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  1. /*
  2. * RTMP network protocol
  3. * Copyright (c) 2009 Konstantin Shishkov
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * RTMP protocol
  24. */
  25. #include "libavcodec/bytestream.h"
  26. #include "libavutil/avstring.h"
  27. #include "libavutil/base64.h"
  28. #include "libavutil/hmac.h"
  29. #include "libavutil/intfloat.h"
  30. #include "libavutil/lfg.h"
  31. #include "libavutil/md5.h"
  32. #include "libavutil/opt.h"
  33. #include "libavutil/random_seed.h"
  34. #include "avformat.h"
  35. #include "internal.h"
  36. #include "network.h"
  37. #include "flv.h"
  38. #include "rtmp.h"
  39. #include "rtmpcrypt.h"
  40. #include "rtmppkt.h"
  41. #include "url.h"
  42. #if CONFIG_ZLIB
  43. #include <zlib.h>
  44. #endif
  45. #define APP_MAX_LENGTH 1024
  46. #define PLAYPATH_MAX_LENGTH 512
  47. #define TCURL_MAX_LENGTH 1024
  48. #define FLASHVER_MAX_LENGTH 64
  49. #define RTMP_PKTDATA_DEFAULT_SIZE 4096
  50. #define RTMP_HEADER 11
  51. /** RTMP protocol handler state */
  52. typedef enum {
  53. STATE_START, ///< client has not done anything yet
  54. STATE_HANDSHAKED, ///< client has performed handshake
  55. STATE_FCPUBLISH, ///< client FCPublishing stream (for output)
  56. STATE_PLAYING, ///< client has started receiving multimedia data from server
  57. STATE_SEEKING, ///< client has started the seek operation. Back on STATE_PLAYING when the time comes
  58. STATE_PUBLISHING, ///< client has started sending multimedia data to server (for output)
  59. STATE_RECEIVING, ///< received a publish command (for input)
  60. STATE_SENDING, ///< received a play command (for output)
  61. STATE_STOPPED, ///< the broadcast has been stopped
  62. } ClientState;
  63. typedef struct TrackedMethod {
  64. char *name;
  65. int id;
  66. } TrackedMethod;
  67. /** protocol handler context */
  68. typedef struct RTMPContext {
  69. const AVClass *class;
  70. URLContext* stream; ///< TCP stream used in interactions with RTMP server
  71. RTMPPacket *prev_pkt[2]; ///< packet history used when reading and sending packets ([0] for reading, [1] for writing)
  72. int nb_prev_pkt[2]; ///< number of elements in prev_pkt
  73. int in_chunk_size; ///< size of the chunks incoming RTMP packets are divided into
  74. int out_chunk_size; ///< size of the chunks outgoing RTMP packets are divided into
  75. int is_input; ///< input/output flag
  76. char *playpath; ///< stream identifier to play (with possible "mp4:" prefix)
  77. int live; ///< 0: recorded, -1: live, -2: both
  78. char *app; ///< name of application
  79. char *conn; ///< append arbitrary AMF data to the Connect message
  80. ClientState state; ///< current state
  81. int stream_id; ///< ID assigned by the server for the stream
  82. uint8_t* flv_data; ///< buffer with data for demuxer
  83. int flv_size; ///< current buffer size
  84. int flv_off; ///< number of bytes read from current buffer
  85. int flv_nb_packets; ///< number of flv packets published
  86. RTMPPacket out_pkt; ///< rtmp packet, created from flv a/v or metadata (for output)
  87. uint32_t client_report_size; ///< number of bytes after which client should report to server
  88. uint64_t bytes_read; ///< number of bytes read from server
  89. uint64_t last_bytes_read; ///< number of bytes read last reported to server
  90. uint32_t last_timestamp; ///< last timestamp received in a packet
  91. int skip_bytes; ///< number of bytes to skip from the input FLV stream in the next write call
  92. int has_audio; ///< presence of audio data
  93. int has_video; ///< presence of video data
  94. int received_metadata; ///< Indicates if we have received metadata about the streams
  95. uint8_t flv_header[RTMP_HEADER]; ///< partial incoming flv packet header
  96. int flv_header_bytes; ///< number of initialized bytes in flv_header
  97. int nb_invokes; ///< keeps track of invoke messages
  98. char* tcurl; ///< url of the target stream
  99. char* flashver; ///< version of the flash plugin
  100. char* swfhash; ///< SHA256 hash of the decompressed SWF file (32 bytes)
  101. int swfhash_len; ///< length of the SHA256 hash
  102. int swfsize; ///< size of the decompressed SWF file
  103. char* swfurl; ///< url of the swf player
  104. char* swfverify; ///< URL to player swf file, compute hash/size automatically
  105. char swfverification[42]; ///< hash of the SWF verification
  106. char* pageurl; ///< url of the web page
  107. char* subscribe; ///< name of live stream to subscribe
  108. int server_bw; ///< server bandwidth
  109. int client_buffer_time; ///< client buffer time in ms
  110. int flush_interval; ///< number of packets flushed in the same request (RTMPT only)
  111. int encrypted; ///< use an encrypted connection (RTMPE only)
  112. TrackedMethod*tracked_methods; ///< tracked methods buffer
  113. int nb_tracked_methods; ///< number of tracked methods
  114. int tracked_methods_size; ///< size of the tracked methods buffer
  115. int listen; ///< listen mode flag
  116. int listen_timeout; ///< listen timeout to wait for new connections
  117. int nb_streamid; ///< The next stream id to return on createStream calls
  118. double duration; ///< Duration of the stream in seconds as returned by the server (only valid if non-zero)
  119. char username[50];
  120. char password[50];
  121. char auth_params[500];
  122. int do_reconnect;
  123. int auth_tried;
  124. } RTMPContext;
  125. #define PLAYER_KEY_OPEN_PART_LEN 30 ///< length of partial key used for first client digest signing
  126. /** Client key used for digest signing */
  127. static const uint8_t rtmp_player_key[] = {
  128. 'G', 'e', 'n', 'u', 'i', 'n', 'e', ' ', 'A', 'd', 'o', 'b', 'e', ' ',
  129. 'F', 'l', 'a', 's', 'h', ' ', 'P', 'l', 'a', 'y', 'e', 'r', ' ', '0', '0', '1',
  130. 0xF0, 0xEE, 0xC2, 0x4A, 0x80, 0x68, 0xBE, 0xE8, 0x2E, 0x00, 0xD0, 0xD1, 0x02,
  131. 0x9E, 0x7E, 0x57, 0x6E, 0xEC, 0x5D, 0x2D, 0x29, 0x80, 0x6F, 0xAB, 0x93, 0xB8,
  132. 0xE6, 0x36, 0xCF, 0xEB, 0x31, 0xAE
  133. };
  134. #define SERVER_KEY_OPEN_PART_LEN 36 ///< length of partial key used for first server digest signing
  135. /** Key used for RTMP server digest signing */
  136. static const uint8_t rtmp_server_key[] = {
  137. 'G', 'e', 'n', 'u', 'i', 'n', 'e', ' ', 'A', 'd', 'o', 'b', 'e', ' ',
  138. 'F', 'l', 'a', 's', 'h', ' ', 'M', 'e', 'd', 'i', 'a', ' ',
  139. 'S', 'e', 'r', 'v', 'e', 'r', ' ', '0', '0', '1',
  140. 0xF0, 0xEE, 0xC2, 0x4A, 0x80, 0x68, 0xBE, 0xE8, 0x2E, 0x00, 0xD0, 0xD1, 0x02,
  141. 0x9E, 0x7E, 0x57, 0x6E, 0xEC, 0x5D, 0x2D, 0x29, 0x80, 0x6F, 0xAB, 0x93, 0xB8,
  142. 0xE6, 0x36, 0xCF, 0xEB, 0x31, 0xAE
  143. };
  144. static int handle_chunk_size(URLContext *s, RTMPPacket *pkt);
  145. static int handle_server_bw(URLContext *s, RTMPPacket *pkt);
  146. static int handle_client_bw(URLContext *s, RTMPPacket *pkt);
  147. static int add_tracked_method(RTMPContext *rt, const char *name, int id)
  148. {
  149. int err;
  150. if (rt->nb_tracked_methods + 1 > rt->tracked_methods_size) {
  151. rt->tracked_methods_size = (rt->nb_tracked_methods + 1) * 2;
  152. if ((err = av_reallocp(&rt->tracked_methods, rt->tracked_methods_size *
  153. sizeof(*rt->tracked_methods))) < 0) {
  154. rt->nb_tracked_methods = 0;
  155. rt->tracked_methods_size = 0;
  156. return err;
  157. }
  158. }
  159. rt->tracked_methods[rt->nb_tracked_methods].name = av_strdup(name);
  160. if (!rt->tracked_methods[rt->nb_tracked_methods].name)
  161. return AVERROR(ENOMEM);
  162. rt->tracked_methods[rt->nb_tracked_methods].id = id;
  163. rt->nb_tracked_methods++;
  164. return 0;
  165. }
  166. static void del_tracked_method(RTMPContext *rt, int index)
  167. {
  168. memmove(&rt->tracked_methods[index], &rt->tracked_methods[index + 1],
  169. sizeof(*rt->tracked_methods) * (rt->nb_tracked_methods - index - 1));
  170. rt->nb_tracked_methods--;
  171. }
  172. static int find_tracked_method(URLContext *s, RTMPPacket *pkt, int offset,
  173. char **tracked_method)
  174. {
  175. RTMPContext *rt = s->priv_data;
  176. GetByteContext gbc;
  177. double pkt_id;
  178. int ret;
  179. int i;
  180. bytestream2_init(&gbc, pkt->data + offset, pkt->size - offset);
  181. if ((ret = ff_amf_read_number(&gbc, &pkt_id)) < 0)
  182. return ret;
  183. for (i = 0; i < rt->nb_tracked_methods; i++) {
  184. if (rt->tracked_methods[i].id != pkt_id)
  185. continue;
  186. *tracked_method = rt->tracked_methods[i].name;
  187. del_tracked_method(rt, i);
  188. break;
  189. }
  190. return 0;
  191. }
  192. static void free_tracked_methods(RTMPContext *rt)
  193. {
  194. int i;
  195. for (i = 0; i < rt->nb_tracked_methods; i ++)
  196. av_freep(&rt->tracked_methods[i].name);
  197. av_freep(&rt->tracked_methods);
  198. rt->tracked_methods_size = 0;
  199. rt->nb_tracked_methods = 0;
  200. }
  201. static int rtmp_send_packet(RTMPContext *rt, RTMPPacket *pkt, int track)
  202. {
  203. int ret;
  204. if (pkt->type == RTMP_PT_INVOKE && track) {
  205. GetByteContext gbc;
  206. char name[128];
  207. double pkt_id;
  208. int len;
  209. bytestream2_init(&gbc, pkt->data, pkt->size);
  210. if ((ret = ff_amf_read_string(&gbc, name, sizeof(name), &len)) < 0)
  211. goto fail;
  212. if ((ret = ff_amf_read_number(&gbc, &pkt_id)) < 0)
  213. goto fail;
  214. if ((ret = add_tracked_method(rt, name, pkt_id)) < 0)
  215. goto fail;
  216. }
  217. ret = ff_rtmp_packet_write(rt->stream, pkt, rt->out_chunk_size,
  218. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  219. fail:
  220. ff_rtmp_packet_destroy(pkt);
  221. return ret;
  222. }
  223. static int rtmp_write_amf_data(URLContext *s, char *param, uint8_t **p)
  224. {
  225. char *field, *value;
  226. char type;
  227. /* The type must be B for Boolean, N for number, S for string, O for
  228. * object, or Z for null. For Booleans the data must be either 0 or 1 for
  229. * FALSE or TRUE, respectively. Likewise for Objects the data must be
  230. * 0 or 1 to end or begin an object, respectively. Data items in subobjects
  231. * may be named, by prefixing the type with 'N' and specifying the name
  232. * before the value (ie. NB:myFlag:1). This option may be used multiple times
  233. * to construct arbitrary AMF sequences. */
  234. if (param[0] && param[1] == ':') {
  235. type = param[0];
  236. value = param + 2;
  237. } else if (param[0] == 'N' && param[1] && param[2] == ':') {
  238. type = param[1];
  239. field = param + 3;
  240. value = strchr(field, ':');
  241. if (!value)
  242. goto fail;
  243. *value = '\0';
  244. value++;
  245. ff_amf_write_field_name(p, field);
  246. } else {
  247. goto fail;
  248. }
  249. switch (type) {
  250. case 'B':
  251. ff_amf_write_bool(p, value[0] != '0');
  252. break;
  253. case 'S':
  254. ff_amf_write_string(p, value);
  255. break;
  256. case 'N':
  257. ff_amf_write_number(p, strtod(value, NULL));
  258. break;
  259. case 'Z':
  260. ff_amf_write_null(p);
  261. break;
  262. case 'O':
  263. if (value[0] != '0')
  264. ff_amf_write_object_start(p);
  265. else
  266. ff_amf_write_object_end(p);
  267. break;
  268. default:
  269. goto fail;
  270. break;
  271. }
  272. return 0;
  273. fail:
  274. av_log(s, AV_LOG_ERROR, "Invalid AMF parameter: %s\n", param);
  275. return AVERROR(EINVAL);
  276. }
  277. /**
  278. * Generate 'connect' call and send it to the server.
  279. */
  280. static int gen_connect(URLContext *s, RTMPContext *rt)
  281. {
  282. RTMPPacket pkt;
  283. uint8_t *p;
  284. int ret;
  285. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  286. 0, 4096 + APP_MAX_LENGTH)) < 0)
  287. return ret;
  288. p = pkt.data;
  289. ff_amf_write_string(&p, "connect");
  290. ff_amf_write_number(&p, ++rt->nb_invokes);
  291. ff_amf_write_object_start(&p);
  292. ff_amf_write_field_name(&p, "app");
  293. ff_amf_write_string2(&p, rt->app, rt->auth_params);
  294. if (!rt->is_input) {
  295. ff_amf_write_field_name(&p, "type");
  296. ff_amf_write_string(&p, "nonprivate");
  297. }
  298. ff_amf_write_field_name(&p, "flashVer");
  299. ff_amf_write_string(&p, rt->flashver);
  300. if (rt->swfurl) {
  301. ff_amf_write_field_name(&p, "swfUrl");
  302. ff_amf_write_string(&p, rt->swfurl);
  303. }
  304. ff_amf_write_field_name(&p, "tcUrl");
  305. ff_amf_write_string2(&p, rt->tcurl, rt->auth_params);
  306. if (rt->is_input) {
  307. ff_amf_write_field_name(&p, "fpad");
  308. ff_amf_write_bool(&p, 0);
  309. ff_amf_write_field_name(&p, "capabilities");
  310. ff_amf_write_number(&p, 15.0);
  311. /* Tell the server we support all the audio codecs except
  312. * SUPPORT_SND_INTEL (0x0008) and SUPPORT_SND_UNUSED (0x0010)
  313. * which are unused in the RTMP protocol implementation. */
  314. ff_amf_write_field_name(&p, "audioCodecs");
  315. ff_amf_write_number(&p, 4071.0);
  316. ff_amf_write_field_name(&p, "videoCodecs");
  317. ff_amf_write_number(&p, 252.0);
  318. ff_amf_write_field_name(&p, "videoFunction");
  319. ff_amf_write_number(&p, 1.0);
  320. if (rt->pageurl) {
  321. ff_amf_write_field_name(&p, "pageUrl");
  322. ff_amf_write_string(&p, rt->pageurl);
  323. }
  324. }
  325. ff_amf_write_object_end(&p);
  326. if (rt->conn) {
  327. char *param = rt->conn;
  328. // Write arbitrary AMF data to the Connect message.
  329. while (param) {
  330. char *sep;
  331. param += strspn(param, " ");
  332. if (!*param)
  333. break;
  334. sep = strchr(param, ' ');
  335. if (sep)
  336. *sep = '\0';
  337. if ((ret = rtmp_write_amf_data(s, param, &p)) < 0) {
  338. // Invalid AMF parameter.
