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  1. /*
  2. * MPEG Audio decoder
  3. * Copyright (c) 2001, 2002 Fabrice Bellard.
  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 mpegaudiodec.c
  23. * MPEG Audio decoder.
  24. */
  25. //#define DEBUG
  26. #include "avcodec.h"
  27. #include "bitstream.h"
  28. #include "dsputil.h"
  29. /*
  30. * TODO:
  31. * - in low precision mode, use more 16 bit multiplies in synth filter
  32. * - test lsf / mpeg25 extensively.
  33. */
  34. /* define USE_HIGHPRECISION to have a bit exact (but slower) mpeg
  35. audio decoder */
  36. #ifdef CONFIG_MPEGAUDIO_HP
  37. # define USE_HIGHPRECISION
  38. #endif
  39. #include "mpegaudio.h"
  40. #include "mpegaudiodecheader.h"
  41. #include "mathops.h"
  42. /* WARNING: only correct for posititive numbers */
  43. #define FIXR(a) ((int)((a) * FRAC_ONE + 0.5))
  44. #define FRAC_RND(a) (((a) + (FRAC_ONE/2)) >> FRAC_BITS)
  45. #define FIXHR(a) ((int)((a) * (1LL<<32) + 0.5))
  46. /****************/
  47. #define HEADER_SIZE 4
  48. /**
  49. * Context for MP3On4 decoder
  50. */
  51. typedef struct MP3On4DecodeContext {
  52. int frames; ///< number of mp3 frames per block (number of mp3 decoder instances)
  53. int chan_cfg; ///< channel config number
  54. MPADecodeContext *mp3decctx[5]; ///< MPADecodeContext for every decoder instance
  55. } MP3On4DecodeContext;
  56. /* layer 3 "granule" */
  57. typedef struct GranuleDef {
  58. uint8_t scfsi;
  59. int part2_3_length;
  60. int big_values;
  61. int global_gain;
  62. int scalefac_compress;
  63. uint8_t block_type;
  64. uint8_t switch_point;
  65. int table_select[3];
  66. int subblock_gain[3];
  67. uint8_t scalefac_scale;
  68. uint8_t count1table_select;
  69. int region_size[3]; /* number of huffman codes in each region */
  70. int preflag;
  71. int short_start, long_end; /* long/short band indexes */
  72. uint8_t scale_factors[40];
  73. int32_t sb_hybrid[SBLIMIT * 18]; /* 576 samples */
  74. } GranuleDef;
  75. #define MODE_EXT_MS_STEREO 2
  76. #define MODE_EXT_I_STEREO 1
  77. #include "mpegaudiodata.h"
  78. #include "mpegaudiodectab.h"
  79. static void compute_antialias_integer(MPADecodeContext *s, GranuleDef *g);
  80. static void compute_antialias_float(MPADecodeContext *s, GranuleDef *g);
  81. /* vlc structure for decoding layer 3 huffman tables */
  82. static VLC huff_vlc[16];
  83. static VLC huff_quad_vlc[2];
  84. /* computed from band_size_long */
  85. static uint16_t band_index_long[9][23];
  86. /* XXX: free when all decoders are closed */
  87. #define TABLE_4_3_SIZE (8191 + 16)*4
  88. static int8_t table_4_3_exp[TABLE_4_3_SIZE];
  89. static uint32_t table_4_3_value[TABLE_4_3_SIZE];
  90. static uint32_t exp_table[512];
  91. static uint32_t expval_table[512][16];
  92. /* intensity stereo coef table */
  93. static int32_t is_table[2][16];
  94. static int32_t is_table_lsf[2][2][16];
  95. static int32_t csa_table[8][4];
  96. static float csa_table_float[8][4];
  97. static int32_t mdct_win[8][36];
  98. /* lower 2 bits: modulo 3, higher bits: shift */
  99. static uint16_t scale_factor_modshift[64];
  100. /* [i][j]: 2^(-j/3) * FRAC_ONE * 2^(i+2) / (2^(i+2) - 1) */
  101. static int32_t scale_factor_mult[15][3];
  102. /* mult table for layer 2 group quantization */
  103. #define SCALE_GEN(v) \
  104. { FIXR(1.0 * (v)), FIXR(0.7937005259 * (v)), FIXR(0.6299605249 * (v)) }
  105. static const int32_t scale_factor_mult2[3][3] = {
  106. SCALE_GEN(4.0 / 3.0), /* 3 steps */
  107. SCALE_GEN(4.0 / 5.0), /* 5 steps */
  108. SCALE_GEN(4.0 / 9.0), /* 9 steps */
  109. };
  110. static DECLARE_ALIGNED_16(MPA_INT, window[512]);
  111. /* layer 1 unscaling */
  112. /* n = number of bits of the mantissa minus 1 */
  113. static inline int l1_unscale(int n, int mant, int scale_factor)
  114. {
  115. int shift, mod;
  116. int64_t val;
  117. shift = scale_factor_modshift[scale_factor];
  118. mod = shift & 3;
  119. shift >>= 2;
  120. val = MUL64(mant + (-1 << n) + 1, scale_factor_mult[n-1][mod]);
  121. shift += n;
  122. /* NOTE: at this point, 1 <= shift >= 21 + 15 */
  123. return (int)((val + (1LL << (shift - 1))) >> shift);
  124. }
  125. static inline int l2_unscale_group(int steps, int mant, int scale_factor)
  126. {
  127. int shift, mod, val;
  128. shift = scale_factor_modshift[scale_factor];
  129. mod = shift & 3;
  130. shift >>= 2;
  131. val = (mant - (steps >> 1)) * scale_factor_mult2[steps >> 2][mod];
  132. /* NOTE: at this point, 0 <= shift <= 21 */
  133. if (shift > 0)
  134. val = (val + (1 << (shift - 1))) >> shift;
  135. return val;
  136. }
  137. /* compute value^(4/3) * 2^(exponent/4). It normalized to FRAC_BITS */
  138. static inline int l3_unscale(int value, int exponent)
  139. {
  140. unsigned int m;
  141. int e;
  142. e = table_4_3_exp [4*value + (exponent&3)];
  143. m = table_4_3_value[4*value + (exponent&3)];
  144. e -= (exponent >> 2);
  145. assert(e>=1);
  146. if (e > 31)
  147. return 0;
  148. m = (m + (1 << (e-1))) >> e;
  149. return m;
  150. }
  151. /* all integer n^(4/3) computation code */
  152. #define DEV_ORDER 13
  153. #define POW_FRAC_BITS 24
  154. #define POW_FRAC_ONE (1 << POW_FRAC_BITS)
  155. #define POW_FIX(a) ((int)((a) * POW_FRAC_ONE))
  156. #define POW_MULL(a,b) (((int64_t)(a) * (int64_t)(b)) >> POW_FRAC_BITS)
  157. static int dev_4_3_coefs[DEV_ORDER];
  158. #if 0 /* unused */
  159. static int pow_mult3[3] = {
  160. POW_FIX(1.0),
  161. POW_FIX(1.25992104989487316476),
  162. POW_FIX(1.58740105196819947474),
  163. };
  164. #endif
  165. static void int_pow_init(void)
  166. {
  167. int i, a;
  168. a = POW_FIX(1.0);
  169. for(i=0;i<DEV_ORDER;i++) {
  170. a = POW_MULL(a, POW_FIX(4.0 / 3.0) - i * POW_FIX(1.0)) / (i + 1);
  171. dev_4_3_coefs[i] = a;
  172. }
  173. }
  174. #if 0 /* unused, remove? */
  175. /* return the mantissa and the binary exponent */
  176. static int int_pow(int i, int *exp_ptr)
  177. {
  178. int e, er, eq, j;
  179. int a, a1;
  180. /* renormalize */
  181. a = i;
  182. e = POW_FRAC_BITS;
  183. while (a < (1 << (POW_FRAC_BITS - 1))) {
  184. a = a << 1;
  185. e--;
  186. }
  187. a -= (1 << POW_FRAC_BITS);
  188. a1 = 0;
  189. for(j = DEV_ORDER - 1; j >= 0; j--)
  190. a1 = POW_MULL(a, dev_4_3_coefs[j] + a1);
  191. a = (1 << POW_FRAC_BITS) + a1;
  192. /* exponent compute (exact) */
  193. e = e * 4;
  194. er = e % 3;
  195. eq = e / 3;
  196. a = POW_MULL(a, pow_mult3[er]);
  197. while (a >= 2 * POW_FRAC_ONE) {
  198. a = a >> 1;
  199. eq++;
  200. }
  201. /* convert to float */
  202. while (a < POW_FRAC_ONE) {
  203. a = a << 1;
  204. eq--;
  205. }
  206. /* now POW_FRAC_ONE <= a < 2 * POW_FRAC_ONE */
  207. #if POW_FRAC_BITS > FRAC_BITS
  208. a = (a + (1 << (POW_FRAC_BITS - FRAC_BITS - 1))) >> (POW_FRAC_BITS - FRAC_BITS);
  209. /* correct overflow */
  210. if (a >= 2 * (1 << FRAC_BITS)) {
  211. a = a >> 1;
  212. eq++;
  213. }
  214. #endif
  215. *exp_ptr = eq;
  216. return a;
  217. }
  218. #endif
  219. static int decode_init(AVCodecContext * avctx)
  220. {
  221. MPADecodeContext *s = avctx->priv_data;
  222. static int init=0;
  223. int i, j, k;
  224. s->avctx = avctx;
  225. #if defined(USE_HIGHPRECISION) && defined(CONFIG_AUDIO_NONSHORT)
  226. avctx->sample_fmt= SAMPLE_FMT_S32;
  227. #else
  228. avctx->sample_fmt= SAMPLE_FMT_S16;
  229. #endif
  230. s->error_resilience= avctx->error_resilience;
  231. if(avctx->antialias_algo != FF_AA_FLOAT)
  232. s->compute_antialias= compute_antialias_integer;
  233. else
  234. s->compute_antialias= compute_antialias_float;
  235. if (!init && !avctx->parse_only) {
  236. /* scale factors table for layer 1/2 */
  237. for(i=0;i<64;i++) {
  238. int shift, mod;
  239. /* 1.0 (i = 3) is normalized to 2 ^ FRAC_BITS */
  240. shift = (i / 3);
  241. mod = i % 3;
  242. scale_factor_modshift[i] = mod | (shift << 2);
  243. }
  244. /* scale factor multiply for layer 1 */
  245. for(i=0;i<15;i++) {
  246. int n, norm;
  247. n = i + 2;
  248. norm = ((INT64_C(1) << n) * FRAC_ONE) / ((1 << n) - 1);
  249. scale_factor_mult[i][0] = MULL(FIXR(1.0 * 2.0), norm);
  250. scale_factor_mult[i][1] = MULL(FIXR(0.7937005259 * 2.0), norm);
  251. scale_factor_mult[i][2] = MULL(FIXR(0.6299605249 * 2.0), norm);
  252. dprintf(avctx, "%d: norm=%x s=%x %x %x\n",
  253. i, norm,
  254. scale_factor_mult[i][0],
  255. scale_factor_mult[i][1],
  256. scale_factor_mult[i][2]);
  257. }
  258. ff_mpa_synth_init(window);
  259. /* huffman decode tables */
  260. for(i=1;i<16;i++) {
  261. const HuffTable *h = &mpa_huff_tables[i];
  262. int xsize, x, y;
  263. unsigned int n;
  264. uint8_t tmp_bits [512];
  265. uint16_t tmp_codes[512];
  266. memset(tmp_bits , 0, sizeof(tmp_bits ));
  267. memset(tmp_codes, 0, sizeof(tmp_codes));
  268. xsize = h->xsize;
  269. n = xsize * xsize;
  270. j = 0;
  271. for(x=0;x<xsize;x++) {
  272. for(y=0;y<xsize;y++){
  273. tmp_bits [(x << 5) | y | ((x&&y)<<4)]= h->bits [j ];
  274. tmp_codes[(x << 5) | y | ((x&&y)<<4)]= h->codes[j++];
  275. }
  276. }
  277. /* XXX: fail test */
  278. init_vlc(&huff_vlc[i], 7, 512,
  279. tmp_bits, 1, 1, tmp_codes, 2, 2, 1);
  280. }
  281. for(i=0;i<2;i++) {
  282. init_vlc(&huff_quad_vlc[i], i == 0 ? 7 : 4, 16,
  283. mpa_quad_bits[i], 1, 1, mpa_quad_codes[i], 1, 1, 1);
  284. }
  285. for(i=0;i<9;i++) {
  286. k = 0;
  287. for(j=0;j<22;j++) {
  288. band_index_long[i][j] = k;
  289. k += band_size_long[i][j];
  290. }
  291. band_index_long[i][22] = k;
  292. }
  293. /* compute n ^ (4/3) and store it in mantissa/exp format */
  294. int_pow_init();
  295. for(i=1;i<TABLE_4_3_SIZE;i++) {
  296. double f, fm;
  297. int e, m;
  298. f = pow((double)(i/4), 4.0 / 3.0) * pow(2, (i&3)*0.25);
