mongoose.c 173 KB

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  1. // Copyright (c) 2004-2013 Sergey Lyubka
  2. //
  3. // Permission is hereby granted, free of charge, to any person obtaining a copy
  4. // of this software and associated documentation files (the "Software"), to deal
  5. // in the Software without restriction, including without limitation the rights
  6. // to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  7. // copies of the Software, and to permit persons to whom the Software is
  8. // furnished to do so, subject to the following conditions:
  9. //
  10. // The above copyright notice and this permission notice shall be included in
  11. // all copies or substantial portions of the Software.
  12. //
  13. // THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  14. // IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  15. // FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  16. // AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  17. // LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  18. // OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  19. // THE SOFTWARE.
  20. #if defined(_WIN32)
  21. #if !defined(_CRT_SECURE_NO_WARNINGS)
  22. #define _CRT_SECURE_NO_WARNINGS // Disable deprecation warning in VS2005
  23. #endif
  24. #else
  25. #ifdef __linux__
  26. #define _XOPEN_SOURCE 600 // For flockfile() on Linux
  27. #endif
  28. #define _LARGEFILE_SOURCE // Enable 64-bit file offsets
  29. #define __STDC_FORMAT_MACROS // <inttypes.h> wants this for C++
  30. #define __STDC_LIMIT_MACROS // C++ wants that for INT64_MAX
  31. #endif
  32. #if defined (_MSC_VER)
  33. // conditional expression is constant: introduced by FD_SET(..)
  34. #pragma warning (disable : 4127)
  35. // non-constant aggregate initializer: issued due to missing C99 support
  36. #pragma warning (disable : 4204)
  37. #endif
  38. // Disable WIN32_LEAN_AND_MEAN.
  39. // This makes windows.h always include winsock2.h
  40. #ifdef WIN32_LEAN_AND_MEAN
  41. #undef WIN32_LEAN_AND_MEAN
  42. #endif
  43. #if defined(__SYMBIAN32__)
  44. #define NO_SSL // SSL is not supported
  45. #define NO_CGI // CGI is not supported
  46. #define PATH_MAX FILENAME_MAX
  47. #endif // __SYMBIAN32__
  48. #ifndef _WIN32_WCE // Some ANSI #includes are not available on Windows CE
  49. #include <sys/types.h>
  50. #include <sys/stat.h>
  51. #include <errno.h>
  52. #include <signal.h>
  53. #include <fcntl.h>
  54. #endif // !_WIN32_WCE
  55. #include <time.h>
  56. #include <stdlib.h>
  57. #include <stdarg.h>
  58. #include <assert.h>
  59. #include <string.h>
  60. #include <ctype.h>
  61. #include <limits.h>
  62. #include <stddef.h>
  63. #include <stdio.h>
  64. #if defined(_WIN32) && !defined(__SYMBIAN32__) // Windows specific
  65. #undef _WIN32_WINNT
  66. #define _WIN32_WINNT 0x0400 // To make it link in VS2005
  67. #include <windows.h>
  68. #ifndef PATH_MAX
  69. #define PATH_MAX MAX_PATH
  70. #endif
  71. #ifndef _WIN32_WCE
  72. #include <process.h>
  73. #include <direct.h>
  74. #include <io.h>
  75. #else // _WIN32_WCE
  76. #define NO_CGI // WinCE has no pipes
  77. typedef long off_t;
  78. #define errno GetLastError()
  79. #define strerror(x) _ultoa(x, (char *) _alloca(sizeof(x) *3 ), 10)
  80. #endif // _WIN32_WCE
  81. #define MAKEUQUAD(lo, hi) ((uint64_t)(((uint32_t)(lo)) | \
  82. ((uint64_t)((uint32_t)(hi))) << 32))
  83. #define RATE_DIFF 10000000 // 100 nsecs
  84. #define EPOCH_DIFF MAKEUQUAD(0xd53e8000, 0x019db1de)
  85. #define SYS2UNIX_TIME(lo, hi) \
  86. (time_t) ((MAKEUQUAD((lo), (hi)) - EPOCH_DIFF) / RATE_DIFF)
  87. // Visual Studio 6 does not know __func__ or __FUNCTION__
  88. // The rest of MS compilers use __FUNCTION__, not C99 __func__
  89. // Also use _strtoui64 on modern M$ compilers
  90. #if defined(_MSC_VER) && _MSC_VER < 1300
  91. #define STRX(x) #x
  92. #define STR(x) STRX(x)
  93. #define __func__ __FILE__ ":" STR(__LINE__)
  94. #define strtoull(x, y, z) (unsigned __int64) _atoi64(x)
  95. #define strtoll(x, y, z) _atoi64(x)
  96. #else
  97. #define __func__ __FUNCTION__
  98. #define strtoull(x, y, z) _strtoui64(x, y, z)
  99. #define strtoll(x, y, z) _strtoi64(x, y, z)
  100. #endif // _MSC_VER
  101. #define ERRNO GetLastError()
  102. #define NO_SOCKLEN_T
  103. #define SSL_LIB "ssleay32.dll"
  104. #define CRYPTO_LIB "libeay32.dll"
  105. #define O_NONBLOCK 0
  106. #if !defined(EWOULDBLOCK)
  107. #define EWOULDBLOCK WSAEWOULDBLOCK
  108. #endif // !EWOULDBLOCK
  109. #define _POSIX_
  110. #define INT64_FMT "I64d"
  111. #define WINCDECL __cdecl
  112. #define SHUT_WR 1
  113. #define snprintf _snprintf
  114. #define vsnprintf _vsnprintf
  115. #define mg_sleep(x) Sleep(x)
  116. #define pipe(x) _pipe(x, MG_BUF_LEN, _O_BINARY)
  117. #ifndef popen
  118. #define popen(x, y) _popen(x, y)
  119. #endif
  120. #ifndef pclose
  121. #define pclose(x) _pclose(x)
  122. #endif
  123. #define close(x) _close(x)
  124. #define dlsym(x,y) GetProcAddress((HINSTANCE) (x), (y))
  125. #define RTLD_LAZY 0
  126. #define fseeko(x, y, z) _lseeki64(_fileno(x), (y), (z))
  127. #define fdopen(x, y) _fdopen((x), (y))
  128. #define write(x, y, z) _write((x), (y), (unsigned) z)
  129. #define read(x, y, z) _read((x), (y), (unsigned) z)
  130. #define flockfile(x) EnterCriticalSection(&global_log_file_lock)
  131. #define funlockfile(x) LeaveCriticalSection(&global_log_file_lock)
  132. #define sleep(x) Sleep((x) * 1000)
  133. #define rmdir(x) _rmdir(x)
  134. #if !defined(va_copy)
  135. #define va_copy(x, y) x = y
  136. #endif // !va_copy MINGW #defines va_copy
  137. #if !defined(fileno)
  138. #define fileno(x) _fileno(x)
  139. #endif // !fileno MINGW #defines fileno
  140. typedef HANDLE pthread_mutex_t;
  141. typedef struct {HANDLE signal, broadcast;} pthread_cond_t;
  142. typedef DWORD pthread_t;
  143. #define pid_t HANDLE // MINGW typedefs pid_t to int. Using #define here.
  144. static int pthread_mutex_lock(pthread_mutex_t *);
  145. static int pthread_mutex_unlock(pthread_mutex_t *);
  146. static void to_unicode(const char *path, wchar_t *wbuf, size_t wbuf_len);
  147. struct file;
  148. static char *mg_fgets(char *buf, size_t size, struct file *filep, char **p);
  149. #if defined(HAVE_STDINT)
  150. #include <stdint.h>
  151. #else
  152. typedef unsigned int uint32_t;
  153. typedef unsigned short uint16_t;
  154. typedef unsigned __int64 uint64_t;
  155. typedef __int64 int64_t;
  156. #define INT64_MAX 9223372036854775807
  157. #endif // HAVE_STDINT
  158. // POSIX dirent interface
  159. struct dirent {
  160. char d_name[PATH_MAX];
  161. };
  162. typedef struct DIR {
  163. HANDLE handle;
  164. WIN32_FIND_DATAW info;
  165. struct dirent result;
  166. } DIR;
  167. #ifndef HAVE_POLL
  168. struct pollfd {
  169. SOCKET fd;
  170. short events;
  171. short revents;
  172. };
  173. #define POLLIN 1
  174. #endif
  175. // Mark required libraries
  176. #ifdef _MSC_VER
  177. #pragma comment(lib, "Ws2_32.lib")
  178. #endif
  179. #else // UNIX specific
  180. #include <sys/wait.h>
  181. #include <sys/socket.h>
  182. #include <sys/poll.h>
  183. #include <netinet/in.h>
  184. #include <arpa/inet.h>
  185. #include <sys/time.h>
  186. #include <stdint.h>
  187. #include <inttypes.h>
  188. #include <netdb.h>
  189. #include <pwd.h>
  190. #include <unistd.h>
  191. #include <dirent.h>
  192. #if !defined(NO_SSL_DL) && !defined(NO_SSL)
  193. #include <dlfcn.h>
  194. #endif
  195. #include <pthread.h>
  196. #if defined(__MACH__)
  197. #define SSL_LIB "libssl.dylib"
  198. #define CRYPTO_LIB "libcrypto.dylib"
  199. #else
  200. #if !defined(SSL_LIB)
  201. #define SSL_LIB "libssl.so"
  202. #endif
  203. #if !defined(CRYPTO_LIB)
  204. #define CRYPTO_LIB "libcrypto.so"
  205. #endif
  206. #endif
  207. #ifndef O_BINARY
  208. #define O_BINARY 0
  209. #endif // O_BINARY
  210. #define closesocket(a) close(a)
  211. #define mg_mkdir(x, y) mkdir(x, y)
  212. #define mg_remove(x) remove(x)
  213. #define mg_sleep(x) usleep((x) * 1000)
  214. #define ERRNO errno
  215. #define INVALID_SOCKET (-1)
  216. #define INT64_FMT PRId64
  217. typedef int SOCKET;
  218. #define WINCDECL
  219. #endif // End of Windows and UNIX specific includes
  220. #include "mongoose.h"
  221. #define MONGOOSE_VERSION "3.9"
  222. #define PASSWORDS_FILE_NAME ".htpasswd"
  223. #define CGI_ENVIRONMENT_SIZE 4096
  224. #define MAX_CGI_ENVIR_VARS 64
  225. #define MG_BUF_LEN 8192
  226. #define MAX_REQUEST_SIZE 16384
  227. #define ARRAY_SIZE(array) (sizeof(array) / sizeof(array[0]))
  228. #ifdef _WIN32
  229. static CRITICAL_SECTION global_log_file_lock;
  230. static pthread_t pthread_self(void) {
  231. return GetCurrentThreadId();
  232. }
  233. #endif // _WIN32
  234. #ifdef DEBUG_TRACE
  235. #undef DEBUG_TRACE
  236. #define DEBUG_TRACE(x)
  237. #else
  238. #if defined(DEBUG)
  239. #define DEBUG_TRACE(x) do { \
  240. flockfile(stdout); \
  241. printf("*** %lu.%p.%s.%d: ", \
  242. (unsigned long) time(NULL), (void *) pthread_self(), \
  243. __func__, __LINE__); \
  244. printf x; \
  245. putchar('\n'); \
  246. fflush(stdout); \
  247. funlockfile(stdout); \
  248. } while (0)
  249. #else
  250. #define DEBUG_TRACE(x)
  251. #endif // DEBUG
  252. #endif // DEBUG_TRACE
  253. // Darwin prior to 7.0 and Win32 do not have socklen_t
  254. #ifdef NO_SOCKLEN_T
  255. typedef int socklen_t;
  256. #endif // NO_SOCKLEN_T
  257. #define _DARWIN_UNLIMITED_SELECT
  258. #define IP_ADDR_STR_LEN 50 // IPv6 hex string is 46 chars
  259. #if !defined(MSG_NOSIGNAL)
  260. #define MSG_NOSIGNAL 0
  261. #endif
  262. #if !defined(SOMAXCONN)
  263. #define SOMAXCONN 100
  264. #endif
  265. #if !defined(PATH_MAX)
  266. #define PATH_MAX 4096
  267. #endif
  268. static const char *http_500_error = "Internal Server Error";
  269. #if defined(NO_SSL_DL)
  270. #include <openssl/ssl.h>
  271. #include <openssl/err.h>
  272. #else
  273. // SSL loaded dynamically from DLL.
  274. // I put the prototypes here to be independent from OpenSSL source installation.
  275. typedef struct ssl_st SSL;
  276. typedef struct ssl_method_st SSL_METHOD;
  277. typedef struct ssl_ctx_st SSL_CTX;
  278. struct ssl_func {
  279. const char *name; // SSL function name
  280. void (*ptr)(void); // Function pointer
  281. };
  282. #define SSL_free (* (void (*)(SSL *)) ssl_sw[0].ptr)
  283. #define SSL_accept (* (int (*)(SSL *)) ssl_sw[1].ptr)
  284. #define SSL_connect (* (int (*)(SSL *)) ssl_sw[2].ptr)
  285. #define SSL_read (* (int (*)(SSL *, void *, int)) ssl_sw[3].ptr)
  286. #define SSL_write (* (int (*)(SSL *, const void *,int)) ssl_sw[4].ptr)
  287. #define SSL_get_error (* (int (*)(SSL *, int)) ssl_sw[5].ptr)
  288. #define SSL_set_fd (* (int (*)(SSL *, SOCKET)) ssl_sw[6].ptr)
  289. #define SSL_new (* (SSL * (*)(SSL_CTX *)) ssl_sw[7].ptr)
  290. #define SSL_CTX_new (* (SSL_CTX * (*)(SSL_METHOD *)) ssl_sw[8].ptr)
  291. #define SSLv23_server_method (* (SSL_METHOD * (*)(void)) ssl_sw[9].ptr)
  292. #define SSL_library_init (* (int (*)(void)) ssl_sw[10].ptr)
  293. #define SSL_CTX_use_PrivateKey_file (* (int (*)(SSL_CTX *, \
  294. const char *, int)) ssl_sw[11].ptr)
  295. #define SSL_CTX_use_certificate_file (* (int (*)(SSL_CTX *, \
  296. const char *, int)) ssl_sw[12].ptr)
  297. #define SSL_CTX_set_default_passwd_cb \
  298. (* (void (*)(SSL_CTX *, mg_callback_t)) ssl_sw[13].ptr)
  299. #define SSL_CTX_free (* (void (*)(SSL_CTX *)) ssl_sw[14].ptr)
  300. #define SSL_load_error_strings (* (void (*)(void)) ssl_sw[15].ptr)
  301. #define SSL_CTX_use_certificate_chain_file \
  302. (* (int (*)(SSL_CTX *, const char *)) ssl_sw[16].ptr)
  303. #define SSLv23_client_method (* (SSL_METHOD * (*)(void)) ssl_sw[17].ptr)
  304. #define SSL_pending (* (int (*)(SSL *)) ssl_sw[18].ptr)
  305. #define SSL_CTX_set_verify (* (void (*)(SSL_CTX *, int, int)) ssl_sw[19].ptr)
  306. #define SSL_shutdown (* (int (*)(SSL *)) ssl_sw[20].ptr)
  307. #define CRYPTO_num_locks (* (int (*)(void)) crypto_sw[0].ptr)
  308. #define CRYPTO_set_locking_callback \
  309. (* (void (*)(void (*)(int, int, const char *, int))) crypto_sw[1].ptr)
  310. #define CRYPTO_set_id_callback \
  311. (* (void (*)(unsigned long (*)(void))) crypto_sw[2].ptr)
  312. #define ERR_get_error (* (unsigned long (*)(void)) crypto_sw[3].ptr)
  313. #define ERR_error_string (* (char * (*)(unsigned long,char *)) crypto_sw[4].ptr)
  314. // set_ssl_option() function updates this array.
  315. // It loads SSL library dynamically and changes NULLs to the actual addresses
  316. // of respective functions. The macros above (like SSL_connect()) are really
  317. // just calling these functions indirectly via the pointer.
  318. static struct ssl_func ssl_sw[] = {
  319. {"SSL_free", NULL},
  320. {"SSL_accept", NULL},
  321. {"SSL_connect", NULL},
  322. {"SSL_read", NULL},
  323. {"SSL_write", NULL},
  324. {"SSL_get_error", NULL},
  325. {"SSL_set_fd", NULL},
  326. {"SSL_new", NULL},
  327. {"SSL_CTX_new", NULL},
  328. {"SSLv23_server_method", NULL},
  329. {"SSL_library_init", NULL},
  330. {"SSL_CTX_use_PrivateKey_file", NULL},
  331. {"SSL_CTX_use_certificate_file",NULL},
  332. {"SSL_CTX_set_default_passwd_cb",NULL},
  333. {"SSL_CTX_free", NULL},
  334. {"SSL_load_error_strings", NULL},
  335. {"SSL_CTX_use_certificate_chain_file", NULL},
  336. {"SSLv23_client_method", NULL},
  337. {"SSL_pending", NULL},
  338. {"SSL_CTX_set_verify", NULL},
  339. {"SSL_shutdown", NULL},
  340. {NULL, NULL}
  341. };
  342. // Similar array as ssl_sw. These functions could be located in different lib.
  343. #if !defined(NO_SSL)
  344. static struct ssl_func crypto_sw[] = {
  345. {"CRYPTO_num_locks", NULL},
  346. {"CRYPTO_set_locking_callback", NULL},
  347. {"CRYPTO_set_id_callback", NULL},
  348. {"ERR_get_error", NULL},
  349. {"ERR_error_string", NULL},
  350. {NULL, NULL}
  351. };
  352. #endif // NO_SSL
  353. #endif // NO_SSL_DL
  354. static const char *month_names[] = {
  355. "Jan", "Feb", "Mar", "Apr", "May", "Jun",
  356. "Jul", "Aug", "Sep", "Oct", "Nov", "Dec"
  357. };
  358. // Unified socket address. For IPv6 support, add IPv6 address structure
  359. // in the union u.
  360. union usa {
  361. struct sockaddr sa;
  362. struct sockaddr_in sin;
  363. #if defined(USE_IPV6)
  364. struct sockaddr_in6 sin6;
  365. #endif
  366. };
  367. // Describes a string (chunk of memory).
  368. struct vec {
  369. const char *ptr;
  370. size_t len;
  371. };
  372. struct file {
  373. int is_directory;
  374. time_t modification_time;
  375. int64_t size;
  376. FILE *fp;
  377. const char *membuf; // Non-NULL if file data is in memory
  378. // set to 1 if the content is gzipped
  379. // in which case we need a content-encoding: gzip header
  380. int gzipped;
  381. };
  382. #define STRUCT_FILE_INITIALIZER {0, 0, 0, NULL, NULL, 0}
  383. // Describes listening socket, or socket which was accept()-ed by the master
  384. // thread and queued for future handling by the worker thread.
  385. struct socket {
  386. SOCKET sock; // Listening socket
  387. union usa lsa; // Local socket address
  388. union usa rsa; // Remote socket address
  389. unsigned is_ssl:1; // Is port SSL-ed
  390. unsigned ssl_redir:1; // Is port supposed to redirect everything to SSL port
  391. };
  392. // NOTE(lsm): this enum shoulds be in sync with the config_options below.
  393. enum {
  394. CGI_EXTENSIONS, CGI_ENVIRONMENT, PUT_DELETE_PASSWORDS_FILE, CGI_INTERPRETER,
  395. PROTECT_URI, AUTHENTICATION_DOMAIN, SSI_EXTENSIONS, THROTTLE,
  396. ACCESS_LOG_FILE, ENABLE_DIRECTORY_LISTING, ERROR_LOG_FILE,
  397. GLOBAL_PASSWORDS_FILE, INDEX_FILES, ENABLE_KEEP_ALIVE, ACCESS_CONTROL_LIST,
  398. EXTRA_MIME_TYPES, LISTENING_PORTS, DOCUMENT_ROOT, SSL_CERTIFICATE,
  399. NUM_THREADS, RUN_AS_USER, REWRITE, HIDE_FILES, REQUEST_TIMEOUT,
  400. NUM_OPTIONS
  401. };
  402. static const char *config_options[] = {
  403. "cgi_pattern", "**.cgi$|**.pl$|**.php$",
  404. "cgi_environment", NULL,
  405. "put_delete_auth_file", NULL,
  406. "cgi_interpreter", NULL,
  407. "protect_uri", NULL,
  408. "authentication_domain", "mydomain.com",
  409. "ssi_pattern", "**.shtml$|**.shtm$",
  410. "throttle", NULL,
  411. "access_log_file", NULL,
  412. "enable_directory_listing", "yes",
  413. "error_log_file", NULL,
  414. "global_auth_file", NULL,
  415. "index_files",
  416. "index.html,index.htm,index.cgi,index.shtml,index.php,index.lp",
  417. "enable_keep_alive", "no",
  418. "access_control_list", NULL,
  419. "extra_mime_types", NULL,
  420. "listening_ports", "8080",
  421. "document_root", NULL,
  422. "ssl_certificate", NULL,
  423. "num_threads", "50",
  424. "run_as_user", NULL,
  425. "url_rewrite_patterns", NULL,
  426. "hide_files_patterns", NULL,
  427. "request_timeout_ms", "30000",
  428. NULL
  429. };
  430. struct mg_context {
  431. volatile int stop_flag; // Should we stop event loop
  432. SSL_CTX *ssl_ctx; // SSL context
  433. char *config[NUM_OPTIONS]; // Mongoose configuration parameters
  434. struct mg_callbacks callbacks; // User-defined callback function
  435. void *user_data; // User-defined data
  436. struct socket *listening_sockets;
  437. int num_listening_sockets;
  438. volatile int num_threads; // Number of threads
  439. pthread_mutex_t mutex; // Protects (max|num)_threads
  440. pthread_cond_t cond; // Condvar for tracking workers terminations
  441. struct socket queue[20]; // Accepted sockets
  442. volatile int sq_head; // Head of the socket queue
  443. volatile int sq_tail; // Tail of the socket queue
  444. pthread_cond_t sq_full; // Signaled when socket is produced
  445. pthread_cond_t sq_empty; // Signaled when socket is consumed
  446. };
  447. struct mg_connection {
  448. struct mg_request_info request_info;
  449. struct mg_context *ctx;
  450. SSL *ssl; // SSL descriptor
  451. SSL_CTX *client_ssl_ctx; // SSL context for client connections
  452. struct socket client; // Connected client
  453. time_t birth_time; // Time when request was received
  454. int64_t num_bytes_sent; // Total bytes sent to client
  455. int64_t content_len; // Content-Length header value
  456. int64_t consumed_content; // How many bytes of content have been read
  457. char *buf; // Buffer for received data
  458. char *path_info; // PATH_INFO part of the URL
  459. int must_close; // 1 if connection must be closed
  460. int buf_size; // Buffer size
  461. int request_len; // Size of the request + headers in a buffer
  462. int data_len; // Total size of data in a buffer
  463. int status_code; // HTTP reply status code, e.g. 200
  464. int throttle; // Throttling, bytes/sec. <= 0 means no throttle
  465. time_t last_throttle_time; // Last time throttled data was sent
  466. int64_t last_throttle_bytes;// Bytes sent this second
  467. };
  468. // Directory entry
  469. struct de {
  470. struct mg_connection *conn;
  471. char *file_name;
  472. struct file file;
  473. };
  474. const char **mg_get_valid_option_names(void) {
  475. return config_options;
  476. }
  477. static int is_file_in_memory(struct mg_connection *conn, const char *path,
  478. struct file *filep) {
  479. size_t size = 0;
  480. if ((filep->membuf = conn->ctx->callbacks.open_file == NULL ? NULL :
  481. conn->ctx->callbacks.open_file(conn, path, &size)) != NULL) {
  482. // NOTE: override filep->size only on success. Otherwise, it might break
  483. // constructs like if (!mg_stat() || !mg_fopen()) ...
  484. filep->size = size;
  485. }
  486. return filep->membuf != NULL;
  487. }
  488. static int is_file_opened(const struct file *filep) {
  489. return filep->membuf != NULL || filep->fp != NULL;
  490. }
  491. static int mg_fopen(struct mg_connection *conn, const char *path,
  492. const char *mode, struct file *filep) {
  493. if (!is_file_in_memory(conn, path, filep)) {
  494. #ifdef _WIN32
  495. wchar_t wbuf[PATH_MAX], wmode[20];
  496. to_unicode(path, wbuf, ARRAY_SIZE(wbuf));
  497. MultiByteToWideChar(CP_UTF8, 0, mode, -1, wmode, ARRAY_SIZE(wmode));
  498. filep->fp = _wfopen(wbuf, wmode);
  499. #else
  500. filep->fp = fopen(path, mode);
  501. #endif
  502. }
  503. return is_file_opened(filep);
  504. }
  505. static void mg_fclose(struct file *filep) {
  506. if (filep != NULL && filep->fp != NULL) {
  507. fclose(filep->fp);
  508. }
  509. }
  510. static int get_option_index(const char *name) {
  511. int i;
  512. for (i = 0; config_options[i * 2] != NULL; i++) {
  513. if (strcmp(config_options[i * 2], name) == 0) {
  514. return i;
  515. }
  516. }
  517. return -1;
  518. }
  519. const char *mg_get_option(const struct mg_context *ctx, const char *name) {
  520. int i;
  521. if ((i = get_option_index(name)) == -1) {
  522. return NULL;
  523. } else if (ctx->config[i] == NULL) {
  524. return "";
  525. } else {
  526. return ctx->config[i];
  527. }
  528. }
  529. static void sockaddr_to_string(char *buf, size_t len,
  530. const union usa *usa) {
  531. buf[0] = '\0';
  532. #if defined(USE_IPV6)
  533. inet_ntop(usa->sa.sa_family, usa->sa.sa_family == AF_INET ?
  534. (void *) &usa->sin.sin_addr :
  535. (void *) &usa->sin6.sin6_addr, buf, len);
  536. #elif defined(_WIN32)
  537. // Only Windoze Vista (and newer) have inet_ntop()
  538. strncpy(buf, inet_ntoa(usa->sin.sin_addr), len);
  539. #else
  540. inet_ntop(usa->sa.sa_family, (void *) &usa->sin.sin_addr, buf, len);
  541. #endif
  542. }
  543. static void cry(struct mg_connection *conn,
  544. PRINTF_FORMAT_STRING(const char *fmt), ...) PRINTF_ARGS(2, 3);
  545. // Print error message to the opened error log stream.
  546. static void cry(struct mg_connection *conn, const char *fmt, ...) {
  547. char buf[MG_BUF_LEN], src_addr[IP_ADDR_STR_LEN];
  548. va_list ap;
  549. FILE *fp;
  550. time_t timestamp;
  551. va_start(ap, fmt);
  552. (void) vsnprintf(buf, sizeof(buf), fmt, ap);
  553. va_end(ap);
  554. // Do not lock when getting the callback value, here and below.
  555. // I suppose this is fine, since function cannot disappear in the
  556. // same way string option can.
  557. if (conn->ctx->callbacks.log_message == NULL ||
  558. conn->ctx->callbacks.log_message(conn, buf) == 0) {
  559. fp = conn->ctx == NULL || conn->ctx->config[ERROR_LOG_FILE] == NULL ? NULL :
  560. fopen(conn->ctx->config[ERROR_LOG_FILE], "a+");
  561. if (fp != NULL) {
  562. flockfile(fp);
  563. timestamp = time(NULL);
  564. sockaddr_to_string(src_addr, sizeof(src_addr), &conn->client.rsa);
  565. fprintf(fp, "[%010lu] [error] [client %s] ", (unsigned long) timestamp,
  566. src_addr);
  567. if (conn->request_info.request_method != NULL) {
  568. fprintf(fp, "%s %s: ", conn->request_info.request_method,
  569. conn->request_info.uri);
  570. }
  571. fprintf(fp, "%s", buf);
  572. fputc('\n', fp);
  573. funlockfile(fp);
  574. fclose(fp);
  575. }
  576. }
  577. }
  578. // Return fake connection structure. Used for logging, if connection
  579. // is not applicable at the moment of logging.
  580. static struct mg_connection *fc(struct mg_context *ctx) {
  581. static struct mg_connection fake_connection;
  582. fake_connection.ctx = ctx;
  583. return &fake_connection;
  584. }
  585. const char *mg_version(void) {
  586. return MONGOOSE_VERSION;
  587. }
  588. struct mg_request_info *mg_get_request_info(struct mg_connection *conn) {
  589. return &conn->request_info;
  590. }
  591. static void mg_strlcpy(register char *dst, register const char *src, size_t n) {
  592. for (; *src != '\0' && n > 1; n--) {
  593. *dst++ = *src++;
  594. }
  595. *dst = '\0';
  596. }
  597. static int lowercase(const char *s) {
  598. return tolower(* (const unsigned char *) s);
  599. }
  600. static int mg_strncasecmp(const char *s1, const char *s2, size_t len) {
  601. int diff = 0;
  602. if (len > 0)
  603. do {
  604. diff = lowercase(s1++) - lowercase(s2++);
  605. } while (diff == 0 && s1[-1] != '\0' && --len > 0);
  606. return diff;
  607. }
  608. static int mg_strcasecmp(const char *s1, const char *s2) {
  609. int diff;
  610. do {
  611. diff = lowercase(s1++) - lowercase(s2++);
  612. } while (diff == 0 && s1[-1] != '\0');
  613. return diff;
  614. }
  615. static char * mg_strndup(const char *ptr, size_t len) {
  616. char *p;
  617. if ((p = (char *) malloc(len + 1)) != NULL) {
  618. mg_strlcpy(p, ptr, len + 1);
  619. }
  620. return p;
  621. }
  622. static char * mg_strdup(const char *str) {
  623. return mg_strndup(str, strlen(str));
  624. }
  625. static const char *mg_strcasestr(const char *big_str, const char *small_str) {
  626. int i, big_len = strlen(big_str), small_len = strlen(small_str);
  627. for (i = 0; i <= big_len - small_len; i++) {
  628. if (mg_strncasecmp(big_str + i, small_str, small_len) == 0) {
  629. return big_str + i;
  630. }
  631. }
  632. return NULL;
  633. }
  634. // Like snprintf(), but never returns negative value, or a value
  635. // that is larger than a supplied buffer.
