You can not select more than 25 topics Topics must start with a letter or number, can include dashes ('-') and can be up to 35 characters long.

977 lines
32KB

  1. /*
  2. * WMA compatible decoder
  3. * Copyright (c) 2002 The FFmpeg Project
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * WMA compatible decoder.
  24. * This decoder handles Microsoft Windows Media Audio data, versions 1 & 2.
  25. * WMA v1 is identified by audio format 0x160 in Microsoft media files
  26. * (ASF/AVI/WAV). WMA v2 is identified by audio format 0x161.
  27. *
  28. * To use this decoder, a calling application must supply the extra data
  29. * bytes provided with the WMA data. These are the extra, codec-specific
  30. * bytes at the end of a WAVEFORMATEX data structure. Transmit these bytes
  31. * to the decoder using the extradata[_size] fields in AVCodecContext. There
  32. * should be 4 extra bytes for v1 data and 6 extra bytes for v2 data.
  33. */
  34. #include "avcodec.h"
  35. #include "internal.h"
  36. #include "wma.h"
  37. #undef NDEBUG
  38. #include <assert.h>
  39. #define EXPVLCBITS 8
  40. #define EXPMAX ((19+EXPVLCBITS-1)/EXPVLCBITS)
  41. #define HGAINVLCBITS 9
  42. #define HGAINMAX ((13+HGAINVLCBITS-1)/HGAINVLCBITS)
  43. static void wma_lsp_to_curve_init(WMACodecContext *s, int frame_len);
  44. #ifdef TRACE
  45. static void dump_floats(WMACodecContext *s, const char *name, int prec, const float *tab, int n)
  46. {
  47. int i;
  48. tprintf(s->avctx, "%s[%d]:\n", name, n);
  49. for(i=0;i<n;i++) {
  50. if ((i & 7) == 0)
  51. tprintf(s->avctx, "%4d: ", i);
  52. tprintf(s->avctx, " %8.*f", prec, tab[i]);
  53. if ((i & 7) == 7)
  54. tprintf(s->avctx, "\n");
  55. }
  56. if ((i & 7) != 0)
  57. tprintf(s->avctx, "\n");
  58. }
  59. #endif
  60. static int wma_decode_init(AVCodecContext * avctx)
  61. {
  62. WMACodecContext *s = avctx->priv_data;
  63. int i, flags2;
  64. uint8_t *extradata;
  65. if (!avctx->block_align) {
  66. av_log(avctx, AV_LOG_ERROR, "block_align is not set\n");
  67. return AVERROR(EINVAL);
  68. }
  69. s->avctx = avctx;
  70. /* extract flag infos */
  71. flags2 = 0;
  72. extradata = avctx->extradata;
  73. if (avctx->codec->id == AV_CODEC_ID_WMAV1 && avctx->extradata_size >= 4) {
  74. flags2 = AV_RL16(extradata+2);
  75. } else if (avctx->codec->id == AV_CODEC_ID_WMAV2 && avctx->extradata_size >= 6) {
  76. flags2 = AV_RL16(extradata+4);
  77. }
  78. s->use_exp_vlc = flags2 & 0x0001;
  79. s->use_bit_reservoir = flags2 & 0x0002;
  80. s->use_variable_block_len = flags2 & 0x0004;
  81. if(avctx->codec->id == AV_CODEC_ID_WMAV2 && avctx->extradata_size >= 8){
  82. if(AV_RL16(extradata+4)==0xd && s->use_variable_block_len){
  83. av_log(avctx, AV_LOG_WARNING, "Disabling use_variable_block_len, if this fails contact the ffmpeg developers and send us the file\n");
  84. s->use_variable_block_len= 0; // this fixes issue1503
  85. }
  86. }
  87. if(ff_wma_init(avctx, flags2)<0)
  88. return -1;
  89. /* init MDCT */
  90. for(i = 0; i < s->nb_block_sizes; i++)
  91. ff_mdct_init(&s->mdct_ctx[i], s->frame_len_bits - i + 1, 1, 1.0 / 32768.0);
  92. if (s->use_noise_coding) {
  93. init_vlc(&s->hgain_vlc, HGAINVLCBITS, sizeof(ff_wma_hgain_huffbits),
  94. ff_wma_hgain_huffbits, 1, 1,
  95. ff_wma_hgain_huffcodes, 2, 2, 0);
  96. }
  97. if (s->use_exp_vlc) {
  98. init_vlc(&s->exp_vlc, EXPVLCBITS, sizeof(ff_aac_scalefactor_bits), //FIXME move out of context
  99. ff_aac_scalefactor_bits, 1, 1,
  100. ff_aac_scalefactor_code, 4, 4, 0);
  101. } else {
  102. wma_lsp_to_curve_init(s, s->frame_len);
  103. }
  104. avctx->sample_fmt = AV_SAMPLE_FMT_FLTP;
  105. return 0;
  106. }
  107. /**
  108. * compute x^-0.25 with an exponent and mantissa table. We use linear
  109. * interpolation to reduce the mantissa table size at a small speed
  110. * expense (linear interpolation approximately doubles the number of
  111. * bits of precision).