  299. fm = frexp(f, &e);
  300. m = (uint32_t)(fm*(1LL<<31) + 0.5);
  301. e+= FRAC_BITS - 31 + 5 - 100;
  302. /* normalized to FRAC_BITS */
  303. table_4_3_value[i] = m;
  304. // av_log(NULL, AV_LOG_DEBUG, "%d %d %f\n", i, m, pow((double)i, 4.0 / 3.0));
  305. table_4_3_exp[i] = -e;
  306. }
  307. for(i=0; i<512*16; i++){
  308. int exponent= (i>>4);
  309. double f= pow(i&15, 4.0 / 3.0) * pow(2, (exponent-400)*0.25 + FRAC_BITS + 5);
  310. expval_table[exponent][i&15]= llrint(f);
  311. if((i&15)==1)
  312. exp_table[exponent]= llrint(f);
  313. }
  314. for(i=0;i<7;i++) {
  315. float f;
  316. int v;
  317. if (i != 6) {
  318. f = tan((double)i * M_PI / 12.0);
  319. v = FIXR(f / (1.0 + f));
  320. } else {
  321. v = FIXR(1.0);
  322. }
  323. is_table[0][i] = v;
  324. is_table[1][6 - i] = v;
  325. }
  326. /* invalid values */
  327. for(i=7;i<16;i++)
  328. is_table[0][i] = is_table[1][i] = 0.0;
  329. for(i=0;i<16;i++) {
  330. double f;
  331. int e, k;
  332. for(j=0;j<2;j++) {
  333. e = -(j + 1) * ((i + 1) >> 1);
  334. f = pow(2.0, e / 4.0);
  335. k = i & 1;
  336. is_table_lsf[j][k ^ 1][i] = FIXR(f);
  337. is_table_lsf[j][k][i] = FIXR(1.0);
  338. dprintf(avctx, "is_table_lsf %d %d: %x %x\n",
  339. i, j, is_table_lsf[j][0][i], is_table_lsf[j][1][i]);
  340. }
  341. }
  342. for(i=0;i<8;i++) {
  343. float ci, cs, ca;
  344. ci = ci_table[i];
  345. cs = 1.0 / sqrt(1.0 + ci * ci);
  346. ca = cs * ci;
  347. csa_table[i][0] = FIXHR(cs/4);
  348. csa_table[i][1] = FIXHR(ca/4);
  349. csa_table[i][2] = FIXHR(ca/4) + FIXHR(cs/4);
  350. csa_table[i][3] = FIXHR(ca/4) - FIXHR(cs/4);
  351. csa_table_float[i][0] = cs;
  352. csa_table_float[i][1] = ca;
  353. csa_table_float[i][2] = ca + cs;
  354. csa_table_float[i][3] = ca - cs;
  355. // printf("%d %d %d %d\n", FIX(cs), FIX(cs-1), FIX(ca), FIX(cs)-FIX(ca));
  356. // av_log(NULL, AV_LOG_DEBUG,"%f %f %f %f\n", cs, ca, ca+cs, ca-cs);
  357. }
  358. /* compute mdct windows */
  359. for(i=0;i<36;i++) {
  360. for(j=0; j<4; j++){
  361. double d;
  362. if(j==2 && i%3 != 1)
  363. continue;
  364. d= sin(M_PI * (i + 0.5) / 36.0);
  365. if(j==1){
  366. if (i>=30) d= 0;
  367. else if(i>=24) d= sin(M_PI * (i - 18 + 0.5) / 12.0);
  368. else if(i>=18) d= 1;
  369. }else if(j==3){
  370. if (i< 6) d= 0;
  371. else if(i< 12) d= sin(M_PI * (i - 6 + 0.5) / 12.0);
  372. else if(i< 18) d= 1;
  373. }
  374. //merge last stage of imdct into the window coefficients
  375. d*= 0.5 / cos(M_PI*(2*i + 19)/72);
  376. if(j==2)
  377. mdct_win[j][i/3] = FIXHR((d / (1<<5)));
  378. else
  379. mdct_win[j][i ] = FIXHR((d / (1<<5)));
  380. // av_log(NULL, AV_LOG_DEBUG, "%2d %d %f\n", i,j,d / (1<<5));
  381. }
  382. }
  383. /* NOTE: we do frequency inversion adter the MDCT by changing
  384. the sign of the right window coefs */
  385. for(j=0;j<4;j++) {
  386. for(i=0;i<36;i+=2) {
  387. mdct_win[j + 4][i] = mdct_win[j][i];
  388. mdct_win[j + 4][i + 1] = -mdct_win[j][i + 1];
  389. }
  390. }
  391. #if defined(DEBUG)
  392. for(j=0;j<8;j++) {
  393. av_log(avctx, AV_LOG_DEBUG, "win%d=\n", j);
  394. for(i=0;i<36;i++)
  395. av_log(avctx, AV_LOG_DEBUG, "%f, ", (double)mdct_win[j][i] / FRAC_ONE);
  396. av_log(avctx, AV_LOG_DEBUG, "\n");
  397. }
  398. #endif
  399. init = 1;
  400. }
  401. #ifdef DEBUG
  402. s->frame_count = 0;
  403. #endif
  404. if (avctx->codec_id == CODEC_ID_MP3ADU)
  405. s->adu_mode = 1;
  406. return 0;
  407. }
  408. /* tab[i][j] = 1.0 / (2.0 * cos(pi*(2*k+1) / 2^(6 - j))) */
  409. /* cos(i*pi/64) */
  410. #define COS0_0 FIXHR(0.50060299823519630134/2)
  411. #define COS0_1 FIXHR(0.50547095989754365998/2)
  412. #define COS0_2 FIXHR(0.51544730992262454697/2)
  413. #define COS0_3 FIXHR(0.53104259108978417447/2)
  414. #define COS0_4 FIXHR(0.55310389603444452782/2)
  415. #define COS0_5 FIXHR(0.58293496820613387367/2)
  416. #define COS0_6 FIXHR(0.62250412303566481615/2)
  417. #define COS0_7 FIXHR(0.67480834145500574602/2)
  418. #define COS0_8 FIXHR(0.74453627100229844977/2)
  419. #define COS0_9 FIXHR(0.83934964541552703873/2)
  420. #define COS0_10 FIXHR(0.97256823786196069369/2)
  421. #define COS0_11 FIXHR(1.16943993343288495515/4)
  422. #define COS0_12 FIXHR(1.48416461631416627724/4)
  423. #define COS0_13 FIXHR(2.05778100995341155085/8)
  424. #define COS0_14 FIXHR(3.40760841846871878570/8)
  425. #define COS0_15 FIXHR(10.19000812354805681150/32)
  426. #define COS1_0 FIXHR(0.50241928618815570551/2)
  427. #define COS1_1 FIXHR(0.52249861493968888062/2)
  428. #define COS1_2 FIXHR(0.56694403481635770368/2)
  429. #define COS1_3 FIXHR(0.64682178335999012954/2)
  430. #define COS1_4 FIXHR(0.78815462345125022473/2)
  431. #define COS1_5 FIXHR(1.06067768599034747134/4)
  432. #define COS1_6 FIXHR(1.72244709823833392782/4)
  433. #define COS1_7 FIXHR(5.10114861868916385802/16)
  434. #define COS2_0 FIXHR(0.50979557910415916894/2)
  435. #define COS2_1 FIXHR(0.60134488693504528054/2)
  436. #define COS2_2 FIXHR(0.89997622313641570463/2)
  437. #define COS2_3 FIXHR(2.56291544774150617881/8)
  438. #define COS3_0 FIXHR(0.54119610014619698439/2)
  439. #define COS3_1 FIXHR(1.30656296487637652785/4)
  440. #define COS4_0 FIXHR(0.70710678118654752439/2)
  441. /* butterfly operator */
  442. #define BF(a, b, c, s)\
  443. {\
  444. tmp0 = tab[a] + tab[b];\
  445. tmp1 = tab[a] - tab[b];\
  446. tab[a] = tmp0;\
  447. tab[b] = MULH(tmp1<<(s), c);\
  448. }
  449. #define BF1(a, b, c, d)\
  450. {\
  451. BF(a, b, COS4_0, 1);\
  452. BF(c, d,-COS4_0, 1);\
  453. tab[c] += tab[d];\
  454. }
  455. #define BF2(a, b, c, d)\
  456. {\
  457. BF(a, b, COS4_0, 1);\
  458. BF(c, d,-COS4_0, 1);\
  459. tab[c] += tab[d];\
  460. tab[a] += tab[c];\
  461. tab[c] += tab[b];\
  462. tab[b] += tab[d];\
  463. }
  464. #define ADD(a, b) tab[a] += tab[b]
  465. /* DCT32 without 1/sqrt(2) coef zero scaling. */
  466. static void dct32(int32_t *out, int32_t *tab)
  467. {
  468. int tmp0, tmp1;
  469. /* pass 1 */
  470. BF( 0, 31, COS0_0 , 1);
  471. BF(15, 16, COS0_15, 5);
  472. /* pass 2 */
  473. BF( 0, 15, COS1_0 , 1);
  474. BF(16, 31,-COS1_0 , 1);
  475. /* pass 1 */
  476. BF( 7, 24, COS0_7 , 1);
  477. BF( 8, 23, COS0_8 , 1);
  478. /* pass 2 */
  479. BF( 7, 8, COS1_7 , 4);
  480. BF(23, 24,-COS1_7 , 4);
  481. /* pass 3 */
  482. BF( 0, 7, COS2_0 , 1);
  483. BF( 8, 15,-COS2_0 , 1);
  484. BF(16, 23, COS2_0 , 1);
  485. BF(24, 31,-COS2_0 , 1);
  486. /* pass 1 */
  487. BF( 3, 28, COS0_3 , 1);
  488. BF(12, 19, COS0_12, 2);
  489. /* pass 2 */
  490. BF( 3, 12, COS1_3 , 1);
  491. BF(19, 28,-COS1_3 , 1);
  492. /* pass 1 */
  493. BF( 4, 27, COS0_4 , 1);
  494. BF(11, 20, COS0_11, 2);
  495. /* pass 2 */
  496. BF( 4, 11, COS1_4 , 1);
  497. BF(20, 27,-COS1_4 , 1);
  498. /* pass 3 */
  499. BF( 3, 4, COS2_3 , 3);
  500. BF(11, 12,-COS2_3 , 3);
  501. BF(19, 20, COS2_3 , 3);
  502. BF(27, 28,-COS2_3 , 3);
  503. /* pass 4 */
  504. BF( 0, 3, COS3_0 , 1);
  505. BF( 4, 7,-COS3_0 , 1);
  506. BF( 8, 11, COS3_0 , 1);
  507. BF(12, 15,-COS3_0 , 1);
  508. BF(16, 19, COS3_0 , 1);
  509. BF(20, 23,-COS3_0 , 1);
  510. BF(24, 27, COS3_0 , 1);
  511. BF(28, 31,-COS3_0 , 1);
  512. /* pass 1 */
  513. BF( 1, 30, COS0_1 , 1);
  514. BF(14, 17, COS0_14, 3);
  515. /* pass 2 */
  516. BF( 1, 14, COS1_1 , 1);
  517. BF(17, 30,-COS1_1 , 1);
  518. /* pass 1 */
  519. BF( 6, 25, COS0_6 , 1);
  520. BF( 9, 22, COS0_9 , 1);
  521. /* pass 2 */
  522. BF( 6, 9, COS1_6 , 2);
  523. BF(22, 25,-COS1_6 , 2);
  524. /* pass 3 */
  525. BF( 1, 6, COS2_1 , 1);
  526. BF( 9, 14,-COS2_1 , 1);
  527. BF(17, 22, COS2_1 , 1);
  528. BF(25, 30,-COS2_1 , 1);
  529. /* pass 1 */
  530. BF( 2, 29, COS0_2 , 1);
  531. BF(13, 18, COS0_13, 3);
  532. /* pass 2 */
  533. BF( 2, 13, COS1_2 , 1);
  534. BF(18, 29,-COS1_2 , 1);
  535. /* pass 1 */
  536. BF( 5, 26, COS0_5 , 1);
  537. BF(10, 21, COS0_10, 1);
  538. /* pass 2 */
  539. BF( 5, 10, COS1_5 , 2);
  540. BF(21, 26,-COS1_5 , 2);
  541. /* pass 3 */
  542. BF( 2, 5, COS2_2 , 1);
  543. BF(10, 13,-COS2_2 , 1);
  544. BF(18, 21, COS2_2 , 1);
  545. BF(26, 29,-COS2_2 , 1);
  546. /* pass 4 */
  547. BF( 1, 2, COS3_1 , 2);
  548. BF( 5, 6,-COS3_1 , 2);
  549. BF( 9, 10, COS3_1 , 2);
  550. BF(13, 14,-COS3_1 , 2);
  551. BF(17, 18, COS3_1 , 2);
  552. BF(21, 22,-COS3_1 , 2);
  553. BF(25, 26, COS3_1 , 2);
  554. BF(29, 30,-COS3_1 , 2);
  555. /* pass 5 */
  556. BF1( 0, 1, 2, 3);
  557. BF2( 4, 5, 6, 7);
  558. BF1( 8, 9, 10, 11);
  559. BF2(12, 13, 14, 15);
  560. BF1(16, 17, 18, 19);
  561. BF2(20, 21, 22, 23);
  562. BF1(24, 25, 26, 27);
  563. BF2(28, 29, 30, 31);
  564. /* pass 6 */
  565. ADD( 8, 12);
  566. ADD(12, 10);
  567. ADD(10, 14);
  568. ADD(14, 9);
  569. ADD( 9, 13);
  570. ADD(13, 11);
  571. ADD(11, 15);
  572. out[ 0] = tab[0];
  573. out[16] = tab[1];
  574. out[ 8] = tab[2];
  575. out[24] = tab[3];
  576. out[ 4] = tab[4];
  577. out[20] = tab[5];
  578. out[12] = tab[6];
  579. out[28] = tab[7];
  580. out[ 2] = tab[8];
  581. out[18] = tab[9];
  582. out[10] = tab[10];
  583. out[26] = tab[11];
  584. out[ 6] = tab[12];
  585. out[22] = tab[13];
  586. out[14] = tab[14];
  587. out[30] = tab[15];
  588. ADD(24, 28);
  589. ADD(28, 26);
  590. ADD(26, 30);
  591. ADD(30, 25);
  592. ADD(25, 29);
  593. ADD(29, 27);
  594. ADD(27, 31);
  595. out[ 1] = tab[16] + tab[24];
  596. out[17] = tab[17] + tab[25];
  597. out[ 9] = tab[18] + tab[26];
  598. out[25] = tab[19] + tab[27];
  599. out[ 5] = tab[20] + tab[28];
  600. out[21] = tab[21] + tab[29];
  601. out[13] = tab[22] + tab[30];
  602. out[29] = tab[23] + tab[31];
  603. out[ 3] = tab[24] + tab[20];
  604. out[19] = tab[25] + tab[21];
  605. out[11] = tab[26] + tab[22];
