matroskadec.c 66 KB

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  1. /*
  2. * Matroska file demuxer
  3. * Copyright (c) 2003-2008 The FFmpeg Project
  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 libavformat/matroskadec.c
  23. * Matroska file demuxer
  24. * by Ronald Bultje <rbultje@ronald.bitfreak.net>
  25. * with a little help from Moritz Bunkus <moritz@bunkus.org>
  26. * totally reworked by Aurelien Jacobs <aurel@gnuage.org>
  27. * Specs available on the Matroska project page: http://www.matroska.org/.
  28. */
  29. #include <stdio.h>
  30. #include "avformat.h"
  31. /* For ff_codec_get_id(). */
  32. #include "riff.h"
  33. #include "isom.h"
  34. #include "matroska.h"
  35. #include "libavcodec/mpeg4audio.h"
  36. #include "libavutil/intfloat_readwrite.h"
  37. #include "libavutil/intreadwrite.h"
  38. #include "libavutil/avstring.h"
  39. #include "libavutil/lzo.h"
  40. #if CONFIG_ZLIB
  41. #include <zlib.h>
  42. #endif
  43. #if CONFIG_BZLIB
  44. #include <bzlib.h>
  45. #endif
  46. typedef enum {
  47. EBML_NONE,
  48. EBML_UINT,
  49. EBML_FLOAT,
  50. EBML_STR,
  51. EBML_UTF8,
  52. EBML_BIN,
  53. EBML_NEST,
  54. EBML_PASS,
  55. EBML_STOP,
  56. } EbmlType;
  57. typedef const struct EbmlSyntax {
  58. uint32_t id;
  59. EbmlType type;
  60. int list_elem_size;
  61. int data_offset;
  62. union {
  63. uint64_t u;
  64. double f;
  65. const char *s;
  66. const struct EbmlSyntax *n;
  67. } def;
  68. } EbmlSyntax;
  69. typedef struct {
  70. int nb_elem;
  71. void *elem;
  72. } EbmlList;
  73. typedef struct {
  74. int size;
  75. uint8_t *data;
  76. int64_t pos;
  77. } EbmlBin;
  78. typedef struct {
  79. uint64_t version;
  80. uint64_t max_size;
  81. uint64_t id_length;
  82. char *doctype;
  83. uint64_t doctype_version;
  84. } Ebml;
  85. typedef struct {
  86. uint64_t algo;
  87. EbmlBin settings;
  88. } MatroskaTrackCompression;
  89. typedef struct {
  90. uint64_t scope;
  91. uint64_t type;
  92. MatroskaTrackCompression compression;
  93. } MatroskaTrackEncoding;
  94. typedef struct {
  95. double frame_rate;
  96. uint64_t display_width;
  97. uint64_t display_height;
  98. uint64_t pixel_width;
  99. uint64_t pixel_height;
  100. uint64_t fourcc;
  101. } MatroskaTrackVideo;
  102. typedef struct {
  103. double samplerate;
  104. double out_samplerate;
  105. uint64_t bitdepth;
  106. uint64_t channels;
  107. /* real audio header (extracted from extradata) */
  108. int coded_framesize;
  109. int sub_packet_h;
  110. int frame_size;
  111. int sub_packet_size;
  112. int sub_packet_cnt;
  113. int pkt_cnt;
  114. uint8_t *buf;
  115. } MatroskaTrackAudio;
  116. typedef struct {
  117. uint64_t num;
  118. uint64_t uid;
  119. uint64_t type;
  120. char *name;
  121. char *codec_id;
  122. EbmlBin codec_priv;
  123. char *language;
  124. double time_scale;
  125. uint64_t default_duration;
  126. uint64_t flag_default;
  127. MatroskaTrackVideo video;
  128. MatroskaTrackAudio audio;
  129. EbmlList encodings;
  130. AVStream *stream;
  131. int64_t end_timecode;
  132. } MatroskaTrack;
  133. typedef struct {
  134. uint64_t uid;
  135. char *filename;
  136. char *mime;
  137. EbmlBin bin;
  138. AVStream *stream;
  139. } MatroskaAttachement;
  140. typedef struct {
  141. uint64_t start;
  142. uint64_t end;
  143. uint64_t uid;
  144. char *title;
  145. AVChapter *chapter;
  146. } MatroskaChapter;
  147. typedef struct {
  148. uint64_t track;
  149. uint64_t pos;
  150. } MatroskaIndexPos;
  151. typedef struct {
  152. uint64_t time;
  153. EbmlList pos;
  154. } MatroskaIndex;
  155. typedef struct {
  156. char *name;
  157. char *string;
  158. char *lang;
  159. uint64_t def;
  160. EbmlList sub;
  161. } MatroskaTag;
  162. typedef struct {
  163. char *type;
  164. uint64_t typevalue;
  165. uint64_t trackuid;
  166. uint64_t chapteruid;
  167. uint64_t attachuid;
  168. } MatroskaTagTarget;
  169. typedef struct {
  170. MatroskaTagTarget target;
  171. EbmlList tag;
  172. } MatroskaTags;
  173. typedef struct {
  174. uint64_t id;
  175. uint64_t pos;
  176. } MatroskaSeekhead;
  177. typedef struct {
  178. uint64_t start;
  179. uint64_t length;
  180. } MatroskaLevel;
  181. typedef struct {
  182. AVFormatContext *ctx;
  183. /* EBML stuff */
  184. int num_levels;
  185. MatroskaLevel levels[EBML_MAX_DEPTH];
  186. int level_up;
  187. uint64_t time_scale;
  188. double duration;
  189. char *title;
  190. EbmlList tracks;
  191. EbmlList attachments;
  192. EbmlList chapters;
  193. EbmlList index;
  194. EbmlList tags;
  195. EbmlList seekhead;
  196. /* byte position of the segment inside the stream */
  197. int64_t segment_start;
  198. /* the packet queue */
  199. AVPacket **packets;
  200. int num_packets;
  201. AVPacket *prev_pkt;
  202. int done;
  203. int has_cluster_id;
  204. /* What to skip before effectively reading a packet. */
  205. int skip_to_keyframe;
  206. uint64_t skip_to_timecode;
  207. } MatroskaDemuxContext;
  208. typedef struct {
  209. uint64_t duration;
  210. int64_t reference;
  211. uint64_t non_simple;
  212. EbmlBin bin;
  213. } MatroskaBlock;
  214. typedef struct {
  215. uint64_t timecode;
  216. EbmlList blocks;
  217. } MatroskaCluster;
  218. static EbmlSyntax ebml_header[] = {
  219. { EBML_ID_EBMLREADVERSION, EBML_UINT, 0, offsetof(Ebml,version), {.u=EBML_VERSION} },
  220. { EBML_ID_EBMLMAXSIZELENGTH, EBML_UINT, 0, offsetof(Ebml,max_size), {.u=8} },
  221. { EBML_ID_EBMLMAXIDLENGTH, EBML_UINT, 0, offsetof(Ebml,id_length), {.u=4} },
  222. { EBML_ID_DOCTYPE, EBML_STR, 0, offsetof(Ebml,doctype), {.s="(none)"} },
  223. { EBML_ID_DOCTYPEREADVERSION, EBML_UINT, 0, offsetof(Ebml,doctype_version), {.u=1} },
  224. { EBML_ID_EBMLVERSION, EBML_NONE },
  225. { EBML_ID_DOCTYPEVERSION, EBML_NONE },
  226. { 0 }
  227. };
  228. static EbmlSyntax ebml_syntax[] = {
  229. { EBML_ID_HEADER, EBML_NEST, 0, 0, {.n=ebml_header} },
  230. { 0 }
  231. };
  232. static EbmlSyntax matroska_info[] = {
  233. { MATROSKA_ID_TIMECODESCALE, EBML_UINT, 0, offsetof(MatroskaDemuxContext,time_scale), {.u=1000000} },
  234. { MATROSKA_ID_DURATION, EBML_FLOAT, 0, offsetof(MatroskaDemuxContext,duration) },
  235. { MATROSKA_ID_TITLE, EBML_UTF8, 0, offsetof(MatroskaDemuxContext,title) },
  236. { MATROSKA_ID_WRITINGAPP, EBML_NONE },
  237. { MATROSKA_ID_MUXINGAPP, EBML_NONE },
  238. { MATROSKA_ID_DATEUTC, EBML_NONE },
  239. { MATROSKA_ID_SEGMENTUID, EBML_NONE },
  240. { 0 }
  241. };
  242. static EbmlSyntax matroska_track_video[] = {
  243. { MATROSKA_ID_VIDEOFRAMERATE, EBML_FLOAT,0, offsetof(MatroskaTrackVideo,frame_rate) },
  244. { MATROSKA_ID_VIDEODISPLAYWIDTH, EBML_UINT, 0, offsetof(MatroskaTrackVideo,display_width) },
  245. { MATROSKA_ID_VIDEODISPLAYHEIGHT, EBML_UINT, 0, offsetof(MatroskaTrackVideo,display_height) },
  246. { MATROSKA_ID_VIDEOPIXELWIDTH, EBML_UINT, 0, offsetof(MatroskaTrackVideo,pixel_width) },
  247. { MATROSKA_ID_VIDEOPIXELHEIGHT, EBML_UINT, 0, offsetof(MatroskaTrackVideo,pixel_height) },
  248. { MATROSKA_ID_VIDEOCOLORSPACE, EBML_UINT, 0, offsetof(MatroskaTrackVideo,fourcc) },
  249. { MATROSKA_ID_VIDEOPIXELCROPB, EBML_NONE },
  250. { MATROSKA_ID_VIDEOPIXELCROPT, EBML_NONE },
  251. { MATROSKA_ID_VIDEOPIXELCROPL, EBML_NONE },
  252. { MATROSKA_ID_VIDEOPIXELCROPR, EBML_NONE },
  253. { MATROSKA_ID_VIDEODISPLAYUNIT, EBML_NONE },
  254. { MATROSKA_ID_VIDEOFLAGINTERLACED,EBML_NONE },
  255. { MATROSKA_ID_VIDEOSTEREOMODE, EBML_NONE },
  256. { MATROSKA_ID_VIDEOASPECTRATIO, EBML_NONE },
  257. { 0 }
  258. };
  259. static EbmlSyntax matroska_track_audio[] = {
