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  1. /*
  2. * nut muxer
  3. * Copyright (c) 2004-2007 Michael Niedermayer
  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 "libavutil/intreadwrite.h"
  22. #include "libavutil/mathematics.h"
  23. #include "libavutil/tree.h"
  24. #include "libavutil/dict.h"
  25. #include "libavcodec/mpegaudiodata.h"
  26. #include "nut.h"
  27. #include "internal.h"
  28. #include "avio_internal.h"
  29. static int find_expected_header(AVCodecContext *c, int size, int key_frame, uint8_t out[64]){
  30. int sample_rate= c->sample_rate;
  31. if(size>4096)
  32. return 0;
  33. AV_WB24(out, 1);
  34. if(c->codec_id == AV_CODEC_ID_MPEG4){
  35. if(key_frame){
  36. return 3;
  37. }else{
  38. out[3]= 0xB6;
  39. return 4;
  40. }
  41. }else if(c->codec_id == AV_CODEC_ID_MPEG1VIDEO || c->codec_id == AV_CODEC_ID_MPEG2VIDEO){
  42. return 3;
  43. }else if(c->codec_id == AV_CODEC_ID_H264){
  44. return 3;
  45. }else if(c->codec_id == AV_CODEC_ID_MP3 || c->codec_id == AV_CODEC_ID_MP2){
  46. int lsf, mpeg25, sample_rate_index, bitrate_index, frame_size;
  47. int layer= c->codec_id == AV_CODEC_ID_MP3 ? 3 : 2;
  48. unsigned int header= 0xFFF00000;
  49. lsf = sample_rate < (24000+32000)/2;
  50. mpeg25 = sample_rate < (12000+16000)/2;
  51. sample_rate <<= lsf + mpeg25;
  52. if (sample_rate < (32000 + 44100)/2) sample_rate_index=2;
  53. else if(sample_rate < (44100 + 48000)/2) sample_rate_index=0;
  54. else sample_rate_index=1;
  55. sample_rate= avpriv_mpa_freq_tab[sample_rate_index] >> (lsf + mpeg25);
  56. for(bitrate_index=2; bitrate_index<30; bitrate_index++){
  57. frame_size = avpriv_mpa_bitrate_tab[lsf][layer-1][bitrate_index>>1];
  58. frame_size = (frame_size * 144000) / (sample_rate << lsf) + (bitrate_index&1);
  59. if(frame_size == size)
  60. break;
  61. }
  62. header |= (!lsf)<<19;
  63. header |= (4-layer)<<17;
  64. header |= 1<<16; //no crc
  65. AV_WB32(out, header);
  66. if(size <= 0)
  67. return 2; //we guess there is no crc, if there is one the user clearly does not care about overhead
  68. if(bitrate_index == 30)
  69. return -1; //something is wrong ...
  70. header |= (bitrate_index>>1)<<12;
  71. header |= sample_rate_index<<10;
  72. header |= (bitrate_index&1)<<9;
  73. return 2; //FIXME actually put the needed ones in build_elision_headers()
  74. return 3; //we guess that the private bit is not set
  75. //FIXME the above assumptions should be checked, if these turn out false too often something should be done
  76. }
  77. return 0;
  78. }
  79. static int find_header_idx(AVFormatContext *s, AVCodecContext *c, int size, int frame_type){
  80. NUTContext *nut = s->priv_data;
  81. uint8_t out[64];
  82. int i;
  83. int len= find_expected_header(c, size, frame_type, out);
  84. for(i=1; i<nut->header_count; i++){
  85. if( len == nut->header_len[i]
  86. && !memcmp(out, nut->header[i], len)){
  87. return i;
  88. }
  89. }
  90. return 0;
  91. }
  92. static void build_elision_headers(AVFormatContext *s){
  93. NUTContext *nut = s->priv_data;
  94. int i;
  95. //FIXME this is lame
  96. //FIXME write a 2pass mode to find the maximal headers
  97. static const uint8_t headers[][5]={
  98. {3, 0x00, 0x00, 0x01},
  99. {4, 0x00, 0x00, 0x01, 0xB6},
  100. {2, 0xFF, 0xFA}, //mp3+crc
  101. {2, 0xFF, 0xFB}, //mp3
  102. {2, 0xFF, 0xFC}, //mp2+crc
  103. {2, 0xFF, 0xFD}, //mp2
  104. };
  105. nut->header_count= 7;
  106. for(i=1; i<nut->header_count; i++){
  107. nut->header_len[i]= headers[i-1][0];
  108. nut->header [i]= &headers[i-1][1];
  109. }
  110. }
  111. static void build_frame_code(AVFormatContext *s){
  112. NUTContext *nut = s->priv_data;