  606. out[27] = tab[27] + tab[23];
  607. out[ 7] = tab[28] + tab[18];
  608. out[23] = tab[29] + tab[19];
  609. out[15] = tab[30] + tab[17];
  610. out[31] = tab[31];
  611. }
  612. #if FRAC_BITS <= 15
  613. static inline int round_sample(int *sum)
  614. {
  615. int sum1;
  616. sum1 = (*sum) >> OUT_SHIFT;
  617. *sum &= (1<<OUT_SHIFT)-1;
  618. if (sum1 < OUT_MIN)
  619. sum1 = OUT_MIN;
  620. else if (sum1 > OUT_MAX)
  621. sum1 = OUT_MAX;
  622. return sum1;
  623. }
  624. /* signed 16x16 -> 32 multiply add accumulate */
  625. #define MACS(rt, ra, rb) MAC16(rt, ra, rb)
  626. /* signed 16x16 -> 32 multiply */
  627. #define MULS(ra, rb) MUL16(ra, rb)
  628. #else
  629. static inline int round_sample(int64_t *sum)
  630. {
  631. int sum1;
  632. sum1 = (int)((*sum) >> OUT_SHIFT);
  633. *sum &= (1<<OUT_SHIFT)-1;
  634. if (sum1 < OUT_MIN)
  635. sum1 = OUT_MIN;
  636. else if (sum1 > OUT_MAX)
  637. sum1 = OUT_MAX;
  638. return sum1;
  639. }
  640. # define MULS(ra, rb) MUL64(ra, rb)
  641. #endif
  642. #define SUM8(sum, op, w, p) \
  643. { \
  644. sum op MULS((w)[0 * 64], p[0 * 64]);\
  645. sum op MULS((w)[1 * 64], p[1 * 64]);\
  646. sum op MULS((w)[2 * 64], p[2 * 64]);\
  647. sum op MULS((w)[3 * 64], p[3 * 64]);\
  648. sum op MULS((w)[4 * 64], p[4 * 64]);\
  649. sum op MULS((w)[5 * 64], p[5 * 64]);\
  650. sum op MULS((w)[6 * 64], p[6 * 64]);\
  651. sum op MULS((w)[7 * 64], p[7 * 64]);\
  652. }
  653. #define SUM8P2(sum1, op1, sum2, op2, w1, w2, p) \
  654. { \
  655. int tmp;\
  656. tmp = p[0 * 64];\
  657. sum1 op1 MULS((w1)[0 * 64], tmp);\
  658. sum2 op2 MULS((w2)[0 * 64], tmp);\
  659. tmp = p[1 * 64];\
  660. sum1 op1 MULS((w1)[1 * 64], tmp);\
  661. sum2 op2 MULS((w2)[1 * 64], tmp);\
  662. tmp = p[2 * 64];\
  663. sum1 op1 MULS((w1)[2 * 64], tmp);\
  664. sum2 op2 MULS((w2)[2 * 64], tmp);\
  665. tmp = p[3 * 64];\
  666. sum1 op1 MULS((w1)[3 * 64], tmp);\
  667. sum2 op2 MULS((w2)[3 * 64], tmp);\
  668. tmp = p[4 * 64];\
  669. sum1 op1 MULS((w1)[4 * 64], tmp);\
  670. sum2 op2 MULS((w2)[4 * 64], tmp);\
  671. tmp = p[5 * 64];\
  672. sum1 op1 MULS((w1)[5 * 64], tmp);\
  673. sum2 op2 MULS((w2)[5 * 64], tmp);\
  674. tmp = p[6 * 64];\
  675. sum1 op1 MULS((w1)[6 * 64], tmp);\
  676. sum2 op2 MULS((w2)[6 * 64], tmp);\
  677. tmp = p[7 * 64];\
  678. sum1 op1 MULS((w1)[7 * 64], tmp);\
  679. sum2 op2 MULS((w2)[7 * 64], tmp);\
  680. }
  681. void ff_mpa_synth_init(MPA_INT *window)
  682. {
  683. int i;
  684. /* max = 18760, max sum over all 16 coefs : 44736 */
  685. for(i=0;i<257;i++) {
  686. int v;
  687. v = ff_mpa_enwindow[i];
  688. #if WFRAC_BITS < 16
  689. v = (v + (1 << (16 - WFRAC_BITS - 1))) >> (16 - WFRAC_BITS);
  690. #endif
  691. window[i] = v;
  692. if ((i & 63) != 0)
  693. v = -v;
  694. if (i != 0)
  695. window[512 - i] = v;
  696. }
  697. }
  698. /* 32 sub band synthesis filter. Input: 32 sub band samples, Output:
  699. 32 samples. */
  700. /* XXX: optimize by avoiding ring buffer usage */
  701. void ff_mpa_synth_filter(MPA_INT *synth_buf_ptr, int *synth_buf_offset,
  702. MPA_INT *window, int *dither_state,
  703. OUT_INT *samples, int incr,
  704. int32_t sb_samples[SBLIMIT])
  705. {
  706. int32_t tmp[32];
  707. register MPA_INT *synth_buf;
  708. register const MPA_INT *w, *w2, *p;
  709. int j, offset, v;
  710. OUT_INT *samples2;
  711. #if FRAC_BITS <= 15
  712. int sum, sum2;
  713. #else
  714. int64_t sum, sum2;
  715. #endif
  716. dct32(tmp, sb_samples);
  717. offset = *synth_buf_offset;
  718. synth_buf = synth_buf_ptr + offset;
  719. for(j=0;j<32;j++) {
  720. v = tmp[j];
  721. #if FRAC_BITS <= 15
  722. /* NOTE: can cause a loss in precision if very high amplitude
  723. sound */
  724. v = av_clip_int16(v);
  725. #endif
  726. synth_buf[j] = v;
  727. }
  728. /* copy to avoid wrap */
  729. memcpy(synth_buf + 512, synth_buf, 32 * sizeof(MPA_INT));
  730. samples2 = samples + 31 * incr;
  731. w = window;
  732. w2 = window + 31;
  733. sum = *dither_state;
  734. p = synth_buf + 16;
  735. SUM8(sum, +=, w, p);
  736. p = synth_buf + 48;
  737. SUM8(sum, -=, w + 32, p);
  738. *samples = round_sample(&sum);
  739. samples += incr;
  740. w++;
  741. /* we calculate two samples at the same time to avoid one memory
  742. access per two sample */
  743. for(j=1;j<16;j++) {
  744. sum2 = 0;
  745. p = synth_buf + 16 + j;
  746. SUM8P2(sum, +=, sum2, -=, w, w2, p);
  747. p = synth_buf + 48 - j;
  748. SUM8P2(sum, -=, sum2, -=, w + 32, w2 + 32, p);
  749. *samples = round_sample(&sum);
  750. samples += incr;
  751. sum += sum2;
  752. *samples2 = round_sample(&sum);
  753. samples2 -= incr;
  754. w++;
  755. w2--;
  756. }
  757. p = synth_buf + 32;
  758. SUM8(sum, -=, w + 32, p);
  759. *samples = round_sample(&sum);
  760. *dither_state= sum;
  761. offset = (offset - 32) & 511;
  762. *synth_buf_offset = offset;
  763. }
  764. #define C3 FIXHR(0.86602540378443864676/2)
  765. /* 0.5 / cos(pi*(2*i+1)/36) */
  766. static const int icos36[9] = {
  767. FIXR(0.50190991877167369479),
  768. FIXR(0.51763809020504152469), //0
  769. FIXR(0.55168895948124587824),
  770. FIXR(0.61038729438072803416),
  771. FIXR(0.70710678118654752439), //1
  772. FIXR(0.87172339781054900991),
  773. FIXR(1.18310079157624925896),
  774. FIXR(1.93185165257813657349), //2
  775. FIXR(5.73685662283492756461),
  776. };
  777. /* 0.5 / cos(pi*(2*i+1)/36) */
  778. static const int icos36h[9] = {
  779. FIXHR(0.50190991877167369479/2),
  780. FIXHR(0.51763809020504152469/2), //0
  781. FIXHR(0.55168895948124587824/2),
  782. FIXHR(0.61038729438072803416/2),
  783. FIXHR(0.70710678118654752439/2), //1
  784. FIXHR(0.87172339781054900991/2),
  785. FIXHR(1.18310079157624925896/4),
  786. FIXHR(1.93185165257813657349/4), //2
  787. // FIXHR(5.73685662283492756461),
  788. };
  789. /* 12 points IMDCT. We compute it "by hand" by factorizing obvious
  790. cases. */
  791. static void imdct12(int *out, int *in)
  792. {
  793. int in0, in1, in2, in3, in4, in5, t1, t2;
  794. in0= in[0*3];
  795. in1= in[1*3] + in[0*3];
  796. in2= in[2*3] + in[1*3];
  797. in3= in[3*3] + in[2*3];
  798. in4= in[4*3] + in[3*3];
  799. in5= in[5*3] + in[4*3];
  800. in5 += in3;
  801. in3 += in1;
  802. in2= MULH(2*in2, C3);
  803. in3= MULH(4*in3, C3);
  804. t1 = in0 - in4;
  805. t2 = MULH(2*(in1 - in5), icos36h[4]);
  806. out[ 7]=
  807. out[10]= t1 + t2;
  808. out[ 1]=
  809. out[ 4]= t1 - t2;
  810. in0 += in4>>1;
  811. in4 = in0 + in2;
  812. in5 += 2*in1;
  813. in1 = MULH(in5 + in3, icos36h[1]);
  814. out[ 8]=
  815. out[ 9]= in4 + in1;
  816. out[ 2]=
  817. out[ 3]= in4 - in1;
  818. in0 -= in2;
  819. in5 = MULH(2*(in5 - in3), icos36h[7]);
  820. out[ 0]=
  821. out[ 5]= in0 - in5;
  822. out[ 6]=
  823. out[11]= in0 + in5;
  824. }
  825. /* cos(pi*i/18) */
  826. #define C1 FIXHR(0.98480775301220805936/2)
  827. #define C2 FIXHR(0.93969262078590838405/2)
  828. #define C3 FIXHR(0.86602540378443864676/2)
  829. #define C4 FIXHR(0.76604444311897803520/2)
  830. #define C5 FIXHR(0.64278760968653932632/2)
  831. #define C6 FIXHR(0.5/2)
  832. #define C7 FIXHR(0.34202014332566873304/2)
  833. #define C8 FIXHR(0.17364817766693034885/2)
  834. /* using Lee like decomposition followed by hand coded 9 points DCT */
  835. static void imdct36(int *out, int *buf, int *in, int *win)
  836. {
  837. int i, j, t0, t1, t2, t3, s0, s1, s2, s3;
  838. int tmp[18], *tmp1, *in1;
  839. for(i=17;i>=1;i--)
  840. in[i] += in[i-1];
  841. for(i=17;i>=3;i-=2)
  842. in[i] += in[i-2];
  843. for(j=0;j<2;j++) {
  844. tmp1 = tmp + j;
  845. in1 = in + j;
  846. #if 0
  847. //more accurate but slower
  848. int64_t t0, t1, t2, t3;
  849. t2 = in1[2*4] + in1[2*8] - in1[2*2];
  850. t3 = (in1[2*0] + (int64_t)(in1[2*6]>>1))<<32;
  851. t1 = in1[2*0] - in1[2*6];
  852. tmp1[ 6] = t1 - (t2>>1);
  853. tmp1[16] = t1 + t2;
  854. t0 = MUL64(2*(in1[2*2] + in1[2*4]), C2);
  855. t1 = MUL64( in1[2*4] - in1[2*8] , -2*C8);
  856. t2 = MUL64(2*(in1[2*2] + in1[2*8]), -C4);
  857. tmp1[10] = (t3 - t0 - t2) >> 32;
  858. tmp1[ 2] = (t3 + t0 + t1) >> 32;
  859. tmp1[14] = (t3 + t2 - t1) >> 32;
  860. tmp1[ 4] = MULH(2*(in1[2*5] + in1[2*7] - in1[2*1]), -C3);
  861. t2 = MUL64(2*(in1[2*1] + in1[2*5]), C1);
  862. t3 = MUL64( in1[2*5] - in1[2*7] , -2*C7);
  863. t0 = MUL64(2*in1[2*3], C3);
  864. t1 = MUL64(2*(in1[2*1] + in1[2*7]), -C5);
  865. tmp1[ 0] = (t2 + t3 + t0) >> 32;
  866. tmp1[12] = (t2 + t1 - t0) >> 32;
  867. tmp1[ 8] = (t3 - t1 - t0) >> 32;
  868. #else
  869. t2 = in1[2*4] + in1[2*8] - in1[2*2];
  870. t3 = in1[2*0] + (in1[2*6]>>1);
  871. t1 = in1[2*0] - in1[2*6];
  872. tmp1[ 6] = t1 - (t2>>1);
  873. tmp1[16] = t1 + t2;
  874. t0 = MULH(2*(in1[2*2] + in1[2*4]), C2);
  875. t1 = MULH( in1[2*4] - in1[2*8] , -2*C8);
  876. t2 = MULH(2*(in1[2*2] + in1[2*8]), -C4);
  877. tmp1[10] = t3 - t0 - t2;
  878. tmp1[ 2] = t3 + t0 + t1;
  879. tmp1[14] = t3 + t2 - t1;
  880. tmp1[ 4] = MULH(2*(in1[2*5] + in1[2*7] - in1[2*1]), -C3);
  881. t2 = MULH(2*(in1[2*1] + in1[2*5]), C1);
  882. t3 = MULH( in1[2*5] - in1[2*7] , -2*C7);
  883. t0 = MULH(2*in1[2*3], C3);
  884. t1 = MULH(2*(in1[2*1] + in1[2*7]), -C5);
  885. tmp1[ 0] = t2 + t3 + t0;
  886. tmp1[12] = t2 + t1 - t0;
  887. tmp1[ 8] = t3 - t1 - t0;
  888. #endif
  889. }
  890. i = 0;
  891. for(j=0;j<4;j++) {
  892. t0 = tmp[i];
  893. t1 = tmp[i + 2];
  894. s0 = t1 + t0;
  895. s2 = t1 - t0;
  896. t2 = tmp[i + 1];
  897. t3 = tmp[i + 3];
  898. s1 = MULH(2*(t3 + t2), icos36h[j]);
  899. s3 = MULL(t3 - t2, icos36[8 - j]);
  900. t0 = s0 + s1;
  901. t1 = s0 - s1;
  902. out[(9 + j)*SBLIMIT] = MULH(t1, win[9 + j]) + buf[9 + j];
  903. out[(8 - j)*SBLIMIT] = MULH(t1, win[8 - j]) + buf[8 - j];
  904. buf[9 + j] = MULH(t0, win[18 + 9 + j]);