  339. ff_rtmp_packet_destroy(&pkt);
  340. return ret;
  341. }
  342. if (sep)
  343. param = sep + 1;
  344. else
  345. break;
  346. }
  347. }
  348. pkt.size = p - pkt.data;
  349. return rtmp_send_packet(rt, &pkt, 1);
  350. }
  351. #define RTMP_CTRL_ABORT_MESSAGE (2)
  352. static int read_connect(URLContext *s, RTMPContext *rt)
  353. {
  354. RTMPPacket pkt = { 0 };
  355. uint8_t *p;
  356. const uint8_t *cp;
  357. int ret;
  358. char command[64];
  359. int stringlen;
  360. double seqnum;
  361. uint8_t tmpstr[256];
  362. GetByteContext gbc;
  363. // handle RTMP Protocol Control Messages
  364. for (;;) {
  365. if ((ret = ff_rtmp_packet_read(rt->stream, &pkt, rt->in_chunk_size,
  366. &rt->prev_pkt[0], &rt->nb_prev_pkt[0])) < 0)
  367. return ret;
  368. #ifdef DEBUG
  369. ff_rtmp_packet_dump(s, &pkt);
  370. #endif
  371. if (pkt.type == RTMP_PT_CHUNK_SIZE) {
  372. if ((ret = handle_chunk_size(s, &pkt)) < 0) {
  373. ff_rtmp_packet_destroy(&pkt);
  374. return ret;
  375. }
  376. } else if (pkt.type == RTMP_CTRL_ABORT_MESSAGE) {
  377. av_log(s, AV_LOG_ERROR, "received abort message\n");
  378. ff_rtmp_packet_destroy(&pkt);
  379. return AVERROR_UNKNOWN;
  380. } else if (pkt.type == RTMP_PT_BYTES_READ) {
  381. av_log(s, AV_LOG_TRACE, "received acknowledgement\n");
  382. } else if (pkt.type == RTMP_PT_SERVER_BW) {
  383. if ((ret = handle_server_bw(s, &pkt)) < 0) {
  384. ff_rtmp_packet_destroy(&pkt);
  385. return ret;
  386. }
  387. } else if (pkt.type == RTMP_PT_CLIENT_BW) {
  388. if ((ret = handle_client_bw(s, &pkt)) < 0) {
  389. ff_rtmp_packet_destroy(&pkt);
  390. return ret;
  391. }
  392. } else if (pkt.type == RTMP_PT_INVOKE) {
  393. // received RTMP Command Message
  394. break;
  395. } else {
  396. av_log(s, AV_LOG_ERROR, "Unknown control message type (%d)\n", pkt.type);
  397. }
  398. ff_rtmp_packet_destroy(&pkt);
  399. }
  400. cp = pkt.data;
  401. bytestream2_init(&gbc, cp, pkt.size);
  402. if (ff_amf_read_string(&gbc, command, sizeof(command), &stringlen)) {
  403. av_log(s, AV_LOG_ERROR, "Unable to read command string\n");
  404. ff_rtmp_packet_destroy(&pkt);
  405. return AVERROR_INVALIDDATA;
  406. }
  407. if (strcmp(command, "connect")) {
  408. av_log(s, AV_LOG_ERROR, "Expecting connect, got %s\n", command);
  409. ff_rtmp_packet_destroy(&pkt);
  410. return AVERROR_INVALIDDATA;
  411. }
  412. ret = ff_amf_read_number(&gbc, &seqnum);
  413. if (ret)
  414. av_log(s, AV_LOG_WARNING, "SeqNum not found\n");
  415. /* Here one could parse an AMF Object with data as flashVers and others. */
  416. ret = ff_amf_get_field_value(gbc.buffer,
  417. gbc.buffer + bytestream2_get_bytes_left(&gbc),
  418. "app", tmpstr, sizeof(tmpstr));
  419. if (ret)
  420. av_log(s, AV_LOG_WARNING, "App field not found in connect\n");
  421. if (!ret && strcmp(tmpstr, rt->app))
  422. av_log(s, AV_LOG_WARNING, "App field don't match up: %s <-> %s\n",
  423. tmpstr, rt->app);
  424. ff_rtmp_packet_destroy(&pkt);
  425. // Send Window Acknowledgement Size (as defined in specification)
  426. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL,
  427. RTMP_PT_SERVER_BW, 0, 4)) < 0)
  428. return ret;
  429. p = pkt.data;
  430. bytestream_put_be32(&p, rt->server_bw);
  431. pkt.size = p - pkt.data;
  432. ret = ff_rtmp_packet_write(rt->stream, &pkt, rt->out_chunk_size,
  433. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  434. ff_rtmp_packet_destroy(&pkt);
  435. if (ret < 0)
  436. return ret;
  437. // Send Peer Bandwidth
  438. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL,
  439. RTMP_PT_CLIENT_BW, 0, 5)) < 0)
  440. return ret;
  441. p = pkt.data;
  442. bytestream_put_be32(&p, rt->server_bw);
  443. bytestream_put_byte(&p, 2); // dynamic
  444. pkt.size = p - pkt.data;
  445. ret = ff_rtmp_packet_write(rt->stream, &pkt, rt->out_chunk_size,
  446. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  447. ff_rtmp_packet_destroy(&pkt);
  448. if (ret < 0)
  449. return ret;
  450. // Ping request
  451. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL,
  452. RTMP_PT_PING, 0, 6)) < 0)
  453. return ret;
  454. p = pkt.data;
  455. bytestream_put_be16(&p, 0); // 0 -> Stream Begin
  456. bytestream_put_be32(&p, 0);
  457. ret = ff_rtmp_packet_write(rt->stream, &pkt, rt->out_chunk_size,
  458. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  459. ff_rtmp_packet_destroy(&pkt);
  460. if (ret < 0)
  461. return ret;
  462. // Chunk size
  463. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL,
  464. RTMP_PT_CHUNK_SIZE, 0, 4)) < 0)
  465. return ret;
  466. p = pkt.data;
  467. bytestream_put_be32(&p, rt->out_chunk_size);
  468. ret = ff_rtmp_packet_write(rt->stream, &pkt, rt->out_chunk_size,
  469. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  470. ff_rtmp_packet_destroy(&pkt);
  471. if (ret < 0)
  472. return ret;
  473. // Send _result NetConnection.Connect.Success to connect
  474. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL,
  475. RTMP_PT_INVOKE, 0,
  476. RTMP_PKTDATA_DEFAULT_SIZE)) < 0)
  477. return ret;
  478. p = pkt.data;
  479. ff_amf_write_string(&p, "_result");
  480. ff_amf_write_number(&p, seqnum);
  481. ff_amf_write_object_start(&p);
  482. ff_amf_write_field_name(&p, "fmsVer");
  483. ff_amf_write_string(&p, "FMS/3,0,1,123");
  484. ff_amf_write_field_name(&p, "capabilities");
  485. ff_amf_write_number(&p, 31);
  486. ff_amf_write_object_end(&p);
  487. ff_amf_write_object_start(&p);
  488. ff_amf_write_field_name(&p, "level");
  489. ff_amf_write_string(&p, "status");
  490. ff_amf_write_field_name(&p, "code");
  491. ff_amf_write_string(&p, "NetConnection.Connect.Success");
  492. ff_amf_write_field_name(&p, "description");
  493. ff_amf_write_string(&p, "Connection succeeded.");
  494. ff_amf_write_field_name(&p, "objectEncoding");
  495. ff_amf_write_number(&p, 0);
  496. ff_amf_write_object_end(&p);
  497. pkt.size = p - pkt.data;
  498. ret = ff_rtmp_packet_write(rt->stream, &pkt, rt->out_chunk_size,
  499. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  500. ff_rtmp_packet_destroy(&pkt);
  501. if (ret < 0)
  502. return ret;
  503. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL,
  504. RTMP_PT_INVOKE, 0, 30)) < 0)
  505. return ret;
  506. p = pkt.data;
  507. ff_amf_write_string(&p, "onBWDone");
  508. ff_amf_write_number(&p, 0);
  509. ff_amf_write_null(&p);
  510. ff_amf_write_number(&p, 8192);
  511. pkt.size = p - pkt.data;
  512. ret = ff_rtmp_packet_write(rt->stream, &pkt, rt->out_chunk_size,
  513. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  514. ff_rtmp_packet_destroy(&pkt);
  515. return ret;
  516. }
  517. /**
  518. * Generate 'releaseStream' call and send it to the server. It should make
  519. * the server release some channel for media streams.
  520. */
  521. static int gen_release_stream(URLContext *s, RTMPContext *rt)
  522. {
  523. RTMPPacket pkt;
  524. uint8_t *p;
  525. int ret;
  526. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  527. 0, 29 + strlen(rt->playpath))) < 0)
  528. return ret;
  529. av_log(s, AV_LOG_DEBUG, "Releasing stream...\n");
  530. p = pkt.data;
  531. ff_amf_write_string(&p, "releaseStream");
  532. ff_amf_write_number(&p, ++rt->nb_invokes);
  533. ff_amf_write_null(&p);
  534. ff_amf_write_string(&p, rt->playpath);
  535. return rtmp_send_packet(rt, &pkt, 1);
  536. }
  537. /**
  538. * Generate 'FCPublish' call and send it to the server. It should make
  539. * the server prepare for receiving media streams.
  540. */
  541. static int gen_fcpublish_stream(URLContext *s, RTMPContext *rt)
  542. {
  543. RTMPPacket pkt;
  544. uint8_t *p;
  545. int ret;
  546. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  547. 0, 25 + strlen(rt->playpath))) < 0)
  548. return ret;
  549. av_log(s, AV_LOG_DEBUG, "FCPublish stream...\n");
  550. p = pkt.data;
  551. ff_amf_write_string(&p, "FCPublish");
  552. ff_amf_write_number(&p, ++rt->nb_invokes);
  553. ff_amf_write_null(&p);
  554. ff_amf_write_string(&p, rt->playpath);
  555. return rtmp_send_packet(rt, &pkt, 1);
  556. }
  557. /**
  558. * Generate 'FCUnpublish' call and send it to the server. It should make
  559. * the server destroy stream.
  560. */
  561. static int gen_fcunpublish_stream(URLContext *s, RTMPContext *rt)
  562. {
  563. RTMPPacket pkt;
  564. uint8_t *p;
  565. int ret;
  566. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  567. 0, 27 + strlen(rt->playpath))) < 0)
  568. return ret;
  569. av_log(s, AV_LOG_DEBUG, "UnPublishing stream...\n");
  570. p = pkt.data;
  571. ff_amf_write_string(&p, "FCUnpublish");
  572. ff_amf_write_number(&p, ++rt->nb_invokes);
  573. ff_amf_write_null(&p);
  574. ff_amf_write_string(&p, rt->playpath);
  575. return rtmp_send_packet(rt, &pkt, 0);
  576. }
  577. /**
  578. * Generate 'createStream' call and send it to the server. It should make
  579. * the server allocate some channel for media streams.
  580. */
  581. static int gen_create_stream(URLContext *s, RTMPContext *rt)
  582. {
  583. RTMPPacket pkt;
  584. uint8_t *p;
  585. int ret;
  586. av_log(s, AV_LOG_DEBUG, "Creating stream...\n");
  587. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  588. 0, 25)) < 0)
  589. return ret;
  590. p = pkt.data;
  591. ff_amf_write_string(&p, "createStream");
  592. ff_amf_write_number(&p, ++rt->nb_invokes);
  593. ff_amf_write_null(&p);
  594. return rtmp_send_packet(rt, &pkt, 1);
  595. }
  596. /**
  597. * Generate 'deleteStream' call and send it to the server. It should make
  598. * the server remove some channel for media streams.
  599. */
  600. static int gen_delete_stream(URLContext *s, RTMPContext *rt)
  601. {
  602. RTMPPacket pkt;
  603. uint8_t *p;
  604. int ret;
  605. av_log(s, AV_LOG_DEBUG, "Deleting stream...\n");
  606. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  607. 0, 34)) < 0)
  608. return ret;
  609. p = pkt.data;
  610. ff_amf_write_string(&p, "deleteStream");
  611. ff_amf_write_number(&p, ++rt->nb_invokes);
  612. ff_amf_write_null(&p);
  613. ff_amf_write_number(&p, rt->stream_id);
  614. return rtmp_send_packet(rt, &pkt, 0);
  615. }
  616. /**
  617. * Generate 'getStreamLength' call and send it to the server. If the server
  618. * knows the duration of the selected stream, it will reply with the duration
  619. * in seconds.
  620. */
  621. static int gen_get_stream_length(URLContext *s, RTMPContext *rt)
  622. {
  623. RTMPPacket pkt;
  624. uint8_t *p;
  625. int ret;
  626. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SOURCE_CHANNEL, RTMP_PT_INVOKE,
  627. 0, 31 + strlen(rt->playpath))) < 0)
  628. return ret;
  629. p = pkt.data;
  630. ff_amf_write_string(&p, "getStreamLength");
  631. ff_amf_write_number(&p, ++rt->nb_invokes);
  632. ff_amf_write_null(&p);
  633. ff_amf_write_string(&p, rt->playpath);
  634. return rtmp_send_packet(rt, &pkt, 1);
  635. }
  636. /**
  637. * Generate client buffer time and send it to the server.
  638. */
  639. static int gen_buffer_time(URLContext *s, RTMPContext *rt)
  640. {
  641. RTMPPacket pkt;
  642. uint8_t *p;
  643. int ret;
  644. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL, RTMP_PT_PING,
  645. 1, 10)) < 0)
  646. return ret;
  647. p = pkt.data;
  648. bytestream_put_be16(&p, 3);
  649. bytestream_put_be32(&p, rt->stream_id);
  650. bytestream_put_be32(&p, rt->client_buffer_time);
  651. return rtmp_send_packet(rt, &pkt, 0);
  652. }
  653. /**
  654. * Generate 'play' call and send it to the server, then ping the server
  655. * to start actual playing.
  656. */
  657. static int gen_play(URLContext *s, RTMPContext *rt)
  658. {
  659. RTMPPacket pkt;
  660. uint8_t *p;
  661. int ret;
  662. av_log(s, AV_LOG_DEBUG, "Sending play command for '%s'\n", rt->playpath);
  663. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SOURCE_CHANNEL, RTMP_PT_INVOKE,
  664. 0, 29 + strlen(rt->playpath))) < 0)
  665. return ret;
  666. pkt.extra = rt->stream_id;
  667. p = pkt.data;
  668. ff_amf_write_string(&p, "play");
  669. ff_amf_write_number(&p, ++rt->nb_invokes);
  670. ff_amf_write_null(&p);
  671. ff_amf_write_string(&p, rt->playpath);
  672. ff_amf_write_number(&p, rt->live * 1000);
  673. return rtmp_send_packet(rt, &pkt, 1);
  674. }
  675. static int gen_seek(URLContext *s, RTMPContext *rt, int64_t timestamp)
  676. {
  677. RTMPPacket pkt;
  678. uint8_t *p;
  679. int ret;
  680. av_log(s, AV_LOG_DEBUG, "Sending seek command for timestamp %"PRId64"\n",
  681. timestamp);
  682. if ((ret = ff_rtmp_packet_create(&pkt, 3, RTMP_PT_INVOKE, 0, 26)) < 0)
  683. return ret;
  684. pkt.extra = rt->stream_id;
  685. p = pkt.data;
  686. ff_amf_write_string(&p, "seek");
  687. ff_amf_write_number(&p, 0); //no tracking back responses
  688. ff_amf_write_null(&p); //as usual, the first null param
  689. ff_amf_write_number(&p, timestamp); //where we want to jump
  690. return rtmp_send_packet(rt, &pkt, 1);
  691. }
  692. /**
  693. * Generate a pause packet that either pauses or unpauses the current stream.
  694. */
  695. static int gen_pause(URLContext *s, RTMPContext *rt, int pause, uint32_t timestamp)
  696. {
  697. RTMPPacket pkt;
  698. uint8_t *p;
  699. int ret;
  700. av_log(s, AV_LOG_DEBUG, "Sending pause command for timestamp %d\n",
  701. timestamp);
  702. if ((ret = ff_rtmp_packet_create(&pkt, 3, RTMP_PT_INVOKE, 0, 29)) < 0)
  703. return ret;
  704. pkt.extra = rt->stream_id;
  705. p = pkt.data;
  706. ff_amf_write_string(&p, "pause");
  707. ff_amf_write_number(&p, 0); //no tracking back responses
  708. ff_amf_write_null(&p); //as usual, the first null param
  709. ff_amf_write_bool(&p, pause); // pause or unpause
  710. ff_amf_write_number(&p, timestamp); //where we pause the stream
  711. return rtmp_send_packet(rt, &pkt, 1);
  712. }
  713. /**
  714. * Generate 'publish' call and send it to the server.
  715. */
  716. static int gen_publish(URLContext *s, RTMPContext *rt)
  717. {
  718. RTMPPacket pkt;
  719. uint8_t *p;
  720. int ret;
  721. av_log(s, AV_LOG_DEBUG, "Sending publish command for '%s'\n", rt->playpath);
  722. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SOURCE_CHANNEL, RTMP_PT_INVOKE,
  723. 0, 30 + strlen(rt->playpath))) < 0)
  724. return ret;
  725. pkt.extra = rt->stream_id;
  726. p = pkt.data;
  727. ff_amf_write_string(&p, "publish");
  728. ff_amf_write_number(&p, ++rt->nb_invokes);
  729. ff_amf_write_null(&p);
  730. ff_amf_write_string(&p, rt->playpath);
  731. ff_amf_write_string(&p, "live");
  732. return rtmp_send_packet(rt, &pkt, 1);
  733. }
  734. /**
  735. * Generate ping reply and send it to the server.