  113. int key_frame, index, pred, stream_id;
  114. int start=1;
  115. int end= 254;
  116. int keyframe_0_esc= s->nb_streams > 2;
  117. int pred_table[10];
  118. FrameCode *ft;
  119. ft= &nut->frame_code[start];
  120. ft->flags= FLAG_CODED;
  121. ft->size_mul=1;
  122. ft->pts_delta=1;
  123. start++;
  124. if(keyframe_0_esc){
  125. /* keyframe = 0 escape */
  126. FrameCode *ft= &nut->frame_code[start];
  127. ft->flags= FLAG_STREAM_ID | FLAG_SIZE_MSB | FLAG_CODED_PTS;
  128. ft->size_mul=1;
  129. start++;
  130. }
  131. for(stream_id= 0; stream_id<s->nb_streams; stream_id++){
  132. int start2= start + (end-start)*stream_id / s->nb_streams;
  133. int end2 = start + (end-start)*(stream_id+1) / s->nb_streams;
  134. AVCodecContext *codec = s->streams[stream_id]->codec;
  135. int is_audio= codec->codec_type == AVMEDIA_TYPE_AUDIO;
  136. int intra_only= /*codec->intra_only || */is_audio;
  137. int pred_count;
  138. for(key_frame=0; key_frame<2; key_frame++){
  139. if(intra_only && keyframe_0_esc && key_frame==0)
  140. continue;
  141. {
  142. FrameCode *ft= &nut->frame_code[start2];
  143. ft->flags= FLAG_KEY*key_frame;
  144. ft->flags|= FLAG_SIZE_MSB | FLAG_CODED_PTS;
  145. ft->stream_id= stream_id;
  146. ft->size_mul=1;
  147. if(is_audio)
  148. ft->header_idx= find_header_idx(s, codec, -1, key_frame);
  149. start2++;
  150. }
  151. }
  152. key_frame= intra_only;
  153. if(is_audio){
  154. int frame_bytes= codec->frame_size*(int64_t)codec->bit_rate / (8*codec->sample_rate);
  155. int pts;
  156. for(pts=0; pts<2; pts++){
  157. for(pred=0; pred<2; pred++){
  158. FrameCode *ft= &nut->frame_code[start2];
  159. ft->flags= FLAG_KEY*key_frame;
  160. ft->stream_id= stream_id;
  161. ft->size_mul=frame_bytes + 2;
  162. ft->size_lsb=frame_bytes + pred;
  163. ft->pts_delta=pts;
  164. ft->header_idx= find_header_idx(s, codec, frame_bytes + pred, key_frame);
  165. start2++;
  166. }
  167. }
  168. }else{
  169. FrameCode *ft= &nut->frame_code[start2];
  170. ft->flags= FLAG_KEY | FLAG_SIZE_MSB;
  171. ft->stream_id= stream_id;
  172. ft->size_mul=1;
  173. ft->pts_delta=1;
  174. start2++;
  175. }
  176. if(codec->has_b_frames){
  177. pred_count=5;
  178. pred_table[0]=-2;
  179. pred_table[1]=-1;
  180. pred_table[2]=1;
  181. pred_table[3]=3;
  182. pred_table[4]=4;
  183. }else if(codec->codec_id == AV_CODEC_ID_VORBIS){
  184. pred_count=3;
  185. pred_table[0]=2;
  186. pred_table[1]=9;
  187. pred_table[2]=16;
  188. }else{
  189. pred_count=1;
  190. pred_table[0]=1;
  191. }
  192. for(pred=0; pred<pred_count; pred++){
  193. int start3= start2 + (end2-start2)*pred / pred_count;
  194. int end3 = start2 + (end2-start2)*(pred+1) / pred_count;
  195. for(index=start3; index<end3; index++){
  196. FrameCode *ft= &nut->frame_code[index];
  197. ft->flags= FLAG_KEY*key_frame;
  198. ft->flags|= FLAG_SIZE_MSB;
  199. ft->stream_id= stream_id;
  200. //FIXME use single byte size and pred from last
  201. ft->size_mul= end3-start3;
  202. ft->size_lsb= index - start3;
  203. ft->pts_delta= pred_table[pred];
  204. if(is_audio)
  205. ft->header_idx= find_header_idx(s, codec, -1, key_frame);
  206. }
  207. }
  208. }
  209. memmove(&nut->frame_code['N'+1], &nut->frame_code['N'], sizeof(FrameCode)*(255-'N'));
  210. nut->frame_code[ 0].flags=
  211. nut->frame_code[255].flags=
  212. nut->frame_code['N'].flags= FLAG_INVALID;
  213. }
  214. static void put_tt(NUTContext *nut, AVRational *time_base, AVIOContext *bc, uint64_t val){
  215. val *= nut->time_base_count;
  216. val += time_base - nut->time_base;
  217. ff_put_v(bc, val);
  218. }
  219. /**
  220. * Store a string as vb.