  905. buf[8 - j] = MULH(t0, win[18 + 8 - j]);
  906. t0 = s2 + s3;
  907. t1 = s2 - s3;
  908. out[(9 + 8 - j)*SBLIMIT] = MULH(t1, win[9 + 8 - j]) + buf[9 + 8 - j];
  909. out[( j)*SBLIMIT] = MULH(t1, win[ j]) + buf[ j];
  910. buf[9 + 8 - j] = MULH(t0, win[18 + 9 + 8 - j]);
  911. buf[ + j] = MULH(t0, win[18 + j]);
  912. i += 4;
  913. }
  914. s0 = tmp[16];
  915. s1 = MULH(2*tmp[17], icos36h[4]);
  916. t0 = s0 + s1;
  917. t1 = s0 - s1;
  918. out[(9 + 4)*SBLIMIT] = MULH(t1, win[9 + 4]) + buf[9 + 4];
  919. out[(8 - 4)*SBLIMIT] = MULH(t1, win[8 - 4]) + buf[8 - 4];
  920. buf[9 + 4] = MULH(t0, win[18 + 9 + 4]);
  921. buf[8 - 4] = MULH(t0, win[18 + 8 - 4]);
  922. }
  923. /* return the number of decoded frames */
  924. static int mp_decode_layer1(MPADecodeContext *s)
  925. {
  926. int bound, i, v, n, ch, j, mant;
  927. uint8_t allocation[MPA_MAX_CHANNELS][SBLIMIT];
  928. uint8_t scale_factors[MPA_MAX_CHANNELS][SBLIMIT];
  929. if (s->mode == MPA_JSTEREO)
  930. bound = (s->mode_ext + 1) * 4;
  931. else
  932. bound = SBLIMIT;
  933. /* allocation bits */
  934. for(i=0;i<bound;i++) {
  935. for(ch=0;ch<s->nb_channels;ch++) {
  936. allocation[ch][i] = get_bits(&s->gb, 4);
  937. }
  938. }
  939. for(i=bound;i<SBLIMIT;i++) {
  940. allocation[0][i] = get_bits(&s->gb, 4);
  941. }
  942. /* scale factors */
  943. for(i=0;i<bound;i++) {
  944. for(ch=0;ch<s->nb_channels;ch++) {
  945. if (allocation[ch][i])
  946. scale_factors[ch][i] = get_bits(&s->gb, 6);
  947. }
  948. }
  949. for(i=bound;i<SBLIMIT;i++) {
  950. if (allocation[0][i]) {
  951. scale_factors[0][i] = get_bits(&s->gb, 6);
  952. scale_factors[1][i] = get_bits(&s->gb, 6);
  953. }
  954. }
  955. /* compute samples */
  956. for(j=0;j<12;j++) {
  957. for(i=0;i<bound;i++) {
  958. for(ch=0;ch<s->nb_channels;ch++) {
  959. n = allocation[ch][i];
  960. if (n) {
  961. mant = get_bits(&s->gb, n + 1);
  962. v = l1_unscale(n, mant, scale_factors[ch][i]);
  963. } else {
  964. v = 0;
  965. }
  966. s->sb_samples[ch][j][i] = v;
  967. }
  968. }
  969. for(i=bound;i<SBLIMIT;i++) {
  970. n = allocation[0][i];
  971. if (n) {
  972. mant = get_bits(&s->gb, n + 1);
  973. v = l1_unscale(n, mant, scale_factors[0][i]);
  974. s->sb_samples[0][j][i] = v;
  975. v = l1_unscale(n, mant, scale_factors[1][i]);
  976. s->sb_samples[1][j][i] = v;
  977. } else {
  978. s->sb_samples[0][j][i] = 0;
  979. s->sb_samples[1][j][i] = 0;
  980. }
  981. }
  982. }
  983. return 12;
  984. }
  985. static int mp_decode_layer2(MPADecodeContext *s)
  986. {
  987. int sblimit; /* number of used subbands */
  988. const unsigned char *alloc_table;
  989. int table, bit_alloc_bits, i, j, ch, bound, v;
  990. unsigned char bit_alloc[MPA_MAX_CHANNELS][SBLIMIT];
  991. unsigned char scale_code[MPA_MAX_CHANNELS][SBLIMIT];
  992. unsigned char scale_factors[MPA_MAX_CHANNELS][SBLIMIT][3], *sf;
  993. int scale, qindex, bits, steps, k, l, m, b;
  994. /* select decoding table */
  995. table = ff_mpa_l2_select_table(s->bit_rate / 1000, s->nb_channels,
  996. s->sample_rate, s->lsf);
  997. sblimit = ff_mpa_sblimit_table[table];
  998. alloc_table = ff_mpa_alloc_tables[table];
  999. if (s->mode == MPA_JSTEREO)
  1000. bound = (s->mode_ext + 1) * 4;
  1001. else
  1002. bound = sblimit;
  1003. dprintf(s->avctx, "bound=%d sblimit=%d\n", bound, sblimit);
  1004. /* sanity check */
  1005. if( bound > sblimit ) bound = sblimit;
  1006. /* parse bit allocation */
  1007. j = 0;
  1008. for(i=0;i<bound;i++) {
  1009. bit_alloc_bits = alloc_table[j];
  1010. for(ch=0;ch<s->nb_channels;ch++) {
  1011. bit_alloc[ch][i] = get_bits(&s->gb, bit_alloc_bits);
  1012. }
  1013. j += 1 << bit_alloc_bits;
  1014. }
  1015. for(i=bound;i<sblimit;i++) {
  1016. bit_alloc_bits = alloc_table[j];
  1017. v = get_bits(&s->gb, bit_alloc_bits);
  1018. bit_alloc[0][i] = v;
  1019. bit_alloc[1][i] = v;
  1020. j += 1 << bit_alloc_bits;
  1021. }
  1022. #ifdef DEBUG
  1023. {
  1024. for(ch=0;ch<s->nb_channels;ch++) {
  1025. for(i=0;i<sblimit;i++)
  1026. dprintf(s->avctx, " %d", bit_alloc[ch][i]);
  1027. dprintf(s->avctx, "\n");
  1028. }
  1029. }
  1030. #endif
  1031. /* scale codes */
  1032. for(i=0;i<sblimit;i++) {
  1033. for(ch=0;ch<s->nb_channels;ch++) {
  1034. if (bit_alloc[ch][i])
  1035. scale_code[ch][i] = get_bits(&s->gb, 2);
  1036. }
  1037. }
  1038. /* scale factors */
  1039. for(i=0;i<sblimit;i++) {
  1040. for(ch=0;ch<s->nb_channels;ch++) {
  1041. if (bit_alloc[ch][i]) {
  1042. sf = scale_factors[ch][i];
  1043. switch(scale_code[ch][i]) {
  1044. default:
  1045. case 0:
  1046. sf[0] = get_bits(&s->gb, 6);
  1047. sf[1] = get_bits(&s->gb, 6);
  1048. sf[2] = get_bits(&s->gb, 6);
  1049. break;
  1050. case 2:
  1051. sf[0] = get_bits(&s->gb, 6);
  1052. sf[1] = sf[0];
  1053. sf[2] = sf[0];
  1054. break;
  1055. case 1:
  1056. sf[0] = get_bits(&s->gb, 6);
  1057. sf[2] = get_bits(&s->gb, 6);
  1058. sf[1] = sf[0];
  1059. break;
  1060. case 3:
  1061. sf[0] = get_bits(&s->gb, 6);
  1062. sf[2] = get_bits(&s->gb, 6);
  1063. sf[1] = sf[2];
  1064. break;
  1065. }
  1066. }
  1067. }
  1068. }
  1069. #ifdef DEBUG
  1070. for(ch=0;ch<s->nb_channels;ch++) {
  1071. for(i=0;i<sblimit;i++) {
  1072. if (bit_alloc[ch][i]) {
  1073. sf = scale_factors[ch][i];
  1074. dprintf(s->avctx, " %d %d %d", sf[0], sf[1], sf[2]);
  1075. } else {
  1076. dprintf(s->avctx, " -");
  1077. }
  1078. }
  1079. dprintf(s->avctx, "\n");
  1080. }
  1081. #endif
  1082. /* samples */
  1083. for(k=0;k<3;k++) {
  1084. for(l=0;l<12;l+=3) {
  1085. j = 0;
  1086. for(i=0;i<bound;i++) {
  1087. bit_alloc_bits = alloc_table[j];
  1088. for(ch=0;ch<s->nb_channels;ch++) {
  1089. b = bit_alloc[ch][i];
  1090. if (b) {
  1091. scale = scale_factors[ch][i][k];
  1092. qindex = alloc_table[j+b];
  1093. bits = ff_mpa_quant_bits[qindex];
  1094. if (bits < 0) {
  1095. /* 3 values at the same time */
  1096. v = get_bits(&s->gb, -bits);
  1097. steps = ff_mpa_quant_steps[qindex];
  1098. s->sb_samples[ch][k * 12 + l + 0][i] =
  1099. l2_unscale_group(steps, v % steps, scale);
  1100. v = v / steps;
  1101. s->sb_samples[ch][k * 12 + l + 1][i] =
  1102. l2_unscale_group(steps, v % steps, scale);
  1103. v = v / steps;
  1104. s->sb_samples[ch][k * 12 + l + 2][i] =
  1105. l2_unscale_group(steps, v, scale);
  1106. } else {
  1107. for(m=0;m<3;m++) {
  1108. v = get_bits(&s->gb, bits);
  1109. v = l1_unscale(bits - 1, v, scale);
  1110. s->sb_samples[ch][k * 12 + l + m][i] = v;
  1111. }
  1112. }
  1113. } else {
  1114. s->sb_samples[ch][k * 12 + l + 0][i] = 0;
  1115. s->sb_samples[ch][k * 12 + l + 1][i] = 0;
  1116. s->sb_samples[ch][k * 12 + l + 2][i] = 0;
  1117. }
  1118. }
  1119. /* next subband in alloc table */
  1120. j += 1 << bit_alloc_bits;
  1121. }
  1122. /* XXX: find a way to avoid this duplication of code */
  1123. for(i=bound;i<sblimit;i++) {
  1124. bit_alloc_bits = alloc_table[j];
  1125. b = bit_alloc[0][i];
  1126. if (b) {
  1127. int mant, scale0, scale1;
  1128. scale0 = scale_factors[0][i][k];
  1129. scale1 = scale_factors[1][i][k];
  1130. qindex = alloc_table[j+b];
  1131. bits = ff_mpa_quant_bits[qindex];
  1132. if (bits < 0) {
  1133. /* 3 values at the same time */
  1134. v = get_bits(&s->gb, -bits);
  1135. steps = ff_mpa_quant_steps[qindex];
  1136. mant = v % steps;
  1137. v = v / steps;
  1138. s->sb_samples[0][k * 12 + l + 0][i] =
  1139. l2_unscale_group(steps, mant, scale0);
  1140. s->sb_samples[1][k * 12 + l + 0][i] =
  1141. l2_unscale_group(steps, mant, scale1);
  1142. mant = v % steps;
  1143. v = v / steps;
  1144. s->sb_samples[0][k * 12 + l + 1][i] =
  1145. l2_unscale_group(steps, mant, scale0);
  1146. s->sb_samples[1][k * 12 + l + 1][i] =
  1147. l2_unscale_group(steps, mant, scale1);
  1148. s->sb_samples[0][k * 12 + l + 2][i] =
  1149. l2_unscale_group(steps, v, scale0);
  1150. s->sb_samples[1][k * 12 + l + 2][i] =
  1151. l2_unscale_group(steps, v, scale1);
  1152. } else {
  1153. for(m=0;m<3;m++) {
  1154. mant = get_bits(&s->gb, bits);
  1155. s->sb_samples[0][k * 12 + l + m][i] =
  1156. l1_unscale(bits - 1, mant, scale0);
  1157. s->sb_samples[1][k * 12 + l + m][i] =
  1158. l1_unscale(bits - 1, mant, scale1);
  1159. }
  1160. }
  1161. } else {
  1162. s->sb_samples[0][k * 12 + l + 0][i] = 0;
  1163. s->sb_samples[0][k * 12 + l + 1][i] = 0;
  1164. s->sb_samples[0][k * 12 + l + 2][i] = 0;
  1165. s->sb_samples[1][k * 12 + l + 0][i] = 0;
  1166. s->sb_samples[1][k * 12 + l + 1][i] = 0;
  1167. s->sb_samples[1][k * 12 + l + 2][i] = 0;
  1168. }
  1169. /* next subband in alloc table */
  1170. j += 1 << bit_alloc_bits;
  1171. }
  1172. /* fill remaining samples to zero */
  1173. for(i=sblimit;i<SBLIMIT;i++) {
  1174. for(ch=0;ch<s->nb_channels;ch++) {
  1175. s->sb_samples[ch][k * 12 + l + 0][i] = 0;
  1176. s->sb_samples[ch][k * 12 + l + 1][i] = 0;
  1177. s->sb_samples[ch][k * 12 + l + 2][i] = 0;
  1178. }
  1179. }
  1180. }
  1181. }
  1182. return 3 * 12;
  1183. }
  1184. static inline void lsf_sf_expand(int *slen,
  1185. int sf, int n1, int n2, int n3)
  1186. {
  1187. if (n3) {
  1188. slen[3] = sf % n3;
  1189. sf /= n3;
  1190. } else {
  1191. slen[3] = 0;
  1192. }
  1193. if (n2) {
  1194. slen[2] = sf % n2;
  1195. sf /= n2;
  1196. } else {
  1197. slen[2] = 0;
  1198. }
  1199. slen[1] = sf % n1;
  1200. sf /= n1;
  1201. slen[0] = sf;
  1202. }
  1203. static void exponents_from_scale_factors(MPADecodeContext *s,
  1204. GranuleDef *g,
  1205. int16_t *exponents)
  1206. {
  1207. const uint8_t *bstab, *pretab;
  1208. int len, i, j, k, l, v0, shift, gain, gains[3];
  1209. int16_t *exp_ptr;
  1210. exp_ptr = exponents;
  1211. gain = g->global_gain - 210;
