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  1. /*
  2. * RTMP input format
  3. * Copyright (c) 2009 Konstantin Shishkov
  4. *
  5. * This file is part of Libav.
  6. *
  7. * Libav 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. * Libav 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 Libav; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. #include "libavcodec/bytestream.h"
  22. #include "libavutil/avstring.h"
  23. #include "libavutil/intfloat.h"
  24. #include "avformat.h"
  25. #include "rtmppkt.h"
  26. #include "flv.h"
  27. #include "url.h"
  28. void ff_amf_write_bool(uint8_t **dst, int val)
  29. {
  30. bytestream_put_byte(dst, AMF_DATA_TYPE_BOOL);
  31. bytestream_put_byte(dst, val);
  32. }
  33. void ff_amf_write_number(uint8_t **dst, double val)
  34. {
  35. bytestream_put_byte(dst, AMF_DATA_TYPE_NUMBER);
  36. bytestream_put_be64(dst, av_double2int(val));
  37. }
  38. void ff_amf_write_string(uint8_t **dst, const char *str)
  39. {
  40. bytestream_put_byte(dst, AMF_DATA_TYPE_STRING);
  41. bytestream_put_be16(dst, strlen(str));
  42. bytestream_put_buffer(dst, str, strlen(str));
  43. }
  44. void ff_amf_write_string2(uint8_t **dst, const char *str1, const char *str2)
  45. {
  46. int len1 = 0, len2 = 0;
  47. if (str1)
  48. len1 = strlen(str1);
  49. if (str2)
  50. len2 = strlen(str2);
  51. bytestream_put_byte(dst, AMF_DATA_TYPE_STRING);
  52. bytestream_put_be16(dst, len1 + len2);
  53. bytestream_put_buffer(dst, str1, len1);
  54. bytestream_put_buffer(dst, str2, len2);
  55. }
  56. void ff_amf_write_null(uint8_t **dst)
  57. {
  58. bytestream_put_byte(dst, AMF_DATA_TYPE_NULL);
  59. }
  60. void ff_amf_write_object_start(uint8_t **dst)
  61. {
  62. bytestream_put_byte(dst, AMF_DATA_TYPE_OBJECT);
  63. }
  64. void ff_amf_write_field_name(uint8_t **dst, const char *str)
  65. {
  66. bytestream_put_be16(dst, strlen(str));
  67. bytestream_put_buffer(dst, str, strlen(str));
  68. }
  69. void ff_amf_write_object_end(uint8_t **dst)
  70. {
  71. /* first two bytes are field name length = 0,
  72. * AMF object should end with it and end marker
  73. */
  74. bytestream_put_be24(dst, AMF_DATA_TYPE_OBJECT_END);
  75. }
  76. int ff_amf_read_bool(GetByteContext *bc, int *val)
  77. {
  78. if (bytestream2_get_byte(bc) != AMF_DATA_TYPE_BOOL)
  79. return AVERROR_INVALIDDATA;
  80. *val = bytestream2_get_byte(bc);
  81. return 0;
  82. }
  83. int ff_amf_read_number(GetByteContext *bc, double *val)
  84. {
  85. uint64_t read;
  86. if (bytestream2_get_byte(bc) != AMF_DATA_TYPE_NUMBER)
  87. return AVERROR_INVALIDDATA;
  88. read = bytestream2_get_be64(bc);
  89. *val = av_int2double(read);
  90. return 0;
  91. }
  92. int ff_amf_get_string(GetByteContext *bc, uint8_t *str,
  93. int strsize, int *length)
  94. {
  95. int stringlen = 0;
  96. int readsize;
  97. stringlen = bytestream2_get_be16(bc);
  98. if (stringlen + 1 > strsize)
  99. return AVERROR(EINVAL);
  100. readsize = bytestream2_get_buffer(bc, str, stringlen);
  101. if (readsize != stringlen) {
  102. av_log(NULL, AV_LOG_WARNING,
  103. "Unable to read as many bytes as AMF string signaled\n");
  104. }
  105. str[readsize] = '\0';
  106. *length = FFMIN(stringlen, readsize);
  107. return 0;
  108. }
  109. int ff_amf_read_string(GetByteContext *bc, uint8_t *str,
  110. int strsize, int *length)
  111. {
  112. if (bytestream2_get_byte(bc) != AMF_DATA_TYPE_STRING)
  113. return AVERROR_INVALIDDATA;
  114. return ff_amf_get_string(bc, str, strsize, length);
  115. }
  116. int ff_amf_read_null(GetByteContext *bc)
  117. {
  118. if (bytestream2_get_byte(bc) != AMF_DATA_TYPE_NULL)
  119. return AVERROR_INVALIDDATA;
  120. return 0;
  121. }
  122. int ff_rtmp_check_alloc_array(RTMPPacket **prev_pkt, int *nb_prev_pkt,
  123. int channel)
  124. {
  125. int nb_alloc;
  126. RTMPPacket *ptr;
  127. if (channel < *nb_prev_pkt)
  128. return 0;
  129. nb_alloc = channel + 16;
  130. // This can't use the av_reallocp family of functions, since we
  131. // would need to free each element in the array before the array
  132. // itself is freed.
