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  1. /*
  2. * Windows Media Audio Voice decoder.
  3. * Copyright (c) 2009 Ronald S. Bultje
  4. *
  5. * This file is part of Libav.
  6. *
  7. * Libav is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * Libav is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with Libav; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * @brief Windows Media Audio Voice compatible decoder
  24. * @author Ronald S. Bultje <rsbultje@gmail.com>
  25. */
  26. #define UNCHECKED_BITSTREAM_READER 1
  27. #include <math.h>
  28. #include "libavutil/channel_layout.h"
  29. #include "libavutil/float_dsp.h"
  30. #include "libavutil/mem.h"
  31. #include "avcodec.h"
  32. #include "internal.h"
  33. #include "get_bits.h"
  34. #include "put_bits.h"
  35. #include "wmavoice_data.h"
  36. #include "celp_filters.h"
  37. #include "acelp_vectors.h"
  38. #include "acelp_filters.h"
  39. #include "lsp.h"
  40. #include "dct.h"
  41. #include "rdft.h"
  42. #include "sinewin.h"
  43. #define MAX_BLOCKS 8 ///< maximum number of blocks per frame
  44. #define MAX_LSPS 16 ///< maximum filter order
  45. #define MAX_LSPS_ALIGN16 16 ///< same as #MAX_LSPS; needs to be multiple
  46. ///< of 16 for ASM input buffer alignment
  47. #define MAX_FRAMES 3 ///< maximum number of frames per superframe
  48. #define MAX_FRAMESIZE 160 ///< maximum number of samples per frame
  49. #define MAX_SIGNAL_HISTORY 416 ///< maximum excitation signal history
  50. #define MAX_SFRAMESIZE (MAX_FRAMESIZE * MAX_FRAMES)
  51. ///< maximum number of samples per superframe
  52. #define SFRAME_CACHE_MAXSIZE 256 ///< maximum cache size for frame data that
  53. ///< was split over two packets
  54. #define VLC_NBITS 6 ///< number of bits to read per VLC iteration
  55. /**
  56. * Frame type VLC coding.
  57. */
  58. static VLC frame_type_vlc;
  59. /**
  60. * Adaptive codebook types.
  61. */
  62. enum {
  63. ACB_TYPE_NONE = 0, ///< no adaptive codebook (only hardcoded fixed)
  64. ACB_TYPE_ASYMMETRIC = 1, ///< adaptive codebook with per-frame pitch, which
  65. ///< we interpolate to get a per-sample pitch.
  66. ///< Signal is generated using an asymmetric sinc
  67. ///< window function
  68. ///< @note see #wmavoice_ipol1_coeffs
  69. ACB_TYPE_HAMMING = 2 ///< Per-block pitch with signal generation using
  70. ///< a Hamming sinc window function
  71. ///< @note see #wmavoice_ipol2_coeffs
  72. };
  73. /**
  74. * Fixed codebook types.
  75. */
  76. enum {
  77. FCB_TYPE_SILENCE = 0, ///< comfort noise during silence
  78. ///< generated from a hardcoded (fixed) codebook
  79. ///< with per-frame (low) gain values
  80. FCB_TYPE_HARDCODED = 1, ///< hardcoded (fixed) codebook with per-block
  81. ///< gain values
  82. FCB_TYPE_AW_PULSES = 2, ///< Pitch-adaptive window (AW) pulse signals,
  83. ///< used in particular for low-bitrate streams
  84. FCB_TYPE_EXC_PULSES = 3, ///< Innovation (fixed) codebook pulse sets in
  85. ///< combinations of either single pulses or
  86. ///< pulse pairs
  87. };
  88. /**
  89. * Description of frame types.
