPECT_EQ("26", res->get_header_value("Content-Length"));
  6885. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6886. "7890123456789012345678901234567890",
  6887. body);
  6888. EXPECT_EQ(StatusCode::OK_200, res->status);
  6889. }
  6890. TEST_F(ServerTest, ZstdWithoutDecompressing) {
  6891. Headers headers;
  6892. headers.emplace("Accept-Encoding", "zstd");
  6893. cli_.set_decompress(false);
  6894. auto res = cli_.Get("/compress", headers);
  6895. unsigned char compressed[26] = {0x28, 0xb5, 0x2f, 0xfd, 0x20, 0x64, 0x8d,
  6896. 0x00, 0x00, 0x50, 0x31, 0x32, 0x33, 0x34,
  6897. 0x35, 0x36, 0x37, 0x38, 0x39, 0x30, 0x01,
  6898. 0x00, 0xd7, 0xa9, 0x20, 0x01};
  6899. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6900. EXPECT_EQ("zstd", res->get_header_value("Content-Encoding"));
  6901. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6902. EXPECT_EQ("26", res->get_header_value("Content-Length"));
  6903. EXPECT_EQ(StatusCode::OK_200, res->status);
  6904. ASSERT_EQ(26U, res->body.size());
  6905. EXPECT_TRUE(std::memcmp(compressed, res->body.data(), sizeof(compressed)) ==
  6906. 0);
  6907. }
  6908. TEST_F(ServerTest, ZstdWithContentReceiverWithoutAcceptEncoding) {
  6909. Headers headers;
  6910. headers.emplace("Accept-Encoding", "");
  6911. std::string body;
  6912. auto res = cli_.Get("/compress", headers,
  6913. [&](const char *data, uint64_t data_length) {
  6914. EXPECT_EQ(100U, data_length);
  6915. body.append(data, data_length);
  6916. return true;
  6917. });
  6918. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6919. EXPECT_TRUE(res->get_header_value("Content-Encoding").empty());
  6920. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  6921. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6922. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6923. "7890123456789012345678901234567890",
  6924. body);
  6925. EXPECT_EQ(StatusCode::OK_200, res->status);
  6926. }
  6927. TEST_F(ServerTest, NoZstd) {
  6928. Headers headers;
  6929. headers.emplace("Accept-Encoding", "zstd");
  6930. auto res = cli_.Get("/nocompress", headers);
  6931. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6932. EXPECT_EQ(false, res->has_header("Content-Encoding"));
  6933. EXPECT_EQ("application/octet-stream", res->get_header_value("Content-Type"));
  6934. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6935. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6936. "7890123456789012345678901234567890",
  6937. res->body);
  6938. EXPECT_EQ(StatusCode::OK_200, res->status);
  6939. }
  6940. TEST_F(ServerTest, NoZstdWithContentReceiver) {
  6941. Headers headers;
  6942. headers.emplace("Accept-Encoding", "zstd");
  6943. std::string body;
  6944. auto res = cli_.Get("/nocompress", headers,
  6945. [&](const char *data, uint64_t data_length) {
  6946. EXPECT_EQ(100U, data_length);
  6947. body.append(data, data_length);
  6948. return true;
  6949. });
  6950. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6951. EXPECT_EQ(false, res->has_header("Content-Encoding"));
  6952. EXPECT_EQ("application/octet-stream", res->get_header_value("Content-Type"));
  6953. EXPECT_EQ("100", res->get_header_value("Content-Length"));
  6954. EXPECT_EQ("123456789012345678901234567890123456789012345678901234567890123456"
  6955. "7890123456789012345678901234567890",
  6956. body);
  6957. EXPECT_EQ(StatusCode::OK_200, res->status);
  6958. }
  6959. // TODO: How to enable zstd ??
  6960. TEST_F(ServerTest, MultipartFormDataZstd) {
  6961. UploadFormDataItems items = {
  6962. {"key1", "test", "", ""},
  6963. {"key2", "--abcdefg123", "", ""},
  6964. };
  6965. Headers headers;
  6966. headers.emplace("Accept-Encoding", "zstd");
  6967. cli_.set_compress(true);
  6968. auto res = cli_.Post("/compress-multipart", headers, items);
  6969. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6970. EXPECT_EQ(StatusCode::OK_200, res->status);
  6971. }
  6972. TEST_F(ServerTest, PutWithContentProviderWithZstd) {
  6973. Headers headers;
  6974. headers.emplace("Accept-Encoding", "zstd");
  6975. cli_.set_compress(true);
  6976. auto res = cli_.Put(
  6977. "/put", headers, 3,
  6978. [](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  6979. sink.os << "PUT";
  6980. return true;
  6981. },
  6982. "text/plain");
  6983. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  6984. EXPECT_EQ(StatusCode::OK_200, res->status);
  6985. EXPECT_EQ("PUT", res->body);
  6986. }
  6987. // Pre-compression logging tests
  6988. TEST_F(ServerTest, PreCompressionLogging) {
  6989. // Test data for compression (matches the actual /compress endpoint content)
  6990. const std::string test_content =
  6991. "123456789012345678901234567890123456789012345678901234567890123456789012"
  6992. "3456789012345678901234567890";
  6993. // Variables to capture logging data
  6994. std::string pre_compression_body;
  6995. std::string pre_compression_content_type;
  6996. std::string pre_compression_content_encoding;
  6997. std::string post_compression_body;
  6998. std::string post_compression_content_type;
  6999. std::string post_compression_content_encoding;
  7000. // Set up pre-compression logger
  7001. svr_.set_pre_compression_logger([&](const Request & /*req*/,
  7002. const Response &res) {
  7003. pre_compression_body = res.body;
  7004. pre_compression_content_type = res.get_header_value("Content-Type");
  7005. pre_compression_content_encoding = res.get_header_value("Content-Encoding");
  7006. });
  7007. // Set up post-compression logger
  7008. svr_.set_logger([&](const Request & /*req*/, const Response &res) {
  7009. post_compression_body = res.body;
  7010. post_compression_content_type = res.get_header_value("Content-Type");
  7011. post_compression_content_encoding =
  7012. res.get_header_value("Content-Encoding");
  7013. });
  7014. // Test with gzip compression
  7015. Headers headers;
  7016. headers.emplace("Accept-Encoding", "gzip");
  7017. auto res = cli_.Get("/compress", headers);
  7018. // Verify response was compressed
  7019. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7020. EXPECT_EQ(StatusCode::OK_200, res->status);
  7021. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  7022. // Verify pre-compression logger captured uncompressed content
  7023. EXPECT_EQ(test_content, pre_compression_body);
  7024. EXPECT_EQ("text/plain", pre_compression_content_type);
  7025. EXPECT_TRUE(pre_compression_content_encoding
  7026. .empty()); // No encoding header before compression
  7027. // Verify post-compression logger captured compressed content
  7028. EXPECT_NE(test_content,
  7029. post_compression_body); // Should be different after compression
  7030. EXPECT_EQ("text/plain", post_compression_content_type);
  7031. EXPECT_EQ("gzip", post_compression_content_encoding);
  7032. // Verify compressed content is smaller
  7033. EXPECT_LT(post_compression_body.size(), pre_compression_body.size());
  7034. }
  7035. TEST_F(ServerTest, PreCompressionLoggingWithBrotli) {
  7036. const std::string test_content =
  7037. "123456789012345678901234567890123456789012345678901234567890123456789012"
  7038. "3456789012345678901234567890";
  7039. std::string pre_compression_body;
  7040. std::string post_compression_body;
  7041. svr_.set_pre_compression_logger(
  7042. [&](const Request & /*req*/, const Response &res) {
  7043. pre_compression_body = res.body;
  7044. });
  7045. svr_.set_logger([&](const Request & /*req*/, const Response &res) {
  7046. post_compression_body = res.body;
  7047. });
  7048. Headers headers;
  7049. headers.emplace("Accept-Encoding", "br");
  7050. auto res = cli_.Get("/compress", headers);
  7051. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7052. EXPECT_EQ(StatusCode::OK_200, res->status);
  7053. EXPECT_EQ("br", res->get_header_value("Content-Encoding"));
  7054. // Verify pre-compression content is uncompressed
  7055. EXPECT_EQ(test_content, pre_compression_body);
  7056. // Verify post-compression content is compressed
  7057. EXPECT_NE(test_content, post_compression_body);
  7058. EXPECT_LT(post_compression_body.size(), pre_compression_body.size());
  7059. }
  7060. TEST_F(ServerTest, PreCompressionLoggingWithoutCompression) {
  7061. const std::string test_content =
  7062. "123456789012345678901234567890123456789012345678901234567890123456789012"
  7063. "3456789012345678901234567890";
  7064. std::string pre_compression_body;
  7065. std::string post_compression_body;
  7066. svr_.set_pre_compression_logger(
  7067. [&](const Request & /*req*/, const Response &res) {
  7068. pre_compression_body = res.body;
  7069. });
  7070. svr_.set_logger([&](const Request & /*req*/, const Response &res) {
  7071. post_compression_body = res.body;
  7072. });
  7073. // Request without compression (use /nocompress endpoint)
  7074. Headers headers;
  7075. auto res = cli_.Get("/nocompress", headers);
  7076. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7077. EXPECT_EQ(StatusCode::OK_200, res->status);
  7078. EXPECT_TRUE(res->get_header_value("Content-Encoding").empty());
  7079. // Pre-compression logger should not be called when no compression is applied
  7080. EXPECT_TRUE(
  7081. pre_compression_body.empty()); // Pre-compression logger not called
  7082. EXPECT_EQ(
  7083. test_content,
  7084. post_compression_body); // Post-compression logger captures final content
  7085. }
  7086. TEST_F(ServerTest, LoggerSeesContentLength) {
  7087. size_t logged_content_length = 0;
  7088. std::string logged_content_length_header;
  7089. svr_.set_logger([&](const Request & /*req*/, const Response &res) {
  7090. logged_content_length = res.content_length_;
  7091. logged_content_length_header = res.get_header_value("Content-Length");
  7092. });
  7093. auto res = cli_.Get("/nocompress");
  7094. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7095. EXPECT_EQ(StatusCode::OK_200, res->status);
  7096. EXPECT_EQ(res->body.size(), logged_content_length);
  7097. EXPECT_EQ(std::to_string(logged_content_length),
  7098. logged_content_length_header);
  7099. }
  7100. TEST_F(ServerTest, PreCompressionLoggingOnlyPreLogger) {
  7101. const std::string test_content =
  7102. "123456789012345678901234567890123456789012345678901234567890123456789012"
  7103. "3456789012345678901234567890";
  7104. std::string pre_compression_body;
  7105. bool pre_logger_called = false;
  7106. // Set only pre-compression logger
  7107. svr_.set_pre_compression_logger(
  7108. [&](const Request & /*req*/, const Response &res) {
  7109. pre_compression_body = res.body;
  7110. pre_logger_called = true;
  7111. });
  7112. Headers headers;
  7113. headers.emplace("Accept-Encoding", "gzip");
  7114. auto res = cli_.Get("/compress", headers);
  7115. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7116. EXPECT_EQ(StatusCode::OK_200, res->status);
  7117. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  7118. // Verify pre-compression logger was called
  7119. EXPECT_TRUE(pre_logger_called);
  7120. EXPECT_EQ(test_content, pre_compression_body);
  7121. }
  7122. TEST_F(ServerTest, SendLargeBodyAfterRequestLineError) {
  7123. {
  7124. // Test with Expect: 100-continue header - success case
  7125. // Server returns 100 Continue, client sends body, server returns 200 OK
  7126. Request req;
  7127. req.method = "POST";
  7128. req.path = "/post-large";
  7129. req.set_header("Expect", "100-continue");
  7130. req.body = LARGE_DATA;
  7131. Response res;
  7132. auto error = Error::Success;
  7133. cli_.set_keep_alive(true);
  7134. auto ret = cli_.send(req, res, error);
  7135. EXPECT_TRUE(ret);
  7136. EXPECT_EQ(StatusCode::OK_200, res.status);
  7137. EXPECT_EQ(LARGE_DATA, res.body);
  7138. }
  7139. {
  7140. // Test with Expect: 100-continue header - error case
  7141. // Client should not send the body when server returns an error
  7142. Request req;
  7143. req.method = "POST";
  7144. req.path = "/post-large?q=" + LONG_QUERY_VALUE;
  7145. req.set_header("Expect", "100-continue");
  7146. req.body = LARGE_DATA;
  7147. Response res;
  7148. auto error = Error::Success;
  7149. auto start = std::chrono::high_resolution_clock::now();
  7150. cli_.set_keep_alive(true);
  7151. auto ret = cli_.send(req, res, error);
  7152. auto end = std::chrono::high_resolution_clock::now();
  7153. auto elapsed =
  7154. std::chrono::duration_cast<std::chrono::milliseconds>(end - start)
  7155. .count();
  7156. // With Expect: 100-continue, request completes successfully but with error
  7157. EXPECT_TRUE(ret);
  7158. EXPECT_EQ(StatusCode::UriTooLong_414, res.status);
  7159. EXPECT_EQ("close", res.get_header_value("Connection"));
  7160. EXPECT_FALSE(cli_.is_socket_open());
  7161. EXPECT_LE(elapsed, 2000);
  7162. }
  7163. {
  7164. // Send an extra GET request to ensure error recovery without hanging
  7165. Request req;
  7166. req.method = "GET";
  7167. req.path = "/hi";
  7168. auto start = std::chrono::high_resolution_clock::now();
  7169. auto res = cli_.send(req);
  7170. auto end = std::chrono::high_resolution_clock::now();
  7171. auto elapsed =
  7172. std::chrono::duration_cast<std::chrono::milliseconds>(end - start)
  7173. .count();
  7174. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7175. EXPECT_EQ(StatusCode::OK_200, res->status);
  7176. EXPECT_EQ("Hello World!", res->body);
  7177. EXPECT_LE(elapsed, 500);
  7178. }
  7179. }
  7180. TEST(ZstdDecompressor, ChunkedDecompression) {
  7181. std::string data;
  7182. for (size_t i = 0; i < 32 * 1024; ++i) {
  7183. data.push_back(static_cast<char>('a' + i % 26));
  7184. }
  7185. std::string compressed_data;
  7186. {
  7187. httplib::detail::zstd_compressor compressor;
  7188. bool result = compressor.compress(
  7189. data.data(), data.size(),
  7190. /*last=*/true,
  7191. [&](const char *compressed_data_chunk, size_t compressed_data_size) {
  7192. compressed_data.insert(compressed_data.size(), compressed_data_chunk,
  7193. compressed_data_size);
  7194. return true;
  7195. });
  7196. ASSERT_TRUE(result);
  7197. }
  7198. std::string decompressed_data;
  7199. {
  7200. httplib::detail::zstd_decompressor decompressor;
  7201. // Chunk size is chosen specifically to have a decompressed chunk size equal
  7202. // to 16384 bytes 16384 bytes is the size of decompressor output buffer
  7203. size_t chunk_size = 130;
  7204. for (size_t chunk_begin = 0; chunk_begin < compressed_data.size();
  7205. chunk_begin += chunk_size) {
  7206. size_t current_chunk_size =
  7207. std::min(compressed_data.size() - chunk_begin, chunk_size);
  7208. bool result = decompressor.decompress(
  7209. compressed_data.data() + chunk_begin, current_chunk_size,
  7210. [&](const char *decompressed_data_chunk,
  7211. size_t decompressed_data_chunk_size) {
  7212. decompressed_data.insert(decompressed_data.size(),
  7213. decompressed_data_chunk,
  7214. decompressed_data_chunk_size);
  7215. return true;
  7216. });
  7217. ASSERT_TRUE(result);
  7218. }
  7219. }
  7220. ASSERT_EQ(data, decompressed_data);
  7221. }
  7222. TEST(ZstdDecompressor, Decompress) {
  7223. std::string original_text = "Compressed with ZSTD";
  7224. unsigned char data[29] = {0x28, 0xb5, 0x2f, 0xfd, 0x20, 0x14, 0xa1, 0x00,
  7225. 0x00, 0x43, 0x6f, 0x6d, 0x70, 0x72, 0x65, 0x73,
  7226. 0x73, 0x65, 0x64, 0x20, 0x77, 0x69, 0x74, 0x68,
  7227. 0x20, 0x5a, 0x53, 0x54, 0x44};
  7228. std::string compressed_data(data, data + sizeof(data) / sizeof(data[0]));
  7229. std::string decompressed_data;
  7230. {
  7231. httplib::detail::zstd_decompressor decompressor;
  7232. bool result = decompressor.decompress(
  7233. compressed_data.data(), compressed_data.size(),
  7234. [&](const char *decompressed_data_chunk,
  7235. size_t decompressed_data_chunk_size) {
  7236. decompressed_data.insert(decompressed_data.size(),
  7237. decompressed_data_chunk,
  7238. decompressed_data_chunk_size);
  7239. return true;
  7240. });
  7241. ASSERT_TRUE(result);
  7242. }
  7243. ASSERT_EQ(original_text, decompressed_data);
  7244. }
  7245. #endif
  7246. // Sends a raw request to a server listening at HOST:PORT.
  7247. static bool send_request(time_t read_timeout_sec, const std::string &req,
  7248. std::string *resp = nullptr, int port = PORT) {
  7249. auto error = Error::Success;
  7250. auto client_sock = detail::create_client_socket(
  7251. HOST, "", port, AF_UNSPEC, false, false, nullptr,
  7252. /*connection_timeout_sec=*/5, 0,
  7253. /*read_timeout_sec=*/5, 0,
  7254. /*write_timeout_sec=*/5, 0, std::string(), error);
  7255. if (client_sock == INVALID_SOCKET) { return false; }
  7256. auto ret = detail::process_client_socket(
  7257. client_sock, read_timeout_sec, 0, 0, 0, 0,
  7258. std::chrono::steady_clock::time_point::min(), [&](Stream &strm) {
  7259. if (req.size() !=
  7260. static_cast<size_t>(strm.write(req.data(), req.size()))) {
  7261. return false;
  7262. }
  7263. char buf[512];
  7264. detail::stream_line_reader line_reader(strm, buf, sizeof(buf));
  7265. while (line_reader.getline()) {
  7266. if (resp) { *resp += line_reader.ptr(); }
  7267. }
  7268. return true;
  7269. });
  7270. detail::close_socket(client_sock);
  7271. return ret;
  7272. }
  7273. TEST(ServerRequestParsingTest, TrimWhitespaceFromHeaderValues) {
  7274. Server svr;
  7275. std::string header_value;
  7276. svr.Get("/validate-ws-in-headers", [&](const Request &req, Response &res) {
  7277. header_value = req.get_header_value("foo");
  7278. res.set_content("ok", "text/plain");
  7279. });
  7280. thread t = thread([&] { svr.listen(HOST, PORT); });
  7281. auto se = detail::scope_exit([&] {
  7282. svr.stop();
  7283. t.join();
  7284. ASSERT_FALSE(svr.is_running());
  7285. });
  7286. svr.wait_until_ready();
  7287. // Only space and horizontal tab are whitespace. Make sure other whitespace-
  7288. // like characters are not treated the same - use vertical tab and escape.
  7289. const std::string req = "GET /validate-ws-in-headers HTTP/1.1\r\n"
  7290. "foo: \t \v bar \x1B\t \r\n"
  7291. "Connection: close\r\n"
  7292. "\r\n";
  7293. std::string res;
  7294. ASSERT_TRUE(send_request(5, req, &res));
  7295. EXPECT_EQ(header_value, "");
  7296. EXPECT_EQ("HTTP/1.1 400 Bad Request", res.substr(0, 24));
  7297. }
  7298. TEST(HeadersOrderTest, ReceivedFieldsKeepTheirOrder) {
  7299. Server svr;
  7300. std::string received;
  7301. svr.Get("/order", [&](const Request &req, Response &res) {
  7302. received = entries_to_string(req.headers);
  7303. res.set_content("ok", "text/plain");
  7304. });
  7305. auto port = svr.bind_to_any_port(HOST);
  7306. thread t = thread([&] { svr.listen_after_bind(); });
  7307. auto se = detail::scope_exit([&] {
  7308. svr.stop();
  7309. t.join();
  7310. ASSERT_FALSE(svr.is_running());
  7311. });
  7312. svr.wait_until_ready();
  7313. const std::string req = "GET /order HTTP/1.1\r\n"
  7314. "X-First: 1\r\n"
  7315. "X-Dup: a\r\n"
  7316. "X-Second: 2\r\n"
  7317. "X-Dup: b\r\n"
  7318. "Connection: close\r\n"
  7319. "\r\n";
  7320. std::string res;
  7321. ASSERT_TRUE(send_request(5, req, &res, port));
  7322. EXPECT_EQ("HTTP/1.1 200 OK", res.substr(0, 15));
  7323. EXPECT_EQ("X-First=1 X-Dup=a X-Second=2 X-Dup=b Connection=close ", received);
  7324. }
  7325. TEST(HeadersOrderTest, SentFieldsKeepTheirOrder) {
  7326. Server svr;
  7327. svr.Get("/cookies", [](const Request & /*req*/, Response &res) {
  7328. res.set_header("Set-Cookie", "first=1");
  7329. res.set_header("X-Between", "y");
  7330. res.set_header("Set-Cookie", "second=2");
  7331. res.set_content("ok", "text/plain");
  7332. });
  7333. auto port = svr.bind_to_any_port(HOST);
  7334. thread t = thread([&] { svr.listen_after_bind(); });
  7335. auto se = detail::scope_exit([&] {
  7336. svr.stop();
  7337. t.join();
  7338. ASSERT_FALSE(svr.is_running());
  7339. });
  7340. svr.wait_until_ready();
  7341. Client cli(HOST, port);
  7342. auto res = cli.Get("/cookies");
  7343. ASSERT_TRUE(res);
  7344. EXPECT_EQ(2U, res->get_header_value_count("Set-Cookie"));
  7345. EXPECT_EQ("first=1", res->get_header_value("Set-Cookie", "", 0));
  7346. EXPECT_EQ("second=2", res->get_header_value("Set-Cookie", "", 1));
  7347. }
  7348. TEST(ServerResponseSplittingTest, ChunkedTrailerCRLFInjection) {
  7349. Server svr;
  7350. svr.Get("/injected-trailer", [&](const Request & /*req*/, Response &res) {
  7351. auto i = new int(0);
  7352. res.set_header("Trailer", "X-Safe, X-Reflected");
  7353. res.set_chunked_content_provider(
  7354. "text/plain",
  7355. [i](size_t /*offset*/, DataSink &sink) {
  7356. if (*i == 0) {
  7357. sink.os << "body";
  7358. } else {
  7359. Headers trailer;
  7360. // A valid trailer that must survive.
  7361. trailer.emplace("X-Safe", "safe");
  7362. // Attacker-controlled value carrying CR/LF (response splitting).
  7363. trailer.emplace("X-Reflected",
  7364. "legit\r\nInjected-Header: pwned\r\nX-Evil: also");
  7365. // Attacker-controlled name carrying CR/LF.
  7366. trailer.emplace("X-Bad\r\nSet-Cookie: a=1", "x");
  7367. sink.done_with_trailer(trailer);
  7368. }
  7369. (*i)++;
  7370. return true;
  7371. },
  7372. [i](bool /*success*/) { delete i; });
  7373. });
  7374. thread t = thread([&] { svr.listen(HOST, PORT); });
  7375. auto se = detail::scope_exit([&] {
  7376. svr.stop();
  7377. t.join();
  7378. ASSERT_FALSE(svr.is_running());
  7379. });
  7380. svr.wait_until_ready();
  7381. const std::string req = std::string("GET /injected-trailer HTTP/1.1\r\n") +
  7382. "Host: " + HOST +
  7383. "\r\n"
  7384. "Connection: close\r\n"
  7385. "\r\n";
  7386. std::string res;
  7387. ASSERT_TRUE(send_request(5, req, &res));
  7388. // The injected fields must not appear anywhere in the raw response.
  7389. EXPECT_EQ(std::string::npos, res.find("Injected-Header"));
  7390. EXPECT_EQ(std::string::npos, res.find("X-Evil"));
  7391. EXPECT_EQ(std::string::npos, res.find("Set-Cookie"));
  7392. // Invalid trailers are dropped entirely, matching set_header().
  7393. EXPECT_EQ(std::string::npos, res.find("X-Reflected:"));
  7394. // The valid trailer still passes through.
  7395. EXPECT_NE(std::string::npos, res.find("X-Safe: safe"));
  7396. }
  7397. TEST(ServerResponseSplittingTest, ResponseHeaderCRLFInjection) {
  7398. Server svr;
  7399. svr.Get("/injected-header", [&](const Request & /*req*/, Response &res) {
  7400. // res.headers is a public field an application can populate directly,
  7401. // bypassing set_header()'s validation (e.g. reflecting a request value).
  7402. // A valid header that must survive.
  7403. res.headers.emplace("X-Safe", "safe");
  7404. // Attacker-controlled value carrying CR/LF (response splitting).
  7405. res.headers.emplace("X-Reflected",
  7406. "legit\r\nInjected-Header: pwned\r\nX-Evil: also");
  7407. // Attacker-controlled name carrying CR/LF.
  7408. res.headers.emplace("X-Bad\r\nSet-Cookie: a=1", "x");
  7409. res.set_content("body", "text/plain");
  7410. });
  7411. thread t = thread([&] { svr.listen(HOST, PORT); });
  7412. auto se = detail::scope_exit([&] {
  7413. svr.stop();
  7414. t.join();
  7415. ASSERT_FALSE(svr.is_running());
  7416. });
  7417. svr.wait_until_ready();
  7418. const std::string req = std::string("GET /injected-header HTTP/1.1\r\n") +
  7419. "Host: " + HOST +
  7420. "\r\n"
  7421. "Connection: close\r\n"
  7422. "\r\n";
  7423. std::string res;
  7424. ASSERT_TRUE(send_request(5, req, &res));
  7425. // The injected fields must not appear anywhere in the raw response.
  7426. EXPECT_EQ(std::string::npos, res.find("Injected-Header"));
  7427. EXPECT_EQ(std::string::npos, res.find("X-Evil"));
  7428. EXPECT_EQ(std::string::npos, res.find("Set-Cookie"));
  7429. // Invalid headers are dropped entirely, matching set_header().
  7430. EXPECT_EQ(std::string::npos, res.find("X-Reflected:"));
  7431. // The valid header still passes through.
  7432. EXPECT_NE(std::string::npos, res.find("X-Safe: safe"));
  7433. }
  7434. // Forward declaration: in split builds split.py strips `inline` and moves the
  7435. // definition into httplib.cc, so detail::write_request_line is not visible from
  7436. // the public httplib.h. Re-declaring it here lets the tests link against the
  7437. // symbol in both header-only and split builds.
  7438. namespace httplib {
  7439. namespace detail {
  7440. ssize_t write_request_line(Stream &strm, const std::string &method,
  7441. const std::string &path);
  7442. } // namespace detail
  7443. } // namespace httplib
  7444. TEST(RequestLineInjectionTest, RejectsCRLFInTarget) {
  7445. // A well-formed target is written verbatim.
  7446. {
  7447. detail::BufferStream strm;
  7448. auto n = detail::write_request_line(strm, "GET", "/path?a=b");
  7449. EXPECT_GT(n, 0);
  7450. EXPECT_EQ("GET /path?a=b HTTP/1.1\r\n", strm.get_buffer());
  7451. }
  7452. // A target carrying CR/LF must be rejected before anything reaches the wire,
  7453. // otherwise it splits the request line and injects a header or a whole
  7454. // request. This is what a decoded redirect Location ("%0D%0A") turns into
  7455. // when path encoding is disabled.
  7456. const std::string evil_targets[] = {
  7457. "/a\r\nInjected: pwned",
  7458. "/a\rInjected",
  7459. "/a\nInjected",
  7460. "/a\r\n\r\nGET /evil HTTP/1.1\r\nHost: victim\r\n\r\n",
  7461. };
  7462. for (const auto &evil : evil_targets) {
  7463. detail::BufferStream strm;
  7464. auto n = detail::write_request_line(strm, "GET", evil);
  7465. EXPECT_LT(n, 0);
  7466. EXPECT_TRUE(strm.get_buffer().empty());
  7467. }
  7468. }
  7469. TEST(RequestLineInjectionTest, ClientRejectsCRLFTargetEndToEnd) {
  7470. // End-to-end counterpart to RejectsCRLFInTarget. With path encoding disabled
  7471. // the client transmits the target verbatim, so a CR/LF-bearing target -- what
  7472. // a redirect Location "%0D%0A" decodes to -- reaches write_request. The
  7473. // client must fail cleanly with Error::Write instead of putting a
  7474. // request-line-less, header-injecting request on the wire.
  7475. Server svr;
  7476. svr.Get("/a", [](const Request &, Response &res) {
  7477. res.set_content("ok", "text/plain");
  7478. });
  7479. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  7480. auto se = detail::scope_exit([&] {
  7481. svr.stop();
  7482. thread.join();
  7483. ASSERT_FALSE(svr.is_running());
  7484. });
  7485. svr.wait_until_ready();
  7486. {
  7487. Client cli(HOST, PORT);
  7488. cli.set_path_encode(false);
  7489. // The request is rejected before anything is written, so the connection
  7490. // stays silent and the subsequent response read would otherwise block for
  7491. // the full default read timeout. Shorten it -- the assertion is on the
  7492. // error, not the timeout.
  7493. cli.set_read_timeout(1, 0);
  7494. auto res = cli.Get("/a\r\nInjected: pwned");
  7495. EXPECT_FALSE(res);
  7496. EXPECT_EQ(Error::Write, res.error());
  7497. }
  7498. }
  7499. // Sends a raw request and verifies that there isn't a crash or exception.
  7500. static void test_raw_request(const std::string &req,
  7501. std::string *out = nullptr) {
  7502. Server svr;
  7503. svr.Get("/hi", [&](const Request & /*req*/, Response &res) {
  7504. res.set_content("ok", "text/plain");
  7505. });
  7506. svr.Put("/put_hi", [&](const Request & /*req*/, Response &res) {
  7507. res.set_content("ok", "text/plain");
  7508. });
  7509. svr.Get("/header_field_value_check",
  7510. [&](const Request & /*req*/, Response &res) {
  7511. res.set_content("ok", "text/plain");
  7512. });
  7513. // Server read timeout must be longer than the client read timeout for the
  7514. // bug to reproduce, probably to force the server to process a request
  7515. // without a trailing blank line.
  7516. const time_t client_read_timeout_sec = 1;
  7517. svr.set_read_timeout(std::chrono::seconds(client_read_timeout_sec + 1));
  7518. bool listen_thread_ok = false;
  7519. thread t = thread([&] { listen_thread_ok = svr.listen(HOST, PORT); });
  7520. auto se = detail::scope_exit([&] {
  7521. svr.stop();
  7522. t.join();
  7523. ASSERT_FALSE(svr.is_running());
  7524. EXPECT_TRUE(listen_thread_ok);
  7525. });
  7526. svr.wait_until_ready();
  7527. ASSERT_TRUE(send_request(client_read_timeout_sec, req, out));
  7528. }
  7529. TEST(ServerRequestParsingTest, ReadHeadersRegexComplexity) {
  7530. // A certain header line causes an exception if the header property is parsed
  7531. // naively with a single regex. This occurs with libc++ but not libstdc++.
  7532. test_raw_request(
  7533. "GET /hi HTTP/1.1\r\n"
  7534. " : "
  7535. " "
  7536. " ");
  7537. }
  7538. TEST(ServerRequestParsingTest, ReadHeadersRegexComplexity2) {
  7539. // A certain header line causes an exception if the header property *name* is
  7540. // parsed with a regular expression starting with "(.+?):" - this is a non-
  7541. // greedy matcher and requires backtracking when there are a lot of ":"
  7542. // characters.
  7543. // This occurs with libc++ but not libstdc++.
  7544. test_raw_request(
  7545. "GET /hi HTTP/1.1\r\n"
  7546. ":-:::::::::::::::::::::::::::-::::::::::::::::::::::::@-&&&&&&&&&&&"
  7547. "--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@-&&&&&&&&"
  7548. "&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@-:::::"
  7549. "::-:::::::::::::::::@-&&&&&&&&&&&--:::::::-::::::::::::::::::::::::"
  7550. ":::::-:::::::::::::::::@-&&&&&&&&&&&--:::::::-:::::::::::::::::::::"
  7551. "::::::::-:::::::::::::::::@-&&&&&&&--:::::::-::::::::::::::::::::::"
  7552. ":::::::-:::::::::::::::::@-&&&&&&&&&&&--:::::::-:::::::::::::::::::"
  7553. "::::::::::-:::::::::::::::::@-&&&&&::::::::::::-:::::::::::::::::@-"
  7554. "&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-::::::::::::::::"
  7555. ":@-&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::"
  7556. "::::@-&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-::::::@-&&"
  7557. "&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@"
  7558. "::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@-&&&&&&&&&&&"
  7559. "--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@-&&&&&&&&"
  7560. "&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@-&&&&&"
  7561. "&&&&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@-&&"
  7562. "&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::::@"
  7563. "-&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::::"
  7564. "::@-&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-::::::::::::"
  7565. ":::::@-&&&&&&&&&&&::-:::::::::::::::::@-&&&&&&&&&&&--:::::::-::::::"
  7566. ":::::::::::::::::::::::-:::::::::::::::::@-&&&&&&&&&&&--:::::::-:::"
  7567. "::::::::::::::::::::::::::-:::::::::::::::::@-&&&&&&&&&&&--:::::::-"
  7568. ":::::::::::::::::::::::::::::-:::::::::::::::::@-&&&&&&&&&&&---&&:&"
  7569. "&&.0------------:-:::::::::::::::::::::::::::::-:::::::::::::::::@-"
  7570. "&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-::::::::::::::::"
  7571. ":@-&&&&&&&&&&&--:::::::-:::::::::::::::::::::::::::::-:::::::::::::"
  7572. "::::@-&&&&&&&&&&&---&&:&&&.0------------O--------\rH PUTHTTP/1.1\r\n"
  7573. "&&&%%%");
  7574. }
  7575. TEST(ServerRequestParsingTest, ExcessiveWhitespaceInUnparsableHeaderLine) {
  7576. // Make sure this doesn't crash the server.
  7577. // In a previous version of the header line regex, the "\r" rendered the line
  7578. // unparsable and the regex engine repeatedly backtracked, trying to look for
  7579. // a new position where the leading white space ended and the field value
  7580. // began.
  7581. // The crash occurs with libc++ but not libstdc++.
  7582. test_raw_request("GET /hi HTTP/1.1\r\n"
  7583. "a:" +
  7584. std::string(2000, ' ') + '\r' + std::string(20, 'z') +
  7585. "\r\n"
  7586. "\r\n");
  7587. }
  7588. TEST(ServerRequestParsingTest, InvalidFirstChunkLengthInRequest) {
  7589. std::string out;
  7590. test_raw_request("PUT /put_hi HTTP/1.1\r\n"
  7591. "Content-Type: text/plain\r\n"
  7592. "Transfer-Encoding: chunked\r\n"
  7593. "\r\n"
  7594. "nothex\r\n",
  7595. &out);
  7596. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7597. }
  7598. TEST(ServerRequestParsingTest, InvalidSecondChunkLengthInRequest) {
  7599. std::string out;
  7600. test_raw_request("PUT /put_hi HTTP/1.1\r\n"
  7601. "Content-Type: text/plain\r\n"
  7602. "Transfer-Encoding: chunked\r\n"
  7603. "\r\n"
  7604. "3\r\n"
  7605. "xyz\r\n"
  7606. "NaN\r\n",
  7607. &out);
  7608. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7609. }
  7610. TEST(ServerRequestParsingTest, ChunkLengthTooHighInRequest) {
  7611. std::string out;
  7612. test_raw_request("PUT /put_hi HTTP/1.1\r\n"
  7613. "Content-Type: text/plain\r\n"
  7614. "Transfer-Encoding: chunked\r\n"
  7615. "\r\n"
  7616. // Length is too large for 64 bits.
  7617. "1ffffffffffffffff\r\n"
  7618. "xyz\r\n",
  7619. &out);
  7620. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7621. }
  7622. TEST(ServerRequestParsingTest, InvalidHeaderTextWithExtraCR) {
  7623. test_raw_request("GET /hi HTTP/1.1\r\n"
  7624. "Content-Type: text/plain\r\n\r");
  7625. }
  7626. TEST(ServerRequestParsingTest, InvalidSpaceInURL) {
  7627. std::string out;
  7628. test_raw_request("GET /h i HTTP/1.1\r\n\r\n", &out);
  7629. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7630. }
  7631. TEST(ServerRequestParsingTest, RemoteAddrSetOnBadRequest) {
  7632. Server svr;
  7633. svr.set_error_handler([&](const Request &req, Response & /*res*/) {
  7634. EXPECT_TRUE(!req.remote_addr.empty());
  7635. });
  7636. thread t = thread([&] { svr.listen(HOST, PORT); });
  7637. auto se = detail::scope_exit([&] {
  7638. svr.stop();
  7639. t.join();
  7640. ASSERT_FALSE(svr.is_running());
  7641. });
  7642. svr.wait_until_ready();
  7643. // Send an invalid request line to trigger Bad Request
  7644. const std::string bad_req = "BADMETHOD / HTTP/1.1\r\nHost: localhost\r\n\r\n";
  7645. std::string out;
  7646. ASSERT_TRUE(send_request(5, bad_req, &out));
  7647. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7648. }
  7649. TEST(ServerRequestParsingTest, InvalidFieldValueContains_CR_LF_NUL) {
  7650. std::string out;
  7651. std::string request(
  7652. "GET /header_field_value_check HTTP/1.1\r\nTest: [\r\x00\n]\r\n\r\n", 55);
  7653. test_raw_request(request, &out);
  7654. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7655. }
  7656. TEST(ServerRequestParsingTest, InvalidFieldValueContains_LF) {
  7657. std::string out;
  7658. std::string request(
  7659. "GET /header_field_value_check HTTP/1.1\r\nTest: [\n\n\n]\r\n\r\n", 55);
  7660. test_raw_request(request, &out);
  7661. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7662. }
  7663. TEST(ServerRequestParsingTest, InvalidFieldNameContains_PreceedingSpaces) {
  7664. std::string out;
  7665. std::string request(
  7666. "GET /header_field_value_check HTTP/1.1\r\n Test: val\r\n\r\n", 55);
  7667. test_raw_request(request, &out);
  7668. EXPECT_EQ("HTTP/1.1 400 Bad Request", out.substr(0, 24));
  7669. }
  7670. TEST(ServerRequestParsingTest, EmptyFieldValue) {
  7671. std::string out;
  7672. test_raw_request("GET /header_field_value_check HTTP/1.1\r\n"
  7673. "Test: \r\n\r\n",
  7674. &out);
  7675. EXPECT_EQ("HTTP/1.1 200 OK", out.substr(0, 15));
  7676. }
  7677. TEST(ServerRequestParsingTest, HeaderValueNotPercentDecoded) {
  7678. Server svr;
  7679. std::string x_custom;
  7680. std::string cookie;
  7681. std::string xff;
  7682. std::string x_unicode;
  7683. std::string x_iis;
  7684. svr.Get("/check", [&](const Request &req, Response &res) {
  7685. x_custom = req.get_header_value("X-Custom");
  7686. cookie = req.get_header_value("Cookie");
  7687. xff = req.get_header_value("X-Forwarded-For");
  7688. x_unicode = req.get_header_value("X-Unicode");
  7689. x_iis = req.get_header_value("X-IIS");
  7690. res.set_content("ok", "text/plain");
  7691. });
  7692. thread t = thread([&] { svr.listen(HOST, PORT); });
  7693. auto se = detail::scope_exit([&] {
  7694. svr.stop();
  7695. t.join();
  7696. ASSERT_FALSE(svr.is_running());
  7697. });
  7698. svr.wait_until_ready();
  7699. const std::string req = "GET /check HTTP/1.1\r\n"
  7700. "Host: localhost\r\n"
  7701. "X-Custom: a%0D%0AInjected: b\r\n"
  7702. "Cookie: session%3Dvictim%3B%20admin%3Dyes\r\n"
  7703. "X-Forwarded-For: 1.2.3.4%2C5.6.7.8\r\n"
  7704. "X-Unicode: %E3%81%82\r\n"
  7705. "X-IIS: %u00E9\r\n"
  7706. "Connection: close\r\n"
  7707. "\r\n";
  7708. std::string res;
  7709. ASSERT_TRUE(send_request(5, req, &res));
  7710. EXPECT_EQ("HTTP/1.1 200 OK", res.substr(0, 15));
  7711. // Every value must be returned verbatim (wire form), with no decoding.
  7712. EXPECT_EQ("a%0D%0AInjected: b", x_custom);
  7713. EXPECT_EQ("session%3Dvictim%3B%20admin%3Dyes", cookie);
  7714. EXPECT_EQ("1.2.3.4%2C5.6.7.8", xff);
  7715. EXPECT_EQ("%E3%81%82", x_unicode);
  7716. EXPECT_EQ("%u00E9", x_iis);
  7717. }
  7718. // Applications that previously relied on automatic percent-decoding can
  7719. // reproduce the old behavior by explicitly calling decode_path_component()
  7720. // or, for RFC 3986 conformance, decode_uri_component().
  7721. TEST(ServerRequestParsingTest, HeaderValueExplicitDecodingByApplication) {
  7722. Server svr;
  7723. std::string decoded;
  7724. svr.Get("/check", [&](const Request &req, Response &res) {
  7725. decoded = decode_uri_component(req.get_header_value("X-Custom"));
  7726. res.set_content("ok", "text/plain");
  7727. });
  7728. thread t = thread([&] { svr.listen(HOST, PORT); });
  7729. auto se = detail::scope_exit([&] {
  7730. svr.stop();
  7731. t.join();
  7732. ASSERT_FALSE(svr.is_running());
  7733. });
  7734. svr.wait_until_ready();
  7735. const std::string req = "GET /check HTTP/1.1\r\n"
  7736. "Host: localhost\r\n"
  7737. "X-Custom: hello%20world\r\n"
  7738. "Connection: close\r\n"
  7739. "\r\n";
  7740. std::string res;
  7741. ASSERT_TRUE(send_request(5, req, &res));
  7742. EXPECT_EQ("HTTP/1.1 200 OK", res.substr(0, 15));
  7743. EXPECT_EQ("hello world", decoded);
  7744. }
  7745. // Regression test for #2033. Browsers send Referer values that include
  7746. // percent-encoded characters such as %0A inside the URL. Decoding the
  7747. // header value would either trip the post-decode CR/LF/NUL guard (the
  7748. // original bug, returning 400) or, after that guard was relaxed, silently
  7749. // store a literal LF — both unacceptable. The wire form must round-trip.
  7750. TEST(ServerRequestParsingTest, RefererWithPercentEncodedNewline) {
  7751. Server svr;
  7752. std::string referer;
  7753. svr.Get("/check", [&](const Request &req, Response &res) {
  7754. referer = req.get_header_value("Referer");
  7755. res.set_content("ok", "text/plain");
  7756. });
  7757. thread t = thread([&] { svr.listen(HOST, PORT); });
  7758. auto se = detail::scope_exit([&] {
  7759. svr.stop();
  7760. t.join();
  7761. ASSERT_FALSE(svr.is_running());
  7762. });
  7763. svr.wait_until_ready();
  7764. const std::string req = "GET /check HTTP/1.1\r\n"
  7765. "Host: localhost\r\n"
  7766. "Referer: http://localhost:1111/?q=Hello%0A\r\n"
  7767. "Connection: close\r\n"
  7768. "\r\n";
  7769. std::string res;
  7770. ASSERT_TRUE(send_request(5, req, &res));
  7771. EXPECT_EQ("HTTP/1.1 200 OK", res.substr(0, 15));
  7772. EXPECT_EQ("http://localhost:1111/?q=Hello%0A", referer);
  7773. }
  7774. TEST(ServerStopTest, StopServerWithChunkedTransmission) {
  7775. Server svr;
  7776. svr.Get("/events", [](const Request & /*req*/, Response &res) {
  7777. res.set_header("Cache-Control", "no-cache");
  7778. res.set_chunked_content_provider(
  7779. "text/event-stream", [](size_t offset, DataSink &sink) {
  7780. std::string s = "data:";
  7781. s += std::to_string(offset);
  7782. s += "\n\n";
  7783. auto ret = sink.write(s.data(), s.size());
  7784. EXPECT_TRUE(ret);
  7785. std::this_thread::sleep_for(std::chrono::seconds(1));
  7786. return true;
  7787. });
  7788. });
  7789. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  7790. svr.wait_until_ready();
  7791. Client client(HOST, PORT);
  7792. const Headers headers = {{"Accept", "text/event-stream"}};
  7793. auto get_thread = std::thread([&client, &headers]() {
  7794. auto res = client.Get(
  7795. "/events", headers,
  7796. [](const char * /*data*/, size_t /*len*/) -> bool { return true; });
  7797. });
  7798. auto se = detail::scope_exit([&] {
  7799. svr.stop();
  7800. get_thread.join();
  7801. listen_thread.join();
  7802. ASSERT_FALSE(svr.is_running());
  7803. });
  7804. // Give GET time to get a few messages.
  7805. std::this_thread::sleep_for(std::chrono::seconds(2));
  7806. }
  7807. TEST(ServerStopTest, ClientAccessAfterServerDown) {
  7808. httplib::Server svr;
  7809. svr.Post("/hi",
  7810. [&](const httplib::Request & /*req*/, httplib::Response &res) {
  7811. res.status = StatusCode::OK_200;
  7812. });
  7813. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  7814. svr.wait_until_ready();
  7815. Client cli(HOST, PORT);
  7816. auto res = cli.Post("/hi", "data", "text/plain");
  7817. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7818. EXPECT_EQ(StatusCode::OK_200, res->status);
  7819. svr.stop();
  7820. thread.join();
  7821. ASSERT_FALSE(svr.is_running());
  7822. res = cli.Post("/hi", "data", "text/plain");
  7823. ASSERT_FALSE(res);
  7824. }
  7825. TEST(ServerStopTest, ListenFailure) {
  7826. Server svr;
  7827. auto t = thread([&]() {
  7828. auto ret = svr.listen("????", PORT);
  7829. EXPECT_FALSE(ret);
  7830. });
  7831. svr.wait_until_ready();
  7832. svr.stop();
  7833. t.join();
  7834. }
  7835. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  7836. TEST(ServerStopTest, Decommision) {
  7837. Server svr;
  7838. svr.Get("/hi", [&](const Request &, Response &res) { res.body = "hi..."; });
  7839. for (int i = 0; i < 4; i++) {
  7840. auto is_even = !(i % 2);
  7841. std::thread t{[&] {
  7842. try {
  7843. std::this_thread::sleep_for(std::chrono::milliseconds(100));
  7844. if (is_even) {
  7845. throw std::runtime_error("Some thing that happens to go wrong.");
  7846. }
  7847. svr.listen(HOST, PORT);
  7848. } catch (...) { svr.decommission(); }
  7849. }};
  7850. svr.wait_until_ready();
  7851. // Server is up
  7852. {
  7853. Client cli(HOST, PORT);
  7854. auto res = cli.Get("/hi");
  7855. if (is_even) {
  7856. EXPECT_FALSE(res);
  7857. } else {
  7858. EXPECT_TRUE(res);
  7859. EXPECT_EQ("hi...", res->body);
  7860. }
  7861. }
  7862. svr.stop();
  7863. t.join();
  7864. // Server is down...
  7865. {
  7866. Client cli(HOST, PORT);
  7867. auto res = cli.Get("/hi");
  7868. EXPECT_FALSE(res);
  7869. }
  7870. }
  7871. }
  7872. #endif
  7873. // Helper function for string body upload progress tests
  7874. template <typename SetupHandler, typename ClientCall>
  7875. void TestStringBodyUploadProgress(SetupHandler &&setup_handler,
  7876. ClientCall &&client_call,
  7877. const string &body) {
  7878. Server svr;
  7879. setup_handler(svr);
  7880. thread t = thread([&]() { svr.listen(HOST, PORT); });
  7881. auto se = detail::scope_exit([&] {
  7882. svr.stop();
  7883. t.join();
  7884. });
  7885. svr.wait_until_ready();
  7886. Client cli(HOST, PORT);
  7887. vector<uint64_t> progress_values;
  7888. bool progress_called = false;
  7889. auto res =
  7890. client_call(cli, body, [&](uint64_t current, uint64_t /*total*/) -> bool {
  7891. progress_values.push_back(current);
  7892. progress_called = true;
  7893. return true;
  7894. });
  7895. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7896. EXPECT_EQ(200, res->status);
  7897. EXPECT_TRUE(progress_called);
  7898. }
  7899. TEST(UploadProgressTest, PostStringBodyBasic) {
  7900. TestStringBodyUploadProgress(
  7901. [](Server &svr) {
  7902. svr.Post("/test", [](const Request & /*req*/, Response &res) {
  7903. res.set_content("received", "text/plain");
  7904. });
  7905. },
  7906. [](Client &cli, const string &body, UploadProgress progress_callback) {
  7907. return cli.Post("/test", body, "text/plain", progress_callback);
  7908. },
  7909. "test data for upload progress");
  7910. }
  7911. TEST(UploadProgressTest, PutStringBodyBasic) {
  7912. TestStringBodyUploadProgress(
  7913. [](Server &svr) {
  7914. svr.Put("/test", [](const Request & /*req*/, Response &res) {
  7915. res.set_content("put received", "text/plain");
  7916. });
  7917. },
  7918. [](Client &cli, const string &body, UploadProgress progress_callback) {
  7919. return cli.Put("/test", body, "text/plain", progress_callback);
  7920. },
  7921. "put test data for upload progress");
  7922. }
  7923. TEST(UploadProgressTest, PatchStringBodyBasic) {
  7924. TestStringBodyUploadProgress(
  7925. [](Server &svr) {
  7926. svr.Patch("/test", [](const Request & /*req*/, Response &res) {
  7927. res.set_content("patch received", "text/plain");
  7928. });
  7929. },
  7930. [](Client &cli, const string &body, UploadProgress progress_callback) {
  7931. return cli.Patch("/test", body, "text/plain", progress_callback);
  7932. },
  7933. "patch test data for upload progress");
  7934. }
  7935. // Helper function for content provider upload progress tests
  7936. template <typename SetupHandler, typename ClientCall>
  7937. void TestContentProviderUploadProgress(SetupHandler &&setup_handler,
  7938. ClientCall &&client_call) {
  7939. Server svr;
  7940. setup_handler(svr);
  7941. thread t = thread([&]() { svr.listen(HOST, PORT); });
  7942. auto se = detail::scope_exit([&] {
  7943. svr.stop();
  7944. t.join();
  7945. });
  7946. svr.wait_until_ready();
  7947. Client cli(HOST, PORT);
  7948. vector<uint64_t> progress_values;
  7949. auto res =
  7950. client_call(cli, [&](uint64_t current, uint64_t /*total*/) -> bool {
  7951. progress_values.push_back(current);
  7952. return true;
  7953. });
  7954. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  7955. EXPECT_EQ(200, res->status);
  7956. EXPECT_FALSE(progress_values.empty());
  7957. }
  7958. TEST(UploadProgressTest, PostContentProviderProgress) {
  7959. TestContentProviderUploadProgress(
  7960. [](Server &svr) {
  7961. svr.Post("/test", [](const Request & /*req*/, Response &res) {
  7962. res.set_content("provider received", "text/plain");
  7963. });
  7964. },
  7965. [](Client &cli, UploadProgress progress_callback) {
  7966. return cli.Post(
  7967. "/test", 10,
  7968. [](size_t /*offset*/, size_t /*length*/, DataSink &sink) -> bool {
  7969. sink.os << "test data";
  7970. return true;
  7971. },
  7972. "text/plain", progress_callback);
  7973. });
  7974. }
  7975. // Helper function for multipart upload progress tests
  7976. template <typename SetupHandler, typename ClientCall>
  7977. void TestMultipartUploadProgress(SetupHandler &&setup_handler,
  7978. ClientCall &&client_call,
  7979. const string &endpoint) {
  7980. Server svr;
  7981. setup_handler(svr);
  7982. thread t = thread([&]() { svr.listen(HOST, PORT); });
  7983. auto se = detail::scope_exit([&] {
  7984. svr.stop();
  7985. t.join();
  7986. });
  7987. svr.wait_until_ready();
  7988. Client cli(HOST, PORT);
  7989. vector<uint64_t> progress_values;
  7990. UploadFormDataItems items = {
  7991. {"field1", "value1", "", ""},
  7992. {"field2", "longer value for progress tracking test", "", ""},
  7993. {"file1", "file content data for upload progress", "test.txt",
  7994. "text/plain"}};
  7995. auto res = client_call(cli, endpoint, items,
  7996. [&](uint64_t current, uint64_t /*total*/) -> bool {
  7997. progress_values.push_back(current);
  7998. return true;
  7999. });
  8000. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8001. EXPECT_EQ(200, res->status);
  8002. EXPECT_FALSE(progress_values.empty());
  8003. }
  8004. TEST(UploadProgressTest, PostMultipartProgress) {
  8005. TestMultipartUploadProgress(
  8006. [](Server &svr) {
  8007. svr.Post("/multipart", [](const Request &req, Response &res) {
  8008. EXPECT_TRUE(!req.form.files.empty() || !req.form.fields.empty());
  8009. res.set_content("multipart received", "text/plain");
  8010. });
  8011. },
  8012. [](Client &cli, const string &endpoint, const UploadFormDataItems &items,
  8013. UploadProgress progress_callback) {
  8014. return cli.Post(endpoint, items, progress_callback);
  8015. },
  8016. "/multipart");
  8017. }
  8018. // Helper function for basic download progress tests
  8019. template <typename SetupHandler, typename ClientCall>
  8020. void TestBasicDownloadProgress(SetupHandler &&setup_handler,
  8021. ClientCall &&client_call, const string &endpoint,
  8022. size_t expected_content_size) {
  8023. Server svr;
  8024. setup_handler(svr);
  8025. thread t = thread([&]() { svr.listen(HOST, PORT); });
  8026. auto se = detail::scope_exit([&] {
  8027. svr.stop();
  8028. t.join();
  8029. });
  8030. svr.wait_until_ready();
  8031. Client cli(HOST, PORT);
  8032. vector<uint64_t> progress_values;
  8033. auto res = client_call(cli, endpoint,
  8034. [&](uint64_t current, uint64_t /*total*/) -> bool {
  8035. progress_values.push_back(current);
  8036. return true;
  8037. });
  8038. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8039. EXPECT_EQ(200, res->status);
  8040. EXPECT_FALSE(progress_values.empty());
  8041. EXPECT_EQ(expected_content_size, res->body.size());
  8042. }
  8043. TEST(DownloadProgressTest, GetBasic) {
  8044. TestBasicDownloadProgress(
  8045. [](Server &svr) {
  8046. svr.Get("/download", [](const Request & /*req*/, Response &res) {
  8047. string content(1000, 'D');
  8048. res.set_content(content, "text/plain");
  8049. });
  8050. },
  8051. [](Client &cli, const string &endpoint,
  8052. DownloadProgress progress_callback) {
  8053. return cli.Get(endpoint, progress_callback);
  8054. },
  8055. "/download", 1000u);
  8056. }
  8057. // Helper function for content receiver download progress tests
  8058. template <typename SetupHandler, typename ClientCall>
  8059. void TestContentReceiverDownloadProgress(SetupHandler &&setup_handler,
  8060. ClientCall &&client_call,
  8061. const string &endpoint,
  8062. size_t expected_content_size) {
  8063. Server svr;
  8064. setup_handler(svr);
  8065. thread t = thread([&]() { svr.listen(HOST, PORT); });
  8066. auto se = detail::scope_exit([&] {
  8067. svr.stop();
  8068. t.join();
  8069. });
  8070. svr.wait_until_ready();
  8071. Client cli(HOST, PORT);
  8072. vector<uint64_t> progress_values;
  8073. string received_body;
  8074. auto res = client_call(
  8075. cli, endpoint,
  8076. [&](const char *data, size_t data_length) -> bool {
  8077. received_body.append(data, data_length);
  8078. return true;
  8079. },
  8080. [&](uint64_t current, uint64_t /*total*/) -> bool {
  8081. progress_values.push_back(current);
  8082. return true;
  8083. });
  8084. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8085. EXPECT_EQ(200, res->status);
  8086. EXPECT_FALSE(progress_values.empty());
  8087. EXPECT_EQ(expected_content_size, received_body.size());
  8088. EXPECT_TRUE(res->body.empty());
  8089. }
  8090. TEST(DownloadProgressTest, GetWithContentReceiver) {
  8091. TestContentReceiverDownloadProgress(
  8092. [](Server &svr) {
  8093. svr.Get("/download-receiver",
  8094. [](const Request & /*req*/, Response &res) {
  8095. string content(2000, 'R');
  8096. res.set_content(content, "text/plain");
  8097. });
  8098. },
  8099. [](Client &cli, const string &endpoint, ContentReceiver content_receiver,
  8100. DownloadProgress progress_callback) {
  8101. return cli.Get(endpoint, content_receiver, progress_callback);
  8102. },
  8103. "/download-receiver", 2000u);
  8104. }
  8105. TEST(StreamingTest, NoContentLengthStreaming) {
  8106. Server svr;
  8107. svr.Get("/stream", [](const Request & /*req*/, Response &res) {
  8108. res.set_content_provider("text/plain", [](size_t offset, DataSink &sink) {
  8109. if (offset < 6) {
  8110. sink.os << (offset < 3 ? "a" : "b");
  8111. } else {
  8112. sink.done();
  8113. }
  8114. return true;
  8115. });
  8116. });
  8117. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8118. auto listen_se = detail::scope_exit([&] {
  8119. svr.stop();
  8120. listen_thread.join();
  8121. ASSERT_FALSE(svr.is_running());
  8122. });
  8123. svr.wait_until_ready();
  8124. Client client(HOST, PORT);
  8125. auto get_thread = std::thread([&client]() {
  8126. std::string s;
  8127. auto res =
  8128. client.Get("/stream", [&s](const char *data, size_t len) -> bool {
  8129. s += std::string(data, len);
  8130. return true;
  8131. });
  8132. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8133. EXPECT_EQ(StatusCode::OK_200, res->status);
  8134. EXPECT_EQ("aaabbb", s);
  8135. });
  8136. auto get_se = detail::scope_exit([&] { get_thread.join(); });
  8137. // Give GET time to get a few messages.
  8138. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  8139. }
  8140. TEST(MountTest, Unmount) {
  8141. Server svr;
  8142. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8143. auto se = detail::scope_exit([&] {
  8144. svr.stop();
  8145. listen_thread.join();
  8146. ASSERT_FALSE(svr.is_running());
  8147. });
  8148. svr.wait_until_ready();
  8149. Client cli("localhost", PORT);
  8150. svr.set_mount_point("/mount2", "./www2");
  8151. auto res = cli.Get("/");
  8152. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8153. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  8154. res = cli.Get("/mount2/dir/test.html");
  8155. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8156. EXPECT_EQ(StatusCode::OK_200, res->status);
  8157. svr.set_mount_point("/", "./www");
  8158. res = cli.Get("/dir/");
  8159. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8160. EXPECT_EQ(StatusCode::OK_200, res->status);
  8161. svr.remove_mount_point("/");
  8162. res = cli.Get("/dir/");
  8163. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8164. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  8165. svr.remove_mount_point("/mount2");
  8166. res = cli.Get("/mount2/dir/test.html");
  8167. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8168. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  8169. }
  8170. TEST(MountTest, PathSegmentBoundary) {
  8171. Server svr;
  8172. svr.set_mount_point("/mount2", "./www2");
  8173. svr.set_mount_point("/", "./www");
  8174. auto port = svr.bind_to_any_port(HOST);
  8175. auto listen_thread = std::thread([&svr]() { svr.listen_after_bind(); });
  8176. auto se = detail::scope_exit([&] {
  8177. svr.stop();
  8178. listen_thread.join();
  8179. ASSERT_FALSE(svr.is_running());
  8180. });
  8181. svr.wait_until_ready();
  8182. Client cli(HOST, port);
  8183. auto res = cli.Get("/mount2/dir/test.html");
  8184. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8185. EXPECT_EQ(StatusCode::OK_200, res->status);
  8186. // "/mount2" must not match part-way through a path segment.
  8187. res = cli.Get("/mount2dir/test.html");
  8188. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8189. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  8190. // A mount point ending in '/' keeps matching every path below it.
  8191. res = cli.Get("/dir/test.html");
  8192. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8193. EXPECT_EQ(StatusCode::OK_200, res->status);
  8194. }
  8195. TEST(MountTest, Redicect) {
  8196. Server svr;
  8197. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8198. auto se = detail::scope_exit([&] {
  8199. svr.stop();
  8200. listen_thread.join();
  8201. ASSERT_FALSE(svr.is_running());
  8202. });
  8203. svr.set_mount_point("/", "./www");
  8204. svr.wait_until_ready();
  8205. Client cli("localhost", PORT);
  8206. auto res = cli.Get("/dir/");
  8207. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8208. EXPECT_EQ(StatusCode::OK_200, res->status);
  8209. res = cli.Get("/dir");
  8210. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8211. EXPECT_EQ(StatusCode::MovedPermanently_301, res->status);
  8212. res = cli.Get("/file");
  8213. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8214. EXPECT_EQ(StatusCode::OK_200, res->status);
  8215. res = cli.Get("/file/");
  8216. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8217. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  8218. cli.set_follow_location(true);
  8219. res = cli.Get("/dir");
  8220. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8221. EXPECT_EQ(StatusCode::OK_200, res->status);
  8222. }
  8223. TEST(MountTest, MultibytesPathName) {
  8224. Server svr;
  8225. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8226. auto se = detail::scope_exit([&] {
  8227. svr.stop();
  8228. listen_thread.join();
  8229. ASSERT_FALSE(svr.is_running());
  8230. });
  8231. svr.set_mount_point("/", "./www");
  8232. svr.wait_until_ready();
  8233. Client cli("localhost", PORT);
  8234. auto res = cli.Get(U8("/日本語Dir/日本語File.txt"));
  8235. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8236. EXPECT_EQ(StatusCode::OK_200, res->status);
  8237. EXPECT_EQ(U8("日本語コンテンツ"), res->body);
  8238. }
  8239. #ifdef _WIN32
  8240. // Issue #2435: mmap::open() must succeed even when another handle holds
  8241. // the file open for writing (e.g. an active log file).
  8242. TEST(MmapTest, OpenWhileFileHeldForWriting) {
  8243. const char *path = "mmap_concurrent_writer_test.txt";
  8244. const char *content = "hello";
  8245. {
  8246. std::ofstream f(path, std::ios::binary);
  8247. f.write(content, static_cast<std::streamsize>(strlen(content)));
  8248. }
  8249. auto file_cleanup = detail::scope_exit([&] { std::remove(path); });
  8250. HANDLE writer = ::CreateFileA(path, GENERIC_WRITE, FILE_SHARE_READ, NULL,
  8251. OPEN_EXISTING, FILE_ATTRIBUTE_NORMAL, NULL);
  8252. ASSERT_NE(INVALID_HANDLE_VALUE, writer);
  8253. auto handle_cleanup = detail::scope_exit([&] { ::CloseHandle(writer); });
  8254. detail::mmap m(path);
  8255. ASSERT_TRUE(m.is_open());
  8256. EXPECT_EQ(strlen(content), m.size());
  8257. EXPECT_EQ(0, std::memcmp(content, m.data(), strlen(content)));
  8258. }
  8259. #endif
  8260. #ifndef _WIN32
  8261. // A failed ::mmap() must not be reported as an open mapping, otherwise data()
  8262. // hands the caller the MAP_FAILED sentinel. A directory is the easiest way to
  8263. // reach it, since ::open() and fstat() succeed for one but ::mmap() doesn't.
  8264. TEST(MmapTest, FailedMappingIsNotOpen) {
  8265. const char *path = "./mmap_failed_mapping_test_dir";
  8266. ASSERT_EQ(0, ::mkdir(path, 0755));
  8267. auto dir_cleanup = detail::scope_exit([&] { ::rmdir(path); });
  8268. detail::mmap m(path);
  8269. EXPECT_FALSE(m.is_open());
  8270. EXPECT_EQ(0U, m.size());
  8271. EXPECT_NE(static_cast<const void *>(m.data()),
  8272. static_cast<const void *>(MAP_FAILED));
  8273. }
  8274. #endif
  8275. TEST(KeepAliveTest, ReadTimeout) {
  8276. Server svr;
  8277. svr.Get("/a", [&](const Request & /*req*/, Response &res) {
  8278. std::this_thread::sleep_for(std::chrono::seconds(2));
  8279. res.set_content("a", "text/plain");
  8280. });
  8281. svr.Get("/b", [&](const Request & /*req*/, Response &res) {
  8282. res.set_content("b", "text/plain");
  8283. });
  8284. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8285. auto se = detail::scope_exit([&] {
  8286. svr.stop();
  8287. listen_thread.join();
  8288. ASSERT_FALSE(svr.is_running());
  8289. });
  8290. svr.wait_until_ready();
  8291. Client cli("localhost", PORT);
  8292. cli.set_keep_alive(true);
  8293. cli.set_read_timeout(std::chrono::seconds(1));
  8294. auto resa = cli.Get("/a");
  8295. ASSERT_FALSE(resa);
  8296. EXPECT_EQ(Error::Read, resa.error());
  8297. auto resb = cli.Get("/b");
  8298. ASSERT_TRUE(resb);
  8299. EXPECT_EQ(StatusCode::OK_200, resb->status);
  8300. EXPECT_EQ("b", resb->body);
  8301. }
  8302. TEST(KeepAliveTest, MaxCount) {
  8303. size_t keep_alive_max_count = 3;
  8304. Server svr;
  8305. svr.set_keep_alive_max_count(keep_alive_max_count);
  8306. svr.Get("/hi", [](const httplib::Request &, httplib::Response &res) {
  8307. res.set_content("Hello World!", "text/plain");
  8308. });
  8309. auto listen_thread = std::thread([&svr] { svr.listen(HOST, PORT); });
  8310. auto se = detail::scope_exit([&] {
  8311. svr.stop();
  8312. listen_thread.join();
  8313. ASSERT_FALSE(svr.is_running());
  8314. });
  8315. svr.wait_until_ready();
  8316. Client cli(HOST, PORT);
  8317. cli.set_keep_alive(true);
  8318. for (size_t i = 0; i < 5; i++) {
  8319. auto result = cli.Get("/hi");
  8320. ASSERT_TRUE(result);
  8321. EXPECT_EQ(StatusCode::OK_200, result->status);
  8322. if (i == keep_alive_max_count - 1) {
  8323. EXPECT_EQ("close", result->get_header_value("Connection"));
  8324. } else {
  8325. EXPECT_FALSE(result->has_header("Connection"));
  8326. }
  8327. }
  8328. }
  8329. TEST(KeepAliveTest, Issue1041) {
  8330. Server svr;
  8331. svr.set_keep_alive_timeout(3);
  8332. svr.Get("/hi", [](const httplib::Request &, httplib::Response &res) {
  8333. res.set_content("Hello World!", "text/plain");
  8334. });
  8335. auto listen_thread = std::thread([&svr] { svr.listen(HOST, PORT); });
  8336. auto se = detail::scope_exit([&] {
  8337. svr.stop();
  8338. listen_thread.join();
  8339. ASSERT_FALSE(svr.is_running());
  8340. });
  8341. svr.wait_until_ready();
  8342. Client cli(HOST, PORT);
  8343. cli.set_keep_alive(true);
  8344. auto result = cli.Get("/hi");
  8345. ASSERT_TRUE(result);
  8346. EXPECT_EQ(StatusCode::OK_200, result->status);
  8347. std::this_thread::sleep_for(std::chrono::seconds(5));
  8348. result = cli.Get("/hi");
  8349. ASSERT_TRUE(result);
  8350. EXPECT_EQ(StatusCode::OK_200, result->status);
  8351. }
  8352. TEST(KeepAliveTest, Issue1959) {
  8353. Server svr;
  8354. svr.set_keep_alive_timeout(5);
  8355. svr.Get("/a", [&](const Request & /*req*/, Response &res) {
  8356. res.set_content("a", "text/plain");
  8357. });
  8358. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8359. auto se = detail::scope_exit([&] {
  8360. if (!svr.is_running()) return;
  8361. svr.stop();
  8362. listen_thread.join();
  8363. ASSERT_FALSE(svr.is_running());
  8364. });
  8365. svr.wait_until_ready();
  8366. Client cli("localhost", PORT);
  8367. cli.set_keep_alive(true);
  8368. using namespace std::chrono;
  8369. auto start = steady_clock::now();
  8370. cli.Get("/a");
  8371. svr.stop();
  8372. listen_thread.join();
  8373. auto end = steady_clock::now();
  8374. auto elapsed = duration_cast<milliseconds>(end - start).count();
  8375. EXPECT_LT(elapsed, 5000);
  8376. }
  8377. #ifdef CPPHTTPLIB_SSL_ENABLED
  8378. TEST(KeepAliveTest, SSLClientReconnection) {
  8379. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  8380. ASSERT_TRUE(svr.is_valid());
  8381. svr.set_keep_alive_timeout(1);
  8382. svr.Get("/hi", [](const httplib::Request &, httplib::Response &res) {
  8383. res.set_content("Hello World!", "text/plain");
  8384. });
  8385. auto listen_thread = std::thread([&svr] { svr.listen(HOST, PORT); });
  8386. auto se = detail::scope_exit([&] {
  8387. svr.stop();
  8388. listen_thread.join();
  8389. ASSERT_FALSE(svr.is_running());
  8390. });
  8391. svr.wait_until_ready();
  8392. SSLClient cli(HOST, PORT);
  8393. cli.enable_server_certificate_verification(false);
  8394. cli.set_keep_alive(true);
  8395. auto result = cli.Get("/hi");
  8396. ASSERT_TRUE(result);
  8397. EXPECT_EQ(StatusCode::OK_200, result->status);
  8398. result = cli.Get("/hi");
  8399. ASSERT_TRUE(result);
  8400. EXPECT_EQ(StatusCode::OK_200, result->status);
  8401. std::this_thread::sleep_for(std::chrono::seconds(2));
  8402. // Recoonect
  8403. result = cli.Get("/hi");
  8404. ASSERT_TRUE(result);
  8405. EXPECT_EQ(StatusCode::OK_200, result->status);
  8406. result = cli.Get("/hi");
  8407. ASSERT_TRUE(result);
  8408. EXPECT_EQ(StatusCode::OK_200, result->status);
  8409. }
  8410. TEST(KeepAliveTest, SSLClientReconnectionPost) {
  8411. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  8412. ASSERT_TRUE(svr.is_valid());
  8413. svr.set_keep_alive_timeout(1);
  8414. std::string content = "reconnect";
  8415. svr.Post("/hi", [](const httplib::Request &, httplib::Response &res) {
  8416. res.set_content("Hello World!", "text/plain");
  8417. });
  8418. auto listen_thread = std::thread([&svr] { svr.listen(HOST, PORT); });
  8419. auto se = detail::scope_exit([&] {
  8420. svr.stop();
  8421. listen_thread.join();
  8422. ASSERT_FALSE(svr.is_running());
  8423. });
  8424. svr.wait_until_ready();
  8425. SSLClient cli(HOST, PORT);
  8426. cli.enable_server_certificate_verification(false);
  8427. cli.set_keep_alive(true);
  8428. auto result = cli.Post(
  8429. "/hi", content.size(),
  8430. [&content](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  8431. sink.write(content.c_str(), content.size());
  8432. return true;
  8433. },
  8434. "text/plain");
  8435. ASSERT_TRUE(result);
  8436. EXPECT_EQ(200, result->status);
  8437. std::this_thread::sleep_for(std::chrono::seconds(2));
  8438. // Recoonect
  8439. result = cli.Post(
  8440. "/hi", content.size(),
  8441. [&content](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  8442. sink.write(content.c_str(), content.size());
  8443. return true;
  8444. },
  8445. "text/plain");
  8446. ASSERT_TRUE(result);
  8447. EXPECT_EQ(200, result->status);
  8448. result = cli.Post(
  8449. "/hi", content.size(),
  8450. [&content](size_t /*offset*/, size_t /*length*/, DataSink &sink) {
  8451. sink.write(content.c_str(), content.size());
  8452. return true;
  8453. },
  8454. "text/plain");
  8455. ASSERT_TRUE(result);
  8456. EXPECT_EQ(200, result->status);
  8457. }
  8458. TEST(SNI_AutoDetectionTest, SNI_Logic) {
  8459. using namespace httplib::tls;
  8460. {
  8461. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  8462. ASSERT_TRUE(svr.is_valid());
  8463. svr.Get("/sni", [&](const Request &req, Response &res) {
  8464. std::string expected = req.sni();
  8465. EXPECT_EQ(expected, req.get_param_value("expected"));
  8466. res.set_content("ok", "text/plain");
  8467. });
  8468. auto listen_thread = std::thread([&svr] { svr.listen(HOST, PORT); });
  8469. auto se = detail::scope_exit([&] {
  8470. svr.stop();
  8471. listen_thread.join();
  8472. ASSERT_FALSE(svr.is_running());
  8473. });
  8474. svr.wait_until_ready();
  8475. {
  8476. SSLClient cli("localhost", PORT);
  8477. cli.enable_server_certificate_verification(false);
  8478. auto res = cli.Get("/sni?expected=localhost");
  8479. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8480. }
  8481. {
  8482. SSLClient cli("::1", PORT);
  8483. cli.enable_server_certificate_verification(false);
  8484. auto res = cli.Get("/sni?expected=");
  8485. // NOTE: This may fail if the server is listening on IPv4 only
  8486. // (e.g., when localhost resolves to 127.0.0.1 only)
  8487. if (res) {
  8488. EXPECT_EQ(StatusCode::OK_200, res->status);
  8489. } else {
  8490. EXPECT_EQ(Error::Connection, res.error());
  8491. }
  8492. }
  8493. }
  8494. }
  8495. #endif
  8496. TEST(ClientProblemDetectionTest, ContentProvider) {
  8497. Server svr;
  8498. size_t content_length = 1024 * 1024;
  8499. svr.Get("/hi", [&](const Request & /*req*/, Response &res) {
  8500. res.set_content_provider(
  8501. content_length, "text/plain",
  8502. [&](size_t offset, size_t length, DataSink &sink) {
  8503. auto out_len = std::min(length, static_cast<size_t>(1024));
  8504. std::string out(out_len, '@');
  8505. sink.write(out.data(), out_len);
  8506. return offset < 4096;
  8507. },
  8508. [](bool success) { ASSERT_FALSE(success); });
  8509. });
  8510. svr.Get("/empty", [&](const Request & /*req*/, Response &res) {
  8511. res.set_content_provider(
  8512. 0, "text/plain",
  8513. [&](size_t /*offset*/, size_t /*length*/, DataSink & /*sink*/) -> bool {
  8514. EXPECT_TRUE(false);
  8515. return true;
  8516. },
  8517. [](bool success) { ASSERT_FALSE(success); });
  8518. });
  8519. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8520. auto se = detail::scope_exit([&] {
  8521. svr.stop();
  8522. listen_thread.join();
  8523. ASSERT_FALSE(svr.is_running());
  8524. });
  8525. svr.wait_until_ready();
  8526. Client cli("localhost", PORT);
  8527. {
  8528. auto res = cli.Get("/hi", [&](const char * /*data*/,
  8529. size_t /*data_length*/) { return false; });
  8530. ASSERT_FALSE(res);
  8531. }
  8532. {
  8533. auto res = cli.Get("/empty", [&](const char * /*data*/,
  8534. size_t /*data_length*/) { return false; });
  8535. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8536. }
  8537. }
  8538. TEST(ErrorHandlerWithContentProviderTest, ErrorHandler) {
  8539. Server svr;
  8540. svr.set_error_handler([](Request const &, Response &res) -> void {
  8541. res.set_chunked_content_provider(
  8542. "text/plain", [](std::size_t const, DataSink &sink) -> bool {
  8543. sink.os << "hello";
  8544. sink.os << "world";
  8545. sink.done();
  8546. return true;
  8547. });
  8548. });
  8549. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8550. auto se = detail::scope_exit([&] {
  8551. svr.stop();
  8552. listen_thread.join();
  8553. ASSERT_FALSE(svr.is_running());
  8554. });
  8555. svr.wait_until_ready();
  8556. Client cli("localhost", PORT);
  8557. auto res = cli.Get("/");
  8558. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8559. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  8560. EXPECT_EQ("helloworld", res->body);
  8561. }
  8562. TEST(LongPollingTest, ClientCloseDetection) {
  8563. Server svr;
  8564. svr.Get("/events", [&](const Request & /*req*/, Response &res) {
  8565. res.set_chunked_content_provider(
  8566. "text/plain", [](std::size_t const, DataSink &sink) -> bool {
  8567. EXPECT_TRUE(sink.is_writable()); // the socket is alive
  8568. sink.os << "hello";
  8569. auto count = 10;
  8570. while (count > 0 && sink.is_writable()) {
  8571. this_thread::sleep_for(chrono::milliseconds(10));
  8572. count--;
  8573. }
  8574. EXPECT_FALSE(sink.is_writable()); // the socket is closed
  8575. return true;
  8576. });
  8577. });
  8578. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8579. auto se = detail::scope_exit([&] {
  8580. svr.stop();
  8581. listen_thread.join();
  8582. ASSERT_FALSE(svr.is_running());
  8583. });
  8584. svr.wait_until_ready();
  8585. Client cli("localhost", PORT);
  8586. auto res = cli.Get("/events", [&](const char *data, size_t data_length) {
  8587. EXPECT_EQ("hello", string(data, data_length));
  8588. return false; // close the socket immediately.