  260. { MATROSKA_ID_AUDIOSAMPLINGFREQ, EBML_FLOAT,0, offsetof(MatroskaTrackAudio,samplerate), {.f=8000.0} },
  261. { MATROSKA_ID_AUDIOOUTSAMPLINGFREQ,EBML_FLOAT,0,offsetof(MatroskaTrackAudio,out_samplerate) },
  262. { MATROSKA_ID_AUDIOBITDEPTH, EBML_UINT, 0, offsetof(MatroskaTrackAudio,bitdepth) },
  263. { MATROSKA_ID_AUDIOCHANNELS, EBML_UINT, 0, offsetof(MatroskaTrackAudio,channels), {.u=1} },
  264. { 0 }
  265. };
  266. static EbmlSyntax matroska_track_encoding_compression[] = {
  267. { MATROSKA_ID_ENCODINGCOMPALGO, EBML_UINT, 0, offsetof(MatroskaTrackCompression,algo), {.u=0} },
  268. { MATROSKA_ID_ENCODINGCOMPSETTINGS,EBML_BIN, 0, offsetof(MatroskaTrackCompression,settings) },
  269. { 0 }
  270. };
  271. static EbmlSyntax matroska_track_encoding[] = {
  272. { MATROSKA_ID_ENCODINGSCOPE, EBML_UINT, 0, offsetof(MatroskaTrackEncoding,scope), {.u=1} },
  273. { MATROSKA_ID_ENCODINGTYPE, EBML_UINT, 0, offsetof(MatroskaTrackEncoding,type), {.u=0} },
  274. { MATROSKA_ID_ENCODINGCOMPRESSION,EBML_NEST, 0, offsetof(MatroskaTrackEncoding,compression), {.n=matroska_track_encoding_compression} },
  275. { MATROSKA_ID_ENCODINGORDER, EBML_NONE },
  276. { 0 }
  277. };
  278. static EbmlSyntax matroska_track_encodings[] = {
  279. { MATROSKA_ID_TRACKCONTENTENCODING, EBML_NEST, sizeof(MatroskaTrackEncoding), offsetof(MatroskaTrack,encodings), {.n=matroska_track_encoding} },
  280. { 0 }
  281. };
  282. static EbmlSyntax matroska_track[] = {
  283. { MATROSKA_ID_TRACKNUMBER, EBML_UINT, 0, offsetof(MatroskaTrack,num) },
  284. { MATROSKA_ID_TRACKNAME, EBML_UTF8, 0, offsetof(MatroskaTrack,name) },
  285. { MATROSKA_ID_TRACKUID, EBML_UINT, 0, offsetof(MatroskaTrack,uid) },
  286. { MATROSKA_ID_TRACKTYPE, EBML_UINT, 0, offsetof(MatroskaTrack,type) },
  287. { MATROSKA_ID_CODECID, EBML_STR, 0, offsetof(MatroskaTrack,codec_id) },
  288. { MATROSKA_ID_CODECPRIVATE, EBML_BIN, 0, offsetof(MatroskaTrack,codec_priv) },
  289. { MATROSKA_ID_TRACKLANGUAGE, EBML_UTF8, 0, offsetof(MatroskaTrack,language), {.s="eng"} },
  290. { MATROSKA_ID_TRACKDEFAULTDURATION, EBML_UINT, 0, offsetof(MatroskaTrack,default_duration) },
  291. { MATROSKA_ID_TRACKTIMECODESCALE, EBML_FLOAT,0, offsetof(MatroskaTrack,time_scale), {.f=1.0} },
  292. { MATROSKA_ID_TRACKFLAGDEFAULT, EBML_UINT, 0, offsetof(MatroskaTrack,flag_default), {.u=1} },
  293. { MATROSKA_ID_TRACKVIDEO, EBML_NEST, 0, offsetof(MatroskaTrack,video), {.n=matroska_track_video} },
  294. { MATROSKA_ID_TRACKAUDIO, EBML_NEST, 0, offsetof(MatroskaTrack,audio), {.n=matroska_track_audio} },
  295. { MATROSKA_ID_TRACKCONTENTENCODINGS,EBML_NEST, 0, 0, {.n=matroska_track_encodings} },
  296. { MATROSKA_ID_TRACKFLAGENABLED, EBML_NONE },
  297. { MATROSKA_ID_TRACKFLAGFORCED, EBML_NONE },
  298. { MATROSKA_ID_TRACKFLAGLACING, EBML_NONE },
  299. { MATROSKA_ID_CODECNAME, EBML_NONE },
  300. { MATROSKA_ID_CODECDECODEALL, EBML_NONE },
  301. { MATROSKA_ID_CODECINFOURL, EBML_NONE },
  302. { MATROSKA_ID_CODECDOWNLOADURL, EBML_NONE },
  303. { MATROSKA_ID_TRACKMINCACHE, EBML_NONE },
  304. { MATROSKA_ID_TRACKMAXCACHE, EBML_NONE },
  305. { MATROSKA_ID_TRACKMAXBLKADDID, EBML_NONE },
  306. { 0 }
  307. };
  308. static EbmlSyntax matroska_tracks[] = {
  309. { MATROSKA_ID_TRACKENTRY, EBML_NEST, sizeof(MatroskaTrack), offsetof(MatroskaDemuxContext,tracks), {.n=matroska_track} },
  310. { 0 }
  311. };
  312. static EbmlSyntax matroska_attachment[] = {
  313. { MATROSKA_ID_FILEUID, EBML_UINT, 0, offsetof(MatroskaAttachement,uid) },
  314. { MATROSKA_ID_FILENAME, EBML_UTF8, 0, offsetof(MatroskaAttachement,filename) },
  315. { MATROSKA_ID_FILEMIMETYPE, EBML_STR, 0, offsetof(MatroskaAttachement,mime) },
  316. { MATROSKA_ID_FILEDATA, EBML_BIN, 0, offsetof(MatroskaAttachement,bin) },
  317. { MATROSKA_ID_FILEDESC, EBML_NONE },
  318. { 0 }
  319. };
  320. static EbmlSyntax matroska_attachments[] = {
  321. { MATROSKA_ID_ATTACHEDFILE, EBML_NEST, sizeof(MatroskaAttachement), offsetof(MatroskaDemuxContext,attachments), {.n=matroska_attachment} },
  322. { 0 }
  323. };
  324. static EbmlSyntax matroska_chapter_display[] = {
  325. { MATROSKA_ID_CHAPSTRING, EBML_UTF8, 0, offsetof(MatroskaChapter,title) },
  326. { MATROSKA_ID_CHAPLANG, EBML_NONE },
  327. { 0 }
  328. };
  329. static EbmlSyntax matroska_chapter_entry[] = {
  330. { MATROSKA_ID_CHAPTERTIMESTART, EBML_UINT, 0, offsetof(MatroskaChapter,start), {.u=AV_NOPTS_VALUE} },
  331. { MATROSKA_ID_CHAPTERTIMEEND, EBML_UINT, 0, offsetof(MatroskaChapter,end), {.u=AV_NOPTS_VALUE} },
  332. { MATROSKA_ID_CHAPTERUID, EBML_UINT, 0, offsetof(MatroskaChapter,uid) },
  333. { MATROSKA_ID_CHAPTERDISPLAY, EBML_NEST, 0, 0, {.n=matroska_chapter_display} },
  334. { MATROSKA_ID_CHAPTERFLAGHIDDEN, EBML_NONE },
  335. { MATROSKA_ID_CHAPTERFLAGENABLED, EBML_NONE },
  336. { MATROSKA_ID_CHAPTERPHYSEQUIV, EBML_NONE },
  337. { MATROSKA_ID_CHAPTERATOM, EBML_NONE },
  338. { 0 }
  339. };
  340. static EbmlSyntax matroska_chapter[] = {
  341. { MATROSKA_ID_CHAPTERATOM, EBML_NEST, sizeof(MatroskaChapter), offsetof(MatroskaDemuxContext,chapters), {.n=matroska_chapter_entry} },
  342. { MATROSKA_ID_EDITIONUID, EBML_NONE },
  343. { MATROSKA_ID_EDITIONFLAGHIDDEN, EBML_NONE },
  344. { MATROSKA_ID_EDITIONFLAGDEFAULT, EBML_NONE },
  345. { MATROSKA_ID_EDITIONFLAGORDERED, EBML_NONE },
  346. { 0 }
  347. };
  348. static EbmlSyntax matroska_chapters[] = {
  349. { MATROSKA_ID_EDITIONENTRY, EBML_NEST, 0, 0, {.n=matroska_chapter} },
  350. { 0 }
  351. };
  352. static EbmlSyntax matroska_index_pos[] = {
  353. { MATROSKA_ID_CUETRACK, EBML_UINT, 0, offsetof(MatroskaIndexPos,track) },
  354. { MATROSKA_ID_CUECLUSTERPOSITION, EBML_UINT, 0, offsetof(MatroskaIndexPos,pos) },
  355. { MATROSKA_ID_CUEBLOCKNUMBER, EBML_NONE },
  356. { 0 }
  357. };
  358. static EbmlSyntax matroska_index_entry[] = {
  359. { MATROSKA_ID_CUETIME, EBML_UINT, 0, offsetof(MatroskaIndex,time) },
  360. { MATROSKA_ID_CUETRACKPOSITION, EBML_NEST, sizeof(MatroskaIndexPos), offsetof(MatroskaIndex,pos), {.n=matroska_index_pos} },
  361. { 0 }
  362. };
  363. static EbmlSyntax matroska_index[] = {
  364. { MATROSKA_ID_POINTENTRY, EBML_NEST, sizeof(MatroskaIndex), offsetof(MatroskaDemuxContext,index), {.n=matroska_index_entry} },
  365. { 0 }
  366. };
  367. static EbmlSyntax matroska_simpletag[] = {
  368. { MATROSKA_ID_TAGNAME, EBML_UTF8, 0, offsetof(MatroskaTag,name) },
  369. { MATROSKA_ID_TAGSTRING, EBML_UTF8, 0, offsetof(MatroskaTag,string) },
  370. { MATROSKA_ID_TAGLANG, EBML_STR, 0, offsetof(MatroskaTag,lang), {.s="und"} },
  371. { MATROSKA_ID_TAGDEFAULT, EBML_UINT, 0, offsetof(MatroskaTag,def) },
  372. { MATROSKA_ID_SIMPLETAG, EBML_NEST, sizeof(MatroskaTag), offsetof(MatroskaTag,sub), {.n=matroska_simpletag} },
  373. { 0 }
  374. };
  375. static EbmlSyntax matroska_tagtargets[] = {
  376. { MATROSKA_ID_TAGTARGETS_TYPE, EBML_STR, 0, offsetof(MatroskaTagTarget,type) },
  377. { MATROSKA_ID_TAGTARGETS_TYPEVALUE, EBML_UINT, 0, offsetof(MatroskaTagTarget,typevalue), {.u=50} },
  378. { MATROSKA_ID_TAGTARGETS_TRACKUID, EBML_UINT, 0, offsetof(MatroskaTagTarget,trackuid) },
  379. { MATROSKA_ID_TAGTARGETS_CHAPTERUID,EBML_UINT, 0, offsetof(MatroskaTagTarget,chapteruid) },
  380. { MATROSKA_ID_TAGTARGETS_ATTACHUID, EBML_UINT, 0, offsetof(MatroskaTagTarget,attachuid) },
  381. { 0 }
  382. };
  383. static EbmlSyntax matroska_tag[] = {
  384. { MATROSKA_ID_SIMPLETAG, EBML_NEST, sizeof(MatroskaTag), offsetof(MatroskaTags,tag), {.n=matroska_simpletag} },
  385. { MATROSKA_ID_TAGTARGETS, EBML_NEST, 0, offsetof(MatroskaTags,target), {.n=matroska_tagtargets} },
  386. { 0 }
  387. };
  388. static EbmlSyntax matroska_tags[] = {
