rtmp.c 156 KB

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  1. /*
  2. * Copyright (C) 2005-2008 Team XBMC
  3. * http://www.xbmc.org
  4. * Copyright (C) 2008-2009 Andrej Stepanchuk
  5. * Copyright (C) 2009-2010 Howard Chu
  6. *
  7. * This file is part of librtmp.
  8. *
  9. * librtmp is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU Lesser General Public License as
  11. * published by the Free Software Foundation; either version 2.1,
  12. * or (at your option) any later version.
  13. *
  14. * librtmp is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU Lesser General Public License
  20. * along with librtmp see the file COPYING. If not, write to
  21. * the Free Software Foundation, Inc., 51 Franklin Street, Fifth Floor,
  22. * Boston, MA 02110-1301, USA.
  23. * http://www.gnu.org/copyleft/lgpl.html
  24. */
  25. #include "rtmp_sys.h"
  26. #include "log.h"
  27. #ifdef CRYPTO
  28. #ifdef USE_POLARSSL
  29. #include <polarssl/havege.h>
  30. #include <polarssl/md5.h>
  31. #include <polarssl/base64.h>
  32. #define MD5_DIGEST_LENGTH 16
  33. static const char *my_dhm_P =
  34. "E4004C1F94182000103D883A448B3F80" \
  35. "2CE4B44A83301270002C20D0321CFD00" \
  36. "11CCEF784C26A400F43DFB901BCA7538" \
  37. "F2C6B176001CF5A0FD16D2C48B1D0C1C" \
  38. "F6AC8E1DA6BCC3B4E1F96B0564965300" \
  39. "FFA1D0B601EB2800F489AA512C4B248C" \
  40. "01F76949A60BB7F00A40B1EAB64BDD48" \
  41. "E8A700D60B7F1200FA8E77B0A979DABF";
  42. static const char *my_dhm_G = "4";
  43. #elif defined(USE_GNUTLS)
  44. #include <gnutls/gnutls.h>
  45. #define MD5_DIGEST_LENGTH 16
  46. #include <nettle/base64.h>
  47. #include <nettle/md5.h>
  48. #else /* USE_OPENSSL */
  49. #include <openssl/ssl.h>
  50. #include <openssl/rc4.h>
  51. #include <openssl/md5.h>
  52. #include <openssl/bio.h>
  53. #include <openssl/buffer.h>
  54. #endif
  55. TLS_CTX RTMP_TLS_ctx;
  56. #endif
  57. #define RTMP_SIG_SIZE 1536
  58. #define RTMP_LARGE_HEADER_SIZE 12
  59. static const int packetSize[] = { 12, 8, 4, 1 };
  60. int RTMP_ctrlC;
  61. const char RTMPProtocolStrings[][7] =
  62. {
  63. "RTMP",
  64. "RTMPT",
  65. "RTMPE",
  66. "RTMPTE",
  67. "RTMPS",
  68. "RTMPTS",
  69. "",
  70. "",
  71. "RTMFP"
  72. };
  73. const char RTMPProtocolStringsLower[][7] =
  74. {
  75. "rtmp",
  76. "rtmpt",
  77. "rtmpe",
  78. "rtmpte",
  79. "rtmps",
  80. "rtmpts",
  81. "",
  82. "",
  83. "rtmfp"
  84. };
  85. static const char *RTMPT_cmds[] =
  86. {
  87. "open",
  88. "send",
  89. "idle",
  90. "close"
  91. };
  92. typedef enum
  93. {
  94. RTMPT_OPEN=0, RTMPT_SEND, RTMPT_IDLE, RTMPT_CLOSE
  95. } RTMPTCmd;
  96. static int DumpMetaData(AMFObject *obj);
  97. static int HandShake(RTMP *r, int FP9HandShake);
  98. static int SocksNegotiate(RTMP *r);
  99. static int SendConnectPacket(RTMP *r, RTMPPacket *cp);
  100. static int SendCheckBW(RTMP *r);
  101. static int SendCheckBWResult(RTMP *r, double txn);
  102. static int SendDeleteStream(RTMP *r, double dStreamId);
  103. static int SendFCSubscribe(RTMP *r, AVal *subscribepath);
  104. static int SendPlay(RTMP *r, int streamIdx);
  105. static int SendBytesReceived(RTMP *r);
  106. static int SendUsherToken(RTMP *r, AVal *usherToken);
  107. static int SendFCUnpublish(RTMP *r, int streamIdx);
  108. #if 0 /* unused */
  109. static int SendBGHasStream(RTMP *r, double dId, AVal *playpath);
  110. #endif
  111. static int HandleInvoke(RTMP *r, const char *body, unsigned int nBodySize);
  112. static int HandleMetadata(RTMP *r, char *body, unsigned int len);
  113. static void HandleChangeChunkSize(RTMP *r, const RTMPPacket *packet);
  114. static void HandleAudio(RTMP *r, const RTMPPacket *packet);
  115. static void HandleVideo(RTMP *r, const RTMPPacket *packet);
  116. static void HandleCtrl(RTMP *r, const RTMPPacket *packet);
  117. static void HandleServerBW(RTMP *r, const RTMPPacket *packet);
  118. static void HandleClientBW(RTMP *r, const RTMPPacket *packet);
  119. static int ReadN(RTMP *r, char *buffer, int n);
  120. static int WriteN(RTMP *r, const char *buffer, int n);
  121. static void DecodeTEA(AVal *key, AVal *text);
  122. static int HTTP_Post(RTMP *r, RTMPTCmd cmd, const char *buf, int len);
  123. static int HTTP_read(RTMP *r, int fill);
  124. #if !defined(_WIN32) && !defined(_DEBUG)
  125. static int clk_tck;
  126. #endif
  127. #ifdef CRYPTO
  128. #include "handshake.h"
  129. #endif
  130. uint32_t
  131. RTMP_GetTime()
  132. {
  133. #ifdef _DEBUG
  134. return 0;
  135. #elif defined(_WIN32)
  136. return timeGetTime();
  137. #else
  138. struct tms t;
  139. if (!clk_tck) clk_tck = sysconf(_SC_CLK_TCK);
  140. return times(&t) * 1000 / clk_tck;
  141. #endif
  142. }
  143. const char *
  144. socketerror(int err)
  145. {
  146. static char buff[1024];
  147. #ifdef _WIN32
  148. if (FormatMessageA (FORMAT_MESSAGE_FROM_SYSTEM, NULL, err, 0, buff, sizeof(buff), NULL))
  149. {
  150. int i, len;
  151. buff[sizeof(buff)-1] = '\0';
  152. len = (int)strlen (buff);
  153. for (i = 0; i < len; i++)
  154. {
  155. if (buff[i] == '\r' || buff[i] == '\n')
  156. {
  157. memmove (buff + i, buff + i + 1, len - i);
  158. i--;
  159. len--;
  160. }
  161. }
  162. return buff;
  163. }
  164. #else
  165. (void)err;
  166. #endif
  167. strcpy (buff, "unknown error");
  168. return buff;
  169. }
  170. void
  171. RTMP_UserInterrupt()
  172. {
  173. RTMP_ctrlC = TRUE;
  174. }
  175. void
  176. RTMPPacket_Reset(RTMPPacket *p)
  177. {
  178. p->m_headerType = 0;
  179. p->m_packetType = 0;
  180. p->m_nChannel = 0;
  181. p->m_nTimeStamp = 0;
  182. p->m_nInfoField2 = 0;
  183. p->m_hasAbsTimestamp = FALSE;
  184. p->m_nBodySize = 0;
  185. p->m_nBytesRead = 0;
  186. }
  187. int
  188. RTMPPacket_Alloc(RTMPPacket *p, int nSize)
  189. {
  190. char *ptr = calloc(1, nSize + RTMP_MAX_HEADER_SIZE);
  191. if (!ptr)
  192. return FALSE;
  193. p->m_body = ptr + RTMP_MAX_HEADER_SIZE;
  194. p->m_nBytesRead = 0;
  195. return TRUE;
  196. }
  197. void
  198. RTMPPacket_Free(RTMPPacket *p)
  199. {
  200. if (p->m_body)
  201. {
  202. free(p->m_body - RTMP_MAX_HEADER_SIZE);
  203. p->m_body = NULL;
  204. }
  205. }
  206. void
  207. RTMPPacket_Dump(RTMPPacket *p)
  208. {
  209. RTMP_Log(RTMP_LOGDEBUG,
  210. "RTMP PACKET: packet type: 0x%02x. channel: 0x%02x. info 1: %d info 2: %d. Body size: %u. body: 0x%02x",
  211. p->m_packetType, p->m_nChannel, p->m_nTimeStamp, p->m_nInfoField2,
  212. p->m_nBodySize, p->m_body ? (unsigned char)p->m_body[0] : 0);
  213. }
  214. int
  215. RTMP_LibVersion()
  216. {
  217. return RTMP_LIB_VERSION;
  218. }
  219. void
  220. RTMP_TLS_Init()
  221. {
  222. #ifdef CRYPTO
  223. #ifdef USE_POLARSSL
  224. /* Do this regardless of NO_SSL, we use havege for rtmpe too */
  225. RTMP_TLS_ctx = calloc(1,sizeof(struct tls_ctx));
  226. havege_init(&RTMP_TLS_ctx->hs);
  227. #elif defined(USE_GNUTLS) && !defined(NO_SSL)
  228. /* Technically we need to initialize libgcrypt ourselves if
  229. * we're not going to call gnutls_global_init(). Ignoring this
  230. * for now.
  231. */
  232. gnutls_global_init();
  233. RTMP_TLS_ctx = malloc(sizeof(struct tls_ctx));
  234. gnutls_certificate_allocate_credentials(&RTMP_TLS_ctx->cred);
  235. gnutls_priority_init(&RTMP_TLS_ctx->prios, "NORMAL", NULL);
  236. gnutls_certificate_set_x509_trust_file(RTMP_TLS_ctx->cred,
  237. "ca.pem", GNUTLS_X509_FMT_PEM);
  238. #elif !defined(NO_SSL) /* USE_OPENSSL */
  239. /* libcrypto doesn't need anything special */
  240. SSL_load_error_strings();
  241. SSL_library_init();
  242. OpenSSL_add_all_digests();
  243. RTMP_TLS_ctx = SSL_CTX_new(SSLv23_method());
  244. SSL_CTX_set_options(RTMP_TLS_ctx, SSL_OP_ALL);
  245. SSL_CTX_set_default_verify_paths(RTMP_TLS_ctx);
  246. #endif
  247. #endif
  248. }
  249. void *
  250. RTMP_TLS_AllocServerContext(const char* cert, const char* key)
  251. {
  252. void *ctx = NULL;
  253. #ifdef CRYPTO
  254. if (!RTMP_TLS_ctx)
  255. RTMP_TLS_Init();
  256. #ifdef USE_POLARSSL
  257. tls_server_ctx *tc = ctx = calloc(1, sizeof(struct tls_server_ctx));
  258. tc->dhm_P = my_dhm_P;
  259. tc->dhm_G = my_dhm_G;
  260. tc->hs = &RTMP_TLS_ctx->hs;
  261. if (x509parse_crtfile(&tc->cert, cert))
  262. {
  263. free(tc);
  264. return NULL;
  265. }
  266. if (x509parse_keyfile(&tc->key, key, NULL))
  267. {
  268. x509_free(&tc->cert);
  269. free(tc);
  270. return NULL;
  271. }
  272. #elif defined(USE_GNUTLS) && !defined(NO_SSL)
  273. gnutls_certificate_allocate_credentials((gnutls_certificate_credentials*) &ctx);
  274. if (gnutls_certificate_set_x509_key_file(ctx, cert, key, GNUTLS_X509_FMT_PEM) != 0)
  275. {
  276. gnutls_certificate_free_credentials(ctx);
  277. return NULL;
  278. }
  279. #elif !defined(NO_SSL) /* USE_OPENSSL */
  280. ctx = SSL_CTX_new(SSLv23_server_method());
  281. if (!SSL_CTX_use_certificate_chain_file(ctx, cert))
  282. {
  283. SSL_CTX_free(ctx);
  284. return NULL;
  285. }
  286. if (!SSL_CTX_use_PrivateKey_file(ctx, key, SSL_FILETYPE_PEM))
  287. {
  288. SSL_CTX_free(ctx);
  289. return NULL;
  290. }
  291. #endif
  292. #else
  293. (void)cert;
  294. (void)key;
  295. #endif
  296. return ctx;
  297. }
  298. void
  299. RTMP_TLS_FreeServerContext(void *ctx)
  300. {
  301. #ifdef CRYPTO
  302. #ifdef USE_POLARSSL
  303. x509_free(&((tls_server_ctx*)ctx)->cert);
  304. rsa_free(&((tls_server_ctx*)ctx)->key);
  305. free(ctx);
  306. #elif defined(USE_GNUTLS) && !defined(NO_SSL)
  307. gnutls_certificate_free_credentials(ctx);
  308. #elif !defined(NO_SSL) /* USE_OPENSSL */
  309. SSL_CTX_free(ctx);
  310. #endif
  311. #else
  312. (void)ctx;
  313. #endif
  314. }
  315. RTMP *
  316. RTMP_Alloc()
  317. {
  318. return calloc(1, sizeof(RTMP));
  319. }
  320. void
  321. RTMP_Free(RTMP *r)
  322. {
  323. free(r);
  324. }
  325. void
  326. RTMP_Init(RTMP *r)
  327. {
  328. #ifdef CRYPTO
  329. if (!RTMP_TLS_ctx)
  330. RTMP_TLS_Init();
  331. #endif
  332. memset(r, 0, sizeof(RTMP));
  333. r->m_sb.sb_socket = -1;
  334. r->m_inChunkSize = RTMP_DEFAULT_CHUNKSIZE;
  335. r->m_outChunkSize = RTMP_DEFAULT_CHUNKSIZE;
  336. r->m_bSendChunkSizeInfo = 1;
  337. r->m_nBufferMS = 30000;
  338. r->m_nClientBW = 2500000;
  339. r->m_nClientBW2 = 2;
  340. r->m_nServerBW = 2500000;
  341. r->m_fAudioCodecs = 3191.0;
  342. r->m_fVideoCodecs = 252.0;
  343. r->Link.curStreamIdx = 0;
  344. r->Link.nStreams = 0;
  345. r->Link.timeout = 30;
  346. r->Link.swfAge = 30;
  347. }
  348. void
  349. RTMP_EnableWrite(RTMP *r)
  350. {
  351. r->Link.protocol |= RTMP_FEATURE_WRITE;
  352. }
  353. double
  354. RTMP_GetDuration(RTMP *r)
  355. {
  356. return r->m_fDuration;
  357. }
  358. int
  359. RTMP_IsConnected(RTMP *r)
  360. {
  361. return r->m_sb.sb_socket != -1;
  362. }
  363. SOCKET
  364. RTMP_Socket(RTMP *r)
  365. {
  366. return r->m_sb.sb_socket;
  367. }
  368. int
  369. RTMP_IsTimedout(RTMP *r)
  370. {
  371. return r->m_sb.sb_timedout;
  372. }
  373. void
  374. RTMP_SetBufferMS(RTMP *r, int size)
  375. {
  376. r->m_nBufferMS = size;
  377. }
  378. void
  379. RTMP_UpdateBufferMS(RTMP *r)
  380. {
  381. RTMP_SendCtrl(r, 3, r->m_stream_id, r->m_nBufferMS);
  382. }
  383. #undef OSS
  384. #ifdef _WIN32
  385. #define OSS "WIN"
  386. #elif defined(__sun__)
  387. #define OSS "SOL"
  388. #elif defined(__APPLE__)
  389. #define OSS "MAC"
  390. #elif defined(__linux__)
  391. #define OSS "LNX"
  392. #else
  393. #define OSS "GNU"
  394. #endif
  395. #define DEF_VERSTR OSS " 10,0,32,18"
  396. static const char DEFAULT_FLASH_VER[] = DEF_VERSTR;
  397. const AVal RTMP_DefaultFlashVer =
  398. { (char *)DEFAULT_FLASH_VER, sizeof(DEFAULT_FLASH_VER) - 1 };
  399. static void
  400. SocksSetup(RTMP *r, AVal *sockshost)
  401. {
  402. if (sockshost->av_len)
  403. {
  404. const char *socksport = strchr(sockshost->av_val, ':');
  405. char *hostname = strdup(sockshost->av_val);
  406. if (socksport)
  407. hostname[socksport - sockshost->av_val] = '\0';
  408. r->Link.sockshost.av_val = hostname;
  409. r->Link.sockshost.av_len = (int)strlen(hostname);
  410. r->Link.socksport = socksport ? atoi(socksport + 1) : 1080;
  411. RTMP_Log(RTMP_LOGDEBUG, "Connecting via SOCKS proxy: %s:%d", r->Link.sockshost.av_val,
  412. r->Link.socksport);
  413. }
  414. else
  415. {
  416. r->Link.sockshost.av_val = NULL;
  417. r->Link.sockshost.av_len = 0;
  418. r->Link.socksport = 0;
  419. }
  420. }
  421. static int
  422. parseAMF(AMFObject *obj, AVal *av, int *depth)
  423. {
  424. AMFObjectProperty prop = {{0,0}};
  425. int i;
  426. char *p, *arg = av->av_val;
  427. if (arg[1] == ':')
  428. {
  429. p = (char *)arg+2;
  430. switch(arg[0])
  431. {
  432. case 'B':
  433. prop.p_type = AMF_BOOLEAN;
  434. prop.p_vu.p_number = atoi(p);
  435. break;
  436. case 'S':
  437. prop.p_type = AMF_STRING;
  438. prop.p_vu.p_aval.av_val = p;
  439. prop.p_vu.p_aval.av_len = av->av_len - (p-arg);
  440. break;
  441. case 'N':
  442. prop.p_type = AMF_NUMBER;
  443. prop.p_vu.p_number = strtod(p, NULL);
  444. break;
  445. case 'Z':
  446. prop.p_type = AMF_NULL;
  447. break;
  448. case 'O':
  449. i = atoi(p);
  450. if (i)
  451. {
  452. prop.p_type = AMF_OBJECT;
  453. }
  454. else
  455. {
  456. (*depth)--;
  457. return 0;
  458. }
  459. break;
  460. default:
  461. return -1;
  462. }
  463. }
  464. else if (arg[2] == ':' && arg[0] == 'N')
  465. {
  466. p = strchr(arg+3, ':');
  467. if (!p || !*depth)
  468. return -1;
  469. prop.p_name.av_val = (char *)arg+3;
  470. prop.p_name.av_len = p - (arg+3);
  471. p++;
  472. switch(arg[1])
  473. {
  474. case 'B':
  475. prop.p_type = AMF_BOOLEAN;
  476. prop.p_vu.p_number = atoi(p);
  477. break;
  478. case 'S':
  479. prop.p_type = AMF_STRING;
  480. prop.p_vu.p_aval.av_val = p;
  481. prop.p_vu.p_aval.av_len = av->av_len - (p-arg);
  482. break;
  483. case 'N':
  484. prop.p_type = AMF_NUMBER;
  485. prop.p_vu.p_number = strtod(p, NULL);
  486. break;
  487. case 'O':
  488. prop.p_type = AMF_OBJECT;
  489. break;
  490. default:
  491. return -1;
  492. }
  493. }
  494. else
  495. return -1;
  496. if (*depth)
  497. {
  498. AMFObject *o2;
  499. for (i=0; i<*depth; i++)
  500. {
  501. o2 = &obj->o_props[obj->o_num-1].p_vu.p_object;
  502. obj = o2;
  503. }
  504. }
  505. AMF_AddProp(obj, &prop);
  506. if (prop.p_type == AMF_OBJECT)
  507. (*depth)++;
  508. return 0;
  509. }
  510. int RTMP_SetupURL(RTMP *r, char *url)
  511. {
  512. int ret, len;
  513. unsigned int port = 0;
  514. len = (int)strlen(url);
  515. ret = RTMP_ParseURL(url, &r->Link.protocol, &r->Link.hostname,
  516. &port, &r->Link.app);
  517. if (!ret)
  518. return ret;
  519. r->Link.port = port;
  520. if (!r->Link.tcUrl.av_len)
  521. {
  522. r->Link.tcUrl.av_val = url;
  523. if (r->Link.app.av_len)
  524. {
  525. if (r->Link.app.av_val < url + len)
  526. {
  527. /* if app is part of original url, just use it */
  528. r->Link.tcUrl.av_len = r->Link.app.av_len + (r->Link.app.av_val - url);
  529. }
  530. else
  531. {
  532. len = r->Link.hostname.av_len + r->Link.app.av_len +
  533. sizeof("rtmpte://:65535/");
  534. r->Link.tcUrl.av_val = malloc(len);
  535. r->Link.tcUrl.av_len = snprintf(r->Link.tcUrl.av_val, len,
  536. "%s://%.*s:%d/%.*s",
  537. RTMPProtocolStringsLower[r->Link.protocol],
  538. r->Link.hostname.av_len, r->Link.hostname.av_val,
  539. r->Link.port,
  540. r->Link.app.av_len, r->Link.app.av_val);
  541. r->Link.lFlags |= RTMP_LF_FTCU;
  542. }
  543. }
  544. else
  545. {
  546. r->Link.tcUrl.av_len = (int)strlen(url);
  547. }
  548. }
  549. #ifdef CRYPTO
  550. if ((r->Link.lFlags & RTMP_LF_SWFV) && r->Link.swfUrl.av_len)
  551. RTMP_HashSWF(r->Link.swfUrl.av_val, &r->Link.SWFSize,
  552. (unsigned char *)r->Link.SWFHash, r->Link.swfAge);
  553. #endif
  554. SocksSetup(r, &r->Link.sockshost);
  555. if (r->Link.port == 0)
  556. {
  557. if (r->Link.protocol & RTMP_FEATURE_SSL)
  558. r->Link.port = 443;
  559. else if (r->Link.protocol & RTMP_FEATURE_HTTP)
  560. r->Link.port = 80;
  561. else
  562. r->Link.port = 1935;
  563. }
  564. return TRUE;
  565. }
  566. int RTMP_AddStream(RTMP *r, const char *playpath)
  567. {
  568. int idx = -1;
  569. if (playpath && *playpath)
  570. {
  571. AVal pp = {(char*)playpath, (int)strlen(playpath)};
  572. RTMP_ParsePlaypath(&pp, &r->Link.streams[r->Link.nStreams].playpath);
  573. r->Link.streams[r->Link.nStreams].id = -1;
  574. idx = r->Link.nStreams;
  575. r->Link.nStreams++;
  576. }
  577. return idx;
  578. }
  579. static int
  580. add_addr_info(struct sockaddr_storage *service, AVal *host, int port)
  581. {
  582. char *hostname;
  583. int ret = TRUE;
  584. if (host->av_val[host->av_len])
  585. {
  586. hostname = malloc(host->av_len+1);
  587. memcpy(hostname, host->av_val, host->av_len);
  588. hostname[host->av_len] = '\0';
  589. }
  590. else
  591. {
  592. hostname = host->av_val;
  593. }
  594. struct addrinfo hints;
  595. struct addrinfo *result = NULL;
  596. struct addrinfo *ptr = NULL;
  597. memset(&hints, 0, sizeof(hints));
  598. hints.ai_family = AF_UNSPEC;
  599. hints.ai_socktype = SOCK_STREAM;
  600. hints.ai_protocol = IPPROTO_TCP;
  601. service->ss_family = AF_UNSPEC;
  602. char portStr[8];
  603. sprintf(portStr, "%d", port);
  604. int err = getaddrinfo(hostname, portStr, &hints, &result);
  605. if (err)
  606. {
  607. #ifndef _WIN32
  608. #define gai_strerrorA gai_strerror
  609. #endif
  610. RTMP_Log(RTMP_LOGERROR, "Could not resolve %s: %s (%d)", hostname, gai_strerrorA(GetSockError()), GetSockError());
  611. ret = FALSE;
  612. goto finish;
  613. }
  614. // they should come back in OS preferred order
  615. for (ptr = result; ptr != NULL; ptr = ptr->ai_next)
  616. {
  617. if (ptr->ai_family == AF_INET || ptr->ai_family == AF_INET6)
  618. {
  619. memcpy(service, ptr->ai_addr, ptr->ai_addrlen);
  620. break;
  621. }
  622. }
  623. freeaddrinfo(result);
  624. if (service->ss_family == AF_UNSPEC)
  625. {
  626. RTMP_Log(RTMP_LOGERROR, "Could not resolve server '%s': no valid address found", hostname);
  627. ret = FALSE;
  628. goto finish;
  629. }
  630. finish:
  631. if (hostname != host->av_val)
  632. free(hostname);
  633. return ret;
  634. }
  635. #ifdef _WIN32
  636. #define E_TIMEDOUT WSAETIMEDOUT
  637. #define E_CONNREFUSED WSAECONNREFUSED
  638. #define E_ACCES WSAEACCES
  639. #else
  640. #define E_TIMEDOUT ETIMEDOUT
  641. #define E_CONNREFUSED ECONNREFUSED
  642. #define E_ACCES EACCES
  643. #endif
  644. int
  645. RTMP_Connect0(RTMP *r, struct sockaddr * service)
  646. {
  647. int on = 1;
  648. r->m_sb.sb_timedout = FALSE;
  649. r->m_pausing = 0;
  650. r->m_fDuration = 0.0;
  651. //best to be explicit, we need overlapped socket
  652. #ifdef _WIN32
  653. r->m_sb.sb_socket = WSASocket(service->sa_family, SOCK_STREAM, IPPROTO_TCP, NULL, 0, WSA_FLAG_OVERLAPPED);
  654. #else
  655. r->m_sb.sb_socket = socket(service->sa_family, SOCK_STREAM, IPPROTO_TCP);
  656. #endif
  657. if (r->m_sb.sb_socket != -1)
  658. {
  659. if(r->m_bindIP.addrLen)
  660. {
  661. if (bind(r->m_sb.sb_socket, (const struct sockaddr *)&r->m_bindIP.addr, r->m_bindIP.addrLen) < 0)
  662. {
  663. int err = GetSockError();
  664. RTMP_Log(RTMP_LOGERROR, "%s, failed to bind socket: %s (%d)",
  665. __FUNCTION__, socketerror(err), err);
  666. RTMP_Close(r);
  667. return FALSE;
  668. }
  669. }
  670. if (connect(r->m_sb.sb_socket, service, sizeof(struct sockaddr_storage)) < 0)
  671. {
  672. int err = GetSockError();
  673. if (err == E_CONNREFUSED)
  674. RTMP_Log(RTMP_LOGERROR, "%s is offline. Try a different server (ECONNREFUSED).", r->Link.hostname.av_val);
  675. else if (err == E_ACCES)
  676. RTMP_Log(RTMP_LOGERROR, "The connection is being blocked by a firewall or other security software (EACCES).");
  677. else if (err == E_TIMEDOUT)
  678. RTMP_Log(RTMP_LOGERROR, "The connection timed out. Try a different server, or check that the connection is not being blocked by a firewall or other security software (ETIMEDOUT).");
  679. else
  680. RTMP_Log(RTMP_LOGERROR, "%s, failed to connect socket: %s (%d)",
  681. __FUNCTION__, socketerror(err), err);
  682. RTMP_Close(r);
  683. return FALSE;
  684. }
  685. if (r->Link.socksport)
  686. {
  687. RTMP_Log(RTMP_LOGDEBUG, "%s ... SOCKS negotiation", __FUNCTION__);
  688. if (!SocksNegotiate(r))
  689. {
  690. RTMP_Log(RTMP_LOGERROR, "%s, SOCKS negotiation failed.", __FUNCTION__);
  691. RTMP_Close(r);
  692. return FALSE;
  693. }
  694. }
  695. }
  696. else
  697. {
  698. RTMP_Log(RTMP_LOGERROR, "%s, failed to create socket. Error: %d", __FUNCTION__,
  699. GetSockError());
  700. return FALSE;
  701. }
  702. /* set timeout */
  703. {
  704. SET_RCVTIMEO(tv, r->Link.timeout);
  705. if (setsockopt
  706. (r->m_sb.sb_socket, SOL_SOCKET, SO_RCVTIMEO, (char *)&tv, sizeof(tv)))
  707. {
  708. RTMP_Log(RTMP_LOGERROR, "%s, Setting socket timeout to %ds failed!",
  709. __FUNCTION__, r->Link.timeout);
  710. }
  711. }
  712. if(!r->m_bUseNagle)