  8589. });
  8590. ASSERT_FALSE(res);
  8591. }
  8592. TEST(LongPollingTest, ClientCloseDetectionWithStreamOperator) {
  8593. Server svr;
  8594. svr.Get("/events", [&](const Request & /*req*/, Response &res) {
  8595. res.set_chunked_content_provider(
  8596. "text/plain", [](std::size_t const, DataSink &sink) -> bool {
  8597. EXPECT_TRUE(sink.is_writable()); // the socket is alive
  8598. sink.os << "hello";
  8599. EXPECT_TRUE(sink.os.good());
  8600. // Wait for the client to close the connection
  8601. auto count = 10;
  8602. while (count > 0 && sink.is_writable()) {
  8603. this_thread::sleep_for(chrono::milliseconds(10));
  8604. count--;
  8605. }
  8606. // After client disconnect, write repeatedly until the socket
  8607. // write actually fails (small writes may be absorbed by the
  8608. // kernel buffer)
  8609. std::string chunk(1024, 'x');
  8610. for (int i = 0; i < 1000 && sink.os.good(); i++) {
  8611. sink.os << chunk;
  8612. }
  8613. EXPECT_TRUE(sink.os.fail());
  8614. return true;
  8615. });
  8616. });
  8617. auto port = svr.bind_to_any_port("localhost");
  8618. auto listen_thread = std::thread([&svr]() { svr.listen_after_bind(); });
  8619. auto se = detail::scope_exit([&] {
  8620. svr.stop();
  8621. listen_thread.join();
  8622. ASSERT_FALSE(svr.is_running());
  8623. });
  8624. svr.wait_until_ready();
  8625. Client cli("localhost", port);
  8626. auto res = cli.Get("/events", [&](const char *data, size_t data_length) {
  8627. EXPECT_EQ("hello", string(data, data_length));
  8628. return false; // close the socket immediately.
  8629. });
  8630. ASSERT_FALSE(res);
  8631. }
  8632. TEST(GetWithParametersTest, GetWithParameters) {
  8633. Server svr;
  8634. svr.Get("/", [&](const Request &req, Response &) {
  8635. EXPECT_EQ("world", req.get_param_value("hello"));
  8636. EXPECT_EQ("world2", req.get_param_value("hello2"));
  8637. EXPECT_EQ("world3", req.get_param_value("hello3"));
  8638. });
  8639. svr.Get("/params", [&](const Request &req, Response &) {
  8640. EXPECT_EQ("world", req.get_param_value("hello"));
  8641. EXPECT_EQ("world2", req.get_param_value("hello2"));
  8642. EXPECT_EQ("world3", req.get_param_value("hello3"));
  8643. });
  8644. svr.Get(R"(/resources/([a-z0-9\\-]+))", [&](const Request &req, Response &) {
  8645. EXPECT_EQ("resource-id", req.matches[1]);
  8646. EXPECT_EQ("foo", req.get_param_value("param1"));
  8647. EXPECT_EQ("bar", req.get_param_value("param2"));
  8648. });
  8649. svr.Get("/users/:id", [&](const Request &req, Response &) {
  8650. EXPECT_EQ("user-id", req.path_params.at("id"));
  8651. EXPECT_EQ("foo", req.get_param_value("param1"));
  8652. EXPECT_EQ("bar", req.get_param_value("param2"));
  8653. });
  8654. auto listen_thread = std::thread([&svr]() { svr.listen(HOST, PORT); });
  8655. auto se = detail::scope_exit([&] {
  8656. svr.stop();
  8657. listen_thread.join();
  8658. ASSERT_FALSE(svr.is_running());
  8659. });
  8660. svr.wait_until_ready();
  8661. {
  8662. Client cli(HOST, PORT);
  8663. Params params;
  8664. params.emplace("hello", "world");
  8665. params.emplace("hello2", "world2");
  8666. params.emplace("hello3", "world3");
  8667. auto res = cli.Get("/", params, Headers{});
  8668. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8669. EXPECT_EQ(StatusCode::OK_200, res->status);
  8670. }
  8671. {
  8672. Client cli(HOST, PORT);
  8673. auto res = cli.Get("/params?hello=world&hello2=world2&hello3=world3");
  8674. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8675. EXPECT_EQ(StatusCode::OK_200, res->status);
  8676. }
  8677. {
  8678. Client cli(HOST, PORT);
  8679. auto res = cli.Get("/resources/resource-id?param1=foo&param2=bar");
  8680. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8681. EXPECT_EQ(StatusCode::OK_200, res->status);
  8682. }
  8683. {
  8684. Client cli(HOST, PORT);
  8685. auto res = cli.Get("/users/user-id?param1=foo&param2=bar");
  8686. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8687. EXPECT_EQ(StatusCode::OK_200, res->status);
  8688. }
  8689. }
  8690. TEST(GetWithParametersTest, GetWithParameters2) {
  8691. Server svr;
  8692. svr.Get("/", [&](const Request &req, Response &res) {
  8693. auto text = req.get_param_value("hello");
  8694. res.set_content(text, "text/plain");
  8695. });
  8696. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8697. auto se = detail::scope_exit([&] {
  8698. svr.stop();
  8699. listen_thread.join();
  8700. ASSERT_FALSE(svr.is_running());
  8701. });
  8702. svr.wait_until_ready();
  8703. Client cli("localhost", PORT);
  8704. Params params;
  8705. params.emplace("hello", "world");
  8706. std::string body;
  8707. auto res = cli.Get("/", params, Headers{},
  8708. [&](const char *data, size_t data_length) {
  8709. body.append(data, data_length);
  8710. return true;
  8711. });
  8712. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8713. EXPECT_EQ(StatusCode::OK_200, res->status);
  8714. EXPECT_EQ("world", body);
  8715. }
  8716. TEST(GetWithParametersTest, GetWithParamsOnlyNoHeaders) {
  8717. Server svr;
  8718. svr.Get("/search", [&](const Request &req, Response &res) {
  8719. auto q = req.get_param_value("q");
  8720. res.set_content(q, "text/plain");
  8721. });
  8722. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8723. auto se = detail::scope_exit([&] {
  8724. svr.stop();
  8725. listen_thread.join();
  8726. ASSERT_FALSE(svr.is_running());
  8727. });
  8728. svr.wait_until_ready();
  8729. Client cli("localhost", PORT);
  8730. // Verify that Get(path, params) works without requiring Headers argument
  8731. auto res = cli.Get("/search", httplib::Params{{"q", "cpp-httplib"}});
  8732. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8733. EXPECT_EQ(StatusCode::OK_200, res->status);
  8734. EXPECT_EQ("cpp-httplib", res->body);
  8735. }
  8736. TEST(ClientDefaultHeadersTest, DefaultHeaders_Online) {
  8737. auto host = "httpbingo.org";
  8738. auto path = std::string{"/range/32"};
  8739. #ifdef CPPHTTPLIB_SSL_ENABLED
  8740. SSLClient cli(host);
  8741. #else
  8742. Client cli(host);
  8743. #endif
  8744. cli.set_default_headers({make_range_header({{1, 10}})});
  8745. cli.set_connection_timeout(5);
  8746. {
  8747. auto res = cli.Get(path);
  8748. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8749. EXPECT_EQ("bcdefghijk", res->body);
  8750. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  8751. }
  8752. {
  8753. auto res = cli.Get(path);
  8754. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8755. EXPECT_EQ("bcdefghijk", res->body);
  8756. EXPECT_EQ(StatusCode::PartialContent_206, res->status);
  8757. }
  8758. }
  8759. TEST(ServerDefaultHeadersTest, DefaultHeaders) {
  8760. Server svr;
  8761. svr.set_default_headers({{"Hello", "World"}});
  8762. svr.Get("/", [&](const Request & /*req*/, Response &res) {
  8763. res.set_content("ok", "text/plain");
  8764. });
  8765. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8766. auto se = detail::scope_exit([&] {
  8767. svr.stop();
  8768. listen_thread.join();
  8769. ASSERT_FALSE(svr.is_running());
  8770. });
  8771. svr.wait_until_ready();
  8772. Client cli("localhost", PORT);
  8773. auto res = cli.Get("/");
  8774. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8775. EXPECT_EQ(StatusCode::OK_200, res->status);
  8776. EXPECT_EQ("ok", res->body);
  8777. EXPECT_EQ("World", res->get_header_value("Hello"));
  8778. }
  8779. #ifdef CPPHTTPLIB_SSL_ENABLED
  8780. TEST(KeepAliveTest, ReadTimeoutSSL) {
  8781. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  8782. ASSERT_TRUE(svr.is_valid());
  8783. svr.Get("/a", [&](const Request & /*req*/, Response &res) {
  8784. std::this_thread::sleep_for(std::chrono::seconds(2));
  8785. res.set_content("a", "text/plain");
  8786. });
  8787. svr.Get("/b", [&](const Request & /*req*/, Response &res) {
  8788. res.set_content("b", "text/plain");
  8789. });
  8790. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  8791. auto se = detail::scope_exit([&] {
  8792. svr.stop();
  8793. listen_thread.join();
  8794. ASSERT_FALSE(svr.is_running());
  8795. });
  8796. svr.wait_until_ready();
  8797. SSLClient cli("localhost", PORT);
  8798. cli.enable_server_certificate_verification(false);
  8799. cli.set_keep_alive(true);
  8800. cli.set_read_timeout(std::chrono::seconds(1));
  8801. auto resa = cli.Get("/a");
  8802. ASSERT_TRUE(!resa);
  8803. EXPECT_EQ(Error::Read, resa.error());
  8804. auto resb = cli.Get("/b");
  8805. ASSERT_TRUE(resb);
  8806. EXPECT_EQ(StatusCode::OK_200, resb->status);
  8807. EXPECT_EQ("b", resb->body);
  8808. }
  8809. #endif
  8810. class ServerTestWithAI_PASSIVE : public ::testing::Test {
  8811. protected:
  8812. ServerTestWithAI_PASSIVE()
  8813. : cli_(HOST, PORT)
  8814. #ifdef CPPHTTPLIB_SSL_ENABLED
  8815. ,
  8816. svr_(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE)
  8817. #endif
  8818. {
  8819. #ifdef CPPHTTPLIB_SSL_ENABLED
  8820. cli_.enable_server_certificate_verification(false);
  8821. #endif
  8822. }
  8823. virtual void SetUp() {
  8824. svr_.Get("/hi", [&](const Request & /*req*/, Response &res) {
  8825. res.set_content("Hello World!", "text/plain");
  8826. });
  8827. t_ = thread(
  8828. [&]() { ASSERT_TRUE(svr_.listen(std::string(), PORT, AI_PASSIVE)); });
  8829. svr_.wait_until_ready();
  8830. }
  8831. virtual void TearDown() {
  8832. svr_.stop();
  8833. t_.join();
  8834. }
  8835. #ifdef CPPHTTPLIB_SSL_ENABLED
  8836. SSLClient cli_;
  8837. SSLServer svr_;
  8838. #else
  8839. Client cli_;
  8840. Server svr_;
  8841. #endif
  8842. thread t_;
  8843. };
  8844. TEST_F(ServerTestWithAI_PASSIVE, GetMethod200) {
  8845. auto res = cli_.Get("/hi");
  8846. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8847. EXPECT_EQ(StatusCode::OK_200, res->status);
  8848. EXPECT_EQ("text/plain", res->get_header_value("Content-Type"));
  8849. EXPECT_EQ("Hello World!", res->body);
  8850. }
  8851. class ServerUpDownTest : public ::testing::Test {
  8852. protected:
  8853. ServerUpDownTest() : cli_(HOST, PORT) {}
  8854. virtual void SetUp() {
  8855. t_ = thread([&]() {
  8856. svr_.bind_to_any_port(HOST);
  8857. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  8858. ASSERT_TRUE(svr_.listen_after_bind());
  8859. });
  8860. svr_.wait_until_ready();
  8861. }
  8862. virtual void TearDown() {
  8863. svr_.stop();
  8864. t_.join();
  8865. }
  8866. Client cli_;
  8867. Server svr_;
  8868. thread t_;
  8869. };
  8870. TEST_F(ServerUpDownTest, QuickStartStop) {
  8871. // Should not crash, especially when run with
  8872. // --gtest_filter=ServerUpDownTest.QuickStartStop --gtest_repeat=1000
  8873. }
  8874. class PayloadMaxLengthTest : public ::testing::Test {
  8875. protected:
  8876. PayloadMaxLengthTest()
  8877. : cli_(HOST, PORT)
  8878. #ifdef CPPHTTPLIB_SSL_ENABLED
  8879. ,
  8880. svr_(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE)
  8881. #endif
  8882. {
  8883. #ifdef CPPHTTPLIB_SSL_ENABLED
  8884. cli_.enable_server_certificate_verification(false);
  8885. #endif
  8886. }
  8887. virtual void SetUp() {
  8888. svr_.set_payload_max_length(8);
  8889. svr_.Post("/test", [&](const Request & /*req*/, Response &res) {
  8890. res.set_content("test", "text/plain");
  8891. });
  8892. t_ = thread([&]() { ASSERT_TRUE(svr_.listen(HOST, PORT)); });
  8893. svr_.wait_until_ready();
  8894. }
  8895. virtual void TearDown() {
  8896. svr_.stop();
  8897. t_.join();
  8898. }
  8899. #ifdef CPPHTTPLIB_SSL_ENABLED
  8900. SSLClient cli_;
  8901. SSLServer svr_;
  8902. #else
  8903. Client cli_;
  8904. Server svr_;
  8905. #endif
  8906. thread t_;
  8907. };
  8908. TEST_F(PayloadMaxLengthTest, ExceedLimit) {
  8909. auto res = cli_.Post("/test", "123456789", "text/plain");
  8910. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8911. EXPECT_EQ(StatusCode::PayloadTooLarge_413, res->status);
  8912. res = cli_.Post("/test", "12345678", "text/plain");
  8913. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8914. EXPECT_EQ(StatusCode::OK_200, res->status);
  8915. }
  8916. TEST_F(PayloadMaxLengthTest, ChunkedEncodingSecurityTest) {
  8917. // Test chunked encoding with payload exceeding the 8-byte limit
  8918. std::string large_chunked_data(16, 'A'); // 16 bytes, exceeds 8-byte limit
  8919. auto res = cli_.Post("/test", large_chunked_data, "text/plain");
  8920. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8921. EXPECT_EQ(StatusCode::PayloadTooLarge_413, res->status);
  8922. }
  8923. TEST_F(PayloadMaxLengthTest, ChunkedEncodingWithinLimit) {
  8924. // Test chunked encoding with payload within the 8-byte limit
  8925. std::string small_chunked_data(4, 'B'); // 4 bytes, within 8-byte limit
  8926. auto res = cli_.Post("/test", small_chunked_data, "text/plain");
  8927. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  8928. EXPECT_EQ(StatusCode::OK_200, res->status);
  8929. }
  8930. TEST_F(PayloadMaxLengthTest, RawSocketChunkedTest) {
  8931. // Test using send_request to send chunked data exceeding payload limit
  8932. std::string chunked_request = "POST /test HTTP/1.1\r\n"
  8933. "Host: " +
  8934. std::string(HOST) + ":" + std::to_string(PORT) +
  8935. "\r\n"
  8936. "Transfer-Encoding: chunked\r\n"
  8937. "Connection: close\r\n"
  8938. "\r\n"
  8939. "a\r\n" // 10 bytes chunk (exceeds 8-byte limit)
  8940. "0123456789\r\n"
  8941. "0\r\n" // End chunk
  8942. "\r\n";
  8943. std::string response;
  8944. bool result = send_request(1, chunked_request, &response);
  8945. if (!result) {
  8946. // If send_request fails, it might be because the server closed the
  8947. // connection due to payload limit enforcement, which is acceptable
  8948. SUCCEED()
  8949. << "Server rejected oversized chunked request (connection closed)";
  8950. } else {
  8951. // If we got a response, check if it's an error response or connection was
  8952. // closed early Short response length indicates connection was closed due to
  8953. // payload limit
  8954. if (response.length() <= 10) {
  8955. SUCCEED() << "Server closed connection for oversized chunked request";
  8956. } else {
  8957. // Check for error status codes
  8958. EXPECT_TRUE(response.find("413") != std::string::npos ||
  8959. response.find("Payload Too Large") != std::string::npos ||
  8960. response.find("400") != std::string::npos);
  8961. }
  8962. }
  8963. }
  8964. TEST_F(PayloadMaxLengthTest, NoContentLengthPayloadLimit) {
  8965. // Test request without Content-Length header exceeding payload limit
  8966. std::string request_without_content_length = "POST /test HTTP/1.1\r\n"
  8967. "Host: " +
  8968. std::string(HOST) + ":" +
  8969. std::to_string(PORT) +
  8970. "\r\n"
  8971. "Connection: close\r\n"
  8972. "\r\n";
  8973. // Add payload exceeding the 8-byte limit
  8974. std::string large_payload(16, 'X'); // 16 bytes, exceeds 8-byte limit
  8975. request_without_content_length += large_payload;
  8976. std::string response;
  8977. bool result = send_request(1, request_without_content_length, &response);
  8978. if (!result) {
  8979. // If send_request fails, server likely closed connection due to payload
  8980. // limit
  8981. SUCCEED() << "Server rejected oversized request without Content-Length "
  8982. "(connection closed)";
  8983. } else {
  8984. // Check if server responded with error or closed connection early
  8985. if (response.length() <= 10) {
  8986. SUCCEED() << "Server closed connection for oversized request without "
  8987. "Content-Length";
  8988. } else {
  8989. // Check for error status codes
  8990. EXPECT_TRUE(response.find("413") != std::string::npos ||
  8991. response.find("Payload Too Large") != std::string::npos ||
  8992. response.find("400") != std::string::npos);
  8993. }
  8994. }
  8995. }
  8996. TEST_F(PayloadMaxLengthTest, NoContentLengthWithinLimit) {
  8997. // Test request without Content-Length header within payload limit
  8998. std::string request_without_content_length = "POST /test HTTP/1.1\r\n"
  8999. "Host: " +
  9000. std::string(HOST) + ":" +
  9001. std::to_string(PORT) +
  9002. "\r\n"
  9003. "Connection: close\r\n"
  9004. "\r\n";
  9005. // Add payload within the 8-byte limit
  9006. std::string small_payload(4, 'Y'); // 4 bytes, within 8-byte limit
  9007. request_without_content_length += small_payload;
  9008. std::string response;
  9009. bool result = send_request(1, request_without_content_length, &response);
  9010. // For requests without Content-Length, the server may have different behavior
  9011. // The key is that it should not reject due to payload limit for small
  9012. // payloads
  9013. if (result) {
  9014. // Check for any HTTP response (success or error, but not connection closed)
  9015. if (response.length() > 10) {
  9016. SUCCEED()
  9017. << "Server processed request without Content-Length within limit";
  9018. } else {
  9019. // Short response might indicate connection closed, which is acceptable
  9020. SUCCEED() << "Server closed connection for request without "
  9021. "Content-Length (acceptable behavior)";
  9022. }
  9023. } else {
  9024. // Connection failure might be due to protocol requirements
  9025. SUCCEED() << "Connection issue with request without Content-Length "
  9026. "(environment-specific)";
  9027. }
  9028. }
  9029. class LargePayloadMaxLengthTest : public ::testing::Test {
  9030. protected:
  9031. LargePayloadMaxLengthTest()
  9032. : cli_(HOST, PORT)
  9033. #ifdef CPPHTTPLIB_SSL_ENABLED
  9034. ,
  9035. svr_(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE)
  9036. #endif
  9037. {
  9038. #ifdef CPPHTTPLIB_SSL_ENABLED
  9039. cli_.enable_server_certificate_verification(false);
  9040. #endif
  9041. }
  9042. virtual void SetUp() {
  9043. // Set 10MB payload limit
  9044. const size_t LARGE_PAYLOAD_LIMIT = 10 * 1024 * 1024; // 10MB
  9045. svr_.set_payload_max_length(LARGE_PAYLOAD_LIMIT);
  9046. svr_.Post("/test", [&](const Request & /*req*/, Response &res) {
  9047. res.set_content("Large payload test", "text/plain");
  9048. });
  9049. t_ = thread([&]() { ASSERT_TRUE(svr_.listen(HOST, PORT)); });
  9050. svr_.wait_until_ready();
  9051. }
  9052. virtual void TearDown() {
  9053. svr_.stop();
  9054. t_.join();
  9055. }
  9056. #ifdef CPPHTTPLIB_SSL_ENABLED
  9057. SSLClient cli_;
  9058. SSLServer svr_;
  9059. #else
  9060. Client cli_;
  9061. Server svr_;
  9062. #endif
  9063. thread t_;
  9064. };
  9065. TEST_F(LargePayloadMaxLengthTest, ChunkedEncodingWithin10MB) {
  9066. // Test chunked encoding with payload within 10MB limit
  9067. std::string medium_payload(5 * 1024 * 1024,
  9068. 'A'); // 5MB payload, within 10MB limit
  9069. auto res = cli_.Post("/test", medium_payload, "application/octet-stream");
  9070. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9071. EXPECT_EQ(StatusCode::OK_200, res->status);
  9072. }
  9073. TEST_F(LargePayloadMaxLengthTest, ChunkedEncodingExceeds10MB) {
  9074. // Test chunked encoding with payload exceeding 10MB limit
  9075. std::string large_payload(12 * 1024 * 1024,
  9076. 'B'); // 12MB payload, exceeds 10MB limit
  9077. auto res = cli_.Post("/test", large_payload, "application/octet-stream");
  9078. // Server may either return 413 or close the connection
  9079. if (res) {
  9080. EXPECT_EQ(StatusCode::PayloadTooLarge_413, res->status);
  9081. } else {
  9082. SUCCEED() << "Server closed connection for payload exceeding 10MB limit";
  9083. }
  9084. }
  9085. TEST_F(LargePayloadMaxLengthTest, NoContentLengthWithin10MB) {
  9086. // Test request without Content-Length header within 10MB limit
  9087. std::string request_without_content_length = "POST /test HTTP/1.1\r\n"
  9088. "Host: " +
  9089. std::string(HOST) + ":" +
  9090. std::to_string(PORT) +
  9091. "\r\n"
  9092. "Connection: close\r\n"
  9093. "\r\n";
  9094. // Add 1MB payload (within 10MB limit)
  9095. std::string medium_payload(1024 * 1024, 'C'); // 1MB payload
  9096. request_without_content_length += medium_payload;
  9097. std::string response;
  9098. bool result = send_request(5, request_without_content_length, &response);
  9099. if (result) {
  9100. // Should get a proper HTTP response for payloads within limit
  9101. if (response.length() > 10) {
  9102. SUCCEED() << "Server processed 1MB request without Content-Length within "
  9103. "10MB limit";
  9104. } else {
  9105. SUCCEED() << "Server closed connection (acceptable behavior for no "
  9106. "Content-Length)";
  9107. }
  9108. } else {
  9109. SUCCEED() << "Connection issue with 1MB payload (environment-specific)";
  9110. }
  9111. }
  9112. TEST_F(LargePayloadMaxLengthTest, NoContentLengthExceeds10MB) {
  9113. // Test request without Content-Length header exceeding 10MB limit
  9114. std::string request_without_content_length = "POST /test HTTP/1.1\r\n"
  9115. "Host: " +
  9116. std::string(HOST) + ":" +
  9117. std::to_string(PORT) +
  9118. "\r\n"
  9119. "Connection: close\r\n"
  9120. "\r\n";
  9121. // Add 12MB payload (exceeds 10MB limit)
  9122. std::string large_payload(12 * 1024 * 1024, 'D'); // 12MB payload
  9123. request_without_content_length += large_payload;
  9124. std::string response;
  9125. bool result = send_request(10, request_without_content_length, &response);
  9126. if (!result) {
  9127. // Server should close connection due to payload limit
  9128. SUCCEED() << "Server rejected 12MB request without Content-Length "
  9129. "(connection closed)";
  9130. } else {
  9131. // Check for error response
  9132. if (response.length() <= 10) {
  9133. SUCCEED()
  9134. << "Server closed connection for 12MB request exceeding 10MB limit";
  9135. } else {
  9136. EXPECT_TRUE(response.find("413") != std::string::npos ||
  9137. response.find("Payload Too Large") != std::string::npos ||
  9138. response.find("400") != std::string::npos);
  9139. }
  9140. }
  9141. }
  9142. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  9143. // `payload_max_length` is not enforced on decompressed body in ContentReader
  9144. // path.
  9145. TEST(PayloadLimitBypassTest, StreamingGzipDecompression) {
  9146. Server svr;
  9147. const size_t LIMIT = 64 * 1024; // 64KB
  9148. svr.set_payload_max_length(LIMIT);
  9149. size_t total = 0;
  9150. svr.Post("/stream", [&](const Request & /*req*/, Response &res,
  9151. const ContentReader &content_reader) {
  9152. content_reader([&](const char * /*data*/, size_t len) {
  9153. total += len;
  9154. return true;
  9155. });
  9156. res.status = 200;
  9157. res.set_content("stream_ok", "text/plain");
  9158. });
  9159. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  9160. auto se = detail::scope_exit([&] {
  9161. svr.stop();
  9162. thread.join();
  9163. ASSERT_FALSE(svr.is_running());
  9164. });
  9165. svr.wait_until_ready();
  9166. // Prepare 256KB raw data and gzip-compress it
  9167. std::string raw(256 * 1024, 'A');
  9168. std::string gz;
  9169. {
  9170. z_stream zs{};
  9171. deflateInit2(&zs, Z_BEST_COMPRESSION, Z_DEFLATED, 15 + 16, 8,
  9172. Z_DEFAULT_STRATEGY);
  9173. zs.next_in = reinterpret_cast<Bytef *>(const_cast<char *>(raw.data()));
  9174. zs.avail_in = static_cast<uInt>(raw.size());
  9175. char outbuf[4096];
  9176. int ret;
  9177. do {
  9178. zs.next_out = reinterpret_cast<Bytef *>(outbuf);
  9179. zs.avail_out = sizeof(outbuf);
  9180. ret = deflate(&zs, Z_FINISH);
  9181. gz.append(outbuf, sizeof(outbuf) - zs.avail_out);
  9182. } while (ret != Z_STREAM_END);
  9183. deflateEnd(&zs);
  9184. }
  9185. Client cli(HOST, PORT);
  9186. cli.set_connection_timeout(std::chrono::seconds(5));
  9187. Headers headers = {{"Content-Encoding", "gzip"}};
  9188. auto res = cli.Post("/stream", headers, gz.data(), gz.size(),
  9189. "application/octet-stream");
  9190. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9191. // Server must reject oversized decompressed payloads with 413.
  9192. EXPECT_EQ(StatusCode::PayloadTooLarge_413, res->status);
  9193. // Decompressed bytes delivered to the handler must not exceed LIMIT.
  9194. EXPECT_LE(total, LIMIT);
  9195. }
  9196. #ifndef CPPHTTPLIB_SSL_ENABLED
  9197. // For a request with neither Content-Length nor Transfer-Encoding, the
  9198. // non-SSL raw-socket fallback in read_content_core() used to hand the
  9199. // compressed wire bytes straight to the ContentReader without ever routing
  9200. // them through the decompressor, so payload_max_length_ only bounded the
  9201. // compressed size on the wire, not the decompressed size.
  9202. TEST(PayloadLimitBypassTest, UnframedGzipDecompression) {
  9203. Server svr;
  9204. const size_t LIMIT = 64 * 1024; // 64KB
  9205. svr.set_payload_max_length(LIMIT);
  9206. size_t total = 0;
  9207. svr.Post("/stream", [&](const Request & /*req*/, Response &res,
  9208. const ContentReader &content_reader) {
  9209. content_reader([&](const char * /*data*/, size_t len) {
  9210. total += len;
  9211. return true;
  9212. });
  9213. res.status = 200;
  9214. res.set_content("stream_ok", "text/plain");
  9215. });
  9216. auto port = svr.bind_to_any_port(HOST);
  9217. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  9218. auto se = detail::scope_exit([&] {
  9219. svr.stop();
  9220. thread.join();
  9221. ASSERT_FALSE(svr.is_running());
  9222. });
  9223. svr.wait_until_ready();
  9224. // Prepare 256KB raw data and gzip-compress it, same payload as the
  9225. // StreamingGzipDecompression test above.
  9226. std::string raw(256 * 1024, 'A');
  9227. std::string gz;
  9228. {
  9229. httplib::detail::gzip_compressor compressor;
  9230. bool result = compressor.compress(raw.data(), raw.size(), /*last=*/true,
  9231. [&](const char *chunk, size_t len) {
  9232. gz.append(chunk, len);
  9233. return true;
  9234. });
  9235. ASSERT_TRUE(result);
  9236. }
  9237. // Send the gzip body over raw TCP with neither Content-Length nor
  9238. // Transfer-Encoding, and Connection: close so the server's stray-body scan
  9239. // kicks in.
  9240. std::string req = "POST /stream HTTP/1.1\r\n"
  9241. "Host: " +
  9242. std::string(HOST) + ":" + std::to_string(port) +
  9243. "\r\n"
  9244. "Content-Encoding: gzip\r\n"
  9245. "Connection: close\r\n"
  9246. "\r\n" +
  9247. gz;
  9248. std::string response;
  9249. ASSERT_TRUE(send_request(5, req, &response, port));
  9250. // Decompressed bytes delivered to the handler must not exceed LIMIT.
  9251. EXPECT_LE(total, LIMIT);
  9252. }
  9253. #endif
  9254. #endif
  9255. // Some servers misuse Content-Encoding to advertise a character set, e.g.
  9256. // `Content-Encoding: UTF-8` on a JPEG. Such a value is not a content coding, so
  9257. // the payload must be passed through untouched instead of being rejected.
  9258. TEST(ContentEncodingTest, UnknownEncodingIsPassedThrough) {
  9259. const std::string body = "\xff\xd8\xff\xe0 not really a jpeg";
  9260. Server svr;
  9261. svr.Get("/image", [&](const Request & /*req*/, Response &res) {
  9262. res.set_content(body, "image/jpeg");
  9263. res.set_header("Content-Encoding", "UTF-8");
  9264. });
  9265. svr.Get("/identity", [&](const Request & /*req*/, Response &res) {
  9266. res.set_content(body, "image/jpeg");
  9267. res.set_header("Content-Encoding", "identity");
  9268. });
  9269. svr.Post("/echo", [](const Request &req, Response &res) {
  9270. res.set_content(req.body, "image/jpeg");
  9271. });
  9272. thread t = thread([&]() { svr.listen(HOST, PORT); });
  9273. auto se = detail::scope_exit([&] {
  9274. svr.stop();
  9275. t.join();
  9276. ASSERT_FALSE(svr.is_running());
  9277. });
  9278. svr.wait_until_ready();
  9279. Client cli(HOST, PORT);
  9280. {
  9281. auto res = cli.Get("/image");
  9282. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9283. EXPECT_EQ(StatusCode::OK_200, res->status);
  9284. EXPECT_EQ(body, res->body);
  9285. }
  9286. {
  9287. auto res = cli.Get("/identity");
  9288. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9289. EXPECT_EQ(StatusCode::OK_200, res->status);
  9290. EXPECT_EQ(body, res->body);
  9291. }
  9292. {
  9293. // The same applies to a request body reaching the server.
  9294. Headers headers = {{"Content-Encoding", "UTF-8"}};
  9295. auto res = cli.Post("/echo", headers, body, "image/jpeg");
  9296. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9297. EXPECT_EQ(StatusCode::OK_200, res->status);
  9298. EXPECT_EQ(body, res->body);
  9299. }
  9300. }
  9301. // "Hello World!" as gzip. Hard-coded so that the test below can serve a
  9302. // gzip-encoded response even when the build has no zlib support.
  9303. static const char GZIPPED_HELLO_WORLD[] = {
  9304. '\x1f', '\x8b', '\x08', '\x00', '\x00', '\x00', '\x00', '\x00',
  9305. '\x02', '\x03', '\xf3', '\x48', '\xcd', '\xc9', '\xc9', '\x57',
  9306. '\x08', '\xcf', '\x2f', '\xca', '\x49', '\x51', '\x04', '\x00',
  9307. '\xa3', '\x1c', '\x29', '\x1c', '\x0c', '\x00', '\x00', '\x00'};
  9308. // A content coding cpp-httplib recognizes but was not built with must be
  9309. // reported as such. Handing the still-compressed payload back to the caller
  9310. // would silently corrupt it.
  9311. TEST(ContentEncodingTest, KnownEncodingWithoutSupportIsReported) {
  9312. const std::string gzipped(GZIPPED_HELLO_WORLD, sizeof(GZIPPED_HELLO_WORLD));
  9313. Server svr;
  9314. // "image/jpeg" keeps the server from applying a content coding of its own,
  9315. // so the hand-crafted Content-Encoding below survives.
  9316. svr.Get("/gzipped", [&](const Request & /*req*/, Response &res) {
  9317. res.set_content(gzipped, "image/jpeg");
  9318. res.set_header("Content-Encoding", "gzip");
  9319. });
  9320. // Content codings are case-insensitive (RFC 9110 8.4.1).
  9321. svr.Get("/gzipped-uppercase", [&](const Request & /*req*/, Response &res) {
  9322. res.set_content(gzipped, "image/jpeg");
  9323. res.set_header("Content-Encoding", "GZIP");
  9324. });
  9325. thread t = thread([&]() { svr.listen(HOST, PORT); });
  9326. auto se = detail::scope_exit([&] {
  9327. svr.stop();
  9328. t.join();
  9329. ASSERT_FALSE(svr.is_running());
  9330. });
  9331. svr.wait_until_ready();
  9332. Client cli(HOST, PORT);
  9333. {
  9334. auto res = cli.Get("/gzipped");
  9335. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  9336. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9337. EXPECT_EQ("Hello World!", res->body);
  9338. #else
  9339. ASSERT_FALSE(res);
  9340. EXPECT_EQ(Error::UnsupportedContentEncoding, res.error());
  9341. #endif
  9342. }
  9343. {
  9344. // open_stream() must behave the same way.
  9345. auto handle = cli.open_stream("GET", "/gzipped");
  9346. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  9347. ASSERT_TRUE(handle.is_valid());
  9348. std::string received;
  9349. char buf[256];
  9350. ssize_t n;
  9351. while ((n = handle.read(buf, sizeof(buf))) > 0) {
  9352. received.append(buf, static_cast<size_t>(n));
  9353. }
  9354. EXPECT_EQ("Hello World!", received);
  9355. #else
  9356. EXPECT_FALSE(handle.is_valid());
  9357. EXPECT_EQ(Error::UnsupportedContentEncoding, handle.error);
  9358. #endif
  9359. }
  9360. {
  9361. // A differently-cased coding must not be mistaken for an unknown one, or
  9362. // the body would be handed back still compressed.
  9363. auto res = cli.Get("/gzipped-uppercase");
  9364. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  9365. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9366. EXPECT_EQ("Hello World!", res->body);
  9367. #else
  9368. ASSERT_FALSE(res);
  9369. EXPECT_EQ(Error::UnsupportedContentEncoding, res.error());
  9370. #endif
  9371. }
  9372. }
  9373. // Regression test for DoS vulnerability: a malicious server sending a response
  9374. // without Content-Length header must not cause unbounded memory consumption on
  9375. // the client side. The client should stop reading after a reasonable limit,
  9376. // similar to the server-side set_payload_max_length protection.
  9377. TEST(ClientVulnerabilityTest, UnboundedReadWithoutContentLength) {
  9378. constexpr size_t CLIENT_READ_LIMIT = 2 * 1024 * 1024; // 2MB safety limit
  9379. #ifndef _WIN32
  9380. signal(SIGPIPE, SIG_IGN);
  9381. #endif
  9382. auto server_thread = std::thread([] {
  9383. constexpr size_t MALICIOUS_DATA_SIZE = 10 * 1024 * 1024; // 10MB from server
  9384. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9385. default_socket_options(srv);
  9386. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9387. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9388. sockaddr_in addr{};
  9389. addr.sin_family = AF_INET;
  9390. addr.sin_port = htons(static_cast<uint16_t>(PORT + 2));
  9391. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9392. int opt = 1;
  9393. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9394. #ifdef _WIN32
  9395. reinterpret_cast<const char *>(&opt),
  9396. #else
  9397. &opt,
  9398. #endif
  9399. sizeof(opt));
  9400. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  9401. ::listen(srv, 1);
  9402. sockaddr_in cli_addr{};
  9403. socklen_t cli_len = sizeof(cli_addr);
  9404. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9405. if (cli != INVALID_SOCKET) {
  9406. char buf[4096];
  9407. ::recv(cli, buf, sizeof(buf), 0);
  9408. // Malicious response: no Content-Length, no chunked encoding
  9409. std::string response_header = "HTTP/1.1 200 OK\r\n"
  9410. "Connection: close\r\n"
  9411. "\r\n";
  9412. ::send(cli,
  9413. #ifdef _WIN32
  9414. static_cast<const char *>(response_header.c_str()),
  9415. static_cast<int>(response_header.size()),
  9416. #else
  9417. response_header.c_str(), response_header.size(),
  9418. #endif
  9419. 0);
  9420. // Send 10MB of data
  9421. std::string chunk(64 * 1024, 'A');
  9422. size_t total_sent = 0;
  9423. while (total_sent < MALICIOUS_DATA_SIZE) {
  9424. auto to_send = std::min(chunk.size(), MALICIOUS_DATA_SIZE - total_sent);
  9425. auto sent = ::send(cli,
  9426. #ifdef _WIN32
  9427. static_cast<const char *>(chunk.c_str()),
  9428. static_cast<int>(to_send),
  9429. #else
  9430. chunk.c_str(), to_send,
  9431. #endif
  9432. 0);
  9433. if (sent <= 0) break;
  9434. total_sent += static_cast<size_t>(sent);
  9435. }
  9436. detail::close_socket(cli);
  9437. }
  9438. detail::close_socket(srv);
  9439. });
  9440. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  9441. size_t total_read = 0;
  9442. {
  9443. Client cli("127.0.0.1", PORT + 2);
  9444. cli.set_read_timeout(5, 0);
  9445. cli.set_payload_max_length(CLIENT_READ_LIMIT);
  9446. auto stream = cli.open_stream("GET", "/malicious");
  9447. ASSERT_TRUE(stream.is_valid());
  9448. char buffer[64 * 1024];
  9449. ssize_t n;
  9450. while ((n = stream.read(buffer, sizeof(buffer))) > 0) {
  9451. total_read += static_cast<size_t>(n);
  9452. }
  9453. } // StreamHandle and Client destroyed here, closing the socket
  9454. server_thread.join();
  9455. // With set_payload_max_length, the client must stop reading before consuming
  9456. // all 10MB. The read loop should be cut off at or near the configured limit.
  9457. EXPECT_LE(total_read, CLIENT_READ_LIMIT)
  9458. << "Client read " << total_read << " bytes, exceeding the configured "
  9459. << "payload_max_length of " << CLIENT_READ_LIMIT << " bytes.";
  9460. }
  9461. // Verify that set_payload_max_length(0) means "no limit" and allows reading
  9462. // the entire response body without truncation.
  9463. TEST(ClientVulnerabilityTest, PayloadMaxLengthZeroMeansNoLimit) {
  9464. static constexpr size_t DATA_SIZE = 4 * 1024 * 1024; // 4MB from server
  9465. #ifndef _WIN32
  9466. signal(SIGPIPE, SIG_IGN);
  9467. #endif
  9468. auto server_thread = std::thread([] {
  9469. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9470. default_socket_options(srv);
  9471. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9472. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9473. sockaddr_in addr{};
  9474. addr.sin_family = AF_INET;
  9475. addr.sin_port = htons(static_cast<uint16_t>(PORT + 2));
  9476. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9477. int opt = 1;
  9478. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9479. #ifdef _WIN32
  9480. reinterpret_cast<const char *>(&opt),
  9481. #else
  9482. &opt,
  9483. #endif
  9484. sizeof(opt));
  9485. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  9486. ::listen(srv, 1);
  9487. sockaddr_in cli_addr{};
  9488. socklen_t cli_len = sizeof(cli_addr);
  9489. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9490. if (cli != INVALID_SOCKET) {
  9491. char buf[4096];
  9492. ::recv(cli, buf, sizeof(buf), 0);
  9493. std::string response_header = "HTTP/1.1 200 OK\r\n"
  9494. "Connection: close\r\n"
  9495. "\r\n";
  9496. ::send(cli,
  9497. #ifdef _WIN32
  9498. static_cast<const char *>(response_header.c_str()),
  9499. static_cast<int>(response_header.size()),
  9500. #else
  9501. response_header.c_str(), response_header.size(),
  9502. #endif
  9503. 0);
  9504. std::string chunk(64 * 1024, 'A');
  9505. size_t total_sent = 0;
  9506. while (total_sent < DATA_SIZE) {
  9507. auto to_send = std::min(chunk.size(), DATA_SIZE - total_sent);
  9508. auto sent = ::send(cli,
  9509. #ifdef _WIN32
  9510. static_cast<const char *>(chunk.c_str()),
  9511. static_cast<int>(to_send),
  9512. #else
  9513. chunk.c_str(), to_send,
  9514. #endif
  9515. 0);
  9516. if (sent <= 0) break;
  9517. total_sent += static_cast<size_t>(sent);
  9518. }
  9519. #ifdef _WIN32
  9520. ::shutdown(cli, SD_SEND);
  9521. #else
  9522. ::shutdown(cli, SHUT_WR);
  9523. #endif
  9524. // Drain until the client closes its end, ensuring all data is delivered
  9525. char drain[1024];
  9526. while (::recv(cli, drain, sizeof(drain), 0) > 0) {}
  9527. detail::close_socket(cli);
  9528. }
  9529. detail::close_socket(srv);
  9530. });
  9531. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  9532. size_t total_read = 0;
  9533. {
  9534. Client cli("127.0.0.1", PORT + 2);
  9535. cli.set_read_timeout(5, 0);
  9536. cli.set_payload_max_length(0); // 0 means no limit
  9537. auto stream = cli.open_stream("GET", "/data");
  9538. ASSERT_TRUE(stream.is_valid());
  9539. char buffer[64 * 1024];
  9540. ssize_t n;
  9541. while ((n = stream.read(buffer, sizeof(buffer))) > 0) {
  9542. total_read += static_cast<size_t>(n);
  9543. }
  9544. }
  9545. server_thread.join();
  9546. EXPECT_EQ(total_read, DATA_SIZE)
  9547. << "With payload_max_length(0), the client should read all " << DATA_SIZE
  9548. << " bytes without truncation, but only read " << total_read << " bytes.";
  9549. }
  9550. // Regression test for OSS-Fuzz issue 508342856: a malicious server sending an
  9551. // enormous Content-Length must not cause the client to pre-allocate a huge
  9552. // response body buffer. The reservation is capped at payload_max_length_, and
  9553. // the read itself fails when the body exceeds the limit.
  9554. TEST(ClientVulnerabilityTest, HugeContentLengthDoesNotPreallocate) {
  9555. #ifndef _WIN32
  9556. signal(SIGPIPE, SIG_IGN);
  9557. #endif
  9558. auto server_thread = std::thread([] {
  9559. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9560. default_socket_options(srv);
  9561. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9562. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9563. sockaddr_in addr{};
  9564. addr.sin_family = AF_INET;
  9565. addr.sin_port = htons(static_cast<uint16_t>(PORT + 2));
  9566. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9567. int opt = 1;
  9568. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9569. #ifdef _WIN32
  9570. reinterpret_cast<const char *>(&opt),
  9571. #else
  9572. &opt,
  9573. #endif
  9574. sizeof(opt));
  9575. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  9576. ::listen(srv, 1);
  9577. sockaddr_in cli_addr{};
  9578. socklen_t cli_len = sizeof(cli_addr);
  9579. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9580. if (cli != INVALID_SOCKET) {
  9581. char buf[4096];
  9582. ::recv(cli, buf, sizeof(buf), 0);
  9583. // Malicious response: claim a 20GB body but send only a tiny payload.
  9584. std::string response = "HTTP/1.1 200 OK\r\n"
  9585. "Content-Length: 20000000000\r\n"
  9586. "\r\n"
  9587. "abc";
  9588. ::send(cli,
  9589. #ifdef _WIN32
  9590. static_cast<const char *>(response.c_str()),
  9591. static_cast<int>(response.size()),
  9592. #else
  9593. response.c_str(), response.size(),
  9594. #endif
  9595. 0);
  9596. detail::close_socket(cli);
  9597. }
  9598. detail::close_socket(srv);
  9599. });
  9600. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  9601. {
  9602. Client cli("127.0.0.1", PORT + 2);
  9603. cli.set_read_timeout(5, 0);
  9604. // Default payload_max_length_ is 100MB; a 20GB Content-Length must not
  9605. // result in a 20GB pre-allocation. The Get() call is expected to fail
  9606. // (server claims more bytes than payload_max_length permits), but it must
  9607. // not exhaust memory before getting there.
  9608. auto res = cli.Get("/malicious");
  9609. EXPECT_FALSE(res); // Read fails because body exceeds payload_max_length_
  9610. }
  9611. server_thread.join();
  9612. }
  9613. // Verify that content_receiver bypasses the default payload_max_length,
  9614. // allowing streaming downloads larger than 100MB without requiring an explicit
  9615. // set_payload_max_length call.
  9616. TEST(ClientVulnerabilityTest, ContentReceiverBypassesDefaultPayloadMaxLength) {
  9617. static constexpr size_t DATA_SIZE = 200 * 1024 * 1024; // 200MB from server
  9618. #ifndef _WIN32
  9619. signal(SIGPIPE, SIG_IGN);
  9620. #endif
  9621. auto server_thread = std::thread([] {
  9622. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9623. default_socket_options(srv);
  9624. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9625. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9626. sockaddr_in addr{};
  9627. addr.sin_family = AF_INET;
  9628. addr.sin_port = htons(static_cast<uint16_t>(PORT + 2));
  9629. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9630. int opt = 1;
  9631. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9632. #ifdef _WIN32
  9633. reinterpret_cast<const char *>(&opt),
  9634. #else
  9635. &opt,
  9636. #endif
  9637. sizeof(opt));
  9638. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  9639. ::listen(srv, 1);
  9640. sockaddr_in cli_addr{};
  9641. socklen_t cli_len = sizeof(cli_addr);
  9642. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9643. if (cli != INVALID_SOCKET) {
  9644. char buf[4096];
  9645. ::recv(cli, buf, sizeof(buf), 0);
  9646. // Response with Content-Length larger than default 100MB limit
  9647. auto content_length = std::to_string(DATA_SIZE);
  9648. std::string response_header = "HTTP/1.1 200 OK\r\n"
  9649. "Content-Length: " +
  9650. content_length +
  9651. "\r\n"
  9652. "Connection: close\r\n"
  9653. "\r\n";
  9654. ::send(cli,
  9655. #ifdef _WIN32
  9656. static_cast<const char *>(response_header.c_str()),
  9657. static_cast<int>(response_header.size()),
  9658. #else
  9659. response_header.c_str(), response_header.size(),
  9660. #endif
  9661. 0);
  9662. std::string chunk(64 * 1024, 'A');
  9663. size_t total_sent = 0;
  9664. while (total_sent < DATA_SIZE) {
  9665. auto to_send = std::min(chunk.size(), DATA_SIZE - total_sent);
  9666. auto sent = ::send(cli,
  9667. #ifdef _WIN32
  9668. static_cast<const char *>(chunk.c_str()),
  9669. static_cast<int>(to_send),
  9670. #else
  9671. chunk.c_str(), to_send,
  9672. #endif
  9673. 0);
  9674. if (sent <= 0) break;
  9675. total_sent += static_cast<size_t>(sent);
  9676. }
  9677. detail::close_socket(cli);
  9678. }
  9679. detail::close_socket(srv);
  9680. });
  9681. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  9682. size_t total_received = 0;
  9683. {
  9684. Client cli("127.0.0.1", PORT + 2);
  9685. cli.set_read_timeout(10, 0);
  9686. // Do NOT call set_payload_max_length — use the default 100MB limit
  9687. auto res =
  9688. cli.Get("/large", [&](const char * /*data*/, size_t data_length) {
  9689. total_received += data_length;
  9690. return true;
  9691. });
  9692. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9693. EXPECT_EQ(StatusCode::OK_200, res->status);
  9694. }
  9695. server_thread.join();
  9696. EXPECT_EQ(total_received, DATA_SIZE)
  9697. << "With content_receiver, the client should read all " << DATA_SIZE
  9698. << " bytes despite the default 100MB payload_max_length, but only read "
  9699. << total_received << " bytes.";
  9700. }
  9701. // Verify that an explicit set_payload_max_length smaller than the response is
  9702. // enforced even when a content_receiver is used.
  9703. TEST(ClientVulnerabilityTest,
  9704. ContentReceiverRespectsExplicitPayloadMaxLength150MB) {
  9705. static constexpr size_t DATA_SIZE = 200 * 1024 * 1024; // 200MB from server
  9706. static constexpr size_t EXPLICIT_LIMIT = 150 * 1024 * 1024; // 150MB limit
  9707. #ifndef _WIN32
  9708. signal(SIGPIPE, SIG_IGN);
  9709. #endif
  9710. auto server_thread = std::thread([] {
  9711. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9712. default_socket_options(srv);
  9713. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9714. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9715. sockaddr_in addr{};
  9716. addr.sin_family = AF_INET;
  9717. addr.sin_port = htons(static_cast<uint16_t>(PORT + 2));
  9718. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9719. int opt = 1;
  9720. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9721. #ifdef _WIN32
  9722. reinterpret_cast<const char *>(&opt),
  9723. #else
  9724. &opt,
  9725. #endif
  9726. sizeof(opt));
  9727. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  9728. ::listen(srv, 1);
  9729. sockaddr_in cli_addr{};
  9730. socklen_t cli_len = sizeof(cli_addr);
  9731. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9732. if (cli != INVALID_SOCKET) {
  9733. char buf[4096];
  9734. ::recv(cli, buf, sizeof(buf), 0);
  9735. auto content_length = std::to_string(DATA_SIZE);
  9736. std::string response_header = "HTTP/1.1 200 OK\r\n"
  9737. "Content-Length: " +
  9738. content_length +
  9739. "\r\n"
  9740. "Connection: close\r\n"
  9741. "\r\n";
  9742. ::send(cli,
  9743. #ifdef _WIN32
  9744. static_cast<const char *>(response_header.c_str()),
  9745. static_cast<int>(response_header.size()),
  9746. #else
  9747. response_header.c_str(), response_header.size(),
  9748. #endif
  9749. 0);
  9750. std::string chunk(64 * 1024, 'A');
  9751. size_t total_sent = 0;
  9752. while (total_sent < DATA_SIZE) {
  9753. auto to_send = std::min(chunk.size(), DATA_SIZE - total_sent);
  9754. auto sent = ::send(cli,
  9755. #ifdef _WIN32
  9756. static_cast<const char *>(chunk.c_str()),
  9757. static_cast<int>(to_send),
  9758. #else
  9759. chunk.c_str(), to_send,
  9760. #endif
  9761. 0);
  9762. if (sent <= 0) break;
  9763. total_sent += static_cast<size_t>(sent);
  9764. }
  9765. detail::close_socket(cli);
  9766. }
  9767. detail::close_socket(srv);
  9768. });
  9769. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  9770. size_t total_received = 0;
  9771. {
  9772. Client cli("127.0.0.1", PORT + 2);
  9773. cli.set_read_timeout(10, 0);
  9774. cli.set_payload_max_length(EXPLICIT_LIMIT); // Explicit 150MB limit
  9775. auto res =
  9776. cli.Get("/large", [&](const char * /*data*/, size_t data_length) {
  9777. total_received += data_length;
  9778. return true;
  9779. });
  9780. // Should fail because 200MB exceeds the explicit 150MB limit
  9781. EXPECT_FALSE(res);
  9782. }
  9783. server_thread.join();
  9784. EXPECT_LE(total_received, EXPLICIT_LIMIT)
  9785. << "Client with content_receiver should respect the explicit "
  9786. << "payload_max_length of " << EXPLICIT_LIMIT << " bytes, but read "
  9787. << total_received << " bytes.";
  9788. }
  9789. // Verify that an explicit set_payload_max_length larger than the response
  9790. // allows the content_receiver to read all data successfully.
  9791. TEST(ClientVulnerabilityTest,
  9792. ContentReceiverRespectsExplicitPayloadMaxLength250MB) {
  9793. static constexpr size_t DATA_SIZE = 200 * 1024 * 1024; // 200MB from server
  9794. static constexpr size_t EXPLICIT_LIMIT = 250 * 1024 * 1024; // 250MB limit
  9795. #ifndef _WIN32
  9796. signal(SIGPIPE, SIG_IGN);
  9797. #endif
  9798. auto server_thread = std::thread([] {
  9799. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9800. default_socket_options(srv);
  9801. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9802. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9803. sockaddr_in addr{};
  9804. addr.sin_family = AF_INET;
  9805. addr.sin_port = htons(static_cast<uint16_t>(PORT + 2));
  9806. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9807. int opt = 1;
  9808. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9809. #ifdef _WIN32
  9810. reinterpret_cast<const char *>(&opt),
  9811. #else
  9812. &opt,
  9813. #endif
  9814. sizeof(opt));
  9815. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  9816. ::listen(srv, 1);
  9817. sockaddr_in cli_addr{};
  9818. socklen_t cli_len = sizeof(cli_addr);
  9819. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9820. if (cli != INVALID_SOCKET) {
  9821. char buf[4096];
  9822. ::recv(cli, buf, sizeof(buf), 0);
  9823. auto content_length = std::to_string(DATA_SIZE);
  9824. std::string response_header = "HTTP/1.1 200 OK\r\n"
  9825. "Content-Length: " +
  9826. content_length +
  9827. "\r\n"
  9828. "Connection: close\r\n"
  9829. "\r\n";
  9830. ::send(cli,
  9831. #ifdef _WIN32
  9832. static_cast<const char *>(response_header.c_str()),
  9833. static_cast<int>(response_header.size()),
  9834. #else
  9835. response_header.c_str(), response_header.size(),
  9836. #endif
  9837. 0);
  9838. std::string chunk(64 * 1024, 'A');
  9839. size_t total_sent = 0;
  9840. while (total_sent < DATA_SIZE) {
  9841. auto to_send = std::min(chunk.size(), DATA_SIZE - total_sent);
  9842. auto sent = ::send(cli,
  9843. #ifdef _WIN32
  9844. static_cast<const char *>(chunk.c_str()),
  9845. static_cast<int>(to_send),
  9846. #else
  9847. chunk.c_str(), to_send,
  9848. #endif
  9849. 0);
  9850. if (sent <= 0) break;
  9851. total_sent += static_cast<size_t>(sent);
  9852. }
  9853. #ifdef _WIN32
  9854. ::shutdown(cli, SD_SEND);
  9855. #else
  9856. ::shutdown(cli, SHUT_WR);
  9857. #endif
  9858. char drain[1024];
  9859. while (::recv(cli, drain, sizeof(drain), 0) > 0) {}
  9860. detail::close_socket(cli);
  9861. }
  9862. detail::close_socket(srv);
  9863. });
  9864. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  9865. size_t total_received = 0;
  9866. {
  9867. Client cli("127.0.0.1", PORT + 2);
  9868. cli.set_read_timeout(10, 0);
  9869. cli.set_payload_max_length(EXPLICIT_LIMIT); // Explicit 250MB limit
  9870. auto res =
  9871. cli.Get("/large", [&](const char * /*data*/, size_t data_length) {
  9872. total_received += data_length;
  9873. return true;
  9874. });
  9875. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  9876. EXPECT_EQ(StatusCode::OK_200, res->status);
  9877. }
  9878. server_thread.join();
  9879. EXPECT_EQ(total_received, DATA_SIZE)
  9880. << "With explicit payload_max_length of " << EXPLICIT_LIMIT
  9881. << " bytes (larger than " << DATA_SIZE
  9882. << " bytes response), content_receiver should read all data, but only "
  9883. "read "
  9884. << total_received << " bytes.";
  9885. }
  9886. #if defined(CPPHTTPLIB_ZLIB_SUPPORT) && !defined(_WIN32)
  9887. // Regression test for "zip bomb" attack on the client side: a malicious server
  9888. // sends a small gzip-compressed response that decompresses to a huge payload.
  9889. // The client must enforce payload_max_length on the decompressed size.
  9890. TEST(ClientVulnerabilityTest, ZipBombWithoutContentLength) {
  9891. constexpr size_t DECOMPRESSED_SIZE =
  9892. 10 * 1024 * 1024; // 10MB after decompression
  9893. constexpr size_t CLIENT_READ_LIMIT = 2 * 1024 * 1024; // 2MB safety limit
  9894. // Prepare gzip-compressed data: 10MB of zeros compresses to a few KB
  9895. std::string uncompressed(DECOMPRESSED_SIZE, '\0');
  9896. std::string compressed;
  9897. {
  9898. httplib::detail::gzip_compressor compressor;
  9899. bool ok =
  9900. compressor.compress(uncompressed.data(), uncompressed.size(),
  9901. /*last=*/true, [&](const char *buf, size_t len) {
  9902. compressed.append(buf, len);
  9903. return true;
  9904. });
  9905. ASSERT_TRUE(ok);
  9906. }
  9907. // Sanity: compressed data should be much smaller than the decompressed size
  9908. ASSERT_LT(compressed.size(), DECOMPRESSED_SIZE / 10);
  9909. #ifndef _WIN32
  9910. signal(SIGPIPE, SIG_IGN);
  9911. #endif
  9912. // Set up the listening socket in the main thread so the server is guaranteed
  9913. // to be ready before the client connects (eliminates race condition).
  9914. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  9915. default_socket_options(srv);
  9916. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  9917. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  9918. sockaddr_in addr{};
  9919. addr.sin_family = AF_INET;
  9920. addr.sin_port = htons(static_cast<uint16_t>(PORT + 3));
  9921. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  9922. int opt = 1;
  9923. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  9924. #ifdef _WIN32
  9925. reinterpret_cast<const char *>(&opt),
  9926. #else
  9927. &opt,
  9928. #endif
  9929. sizeof(opt));
  9930. ASSERT_EQ(0, ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr)));
  9931. ASSERT_EQ(0, ::listen(srv, 1));
  9932. auto server_thread = std::thread([&compressed, srv] {
  9933. sockaddr_in cli_addr{};
  9934. socklen_t cli_len = sizeof(cli_addr);
  9935. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  9936. if (cli != INVALID_SOCKET) {
  9937. // Read the full HTTP request (until \r\n\r\n)
  9938. char buf[4096];
  9939. size_t total = 0;
  9940. while (total < sizeof(buf)) {
  9941. auto n = ::recv(cli, buf + total, sizeof(buf) - total, 0);
  9942. if (n <= 0) break;
  9943. total += static_cast<size_t>(n);
  9944. // Check for end of headers
  9945. if (total >= 4) {
  9946. std::string req(buf, total);
  9947. if (req.find("\r\n\r\n") != std::string::npos) break;
  9948. }
  9949. }
  9950. // Malicious response: gzip-compressed body, no Content-Length
  9951. std::string response_header = "HTTP/1.1 200 OK\r\n"
  9952. "Content-Encoding: gzip\r\n"
  9953. "Connection: close\r\n"
  9954. "\r\n";
  9955. ::send(cli,
  9956. #ifdef _WIN32
  9957. static_cast<const char *>(response_header.c_str()),
  9958. static_cast<int>(response_header.size()),
  9959. #else
  9960. response_header.c_str(), response_header.size(),
  9961. #endif
  9962. 0);
  9963. // Send the compressed payload (small on the wire, huge when decompressed)
  9964. size_t total_sent = 0;
  9965. while (total_sent < compressed.size()) {
  9966. auto to_send = std::min(compressed.size() - total_sent,
  9967. static_cast<size_t>(64 * 1024));
  9968. auto sent =
  9969. ::send(cli,
  9970. #ifdef _WIN32
  9971. static_cast<const char *>(compressed.c_str() + total_sent),
  9972. static_cast<int>(to_send),
  9973. #else
  9974. compressed.c_str() + total_sent, to_send,
  9975. #endif
  9976. 0);
  9977. if (sent <= 0) break;
  9978. total_sent += static_cast<size_t>(sent);
  9979. }
  9980. detail::close_socket(cli);
  9981. }
  9982. });
  9983. auto se = detail::scope_exit([&] {
  9984. detail::close_socket(srv);
  9985. server_thread.join();
  9986. });
  9987. size_t total_decompressed = 0;
  9988. {
  9989. Client cli("127.0.0.1", PORT + 3);
  9990. cli.set_read_timeout(5, 0);
  9991. cli.set_decompress(true);
  9992. cli.set_payload_max_length(CLIENT_READ_LIMIT);
  9993. auto stream = cli.open_stream("GET", "/zipbomb");
  9994. ASSERT_TRUE(stream.is_valid());
  9995. char buffer[64 * 1024];
  9996. ssize_t n;
  9997. while ((n = stream.read(buffer, sizeof(buffer))) > 0) {
  9998. total_decompressed += static_cast<size_t>(n);
  9999. }
  10000. }
  10001. // The decompressed size must be capped by payload_max_length. Without
  10002. // protection, the client would decompress the full 10MB from a tiny
  10003. // compressed payload, enabling a zip bomb DoS attack.