  1212. shift = g->scalefac_scale + 1;
  1213. bstab = band_size_long[s->sample_rate_index];
  1214. pretab = mpa_pretab[g->preflag];
  1215. for(i=0;i<g->long_end;i++) {
  1216. v0 = gain - ((g->scale_factors[i] + pretab[i]) << shift) + 400;
  1217. len = bstab[i];
  1218. for(j=len;j>0;j--)
  1219. *exp_ptr++ = v0;
  1220. }
  1221. if (g->short_start < 13) {
  1222. bstab = band_size_short[s->sample_rate_index];
  1223. gains[0] = gain - (g->subblock_gain[0] << 3);
  1224. gains[1] = gain - (g->subblock_gain[1] << 3);
  1225. gains[2] = gain - (g->subblock_gain[2] << 3);
  1226. k = g->long_end;
  1227. for(i=g->short_start;i<13;i++) {
  1228. len = bstab[i];
  1229. for(l=0;l<3;l++) {
  1230. v0 = gains[l] - (g->scale_factors[k++] << shift) + 400;
  1231. for(j=len;j>0;j--)
  1232. *exp_ptr++ = v0;
  1233. }
  1234. }
  1235. }
  1236. }
  1237. /* handle n = 0 too */
  1238. static inline int get_bitsz(GetBitContext *s, int n)
  1239. {
  1240. if (n == 0)
  1241. return 0;
  1242. else
  1243. return get_bits(s, n);
  1244. }
  1245. static void switch_buffer(MPADecodeContext *s, int *pos, int *end_pos, int *end_pos2){
  1246. if(s->in_gb.buffer && *pos >= s->gb.size_in_bits){
  1247. s->gb= s->in_gb;
  1248. s->in_gb.buffer=NULL;
  1249. assert((get_bits_count(&s->gb) & 7) == 0);
  1250. skip_bits_long(&s->gb, *pos - *end_pos);
  1251. *end_pos2=
  1252. *end_pos= *end_pos2 + get_bits_count(&s->gb) - *pos;
  1253. *pos= get_bits_count(&s->gb);
  1254. }
  1255. }
  1256. static int huffman_decode(MPADecodeContext *s, GranuleDef *g,
  1257. int16_t *exponents, int end_pos2)
  1258. {
  1259. int s_index;
  1260. int i;
  1261. int last_pos, bits_left;
  1262. VLC *vlc;
  1263. int end_pos= FFMIN(end_pos2, s->gb.size_in_bits);
  1264. /* low frequencies (called big values) */
  1265. s_index = 0;
  1266. for(i=0;i<3;i++) {
  1267. int j, k, l, linbits;
  1268. j = g->region_size[i];
  1269. if (j == 0)
  1270. continue;
  1271. /* select vlc table */
  1272. k = g->table_select[i];
  1273. l = mpa_huff_data[k][0];
  1274. linbits = mpa_huff_data[k][1];
  1275. vlc = &huff_vlc[l];
  1276. if(!l){
  1277. memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid)*2*j);
  1278. s_index += 2*j;
  1279. continue;
  1280. }
  1281. /* read huffcode and compute each couple */
  1282. for(;j>0;j--) {
  1283. int exponent, x, y, v;
  1284. int pos= get_bits_count(&s->gb);
  1285. if (pos >= end_pos){
  1286. // av_log(NULL, AV_LOG_ERROR, "pos: %d %d %d %d\n", pos, end_pos, end_pos2, s_index);
  1287. switch_buffer(s, &pos, &end_pos, &end_pos2);
  1288. // av_log(NULL, AV_LOG_ERROR, "new pos: %d %d\n", pos, end_pos);
  1289. if(pos >= end_pos)
  1290. break;
  1291. }
  1292. y = get_vlc2(&s->gb, vlc->table, 7, 3);
  1293. if(!y){
  1294. g->sb_hybrid[s_index ] =
  1295. g->sb_hybrid[s_index+1] = 0;
  1296. s_index += 2;
  1297. continue;
  1298. }
  1299. exponent= exponents[s_index];
  1300. dprintf(s->avctx, "region=%d n=%d x=%d y=%d exp=%d\n",
  1301. i, g->region_size[i] - j, x, y, exponent);
  1302. if(y&16){
  1303. x = y >> 5;
  1304. y = y & 0x0f;
  1305. if (x < 15){
  1306. v = expval_table[ exponent ][ x ];
  1307. // v = expval_table[ (exponent&3) ][ x ] >> FFMIN(0 - (exponent>>2), 31);
  1308. }else{
  1309. x += get_bitsz(&s->gb, linbits);
  1310. v = l3_unscale(x, exponent);
  1311. }
  1312. if (get_bits1(&s->gb))
  1313. v = -v;
  1314. g->sb_hybrid[s_index] = v;
  1315. if (y < 15){
  1316. v = expval_table[ exponent ][ y ];
  1317. }else{
  1318. y += get_bitsz(&s->gb, linbits);
  1319. v = l3_unscale(y, exponent);
  1320. }
  1321. if (get_bits1(&s->gb))
  1322. v = -v;
  1323. g->sb_hybrid[s_index+1] = v;
  1324. }else{
  1325. x = y >> 5;
  1326. y = y & 0x0f;
  1327. x += y;
  1328. if (x < 15){
  1329. v = expval_table[ exponent ][ x ];
  1330. }else{
  1331. x += get_bitsz(&s->gb, linbits);
  1332. v = l3_unscale(x, exponent);
  1333. }
  1334. if (get_bits1(&s->gb))
  1335. v = -v;
  1336. g->sb_hybrid[s_index+!!y] = v;
  1337. g->sb_hybrid[s_index+ !y] = 0;
  1338. }
  1339. s_index+=2;
  1340. }
  1341. }
  1342. /* high frequencies */
  1343. vlc = &huff_quad_vlc[g->count1table_select];
  1344. last_pos=0;
  1345. while (s_index <= 572) {
  1346. int pos, code;
  1347. pos = get_bits_count(&s->gb);
  1348. if (pos >= end_pos) {
  1349. if (pos > end_pos2 && last_pos){
  1350. /* some encoders generate an incorrect size for this
  1351. part. We must go back into the data */
  1352. s_index -= 4;
  1353. skip_bits_long(&s->gb, last_pos - pos);
  1354. av_log(NULL, AV_LOG_INFO, "overread, skip %d enddists: %d %d\n", last_pos - pos, end_pos-pos, end_pos2-pos);
  1355. if(s->error_resilience >= FF_ER_COMPLIANT)
  1356. s_index=0;
  1357. break;
  1358. }
  1359. // av_log(NULL, AV_LOG_ERROR, "pos2: %d %d %d %d\n", pos, end_pos, end_pos2, s_index);
  1360. switch_buffer(s, &pos, &end_pos, &end_pos2);
  1361. // av_log(NULL, AV_LOG_ERROR, "new pos2: %d %d %d\n", pos, end_pos, s_index);
  1362. if(pos >= end_pos)
  1363. break;
  1364. }
  1365. last_pos= pos;
  1366. code = get_vlc2(&s->gb, vlc->table, vlc->bits, 1);
  1367. dprintf(s->avctx, "t=%d code=%d\n", g->count1table_select, code);
  1368. g->sb_hybrid[s_index+0]=
  1369. g->sb_hybrid[s_index+1]=
  1370. g->sb_hybrid[s_index+2]=
  1371. g->sb_hybrid[s_index+3]= 0;
  1372. while(code){
  1373. static const int idxtab[16]={3,3,2,2,1,1,1,1,0,0,0,0,0,0,0,0};
  1374. int v;
  1375. int pos= s_index+idxtab[code];
  1376. code ^= 8>>idxtab[code];
  1377. v = exp_table[ exponents[pos] ];
  1378. // v = exp_table[ (exponents[pos]&3) ] >> FFMIN(0 - (exponents[pos]>>2), 31);
  1379. if(get_bits1(&s->gb))
  1380. v = -v;
  1381. g->sb_hybrid[pos] = v;
  1382. }
  1383. s_index+=4;
  1384. }
  1385. /* skip extension bits */
  1386. bits_left = end_pos2 - get_bits_count(&s->gb);
  1387. //av_log(NULL, AV_LOG_ERROR, "left:%d buf:%p\n", bits_left, s->in_gb.buffer);
  1388. if (bits_left < 0/* || bits_left > 500*/) {
  1389. av_log(NULL, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
  1390. s_index=0;
  1391. }else if(bits_left > 0 && s->error_resilience >= FF_ER_AGGRESSIVE){
  1392. av_log(NULL, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
  1393. s_index=0;
  1394. }
  1395. memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid)*(576 - s_index));
  1396. skip_bits_long(&s->gb, bits_left);
  1397. i= get_bits_count(&s->gb);
  1398. switch_buffer(s, &i, &end_pos, &end_pos2);
  1399. return 0;
  1400. }
  1401. /* Reorder short blocks from bitstream order to interleaved order. It
  1402. would be faster to do it in parsing, but the code would be far more
  1403. complicated */
  1404. static void reorder_block(MPADecodeContext *s, GranuleDef *g)
  1405. {
  1406. int i, j, len;
  1407. int32_t *ptr, *dst, *ptr1;
  1408. int32_t tmp[576];
  1409. if (g->block_type != 2)
  1410. return;
  1411. if (g->switch_point) {
  1412. if (s->sample_rate_index != 8) {
  1413. ptr = g->sb_hybrid + 36;
  1414. } else {
  1415. ptr = g->sb_hybrid + 48;
  1416. }
  1417. } else {
  1418. ptr = g->sb_hybrid;
  1419. }
  1420. for(i=g->short_start;i<13;i++) {
  1421. len = band_size_short[s->sample_rate_index][i];
  1422. ptr1 = ptr;
  1423. dst = tmp;
  1424. for(j=len;j>0;j--) {
  1425. *dst++ = ptr[0*len];
  1426. *dst++ = ptr[1*len];
  1427. *dst++ = ptr[2*len];
  1428. ptr++;
  1429. }
  1430. ptr+=2*len;
  1431. memcpy(ptr1, tmp, len * 3 * sizeof(*ptr1));
  1432. }
  1433. }
  1434. #define ISQRT2 FIXR(0.70710678118654752440)
  1435. static void compute_stereo(MPADecodeContext *s,
  1436. GranuleDef *g0, GranuleDef *g1)
  1437. {
  1438. int i, j, k, l;
  1439. int32_t v1, v2;
  1440. int sf_max, tmp0, tmp1, sf, len, non_zero_found;
  1441. int32_t (*is_tab)[16];
  1442. int32_t *tab0, *tab1;
  1443. int non_zero_found_short[3];
  1444. /* intensity stereo */
  1445. if (s->mode_ext & MODE_EXT_I_STEREO) {
  1446. if (!s->lsf) {
  1447. is_tab = is_table;
  1448. sf_max = 7;
  1449. } else {
  1450. is_tab = is_table_lsf[g1->scalefac_compress & 1];
  1451. sf_max = 16;
  1452. }
  1453. tab0 = g0->sb_hybrid + 576;
  1454. tab1 = g1->sb_hybrid + 576;
  1455. non_zero_found_short[0] = 0;
  1456. non_zero_found_short[1] = 0;
  1457. non_zero_found_short[2] = 0;
  1458. k = (13 - g1->short_start) * 3 + g1->long_end - 3;
  1459. for(i = 12;i >= g1->short_start;i--) {
  1460. /* for last band, use previous scale factor */
  1461. if (i != 11)
  1462. k -= 3;
  1463. len = band_size_short[s->sample_rate_index][i];
  1464. for(l=2;l>=0;l--) {
  1465. tab0 -= len;
  1466. tab1 -= len;
  1467. if (!non_zero_found_short[l]) {
  1468. /* test if non zero band. if so, stop doing i-stereo */
  1469. for(j=0;j<len;j++) {
  1470. if (tab1[j] != 0) {
  1471. non_zero_found_short[l] = 1;
  1472. goto found1;
  1473. }
  1474. }
  1475. sf = g1->scale_factors[k + l];
  1476. if (sf >= sf_max)
  1477. goto found1;
  1478. v1 = is_tab[0][sf];
  1479. v2 = is_tab[1][sf];
  1480. for(j=0;j<len;j++) {
  1481. tmp0 = tab0[j];
  1482. tab0[j] = MULL(tmp0, v1);
  1483. tab1[j] = MULL(tmp0, v2);
  1484. }
  1485. } else {
  1486. found1:
  1487. if (s->mode_ext & MODE_EXT_MS_STEREO) {
  1488. /* lower part of the spectrum : do ms stereo
  1489. if enabled */
  1490. for(j=0;j<len;j++) {
  1491. tmp0 = tab0[j];
  1492. tmp1 = tab1[j];
  1493. tab0[j] = MULL(tmp0 + tmp1, ISQRT2);
  1494. tab1[j] = MULL(tmp0 - tmp1, ISQRT2);
  1495. }
  1496. }
  1497. }
  1498. }
  1499. }
  1500. non_zero_found = non_zero_found_short[0] |
  1501. non_zero_found_short[1] |
  1502. non_zero_found_short[2];
  1503. for(i = g1->long_end - 1;i >= 0;i--) {
  1504. len = band_size_long[s->sample_rate_index][i];
  1505. tab0 -= len;
  1506. tab1 -= len;