  636. // Thanks to Adam Zeldis to pointing snprintf()-caused vulnerability
  637. // in his audit report.
  638. static int mg_vsnprintf(struct mg_connection *conn, char *buf, size_t buflen,
  639. const char *fmt, va_list ap) {
  640. int n;
  641. if (buflen == 0)
  642. return 0;
  643. n = vsnprintf(buf, buflen, fmt, ap);
  644. if (n < 0) {
  645. cry(conn, "vsnprintf error");
  646. n = 0;
  647. } else if (n >= (int) buflen) {
  648. cry(conn, "truncating vsnprintf buffer: [%.*s]",
  649. n > 200 ? 200 : n, buf);
  650. n = (int) buflen - 1;
  651. }
  652. buf[n] = '\0';
  653. return n;
  654. }
  655. static int mg_snprintf(struct mg_connection *conn, char *buf, size_t buflen,
  656. PRINTF_FORMAT_STRING(const char *fmt), ...)
  657. PRINTF_ARGS(4, 5);
  658. static int mg_snprintf(struct mg_connection *conn, char *buf, size_t buflen,
  659. const char *fmt, ...) {
  660. va_list ap;
  661. int n;
  662. va_start(ap, fmt);
  663. n = mg_vsnprintf(conn, buf, buflen, fmt, ap);
  664. va_end(ap);
  665. return n;
  666. }
  667. // Skip the characters until one of the delimiters characters found.
  668. // 0-terminate resulting word. Skip the delimiter and following whitespaces.
  669. // Advance pointer to buffer to the next word. Return found 0-terminated word.
  670. // Delimiters can be quoted with quotechar.
  671. static char *skip_quoted(char **buf, const char *delimiters,
  672. const char *whitespace, char quotechar) {
  673. char *p, *begin_word, *end_word, *end_whitespace;
  674. begin_word = *buf;
  675. end_word = begin_word + strcspn(begin_word, delimiters);
  676. // Check for quotechar
  677. if (end_word > begin_word) {
  678. p = end_word - 1;
  679. while (*p == quotechar) {
  680. // If there is anything beyond end_word, copy it
  681. if (*end_word == '\0') {
  682. *p = '\0';
  683. break;
  684. } else {
  685. size_t end_off = strcspn(end_word + 1, delimiters);
  686. memmove (p, end_word, end_off + 1);
  687. p += end_off; // p must correspond to end_word - 1
  688. end_word += end_off + 1;
  689. }
  690. }
  691. for (p++; p < end_word; p++) {
  692. *p = '\0';
  693. }
  694. }
  695. if (*end_word == '\0') {
  696. *buf = end_word;
  697. } else {
  698. end_whitespace = end_word + 1 + strspn(end_word + 1, whitespace);
  699. for (p = end_word; p < end_whitespace; p++) {
  700. *p = '\0';
  701. }
  702. *buf = end_whitespace;
  703. }
  704. return begin_word;
  705. }
  706. // Simplified version of skip_quoted without quote char
  707. // and whitespace == delimiters
  708. static char *skip(char **buf, const char *delimiters) {
  709. return skip_quoted(buf, delimiters, delimiters, 0);
  710. }
  711. // Return HTTP header value, or NULL if not found.
  712. static const char *get_header(const struct mg_request_info *ri,
  713. const char *name) {
  714. int i;
  715. for (i = 0; i < ri->num_headers; i++)
  716. if (!mg_strcasecmp(name, ri->http_headers[i].name))
  717. return ri->http_headers[i].value;
  718. return NULL;
  719. }
  720. const char *mg_get_header(const struct mg_connection *conn, const char *name) {
  721. return get_header(&conn->request_info, name);
  722. }
  723. // A helper function for traversing a comma separated list of values.
  724. // It returns a list pointer shifted to the next value, or NULL if the end
  725. // of the list found.
  726. // Value is stored in val vector. If value has form "x=y", then eq_val
  727. // vector is initialized to point to the "y" part, and val vector length
  728. // is adjusted to point only to "x".
  729. static const char *next_option(const char *list, struct vec *val,
  730. struct vec *eq_val) {
  731. if (list == NULL || *list == '\0') {
  732. // End of the list
  733. list = NULL;
  734. } else {
  735. val->ptr = list;
  736. if ((list = strchr(val->ptr, ',')) != NULL) {
  737. // Comma found. Store length and shift the list ptr
  738. val->len = list - val->ptr;
  739. list++;
  740. } else {
  741. // This value is the last one
  742. list = val->ptr + strlen(val->ptr);
  743. val->len = list - val->ptr;
  744. }
  745. if (eq_val != NULL) {
  746. // Value has form "x=y", adjust pointers and lengths
  747. // so that val points to "x", and eq_val points to "y".
  748. eq_val->len = 0;
  749. eq_val->ptr = (const char *) memchr(val->ptr, '=', val->len);
  750. if (eq_val->ptr != NULL) {
  751. eq_val->ptr++; // Skip over '=' character
  752. eq_val->len = val->ptr + val->len - eq_val->ptr;
  753. val->len = (eq_val->ptr - val->ptr) - 1;
  754. }
  755. }
  756. }
  757. return list;
  758. }
  759. // Perform case-insensitive match of string against pattern
  760. static int match_prefix(const char *pattern, int pattern_len, const char *str) {
  761. const char *or_str;
  762. int i, j, len, res;
  763. if ((or_str = (const char *) memchr(pattern, '|', pattern_len)) != NULL) {
  764. res = match_prefix(pattern, or_str - pattern, str);
  765. return res > 0 ? res :
  766. match_prefix(or_str + 1, (pattern + pattern_len) - (or_str + 1), str);
  767. }
  768. i = j = 0;
  769. res = -1;
  770. for (; i < pattern_len; i++, j++) {
  771. if (pattern[i] == '?' && str[j] != '\0') {
  772. continue;
  773. } else if (pattern[i] == '$') {
  774. return str[j] == '\0' ? j : -1;
  775. } else if (pattern[i] == '*') {
  776. i++;
  777. if (pattern[i] == '*') {
  778. i++;
  779. len = (int) strlen(str + j);
  780. } else {
  781. len = (int) strcspn(str + j, "/");
  782. }
  783. if (i == pattern_len) {
  784. return j + len;
  785. }
  786. do {
  787. res = match_prefix(pattern + i, pattern_len - i, str + j + len);
  788. } while (res == -1 && len-- > 0);
  789. return res == -1 ? -1 : j + res + len;
  790. } else if (lowercase(&pattern[i]) != lowercase(&str[j])) {
  791. return -1;
  792. }
  793. }
  794. return j;
  795. }
  796. // HTTP 1.1 assumes keep alive if "Connection:" header is not set
  797. // This function must tolerate situations when connection info is not
  798. // set up, for example if request parsing failed.
  799. static int should_keep_alive(const struct mg_connection *conn) {
  800. const char *http_version = conn->request_info.http_version;
  801. const char *header = mg_get_header(conn, "Connection");
  802. if (conn->must_close ||
  803. conn->status_code == 401 ||
  804. mg_strcasecmp(conn->ctx->config[ENABLE_KEEP_ALIVE], "yes") != 0 ||
  805. (header != NULL && mg_strcasecmp(header, "keep-alive") != 0) ||
  806. (header == NULL && http_version && strcmp(http_version, "1.1"))) {
  807. return 0;
  808. }
  809. return 1;
  810. }
  811. static const char *suggest_connection_header(const struct mg_connection *conn) {
  812. return should_keep_alive(conn) ? "keep-alive" : "close";
  813. }
  814. static void send_http_error(struct mg_connection *, int, const char *,
  815. PRINTF_FORMAT_STRING(const char *fmt), ...)
  816. PRINTF_ARGS(4, 5);
  817. static void send_http_error(struct mg_connection *conn, int status,
  818. const char *reason, const char *fmt, ...) {
  819. char buf[MG_BUF_LEN];
  820. va_list ap;
  821. int len = 0;
  822. conn->status_code = status;
  823. if (conn->ctx->callbacks.http_error == NULL ||
  824. conn->ctx->callbacks.http_error(conn, status)) {
  825. buf[0] = '\0';
  826. // Errors 1xx, 204 and 304 MUST NOT send a body
  827. if (status > 199 && status != 204 && status != 304) {
  828. len = mg_snprintf(conn, buf, sizeof(buf), "Error %d: %s", status, reason);
  829. buf[len++] = '\n';
  830. va_start(ap, fmt);
  831. len += mg_vsnprintf(conn, buf + len, sizeof(buf) - len, fmt, ap);
  832. va_end(ap);
  833. }
  834. DEBUG_TRACE(("[%s]", buf));
  835. mg_printf(conn, "HTTP/1.1 %d %s\r\n"
  836. "Content-Length: %d\r\n"
  837. "Connection: %s\r\n\r\n", status, reason, len,
  838. suggest_connection_header(conn));
  839. conn->num_bytes_sent += mg_printf(conn, "%s", buf);
  840. }
  841. }
  842. #if defined(_WIN32) && !defined(__SYMBIAN32__)
  843. static int pthread_mutex_init(pthread_mutex_t *mutex, void *unused) {
  844. (void) unused;
  845. *mutex = CreateMutex(NULL, FALSE, NULL);
  846. return *mutex == NULL ? -1 : 0;
  847. }
  848. static int pthread_mutex_destroy(pthread_mutex_t *mutex) {
  849. return CloseHandle(*mutex) == 0 ? -1 : 0;
  850. }
  851. static int pthread_mutex_lock(pthread_mutex_t *mutex) {
  852. return WaitForSingleObject(*mutex, INFINITE) == WAIT_OBJECT_0? 0 : -1;
  853. }
  854. static int pthread_mutex_unlock(pthread_mutex_t *mutex) {
  855. return ReleaseMutex(*mutex) == 0 ? -1 : 0;
  856. }
  857. static int pthread_cond_init(pthread_cond_t *cv, const void *unused) {
  858. (void) unused;
  859. cv->signal = CreateEvent(NULL, FALSE, FALSE, NULL);
  860. cv->broadcast = CreateEvent(NULL, TRUE, FALSE, NULL);
  861. return cv->signal != NULL && cv->broadcast != NULL ? 0 : -1;
  862. }
  863. static int pthread_cond_wait(pthread_cond_t *cv, pthread_mutex_t *mutex) {
  864. HANDLE handles[] = {cv->signal, cv->broadcast};
  865. ReleaseMutex(*mutex);
  866. WaitForMultipleObjects(2, handles, FALSE, INFINITE);
  867. return WaitForSingleObject(*mutex, INFINITE) == WAIT_OBJECT_0? 0 : -1;
  868. }
  869. static int pthread_cond_signal(pthread_cond_t *cv) {
  870. return SetEvent(cv->signal) == 0 ? -1 : 0;
  871. }
  872. static int pthread_cond_broadcast(pthread_cond_t *cv) {
  873. // Implementation with PulseEvent() has race condition, see
  874. // http://www.cs.wustl.edu/~schmidt/win32-cv-1.html
  875. return PulseEvent(cv->broadcast) == 0 ? -1 : 0;
  876. }
  877. static int pthread_cond_destroy(pthread_cond_t *cv) {
  878. return CloseHandle(cv->signal) && CloseHandle(cv->broadcast) ? 0 : -1;
  879. }
  880. // For Windows, change all slashes to backslashes in path names.
  881. static void change_slashes_to_backslashes(char *path) {
  882. int i;
  883. for (i = 0; path[i] != '\0'; i++) {
  884. if (path[i] == '/')
  885. path[i] = '\\';
  886. // i > 0 check is to preserve UNC paths, like \\server\file.txt
  887. if (path[i] == '\\' && i > 0)
  888. while (path[i + 1] == '\\' || path[i + 1] == '/')
  889. (void) memmove(path + i + 1,
  890. path + i + 2, strlen(path + i + 1));
  891. }
  892. }
  893. // Encode 'path' which is assumed UTF-8 string, into UNICODE string.
  894. // wbuf and wbuf_len is a target buffer and its length.
  895. static void to_unicode(const char *path, wchar_t *wbuf, size_t wbuf_len) {
  896. char buf[PATH_MAX], buf2[PATH_MAX];
  897. mg_strlcpy(buf, path, sizeof(buf));
  898. change_slashes_to_backslashes(buf);
  899. // Convert to Unicode and back. If doubly-converted string does not
  900. // match the original, something is fishy, reject.
  901. memset(wbuf, 0, wbuf_len * sizeof(wchar_t));
  902. MultiByteToWideChar(CP_UTF8, 0, buf, -1, wbuf, (int) wbuf_len);
  903. WideCharToMultiByte(CP_UTF8, 0, wbuf, (int) wbuf_len, buf2, sizeof(buf2),
  904. NULL, NULL);
  905. if (strcmp(buf, buf2) != 0) {
  906. wbuf[0] = L'\0';
  907. }
  908. }
  909. #if defined(_WIN32_WCE)
  910. static time_t time(time_t *ptime) {
  911. time_t t;
  912. SYSTEMTIME st;
  913. FILETIME ft;
  914. GetSystemTime(&st);
  915. SystemTimeToFileTime(&st, &ft);
  916. t = SYS2UNIX_TIME(ft.dwLowDateTime, ft.dwHighDateTime);
  917. if (ptime != NULL) {
  918. *ptime = t;
  919. }
  920. return t;
  921. }
  922. static struct tm *localtime(const time_t *ptime, struct tm *ptm) {
  923. int64_t t = ((int64_t) *ptime) * RATE_DIFF + EPOCH_DIFF;
  924. FILETIME ft, lft;
  925. SYSTEMTIME st;
  926. TIME_ZONE_INFORMATION tzinfo;
  927. if (ptm == NULL) {
  928. return NULL;
  929. }
  930. * (int64_t *) &ft = t;
  931. FileTimeToLocalFileTime(&ft, &lft);
  932. FileTimeToSystemTime(&lft, &st);
  933. ptm->tm_year = st.wYear - 1900;
  934. ptm->tm_mon = st.wMonth - 1;
  935. ptm->tm_wday = st.wDayOfWeek;
  936. ptm->tm_mday = st.wDay;
  937. ptm->tm_hour = st.wHour;
  938. ptm->tm_min = st.wMinute;
  939. ptm->tm_sec = st.wSecond;
  940. ptm->tm_yday = 0; // hope nobody uses this
  941. ptm->tm_isdst =
  942. GetTimeZoneInformation(&tzinfo) == TIME_ZONE_ID_DAYLIGHT ? 1 : 0;
  943. return ptm;
  944. }
  945. static struct tm *gmtime(const time_t *ptime, struct tm *ptm) {
  946. // FIXME(lsm): fix this.
  947. return localtime(ptime, ptm);
  948. }
  949. static size_t strftime(char *dst, size_t dst_size, const char *fmt,
  950. const struct tm *tm) {
  951. (void) snprintf(dst, dst_size, "implement strftime() for WinCE");
  952. return 0;
  953. }
  954. #endif
  955. // Windows happily opens files with some garbage at the end of file name.
  956. // For example, fopen("a.cgi ", "r") on Windows successfully opens
  957. // "a.cgi", despite one would expect an error back.
  958. // This function returns non-0 if path ends with some garbage.
  959. static int path_cannot_disclose_cgi(const char *path) {
  960. static const char *allowed_last_characters = "_-";
  961. int last = path[strlen(path) - 1];
  962. return isalnum(last) || strchr(allowed_last_characters, last) != NULL;
  963. }
  964. static int mg_stat(struct mg_connection *conn, const char *path,
  965. struct file *filep) {
  966. wchar_t wbuf[PATH_MAX];
  967. WIN32_FILE_ATTRIBUTE_DATA info;
  968. if (!is_file_in_memory(conn, path, filep)) {
  969. to_unicode(path, wbuf, ARRAY_SIZE(wbuf));
  970. if (GetFileAttributesExW(wbuf, GetFileExInfoStandard, &info) != 0) {
  971. filep->size = MAKEUQUAD(info.nFileSizeLow, info.nFileSizeHigh);
  972. filep->modification_time = SYS2UNIX_TIME(
  973. info.ftLastWriteTime.dwLowDateTime,
  974. info.ftLastWriteTime.dwHighDateTime);
  975. filep->is_directory = info.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY;
  976. // If file name is fishy, reset the file structure and return error.
  977. // Note it is important to reset, not just return the error, cause
  978. // functions like is_file_opened() check the struct.
  979. if (!filep->is_directory && !path_cannot_disclose_cgi(path)) {
  980. memset(filep, 0, sizeof(*filep));
  981. }
  982. }
  983. }
  984. return filep->membuf != NULL || filep->modification_time != 0;
  985. }
  986. static int mg_remove(const char *path) {
  987. wchar_t wbuf[PATH_MAX];
  988. to_unicode(path, wbuf, ARRAY_SIZE(wbuf));
  989. return DeleteFileW(wbuf) ? 0 : -1;
  990. }
  991. static int mg_mkdir(const char *path, int mode) {
  992. char buf[PATH_MAX];
  993. wchar_t wbuf[PATH_MAX];
  994. (void) mode;
  995. mg_strlcpy(buf, path, sizeof(buf));
  996. change_slashes_to_backslashes(buf);
  997. (void) MultiByteToWideChar(CP_UTF8, 0, buf, -1, wbuf, ARRAY_SIZE(wbuf));
  998. return CreateDirectoryW(wbuf, NULL) ? 0 : -1;
  999. }
  1000. // Implementation of POSIX opendir/closedir/readdir for Windows.
  1001. static DIR * opendir(const char *name) {
  1002. DIR *dir = NULL;
  1003. wchar_t wpath[PATH_MAX];
  1004. DWORD attrs;
  1005. if (name == NULL) {
  1006. SetLastError(ERROR_BAD_ARGUMENTS);
  1007. } else if ((dir = (DIR *) malloc(sizeof(*dir))) == NULL) {
  1008. SetLastError(ERROR_NOT_ENOUGH_MEMORY);
  1009. } else {
  1010. to_unicode(name, wpath, ARRAY_SIZE(wpath));
  1011. attrs = GetFileAttributesW(wpath);
  1012. if (attrs != 0xFFFFFFFF &&
  1013. ((attrs & FILE_ATTRIBUTE_DIRECTORY) == FILE_ATTRIBUTE_DIRECTORY)) {
  1014. (void) wcscat(wpath, L"\\*");
  1015. dir->handle = FindFirstFileW(wpath, &dir->info);
  1016. dir->result.d_name[0] = '\0';
  1017. } else {
  1018. free(dir);
  1019. dir = NULL;
  1020. }
  1021. }
  1022. return dir;
  1023. }
  1024. static int closedir(DIR *dir) {
  1025. int result = 0;
  1026. if (dir != NULL) {
  1027. if (dir->handle != INVALID_HANDLE_VALUE)
  1028. result = FindClose(dir->handle) ? 0 : -1;
  1029. free(dir);
  1030. } else {
  1031. result = -1;
  1032. SetLastError(ERROR_BAD_ARGUMENTS);
  1033. }
  1034. return result;
  1035. }
  1036. static struct dirent *readdir(DIR *dir) {
  1037. struct dirent *result = 0;
  1038. if (dir) {
  1039. if (dir->handle != INVALID_HANDLE_VALUE) {
  1040. result = &dir->result;
  1041. (void) WideCharToMultiByte(CP_UTF8, 0,
  1042. dir->info.cFileName, -1, result->d_name,
  1043. sizeof(result->d_name), NULL, NULL);
  1044. if (!FindNextFileW(dir->handle, &dir->info)) {
  1045. (void) FindClose(dir->handle);
  1046. dir->handle = INVALID_HANDLE_VALUE;
  1047. }
  1048. } else {
  1049. SetLastError(ERROR_FILE_NOT_FOUND);
  1050. }
  1051. } else {
  1052. SetLastError(ERROR_BAD_ARGUMENTS);
  1053. }
  1054. return result;
  1055. }
  1056. #ifndef HAVE_POLL
  1057. static int poll(struct pollfd *pfd, int n, int milliseconds) {
  1058. struct timeval tv;
  1059. fd_set set;
  1060. int i, result;
  1061. SOCKET maxfd = 0;
  1062. tv.tv_sec = milliseconds / 1000;
  1063. tv.tv_usec = (milliseconds % 1000) * 1000;
  1064. FD_ZERO(&set);
  1065. for (i = 0; i < n; i++) {
  1066. FD_SET((SOCKET) pfd[i].fd, &set);
  1067. pfd[i].revents = 0;
  1068. if (pfd[i].fd > maxfd) {
  1069. maxfd = pfd[i].fd;
  1070. }
  1071. }
  1072. if ((result = select(maxfd + 1, &set, NULL, NULL, &tv)) > 0) {
  1073. for (i = 0; i < n; i++) {
  1074. if (FD_ISSET(pfd[i].fd, &set)) {
  1075. pfd[i].revents = POLLIN;
  1076. }
  1077. }
  1078. }
  1079. return result;
  1080. }
  1081. #endif // HAVE_POLL
  1082. static void set_close_on_exec(SOCKET sock) {
  1083. (void) SetHandleInformation((HANDLE) sock, HANDLE_FLAG_INHERIT, 0);
  1084. }
  1085. int mg_start_thread(mg_thread_func_t f, void *p) {
  1086. return (long)_beginthread((void (__cdecl *)(void *)) f, 0, p) == -1L ? -1 : 0;
  1087. }
  1088. static HANDLE dlopen(const char *dll_name, int flags) {
  1089. wchar_t wbuf[PATH_MAX];
  1090. (void) flags;
  1091. to_unicode(dll_name, wbuf, ARRAY_SIZE(wbuf));
  1092. return LoadLibraryW(wbuf);
  1093. }
  1094. #if !defined(NO_CGI)
  1095. #define SIGKILL 0
  1096. static int kill(pid_t pid, int sig_num) {
  1097. (void) TerminateProcess(pid, sig_num);
  1098. (void) CloseHandle(pid);
  1099. return 0;
  1100. }
  1101. static void trim_trailing_whitespaces(char *s) {
  1102. char *e = s + strlen(s) - 1;
  1103. while (e > s && isspace(* (unsigned char *) e)) {
  1104. *e-- = '\0';
  1105. }
  1106. }
  1107. static pid_t spawn_process(struct mg_connection *conn, const char *prog,
  1108. char *envblk, char *envp[], int fd_stdin,
  1109. int fd_stdout, const char *dir) {
  1110. HANDLE me;
  1111. char *p, *interp, full_interp[PATH_MAX], full_dir[PATH_MAX],
  1112. cmdline[PATH_MAX], buf[PATH_MAX];
  1113. struct file file = STRUCT_FILE_INITIALIZER;
  1114. STARTUPINFOA si;
  1115. PROCESS_INFORMATION pi = { 0 };
  1116. (void) envp;
  1117. memset(&si, 0, sizeof(si));
  1118. si.cb = sizeof(si);
  1119. // TODO(lsm): redirect CGI errors to the error log file
  1120. si.dwFlags = STARTF_USESTDHANDLES | STARTF_USESHOWWINDOW;
  1121. si.wShowWindow = SW_HIDE;
  1122. me = GetCurrentProcess();
  1123. DuplicateHandle(me, (HANDLE) _get_osfhandle(fd_stdin), me,
  1124. &si.hStdInput, 0, TRUE, DUPLICATE_SAME_ACCESS);
  1125. DuplicateHandle(me, (HANDLE) _get_osfhandle(fd_stdout), me,
  1126. &si.hStdOutput, 0, TRUE, DUPLICATE_SAME_ACCESS);
  1127. // If CGI file is a script, try to read the interpreter line
  1128. interp = conn->ctx->config[CGI_INTERPRETER];
  1129. if (interp == NULL) {
  1130. buf[0] = buf[1] = '\0';
  1131. // Read the first line of the script into the buffer
  1132. snprintf(cmdline, sizeof(cmdline), "%s%c%s", dir, '/', prog);
  1133. if (mg_fopen(conn, cmdline, "r", &file)) {
  1134. p = (char *) file.membuf;
  1135. mg_fgets(buf, sizeof(buf), &file, &p);
  1136. mg_fclose(&file);
  1137. buf[sizeof(buf) - 1] = '\0';
  1138. }
  1139. if (buf[0] == '#' && buf[1] == '!') {
  1140. trim_trailing_whitespaces(buf + 2);
  1141. } else {
  1142. buf[2] = '\0';
  1143. }
  1144. interp = buf + 2;
  1145. }
  1146. if (interp[0] != '\0') {
  1147. GetFullPathNameA(interp, sizeof(full_interp), full_interp, NULL);
  1148. interp = full_interp;
  1149. }
  1150. GetFullPathNameA(dir, sizeof(full_dir), full_dir, NULL);
  1151. mg_snprintf(conn, cmdline, sizeof(cmdline), "%s%s\"%s\\%s\"",
  1152. interp, interp[0] == '\0' ? "" : " ", full_dir, prog);
  1153. DEBUG_TRACE(("Running [%s]", cmdline));
  1154. if (CreateProcessA(NULL, cmdline, NULL, NULL, TRUE,
  1155. CREATE_NEW_PROCESS_GROUP, envblk, NULL, &si, &pi) == 0) {
  1156. cry(conn, "%s: CreateProcess(%s): %ld",
  1157. __func__, cmdline, ERRNO);
  1158. pi.hProcess = (pid_t) -1;
  1159. }
  1160. // Always close these to prevent handle leakage.
  1161. (void) close(fd_stdin);
  1162. (void) close(fd_stdout);
  1163. (void) CloseHandle(si.hStdOutput);
  1164. (void) CloseHandle(si.hStdInput);
  1165. (void) CloseHandle(pi.hThread);
  1166. return (pid_t) pi.hProcess;
  1167. }
  1168. #endif // !NO_CGI
  1169. static int set_non_blocking_mode(SOCKET sock) {
  1170. unsigned long on = 1;
  1171. return ioctlsocket(sock, FIONBIO, &on);
  1172. }
  1173. #else
  1174. static int mg_stat(struct mg_connection *conn, const char *path,
  1175. struct file *filep) {
  1176. struct stat st;
  1177. if (!is_file_in_memory(conn, path, filep) && !stat(path, &st)) {
  1178. filep->size = st.st_size;
  1179. filep->modification_time = st.st_mtime;
  1180. filep->is_directory = S_ISDIR(st.st_mode);
  1181. } else {
  1182. filep->modification_time = (time_t) 0;
  1183. }
  1184. return filep->membuf != NULL || filep->modification_time != (time_t) 0;
  1185. }
  1186. static void set_close_on_exec(int fd) {
  1187. fcntl(fd, F_SETFD, FD_CLOEXEC);
  1188. }
  1189. int mg_start_thread(mg_thread_func_t func, void *param) {
  1190. pthread_t thread_id;
  1191. pthread_attr_t attr;
  1192. int result;
  1193. (void) pthread_attr_init(&attr);
  1194. (void) pthread_attr_setdetachstate(&attr, PTHREAD_CREATE_DETACHED);
  1195. #if USE_STACK_SIZE > 1
  1196. // Compile-time option to control stack size, e.g. -DUSE_STACK_SIZE=16384
  1197. (void) pthread_attr_setstacksize(&attr, USE_STACK_SIZE);
  1198. #endif
  1199. result = pthread_create(&thread_id, &attr, func, param);
  1200. pthread_attr_destroy(&attr);
  1201. return result;
  1202. }
  1203. #ifndef NO_CGI
  1204. static pid_t spawn_process(struct mg_connection *conn, const char *prog,
  1205. char *envblk, char *envp[], int fd_stdin,
  1206. int fd_stdout, const char *dir) {
  1207. pid_t pid;
  1208. const char *interp;
  1209. (void) envblk;
  1210. if ((pid = fork()) == -1) {
  1211. // Parent
  1212. send_http_error(conn, 500, http_500_error, "fork(): %s", strerror(ERRNO));
  1213. } else if (pid == 0) {
  1214. // Child
  1215. if (chdir(dir) != 0) {
  1216. cry(conn, "%s: chdir(%s): %s", __func__, dir, strerror(ERRNO));
  1217. } else if (dup2(fd_stdin, 0) == -1) {
  1218. cry(conn, "%s: dup2(%d, 0): %s", __func__, fd_stdin, strerror(ERRNO));
  1219. } else if (dup2(fd_stdout, 1) == -1) {
  1220. cry(conn, "%s: dup2(%d, 1): %s", __func__, fd_stdout, strerror(ERRNO));
  1221. } else {
  1222. // Not redirecting stderr to stdout, to avoid output being littered
  1223. // with the error messages.
  1224. (void) close(fd_stdin);
  1225. (void) close(fd_stdout);
  1226. // After exec, all signal handlers are restored to their default values,
  1227. // with one exception of SIGCHLD. According to POSIX.1-2001 and Linux's
  1228. // implementation, SIGCHLD's handler will leave unchanged after exec
  1229. // if it was set to be ignored. Restore it to default action.
