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  1. /**
  2. * @file libavcodec/vorbis_dec.c
  3. * Vorbis I decoder
  4. * @author Denes Balatoni ( dbalatoni programozo hu )
  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. #undef V_DEBUG
  22. //#define V_DEBUG
  23. //#define AV_DEBUG(...) av_log(NULL, AV_LOG_INFO, __VA_ARGS__)
  24. #include <math.h>
  25. #define ALT_BITSTREAM_READER_LE
  26. #include "avcodec.h"
  27. #include "get_bits.h"
  28. #include "dsputil.h"
  29. #include "vorbis.h"
  30. #include "xiph.h"
  31. #define V_NB_BITS 8
  32. #define V_NB_BITS2 11
  33. #define V_MAX_VLCS (1<<16)
  34. #define V_MAX_PARTITIONS (1<<20)
  35. #ifndef V_DEBUG
  36. #define AV_DEBUG(...)
  37. #endif
  38. #undef NDEBUG
  39. #include <assert.h>
  40. typedef struct {
  41. uint_fast8_t dimensions;
  42. uint_fast8_t lookup_type;
  43. uint_fast8_t maxdepth;
  44. VLC vlc;
  45. float *codevectors;
  46. unsigned int nb_bits;
  47. } vorbis_codebook;
  48. typedef union vorbis_floor_u vorbis_floor_data;
  49. typedef struct vorbis_floor0_s vorbis_floor0;
  50. typedef struct vorbis_floor1_s vorbis_floor1;
  51. struct vorbis_context_s;
  52. typedef
  53. uint_fast8_t (* vorbis_floor_decode_func)
  54. (struct vorbis_context_s *, vorbis_floor_data *, float *);
  55. typedef struct {
  56. uint_fast8_t floor_type;
  57. vorbis_floor_decode_func decode;
  58. union vorbis_floor_u {
  59. struct vorbis_floor0_s {
  60. uint_fast8_t order;
  61. uint_fast16_t rate;
  62. uint_fast16_t bark_map_size;
  63. int_fast32_t * map[2];
  64. uint_fast32_t map_size[2];
  65. uint_fast8_t amplitude_bits;
  66. uint_fast8_t amplitude_offset;
  67. uint_fast8_t num_books;
  68. uint_fast8_t * book_list;
  69. float * lsp;
  70. } t0;
  71. struct vorbis_floor1_s {
  72. uint_fast8_t partitions;
  73. uint_fast8_t maximum_class;
  74. uint_fast8_t partition_class[32];
  75. uint_fast8_t class_dimensions[16];
  76. uint_fast8_t class_subclasses[16];
  77. uint_fast8_t class_masterbook[16];
  78. int_fast16_t subclass_books[16][8];
  79. uint_fast8_t multiplier;
  80. uint_fast16_t x_list_dim;
  81. vorbis_floor1_entry * list;
  82. } t1;
  83. } data;
  84. } vorbis_floor;
  85. typedef struct {
  86. uint_fast16_t type;
  87. uint_fast32_t begin;
  88. uint_fast32_t end;
  89. uint_fast32_t partition_size;
  90. uint_fast8_t classifications;
  91. uint_fast8_t classbook;
  92. int_fast16_t books[64][8];
  93. uint_fast8_t maxpass;
  94. } vorbis_residue;
  95. typedef struct {
  96. uint_fast8_t submaps;
  97. uint_fast16_t coupling_steps;
  98. uint_fast8_t *magnitude;
  99. uint_fast8_t *angle;
  100. uint_fast8_t *mux;
  101. uint_fast8_t submap_floor[16];
  102. uint_fast8_t submap_residue[16];
  103. } vorbis_mapping;
  104. typedef struct {
  105. uint_fast8_t blockflag;
  106. uint_fast16_t windowtype;
  107. uint_fast16_t transformtype;
  108. uint_fast8_t mapping;
  109. } vorbis_mode;
  110. typedef struct vorbis_context_s {
  111. AVCodecContext *avccontext;
  112. GetBitContext gb;
  113. DSPContext dsp;
  114. FFTContext mdct[2];
  115. uint_fast8_t first_frame;
  116. uint_fast32_t version;
  117. uint_fast8_t audio_channels;
  118. uint_fast32_t audio_samplerate;
  119. uint_fast32_t bitrate_maximum;
  120. uint_fast32_t bitrate_nominal;
  121. uint_fast32_t bitrate_minimum;
  122. uint_fast32_t blocksize[2];
  123. const float * win[2];
  124. uint_fast16_t codebook_count;
  125. vorbis_codebook *codebooks;
  126. uint_fast8_t floor_count;
  127. vorbis_floor *floors;
  128. uint_fast8_t residue_count;
  129. vorbis_residue *residues;
  130. uint_fast8_t mapping_count;
  131. vorbis_mapping *mappings;
  132. uint_fast8_t mode_count;
  133. vorbis_mode *modes;
  134. uint_fast8_t mode_number; // mode number for the current packet
  135. uint_fast8_t previous_window;
  136. float *channel_residues;
  137. float *channel_floors;
  138. float *saved;
  139. uint_fast32_t add_bias; // for float->int conversion
  140. uint_fast32_t exp_bias;
  141. } vorbis_context;
  142. /* Helper functions */
  143. #define BARK(x) \
  144. (13.1f*atan(0.00074f*(x))+2.24f*atan(1.85e-8f*(x)*(x))+1e-4f*(x))
  145. static float vorbisfloat2float(uint_fast32_t val)
  146. {
  147. double mant=val&0x1fffff;
  148. long exp=(val&0x7fe00000L)>>21;
  149. if (val&0x80000000)
  150. mant=-mant;
  151. return ldexp(mant, exp - 20 - 768);
  152. }
  153. // Free all allocated memory -----------------------------------------
  154. static void vorbis_free(vorbis_context *vc)
  155. {
  156. int_fast16_t i;
  157. av_freep(&vc->channel_residues);
  158. av_freep(&vc->channel_floors);
  159. av_freep(&vc->saved);
  160. av_freep(&vc->residues);
  161. av_freep(&vc->modes);
  162. ff_mdct_end(&vc->mdct[0]);
  163. ff_mdct_end(&vc->mdct[1]);
  164. for(i=0;i<vc->codebook_count;++i) {
  165. av_free(vc->codebooks[i].codevectors);
  166. free_vlc(&vc->codebooks[i].vlc);
  167. }
  168. av_freep(&vc->codebooks);
  169. for(i=0;i<vc->floor_count;++i) {
  170. if(vc->floors[i].floor_type==0) {
  171. av_free(vc->floors[i].data.t0.map[0]);
  172. av_free(vc->floors[i].data.t0.map[1]);
  173. av_free(vc->floors[i].data.t0.book_list);
  174. av_free(vc->floors[i].data.t0.lsp);
  175. } else {
  176. av_free(vc->floors[i].data.t1.list);
  177. }
  178. }
  179. av_freep(&vc->floors);
  180. for(i=0;i<vc->mapping_count;++i) {
  181. av_free(vc->mappings[i].magnitude);
  182. av_free(vc->mappings[i].angle);
  183. av_free(vc->mappings[i].mux);
  184. }
  185. av_freep(&vc->mappings);
  186. }
  187. // Parse setup header -------------------------------------------------
  188. // Process codebooks part
  189. static int vorbis_parse_setup_hdr_codebooks(vorbis_context *vc)
  190. {
  191. uint_fast16_t cb;
  192. uint8_t *tmp_vlc_bits;
  193. uint32_t *tmp_vlc_codes;
  194. GetBitContext *gb=&vc->gb;
  195. vc->codebook_count=get_bits(gb,8)+1;
  196. AV_DEBUG(" Codebooks: %d \n", vc->codebook_count);
  197. vc->codebooks=av_mallocz(vc->codebook_count * sizeof(vorbis_codebook));
  198. tmp_vlc_bits =av_mallocz(V_MAX_VLCS * sizeof(uint8_t));
  199. tmp_vlc_codes=av_mallocz(V_MAX_VLCS * sizeof(uint32_t));
  200. for(cb=0;cb<vc->codebook_count;++cb) {
  201. vorbis_codebook *codebook_setup=&vc->codebooks[cb];
  202. uint_fast8_t ordered;
  203. uint_fast32_t t, used_entries=0;
  204. uint_fast32_t entries;
  205. AV_DEBUG(" %d. Codebook \n", cb);
  206. if (get_bits(gb, 24)!=0x564342) {
  207. av_log(vc->avccontext, AV_LOG_ERROR, " %"PRIdFAST16". Codebook setup data corrupt. \n", cb);
  208. goto error;
  209. }
  210. codebook_setup->dimensions=get_bits(gb, 16);
  211. if (codebook_setup->dimensions>16||codebook_setup->dimensions==0) {
  212. av_log(vc->avccontext, AV_LOG_ERROR, " %"PRIdFAST16". Codebook's dimension is invalid (%d). \n", cb, codebook_setup->dimensions);
  213. goto error;
  214. }
  215. entries=get_bits(gb, 24);
  216. if (entries>V_MAX_VLCS) {
  217. av_log(vc->avccontext, AV_LOG_ERROR, " %"PRIdFAST16". Codebook has too many entries (%"PRIdFAST32"). \n", cb, entries);
  218. goto error;
  219. }
  220. ordered=get_bits1(gb);
  221. AV_DEBUG(" codebook_dimensions %d, codebook_entries %d \n", codebook_setup->dimensions, entries);
  222. if (!ordered) {
  223. uint_fast16_t ce;
  224. uint_fast8_t flag;
  225. uint_fast8_t sparse=get_bits1(gb);
  226. AV_DEBUG(" not ordered \n");
  227. if (sparse) {
  228. AV_DEBUG(" sparse \n");
  229. used_entries=0;
  230. for(ce=0;ce<entries;++ce) {
  231. flag=get_bits1(gb);
  232. if (flag) {
  233. tmp_vlc_bits[ce]=get_bits(gb, 5)+1;
  234. ++used_entries;
  235. } else
  236. tmp_vlc_bits[ce]=0;
  237. }
  238. } else {
  239. AV_DEBUG(" not sparse \n");
  240. used_entries=entries;
  241. for(ce=0;ce<entries;++ce)
  242. tmp_vlc_bits[ce]=get_bits(gb, 5)+1;
  243. }
  244. } else {
  245. uint_fast16_t current_entry=0;
  246. uint_fast8_t current_length=get_bits(gb, 5)+1;
  247. AV_DEBUG(" ordered, current length: %d \n", current_length); //FIXME
  248. used_entries=entries;
  249. for(;current_entry<used_entries && current_length <= 32;++current_length) {
  250. uint_fast16_t i, number;
  251. AV_DEBUG(" number bits: %d ", ilog(entries - current_entry));
  252. number=get_bits(gb, ilog(entries - current_entry));
  253. AV_DEBUG(" number: %d \n", number);
  254. for(i=current_entry;i<number+current_entry;++i)
  255. if (i<used_entries)
  256. tmp_vlc_bits[i]=current_length;
  257. current_entry+=number;
  258. }
  259. if (current_entry>used_entries) {
  260. av_log(vc->avccontext, AV_LOG_ERROR, " More codelengths than codes in codebook. \n");
  261. goto error;
  262. }
  263. }
  264. codebook_setup->lookup_type=get_bits(gb, 4);
  265. AV_DEBUG(" lookup type: %d : %s \n", codebook_setup->lookup_type, codebook_setup->lookup_type ? "vq" : "no lookup" );
  266. // If the codebook is used for (inverse) VQ, calculate codevectors.