  736. */
  737. static int gen_pong(URLContext *s, RTMPContext *rt, RTMPPacket *ppkt)
  738. {
  739. RTMPPacket pkt;
  740. uint8_t *p;
  741. int ret;
  742. if (ppkt->size < 6) {
  743. av_log(s, AV_LOG_ERROR, "Too short ping packet (%d)\n",
  744. ppkt->size);
  745. return AVERROR_INVALIDDATA;
  746. }
  747. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL, RTMP_PT_PING,
  748. ppkt->timestamp + 1, 6)) < 0)
  749. return ret;
  750. p = pkt.data;
  751. bytestream_put_be16(&p, 7);
  752. bytestream_put_be32(&p, AV_RB32(ppkt->data+2));
  753. return rtmp_send_packet(rt, &pkt, 0);
  754. }
  755. /**
  756. * Generate SWF verification message and send it to the server.
  757. */
  758. static int gen_swf_verification(URLContext *s, RTMPContext *rt)
  759. {
  760. RTMPPacket pkt;
  761. uint8_t *p;
  762. int ret;
  763. av_log(s, AV_LOG_DEBUG, "Sending SWF verification...\n");
  764. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL, RTMP_PT_PING,
  765. 0, 44)) < 0)
  766. return ret;
  767. p = pkt.data;
  768. bytestream_put_be16(&p, 27);
  769. memcpy(p, rt->swfverification, 42);
  770. return rtmp_send_packet(rt, &pkt, 0);
  771. }
  772. /**
  773. * Generate server bandwidth message and send it to the server.
  774. */
  775. static int gen_server_bw(URLContext *s, RTMPContext *rt)
  776. {
  777. RTMPPacket pkt;
  778. uint8_t *p;
  779. int ret;
  780. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL, RTMP_PT_SERVER_BW,
  781. 0, 4)) < 0)
  782. return ret;
  783. p = pkt.data;
  784. bytestream_put_be32(&p, rt->server_bw);
  785. return rtmp_send_packet(rt, &pkt, 0);
  786. }
  787. /**
  788. * Generate check bandwidth message and send it to the server.
  789. */
  790. static int gen_check_bw(URLContext *s, RTMPContext *rt)
  791. {
  792. RTMPPacket pkt;
  793. uint8_t *p;
  794. int ret;
  795. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  796. 0, 21)) < 0)
  797. return ret;
  798. p = pkt.data;
  799. ff_amf_write_string(&p, "_checkbw");
  800. ff_amf_write_number(&p, ++rt->nb_invokes);
  801. ff_amf_write_null(&p);
  802. return rtmp_send_packet(rt, &pkt, 1);
  803. }
  804. /**
  805. * Generate report on bytes read so far and send it to the server.
  806. */
  807. static int gen_bytes_read(URLContext *s, RTMPContext *rt, uint32_t ts)
  808. {
  809. RTMPPacket pkt;
  810. uint8_t *p;
  811. int ret;
  812. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_NETWORK_CHANNEL, RTMP_PT_BYTES_READ,
  813. ts, 4)) < 0)
  814. return ret;
  815. p = pkt.data;
  816. bytestream_put_be32(&p, rt->bytes_read);
  817. return rtmp_send_packet(rt, &pkt, 0);
  818. }
  819. static int gen_fcsubscribe_stream(URLContext *s, RTMPContext *rt,
  820. const char *subscribe)
  821. {
  822. RTMPPacket pkt;
  823. uint8_t *p;
  824. int ret;
  825. if ((ret = ff_rtmp_packet_create(&pkt, RTMP_SYSTEM_CHANNEL, RTMP_PT_INVOKE,
  826. 0, 27 + strlen(subscribe))) < 0)
  827. return ret;
  828. p = pkt.data;
  829. ff_amf_write_string(&p, "FCSubscribe");
  830. ff_amf_write_number(&p, ++rt->nb_invokes);
  831. ff_amf_write_null(&p);
  832. ff_amf_write_string(&p, subscribe);
  833. return rtmp_send_packet(rt, &pkt, 1);
  834. }
  835. int ff_rtmp_calc_digest(const uint8_t *src, int len, int gap,
  836. const uint8_t *key, int keylen, uint8_t *dst)
  837. {
  838. AVHMAC *hmac;
  839. hmac = av_hmac_alloc(AV_HMAC_SHA256);
  840. if (!hmac)
  841. return AVERROR(ENOMEM);
  842. av_hmac_init(hmac, key, keylen);
  843. if (gap <= 0) {
  844. av_hmac_update(hmac, src, len);
  845. } else { //skip 32 bytes used for storing digest
  846. av_hmac_update(hmac, src, gap);
  847. av_hmac_update(hmac, src + gap + 32, len - gap - 32);
  848. }
  849. av_hmac_final(hmac, dst, 32);
  850. av_hmac_free(hmac);
  851. return 0;
  852. }
  853. int ff_rtmp_calc_digest_pos(const uint8_t *buf, int off, int mod_val,
  854. int add_val)
  855. {
  856. int i, digest_pos = 0;
  857. for (i = 0; i < 4; i++)
  858. digest_pos += buf[i + off];
  859. digest_pos = digest_pos % mod_val + add_val;
  860. return digest_pos;
  861. }
  862. /**
  863. * Put HMAC-SHA2 digest of packet data (except for the bytes where this digest
  864. * will be stored) into that packet.
  865. *
  866. * @param buf handshake data (1536 bytes)
  867. * @param encrypted use an encrypted connection (RTMPE)
  868. * @return offset to the digest inside input data
  869. */
  870. static int rtmp_handshake_imprint_with_digest(uint8_t *buf, int encrypted)
  871. {
  872. int ret, digest_pos;
  873. if (encrypted)
  874. digest_pos = ff_rtmp_calc_digest_pos(buf, 772, 728, 776);
  875. else
  876. digest_pos = ff_rtmp_calc_digest_pos(buf, 8, 728, 12);
  877. ret = ff_rtmp_calc_digest(buf, RTMP_HANDSHAKE_PACKET_SIZE, digest_pos,
  878. rtmp_player_key, PLAYER_KEY_OPEN_PART_LEN,
  879. buf + digest_pos);
  880. if (ret < 0)
  881. return ret;
  882. return digest_pos;
  883. }
  884. /**
  885. * Verify that the received server response has the expected digest value.
  886. *
  887. * @param buf handshake data received from the server (1536 bytes)
  888. * @param off position to search digest offset from
  889. * @return 0 if digest is valid, digest position otherwise
  890. */
  891. static int rtmp_validate_digest(uint8_t *buf, int off)
  892. {
  893. uint8_t digest[32];
  894. int ret, digest_pos;
  895. digest_pos = ff_rtmp_calc_digest_pos(buf, off, 728, off + 4);
  896. ret = ff_rtmp_calc_digest(buf, RTMP_HANDSHAKE_PACKET_SIZE, digest_pos,
  897. rtmp_server_key, SERVER_KEY_OPEN_PART_LEN,
  898. digest);
  899. if (ret < 0)
  900. return ret;
  901. if (!memcmp(digest, buf + digest_pos, 32))
  902. return digest_pos;
  903. return 0;
  904. }
  905. static int rtmp_calc_swf_verification(URLContext *s, RTMPContext *rt,
  906. uint8_t *buf)
  907. {
  908. uint8_t *p;
  909. int ret;
  910. if (rt->swfhash_len != 32) {
  911. av_log(s, AV_LOG_ERROR,
  912. "Hash of the decompressed SWF file is not 32 bytes long.\n");
  913. return AVERROR(EINVAL);
  914. }
  915. p = &rt->swfverification[0];
  916. bytestream_put_byte(&p, 1);
  917. bytestream_put_byte(&p, 1);
  918. bytestream_put_be32(&p, rt->swfsize);
  919. bytestream_put_be32(&p, rt->swfsize);
  920. if ((ret = ff_rtmp_calc_digest(rt->swfhash, 32, 0, buf, 32, p)) < 0)
  921. return ret;
  922. return 0;
  923. }
  924. #if CONFIG_ZLIB
  925. static int rtmp_uncompress_swfplayer(uint8_t *in_data, int64_t in_size,
  926. uint8_t **out_data, int64_t *out_size)
  927. {
  928. z_stream zs = { 0 };
  929. void *ptr;
  930. int size;
  931. int ret = 0;
  932. zs.avail_in = in_size;
  933. zs.next_in = in_data;
  934. ret = inflateInit(&zs);
  935. if (ret != Z_OK)
  936. return AVERROR_UNKNOWN;
  937. do {
  938. uint8_t tmp_buf[16384];
  939. zs.avail_out = sizeof(tmp_buf);
  940. zs.next_out = tmp_buf;
  941. ret = inflate(&zs, Z_NO_FLUSH);
  942. if (ret != Z_OK && ret != Z_STREAM_END) {
  943. ret = AVERROR_UNKNOWN;
  944. goto fail;
  945. }
  946. size = sizeof(tmp_buf) - zs.avail_out;
  947. if (!(ptr = av_realloc(*out_data, *out_size + size))) {
  948. ret = AVERROR(ENOMEM);
  949. goto fail;
  950. }
  951. *out_data = ptr;
  952. memcpy(*out_data + *out_size, tmp_buf, size);
  953. *out_size += size;
  954. } while (zs.avail_out == 0);
  955. fail:
  956. inflateEnd(&zs);
  957. return ret;
  958. }
  959. #endif
  960. static int rtmp_calc_swfhash(URLContext *s)
  961. {
  962. RTMPContext *rt = s->priv_data;
  963. uint8_t *in_data = NULL, *out_data = NULL, *swfdata;
  964. int64_t in_size, out_size;
  965. URLContext *stream;
  966. char swfhash[32];
  967. int swfsize;
  968. int ret = 0;
  969. /* Get the SWF player file. */
  970. if ((ret = ffurl_open_whitelist(&stream, rt->swfverify, AVIO_FLAG_READ,
  971. &s->interrupt_callback, NULL,
  972. s->protocol_whitelist, s->protocol_blacklist, s)) < 0) {
  973. av_log(s, AV_LOG_ERROR, "Cannot open connection %s.\n", rt->swfverify);
  974. goto fail;
  975. }
  976. if ((in_size = ffurl_seek(stream, 0, AVSEEK_SIZE)) < 0) {
  977. ret = AVERROR(EIO);
  978. goto fail;
  979. }
  980. if (!(in_data = av_malloc(in_size))) {
  981. ret = AVERROR(ENOMEM);
  982. goto fail;
  983. }
  984. if ((ret = ffurl_read_complete(stream, in_data, in_size)) < 0)
  985. goto fail;
  986. if (in_size < 3) {
  987. ret = AVERROR_INVALIDDATA;
  988. goto fail;
  989. }
  990. if (!memcmp(in_data, "CWS", 3)) {
  991. /* Decompress the SWF player file using Zlib. */
  992. if (!(out_data = av_malloc(8))) {
  993. ret = AVERROR(ENOMEM);
  994. goto fail;
  995. }
  996. *in_data = 'F'; // magic stuff
  997. memcpy(out_data, in_data, 8);
  998. out_size = 8;
  999. #if CONFIG_ZLIB
  1000. if ((ret = rtmp_uncompress_swfplayer(in_data + 8, in_size - 8,
  1001. &out_data, &out_size)) < 0)
  1002. goto fail;
  1003. #else
  1004. av_log(s, AV_LOG_ERROR,
  1005. "Zlib is required for decompressing the SWF player file.\n");
  1006. ret = AVERROR(EINVAL);
  1007. goto fail;
  1008. #endif
  1009. swfsize = out_size;
  1010. swfdata = out_data;
  1011. } else {
  1012. swfsize = in_size;
  1013. swfdata = in_data;
  1014. }
  1015. /* Compute the SHA256 hash of the SWF player file. */
  1016. if ((ret = ff_rtmp_calc_digest(swfdata, swfsize, 0,
  1017. "Genuine Adobe Flash Player 001", 30,
  1018. swfhash)) < 0)
  1019. goto fail;
  1020. /* Set SWFVerification parameters. */
  1021. av_opt_set_bin(rt, "rtmp_swfhash", swfhash, 32, 0);
  1022. rt->swfsize = swfsize;
  1023. fail:
  1024. av_freep(&in_data);
  1025. av_freep(&out_data);
  1026. ffurl_close(stream);
  1027. return ret;
  1028. }
  1029. /**
  1030. * Perform handshake with the server by means of exchanging pseudorandom data
  1031. * signed with HMAC-SHA2 digest.