  10004. EXPECT_LE(total_decompressed, CLIENT_READ_LIMIT)
  10005. << "Client decompressed " << total_decompressed
  10006. << " bytes from a gzip response. The decompressed size should be "
  10007. << "limited by set_payload_max_length to prevent zip bomb attacks.";
  10008. }
  10009. #endif
  10010. TEST(HostAndPortPropertiesTest, NoSSL) {
  10011. httplib::Client cli("www.google.com", 1234);
  10012. ASSERT_EQ("www.google.com", cli.host());
  10013. ASSERT_EQ(1234, cli.port());
  10014. }
  10015. TEST(HostAndPortPropertiesTest, NoSSLWithSimpleAPI) {
  10016. httplib::Client cli("www.google.com:1234");
  10017. ASSERT_EQ("www.google.com", cli.host());
  10018. ASSERT_EQ(1234, cli.port());
  10019. }
  10020. TEST(HostAndPortPropertiesTest, OverflowPortNumber) {
  10021. // Port number that overflows int — should not crash, client becomes invalid
  10022. httplib::Client cli("http://www.google.com:99999999999999999999");
  10023. ASSERT_FALSE(cli.is_valid());
  10024. }
  10025. TEST(HostAndPortPropertiesTest, PortOutOfRange) {
  10026. // Port 99999 exceeds valid range (1-65535) — should not crash
  10027. httplib::Client cli("http://www.google.com:99999");
  10028. ASSERT_FALSE(cli.is_valid());
  10029. }
  10030. #ifdef CPPHTTPLIB_SSL_ENABLED
  10031. TEST(HostAndPortPropertiesTest, SSL) {
  10032. httplib::SSLClient cli("www.google.com");
  10033. ASSERT_EQ("www.google.com", cli.host());
  10034. ASSERT_EQ(443, cli.port());
  10035. }
  10036. TEST(SSLClientTest, UpdateCAStoreWithPem_Online) {
  10037. // Test updating CA store multiple times using PEM-based load_ca_cert_store
  10038. std::string cert;
  10039. read_file(CA_CERT_FILE, cert);
  10040. httplib::SSLClient httplib_client("www.google.com");
  10041. // Load CA store first time
  10042. httplib_client.load_ca_cert_store(cert.data(), cert.size());
  10043. // Load CA store second time (update)
  10044. httplib_client.load_ca_cert_store(cert.data(), cert.size());
  10045. // Verify client is still valid and can make connections
  10046. httplib_client.enable_server_certificate_verification(true);
  10047. auto res = httplib_client.Get("/");
  10048. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10049. // Google may return 200 or 301 depending on various factors
  10050. EXPECT_TRUE(res->status == StatusCode::OK_200 ||
  10051. res->status == StatusCode::MovedPermanently_301);
  10052. }
  10053. TEST(SSLClientTest, ServerNameIndication_Online) {
  10054. auto host = "httpbingo.org";
  10055. auto path = std::string{"/get"};
  10056. SSLClient cli(host, 443);
  10057. auto res = cli.Get(path);
  10058. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10059. ASSERT_EQ(StatusCode::OK_200, res->status);
  10060. }
  10061. TEST(SSLClientTest, ServerCertificateVerificationError_Online) {
  10062. // Use a site that will cause SSL verification failure due to self-signed cert
  10063. SSLClient cli("self-signed.badssl.com", 443);
  10064. cli.enable_server_certificate_verification(true);
  10065. auto res = cli.Get("/");
  10066. ASSERT_TRUE(!res);
  10067. EXPECT_EQ(Error::SSLServerVerification, res.error());
  10068. // Verify backend error is captured for SSLServerVerification
  10069. // This occurs when certificate verification fails
  10070. // OpenSSL: X509_V_ERR_DEPTH_ZERO_SELF_SIGNED_CERT (18)
  10071. // Mbed TLS: MBEDTLS_X509_BADCERT_NOT_TRUSTED or similar flags
  10072. EXPECT_NE(0UL, res.ssl_backend_error());
  10073. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  10074. // For OpenSSL, ssl_error is 0 for verification errors
  10075. EXPECT_EQ(0, res.ssl_error());
  10076. #if !defined(_WIN32) || \
  10077. defined(CPPHTTPLIB_DISABLE_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE)
  10078. // On non-Windows or when Windows Schannel is disabled, the error comes
  10079. // from OpenSSL's verification
  10080. EXPECT_EQ(static_cast<unsigned long>(X509_V_ERR_DEPTH_ZERO_SELF_SIGNED_CERT),
  10081. res.ssl_backend_error());
  10082. #endif
  10083. #endif
  10084. }
  10085. TEST(SSLClientTest, ServerHostnameVerificationError_Online) {
  10086. // Use a site where hostname doesn't match the certificate
  10087. // badssl.com provides wrong.host.badssl.com which has cert for *.badssl.com
  10088. SSLClient cli("wrong.host.badssl.com", 443);
  10089. cli.enable_server_certificate_verification(true);
  10090. cli.enable_server_hostname_verification(true);
  10091. auto res = cli.Get("/");
  10092. ASSERT_TRUE(!res);
  10093. EXPECT_EQ(Error::SSLServerHostnameVerification, res.error());
  10094. // Verify backend error is captured for hostname verification failure
  10095. EXPECT_NE(0UL, res.ssl_backend_error());
  10096. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  10097. // For OpenSSL, ssl_error is 0 for verification errors
  10098. EXPECT_EQ(0, res.ssl_error());
  10099. #if !defined(_WIN32) || \
  10100. defined(CPPHTTPLIB_DISABLE_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE)
  10101. // On non-Windows or when Windows Schannel is disabled, the error comes
  10102. // from OpenSSL's hostname verification
  10103. EXPECT_EQ(static_cast<unsigned long>(X509_V_ERR_HOSTNAME_MISMATCH),
  10104. res.ssl_backend_error());
  10105. #endif
  10106. #endif
  10107. }
  10108. #if defined(_WIN32) && defined(CPPHTTPLIB_SSL_ENABLED) && \
  10109. !defined(CPPHTTPLIB_DISABLE_WINDOWS_AUTOMATIC_ROOT_CERTIFICATES_UPDATE)
  10110. TEST(SSLClientTest, WindowsCertificateVerification_DefaultEnabled) {
  10111. SSLClient cli("www.google.com", 443);
  10112. cli.enable_server_certificate_verification(true);
  10113. auto res = cli.Get("/");
  10114. if (res) { EXPECT_NE(StatusCode::InternalServerError_500, res->status); }
  10115. }
  10116. TEST(SSLClientTest, WindowsCertificateVerification_Disabled) {
  10117. SSLClient cli("www.google.com", 443);
  10118. cli.enable_server_certificate_verification(true);
  10119. cli.enable_windows_certificate_verification(false);
  10120. auto res = cli.Get("/");
  10121. if (res) { EXPECT_NE(StatusCode::InternalServerError_500, res->status); }
  10122. }
  10123. #endif
  10124. TEST(SSLClientTest, ServerCertificateVerification1_Online) {
  10125. Client cli("https://google.com");
  10126. auto res = cli.Get("/");
  10127. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10128. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  10129. }
  10130. TEST(SSLClientTest, ServerCertificateVerification2_Online) {
  10131. SSLClient cli("google.com");
  10132. cli.set_ca_cert_path(CA_CERT_FILE);
  10133. auto res = cli.Get("/");
  10134. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10135. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  10136. }
  10137. TEST(SSLClientTest, ServerCertificateVerification3_Online) {
  10138. SSLClient cli("google.com");
  10139. cli.enable_server_certificate_verification(true);
  10140. cli.set_ca_cert_path("hello");
  10141. auto res = cli.Get("/");
  10142. ASSERT_TRUE(!res);
  10143. EXPECT_EQ(Error::SSLLoadingCerts, res.error());
  10144. // For SSL_CTX operations, ssl_error should be 0, only ssl_backend_error
  10145. // should be set
  10146. EXPECT_EQ(0, res.ssl_error());
  10147. // Verify backend error is captured for SSLLoadingCerts
  10148. // This error occurs when loading CA certificates fails
  10149. EXPECT_NE(0UL, res.ssl_backend_error());
  10150. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  10151. // OpenSSL specific error codes:
  10152. // > openssl errstr 0x80000002
  10153. // error:80000002:system library::No such file or directory
  10154. // > openssl errstr 0xA000126
  10155. // error:0A000126:SSL routines::unexpected eof while reading
  10156. EXPECT_TRUE(res.ssl_backend_error() == 0x80000002 ||
  10157. res.ssl_backend_error() == 0xA000126);
  10158. #endif
  10159. }
  10160. TEST(SSLClientTest, ServerCertificateVerification4) {
  10161. SSLServer svr(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  10162. ASSERT_TRUE(svr.is_valid());
  10163. svr.Get("/test", [&](const Request &, Response &res) {
  10164. res.set_content("test", "text/plain");
  10165. svr.stop();
  10166. ASSERT_TRUE(true);
  10167. });
  10168. thread t = thread([&]() { ASSERT_TRUE(svr.listen("127.0.0.1", PORT)); });
  10169. auto se = detail::scope_exit([&] {
  10170. t.join();
  10171. ASSERT_FALSE(svr.is_running());
  10172. });
  10173. svr.wait_until_ready();
  10174. SSLClient cli("127.0.0.1", PORT);
  10175. cli.set_ca_cert_path(SERVER_CERT2_FILE);
  10176. cli.enable_server_certificate_verification(true);
  10177. cli.set_connection_timeout(30);
  10178. auto res = cli.Get("/test");
  10179. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10180. ASSERT_EQ(StatusCode::OK_200, res->status);
  10181. }
  10182. TEST(SSLClientTest, ServerCertificateVerification5_Online) {
  10183. std::string cert;
  10184. read_file(CA_CERT_FILE, cert);
  10185. SSLClient cli("google.com");
  10186. cli.load_ca_cert_store(cert.data(), cert.size());
  10187. const auto res = cli.Get("/");
  10188. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10189. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  10190. }
  10191. TEST(SSLClientTest, ServerCertificateVerification6_Online) {
  10192. // clang-format off
  10193. static constexpr char cert[] =
  10194. "GlobalSign Root CA\n"
  10195. "==================\n"
  10196. "-----BEGIN CERTIFICATE-----\n"
  10197. "MIIDdTCCAl2gAwIBAgILBAAAAAABFUtaw5QwDQYJKoZIhvcNAQEFBQAwVzELMAkGA1UEBhMCQkUx\n"
  10198. "GTAXBgNVBAoTEEdsb2JhbFNpZ24gbnYtc2ExEDAOBgNVBAsTB1Jvb3QgQ0ExGzAZBgNVBAMTEkds\n"
  10199. "b2JhbFNpZ24gUm9vdCBDQTAeFw05ODA5MDExMjAwMDBaFw0yODAxMjgxMjAwMDBaMFcxCzAJBgNV\n"
  10200. "BAYTAkJFMRkwFwYDVQQKExBHbG9iYWxTaWduIG52LXNhMRAwDgYDVQQLEwdSb290IENBMRswGQYD\n"
  10201. "VQQDExJHbG9iYWxTaWduIFJvb3QgQ0EwggEiMA0GCSqGSIb3DQEBAQUAA4IBDwAwggEKAoIBAQDa\n"
  10202. "DuaZjc6j40+Kfvvxi4Mla+pIH/EqsLmVEQS98GPR4mdmzxzdzxtIK+6NiY6arymAZavpxy0Sy6sc\n"
  10203. "THAHoT0KMM0VjU/43dSMUBUc71DuxC73/OlS8pF94G3VNTCOXkNz8kHp1Wrjsok6Vjk4bwY8iGlb\n"
  10204. "Kk3Fp1S4bInMm/k8yuX9ifUSPJJ4ltbcdG6TRGHRjcdGsnUOhugZitVtbNV4FpWi6cgKOOvyJBNP\n"
  10205. "c1STE4U6G7weNLWLBYy5d4ux2x8gkasJU26Qzns3dLlwR5EiUWMWea6xrkEmCMgZK9FGqkjWZCrX\n"
  10206. "gzT/LCrBbBlDSgeF59N89iFo7+ryUp9/k5DPAgMBAAGjQjBAMA4GA1UdDwEB/wQEAwIBBjAPBgNV\n"
  10207. "HRMBAf8EBTADAQH/MB0GA1UdDgQWBBRge2YaRQ2XyolQL30EzTSo//z9SzANBgkqhkiG9w0BAQUF\n"
  10208. "AAOCAQEA1nPnfE920I2/7LqivjTFKDK1fPxsnCwrvQmeU79rXqoRSLblCKOzyj1hTdNGCbM+w6Dj\n"
  10209. "Y1Ub8rrvrTnhQ7k4o+YviiY776BQVvnGCv04zcQLcFGUl5gE38NflNUVyRRBnMRddWQVDf9VMOyG\n"
  10210. "j/8N7yy5Y0b2qvzfvGn9LhJIZJrglfCm7ymPAbEVtQwdpf5pLGkkeB6zpxxxYu7KyJesF12KwvhH\n"
  10211. "hm4qxFYxldBniYUr+WymXUadDKqC5JlR3XC321Y9YeRq4VzW9v493kHMB65jUr9TU/Qr6cf9tveC\n"
  10212. "X4XSQRjbgbMEHMUfpIBvFSDJ3gyICh3WZlXi/EjJKSZp4A==\n"
  10213. "-----END CERTIFICATE-----\n";
  10214. // clang-format on
  10215. SSLClient cli("google.com");
  10216. cli.load_ca_cert_store(cert, sizeof(cert));
  10217. const auto res = cli.Get("/");
  10218. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10219. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  10220. }
  10221. TEST(SSLClientTest, WildcardHostNameMatch_Online) {
  10222. SSLClient cli("www.youtube.com");
  10223. cli.set_ca_cert_path(CA_CERT_FILE);
  10224. cli.enable_server_certificate_verification(true);
  10225. cli.set_follow_location(true);
  10226. auto res = cli.Get("/");
  10227. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10228. ASSERT_EQ(StatusCode::OK_200, res->status);
  10229. }
  10230. TEST(SSLClientTest, WildcardHostNameMatchCase_Online) {
  10231. SSLClient cli("wWw.YouTube.Com");
  10232. cli.set_ca_cert_path(CA_CERT_FILE);
  10233. cli.enable_server_certificate_verification(true);
  10234. cli.enable_server_hostname_verification(true);
  10235. cli.set_follow_location(true);
  10236. auto res = cli.Get("/");
  10237. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10238. ASSERT_EQ(StatusCode::OK_200, res->status);
  10239. }
  10240. TEST(SSLClientTest, HostNameMatchCase_Online) {
  10241. SSLClient cli("gOoGlE.COm");
  10242. cli.enable_server_certificate_verification(true);
  10243. cli.enable_server_hostname_verification(true);
  10244. cli.set_follow_location(true);
  10245. auto res = cli.Get("/");
  10246. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10247. ASSERT_EQ(StatusCode::OK_200, res->status);
  10248. }
  10249. TEST(SSLClientTest, Issue2004_Online) {
  10250. Client client("https://google.com");
  10251. client.set_follow_location(true);
  10252. auto res = client.Get("/");
  10253. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10254. ASSERT_EQ(StatusCode::OK_200, res->status);
  10255. auto body = res->body;
  10256. EXPECT_EQ(body.substr(0, 15), "<!doctype html>");
  10257. }
  10258. TEST(SSLClientTest, ErrorReportingWhenInvalid) {
  10259. // Create SSLClient with invalid cert/key to make is_valid() return false
  10260. SSLClient cli("localhost", 8080, "nonexistent_cert.pem",
  10261. "nonexistent_key.pem");
  10262. // is_valid() should be false due to cert loading failure
  10263. ASSERT_FALSE(cli.is_valid());
  10264. auto res = cli.Get("/");
  10265. ASSERT_FALSE(res);
  10266. EXPECT_EQ(Error::SSLConnection, res.error());
  10267. }
  10268. TEST(SSLClientTest, Issue2251_SwappedClientCertAndKey) {
  10269. // Test for Issue #2251: SSL error not properly reported when client cert
  10270. // and key paths are swapped or mismatched
  10271. // This simulates the scenario where user accidentally swaps the cert and key
  10272. // files
  10273. // Using client cert file as private key and vice versa (completely wrong)
  10274. SSLClient cli("localhost", 8080, "client.key.pem", "client.cert.pem");
  10275. // Should fail validation due to cert/key mismatch
  10276. ASSERT_FALSE(cli.is_valid());
  10277. // Attempt to make a request should fail with proper error
  10278. auto res = cli.Get("/");
  10279. ASSERT_FALSE(res);
  10280. EXPECT_EQ(Error::SSLConnection, res.error());
  10281. // SSL error should be recorded in the Result object (this is the key fix for
  10282. // Issue #2251)
  10283. auto backend_error = res.ssl_backend_error();
  10284. EXPECT_NE(0u, backend_error);
  10285. }
  10286. // Tests cert/key mismatch detection at the TLS context level
  10287. TEST(TlsApiTest, ClientCertKeyMismatch) {
  10288. // Test that using mismatched cert/key causes connection failure.
  10289. // We verify this at the SSLClient level rather than through internal
  10290. // TLS API functions.
  10291. SSLClient cli(HOST, PORT, "client.cert.pem", "key.pem");
  10292. cli.enable_server_certificate_verification(false);
  10293. cli.set_connection_timeout(2);
  10294. // The mismatch should cause a connection or handshake error
  10295. auto res = cli.Get("/test");
  10296. // OpenSSL detects mismatch at context setup, MbedTLS at handshake
  10297. // Either way, the request should fail
  10298. EXPECT_FALSE(res);
  10299. }
  10300. #endif
  10301. #if 0
  10302. TEST(SSLClientTest, SetInterfaceWithINET6) {
  10303. auto cli = std::make_shared<httplib::Client>("https://httpcan.org");
  10304. ASSERT_TRUE(cli != nullptr);
  10305. cli->set_address_family(AF_INET6);
  10306. cli->set_interface("en0");
  10307. auto res = cli->Get("/get");
  10308. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10309. ASSERT_EQ(StatusCode::OK_200, res->status);
  10310. }
  10311. #endif
  10312. // ClientCertPresent uses get_peer_cert() - works with all TLS backends
  10313. #ifdef CPPHTTPLIB_SSL_ENABLED
  10314. void ClientCertPresent(
  10315. const std::string &client_cert_file,
  10316. const std::string &client_private_key_file,
  10317. const std::string &client_encrypted_private_key_pass = std::string()) {
  10318. using namespace httplib::tls;
  10319. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE,
  10320. CLIENT_CA_CERT_DIR);
  10321. ASSERT_TRUE(svr.is_valid());
  10322. svr.Get("/test", [&](const Request &req, Response &res) {
  10323. res.set_content("test", "text/plain");
  10324. auto cert = req.peer_cert();
  10325. ASSERT_TRUE(static_cast<bool>(cert));
  10326. std::string common_name = cert.subject_cn();
  10327. EXPECT_EQ("Common Name", common_name);
  10328. });
  10329. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10330. auto se = detail::scope_exit([&] {
  10331. svr.stop();
  10332. t.join();
  10333. ASSERT_FALSE(svr.is_running());
  10334. });
  10335. svr.wait_until_ready();
  10336. SSLClient cli(HOST, PORT, client_cert_file, client_private_key_file,
  10337. client_encrypted_private_key_pass);
  10338. cli.enable_server_certificate_verification(false);
  10339. cli.set_connection_timeout(30);
  10340. auto res = cli.Get("/test");
  10341. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10342. ASSERT_EQ(StatusCode::OK_200, res->status);
  10343. }
  10344. TEST(SSLClientServerTest, ClientCertPresent) {
  10345. ClientCertPresent(CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10346. }
  10347. TEST(SSLClientServerTest, ClientEncryptedCertPresent) {
  10348. ClientCertPresent(CLIENT_ENCRYPTED_CERT_FILE,
  10349. CLIENT_ENCRYPTED_PRIVATE_KEY_FILE,
  10350. CLIENT_ENCRYPTED_PRIVATE_KEY_PASS);
  10351. }
  10352. // PEM memory-based constructor tests (works with all TLS backends)
  10353. void PemMemoryClientCertPresent(
  10354. const std::string &client_cert_file,
  10355. const std::string &client_private_key_file,
  10356. const std::string &client_encrypted_private_key_pass = std::string()) {
  10357. // Read PEM files into memory
  10358. std::string server_cert_pem, server_key_pem;
  10359. std::string client_ca_pem;
  10360. std::string client_cert_pem, client_key_pem;
  10361. read_file(SERVER_CERT_FILE, server_cert_pem);
  10362. read_file(SERVER_PRIVATE_KEY_FILE, server_key_pem);
  10363. read_file(CLIENT_CA_CERT_FILE, client_ca_pem);
  10364. read_file(client_cert_file, client_cert_pem);
  10365. read_file(client_private_key_file, client_key_pem);
  10366. // Create server with PEM memory
  10367. SSLServer::PemMemory server_pem = {
  10368. server_cert_pem.c_str(),
  10369. server_cert_pem.size(),
  10370. server_key_pem.c_str(),
  10371. server_key_pem.size(),
  10372. client_ca_pem.c_str(),
  10373. client_ca_pem.size(),
  10374. nullptr // no password for server key
  10375. };
  10376. SSLServer svr(server_pem);
  10377. ASSERT_TRUE(svr.is_valid());
  10378. svr.Get("/test", [&](const Request &, Response &res) {
  10379. res.set_content("test", "text/plain");
  10380. });
  10381. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10382. auto se = detail::scope_exit([&] {
  10383. svr.stop();
  10384. t.join();
  10385. ASSERT_FALSE(svr.is_running());
  10386. });
  10387. svr.wait_until_ready();
  10388. // Create client with PEM memory
  10389. const char *password = client_encrypted_private_key_pass.empty()
  10390. ? nullptr
  10391. : client_encrypted_private_key_pass.c_str();
  10392. SSLClient::PemMemory client_pem = {
  10393. client_cert_pem.c_str(), client_cert_pem.size(), client_key_pem.c_str(),
  10394. client_key_pem.size(), password};
  10395. SSLClient cli(HOST, PORT, client_pem);
  10396. cli.enable_server_certificate_verification(false);
  10397. cli.set_connection_timeout(30);
  10398. auto res = cli.Get("/test");
  10399. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10400. ASSERT_EQ(StatusCode::OK_200, res->status);
  10401. }
  10402. TEST(SSLClientServerTest, PemMemoryClientCertPresent) {
  10403. PemMemoryClientCertPresent(CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10404. }
  10405. TEST(SSLClientServerTest, PemMemoryClientEncryptedCertPresent) {
  10406. PemMemoryClientCertPresent(CLIENT_ENCRYPTED_CERT_FILE,
  10407. CLIENT_ENCRYPTED_PRIVATE_KEY_FILE,
  10408. CLIENT_ENCRYPTED_PRIVATE_KEY_PASS);
  10409. }
  10410. TEST(SSLClientServerTest, ClientCertMissing) {
  10411. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE,
  10412. CLIENT_CA_CERT_DIR);
  10413. ASSERT_TRUE(svr.is_valid());
  10414. svr.Get("/test", [&](const Request &, Response &) { ASSERT_TRUE(false); });
  10415. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10416. auto se = detail::scope_exit([&] {
  10417. svr.stop();
  10418. t.join();
  10419. ASSERT_FALSE(svr.is_running());
  10420. });
  10421. svr.wait_until_ready();
  10422. SSLClient cli(HOST, PORT);
  10423. cli.set_connection_timeout(30);
  10424. auto res = cli.Get("/test");
  10425. ASSERT_TRUE(!res);
  10426. // When client cert is missing and server requires it, connection fails
  10427. // Error type depends on backend implementation
  10428. EXPECT_TRUE(res.error() == Error::SSLServerVerification ||
  10429. res.error() == Error::SSLConnection);
  10430. // Verify backend error is captured
  10431. // Note: This test may have different error codes depending on the exact
  10432. // verification failure
  10433. EXPECT_NE(0UL, res.ssl_backend_error());
  10434. }
  10435. TEST(SSLClientServerTest, TrustDirOptional) {
  10436. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  10437. ASSERT_TRUE(svr.is_valid());
  10438. svr.Get("/test", [&](const Request &, Response &res) {
  10439. res.set_content("test", "text/plain");
  10440. });
  10441. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10442. auto se = detail::scope_exit([&] {
  10443. svr.stop();
  10444. t.join();
  10445. ASSERT_FALSE(svr.is_running());
  10446. });
  10447. svr.wait_until_ready();
  10448. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10449. cli.enable_server_certificate_verification(false);
  10450. cli.set_connection_timeout(30);
  10451. auto res = cli.Get("/test");
  10452. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10453. ASSERT_EQ(StatusCode::OK_200, res->status);
  10454. }
  10455. TEST(SSLClientServerTest, SSLConnectTimeout) {
  10456. class NoListenSSLServer : public SSLServer {
  10457. public:
  10458. NoListenSSLServer(const char *cert_path, const char *private_key_path,
  10459. const char *client_ca_cert_file_path,
  10460. const char *client_ca_cert_dir_path = nullptr)
  10461. : SSLServer(cert_path, private_key_path, client_ca_cert_file_path,
  10462. client_ca_cert_dir_path),
  10463. stop_(false) {}
  10464. std::atomic_bool stop_;
  10465. private:
  10466. bool process_and_close_socket(socket_t /*sock*/) override {
  10467. // Don't create SSL context
  10468. while (!stop_.load()) {
  10469. std::this_thread::sleep_for(std::chrono::milliseconds(100));
  10470. }
  10471. return true;
  10472. }
  10473. };
  10474. NoListenSSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE,
  10475. CLIENT_CA_CERT_FILE);
  10476. ASSERT_TRUE(svr.is_valid());
  10477. svr.Get("/test", [&](const Request &, Response &res) {
  10478. res.set_content("test", "text/plain");
  10479. });
  10480. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10481. auto se = detail::scope_exit([&] {
  10482. svr.stop_ = true;
  10483. svr.stop();
  10484. t.join();
  10485. ASSERT_FALSE(svr.is_running());
  10486. });
  10487. svr.wait_until_ready();
  10488. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10489. cli.enable_server_certificate_verification(false);
  10490. cli.set_connection_timeout(1);
  10491. auto res = cli.Get("/test");
  10492. ASSERT_TRUE(!res);
  10493. EXPECT_EQ(Error::SSLConnection, res.error());
  10494. // Timeout results in WantRead error code (maps to backend-specific value)
  10495. EXPECT_NE(0, res.ssl_error());
  10496. }
  10497. TEST(SSLClientServerTest, CustomizeServerSSLCtxGeneric) {
  10498. // Test SSLServer with client certificate verification using the standard
  10499. // constructor (ContextSetupCallback is tested by backend-specific tests)
  10500. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE,
  10501. CLIENT_CA_CERT_DIR);
  10502. ASSERT_TRUE(svr.is_valid());
  10503. svr.Get("/test", [&](const Request &req, Response &res) {
  10504. res.set_content("test", "text/plain");
  10505. auto cert = req.peer_cert();
  10506. ASSERT_TRUE(static_cast<bool>(cert));
  10507. auto common_name = cert.subject_cn();
  10508. EXPECT_EQ("Common Name", common_name);
  10509. });
  10510. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10511. auto se = detail::scope_exit([&] {
  10512. svr.stop();
  10513. t.join();
  10514. ASSERT_FALSE(svr.is_running());
  10515. });
  10516. svr.wait_until_ready();
  10517. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10518. cli.enable_server_certificate_verification(false);
  10519. cli.set_connection_timeout(30);
  10520. auto res = cli.Get("/test");
  10521. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10522. ASSERT_EQ(StatusCode::OK_200, res->status);
  10523. }
  10524. // Test verify_hostname for both OpenSSL and MbedTLS backends
  10525. // Verifies that wildcard matching and exact matching work consistently
  10526. TEST(SSLClientServerTest, TlsVerifyHostname) {
  10527. using namespace httplib::tls;
  10528. // We need a running server to test against
  10529. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10530. ASSERT_TRUE(svr.is_valid());
  10531. svr.Get("/test", [](const Request &, Response &res) {
  10532. res.set_content("ok", "text/plain");
  10533. });
  10534. thread t([&]() { svr.listen(HOST, PORT); });
  10535. auto se = detail::scope_exit([&] {
  10536. svr.stop();
  10537. t.join();
  10538. });
  10539. svr.wait_until_ready();
  10540. bool verify_callback_called = false;
  10541. bool verify_result_wrong = false;
  10542. SSLClient cli(HOST, PORT);
  10543. cli.enable_server_certificate_verification(true);
  10544. cli.set_ca_cert_path(CA_CERT_FILE);
  10545. cli.set_connection_timeout(5);
  10546. // Note: Test certificate has CN="Common Name", not "localhost"
  10547. bool verify_result_cn = false;
  10548. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10549. verify_callback_called = true;
  10550. if (!ctx.cert) return false;
  10551. // Test 1: "Common Name" should match (our test server cert CN)
  10552. verify_result_cn = ctx.check_hostname("Common Name");
  10553. // Test 2: wrong hostname should not match
  10554. verify_result_wrong = ctx.check_hostname("wronghost.example.com");
  10555. return true; // Accept for the purpose of this test
  10556. });
  10557. auto res = cli.Get("/test");
  10558. // The request may succeed or fail depending on cert configuration
  10559. // but the callback should have been called
  10560. ASSERT_TRUE(verify_callback_called)
  10561. << "Verify callback should have been called";
  10562. // CN="Common Name" should match our test certificate
  10563. //
  10564. // BoringSSL intentionally drops CN-based hostname matching per RFC 6125
  10565. // §6.4.4 — only SubjectAltName is consulted. Other backends (OpenSSL,
  10566. // MbedTLS, wolfSSL) still honor the CN fallback, so flip the expectation
  10567. // for BoringSSL builds. OPENSSL_IS_BORINGSSL is defined by BoringSSL's
  10568. // <openssl/base.h>, which is included transitively when
  10569. // CPPHTTPLIB_OPENSSL_SUPPORT is set against a BoringSSL install.
  10570. #if defined(OPENSSL_IS_BORINGSSL)
  10571. EXPECT_FALSE(verify_result_cn)
  10572. << "BoringSSL should reject CN-based hostname matching (SAN-only)";
  10573. #else
  10574. EXPECT_TRUE(verify_result_cn)
  10575. << "verify_hostname should match 'Common Name' (certificate CN)";
  10576. #endif
  10577. // Wrong hostname should not match
  10578. EXPECT_FALSE(verify_result_wrong)
  10579. << "verify_hostname should not match 'wronghost.example.com'";
  10580. }
  10581. // An IP-literal host must only be authenticated via an iPAddress SAN, never via
  10582. // the certificate's Common Name (RFC 9110). This mirrors the OpenSSL backend's
  10583. // X509_check_ip behavior and must hold for every backend.
  10584. TEST(SSLClientServerTest, TlsVerifyHostnameIpNotMatchedByCommonName) {
  10585. using namespace httplib::tls;
  10586. // Certificate CN is the IPv4 literal "127.0.0.1" and it carries no SAN.
  10587. SSLServer svr(SERVER_CERT_IP_CN_FILE, SERVER_PRIVATE_KEY_FILE);
  10588. ASSERT_TRUE(svr.is_valid());
  10589. svr.Get("/test", [](const Request &, Response &res) {
  10590. res.set_content("ok", "text/plain");
  10591. });
  10592. thread t([&]() { svr.listen(HOST, PORT); });
  10593. auto se = detail::scope_exit([&] {
  10594. svr.stop();
  10595. t.join();
  10596. });
  10597. svr.wait_until_ready();
  10598. bool verify_callback_called = false;
  10599. bool ip_matched_via_cn = true;
  10600. SSLClient cli(HOST, PORT);
  10601. cli.enable_server_certificate_verification(true);
  10602. cli.set_ca_cert_path(CA_CERT_FILE);
  10603. cli.set_connection_timeout(5);
  10604. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10605. verify_callback_called = true;
  10606. if (!ctx.cert) return false;
  10607. // The IP appears only in the CN, so it must NOT be accepted.
  10608. ip_matched_via_cn = ctx.check_hostname("127.0.0.1");
  10609. return true; // Accept for the purpose of this test
  10610. });
  10611. cli.Get("/test");
  10612. ASSERT_TRUE(verify_callback_called)
  10613. << "Verify callback should have been called";
  10614. EXPECT_FALSE(ip_matched_via_cn)
  10615. << "An IP host must not be authenticated via the certificate CN";
  10616. }
  10617. // IPv6 hosts must be matched against IPv6 iPAddress SANs (and only those).
  10618. TEST(SSLClientServerTest, TlsVerifyHostnameIpv6San) {
  10619. using namespace httplib::tls;
  10620. // Certificate CN is "::1" and it carries an IPv6 SAN for "2001:db8::1".
  10621. SSLServer svr(SERVER_CERT_IPV6_FILE, SERVER_PRIVATE_KEY_FILE);
  10622. ASSERT_TRUE(svr.is_valid());
  10623. svr.Get("/test", [](const Request &, Response &res) {
  10624. res.set_content("ok", "text/plain");
  10625. });
  10626. thread t([&]() { svr.listen(HOST, PORT); });
  10627. auto se = detail::scope_exit([&] {
  10628. svr.stop();
  10629. t.join();
  10630. });
  10631. svr.wait_until_ready();
  10632. bool verify_callback_called = false;
  10633. bool san_matched = false;
  10634. bool wrong_ipv6_matched = true;
  10635. bool cn_ipv6_matched = true;
  10636. SSLClient cli(HOST, PORT);
  10637. cli.enable_server_certificate_verification(true);
  10638. cli.set_ca_cert_path(CA_CERT_FILE);
  10639. cli.set_connection_timeout(5);
  10640. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10641. verify_callback_called = true;
  10642. if (!ctx.cert) return false;
  10643. // Matches the IPv6 iPAddress SAN.
  10644. san_matched = ctx.check_hostname("2001:db8::1");
  10645. // A different IPv6 address must not match.
  10646. wrong_ipv6_matched = ctx.check_hostname("2001:db8::2");
  10647. // "::1" lives only in the CN, so it must not be accepted.
  10648. cn_ipv6_matched = ctx.check_hostname("::1");
  10649. return true; // Accept for the purpose of this test
  10650. });
  10651. cli.Get("/test");
  10652. ASSERT_TRUE(verify_callback_called)
  10653. << "Verify callback should have been called";
  10654. EXPECT_TRUE(san_matched)
  10655. << "verify_hostname should match an IPv6 iPAddress SAN";
  10656. EXPECT_FALSE(wrong_ipv6_matched)
  10657. << "verify_hostname should not match a non-matching IPv6 address";
  10658. EXPECT_FALSE(cn_ipv6_matched)
  10659. << "An IPv6 host must not be authenticated via the certificate CN";
  10660. }
  10661. #endif
  10662. // mbedTLS-specific callback constructor test
  10663. // Tests that the void* callback can customize TLS settings via MbedTlsContext
  10664. #ifdef CPPHTTPLIB_SSL_ENABLED
  10665. TEST(SSLClientServerTest, ClientCAListSentToClient) {
  10666. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  10667. ASSERT_TRUE(svr.is_valid());
  10668. // Set up a handler to verify client certificate is present
  10669. bool client_cert_verified = false;
  10670. svr.Get("/test", [&](const Request & /*req*/, Response &res) {
  10671. // Verify that client certificate was provided
  10672. client_cert_verified = true;
  10673. res.set_content("success", "text/plain");
  10674. });
  10675. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10676. auto se = detail::scope_exit([&] {
  10677. svr.stop();
  10678. t.join();
  10679. ASSERT_FALSE(svr.is_running());
  10680. });
  10681. svr.wait_until_ready();
  10682. // Client with certificate
  10683. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10684. cli.enable_server_certificate_verification(false);
  10685. cli.set_connection_timeout(30);
  10686. auto res = cli.Get("/test");
  10687. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10688. ASSERT_EQ(StatusCode::OK_200, res->status);
  10689. ASSERT_TRUE(client_cert_verified);
  10690. EXPECT_EQ("success", res->body);
  10691. }
  10692. #endif
  10693. // ClientCAListSetInContext uses get_peer_cert() - works with all TLS
  10694. // backends
  10695. #ifdef CPPHTTPLIB_SSL_ENABLED
  10696. TEST(SSLClientServerTest, ClientCAListSetInContext) {
  10697. using namespace httplib::tls;
  10698. // Test that when client CA cert file is provided,
  10699. // the server properly requests and validates client certificates
  10700. // Create a server with client authentication
  10701. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  10702. ASSERT_TRUE(svr.is_valid());
  10703. bool handler_called = false;
  10704. svr.Get("/test", [&](const Request &req, Response &res) {
  10705. handler_called = true;
  10706. // Verify that a client certificate was provided
  10707. auto cert = req.peer_cert();
  10708. ASSERT_TRUE(static_cast<bool>(cert));
  10709. // Get the issuer name
  10710. std::string issuer_str = cert.issuer_name();
  10711. ASSERT_FALSE(issuer_str.empty());
  10712. // The client certificate should be issued by our test CA
  10713. EXPECT_TRUE(issuer_str.find("Root CA Name") != std::string::npos);
  10714. res.set_content("authenticated", "text/plain");
  10715. });
  10716. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10717. auto se = detail::scope_exit([&] {
  10718. svr.stop();
  10719. t.join();
  10720. ASSERT_FALSE(svr.is_running());
  10721. });
  10722. svr.wait_until_ready();
  10723. // Connect with a client certificate issued by the CA
  10724. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  10725. cli.enable_server_certificate_verification(false);
  10726. cli.set_connection_timeout(30);
  10727. auto res = cli.Get("/test");
  10728. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10729. ASSERT_EQ(StatusCode::OK_200, res->status);
  10730. ASSERT_TRUE(handler_called);
  10731. EXPECT_EQ("authenticated", res->body);
  10732. }
  10733. TEST(TlsCertIntrospectionTest, GetCertSANs) {
  10734. using namespace httplib::tls;
  10735. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10736. ASSERT_TRUE(svr.is_valid());
  10737. svr.Get("/test", [](const Request &, Response &res) {
  10738. res.set_content("ok", "text/plain");
  10739. });
  10740. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10741. auto se = detail::scope_exit([&] {
  10742. svr.stop();
  10743. t.join();
  10744. });
  10745. svr.wait_until_ready();
  10746. SSLClient cli(HOST, PORT);
  10747. cli.enable_server_certificate_verification(false);
  10748. cli.set_connection_timeout(30);
  10749. bool cert_checked = false;
  10750. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10751. if (ctx.cert) {
  10752. auto sans = ctx.sans();
  10753. // Test certificate may or may not have SANs - just verify the API
  10754. // works If SANs exist, verify the types are valid
  10755. for (const auto &san : sans) {
  10756. EXPECT_TRUE(san.type == SanType::DNS || san.type == SanType::IP ||
  10757. san.type == SanType::EMAIL || san.type == SanType::URI ||
  10758. san.type == SanType::OTHER);
  10759. EXPECT_FALSE(san.value.empty());
  10760. }
  10761. cert_checked = true;
  10762. }
  10763. return true;
  10764. });
  10765. auto res = cli.Get("/test");
  10766. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10767. EXPECT_TRUE(cert_checked);
  10768. }
  10769. TEST(TlsCertIntrospectionTest, GetCertValidity) {
  10770. using namespace httplib::tls;
  10771. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10772. ASSERT_TRUE(svr.is_valid());
  10773. svr.Get("/test", [](const Request &, Response &res) {
  10774. res.set_content("ok", "text/plain");
  10775. });
  10776. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10777. auto se = detail::scope_exit([&] {
  10778. svr.stop();
  10779. t.join();
  10780. });
  10781. svr.wait_until_ready();
  10782. SSLClient cli(HOST, PORT);
  10783. cli.enable_server_certificate_verification(false);
  10784. cli.set_connection_timeout(30);
  10785. bool validity_checked = false;
  10786. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10787. if (ctx.cert) {
  10788. time_t not_before = 0, not_after = 0;
  10789. bool result = ctx.validity(not_before, not_after);
  10790. EXPECT_TRUE(result);
  10791. // Verify that not_before < now < not_after for a valid cert
  10792. time_t now = time(nullptr);
  10793. EXPECT_LT(not_before, now);
  10794. EXPECT_GT(not_after, now);
  10795. validity_checked = true;
  10796. }
  10797. return true;
  10798. });
  10799. auto res = cli.Get("/test");
  10800. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10801. EXPECT_TRUE(validity_checked);
  10802. }
  10803. TEST(TlsCertIntrospectionTest, GetCertSerial) {
  10804. using namespace httplib::tls;
  10805. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10806. ASSERT_TRUE(svr.is_valid());
  10807. svr.Get("/test", [](const Request &, Response &res) {
  10808. res.set_content("ok", "text/plain");
  10809. });
  10810. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10811. auto se = detail::scope_exit([&] {
  10812. svr.stop();
  10813. t.join();
  10814. });
  10815. svr.wait_until_ready();
  10816. SSLClient cli(HOST, PORT);
  10817. cli.enable_server_certificate_verification(false);
  10818. cli.set_connection_timeout(30);
  10819. bool serial_checked = false;
  10820. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10821. if (ctx.cert) {
  10822. std::string serial = ctx.serial();
  10823. EXPECT_FALSE(serial.empty());
  10824. // Serial should be a hex string
  10825. for (char c : serial) {
  10826. EXPECT_TRUE((c >= '0' && c <= '9') || (c >= 'A' && c <= 'F') ||
  10827. (c >= 'a' && c <= 'f'));
  10828. }
  10829. serial_checked = true;
  10830. }
  10831. return true;
  10832. });
  10833. auto res = cli.Get("/test");
  10834. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10835. EXPECT_TRUE(serial_checked);
  10836. }
  10837. TEST(SSLClientServerTest, ClientCAListLoadErrorRecorded) {
  10838. // Test 1: Valid CA file - no error should be recorded
  10839. {
  10840. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE,
  10841. CLIENT_CA_CERT_FILE);
  10842. ASSERT_TRUE(svr.is_valid());
  10843. // With valid setup, last_ssl_error should be 0
  10844. EXPECT_EQ(0, svr.ssl_last_error());
  10845. }
  10846. // Test 2: Invalid CA file content
  10847. // When SSL_load_client_CA_file fails, last_ssl_error_ should be set
  10848. {
  10849. // Create a temporary file with completely invalid content
  10850. const char *temp_invalid_ca = "./temp_invalid_ca_for_test.txt";
  10851. {
  10852. std::ofstream ofs(temp_invalid_ca);
  10853. ofs << "This is not a certificate file at all\n";
  10854. ofs << "Just plain text content\n";
  10855. }
  10856. // Create server with invalid CA file
  10857. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, temp_invalid_ca);
  10858. // Clean up temporary file
  10859. std::remove(temp_invalid_ca);
  10860. // When there's an SSL error (from either SSL_CTX_load_verify_locations
  10861. // or SSL_load_client_CA_file), last_ssl_error_ should be non-zero
  10862. // Note: SSL_CTX_load_verify_locations typically fails first,
  10863. // but our error handling code path is still exercised
  10864. if (!svr.is_valid()) { EXPECT_NE(0, svr.ssl_last_error()); }
  10865. }
  10866. }
  10867. TEST(VerifyCallbackTest, VerifyContextFields) {
  10868. using namespace httplib::tls;
  10869. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10870. ASSERT_TRUE(svr.is_valid());
  10871. svr.Get("/test", [](const Request &, Response &res) {
  10872. res.set_content("ok", "text/plain");
  10873. });
  10874. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10875. auto se = detail::scope_exit([&] {
  10876. svr.stop();
  10877. t.join();
  10878. });
  10879. svr.wait_until_ready();
  10880. SSLClient cli(HOST, PORT);
  10881. cli.enable_server_certificate_verification(false);
  10882. cli.set_connection_timeout(30);
  10883. int callback_count = 0;
  10884. bool saw_leaf_cert = false;
  10885. cli.set_server_certificate_verifier([&](const VerifyContext &ctx) -> bool {
  10886. if (ctx.cert) {
  10887. callback_count++;
  10888. // We should see at least one certificate (the leaf)
  10889. std::string cn = ctx.subject_cn();
  10890. if (!cn.empty()) { saw_leaf_cert = true; }
  10891. // Verify context fields are populated
  10892. EXPECT_NE(ctx.session, nullptr);
  10893. EXPECT_GE(ctx.depth, 0);
  10894. }
  10895. return true;
  10896. });
  10897. auto res = cli.Get("/test");
  10898. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10899. EXPECT_GT(callback_count, 0);
  10900. EXPECT_TRUE(saw_leaf_cert);
  10901. }
  10902. TEST(TlsVerifyErrorTest, GetVerifyErrorString) {
  10903. using httplib::tls::TlsError;
  10904. // Test that verify_error_to_string returns empty for success
  10905. std::string success_str = TlsError::verify_error_to_string(0);
  10906. EXPECT_TRUE(success_str.empty());
  10907. // Test that verify_error_to_string returns non-empty for error codes
  10908. // Using a common error code (certificate expired)
  10909. std::string error_str =
  10910. TlsError::verify_error_to_string(10); // X509_V_ERR_CERT_HAS_EXPIRED
  10911. EXPECT_FALSE(error_str.empty());
  10912. }
  10913. TEST(SessionVerifierTest, CertificateAccepted) {
  10914. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10915. ASSERT_TRUE(svr.is_valid());
  10916. svr.Get("/test", [](const Request &, Response &res) {
  10917. res.set_content("ok", "text/plain");
  10918. });
  10919. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10920. auto se = detail::scope_exit([&] {
  10921. svr.stop();
  10922. t.join();
  10923. });
  10924. svr.wait_until_ready();
  10925. SSLClient cli(HOST, PORT);
  10926. cli.enable_server_certificate_verification(false);
  10927. cli.set_connection_timeout(30);
  10928. bool callback_called = false;
  10929. cli.set_session_verifier([&](tls::session_t session) -> SSLVerifierResponse {
  10930. EXPECT_NE(session, nullptr);
  10931. callback_called = true;
  10932. return SSLVerifierResponse::CertificateAccepted;
  10933. });
  10934. auto res = cli.Get("/test");
  10935. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10936. EXPECT_EQ(200, res->status);
  10937. EXPECT_TRUE(callback_called);
  10938. }
  10939. TEST(SessionVerifierTest, CertificateRejected) {
  10940. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10941. ASSERT_TRUE(svr.is_valid());
  10942. svr.Get("/test", [](const Request &, Response &res) {
  10943. res.set_content("ok", "text/plain");
  10944. });
  10945. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10946. auto se = detail::scope_exit([&] {
  10947. svr.stop();
  10948. t.join();
  10949. });
  10950. svr.wait_until_ready();
  10951. SSLClient cli(HOST, PORT);
  10952. cli.enable_server_certificate_verification(false);
  10953. cli.set_connection_timeout(30);
  10954. bool callback_called = false;
  10955. cli.set_session_verifier([&](tls::session_t session) -> SSLVerifierResponse {
  10956. EXPECT_NE(session, nullptr);
  10957. callback_called = true;
  10958. return SSLVerifierResponse::CertificateRejected;
  10959. });
  10960. auto res = cli.Get("/test");
  10961. EXPECT_FALSE(res);
  10962. EXPECT_TRUE(callback_called);
  10963. }
  10964. TEST(SessionVerifierTest, NoDecisionFallsThrough) {
  10965. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10966. ASSERT_TRUE(svr.is_valid());
  10967. svr.Get("/test", [](const Request &, Response &res) {
  10968. res.set_content("ok", "text/plain");
  10969. });
  10970. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10971. auto se = detail::scope_exit([&] {
  10972. svr.stop();
  10973. t.join();
  10974. });
  10975. svr.wait_until_ready();
  10976. // NoDecisionMade with verification disabled should succeed (no default check)
  10977. SSLClient cli(HOST, PORT);
  10978. cli.enable_server_certificate_verification(false);
  10979. cli.set_connection_timeout(30);
  10980. bool callback_called = false;
  10981. cli.set_session_verifier([&](tls::session_t session) -> SSLVerifierResponse {
  10982. EXPECT_NE(session, nullptr);
  10983. callback_called = true;
  10984. return SSLVerifierResponse::NoDecisionMade;
  10985. });
  10986. auto res = cli.Get("/test");
  10987. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  10988. EXPECT_EQ(200, res->status);
  10989. EXPECT_TRUE(callback_called);
  10990. }
  10991. TEST(SessionVerifierTest, NoDecisionWithVerificationEnabled) {
  10992. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  10993. ASSERT_TRUE(svr.is_valid());
  10994. svr.Get("/test", [](const Request &, Response &res) {
  10995. res.set_content("ok", "text/plain");
  10996. });
  10997. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  10998. auto se = detail::scope_exit([&] {
  10999. svr.stop();
  11000. t.join();
  11001. });
  11002. svr.wait_until_ready();
  11003. // NoDecisionMade with verification enabled should fail (self-signed cert).
  11004. // Note: On MbedTLS, the handshake itself fails before reaching the verifier,
  11005. // so we only check that the request fails, not whether the callback was
  11006. // called.
  11007. SSLClient cli(HOST, PORT);
  11008. cli.enable_server_certificate_verification(true);
  11009. cli.set_connection_timeout(30);
  11010. cli.set_session_verifier([&](tls::session_t session) -> SSLVerifierResponse {
  11011. EXPECT_NE(session, nullptr);
  11012. return SSLVerifierResponse::NoDecisionMade;
  11013. });
  11014. auto res = cli.Get("/test");
  11015. EXPECT_FALSE(res);
  11016. }
  11017. TEST(SSLClientServerTest, ClientCAListFromPem) {
  11018. // Test SSL server using PemMemory constructor with client CA certificates
  11019. // Read PEM files
  11020. std::string server_cert_pem, server_key_pem, client_ca_pem;
  11021. read_file(SERVER_CERT_FILE, server_cert_pem);
  11022. read_file(SERVER_PRIVATE_KEY_FILE, server_key_pem);
  11023. read_file(CLIENT_CA_CERT_FILE, client_ca_pem);
  11024. // Create SSLServer with PemMemory constructor including client CA
  11025. SSLServer::PemMemory server_pem = {
  11026. server_cert_pem.c_str(),
  11027. server_cert_pem.size(),
  11028. server_key_pem.c_str(),
  11029. server_key_pem.size(),
  11030. client_ca_pem.c_str(),
  11031. client_ca_pem.size(),
  11032. nullptr // no password for server key
  11033. };
  11034. SSLServer svr(server_pem);
  11035. ASSERT_TRUE(svr.is_valid());
  11036. // No SSL error should be recorded for valid setup
  11037. EXPECT_EQ(0, svr.ssl_last_error());
  11038. // Set up server endpoints
  11039. svr.Get("/test-pem-ca", [&](const Request & /*req*/, Response &res) {
  11040. res.set_content("ok", "text/plain");
  11041. });
  11042. // Start server in a thread
  11043. auto server_thread = thread([&]() { svr.listen(HOST, PORT); });
  11044. svr.wait_until_ready();
  11045. // Connect with client certificate (using constructor with paths)
  11046. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  11047. cli.enable_server_certificate_verification(false);
  11048. auto res = cli.Get("/test-pem-ca");
  11049. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11050. EXPECT_EQ(200, res->status);
  11051. EXPECT_EQ("ok", res->body);
  11052. svr.stop();
  11053. server_thread.join();
  11054. }
  11055. #endif
  11056. #ifdef _WIN32
  11057. TEST(CleanupTest, WSACleanup) {
  11058. int ret = WSACleanup();
  11059. ASSERT_EQ(0, ret);
  11060. }
  11061. #endif
  11062. #ifndef CPPHTTPLIB_SSL_ENABLED
  11063. TEST(NoSSLSupport, SimpleInterface) {
  11064. ASSERT_ANY_THROW(Client cli("https://yahoo.com"));
  11065. }
  11066. #endif
  11067. #ifndef CPPHTTPLIB_NO_EXCEPTIONS
  11068. TEST(InvalidScheme, SimpleInterface) {
  11069. ASSERT_ANY_THROW(Client cli("scheme://yahoo.com"));
  11070. }
  11071. #endif
  11072. TEST(NoScheme, SimpleInterface) {
  11073. Client cli("yahoo.com:80");
  11074. ASSERT_TRUE(cli.is_valid());
  11075. }
  11076. TEST(SendAPI, SimpleInterface_Online) {
  11077. Client cli("http://yahoo.com");
  11078. Request req;
  11079. req.method = "GET";
  11080. req.path = "/";
  11081. auto res = cli.send(req);
  11082. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11083. EXPECT_EQ(StatusCode::MovedPermanently_301, res->status);
  11084. }
  11085. TEST(SendAPI, WithParamsInRequest) {
  11086. Server svr;
  11087. svr.Get("/", [&](const Request &req, Response & /*res*/) {
  11088. EXPECT_TRUE(req.has_param("test"));
  11089. EXPECT_EQ("test_value", req.get_param_value("test"));
  11090. });
  11091. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  11092. auto se = detail::scope_exit([&] {
  11093. svr.stop();
  11094. t.join();
  11095. ASSERT_FALSE(svr.is_running());
  11096. });
  11097. svr.wait_until_ready();
  11098. Client cli(HOST, PORT);
  11099. {
  11100. Request req;
  11101. req.method = "GET";
  11102. req.path = "/";
  11103. req.params.emplace("test", "test_value");
  11104. auto res = cli.send(req);
  11105. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11106. }
  11107. {
  11108. auto res = cli.Get("/", {{"test", "test_value"}}, Headers{});
  11109. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11110. }
  11111. }
  11112. TEST(ClientImplMethods, GetSocketTest) {
  11113. httplib::Server svr;
  11114. svr.Get("/", [&](const httplib::Request & /*req*/, httplib::Response &res) {
  11115. res.status = StatusCode::OK_200;
  11116. });
  11117. auto port = svr.bind_to_any_port("127.0.0.1");
  11118. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  11119. auto se = detail::scope_exit([&] {
  11120. svr.stop();
  11121. thread.join();
  11122. ASSERT_FALSE(svr.is_running());
  11123. });
  11124. svr.wait_until_ready();
  11125. {
  11126. httplib::Client cli("127.0.0.1", port);
  11127. cli.set_keep_alive(true);
  11128. // Use the behavior of cpp-httplib of opening the connection
  11129. // only when the first request happens. If that changes,
  11130. // this test would be obsolete.
  11131. EXPECT_EQ(cli.socket(), INVALID_SOCKET);
  11132. // This also implicitly tests the server. But other tests would fail much
  11133. // earlier than this one to be considered.
  11134. auto res = cli.Get("/");
  11135. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11136. EXPECT_EQ(StatusCode::OK_200, res->status);
  11137. ASSERT_TRUE(cli.socket() != INVALID_SOCKET);
  11138. }
  11139. }
  11140. #ifdef CPPHTTPLIB_SSL_ENABLED
  11141. TEST(YahooRedirectTest2, SimpleInterface_Online) {
  11142. Client cli("http://yahoo.com");
  11143. auto res = cli.Get("/");
  11144. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11145. EXPECT_EQ(StatusCode::MovedPermanently_301, res->status);
  11146. cli.set_follow_location(true);
  11147. res = cli.Get("/");
  11148. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11149. EXPECT_EQ(StatusCode::OK_200, res->status);
  11150. EXPECT_EQ("https://www.yahoo.com/", res->location);
  11151. }
  11152. TEST(YahooRedirectTest3, SimpleInterface_Online) {
  11153. Client cli("https://yahoo.com");
  11154. auto res = cli.Get("/");
  11155. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11156. EXPECT_EQ(StatusCode::MovedPermanently_301, res->status);
  11157. cli.set_follow_location(true);
  11158. res = cli.Get("/");
  11159. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11160. EXPECT_EQ(StatusCode::OK_200, res->status);
  11161. EXPECT_EQ("https://www.yahoo.com/", res->location);
  11162. }
  11163. TEST(YahooRedirectTest3, NewResultInterface_Online) {
  11164. Client cli("https://yahoo.com");
  11165. auto res = cli.Get("/");
  11166. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11167. ASSERT_FALSE(!res);
  11168. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11169. ASSERT_FALSE(res == nullptr);
  11170. ASSERT_TRUE(res != nullptr);
  11171. EXPECT_EQ(Error::Success, res.error());
  11172. EXPECT_EQ(StatusCode::MovedPermanently_301, res.value().status);
  11173. EXPECT_EQ(StatusCode::MovedPermanently_301, (*res).status);
  11174. EXPECT_EQ(StatusCode::MovedPermanently_301, res->status);
  11175. cli.set_follow_location(true);
  11176. res = cli.Get("/");
  11177. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11178. EXPECT_EQ(Error::Success, res.error());
  11179. EXPECT_EQ(StatusCode::OK_200, res.value().status);
  11180. EXPECT_EQ(StatusCode::OK_200, (*res).status);
  11181. EXPECT_EQ(StatusCode::OK_200, res->status);
  11182. EXPECT_EQ("https://www.yahoo.com/", res->location);
  11183. }
  11184. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  11185. TEST(DecodeWithChunkedEncoding, BrotliEncoding_Online) {
  11186. Client cli("https://cdnjs.cloudflare.com");
  11187. auto res = cli.Get("/ajax/libs/jquery/3.5.1/jquery.js",
  11188. Headers{{"Accept-Encoding", "br"}});
  11189. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11190. EXPECT_EQ(StatusCode::OK_200, res->status);
  11191. EXPECT_EQ(287630U, res->body.size());
  11192. EXPECT_EQ("application/javascript; charset=utf-8",
  11193. res->get_header_value("Content-Type"));
  11194. }
  11195. #endif
  11196. // Previously "https://nghttp2.org" "/httpbin/redirect-to"
  11197. #undef REDIR_HOST // Silence compiler warning
  11198. #define REDIR_HOST "https://httpbingo.org"
  11199. TEST(HttpsToHttpRedirectTest, SimpleInterface_Online) {
  11200. Client cli(REDIR_HOST);
  11201. cli.set_follow_location(true);
  11202. auto res =
  11203. cli.Get(REDIR_PATH "?url=http%3A%2F%2Fexample.com&status_code=302");
  11204. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11205. EXPECT_EQ(StatusCode::OK_200, res->status);
  11206. }
  11207. TEST(HttpsToHttpRedirectTest2, SimpleInterface_Online) {
  11208. Client cli(REDIR_HOST);
  11209. cli.set_follow_location(true);
  11210. Params params;
  11211. params.emplace("url", "http://example.com");
  11212. params.emplace("status_code", "302");
  11213. auto res = cli.Get(REDIR_PATH, params, Headers{});
  11214. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11215. EXPECT_EQ(StatusCode::OK_200, res->status);
  11216. }
  11217. TEST(HttpsToHttpRedirectTest3, SimpleInterface_Online) {
  11218. Client cli(REDIR_HOST);
  11219. cli.set_follow_location(true);
  11220. Params params;
  11221. params.emplace("url", "http://example.com");
  11222. auto res = cli.Get(REDIR_PATH "?status_code=302", params, Headers{});
  11223. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11224. EXPECT_EQ(StatusCode::OK_200, res->status);
  11225. }
  11226. TEST(HttpToHttpsRedirectTest, CertFile) {
  11227. auto ssl_port = PORT + 1;
  11228. Server svr;
  11229. ASSERT_TRUE(svr.is_valid());
  11230. svr.Get("/index", [&](const Request &, Response &res) {
  11231. res.set_redirect("https://127.0.0.1:" + std::to_string(ssl_port) +
  11232. "/index");
  11233. svr.stop();
  11234. });
  11235. SSLServer ssl_svr(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11236. ASSERT_TRUE(ssl_svr.is_valid());
  11237. ssl_svr.Get("/index", [&](const Request &, Response &res) {
  11238. res.set_content("test", "text/plain");
  11239. ssl_svr.stop();
  11240. });
  11241. thread t = thread([&]() { ASSERT_TRUE(svr.listen("127.0.0.1", PORT)); });
  11242. thread t2 =
  11243. thread([&]() { ASSERT_TRUE(ssl_svr.listen("127.0.0.1", ssl_port)); });
  11244. auto se = detail::scope_exit([&] {
  11245. t2.join();
  11246. t.join();
  11247. ASSERT_FALSE(svr.is_running());
  11248. });
  11249. svr.wait_until_ready();
  11250. ssl_svr.wait_until_ready();
  11251. Client cli("127.0.0.1", PORT);
  11252. cli.set_ca_cert_path(SERVER_CERT2_FILE);
  11253. cli.enable_server_certificate_verification(true);
  11254. cli.set_follow_location(true);
  11255. cli.set_connection_timeout(30);
  11256. auto res = cli.Get("/index");
  11257. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11258. ASSERT_EQ(StatusCode::OK_200, res->status);
  11259. }
  11260. TEST(SSLClientRedirectTest, CertFile) {
  11261. auto ssl_port = PORT + 1;
  11262. SSLServer ssl_svr1(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11263. ASSERT_TRUE(ssl_svr1.is_valid());
  11264. ssl_svr1.Get("/index", [&](const Request &, Response &res) {
  11265. res.set_redirect("https://127.0.0.1:" + std::to_string(ssl_port) +
  11266. "/index");
  11267. ssl_svr1.stop();
  11268. });
  11269. SSLServer ssl_svr2(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11270. ASSERT_TRUE(ssl_svr2.is_valid());
  11271. ssl_svr2.Get("/index", [&](const Request &, Response &res) {
  11272. res.set_content("test", "text/plain");
  11273. ssl_svr2.stop();
  11274. });
  11275. thread t = thread([&]() { ASSERT_TRUE(ssl_svr1.listen("127.0.0.1", PORT)); });
  11276. thread t2 =
  11277. thread([&]() { ASSERT_TRUE(ssl_svr2.listen("127.0.0.1", ssl_port)); });
  11278. auto se = detail::scope_exit([&] {
  11279. t2.join();
  11280. t.join();
  11281. ASSERT_FALSE(ssl_svr1.is_running());
  11282. });
  11283. ssl_svr1.wait_until_ready();
  11284. ssl_svr2.wait_until_ready();
  11285. SSLClient cli("127.0.0.1", PORT);
  11286. std::string cert;
  11287. read_file(SERVER_CERT2_FILE, cert);
  11288. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11289. cli.enable_server_certificate_verification(true);
  11290. cli.set_follow_location(true);
  11291. cli.set_connection_timeout(30);
  11292. auto res = cli.Get("/index");
  11293. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11294. ASSERT_EQ(StatusCode::OK_200, res->status);
  11295. }
  11296. #endif
  11297. #ifdef CPPHTTPLIB_SSL_ENABLED
  11298. // Test that set_ca_cert_store() skips system certs (consistent with
  11299. // set_ca_cert_path behavior). When a custom cert store is set, only those certs
  11300. // should be trusted - system certs should NOT be loaded.
  11301. TEST(SSLClientTest, SetCaCertStoreSkipsSystemCerts_Online) {
  11302. // Load a specific cert that is NOT a system CA cert
  11303. std::string cert;
  11304. read_file(SERVER_CERT2_FILE, cert);
  11305. SSLClient cli("google.com");
  11306. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11307. cli.enable_server_certificate_verification(true);
  11308. // This should FAIL because:
  11309. // 1. We loaded only SERVER_CERT2 (a test cert, not a CA for google.com)
  11310. // 2. System certs should NOT be loaded when custom store is set
  11311. // If system certs WERE loaded, this would succeed
  11312. auto res = cli.Get("/");
  11313. ASSERT_FALSE(res);
  11314. EXPECT_EQ(Error::SSLServerVerification, res.error());
  11315. }
  11316. // Same as above, but through the native store handle path. Regression test:
  11317. // set_ca_cert_store() used to leave no trace on the client, so load_certs()
  11318. // merged system certs into the user-provided store.
  11319. TEST(SSLClientTest, SetCaCertStoreNativeSkipsSystemCerts_Online) {
  11320. std::string cert;
  11321. read_file(SERVER_CERT2_FILE, cert);
  11322. SSLClient cli("google.com");
  11323. cli.set_ca_cert_store(tls::create_ca_store(cert.c_str(), cert.size()));
  11324. cli.enable_server_certificate_verification(true);
  11325. auto res = cli.Get("/");
  11326. ASSERT_FALSE(res);
  11327. EXPECT_EQ(Error::SSLServerVerification, res.error());
  11328. }
  11329. // A custom store set via the native handle must still verify a server whose
  11330. // cert it does contain.
  11331. TEST(SSLClientTest, SetCaCertStoreNativeVerifiesLocalServer) {
  11332. SSLServer svr(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11333. ASSERT_TRUE(svr.is_valid());
  11334. svr.Get("/test", [&](const Request &, Response &res) {
  11335. res.set_content("test", "text/plain");
  11336. });
  11337. thread t = thread([&]() { ASSERT_TRUE(svr.listen("127.0.0.1", PORT)); });
  11338. auto se = detail::scope_exit([&] {
  11339. svr.stop();
  11340. t.join();
  11341. ASSERT_FALSE(svr.is_running());
  11342. });
  11343. svr.wait_until_ready();
  11344. SSLClient cli("127.0.0.1", PORT);
  11345. std::string cert;
  11346. read_file(SERVER_CERT2_FILE, cert);
  11347. cli.set_ca_cert_store(tls::create_ca_store(cert.c_str(), cert.size()));
  11348. cli.enable_server_certificate_verification(true);
  11349. cli.set_connection_timeout(30);
  11350. auto res = cli.Get("/test");
  11351. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11352. ASSERT_EQ(StatusCode::OK_200, res->status);
  11353. }
  11354. // CA certs loaded through the universal Client must be transferred to the
  11355. // client created internally for following an HTTPS redirect. Regression test:
  11356. // Client::load_ca_cert_store() used to bypass the PEM-based path that stores
  11357. // the CA data for redirect transfer.
  11358. TEST(UniversalClientRedirectTest, LoadCaCertStore) {
  11359. auto ssl_port = PORT + 1;
  11360. SSLServer ssl_svr1(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11361. ASSERT_TRUE(ssl_svr1.is_valid());
  11362. ssl_svr1.Get("/index", [&](const Request &, Response &res) {
  11363. res.set_redirect("https://127.0.0.1:" + std::to_string(ssl_port) +
  11364. "/index");
  11365. });
  11366. SSLServer ssl_svr2(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11367. ASSERT_TRUE(ssl_svr2.is_valid());
  11368. ssl_svr2.Get("/index", [&](const Request &, Response &res) {
  11369. res.set_content("test", "text/plain");
  11370. });
  11371. thread t = thread([&]() { ASSERT_TRUE(ssl_svr1.listen("127.0.0.1", PORT)); });
  11372. thread t2 =
  11373. thread([&]() { ASSERT_TRUE(ssl_svr2.listen("127.0.0.1", ssl_port)); });
  11374. auto se = detail::scope_exit([&] {
  11375. ssl_svr2.stop();
  11376. ssl_svr1.stop();
  11377. t2.join();
  11378. t.join();
  11379. ASSERT_FALSE(ssl_svr1.is_running());
  11380. });
  11381. ssl_svr1.wait_until_ready();
  11382. ssl_svr2.wait_until_ready();
  11383. Client cli("https://127.0.0.1:" + std::to_string(PORT));
  11384. std::string cert;
  11385. read_file(SERVER_CERT2_FILE, cert);
  11386. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11387. cli.enable_server_certificate_verification(true);
  11388. cli.set_follow_location(true);
  11389. cli.set_connection_timeout(30);
  11390. auto res = cli.Get("/index");
  11391. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11392. ASSERT_EQ(StatusCode::OK_200, res->status);
  11393. }
  11394. // enable_system_ca(true) loads system CA certs in addition to a custom CA,
  11395. // so a host signed by a system CA verifies even though a custom CA is set
  11396. TEST(SSLClientTest, EnableSystemCaWithCustomCa_Online) {
  11397. std::string cert;
  11398. read_file(SERVER_CERT2_FILE, cert);
  11399. SSLClient cli("google.com");
  11400. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11401. cli.enable_system_ca(true);
  11402. cli.enable_server_certificate_verification(true);
  11403. auto res = cli.Get("/");
  11404. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11405. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  11406. }
  11407. // The custom CA remains effective when combined with the system CA
  11408. TEST(SSLClientTest, EnableSystemCaCustomCaVerifiesLocalServer) {
  11409. SSLServer svr(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11410. ASSERT_TRUE(svr.is_valid());
  11411. svr.Get("/test", [&](const Request &, Response &res) {
  11412. res.set_content("test", "text/plain");
  11413. });
  11414. thread t = thread([&]() { ASSERT_TRUE(svr.listen("127.0.0.1", PORT)); });
  11415. auto se = detail::scope_exit([&] {
  11416. svr.stop();
  11417. t.join();
  11418. ASSERT_FALSE(svr.is_running());
  11419. });
  11420. svr.wait_until_ready();
  11421. SSLClient cli("127.0.0.1", PORT);
  11422. std::string cert;
  11423. read_file(SERVER_CERT2_FILE, cert);
  11424. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11425. cli.enable_system_ca(true);
  11426. cli.enable_server_certificate_verification(true);
  11427. cli.set_connection_timeout(30);
  11428. auto res = cli.Get("/test");
  11429. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11430. ASSERT_EQ(StatusCode::OK_200, res->status);
  11431. }
  11432. // Regression test: for IP hosts the Mbed TLS and wolfSSL backends used to
  11433. // skip chain verification entirely (only the certificate identity was
  11434. // checked), so a server presenting an untrusted certificate with a matching
  11435. // IP SAN was accepted. The chain must be validated for IP hosts too.
  11436. TEST(SSLClientTest, IpHostUntrustedChainFails) {
  11437. SSLServer svr(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11438. ASSERT_TRUE(svr.is_valid());
  11439. svr.Get("/test", [&](const Request &, Response &res) {
  11440. res.set_content("test", "text/plain");
  11441. });
  11442. thread t = thread([&]() { ASSERT_TRUE(svr.listen("127.0.0.1", PORT)); });
  11443. auto se = detail::scope_exit([&] {
  11444. svr.stop();
  11445. t.join();
  11446. ASSERT_FALSE(svr.is_running());
  11447. });
  11448. svr.wait_until_ready();
  11449. SSLClient cli("127.0.0.1", PORT);
  11450. std::string cert;
  11451. // A trusted CA that did not sign the server certificate. The server cert
  11452. // (cert2) carries the matching IP SAN, so only chain validation can reject
  11453. // this connection.