  713. setsockopt(r->m_sb.sb_socket, IPPROTO_TCP, TCP_NODELAY, (char *) &on, sizeof(on));
  714. return TRUE;
  715. }
  716. int
  717. RTMP_TLS_Accept(RTMP *r, void *ctx)
  718. {
  719. #if defined(CRYPTO) && !defined(NO_SSL)
  720. TLS_server(ctx, r->m_sb.sb_ssl);
  721. TLS_setfd(r->m_sb.sb_ssl, r->m_sb.sb_socket);
  722. if (TLS_accept(r->m_sb.sb_ssl) < 0)
  723. {
  724. RTMP_Log(RTMP_LOGERROR, "%s, TLS_Connect failed", __FUNCTION__);
  725. return FALSE;
  726. }
  727. return TRUE;
  728. #else
  729. (void)r;
  730. (void)ctx;
  731. return FALSE;
  732. #endif
  733. }
  734. int
  735. RTMP_Connect1(RTMP *r, RTMPPacket *cp)
  736. {
  737. if (r->Link.protocol & RTMP_FEATURE_SSL)
  738. {
  739. #if defined(CRYPTO) && !defined(NO_SSL)
  740. TLS_client(RTMP_TLS_ctx, r->m_sb.sb_ssl);
  741. TLS_setfd(r->m_sb.sb_ssl, r->m_sb.sb_socket);
  742. if (TLS_connect(r->m_sb.sb_ssl) < 0)
  743. {
  744. RTMP_Log(RTMP_LOGERROR, "%s, TLS_Connect failed", __FUNCTION__);
  745. RTMP_Close(r);
  746. return FALSE;
  747. }
  748. #else
  749. RTMP_Log(RTMP_LOGERROR, "%s, no SSL/TLS support", __FUNCTION__);
  750. RTMP_Close(r);
  751. return FALSE;
  752. #endif
  753. }
  754. if (r->Link.protocol & RTMP_FEATURE_HTTP)
  755. {
  756. r->m_msgCounter = 1;
  757. r->m_clientID.av_val = NULL;
  758. r->m_clientID.av_len = 0;
  759. HTTP_Post(r, RTMPT_OPEN, "", 1);
  760. if (HTTP_read(r, 1) != 0)
  761. {
  762. r->m_msgCounter = 0;
  763. RTMP_Log(RTMP_LOGDEBUG, "%s, Could not connect for handshake", __FUNCTION__);
  764. RTMP_Close(r);
  765. return 0;
  766. }
  767. r->m_msgCounter = 0;
  768. }
  769. RTMP_Log(RTMP_LOGDEBUG, "%s, ... connected, handshaking", __FUNCTION__);
  770. if (!HandShake(r, TRUE))
  771. {
  772. RTMP_Log(RTMP_LOGERROR, "%s, handshake failed.", __FUNCTION__);
  773. RTMP_Close(r);
  774. return FALSE;
  775. }
  776. RTMP_Log(RTMP_LOGDEBUG, "%s, handshaked", __FUNCTION__);
  777. if (!SendConnectPacket(r, cp))
  778. {
  779. RTMP_Log(RTMP_LOGERROR, "%s, RTMP connect failed.", __FUNCTION__);
  780. RTMP_Close(r);
  781. return FALSE;
  782. }
  783. return TRUE;
  784. }
  785. int
  786. RTMP_Connect(RTMP *r, RTMPPacket *cp)
  787. {
  788. #ifdef _WIN32
  789. HOSTENT *h;
  790. #endif
  791. struct sockaddr_storage service;
  792. if (!r->Link.hostname.av_len)
  793. return FALSE;
  794. #ifdef _WIN32
  795. //COMODO security software sandbox blocks all DNS by returning "host not found"
  796. h = gethostbyname("localhost");
  797. if (!h && GetLastError() == WSAHOST_NOT_FOUND)
  798. {
  799. RTMP_Log(RTMP_LOGERROR, "RTMP_Connect: Connection test failed. This error is likely caused by Comodo Internet Security running OBS in sandbox mode. Please add OBS to the Comodo automatic sandbox exclusion list, restart OBS and try again (11001).");
  800. return FALSE;
  801. }
  802. #endif
  803. memset(&service, 0, sizeof(service));
  804. if (r->Link.socksport)
  805. {
  806. /* Connect via SOCKS */
  807. if (!add_addr_info(&service, &r->Link.sockshost, r->Link.socksport))
  808. return FALSE;
  809. }
  810. else
  811. {
  812. /* Connect directly */
  813. if (!add_addr_info(&service, &r->Link.hostname, r->Link.port))
  814. return FALSE;
  815. }
  816. if (!RTMP_Connect0(r, (struct sockaddr *)&service))
  817. return FALSE;
  818. r->m_bSendCounter = TRUE;
  819. return RTMP_Connect1(r, cp);
  820. }
  821. static int
  822. SocksNegotiate(RTMP *r)
  823. {
  824. unsigned long addr;
  825. struct sockaddr_storage service;
  826. memset(&service, 0, sizeof(service));
  827. add_addr_info(&service, &r->Link.hostname, r->Link.port);
  828. // not doing IPv6 socks
  829. if (service.ss_family == AF_INET6)
  830. return FALSE;
  831. addr = htonl((*(struct sockaddr_in *)&service).sin_addr.s_addr);
  832. {
  833. char packet[] =
  834. {
  835. 4, 1, /* SOCKS 4, connect */
  836. (r->Link.port >> 8) & 0xFF,
  837. (r->Link.port) & 0xFF,
  838. (char)(addr >> 24) & 0xFF, (char)(addr >> 16) & 0xFF,
  839. (char)(addr >> 8) & 0xFF, (char)addr & 0xFF,
  840. 0
  841. }; /* NULL terminate */
  842. WriteN(r, packet, sizeof packet);
  843. if (ReadN(r, packet, 8) != 8)
  844. return FALSE;
  845. if (packet[0] == 0 && packet[1] == 90)
  846. {
  847. return TRUE;
  848. }
  849. else
  850. {
  851. RTMP_Log(RTMP_LOGERROR, "%s, SOCKS returned error code %d", __FUNCTION__, packet[1]);
  852. return FALSE;
  853. }
  854. }
  855. }
  856. int
  857. RTMP_ConnectStream(RTMP *r, int seekTime)
  858. {
  859. RTMPPacket packet = { 0 };
  860. /* seekTime was already set by SetupStream / SetupURL.
  861. * This is only needed by ReconnectStream.
  862. */
  863. if (seekTime > 0)
  864. r->Link.seekTime = seekTime;
  865. r->m_mediaChannel = 0;
  866. while (!r->m_bPlaying && RTMP_IsConnected(r) && RTMP_ReadPacket(r, &packet))
  867. {
  868. if (RTMPPacket_IsReady(&packet))
  869. {
  870. if (!packet.m_nBodySize)
  871. continue;
  872. if ((packet.m_packetType == RTMP_PACKET_TYPE_AUDIO) ||
  873. (packet.m_packetType == RTMP_PACKET_TYPE_VIDEO) ||
  874. (packet.m_packetType == RTMP_PACKET_TYPE_INFO))
  875. {
  876. RTMP_Log(RTMP_LOGWARNING, "Received FLV packet before play()! Ignoring.");
  877. RTMPPacket_Free(&packet);
  878. continue;
  879. }
  880. RTMP_ClientPacket(r, &packet);
  881. RTMPPacket_Free(&packet);
  882. }
  883. }
  884. return r->m_bPlaying;
  885. }
  886. int
  887. RTMP_ReconnectStream(RTMP *r, int seekTime, int streamIdx)
  888. {
  889. RTMP_DeleteStream(r, streamIdx);
  890. RTMP_SendCreateStream(r);
  891. return RTMP_ConnectStream(r, seekTime);
  892. }
  893. int
  894. RTMP_ToggleStream(RTMP *r)
  895. {
  896. int res;
  897. if (!r->m_pausing)
  898. {
  899. if (RTMP_IsTimedout(r) && r->m_read.status == RTMP_READ_EOF)
  900. r->m_read.status = 0;
  901. res = RTMP_SendPause(r, TRUE, r->m_pauseStamp);
  902. if (!res)
  903. return res;
  904. r->m_pausing = 1;
  905. sleep(1);
  906. }
  907. res = RTMP_SendPause(r, FALSE, r->m_pauseStamp);
  908. r->m_pausing = 3;
  909. return res;
  910. }
  911. void
  912. RTMP_DeleteStream(RTMP *r, int streamIdx)
  913. {
  914. if (r->m_stream_id < 0)
  915. return;
  916. r->m_bPlaying = FALSE;
  917. if ((r->Link.protocol & RTMP_FEATURE_WRITE))
  918. SendFCUnpublish(r, streamIdx);
  919. SendDeleteStream(r, r->m_stream_id);
  920. r->m_stream_id = -1;
  921. }
  922. int
  923. RTMP_GetNextMediaPacket(RTMP *r, RTMPPacket *packet)
  924. {
  925. int bHasMediaPacket = 0;
  926. while (!bHasMediaPacket && RTMP_IsConnected(r)
  927. && RTMP_ReadPacket(r, packet))
  928. {
  929. if (!RTMPPacket_IsReady(packet))
  930. {
  931. continue;
  932. }
  933. bHasMediaPacket = RTMP_ClientPacket(r, packet);
  934. if (!bHasMediaPacket)
  935. {
  936. RTMPPacket_Free(packet);
  937. }
  938. else if (r->m_pausing == 3)
  939. {
  940. if (packet->m_nTimeStamp <= r->m_mediaStamp)
  941. {
  942. bHasMediaPacket = 0;
  943. #ifdef _DEBUG
  944. RTMP_Log(RTMP_LOGDEBUG,
  945. "Skipped type: %02X, size: %d, TS: %d ms, abs TS: %d, pause: %d ms",
  946. packet->m_packetType, packet->m_nBodySize,
  947. packet->m_nTimeStamp, packet->m_hasAbsTimestamp,
  948. r->m_mediaStamp);
  949. #endif
  950. RTMPPacket_Free(packet);
  951. continue;
  952. }
  953. r->m_pausing = 0;
  954. }
  955. }
  956. if (bHasMediaPacket)
  957. r->m_bPlaying = TRUE;
  958. else if (r->m_sb.sb_timedout && !r->m_pausing)
  959. r->m_pauseStamp = r->m_mediaChannel < r->m_channelsAllocatedIn ?
  960. r->m_channelTimestamp[r->m_mediaChannel] : 0;
  961. return bHasMediaPacket;
  962. }
  963. int
  964. RTMP_ClientPacket(RTMP *r, RTMPPacket *packet)
  965. {
  966. int bHasMediaPacket = 0;
  967. switch (packet->m_packetType)
  968. {
  969. case RTMP_PACKET_TYPE_CHUNK_SIZE:
  970. /* chunk size */
  971. HandleChangeChunkSize(r, packet);
  972. break;
  973. case RTMP_PACKET_TYPE_BYTES_READ_REPORT:
  974. /* bytes read report */
  975. RTMP_Log(RTMP_LOGDEBUG, "%s, received: bytes read report", __FUNCTION__);
  976. break;
  977. case RTMP_PACKET_TYPE_CONTROL:
  978. /* ctrl */
  979. HandleCtrl(r, packet);
  980. break;
  981. case RTMP_PACKET_TYPE_SERVER_BW:
  982. /* server bw */
  983. HandleServerBW(r, packet);
  984. break;
  985. case RTMP_PACKET_TYPE_CLIENT_BW:
  986. /* client bw */
  987. HandleClientBW(r, packet);
  988. break;
  989. case RTMP_PACKET_TYPE_AUDIO:
  990. /* audio data */
  991. /*RTMP_Log(RTMP_LOGDEBUG, "%s, received: audio %lu bytes", __FUNCTION__, packet.m_nBodySize); */
  992. HandleAudio(r, packet);
  993. bHasMediaPacket = 1;
  994. if (!r->m_mediaChannel)
  995. r->m_mediaChannel = packet->m_nChannel;
  996. if (!r->m_pausing)
  997. r->m_mediaStamp = packet->m_nTimeStamp;
  998. break;
  999. case RTMP_PACKET_TYPE_VIDEO:
  1000. /* video data */
  1001. /*RTMP_Log(RTMP_LOGDEBUG, "%s, received: video %lu bytes", __FUNCTION__, packet.m_nBodySize); */
  1002. HandleVideo(r, packet);
  1003. bHasMediaPacket = 1;
  1004. if (!r->m_mediaChannel)
  1005. r->m_mediaChannel = packet->m_nChannel;
  1006. if (!r->m_pausing)
  1007. r->m_mediaStamp = packet->m_nTimeStamp;
  1008. break;
  1009. case RTMP_PACKET_TYPE_FLEX_STREAM_SEND:
  1010. /* flex stream send */
  1011. RTMP_Log(RTMP_LOGDEBUG,
  1012. "%s, flex stream send, size %u bytes, not supported, ignoring",
  1013. __FUNCTION__, packet->m_nBodySize);
  1014. break;
  1015. case RTMP_PACKET_TYPE_FLEX_SHARED_OBJECT:
  1016. /* flex shared object */
  1017. RTMP_Log(RTMP_LOGDEBUG,
  1018. "%s, flex shared object, size %u bytes, not supported, ignoring",
  1019. __FUNCTION__, packet->m_nBodySize);
  1020. break;
  1021. case RTMP_PACKET_TYPE_FLEX_MESSAGE:
  1022. /* flex message */
  1023. {
  1024. RTMP_Log(RTMP_LOGDEBUG,
  1025. "%s, flex message, size %u bytes, not fully supported",
  1026. __FUNCTION__, packet->m_nBodySize);
  1027. /*RTMP_LogHex(packet.m_body, packet.m_nBodySize); */
  1028. /* some DEBUG code */
  1029. #if 0
  1030. RTMP_LIB_AMFObject obj;
  1031. int nRes = obj.Decode(packet.m_body+1, packet.m_nBodySize-1);
  1032. if(nRes < 0)
  1033. {
  1034. RTMP_Log(RTMP_LOGERROR, "%s, error decoding AMF3 packet", __FUNCTION__);
  1035. /*return; */
  1036. }
  1037. obj.Dump();
  1038. #endif
  1039. if (HandleInvoke(r, packet->m_body + 1, packet->m_nBodySize - 1) == 1)
  1040. bHasMediaPacket = 2;
  1041. break;
  1042. }
  1043. case RTMP_PACKET_TYPE_INFO:
  1044. /* metadata (notify) */
  1045. RTMP_Log(RTMP_LOGDEBUG, "%s, received: notify %u bytes", __FUNCTION__,
  1046. packet->m_nBodySize);
  1047. if (HandleMetadata(r, packet->m_body, packet->m_nBodySize))
  1048. bHasMediaPacket = 1;
  1049. break;
  1050. case RTMP_PACKET_TYPE_SHARED_OBJECT:
  1051. RTMP_Log(RTMP_LOGDEBUG, "%s, shared object, not supported, ignoring",
  1052. __FUNCTION__);
  1053. break;
  1054. case RTMP_PACKET_TYPE_INVOKE:
  1055. /* invoke */
  1056. RTMP_Log(RTMP_LOGDEBUG, "%s, received: invoke %u bytes", __FUNCTION__,
  1057. packet->m_nBodySize);
  1058. /*RTMP_LogHex(packet.m_body, packet.m_nBodySize); */
  1059. if (HandleInvoke(r, packet->m_body, packet->m_nBodySize) == 1)
  1060. bHasMediaPacket = 2;
  1061. break;
  1062. case RTMP_PACKET_TYPE_FLASH_VIDEO:
  1063. {
  1064. /* go through FLV packets and handle metadata packets */
  1065. unsigned int pos = 0;
  1066. uint32_t nTimeStamp = packet->m_nTimeStamp;
  1067. while (pos + 11 < packet->m_nBodySize)
  1068. {
  1069. uint32_t dataSize = AMF_DecodeInt24(packet->m_body + pos + 1); /* size without header (11) and prevTagSize (4) */
  1070. if (pos + 11 + dataSize + 4 > packet->m_nBodySize)
  1071. {
  1072. RTMP_Log(RTMP_LOGWARNING, "Stream corrupt?!");
  1073. break;
  1074. }
  1075. if (packet->m_body[pos] == 0x12)
  1076. {
  1077. HandleMetadata(r, packet->m_body + pos + 11, dataSize);
  1078. }
  1079. else if (packet->m_body[pos] == 8 || packet->m_body[pos] == 9)
  1080. {
  1081. nTimeStamp = AMF_DecodeInt24(packet->m_body + pos + 4);
  1082. nTimeStamp |= (packet->m_body[pos + 7] << 24);
  1083. }
  1084. pos += (11 + dataSize + 4);
  1085. }
  1086. if (!r->m_pausing)
  1087. r->m_mediaStamp = nTimeStamp;
  1088. /* FLV tag(s) */
  1089. /*RTMP_Log(RTMP_LOGDEBUG, "%s, received: FLV tag(s) %lu bytes", __FUNCTION__, packet.m_nBodySize); */
  1090. bHasMediaPacket = 1;
  1091. break;
  1092. }
  1093. default:
  1094. RTMP_Log(RTMP_LOGDEBUG, "%s, unknown packet type received: 0x%02x", __FUNCTION__,
  1095. packet->m_packetType);
  1096. #ifdef _DEBUG
  1097. RTMP_LogHex(RTMP_LOGDEBUG, (const uint8_t*)packet->m_body, packet->m_nBodySize);
  1098. #endif
  1099. }
  1100. return bHasMediaPacket;
  1101. }
  1102. #if defined(RTMP_NETSTACK_DUMP)
  1103. extern FILE *netstackdump;
  1104. extern FILE *netstackdump_read;
  1105. #endif
  1106. static int
  1107. ReadN(RTMP *r, char *buffer, int n)
  1108. {
  1109. int nOriginalSize = n;
  1110. int avail;
  1111. char *ptr;
  1112. r->m_sb.sb_timedout = FALSE;
  1113. #ifdef _DEBUG
  1114. memset(buffer, 0, n);
  1115. #endif
  1116. ptr = buffer;
  1117. while (n > 0)
  1118. {
  1119. int nBytes = 0, nRead;
  1120. if (r->Link.protocol & RTMP_FEATURE_HTTP)
  1121. {
  1122. int refill = 0;
  1123. while (!r->m_resplen)
  1124. {
  1125. int ret;
  1126. if (r->m_sb.sb_size < 13 || refill)
  1127. {
  1128. if (!r->m_unackd)
  1129. HTTP_Post(r, RTMPT_IDLE, "", 1);
  1130. if (RTMPSockBuf_Fill(&r->m_sb) < 1)
  1131. {
  1132. if (!r->m_sb.sb_timedout)
  1133. RTMP_Close(r);
  1134. return 0;
  1135. }
  1136. }
  1137. if ((ret = HTTP_read(r, 0)) == -1)
  1138. {
  1139. RTMP_Log(RTMP_LOGDEBUG, "%s, No valid HTTP response found", __FUNCTION__);
  1140. RTMP_Close(r);
  1141. return 0;
  1142. }
  1143. else if (ret == -2)
  1144. {
  1145. refill = 1;
  1146. }
  1147. else
  1148. {
  1149. refill = 0;
  1150. }
  1151. }
  1152. if (r->m_resplen && !r->m_sb.sb_size)
  1153. RTMPSockBuf_Fill(&r->m_sb);
  1154. avail = r->m_sb.sb_size;
  1155. if (avail > r->m_resplen)
  1156. avail = r->m_resplen;
  1157. }
  1158. else
  1159. {
  1160. avail = r->m_sb.sb_size;
  1161. if (avail == 0)
  1162. {
  1163. if (RTMPSockBuf_Fill(&r->m_sb) < 1)
  1164. {
  1165. if (!r->m_sb.sb_timedout)
  1166. RTMP_Close(r);
  1167. return 0;
  1168. }
  1169. avail = r->m_sb.sb_size;
  1170. }
  1171. }
  1172. nRead = ((n < avail) ? n : avail);
  1173. if (nRead > 0)
  1174. {
  1175. memcpy(ptr, r->m_sb.sb_start, nRead);
  1176. r->m_sb.sb_start += nRead;
  1177. r->m_sb.sb_size -= nRead;
  1178. nBytes = nRead;
  1179. r->m_nBytesIn += nRead;
  1180. if (r->m_bSendCounter
  1181. && r->m_nBytesIn > ( r->m_nBytesInSent + r->m_nClientBW / 10))
  1182. if (!SendBytesReceived(r))
  1183. return FALSE;
  1184. }
  1185. /*RTMP_Log(RTMP_LOGDEBUG, "%s: %d bytes\n", __FUNCTION__, nBytes); */
  1186. #if defined(RTMP_NETSTACK_DUMP)
  1187. fwrite(ptr, 1, nBytes, netstackdump_read);
  1188. #endif
  1189. if (nBytes == 0)
  1190. {
  1191. RTMP_Log(RTMP_LOGDEBUG, "%s, RTMP socket closed by peer", __FUNCTION__);
  1192. /*goto again; */
  1193. RTMP_Close(r);
  1194. break;
  1195. }
  1196. if (r->Link.protocol & RTMP_FEATURE_HTTP)
  1197. r->m_resplen -= nBytes;
  1198. #ifdef CRYPTO
  1199. if (r->Link.rc4keyIn)
  1200. {
  1201. RC4_encrypt(r->Link.rc4keyIn, nBytes, ptr);
  1202. }
  1203. #endif
  1204. n -= nBytes;
  1205. ptr += nBytes;
  1206. }
  1207. return nOriginalSize - n;
  1208. }
  1209. static int
  1210. WriteN(RTMP *r, const char *buffer, int n)
  1211. {
  1212. const char *ptr = buffer;
  1213. #ifdef CRYPTO
  1214. char *encrypted = 0;
  1215. char buf[RTMP_BUFFER_CACHE_SIZE];
  1216. if (r->Link.rc4keyOut)
  1217. {
  1218. if (n > sizeof(buf))
  1219. encrypted = (char *)malloc(n);
  1220. else
  1221. encrypted = (char *)buf;
  1222. ptr = encrypted;
  1223. RC4_encrypt2(r->Link.rc4keyOut, n, buffer, ptr);
  1224. }
  1225. #endif
  1226. while (n > 0)
  1227. {
  1228. int nBytes;
  1229. if (r->Link.protocol & RTMP_FEATURE_HTTP)
  1230. nBytes = HTTP_Post(r, RTMPT_SEND, ptr, n);
  1231. else if(r->m_bCustomSend && r->m_customSendFunc)
  1232. nBytes = r->m_customSendFunc(&r->m_sb, ptr, n, r->m_customSendParam);
  1233. else
  1234. nBytes = RTMPSockBuf_Send(&r->m_sb, ptr, n);
  1235. /*RTMP_Log(RTMP_LOGDEBUG, "%s: %d\n", __FUNCTION__, nBytes); */
  1236. if (nBytes < 0)
  1237. {
  1238. int sockerr = GetSockError();
  1239. RTMP_Log(RTMP_LOGERROR, "%s, RTMP send error %d (%d bytes)", __FUNCTION__,
  1240. sockerr, n);
  1241. if (sockerr == EINTR && !RTMP_ctrlC)
  1242. continue;
  1243. RTMP_Close(r);
  1244. n = 1;
  1245. break;
  1246. }
  1247. if (nBytes == 0)
  1248. break;
  1249. n -= nBytes;
  1250. ptr += nBytes;
  1251. }
  1252. #ifdef CRYPTO
  1253. if (encrypted && encrypted != buf)
  1254. free(encrypted);
  1255. #endif
  1256. return n == 0;
  1257. }
  1258. #define SAVC(x) static const AVal av_##x = AVC(#x)
  1259. SAVC(app);
  1260. SAVC(connect);
  1261. SAVC(flashVer);
  1262. SAVC(swfUrl);
  1263. SAVC(pageUrl);
  1264. SAVC(tcUrl);
  1265. SAVC(fpad);
  1266. SAVC(capabilities);
  1267. SAVC(audioCodecs);
  1268. SAVC(videoCodecs);
  1269. SAVC(videoFunction);
  1270. SAVC(objectEncoding);
  1271. SAVC(secureToken);
  1272. SAVC(secureTokenResponse);
  1273. SAVC(type);
  1274. SAVC(nonprivate);
  1275. static int
  1276. SendConnectPacket(RTMP *r, RTMPPacket *cp)
  1277. {
  1278. RTMPPacket packet;
  1279. char pbuf[4096], *pend = pbuf + sizeof(pbuf);
  1280. char *enc;
  1281. if (cp)
  1282. return RTMP_SendPacket(r, cp, TRUE);
  1283. if((r->Link.protocol & RTMP_FEATURE_WRITE) && r->m_bSendChunkSizeInfo)
  1284. {
  1285. packet.m_nChannel = 0x02;
  1286. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1287. packet.m_packetType = RTMP_PACKET_TYPE_CHUNK_SIZE;
  1288. packet.m_nTimeStamp = 0;
  1289. packet.m_nInfoField2 = 0;
  1290. packet.m_hasAbsTimestamp = 0;
  1291. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1292. packet.m_nBodySize = 4;
  1293. enc = packet.m_body;
  1294. AMF_EncodeInt32(enc, pend, r->m_outChunkSize);
  1295. if(!RTMP_SendPacket(r, &packet, FALSE))
  1296. return 0;
  1297. }
  1298. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1299. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1300. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1301. packet.m_nTimeStamp = 0;
  1302. packet.m_nInfoField2 = 0;
  1303. packet.m_hasAbsTimestamp = 0;
  1304. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1305. enc = packet.m_body;
  1306. enc = AMF_EncodeString(enc, pend, &av_connect);
  1307. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1308. *enc++ = AMF_OBJECT;
  1309. enc = AMF_EncodeNamedString(enc, pend, &av_app, &r->Link.app);
  1310. if (!enc)
  1311. return FALSE;
  1312. if (r->Link.protocol & RTMP_FEATURE_WRITE)
  1313. {
  1314. enc = AMF_EncodeNamedString(enc, pend, &av_type, &av_nonprivate);
  1315. if (!enc)
  1316. return FALSE;
  1317. }
  1318. if (r->Link.flashVer.av_len)
  1319. {
  1320. enc = AMF_EncodeNamedString(enc, pend, &av_flashVer, &r->Link.flashVer);
  1321. if (!enc)
  1322. return FALSE;
  1323. }
  1324. if (r->Link.swfUrl.av_len)
  1325. {
  1326. enc = AMF_EncodeNamedString(enc, pend, &av_swfUrl, &r->Link.swfUrl);
  1327. if (!enc)
  1328. return FALSE;
  1329. }
  1330. if (r->Link.tcUrl.av_len)
  1331. {
  1332. enc = AMF_EncodeNamedString(enc, pend, &av_tcUrl, &r->Link.tcUrl);
  1333. if (!enc)
  1334. return FALSE;
  1335. }
  1336. if (!(r->Link.protocol & RTMP_FEATURE_WRITE))
  1337. {
  1338. enc = AMF_EncodeNamedBoolean(enc, pend, &av_fpad, FALSE);
  1339. if (!enc)
  1340. return FALSE;
  1341. enc = AMF_EncodeNamedNumber(enc, pend, &av_capabilities, 15.0);
  1342. if (!enc)
  1343. return FALSE;
  1344. enc = AMF_EncodeNamedNumber(enc, pend, &av_audioCodecs, r->m_fAudioCodecs);
  1345. if (!enc)
  1346. return FALSE;
  1347. enc = AMF_EncodeNamedNumber(enc, pend, &av_videoCodecs, r->m_fVideoCodecs);
  1348. if (!enc)
  1349. return FALSE;
  1350. enc = AMF_EncodeNamedNumber(enc, pend, &av_videoFunction, 1.0);
  1351. if (!enc)
  1352. return FALSE;
  1353. if (r->Link.pageUrl.av_len)
  1354. {
  1355. enc = AMF_EncodeNamedString(enc, pend, &av_pageUrl, &r->Link.pageUrl);
  1356. if (!enc)
  1357. return FALSE;
  1358. }
  1359. }
  1360. if (r->m_fEncoding != 0.0 || r->m_bSendEncoding)
  1361. {
  1362. /* AMF0, AMF3 not fully supported yet */
  1363. enc = AMF_EncodeNamedNumber(enc, pend, &av_objectEncoding, r->m_fEncoding);
  1364. if (!enc)
  1365. return FALSE;
  1366. }
  1367. if (enc + 3 >= pend)
  1368. return FALSE;
  1369. *enc++ = 0;
  1370. *enc++ = 0; /* end of object - 0x00 0x00 0x09 */
  1371. *enc++ = AMF_OBJECT_END;
  1372. /* add auth string */
  1373. if (r->Link.auth.av_len)
  1374. {
  1375. enc = AMF_EncodeBoolean(enc, pend, r->Link.lFlags & RTMP_LF_AUTH);
  1376. if (!enc)
  1377. return FALSE;
  1378. enc = AMF_EncodeString(enc, pend, &r->Link.auth);
  1379. if (!enc)
  1380. return FALSE;
  1381. }
  1382. if (r->Link.extras.o_num)
  1383. {
  1384. int i;
  1385. for (i = 0; i < r->Link.extras.o_num; i++)
  1386. {
  1387. enc = AMFProp_Encode(&r->Link.extras.o_props[i], enc, pend);
  1388. if (!enc)
  1389. return FALSE;
  1390. }