  267. if (codebook_setup->lookup_type==1) {
  268. uint_fast16_t i, j, k;
  269. uint_fast16_t codebook_lookup_values=ff_vorbis_nth_root(entries, codebook_setup->dimensions);
  270. uint_fast16_t codebook_multiplicands[codebook_lookup_values];
  271. float codebook_minimum_value=vorbisfloat2float(get_bits_long(gb, 32));
  272. float codebook_delta_value=vorbisfloat2float(get_bits_long(gb, 32));
  273. uint_fast8_t codebook_value_bits=get_bits(gb, 4)+1;
  274. uint_fast8_t codebook_sequence_p=get_bits1(gb);
  275. AV_DEBUG(" We expect %d numbers for building the codevectors. \n", codebook_lookup_values);
  276. AV_DEBUG(" delta %f minmum %f \n", codebook_delta_value, codebook_minimum_value);
  277. for(i=0;i<codebook_lookup_values;++i) {
  278. codebook_multiplicands[i]=get_bits(gb, codebook_value_bits);
  279. AV_DEBUG(" multiplicands*delta+minmum : %e \n", (float)codebook_multiplicands[i]*codebook_delta_value+codebook_minimum_value);
  280. AV_DEBUG(" multiplicand %d \n", codebook_multiplicands[i]);
  281. }
  282. // Weed out unused vlcs and build codevector vector
  283. codebook_setup->codevectors=used_entries ? av_mallocz(used_entries*codebook_setup->dimensions * sizeof(float)) : NULL;
  284. for(j=0, i=0;i<entries;++i) {
  285. uint_fast8_t dim=codebook_setup->dimensions;
  286. if (tmp_vlc_bits[i]) {
  287. float last=0.0;
  288. uint_fast32_t lookup_offset=i;
  289. #ifdef V_DEBUG
  290. av_log(vc->avccontext, AV_LOG_INFO, "Lookup offset %d ,", i);
  291. #endif
  292. for(k=0;k<dim;++k) {
  293. uint_fast32_t multiplicand_offset = lookup_offset % codebook_lookup_values;
  294. codebook_setup->codevectors[j*dim+k]=codebook_multiplicands[multiplicand_offset]*codebook_delta_value+codebook_minimum_value+last;
  295. if (codebook_sequence_p)
  296. last=codebook_setup->codevectors[j*dim+k];
  297. lookup_offset/=codebook_lookup_values;
  298. }
  299. tmp_vlc_bits[j]=tmp_vlc_bits[i];
  300. #ifdef V_DEBUG
  301. av_log(vc->avccontext, AV_LOG_INFO, "real lookup offset %d, vector: ", j);
  302. for(k=0;k<dim;++k)
  303. av_log(vc->avccontext, AV_LOG_INFO, " %f ", codebook_setup->codevectors[j*dim+k]);
  304. av_log(vc->avccontext, AV_LOG_INFO, "\n");
  305. #endif
  306. ++j;
  307. }
  308. }
  309. if (j!=used_entries) {
  310. av_log(vc->avccontext, AV_LOG_ERROR, "Bug in codevector vector building code. \n");
  311. goto error;
  312. }
  313. entries=used_entries;
  314. } else if (codebook_setup->lookup_type>=2) {
  315. av_log(vc->avccontext, AV_LOG_ERROR, "Codebook lookup type not supported. \n");
  316. goto error;
  317. }
  318. // Initialize VLC table
  319. if (ff_vorbis_len2vlc(tmp_vlc_bits, tmp_vlc_codes, entries)) {
  320. av_log(vc->avccontext, AV_LOG_ERROR, " Invalid code lengths while generating vlcs. \n");
  321. goto error;
  322. }
  323. codebook_setup->maxdepth=0;
  324. for(t=0;t<entries;++t)
  325. if (tmp_vlc_bits[t]>=codebook_setup->maxdepth)
  326. codebook_setup->maxdepth=tmp_vlc_bits[t];
  327. if(codebook_setup->maxdepth > 3*V_NB_BITS)
  328. codebook_setup->nb_bits=V_NB_BITS2;
  329. else
  330. codebook_setup->nb_bits=V_NB_BITS;
  331. codebook_setup->maxdepth=(codebook_setup->maxdepth+codebook_setup->nb_bits-1)/codebook_setup->nb_bits;
  332. if (init_vlc(&codebook_setup->vlc, codebook_setup->nb_bits, entries, tmp_vlc_bits, sizeof(*tmp_vlc_bits), sizeof(*tmp_vlc_bits), tmp_vlc_codes, sizeof(*tmp_vlc_codes), sizeof(*tmp_vlc_codes), INIT_VLC_LE)) {
  333. av_log(vc->avccontext, AV_LOG_ERROR, " Error generating vlc tables. \n");
  334. goto error;
  335. }
  336. }
  337. av_free(tmp_vlc_bits);
  338. av_free(tmp_vlc_codes);
  339. return 0;
  340. // Error:
  341. error:
  342. av_free(tmp_vlc_bits);
  343. av_free(tmp_vlc_codes);
  344. return -1;
  345. }
  346. // Process time domain transforms part (unused in Vorbis I)
  347. static int vorbis_parse_setup_hdr_tdtransforms(vorbis_context *vc)
  348. {
  349. GetBitContext *gb=&vc->gb;
  350. uint_fast8_t i;
  351. uint_fast8_t vorbis_time_count=get_bits(gb, 6)+1;
  352. for(i=0;i<vorbis_time_count;++i) {
  353. uint_fast16_t vorbis_tdtransform=get_bits(gb, 16);
  354. AV_DEBUG(" Vorbis time domain transform %d: %d \n", vorbis_time_count, vorbis_tdtransform);
  355. if (vorbis_tdtransform) {
  356. av_log(vc->avccontext, AV_LOG_ERROR, "Vorbis time domain transform data nonzero. \n");
  357. return -1;
  358. }
  359. }
  360. return 0;
  361. }
  362. // Process floors part
  363. static uint_fast8_t vorbis_floor0_decode(vorbis_context *vc,
  364. vorbis_floor_data *vfu, float *vec);
  365. static void create_map( vorbis_context * vc, uint_fast8_t floor_number );
  366. static uint_fast8_t vorbis_floor1_decode(vorbis_context *vc,
  367. vorbis_floor_data *vfu, float *vec);
  368. static int vorbis_parse_setup_hdr_floors(vorbis_context *vc)
  369. {
  370. GetBitContext *gb=&vc->gb;
  371. uint_fast16_t i,j,k;
  372. vc->floor_count=get_bits(gb, 6)+1;
  373. vc->floors=av_mallocz(vc->floor_count * sizeof(vorbis_floor));
  374. for (i=0;i<vc->floor_count;++i) {
  375. vorbis_floor *floor_setup=&vc->floors[i];
  376. floor_setup->floor_type=get_bits(gb, 16);
  377. AV_DEBUG(" %d. floor type %d \n", i, floor_setup->floor_type);
  378. if (floor_setup->floor_type==1) {
  379. uint_fast8_t maximum_class=0;
  380. uint_fast8_t rangebits;
  381. uint_fast16_t floor1_values=2;
  382. floor_setup->decode=vorbis_floor1_decode;
  383. floor_setup->data.t1.partitions=get_bits(gb, 5);
  384. AV_DEBUG(" %d.floor: %d partitions \n", i, floor_setup->data.t1.partitions);
  385. for(j=0;j<floor_setup->data.t1.partitions;++j) {
  386. floor_setup->data.t1.partition_class[j]=get_bits(gb, 4);
  387. if (floor_setup->data.t1.partition_class[j]>maximum_class)
  388. maximum_class=floor_setup->data.t1.partition_class[j];
  389. AV_DEBUG(" %d. floor %d partition class %d \n", i, j, floor_setup->data.t1.partition_class[j]);
  390. }
  391. AV_DEBUG(" maximum class %d \n", maximum_class);
  392. floor_setup->data.t1.maximum_class=maximum_class;
  393. for(j=0;j<=maximum_class;++j) {
  394. floor_setup->data.t1.class_dimensions[j]=get_bits(gb, 3)+1;
  395. floor_setup->data.t1.class_subclasses[j]=get_bits(gb, 2);
  396. AV_DEBUG(" %d floor %d class dim: %d subclasses %d \n", i, j, floor_setup->data.t1.class_dimensions[j], floor_setup->data.t1.class_subclasses[j]);
  397. if (floor_setup->data.t1.class_subclasses[j]) {
  398. int bits=get_bits(gb, 8);
  399. if (bits>=vc->codebook_count) {
  400. av_log(vc->avccontext, AV_LOG_ERROR, "Masterbook index %d is out of range.\n", bits);