  11454. read_file(CLIENT_CA_CERT_FILE, cert);
  11455. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11456. cli.enable_server_certificate_verification(true);
  11457. cli.set_connection_timeout(30);
  11458. auto res = cli.Get("/test");
  11459. ASSERT_FALSE(res);
  11460. }
  11461. // enable_system_ca(false) prevents system CA loading entirely
  11462. TEST(SSLClientTest, DisableSystemCa_Online) {
  11463. SSLClient cli("google.com");
  11464. cli.enable_system_ca(false);
  11465. cli.enable_server_certificate_verification(true);
  11466. auto res = cli.Get("/");
  11467. ASSERT_FALSE(res);
  11468. // OpenSSL reports a verification failure; Mbed TLS fails the handshake
  11469. // itself when the CA chain is empty
  11470. EXPECT_TRUE(res.error() == Error::SSLServerVerification ||
  11471. res.error() == Error::SSLConnection);
  11472. }
  11473. // The universal Client forwards enable_system_ca()
  11474. TEST(UniversalClientTest, EnableSystemCaWithCustomCa_Online) {
  11475. std::string cert;
  11476. read_file(SERVER_CERT2_FILE, cert);
  11477. Client cli("https://google.com");
  11478. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11479. cli.enable_system_ca(true);
  11480. cli.enable_server_certificate_verification(true);
  11481. auto res = cli.Get("/");
  11482. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11483. ASSERT_EQ(StatusCode::MovedPermanently_301, res->status);
  11484. }
  11485. // The system CA policy must carry over to the client created internally for
  11486. // following a cross-host HTTPS redirect
  11487. TEST(UniversalClientRedirectTest, EnableSystemCaCarriesOver_Online) {
  11488. SSLServer svr(SERVER_CERT2_FILE, SERVER_PRIVATE_KEY_FILE);
  11489. ASSERT_TRUE(svr.is_valid());
  11490. svr.Get("/index", [&](const Request &, Response &res) {
  11491. res.set_redirect("https://www.google.com/");
  11492. });
  11493. thread t = thread([&]() { ASSERT_TRUE(svr.listen("127.0.0.1", PORT)); });
  11494. auto se = detail::scope_exit([&] {
  11495. svr.stop();
  11496. t.join();
  11497. ASSERT_FALSE(svr.is_running());
  11498. });
  11499. svr.wait_until_ready();
  11500. Client cli("https://127.0.0.1:" + std::to_string(PORT));
  11501. std::string cert;
  11502. read_file(SERVER_CERT2_FILE, cert);
  11503. cli.load_ca_cert_store(cert.c_str(), cert.size());
  11504. cli.enable_system_ca(true);
  11505. cli.enable_server_certificate_verification(true);
  11506. cli.set_follow_location(true);
  11507. cli.set_connection_timeout(30);
  11508. // Receiving any response proves the redirect client completed the TLS
  11509. // handshake with a system-CA-signed host
  11510. auto res = cli.Get("/index");
  11511. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11512. }
  11513. TEST(MultipartFormDataTest, LargeData) {
  11514. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  11515. svr.Post("/post", [&](const Request &req, Response & /*res*/,
  11516. const ContentReader &content_reader) {
  11517. if (req.is_multipart_form_data()) {
  11518. std::vector<FormData> items;
  11519. content_reader(
  11520. [&](const FormData &file) {
  11521. items.push_back(file);
  11522. return true;
  11523. },
  11524. [&](const char *data, size_t data_length) {
  11525. items.back().content.append(data, data_length);
  11526. return true;
  11527. });
  11528. EXPECT_TRUE(std::string(items[0].name) == "document");
  11529. EXPECT_EQ(size_t(1024 * 1024 * 2), items[0].content.size());
  11530. EXPECT_TRUE(items[0].filename == "2MB_data");
  11531. EXPECT_TRUE(items[0].content_type == "application/octet-stream");
  11532. EXPECT_TRUE(items[1].name == "hello");
  11533. EXPECT_TRUE(items[1].content == "world");
  11534. EXPECT_TRUE(items[1].filename == "");
  11535. EXPECT_TRUE(items[1].content_type == "");
  11536. } else {
  11537. std::string body;
  11538. content_reader([&](const char *data, size_t data_length) {
  11539. body.append(data, data_length);
  11540. return true;
  11541. });
  11542. }
  11543. });
  11544. auto port = svr.bind_to_any_port(HOST);
  11545. auto t = std::thread([&]() { svr.listen_after_bind(); });
  11546. auto se = detail::scope_exit([&] {
  11547. svr.stop();
  11548. t.join();
  11549. ASSERT_FALSE(svr.is_running());
  11550. });
  11551. svr.wait_until_ready();
  11552. {
  11553. std::string data(1024 * 1024 * 2, '.');
  11554. std::stringstream buffer;
  11555. buffer << data;
  11556. SSLClient cli(HOST, port);
  11557. cli.enable_server_certificate_verification(false);
  11558. UploadFormDataItems items{
  11559. {"document", buffer.str(), "2MB_data", "application/octet-stream"},
  11560. {"hello", "world", "", ""},
  11561. };
  11562. auto res = cli.Post("/post", items);
  11563. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11564. ASSERT_EQ(StatusCode::OK_200, res->status);
  11565. }
  11566. }
  11567. TEST(MultipartFormDataTest, DataProviderItems) {
  11568. std::random_device seed_gen;
  11569. std::mt19937 random(seed_gen());
  11570. std::string rand1;
  11571. rand1.resize(1000);
  11572. std::generate(rand1.begin(), rand1.end(), [&]() { return random(); });
  11573. std::string rand2;
  11574. rand2.resize(3000);
  11575. std::generate(rand2.begin(), rand2.end(), [&]() { return random(); });
  11576. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  11577. svr.Post("/post-none", [&](const Request &req, Response & /*res*/,
  11578. const ContentReader &content_reader) {
  11579. ASSERT_FALSE(req.is_multipart_form_data());
  11580. std::string body;
  11581. content_reader([&](const char *data, size_t data_length) {
  11582. body.append(data, data_length);
  11583. return true;
  11584. });
  11585. EXPECT_EQ(body, "");
  11586. });
  11587. svr.Post("/post-items", [&](const Request &req, Response & /*res*/,
  11588. const ContentReader &content_reader) {
  11589. ASSERT_TRUE(req.is_multipart_form_data());
  11590. std::vector<FormData> items;
  11591. content_reader(
  11592. [&](const FormData &file) {
  11593. items.push_back(file);
  11594. return true;
  11595. },
  11596. [&](const char *data, size_t data_length) {
  11597. items.back().content.append(data, data_length);
  11598. return true;
  11599. });
  11600. ASSERT_TRUE(items.size() == 2);
  11601. EXPECT_EQ(std::string(items[0].name), "name1");
  11602. EXPECT_EQ(items[0].content, "Testing123");
  11603. EXPECT_EQ(items[0].filename, "filename1");
  11604. EXPECT_EQ(items[0].content_type, "application/octet-stream");
  11605. EXPECT_EQ(items[1].name, "name2");
  11606. EXPECT_EQ(items[1].content, "Testing456");
  11607. EXPECT_EQ(items[1].filename, "");
  11608. EXPECT_EQ(items[1].content_type, "");
  11609. });
  11610. svr.Post("/post-providers", [&](const Request &req, Response & /*res*/,
  11611. const ContentReader &content_reader) {
  11612. ASSERT_TRUE(req.is_multipart_form_data());
  11613. std::vector<FormData> items;
  11614. content_reader(
  11615. [&](const FormData &file) {
  11616. items.push_back(file);
  11617. return true;
  11618. },
  11619. [&](const char *data, size_t data_length) {
  11620. items.back().content.append(data, data_length);
  11621. return true;
  11622. });
  11623. ASSERT_TRUE(items.size() == 2);
  11624. EXPECT_EQ(items[0].name, "name3");
  11625. EXPECT_EQ(items[0].content, rand1);
  11626. EXPECT_EQ(items[0].filename, "filename3");
  11627. EXPECT_EQ(items[0].content_type, "");
  11628. EXPECT_EQ(items[1].name, "name4");
  11629. EXPECT_EQ(items[1].content, rand2);
  11630. EXPECT_EQ(items[1].filename, "filename4");
  11631. EXPECT_EQ(items[1].content_type, "");
  11632. });
  11633. svr.Post("/post-both", [&](const Request &req, Response & /*res*/,
  11634. const ContentReader &content_reader) {
  11635. ASSERT_TRUE(req.is_multipart_form_data());
  11636. std::vector<FormData> items;
  11637. content_reader(
  11638. [&](const FormData &file) {
  11639. items.push_back(file);
  11640. return true;
  11641. },
  11642. [&](const char *data, size_t data_length) {
  11643. items.back().content.append(data, data_length);
  11644. return true;
  11645. });
  11646. ASSERT_TRUE(items.size() == 4);
  11647. EXPECT_EQ(std::string(items[0].name), "name1");
  11648. EXPECT_EQ(items[0].content, "Testing123");
  11649. EXPECT_EQ(items[0].filename, "filename1");
  11650. EXPECT_EQ(items[0].content_type, "application/octet-stream");
  11651. EXPECT_EQ(items[1].name, "name2");
  11652. EXPECT_EQ(items[1].content, "Testing456");
  11653. EXPECT_EQ(items[1].filename, "");
  11654. EXPECT_EQ(items[1].content_type, "");
  11655. EXPECT_EQ(items[2].name, "name3");
  11656. EXPECT_EQ(items[2].content, rand1);
  11657. EXPECT_EQ(items[2].filename, "filename3");
  11658. EXPECT_EQ(items[2].content_type, "");
  11659. EXPECT_EQ(items[3].name, "name4");
  11660. EXPECT_EQ(items[3].content, rand2);
  11661. EXPECT_EQ(items[3].filename, "filename4");
  11662. EXPECT_EQ(items[3].content_type, "");
  11663. });
  11664. auto port = svr.bind_to_any_port("localhost");
  11665. auto t = std::thread([&]() { svr.listen_after_bind(); });
  11666. auto se = detail::scope_exit([&] {
  11667. svr.stop();
  11668. t.join();
  11669. ASSERT_FALSE(svr.is_running());
  11670. });
  11671. svr.wait_until_ready();
  11672. {
  11673. SSLClient cli("localhost", port);
  11674. cli.enable_server_certificate_verification(false);
  11675. UploadFormDataItems items{
  11676. {"name1", "Testing123", "filename1", "application/octet-stream"},
  11677. {"name2", "Testing456", "", ""}, // not a file
  11678. };
  11679. {
  11680. auto res = cli.Post("/post-none", {}, {}, {});
  11681. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11682. ASSERT_EQ(StatusCode::OK_200, res->status);
  11683. }
  11684. FormDataProviderItems providers;
  11685. {
  11686. auto res =
  11687. cli.Post("/post-items", {}, items, providers); // empty providers
  11688. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11689. ASSERT_EQ(StatusCode::OK_200, res->status);
  11690. }
  11691. providers.push_back({"name3",
  11692. [&](size_t offset, httplib::DataSink &sink) -> bool {
  11693. // test the offset is given correctly at each step
  11694. if (!offset)
  11695. sink.os.write(rand1.data(), 30);
  11696. else if (offset == 30)
  11697. sink.os.write(rand1.data() + 30, 300);
  11698. else if (offset == 330)
  11699. sink.os.write(rand1.data() + 330, 670);
  11700. else if (offset == rand1.size())
  11701. sink.done();
  11702. return true;
  11703. },
  11704. "filename3",
  11705. {}});
  11706. providers.push_back({"name4",
  11707. [&](size_t offset, httplib::DataSink &sink) -> bool {
  11708. // test the offset is given correctly at each step
  11709. if (!offset)
  11710. sink.os.write(rand2.data(), 2000);
  11711. else if (offset == 2000)
  11712. sink.os.write(rand2.data() + 2000, 1);
  11713. else if (offset == 2001)
  11714. sink.os.write(rand2.data() + 2001, 999);
  11715. else if (offset == rand2.size())
  11716. sink.done();
  11717. return true;
  11718. },
  11719. "filename4",
  11720. {}});
  11721. {
  11722. auto res = cli.Post("/post-providers", {}, {}, providers);
  11723. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11724. ASSERT_EQ(StatusCode::OK_200, res->status);
  11725. }
  11726. {
  11727. auto res = cli.Post("/post-both", {}, items, providers);
  11728. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11729. ASSERT_EQ(StatusCode::OK_200, res->status);
  11730. }
  11731. }
  11732. }
  11733. TEST(MultipartFormDataTest, BadHeader) {
  11734. Server svr;
  11735. svr.Post("/post", [&](const Request & /*req*/, Response &res) {
  11736. res.set_content("ok", "text/plain");
  11737. });
  11738. thread t = thread([&] { svr.listen(HOST, PORT); });
  11739. auto se = detail::scope_exit([&] {
  11740. svr.stop();
  11741. t.join();
  11742. ASSERT_FALSE(svr.is_running());
  11743. });
  11744. svr.wait_until_ready();
  11745. const std::string body =
  11746. "This is the preamble. It is to be ignored, though it\r\n"
  11747. "is a handy place for composition agents to include an\r\n"
  11748. "explanatory note to non-MIME conformant readers.\r\n"
  11749. "\r\n"
  11750. "\r\n"
  11751. "--simple boundary\r\n"
  11752. "Content-Disposition: form-data; name=\"field1\"\r\n"
  11753. ": BAD...\r\n"
  11754. "\r\n"
  11755. "value1\r\n"
  11756. "--simple boundary\r\n"
  11757. "Content-Disposition: form-data; name=\"field2\"; "
  11758. "filename=\"example.txt\"\r\n"
  11759. "\r\n"
  11760. "value2\r\n"
  11761. "--simple boundary--\r\n"
  11762. "This is the epilogue. It is also to be ignored.\r\n";
  11763. std::string content_type =
  11764. R"(multipart/form-data; boundary="simple boundary")";
  11765. Client cli(HOST, PORT);
  11766. auto res = cli.Post("/post", body, content_type.c_str());
  11767. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11768. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  11769. }
  11770. TEST(MultipartFormDataTest, WithPreamble) {
  11771. Server svr;
  11772. svr.Post("/post", [&](const Request & /*req*/, Response &res) {
  11773. res.set_content("ok", "text/plain");
  11774. });
  11775. thread t = thread([&] { svr.listen(HOST, PORT); });
  11776. auto se = detail::scope_exit([&] {
  11777. svr.stop();
  11778. t.join();
  11779. ASSERT_FALSE(svr.is_running());
  11780. });
  11781. svr.wait_until_ready();
  11782. const std::string body =
  11783. "This is the preamble. It is to be ignored, though it\r\n"
  11784. "is a handy place for composition agents to include an\r\n"
  11785. "explanatory note to non-MIME conformant readers.\r\n"
  11786. "\r\n"
  11787. "\r\n"
  11788. "--simple boundary\r\n"
  11789. "Content-Disposition: form-data; name=\"field1\"\r\n"
  11790. "\r\n"
  11791. "value1\r\n"
  11792. "--simple boundary\r\n"
  11793. "Content-Disposition: form-data; name=\"field2\"; "
  11794. "filename=\"example.txt\"\r\n"
  11795. "\r\n"
  11796. "value2\r\n"
  11797. "--simple boundary--\r\n"
  11798. "This is the epilogue. It is also to be ignored.\r\n";
  11799. std::string content_type =
  11800. R"(multipart/form-data; boundary="simple boundary")";
  11801. Client cli(HOST, PORT);
  11802. auto res = cli.Post("/post", body, content_type.c_str());
  11803. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11804. EXPECT_EQ(StatusCode::OK_200, res->status);
  11805. }
  11806. TEST(MultipartFormDataTest, PostCustomBoundary) {
  11807. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  11808. svr.Post("/post_customboundary", [&](const Request &req, Response & /*res*/,
  11809. const ContentReader &content_reader) {
  11810. if (req.is_multipart_form_data()) {
  11811. std::vector<FormData> items;
  11812. content_reader(
  11813. [&](const FormData &file) {
  11814. items.push_back(file);
  11815. return true;
  11816. },
  11817. [&](const char *data, size_t data_length) {
  11818. items.back().content.append(data, data_length);
  11819. return true;
  11820. });
  11821. EXPECT_TRUE(std::string(items[0].name) == "document");
  11822. EXPECT_EQ(size_t(1024 * 1024 * 2), items[0].content.size());
  11823. EXPECT_TRUE(items[0].filename == "2MB_data");
  11824. EXPECT_TRUE(items[0].content_type == "application/octet-stream");
  11825. EXPECT_TRUE(items[1].name == "hello");
  11826. EXPECT_TRUE(items[1].content == "world");
  11827. EXPECT_TRUE(items[1].filename == "");
  11828. EXPECT_TRUE(items[1].content_type == "");
  11829. } else {
  11830. std::string body;
  11831. content_reader([&](const char *data, size_t data_length) {
  11832. body.append(data, data_length);
  11833. return true;
  11834. });
  11835. }
  11836. });
  11837. auto port = svr.bind_to_any_port("localhost");
  11838. auto t = std::thread([&]() { svr.listen_after_bind(); });
  11839. auto se = detail::scope_exit([&] {
  11840. svr.stop();
  11841. t.join();
  11842. ASSERT_FALSE(svr.is_running());
  11843. });
  11844. svr.wait_until_ready();
  11845. {
  11846. std::string data(1024 * 1024 * 2, '.');
  11847. std::stringstream buffer;
  11848. buffer << data;
  11849. SSLClient cli("localhost", port);
  11850. cli.enable_server_certificate_verification(false);
  11851. UploadFormDataItems items{
  11852. {"document", buffer.str(), "2MB_data", "application/octet-stream"},
  11853. {"hello", "world", "", ""},
  11854. };
  11855. auto res = cli.Post("/post_customboundary", {}, items, "abc-abc");
  11856. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11857. ASSERT_EQ(StatusCode::OK_200, res->status);
  11858. }
  11859. }
  11860. TEST(MultipartFormDataTest, PostInvalidBoundaryChars) {
  11861. std::string data(1024 * 1024 * 2, '&');
  11862. std::stringstream buffer;
  11863. buffer << data;
  11864. Client cli("https://localhost:8080");
  11865. UploadFormDataItems items{
  11866. {"document", buffer.str(), "2MB_data", "application/octet-stream"},
  11867. {"hello", "world", "", ""},
  11868. };
  11869. for (const char &c : " \t\r\n") {
  11870. auto res =
  11871. cli.Post("/invalid_boundary", {}, items, string("abc123").append(1, c));
  11872. ASSERT_EQ(Error::UnsupportedMultipartBoundaryChars, res.error());
  11873. ASSERT_FALSE(res);
  11874. }
  11875. }
  11876. TEST(MultipartFormDataTest, PutFormData) {
  11877. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  11878. svr.Put("/put", [&](const Request &req, const Response & /*res*/,
  11879. const ContentReader &content_reader) {
  11880. if (req.is_multipart_form_data()) {
  11881. std::vector<FormData> items;
  11882. content_reader(
  11883. [&](const FormData &file) {
  11884. items.push_back(file);
  11885. return true;
  11886. },
  11887. [&](const char *data, size_t data_length) {
  11888. items.back().content.append(data, data_length);
  11889. return true;
  11890. });
  11891. EXPECT_TRUE(std::string(items[0].name) == "document");
  11892. EXPECT_EQ(size_t(1024 * 1024 * 2), items[0].content.size());
  11893. EXPECT_TRUE(items[0].filename == "2MB_data");
  11894. EXPECT_TRUE(items[0].content_type == "application/octet-stream");
  11895. EXPECT_TRUE(items[1].name == "hello");
  11896. EXPECT_TRUE(items[1].content == "world");
  11897. EXPECT_TRUE(items[1].filename == "");
  11898. EXPECT_TRUE(items[1].content_type == "");
  11899. } else {
  11900. std::string body;
  11901. content_reader([&](const char *data, size_t data_length) {
  11902. body.append(data, data_length);
  11903. return true;
  11904. });
  11905. }
  11906. });
  11907. auto port = svr.bind_to_any_port("localhost");
  11908. auto t = std::thread([&]() { svr.listen_after_bind(); });
  11909. auto se = detail::scope_exit([&] {
  11910. svr.stop();
  11911. t.join();
  11912. ASSERT_FALSE(svr.is_running());
  11913. });
  11914. svr.wait_until_ready();
  11915. {
  11916. std::string data(1024 * 1024 * 2, '&');
  11917. std::stringstream buffer;
  11918. buffer << data;
  11919. SSLClient cli("localhost", port);
  11920. cli.enable_server_certificate_verification(false);
  11921. UploadFormDataItems items{
  11922. {"document", buffer.str(), "2MB_data", "application/octet-stream"},
  11923. {"hello", "world", "", ""},
  11924. };
  11925. auto res = cli.Put("/put", items);
  11926. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11927. ASSERT_EQ(StatusCode::OK_200, res->status);
  11928. }
  11929. }
  11930. TEST(MultipartFormDataTest, PutFormDataCustomBoundary) {
  11931. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  11932. svr.Put("/put_customboundary",
  11933. [&](const Request &req, const Response & /*res*/,
  11934. const ContentReader &content_reader) {
  11935. if (req.is_multipart_form_data()) {
  11936. std::vector<FormData> items;
  11937. content_reader(
  11938. [&](const FormData &file) {
  11939. items.push_back(file);
  11940. return true;
  11941. },
  11942. [&](const char *data, size_t data_length) {
  11943. items.back().content.append(data, data_length);
  11944. return true;
  11945. });
  11946. EXPECT_TRUE(std::string(items[0].name) == "document");
  11947. EXPECT_EQ(size_t(1024 * 1024 * 2), items[0].content.size());
  11948. EXPECT_TRUE(items[0].filename == "2MB_data");
  11949. EXPECT_TRUE(items[0].content_type == "application/octet-stream");
  11950. EXPECT_TRUE(items[1].name == "hello");
  11951. EXPECT_TRUE(items[1].content == "world");
  11952. EXPECT_TRUE(items[1].filename == "");
  11953. EXPECT_TRUE(items[1].content_type == "");
  11954. } else {
  11955. std::string body;
  11956. content_reader([&](const char *data, size_t data_length) {
  11957. body.append(data, data_length);
  11958. return true;
  11959. });
  11960. }
  11961. });
  11962. auto port = svr.bind_to_any_port("localhost");
  11963. auto t = std::thread([&]() { svr.listen_after_bind(); });
  11964. auto se = detail::scope_exit([&] {
  11965. svr.stop();
  11966. t.join();
  11967. ASSERT_FALSE(svr.is_running());
  11968. });
  11969. svr.wait_until_ready();
  11970. {
  11971. std::string data(1024 * 1024 * 2, '&');
  11972. std::stringstream buffer;
  11973. buffer << data;
  11974. SSLClient cli("localhost", port);
  11975. cli.enable_server_certificate_verification(false);
  11976. UploadFormDataItems items{
  11977. {"document", buffer.str(), "2MB_data", "application/octet-stream"},
  11978. {"hello", "world", "", ""},
  11979. };
  11980. auto res = cli.Put("/put_customboundary", {}, items, "abc-abc_");
  11981. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  11982. ASSERT_EQ(StatusCode::OK_200, res->status);
  11983. }
  11984. }
  11985. TEST(MultipartFormDataTest, PutInvalidBoundaryChars) {
  11986. std::string data(1024 * 1024 * 2, '&');
  11987. std::stringstream buffer;
  11988. buffer << data;
  11989. Client cli("https://localhost:8080");
  11990. cli.enable_server_certificate_verification(false);
  11991. UploadFormDataItems items{
  11992. {"document", buffer.str(), "2MB_data", "application/octet-stream"},
  11993. {"hello", "world", "", ""},
  11994. };
  11995. for (const char &c : " \t\r\n") {
  11996. auto res = cli.Put("/put", {}, items, string("abc123").append(1, c));
  11997. ASSERT_EQ(Error::UnsupportedMultipartBoundaryChars, res.error());
  11998. ASSERT_FALSE(res);
  11999. }
  12000. }
  12001. TEST(MultipartFormDataTest, AlternateFilename) {
  12002. auto handled = false;
  12003. Server svr;
  12004. svr.Post("/test", [&](const Request &req, Response &res) {
  12005. ASSERT_EQ(2u, req.form.files.size());
  12006. ASSERT_EQ(1u, req.form.fields.size());
  12007. // Test files
  12008. const auto &file1 = req.form.get_file("file1");
  12009. ASSERT_EQ("file1", file1.name);
  12010. ASSERT_EQ("A.txt", file1.filename);
  12011. ASSERT_EQ("text/plain", file1.content_type);
  12012. ASSERT_EQ("Content of a.txt.\r\n", file1.content);
  12013. const auto &file2 = req.form.get_file("file2");
  12014. ASSERT_EQ("file2", file2.name);
  12015. ASSERT_EQ("a.html", file2.filename);
  12016. ASSERT_EQ("text/html", file2.content_type);
  12017. ASSERT_EQ("<!DOCTYPE html><title>Content of a.html.</title>\r\n",
  12018. file2.content);
  12019. // Test text field
  12020. const auto &text = req.form.get_field("text");
  12021. ASSERT_EQ("text default", text);
  12022. res.set_content("ok", "text/plain");
  12023. handled = true;
  12024. });
  12025. thread t = thread([&] { svr.listen(HOST, PORT); });
  12026. auto se = detail::scope_exit([&] {
  12027. svr.stop();
  12028. t.join();
  12029. ASSERT_FALSE(svr.is_running());
  12030. ASSERT_TRUE(handled);
  12031. });
  12032. svr.wait_until_ready();
  12033. auto req = "POST /test HTTP/1.1\r\n"
  12034. "Content-Type: multipart/form-data;boundary=--------\r\n"
  12035. "Content-Length: 399\r\n"
  12036. "\r\n"
  12037. "----------\r\n"
  12038. "Content-Disposition: form-data; name=\"text\"\r\n"
  12039. "\r\n"
  12040. "text default\r\n"
  12041. "----------\r\n"
  12042. "Content-Disposition: form-data; filename*=\"UTF-8''%41.txt\"; "
  12043. "filename=\"a.txt\"; name=\"file1\"\r\n"
  12044. "Content-Type: text/plain\r\n"
  12045. "\r\n"
  12046. "Content of a.txt.\r\n"
  12047. "\r\n"
  12048. "----------\r\n"
  12049. "Content-Disposition: form-data; name=\"file2\" ;filename = "
  12050. "\"a.html\"\r\n"
  12051. "Content-Type: text/html\r\n"
  12052. "\r\n"
  12053. "<!DOCTYPE html><title>Content of a.html.</title>\r\n"
  12054. "\r\n"
  12055. "------------\r\n";
  12056. ASSERT_TRUE(send_request(1, req));
  12057. }
  12058. TEST(MultipartFormDataTest, AlternateFilenameLongValueAndCaseInsensitive) {
  12059. auto handled = false;
  12060. Server svr;
  12061. svr.Post("/test", [&](const Request &req, Response &res) {
  12062. // Case-insensitive "utf-8''" prefix with a long value
  12063. const auto &file = req.form.get_file("file1");
  12064. ASSERT_EQ("file1", file.name);
  12065. // 8000 chars exercises both the Content-Disposition parser and the
  12066. // filename* parser near the CPPHTTPLIB_HEADER_MAX_LENGTH limit (8192).
  12067. // Prior to the fix, std::regex_match on this header would cause O(N)
  12068. // stack recursion in libstdc++, leading to SIGSEGV.
  12069. std::string expected_filename(8000, 'A');
  12070. ASSERT_EQ(expected_filename, file.filename);
  12071. res.set_content("ok", "text/plain");
  12072. handled = true;
  12073. });
  12074. thread t = thread([&] { svr.listen(HOST, PORT); });
  12075. auto se = detail::scope_exit([&] {
  12076. svr.stop();
  12077. t.join();
  12078. ASSERT_FALSE(svr.is_running());
  12079. ASSERT_TRUE(handled);
  12080. });
  12081. svr.wait_until_ready();
  12082. // Build body with a long filename* value using mixed-case prefix "Utf-8''"
  12083. // Regression test for GHSA-qq6v-r583-3h69
  12084. std::string long_filename(8000, 'A');
  12085. std::string body = "----------\r\n"
  12086. "Content-Disposition: form-data; name=\"file1\"; "
  12087. "filename*=\"Utf-8''" +
  12088. long_filename +
  12089. "\"\r\n"
  12090. "\r\n"
  12091. "hello\r\n"
  12092. "------------\r\n";
  12093. auto req = "POST /test HTTP/1.1\r\n"
  12094. "Content-Type: multipart/form-data;boundary=--------\r\n"
  12095. "Content-Length: " +
  12096. std::to_string(body.size()) + "\r\n\r\n" + body;
  12097. ASSERT_TRUE(send_request(1, req));
  12098. }
  12099. TEST(MultipartFormDataTest, CloseDelimiterWithoutCRLF) {
  12100. auto handled = false;
  12101. Server svr;
  12102. svr.Post("/test", [&](const Request &req, Response &) {
  12103. ASSERT_EQ(2u, req.form.fields.size());
  12104. const auto &text1 = req.form.get_field("text1");
  12105. ASSERT_EQ("text1", text1);
  12106. const auto &text2 = req.form.get_field("text2");
  12107. ASSERT_EQ("text2", text2);
  12108. handled = true;
  12109. });
  12110. thread t = thread([&] { svr.listen(HOST, PORT); });
  12111. auto se = detail::scope_exit([&] {
  12112. svr.stop();
  12113. t.join();
  12114. ASSERT_FALSE(svr.is_running());
  12115. ASSERT_TRUE(handled);
  12116. });
  12117. svr.wait_until_ready();
  12118. auto req = "POST /test HTTP/1.1\r\n"
  12119. "Content-Type: multipart/form-data;boundary=--------\r\n"
  12120. "Content-Length: 146\r\n"
  12121. "\r\n----------\r\n"
  12122. "Content-Disposition: form-data; name=\"text1\"\r\n"
  12123. "\r\n"
  12124. "text1"
  12125. "\r\n----------\r\n"
  12126. "Content-Disposition: form-data; name=\"text2\"\r\n"
  12127. "\r\n"
  12128. "text2"
  12129. "\r\n------------";
  12130. std::string response;
  12131. ASSERT_TRUE(send_request(1, req, &response));
  12132. ASSERT_EQ("200", response.substr(9, 3));
  12133. }
  12134. TEST(MultipartFormDataTest, ContentLength) {
  12135. auto handled = false;
  12136. Server svr;
  12137. svr.Post("/test", [&](const Request &req, Response &) {
  12138. ASSERT_EQ(2u, req.form.fields.size());
  12139. const auto &text1 = req.form.get_field("text1");
  12140. ASSERT_EQ("text1", text1);
  12141. const auto &text2 = req.form.get_field("text2");
  12142. ASSERT_EQ("text2", text2);
  12143. handled = true;
  12144. });
  12145. thread t = thread([&] { svr.listen(HOST, PORT); });
  12146. auto se = detail::scope_exit([&] {
  12147. svr.stop();
  12148. t.join();
  12149. ASSERT_FALSE(svr.is_running());
  12150. ASSERT_TRUE(handled);
  12151. });
  12152. svr.wait_until_ready();
  12153. auto req = "POST /test HTTP/1.1\r\n"
  12154. "Content-Type: multipart/form-data;boundary=--------\r\n"
  12155. "Content-Length: 167\r\n"
  12156. "\r\n----------\r\n"
  12157. "Content-Disposition: form-data; name=\"text1\"\r\n"
  12158. "Content-Length: 5\r\n"
  12159. "\r\n"
  12160. "text1"
  12161. "\r\n----------\r\n"
  12162. "Content-Disposition: form-data; name=\"text2\"\r\n"
  12163. "\r\n"
  12164. "text2"
  12165. "\r\n------------\r\n";
  12166. std::string response;
  12167. ASSERT_TRUE(send_request(1, req, &response));
  12168. ASSERT_EQ("200", response.substr(9, 3));
  12169. }
  12170. TEST(MultipartFormDataTest, AccessPartHeaders) {
  12171. auto handled = false;
  12172. Server svr;
  12173. svr.Post("/test", [&](const Request &req, Response &) {
  12174. ASSERT_EQ(2u, req.form.fields.size());
  12175. const auto &text1 = req.form.get_field("text1");
  12176. ASSERT_EQ("text1", text1);
  12177. // TODO: Add header access for text fields if needed
  12178. const auto &text2 = req.form.get_field("text2");
  12179. ASSERT_EQ("text2", text2);
  12180. // TODO: Header access for text fields needs to be implemented
  12181. // auto &headers = it->second.headers;
  12182. // ASSERT_EQ(3U, headers.size());
  12183. // auto custom_header = headers.find("x-whatever");
  12184. // ASSERT_TRUE(custom_header != headers.end());
  12185. // ASSERT_NE("customvalue", custom_header->second);
  12186. // ASSERT_EQ("CustomValue", custom_header->second);
  12187. // ASSERT_TRUE(headers.find("X-Test") == headers.end()); // text1 header
  12188. handled = true;
  12189. });
  12190. thread t = thread([&] { svr.listen(HOST, PORT); });
  12191. auto se = detail::scope_exit([&] {
  12192. svr.stop();
  12193. t.join();
  12194. ASSERT_FALSE(svr.is_running());
  12195. ASSERT_TRUE(handled);
  12196. });
  12197. svr.wait_until_ready();
  12198. auto req = "POST /test HTTP/1.1\r\n"
  12199. "Content-Type: multipart/form-data;boundary=--------\r\n"
  12200. "Content-Length: 232\r\n"
  12201. "\r\n----------\r\n"
  12202. "Content-Disposition: form-data; name=\"text1\"\r\n"
  12203. "Content-Length: 5\r\n"
  12204. "X-Test: 1\r\n"
  12205. "\r\n"
  12206. "text1"
  12207. "\r\n----------\r\n"
  12208. "Content-Disposition: form-data; name=\"text2\"\r\n"
  12209. "Content-Type: text/plain\r\n"
  12210. "X-Whatever: CustomValue\r\n"
  12211. "\r\n"
  12212. "text2"
  12213. "\r\n------------\r\n"
  12214. "That should be disregarded. Not even read";
  12215. std::string response;
  12216. ASSERT_TRUE(send_request(1, req, &response));
  12217. ASSERT_EQ("200", response.substr(9, 3));
  12218. }
  12219. TEST(MultipartFormDataTest, LargeHeader) {
  12220. auto handled = false;
  12221. Server svr;
  12222. svr.Post("/test", [&](const Request &req, Response &) {
  12223. ASSERT_EQ(1u, req.form.fields.size());
  12224. const auto &text = req.form.get_field("name1");
  12225. ASSERT_EQ("text1", text);
  12226. handled = true;
  12227. });
  12228. thread t = thread([&] { svr.listen(HOST, PORT); });
  12229. auto se = detail::scope_exit([&] {
  12230. svr.stop();
  12231. t.join();
  12232. ASSERT_FALSE(svr.is_running());
  12233. ASSERT_TRUE(handled);
  12234. });
  12235. svr.wait_until_ready();
  12236. auto boundary = std::string("cpp-httplib-multipart-data");
  12237. std::string content = "--" + boundary +
  12238. "\r\n"
  12239. "Content-Disposition: form-data; name=\"name1\"\r\n"
  12240. "\r\n"
  12241. "text1\r\n"
  12242. "--" +
  12243. boundary + "--\r\n";
  12244. std::string header_prefix = "POST /test HTTP/1.1\r\n"
  12245. "Content-Type: multipart/form-data;boundary=" +
  12246. boundary +
  12247. "\r\n"
  12248. "Content-Length: " +
  12249. std::to_string(content.size()) +
  12250. "\r\n"
  12251. "Dummy-Header: ";
  12252. std::string header_suffix = "\r\n"
  12253. "\r\n";
  12254. size_t read_buff_size = 1024u * 4; // SocketStream::read_buff_size_
  12255. size_t header_dummy_size =
  12256. read_buff_size -
  12257. (header_prefix.size() + header_suffix.size() + boundary.size() / 2);
  12258. auto header_dummy = std::string(header_dummy_size, '@');
  12259. auto req = header_prefix + header_dummy + header_suffix + content;
  12260. std::string response;
  12261. ASSERT_TRUE(send_request(1, req, &response));
  12262. ASSERT_EQ("200", response.substr(9, 3));
  12263. }
  12264. TEST(MultipartFormDataTest, UploadItemsHasContentLength) {
  12265. // Verify that Post(path, headers, UploadFormDataItems) sends Content-Length
  12266. // (not chunked Transfer-Encoding) after the streaming refactor.
  12267. auto handled = false;
  12268. Server svr;
  12269. svr.Post("/upload", [&](const Request &req, Response &res) {
  12270. auto cl_it = req.headers.find("Content-Length");
  12271. EXPECT_TRUE(cl_it != req.headers.end());
  12272. auto te_it = req.headers.find("Transfer-Encoding");
  12273. EXPECT_TRUE(te_it == req.headers.end());
  12274. EXPECT_EQ(2u, req.form.fields.size() + req.form.files.size());
  12275. res.set_content("ok", "text/plain");
  12276. handled = true;
  12277. });
  12278. auto port = svr.bind_to_any_port(HOST);
  12279. auto t = thread([&] { svr.listen_after_bind(); });
  12280. auto se = detail::scope_exit([&] {
  12281. svr.stop();
  12282. t.join();
  12283. ASSERT_FALSE(svr.is_running());
  12284. ASSERT_TRUE(handled);
  12285. });
  12286. svr.wait_until_ready();
  12287. UploadFormDataItems items = {
  12288. {"field1", "hello", "", "text/plain"},
  12289. {"file1", "world", "test.txt", "application/octet-stream"},
  12290. };
  12291. Client cli(HOST, port);
  12292. auto res = cli.Post("/upload", {}, items);
  12293. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12294. EXPECT_EQ(StatusCode::OK_200, res->status);
  12295. }
  12296. TEST(MultipartFormDataTest, ContentProviderCoalescesWrites) {
  12297. // Verify that make_multipart_content_provider coalesces many small segments
  12298. // into fewer sink.write() calls to avoid TCP packet fragmentation (#2410).
  12299. constexpr size_t kItemCount = 1000;
  12300. UploadFormDataItems items;
  12301. items.reserve(kItemCount);
  12302. for (size_t i = 0; i < kItemCount; i++) {
  12303. items.push_back(
  12304. {"field" + std::to_string(i), "value" + std::to_string(i), "", ""});
  12305. }
  12306. const std::string boundary = "----test-boundary";
  12307. auto content_length = detail::get_multipart_content_length(items, boundary);
  12308. auto provider = detail::make_multipart_content_provider(items, boundary);
  12309. // Drive the provider the same way write_content_with_progress does
  12310. size_t write_count = 0;
  12311. size_t total_bytes = 0;
  12312. DataSink sink;
  12313. size_t offset = 0;
  12314. sink.write = [&](const char *d, size_t l) -> bool {
  12315. (void)d;
  12316. write_count++;
  12317. total_bytes += l;
  12318. offset += l;
  12319. return true;
  12320. };
  12321. sink.is_writable = []() -> bool { return true; };
  12322. while (offset < content_length) {
  12323. ASSERT_TRUE(provider(offset, content_length - offset, sink));
  12324. }
  12325. EXPECT_EQ(content_length, total_bytes);
  12326. // The total number of segments is 3 * kItemCount + 1 = 3001.
  12327. // With buffering into 64KB blocks, write_count should be much smaller.
  12328. auto segment_count = 3 * kItemCount + 1;
  12329. EXPECT_LT(write_count, segment_count / 10);
  12330. }
  12331. TEST(MultipartFormDataTest, ManyItemsEndToEnd) {
  12332. // Integration test: send many UploadFormDataItems and verify the server
  12333. // receives all of them correctly (#2410).
  12334. constexpr size_t kItemCount = 500;
  12335. auto handled = false;
  12336. Server svr;
  12337. svr.Post("/upload", [&](const Request &req, Response &res) {
  12338. EXPECT_EQ(kItemCount, req.form.fields.size());
  12339. for (size_t i = 0; i < kItemCount; i++) {
  12340. auto key = "field" + std::to_string(i);
  12341. auto val = "value" + std::to_string(i);
  12342. auto it = req.form.fields.find(key);
  12343. if (it != req.form.fields.end()) {
  12344. EXPECT_EQ(val, it->second.content);
  12345. } else {
  12346. ADD_FAILURE() << "Missing field: " << key;
  12347. }
  12348. }
  12349. res.set_content("ok", "text/plain");
  12350. handled = true;
  12351. });
  12352. auto port = svr.bind_to_any_port(HOST);
  12353. auto t = thread([&] { svr.listen_after_bind(); });
  12354. auto se = detail::scope_exit([&] {
  12355. svr.stop();
  12356. t.join();
  12357. ASSERT_FALSE(svr.is_running());
  12358. ASSERT_TRUE(handled);
  12359. });
  12360. svr.wait_until_ready();
  12361. UploadFormDataItems items;
  12362. items.reserve(kItemCount);
  12363. for (size_t i = 0; i < kItemCount; i++) {
  12364. items.push_back(
  12365. {"field" + std::to_string(i), "value" + std::to_string(i), "", ""});
  12366. }
  12367. Client cli(HOST, port);
  12368. auto res = cli.Post("/upload", items);
  12369. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12370. EXPECT_EQ(StatusCode::OK_200, res->status);
  12371. }
  12372. TEST(MultipartFormDataTest, MakeFileProvider) {
  12373. // Verify make_file_provider sends a file's contents correctly.
  12374. const std::string file_content(4096, 'Z');
  12375. const std::string tmp_path = "./httplib_test_make_file_provider.bin";
  12376. {
  12377. std::ofstream ofs(tmp_path, std::ios::binary);
  12378. ofs.write(file_content.data(),
  12379. static_cast<std::streamsize>(file_content.size()));
  12380. }
  12381. auto handled = false;
  12382. Server svr;
  12383. svr.Post("/upload", [&](const Request &req, Response & /*res*/,
  12384. const ContentReader &content_reader) {
  12385. ASSERT_TRUE(req.is_multipart_form_data());
  12386. std::vector<FormData> items;
  12387. content_reader(
  12388. [&](const FormData &file) {
  12389. items.push_back(file);
  12390. return true;
  12391. },
  12392. [&](const char *data, size_t data_length) {
  12393. items.back().content.append(data, data_length);
  12394. return true;
  12395. });
  12396. ASSERT_EQ(1u, items.size());
  12397. EXPECT_EQ("myfile", items[0].name);
  12398. EXPECT_EQ("data.bin", items[0].filename);
  12399. EXPECT_EQ("application/octet-stream", items[0].content_type);
  12400. EXPECT_EQ(file_content, items[0].content);
  12401. handled = true;
  12402. });
  12403. auto port = svr.bind_to_any_port(HOST);
  12404. auto t = thread([&] { svr.listen_after_bind(); });
  12405. auto se = detail::scope_exit([&] {
  12406. svr.stop();
  12407. t.join();
  12408. ASSERT_FALSE(svr.is_running());
  12409. ASSERT_TRUE(handled);
  12410. std::remove(tmp_path.c_str());
  12411. });
  12412. svr.wait_until_ready();
  12413. FormDataProviderItems providers;
  12414. providers.push_back(make_file_provider("myfile", tmp_path, "data.bin",
  12415. "application/octet-stream"));
  12416. Client cli(HOST, port);
  12417. auto res = cli.Post("/upload", {}, {}, providers);
  12418. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12419. EXPECT_EQ(StatusCode::OK_200, res->status);
  12420. }
  12421. TEST(MultipartFormDataTest, ExcessivePartHeaders) {
  12422. // Verify that a multipart part with more than CPPHTTPLIB_HEADER_MAX_COUNT
  12423. // (100) headers is rejected with a 400 Bad Request response.
  12424. Server svr;
  12425. svr.Post("/post", [&](const Request & /*req*/, Response &res) {
  12426. res.set_content("ok", "text/plain");
  12427. });
  12428. thread t = thread([&] { svr.listen(HOST, PORT); });
  12429. auto se = detail::scope_exit([&] {
  12430. svr.stop();
  12431. t.join();
  12432. ASSERT_FALSE(svr.is_running());
  12433. });
  12434. svr.wait_until_ready();
  12435. // Build a multipart part with 101 custom headers (exceeding
  12436. // CPPHTTPLIB_HEADER_MAX_COUNT=100)
  12437. std::stringstream body;
  12438. body << "--simpleboundary\r\n"
  12439. << "Content-Disposition: form-data; name=\"field1\"\r\n";
  12440. for (int i = 0; i < 101; i++) {
  12441. body << "X-Custom-Header-" << i << ": value\r\n";
  12442. }
  12443. body << "\r\n"
  12444. << "value1\r\n"
  12445. << "--simpleboundary--\r\n";
  12446. std::string content_type = "multipart/form-data; boundary=simpleboundary";
  12447. Client cli(HOST, PORT);
  12448. auto res = cli.Post("/post", body.str(), content_type.c_str());
  12449. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12450. EXPECT_EQ(StatusCode::BadRequest_400, res->status);
  12451. }
  12452. TEST(MakeFileBodyTest, Basic) {
  12453. const std::string file_content(4096, 'Z');
  12454. const std::string tmp_path = "./httplib_test_make_file_body.bin";
  12455. {
  12456. std::ofstream ofs(tmp_path, std::ios::binary);
  12457. ofs.write(file_content.data(),
  12458. static_cast<std::streamsize>(file_content.size()));
  12459. }
  12460. auto handled = false;
  12461. Server svr;
  12462. svr.Post("/upload", [&](const Request &req, Response &res) {
  12463. EXPECT_EQ(file_content, req.body);
  12464. handled = true;
  12465. res.status = StatusCode::OK_200;
  12466. });
  12467. auto port = svr.bind_to_any_port(HOST);
  12468. auto t = thread([&] { svr.listen_after_bind(); });
  12469. auto se = detail::scope_exit([&] {
  12470. svr.stop();
  12471. t.join();
  12472. ASSERT_FALSE(svr.is_running());
  12473. ASSERT_TRUE(handled);
  12474. std::remove(tmp_path.c_str());
  12475. });
  12476. svr.wait_until_ready();
  12477. auto fb = make_file_body(tmp_path);
  12478. ASSERT_GT(fb.first, 0u);
  12479. Client cli(HOST, port);
  12480. auto res =
  12481. cli.Post("/upload", fb.first, fb.second, "application/octet-stream");
  12482. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12483. EXPECT_EQ(StatusCode::OK_200, res->status);
  12484. }
  12485. TEST(TaskQueueTest, IncreaseAtomicInteger) {
  12486. static constexpr unsigned int number_of_tasks{1000000};
  12487. std::atomic_uint count{0};
  12488. std::unique_ptr<TaskQueue> task_queue{
  12489. new ThreadPool{CPPHTTPLIB_THREAD_POOL_COUNT}};
  12490. for (unsigned int i = 0; i < number_of_tasks; ++i) {
  12491. auto queued = task_queue->enqueue(
  12492. [&count] { count.fetch_add(1, std::memory_order_relaxed); });
  12493. EXPECT_TRUE(queued);
  12494. }
  12495. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  12496. task_queue->shutdown();
  12497. #else
  12498. EXPECT_NO_THROW(task_queue->shutdown());
  12499. #endif
  12500. EXPECT_EQ(number_of_tasks, count.load());
  12501. }
  12502. TEST(TaskQueueTest, IncreaseAtomicIntegerWithQueueLimit) {
  12503. static constexpr unsigned int number_of_tasks{1000000};
  12504. static constexpr unsigned int qlimit{2};
  12505. unsigned int queued_count{0};
  12506. std::atomic_uint count{0};
  12507. std::unique_ptr<TaskQueue> task_queue{
  12508. new ThreadPool{/*num_threads=*/1, /*max_threads=*/1, qlimit}};
  12509. for (unsigned int i = 0; i < number_of_tasks; ++i) {
  12510. if (task_queue->enqueue(
  12511. [&count] { count.fetch_add(1, std::memory_order_relaxed); })) {
  12512. queued_count++;
  12513. }
  12514. }
  12515. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  12516. task_queue->shutdown();
  12517. #else
  12518. EXPECT_NO_THROW(task_queue->shutdown());
  12519. #endif
  12520. EXPECT_EQ(queued_count, count.load());
  12521. EXPECT_TRUE(queued_count <= number_of_tasks);
  12522. EXPECT_TRUE(queued_count >= qlimit);
  12523. }
  12524. TEST(TaskQueueTest, IdleTimeoutAtRuntime) {
  12525. // Use a short idle timeout so a dynamic thread spawns, times out and
  12526. // exits during the test, and the pool keeps working afterwards.
  12527. std::unique_ptr<TaskQueue> task_queue{new ThreadPool{
  12528. /*num_threads=*/1, /*max_threads=*/2, /*max_queued_requests=*/0,
  12529. /*idle_timeout_sec=*/1}};
  12530. std::atomic_uint count{0};
  12531. std::condition_variable cv;
  12532. std::mutex mtx;
  12533. bool release = false;
  12534. // Block the base thread so the second task spawns a dynamic thread.
  12535. EXPECT_TRUE(task_queue->enqueue([&] {
  12536. std::unique_lock<std::mutex> lock(mtx);
  12537. while (!release) {
  12538. cv.wait(lock);
  12539. }
  12540. count++;
  12541. }));
  12542. EXPECT_TRUE(task_queue->enqueue([&] { count++; }));
  12543. // Let the dynamic thread finish its task and exceed the idle timeout.
  12544. std::this_thread::sleep_for(std::chrono::milliseconds(1500));
  12545. {
  12546. std::unique_lock<std::mutex> lock(mtx);
  12547. release = true;
  12548. }
  12549. cv.notify_all();
  12550. // The pool must still accept and run tasks after the dynamic thread exited.
  12551. EXPECT_TRUE(task_queue->enqueue([&] { count++; }));
  12552. task_queue->shutdown();
  12553. EXPECT_EQ(3u, count.load());
  12554. }
  12555. TEST(TaskQueueTest, MaxQueuedRequests) {
  12556. static constexpr unsigned int qlimit{3};
  12557. std::unique_ptr<TaskQueue> task_queue{new ThreadPool{1, 1, qlimit}};
  12558. std::condition_variable sem_cv;
  12559. std::mutex sem_mtx;
  12560. int credits = 0;
  12561. bool queued;
  12562. /* Fill up the queue with tasks that will block until we give them credits to
  12563. * complete. */
  12564. for (unsigned int n = 0; n <= qlimit;) {
  12565. queued = task_queue->enqueue([&sem_mtx, &sem_cv, &credits] {
  12566. std::unique_lock<std::mutex> lock(sem_mtx);
  12567. while (credits <= 0) {
  12568. sem_cv.wait(lock);
  12569. }
  12570. /* Consume the credit and signal the test code if they are all gone. */
  12571. if (--credits == 0) { sem_cv.notify_one(); }
  12572. });
  12573. if (n < qlimit) {
  12574. /* The first qlimit enqueues must succeed. */
  12575. EXPECT_TRUE(queued);
  12576. } else {
  12577. /* The last one will succeed only when the worker thread
  12578. * starts and dequeues the first blocking task. Although
  12579. * not necessary for the correctness of this test, we sleep for
  12580. * a short while to avoid busy waiting. */
  12581. std::this_thread::sleep_for(std::chrono::milliseconds(10));
  12582. }
  12583. if (queued) { n++; }
  12584. }
  12585. /* Further enqueues must fail since the queue is full. */
  12586. for (auto i = 0; i < 4; i++) {
  12587. queued = task_queue->enqueue([] {});
  12588. EXPECT_FALSE(queued);
  12589. }
  12590. /* Give the credits to allow the previous tasks to complete. */
  12591. {
  12592. std::unique_lock<std::mutex> lock(sem_mtx);
  12593. credits += qlimit + 1;
  12594. }
  12595. sem_cv.notify_all();
  12596. /* Wait for all the credits to be consumed. */
  12597. {
  12598. std::unique_lock<std::mutex> lock(sem_mtx);
  12599. while (credits > 0) {
  12600. sem_cv.wait(lock);
  12601. }
  12602. }
  12603. /* Check that we are able again to enqueue at least qlimit tasks. */
  12604. for (unsigned int i = 0; i < qlimit; i++) {
  12605. queued = task_queue->enqueue([] {});
  12606. EXPECT_TRUE(queued);
  12607. }
  12608. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  12609. task_queue->shutdown();
  12610. #else
  12611. EXPECT_NO_THROW(task_queue->shutdown());
  12612. #endif
  12613. }
  12614. TEST(RedirectTest, RedirectToUrlWithQueryParameters) {
  12615. Server svr;
  12616. svr.Get("/", [](const Request & /*req*/, Response &res) {
  12617. res.set_redirect(R"(/hello?key=val%26key2%3Dval2)");
  12618. });
  12619. svr.Get("/hello", [](const Request &req, Response &res) {
  12620. res.set_content(req.get_param_value("key"), "text/plain");
  12621. });
  12622. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  12623. auto se = detail::scope_exit([&] {
  12624. svr.stop();
  12625. thread.join();
  12626. ASSERT_FALSE(svr.is_running());
  12627. });
  12628. svr.wait_until_ready();
  12629. {
  12630. Client cli(HOST, PORT);
  12631. cli.set_follow_location(true);
  12632. auto res = cli.Get("/");
  12633. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12634. EXPECT_EQ(StatusCode::OK_200, res->status);
  12635. EXPECT_EQ("val&key2=val2", res->body);
  12636. }
  12637. }
  12638. #endif
  12639. TEST(RedirectTest, RedirectToUrlWithPlusInQueryParameters) {
  12640. Server svr;
  12641. svr.Get("/", [](const Request & /*req*/, Response &res) {
  12642. res.set_redirect(R"(/hello?key=AByz09+~-._%20%26%3F%C3%BC%2B)");
  12643. });
  12644. svr.Get("/hello", [](const Request &req, Response &res) {
  12645. res.set_content(req.get_param_value("key"), "text/plain");
  12646. });
  12647. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  12648. auto se = detail::scope_exit([&] {
  12649. svr.stop();
  12650. thread.join();
  12651. ASSERT_FALSE(svr.is_running());
  12652. });
  12653. svr.wait_until_ready();
  12654. {
  12655. Client cli(HOST, PORT);
  12656. cli.set_follow_location(true);
  12657. auto res = cli.Get("/");
  12658. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12659. EXPECT_EQ(StatusCode::OK_200, res->status);
  12660. EXPECT_EQ("AByz09 ~-._ &?ü+", res->body);
  12661. }
  12662. }
  12663. TEST(RedirectTest, RedirectWithPlusInPath) {
  12664. Server svr;
  12665. svr.Get("/", [](const Request & /*req*/, Response &res) {
  12666. res.set_redirect("/a+b");
  12667. });
  12668. // Route pattern uses regex; escape + as \\+
  12669. svr.Get(R"(/a\+b)", [](const Request &req, Response &res) {
  12670. res.set_content(req.path, "text/plain");
  12671. });
  12672. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  12673. auto se = detail::scope_exit([&] {
  12674. svr.stop();
  12675. thread.join();
  12676. ASSERT_FALSE(svr.is_running());
  12677. });
  12678. svr.wait_until_ready();
  12679. {
  12680. Client cli(HOST, PORT);
  12681. cli.set_follow_location(true);
  12682. auto res = cli.Get("/");
  12683. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12684. EXPECT_EQ(StatusCode::OK_200, res->status);
  12685. EXPECT_EQ("/a+b", res->body);
  12686. }
  12687. }
  12688. #ifdef CPPHTTPLIB_SSL_ENABLED
  12689. TEST(RedirectTest, Issue2185_Online) {
  12690. SSLClient client("github.com");
  12691. client.set_follow_location(true);
  12692. auto res = client.Get("/Coollab-Art/Coollab/releases/download/1.1.1_UI-Scale/"
  12693. "Coollab-Windows.zip");
  12694. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  12695. EXPECT_EQ(StatusCode::OK_200, res->status);
  12696. EXPECT_EQ(9920427U, res->body.size());
  12697. }
  12698. #endif
  12699. TEST(VulnerabilityTest, CRLFInjection) {
  12700. Server svr;
  12701. svr.Post("/test1", [](const Request & /*req*/, Response &res) {
  12702. res.set_content("Hello 1", "text/plain");
  12703. });
  12704. svr.Delete("/test2", [](const Request & /*req*/, Response &res) {
  12705. res.set_content("Hello 2", "text/plain");
  12706. });
  12707. svr.Put("/test3", [](const Request & /*req*/, Response &res) {
  12708. res.set_content("Hello 3", "text/plain");
  12709. });
  12710. svr.Patch("/test4", [](const Request & /*req*/, Response &res) {
  12711. res.set_content("Hello 4", "text/plain");
  12712. });
  12713. svr.set_logger([](const Request &req, const Response & /*res*/) {
  12714. for (const auto &x : req.headers) {
  12715. auto key = x.first;
  12716. EXPECT_STRNE("evil", key.c_str());
  12717. }
  12718. });
  12719. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  12720. auto se = detail::scope_exit([&] {
  12721. svr.stop();
  12722. thread.join();
  12723. ASSERT_FALSE(svr.is_running());
  12724. });
  12725. svr.wait_until_ready();
  12726. {
  12727. Client cli(HOST, PORT);
  12728. cli.Post("/test1", "A=B",
  12729. "application/x-www-form-urlencoded\r\nevil: hello1");
  12730. cli.Delete("/test2", "A=B", "text/plain\r\nevil: hello2");
  12731. cli.Put("/test3", "text", "text/plain\r\nevil: hello3");
  12732. cli.Patch("/test4", "content", "text/plain\r\nevil: hello4");
  12733. }
  12734. }
  12735. TEST(VulnerabilityTest, CRLFInjectionInHeaders) {
  12736. auto server_thread = std::thread([] {
  12737. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  12738. default_socket_options(srv);
  12739. sockaddr_in addr{};
  12740. addr.sin_family = AF_INET;
  12741. addr.sin_port = htons(static_cast<uint16_t>(PORT + 1));
  12742. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  12743. ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr));
  12744. ::listen(srv, 1);
  12745. sockaddr_in cli_addr{};
  12746. socklen_t cli_len = sizeof(cli_addr);
  12747. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  12748. detail::set_socket_opt_time(cli, SOL_SOCKET, SO_RCVTIMEO, 1, 0);
  12749. std::string buf_all;
  12750. char buf[2048];
  12751. ssize_t n;
  12752. while ((n = ::recv(cli, buf, sizeof(buf), 0)) > 0) {
  12753. buf_all.append(buf, static_cast<size_t>(n));
  12754. size_t pos;
  12755. while ((pos = buf_all.find("\r\n\r\n")) != std::string::npos) {
  12756. auto request_block = buf_all.substr(0, pos + 4); // include separator
  12757. auto e = request_block.find("\r\n");
  12758. if (e != std::string::npos) {
  12759. auto request_line = request_block.substr(0, e);
  12760. std::string msg =
  12761. "CRLF injection detected in request line: '" + request_line + "'";
  12762. EXPECT_FALSE(true) << msg;
  12763. }
  12764. std::string resp = "HTTP/1.1 200 OK\r\nContent-Length: 5\r\n\r\nHello";
  12765. ::send(cli,
  12766. #ifdef _WIN32
  12767. static_cast<const char *>(resp.c_str()),
  12768. static_cast<int>(resp.size()),
  12769. #else
  12770. resp.c_str(), resp.size(),
  12771. #endif
  12772. 0);
  12773. buf_all.erase(0, pos + 4);
  12774. }
  12775. }
  12776. detail::close_socket(cli);
  12777. detail::close_socket(srv);
  12778. });
  12779. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  12780. auto cli = Client("127.0.0.1", PORT + 1);
  12781. auto headers = Headers{
  12782. {"A", "B\r\n\r\nGET /pwned HTTP/1.1\r\nHost: 127.0.0.1:1234\r\n\r\n"},
  12783. {"Connection", "keep-alive"}};
  12784. auto res = cli.Get("/hi", headers);
  12785. EXPECT_FALSE(res);
  12786. EXPECT_EQ(Error::InvalidHeaders, res.error());
  12787. server_thread.join();
  12788. }
  12789. TEST(PathParamsTest, StaticMatch) {
  12790. const auto pattern = "/users/all";
  12791. detail::PathParamsMatcher matcher(pattern);
  12792. Request request;
  12793. request.path = "/users/all";
  12794. ASSERT_TRUE(matcher.match(request));
  12795. std::unordered_map<std::string, std::string> expected_params = {};
  12796. EXPECT_EQ(request.path_params, expected_params);
  12797. }
  12798. TEST(PathParamsTest, StaticMismatch) {
  12799. const auto pattern = "/users/all";
  12800. detail::PathParamsMatcher matcher(pattern);
  12801. Request request;
  12802. request.path = "/users/1";
  12803. ASSERT_FALSE(matcher.match(request));
  12804. }
  12805. TEST(PathParamsTest, SingleParamInTheMiddle) {
  12806. const auto pattern = "/users/:id/subscriptions";
  12807. detail::PathParamsMatcher matcher(pattern);
  12808. Request request;
  12809. request.path = "/users/42/subscriptions";
  12810. ASSERT_TRUE(matcher.match(request));
  12811. std::unordered_map<std::string, std::string> expected_params = {{"id", "42"}};
  12812. EXPECT_EQ(request.path_params, expected_params);
  12813. }
  12814. TEST(PathParamsTest, SingleParamInTheEnd) {
  12815. const auto pattern = "/users/:id";
  12816. detail::PathParamsMatcher matcher(pattern);
  12817. Request request;
  12818. request.path = "/users/24";
  12819. ASSERT_TRUE(matcher.match(request));
  12820. std::unordered_map<std::string, std::string> expected_params = {{"id", "24"}};
  12821. EXPECT_EQ(request.path_params, expected_params);
  12822. }
  12823. TEST(PathParamsTest, SingleParamInTheEndTrailingSlash) {
  12824. const auto pattern = "/users/:id/";
  12825. detail::PathParamsMatcher matcher(pattern);
  12826. Request request;
  12827. request.path = "/users/42/";
  12828. ASSERT_TRUE(matcher.match(request));
  12829. std::unordered_map<std::string, std::string> expected_params = {{"id", "42"}};
  12830. EXPECT_EQ(request.path_params, expected_params);
  12831. }
  12832. TEST(PathParamsTest, EmptyParam) {
  12833. const auto pattern = "/users/:id/";
  12834. detail::PathParamsMatcher matcher(pattern);
  12835. Request request;
  12836. request.path = "/users//";
  12837. ASSERT_TRUE(matcher.match(request));
  12838. std::unordered_map<std::string, std::string> expected_params = {{"id", ""}};
  12839. EXPECT_EQ(request.path_params, expected_params);
  12840. }
  12841. TEST(PathParamsTest, FragmentMismatch) {
  12842. const auto pattern = "/users/:id/";
  12843. detail::PathParamsMatcher matcher(pattern);
  12844. Request request;
  12845. request.path = "/admins/24/";
  12846. ASSERT_FALSE(matcher.match(request));
  12847. }
  12848. TEST(PathParamsTest, ExtraFragments) {
  12849. const auto pattern = "/users/:id";
  12850. detail::PathParamsMatcher matcher(pattern);
  12851. Request request;
  12852. request.path = "/users/42/subscriptions";
  12853. ASSERT_FALSE(matcher.match(request));
  12854. }
  12855. TEST(PathParamsTest, MissingTrailingParam) {
  12856. const auto pattern = "/users/:id";
  12857. detail::PathParamsMatcher matcher(pattern);
  12858. Request request;
  12859. request.path = "/users";
  12860. ASSERT_FALSE(matcher.match(request));
  12861. }
  12862. TEST(PathParamsTest, MissingParamInTheMiddle) {
  12863. const auto pattern = "/users/:id/subscriptions";
  12864. detail::PathParamsMatcher matcher(pattern);
  12865. Request request;
  12866. request.path = "/users/subscriptions";
  12867. ASSERT_FALSE(matcher.match(request));
  12868. }
  12869. TEST(PathParamsTest, MultipleParams) {
  12870. const auto pattern = "/users/:userid/subscriptions/:subid";
  12871. detail::PathParamsMatcher matcher(pattern);
  12872. Request request;
  12873. request.path = "/users/42/subscriptions/2";
  12874. ASSERT_TRUE(matcher.match(request));
  12875. std::unordered_map<std::string, std::string> expected_params = {
  12876. {"userid", "42"}, {"subid", "2"}};
  12877. EXPECT_EQ(request.path_params, expected_params);
  12878. }
  12879. TEST(PathParamsTest, SequenceOfParams) {
  12880. const auto pattern = "/values/:x/:y/:z";
  12881. detail::PathParamsMatcher matcher(pattern);
  12882. Request request;
  12883. request.path = "/values/1/2/3";
  12884. ASSERT_TRUE(matcher.match(request));
  12885. std::unordered_map<std::string, std::string> expected_params = {
  12886. {"x", "1"}, {"y", "2"}, {"z", "3"}};
  12887. EXPECT_EQ(request.path_params, expected_params);
  12888. }
  12889. TEST(PathParamsTest, SemicolonInTheMiddleIsNotAParam) {
  12890. const auto pattern = "/prefix:suffix";
  12891. detail::PathParamsMatcher matcher(pattern);
  12892. Request request;
  12893. request.path = "/prefix:suffix";
  12894. ASSERT_TRUE(matcher.match(request));
  12895. const std::unordered_map<std::string, std::string> expected_params = {};
  12896. EXPECT_EQ(request.path_params, expected_params);
  12897. }
  12898. TEST(RegexMatcherTest, OverlongPathIsRejectedBeforeRegexMatch) {
  12899. // std::regex_match's backtracking (most acute on libstdc++) can exhaust the
  12900. // calling thread's stack on a long enough path for a quantified pattern;
  12901. // RegexMatcher must refuse to run regex matching on paths beyond
  12902. // CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH instead of invoking it.
  12903. detail::RegexMatcher matcher("/files/(.*)");
  12904. Request within_limit;
  12905. within_limit.path = "/files/" + std::string(10, 'A');
  12906. EXPECT_TRUE(matcher.match(within_limit));
  12907. Request over_limit;
  12908. over_limit.path =
  12909. "/files/" + std::string(CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH, 'A');
  12910. EXPECT_FALSE(matcher.match(over_limit));
  12911. }
  12912. TEST(RegexMatcherTest, ServerSurvivesOverlongPathOnRegexRoute) {
  12913. Server svr;
  12914. svr.Get(R"(/files/(.*))", [](const Request & /*req*/, Response &res) {
  12915. res.set_content("ok", "text/plain");
  12916. });
  12917. auto port = svr.bind_to_any_port(HOST);
  12918. auto thread = std::thread([&]() { svr.listen_after_bind(); });
  12919. auto se = detail::scope_exit([&] {
  12920. svr.stop();
  12921. thread.join();
  12922. ASSERT_FALSE(svr.is_running());
  12923. });
  12924. svr.wait_until_ready();
  12925. // Comfortably past CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH, well within the
  12926. // request URI limit; this used to be able to crash the process.
  12927. std::string path =
  12928. "/files/" + std::string(CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH * 4, 'A');
  12929. std::string req = "GET " + path +
  12930. " HTTP/1.1\r\n"
  12931. "Host: " +
  12932. std::string(HOST) + ":" + std::to_string(port) +
  12933. "\r\n"
  12934. "Connection: close\r\n"
  12935. "\r\n";
  12936. std::string response;
  12937. ASSERT_TRUE(send_request(5, req, &response, port));
  12938. EXPECT_NE(std::string::npos, response.find("404"));
  12939. }
  12940. TEST(RouteMatcherTest, LiteralPatternsAndRegexPatterns) {
  12941. Server svr;
  12942. auto handler = [](const Request & /*req*/, Response &res) {
  12943. res.set_content("hit", "text/plain");
  12944. };
  12945. // No regex metacharacter, so this one is compared literally
  12946. svr.Get("/literal/route", handler);
  12947. // '.' is a regex metacharacter, so this one must keep regex semantics
  12948. svr.Get("/a.c", handler);
  12949. auto port = svr.bind_to_any_port(HOST);
  12950. std::thread t([&]() { svr.listen_after_bind(); });
  12951. auto se = detail::scope_exit([&] {
  12952. svr.stop();
  12953. t.join();
  12954. ASSERT_FALSE(svr.is_running());
  12955. });
  12956. svr.wait_until_ready();
  12957. Client cli(HOST, port);
  12958. struct {
  12959. const char *path;
  12960. int status;
  12961. } cases[] = {
  12962. {"/literal/route", StatusCode::OK_200},
  12963. {"/literal/routes", StatusCode::NotFound_404},
  12964. {"/literal/rout", StatusCode::NotFound_404},
  12965. {"/abc", StatusCode::OK_200},
  12966. {"/a.c", StatusCode::OK_200},
  12967. };
  12968. for (const auto &x : cases) {
  12969. auto res = cli.Get(x.path);
  12970. ASSERT_TRUE(res) << x.path;
  12971. EXPECT_EQ(x.status, res->status) << x.path;
  12972. }
  12973. }
  12974. TEST(RouteMatcherTest, LongLiteralPatternIsNotSubjectToTheRegexPathLimit) {
  12975. // CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH exists to keep std::regex_match
  12976. // from exhausting the stack, so it must only constrain routes that actually
  12977. // run a regular expression. A literal route is matched by comparison and
  12978. // stays usable at any length.
  12979. Server svr;
  12980. const std::string pattern =
  12981. "/files/" + std::string(CPPHTTPLIB_REGEX_ROUTE_PATH_MAX_LENGTH * 2, 'a');
  12982. svr.Get(pattern, [](const Request & /*req*/, Response &res) {
  12983. res.set_content("hit", "text/plain");
  12984. });
  12985. auto port = svr.bind_to_any_port(HOST);
  12986. std::thread t([&]() { svr.listen_after_bind(); });
  12987. auto se = detail::scope_exit([&] {
  12988. svr.stop();
  12989. t.join();
  12990. ASSERT_FALSE(svr.is_running());
  12991. });
  12992. svr.wait_until_ready();
  12993. Client cli(HOST, port);
  12994. auto res = cli.Get(pattern);
  12995. ASSERT_TRUE(res);
  12996. EXPECT_EQ(StatusCode::OK_200, res->status);
  12997. }
  12998. TEST(ParseUrlTest, VariousPatterns) {
  12999. {
  13000. detail::UrlComponents uc;
  13001. ASSERT_TRUE(detail::parse_url("http://example.com:8080/path?q=1#frag", uc));
  13002. EXPECT_EQ("http", uc.scheme);
  13003. EXPECT_EQ("example.com", uc.host);
  13004. EXPECT_EQ("8080", uc.port);
  13005. EXPECT_EQ("/path", uc.path);
  13006. EXPECT_EQ("?q=1", uc.query);
  13007. }
  13008. {
  13009. detail::UrlComponents uc;
  13010. ASSERT_TRUE(detail::parse_url("https://example.com/path", uc));
  13011. EXPECT_EQ("https", uc.scheme);
  13012. EXPECT_EQ("example.com", uc.host);
  13013. EXPECT_TRUE(uc.port.empty());
  13014. EXPECT_EQ("/path", uc.path);
  13015. }
  13016. {
  13017. detail::UrlComponents uc;
  13018. ASSERT_TRUE(detail::parse_url("http://[::1]:8080/path", uc));
  13019. EXPECT_EQ("::1", uc.host);
  13020. EXPECT_EQ("8080", uc.port);
  13021. EXPECT_EQ("/path", uc.path);
  13022. }
  13023. {
  13024. detail::UrlComponents uc;
  13025. ASSERT_FALSE(detail::parse_url("http://[::1/path", uc));
  13026. }
  13027. {
  13028. // Bytes after the IPv6 literal must be a delimiter, not folded into
  13029. // the path while the connection still targets the bracketed host.
  13030. detail::UrlComponents uc;
  13031. ASSERT_FALSE(detail::parse_url("http://[::1]evil.com/", uc));
  13032. }
  13033. {
  13034. detail::UrlComponents uc;
  13035. ASSERT_FALSE(detail::parse_url("http://[::1]evil", uc));
  13036. }
  13037. {
  13038. detail::UrlComponents uc;
  13039. ASSERT_TRUE(detail::parse_url("http://[::1]/path", uc));
  13040. EXPECT_EQ("::1", uc.host);
  13041. EXPECT_TRUE(uc.port.empty());
  13042. EXPECT_EQ("/path", uc.path);
  13043. }
  13044. {
  13045. detail::UrlComponents uc;
  13046. ASSERT_TRUE(detail::parse_url("//example.com/path?q=1", uc));
  13047. EXPECT_TRUE(uc.scheme.empty());
  13048. EXPECT_EQ("example.com", uc.host);
  13049. EXPECT_EQ("/path", uc.path);
  13050. EXPECT_EQ("?q=1", uc.query);
  13051. }
  13052. {
  13053. detail::UrlComponents uc;
  13054. ASSERT_TRUE(detail::parse_url("/path?q=1", uc));
  13055. EXPECT_TRUE(uc.host.empty());
  13056. EXPECT_EQ("/path", uc.path);
  13057. EXPECT_EQ("?q=1", uc.query);
  13058. }
  13059. {
  13060. detail::UrlComponents uc;
  13061. ASSERT_TRUE(detail::parse_url("example.com:8080", uc));
  13062. EXPECT_EQ("example.com", uc.host);
  13063. EXPECT_EQ("8080", uc.port);
  13064. }
  13065. {
  13066. // Unix socket path — must not be parsed as host
  13067. detail::UrlComponents uc;
  13068. ASSERT_TRUE(detail::parse_url("./httplib-server.sock", uc));
  13069. EXPECT_TRUE(uc.host.empty());
  13070. }
  13071. {
  13072. detail::UrlComponents uc;
  13073. ASSERT_TRUE(detail::parse_url("", uc));
  13074. EXPECT_TRUE(uc.host.empty());
  13075. EXPECT_TRUE(uc.path.empty());
  13076. }
  13077. {
  13078. detail::UrlComponents uc;
  13079. ASSERT_FALSE(detail::parse_url("HTTP://example.com/path", uc));
  13080. }
  13081. {
  13082. detail::UrlComponents uc;
  13083. ASSERT_FALSE(detail::parse_url("h2://example.com/path", uc));
  13084. }
  13085. {
  13086. // Accepted by parse_url; callers restrict to http/https
  13087. detail::UrlComponents uc;
  13088. ASSERT_TRUE(detail::parse_url("ftp://example.com/", uc));
  13089. EXPECT_EQ("ftp", uc.scheme);
  13090. }
  13091. {
  13092. detail::UrlComponents uc;
  13093. ASSERT_FALSE(detail::parse_url("http://[::1<script>]/path", uc));
  13094. }
  13095. {
  13096. detail::UrlComponents uc;
  13097. ASSERT_FALSE(detail::parse_url("http://[]/path", uc));
  13098. }
  13099. }
  13100. TEST(ParseUrlTest, FragmentHandling) {
  13101. {
  13102. detail::UrlComponents uc;
  13103. ASSERT_TRUE(detail::parse_url("http://example.com/path#frag", uc));
  13104. EXPECT_EQ("/path", uc.path);
  13105. EXPECT_TRUE(uc.query.empty());
  13106. }
  13107. {
  13108. detail::UrlComponents uc;
  13109. ASSERT_TRUE(detail::parse_url("#frag", uc));
  13110. EXPECT_TRUE(uc.path.empty());
  13111. EXPECT_TRUE(uc.query.empty());
  13112. }
  13113. }
  13114. TEST(ParseUrlTest, UserinfoHandling) {
  13115. // Userinfo with @ but no colon — host includes @
  13116. detail::UrlComponents uc;
  13117. ASSERT_TRUE(detail::parse_url("http://user@host.com/path", uc));
  13118. EXPECT_EQ("user@host.com", uc.host);
  13119. EXPECT_EQ("/path", uc.path);
  13120. }
  13121. TEST(ParseUrlTest, IPv6EdgeCases) {
  13122. {
  13123. detail::UrlComponents uc;
  13124. ASSERT_TRUE(detail::parse_url("[::1]:8080", uc));
  13125. EXPECT_TRUE(uc.scheme.empty());
  13126. EXPECT_EQ("::1", uc.host);
  13127. EXPECT_EQ("8080", uc.port);
  13128. }
  13129. {
  13130. // Zone ID '%25' is not in [a-fA-F0-9:]
  13131. detail::UrlComponents uc;
  13132. ASSERT_FALSE(detail::parse_url("http://[fe80::1%25eth0]:443/path", uc));
  13133. }
  13134. }
  13135. TEST(ParseUrlTest, SchemeEdgeCases) {
  13136. {
  13137. detail::UrlComponents uc;
  13138. ASSERT_FALSE(detail::parse_url("://evil.com/path", uc));
  13139. }
  13140. {
  13141. detail::UrlComponents uc;
  13142. ASSERT_FALSE(detail::parse_url("ht-tp://evil.com/path", uc));
  13143. }
  13144. {
  13145. detail::UrlComponents uc;
  13146. ASSERT_FALSE(detail::parse_url("h.t://evil.com/path", uc));
  13147. }
  13148. }
  13149. TEST(ParseUrlTest, PortEdgeCases) {
  13150. {
  13151. detail::UrlComponents uc;
  13152. ASSERT_TRUE(detail::parse_url("http://example.com:/path", uc));
  13153. EXPECT_TRUE(uc.port.empty());
  13154. EXPECT_EQ("/path", uc.path);
  13155. }
  13156. {
  13157. // parse_url accepts any port string; validation is done by parse_port
  13158. detail::UrlComponents uc;
  13159. ASSERT_TRUE(detail::parse_url("http://example.com:abc/path", uc));
  13160. EXPECT_EQ("abc", uc.port);
  13161. }
  13162. }
  13163. TEST(ParseUrlTest, WebSocketPatterns) {
  13164. {
  13165. detail::UrlComponents uc;
  13166. ASSERT_TRUE(detail::parse_url("ws://echo.example.com:8080/ws", uc));
  13167. EXPECT_EQ("ws", uc.scheme);
  13168. EXPECT_EQ("echo.example.com", uc.host);
  13169. EXPECT_EQ("8080", uc.port);
  13170. EXPECT_EQ("/ws", uc.path);
  13171. }
  13172. {
  13173. detail::UrlComponents uc;
  13174. ASSERT_TRUE(detail::parse_url("wss://echo.example.com/ws", uc));
  13175. EXPECT_EQ("wss", uc.scheme);
  13176. EXPECT_EQ("echo.example.com", uc.host);
  13177. EXPECT_TRUE(uc.port.empty());
  13178. EXPECT_EQ("/ws", uc.path);
  13179. }
  13180. }
  13181. TEST(ParseUrlTest, QueryOnly) {
  13182. detail::UrlComponents uc;
  13183. ASSERT_TRUE(detail::parse_url("?q=1&r=2", uc));
  13184. EXPECT_TRUE(uc.host.empty());
  13185. EXPECT_TRUE(uc.path.empty());
  13186. EXPECT_EQ("?q=1&r=2", uc.query);
  13187. }
  13188. TEST(ParseUrlTest, SchemeRelativeWithPort) {
  13189. detail::UrlComponents uc;
  13190. ASSERT_TRUE(detail::parse_url("//example.com:443/path", uc));
  13191. EXPECT_TRUE(uc.scheme.empty());
  13192. EXPECT_EQ("example.com", uc.host);
  13193. EXPECT_EQ("443", uc.port);
  13194. EXPECT_EQ("/path", uc.path);
  13195. }
  13196. TEST(UniversalClientImplTest, Ipv6LiteralAddress) {
  13197. // If ipv6 regex working, regex match codepath is taken.