  1032. *
  1033. * @return 0 if handshake succeeds, negative value otherwise
  1034. */
  1035. static int rtmp_handshake(URLContext *s, RTMPContext *rt)
  1036. {
  1037. AVLFG rnd;
  1038. uint8_t tosend [RTMP_HANDSHAKE_PACKET_SIZE+1] = {
  1039. 3, // unencrypted data
  1040. 0, 0, 0, 0, // client uptime
  1041. 0, 0, 0, 0, // zeros
  1042. };
  1043. uint8_t clientdata[RTMP_HANDSHAKE_PACKET_SIZE];
  1044. uint8_t serverdata[RTMP_HANDSHAKE_PACKET_SIZE+1];
  1045. int i;
  1046. int server_pos, client_pos;
  1047. uint8_t digest[32], signature[32];
  1048. int ret, type = 0;
  1049. av_log(s, AV_LOG_DEBUG, "Handshaking...\n");
  1050. av_lfg_init(&rnd, 0xDEADC0DE);
  1051. // generate handshake packet - 1536 bytes of pseudorandom data
  1052. for (i = 9; i <= RTMP_HANDSHAKE_PACKET_SIZE; i++)
  1053. tosend[i] = av_lfg_get(&rnd) >> 24;
  1054. if (CONFIG_FFRTMPCRYPT_PROTOCOL && rt->encrypted) {
  1055. /* When the client wants to use RTMPE, we have to change the command
  1056. * byte to 0x06 which means to use encrypted data and we have to set
  1057. * the flash version to at least 9.0.115.0. */
  1058. tosend[0] = 6;
  1059. tosend[5] = 128;
  1060. tosend[6] = 0;
  1061. tosend[7] = 3;
  1062. tosend[8] = 2;
  1063. /* Initialize the Diffie-Hellmann context and generate the public key
  1064. * to send to the server. */
  1065. if ((ret = ff_rtmpe_gen_pub_key(rt->stream, tosend + 1)) < 0)
  1066. return ret;
  1067. }
  1068. client_pos = rtmp_handshake_imprint_with_digest(tosend + 1, rt->encrypted);
  1069. if (client_pos < 0)
  1070. return client_pos;
  1071. if ((ret = ffurl_write(rt->stream, tosend,
  1072. RTMP_HANDSHAKE_PACKET_SIZE + 1)) < 0) {
  1073. av_log(s, AV_LOG_ERROR, "Cannot write RTMP handshake request\n");
  1074. return ret;
  1075. }
  1076. if ((ret = ffurl_read_complete(rt->stream, serverdata,
  1077. RTMP_HANDSHAKE_PACKET_SIZE + 1)) < 0) {
  1078. av_log(s, AV_LOG_ERROR, "Cannot read RTMP handshake response\n");
  1079. return ret;
  1080. }
  1081. if ((ret = ffurl_read_complete(rt->stream, clientdata,
  1082. RTMP_HANDSHAKE_PACKET_SIZE)) < 0) {
  1083. av_log(s, AV_LOG_ERROR, "Cannot read RTMP handshake response\n");
  1084. return ret;
  1085. }
  1086. av_log(s, AV_LOG_DEBUG, "Type answer %d\n", serverdata[0]);
  1087. av_log(s, AV_LOG_DEBUG, "Server version %d.%d.%d.%d\n",
  1088. serverdata[5], serverdata[6], serverdata[7], serverdata[8]);
  1089. if (rt->is_input && serverdata[5] >= 3) {
  1090. server_pos = rtmp_validate_digest(serverdata + 1, 772);
  1091. if (server_pos < 0)
  1092. return server_pos;
  1093. if (!server_pos) {
  1094. type = 1;
  1095. server_pos = rtmp_validate_digest(serverdata + 1, 8);
  1096. if (server_pos < 0)
  1097. return server_pos;
  1098. if (!server_pos) {
  1099. av_log(s, AV_LOG_ERROR, "Server response validating failed\n");
  1100. return AVERROR(EIO);
  1101. }
  1102. }
  1103. /* Generate SWFVerification token (SHA256 HMAC hash of decompressed SWF,
  1104. * key are the last 32 bytes of the server handshake. */
  1105. if (rt->swfsize) {
  1106. if ((ret = rtmp_calc_swf_verification(s, rt, serverdata + 1 +
  1107. RTMP_HANDSHAKE_PACKET_SIZE - 32)) < 0)
  1108. return ret;
  1109. }
  1110. ret = ff_rtmp_calc_digest(tosend + 1 + client_pos, 32, 0,
  1111. rtmp_server_key, sizeof(rtmp_server_key),
  1112. digest);
  1113. if (ret < 0)
  1114. return ret;
  1115. ret = ff_rtmp_calc_digest(clientdata, RTMP_HANDSHAKE_PACKET_SIZE - 32,
  1116. 0, digest, 32, signature);
  1117. if (ret < 0)
  1118. return ret;
  1119. if (CONFIG_FFRTMPCRYPT_PROTOCOL && rt->encrypted) {
  1120. /* Compute the shared secret key sent by the server and initialize
  1121. * the RC4 encryption. */
  1122. if ((ret = ff_rtmpe_compute_secret_key(rt->stream, serverdata + 1,
  1123. tosend + 1, type)) < 0)
  1124. return ret;
  1125. /* Encrypt the signature received by the server. */
  1126. ff_rtmpe_encrypt_sig(rt->stream, signature, digest, serverdata[0]);
  1127. }
  1128. if (memcmp(signature, clientdata + RTMP_HANDSHAKE_PACKET_SIZE - 32, 32)) {
  1129. av_log(s, AV_LOG_ERROR, "Signature mismatch\n");
  1130. return AVERROR(EIO);
  1131. }
  1132. for (i = 0; i < RTMP_HANDSHAKE_PACKET_SIZE; i++)
  1133. tosend[i] = av_lfg_get(&rnd) >> 24;
  1134. ret = ff_rtmp_calc_digest(serverdata + 1 + server_pos, 32, 0,
  1135. rtmp_player_key, sizeof(rtmp_player_key),
  1136. digest);
  1137. if (ret < 0)
  1138. return ret;
  1139. ret = ff_rtmp_calc_digest(tosend, RTMP_HANDSHAKE_PACKET_SIZE - 32, 0,
  1140. digest, 32,
  1141. tosend + RTMP_HANDSHAKE_PACKET_SIZE - 32);
  1142. if (ret < 0)
  1143. return ret;
  1144. if (CONFIG_FFRTMPCRYPT_PROTOCOL && rt->encrypted) {
  1145. /* Encrypt the signature to be send to the server. */
  1146. ff_rtmpe_encrypt_sig(rt->stream, tosend +
  1147. RTMP_HANDSHAKE_PACKET_SIZE - 32, digest,
  1148. serverdata[0]);
  1149. }
  1150. // write reply back to the server
  1151. if ((ret = ffurl_write(rt->stream, tosend,
  1152. RTMP_HANDSHAKE_PACKET_SIZE)) < 0)
  1153. return ret;
  1154. if (CONFIG_FFRTMPCRYPT_PROTOCOL && rt->encrypted) {
  1155. /* Set RC4 keys for encryption and update the keystreams. */
  1156. if ((ret = ff_rtmpe_update_keystream(rt->stream)) < 0)
  1157. return ret;
  1158. }
  1159. } else {
  1160. if (CONFIG_FFRTMPCRYPT_PROTOCOL && rt->encrypted) {
  1161. /* Compute the shared secret key sent by the server and initialize
  1162. * the RC4 encryption. */
  1163. if ((ret = ff_rtmpe_compute_secret_key(rt->stream, serverdata + 1,
  1164. tosend + 1, 1)) < 0)
  1165. return ret;
  1166. if (serverdata[0] == 9) {
  1167. /* Encrypt the signature received by the server. */
  1168. ff_rtmpe_encrypt_sig(rt->stream, signature, digest,
  1169. serverdata[0]);
  1170. }
  1171. }
  1172. if ((ret = ffurl_write(rt->stream, serverdata + 1,
  1173. RTMP_HANDSHAKE_PACKET_SIZE)) < 0)
  1174. return ret;
  1175. if (CONFIG_FFRTMPCRYPT_PROTOCOL && rt->encrypted) {
  1176. /* Set RC4 keys for encryption and update the keystreams. */
  1177. if ((ret = ff_rtmpe_update_keystream(rt->stream)) < 0)
  1178. return ret;
  1179. }
  1180. }
  1181. return 0;
  1182. }
  1183. static int rtmp_receive_hs_packet(RTMPContext* rt, uint32_t *first_int,
  1184. uint32_t *second_int, char *arraydata,
  1185. int size)
  1186. {
  1187. int inoutsize;
  1188. inoutsize = ffurl_read_complete(rt->stream, arraydata,
  1189. RTMP_HANDSHAKE_PACKET_SIZE);
  1190. if (inoutsize <= 0)
  1191. return AVERROR(EIO);
  1192. if (inoutsize != RTMP_HANDSHAKE_PACKET_SIZE) {
  1193. av_log(rt, AV_LOG_ERROR, "Erroneous Message size %d"
  1194. " not following standard\n", (int)inoutsize);
  1195. return AVERROR(EINVAL);
  1196. }
  1197. *first_int = AV_RB32(arraydata);
  1198. *second_int = AV_RB32(arraydata + 4);
  1199. return 0;
  1200. }
  1201. static int rtmp_send_hs_packet(RTMPContext* rt, uint32_t first_int,
  1202. uint32_t second_int, char *arraydata, int size)
  1203. {
  1204. int inoutsize;
  1205. AV_WB32(arraydata, first_int);
  1206. AV_WB32(arraydata + 4, second_int);
  1207. inoutsize = ffurl_write(rt->stream, arraydata,
  1208. RTMP_HANDSHAKE_PACKET_SIZE);
  1209. if (inoutsize != RTMP_HANDSHAKE_PACKET_SIZE) {
  1210. av_log(rt, AV_LOG_ERROR, "Unable to write answer\n");
  1211. return AVERROR(EIO);
  1212. }
  1213. return 0;
  1214. }
  1215. /**
  1216. * rtmp handshake server side
  1217. */
  1218. static int rtmp_server_handshake(URLContext *s, RTMPContext *rt)
  1219. {
  1220. uint8_t buffer[RTMP_HANDSHAKE_PACKET_SIZE];
  1221. uint32_t hs_epoch;
  1222. uint32_t hs_my_epoch;
  1223. uint8_t hs_c1[RTMP_HANDSHAKE_PACKET_SIZE];
  1224. uint8_t hs_s1[RTMP_HANDSHAKE_PACKET_SIZE];
  1225. uint32_t zeroes;
  1226. uint32_t temp = 0;
  1227. int randomidx = 0;
  1228. int inoutsize = 0;
  1229. int ret;
  1230. inoutsize = ffurl_read_complete(rt->stream, buffer, 1); // Receive C0
  1231. if (inoutsize <= 0) {
  1232. av_log(s, AV_LOG_ERROR, "Unable to read handshake\n");
  1233. return AVERROR(EIO);
  1234. }
  1235. // Check Version
  1236. if (buffer[0] != 3) {
  1237. av_log(s, AV_LOG_ERROR, "RTMP protocol version mismatch\n");
  1238. return AVERROR(EIO);
  1239. }
  1240. if (ffurl_write(rt->stream, buffer, 1) <= 0) { // Send S0
  1241. av_log(s, AV_LOG_ERROR,
  1242. "Unable to write answer - RTMP S0\n");
  1243. return AVERROR(EIO);
  1244. }
  1245. /* Receive C1 */
  1246. ret = rtmp_receive_hs_packet(rt, &hs_epoch, &zeroes, hs_c1,
  1247. RTMP_HANDSHAKE_PACKET_SIZE);
  1248. if (ret) {
  1249. av_log(s, AV_LOG_ERROR, "RTMP Handshake C1 Error\n");
  1250. return ret;
  1251. }
  1252. /* Send S1 */
  1253. /* By now same epoch will be sent */
  1254. hs_my_epoch = hs_epoch;
  1255. /* Generate random */
  1256. for (randomidx = 8; randomidx < (RTMP_HANDSHAKE_PACKET_SIZE);
  1257. randomidx += 4)
  1258. AV_WB32(hs_s1 + randomidx, av_get_random_seed());
  1259. ret = rtmp_send_hs_packet(rt, hs_my_epoch, 0, hs_s1,
  1260. RTMP_HANDSHAKE_PACKET_SIZE);
  1261. if (ret) {
  1262. av_log(s, AV_LOG_ERROR, "RTMP Handshake S1 Error\n");
  1263. return ret;
  1264. }
  1265. /* Send S2 */
  1266. ret = rtmp_send_hs_packet(rt, hs_epoch, 0, hs_c1,
  1267. RTMP_HANDSHAKE_PACKET_SIZE);
  1268. if (ret) {
  1269. av_log(s, AV_LOG_ERROR, "RTMP Handshake S2 Error\n");
  1270. return ret;
  1271. }
  1272. /* Receive C2 */
  1273. ret = rtmp_receive_hs_packet(rt, &temp, &zeroes, buffer,
  1274. RTMP_HANDSHAKE_PACKET_SIZE);
  1275. if (ret) {
  1276. av_log(s, AV_LOG_ERROR, "RTMP Handshake C2 Error\n");
  1277. return ret;
  1278. }
  1279. if (temp != hs_my_epoch)
  1280. av_log(s, AV_LOG_WARNING,
  1281. "Erroneous C2 Message epoch does not match up with C1 epoch\n");
  1282. if (memcmp(buffer + 8, hs_s1 + 8,
  1283. RTMP_HANDSHAKE_PACKET_SIZE - 8))
  1284. av_log(s, AV_LOG_WARNING,
  1285. "Erroneous C2 Message random does not match up\n");
  1286. return 0;
  1287. }
  1288. static int handle_chunk_size(URLContext *s, RTMPPacket *pkt)
  1289. {
  1290. RTMPContext *rt = s->priv_data;
  1291. int ret;
  1292. if (pkt->size < 4) {
  1293. av_log(s, AV_LOG_ERROR,
  1294. "Too short chunk size change packet (%d)\n",
  1295. pkt->size);
  1296. return AVERROR_INVALIDDATA;
  1297. }
  1298. if (!rt->is_input) {
  1299. /* Send the same chunk size change packet back to the server,
  1300. * setting the outgoing chunk size to the same as the incoming one. */
  1301. if ((ret = ff_rtmp_packet_write(rt->stream, pkt, rt->out_chunk_size,
  1302. &rt->prev_pkt[1], &rt->nb_prev_pkt[1])) < 0)
  1303. return ret;
  1304. rt->out_chunk_size = AV_RB32(pkt->data);
  1305. }
  1306. rt->in_chunk_size = AV_RB32(pkt->data);
  1307. if (rt->in_chunk_size <= 0) {
  1308. av_log(s, AV_LOG_ERROR, "Incorrect chunk size %d\n",
  1309. rt->in_chunk_size);
  1310. return AVERROR_INVALIDDATA;
  1311. }
  1312. av_log(s, AV_LOG_DEBUG, "New incoming chunk size = %d\n",
  1313. rt->in_chunk_size);
  1314. return 0;
  1315. }
  1316. static int handle_ping(URLContext *s, RTMPPacket *pkt)
  1317. {
  1318. RTMPContext *rt = s->priv_data;
  1319. int t, ret;
  1320. if (pkt->size < 2) {
  1321. av_log(s, AV_LOG_ERROR, "Too short ping packet (%d)\n",
  1322. pkt->size);
  1323. return AVERROR_INVALIDDATA;
  1324. }
  1325. t = AV_RB16(pkt->data);
  1326. if (t == 6) {
  1327. if ((ret = gen_pong(s, rt, pkt)) < 0)
  1328. return ret;
  1329. } else if (t == 26) {
  1330. if (rt->swfsize) {
  1331. if ((ret = gen_swf_verification(s, rt)) < 0)
  1332. return ret;
  1333. } else {
  1334. av_log(s, AV_LOG_WARNING, "Ignoring SWFVerification request.\n");
  1335. }
  1336. }
  1337. return 0;
  1338. }
  1339. static int handle_client_bw(URLContext *s, RTMPPacket *pkt)
  1340. {
  1341. RTMPContext *rt = s->priv_data;
  1342. if (pkt->size < 4) {
  1343. av_log(s, AV_LOG_ERROR,
  1344. "Client bandwidth report packet is less than 4 bytes long (%d)\n",
  1345. pkt->size);
  1346. return AVERROR_INVALIDDATA;
  1347. }
  1348. rt->client_report_size = AV_RB32(pkt->data);
  1349. if (rt->client_report_size <= 0) {
  1350. av_log(s, AV_LOG_ERROR, "Incorrect client bandwidth %d\n",
  1351. rt->client_report_size);
  1352. return AVERROR_INVALIDDATA;
  1353. }
  1354. av_log(s, AV_LOG_DEBUG, "Client bandwidth = %d\n", rt->client_report_size);
  1355. rt->client_report_size >>= 1;
  1356. return 0;
  1357. }
  1358. static int handle_server_bw(URLContext *s, RTMPPacket *pkt)
  1359. {
  1360. RTMPContext *rt = s->priv_data;
  1361. if (pkt->size < 4) {
  1362. av_log(s, AV_LOG_ERROR,
  1363. "Too short server bandwidth report packet (%d)\n",
  1364. pkt->size);
  1365. return AVERROR_INVALIDDATA;
  1366. }
  1367. rt->server_bw = AV_RB32(pkt->data);
  1368. if (rt->server_bw <= 0) {
  1369. av_log(s, AV_LOG_ERROR, "Incorrect server bandwidth %d\n",
  1370. rt->server_bw);
  1371. return AVERROR_INVALIDDATA;
  1372. }
  1373. av_log(s, AV_LOG_DEBUG, "Server bandwidth = %d\n", rt->server_bw);
  1374. return 0;
  1375. }
  1376. static int do_adobe_auth(RTMPContext *rt, const char *user, const char *salt,
  1377. const char *opaque, const char *challenge)
  1378. {
  1379. uint8_t hash[16];
  1380. char hashstr[AV_BASE64_SIZE(sizeof(hash))], challenge2[10];
  1381. struct AVMD5 *md5 = av_md5_alloc();
  1382. if (!md5)
  1383. return AVERROR(ENOMEM);
  1384. snprintf(challenge2, sizeof(challenge2), "%08x", av_get_random_seed());
  1385. av_md5_init(md5);
  1386. av_md5_update(md5, user, strlen(user));
  1387. av_md5_update(md5, salt, strlen(salt));
  1388. av_md5_update(md5, rt->password, strlen(rt->password));