  401. return -1;
  402. }
  403. floor_setup->data.t1.class_masterbook[j]=bits;
  404. AV_DEBUG(" masterbook: %d \n", floor_setup->data.t1.class_masterbook[j]);
  405. }
  406. for(k=0;k<(1<<floor_setup->data.t1.class_subclasses[j]);++k) {
  407. int16_t bits=get_bits(gb, 8)-1;
  408. if (bits!=-1 && bits>=vc->codebook_count) {
  409. av_log(vc->avccontext, AV_LOG_ERROR, "Subclass book index %d is out of range.\n", bits);
  410. return -1;
  411. }
  412. floor_setup->data.t1.subclass_books[j][k]=bits;
  413. AV_DEBUG(" book %d. : %d \n", k, floor_setup->data.t1.subclass_books[j][k]);
  414. }
  415. }
  416. floor_setup->data.t1.multiplier=get_bits(gb, 2)+1;
  417. floor_setup->data.t1.x_list_dim=2;
  418. for(j=0;j<floor_setup->data.t1.partitions;++j)
  419. floor_setup->data.t1.x_list_dim+=floor_setup->data.t1.class_dimensions[floor_setup->data.t1.partition_class[j]];
  420. floor_setup->data.t1.list=av_mallocz(floor_setup->data.t1.x_list_dim * sizeof(vorbis_floor1_entry));
  421. rangebits=get_bits(gb, 4);
  422. floor_setup->data.t1.list[0].x = 0;
  423. floor_setup->data.t1.list[1].x = (1<<rangebits);
  424. for(j=0;j<floor_setup->data.t1.partitions;++j) {
  425. for(k=0;k<floor_setup->data.t1.class_dimensions[floor_setup->data.t1.partition_class[j]];++k,++floor1_values) {
  426. floor_setup->data.t1.list[floor1_values].x=get_bits(gb, rangebits);
  427. AV_DEBUG(" %d. floor1 Y coord. %d \n", floor1_values, floor_setup->data.t1.list[floor1_values].x);
  428. }
  429. }
  430. // Precalculate order of x coordinates - needed for decode
  431. ff_vorbis_ready_floor1_list(floor_setup->data.t1.list, floor_setup->data.t1.x_list_dim);
  432. } else if(floor_setup->floor_type==0) {
  433. uint_fast8_t max_codebook_dim=0;
  434. floor_setup->decode=vorbis_floor0_decode;
  435. floor_setup->data.t0.order=get_bits(gb, 8);
  436. floor_setup->data.t0.rate=get_bits(gb, 16);
  437. floor_setup->data.t0.bark_map_size=get_bits(gb, 16);
  438. floor_setup->data.t0.amplitude_bits=get_bits(gb, 6);
  439. /* zero would result in a div by zero later *
  440. * 2^0 - 1 == 0 */
  441. if (floor_setup->data.t0.amplitude_bits == 0) {
  442. av_log(vc->avccontext, AV_LOG_ERROR,
  443. "Floor 0 amplitude bits is 0.\n");
  444. return -1;
  445. }
  446. floor_setup->data.t0.amplitude_offset=get_bits(gb, 8);
  447. floor_setup->data.t0.num_books=get_bits(gb, 4)+1;
  448. /* allocate mem for booklist */
  449. floor_setup->data.t0.book_list=
  450. av_malloc(floor_setup->data.t0.num_books);
  451. if(!floor_setup->data.t0.book_list)
  452. return -1;
  453. /* read book indexes */
  454. {
  455. int idx;
  456. uint_fast8_t book_idx;
  457. for (idx=0;idx<floor_setup->data.t0.num_books;++idx) {
  458. book_idx=get_bits(gb, 8);
  459. if (book_idx>=vc->codebook_count)
  460. return -1;
  461. floor_setup->data.t0.book_list[idx]=book_idx;
  462. if (vc->codebooks[book_idx].dimensions > max_codebook_dim)
  463. max_codebook_dim=vc->codebooks[book_idx].dimensions;
  464. }
  465. }
  466. create_map( vc, i );
  467. /* allocate mem for lsp coefficients */
  468. {
  469. /* codebook dim is for padding if codebook dim doesn't *
  470. * divide order+1 then we need to read more data */
  471. floor_setup->data.t0.lsp=
  472. av_malloc((floor_setup->data.t0.order+1 + max_codebook_dim)
  473. * sizeof(float));
  474. if(!floor_setup->data.t0.lsp)
  475. return -1;
  476. }
  477. #ifdef V_DEBUG /* debug output parsed headers */
  478. AV_DEBUG("floor0 order: %u\n", floor_setup->data.t0.order);
  479. AV_DEBUG("floor0 rate: %u\n", floor_setup->data.t0.rate);
  480. AV_DEBUG("floor0 bark map size: %u\n",
  481. floor_setup->data.t0.bark_map_size);
  482. AV_DEBUG("floor0 amplitude bits: %u\n",
  483. floor_setup->data.t0.amplitude_bits);
  484. AV_DEBUG("floor0 amplitude offset: %u\n",
  485. floor_setup->data.t0.amplitude_offset);
  486. AV_DEBUG("floor0 number of books: %u\n",
  487. floor_setup->data.t0.num_books);
  488. AV_DEBUG("floor0 book list pointer: %p\n",
  489. floor_setup->data.t0.book_list);
  490. {
  491. int idx;
  492. for (idx=0;idx<floor_setup->data.t0.num_books;++idx) {
  493. AV_DEBUG( " Book %d: %u\n",
  494. idx+1,
  495. floor_setup->data.t0.book_list[idx] );
  496. }
  497. }
  498. #endif
  499. } else {
  500. av_log(vc->avccontext, AV_LOG_ERROR, "Invalid floor type!\n");
  501. return -1;
  502. }
  503. }
  504. return 0;
  505. }
  506. // Process residues part
  507. static int vorbis_parse_setup_hdr_residues(vorbis_context *vc)
  508. {
  509. GetBitContext *gb=&vc->gb;
  510. uint_fast8_t i, j, k;
  511. vc->residue_count=get_bits(gb, 6)+1;
  512. vc->residues=av_mallocz(vc->residue_count * sizeof(vorbis_residue));
  513. AV_DEBUG(" There are %d residues. \n", vc->residue_count);
  514. for(i=0;i<vc->residue_count;++i) {
  515. vorbis_residue *res_setup=&vc->residues[i];
  516. uint_fast8_t cascade[64];
  517. uint_fast8_t high_bits;
  518. uint_fast8_t low_bits;
  519. res_setup->type=get_bits(gb, 16);
  520. AV_DEBUG(" %d. residue type %d \n", i, res_setup->type);
  521. res_setup->begin=get_bits(gb, 24);
  522. res_setup->end=get_bits(gb, 24);
  523. res_setup->partition_size=get_bits(gb, 24)+1;
  524. /* Validations to prevent a buffer overflow later. */
  525. if (res_setup->begin>res_setup->end
  526. || res_setup->end>vc->blocksize[1]/(res_setup->type==2?1:2)
  527. || (res_setup->end-res_setup->begin)/res_setup->partition_size>V_MAX_PARTITIONS) {
  528. av_log(vc->avccontext, AV_LOG_ERROR, "partition out of bounds: type, begin, end, size, blocksize: %"PRIdFAST16", %"PRIdFAST32", %"PRIdFAST32", %"PRIdFAST32", %"PRIdFAST32"\n", res_setup->type, res_setup->begin, res_setup->end, res_setup->partition_size, vc->blocksize[1]/2);
  529. return -1;
  530. }
  531. res_setup->classifications=get_bits(gb, 6)+1;
  532. res_setup->classbook=get_bits(gb, 8);
  533. if (res_setup->classbook>=vc->codebook_count) {
  534. av_log(vc->avccontext, AV_LOG_ERROR, "classbook value %d out of range. \n", res_setup->classbook);
  535. return -1;
  536. }
  537. AV_DEBUG(" begin %d end %d part.size %d classif.s %d classbook %d \n", res_setup->begin, res_setup->end, res_setup->partition_size,
  538. res_setup->classifications, res_setup->classbook);
  539. for(j=0;j<res_setup->classifications;++j) {
  540. high_bits=0;
  541. low_bits=get_bits(gb, 3);
  542. if (get_bits1(gb))
  543. high_bits=get_bits(gb, 5);
  544. cascade[j]=(high_bits<<3)+low_bits;
  545. AV_DEBUG(" %d class casscade depth: %d \n", j, ilog(cascade[j]));
  546. }