  112. */
  113. static inline float pow_m1_4(WMACodecContext *s, float x)
  114. {
  115. union {
  116. float f;
  117. unsigned int v;
  118. } u, t;
  119. unsigned int e, m;
  120. float a, b;
  121. u.f = x;
  122. e = u.v >> 23;
  123. m = (u.v >> (23 - LSP_POW_BITS)) & ((1 << LSP_POW_BITS) - 1);
  124. /* build interpolation scale: 1 <= t < 2. */
  125. t.v = ((u.v << LSP_POW_BITS) & ((1 << 23) - 1)) | (127 << 23);
  126. a = s->lsp_pow_m_table1[m];
  127. b = s->lsp_pow_m_table2[m];
  128. return s->lsp_pow_e_table[e] * (a + b * t.f);
  129. }
  130. static void wma_lsp_to_curve_init(WMACodecContext *s, int frame_len)
  131. {
  132. float wdel, a, b;
  133. int i, e, m;
  134. wdel = M_PI / frame_len;
  135. for(i=0;i<frame_len;i++)
  136. s->lsp_cos_table[i] = 2.0f * cos(wdel * i);
  137. /* tables for x^-0.25 computation */
  138. for(i=0;i<256;i++) {
  139. e = i - 126;
  140. s->lsp_pow_e_table[i] = pow(2.0, e * -0.25);
  141. }
  142. /* NOTE: these two tables are needed to avoid two operations in
  143. pow_m1_4 */
  144. b = 1.0;
  145. for(i=(1 << LSP_POW_BITS) - 1;i>=0;i--) {
  146. m = (1 << LSP_POW_BITS) + i;
  147. a = (float)m * (0.5 / (1 << LSP_POW_BITS));
  148. a = pow(a, -0.25);
  149. s->lsp_pow_m_table1[i] = 2 * a - b;
  150. s->lsp_pow_m_table2[i] = b - a;
  151. b = a;
  152. }
  153. }
  154. /**
  155. * NOTE: We use the same code as Vorbis here
  156. * @todo optimize it further with SSE/3Dnow
  157. */
  158. static void wma_lsp_to_curve(WMACodecContext *s,
  159. float *out, float *val_max_ptr,
  160. int n, float *lsp)
  161. {
  162. int i, j;
  163. float p, q, w, v, val_max;
  164. val_max = 0;
  165. for(i=0;i<n;i++) {
  166. p = 0.5f;
  167. q = 0.5f;
  168. w = s->lsp_cos_table[i];
  169. for(j=1;j<NB_LSP_COEFS;j+=2){
  170. q *= w - lsp[j - 1];
  171. p *= w - lsp[j];
  172. }
  173. p *= p * (2.0f - w);
  174. q *= q * (2.0f + w);
  175. v = p + q;
  176. v = pow_m1_4(s, v);
  177. if (v > val_max)
  178. val_max = v;
  179. out[i] = v;
  180. }
  181. *val_max_ptr = val_max;
  182. }
  183. /**
  184. * decode exponents coded with LSP coefficients (same idea as Vorbis)
  185. */
  186. static void decode_exp_lsp(WMACodecContext *s, int ch)
  187. {
  188. float lsp_coefs[NB_LSP_COEFS];
  189. int val, i;
  190. for(i = 0; i < NB_LSP_COEFS; i++) {
  191. if (i == 0 || i >= 8)
  192. val = get_bits(&s->gb, 3);
  193. else
  194. val = get_bits(&s->gb, 4);
  195. lsp_coefs[i] = ff_wma_lsp_codebook[i][val];
  196. }
  197. wma_lsp_to_curve(s, s->exponents[ch], &s->max_exponent[ch],
  198. s->block_len, lsp_coefs);
  199. }
  200. /** pow(10, i / 16.0) for i in -60..95 */
  201. static const float pow_tab[] = {
  202. 1.7782794100389e-04, 2.0535250264571e-04,
  203. 2.3713737056617e-04, 2.7384196342644e-04,
  204. 3.1622776601684e-04, 3.6517412725484e-04,
  205. 4.2169650342858e-04, 4.8696752516586e-04,
  206. 5.6234132519035e-04, 6.4938163157621e-04,
  207. 7.4989420933246e-04, 8.6596432336006e-04,
  208. 1.0000000000000e-03, 1.1547819846895e-03,
  209. 1.3335214321633e-03, 1.5399265260595e-03,
  210. 1.7782794100389e-03, 2.0535250264571e-03,
  211. 2.3713737056617e-03, 2.7384196342644e-03,
  212. 3.1622776601684e-03, 3.6517412725484e-03,
  213. 4.2169650342858e-03, 4.8696752516586e-03,
  214. 5.6234132519035e-03, 6.4938163157621e-03,
  215. 7.4989420933246e-03, 8.6596432336006e-03,
  216. 1.0000000000000e-02, 1.1547819846895e-02,
  217. 1.3335214321633e-02, 1.5399265260595e-02,
  218. 1.7782794100389e-02, 2.0535250264571e-02,
  219. 2.3713737056617e-02, 2.7384196342644e-02,
  220. 3.1622776601684e-02, 3.6517412725484e-02,
  221. 4.2169650342858e-02, 4.8696752516586e-02,
  222. 5.6234132519035e-02, 6.4938163157621e-02,
  223. 7.4989420933246e-02, 8.6596432336007e-02,
  224. 1.0000000000000e-01, 1.1547819846895e-01,
  225. 1.3335214321633e-01, 1.5399265260595e-01,
  226. 1.7782794100389e-01, 2.0535250264571e-01,
  227. 2.3713737056617e-01, 2.7384196342644e-01,
  228. 3.1622776601684e-01, 3.6517412725484e-01,
  229. 4.2169650342858e-01, 4.8696752516586e-01,
  230. 5.6234132519035e-01, 6.4938163157621e-01,
  231. 7.4989420933246e-01, 8.6596432336007e-01,