  1230. signal(SIGCHLD, SIG_DFL);
  1231. interp = conn->ctx->config[CGI_INTERPRETER];
  1232. if (interp == NULL) {
  1233. (void) execle(prog, prog, NULL, envp);
  1234. cry(conn, "%s: execle(%s): %s", __func__, prog, strerror(ERRNO));
  1235. } else {
  1236. (void) execle(interp, interp, prog, NULL, envp);
  1237. cry(conn, "%s: execle(%s %s): %s", __func__, interp, prog,
  1238. strerror(ERRNO));
  1239. }
  1240. }
  1241. exit(EXIT_FAILURE);
  1242. }
  1243. // Parent. Close stdio descriptors
  1244. (void) close(fd_stdin);
  1245. (void) close(fd_stdout);
  1246. return pid;
  1247. }
  1248. #endif // !NO_CGI
  1249. static int set_non_blocking_mode(SOCKET sock) {
  1250. int flags;
  1251. flags = fcntl(sock, F_GETFL, 0);
  1252. (void) fcntl(sock, F_SETFL, flags | O_NONBLOCK);
  1253. return 0;
  1254. }
  1255. #endif // _WIN32
  1256. // Write data to the IO channel - opened file descriptor, socket or SSL
  1257. // descriptor. Return number of bytes written.
  1258. static int64_t push(FILE *fp, SOCKET sock, SSL *ssl, const char *buf,
  1259. int64_t len) {
  1260. int64_t sent;
  1261. int n, k;
  1262. (void) ssl; // Get rid of warning
  1263. sent = 0;
  1264. while (sent < len) {
  1265. // How many bytes we send in this iteration
  1266. k = len - sent > INT_MAX ? INT_MAX : (int) (len - sent);
  1267. #ifndef NO_SSL
  1268. if (ssl != NULL) {
  1269. n = SSL_write(ssl, buf + sent, k);
  1270. } else
  1271. #endif
  1272. if (fp != NULL) {
  1273. n = (int) fwrite(buf + sent, 1, (size_t) k, fp);
  1274. if (ferror(fp))
  1275. n = -1;
  1276. } else {
  1277. n = send(sock, buf + sent, (size_t) k, MSG_NOSIGNAL);
  1278. }
  1279. if (n <= 0)
  1280. break;
  1281. sent += n;
  1282. }
  1283. return sent;
  1284. }
  1285. // Read from IO channel - opened file descriptor, socket, or SSL descriptor.
  1286. // Return negative value on error, or number of bytes read on success.
  1287. static int pull(FILE *fp, struct mg_connection *conn, char *buf, int len) {
  1288. int nread;
  1289. if (fp != NULL) {
  1290. // Use read() instead of fread(), because if we're reading from the CGI
  1291. // pipe, fread() may block until IO buffer is filled up. We cannot afford
  1292. // to block and must pass all read bytes immediately to the client.
  1293. nread = read(fileno(fp), buf, (size_t) len);
  1294. #ifndef NO_SSL
  1295. } else if (conn->ssl != NULL) {
  1296. nread = SSL_read(conn->ssl, buf, len);
  1297. #endif
  1298. } else {
  1299. nread = recv(conn->client.sock, buf, (size_t) len, 0);
  1300. }
  1301. return conn->ctx->stop_flag ? -1 : nread;
  1302. }
  1303. static int pull_all(FILE *fp, struct mg_connection *conn, char *buf, int len) {
  1304. int n, nread = 0;
  1305. while (len > 0 && conn->ctx->stop_flag == 0) {
  1306. n = pull(fp, conn, buf + nread, len);
  1307. if (n < 0) {
  1308. nread = n; // Propagate the error
  1309. break;
  1310. } else if (n == 0) {
  1311. break; // No more data to read
  1312. } else {
  1313. conn->consumed_content += n;
  1314. nread += n;
  1315. len -= n;
  1316. }
  1317. }
  1318. return nread;
  1319. }
  1320. int mg_read(struct mg_connection *conn, void *buf, size_t len) {
  1321. int n, buffered_len, nread;
  1322. const char *body;
  1323. // If Content-Length is not set, read until socket is closed
  1324. if (conn->consumed_content == 0 && conn->content_len == 0) {
  1325. conn->content_len = INT64_MAX;
  1326. conn->must_close = 1;
  1327. }
  1328. nread = 0;
  1329. if (conn->consumed_content < conn->content_len) {
  1330. // Adjust number of bytes to read.
  1331. int64_t to_read = conn->content_len - conn->consumed_content;
  1332. if (to_read < (int64_t) len) {
  1333. len = (size_t) to_read;
  1334. }
  1335. // Return buffered data
  1336. body = conn->buf + conn->request_len + conn->consumed_content;
  1337. buffered_len = &conn->buf[conn->data_len] - body;
  1338. if (buffered_len > 0) {
  1339. if (len < (size_t) buffered_len) {
  1340. buffered_len = (int) len;
  1341. }
  1342. memcpy(buf, body, (size_t) buffered_len);
  1343. len -= buffered_len;
  1344. conn->consumed_content += buffered_len;
  1345. nread += buffered_len;
  1346. buf = (char *) buf + buffered_len;
  1347. }
  1348. // We have returned all buffered data. Read new data from the remote socket.
  1349. n = pull_all(NULL, conn, (char *) buf, (int) len);
  1350. nread = n >= 0 ? nread + n : n;
  1351. }
  1352. return nread;
  1353. }
  1354. int mg_write(struct mg_connection *conn, const void *buf, size_t len) {
  1355. time_t now;
  1356. int64_t n, total, allowed;
  1357. if (conn->throttle > 0) {
  1358. if ((now = time(NULL)) != conn->last_throttle_time) {
  1359. conn->last_throttle_time = now;
  1360. conn->last_throttle_bytes = 0;
  1361. }
  1362. allowed = conn->throttle - conn->last_throttle_bytes;
  1363. if (allowed > (int64_t) len) {
  1364. allowed = len;
  1365. }
  1366. if ((total = push(NULL, conn->client.sock, conn->ssl, (const char *) buf,
  1367. (int64_t) allowed)) == allowed) {
  1368. buf = (char *) buf + total;
  1369. conn->last_throttle_bytes += total;
  1370. while (total < (int64_t) len && conn->ctx->stop_flag == 0) {
  1371. allowed = conn->throttle > (int64_t) len - total ?
  1372. (int64_t) len - total : conn->throttle;
  1373. if ((n = push(NULL, conn->client.sock, conn->ssl, (const char *) buf,
  1374. (int64_t) allowed)) != allowed) {
  1375. break;
  1376. }
  1377. sleep(1);
  1378. conn->last_throttle_bytes = allowed;
  1379. conn->last_throttle_time = time(NULL);
  1380. buf = (char *) buf + n;
  1381. total += n;
  1382. }
  1383. }
  1384. } else {
  1385. total = push(NULL, conn->client.sock, conn->ssl, (const char *) buf,
  1386. (int64_t) len);
  1387. }
  1388. return (int) total;
  1389. }
  1390. // Print message to buffer. If buffer is large enough to hold the message,
  1391. // return buffer. If buffer is to small, allocate large enough buffer on heap,
  1392. // and return allocated buffer.
  1393. static int alloc_vprintf(char **buf, size_t size, const char *fmt, va_list ap) {
  1394. va_list ap_copy;
  1395. int len;
  1396. // Windows is not standard-compliant, and vsnprintf() returns -1 if
  1397. // buffer is too small. Also, older versions of msvcrt.dll do not have
  1398. // _vscprintf(). However, if size is 0, vsnprintf() behaves correctly.
  1399. // Therefore, we make two passes: on first pass, get required message length.
  1400. // On second pass, actually print the message.
  1401. va_copy(ap_copy, ap);
  1402. len = vsnprintf(NULL, 0, fmt, ap_copy);
  1403. if (len > (int) size &&
  1404. (size = len + 1) > 0 &&
  1405. (*buf = (char *) malloc(size)) == NULL) {
  1406. len = -1; // Allocation failed, mark failure
  1407. } else {
  1408. va_copy(ap_copy, ap);
  1409. vsnprintf(*buf, size, fmt, ap_copy);
  1410. }
  1411. return len;
  1412. }
  1413. int mg_vprintf(struct mg_connection *conn, const char *fmt, va_list ap) {
  1414. char mem[MG_BUF_LEN], *buf = mem;
  1415. int len;
  1416. if ((len = alloc_vprintf(&buf, sizeof(mem), fmt, ap)) > 0) {
  1417. len = mg_write(conn, buf, (size_t) len);
  1418. }
  1419. if (buf != mem && buf != NULL) {
  1420. free(buf);
  1421. }
  1422. return len;
  1423. }
  1424. int mg_printf(struct mg_connection *conn, const char *fmt, ...) {
  1425. va_list ap;
  1426. va_start(ap, fmt);
  1427. return mg_vprintf(conn, fmt, ap);
  1428. }
  1429. int mg_url_decode(const char *src, int src_len, char *dst,
  1430. int dst_len, int is_form_url_encoded) {
  1431. int i, j, a, b;
  1432. #define HEXTOI(x) (isdigit(x) ? x - '0' : x - 'W')
  1433. for (i = j = 0; i < src_len && j < dst_len - 1; i++, j++) {
  1434. if (src[i] == '%' && i < src_len - 2 &&
  1435. isxdigit(* (const unsigned char *) (src + i + 1)) &&
  1436. isxdigit(* (const unsigned char *) (src + i + 2))) {
  1437. a = tolower(* (const unsigned char *) (src + i + 1));
  1438. b = tolower(* (const unsigned char *) (src + i + 2));
  1439. dst[j] = (char) ((HEXTOI(a) << 4) | HEXTOI(b));
  1440. i += 2;
  1441. } else if (is_form_url_encoded && src[i] == '+') {
  1442. dst[j] = ' ';
  1443. } else {
  1444. dst[j] = src[i];
  1445. }
  1446. }
  1447. dst[j] = '\0'; // Null-terminate the destination
  1448. return i >= src_len ? j : -1;
  1449. }
  1450. int mg_get_var(const char *data, size_t data_len, const char *name,
  1451. char *dst, size_t dst_len) {
  1452. const char *p, *e, *s;
  1453. size_t name_len;
  1454. int len;
  1455. if (dst == NULL || dst_len == 0) {
  1456. len = -2;
  1457. } else if (data == NULL || name == NULL || data_len == 0) {
  1458. len = -1;
  1459. dst[0] = '\0';
  1460. } else {
  1461. name_len = strlen(name);
  1462. e = data + data_len;
  1463. len = -1;
  1464. dst[0] = '\0';
  1465. // data is "var1=val1&var2=val2...". Find variable first
  1466. for (p = data; p + name_len < e; p++) {
  1467. if ((p == data || p[-1] == '&') && p[name_len] == '=' &&
  1468. !mg_strncasecmp(name, p, name_len)) {
  1469. // Point p to variable value
  1470. p += name_len + 1;
  1471. // Point s to the end of the value
  1472. s = (const char *) memchr(p, '&', (size_t)(e - p));
  1473. if (s == NULL) {
  1474. s = e;
  1475. }
  1476. assert(s >= p);
  1477. // Decode variable into destination buffer
  1478. len = mg_url_decode(p, (size_t)(s - p), dst, dst_len, 1);
  1479. // Redirect error code from -1 to -2 (destination buffer too small).
  1480. if (len == -1) {
  1481. len = -2;
  1482. }
  1483. break;
  1484. }
  1485. }
  1486. }
  1487. return len;
  1488. }
  1489. int mg_get_cookie(const char *cookie_header, const char *var_name,
  1490. char *dst, size_t dst_size) {
  1491. const char *s, *p, *end;
  1492. int name_len, len = -1;
  1493. if (dst == NULL || dst_size == 0) {
  1494. len = -2;
  1495. } else if (var_name == NULL || (s = cookie_header) == NULL) {
  1496. len = -1;
  1497. dst[0] = '\0';
  1498. } else {
  1499. name_len = (int) strlen(var_name);
  1500. end = s + strlen(s);
  1501. dst[0] = '\0';
  1502. for (; (s = mg_strcasestr(s, var_name)) != NULL; s += name_len) {
  1503. if (s[name_len] == '=') {
  1504. s += name_len + 1;
  1505. if ((p = strchr(s, ' ')) == NULL)
  1506. p = end;
  1507. if (p[-1] == ';')
  1508. p--;
  1509. if (*s == '"' && p[-1] == '"' && p > s + 1) {
  1510. s++;
  1511. p--;
  1512. }
  1513. if ((size_t) (p - s) < dst_size) {
  1514. len = p - s;
  1515. mg_strlcpy(dst, s, (size_t) len + 1);
  1516. } else {
  1517. len = -3;
  1518. }
  1519. break;
  1520. }
  1521. }
  1522. }
  1523. return len;
  1524. }
  1525. static void convert_uri_to_file_name(struct mg_connection *conn, char *buf,
  1526. size_t buf_len, struct file *filep) {
  1527. struct vec a, b;
  1528. const char *rewrite, *uri = conn->request_info.uri,
  1529. *root = conn->ctx->config[DOCUMENT_ROOT];
  1530. char *p;
  1531. int match_len;
  1532. char gz_path[PATH_MAX];
  1533. char const* accept_encoding;
  1534. // Using buf_len - 1 because memmove() for PATH_INFO may shift part
  1535. // of the path one byte on the right.
  1536. // If document_root is NULL, leave the file empty.
  1537. mg_snprintf(conn, buf, buf_len - 1, "%s%s",
  1538. root == NULL ? "" : root,
  1539. root == NULL ? "" : uri);
  1540. rewrite = conn->ctx->config[REWRITE];
  1541. while ((rewrite = next_option(rewrite, &a, &b)) != NULL) {
  1542. if ((match_len = match_prefix(a.ptr, a.len, uri)) > 0) {
  1543. mg_snprintf(conn, buf, buf_len - 1, "%.*s%s", (int) b.len, b.ptr,
  1544. uri + match_len);
  1545. break;
  1546. }
  1547. }
  1548. if (mg_stat(conn, buf, filep)) return;
  1549. // if we can't find the actual file, look for the file
  1550. // with the same name but a .gz extension. If we find it,
  1551. // use that and set the gzipped flag in the file struct
  1552. // to indicate that the response need to have the content-
  1553. // encoding: gzip header
  1554. // we can only do this if the browser declares support
  1555. if ((accept_encoding = mg_get_header(conn, "Accept-Encoding")) != NULL) {
  1556. if (strstr(accept_encoding,"gzip") != NULL) {
  1557. snprintf(gz_path, sizeof(gz_path), "%s.gz", buf);
  1558. if (mg_stat(conn, gz_path, filep)) {
  1559. filep->gzipped = 1;
  1560. return;
  1561. }
  1562. }
  1563. }
  1564. // Support PATH_INFO for CGI scripts.
  1565. for (p = buf + strlen(buf); p > buf + 1; p--) {
  1566. if (*p == '/') {
  1567. *p = '\0';
  1568. if (match_prefix(conn->ctx->config[CGI_EXTENSIONS],
  1569. strlen(conn->ctx->config[CGI_EXTENSIONS]), buf) > 0 &&
  1570. mg_stat(conn, buf, filep)) {
  1571. // Shift PATH_INFO block one character right, e.g.
  1572. // "/x.cgi/foo/bar\x00" => "/x.cgi\x00/foo/bar\x00"
  1573. // conn->path_info is pointing to the local variable "path" declared
  1574. // in handle_request(), so PATH_INFO is not valid after
  1575. // handle_request returns.
  1576. conn->path_info = p + 1;
  1577. memmove(p + 2, p + 1, strlen(p + 1) + 1); // +1 is for trailing \0
  1578. p[1] = '/';
  1579. break;
  1580. } else {
  1581. *p = '/';
  1582. }
  1583. }
  1584. }
  1585. }
  1586. // Check whether full request is buffered. Return:
  1587. // -1 if request is malformed
  1588. // 0 if request is not yet fully buffered
  1589. // >0 actual request length, including last \r\n\r\n
  1590. static int get_request_len(const char *buf, int buflen) {
  1591. const char *s, *e;
  1592. int len = 0;
  1593. for (s = buf, e = s + buflen - 1; len <= 0 && s < e; s++)
  1594. // Control characters are not allowed but >=128 is.
  1595. if (!isprint(* (const unsigned char *) s) && *s != '\r' &&
  1596. *s != '\n' && * (const unsigned char *) s < 128) {
  1597. len = -1;
  1598. break; // [i_a] abort scan as soon as one malformed character is found;
  1599. // don't let subsequent \r\n\r\n win us over anyhow
  1600. } else if (s[0] == '\n' && s[1] == '\n') {
  1601. len = (int) (s - buf) + 2;
  1602. } else if (s[0] == '\n' && &s[1] < e &&
  1603. s[1] == '\r' && s[2] == '\n') {
  1604. len = (int) (s - buf) + 3;
  1605. }
  1606. return len;
  1607. }
  1608. // Convert month to the month number. Return -1 on error, or month number
  1609. static int get_month_index(const char *s) {
  1610. size_t i;
  1611. for (i = 0; i < ARRAY_SIZE(month_names); i++)
  1612. if (!strcmp(s, month_names[i]))
  1613. return (int) i;
  1614. return -1;
  1615. }
  1616. static int num_leap_years(int year) {
  1617. return year / 4 - year / 100 + year / 400;
  1618. }
  1619. // Parse UTC date-time string, and return the corresponding time_t value.
  1620. static time_t parse_date_string(const char *datetime) {
  1621. static const unsigned short days_before_month[] = {
  1622. 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334
  1623. };
  1624. char month_str[32];
  1625. int second, minute, hour, day, month, year, leap_days, days;
  1626. time_t result = (time_t) 0;
  1627. if (((sscanf(datetime, "%d/%3s/%d %d:%d:%d",
  1628. &day, month_str, &year, &hour, &minute, &second) == 6) ||
  1629. (sscanf(datetime, "%d %3s %d %d:%d:%d",
  1630. &day, month_str, &year, &hour, &minute, &second) == 6) ||
  1631. (sscanf(datetime, "%*3s, %d %3s %d %d:%d:%d",
  1632. &day, month_str, &year, &hour, &minute, &second) == 6) ||
  1633. (sscanf(datetime, "%d-%3s-%d %d:%d:%d",
  1634. &day, month_str, &year, &hour, &minute, &second) == 6)) &&
  1635. year > 1970 &&
  1636. (month = get_month_index(month_str)) != -1) {
  1637. leap_days = num_leap_years(year) - num_leap_years(1970);
  1638. year -= 1970;
  1639. days = year * 365 + days_before_month[month] + (day - 1) + leap_days;
  1640. result = days * 24 * 3600 + hour * 3600 + minute * 60 + second;
  1641. }
  1642. return result;
  1643. }
  1644. // Protect against directory disclosure attack by removing '..',
  1645. // excessive '/' and '\' characters
  1646. static void remove_double_dots_and_double_slashes(char *s) {
  1647. char *p = s;
  1648. while (*s != '\0') {
  1649. *p++ = *s++;
  1650. if (s[-1] == '/' || s[-1] == '\\') {
  1651. // Skip all following slashes, backslashes and double-dots
  1652. while (s[0] != '\0') {
  1653. if (s[0] == '/' || s[0] == '\\') {
  1654. s++;
  1655. } else if (s[0] == '.' && s[1] == '.') {
  1656. s += 2;
  1657. } else {
  1658. break;
  1659. }
  1660. }
  1661. }
  1662. }
  1663. *p = '\0';
  1664. }
  1665. static const struct {
  1666. const char *extension;
  1667. size_t ext_len;
  1668. const char *mime_type;
  1669. } builtin_mime_types[] = {
  1670. {".html", 5, "text/html"},
  1671. {".htm", 4, "text/html"},
  1672. {".shtm", 5, "text/html"},
  1673. {".shtml", 6, "text/html"},
  1674. {".css", 4, "text/css"},
  1675. {".js", 3, "application/x-javascript"},
  1676. {".ico", 4, "image/x-icon"},
  1677. {".gif", 4, "image/gif"},
  1678. {".jpg", 4, "image/jpeg"},
  1679. {".jpeg", 5, "image/jpeg"},
  1680. {".png", 4, "image/png"},
  1681. {".svg", 4, "image/svg+xml"},
  1682. {".txt", 4, "text/plain"},
  1683. {".torrent", 8, "application/x-bittorrent"},
  1684. {".wav", 4, "audio/x-wav"},
  1685. {".mp3", 4, "audio/x-mp3"},
  1686. {".mid", 4, "audio/mid"},
  1687. {".m3u", 4, "audio/x-mpegurl"},
  1688. {".ogg", 4, "audio/ogg"},
  1689. {".ram", 4, "audio/x-pn-realaudio"},
  1690. {".xml", 4, "text/xml"},
  1691. {".json", 5, "text/json"},
  1692. {".xslt", 5, "application/xml"},
  1693. {".xsl", 4, "application/xml"},
  1694. {".ra", 3, "audio/x-pn-realaudio"},
  1695. {".doc", 4, "application/msword"},
  1696. {".exe", 4, "application/octet-stream"},
  1697. {".zip", 4, "application/x-zip-compressed"},
  1698. {".xls", 4, "application/excel"},
  1699. {".tgz", 4, "application/x-tar-gz"},
  1700. {".tar", 4, "application/x-tar"},
  1701. {".gz", 3, "application/x-gunzip"},
  1702. {".arj", 4, "application/x-arj-compressed"},
  1703. {".rar", 4, "application/x-arj-compressed"},
  1704. {".rtf", 4, "application/rtf"},
  1705. {".pdf", 4, "application/pdf"},
  1706. {".swf", 4, "application/x-shockwave-flash"},
  1707. {".mpg", 4, "video/mpeg"},
  1708. {".webm", 5, "video/webm"},
  1709. {".mpeg", 5, "video/mpeg"},
  1710. {".mov", 4, "video/quicktime"},
  1711. {".mp4", 4, "video/mp4"},
  1712. {".m4v", 4, "video/x-m4v"},
  1713. {".asf", 4, "video/x-ms-asf"},
  1714. {".avi", 4, "video/x-msvideo"},
  1715. {".bmp", 4, "image/bmp"},
  1716. {".ttf", 4, "application/x-font-ttf"},
  1717. {NULL, 0, NULL}
  1718. };
  1719. const char *mg_get_builtin_mime_type(const char *path) {
  1720. const char *ext;
  1721. size_t i, path_len;
  1722. path_len = strlen(path);
  1723. for (i = 0; builtin_mime_types[i].extension != NULL; i++) {
  1724. ext = path + (path_len - builtin_mime_types[i].ext_len);
  1725. if (path_len > builtin_mime_types[i].ext_len &&
  1726. mg_strcasecmp(ext, builtin_mime_types[i].extension) == 0) {
  1727. return builtin_mime_types[i].mime_type;
  1728. }
  1729. }
  1730. return "text/plain";
  1731. }
  1732. // Look at the "path" extension and figure what mime type it has.
  1733. // Store mime type in the vector.
  1734. static void get_mime_type(struct mg_context *ctx, const char *path,
  1735. struct vec *vec) {
  1736. struct vec ext_vec, mime_vec;
  1737. const char *list, *ext;
  1738. size_t path_len;
  1739. path_len = strlen(path);
  1740. // Scan user-defined mime types first, in case user wants to
  1741. // override default mime types.
  1742. list = ctx->config[EXTRA_MIME_TYPES];
  1743. while ((list = next_option(list, &ext_vec, &mime_vec)) != NULL) {
  1744. // ext now points to the path suffix
  1745. ext = path + path_len - ext_vec.len;
  1746. if (mg_strncasecmp(ext, ext_vec.ptr, ext_vec.len) == 0) {
  1747. *vec = mime_vec;
  1748. return;
  1749. }
  1750. }
  1751. vec->ptr = mg_get_builtin_mime_type(path);
  1752. vec->len = strlen(vec->ptr);
  1753. }
  1754. static int is_big_endian(void) {
  1755. static const int n = 1;
  1756. return ((char *) &n)[0] == 0;
  1757. }
  1758. #ifndef HAVE_MD5
  1759. typedef struct MD5Context {
  1760. uint32_t buf[4];
  1761. uint32_t bits[2];
  1762. unsigned char in[64];
  1763. } MD5_CTX;
  1764. static void byteReverse(unsigned char *buf, unsigned longs) {
  1765. uint32_t t;
  1766. // Forrest: MD5 expect LITTLE_ENDIAN, swap if BIG_ENDIAN
  1767. if (is_big_endian()) {
  1768. do {
  1769. t = (uint32_t) ((unsigned) buf[3] << 8 | buf[2]) << 16 |
  1770. ((unsigned) buf[1] << 8 | buf[0]);
  1771. * (uint32_t *) buf = t;
  1772. buf += 4;
  1773. } while (--longs);
  1774. }
  1775. }
  1776. #define F1(x, y, z) (z ^ (x & (y ^ z)))
  1777. #define F2(x, y, z) F1(z, x, y)
  1778. #define F3(x, y, z) (x ^ y ^ z)
  1779. #define F4(x, y, z) (y ^ (x | ~z))
  1780. #define MD5STEP(f, w, x, y, z, data, s) \
  1781. ( w += f(x, y, z) + data, w = w<<s | w>>(32-s), w += x )
  1782. // Start MD5 accumulation. Set bit count to 0 and buffer to mysterious
  1783. // initialization constants.