  547. res_setup->maxpass=0;
  548. for(j=0;j<res_setup->classifications;++j) {
  549. for(k=0;k<8;++k) {
  550. if (cascade[j]&(1<<k)) {
  551. int bits=get_bits(gb, 8);
  552. if (bits>=vc->codebook_count) {
  553. av_log(vc->avccontext, AV_LOG_ERROR, "book value %d out of range. \n", bits);
  554. return -1;
  555. }
  556. res_setup->books[j][k]=bits;
  557. AV_DEBUG(" %d class casscade depth %d book: %d \n", j, k, res_setup->books[j][k]);
  558. if (k>res_setup->maxpass)
  559. res_setup->maxpass=k;
  560. } else {
  561. res_setup->books[j][k]=-1;
  562. }
  563. }
  564. }
  565. }
  566. return 0;
  567. }
  568. // Process mappings part
  569. static int vorbis_parse_setup_hdr_mappings(vorbis_context *vc)
  570. {
  571. GetBitContext *gb=&vc->gb;
  572. uint_fast8_t i, j;
  573. vc->mapping_count=get_bits(gb, 6)+1;
  574. vc->mappings=av_mallocz(vc->mapping_count * sizeof(vorbis_mapping));
  575. AV_DEBUG(" There are %d mappings. \n", vc->mapping_count);
  576. for(i=0;i<vc->mapping_count;++i) {
  577. vorbis_mapping *mapping_setup=&vc->mappings[i];
  578. if (get_bits(gb, 16)) {
  579. av_log(vc->avccontext, AV_LOG_ERROR, "Other mappings than type 0 are not compliant with the Vorbis I specification. \n");
  580. return -1;
  581. }
  582. if (get_bits1(gb)) {
  583. mapping_setup->submaps=get_bits(gb, 4)+1;
  584. } else {
  585. mapping_setup->submaps=1;
  586. }
  587. if (get_bits1(gb)) {
  588. mapping_setup->coupling_steps=get_bits(gb, 8)+1;
  589. mapping_setup->magnitude=av_mallocz(mapping_setup->coupling_steps * sizeof(uint_fast8_t));
  590. mapping_setup->angle =av_mallocz(mapping_setup->coupling_steps * sizeof(uint_fast8_t));
  591. for(j=0;j<mapping_setup->coupling_steps;++j) {
  592. mapping_setup->magnitude[j]=get_bits(gb, ilog(vc->audio_channels-1));
  593. mapping_setup->angle[j]=get_bits(gb, ilog(vc->audio_channels-1));
  594. if (mapping_setup->magnitude[j]>=vc->audio_channels) {
  595. av_log(vc->avccontext, AV_LOG_ERROR, "magnitude channel %d out of range. \n", mapping_setup->magnitude[j]);
  596. return -1;
  597. }
  598. if (mapping_setup->angle[j]>=vc->audio_channels) {
  599. av_log(vc->avccontext, AV_LOG_ERROR, "angle channel %d out of range. \n", mapping_setup->angle[j]);
  600. return -1;
  601. }
  602. }
  603. } else {
  604. mapping_setup->coupling_steps=0;
  605. }
  606. AV_DEBUG(" %d mapping coupling steps: %d \n", i, mapping_setup->coupling_steps);
  607. if(get_bits(gb, 2)) {
  608. av_log(vc->avccontext, AV_LOG_ERROR, "%d. mapping setup data invalid. \n", i);
  609. return -1; // following spec.
  610. }
  611. if (mapping_setup->submaps>1) {
  612. mapping_setup->mux=av_mallocz(vc->audio_channels * sizeof(uint_fast8_t));
  613. for(j=0;j<vc->audio_channels;++j)
  614. mapping_setup->mux[j]=get_bits(gb, 4);
  615. }
  616. for(j=0;j<mapping_setup->submaps;++j) {
  617. int bits;
  618. skip_bits(gb, 8); // FIXME check?
  619. bits=get_bits(gb, 8);
  620. if (bits>=vc->floor_count) {
  621. av_log(vc->avccontext, AV_LOG_ERROR, "submap floor value %d out of range. \n", bits);
  622. return -1;
  623. }
  624. mapping_setup->submap_floor[j]=bits;
  625. bits=get_bits(gb, 8);
  626. if (bits>=vc->residue_count) {
  627. av_log(vc->avccontext, AV_LOG_ERROR, "submap residue value %d out of range. \n", bits);
  628. return -1;
  629. }
  630. mapping_setup->submap_residue[j]=bits;
  631. AV_DEBUG(" %d mapping %d submap : floor %d, residue %d \n", i, j, mapping_setup->submap_floor[j], mapping_setup->submap_residue[j]);
  632. }
  633. }
  634. return 0;
  635. }
  636. // Process modes part
  637. static void create_map( vorbis_context * vc, uint_fast8_t floor_number )
  638. {
  639. vorbis_floor * floors=vc->floors;
  640. vorbis_floor0 * vf;
  641. int idx;
  642. int_fast8_t blockflag;
  643. int_fast32_t * map;
  644. int_fast32_t n; //TODO: could theoretically be smaller?
  645. for (blockflag=0;blockflag<2;++blockflag) {
  646. n=vc->blocksize[blockflag]/2;
  647. floors[floor_number].data.t0.map[blockflag]=
  648. av_malloc((n+1) * sizeof(int_fast32_t)); // n+sentinel
  649. map=floors[floor_number].data.t0.map[blockflag];
  650. vf=&floors[floor_number].data.t0;
  651. for (idx=0; idx<n;++idx) {
  652. map[idx]=floor( BARK((vf->rate*idx)/(2.0f*n)) *
  653. ((vf->bark_map_size)/
  654. BARK(vf->rate/2.0f )) );
  655. if (vf->bark_map_size-1 < map[idx])
  656. map[idx]=vf->bark_map_size-1;
  657. }
  658. map[n]=-1;
  659. vf->map_size[blockflag]=n;
  660. }
  661. # ifdef V_DEBUG
  662. for(idx=0;idx<=n;++idx) {
  663. AV_DEBUG("floor0 map: map at pos %d is %d\n",
  664. idx, map[idx]);
  665. }
  666. # endif
  667. }
  668. static int vorbis_parse_setup_hdr_modes(vorbis_context *vc)
  669. {
  670. GetBitContext *gb=&vc->gb;
  671. uint_fast8_t i;
  672. vc->mode_count=get_bits(gb, 6)+1;
  673. vc->modes=av_mallocz(vc->mode_count * sizeof(vorbis_mode));
  674. AV_DEBUG(" There are %d modes.\n", vc->mode_count);
  675. for(i=0;i<vc->mode_count;++i) {
  676. vorbis_mode *mode_setup=&vc->modes[i];
  677. mode_setup->blockflag=get_bits1(gb);
  678. mode_setup->windowtype=get_bits(gb, 16); //FIXME check
  679. mode_setup->transformtype=get_bits(gb, 16); //FIXME check
  680. mode_setup->mapping=get_bits(gb, 8);
  681. if (mode_setup->mapping>=vc->mapping_count) {
  682. av_log(vc->avccontext, AV_LOG_ERROR, "mode mapping value %d out of range. \n", mode_setup->mapping);
  683. return -1;
  684. }
  685. AV_DEBUG(" %d mode: blockflag %d, windowtype %d, transformtype %d, mapping %d \n", i, mode_setup->blockflag, mode_setup->windowtype, mode_setup->transformtype, mode_setup->mapping);
  686. }
  687. return 0;
  688. }
  689. // Process the whole setup header using the functions above
  690. static int vorbis_parse_setup_hdr(vorbis_context *vc)
  691. {
  692. GetBitContext *gb=&vc->gb;
  693. if ((get_bits(gb, 8)!='v') || (get_bits(gb, 8)!='o') ||
  694. (get_bits(gb, 8)!='r') || (get_bits(gb, 8)!='b') ||
  695. (get_bits(gb, 8)!='i') || (get_bits(gb, 8)!='s')) {
  696. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (no vorbis signature). \n");
  697. return -1;
  698. }
  699. if (vorbis_parse_setup_hdr_codebooks(vc)) {
  700. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (codebooks). \n");
  701. return -2;
  702. }
  703. if (vorbis_parse_setup_hdr_tdtransforms(vc)) {
  704. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (time domain transforms). \n");
  705. return -3;
  706. }
  707. if (vorbis_parse_setup_hdr_floors(vc)) {
  708. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (floors). \n");