  1391. }
  1392. packet.m_nBodySize = enc - packet.m_body;
  1393. return RTMP_SendPacket(r, &packet, TRUE);
  1394. }
  1395. #if 0 /* unused */
  1396. SAVC(bgHasStream);
  1397. static int
  1398. SendBGHasStream(RTMP *r, double dId, AVal *playpath)
  1399. {
  1400. RTMPPacket packet;
  1401. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1402. char *enc;
  1403. packet.m_forceChannel = FALSE;
  1404. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1405. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1406. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1407. packet.m_nTimeStamp = 0;
  1408. packet.m_nInfoField2 = 0;
  1409. packet.m_hasAbsTimestamp = 0;
  1410. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1411. enc = packet.m_body;
  1412. enc = AMF_EncodeString(enc, pend, &av_bgHasStream);
  1413. enc = AMF_EncodeNumber(enc, pend, dId);
  1414. *enc++ = AMF_NULL;
  1415. enc = AMF_EncodeString(enc, pend, playpath);
  1416. if (enc == NULL)
  1417. return FALSE;
  1418. packet.m_nBodySize = enc - packet.m_body;
  1419. return RTMP_SendPacket(r, &packet, TRUE);
  1420. }
  1421. #endif
  1422. SAVC(createStream);
  1423. int
  1424. RTMP_SendCreateStream(RTMP *r)
  1425. {
  1426. RTMPPacket packet;
  1427. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1428. char *enc;
  1429. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1430. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1431. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1432. packet.m_nTimeStamp = 0;
  1433. packet.m_nInfoField2 = 0;
  1434. packet.m_hasAbsTimestamp = 0;
  1435. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1436. enc = packet.m_body;
  1437. enc = AMF_EncodeString(enc, pend, &av_createStream);
  1438. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1439. *enc++ = AMF_NULL; /* NULL */
  1440. packet.m_nBodySize = enc - packet.m_body;
  1441. return RTMP_SendPacket(r, &packet, TRUE);
  1442. }
  1443. SAVC(FCSubscribe);
  1444. static int
  1445. SendFCSubscribe(RTMP *r, AVal *subscribepath)
  1446. {
  1447. RTMPPacket packet;
  1448. char pbuf[512], *pend = pbuf + sizeof(pbuf);
  1449. char *enc;
  1450. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1451. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1452. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1453. packet.m_nTimeStamp = 0;
  1454. packet.m_nInfoField2 = 0;
  1455. packet.m_hasAbsTimestamp = 0;
  1456. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1457. RTMP_Log(RTMP_LOGDEBUG, "FCSubscribe: %s", subscribepath->av_val);
  1458. enc = packet.m_body;
  1459. enc = AMF_EncodeString(enc, pend, &av_FCSubscribe);
  1460. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1461. *enc++ = AMF_NULL;
  1462. enc = AMF_EncodeString(enc, pend, subscribepath);
  1463. if (!enc)
  1464. return FALSE;
  1465. packet.m_nBodySize = enc - packet.m_body;
  1466. return RTMP_SendPacket(r, &packet, TRUE);
  1467. }
  1468. /* Justin.tv specific authentication */
  1469. static const AVal av_NetStream_Authenticate_UsherToken = AVC("NetStream.Authenticate.UsherToken");
  1470. static int
  1471. SendUsherToken(RTMP *r, AVal *usherToken)
  1472. {
  1473. RTMPPacket packet;
  1474. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1475. char *enc;
  1476. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1477. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1478. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1479. packet.m_nTimeStamp = 0;
  1480. packet.m_nInfoField2 = 0;
  1481. packet.m_hasAbsTimestamp = 0;
  1482. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1483. RTMP_Log(RTMP_LOGDEBUG, "UsherToken: %s", usherToken->av_val);
  1484. enc = packet.m_body;
  1485. enc = AMF_EncodeString(enc, pend, &av_NetStream_Authenticate_UsherToken);
  1486. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1487. *enc++ = AMF_NULL;
  1488. enc = AMF_EncodeString(enc, pend, usherToken);
  1489. if (!enc)
  1490. return FALSE;
  1491. packet.m_nBodySize = enc - packet.m_body;
  1492. return RTMP_SendPacket(r, &packet, FALSE);
  1493. }
  1494. /******************************************/
  1495. SAVC(releaseStream);
  1496. static int
  1497. SendReleaseStream(RTMP *r, int streamIdx)
  1498. {
  1499. RTMPPacket packet;
  1500. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1501. char *enc;
  1502. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1503. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1504. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1505. packet.m_nTimeStamp = 0;
  1506. packet.m_nInfoField2 = 0;
  1507. packet.m_hasAbsTimestamp = 0;
  1508. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1509. enc = packet.m_body;
  1510. enc = AMF_EncodeString(enc, pend, &av_releaseStream);
  1511. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1512. *enc++ = AMF_NULL;
  1513. enc = AMF_EncodeString(enc, pend, &r->Link.streams[streamIdx].playpath);
  1514. if (!enc)
  1515. return FALSE;
  1516. packet.m_nBodySize = enc - packet.m_body;
  1517. return RTMP_SendPacket(r, &packet, FALSE);
  1518. }
  1519. SAVC(FCPublish);
  1520. static int
  1521. SendFCPublish(RTMP *r, int streamIdx)
  1522. {
  1523. RTMPPacket packet;
  1524. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1525. char *enc;
  1526. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1527. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1528. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1529. packet.m_nTimeStamp = 0;
  1530. packet.m_nInfoField2 = 0;
  1531. packet.m_hasAbsTimestamp = 0;
  1532. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1533. enc = packet.m_body;
  1534. enc = AMF_EncodeString(enc, pend, &av_FCPublish);
  1535. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1536. *enc++ = AMF_NULL;
  1537. enc = AMF_EncodeString(enc, pend, &r->Link.streams[streamIdx].playpath);
  1538. if (!enc)
  1539. return FALSE;
  1540. packet.m_nBodySize = enc - packet.m_body;
  1541. return RTMP_SendPacket(r, &packet, FALSE);
  1542. }
  1543. SAVC(FCUnpublish);
  1544. static int
  1545. SendFCUnpublish(RTMP *r, int streamIdx)
  1546. {
  1547. RTMPPacket packet;
  1548. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1549. char *enc;
  1550. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1551. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1552. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1553. packet.m_nTimeStamp = 0;
  1554. packet.m_nInfoField2 = 0;
  1555. packet.m_hasAbsTimestamp = 0;
  1556. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1557. enc = packet.m_body;
  1558. enc = AMF_EncodeString(enc, pend, &av_FCUnpublish);
  1559. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1560. *enc++ = AMF_NULL;
  1561. enc = AMF_EncodeString(enc, pend, &r->Link.streams[streamIdx].playpath);
  1562. if (!enc)
  1563. return FALSE;
  1564. packet.m_nBodySize = enc - packet.m_body;
  1565. return RTMP_SendPacket(r, &packet, FALSE);
  1566. }
  1567. SAVC(publish);
  1568. SAVC(live);
  1569. static int
  1570. SendPublish(RTMP *r, int streamIdx)
  1571. {
  1572. RTMPPacket packet;
  1573. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1574. char *enc;
  1575. packet.m_nChannel = 0x04; /* source channel (invoke) */
  1576. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1577. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1578. packet.m_nTimeStamp = 0;
  1579. packet.m_nInfoField2 = r->Link.streams[streamIdx].id;
  1580. packet.m_hasAbsTimestamp = 0;
  1581. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1582. enc = packet.m_body;
  1583. enc = AMF_EncodeString(enc, pend, &av_publish);
  1584. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1585. *enc++ = AMF_NULL;
  1586. enc = AMF_EncodeString(enc, pend, &r->Link.streams[streamIdx].playpath);
  1587. if (!enc)
  1588. return FALSE;
  1589. /* FIXME: should we choose live based on Link.lFlags & RTMP_LF_LIVE? */
  1590. enc = AMF_EncodeString(enc, pend, &av_live);
  1591. if (!enc)
  1592. return FALSE;
  1593. packet.m_nBodySize = enc - packet.m_body;
  1594. return RTMP_SendPacket(r, &packet, TRUE);
  1595. }
  1596. SAVC(deleteStream);
  1597. static int
  1598. SendDeleteStream(RTMP *r, double dStreamId)
  1599. {
  1600. RTMPPacket packet;
  1601. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1602. char *enc;
  1603. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1604. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1605. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1606. packet.m_nTimeStamp = 0;
  1607. packet.m_nInfoField2 = 0;
  1608. packet.m_hasAbsTimestamp = 0;
  1609. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1610. enc = packet.m_body;
  1611. enc = AMF_EncodeString(enc, pend, &av_deleteStream);
  1612. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1613. *enc++ = AMF_NULL;
  1614. enc = AMF_EncodeNumber(enc, pend, dStreamId);
  1615. packet.m_nBodySize = enc - packet.m_body;
  1616. /* no response expected */
  1617. return RTMP_SendPacket(r, &packet, FALSE);
  1618. }
  1619. SAVC(pause);
  1620. int
  1621. RTMP_SendPause(RTMP *r, int DoPause, int iTime)
  1622. {
  1623. RTMPPacket packet;
  1624. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1625. char *enc;
  1626. packet.m_nChannel = 0x08; /* video channel */
  1627. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1628. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1629. packet.m_nTimeStamp = 0;
  1630. packet.m_nInfoField2 = 0;
  1631. packet.m_hasAbsTimestamp = 0;
  1632. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1633. enc = packet.m_body;
  1634. enc = AMF_EncodeString(enc, pend, &av_pause);
  1635. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1636. *enc++ = AMF_NULL;
  1637. enc = AMF_EncodeBoolean(enc, pend, DoPause);
  1638. enc = AMF_EncodeNumber(enc, pend, (double)iTime);
  1639. packet.m_nBodySize = enc - packet.m_body;
  1640. RTMP_Log(RTMP_LOGDEBUG, "%s, %d, pauseTime=%d", __FUNCTION__, DoPause, iTime);
  1641. return RTMP_SendPacket(r, &packet, TRUE);
  1642. }
  1643. int RTMP_Pause(RTMP *r, int DoPause)
  1644. {
  1645. if (DoPause)
  1646. r->m_pauseStamp = r->m_mediaChannel < r->m_channelsAllocatedIn ?
  1647. r->m_channelTimestamp[r->m_mediaChannel] : 0;
  1648. return RTMP_SendPause(r, DoPause, r->m_pauseStamp);
  1649. }
  1650. SAVC(seek);
  1651. int
  1652. RTMP_SendSeek(RTMP *r, int iTime)
  1653. {
  1654. RTMPPacket packet;
  1655. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1656. char *enc;
  1657. packet.m_nChannel = 0x08; /* video channel */
  1658. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1659. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1660. packet.m_nTimeStamp = 0;
  1661. packet.m_nInfoField2 = 0;
  1662. packet.m_hasAbsTimestamp = 0;
  1663. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1664. enc = packet.m_body;
  1665. enc = AMF_EncodeString(enc, pend, &av_seek);
  1666. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1667. *enc++ = AMF_NULL;
  1668. enc = AMF_EncodeNumber(enc, pend, (double)iTime);
  1669. packet.m_nBodySize = enc - packet.m_body;
  1670. r->m_read.flags |= RTMP_READ_SEEKING;
  1671. r->m_read.nResumeTS = 0;
  1672. return RTMP_SendPacket(r, &packet, TRUE);
  1673. }
  1674. int
  1675. RTMP_SendServerBW(RTMP *r)
  1676. {
  1677. RTMPPacket packet;
  1678. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1679. packet.m_nChannel = 0x02; /* control channel (invoke) */
  1680. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1681. packet.m_packetType = RTMP_PACKET_TYPE_SERVER_BW;
  1682. packet.m_nTimeStamp = 0;
  1683. packet.m_nInfoField2 = 0;
  1684. packet.m_hasAbsTimestamp = 0;
  1685. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1686. packet.m_nBodySize = 4;
  1687. AMF_EncodeInt32(packet.m_body, pend, r->m_nServerBW);
  1688. return RTMP_SendPacket(r, &packet, FALSE);
  1689. }
  1690. int
  1691. RTMP_SendClientBW(RTMP *r)
  1692. {
  1693. RTMPPacket packet;
  1694. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1695. packet.m_nChannel = 0x02; /* control channel (invoke) */
  1696. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1697. packet.m_packetType = RTMP_PACKET_TYPE_CLIENT_BW;
  1698. packet.m_nTimeStamp = 0;
  1699. packet.m_nInfoField2 = 0;
  1700. packet.m_hasAbsTimestamp = 0;
  1701. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1702. packet.m_nBodySize = 5;
  1703. AMF_EncodeInt32(packet.m_body, pend, r->m_nClientBW);
  1704. packet.m_body[4] = r->m_nClientBW2;
  1705. return RTMP_SendPacket(r, &packet, FALSE);
  1706. }
  1707. static int
  1708. SendBytesReceived(RTMP *r)
  1709. {
  1710. RTMPPacket packet;
  1711. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1712. packet.m_nChannel = 0x02; /* control channel (invoke) */
  1713. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1714. packet.m_packetType = RTMP_PACKET_TYPE_BYTES_READ_REPORT;
  1715. packet.m_nTimeStamp = 0;
  1716. packet.m_nInfoField2 = 0;
  1717. packet.m_hasAbsTimestamp = 0;
  1718. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1719. packet.m_nBodySize = 4;
  1720. AMF_EncodeInt32(packet.m_body, pend, r->m_nBytesIn); /* hard coded for now */
  1721. r->m_nBytesInSent = r->m_nBytesIn;
  1722. /*RTMP_Log(RTMP_LOGDEBUG, "Send bytes report. 0x%x (%d bytes)", (unsigned int)m_nBytesIn, m_nBytesIn); */
  1723. return RTMP_SendPacket(r, &packet, FALSE);
  1724. }
  1725. SAVC(_checkbw);
  1726. static int
  1727. SendCheckBW(RTMP *r)
  1728. {
  1729. RTMPPacket packet;
  1730. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1731. char *enc;
  1732. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1733. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1734. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1735. packet.m_nTimeStamp = 0; /* RTMP_GetTime(); */
  1736. packet.m_nInfoField2 = 0;
  1737. packet.m_hasAbsTimestamp = 0;
  1738. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1739. enc = packet.m_body;
  1740. enc = AMF_EncodeString(enc, pend, &av__checkbw);
  1741. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1742. *enc++ = AMF_NULL;
  1743. packet.m_nBodySize = enc - packet.m_body;
  1744. /* triggers _onbwcheck and eventually results in _onbwdone */
  1745. return RTMP_SendPacket(r, &packet, FALSE);
  1746. }
  1747. SAVC(_result);
  1748. static int
  1749. SendCheckBWResult(RTMP *r, double txn)
  1750. {
  1751. RTMPPacket packet;
  1752. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1753. char *enc;
  1754. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1755. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1756. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1757. packet.m_nTimeStamp = 0x16 * r->m_nBWCheckCounter; /* temp inc value. till we figure it out. */
  1758. packet.m_nInfoField2 = 0;
  1759. packet.m_hasAbsTimestamp = 0;
  1760. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1761. enc = packet.m_body;
  1762. enc = AMF_EncodeString(enc, pend, &av__result);
  1763. enc = AMF_EncodeNumber(enc, pend, txn);
  1764. *enc++ = AMF_NULL;
  1765. enc = AMF_EncodeNumber(enc, pend, (double)r->m_nBWCheckCounter++);
  1766. packet.m_nBodySize = enc - packet.m_body;
  1767. return RTMP_SendPacket(r, &packet, FALSE);
  1768. }
  1769. SAVC(ping);
  1770. SAVC(pong);
  1771. static int
  1772. SendPong(RTMP *r, double txn)
  1773. {
  1774. RTMPPacket packet;
  1775. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1776. char *enc;
  1777. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1778. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1779. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1780. packet.m_nTimeStamp = 0x16 * r->m_nBWCheckCounter; /* temp inc value. till we figure it out. */
  1781. packet.m_nInfoField2 = 0;
  1782. packet.m_hasAbsTimestamp = 0;
  1783. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1784. enc = packet.m_body;
  1785. enc = AMF_EncodeString(enc, pend, &av_pong);
  1786. enc = AMF_EncodeNumber(enc, pend, txn);
  1787. *enc++ = AMF_NULL;
  1788. packet.m_nBodySize = enc - packet.m_body;
  1789. return RTMP_SendPacket(r, &packet, FALSE);
  1790. }
  1791. SAVC(play);
  1792. static int
  1793. SendPlay(RTMP *r, int streamIdx)
  1794. {
  1795. RTMPPacket packet;
  1796. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1797. char *enc;
  1798. packet.m_nChannel = 0x08; /* we make 8 our stream channel */
  1799. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1800. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1801. packet.m_nTimeStamp = 0;
  1802. packet.m_nInfoField2 = r->Link.streams[streamIdx].id; /*0x01000000; */
  1803. packet.m_hasAbsTimestamp = 0;
  1804. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1805. enc = packet.m_body;
  1806. enc = AMF_EncodeString(enc, pend, &av_play);
  1807. enc = AMF_EncodeNumber(enc, pend, ++r->m_numInvokes);
  1808. *enc++ = AMF_NULL;
  1809. RTMP_Log(RTMP_LOGDEBUG, "%s, seekTime=%d, stopTime=%d, sending play: %s",
  1810. __FUNCTION__, r->Link.seekTime, r->Link.stopTime,
  1811. r->Link.streams[streamIdx].playpath.av_val);
  1812. enc = AMF_EncodeString(enc, pend, &r->Link.streams[streamIdx].playpath);
  1813. if (!enc)
  1814. return FALSE;
  1815. /* Optional parameters start and len.
  1816. *
  1817. * start: -2, -1, 0, positive number
  1818. * -2: looks for a live stream, then a recorded stream,
  1819. * if not found any open a live stream
  1820. * -1: plays a live stream
  1821. * >=0: plays a recorded streams from 'start' milliseconds
  1822. */
  1823. if (r->Link.lFlags & RTMP_LF_LIVE)
  1824. enc = AMF_EncodeNumber(enc, pend, -1000.0);
  1825. else
  1826. {
  1827. if (r->Link.seekTime > 0.0)
  1828. enc = AMF_EncodeNumber(enc, pend, r->Link.seekTime); /* resume from here */
  1829. else
  1830. enc = AMF_EncodeNumber(enc, pend, 0.0); /*-2000.0);*/ /* recorded as default, -2000.0 is not reliable since that freezes the player if the stream is not found */
  1831. }
  1832. if (!enc)
  1833. return FALSE;
  1834. /* len: -1, 0, positive number
  1835. * -1: plays live or recorded stream to the end (default)
  1836. * 0: plays a frame 'start' ms away from the beginning
  1837. * >0: plays a live or recoded stream for 'len' milliseconds
  1838. */
  1839. /*enc += EncodeNumber(enc, -1.0); */ /* len */
  1840. if (r->Link.stopTime)
  1841. {
  1842. enc = AMF_EncodeNumber(enc, pend, r->Link.stopTime - r->Link.seekTime);
  1843. if (!enc)
  1844. return FALSE;
  1845. }
  1846. packet.m_nBodySize = enc - packet.m_body;
  1847. return RTMP_SendPacket(r, &packet, TRUE);
  1848. }
  1849. SAVC(set_playlist);
  1850. SAVC(0);
  1851. static int
  1852. SendPlaylist(RTMP *r, int streamIdx)
  1853. {
  1854. RTMPPacket packet;
  1855. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1856. char *enc;
  1857. packet.m_nChannel = 0x08; /* we make 8 our stream channel */
  1858. packet.m_headerType = RTMP_PACKET_SIZE_LARGE;
  1859. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1860. packet.m_nTimeStamp = 0;
  1861. packet.m_nInfoField2 = r->Link.streams[streamIdx].id; /*0x01000000; */
  1862. packet.m_hasAbsTimestamp = 0;
  1863. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1864. enc = packet.m_body;
  1865. enc = AMF_EncodeString(enc, pend, &av_set_playlist);
  1866. enc = AMF_EncodeNumber(enc, pend, 0);
  1867. *enc++ = AMF_NULL;
  1868. *enc++ = AMF_ECMA_ARRAY;
  1869. *enc++ = 0;
  1870. *enc++ = 0;
  1871. *enc++ = 0;
  1872. *enc++ = AMF_OBJECT;
  1873. enc = AMF_EncodeNamedString(enc, pend, &av_0, &r->Link.streams[streamIdx].playpath);
  1874. if (!enc)
  1875. return FALSE;
  1876. if (enc + 3 >= pend)
  1877. return FALSE;
  1878. *enc++ = 0;
  1879. *enc++ = 0;
  1880. *enc++ = AMF_OBJECT_END;
  1881. packet.m_nBodySize = enc - packet.m_body;
  1882. return RTMP_SendPacket(r, &packet, TRUE);
  1883. }
  1884. static int
  1885. SendSecureTokenResponse(RTMP *r, AVal *resp)
  1886. {
  1887. RTMPPacket packet;
  1888. char pbuf[1024], *pend = pbuf + sizeof(pbuf);
  1889. char *enc;
  1890. packet.m_nChannel = 0x03; /* control channel (invoke) */
  1891. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1892. packet.m_packetType = RTMP_PACKET_TYPE_INVOKE;
  1893. packet.m_nTimeStamp = 0;
  1894. packet.m_nInfoField2 = 0;
  1895. packet.m_hasAbsTimestamp = 0;
  1896. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1897. enc = packet.m_body;
  1898. enc = AMF_EncodeString(enc, pend, &av_secureTokenResponse);
  1899. enc = AMF_EncodeNumber(enc, pend, 0.0);
  1900. *enc++ = AMF_NULL;
  1901. enc = AMF_EncodeString(enc, pend, resp);
  1902. if (!enc)
  1903. return FALSE;
  1904. packet.m_nBodySize = enc - packet.m_body;
  1905. return RTMP_SendPacket(r, &packet, FALSE);
  1906. }
  1907. /*
  1908. from http://jira.red5.org/confluence/display/docs/Ping:
  1909. Ping is the most mysterious message in RTMP and till now we haven't fully interpreted it yet. In summary, Ping message is used as a special command that are exchanged between client and server. This page aims to document all known Ping messages. Expect the list to grow.