  389. { MATROSKA_ID_TAG, EBML_NEST, sizeof(MatroskaTags), offsetof(MatroskaDemuxContext,tags), {.n=matroska_tag} },
  390. { 0 }
  391. };
  392. static EbmlSyntax matroska_seekhead_entry[] = {
  393. { MATROSKA_ID_SEEKID, EBML_UINT, 0, offsetof(MatroskaSeekhead,id) },
  394. { MATROSKA_ID_SEEKPOSITION, EBML_UINT, 0, offsetof(MatroskaSeekhead,pos), {.u=-1} },
  395. { 0 }
  396. };
  397. static EbmlSyntax matroska_seekhead[] = {
  398. { MATROSKA_ID_SEEKENTRY, EBML_NEST, sizeof(MatroskaSeekhead), offsetof(MatroskaDemuxContext,seekhead), {.n=matroska_seekhead_entry} },
  399. { 0 }
  400. };
  401. static EbmlSyntax matroska_segment[] = {
  402. { MATROSKA_ID_INFO, EBML_NEST, 0, 0, {.n=matroska_info } },
  403. { MATROSKA_ID_TRACKS, EBML_NEST, 0, 0, {.n=matroska_tracks } },
  404. { MATROSKA_ID_ATTACHMENTS, EBML_NEST, 0, 0, {.n=matroska_attachments} },
  405. { MATROSKA_ID_CHAPTERS, EBML_NEST, 0, 0, {.n=matroska_chapters } },
  406. { MATROSKA_ID_CUES, EBML_NEST, 0, 0, {.n=matroska_index } },
  407. { MATROSKA_ID_TAGS, EBML_NEST, 0, 0, {.n=matroska_tags } },
  408. { MATROSKA_ID_SEEKHEAD, EBML_NEST, 0, 0, {.n=matroska_seekhead } },
  409. { MATROSKA_ID_CLUSTER, EBML_STOP, 0, offsetof(MatroskaDemuxContext,has_cluster_id) },
  410. { 0 }
  411. };
  412. static EbmlSyntax matroska_segments[] = {
  413. { MATROSKA_ID_SEGMENT, EBML_NEST, 0, 0, {.n=matroska_segment } },
  414. { 0 }
  415. };
  416. static EbmlSyntax matroska_blockgroup[] = {
  417. { MATROSKA_ID_BLOCK, EBML_BIN, 0, offsetof(MatroskaBlock,bin) },
  418. { MATROSKA_ID_SIMPLEBLOCK, EBML_BIN, 0, offsetof(MatroskaBlock,bin) },
  419. { MATROSKA_ID_BLOCKDURATION, EBML_UINT, 0, offsetof(MatroskaBlock,duration), {.u=AV_NOPTS_VALUE} },
  420. { MATROSKA_ID_BLOCKREFERENCE, EBML_UINT, 0, offsetof(MatroskaBlock,reference) },
  421. { 1, EBML_UINT, 0, offsetof(MatroskaBlock,non_simple), {.u=1} },
  422. { 0 }
  423. };
  424. static EbmlSyntax matroska_cluster[] = {
  425. { MATROSKA_ID_CLUSTERTIMECODE,EBML_UINT,0, offsetof(MatroskaCluster,timecode) },
  426. { MATROSKA_ID_BLOCKGROUP, EBML_NEST, sizeof(MatroskaBlock), offsetof(MatroskaCluster,blocks), {.n=matroska_blockgroup} },
  427. { MATROSKA_ID_SIMPLEBLOCK, EBML_PASS, sizeof(MatroskaBlock), offsetof(MatroskaCluster,blocks), {.n=matroska_blockgroup} },
  428. { MATROSKA_ID_CLUSTERPOSITION,EBML_NONE },
  429. { MATROSKA_ID_CLUSTERPREVSIZE,EBML_NONE },
  430. { 0 }
  431. };
  432. static EbmlSyntax matroska_clusters[] = {
  433. { MATROSKA_ID_CLUSTER, EBML_NEST, 0, 0, {.n=matroska_cluster} },
  434. { MATROSKA_ID_INFO, EBML_NONE },
  435. { MATROSKA_ID_CUES, EBML_NONE },
  436. { MATROSKA_ID_TAGS, EBML_NONE },
  437. { MATROSKA_ID_SEEKHEAD, EBML_NONE },
  438. { 0 }
  439. };
  440. /*
  441. * Return: Whether we reached the end of a level in the hierarchy or not.
  442. */
  443. static int ebml_level_end(MatroskaDemuxContext *matroska)
  444. {
  445. ByteIOContext *pb = matroska->ctx->pb;
  446. int64_t pos = url_ftell(pb);
  447. if (matroska->num_levels > 0) {
  448. MatroskaLevel *level = &matroska->levels[matroska->num_levels - 1];
  449. if (pos - level->start >= level->length) {
  450. matroska->num_levels--;
  451. return 1;
  452. }
  453. }
  454. return 0;
  455. }
  456. /*
  457. * Read: an "EBML number", which is defined as a variable-length
  458. * array of bytes. The first byte indicates the length by giving a
  459. * number of 0-bits followed by a one. The position of the first
  460. * "one" bit inside the first byte indicates the length of this
  461. * number.
  462. * Returns: number of bytes read, < 0 on error
  463. */
  464. static int ebml_read_num(MatroskaDemuxContext *matroska, ByteIOContext *pb,
  465. int max_size, uint64_t *number)
  466. {
  467. int len_mask = 0x80, read = 1, n = 1;
  468. int64_t total = 0;
  469. /* The first byte tells us the length in bytes - get_byte() can normally
  470. * return 0, but since that's not a valid first ebmlID byte, we can
  471. * use it safely here to catch EOS. */
  472. if (!(total = get_byte(pb))) {
  473. /* we might encounter EOS here */
  474. if (!url_feof(pb)) {
  475. int64_t pos = url_ftell(pb);
  476. av_log(matroska->ctx, AV_LOG_ERROR,
  477. "Read error at pos. %"PRIu64" (0x%"PRIx64")\n",
  478. pos, pos);
  479. }
  480. return AVERROR(EIO); /* EOS or actual I/O error */
  481. }
  482. /* get the length of the EBML number */
  483. while (read <= max_size && !(total & len_mask)) {
  484. read++;
  485. len_mask >>= 1;
  486. }
  487. if (read > max_size) {
  488. int64_t pos = url_ftell(pb) - 1;
  489. av_log(matroska->ctx, AV_LOG_ERROR,
  490. "Invalid EBML number size tag 0x%02x at pos %"PRIu64" (0x%"PRIx64")\n",
  491. (uint8_t) total, pos, pos);
  492. return AVERROR_INVALIDDATA;
  493. }
  494. /* read out length */
  495. total &= ~len_mask;
  496. while (n++ < read)
  497. total = (total << 8) | get_byte(pb);
  498. *number = total;
  499. return read;
  500. }
  501. /*
  502. * Read the next element as an unsigned int.
  503. * 0 is success, < 0 is failure.
  504. */
  505. static int ebml_read_uint(ByteIOContext *pb, int size, uint64_t *num)
  506. {
  507. int n = 0;
  508. if (size < 1 || size > 8)
  509. return AVERROR_INVALIDDATA;
  510. /* big-endian ordering; build up number */
  511. *num = 0;
  512. while (n++ < size)
  513. *num = (*num << 8) | get_byte(pb);
  514. return 0;
  515. }
  516. /*
  517. * Read the next element as a float.
  518. * 0 is success, < 0 is failure.
  519. */
  520. static int ebml_read_float(ByteIOContext *pb, int size, double *num)
  521. {
  522. if (size == 4) {
  523. *num= av_int2flt(get_be32(pb));
  524. } else if(size==8){
  525. *num= av_int2dbl(get_be64(pb));
  526. } else
  527. return AVERROR_INVALIDDATA;
  528. return 0;
  529. }
  530. /*
  531. * Read the next element as an ASCII string.
  532. * 0 is success, < 0 is failure.
  533. */
  534. static int ebml_read_ascii(ByteIOContext *pb, int size, char **str)
  535. {
  536. av_free(*str);
  537. /* EBML strings are usually not 0-terminated, so we allocate one
  538. * byte more, read the string and NULL-terminate it ourselves. */
  539. if (!(*str = av_malloc(size + 1)))
  540. return AVERROR(ENOMEM);
  541. if (get_buffer(pb, (uint8_t *) *str, size) != size) {
  542. av_free(*str);
  543. return AVERROR(EIO);
  544. }
  545. (*str)[size] = '\0';
  546. return 0;
  547. }
  548. /*
  549. * Read the next element as binary data.
  550. * 0 is success, < 0 is failure.
  551. */
  552. static int ebml_read_binary(ByteIOContext *pb, int length, EbmlBin *bin)
  553. {
  554. av_free(bin->data);
  555. if (!(bin->data = av_malloc(length)))
  556. return AVERROR(ENOMEM);
  557. bin->size = length;
  558. bin->pos = url_ftell(pb);
  559. if (get_buffer(pb, bin->data, length) != length)
  560. return AVERROR(EIO);
  561. return 0;
  562. }
  563. /*
  564. * Read the next element, but only the header. The contents
  565. * are supposed to be sub-elements which can be read separately.
  566. * 0 is success, < 0 is failure.
  567. */
  568. static int ebml_read_master(MatroskaDemuxContext *matroska, int length)
  569. {
  570. ByteIOContext *pb = matroska->ctx->pb;
  571. MatroskaLevel *level;
  572. if (matroska->num_levels >= EBML_MAX_DEPTH) {
  573. av_log(matroska->ctx, AV_LOG_ERROR,
  574. "File moves beyond max. allowed depth (%d)\n", EBML_MAX_DEPTH);
  575. return AVERROR(ENOSYS);
  576. }
  577. level = &matroska->levels[matroska->num_levels++];
  578. level->start = url_ftell(pb);
  579. level->length = length;
  580. return 0;
  581. }
  582. /*
  583. * Read signed/unsigned "EBML" numbers.