  133. ptr = av_realloc_array(*prev_pkt, nb_alloc, sizeof(**prev_pkt));
  134. if (!ptr)
  135. return AVERROR(ENOMEM);
  136. memset(ptr + *nb_prev_pkt, 0, (nb_alloc - *nb_prev_pkt) * sizeof(*ptr));
  137. *prev_pkt = ptr;
  138. *nb_prev_pkt = nb_alloc;
  139. return 0;
  140. }
  141. int ff_rtmp_packet_read(URLContext *h, RTMPPacket *p,
  142. int chunk_size, RTMPPacket **prev_pkt, int *nb_prev_pkt)
  143. {
  144. uint8_t hdr;
  145. if (ffurl_read(h, &hdr, 1) != 1)
  146. return AVERROR(EIO);
  147. return ff_rtmp_packet_read_internal(h, p, chunk_size, prev_pkt,
  148. nb_prev_pkt, hdr);
  149. }
  150. static int rtmp_packet_read_one_chunk(URLContext *h, RTMPPacket *p,
  151. int chunk_size, RTMPPacket **prev_pkt_ptr,
  152. int *nb_prev_pkt, uint8_t hdr)
  153. {
  154. uint8_t buf[16];
  155. int channel_id, timestamp, size;
  156. uint32_t ts_field; // non-extended timestamp or delta field
  157. uint32_t extra = 0;
  158. enum RTMPPacketType type;
  159. int written = 0;
  160. int ret, toread;
  161. RTMPPacket *prev_pkt;
  162. written++;
  163. channel_id = hdr & 0x3F;
  164. if (channel_id < 2) { //special case for channel number >= 64
  165. buf[1] = 0;
  166. if (ffurl_read_complete(h, buf, channel_id + 1) != channel_id + 1)
  167. return AVERROR(EIO);
  168. written += channel_id + 1;
  169. channel_id = AV_RL16(buf) + 64;
  170. }
  171. if ((ret = ff_rtmp_check_alloc_array(prev_pkt_ptr, nb_prev_pkt,
  172. channel_id)) < 0)
  173. return ret;
  174. prev_pkt = *prev_pkt_ptr;
  175. size = prev_pkt[channel_id].size;
  176. type = prev_pkt[channel_id].type;
  177. extra = prev_pkt[channel_id].extra;
  178. hdr >>= 6; // header size indicator
  179. if (hdr == RTMP_PS_ONEBYTE) {
  180. ts_field = prev_pkt[channel_id].ts_field;
  181. } else {
  182. if (ffurl_read_complete(h, buf, 3) != 3)
  183. return AVERROR(EIO);
  184. written += 3;
  185. ts_field = AV_RB24(buf);
  186. if (hdr != RTMP_PS_FOURBYTES) {
  187. if (ffurl_read_complete(h, buf, 3) != 3)
  188. return AVERROR(EIO);
  189. written += 3;
  190. size = AV_RB24(buf);
  191. if (ffurl_read_complete(h, buf, 1) != 1)
  192. return AVERROR(EIO);
  193. written++;
  194. type = buf[0];
  195. if (hdr == RTMP_PS_TWELVEBYTES) {
  196. if (ffurl_read_complete(h, buf, 4) != 4)
  197. return AVERROR(EIO);
  198. written += 4;
  199. extra = AV_RL32(buf);
  200. }
  201. }
  202. }
  203. if (ts_field == 0xFFFFFF) {
  204. if (ffurl_read_complete(h, buf, 4) != 4)
  205. return AVERROR(EIO);
  206. timestamp = AV_RB32(buf);
  207. } else {
  208. timestamp = ts_field;
  209. }
  210. if (hdr != RTMP_PS_TWELVEBYTES)
  211. timestamp += prev_pkt[channel_id].timestamp;
  212. if (!prev_pkt[channel_id].read) {