  1910. The type of Ping packet is 0x4 and contains two mandatory parameters and two optional parameters. The first parameter is the type of Ping and in short integer. The second parameter is the target of the ping. As Ping is always sent in Channel 2 (control channel) and the target object in RTMP header is always 0 which means the Connection object, it's necessary to put an extra parameter to indicate the exact target object the Ping is sent to. The second parameter takes this responsibility. The value has the same meaning as the target object field in RTMP header. (The second value could also be used as other purposes, like RTT Ping/Pong. It is used as the timestamp.) The third and fourth parameters are optional and could be looked upon as the parameter of the Ping packet. Below is an unexhausted list of Ping messages.
  1911. * type 0: Clear the stream. No third and fourth parameters. The second parameter could be 0. After the connection is established, a Ping 0,0 will be sent from server to client. The message will also be sent to client on the start of Play and in response of a Seek or Pause/Resume request. This Ping tells client to re-calibrate the clock with the timestamp of the next packet server sends.
  1912. * type 1: Tell the stream to clear the playing buffer.
  1913. * type 3: Buffer time of the client. The third parameter is the buffer time in millisecond.
  1914. * type 4: Reset a stream. Used together with type 0 in the case of VOD. Often sent before type 0.
  1915. * type 6: Ping the client from server. The second parameter is the current time.
  1916. * type 7: Pong reply from client. The second parameter is the time the server sent with his ping request.
  1917. * type 26: SWFVerification request
  1918. * type 27: SWFVerification response
  1919. */
  1920. int
  1921. RTMP_SendCtrl(RTMP *r, short nType, unsigned int nObject, unsigned int nTime)
  1922. {
  1923. RTMPPacket packet;
  1924. char pbuf[256], *pend = pbuf + sizeof(pbuf);
  1925. int nSize;
  1926. char *buf;
  1927. RTMP_Log(RTMP_LOGDEBUG, "sending ctrl. type: 0x%04x", (unsigned short)nType);
  1928. packet.m_nChannel = 0x02; /* control channel (ping) */
  1929. packet.m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  1930. packet.m_packetType = RTMP_PACKET_TYPE_CONTROL;
  1931. packet.m_nTimeStamp = 0; /* RTMP_GetTime(); */
  1932. packet.m_nInfoField2 = 0;
  1933. packet.m_hasAbsTimestamp = 0;
  1934. packet.m_body = pbuf + RTMP_MAX_HEADER_SIZE;
  1935. switch(nType)
  1936. {
  1937. case 0x03:
  1938. nSize = 10;
  1939. break; /* buffer time */
  1940. case 0x1A:
  1941. nSize = 3;
  1942. break; /* SWF verify request */
  1943. case 0x1B:
  1944. nSize = 44;
  1945. break; /* SWF verify response */
  1946. default:
  1947. nSize = 6;
  1948. break;
  1949. }
  1950. packet.m_nBodySize = nSize;
  1951. buf = packet.m_body;
  1952. buf = AMF_EncodeInt16(buf, pend, nType);
  1953. if (nType == 0x1B)
  1954. {
  1955. #ifdef CRYPTO
  1956. memcpy(buf, r->Link.SWFVerificationResponse, 42);
  1957. RTMP_Log(RTMP_LOGDEBUG, "Sending SWFVerification response: ");
  1958. RTMP_LogHex(RTMP_LOGDEBUG, (uint8_t *)packet.m_body, packet.m_nBodySize);
  1959. #endif
  1960. }
  1961. else if (nType == 0x1A)
  1962. {
  1963. *buf = nObject & 0xff;
  1964. }
  1965. else
  1966. {
  1967. if (nSize > 2)
  1968. buf = AMF_EncodeInt32(buf, pend, nObject);
  1969. if (nSize > 6)
  1970. buf = AMF_EncodeInt32(buf, pend, nTime);
  1971. }
  1972. return RTMP_SendPacket(r, &packet, FALSE);
  1973. }
  1974. static void
  1975. AV_erase(RTMP_METHOD *vals, int *num, int i, int freeit)
  1976. {
  1977. if (freeit)
  1978. free(vals[i].name.av_val);
  1979. (*num)--;
  1980. for (; i < *num; i++)
  1981. {
  1982. vals[i] = vals[i + 1];
  1983. }
  1984. vals[i].name.av_val = NULL;
  1985. vals[i].name.av_len = 0;
  1986. vals[i].num = 0;
  1987. }
  1988. void
  1989. RTMP_DropRequest(RTMP *r, int i, int freeit)
  1990. {
  1991. AV_erase(r->m_methodCalls, &r->m_numCalls, i, freeit);
  1992. }
  1993. static void
  1994. AV_queue(RTMP_METHOD **vals, int *num, AVal *av, int txn)
  1995. {
  1996. char *tmp;
  1997. if (!(*num & 0x0f))
  1998. *vals = realloc(*vals, (*num + 16) * sizeof(RTMP_METHOD));
  1999. tmp = malloc(av->av_len + 1);
  2000. memcpy(tmp, av->av_val, av->av_len);
  2001. tmp[av->av_len] = '\0';
  2002. (*vals)[*num].num = txn;
  2003. (*vals)[*num].name.av_len = av->av_len;
  2004. (*vals)[(*num)++].name.av_val = tmp;
  2005. }
  2006. static void
  2007. AV_clear(RTMP_METHOD *vals, int num)
  2008. {
  2009. int i;
  2010. for (i = 0; i < num; i++)
  2011. free(vals[i].name.av_val);
  2012. free(vals);
  2013. }
  2014. #if defined(CRYPTO) || defined(USE_ONLY_MD5)
  2015. static int
  2016. b64enc(const unsigned char *input, int length, char *output, int maxsize)
  2017. {
  2018. #ifdef USE_POLARSSL
  2019. size_t buf_size = maxsize;
  2020. if(base64_encode((unsigned char *) output, &buf_size, input, length) == 0)
  2021. {
  2022. output[buf_size] = '\0';
  2023. return 1;
  2024. }
  2025. else
  2026. {
  2027. RTMP_Log(RTMP_LOGDEBUG, "%s, error", __FUNCTION__);
  2028. return 0;
  2029. }
  2030. #elif defined(USE_GNUTLS)
  2031. if (BASE64_ENCODE_RAW_LENGTH(length) <= maxsize)
  2032. base64_encode_raw((uint8_t*) output, length, input);
  2033. else
  2034. {
  2035. RTMP_Log(RTMP_LOGDEBUG, "%s, error", __FUNCTION__);
  2036. return 0;
  2037. }
  2038. #elif defined(USE_ONLY_MD5)
  2039. base64_encodestate state;
  2040. base64_init_encodestate(&state);
  2041. output += base64_encode_block((const char *)input, length, output, &state);
  2042. base64_encode_blockend(output, &state);
  2043. #else /* USE_OPENSSL */
  2044. BIO *bmem, *b64;
  2045. BUF_MEM *bptr;
  2046. b64 = BIO_new(BIO_f_base64());
  2047. bmem = BIO_new(BIO_s_mem());
  2048. b64 = BIO_push(b64, bmem);
  2049. BIO_write(b64, input, length);
  2050. if (BIO_flush(b64) == 1)
  2051. {
  2052. BIO_get_mem_ptr(b64, &bptr);
  2053. memcpy(output, bptr->data, bptr->length-1);
  2054. output[bptr->length-1] = '\0';
  2055. }
  2056. else
  2057. {
  2058. RTMP_Log(RTMP_LOGDEBUG, "%s, error", __FUNCTION__);
  2059. return 0;
  2060. }
  2061. BIO_free_all(b64);
  2062. #endif
  2063. return 1;
  2064. }
  2065. #ifdef USE_POLARSSL
  2066. #define MD5_CTX md5_context
  2067. #define MD5_Init(ctx) md5_starts(ctx)
  2068. #define MD5_Update(ctx,data,len) md5_update(ctx,(unsigned char *)data,len)
  2069. #define MD5_Final(dig,ctx) md5_finish(ctx,dig)
  2070. #elif defined(USE_GNUTLS)
  2071. typedef struct md5_ctx MD5_CTX;
  2072. #define MD5_Init(ctx) md5_init(ctx)
  2073. #define MD5_Update(ctx,data,len) md5_update(ctx,len,data)
  2074. #define MD5_Final(dig,ctx) md5_digest(ctx,MD5_DIGEST_LENGTH,dig)
  2075. #else
  2076. #endif
  2077. static const AVal av_authmod_adobe = AVC("authmod=adobe");
  2078. static const AVal av_authmod_llnw = AVC("authmod=llnw");
  2079. static void hexenc(unsigned char *inbuf, int len, char *dst)
  2080. {
  2081. char *ptr = dst;
  2082. while(len--)
  2083. {
  2084. sprintf(ptr, "%02x", *inbuf++);
  2085. ptr += 2;
  2086. }
  2087. *ptr = '\0';
  2088. }
  2089. static char *AValChr(AVal *av, char c)
  2090. {
  2091. int i;
  2092. for (i = 0; i < av->av_len; i++)
  2093. {
  2094. if (av->av_val[i] == c)
  2095. return &av->av_val[i];
  2096. }
  2097. return NULL;
  2098. }
  2099. static int
  2100. PublisherAuth(RTMP *r, AVal *description)
  2101. {
  2102. char *token_in = NULL;
  2103. char *ptr;
  2104. unsigned char md5sum_val[MD5_DIGEST_LENGTH+1];
  2105. MD5_CTX md5ctx;
  2106. int challenge2_data;
  2107. #define RESPONSE_LEN 32
  2108. #define CHALLENGE2_LEN 16
  2109. #define SALTED2_LEN (32+8+8+8)
  2110. #define B64DIGEST_LEN 24 /* 16 byte digest => 22 b64 chars + 2 chars padding */
  2111. #define B64INT_LEN 8 /* 4 byte int => 6 b64 chars + 2 chars padding */
  2112. #define HEXHASH_LEN (2*MD5_DIGEST_LENGTH)
  2113. char response[RESPONSE_LEN];
  2114. char challenge2[CHALLENGE2_LEN];
  2115. char salted2[SALTED2_LEN];
  2116. AVal pubToken;
  2117. if (strstr(description->av_val, av_authmod_adobe.av_val) != NULL)
  2118. {
  2119. if(strstr(description->av_val, "code=403 need auth") != NULL)
  2120. {
  2121. if (strstr(r->Link.app.av_val, av_authmod_adobe.av_val) != NULL)
  2122. {
  2123. RTMP_Log(RTMP_LOGERROR, "%s, wrong pubUser & pubPasswd for publisher auth", __FUNCTION__);
  2124. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2125. return 0;
  2126. }
  2127. else if(r->Link.pubUser.av_len && r->Link.pubPasswd.av_len)
  2128. {
  2129. pubToken.av_val = malloc(r->Link.pubUser.av_len + av_authmod_adobe.av_len + 8);
  2130. pubToken.av_len = sprintf(pubToken.av_val, "?%s&user=%s",
  2131. av_authmod_adobe.av_val,
  2132. r->Link.pubUser.av_val);
  2133. RTMP_Log(RTMP_LOGDEBUG, "%s, pubToken1: %s", __FUNCTION__, pubToken.av_val);
  2134. r->Link.pFlags |= RTMP_PUB_NAME;
  2135. }
  2136. else
  2137. {
  2138. RTMP_Log(RTMP_LOGERROR, "%s, need to set pubUser & pubPasswd for publisher auth", __FUNCTION__);
  2139. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2140. return 0;
  2141. }
  2142. }
  2143. else if((token_in = strstr(description->av_val, "?reason=needauth")) != NULL)
  2144. {
  2145. char *par, *val = NULL, *orig_ptr;
  2146. AVal user, salt, opaque, challenge, *aptr = NULL;
  2147. opaque.av_len = challenge.av_len = salt.av_len = user.av_len = 0;
  2148. opaque.av_val = challenge.av_val = salt.av_val = user.av_val = NULL;
  2149. ptr = orig_ptr = strdup(token_in);
  2150. while (ptr)
  2151. {
  2152. par = ptr;
  2153. ptr = strchr(par, '&');
  2154. if(ptr)
  2155. *ptr++ = '\0';
  2156. val = strchr(par, '=');
  2157. if(val)
  2158. *val++ = '\0';
  2159. if (aptr)
  2160. {
  2161. aptr->av_len = par - aptr->av_val - 1;
  2162. aptr = NULL;
  2163. }
  2164. if (strcmp(par, "user") == 0)
  2165. {
  2166. user.av_val = val;
  2167. aptr = &user;
  2168. }
  2169. else if (strcmp(par, "salt") == 0)
  2170. {
  2171. salt.av_val = val;
  2172. aptr = &salt;
  2173. }
  2174. else if (strcmp(par, "opaque") == 0)
  2175. {
  2176. opaque.av_val = val;
  2177. aptr = &opaque;
  2178. }
  2179. else if (strcmp(par, "challenge") == 0)
  2180. {
  2181. challenge.av_val = val;
  2182. aptr = &challenge;
  2183. }
  2184. RTMP_Log(RTMP_LOGDEBUG, "%s, par:\"%s\" = val:\"%s\"", __FUNCTION__, par, val);
  2185. }
  2186. if (aptr)
  2187. aptr->av_len = (int)strlen(aptr->av_val);
  2188. /* hash1 = base64enc(md5(user + _aodbeAuthSalt + password)) */
  2189. MD5_Init(&md5ctx);
  2190. MD5_Update(&md5ctx, user.av_val, user.av_len);
  2191. MD5_Update(&md5ctx, salt.av_val, salt.av_len);
  2192. MD5_Update(&md5ctx, r->Link.pubPasswd.av_val, r->Link.pubPasswd.av_len);
  2193. MD5_Final(md5sum_val, &md5ctx);
  2194. RTMP_Log(RTMP_LOGDEBUG, "%s, md5(%s%s%s) =>", __FUNCTION__,
  2195. user.av_val, salt.av_val, r->Link.pubPasswd.av_val);
  2196. RTMP_LogHexString(RTMP_LOGDEBUG, md5sum_val, MD5_DIGEST_LENGTH);
  2197. b64enc(md5sum_val, MD5_DIGEST_LENGTH, salted2, SALTED2_LEN);
  2198. RTMP_Log(RTMP_LOGDEBUG, "%s, b64(md5_1) = %s", __FUNCTION__, salted2);
  2199. challenge2_data = rand();
  2200. b64enc((unsigned char *) &challenge2_data, sizeof(int), challenge2, CHALLENGE2_LEN);
  2201. RTMP_Log(RTMP_LOGDEBUG, "%s, b64(%d) = %s", __FUNCTION__, challenge2_data, challenge2);
  2202. MD5_Init(&md5ctx);
  2203. MD5_Update(&md5ctx, salted2, B64DIGEST_LEN);
  2204. /* response = base64enc(md5(hash1 + opaque + challenge2)) */
  2205. if (opaque.av_len)
  2206. MD5_Update(&md5ctx, opaque.av_val, opaque.av_len);
  2207. else if (challenge.av_len)
  2208. MD5_Update(&md5ctx, challenge.av_val, challenge.av_len);
  2209. MD5_Update(&md5ctx, challenge2, B64INT_LEN);
  2210. MD5_Final(md5sum_val, &md5ctx);
  2211. RTMP_Log(RTMP_LOGDEBUG, "%s, md5(%s%s%s) =>", __FUNCTION__,
  2212. salted2, opaque.av_len ? opaque.av_val : "", challenge2);
  2213. RTMP_LogHexString(RTMP_LOGDEBUG, md5sum_val, MD5_DIGEST_LENGTH);
  2214. b64enc(md5sum_val, MD5_DIGEST_LENGTH, response, RESPONSE_LEN);
  2215. RTMP_Log(RTMP_LOGDEBUG, "%s, b64(md5_2) = %s", __FUNCTION__, response);
  2216. /* have all hashes, create auth token for the end of app */
  2217. pubToken.av_val = malloc(32 + B64INT_LEN + B64DIGEST_LEN + opaque.av_len);
  2218. pubToken.av_len = sprintf(pubToken.av_val,
  2219. "&challenge=%s&response=%s&opaque=%s",
  2220. challenge2,
  2221. response,
  2222. opaque.av_len ? opaque.av_val : "");
  2223. RTMP_Log(RTMP_LOGDEBUG, "%s, pubToken2: %s", __FUNCTION__, pubToken.av_val);
  2224. free(orig_ptr);
  2225. r->Link.pFlags |= RTMP_PUB_RESP|RTMP_PUB_CLATE;
  2226. }
  2227. else if(strstr(description->av_val, "?reason=authfailed") != NULL)
  2228. {
  2229. RTMP_Log(RTMP_LOGERROR, "%s, Authentication failed: wrong password", __FUNCTION__);
  2230. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2231. return 0;
  2232. }
  2233. else if(strstr(description->av_val, "?reason=nosuchuser") != NULL)
  2234. {
  2235. RTMP_Log(RTMP_LOGERROR, "%s, Authentication failed: no such user", __FUNCTION__);
  2236. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2237. return 0;
  2238. }
  2239. else
  2240. {
  2241. RTMP_Log(RTMP_LOGERROR, "%s, Authentication failed: unknown auth mode: %s",
  2242. __FUNCTION__, description->av_val);
  2243. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2244. return 0;
  2245. }
  2246. ptr = malloc(r->Link.app.av_len + pubToken.av_len);
  2247. strncpy(ptr, r->Link.app.av_val, r->Link.app.av_len);
  2248. strncpy(ptr + r->Link.app.av_len, pubToken.av_val, pubToken.av_len);
  2249. r->Link.app.av_len += pubToken.av_len;
  2250. if(r->Link.pFlags & RTMP_PUB_ALLOC)
  2251. free(r->Link.app.av_val);
  2252. r->Link.app.av_val = ptr;
  2253. ptr = malloc(r->Link.tcUrl.av_len + pubToken.av_len);
  2254. strncpy(ptr, r->Link.tcUrl.av_val, r->Link.tcUrl.av_len);
  2255. strncpy(ptr + r->Link.tcUrl.av_len, pubToken.av_val, pubToken.av_len);
  2256. r->Link.tcUrl.av_len += pubToken.av_len;
  2257. if(r->Link.pFlags & RTMP_PUB_ALLOC)
  2258. free(r->Link.tcUrl.av_val);
  2259. r->Link.tcUrl.av_val = ptr;
  2260. free(pubToken.av_val);
  2261. r->Link.pFlags |= RTMP_PUB_ALLOC;
  2262. RTMP_Log(RTMP_LOGDEBUG, "%s, new app: %.*s tcUrl: %.*s playpath: %s", __FUNCTION__,
  2263. r->Link.app.av_len, r->Link.app.av_val,
  2264. r->Link.tcUrl.av_len, r->Link.tcUrl.av_val,
  2265. r->Link.playpath.av_val);
  2266. }
  2267. else if (strstr(description->av_val, av_authmod_llnw.av_val) != NULL)
  2268. {
  2269. if(strstr(description->av_val, "code=403 need auth") != NULL)
  2270. {
  2271. /* This part seems to be the same for llnw and adobe */
  2272. if (strstr(r->Link.app.av_val, av_authmod_llnw.av_val) != NULL)
  2273. {
  2274. RTMP_Log(RTMP_LOGERROR, "%s, wrong pubUser & pubPasswd for publisher auth", __FUNCTION__);
  2275. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2276. return 0;
  2277. }
  2278. else if(r->Link.pubUser.av_len && r->Link.pubPasswd.av_len)
  2279. {
  2280. pubToken.av_val = malloc(r->Link.pubUser.av_len + av_authmod_llnw.av_len + 8);
  2281. pubToken.av_len = sprintf(pubToken.av_val, "?%s&user=%s",
  2282. av_authmod_llnw.av_val,
  2283. r->Link.pubUser.av_val);
  2284. RTMP_Log(RTMP_LOGDEBUG, "%s, pubToken1: %s", __FUNCTION__, pubToken.av_val);
  2285. r->Link.pFlags |= RTMP_PUB_NAME;
  2286. }
  2287. else
  2288. {
  2289. RTMP_Log(RTMP_LOGERROR, "%s, need to set pubUser & pubPasswd for publisher auth", __FUNCTION__);
  2290. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2291. return 0;
  2292. }
  2293. }
  2294. else if((token_in = strstr(description->av_val, "?reason=needauth")) != NULL)
  2295. {
  2296. char *orig_ptr;
  2297. char *par, *val = NULL;
  2298. char hash1[HEXHASH_LEN+1], hash2[HEXHASH_LEN+1], hash3[HEXHASH_LEN+1];
  2299. AVal user, nonce, *aptr = NULL;
  2300. AVal apptmp;
  2301. /* llnw auth method
  2302. * Seems to be closely based on HTTP Digest Auth:
  2303. * http://tools.ietf.org/html/rfc2617
  2304. * http://en.wikipedia.org/wiki/Digest_access_authentication
  2305. */
  2306. const char authmod[] = "llnw";
  2307. const char realm[] = "live";
  2308. const char method[] = "publish";
  2309. const char qop[] = "auth";
  2310. /* nc = 1..connection count (or rather, number of times cnonce has been reused) */
  2311. int nc = 1;
  2312. /* nchex = hexenc(nc) (8 hex digits according to RFC 2617) */
  2313. char nchex[9];
  2314. /* cnonce = hexenc(4 random bytes) (initialized on first connection) */
  2315. char cnonce[9];
  2316. nonce.av_len = user.av_len = 0;
  2317. nonce.av_val = user.av_val = NULL;
  2318. ptr = orig_ptr = strdup(token_in);
  2319. /* Extract parameters (we need user and nonce) */
  2320. while (ptr)
  2321. {
  2322. par = ptr;
  2323. ptr = strchr(par, '&');
  2324. if(ptr)
  2325. *ptr++ = '\0';
  2326. val = strchr(par, '=');
  2327. if(val)
  2328. *val++ = '\0';
  2329. if (aptr)
  2330. {
  2331. aptr->av_len = par - aptr->av_val - 1;
  2332. aptr = NULL;
  2333. }
  2334. if (strcmp(par, "user") == 0)
  2335. {
  2336. user.av_val = val;
  2337. aptr = &user;
  2338. }
  2339. else if (strcmp(par, "nonce") == 0)
  2340. {
  2341. nonce.av_val = val;
  2342. aptr = &nonce;
  2343. }
  2344. RTMP_Log(RTMP_LOGDEBUG, "%s, par:\"%s\" = val:\"%s\"", __FUNCTION__, par, val);
  2345. }
  2346. if (aptr)
  2347. aptr->av_len = (int)strlen(aptr->av_val);
  2348. /* FIXME: handle case where user==NULL or nonce==NULL */
  2349. sprintf(nchex, "%08x", nc);
  2350. sprintf(cnonce, "%08x", rand());
  2351. /* hash1 = hexenc(md5(user + ":" + realm + ":" + password)) */
  2352. MD5_Init(&md5ctx);
  2353. MD5_Update(&md5ctx, user.av_val, user.av_len);
  2354. MD5_Update(&md5ctx, ":", 1);
  2355. MD5_Update(&md5ctx, (void *)realm, sizeof(realm)-1);
  2356. MD5_Update(&md5ctx, ":", 1);
  2357. MD5_Update(&md5ctx, r->Link.pubPasswd.av_val, r->Link.pubPasswd.av_len);
  2358. MD5_Final(md5sum_val, &md5ctx);
  2359. RTMP_Log(RTMP_LOGDEBUG, "%s, md5(%s:%s:%s) =>", __FUNCTION__,
  2360. user.av_val, realm, r->Link.pubPasswd.av_val);
  2361. RTMP_LogHexString(RTMP_LOGDEBUG, md5sum_val, MD5_DIGEST_LENGTH);
  2362. hexenc(md5sum_val, MD5_DIGEST_LENGTH, hash1);
  2363. /* hash2 = hexenc(md5(method + ":/" + app + "/" + appInstance)) */
  2364. /* Extract appname + appinstance without query parameters */
  2365. apptmp = r->Link.app;
  2366. ptr = AValChr(&apptmp, '?');
  2367. if (ptr)
  2368. apptmp.av_len = ptr - apptmp.av_val;
  2369. MD5_Init(&md5ctx);
  2370. MD5_Update(&md5ctx, (void *)method, sizeof(method)-1);
  2371. MD5_Update(&md5ctx, ":/", 2);
  2372. MD5_Update(&md5ctx, apptmp.av_val, apptmp.av_len);
  2373. if (!AValChr(&apptmp, '/'))
  2374. MD5_Update(&md5ctx, "/_definst_", sizeof("/_definst_") - 1);
  2375. MD5_Final(md5sum_val, &md5ctx);
  2376. RTMP_Log(RTMP_LOGDEBUG, "%s, md5(%s:/%.*s) =>", __FUNCTION__,
  2377. method, apptmp.av_len, apptmp.av_val);
  2378. RTMP_LogHexString(RTMP_LOGDEBUG, md5sum_val, MD5_DIGEST_LENGTH);
  2379. hexenc(md5sum_val, MD5_DIGEST_LENGTH, hash2);
  2380. /* hash3 = hexenc(md5(hash1 + ":" + nonce + ":" + nchex + ":" + cnonce + ":" + qop + ":" + hash2)) */
  2381. MD5_Init(&md5ctx);
  2382. MD5_Update(&md5ctx, hash1, HEXHASH_LEN);
  2383. MD5_Update(&md5ctx, ":", 1);
  2384. MD5_Update(&md5ctx, nonce.av_val, nonce.av_len);
  2385. MD5_Update(&md5ctx, ":", 1);
  2386. MD5_Update(&md5ctx, nchex, sizeof(nchex)-1);
  2387. MD5_Update(&md5ctx, ":", 1);
  2388. MD5_Update(&md5ctx, cnonce, sizeof(cnonce)-1);
  2389. MD5_Update(&md5ctx, ":", 1);
  2390. MD5_Update(&md5ctx, (void *)qop, sizeof(qop)-1);
  2391. MD5_Update(&md5ctx, ":", 1);
  2392. MD5_Update(&md5ctx, hash2, HEXHASH_LEN);
  2393. MD5_Final(md5sum_val, &md5ctx);
  2394. RTMP_Log(RTMP_LOGDEBUG, "%s, md5(%s:%s:%s:%s:%s:%s) =>", __FUNCTION__,
  2395. hash1, nonce.av_val, nchex, cnonce, qop, hash2);
  2396. RTMP_LogHexString(RTMP_LOGDEBUG, md5sum_val, MD5_DIGEST_LENGTH);
  2397. hexenc(md5sum_val, MD5_DIGEST_LENGTH, hash3);
  2398. /* pubToken = &authmod=<authmod>&user=<username>&nonce=<nonce>&cnonce=<cnonce>&nc=<nchex>&response=<hash3> */
  2399. /* Append nonces and response to query string which already contains
  2400. * user + authmod */