  584. * Return: number of bytes processed, < 0 on error
  585. */
  586. static int matroska_ebmlnum_uint(MatroskaDemuxContext *matroska,
  587. uint8_t *data, uint32_t size, uint64_t *num)
  588. {
  589. ByteIOContext pb;
  590. init_put_byte(&pb, data, size, 0, NULL, NULL, NULL, NULL);
  591. return ebml_read_num(matroska, &pb, 8, num);
  592. }
  593. /*
  594. * Same as above, but signed.
  595. */
  596. static int matroska_ebmlnum_sint(MatroskaDemuxContext *matroska,
  597. uint8_t *data, uint32_t size, int64_t *num)
  598. {
  599. uint64_t unum;
  600. int res;
  601. /* read as unsigned number first */
  602. if ((res = matroska_ebmlnum_uint(matroska, data, size, &unum)) < 0)
  603. return res;
  604. /* make signed (weird way) */
  605. *num = unum - ((1LL << (7*res - 1)) - 1);
  606. return res;
  607. }
  608. static int ebml_parse_elem(MatroskaDemuxContext *matroska,
  609. EbmlSyntax *syntax, void *data);
  610. static int ebml_parse_id(MatroskaDemuxContext *matroska, EbmlSyntax *syntax,
  611. uint32_t id, void *data)
  612. {
  613. int i;
  614. for (i=0; syntax[i].id; i++)
  615. if (id == syntax[i].id)
  616. break;
  617. if (!syntax[i].id && id != EBML_ID_VOID && id != EBML_ID_CRC32)
  618. av_log(matroska->ctx, AV_LOG_INFO, "Unknown entry 0x%X\n", id);
  619. return ebml_parse_elem(matroska, &syntax[i], data);
  620. }
  621. static int ebml_parse(MatroskaDemuxContext *matroska, EbmlSyntax *syntax,
  622. void *data)
  623. {
  624. uint64_t id;
  625. int res = ebml_read_num(matroska, matroska->ctx->pb, 4, &id);
  626. id |= 1 << 7*res;
  627. return res < 0 ? res : ebml_parse_id(matroska, syntax, id, data);
  628. }
  629. static int ebml_parse_nest(MatroskaDemuxContext *matroska, EbmlSyntax *syntax,
  630. void *data)
  631. {
  632. int i, res = 0;
  633. for (i=0; syntax[i].id; i++)
  634. switch (syntax[i].type) {
  635. case EBML_UINT:
  636. *(uint64_t *)((char *)data+syntax[i].data_offset) = syntax[i].def.u;
  637. break;
  638. case EBML_FLOAT:
  639. *(double *)((char *)data+syntax[i].data_offset) = syntax[i].def.f;
  640. break;
  641. case EBML_STR:
  642. case EBML_UTF8:
  643. *(char **)((char *)data+syntax[i].data_offset) = av_strdup(syntax[i].def.s);
  644. break;
  645. }
  646. while (!res && !ebml_level_end(matroska))
  647. res = ebml_parse(matroska, syntax, data);
  648. return res;
  649. }
  650. static int ebml_parse_elem(MatroskaDemuxContext *matroska,
  651. EbmlSyntax *syntax, void *data)
  652. {
  653. ByteIOContext *pb = matroska->ctx->pb;
  654. uint32_t id = syntax->id;
  655. uint64_t length;
  656. int res;
  657. data = (char *)data + syntax->data_offset;
  658. if (syntax->list_elem_size) {
  659. EbmlList *list = data;
  660. list->elem = av_realloc(list->elem, (list->nb_elem+1)*syntax->list_elem_size);
  661. data = (char*)list->elem + list->nb_elem*syntax->list_elem_size;
  662. memset(data, 0, syntax->list_elem_size);
  663. list->nb_elem++;
  664. }
  665. if (syntax->type != EBML_PASS && syntax->type != EBML_STOP)
  666. if ((res = ebml_read_num(matroska, pb, 8, &length)) < 0)
  667. return res;
  668. switch (syntax->type) {
  669. case EBML_UINT: res = ebml_read_uint (pb, length, data); break;
  670. case EBML_FLOAT: res = ebml_read_float (pb, length, data); break;
  671. case EBML_STR:
  672. case EBML_UTF8: res = ebml_read_ascii (pb, length, data); break;
  673. case EBML_BIN: res = ebml_read_binary(pb, length, data); break;
  674. case EBML_NEST: if ((res=ebml_read_master(matroska, length)) < 0)
  675. return res;
  676. if (id == MATROSKA_ID_SEGMENT)
  677. matroska->segment_start = url_ftell(matroska->ctx->pb);
  678. return ebml_parse_nest(matroska, syntax->def.n, data);
  679. case EBML_PASS: return ebml_parse_id(matroska, syntax->def.n, id, data);
  680. case EBML_STOP: *(int *)data = 1; return 1;
  681. default: return url_fseek(pb,length,SEEK_CUR)<0 ? AVERROR(EIO) : 0;
  682. }
  683. if (res == AVERROR_INVALIDDATA)
  684. av_log(matroska->ctx, AV_LOG_ERROR, "Invalid element\n");
  685. else if (res == AVERROR(EIO))
  686. av_log(matroska->ctx, AV_LOG_ERROR, "Read error\n");
  687. return res;
  688. }
  689. static void ebml_free(EbmlSyntax *syntax, void *data)
  690. {
  691. int i, j;
  692. for (i=0; syntax[i].id; i++) {
  693. void *data_off = (char *)data + syntax[i].data_offset;
  694. switch (syntax[i].type) {
  695. case EBML_STR:
  696. case EBML_UTF8: av_freep(data_off); break;
  697. case EBML_BIN: av_freep(&((EbmlBin *)data_off)->data); break;
  698. case EBML_NEST:
  699. if (syntax[i].list_elem_size) {
  700. EbmlList *list = data_off;
  701. char *ptr = list->elem;
  702. for (j=0; j<list->nb_elem; j++, ptr+=syntax[i].list_elem_size)
  703. ebml_free(syntax[i].def.n, ptr);
  704. av_free(list->elem);
  705. } else
  706. ebml_free(syntax[i].def.n, data_off);
  707. default: break;
  708. }
  709. }
  710. }
  711. /*
  712. * Autodetecting...
  713. */
  714. static int matroska_probe(AVProbeData *p)
  715. {
  716. uint64_t total = 0;
  717. int len_mask = 0x80, size = 1, n = 1;
  718. static const char probe_data[] = "matroska";
  719. /* EBML header? */
  720. if (AV_RB32(p->buf) != EBML_ID_HEADER)
  721. return 0;
  722. /* length of header */
  723. total = p->buf[4];
  724. while (size <= 8 && !(total & len_mask)) {
  725. size++;
  726. len_mask >>= 1;
  727. }
  728. if (size > 8)
  729. return 0;
  730. total &= (len_mask - 1);
  731. while (n < size)
  732. total = (total << 8) | p->buf[4 + n++];
  733. /* Does the probe data contain the whole header? */
  734. if (p->buf_size < 4 + size + total)
  735. return 0;
  736. /* The header must contain the document type 'matroska'. For now,
  737. * we don't parse the whole header but simply check for the
  738. * availability of that array of characters inside the header.