  1507. /* test if non zero band. if so, stop doing i-stereo */
  1508. if (!non_zero_found) {
  1509. for(j=0;j<len;j++) {
  1510. if (tab1[j] != 0) {
  1511. non_zero_found = 1;
  1512. goto found2;
  1513. }
  1514. }
  1515. /* for last band, use previous scale factor */
  1516. k = (i == 21) ? 20 : i;
  1517. sf = g1->scale_factors[k];
  1518. if (sf >= sf_max)
  1519. goto found2;
  1520. v1 = is_tab[0][sf];
  1521. v2 = is_tab[1][sf];
  1522. for(j=0;j<len;j++) {
  1523. tmp0 = tab0[j];
  1524. tab0[j] = MULL(tmp0, v1);
  1525. tab1[j] = MULL(tmp0, v2);
  1526. }
  1527. } else {
  1528. found2:
  1529. if (s->mode_ext & MODE_EXT_MS_STEREO) {
  1530. /* lower part of the spectrum : do ms stereo
  1531. if enabled */
  1532. for(j=0;j<len;j++) {
  1533. tmp0 = tab0[j];
  1534. tmp1 = tab1[j];
  1535. tab0[j] = MULL(tmp0 + tmp1, ISQRT2);
  1536. tab1[j] = MULL(tmp0 - tmp1, ISQRT2);
  1537. }
  1538. }
  1539. }
  1540. }
  1541. } else if (s->mode_ext & MODE_EXT_MS_STEREO) {
  1542. /* ms stereo ONLY */
  1543. /* NOTE: the 1/sqrt(2) normalization factor is included in the
  1544. global gain */
  1545. tab0 = g0->sb_hybrid;
  1546. tab1 = g1->sb_hybrid;
  1547. for(i=0;i<576;i++) {
  1548. tmp0 = tab0[i];
  1549. tmp1 = tab1[i];
  1550. tab0[i] = tmp0 + tmp1;
  1551. tab1[i] = tmp0 - tmp1;
  1552. }
  1553. }
  1554. }
  1555. static void compute_antialias_integer(MPADecodeContext *s,
  1556. GranuleDef *g)
  1557. {
  1558. int32_t *ptr, *csa;
  1559. int n, i;
  1560. /* we antialias only "long" bands */
  1561. if (g->block_type == 2) {
  1562. if (!g->switch_point)
  1563. return;
  1564. /* XXX: check this for 8000Hz case */
  1565. n = 1;
  1566. } else {
  1567. n = SBLIMIT - 1;
  1568. }
  1569. ptr = g->sb_hybrid + 18;
  1570. for(i = n;i > 0;i--) {
  1571. int tmp0, tmp1, tmp2;
  1572. csa = &csa_table[0][0];
  1573. #define INT_AA(j) \
  1574. tmp0 = ptr[-1-j];\
  1575. tmp1 = ptr[ j];\
  1576. tmp2= MULH(tmp0 + tmp1, csa[0+4*j]);\
  1577. ptr[-1-j] = 4*(tmp2 - MULH(tmp1, csa[2+4*j]));\
  1578. ptr[ j] = 4*(tmp2 + MULH(tmp0, csa[3+4*j]));
  1579. INT_AA(0)
  1580. INT_AA(1)
  1581. INT_AA(2)
  1582. INT_AA(3)
  1583. INT_AA(4)
  1584. INT_AA(5)
  1585. INT_AA(6)
  1586. INT_AA(7)
  1587. ptr += 18;
  1588. }
  1589. }
  1590. static void compute_antialias_float(MPADecodeContext *s,
  1591. GranuleDef *g)
  1592. {
  1593. int32_t *ptr;
  1594. int n, i;
  1595. /* we antialias only "long" bands */
  1596. if (g->block_type == 2) {
  1597. if (!g->switch_point)
  1598. return;
  1599. /* XXX: check this for 8000Hz case */
  1600. n = 1;
  1601. } else {
  1602. n = SBLIMIT - 1;
  1603. }
  1604. ptr = g->sb_hybrid + 18;
  1605. for(i = n;i > 0;i--) {
  1606. float tmp0, tmp1;
  1607. float *csa = &csa_table_float[0][0];
  1608. #define FLOAT_AA(j)\
  1609. tmp0= ptr[-1-j];\
  1610. tmp1= ptr[ j];\
  1611. ptr[-1-j] = lrintf(tmp0 * csa[0+4*j] - tmp1 * csa[1+4*j]);\
  1612. ptr[ j] = lrintf(tmp0 * csa[1+4*j] + tmp1 * csa[0+4*j]);
  1613. FLOAT_AA(0)
  1614. FLOAT_AA(1)
  1615. FLOAT_AA(2)
  1616. FLOAT_AA(3)
  1617. FLOAT_AA(4)
  1618. FLOAT_AA(5)
  1619. FLOAT_AA(6)
  1620. FLOAT_AA(7)
  1621. ptr += 18;
  1622. }
  1623. }
  1624. static void compute_imdct(MPADecodeContext *s,
  1625. GranuleDef *g,
  1626. int32_t *sb_samples,
  1627. int32_t *mdct_buf)
  1628. {
  1629. int32_t *ptr, *win, *win1, *buf, *out_ptr, *ptr1;
  1630. int32_t out2[12];
  1631. int i, j, mdct_long_end, v, sblimit;
  1632. /* find last non zero block */
  1633. ptr = g->sb_hybrid + 576;
  1634. ptr1 = g->sb_hybrid + 2 * 18;
  1635. while (ptr >= ptr1) {
  1636. ptr -= 6;
  1637. v = ptr[0] | ptr[1] | ptr[2] | ptr[3] | ptr[4] | ptr[5];
  1638. if (v != 0)
  1639. break;
  1640. }
  1641. sblimit = ((ptr - g->sb_hybrid) / 18) + 1;
  1642. if (g->block_type == 2) {
  1643. /* XXX: check for 8000 Hz */
  1644. if (g->switch_point)
  1645. mdct_long_end = 2;
  1646. else
  1647. mdct_long_end = 0;
  1648. } else {
  1649. mdct_long_end = sblimit;
  1650. }
  1651. buf = mdct_buf;
  1652. ptr = g->sb_hybrid;
  1653. for(j=0;j<mdct_long_end;j++) {
  1654. /* apply window & overlap with previous buffer */
  1655. out_ptr = sb_samples + j;
  1656. /* select window */
  1657. if (g->switch_point && j < 2)
  1658. win1 = mdct_win[0];
  1659. else
  1660. win1 = mdct_win[g->block_type];
  1661. /* select frequency inversion */
  1662. win = win1 + ((4 * 36) & -(j & 1));
  1663. imdct36(out_ptr, buf, ptr, win);
  1664. out_ptr += 18*SBLIMIT;
  1665. ptr += 18;
  1666. buf += 18;
  1667. }
  1668. for(j=mdct_long_end;j<sblimit;j++) {
  1669. /* select frequency inversion */
  1670. win = mdct_win[2] + ((4 * 36) & -(j & 1));
  1671. out_ptr = sb_samples + j;
  1672. for(i=0; i<6; i++){
  1673. *out_ptr = buf[i];
  1674. out_ptr += SBLIMIT;
  1675. }
  1676. imdct12(out2, ptr + 0);
  1677. for(i=0;i<6;i++) {
  1678. *out_ptr = MULH(out2[i], win[i]) + buf[i + 6*1];
  1679. buf[i + 6*2] = MULH(out2[i + 6], win[i + 6]);
  1680. out_ptr += SBLIMIT;
  1681. }
  1682. imdct12(out2, ptr + 1);
  1683. for(i=0;i<6;i++) {
  1684. *out_ptr = MULH(out2[i], win[i]) + buf[i + 6*2];
  1685. buf[i + 6*0] = MULH(out2[i + 6], win[i + 6]);
  1686. out_ptr += SBLIMIT;
  1687. }
  1688. imdct12(out2, ptr + 2);
  1689. for(i=0;i<6;i++) {
  1690. buf[i + 6*0] = MULH(out2[i], win[i]) + buf[i + 6*0];
  1691. buf[i + 6*1] = MULH(out2[i + 6], win[i + 6]);
  1692. buf[i + 6*2] = 0;
  1693. }
  1694. ptr += 18;
  1695. buf += 18;
  1696. }
  1697. /* zero bands */
  1698. for(j=sblimit;j<SBLIMIT;j++) {
  1699. /* overlap */
  1700. out_ptr = sb_samples + j;
  1701. for(i=0;i<18;i++) {
  1702. *out_ptr = buf[i];
  1703. buf[i] = 0;
  1704. out_ptr += SBLIMIT;
  1705. }
  1706. buf += 18;
  1707. }
  1708. }
  1709. #if defined(DEBUG)
  1710. void sample_dump(int fnum, int32_t *tab, int n)
  1711. {
  1712. static FILE *files[16], *f;
  1713. char buf[512];
  1714. int i;
  1715. int32_t v;
  1716. f = files[fnum];
  1717. if (!f) {
  1718. snprintf(buf, sizeof(buf), "/tmp/out%d.%s.pcm",
  1719. fnum,
  1720. #ifdef USE_HIGHPRECISION
  1721. "hp"
  1722. #else
  1723. "lp"
  1724. #endif
  1725. );
  1726. f = fopen(buf, "w");
  1727. if (!f)
  1728. return;
  1729. files[fnum] = f;
  1730. }
  1731. if (fnum == 0) {
  1732. static int pos = 0;
  1733. av_log(NULL, AV_LOG_DEBUG, "pos=%d\n", pos);
  1734. for(i=0;i<n;i++) {
  1735. av_log(NULL, AV_LOG_DEBUG, " %0.4f", (double)tab[i] / FRAC_ONE);
  1736. if ((i % 18) == 17)
  1737. av_log(NULL, AV_LOG_DEBUG, "\n");
  1738. }
  1739. pos += n;
  1740. }
  1741. for(i=0;i<n;i++) {
  1742. /* normalize to 23 frac bits */
  1743. v = tab[i] << (23 - FRAC_BITS);
  1744. fwrite(&v, 1, sizeof(int32_t), f);
  1745. }
  1746. }
  1747. #endif
  1748. /* main layer3 decoding function */
  1749. static int mp_decode_layer3(MPADecodeContext *s)
  1750. {
  1751. int nb_granules, main_data_begin, private_bits;
  1752. int gr, ch, blocksplit_flag, i, j, k, n, bits_pos;
  1753. GranuleDef granules[2][2], *g;
  1754. int16_t exponents[576];
  1755. /* read side info */
  1756. if (s->lsf) {
  1757. main_data_begin = get_bits(&s->gb, 8);
  1758. private_bits = get_bits(&s->gb, s->nb_channels);
  1759. nb_granules = 1;
  1760. } else {
  1761. main_data_begin = get_bits(&s->gb, 9);
  1762. if (s->nb_channels == 2)
  1763. private_bits = get_bits(&s->gb, 3);
  1764. else
  1765. private_bits = get_bits(&s->gb, 5);
  1766. nb_granules = 2;
  1767. for(ch=0;ch<s->nb_channels;ch++) {
  1768. granules[ch][0].scfsi = 0; /* all scale factors are transmitted */
  1769. granules[ch][1].scfsi = get_bits(&s->gb, 4);
  1770. }
  1771. }
  1772. for(gr=0;gr<nb_granules;gr++) {
  1773. for(ch=0;ch<s->nb_channels;ch++) {
  1774. dprintf(s->avctx, "gr=%d ch=%d: side_info\n", gr, ch);
  1775. g = &granules[ch][gr];
  1776. g->part2_3_length = get_bits(&s->gb, 12);
  1777. g->big_values = get_bits(&s->gb, 9);
  1778. if(g->big_values > 288){
  1779. av_log(s->avctx, AV_LOG_ERROR, "big_values too big\n");
  1780. return -1;
  1781. }
  1782. g->global_gain = get_bits(&s->gb, 8);
  1783. /* if MS stereo only is selected, we precompute the
  1784. 1/sqrt(2) renormalization factor */
  1785. if ((s->mode_ext & (MODE_EXT_MS_STEREO | MODE_EXT_I_STEREO)) ==
  1786. MODE_EXT_MS_STEREO)
  1787. g->global_gain -= 2;
  1788. if (s->lsf)
  1789. g->scalefac_compress = get_bits(&s->gb, 9);
  1790. else
  1791. g->scalefac_compress = get_bits(&s->gb, 4);
  1792. blocksplit_flag = get_bits1(&s->gb);
  1793. if (blocksplit_flag) {
  1794. g->block_type = get_bits(&s->gb, 2);
  1795. if (g->block_type == 0){
  1796. av_log(NULL, AV_LOG_ERROR, "invalid block type\n");
  1797. return -1;
  1798. }
  1799. g->switch_point = get_bits1(&s->gb);
  1800. for(i=0;i<2;i++)
  1801. g->table_select[i] = get_bits(&s->gb, 5);
  1802. for(i=0;i<3;i++)
  1803. g->subblock_gain[i] = get_bits(&s->gb, 3);
  1804. /* compute huffman coded region sizes */
  1805. if (g->block_type == 2)
  1806. g->region_size[0] = (36 / 2);
  1807. else {
  1808. if (s->sample_rate_index <= 2)
  1809. g->region_size[0] = (36 / 2);
  1810. else if (s->sample_rate_index != 8)
  1811. g->region_size[0] = (54 / 2);
  1812. else
  1813. g->region_size[0] = (108 / 2);
  1814. }
  1815. g->region_size[1] = (576 / 2);
  1816. } else {
  1817. int region_address1, region_address2, l;
  1818. g->block_type = 0;
  1819. g->switch_point = 0;
  1820. for(i=0;i<3;i++)
  1821. g->table_select[i] = get_bits(&s->gb, 5);
  1822. /* compute huffman coded region sizes */
  1823. region_address1 = get_bits(&s->gb, 4);
  1824. region_address2 = get_bits(&s->gb, 3);
  1825. dprintf(s->avctx, "region1=%d region2=%d\n",
  1826. region_address1, region_address2);
  1827. g->region_size[0] =