  1389. av_md5_final(md5, hash);
  1390. av_base64_encode(hashstr, sizeof(hashstr), hash,
  1391. sizeof(hash));
  1392. av_md5_init(md5);
  1393. av_md5_update(md5, hashstr, strlen(hashstr));
  1394. if (opaque)
  1395. av_md5_update(md5, opaque, strlen(opaque));
  1396. else if (challenge)
  1397. av_md5_update(md5, challenge, strlen(challenge));
  1398. av_md5_update(md5, challenge2, strlen(challenge2));
  1399. av_md5_final(md5, hash);
  1400. av_base64_encode(hashstr, sizeof(hashstr), hash,
  1401. sizeof(hash));
  1402. snprintf(rt->auth_params, sizeof(rt->auth_params),
  1403. "?authmod=%s&user=%s&challenge=%s&response=%s",
  1404. "adobe", user, challenge2, hashstr);
  1405. if (opaque)
  1406. av_strlcatf(rt->auth_params, sizeof(rt->auth_params),
  1407. "&opaque=%s", opaque);
  1408. av_free(md5);
  1409. return 0;
  1410. }
  1411. static int do_llnw_auth(RTMPContext *rt, const char *user, const char *nonce)
  1412. {
  1413. uint8_t hash[16];
  1414. char hashstr1[33], hashstr2[33];
  1415. const char *realm = "live";
  1416. const char *method = "publish";
  1417. const char *qop = "auth";
  1418. const char *nc = "00000001";
  1419. char cnonce[10];
  1420. struct AVMD5 *md5 = av_md5_alloc();
  1421. if (!md5)
  1422. return AVERROR(ENOMEM);
  1423. snprintf(cnonce, sizeof(cnonce), "%08x", av_get_random_seed());
  1424. av_md5_init(md5);
  1425. av_md5_update(md5, user, strlen(user));
  1426. av_md5_update(md5, ":", 1);
  1427. av_md5_update(md5, realm, strlen(realm));
  1428. av_md5_update(md5, ":", 1);
  1429. av_md5_update(md5, rt->password, strlen(rt->password));
  1430. av_md5_final(md5, hash);
  1431. ff_data_to_hex(hashstr1, hash, 16, 1);
  1432. hashstr1[32] = '\0';
  1433. av_md5_init(md5);
  1434. av_md5_update(md5, method, strlen(method));
  1435. av_md5_update(md5, ":/", 2);
  1436. av_md5_update(md5, rt->app, strlen(rt->app));
  1437. if (!strchr(rt->app, '/'))
  1438. av_md5_update(md5, "/_definst_", strlen("/_definst_"));
  1439. av_md5_final(md5, hash);
  1440. ff_data_to_hex(hashstr2, hash, 16, 1);
  1441. hashstr2[32] = '\0';
  1442. av_md5_init(md5);
  1443. av_md5_update(md5, hashstr1, strlen(hashstr1));
  1444. av_md5_update(md5, ":", 1);
  1445. if (nonce)
  1446. av_md5_update(md5, nonce, strlen(nonce));
  1447. av_md5_update(md5, ":", 1);
  1448. av_md5_update(md5, nc, strlen(nc));
  1449. av_md5_update(md5, ":", 1);
  1450. av_md5_update(md5, cnonce, strlen(cnonce));
  1451. av_md5_update(md5, ":", 1);
  1452. av_md5_update(md5, qop, strlen(qop));
  1453. av_md5_update(md5, ":", 1);
  1454. av_md5_update(md5, hashstr2, strlen(hashstr2));
  1455. av_md5_final(md5, hash);
  1456. ff_data_to_hex(hashstr1, hash, 16, 1);
  1457. snprintf(rt->auth_params, sizeof(rt->auth_params),
  1458. "?authmod=%s&user=%s&nonce=%s&cnonce=%s&nc=%s&response=%s",
  1459. "llnw", user, nonce, cnonce, nc, hashstr1);
  1460. av_free(md5);
  1461. return 0;
  1462. }
  1463. static int handle_connect_error(URLContext *s, const char *desc)
  1464. {
  1465. RTMPContext *rt = s->priv_data;
  1466. char buf[300], *ptr, authmod[15];
  1467. int i = 0, ret = 0;
  1468. const char *user = "", *salt = "", *opaque = NULL,
  1469. *challenge = NULL, *cptr = NULL, *nonce = NULL;
  1470. if (!(cptr = strstr(desc, "authmod=adobe")) &&
  1471. !(cptr = strstr(desc, "authmod=llnw"))) {
  1472. av_log(s, AV_LOG_ERROR,
  1473. "Unknown connect error (unsupported authentication method?)\n");
  1474. return AVERROR_UNKNOWN;
  1475. }
  1476. cptr += strlen("authmod=");
  1477. while (*cptr && *cptr != ' ' && i < sizeof(authmod) - 1)
  1478. authmod[i++] = *cptr++;
  1479. authmod[i] = '\0';
  1480. if (!rt->username[0] || !rt->password[0]) {
  1481. av_log(s, AV_LOG_ERROR, "No credentials set\n");
  1482. return AVERROR_UNKNOWN;
  1483. }
  1484. if (strstr(desc, "?reason=authfailed")) {
  1485. av_log(s, AV_LOG_ERROR, "Incorrect username/password\n");
  1486. return AVERROR_UNKNOWN;
  1487. } else if (strstr(desc, "?reason=nosuchuser")) {
  1488. av_log(s, AV_LOG_ERROR, "Incorrect username\n");
  1489. return AVERROR_UNKNOWN;
  1490. }
  1491. if (rt->auth_tried) {
  1492. av_log(s, AV_LOG_ERROR, "Authentication failed\n");
  1493. return AVERROR_UNKNOWN;
  1494. }
  1495. rt->auth_params[0] = '\0';
  1496. if (strstr(desc, "code=403 need auth")) {
  1497. snprintf(rt->auth_params, sizeof(rt->auth_params),
  1498. "?authmod=%s&user=%s", authmod, rt->username);
  1499. return 0;
  1500. }
  1501. if (!(cptr = strstr(desc, "?reason=needauth"))) {
  1502. av_log(s, AV_LOG_ERROR, "No auth parameters found\n");
  1503. return AVERROR_UNKNOWN;
  1504. }
  1505. av_strlcpy(buf, cptr + 1, sizeof(buf));
  1506. ptr = buf;
  1507. while (ptr) {
  1508. char *next = strchr(ptr, '&');
  1509. char *value = strchr(ptr, '=');
  1510. if (next)
  1511. *next++ = '\0';
  1512. if (value) {
  1513. *value++ = '\0';
  1514. if (!strcmp(ptr, "user")) {
  1515. user = value;
  1516. } else if (!strcmp(ptr, "salt")) {
  1517. salt = value;
  1518. } else if (!strcmp(ptr, "opaque")) {
  1519. opaque = value;
  1520. } else if (!strcmp(ptr, "challenge")) {
  1521. challenge = value;
  1522. } else if (!strcmp(ptr, "nonce")) {
  1523. nonce = value;
  1524. } else {
  1525. av_log(s, AV_LOG_INFO, "Ignoring unsupported var %s\n", ptr);
  1526. }
  1527. } else {
  1528. av_log(s, AV_LOG_WARNING, "Variable %s has NULL value\n", ptr);
  1529. }
  1530. ptr = next;
  1531. }
  1532. if (!strcmp(authmod, "adobe")) {
  1533. if ((ret = do_adobe_auth(rt, user, salt, opaque, challenge)) < 0)
  1534. return ret;
  1535. } else {
  1536. if ((ret = do_llnw_auth(rt, user, nonce)) < 0)
  1537. return ret;
  1538. }
  1539. rt->auth_tried = 1;
  1540. return 0;
  1541. }
  1542. static int handle_invoke_error(URLContext *s, RTMPPacket *pkt)
  1543. {
  1544. RTMPContext *rt = s->priv_data;
  1545. const uint8_t *data_end = pkt->data + pkt->size;
  1546. char *tracked_method = NULL;
  1547. int level = AV_LOG_ERROR;
  1548. uint8_t tmpstr[256];
  1549. int ret;
  1550. if ((ret = find_tracked_method(s, pkt, 9, &tracked_method)) < 0)
  1551. return ret;
  1552. if (!ff_amf_get_field_value(pkt->data + 9, data_end,
  1553. "description", tmpstr, sizeof(tmpstr))) {
  1554. if (tracked_method && (!strcmp(tracked_method, "_checkbw") ||
  1555. !strcmp(tracked_method, "releaseStream") ||
  1556. !strcmp(tracked_method, "FCSubscribe") ||
  1557. !strcmp(tracked_method, "FCPublish"))) {
  1558. /* Gracefully ignore Adobe-specific historical artifact errors. */
  1559. level = AV_LOG_WARNING;
  1560. ret = 0;
  1561. } else if (tracked_method && !strcmp(tracked_method, "getStreamLength")) {
  1562. level = rt->live ? AV_LOG_DEBUG : AV_LOG_WARNING;
  1563. ret = 0;
  1564. } else if (tracked_method && !strcmp(tracked_method, "connect")) {
  1565. ret = handle_connect_error(s, tmpstr);
  1566. if (!ret) {
  1567. rt->do_reconnect = 1;
  1568. level = AV_LOG_VERBOSE;
  1569. }
  1570. } else
  1571. ret = AVERROR_UNKNOWN;
  1572. av_log(s, level, "Server error: %s\n", tmpstr);
  1573. }
  1574. av_free(tracked_method);
  1575. return ret;
  1576. }
  1577. static int write_begin(URLContext *s)
  1578. {
  1579. RTMPContext *rt = s->priv_data;
  1580. PutByteContext pbc;
  1581. RTMPPacket spkt = { 0 };
  1582. int ret;
  1583. // Send Stream Begin 1
  1584. if ((ret = ff_rtmp_packet_create(&spkt, RTMP_NETWORK_CHANNEL,
  1585. RTMP_PT_PING, 0, 6)) < 0) {
  1586. av_log(s, AV_LOG_ERROR, "Unable to create response packet\n");
  1587. return ret;
  1588. }
  1589. bytestream2_init_writer(&pbc, spkt.data, spkt.size);
  1590. bytestream2_put_be16(&pbc, 0); // 0 -> Stream Begin
  1591. bytestream2_put_be32(&pbc, rt->nb_streamid);
  1592. ret = ff_rtmp_packet_write(rt->stream, &spkt, rt->out_chunk_size,
  1593. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  1594. ff_rtmp_packet_destroy(&spkt);
  1595. return ret;
  1596. }
  1597. static int write_status(URLContext *s, RTMPPacket *pkt,
  1598. const char *status, const char *filename)
  1599. {
  1600. RTMPContext *rt = s->priv_data;
  1601. RTMPPacket spkt = { 0 };
  1602. char statusmsg[128];
  1603. uint8_t *pp;
  1604. int ret;
  1605. if ((ret = ff_rtmp_packet_create(&spkt, RTMP_SYSTEM_CHANNEL,
  1606. RTMP_PT_INVOKE, 0,
  1607. RTMP_PKTDATA_DEFAULT_SIZE)) < 0) {
  1608. av_log(s, AV_LOG_ERROR, "Unable to create response packet\n");
  1609. return ret;
  1610. }
  1611. pp = spkt.data;
  1612. spkt.extra = pkt->extra;
  1613. ff_amf_write_string(&pp, "onStatus");
  1614. ff_amf_write_number(&pp, 0);
  1615. ff_amf_write_null(&pp);
  1616. ff_amf_write_object_start(&pp);
  1617. ff_amf_write_field_name(&pp, "level");
  1618. ff_amf_write_string(&pp, "status");
  1619. ff_amf_write_field_name(&pp, "code");
  1620. ff_amf_write_string(&pp, status);
  1621. ff_amf_write_field_name(&pp, "description");
  1622. snprintf(statusmsg, sizeof(statusmsg),
  1623. "%s is now published", filename);
  1624. ff_amf_write_string(&pp, statusmsg);
  1625. ff_amf_write_field_name(&pp, "details");
  1626. ff_amf_write_string(&pp, filename);
  1627. ff_amf_write_object_end(&pp);
  1628. spkt.size = pp - spkt.data;
  1629. ret = ff_rtmp_packet_write(rt->stream, &spkt, rt->out_chunk_size,
  1630. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  1631. ff_rtmp_packet_destroy(&spkt);
  1632. return ret;
  1633. }
  1634. static int send_invoke_response(URLContext *s, RTMPPacket *pkt)
  1635. {
  1636. RTMPContext *rt = s->priv_data;
  1637. double seqnum;
  1638. char filename[128];
  1639. char command[64];
  1640. int stringlen;
  1641. char *pchar;
  1642. const uint8_t *p = pkt->data;
  1643. uint8_t *pp = NULL;
  1644. RTMPPacket spkt = { 0 };
  1645. GetByteContext gbc;
  1646. int ret;
  1647. bytestream2_init(&gbc, p, pkt->size);
  1648. if (ff_amf_read_string(&gbc, command, sizeof(command),
  1649. &stringlen)) {
  1650. av_log(s, AV_LOG_ERROR, "Error in PT_INVOKE\n");
  1651. return AVERROR_INVALIDDATA;
  1652. }
  1653. ret = ff_amf_read_number(&gbc, &seqnum);
  1654. if (ret)
  1655. return ret;
  1656. ret = ff_amf_read_null(&gbc);
  1657. if (ret)
  1658. return ret;
  1659. if (!strcmp(command, "FCPublish") ||
  1660. !strcmp(command, "publish")) {
  1661. ret = ff_amf_read_string(&gbc, filename,
  1662. sizeof(filename), &stringlen);
  1663. if (ret) {
  1664. if (ret == AVERROR(EINVAL))
  1665. av_log(s, AV_LOG_ERROR, "Unable to parse stream name - name too long?\n");
  1666. else
  1667. av_log(s, AV_LOG_ERROR, "Unable to parse stream name\n");
  1668. return ret;
  1669. }
  1670. // check with url
  1671. if (s->filename) {
  1672. pchar = strrchr(s->filename, '/');
  1673. if (!pchar) {
  1674. av_log(s, AV_LOG_WARNING,
  1675. "Unable to find / in url %s, bad format\n",
  1676. s->filename);
  1677. pchar = s->filename;
  1678. }
  1679. pchar++;
  1680. if (strcmp(pchar, filename))
  1681. av_log(s, AV_LOG_WARNING, "Unexpected stream %s, expecting"
  1682. " %s\n", filename, pchar);
  1683. }
  1684. rt->state = STATE_RECEIVING;
  1685. }
  1686. if (!strcmp(command, "FCPublish")) {
  1687. if ((ret = ff_rtmp_packet_create(&spkt, RTMP_SYSTEM_CHANNEL,
  1688. RTMP_PT_INVOKE, 0,
  1689. RTMP_PKTDATA_DEFAULT_SIZE)) < 0) {
  1690. av_log(s, AV_LOG_ERROR, "Unable to create response packet\n");
  1691. return ret;
  1692. }
  1693. pp = spkt.data;
  1694. ff_amf_write_string(&pp, "onFCPublish");
  1695. } else if (!strcmp(command, "publish")) {
  1696. ret = write_begin(s);
  1697. if (ret < 0)
  1698. return ret;
  1699. // Send onStatus(NetStream.Publish.Start)
  1700. return write_status(s, pkt, "NetStream.Publish.Start",
  1701. filename);
  1702. } else if (!strcmp(command, "play")) {
  1703. ret = write_begin(s);
  1704. if (ret < 0)
  1705. return ret;
  1706. rt->state = STATE_SENDING;
  1707. return write_status(s, pkt, "NetStream.Play.Start",
  1708. filename);
  1709. } else {
  1710. if ((ret = ff_rtmp_packet_create(&spkt, RTMP_SYSTEM_CHANNEL,
  1711. RTMP_PT_INVOKE, 0,
  1712. RTMP_PKTDATA_DEFAULT_SIZE)) < 0) {
  1713. av_log(s, AV_LOG_ERROR, "Unable to create response packet\n");
  1714. return ret;
  1715. }
  1716. pp = spkt.data;
  1717. ff_amf_write_string(&pp, "_result");
  1718. ff_amf_write_number(&pp, seqnum);
  1719. ff_amf_write_null(&pp);
  1720. if (!strcmp(command, "createStream")) {
  1721. rt->nb_streamid++;
  1722. if (rt->nb_streamid == 0 || rt->nb_streamid == 2)
  1723. rt->nb_streamid++; /* Values 0 and 2 are reserved */
  1724. ff_amf_write_number(&pp, rt->nb_streamid);
  1725. /* By now we don't control which streams are removed in
  1726. * deleteStream. There is no stream creation control
  1727. * if a client creates more than 2^32 - 2 streams. */
  1728. }
  1729. }
  1730. spkt.size = pp - spkt.data;
  1731. ret = ff_rtmp_packet_write(rt->stream, &spkt, rt->out_chunk_size,
  1732. &rt->prev_pkt[1], &rt->nb_prev_pkt[1]);
  1733. ff_rtmp_packet_destroy(&spkt);
  1734. return ret;
  1735. }
  1736. /**
  1737. * Read the AMF_NUMBER response ("_result") to a function call
  1738. * (e.g. createStream()). This response should be made up of the AMF_STRING
  1739. * "result", a NULL object and then the response encoded as AMF_NUMBER. On a
  1740. * successful response, we will return set the value to number (otherwise number
  1741. * will not be changed).
  1742. *
  1743. * @return 0 if reading the value succeeds, negative value otherwise
  1744. */
  1745. static int read_number_result(RTMPPacket *pkt, double *number)
  1746. {
  1747. // We only need to fit "_result" in this.