  90. */
  91. static const struct frame_type_desc {
  92. uint8_t n_blocks; ///< amount of blocks per frame (each block
  93. ///< (contains 160/#n_blocks samples)
  94. uint8_t log_n_blocks; ///< log2(#n_blocks)
  95. uint8_t acb_type; ///< Adaptive codebook type (ACB_TYPE_*)
  96. uint8_t fcb_type; ///< Fixed codebook type (FCB_TYPE_*)
  97. uint8_t dbl_pulses; ///< how many pulse vectors have pulse pairs
  98. ///< (rather than just one single pulse)
  99. ///< only if #fcb_type == #FCB_TYPE_EXC_PULSES
  100. uint16_t frame_size; ///< the amount of bits that make up the block
  101. ///< data (per frame)
  102. } frame_descs[17] = {
  103. { 1, 0, ACB_TYPE_NONE, FCB_TYPE_SILENCE, 0, 0 },
  104. { 2, 1, ACB_TYPE_NONE, FCB_TYPE_HARDCODED, 0, 28 },
  105. { 2, 1, ACB_TYPE_ASYMMETRIC, FCB_TYPE_AW_PULSES, 0, 46 },
  106. { 2, 1, ACB_TYPE_ASYMMETRIC, FCB_TYPE_EXC_PULSES, 2, 80 },
  107. { 2, 1, ACB_TYPE_ASYMMETRIC, FCB_TYPE_EXC_PULSES, 5, 104 },
  108. { 4, 2, ACB_TYPE_ASYMMETRIC, FCB_TYPE_EXC_PULSES, 0, 108 },
  109. { 4, 2, ACB_TYPE_ASYMMETRIC, FCB_TYPE_EXC_PULSES, 2, 132 },
  110. { 4, 2, ACB_TYPE_ASYMMETRIC, FCB_TYPE_EXC_PULSES, 5, 168 },
  111. { 2, 1, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 0, 64 },
  112. { 2, 1, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 2, 80 },
  113. { 2, 1, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 5, 104 },
  114. { 4, 2, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 0, 108 },
  115. { 4, 2, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 2, 132 },
  116. { 4, 2, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 5, 168 },
  117. { 8, 3, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 0, 176 },
  118. { 8, 3, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 2, 208 },
  119. { 8, 3, ACB_TYPE_HAMMING, FCB_TYPE_EXC_PULSES, 5, 256 }
  120. };
  121. /**
  122. * WMA Voice decoding context.
  123. */
  124. typedef struct {
  125. /**
  126. * @name Global values specified in the stream header / extradata or used all over.
  127. * @{
  128. */
  129. GetBitContext gb; ///< packet bitreader. During decoder init,
  130. ///< it contains the extradata from the
  131. ///< demuxer. During decoding, it contains
  132. ///< packet data.
  133. int8_t vbm_tree[25]; ///< converts VLC codes to frame type
  134. int spillover_bitsize; ///< number of bits used to specify
  135. ///< #spillover_nbits in the packet header
  136. ///< = ceil(log2(ctx->block_align << 3))
  137. int history_nsamples; ///< number of samples in history for signal
  138. ///< prediction (through ACB)
  139. /* postfilter specific values */
  140. int do_apf; ///< whether to apply the averaged
  141. ///< projection filter (APF)
  142. int denoise_strength; ///< strength of denoising in Wiener filter
  143. ///< [0-11]
  144. int denoise_tilt_corr; ///< Whether to apply tilt correction to the
  145. ///< Wiener filter coefficients (postfilter)
  146. int dc_level; ///< Predicted amount of DC noise, based
  147. ///< on which a DC removal filter is used
  148. int lsps; ///< number of LSPs per frame [10 or 16]
  149. int lsp_q_mode; ///< defines quantizer defaults [0, 1]
  150. int lsp_def_mode; ///< defines different sets of LSP defaults
  151. ///< [0, 1]
  152. int frame_lsp_bitsize; ///< size (in bits) of LSPs, when encoded
  153. ///< per-frame (independent coding)
  154. int sframe_lsp_bitsize; ///< size (in bits) of LSPs, when encoded
  155. ///< per superframe (residual coding)
  156. int min_pitch_val; ///< base value for pitch parsing code
  157. int max_pitch_val; ///< max value + 1 for pitch parsing
  158. int pitch_nbits; ///< number of bits used to specify the
  159. ///< pitch value in the frame header
  160. int block_pitch_nbits; ///< number of bits used to specify the
  161. ///< first block's pitch value
  162. int block_pitch_range; ///< range of the block pitch
  163. int block_delta_pitch_nbits; ///< number of bits used to specify the
  164. ///< delta pitch between this and the last
  165. ///< block's pitch value, used in all but
  166. ///< first block
  167. int block_delta_pitch_hrange; ///< 1/2 range of the delta (full range is
  168. ///< from -this to +this-1)
  169. uint16_t block_conv_table[4]; ///< boundaries for block pitch unit/scale
  170. ///< conversion
  171. /**
  172. * @}
  173. *
  174. * @name Packet values specified in the packet header or related to a packet.
  175. *
  176. * A packet is considered to be a single unit of data provided to this
  177. * decoder by the demuxer.