  221. */
  222. static void put_str(AVIOContext *bc, const char *string){
  223. int len= strlen(string);
  224. ff_put_v(bc, len);
  225. avio_write(bc, string, len);
  226. }
  227. static void put_s(AVIOContext *bc, int64_t val){
  228. ff_put_v(bc, 2*FFABS(val) - (val>0));
  229. }
  230. #ifdef TRACE
  231. static inline void ff_put_v_trace(AVIOContext *bc, uint64_t v, const char *file,
  232. const char *func, int line)
  233. {
  234. av_log(NULL, AV_LOG_DEBUG, "ff_put_v %5"PRId64" / %"PRIX64" in %s %s:%d\n", v, v, file, func, line);
  235. ff_put_v(bc, v);
  236. }
  237. static inline void put_s_trace(AVIOContext *bc, int64_t v, const char *file,
  238. const char *func, int line)
  239. {
  240. av_log(NULL, AV_LOG_DEBUG, "put_s %5"PRId64" / %"PRIX64" in %s %s:%d\n", v, v, file, func, line);
  241. put_s(bc, v);
  242. }
  243. #define ff_put_v(bc, v) ff_put_v_trace(bc, v, __FILE__, __PRETTY_FUNCTION__, __LINE__)
  244. #define put_s(bc, v) put_s_trace(bc, v, __FILE__, __PRETTY_FUNCTION__, __LINE__)
  245. #endif
  246. //FIXME remove calculate_checksum
  247. static void put_packet(NUTContext *nut, AVIOContext *bc, AVIOContext *dyn_bc, int calculate_checksum, uint64_t startcode){
  248. uint8_t *dyn_buf=NULL;
  249. int dyn_size= avio_close_dyn_buf(dyn_bc, &dyn_buf);
  250. int forw_ptr= dyn_size + 4*calculate_checksum;
  251. if(forw_ptr > 4096)
  252. ffio_init_checksum(bc, ff_crc04C11DB7_update, 0);
  253. avio_wb64(bc, startcode);
  254. ff_put_v(bc, forw_ptr);
  255. if(forw_ptr > 4096)
  256. avio_wl32(bc, ffio_get_checksum(bc));
  257. if(calculate_checksum)
  258. ffio_init_checksum(bc, ff_crc04C11DB7_update, 0);
  259. avio_write(bc, dyn_buf, dyn_size);
  260. if(calculate_checksum)
  261. avio_wl32(bc, ffio_get_checksum(bc));
  262. av_free(dyn_buf);
  263. }
  264. static void write_mainheader(NUTContext *nut, AVIOContext *bc){
  265. int i, j, tmp_pts, tmp_flags, tmp_stream, tmp_mul, tmp_size, tmp_fields, tmp_head_idx;
  266. int64_t tmp_match;
  267. ff_put_v(bc, 3); /* version */
  268. ff_put_v(bc, nut->avf->nb_streams);
  269. ff_put_v(bc, nut->max_distance);
  270. ff_put_v(bc, nut->time_base_count);
  271. for(i=0; i<nut->time_base_count; i++){
  272. ff_put_v(bc, nut->time_base[i].num);
  273. ff_put_v(bc, nut->time_base[i].den);
  274. }
  275. tmp_pts=0;
  276. tmp_mul=1;
  277. tmp_stream=0;
  278. tmp_match= 1-(1LL<<62);
  279. tmp_head_idx= 0;
  280. for(i=0; i<256;){
  281. tmp_fields=0;
  282. tmp_size=0;
  283. // tmp_res=0;
  284. if(tmp_pts != nut->frame_code[i].pts_delta) tmp_fields=1;
  285. if(tmp_mul != nut->frame_code[i].size_mul ) tmp_fields=2;
  286. if(tmp_stream != nut->frame_code[i].stream_id) tmp_fields=3;
  287. if(tmp_size != nut->frame_code[i].size_lsb ) tmp_fields=4;
  288. // if(tmp_res != nut->frame_code[i].res ) tmp_fields=5;
  289. if(tmp_head_idx!=nut->frame_code[i].header_idx)tmp_fields=8;
  290. tmp_pts = nut->frame_code[i].pts_delta;
  291. tmp_flags = nut->frame_code[i].flags;
  292. tmp_stream= nut->frame_code[i].stream_id;
  293. tmp_mul = nut->frame_code[i].size_mul;
  294. tmp_size = nut->frame_code[i].size_lsb;
  295. // tmp_res = nut->frame_code[i].res;
  296. tmp_head_idx= nut->frame_code[i].header_idx;
  297. for(j=0; i<256; j++,i++){
  298. if(i == 'N'){
  299. j--;
  300. continue;
  301. }
  302. if(nut->frame_code[i].pts_delta != tmp_pts ) break;