  1748. uint8_t strbuffer[8];
  1749. int stringlen;
  1750. double numbuffer;
  1751. GetByteContext gbc;
  1752. bytestream2_init(&gbc, pkt->data, pkt->size);
  1753. // Value 1/4: "_result" as AMF_STRING
  1754. if (ff_amf_read_string(&gbc, strbuffer, sizeof(strbuffer), &stringlen))
  1755. return AVERROR_INVALIDDATA;
  1756. if (strcmp(strbuffer, "_result"))
  1757. return AVERROR_INVALIDDATA;
  1758. // Value 2/4: The callee reference number
  1759. if (ff_amf_read_number(&gbc, &numbuffer))
  1760. return AVERROR_INVALIDDATA;
  1761. // Value 3/4: Null
  1762. if (ff_amf_read_null(&gbc))
  1763. return AVERROR_INVALIDDATA;
  1764. // Value 4/4: The response as AMF_NUMBER
  1765. if (ff_amf_read_number(&gbc, &numbuffer))
  1766. return AVERROR_INVALIDDATA;
  1767. else
  1768. *number = numbuffer;
  1769. return 0;
  1770. }
  1771. static int handle_invoke_result(URLContext *s, RTMPPacket *pkt)
  1772. {
  1773. RTMPContext *rt = s->priv_data;
  1774. char *tracked_method = NULL;
  1775. int ret = 0;
  1776. if ((ret = find_tracked_method(s, pkt, 10, &tracked_method)) < 0)
  1777. return ret;
  1778. if (!tracked_method) {
  1779. /* Ignore this reply when the current method is not tracked. */
  1780. return ret;
  1781. }
  1782. if (!strcmp(tracked_method, "connect")) {
  1783. if (!rt->is_input) {
  1784. if ((ret = gen_release_stream(s, rt)) < 0)
  1785. goto fail;
  1786. if ((ret = gen_fcpublish_stream(s, rt)) < 0)
  1787. goto fail;
  1788. } else {
  1789. if ((ret = gen_server_bw(s, rt)) < 0)
  1790. goto fail;
  1791. }
  1792. if ((ret = gen_create_stream(s, rt)) < 0)
  1793. goto fail;
  1794. if (rt->is_input) {
  1795. /* Send the FCSubscribe command when the name of live
  1796. * stream is defined by the user or if it's a live stream. */
  1797. if (rt->subscribe) {
  1798. if ((ret = gen_fcsubscribe_stream(s, rt, rt->subscribe)) < 0)
  1799. goto fail;
  1800. } else if (rt->live == -1) {
  1801. if ((ret = gen_fcsubscribe_stream(s, rt, rt->playpath)) < 0)
  1802. goto fail;
  1803. }
  1804. }
  1805. } else if (!strcmp(tracked_method, "createStream")) {
  1806. double stream_id;
  1807. if (read_number_result(pkt, &stream_id)) {
  1808. av_log(s, AV_LOG_WARNING, "Unexpected reply on connect()\n");
  1809. } else {
  1810. rt->stream_id = stream_id;
  1811. }
  1812. if (!rt->is_input) {
  1813. if ((ret = gen_publish(s, rt)) < 0)
  1814. goto fail;
  1815. } else {
  1816. if (rt->live != -1) {
  1817. if ((ret = gen_get_stream_length(s, rt)) < 0)
  1818. goto fail;
  1819. }
  1820. if ((ret = gen_play(s, rt)) < 0)
  1821. goto fail;
  1822. if ((ret = gen_buffer_time(s, rt)) < 0)
  1823. goto fail;
  1824. }
  1825. } else if (!strcmp(tracked_method, "getStreamLength")) {
  1826. if (read_number_result(pkt, &rt->duration)) {
  1827. av_log(s, AV_LOG_WARNING, "Unexpected reply on getStreamLength()\n");
  1828. }
  1829. }
  1830. fail:
  1831. av_free(tracked_method);
  1832. return ret;
  1833. }
  1834. static int handle_invoke_status(URLContext *s, RTMPPacket *pkt)
  1835. {
  1836. RTMPContext *rt = s->priv_data;
  1837. const uint8_t *data_end = pkt->data + pkt->size;
  1838. const uint8_t *ptr = pkt->data + RTMP_HEADER;
  1839. uint8_t tmpstr[256];
  1840. int i, t;
  1841. for (i = 0; i < 2; i++) {
  1842. t = ff_amf_tag_size(ptr, data_end);
  1843. if (t < 0)
  1844. return 1;
  1845. ptr += t;
  1846. }
  1847. t = ff_amf_get_field_value(ptr, data_end, "level", tmpstr, sizeof(tmpstr));
  1848. if (!t && !strcmp(tmpstr, "error")) {
  1849. t = ff_amf_get_field_value(ptr, data_end,
  1850. "description", tmpstr, sizeof(tmpstr));
  1851. if (t || !tmpstr[0])
  1852. t = ff_amf_get_field_value(ptr, data_end, "code",
  1853. tmpstr, sizeof(tmpstr));
  1854. if (!t)
  1855. av_log(s, AV_LOG_ERROR, "Server error: %s\n", tmpstr);
  1856. return -1;
  1857. }
  1858. t = ff_amf_get_field_value(ptr, data_end, "code", tmpstr, sizeof(tmpstr));
  1859. if (!t && !strcmp(tmpstr, "NetStream.Play.Start")) rt->state = STATE_PLAYING;
  1860. if (!t && !strcmp(tmpstr, "NetStream.Play.Stop")) rt->state = STATE_STOPPED;
  1861. if (!t && !strcmp(tmpstr, "NetStream.Play.UnpublishNotify")) rt->state = STATE_STOPPED;
  1862. if (!t && !strcmp(tmpstr, "NetStream.Publish.Start")) rt->state = STATE_PUBLISHING;
  1863. if (!t && !strcmp(tmpstr, "NetStream.Seek.Notify")) rt->state = STATE_PLAYING;
  1864. return 0;
  1865. }
  1866. static int handle_invoke(URLContext *s, RTMPPacket *pkt)
  1867. {
  1868. RTMPContext *rt = s->priv_data;
  1869. int ret = 0;
  1870. //TODO: check for the messages sent for wrong state?
  1871. if (ff_amf_match_string(pkt->data, pkt->size, "_error")) {
  1872. if ((ret = handle_invoke_error(s, pkt)) < 0)
  1873. return ret;
  1874. } else if (ff_amf_match_string(pkt->data, pkt->size, "_result")) {
  1875. if ((ret = handle_invoke_result(s, pkt)) < 0)
  1876. return ret;
  1877. } else if (ff_amf_match_string(pkt->data, pkt->size, "onStatus")) {
  1878. if ((ret = handle_invoke_status(s, pkt)) < 0)
  1879. return ret;
  1880. } else if (ff_amf_match_string(pkt->data, pkt->size, "onBWDone")) {
  1881. if ((ret = gen_check_bw(s, rt)) < 0)
  1882. return ret;
  1883. } else if (ff_amf_match_string(pkt->data, pkt->size, "releaseStream") ||
  1884. ff_amf_match_string(pkt->data, pkt->size, "FCPublish") ||
  1885. ff_amf_match_string(pkt->data, pkt->size, "publish") ||
  1886. ff_amf_match_string(pkt->data, pkt->size, "play") ||
  1887. ff_amf_match_string(pkt->data, pkt->size, "_checkbw") ||
  1888. ff_amf_match_string(pkt->data, pkt->size, "createStream")) {
  1889. if ((ret = send_invoke_response(s, pkt)) < 0)
  1890. return ret;
  1891. }
  1892. return ret;
  1893. }
  1894. static int update_offset(RTMPContext *rt, int size)
  1895. {
  1896. int old_flv_size;
  1897. // generate packet header and put data into buffer for FLV demuxer
  1898. if (rt->flv_off < rt->flv_size) {
  1899. // There is old unread data in the buffer, thus append at the end
  1900. old_flv_size = rt->flv_size;
  1901. rt->flv_size += size;
  1902. } else {
  1903. // All data has been read, write the new data at the start of the buffer
  1904. old_flv_size = 0;
  1905. rt->flv_size = size;
  1906. rt->flv_off = 0;
  1907. }
  1908. return old_flv_size;
  1909. }
  1910. static int append_flv_data(RTMPContext *rt, RTMPPacket *pkt, int skip)
  1911. {
  1912. int old_flv_size, ret;
  1913. PutByteContext pbc;
  1914. const uint8_t *data = pkt->data + skip;
  1915. const int size = pkt->size - skip;
  1916. uint32_t ts = pkt->timestamp;
  1917. if (pkt->type == RTMP_PT_AUDIO) {
  1918. rt->has_audio = 1;
  1919. } else if (pkt->type == RTMP_PT_VIDEO) {
  1920. rt->has_video = 1;
  1921. }
  1922. old_flv_size = update_offset(rt, size + 15);
  1923. if ((ret = av_reallocp(&rt->flv_data, rt->flv_size)) < 0) {
  1924. rt->flv_size = rt->flv_off = 0;
  1925. return ret;
  1926. }
  1927. bytestream2_init_writer(&pbc, rt->flv_data, rt->flv_size);
  1928. bytestream2_skip_p(&pbc, old_flv_size);
  1929. bytestream2_put_byte(&pbc, pkt->type);
  1930. bytestream2_put_be24(&pbc, size);
  1931. bytestream2_put_be24(&pbc, ts);
  1932. bytestream2_put_byte(&pbc, ts >> 24);
  1933. bytestream2_put_be24(&pbc, 0);
  1934. bytestream2_put_buffer(&pbc, data, size);
  1935. bytestream2_put_be32(&pbc, size + RTMP_HEADER);
  1936. return 0;
  1937. }
  1938. static int handle_notify(URLContext *s, RTMPPacket *pkt)
  1939. {
  1940. RTMPContext *rt = s->priv_data;
  1941. uint8_t commandbuffer[64];
  1942. char statusmsg[128];
  1943. int stringlen, ret, skip = 0;
  1944. GetByteContext gbc;
  1945. bytestream2_init(&gbc, pkt->data, pkt->size);
  1946. if (ff_amf_read_string(&gbc, commandbuffer, sizeof(commandbuffer),
  1947. &stringlen))
  1948. return AVERROR_INVALIDDATA;
  1949. if (!strcmp(commandbuffer, "onMetaData")) {
  1950. // metadata properties should be stored in a mixed array
  1951. if (bytestream2_get_byte(&gbc) == AMF_DATA_TYPE_MIXEDARRAY) {
  1952. // We have found a metaData Array so flv can determine the streams
  1953. // from this.
  1954. rt->received_metadata = 1;
  1955. // skip 32-bit max array index
  1956. bytestream2_skip(&gbc, 4);
  1957. while (bytestream2_get_bytes_left(&gbc) > 3) {
  1958. if (ff_amf_get_string(&gbc, statusmsg, sizeof(statusmsg),
  1959. &stringlen))
  1960. return AVERROR_INVALIDDATA;
  1961. // We do not care about the content of the property (yet).
  1962. stringlen = ff_amf_tag_size(gbc.buffer, gbc.buffer_end);
  1963. if (stringlen < 0)
  1964. return AVERROR_INVALIDDATA;
  1965. bytestream2_skip(&gbc, stringlen);
  1966. // The presence of the following properties indicates that the
  1967. // respective streams are present.
  1968. if (!strcmp(statusmsg, "videocodecid")) {
  1969. rt->has_video = 1;
  1970. }
  1971. if (!strcmp(statusmsg, "audiocodecid")) {
  1972. rt->has_audio = 1;
  1973. }
  1974. }
  1975. if (bytestream2_get_be24(&gbc) != AMF_END_OF_OBJECT)
  1976. return AVERROR_INVALIDDATA;
  1977. }
  1978. }
  1979. // Skip the @setDataFrame string and validate it is a notification
  1980. if (!strcmp(commandbuffer, "@setDataFrame")) {
  1981. skip = gbc.buffer - pkt->data;
  1982. ret = ff_amf_read_string(&gbc, statusmsg,
  1983. sizeof(statusmsg), &stringlen);
  1984. if (ret < 0)
  1985. return AVERROR_INVALIDDATA;
  1986. }
  1987. return append_flv_data(rt, pkt, skip);
  1988. }
  1989. /**
  1990. * Parse received packet and possibly perform some action depending on
  1991. * the packet contents.
  1992. * @return 0 for no errors, negative values for serious errors which prevent
  1993. * further communications, positive values for uncritical errors
  1994. */
  1995. static int rtmp_parse_result(URLContext *s, RTMPContext *rt, RTMPPacket *pkt)
  1996. {
  1997. int ret;
  1998. #ifdef DEBUG
  1999. ff_rtmp_packet_dump(s, pkt);
  2000. #endif
  2001. switch (pkt->type) {
  2002. case RTMP_PT_BYTES_READ:
  2003. av_log(s, AV_LOG_TRACE, "received bytes read report\n");
  2004. break;
  2005. case RTMP_PT_CHUNK_SIZE:
  2006. if ((ret = handle_chunk_size(s, pkt)) < 0)
  2007. return ret;
  2008. break;
  2009. case RTMP_PT_PING:
  2010. if ((ret = handle_ping(s, pkt)) < 0)
  2011. return ret;
  2012. break;
  2013. case RTMP_PT_CLIENT_BW:
  2014. if ((ret = handle_client_bw(s, pkt)) < 0)
  2015. return ret;
  2016. break;
  2017. case RTMP_PT_SERVER_BW:
  2018. if ((ret = handle_server_bw(s, pkt)) < 0)
  2019. return ret;
  2020. break;
  2021. case RTMP_PT_INVOKE:
  2022. if ((ret = handle_invoke(s, pkt)) < 0)
  2023. return ret;
  2024. break;
  2025. case RTMP_PT_VIDEO:
  2026. case RTMP_PT_AUDIO:
  2027. case RTMP_PT_METADATA:
  2028. case RTMP_PT_NOTIFY:
  2029. /* Audio, Video and Metadata packets are parsed in get_packet() */
  2030. break;
  2031. default:
  2032. av_log(s, AV_LOG_VERBOSE, "Unknown packet type received 0x%02X\n", pkt->type);
  2033. break;
  2034. }
  2035. return 0;
  2036. }
  2037. static int handle_metadata(RTMPContext *rt, RTMPPacket *pkt)
  2038. {
  2039. int ret, old_flv_size, type;
  2040. const uint8_t *next;
  2041. uint8_t *p;
  2042. uint32_t size;
  2043. uint32_t ts, cts, pts = 0;
  2044. old_flv_size = update_offset(rt, pkt->size);
  2045. if ((ret = av_reallocp(&rt->flv_data, rt->flv_size)) < 0) {
  2046. rt->flv_size = rt->flv_off = 0;
  2047. return ret;
  2048. }
  2049. next = pkt->data;
  2050. p = rt->flv_data + old_flv_size;
  2051. /* copy data while rewriting timestamps */
  2052. ts = pkt->timestamp;
  2053. while (next - pkt->data < pkt->size - RTMP_HEADER) {
  2054. type = bytestream_get_byte(&next);
  2055. size = bytestream_get_be24(&next);
  2056. cts = bytestream_get_be24(&next);
  2057. cts |= bytestream_get_byte(&next) << 24;
  2058. if (!pts)
  2059. pts = cts;
  2060. ts += cts - pts;
  2061. pts = cts;
  2062. if (size + 3 + 4 > pkt->data + pkt->size - next)
  2063. break;
  2064. bytestream_put_byte(&p, type);
  2065. bytestream_put_be24(&p, size);
  2066. bytestream_put_be24(&p, ts);
  2067. bytestream_put_byte(&p, ts >> 24);
  2068. memcpy(p, next, size + 3 + 4);
  2069. p += size + 3;
  2070. bytestream_put_be32(&p, size + RTMP_HEADER);
  2071. next += size + 3 + 4;
  2072. }
  2073. if (p != rt->flv_data + rt->flv_size) {
  2074. av_log(NULL, AV_LOG_WARNING, "Incomplete flv packets in "
  2075. "RTMP_PT_METADATA packet\n");
  2076. rt->flv_size = p - rt->flv_data;
  2077. }
  2078. return 0;
  2079. }
  2080. /**
  2081. * Interact with the server by receiving and sending RTMP packets until
  2082. * there is some significant data (media data or expected status notification).