  1828. band_index_long[s->sample_rate_index][region_address1 + 1] >> 1;
  1829. l = region_address1 + region_address2 + 2;
  1830. /* should not overflow */
  1831. if (l > 22)
  1832. l = 22;
  1833. g->region_size[1] =
  1834. band_index_long[s->sample_rate_index][l] >> 1;
  1835. }
  1836. /* convert region offsets to region sizes and truncate
  1837. size to big_values */
  1838. g->region_size[2] = (576 / 2);
  1839. j = 0;
  1840. for(i=0;i<3;i++) {
  1841. k = FFMIN(g->region_size[i], g->big_values);
  1842. g->region_size[i] = k - j;
  1843. j = k;
  1844. }
  1845. /* compute band indexes */
  1846. if (g->block_type == 2) {
  1847. if (g->switch_point) {
  1848. /* if switched mode, we handle the 36 first samples as
  1849. long blocks. For 8000Hz, we handle the 48 first
  1850. exponents as long blocks (XXX: check this!) */
  1851. if (s->sample_rate_index <= 2)
  1852. g->long_end = 8;
  1853. else if (s->sample_rate_index != 8)
  1854. g->long_end = 6;
  1855. else
  1856. g->long_end = 4; /* 8000 Hz */
  1857. g->short_start = 2 + (s->sample_rate_index != 8);
  1858. } else {
  1859. g->long_end = 0;
  1860. g->short_start = 0;
  1861. }
  1862. } else {
  1863. g->short_start = 13;
  1864. g->long_end = 22;
  1865. }
  1866. g->preflag = 0;
  1867. if (!s->lsf)
  1868. g->preflag = get_bits1(&s->gb);
  1869. g->scalefac_scale = get_bits1(&s->gb);
  1870. g->count1table_select = get_bits1(&s->gb);
  1871. dprintf(s->avctx, "block_type=%d switch_point=%d\n",
  1872. g->block_type, g->switch_point);
  1873. }
  1874. }
  1875. if (!s->adu_mode) {
  1876. const uint8_t *ptr = s->gb.buffer + (get_bits_count(&s->gb)>>3);
  1877. assert((get_bits_count(&s->gb) & 7) == 0);
  1878. /* now we get bits from the main_data_begin offset */
  1879. dprintf(s->avctx, "seekback: %d\n", main_data_begin);
  1880. //av_log(NULL, AV_LOG_ERROR, "backstep:%d, lastbuf:%d\n", main_data_begin, s->last_buf_size);
  1881. memcpy(s->last_buf + s->last_buf_size, ptr, EXTRABYTES);
  1882. s->in_gb= s->gb;
  1883. init_get_bits(&s->gb, s->last_buf, s->last_buf_size*8);
  1884. skip_bits_long(&s->gb, 8*(s->last_buf_size - main_data_begin));
  1885. }
  1886. for(gr=0;gr<nb_granules;gr++) {
  1887. for(ch=0;ch<s->nb_channels;ch++) {
  1888. g = &granules[ch][gr];
  1889. if(get_bits_count(&s->gb)<0){
  1890. av_log(NULL, AV_LOG_ERROR, "mdb:%d, lastbuf:%d skipping granule %d\n",
  1891. main_data_begin, s->last_buf_size, gr);
  1892. skip_bits_long(&s->gb, g->part2_3_length);
  1893. memset(g->sb_hybrid, 0, sizeof(g->sb_hybrid));
  1894. if(get_bits_count(&s->gb) >= s->gb.size_in_bits && s->in_gb.buffer){
  1895. skip_bits_long(&s->in_gb, get_bits_count(&s->gb) - s->gb.size_in_bits);
  1896. s->gb= s->in_gb;
  1897. s->in_gb.buffer=NULL;
  1898. }
  1899. continue;
  1900. }
  1901. bits_pos = get_bits_count(&s->gb);
  1902. if (!s->lsf) {
  1903. uint8_t *sc;
  1904. int slen, slen1, slen2;
  1905. /* MPEG1 scale factors */
  1906. slen1 = slen_table[0][g->scalefac_compress];
  1907. slen2 = slen_table[1][g->scalefac_compress];
  1908. dprintf(s->avctx, "slen1=%d slen2=%d\n", slen1, slen2);
  1909. if (g->block_type == 2) {
  1910. n = g->switch_point ? 17 : 18;
  1911. j = 0;
  1912. if(slen1){
  1913. for(i=0;i<n;i++)
  1914. g->scale_factors[j++] = get_bits(&s->gb, slen1);
  1915. }else{
  1916. for(i=0;i<n;i++)
  1917. g->scale_factors[j++] = 0;
  1918. }
  1919. if(slen2){
  1920. for(i=0;i<18;i++)
  1921. g->scale_factors[j++] = get_bits(&s->gb, slen2);
  1922. for(i=0;i<3;i++)
  1923. g->scale_factors[j++] = 0;
  1924. }else{
  1925. for(i=0;i<21;i++)
  1926. g->scale_factors[j++] = 0;
  1927. }
  1928. } else {
  1929. sc = granules[ch][0].scale_factors;
  1930. j = 0;
  1931. for(k=0;k<4;k++) {
  1932. n = (k == 0 ? 6 : 5);
  1933. if ((g->scfsi & (0x8 >> k)) == 0) {
  1934. slen = (k < 2) ? slen1 : slen2;
  1935. if(slen){
  1936. for(i=0;i<n;i++)
  1937. g->scale_factors[j++] = get_bits(&s->gb, slen);
  1938. }else{
  1939. for(i=0;i<n;i++)
  1940. g->scale_factors[j++] = 0;
  1941. }
  1942. } else {
  1943. /* simply copy from last granule */
  1944. for(i=0;i<n;i++) {
  1945. g->scale_factors[j] = sc[j];
  1946. j++;
  1947. }
  1948. }
  1949. }
  1950. g->scale_factors[j++] = 0;
  1951. }
  1952. #if defined(DEBUG)
  1953. {
  1954. dprintf(s->avctx, "scfsi=%x gr=%d ch=%d scale_factors:\n",
  1955. g->scfsi, gr, ch);
  1956. for(i=0;i<j;i++)
  1957. dprintf(s->avctx, " %d", g->scale_factors[i]);
  1958. dprintf(s->avctx, "\n");
  1959. }
  1960. #endif
  1961. } else {
  1962. int tindex, tindex2, slen[4], sl, sf;
  1963. /* LSF scale factors */
  1964. if (g->block_type == 2) {
  1965. tindex = g->switch_point ? 2 : 1;
  1966. } else {
  1967. tindex = 0;
  1968. }
  1969. sf = g->scalefac_compress;
  1970. if ((s->mode_ext & MODE_EXT_I_STEREO) && ch == 1) {
  1971. /* intensity stereo case */
  1972. sf >>= 1;
  1973. if (sf < 180) {
  1974. lsf_sf_expand(slen, sf, 6, 6, 0);
  1975. tindex2 = 3;
  1976. } else if (sf < 244) {
  1977. lsf_sf_expand(slen, sf - 180, 4, 4, 0);
  1978. tindex2 = 4;
  1979. } else {
  1980. lsf_sf_expand(slen, sf - 244, 3, 0, 0);
  1981. tindex2 = 5;
  1982. }
  1983. } else {
  1984. /* normal case */
  1985. if (sf < 400) {
  1986. lsf_sf_expand(slen, sf, 5, 4, 4);
  1987. tindex2 = 0;
  1988. } else if (sf < 500) {
  1989. lsf_sf_expand(slen, sf - 400, 5, 4, 0);
  1990. tindex2 = 1;
  1991. } else {
  1992. lsf_sf_expand(slen, sf - 500, 3, 0, 0);
  1993. tindex2 = 2;
  1994. g->preflag = 1;
  1995. }
  1996. }
  1997. j = 0;
  1998. for(k=0;k<4;k++) {
  1999. n = lsf_nsf_table[tindex2][tindex][k];
  2000. sl = slen[k];
  2001. if(sl){
  2002. for(i=0;i<n;i++)
  2003. g->scale_factors[j++] = get_bits(&s->gb, sl);
  2004. }else{
  2005. for(i=0;i<n;i++)
  2006. g->scale_factors[j++] = 0;
  2007. }
  2008. }
  2009. /* XXX: should compute exact size */
  2010. for(;j<40;j++)
  2011. g->scale_factors[j] = 0;
  2012. #if defined(DEBUG)
  2013. {
  2014. dprintf(s->avctx, "gr=%d ch=%d scale_factors:\n",
  2015. gr, ch);
  2016. for(i=0;i<40;i++)
  2017. dprintf(s->avctx, " %d", g->scale_factors[i]);
  2018. dprintf(s->avctx, "\n");
  2019. }
  2020. #endif
  2021. }
  2022. exponents_from_scale_factors(s, g, exponents);
  2023. /* read Huffman coded residue */
  2024. huffman_decode(s, g, exponents, bits_pos + g->part2_3_length);
  2025. #if defined(DEBUG)
  2026. sample_dump(0, g->sb_hybrid, 576);
  2027. #endif
  2028. } /* ch */
  2029. if (s->nb_channels == 2)
  2030. compute_stereo(s, &granules[0][gr], &granules[1][gr]);
  2031. for(ch=0;ch<s->nb_channels;ch++) {
  2032. g = &granules[ch][gr];
  2033. reorder_block(s, g);
  2034. #if defined(DEBUG)
  2035. sample_dump(0, g->sb_hybrid, 576);
  2036. #endif
  2037. s->compute_antialias(s, g);
  2038. #if defined(DEBUG)
  2039. sample_dump(1, g->sb_hybrid, 576);
  2040. #endif
  2041. compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
  2042. #if defined(DEBUG)
  2043. sample_dump(2, &s->sb_samples[ch][18 * gr][0], 576);
  2044. #endif
  2045. }
  2046. } /* gr */
  2047. if(get_bits_count(&s->gb)<0)
  2048. skip_bits_long(&s->gb, -get_bits_count(&s->gb));
  2049. return nb_granules * 18;
  2050. }
  2051. static int mp_decode_frame(MPADecodeContext *s,
  2052. OUT_INT *samples, const uint8_t *buf, int buf_size)
  2053. {
  2054. int i, nb_frames, ch;
  2055. OUT_INT *samples_ptr;
  2056. init_get_bits(&s->gb, buf + HEADER_SIZE, (buf_size - HEADER_SIZE)*8);
  2057. /* skip error protection field */
  2058. if (s->error_protection)
  2059. skip_bits(&s->gb, 16);
  2060. dprintf(s->avctx, "frame %d:\n", s->frame_count);
  2061. switch(s->layer) {
  2062. case 1:
  2063. nb_frames = mp_decode_layer1(s);
  2064. break;
  2065. case 2:
  2066. nb_frames = mp_decode_layer2(s);
  2067. break;
  2068. case 3:
  2069. default:
  2070. nb_frames = mp_decode_layer3(s);
  2071. s->last_buf_size=0;
  2072. if(s->in_gb.buffer){
  2073. align_get_bits(&s->gb);
  2074. i= (s->gb.size_in_bits - get_bits_count(&s->gb))>>3;
  2075. if(i >= 0 && i <= BACKSTEP_SIZE){
  2076. memmove(s->last_buf, s->gb.buffer + (get_bits_count(&s->gb)>>3), i);
  2077. s->last_buf_size=i;
  2078. }else
  2079. av_log(NULL, AV_LOG_ERROR, "invalid old backstep %d\n", i);
  2080. s->gb= s->in_gb;
  2081. s->in_gb.buffer= NULL;
  2082. }
  2083. align_get_bits(&s->gb);
  2084. assert((get_bits_count(&s->gb) & 7) == 0);
  2085. i= (s->gb.size_in_bits - get_bits_count(&s->gb))>>3;
  2086. if(i<0 || i > BACKSTEP_SIZE || nb_frames<0){
  2087. av_log(NULL, AV_LOG_ERROR, "invalid new backstep %d\n", i);
  2088. i= FFMIN(BACKSTEP_SIZE, buf_size - HEADER_SIZE);
  2089. }
  2090. assert(i <= buf_size - HEADER_SIZE && i>= 0);
  2091. memcpy(s->last_buf + s->last_buf_size, s->gb.buffer + buf_size - HEADER_SIZE - i, i);
  2092. s->last_buf_size += i;
  2093. break;
  2094. }
  2095. #if defined(DEBUG)
  2096. for(i=0;i<nb_frames;i++) {
  2097. for(ch=0;ch<s->nb_channels;ch++) {
  2098. int j;
  2099. dprintf(s->avctx, "%d-%d:", i, ch);
  2100. for(j=0;j<SBLIMIT;j++)
  2101. dprintf(s->avctx, " %0.6f", (double)s->sb_samples[ch][i][j] / FRAC_ONE);
  2102. dprintf(s->avctx, "\n");
  2103. }
  2104. }
  2105. #endif
  2106. /* apply the synthesis filter */
  2107. for(ch=0;ch<s->nb_channels;ch++) {
  2108. samples_ptr = samples + ch;
  2109. for(i=0;i<nb_frames;i++) {
  2110. ff_mpa_synth_filter(s->synth_buf[ch], &(s->synth_buf_offset[ch]),
  2111. window, &s->dither_state,
  2112. samples_ptr, s->nb_channels,
  2113. s->sb_samples[ch][i]);
  2114. samples_ptr += 32 * s->nb_channels;
  2115. }
  2116. }
  2117. #ifdef DEBUG
  2118. s->frame_count++;
  2119. #endif
  2120. return nb_frames * 32 * sizeof(OUT_INT) * s->nb_channels;
  2121. }
  2122. static int decode_frame(AVCodecContext * avctx,