  1784. static void MD5Init(MD5_CTX *ctx) {
  1785. ctx->buf[0] = 0x67452301;
  1786. ctx->buf[1] = 0xefcdab89;
  1787. ctx->buf[2] = 0x98badcfe;
  1788. ctx->buf[3] = 0x10325476;
  1789. ctx->bits[0] = 0;
  1790. ctx->bits[1] = 0;
  1791. }
  1792. static void MD5Transform(uint32_t buf[4], uint32_t const in[16]) {
  1793. register uint32_t a, b, c, d;
  1794. a = buf[0];
  1795. b = buf[1];
  1796. c = buf[2];
  1797. d = buf[3];
  1798. MD5STEP(F1, a, b, c, d, in[0] + 0xd76aa478, 7);
  1799. MD5STEP(F1, d, a, b, c, in[1] + 0xe8c7b756, 12);
  1800. MD5STEP(F1, c, d, a, b, in[2] + 0x242070db, 17);
  1801. MD5STEP(F1, b, c, d, a, in[3] + 0xc1bdceee, 22);
  1802. MD5STEP(F1, a, b, c, d, in[4] + 0xf57c0faf, 7);
  1803. MD5STEP(F1, d, a, b, c, in[5] + 0x4787c62a, 12);
  1804. MD5STEP(F1, c, d, a, b, in[6] + 0xa8304613, 17);
  1805. MD5STEP(F1, b, c, d, a, in[7] + 0xfd469501, 22);
  1806. MD5STEP(F1, a, b, c, d, in[8] + 0x698098d8, 7);
  1807. MD5STEP(F1, d, a, b, c, in[9] + 0x8b44f7af, 12);
  1808. MD5STEP(F1, c, d, a, b, in[10] + 0xffff5bb1, 17);
  1809. MD5STEP(F1, b, c, d, a, in[11] + 0x895cd7be, 22);
  1810. MD5STEP(F1, a, b, c, d, in[12] + 0x6b901122, 7);
  1811. MD5STEP(F1, d, a, b, c, in[13] + 0xfd987193, 12);
  1812. MD5STEP(F1, c, d, a, b, in[14] + 0xa679438e, 17);
  1813. MD5STEP(F1, b, c, d, a, in[15] + 0x49b40821, 22);
  1814. MD5STEP(F2, a, b, c, d, in[1] + 0xf61e2562, 5);
  1815. MD5STEP(F2, d, a, b, c, in[6] + 0xc040b340, 9);
  1816. MD5STEP(F2, c, d, a, b, in[11] + 0x265e5a51, 14);
  1817. MD5STEP(F2, b, c, d, a, in[0] + 0xe9b6c7aa, 20);
  1818. MD5STEP(F2, a, b, c, d, in[5] + 0xd62f105d, 5);
  1819. MD5STEP(F2, d, a, b, c, in[10] + 0x02441453, 9);
  1820. MD5STEP(F2, c, d, a, b, in[15] + 0xd8a1e681, 14);
  1821. MD5STEP(F2, b, c, d, a, in[4] + 0xe7d3fbc8, 20);
  1822. MD5STEP(F2, a, b, c, d, in[9] + 0x21e1cde6, 5);
  1823. MD5STEP(F2, d, a, b, c, in[14] + 0xc33707d6, 9);
  1824. MD5STEP(F2, c, d, a, b, in[3] + 0xf4d50d87, 14);
  1825. MD5STEP(F2, b, c, d, a, in[8] + 0x455a14ed, 20);
  1826. MD5STEP(F2, a, b, c, d, in[13] + 0xa9e3e905, 5);
  1827. MD5STEP(F2, d, a, b, c, in[2] + 0xfcefa3f8, 9);
  1828. MD5STEP(F2, c, d, a, b, in[7] + 0x676f02d9, 14);
  1829. MD5STEP(F2, b, c, d, a, in[12] + 0x8d2a4c8a, 20);
  1830. MD5STEP(F3, a, b, c, d, in[5] + 0xfffa3942, 4);
  1831. MD5STEP(F3, d, a, b, c, in[8] + 0x8771f681, 11);
  1832. MD5STEP(F3, c, d, a, b, in[11] + 0x6d9d6122, 16);
  1833. MD5STEP(F3, b, c, d, a, in[14] + 0xfde5380c, 23);
  1834. MD5STEP(F3, a, b, c, d, in[1] + 0xa4beea44, 4);
  1835. MD5STEP(F3, d, a, b, c, in[4] + 0x4bdecfa9, 11);
  1836. MD5STEP(F3, c, d, a, b, in[7] + 0xf6bb4b60, 16);
  1837. MD5STEP(F3, b, c, d, a, in[10] + 0xbebfbc70, 23);
  1838. MD5STEP(F3, a, b, c, d, in[13] + 0x289b7ec6, 4);
  1839. MD5STEP(F3, d, a, b, c, in[0] + 0xeaa127fa, 11);
  1840. MD5STEP(F3, c, d, a, b, in[3] + 0xd4ef3085, 16);
  1841. MD5STEP(F3, b, c, d, a, in[6] + 0x04881d05, 23);
  1842. MD5STEP(F3, a, b, c, d, in[9] + 0xd9d4d039, 4);
  1843. MD5STEP(F3, d, a, b, c, in[12] + 0xe6db99e5, 11);
  1844. MD5STEP(F3, c, d, a, b, in[15] + 0x1fa27cf8, 16);
  1845. MD5STEP(F3, b, c, d, a, in[2] + 0xc4ac5665, 23);
  1846. MD5STEP(F4, a, b, c, d, in[0] + 0xf4292244, 6);
  1847. MD5STEP(F4, d, a, b, c, in[7] + 0x432aff97, 10);
  1848. MD5STEP(F4, c, d, a, b, in[14] + 0xab9423a7, 15);
  1849. MD5STEP(F4, b, c, d, a, in[5] + 0xfc93a039, 21);
  1850. MD5STEP(F4, a, b, c, d, in[12] + 0x655b59c3, 6);
  1851. MD5STEP(F4, d, a, b, c, in[3] + 0x8f0ccc92, 10);
  1852. MD5STEP(F4, c, d, a, b, in[10] + 0xffeff47d, 15);
  1853. MD5STEP(F4, b, c, d, a, in[1] + 0x85845dd1, 21);
  1854. MD5STEP(F4, a, b, c, d, in[8] + 0x6fa87e4f, 6);
  1855. MD5STEP(F4, d, a, b, c, in[15] + 0xfe2ce6e0, 10);
  1856. MD5STEP(F4, c, d, a, b, in[6] + 0xa3014314, 15);
  1857. MD5STEP(F4, b, c, d, a, in[13] + 0x4e0811a1, 21);
  1858. MD5STEP(F4, a, b, c, d, in[4] + 0xf7537e82, 6);
  1859. MD5STEP(F4, d, a, b, c, in[11] + 0xbd3af235, 10);
  1860. MD5STEP(F4, c, d, a, b, in[2] + 0x2ad7d2bb, 15);
  1861. MD5STEP(F4, b, c, d, a, in[9] + 0xeb86d391, 21);
  1862. buf[0] += a;
  1863. buf[1] += b;
  1864. buf[2] += c;
  1865. buf[3] += d;
  1866. }
  1867. static void MD5Update(MD5_CTX *ctx, unsigned char const *buf, unsigned len) {
  1868. uint32_t t;
  1869. t = ctx->bits[0];
  1870. if ((ctx->bits[0] = t + ((uint32_t) len << 3)) < t)
  1871. ctx->bits[1]++;
  1872. ctx->bits[1] += len >> 29;
  1873. t = (t >> 3) & 0x3f;
  1874. if (t) {
  1875. unsigned char *p = (unsigned char *) ctx->in + t;
  1876. t = 64 - t;
  1877. if (len < t) {
  1878. memcpy(p, buf, len);
  1879. return;
  1880. }
  1881. memcpy(p, buf, t);
  1882. byteReverse(ctx->in, 16);
  1883. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  1884. buf += t;
  1885. len -= t;
  1886. }
  1887. while (len >= 64) {
  1888. memcpy(ctx->in, buf, 64);
  1889. byteReverse(ctx->in, 16);
  1890. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  1891. buf += 64;
  1892. len -= 64;
  1893. }
  1894. memcpy(ctx->in, buf, len);
  1895. }
  1896. static void MD5Final(unsigned char digest[16], MD5_CTX *ctx) {
  1897. unsigned count;
  1898. unsigned char *p;
  1899. uint32_t *a;
  1900. count = (ctx->bits[0] >> 3) & 0x3F;
  1901. p = ctx->in + count;
  1902. *p++ = 0x80;
  1903. count = 64 - 1 - count;
  1904. if (count < 8) {
  1905. memset(p, 0, count);
  1906. byteReverse(ctx->in, 16);
  1907. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  1908. memset(ctx->in, 0, 56);
  1909. } else {
  1910. memset(p, 0, count - 8);
  1911. }
  1912. byteReverse(ctx->in, 14);
  1913. a = (uint32_t *)ctx->in;
  1914. a[14] = ctx->bits[0];
  1915. a[15] = ctx->bits[1];
  1916. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  1917. byteReverse((unsigned char *) ctx->buf, 4);
  1918. memcpy(digest, ctx->buf, 16);
  1919. memset((char *) ctx, 0, sizeof(*ctx));
  1920. }
  1921. #endif // !HAVE_MD5
  1922. // Stringify binary data. Output buffer must be twice as big as input,
  1923. // because each byte takes 2 bytes in string representation
  1924. static void bin2str(char *to, const unsigned char *p, size_t len) {
  1925. static const char *hex = "0123456789abcdef";
  1926. for (; len--; p++) {
  1927. *to++ = hex[p[0] >> 4];
  1928. *to++ = hex[p[0] & 0x0f];
  1929. }
  1930. *to = '\0';
  1931. }
  1932. // Return stringified MD5 hash for list of strings. Buffer must be 33 bytes.
  1933. char *mg_md5(char buf[33], ...) {
  1934. unsigned char hash[16];
  1935. const char *p;
  1936. va_list ap;
  1937. MD5_CTX ctx;
  1938. MD5Init(&ctx);
  1939. va_start(ap, buf);
  1940. while ((p = va_arg(ap, const char *)) != NULL) {
  1941. MD5Update(&ctx, (const unsigned char *) p, (unsigned) strlen(p));
  1942. }
  1943. va_end(ap);
  1944. MD5Final(hash, &ctx);
  1945. bin2str(buf, hash, sizeof(hash));
  1946. return buf;
  1947. }
  1948. // Check the user's password, return 1 if OK
  1949. static int check_password(const char *method, const char *ha1, const char *uri,
  1950. const char *nonce, const char *nc, const char *cnonce,
  1951. const char *qop, const char *response) {
  1952. char ha2[32 + 1], expected_response[32 + 1];
  1953. // Some of the parameters may be NULL
  1954. if (method == NULL || nonce == NULL || nc == NULL || cnonce == NULL ||
  1955. qop == NULL || response == NULL) {
  1956. return 0;
  1957. }
  1958. // NOTE(lsm): due to a bug in MSIE, we do not compare the URI
  1959. // TODO(lsm): check for authentication timeout
  1960. if (// strcmp(dig->uri, c->ouri) != 0 ||
  1961. strlen(response) != 32
  1962. // || now - strtoul(dig->nonce, NULL, 10) > 3600
  1963. ) {
  1964. return 0;
  1965. }
  1966. mg_md5(ha2, method, ":", uri, NULL);
  1967. mg_md5(expected_response, ha1, ":", nonce, ":", nc,
  1968. ":", cnonce, ":", qop, ":", ha2, NULL);
  1969. return mg_strcasecmp(response, expected_response) == 0;
  1970. }
  1971. // Use the global passwords file, if specified by auth_gpass option,
  1972. // or search for .htpasswd in the requested directory.
  1973. static void open_auth_file(struct mg_connection *conn, const char *path,
  1974. struct file *filep) {
  1975. char name[PATH_MAX];
  1976. const char *p, *e, *gpass = conn->ctx->config[GLOBAL_PASSWORDS_FILE];
  1977. struct file file = STRUCT_FILE_INITIALIZER;
  1978. if (gpass != NULL) {
  1979. // Use global passwords file
  1980. if (!mg_fopen(conn, gpass, "r", filep)) {
  1981. cry(conn, "fopen(%s): %s", gpass, strerror(ERRNO));
  1982. }
  1983. // Important: using local struct file to test path for is_directory flag.
  1984. // If filep is used, mg_stat() makes it appear as if auth file was opened.
  1985. } else if (mg_stat(conn, path, &file) && file.is_directory) {
  1986. mg_snprintf(conn, name, sizeof(name), "%s%c%s",
  1987. path, '/', PASSWORDS_FILE_NAME);
  1988. mg_fopen(conn, name, "r", filep);
  1989. } else {
  1990. // Try to find .htpasswd in requested directory.
  1991. for (p = path, e = p + strlen(p) - 1; e > p; e--)
  1992. if (e[0] == '/')
  1993. break;
  1994. mg_snprintf(conn, name, sizeof(name), "%.*s%c%s",
  1995. (int) (e - p), p, '/', PASSWORDS_FILE_NAME);
  1996. mg_fopen(conn, name, "r", filep);
  1997. }
  1998. }
  1999. // Parsed Authorization header
  2000. struct ah {
  2001. char *user, *uri, *cnonce, *response, *qop, *nc, *nonce;
  2002. };
  2003. // Return 1 on success. Always initializes the ah structure.
  2004. static int parse_auth_header(struct mg_connection *conn, char *buf,
  2005. size_t buf_size, struct ah *ah) {
  2006. char *name, *value, *s;
  2007. const char *auth_header;
  2008. (void) memset(ah, 0, sizeof(*ah));
  2009. if ((auth_header = mg_get_header(conn, "Authorization")) == NULL ||
  2010. mg_strncasecmp(auth_header, "Digest ", 7) != 0) {
  2011. return 0;
  2012. }
  2013. // Make modifiable copy of the auth header
  2014. (void) mg_strlcpy(buf, auth_header + 7, buf_size);
  2015. s = buf;
  2016. // Parse authorization header
  2017. for (;;) {
  2018. // Gobble initial spaces
  2019. while (isspace(* (unsigned char *) s)) {
  2020. s++;
  2021. }
  2022. name = skip_quoted(&s, "=", " ", 0);
  2023. // Value is either quote-delimited, or ends at first comma or space.
  2024. if (s[0] == '\"') {
  2025. s++;
  2026. value = skip_quoted(&s, "\"", " ", '\\');
  2027. if (s[0] == ',') {
  2028. s++;
  2029. }
  2030. } else {
  2031. value = skip_quoted(&s, ", ", " ", 0); // IE uses commas, FF uses spaces
  2032. }
  2033. if (*name == '\0') {
  2034. break;
  2035. }
  2036. if (!strcmp(name, "username")) {
  2037. ah->user = value;
  2038. } else if (!strcmp(name, "cnonce")) {
  2039. ah->cnonce = value;
  2040. } else if (!strcmp(name, "response")) {
  2041. ah->response = value;
  2042. } else if (!strcmp(name, "uri")) {
  2043. ah->uri = value;
  2044. } else if (!strcmp(name, "qop")) {
  2045. ah->qop = value;
  2046. } else if (!strcmp(name, "nc")) {
  2047. ah->nc = value;
  2048. } else if (!strcmp(name, "nonce")) {
  2049. ah->nonce = value;
  2050. }
  2051. }
  2052. // CGI needs it as REMOTE_USER
  2053. if (ah->user != NULL) {
  2054. conn->request_info.remote_user = mg_strdup(ah->user);
  2055. } else {
  2056. return 0;
  2057. }
  2058. return 1;
  2059. }
  2060. static char *mg_fgets(char *buf, size_t size, struct file *filep, char **p) {
  2061. char *eof;
  2062. size_t len;
  2063. if (filep->membuf != NULL && *p != NULL) {
  2064. eof = (char *) memchr(*p, '\n', &filep->membuf[filep->size] - *p);
  2065. len = (size_t) (eof - *p) > size - 1 ? size - 1 : (size_t) (eof - *p);
  2066. memcpy(buf, *p, len);
  2067. buf[len] = '\0';
  2068. *p = eof;
  2069. return eof;
  2070. } else if (filep->fp != NULL) {
  2071. return fgets(buf, size, filep->fp);
  2072. } else {
  2073. return NULL;
  2074. }
  2075. }
  2076. // Authorize against the opened passwords file. Return 1 if authorized.
  2077. static int authorize(struct mg_connection *conn, struct file *filep) {
  2078. struct ah ah;
  2079. char line[256], f_user[256], ha1[256], f_domain[256], buf[MG_BUF_LEN], *p;
  2080. if (!parse_auth_header(conn, buf, sizeof(buf), &ah)) {
  2081. return 0;
  2082. }
  2083. // Loop over passwords file
  2084. p = (char *) filep->membuf;
  2085. while (mg_fgets(line, sizeof(line), filep, &p) != NULL) {
  2086. if (sscanf(line, "%[^:]:%[^:]:%s", f_user, f_domain, ha1) != 3) {
  2087. continue;
  2088. }
  2089. if (!strcmp(ah.user, f_user) &&
  2090. !strcmp(conn->ctx->config[AUTHENTICATION_DOMAIN], f_domain))
  2091. return check_password(conn->request_info.request_method, ha1, ah.uri,
  2092. ah.nonce, ah.nc, ah.cnonce, ah.qop, ah.response);
  2093. }
  2094. return 0;
  2095. }
  2096. // Return 1 if request is authorised, 0 otherwise.
  2097. static int check_authorization(struct mg_connection *conn, const char *path) {
  2098. char fname[PATH_MAX];
  2099. struct vec uri_vec, filename_vec;
  2100. const char *list;
  2101. struct file file = STRUCT_FILE_INITIALIZER;
  2102. int authorized = 1;
  2103. list = conn->ctx->config[PROTECT_URI];
  2104. while ((list = next_option(list, &uri_vec, &filename_vec)) != NULL) {
  2105. if (!memcmp(conn->request_info.uri, uri_vec.ptr, uri_vec.len)) {
  2106. mg_snprintf(conn, fname, sizeof(fname), "%.*s",
  2107. (int) filename_vec.len, filename_vec.ptr);
  2108. if (!mg_fopen(conn, fname, "r", &file)) {
  2109. cry(conn, "%s: cannot open %s: %s", __func__, fname, strerror(errno));
  2110. }
  2111. break;
  2112. }
  2113. }
  2114. if (!is_file_opened(&file)) {
  2115. open_auth_file(conn, path, &file);
  2116. }
  2117. if (is_file_opened(&file)) {
  2118. authorized = authorize(conn, &file);
  2119. mg_fclose(&file);
  2120. }
  2121. return authorized;
  2122. }
  2123. static void send_authorization_request(struct mg_connection *conn) {
  2124. conn->status_code = 401;
  2125. mg_printf(conn,
  2126. "HTTP/1.1 401 Unauthorized\r\n"
  2127. "Content-Length: 0\r\n"
  2128. "WWW-Authenticate: Digest qop=\"auth\", "
  2129. "realm=\"%s\", nonce=\"%lu\"\r\n\r\n",
  2130. conn->ctx->config[AUTHENTICATION_DOMAIN],
  2131. (unsigned long) time(NULL));
  2132. }
  2133. static int is_authorized_for_put(struct mg_connection *conn) {
  2134. struct file file = STRUCT_FILE_INITIALIZER;
  2135. const char *passfile = conn->ctx->config[PUT_DELETE_PASSWORDS_FILE];
  2136. int ret = 0;
  2137. if (passfile != NULL && mg_fopen(conn, passfile, "r", &file)) {
  2138. ret = authorize(conn, &file);
  2139. mg_fclose(&file);
  2140. }
  2141. return ret;
  2142. }
  2143. int mg_modify_passwords_file(const char *fname, const char *domain,
  2144. const char *user, const char *pass) {
  2145. int found;
  2146. char line[512], u[512], d[512], ha1[33], tmp[PATH_MAX];
  2147. FILE *fp, *fp2;
  2148. found = 0;
  2149. fp = fp2 = NULL;
  2150. // Regard empty password as no password - remove user record.
  2151. if (pass != NULL && pass[0] == '\0') {
  2152. pass = NULL;
  2153. }
  2154. (void) snprintf(tmp, sizeof(tmp), "%s.tmp", fname);
  2155. // Create the file if does not exist
  2156. if ((fp = fopen(fname, "a+")) != NULL) {
  2157. (void) fclose(fp);
  2158. }
  2159. // Open the given file and temporary file
  2160. if ((fp = fopen(fname, "r")) == NULL) {
  2161. return 0;
  2162. } else if ((fp2 = fopen(tmp, "w+")) == NULL) {
  2163. fclose(fp);
  2164. return 0;
  2165. }
  2166. // Copy the stuff to temporary file
  2167. while (fgets(line, sizeof(line), fp) != NULL) {
  2168. if (sscanf(line, "%[^:]:%[^:]:%*s", u, d) != 2) {
  2169. continue;
  2170. }
  2171. if (!strcmp(u, user) && !strcmp(d, domain)) {
  2172. found++;
  2173. if (pass != NULL) {
  2174. mg_md5(ha1, user, ":", domain, ":", pass, NULL);
  2175. fprintf(fp2, "%s:%s:%s\n", user, domain, ha1);
  2176. }
  2177. } else {
  2178. fprintf(fp2, "%s", line);
  2179. }
  2180. }
  2181. // If new user, just add it
  2182. if (!found && pass != NULL) {
  2183. mg_md5(ha1, user, ":", domain, ":", pass, NULL);
  2184. fprintf(fp2, "%s:%s:%s\n", user, domain, ha1);
  2185. }
  2186. // Close files
  2187. fclose(fp);
  2188. fclose(fp2);
  2189. // Put the temp file in place of real file
  2190. remove(fname);
  2191. rename(tmp, fname);
  2192. return 1;
  2193. }
  2194. static SOCKET conn2(const char *host, int port, int use_ssl,
  2195. char *ebuf, size_t ebuf_len) {
  2196. struct sockaddr_in sin;
  2197. struct hostent *he;
  2198. SOCKET sock = INVALID_SOCKET;
  2199. if (host == NULL) {
  2200. snprintf(ebuf, ebuf_len, "%s", "NULL host");
  2201. } else if (use_ssl && SSLv23_client_method == NULL) {
  2202. snprintf(ebuf, ebuf_len, "%s", "SSL is not initialized");
  2203. // TODO(lsm): use something threadsafe instead of gethostbyname()
  2204. } else if ((he = gethostbyname(host)) == NULL) {
  2205. snprintf(ebuf, ebuf_len, "gethostbyname(%s): %s", host, strerror(ERRNO));
  2206. } else if ((sock = socket(PF_INET, SOCK_STREAM, 0)) == INVALID_SOCKET) {
  2207. snprintf(ebuf, ebuf_len, "socket(): %s", strerror(ERRNO));
  2208. } else {
  2209. set_close_on_exec(sock);
  2210. sin.sin_family = AF_INET;
  2211. sin.sin_port = htons((uint16_t) port);
  2212. sin.sin_addr = * (struct in_addr *) he->h_addr_list[0];
  2213. if (connect(sock, (struct sockaddr *) &sin, sizeof(sin)) != 0) {
  2214. snprintf(ebuf, ebuf_len, "connect(%s:%d): %s",
  2215. host, port, strerror(ERRNO));
  2216. closesocket(sock);
  2217. sock = INVALID_SOCKET;
  2218. }
  2219. }
  2220. return sock;
  2221. }
  2222. void mg_url_encode(const char *src, char *dst, size_t dst_len) {
  2223. static const char *dont_escape = "._-$,;~()";
  2224. static const char *hex = "0123456789abcdef";
  2225. const char *end = dst + dst_len - 1;
  2226. for (; *src != '\0' && dst < end; src++, dst++) {
  2227. if (isalnum(*(const unsigned char *) src) ||
  2228. strchr(dont_escape, * (const unsigned char *) src) != NULL) {
  2229. *dst = *src;
  2230. } else if (dst + 2 < end) {
  2231. dst[0] = '%';
  2232. dst[1] = hex[(* (const unsigned char *) src) >> 4];
  2233. dst[2] = hex[(* (const unsigned char *) src) & 0xf];
  2234. dst += 2;
  2235. }
  2236. }
  2237. *dst = '\0';
  2238. }
  2239. static void print_dir_entry(struct de *de) {
  2240. char size[64], mod[64], href[PATH_MAX];
  2241. if (de->file.is_directory) {
  2242. mg_snprintf(de->conn, size, sizeof(size), "%s", "[DIRECTORY]");
  2243. } else {
  2244. // We use (signed) cast below because MSVC 6 compiler cannot
  2245. // convert unsigned __int64 to double. Sigh.
  2246. if (de->file.size < 1024) {
  2247. mg_snprintf(de->conn, size, sizeof(size), "%d", (int) de->file.size);
  2248. } else if (de->file.size < 0x100000) {
  2249. mg_snprintf(de->conn, size, sizeof(size),
  2250. "%.1fk", (double) de->file.size / 1024.0);
  2251. } else if (de->file.size < 0x40000000) {
  2252. mg_snprintf(de->conn, size, sizeof(size),
  2253. "%.1fM", (double) de->file.size / 1048576);
  2254. } else {
  2255. mg_snprintf(de->conn, size, sizeof(size),
  2256. "%.1fG", (double) de->file.size / 1073741824);
  2257. }
  2258. }
  2259. strftime(mod, sizeof(mod), "%d-%b-%Y %H:%M",
  2260. localtime(&de->file.modification_time));
  2261. mg_url_encode(de->file_name, href, sizeof(href));
  2262. de->conn->num_bytes_sent += mg_printf(de->conn,
  2263. "<tr><td><a href=\"%s%s%s\">%s%s</a></td>"
  2264. "<td>&nbsp;%s</td><td>&nbsp;&nbsp;%s</td></tr>\n",
  2265. de->conn->request_info.uri, href, de->file.is_directory ? "/" : "",
  2266. de->file_name, de->file.is_directory ? "/" : "", mod, size);
  2267. }
  2268. // This function is called from send_directory() and used for
  2269. // sorting directory entries by size, or name, or modification time.
  2270. // On windows, __cdecl specification is needed in case if project is built
  2271. // with __stdcall convention. qsort always requires __cdels callback.
  2272. static int WINCDECL compare_dir_entries(const void *p1, const void *p2) {
  2273. const struct de *a = (const struct de *) p1, *b = (const struct de *) p2;
  2274. const char *query_string = a->conn->request_info.query_string;
  2275. int cmp_result = 0;
  2276. if (query_string == NULL) {
  2277. query_string = "na";
  2278. }
  2279. if (a->file.is_directory && !b->file.is_directory) {
  2280. return -1; // Always put directories on top
  2281. } else if (!a->file.is_directory && b->file.is_directory) {
  2282. return 1; // Always put directories on top
  2283. } else if (*query_string == 'n') {
  2284. cmp_result = strcmp(a->file_name, b->file_name);
  2285. } else if (*query_string == 's') {
  2286. cmp_result = a->file.size == b->file.size ? 0 :
  2287. a->file.size > b->file.size ? 1 : -1;
  2288. } else if (*query_string == 'd') {
  2289. cmp_result = a->file.modification_time == b->file.modification_time ? 0 :
  2290. a->file.modification_time > b->file.modification_time ? 1 : -1;
  2291. }
  2292. return query_string[1] == 'd' ? -cmp_result : cmp_result;
  2293. }
  2294. static int must_hide_file(struct mg_connection *conn, const char *path) {
  2295. const char *pw_pattern = "**" PASSWORDS_FILE_NAME "$";
  2296. const char *pattern = conn->ctx->config[HIDE_FILES];
  2297. return match_prefix(pw_pattern, strlen(pw_pattern), path) > 0 ||
  2298. (pattern != NULL && match_prefix(pattern, strlen(pattern), path) > 0);
  2299. }
  2300. static int scan_directory(struct mg_connection *conn, const char *dir,
  2301. void *data, void (*cb)(struct de *, void *)) {
  2302. char path[PATH_MAX];
  2303. struct dirent *dp;
  2304. DIR *dirp;
  2305. struct de de;
  2306. if ((dirp = opendir(dir)) == NULL) {
  2307. return 0;
  2308. } else {
  2309. de.conn = conn;
  2310. while ((dp = readdir(dirp)) != NULL) {
  2311. // Do not show current dir and hidden files
  2312. if (!strcmp(dp->d_name, ".") ||
  2313. !strcmp(dp->d_name, "..") ||
  2314. must_hide_file(conn, dp->d_name)) {
  2315. continue;
  2316. }
  2317. mg_snprintf(conn, path, sizeof(path), "%s%c%s", dir, '/', dp->d_name);
  2318. // If we don't memset stat structure to zero, mtime will have
  2319. // garbage and strftime() will segfault later on in
  2320. // print_dir_entry(). memset is required only if mg_stat()
  2321. // fails. For more details, see
  2322. // http://code.google.com/p/mongoose/issues/detail?id=79
  2323. memset(&de.file, 0, sizeof(de.file));
  2324. mg_stat(conn, path, &de.file);
  2325. de.file_name = dp->d_name;
  2326. cb(&de, data);
  2327. }
  2328. (void) closedir(dirp);
  2329. }
  2330. return 1;
  2331. }
  2332. static int remove_directory(struct mg_connection *conn, const char *dir) {
  2333. char path[PATH_MAX];
  2334. struct dirent *dp;
  2335. DIR *dirp;
  2336. struct de de;
  2337. if ((dirp = opendir(dir)) == NULL) {
  2338. return 0;
  2339. } else {
  2340. de.conn = conn;
  2341. while ((dp = readdir(dirp)) != NULL) {
  2342. // Do not show current dir (but show hidden files as they will also be removed)
  2343. if (!strcmp(dp->d_name, ".") ||
  2344. !strcmp(dp->d_name, "..")) {
  2345. continue;
  2346. }
  2347. mg_snprintf(conn, path, sizeof(path), "%s%c%s", dir, '/', dp->d_name);
  2348. // If we don't memset stat structure to zero, mtime will have
  2349. // garbage and strftime() will segfault later on in
  2350. // print_dir_entry(). memset is required only if mg_stat()
  2351. // fails. For more details, see
  2352. // http://code.google.com/p/mongoose/issues/detail?id=79
  2353. memset(&de.file, 0, sizeof(de.file));
  2354. mg_stat(conn, path, &de.file);
  2355. if(de.file.modification_time) {
  2356. if(de.file.is_directory) {
  2357. remove_directory(conn, path);
  2358. } else {
  2359. mg_remove(path);
  2360. }
  2361. }
  2362. }
  2363. (void) closedir(dirp);
  2364. rmdir(dir);
  2365. }
  2366. return 1;
  2367. }
  2368. struct dir_scan_data {
  2369. struct de *entries;
  2370. int num_entries;
  2371. int arr_size;
  2372. };
  2373. // Behaves like realloc(), but frees original pointer on failure
  2374. static void *realloc2(void *ptr, size_t size) {
  2375. void *new_ptr = realloc(ptr, size);
  2376. if (new_ptr == NULL) {
  2377. free(ptr);
  2378. }
  2379. return new_ptr;
  2380. }
  2381. static void dir_scan_callback(struct de *de, void *data) {
  2382. struct dir_scan_data *dsd = (struct dir_scan_data *) data;
  2383. if (dsd->entries == NULL || dsd->num_entries >= dsd->arr_size) {
  2384. dsd->arr_size *= 2;
  2385. dsd->entries = (struct de *) realloc2(dsd->entries, dsd->arr_size *
  2386. sizeof(dsd->entries[0]));
  2387. }
  2388. if (dsd->entries == NULL) {
  2389. // TODO(lsm): propagate an error to the caller
  2390. dsd->num_entries = 0;
  2391. } else {
  2392. dsd->entries[dsd->num_entries].file_name = mg_strdup(de->file_name);
  2393. dsd->entries[dsd->num_entries].file = de->file;
  2394. dsd->entries[dsd->num_entries].conn = de->conn;
  2395. dsd->num_entries++;
  2396. }
  2397. }
  2398. static void handle_directory_request(struct mg_connection *conn,
  2399. const char *dir) {
  2400. int i, sort_direction;
  2401. struct dir_scan_data data = { NULL, 0, 128 };
  2402. if (!scan_directory(conn, dir, &data, dir_scan_callback)) {
  2403. send_http_error(conn, 500, "Cannot open directory",
  2404. "Error: opendir(%s): %s", dir, strerror(ERRNO));
  2405. return;
  2406. }
  2407. sort_direction = conn->request_info.query_string != NULL &&
  2408. conn->request_info.query_string[1] == 'd' ? 'a' : 'd';
  2409. conn->must_close = 1;
  2410. mg_printf(conn, "%s",
  2411. "HTTP/1.1 200 OK\r\n"
  2412. "Connection: close\r\n"
  2413. "Content-Type: text/html; charset=utf-8\r\n\r\n");
  2414. conn->num_bytes_sent += mg_printf(conn,
  2415. "<html><head><title>Index of %s</title>"
  2416. "<style>th {text-align: left;}</style></head>"
  2417. "<body><h1>Index of %s</h1><pre><table cellpadding=\"0\">"
  2418. "<tr><th><a href=\"?n%c\">Name</a></th>"
  2419. "<th><a href=\"?d%c\">Modified</a></th>"
  2420. "<th><a href=\"?s%c\">Size</a></th></tr>"
  2421. "<tr><td colspan=\"3\"><hr></td></tr>",
  2422. conn->request_info.uri, conn->request_info.uri,
  2423. sort_direction, sort_direction, sort_direction);
  2424. // Print first entry - link to a parent directory
  2425. conn->num_bytes_sent += mg_printf(conn,
  2426. "<tr><td><a href=\"%s%s\">%s</a></td>"
  2427. "<td>&nbsp;%s</td><td>&nbsp;&nbsp;%s</td></tr>\n",
  2428. conn->request_info.uri, "..", "Parent directory", "-", "-");
  2429. // Sort and print directory entries
  2430. qsort(data.entries, (size_t) data.num_entries, sizeof(data.entries[0]),
  2431. compare_dir_entries);
  2432. for (i = 0; i < data.num_entries; i++) {
  2433. print_dir_entry(&data.entries[i]);
  2434. free(data.entries[i].file_name);
  2435. }
  2436. free(data.entries);
  2437. conn->num_bytes_sent += mg_printf(conn, "%s", "</table></body></html>");
  2438. conn->status_code = 200;
  2439. }
  2440. // Send len bytes from the opened file to the client.