  709. return -4;
  710. }
  711. if (vorbis_parse_setup_hdr_residues(vc)) {
  712. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (residues). \n");
  713. return -5;
  714. }
  715. if (vorbis_parse_setup_hdr_mappings(vc)) {
  716. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (mappings). \n");
  717. return -6;
  718. }
  719. if (vorbis_parse_setup_hdr_modes(vc)) {
  720. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (modes). \n");
  721. return -7;
  722. }
  723. if (!get_bits1(gb)) {
  724. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis setup header packet corrupt (framing flag). \n");
  725. return -8; // framing flag bit unset error
  726. }
  727. return 0;
  728. }
  729. // Process the identification header
  730. static int vorbis_parse_id_hdr(vorbis_context *vc)
  731. {
  732. GetBitContext *gb=&vc->gb;
  733. uint_fast8_t bl0, bl1;
  734. if ((get_bits(gb, 8)!='v') || (get_bits(gb, 8)!='o') ||
  735. (get_bits(gb, 8)!='r') || (get_bits(gb, 8)!='b') ||
  736. (get_bits(gb, 8)!='i') || (get_bits(gb, 8)!='s')) {
  737. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis id header packet corrupt (no vorbis signature). \n");
  738. return -1;
  739. }
  740. vc->version=get_bits_long(gb, 32); //FIXME check 0
  741. vc->audio_channels=get_bits(gb, 8);
  742. if(vc->audio_channels <= 0){
  743. av_log(vc->avccontext, AV_LOG_ERROR, "Invalid number of channels\n");
  744. return -1;
  745. }
  746. vc->audio_samplerate=get_bits_long(gb, 32);
  747. if(vc->audio_samplerate <= 0){
  748. av_log(vc->avccontext, AV_LOG_ERROR, "Invalid samplerate\n");
  749. return -1;
  750. }
  751. vc->bitrate_maximum=get_bits_long(gb, 32);
  752. vc->bitrate_nominal=get_bits_long(gb, 32);
  753. vc->bitrate_minimum=get_bits_long(gb, 32);
  754. bl0=get_bits(gb, 4);
  755. bl1=get_bits(gb, 4);
  756. vc->blocksize[0]=(1<<bl0);
  757. vc->blocksize[1]=(1<<bl1);
  758. if (bl0>13 || bl0<6 || bl1>13 || bl1<6 || bl1<bl0) {
  759. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis id header packet corrupt (illegal blocksize). \n");
  760. return -3;
  761. }
  762. // output format int16
  763. if (vc->blocksize[1]/2 * vc->audio_channels * 2 >
  764. AVCODEC_MAX_AUDIO_FRAME_SIZE) {
  765. av_log(vc->avccontext, AV_LOG_ERROR, "Vorbis channel count makes "
  766. "output packets too large.\n");
  767. return -4;
  768. }
  769. vc->win[0]=ff_vorbis_vwin[bl0-6];
  770. vc->win[1]=ff_vorbis_vwin[bl1-6];
  771. if ((get_bits1(gb)) == 0) {
  772. av_log(vc->avccontext, AV_LOG_ERROR, " Vorbis id header packet corrupt (framing flag not set). \n");
  773. return -2;
  774. }
  775. vc->channel_residues= av_malloc((vc->blocksize[1]/2)*vc->audio_channels * sizeof(float));
  776. vc->channel_floors = av_malloc((vc->blocksize[1]/2)*vc->audio_channels * sizeof(float));
  777. vc->saved = av_mallocz((vc->blocksize[1]/4)*vc->audio_channels * sizeof(float));
  778. vc->previous_window=0;
  779. ff_mdct_init(&vc->mdct[0], bl0, 1, vc->exp_bias ? -(1<<15) : -1.0);
  780. ff_mdct_init(&vc->mdct[1], bl1, 1, vc->exp_bias ? -(1<<15) : -1.0);
  781. AV_DEBUG(" vorbis version %d \n audio_channels %d \n audio_samplerate %d \n bitrate_max %d \n bitrate_nom %d \n bitrate_min %d \n blk_0 %d blk_1 %d \n ",
  782. vc->version, vc->audio_channels, vc->audio_samplerate, vc->bitrate_maximum, vc->bitrate_nominal, vc->bitrate_minimum, vc->blocksize[0], vc->blocksize[1]);
  783. /*
  784. BLK=vc->blocksize[0];
  785. for(i=0;i<BLK/2;++i) {
  786. vc->win[0][i]=sin(0.5*3.14159265358*(sin(((float)i+0.5)/(float)BLK*3.14159265358))*(sin(((float)i+0.5)/(float)BLK*3.14159265358)));
  787. }
  788. */
  789. return 0;
  790. }
  791. // Process the extradata using the functions above (identification header, setup header)
  792. static av_cold int vorbis_decode_init(AVCodecContext *avccontext)
  793. {
  794. vorbis_context *vc = avccontext->priv_data ;
  795. uint8_t *headers = avccontext->extradata;
  796. int headers_len=avccontext->extradata_size;
  797. uint8_t *header_start[3];
  798. int header_len[3];
  799. GetBitContext *gb = &(vc->gb);
  800. int hdr_type;
  801. vc->avccontext = avccontext;
  802. dsputil_init(&vc->dsp, avccontext);
  803. if(vc->dsp.float_to_int16_interleave == ff_float_to_int16_interleave_c) {
  804. vc->add_bias = 385;
  805. vc->exp_bias = 0;
  806. } else {
  807. vc->add_bias = 0;
  808. vc->exp_bias = 15<<23;
  809. }
  810. if (!headers_len) {
  811. av_log(avccontext, AV_LOG_ERROR, "Extradata corrupt.\n");
  812. return -1;
  813. }
  814. if (ff_split_xiph_headers(headers, headers_len, 30, header_start, header_len) < 0) {
  815. av_log(avccontext, AV_LOG_ERROR, "Extradata corrupt.\n");
  816. return -1;
  817. }
  818. init_get_bits(gb, header_start[0], header_len[0]*8);
  819. hdr_type=get_bits(gb, 8);
  820. if (hdr_type!=1) {
  821. av_log(avccontext, AV_LOG_ERROR, "First header is not the id header.\n");
  822. return -1;
  823. }
  824. if (vorbis_parse_id_hdr(vc)) {
  825. av_log(avccontext, AV_LOG_ERROR, "Id header corrupt.\n");
  826. vorbis_free(vc);
  827. return -1;
  828. }
  829. init_get_bits(gb, header_start[2], header_len[2]*8);
  830. hdr_type=get_bits(gb, 8);
  831. if (hdr_type!=5) {
  832. av_log(avccontext, AV_LOG_ERROR, "Third header is not the setup header.\n");
  833. vorbis_free(vc);
  834. return -1;
  835. }
  836. if (vorbis_parse_setup_hdr(vc)) {
  837. av_log(avccontext, AV_LOG_ERROR, "Setup header corrupt.\n");
  838. vorbis_free(vc);
  839. return -1;
  840. }
  841. avccontext->channels = vc->audio_channels;
  842. avccontext->sample_rate = vc->audio_samplerate;
  843. avccontext->frame_size = FFMIN(vc->blocksize[0], vc->blocksize[1])>>2;
  844. avccontext->sample_fmt = SAMPLE_FMT_S16;
  845. return 0 ;
  846. }
  847. // Decode audiopackets -------------------------------------------------
  848. // Read and decode floor
  849. static uint_fast8_t vorbis_floor0_decode(vorbis_context *vc,
  850. vorbis_floor_data *vfu, float *vec)
  851. {
  852. vorbis_floor0 * vf=&vfu->t0;
  853. float * lsp=vf->lsp;
  854. uint_fast32_t amplitude;
  855. uint_fast32_t book_idx;
  856. uint_fast8_t blockflag=vc->modes[vc->mode_number].blockflag;
  857. amplitude=get_bits(&vc->gb, vf->amplitude_bits);
  858. if (amplitude>0) {
  859. float last = 0;
  860. uint_fast16_t lsp_len = 0;
  861. uint_fast16_t idx;
  862. vorbis_codebook codebook;
  863. book_idx=get_bits(&vc->gb, ilog(vf->num_books));
  864. if ( book_idx >= vf->num_books ) {
  865. av_log( vc->avccontext, AV_LOG_ERROR,