  213. if ((ret = ff_rtmp_packet_create(p, channel_id, type, timestamp,
  214. size)) < 0)
  215. return ret;
  216. p->read = written;
  217. p->offset = 0;
  218. prev_pkt[channel_id].ts_field = ts_field;
  219. prev_pkt[channel_id].timestamp = timestamp;
  220. } else {
  221. // previous packet in this channel hasn't completed reading
  222. RTMPPacket *prev = &prev_pkt[channel_id];
  223. p->data = prev->data;
  224. p->size = prev->size;
  225. p->channel_id = prev->channel_id;
  226. p->type = prev->type;
  227. p->ts_field = prev->ts_field;
  228. p->extra = prev->extra;
  229. p->offset = prev->offset;
  230. p->read = prev->read + written;
  231. p->timestamp = prev->timestamp;
  232. prev->data = NULL;
  233. }
  234. p->extra = extra;
  235. // save history
  236. prev_pkt[channel_id].channel_id = channel_id;
  237. prev_pkt[channel_id].type = type;
  238. prev_pkt[channel_id].size = size;
  239. prev_pkt[channel_id].extra = extra;
  240. size = size - p->offset;
  241. toread = FFMIN(size, chunk_size);
  242. if (ffurl_read_complete(h, p->data + p->offset, toread) != toread) {
  243. ff_rtmp_packet_destroy(p);
  244. return AVERROR(EIO);
  245. }
  246. size -= toread;
  247. p->read += toread;
  248. p->offset += toread;
  249. if (size > 0) {
  250. RTMPPacket *prev = &prev_pkt[channel_id];
  251. prev->data = p->data;
  252. prev->read = p->read;
  253. prev->offset = p->offset;
  254. return AVERROR(EAGAIN);
  255. }
  256. prev_pkt[channel_id].read = 0; // read complete; reset if needed
  257. return p->read;
  258. }
  259. int ff_rtmp_packet_read_internal(URLContext *h, RTMPPacket *p, int chunk_size,
  260. RTMPPacket **prev_pkt, int *nb_prev_pkt,
  261. uint8_t hdr)
  262. {
  263. while (1) {
  264. int ret = rtmp_packet_read_one_chunk(h, p, chunk_size, prev_pkt,
  265. nb_prev_pkt, hdr);
  266. if (ret > 0 || ret != AVERROR(EAGAIN))
  267. return ret;
  268. if (ffurl_read(h, &hdr, 1) != 1)
  269. return AVERROR(EIO);
  270. }
  271. }
  272. int ff_rtmp_packet_write(URLContext *h, RTMPPacket *pkt,
  273. int chunk_size, RTMPPacket **prev_pkt_ptr,
  274. int *nb_prev_pkt)
  275. {
  276. uint8_t pkt_hdr[16], *p = pkt_hdr;
  277. int mode = RTMP_PS_TWELVEBYTES;
  278. int off = 0;
  279. int written = 0;
  280. int ret;
  281. RTMPPacket *prev_pkt;
  282. int use_delta; // flag if using timestamp delta, not RTMP_PS_TWELVEBYTES
  283. uint32_t timestamp; // full 32-bit timestamp or delta value
  284. if ((ret = ff_rtmp_check_alloc_array(prev_pkt_ptr, nb_prev_pkt,
  285. pkt->channel_id)) < 0)
  286. return ret;
  287. prev_pkt = *prev_pkt_ptr;
  288. //if channel_id = 0, this is first presentation of prev_pkt, send full hdr.