  13198. // else port will default to 80 in Client impl
  13199. int clientImplMagicPort = 80;
  13200. int port = 4321;
  13201. // above ports must be different to avoid false negative
  13202. EXPECT_NE(clientImplMagicPort, port);
  13203. std::string ipV6TestURL = "http://[ff06::c3]";
  13204. Client cli(ipV6TestURL + ":" + std::to_string(port), CLIENT_CERT_FILE,
  13205. CLIENT_PRIVATE_KEY_FILE);
  13206. EXPECT_EQ(cli.port(), port);
  13207. }
  13208. TEST(FileSystemTest, FileAndDirExistenceCheck) {
  13209. auto file_path = "./www/dir/index.html";
  13210. auto dir_path = "./www/dir";
  13211. detail::FileStat stat_file(file_path);
  13212. EXPECT_TRUE(stat_file.is_file());
  13213. EXPECT_FALSE(stat_file.is_dir());
  13214. detail::FileStat stat_dir(dir_path);
  13215. EXPECT_FALSE(stat_dir.is_file());
  13216. EXPECT_TRUE(stat_dir.is_dir());
  13217. }
  13218. TEST(MakeHostAndPortStringTest, VariousPatterns) {
  13219. // IPv4 with default HTTP port (80)
  13220. EXPECT_EQ("example.com",
  13221. detail::make_host_and_port_string("example.com", 80, false));
  13222. // IPv4 with default HTTPS port (443)
  13223. EXPECT_EQ("example.com",
  13224. detail::make_host_and_port_string("example.com", 443, true));
  13225. // IPv4 with non-default HTTP port
  13226. EXPECT_EQ("example.com:8080",
  13227. detail::make_host_and_port_string("example.com", 8080, false));
  13228. // IPv4 with non-default HTTPS port
  13229. EXPECT_EQ("example.com:8443",
  13230. detail::make_host_and_port_string("example.com", 8443, true));
  13231. // IPv6 with default HTTP port (80)
  13232. EXPECT_EQ("[::1]", detail::make_host_and_port_string("::1", 80, false));
  13233. // IPv6 with default HTTPS port (443)
  13234. EXPECT_EQ("[::1]", detail::make_host_and_port_string("::1", 443, true));
  13235. // IPv6 with non-default HTTP port
  13236. EXPECT_EQ("[::1]:8080",
  13237. detail::make_host_and_port_string("::1", 8080, false));
  13238. // IPv6 with non-default HTTPS port
  13239. EXPECT_EQ("[::1]:8443", detail::make_host_and_port_string("::1", 8443, true));
  13240. // IPv6 full address with default port
  13241. EXPECT_EQ("[2001:0db8:85a3:0000:0000:8a2e:0370:7334]",
  13242. detail::make_host_and_port_string(
  13243. "2001:0db8:85a3:0000:0000:8a2e:0370:7334", 443, true));
  13244. // IPv6 full address with non-default port
  13245. EXPECT_EQ("[2001:0db8:85a3:0000:0000:8a2e:0370:7334]:9000",
  13246. detail::make_host_and_port_string(
  13247. "2001:0db8:85a3:0000:0000:8a2e:0370:7334", 9000, false));
  13248. // IPv6 localhost with non-default port
  13249. EXPECT_EQ("[::1]:3000",
  13250. detail::make_host_and_port_string("::1", 3000, false));
  13251. // IPv6 with zone ID (link-local address) with default port
  13252. EXPECT_EQ("[fe80::1%eth0]",
  13253. detail::make_host_and_port_string("fe80::1%eth0", 80, false));
  13254. // IPv6 with zone ID (link-local address) with non-default port
  13255. EXPECT_EQ("[fe80::1%eth0]:8080",
  13256. detail::make_host_and_port_string("fe80::1%eth0", 8080, false));
  13257. // Edge case: Port 443 with is_ssl=false (should add port)
  13258. EXPECT_EQ("example.com:443",
  13259. detail::make_host_and_port_string("example.com", 443, false));
  13260. // Edge case: Port 80 with is_ssl=true (should add port)
  13261. EXPECT_EQ("example.com:80",
  13262. detail::make_host_and_port_string("example.com", 80, true));
  13263. // IPv6 edge case: Port 443 with is_ssl=false (should add port)
  13264. EXPECT_EQ("[::1]:443", detail::make_host_and_port_string("::1", 443, false));
  13265. // IPv6 edge case: Port 80 with is_ssl=true (should add port)
  13266. EXPECT_EQ("[::1]:80", detail::make_host_and_port_string("::1", 80, true));
  13267. // Security fix: Already bracketed IPv6 should not get double brackets
  13268. EXPECT_EQ("[::1]", detail::make_host_and_port_string("[::1]", 80, false));
  13269. EXPECT_EQ("[::1]", detail::make_host_and_port_string("[::1]", 443, true));
  13270. EXPECT_EQ("[::1]:8080",
  13271. detail::make_host_and_port_string("[::1]", 8080, false));
  13272. EXPECT_EQ("[2001:db8::1]:8080",
  13273. detail::make_host_and_port_string("[2001:db8::1]", 8080, false));
  13274. EXPECT_EQ("[fe80::1%eth0]",
  13275. detail::make_host_and_port_string("[fe80::1%eth0]", 80, false));
  13276. EXPECT_EQ("[fe80::1%eth0]:8080",
  13277. detail::make_host_and_port_string("[fe80::1%eth0]", 8080, false));
  13278. // Edge case: Empty host (should return as-is)
  13279. EXPECT_EQ("", detail::make_host_and_port_string("", 80, false));
  13280. // Edge case: Colon in hostname (non-IPv6) - will be treated as IPv6
  13281. // This is a known limitation but shouldn't crash
  13282. EXPECT_EQ("[host:name]",
  13283. detail::make_host_and_port_string("host:name", 80, false));
  13284. // Port number edge cases (no validation, but should not crash)
  13285. EXPECT_EQ("example.com:0",
  13286. detail::make_host_and_port_string("example.com", 0, false));
  13287. EXPECT_EQ("example.com:-1",
  13288. detail::make_host_and_port_string("example.com", -1, false));
  13289. EXPECT_EQ("example.com:65535",
  13290. detail::make_host_and_port_string("example.com", 65535, false));
  13291. EXPECT_EQ("example.com:65536",
  13292. detail::make_host_and_port_string("example.com", 65536, false));
  13293. }
  13294. #ifdef CPPHTTPLIB_SSL_ENABLED
  13295. TEST(SSLClientHostHeaderTest, Issue2301_Online) {
  13296. httplib::SSLClient cli("roblox.com", 443);
  13297. cli.set_follow_location(true);
  13298. auto res = cli.Get("/");
  13299. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  13300. EXPECT_EQ(StatusCode::OK_200, res->status);
  13301. }
  13302. #endif
  13303. TEST(DirtyDataRequestTest, HeadFieldValueContains_CR_LF_NUL) {
  13304. Server svr;
  13305. svr.Get("/test", [&](const Request & /*req*/, Response &res) {
  13306. EXPECT_EQ(res.status, 400);
  13307. });
  13308. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  13309. auto se = detail::scope_exit([&] {
  13310. svr.stop();
  13311. thread.join();
  13312. ASSERT_FALSE(svr.is_running());
  13313. });
  13314. svr.wait_until_ready();
  13315. Client cli(HOST, PORT);
  13316. cli.Get("/test", Headers{{"Test", "_\n\r_\n\r_"}});
  13317. }
  13318. TEST(InvalidHeaderCharsTest, is_field_name) {
  13319. EXPECT_TRUE(detail::fields::is_field_name("exampleToken"));
  13320. EXPECT_TRUE(detail::fields::is_field_name("token123"));
  13321. EXPECT_TRUE(detail::fields::is_field_name("!#$%&'*+-.^_`|~"));
  13322. EXPECT_FALSE(detail::fields::is_field_name("example token"));
  13323. EXPECT_FALSE(detail::fields::is_field_name(" example_token"));
  13324. EXPECT_FALSE(detail::fields::is_field_name("example_token "));
  13325. EXPECT_FALSE(detail::fields::is_field_name("token@123"));
  13326. EXPECT_FALSE(detail::fields::is_field_name(""));
  13327. EXPECT_FALSE(detail::fields::is_field_name("example\rtoken"));
  13328. EXPECT_FALSE(detail::fields::is_field_name("example\ntoken"));
  13329. EXPECT_FALSE(detail::fields::is_field_name(std::string("\0", 1)));
  13330. EXPECT_FALSE(detail::fields::is_field_name("example\ttoken"));
  13331. }
  13332. TEST(InvalidHeaderCharsTest, is_field_value) {
  13333. EXPECT_TRUE(detail::fields::is_field_value("exampleToken"));
  13334. EXPECT_TRUE(detail::fields::is_field_value("token123"));
  13335. EXPECT_TRUE(detail::fields::is_field_value("!#$%&'*+-.^_`|~"));
  13336. EXPECT_TRUE(detail::fields::is_field_value("example token"));
  13337. EXPECT_FALSE(detail::fields::is_field_value(" example_token"));
  13338. EXPECT_FALSE(detail::fields::is_field_value("example_token "));
  13339. EXPECT_TRUE(detail::fields::is_field_value("token@123"));
  13340. EXPECT_TRUE(detail::fields::is_field_value(""));
  13341. EXPECT_FALSE(detail::fields::is_field_value("example\rtoken"));
  13342. EXPECT_FALSE(detail::fields::is_field_value("example\ntoken"));
  13343. EXPECT_FALSE(detail::fields::is_field_value(std::string("\0", 1)));
  13344. EXPECT_TRUE(detail::fields::is_field_value("example\ttoken"));
  13345. EXPECT_TRUE(detail::fields::is_field_value("0"));
  13346. }
  13347. TEST(InvalidHeaderCharsTest, OnServer) {
  13348. Server svr;
  13349. svr.Get("/test_name", [&](const Request &req, Response &res) {
  13350. std::string header = "Not Set";
  13351. if (req.has_param("header")) { header = req.get_param_value("header"); }
  13352. res.set_header(header, "value");
  13353. res.set_content("Page Content Page Content", "text/plain");
  13354. });
  13355. svr.Get("/test_value", [&](const Request &req, Response &res) {
  13356. std::string header = "Not Set";
  13357. if (req.has_param("header")) { header = req.get_param_value("header"); }
  13358. res.set_header("X-Test", header);
  13359. res.set_content("Page Content Page Content", "text/plain");
  13360. });
  13361. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  13362. auto se = detail::scope_exit([&] {
  13363. svr.stop();
  13364. thread.join();
  13365. ASSERT_FALSE(svr.is_running());
  13366. });
  13367. svr.wait_until_ready();
  13368. Client cli(HOST, PORT);
  13369. {
  13370. auto res = cli.Get(
  13371. R"(/test_name?header=Value%00%0d%0aHEADER_KEY%3aHEADER_VALUE%0d%0a%0d%0aBODY_BODY_BODY)");
  13372. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  13373. EXPECT_EQ("Page Content Page Content", res->body);
  13374. EXPECT_FALSE(res->has_header("HEADER_KEY"));
  13375. }
  13376. {
  13377. auto res = cli.Get(
  13378. R"(/test_value?header=Value%00%0d%0aHEADER_KEY%3aHEADER_VALUE%0d%0a%0d%0aBODY_BODY_BODY)");
  13379. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  13380. EXPECT_EQ("Page Content Page Content", res->body);
  13381. EXPECT_FALSE(res->has_header("HEADER_KEY"));
  13382. }
  13383. }
  13384. TEST(InvalidHeaderValueTest, InvalidContentLength) {
  13385. auto handled = false;
  13386. Server svr;
  13387. svr.Post("/test", [&](const Request &, Response &) { handled = true; });
  13388. thread t = thread([&] { svr.listen(HOST, PORT); });
  13389. auto se = detail::scope_exit([&] {
  13390. svr.stop();
  13391. t.join();
  13392. ASSERT_FALSE(svr.is_running());
  13393. ASSERT_FALSE(handled);
  13394. });
  13395. svr.wait_until_ready();
  13396. auto req = "POST /test HTTP/1.1\r\n"
  13397. "Content-Length: x\r\n"
  13398. "\r\n";
  13399. std::string response;
  13400. ASSERT_TRUE(send_request(1, req, &response));
  13401. ASSERT_EQ("HTTP/1.1 400 Bad Request",
  13402. response.substr(0, response.find("\r\n")));
  13403. }
  13404. #ifndef _WIN32
  13405. TEST(Expect100ContinueTest, ServerClosesConnection) {
  13406. static constexpr char reject[] = "Unauthorized";
  13407. static constexpr char accept[] = "Upload accepted";
  13408. constexpr size_t total_size = 10 * 1024 * 1024 * 1024ULL;
  13409. Server svr;
  13410. svr.set_expect_100_continue_handler(
  13411. [](const Request & /*req*/, Response &res) {
  13412. res.status = StatusCode::Unauthorized_401;
  13413. res.set_content(reject, "text/plain");
  13414. return res.status;
  13415. });
  13416. svr.Post("/", [&](const Request & /*req*/, Response &res) {
  13417. res.set_content(accept, "text/plain");
  13418. });
  13419. auto thread = std::thread([&]() { svr.listen(HOST, PORT); });
  13420. auto se = detail::scope_exit([&] {
  13421. svr.stop();
  13422. thread.join();
  13423. ASSERT_FALSE(svr.is_running());
  13424. });
  13425. svr.wait_until_ready();
  13426. {
  13427. const auto curl = std::unique_ptr<CURL, decltype(&curl_easy_cleanup)>{
  13428. curl_easy_init(), &curl_easy_cleanup};
  13429. ASSERT_NE(curl, nullptr);
  13430. curl_easy_setopt(curl.get(), CURLOPT_URL, HOST);
  13431. curl_easy_setopt(curl.get(), CURLOPT_PORT, PORT);
  13432. curl_easy_setopt(curl.get(), CURLOPT_POST, 1L);
  13433. auto list = std::unique_ptr<curl_slist, decltype(&curl_slist_free_all)>{
  13434. curl_slist_append(nullptr, "Content-Type: application/octet-stream"),
  13435. &curl_slist_free_all};
  13436. ASSERT_NE(list, nullptr);
  13437. curl_easy_setopt(curl.get(), CURLOPT_HTTPHEADER, list.get());
  13438. struct read_data {
  13439. size_t read_size;
  13440. size_t total_size;
  13441. } data = {0, total_size};
  13442. using read_callback_t =
  13443. size_t (*)(char *ptr, size_t size, size_t nmemb, void *userdata);
  13444. read_callback_t read_callback = [](char *ptr, size_t size, size_t nmemb,
  13445. void *userdata) -> size_t {
  13446. read_data *d = (read_data *)userdata;
  13447. if (!userdata || d->read_size >= d->total_size) { return 0; }
  13448. std::fill_n(ptr, size * nmemb, 'A');
  13449. d->read_size += size * nmemb;
  13450. return size * nmemb;
  13451. };
  13452. curl_easy_setopt(curl.get(), CURLOPT_READDATA, data);
  13453. curl_easy_setopt(curl.get(), CURLOPT_READFUNCTION, read_callback);
  13454. std::vector<char> buffer;
  13455. curl_easy_setopt(curl.get(), CURLOPT_WRITEDATA, &buffer);
  13456. using write_callback_t =
  13457. size_t (*)(char *ptr, size_t size, size_t nmemb, void *userdata);
  13458. write_callback_t write_callback = [](char *ptr, size_t size, size_t nmemb,
  13459. void *userdata) -> size_t {
  13460. std::vector<char> *buf = (std::vector<char> *)userdata;
  13461. buf->reserve(buf->size() + size * nmemb + 1);
  13462. buf->insert(buf->end(), (char *)ptr, (char *)ptr + size * nmemb);
  13463. return size * nmemb;
  13464. };
  13465. curl_easy_setopt(curl.get(), CURLOPT_WRITEFUNCTION, write_callback);
  13466. {
  13467. const auto res = curl_easy_perform(curl.get());
  13468. ASSERT_EQ(res, CURLE_OK);
  13469. }
  13470. {
  13471. auto response_code = long{};
  13472. const auto res =
  13473. curl_easy_getinfo(curl.get(), CURLINFO_RESPONSE_CODE, &response_code);
  13474. ASSERT_EQ(res, CURLE_OK);
  13475. ASSERT_EQ(response_code, StatusCode::Unauthorized_401);
  13476. }
  13477. {
  13478. auto dl = curl_off_t{};
  13479. const auto res =
  13480. curl_easy_getinfo(curl.get(), CURLINFO_SIZE_DOWNLOAD_T, &dl);
  13481. ASSERT_EQ(res, CURLE_OK);
  13482. ASSERT_EQ(dl, (curl_off_t)sizeof reject - 1);
  13483. }
  13484. {
  13485. buffer.push_back('\0');
  13486. ASSERT_STRCASEEQ(buffer.data(), reject);
  13487. }
  13488. }
  13489. }
  13490. #endif
  13491. #if defined(CPPHTTPLIB_OPENSSL_SUPPORT) && !defined(_WIN32)
  13492. // Regression test for #2458.
  13493. //
  13494. // A large request body (>= CPPHTTPLIB_EXPECT_100_THRESHOLD) makes the client
  13495. // auto-add `Expect: 100-continue`. Over TLS, the server's TLS 1.3 session
  13496. // ticket can make the client socket spuriously readable during the
  13497. // 100-continue wait. If the readiness is mistaken for an incoming response,
  13498. // the client withholds the body and then blocks reading a response that never
  13499. // comes, failing with `Failed to read connection`.
  13500. //
  13501. // A correct client (like curl) sends the body once no `100 Continue` arrives
  13502. // within the timeout. This raw OpenSSL server deliberately never sends
  13503. // `100 Continue`; the client must still deliver the body and receive 200.
  13504. TEST(Expect100ContinueTest, TLSServerOmits100Continue) {
  13505. signal(SIGPIPE, SIG_IGN);
  13506. const auto port = PORT + 4;
  13507. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  13508. ASSERT_NE(srv, INVALID_SOCKET);
  13509. int opt = 1;
  13510. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR, &opt, sizeof(opt));
  13511. sockaddr_in addr{};
  13512. addr.sin_family = AF_INET;
  13513. addr.sin_port = htons(static_cast<uint16_t>(port));
  13514. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  13515. ASSERT_EQ(0, ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr)));
  13516. ASSERT_EQ(0, ::listen(srv, 1));
  13517. std::atomic<size_t> server_body_bytes{0};
  13518. auto server_thread = std::thread([&] {
  13519. sockaddr_in cli_addr{};
  13520. socklen_t cli_len = sizeof(cli_addr);
  13521. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  13522. if (cli == INVALID_SOCKET) { return; }
  13523. // Bound the lifetime of the server side so a buggy client (which never
  13524. // sends the body) cannot make this thread block forever on join.
  13525. detail::set_socket_opt_time(cli, SOL_SOCKET, SO_RCVTIMEO, 4, 0);
  13526. SSL_CTX *ctx = SSL_CTX_new(TLS_server_method());
  13527. SSL_CTX_set_min_proto_version(ctx, TLS1_3_VERSION);
  13528. SSL_CTX_use_certificate_file(ctx, SERVER_CERT_FILE, SSL_FILETYPE_PEM);
  13529. SSL_CTX_use_PrivateKey_file(ctx, SERVER_PRIVATE_KEY_FILE, SSL_FILETYPE_PEM);
  13530. SSL *ssl = SSL_new(ctx);
  13531. SSL_set_fd(ssl, static_cast<int>(cli));
  13532. if (SSL_accept(ssl) > 0) {
  13533. // Read the request headers. Reading here also flushes the TLS 1.3
  13534. // session tickets to the client. Deliberately do NOT send
  13535. // `100 Continue`.
  13536. std::string buf;
  13537. char tmp[1024];
  13538. while (buf.find("\r\n\r\n") == std::string::npos) {
  13539. auto n = SSL_read(ssl, tmp, sizeof(tmp));
  13540. if (n <= 0) { break; }
  13541. buf.append(tmp, static_cast<size_t>(n));
  13542. }
  13543. // A correct client sends the body now; count what arrives.
  13544. auto pos = buf.find("\r\n\r\n");
  13545. size_t body = (pos == std::string::npos) ? 0 : buf.size() - (pos + 4);
  13546. while (body < 4096) {
  13547. auto n = SSL_read(ssl, tmp, sizeof(tmp));
  13548. if (n <= 0) { break; }
  13549. body += static_cast<size_t>(n);
  13550. }
  13551. server_body_bytes = body;
  13552. std::string resp = "HTTP/1.1 200 OK\r\nContent-Length: 2\r\n\r\nok";
  13553. SSL_write(ssl, resp.data(), static_cast<int>(resp.size()));
  13554. SSL_shutdown(ssl);
  13555. }
  13556. SSL_free(ssl);
  13557. detail::close_socket(cli);
  13558. SSL_CTX_free(ctx);
  13559. });
  13560. auto se = detail::scope_exit([&] {
  13561. server_thread.join();
  13562. detail::close_socket(srv);
  13563. });
  13564. SSLClient cli("127.0.0.1", port);
  13565. cli.enable_server_certificate_verification(false);
  13566. cli.set_connection_timeout(5, 0);
  13567. cli.set_read_timeout(3, 0); // short, so a hang surfaces quickly
  13568. // Body larger than CPPHTTPLIB_EXPECT_100_THRESHOLD (1024) -> auto Expect.
  13569. std::string body(4096, 'A');
  13570. auto res = cli.Put("/api/test", body, "application/json");
  13571. ASSERT_TRUE(res) << "request failed: " << to_string(res.error());
  13572. EXPECT_EQ(StatusCode::OK_200, res->status);
  13573. EXPECT_EQ(body.size(), server_body_bytes.load());
  13574. }
  13575. #endif
  13576. template <typename S, typename C>
  13577. inline void max_timeout_test(S &svr, C &cli, time_t timeout, time_t threshold) {
  13578. svr.Get("/stream", [&](const Request &, Response &res) {
  13579. auto data = new std::string("01234567890123456789");
  13580. res.set_content_provider(
  13581. data->size(), "text/plain",
  13582. [&, data](size_t offset, size_t length, DataSink &sink) {
  13583. const size_t DATA_CHUNK_SIZE = 4;
  13584. const auto &d = *data;
  13585. std::this_thread::sleep_for(std::chrono::seconds(1));
  13586. sink.write(&d[offset], std::min(length, DATA_CHUNK_SIZE));
  13587. return true;
  13588. },
  13589. [data](bool success) {
  13590. EXPECT_FALSE(success);
  13591. delete data;
  13592. });
  13593. });
  13594. svr.Get("/stream_without_length", [&](const Request &, Response &res) {
  13595. auto i = new size_t(0);
  13596. res.set_content_provider(
  13597. "text/plain",
  13598. [i](size_t, DataSink &sink) {
  13599. if (*i < 5) {
  13600. std::this_thread::sleep_for(std::chrono::seconds(1));
  13601. sink.write("abcd", 4);
  13602. (*i)++;
  13603. } else {
  13604. sink.done();
  13605. }
  13606. return true;
  13607. },
  13608. [i](bool success) {
  13609. EXPECT_FALSE(success);
  13610. delete i;
  13611. });
  13612. });
  13613. svr.Get("/chunked", [&](const Request &, Response &res) {
  13614. auto i = new size_t(0);
  13615. res.set_chunked_content_provider(
  13616. "text/plain",
  13617. [i](size_t, DataSink &sink) {
  13618. if (*i < 5) {
  13619. std::this_thread::sleep_for(std::chrono::seconds(1));
  13620. sink.os << "abcd";
  13621. (*i)++;
  13622. } else {
  13623. sink.done();
  13624. }
  13625. return true;
  13626. },
  13627. [i](bool success) {
  13628. EXPECT_FALSE(success);
  13629. delete i;
  13630. });
  13631. });
  13632. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  13633. auto se = detail::scope_exit([&] {
  13634. svr.stop();
  13635. listen_thread.join();
  13636. ASSERT_FALSE(svr.is_running());
  13637. });
  13638. svr.wait_until_ready();
  13639. cli.set_max_timeout(std::chrono::milliseconds(timeout));
  13640. {
  13641. auto start = std::chrono::steady_clock::now();
  13642. auto res = cli.Get("/stream");
  13643. auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
  13644. std::chrono::steady_clock::now() - start)
  13645. .count();
  13646. ASSERT_FALSE(res);
  13647. EXPECT_EQ(Error::Read, res.error());
  13648. EXPECT_TRUE(timeout <= elapsed && elapsed < timeout + threshold)
  13649. << "Timeout exceeded by " << (elapsed - timeout) << "ms";
  13650. }
  13651. {
  13652. auto start = std::chrono::steady_clock::now();
  13653. auto res = cli.Get("/stream_without_length");
  13654. auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
  13655. std::chrono::steady_clock::now() - start)
  13656. .count();
  13657. ASSERT_FALSE(res);
  13658. EXPECT_EQ(Error::Read, res.error());
  13659. EXPECT_TRUE(timeout <= elapsed && elapsed < timeout + threshold)
  13660. << "Timeout exceeded by " << (elapsed - timeout) << "ms";
  13661. }
  13662. {
  13663. auto start = std::chrono::steady_clock::now();
  13664. auto res = cli.Get("/chunked", [&](const char *data, size_t data_length) {
  13665. EXPECT_EQ("abcd", string(data, data_length));
  13666. return true;
  13667. });
  13668. auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
  13669. std::chrono::steady_clock::now() - start)
  13670. .count();
  13671. ASSERT_FALSE(res);
  13672. EXPECT_EQ(Error::Read, res.error());
  13673. EXPECT_TRUE(timeout <= elapsed && elapsed < timeout + threshold)
  13674. << "Timeout exceeded by " << (elapsed - timeout) << "ms";
  13675. }
  13676. }
  13677. TEST(MaxTimeoutTest, ContentStream) {
  13678. time_t timeout = 2000;
  13679. time_t threshold = 200;
  13680. Server svr;
  13681. Client cli("localhost", PORT);
  13682. max_timeout_test(svr, cli, timeout, threshold);
  13683. }
  13684. #ifdef CPPHTTPLIB_SSL_ENABLED
  13685. TEST(MaxTimeoutTest, ContentStreamSSL) {
  13686. time_t timeout = 2000;
  13687. time_t threshold = 1200; // SSL_shutdown is slow on some operating systems.
  13688. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  13689. SSLClient cli("localhost", PORT);
  13690. cli.enable_server_certificate_verification(false);
  13691. max_timeout_test(svr, cli, timeout, threshold);
  13692. }
  13693. #endif
  13694. class EventDispatcher {
  13695. public:
  13696. EventDispatcher() {}
  13697. bool wait_event(DataSink *sink) {
  13698. unique_lock<mutex> lk(m_);
  13699. int id = id_;
  13700. // Wait with timeout to prevent hanging if client disconnects
  13701. if (!cv_.wait_for(lk, std::chrono::seconds(5),
  13702. [&] { return cid_ == id; })) {
  13703. return false; // Timeout occurred
  13704. }
  13705. sink->write(message_.data(), message_.size());
  13706. return true;
  13707. }
  13708. void send_event(const string &message) {
  13709. lock_guard<mutex> lk(m_);
  13710. cid_ = id_++;
  13711. message_ = message;
  13712. cv_.notify_all();
  13713. }
  13714. private:
  13715. mutex m_;
  13716. condition_variable cv_;
  13717. atomic_int id_{0};
  13718. atomic_int cid_{-1};
  13719. string message_;
  13720. };
  13721. TEST(ClientInThreadTest, Issue2068) {
  13722. EventDispatcher ed;
  13723. Server svr;
  13724. svr.Get("/event1", [&](const Request & /*req*/, Response &res) {
  13725. res.set_chunked_content_provider("text/event-stream",
  13726. [&](size_t /*offset*/, DataSink &sink) {
  13727. return ed.wait_event(&sink);
  13728. });
  13729. });
  13730. auto listen_thread = std::thread([&svr]() { svr.listen(HOST, PORT); });
  13731. svr.wait_until_ready();
  13732. thread event_thread([&] {
  13733. int id = 0;
  13734. while (svr.is_running()) {
  13735. this_thread::sleep_for(chrono::milliseconds(500));
  13736. std::stringstream ss;
  13737. ss << "data: " << id << "\n\n";
  13738. ed.send_event(ss.str());
  13739. id++;
  13740. }
  13741. });
  13742. auto se = detail::scope_exit([&] {
  13743. svr.stop();
  13744. listen_thread.join();
  13745. event_thread.join();
  13746. ASSERT_FALSE(svr.is_running());
  13747. });
  13748. {
  13749. auto client = detail::make_unique<Client>(HOST, PORT);
  13750. client->set_read_timeout(std::chrono::minutes(10));
  13751. std::atomic<bool> stop{false};
  13752. std::thread t([&] {
  13753. client->Get("/event1",
  13754. [&](const char *, size_t) -> bool { return !stop; });
  13755. });
  13756. std::this_thread::sleep_for(std::chrono::seconds(2));
  13757. stop = true;
  13758. client->stop();
  13759. t.join();
  13760. // Reset client after thread has finished
  13761. client.reset();
  13762. }
  13763. }
  13764. TEST(RequestSmugglingTest, DuplicateContentLengthDifferentValues) {
  13765. auto handled = false;
  13766. Server svr;
  13767. svr.Post("/test", [&](const Request &, Response &) { handled = true; });
  13768. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13769. auto se = detail::scope_exit([&] {
  13770. svr.stop();
  13771. t.join();
  13772. ASSERT_FALSE(svr.is_running());
  13773. ASSERT_FALSE(handled);
  13774. });
  13775. svr.wait_until_ready();
  13776. // Two Content-Length headers with different values — must be rejected
  13777. auto req = "POST /test HTTP/1.1\r\n"
  13778. "Content-Length: 5\r\n"
  13779. "Content-Length: 10\r\n"
  13780. "\r\n"
  13781. "hello";
  13782. std::string response;
  13783. ASSERT_TRUE(send_request(1, req, &response));
  13784. ASSERT_EQ("HTTP/1.1 400 Bad Request",
  13785. response.substr(0, response.find("\r\n")));
  13786. }
  13787. TEST(RequestSmugglingTest, DuplicateContentLengthSameValues) {
  13788. auto handled = false;
  13789. Server svr;
  13790. svr.Post("/test", [&](const Request &, Response &res) {
  13791. handled = true;
  13792. res.set_content("ok", "text/plain");
  13793. });
  13794. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13795. auto se = detail::scope_exit([&] {
  13796. svr.stop();
  13797. t.join();
  13798. ASSERT_FALSE(svr.is_running());
  13799. ASSERT_TRUE(handled);
  13800. });
  13801. svr.wait_until_ready();
  13802. // Two Content-Length headers with same value — should be accepted (RFC 9110)
  13803. auto req = "POST /test HTTP/1.1\r\n"
  13804. "Content-Length: 5\r\n"
  13805. "Content-Length: 5\r\n"
  13806. "\r\n"
  13807. "hello";
  13808. std::string response;
  13809. ASSERT_TRUE(send_request(1, req, &response));
  13810. ASSERT_EQ("HTTP/1.1 200 OK", response.substr(0, response.find("\r\n")));
  13811. }
  13812. TEST(HeaderSmugglingTest, ChunkedTrailerHeadersMerged) {
  13813. Server svr;
  13814. svr.Get("/", [](const Request &req, Response &res) {
  13815. EXPECT_EQ(2U, req.trailers.size());
  13816. EXPECT_FALSE(req.has_trailer("[invalid key...]"));
  13817. // Denied
  13818. EXPECT_FALSE(req.has_trailer("Content-Length"));
  13819. EXPECT_FALSE(req.has_trailer("X-Forwarded-For"));
  13820. // Accepted
  13821. EXPECT_TRUE(req.has_trailer("X-Hello"));
  13822. EXPECT_EQ(req.get_trailer_value("X-Hello"), "hello");
  13823. EXPECT_TRUE(req.has_trailer("X-World"));
  13824. EXPECT_EQ(req.get_trailer_value("X-World"), "world");
  13825. res.set_content("ok", "text/plain");
  13826. });
  13827. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13828. auto se = detail::scope_exit([&] {
  13829. svr.stop();
  13830. t.join();
  13831. ASSERT_FALSE(svr.is_running());
  13832. });
  13833. svr.wait_until_ready();
  13834. const std::string req = "GET / HTTP/1.1\r\n"
  13835. "Transfer-Encoding: chunked\r\n"
  13836. "Trailer: X-Hello, X-World, X-AAA, X-BBB\r\n"
  13837. "\r\n"
  13838. "0\r\n"
  13839. "Content-Length: 10\r\n"
  13840. "Host: internal.local\r\n"
  13841. "Content-Type: malicious/content\r\n"
  13842. "Cookie: any\r\n"
  13843. "Set-Cookie: any\r\n"
  13844. "X-Forwarded-For: attacker.com\r\n"
  13845. "X-Real-Ip: 1.1.1.1\r\n"
  13846. "X-Hello: hello\r\n"
  13847. "X-World: world\r\n"
  13848. "\r\n";
  13849. std::string res;
  13850. ASSERT_TRUE(send_request(1, req, &res));
  13851. }
  13852. // RFC 9110 Section 5.2 and 5.3: a comma-separated list field may be sent as
  13853. // several field lines, and the combined value is what has to be parsed. A
  13854. // Trailer field split across lines therefore declares every name it lists;
  13855. // reading only the first line silently drops the trailers the later lines
  13856. // declare. The prohibited-trailer filter still applies to every line.
  13857. TEST(HeaderSmugglingTest, DuplicateTrailerFieldLinesDeclareAllTrailers) {
  13858. Server svr;
  13859. size_t observed_trailer_count = 0;
  13860. std::string observed_hello;
  13861. std::string observed_world;
  13862. bool observed_content_length = true;
  13863. svr.Get("/", [&](const Request &req, Response &res) {
  13864. observed_trailer_count = req.trailers.size();
  13865. observed_hello = req.get_trailer_value("X-Hello");
  13866. observed_world = req.get_trailer_value("X-World");
  13867. observed_content_length = req.has_trailer("Content-Length");
  13868. res.set_content("ok", "text/plain");
  13869. });
  13870. auto port = svr.bind_to_any_port(HOST);
  13871. thread t = thread([&]() { svr.listen_after_bind(); });
  13872. auto se = detail::scope_exit([&] {
  13873. svr.stop();
  13874. t.join();
  13875. ASSERT_FALSE(svr.is_running());
  13876. });
  13877. svr.wait_until_ready();
  13878. const std::string req = "GET / HTTP/1.1\r\n"
  13879. "Transfer-Encoding: chunked\r\n"
  13880. "Trailer: X-Hello\r\n"
  13881. "Trailer: X-World, Content-Length\r\n"
  13882. "\r\n"
  13883. "0\r\n"
  13884. "X-Hello: hello\r\n"
  13885. "X-World: world\r\n"
  13886. "Content-Length: 10\r\n"
  13887. "\r\n";
  13888. std::string res;
  13889. ASSERT_TRUE(send_request(1, req, &res, port));
  13890. EXPECT_EQ("HTTP/1.1 200 OK", res.substr(0, 15));
  13891. // Accepted: both field lines contribute to the declared set
  13892. EXPECT_EQ(2U, observed_trailer_count);
  13893. EXPECT_EQ(observed_hello, "hello");
  13894. EXPECT_EQ(observed_world, "world");
  13895. // Denied: a prohibited name stays prohibited on a later field line
  13896. EXPECT_FALSE(observed_content_length);
  13897. }
  13898. // A direct client that is not listed in trusted_proxies must not be able to
  13899. // spoof req.remote_addr by sending an arbitrary X-Forwarded-For header. Only
  13900. // the peer address on the actual TCP connection determines whether the
  13901. // header is honored.
  13902. TEST(ForwardedHeadersTest, UntrustedDirectClientCannotSpoofXFF) {
  13903. Server svr;
  13904. // Deliberately does NOT include the loopback address the test client
  13905. // actually connects from, so the direct connection is not a trusted proxy.
  13906. svr.set_trusted_proxies({"203.0.113.66"});
  13907. std::string observed_remote_addr;
  13908. svr.Get("/ip", [&](const Request &req, Response &res) {
  13909. observed_remote_addr = req.remote_addr;
  13910. res.set_content("ok", "text/plain");
  13911. });
  13912. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13913. auto se = detail::scope_exit([&] {
  13914. svr.stop();
  13915. t.join();
  13916. ASSERT_FALSE(svr.is_running());
  13917. });
  13918. svr.wait_until_ready();
  13919. Client cli(HOST, PORT);
  13920. auto res = cli.Get("/ip", Headers{{"X-Forwarded-For", "9.9.9.9"}});
  13921. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  13922. EXPECT_EQ(StatusCode::OK_200, res->status);
  13923. // The connecting peer is not a trusted proxy, so the spoofed header must be
  13924. // ignored entirely and the real connection-level address retained.
  13925. EXPECT_TRUE(observed_remote_addr == "::1" ||
  13926. observed_remote_addr == "127.0.0.1");
  13927. }
  13928. TEST(ForwardedHeadersTest, NoProxiesSetting) {
  13929. Server svr;
  13930. std::string observed_remote_addr;
  13931. std::string observed_xff;
  13932. svr.Get("/ip", [&](const Request &req, Response &res) {
  13933. observed_remote_addr = req.remote_addr;
  13934. observed_xff = req.get_header_value("X-Forwarded-For");
  13935. res.set_content("ok", "text/plain");
  13936. });
  13937. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13938. auto se = detail::scope_exit([&] {
  13939. svr.stop();
  13940. t.join();
  13941. ASSERT_FALSE(svr.is_running());
  13942. });
  13943. svr.wait_until_ready();
  13944. Client cli(HOST, PORT);
  13945. auto res = cli.Get("/ip", Headers{{"X-Forwarded-For", "203.0.113.66"}});
  13946. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  13947. EXPECT_EQ(StatusCode::OK_200, res->status);
  13948. EXPECT_EQ(observed_xff, "203.0.113.66");
  13949. EXPECT_TRUE(observed_remote_addr == "::1" ||
  13950. observed_remote_addr == "127.0.0.1");
  13951. }
  13952. TEST(ForwardedHeadersTest, NoForwardedHeaders) {
  13953. Server svr;
  13954. svr.set_trusted_proxies({"203.0.113.66"});
  13955. std::string observed_remote_addr;
  13956. std::string observed_xff;
  13957. svr.Get("/ip", [&](const Request &req, Response &res) {
  13958. observed_remote_addr = req.remote_addr;
  13959. observed_xff = req.get_header_value("X-Forwarded-For");
  13960. res.set_content("ok", "text/plain");
  13961. });
  13962. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13963. auto se = detail::scope_exit([&] {
  13964. svr.stop();
  13965. t.join();
  13966. ASSERT_FALSE(svr.is_running());
  13967. });
  13968. svr.wait_until_ready();
  13969. Client cli(HOST, PORT);
  13970. auto res = cli.Get("/ip");
  13971. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  13972. EXPECT_EQ(StatusCode::OK_200, res->status);
  13973. EXPECT_EQ(observed_xff, "");
  13974. EXPECT_TRUE(observed_remote_addr == "::1" ||
  13975. observed_remote_addr == "127.0.0.1");
  13976. }
  13977. TEST(ForwardedHeadersTest, SingleTrustedProxy_UsesIPBeforeTrusted) {
  13978. Server svr;
  13979. // Include the loopback address the test client actually connects from, so
  13980. // the direct connection itself is recognized as the trusted proxy hop.
  13981. svr.set_trusted_proxies({"203.0.113.66", "::1", "127.0.0.1"});
  13982. std::string observed_remote_addr;
  13983. std::string observed_xff;
  13984. svr.Get("/ip", [&](const Request &req, Response &res) {
  13985. observed_remote_addr = req.remote_addr;
  13986. observed_xff = req.get_header_value("X-Forwarded-For");
  13987. res.set_content("ok", "text/plain");
  13988. });
  13989. thread t = thread([&]() { svr.listen(HOST, PORT); });
  13990. auto se = detail::scope_exit([&] {
  13991. svr.stop();
  13992. t.join();
  13993. ASSERT_FALSE(svr.is_running());
  13994. });
  13995. svr.wait_until_ready();
  13996. Client cli(HOST, PORT);
  13997. auto res = cli.Get(
  13998. "/ip", Headers{{"X-Forwarded-For", "198.51.100.23, 203.0.113.66"}});
  13999. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14000. EXPECT_EQ(StatusCode::OK_200, res->status);
  14001. EXPECT_EQ(observed_xff, "198.51.100.23, 203.0.113.66");
  14002. EXPECT_EQ(observed_remote_addr, "198.51.100.23");
  14003. }
  14004. TEST(ForwardedHeadersTest, MultipleTrustedProxies_UsesClientIP) {
  14005. Server svr;
  14006. svr.set_trusted_proxies({"203.0.113.66", "192.0.2.45", "::1", "127.0.0.1"});
  14007. std::string observed_remote_addr;
  14008. std::string observed_xff;
  14009. svr.Get("/ip", [&](const Request &req, Response &res) {
  14010. observed_remote_addr = req.remote_addr;
  14011. observed_xff = req.get_header_value("X-Forwarded-For");
  14012. res.set_content("ok", "text/plain");
  14013. });
  14014. thread t = thread([&]() { svr.listen(HOST, PORT); });
  14015. auto se = detail::scope_exit([&] {
  14016. svr.stop();
  14017. t.join();
  14018. ASSERT_FALSE(svr.is_running());
  14019. });
  14020. svr.wait_until_ready();
  14021. Client cli(HOST, PORT);
  14022. auto res = cli.Get(
  14023. "/ip",
  14024. Headers{{"X-Forwarded-For", "198.51.100.23, 203.0.113.66, 192.0.2.45"}});
  14025. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14026. EXPECT_EQ(StatusCode::OK_200, res->status);
  14027. EXPECT_EQ(observed_xff, "198.51.100.23, 203.0.113.66, 192.0.2.45");
  14028. EXPECT_EQ(observed_remote_addr, "198.51.100.23");
  14029. }
  14030. TEST(ForwardedHeadersTest, TrustedProxyNotInHeader_UsesRightmostIP) {
  14031. Server svr;
  14032. svr.set_trusted_proxies({"192.0.2.45", "::1", "127.0.0.1"});
  14033. std::string observed_remote_addr;
  14034. std::string observed_xff;
  14035. svr.Get("/ip", [&](const Request &req, Response &res) {
  14036. observed_remote_addr = req.remote_addr;
  14037. observed_xff = req.get_header_value("X-Forwarded-For");
  14038. res.set_content("ok", "text/plain");
  14039. });
  14040. thread t = thread([&]() { svr.listen(HOST, PORT); });
  14041. auto se = detail::scope_exit([&] {
  14042. svr.stop();
  14043. t.join();
  14044. ASSERT_FALSE(svr.is_running());
  14045. });
  14046. svr.wait_until_ready();
  14047. Client cli(HOST, PORT);
  14048. auto res = cli.Get(
  14049. "/ip", Headers{{"X-Forwarded-For", "198.51.100.23, 198.51.100.24"}});
  14050. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14051. EXPECT_EQ(StatusCode::OK_200, res->status);
  14052. // No listed hop is a trusted proxy, so the rightmost entry (the one written
  14053. // by the closest hop) is used. The leftmost entry is fully client-controlled
  14054. // and must not be selected.
  14055. EXPECT_EQ(observed_xff, "198.51.100.23, 198.51.100.24");
  14056. EXPECT_EQ(observed_remote_addr, "198.51.100.24");
  14057. }
  14058. TEST(ForwardedHeadersTest, SpoofedIPBeforeTrustedProxyIsIgnored) {
  14059. Server svr;
  14060. svr.set_trusted_proxies({"10.0.0.1", "::1", "127.0.0.1"});
  14061. std::string observed_remote_addr;
  14062. svr.Get("/ip", [&](const Request &req, Response &res) {
  14063. observed_remote_addr = req.remote_addr;
  14064. res.set_content("ok", "text/plain");
  14065. });
  14066. thread t = thread([&]() { svr.listen(HOST, PORT); });
  14067. auto se = detail::scope_exit([&] {
  14068. svr.stop();
  14069. t.join();
  14070. ASSERT_FALSE(svr.is_running());
  14071. });
  14072. svr.wait_until_ready();
  14073. // The trusted proxy appends the address it saw (5.6.7.8). The client prepends
  14074. // a forged address and the trusted proxy's own address; the forged value must
  14075. // not win over the address the trusted proxy actually recorded.
  14076. Client cli(HOST, PORT);
  14077. auto res = cli.Get(
  14078. "/ip", Headers{{"X-Forwarded-For", "1.2.3.4, 10.0.0.1, 5.6.7.8"}});
  14079. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14080. EXPECT_EQ(StatusCode::OK_200, res->status);
  14081. EXPECT_EQ(observed_remote_addr, "5.6.7.8");
  14082. }
  14083. TEST(ForwardedHeadersTest, LastHopTrusted_SelectsImmediateLeftIP) {
  14084. Server svr;
  14085. svr.set_trusted_proxies({"192.0.2.45", "::1", "127.0.0.1"});
  14086. std::string observed_remote_addr;
  14087. std::string observed_xff;
  14088. svr.Get("/ip", [&](const Request &req, Response &res) {
  14089. observed_remote_addr = req.remote_addr;
  14090. observed_xff = req.get_header_value("X-Forwarded-For");
  14091. res.set_content("ok", "text/plain");
  14092. });
  14093. thread t = thread([&]() { svr.listen(HOST, PORT); });
  14094. auto se = detail::scope_exit([&] {
  14095. svr.stop();
  14096. t.join();
  14097. ASSERT_FALSE(svr.is_running());
  14098. });
  14099. svr.wait_until_ready();
  14100. Client cli(HOST, PORT);
  14101. auto res = cli.Get(
  14102. "/ip",
  14103. Headers{{"X-Forwarded-For", "198.51.100.23, 203.0.113.66, 192.0.2.45"}});
  14104. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14105. EXPECT_EQ(StatusCode::OK_200, res->status);
  14106. EXPECT_EQ(observed_xff, "198.51.100.23, 203.0.113.66, 192.0.2.45");
  14107. EXPECT_EQ(observed_remote_addr, "203.0.113.66");
  14108. }
  14109. TEST(ForwardedHeadersTest, HandlesWhitespaceAroundIPs) {
  14110. Server svr;
  14111. svr.set_trusted_proxies({"192.0.2.45", "::1", "127.0.0.1"});
  14112. std::string observed_remote_addr;
  14113. std::string observed_xff;
  14114. svr.Get("/ip", [&](const Request &req, Response &res) {
  14115. observed_remote_addr = req.remote_addr;
  14116. observed_xff = req.get_header_value("X-Forwarded-For");
  14117. res.set_content("ok", "text/plain");
  14118. });
  14119. thread t = thread([&]() { svr.listen(HOST, PORT); });
  14120. auto se = detail::scope_exit([&] {
  14121. svr.stop();
  14122. t.join();
  14123. ASSERT_FALSE(svr.is_running());
  14124. });
  14125. svr.wait_until_ready();
  14126. std::string raw_req =
  14127. "GET /ip HTTP/1.1\r\n"
  14128. "Host: localhost\r\n"
  14129. "X-Forwarded-For: 198.51.100.23 , 203.0.113.66 , 192.0.2.45 \r\n"
  14130. "Connection: close\r\n"
  14131. "\r\n";
  14132. std::string out;
  14133. ASSERT_TRUE(send_request(5, raw_req, &out));
  14134. EXPECT_EQ("HTTP/1.1 200 OK", out.substr(0, 15));
  14135. // Header parser trims surrounding whitespace of the header value
  14136. EXPECT_EQ(observed_xff, "198.51.100.23 , 203.0.113.66 , 192.0.2.45");
  14137. EXPECT_EQ(observed_remote_addr, "203.0.113.66");
  14138. }
  14139. // RFC 9110 Section 5.2 and 5.3: repeated field lines carry the same meaning as
  14140. // one comma-joined value, in the order received. Proxies such as HAProxy append
  14141. // their own X-Forwarded-For as a separate field line rather than extending the
  14142. // one the client sent, so every occurrence has to be taken into account.
  14143. // Reading only the first one hands back the address the client chose.
  14144. TEST(ForwardedHeadersTest, DuplicateFieldLines_JoinsAllOccurrences) {
  14145. Server svr;
  14146. svr.set_trusted_proxies({"192.0.2.45", "::1", "127.0.0.1"});
  14147. std::string observed_remote_addr;
  14148. size_t observed_xff_count = 0;
  14149. svr.Get("/ip", [&](const Request &req, Response &res) {
  14150. observed_remote_addr = req.remote_addr;
  14151. observed_xff_count = req.get_header_value_count("X-Forwarded-For");
  14152. res.set_content("ok", "text/plain");
  14153. });
  14154. auto port = svr.bind_to_any_port(HOST);
  14155. thread t = thread([&]() { svr.listen_after_bind(); });
  14156. auto se = detail::scope_exit([&] {
  14157. svr.stop();
  14158. t.join();
  14159. ASSERT_FALSE(svr.is_running());
  14160. });
  14161. svr.wait_until_ready();
  14162. // The client supplies the first field line; the trusted proxy appends the
  14163. // address it observed as a second one.
  14164. std::string raw_req = "GET /ip HTTP/1.1\r\n"
  14165. "Host: localhost\r\n"
  14166. "X-Forwarded-For: 1.2.3.4\r\n"
  14167. "X-Forwarded-For: 198.51.100.23, 192.0.2.45\r\n"
  14168. "Connection: close\r\n"
  14169. "\r\n";
  14170. std::string out;
  14171. ASSERT_TRUE(send_request(5, raw_req, &out, port));
  14172. EXPECT_EQ("HTTP/1.1 200 OK", out.substr(0, 15));
  14173. EXPECT_EQ(observed_xff_count, 2U);
  14174. EXPECT_EQ(observed_remote_addr, "198.51.100.23");
  14175. // The same chain spread over one field line per hop derives the same client
  14176. // address, i.e. the split and the comma-joined representations agree.
  14177. std::string per_hop_req = "GET /ip HTTP/1.1\r\n"
  14178. "Host: localhost\r\n"
  14179. "X-Forwarded-For: 1.2.3.4\r\n"
  14180. "X-Forwarded-For: 198.51.100.23\r\n"
  14181. "X-Forwarded-For: 192.0.2.45\r\n"
  14182. "Connection: close\r\n"
  14183. "\r\n";
  14184. out.clear();
  14185. ASSERT_TRUE(send_request(5, per_hop_req, &out, port));
  14186. EXPECT_EQ("HTTP/1.1 200 OK", out.substr(0, 15));
  14187. EXPECT_EQ(observed_xff_count, 3U);
  14188. EXPECT_EQ(observed_remote_addr, "198.51.100.23");
  14189. }
  14190. // An X-Forwarded-For header whose value parses to zero IP segments must not
  14191. // crash the server (it used to call front() on an empty vector inside
  14192. // get_client_ip). The connection-level remote address must be retained instead.
  14193. static void run_malformed_xff_test(const std::string &xff_value) {
  14194. Server svr;
  14195. svr.set_trusted_proxies({"192.0.2.45"});
  14196. std::string observed_remote_addr;
  14197. svr.Get("/ip", [&](const Request &req, Response &res) {
  14198. observed_remote_addr = req.remote_addr;
  14199. res.set_content("ok", "text/plain");
  14200. });
  14201. int port = 0;
  14202. thread t = thread([&]() {
  14203. port = svr.bind_to_any_port(HOST);
  14204. svr.listen_after_bind();
  14205. });
  14206. auto se = detail::scope_exit([&] {
  14207. svr.stop();
  14208. t.join();
  14209. ASSERT_FALSE(svr.is_running());
  14210. });
  14211. svr.wait_until_ready();
  14212. Client cli(HOST, port);
  14213. auto res = cli.Get("/ip", Headers{{"X-Forwarded-For", xff_value}});
  14214. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14215. EXPECT_EQ(StatusCode::OK_200, res->status);
  14216. EXPECT_TRUE(observed_remote_addr == "::1" ||
  14217. observed_remote_addr == "127.0.0.1");
  14218. }
  14219. TEST(ForwardedHeadersTest, EmptyXForwardedFor_DoesNotCrash) {
  14220. run_malformed_xff_test("");
  14221. }
  14222. TEST(ForwardedHeadersTest, CommaOnlyXForwardedFor_DoesNotCrash) {
  14223. run_malformed_xff_test(",");
  14224. }
  14225. TEST(ForwardedHeadersTest, MultipleCommasXForwardedFor_DoesNotCrash) {
  14226. run_malformed_xff_test(", , ,");
  14227. }
  14228. // The same rule applies to Accept: a request whose acceptable types are spread
  14229. // over several field lines must be negotiated against all of them.
  14230. // RFC 9110 Section 7.6.1: Connection carries a comma-separated list of
  14231. // case-insensitive connection options. Comparing the whole field value against
  14232. // one option misses a client that sends several of them, and misses every
  14233. // casing but the one written in the comparison.
  14234. //
  14235. // Sends req, reads the response, then reuses the same socket for a second
  14236. // request to find out whether the server kept the connection.
  14237. static void probe_connection_reuse(int port, const std::string &req,
  14238. bool *announced_close, bool *reusable) {
  14239. auto error = Error::Success;
  14240. auto sock = detail::create_client_socket(
  14241. HOST, "", port, AF_UNSPEC, false, false, nullptr,
  14242. /*connection_timeout_sec=*/5, 0,
  14243. /*read_timeout_sec=*/1, 0,
  14244. /*write_timeout_sec=*/5, 0, std::string(), error);
  14245. ASSERT_NE(sock, INVALID_SOCKET);
  14246. auto se = detail::scope_exit([&] { detail::close_socket(sock); });
  14247. const std::string second = "GET /keepalive HTTP/1.1\r\n"
  14248. "Host: localhost\r\n"
  14249. "Connection: close\r\n"
  14250. "\r\n";
  14251. std::string first_response;
  14252. std::string second_response;
  14253. detail::process_client_socket(
  14254. sock, 1, 0, 5, 0, 0, std::chrono::steady_clock::time_point::min(),
  14255. [&](Stream &strm) {
  14256. if (strm.write(req.data(), req.size()) !=
  14257. static_cast<ssize_t>(req.size())) {
  14258. return false;
  14259. }
  14260. char buf[512];
  14261. detail::stream_line_reader reader(strm, buf, sizeof(buf));
  14262. // Headers plus the two-byte body of the handler below
  14263. while (reader.getline()) {
  14264. first_response += reader.ptr();
  14265. if (first_response.find("ok") != std::string::npos) { break; }
  14266. }
  14267. if (strm.write(second.data(), second.size()) !=
  14268. static_cast<ssize_t>(second.size())) {
  14269. return true;
  14270. }
  14271. detail::stream_line_reader reader2(strm, buf, sizeof(buf));
  14272. while (reader2.getline()) {
  14273. second_response += reader2.ptr();
  14274. if (second_response.find("ok") != std::string::npos) { break; }
  14275. }
  14276. return true;
  14277. });
  14278. *announced_close =
  14279. first_response.find("Connection: close") != std::string::npos;
  14280. *reusable = second_response.find("HTTP/1.1 200") != std::string::npos;
  14281. }
  14282. class ConnectionTokenTest : public ::testing::Test {
  14283. protected:
  14284. void SetUp() override {
  14285. svr_.Get("/keepalive", [](const Request &, Response &res) {
  14286. res.set_content("ok", "text/plain");
  14287. });
  14288. port_ = svr_.bind_to_any_port(HOST);
  14289. thread_ = thread([&]() { svr_.listen_after_bind(); });
  14290. svr_.wait_until_ready();
  14291. }
  14292. void TearDown() override {
  14293. svr_.stop();
  14294. if (thread_.joinable()) { thread_.join(); }
  14295. }
  14296. Server svr_;
  14297. int port_ = 0;
  14298. thread thread_;
  14299. };
  14300. // "close" alongside another option still closes the connection, and the
  14301. // response says so rather than leaving the peer to discover it.
  14302. TEST_F(ConnectionTokenTest, CloseAmongSeveralOptionsIsHonored) {
  14303. bool announced_close = false;
  14304. bool reusable = true;
  14305. probe_connection_reuse(port_,
  14306. "GET /keepalive HTTP/1.1\r\n"
  14307. "Host: localhost\r\n"
  14308. "Connection: keep-alive, close\r\n"
  14309. "\r\n",
  14310. &announced_close, &reusable);
  14311. EXPECT_TRUE(announced_close);
  14312. EXPECT_FALSE(reusable);
  14313. }
  14314. // "close" split over two field lines is the same list, so it is honored too.
  14315. TEST_F(ConnectionTokenTest, CloseOnALaterFieldLineIsHonored) {
  14316. bool announced_close = false;
  14317. bool reusable = true;
  14318. probe_connection_reuse(port_,
  14319. "GET /keepalive HTTP/1.1\r\n"
  14320. "Host: localhost\r\n"
  14321. "Connection: keep-alive\r\n"
  14322. "Connection: close\r\n"
  14323. "\r\n",
  14324. &announced_close, &reusable);
  14325. EXPECT_TRUE(announced_close);
  14326. EXPECT_FALSE(reusable);
  14327. }
  14328. // Connection options are case-insensitive, so an HTTP/1.0 client asking for
  14329. // keep-alive in the spelling everyone actually sends keeps its connection.
  14330. TEST_F(ConnectionTokenTest, Http10KeepAliveIsCaseInsensitive) {
  14331. bool announced_close = false;
  14332. bool reusable = false;
  14333. probe_connection_reuse(port_,
  14334. "GET /keepalive HTTP/1.0\r\n"
  14335. "Host: localhost\r\n"
  14336. "Connection: keep-alive\r\n"
  14337. "\r\n",
  14338. &announced_close, &reusable);
  14339. EXPECT_FALSE(announced_close);
  14340. EXPECT_TRUE(reusable);
  14341. }
  14342. // A token the value merely contains is not the token itself.
  14343. TEST_F(ConnectionTokenTest, SubstringOfAnOptionIsNotTheOption) {
  14344. bool announced_close = false;
  14345. bool reusable = false;
  14346. probe_connection_reuse(port_,
  14347. "GET /keepalive HTTP/1.1\r\n"
  14348. "Host: localhost\r\n"
  14349. "Connection: notclose\r\n"
  14350. "\r\n",
  14351. &announced_close, &reusable);
  14352. EXPECT_FALSE(announced_close);
  14353. EXPECT_TRUE(reusable);
  14354. }
  14355. TEST(RepeatedFieldLinesTest, AcceptCombinesEveryFieldLine) {
  14356. Server svr;
  14357. std::vector<std::string> observed_types;
  14358. svr.Get("/", [&](const Request &req, Response &res) {
  14359. observed_types = req.accept_content_types;
  14360. res.set_content("ok", "text/plain");
  14361. });
  14362. auto port = svr.bind_to_any_port(HOST);
  14363. thread t = thread([&]() { svr.listen_after_bind(); });
  14364. auto se = detail::scope_exit([&] {
  14365. svr.stop();
  14366. t.join();
  14367. ASSERT_FALSE(svr.is_running());
  14368. });
  14369. svr.wait_until_ready();
  14370. Client cli(HOST, port);
  14371. Headers headers;
  14372. headers.emplace("Accept", "text/plain;q=0.5");
  14373. headers.emplace("Accept", "application/json");
  14374. auto res = cli.Get("/", headers);
  14375. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14376. EXPECT_EQ(StatusCode::OK_200, res->status);
  14377. // Sorted by q-value, so the second field line's type comes first
  14378. ASSERT_EQ(2U, observed_types.size());
  14379. EXPECT_EQ("application/json", observed_types[0]);
  14380. EXPECT_EQ("text/plain", observed_types[1]);
  14381. }
  14382. // RFC 9110 Section 5.6.1.2: empty list elements are parsed and ignored, so an
  14383. // empty field line must not contribute a bare comma to the combined value.
  14384. // parse_accept_header() rejects a leading comma outright, so a stray one would
  14385. // turn a legal request into 400 Bad Request.
  14386. TEST(RepeatedFieldLinesTest, EmptyFieldLineDoesNotInjectComma) {
  14387. Server svr;
  14388. std::vector<std::string> observed_types;
  14389. svr.Get("/", [&](const Request &req, Response &res) {
  14390. observed_types = req.accept_content_types;
  14391. res.set_content("ok", "text/plain");
  14392. });
  14393. auto port = svr.bind_to_any_port(HOST);
  14394. thread t = thread([&]() { svr.listen_after_bind(); });
  14395. auto se = detail::scope_exit([&] {
  14396. svr.stop();
  14397. t.join();
  14398. ASSERT_FALSE(svr.is_running());
  14399. });
  14400. svr.wait_until_ready();
  14401. // Empty first field line, then a real one
  14402. std::string raw_req = "GET / HTTP/1.1\r\n"
  14403. "Host: localhost\r\n"
  14404. "Accept:\r\n"
  14405. "Accept: application/json\r\n"
  14406. "Connection: close\r\n"
  14407. "\r\n";
  14408. std::string out;
  14409. ASSERT_TRUE(send_request(5, raw_req, &out, port));
  14410. EXPECT_EQ("HTTP/1.1 200 OK", out.substr(0, 15));
  14411. ASSERT_EQ(1U, observed_types.size());
  14412. EXPECT_EQ("application/json", observed_types[0]);
  14413. }
  14414. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  14415. // An encoding offered on a later Accept-Encoding field line is still offered.
  14416. TEST(RepeatedFieldLinesTest, AcceptEncodingCombinesEveryFieldLine) {
  14417. Server svr;
  14418. svr.Get("/", [](const Request & /*req*/, Response &res) {
  14419. res.set_content(std::string(1024, 'x'), "text/plain");
  14420. });
  14421. auto port = svr.bind_to_any_port(HOST);
  14422. thread t = thread([&]() { svr.listen_after_bind(); });
  14423. auto se = detail::scope_exit([&] {
  14424. svr.stop();
  14425. t.join();
  14426. ASSERT_FALSE(svr.is_running());
  14427. });
  14428. svr.wait_until_ready();
  14429. Client cli(HOST, port);
  14430. cli.set_decompress(false);
  14431. Headers headers;
  14432. headers.emplace("Accept-Encoding", "identity");
  14433. headers.emplace("Accept-Encoding", "gzip");
  14434. auto res = cli.Get("/", headers);
  14435. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  14436. EXPECT_EQ(StatusCode::OK_200, res->status);
  14437. EXPECT_EQ("gzip", res->get_header_value("Content-Encoding"));
  14438. }
  14439. #endif
  14440. #ifndef _WIN32
  14441. TEST(ServerRequestParsingTest, RequestWithoutContentLengthOrTransferEncoding) {
  14442. Server svr;
  14443. svr.Post("/post", [&](const Request &req, Response &res) {
  14444. res.set_content(req.body, "text/plain");
  14445. });
  14446. svr.Put("/put", [&](const Request &req, Response &res) {
  14447. res.set_content(req.body, "text/plain");
  14448. });
  14449. svr.Patch("/patch", [&](const Request &req, Response &res) {
  14450. res.set_content(req.body, "text/plain");
  14451. });
  14452. svr.Delete("/delete", [&](const Request &req, Response &res) {
  14453. res.set_content(req.body, "text/plain");
  14454. });
  14455. thread t = thread([&]() { svr.listen(HOST, PORT); });
  14456. auto se = detail::scope_exit([&] {
  14457. svr.stop();
  14458. t.join();
  14459. ASSERT_FALSE(svr.is_running());
  14460. });
  14461. svr.wait_until_ready();
  14462. std::string resp;
  14463. // POST without Content-Length
  14464. ASSERT_TRUE(send_request(5,
  14465. "POST /post HTTP/1.1\r\n"
  14466. "Host: localhost\r\n"
  14467. "Connection: close\r\n"
  14468. "\r\n",
  14469. &resp));
  14470. EXPECT_TRUE(resp.find("HTTP/1.1 200 OK") == 0);
  14471. // PUT without Content-Length
  14472. resp.clear();
  14473. ASSERT_TRUE(send_request(5,
  14474. "PUT /put HTTP/1.1\r\n"
  14475. "Host: localhost\r\n"
  14476. "Connection: close\r\n"
  14477. "\r\n",
  14478. &resp));
  14479. EXPECT_TRUE(resp.find("HTTP/1.1 200 OK") == 0);
  14480. // PATCH without Content-Length
  14481. resp.clear();
  14482. ASSERT_TRUE(send_request(5,
  14483. "PATCH /patch HTTP/1.1\r\n"
  14484. "Host: localhost\r\n"
  14485. "Connection: close\r\n"
  14486. "\r\n",
  14487. &resp));
  14488. EXPECT_TRUE(resp.find("HTTP/1.1 200 OK") == 0);
  14489. // DELETE without Content-Length
  14490. resp.clear();
  14491. ASSERT_TRUE(send_request(5,
  14492. "DELETE /delete HTTP/1.1\r\n"
  14493. "Host: localhost\r\n"
  14494. "Connection: close\r\n"
  14495. "\r\n",
  14496. &resp));
  14497. EXPECT_TRUE(resp.find("HTTP/1.1 200 OK") == 0);
  14498. }
  14499. #endif
  14500. //==============================================================================
  14501. // open_stream() Tests
  14502. //==============================================================================
  14503. inline std::string read_all(ClientImpl::StreamHandle &handle) {
  14504. std::string result;
  14505. char buf[8192];
  14506. ssize_t n;
  14507. while ((n = handle.read(buf, sizeof(buf))) > 0) {
  14508. result.append(buf, static_cast<size_t>(n));
  14509. }
  14510. return result;
  14511. }
  14512. // Mock stream for unit tests
  14513. class MockStream : public Stream {
  14514. public:
  14515. std::string data;
  14516. size_t pos = 0;
  14517. ssize_t error_after = -1; // -1 = no error
  14518. explicit MockStream(const std::string &d, ssize_t err = -1)
  14519. : data(d), error_after(err) {}
  14520. bool is_readable() const override { return true; }
  14521. bool wait_readable() const override { return true; }
  14522. bool wait_writable() const override { return true; }
  14523. ssize_t read(char *ptr, size_t size) override {
  14524. if (error_after >= 0 && pos >= static_cast<size_t>(error_after)) return -1;
  14525. if (pos >= data.size()) return 0;
  14526. size_t limit =
  14527. error_after >= 0 ? static_cast<size_t>(error_after) : data.size();
  14528. size_t to_read = std::min(size, std::min(data.size() - pos, limit - pos));
  14529. std::memcpy(ptr, data.data() + pos, to_read);
  14530. pos += to_read;
  14531. return static_cast<ssize_t>(to_read);
  14532. }
  14533. ssize_t write(const char *, size_t) override { return -1; }
  14534. void get_remote_ip_and_port(std::string &ip, int &port) const override {
  14535. ip = "127.0.0.1";
  14536. port = 0;
  14537. }
  14538. void get_local_ip_and_port(std::string &ip, int &port) const override {
  14539. ip = "127.0.0.1";
  14540. port = 0;
  14541. }
  14542. socket_t socket() const override { return INVALID_SOCKET; }
  14543. time_t duration() const override { return 0; }
  14544. };
  14545. TEST(StreamHandleTest, Basic) {
  14546. ClientImpl::StreamHandle handle;
  14547. EXPECT_FALSE(handle.is_valid());
  14548. handle.response = detail::make_unique<Response>();
  14549. handle.error = Error::Connection;
  14550. EXPECT_FALSE(handle.is_valid());
  14551. handle.error = Error::Success;
  14552. EXPECT_TRUE(handle.is_valid());
  14553. }
  14554. TEST(BodyReaderTest, Basic) {
  14555. MockStream stream("Hello, World!");
  14556. detail::BodyReader reader;
  14557. reader.stream = &stream;
  14558. reader.content_length = 13;
  14559. char buf[32];
  14560. EXPECT_EQ(13, reader.read(buf, sizeof(buf)));
  14561. EXPECT_EQ(0, reader.read(buf, sizeof(buf)));
  14562. EXPECT_TRUE(reader.eof);
  14563. }
  14564. TEST(BodyReaderTest, NoStream) {
  14565. detail::BodyReader reader;
  14566. char buf[32];
  14567. EXPECT_EQ(-1, reader.read(buf, sizeof(buf)));
  14568. EXPECT_EQ(Error::Connection, reader.last_error);
  14569. }
  14570. TEST(BodyReaderTest, Error) {
  14571. MockStream stream("Hello, World!", 5);
  14572. detail::BodyReader reader;
  14573. reader.stream = &stream;
  14574. reader.content_length = 13;
  14575. char buf[32];
  14576. EXPECT_EQ(5, reader.read(buf, sizeof(buf)));
  14577. EXPECT_EQ(-1, reader.read(buf, sizeof(buf)));
  14578. EXPECT_EQ(Error::Read, reader.last_error);
  14579. }
  14580. // Memory buffer mode removed: StreamHandle reads only from socket streams.
  14581. // Mock-based StreamHandle tests relying on private internals are removed.
  14582. class OpenStreamTest : public ::testing::Test {
  14583. protected:
  14584. void SetUp() override {
  14585. svr_.Get("/hello", [](const Request &, Response &res) {
  14586. res.set_content("Hello World!", "text/plain");
  14587. });
  14588. svr_.Get("/large", [](const Request &, Response &res) {
  14589. res.set_content(std::string(10000, 'X'), "text/plain");
  14590. });
  14591. svr_.Get("/unknown-encoding", [](const Request &, Response &res) {
  14592. res.set_content("Hello World!", "image/jpeg");
  14593. res.set_header("Content-Encoding", "UTF-8");
  14594. });
  14595. svr_.Get("/chunked", [](const Request &, Response &res) {
  14596. res.set_chunked_content_provider("text/plain",
  14597. [](size_t offset, DataSink &sink) {
  14598. if (offset < 15) {
  14599. sink.write("chunk", 5);
  14600. return true;
  14601. }
  14602. sink.done();
  14603. return true;
  14604. });
  14605. });
  14606. svr_.Get("/compressible", [](const Request &, Response &res) {
  14607. res.set_chunked_content_provider("text/plain", [](size_t offset,
  14608. DataSink &sink) {
  14609. if (offset < 100 * 1024) {
  14610. std::string chunk(std::min(size_t(8192), 100 * 1024 - offset), 'A');
  14611. sink.write(chunk.data(), chunk.size());
  14612. return true;
  14613. }
  14614. sink.done();
  14615. return true;
  14616. });
  14617. });
  14618. svr_.Get("/streamed-chunked-with-prohibited-trailer",
  14619. [](const Request & /*req*/, Response &res) {
  14620. auto i = new int(0);
  14621. res.set_header("Trailer", "Content-Length, X-Allowed");
  14622. res.set_chunked_content_provider(
  14623. "text/plain",
  14624. [i](size_t /*offset*/, DataSink &sink) {
  14625. switch (*i) {
  14626. case 0: sink.os << "123"; break;
  14627. case 1: sink.os << "456"; break;
  14628. case 2: sink.os << "789"; break;
  14629. case 3: {
  14630. sink.done_with_trailer(
  14631. {{"Content-Length", "5"}, {"X-Allowed", "yes"}});
  14632. } break;
  14633. }
  14634. (*i)++;
  14635. return true;
  14636. },
  14637. [i](bool success) {
  14638. EXPECT_TRUE(success);
  14639. delete i;
  14640. });
  14641. });
  14642. // Echo headers endpoint for header-related tests
  14643. svr_.Get("/echo-headers", [](const Request &req, Response &res) {
  14644. std::string body;
  14645. for (const auto &h : req.headers) {
  14646. body.append(h.first);
  14647. body.push_back(':');
  14648. body.append(h.second);
  14649. body.push_back('\n');
  14650. }
  14651. res.set_content(body, "text/plain");
  14652. });
  14653. svr_.Post("/echo-headers", [](const Request &req, Response &res) {
  14654. std::string body;
  14655. for (const auto &h : req.headers) {
  14656. body.append(h.first);
  14657. body.push_back(':');
  14658. body.append(h.second);
  14659. body.push_back('\n');
  14660. }
  14661. res.set_content(body, "text/plain");
  14662. });
  14663. port_ = svr_.bind_to_any_port("127.0.0.1");
  14664. thread_ = std::thread([this]() { svr_.listen_after_bind(); });
  14665. svr_.wait_until_ready();
  14666. }
  14667. void TearDown() override {
  14668. svr_.stop();
  14669. if (thread_.joinable()) thread_.join();
  14670. }
  14671. Server svr_;
  14672. std::thread thread_;
  14673. int port_ = 0;
  14674. };
  14675. TEST_F(OpenStreamTest, Basic) {
  14676. Client cli("127.0.0.1", port_);
  14677. auto handle = cli.open_stream("GET", "/hello");
  14678. EXPECT_TRUE(handle.is_valid());
  14679. EXPECT_EQ("Hello World!", read_all(handle));
  14680. }
  14681. TEST_F(OpenStreamTest, UnknownContentEncodingIsPassedThrough) {
  14682. Client cli("127.0.0.1", port_);
  14683. auto handle = cli.open_stream("GET", "/unknown-encoding");
  14684. ASSERT_TRUE(handle.is_valid());
  14685. EXPECT_EQ("Hello World!", read_all(handle));
  14686. }
  14687. TEST_F(OpenStreamTest, SmallBuffer) {
  14688. Client cli("127.0.0.1", port_);
  14689. auto handle = cli.open_stream("GET", "/hello");
  14690. std::string result;
  14691. char buf[4];
  14692. ssize_t n;
  14693. while ((n = handle.read(buf, sizeof(buf))) > 0)
  14694. result.append(buf, static_cast<size_t>(n));
  14695. EXPECT_EQ("Hello World!", result);
  14696. }
  14697. TEST_F(OpenStreamTest, DefaultHeaders) {
  14698. Client cli("127.0.0.1", port_);
  14699. // open_stream GET should include Host, User-Agent and Accept-Encoding
  14700. {
  14701. auto handle = cli.open_stream("GET", "/echo-headers");
  14702. ASSERT_TRUE(handle.is_valid());
  14703. auto body = read_all(handle);
  14704. EXPECT_NE(body.find("Host:127.0.0.1:" + std::to_string(port_)),
  14705. std::string::npos);
  14706. EXPECT_NE(body.find("User-Agent:cpp-httplib/" CPPHTTPLIB_VERSION),
  14707. std::string::npos);
  14708. EXPECT_NE(body.find("Accept-Encoding:"), std::string::npos);
  14709. }
  14710. // open_stream POST with body and no explicit content_type should NOT add
  14711. // text/plain Content-Type (behavior differs from non-streaming path), but
  14712. // should include Content-Length
  14713. {
  14714. auto handle = cli.open_stream("POST", "/echo-headers", {}, {}, "hello", "");
  14715. ASSERT_TRUE(handle.is_valid());
  14716. auto body = read_all(handle);
  14717. EXPECT_EQ(body.find("Content-Type: text/plain"), std::string::npos);
  14718. EXPECT_NE(body.find("Content-Length:5"), std::string::npos);
  14719. }
  14720. // open_stream POST with explicit Content-Type should preserve it
  14721. {
  14722. auto handle = cli.open_stream("POST", "/echo-headers", {},
  14723. {{"Content-Type", "application/custom"}},
  14724. "{}", "application/custom");
  14725. ASSERT_TRUE(handle.is_valid());
  14726. auto body = read_all(handle);
  14727. EXPECT_NE(body.find("Content-Type:application/custom"), std::string::npos);
  14728. }
  14729. // User-specified User-Agent must not be overwritten for stream API
  14730. {
  14731. auto handle = cli.open_stream("GET", "/echo-headers", {},
  14732. {{"User-Agent", "MyAgent/1.2"}});
  14733. ASSERT_TRUE(handle.is_valid());
  14734. auto body = read_all(handle);
  14735. EXPECT_NE(body.find("User-Agent:MyAgent/1.2"), std::string::npos);
  14736. }
  14737. }
  14738. TEST_F(OpenStreamTest, Large) {
  14739. Client cli("127.0.0.1", port_);
  14740. auto handle = cli.open_stream("GET", "/large");
  14741. EXPECT_EQ(10000u, read_all(handle).size());
  14742. }
  14743. TEST_F(OpenStreamTest, ConnectionError) {
  14744. Client cli("127.0.0.1", 9999);
  14745. auto handle = cli.open_stream("GET", "/hello");
  14746. EXPECT_FALSE(handle.is_valid());
  14747. }
  14748. TEST_F(OpenStreamTest, Chunked) {
  14749. Client cli("127.0.0.1", port_);
  14750. auto handle = cli.open_stream("GET", "/chunked");
  14751. EXPECT_TRUE(handle.response && handle.response->get_header_value(
  14752. "Transfer-Encoding") == "chunked");
  14753. EXPECT_EQ("chunkchunkchunk", read_all(handle));
  14754. }
  14755. TEST_F(OpenStreamTest, ProhibitedTrailersAreIgnored_Stream) {
  14756. Client cli("127.0.0.1", port_);
  14757. auto handle =
  14758. cli.open_stream("GET", "/streamed-chunked-with-prohibited-trailer");
  14759. ASSERT_TRUE(handle.is_valid());
  14760. // Consume body to allow trailers to be received/parsed
  14761. auto body = read_all(handle);
  14762. // Explicitly parse trailers (ensure trailers are available for assertion)
  14763. handle.parse_trailers_if_needed();
  14764. EXPECT_EQ(std::string("123456789"), body);
  14765. // The response should include a Trailer header declaring both names
  14766. ASSERT_TRUE(handle.response);
  14767. EXPECT_TRUE(handle.response->has_header("Trailer"));
  14768. EXPECT_EQ(std::string("Content-Length, X-Allowed"),
  14769. handle.response->get_header_value("Trailer"));
  14770. // Prohibited trailer must not be present
  14771. EXPECT_FALSE(handle.response->has_trailer("Content-Length"));
  14772. // Allowed trailer should be present
  14773. EXPECT_TRUE(handle.response->has_trailer("X-Allowed"));
  14774. EXPECT_EQ(std::string("yes"),
  14775. handle.response->get_trailer_value("X-Allowed"));
  14776. // Verify trailers are NOT present as regular headers
  14777. EXPECT_EQ(std::string(""),
  14778. handle.response->get_header_value("Content-Length"));
  14779. EXPECT_EQ(std::string(""), handle.response->get_header_value("X-Allowed"));
  14780. }
  14781. static std::thread serve_single_response(std::promise<int> &port_promise,
  14782. const std::string &response) {
  14783. return std::thread([&port_promise, response] {
  14784. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  14785. default_socket_options(srv);
  14786. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  14787. detail::set_socket_opt_time(srv, SOL_SOCKET, SO_SNDTIMEO, 5, 0);
  14788. sockaddr_in addr{};
  14789. addr.sin_family = AF_INET;
  14790. addr.sin_port = htons(0); // Let OS assign a free port
  14791. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  14792. int opt = 1;
  14793. ::setsockopt(srv, SOL_SOCKET, SO_REUSEADDR,
  14794. #ifdef _WIN32
  14795. reinterpret_cast<const char *>(&opt),
  14796. #else
  14797. &opt,
  14798. #endif
  14799. sizeof(opt));
  14800. if (::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr)) != 0 ||
  14801. ::listen(srv, 1) != 0) {
  14802. port_promise.set_value(-1);
  14803. detail::close_socket(srv);
  14804. return;
  14805. }
  14806. socklen_t addr_len = sizeof(addr);
  14807. ::getsockname(srv, reinterpret_cast<sockaddr *>(&addr), &addr_len);
  14808. port_promise.set_value(static_cast<int>(ntohs(addr.sin_port)));
  14809. sockaddr_in cli_addr{};
  14810. socklen_t cli_len = sizeof(cli_addr);
  14811. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  14812. if (cli != INVALID_SOCKET) {
  14813. // Read the complete HTTP request (until the blank line that terminates
  14814. // headers) before sending the response. If the server closes the socket
  14815. // while the client's request data is still unread in the kernel receive
  14816. // buffer, the TCP stack sends RST instead of FIN. That RST resets the
  14817. // connection on both sides: it discards the client's receive buffer
  14818. // (which already holds our response) and causes any in-progress write on
  14819. // the client to fail with ECONNRESET. Reading all request data first
  14820. // ensures close() emits a graceful FIN.