  303. if(nut->frame_code[i].flags != tmp_flags ) break;
  304. if(nut->frame_code[i].stream_id != tmp_stream) break;
  305. if(nut->frame_code[i].size_mul != tmp_mul ) break;
  306. if(nut->frame_code[i].size_lsb != tmp_size+j) break;
  307. // if(nut->frame_code[i].res != tmp_res ) break;
  308. if(nut->frame_code[i].header_idx!= tmp_head_idx) break;
  309. }
  310. if(j != tmp_mul - tmp_size) tmp_fields=6;
  311. ff_put_v(bc, tmp_flags);
  312. ff_put_v(bc, tmp_fields);
  313. if(tmp_fields>0) put_s(bc, tmp_pts);
  314. if(tmp_fields>1) ff_put_v(bc, tmp_mul);
  315. if(tmp_fields>2) ff_put_v(bc, tmp_stream);
  316. if(tmp_fields>3) ff_put_v(bc, tmp_size);
  317. if(tmp_fields>4) ff_put_v(bc, 0 /*tmp_res*/);
  318. if(tmp_fields>5) ff_put_v(bc, j);
  319. if(tmp_fields>6) ff_put_v(bc, tmp_match);
  320. if(tmp_fields>7) ff_put_v(bc, tmp_head_idx);
  321. }
  322. ff_put_v(bc, nut->header_count-1);
  323. for(i=1; i<nut->header_count; i++){
  324. ff_put_v(bc, nut->header_len[i]);
  325. avio_write(bc, nut->header[i], nut->header_len[i]);
  326. }
  327. }
  328. static int write_streamheader(AVFormatContext *avctx, AVIOContext *bc, AVStream *st, int i){
  329. NUTContext *nut = avctx->priv_data;
  330. AVCodecContext *codec = st->codec;
  331. unsigned codec_tag = av_codec_get_tag(ff_nut_codec_tags, codec->codec_id);
  332. ff_put_v(bc, i);
  333. switch(codec->codec_type){
  334. case AVMEDIA_TYPE_VIDEO: ff_put_v(bc, 0); break;
  335. case AVMEDIA_TYPE_AUDIO: ff_put_v(bc, 1); break;
  336. case AVMEDIA_TYPE_SUBTITLE: ff_put_v(bc, 2); break;
  337. default : ff_put_v(bc, 3); break;
  338. }
  339. ff_put_v(bc, 4);
  340. if (!codec_tag || codec->codec_id == AV_CODEC_ID_RAWVIDEO)
  341. codec_tag = codec->codec_tag;
  342. if (codec_tag) {
  343. avio_wl32(bc, codec_tag);
  344. } else {
  345. av_log(avctx, AV_LOG_ERROR, "No codec tag defined for stream %d\n", i);
  346. return AVERROR(EINVAL);
  347. }
  348. ff_put_v(bc, nut->stream[i].time_base - nut->time_base);
  349. ff_put_v(bc, nut->stream[i].msb_pts_shift);
  350. ff_put_v(bc, nut->stream[i].max_pts_distance);
  351. ff_put_v(bc, codec->has_b_frames);
  352. avio_w8(bc, 0); /* flags: 0x1 - fixed_fps, 0x2 - index_present */
  353. ff_put_v(bc, codec->extradata_size);
  354. avio_write(bc, codec->extradata, codec->extradata_size);
  355. switch(codec->codec_type){
  356. case AVMEDIA_TYPE_AUDIO:
  357. ff_put_v(bc, codec->sample_rate);
  358. ff_put_v(bc, 1);
  359. ff_put_v(bc, codec->channels);
  360. break;
  361. case AVMEDIA_TYPE_VIDEO:
  362. ff_put_v(bc, codec->width);
  363. ff_put_v(bc, codec->height);
  364. if(st->sample_aspect_ratio.num<=0 || st->sample_aspect_ratio.den<=0){
  365. ff_put_v(bc, 0);
  366. ff_put_v(bc, 0);
  367. }else{
  368. ff_put_v(bc, st->sample_aspect_ratio.num);
  369. ff_put_v(bc, st->sample_aspect_ratio.den);
  370. }
  371. ff_put_v(bc, 0); /* csp type -- unknown */
  372. break;
  373. default:
  374. break;
  375. }
  376. return 0;
  377. }
  378. static int add_info(AVIOContext *bc, const char *type, const char *value){
  379. put_str(bc, type);
  380. put_s(bc, -1);
  381. put_str(bc, value);
  382. return 1;
  383. }
  384. static int write_globalinfo(NUTContext *nut, AVIOContext *bc){
  385. AVFormatContext *s= nut->avf;
  386. AVDictionaryEntry *t = NULL;
  387. AVIOContext *dyn_bc;