  232. 1.0000000000000e+00, 1.1547819846895e+00,
  233. 1.3335214321633e+00, 1.5399265260595e+00,
  234. 1.7782794100389e+00, 2.0535250264571e+00,
  235. 2.3713737056617e+00, 2.7384196342644e+00,
  236. 3.1622776601684e+00, 3.6517412725484e+00,
  237. 4.2169650342858e+00, 4.8696752516586e+00,
  238. 5.6234132519035e+00, 6.4938163157621e+00,
  239. 7.4989420933246e+00, 8.6596432336007e+00,
  240. 1.0000000000000e+01, 1.1547819846895e+01,
  241. 1.3335214321633e+01, 1.5399265260595e+01,
  242. 1.7782794100389e+01, 2.0535250264571e+01,
  243. 2.3713737056617e+01, 2.7384196342644e+01,
  244. 3.1622776601684e+01, 3.6517412725484e+01,
  245. 4.2169650342858e+01, 4.8696752516586e+01,
  246. 5.6234132519035e+01, 6.4938163157621e+01,
  247. 7.4989420933246e+01, 8.6596432336007e+01,
  248. 1.0000000000000e+02, 1.1547819846895e+02,
  249. 1.3335214321633e+02, 1.5399265260595e+02,
  250. 1.7782794100389e+02, 2.0535250264571e+02,
  251. 2.3713737056617e+02, 2.7384196342644e+02,
  252. 3.1622776601684e+02, 3.6517412725484e+02,
  253. 4.2169650342858e+02, 4.8696752516586e+02,
  254. 5.6234132519035e+02, 6.4938163157621e+02,
  255. 7.4989420933246e+02, 8.6596432336007e+02,
  256. 1.0000000000000e+03, 1.1547819846895e+03,
  257. 1.3335214321633e+03, 1.5399265260595e+03,
  258. 1.7782794100389e+03, 2.0535250264571e+03,
  259. 2.3713737056617e+03, 2.7384196342644e+03,
  260. 3.1622776601684e+03, 3.6517412725484e+03,
  261. 4.2169650342858e+03, 4.8696752516586e+03,
  262. 5.6234132519035e+03, 6.4938163157621e+03,
  263. 7.4989420933246e+03, 8.6596432336007e+03,
  264. 1.0000000000000e+04, 1.1547819846895e+04,
  265. 1.3335214321633e+04, 1.5399265260595e+04,
  266. 1.7782794100389e+04, 2.0535250264571e+04,
  267. 2.3713737056617e+04, 2.7384196342644e+04,
  268. 3.1622776601684e+04, 3.6517412725484e+04,
  269. 4.2169650342858e+04, 4.8696752516586e+04,
  270. 5.6234132519035e+04, 6.4938163157621e+04,
  271. 7.4989420933246e+04, 8.6596432336007e+04,
  272. 1.0000000000000e+05, 1.1547819846895e+05,
  273. 1.3335214321633e+05, 1.5399265260595e+05,
  274. 1.7782794100389e+05, 2.0535250264571e+05,
  275. 2.3713737056617e+05, 2.7384196342644e+05,
  276. 3.1622776601684e+05, 3.6517412725484e+05,
  277. 4.2169650342858e+05, 4.8696752516586e+05,
  278. 5.6234132519035e+05, 6.4938163157621e+05,
  279. 7.4989420933246e+05, 8.6596432336007e+05,
  280. };
  281. /**
  282. * decode exponents coded with VLC codes
  283. */
  284. static int decode_exp_vlc(WMACodecContext *s, int ch)
  285. {
  286. int last_exp, n, code;
  287. const uint16_t *ptr;
  288. float v, max_scale;
  289. uint32_t *q, *q_end, iv;
  290. const float *ptab = pow_tab + 60;
  291. const uint32_t *iptab = (const uint32_t*)ptab;
  292. ptr = s->exponent_bands[s->frame_len_bits - s->block_len_bits];
  293. q = (uint32_t *)s->exponents[ch];
  294. q_end = q + s->block_len;
  295. max_scale = 0;
  296. if (s->version == 1) {
  297. last_exp = get_bits(&s->gb, 5) + 10;
  298. v = ptab[last_exp];
  299. iv = iptab[last_exp];
  300. max_scale = v;
  301. n = *ptr++;
  302. switch (n & 3) do {
  303. case 0: *q++ = iv;
  304. case 3: *q++ = iv;
  305. case 2: *q++ = iv;
  306. case 1: *q++ = iv;
  307. } while ((n -= 4) > 0);
  308. }else
  309. last_exp = 36;
  310. while (q < q_end) {
  311. code = get_vlc2(&s->gb, s->exp_vlc.table, EXPVLCBITS, EXPMAX);
  312. if (code < 0){
  313. av_log(s->avctx, AV_LOG_ERROR, "Exponent vlc invalid\n");
  314. return -1;
  315. }
  316. /* NOTE: this offset is the same as MPEG4 AAC ! */
  317. last_exp += code - 60;
  318. if ((unsigned)last_exp + 60 >= FF_ARRAY_ELEMS(pow_tab)) {
  319. av_log(s->avctx, AV_LOG_ERROR, "Exponent out of range: %d\n",
  320. last_exp);
  321. return -1;
  322. }
  323. v = ptab[last_exp];
  324. iv = iptab[last_exp];
  325. if (v > max_scale)
  326. max_scale = v;
  327. n = *ptr++;
  328. switch (n & 3) do {
  329. case 0: *q++ = iv;
  330. case 3: *q++ = iv;
  331. case 2: *q++ = iv;
  332. case 1: *q++ = iv;
  333. } while ((n -= 4) > 0);
  334. }
  335. s->max_exponent[ch] = max_scale;
  336. return 0;
  337. }
  338. /**
  339. * Apply MDCT window and add into output.