  2441. static void send_file_data(struct mg_connection *conn, struct file *filep,
  2442. int64_t offset, int64_t len) {
  2443. char buf[MG_BUF_LEN];
  2444. int to_read, num_read, num_written;
  2445. // Sanity check the offset
  2446. offset = offset < 0 ? 0 : offset > filep->size ? filep->size : offset;
  2447. if (len > 0 && filep->membuf != NULL && filep->size > 0) {
  2448. if (len > filep->size - offset) {
  2449. len = filep->size - offset;
  2450. }
  2451. mg_write(conn, filep->membuf + offset, (size_t) len);
  2452. } else if (len > 0 && filep->fp != NULL) {
  2453. fseeko(filep->fp, offset, SEEK_SET);
  2454. while (len > 0) {
  2455. // Calculate how much to read from the file in the buffer
  2456. to_read = sizeof(buf);
  2457. if ((int64_t) to_read > len) {
  2458. to_read = (int) len;
  2459. }
  2460. // Read from file, exit the loop on error
  2461. if ((num_read = fread(buf, 1, (size_t) to_read, filep->fp)) <= 0) {
  2462. break;
  2463. }
  2464. // Send read bytes to the client, exit the loop on error
  2465. if ((num_written = mg_write(conn, buf, (size_t) num_read)) != num_read) {
  2466. break;
  2467. }
  2468. // Both read and were successful, adjust counters
  2469. conn->num_bytes_sent += num_written;
  2470. len -= num_written;
  2471. }
  2472. }
  2473. }
  2474. static int parse_range_header(const char *header, int64_t *a, int64_t *b) {
  2475. return sscanf(header, "bytes=%" INT64_FMT "-%" INT64_FMT, a, b);
  2476. }
  2477. static void gmt_time_string(char *buf, size_t buf_len, time_t *t) {
  2478. strftime(buf, buf_len, "%a, %d %b %Y %H:%M:%S GMT", gmtime(t));
  2479. }
  2480. static void construct_etag(char *buf, size_t buf_len,
  2481. const struct file *filep) {
  2482. snprintf(buf, buf_len, "\"%lx.%" INT64_FMT "\"",
  2483. (unsigned long) filep->modification_time, filep->size);
  2484. }
  2485. static void fclose_on_exec(struct file *filep) {
  2486. if (filep != NULL && filep->fp != NULL) {
  2487. #ifndef _WIN32
  2488. fcntl(fileno(filep->fp), F_SETFD, FD_CLOEXEC);
  2489. #endif
  2490. }
  2491. }
  2492. static void handle_file_request(struct mg_connection *conn, const char *path,
  2493. struct file *filep) {
  2494. char date[64], lm[64], etag[64], range[64];
  2495. const char *msg = "OK", *hdr;
  2496. time_t curtime = time(NULL);
  2497. int64_t cl, r1, r2;
  2498. struct vec mime_vec;
  2499. int n;
  2500. char gz_path[PATH_MAX];
  2501. char const* encoding = "";
  2502. get_mime_type(conn->ctx, path, &mime_vec);
  2503. cl = filep->size;
  2504. conn->status_code = 200;
  2505. range[0] = '\0';
  2506. // if this file is in fact a pre-gzipped file, rewrite its filename
  2507. // it's important to rewrite the filename after resolving
  2508. // the mime type from it, to preserve the actual file's type
  2509. if (filep->gzipped) {
  2510. snprintf(gz_path, sizeof(gz_path), "%s.gz", path);
  2511. path = gz_path;
  2512. encoding = "Content-Encoding: gzip\r\n";
  2513. }
  2514. if (!mg_fopen(conn, path, "rb", filep)) {
  2515. send_http_error(conn, 500, http_500_error,
  2516. "fopen(%s): %s", path, strerror(ERRNO));
  2517. return;
  2518. }
  2519. fclose_on_exec(filep);
  2520. // If Range: header specified, act accordingly
  2521. r1 = r2 = 0;
  2522. hdr = mg_get_header(conn, "Range");
  2523. if (hdr != NULL && (n = parse_range_header(hdr, &r1, &r2)) > 0 &&
  2524. r1 >= 0 && r2 >= 0) {
  2525. // actually, range requests don't play well with a pre-gzipped
  2526. // file (since the range is specified in the uncmpressed space)
  2527. if (filep->gzipped) {
  2528. send_http_error(conn, 501, "Not Implemented", "range requests in gzipped files are not supported");
  2529. return;
  2530. }
  2531. conn->status_code = 206;
  2532. cl = n == 2 ? (r2 > cl ? cl : r2) - r1 + 1: cl - r1;
  2533. mg_snprintf(conn, range, sizeof(range),
  2534. "Content-Range: bytes "
  2535. "%" INT64_FMT "-%"
  2536. INT64_FMT "/%" INT64_FMT "\r\n",
  2537. r1, r1 + cl - 1, filep->size);
  2538. msg = "Partial Content";
  2539. }
  2540. // Prepare Etag, Date, Last-Modified headers. Must be in UTC, according to
  2541. // http://www.w3.org/Protocols/rfc2616/rfc2616-sec3.html#sec3.3
  2542. gmt_time_string(date, sizeof(date), &curtime);
  2543. gmt_time_string(lm, sizeof(lm), &filep->modification_time);
  2544. construct_etag(etag, sizeof(etag), filep);
  2545. (void) mg_printf(conn,
  2546. "HTTP/1.1 %d %s\r\n"
  2547. "Date: %s\r\n"
  2548. "Last-Modified: %s\r\n"
  2549. "Etag: %s\r\n"
  2550. "Content-Type: %.*s\r\n"
  2551. "Content-Length: %" INT64_FMT "\r\n"
  2552. "Connection: %s\r\n"
  2553. "Accept-Ranges: bytes\r\n"
  2554. "%s%s\r\n",
  2555. conn->status_code, msg, date, lm, etag, (int) mime_vec.len,
  2556. mime_vec.ptr, cl, suggest_connection_header(conn), range, encoding);
  2557. if (strcmp(conn->request_info.request_method, "HEAD") != 0) {
  2558. send_file_data(conn, filep, r1, cl);
  2559. }
  2560. mg_fclose(filep);
  2561. }
  2562. void mg_send_file(struct mg_connection *conn, const char *path) {
  2563. struct file file = STRUCT_FILE_INITIALIZER;
  2564. if (mg_stat(conn, path, &file)) {
  2565. handle_file_request(conn, path, &file);
  2566. } else {
  2567. send_http_error(conn, 404, "Not Found", "%s", "File not found");
  2568. }
  2569. }
  2570. // Parse HTTP headers from the given buffer, advance buffer to the point
  2571. // where parsing stopped.
  2572. static void parse_http_headers(char **buf, struct mg_request_info *ri) {
  2573. int i;
  2574. for (i = 0; i < (int) ARRAY_SIZE(ri->http_headers); i++) {
  2575. ri->http_headers[i].name = skip_quoted(buf, ":", " ", 0);
  2576. ri->http_headers[i].value = skip(buf, "\r\n");
  2577. if (ri->http_headers[i].name[0] == '\0')
  2578. break;
  2579. ri->num_headers = i + 1;
  2580. }
  2581. }
  2582. static int is_valid_http_method(const char *method) {
  2583. return !strcmp(method, "GET") || !strcmp(method, "POST") ||
  2584. !strcmp(method, "HEAD") || !strcmp(method, "CONNECT") ||
  2585. !strcmp(method, "PUT") || !strcmp(method, "DELETE") ||
  2586. !strcmp(method, "OPTIONS") || !strcmp(method, "PROPFIND")
  2587. || !strcmp(method, "MKCOL")
  2588. ;
  2589. }
  2590. // Parse HTTP request, fill in mg_request_info structure.
  2591. // This function modifies the buffer by NUL-terminating
  2592. // HTTP request components, header names and header values.
  2593. static int parse_http_message(char *buf, int len, struct mg_request_info *ri) {
  2594. int is_request, request_length = get_request_len(buf, len);
  2595. if (request_length > 0) {
  2596. // Reset attributes. DO NOT TOUCH is_ssl, remote_ip, remote_port
  2597. ri->remote_user = ri->request_method = ri->uri = ri->http_version = NULL;
  2598. ri->num_headers = 0;
  2599. buf[request_length - 1] = '\0';
  2600. // RFC says that all initial whitespaces should be ingored
  2601. while (*buf != '\0' && isspace(* (unsigned char *) buf)) {
  2602. buf++;
  2603. }
  2604. ri->request_method = skip(&buf, " ");
  2605. ri->uri = skip(&buf, " ");
  2606. ri->http_version = skip(&buf, "\r\n");
  2607. if (((is_request = is_valid_http_method(ri->request_method)) &&
  2608. memcmp(ri->http_version, "HTTP/", 5) != 0) ||
  2609. (!is_request && memcmp(ri->request_method, "HTTP/", 5)) != 0) {
  2610. request_length = -1;
  2611. } else {
  2612. if (is_request) {
  2613. ri->http_version += 5;
  2614. }
  2615. parse_http_headers(&buf, ri);
  2616. }
  2617. }
  2618. return request_length;
  2619. }
  2620. // Keep reading the input (either opened file descriptor fd, or socket sock,
  2621. // or SSL descriptor ssl) into buffer buf, until \r\n\r\n appears in the
  2622. // buffer (which marks the end of HTTP request). Buffer buf may already
  2623. // have some data. The length of the data is stored in nread.
  2624. // Upon every read operation, increase nread by the number of bytes read.
  2625. static int read_request(FILE *fp, struct mg_connection *conn,
  2626. char *buf, int bufsiz, int *nread) {
  2627. int request_len, n = 0;
  2628. request_len = get_request_len(buf, *nread);
  2629. while (conn->ctx->stop_flag == 0 &&
  2630. *nread < bufsiz && request_len == 0 &&
  2631. (n = pull(fp, conn, buf + *nread, bufsiz - *nread)) > 0) {
  2632. *nread += n;
  2633. assert(*nread <= bufsiz);
  2634. request_len = get_request_len(buf, *nread);
  2635. }
  2636. return request_len <= 0 && n <= 0 ? -1 : request_len;
  2637. }
  2638. // For given directory path, substitute it to valid index file.
  2639. // Return 0 if index file has been found, -1 if not found.
  2640. // If the file is found, it's stats is returned in stp.
  2641. static int substitute_index_file(struct mg_connection *conn, char *path,
  2642. size_t path_len, struct file *filep) {
  2643. const char *list = conn->ctx->config[INDEX_FILES];
  2644. struct file file = STRUCT_FILE_INITIALIZER;
  2645. struct vec filename_vec;
  2646. size_t n = strlen(path);
  2647. int found = 0;
  2648. // The 'path' given to us points to the directory. Remove all trailing
  2649. // directory separator characters from the end of the path, and
  2650. // then append single directory separator character.
  2651. while (n > 0 && path[n - 1] == '/') {
  2652. n--;
  2653. }
  2654. path[n] = '/';
  2655. // Traverse index files list. For each entry, append it to the given
  2656. // path and see if the file exists. If it exists, break the loop
  2657. while ((list = next_option(list, &filename_vec, NULL)) != NULL) {
  2658. // Ignore too long entries that may overflow path buffer
  2659. if (filename_vec.len > path_len - (n + 2))
  2660. continue;
  2661. // Prepare full path to the index file
  2662. mg_strlcpy(path + n + 1, filename_vec.ptr, filename_vec.len + 1);
  2663. // Does it exist?
  2664. if (mg_stat(conn, path, &file)) {
  2665. // Yes it does, break the loop
  2666. *filep = file;
  2667. found = 1;
  2668. break;
  2669. }
  2670. }
  2671. // If no index file exists, restore directory path
  2672. if (!found) {
  2673. path[n] = '\0';
  2674. }
  2675. return found;
  2676. }
  2677. // Return True if we should reply 304 Not Modified.
  2678. static int is_not_modified(const struct mg_connection *conn,
  2679. const struct file *filep) {
  2680. char etag[64];
  2681. const char *ims = mg_get_header(conn, "If-Modified-Since");
  2682. const char *inm = mg_get_header(conn, "If-None-Match");
  2683. construct_etag(etag, sizeof(etag), filep);
  2684. return (inm != NULL && !mg_strcasecmp(etag, inm)) ||
  2685. (ims != NULL && filep->modification_time <= parse_date_string(ims));
  2686. }
  2687. static int forward_body_data(struct mg_connection *conn, FILE *fp,
  2688. SOCKET sock, SSL *ssl) {
  2689. const char *expect, *body;
  2690. char buf[MG_BUF_LEN];
  2691. int to_read, nread, buffered_len, success = 0;
  2692. expect = mg_get_header(conn, "Expect");
  2693. assert(fp != NULL);
  2694. if (conn->content_len == -1) {
  2695. send_http_error(conn, 411, "Length Required", "%s", "");
  2696. } else if (expect != NULL && mg_strcasecmp(expect, "100-continue")) {
  2697. send_http_error(conn, 417, "Expectation Failed", "%s", "");
  2698. } else {
  2699. if (expect != NULL) {
  2700. (void) mg_printf(conn, "%s", "HTTP/1.1 100 Continue\r\n\r\n");
  2701. }
  2702. body = conn->buf + conn->request_len + conn->consumed_content;
  2703. buffered_len = &conn->buf[conn->data_len] - body;
  2704. assert(buffered_len >= 0);
  2705. assert(conn->consumed_content == 0);
  2706. if (buffered_len > 0) {
  2707. if ((int64_t) buffered_len > conn->content_len) {
  2708. buffered_len = (int) conn->content_len;
  2709. }
  2710. push(fp, sock, ssl, body, (int64_t) buffered_len);
  2711. conn->consumed_content += buffered_len;
  2712. }
  2713. nread = 0;
  2714. while (conn->consumed_content < conn->content_len) {
  2715. to_read = sizeof(buf);
  2716. if ((int64_t) to_read > conn->content_len - conn->consumed_content) {
  2717. to_read = (int) (conn->content_len - conn->consumed_content);
  2718. }
  2719. nread = pull(NULL, conn, buf, to_read);
  2720. if (nread <= 0 || push(fp, sock, ssl, buf, nread) != nread) {
  2721. break;
  2722. }
  2723. conn->consumed_content += nread;
  2724. }
  2725. if (conn->consumed_content == conn->content_len) {
  2726. success = nread >= 0;
  2727. }
  2728. // Each error code path in this function must send an error
  2729. if (!success) {
  2730. send_http_error(conn, 577, http_500_error, "%s", "");
  2731. }
  2732. }
  2733. return success;
  2734. }
  2735. #if !defined(NO_CGI)
  2736. // This structure helps to create an environment for the spawned CGI program.
  2737. // Environment is an array of "VARIABLE=VALUE\0" ASCIIZ strings,
  2738. // last element must be NULL.
  2739. // However, on Windows there is a requirement that all these VARIABLE=VALUE\0
  2740. // strings must reside in a contiguous buffer. The end of the buffer is
  2741. // marked by two '\0' characters.
  2742. // We satisfy both worlds: we create an envp array (which is vars), all
  2743. // entries are actually pointers inside buf.
  2744. struct cgi_env_block {
  2745. struct mg_connection *conn;
  2746. char buf[CGI_ENVIRONMENT_SIZE]; // Environment buffer
  2747. int len; // Space taken
  2748. char *vars[MAX_CGI_ENVIR_VARS]; // char **envp
  2749. int nvars; // Number of variables
  2750. };
  2751. static char *addenv(struct cgi_env_block *block,
  2752. PRINTF_FORMAT_STRING(const char *fmt), ...)
  2753. PRINTF_ARGS(2, 3);
  2754. // Append VARIABLE=VALUE\0 string to the buffer, and add a respective
  2755. // pointer into the vars array.
  2756. static char *addenv(struct cgi_env_block *block, const char *fmt, ...) {
  2757. int n, space;
  2758. char *added;
  2759. va_list ap;
  2760. // Calculate how much space is left in the buffer
  2761. space = sizeof(block->buf) - block->len - 2;
  2762. assert(space >= 0);
  2763. // Make a pointer to the free space int the buffer
  2764. added = block->buf + block->len;
  2765. // Copy VARIABLE=VALUE\0 string into the free space
  2766. va_start(ap, fmt);
  2767. n = mg_vsnprintf(block->conn, added, (size_t) space, fmt, ap);
  2768. va_end(ap);
  2769. // Make sure we do not overflow buffer and the envp array
  2770. if (n > 0 && n + 1 < space &&
  2771. block->nvars < (int) ARRAY_SIZE(block->vars) - 2) {
  2772. // Append a pointer to the added string into the envp array
  2773. block->vars[block->nvars++] = added;
  2774. // Bump up used length counter. Include \0 terminator
  2775. block->len += n + 1;
  2776. } else {
  2777. cry(block->conn, "%s: CGI env buffer truncated for [%s]", __func__, fmt);
  2778. }
  2779. return added;
  2780. }
  2781. static void prepare_cgi_environment(struct mg_connection *conn,
  2782. const char *prog,
  2783. struct cgi_env_block *blk) {
  2784. const char *s, *slash;
  2785. struct vec var_vec;
  2786. char *p, src_addr[IP_ADDR_STR_LEN];
  2787. int i;
  2788. blk->len = blk->nvars = 0;
  2789. blk->conn = conn;
  2790. sockaddr_to_string(src_addr, sizeof(src_addr), &conn->client.rsa);
  2791. addenv(blk, "SERVER_NAME=%s", conn->ctx->config[AUTHENTICATION_DOMAIN]);
  2792. addenv(blk, "SERVER_ROOT=%s", conn->ctx->config[DOCUMENT_ROOT]);
  2793. addenv(blk, "DOCUMENT_ROOT=%s", conn->ctx->config[DOCUMENT_ROOT]);
  2794. // Prepare the environment block
  2795. addenv(blk, "%s", "GATEWAY_INTERFACE=CGI/1.1");
  2796. addenv(blk, "%s", "SERVER_PROTOCOL=HTTP/1.1");
  2797. addenv(blk, "%s", "REDIRECT_STATUS=200"); // For PHP
  2798. // TODO(lsm): fix this for IPv6 case
  2799. addenv(blk, "SERVER_PORT=%d", ntohs(conn->client.lsa.sin.sin_port));
  2800. addenv(blk, "REQUEST_METHOD=%s", conn->request_info.request_method);
  2801. addenv(blk, "REMOTE_ADDR=%s", src_addr);
  2802. addenv(blk, "REMOTE_PORT=%d", conn->request_info.remote_port);
  2803. addenv(blk, "REQUEST_URI=%s", conn->request_info.uri);
  2804. // SCRIPT_NAME
  2805. assert(conn->request_info.uri[0] == '/');
  2806. slash = strrchr(conn->request_info.uri, '/');
  2807. if ((s = strrchr(prog, '/')) == NULL)
  2808. s = prog;
  2809. addenv(blk, "SCRIPT_NAME=%.*s%s", (int) (slash - conn->request_info.uri),
  2810. conn->request_info.uri, s);
  2811. addenv(blk, "SCRIPT_FILENAME=%s", prog);
  2812. addenv(blk, "PATH_TRANSLATED=%s", prog);
  2813. addenv(blk, "HTTPS=%s", conn->ssl == NULL ? "off" : "on");
  2814. if ((s = mg_get_header(conn, "Content-Type")) != NULL)
  2815. addenv(blk, "CONTENT_TYPE=%s", s);
  2816. if (conn->request_info.query_string != NULL)
  2817. addenv(blk, "QUERY_STRING=%s", conn->request_info.query_string);
  2818. if ((s = mg_get_header(conn, "Content-Length")) != NULL)
  2819. addenv(blk, "CONTENT_LENGTH=%s", s);
  2820. if ((s = getenv("PATH")) != NULL)
  2821. addenv(blk, "PATH=%s", s);
  2822. if (conn->path_info != NULL) {
  2823. addenv(blk, "PATH_INFO=%s", conn->path_info);
  2824. }
  2825. #if defined(_WIN32)
  2826. if ((s = getenv("COMSPEC")) != NULL) {
  2827. addenv(blk, "COMSPEC=%s", s);
  2828. }
  2829. if ((s = getenv("SYSTEMROOT")) != NULL) {
  2830. addenv(blk, "SYSTEMROOT=%s", s);
  2831. }
  2832. if ((s = getenv("SystemDrive")) != NULL) {
  2833. addenv(blk, "SystemDrive=%s", s);
  2834. }
  2835. if ((s = getenv("ProgramFiles")) != NULL) {
  2836. addenv(blk, "ProgramFiles=%s", s);
  2837. }
  2838. if ((s = getenv("ProgramFiles(x86)")) != NULL) {
  2839. addenv(blk, "ProgramFiles(x86)=%s", s);
  2840. }
  2841. #else
  2842. if ((s = getenv("LD_LIBRARY_PATH")) != NULL)
  2843. addenv(blk, "LD_LIBRARY_PATH=%s", s);
  2844. #endif // _WIN32
  2845. if ((s = getenv("PERLLIB")) != NULL)
  2846. addenv(blk, "PERLLIB=%s", s);
  2847. if (conn->request_info.remote_user != NULL) {
  2848. addenv(blk, "REMOTE_USER=%s", conn->request_info.remote_user);
  2849. addenv(blk, "%s", "AUTH_TYPE=Digest");
  2850. }
  2851. // Add all headers as HTTP_* variables
  2852. for (i = 0; i < conn->request_info.num_headers; i++) {
  2853. p = addenv(blk, "HTTP_%s=%s",
  2854. conn->request_info.http_headers[i].name,
  2855. conn->request_info.http_headers[i].value);
  2856. // Convert variable name into uppercase, and change - to _
  2857. for (; *p != '=' && *p != '\0'; p++) {
  2858. if (*p == '-')
  2859. *p = '_';
  2860. *p = (char) toupper(* (unsigned char *) p);
  2861. }
  2862. }
  2863. // Add user-specified variables
  2864. s = conn->ctx->config[CGI_ENVIRONMENT];
  2865. while ((s = next_option(s, &var_vec, NULL)) != NULL) {
  2866. addenv(blk, "%.*s", (int) var_vec.len, var_vec.ptr);
  2867. }
  2868. blk->vars[blk->nvars++] = NULL;
  2869. blk->buf[blk->len++] = '\0';
  2870. assert(blk->nvars < (int) ARRAY_SIZE(blk->vars));
  2871. assert(blk->len > 0);
  2872. assert(blk->len < (int) sizeof(blk->buf));
  2873. }
  2874. static void handle_cgi_request(struct mg_connection *conn, const char *prog) {
  2875. int headers_len, data_len, i, fd_stdin[2], fd_stdout[2];
  2876. const char *status, *status_text;
  2877. char buf[16384], *pbuf, dir[PATH_MAX], *p;
  2878. struct mg_request_info ri;
  2879. struct cgi_env_block blk;
  2880. FILE *in, *out;
  2881. struct file fout = STRUCT_FILE_INITIALIZER;
  2882. pid_t pid;
  2883. prepare_cgi_environment(conn, prog, &blk);
  2884. // CGI must be executed in its own directory. 'dir' must point to the
  2885. // directory containing executable program, 'p' must point to the
  2886. // executable program name relative to 'dir'.
  2887. (void) mg_snprintf(conn, dir, sizeof(dir), "%s", prog);
  2888. if ((p = strrchr(dir, '/')) != NULL) {
  2889. *p++ = '\0';
  2890. } else {
  2891. dir[0] = '.', dir[1] = '\0';
  2892. p = (char *) prog;
  2893. }
  2894. pid = (pid_t) -1;
  2895. fd_stdin[0] = fd_stdin[1] = fd_stdout[0] = fd_stdout[1] = -1;
  2896. in = out = NULL;
  2897. if (pipe(fd_stdin) != 0 || pipe(fd_stdout) != 0) {
  2898. send_http_error(conn, 500, http_500_error,
  2899. "Cannot create CGI pipe: %s", strerror(ERRNO));
  2900. goto done;
  2901. }
  2902. pid = spawn_process(conn, p, blk.buf, blk.vars, fd_stdin[0], fd_stdout[1],
  2903. dir);
  2904. // spawn_process() must close those!
  2905. // If we don't mark them as closed, close() attempt before
  2906. // return from this function throws an exception on Windows.
  2907. // Windows does not like when closed descriptor is closed again.
  2908. fd_stdin[0] = fd_stdout[1] = -1;
  2909. if (pid == (pid_t) -1) {
  2910. send_http_error(conn, 500, http_500_error,
  2911. "Cannot spawn CGI process [%s]: %s", prog, strerror(ERRNO));
  2912. goto done;
  2913. }
  2914. if ((in = fdopen(fd_stdin[1], "wb")) == NULL ||
  2915. (out = fdopen(fd_stdout[0], "rb")) == NULL) {
  2916. send_http_error(conn, 500, http_500_error,
  2917. "fopen: %s", strerror(ERRNO));
  2918. goto done;
  2919. }
  2920. setbuf(in, NULL);
  2921. setbuf(out, NULL);
  2922. fout.fp = out;
  2923. // Send POST data to the CGI process if needed
  2924. if (!strcmp(conn->request_info.request_method, "POST") &&
  2925. !forward_body_data(conn, in, INVALID_SOCKET, NULL)) {
  2926. goto done;
  2927. }
  2928. // Close so child gets an EOF.
  2929. fclose(in);
  2930. in = NULL;
  2931. fd_stdin[1] = -1;
  2932. // Now read CGI reply into a buffer. We need to set correct
  2933. // status code, thus we need to see all HTTP headers first.
  2934. // Do not send anything back to client, until we buffer in all
  2935. // HTTP headers.
  2936. data_len = 0;
  2937. headers_len = read_request(out, conn, buf, sizeof(buf), &data_len);
  2938. if (headers_len <= 0) {
  2939. send_http_error(conn, 500, http_500_error,
  2940. "CGI program sent malformed or too big (>%u bytes) "
  2941. "HTTP headers: [%.*s]",
  2942. (unsigned) sizeof(buf), data_len, buf);
  2943. goto done;
  2944. }
  2945. pbuf = buf;
  2946. buf[headers_len - 1] = '\0';
  2947. parse_http_headers(&pbuf, &ri);
  2948. // Make up and send the status line
  2949. status_text = "OK";
  2950. if ((status = get_header(&ri, "Status")) != NULL) {
  2951. conn->status_code = atoi(status);
  2952. status_text = status;
  2953. while (isdigit(* (unsigned char *) status_text) || *status_text == ' ') {
  2954. status_text++;
  2955. }
  2956. } else if (get_header(&ri, "Location") != NULL) {
  2957. conn->status_code = 302;
  2958. } else {
  2959. conn->status_code = 200;
  2960. }
  2961. if (get_header(&ri, "Connection") != NULL &&
  2962. !mg_strcasecmp(get_header(&ri, "Connection"), "keep-alive")) {
  2963. conn->must_close = 1;
  2964. }
  2965. (void) mg_printf(conn, "HTTP/1.1 %d %s\r\n", conn->status_code,
  2966. status_text);
  2967. // Send headers
  2968. for (i = 0; i < ri.num_headers; i++) {
  2969. mg_printf(conn, "%s: %s\r\n",
  2970. ri.http_headers[i].name, ri.http_headers[i].value);
  2971. }
  2972. mg_write(conn, "\r\n", 2);
  2973. // Send chunk of data that may have been read after the headers
  2974. conn->num_bytes_sent += mg_write(conn, buf + headers_len,
  2975. (size_t)(data_len - headers_len));
  2976. // Read the rest of CGI output and send to the client
  2977. send_file_data(conn, &fout, 0, INT64_MAX);
  2978. done:
  2979. if (pid != (pid_t) -1) {
  2980. kill(pid, SIGKILL);
  2981. }
  2982. if (fd_stdin[0] != -1) {
  2983. close(fd_stdin[0]);
  2984. }
  2985. if (fd_stdout[1] != -1) {
  2986. close(fd_stdout[1]);
  2987. }
  2988. if (in != NULL) {
  2989. fclose(in);
  2990. } else if (fd_stdin[1] != -1) {
  2991. close(fd_stdin[1]);
  2992. }
  2993. if (out != NULL) {
  2994. fclose(out);
  2995. } else if (fd_stdout[0] != -1) {
  2996. close(fd_stdout[0]);
  2997. }
  2998. }
  2999. #endif // !NO_CGI
  3000. // For a given PUT path, create all intermediate subdirectories
  3001. // for given path. Return 0 if the path itself is a directory,
  3002. // or -1 on error, 1 if OK.