  739. * Not fully fool-proof, but good enough. */
  740. for (n = 4+size; n <= 4+size+total-(sizeof(probe_data)-1); n++)
  741. if (!memcmp(p->buf+n, probe_data, sizeof(probe_data)-1))
  742. return AVPROBE_SCORE_MAX;
  743. return 0;
  744. }
  745. static MatroskaTrack *matroska_find_track_by_num(MatroskaDemuxContext *matroska,
  746. int num)
  747. {
  748. MatroskaTrack *tracks = matroska->tracks.elem;
  749. int i;
  750. for (i=0; i < matroska->tracks.nb_elem; i++)
  751. if (tracks[i].num == num)
  752. return &tracks[i];
  753. av_log(matroska->ctx, AV_LOG_ERROR, "Invalid track number %d\n", num);
  754. return NULL;
  755. }
  756. static int matroska_decode_buffer(uint8_t** buf, int* buf_size,
  757. MatroskaTrack *track)
  758. {
  759. MatroskaTrackEncoding *encodings = track->encodings.elem;
  760. uint8_t* data = *buf;
  761. int isize = *buf_size;
  762. uint8_t* pkt_data = NULL;
  763. int pkt_size = isize;
  764. int result = 0;
  765. int olen;
  766. switch (encodings[0].compression.algo) {
  767. case MATROSKA_TRACK_ENCODING_COMP_HEADERSTRIP:
  768. return encodings[0].compression.settings.size;
  769. case MATROSKA_TRACK_ENCODING_COMP_LZO:
  770. do {
  771. olen = pkt_size *= 3;
  772. pkt_data = av_realloc(pkt_data, pkt_size+AV_LZO_OUTPUT_PADDING);
  773. result = av_lzo1x_decode(pkt_data, &olen, data, &isize);
  774. } while (result==AV_LZO_OUTPUT_FULL && pkt_size<10000000);
  775. if (result)
  776. goto failed;
  777. pkt_size -= olen;
  778. break;
  779. #if CONFIG_ZLIB
  780. case MATROSKA_TRACK_ENCODING_COMP_ZLIB: {
  781. z_stream zstream = {0};
  782. if (inflateInit(&zstream) != Z_OK)
  783. return -1;
  784. zstream.next_in = data;
  785. zstream.avail_in = isize;
  786. do {
  787. pkt_size *= 3;
  788. pkt_data = av_realloc(pkt_data, pkt_size);
  789. zstream.avail_out = pkt_size - zstream.total_out;
  790. zstream.next_out = pkt_data + zstream.total_out;
  791. result = inflate(&zstream, Z_NO_FLUSH);
  792. } while (result==Z_OK && pkt_size<10000000);
  793. pkt_size = zstream.total_out;
  794. inflateEnd(&zstream);
  795. if (result != Z_STREAM_END)
  796. goto failed;
  797. break;
  798. }
  799. #endif
  800. #if CONFIG_BZLIB
  801. case MATROSKA_TRACK_ENCODING_COMP_BZLIB: {
  802. bz_stream bzstream = {0};
  803. if (BZ2_bzDecompressInit(&bzstream, 0, 0) != BZ_OK)
  804. return -1;
  805. bzstream.next_in = data;
  806. bzstream.avail_in = isize;
  807. do {
  808. pkt_size *= 3;
  809. pkt_data = av_realloc(pkt_data, pkt_size);
  810. bzstream.avail_out = pkt_size - bzstream.total_out_lo32;
  811. bzstream.next_out = pkt_data + bzstream.total_out_lo32;
  812. result = BZ2_bzDecompress(&bzstream);
  813. } while (result==BZ_OK && pkt_size<10000000);
  814. pkt_size = bzstream.total_out_lo32;
  815. BZ2_bzDecompressEnd(&bzstream);
  816. if (result != BZ_STREAM_END)
  817. goto failed;
  818. break;
  819. }
  820. #endif
  821. default:
  822. return -1;
  823. }
  824. *buf = pkt_data;
  825. *buf_size = pkt_size;
  826. return 0;
  827. failed:
  828. av_free(pkt_data);
  829. return -1;
  830. }
  831. static void matroska_fix_ass_packet(MatroskaDemuxContext *matroska,
  832. AVPacket *pkt, uint64_t display_duration)
  833. {
  834. char *line, *layer, *ptr = pkt->data, *end = ptr+pkt->size;
  835. for (; *ptr!=',' && ptr<end-1; ptr++);
  836. if (*ptr == ',')
  837. layer = ++ptr;
  838. for (; *ptr!=',' && ptr<end-1; ptr++);
  839. if (*ptr == ',') {
  840. int64_t end_pts = pkt->pts + display_duration;
  841. int sc = matroska->time_scale * pkt->pts / 10000000;
  842. int ec = matroska->time_scale * end_pts / 10000000;
  843. int sh, sm, ss, eh, em, es, len;
  844. sh = sc/360000; sc -= 360000*sh;
  845. sm = sc/ 6000; sc -= 6000*sm;
  846. ss = sc/ 100; sc -= 100*ss;
  847. eh = ec/360000; ec -= 360000*eh;
  848. em = ec/ 6000; ec -= 6000*em;
  849. es = ec/ 100; ec -= 100*es;
  850. *ptr++ = '\0';
  851. len = 50 + end-ptr + FF_INPUT_BUFFER_PADDING_SIZE;
  852. if (!(line = av_malloc(len)))
  853. return;
  854. snprintf(line,len,"Dialogue: %s,%d:%02d:%02d.%02d,%d:%02d:%02d.%02d,%s\r\n",
  855. layer, sh, sm, ss, sc, eh, em, es, ec, ptr);
  856. av_free(pkt->data);
  857. pkt->data = line;
  858. pkt->size = strlen(line);
  859. }
  860. }
  861. static void matroska_merge_packets(AVPacket *out, AVPacket *in)
  862. {
  863. out->data = av_realloc(out->data, out->size+in->size);
  864. memcpy(out->data+out->size, in->data, in->size);
  865. out->size += in->size;
  866. av_destruct_packet(in);
  867. av_free(in);
  868. }
  869. static void matroska_convert_tag(AVFormatContext *s, EbmlList *list,
  870. AVMetadata **metadata, char *prefix)
  871. {
  872. MatroskaTag *tags = list->elem;
  873. char key[1024];
  874. int i;
  875. for (i=0; i < list->nb_elem; i++) {
  876. const char *lang = strcmp(tags[i].lang, "und") ? tags[i].lang : NULL;
  877. if (prefix) snprintf(key, sizeof(key), "%s/%s", prefix, tags[i].name);
  878. else av_strlcpy(key, tags[i].name, sizeof(key));
  879. if (tags[i].def || !lang) {
  880. av_metadata_set(metadata, key, tags[i].string);
  881. if (tags[i].sub.nb_elem)
  882. matroska_convert_tag(s, &tags[i].sub, metadata, key);
  883. }
  884. if (lang) {
  885. av_strlcat(key, "-", sizeof(key));
  886. av_strlcat(key, lang, sizeof(key));
  887. av_metadata_set(metadata, key, tags[i].string);
  888. if (tags[i].sub.nb_elem)
  889. matroska_convert_tag(s, &tags[i].sub, metadata, key);
  890. }
  891. }
  892. }
  893. static void matroska_convert_tags(AVFormatContext *s)
  894. {
  895. MatroskaDemuxContext *matroska = s->priv_data;
  896. MatroskaTags *tags = matroska->tags.elem;
  897. int i, j;
  898. for (i=0; i < matroska->tags.nb_elem; i++) {
  899. if (tags[i].target.attachuid) {
  900. MatroskaAttachement *attachment = matroska->attachments.elem;
  901. for (j=0; j<matroska->attachments.nb_elem; j++)
  902. if (attachment[j].uid == tags[i].target.attachuid)
  903. matroska_convert_tag(s, &tags[i].tag,
  904. &attachment[j].stream->metadata, NULL);
  905. } else if (tags[i].target.chapteruid) {
  906. MatroskaChapter *chapter = matroska->chapters.elem;
  907. for (j=0; j<matroska->chapters.nb_elem; j++)
  908. if (chapter[j].uid == tags[i].target.chapteruid)
  909. matroska_convert_tag(s, &tags[i].tag,
  910. &chapter[j].chapter->metadata, NULL);
  911. } else if (tags[i].target.trackuid) {
  912. MatroskaTrack *track = matroska->tracks.elem;
  913. for (j=0; j<matroska->tracks.nb_elem; j++)
  914. if (track[j].uid == tags[i].target.trackuid)
  915. matroska_convert_tag(s, &tags[i].tag,
  916. &track[j].stream->metadata, NULL);
  917. } else {
  918. matroska_convert_tag(s, &tags[i].tag, &s->metadata,
  919. tags[i].target.type);
  920. }
  921. }
  922. }
  923. static void matroska_execute_seekhead(MatroskaDemuxContext *matroska)
  924. {
  925. EbmlList *seekhead_list = &matroska->seekhead;
  926. MatroskaSeekhead *seekhead = seekhead_list->elem;
  927. uint32_t level_up = matroska->level_up;
  928. int64_t before_pos = url_ftell(matroska->ctx->pb);
  929. MatroskaLevel level;
  930. int i;
  931. for (i=0; i<seekhead_list->nb_elem; i++) {
  932. int64_t offset = seekhead[i].pos + matroska->segment_start;
  933. if (seekhead[i].pos <= before_pos
  934. || seekhead[i].id == MATROSKA_ID_SEEKHEAD
  935. || seekhead[i].id == MATROSKA_ID_CLUSTER)
  936. continue;
  937. /* seek */
  938. if (url_fseek(matroska->ctx->pb, offset, SEEK_SET) != offset)
  939. continue;
  940. /* We don't want to lose our seekhead level, so we add
  941. * a dummy. This is a crude hack. */
  942. if (matroska->num_levels == EBML_MAX_DEPTH) {
  943. av_log(matroska->ctx, AV_LOG_INFO,
  944. "Max EBML element depth (%d) reached, "
  945. "cannot parse further.\n", EBML_MAX_DEPTH);
  946. break;
  947. }
  948. level.start = 0;
  949. level.length = (uint64_t)-1;
  950. matroska->levels[matroska->num_levels] = level;
  951. matroska->num_levels++;
  952. ebml_parse(matroska, matroska_segment, matroska);
  953. /* remove dummy level */
  954. while (matroska->num_levels) {
  955. uint64_t length = matroska->levels[--matroska->num_levels].length;
  956. if (length == (uint64_t)-1)
  957. break;
  958. }
  959. }
  960. /* seek back */
  961. url_fseek(matroska->ctx->pb, before_pos, SEEK_SET);
  962. matroska->level_up = level_up;
  963. }
  964. static int matroska_aac_profile(char *codec_id)
  965. {
  966. static const char * const aac_profiles[] = { "MAIN", "LC", "SSR" };
  967. int profile;
  968. for (profile=0; profile<FF_ARRAY_ELEMS(aac_profiles); profile++)
  969. if (strstr(codec_id, aac_profiles[profile]))
  970. break;
  971. return profile + 1;
  972. }
  973. static int matroska_aac_sri(int samplerate)
  974. {
  975. int sri;
  976. for (sri=0; sri<FF_ARRAY_ELEMS(ff_mpeg4audio_sample_rates); sri++)
  977. if (ff_mpeg4audio_sample_rates[sri] == samplerate)
  978. break;
  979. return sri;