  340. *
  341. * We ensure that when the windows overlap their squared sum
  342. * is always 1 (MDCT reconstruction rule).
  343. */
  344. static void wma_window(WMACodecContext *s, float *out)
  345. {
  346. float *in = s->output;
  347. int block_len, bsize, n;
  348. /* left part */
  349. if (s->block_len_bits <= s->prev_block_len_bits) {
  350. block_len = s->block_len;
  351. bsize = s->frame_len_bits - s->block_len_bits;
  352. s->fdsp.vector_fmul_add(out, in, s->windows[bsize],
  353. out, block_len);
  354. } else {
  355. block_len = 1 << s->prev_block_len_bits;
  356. n = (s->block_len - block_len) / 2;
  357. bsize = s->frame_len_bits - s->prev_block_len_bits;
  358. s->fdsp.vector_fmul_add(out+n, in+n, s->windows[bsize],
  359. out+n, block_len);
  360. memcpy(out+n+block_len, in+n+block_len, n*sizeof(float));
  361. }
  362. out += s->block_len;
  363. in += s->block_len;
  364. /* right part */
  365. if (s->block_len_bits <= s->next_block_len_bits) {
  366. block_len = s->block_len;
  367. bsize = s->frame_len_bits - s->block_len_bits;
  368. s->fdsp.vector_fmul_reverse(out, in, s->windows[bsize], block_len);
  369. } else {
  370. block_len = 1 << s->next_block_len_bits;
  371. n = (s->block_len - block_len) / 2;
  372. bsize = s->frame_len_bits - s->next_block_len_bits;
  373. memcpy(out, in, n*sizeof(float));
  374. s->fdsp.vector_fmul_reverse(out+n, in+n, s->windows[bsize], block_len);
  375. memset(out+n+block_len, 0, n*sizeof(float));
  376. }
  377. }
  378. /**
  379. * @return 0 if OK. 1 if last block of frame. return -1 if
  380. * unrecorrable error.
  381. */
  382. static int wma_decode_block(WMACodecContext *s)
  383. {
  384. int n, v, a, ch, bsize;
  385. int coef_nb_bits, total_gain;
  386. int nb_coefs[MAX_CHANNELS];
  387. float mdct_norm;
  388. FFTContext *mdct;
  389. #ifdef TRACE
  390. tprintf(s->avctx, "***decode_block: %d:%d\n", s->frame_count - 1, s->block_num);
  391. #endif
  392. /* compute current block length */
  393. if (s->use_variable_block_len) {
  394. n = av_log2(s->nb_block_sizes - 1) + 1;
  395. if (s->reset_block_lengths) {
  396. s->reset_block_lengths = 0;
  397. v = get_bits(&s->gb, n);
  398. if (v >= s->nb_block_sizes){
  399. av_log(s->avctx, AV_LOG_ERROR, "prev_block_len_bits %d out of range\n", s->frame_len_bits - v);
  400. return -1;
  401. }
  402. s->prev_block_len_bits = s->frame_len_bits - v;
  403. v = get_bits(&s->gb, n);
  404. if (v >= s->nb_block_sizes){
  405. av_log(s->avctx, AV_LOG_ERROR, "block_len_bits %d out of range\n", s->frame_len_bits - v);
  406. return -1;
  407. }
  408. s->block_len_bits = s->frame_len_bits - v;
  409. } else {
  410. /* update block lengths */
  411. s->prev_block_len_bits = s->block_len_bits;
  412. s->block_len_bits = s->next_block_len_bits;
  413. }
  414. v = get_bits(&s->gb, n);
  415. if (v >= s->nb_block_sizes){
  416. av_log(s->avctx, AV_LOG_ERROR, "next_block_len_bits %d out of range\n", s->frame_len_bits - v);
  417. return -1;
  418. }
  419. s->next_block_len_bits = s->frame_len_bits - v;
  420. } else {
  421. /* fixed block len */
  422. s->next_block_len_bits = s->frame_len_bits;
  423. s->prev_block_len_bits = s->frame_len_bits;
  424. s->block_len_bits = s->frame_len_bits;
  425. }
  426. if (s->frame_len_bits - s->block_len_bits >= s->nb_block_sizes){
  427. av_log(s->avctx, AV_LOG_ERROR, "block_len_bits not initialized to a valid value\n");
  428. return -1;
  429. }
  430. /* now check if the block length is coherent with the frame length */
  431. s->block_len = 1 << s->block_len_bits;
  432. if ((s->block_pos + s->block_len) > s->frame_len){
  433. av_log(s->avctx, AV_LOG_ERROR, "frame_len overflow\n");
  434. return -1;
  435. }
  436. if (s->avctx->channels == 2) {