  388. uint8_t *dyn_buf=NULL;
  389. int count=0, dyn_size;
  390. int ret = avio_open_dyn_buf(&dyn_bc);
  391. if(ret < 0)
  392. return ret;
  393. while ((t = av_dict_get(s->metadata, "", t, AV_DICT_IGNORE_SUFFIX)))
  394. count += add_info(dyn_bc, t->key, t->value);
  395. ff_put_v(bc, 0); //stream_if_plus1
  396. ff_put_v(bc, 0); //chapter_id
  397. ff_put_v(bc, 0); //timestamp_start
  398. ff_put_v(bc, 0); //length
  399. ff_put_v(bc, count);
  400. dyn_size= avio_close_dyn_buf(dyn_bc, &dyn_buf);
  401. avio_write(bc, dyn_buf, dyn_size);
  402. av_free(dyn_buf);
  403. return 0;
  404. }
  405. static int write_streaminfo(NUTContext *nut, AVIOContext *bc, int stream_id){
  406. AVFormatContext *s= nut->avf;
  407. AVStream* st = s->streams[stream_id];
  408. AVIOContext *dyn_bc;
  409. uint8_t *dyn_buf=NULL;
  410. int count=0, dyn_size, i;
  411. int ret = avio_open_dyn_buf(&dyn_bc);
  412. if(ret < 0)
  413. return ret;
  414. for (i=0; ff_nut_dispositions[i].flag; ++i) {
  415. if (st->disposition & ff_nut_dispositions[i].flag)
  416. count += add_info(dyn_bc, "Disposition", ff_nut_dispositions[i].str);
  417. }
  418. dyn_size = avio_close_dyn_buf(dyn_bc, &dyn_buf);
  419. if (count) {
  420. ff_put_v(bc, stream_id + 1); //stream_id_plus1
  421. ff_put_v(bc, 0); //chapter_id
  422. ff_put_v(bc, 0); //timestamp_start
  423. ff_put_v(bc, 0); //length
  424. ff_put_v(bc, count);
  425. avio_write(bc, dyn_buf, dyn_size);
  426. }
  427. av_free(dyn_buf);
  428. return count;
  429. }
  430. static int write_chapter(NUTContext *nut, AVIOContext *bc, int id)
  431. {
  432. AVIOContext *dyn_bc;
  433. uint8_t *dyn_buf = NULL;
  434. AVDictionaryEntry *t = NULL;
  435. AVChapter *ch = nut->avf->chapters[id];
  436. int ret, dyn_size, count = 0;
  437. ret = avio_open_dyn_buf(&dyn_bc);
  438. if (ret < 0)
  439. return ret;
  440. ff_put_v(bc, 0); // stream_id_plus1
  441. put_s(bc, id + 1); // chapter_id
  442. put_tt(nut, nut->chapter[id].time_base, bc, ch->start); // chapter_start
  443. ff_put_v(bc, ch->end - ch->start); // chapter_len
  444. while ((t = av_dict_get(ch->metadata, "", t, AV_DICT_IGNORE_SUFFIX)))
  445. count += add_info(dyn_bc, t->key, t->value);
  446. ff_put_v(bc, count);
  447. dyn_size = avio_close_dyn_buf(dyn_bc, &dyn_buf);
  448. avio_write(bc, dyn_buf, dyn_size);
  449. av_freep(&dyn_buf);
  450. return 0;
  451. }
  452. static int write_headers(AVFormatContext *avctx, AVIOContext *bc){
  453. NUTContext *nut = avctx->priv_data;
  454. AVIOContext *dyn_bc;
  455. int i, ret;
  456. ff_metadata_conv_ctx(avctx, ff_nut_metadata_conv, NULL);
  457. ret = avio_open_dyn_buf(&dyn_bc);
  458. if(ret < 0)
  459. return ret;
  460. write_mainheader(nut, dyn_bc);
  461. put_packet(nut, bc, dyn_bc, 1, MAIN_STARTCODE);
  462. for (i=0; i < nut->avf->nb_streams; i++){
  463. ret = avio_open_dyn_buf(&dyn_bc);
  464. if(ret < 0)
  465. return ret;
  466. if ((ret = write_streamheader(avctx, dyn_bc, nut->avf->streams[i], i)) < 0)
  467. return ret;
  468. put_packet(nut, bc, dyn_bc, 1, STREAM_STARTCODE);
  469. }
  470. ret = avio_open_dyn_buf(&dyn_bc);
  471. if(ret < 0)
  472. return ret;
  473. write_globalinfo(nut, dyn_bc);
  474. put_packet(nut, bc, dyn_bc, 1, INFO_STARTCODE);
  475. for (i = 0; i < nut->avf->nb_streams; i++) {
  476. ret = avio_open_dyn_buf(&dyn_bc);
  477. if(ret < 0)
  478. return ret;