  980. }
  981. static int matroska_read_header(AVFormatContext *s, AVFormatParameters *ap)
  982. {
  983. MatroskaDemuxContext *matroska = s->priv_data;
  984. EbmlList *attachements_list = &matroska->attachments;
  985. MatroskaAttachement *attachements;
  986. EbmlList *chapters_list = &matroska->chapters;
  987. MatroskaChapter *chapters;
  988. MatroskaTrack *tracks;
  989. EbmlList *index_list;
  990. MatroskaIndex *index;
  991. int index_scale = 1;
  992. uint64_t max_start = 0;
  993. Ebml ebml = { 0 };
  994. AVStream *st;
  995. int i, j;
  996. matroska->ctx = s;
  997. /* First read the EBML header. */
  998. if (ebml_parse(matroska, ebml_syntax, &ebml)
  999. || ebml.version > EBML_VERSION || ebml.max_size > sizeof(uint64_t)
  1000. || ebml.id_length > sizeof(uint32_t) || strcmp(ebml.doctype, "matroska")
  1001. || ebml.doctype_version > 2) {
  1002. av_log(matroska->ctx, AV_LOG_ERROR,
  1003. "EBML header using unsupported features\n"
  1004. "(EBML version %"PRIu64", doctype %s, doc version %"PRIu64")\n",
  1005. ebml.version, ebml.doctype, ebml.doctype_version);
  1006. return AVERROR_NOFMT;
  1007. }
  1008. ebml_free(ebml_syntax, &ebml);
  1009. /* The next thing is a segment. */
  1010. if (ebml_parse(matroska, matroska_segments, matroska) < 0)
  1011. return -1;
  1012. matroska_execute_seekhead(matroska);
  1013. if (matroska->duration)
  1014. matroska->ctx->duration = matroska->duration * matroska->time_scale
  1015. * 1000 / AV_TIME_BASE;
  1016. av_metadata_set(&s->metadata, "title", matroska->title);
  1017. tracks = matroska->tracks.elem;
  1018. for (i=0; i < matroska->tracks.nb_elem; i++) {
  1019. MatroskaTrack *track = &tracks[i];
  1020. enum CodecID codec_id = CODEC_ID_NONE;
  1021. EbmlList *encodings_list = &tracks->encodings;
  1022. MatroskaTrackEncoding *encodings = encodings_list->elem;
  1023. uint8_t *extradata = NULL;
  1024. int extradata_size = 0;
  1025. int extradata_offset = 0;
  1026. ByteIOContext b;
  1027. /* Apply some sanity checks. */
  1028. if (track->type != MATROSKA_TRACK_TYPE_VIDEO &&
  1029. track->type != MATROSKA_TRACK_TYPE_AUDIO &&
  1030. track->type != MATROSKA_TRACK_TYPE_SUBTITLE) {
  1031. av_log(matroska->ctx, AV_LOG_INFO,
  1032. "Unknown or unsupported track type %"PRIu64"\n",
  1033. track->type);
  1034. continue;
  1035. }
  1036. if (track->codec_id == NULL)
  1037. continue;
  1038. if (track->type == MATROSKA_TRACK_TYPE_VIDEO) {
  1039. if (!track->default_duration)
  1040. track->default_duration = 1000000000/track->video.frame_rate;
  1041. if (!track->video.display_width)
  1042. track->video.display_width = track->video.pixel_width;
  1043. if (!track->video.display_height)
  1044. track->video.display_height = track->video.pixel_height;
  1045. } else if (track->type == MATROSKA_TRACK_TYPE_AUDIO) {
  1046. if (!track->audio.out_samplerate)
  1047. track->audio.out_samplerate = track->audio.samplerate;
  1048. }
  1049. if (encodings_list->nb_elem > 1) {
  1050. av_log(matroska->ctx, AV_LOG_ERROR,
  1051. "Multiple combined encodings no supported");
  1052. } else if (encodings_list->nb_elem == 1) {
  1053. if (encodings[0].type ||
  1054. (encodings[0].compression.algo != MATROSKA_TRACK_ENCODING_COMP_HEADERSTRIP &&
  1055. #if CONFIG_ZLIB
  1056. encodings[0].compression.algo != MATROSKA_TRACK_ENCODING_COMP_ZLIB &&
  1057. #endif
  1058. #if CONFIG_BZLIB
  1059. encodings[0].compression.algo != MATROSKA_TRACK_ENCODING_COMP_BZLIB &&
  1060. #endif
  1061. encodings[0].compression.algo != MATROSKA_TRACK_ENCODING_COMP_LZO)) {
  1062. encodings[0].scope = 0;
  1063. av_log(matroska->ctx, AV_LOG_ERROR,
  1064. "Unsupported encoding type");
  1065. } else if (track->codec_priv.size && encodings[0].scope&2) {
  1066. uint8_t *codec_priv = track->codec_priv.data;
  1067. int offset = matroska_decode_buffer(&track->codec_priv.data,
  1068. &track->codec_priv.size,
  1069. track);
  1070. if (offset < 0) {
  1071. track->codec_priv.data = NULL;
  1072. track->codec_priv.size = 0;
  1073. av_log(matroska->ctx, AV_LOG_ERROR,
  1074. "Failed to decode codec private data\n");
  1075. } else if (offset > 0) {
  1076. track->codec_priv.data = av_malloc(track->codec_priv.size + offset);
  1077. memcpy(track->codec_priv.data,
  1078. encodings[0].compression.settings.data, offset);
  1079. memcpy(track->codec_priv.data+offset, codec_priv,
  1080. track->codec_priv.size);
  1081. track->codec_priv.size += offset;
  1082. }
  1083. if (codec_priv != track->codec_priv.data)
  1084. av_free(codec_priv);
  1085. }
  1086. }
  1087. for(j=0; ff_mkv_codec_tags[j].id != CODEC_ID_NONE; j++){
  1088. if(!strncmp(ff_mkv_codec_tags[j].str, track->codec_id,
  1089. strlen(ff_mkv_codec_tags[j].str))){
  1090. codec_id= ff_mkv_codec_tags[j].id;
  1091. break;
  1092. }
  1093. }
  1094. st = track->stream = av_new_stream(s, 0);
  1095. if (st == NULL)
  1096. return AVERROR(ENOMEM);
  1097. if (!strcmp(track->codec_id, "V_MS/VFW/FOURCC")
  1098. && track->codec_priv.size >= 40
  1099. && track->codec_priv.data != NULL) {
  1100. track->video.fourcc = AV_RL32(track->codec_priv.data + 16);
  1101. codec_id = ff_codec_get_id(ff_codec_bmp_tags, track->video.fourcc);
  1102. extradata_offset = 40;
  1103. } else if (!strcmp(track->codec_id, "A_MS/ACM")
  1104. && track->codec_priv.size >= 14
  1105. && track->codec_priv.data != NULL) {
  1106. init_put_byte(&b, track->codec_priv.data, track->codec_priv.size,
  1107. URL_RDONLY, NULL, NULL, NULL, NULL);
  1108. ff_get_wav_header(&b, st->codec, track->codec_priv.size);
  1109. codec_id = st->codec->codec_id;
  1110. extradata_offset = FFMIN(track->codec_priv.size, 18);
  1111. } else if (!strcmp(track->codec_id, "V_QUICKTIME")
  1112. && (track->codec_priv.size >= 86)
  1113. && (track->codec_priv.data != NULL)) {
  1114. track->video.fourcc = AV_RL32(track->codec_priv.data);
  1115. codec_id=ff_codec_get_id(codec_movvideo_tags, track->video.fourcc);
  1116. } else if (codec_id == CODEC_ID_PCM_S16BE) {
  1117. switch (track->audio.bitdepth) {
  1118. case 8: codec_id = CODEC_ID_PCM_U8; break;
  1119. case 24: codec_id = CODEC_ID_PCM_S24BE; break;
  1120. case 32: codec_id = CODEC_ID_PCM_S32BE; break;
  1121. }
  1122. } else if (codec_id == CODEC_ID_PCM_S16LE) {
  1123. switch (track->audio.bitdepth) {
  1124. case 8: codec_id = CODEC_ID_PCM_U8; break;
  1125. case 24: codec_id = CODEC_ID_PCM_S24LE; break;
  1126. case 32: codec_id = CODEC_ID_PCM_S32LE; break;
  1127. }
  1128. } else if (codec_id==CODEC_ID_PCM_F32LE && track->audio.bitdepth==64) {
  1129. codec_id = CODEC_ID_PCM_F64LE;
  1130. } else if (codec_id == CODEC_ID_AAC && !track->codec_priv.size) {
  1131. int profile = matroska_aac_profile(track->codec_id);
  1132. int sri = matroska_aac_sri(track->audio.samplerate);
  1133. extradata = av_malloc(5);
  1134. if (extradata == NULL)
  1135. return AVERROR(ENOMEM);
  1136. extradata[0] = (profile << 3) | ((sri&0x0E) >> 1);
  1137. extradata[1] = ((sri&0x01) << 7) | (track->audio.channels<<3);
  1138. if (strstr(track->codec_id, "SBR")) {
  1139. sri = matroska_aac_sri(track->audio.out_samplerate);
  1140. extradata[2] = 0x56;
  1141. extradata[3] = 0xE5;
  1142. extradata[4] = 0x80 | (sri<<3);
  1143. extradata_size = 5;
  1144. } else
  1145. extradata_size = 2;
  1146. } else if (codec_id == CODEC_ID_TTA) {
  1147. extradata_size = 30;
  1148. extradata = av_mallocz(extradata_size);
  1149. if (extradata == NULL)
  1150. return AVERROR(ENOMEM);
  1151. init_put_byte(&b, extradata, extradata_size, 1,
  1152. NULL, NULL, NULL, NULL);
  1153. put_buffer(&b, "TTA1", 4);
  1154. put_le16(&b, 1);
  1155. put_le16(&b, track->audio.channels);
  1156. put_le16(&b, track->audio.bitdepth);
  1157. put_le32(&b, track->audio.out_samplerate);
  1158. put_le32(&b, matroska->ctx->duration * track->audio.out_samplerate);
  1159. } else if (codec_id == CODEC_ID_RV10 || codec_id == CODEC_ID_RV20 ||
  1160. codec_id == CODEC_ID_RV30 || codec_id == CODEC_ID_RV40) {
  1161. extradata_offset = 26;
  1162. } else if (codec_id == CODEC_ID_RA_144) {
  1163. track->audio.out_samplerate = 8000;
  1164. track->audio.channels = 1;
  1165. } else if (codec_id == CODEC_ID_RA_288 || codec_id == CODEC_ID_COOK ||
  1166. codec_id == CODEC_ID_ATRAC3) {
  1167. init_put_byte(&b, track->codec_priv.data,track->codec_priv.size,
  1168. 0, NULL, NULL, NULL, NULL);
  1169. url_fskip(&b, 24);
  1170. track->audio.coded_framesize = get_be32(&b);
  1171. url_fskip(&b, 12);
  1172. track->audio.sub_packet_h = get_be16(&b);
  1173. track->audio.frame_size = get_be16(&b);
  1174. track->audio.sub_packet_size = get_be16(&b);
  1175. track->audio.buf = av_malloc(track->audio.frame_size * track->audio.sub_packet_h);
  1176. if (codec_id == CODEC_ID_RA_288) {
  1177. st->codec->block_align = track->audio.coded_framesize;
  1178. track->codec_priv.size = 0;
  1179. } else {
  1180. st->codec->block_align = track->audio.sub_packet_size;