  437. s->ms_stereo = get_bits1(&s->gb);
  438. }
  439. v = 0;
  440. for(ch = 0; ch < s->avctx->channels; ch++) {
  441. a = get_bits1(&s->gb);
  442. s->channel_coded[ch] = a;
  443. v |= a;
  444. }
  445. bsize = s->frame_len_bits - s->block_len_bits;
  446. /* if no channel coded, no need to go further */
  447. /* XXX: fix potential framing problems */
  448. if (!v)
  449. goto next;
  450. /* read total gain and extract corresponding number of bits for
  451. coef escape coding */
  452. total_gain = 1;
  453. for(;;) {
  454. a = get_bits(&s->gb, 7);
  455. total_gain += a;
  456. if (a != 127)
  457. break;
  458. }
  459. coef_nb_bits= ff_wma_total_gain_to_bits(total_gain);
  460. /* compute number of coefficients */
  461. n = s->coefs_end[bsize] - s->coefs_start;
  462. for(ch = 0; ch < s->avctx->channels; ch++)
  463. nb_coefs[ch] = n;
  464. /* complex coding */
  465. if (s->use_noise_coding) {
  466. for(ch = 0; ch < s->avctx->channels; ch++) {
  467. if (s->channel_coded[ch]) {
  468. int i, n, a;
  469. n = s->exponent_high_sizes[bsize];
  470. for(i=0;i<n;i++) {
  471. a = get_bits1(&s->gb);
  472. s->high_band_coded[ch][i] = a;
  473. /* if noise coding, the coefficients are not transmitted */
  474. if (a)
  475. nb_coefs[ch] -= s->exponent_high_bands[bsize][i];
  476. }
  477. }
  478. }
  479. for(ch = 0; ch < s->avctx->channels; ch++) {
  480. if (s->channel_coded[ch]) {
  481. int i, n, val, code;
  482. n = s->exponent_high_sizes[bsize];
  483. val = (int)0x80000000;
  484. for(i=0;i<n;i++) {
  485. if (s->high_band_coded[ch][i]) {
  486. if (val == (int)0x80000000) {
  487. val = get_bits(&s->gb, 7) - 19;
  488. } else {
  489. code = get_vlc2(&s->gb, s->hgain_vlc.table, HGAINVLCBITS, HGAINMAX);
  490. if (code < 0){
  491. av_log(s->avctx, AV_LOG_ERROR, "hgain vlc invalid\n");
  492. return -1;
  493. }
  494. val += code - 18;
  495. }
  496. s->high_band_values[ch][i] = val;
  497. }
  498. }
  499. }
  500. }
  501. }
  502. /* exponents can be reused in short blocks. */
  503. if ((s->block_len_bits == s->frame_len_bits) ||
  504. get_bits1(&s->gb)) {
  505. for(ch = 0; ch < s->avctx->channels; ch++) {
  506. if (s->channel_coded[ch]) {
  507. if (s->use_exp_vlc) {
  508. if (decode_exp_vlc(s, ch) < 0)
  509. return -1;
  510. } else {
  511. decode_exp_lsp(s, ch);
  512. }
  513. s->exponents_bsize[ch] = bsize;
  514. }
  515. }
  516. }
  517. /* parse spectral coefficients : just RLE encoding */
  518. for (ch = 0; ch < s->avctx->channels; ch++) {
  519. if (s->channel_coded[ch]) {
  520. int tindex;
  521. WMACoef* ptr = &s->coefs1[ch][0];
  522. /* special VLC tables are used for ms stereo because
  523. there is potentially less energy there */
  524. tindex = (ch == 1 && s->ms_stereo);
  525. memset(ptr, 0, s->block_len * sizeof(WMACoef));
  526. ff_wma_run_level_decode(s->avctx, &s->gb, &s->coef_vlc[tindex],
  527. s->level_table[tindex], s->run_table[tindex],
  528. 0, ptr, 0, nb_coefs[ch],
  529. s->block_len, s->frame_len_bits, coef_nb_bits);
  530. }
  531. if (s->version == 1 && s->avctx->channels >= 2) {
  532. align_get_bits(&s->gb);
  533. }
  534. }
  535. /* normalize */
  536. {
  537. int n4 = s->block_len / 2;
  538. mdct_norm = 1.0 / (float)n4;
  539. if (s->version == 1) {
  540. mdct_norm *= sqrt(n4);
  541. }
  542. }
  543. /* finally compute the MDCT coefficients */
  544. for (ch = 0; ch < s->avctx->channels; ch++) {
  545. if (s->channel_coded[ch]) {
  546. WMACoef *coefs1;
  547. float *coefs, *exponents, mult, mult1, noise;
  548. int i, j, n, n1, last_high_band, esize;
  549. float exp_power[HIGH_BAND_MAX_SIZE];
  550. coefs1 = s->coefs1[ch];
  551. exponents = s->exponents[ch];
  552. esize = s->exponents_bsize[ch];