  289. use_delta = prev_pkt[pkt->channel_id].channel_id &&
  290. pkt->extra == prev_pkt[pkt->channel_id].extra &&
  291. pkt->timestamp >= prev_pkt[pkt->channel_id].timestamp;
  292. timestamp = pkt->timestamp;
  293. if (use_delta) {
  294. timestamp -= prev_pkt[pkt->channel_id].timestamp;
  295. }
  296. if (timestamp >= 0xFFFFFF) {
  297. pkt->ts_field = 0xFFFFFF;
  298. } else {
  299. pkt->ts_field = timestamp;
  300. }
  301. if (use_delta) {
  302. if (pkt->type == prev_pkt[pkt->channel_id].type &&
  303. pkt->size == prev_pkt[pkt->channel_id].size) {
  304. mode = RTMP_PS_FOURBYTES;
  305. if (pkt->ts_field == prev_pkt[pkt->channel_id].ts_field)
  306. mode = RTMP_PS_ONEBYTE;
  307. } else {
  308. mode = RTMP_PS_EIGHTBYTES;
  309. }
  310. }
  311. if (pkt->channel_id < 64) {
  312. bytestream_put_byte(&p, pkt->channel_id | (mode << 6));
  313. } else if (pkt->channel_id < 64 + 256) {
  314. bytestream_put_byte(&p, 0 | (mode << 6));
  315. bytestream_put_byte(&p, pkt->channel_id - 64);
  316. } else {
  317. bytestream_put_byte(&p, 1 | (mode << 6));
  318. bytestream_put_le16(&p, pkt->channel_id - 64);
  319. }
  320. if (mode != RTMP_PS_ONEBYTE) {
  321. bytestream_put_be24(&p, pkt->ts_field);
  322. if (mode != RTMP_PS_FOURBYTES) {
  323. bytestream_put_be24(&p, pkt->size);
  324. bytestream_put_byte(&p, pkt->type);
  325. if (mode == RTMP_PS_TWELVEBYTES)
  326. bytestream_put_le32(&p, pkt->extra);
  327. }
  328. }
  329. if (pkt->ts_field == 0xFFFFFF)
  330. bytestream_put_be32(&p, timestamp);
  331. // save history
  332. prev_pkt[pkt->channel_id].channel_id = pkt->channel_id;
  333. prev_pkt[pkt->channel_id].type = pkt->type;
  334. prev_pkt[pkt->channel_id].size = pkt->size;
  335. prev_pkt[pkt->channel_id].timestamp = pkt->timestamp;
  336. prev_pkt[pkt->channel_id].ts_field = pkt->ts_field;
  337. prev_pkt[pkt->channel_id].extra = pkt->extra;
  338. if ((ret = ffurl_write(h, pkt_hdr, p - pkt_hdr)) < 0)
  339. return ret;
  340. written = p - pkt_hdr + pkt->size;
  341. while (off < pkt->size) {
  342. int towrite = FFMIN(chunk_size, pkt->size - off);
  343. if ((ret = ffurl_write(h, pkt->data + off, towrite)) < 0)
  344. return ret;
  345. off += towrite;
  346. if (off < pkt->size) {
  347. uint8_t marker = 0xC0 | pkt->channel_id;
  348. if ((ret = ffurl_write(h, &marker, 1)) < 0)
  349. return ret;
  350. written++;
  351. }
  352. }
  353. return written;
  354. }
  355. int ff_rtmp_packet_create(RTMPPacket *pkt, int channel_id, RTMPPacketType type,
  356. int timestamp, int size)
  357. {
  358. if (size) {
  359. pkt->data = av_malloc(size);
  360. if (!pkt->data)
  361. return AVERROR(ENOMEM);
  362. }
  363. pkt->size = size;
  364. pkt->channel_id = channel_id;
  365. pkt->type = type;
  366. pkt->timestamp = timestamp;
  367. pkt->extra = 0;
  368. pkt->ts_field = 0;
  369. return 0;
  370. }
  371. void ff_rtmp_packet_destroy(RTMPPacket *pkt)
  372. {
  373. if (!pkt)
  374. return;
  375. av_freep(&pkt->data);
  376. pkt->size = 0;
  377. }
  378. int ff_amf_tag_size(const uint8_t *data, const uint8_t *data_end)
  379. {
  380. const uint8_t *base = data;
  381. AMFDataType type;
  382. unsigned nb = -1;
  383. int parse_key = 1;
  384. if (data >= data_end)
  385. return -1;
  386. switch ((type = *data++)) {
  387. case AMF_DATA_TYPE_NUMBER: return 9;
  388. case AMF_DATA_TYPE_BOOL: return 2;
  389. case AMF_DATA_TYPE_STRING: return 3 + AV_RB16(data);