  1181. extradata_offset = 78;
  1182. }
  1183. }
  1184. track->codec_priv.size -= extradata_offset;
  1185. if (codec_id == CODEC_ID_NONE)
  1186. av_log(matroska->ctx, AV_LOG_INFO,
  1187. "Unknown/unsupported CodecID %s.\n", track->codec_id);
  1188. if (track->time_scale < 0.01)
  1189. track->time_scale = 1.0;
  1190. av_set_pts_info(st, 64, matroska->time_scale*track->time_scale, 1000*1000*1000); /* 64 bit pts in ns */
  1191. st->codec->codec_id = codec_id;
  1192. st->start_time = 0;
  1193. if (strcmp(track->language, "und"))
  1194. av_metadata_set(&st->metadata, "language", track->language);
  1195. av_metadata_set(&st->metadata, "title", track->name);
  1196. if (track->flag_default)
  1197. st->disposition |= AV_DISPOSITION_DEFAULT;
  1198. if (track->default_duration)
  1199. av_reduce(&st->codec->time_base.num, &st->codec->time_base.den,
  1200. track->default_duration, 1000000000, 30000);
  1201. if (!st->codec->extradata) {
  1202. if(extradata){
  1203. st->codec->extradata = extradata;
  1204. st->codec->extradata_size = extradata_size;
  1205. } else if(track->codec_priv.data && track->codec_priv.size > 0){
  1206. st->codec->extradata = av_mallocz(track->codec_priv.size +
  1207. FF_INPUT_BUFFER_PADDING_SIZE);
  1208. if(st->codec->extradata == NULL)
  1209. return AVERROR(ENOMEM);
  1210. st->codec->extradata_size = track->codec_priv.size;
  1211. memcpy(st->codec->extradata,
  1212. track->codec_priv.data + extradata_offset,
  1213. track->codec_priv.size);
  1214. }
  1215. }
  1216. if (track->type == MATROSKA_TRACK_TYPE_VIDEO) {
  1217. st->codec->codec_type = CODEC_TYPE_VIDEO;
  1218. st->codec->codec_tag = track->video.fourcc;
  1219. st->codec->width = track->video.pixel_width;
  1220. st->codec->height = track->video.pixel_height;
  1221. av_reduce(&st->sample_aspect_ratio.num,
  1222. &st->sample_aspect_ratio.den,
  1223. st->codec->height * track->video.display_width,
  1224. st->codec-> width * track->video.display_height,
  1225. 255);
  1226. if (st->codec->codec_id != CODEC_ID_H264)
  1227. st->need_parsing = AVSTREAM_PARSE_HEADERS;
  1228. } else if (track->type == MATROSKA_TRACK_TYPE_AUDIO) {
  1229. st->codec->codec_type = CODEC_TYPE_AUDIO;
  1230. st->codec->sample_rate = track->audio.out_samplerate;
  1231. st->codec->channels = track->audio.channels;
  1232. } else if (track->type == MATROSKA_TRACK_TYPE_SUBTITLE) {
  1233. st->codec->codec_type = CODEC_TYPE_SUBTITLE;
  1234. }
  1235. }
  1236. attachements = attachements_list->elem;
  1237. for (j=0; j<attachements_list->nb_elem; j++) {
  1238. if (!(attachements[j].filename && attachements[j].mime &&
  1239. attachements[j].bin.data && attachements[j].bin.size > 0)) {
  1240. av_log(matroska->ctx, AV_LOG_ERROR, "incomplete attachment\n");
  1241. } else {
  1242. AVStream *st = av_new_stream(s, 0);
  1243. if (st == NULL)
  1244. break;
  1245. av_metadata_set(&st->metadata, "filename",attachements[j].filename);
  1246. st->codec->codec_id = CODEC_ID_NONE;
  1247. st->codec->codec_type = CODEC_TYPE_ATTACHMENT;
  1248. st->codec->extradata = av_malloc(attachements[j].bin.size);
  1249. if(st->codec->extradata == NULL)
  1250. break;
  1251. st->codec->extradata_size = attachements[j].bin.size;
  1252. memcpy(st->codec->extradata, attachements[j].bin.data, attachements[j].bin.size);
  1253. for (i=0; ff_mkv_mime_tags[i].id != CODEC_ID_NONE; i++) {
  1254. if (!strncmp(ff_mkv_mime_tags[i].str, attachements[j].mime,
  1255. strlen(ff_mkv_mime_tags[i].str))) {
  1256. st->codec->codec_id = ff_mkv_mime_tags[i].id;
  1257. break;
  1258. }
  1259. }
  1260. attachements[j].stream = st;
  1261. }
  1262. }
  1263. chapters = chapters_list->elem;
  1264. for (i=0; i<chapters_list->nb_elem; i++)
  1265. if (chapters[i].start != AV_NOPTS_VALUE && chapters[i].uid
  1266. && (max_start==0 || chapters[i].start > max_start)) {
  1267. chapters[i].chapter =
  1268. ff_new_chapter(s, chapters[i].uid, (AVRational){1, 1000000000},
  1269. chapters[i].start, chapters[i].end,
  1270. chapters[i].title);
  1271. av_metadata_set(&chapters[i].chapter->metadata,
  1272. "title", chapters[i].title);
  1273. max_start = chapters[i].start;
  1274. }
  1275. index_list = &matroska->index;
  1276. index = index_list->elem;
  1277. if (index_list->nb_elem
  1278. && index[0].time > 100000000000000/matroska->time_scale) {
  1279. av_log(matroska->ctx, AV_LOG_WARNING, "Working around broken index.\n");
  1280. index_scale = matroska->time_scale;
  1281. }
  1282. for (i=0; i<index_list->nb_elem; i++) {
  1283. EbmlList *pos_list = &index[i].pos;
  1284. MatroskaIndexPos *pos = pos_list->elem;
  1285. for (j=0; j<pos_list->nb_elem; j++) {
  1286. MatroskaTrack *track = matroska_find_track_by_num(matroska,
  1287. pos[j].track);
  1288. if (track && track->stream)
  1289. av_add_index_entry(track->stream,
  1290. pos[j].pos + matroska->segment_start,
  1291. index[i].time/index_scale, 0, 0,
  1292. AVINDEX_KEYFRAME);
  1293. }
  1294. }
  1295. matroska_convert_tags(s);
  1296. return 0;
  1297. }
  1298. /*
  1299. * Put one packet in an application-supplied AVPacket struct.
  1300. * Returns 0 on success or -1 on failure.
  1301. */
  1302. static int matroska_deliver_packet(MatroskaDemuxContext *matroska,
  1303. AVPacket *pkt)
  1304. {
  1305. if (matroska->num_packets > 0) {
  1306. memcpy(pkt, matroska->packets[0], sizeof(AVPacket));
  1307. av_free(matroska->packets[0]);
  1308. if (matroska->num_packets > 1) {
  1309. memmove(&matroska->packets[0], &matroska->packets[1],
  1310. (matroska->num_packets - 1) * sizeof(AVPacket *));
  1311. matroska->packets =
  1312. av_realloc(matroska->packets, (matroska->num_packets - 1) *
  1313. sizeof(AVPacket *));
  1314. } else {
  1315. av_freep(&matroska->packets);
  1316. }
  1317. matroska->num_packets--;
  1318. return 0;
  1319. }
  1320. return -1;
  1321. }
  1322. /*
  1323. * Free all packets in our internal queue.
  1324. */
  1325. static void matroska_clear_queue(MatroskaDemuxContext *matroska)
  1326. {
  1327. if (matroska->packets) {
  1328. int n;
  1329. for (n = 0; n < matroska->num_packets; n++) {
  1330. av_free_packet(matroska->packets[n]);
  1331. av_free(matroska->packets[n]);
  1332. }
  1333. av_freep(&matroska->packets);
  1334. matroska->num_packets = 0;
  1335. }
  1336. }
  1337. static int matroska_parse_block(MatroskaDemuxContext *matroska, uint8_t *data,
  1338. int size, int64_t pos, uint64_t cluster_time,
  1339. uint64_t duration, int is_keyframe,
  1340. int64_t cluster_pos)
  1341. {
  1342. uint64_t timecode = AV_NOPTS_VALUE;
  1343. MatroskaTrack *track;
  1344. int res = 0;
  1345. AVStream *st;
  1346. AVPacket *pkt;
  1347. int16_t block_time;
  1348. uint32_t *lace_size = NULL;
  1349. int n, flags, laces = 0;
  1350. uint64_t num;
  1351. if ((n = matroska_ebmlnum_uint(matroska, data, size, &num)) < 0) {
  1352. av_log(matroska->ctx, AV_LOG_ERROR, "EBML block data error\n");
  1353. return res;
  1354. }
  1355. data += n;
  1356. size -= n;
  1357. track = matroska_find_track_by_num(matroska, num);
  1358. if (size <= 3 || !track || !track->stream) {
  1359. av_log(matroska->ctx, AV_LOG_INFO,
  1360. "Invalid stream %"PRIu64" or size %u\n", num, size);
  1361. return res;
  1362. }
  1363. st = track->stream;
  1364. if (st->discard >= AVDISCARD_ALL)
  1365. return res;
  1366. if (duration == AV_NOPTS_VALUE)
  1367. duration = track->default_duration / matroska->time_scale;
  1368. block_time = AV_RB16(data);
  1369. data += 2;
  1370. flags = *data++;
  1371. size -= 3;
  1372. if (is_keyframe == -1)
  1373. is_keyframe = flags & 0x80 ? PKT_FLAG_KEY : 0;
  1374. if (cluster_time != (uint64_t)-1
  1375. && (block_time >= 0 || cluster_time >= -block_time)) {
  1376. timecode = cluster_time + block_time;
  1377. if (track->type == MATROSKA_TRACK_TYPE_SUBTITLE
  1378. && timecode < track->end_timecode)
  1379. is_keyframe = 0; /* overlapping subtitles are not key frame */
  1380. if (is_keyframe)
  1381. av_add_index_entry(st, cluster_pos, timecode, 0,0,AVINDEX_KEYFRAME);
  1382. track->end_timecode = FFMAX(track->end_timecode, timecode+duration);
  1383. }
  1384. if (matroska->skip_to_keyframe && track->type != MATROSKA_TRACK_TYPE_SUBTITLE) {
  1385. if (!is_keyframe || timecode < matroska->skip_to_timecode)
  1386. return res;
  1387. matroska->skip_to_keyframe = 0;
  1388. }
  1389. switch ((flags & 0x06) >> 1) {
  1390. case 0x0: /* no lacing */
  1391. laces = 1;
  1392. lace_size = av_mallocz(sizeof(int));
  1393. lace_size[0] = size;
  1394. break;
  1395. case 0x1: /* Xiph lacing */
  1396. case 0x2: /* fixed-size lacing */
  1397. case 0x3: /* EBML lacing */
  1398. assert(size>0); // size <=3 is checked before size-=3 above
  1399. laces = (*data) + 1;
  1400. data += 1;
  1401. size -= 1;
  1402. lace_size = av_mallocz(laces * sizeof(int));
  1403. switch ((flags & 0x06) >> 1) {