  3003. static int put_dir(struct mg_connection *conn, const char *path) {
  3004. char buf[PATH_MAX];
  3005. const char *s, *p;
  3006. struct file file = STRUCT_FILE_INITIALIZER;
  3007. int len, res = 1;
  3008. for (s = p = path + 2; (p = strchr(s, '/')) != NULL; s = ++p) {
  3009. len = p - path;
  3010. if (len >= (int) sizeof(buf)) {
  3011. res = -1;
  3012. break;
  3013. }
  3014. memcpy(buf, path, len);
  3015. buf[len] = '\0';
  3016. // Try to create intermediate directory
  3017. DEBUG_TRACE(("mkdir(%s)", buf));
  3018. if (!mg_stat(conn, buf, &file) && mg_mkdir(buf, 0755) != 0) {
  3019. res = -1;
  3020. break;
  3021. }
  3022. // Is path itself a directory?
  3023. if (p[1] == '\0') {
  3024. res = 0;
  3025. }
  3026. }
  3027. return res;
  3028. }
  3029. static void mkcol(struct mg_connection *conn, const char *path) {
  3030. int rc, body_len;
  3031. struct de de;
  3032. memset(&de.file, 0, sizeof(de.file));
  3033. mg_stat(conn, path, &de.file);
  3034. if(de.file.modification_time) {
  3035. send_http_error(conn, 405, "Method Not Allowed",
  3036. "mkcol(%s): %s", path, strerror(ERRNO));
  3037. return;
  3038. }
  3039. body_len = conn->data_len - conn->request_len;
  3040. if(body_len > 0) {
  3041. send_http_error(conn, 415, "Unsupported media type",
  3042. "mkcol(%s): %s", path, strerror(ERRNO));
  3043. return;
  3044. }
  3045. rc = mg_mkdir(path, 0755);
  3046. if (rc == 0) {
  3047. conn->status_code = 201;
  3048. mg_printf(conn, "HTTP/1.1 %d Created\r\n\r\n", conn->status_code);
  3049. } else if (rc == -1) {
  3050. if(errno == EEXIST)
  3051. send_http_error(conn, 405, "Method Not Allowed",
  3052. "mkcol(%s): %s", path, strerror(ERRNO));
  3053. else if(errno == EACCES)
  3054. send_http_error(conn, 403, "Forbidden",
  3055. "mkcol(%s): %s", path, strerror(ERRNO));
  3056. else if(errno == ENOENT)
  3057. send_http_error(conn, 409, "Conflict",
  3058. "mkcol(%s): %s", path, strerror(ERRNO));
  3059. else
  3060. send_http_error(conn, 500, http_500_error,
  3061. "fopen(%s): %s", path, strerror(ERRNO));
  3062. }
  3063. }
  3064. static void put_file(struct mg_connection *conn, const char *path) {
  3065. struct file file = STRUCT_FILE_INITIALIZER;
  3066. const char *range;
  3067. int64_t r1, r2;
  3068. int rc;
  3069. conn->status_code = mg_stat(conn, path, &file) ? 200 : 201;
  3070. if ((rc = put_dir(conn, path)) == 0) {
  3071. mg_printf(conn, "HTTP/1.1 %d OK\r\n\r\n", conn->status_code);
  3072. } else if (rc == -1) {
  3073. send_http_error(conn, 500, http_500_error,
  3074. "put_dir(%s): %s", path, strerror(ERRNO));
  3075. } else if (!mg_fopen(conn, path, "wb+", &file) || file.fp == NULL) {
  3076. mg_fclose(&file);
  3077. send_http_error(conn, 500, http_500_error,
  3078. "fopen(%s): %s", path, strerror(ERRNO));
  3079. } else {
  3080. fclose_on_exec(&file);
  3081. range = mg_get_header(conn, "Content-Range");
  3082. r1 = r2 = 0;
  3083. if (range != NULL && parse_range_header(range, &r1, &r2) > 0) {
  3084. conn->status_code = 206;
  3085. fseeko(file.fp, r1, SEEK_SET);
  3086. }
  3087. if (forward_body_data(conn, file.fp, INVALID_SOCKET, NULL)) {
  3088. mg_printf(conn, "HTTP/1.1 %d OK\r\n\r\n", conn->status_code);
  3089. }
  3090. mg_fclose(&file);
  3091. }
  3092. }
  3093. static void send_ssi_file(struct mg_connection *, const char *,
  3094. struct file *, int);
  3095. static void do_ssi_include(struct mg_connection *conn, const char *ssi,
  3096. char *tag, int include_level) {
  3097. char file_name[MG_BUF_LEN], path[PATH_MAX], *p;
  3098. struct file file = STRUCT_FILE_INITIALIZER;
  3099. // sscanf() is safe here, since send_ssi_file() also uses buffer
  3100. // of size MG_BUF_LEN to get the tag. So strlen(tag) is always < MG_BUF_LEN.
  3101. if (sscanf(tag, " virtual=\"%[^\"]\"", file_name) == 1) {
  3102. // File name is relative to the webserver root
  3103. (void) mg_snprintf(conn, path, sizeof(path), "%s%c%s",
  3104. conn->ctx->config[DOCUMENT_ROOT], '/', file_name);
  3105. } else if (sscanf(tag, " abspath=\"%[^\"]\"", file_name) == 1) {
  3106. // File name is relative to the webserver working directory
  3107. // or it is absolute system path
  3108. (void) mg_snprintf(conn, path, sizeof(path), "%s", file_name);
  3109. } else if (sscanf(tag, " file=\"%[^\"]\"", file_name) == 1 ||
  3110. sscanf(tag, " \"%[^\"]\"", file_name) == 1) {
  3111. // File name is relative to the currect document
  3112. (void) mg_snprintf(conn, path, sizeof(path), "%s", ssi);
  3113. if ((p = strrchr(path, '/')) != NULL) {
  3114. p[1] = '\0';
  3115. }
  3116. (void) mg_snprintf(conn, path + strlen(path),
  3117. sizeof(path) - strlen(path), "%s", file_name);
  3118. } else {
  3119. cry(conn, "Bad SSI #include: [%s]", tag);
  3120. return;
  3121. }
  3122. if (!mg_fopen(conn, path, "rb", &file)) {
  3123. cry(conn, "Cannot open SSI #include: [%s]: fopen(%s): %s",
  3124. tag, path, strerror(ERRNO));
  3125. } else {
  3126. fclose_on_exec(&file);
  3127. if (match_prefix(conn->ctx->config[SSI_EXTENSIONS],
  3128. strlen(conn->ctx->config[SSI_EXTENSIONS]), path) > 0) {
  3129. send_ssi_file(conn, path, &file, include_level + 1);
  3130. } else {
  3131. send_file_data(conn, &file, 0, INT64_MAX);
  3132. }
  3133. mg_fclose(&file);
  3134. }
  3135. }
  3136. #if !defined(NO_POPEN)
  3137. static void do_ssi_exec(struct mg_connection *conn, char *tag) {
  3138. char cmd[MG_BUF_LEN];
  3139. struct file file = STRUCT_FILE_INITIALIZER;
  3140. if (sscanf(tag, " \"%[^\"]\"", cmd) != 1) {
  3141. cry(conn, "Bad SSI #exec: [%s]", tag);
  3142. } else if ((file.fp = popen(cmd, "r")) == NULL) {
  3143. cry(conn, "Cannot SSI #exec: [%s]: %s", cmd, strerror(ERRNO));
  3144. } else {
  3145. send_file_data(conn, &file, 0, INT64_MAX);
  3146. pclose(file.fp);
  3147. }
  3148. }
  3149. #endif // !NO_POPEN
  3150. static int mg_fgetc(struct file *filep, int offset) {
  3151. if (filep->membuf != NULL && offset >=0 && offset < filep->size) {
  3152. return ((unsigned char *) filep->membuf)[offset];
  3153. } else if (filep->fp != NULL) {
  3154. return fgetc(filep->fp);
  3155. } else {
  3156. return EOF;
  3157. }
  3158. }
  3159. static void send_ssi_file(struct mg_connection *conn, const char *path,
  3160. struct file *filep, int include_level) {
  3161. char buf[MG_BUF_LEN];
  3162. int ch, offset, len, in_ssi_tag;
  3163. if (include_level > 10) {
  3164. cry(conn, "SSI #include level is too deep (%s)", path);
  3165. return;
  3166. }
  3167. in_ssi_tag = len = offset = 0;
  3168. while ((ch = mg_fgetc(filep, offset)) != EOF) {
  3169. if (in_ssi_tag && ch == '>') {
  3170. in_ssi_tag = 0;
  3171. buf[len++] = (char) ch;
  3172. buf[len] = '\0';
  3173. assert(len <= (int) sizeof(buf));
  3174. if (len < 6 || memcmp(buf, "<!--#", 5) != 0) {
  3175. // Not an SSI tag, pass it
  3176. (void) mg_write(conn, buf, (size_t) len);
  3177. } else {
  3178. if (!memcmp(buf + 5, "include", 7)) {
  3179. do_ssi_include(conn, path, buf + 12, include_level);
  3180. #if !defined(NO_POPEN)
  3181. } else if (!memcmp(buf + 5, "exec", 4)) {
  3182. do_ssi_exec(conn, buf + 9);
  3183. #endif // !NO_POPEN
  3184. } else {
  3185. cry(conn, "%s: unknown SSI " "command: \"%s\"", path, buf);
  3186. }
  3187. }
  3188. len = 0;
  3189. } else if (in_ssi_tag) {
  3190. if (len == 5 && memcmp(buf, "<!--#", 5) != 0) {
  3191. // Not an SSI tag
  3192. in_ssi_tag = 0;
  3193. } else if (len == (int) sizeof(buf) - 2) {
  3194. cry(conn, "%s: SSI tag is too large", path);
  3195. len = 0;
  3196. }
  3197. buf[len++] = ch & 0xff;
  3198. } else if (ch == '<') {
  3199. in_ssi_tag = 1;
  3200. if (len > 0) {
  3201. mg_write(conn, buf, (size_t) len);
  3202. }
  3203. len = 0;
  3204. buf[len++] = ch & 0xff;
  3205. } else {
  3206. buf[len++] = ch & 0xff;
  3207. if (len == (int) sizeof(buf)) {
  3208. mg_write(conn, buf, (size_t) len);
  3209. len = 0;
  3210. }
  3211. }
  3212. }
  3213. // Send the rest of buffered data
  3214. if (len > 0) {
  3215. mg_write(conn, buf, (size_t) len);
  3216. }
  3217. }
  3218. static void handle_ssi_file_request(struct mg_connection *conn,
  3219. const char *path) {
  3220. struct file file = STRUCT_FILE_INITIALIZER;
  3221. if (!mg_fopen(conn, path, "rb", &file)) {
  3222. send_http_error(conn, 500, http_500_error, "fopen(%s): %s", path,
  3223. strerror(ERRNO));
  3224. } else {
  3225. conn->must_close = 1;
  3226. fclose_on_exec(&file);
  3227. mg_printf(conn, "HTTP/1.1 200 OK\r\n"
  3228. "Content-Type: text/html\r\nConnection: %s\r\n\r\n",
  3229. suggest_connection_header(conn));
  3230. send_ssi_file(conn, path, &file, 0);
  3231. mg_fclose(&file);
  3232. }
  3233. }
  3234. static void send_options(struct mg_connection *conn) {
  3235. conn->status_code = 200;
  3236. mg_printf(conn, "%s", "HTTP/1.1 200 OK\r\n"
  3237. "Allow: GET, POST, HEAD, CONNECT, PUT, DELETE, OPTIONS, PROPFIND, MKCOL\r\n"
  3238. "DAV: 1\r\n\r\n");
  3239. }
  3240. // Writes PROPFIND properties for a collection element
  3241. static void print_props(struct mg_connection *conn, const char* uri,
  3242. struct file *filep) {
  3243. char mtime[64];
  3244. gmt_time_string(mtime, sizeof(mtime), &filep->modification_time);
  3245. conn->num_bytes_sent += mg_printf(conn,
  3246. "<d:response>"
  3247. "<d:href>%s</d:href>"
  3248. "<d:propstat>"
  3249. "<d:prop>"
  3250. "<d:resourcetype>%s</d:resourcetype>"
  3251. "<d:getcontentlength>%" INT64_FMT "</d:getcontentlength>"
  3252. "<d:getlastmodified>%s</d:getlastmodified>"
  3253. "</d:prop>"
  3254. "<d:status>HTTP/1.1 200 OK</d:status>"
  3255. "</d:propstat>"
  3256. "</d:response>\n",
  3257. uri,
  3258. filep->is_directory ? "<d:collection/>" : "",
  3259. filep->size,
  3260. mtime);
  3261. }
  3262. static void print_dav_dir_entry(struct de *de, void *data) {
  3263. char href[PATH_MAX];
  3264. char href_encoded[PATH_MAX];
  3265. struct mg_connection *conn = (struct mg_connection *) data;
  3266. mg_snprintf(conn, href, sizeof(href), "%s%s",
  3267. conn->request_info.uri, de->file_name);
  3268. mg_url_encode(href, href_encoded, PATH_MAX-1);
  3269. print_props(conn, href_encoded, &de->file);
  3270. }
  3271. static void handle_propfind(struct mg_connection *conn, const char *path,
  3272. struct file *filep) {
  3273. const char *depth = mg_get_header(conn, "Depth");
  3274. conn->must_close = 1;
  3275. conn->status_code = 207;
  3276. mg_printf(conn, "HTTP/1.1 207 Multi-Status\r\n"
  3277. "Connection: close\r\n"
  3278. "Content-Type: text/xml; charset=utf-8\r\n\r\n");
  3279. conn->num_bytes_sent += mg_printf(conn,
  3280. "<?xml version=\"1.0\" encoding=\"utf-8\"?>"
  3281. "<d:multistatus xmlns:d='DAV:'>\n");
  3282. // Print properties for the requested resource itself
  3283. print_props(conn, conn->request_info.uri, filep);
  3284. // If it is a directory, print directory entries too if Depth is not 0
  3285. if (filep->is_directory &&
  3286. !mg_strcasecmp(conn->ctx->config[ENABLE_DIRECTORY_LISTING], "yes") &&
  3287. (depth == NULL || strcmp(depth, "0") != 0)) {
  3288. scan_directory(conn, path, conn, &print_dav_dir_entry);
  3289. }
  3290. conn->num_bytes_sent += mg_printf(conn, "%s\n", "</d:multistatus>");
  3291. }
  3292. #if defined(USE_WEBSOCKET)
  3293. // START OF SHA-1 code
  3294. // Copyright(c) By Steve Reid <steve@edmweb.com>
  3295. #define SHA1HANDSOFF
  3296. #if defined(__sun)
  3297. #include "solarisfixes.h"
  3298. #endif
  3299. union char64long16 { unsigned char c[64]; uint32_t l[16]; };
  3300. #define rol(value, bits) (((value) << (bits)) | ((value) >> (32 - (bits))))
  3301. static uint32_t blk0(union char64long16 *block, int i) {
  3302. // Forrest: SHA expect BIG_ENDIAN, swap if LITTLE_ENDIAN
  3303. if (!is_big_endian()) {
  3304. block->l[i] = (rol(block->l[i], 24) & 0xFF00FF00) |
  3305. (rol(block->l[i], 8) & 0x00FF00FF);
  3306. }
  3307. return block->l[i];
  3308. }
  3309. #define blk(i) (block->l[i&15] = rol(block->l[(i+13)&15]^block->l[(i+8)&15] \
  3310. ^block->l[(i+2)&15]^block->l[i&15],1))
  3311. #define R0(v,w,x,y,z,i) z+=((w&(x^y))^y)+blk0(block, i)+0x5A827999+rol(v,5);w=rol(w,30);
  3312. #define R1(v,w,x,y,z,i) z+=((w&(x^y))^y)+blk(i)+0x5A827999+rol(v,5);w=rol(w,30);
  3313. #define R2(v,w,x,y,z,i) z+=(w^x^y)+blk(i)+0x6ED9EBA1+rol(v,5);w=rol(w,30);
  3314. #define R3(v,w,x,y,z,i) z+=(((w|x)&y)|(w&x))+blk(i)+0x8F1BBCDC+rol(v,5);w=rol(w,30);
  3315. #define R4(v,w,x,y,z,i) z+=(w^x^y)+blk(i)+0xCA62C1D6+rol(v,5);w=rol(w,30);
  3316. typedef struct {
  3317. uint32_t state[5];
  3318. uint32_t count[2];
  3319. unsigned char buffer[64];
  3320. } SHA1_CTX;
  3321. static void SHA1Transform(uint32_t state[5], const unsigned char buffer[64]) {
  3322. uint32_t a, b, c, d, e;
  3323. union char64long16 block[1];
  3324. memcpy(block, buffer, 64);
  3325. a = state[0];
  3326. b = state[1];
  3327. c = state[2];
  3328. d = state[3];
  3329. e = state[4];
  3330. R0(a,b,c,d,e, 0); R0(e,a,b,c,d, 1); R0(d,e,a,b,c, 2); R0(c,d,e,a,b, 3);
  3331. R0(b,c,d,e,a, 4); R0(a,b,c,d,e, 5); R0(e,a,b,c,d, 6); R0(d,e,a,b,c, 7);
  3332. R0(c,d,e,a,b, 8); R0(b,c,d,e,a, 9); R0(a,b,c,d,e,10); R0(e,a,b,c,d,11);
  3333. R0(d,e,a,b,c,12); R0(c,d,e,a,b,13); R0(b,c,d,e,a,14); R0(a,b,c,d,e,15);
  3334. R1(e,a,b,c,d,16); R1(d,e,a,b,c,17); R1(c,d,e,a,b,18); R1(b,c,d,e,a,19);
  3335. R2(a,b,c,d,e,20); R2(e,a,b,c,d,21); R2(d,e,a,b,c,22); R2(c,d,e,a,b,23);
  3336. R2(b,c,d,e,a,24); R2(a,b,c,d,e,25); R2(e,a,b,c,d,26); R2(d,e,a,b,c,27);
  3337. R2(c,d,e,a,b,28); R2(b,c,d,e,a,29); R2(a,b,c,d,e,30); R2(e,a,b,c,d,31);
  3338. R2(d,e,a,b,c,32); R2(c,d,e,a,b,33); R2(b,c,d,e,a,34); R2(a,b,c,d,e,35);
  3339. R2(e,a,b,c,d,36); R2(d,e,a,b,c,37); R2(c,d,e,a,b,38); R2(b,c,d,e,a,39);
  3340. R3(a,b,c,d,e,40); R3(e,a,b,c,d,41); R3(d,e,a,b,c,42); R3(c,d,e,a,b,43);
  3341. R3(b,c,d,e,a,44); R3(a,b,c,d,e,45); R3(e,a,b,c,d,46); R3(d,e,a,b,c,47);
  3342. R3(c,d,e,a,b,48); R3(b,c,d,e,a,49); R3(a,b,c,d,e,50); R3(e,a,b,c,d,51);
  3343. R3(d,e,a,b,c,52); R3(c,d,e,a,b,53); R3(b,c,d,e,a,54); R3(a,b,c,d,e,55);
  3344. R3(e,a,b,c,d,56); R3(d,e,a,b,c,57); R3(c,d,e,a,b,58); R3(b,c,d,e,a,59);
  3345. R4(a,b,c,d,e,60); R4(e,a,b,c,d,61); R4(d,e,a,b,c,62); R4(c,d,e,a,b,63);
  3346. R4(b,c,d,e,a,64); R4(a,b,c,d,e,65); R4(e,a,b,c,d,66); R4(d,e,a,b,c,67);
  3347. R4(c,d,e,a,b,68); R4(b,c,d,e,a,69); R4(a,b,c,d,e,70); R4(e,a,b,c,d,71);
  3348. R4(d,e,a,b,c,72); R4(c,d,e,a,b,73); R4(b,c,d,e,a,74); R4(a,b,c,d,e,75);
  3349. R4(e,a,b,c,d,76); R4(d,e,a,b,c,77); R4(c,d,e,a,b,78); R4(b,c,d,e,a,79);
  3350. state[0] += a;
  3351. state[1] += b;
  3352. state[2] += c;
  3353. state[3] += d;
  3354. state[4] += e;
  3355. a = b = c = d = e = 0;
  3356. memset(block, '\0', sizeof(block));
  3357. }
  3358. static void SHA1Init(SHA1_CTX* context) {
  3359. context->state[0] = 0x67452301;
  3360. context->state[1] = 0xEFCDAB89;
  3361. context->state[2] = 0x98BADCFE;
  3362. context->state[3] = 0x10325476;
  3363. context->state[4] = 0xC3D2E1F0;
  3364. context->count[0] = context->count[1] = 0;
  3365. }
  3366. static void SHA1Update(SHA1_CTX* context, const unsigned char* data,
  3367. uint32_t len) {
  3368. uint32_t i, j;
  3369. j = context->count[0];
  3370. if ((context->count[0] += len << 3) < j)
  3371. context->count[1]++;
  3372. context->count[1] += (len>>29);
  3373. j = (j >> 3) & 63;
  3374. if ((j + len) > 63) {
  3375. memcpy(&context->buffer[j], data, (i = 64-j));
  3376. SHA1Transform(context->state, context->buffer);
  3377. for ( ; i + 63 < len; i += 64) {
  3378. SHA1Transform(context->state, &data[i]);
  3379. }
  3380. j = 0;
  3381. }
  3382. else i = 0;
  3383. memcpy(&context->buffer[j], &data[i], len - i);
  3384. }
  3385. static void SHA1Final(unsigned char digest[20], SHA1_CTX* context) {
  3386. unsigned i;
  3387. unsigned char finalcount[8], c;
  3388. for (i = 0; i < 8; i++) {
  3389. finalcount[i] = (unsigned char)((context->count[(i >= 4 ? 0 : 1)]
  3390. >> ((3-(i & 3)) * 8) ) & 255);
  3391. }
  3392. c = 0200;
  3393. SHA1Update(context, &c, 1);
  3394. while ((context->count[0] & 504) != 448) {
  3395. c = 0000;
  3396. SHA1Update(context, &c, 1);
  3397. }
  3398. SHA1Update(context, finalcount, 8);
  3399. for (i = 0; i < 20; i++) {
  3400. digest[i] = (unsigned char)
  3401. ((context->state[i>>2] >> ((3-(i & 3)) * 8) ) & 255);
  3402. }
  3403. memset(context, '\0', sizeof(*context));
  3404. memset(&finalcount, '\0', sizeof(finalcount));
  3405. }
  3406. // END OF SHA1 CODE
  3407. static void base64_encode(const unsigned char *src, int src_len, char *dst) {
  3408. static const char *b64 =
  3409. "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
  3410. int i, j, a, b, c;
  3411. for (i = j = 0; i < src_len; i += 3) {
  3412. a = src[i];
  3413. b = i + 1 >= src_len ? 0 : src[i + 1];
  3414. c = i + 2 >= src_len ? 0 : src[i + 2];
  3415. dst[j++] = b64[a >> 2];
  3416. dst[j++] = b64[((a & 3) << 4) | (b >> 4)];
  3417. if (i + 1 < src_len) {
  3418. dst[j++] = b64[(b & 15) << 2 | (c >> 6)];
  3419. }
  3420. if (i + 2 < src_len) {
  3421. dst[j++] = b64[c & 63];
  3422. }
  3423. }
  3424. while (j % 4 != 0) {
  3425. dst[j++] = '=';
  3426. }
  3427. dst[j++] = '\0';
  3428. }
  3429. static void send_websocket_handshake(struct mg_connection *conn) {
  3430. static const char *magic = "258EAFA5-E914-47DA-95CA-C5AB0DC85B11";
  3431. char buf[100], sha[20], b64_sha[sizeof(sha) * 2];
  3432. SHA1_CTX sha_ctx;
  3433. mg_snprintf(conn, buf, sizeof(buf), "%s%s",
  3434. mg_get_header(conn, "Sec-WebSocket-Key"), magic);
  3435. SHA1Init(&sha_ctx);
  3436. SHA1Update(&sha_ctx, (unsigned char *) buf, strlen(buf));
  3437. SHA1Final((unsigned char *) sha, &sha_ctx);
  3438. base64_encode((unsigned char *) sha, sizeof(sha), b64_sha);
  3439. mg_printf(conn, "%s%s%s",
  3440. "HTTP/1.1 101 Switching Protocols\r\n"
  3441. "Upgrade: websocket\r\n"
  3442. "Connection: Upgrade\r\n"
  3443. "Sec-WebSocket-Accept: ", b64_sha, "\r\n\r\n");
  3444. }
  3445. static void read_websocket(struct mg_connection *conn) {
  3446. // Pointer to the beginning of the portion of the incoming websocket message
  3447. // queue. The original websocket upgrade request is never removed,
  3448. // so the queue begins after it.
  3449. unsigned char *buf = (unsigned char *) conn->buf + conn->request_len;
  3450. int bits, n, stop = 0;
  3451. size_t i, len, mask_len, data_len, header_len, body_len;
  3452. // data points to the place where the message is stored when passed to the
  3453. // websocket_data callback. This is either mem on the stack,
  3454. // or a dynamically allocated buffer if it is too large.
  3455. char mem[4 * 1024], mask[4], *data;
  3456. assert(conn->content_len == 0);
  3457. // Loop continuously, reading messages from the socket, invoking the callback,
  3458. // and waiting repeatedly until an error occurs.
  3459. while (!stop) {
  3460. header_len = 0;
  3461. // body_len is the length of the entire queue in bytes
  3462. // len is the length of the current message
  3463. // data_len is the length of the current message's data payload
  3464. // header_len is the length of the current message's header
  3465. if ((body_len = conn->data_len - conn->request_len) >= 2) {
  3466. len = buf[1] & 127;
  3467. mask_len = buf[1] & 128 ? 4 : 0;
  3468. if (len < 126 && body_len >= mask_len) {
  3469. data_len = len;
  3470. header_len = 2 + mask_len;
  3471. } else if (len == 126 && body_len >= 4 + mask_len) {
  3472. header_len = 4 + mask_len;
  3473. data_len = ((((int) buf[2]) << 8) + buf[3]);
  3474. } else if (body_len >= 10 + mask_len) {
  3475. header_len = 10 + mask_len;
  3476. data_len = (((uint64_t) htonl(* (uint32_t *) &buf[2])) << 32) +
  3477. htonl(* (uint32_t *) &buf[6]);
  3478. }
  3479. }
  3480. // Data layout is as follows:
  3481. // conn->buf buf
  3482. // v v frame1 | frame2
  3483. // |---------------------|----------------|--------------|-------
  3484. // | |<--header_len-->|<--data_len-->|
  3485. // |<-conn->request_len->|<-----body_len----------->|
  3486. // |<-------------------conn->data_len------------->|
  3487. if (header_len > 0) {
  3488. // Allocate space to hold websocket payload
  3489. data = mem;
  3490. if (data_len > sizeof(mem) && (data = malloc(data_len)) == NULL) {
  3491. // Allocation failed, exit the loop and then close the connection
  3492. // TODO: notify user about the failure
  3493. break;
  3494. }
  3495. // Save mask and bits, otherwise it may be clobbered by memmove below
  3496. bits = buf[0];
  3497. memcpy(mask, buf + header_len - mask_len, mask_len);
  3498. // Read frame payload into the allocated buffer.
  3499. assert(body_len >= header_len);
  3500. if (data_len + header_len > body_len) {
  3501. len = body_len - header_len;
  3502. memcpy(data, buf + header_len, len);
  3503. // TODO: handle pull error
  3504. pull_all(NULL, conn, data + len, data_len - len);
  3505. conn->data_len = conn->request_len;
  3506. } else {
  3507. len = data_len + header_len;
  3508. memcpy(data, buf + header_len, data_len);
  3509. memmove(buf, buf + len, body_len - len);
  3510. conn->data_len -= len;
  3511. }
  3512. // Apply mask if necessary
  3513. if (mask_len > 0) {
  3514. for (i = 0; i < data_len; i++) {
  3515. data[i] ^= mask[i % 4];
  3516. }
  3517. }
  3518. // Exit the loop if callback signalled to exit,
  3519. // or "connection close" opcode received.
  3520. if ((conn->ctx->callbacks.websocket_data != NULL &&
  3521. !conn->ctx->callbacks.websocket_data(conn, bits, data, data_len)) ||
  3522. (bits & 0xf) == 8) { // Opcode == 8, connection close
  3523. stop = 1;
  3524. }
  3525. if (data != mem) {
  3526. free(data);
  3527. }
  3528. // Not breaking the loop, process next websocket frame.