  553. mult = pow(10, total_gain * 0.05) / s->max_exponent[ch];
  554. mult *= mdct_norm;
  555. coefs = s->coefs[ch];
  556. if (s->use_noise_coding) {
  557. mult1 = mult;
  558. /* very low freqs : noise */
  559. for(i = 0;i < s->coefs_start; i++) {
  560. *coefs++ = s->noise_table[s->noise_index] *
  561. exponents[i<<bsize>>esize] * mult1;
  562. s->noise_index = (s->noise_index + 1) & (NOISE_TAB_SIZE - 1);
  563. }
  564. n1 = s->exponent_high_sizes[bsize];
  565. /* compute power of high bands */
  566. exponents = s->exponents[ch] +
  567. (s->high_band_start[bsize]<<bsize>>esize);
  568. last_high_band = 0; /* avoid warning */
  569. for(j=0;j<n1;j++) {
  570. n = s->exponent_high_bands[s->frame_len_bits -
  571. s->block_len_bits][j];
  572. if (s->high_band_coded[ch][j]) {
  573. float e2, v;
  574. e2 = 0;
  575. for(i = 0;i < n; i++) {
  576. v = exponents[i<<bsize>>esize];
  577. e2 += v * v;
  578. }
  579. exp_power[j] = e2 / n;
  580. last_high_band = j;
  581. tprintf(s->avctx, "%d: power=%f (%d)\n", j, exp_power[j], n);
  582. }
  583. exponents += n<<bsize>>esize;
  584. }
  585. /* main freqs and high freqs */
  586. exponents = s->exponents[ch] + (s->coefs_start<<bsize>>esize);
  587. for(j=-1;j<n1;j++) {
  588. if (j < 0) {
  589. n = s->high_band_start[bsize] -
  590. s->coefs_start;
  591. } else {
  592. n = s->exponent_high_bands[s->frame_len_bits -
  593. s->block_len_bits][j];
  594. }
  595. if (j >= 0 && s->high_band_coded[ch][j]) {
  596. /* use noise with specified power */
  597. mult1 = sqrt(exp_power[j] / exp_power[last_high_band]);
  598. /* XXX: use a table */
  599. mult1 = mult1 * pow(10, s->high_band_values[ch][j] * 0.05);
  600. mult1 = mult1 / (s->max_exponent[ch] * s->noise_mult);
  601. mult1 *= mdct_norm;
  602. for(i = 0;i < n; i++) {
  603. noise = s->noise_table[s->noise_index];
  604. s->noise_index = (s->noise_index + 1) & (NOISE_TAB_SIZE - 1);
  605. *coefs++ = noise *
  606. exponents[i<<bsize>>esize] * mult1;
  607. }
  608. exponents += n<<bsize>>esize;
  609. } else {
  610. /* coded values + small noise */
  611. for(i = 0;i < n; i++) {
  612. noise = s->noise_table[s->noise_index];
  613. s->noise_index = (s->noise_index + 1) & (NOISE_TAB_SIZE - 1);
  614. *coefs++ = ((*coefs1++) + noise) *
  615. exponents[i<<bsize>>esize] * mult;
  616. }
  617. exponents += n<<bsize>>esize;
  618. }
  619. }
  620. /* very high freqs : noise */
  621. n = s->block_len - s->coefs_end[bsize];
  622. mult1 = mult * exponents[((-1<<bsize))>>esize];
  623. for(i = 0; i < n; i++) {
  624. *coefs++ = s->noise_table[s->noise_index] * mult1;
  625. s->noise_index = (s->noise_index + 1) & (NOISE_TAB_SIZE - 1);
  626. }
  627. } else {
  628. /* XXX: optimize more */
  629. for(i = 0;i < s->coefs_start; i++)
  630. *coefs++ = 0.0;
  631. n = nb_coefs[ch];
  632. for(i = 0;i < n; i++) {
  633. *coefs++ = coefs1[i] * exponents[i<<bsize>>esize] * mult;
  634. }
  635. n = s->block_len - s->coefs_end[bsize];
  636. for(i = 0;i < n; i++)
  637. *coefs++ = 0.0;
  638. }
  639. }
  640. }
  641. #ifdef TRACE
  642. for (ch = 0; ch < s->avctx->channels; ch++) {
  643. if (s->channel_coded[ch]) {
  644. dump_floats(s, "exponents", 3, s->exponents[ch], s->block_len);
  645. dump_floats(s, "coefs", 1, s->coefs[ch], s->block_len);
  646. }
  647. }
  648. #endif
  649. if (s->ms_stereo && s->channel_coded[1]) {
  650. /* nominal case for ms stereo: we do it before mdct */
  651. /* no need to optimize this case because it should almost
  652. never happen */
  653. if (!s->channel_coded[0]) {
  654. tprintf(s->avctx, "rare ms-stereo case happened\n");
  655. memset(s->coefs[0], 0, sizeof(float) * s->block_len);
  656. s->channel_coded[0] = 1;
  657. }
  658. s->fdsp.butterflies_float(s->coefs[0], s->coefs[1], s->block_len);