  1404. case 0x1: /* Xiph lacing */ {
  1405. uint8_t temp;
  1406. uint32_t total = 0;
  1407. for (n = 0; res == 0 && n < laces - 1; n++) {
  1408. while (1) {
  1409. if (size == 0) {
  1410. res = -1;
  1411. break;
  1412. }
  1413. temp = *data;
  1414. lace_size[n] += temp;
  1415. data += 1;
  1416. size -= 1;
  1417. if (temp != 0xff)
  1418. break;
  1419. }
  1420. total += lace_size[n];
  1421. }
  1422. lace_size[n] = size - total;
  1423. break;
  1424. }
  1425. case 0x2: /* fixed-size lacing */
  1426. for (n = 0; n < laces; n++)
  1427. lace_size[n] = size / laces;
  1428. break;
  1429. case 0x3: /* EBML lacing */ {
  1430. uint32_t total;
  1431. n = matroska_ebmlnum_uint(matroska, data, size, &num);
  1432. if (n < 0) {
  1433. av_log(matroska->ctx, AV_LOG_INFO,
  1434. "EBML block data error\n");
  1435. break;
  1436. }
  1437. data += n;
  1438. size -= n;
  1439. total = lace_size[0] = num;
  1440. for (n = 1; res == 0 && n < laces - 1; n++) {
  1441. int64_t snum;
  1442. int r;
  1443. r = matroska_ebmlnum_sint(matroska, data, size, &snum);
  1444. if (r < 0) {
  1445. av_log(matroska->ctx, AV_LOG_INFO,
  1446. "EBML block data error\n");
  1447. break;
  1448. }
  1449. data += r;
  1450. size -= r;
  1451. lace_size[n] = lace_size[n - 1] + snum;
  1452. total += lace_size[n];
  1453. }
  1454. lace_size[n] = size - total;
  1455. break;
  1456. }
  1457. }
  1458. break;
  1459. }
  1460. if (res == 0) {
  1461. for (n = 0; n < laces; n++) {
  1462. if ((st->codec->codec_id == CODEC_ID_RA_288 ||
  1463. st->codec->codec_id == CODEC_ID_COOK ||
  1464. st->codec->codec_id == CODEC_ID_ATRAC3) &&
  1465. st->codec->block_align && track->audio.sub_packet_size) {
  1466. int a = st->codec->block_align;
  1467. int sps = track->audio.sub_packet_size;
  1468. int cfs = track->audio.coded_framesize;
  1469. int h = track->audio.sub_packet_h;
  1470. int y = track->audio.sub_packet_cnt;
  1471. int w = track->audio.frame_size;
  1472. int x;
  1473. if (!track->audio.pkt_cnt) {
  1474. if (st->codec->codec_id == CODEC_ID_RA_288)
  1475. for (x=0; x<h/2; x++)
  1476. memcpy(track->audio.buf+x*2*w+y*cfs,
  1477. data+x*cfs, cfs);
  1478. else
  1479. for (x=0; x<w/sps; x++)
  1480. memcpy(track->audio.buf+sps*(h*x+((h+1)/2)*(y&1)+(y>>1)), data+x*sps, sps);
  1481. if (++track->audio.sub_packet_cnt >= h) {
  1482. track->audio.sub_packet_cnt = 0;
  1483. track->audio.pkt_cnt = h*w / a;
  1484. }
  1485. }
  1486. while (track->audio.pkt_cnt) {
  1487. pkt = av_mallocz(sizeof(AVPacket));
  1488. av_new_packet(pkt, a);
  1489. memcpy(pkt->data, track->audio.buf
  1490. + a * (h*w / a - track->audio.pkt_cnt--), a);
  1491. pkt->pos = pos;
  1492. pkt->stream_index = st->index;
  1493. dynarray_add(&matroska->packets,&matroska->num_packets,pkt);
  1494. }
  1495. } else {
  1496. MatroskaTrackEncoding *encodings = track->encodings.elem;
  1497. int offset = 0, pkt_size = lace_size[n];
  1498. uint8_t *pkt_data = data;
  1499. if (encodings && encodings->scope & 1) {
  1500. offset = matroska_decode_buffer(&pkt_data,&pkt_size, track);
  1501. if (offset < 0)
  1502. continue;
  1503. }
  1504. pkt = av_mallocz(sizeof(AVPacket));
  1505. /* XXX: prevent data copy... */
  1506. if (av_new_packet(pkt, pkt_size+offset) < 0) {
  1507. av_free(pkt);
  1508. res = AVERROR(ENOMEM);
  1509. break;
  1510. }
  1511. if (offset)
  1512. memcpy (pkt->data, encodings->compression.settings.data, offset);
  1513. memcpy (pkt->data+offset, pkt_data, pkt_size);
  1514. if (pkt_data != data)
  1515. av_free(pkt_data);
  1516. if (n == 0)
  1517. pkt->flags = is_keyframe;
  1518. pkt->stream_index = st->index;
  1519. pkt->pts = timecode;
  1520. pkt->pos = pos;
  1521. if (st->codec->codec_id == CODEC_ID_TEXT)
  1522. pkt->convergence_duration = duration;
  1523. else if (track->type != MATROSKA_TRACK_TYPE_SUBTITLE)
  1524. pkt->duration = duration;
  1525. if (st->codec->codec_id == CODEC_ID_SSA)
  1526. matroska_fix_ass_packet(matroska, pkt, duration);
  1527. if (matroska->prev_pkt &&
  1528. timecode != AV_NOPTS_VALUE &&
  1529. matroska->prev_pkt->pts == timecode &&
  1530. matroska->prev_pkt->stream_index == st->index)
  1531. matroska_merge_packets(matroska->prev_pkt, pkt);
  1532. else {
  1533. dynarray_add(&matroska->packets,&matroska->num_packets,pkt);
  1534. matroska->prev_pkt = pkt;
  1535. }
  1536. }
  1537. if (timecode != AV_NOPTS_VALUE)
  1538. timecode = duration ? timecode + duration : AV_NOPTS_VALUE;
  1539. data += lace_size[n];
  1540. }
  1541. }
  1542. av_free(lace_size);
  1543. return res;
  1544. }
  1545. static int matroska_parse_cluster(MatroskaDemuxContext *matroska)
  1546. {
  1547. MatroskaCluster cluster = { 0 };
  1548. EbmlList *blocks_list;
  1549. MatroskaBlock *blocks;
  1550. int i, res;
  1551. int64_t pos = url_ftell(matroska->ctx->pb);
  1552. matroska->prev_pkt = NULL;
  1553. if (matroska->has_cluster_id){
  1554. /* For the first cluster we parse, its ID was already read as
  1555. part of matroska_read_header(), so don't read it again */
  1556. res = ebml_parse_id(matroska, matroska_clusters,
  1557. MATROSKA_ID_CLUSTER, &cluster);
  1558. pos -= 4; /* sizeof the ID which was already read */
  1559. matroska->has_cluster_id = 0;
  1560. } else
  1561. res = ebml_parse(matroska, matroska_clusters, &cluster);
  1562. blocks_list = &cluster.blocks;
  1563. blocks = blocks_list->elem;
  1564. for (i=0; i<blocks_list->nb_elem; i++)
  1565. if (blocks[i].bin.size > 0) {
  1566. int is_keyframe = blocks[i].non_simple ? !blocks[i].reference : -1;
  1567. res=matroska_parse_block(matroska,
  1568. blocks[i].bin.data, blocks[i].bin.size,
  1569. blocks[i].bin.pos, cluster.timecode,
  1570. blocks[i].duration, is_keyframe,
  1571. pos);
  1572. }
  1573. ebml_free(matroska_cluster, &cluster);
  1574. if (res < 0) matroska->done = 1;
  1575. return res;
  1576. }
  1577. static int matroska_read_packet(AVFormatContext *s, AVPacket *pkt)
  1578. {
  1579. MatroskaDemuxContext *matroska = s->priv_data;
  1580. while (matroska_deliver_packet(matroska, pkt)) {
  1581. if (matroska->done)
  1582. return AVERROR_EOF;
  1583. matroska_parse_cluster(matroska);
  1584. }
  1585. return 0;
  1586. }
  1587. static int matroska_read_seek(AVFormatContext *s, int stream_index,
  1588. int64_t timestamp, int flags)
  1589. {
  1590. MatroskaDemuxContext *matroska = s->priv_data;
  1591. MatroskaTrack *tracks = matroska->tracks.elem;
  1592. AVStream *st = s->streams[stream_index];
  1593. int i, index, index_sub, index_min;
  1594. if (!st->nb_index_entries)
  1595. return 0;
  1596. timestamp = FFMAX(timestamp, st->index_entries[0].timestamp);
  1597. if ((index = av_index_search_timestamp(st, timestamp, flags)) < 0) {
  1598. url_fseek(s->pb, st->index_entries[st->nb_index_entries-1].pos, SEEK_SET);
  1599. while ((index = av_index_search_timestamp(st, timestamp, flags)) < 0) {
  1600. matroska_clear_queue(matroska);
  1601. if (matroska_parse_cluster(matroska) < 0)
  1602. break;
  1603. }
  1604. }
  1605. matroska_clear_queue(matroska);
  1606. if (index < 0)
  1607. return 0;
  1608. index_min = index;
  1609. for (i=0; i < matroska->tracks.nb_elem; i++) {
  1610. tracks[i].end_timecode = 0;
  1611. if (tracks[i].type == MATROSKA_TRACK_TYPE_SUBTITLE
  1612. && !tracks[i].stream->discard != AVDISCARD_ALL) {
  1613. index_sub = av_index_search_timestamp(tracks[i].stream, st->index_entries[index].timestamp, AVSEEK_FLAG_BACKWARD);
  1614. if (index_sub >= 0
  1615. && st->index_entries[index_sub].pos < st->index_entries[index_min].pos
  1616. && st->index_entries[index].timestamp - st->index_entries[index_sub].timestamp < 30000000000/matroska->time_scale)
  1617. index_min = index_sub;
  1618. }
  1619. }
  1620. url_fseek(s->pb, st->index_entries[index_min].pos, SEEK_SET);
  1621. matroska->skip_to_keyframe = !(flags & AVSEEK_FLAG_ANY);
  1622. matroska->skip_to_timecode = st->index_entries[index].timestamp;
  1623. matroska->done = 0;
  1624. av_update_cur_dts(s, st, st->index_entries[index].timestamp);
  1625. return 0;
  1626. }
  1627. static int matroska_read_close(AVFormatContext *s)
  1628. {
  1629. MatroskaDemuxContext *matroska = s->priv_data;
  1630. MatroskaTrack *tracks = matroska->tracks.elem;
  1631. int n;
  1632. matroska_clear_queue(matroska);
  1633. for (n=0; n < matroska->tracks.nb_elem; n++)
  1634. if (tracks[n].type == MATROSKA_TRACK_TYPE_AUDIO)
  1635. av_free(tracks[n].audio.buf);
  1636. ebml_free(matroska_segment, matroska);
  1637. return 0;
  1638. }
  1639. AVInputFormat matroska_demuxer = {
  1640. "matroska",
  1641. NULL_IF_CONFIG_SMALL("Matroska file format"),
  1642. sizeof(MatroskaDemuxContext),
  1643. matroska_probe,
  1644. matroska_read_header,
  1645. matroska_read_packet,
  1646. matroska_read_close,
  1647. matroska_read_seek,
  1648. .metadata_conv = ff_mkv_metadata_conv,
  1649. };