  479. ret = write_streaminfo(nut, dyn_bc, i);
  480. if (ret < 0)
  481. return ret;
  482. if (ret > 0)
  483. put_packet(nut, bc, dyn_bc, 1, INFO_STARTCODE);
  484. else {
  485. uint8_t* buf;
  486. avio_close_dyn_buf(dyn_bc, &buf);
  487. av_free(buf);
  488. }
  489. }
  490. for (i = 0; i < nut->avf->nb_chapters; i++) {
  491. ret = avio_open_dyn_buf(&dyn_bc);
  492. if (ret < 0)
  493. return ret;
  494. ret = write_chapter(nut, dyn_bc, i);
  495. if (ret < 0) {
  496. uint8_t *buf;
  497. avio_close_dyn_buf(dyn_bc, &buf);
  498. av_freep(&buf);
  499. return ret;
  500. }
  501. put_packet(nut, bc, dyn_bc, 1, INFO_STARTCODE);
  502. }
  503. nut->last_syncpoint_pos= INT_MIN;
  504. nut->header_count++;
  505. return 0;
  506. }
  507. static int nut_write_header(AVFormatContext *s){
  508. NUTContext *nut = s->priv_data;
  509. AVIOContext *bc = s->pb;
  510. int i, j, ret;
  511. nut->avf= s;
  512. nut->stream = av_mallocz(sizeof(StreamContext)*s->nb_streams);
  513. if (s->nb_chapters)
  514. nut->chapter = av_mallocz(sizeof(ChapterContext)*s->nb_chapters);
  515. nut->time_base= av_mallocz(sizeof(AVRational )*(s->nb_streams +
  516. s->nb_chapters));
  517. if (!nut->stream || (s->nb_chapters && !nut->chapter) || !nut->time_base) {
  518. av_freep(&nut->stream);
  519. av_freep(&nut->chapter);
  520. av_freep(&nut->time_base);
  521. return AVERROR(ENOMEM);
  522. }
  523. for(i=0; i<s->nb_streams; i++){
  524. AVStream *st= s->streams[i];
  525. int ssize;
  526. AVRational time_base;
  527. ff_parse_specific_params(st->codec, &time_base.den, &ssize, &time_base.num);
  528. avpriv_set_pts_info(st, 64, time_base.num, time_base.den);
  529. for(j=0; j<nut->time_base_count; j++){
  530. if(!memcmp(&time_base, &nut->time_base[j], sizeof(AVRational))){
  531. break;
  532. }
  533. }
  534. nut->time_base[j]= time_base;
  535. nut->stream[i].time_base= &nut->time_base[j];
  536. if(j==nut->time_base_count)
  537. nut->time_base_count++;
  538. if(INT64_C(1000) * time_base.num >= time_base.den)
  539. nut->stream[i].msb_pts_shift = 7;
  540. else
  541. nut->stream[i].msb_pts_shift = 14;
  542. nut->stream[i].max_pts_distance= FFMAX(time_base.den, time_base.num) / time_base.num;
  543. }
  544. for (i = 0; i < s->nb_chapters; i++) {
  545. AVChapter *ch = s->chapters[i];
  546. for (j = 0; j < nut->time_base_count; j++) {
  547. if (!memcmp(&ch->time_base, &nut->time_base[j], sizeof(AVRational)))
  548. break;
  549. }
  550. nut->time_base[j] = ch->time_base;
  551. nut->chapter[i].time_base = &nut->time_base[j];
  552. if(j == nut->time_base_count)
  553. nut->time_base_count++;
  554. }
  555. nut->max_distance = MAX_DISTANCE;
  556. build_elision_headers(s);
  557. build_frame_code(s);
  558. assert(nut->frame_code['N'].flags == FLAG_INVALID);
  559. avio_write(bc, ID_STRING, strlen(ID_STRING));
  560. avio_w8(bc, 0);
  561. if ((ret = write_headers(s, bc)) < 0)
  562. return ret;
  563. avio_flush(bc);
  564. //FIXME index
  565. return 0;
  566. }
  567. static int get_needed_flags(NUTContext *nut, StreamContext *nus, FrameCode *fc, AVPacket *pkt){
  568. int flags= 0;
  569. if(pkt->flags & AV_PKT_FLAG_KEY ) flags |= FLAG_KEY;
  570. if(pkt->stream_index != fc->stream_id ) flags |= FLAG_STREAM_ID;
  571. if(pkt->size / fc->size_mul ) flags |= FLAG_SIZE_MSB;
  572. if(pkt->pts - nus->last_pts != fc->pts_delta) flags |= FLAG_CODED_PTS;