  2401. pubToken.av_val = malloc(64 + sizeof(authmod)-1 + user.av_len + nonce.av_len + sizeof(cnonce)-1 + sizeof(nchex)-1 + HEXHASH_LEN);
  2402. sprintf(pubToken.av_val,
  2403. "&nonce=%s&cnonce=%s&nc=%s&response=%s",
  2404. nonce.av_val, cnonce, nchex, hash3);
  2405. pubToken.av_len = (int)strlen(pubToken.av_val);
  2406. RTMP_Log(RTMP_LOGDEBUG, "%s, pubToken2: %s", __FUNCTION__, pubToken.av_val);
  2407. r->Link.pFlags |= RTMP_PUB_RESP|RTMP_PUB_CLATE;
  2408. free(orig_ptr);
  2409. }
  2410. else if(strstr(description->av_val, "?reason=authfail") != NULL)
  2411. {
  2412. RTMP_Log(RTMP_LOGERROR, "%s, Authentication failed", __FUNCTION__);
  2413. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2414. return 0;
  2415. }
  2416. else if(strstr(description->av_val, "?reason=nosuchuser") != NULL)
  2417. {
  2418. RTMP_Log(RTMP_LOGERROR, "%s, Authentication failed: no such user", __FUNCTION__);
  2419. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2420. return 0;
  2421. }
  2422. else
  2423. {
  2424. RTMP_Log(RTMP_LOGERROR, "%s, Authentication failed: unknown auth mode: %s",
  2425. __FUNCTION__, description->av_val);
  2426. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2427. return 0;
  2428. }
  2429. ptr = malloc(r->Link.app.av_len + pubToken.av_len);
  2430. strncpy(ptr, r->Link.app.av_val, r->Link.app.av_len);
  2431. strncpy(ptr + r->Link.app.av_len, pubToken.av_val, pubToken.av_len);
  2432. r->Link.app.av_len += pubToken.av_len;
  2433. if(r->Link.pFlags & RTMP_PUB_ALLOC)
  2434. free(r->Link.app.av_val);
  2435. r->Link.app.av_val = ptr;
  2436. ptr = malloc(r->Link.tcUrl.av_len + pubToken.av_len);
  2437. strncpy(ptr, r->Link.tcUrl.av_val, r->Link.tcUrl.av_len);
  2438. strncpy(ptr + r->Link.tcUrl.av_len, pubToken.av_val, pubToken.av_len);
  2439. r->Link.tcUrl.av_len += pubToken.av_len;
  2440. if(r->Link.pFlags & RTMP_PUB_ALLOC)
  2441. free(r->Link.tcUrl.av_val);
  2442. r->Link.tcUrl.av_val = ptr;
  2443. free(pubToken.av_val);
  2444. r->Link.pFlags |= RTMP_PUB_ALLOC;
  2445. RTMP_Log(RTMP_LOGDEBUG, "%s, new app: %.*s tcUrl: %.*s playpath: %s", __FUNCTION__,
  2446. r->Link.app.av_len, r->Link.app.av_val,
  2447. r->Link.tcUrl.av_len, r->Link.tcUrl.av_val,
  2448. r->Link.playpath.av_val);
  2449. }
  2450. else
  2451. {
  2452. return 0;
  2453. }
  2454. return 1;
  2455. }
  2456. #endif
  2457. SAVC(onBWDone);
  2458. SAVC(onFCSubscribe);
  2459. SAVC(onFCUnsubscribe);
  2460. SAVC(_onbwcheck);
  2461. SAVC(_onbwdone);
  2462. SAVC(_error);
  2463. SAVC(close);
  2464. SAVC(code);
  2465. SAVC(level);
  2466. SAVC(description);
  2467. SAVC(onStatus);
  2468. SAVC(playlist_ready);
  2469. static const AVal av_NetStream_Failed = AVC("NetStream.Failed");
  2470. static const AVal av_NetStream_Play_Failed = AVC("NetStream.Play.Failed");
  2471. static const AVal av_NetStream_Play_StreamNotFound =
  2472. AVC("NetStream.Play.StreamNotFound");
  2473. static const AVal av_NetConnection_Connect_InvalidApp =
  2474. AVC("NetConnection.Connect.InvalidApp");
  2475. static const AVal av_NetStream_Play_Start = AVC("NetStream.Play.Start");
  2476. static const AVal av_NetStream_Play_Complete = AVC("NetStream.Play.Complete");
  2477. static const AVal av_NetStream_Play_Stop = AVC("NetStream.Play.Stop");
  2478. static const AVal av_NetStream_Seek_Notify = AVC("NetStream.Seek.Notify");
  2479. static const AVal av_NetStream_Pause_Notify = AVC("NetStream.Pause.Notify");
  2480. static const AVal av_NetStream_Play_PublishNotify =
  2481. AVC("NetStream.Play.PublishNotify");
  2482. static const AVal av_NetStream_Play_UnpublishNotify =
  2483. AVC("NetStream.Play.UnpublishNotify");
  2484. static const AVal av_NetStream_Publish_Start = AVC("NetStream.Publish.Start");
  2485. static const AVal av_NetStream_Publish_Rejected = AVC("NetStream.Publish.Rejected");
  2486. static const AVal av_NetStream_Publish_Denied = AVC("NetStream.Publish.Denied");
  2487. /* Returns 0 for OK/Failed/error, 1 for 'Stop or Complete' */
  2488. static int
  2489. HandleInvoke(RTMP *r, const char *body, unsigned int nBodySize)
  2490. {
  2491. AMFObject obj;
  2492. AVal method;
  2493. double txn;
  2494. int ret = 0, nRes;
  2495. if (body[0] != 0x02) /* make sure it is a string method name we start with */
  2496. {
  2497. RTMP_Log(RTMP_LOGWARNING, "%s, Sanity failed. no string method in invoke packet",
  2498. __FUNCTION__);
  2499. return 0;
  2500. }
  2501. nRes = AMF_Decode(&obj, body, nBodySize, FALSE);
  2502. if (nRes < 0)
  2503. {
  2504. RTMP_Log(RTMP_LOGERROR, "%s, error decoding invoke packet", __FUNCTION__);
  2505. return 0;
  2506. }
  2507. AMF_Dump(&obj);
  2508. AMFProp_GetString(AMF_GetProp(&obj, NULL, 0), &method);
  2509. txn = AMFProp_GetNumber(AMF_GetProp(&obj, NULL, 1));
  2510. RTMP_Log(RTMP_LOGDEBUG, "%s, server invoking <%s>", __FUNCTION__, method.av_val);
  2511. if (AVMATCH(&method, &av__result))
  2512. {
  2513. AVal methodInvoked = {0};
  2514. int i;
  2515. for (i=0; i<r->m_numCalls; i++)
  2516. {
  2517. if (r->m_methodCalls[i].num == (int)txn)
  2518. {
  2519. methodInvoked = r->m_methodCalls[i].name;
  2520. AV_erase(r->m_methodCalls, &r->m_numCalls, i, FALSE);
  2521. break;
  2522. }
  2523. }
  2524. if (!methodInvoked.av_val)
  2525. {
  2526. RTMP_Log(RTMP_LOGDEBUG, "%s, received result id %f without matching request",
  2527. __FUNCTION__, txn);
  2528. goto leave;
  2529. }
  2530. RTMP_Log(RTMP_LOGDEBUG, "%s, received result for method call <%s>", __FUNCTION__,
  2531. methodInvoked.av_val);
  2532. if (AVMATCH(&methodInvoked, &av_connect))
  2533. {
  2534. if (r->Link.token.av_len)
  2535. {
  2536. AMFObjectProperty p;
  2537. if (RTMP_FindFirstMatchingProperty(&obj, &av_secureToken, &p))
  2538. {
  2539. DecodeTEA(&r->Link.token, &p.p_vu.p_aval);
  2540. SendSecureTokenResponse(r, &p.p_vu.p_aval);
  2541. }
  2542. }
  2543. if (r->Link.protocol & RTMP_FEATURE_WRITE)
  2544. {
  2545. for (int i = 0; i < r->Link.nStreams; i++)
  2546. SendReleaseStream(r, i);
  2547. for (int i = 0; i < r->Link.nStreams; i++)
  2548. SendFCPublish(r, i);
  2549. }
  2550. else
  2551. {
  2552. RTMP_SendServerBW(r);
  2553. RTMP_SendCtrl(r, 3, 0, 300);
  2554. }
  2555. for (int i = 0; i < r->Link.nStreams; i++)
  2556. RTMP_SendCreateStream(r);
  2557. if (!(r->Link.protocol & RTMP_FEATURE_WRITE))
  2558. {
  2559. /* Authenticate on Justin.tv legacy servers before sending FCSubscribe */
  2560. if (r->Link.usherToken.av_len)
  2561. SendUsherToken(r, &r->Link.usherToken);
  2562. /* Send the FCSubscribe if live stream or if subscribepath is set */
  2563. if (r->Link.subscribepath.av_len)
  2564. SendFCSubscribe(r, &r->Link.subscribepath);
  2565. else if (r->Link.lFlags & RTMP_LF_LIVE)
  2566. {
  2567. for (int i = 0; i < r->Link.nStreams; i++)
  2568. SendFCSubscribe(r, &r->Link.streams[i].playpath);
  2569. }
  2570. }
  2571. }
  2572. else if (AVMATCH(&methodInvoked, &av_createStream))
  2573. {
  2574. int id = (int)AMFProp_GetNumber(AMF_GetProp(&obj, NULL, 3));
  2575. r->Link.streams[r->Link.curStreamIdx].id = id;
  2576. if (r->Link.protocol & RTMP_FEATURE_WRITE)
  2577. SendPublish(r, r->Link.curStreamIdx);
  2578. else
  2579. {
  2580. if (r->Link.lFlags & RTMP_LF_PLST)
  2581. SendPlaylist(r, r->Link.curStreamIdx);
  2582. SendPlay(r, r->Link.curStreamIdx);
  2583. RTMP_SendCtrl(r, 3, id, r->m_nBufferMS);
  2584. }
  2585. r->Link.curStreamIdx++;
  2586. }
  2587. else if (AVMATCH(&methodInvoked, &av_play) ||
  2588. AVMATCH(&methodInvoked, &av_publish))
  2589. {
  2590. r->m_bPlaying = TRUE;
  2591. r->Link.playingStreams++;
  2592. }
  2593. free(methodInvoked.av_val);
  2594. }
  2595. else if (AVMATCH(&method, &av_onBWDone))
  2596. {
  2597. if (!r->m_nBWCheckCounter)
  2598. SendCheckBW(r);
  2599. }
  2600. else if (AVMATCH(&method, &av_onFCSubscribe))
  2601. {
  2602. /* SendOnFCSubscribe(); */
  2603. }
  2604. else if (AVMATCH(&method, &av_onFCUnsubscribe))
  2605. {
  2606. RTMP_Close(r);
  2607. ret = 1;
  2608. }
  2609. else if (AVMATCH(&method, &av_ping))
  2610. {
  2611. SendPong(r, txn);
  2612. }
  2613. else if (AVMATCH(&method, &av__onbwcheck))
  2614. {
  2615. SendCheckBWResult(r, txn);
  2616. }
  2617. else if (AVMATCH(&method, &av__onbwdone))
  2618. {
  2619. int i;
  2620. for (i = 0; i < r->m_numCalls; i++)
  2621. if (AVMATCH(&r->m_methodCalls[i].name, &av__checkbw))
  2622. {
  2623. AV_erase(r->m_methodCalls, &r->m_numCalls, i, TRUE);
  2624. break;
  2625. }
  2626. }
  2627. else if (AVMATCH(&method, &av__error))
  2628. {
  2629. #if defined(CRYPTO) || defined(USE_ONLY_MD5)
  2630. AVal methodInvoked = {0};
  2631. int i;
  2632. if (r->Link.protocol & RTMP_FEATURE_WRITE)
  2633. {
  2634. for (i=0; i<r->m_numCalls; i++)
  2635. {
  2636. if (r->m_methodCalls[i].num == txn)
  2637. {
  2638. methodInvoked = r->m_methodCalls[i].name;
  2639. AV_erase(r->m_methodCalls, &r->m_numCalls, i, FALSE);
  2640. break;
  2641. }
  2642. }
  2643. if (!methodInvoked.av_val)
  2644. {
  2645. RTMP_Log(RTMP_LOGDEBUG, "%s, received result id %f without matching request",
  2646. __FUNCTION__, txn);
  2647. goto leave;
  2648. }
  2649. RTMP_Log(RTMP_LOGDEBUG, "%s, received error for method call <%s>", __FUNCTION__,
  2650. methodInvoked.av_val);
  2651. if (AVMATCH(&methodInvoked, &av_connect))
  2652. {
  2653. AMFObject obj2;
  2654. AVal code, level, description;
  2655. AMFProp_GetObject(AMF_GetProp(&obj, NULL, 3), &obj2);
  2656. AMFProp_GetString(AMF_GetProp(&obj2, &av_code, -1), &code);
  2657. AMFProp_GetString(AMF_GetProp(&obj2, &av_level, -1), &level);
  2658. AMFProp_GetString(AMF_GetProp(&obj2, &av_description, -1), &description);
  2659. RTMP_Log(RTMP_LOGDEBUG, "%s, error description: %s", __FUNCTION__, description.av_val);
  2660. /* if PublisherAuth returns 1, then reconnect */
  2661. PublisherAuth(r, &description);
  2662. }
  2663. }
  2664. else
  2665. {
  2666. RTMP_Log(RTMP_LOGERROR, "rtmp server sent error");
  2667. }
  2668. free(methodInvoked.av_val);
  2669. #else
  2670. RTMP_Log(RTMP_LOGERROR, "rtmp server sent error");
  2671. #endif
  2672. }
  2673. else if (AVMATCH(&method, &av_close))
  2674. {
  2675. RTMP_Log(RTMP_LOGERROR, "rtmp server requested close");
  2676. RTMP_Close(r);
  2677. #if defined(CRYPTO) || defined(USE_ONLY_MD5)
  2678. if ((r->Link.protocol & RTMP_FEATURE_WRITE) &&
  2679. !(r->Link.pFlags & RTMP_PUB_CLEAN) &&
  2680. ( !(r->Link.pFlags & RTMP_PUB_NAME) ||
  2681. !(r->Link.pFlags & RTMP_PUB_RESP) ||
  2682. (r->Link.pFlags & RTMP_PUB_CLATE) ) )
  2683. {
  2684. /* clean later */
  2685. if(r->Link.pFlags & RTMP_PUB_CLATE)
  2686. r->Link.pFlags |= RTMP_PUB_CLEAN;
  2687. RTMP_Log(RTMP_LOGERROR, "authenticating publisher");
  2688. if (!RTMP_Connect(r, NULL) || !RTMP_ConnectStream(r, 0))
  2689. goto leave;
  2690. }
  2691. #endif
  2692. }
  2693. else if (AVMATCH(&method, &av_onStatus))
  2694. {
  2695. AMFObject obj2;
  2696. AVal code, level, description;
  2697. AMFProp_GetObject(AMF_GetProp(&obj, NULL, 3), &obj2);
  2698. AMFProp_GetString(AMF_GetProp(&obj2, &av_code, -1), &code);
  2699. AMFProp_GetString(AMF_GetProp(&obj2, &av_level, -1), &level);
  2700. AMFProp_GetString(AMF_GetProp(&obj2, &av_description, -1), &description);
  2701. RTMP_Log(RTMP_LOGDEBUG, "%s, onStatus: %s", __FUNCTION__, code.av_val);
  2702. if (AVMATCH(&code, &av_NetStream_Failed)
  2703. || AVMATCH(&code, &av_NetStream_Play_Failed)
  2704. || AVMATCH(&code, &av_NetStream_Play_StreamNotFound)
  2705. || AVMATCH(&code, &av_NetConnection_Connect_InvalidApp)
  2706. || AVMATCH(&code, &av_NetStream_Publish_Rejected)
  2707. || AVMATCH(&code, &av_NetStream_Publish_Denied))
  2708. {
  2709. r->m_stream_id = -1;
  2710. RTMP_Close(r);
  2711. if (description.av_len)
  2712. RTMP_Log(RTMP_LOGERROR, "%s:\n%s (%s)", r->Link.tcUrl.av_val, code.av_val, description.av_val);
  2713. else
  2714. RTMP_Log(RTMP_LOGERROR, "%s:\n%s", r->Link.tcUrl.av_val, code.av_val);
  2715. }
  2716. else if (AVMATCH(&code, &av_NetStream_Play_Start)
  2717. || AVMATCH(&code, &av_NetStream_Play_PublishNotify))
  2718. {
  2719. int i;
  2720. r->m_bPlaying = TRUE;
  2721. for (i = 0; i < r->m_numCalls; i++)
  2722. {
  2723. if (AVMATCH(&r->m_methodCalls[i].name, &av_play))
  2724. {
  2725. AV_erase(r->m_methodCalls, &r->m_numCalls, i, TRUE);
  2726. break;
  2727. }
  2728. }
  2729. }
  2730. else if (AVMATCH(&code, &av_NetStream_Publish_Start))
  2731. {
  2732. int i;
  2733. r->m_bPlaying = TRUE;
  2734. for (i = 0; i < r->m_numCalls; i++)
  2735. {
  2736. if (AVMATCH(&r->m_methodCalls[i].name, &av_publish))
  2737. {
  2738. AV_erase(r->m_methodCalls, &r->m_numCalls, i, TRUE);
  2739. break;
  2740. }
  2741. }
  2742. }
  2743. /* Return 1 if this is a Play.Complete or Play.Stop */
  2744. else if (AVMATCH(&code, &av_NetStream_Play_Complete)
  2745. || AVMATCH(&code, &av_NetStream_Play_Stop)
  2746. || AVMATCH(&code, &av_NetStream_Play_UnpublishNotify))
  2747. {
  2748. RTMP_Close(r);
  2749. ret = 1;
  2750. }
  2751. else if (AVMATCH(&code, &av_NetStream_Seek_Notify))
  2752. {
  2753. r->m_read.flags &= ~RTMP_READ_SEEKING;
  2754. }
  2755. else if (AVMATCH(&code, &av_NetStream_Pause_Notify))
  2756. {
  2757. if (r->m_pausing == 1 || r->m_pausing == 2)
  2758. {
  2759. RTMP_SendPause(r, FALSE, r->m_pauseStamp);
  2760. r->m_pausing = 3;
  2761. }
  2762. }
  2763. }
  2764. else if (AVMATCH(&method, &av_playlist_ready))
  2765. {
  2766. int i;
  2767. for (i = 0; i < r->m_numCalls; i++)
  2768. {
  2769. if (AVMATCH(&r->m_methodCalls[i].name, &av_set_playlist))
  2770. {
  2771. AV_erase(r->m_methodCalls, &r->m_numCalls, i, TRUE);
  2772. break;
  2773. }
  2774. }
  2775. }
  2776. else
  2777. {
  2778. }
  2779. leave:
  2780. AMF_Reset(&obj);
  2781. return ret;
  2782. }
  2783. int
  2784. RTMP_FindFirstMatchingProperty(AMFObject *obj, const AVal *name,
  2785. AMFObjectProperty * p)
  2786. {
  2787. int n;
  2788. /* this is a small object search to locate the "duration" property */
  2789. for (n = 0; n < obj->o_num; n++)
  2790. {
  2791. AMFObjectProperty *prop = AMF_GetProp(obj, NULL, n);
  2792. if (AVMATCH(&prop->p_name, name))
  2793. {
  2794. memcpy(p, prop, sizeof(*prop));
  2795. return TRUE;
  2796. }
  2797. if (prop->p_type == AMF_OBJECT || prop->p_type == AMF_ECMA_ARRAY)
  2798. {
  2799. if (RTMP_FindFirstMatchingProperty(&prop->p_vu.p_object, name, p))
  2800. return TRUE;
  2801. }
  2802. }
  2803. return FALSE;
  2804. }
  2805. /* Like above, but only check if name is a prefix of property */
  2806. int
  2807. RTMP_FindPrefixProperty(AMFObject *obj, const AVal *name,
  2808. AMFObjectProperty * p)
  2809. {
  2810. int n;
  2811. for (n = 0; n < obj->o_num; n++)
  2812. {
  2813. AMFObjectProperty *prop = AMF_GetProp(obj, NULL, n);
  2814. if (prop->p_name.av_len > name->av_len &&
  2815. !memcmp(prop->p_name.av_val, name->av_val, name->av_len))
  2816. {
  2817. memcpy(p, prop, sizeof(*prop));
  2818. return TRUE;
  2819. }
  2820. if (prop->p_type == AMF_OBJECT)
  2821. {
  2822. if (RTMP_FindPrefixProperty(&prop->p_vu.p_object, name, p))
  2823. return TRUE;
  2824. }
  2825. }
  2826. return FALSE;
  2827. }
  2828. static int
  2829. DumpMetaData(AMFObject *obj)
  2830. {
  2831. AMFObjectProperty *prop;
  2832. int n, len;
  2833. for (n = 0; n < obj->o_num; n++)
  2834. {
  2835. char str[256] = "";
  2836. prop = AMF_GetProp(obj, NULL, n);
  2837. switch (prop->p_type)
  2838. {
  2839. case AMF_OBJECT:
  2840. case AMF_ECMA_ARRAY:
  2841. case AMF_STRICT_ARRAY:
  2842. if (prop->p_name.av_len)
  2843. RTMP_Log(RTMP_LOGINFO, "%.*s:", prop->p_name.av_len, prop->p_name.av_val);
  2844. DumpMetaData(&prop->p_vu.p_object);
  2845. break;
  2846. case AMF_NUMBER:
  2847. snprintf(str, 255, "%.2f", prop->p_vu.p_number);
  2848. break;
  2849. case AMF_BOOLEAN:
  2850. snprintf(str, 255, "%s",
  2851. prop->p_vu.p_number != 0. ? "TRUE" : "FALSE");
  2852. break;
  2853. case AMF_STRING:
  2854. len = snprintf(str, 255, "%.*s", prop->p_vu.p_aval.av_len,
  2855. prop->p_vu.p_aval.av_val);
  2856. if (len >= 1 && str[len-1] == '\n')
  2857. str[len-1] = '\0';
  2858. break;
  2859. case AMF_DATE:
  2860. snprintf(str, 255, "timestamp:%.2f", prop->p_vu.p_number);
  2861. break;
  2862. default:
  2863. snprintf(str, 255, "INVALID TYPE 0x%02x",
  2864. (unsigned char)prop->p_type);
  2865. }
  2866. if (str[0] && prop->p_name.av_len)
  2867. {
  2868. RTMP_Log(RTMP_LOGINFO, " %-22.*s%s", prop->p_name.av_len,
  2869. prop->p_name.av_val, str);
  2870. }
  2871. }
  2872. return FALSE;
  2873. }
  2874. SAVC(onMetaData);
  2875. SAVC(duration);
  2876. SAVC(video);
  2877. SAVC(audio);
  2878. static int
  2879. HandleMetadata(RTMP *r, char *body, unsigned int len)
  2880. {
  2881. /* allright we get some info here, so parse it and print it */
  2882. /* also keep duration or filesize to make a nice progress bar */
  2883. AMFObject obj;
  2884. AVal metastring;
  2885. int ret = FALSE;
  2886. int nRes = AMF_Decode(&obj, body, len, FALSE);
  2887. if (nRes < 0)
  2888. {
  2889. RTMP_Log(RTMP_LOGERROR, "%s, error decoding meta data packet", __FUNCTION__);
  2890. return FALSE;
  2891. }
  2892. AMF_Dump(&obj);
  2893. AMFProp_GetString(AMF_GetProp(&obj, NULL, 0), &metastring);
  2894. if (AVMATCH(&metastring, &av_onMetaData))
  2895. {
  2896. AMFObjectProperty prop;
  2897. /* Show metadata */
  2898. RTMP_Log(RTMP_LOGINFO, "Metadata:");
  2899. DumpMetaData(&obj);
  2900. if (RTMP_FindFirstMatchingProperty(&obj, &av_duration, &prop))
  2901. {
  2902. r->m_fDuration = prop.p_vu.p_number;
  2903. /*RTMP_Log(RTMP_LOGDEBUG, "Set duration: %.2f", m_fDuration); */
  2904. }
  2905. /* Search for audio or video tags */
  2906. if (RTMP_FindPrefixProperty(&obj, &av_video, &prop))
  2907. r->m_read.dataType |= 1;
  2908. if (RTMP_FindPrefixProperty(&obj, &av_audio, &prop))
  2909. r->m_read.dataType |= 4;
  2910. ret = TRUE;
  2911. }
  2912. AMF_Reset(&obj);
  2913. return ret;
  2914. }
  2915. static void
  2916. HandleChangeChunkSize(RTMP *r, const RTMPPacket *packet)
  2917. {
  2918. if (packet->m_nBodySize >= 4)
  2919. {
  2920. r->m_inChunkSize = AMF_DecodeInt32(packet->m_body);
  2921. RTMP_Log(RTMP_LOGDEBUG, "%s, received: chunk size change to %d", __FUNCTION__,
  2922. r->m_inChunkSize);
  2923. }
  2924. }
  2925. static void
  2926. HandleAudio(RTMP *r, const RTMPPacket *packet)
  2927. {
  2928. (void)r;
  2929. (void)packet;
  2930. }
  2931. static void
  2932. HandleVideo(RTMP *r, const RTMPPacket *packet)
  2933. {
  2934. (void)r;
  2935. (void)packet;
  2936. }
  2937. static void
  2938. HandleCtrl(RTMP *r, const RTMPPacket *packet)
  2939. {
  2940. short nType = -1;
  2941. unsigned int tmp;
  2942. if (packet->m_body && packet->m_nBodySize >= 2)
  2943. nType = AMF_DecodeInt16(packet->m_body);
  2944. RTMP_Log(RTMP_LOGDEBUG, "%s, received ctrl. type: %d, len: %d", __FUNCTION__, nType,
  2945. packet->m_nBodySize);
  2946. /*RTMP_LogHex(packet.m_body, packet.m_nBodySize); */
  2947. if (packet->m_nBodySize >= 6)
  2948. {
  2949. switch (nType)
  2950. {
  2951. case 0:
  2952. tmp = AMF_DecodeInt32(packet->m_body + 2);
  2953. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream Begin %d", __FUNCTION__, tmp);
  2954. break;
  2955. case 1:
  2956. tmp = AMF_DecodeInt32(packet->m_body + 2);
  2957. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream EOF %d", __FUNCTION__, tmp);
  2958. if (r->m_pausing == 1)
  2959. r->m_pausing = 2;
  2960. break;
  2961. case 2:
  2962. tmp = AMF_DecodeInt32(packet->m_body + 2);
  2963. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream Dry %d", __FUNCTION__, tmp);
  2964. break;
  2965. case 4:
  2966. tmp = AMF_DecodeInt32(packet->m_body + 2);
  2967. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream IsRecorded %d", __FUNCTION__, tmp);
  2968. break;
  2969. case 6: /* server ping. reply with pong. */
  2970. tmp = AMF_DecodeInt32(packet->m_body + 2);
  2971. RTMP_Log(RTMP_LOGDEBUG, "%s, Ping %d", __FUNCTION__, tmp);
  2972. RTMP_SendCtrl(r, 0x07, tmp, 0);
  2973. break;
  2974. /* FMS 3.5 servers send the following two controls to let the client
  2975. * know when the server has sent a complete buffer. I.e., when the
  2976. * server has sent an amount of data equal to m_nBufferMS in duration.