  866. "floor0 dec: booknumber too high!\n" );
  867. book_idx= 0;
  868. //FIXME: look above
  869. }
  870. AV_DEBUG( "floor0 dec: booknumber: %u\n", book_idx );
  871. codebook=vc->codebooks[vf->book_list[book_idx]];
  872. while (lsp_len<vf->order) {
  873. int vec_off;
  874. AV_DEBUG( "floor0 dec: book dimension: %d\n", codebook.dimensions );
  875. AV_DEBUG( "floor0 dec: maximum depth: %d\n", codebook.maxdepth );
  876. /* read temp vector */
  877. vec_off=get_vlc2(&vc->gb,
  878. codebook.vlc.table,
  879. codebook.nb_bits,
  880. codebook.maxdepth ) *
  881. codebook.dimensions;
  882. AV_DEBUG( "floor0 dec: vector offset: %d\n", vec_off );
  883. /* copy each vector component and add last to it */
  884. for (idx=0; idx<codebook.dimensions; ++idx)
  885. lsp[lsp_len+idx]=codebook.codevectors[vec_off+idx]+last;
  886. last=lsp[lsp_len+idx-1]; /* set last to last vector component */
  887. lsp_len += codebook.dimensions;
  888. }
  889. #ifdef V_DEBUG
  890. /* DEBUG: output lsp coeffs */
  891. {
  892. int idx;
  893. for ( idx = 0; idx < lsp_len; ++idx )
  894. AV_DEBUG("floor0 dec: coeff at %d is %f\n", idx, lsp[idx] );
  895. }
  896. #endif
  897. /* synthesize floor output vector */
  898. {
  899. int i;
  900. int order=vf->order;
  901. float wstep=M_PI/vf->bark_map_size;
  902. for(i=0;i<order;i++)
  903. lsp[i]=2.0f*cos(lsp[i]);
  904. AV_DEBUG("floor0 synth: map_size=%d; m=%d; wstep=%f\n",
  905. vf->map_size, order, wstep);
  906. i=0;
  907. while(i<vf->map_size[blockflag]) {
  908. int j, iter_cond=vf->map[blockflag][i];
  909. float p=0.5f;
  910. float q=0.5f;
  911. float two_cos_w=2.0f*cos(wstep*iter_cond); // needed all times
  912. /* similar part for the q and p products */
  913. for(j=0;j+1<order;j+=2) {
  914. q *= lsp[j] -two_cos_w;
  915. p *= lsp[j+1]-two_cos_w;
  916. }
  917. if(j==order) { // even order
  918. p *= p*(2.0f-two_cos_w);
  919. q *= q*(2.0f+two_cos_w);
  920. } else { // odd order
  921. q *= two_cos_w-lsp[j]; // one more time for q
  922. /* final step and square */
  923. p *= p*(4.f-two_cos_w*two_cos_w);
  924. q *= q;
  925. }
  926. /* calculate linear floor value */
  927. {
  928. q=exp( (
  929. ( (amplitude*vf->amplitude_offset)/
  930. (((1<<vf->amplitude_bits)-1) * sqrt(p+q)) )
  931. - vf->amplitude_offset ) * .11512925f
  932. );
  933. }
  934. /* fill vector */
  935. do {
  936. vec[i]=q; ++i;
  937. } while (vf->map[blockflag][i]==iter_cond);
  938. }
  939. }
  940. } else {
  941. /* this channel is unused */
  942. return 1;
  943. }
  944. AV_DEBUG(" Floor0 decoded\n");
  945. return 0;
  946. }
  947. static uint_fast8_t vorbis_floor1_decode(vorbis_context *vc,
  948. vorbis_floor_data *vfu, float *vec)
  949. {
  950. vorbis_floor1 * vf=&vfu->t1;
  951. GetBitContext *gb=&vc->gb;
  952. uint_fast16_t range_v[4]={ 256, 128, 86, 64 };
  953. uint_fast16_t range=range_v[vf->multiplier-1];
  954. uint_fast16_t floor1_Y[vf->x_list_dim];
  955. uint_fast16_t floor1_Y_final[vf->x_list_dim];
  956. int floor1_flag[vf->x_list_dim];
  957. uint_fast8_t class_;
  958. uint_fast8_t cdim;
  959. uint_fast8_t cbits;
  960. uint_fast8_t csub;
  961. uint_fast8_t cval;
  962. int_fast16_t book;
  963. uint_fast16_t offset;
  964. uint_fast16_t i,j;
  965. /*u*/int_fast16_t adx, ady, off, predicted; // WTF ? dy/adx= (unsigned)dy/adx ?
  966. int_fast16_t dy, err;
  967. if (!get_bits1(gb)) // silence
  968. return 1;
  969. // Read values (or differences) for the floor's points
  970. floor1_Y[0]=get_bits(gb, ilog(range-1));
  971. floor1_Y[1]=get_bits(gb, ilog(range-1));
  972. AV_DEBUG("floor 0 Y %d floor 1 Y %d \n", floor1_Y[0], floor1_Y[1]);
  973. offset=2;
  974. for(i=0;i<vf->partitions;++i) {
  975. class_=vf->partition_class[i];
  976. cdim=vf->class_dimensions[class_];
  977. cbits=vf->class_subclasses[class_];
  978. csub=(1<<cbits)-1;
  979. cval=0;
  980. AV_DEBUG("Cbits %d \n", cbits);
  981. if (cbits) // this reads all subclasses for this partition's class
  982. cval=get_vlc2(gb, vc->codebooks[vf->class_masterbook[class_]].vlc.table,
  983. vc->codebooks[vf->class_masterbook[class_]].nb_bits, 3);
  984. for(j=0;j<cdim;++j) {
  985. book=vf->subclass_books[class_][cval & csub];
  986. AV_DEBUG("book %d Cbits %d cval %d bits:%d \n", book, cbits, cval, get_bits_count(gb));
  987. cval=cval>>cbits;
  988. if (book>-1) {
  989. floor1_Y[offset+j]=get_vlc2(gb, vc->codebooks[book].vlc.table,
  990. vc->codebooks[book].nb_bits, 3);
  991. } else {
  992. floor1_Y[offset+j]=0;
  993. }
  994. AV_DEBUG(" floor(%d) = %d \n", vf->list[offset+j].x, floor1_Y[offset+j]);
  995. }
  996. offset+=cdim;
  997. }
  998. // Amplitude calculation from the differences
  999. floor1_flag[0]=1;
  1000. floor1_flag[1]=1;
  1001. floor1_Y_final[0]=floor1_Y[0];
  1002. floor1_Y_final[1]=floor1_Y[1];
  1003. for(i=2;i<vf->x_list_dim;++i) {
  1004. uint_fast16_t val, highroom, lowroom, room;
  1005. uint_fast16_t high_neigh_offs;
  1006. uint_fast16_t low_neigh_offs;
  1007. low_neigh_offs=vf->list[i].low;
  1008. high_neigh_offs=vf->list[i].high;
  1009. dy=floor1_Y_final[high_neigh_offs]-floor1_Y_final[low_neigh_offs]; // render_point begin
  1010. adx=vf->list[high_neigh_offs].x-vf->list[low_neigh_offs].x;
  1011. ady= FFABS(dy);
  1012. err=ady*(vf->list[i].x-vf->list[low_neigh_offs].x);
  1013. off=(int16_t)err/(int16_t)adx;
  1014. if (dy<0) {
  1015. predicted=floor1_Y_final[low_neigh_offs]-off;
  1016. } else {
  1017. predicted=floor1_Y_final[low_neigh_offs]+off;
  1018. } // render_point end
  1019. val=floor1_Y[i];
  1020. highroom=range-predicted;
  1021. lowroom=predicted;
  1022. if (highroom < lowroom) {
  1023. room=highroom*2;
  1024. } else {
  1025. room=lowroom*2; // SPEC mispelling
  1026. }
  1027. if (val) {
  1028. floor1_flag[low_neigh_offs]=1;
  1029. floor1_flag[high_neigh_offs]=1;
  1030. floor1_flag[i]=1;
  1031. if (val>=room) {
  1032. if (highroom > lowroom) {
  1033. floor1_Y_final[i]=val-lowroom+predicted;
  1034. } else {
  1035. floor1_Y_final[i]=predicted-val+highroom-1;
  1036. }
  1037. } else {
  1038. if (val & 1) {
  1039. floor1_Y_final[i]=predicted-(val+1)/2;
  1040. } else {
  1041. floor1_Y_final[i]=predicted+val/2;
  1042. }
  1043. }
  1044. } else {
  1045. floor1_flag[i]=0;
  1046. floor1_Y_final[i]=predicted;
  1047. }
  1048. AV_DEBUG(" Decoded floor(%d) = %d / val %d \n", vf->list[i].x, floor1_Y_final[i], val);
  1049. }
  1050. // Curve synth - connect the calculated dots and convert from dB scale FIXME optimize ?