  573. if(pkt->size > 2*nut->max_distance ) flags |= FLAG_CHECKSUM;
  574. if(FFABS(pkt->pts - nus->last_pts)
  575. > nus->max_pts_distance) flags |= FLAG_CHECKSUM;
  576. if( pkt->size < nut->header_len[fc->header_idx]
  577. || (pkt->size > 4096 && fc->header_idx)
  578. || memcmp(pkt->data, nut->header[fc->header_idx], nut->header_len[fc->header_idx]))
  579. flags |= FLAG_HEADER_IDX;
  580. return flags | (fc->flags & FLAG_CODED);
  581. }
  582. static int find_best_header_idx(NUTContext *nut, AVPacket *pkt){
  583. int i;
  584. int best_i = 0;
  585. int best_len= 0;
  586. if(pkt->size > 4096)
  587. return 0;
  588. for(i=1; i<nut->header_count; i++){
  589. if( pkt->size >= nut->header_len[i]
  590. && nut->header_len[i] > best_len
  591. && !memcmp(pkt->data, nut->header[i], nut->header_len[i])){
  592. best_i= i;
  593. best_len= nut->header_len[i];
  594. }
  595. }
  596. return best_i;
  597. }
  598. static int nut_write_packet(AVFormatContext *s, AVPacket *pkt){
  599. NUTContext *nut = s->priv_data;
  600. StreamContext *nus= &nut->stream[pkt->stream_index];
  601. AVIOContext *bc = s->pb, *dyn_bc;
  602. FrameCode *fc;
  603. int64_t coded_pts;
  604. int best_length, frame_code, flags, needed_flags, i, header_idx, best_header_idx;
  605. int key_frame = !!(pkt->flags & AV_PKT_FLAG_KEY);
  606. int store_sp=0;
  607. int ret;
  608. if(pkt->pts < 0)
  609. return -1;
  610. if(1LL<<(20+3*nut->header_count) <= avio_tell(bc))
  611. write_headers(s, bc);
  612. if(key_frame && !(nus->last_flags & FLAG_KEY))
  613. store_sp= 1;
  614. if(pkt->size + 30/*FIXME check*/ + avio_tell(bc) >= nut->last_syncpoint_pos + nut->max_distance)
  615. store_sp= 1;
  616. //FIXME: Ensure store_sp is 1 in the first place.
  617. if(store_sp){
  618. Syncpoint *sp, dummy= {.pos= INT64_MAX};
  619. ff_nut_reset_ts(nut, *nus->time_base, pkt->dts);
  620. for(i=0; i<s->nb_streams; i++){
  621. AVStream *st= s->streams[i];
  622. int64_t dts_tb = av_rescale_rnd(pkt->dts,
  623. nus->time_base->num * (int64_t)nut->stream[i].time_base->den,
  624. nus->time_base->den * (int64_t)nut->stream[i].time_base->num,
  625. AV_ROUND_DOWN);
  626. int index= av_index_search_timestamp(st, dts_tb, AVSEEK_FLAG_BACKWARD);
  627. if(index>=0) dummy.pos= FFMIN(dummy.pos, st->index_entries[index].pos);
  628. }
  629. if(dummy.pos == INT64_MAX)
  630. dummy.pos= 0;
  631. sp= av_tree_find(nut->syncpoints, &dummy, (void *) ff_nut_sp_pos_cmp,
  632. NULL);
  633. nut->last_syncpoint_pos= avio_tell(bc);
  634. ret = avio_open_dyn_buf(&dyn_bc);
  635. if(ret < 0)
  636. return ret;
  637. put_tt(nut, nus->time_base, dyn_bc, pkt->dts);
  638. ff_put_v(dyn_bc, sp ? (nut->last_syncpoint_pos - sp->pos)>>4 : 0);
  639. put_packet(nut, bc, dyn_bc, 1, SYNCPOINT_STARTCODE);
  640. ff_nut_add_sp(nut, nut->last_syncpoint_pos, 0/*unused*/, pkt->dts);
  641. }
  642. assert(nus->last_pts != AV_NOPTS_VALUE);
  643. coded_pts = pkt->pts & ((1<<nus->msb_pts_shift)-1);
  644. if(ff_lsb2full(nus, coded_pts) != pkt->pts)
  645. coded_pts= pkt->pts + (1<<nus->msb_pts_shift);
  646. best_header_idx= find_best_header_idx(nut, pkt);
  647. best_length=INT_MAX;
  648. frame_code= -1;
  649. for(i=0; i<256; i++){
  650. int length= 0;
  651. FrameCode *fc= &nut->frame_code[i];
  652. int flags= fc->flags;
  653. if(flags & FLAG_INVALID)