  390. case AMF_DATA_TYPE_LONG_STRING: return 5 + AV_RB32(data);
  391. case AMF_DATA_TYPE_NULL: return 1;
  392. case AMF_DATA_TYPE_ARRAY:
  393. parse_key = 0;
  394. case AMF_DATA_TYPE_MIXEDARRAY:
  395. nb = bytestream_get_be32(&data);
  396. case AMF_DATA_TYPE_OBJECT:
  397. while (nb-- > 0 || type != AMF_DATA_TYPE_ARRAY) {
  398. int t;
  399. if (parse_key) {
  400. int size = bytestream_get_be16(&data);
  401. if (!size) {
  402. data++;
  403. break;
  404. }
  405. if (size < 0 || size >= data_end - data)
  406. return -1;
  407. data += size;
  408. }
  409. t = ff_amf_tag_size(data, data_end);
  410. if (t < 0 || t >= data_end - data)
  411. return -1;
  412. data += t;
  413. }
  414. return data - base;
  415. case AMF_DATA_TYPE_OBJECT_END: return 1;
  416. default: return -1;
  417. }
  418. }
  419. int ff_amf_get_field_value(const uint8_t *data, const uint8_t *data_end,
  420. const uint8_t *name, uint8_t *dst, int dst_size)
  421. {
  422. int namelen = strlen(name);
  423. int len;
  424. while (*data != AMF_DATA_TYPE_OBJECT && data < data_end) {
  425. len = ff_amf_tag_size(data, data_end);
  426. if (len < 0)
  427. len = data_end - data;
  428. data += len;
  429. }
  430. if (data_end - data < 3)
  431. return -1;
  432. data++;
  433. for (;;) {
  434. int size = bytestream_get_be16(&data);
  435. if (!size)
  436. break;
  437. if (size < 0 || size >= data_end - data)
  438. return -1;
  439. data += size;
  440. if (size == namelen && !memcmp(data-size, name, namelen)) {
  441. switch (*data++) {
  442. case AMF_DATA_TYPE_NUMBER:
  443. snprintf(dst, dst_size, "%g", av_int2double(AV_RB64(data)));
  444. break;
  445. case AMF_DATA_TYPE_BOOL:
  446. snprintf(dst, dst_size, "%s", *data ? "true" : "false");
  447. break;
  448. case AMF_DATA_TYPE_STRING:
  449. len = bytestream_get_be16(&data);
  450. av_strlcpy(dst, data, FFMIN(len+1, dst_size));
  451. break;
  452. default:
  453. return -1;
  454. }
  455. return 0;
  456. }
  457. len = ff_amf_tag_size(data, data_end);
  458. if (len < 0 || len >= data_end - data)
  459. return -1;
  460. data += len;
  461. }
  462. return -1;
  463. }
  464. static const char* rtmp_packet_type(int type)
  465. {
  466. switch (type) {
  467. case RTMP_PT_CHUNK_SIZE: return "chunk size";
  468. case RTMP_PT_BYTES_READ: return "bytes read";
  469. case RTMP_PT_PING: return "ping";
  470. case RTMP_PT_SERVER_BW: return "server bandwidth";
  471. case RTMP_PT_CLIENT_BW: return "client bandwidth";
  472. case RTMP_PT_AUDIO: return "audio packet";
  473. case RTMP_PT_VIDEO: return "video packet";
  474. case RTMP_PT_FLEX_STREAM: return "Flex shared stream";
  475. case RTMP_PT_FLEX_OBJECT: return "Flex shared object";
  476. case RTMP_PT_FLEX_MESSAGE: return "Flex shared message";
  477. case RTMP_PT_NOTIFY: return "notification";
  478. case RTMP_PT_SHARED_OBJ: return "shared object";
  479. case RTMP_PT_INVOKE: return "invoke";
  480. case RTMP_PT_METADATA: return "metadata";
  481. default: return "unknown";
  482. }
  483. }
  484. static void amf_tag_contents(void *ctx, const uint8_t *data,
  485. const uint8_t *data_end)
  486. {
  487. unsigned int size, nb = -1;
  488. char buf[1024];
  489. AMFDataType type;
  490. int parse_key = 1;
  491. if (data >= data_end)
  492. return;
  493. switch ((type = *data++)) {
  494. case AMF_DATA_TYPE_NUMBER:
  495. av_log(ctx, AV_LOG_DEBUG, " number %g\n", av_int2double(AV_RB64(data)));