  659. }
  660. next:
  661. mdct = &s->mdct_ctx[bsize];
  662. for (ch = 0; ch < s->avctx->channels; ch++) {
  663. int n4, index;
  664. n4 = s->block_len / 2;
  665. if(s->channel_coded[ch]){
  666. mdct->imdct_calc(mdct, s->output, s->coefs[ch]);
  667. }else if(!(s->ms_stereo && ch==1))
  668. memset(s->output, 0, sizeof(s->output));
  669. /* multiply by the window and add in the frame */
  670. index = (s->frame_len / 2) + s->block_pos - n4;
  671. wma_window(s, &s->frame_out[ch][index]);
  672. }
  673. /* update block number */
  674. s->block_num++;
  675. s->block_pos += s->block_len;
  676. if (s->block_pos >= s->frame_len)
  677. return 1;
  678. else
  679. return 0;
  680. }
  681. /* decode a frame of frame_len samples */
  682. static int wma_decode_frame(WMACodecContext *s, float **samples,
  683. int samples_offset)
  684. {
  685. int ret, ch;
  686. #ifdef TRACE
  687. tprintf(s->avctx, "***decode_frame: %d size=%d\n", s->frame_count++, s->frame_len);
  688. #endif
  689. /* read each block */
  690. s->block_num = 0;
  691. s->block_pos = 0;
  692. for(;;) {
  693. ret = wma_decode_block(s);
  694. if (ret < 0)
  695. return -1;
  696. if (ret)
  697. break;
  698. }
  699. for (ch = 0; ch < s->avctx->channels; ch++) {
  700. /* copy current block to output */
  701. memcpy(samples[ch] + samples_offset, s->frame_out[ch],
  702. s->frame_len * sizeof(*s->frame_out[ch]));
  703. /* prepare for next block */
  704. memmove(&s->frame_out[ch][0], &s->frame_out[ch][s->frame_len],
  705. s->frame_len * sizeof(*s->frame_out[ch]));
  706. #ifdef TRACE
  707. dump_floats(s, "samples", 6, samples[ch] + samples_offset, s->frame_len);
  708. #endif
  709. }
  710. return 0;
  711. }
  712. static int wma_decode_superframe(AVCodecContext *avctx, void *data,
  713. int *got_frame_ptr, AVPacket *avpkt)
  714. {
  715. AVFrame *frame = data;
  716. const uint8_t *buf = avpkt->data;
  717. int buf_size = avpkt->size;
  718. WMACodecContext *s = avctx->priv_data;
  719. int nb_frames, bit_offset, i, pos, len, ret;
  720. uint8_t *q;
  721. float **samples;
  722. int samples_offset;
  723. tprintf(avctx, "***decode_superframe:\n");
  724. if(buf_size==0){
  725. s->last_superframe_len = 0;
  726. return 0;
  727. }
  728. if (buf_size < avctx->block_align) {
  729. av_log(avctx, AV_LOG_ERROR,
  730. "Input packet size too small (%d < %d)\n",
  731. buf_size, avctx->block_align);
  732. return AVERROR_INVALIDDATA;
  733. }
  734. if(avctx->block_align)
  735. buf_size = avctx->block_align;
  736. init_get_bits(&s->gb, buf, buf_size*8);
  737. if (s->use_bit_reservoir) {
  738. /* read super frame header */
  739. skip_bits(&s->gb, 4); /* super frame index */
  740. nb_frames = get_bits(&s->gb, 4) - (s->last_superframe_len <= 0);
  741. if (nb_frames <= 0) {
  742. av_log(avctx, AV_LOG_ERROR, "nb_frames is %d\n", nb_frames);
  743. return AVERROR_INVALIDDATA;
  744. }
  745. } else {
  746. nb_frames = 1;
  747. }
  748. /* get output buffer */
  749. frame->nb_samples = nb_frames * s->frame_len;
  750. if ((ret = ff_get_buffer(avctx, frame, 0)) < 0) {
  751. av_log(avctx, AV_LOG_ERROR, "get_buffer() failed\n");
  752. return ret;
  753. }
  754. samples = (float **)frame->extended_data;
  755. samples_offset = 0;
  756. if (s->use_bit_reservoir) {
  757. bit_offset = get_bits(&s->gb, s->byte_offset_bits + 3);
  758. if (bit_offset > get_bits_left(&s->gb)) {
  759. av_log(avctx, AV_LOG_ERROR,
  760. "Invalid last frame bit offset %d > buf size %d (%d)\n",
  761. bit_offset, get_bits_left(&s->gb), buf_size);
  762. goto fail;
  763. }
  764. if (s->last_superframe_len > 0) {
  765. /* add bit_offset bits to last frame */
  766. if ((s->last_superframe_len + ((bit_offset + 7) >> 3)) >