  2083. *
  2084. * @param s reading context
  2085. * @param for_header non-zero value tells function to work until it
  2086. * gets notification from the server that playing has been started,
  2087. * otherwise function will work until some media data is received (or
  2088. * an error happens)
  2089. * @return 0 for successful operation, negative value in case of error
  2090. */
  2091. static int get_packet(URLContext *s, int for_header)
  2092. {
  2093. RTMPContext *rt = s->priv_data;
  2094. int ret;
  2095. if (rt->state == STATE_STOPPED)
  2096. return AVERROR_EOF;
  2097. for (;;) {
  2098. RTMPPacket rpkt = { 0 };
  2099. if ((ret = ff_rtmp_packet_read(rt->stream, &rpkt,
  2100. rt->in_chunk_size, &rt->prev_pkt[0],
  2101. &rt->nb_prev_pkt[0])) <= 0) {
  2102. if (ret == 0) {
  2103. return AVERROR(EAGAIN);
  2104. } else {
  2105. return AVERROR(EIO);
  2106. }
  2107. }
  2108. // Track timestamp for later use
  2109. rt->last_timestamp = rpkt.timestamp;
  2110. rt->bytes_read += ret;
  2111. if (rt->bytes_read - rt->last_bytes_read > rt->client_report_size) {
  2112. av_log(s, AV_LOG_DEBUG, "Sending bytes read report\n");
  2113. if ((ret = gen_bytes_read(s, rt, rpkt.timestamp + 1)) < 0)
  2114. return ret;
  2115. rt->last_bytes_read = rt->bytes_read;
  2116. }
  2117. ret = rtmp_parse_result(s, rt, &rpkt);
  2118. // At this point we must check if we are in the seek state and continue
  2119. // with the next packet. handle_invoke will get us out of this state
  2120. // when the right message is encountered
  2121. if (rt->state == STATE_SEEKING) {
  2122. ff_rtmp_packet_destroy(&rpkt);
  2123. // We continue, let the natural flow of things happen:
  2124. // AVERROR(EAGAIN) or handle_invoke gets us out of here
  2125. continue;
  2126. }
  2127. if (ret < 0) {//serious error in current packet
  2128. ff_rtmp_packet_destroy(&rpkt);
  2129. return ret;
  2130. }
  2131. if (rt->do_reconnect && for_header) {
  2132. ff_rtmp_packet_destroy(&rpkt);
  2133. return 0;
  2134. }
  2135. if (rt->state == STATE_STOPPED) {
  2136. ff_rtmp_packet_destroy(&rpkt);
  2137. return AVERROR_EOF;
  2138. }
  2139. if (for_header && (rt->state == STATE_PLAYING ||
  2140. rt->state == STATE_PUBLISHING ||
  2141. rt->state == STATE_SENDING ||
  2142. rt->state == STATE_RECEIVING)) {
  2143. ff_rtmp_packet_destroy(&rpkt);
  2144. return 0;
  2145. }
  2146. if (!rpkt.size || !rt->is_input) {
  2147. ff_rtmp_packet_destroy(&rpkt);
  2148. continue;
  2149. }
  2150. if (rpkt.type == RTMP_PT_VIDEO || rpkt.type == RTMP_PT_AUDIO) {
  2151. ret = append_flv_data(rt, &rpkt, 0);
  2152. ff_rtmp_packet_destroy(&rpkt);
  2153. return ret;
  2154. } else if (rpkt.type == RTMP_PT_NOTIFY) {
  2155. ret = handle_notify(s, &rpkt);
  2156. ff_rtmp_packet_destroy(&rpkt);
  2157. return ret;
  2158. } else if (rpkt.type == RTMP_PT_METADATA) {
  2159. ret = handle_metadata(rt, &rpkt);
  2160. ff_rtmp_packet_destroy(&rpkt);
  2161. return 0;
  2162. }
  2163. ff_rtmp_packet_destroy(&rpkt);
  2164. }
  2165. }
  2166. static int rtmp_close(URLContext *h)
  2167. {
  2168. RTMPContext *rt = h->priv_data;
  2169. int ret = 0, i, j;
  2170. if (!rt->is_input) {
  2171. rt->flv_data = NULL;
  2172. if (rt->out_pkt.size)
  2173. ff_rtmp_packet_destroy(&rt->out_pkt);
  2174. if (rt->state > STATE_FCPUBLISH)
  2175. ret = gen_fcunpublish_stream(h, rt);
  2176. }
  2177. if (rt->state > STATE_HANDSHAKED)
  2178. ret = gen_delete_stream(h, rt);
  2179. for (i = 0; i < 2; i++) {
  2180. for (j = 0; j < rt->nb_prev_pkt[i]; j++)
  2181. ff_rtmp_packet_destroy(&rt->prev_pkt[i][j]);
  2182. av_freep(&rt->prev_pkt[i]);
  2183. }
  2184. free_tracked_methods(rt);
  2185. av_freep(&rt->flv_data);
  2186. ffurl_close(rt->stream);
  2187. return ret;
  2188. }
  2189. /**
  2190. * Insert a fake onMetadata packet into the FLV stream to notify the FLV
  2191. * demuxer about the duration of the stream.
  2192. *
  2193. * This should only be done if there was no real onMetadata packet sent by the
  2194. * server at the start of the stream and if we were able to retrieve a valid
  2195. * duration via a getStreamLength call.
  2196. *
  2197. * @return 0 for successful operation, negative value in case of error
  2198. */
  2199. static int inject_fake_duration_metadata(RTMPContext *rt)
  2200. {
  2201. // We need to insert the metadata packet directly after the FLV
  2202. // header, i.e. we need to move all other already read data by the
  2203. // size of our fake metadata packet.
  2204. uint8_t* p;
  2205. // Keep old flv_data pointer
  2206. uint8_t* old_flv_data = rt->flv_data;
  2207. // Allocate a new flv_data pointer with enough space for the additional package
  2208. if (!(rt->flv_data = av_malloc(rt->flv_size + 55))) {
  2209. rt->flv_data = old_flv_data;
  2210. return AVERROR(ENOMEM);
  2211. }
  2212. // Copy FLV header
  2213. memcpy(rt->flv_data, old_flv_data, 13);
  2214. // Copy remaining packets
  2215. memcpy(rt->flv_data + 13 + 55, old_flv_data + 13, rt->flv_size - 13);
  2216. // Increase the size by the injected packet
  2217. rt->flv_size += 55;
  2218. // Delete the old FLV data
  2219. av_freep(&old_flv_data);
  2220. p = rt->flv_data + 13;
  2221. bytestream_put_byte(&p, FLV_TAG_TYPE_META);
  2222. bytestream_put_be24(&p, 40); // size of data part (sum of all parts below)
  2223. bytestream_put_be24(&p, 0); // timestamp
  2224. bytestream_put_be32(&p, 0); // reserved
  2225. // first event name as a string
  2226. bytestream_put_byte(&p, AMF_DATA_TYPE_STRING);
  2227. // "onMetaData" as AMF string
  2228. bytestream_put_be16(&p, 10);
  2229. bytestream_put_buffer(&p, "onMetaData", 10);
  2230. // mixed array (hash) with size and string/type/data tuples
  2231. bytestream_put_byte(&p, AMF_DATA_TYPE_MIXEDARRAY);
  2232. bytestream_put_be32(&p, 1); // metadata_count
  2233. // "duration" as AMF string
  2234. bytestream_put_be16(&p, 8);
  2235. bytestream_put_buffer(&p, "duration", 8);
  2236. bytestream_put_byte(&p, AMF_DATA_TYPE_NUMBER);
  2237. bytestream_put_be64(&p, av_double2int(rt->duration));
  2238. // Finalise object
  2239. bytestream_put_be16(&p, 0); // Empty string
  2240. bytestream_put_byte(&p, AMF_END_OF_OBJECT);
  2241. bytestream_put_be32(&p, 40 + RTMP_HEADER); // size of data part (sum of all parts above)
  2242. return 0;
  2243. }
  2244. /**
  2245. * Open RTMP connection and verify that the stream can be played.
  2246. *
  2247. * URL syntax: rtmp://server[:port][/app][/playpath]
  2248. * where 'app' is first one or two directories in the path
  2249. * (e.g. /ondemand/, /flash/live/, etc.)
  2250. * and 'playpath' is a file name (the rest of the path,
  2251. * may be prefixed with "mp4:")
  2252. */
  2253. static int rtmp_open(URLContext *s, const char *uri, int flags, AVDictionary **opts)
  2254. {
  2255. RTMPContext *rt = s->priv_data;
  2256. char proto[8], hostname[256], path[1024], auth[100], *fname;
  2257. char *old_app, *qmark, *n, fname_buffer[1024];
  2258. uint8_t buf[2048];
  2259. int port;
  2260. int ret;
  2261. if (rt->listen_timeout > 0)
  2262. rt->listen = 1;
  2263. rt->is_input = !(flags & AVIO_FLAG_WRITE);
  2264. av_url_split(proto, sizeof(proto), auth, sizeof(auth),
  2265. hostname, sizeof(hostname), &port,
  2266. path, sizeof(path), s->filename);
  2267. n = strchr(path, ' ');
  2268. if (n) {
  2269. av_log(s, AV_LOG_WARNING,
  2270. "Detected librtmp style URL parameters, these aren't supported "
  2271. "by the libavformat internal RTMP handler currently enabled. "
  2272. "See the documentation for the correct way to pass parameters.\n");
  2273. *n = '\0'; // Trim not supported part
  2274. }
  2275. if (auth[0]) {
  2276. char *ptr = strchr(auth, ':');
  2277. if (ptr) {
  2278. *ptr = '\0';
  2279. av_strlcpy(rt->username, auth, sizeof(rt->username));
  2280. av_strlcpy(rt->password, ptr + 1, sizeof(rt->password));
  2281. }
  2282. }
  2283. if (rt->listen && strcmp(proto, "rtmp")) {
  2284. av_log(s, AV_LOG_ERROR, "rtmp_listen not available for %s\n",
  2285. proto);
  2286. return AVERROR(EINVAL);
  2287. }
  2288. if (!strcmp(proto, "rtmpt") || !strcmp(proto, "rtmpts")) {
  2289. if (!strcmp(proto, "rtmpts"))
  2290. av_dict_set(opts, "ffrtmphttp_tls", "1", 1);
  2291. /* open the http tunneling connection */
  2292. ff_url_join(buf, sizeof(buf), "ffrtmphttp", NULL, hostname, port, NULL);
  2293. } else if (!strcmp(proto, "rtmps")) {
  2294. /* open the tls connection */
  2295. if (port < 0)
  2296. port = RTMPS_DEFAULT_PORT;
  2297. ff_url_join(buf, sizeof(buf), "tls", NULL, hostname, port, NULL);
  2298. } else if (!strcmp(proto, "rtmpe") || (!strcmp(proto, "rtmpte"))) {
  2299. if (!strcmp(proto, "rtmpte"))
  2300. av_dict_set(opts, "ffrtmpcrypt_tunneling", "1", 1);
  2301. /* open the encrypted connection */
  2302. ff_url_join(buf, sizeof(buf), "ffrtmpcrypt", NULL, hostname, port, NULL);
  2303. rt->encrypted = 1;
  2304. } else {
  2305. /* open the tcp connection */
  2306. if (port < 0)
  2307. port = RTMP_DEFAULT_PORT;
  2308. if (rt->listen)
  2309. ff_url_join(buf, sizeof(buf), "tcp", NULL, hostname, port,
  2310. "?listen&listen_timeout=%d",
  2311. rt->listen_timeout * 1000);
  2312. else
  2313. ff_url_join(buf, sizeof(buf), "tcp", NULL, hostname, port, NULL);
  2314. }
  2315. reconnect:
  2316. if ((ret = ffurl_open_whitelist(&rt->stream, buf, AVIO_FLAG_READ_WRITE,
  2317. &s->interrupt_callback, opts,
  2318. s->protocol_whitelist, s->protocol_blacklist, s)) < 0) {
  2319. av_log(s , AV_LOG_ERROR, "Cannot open connection %s\n", buf);
  2320. goto fail;
  2321. }
  2322. if (rt->swfverify) {
  2323. if ((ret = rtmp_calc_swfhash(s)) < 0)
  2324. goto fail;
  2325. }
  2326. rt->state = STATE_START;
  2327. if (!rt->listen && (ret = rtmp_handshake(s, rt)) < 0)
  2328. goto fail;
  2329. if (rt->listen && (ret = rtmp_server_handshake(s, rt)) < 0)
  2330. goto fail;
  2331. rt->out_chunk_size = 128;
  2332. rt->in_chunk_size = 128; // Probably overwritten later
  2333. rt->state = STATE_HANDSHAKED;
  2334. // Keep the application name when it has been defined by the user.
  2335. old_app = rt->app;
  2336. rt->app = av_malloc(APP_MAX_LENGTH);
  2337. if (!rt->app) {
  2338. ret = AVERROR(ENOMEM);
  2339. goto fail;
  2340. }
  2341. //extract "app" part from path
  2342. qmark = strchr(path, '?');
  2343. if (qmark && strstr(qmark, "slist=")) {
  2344. char* amp;
  2345. // After slist we have the playpath, the full path is used as app
  2346. av_strlcpy(rt->app, path + 1, APP_MAX_LENGTH);
  2347. fname = strstr(path, "slist=") + 6;
  2348. // Strip any further query parameters from fname
  2349. amp = strchr(fname, '&');
  2350. if (amp) {
  2351. av_strlcpy(fname_buffer, fname, FFMIN(amp - fname + 1,
  2352. sizeof(fname_buffer)));
  2353. fname = fname_buffer;
  2354. }
  2355. } else if (!strncmp(path, "/ondemand/", 10)) {
  2356. fname = path + 10;
  2357. memcpy(rt->app, "ondemand", 9);
  2358. } else {
  2359. char *next = *path ? path + 1 : path;
  2360. char *p = strchr(next, '/');
  2361. if (!p) {
  2362. if (old_app) {
  2363. // If name of application has been defined by the user, assume that
  2364. // playpath is provided in the URL
  2365. fname = next;
  2366. } else {
  2367. fname = NULL;
  2368. av_strlcpy(rt->app, next, APP_MAX_LENGTH);
  2369. }
  2370. } else {
  2371. // make sure we do not mismatch a playpath for an application instance
  2372. char *c = strchr(p + 1, ':');
  2373. fname = strchr(p + 1, '/');
  2374. if (!fname || (c && c < fname)) {
  2375. fname = p + 1;
  2376. av_strlcpy(rt->app, path + 1, FFMIN(p - path, APP_MAX_LENGTH));
  2377. } else {
  2378. fname++;
  2379. av_strlcpy(rt->app, path + 1, FFMIN(fname - path - 1, APP_MAX_LENGTH));
  2380. }
  2381. }
  2382. }
  2383. if (old_app) {
  2384. // The name of application has been defined by the user, override it.
  2385. if (strlen(old_app) >= APP_MAX_LENGTH) {
  2386. ret = AVERROR(EINVAL);
  2387. goto fail;
  2388. }
  2389. av_free(rt->app);
  2390. rt->app = old_app;
  2391. }
  2392. if (!rt->playpath) {
  2393. rt->playpath = av_malloc(PLAYPATH_MAX_LENGTH);
  2394. if (!rt->playpath) {
  2395. ret = AVERROR(ENOMEM);
  2396. goto fail;
  2397. }
  2398. if (fname) {
  2399. int len = strlen(fname);
  2400. if (!strchr(fname, ':') && len >= 4 &&
  2401. (!strcmp(fname + len - 4, ".f4v") ||
  2402. !strcmp(fname + len - 4, ".mp4"))) {
  2403. memcpy(rt->playpath, "mp4:", 5);
  2404. } else {
  2405. if (len >= 4 && !strcmp(fname + len - 4, ".flv"))
  2406. fname[len - 4] = '\0';
  2407. rt->playpath[0] = 0;
  2408. }
  2409. av_strlcat(rt->playpath, fname, PLAYPATH_MAX_LENGTH);
  2410. } else {
  2411. rt->playpath[0] = '\0';
  2412. }
  2413. }
  2414. if (!rt->tcurl) {
  2415. rt->tcurl = av_malloc(TCURL_MAX_LENGTH);
  2416. if (!rt->tcurl) {
  2417. ret = AVERROR(ENOMEM);
  2418. goto fail;
  2419. }
  2420. ff_url_join(rt->tcurl, TCURL_MAX_LENGTH, proto, NULL, hostname,
  2421. port, "/%s", rt->app);
  2422. }
  2423. if (!rt->flashver) {
  2424. rt->flashver = av_malloc(FLASHVER_MAX_LENGTH);
  2425. if (!rt->flashver) {
  2426. ret = AVERROR(ENOMEM);
  2427. goto fail;
  2428. }
  2429. if (rt->is_input) {
  2430. snprintf(rt->flashver, FLASHVER_MAX_LENGTH, "%s %d,%d,%d,%d",
  2431. RTMP_CLIENT_PLATFORM, RTMP_CLIENT_VER1, RTMP_CLIENT_VER2,
  2432. RTMP_CLIENT_VER3, RTMP_CLIENT_VER4);
  2433. } else {
  2434. snprintf(rt->flashver, FLASHVER_MAX_LENGTH,
  2435. "FMLE/3.0 (compatible; %s)", LIBAVFORMAT_IDENT);
  2436. }
  2437. }
  2438. rt->client_report_size = 1048576;
  2439. rt->bytes_read = 0;
  2440. rt->has_audio = 0;
  2441. rt->has_video = 0;
  2442. rt->received_metadata = 0;
  2443. rt->last_bytes_read = 0;
  2444. rt->server_bw = 2500000;
  2445. rt->duration = 0;
  2446. av_log(s, AV_LOG_DEBUG, "Proto = %s, path = %s, app = %s, fname = %s\n",
  2447. proto, path, rt->app, rt->playpath);
  2448. if (!rt->listen) {
  2449. if ((ret = gen_connect(s, rt)) < 0)
  2450. goto fail;
  2451. } else {
  2452. if ((ret = read_connect(s, s->priv_data)) < 0)
  2453. goto fail;
  2454. }
  2455. do {
  2456. ret = get_packet(s, 1);
  2457. } while (ret == AVERROR(EAGAIN));
  2458. if (ret < 0)
  2459. goto fail;
  2460. if (rt->do_reconnect) {
  2461. int i;
  2462. ffurl_close(rt->stream);
  2463. rt->stream = NULL;
  2464. rt->do_reconnect = 0;
  2465. rt->nb_invokes = 0;
  2466. for (i = 0; i < 2; i++)
  2467. memset(rt->prev_pkt[i], 0,
  2468. sizeof(**rt->prev_pkt) * rt->nb_prev_pkt[i]);
  2469. free_tracked_methods(rt);
  2470. goto reconnect;
  2471. }
  2472. if (rt->is_input) {
  2473. // generate FLV header for demuxer
  2474. rt->flv_size = 13;
  2475. if ((ret = av_reallocp(&rt->flv_data, rt->flv_size)) < 0)
  2476. goto fail;
  2477. rt->flv_off = 0;
  2478. memcpy(rt->flv_data, "FLV\1\0\0\0\0\011\0\0\0\0", rt->flv_size);
  2479. // Read packets until we reach the first A/V packet or read metadata.