  14821. {
  14822. char rbuf[256];
  14823. std::string req;
  14824. while (req.find("\r\n\r\n") == std::string::npos) {
  14825. auto n = ::recv(cli, rbuf, sizeof(rbuf), 0);
  14826. if (n <= 0) { break; }
  14827. req.append(rbuf, static_cast<size_t>(n));
  14828. }
  14829. }
  14830. ::send(cli,
  14831. #ifdef _WIN32
  14832. static_cast<const char *>(response.c_str()),
  14833. static_cast<int>(response.size()),
  14834. #else
  14835. response.c_str(), response.size(),
  14836. #endif
  14837. 0);
  14838. detail::close_socket(cli);
  14839. }
  14840. detail::close_socket(srv);
  14841. });
  14842. }
  14843. TEST(OpenStreamMalformedContentLength, InvalidArgument) {
  14844. #ifndef _WIN32
  14845. signal(SIGPIPE, SIG_IGN);
  14846. #endif
  14847. std::promise<int> port_promise;
  14848. auto port_future = port_promise.get_future();
  14849. auto server_thread =
  14850. serve_single_response(port_promise, "HTTP/1.1 200 OK\r\n"
  14851. "Content-Type: text/plain\r\n"
  14852. "Content-Length: not-a-number\r\n"
  14853. "Connection: close\r\n"
  14854. "\r\n"
  14855. "hello");
  14856. auto port = port_future.get();
  14857. ASSERT_GT(port, 0);
  14858. Client cli("127.0.0.1", port);
  14859. auto handle = cli.open_stream("GET", "/");
  14860. EXPECT_FALSE(handle.is_valid());
  14861. server_thread.join();
  14862. }
  14863. TEST(OpenStreamMalformedContentLength, OutOfRange) {
  14864. #ifndef _WIN32
  14865. signal(SIGPIPE, SIG_IGN);
  14866. #endif
  14867. std::promise<int> port_promise;
  14868. auto port_future = port_promise.get_future();
  14869. auto server_thread = serve_single_response(
  14870. port_promise, "HTTP/1.1 200 OK\r\n"
  14871. "Content-Type: text/plain\r\n"
  14872. "Content-Length: 99999999999999999999999999\r\n"
  14873. "Connection: close\r\n"
  14874. "\r\n"
  14875. "hello");
  14876. auto port = port_future.get();
  14877. ASSERT_GT(port, 0);
  14878. // Historically std::stoull would throw std::out_of_range here and crash
  14879. // the process, then parsing silently clamped to a bogus framing length and
  14880. // the stream opened anyway. Now the out-of-range value is flagged invalid,
  14881. // so the stream fails to open, matching the not-a-number case above. The
  14882. // process still must NOT terminate.
  14883. Client cli("127.0.0.1", port);
  14884. auto handle = cli.open_stream("GET", "/");
  14885. EXPECT_FALSE(handle.is_valid());
  14886. server_thread.join();
  14887. }
  14888. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  14889. TEST_F(OpenStreamTest, Gzip) {
  14890. Client cli("127.0.0.1", port_);
  14891. auto handle = cli.open_stream("GET", "/compressible", {},
  14892. {{"Accept-Encoding", "gzip"}});
  14893. EXPECT_EQ("gzip", handle.response->get_header_value("Content-Encoding"));
  14894. EXPECT_EQ(100u * 1024u, read_all(handle).size());
  14895. }
  14896. #endif
  14897. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  14898. TEST_F(OpenStreamTest, Brotli) {
  14899. Client cli("127.0.0.1", port_);
  14900. auto handle =
  14901. cli.open_stream("GET", "/compressible", {}, {{"Accept-Encoding", "br"}});
  14902. EXPECT_EQ("br", handle.response->get_header_value("Content-Encoding"));
  14903. EXPECT_EQ(100u * 1024u, read_all(handle).size());
  14904. }
  14905. #endif
  14906. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  14907. TEST_F(OpenStreamTest, Zstd) {
  14908. Client cli("127.0.0.1", port_);
  14909. auto handle = cli.open_stream("GET", "/compressible", {},
  14910. {{"Accept-Encoding", "zstd"}});
  14911. EXPECT_EQ("zstd", handle.response->get_header_value("Content-Encoding"));
  14912. EXPECT_EQ(100u * 1024u, read_all(handle).size());
  14913. }
  14914. #endif
  14915. #ifdef CPPHTTPLIB_SSL_ENABLED
  14916. class SSLOpenStreamTest : public ::testing::Test {
  14917. protected:
  14918. SSLOpenStreamTest() : svr_("cert.pem", "key.pem") {}
  14919. void SetUp() override {
  14920. svr_.Get("/hello", [](const Request &, Response &res) {
  14921. res.set_content("Hello SSL World!", "text/plain");
  14922. });
  14923. svr_.Get("/chunked", [](const Request &, Response &res) {
  14924. res.set_chunked_content_provider("text/plain",
  14925. [](size_t offset, DataSink &sink) {
  14926. if (offset < 15) {
  14927. sink.write("chunk", 5);
  14928. return true;
  14929. }
  14930. sink.done();
  14931. return true;
  14932. });
  14933. });
  14934. svr_.Post("/echo", [](const Request &req, Response &res) {
  14935. res.set_content(req.body, req.get_header_value("Content-Type"));
  14936. });
  14937. svr_.Post("/chunked-response", [](const Request &req, Response &res) {
  14938. std::string body = req.body;
  14939. res.set_chunked_content_provider(
  14940. "text/plain", [body](size_t offset, DataSink &sink) {
  14941. if (offset < body.size()) {
  14942. sink.write(body.data() + offset, body.size() - offset);
  14943. }
  14944. sink.done();
  14945. return true;
  14946. });
  14947. });
  14948. port_ = svr_.bind_to_any_port("127.0.0.1");
  14949. thread_ = std::thread([this]() { svr_.listen_after_bind(); });
  14950. svr_.wait_until_ready();
  14951. }
  14952. void TearDown() override {
  14953. svr_.stop();
  14954. if (thread_.joinable()) thread_.join();
  14955. }
  14956. SSLServer svr_;
  14957. std::thread thread_;
  14958. int port_ = 0;
  14959. };
  14960. TEST_F(SSLOpenStreamTest, Basic) {
  14961. SSLClient cli("127.0.0.1", port_);
  14962. cli.enable_server_certificate_verification(false);
  14963. auto handle = cli.open_stream("GET", "/hello");
  14964. ASSERT_TRUE(handle.is_valid());
  14965. EXPECT_EQ("Hello SSL World!", read_all(handle));
  14966. }
  14967. TEST_F(SSLOpenStreamTest, Chunked) {
  14968. SSLClient cli("127.0.0.1", port_);
  14969. cli.enable_server_certificate_verification(false);
  14970. auto handle = cli.open_stream("GET", "/chunked");
  14971. ASSERT_TRUE(handle.is_valid()) << "Error: " << static_cast<int>(handle.error);
  14972. EXPECT_TRUE(handle.response && handle.response->get_header_value(
  14973. "Transfer-Encoding") == "chunked");
  14974. auto body = read_all(handle);
  14975. EXPECT_EQ("chunkchunkchunk", body);
  14976. }
  14977. TEST_F(SSLOpenStreamTest, Post) {
  14978. SSLClient cli("127.0.0.1", port_);
  14979. cli.enable_server_certificate_verification(false);
  14980. auto handle =
  14981. cli.open_stream("POST", "/echo", {}, {}, "Hello SSL POST", "text/plain");
  14982. ASSERT_TRUE(handle.is_valid()) << "Error: " << static_cast<int>(handle.error);
  14983. EXPECT_EQ(200, handle.response->status);
  14984. auto body = read_all(handle);
  14985. EXPECT_EQ("Hello SSL POST", body);
  14986. }
  14987. TEST_F(SSLOpenStreamTest, PostChunked) {
  14988. SSLClient cli("127.0.0.1", port_);
  14989. cli.enable_server_certificate_verification(false);
  14990. auto handle = cli.open_stream("POST", "/chunked-response", {}, {},
  14991. "Chunked SSL Data", "text/plain");
  14992. ASSERT_TRUE(handle.is_valid());
  14993. EXPECT_EQ(200, handle.response->status);
  14994. auto body = read_all(handle);
  14995. EXPECT_EQ("Chunked SSL Data", body);
  14996. }
  14997. // RFC 7230 §3.3: a response body with neither chunked Transfer-Encoding nor
  14998. // Content-Length is terminated by the server closing the connection. When the
  14999. // SSL peer sends a close_notify after the body, the client must treat it as a
  15000. // clean EOF and return a successful response rather than an error.
  15001. TEST(SSLTest, ResponseBodyTerminatedByConnectionClose) {
  15002. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  15003. ASSERT_TRUE(svr.is_valid());
  15004. svr.set_keep_alive_max_count(1);
  15005. const std::string expected_body = "Hello from connection-close response!";
  15006. svr.Get("/no-content-length", [&](const Request & /*req*/, Response &res) {
  15007. res.set_content_provider("text/plain",
  15008. [&](size_t offset, DataSink &sink) -> bool {
  15009. if (offset < expected_body.size()) {
  15010. sink.write(expected_body.data() + offset,
  15011. expected_body.size() - offset);
  15012. }
  15013. sink.done();
  15014. return true;
  15015. });
  15016. });
  15017. auto listen_thread = std::thread([&svr] { svr.listen(HOST, PORT); });
  15018. auto se = detail::scope_exit([&] {
  15019. svr.stop();
  15020. listen_thread.join();
  15021. ASSERT_FALSE(svr.is_running());
  15022. });
  15023. svr.wait_until_ready();
  15024. SSLClient cli(HOST, PORT);
  15025. cli.enable_server_certificate_verification(false);
  15026. auto res = cli.Get("/no-content-length");
  15027. ASSERT_TRUE(res) << "Request failed: " << to_string(res.error());
  15028. EXPECT_EQ(StatusCode::OK_200, res->status);
  15029. EXPECT_EQ(expected_body, res->body);
  15030. }
  15031. #endif // CPPHTTPLIB_SSL_ENABLED
  15032. //==============================================================================
  15033. // Parity Tests: ensure streaming and non-streaming APIs produce identical
  15034. // results for various scenarios.
  15035. //==============================================================================
  15036. TEST(ParityTest, GetVsOpenStream) {
  15037. Server svr;
  15038. const std::string path = "/parity";
  15039. const std::string content = "Parity test content: hello world";
  15040. svr.Get(path, [&](const Request & /*req*/, Response &res) {
  15041. res.set_content(content, "text/plain");
  15042. });
  15043. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15044. auto se = detail::scope_exit([&] {
  15045. svr.stop();
  15046. t.join();
  15047. ASSERT_FALSE(svr.is_running());
  15048. });
  15049. svr.wait_until_ready();
  15050. Client cli(HOST, PORT);
  15051. // Non-stream path
  15052. auto r1 = cli.Get(path);
  15053. ASSERT_TRUE(r1);
  15054. EXPECT_EQ(StatusCode::OK_200, r1->status);
  15055. // Stream path
  15056. auto h = cli.open_stream("GET", path);
  15057. ASSERT_TRUE(h.is_valid());
  15058. EXPECT_EQ(r1->body, read_all(h));
  15059. }
  15060. // Helper to compress data with provided compressor type T
  15061. template <typename Compressor>
  15062. static std::string compress_payload_for_parity(const std::string &in) {
  15063. std::string out;
  15064. Compressor compressor;
  15065. bool ok = compressor.compress(in.data(), in.size(), /*last=*/true,
  15066. [&](const char *data, size_t n) {
  15067. out.append(data, n);
  15068. return true;
  15069. });
  15070. EXPECT_TRUE(ok);
  15071. return out;
  15072. }
  15073. // Helper function for compression parity tests
  15074. template <typename Compressor>
  15075. static void test_compression_parity(const std::string &original,
  15076. const std::string &path,
  15077. const std::string &encoding) {
  15078. const std::string compressed =
  15079. compress_payload_for_parity<Compressor>(original);
  15080. Server svr;
  15081. svr.Get(path, [&](const Request & /*req*/, Response &res) {
  15082. res.set_content(compressed, "application/octet-stream");
  15083. res.set_header("Content-Encoding", encoding);
  15084. });
  15085. auto t = std::thread([&] { svr.listen(HOST, PORT); });
  15086. auto se = detail::scope_exit([&] {
  15087. svr.stop();
  15088. t.join();
  15089. ASSERT_FALSE(svr.is_running());
  15090. });
  15091. svr.wait_until_ready();
  15092. Client cli(HOST, PORT);
  15093. // Non-streaming
  15094. {
  15095. auto res = cli.Get(path);
  15096. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  15097. EXPECT_EQ(StatusCode::OK_200, res->status);
  15098. EXPECT_EQ(original, res->body);
  15099. }
  15100. // Streaming
  15101. {
  15102. auto h = cli.open_stream("GET", path);
  15103. ASSERT_TRUE(h.is_valid());
  15104. EXPECT_EQ(original, read_all(h));
  15105. }
  15106. }
  15107. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  15108. TEST(ParityTest, Gzip) {
  15109. test_compression_parity<detail::gzip_compressor>(
  15110. "The quick brown fox jumps over the lazy dog", "/parity-gzip", "gzip");
  15111. }
  15112. #endif
  15113. #ifdef CPPHTTPLIB_BROTLI_SUPPORT
  15114. TEST(ParityTest, Brotli) {
  15115. test_compression_parity<detail::brotli_compressor>(
  15116. "Hello, brotli parity test payload", "/parity-br", "br");
  15117. }
  15118. #endif
  15119. #ifdef CPPHTTPLIB_ZSTD_SUPPORT
  15120. TEST(ParityTest, Zstd) {
  15121. test_compression_parity<detail::zstd_compressor>(
  15122. "Zstandard parity test payload", "/parity-zstd", "zstd");
  15123. }
  15124. #endif
  15125. //==============================================================================
  15126. // New Stream API Tests
  15127. //==============================================================================
  15128. inline std::string read_body(httplib::stream::Result &result) {
  15129. std::string body;
  15130. while (result.next()) {
  15131. body.append(result.data(), result.size());
  15132. }
  15133. return body;
  15134. }
  15135. TEST(ClientConnectionTest, Basic) {
  15136. httplib::ClientConnection conn;
  15137. EXPECT_FALSE(conn.is_open());
  15138. conn.sock = 1;
  15139. EXPECT_TRUE(conn.is_open());
  15140. httplib::ClientConnection conn2(std::move(conn));
  15141. EXPECT_EQ(INVALID_SOCKET, conn.sock);
  15142. conn2.sock = INVALID_SOCKET;
  15143. }
  15144. // Unified test server for all stream::* tests
  15145. class StreamApiTest : public ::testing::Test {
  15146. protected:
  15147. void SetUp() override {
  15148. svr_.Get("/hello", [](const httplib::Request &, httplib::Response &res) {
  15149. res.set_content("Hello World!", "text/plain");
  15150. });
  15151. svr_.Get("/echo-params",
  15152. [](const httplib::Request &req, httplib::Response &res) {
  15153. std::string r;
  15154. for (const auto &p : req.params) {
  15155. if (!r.empty()) r += "&";
  15156. r += p.first + "=" + p.second;
  15157. }
  15158. res.set_content(r, "text/plain");
  15159. });
  15160. svr_.Post("/echo", [](const httplib::Request &req, httplib::Response &res) {
  15161. res.set_content(req.body, req.get_header_value("Content-Type"));
  15162. });
  15163. svr_.Post("/echo-headers",
  15164. [](const httplib::Request &req, httplib::Response &res) {
  15165. std::string r;
  15166. for (const auto &h : req.headers)
  15167. r += h.first + ": " + h.second + "\n";
  15168. res.set_content(r, "text/plain");
  15169. });
  15170. svr_.Post("/echo-params",
  15171. [](const httplib::Request &req, httplib::Response &res) {
  15172. std::string r = "params:";
  15173. for (const auto &p : req.params)
  15174. r += p.first + "=" + p.second + ";";
  15175. res.set_content(r + " body:" + req.body, "text/plain");
  15176. });
  15177. svr_.Post("/large", [](const httplib::Request &, httplib::Response &res) {
  15178. res.set_content(std::string(100 * 1024, 'X'), "application/octet-stream");
  15179. });
  15180. svr_.Put("/echo", [](const httplib::Request &req, httplib::Response &res) {
  15181. res.set_content("PUT:" + req.body, "text/plain");
  15182. });
  15183. svr_.Patch("/echo",
  15184. [](const httplib::Request &req, httplib::Response &res) {
  15185. res.set_content("PATCH:" + req.body, "text/plain");
  15186. });
  15187. svr_.Delete(
  15188. "/resource", [](const httplib::Request &req, httplib::Response &res) {
  15189. res.set_content(req.body.empty() ? "Deleted" : "Deleted:" + req.body,
  15190. "text/plain");
  15191. });
  15192. svr_.Get("/head-test",
  15193. [](const httplib::Request &, httplib::Response &res) {
  15194. res.set_content("body for HEAD", "text/plain");
  15195. });
  15196. svr_.Options("/options",
  15197. [](const httplib::Request &, httplib::Response &res) {
  15198. res.set_header("Allow", "GET, POST, PUT, DELETE, OPTIONS");
  15199. });
  15200. thread_ = std::thread([this]() { svr_.listen(HOST, PORT); });
  15201. svr_.wait_until_ready();
  15202. }
  15203. void TearDown() override {
  15204. svr_.stop();
  15205. if (thread_.joinable()) thread_.join();
  15206. }
  15207. httplib::Server svr_;
  15208. std::thread thread_;
  15209. };
  15210. // stream::Get tests
  15211. TEST_F(StreamApiTest, GetBasic) {
  15212. httplib::Client cli(HOST, PORT);
  15213. auto result = httplib::stream::Get(cli, "/hello");
  15214. ASSERT_TRUE(result.is_valid());
  15215. EXPECT_EQ(200, result.status());
  15216. EXPECT_EQ("Hello World!", read_body(result));
  15217. }
  15218. TEST_F(StreamApiTest, GetWithParams) {
  15219. httplib::Client cli(HOST, PORT);
  15220. httplib::Params params{{"foo", "bar"}};
  15221. auto result = httplib::stream::Get(cli, "/echo-params", params);
  15222. ASSERT_TRUE(result.is_valid());
  15223. EXPECT_TRUE(read_body(result).find("foo=bar") != std::string::npos);
  15224. }
  15225. TEST_F(StreamApiTest, GetConnectionError) {
  15226. httplib::Client cli(HOST, 9999);
  15227. EXPECT_FALSE(httplib::stream::Get(cli, "/hello").is_valid());
  15228. }
  15229. TEST_F(StreamApiTest, Get404) {
  15230. httplib::Client cli(HOST, PORT);
  15231. auto result = httplib::stream::Get(cli, "/nonexistent");
  15232. EXPECT_TRUE(result.is_valid());
  15233. EXPECT_EQ(404, result.status());
  15234. }
  15235. // stream::Post tests
  15236. TEST_F(StreamApiTest, PostBasic) {
  15237. httplib::Client cli(HOST, PORT);
  15238. auto result = httplib::stream::Post(cli, "/echo", R"({"key":"value"})",
  15239. "application/json");
  15240. ASSERT_TRUE(result.is_valid());
  15241. EXPECT_EQ("application/json", result.get_header_value("Content-Type"));
  15242. EXPECT_EQ(R"({"key":"value"})", read_body(result));
  15243. }
  15244. TEST_F(StreamApiTest, PostWithHeaders) {
  15245. httplib::Client cli(HOST, PORT);
  15246. httplib::Headers headers{{"X-Custom", "value"}};
  15247. auto result = httplib::stream::Post(cli, "/echo-headers", headers, "body",
  15248. "text/plain");
  15249. EXPECT_TRUE(read_body(result).find("X-Custom: value") != std::string::npos);
  15250. }
  15251. TEST_F(StreamApiTest, PostWithParams) {
  15252. httplib::Client cli(HOST, PORT);
  15253. httplib::Params params{{"k", "v"}};
  15254. auto result =
  15255. httplib::stream::Post(cli, "/echo-params", params, "data", "text/plain");
  15256. auto body = read_body(result);
  15257. EXPECT_TRUE(body.find("k=v") != std::string::npos);
  15258. EXPECT_TRUE(body.find("body:data") != std::string::npos);
  15259. }
  15260. TEST_F(StreamApiTest, PostLarge) {
  15261. httplib::Client cli(HOST, PORT);
  15262. auto result = httplib::stream::Post(cli, "/large", "", "text/plain");
  15263. size_t total = 0;
  15264. while (result.next()) {
  15265. total += result.size();
  15266. }
  15267. EXPECT_EQ(100u * 1024u, total);
  15268. }
  15269. // stream::Put/Patch tests
  15270. TEST_F(StreamApiTest, PutAndPatch) {
  15271. httplib::Client cli(HOST, PORT);
  15272. auto put = httplib::stream::Put(cli, "/echo", "test", "text/plain");
  15273. EXPECT_EQ("PUT:test", read_body(put));
  15274. auto patch = httplib::stream::Patch(cli, "/echo", "test", "text/plain");
  15275. EXPECT_EQ("PATCH:test", read_body(patch));
  15276. }
  15277. // stream::Delete tests
  15278. TEST_F(StreamApiTest, Delete) {
  15279. httplib::Client cli(HOST, PORT);
  15280. auto del1 = httplib::stream::Delete(cli, "/resource");
  15281. EXPECT_EQ("Deleted", read_body(del1));
  15282. auto del2 = httplib::stream::Delete(cli, "/resource", "data", "text/plain");
  15283. EXPECT_EQ("Deleted:data", read_body(del2));
  15284. }
  15285. // stream::Head/Options tests
  15286. TEST_F(StreamApiTest, HeadAndOptions) {
  15287. httplib::Client cli(HOST, PORT);
  15288. auto head = httplib::stream::Head(cli, "/head-test");
  15289. EXPECT_TRUE(head.is_valid());
  15290. EXPECT_FALSE(head.get_header_value("Content-Length").empty());
  15291. auto opts = httplib::stream::Options(cli, "/options");
  15292. EXPECT_EQ("GET, POST, PUT, DELETE, OPTIONS", opts.get_header_value("Allow"));
  15293. }
  15294. // SSL stream::* tests
  15295. #ifdef CPPHTTPLIB_SSL_ENABLED
  15296. class SSLStreamApiTest : public ::testing::Test {
  15297. protected:
  15298. void SetUp() override {
  15299. svr_.Get("/hello", [](const httplib::Request &, httplib::Response &res) {
  15300. res.set_content("Hello SSL!", "text/plain");
  15301. });
  15302. svr_.Post("/echo", [](const httplib::Request &req, httplib::Response &res) {
  15303. res.set_content(req.body, "text/plain");
  15304. });
  15305. port_ = svr_.bind_to_any_port("127.0.0.1");
  15306. thread_ = std::thread([this]() { svr_.listen_after_bind(); });
  15307. svr_.wait_until_ready();
  15308. }
  15309. void TearDown() override {
  15310. svr_.stop();
  15311. if (thread_.joinable()) thread_.join();
  15312. }
  15313. httplib::SSLServer svr_{"cert.pem", "key.pem"};
  15314. std::thread thread_;
  15315. int port_ = 0;
  15316. };
  15317. TEST_F(SSLStreamApiTest, GetAndPost) {
  15318. httplib::SSLClient cli("127.0.0.1", port_);
  15319. cli.enable_server_certificate_verification(false);
  15320. auto get = httplib::stream::Get(cli, "/hello");
  15321. EXPECT_EQ("Hello SSL!", read_body(get));
  15322. auto post = httplib::stream::Post(cli, "/echo", "test", "text/plain");
  15323. EXPECT_EQ("test", read_body(post));
  15324. }
  15325. #endif
  15326. // Tests for Error::Timeout and Error::ConnectionClosed error types
  15327. // These errors are set in SocketStream/SSLSocketStream and propagated through
  15328. // BodyReader
  15329. TEST(ErrorHandlingTest, StreamReadTimeout) {
  15330. // Test that read timeout during streaming is detected
  15331. // Use a large content-length response where server delays mid-stream
  15332. Server svr;
  15333. svr.Get("/slow-stream", [](const Request &, Response &res) {
  15334. // Send a large response with delay in the middle
  15335. res.set_content_provider(
  15336. 1000, // content_length
  15337. "text/plain", [](size_t offset, size_t /*length*/, DataSink &sink) {
  15338. if (offset < 100) {
  15339. // Send first 100 bytes immediately
  15340. std::string data(100, 'A');
  15341. sink.write(data.c_str(), data.size());
  15342. return true;
  15343. }
  15344. // Then delay longer than client timeout
  15345. std::this_thread::sleep_for(std::chrono::seconds(3));
  15346. std::string data(900, 'B');
  15347. sink.write(data.c_str(), data.size());
  15348. return true;
  15349. });
  15350. });
  15351. auto port = 8091;
  15352. std::thread t([&]() { svr.listen("localhost", port); });
  15353. svr.wait_until_ready();
  15354. Client cli("localhost", port);
  15355. cli.set_read_timeout(1, 0); // 1 second timeout
  15356. auto handle = cli.open_stream("GET", "/slow-stream");
  15357. ASSERT_TRUE(handle.is_valid());
  15358. char buf[256];
  15359. ssize_t total = 0;
  15360. ssize_t n;
  15361. bool got_error = false;
  15362. while ((n = handle.read(buf, sizeof(buf))) > 0) {
  15363. total += n;
  15364. }
  15365. if (n < 0) {
  15366. got_error = true;
  15367. // Should be timeout or read error
  15368. EXPECT_TRUE(handle.get_read_error() == Error::Timeout ||
  15369. handle.get_read_error() == Error::Read)
  15370. << "Actual error: " << to_string(handle.get_read_error());
  15371. }
  15372. // Either we got an error, or we got less data than expected
  15373. EXPECT_TRUE(got_error || total < 1000)
  15374. << "Expected timeout but got all " << total << " bytes";
  15375. svr.stop();
  15376. t.join();
  15377. }
  15378. TEST(ErrorHandlingTest, StreamConnectionClosed) {
  15379. // Test connection closed detection via BodyReader
  15380. Server svr;
  15381. std::atomic<bool> close_now{false};
  15382. svr.Get("/will-close", [&](const Request &, Response &res) {
  15383. res.set_content_provider(
  15384. 10000, // Large content_length that we won't fully send
  15385. "text/plain", [&](size_t offset, size_t /*length*/, DataSink &sink) {
  15386. if (offset < 100) {
  15387. std::string data(100, 'X');
  15388. sink.write(data.c_str(), data.size());
  15389. return true;
  15390. }
  15391. // Wait for signal then abort
  15392. while (!close_now) {
  15393. std::this_thread::sleep_for(std::chrono::milliseconds(10));
  15394. }
  15395. return false; // Abort - server will close connection
  15396. });
  15397. });
  15398. auto port = 8092;
  15399. std::thread t([&]() { svr.listen("localhost", port); });
  15400. svr.wait_until_ready();
  15401. Client cli("localhost", port);
  15402. auto handle = cli.open_stream("GET", "/will-close");
  15403. ASSERT_TRUE(handle.is_valid());
  15404. char buf[256];
  15405. ssize_t n = handle.read(buf, sizeof(buf)); // First read
  15406. EXPECT_GT(n, 0) << "First read should succeed";
  15407. // Signal server to close
  15408. close_now = true;
  15409. // Keep reading until error or EOF
  15410. while ((n = handle.read(buf, sizeof(buf))) > 0) {
  15411. // Keep reading
  15412. }
  15413. // Should get an error since content_length wasn't satisfied
  15414. if (n < 0) {
  15415. EXPECT_TRUE(handle.get_read_error() == Error::ConnectionClosed ||
  15416. handle.get_read_error() == Error::Read)
  15417. << "Actual error: " << to_string(handle.get_read_error());
  15418. }
  15419. svr.stop();
  15420. t.join();
  15421. }
  15422. #ifdef CPPHTTPLIB_SSL_ENABLED
  15423. TEST(ErrorHandlingTest, SSLStreamReadTimeout) {
  15424. // Test that read timeout during SSL streaming is detected
  15425. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  15426. svr.Get("/slow-stream", [](const Request &, Response &res) {
  15427. res.set_content_provider(
  15428. 1000, "text/plain",
  15429. [](size_t offset, size_t /*length*/, DataSink &sink) {
  15430. if (offset < 100) {
  15431. std::string data(100, 'A');
  15432. sink.write(data.c_str(), data.size());
  15433. return true;
  15434. }
  15435. std::this_thread::sleep_for(std::chrono::seconds(3));
  15436. std::string data(900, 'B');
  15437. sink.write(data.c_str(), data.size());
  15438. return true;
  15439. });
  15440. });
  15441. auto port = 8093;
  15442. std::thread t([&]() { svr.listen("localhost", port); });
  15443. svr.wait_until_ready();
  15444. SSLClient cli("localhost", port);
  15445. cli.enable_server_certificate_verification(false);
  15446. cli.set_read_timeout(1, 0); // 1 second timeout
  15447. auto handle = cli.open_stream("GET", "/slow-stream");
  15448. ASSERT_TRUE(handle.is_valid());
  15449. char buf[256];
  15450. ssize_t total = 0;
  15451. ssize_t n;
  15452. bool got_error = false;
  15453. while ((n = handle.read(buf, sizeof(buf))) > 0) {
  15454. total += n;
  15455. }
  15456. if (n < 0) {
  15457. got_error = true;
  15458. EXPECT_TRUE(handle.get_read_error() == Error::Timeout ||
  15459. handle.get_read_error() == Error::Read)
  15460. << "Actual error: " << to_string(handle.get_read_error());
  15461. }
  15462. EXPECT_TRUE(got_error || total < 1000)
  15463. << "Expected timeout but got all " << total << " bytes";
  15464. svr.stop();
  15465. t.join();
  15466. }
  15467. TEST(ErrorHandlingTest, SSLStreamConnectionClosed) {
  15468. // Test SSL connection closed detection
  15469. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  15470. std::atomic<bool> close_now{false};
  15471. svr.Get("/will-close", [&](const Request &, Response &res) {
  15472. res.set_content_provider(
  15473. 10000, "text/plain",
  15474. [&](size_t offset, size_t /*length*/, DataSink &sink) {
  15475. if (offset < 100) {
  15476. std::string data(100, 'X');
  15477. sink.write(data.c_str(), data.size());
  15478. return true;
  15479. }
  15480. while (!close_now) {
  15481. std::this_thread::sleep_for(std::chrono::milliseconds(10));
  15482. }
  15483. return false;
  15484. });
  15485. });
  15486. auto port = 8094;
  15487. std::thread t([&]() { svr.listen("localhost", port); });
  15488. svr.wait_until_ready();
  15489. SSLClient cli("localhost", port);
  15490. cli.enable_server_certificate_verification(false);
  15491. auto handle = cli.open_stream("GET", "/will-close");
  15492. ASSERT_TRUE(handle.is_valid());
  15493. char buf[256];
  15494. ssize_t n = handle.read(buf, sizeof(buf)); // First read
  15495. EXPECT_GT(n, 0);
  15496. // Signal server to close
  15497. close_now = true;
  15498. while ((n = handle.read(buf, sizeof(buf))) > 0) {
  15499. // Keep reading
  15500. }
  15501. if (n < 0) {
  15502. EXPECT_TRUE(handle.get_read_error() == Error::ConnectionClosed ||
  15503. handle.get_read_error() == Error::Read)
  15504. << "Actual error: " << to_string(handle.get_read_error());
  15505. }
  15506. svr.stop();
  15507. t.join();
  15508. }
  15509. #endif
  15510. TEST(ETagTest, StaticFileETagAndIfNoneMatch) {
  15511. using namespace httplib;
  15512. // Create a test file
  15513. const char *fname = "etag_testfile.txt";
  15514. const char *content = "etag-content";
  15515. {
  15516. std::ofstream ofs(fname);
  15517. ofs << content;
  15518. ASSERT_TRUE(ofs.good());
  15519. }
  15520. Server svr;
  15521. svr.set_mount_point("/static", ".");
  15522. auto t = std::thread([&]() { svr.listen("localhost", PORT); });
  15523. svr.wait_until_ready();
  15524. Client cli(HOST, PORT);
  15525. // First request: should get 200 with ETag header
  15526. auto res1 = cli.Get("/static/etag_testfile.txt");
  15527. ASSERT_TRUE(res1);
  15528. ASSERT_EQ(200, res1->status);
  15529. ASSERT_TRUE(res1->has_header("ETag"));
  15530. std::string etag = res1->get_header_value("ETag");
  15531. EXPECT_FALSE(etag.empty());
  15532. // Verify ETag format: W/"hex-hex"
  15533. ASSERT_GE(etag.length(), 5u); // Minimum: W/""
  15534. EXPECT_EQ('W', etag[0]);
  15535. EXPECT_EQ('/', etag[1]);
  15536. EXPECT_EQ('"', etag[2]);
  15537. EXPECT_EQ('"', etag.back());
  15538. // Exact match: expect 304 Not Modified
  15539. Headers h2 = {{"If-None-Match", etag}};
  15540. auto res2 = cli.Get("/static/etag_testfile.txt", h2);
  15541. ASSERT_TRUE(res2);
  15542. EXPECT_EQ(304, res2->status);
  15543. // Wildcard match: expect 304 Not Modified
  15544. Headers h3 = {{"If-None-Match", "*"}};
  15545. auto res3 = cli.Get("/static/etag_testfile.txt", h3);
  15546. ASSERT_TRUE(res3);
  15547. EXPECT_EQ(304, res3->status);
  15548. // Non-matching ETag: expect 200
  15549. Headers h4 = {{"If-None-Match", "W/\"deadbeef\""}};
  15550. auto res4 = cli.Get("/static/etag_testfile.txt", h4);
  15551. ASSERT_TRUE(res4);
  15552. EXPECT_EQ(200, res4->status);
  15553. // Multiple ETags with one matching: expect 304
  15554. Headers h5 = {{"If-None-Match", "W/\"other\", " + etag + ", W/\"another\""}};
  15555. auto res5 = cli.Get("/static/etag_testfile.txt", h5);
  15556. ASSERT_TRUE(res5);
  15557. EXPECT_EQ(304, res5->status);
  15558. // The ETag list split over several field lines: RFC 9110 Section 5.3 makes
  15559. // that equivalent to the single comma-separated list above, so the match on
  15560. // the second line must still be found.
  15561. Headers h6;
  15562. h6.emplace("If-None-Match", "W/\"other\"");
  15563. h6.emplace("If-None-Match", etag);
  15564. auto res6 = cli.Get("/static/etag_testfile.txt", h6);
  15565. ASSERT_TRUE(res6);
  15566. EXPECT_EQ(304, res6->status);
  15567. svr.stop();
  15568. t.join();
  15569. std::remove(fname);
  15570. }
  15571. TEST(ETagTest, StaticFileETagIfNoneMatchStarNotFound) {
  15572. using namespace httplib;
  15573. Server svr;
  15574. svr.set_mount_point("/static", ".");
  15575. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15576. svr.wait_until_ready();
  15577. Client cli(HOST, PORT);
  15578. // Send If-None-Match: * to a non-existent file
  15579. Headers h = {{"If-None-Match", "*"}};
  15580. auto res = cli.Get("/static/etag_testfile_notfound.txt", h);
  15581. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  15582. EXPECT_EQ(404, res->status);
  15583. svr.stop();
  15584. t.join();
  15585. }
  15586. TEST(ETagTest, IfNoneMatchBoundaryCheck) {
  15587. using namespace httplib;
  15588. // Create a test file
  15589. const char *fname = "etag_boundary_testfile.txt";
  15590. const char *content = "boundary-test";
  15591. {
  15592. std::ofstream ofs(fname);
  15593. ofs << content;
  15594. ASSERT_TRUE(ofs.good());
  15595. }
  15596. Server svr;
  15597. svr.set_mount_point("/static", ".");
  15598. auto t = std::thread([&]() { svr.listen("localhost", PORT); });
  15599. svr.wait_until_ready();
  15600. Client cli(HOST, PORT);
  15601. // Get the actual ETag
  15602. auto res1 = cli.Get("/static/etag_boundary_testfile.txt");
  15603. ASSERT_TRUE(res1);
  15604. ASSERT_EQ(200, res1->status);
  15605. ASSERT_TRUE(res1->has_header("ETag"));
  15606. std::string etag = res1->get_header_value("ETag");
  15607. // Test 1: Very long ETag value (longer than actual ETag)
  15608. // Should NOT match and return 200 (not trigger out-of-bounds read)
  15609. Headers h1 = {{"If-None-Match", "W/"
  15610. "\"very-long-etag-value-that-is-much-longer-"
  15611. "than-the-actual-etag-value\""}};
  15612. auto res2 = cli.Get("/static/etag_boundary_testfile.txt", h1);
  15613. ASSERT_TRUE(res2);
  15614. EXPECT_EQ(200, res2->status); // Should not match
  15615. // Test 2: Long string followed by wildcard
  15616. // Should match on "*" and return 304 (without out-of-bounds read on the long
  15617. // string)
  15618. Headers h2 = {{"If-None-Match", "W/\"another-very-long-value\", *"}};
  15619. auto res3 = cli.Get("/static/etag_boundary_testfile.txt", h2);
  15620. ASSERT_TRUE(res3);
  15621. EXPECT_EQ(304, res3->status); // Should match on "*"
  15622. // Test 3: Wildcard followed by long string
  15623. // Should match on "*" immediately and return 304
  15624. Headers h3 = {{"If-None-Match", "*, W/\"long-value-after-wildcard\""}};
  15625. auto res4 = cli.Get("/static/etag_boundary_testfile.txt", h3);
  15626. ASSERT_TRUE(res4);
  15627. EXPECT_EQ(304, res4->status); // Should match on "*"
  15628. // Test 4: Multiple long non-matching values
  15629. // Should NOT match and return 200 (test that all comparisons are safe)
  15630. Headers h4 = {{"If-None-Match", "W/\"first-long-non-matching-value\", "
  15631. "W/\"second-long-non-matching-value\", "
  15632. "W/\"third-long-non-matching-value\""}};
  15633. auto res5 = cli.Get("/static/etag_boundary_testfile.txt", h4);
  15634. ASSERT_TRUE(res5);
  15635. EXPECT_EQ(200, res5->status); // Should not match
  15636. // Test 5: Single character that is not "*" (edge case)
  15637. Headers h5 = {{"If-None-Match", "X"}};
  15638. auto res6 = cli.Get("/static/etag_boundary_testfile.txt", h5);
  15639. ASSERT_TRUE(res6);
  15640. EXPECT_EQ(200, res6->status); // Should not match
  15641. svr.stop();
  15642. t.join();
  15643. std::remove(fname);
  15644. }
  15645. TEST(ETagTest, LastModifiedAndIfModifiedSince) {
  15646. using namespace httplib;
  15647. // Create a test file
  15648. const char *fname = "ims_testfile.txt";
  15649. const char *content = "if-modified-since-test";
  15650. {
  15651. std::ofstream ofs(fname);
  15652. ofs << content;
  15653. ASSERT_TRUE(ofs.good());
  15654. }
  15655. Server svr;
  15656. svr.set_mount_point("/static", ".");
  15657. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15658. svr.wait_until_ready();
  15659. Client cli(HOST, PORT);
  15660. // First request: should get 200 with Last-Modified header
  15661. auto res1 = cli.Get("/static/ims_testfile.txt");
  15662. ASSERT_TRUE(res1);
  15663. ASSERT_EQ(200, res1->status);
  15664. ASSERT_TRUE(res1->has_header("Last-Modified"));
  15665. std::string last_modified = res1->get_header_value("Last-Modified");
  15666. EXPECT_FALSE(last_modified.empty());
  15667. // If-Modified-Since with same time: expect 304
  15668. Headers h2 = {{"If-Modified-Since", last_modified}};
  15669. auto res2 = cli.Get("/static/ims_testfile.txt", h2);
  15670. ASSERT_TRUE(res2);
  15671. EXPECT_EQ(304, res2->status);
  15672. // If-Modified-Since with future time: expect 304
  15673. Headers h3 = {{"If-Modified-Since", "Sun, 01 Jan 2099 00:00:00 GMT"}};
  15674. auto res3 = cli.Get("/static/ims_testfile.txt", h3);
  15675. ASSERT_TRUE(res3);
  15676. EXPECT_EQ(304, res3->status);
  15677. // If-Modified-Since with past time: expect 200
  15678. Headers h4 = {{"If-Modified-Since", "Sun, 01 Jan 2000 00:00:00 GMT"}};
  15679. auto res4 = cli.Get("/static/ims_testfile.txt", h4);
  15680. ASSERT_TRUE(res4);
  15681. EXPECT_EQ(200, res4->status);
  15682. // If-None-Match takes precedence over If-Modified-Since
  15683. // (send matching ETag with old If-Modified-Since -> should still be 304)
  15684. ASSERT_TRUE(res1->has_header("ETag"));
  15685. std::string etag = res1->get_header_value("ETag");
  15686. Headers h5 = {{"If-None-Match", etag},
  15687. {"If-Modified-Since", "Sun, 01 Jan 2000 00:00:00 GMT"}};
  15688. auto res5 = cli.Get("/static/ims_testfile.txt", h5);
  15689. ASSERT_TRUE(res5);
  15690. EXPECT_EQ(304, res5->status);
  15691. svr.stop();
  15692. t.join();
  15693. std::remove(fname);
  15694. }
  15695. TEST(ETagTest, VaryAcceptEncodingWithCompression) {
  15696. using namespace httplib;
  15697. Server svr;
  15698. // Endpoint that returns compressible content
  15699. svr.Get("/compressible", [](const Request &, Response &res) {
  15700. // Return a large enough body to trigger compression
  15701. std::string body(1000, 'a');
  15702. res.set_content(body, "text/plain");
  15703. });
  15704. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15705. svr.wait_until_ready();
  15706. Client cli(HOST, PORT);
  15707. // Request with gzip support: should get Vary header when compressed
  15708. cli.set_compress(true);
  15709. auto res1 = cli.Get("/compressible");
  15710. ASSERT_TRUE(res1);
  15711. EXPECT_EQ(200, res1->status);
  15712. // If Content-Encoding is set, Vary should also be set
  15713. if (res1->has_header("Content-Encoding")) {
  15714. EXPECT_TRUE(res1->has_header("Vary"));
  15715. EXPECT_EQ("Accept-Encoding", res1->get_header_value("Vary"));
  15716. }
  15717. // Request without Accept-Encoding header: should not have compression
  15718. Headers h_no_compress;
  15719. auto res2 = cli.Get("/compressible", h_no_compress);
  15720. ASSERT_TRUE(res2);
  15721. EXPECT_EQ(200, res2->status);
  15722. // Verify Vary header is present when compression is applied
  15723. // (the exact behavior depends on server configuration)
  15724. svr.stop();
  15725. t.join();
  15726. }
  15727. TEST(ETagTest, IfRangeWithETag) {
  15728. using namespace httplib;
  15729. // Create a test file with known content
  15730. const char *fname = "if_range_testfile.txt";
  15731. const std::string content = "0123456789ABCDEFGHIJ"; // 20 bytes
  15732. {
  15733. std::ofstream ofs(fname);
  15734. ofs << content;
  15735. ASSERT_TRUE(ofs.good());
  15736. }
  15737. Server svr;
  15738. svr.set_mount_point("/static", ".");
  15739. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15740. svr.wait_until_ready();
  15741. Client cli(HOST, PORT);
  15742. // First request: get ETag
  15743. auto res1 = cli.Get("/static/if_range_testfile.txt");
  15744. ASSERT_TRUE(res1);
  15745. ASSERT_EQ(200, res1->status);
  15746. ASSERT_TRUE(res1->has_header("ETag"));
  15747. std::string etag = res1->get_header_value("ETag");
  15748. // RFC 9110 Section 13.1.5: If-Range requires strong ETag comparison.
  15749. // Since our server generates weak ETags (W/"..."), If-Range with our
  15750. // ETag should NOT result in partial content - it should return full content.
  15751. Headers h2 = {{"Range", "bytes=0-4"}, {"If-Range", etag}};
  15752. auto res2 = cli.Get("/static/if_range_testfile.txt", h2);
  15753. ASSERT_TRUE(res2);
  15754. // Weak ETag in If-Range -> full content (200), not partial (206)
  15755. EXPECT_EQ(200, res2->status);
  15756. EXPECT_EQ(content, res2->body);
  15757. EXPECT_FALSE(res2->has_header("Content-Range"));
  15758. // Range request with non-matching If-Range (ETag): should get 200 (full
  15759. // content)
  15760. Headers h3 = {{"Range", "bytes=0-4"}, {"If-Range", "W/\"wrong-etag\""}};
  15761. auto res3 = cli.Get("/static/if_range_testfile.txt", h3);
  15762. ASSERT_TRUE(res3);
  15763. EXPECT_EQ(200, res3->status);
  15764. EXPECT_EQ(content, res3->body);
  15765. EXPECT_FALSE(res3->has_header("Content-Range"));
  15766. // Range request with strong ETag (hypothetical - our server doesn't generate
  15767. // strong ETags, but if client sends a strong ETag that doesn't match, it
  15768. // should return full content)
  15769. Headers h4 = {{"Range", "bytes=0-4"}, {"If-Range", "\"strong-etag\""}};
  15770. auto res4 = cli.Get("/static/if_range_testfile.txt", h4);
  15771. ASSERT_TRUE(res4);
  15772. EXPECT_EQ(200, res4->status);
  15773. EXPECT_EQ(content, res4->body);
  15774. EXPECT_FALSE(res4->has_header("Content-Range"));
  15775. svr.stop();
  15776. t.join();
  15777. std::remove(fname);
  15778. }
  15779. TEST(ETagTest, IfRangeWithDate) {
  15780. using namespace httplib;
  15781. // Create a test file
  15782. const char *fname = "if_range_date_testfile.txt";
  15783. const std::string content = "ABCDEFGHIJ0123456789"; // 20 bytes
  15784. {
  15785. std::ofstream ofs(fname);
  15786. ofs << content;
  15787. ASSERT_TRUE(ofs.good());
  15788. }
  15789. Server svr;
  15790. svr.set_mount_point("/static", ".");
  15791. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15792. svr.wait_until_ready();
  15793. Client cli(HOST, PORT);
  15794. // First request: get Last-Modified
  15795. auto res1 = cli.Get("/static/if_range_date_testfile.txt");
  15796. ASSERT_TRUE(res1);
  15797. ASSERT_EQ(200, res1->status);
  15798. ASSERT_TRUE(res1->has_header("Last-Modified"));
  15799. std::string last_modified = res1->get_header_value("Last-Modified");
  15800. // Range request with matching If-Range (date): should get 206
  15801. Headers h2 = {{"Range", "bytes=5-9"}, {"If-Range", last_modified}};
  15802. auto res2 = cli.Get("/static/if_range_date_testfile.txt", h2);
  15803. ASSERT_TRUE(res2);
  15804. EXPECT_EQ(206, res2->status);
  15805. EXPECT_EQ("FGHIJ", res2->body);
  15806. // Range request with old If-Range date: should get 200 (full content)
  15807. Headers h3 = {{"Range", "bytes=5-9"},
  15808. {"If-Range", "Sun, 01 Jan 2000 00:00:00 GMT"}};
  15809. auto res3 = cli.Get("/static/if_range_date_testfile.txt", h3);
  15810. ASSERT_TRUE(res3);
  15811. EXPECT_EQ(200, res3->status);
  15812. EXPECT_EQ(content, res3->body);
  15813. // Range request with future If-Range date: should get 206
  15814. Headers h4 = {{"Range", "bytes=0-4"},
  15815. {"If-Range", "Sun, 01 Jan 2099 00:00:00 GMT"}};
  15816. auto res4 = cli.Get("/static/if_range_date_testfile.txt", h4);
  15817. ASSERT_TRUE(res4);
  15818. EXPECT_EQ(206, res4->status);
  15819. EXPECT_EQ("ABCDE", res4->body);
  15820. svr.stop();
  15821. t.join();
  15822. std::remove(fname);
  15823. }
  15824. TEST(ETagTest, MalformedIfNoneMatchAndWhitespace) {
  15825. using namespace httplib;
  15826. const char *fname = "etag_malformed.txt";
  15827. const char *content = "malformed-etag";
  15828. {
  15829. std::ofstream ofs(fname);
  15830. ofs << content;
  15831. ASSERT_TRUE(ofs.good());
  15832. }
  15833. Server svr;
  15834. svr.set_mount_point("/static", ".");
  15835. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15836. svr.wait_until_ready();
  15837. Client cli(HOST, PORT);
  15838. // baseline: should get 200 and an ETag
  15839. auto res1 = cli.Get("/static/etag_malformed.txt");
  15840. ASSERT_TRUE(res1);
  15841. ASSERT_EQ(200, res1->status);
  15842. ASSERT_TRUE(res1->has_header("ETag"));
  15843. // Malformed ETag value (missing quotes) should be treated as non-matching
  15844. Headers h_bad = {{"If-None-Match", "W/noquotes"}};
  15845. auto res_bad = cli.Get("/static/etag_malformed.txt", h_bad);
  15846. ASSERT_TRUE(res_bad);
  15847. EXPECT_EQ(200, res_bad->status);
  15848. // Whitespace-only header value should be considered invalid / non-matching
  15849. std::string raw_req = "GET /static/etag_malformed.txt HTTP/1.1\r\n"
  15850. "Host: localhost\r\n"
  15851. "If-None-Match: \r\n"
  15852. "Connection: close\r\n"
  15853. "\r\n";
  15854. std::string out;
  15855. ASSERT_TRUE(send_request(5, raw_req, &out));
  15856. EXPECT_EQ("HTTP/1.1 200 OK", out.substr(0, 15));
  15857. svr.stop();
  15858. t.join();
  15859. std::remove(fname);
  15860. }
  15861. TEST(ETagTest, InvalidIfModifiedSinceAndIfRangeDate) {
  15862. using namespace httplib;
  15863. const char *fname = "ims_invalid_format.txt";
  15864. const char *content = "ims-bad-format";
  15865. {
  15866. std::ofstream ofs(fname);
  15867. ofs << content;
  15868. ASSERT_TRUE(ofs.good());
  15869. }
  15870. Server svr;
  15871. svr.set_mount_point("/static", ".");
  15872. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15873. svr.wait_until_ready();
  15874. Client cli(HOST, PORT);
  15875. auto res1 = cli.Get("/static/ims_invalid_format.txt");
  15876. ASSERT_TRUE(res1);
  15877. ASSERT_EQ(200, res1->status);
  15878. ASSERT_TRUE(res1->has_header("Last-Modified"));
  15879. // If-Modified-Since with invalid format should not result in 304
  15880. Headers h_bad_date = {{"If-Modified-Since", "not-a-valid-date"}};
  15881. auto res_bad = cli.Get("/static/ims_invalid_format.txt", h_bad_date);
  15882. ASSERT_TRUE(res_bad);
  15883. EXPECT_EQ(200, res_bad->status);
  15884. // If-Range with invalid date format should be treated as mismatch -> full
  15885. // content (200)
  15886. Headers h_ifrange_bad = {{"Range", "bytes=0-3"},
  15887. {"If-Range", "invalid-date"}};
  15888. auto res_ifrange = cli.Get("/static/ims_invalid_format.txt", h_ifrange_bad);
  15889. ASSERT_TRUE(res_ifrange);
  15890. EXPECT_EQ(200, res_ifrange->status);
  15891. svr.stop();
  15892. t.join();
  15893. std::remove(fname);
  15894. }
  15895. TEST(ETagTest, IfRangeWithMalformedETag) {
  15896. using namespace httplib;
  15897. const char *fname = "ifrange_malformed.txt";
  15898. const std::string content = "0123456789";
  15899. {
  15900. std::ofstream ofs(fname);
  15901. ofs << content;
  15902. ASSERT_TRUE(ofs.good());
  15903. }
  15904. Server svr;
  15905. svr.set_mount_point("/static", ".");
  15906. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15907. svr.wait_until_ready();
  15908. Client cli(HOST, PORT);
  15909. // First request: get ETag
  15910. auto res1 = cli.Get("/static/ifrange_malformed.txt");
  15911. ASSERT_TRUE(res1);
  15912. ASSERT_EQ(200, res1->status);
  15913. ASSERT_TRUE(res1->has_header("ETag"));
  15914. // If-Range with malformed ETag (no quotes) should be treated as mismatch ->
  15915. // full content (200)
  15916. Headers h_malformed = {{"Range", "bytes=0-4"}, {"If-Range", "W/noquotes"}};
  15917. auto res2 = cli.Get("/static/ifrange_malformed.txt", h_malformed);
  15918. ASSERT_TRUE(res2);
  15919. EXPECT_EQ(200, res2->status);
  15920. EXPECT_EQ(content, res2->body);
  15921. svr.stop();
  15922. t.join();
  15923. std::remove(fname);
  15924. }
  15925. TEST(ETagTest, ExtremeLargeDateValues) {
  15926. using namespace httplib;
  15927. const char *fname = "ims_extreme_date.txt";
  15928. const char *content = "ims-extreme-date";
  15929. {
  15930. std::ofstream ofs(fname);
  15931. ofs << content;
  15932. ASSERT_TRUE(ofs.good());
  15933. }
  15934. Server svr;
  15935. svr.set_mount_point("/static", ".");
  15936. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15937. svr.wait_until_ready();
  15938. Client cli(HOST, PORT);
  15939. auto res1 = cli.Get(std::string("/static/") + fname);
  15940. ASSERT_TRUE(res1);
  15941. ASSERT_EQ(200, res1->status);
  15942. ASSERT_TRUE(res1->has_header("Last-Modified"));
  15943. // Extremely large year that may overflow date parsing routines.
  15944. Headers h_large_date = {
  15945. {"If-Modified-Since", "Sun, 01 Jan 99999 00:00:00 GMT"}};
  15946. auto res_bad = cli.Get(std::string("/static/") + fname, h_large_date);
  15947. ASSERT_TRUE(res_bad);
  15948. // Expect server to treat this as invalid/mismatch and return full content
  15949. EXPECT_EQ(200, res_bad->status);
  15950. // If-Range with extremely large date should be treated as mismatch -> full
  15951. // content (200)
  15952. Headers h_ifrange_large = {{"Range", "bytes=0-3"},
  15953. {"If-Range", "Sun, 01 Jan 99999 00:00:00 GMT"}};
  15954. auto res_ifrange = cli.Get(std::string("/static/") + fname, h_ifrange_large);
  15955. ASSERT_TRUE(res_ifrange);
  15956. EXPECT_EQ(200, res_ifrange->status);
  15957. svr.stop();
  15958. t.join();
  15959. std::remove(fname);
  15960. }
  15961. TEST(ETagTest, NegativeFileModificationTime) {
  15962. using namespace httplib;
  15963. const char *fname = "ims_negative_mtime.txt";
  15964. const std::string content = "negative-mtime";
  15965. {
  15966. std::ofstream ofs(fname);
  15967. ofs << content;
  15968. ASSERT_TRUE(ofs.good());
  15969. }
  15970. // Try to set file mtime to a negative value. This may fail on some
  15971. // platforms/filesystems; if it fails, the test will still verify server
  15972. // behaves safely by performing a regular conditional request.
  15973. #if defined(__APPLE__) || defined(__linux__)
  15974. bool set_negative = false;
  15975. do {
  15976. struct timeval times[2];
  15977. // access time: now
  15978. times[0].tv_sec = time(nullptr);
  15979. times[0].tv_usec = 0;
  15980. // modification time: negative (e.g., -1)
  15981. times[1].tv_sec = -1;
  15982. times[1].tv_usec = 0;
  15983. if (utimes(fname, times) == 0) { set_negative = true; }
  15984. } while (0);
  15985. #else
  15986. bool set_negative = false;
  15987. #endif
  15988. Server svr;
  15989. svr.set_mount_point("/static", ".");
  15990. auto t = std::thread([&]() { svr.listen(HOST, PORT); });
  15991. svr.wait_until_ready();
  15992. Client cli(HOST, PORT);
  15993. auto res1 = cli.Get(std::string("/static/") + fname);
  15994. ASSERT_TRUE(res1);
  15995. ASSERT_EQ(200, res1->status);
  15996. bool has_last_modified = res1->has_header("Last-Modified");
  15997. std::string last_modified;
  15998. if (has_last_modified) {
  15999. last_modified = res1->get_header_value("Last-Modified");
  16000. }
  16001. if (set_negative) {
  16002. // If we successfully set a negative mtime, ensure server returns a
  16003. // Last-Modified string (may be empty or normalized). Send If-Modified-Since
  16004. // with an old date and ensure server handles it without crash.
  16005. Headers h_old = {{"If-Modified-Since", "Sun, 01 Jan 1970 00:00:00 GMT"}};
  16006. auto res2 = cli.Get(std::string("/static/") + fname, h_old);
  16007. ASSERT_TRUE(res2);
  16008. // Behavior may vary; at minimum ensure server responds (200 or 304).
  16009. EXPECT_TRUE(res2->status == 200 || res2->status == 304);
  16010. } else {
  16011. // Could not set negative mtime on this platform; fall back to verifying
  16012. // that normal invalid/malformed dates are treated safely (non-304).