  2977. * The server meters its output so that data arrives at the client
  2978. * in realtime and no faster.
  2979. *
  2980. * The rtmpdump program tries to set m_nBufferMS as large as
  2981. * possible, to force the server to send data as fast as possible.
  2982. * In practice, the server appears to cap this at about 1 hour's
  2983. * worth of data. After the server has sent a complete buffer, and
  2984. * sends this BufferEmpty message, it will wait until the play
  2985. * duration of that buffer has passed before sending a new buffer.
  2986. * The BufferReady message will be sent when the new buffer starts.
  2987. * (There is no BufferReady message for the very first buffer;
  2988. * presumably the Stream Begin message is sufficient for that
  2989. * purpose.)
  2990. *
  2991. * If the network speed is much faster than the data bitrate, then
  2992. * there may be long delays between the end of one buffer and the
  2993. * start of the next.
  2994. *
  2995. * Since usually the network allows data to be sent at
  2996. * faster than realtime, and rtmpdump wants to download the data
  2997. * as fast as possible, we use this RTMP_LF_BUFX hack: when we
  2998. * get the BufferEmpty message, we send a Pause followed by an
  2999. * Unpause. This causes the server to send the next buffer immediately
  3000. * instead of waiting for the full duration to elapse. (That's
  3001. * also the purpose of the ToggleStream function, which rtmpdump
  3002. * calls if we get a read timeout.)
  3003. *
  3004. * Media player apps don't need this hack since they are just
  3005. * going to play the data in realtime anyway. It also doesn't work
  3006. * for live streams since they obviously can only be sent in
  3007. * realtime. And it's all moot if the network speed is actually
  3008. * slower than the media bitrate.
  3009. */
  3010. case 31:
  3011. tmp = AMF_DecodeInt32(packet->m_body + 2);
  3012. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream BufferEmpty %d", __FUNCTION__, tmp);
  3013. if (!(r->Link.lFlags & RTMP_LF_BUFX))
  3014. break;
  3015. if (!r->m_pausing)
  3016. {
  3017. r->m_pauseStamp = r->m_mediaChannel < r->m_channelsAllocatedIn ?
  3018. r->m_channelTimestamp[r->m_mediaChannel] : 0;
  3019. RTMP_SendPause(r, TRUE, r->m_pauseStamp);
  3020. r->m_pausing = 1;
  3021. }
  3022. else if (r->m_pausing == 2)
  3023. {
  3024. RTMP_SendPause(r, FALSE, r->m_pauseStamp);
  3025. r->m_pausing = 3;
  3026. }
  3027. break;
  3028. case 32:
  3029. tmp = AMF_DecodeInt32(packet->m_body + 2);
  3030. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream BufferReady %d", __FUNCTION__, tmp);
  3031. break;
  3032. default:
  3033. tmp = AMF_DecodeInt32(packet->m_body + 2);
  3034. RTMP_Log(RTMP_LOGDEBUG, "%s, Stream xx %d", __FUNCTION__, tmp);
  3035. break;
  3036. }
  3037. }
  3038. if (nType == 0x1A)
  3039. {
  3040. RTMP_Log(RTMP_LOGDEBUG, "%s, SWFVerification ping received: ", __FUNCTION__);
  3041. if (packet->m_nBodySize > 2 && packet->m_body[2] > 0x01)
  3042. {
  3043. RTMP_Log(RTMP_LOGERROR,
  3044. "%s: SWFVerification Type %d request not supported! Patches welcome...",
  3045. __FUNCTION__, packet->m_body[2]);
  3046. }
  3047. #ifdef CRYPTO
  3048. /*RTMP_LogHex(packet.m_body, packet.m_nBodySize); */
  3049. /* respond with HMAC SHA256 of decompressed SWF, key is the 30byte player key, also the last 30 bytes of the server handshake are applied */
  3050. else if (r->Link.SWFSize)
  3051. {
  3052. RTMP_SendCtrl(r, 0x1B, 0, 0);
  3053. }
  3054. else
  3055. {
  3056. RTMP_Log(RTMP_LOGERROR,
  3057. "%s: Ignoring SWFVerification request, use --swfVfy!",
  3058. __FUNCTION__);
  3059. }
  3060. #else
  3061. RTMP_Log(RTMP_LOGERROR,
  3062. "%s: Ignoring SWFVerification request, no CRYPTO support!",
  3063. __FUNCTION__);
  3064. #endif
  3065. }
  3066. }
  3067. static void
  3068. HandleServerBW(RTMP *r, const RTMPPacket *packet)
  3069. {
  3070. r->m_nServerBW = AMF_DecodeInt32(packet->m_body);
  3071. RTMP_Log(RTMP_LOGDEBUG, "%s: server BW = %d", __FUNCTION__, r->m_nServerBW);
  3072. }
  3073. static void
  3074. HandleClientBW(RTMP *r, const RTMPPacket *packet)
  3075. {
  3076. r->m_nClientBW = AMF_DecodeInt32(packet->m_body);
  3077. if (packet->m_nBodySize > 4)
  3078. r->m_nClientBW2 = packet->m_body[4];
  3079. else
  3080. r->m_nClientBW2 = -1;
  3081. RTMP_Log(RTMP_LOGDEBUG, "%s: client BW = %d %d", __FUNCTION__, r->m_nClientBW,
  3082. r->m_nClientBW2);
  3083. }
  3084. static int
  3085. DecodeInt32LE(const char *data)
  3086. {
  3087. unsigned char *c = (unsigned char *)data;
  3088. unsigned int val;
  3089. val = (c[3] << 24) | (c[2] << 16) | (c[1] << 8) | c[0];
  3090. return val;
  3091. }
  3092. static int
  3093. EncodeInt32LE(char *output, int nVal)
  3094. {
  3095. output[0] = nVal;
  3096. nVal >>= 8;
  3097. output[1] = nVal;
  3098. nVal >>= 8;
  3099. output[2] = nVal;
  3100. nVal >>= 8;
  3101. output[3] = nVal;
  3102. return 4;
  3103. }
  3104. int
  3105. RTMP_ReadPacket(RTMP *r, RTMPPacket *packet)
  3106. {
  3107. uint8_t hbuf[RTMP_MAX_HEADER_SIZE] = { 0 };
  3108. char *header = (char *)hbuf;
  3109. int nSize, hSize, nToRead, nChunk;
  3110. // int didAlloc = FALSE;
  3111. int extendedTimestamp = 0;
  3112. RTMP_Log(RTMP_LOGDEBUG2, "%s: fd=%d", __FUNCTION__, r->m_sb.sb_socket);
  3113. if (ReadN(r, (char *)hbuf, 1) == 0)
  3114. {
  3115. RTMP_Log(RTMP_LOGDEBUG, "%s, failed to read RTMP packet header", __FUNCTION__);
  3116. return FALSE;
  3117. }
  3118. packet->m_headerType = (hbuf[0] & 0xc0) >> 6;
  3119. packet->m_nChannel = (hbuf[0] & 0x3f);
  3120. header++;
  3121. if (packet->m_nChannel == 0)
  3122. {
  3123. if (ReadN(r, (char *)&hbuf[1], 1) != 1)
  3124. {
  3125. RTMP_Log(RTMP_LOGERROR, "%s, failed to read RTMP packet header 2nd byte",
  3126. __FUNCTION__);
  3127. return FALSE;
  3128. }
  3129. packet->m_nChannel = hbuf[1];
  3130. packet->m_nChannel += 64;
  3131. header++;
  3132. }
  3133. else if (packet->m_nChannel == 1)
  3134. {
  3135. int tmp;
  3136. if (ReadN(r, (char *)&hbuf[1], 2) != 2)
  3137. {
  3138. RTMP_Log(RTMP_LOGERROR, "%s, failed to read RTMP packet header 3nd byte",
  3139. __FUNCTION__);
  3140. return FALSE;
  3141. }
  3142. tmp = (hbuf[2] << 8) + hbuf[1];
  3143. packet->m_nChannel = tmp + 64;
  3144. RTMP_Log(RTMP_LOGDEBUG, "%s, m_nChannel: %0x", __FUNCTION__, packet->m_nChannel);
  3145. header += 2;
  3146. }
  3147. nSize = packetSize[packet->m_headerType];
  3148. if (packet->m_nChannel >= r->m_channelsAllocatedIn)
  3149. {
  3150. int n = packet->m_nChannel + 10;
  3151. int *timestamp = realloc(r->m_channelTimestamp, sizeof(int) * n);
  3152. RTMPPacket **packets = realloc(r->m_vecChannelsIn, sizeof(RTMPPacket*) * n);
  3153. if (!timestamp)
  3154. free(r->m_channelTimestamp);
  3155. if (!packets)
  3156. free(r->m_vecChannelsIn);
  3157. r->m_channelTimestamp = timestamp;
  3158. r->m_vecChannelsIn = packets;
  3159. if (!timestamp || !packets)
  3160. {
  3161. r->m_channelsAllocatedIn = 0;
  3162. return FALSE;
  3163. }
  3164. memset(r->m_channelTimestamp + r->m_channelsAllocatedIn, 0, sizeof(int) * (n - r->m_channelsAllocatedIn));
  3165. memset(r->m_vecChannelsIn + r->m_channelsAllocatedIn, 0, sizeof(RTMPPacket*) * (n - r->m_channelsAllocatedIn));
  3166. r->m_channelsAllocatedIn = n;
  3167. }
  3168. if (nSize == RTMP_LARGE_HEADER_SIZE) /* if we get a full header the timestamp is absolute */
  3169. packet->m_hasAbsTimestamp = TRUE;
  3170. else if (nSize < RTMP_LARGE_HEADER_SIZE)
  3171. {
  3172. /* using values from the last message of this channel */
  3173. if (r->m_vecChannelsIn[packet->m_nChannel])
  3174. memcpy(packet, r->m_vecChannelsIn[packet->m_nChannel],
  3175. sizeof(RTMPPacket));
  3176. }
  3177. nSize--;
  3178. if (nSize > 0 && ReadN(r, header, nSize) != nSize)
  3179. {
  3180. RTMP_Log(RTMP_LOGERROR, "%s, failed to read RTMP packet header. type: %x",
  3181. __FUNCTION__, (unsigned int)hbuf[0]);
  3182. return FALSE;
  3183. }
  3184. hSize = nSize + (header - (char *)hbuf);
  3185. if (nSize >= 3)
  3186. {
  3187. packet->m_nTimeStamp = AMF_DecodeInt24(header);
  3188. /*RTMP_Log(RTMP_LOGDEBUG, "%s, reading RTMP packet chunk on channel %x, headersz %i, timestamp %i, abs timestamp %i", __FUNCTION__, packet.m_nChannel, nSize, packet.m_nTimeStamp, packet.m_hasAbsTimestamp); */
  3189. if (nSize >= 6)
  3190. {
  3191. packet->m_nBodySize = AMF_DecodeInt24(header + 3);
  3192. packet->m_nBytesRead = 0;
  3193. RTMPPacket_Free(packet);
  3194. if (nSize > 6)
  3195. {
  3196. packet->m_packetType = header[6];
  3197. if (nSize == 11)
  3198. packet->m_nInfoField2 = DecodeInt32LE(header + 7);
  3199. }
  3200. }
  3201. extendedTimestamp = (packet->m_nTimeStamp == 0xffffff);
  3202. if (extendedTimestamp)
  3203. {
  3204. if (ReadN(r, header + nSize, 4) != 4)
  3205. {
  3206. RTMP_Log(RTMP_LOGERROR, "%s, failed to read extended timestamp",
  3207. __FUNCTION__);
  3208. return FALSE;
  3209. }
  3210. packet->m_nTimeStamp = AMF_DecodeInt32(header + nSize);
  3211. hSize += 4;
  3212. }
  3213. }
  3214. RTMP_LogHexString(RTMP_LOGDEBUG2, (uint8_t *)hbuf, hSize);
  3215. if (packet->m_nBodySize > 0 && packet->m_body == NULL)
  3216. {
  3217. if (!RTMPPacket_Alloc(packet, packet->m_nBodySize))
  3218. {
  3219. RTMP_Log(RTMP_LOGDEBUG, "%s, failed to allocate packet", __FUNCTION__);
  3220. return FALSE;
  3221. }
  3222. // didAlloc = TRUE;
  3223. packet->m_headerType = (hbuf[0] & 0xc0) >> 6;
  3224. }
  3225. nToRead = packet->m_nBodySize - packet->m_nBytesRead;
  3226. nChunk = r->m_inChunkSize;
  3227. if (nToRead < nChunk)
  3228. nChunk = nToRead;
  3229. /* Does the caller want the raw chunk? */
  3230. if (packet->m_chunk)
  3231. {
  3232. packet->m_chunk->c_headerSize = hSize;
  3233. memcpy(packet->m_chunk->c_header, hbuf, hSize);
  3234. packet->m_chunk->c_chunk = packet->m_body + packet->m_nBytesRead;
  3235. packet->m_chunk->c_chunkSize = nChunk;
  3236. }
  3237. if (ReadN(r, packet->m_body + packet->m_nBytesRead, nChunk) != nChunk)
  3238. {
  3239. RTMP_Log(RTMP_LOGERROR, "%s, failed to read RTMP packet body. len: %u",
  3240. __FUNCTION__, packet->m_nBodySize);
  3241. return FALSE;
  3242. }
  3243. RTMP_LogHexString(RTMP_LOGDEBUG2, (uint8_t *)packet->m_body + packet->m_nBytesRead, nChunk);
  3244. packet->m_nBytesRead += nChunk;
  3245. /* keep the packet as ref for other packets on this channel */
  3246. if (!r->m_vecChannelsIn[packet->m_nChannel])
  3247. r->m_vecChannelsIn[packet->m_nChannel] = malloc(sizeof(RTMPPacket));
  3248. memcpy(r->m_vecChannelsIn[packet->m_nChannel], packet, sizeof(RTMPPacket));
  3249. if (extendedTimestamp)
  3250. r->m_vecChannelsIn[packet->m_nChannel]->m_nTimeStamp = 0xffffff;
  3251. if (RTMPPacket_IsReady(packet))
  3252. {
  3253. /* make packet's timestamp absolute */
  3254. if (!packet->m_hasAbsTimestamp)
  3255. packet->m_nTimeStamp += r->m_channelTimestamp[packet->m_nChannel]; /* timestamps seem to be always relative!! */
  3256. r->m_channelTimestamp[packet->m_nChannel] = packet->m_nTimeStamp;
  3257. /* reset the data from the stored packet. we keep the header since we may use it later if a new packet for this channel */
  3258. /* arrives and requests to re-use some info (small packet header) */
  3259. r->m_vecChannelsIn[packet->m_nChannel]->m_body = NULL;
  3260. r->m_vecChannelsIn[packet->m_nChannel]->m_nBytesRead = 0;
  3261. r->m_vecChannelsIn[packet->m_nChannel]->m_hasAbsTimestamp = FALSE; /* can only be false if we reuse header */
  3262. }
  3263. else
  3264. {
  3265. packet->m_body = NULL; /* so it won't be erased on free */
  3266. }
  3267. return TRUE;
  3268. }
  3269. #ifndef CRYPTO
  3270. static int
  3271. HandShake(RTMP *r, int FP9HandShake)
  3272. {
  3273. int i;
  3274. uint32_t uptime, suptime;
  3275. int bMatch;
  3276. char type;
  3277. char clientbuf[RTMP_SIG_SIZE + 1], *clientsig = clientbuf + 1;
  3278. char serversig[RTMP_SIG_SIZE];
  3279. clientbuf[0] = 0x03; /* not encrypted */
  3280. uptime = htonl(RTMP_GetTime());
  3281. memcpy(clientsig, &uptime, 4);
  3282. memset(&clientsig[4], 0, 4);
  3283. #ifdef _DEBUG
  3284. for (i = 8; i < RTMP_SIG_SIZE; i++)
  3285. clientsig[i] = 0xff;
  3286. #else
  3287. for (i = 8; i < RTMP_SIG_SIZE; i++)
  3288. clientsig[i] = (char)(rand() % 256);
  3289. #endif
  3290. if (!WriteN(r, clientbuf, RTMP_SIG_SIZE + 1))
  3291. return FALSE;
  3292. if (ReadN(r, &type, 1) != 1) /* 0x03 or 0x06 */
  3293. return FALSE;
  3294. RTMP_Log(RTMP_LOGDEBUG, "%s: Type Answer : %02X", __FUNCTION__, type);
  3295. if (type != clientbuf[0])
  3296. RTMP_Log(RTMP_LOGWARNING, "%s: Type mismatch: client sent %d, server answered %d",
  3297. __FUNCTION__, clientbuf[0], type);
  3298. if (ReadN(r, serversig, RTMP_SIG_SIZE) != RTMP_SIG_SIZE)
  3299. return FALSE;
  3300. /* decode server response */
  3301. memcpy(&suptime, serversig, 4);
  3302. suptime = ntohl(suptime);
  3303. RTMP_Log(RTMP_LOGDEBUG, "%s: Server Uptime : %d", __FUNCTION__, suptime);
  3304. RTMP_Log(RTMP_LOGDEBUG, "%s: FMS Version : %d.%d.%d.%d", __FUNCTION__,
  3305. serversig[4], serversig[5], serversig[6], serversig[7]);
  3306. /* 2nd part of handshake */
  3307. if (!WriteN(r, serversig, RTMP_SIG_SIZE))
  3308. return FALSE;
  3309. if (ReadN(r, serversig, RTMP_SIG_SIZE) != RTMP_SIG_SIZE)
  3310. return FALSE;
  3311. bMatch = (memcmp(serversig, clientsig, RTMP_SIG_SIZE) == 0);
  3312. if (!bMatch)
  3313. {
  3314. RTMP_Log(RTMP_LOGWARNING, "%s, client signature does not match!", __FUNCTION__);
  3315. }
  3316. /* er, totally unused? */
  3317. (void)FP9HandShake;
  3318. return TRUE;
  3319. }
  3320. static int
  3321. SHandShake(RTMP *r)
  3322. {
  3323. int i;
  3324. char serverbuf[RTMP_SIG_SIZE + 1], *serversig = serverbuf + 1;
  3325. char clientsig[RTMP_SIG_SIZE];
  3326. uint32_t uptime;
  3327. int bMatch;
  3328. if (ReadN(r, serverbuf, 1) != 1) /* 0x03 or 0x06 */
  3329. return FALSE;
  3330. RTMP_Log(RTMP_LOGDEBUG, "%s: Type Request : %02X", __FUNCTION__, serverbuf[0]);
  3331. if (serverbuf[0] != 3)
  3332. {
  3333. RTMP_Log(RTMP_LOGERROR, "%s: Type unknown: client sent %02X",
  3334. __FUNCTION__, serverbuf[0]);
  3335. return FALSE;
  3336. }
  3337. uptime = htonl(RTMP_GetTime());
  3338. memcpy(serversig, &uptime, 4);
  3339. memset(&serversig[4], 0, 4);
  3340. #ifdef _DEBUG
  3341. for (i = 8; i < RTMP_SIG_SIZE; i++)
  3342. serversig[i] = 0xff;
  3343. #else
  3344. for (i = 8; i < RTMP_SIG_SIZE; i++)
  3345. serversig[i] = (char)(rand() % 256);
  3346. #endif
  3347. if (!WriteN(r, serverbuf, RTMP_SIG_SIZE + 1))
  3348. return FALSE;
  3349. if (ReadN(r, clientsig, RTMP_SIG_SIZE) != RTMP_SIG_SIZE)
  3350. return FALSE;
  3351. /* decode client response */
  3352. memcpy(&uptime, clientsig, 4);
  3353. uptime = ntohl(uptime);
  3354. RTMP_Log(RTMP_LOGDEBUG, "%s: Client Uptime : %d", __FUNCTION__, uptime);
  3355. RTMP_Log(RTMP_LOGDEBUG, "%s: Player Version: %d.%d.%d.%d", __FUNCTION__,
  3356. clientsig[4], clientsig[5], clientsig[6], clientsig[7]);
  3357. /* 2nd part of handshake */
  3358. if (!WriteN(r, clientsig, RTMP_SIG_SIZE))
  3359. return FALSE;
  3360. if (ReadN(r, clientsig, RTMP_SIG_SIZE) != RTMP_SIG_SIZE)
  3361. return FALSE;
  3362. bMatch = (memcmp(serversig, clientsig, RTMP_SIG_SIZE) == 0);
  3363. if (!bMatch)
  3364. {
  3365. RTMP_Log(RTMP_LOGWARNING, "%s, client signature does not match!", __FUNCTION__);
  3366. }
  3367. return TRUE;
  3368. }
  3369. #endif
  3370. int
  3371. RTMP_SendChunk(RTMP *r, RTMPChunk *chunk)
  3372. {
  3373. int wrote;
  3374. char hbuf[RTMP_MAX_HEADER_SIZE];
  3375. RTMP_Log(RTMP_LOGDEBUG2, "%s: fd=%d, size=%d", __FUNCTION__, r->m_sb.sb_socket,
  3376. chunk->c_chunkSize);
  3377. RTMP_LogHexString(RTMP_LOGDEBUG2, (uint8_t *)chunk->c_header, chunk->c_headerSize);
  3378. if (chunk->c_chunkSize)
  3379. {
  3380. char *ptr = chunk->c_chunk - chunk->c_headerSize;
  3381. RTMP_LogHexString(RTMP_LOGDEBUG2, (uint8_t *)chunk->c_chunk, chunk->c_chunkSize);
  3382. /* save header bytes we're about to overwrite */
  3383. memcpy(hbuf, ptr, chunk->c_headerSize);
  3384. memcpy(ptr, chunk->c_header, chunk->c_headerSize);
  3385. wrote = WriteN(r, ptr, chunk->c_headerSize + chunk->c_chunkSize);
  3386. memcpy(ptr, hbuf, chunk->c_headerSize);
  3387. }
  3388. else
  3389. wrote = WriteN(r, chunk->c_header, chunk->c_headerSize);
  3390. return wrote;
  3391. }
  3392. int