  654. continue;
  655. needed_flags= get_needed_flags(nut, nus, fc, pkt);
  656. if(flags & FLAG_CODED){
  657. length++;
  658. flags = needed_flags;
  659. }
  660. if((flags & needed_flags) != needed_flags)
  661. continue;
  662. if((flags ^ needed_flags) & FLAG_KEY)
  663. continue;
  664. if(flags & FLAG_STREAM_ID)
  665. length+= ff_get_v_length(pkt->stream_index);
  666. if(pkt->size % fc->size_mul != fc->size_lsb)
  667. continue;
  668. if(flags & FLAG_SIZE_MSB)
  669. length += ff_get_v_length(pkt->size / fc->size_mul);
  670. if(flags & FLAG_CHECKSUM)
  671. length+=4;
  672. if(flags & FLAG_CODED_PTS)
  673. length += ff_get_v_length(coded_pts);
  674. if( (flags & FLAG_CODED)
  675. && nut->header_len[best_header_idx] > nut->header_len[fc->header_idx]+1){
  676. flags |= FLAG_HEADER_IDX;
  677. }
  678. if(flags & FLAG_HEADER_IDX){
  679. length += 1 - nut->header_len[best_header_idx];
  680. }else{
  681. length -= nut->header_len[fc->header_idx];
  682. }
  683. length*=4;
  684. length+= !(flags & FLAG_CODED_PTS);
  685. length+= !(flags & FLAG_CHECKSUM);
  686. if(length < best_length){
  687. best_length= length;
  688. frame_code=i;
  689. }
  690. }
  691. assert(frame_code != -1);
  692. fc= &nut->frame_code[frame_code];
  693. flags= fc->flags;
  694. needed_flags= get_needed_flags(nut, nus, fc, pkt);
  695. header_idx= fc->header_idx;
  696. ffio_init_checksum(bc, ff_crc04C11DB7_update, 0);
  697. avio_w8(bc, frame_code);
  698. if(flags & FLAG_CODED){
  699. ff_put_v(bc, (flags^needed_flags) & ~(FLAG_CODED));
  700. flags = needed_flags;
  701. }
  702. if(flags & FLAG_STREAM_ID) ff_put_v(bc, pkt->stream_index);
  703. if(flags & FLAG_CODED_PTS) ff_put_v(bc, coded_pts);
  704. if(flags & FLAG_SIZE_MSB) ff_put_v(bc, pkt->size / fc->size_mul);
  705. if(flags & FLAG_HEADER_IDX) ff_put_v(bc, header_idx= best_header_idx);
  706. if(flags & FLAG_CHECKSUM) avio_wl32(bc, ffio_get_checksum(bc));
  707. else ffio_get_checksum(bc);
  708. avio_write(bc, pkt->data + nut->header_len[header_idx], pkt->size - nut->header_len[header_idx]);
  709. nus->last_flags= flags;
  710. nus->last_pts= pkt->pts;
  711. //FIXME just store one per syncpoint
  712. if(flags & FLAG_KEY)
  713. av_add_index_entry(
  714. s->streams[pkt->stream_index],
  715. nut->last_syncpoint_pos,
  716. pkt->pts,
  717. 0,
  718. 0,
  719. AVINDEX_KEYFRAME);
  720. return 0;
  721. }
  722. static int nut_write_trailer(AVFormatContext *s){
  723. NUTContext *nut= s->priv_data;
  724. AVIOContext *bc= s->pb;
  725. while(nut->header_count<3)
  726. write_headers(s, bc);
  727. ff_nut_free_sp(nut);
  728. av_freep(&nut->stream);
  729. av_freep(&nut->chapter);
  730. av_freep(&nut->time_base);
  731. return 0;
  732. }
  733. AVOutputFormat ff_nut_muxer = {
  734. .name = "nut",
  735. .long_name = NULL_IF_CONFIG_SMALL("NUT"),
  736. .mime_type = "video/x-nut",
  737. .extensions = "nut",
  738. .priv_data_size = sizeof(NUTContext),
  739. .audio_codec = CONFIG_LIBVORBIS ? AV_CODEC_ID_VORBIS :
  740. CONFIG_LIBMP3LAME ? AV_CODEC_ID_MP3 : AV_CODEC_ID_MP2,
  741. .video_codec = AV_CODEC_ID_MPEG4,
  742. .write_header = nut_write_header,
  743. .write_packet = nut_write_packet,
  744. .write_trailer = nut_write_trailer,
  745. .flags = AVFMT_GLOBALHEADER | AVFMT_VARIABLE_FPS,
  746. .codec_tag = ff_nut_codec_tags,
  747. };