  3529. } else {
  3530. // Buffering websocket request
  3531. if ((n = pull(NULL, conn, conn->buf + conn->data_len,
  3532. conn->buf_size - conn->data_len)) <= 0) {
  3533. break;
  3534. }
  3535. conn->data_len += n;
  3536. }
  3537. }
  3538. }
  3539. int mg_websocket_write(struct mg_connection* conn, int opcode,
  3540. const char *data, size_t data_len) {
  3541. unsigned char *copy;
  3542. size_t copy_len = 0;
  3543. int retval = -1;
  3544. if ((copy = (unsigned char *) malloc(data_len + 10)) == NULL) {
  3545. return -1;
  3546. }
  3547. copy[0] = 0x80 + (opcode & 0x0f);
  3548. // Frame format: http://tools.ietf.org/html/rfc6455#section-5.2
  3549. if (data_len < 126) {
  3550. // Inline 7-bit length field
  3551. copy[1] = data_len;
  3552. memcpy(copy + 2, data, data_len);
  3553. copy_len = 2 + data_len;
  3554. } else if (data_len <= 0xFFFF) {
  3555. // 16-bit length field
  3556. copy[1] = 126;
  3557. * (uint16_t *) (copy + 2) = htons(data_len);
  3558. memcpy(copy + 4, data, data_len);
  3559. copy_len = 4 + data_len;
  3560. } else {
  3561. // 64-bit length field
  3562. copy[1] = 127;
  3563. * (uint32_t *) (copy + 2) = htonl((uint64_t) data_len >> 32);
  3564. * (uint32_t *) (copy + 6) = htonl(data_len & 0xffffffff);
  3565. memcpy(copy + 10, data, data_len);
  3566. copy_len = 10 + data_len;
  3567. }
  3568. // Not thread safe
  3569. if (copy_len > 0) {
  3570. retval = mg_write(conn, copy, copy_len);
  3571. }
  3572. free(copy);
  3573. return retval;
  3574. }
  3575. static void handle_websocket_request(struct mg_connection *conn) {
  3576. const char *version = mg_get_header(conn, "Sec-WebSocket-Version");
  3577. if (version == NULL || strcmp(version, "13") != 0) {
  3578. send_http_error(conn, 426, "Upgrade Required", "%s", "Upgrade Required");
  3579. } else if (conn->ctx->callbacks.websocket_connect != NULL &&
  3580. conn->ctx->callbacks.websocket_connect(conn) != 0) {
  3581. // Callback has returned non-zero, do not proceed with handshake
  3582. } else {
  3583. send_websocket_handshake(conn);
  3584. if (conn->ctx->callbacks.websocket_ready != NULL) {
  3585. conn->ctx->callbacks.websocket_ready(conn);
  3586. }
  3587. read_websocket(conn);
  3588. }
  3589. }
  3590. static int is_websocket_request(const struct mg_connection *conn) {
  3591. const char *host, *upgrade, *connection, *version, *key;
  3592. host = mg_get_header(conn, "Host");
  3593. upgrade = mg_get_header(conn, "Upgrade");
  3594. connection = mg_get_header(conn, "Connection");
  3595. key = mg_get_header(conn, "Sec-WebSocket-Key");
  3596. version = mg_get_header(conn, "Sec-WebSocket-Version");
  3597. return host != NULL && upgrade != NULL && connection != NULL &&
  3598. key != NULL && version != NULL &&
  3599. mg_strcasestr(upgrade, "websocket") != NULL &&
  3600. mg_strcasestr(connection, "Upgrade") != NULL;
  3601. }
  3602. #endif // !USE_WEBSOCKET
  3603. static int isbyte(int n) {
  3604. return n >= 0 && n <= 255;
  3605. }
  3606. static int parse_net(const char *spec, uint32_t *net, uint32_t *mask) {
  3607. int n, a, b, c, d, slash = 32, len = 0;
  3608. if ((sscanf(spec, "%d.%d.%d.%d/%d%n", &a, &b, &c, &d, &slash, &n) == 5 ||
  3609. sscanf(spec, "%d.%d.%d.%d%n", &a, &b, &c, &d, &n) == 4) &&
  3610. isbyte(a) && isbyte(b) && isbyte(c) && isbyte(d) &&
  3611. slash >= 0 && slash < 33) {
  3612. len = n;
  3613. *net = ((uint32_t)a << 24) | ((uint32_t)b << 16) | ((uint32_t)c << 8) | d;
  3614. *mask = slash ? 0xffffffffU << (32 - slash) : 0;
  3615. }
  3616. return len;
  3617. }
  3618. static int set_throttle(const char *spec, uint32_t remote_ip, const char *uri) {
  3619. int throttle = 0;
  3620. struct vec vec, val;
  3621. uint32_t net, mask;
  3622. char mult;
  3623. double v;
  3624. while ((spec = next_option(spec, &vec, &val)) != NULL) {
  3625. mult = ',';
  3626. if (sscanf(val.ptr, "%lf%c", &v, &mult) < 1 || v < 0 ||
  3627. (lowercase(&mult) != 'k' && lowercase(&mult) != 'm' && mult != ',')) {
  3628. continue;
  3629. }
  3630. v *= lowercase(&mult) == 'k' ? 1024 : lowercase(&mult) == 'm' ? 1048576 : 1;
  3631. if (vec.len == 1 && vec.ptr[0] == '*') {
  3632. throttle = (int) v;
  3633. } else if (parse_net(vec.ptr, &net, &mask) > 0) {
  3634. if ((remote_ip & mask) == net) {
  3635. throttle = (int) v;
  3636. }
  3637. } else if (match_prefix(vec.ptr, vec.len, uri) > 0) {
  3638. throttle = (int) v;
  3639. }
  3640. }
  3641. return throttle;
  3642. }
  3643. static uint32_t get_remote_ip(const struct mg_connection *conn) {
  3644. return ntohl(* (uint32_t *) &conn->client.rsa.sin.sin_addr);
  3645. }
  3646. #ifdef USE_LUA
  3647. #include "mod_lua.c"
  3648. #endif // USE_LUA
  3649. int mg_upload(struct mg_connection *conn, const char *destination_dir) {
  3650. const char *content_type_header, *boundary_start;
  3651. char buf[MG_BUF_LEN], path[PATH_MAX], fname[1024], boundary[100], *s;
  3652. FILE *fp;
  3653. int bl, n, i, j, headers_len, boundary_len, eof,
  3654. len = 0, num_uploaded_files = 0;
  3655. // Request looks like this:
  3656. //
  3657. // POST /upload HTTP/1.1
  3658. // Host: 127.0.0.1:8080
  3659. // Content-Length: 244894
  3660. // Content-Type: multipart/form-data; boundary=----WebKitFormBoundaryRVr
  3661. //
  3662. // ------WebKitFormBoundaryRVr
  3663. // Content-Disposition: form-data; name="file"; filename="accum.png"
  3664. // Content-Type: image/png
  3665. //
  3666. // <89>PNG
  3667. // <PNG DATA>
  3668. // ------WebKitFormBoundaryRVr
  3669. // Extract boundary string from the Content-Type header
  3670. if ((content_type_header = mg_get_header(conn, "Content-Type")) == NULL ||
  3671. (boundary_start = mg_strcasestr(content_type_header,
  3672. "boundary=")) == NULL ||
  3673. (sscanf(boundary_start, "boundary=\"%99[^\"]\"", boundary) == 0 &&
  3674. sscanf(boundary_start, "boundary=%99s", boundary) == 0) ||
  3675. boundary[0] == '\0') {
  3676. return num_uploaded_files;
  3677. }
  3678. boundary_len = strlen(boundary);
  3679. bl = boundary_len + 4; // \r\n--<boundary>
  3680. for (;;) {
  3681. // Pull in headers
  3682. assert(len >= 0 && len <= (int) sizeof(buf));
  3683. while ((n = mg_read(conn, buf + len, sizeof(buf) - len)) > 0) {
  3684. len += n;
  3685. }
  3686. if ((headers_len = get_request_len(buf, len)) <= 0) {
  3687. break;
  3688. }
  3689. // Fetch file name.
  3690. fname[0] = '\0';
  3691. for (i = j = 0; i < headers_len; i++) {
  3692. if (buf[i] == '\r' && buf[i + 1] == '\n') {
  3693. buf[i] = buf[i + 1] = '\0';
  3694. // TODO(lsm): don't expect filename to be the 3rd field,
  3695. // parse the header properly instead.
  3696. sscanf(&buf[j], "Content-Disposition: %*s %*s filename=\"%1023[^\"]",
  3697. fname);
  3698. j = i + 2;
  3699. }
  3700. }
  3701. // Give up if the headers are not what we expect
  3702. if (fname[0] == '\0') {
  3703. break;
  3704. }
  3705. // Move data to the beginning of the buffer
  3706. assert(len >= headers_len);
  3707. memmove(buf, &buf[headers_len], len - headers_len);
  3708. len -= headers_len;
  3709. // We open the file with exclusive lock held. This guarantee us
  3710. // there is no other thread can save into the same file simultaneously.
  3711. fp = NULL;
  3712. // Construct destination file name. Do not allow paths to have slashes.
  3713. if ((s = strrchr(fname, '/')) == NULL &&
  3714. (s = strrchr(fname, '\\')) == NULL) {
  3715. s = fname;
  3716. }
  3717. // Open file in binary mode. TODO: set an exclusive lock.
  3718. snprintf(path, sizeof(path), "%s/%s", destination_dir, s);
  3719. if ((fp = fopen(path, "wb")) == NULL) {
  3720. break;
  3721. }
  3722. // Read POST data, write into file until boundary is found.
  3723. eof = n = 0;
  3724. do {
  3725. len += n;
  3726. for (i = 0; i < len - bl; i++) {
  3727. if (!memcmp(&buf[i], "\r\n--", 4) &&
  3728. !memcmp(&buf[i + 4], boundary, boundary_len)) {
  3729. // Found boundary, that's the end of file data.
  3730. fwrite(buf, 1, i, fp);
  3731. eof = 1;
  3732. memmove(buf, &buf[i + bl], len - (i + bl));
  3733. len -= i + bl;
  3734. break;
  3735. }
  3736. }
  3737. if (!eof && len > bl) {
  3738. fwrite(buf, 1, len - bl, fp);
  3739. memmove(buf, &buf[len - bl], bl);
  3740. len = bl;
  3741. }
  3742. } while (!eof && (n = mg_read(conn, buf + len, sizeof(buf) - len)) > 0);
  3743. fclose(fp);
  3744. if (eof) {
  3745. num_uploaded_files++;
  3746. if (conn->ctx->callbacks.upload != NULL) {
  3747. conn->ctx->callbacks.upload(conn, path);
  3748. }
  3749. }
  3750. }
  3751. return num_uploaded_files;
  3752. }
  3753. static int is_put_or_delete_request(const struct mg_connection *conn) {
  3754. const char *s = conn->request_info.request_method;
  3755. return s != NULL && (!strcmp(s, "PUT") ||
  3756. !strcmp(s, "DELETE") ||
  3757. !strcmp(s, "MKCOL"));
  3758. }
  3759. static int get_first_ssl_listener_index(const struct mg_context *ctx) {
  3760. int i, index = -1;
  3761. for (i = 0; index == -1 && i < ctx->num_listening_sockets; i++) {
  3762. index = ctx->listening_sockets[i].is_ssl ? i : -1;
  3763. }
  3764. return index;
  3765. }
  3766. static void redirect_to_https_port(struct mg_connection *conn, int ssl_index) {
  3767. char host[1025];
  3768. const char *host_header;
  3769. if ((host_header = mg_get_header(conn, "Host")) == NULL ||
  3770. sscanf(host_header, "%1024[^:]", host) == 0) {
  3771. // Cannot get host from the Host: header. Fallback to our IP address.
  3772. sockaddr_to_string(host, sizeof(host), &conn->client.lsa);
  3773. }
  3774. mg_printf(conn, "HTTP/1.1 302 Found\r\nLocation: https://%s:%d%s\r\n\r\n",
  3775. host, (int) ntohs(conn->ctx->listening_sockets[ssl_index].
  3776. lsa.sin.sin_port), conn->request_info.uri);
  3777. }
  3778. // This is the heart of the Mongoose's logic.
  3779. // This function is called when the request is read, parsed and validated,
  3780. // and Mongoose must decide what action to take: serve a file, or
  3781. // a directory, or call embedded function, etcetera.
  3782. static void handle_request(struct mg_connection *conn) {
  3783. struct mg_request_info *ri = &conn->request_info;
  3784. char path[PATH_MAX];
  3785. int uri_len, ssl_index;
  3786. struct file file = STRUCT_FILE_INITIALIZER;
  3787. if ((conn->request_info.query_string = strchr(ri->uri, '?')) != NULL) {
  3788. * ((char *) conn->request_info.query_string++) = '\0';
  3789. }
  3790. uri_len = (int) strlen(ri->uri);
  3791. mg_url_decode(ri->uri, uri_len, (char *) ri->uri, uri_len + 1, 0);
  3792. remove_double_dots_and_double_slashes((char *) ri->uri);
  3793. convert_uri_to_file_name(conn, path, sizeof(path), &file);
  3794. conn->throttle = set_throttle(conn->ctx->config[THROTTLE],
  3795. get_remote_ip(conn), ri->uri);
  3796. DEBUG_TRACE(("%s", ri->uri));
  3797. // Perform redirect and auth checks before calling begin_request() handler.
  3798. // Otherwise, begin_request() would need to perform auth checks and redirects.
  3799. if (!conn->client.is_ssl && conn->client.ssl_redir &&
  3800. (ssl_index = get_first_ssl_listener_index(conn->ctx)) > -1) {
  3801. redirect_to_https_port(conn, ssl_index);
  3802. } else if (!is_put_or_delete_request(conn) &&
  3803. !check_authorization(conn, path)) {
  3804. send_authorization_request(conn);
  3805. } else if (conn->ctx->callbacks.begin_request != NULL &&
  3806. conn->ctx->callbacks.begin_request(conn)) {
  3807. // Do nothing, callback has served the request
  3808. #if defined(USE_WEBSOCKET)
  3809. } else if (is_websocket_request(conn)) {
  3810. handle_websocket_request(conn);
  3811. #endif
  3812. } else if (!strcmp(ri->request_method, "OPTIONS")) {
  3813. send_options(conn);
  3814. } else if (conn->ctx->config[DOCUMENT_ROOT] == NULL) {
  3815. send_http_error(conn, 404, "Not Found", "Not Found");
  3816. } else if (is_put_or_delete_request(conn) &&
  3817. (is_authorized_for_put(conn) != 1)) {
  3818. send_authorization_request(conn);
  3819. } else if (!strcmp(ri->request_method, "PUT")) {
  3820. put_file(conn, path);
  3821. } else if (!strcmp(ri->request_method, "MKCOL")) {
  3822. mkcol(conn, path);
  3823. } else if (!strcmp(ri->request_method, "DELETE")) {
  3824. struct de de;
  3825. memset(&de.file, 0, sizeof(de.file));
  3826. if(!mg_stat(conn, path, &de.file)) {
  3827. send_http_error(conn, 404, "Not Found", "%s", "File not found");
  3828. } else {
  3829. if(de.file.modification_time) {
  3830. if(de.file.is_directory) {
  3831. remove_directory(conn, path);
  3832. send_http_error(conn, 204, "No Content", "%s", "");
  3833. } else if (mg_remove(path) == 0) {
  3834. send_http_error(conn, 204, "No Content", "%s", "");
  3835. } else {
  3836. send_http_error(conn, 423, "Locked", "remove(%s): %s", path,
  3837. strerror(ERRNO));
  3838. }
  3839. }
  3840. else {
  3841. send_http_error(conn, 500, http_500_error, "remove(%s): %s", path,
  3842. strerror(ERRNO));
  3843. }
  3844. }
  3845. } else if ((file.membuf == NULL && file.modification_time == (time_t) 0) ||
  3846. must_hide_file(conn, path)) {
  3847. send_http_error(conn, 404, "Not Found", "%s", "File not found");
  3848. } else if (file.is_directory && ri->uri[uri_len - 1] != '/') {
  3849. mg_printf(conn, "HTTP/1.1 301 Moved Permanently\r\n"
  3850. "Location: %s/\r\n\r\n", ri->uri);
  3851. } else if (!strcmp(ri->request_method, "PROPFIND")) {
  3852. handle_propfind(conn, path, &file);
  3853. } else if (file.is_directory &&
  3854. !substitute_index_file(conn, path, sizeof(path), &file)) {
  3855. if (!mg_strcasecmp(conn->ctx->config[ENABLE_DIRECTORY_LISTING], "yes")) {
  3856. handle_directory_request(conn, path);
  3857. } else {
  3858. send_http_error(conn, 403, "Directory Listing Denied",
  3859. "Directory listing denied");
  3860. }
  3861. #ifdef USE_LUA
  3862. } else if (match_prefix("**.lp$", 6, path) > 0) {
  3863. handle_lsp_request(conn, path, &file, NULL);
  3864. #endif
  3865. #if !defined(NO_CGI)
  3866. } else if (match_prefix(conn->ctx->config[CGI_EXTENSIONS],
  3867. strlen(conn->ctx->config[CGI_EXTENSIONS]),
  3868. path) > 0) {
  3869. if (strcmp(ri->request_method, "POST") &&
  3870. strcmp(ri->request_method, "HEAD") &&
  3871. strcmp(ri->request_method, "GET")) {
  3872. send_http_error(conn, 501, "Not Implemented",
  3873. "Method %s is not implemented", ri->request_method);
  3874. } else {
  3875. handle_cgi_request(conn, path);
  3876. }
  3877. #endif // !NO_CGI
  3878. } else if (match_prefix(conn->ctx->config[SSI_EXTENSIONS],
  3879. strlen(conn->ctx->config[SSI_EXTENSIONS]),
  3880. path) > 0) {
  3881. handle_ssi_file_request(conn, path);
  3882. } else if (is_not_modified(conn, &file)) {
  3883. send_http_error(conn, 304, "Not Modified", "%s", "");
  3884. } else {
  3885. handle_file_request(conn, path, &file);
  3886. }
  3887. }
  3888. static void close_all_listening_sockets(struct mg_context *ctx) {
  3889. int i;
  3890. for (i = 0; i < ctx->num_listening_sockets; i++) {
  3891. closesocket(ctx->listening_sockets[i].sock);
  3892. }
  3893. free(ctx->listening_sockets);
  3894. }
  3895. static int is_valid_port(unsigned int port) {
  3896. return port > 0 && port < 0xffff;
  3897. }
  3898. // Valid listening port specification is: [ip_address:]port[s]
  3899. // Examples: 80, 443s, 127.0.0.1:3128, 1.2.3.4:8080s
  3900. // TODO(lsm): add parsing of the IPv6 address
  3901. static int parse_port_string(const struct vec *vec, struct socket *so) {
  3902. unsigned int a, b, c, d, ch, len, port;
  3903. #if defined(USE_IPV6)
  3904. char buf[100];
  3905. #endif
  3906. // MacOS needs that. If we do not zero it, subsequent bind() will fail.
  3907. // Also, all-zeroes in the socket address means binding to all addresses
  3908. // for both IPv4 and IPv6 (INADDR_ANY and IN6ADDR_ANY_INIT).
  3909. memset(so, 0, sizeof(*so));
  3910. so->lsa.sin.sin_family = AF_INET;
  3911. if (sscanf(vec->ptr, "%u.%u.%u.%u:%u%n", &a, &b, &c, &d, &port, &len) == 5) {
  3912. // Bind to a specific IPv4 address, e.g. 192.168.1.5:8080
  3913. so->lsa.sin.sin_addr.s_addr = htonl((a << 24) | (b << 16) | (c << 8) | d);
  3914. so->lsa.sin.sin_port = htons((uint16_t) port);
  3915. #if defined(USE_IPV6)
  3916. } else if (sscanf(vec->ptr, "[%49[^]]]:%d%n", buf, &port, &len) == 2 &&
  3917. inet_pton(AF_INET6, buf, &so->lsa.sin6.sin6_addr)) {
  3918. // IPv6 address, e.g. [3ffe:2a00:100:7031::1]:8080
  3919. so->lsa.sin6.sin6_family = AF_INET6;
  3920. so->lsa.sin6.sin6_port = htons((uint16_t) port);
  3921. #endif
  3922. } else if (sscanf(vec->ptr, "%u%n", &port, &len) == 1) {
  3923. // If only port is specified, bind to IPv4, INADDR_ANY
  3924. so->lsa.sin.sin_port = htons((uint16_t) port);
  3925. } else {
  3926. port = len = 0; // Parsing failure. Make port invalid.
  3927. }
  3928. ch = vec->ptr[len]; // Next character after the port number
  3929. so->is_ssl = ch == 's';
  3930. so->ssl_redir = ch == 'r';
  3931. // Make sure the port is valid and vector ends with 's', 'r' or ','
  3932. return is_valid_port(port) &&
  3933. (ch == '\0' || ch == 's' || ch == 'r' || ch == ',');
  3934. }
  3935. static int set_ports_option(struct mg_context *ctx) {
  3936. const char *list = ctx->config[LISTENING_PORTS];
  3937. int on = 1, success = 1;
  3938. #if defined(USE_IPV6)
  3939. int off = 0;
  3940. #endif
  3941. struct vec vec;
  3942. struct socket so, *ptr;
  3943. while (success && (list = next_option(list, &vec, NULL)) != NULL) {
  3944. if (!parse_port_string(&vec, &so)) {
  3945. cry(fc(ctx), "%s: %.*s: invalid port spec. Expecting list of: %s",
  3946. __func__, (int) vec.len, vec.ptr, "[IP_ADDRESS:]PORT[s|r]");
  3947. success = 0;
  3948. } else if (so.is_ssl && ctx->ssl_ctx == NULL) {
  3949. cry(fc(ctx), "Cannot add SSL socket, is -ssl_certificate option set?");
  3950. success = 0;
  3951. } else if ((so.sock = socket(so.lsa.sa.sa_family, SOCK_STREAM, 6)) ==
  3952. INVALID_SOCKET ||
  3953. // On Windows, SO_REUSEADDR is recommended only for
  3954. // broadcast UDP sockets
  3955. setsockopt(so.sock, SOL_SOCKET, SO_REUSEADDR,
  3956. (void *) &on, sizeof(on)) != 0 ||
  3957. #if defined(USE_IPV6)
  3958. (so.lsa.sa.sa_family == AF_INET6 &&
  3959. setsockopt(so.sock, IPPROTO_IPV6, IPV6_V6ONLY, (void *) &off,
  3960. sizeof(off)) != 0) ||
  3961. #endif
  3962. bind(so.sock, &so.lsa.sa, so.lsa.sa.sa_family == AF_INET ?
  3963. sizeof(so.lsa.sin) : sizeof(so.lsa)) != 0 ||
  3964. listen(so.sock, SOMAXCONN) != 0) {
  3965. cry(fc(ctx), "%s: cannot bind to %.*s: %d", __func__,
  3966. (int) vec.len, vec.ptr, ERRNO);
  3967. closesocket(so.sock);
  3968. success = 0;
  3969. } else if ((ptr = (struct socket *) realloc(ctx->listening_sockets,
  3970. (ctx->num_listening_sockets + 1) *
  3971. sizeof(ctx->listening_sockets[0]))) == NULL) {
  3972. closesocket(so.sock);
  3973. success = 0;
  3974. } else {
  3975. set_close_on_exec(so.sock);
  3976. ctx->listening_sockets = ptr;
  3977. ctx->listening_sockets[ctx->num_listening_sockets] = so;
  3978. ctx->num_listening_sockets++;
  3979. }
  3980. }
  3981. if (!success) {
  3982. close_all_listening_sockets(ctx);
  3983. }
  3984. return success;
  3985. }
  3986. static void log_header(const struct mg_connection *conn, const char *header,
  3987. FILE *fp) {
  3988. const char *header_value;
  3989. if ((header_value = mg_get_header(conn, header)) == NULL) {
  3990. (void) fprintf(fp, "%s", " -");
  3991. } else {
  3992. (void) fprintf(fp, " \"%s\"", header_value);
  3993. }
  3994. }
  3995. static void log_access(const struct mg_connection *conn) {
  3996. const struct mg_request_info *ri;
  3997. FILE *fp;
  3998. char date[64], src_addr[IP_ADDR_STR_LEN];
  3999. fp = conn->ctx->config[ACCESS_LOG_FILE] == NULL ? NULL :
  4000. fopen(conn->ctx->config[ACCESS_LOG_FILE], "a+");
  4001. if (fp == NULL)
  4002. return;
  4003. strftime(date, sizeof(date), "%d/%b/%Y:%H:%M:%S %z",
  4004. localtime(&conn->birth_time));
  4005. ri = &conn->request_info;
  4006. flockfile(fp);
  4007. sockaddr_to_string(src_addr, sizeof(src_addr), &conn->client.rsa);
  4008. fprintf(fp, "%s - %s [%s] \"%s %s HTTP/%s\" %d %" INT64_FMT,
  4009. src_addr, ri->remote_user == NULL ? "-" : ri->remote_user, date,
  4010. ri->request_method ? ri->request_method : "-",
  4011. ri->uri ? ri->uri : "-", ri->http_version,
  4012. conn->status_code, conn->num_bytes_sent);
  4013. log_header(conn, "Referer", fp);
  4014. log_header(conn, "User-Agent", fp);
  4015. fputc('\n', fp);
  4016. fflush(fp);
  4017. funlockfile(fp);
  4018. fclose(fp);
  4019. }
  4020. // Verify given socket address against the ACL.
  4021. // Return -1 if ACL is malformed, 0 if address is disallowed, 1 if allowed.
  4022. static int check_acl(struct mg_context *ctx, uint32_t remote_ip) {
  4023. int allowed, flag;
  4024. uint32_t net, mask;
  4025. struct vec vec;
  4026. const char *list = ctx->config[ACCESS_CONTROL_LIST];
  4027. // If any ACL is set, deny by default
  4028. allowed = list == NULL ? '+' : '-';
  4029. while ((list = next_option(list, &vec, NULL)) != NULL) {
  4030. flag = vec.ptr[0];
  4031. if ((flag != '+' && flag != '-') ||
  4032. parse_net(&vec.ptr[1], &net, &mask) == 0) {
  4033. cry(fc(ctx), "%s: subnet must be [+|-]x.x.x.x[/x]", __func__);
  4034. return -1;
  4035. }
  4036. if (net == (remote_ip & mask)) {
  4037. allowed = flag;
  4038. }
  4039. }
  4040. return allowed == '+';
  4041. }
  4042. #if !defined(_WIN32)
  4043. static int set_uid_option(struct mg_context *ctx) {
  4044. struct passwd *pw;
  4045. const char *uid = ctx->config[RUN_AS_USER];
  4046. int success = 0;
  4047. if (uid == NULL) {
  4048. success = 1;
  4049. } else {
  4050. if ((pw = getpwnam(uid)) == NULL) {
  4051. cry(fc(ctx), "%s: unknown user [%s]", __func__, uid);
  4052. } else if (setgid(pw->pw_gid) == -1) {
  4053. cry(fc(ctx), "%s: setgid(%s): %s", __func__, uid, strerror(errno));
  4054. } else if (setuid(pw->pw_uid) == -1) {
  4055. cry(fc(ctx), "%s: setuid(%s): %s", __func__, uid, strerror(errno));
  4056. } else {
  4057. success = 1;
  4058. }
  4059. }
  4060. return success;
  4061. }
  4062. #endif // !_WIN32
  4063. #if !defined(NO_SSL)
  4064. static pthread_mutex_t *ssl_mutexes;
  4065. static int sslize(struct mg_connection *conn, SSL_CTX *s, int (*func)(SSL *)) {
  4066. return (conn->ssl = SSL_new(s)) != NULL &&
  4067. SSL_set_fd(conn->ssl, conn->client.sock) == 1 &&
  4068. func(conn->ssl) == 1;
  4069. }
  4070. // Return OpenSSL error message
  4071. static const char *ssl_error(void) {
  4072. unsigned long err;
  4073. err = ERR_get_error();
  4074. return err == 0 ? "" : ERR_error_string(err, NULL);
  4075. }
  4076. static void ssl_locking_callback(int mode, int mutex_num, const char *file,
  4077. int line) {
  4078. (void) line;
  4079. (void) file;
  4080. if (mode & 1) { // 1 is CRYPTO_LOCK
  4081. (void) pthread_mutex_lock(&ssl_mutexes[mutex_num]);
  4082. } else {
  4083. (void) pthread_mutex_unlock(&ssl_mutexes[mutex_num]);
  4084. }
  4085. }
  4086. static unsigned long ssl_id_callback(void) {
  4087. return (unsigned long) pthread_self();
  4088. }
  4089. #if !defined(NO_SSL_DL)
  4090. static int load_dll(struct mg_context *ctx, const char *dll_name,
  4091. struct ssl_func *sw) {
  4092. union {void *p; void (*fp)(void);} u;
  4093. void *dll_handle;
  4094. struct ssl_func *fp;
  4095. if ((dll_handle = dlopen(dll_name, RTLD_LAZY)) == NULL) {
  4096. cry(fc(ctx), "%s: cannot load %s", __func__, dll_name);
  4097. return 0;
  4098. }
  4099. for (fp = sw; fp->name != NULL; fp++) {
  4100. #ifdef _WIN32
  4101. // GetProcAddress() returns pointer to function
  4102. u.fp = (void (*)(void)) dlsym(dll_handle, fp->name);
  4103. #else
  4104. // dlsym() on UNIX returns void *. ISO C forbids casts of data pointers to
  4105. // function pointers. We need to use a union to make a cast.
  4106. u.p = dlsym(dll_handle, fp->name);
  4107. #endif // _WIN32
  4108. if (u.fp == NULL) {
  4109. cry(fc(ctx), "%s: %s: cannot find %s", __func__, dll_name, fp->name);
  4110. return 0;
  4111. } else {
  4112. fp->ptr = u.fp;
  4113. }
  4114. }
  4115. return 1;
  4116. }
  4117. #endif // NO_SSL_DL
  4118. // Dynamically load SSL library. Set up ctx->ssl_ctx pointer.