  3393. RTMP_SendPacket(RTMP *r, RTMPPacket *packet, int queue)
  3394. {
  3395. const RTMPPacket *prevPacket;
  3396. uint32_t last = 0;
  3397. int nSize;
  3398. int hSize, cSize;
  3399. char *header, *hptr, *hend, hbuf[RTMP_MAX_HEADER_SIZE], c;
  3400. uint32_t t;
  3401. char *buffer, *tbuf = NULL, *toff = NULL;
  3402. int nChunkSize;
  3403. int tlen;
  3404. if (packet->m_nChannel >= r->m_channelsAllocatedOut)
  3405. {
  3406. int n = packet->m_nChannel + 10;
  3407. RTMPPacket **packets = realloc(r->m_vecChannelsOut, sizeof(RTMPPacket*) * n);
  3408. if (!packets)
  3409. {
  3410. free(r->m_vecChannelsOut);
  3411. r->m_vecChannelsOut = NULL;
  3412. r->m_channelsAllocatedOut = 0;
  3413. return FALSE;
  3414. }
  3415. r->m_vecChannelsOut = packets;
  3416. memset(r->m_vecChannelsOut + r->m_channelsAllocatedOut, 0, sizeof(RTMPPacket*) * (n - r->m_channelsAllocatedOut));
  3417. r->m_channelsAllocatedOut = n;
  3418. }
  3419. prevPacket = r->m_vecChannelsOut[packet->m_nChannel];
  3420. if (prevPacket && packet->m_headerType != RTMP_PACKET_SIZE_LARGE)
  3421. {
  3422. /* compress a bit by using the prev packet's attributes */
  3423. if (prevPacket->m_nBodySize == packet->m_nBodySize
  3424. && prevPacket->m_packetType == packet->m_packetType
  3425. && packet->m_headerType == RTMP_PACKET_SIZE_MEDIUM)
  3426. packet->m_headerType = RTMP_PACKET_SIZE_SMALL;
  3427. if (prevPacket->m_nTimeStamp == packet->m_nTimeStamp
  3428. && packet->m_headerType == RTMP_PACKET_SIZE_SMALL)
  3429. packet->m_headerType = RTMP_PACKET_SIZE_MINIMUM;
  3430. last = prevPacket->m_nTimeStamp;
  3431. }
  3432. if (packet->m_headerType > 3) /* sanity */
  3433. {
  3434. RTMP_Log(RTMP_LOGERROR, "sanity failed!! trying to send header of type: 0x%02x.",
  3435. (unsigned char)packet->m_headerType);
  3436. return FALSE;
  3437. }
  3438. nSize = packetSize[packet->m_headerType];
  3439. hSize = nSize;
  3440. cSize = 0;
  3441. t = packet->m_nTimeStamp - last;
  3442. if (packet->m_body)
  3443. {
  3444. header = packet->m_body - nSize;
  3445. hend = packet->m_body;
  3446. }
  3447. else
  3448. {
  3449. header = hbuf + 6;
  3450. hend = hbuf + sizeof(hbuf);
  3451. }
  3452. if (packet->m_nChannel > 319)
  3453. cSize = 2;
  3454. else if (packet->m_nChannel > 63)
  3455. cSize = 1;
  3456. if (cSize)
  3457. {
  3458. header -= cSize;
  3459. hSize += cSize;
  3460. }
  3461. if (nSize > 1 && t >= 0xffffff)
  3462. {
  3463. header -= 4;
  3464. hSize += 4;
  3465. }
  3466. hptr = header;
  3467. c = packet->m_headerType << 6;
  3468. switch (cSize)
  3469. {
  3470. case 0:
  3471. c |= packet->m_nChannel;
  3472. break;
  3473. case 1:
  3474. break;
  3475. case 2:
  3476. c |= 1;
  3477. break;
  3478. }
  3479. *hptr++ = c;
  3480. if (cSize)
  3481. {
  3482. int tmp = packet->m_nChannel - 64;
  3483. *hptr++ = tmp & 0xff;
  3484. if (cSize == 2)
  3485. *hptr++ = tmp >> 8;
  3486. }
  3487. if (nSize > 1)
  3488. {
  3489. hptr = AMF_EncodeInt24(hptr, hend, t > 0xffffff ? 0xffffff : t);
  3490. }
  3491. if (nSize > 4)
  3492. {
  3493. hptr = AMF_EncodeInt24(hptr, hend, packet->m_nBodySize);
  3494. *hptr++ = packet->m_packetType;
  3495. }
  3496. if (nSize > 8)
  3497. hptr += EncodeInt32LE(hptr, packet->m_nInfoField2);
  3498. if (nSize > 1 && t >= 0xffffff)
  3499. hptr = AMF_EncodeInt32(hptr, hend, t);
  3500. nSize = packet->m_nBodySize;
  3501. buffer = packet->m_body;
  3502. nChunkSize = r->m_outChunkSize;
  3503. RTMP_Log(RTMP_LOGDEBUG2, "%s: fd=%d, size=%d", __FUNCTION__, r->m_sb.sb_socket,
  3504. nSize);
  3505. /* send all chunks in one HTTP request */
  3506. if (r->Link.protocol & RTMP_FEATURE_HTTP)
  3507. {
  3508. int chunks = (nSize+nChunkSize-1) / nChunkSize;
  3509. if (chunks > 1)
  3510. {
  3511. tlen = chunks * (cSize + 1) + nSize + hSize;
  3512. tbuf = malloc(tlen);
  3513. if (!tbuf)
  3514. return FALSE;
  3515. toff = tbuf;
  3516. }
  3517. }
  3518. while (nSize + hSize)
  3519. {
  3520. int wrote;
  3521. if (nSize < nChunkSize)
  3522. nChunkSize = nSize;
  3523. RTMP_LogHexString(RTMP_LOGDEBUG2, (uint8_t *)header, hSize);
  3524. RTMP_LogHexString(RTMP_LOGDEBUG2, (uint8_t *)buffer, nChunkSize);
  3525. if (tbuf)
  3526. {
  3527. memcpy(toff, header, nChunkSize + hSize);
  3528. toff += nChunkSize + hSize;
  3529. }
  3530. else
  3531. {
  3532. wrote = WriteN(r, header, nChunkSize + hSize);
  3533. if (!wrote)
  3534. return FALSE;
  3535. }
  3536. nSize -= nChunkSize;
  3537. buffer += nChunkSize;
  3538. hSize = 0;
  3539. if (nSize > 0)
  3540. {
  3541. header = buffer - 1;
  3542. hSize = 1;
  3543. if (cSize)
  3544. {
  3545. header -= cSize;
  3546. hSize += cSize;
  3547. }
  3548. *header = (0xc0 | c);
  3549. if (cSize)
  3550. {
  3551. int tmp = packet->m_nChannel - 64;
  3552. header[1] = tmp & 0xff;
  3553. if (cSize == 2)
  3554. header[2] = tmp >> 8;
  3555. }
  3556. }
  3557. }
  3558. if (tbuf)
  3559. {
  3560. int wrote = WriteN(r, tbuf, toff-tbuf);
  3561. free(tbuf);
  3562. tbuf = NULL;
  3563. if (!wrote)
  3564. return FALSE;
  3565. }
  3566. /* we invoked a remote method */
  3567. if (packet->m_packetType == RTMP_PACKET_TYPE_INVOKE)
  3568. {
  3569. AVal method;
  3570. char *ptr;
  3571. ptr = packet->m_body + 1;
  3572. AMF_DecodeString(ptr, &method);
  3573. RTMP_Log(RTMP_LOGDEBUG, "Invoking %s", method.av_val);
  3574. /* keep it in call queue till result arrives */
  3575. if (queue)
  3576. {
  3577. int txn;
  3578. ptr += 3 + method.av_len;
  3579. txn = (int)AMF_DecodeNumber(ptr);
  3580. AV_queue(&r->m_methodCalls, &r->m_numCalls, &method, txn);
  3581. }
  3582. }
  3583. if (!r->m_vecChannelsOut[packet->m_nChannel])
  3584. r->m_vecChannelsOut[packet->m_nChannel] = malloc(sizeof(RTMPPacket));
  3585. memcpy(r->m_vecChannelsOut[packet->m_nChannel], packet, sizeof(RTMPPacket));
  3586. return TRUE;
  3587. }
  3588. int
  3589. RTMP_Serve(RTMP *r)
  3590. {
  3591. return SHandShake(r);
  3592. }
  3593. void
  3594. RTMP_Close(RTMP *r)
  3595. {
  3596. int i;
  3597. if (RTMP_IsConnected(r))
  3598. {
  3599. for (int idx = 0; idx < r->Link.nStreams; idx++)
  3600. {
  3601. if (r->Link.streams[idx].id > 0)
  3602. {
  3603. i = r->Link.streams[idx].id;
  3604. r->Link.streams[idx].id = 0;
  3605. if ((r->Link.protocol & RTMP_FEATURE_WRITE))
  3606. SendFCUnpublish(r, idx);
  3607. SendDeleteStream(r, (double)i);
  3608. }
  3609. }
  3610. if (r->m_clientID.av_val)
  3611. {
  3612. HTTP_Post(r, RTMPT_CLOSE, "", 1);
  3613. free(r->m_clientID.av_val);
  3614. r->m_clientID.av_val = NULL;
  3615. r->m_clientID.av_len = 0;
  3616. }
  3617. RTMPSockBuf_Close(&r->m_sb);
  3618. }
  3619. for (int idx = 0; idx < r->Link.nStreams; idx++)
  3620. r->Link.streams[idx].id = -1;
  3621. r->m_stream_id = -1;
  3622. r->m_sb.sb_socket = -1;
  3623. r->m_nBWCheckCounter = 0;
  3624. r->m_nBytesIn = 0;
  3625. r->m_nBytesInSent = 0;
  3626. if (r->m_read.flags & RTMP_READ_HEADER)
  3627. {
  3628. free(r->m_read.buf);
  3629. r->m_read.buf = NULL;
  3630. }
  3631. r->m_read.dataType = 0;
  3632. r->m_read.flags = 0;
  3633. r->m_read.status = 0;
  3634. r->m_read.nResumeTS = 0;
  3635. r->m_read.nIgnoredFrameCounter = 0;
  3636. r->m_read.nIgnoredFlvFrameCounter = 0;
  3637. r->m_write.m_nBytesRead = 0;
  3638. RTMPPacket_Free(&r->m_write);
  3639. for (i = 0; i < r->m_channelsAllocatedIn; i++)
  3640. {
  3641. if (r->m_vecChannelsIn[i])
  3642. {
  3643. RTMPPacket_Free(r->m_vecChannelsIn[i]);
  3644. free(r->m_vecChannelsIn[i]);
  3645. r->m_vecChannelsIn[i] = NULL;
  3646. }
  3647. }
  3648. free(r->m_vecChannelsIn);
  3649. r->m_vecChannelsIn = NULL;
  3650. free(r->m_channelTimestamp);
  3651. r->m_channelTimestamp = NULL;
  3652. r->m_channelsAllocatedIn = 0;
  3653. for (i = 0; i < r->m_channelsAllocatedOut; i++)
  3654. {
  3655. if (r->m_vecChannelsOut[i])
  3656. {
  3657. free(r->m_vecChannelsOut[i]);
  3658. r->m_vecChannelsOut[i] = NULL;
  3659. }
  3660. }
  3661. free(r->m_vecChannelsOut);
  3662. r->m_vecChannelsOut = NULL;
  3663. r->m_channelsAllocatedOut = 0;
  3664. AV_clear(r->m_methodCalls, r->m_numCalls);
  3665. r->m_methodCalls = NULL;
  3666. r->m_numCalls = 0;
  3667. r->m_numInvokes = 0;
  3668. r->m_bPlaying = FALSE;
  3669. r->Link.playingStreams = 0;
  3670. r->m_sb.sb_size = 0;
  3671. r->m_msgCounter = 0;
  3672. r->m_resplen = 0;
  3673. r->m_unackd = 0;
  3674. if (r->Link.lFlags & RTMP_LF_FTCU)
  3675. {
  3676. free(r->Link.tcUrl.av_val);
  3677. r->Link.tcUrl.av_val = NULL;
  3678. r->Link.lFlags ^= RTMP_LF_FTCU;
  3679. }
  3680. #if defined(CRYPTO) || defined(USE_ONLY_MD5)
  3681. if (!(r->Link.protocol & RTMP_FEATURE_WRITE) || (r->Link.pFlags & RTMP_PUB_CLEAN))
  3682. {
  3683. free(r->Link.playpath0.av_val);
  3684. r->Link.playpath0.av_val = NULL;
  3685. }
  3686. if ((r->Link.protocol & RTMP_FEATURE_WRITE) &&
  3687. (r->Link.pFlags & RTMP_PUB_CLEAN) &&
  3688. (r->Link.pFlags & RTMP_PUB_ALLOC))
  3689. {
  3690. free(r->Link.app.av_val);
  3691. r->Link.app.av_val = NULL;
  3692. free(r->Link.tcUrl.av_val);
  3693. r->Link.tcUrl.av_val = NULL;
  3694. }
  3695. #elif defined(CRYPTO)
  3696. if (r->Link.dh)
  3697. {
  3698. MDH_free(r->Link.dh);
  3699. r->Link.dh = NULL;
  3700. }
  3701. if (r->Link.rc4keyIn)
  3702. {
  3703. RC4_free(r->Link.rc4keyIn);
  3704. r->Link.rc4keyIn = NULL;
  3705. }
  3706. if (r->Link.rc4keyOut)
  3707. {
  3708. RC4_free(r->Link.rc4keyOut);
  3709. r->Link.rc4keyOut = NULL;
  3710. }
  3711. #else
  3712. for (int idx = 0; idx < r->Link.nStreams; idx++)
  3713. {
  3714. free(r->Link.streams[idx].playpath.av_val);
  3715. r->Link.streams[idx].playpath.av_val = NULL;
  3716. }
  3717. r->Link.nStreams = 0;
  3718. #endif
  3719. }
  3720. int
  3721. RTMPSockBuf_Fill(RTMPSockBuf *sb)
  3722. {
  3723. int nBytes;
  3724. if (!sb->sb_size)
  3725. sb->sb_start = sb->sb_buf;
  3726. while (1)
  3727. {
  3728. nBytes = (int)sizeof(sb->sb_buf) - 1 - sb->sb_size - (sb->sb_start - sb->sb_buf);
  3729. #if defined(CRYPTO) && !defined(NO_SSL)
  3730. if (sb->sb_ssl)
  3731. {
  3732. nBytes = TLS_read(sb->sb_ssl, sb->sb_start + sb->sb_size, nBytes);
  3733. }
  3734. else
  3735. #endif
  3736. {
  3737. nBytes = recv(sb->sb_socket, sb->sb_start + sb->sb_size, nBytes, 0);
  3738. }
  3739. if (nBytes > 0)
  3740. {
  3741. sb->sb_size += nBytes;
  3742. }
  3743. else if (nBytes == 0)
  3744. {
  3745. RTMP_Log(RTMP_LOGERROR, "%s, remote host closed connection",
  3746. __FUNCTION__);
  3747. }
  3748. else
  3749. {
  3750. int level;
  3751. int sockerr = GetSockError();
  3752. if (sockerr == EWOULDBLOCK || sockerr == EAGAIN)
  3753. level = RTMP_LOGDEBUG;
  3754. else
  3755. level = RTMP_LOGERROR;
  3756. RTMP_Log(level, "%s, recv returned %d. GetSockError(): %d (%s)",
  3757. __FUNCTION__, nBytes, sockerr, socketerror(sockerr));
  3758. if (sockerr == EINTR && !RTMP_ctrlC)
  3759. continue;
  3760. if (sockerr == EWOULDBLOCK || sockerr == EAGAIN)
  3761. {
  3762. sb->sb_timedout = TRUE;
  3763. nBytes = 0;
  3764. }
  3765. }
  3766. break;
  3767. }
  3768. return nBytes;
  3769. }
  3770. int
  3771. RTMPSockBuf_Send(RTMPSockBuf *sb, const char *buf, int len)
  3772. {
  3773. int rc;
  3774. #if defined(RTMP_NETSTACK_DUMP)
  3775. fwrite(buf, 1, len, netstackdump);
  3776. #endif
  3777. #if defined(CRYPTO) && !defined(NO_SSL)
  3778. if (sb->sb_ssl)
  3779. {
  3780. rc = TLS_write(sb->sb_ssl, buf, len);
  3781. }
  3782. else
  3783. #endif
  3784. {
  3785. rc = send(sb->sb_socket, buf, len, 0);
  3786. }
  3787. return rc;
  3788. }
  3789. int
  3790. RTMPSockBuf_Close(RTMPSockBuf *sb)
  3791. {
  3792. #if defined(CRYPTO) && !defined(NO_SSL)
  3793. if (sb->sb_ssl)
  3794. {
  3795. TLS_shutdown(sb->sb_ssl);
  3796. TLS_close(sb->sb_ssl);
  3797. sb->sb_ssl = NULL;
  3798. }
  3799. #endif
  3800. if (sb->sb_socket != -1)
  3801. return closesocket(sb->sb_socket);
  3802. return 0;
  3803. }
  3804. #define HEX2BIN(a) (((a)&0x40)?((a)&0xf)+9:((a)&0xf))
  3805. static void
  3806. DecodeTEA(AVal *key, AVal *text)
  3807. {
  3808. uint32_t *v, k[4] = { 0 }, u;
  3809. uint32_t z, y, sum = 0, e, DELTA = 0x9e3779b9;
  3810. int32_t p, q;
  3811. int i, n;
  3812. unsigned char *ptr, *out;
  3813. /* prep key: pack 1st 16 chars into 4 LittleEndian ints */
  3814. ptr = (unsigned char *)key->av_val;
  3815. u = 0;
  3816. n = 0;
  3817. v = k;
  3818. p = key->av_len > 16 ? 16 : key->av_len;
  3819. for (i = 0; i < p; i++)
  3820. {
  3821. u |= ptr[i] << (n * 8);
  3822. if (n == 3)
  3823. {
  3824. *v++ = u;
  3825. u = 0;
  3826. n = 0;
  3827. }
  3828. else
  3829. {
  3830. n++;
  3831. }
  3832. }
  3833. /* any trailing chars */
  3834. if (u)
  3835. *v = u;
  3836. /* prep text: hex2bin, multiples of 4 */
  3837. n = (text->av_len + 7) / 8;
  3838. out = malloc(n * 8);
  3839. ptr = (unsigned char *)text->av_val;
  3840. v = (uint32_t *) out;
  3841. for (i = 0; i < n; i++)
  3842. {
  3843. u = (HEX2BIN(ptr[0]) << 4) + HEX2BIN(ptr[1]);
  3844. u |= ((HEX2BIN(ptr[2]) << 4) + HEX2BIN(ptr[3])) << 8;
  3845. u |= ((HEX2BIN(ptr[4]) << 4) + HEX2BIN(ptr[5])) << 16;
  3846. u |= ((HEX2BIN(ptr[6]) << 4) + HEX2BIN(ptr[7])) << 24;
  3847. *v++ = u;
  3848. ptr += 8;
  3849. }
  3850. v = (uint32_t *) out;
  3851. /* http://www.movable-type.co.uk/scripts/tea-block.html */
  3852. #define MX (((z>>5)^(y<<2)) + ((y>>3)^(z<<4))) ^ ((sum^y) + (k[(p&3)^e]^z));
  3853. z = v[n - 1];
  3854. y = v[0];
  3855. q = 6 + 52 / n;
  3856. sum = q * DELTA;
  3857. while (sum != 0)
  3858. {
  3859. e = sum >> 2 & 3;
  3860. for (p = n - 1; p > 0; p--)
  3861. z = v[p - 1], y = v[p] -= MX;
  3862. z = v[n - 1];
  3863. y = v[0] -= MX;
  3864. sum -= DELTA;
  3865. }
  3866. text->av_len /= 2;
  3867. memcpy(text->av_val, out, text->av_len);
  3868. free(out);
  3869. }
  3870. static int
  3871. HTTP_Post(RTMP *r, RTMPTCmd cmd, const char *buf, int len)
  3872. {
  3873. char hbuf[512];
  3874. int hlen = snprintf(hbuf, sizeof(hbuf), "POST /%s%s/%d HTTP/1.1\r\n"
  3875. "Host: %.*s:%d\r\n"
  3876. "Accept: */*\r\n"
  3877. "User-Agent: Shockwave Flash\r\n"
  3878. "Connection: Keep-Alive\r\n"
  3879. "Cache-Control: no-cache\r\n"
  3880. "Content-type: application/x-fcs\r\n"
  3881. "Content-length: %d\r\n\r\n", RTMPT_cmds[cmd],
  3882. r->m_clientID.av_val ? r->m_clientID.av_val : "",
  3883. r->m_msgCounter, r->Link.hostname.av_len, r->Link.hostname.av_val,
  3884. r->Link.port, len);
  3885. RTMPSockBuf_Send(&r->m_sb, hbuf, hlen);
  3886. hlen = RTMPSockBuf_Send(&r->m_sb, buf, len);
  3887. r->m_msgCounter++;
  3888. r->m_unackd++;
  3889. return hlen;
  3890. }
  3891. static int
  3892. HTTP_read(RTMP *r, int fill)
  3893. {
  3894. char *ptr;
  3895. int hlen;
  3896. restart:
  3897. if (fill)
  3898. RTMPSockBuf_Fill(&r->m_sb);
  3899. if (r->m_sb.sb_size < 13)
  3900. {
  3901. if (fill)
  3902. goto restart;
  3903. return -2;
  3904. }
  3905. if (strncmp(r->m_sb.sb_start, "HTTP/1.1 200 ", 13))
  3906. return -1;
  3907. r->m_sb.sb_start[r->m_sb.sb_size] = '\0';
  3908. if (!strstr(r->m_sb.sb_start, "\r\n\r\n"))
  3909. {
  3910. if (fill)
  3911. goto restart;
  3912. return -2;
  3913. }
  3914. ptr = r->m_sb.sb_start + sizeof("HTTP/1.1 200");
  3915. while ((ptr = strstr(ptr, "Content-")))
  3916. {
  3917. if (!strncasecmp(ptr+8, "length:", 7)) break;
  3918. ptr += 8;
  3919. }
  3920. if (!ptr)
  3921. return -1;
  3922. hlen = atoi(ptr+16);
  3923. ptr = strstr(ptr+16, "\r\n\r\n");
  3924. if (!ptr)
  3925. return -1;
  3926. ptr += 4;
  3927. if (ptr + (r->m_clientID.av_val ? 1 : hlen) > r->m_sb.sb_start + r->m_sb.sb_size)
  3928. {
  3929. if (fill)
  3930. goto restart;
  3931. return -2;
  3932. }
  3933. r->m_sb.sb_size -= ptr - r->m_sb.sb_start;
  3934. r->m_sb.sb_start = ptr;
  3935. r->m_unackd--;
  3936. if (!r->m_clientID.av_val)
  3937. {
  3938. r->m_clientID.av_len = hlen;
  3939. r->m_clientID.av_val = malloc(hlen+1);
  3940. if (!r->m_clientID.av_val)
  3941. return -1;
  3942. r->m_clientID.av_val[0] = '/';
  3943. memcpy(r->m_clientID.av_val+1, ptr, hlen-1);
  3944. r->m_clientID.av_val[hlen] = 0;
  3945. r->m_sb.sb_size = 0;
  3946. }
  3947. else
  3948. {
  3949. r->m_polling = *ptr++;
  3950. r->m_resplen = hlen - 1;
  3951. r->m_sb.sb_start++;
  3952. r->m_sb.sb_size--;
  3953. }
  3954. return 0;
  3955. }
  3956. #define MAX_IGNORED_FRAMES 50
  3957. /* Read from the stream until we get a media packet.