  1051. ff_vorbis_floor1_render_list(vf->list, vf->x_list_dim, floor1_Y_final, floor1_flag, vf->multiplier, vec, vf->list[1].x);
  1052. AV_DEBUG(" Floor decoded\n");
  1053. return 0;
  1054. }
  1055. // Read and decode residue
  1056. static av_always_inline int vorbis_residue_decode_internal(vorbis_context *vc,
  1057. vorbis_residue *vr,
  1058. uint_fast8_t ch,
  1059. uint_fast8_t *do_not_decode,
  1060. float *vec,
  1061. uint_fast16_t
  1062. vlen, int vr_type)
  1063. {
  1064. GetBitContext *gb=&vc->gb;
  1065. uint_fast8_t c_p_c=vc->codebooks[vr->classbook].dimensions;
  1066. uint_fast16_t n_to_read=vr->end-vr->begin;
  1067. uint_fast16_t ptns_to_read=n_to_read/vr->partition_size;
  1068. uint_fast8_t classifs[ptns_to_read*vc->audio_channels];
  1069. uint_fast8_t pass;
  1070. uint_fast8_t ch_used;
  1071. uint_fast8_t i,j,l;
  1072. uint_fast16_t k;
  1073. if (vr_type==2) {
  1074. for(j=1;j<ch;++j)
  1075. do_not_decode[0]&=do_not_decode[j]; // FIXME - clobbering input
  1076. if (do_not_decode[0])
  1077. return 0;
  1078. ch_used=1;
  1079. } else {
  1080. ch_used=ch;
  1081. }
  1082. AV_DEBUG(" residue type 0/1/2 decode begin, ch: %d cpc %d \n", ch, c_p_c);
  1083. for(pass=0;pass<=vr->maxpass;++pass) { // FIXME OPTIMIZE?
  1084. uint_fast16_t voffset;
  1085. uint_fast16_t partition_count;
  1086. uint_fast16_t j_times_ptns_to_read;
  1087. voffset=vr->begin;
  1088. for(partition_count=0;partition_count<ptns_to_read;) { // SPEC error
  1089. if (!pass) {
  1090. uint_fast32_t inverse_class = ff_inverse[vr->classifications];
  1091. for(j_times_ptns_to_read=0, j=0;j<ch_used;++j) {
  1092. if (!do_not_decode[j]) {
  1093. uint_fast32_t temp=get_vlc2(gb, vc->codebooks[vr->classbook].vlc.table,
  1094. vc->codebooks[vr->classbook].nb_bits, 3);
  1095. AV_DEBUG("Classword: %d \n", temp);
  1096. assert(vr->classifications > 1 && temp<=65536); //needed for inverse[]
  1097. for(i=0;i<c_p_c;++i) {
  1098. uint_fast32_t temp2;
  1099. temp2=(((uint_fast64_t)temp) * inverse_class)>>32;
  1100. if (partition_count+c_p_c-1-i < ptns_to_read)
  1101. classifs[j_times_ptns_to_read+partition_count+c_p_c-1-i]=temp-temp2*vr->classifications;
  1102. temp=temp2;
  1103. }
  1104. }
  1105. j_times_ptns_to_read+=ptns_to_read;
  1106. }
  1107. }
  1108. for(i=0;(i<c_p_c) && (partition_count<ptns_to_read);++i) {
  1109. for(j_times_ptns_to_read=0, j=0;j<ch_used;++j) {
  1110. uint_fast16_t voffs;
  1111. if (!do_not_decode[j]) {
  1112. uint_fast8_t vqclass=classifs[j_times_ptns_to_read+partition_count];
  1113. int_fast16_t vqbook=vr->books[vqclass][pass];
  1114. if (vqbook>=0 && vc->codebooks[vqbook].codevectors) {
  1115. uint_fast16_t coffs;
  1116. unsigned dim= vc->codebooks[vqbook].dimensions; // not uint_fast8_t: 64bit is slower here on amd64
  1117. uint_fast16_t step= dim==1 ? vr->partition_size
  1118. : FASTDIV(vr->partition_size, dim);
  1119. vorbis_codebook codebook= vc->codebooks[vqbook];
  1120. if (vr_type==0) {
  1121. voffs=voffset+j*vlen;
  1122. for(k=0;k<step;++k) {
  1123. coffs=get_vlc2(gb, codebook.vlc.table, codebook.nb_bits, 3) * dim;
  1124. for(l=0;l<dim;++l)
  1125. vec[voffs+k+l*step]+=codebook.codevectors[coffs+l]; // FPMATH
  1126. }
  1127. } else if (vr_type==1) {
  1128. voffs=voffset+j*vlen;
  1129. for(k=0;k<step;++k) {
  1130. coffs=get_vlc2(gb, codebook.vlc.table, codebook.nb_bits, 3) * dim;
  1131. for(l=0;l<dim;++l, ++voffs) {
  1132. vec[voffs]+=codebook.codevectors[coffs+l]; // FPMATH
  1133. AV_DEBUG(" pass %d offs: %d curr: %f change: %f cv offs.: %d \n", pass, voffs, vec[voffs], codebook.codevectors[coffs+l], coffs);
  1134. }
  1135. }
  1136. } else if (vr_type==2 && ch==2 && (voffset&1)==0 && (dim&1)==0) { // most frequent case optimized
  1137. voffs=voffset>>1;
  1138. if(dim==2) {
  1139. for(k=0;k<step;++k) {
  1140. coffs=get_vlc2(gb, codebook.vlc.table, codebook.nb_bits, 3) * 2;
  1141. vec[voffs+k ]+=codebook.codevectors[coffs ]; // FPMATH
  1142. vec[voffs+k+vlen]+=codebook.codevectors[coffs+1]; // FPMATH
  1143. }
  1144. } else if(dim==4) {
  1145. for(k=0;k<step;++k, voffs+=2) {
  1146. coffs=get_vlc2(gb, codebook.vlc.table, codebook.nb_bits, 3) * 4;
  1147. vec[voffs ]+=codebook.codevectors[coffs ]; // FPMATH
  1148. vec[voffs+1 ]+=codebook.codevectors[coffs+2]; // FPMATH
  1149. vec[voffs+vlen ]+=codebook.codevectors[coffs+1]; // FPMATH
  1150. vec[voffs+vlen+1]+=codebook.codevectors[coffs+3]; // FPMATH
  1151. }
  1152. } else
  1153. for(k=0;k<step;++k) {
  1154. coffs=get_vlc2(gb, codebook.vlc.table, codebook.nb_bits, 3) * dim;
  1155. for(l=0;l<dim;l+=2, voffs++) {
  1156. vec[voffs ]+=codebook.codevectors[coffs+l ]; // FPMATH
  1157. vec[voffs+vlen]+=codebook.codevectors[coffs+l+1]; // FPMATH
  1158. AV_DEBUG(" pass %d offs: %d curr: %f change: %f cv offs.: %d+%d \n", pass, voffset/ch+(voffs%ch)*vlen, vec[voffset/ch+(voffs%ch)*vlen], codebook.codevectors[coffs+l], coffs, l);
  1159. }
  1160. }
  1161. } else if (vr_type==2) {
  1162. voffs=voffset;
  1163. for(k=0;k<step;++k) {
  1164. coffs=get_vlc2(gb, codebook.vlc.table, codebook.nb_bits, 3) * dim;
  1165. for(l=0;l<dim;++l, ++voffs) {
  1166. vec[voffs/ch+(voffs%ch)*vlen]+=codebook.codevectors[coffs+l]; // FPMATH FIXME use if and counter instead of / and %
  1167. AV_DEBUG(" pass %d offs: %d curr: %f change: %f cv offs.: %d+%d \n", pass, voffset/ch+(voffs%ch)*vlen, vec[voffset/ch+(voffs%ch)*vlen], codebook.codevectors[coffs+l], coffs, l);
  1168. }
  1169. }
  1170. }
  1171. }
  1172. }
  1173. j_times_ptns_to_read+=ptns_to_read;
  1174. }
  1175. ++partition_count;
  1176. voffset+=vr->partition_size;
  1177. }
  1178. }
  1179. }
  1180. return 0;
  1181. }
  1182. static inline int vorbis_residue_decode(vorbis_context *vc, vorbis_residue *vr,
  1183. uint_fast8_t ch,
  1184. uint_fast8_t *do_not_decode,
  1185. float *vec, uint_fast16_t vlen)
  1186. {
  1187. if (vr->type==2)
  1188. return vorbis_residue_decode_internal(vc, vr, ch, do_not_decode, vec, vlen, 2);
  1189. else if (vr->type==1)
  1190. return vorbis_residue_decode_internal(vc, vr, ch, do_not_decode, vec, vlen, 1);
  1191. else if (vr->type==0)
  1192. return vorbis_residue_decode_internal(vc, vr, ch, do_not_decode, vec, vlen, 0);
  1193. else {
  1194. av_log(vc->avccontext, AV_LOG_ERROR, " Invalid residue type while residue decode?! \n");
  1195. return -1;
  1196. }
  1197. }
  1198. void vorbis_inverse_coupling(float *mag, float *ang, int blocksize)
  1199. {
  1200. int i;
  1201. for(i=0; i<blocksize; i++) {
  1202. if (mag[i]>0.0) {
  1203. if (ang[i]>0.0) {
  1204. ang[i]=mag[i]-ang[i];
  1205. } else {
  1206. float temp=ang[i];
  1207. ang[i]=mag[i];
  1208. mag[i]+=temp;
  1209. }
  1210. } else {
  1211. if (ang[i]>0.0) {
  1212. ang[i]+=mag[i];
  1213. } else {
  1214. float temp=ang[i];
  1215. ang[i]=mag[i];
  1216. mag[i]-=temp;
  1217. }
  1218. }
  1219. }
  1220. }
  1221. static void copy_normalize(float *dst, float *src, int len, int exp_bias,
  1222. float add_bias)
  1223. {
  1224. int i;
  1225. if(exp_bias) {
  1226. memcpy(dst, src, len * sizeof(float));
  1227. } else {
  1228. for(i=0; i<len; i++)
  1229. dst[i] = src[i] + add_bias;
  1230. }
  1231. }
  1232. // Decode the audio packet using the functions above
  1233. static int vorbis_parse_audio_packet(vorbis_context *vc)
  1234. {
  1235. GetBitContext *gb=&vc->gb;
  1236. uint_fast8_t previous_window=vc->previous_window;
  1237. uint_fast8_t mode_number;
  1238. uint_fast8_t blockflag;
  1239. uint_fast16_t blocksize;
  1240. int_fast32_t i,j;
  1241. uint_fast8_t no_residue[vc->audio_channels];
  1242. uint_fast8_t do_not_decode[vc->audio_channels];
  1243. vorbis_mapping *mapping;
  1244. float *ch_res_ptr=vc->channel_residues;
  1245. float *ch_floor_ptr=vc->channel_floors;
  1246. uint_fast8_t res_chan[vc->audio_channels];
  1247. uint_fast8_t res_num=0;
  1248. int_fast16_t retlen=0;
  1249. float fadd_bias = vc->add_bias;
  1250. if (get_bits1(gb)) {
  1251. av_log(vc->avccontext, AV_LOG_ERROR, "Not a Vorbis I audio packet.\n");
  1252. return -1; // packet type not audio
  1253. }
  1254. if (vc->mode_count==1) {
  1255. mode_number=0;
  1256. } else {
  1257. mode_number=get_bits(gb, ilog(vc->mode_count-1));
  1258. }
  1259. if (mode_number>=vc->mode_count) {
  1260. av_log(vc->avccontext, AV_LOG_ERROR, "mode number %d out of range.\n", mode_number);
  1261. return -1;
  1262. }
  1263. vc->mode_number=mode_number;
  1264. mapping=&vc->mappings[vc->modes[mode_number].mapping];
  1265. AV_DEBUG(" Mode number: %d , mapping: %d , blocktype %d \n", mode_number, vc->modes[mode_number].mapping, vc->modes[mode_number].blockflag);
  1266. blockflag=vc->modes[mode_number].blockflag;
  1267. blocksize=vc->blocksize[blockflag];
  1268. if (blockflag)
  1269. skip_bits(gb, 2); // previous_window, next_window
  1270. memset(ch_res_ptr, 0, sizeof(float)*vc->audio_channels*blocksize/2); //FIXME can this be removed ?