  16013. Headers h_bad_date = {
  16014. {"If-Modified-Since", "Sun, 01 Jan 99999 00:00:00 GMT"}};
  16015. auto res_bad = cli.Get(std::string("/static/") + fname, h_bad_date);
  16016. ASSERT_TRUE(res_bad);
  16017. EXPECT_EQ(200, res_bad->status);
  16018. }
  16019. svr.stop();
  16020. t.join();
  16021. std::remove(fname);
  16022. }
  16023. //==============================================================================
  16024. // SSE Parsing Tests
  16025. //==============================================================================
  16026. class SSEParsingTest : public ::testing::Test {
  16027. protected:
  16028. // Test helper that mimics SSE parsing behavior
  16029. static bool parse_sse_line(const std::string &line, sse::SSEMessage &msg,
  16030. int &retry_ms) {
  16031. // Blank line signals end of event
  16032. if (line.empty() || line == "\r") { return true; }
  16033. // Lines starting with ':' are comments (ignored)
  16034. if (!line.empty() && line[0] == ':') { return false; }
  16035. // Find the colon separator
  16036. auto colon_pos = line.find(':');
  16037. if (colon_pos == std::string::npos) {
  16038. // Line with no colon is treated as field name with empty value
  16039. return false;
  16040. }
  16041. std::string field = line.substr(0, colon_pos);
  16042. std::string value;
  16043. // Value starts after colon, skip optional single space
  16044. if (colon_pos + 1 < line.size()) {
  16045. size_t value_start = colon_pos + 1;
  16046. if (line[value_start] == ' ') { value_start++; }
  16047. value = line.substr(value_start);
  16048. // Remove trailing \r if present
  16049. if (!value.empty() && value.back() == '\r') { value.pop_back(); }
  16050. }
  16051. // Handle known fields
  16052. if (field == "event") {
  16053. msg.event = value;
  16054. } else if (field == "data") {
  16055. // Multiple data lines are concatenated with newlines
  16056. if (!msg.data.empty()) { msg.data += "\n"; }
  16057. msg.data += value;
  16058. } else if (field == "id") {
  16059. // Empty id is valid (clears the last event ID)
  16060. msg.id = value;
  16061. } else if (field == "retry") {
  16062. // Parse retry interval in milliseconds
  16063. {
  16064. int v = 0;
  16065. auto res =
  16066. detail::from_chars(value.data(), value.data() + value.size(), v);
  16067. if (res.ec == std::errc{}) { retry_ms = v; }
  16068. }
  16069. }
  16070. // Unknown fields are ignored per SSE spec
  16071. return false;
  16072. }
  16073. };
  16074. // Test: Single-line data
  16075. TEST_F(SSEParsingTest, SingleLineData) {
  16076. sse::SSEMessage msg;
  16077. int retry_ms = 3000;
  16078. EXPECT_FALSE(parse_sse_line("data: hello", msg, retry_ms));
  16079. EXPECT_EQ(msg.data, "hello");
  16080. EXPECT_EQ(msg.event, "message");
  16081. // Blank line ends event
  16082. EXPECT_TRUE(parse_sse_line("", msg, retry_ms));
  16083. }
  16084. // Test: Multi-line data
  16085. TEST_F(SSEParsingTest, MultiLineData) {
  16086. sse::SSEMessage msg;
  16087. int retry_ms = 3000;
  16088. EXPECT_FALSE(parse_sse_line("data: line1", msg, retry_ms));
  16089. EXPECT_FALSE(parse_sse_line("data: line2", msg, retry_ms));
  16090. EXPECT_FALSE(parse_sse_line("data: line3", msg, retry_ms));
  16091. EXPECT_EQ(msg.data, "line1\nline2\nline3");
  16092. }
  16093. // Test: Custom event types
  16094. TEST_F(SSEParsingTest, CustomEventType) {
  16095. sse::SSEMessage msg;
  16096. int retry_ms = 3000;
  16097. EXPECT_FALSE(parse_sse_line("event: update", msg, retry_ms));
  16098. EXPECT_FALSE(parse_sse_line("data: payload", msg, retry_ms));
  16099. EXPECT_EQ(msg.event, "update");
  16100. EXPECT_EQ(msg.data, "payload");
  16101. }
  16102. // Test: Event ID handling
  16103. TEST_F(SSEParsingTest, EventIdHandling) {
  16104. sse::SSEMessage msg;
  16105. int retry_ms = 3000;
  16106. EXPECT_FALSE(parse_sse_line("id: 12345", msg, retry_ms));
  16107. EXPECT_FALSE(parse_sse_line("data: test", msg, retry_ms));
  16108. EXPECT_EQ(msg.id, "12345");
  16109. }
  16110. // Test: Empty event ID (clears last event ID)
  16111. TEST_F(SSEParsingTest, EmptyEventId) {
  16112. sse::SSEMessage msg;
  16113. msg.id = "previous";
  16114. int retry_ms = 3000;
  16115. EXPECT_FALSE(parse_sse_line("id:", msg, retry_ms));
  16116. EXPECT_EQ(msg.id, "");
  16117. }
  16118. // Test: Retry field parsing
  16119. TEST_F(SSEParsingTest, RetryFieldParsing) {
  16120. sse::SSEMessage msg;
  16121. int retry_ms = 3000;
  16122. EXPECT_FALSE(parse_sse_line("retry: 5000", msg, retry_ms));
  16123. EXPECT_EQ(retry_ms, 5000);
  16124. }
  16125. // Test: Invalid retry value
  16126. TEST_F(SSEParsingTest, InvalidRetryValue) {
  16127. sse::SSEMessage msg;
  16128. int retry_ms = 3000;
  16129. EXPECT_FALSE(parse_sse_line("retry: invalid", msg, retry_ms));
  16130. EXPECT_EQ(retry_ms, 3000); // Unchanged
  16131. }
  16132. // Test: Comments (lines starting with :)
  16133. TEST_F(SSEParsingTest, CommentsIgnored) {
  16134. sse::SSEMessage msg;
  16135. int retry_ms = 3000;
  16136. EXPECT_FALSE(parse_sse_line(": this is a comment", msg, retry_ms));
  16137. EXPECT_EQ(msg.data, "");
  16138. EXPECT_EQ(msg.event, "message");
  16139. }
  16140. // Test: Colon in value
  16141. TEST_F(SSEParsingTest, ColonInValue) {
  16142. sse::SSEMessage msg;
  16143. int retry_ms = 3000;
  16144. EXPECT_FALSE(parse_sse_line("data: hello:world:test", msg, retry_ms));
  16145. EXPECT_EQ(msg.data, "hello:world:test");
  16146. }
  16147. // Test: Line with no colon (field name only)
  16148. TEST_F(SSEParsingTest, FieldNameOnly) {
  16149. sse::SSEMessage msg;
  16150. int retry_ms = 3000;
  16151. // According to SSE spec, this is treated as field name with empty value
  16152. EXPECT_FALSE(parse_sse_line("data", msg, retry_ms));
  16153. // Since we don't recognize "data" without colon, data should be empty
  16154. EXPECT_EQ(msg.data, "");
  16155. }
  16156. // Test: Trailing \r handling
  16157. TEST_F(SSEParsingTest, TrailingCarriageReturn) {
  16158. sse::SSEMessage msg;
  16159. int retry_ms = 3000;
  16160. EXPECT_FALSE(parse_sse_line("data: hello\r", msg, retry_ms));
  16161. EXPECT_EQ(msg.data, "hello");
  16162. }
  16163. // Test: Unknown fields ignored
  16164. TEST_F(SSEParsingTest, UnknownFieldsIgnored) {
  16165. sse::SSEMessage msg;
  16166. int retry_ms = 3000;
  16167. EXPECT_FALSE(parse_sse_line("unknown: value", msg, retry_ms));
  16168. EXPECT_EQ(msg.data, "");
  16169. EXPECT_EQ(msg.event, "message");
  16170. }
  16171. // Test: Space after colon is optional
  16172. TEST_F(SSEParsingTest, SpaceAfterColonOptional) {
  16173. sse::SSEMessage msg1, msg2;
  16174. int retry_ms = 3000;
  16175. EXPECT_FALSE(parse_sse_line("data: hello", msg1, retry_ms));
  16176. EXPECT_FALSE(parse_sse_line("data:hello", msg2, retry_ms));
  16177. EXPECT_EQ(msg1.data, "hello");
  16178. EXPECT_EQ(msg2.data, "hello");
  16179. }
  16180. // Test: SSEMessage clear
  16181. TEST_F(SSEParsingTest, MessageClear) {
  16182. sse::SSEMessage msg;
  16183. msg.event = "custom";
  16184. msg.data = "some data";
  16185. msg.id = "123";
  16186. msg.clear();
  16187. EXPECT_EQ(msg.event, "message");
  16188. EXPECT_EQ(msg.data, "");
  16189. EXPECT_EQ(msg.id, "");
  16190. }
  16191. // Test: Complete event parsing
  16192. TEST_F(SSEParsingTest, CompleteEventParsing) {
  16193. sse::SSEMessage msg;
  16194. int retry_ms = 3000;
  16195. EXPECT_FALSE(parse_sse_line("event: notification", msg, retry_ms));
  16196. EXPECT_FALSE(parse_sse_line("id: evt-42", msg, retry_ms));
  16197. EXPECT_FALSE(parse_sse_line("data: {\"type\":\"alert\"}", msg, retry_ms));
  16198. EXPECT_FALSE(parse_sse_line("retry: 1000", msg, retry_ms));
  16199. // Blank line ends event
  16200. EXPECT_TRUE(parse_sse_line("", msg, retry_ms));
  16201. EXPECT_EQ(msg.event, "notification");
  16202. EXPECT_EQ(msg.id, "evt-42");
  16203. EXPECT_EQ(msg.data, "{\"type\":\"alert\"}");
  16204. EXPECT_EQ(retry_ms, 1000);
  16205. }
  16206. //==============================================================================
  16207. // Integration Tests with Server
  16208. //==============================================================================
  16209. class SSEIntegrationTest : public ::testing::Test {
  16210. protected:
  16211. void SetUp() override {
  16212. stop_server_.store(false);
  16213. events_.clear();
  16214. server_ = httplib::detail::make_unique<Server>();
  16215. setup_server();
  16216. start_server();
  16217. }
  16218. void TearDown() override {
  16219. stop_server_.store(true);
  16220. event_cv_.notify_all();
  16221. server_->stop();
  16222. if (server_thread_.joinable()) { server_thread_.join(); }
  16223. }
  16224. void setup_server() {
  16225. // Simple SSE endpoint
  16226. server_->Get("/events", [this](const Request &req, Response &res) {
  16227. auto last_id = req.get_header_value("Last-Event-ID");
  16228. if (!last_id.empty()) { last_received_event_id_ = last_id; }
  16229. res.set_chunked_content_provider(
  16230. "text/event-stream", [this](size_t /*offset*/, DataSink &sink) {
  16231. std::unique_lock<std::mutex> lock(event_mutex_);
  16232. if (event_cv_.wait_for(
  16233. lock, std::chrono::milliseconds(200), [this] {
  16234. return !events_.empty() || stop_server_.load();
  16235. })) {
  16236. if (stop_server_.load()) { return false; }
  16237. if (!events_.empty()) {
  16238. std::string event = events_.front();
  16239. events_.erase(events_.begin());
  16240. sink.write(event.data(), event.size());
  16241. return true;
  16242. }
  16243. }
  16244. return !stop_server_.load();
  16245. });
  16246. });
  16247. // Endpoint that returns error
  16248. server_->Get("/error-endpoint", [](const Request &, Response &res) {
  16249. res.status = 500;
  16250. res.set_content("Internal Server Error", "text/plain");
  16251. });
  16252. // Endpoint for custom event types
  16253. server_->Get("/custom-events", [](const Request &, Response &res) {
  16254. res.set_chunked_content_provider(
  16255. "text/event-stream", [](size_t offset, DataSink &sink) {
  16256. if (offset == 0) {
  16257. std::string event = "event: update\ndata: updated\n\n"
  16258. "event: delete\ndata: deleted\n\n";
  16259. sink.write(event.data(), event.size());
  16260. }
  16261. return false; // End stream after sending
  16262. });
  16263. });
  16264. }
  16265. void start_server() {
  16266. port_ = server_->bind_to_any_port(HOST);
  16267. server_thread_ = std::thread([this]() { server_->listen_after_bind(); });
  16268. // Wait for server to start
  16269. while (!server_->is_running()) {
  16270. std::this_thread::sleep_for(std::chrono::milliseconds(10));
  16271. }
  16272. }
  16273. int get_port() const { return port_; }
  16274. void send_event(const std::string &event) {
  16275. std::lock_guard<std::mutex> lock(event_mutex_);
  16276. events_.push_back(event);
  16277. event_cv_.notify_all();
  16278. }
  16279. std::unique_ptr<Server> server_;
  16280. std::thread server_thread_;
  16281. std::mutex event_mutex_;
  16282. std::condition_variable event_cv_;
  16283. std::vector<std::string> events_;
  16284. std::atomic<bool> stop_server_{false};
  16285. std::string last_received_event_id_;
  16286. int port_ = 0;
  16287. };
  16288. // Test: Successful connection and on_open callback
  16289. TEST_F(SSEIntegrationTest, SuccessfulConnection) {
  16290. // Add a simple endpoint that sends one event and closes
  16291. server_->Get("/simple-event", [](const Request &, Response &res) {
  16292. res.set_chunked_content_provider(
  16293. "text/event-stream", [](size_t offset, DataSink &sink) {
  16294. if (offset == 0) {
  16295. std::string event = "data: hello\n\n";
  16296. sink.write(event.data(), event.size());
  16297. }
  16298. return false; // Close stream after sending
  16299. });
  16300. });
  16301. Client client("localhost", get_port());
  16302. sse::SSEClient sse(client, "/simple-event");
  16303. std::atomic<bool> open_called{false};
  16304. std::atomic<bool> message_received{false};
  16305. sse.on_open([&open_called]() { open_called.store(true); });
  16306. sse.on_message([&message_received](const sse::SSEMessage &msg) {
  16307. if (msg.data == "hello") { message_received.store(true); }
  16308. });
  16309. sse.set_reconnect_interval(100);
  16310. sse.set_max_reconnect_attempts(1);
  16311. // Start async
  16312. sse.start_async();
  16313. // Wait for message to be processed
  16314. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  16315. sse.stop();
  16316. EXPECT_TRUE(open_called.load());
  16317. EXPECT_TRUE(message_received.load());
  16318. }
  16319. // Test: on_message callback
  16320. TEST_F(SSEIntegrationTest, OnMessageCallback) {
  16321. // Endpoint that sends multiple events then closes
  16322. server_->Get("/multi-event", [](const Request &, Response &res) {
  16323. res.set_chunked_content_provider(
  16324. "text/event-stream", [](size_t offset, DataSink &sink) {
  16325. if (offset == 0) {
  16326. std::string events = "data: message1\n\ndata: message2\n\n";
  16327. sink.write(events.data(), events.size());
  16328. }
  16329. return false;
  16330. });
  16331. });
  16332. Client client("localhost", get_port());
  16333. sse::SSEClient sse(client, "/multi-event");
  16334. std::vector<std::string> received_messages;
  16335. std::mutex messages_mutex;
  16336. sse.on_message([&](const sse::SSEMessage &msg) {
  16337. std::lock_guard<std::mutex> lock(messages_mutex);
  16338. received_messages.push_back(msg.data);
  16339. });
  16340. sse.set_reconnect_interval(100);
  16341. sse.set_max_reconnect_attempts(1);
  16342. sse.start_async();
  16343. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  16344. sse.stop();
  16345. std::lock_guard<std::mutex> lock(messages_mutex);
  16346. EXPECT_GE(received_messages.size(), 2u);
  16347. if (received_messages.size() >= 2) {
  16348. EXPECT_EQ(received_messages[0], "message1");
  16349. EXPECT_EQ(received_messages[1], "message2");
  16350. }
  16351. }
  16352. // Test: on_event for specific types
  16353. TEST_F(SSEIntegrationTest, OnEventForSpecificTypes) {
  16354. Client client("localhost", get_port());
  16355. sse::SSEClient sse(client, "/custom-events");
  16356. std::atomic<bool> update_received{false};
  16357. std::atomic<bool> delete_received{false};
  16358. sse.on_event("update", [&update_received](const sse::SSEMessage &msg) {
  16359. if (msg.data == "updated") { update_received.store(true); }
  16360. });
  16361. sse.on_event("delete", [&delete_received](const sse::SSEMessage &msg) {
  16362. if (msg.data == "deleted") { delete_received.store(true); }
  16363. });
  16364. sse.set_max_reconnect_attempts(1);
  16365. sse.start_async();
  16366. std::this_thread::sleep_for(std::chrono::milliseconds(300));
  16367. sse.stop();
  16368. EXPECT_TRUE(update_received.load());
  16369. EXPECT_TRUE(delete_received.load());
  16370. }
  16371. // Test: on_error callback on connection failure
  16372. TEST_F(SSEIntegrationTest, OnErrorCallback) {
  16373. // Connect to a non-existent port
  16374. Client client("localhost", 59999);
  16375. sse::SSEClient sse(client, "/events");
  16376. std::atomic<bool> error_called{false};
  16377. Error received_error = Error::Success;
  16378. sse.on_error([&](Error err) {
  16379. error_called.store(true);
  16380. received_error = err;
  16381. });
  16382. sse.set_reconnect_interval(50);
  16383. sse.set_max_reconnect_attempts(1);
  16384. sse.start_async();
  16385. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  16386. sse.stop();
  16387. EXPECT_TRUE(error_called.load());
  16388. EXPECT_NE(received_error, Error::Success);
  16389. }
  16390. // Test: Last-Event-ID header sent on reconnect
  16391. TEST_F(SSEIntegrationTest, LastEventIdHeader) {
  16392. // Endpoint that sends event with ID
  16393. server_->Get("/event-with-id", [](const Request &, Response &res) {
  16394. res.set_chunked_content_provider(
  16395. "text/event-stream", [](size_t offset, DataSink &sink) {
  16396. if (offset == 0) {
  16397. std::string event = "id: evt-123\ndata: test\n\n";
  16398. sink.write(event.data(), event.size());
  16399. }
  16400. return false;
  16401. });
  16402. });
  16403. Client client("localhost", get_port());
  16404. sse::SSEClient sse(client, "/event-with-id");
  16405. std::atomic<bool> id_received{false};
  16406. sse.on_message([&](const sse::SSEMessage &msg) {
  16407. if (!msg.id.empty()) { id_received.store(true); }
  16408. });
  16409. sse.set_reconnect_interval(100);
  16410. sse.set_max_reconnect_attempts(1);
  16411. sse.start_async();
  16412. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  16413. sse.stop();
  16414. EXPECT_TRUE(id_received.load());
  16415. EXPECT_EQ(sse.last_event_id(), "evt-123");
  16416. }
  16417. // Test: Manual stop
  16418. TEST_F(SSEIntegrationTest, ManualStop) {
  16419. // Endpoint that sends one event and stays open briefly
  16420. std::atomic<bool> handler_running{true};
  16421. server_->Get("/stay-open", [&handler_running](const Request &,
  16422. Response &res) {
  16423. res.set_chunked_content_provider(
  16424. "text/event-stream", [&handler_running](size_t offset, DataSink &sink) {
  16425. if (offset == 0) {
  16426. std::string event = "data: connected\n\n";
  16427. sink.write(event.data(), event.size());
  16428. }
  16429. // Keep connection open while handler_running is true
  16430. for (int i = 0; i < 10 && handler_running.load(); ++i) {
  16431. std::this_thread::sleep_for(std::chrono::milliseconds(50));
  16432. }
  16433. return false;
  16434. });
  16435. });
  16436. Client client("localhost", get_port());
  16437. sse::SSEClient sse(client, "/stay-open");
  16438. std::atomic<bool> connected{false};
  16439. sse.on_open([&connected]() { connected.store(true); });
  16440. sse.set_reconnect_interval(100);
  16441. sse.set_max_reconnect_attempts(1);
  16442. sse.start_async();
  16443. // Wait for connection to establish
  16444. for (int i = 0; i < 20 && !connected.load(); ++i) {
  16445. std::this_thread::sleep_for(std::chrono::milliseconds(50));
  16446. }
  16447. EXPECT_TRUE(connected.load());
  16448. EXPECT_TRUE(sse.is_connected());
  16449. // Signal handler to stop
  16450. handler_running.store(false);
  16451. // Stop SSE client
  16452. sse.stop();
  16453. EXPECT_FALSE(sse.is_connected());
  16454. }
  16455. // Test: SSEClient with custom headers
  16456. TEST_F(SSEIntegrationTest, CustomHeaders) {
  16457. // Setup a server endpoint that checks for custom header
  16458. std::atomic<bool> header_received{false};
  16459. server_->Get("/header-check", [&](const Request &req, Response &res) {
  16460. if (req.get_header_value("X-Custom-Header") == "custom-value") {
  16461. header_received.store(true);
  16462. }
  16463. res.set_chunked_content_provider("text/event-stream",
  16464. [](size_t, DataSink &) { return false; });
  16465. });
  16466. Client client("localhost", get_port());
  16467. Headers headers = {{"X-Custom-Header", "custom-value"}};
  16468. sse::SSEClient sse(client, "/header-check", headers);
  16469. sse.set_max_reconnect_attempts(1);
  16470. sse.start_async();
  16471. std::this_thread::sleep_for(std::chrono::milliseconds(200));
  16472. sse.stop();
  16473. EXPECT_TRUE(header_received.load());
  16474. }
  16475. // Test: Reconnect interval configuration
  16476. TEST_F(SSEIntegrationTest, ReconnectIntervalConfiguration) {
  16477. Client client("localhost", get_port());
  16478. sse::SSEClient sse(client, "/events");
  16479. auto &result = sse.set_reconnect_interval(500);
  16480. // Builder pattern should return reference to self
  16481. EXPECT_EQ(&result, &sse);
  16482. }
  16483. // Test: Max reconnect attempts
  16484. TEST_F(SSEIntegrationTest, MaxReconnectAttempts) {
  16485. // Connect to non-existent port to force reconnects
  16486. Client client("localhost", 59998);
  16487. sse::SSEClient sse(client, "/events");
  16488. std::atomic<int> error_count{0};
  16489. sse.on_error([&](Error) { error_count.fetch_add(1); });
  16490. sse.set_reconnect_interval(50);
  16491. sse.set_max_reconnect_attempts(2);
  16492. auto start = std::chrono::steady_clock::now();
  16493. sse.start(); // Blocking call
  16494. auto end = std::chrono::steady_clock::now();
  16495. // Should have stopped after 2 failed attempts
  16496. EXPECT_GE(error_count.load(), 2);
  16497. // Should not have taken too long (max 2 attempts * 50ms + overhead)
  16498. auto duration =
  16499. std::chrono::duration_cast<std::chrono::milliseconds>(end - start);
  16500. #ifdef _WIN32
  16501. // Windows is much slower for socket connection failures
  16502. EXPECT_LT(duration.count(), 7000);
  16503. #else
  16504. EXPECT_LT(duration.count(), 1000);
  16505. #endif
  16506. }
  16507. // Test: Multi-line data in integration
  16508. TEST_F(SSEIntegrationTest, MultiLineDataIntegration) {
  16509. // Endpoint with multi-line data
  16510. server_->Get("/multiline-data", [](const Request &, Response &res) {
  16511. res.set_chunked_content_provider(
  16512. "text/event-stream", [](size_t offset, DataSink &sink) {
  16513. if (offset == 0) {
  16514. std::string event = "data: line1\ndata: line2\ndata: line3\n\n";
  16515. sink.write(event.data(), event.size());
  16516. }
  16517. return false;
  16518. });
  16519. });
  16520. Client client("localhost", get_port());
  16521. sse::SSEClient sse(client, "/multiline-data");
  16522. std::string received_data;
  16523. std::mutex data_mutex;
  16524. sse.on_message([&](const sse::SSEMessage &msg) {
  16525. std::lock_guard<std::mutex> lock(data_mutex);
  16526. received_data = msg.data;
  16527. });
  16528. sse.set_reconnect_interval(100);
  16529. sse.set_max_reconnect_attempts(1);
  16530. sse.start_async();
  16531. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  16532. sse.stop();
  16533. std::lock_guard<std::mutex> lock(data_mutex);
  16534. EXPECT_EQ(received_data, "line1\nline2\nline3");
  16535. }
  16536. // Test: Auto-reconnect after server disconnection
  16537. TEST_F(SSEIntegrationTest, AutoReconnectAfterDisconnect) {
  16538. std::atomic<int> connection_count{0};
  16539. std::atomic<int> message_count{0};
  16540. // Endpoint that sends one event and closes, forcing reconnect
  16541. server_->Get("/reconnect-test",
  16542. [&connection_count](const Request &, Response &res) {
  16543. connection_count.fetch_add(1);
  16544. res.set_chunked_content_provider(
  16545. "text/event-stream", [](size_t offset, DataSink &sink) {
  16546. if (offset == 0) {
  16547. std::string event = "data: hello\n\n";
  16548. sink.write(event.data(), event.size());
  16549. }
  16550. return false; // Close connection after sending
  16551. });
  16552. });
  16553. Client client("localhost", get_port());
  16554. sse::SSEClient sse(client, "/reconnect-test");
  16555. sse.on_message([&message_count](const sse::SSEMessage &) {
  16556. message_count.fetch_add(1);
  16557. });
  16558. sse.set_reconnect_interval(100);
  16559. sse.set_max_reconnect_attempts(3);
  16560. sse.start_async();
  16561. // Wait long enough for multiple reconnects
  16562. std::this_thread::sleep_for(std::chrono::milliseconds(800));
  16563. sse.stop();
  16564. // Should have connected multiple times (initial + reconnects)
  16565. EXPECT_GE(connection_count.load(), 2);
  16566. // Should have received messages from multiple connections
  16567. EXPECT_GE(message_count.load(), 2);
  16568. }
  16569. // Test: Last-Event-ID sent on reconnect
  16570. TEST_F(SSEIntegrationTest, LastEventIdSentOnReconnect) {
  16571. std::atomic<int> connection_count{0};
  16572. std::vector<std::string> received_last_event_ids;
  16573. std::mutex id_mutex;
  16574. // Endpoint that checks Last-Event-ID header and sends event with ID
  16575. server_->Get("/reconnect-with-id", [&](const Request &req, Response &res) {
  16576. int conn = connection_count.fetch_add(1);
  16577. // Capture the Last-Event-ID header from each connection
  16578. {
  16579. std::lock_guard<std::mutex> lock(id_mutex);
  16580. received_last_event_ids.push_back(req.get_header_value("Last-Event-ID"));
  16581. }
  16582. res.set_chunked_content_provider(
  16583. "text/event-stream", [conn](size_t offset, DataSink &sink) {
  16584. if (offset == 0) {
  16585. std::string event =
  16586. "id: event-" + std::to_string(conn) + "\ndata: msg\n\n";
  16587. sink.write(event.data(), event.size());
  16588. }
  16589. return false;
  16590. });
  16591. });
  16592. Client client("localhost", get_port());
  16593. sse::SSEClient sse(client, "/reconnect-with-id");
  16594. sse.set_reconnect_interval(100);
  16595. sse.set_max_reconnect_attempts(3);
  16596. sse.start_async();
  16597. // Wait for at least 2 connections
  16598. std::this_thread::sleep_for(std::chrono::milliseconds(500));
  16599. sse.stop();
  16600. // Verify behavior
  16601. std::lock_guard<std::mutex> lock(id_mutex);
  16602. EXPECT_GE(received_last_event_ids.size(), 2u);
  16603. // First connection should have no Last-Event-ID
  16604. if (!received_last_event_ids.empty()) {
  16605. EXPECT_EQ(received_last_event_ids[0], "");
  16606. }
  16607. // Second connection should have Last-Event-ID from first connection
  16608. if (received_last_event_ids.size() >= 2) {
  16609. EXPECT_EQ(received_last_event_ids[1], "event-0");
  16610. }
  16611. }
  16612. // Test: set_headers updates headers used on reconnect
  16613. TEST_F(SSEIntegrationTest, SetHeadersUpdatesOnReconnect) {
  16614. std::vector<std::string> received_tokens;
  16615. std::mutex token_mutex;
  16616. // Endpoint that captures Authorization header
  16617. server_->Get("/auth-check", [&](const Request &req, Response &res) {
  16618. {
  16619. std::lock_guard<std::mutex> lock(token_mutex);
  16620. received_tokens.push_back(req.get_header_value("Authorization"));
  16621. }
  16622. res.set_chunked_content_provider(
  16623. "text/event-stream", [](size_t offset, DataSink &sink) {
  16624. if (offset == 0) {
  16625. std::string event = "data: hello\n\n";
  16626. sink.write(event.data(), event.size());
  16627. }
  16628. return false; // Close connection to trigger reconnect
  16629. });
  16630. });
  16631. Client client("localhost", get_port());
  16632. Headers headers = {{"Authorization", "Bearer old-token"}};
  16633. sse::SSEClient sse(client, "/auth-check", headers);
  16634. // Update headers on each successful connection
  16635. sse.on_open(
  16636. [&sse]() { sse.set_headers({{"Authorization", "Bearer new-token"}}); });
  16637. sse.set_reconnect_interval(100);
  16638. sse.set_max_reconnect_attempts(3);
  16639. sse.start_async();
  16640. std::this_thread::sleep_for(std::chrono::milliseconds(800));
  16641. sse.stop();
  16642. std::lock_guard<std::mutex> lock(token_mutex);
  16643. ASSERT_GE(received_tokens.size(), 2u);
  16644. // First connection uses original header
  16645. EXPECT_EQ(received_tokens[0], "Bearer old-token");
  16646. // Second connection uses updated header from set_headers
  16647. EXPECT_EQ(received_tokens[1], "Bearer new-token");
  16648. }
  16649. // Test: 401 allows reconnection (so on_error can refresh headers)
  16650. TEST_F(SSEIntegrationTest, ReconnectOn401WithHeaderRefresh) {
  16651. std::atomic<int> connection_count{0};
  16652. // Endpoint: returns 401 on first attempt, 200 on second
  16653. server_->Get("/auth-retry", [&](const Request &req, Response &res) {
  16654. int conn = connection_count.fetch_add(1);
  16655. if (conn == 0 || req.get_header_value("Authorization") != "Bearer valid") {
  16656. res.status = StatusCode::Unauthorized_401;
  16657. res.set_content("Unauthorized", "text/plain");
  16658. return;
  16659. }
  16660. res.set_chunked_content_provider(
  16661. "text/event-stream", [](size_t offset, DataSink &sink) {
  16662. if (offset == 0) {
  16663. std::string event = "data: authenticated\n\n";
  16664. sink.write(event.data(), event.size());
  16665. }
  16666. return false;
  16667. });
  16668. });
  16669. Client client("localhost", get_port());
  16670. Headers headers = {{"Authorization", "Bearer expired"}};
  16671. sse::SSEClient sse(client, "/auth-retry", headers);
  16672. std::atomic<bool> message_received{false};
  16673. // Refresh token on error
  16674. sse.on_error(
  16675. [&sse](Error) { sse.set_headers({{"Authorization", "Bearer valid"}}); });
  16676. sse.on_message([&](const sse::SSEMessage &msg) {
  16677. if (msg.data == "authenticated") { message_received.store(true); }
  16678. });
  16679. sse.set_reconnect_interval(100);
  16680. sse.set_max_reconnect_attempts(3);
  16681. sse.start_async();
  16682. std::this_thread::sleep_for(std::chrono::milliseconds(800));
  16683. sse.stop();
  16684. // Should have reconnected after 401 and succeeded with new token
  16685. EXPECT_GE(connection_count.load(), 2);
  16686. EXPECT_TRUE(message_received.load());
  16687. }
  16688. TEST(Issue2318Test, EmptyHostString) {
  16689. {
  16690. httplib::Client cli_empty("", PORT);
  16691. auto res = cli_empty.Get("/");
  16692. ASSERT_FALSE(res);
  16693. EXPECT_EQ(httplib::Error::Connection, res.error());
  16694. }
  16695. {
  16696. httplib::Client cli(" ", PORT);
  16697. auto res = cli.Get("/");
  16698. ASSERT_FALSE(res);
  16699. EXPECT_EQ(httplib::Error::Connection, res.error());
  16700. }
  16701. }
  16702. #ifdef CPPHTTPLIB_ZLIB_SUPPORT
  16703. TEST(ZipBombProtectionTest, DecompressedSizeExceedsLimit) {
  16704. Server svr;
  16705. // Set a small payload limit (1KB)
  16706. svr.set_payload_max_length(1024);
  16707. svr.Post("/test", [&](const Request &req, Response &res) {
  16708. res.set_content("Body size: " + std::to_string(req.body.size()),
  16709. "text/plain");
  16710. });
  16711. auto listen_thread = std::thread([&]() { svr.listen(HOST, PORT); });
  16712. auto se = detail::scope_exit([&] {
  16713. svr.stop();
  16714. listen_thread.join();
  16715. });
  16716. svr.wait_until_ready();
  16717. // Create data that compresses well but exceeds limit when decompressed
  16718. // 8KB of repeated null bytes compresses to a very small size
  16719. std::string original_data(8 * 1024, '\0');
  16720. // Compress the data using gzip
  16721. std::string compressed_data;
  16722. detail::gzip_compressor compressor;
  16723. compressor.compress(original_data.data(), original_data.size(), true,
  16724. [&](const char *data, size_t size) {
  16725. compressed_data.append(data, size);
  16726. return true;
  16727. });
  16728. // Verify compression worked (compressed should be much smaller)
  16729. ASSERT_LT(compressed_data.size(), original_data.size());
  16730. ASSERT_LT(compressed_data.size(), 1024u); // Compressed fits in limit
  16731. // Send compressed data with Content-Encoding: gzip
  16732. Client cli(HOST, PORT);
  16733. Headers headers = {{"Content-Encoding", "gzip"}};
  16734. auto res =
  16735. cli.Post("/test", headers, compressed_data, "application/octet-stream");
  16736. // Server should reject because decompressed size (8KB) exceeds limit (1KB)
  16737. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  16738. EXPECT_EQ(StatusCode::PayloadTooLarge_413, res->status);
  16739. }
  16740. #endif
  16741. // ============================================================================
  16742. // OpenSSL-Specific Tests
  16743. // ============================================================================
  16744. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  16745. X509 *readCertificate(const std::string &strFileName) {
  16746. std::ifstream inStream(strFileName);
  16747. std::string strCertPEM((std::istreambuf_iterator<char>(inStream)),
  16748. std::istreambuf_iterator<char>());
  16749. if (strCertPEM.empty()) return (nullptr);
  16750. BIO *pbCert = BIO_new(BIO_s_mem());
  16751. BIO_write(pbCert, strCertPEM.c_str(), (int)strCertPEM.size());
  16752. X509 *pCert = PEM_read_bio_X509(pbCert, NULL, 0, NULL);
  16753. BIO_free(pbCert);
  16754. return (pCert);
  16755. }
  16756. EVP_PKEY *readPrivateKey(const std::string &strFileName) {
  16757. std::ifstream inStream(strFileName);
  16758. std::string strPrivateKeyPEM((std::istreambuf_iterator<char>(inStream)),
  16759. std::istreambuf_iterator<char>());
  16760. if (strPrivateKeyPEM.empty()) return (nullptr);
  16761. BIO *pbPrivKey = BIO_new(BIO_s_mem());
  16762. BIO_write(pbPrivKey, strPrivateKeyPEM.c_str(), (int)strPrivateKeyPEM.size());
  16763. EVP_PKEY *pPrivateKey = PEM_read_bio_PrivateKey(pbPrivKey, NULL, NULL, NULL);
  16764. BIO_free(pbPrivKey);
  16765. return (pPrivateKey);
  16766. }
  16767. TEST(BindServerTest, UpdateCerts) {
  16768. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  16769. int port = svr.bind_to_any_port("0.0.0.0");
  16770. ASSERT_TRUE(svr.is_valid());
  16771. ASSERT_TRUE(port > 0);
  16772. X509 *cert = readCertificate(SERVER_CERT_FILE);
  16773. X509 *ca_cert = readCertificate(CLIENT_CA_CERT_FILE);
  16774. EVP_PKEY *key = readPrivateKey(SERVER_PRIVATE_KEY_FILE);
  16775. ASSERT_TRUE(cert != nullptr);
  16776. ASSERT_TRUE(ca_cert != nullptr);
  16777. ASSERT_TRUE(key != nullptr);
  16778. X509_STORE *cert_store = X509_STORE_new();
  16779. X509_STORE_add_cert(cert_store, ca_cert);
  16780. // svr.update_certs(cert, key, cert_store); // deprecated
  16781. svr.update_certs_pem(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE,
  16782. CLIENT_CA_CERT_FILE);
  16783. ASSERT_TRUE(svr.is_valid());
  16784. svr.stop();
  16785. X509_STORE_free(cert_store);
  16786. X509_free(cert);
  16787. X509_free(ca_cert);
  16788. EVP_PKEY_free(key);
  16789. }
  16790. // Test that update_certs() updates client CA list correctly
  16791. TEST(SSLClientServerTest, UpdateCertsSetsClientCAList) {
  16792. // Start with file-based constructor
  16793. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  16794. ASSERT_TRUE(svr.is_valid());
  16795. // Initially no client CA list should be set
  16796. auto ssl_ctx = static_cast<SSL_CTX *>(svr.tls_context());
  16797. ASSERT_TRUE(ssl_ctx != nullptr);
  16798. STACK_OF(X509_NAME) *ca_list_before = SSL_CTX_get_client_CA_list(ssl_ctx);
  16799. int count_before = ca_list_before ? sk_X509_NAME_num(ca_list_before) : 0;
  16800. EXPECT_EQ(0, count_before);
  16801. // Now update with client CA (PEM string)
  16802. std::string cert_pem, key_pem, ca_pem;
  16803. read_file(SERVER_CERT_FILE, cert_pem);
  16804. read_file(SERVER_PRIVATE_KEY_FILE, key_pem);
  16805. read_file(CLIENT_CA_CERT_FILE, ca_pem);
  16806. svr.update_certs_pem(cert_pem.c_str(), key_pem.c_str(), ca_pem.c_str());
  16807. ASSERT_TRUE(svr.is_valid());
  16808. // Now client CA list should be set
  16809. STACK_OF(X509_NAME) *ca_list_after = SSL_CTX_get_client_CA_list(ssl_ctx);
  16810. ASSERT_TRUE(ca_list_after != nullptr);
  16811. EXPECT_GT(sk_X509_NAME_num(ca_list_after), 0);
  16812. }
  16813. TEST(SSLClientServerTest, FilePathConstructorSetsClientCAList) {
  16814. // Test that the file-path SSLServer constructor properly sets the client CA
  16815. // list that is sent to clients during the TLS handshake (CertificateRequest)
  16816. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  16817. ASSERT_TRUE(svr.is_valid());
  16818. auto ssl_ctx = static_cast<SSL_CTX *>(svr.tls_context());
  16819. ASSERT_TRUE(ssl_ctx != nullptr);
  16820. STACK_OF(X509_NAME) *ca_list = SSL_CTX_get_client_CA_list(ssl_ctx);
  16821. ASSERT_TRUE(ca_list != nullptr);
  16822. EXPECT_GT(sk_X509_NAME_num(ca_list), 0);
  16823. }
  16824. #endif
  16825. // ============================================================================
  16826. // MbedTLS-Specific Tests
  16827. // ============================================================================
  16828. #ifdef CPPHTTPLIB_MBEDTLS_SUPPORT
  16829. TEST(SSLClientServerTest, CustomizeServerSSLCtxMbedTLS) {
  16830. using namespace httplib::tls;
  16831. // Track if callback was invoked
  16832. bool callback_invoked = false;
  16833. // The callback receives void* ctx which is actually MbedTlsContext*
  16834. // We can access the mbedtls_ssl_config via the context
  16835. auto setup_callback = [&callback_invoked](void *ctx) {
  16836. callback_invoked = true;
  16837. // Cast to MbedTlsContext* to access the ssl config
  16838. auto *mbedtls_ctx = static_cast<httplib::tls::impl::MbedTlsContext *>(ctx);
  16839. mbedtls_ssl_config *conf = &mbedtls_ctx->conf;
  16840. // Use static variables to hold certificate data (simplified for test)
  16841. static mbedtls_x509_crt own_cert;
  16842. static mbedtls_pk_context own_key;
  16843. static mbedtls_x509_crt ca_chain;
  16844. static bool initialized = false;
  16845. if (!initialized) {
  16846. mbedtls_x509_crt_init(&own_cert);
  16847. mbedtls_pk_init(&own_key);
  16848. mbedtls_x509_crt_init(&ca_chain);
  16849. // Load server certificate
  16850. if (mbedtls_x509_crt_parse_file(&own_cert, SERVER_CERT_FILE) != 0) {
  16851. return false;
  16852. }
  16853. // Load server private key.
  16854. // Mbed TLS 3.x takes an RNG callback here; 2.x and 4.x do not.
  16855. if (mbedtls_pk_parse_keyfile(&own_key, SERVER_PRIVATE_KEY_FILE, nullptr
  16856. #if MBEDTLS_VERSION_MAJOR == 3
  16857. ,
  16858. mbedtls_ctr_drbg_random, nullptr
  16859. #endif
  16860. ) != 0) {
  16861. return false;
  16862. }
  16863. // Load CA chain for client verification
  16864. if (mbedtls_x509_crt_parse_file(&ca_chain, CLIENT_CA_CERT_FILE) != 0) {
  16865. return false;
  16866. }
  16867. initialized = true;
  16868. }
  16869. // Configure the SSL config
  16870. mbedtls_ssl_conf_own_cert(conf, &own_cert, &own_key);
  16871. mbedtls_ssl_conf_ca_chain(conf, &ca_chain, nullptr);
  16872. mbedtls_ssl_conf_authmode(conf, MBEDTLS_SSL_VERIFY_REQUIRED);
  16873. // Set minimum TLS version using mbedTLS native API
  16874. #if MBEDTLS_VERSION_MAJOR >= 3
  16875. mbedtls_ssl_conf_min_tls_version(conf, MBEDTLS_SSL_VERSION_TLS1_2);
  16876. #else
  16877. mbedtls_ssl_conf_min_version(conf, MBEDTLS_SSL_MAJOR_VERSION_3,
  16878. MBEDTLS_SSL_MINOR_VERSION_3);
  16879. #endif
  16880. return true;
  16881. };
  16882. SSLServer svr(setup_callback);
  16883. ASSERT_TRUE(svr.is_valid());
  16884. ASSERT_TRUE(callback_invoked);
  16885. svr.Get("/test", [&](const Request &req, Response &res) {
  16886. res.set_content("test", "text/plain");
  16887. auto cert = req.peer_cert();
  16888. ASSERT_TRUE(static_cast<bool>(cert));
  16889. auto common_name = cert.subject_cn();
  16890. EXPECT_EQ("Common Name", common_name);
  16891. });
  16892. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  16893. auto se = detail::scope_exit([&] {
  16894. svr.stop();
  16895. t.join();
  16896. ASSERT_FALSE(svr.is_running());
  16897. });
  16898. svr.wait_until_ready();
  16899. SSLClient cli(HOST, PORT, CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE);
  16900. cli.enable_server_certificate_verification(false);
  16901. cli.set_connection_timeout(30);
  16902. auto res = cli.Get("/test");
  16903. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  16904. ASSERT_EQ(StatusCode::OK_200, res->status);
  16905. }
  16906. // Regression test for a use-after-free where ~SSLClient freed the mbedTLS
  16907. // context (owning mbedtls_ssl_config) before shutting down a still-open
  16908. // keep-alive SSL session, which reads through that config in
  16909. // mbedtls_ssl_close_notify.
  16910. TEST(SSLClientServerTest, DestructWithLiveKeepAliveSessionMbedTLS) {
  16911. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  16912. ASSERT_TRUE(svr.is_valid());
  16913. svr.Get("/test", [&](const Request & /*req*/, Response &res) {
  16914. res.set_content("test", "text/plain");
  16915. });
  16916. thread t = thread([&]() { ASSERT_TRUE(svr.listen(HOST, PORT)); });
  16917. auto se = detail::scope_exit([&] {
  16918. svr.stop();
  16919. t.join();
  16920. ASSERT_FALSE(svr.is_running());
  16921. });
  16922. svr.wait_until_ready();
  16923. {
  16924. SSLClient cli(HOST, PORT);
  16925. cli.enable_server_certificate_verification(false);
  16926. cli.set_keep_alive(true);
  16927. auto res = cli.Get("/test");
  16928. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  16929. ASSERT_EQ(StatusCode::OK_200, res->status);
  16930. // cli is destructed here with the keep-alive SSL session still open.
  16931. }
  16932. }
  16933. #endif
  16934. // WebSocket Tests
  16935. TEST(WebSocketTest, RSVBitsMustBeZero) {
  16936. // RFC 6455 Section 5.2: RSV1, RSV2, RSV3 MUST be 0 unless an extension
  16937. // defining the meaning of these bits has been negotiated.
  16938. auto make_frame = [](uint8_t first_byte) {
  16939. std::string frame;
  16940. frame += static_cast<char>(first_byte); // FIN + RSV + opcode
  16941. frame += static_cast<char>(0x05); // mask=0, payload_len=5
  16942. frame += "Hello";
  16943. return frame;
  16944. };
  16945. // RSV1 set (0x40)
  16946. {
  16947. detail::BufferStream strm;
  16948. strm.write(make_frame(0x81 | 0x40).data(), 8); // FIN + RSV1 + Text
  16949. ws::Opcode opcode;
  16950. std::string payload;
  16951. bool fin;
  16952. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  16953. false, 1024));
  16954. }
  16955. // RSV2 set (0x20)
  16956. {
  16957. detail::BufferStream strm;
  16958. strm.write(make_frame(0x81 | 0x20).data(), 8); // FIN + RSV2 + Text
  16959. ws::Opcode opcode;
  16960. std::string payload;
  16961. bool fin;
  16962. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  16963. false, 1024));
  16964. }
  16965. // RSV3 set (0x10)
  16966. {
  16967. detail::BufferStream strm;
  16968. strm.write(make_frame(0x81 | 0x10).data(), 8); // FIN + RSV3 + Text
  16969. ws::Opcode opcode;
  16970. std::string payload;
  16971. bool fin;
  16972. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  16973. false, 1024));
  16974. }
  16975. // No RSV bits set - should succeed
  16976. {
  16977. detail::BufferStream strm;
  16978. strm.write(make_frame(0x81).data(), 8); // FIN + Text, no RSV
  16979. ws::Opcode opcode;
  16980. std::string payload;
  16981. bool fin;
  16982. EXPECT_TRUE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  16983. false, 1024));
  16984. EXPECT_EQ(ws::Opcode::Text, opcode);
  16985. EXPECT_EQ("Hello", payload);
  16986. EXPECT_TRUE(fin);
  16987. }
  16988. }
  16989. TEST(WebSocketTest, ControlFrameValidation) {
  16990. // RFC 6455 Section 5.5: control frames MUST have FIN=1 and
  16991. // payload length <= 125.
  16992. // Ping with FIN=0 - must be rejected
  16993. {
  16994. detail::BufferStream strm;
  16995. std::string frame;
  16996. frame += static_cast<char>(0x09); // FIN=0, opcode=Ping
  16997. frame += static_cast<char>(0x00); // mask=0, payload_len=0
  16998. strm.write(frame.data(), frame.size());
  16999. ws::Opcode opcode;
  17000. std::string payload;
  17001. bool fin;
  17002. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  17003. false, 1024));
  17004. }
  17005. // Close with FIN=0 - must be rejected
  17006. {
  17007. detail::BufferStream strm;
  17008. std::string frame;
  17009. frame += static_cast<char>(0x08); // FIN=0, opcode=Close
  17010. frame += static_cast<char>(0x00); // mask=0, payload_len=0
  17011. strm.write(frame.data(), frame.size());
  17012. ws::Opcode opcode;
  17013. std::string payload;
  17014. bool fin;
  17015. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  17016. false, 1024));
  17017. }
  17018. // Ping with payload_len=126 (extended length) - must be rejected
  17019. {
  17020. detail::BufferStream strm;
  17021. std::string frame;
  17022. frame += static_cast<char>(0x89); // FIN=1, opcode=Ping
  17023. frame += static_cast<char>(126); // payload_len=126 (>125)
  17024. frame += static_cast<char>(0x00); // extended length high byte
  17025. frame += static_cast<char>(126); // extended length low byte
  17026. frame += std::string(126, 'x');
  17027. strm.write(frame.data(), frame.size());
  17028. ws::Opcode opcode;
  17029. std::string payload;
  17030. bool fin;
  17031. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  17032. false, 1024));
  17033. }
  17034. // Ping with FIN=1 and payload_len=125 - should succeed
  17035. {
  17036. detail::BufferStream strm;
  17037. std::string frame;
  17038. frame += static_cast<char>(0x89); // FIN=1, opcode=Ping
  17039. frame += static_cast<char>(125); // payload_len=125
  17040. frame += std::string(125, 'x');
  17041. strm.write(frame.data(), frame.size());
  17042. ws::Opcode opcode;
  17043. std::string payload;
  17044. bool fin;
  17045. EXPECT_TRUE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  17046. false, 1024));
  17047. EXPECT_EQ(ws::Opcode::Ping, opcode);
  17048. EXPECT_EQ(125u, payload.size());
  17049. EXPECT_TRUE(fin);
  17050. }
  17051. }
  17052. TEST(WebSocketTest, PayloadLength64BitMSBMustBeZero) {
  17053. // RFC 6455 Section 5.2: the most significant bit of a 64-bit payload
  17054. // length MUST be 0.
  17055. // MSB set - must be rejected
  17056. {
  17057. detail::BufferStream strm;
  17058. std::string frame;
  17059. frame += static_cast<char>(0x81); // FIN=1, opcode=Text
  17060. frame += static_cast<char>(127); // 64-bit extended length
  17061. frame += static_cast<char>(0x80); // MSB set (invalid)
  17062. frame += std::string(7, '\0'); // remaining 7 bytes of length
  17063. strm.write(frame.data(), frame.size());
  17064. ws::Opcode opcode;
  17065. std::string payload;
  17066. bool fin;
  17067. EXPECT_FALSE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  17068. false, 1024));
  17069. }
  17070. // MSB clear - should pass length parsing (will be rejected by max_len,
  17071. // but that's a different check; use a small length to verify)
  17072. {
  17073. detail::BufferStream strm;
  17074. std::string frame;
  17075. frame += static_cast<char>(0x81); // FIN=1, opcode=Text
  17076. frame += static_cast<char>(127); // 64-bit extended length
  17077. frame += std::string(7, '\0'); // high bytes = 0
  17078. frame += static_cast<char>(0x03); // length = 3
  17079. frame += "abc";
  17080. strm.write(frame.data(), frame.size());
  17081. ws::Opcode opcode;
  17082. std::string payload;
  17083. bool fin;
  17084. EXPECT_TRUE(ws::impl::read_websocket_frame(strm, opcode, payload, fin,
  17085. false, 1024));
  17086. EXPECT_EQ(ws::Opcode::Text, opcode);
  17087. EXPECT_EQ("abc", payload);
  17088. }
  17089. }
  17090. TEST(WebSocketTest, InvalidUTF8TextFrame) {
  17091. // RFC 6455 Section 5.6: text frames must contain valid UTF-8.
  17092. // Valid UTF-8
  17093. EXPECT_TRUE(ws::impl::is_valid_utf8("Hello"));
  17094. EXPECT_TRUE(ws::impl::is_valid_utf8("\xC3\xA9")); // é (U+00E9)
  17095. EXPECT_TRUE(ws::impl::is_valid_utf8("\xE3\x81\x82")); // あ (U+3042)
  17096. EXPECT_TRUE(ws::impl::is_valid_utf8("\xF0\x9F\x98\x80")); // 😀 (U+1F600)
  17097. EXPECT_TRUE(ws::impl::is_valid_utf8(""));
  17098. // Invalid UTF-8
  17099. EXPECT_FALSE(ws::impl::is_valid_utf8("\x80")); // Invalid start byte
  17100. EXPECT_FALSE(ws::impl::is_valid_utf8("\xC3\x28")); // Bad continuation
  17101. EXPECT_FALSE(ws::impl::is_valid_utf8("\xC0\xAF")); // Overlong encoding
  17102. EXPECT_FALSE(
  17103. ws::impl::is_valid_utf8("\xED\xA0\x80")); // Surrogate half U+D800
  17104. EXPECT_FALSE(ws::impl::is_valid_utf8("\xF4\x90\x80\x80")); // Beyond U+10FFFF
  17105. }
  17106. TEST(WebSocketTest, ConnectAndDisconnect) {
  17107. Server svr;
  17108. svr.WebSocket("/ws", [](const Request &, ws::WebSocket &ws) {
  17109. std::string msg;
  17110. while (ws.read(msg)) {}
  17111. });
  17112. auto port = svr.bind_to_any_port(HOST);
  17113. std::thread t([&]() { svr.listen_after_bind(); });
  17114. svr.wait_until_ready();
  17115. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) + "/ws");
  17116. auto res = client.connect();
  17117. ASSERT_TRUE(res);
  17118. EXPECT_EQ(Error::Success, res.error());
  17119. EXPECT_EQ(StatusCode::SwitchingProtocol_101, res.status());
  17120. EXPECT_TRUE(res.has_header("Sec-WebSocket-Accept"));
  17121. EXPECT_TRUE(client.is_open());
  17122. client.close();
  17123. EXPECT_FALSE(client.is_open());
  17124. svr.stop();
  17125. t.join();
  17126. }
  17127. TEST(WebSocketTest, ValidURL) {
  17128. ws::WebSocketClient ws1("ws://localhost:8080/path");
  17129. EXPECT_TRUE(ws1.is_valid());
  17130. ws::WebSocketClient ws2("ws://example.com/path");
  17131. EXPECT_TRUE(ws2.is_valid());
  17132. ws::WebSocketClient ws3("ws://example.com:9090/path/to/endpoint");
  17133. EXPECT_TRUE(ws3.is_valid());
  17134. #ifdef CPPHTTPLIB_SSL_ENABLED
  17135. ws::WebSocketClient wss1("wss://example.com/path");
  17136. EXPECT_TRUE(wss1.is_valid());
  17137. ws::WebSocketClient wss2("wss://example.com:443/path");
  17138. EXPECT_TRUE(wss2.is_valid());
  17139. #endif
  17140. }
  17141. TEST(WebSocketTest, InvalidURL) {
  17142. // No scheme
  17143. ws::WebSocketClient ws1("localhost:8080/path");
  17144. EXPECT_FALSE(ws1.is_valid());
  17145. // No path
  17146. ws::WebSocketClient ws2("ws://localhost:8080");
  17147. EXPECT_FALSE(ws2.is_valid());
  17148. // Empty string
  17149. ws::WebSocketClient ws3("");
  17150. EXPECT_FALSE(ws3.is_valid());
  17151. // Missing host
  17152. ws::WebSocketClient ws4("ws://:8080/path");
  17153. EXPECT_FALSE(ws4.is_valid());
  17154. // Port number overflow — should not crash
  17155. ws::WebSocketClient ws5("ws://localhost:99999999999999999999/path");
  17156. EXPECT_FALSE(ws5.is_valid());
  17157. // Port out of range
  17158. ws::WebSocketClient ws6("ws://localhost:99999/path");
  17159. EXPECT_FALSE(ws6.is_valid());
  17160. }
  17161. TEST(WebSocketTest, UnsupportedScheme) {
  17162. #ifdef CPPHTTPLIB_NO_EXCEPTIONS
  17163. ws::WebSocketClient ws1("http://localhost:8080/path");
  17164. EXPECT_FALSE(ws1.is_valid());
  17165. ws::WebSocketClient ws2("https://localhost:8080/path");
  17166. EXPECT_FALSE(ws2.is_valid());
  17167. ws::WebSocketClient ws3("ftp://localhost:8080/path");
  17168. EXPECT_FALSE(ws3.is_valid());
  17169. #else
  17170. EXPECT_THROW(ws::WebSocketClient("http://localhost:8080/path"),
  17171. std::invalid_argument);
  17172. EXPECT_THROW(ws::WebSocketClient("ftp://localhost:8080/path"),
  17173. std::invalid_argument);
  17174. #endif
  17175. }
  17176. TEST(WebSocketTest, ConnectWhenInvalid) {
  17177. ws::WebSocketClient ws("not a valid url");
  17178. EXPECT_FALSE(ws.is_valid());
  17179. auto res = ws.connect();
  17180. EXPECT_FALSE(res);
  17181. EXPECT_EQ(Error::Connection, res.error());
  17182. EXPECT_EQ(-1, res.status());
  17183. }
  17184. TEST(WebSocketTest, ConnectRefusedReportsError) {
  17185. // Grab a port that is free, then close it again so nothing listens there
  17186. Server svr;
  17187. auto port = svr.bind_to_any_port(HOST);
  17188. svr.stop();
  17189. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) + "/ws");
  17190. auto res = client.connect();
  17191. ASSERT_FALSE(res);
  17192. EXPECT_EQ(Error::Connection, res.error());
  17193. EXPECT_EQ(-1, res.status());
  17194. }
  17195. TEST(WebSocketTest, DefaultPort) {
  17196. ws::WebSocketClient ws1("ws://example.com/path");
  17197. EXPECT_TRUE(ws1.is_valid());
  17198. // ws:// defaults to port 80 (verified by successful parse)
  17199. #ifdef CPPHTTPLIB_SSL_ENABLED
  17200. ws::WebSocketClient ws2("wss://example.com/path");
  17201. EXPECT_TRUE(ws2.is_valid());
  17202. // wss:// defaults to port 443 (verified by successful parse)
  17203. #endif
  17204. }
  17205. TEST(WebSocketTest, IPv6LiteralAddress) {
  17206. ws::WebSocketClient ws1("ws://[::1]:8080/path");
  17207. EXPECT_TRUE(ws1.is_valid());
  17208. ws::WebSocketClient ws2("ws://[fe80::1]:3000/ws");
  17209. EXPECT_TRUE(ws2.is_valid());
  17210. }
  17211. TEST(WebSocketTest, ComplexPath) {
  17212. ws::WebSocketClient ws1("ws://localhost:8080/path/to/endpoint");
  17213. EXPECT_TRUE(ws1.is_valid());
  17214. ws::WebSocketClient ws2("ws://localhost:8080/");
  17215. EXPECT_TRUE(ws2.is_valid());
  17216. }
  17217. TEST(WebSocketTest, SpecifyServerIPAddress_AnotherHostname) {
  17218. Server svr;
  17219. svr.WebSocket("/ws", [](const Request &, ws::WebSocket &ws) {
  17220. std::string msg;
  17221. while (ws.read(msg)) {}
  17222. });
  17223. auto port = svr.bind_to_any_port(HOST);
  17224. std::thread t([&]() { svr.listen_after_bind(); });
  17225. svr.wait_until_ready();
  17226. auto another_host = "example.com";
  17227. auto wrong_ip = "192.0.2.1";
  17228. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) + "/ws");
  17229. client.set_hostname_addr_map({{another_host, wrong_ip}});
  17230. ASSERT_TRUE(client.connect());
  17231. EXPECT_TRUE(client.is_open());
  17232. client.close();
  17233. svr.stop();
  17234. t.join();
  17235. }
  17236. TEST(WebSocketTest, SpecifyServerIPAddress_RealHostname) {
  17237. Server svr;
  17238. svr.WebSocket("/ws", [](const Request &, ws::WebSocket &ws) {
  17239. std::string msg;
  17240. while (ws.read(msg)) {}
  17241. });
  17242. auto port = svr.bind_to_any_port(HOST);
  17243. std::thread t([&]() { svr.listen_after_bind(); });
  17244. svr.wait_until_ready();
  17245. auto wrong_ip = "192.0.2.1";
  17246. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) + "/ws");
  17247. client.set_hostname_addr_map({{"localhost", wrong_ip}});
  17248. client.set_connection_timeout(1);
  17249. client.set_read_timeout(1);
  17250. client.set_write_timeout(1);
  17251. EXPECT_FALSE(client.connect());
  17252. EXPECT_FALSE(client.is_open());
  17253. svr.stop();
  17254. t.join();
  17255. }
  17256. TEST(WebSocketTest, SpecifyServerIPAddress_HostnameAsAddrMapValue) {
  17257. // A mapped value that is not an IP literal must be resolved. HOST resolves
  17258. // from the hosts file, so this test needs no external DNS. "target.invalid"
  17259. // (RFC 6761) is only a map key and the Host header value.
  17260. auto host = "target.invalid";
  17261. Server svr;
  17262. std::string received_host;
  17263. svr.WebSocket("/ws", [&](const Request &req, ws::WebSocket &ws) {
  17264. received_host = req.get_header_value("Host");
  17265. std::string msg;
  17266. while (ws.read(msg)) {}
  17267. });
  17268. auto port = svr.bind_to_any_port(HOST);
  17269. std::thread t([&]() { svr.listen_after_bind(); });
  17270. // ASSERT_* below returns from the test body, which would leave t joinable
  17271. // and make ~thread call std::terminate.
  17272. auto se = detail::scope_exit([&] {
  17273. svr.stop();
  17274. if (t.joinable()) { t.join(); }
  17275. });
  17276. svr.wait_until_ready();
  17277. ws::WebSocketClient client("ws://" + std::string(host) + ":" +
  17278. std::to_string(port) + "/ws");
  17279. client.set_hostname_addr_map({{host, HOST}});
  17280. ASSERT_TRUE(client.connect());
  17281. EXPECT_TRUE(client.is_open());
  17282. client.close();
  17283. svr.stop();
  17284. t.join();
  17285. // The mapping only redirects the connection; the identity stays host_.
  17286. EXPECT_EQ(std::string(host) + ":" + std::to_string(port), received_host);
  17287. }
  17288. class WebSocketIntegrationTest : public ::testing::Test {
  17289. protected:
  17290. void SetUp() override {
  17291. server_ = httplib::detail::make_unique<Server>();
  17292. setup_server();
  17293. start_server();
  17294. }
  17295. void TearDown() override {
  17296. server_->stop();
  17297. if (server_thread_.joinable()) { server_thread_.join(); }
  17298. }
  17299. void setup_server() {
  17300. server_->WebSocket("/ws-echo", [](const Request &, ws::WebSocket &ws) {
  17301. std::string msg;
  17302. ws::ReadResult ret;
  17303. while ((ret = ws.read(msg))) {
  17304. if (ret == ws::Binary) {
  17305. ws.send(msg.data(), msg.size());
  17306. } else {
  17307. ws.send(msg);
  17308. }
  17309. }
  17310. });
  17311. server_->WebSocket("/ws-echo-string",
  17312. [](const Request &, ws::WebSocket &ws) {
  17313. std::string msg;
  17314. while (ws.read(msg)) {
  17315. ws.send("echo: " + msg);
  17316. }
  17317. });
  17318. server_->WebSocket(
  17319. "/ws-request-info", [](const Request &req, ws::WebSocket &ws) {
  17320. // Echo back request metadata
  17321. ws.send("path:" + req.path);
  17322. ws.send("header:" + req.get_header_value("X-Test-Header"));
  17323. std::string msg;
  17324. while (ws.read(msg)) {}
  17325. });
  17326. server_->WebSocket("/ws-close", [](const Request &, ws::WebSocket &ws) {
  17327. std::string msg;
  17328. ws.read(msg); // wait for a message
  17329. ws.close();
  17330. });
  17331. server_->WebSocket("/ws-close-status",
  17332. [](const Request &, ws::WebSocket &ws) {
  17333. std::string msg;
  17334. ws.read(msg); // wait for a message
  17335. ws.close(ws::CloseStatus::GoingAway, "shutting down");
  17336. });
  17337. server_->WebSocket(
  17338. "/ws-subprotocol",
  17339. [](const Request &, ws::WebSocket &ws) {
  17340. std::string msg;
  17341. while (ws.read(msg)) {
  17342. ws.send(msg);
  17343. }
  17344. },
  17345. [](const std::vector<std::string> &protocols) -> std::string {
  17346. for (const auto &p : protocols) {
  17347. if (p == "graphql-ws") { return p; }
  17348. }
  17349. return "";
  17350. });
  17351. }
  17352. void start_server() {
  17353. port_ = server_->bind_to_any_port(HOST);
  17354. server_thread_ = std::thread([this]() { server_->listen_after_bind(); });
  17355. server_->wait_until_ready();
  17356. }
  17357. std::unique_ptr<Server> server_;
  17358. std::thread server_thread_;
  17359. int port_ = 0;
  17360. };
  17361. TEST_F(WebSocketIntegrationTest, TextEcho) {
  17362. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17363. "/ws-echo");
  17364. ASSERT_TRUE(client.connect());
  17365. ASSERT_TRUE(client.is_open());
  17366. ASSERT_TRUE(client.send("Hello WebSocket"));
  17367. std::string msg;
  17368. EXPECT_EQ(ws::Text, client.read(msg));
  17369. EXPECT_EQ("Hello WebSocket", msg);
  17370. client.close();
  17371. }
  17372. TEST_F(WebSocketIntegrationTest, BinaryEcho) {
  17373. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17374. "/ws-echo");
  17375. ASSERT_TRUE(client.connect());
  17376. std::string binary_data = {'\x00', '\x01', '\x02', '\xFF', '\xFE'};
  17377. ASSERT_TRUE(client.send(binary_data.data(), binary_data.size()));
  17378. std::string msg;
  17379. EXPECT_EQ(ws::Binary, client.read(msg));
  17380. EXPECT_EQ(binary_data, msg);
  17381. client.close();
  17382. }
  17383. TEST_F(WebSocketIntegrationTest, MultipleMessages) {
  17384. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17385. "/ws-echo");
  17386. ASSERT_TRUE(client.connect());
  17387. for (int i = 0; i < 10; i++) {
  17388. auto text = "message " + std::to_string(i);
  17389. ASSERT_TRUE(client.send(text));
  17390. std::string msg;
  17391. ASSERT_TRUE(client.read(msg));
  17392. EXPECT_EQ(text, msg);
  17393. }
  17394. client.close();
  17395. }
  17396. TEST_F(WebSocketIntegrationTest, CloseHandshake) {
  17397. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17398. "/ws-close");
  17399. ASSERT_TRUE(client.connect());
  17400. // Send a message to trigger the server to close
  17401. ASSERT_TRUE(client.send("trigger close"));
  17402. // The server will close, so read should return false
  17403. std::string msg;
  17404. EXPECT_FALSE(client.read(msg));
  17405. EXPECT_FALSE(client.is_open());
  17406. }
  17407. TEST_F(WebSocketIntegrationTest, LargeMessage) {
  17408. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17409. "/ws-echo");
  17410. ASSERT_TRUE(client.connect());
  17411. // 128KB message
  17412. std::string large_data(128 * 1024, 'X');
  17413. ASSERT_TRUE(client.send(large_data));
  17414. std::string msg;
  17415. ASSERT_TRUE(client.read(msg));
  17416. EXPECT_EQ(large_data, msg);
  17417. client.close();
  17418. }
  17419. TEST_F(WebSocketIntegrationTest, ConcurrentSend) {
  17420. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17421. "/ws-echo");
  17422. ASSERT_TRUE(client.connect());
  17423. const int num_threads = 4;
  17424. std::vector<std::thread> threads;
  17425. std::atomic<int> send_count{0};
  17426. for (int t = 0; t < num_threads; t++) {
  17427. threads.emplace_back([&client, &send_count, t]() {
  17428. for (int i = 0; i < 5; i++) {
  17429. auto text = "thread" + std::to_string(t) + "_msg" + std::to_string(i);
  17430. if (client.send(text)) { send_count++; }
  17431. }
  17432. });
  17433. }
  17434. for (auto &th : threads) {
  17435. th.join();
  17436. }
  17437. int received = 0;
  17438. std::string msg;
  17439. while (received < send_count.load()) {
  17440. if (!client.read(msg)) { break; }
  17441. received++;
  17442. }
  17443. EXPECT_EQ(send_count.load(), received);
  17444. client.close();
  17445. }
  17446. TEST_F(WebSocketIntegrationTest, ReadString) {
  17447. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17448. "/ws-echo-string");
  17449. ASSERT_TRUE(client.connect());
  17450. ASSERT_TRUE(client.send("hello"));
  17451. std::string msg;
  17452. ASSERT_TRUE(client.read(msg));
  17453. EXPECT_EQ("echo: hello", msg);
  17454. ASSERT_TRUE(client.send("world"));
  17455. ASSERT_TRUE(client.read(msg));
  17456. EXPECT_EQ("echo: world", msg);
  17457. client.close();
  17458. }
  17459. TEST_F(WebSocketIntegrationTest, RequestAccess) {
  17460. Headers headers = {{"X-Test-Header", "test-value"}};
  17461. ws::WebSocketClient client(
  17462. "ws://localhost:" + std::to_string(port_) + "/ws-request-info", headers);
  17463. ASSERT_TRUE(client.connect());
  17464. std::string msg;
  17465. ASSERT_TRUE(client.read(msg));
  17466. EXPECT_EQ("path:/ws-request-info", msg);
  17467. ASSERT_TRUE(client.read(msg));
  17468. EXPECT_EQ("header:test-value", msg);
  17469. client.close();
  17470. }
  17471. TEST_F(WebSocketIntegrationTest, ReadTimeout) {
  17472. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17473. "/ws-echo");
  17474. client.set_read_timeout(1, 0); // 1 second
  17475. ASSERT_TRUE(client.connect());
  17476. // Don't send anything — server echo handler waits for a message,
  17477. // so read() should time out and return false.
  17478. std::string msg;
  17479. EXPECT_FALSE(client.read(msg));
  17480. }
  17481. TEST_F(WebSocketIntegrationTest, MaxPayloadExceeded) {
  17482. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17483. "/ws-echo");
  17484. client.set_read_timeout(5, 0);
  17485. ASSERT_TRUE(client.connect());
  17486. // Send a message exceeding CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH (16MB).
  17487. // The server should reject it and close the connection.
  17488. std::string oversized(CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH + 1, 'A');
  17489. client.send(oversized);
  17490. // The server's read() should have failed due to payload limit,
  17491. // so our read() should return false (connection closed).
  17492. std::string msg;
  17493. EXPECT_FALSE(client.read(msg));
  17494. }
  17495. TEST_F(WebSocketIntegrationTest, MaxPayloadAtLimit) {
  17496. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17497. "/ws-echo");
  17498. client.set_read_timeout(10, 0);
  17499. ASSERT_TRUE(client.connect());
  17500. // Send a message exactly at CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH (16MB).
  17501. // This should succeed.
  17502. std::string at_limit(CPPHTTPLIB_WEBSOCKET_MAX_PAYLOAD_LENGTH, 'B');
  17503. ASSERT_TRUE(client.send(at_limit));
  17504. std::string msg;
  17505. ASSERT_TRUE(client.read(msg));
  17506. EXPECT_EQ(at_limit.size(), msg.size());
  17507. client.close();
  17508. }
  17509. TEST_F(WebSocketIntegrationTest, ConnectToInvalidPath) {
  17510. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17511. "/nonexistent");
  17512. auto res = client.connect();
  17513. EXPECT_FALSE(res);
  17514. EXPECT_EQ(Error::WebSocketHandshake, res.error());
  17515. EXPECT_EQ(StatusCode::NotFound_404, res.status());
  17516. EXPECT_FALSE(client.is_open());
  17517. }
  17518. TEST_F(WebSocketIntegrationTest, EmptyMessage) {
  17519. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17520. "/ws-echo");
  17521. ASSERT_TRUE(client.connect());
  17522. ASSERT_TRUE(client.send(""));
  17523. std::string msg;
  17524. EXPECT_EQ(ws::Text, client.read(msg));
  17525. EXPECT_EQ("", msg);
  17526. client.close();
  17527. }
  17528. TEST_F(WebSocketIntegrationTest, Reconnect) {
  17529. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17530. "/ws-echo");
  17531. // First connection
  17532. ASSERT_TRUE(client.connect());
  17533. ASSERT_TRUE(client.send("first"));
  17534. std::string msg;
  17535. ASSERT_TRUE(client.read(msg));
  17536. EXPECT_EQ("first", msg);
  17537. client.close();
  17538. EXPECT_FALSE(client.is_open());
  17539. // Reconnect using the same client object
  17540. ASSERT_TRUE(client.connect());
  17541. ASSERT_TRUE(client.is_open());
  17542. ASSERT_TRUE(client.send("second"));
  17543. ASSERT_TRUE(client.read(msg));
  17544. EXPECT_EQ("second", msg);
  17545. client.close();
  17546. }
  17547. TEST_F(WebSocketIntegrationTest, CloseWithStatus) {
  17548. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17549. "/ws-close-status");
  17550. ASSERT_TRUE(client.connect());
  17551. // Trigger the server to close with GoingAway status
  17552. ASSERT_TRUE(client.send("trigger"));
  17553. // read() should return false after receiving the close frame
  17554. std::string msg;
  17555. EXPECT_FALSE(client.read(msg));
  17556. EXPECT_FALSE(client.is_open());
  17557. }
  17558. TEST_F(WebSocketIntegrationTest, ClientCloseWithStatus) {
  17559. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17560. "/ws-echo");
  17561. ASSERT_TRUE(client.connect());
  17562. client.close(ws::CloseStatus::GoingAway, "client leaving");
  17563. EXPECT_FALSE(client.is_open());
  17564. }
  17565. TEST_F(WebSocketIntegrationTest, SubProtocolNegotiation) {
  17566. Headers headers = {{"Sec-WebSocket-Protocol", "mqtt, graphql-ws"}};
  17567. ws::WebSocketClient client(
  17568. "ws://localhost:" + std::to_string(port_) + "/ws-subprotocol", headers);
  17569. ASSERT_TRUE(client.connect());
  17570. // Server should have selected graphql-ws
  17571. EXPECT_EQ("graphql-ws", client.subprotocol());
  17572. client.close();
  17573. }
  17574. TEST_F(WebSocketIntegrationTest, SubProtocolSplitAcrossFieldLines) {
  17575. Headers headers;
  17576. headers.emplace("Sec-WebSocket-Protocol", "mqtt");
  17577. headers.emplace("Sec-WebSocket-Protocol", "graphql-ws");
  17578. ws::WebSocketClient client(
  17579. "ws://localhost:" + std::to_string(port_) + "/ws-subprotocol", headers);
  17580. ASSERT_TRUE(client.connect());
  17581. // The offer on the second field line counts too, so graphql-ws is selected
  17582. EXPECT_EQ("graphql-ws", client.subprotocol());
  17583. client.close();
  17584. }
  17585. TEST_F(WebSocketIntegrationTest, SubProtocolNoMatch) {
  17586. Headers headers = {{"Sec-WebSocket-Protocol", "mqtt, wamp"}};
  17587. ws::WebSocketClient client(
  17588. "ws://localhost:" + std::to_string(port_) + "/ws-subprotocol", headers);
  17589. ASSERT_TRUE(client.connect());
  17590. // Server should not have selected any subprotocol
  17591. EXPECT_TRUE(client.subprotocol().empty());
  17592. client.close();
  17593. }
  17594. TEST_F(WebSocketIntegrationTest, SubProtocolNotRequested) {
  17595. // Connect without requesting any subprotocol
  17596. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17597. "/ws-subprotocol");
  17598. ASSERT_TRUE(client.connect());
  17599. EXPECT_TRUE(client.subprotocol().empty());
  17600. client.close();
  17601. }
  17602. TEST_F(WebSocketIntegrationTest, SocketSettings) {
  17603. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17604. "/ws-echo");
  17605. client.set_tcp_nodelay(true);
  17606. client.set_connection_timeout(3, 0);
  17607. bool socket_options_called = false;
  17608. client.set_socket_options([&](socket_t) { socket_options_called = true; });
  17609. ASSERT_TRUE(client.connect());
  17610. ASSERT_TRUE(client.is_open());
  17611. EXPECT_TRUE(socket_options_called);
  17612. ASSERT_TRUE(client.send("hello"));
  17613. std::string msg;
  17614. auto result = client.read(msg);
  17615. EXPECT_EQ(result, ws::ReadResult::Text);
  17616. EXPECT_EQ(msg, "hello");
  17617. client.close();
  17618. }
  17619. TEST_F(WebSocketIntegrationTest, ChronoTimeoutSetters) {
  17620. ws::WebSocketClient client("ws://localhost:" + std::to_string(port_) +
  17621. "/ws-echo");
  17622. client.set_connection_timeout(std::chrono::seconds(3));
  17623. client.set_write_timeout(std::chrono::seconds(3));
  17624. // A sub-second remainder exercises the seconds/microseconds split.
  17625. client.set_read_timeout(std::chrono::milliseconds(1500));
  17626. ASSERT_TRUE(client.connect());
  17627. auto start = std::chrono::steady_clock::now();
  17628. std::string msg;
  17629. EXPECT_EQ(client.read(msg), ws::ReadResult::Fail);
  17630. auto elapsed = std::chrono::duration_cast<std::chrono::milliseconds>(
  17631. std::chrono::steady_clock::now() - start)
  17632. .count();
  17633. // Above 1s so that dropping the microseconds half of the split fails here,
  17634. // and well under the 300s default so that ignoring the setter fails too.
  17635. EXPECT_GE(elapsed, 1400);
  17636. EXPECT_LT(elapsed, 30000);
  17637. }
  17638. TEST(WebSocketPreRoutingTest, RejectWithoutAuth) {
  17639. Server svr;
  17640. svr.set_pre_routing_handler([](const Request &req, Response &res) {
  17641. if (!req.has_header("Authorization")) {
  17642. res.status = StatusCode::Unauthorized_401;
  17643. res.set_content("Unauthorized", "text/plain");
  17644. return Server::HandlerResponse::Handled;
  17645. }
  17646. return Server::HandlerResponse::Unhandled;
  17647. });
  17648. svr.WebSocket("/ws", [](const Request &, ws::WebSocket &ws) {
  17649. std::string msg;
  17650. while (ws.read(msg)) {
  17651. ws.send(msg);
  17652. }
  17653. });
  17654. auto port = svr.bind_to_any_port("localhost");
  17655. std::thread t([&]() { svr.listen_after_bind(); });
  17656. svr.wait_until_ready();
  17657. // Without Authorization header - should be rejected before upgrade
  17658. ws::WebSocketClient client1("ws://localhost:" + std::to_string(port) + "/ws");
  17659. EXPECT_FALSE(client1.connect());
  17660. // With Authorization header - should succeed
  17661. Headers headers = {{"Authorization", "Bearer token123"}};
  17662. ws::WebSocketClient client2("ws://localhost:" + std::to_string(port) + "/ws",
  17663. headers);
  17664. ASSERT_TRUE(client2.connect());
  17665. ASSERT_TRUE(client2.send("hello"));
  17666. std::string msg;
  17667. ASSERT_TRUE(client2.read(msg));
  17668. EXPECT_EQ("hello", msg);
  17669. client2.close();
  17670. svr.stop();
  17671. t.join();
  17672. }
  17673. TEST(WebSocketTest, QueryStringInHandshake) {
  17674. Server svr;
  17675. std::mutex mtx;
  17676. std::string received_target;
  17677. std::string received_token;
  17678. svr.WebSocket("/ws", [&](const Request &req, ws::WebSocket &ws) {
  17679. {
  17680. std::lock_guard<std::mutex> lock(mtx);
  17681. received_target = req.target;
  17682. if (req.has_param("token")) {
  17683. received_token = req.get_param_value("token");
  17684. }
  17685. }
  17686. std::string msg;
  17687. while (ws.read(msg)) {
  17688. ws.send(msg);
  17689. }
  17690. });
  17691. auto port = svr.bind_to_any_port("localhost");
  17692. std::thread t([&]() { svr.listen_after_bind(); });
  17693. svr.wait_until_ready();
  17694. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) +
  17695. "/ws?token=ABC&session=123");
  17696. ASSERT_TRUE(client.connect());
  17697. // Round-trip ensures the handler has run and captured the request.
  17698. ASSERT_TRUE(client.send("hello"));
  17699. std::string msg;
  17700. ASSERT_TRUE(client.read(msg));
  17701. EXPECT_EQ("hello", msg);
  17702. client.close();
  17703. {
  17704. std::lock_guard<std::mutex> lock(mtx);
  17705. EXPECT_EQ("/ws?token=ABC&session=123", received_target);
  17706. EXPECT_EQ("ABC", received_token);
  17707. }
  17708. svr.stop();
  17709. t.join();
  17710. }
  17711. // Run a handshake against a throwaway server and hand the request the server
  17712. // received back to the caller, so tests can assert on the headers the client
  17713. // actually put on the wire.
  17714. static void capture_websocket_handshake_request(
  17715. const Headers &client_headers,
  17716. std::function<void(const Request &, int port)> verify) {
  17717. Server svr;
  17718. std::mutex mtx;
  17719. Request received;
  17720. svr.WebSocket("/ws", [&](const Request &req, ws::WebSocket &ws) {
  17721. {
  17722. std::lock_guard<std::mutex> lock(mtx);
  17723. received = req;
  17724. }
  17725. std::string msg;
  17726. while (ws.read(msg)) {
  17727. ws.send(msg);
  17728. }
  17729. });
  17730. auto port = svr.bind_to_any_port("localhost");
  17731. std::thread t([&]() { svr.listen_after_bind(); });
  17732. auto se = detail::scope_exit([&] {
  17733. svr.stop();
  17734. t.join();
  17735. });
  17736. svr.wait_until_ready();
  17737. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) + "/ws",
  17738. client_headers);
  17739. ASSERT_TRUE(client.connect());
  17740. ASSERT_TRUE(client.send("hello"));
  17741. std::string msg;
  17742. ASSERT_TRUE(client.read(msg));
  17743. client.close();
  17744. {
  17745. std::lock_guard<std::mutex> lock(mtx);
  17746. verify(received, port);
  17747. }
  17748. }
  17749. TEST(WebSocketTest, DefaultHeadersInHandshake) {
  17750. capture_websocket_handshake_request({}, [](const Request &req, int port) {
  17751. // Non-default port must be present in the Host header. Default ports
  17752. // (80/443) are omitted; that logic is covered by
  17753. // MakeHostAndPortStringTest.
  17754. EXPECT_EQ("localhost:" + std::to_string(port),
  17755. req.get_header_value("Host"));
  17756. EXPECT_EQ(std::string("cpp-httplib/") + CPPHTTPLIB_VERSION,
  17757. req.get_header_value("User-Agent"));
  17758. EXPECT_FALSE(req.has_header("Accept"));
  17759. EXPECT_FALSE(req.has_header("Accept-Encoding"));
  17760. EXPECT_FALSE(req.has_header("Content-Length"));
  17761. });
  17762. }
  17763. TEST(WebSocketTest, UserHeadersOverrideGeneratedOnesInHandshake) {
  17764. capture_websocket_handshake_request(
  17765. {{"Host", "example.com"},
  17766. {"User-Agent", "custom-agent"},
  17767. {"X-Custom", "value"}},
  17768. [](const Request &req, int) {
  17769. EXPECT_EQ("example.com", req.get_header_value("Host"));
  17770. EXPECT_EQ(1U, req.get_header_value_count("Host"));
  17771. EXPECT_EQ("custom-agent", req.get_header_value("User-Agent"));
  17772. EXPECT_EQ(1U, req.get_header_value_count("User-Agent"));
  17773. EXPECT_EQ("value", req.get_header_value("X-Custom"));
  17774. });
  17775. }
  17776. TEST(WebSocketTest, MandatoryHeadersInHandshakeAreEnforced) {
  17777. capture_websocket_handshake_request(
  17778. {{"Upgrade", "bogus"},
  17779. {"Connection", "close"},
  17780. {"Sec-WebSocket-Key", "AAAAAAAAAAAAAAAAAAAAAA=="},
  17781. {"Sec-WebSocket-Version", "8"}},
  17782. [](const Request &req, int) {
  17783. EXPECT_EQ("websocket", req.get_header_value("Upgrade"));
  17784. EXPECT_EQ(1U, req.get_header_value_count("Upgrade"));
  17785. EXPECT_EQ("Upgrade", req.get_header_value("Connection"));
  17786. EXPECT_EQ(1U, req.get_header_value_count("Connection"));
  17787. EXPECT_EQ("13", req.get_header_value("Sec-WebSocket-Version"));
  17788. EXPECT_EQ(1U, req.get_header_value_count("Sec-WebSocket-Version"));
  17789. EXPECT_EQ(1U, req.get_header_value_count("Sec-WebSocket-Key"));
  17790. EXPECT_NE("AAAAAAAAAAAAAAAAAAAAAA==",
  17791. req.get_header_value("Sec-WebSocket-Key"));
  17792. });
  17793. }
  17794. TEST(WebSocketTest, InvalidHeaderInHandshakeWritesNothing) {
  17795. // A header the client refuses to send must abort the handshake before any
  17796. // part of it reaches the wire; a lone request line would otherwise sit in
  17797. // the peer's buffer as a truncated request.
  17798. auto srv = ::socket(AF_INET, SOCK_STREAM, 0);
  17799. ASSERT_NE(INVALID_SOCKET, srv);
  17800. auto se_srv = detail::scope_exit([&] { detail::close_socket(srv); });
  17801. sockaddr_in addr{};
  17802. addr.sin_family = AF_INET;
  17803. addr.sin_port = 0; // ephemeral, so parallel shards don't collide
  17804. ::inet_pton(AF_INET, "127.0.0.1", &addr.sin_addr);
  17805. ASSERT_EQ(0, ::bind(srv, reinterpret_cast<sockaddr *>(&addr), sizeof(addr)));
  17806. ASSERT_EQ(0, ::listen(srv, 1));
  17807. sockaddr_in bound{};
  17808. socklen_t bound_len = sizeof(bound);
  17809. ASSERT_EQ(
  17810. 0, ::getsockname(srv, reinterpret_cast<sockaddr *>(&bound), &bound_len));
  17811. auto port = ntohs(bound.sin_port);
  17812. ssize_t received = -1;
  17813. std::thread t([&] {
  17814. // Bound every blocking call so a regression fails the test with a bad
  17815. // value instead of hanging the suite.
  17816. fd_set rfds;
  17817. FD_ZERO(&rfds);
  17818. FD_SET(srv, &rfds);
  17819. timeval tv{5, 0};
  17820. if (::select(static_cast<int>(srv + 1), &rfds, nullptr, nullptr, &tv) <=
  17821. 0) {
  17822. return;
  17823. }
  17824. sockaddr_in cli_addr{};
  17825. socklen_t cli_len = sizeof(cli_addr);
  17826. auto cli = ::accept(srv, reinterpret_cast<sockaddr *>(&cli_addr), &cli_len);
  17827. if (cli == INVALID_SOCKET) { return; }
  17828. auto se_cli = detail::scope_exit([&] { detail::close_socket(cli); });
  17829. detail::set_socket_opt_time(cli, SOL_SOCKET, SO_RCVTIMEO, 5, 0);
  17830. char buf[4096];
  17831. received = ::recv(cli, buf, sizeof(buf), 0);
  17832. });
  17833. // The CR/LF makes the value invalid, so check_and_write_headers rejects it.
  17834. // connect() has already shut the socket down by the time it returns false,
  17835. // so the peer sees EOF without waiting for the client to be destroyed.
  17836. ws::WebSocketClient client("ws://127.0.0.1:" + std::to_string(port) + "/ws",
  17837. {{"X-Bad", "a\r\nInjected: 1"}});
  17838. EXPECT_FALSE(client.connect());
  17839. t.join();
  17840. // 0 means the peer saw a clean EOF without a single byte of the handshake.
  17841. EXPECT_EQ(0, received);
  17842. }
  17843. TEST(WebSocketTest, ConnectionHeaderNeedsCompleteUpgradeToken) {
  17844. // RFC 6455 4.2.1: Connection is a token list, so a value that merely
  17845. // contains "upgrade" as a substring is a different token and must not
  17846. // start a WebSocket handshake.