  3958. * Returns -3 if Play.Close/Stop, -2 if fatal error, -1 if no more media
  3959. * packets, 0 if ignorable error, >0 if there is a media packet
  3960. */
  3961. static int
  3962. Read_1_Packet(RTMP *r, char *buf, unsigned int buflen)
  3963. {
  3964. uint32_t prevTagSize = 0;
  3965. int rtnGetNextMediaPacket = 0, ret = RTMP_READ_EOF;
  3966. RTMPPacket packet = { 0 };
  3967. int recopy = FALSE;
  3968. unsigned int size;
  3969. char *ptr, *pend;
  3970. uint32_t nTimeStamp = 0;
  3971. unsigned int len;
  3972. rtnGetNextMediaPacket = RTMP_GetNextMediaPacket(r, &packet);
  3973. while (rtnGetNextMediaPacket)
  3974. {
  3975. char *packetBody = packet.m_body;
  3976. unsigned int nPacketLen = packet.m_nBodySize;
  3977. /* Return RTMP_READ_COMPLETE if this was completed nicely with
  3978. * invoke message Play.Stop or Play.Complete
  3979. */
  3980. if (rtnGetNextMediaPacket == 2)
  3981. {
  3982. RTMP_Log(RTMP_LOGDEBUG,
  3983. "Got Play.Complete or Play.Stop from server. "
  3984. "Assuming stream is complete");
  3985. ret = RTMP_READ_COMPLETE;
  3986. break;
  3987. }
  3988. r->m_read.dataType |= (((packet.m_packetType == RTMP_PACKET_TYPE_AUDIO) << 2) |
  3989. (packet.m_packetType == RTMP_PACKET_TYPE_VIDEO));
  3990. if (packet.m_packetType == RTMP_PACKET_TYPE_VIDEO && nPacketLen <= 5)
  3991. {
  3992. RTMP_Log(RTMP_LOGDEBUG, "ignoring too small video packet: size: %d",
  3993. nPacketLen);
  3994. ret = RTMP_READ_IGNORE;
  3995. break;
  3996. }
  3997. if (packet.m_packetType == RTMP_PACKET_TYPE_AUDIO && nPacketLen <= 1)
  3998. {
  3999. RTMP_Log(RTMP_LOGDEBUG, "ignoring too small audio packet: size: %d",
  4000. nPacketLen);
  4001. ret = RTMP_READ_IGNORE;
  4002. break;
  4003. }
  4004. if (r->m_read.flags & RTMP_READ_SEEKING)
  4005. {
  4006. ret = RTMP_READ_IGNORE;
  4007. break;
  4008. }
  4009. #ifdef _DEBUG
  4010. RTMP_Log(RTMP_LOGDEBUG, "type: %02X, size: %d, TS: %d ms, abs TS: %d",
  4011. packet.m_packetType, nPacketLen, packet.m_nTimeStamp,
  4012. packet.m_hasAbsTimestamp);
  4013. if (packet.m_packetType == RTMP_PACKET_TYPE_VIDEO)
  4014. RTMP_Log(RTMP_LOGDEBUG, "frametype: %02X", (*packetBody & 0xf0));
  4015. #endif
  4016. if (r->m_read.flags & RTMP_READ_RESUME)
  4017. {
  4018. /* check the header if we get one */
  4019. if (packet.m_nTimeStamp == 0)
  4020. {
  4021. if (r->m_read.nMetaHeaderSize > 0
  4022. && packet.m_packetType == RTMP_PACKET_TYPE_INFO)
  4023. {
  4024. AMFObject metaObj;
  4025. int nRes =
  4026. AMF_Decode(&metaObj, packetBody, nPacketLen, FALSE);
  4027. if (nRes >= 0)
  4028. {
  4029. AVal metastring;
  4030. AMFProp_GetString(AMF_GetProp(&metaObj, NULL, 0),
  4031. &metastring);
  4032. if (AVMATCH(&metastring, &av_onMetaData))
  4033. {
  4034. /* compare */
  4035. if ((r->m_read.nMetaHeaderSize != nPacketLen) ||
  4036. (memcmp
  4037. (r->m_read.metaHeader, packetBody,
  4038. r->m_read.nMetaHeaderSize) != 0))
  4039. {
  4040. ret = RTMP_READ_ERROR;
  4041. }
  4042. }
  4043. AMF_Reset(&metaObj);
  4044. if (ret == RTMP_READ_ERROR)
  4045. break;
  4046. }
  4047. }
  4048. /* check first keyframe to make sure we got the right position
  4049. * in the stream! (the first non ignored frame)
  4050. */
  4051. if (r->m_read.nInitialFrameSize > 0)
  4052. {
  4053. /* video or audio data */
  4054. if (packet.m_packetType == r->m_read.initialFrameType
  4055. && r->m_read.nInitialFrameSize == nPacketLen)
  4056. {
  4057. /* we don't compare the sizes since the packet can
  4058. * contain several FLV packets, just make sure the
  4059. * first frame is our keyframe (which we are going
  4060. * to rewrite)
  4061. */
  4062. if (memcmp
  4063. (r->m_read.initialFrame, packetBody,
  4064. r->m_read.nInitialFrameSize) == 0)
  4065. {
  4066. RTMP_Log(RTMP_LOGDEBUG, "Checked keyframe successfully!");
  4067. r->m_read.flags |= RTMP_READ_GOTKF;
  4068. /* ignore it! (what about audio data after it? it is
  4069. * handled by ignoring all 0ms frames, see below)
  4070. */
  4071. ret = RTMP_READ_IGNORE;
  4072. break;
  4073. }
  4074. }
  4075. /* hande FLV streams, even though the server resends the
  4076. * keyframe as an extra video packet it is also included
  4077. * in the first FLV stream chunk and we have to compare
  4078. * it and filter it out !!
  4079. */
  4080. if (packet.m_packetType == RTMP_PACKET_TYPE_FLASH_VIDEO)
  4081. {
  4082. /* basically we have to find the keyframe with the
  4083. * correct TS being nResumeTS
  4084. */
  4085. unsigned int pos = 0;
  4086. uint32_t ts = 0;
  4087. while (pos + 11 < nPacketLen)
  4088. {
  4089. /* size without header (11) and prevTagSize (4) */
  4090. uint32_t dataSize =
  4091. AMF_DecodeInt24(packetBody + pos + 1);
  4092. ts = AMF_DecodeInt24(packetBody + pos + 4);
  4093. ts |= (packetBody[pos + 7] << 24);
  4094. #ifdef _DEBUG
  4095. RTMP_Log(RTMP_LOGDEBUG,
  4096. "keyframe search: FLV Packet: type %02X, dataSize: %d, timeStamp: %d ms",
  4097. packetBody[pos], dataSize, ts);
  4098. #endif
  4099. /* ok, is it a keyframe?:
  4100. * well doesn't work for audio!
  4101. */
  4102. if (packetBody[pos /*6928, test 0 */ ] ==
  4103. r->m_read.initialFrameType
  4104. /* && (packetBody[11]&0xf0) == 0x10 */ )
  4105. {
  4106. if (ts == r->m_read.nResumeTS)
  4107. {
  4108. RTMP_Log(RTMP_LOGDEBUG,
  4109. "Found keyframe with resume-keyframe timestamp!");
  4110. if (r->m_read.nInitialFrameSize != dataSize
  4111. || memcmp(r->m_read.initialFrame,
  4112. packetBody + pos + 11,
  4113. r->m_read.
  4114. nInitialFrameSize) != 0)
  4115. {
  4116. RTMP_Log(RTMP_LOGERROR,
  4117. "FLV Stream: Keyframe doesn't match!");
  4118. ret = RTMP_READ_ERROR;
  4119. break;
  4120. }
  4121. r->m_read.flags |= RTMP_READ_GOTFLVK;
  4122. /* skip this packet?
  4123. * check whether skippable:
  4124. */
  4125. if (pos + 11 + dataSize + 4 > nPacketLen)
  4126. {
  4127. RTMP_Log(RTMP_LOGWARNING,
  4128. "Non skipable packet since it doesn't end with chunk, stream corrupt!");
  4129. ret = RTMP_READ_ERROR;
  4130. break;
  4131. }
  4132. packetBody += (pos + 11 + dataSize + 4);
  4133. nPacketLen -= (pos + 11 + dataSize + 4);
  4134. goto stopKeyframeSearch;
  4135. }
  4136. else if (r->m_read.nResumeTS < ts)
  4137. {
  4138. /* the timestamp ts will only increase with
  4139. * further packets, wait for seek
  4140. */
  4141. goto stopKeyframeSearch;
  4142. }
  4143. }
  4144. pos += (11 + dataSize + 4);
  4145. }
  4146. if (ts < r->m_read.nResumeTS)
  4147. {
  4148. RTMP_Log(RTMP_LOGERROR,
  4149. "First packet does not contain keyframe, all "
  4150. "timestamps are smaller than the keyframe "
  4151. "timestamp; probably the resume seek failed?");
  4152. }
  4153. stopKeyframeSearch:
  4154. ;
  4155. if (!(r->m_read.flags & RTMP_READ_GOTFLVK))
  4156. {
  4157. RTMP_Log(RTMP_LOGERROR,
  4158. "Couldn't find the seeked keyframe in this chunk!");
  4159. ret = RTMP_READ_IGNORE;
  4160. break;
  4161. }
  4162. }
  4163. }
  4164. }
  4165. if (packet.m_nTimeStamp > 0
  4166. && (r->m_read.flags & (RTMP_READ_GOTKF|RTMP_READ_GOTFLVK)))
  4167. {
  4168. /* another problem is that the server can actually change from
  4169. * 09/08 video/audio packets to an FLV stream or vice versa and
  4170. * our keyframe check will prevent us from going along with the
  4171. * new stream if we resumed.
  4172. *
  4173. * in this case set the 'found keyframe' variables to true.
  4174. * We assume that if we found one keyframe somewhere and were
  4175. * already beyond TS > 0 we have written data to the output
  4176. * which means we can accept all forthcoming data including the
  4177. * change between 08/09 <-> FLV packets
  4178. */
  4179. r->m_read.flags |= (RTMP_READ_GOTKF|RTMP_READ_GOTFLVK);
  4180. }
  4181. /* skip till we find our keyframe
  4182. * (seeking might put us somewhere before it)
  4183. */
  4184. if (!(r->m_read.flags & RTMP_READ_GOTKF) &&
  4185. packet.m_packetType != RTMP_PACKET_TYPE_FLASH_VIDEO)
  4186. {
  4187. RTMP_Log(RTMP_LOGWARNING,
  4188. "Stream does not start with requested frame, ignoring data... ");
  4189. r->m_read.nIgnoredFrameCounter++;
  4190. if (r->m_read.nIgnoredFrameCounter > MAX_IGNORED_FRAMES)
  4191. ret = RTMP_READ_ERROR; /* fatal error, couldn't continue stream */
  4192. else
  4193. ret = RTMP_READ_IGNORE;
  4194. break;
  4195. }
  4196. /* ok, do the same for FLV streams */
  4197. if (!(r->m_read.flags & RTMP_READ_GOTFLVK) &&
  4198. packet.m_packetType == RTMP_PACKET_TYPE_FLASH_VIDEO)
  4199. {
  4200. RTMP_Log(RTMP_LOGWARNING,
  4201. "Stream does not start with requested FLV frame, ignoring data... ");
  4202. r->m_read.nIgnoredFlvFrameCounter++;
  4203. if (r->m_read.nIgnoredFlvFrameCounter > MAX_IGNORED_FRAMES)
  4204. ret = RTMP_READ_ERROR;
  4205. else
  4206. ret = RTMP_READ_IGNORE;
  4207. break;
  4208. }
  4209. /* we have to ignore the 0ms frames since these are the first
  4210. * keyframes; we've got these so don't mess around with multiple
  4211. * copies sent by the server to us! (if the keyframe is found at a
  4212. * later position there is only one copy and it will be ignored by
  4213. * the preceding if clause)
  4214. */
  4215. if (!(r->m_read.flags & RTMP_READ_NO_IGNORE) &&
  4216. packet.m_packetType != RTMP_PACKET_TYPE_FLASH_VIDEO)
  4217. {
  4218. /* exclude type RTMP_PACKET_TYPE_FLASH_VIDEO since it can
  4219. * contain several FLV packets
  4220. */
  4221. if (packet.m_nTimeStamp == 0)
  4222. {
  4223. ret = RTMP_READ_IGNORE;
  4224. break;
  4225. }
  4226. else
  4227. {
  4228. /* stop ignoring packets */
  4229. r->m_read.flags |= RTMP_READ_NO_IGNORE;
  4230. }
  4231. }
  4232. }
  4233. /* calculate packet size and allocate slop buffer if necessary */
  4234. size = nPacketLen +
  4235. ((packet.m_packetType == RTMP_PACKET_TYPE_AUDIO
  4236. || packet.m_packetType == RTMP_PACKET_TYPE_VIDEO
  4237. || packet.m_packetType == RTMP_PACKET_TYPE_INFO) ? 11 : 0) +
  4238. (packet.m_packetType != RTMP_PACKET_TYPE_FLASH_VIDEO ? 4 : 0);
  4239. if (size + 4 > buflen)
  4240. {
  4241. /* the extra 4 is for the case of an FLV stream without a last
  4242. * prevTagSize (we need extra 4 bytes to append it) */
  4243. r->m_read.buf = malloc(size + 4);
  4244. if (r->m_read.buf == 0)
  4245. {
  4246. RTMP_Log(RTMP_LOGERROR, "Couldn't allocate memory!");
  4247. ret = RTMP_READ_ERROR; /* fatal error */
  4248. break;
  4249. }
  4250. recopy = TRUE;
  4251. ptr = r->m_read.buf;
  4252. }
  4253. else
  4254. {
  4255. ptr = buf;
  4256. }
  4257. pend = ptr + size + 4;
  4258. /* use to return timestamp of last processed packet */
  4259. /* audio (0x08), video (0x09) or metadata (0x12) packets :
  4260. * construct 11 byte header then add rtmp packet's data */
  4261. if (packet.m_packetType == RTMP_PACKET_TYPE_AUDIO
  4262. || packet.m_packetType == RTMP_PACKET_TYPE_VIDEO
  4263. || packet.m_packetType == RTMP_PACKET_TYPE_INFO)
  4264. {
  4265. nTimeStamp = r->m_read.nResumeTS + packet.m_nTimeStamp;
  4266. prevTagSize = 11 + nPacketLen;
  4267. *ptr = packet.m_packetType;
  4268. ptr++;
  4269. ptr = AMF_EncodeInt24(ptr, pend, nPacketLen);
  4270. #if 0
  4271. if(packet.m_packetType == RTMP_PACKET_TYPE_VIDEO)
  4272. {
  4273. /* H264 fix: */
  4274. if((packetBody[0] & 0x0f) == 7) /* CodecId = H264 */
  4275. {
  4276. uint8_t packetType = *(packetBody+1);
  4277. uint32_t ts = AMF_DecodeInt24(packetBody+2); /* composition time */
  4278. int32_t cts = (ts+0xff800000)^0xff800000;
  4279. RTMP_Log(RTMP_LOGDEBUG, "cts : %d\n", cts);
  4280. nTimeStamp -= cts;
  4281. /* get rid of the composition time */
  4282. CRTMP::EncodeInt24(packetBody+2, 0);
  4283. }
  4284. RTMP_Log(RTMP_LOGDEBUG, "VIDEO: nTimeStamp: 0x%08X (%d)\n", nTimeStamp, nTimeStamp);
  4285. }
  4286. #endif
  4287. ptr = AMF_EncodeInt24(ptr, pend, nTimeStamp);
  4288. *ptr = (char)((nTimeStamp & 0xFF000000) >> 24);
  4289. ptr++;
  4290. /* stream id */
  4291. ptr = AMF_EncodeInt24(ptr, pend, 0);
  4292. }
  4293. memcpy(ptr, packetBody, nPacketLen);
  4294. len = nPacketLen;
  4295. /* correct tagSize and obtain timestamp if we have an FLV stream */
  4296. if (packet.m_packetType == RTMP_PACKET_TYPE_FLASH_VIDEO)
  4297. {
  4298. unsigned int pos = 0;
  4299. int delta;
  4300. /* grab first timestamp and see if it needs fixing */
  4301. nTimeStamp = AMF_DecodeInt24(packetBody + 4);
  4302. nTimeStamp |= (packetBody[7] << 24);
  4303. delta = packet.m_nTimeStamp - nTimeStamp + r->m_read.nResumeTS;
  4304. while (pos + 11 < nPacketLen)
  4305. {
  4306. /* size without header (11) and without prevTagSize (4) */
  4307. uint32_t dataSize = AMF_DecodeInt24(packetBody + pos + 1);
  4308. nTimeStamp = AMF_DecodeInt24(packetBody + pos + 4);
  4309. nTimeStamp |= (packetBody[pos + 7] << 24);
  4310. if (delta)
  4311. {
  4312. nTimeStamp += delta;
  4313. AMF_EncodeInt24(ptr+pos+4, pend, nTimeStamp);
  4314. ptr[pos+7] = nTimeStamp>>24;
  4315. }
  4316. /* set data type */
  4317. r->m_read.dataType |= (((*(packetBody + pos) == 0x08) << 2) |
  4318. (*(packetBody + pos) == 0x09));
  4319. if (pos + 11 + dataSize + 4 > nPacketLen)
  4320. {
  4321. if (pos + 11 + dataSize > nPacketLen)
  4322. {
  4323. RTMP_Log(RTMP_LOGERROR,
  4324. "Wrong data size (%u), stream corrupted, aborting!",
  4325. dataSize);
  4326. ret = RTMP_READ_ERROR;
  4327. break;
  4328. }
  4329. RTMP_Log(RTMP_LOGWARNING, "No tagSize found, appending!");
  4330. /* we have to append a last tagSize! */
  4331. prevTagSize = dataSize + 11;
  4332. AMF_EncodeInt32(ptr + pos + 11 + dataSize, pend,
  4333. prevTagSize);
  4334. size += 4;
  4335. len += 4;
  4336. }
  4337. else
  4338. {
  4339. prevTagSize =
  4340. AMF_DecodeInt32(packetBody + pos + 11 + dataSize);
  4341. #ifdef _DEBUG
  4342. RTMP_Log(RTMP_LOGDEBUG,
  4343. "FLV Packet: type %02X, dataSize: %u, tagSize: %u, timeStamp: %u ms",
  4344. (unsigned char)packetBody[pos], dataSize, prevTagSize,
  4345. nTimeStamp);
  4346. #endif
  4347. if (prevTagSize != (dataSize + 11))
  4348. {
  4349. #ifdef _DEBUG
  4350. RTMP_Log(RTMP_LOGWARNING,
  4351. "Tag and data size are not consitent, writing tag size according to dataSize+11: %d",
  4352. dataSize + 11);
  4353. #endif
  4354. prevTagSize = dataSize + 11;
  4355. AMF_EncodeInt32(ptr + pos + 11 + dataSize, pend,
  4356. prevTagSize);
  4357. }
  4358. }
  4359. pos += prevTagSize + 4; /*(11+dataSize+4); */
  4360. }
  4361. }
  4362. ptr += len;
  4363. if (packet.m_packetType != RTMP_PACKET_TYPE_FLASH_VIDEO)
  4364. {
  4365. /* FLV tag packets contain their own prevTagSize */
  4366. AMF_EncodeInt32(ptr, pend, prevTagSize);
  4367. }
  4368. /* In non-live this nTimeStamp can contain an absolute TS.
  4369. * Update ext timestamp with this absolute offset in non-live mode
  4370. * otherwise report the relative one
  4371. */
  4372. /* RTMP_Log(RTMP_LOGDEBUG, "type: %02X, size: %d, pktTS: %dms, TS: %dms, bLiveStream: %d", packet.m_packetType, nPacketLen, packet.m_nTimeStamp, nTimeStamp, r->Link.lFlags & RTMP_LF_LIVE); */
  4373. r->m_read.timestamp = (r->Link.lFlags & RTMP_LF_LIVE) ? packet.m_nTimeStamp : nTimeStamp;
  4374. ret = size;
  4375. break;
  4376. }
  4377. if (rtnGetNextMediaPacket)
  4378. RTMPPacket_Free(&packet);
  4379. if (recopy)
  4380. {
  4381. len = ret > (int)(buflen) ? buflen : (unsigned int)(ret);
  4382. memcpy(buf, r->m_read.buf, len);
  4383. r->m_read.bufpos = r->m_read.buf + len;
  4384. r->m_read.buflen = ret - len;
  4385. }
  4386. return ret;
  4387. }
  4388. static const char flvHeader[] = { 'F', 'L', 'V', 0x01,
  4389. 0x00, /* 0x04 == audio, 0x01 == video */
  4390. 0x00, 0x00, 0x00, 0x09,
  4391. 0x00, 0x00, 0x00, 0x00
  4392. };
  4393. #define HEADERBUF (128*1024)
  4394. int
  4395. RTMP_Read(RTMP *r, char *buf, int size)
  4396. {
  4397. int nRead = 0, total = 0;
  4398. /* can't continue */
  4399. fail:
  4400. switch (r->m_read.status)
  4401. {
  4402. case RTMP_READ_EOF:
  4403. case RTMP_READ_COMPLETE:
  4404. return 0;
  4405. case RTMP_READ_ERROR: /* corrupted stream, resume failed */
  4406. SetSockError(EINVAL);
  4407. return -1;
  4408. default:
  4409. break;
  4410. }
  4411. /* first time thru */
  4412. if (!(r->m_read.flags & RTMP_READ_HEADER))
  4413. {
  4414. if (!(r->m_read.flags & RTMP_READ_RESUME))
  4415. {
  4416. char *mybuf = malloc(HEADERBUF), *end = mybuf + HEADERBUF;
  4417. int cnt = 0;
  4418. r->m_read.buf = mybuf;
  4419. r->m_read.buflen = HEADERBUF;
  4420. memcpy(mybuf, flvHeader, sizeof(flvHeader));
  4421. r->m_read.buf += sizeof(flvHeader);
  4422. r->m_read.buflen -= sizeof(flvHeader);
  4423. cnt += sizeof(flvHeader);
  4424. while (r->m_read.timestamp == 0)
  4425. {
  4426. nRead = Read_1_Packet(r, r->m_read.buf, r->m_read.buflen);
  4427. if (nRead < 0)
  4428. {
  4429. free(mybuf);
  4430. r->m_read.buf = NULL;
  4431. r->m_read.buflen = 0;
  4432. r->m_read.status = nRead;
  4433. goto fail;
  4434. }
  4435. /* buffer overflow, fix buffer and give up */
  4436. if (r->m_read.buf < mybuf || r->m_read.buf > end)
  4437. {
  4438. mybuf = realloc(mybuf, cnt + nRead);
  4439. memcpy(mybuf+cnt, r->m_read.buf, nRead);
  4440. free(r->m_read.buf);
  4441. r->m_read.buf = mybuf+cnt+nRead;
  4442. break;
  4443. }
  4444. cnt += nRead;
  4445. r->m_read.buf += nRead;
  4446. r->m_read.buflen -= nRead;
  4447. if (r->m_read.dataType == 5)
  4448. break;
  4449. }
  4450. mybuf[4] = r->m_read.dataType;
  4451. r->m_read.buflen = r->m_read.buf - mybuf;
  4452. r->m_read.buf = mybuf;
  4453. r->m_read.bufpos = mybuf;
  4454. }
  4455. r->m_read.flags |= RTMP_READ_HEADER;
  4456. }
  4457. if ((r->m_read.flags & RTMP_READ_SEEKING) && r->m_read.buf)
  4458. {
  4459. /* drop whatever's here */
  4460. free(r->m_read.buf);
  4461. r->m_read.buf = NULL;
  4462. r->m_read.bufpos = NULL;
  4463. r->m_read.buflen = 0;
  4464. }
  4465. /* If there's leftover data buffered, use it up */
  4466. if (r->m_read.buf)
  4467. {
  4468. nRead = r->m_read.buflen;
  4469. if (nRead > size)
  4470. nRead = size;
  4471. memcpy(buf, r->m_read.bufpos, nRead);
  4472. r->m_read.buflen -= nRead;
  4473. if (!r->m_read.buflen)
  4474. {
  4475. free(r->m_read.buf);
  4476. r->m_read.buf = NULL;
  4477. r->m_read.bufpos = NULL;
  4478. }
  4479. else
  4480. {
  4481. r->m_read.bufpos += nRead;
  4482. }
  4483. buf += nRead;
  4484. total += nRead;
  4485. size -= nRead;
  4486. }
  4487. while (size > 0 && (nRead = Read_1_Packet(r, buf, size)) >= 0)
  4488. {
  4489. if (!nRead) continue;
  4490. buf += nRead;
  4491. total += nRead;
  4492. size -= nRead;
  4493. break;
  4494. }
  4495. if (nRead < 0)
  4496. r->m_read.status = nRead;
  4497. if (size < 0)
  4498. total += size;
  4499. return total;
  4500. }
  4501. static const AVal av_setDataFrame = AVC("@setDataFrame");
  4502. int
  4503. RTMP_Write(RTMP *r, const char *buf, int size, int streamIdx)
  4504. {
  4505. RTMPPacket *pkt = &r->m_write;
  4506. char *pend, *enc;
  4507. int s2 = size, ret, num;
  4508. pkt->m_nChannel = 0x04; /* source channel */
  4509. pkt->m_nInfoField2 = r->Link.streams[streamIdx].id;
  4510. while (s2)
  4511. {
  4512. if (!pkt->m_nBytesRead)
  4513. {
  4514. if (size < 11)
  4515. {
  4516. /* FLV pkt too small */
  4517. return 0;
  4518. }
  4519. if (buf[0] == 'F' && buf[1] == 'L' && buf[2] == 'V')
  4520. {
  4521. buf += 13;
  4522. s2 -= 13;
  4523. }
  4524. pkt->m_packetType = *buf++;
  4525. pkt->m_nBodySize = AMF_DecodeInt24(buf);
  4526. buf += 3;
  4527. pkt->m_nTimeStamp = AMF_DecodeInt24(buf);
  4528. buf += 3;
  4529. pkt->m_nTimeStamp |= *buf++ << 24;
  4530. buf += 3;
  4531. s2 -= 11;
  4532. if (((pkt->m_packetType == RTMP_PACKET_TYPE_AUDIO
  4533. || pkt->m_packetType == RTMP_PACKET_TYPE_VIDEO) &&
  4534. !pkt->m_nTimeStamp) || pkt->m_packetType == RTMP_PACKET_TYPE_INFO)
  4535. {
  4536. pkt->m_headerType = RTMP_PACKET_SIZE_LARGE;
  4537. if (pkt->m_packetType == RTMP_PACKET_TYPE_INFO)
  4538. pkt->m_nBodySize += 16;
  4539. }
  4540. else
  4541. {
  4542. pkt->m_headerType = RTMP_PACKET_SIZE_MEDIUM;
  4543. }
  4544. if (!RTMPPacket_Alloc(pkt, pkt->m_nBodySize))
  4545. {
  4546. RTMP_Log(RTMP_LOGDEBUG, "%s, failed to allocate packet", __FUNCTION__);
  4547. return FALSE;
  4548. }
  4549. enc = pkt->m_body;
  4550. pend = enc + pkt->m_nBodySize;
  4551. if (pkt->m_packetType == RTMP_PACKET_TYPE_INFO)
  4552. {
  4553. enc = AMF_EncodeString(enc, pend, &av_setDataFrame);
  4554. pkt->m_nBytesRead = enc - pkt->m_body;
  4555. }
  4556. }
  4557. else
  4558. {
  4559. enc = pkt->m_body + pkt->m_nBytesRead;
  4560. }
  4561. num = pkt->m_nBodySize - pkt->m_nBytesRead;
  4562. if (num > s2)
  4563. num = s2;
  4564. memcpy(enc, buf, num);
  4565. pkt->m_nBytesRead += num;
  4566. s2 -= num;
  4567. buf += num;
  4568. if (pkt->m_nBytesRead == pkt->m_nBodySize)
  4569. {
  4570. ret = RTMP_SendPacket(r, pkt, FALSE);
  4571. RTMPPacket_Free(pkt);
  4572. pkt->m_nBytesRead = 0;
  4573. if (!ret)
  4574. return -1;
  4575. buf += 4;
  4576. s2 -= 4;
  4577. if (s2 < 0)
  4578. break;
  4579. }
  4580. }
  4581. return size+s2;
  4582. }