  1271. memset(ch_floor_ptr, 0, sizeof(float)*vc->audio_channels*blocksize/2); //FIXME can this be removed ?
  1272. // Decode floor
  1273. for(i=0;i<vc->audio_channels;++i) {
  1274. vorbis_floor *floor;
  1275. if (mapping->submaps>1) {
  1276. floor=&vc->floors[mapping->submap_floor[mapping->mux[i]]];
  1277. } else {
  1278. floor=&vc->floors[mapping->submap_floor[0]];
  1279. }
  1280. no_residue[i]=floor->decode(vc, &floor->data, ch_floor_ptr);
  1281. ch_floor_ptr+=blocksize/2;
  1282. }
  1283. // Nonzero vector propagate
  1284. for(i=mapping->coupling_steps-1;i>=0;--i) {
  1285. if (!(no_residue[mapping->magnitude[i]] & no_residue[mapping->angle[i]])) {
  1286. no_residue[mapping->magnitude[i]]=0;
  1287. no_residue[mapping->angle[i]]=0;
  1288. }
  1289. }
  1290. // Decode residue
  1291. for(i=0;i<mapping->submaps;++i) {
  1292. vorbis_residue *residue;
  1293. uint_fast8_t ch=0;
  1294. for(j=0;j<vc->audio_channels;++j) {
  1295. if ((mapping->submaps==1) || (i==mapping->mux[j])) {
  1296. res_chan[j]=res_num;
  1297. if (no_residue[j]) {
  1298. do_not_decode[ch]=1;
  1299. } else {
  1300. do_not_decode[ch]=0;
  1301. }
  1302. ++ch;
  1303. ++res_num;
  1304. }
  1305. }
  1306. residue=&vc->residues[mapping->submap_residue[i]];
  1307. vorbis_residue_decode(vc, residue, ch, do_not_decode, ch_res_ptr, blocksize/2);
  1308. ch_res_ptr+=ch*blocksize/2;
  1309. }
  1310. // Inverse coupling
  1311. for(i=mapping->coupling_steps-1;i>=0;--i) { //warning: i has to be signed
  1312. float *mag, *ang;
  1313. mag=vc->channel_residues+res_chan[mapping->magnitude[i]]*blocksize/2;
  1314. ang=vc->channel_residues+res_chan[mapping->angle[i]]*blocksize/2;
  1315. vc->dsp.vorbis_inverse_coupling(mag, ang, blocksize/2);
  1316. }
  1317. // Dotproduct, MDCT
  1318. for(j=vc->audio_channels-1;j>=0;j--) {
  1319. ch_floor_ptr=vc->channel_floors+j*blocksize/2;
  1320. ch_res_ptr=vc->channel_residues+res_chan[j]*blocksize/2;
  1321. vc->dsp.vector_fmul(ch_floor_ptr, ch_res_ptr, blocksize/2);
  1322. ff_imdct_half(&vc->mdct[blockflag], ch_res_ptr, ch_floor_ptr);
  1323. }
  1324. // Overlap/add, save data for next overlapping FPMATH
  1325. retlen = (blocksize + vc->blocksize[previous_window])/4;
  1326. for(j=0;j<vc->audio_channels;j++) {
  1327. uint_fast16_t bs0=vc->blocksize[0];
  1328. uint_fast16_t bs1=vc->blocksize[1];
  1329. float *residue=vc->channel_residues+res_chan[j]*blocksize/2;
  1330. float *saved=vc->saved+j*bs1/4;
  1331. float *ret=vc->channel_floors+j*retlen;
  1332. float *buf=residue;
  1333. const float *win=vc->win[blockflag&previous_window];
  1334. if(blockflag == previous_window) {
  1335. vc->dsp.vector_fmul_window(ret, saved, buf, win, fadd_bias, blocksize/4);
  1336. } else if(blockflag > previous_window) {
  1337. vc->dsp.vector_fmul_window(ret, saved, buf, win, fadd_bias, bs0/4);
  1338. copy_normalize(ret+bs0/2, buf+bs0/4, (bs1-bs0)/4, vc->exp_bias, fadd_bias);
  1339. } else {
  1340. copy_normalize(ret, saved, (bs1-bs0)/4, vc->exp_bias, fadd_bias);
  1341. vc->dsp.vector_fmul_window(ret+(bs1-bs0)/4, saved+(bs1-bs0)/4, buf, win, fadd_bias, bs0/4);
  1342. }
  1343. memcpy(saved, buf+blocksize/4, blocksize/4*sizeof(float));
  1344. }
  1345. vc->previous_window = blockflag;
  1346. return retlen;
  1347. }
  1348. // Return the decoded audio packet through the standard api
  1349. static int vorbis_decode_frame(AVCodecContext *avccontext,
  1350. void *data, int *data_size,
  1351. AVPacket *avpkt)
  1352. {
  1353. const uint8_t *buf = avpkt->data;
  1354. int buf_size = avpkt->size;
  1355. vorbis_context *vc = avccontext->priv_data ;
  1356. GetBitContext *gb = &(vc->gb);
  1357. const float *channel_ptrs[vc->audio_channels];
  1358. int i;
  1359. int_fast16_t len;
  1360. if(!buf_size)
  1361. return 0;
  1362. AV_DEBUG("packet length %d \n", buf_size);
  1363. init_get_bits(gb, buf, buf_size*8);
  1364. len=vorbis_parse_audio_packet(vc);
  1365. if (len<=0) {
  1366. *data_size=0;
  1367. return buf_size;
  1368. }
  1369. if (!vc->first_frame) {
  1370. vc->first_frame=1;
  1371. *data_size=0;
  1372. return buf_size ;
  1373. }
  1374. AV_DEBUG("parsed %d bytes %d bits, returned %d samples (*ch*bits) \n", get_bits_count(gb)/8, get_bits_count(gb)%8, len);
  1375. for(i=0; i<vc->audio_channels; i++)
  1376. channel_ptrs[i] = vc->channel_floors+i*len;
  1377. vc->dsp.float_to_int16_interleave(data, channel_ptrs, len, vc->audio_channels);
  1378. *data_size=len*2*vc->audio_channels;
  1379. return buf_size ;
  1380. }
  1381. // Close decoder
  1382. static av_cold int vorbis_decode_close(AVCodecContext *avccontext)
  1383. {
  1384. vorbis_context *vc = avccontext->priv_data;
  1385. vorbis_free(vc);
  1386. return 0 ;
  1387. }
  1388. AVCodec vorbis_decoder = {
  1389. "vorbis",
  1390. CODEC_TYPE_AUDIO,
  1391. CODEC_ID_VORBIS,
  1392. sizeof(vorbis_context),
  1393. vorbis_decode_init,
  1394. NULL,
  1395. vorbis_decode_close,
  1396. vorbis_decode_frame,
  1397. .long_name = NULL_IF_CONFIG_SMALL("Vorbis"),
  1398. };