  767. MAX_CODED_SUPERFRAME_SIZE)
  768. goto fail;
  769. q = s->last_superframe + s->last_superframe_len;
  770. len = bit_offset;
  771. while (len > 7) {
  772. *q++ = (get_bits)(&s->gb, 8);
  773. len -= 8;
  774. }
  775. if (len > 0) {
  776. *q++ = (get_bits)(&s->gb, len) << (8 - len);
  777. }
  778. memset(q, 0, FF_INPUT_BUFFER_PADDING_SIZE);
  779. /* XXX: bit_offset bits into last frame */
  780. init_get_bits(&s->gb, s->last_superframe, s->last_superframe_len * 8 + bit_offset);
  781. /* skip unused bits */
  782. if (s->last_bitoffset > 0)
  783. skip_bits(&s->gb, s->last_bitoffset);
  784. /* this frame is stored in the last superframe and in the
  785. current one */
  786. if (wma_decode_frame(s, samples, samples_offset) < 0)
  787. goto fail;
  788. samples_offset += s->frame_len;
  789. nb_frames--;
  790. }
  791. /* read each frame starting from bit_offset */
  792. pos = bit_offset + 4 + 4 + s->byte_offset_bits + 3;
  793. if (pos >= MAX_CODED_SUPERFRAME_SIZE * 8 || pos > buf_size * 8)
  794. return AVERROR_INVALIDDATA;
  795. init_get_bits(&s->gb, buf + (pos >> 3), (buf_size - (pos >> 3))*8);
  796. len = pos & 7;
  797. if (len > 0)
  798. skip_bits(&s->gb, len);
  799. s->reset_block_lengths = 1;
  800. for(i=0;i<nb_frames;i++) {
  801. if (wma_decode_frame(s, samples, samples_offset) < 0)
  802. goto fail;
  803. samples_offset += s->frame_len;
  804. }
  805. /* we copy the end of the frame in the last frame buffer */
  806. pos = get_bits_count(&s->gb) + ((bit_offset + 4 + 4 + s->byte_offset_bits + 3) & ~7);
  807. s->last_bitoffset = pos & 7;
  808. pos >>= 3;
  809. len = buf_size - pos;
  810. if (len > MAX_CODED_SUPERFRAME_SIZE || len < 0) {
  811. av_log(s->avctx, AV_LOG_ERROR, "len %d invalid\n", len);
  812. goto fail;
  813. }
  814. s->last_superframe_len = len;
  815. memcpy(s->last_superframe, buf + pos, len);
  816. } else {
  817. /* single frame decode */
  818. if (wma_decode_frame(s, samples, samples_offset) < 0)
  819. goto fail;
  820. samples_offset += s->frame_len;
  821. }
  822. av_dlog(s->avctx, "%d %d %d %d outbytes:%td eaten:%d\n",
  823. s->frame_len_bits, s->block_len_bits, s->frame_len, s->block_len,
  824. (int8_t *)samples - (int8_t *)data, avctx->block_align);
  825. *got_frame_ptr = 1;
  826. return buf_size;
  827. fail:
  828. /* when error, we reset the bit reservoir */
  829. s->last_superframe_len = 0;
  830. return -1;
  831. }
  832. static av_cold void flush(AVCodecContext *avctx)
  833. {
  834. WMACodecContext *s = avctx->priv_data;
  835. s->last_bitoffset=
  836. s->last_superframe_len= 0;
  837. }
  838. #if CONFIG_WMAV1_DECODER
  839. AVCodec ff_wmav1_decoder = {
  840. .name = "wmav1",
  841. .type = AVMEDIA_TYPE_AUDIO,
  842. .id = AV_CODEC_ID_WMAV1,
  843. .priv_data_size = sizeof(WMACodecContext),
  844. .init = wma_decode_init,
  845. .close = ff_wma_end,
  846. .decode = wma_decode_superframe,
  847. .flush = flush,
  848. .capabilities = CODEC_CAP_DR1,
  849. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Audio 1"),
  850. .sample_fmts = (const enum AVSampleFormat[]) { AV_SAMPLE_FMT_FLTP,
  851. AV_SAMPLE_FMT_NONE },
  852. };
  853. #endif
  854. #if CONFIG_WMAV2_DECODER
  855. AVCodec ff_wmav2_decoder = {
  856. .name = "wmav2",
  857. .type = AVMEDIA_TYPE_AUDIO,
  858. .id = AV_CODEC_ID_WMAV2,
  859. .priv_data_size = sizeof(WMACodecContext),
  860. .init = wma_decode_init,
  861. .close = ff_wma_end,
  862. .decode = wma_decode_superframe,
  863. .flush = flush,
  864. .capabilities = CODEC_CAP_DR1,
  865. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Audio 2"),
  866. .sample_fmts = (const enum AVSampleFormat[]) { AV_SAMPLE_FMT_FLTP,
  867. AV_SAMPLE_FMT_NONE },
  868. };
  869. #endif