  17847. auto make_request = [](const std::vector<std::string> &connection_values) {
  17848. Request req;
  17849. req.method = "GET";
  17850. req.headers.emplace("Upgrade", "websocket");
  17851. for (const auto &value : connection_values) {
  17852. req.headers.emplace("Connection", value);
  17853. }
  17854. req.headers.emplace("Sec-WebSocket-Key", "dGhlIHNhbXBsZSBub25jZQ==");
  17855. req.headers.emplace("Sec-WebSocket-Version", "13");
  17856. return req;
  17857. };
  17858. EXPECT_TRUE(detail::is_websocket_upgrade(make_request({"Upgrade"})));
  17859. EXPECT_TRUE(detail::is_websocket_upgrade(make_request({"upgrade"})));
  17860. EXPECT_TRUE(
  17861. detail::is_websocket_upgrade(make_request({"keep-alive, Upgrade"})));
  17862. EXPECT_TRUE(
  17863. detail::is_websocket_upgrade(make_request({"Upgrade , keep-alive"})));
  17864. EXPECT_TRUE(
  17865. detail::is_websocket_upgrade(make_request({"keep-alive", "Upgrade"})));
  17866. EXPECT_FALSE(detail::is_websocket_upgrade(make_request({"notupgrade"})));
  17867. EXPECT_FALSE(detail::is_websocket_upgrade(make_request({"upgrade-not"})));
  17868. EXPECT_FALSE(detail::is_websocket_upgrade(make_request({"xupgrade"})));
  17869. EXPECT_FALSE(
  17870. detail::is_websocket_upgrade(make_request({"keep-alive, notupgrade"})));
  17871. EXPECT_FALSE(detail::is_websocket_upgrade(make_request({"close"})));
  17872. EXPECT_FALSE(detail::is_websocket_upgrade(make_request({})));
  17873. }
  17874. TEST(WebSocketTest, ServerRejectsHandshakeWithoutUpgradeToken) {
  17875. Server svr;
  17876. svr.WebSocket("/ws", [](const Request &, ws::WebSocket &) {});
  17877. auto port = svr.bind_to_any_port("localhost");
  17878. std::thread t([&]() { svr.listen_after_bind(); });
  17879. auto se = detail::scope_exit([&] {
  17880. svr.stop();
  17881. t.join();
  17882. });
  17883. svr.wait_until_ready();
  17884. Headers headers = {{"Upgrade", "websocket"},
  17885. {"Connection", "notupgrade"},
  17886. {"Sec-WebSocket-Key", "dGhlIHNhbXBsZSBub25jZQ=="},
  17887. {"Sec-WebSocket-Version", "13"}};
  17888. Client cli("localhost", port);
  17889. auto res = cli.Get("/ws", headers);
  17890. // The route exists only as a WebSocket route, so a request that fails the
  17891. // handshake check falls through to ordinary routing.
  17892. ASSERT_TRUE(res);
  17893. EXPECT_EQ(StatusCode::NotFound_404, res->status);
  17894. }
  17895. TEST(WebSocketTest, ClientRejectsResponseWithoutUpgradeToken) {
  17896. // The peer answers 101 with a correct Sec-WebSocket-Accept, so the
  17897. // Connection value is the only thing left for the client to reject.
  17898. Server svr;
  17899. svr.Get("/ws", [](const Request &req, Response &res) {
  17900. res.status = StatusCode::SwitchingProtocol_101;
  17901. res.set_header("Upgrade", "websocket");
  17902. res.set_header("Connection", "notupgrade");
  17903. res.set_header("Sec-WebSocket-Accept",
  17904. detail::websocket_accept_key(
  17905. req.get_header_value("Sec-WebSocket-Key")));
  17906. });
  17907. auto port = svr.bind_to_any_port("localhost");
  17908. std::thread t([&]() { svr.listen_after_bind(); });
  17909. auto se = detail::scope_exit([&] {
  17910. svr.stop();
  17911. t.join();
  17912. });
  17913. svr.wait_until_ready();
  17914. ws::WebSocketClient client("ws://localhost:" + std::to_string(port) + "/ws");
  17915. auto res = client.connect();
  17916. EXPECT_FALSE(res);
  17917. EXPECT_EQ(Error::WebSocketHandshake, res.error());
  17918. EXPECT_FALSE(client.is_open());
  17919. }
  17920. TEST(WebSocketTest, HostHeaderOverUnixSocket) {
  17921. // The socket path doubles as the URL host, so it must not contain '/'.
  17922. const char *shard = getenv("GTEST_SHARD_INDEX");
  17923. const std::string sock_path =
  17924. shard ? std::string("httplib-ws-") + shard + ".sock"
  17925. : std::string("httplib-ws.sock");
  17926. std::remove(sock_path.c_str());
  17927. Server svr;
  17928. std::mutex mtx;
  17929. std::string received_host;
  17930. svr.WebSocket("/ws", [&](const Request &req, ws::WebSocket &ws) {
  17931. {
  17932. std::lock_guard<std::mutex> lock(mtx);
  17933. received_host = req.get_header_value("Host");
  17934. }
  17935. std::string msg;
  17936. while (ws.read(msg)) {
  17937. ws.send(msg);
  17938. }
  17939. });
  17940. svr.set_address_family(AF_UNIX);
  17941. std::thread t([&]() { ASSERT_TRUE(svr.listen(sock_path, 80)); });
  17942. auto se = detail::scope_exit([&] {
  17943. svr.stop();
  17944. t.join();
  17945. std::remove(sock_path.c_str());
  17946. });
  17947. svr.wait_until_ready();
  17948. ws::WebSocketClient client("ws://" + sock_path + "/ws");
  17949. client.set_address_family(AF_UNIX);
  17950. ASSERT_TRUE(client.connect());
  17951. ASSERT_TRUE(client.send("hello"));
  17952. std::string msg;
  17953. ASSERT_TRUE(client.read(msg));
  17954. client.close();
  17955. {
  17956. std::lock_guard<std::mutex> lock(mtx);
  17957. // There is no host:port for a Unix socket, so the same "localhost"
  17958. // placeholder the HTTP client uses is expected.
  17959. EXPECT_EQ("localhost", received_host);
  17960. }
  17961. }
  17962. #ifdef CPPHTTPLIB_OPENSSL_SUPPORT
  17963. class WebSocketSSLIntegrationTest : public ::testing::Test {
  17964. protected:
  17965. void SetUp() override {
  17966. server_ = httplib::detail::make_unique<SSLServer>(SERVER_CERT_FILE,
  17967. SERVER_PRIVATE_KEY_FILE);
  17968. server_->WebSocket("/ws-echo", [](const Request &, ws::WebSocket &ws) {
  17969. std::string msg;
  17970. ws::ReadResult ret;
  17971. while ((ret = ws.read(msg))) {
  17972. if (ret == ws::Binary) {
  17973. ws.send(msg.data(), msg.size());
  17974. } else {
  17975. ws.send(msg);
  17976. }
  17977. }
  17978. });
  17979. port_ = server_->bind_to_any_port(HOST);
  17980. server_thread_ = std::thread([this]() { server_->listen_after_bind(); });
  17981. server_->wait_until_ready();
  17982. }
  17983. void TearDown() override {
  17984. server_->stop();
  17985. if (server_thread_.joinable()) { server_thread_.join(); }
  17986. }
  17987. std::unique_ptr<SSLServer> server_;
  17988. std::thread server_thread_;
  17989. int port_ = 0;
  17990. };
  17991. TEST_F(WebSocketSSLIntegrationTest, TextEcho) {
  17992. ws::WebSocketClient client("wss://localhost:" + std::to_string(port_) +
  17993. "/ws-echo");
  17994. client.enable_server_certificate_verification(false);
  17995. ASSERT_TRUE(client.connect());
  17996. ASSERT_TRUE(client.is_open());
  17997. ASSERT_TRUE(client.send("Hello WSS"));
  17998. std::string msg;
  17999. EXPECT_EQ(ws::Text, client.read(msg));
  18000. EXPECT_EQ("Hello WSS", msg);
  18001. client.close();
  18002. }
  18003. // Regression test (GHSA-w7p7-f35j-mw7q): shutdown_and_close() used to free the
  18004. // TLS session before ws_->close() sent the close frame. Because the WebSocket's
  18005. // SSLSocketStream keeps a raw pointer to that session, sending the close frame
  18006. // then read/wrote a freed SSL object (use-after-free). Destroying an open wss
  18007. // client (without calling close() first) is the only path that runs
  18008. // shutdown_and_close() while the WebSocket is still open, so it reproduces the
  18009. // bug exactly.
  18010. //
  18011. // NOTE: the offending read/write happens inside OpenSSL, so ASan only flags it
  18012. // when linked against an instrumented libssl; run under Valgrind to catch it
  18013. // with a stock OpenSSL. The short timeouts keep a regression from wedging the
  18014. // suite (the freed session otherwise stalls on the close handshake) — this test
  18015. // is a memory-tool tripwire, not a pass/fail assertion on stock builds.
  18016. TEST_F(WebSocketSSLIntegrationTest, DestroyWhileOpenSendsCloseOverLiveSession) {
  18017. {
  18018. ws::WebSocketClient client("wss://localhost:" + std::to_string(port_) +
  18019. "/ws-echo");
  18020. client.enable_server_certificate_verification(false);
  18021. client.set_read_timeout(2, 0);
  18022. client.set_write_timeout(2, 0);
  18023. ASSERT_TRUE(client.connect());
  18024. ASSERT_TRUE(client.is_open());
  18025. ASSERT_TRUE(client.send("still open"));
  18026. // Intentionally do NOT call client.close(): leaving scope runs
  18027. // shutdown_and_close() with the WebSocket still open, which must send the
  18028. // close frame while the TLS session is still alive.
  18029. }
  18030. }
  18031. // Regression test (GHSA-w7p7-f35j-mw7q): reconnecting an open wss client runs
  18032. // shutdown_and_close() at the start of connect(), reproducing the same
  18033. // use-after-free within the test body rather than at scope exit. The second
  18034. // connect must succeed and echo, proving the close handshake ran over a live
  18035. // session. See the note above about memory-tool requirements.
  18036. TEST_F(WebSocketSSLIntegrationTest,
  18037. ReconnectWhileOpenSendsCloseOverLiveSession) {
  18038. ws::WebSocketClient client("wss://localhost:" + std::to_string(port_) +
  18039. "/ws-echo");
  18040. client.enable_server_certificate_verification(false);
  18041. client.set_read_timeout(2, 0);
  18042. client.set_write_timeout(2, 0);
  18043. ASSERT_TRUE(client.connect());
  18044. ASSERT_TRUE(client.is_open());
  18045. ASSERT_TRUE(client.send("still open"));
  18046. // Reconnect without closing first: connect() calls shutdown_and_close() on
  18047. // the still-open connection, which must not touch a freed TLS session.
  18048. ASSERT_TRUE(client.connect());
  18049. ASSERT_TRUE(client.is_open());
  18050. ASSERT_TRUE(client.send("after reconnect"));
  18051. std::string msg;
  18052. EXPECT_EQ(ws::Text, client.read(msg));
  18053. EXPECT_EQ("after reconnect", msg);
  18054. client.close();
  18055. }
  18056. #endif
  18057. #ifdef CPPHTTPLIB_SSL_ENABLED
  18058. class WebSocketSSLCATest : public ::testing::Test {
  18059. protected:
  18060. void SetUp() override {
  18061. server_ = httplib::detail::make_unique<SSLServer>(SERVER_CERT2_FILE,
  18062. SERVER_PRIVATE_KEY_FILE);
  18063. server_->WebSocket("/echo", [](const Request &, ws::WebSocket &ws) {
  18064. std::string msg;
  18065. while (ws.read(msg)) {
  18066. ws.send(msg);
  18067. }
  18068. });
  18069. port_ = server_->bind_to_any_port("127.0.0.1");
  18070. server_thread_ = std::thread([this]() { server_->listen_after_bind(); });
  18071. server_->wait_until_ready();
  18072. }
  18073. void TearDown() override {
  18074. server_->stop();
  18075. if (server_thread_.joinable()) { server_thread_.join(); }
  18076. }
  18077. std::string url() const {
  18078. return "wss://127.0.0.1:" + std::to_string(port_) + "/echo";
  18079. }
  18080. std::unique_ptr<SSLServer> server_;
  18081. std::thread server_thread_;
  18082. int port_ = 0;
  18083. };
  18084. // A custom CA loaded as PEM verifies the server with full certificate
  18085. // verification enabled
  18086. TEST_F(WebSocketSSLCATest, LoadCaCertStoreVerifiesServer) {
  18087. ws::WebSocketClient client(url());
  18088. std::string cert;
  18089. read_file(SERVER_CERT2_FILE, cert);
  18090. client.load_ca_cert_store(cert.c_str(), cert.size());
  18091. ASSERT_TRUE(client.connect());
  18092. ASSERT_TRUE(client.send("hello"));
  18093. std::string msg;
  18094. EXPECT_EQ(ws::Text, client.read(msg));
  18095. EXPECT_EQ("hello", msg);
  18096. client.close();
  18097. }
  18098. // A custom CA that does not cover the server must fail verification (the
  18099. // custom CA is exclusive; system certs are not loaded alongside it)
  18100. TEST_F(WebSocketSSLCATest, WrongCustomCaFailsVerification) {
  18101. ws::WebSocketClient client(url());
  18102. std::string cert;
  18103. read_file(CLIENT_CA_CERT_FILE, cert);
  18104. client.load_ca_cert_store(cert.c_str(), cert.size());
  18105. auto res = client.connect();
  18106. ASSERT_FALSE(res);
  18107. EXPECT_EQ(Error::SSLServerVerification, res.error());
  18108. EXPECT_EQ(-1, res.status());
  18109. EXPECT_NE(0u, res.ssl_backend_error());
  18110. }
  18111. // The same CA as a file path rather than PEM in memory
  18112. TEST_F(WebSocketSSLCATest, SetCaCertPathVerifiesServer) {
  18113. ws::WebSocketClient client(url());
  18114. client.set_ca_cert_path(SERVER_CERT2_FILE);
  18115. ASSERT_TRUE(client.connect());
  18116. ASSERT_TRUE(client.send("hello"));
  18117. std::string msg;
  18118. EXPECT_EQ(ws::Text, client.read(msg));
  18119. EXPECT_EQ("hello", msg);
  18120. client.close();
  18121. }
  18122. // ...and a CA file that does not cover the server still fails, so it is the
  18123. // path above that decides the outcome
  18124. TEST_F(WebSocketSSLCATest, WrongCaCertPathFailsVerification) {
  18125. ws::WebSocketClient client(url());
  18126. client.set_ca_cert_path(CLIENT_CA_CERT_FILE);
  18127. ASSERT_FALSE(client.connect());
  18128. }
  18129. // Regression test: reconnecting with a native custom CA store used to reuse
  18130. // a store handle the previous TLS context had already freed (use-after-free
  18131. // under the OpenSSL backend). The context now lives as long as the client.
  18132. TEST_F(WebSocketSSLCATest, ReconnectWithCustomCaStore) {
  18133. ws::WebSocketClient client(url());
  18134. std::string cert;
  18135. read_file(SERVER_CERT2_FILE, cert);
  18136. client.set_ca_cert_store(tls::create_ca_store(cert.c_str(), cert.size()));
  18137. ASSERT_TRUE(client.connect());
  18138. client.close();
  18139. ASSERT_TRUE(client.connect());
  18140. ASSERT_TRUE(client.send("again"));
  18141. std::string msg;
  18142. EXPECT_EQ(ws::Text, client.read(msg));
  18143. EXPECT_EQ("again", msg);
  18144. client.close();
  18145. }
  18146. // Regression test: a certificate with a trusted chain but no identity match
  18147. // for the server IP must be rejected. The Mbed TLS backend used to skip
  18148. // verification entirely for IP hosts, so this connection succeeded there.
  18149. // SERVER_CERT_FILE has no IP SAN (CN only), so trusting it as a CA satisfies
  18150. // chain verification while the identity check must still fail.
  18151. TEST(WebSocketSSLVerifyTest, TrustedChainWrongIdentityFails) {
  18152. SSLServer svr(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE);
  18153. ASSERT_TRUE(svr.is_valid());
  18154. svr.WebSocket("/echo", [](const Request &, ws::WebSocket &ws) {
  18155. std::string msg;
  18156. while (ws.read(msg)) {
  18157. ws.send(msg);
  18158. }
  18159. });
  18160. auto port = svr.bind_to_any_port("127.0.0.1");
  18161. auto t = std::thread([&]() { svr.listen_after_bind(); });
  18162. auto se = detail::scope_exit([&] {
  18163. svr.stop();
  18164. t.join();
  18165. });
  18166. svr.wait_until_ready();
  18167. ws::WebSocketClient client("wss://127.0.0.1:" + std::to_string(port) +
  18168. "/echo");
  18169. std::string cert;
  18170. read_file(SERVER_CERT_FILE, cert);
  18171. client.load_ca_cert_store(cert.c_str(), cert.size());
  18172. ASSERT_FALSE(client.connect());
  18173. }
  18174. // The tests above all connect to an IP literal, for which RFC 6066 forbids
  18175. // SNI, so nothing binds the host name to the TLS session. These bind the
  18176. // server to "localhost" instead, the only shape that exercises the SNI and
  18177. // hostname-verification path with certificate verification left enabled.
  18178. class WebSocketSSLDnsHostTest : public ::testing::Test {
  18179. protected:
  18180. void Start(const char *cert_file) {
  18181. server_ = httplib::detail::make_unique<SSLServer>(cert_file,
  18182. SERVER_PRIVATE_KEY_FILE);
  18183. ASSERT_TRUE(server_->is_valid());
  18184. server_->WebSocket("/echo", [](const Request &, ws::WebSocket &ws) {
  18185. std::string msg;
  18186. while (ws.read(msg)) {
  18187. ws.send(msg);
  18188. }
  18189. });
  18190. port_ = server_->bind_to_any_port("localhost");
  18191. server_thread_ = std::thread([this]() { server_->listen_after_bind(); });
  18192. server_->wait_until_ready();
  18193. }
  18194. void TearDown() override {
  18195. if (server_) { server_->stop(); }
  18196. if (server_thread_.joinable()) { server_thread_.join(); }
  18197. }
  18198. std::string url() const {
  18199. return "wss://localhost:" + std::to_string(port_) + "/echo";
  18200. }
  18201. std::unique_ptr<SSLServer> server_;
  18202. std::thread server_thread_;
  18203. int port_ = 0;
  18204. };
  18205. // cert2 carries a DNS:localhost SAN, so both the chain and the identity check
  18206. // out and the connection is usable
  18207. TEST_F(WebSocketSSLDnsHostTest, TrustedChainMatchingNameVerifies) {
  18208. Start(SERVER_CERT2_FILE);
  18209. ws::WebSocketClient client(url());
  18210. client.set_ca_cert_path(SERVER_CERT2_FILE);
  18211. ASSERT_TRUE(client.connect());
  18212. ASSERT_TRUE(client.send("hello"));
  18213. std::string msg;
  18214. EXPECT_EQ(ws::Text, client.read(msg));
  18215. EXPECT_EQ("hello", msg);
  18216. client.close();
  18217. }
  18218. // cert.pem has a CN but no SAN, so trusting it as a CA satisfies the chain
  18219. // while the identity check must still reject "localhost"
  18220. TEST_F(WebSocketSSLDnsHostTest, TrustedChainWrongNameFails) {
  18221. Start(SERVER_CERT_FILE);
  18222. ws::WebSocketClient client(url());
  18223. client.set_ca_cert_path(SERVER_CERT_FILE);
  18224. auto res = client.connect();
  18225. ASSERT_FALSE(res);
  18226. EXPECT_EQ(Error::SSLServerHostnameVerification, res.error());
  18227. EXPECT_EQ(-1, res.status());
  18228. }
  18229. // Same setup as TrustedChainWrongNameFails, but with hostname verification
  18230. // disabled: the chain is still checked, only the identity check is skipped
  18231. TEST_F(WebSocketSSLDnsHostTest, HostnameVerificationDisabledAcceptsWrongName) {
  18232. Start(SERVER_CERT_FILE);
  18233. ws::WebSocketClient client(url());
  18234. client.set_ca_cert_path(SERVER_CERT_FILE);
  18235. client.enable_server_hostname_verification(false);
  18236. ASSERT_TRUE(client.connect());
  18237. ASSERT_TRUE(client.send("hello"));
  18238. std::string msg;
  18239. EXPECT_EQ(ws::Text, client.read(msg));
  18240. EXPECT_EQ("hello", msg);
  18241. client.close();
  18242. }
  18243. // A CA that did not sign the server certificate fails the chain, even though
  18244. // the name would match
  18245. TEST_F(WebSocketSSLDnsHostTest, UntrustedChainFails) {
  18246. Start(SERVER_CERT2_FILE);
  18247. ws::WebSocketClient client(url());
  18248. client.set_ca_cert_path(CLIENT_CA_CERT_FILE);
  18249. ASSERT_FALSE(client.connect());
  18250. }
  18251. // With verification disabled, neither the chain nor the name is checked
  18252. TEST_F(WebSocketSSLDnsHostTest, VerificationDisabledAcceptsAnyName) {
  18253. Start(SERVER_CERT_FILE);
  18254. ws::WebSocketClient client(url());
  18255. client.enable_server_certificate_verification(false);
  18256. ASSERT_TRUE(client.connect());
  18257. ASSERT_TRUE(client.send("hello"));
  18258. std::string msg;
  18259. EXPECT_EQ(ws::Text, client.read(msg));
  18260. EXPECT_EQ("hello", msg);
  18261. client.close();
  18262. }
  18263. class WebSocketSSLPemMemoryTest : public ::testing::Test {
  18264. protected:
  18265. void SetUp() override {
  18266. server_ = httplib::detail::make_unique<SSLServer>(
  18267. SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE, CLIENT_CA_CERT_FILE);
  18268. ASSERT_TRUE(server_->is_valid());
  18269. server_->WebSocket("/ws-echo", [](const Request &, ws::WebSocket &ws) {
  18270. std::string msg;
  18271. while (ws.read(msg)) {
  18272. ws.send(msg);
  18273. }
  18274. });
  18275. port_ = server_->bind_to_any_port("localhost");
  18276. server_thread_ = std::thread([this]() { server_->listen_after_bind(); });
  18277. server_->wait_until_ready();
  18278. }
  18279. void TearDown() override {
  18280. server_->stop();
  18281. if (server_thread_.joinable()) { server_thread_.join(); }
  18282. }
  18283. std::string url() const {
  18284. return "wss://localhost:" + std::to_string(port_) + "/ws-echo";
  18285. }
  18286. void ConnectWithClientCert(const std::string &client_cert_file,
  18287. const std::string &client_private_key_file,
  18288. const char *private_key_password) {
  18289. std::string cert_pem, key_pem;
  18290. read_file(client_cert_file, cert_pem);
  18291. read_file(client_private_key_file, key_pem);
  18292. ws::WebSocketClient::PemMemory pem = {cert_pem.c_str(), cert_pem.size(),
  18293. key_pem.c_str(), key_pem.size(),
  18294. private_key_password};
  18295. ws::WebSocketClient client(url(), pem);
  18296. ASSERT_TRUE(client.is_valid());
  18297. client.enable_server_certificate_verification(false);
  18298. ASSERT_TRUE(client.connect());
  18299. ASSERT_TRUE(client.send("hello"));
  18300. std::string msg;
  18301. EXPECT_EQ(ws::Text, client.read(msg));
  18302. EXPECT_EQ("hello", msg);
  18303. client.close();
  18304. }
  18305. std::unique_ptr<SSLServer> server_;
  18306. std::thread server_thread_;
  18307. int port_ = 0;
  18308. };
  18309. TEST_F(WebSocketSSLPemMemoryTest, ClientCertAccepted) {
  18310. ConnectWithClientCert(CLIENT_CERT_FILE, CLIENT_PRIVATE_KEY_FILE, nullptr);
  18311. }
  18312. // Control for the tests above: the fixture's server really does require a
  18313. // client certificate, so it is the PEM the constructor installed that decides
  18314. // the outcome.
  18315. TEST_F(WebSocketSSLPemMemoryTest, NoClientCertRejected) {
  18316. ws::WebSocketClient client(url());
  18317. ASSERT_TRUE(client.is_valid());
  18318. client.enable_server_certificate_verification(false);
  18319. EXPECT_FALSE(client.connect());
  18320. }
  18321. TEST_F(WebSocketSSLPemMemoryTest, EncryptedClientCertAccepted) {
  18322. ConnectWithClientCert(CLIENT_ENCRYPTED_CERT_FILE,
  18323. CLIENT_ENCRYPTED_PRIVATE_KEY_FILE,
  18324. CLIENT_ENCRYPTED_PRIVATE_KEY_PASS);
  18325. }
  18326. #endif
  18327. #if !defined(_WIN32)
  18328. TEST(SymlinkTest, SymlinkEscapeFromBaseDirectory) {
  18329. auto secret_dir = std::string("./symlink_test_secret");
  18330. auto served_dir = std::string("./symlink_test_served");
  18331. auto secret_file = secret_dir + "/secret.txt";
  18332. auto symlink_path = served_dir + "/escape";
  18333. // Setup: create directories and files
  18334. mkdir(secret_dir.c_str(), 0755);
  18335. mkdir(served_dir.c_str(), 0755);
  18336. {
  18337. std::ofstream ofs(secret_file);
  18338. ofs << "SECRET_DATA";
  18339. }
  18340. // Create symlink using absolute path so it resolves correctly
  18341. #ifdef PATH_MAX
  18342. char abs_secret[PATH_MAX];
  18343. ASSERT_NE(nullptr, realpath(secret_dir.c_str(), abs_secret));
  18344. #else
  18345. auto abs_secret = realpath(secret_dir.c_str(), nullptr);
  18346. auto abs_secret_guard = detail::scope_exit([&]() { std::free(abs_secret); });
  18347. ASSERT_NE(nullptr, abs_secret);
  18348. #endif
  18349. ASSERT_EQ(0, symlink(abs_secret, symlink_path.c_str()));
  18350. auto se = detail::scope_exit([&] {
  18351. unlink(symlink_path.c_str());
  18352. unlink(secret_file.c_str());
  18353. rmdir(served_dir.c_str());
  18354. rmdir(secret_dir.c_str());
  18355. });
  18356. Server svr;
  18357. svr.set_mount_point("/", served_dir);
  18358. auto listen_thread = std::thread([&svr]() { svr.listen("localhost", PORT); });
  18359. auto se2 = detail::scope_exit([&] {
  18360. svr.stop();
  18361. listen_thread.join();
  18362. });
  18363. svr.wait_until_ready();
  18364. Client cli("localhost", PORT);
  18365. // Symlink pointing outside base dir should be blocked
  18366. auto res = cli.Get("/escape/secret.txt");
  18367. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18368. EXPECT_EQ(StatusCode::Forbidden_403, res->status);
  18369. }
  18370. #endif
  18371. TEST(RequestSmugglingTest, UnconsumedGETBodyOnFileHandler) {
  18372. // A GET request with Content-Length to a static file handler must have its
  18373. // body drained before the keep-alive connection is reused. Otherwise the
  18374. // unread body bytes are interpreted as the next HTTP request.
  18375. //
  18376. // The body is sent AFTER receiving the first response (as in the original
  18377. // PoC) so that the stream_line_reader cannot buffer it together with the
  18378. // headers of the first request.
  18379. Server svr;
  18380. svr.set_mount_point("/", "./www");
  18381. std::atomic<int> smuggled_count(0);
  18382. svr.Get("/smuggled", [&](const Request &, Response &res) {
  18383. smuggled_count++;
  18384. res.set_content("oops", "text/plain");
  18385. });
  18386. auto port = svr.bind_to_any_port("localhost");
  18387. thread t = thread([&] { svr.listen_after_bind(); });
  18388. auto se = detail::scope_exit([&] {
  18389. svr.stop();
  18390. t.join();
  18391. });
  18392. svr.wait_until_ready();
  18393. auto error = Error::Success;
  18394. auto sock = detail::create_client_socket(
  18395. "localhost", "", port, AF_UNSPEC, false, false, nullptr,
  18396. /*connection_timeout_sec=*/2, 0,
  18397. /*read_timeout_sec=*/2, 0,
  18398. /*write_timeout_sec=*/2, 0, std::string(), error);
  18399. ASSERT_NE(INVALID_SOCKET, sock);
  18400. auto sock_se = detail::scope_exit([&] { detail::close_socket(sock); });
  18401. // The "smuggled" request will be sent as the body of the outer GET
  18402. std::string smuggled = "GET /smuggled HTTP/1.1\r\n"
  18403. "Host: localhost\r\n"
  18404. "Connection: close\r\n"
  18405. "\r\n";
  18406. // Step 1: Send only the outer request headers (no body yet)
  18407. std::string outer_headers = "GET /file HTTP/1.1\r\n"
  18408. "Host: localhost\r\n"
  18409. "Content-Length: " +
  18410. std::to_string(smuggled.size()) +
  18411. "\r\n"
  18412. "\r\n";
  18413. auto sent = send(sock, outer_headers.data(), outer_headers.size(), 0);
  18414. ASSERT_EQ(static_cast<ssize_t>(outer_headers.size()), sent);
  18415. // Step 2: Read the first response (server serves file without reading body)
  18416. std::string first_response;
  18417. char buf[4096];
  18418. for (;;) {
  18419. auto n = recv(sock, buf, sizeof(buf), 0);
  18420. if (n <= 0) break;
  18421. first_response.append(buf, static_cast<size_t>(n));
  18422. // Stop once we have a complete response (headers + body)
  18423. auto hdr_end = first_response.find("\r\n\r\n");
  18424. if (hdr_end != std::string::npos) {
  18425. // Check for Content-Length to know when the body is complete
  18426. auto cl_pos = first_response.find("Content-Length:");
  18427. if (cl_pos != std::string::npos) {
  18428. auto cl_val_start = cl_pos + 15; // length of "Content-Length:"
  18429. auto cl_val_end = first_response.find("\r\n", cl_val_start);
  18430. auto cl = std::stoul(
  18431. first_response.substr(cl_val_start, cl_val_end - cl_val_start));
  18432. if (first_response.size() >= hdr_end + 4 + cl) { break; }
  18433. } else {
  18434. break; // No Content-Length, assume headers-only response
  18435. }
  18436. }
  18437. }
  18438. ASSERT_TRUE(first_response.find("HTTP/1.1 200") != std::string::npos);
  18439. // Step 3: Now send the body, which looks like a new HTTP request.
  18440. // On a vulnerable server the keep-alive loop reads this as a second request.
  18441. sent = send(sock, smuggled.data(), smuggled.size(), 0);
  18442. ASSERT_EQ(static_cast<ssize_t>(smuggled.size()), sent);
  18443. // Step 4: Try to read a second response (should NOT exist after fix)
  18444. std::string second_response;
  18445. for (;;) {
  18446. auto n = recv(sock, buf, sizeof(buf), 0);
  18447. if (n <= 0) break;
  18448. second_response.append(buf, static_cast<size_t>(n));
  18449. }
  18450. // The smuggled request must NOT have been processed
  18451. EXPECT_EQ(0, smuggled_count.load());
  18452. }
  18453. TEST(RequestSmugglingTest, ContentLengthAndTransferEncodingRejected) {
  18454. // RFC 9112 §6.3: A request with both Content-Length and Transfer-Encoding
  18455. // must be rejected with 400 Bad Request.
  18456. Server svr;
  18457. svr.Post("/test", [&](const Request &, Response &res) {
  18458. res.set_content("ok", "text/plain");
  18459. });
  18460. thread t = thread([&] { svr.listen(HOST, PORT); });
  18461. auto se = detail::scope_exit([&] {
  18462. svr.stop();
  18463. t.join();
  18464. ASSERT_FALSE(svr.is_running());
  18465. });
  18466. svr.wait_until_ready();
  18467. // Exact "chunked"
  18468. {
  18469. auto req = "POST /test HTTP/1.1\r\n"
  18470. "Host: localhost\r\n"
  18471. "Content-Length: 5\r\n"
  18472. "Transfer-Encoding: chunked\r\n"
  18473. "Connection: close\r\n"
  18474. "\r\n"
  18475. "hello";
  18476. std::string response;
  18477. ASSERT_TRUE(send_request(1, req, &response));
  18478. EXPECT_EQ("HTTP/1.1 400 Bad Request",
  18479. response.substr(0, response.find("\r\n")));
  18480. }
  18481. // Multi-valued Transfer-Encoding (e.g., "gzip, chunked")
  18482. {
  18483. auto req = "POST /test HTTP/1.1\r\n"
  18484. "Host: localhost\r\n"
  18485. "Content-Length: 5\r\n"
  18486. "Transfer-Encoding: gzip, chunked\r\n"
  18487. "Connection: close\r\n"
  18488. "\r\n"
  18489. "hello";
  18490. std::string response;
  18491. ASSERT_TRUE(send_request(1, req, &response));
  18492. EXPECT_EQ("HTTP/1.1 400 Bad Request",
  18493. response.substr(0, response.find("\r\n")));
  18494. }
  18495. }
  18496. TEST(RequestSmugglingTest, NonFinalChunkedTransferEncodingRejected) {
  18497. Server svr;
  18498. svr.Post("/test", [&](const Request &, Response &res) {
  18499. res.set_content("ok", "text/plain");
  18500. });
  18501. thread t = thread([&] { svr.listen(HOST, PORT); });
  18502. auto se = detail::scope_exit([&] {
  18503. svr.stop();
  18504. t.join();
  18505. ASSERT_FALSE(svr.is_running());
  18506. });
  18507. svr.wait_until_ready();
  18508. // RFC 9112 6.3: when chunked is not the final transfer coding the body
  18509. // length cannot be determined, so the server must answer 400 and close
  18510. // rather than treat the request as bodyless and leave the body in the
  18511. // socket for the next request to pick up.
  18512. for (const auto &transfer_encoding : {"gzip", "chunked, gzip"}) {
  18513. auto req = std::string("POST /test HTTP/1.1\r\n") + "Host: localhost\r\n" +
  18514. "Transfer-Encoding: " + transfer_encoding + "\r\n" + "\r\n";
  18515. std::string response;
  18516. ASSERT_TRUE(send_request(1, req, &response));
  18517. EXPECT_EQ("HTTP/1.1 400 Bad Request",
  18518. response.substr(0, response.find("\r\n")))
  18519. << transfer_encoding;
  18520. }
  18521. // RFC 9110 5.3: the codings may also be split across several
  18522. // Transfer-Encoding lines, which combine in the order they were received.
  18523. // "chunked" followed by "gzip" therefore ends in gzip and must be rejected
  18524. // just like the single-line "chunked, gzip" above.
  18525. {
  18526. auto req = "POST /test HTTP/1.1\r\n"
  18527. "Host: localhost\r\n"
  18528. "Transfer-Encoding: chunked\r\n"
  18529. "Transfer-Encoding: gzip\r\n"
  18530. "\r\n"
  18531. "0\r\n\r\n";
  18532. std::string response;
  18533. ASSERT_TRUE(send_request(1, req, &response));
  18534. EXPECT_EQ("HTTP/1.1 400 Bad Request",
  18535. response.substr(0, response.find("\r\n")));
  18536. }
  18537. // A sequence ending in chunked stays valid.
  18538. auto req = "POST /test HTTP/1.1\r\n"
  18539. "Host: localhost\r\n"
  18540. "Transfer-Encoding: gzip, chunked\r\n"
  18541. "Connection: close\r\n"
  18542. "\r\n"
  18543. "0\r\n\r\n";
  18544. std::string response;
  18545. ASSERT_TRUE(send_request(1, req, &response));
  18546. EXPECT_EQ("HTTP/1.1 200 OK", response.substr(0, response.find("\r\n")));
  18547. // ...including when it is spread over several lines.
  18548. auto split_req = "POST /test HTTP/1.1\r\n"
  18549. "Host: localhost\r\n"
  18550. "Transfer-Encoding: gzip\r\n"
  18551. "Transfer-Encoding: chunked\r\n"
  18552. "Connection: close\r\n"
  18553. "\r\n"
  18554. "0\r\n\r\n";
  18555. std::string split_response;
  18556. ASSERT_TRUE(send_request(1, split_req, &split_response));
  18557. EXPECT_EQ("HTTP/1.1 200 OK",
  18558. split_response.substr(0, split_response.find("\r\n")));
  18559. }
  18560. // Regression for issue #2450: a DELETE without Content-Length on a
  18561. // keep-alive connection must not let the post-response drain consume the
  18562. // next request's bytes.
  18563. TEST(KeepAliveTest, DeleteWithoutContentLengthDoesNotEatNextRequest) {
  18564. Server svr;
  18565. std::atomic<int> delete_count(0);
  18566. svr.Delete("/items/:id", [&](const Request &, Response &res) {
  18567. delete_count++;
  18568. res.status = StatusCode::NoContent_204;
  18569. });
  18570. auto port = svr.bind_to_any_port(HOST);
  18571. thread t = thread([&] { svr.listen_after_bind(); });
  18572. auto se = detail::scope_exit([&] {
  18573. svr.stop();
  18574. t.join();
  18575. });
  18576. svr.wait_until_ready();
  18577. auto error = Error::Success;
  18578. auto sock = detail::create_client_socket(
  18579. HOST, "", port, AF_UNSPEC, false, false, nullptr,
  18580. /*connection_timeout_sec=*/2, 0,
  18581. /*read_timeout_sec=*/2, 0,
  18582. /*write_timeout_sec=*/2, 0, std::string(), error);
  18583. ASSERT_NE(INVALID_SOCKET, sock);
  18584. auto sock_se = detail::scope_exit([&] { detail::close_socket(sock); });
  18585. auto send_request_and_read_response = [&](const std::string &req,
  18586. std::string &out) -> bool {
  18587. auto sent = send(sock, req.data(), req.size(), 0);
  18588. if (sent != static_cast<ssize_t>(req.size())) { return false; }
  18589. char buf[4096];
  18590. for (;;) {
  18591. auto n = recv(sock, buf, sizeof(buf), 0);
  18592. if (n <= 0) { return !out.empty(); }
  18593. out.append(buf, static_cast<size_t>(n));
  18594. if (out.find("\r\n\r\n") != std::string::npos) { return true; }
  18595. }
  18596. };
  18597. std::string req1 = "DELETE /items/1 HTTP/1.1\r\n"
  18598. "Host: localhost\r\n"
  18599. "\r\n";
  18600. std::string resp1;
  18601. ASSERT_TRUE(send_request_and_read_response(req1, resp1));
  18602. EXPECT_NE(std::string::npos, resp1.find("HTTP/1.1 204"));
  18603. std::string req2 = "DELETE /items/2 HTTP/1.1\r\n"
  18604. "Host: localhost\r\n"
  18605. "Connection: close\r\n"
  18606. "\r\n";
  18607. std::string resp2;
  18608. ASSERT_TRUE(send_request_and_read_response(req2, resp2));
  18609. EXPECT_NE(std::string::npos, resp2.find("HTTP/1.1 204"));
  18610. EXPECT_EQ(2, delete_count.load());
  18611. }
  18612. TEST(KeepAliveTest, UnconsumedChunkedBodyIsNotDrainedWhenResponseCloses) {
  18613. Server svr;
  18614. svr.Post("/ingest", [&](const Request &, Response &res,
  18615. const ContentReader &content_reader) {
  18616. auto consumed = content_reader([](const char *, size_t) { return false; });
  18617. EXPECT_FALSE(consumed);
  18618. res.status = StatusCode::Conflict_409;
  18619. res.set_header("Connection", "close");
  18620. });
  18621. auto port = svr.bind_to_any_port(HOST);
  18622. thread t = thread([&] { svr.listen_after_bind(); });
  18623. auto se = detail::scope_exit([&] {
  18624. svr.stop();
  18625. t.join();
  18626. });
  18627. svr.wait_until_ready();
  18628. auto error = Error::Success;
  18629. auto sock = detail::create_client_socket(
  18630. HOST, "", port, AF_UNSPEC, false, false, nullptr,
  18631. /*connection_timeout_sec=*/2, 0,
  18632. /*read_timeout_sec=*/1, 0,
  18633. /*write_timeout_sec=*/2, 0, std::string(), error);
  18634. ASSERT_NE(INVALID_SOCKET, sock);
  18635. auto sock_se = detail::scope_exit([&] { detail::close_socket(sock); });
  18636. std::string request = "POST /ingest HTTP/1.1\r\n"
  18637. "Host: localhost\r\n"
  18638. "Transfer-Encoding: chunked\r\n"
  18639. "\r\n"
  18640. "4\r\n"
  18641. "data\r\n";
  18642. auto sent = send(sock, request.data(), request.size(), 0);
  18643. ASSERT_EQ(static_cast<ssize_t>(request.size()), sent);
  18644. std::string response;
  18645. ssize_t received = 0;
  18646. do {
  18647. char buf[4096];
  18648. received = recv(sock, buf, sizeof(buf), 0);
  18649. if (received > 0) { response.append(buf, static_cast<size_t>(received)); }
  18650. } while (received > 0);
  18651. EXPECT_NE(std::string::npos, response.find("HTTP/1.1 409 Conflict"));
  18652. EXPECT_NE(std::string::npos, response.find("Connection: close"));
  18653. EXPECT_EQ(0, received);
  18654. }
  18655. namespace no_proxy_test {
  18656. // Server bound to 127.0.0.1:<dynamic>, listen thread spawned by listen(),
  18657. // auto-stopped + joined on scope exit. Register handlers via svr() BEFORE
  18658. // calling listen().
  18659. class ScopedServer {
  18660. public:
  18661. ScopedServer() { port_ = svr_.bind_to_any_port("127.0.0.1"); }
  18662. ~ScopedServer() {
  18663. svr_.stop();
  18664. if (th_.joinable()) { th_.join(); }
  18665. }
  18666. Server &svr() { return svr_; }
  18667. int port() const { return port_; }
  18668. void listen() {
  18669. th_ = std::thread([this] { svr_.listen_after_bind(); });
  18670. svr_.wait_until_ready();
  18671. }
  18672. private:
  18673. Server svr_;
  18674. std::thread th_;
  18675. int port_ = 0;
  18676. };
  18677. class ProxyAndTargetServers {
  18678. public:
  18679. ProxyAndTargetServers() {
  18680. proxy_mock_.Get(".*", [this](const Request &req, Response &res) {
  18681. proxy_hits_++;
  18682. last_had_proxy_authz_ = req.has_header("Proxy-Authorization");
  18683. res.set_content("via-proxy", "text/plain");
  18684. });
  18685. target_.Get(".*", [this](const Request &req, Response &res) {
  18686. target_hits_++;
  18687. last_had_proxy_authz_ = req.has_header("Proxy-Authorization");
  18688. res.set_content("direct", "text/plain");
  18689. });
  18690. proxy_port_ = proxy_mock_.bind_to_any_port("127.0.0.1");
  18691. target_port_ = target_.bind_to_any_port("127.0.0.1");
  18692. proxy_thread_ = std::thread([this] { proxy_mock_.listen_after_bind(); });
  18693. target_thread_ = std::thread([this] { target_.listen_after_bind(); });
  18694. proxy_mock_.wait_until_ready();
  18695. target_.wait_until_ready();
  18696. }
  18697. ~ProxyAndTargetServers() {
  18698. proxy_mock_.stop();
  18699. target_.stop();
  18700. if (proxy_thread_.joinable()) { proxy_thread_.join(); }
  18701. if (target_thread_.joinable()) { target_thread_.join(); }
  18702. }
  18703. Server &proxy_mock() { return proxy_mock_; }
  18704. Server &target() { return target_; }
  18705. int proxy_port() const { return proxy_port_; }
  18706. int target_port() const { return target_port_; }
  18707. int proxy_hits() const { return proxy_hits_.load(); }
  18708. int target_hits() const { return target_hits_.load(); }
  18709. bool last_had_proxy_authz() const { return last_had_proxy_authz_.load(); }
  18710. void reset_counters() {
  18711. proxy_hits_ = 0;
  18712. target_hits_ = 0;
  18713. last_had_proxy_authz_ = false;
  18714. }
  18715. private:
  18716. Server proxy_mock_;
  18717. Server target_;
  18718. std::thread proxy_thread_;
  18719. std::thread target_thread_;
  18720. int proxy_port_ = 0;
  18721. int target_port_ = 0;
  18722. std::atomic<int> proxy_hits_{0};
  18723. std::atomic<int> target_hits_{0};
  18724. std::atomic<bool> last_had_proxy_authz_{false};
  18725. };
  18726. inline std::unique_ptr<Client> make_client(const std::string &host,
  18727. ProxyAndTargetServers &s) {
  18728. auto cli = detail::make_unique<Client>(host, s.target_port());
  18729. cli->set_hostname_addr_map({{host, "127.0.0.1"}});
  18730. cli->set_proxy("127.0.0.1", s.proxy_port());
  18731. return cli;
  18732. }
  18733. } // namespace no_proxy_test
  18734. using no_proxy_test::make_client;
  18735. using no_proxy_test::ProxyAndTargetServers;
  18736. TEST(NoProxyTest, ExactHostnameBypasses) {
  18737. ProxyAndTargetServers s;
  18738. auto cli = make_client("example.com", s);
  18739. cli->set_no_proxy({"example.com"});
  18740. auto res = cli->Get("/");
  18741. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18742. EXPECT_EQ(0, s.proxy_hits());
  18743. EXPECT_EQ(1, s.target_hits());
  18744. }
  18745. TEST(NoProxyTest, SubdomainBypasses) {
  18746. ProxyAndTargetServers s;
  18747. auto cli = make_client("foo.example.com", s);
  18748. cli->set_no_proxy({"example.com"});
  18749. auto res = cli->Get("/");
  18750. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18751. EXPECT_EQ(0, s.proxy_hits());
  18752. EXPECT_EQ(1, s.target_hits());
  18753. }
  18754. TEST(NoProxyTest, EvilExampleDoesNotMatchExample) {
  18755. // Regression guard: "evilexample.com" must not be considered a subdomain
  18756. // of "example.com". Without the dot-boundary rule, a naive endsWith
  18757. // check would let traffic bypass the proxy and leak credentials direct
  18758. // to the attacker host.
  18759. ProxyAndTargetServers s;
  18760. auto cli = make_client("evilexample.com", s);
  18761. cli->set_no_proxy({"example.com"});
  18762. auto res = cli->Get("/");
  18763. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18764. EXPECT_GE(s.proxy_hits(), 1);
  18765. EXPECT_EQ(0, s.target_hits());
  18766. }
  18767. TEST(NoProxyTest, ExampleDotEvilDoesNotMatchExample) {
  18768. ProxyAndTargetServers s;
  18769. auto cli = make_client("example.com.evil.com", s);
  18770. cli->set_no_proxy({"example.com"});
  18771. auto res = cli->Get("/");
  18772. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18773. EXPECT_GE(s.proxy_hits(), 1);
  18774. EXPECT_EQ(0, s.target_hits());
  18775. }
  18776. TEST(NoProxyTest, LeadingDotPatternMatchesBareDomain) {
  18777. ProxyAndTargetServers s;
  18778. auto cli = make_client("example.com", s);
  18779. cli->set_no_proxy({".example.com"});
  18780. auto res = cli->Get("/");
  18781. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18782. EXPECT_EQ(0, s.proxy_hits());
  18783. EXPECT_EQ(1, s.target_hits());
  18784. }
  18785. TEST(NoProxyTest, CaseInsensitiveHostname) {
  18786. ProxyAndTargetServers s;
  18787. auto cli = make_client("Example.COM", s);
  18788. cli->set_no_proxy({"EXAMPLE.com"});
  18789. auto res = cli->Get("/");
  18790. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18791. EXPECT_EQ(0, s.proxy_hits());
  18792. EXPECT_EQ(1, s.target_hits());
  18793. }
  18794. TEST(NoProxyTest, TrailingDotIsNormalized) {
  18795. ProxyAndTargetServers s;
  18796. auto cli = make_client("example.com.", s);
  18797. cli->set_no_proxy({"example.com"});
  18798. auto res = cli->Get("/");
  18799. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18800. EXPECT_EQ(0, s.proxy_hits());
  18801. EXPECT_EQ(1, s.target_hits());
  18802. }
  18803. TEST(NoProxyTest, TrailingDotOnEntryIsNormalized) {
  18804. // Trailing dots must be normalized on BOTH sides — host and entry.
  18805. // An implementation that only strips the host-side trailing dot would
  18806. // fail to match host "example.com" against entry "example.com." because
  18807. // a literal substring search would compare 11 chars against 12.
  18808. ProxyAndTargetServers s;
  18809. auto cli = make_client("example.com", s);
  18810. cli->set_no_proxy({"example.com."});
  18811. auto res = cli->Get("/");
  18812. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18813. EXPECT_EQ(0, s.proxy_hits());
  18814. EXPECT_EQ(1, s.target_hits());
  18815. }
  18816. TEST(NoProxyTest, WildcardBypassesEverything) {
  18817. ProxyAndTargetServers s;
  18818. auto cli = make_client("anything.invalid.test", s);
  18819. cli->set_no_proxy({"*"});
  18820. auto res = cli->Get("/");
  18821. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18822. EXPECT_EQ(0, s.proxy_hits());
  18823. EXPECT_EQ(1, s.target_hits());
  18824. }
  18825. TEST(NoProxyTest, IPv4LiteralExactMatch) {
  18826. ProxyAndTargetServers s;
  18827. Client cli("127.0.0.1", s.target_port());
  18828. cli.set_proxy("127.0.0.1", s.proxy_port());
  18829. cli.set_no_proxy({"127.0.0.1"});
  18830. auto res = cli.Get("/");
  18831. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18832. EXPECT_EQ(0, s.proxy_hits());
  18833. EXPECT_EQ(1, s.target_hits());
  18834. }
  18835. TEST(NoProxyTest, IPv6LiteralExactMatchAcrossEquivalentForms) {
  18836. ProxyAndTargetServers s;
  18837. Client cli("0:0:0:0:0:0:0:1", s.target_port());
  18838. cli.set_hostname_addr_map({{"0:0:0:0:0:0:0:1", "127.0.0.1"}});
  18839. cli.set_proxy("127.0.0.1", s.proxy_port());
  18840. cli.set_no_proxy({"::1"});
  18841. auto res = cli.Get("/");
  18842. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18843. EXPECT_EQ(0, s.proxy_hits());
  18844. EXPECT_EQ(1, s.target_hits());
  18845. }
  18846. TEST(NoProxyTest, BareIPv6LiteralMatchesIPv6Cidr) {
  18847. // Regression guard: a bare IPv6 host literal (no surrounding brackets)
  18848. // must still be recognized as IPv6 for CIDR matching. Implementations
  18849. // that detect IPv6 only when the host begins with '[' would parse the
  18850. // host as a hostname and miss the match.
  18851. ProxyAndTargetServers s;
  18852. Client cli("fe80::1", s.target_port());
  18853. cli.set_hostname_addr_map({{"fe80::1", "127.0.0.1"}});
  18854. cli.set_proxy("127.0.0.1", s.proxy_port());
  18855. cli.set_no_proxy({"fe80::/10"});
  18856. auto res = cli.Get("/");
  18857. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18858. EXPECT_EQ(0, s.proxy_hits());
  18859. EXPECT_EQ(1, s.target_hits());
  18860. }
  18861. TEST(NoProxyTest, BracketedIPv6EntryAccepted) {
  18862. ProxyAndTargetServers s;
  18863. Client cli("::1", s.target_port());
  18864. cli.set_hostname_addr_map({{"::1", "127.0.0.1"}});
  18865. cli.set_proxy("127.0.0.1", s.proxy_port());
  18866. cli.set_no_proxy({"[::1]"});
  18867. auto res = cli.Get("/");
  18868. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18869. EXPECT_EQ(0, s.proxy_hits());
  18870. EXPECT_EQ(1, s.target_hits());
  18871. }
  18872. TEST(NoProxyTest, BracketedIPv6CidrEntryAccepted) {
  18873. ProxyAndTargetServers s;
  18874. Client cli("fe80::1", s.target_port());
  18875. cli.set_hostname_addr_map({{"fe80::1", "127.0.0.1"}});
  18876. cli.set_proxy("127.0.0.1", s.proxy_port());
  18877. cli.set_no_proxy({"[fe80::]/10"});
  18878. auto res = cli.Get("/");
  18879. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18880. EXPECT_EQ(0, s.proxy_hits());
  18881. EXPECT_EQ(1, s.target_hits());
  18882. }
  18883. TEST(NoProxyTest, IPv4MappedIPv6IsNotCrossMatchedAgainstIPv4Entry) {
  18884. // Policy: keep address families separate. "::ffff:1.2.3.4" must NOT
  18885. // satisfy a NO_PROXY entry of "1.2.3.4". This avoids subtle bypass
  18886. // tricks via address-family conversion.
  18887. ProxyAndTargetServers s;
  18888. Client cli("::ffff:127.0.0.1", s.target_port());
  18889. cli.set_hostname_addr_map({{"::ffff:127.0.0.1", "127.0.0.1"}});
  18890. cli.set_proxy("127.0.0.1", s.proxy_port());
  18891. cli.set_no_proxy({"127.0.0.1"});
  18892. auto res = cli.Get("/");
  18893. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18894. EXPECT_GE(s.proxy_hits(), 1);
  18895. EXPECT_EQ(0, s.target_hits());
  18896. }
  18897. TEST(NoProxyTest, IPv4CidrMatch) {
  18898. ProxyAndTargetServers s;
  18899. Client cli("127.0.0.1", s.target_port());
  18900. cli.set_proxy("127.0.0.1", s.proxy_port());
  18901. cli.set_no_proxy({"127.0.0.0/8"});
  18902. auto res = cli.Get("/");
  18903. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18904. EXPECT_EQ(0, s.proxy_hits());
  18905. EXPECT_EQ(1, s.target_hits());
  18906. }
  18907. TEST(NoProxyTest, IPv4CidrNonMatch) {
  18908. ProxyAndTargetServers s;
  18909. Client cli("127.0.0.1", s.target_port());
  18910. cli.set_proxy("127.0.0.1", s.proxy_port());
  18911. cli.set_no_proxy({"10.0.0.0/8"});
  18912. auto res = cli.Get("/");
  18913. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18914. EXPECT_GE(s.proxy_hits(), 1);
  18915. EXPECT_EQ(0, s.target_hits());
  18916. }
  18917. TEST(NoProxyTest, IPv4CidrPrefixZeroMatchesAll) {
  18918. // Prefix 0 must not trigger the (1u << 32) shift UB. Result: every
  18919. // IPv4 target matches.
  18920. ProxyAndTargetServers s;
  18921. Client cli("127.0.0.1", s.target_port());
  18922. cli.set_proxy("127.0.0.1", s.proxy_port());
  18923. cli.set_no_proxy({"0.0.0.0/0"});
  18924. auto res = cli.Get("/");
  18925. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18926. EXPECT_EQ(0, s.proxy_hits());
  18927. EXPECT_EQ(1, s.target_hits());
  18928. }
  18929. TEST(NoProxyTest, IPv4CidrSingleHostNoSlash) {
  18930. ProxyAndTargetServers s;
  18931. Client cli("127.0.0.1", s.target_port());
  18932. cli.set_proxy("127.0.0.1", s.proxy_port());
  18933. cli.set_no_proxy({"127.0.0.1"});
  18934. auto res = cli.Get("/");
  18935. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18936. EXPECT_EQ(0, s.proxy_hits());
  18937. EXPECT_EQ(1, s.target_hits());
  18938. }
  18939. TEST(NoProxyTest, MalformedCidrPrefixIsDropped) {
  18940. ProxyAndTargetServers s;
  18941. Client cli("127.0.0.1", s.target_port());
  18942. cli.set_proxy("127.0.0.1", s.proxy_port());
  18943. cli.set_no_proxy({"127.0.0.0/33"});
  18944. auto res = cli.Get("/");
  18945. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18946. EXPECT_GE(s.proxy_hits(), 1);
  18947. EXPECT_EQ(0, s.target_hits());
  18948. }
  18949. TEST(NoProxyTest, TrailingSlashCidrIsRejected) {
  18950. // Empty prefix after the slash must be rejected, not silently treated as /32.
  18951. ProxyAndTargetServers s;
  18952. Client cli("127.0.0.1", s.target_port());
  18953. cli.set_proxy("127.0.0.1", s.proxy_port());
  18954. cli.set_no_proxy({"127.0.0.1/"});
  18955. auto res = cli.Get("/");
  18956. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18957. EXPECT_GE(s.proxy_hits(), 1);
  18958. EXPECT_EQ(0, s.target_hits());
  18959. }
  18960. TEST(NoProxyTest, ProxyAuthorizationSuppressedWhenBypassed) {
  18961. ProxyAndTargetServers s;
  18962. auto cli = make_client("internal.corp", s);
  18963. cli->set_proxy_basic_auth("u", "p");
  18964. cli->set_no_proxy({"internal.corp"});
  18965. auto res = cli->Get("/");
  18966. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18967. EXPECT_EQ(1, s.target_hits());
  18968. EXPECT_EQ(0, s.proxy_hits());
  18969. EXPECT_FALSE(s.last_had_proxy_authz())
  18970. << "Proxy-Authorization must not be sent direct to the target";
  18971. }
  18972. TEST(NoProxyTest, ProxyAuthorizationSentWhenNotBypassed) {
  18973. ProxyAndTargetServers s;
  18974. auto cli = make_client("public.example", s);
  18975. cli->set_proxy_basic_auth("u", "p");
  18976. cli->set_no_proxy({"internal.corp"}); // does not match
  18977. auto res = cli->Get("/");
  18978. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18979. EXPECT_GE(s.proxy_hits(), 1);
  18980. EXPECT_TRUE(s.last_had_proxy_authz());
  18981. }
  18982. TEST(NoProxyTest, EmptyNoProxyKeepsProxyOn) {
  18983. ProxyAndTargetServers s;
  18984. auto cli = make_client("anything.test", s);
  18985. auto res = cli->Get("/");
  18986. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18987. EXPECT_GE(s.proxy_hits(), 1);
  18988. EXPECT_EQ(0, s.target_hits());
  18989. }
  18990. TEST(NoProxyTest, PortSpecificEntryRejected) {
  18991. ProxyAndTargetServers s;
  18992. auto cli = make_client("example.com", s);
  18993. cli->set_no_proxy({"example.com:8080"});
  18994. auto res = cli->Get("/");
  18995. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  18996. EXPECT_GE(s.proxy_hits(), 1);
  18997. EXPECT_EQ(0, s.target_hits());
  18998. }
  18999. TEST(NoProxyTest, EmptyAndWhitespaceEntriesDropped) {
  19000. ProxyAndTargetServers s;
  19001. auto cli = make_client("anything.test", s);
  19002. cli->set_no_proxy({"", " ", "\t"});
  19003. auto res = cli->Get("/");
  19004. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  19005. EXPECT_GE(s.proxy_hits(), 1);
  19006. EXPECT_EQ(0, s.target_hits());
  19007. }
  19008. TEST(NoProxyTest, ValidEntryWithSurroundingWhitespaceStillMatches) {
  19009. // An entry with leading/trailing whitespace must still match — env-style
  19010. // values are commonly pasted with stray spaces and an implementation
  19011. // that feeds the raw token directly to inet_pton would fail to match
  19012. // valid CIDRs because of the spaces.
  19013. ProxyAndTargetServers s;
  19014. Client cli("127.0.0.1", s.target_port());
  19015. cli.set_proxy("127.0.0.1", s.proxy_port());
  19016. cli.set_no_proxy({" 127.0.0.0/8 "});
  19017. auto res = cli.Get("/");
  19018. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  19019. EXPECT_EQ(0, s.proxy_hits());
  19020. EXPECT_EQ(1, s.target_hits());
  19021. }
  19022. TEST(NoProxyTest, RedirectToBypassedHostStripsProxyAndProxyAuth) {
  19023. // Analog of GHSA-6hrp-7fq9-3qv2: redirect to a NO_PROXY-matched host must
  19024. // go direct and must NOT carry Proxy-Authorization.
  19025. std::atomic<int> proxy_hits{0};
  19026. std::atomic<int> target_hits{0};
  19027. std::atomic<bool> target_saw_authz{false};
  19028. no_proxy_test::ScopedServer proxy_mock, target;
  19029. proxy_mock.svr().Get(".*", [&](const Request &, Response &res) {
  19030. proxy_hits++;
  19031. res.status = 302;
  19032. res.set_header("Location", "http://127.0.0.1:" +
  19033. std::to_string(target.port()) + "/landed");
  19034. });
  19035. target.svr().Get(".*", [&](const Request &req, Response &res) {
  19036. target_hits++;
  19037. if (req.has_header("Proxy-Authorization")) { target_saw_authz = true; }
  19038. res.set_content("direct", "text/plain");
  19039. });
  19040. proxy_mock.listen();
  19041. target.listen();
  19042. Client cli("public.example", target.port());
  19043. cli.set_hostname_addr_map({{"public.example", "127.0.0.1"}});
  19044. cli.set_proxy("127.0.0.1", proxy_mock.port());
  19045. cli.set_proxy_basic_auth("u", "p");
  19046. cli.set_no_proxy({"127.0.0.1"});
  19047. cli.set_follow_location(true);
  19048. auto res = cli.Get("/redir");
  19049. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  19050. EXPECT_GE(proxy_hits.load(), 1);
  19051. EXPECT_GE(target_hits.load(), 1);
  19052. EXPECT_FALSE(target_saw_authz.load());
  19053. }
  19054. #ifdef CPPHTTPLIB_SSL_ENABLED
  19055. TEST(NoProxyTest, BypassedTargetReturning407DoesNotLeakProxyDigestCredentials) {
  19056. // Direct origin replying 407 must not trigger the digest retry; otherwise
  19057. // proxy creds would be sent to the (possibly hostile) origin.
  19058. std::atomic<int> target_hits{0};
  19059. std::atomic<bool> target_saw_proxy_authz{false};
  19060. no_proxy_test::ScopedServer target;
  19061. target.svr().Get(".*", [&](const Request &req, Response &res) {
  19062. target_hits++;
  19063. if (req.has_header("Proxy-Authorization")) {
  19064. target_saw_proxy_authz = true;
  19065. }
  19066. res.status = StatusCode::ProxyAuthenticationRequired_407;
  19067. res.set_header("Proxy-Authenticate", "Digest realm=\"evil\", qop=\"auth\", "
  19068. "nonce=\"abc\", algorithm=MD5");
  19069. });
  19070. target.listen();
  19071. // The proxy address is set to the target's port: the bypass MUST kick in;
  19072. // if it doesn't, the test still routes "via proxy" to the same server and
  19073. // the Proxy-Authorization assertion below catches the leak.
  19074. Client cli("evil.example", target.port());
  19075. cli.set_hostname_addr_map({{"evil.example", "127.0.0.1"}});
  19076. cli.set_proxy("127.0.0.1", target.port());
  19077. cli.set_proxy_digest_auth("proxy-user", "proxy-pass");
  19078. cli.set_no_proxy({"evil.example"});
  19079. auto res = cli.Get("/x");
  19080. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  19081. EXPECT_EQ(StatusCode::ProxyAuthenticationRequired_407, res->status);
  19082. EXPECT_EQ(1, target_hits.load());
  19083. EXPECT_FALSE(target_saw_proxy_authz.load());
  19084. }
  19085. #endif
  19086. TEST(NoProxyTest, MultiHopRedirectThroughBypassedHostKeepsProxy) {
  19087. // A (via proxy) → B (NO_PROXY-matched, direct) → C must re-engage the proxy.
  19088. std::atomic<int> proxy_hits{0};
  19089. std::atomic<int> bypass_hits{0};
  19090. std::atomic<bool> proxy_saw_c_url{false};
  19091. no_proxy_test::ScopedServer proxy_mock, bypass_server;
  19092. proxy_mock.svr().Get(".*", [&](const Request &req, Response &res) {
  19093. proxy_hits++;
  19094. if (req.path.find("/start") != std::string::npos) {
  19095. res.status = 302;
  19096. res.set_header("Location", "http://127.0.0.1:" +
  19097. std::to_string(bypass_server.port()) +
  19098. "/middle");
  19099. return;
  19100. }
  19101. if (req.path.find("/end") != std::string::npos) {
  19102. proxy_saw_c_url = true;
  19103. res.set_content("c-via-proxy", "text/plain");
  19104. return;
  19105. }
  19106. res.set_content("unexpected", "text/plain");
  19107. });
  19108. // public.example's "advertised" port is arbitrary (the request never lands
  19109. // there — it goes through the proxy), but use a dynamic value to stay
  19110. // friendly with sharded parallel runs.
  19111. int public_port = bypass_server.port();
  19112. bypass_server.svr().Get(".*", [&](const Request &, Response &res) {
  19113. bypass_hits++;
  19114. res.status = 302;
  19115. res.set_header("Location", "http://public.example:" +
  19116. std::to_string(public_port) + "/end");
  19117. });
  19118. proxy_mock.listen();
  19119. bypass_server.listen();
  19120. Client cli("public.example", public_port);
  19121. cli.set_hostname_addr_map({{"public.example", "127.0.0.1"}});
  19122. cli.set_proxy("127.0.0.1", proxy_mock.port());
  19123. cli.set_no_proxy({"127.0.0.1"});
  19124. cli.set_follow_location(true);
  19125. auto res = cli.Get("/start");
  19126. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  19127. EXPECT_EQ(StatusCode::OK_200, res->status);
  19128. EXPECT_EQ("c-via-proxy", res->body);
  19129. EXPECT_GE(proxy_hits.load(), 2);
  19130. EXPECT_GE(bypass_hits.load(), 1);
  19131. EXPECT_TRUE(proxy_saw_c_url.load());
  19132. }
  19133. TEST(NoProxyTest, KeepAliveSocketInvalidatedOnSetNoProxy) {
  19134. // Mid-session set_no_proxy must drop any keep-alive socket so the next
  19135. // request reconnects to the correct endpoint.
  19136. std::atomic<int> proxy_hits{0};
  19137. std::atomic<int> target_hits{0};
  19138. no_proxy_test::ScopedServer proxy_mock, target;
  19139. proxy_mock.svr().Get(".*", [&](const Request &, Response &res) {
  19140. proxy_hits++;
  19141. res.set_content("via-proxy", "text/plain");
  19142. });
  19143. target.svr().Get(".*", [&](const Request &, Response &res) {
  19144. target_hits++;
  19145. res.set_content("direct", "text/plain");
  19146. });
  19147. proxy_mock.listen();
  19148. target.listen();
  19149. Client cli("public.example", target.port());
  19150. cli.set_hostname_addr_map({{"public.example", "127.0.0.1"}});
  19151. cli.set_proxy("127.0.0.1", proxy_mock.port());
  19152. cli.set_keep_alive(true);
  19153. auto res1 = cli.Get("/a");
  19154. ASSERT_TRUE(res1);
  19155. EXPECT_EQ("via-proxy", res1->body);
  19156. EXPECT_EQ(1, proxy_hits.load());
  19157. EXPECT_EQ(0, target_hits.load());
  19158. cli.set_no_proxy({"public.example"});
  19159. auto res2 = cli.Get("/b");
  19160. ASSERT_TRUE(res2);
  19161. EXPECT_EQ("direct", res2->body);
  19162. EXPECT_EQ(1, proxy_hits.load());
  19163. EXPECT_EQ(1, target_hits.load());
  19164. }
  19165. #if defined(CPPHTTPLIB_SSL_ENABLED) && !defined(_WIN32)
  19166. namespace proxy_tunnel_test {
  19167. // SSLServer counterpart to no_proxy_test::ScopedServer.
  19168. class ScopedSSLServer {
  19169. public:
  19170. ScopedSSLServer() : svr_(SERVER_CERT_FILE, SERVER_PRIVATE_KEY_FILE) {
  19171. port_ = svr_.bind_to_any_port("127.0.0.1");
  19172. }
  19173. ~ScopedSSLServer() {
  19174. svr_.stop();
  19175. if (th_.joinable()) { th_.join(); }
  19176. }
  19177. SSLServer &svr() { return svr_; }
  19178. int port() const { return port_; }
  19179. void listen() {
  19180. th_ = std::thread([this] { svr_.listen_after_bind(); });
  19181. svr_.wait_until_ready();
  19182. }
  19183. private:
  19184. SSLServer svr_;
  19185. std::thread th_;
  19186. int port_ = 0;
  19187. };
  19188. // Accepts CONNECT, replies 200, byte-forwards to forward_port.
  19189. class ScopedConnectProxy {
  19190. public:
  19191. explicit ScopedConnectProxy(int forward_port) : forward_port_(forward_port) {
  19192. listen_fd_ = ::socket(AF_INET, SOCK_STREAM, 0);
  19193. if (listen_fd_ < 0) { return; }
  19194. int yes = 1;
  19195. ::setsockopt(listen_fd_, SOL_SOCKET, SO_REUSEADDR, &yes, sizeof(yes));
  19196. sockaddr_in a{};
  19197. a.sin_family = AF_INET;
  19198. a.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
  19199. a.sin_port = 0;
  19200. if (::bind(listen_fd_, reinterpret_cast<sockaddr *>(&a), sizeof(a)) != 0) {
  19201. return;
  19202. }
  19203. socklen_t alen = sizeof(a);
  19204. if (::getsockname(listen_fd_, reinterpret_cast<sockaddr *>(&a), &alen) !=
  19205. 0) {
  19206. return;
  19207. }
  19208. port_ = ntohs(a.sin_port);
  19209. if (::listen(listen_fd_, 1) != 0) { return; }
  19210. th_ = std::thread([this] { run(); });
  19211. }
  19212. ~ScopedConnectProxy() {
  19213. stop_ = true;
  19214. if (listen_fd_ >= 0) {
  19215. ::shutdown(listen_fd_, SHUT_RDWR);
  19216. ::close(listen_fd_);
  19217. }
  19218. if (th_.joinable()) { th_.join(); }
  19219. }
  19220. int port() const { return port_; }
  19221. int connect_hits() const { return connect_hits_.load(); }
  19222. private:
  19223. void run() {
  19224. while (!stop_.load()) {
  19225. fd_set rfds;
  19226. FD_ZERO(&rfds);
  19227. FD_SET(listen_fd_, &rfds);
  19228. timeval tv{0, 100 * 1000};
  19229. int sel = ::select(listen_fd_ + 1, &rfds, nullptr, nullptr, &tv);
  19230. if (sel <= 0) { continue; }
  19231. int client_fd = ::accept(listen_fd_, nullptr, nullptr);
  19232. if (client_fd < 0) { continue; }
  19233. std::string req;
  19234. char buf[2048];
  19235. while (req.find("\r\n\r\n") == std::string::npos) {
  19236. ssize_t n = ::recv(client_fd, buf, sizeof(buf), 0);
  19237. if (n <= 0) { break; }
  19238. req.append(buf, static_cast<size_t>(n));
  19239. }
  19240. if (req.compare(0, 7, "CONNECT") != 0) {
  19241. ::close(client_fd);
  19242. continue;
  19243. }
  19244. connect_hits_++;
  19245. const char *ok = "HTTP/1.1 200 Connection established\r\n\r\n";
  19246. ::send(client_fd, ok, std::strlen(ok), 0);
  19247. int origin_fd = ::socket(AF_INET, SOCK_STREAM, 0);
  19248. sockaddr_in o{};
  19249. o.sin_family = AF_INET;
  19250. o.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
  19251. o.sin_port = htons(static_cast<unsigned short>(forward_port_));
  19252. if (::connect(origin_fd, reinterpret_cast<sockaddr *>(&o), sizeof(o)) !=
  19253. 0) {
  19254. ::close(client_fd);
  19255. ::close(origin_fd);
  19256. continue;
  19257. }
  19258. auto forward = [](int from, int to) {
  19259. char b[8192];
  19260. for (;;) {
  19261. ssize_t n = ::recv(from, b, sizeof(b), 0);
  19262. if (n <= 0) { break; }
  19263. ssize_t off = 0;
  19264. while (off < n) {
  19265. ssize_t s = ::send(to, b + off, static_cast<size_t>(n - off), 0);
  19266. if (s <= 0) {
  19267. off = n;
  19268. break;
  19269. }
  19270. off += s;
  19271. }
  19272. }
  19273. ::shutdown(to, SHUT_WR);
  19274. };
  19275. std::thread t1([&] { forward(client_fd, origin_fd); });
  19276. std::thread t2([&] { forward(origin_fd, client_fd); });
  19277. t1.join();
  19278. t2.join();
  19279. ::close(client_fd);
  19280. ::close(origin_fd);
  19281. }
  19282. }
  19283. int forward_port_ = -1;
  19284. int listen_fd_ = -1;
  19285. int port_ = 0;
  19286. std::thread th_;
  19287. std::atomic<bool> stop_{false};
  19288. std::atomic<int> connect_hits_{0};
  19289. };
  19290. } // namespace proxy_tunnel_test
  19291. TEST(ProxyTunnelTest, OriginReturning407InsideTunnelDoesNotLeakProxyDigest) {
  19292. // Origin inside a CONNECT tunnel replying 407 must not trigger the digest
  19293. // retry; otherwise proxy creds would be sent to the origin.
  19294. std::atomic<int> origin_hits{0};
  19295. std::atomic<bool> origin_saw_proxy_authz{false};
  19296. proxy_tunnel_test::ScopedSSLServer origin;
  19297. origin.svr().Get(".*", [&](const Request &req, Response &res) {
  19298. origin_hits++;
  19299. if (req.has_header("Proxy-Authorization")) {
  19300. origin_saw_proxy_authz = true;
  19301. }
  19302. res.status = StatusCode::ProxyAuthenticationRequired_407;
  19303. res.set_header("Proxy-Authenticate",
  19304. "Digest realm=\"evil\", qop=\"auth\", nonce=\"abc\", "
  19305. "algorithm=MD5");
  19306. });
  19307. origin.listen();
  19308. proxy_tunnel_test::ScopedConnectProxy proxy(origin.port());
  19309. ASSERT_NE(0, proxy.port());
  19310. // Pin to 127.0.0.1: the proxy listens on 127.0.0.1 only, while "localhost"
  19311. // may resolve to ::1 first. A concurrent test (e.g. another gtest shard)
  19312. // holding ::1 with the same ephemeral port number would hijack the CONNECT
  19313. // and answer with its own status, making this test flaky.
  19314. SSLClient cli("127.0.0.1", origin.port());
  19315. cli.enable_server_certificate_verification(false);
  19316. cli.set_proxy("127.0.0.1", proxy.port());
  19317. cli.set_proxy_digest_auth("proxy-user", "proxy-pass");
  19318. auto res = cli.Get("/x");
  19319. ASSERT_TRUE(res) << "Error: " << to_string(res.error());
  19320. EXPECT_EQ(StatusCode::ProxyAuthenticationRequired_407, res->status);
  19321. EXPECT_EQ(1, origin_hits.load());
  19322. EXPECT_FALSE(origin_saw_proxy_authz.load());
  19323. EXPECT_EQ(1, proxy.connect_hits());
  19324. }
  19325. #endif