  496. return;
  497. case AMF_DATA_TYPE_BOOL:
  498. av_log(ctx, AV_LOG_DEBUG, " bool %d\n", *data);
  499. return;
  500. case AMF_DATA_TYPE_STRING:
  501. case AMF_DATA_TYPE_LONG_STRING:
  502. if (type == AMF_DATA_TYPE_STRING) {
  503. size = bytestream_get_be16(&data);
  504. } else {
  505. size = bytestream_get_be32(&data);
  506. }
  507. size = FFMIN(size, sizeof(buf) - 1);
  508. memcpy(buf, data, size);
  509. buf[size] = 0;
  510. av_log(ctx, AV_LOG_DEBUG, " string '%s'\n", buf);
  511. return;
  512. case AMF_DATA_TYPE_NULL:
  513. av_log(ctx, AV_LOG_DEBUG, " NULL\n");
  514. return;
  515. case AMF_DATA_TYPE_ARRAY:
  516. parse_key = 0;
  517. case AMF_DATA_TYPE_MIXEDARRAY:
  518. nb = bytestream_get_be32(&data);
  519. case AMF_DATA_TYPE_OBJECT:
  520. av_log(ctx, AV_LOG_DEBUG, " {\n");
  521. while (nb-- > 0 || type != AMF_DATA_TYPE_ARRAY) {
  522. int t;
  523. if (parse_key) {
  524. size = bytestream_get_be16(&data);
  525. size = FFMIN(size, sizeof(buf) - 1);
  526. if (!size) {
  527. av_log(ctx, AV_LOG_DEBUG, " }\n");
  528. data++;
  529. break;
  530. }
  531. memcpy(buf, data, size);
  532. buf[size] = 0;
  533. if (size >= data_end - data)
  534. return;
  535. data += size;
  536. av_log(ctx, AV_LOG_DEBUG, " %s: ", buf);
  537. }
  538. amf_tag_contents(ctx, data, data_end);
  539. t = ff_amf_tag_size(data, data_end);
  540. if (t < 0 || t >= data_end - data)
  541. return;
  542. data += t;
  543. }
  544. return;
  545. case AMF_DATA_TYPE_OBJECT_END:
  546. av_log(ctx, AV_LOG_DEBUG, " }\n");
  547. return;
  548. default:
  549. return;
  550. }
  551. }
  552. void ff_rtmp_packet_dump(void *ctx, RTMPPacket *p)
  553. {
  554. av_log(ctx, AV_LOG_DEBUG, "RTMP packet type '%s'(%d) for channel %d, timestamp %d, extra field %d size %d\n",
  555. rtmp_packet_type(p->type), p->type, p->channel_id, p->timestamp, p->extra, p->size);
  556. if (p->type == RTMP_PT_INVOKE || p->type == RTMP_PT_NOTIFY) {
  557. uint8_t *src = p->data, *src_end = p->data + p->size;
  558. while (src < src_end) {
  559. int sz;
  560. amf_tag_contents(ctx, src, src_end);
  561. sz = ff_amf_tag_size(src, src_end);
  562. if (sz < 0)
  563. break;
  564. src += sz;
  565. }
  566. } else if (p->type == RTMP_PT_SERVER_BW){
  567. av_log(ctx, AV_LOG_DEBUG, "Server BW = %d\n", AV_RB32(p->data));
  568. } else if (p->type == RTMP_PT_CLIENT_BW){
  569. av_log(ctx, AV_LOG_DEBUG, "Client BW = %d\n", AV_RB32(p->data));
  570. } else if (p->type != RTMP_PT_AUDIO && p->type != RTMP_PT_VIDEO && p->type != RTMP_PT_METADATA) {
  571. int i;
  572. for (i = 0; i < p->size; i++)
  573. av_log(ctx, AV_LOG_DEBUG, " %02X", p->data[i]);
  574. av_log(ctx, AV_LOG_DEBUG, "\n");
  575. }
  576. }
  577. int ff_amf_match_string(const uint8_t *data, int size, const char *str)
  578. {
  579. int len = strlen(str);
  580. int amf_len, type;
  581. if (size < 1)
  582. return 0;
  583. type = *data++;
  584. if (type != AMF_DATA_TYPE_LONG_STRING &&
  585. type != AMF_DATA_TYPE_STRING)
  586. return 0;
  587. if (type == AMF_DATA_TYPE_LONG_STRING) {
  588. if ((size -= 4 + 1) < 0)
  589. return 0;
  590. amf_len = bytestream_get_be32(&data);
  591. } else {
  592. if ((size -= 2 + 1) < 0)
  593. return 0;
  594. amf_len = bytestream_get_be16(&data);
  595. }
  596. if (amf_len > size)
  597. return 0;
  598. if (amf_len != len)
  599. return 0;
  600. return !memcmp(data, str, len);
  601. }