  4119. static int set_ssl_option(struct mg_context *ctx) {
  4120. int i, size;
  4121. const char *pem;
  4122. // If PEM file is not specified and the init_ssl callback
  4123. // is not specified, skip SSL initialization.
  4124. if ((pem = ctx->config[SSL_CERTIFICATE]) == NULL &&
  4125. ctx->callbacks.init_ssl == NULL) {
  4126. return 1;
  4127. }
  4128. #if !defined(NO_SSL_DL)
  4129. if (!load_dll(ctx, SSL_LIB, ssl_sw) ||
  4130. !load_dll(ctx, CRYPTO_LIB, crypto_sw)) {
  4131. return 0;
  4132. }
  4133. #endif // NO_SSL_DL
  4134. // Initialize SSL library
  4135. SSL_library_init();
  4136. SSL_load_error_strings();
  4137. if ((ctx->ssl_ctx = SSL_CTX_new(SSLv23_server_method())) == NULL) {
  4138. cry(fc(ctx), "SSL_CTX_new (server) error: %s", ssl_error());
  4139. return 0;
  4140. }
  4141. // If user callback returned non-NULL, that means that user callback has
  4142. // set up certificate itself. In this case, skip sertificate setting.
  4143. if ((ctx->callbacks.init_ssl == NULL ||
  4144. !ctx->callbacks.init_ssl(ctx->ssl_ctx, ctx->user_data)) &&
  4145. (SSL_CTX_use_certificate_file(ctx->ssl_ctx, pem, 1) == 0 ||
  4146. SSL_CTX_use_PrivateKey_file(ctx->ssl_ctx, pem, 1) == 0)) {
  4147. cry(fc(ctx), "%s: cannot open %s: %s", __func__, pem, ssl_error());
  4148. return 0;
  4149. }
  4150. if (pem != NULL) {
  4151. (void) SSL_CTX_use_certificate_chain_file(ctx->ssl_ctx, pem);
  4152. }
  4153. // Initialize locking callbacks, needed for thread safety.
  4154. // http://www.openssl.org/support/faq.html#PROG1
  4155. size = sizeof(pthread_mutex_t) * CRYPTO_num_locks();
  4156. if ((ssl_mutexes = (pthread_mutex_t *) malloc((size_t)size)) == NULL) {
  4157. cry(fc(ctx), "%s: cannot allocate mutexes: %s", __func__, ssl_error());
  4158. return 0;
  4159. }
  4160. for (i = 0; i < CRYPTO_num_locks(); i++) {
  4161. pthread_mutex_init(&ssl_mutexes[i], NULL);
  4162. }
  4163. CRYPTO_set_locking_callback(&ssl_locking_callback);
  4164. CRYPTO_set_id_callback(&ssl_id_callback);
  4165. return 1;
  4166. }
  4167. static void uninitialize_ssl(struct mg_context *ctx) {
  4168. int i;
  4169. if (ctx->ssl_ctx != NULL) {
  4170. CRYPTO_set_locking_callback(NULL);
  4171. for (i = 0; i < CRYPTO_num_locks(); i++) {
  4172. pthread_mutex_destroy(&ssl_mutexes[i]);
  4173. }
  4174. CRYPTO_set_locking_callback(NULL);
  4175. CRYPTO_set_id_callback(NULL);
  4176. }
  4177. }
  4178. #endif // !NO_SSL
  4179. static int set_gpass_option(struct mg_context *ctx) {
  4180. struct file file = STRUCT_FILE_INITIALIZER;
  4181. const char *path = ctx->config[GLOBAL_PASSWORDS_FILE];
  4182. if (path != NULL && !mg_stat(fc(ctx), path, &file)) {
  4183. cry(fc(ctx), "Cannot open %s: %s", path, strerror(ERRNO));
  4184. return 0;
  4185. }
  4186. return 1;
  4187. }
  4188. static int set_acl_option(struct mg_context *ctx) {
  4189. return check_acl(ctx, (uint32_t) 0x7f000001UL) != -1;
  4190. }
  4191. static void reset_per_request_attributes(struct mg_connection *conn) {
  4192. conn->path_info = NULL;
  4193. conn->num_bytes_sent = conn->consumed_content = 0;
  4194. conn->status_code = -1;
  4195. conn->must_close = conn->request_len = conn->throttle = 0;
  4196. }
  4197. static void close_socket_gracefully(struct mg_connection *conn) {
  4198. #if defined(_WIN32)
  4199. char buf[MG_BUF_LEN];
  4200. int n;
  4201. #endif
  4202. struct linger linger;
  4203. // Set linger option to avoid socket hanging out after close. This prevent
  4204. // ephemeral port exhaust problem under high QPS.
  4205. linger.l_onoff = 1;
  4206. linger.l_linger = 1;
  4207. setsockopt(conn->client.sock, SOL_SOCKET, SO_LINGER,
  4208. (char *) &linger, sizeof(linger));
  4209. // Send FIN to the client
  4210. shutdown(conn->client.sock, SHUT_WR);
  4211. set_non_blocking_mode(conn->client.sock);
  4212. #if defined(_WIN32)
  4213. // Read and discard pending incoming data. If we do not do that and close the
  4214. // socket, the data in the send buffer may be discarded. This
  4215. // behaviour is seen on Windows, when client keeps sending data
  4216. // when server decides to close the connection; then when client
  4217. // does recv() it gets no data back.
  4218. do {
  4219. n = pull(NULL, conn, buf, sizeof(buf));
  4220. } while (n > 0);
  4221. #endif
  4222. // Now we know that our FIN is ACK-ed, safe to close
  4223. closesocket(conn->client.sock);
  4224. }
  4225. static void close_connection(struct mg_connection *conn) {
  4226. conn->must_close = 1;
  4227. #ifndef NO_SSL
  4228. if (conn->ssl != NULL) {
  4229. // Run SSL_shutdown twice to ensure completly close SSL connection
  4230. SSL_shutdown(conn->ssl);
  4231. SSL_free(conn->ssl);
  4232. conn->ssl = NULL;
  4233. }
  4234. #endif
  4235. if (conn->client.sock != INVALID_SOCKET) {
  4236. close_socket_gracefully(conn);
  4237. conn->client.sock = INVALID_SOCKET;
  4238. }
  4239. }
  4240. void mg_close_connection(struct mg_connection *conn) {
  4241. #ifndef NO_SSL
  4242. if (conn->client_ssl_ctx != NULL) {
  4243. SSL_CTX_free((SSL_CTX *) conn->client_ssl_ctx);
  4244. }
  4245. #endif
  4246. close_connection(conn);
  4247. free(conn);
  4248. }
  4249. struct mg_connection *mg_connect(const char *host, int port, int use_ssl,
  4250. char *ebuf, size_t ebuf_len) {
  4251. static struct mg_context fake_ctx;
  4252. struct mg_connection *conn = NULL;
  4253. SOCKET sock;
  4254. if ((sock = conn2(host, port, use_ssl, ebuf, ebuf_len)) == INVALID_SOCKET) {
  4255. } else if ((conn = (struct mg_connection *)
  4256. calloc(1, sizeof(*conn) + MAX_REQUEST_SIZE)) == NULL) {
  4257. snprintf(ebuf, ebuf_len, "calloc(): %s", strerror(ERRNO));
  4258. closesocket(sock);
  4259. #ifndef NO_SSL
  4260. } else if (use_ssl && (conn->client_ssl_ctx =
  4261. SSL_CTX_new(SSLv23_client_method())) == NULL) {
  4262. snprintf(ebuf, ebuf_len, "SSL_CTX_new error");
  4263. closesocket(sock);
  4264. free(conn);
  4265. conn = NULL;
  4266. #endif // NO_SSL
  4267. } else {
  4268. socklen_t len = sizeof(struct sockaddr);
  4269. conn->buf_size = MAX_REQUEST_SIZE;
  4270. conn->buf = (char *) (conn + 1);
  4271. conn->ctx = &fake_ctx;
  4272. conn->client.sock = sock;
  4273. getsockname(sock, &conn->client.rsa.sa, &len);
  4274. conn->client.is_ssl = use_ssl;
  4275. #ifndef NO_SSL
  4276. if (use_ssl) {
  4277. // SSL_CTX_set_verify call is needed to switch off server certificate
  4278. // checking, which is off by default in OpenSSL and on in yaSSL.
  4279. SSL_CTX_set_verify(conn->client_ssl_ctx, 0, 0);
  4280. sslize(conn, conn->client_ssl_ctx, SSL_connect);
  4281. }
  4282. #endif
  4283. }
  4284. return conn;
  4285. }
  4286. static int is_valid_uri(const char *uri) {
  4287. // Conform to http://www.w3.org/Protocols/rfc2616/rfc2616-sec5.html#sec5.1.2
  4288. // URI can be an asterisk (*) or should start with slash.
  4289. return uri[0] == '/' || (uri[0] == '*' && uri[1] == '\0');
  4290. }
  4291. static int getreq(struct mg_connection *conn, char *ebuf, size_t ebuf_len) {
  4292. const char *cl;
  4293. ebuf[0] = '\0';
  4294. reset_per_request_attributes(conn);
  4295. conn->request_len = read_request(NULL, conn, conn->buf, conn->buf_size,
  4296. &conn->data_len);
  4297. assert(conn->request_len < 0 || conn->data_len >= conn->request_len);
  4298. if (conn->request_len == 0 && conn->data_len == conn->buf_size) {
  4299. snprintf(ebuf, ebuf_len, "%s", "Request Too Large");
  4300. } else if (conn->request_len <= 0) {
  4301. snprintf(ebuf, ebuf_len, "%s", "Client closed connection");
  4302. } else if (parse_http_message(conn->buf, conn->buf_size,
  4303. &conn->request_info) <= 0) {
  4304. snprintf(ebuf, ebuf_len, "Bad request: [%.*s]", conn->data_len, conn->buf);
  4305. } else {
  4306. // Request is valid
  4307. if ((cl = get_header(&conn->request_info, "Content-Length")) != NULL) {
  4308. conn->content_len = strtoll(cl, NULL, 10);
  4309. } else if (!mg_strcasecmp(conn->request_info.request_method, "POST") ||
  4310. !mg_strcasecmp(conn->request_info.request_method, "PUT")) {
  4311. conn->content_len = -1;
  4312. } else {
  4313. conn->content_len = 0;
  4314. }
  4315. conn->birth_time = time(NULL);
  4316. }
  4317. return ebuf[0] == '\0';
  4318. }
  4319. struct mg_connection *mg_download(const char *host, int port, int use_ssl,
  4320. char *ebuf, size_t ebuf_len,
  4321. const char *fmt, ...) {
  4322. struct mg_connection *conn;
  4323. va_list ap;
  4324. va_start(ap, fmt);
  4325. ebuf[0] = '\0';
  4326. if ((conn = mg_connect(host, port, use_ssl, ebuf, ebuf_len)) == NULL) {
  4327. } else if (mg_vprintf(conn, fmt, ap) <= 0) {
  4328. snprintf(ebuf, ebuf_len, "%s", "Error sending request");
  4329. } else {
  4330. getreq(conn, ebuf, ebuf_len);
  4331. }
  4332. if (ebuf[0] != '\0' && conn != NULL) {
  4333. mg_close_connection(conn);
  4334. conn = NULL;
  4335. }
  4336. return conn;
  4337. }
  4338. static void process_new_connection(struct mg_connection *conn) {
  4339. struct mg_request_info *ri = &conn->request_info;
  4340. int keep_alive_enabled, keep_alive, discard_len;
  4341. char ebuf[100];
  4342. keep_alive_enabled = !strcmp(conn->ctx->config[ENABLE_KEEP_ALIVE], "yes");
  4343. keep_alive = 0;
  4344. // Important: on new connection, reset the receiving buffer. Credit goes
  4345. // to crule42.
  4346. conn->data_len = 0;
  4347. do {
  4348. if (!getreq(conn, ebuf, sizeof(ebuf))) {
  4349. send_http_error(conn, 500, "Server Error", "%s", ebuf);
  4350. conn->must_close = 1;
  4351. } else if (!is_valid_uri(conn->request_info.uri)) {
  4352. snprintf(ebuf, sizeof(ebuf), "Invalid URI: [%s]", ri->uri);
  4353. send_http_error(conn, 400, "Bad Request", "%s", ebuf);
  4354. } else if (strcmp(ri->http_version, "1.0") &&
  4355. strcmp(ri->http_version, "1.1")) {
  4356. snprintf(ebuf, sizeof(ebuf), "Bad HTTP version: [%s]", ri->http_version);
  4357. send_http_error(conn, 505, "Bad HTTP version", "%s", ebuf);
  4358. }
  4359. if (ebuf[0] == '\0') {
  4360. handle_request(conn);
  4361. if (conn->ctx->callbacks.end_request != NULL) {
  4362. conn->ctx->callbacks.end_request(conn, conn->status_code);
  4363. }
  4364. log_access(conn);
  4365. }
  4366. if (ri->remote_user != NULL) {
  4367. free((void *) ri->remote_user);
  4368. // Important! When having connections with and without auth
  4369. // would cause double free and then crash
  4370. ri->remote_user = NULL;
  4371. }
  4372. // NOTE(lsm): order is important here. should_keep_alive() call
  4373. // is using parsed request, which will be invalid after memmove's below.
  4374. // Therefore, memorize should_keep_alive() result now for later use
  4375. // in loop exit condition.
  4376. keep_alive = conn->ctx->stop_flag == 0 && keep_alive_enabled &&
  4377. conn->content_len >= 0 && should_keep_alive(conn);
  4378. // Discard all buffered data for this request
  4379. discard_len = conn->content_len >= 0 && conn->request_len > 0 &&
  4380. conn->request_len + conn->content_len < (int64_t) conn->data_len ?
  4381. (int) (conn->request_len + conn->content_len) : conn->data_len;
  4382. assert(discard_len >= 0);
  4383. memmove(conn->buf, conn->buf + discard_len, conn->data_len - discard_len);
  4384. conn->data_len -= discard_len;
  4385. assert(conn->data_len >= 0);
  4386. assert(conn->data_len <= conn->buf_size);
  4387. } while (keep_alive);
  4388. }
  4389. // Worker threads take accepted socket from the queue
  4390. static int consume_socket(struct mg_context *ctx, struct socket *sp) {
  4391. (void) pthread_mutex_lock(&ctx->mutex);
  4392. DEBUG_TRACE(("going idle"));
  4393. // If the queue is empty, wait. We're idle at this point.
  4394. while (ctx->sq_head == ctx->sq_tail && ctx->stop_flag == 0) {
  4395. pthread_cond_wait(&ctx->sq_full, &ctx->mutex);
  4396. }
  4397. // If we're stopping, sq_head may be equal to sq_tail.
  4398. if (ctx->sq_head > ctx->sq_tail) {
  4399. // Copy socket from the queue and increment tail
  4400. *sp = ctx->queue[ctx->sq_tail % ARRAY_SIZE(ctx->queue)];
  4401. ctx->sq_tail++;
  4402. DEBUG_TRACE(("grabbed socket %d, going busy", sp->sock));
  4403. // Wrap pointers if needed
  4404. while (ctx->sq_tail > (int) ARRAY_SIZE(ctx->queue)) {
  4405. ctx->sq_tail -= ARRAY_SIZE(ctx->queue);
  4406. ctx->sq_head -= ARRAY_SIZE(ctx->queue);
  4407. }
  4408. }
  4409. (void) pthread_cond_signal(&ctx->sq_empty);
  4410. (void) pthread_mutex_unlock(&ctx->mutex);
  4411. return !ctx->stop_flag;
  4412. }
  4413. static void *worker_thread(void *thread_func_param) {
  4414. struct mg_context *ctx = (struct mg_context *) thread_func_param;
  4415. struct mg_connection *conn;
  4416. conn = (struct mg_connection *) calloc(1, sizeof(*conn) + MAX_REQUEST_SIZE);
  4417. if (conn == NULL) {
  4418. cry(fc(ctx), "%s", "Cannot create new connection struct, OOM");
  4419. } else {
  4420. conn->buf_size = MAX_REQUEST_SIZE;
  4421. conn->buf = (char *) (conn + 1);
  4422. conn->ctx = ctx;
  4423. conn->request_info.user_data = ctx->user_data;
  4424. // Call consume_socket() even when ctx->stop_flag > 0, to let it signal
  4425. // sq_empty condvar to wake up the master waiting in produce_socket()
  4426. while (consume_socket(ctx, &conn->client)) {
  4427. conn->birth_time = time(NULL);
  4428. // Fill in IP, port info early so even if SSL setup below fails,
  4429. // error handler would have the corresponding info.
  4430. // Thanks to Johannes Winkelmann for the patch.
  4431. // TODO(lsm): Fix IPv6 case
  4432. conn->request_info.remote_port = ntohs(conn->client.rsa.sin.sin_port);
  4433. memcpy(&conn->request_info.remote_ip,
  4434. &conn->client.rsa.sin.sin_addr.s_addr, 4);
  4435. conn->request_info.remote_ip = ntohl(conn->request_info.remote_ip);
  4436. conn->request_info.is_ssl = conn->client.is_ssl;
  4437. if (!conn->client.is_ssl
  4438. #ifndef NO_SSL
  4439. || sslize(conn, conn->ctx->ssl_ctx, SSL_accept)
  4440. #endif
  4441. ) {
  4442. process_new_connection(conn);
  4443. }
  4444. close_connection(conn);
  4445. }
  4446. free(conn);
  4447. }
  4448. // Signal master that we're done with connection and exiting
  4449. (void) pthread_mutex_lock(&ctx->mutex);
  4450. ctx->num_threads--;
  4451. (void) pthread_cond_signal(&ctx->cond);
  4452. assert(ctx->num_threads >= 0);
  4453. (void) pthread_mutex_unlock(&ctx->mutex);
  4454. DEBUG_TRACE(("exiting"));
  4455. return NULL;
  4456. }
  4457. // Master thread adds accepted socket to a queue
  4458. static void produce_socket(struct mg_context *ctx, const struct socket *sp) {
  4459. (void) pthread_mutex_lock(&ctx->mutex);
  4460. // If the queue is full, wait
  4461. while (ctx->stop_flag == 0 &&
  4462. ctx->sq_head - ctx->sq_tail >= (int) ARRAY_SIZE(ctx->queue)) {
  4463. (void) pthread_cond_wait(&ctx->sq_empty, &ctx->mutex);
  4464. }
  4465. if (ctx->sq_head - ctx->sq_tail < (int) ARRAY_SIZE(ctx->queue)) {
  4466. // Copy socket to the queue and increment head
  4467. ctx->queue[ctx->sq_head % ARRAY_SIZE(ctx->queue)] = *sp;
  4468. ctx->sq_head++;
  4469. DEBUG_TRACE(("queued socket %d", sp->sock));
  4470. }
  4471. (void) pthread_cond_signal(&ctx->sq_full);
  4472. (void) pthread_mutex_unlock(&ctx->mutex);
  4473. }
  4474. static int set_sock_timeout(SOCKET sock, int milliseconds) {
  4475. #ifdef _WIN32
  4476. DWORD t = milliseconds;
  4477. #else
  4478. struct timeval t;
  4479. t.tv_sec = milliseconds / 1000;
  4480. t.tv_usec = (milliseconds * 1000) % 1000000;
  4481. #endif
  4482. return setsockopt(sock, SOL_SOCKET, SO_RCVTIMEO, (void *) &t, sizeof(t)) ||
  4483. setsockopt(sock, SOL_SOCKET, SO_SNDTIMEO, (void *) &t, sizeof(t));
  4484. }
  4485. static void accept_new_connection(const struct socket *listener,
  4486. struct mg_context *ctx) {
  4487. struct socket so;
  4488. char src_addr[IP_ADDR_STR_LEN];
  4489. socklen_t len = sizeof(so.rsa);
  4490. int on = 1;
  4491. if ((so.sock = accept(listener->sock, &so.rsa.sa, &len)) == INVALID_SOCKET) {
  4492. } else if (!check_acl(ctx, ntohl(* (uint32_t *) &so.rsa.sin.sin_addr))) {
  4493. sockaddr_to_string(src_addr, sizeof(src_addr), &so.rsa);
  4494. cry(fc(ctx), "%s: %s is not allowed to connect", __func__, src_addr);
  4495. closesocket(so.sock);
  4496. } else {
  4497. // Put so socket structure into the queue
  4498. DEBUG_TRACE(("Accepted socket %d", (int) so.sock));
  4499. set_close_on_exec(so.sock);
  4500. so.is_ssl = listener->is_ssl;
  4501. so.ssl_redir = listener->ssl_redir;
  4502. getsockname(so.sock, &so.lsa.sa, &len);
  4503. // Set TCP keep-alive. This is needed because if HTTP-level keep-alive
  4504. // is enabled, and client resets the connection, server won't get
  4505. // TCP FIN or RST and will keep the connection open forever. With TCP
  4506. // keep-alive, next keep-alive handshake will figure out that the client
  4507. // is down and will close the server end.
  4508. // Thanks to Igor Klopov who suggested the patch.
  4509. setsockopt(so.sock, SOL_SOCKET, SO_KEEPALIVE, (void *) &on, sizeof(on));
  4510. set_sock_timeout(so.sock, atoi(ctx->config[REQUEST_TIMEOUT]));
  4511. produce_socket(ctx, &so);
  4512. }
  4513. }
  4514. static void *master_thread(void *thread_func_param) {
  4515. struct mg_context *ctx = (struct mg_context *) thread_func_param;
  4516. struct pollfd *pfd;
  4517. int i;
  4518. // Increase priority of the master thread
  4519. #if defined(_WIN32)
  4520. SetThreadPriority(GetCurrentThread(), THREAD_PRIORITY_ABOVE_NORMAL);
  4521. #endif
  4522. #if defined(ISSUE_317)
  4523. struct sched_param sched_param;
  4524. sched_param.sched_priority = sched_get_priority_max(SCHED_RR);
  4525. pthread_setschedparam(pthread_self(), SCHED_RR, &sched_param);
  4526. #endif
  4527. pfd = (struct pollfd *) calloc(ctx->num_listening_sockets, sizeof(pfd[0]));
  4528. while (pfd != NULL && ctx->stop_flag == 0) {
  4529. for (i = 0; i < ctx->num_listening_sockets; i++) {
  4530. pfd[i].fd = ctx->listening_sockets[i].sock;
  4531. pfd[i].events = POLLIN;
  4532. }
  4533. if (poll(pfd, ctx->num_listening_sockets, 200) > 0) {
  4534. for (i = 0; i < ctx->num_listening_sockets; i++) {
  4535. // NOTE(lsm): on QNX, poll() returns POLLRDNORM after the
  4536. // successfull poll, and POLLIN is defined as (POLLRDNORM | POLLRDBAND)
  4537. // Therefore, we're checking pfd[i].revents & POLLIN, not
  4538. // pfd[i].revents == POLLIN.
  4539. if (ctx->stop_flag == 0 && (pfd[i].revents & POLLIN)) {
  4540. accept_new_connection(&ctx->listening_sockets[i], ctx);
  4541. }
  4542. }
  4543. }
  4544. }
  4545. free(pfd);
  4546. DEBUG_TRACE(("stopping workers"));
  4547. // Stop signal received: somebody called mg_stop. Quit.
  4548. close_all_listening_sockets(ctx);
  4549. // Wakeup workers that are waiting for connections to handle.
  4550. pthread_cond_broadcast(&ctx->sq_full);
  4551. // Wait until all threads finish
  4552. (void) pthread_mutex_lock(&ctx->mutex);
  4553. while (ctx->num_threads > 0) {
  4554. (void) pthread_cond_wait(&ctx->cond, &ctx->mutex);
  4555. }
  4556. (void) pthread_mutex_unlock(&ctx->mutex);
  4557. // All threads exited, no sync is needed. Destroy mutex and condvars
  4558. (void) pthread_mutex_destroy(&ctx->mutex);
  4559. (void) pthread_cond_destroy(&ctx->cond);
  4560. (void) pthread_cond_destroy(&ctx->sq_empty);
  4561. (void) pthread_cond_destroy(&ctx->sq_full);
  4562. #if !defined(NO_SSL)
  4563. uninitialize_ssl(ctx);
  4564. #endif
  4565. DEBUG_TRACE(("exiting"));
  4566. // Signal mg_stop() that we're done.
  4567. // WARNING: This must be the very last thing this
  4568. // thread does, as ctx becomes invalid after this line.
  4569. ctx->stop_flag = 2;
  4570. return NULL;
  4571. }
  4572. static void free_context(struct mg_context *ctx) {
  4573. int i;
  4574. // Deallocate config parameters
  4575. for (i = 0; i < NUM_OPTIONS; i++) {
  4576. if (ctx->config[i] != NULL)
  4577. free(ctx->config[i]);
  4578. }
  4579. #ifndef NO_SSL
  4580. // Deallocate SSL context
  4581. if (ctx->ssl_ctx != NULL) {
  4582. SSL_CTX_free(ctx->ssl_ctx);
  4583. }
  4584. if (ssl_mutexes != NULL) {
  4585. free(ssl_mutexes);
  4586. ssl_mutexes = NULL;
  4587. }
  4588. #endif // !NO_SSL
  4589. // Deallocate context itself
  4590. free(ctx);
  4591. }
  4592. void mg_stop(struct mg_context *ctx) {
  4593. ctx->stop_flag = 1;
  4594. // Wait until mg_fini() stops
  4595. while (ctx->stop_flag != 2) {
  4596. (void) mg_sleep(10);
  4597. }
  4598. free_context(ctx);
  4599. #if defined(_WIN32) && !defined(__SYMBIAN32__)
  4600. (void) WSACleanup();
  4601. #endif // _WIN32
  4602. }
  4603. struct mg_context *mg_start(const struct mg_callbacks *callbacks,
  4604. void *user_data,
  4605. const char **options) {
  4606. struct mg_context *ctx;
  4607. const char *name, *value, *default_value;
  4608. int i;
  4609. #if defined(_WIN32) && !defined(__SYMBIAN32__)
  4610. WSADATA data;
  4611. WSAStartup(MAKEWORD(2,2), &data);
  4612. InitializeCriticalSection(&global_log_file_lock);
  4613. #endif // _WIN32
  4614. // Allocate context and initialize reasonable general case defaults.
  4615. // TODO(lsm): do proper error handling here.
  4616. if ((ctx = (struct mg_context *) calloc(1, sizeof(*ctx))) == NULL) {
  4617. return NULL;
  4618. }
  4619. ctx->callbacks = *callbacks;
  4620. ctx->user_data = user_data;
  4621. while (options && (name = *options++) != NULL) {
  4622. if ((i = get_option_index(name)) == -1) {
  4623. cry(fc(ctx), "Invalid option: %s", name);
  4624. free_context(ctx);
  4625. return NULL;
  4626. } else if ((value = *options++) == NULL) {
  4627. cry(fc(ctx), "%s: option value cannot be NULL", name);
  4628. free_context(ctx);
  4629. return NULL;
  4630. }
  4631. if (ctx->config[i] != NULL) {
  4632. cry(fc(ctx), "warning: %s: duplicate option", name);
  4633. free(ctx->config[i]);
  4634. }
  4635. ctx->config[i] = mg_strdup(value);
  4636. DEBUG_TRACE(("[%s] -> [%s]", name, value));
  4637. }
  4638. // Set default value if needed
  4639. for (i = 0; config_options[i * 2] != NULL; i++) {
  4640. default_value = config_options[i * 2 + 1];
  4641. if (ctx->config[i] == NULL && default_value != NULL) {
  4642. ctx->config[i] = mg_strdup(default_value);
  4643. }
  4644. }
  4645. // NOTE(lsm): order is important here. SSL certificates must
  4646. // be initialized before listening ports. UID must be set last.
  4647. if (!set_gpass_option(ctx) ||
  4648. #if !defined(NO_SSL)
  4649. !set_ssl_option(ctx) ||
  4650. #endif
  4651. !set_ports_option(ctx) ||
  4652. #if !defined(_WIN32)
  4653. !set_uid_option(ctx) ||
  4654. #endif
  4655. !set_acl_option(ctx)) {
  4656. free_context(ctx);
  4657. return NULL;
  4658. }
  4659. #if !defined(_WIN32) && !defined(__SYMBIAN32__)
  4660. // Ignore SIGPIPE signal, so if browser cancels the request, it
  4661. // won't kill the whole process.
  4662. (void) signal(SIGPIPE, SIG_IGN);
  4663. // Also ignoring SIGCHLD to let the OS to reap zombies properly.
  4664. (void) signal(SIGCHLD, SIG_IGN);
  4665. #endif // !_WIN32
  4666. (void) pthread_mutex_init(&ctx->mutex, NULL);
  4667. (void) pthread_cond_init(&ctx->cond, NULL);
  4668. (void) pthread_cond_init(&ctx->sq_empty, NULL);
  4669. (void) pthread_cond_init(&ctx->sq_full, NULL);
  4670. // Start master (listening) thread
  4671. mg_start_thread(master_thread, ctx);
  4672. // Start worker threads
  4673. for (i = 0; i < atoi(ctx->config[NUM_THREADS]); i++) {
  4674. if (mg_start_thread(worker_thread, ctx) != 0) {
  4675. cry(fc(ctx), "Cannot start worker thread: %ld", (long) ERRNO);
  4676. } else {
  4677. ctx->num_threads++;
  4678. }
  4679. }
  4680. return ctx;
  4681. }