  2480. // If there was a metadata package in front of the A/V packets, we can
  2481. // build the FLV header from this. If we do not receive any metadata,
  2482. // the FLV decoder will allocate the needed streams when their first
  2483. // audio or video packet arrives.
  2484. while (!rt->has_audio && !rt->has_video && !rt->received_metadata) {
  2485. if ((ret = get_packet(s, 0)) < 0)
  2486. goto fail;
  2487. }
  2488. // Either after we have read the metadata or (if there is none) the
  2489. // first packet of an A/V stream, we have a better knowledge about the
  2490. // streams, so set the FLV header accordingly.
  2491. if (rt->has_audio) {
  2492. rt->flv_data[4] |= FLV_HEADER_FLAG_HASAUDIO;
  2493. }
  2494. if (rt->has_video) {
  2495. rt->flv_data[4] |= FLV_HEADER_FLAG_HASVIDEO;
  2496. }
  2497. // If we received the first packet of an A/V stream and no metadata but
  2498. // the server returned a valid duration, create a fake metadata packet
  2499. // to inform the FLV decoder about the duration.
  2500. if (!rt->received_metadata && rt->duration > 0) {
  2501. if ((ret = inject_fake_duration_metadata(rt)) < 0)
  2502. goto fail;
  2503. }
  2504. } else {
  2505. rt->flv_size = 0;
  2506. rt->flv_data = NULL;
  2507. rt->flv_off = 0;
  2508. rt->skip_bytes = 13;
  2509. }
  2510. s->max_packet_size = rt->stream->max_packet_size;
  2511. s->is_streamed = 1;
  2512. return 0;
  2513. fail:
  2514. av_dict_free(opts);
  2515. rtmp_close(s);
  2516. return ret;
  2517. }
  2518. static int rtmp_read(URLContext *s, uint8_t *buf, int size)
  2519. {
  2520. RTMPContext *rt = s->priv_data;
  2521. int orig_size = size;
  2522. int ret;
  2523. while (size > 0) {
  2524. int data_left = rt->flv_size - rt->flv_off;
  2525. if (data_left >= size) {
  2526. memcpy(buf, rt->flv_data + rt->flv_off, size);
  2527. rt->flv_off += size;
  2528. return orig_size;
  2529. }
  2530. if (data_left > 0) {
  2531. memcpy(buf, rt->flv_data + rt->flv_off, data_left);
  2532. buf += data_left;
  2533. size -= data_left;
  2534. rt->flv_off = rt->flv_size;
  2535. return data_left;
  2536. }
  2537. if ((ret = get_packet(s, 0)) < 0)
  2538. return ret;
  2539. }
  2540. return orig_size;
  2541. }
  2542. static int64_t rtmp_seek(URLContext *s, int stream_index, int64_t timestamp,
  2543. int flags)
  2544. {
  2545. RTMPContext *rt = s->priv_data;
  2546. int ret;
  2547. av_log(s, AV_LOG_DEBUG,
  2548. "Seek on stream index %d at timestamp %"PRId64" with flags %08x\n",
  2549. stream_index, timestamp, flags);
  2550. if ((ret = gen_seek(s, rt, timestamp)) < 0) {
  2551. av_log(s, AV_LOG_ERROR,
  2552. "Unable to send seek command on stream index %d at timestamp "
  2553. "%"PRId64" with flags %08x\n",
  2554. stream_index, timestamp, flags);
  2555. return ret;
  2556. }
  2557. rt->flv_off = rt->flv_size;
  2558. rt->state = STATE_SEEKING;
  2559. return timestamp;
  2560. }
  2561. static int rtmp_pause(URLContext *s, int pause)
  2562. {
  2563. RTMPContext *rt = s->priv_data;
  2564. int ret;
  2565. av_log(s, AV_LOG_DEBUG, "Pause at timestamp %d\n",
  2566. rt->last_timestamp);
  2567. if ((ret = gen_pause(s, rt, pause, rt->last_timestamp)) < 0) {
  2568. av_log(s, AV_LOG_ERROR, "Unable to send pause command at timestamp %d\n",
  2569. rt->last_timestamp);
  2570. return ret;
  2571. }
  2572. return 0;
  2573. }
  2574. static int rtmp_write(URLContext *s, const uint8_t *buf, int size)
  2575. {
  2576. RTMPContext *rt = s->priv_data;
  2577. int size_temp = size;
  2578. int pktsize, pkttype, copy;
  2579. uint32_t ts;
  2580. const uint8_t *buf_temp = buf;
  2581. uint8_t c;
  2582. int ret;
  2583. do {
  2584. if (rt->skip_bytes) {
  2585. int skip = FFMIN(rt->skip_bytes, size_temp);
  2586. buf_temp += skip;
  2587. size_temp -= skip;
  2588. rt->skip_bytes -= skip;
  2589. continue;
  2590. }
  2591. if (rt->flv_header_bytes < RTMP_HEADER) {
  2592. const uint8_t *header = rt->flv_header;
  2593. int channel = RTMP_AUDIO_CHANNEL;
  2594. copy = FFMIN(RTMP_HEADER - rt->flv_header_bytes, size_temp);
  2595. bytestream_get_buffer(&buf_temp, rt->flv_header + rt->flv_header_bytes, copy);
  2596. rt->flv_header_bytes += copy;
  2597. size_temp -= copy;
  2598. if (rt->flv_header_bytes < RTMP_HEADER)
  2599. break;
  2600. pkttype = bytestream_get_byte(&header);
  2601. pktsize = bytestream_get_be24(&header);
  2602. ts = bytestream_get_be24(&header);
  2603. ts |= bytestream_get_byte(&header) << 24;
  2604. bytestream_get_be24(&header);
  2605. rt->flv_size = pktsize;
  2606. if (pkttype == RTMP_PT_VIDEO)
  2607. channel = RTMP_VIDEO_CHANNEL;
  2608. if (((pkttype == RTMP_PT_VIDEO || pkttype == RTMP_PT_AUDIO) && ts == 0) ||
  2609. pkttype == RTMP_PT_NOTIFY) {
  2610. if ((ret = ff_rtmp_check_alloc_array(&rt->prev_pkt[1],
  2611. &rt->nb_prev_pkt[1],
  2612. channel)) < 0)
  2613. return ret;
  2614. // Force sending a full 12 bytes header by clearing the
  2615. // channel id, to make it not match a potential earlier
  2616. // packet in the same channel.
  2617. rt->prev_pkt[1][channel].channel_id = 0;
  2618. }
  2619. //this can be a big packet, it's better to send it right here
  2620. if ((ret = ff_rtmp_packet_create(&rt->out_pkt, channel,
  2621. pkttype, ts, pktsize)) < 0)
  2622. return ret;
  2623. rt->out_pkt.extra = rt->stream_id;
  2624. rt->flv_data = rt->out_pkt.data;
  2625. }
  2626. copy = FFMIN(rt->flv_size - rt->flv_off, size_temp);
  2627. bytestream_get_buffer(&buf_temp, rt->flv_data + rt->flv_off, copy);
  2628. rt->flv_off += copy;
  2629. size_temp -= copy;
  2630. if (rt->flv_off == rt->flv_size) {
  2631. rt->skip_bytes = 4;
  2632. if (rt->out_pkt.type == RTMP_PT_NOTIFY) {
  2633. // For onMetaData and |RtmpSampleAccess packets, we want
  2634. // @setDataFrame prepended to the packet before it gets sent.
  2635. // However, not all RTMP_PT_NOTIFY packets (e.g., onTextData
  2636. // and onCuePoint).
  2637. uint8_t commandbuffer[64];
  2638. int stringlen = 0;
  2639. GetByteContext gbc;
  2640. bytestream2_init(&gbc, rt->flv_data, rt->flv_size);
  2641. if (!ff_amf_read_string(&gbc, commandbuffer, sizeof(commandbuffer),
  2642. &stringlen)) {
  2643. if (!strcmp(commandbuffer, "onMetaData") ||
  2644. !strcmp(commandbuffer, "|RtmpSampleAccess")) {
  2645. uint8_t *ptr;
  2646. if ((ret = av_reallocp(&rt->out_pkt.data, rt->out_pkt.size + 16)) < 0) {
  2647. rt->flv_size = rt->flv_off = rt->flv_header_bytes = 0;
  2648. return ret;
  2649. }
  2650. memmove(rt->out_pkt.data + 16, rt->out_pkt.data, rt->out_pkt.size);
  2651. rt->out_pkt.size += 16;
  2652. ptr = rt->out_pkt.data;
  2653. ff_amf_write_string(&ptr, "@setDataFrame");
  2654. }
  2655. }
  2656. }
  2657. if ((ret = rtmp_send_packet(rt, &rt->out_pkt, 0)) < 0)
  2658. return ret;
  2659. rt->flv_size = 0;
  2660. rt->flv_off = 0;
  2661. rt->flv_header_bytes = 0;
  2662. rt->flv_nb_packets++;
  2663. }
  2664. } while (buf_temp - buf < size);
  2665. if (rt->flv_nb_packets < rt->flush_interval)
  2666. return size;
  2667. rt->flv_nb_packets = 0;
  2668. /* set stream into nonblocking mode */
  2669. rt->stream->flags |= AVIO_FLAG_NONBLOCK;
  2670. /* try to read one byte from the stream */
  2671. ret = ffurl_read(rt->stream, &c, 1);
  2672. /* switch the stream back into blocking mode */
  2673. rt->stream->flags &= ~AVIO_FLAG_NONBLOCK;
  2674. if (ret == AVERROR(EAGAIN)) {
  2675. /* no incoming data to handle */
  2676. return size;
  2677. } else if (ret < 0) {
  2678. return ret;
  2679. } else if (ret == 1) {
  2680. RTMPPacket rpkt = { 0 };
  2681. if ((ret = ff_rtmp_packet_read_internal(rt->stream, &rpkt,
  2682. rt->in_chunk_size,
  2683. &rt->prev_pkt[0],
  2684. &rt->nb_prev_pkt[0], c)) <= 0)
  2685. return ret;
  2686. if ((ret = rtmp_parse_result(s, rt, &rpkt)) < 0)
  2687. return ret;
  2688. ff_rtmp_packet_destroy(&rpkt);
  2689. }
  2690. return size;
  2691. }
  2692. #define OFFSET(x) offsetof(RTMPContext, x)
  2693. #define DEC AV_OPT_FLAG_DECODING_PARAM
  2694. #define ENC AV_OPT_FLAG_ENCODING_PARAM
  2695. static const AVOption rtmp_options[] = {
  2696. {"rtmp_app", "Name of application to connect to on the RTMP server", OFFSET(app), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC|ENC},
  2697. {"rtmp_buffer", "Set buffer time in milliseconds. The default is 3000.", OFFSET(client_buffer_time), AV_OPT_TYPE_INT, {.i64 = 3000}, 0, INT_MAX, DEC|ENC},
  2698. {"rtmp_conn", "Append arbitrary AMF data to the Connect message", OFFSET(conn), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC|ENC},
  2699. {"rtmp_flashver", "Version of the Flash plugin used to run the SWF player.", OFFSET(flashver), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC|ENC},
  2700. {"rtmp_flush_interval", "Number of packets flushed in the same request (RTMPT only).", OFFSET(flush_interval), AV_OPT_TYPE_INT, {.i64 = 10}, 0, INT_MAX, ENC},
  2701. {"rtmp_live", "Specify that the media is a live stream.", OFFSET(live), AV_OPT_TYPE_INT, {.i64 = -2}, INT_MIN, INT_MAX, DEC, "rtmp_live"},
  2702. {"any", "both", 0, AV_OPT_TYPE_CONST, {.i64 = -2}, 0, 0, DEC, "rtmp_live"},
  2703. {"live", "live stream", 0, AV_OPT_TYPE_CONST, {.i64 = -1}, 0, 0, DEC, "rtmp_live"},
  2704. {"recorded", "recorded stream", 0, AV_OPT_TYPE_CONST, {.i64 = 0}, 0, 0, DEC, "rtmp_live"},
  2705. {"rtmp_pageurl", "URL of the web page in which the media was embedded. By default no value will be sent.", OFFSET(pageurl), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC},
  2706. {"rtmp_playpath", "Stream identifier to play or to publish", OFFSET(playpath), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC|ENC},
  2707. {"rtmp_subscribe", "Name of live stream to subscribe to. Defaults to rtmp_playpath.", OFFSET(subscribe), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC},
  2708. {"rtmp_swfhash", "SHA256 hash of the decompressed SWF file (32 bytes).", OFFSET(swfhash), AV_OPT_TYPE_BINARY, .flags = DEC},
  2709. {"rtmp_swfsize", "Size of the decompressed SWF file, required for SWFVerification.", OFFSET(swfsize), AV_OPT_TYPE_INT, {.i64 = 0}, 0, INT_MAX, DEC},
  2710. {"rtmp_swfurl", "URL of the SWF player. By default no value will be sent", OFFSET(swfurl), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC|ENC},
  2711. {"rtmp_swfverify", "URL to player swf file, compute hash/size automatically.", OFFSET(swfverify), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC},
  2712. {"rtmp_tcurl", "URL of the target stream. Defaults to proto://host[:port]/app.", OFFSET(tcurl), AV_OPT_TYPE_STRING, {.str = NULL }, 0, 0, DEC|ENC},
  2713. {"rtmp_listen", "Listen for incoming rtmp connections", OFFSET(listen), AV_OPT_TYPE_INT, {.i64 = 0}, INT_MIN, INT_MAX, DEC, "rtmp_listen" },
  2714. {"listen", "Listen for incoming rtmp connections", OFFSET(listen), AV_OPT_TYPE_INT, {.i64 = 0}, INT_MIN, INT_MAX, DEC, "rtmp_listen" },
  2715. {"timeout", "Maximum timeout (in seconds) to wait for incoming connections. -1 is infinite. Implies -rtmp_listen 1", OFFSET(listen_timeout), AV_OPT_TYPE_INT, {.i64 = -1}, INT_MIN, INT_MAX, DEC, "rtmp_listen" },
  2716. { NULL },
  2717. };
  2718. #define RTMP_PROTOCOL(flavor) \
  2719. static const AVClass flavor##_class = { \
  2720. .class_name = #flavor, \
  2721. .item_name = av_default_item_name, \
  2722. .option = rtmp_options, \
  2723. .version = LIBAVUTIL_VERSION_INT, \
  2724. }; \
  2725. \
  2726. const URLProtocol ff_##flavor##_protocol = { \
  2727. .name = #flavor, \
  2728. .url_open2 = rtmp_open, \
  2729. .url_read = rtmp_read, \
  2730. .url_read_seek = rtmp_seek, \
  2731. .url_read_pause = rtmp_pause, \
  2732. .url_write = rtmp_write, \
  2733. .url_close = rtmp_close, \
  2734. .priv_data_size = sizeof(RTMPContext), \
  2735. .flags = URL_PROTOCOL_FLAG_NETWORK, \
  2736. .priv_data_class= &flavor##_class, \
  2737. };
  2738. RTMP_PROTOCOL(rtmp)
  2739. RTMP_PROTOCOL(rtmpe)
  2740. RTMP_PROTOCOL(rtmps)
  2741. RTMP_PROTOCOL(rtmpt)
  2742. RTMP_PROTOCOL(rtmpte)
  2743. RTMP_PROTOCOL(rtmpts)