  2123. void *data, int *data_size,
  2124. uint8_t * buf, int buf_size)
  2125. {
  2126. MPADecodeContext *s = avctx->priv_data;
  2127. uint32_t header;
  2128. int out_size;
  2129. OUT_INT *out_samples = data;
  2130. retry:
  2131. if(buf_size < HEADER_SIZE)
  2132. return -1;
  2133. header = AV_RB32(buf);
  2134. if(ff_mpa_check_header(header) < 0){
  2135. buf++;
  2136. // buf_size--;
  2137. av_log(avctx, AV_LOG_ERROR, "Header missing skipping one byte.\n");
  2138. goto retry;
  2139. }
  2140. if (ff_mpegaudio_decode_header(s, header) == 1) {
  2141. /* free format: prepare to compute frame size */
  2142. s->frame_size = -1;
  2143. return -1;
  2144. }
  2145. /* update codec info */
  2146. avctx->channels = s->nb_channels;
  2147. avctx->bit_rate = s->bit_rate;
  2148. avctx->sub_id = s->layer;
  2149. switch(s->layer) {
  2150. case 1:
  2151. avctx->frame_size = 384;
  2152. break;
  2153. case 2:
  2154. avctx->frame_size = 1152;
  2155. break;
  2156. case 3:
  2157. if (s->lsf)
  2158. avctx->frame_size = 576;
  2159. else
  2160. avctx->frame_size = 1152;
  2161. break;
  2162. }
  2163. if(s->frame_size<=0 || s->frame_size > buf_size){
  2164. av_log(avctx, AV_LOG_ERROR, "incomplete frame\n");
  2165. return -1;
  2166. }else if(s->frame_size < buf_size){
  2167. av_log(avctx, AV_LOG_ERROR, "incorrect frame size\n");
  2168. buf_size= s->frame_size;
  2169. }
  2170. out_size = mp_decode_frame(s, out_samples, buf, buf_size);
  2171. if(out_size>=0){
  2172. *data_size = out_size;
  2173. avctx->sample_rate = s->sample_rate;
  2174. //FIXME maybe move the other codec info stuff from above here too
  2175. }else
  2176. av_log(avctx, AV_LOG_DEBUG, "Error while decoding MPEG audio frame.\n"); //FIXME return -1 / but also return the number of bytes consumed
  2177. s->frame_size = 0;
  2178. return buf_size;
  2179. }
  2180. static void flush(AVCodecContext *avctx){
  2181. MPADecodeContext *s = avctx->priv_data;
  2182. s->last_buf_size= 0;
  2183. }
  2184. #ifdef CONFIG_MP3ADU_DECODER
  2185. static int decode_frame_adu(AVCodecContext * avctx,
  2186. void *data, int *data_size,
  2187. uint8_t * buf, int buf_size)
  2188. {
  2189. MPADecodeContext *s = avctx->priv_data;
  2190. uint32_t header;
  2191. int len, out_size;
  2192. OUT_INT *out_samples = data;
  2193. len = buf_size;
  2194. // Discard too short frames
  2195. if (buf_size < HEADER_SIZE) {
  2196. *data_size = 0;
  2197. return buf_size;
  2198. }
  2199. if (len > MPA_MAX_CODED_FRAME_SIZE)
  2200. len = MPA_MAX_CODED_FRAME_SIZE;
  2201. // Get header and restore sync word
  2202. header = AV_RB32(buf) | 0xffe00000;
  2203. if (ff_mpa_check_header(header) < 0) { // Bad header, discard frame
  2204. *data_size = 0;
  2205. return buf_size;
  2206. }
  2207. ff_mpegaudio_decode_header(s, header);
  2208. /* update codec info */
  2209. avctx->sample_rate = s->sample_rate;
  2210. avctx->channels = s->nb_channels;
  2211. avctx->bit_rate = s->bit_rate;
  2212. avctx->sub_id = s->layer;
  2213. avctx->frame_size=s->frame_size = len;
  2214. if (avctx->parse_only) {
  2215. out_size = buf_size;
  2216. } else {
  2217. out_size = mp_decode_frame(s, out_samples, buf, buf_size);
  2218. }
  2219. *data_size = out_size;
  2220. return buf_size;
  2221. }
  2222. #endif /* CONFIG_MP3ADU_DECODER */
  2223. #ifdef CONFIG_MP3ON4_DECODER
  2224. /* Next 3 arrays are indexed by channel config number (passed via codecdata) */
  2225. static int mp3Frames[16] = {0,1,1,2,3,3,4,5,2}; /* number of mp3 decoder instances */
  2226. static int mp3Channels[16] = {0,1,2,3,4,5,6,8,4}; /* total output channels */
  2227. /* offsets into output buffer, assume output order is FL FR BL BR C LFE */
  2228. static int chan_offset[9][5] = {
  2229. {0},
  2230. {0}, // C
  2231. {0}, // FLR
  2232. {2,0}, // C FLR
  2233. {2,0,3}, // C FLR BS
  2234. {4,0,2}, // C FLR BLRS
  2235. {4,0,2,5}, // C FLR BLRS LFE
  2236. {4,0,2,6,5}, // C FLR BLRS BLR LFE
  2237. {0,2} // FLR BLRS
  2238. };
  2239. static int decode_init_mp3on4(AVCodecContext * avctx)
  2240. {
  2241. MP3On4DecodeContext *s = avctx->priv_data;
  2242. int i;
  2243. if ((avctx->extradata_size < 2) || (avctx->extradata == NULL)) {
  2244. av_log(avctx, AV_LOG_ERROR, "Codec extradata missing or too short.\n");
  2245. return -1;
  2246. }
  2247. s->chan_cfg = (((unsigned char *)avctx->extradata)[1] >> 3) & 0x0f;
  2248. s->frames = mp3Frames[s->chan_cfg];
  2249. if(!s->frames) {
  2250. av_log(avctx, AV_LOG_ERROR, "Invalid channel config number.\n");
  2251. return -1;
  2252. }
  2253. avctx->channels = mp3Channels[s->chan_cfg];
  2254. /* Init the first mp3 decoder in standard way, so that all tables get builded
  2255. * We replace avctx->priv_data with the context of the first decoder so that
  2256. * decode_init() does not have to be changed.
  2257. * Other decoders will be inited here copying data from the first context
  2258. */
  2259. // Allocate zeroed memory for the first decoder context
  2260. s->mp3decctx[0] = av_mallocz(sizeof(MPADecodeContext));
  2261. // Put decoder context in place to make init_decode() happy
  2262. avctx->priv_data = s->mp3decctx[0];
  2263. decode_init(avctx);
  2264. // Restore mp3on4 context pointer
  2265. avctx->priv_data = s;
  2266. s->mp3decctx[0]->adu_mode = 1; // Set adu mode
  2267. /* Create a separate codec/context for each frame (first is already ok).
  2268. * Each frame is 1 or 2 channels - up to 5 frames allowed
  2269. */
  2270. for (i = 1; i < s->frames; i++) {
  2271. s->mp3decctx[i] = av_mallocz(sizeof(MPADecodeContext));
  2272. s->mp3decctx[i]->compute_antialias = s->mp3decctx[0]->compute_antialias;
  2273. s->mp3decctx[i]->adu_mode = 1;
  2274. s->mp3decctx[i]->avctx = avctx;
  2275. }
  2276. return 0;
  2277. }
  2278. static int decode_close_mp3on4(AVCodecContext * avctx)
  2279. {
  2280. MP3On4DecodeContext *s = avctx->priv_data;
  2281. int i;
  2282. for (i = 0; i < s->frames; i++)
  2283. if (s->mp3decctx[i])
  2284. av_free(s->mp3decctx[i]);
  2285. return 0;
  2286. }
  2287. static int decode_frame_mp3on4(AVCodecContext * avctx,
  2288. void *data, int *data_size,
  2289. uint8_t * buf, int buf_size)
  2290. {
  2291. MP3On4DecodeContext *s = avctx->priv_data;
  2292. MPADecodeContext *m;
  2293. int len, out_size = 0;
  2294. uint32_t header;
  2295. OUT_INT *out_samples = data;
  2296. OUT_INT decoded_buf[MPA_FRAME_SIZE * MPA_MAX_CHANNELS];
  2297. OUT_INT *outptr, *bp;
  2298. int fsize;
  2299. unsigned char *start2 = buf, *start;
  2300. int fr, i, j, n;
  2301. int off = avctx->channels;
  2302. int *coff = chan_offset[s->chan_cfg];
  2303. len = buf_size;
  2304. // Discard too short frames
  2305. if (buf_size < HEADER_SIZE) {
  2306. *data_size = 0;
  2307. return buf_size;
  2308. }
  2309. // If only one decoder interleave is not needed
  2310. outptr = s->frames == 1 ? out_samples : decoded_buf;
  2311. for (fr = 0; fr < s->frames; fr++) {
  2312. start = start2;
  2313. fsize = (start[0] << 4) | (start[1] >> 4);
  2314. start2 += fsize;
  2315. if (fsize > len)
  2316. fsize = len;
  2317. len -= fsize;
  2318. if (fsize > MPA_MAX_CODED_FRAME_SIZE)
  2319. fsize = MPA_MAX_CODED_FRAME_SIZE;
  2320. m = s->mp3decctx[fr];
  2321. assert (m != NULL);
  2322. // Get header
  2323. header = AV_RB32(start) | 0xfff00000;
  2324. if (ff_mpa_check_header(header) < 0) { // Bad header, discard block
  2325. *data_size = 0;
  2326. return buf_size;
  2327. }
  2328. ff_mpegaudio_decode_header(m, header);
  2329. mp_decode_frame(m, decoded_buf, start, fsize);
  2330. n = MPA_FRAME_SIZE * m->nb_channels;
  2331. out_size += n * sizeof(OUT_INT);
  2332. if(s->frames > 1) {
  2333. /* interleave output data */
  2334. bp = out_samples + coff[fr];
  2335. if(m->nb_channels == 1) {
  2336. for(j = 0; j < n; j++) {
  2337. *bp = decoded_buf[j];
  2338. bp += off;
  2339. }
  2340. } else {
  2341. for(j = 0; j < n; j++) {
  2342. bp[0] = decoded_buf[j++];
  2343. bp[1] = decoded_buf[j];
  2344. bp += off;
  2345. }
  2346. }
  2347. }
  2348. }
  2349. /* update codec info */
  2350. avctx->sample_rate = s->mp3decctx[0]->sample_rate;
  2351. avctx->frame_size= buf_size;
  2352. avctx->bit_rate = 0;
  2353. for (i = 0; i < s->frames; i++)
  2354. avctx->bit_rate += s->mp3decctx[i]->bit_rate;
  2355. *data_size = out_size;
  2356. return buf_size;
  2357. }
  2358. #endif /* CONFIG_MP3ON4_DECODER */
  2359. #ifdef CONFIG_MP2_DECODER
  2360. AVCodec mp2_decoder =
  2361. {
  2362. "mp2",
  2363. CODEC_TYPE_AUDIO,
  2364. CODEC_ID_MP2,
  2365. sizeof(MPADecodeContext),
  2366. decode_init,
  2367. NULL,
  2368. NULL,
  2369. decode_frame,
  2370. CODEC_CAP_PARSE_ONLY,
  2371. };
  2372. #endif
  2373. #ifdef CONFIG_MP3_DECODER
  2374. AVCodec mp3_decoder =
  2375. {
  2376. "mp3",
  2377. CODEC_TYPE_AUDIO,
  2378. CODEC_ID_MP3,
  2379. sizeof(MPADecodeContext),
  2380. decode_init,
  2381. NULL,
  2382. NULL,
  2383. decode_frame,
  2384. CODEC_CAP_PARSE_ONLY,
  2385. .flush= flush,
  2386. };
  2387. #endif
  2388. #ifdef CONFIG_MP3ADU_DECODER
  2389. AVCodec mp3adu_decoder =
  2390. {
  2391. "mp3adu",
  2392. CODEC_TYPE_AUDIO,
  2393. CODEC_ID_MP3ADU,
  2394. sizeof(MPADecodeContext),
  2395. decode_init,
  2396. NULL,
  2397. NULL,
  2398. decode_frame_adu,
  2399. CODEC_CAP_PARSE_ONLY,
  2400. .flush= flush,
  2401. };
  2402. #endif
  2403. #ifdef CONFIG_MP3ON4_DECODER
  2404. AVCodec mp3on4_decoder =
  2405. {
  2406. "mp3on4",
  2407. CODEC_TYPE_AUDIO,
  2408. CODEC_ID_MP3ON4,
  2409. sizeof(MP3On4DecodeContext),
  2410. decode_init_mp3on4,
  2411. NULL,
  2412. decode_close_mp3on4,
  2413. decode_frame_mp3on4,
  2414. .flush= flush,
  2415. };
  2416. #endif