  178. * @{
  179. */
  180. int spillover_nbits; ///< number of bits of the previous packet's
  181. ///< last superframe preceding this
  182. ///< packet's first full superframe (useful
  183. ///< for re-synchronization also)
  184. int has_residual_lsps; ///< if set, superframes contain one set of
  185. ///< LSPs that cover all frames, encoded as
  186. ///< independent and residual LSPs; if not
  187. ///< set, each frame contains its own, fully
  188. ///< independent, LSPs
  189. int skip_bits_next; ///< number of bits to skip at the next call
  190. ///< to #wmavoice_decode_packet() (since
  191. ///< they're part of the previous superframe)
  192. uint8_t sframe_cache[SFRAME_CACHE_MAXSIZE + FF_INPUT_BUFFER_PADDING_SIZE];
  193. ///< cache for superframe data split over
  194. ///< multiple packets
  195. int sframe_cache_size; ///< set to >0 if we have data from an
  196. ///< (incomplete) superframe from a previous
  197. ///< packet that spilled over in the current
  198. ///< packet; specifies the amount of bits in
  199. ///< #sframe_cache
  200. PutBitContext pb; ///< bitstream writer for #sframe_cache
  201. /**
  202. * @}
  203. *
  204. * @name Frame and superframe values
  205. * Superframe and frame data - these can change from frame to frame,
  206. * although some of them do in that case serve as a cache / history for
  207. * the next frame or superframe.
  208. * @{
  209. */
  210. double prev_lsps[MAX_LSPS]; ///< LSPs of the last frame of the previous
  211. ///< superframe
  212. int last_pitch_val; ///< pitch value of the previous frame
  213. int last_acb_type; ///< frame type [0-2] of the previous frame
  214. int pitch_diff_sh16; ///< ((cur_pitch_val - #last_pitch_val)
  215. ///< << 16) / #MAX_FRAMESIZE
  216. float silence_gain; ///< set for use in blocks if #ACB_TYPE_NONE
  217. int aw_idx_is_ext; ///< whether the AW index was encoded in
  218. ///< 8 bits (instead of 6)
  219. int aw_pulse_range; ///< the range over which #aw_pulse_set1()
  220. ///< can apply the pulse, relative to the
  221. ///< value in aw_first_pulse_off. The exact
  222. ///< position of the first AW-pulse is within
  223. ///< [pulse_off, pulse_off + this], and
  224. ///< depends on bitstream values; [16 or 24]
  225. int aw_n_pulses[2]; ///< number of AW-pulses in each block; note
  226. ///< that this number can be negative (in
  227. ///< which case it basically means "zero")
  228. int aw_first_pulse_off[2]; ///< index of first sample to which to
  229. ///< apply AW-pulses, or -0xff if unset
  230. int aw_next_pulse_off_cache; ///< the position (relative to start of the
  231. ///< second block) at which pulses should
  232. ///< start to be positioned, serves as a
  233. ///< cache for pitch-adaptive window pulses
  234. ///< between blocks
  235. int frame_cntr; ///< current frame index [0 - 0xFFFE]; is
  236. ///< only used for comfort noise in #pRNG()
  237. float gain_pred_err[6]; ///< cache for gain prediction
  238. float excitation_history[MAX_SIGNAL_HISTORY];
  239. ///< cache of the signal of previous
  240. ///< superframes, used as a history for
  241. ///< signal generation
  242. float synth_history[MAX_LSPS]; ///< see #excitation_history
  243. /**
  244. * @}
  245. *
  246. * @name Postfilter values
  247. *
  248. * Variables used for postfilter implementation, mostly history for
  249. * smoothing and so on, and context variables for FFT/iFFT.
  250. * @{
  251. */
  252. RDFTContext rdft, irdft; ///< contexts for FFT-calculation in the
  253. ///< postfilter (for denoise filter)
  254. DCTContext dct, dst; ///< contexts for phase shift (in Hilbert
  255. ///< transform, part of postfilter)
  256. float sin[511], cos[511]; ///< 8-bit cosine/sine windows over [-pi,pi]
  257. ///< range
  258. float postfilter_agc; ///< gain control memory, used in
  259. ///< #adaptive_gain_control()
  260. float dcf_mem[2]; ///< DC filter history
  261. float zero_exc_pf[MAX_SIGNAL_HISTORY + MAX_SFRAMESIZE];
  262. ///< zero filter output (i.e. excitation)
  263. ///< by postfilter
  264. float denoise_filter_cache[MAX_FRAMESIZE];
  265. int denoise_filter_cache_size; ///< samples in #denoise_filter_cache
  266. DECLARE_ALIGNED(32, float, tilted_lpcs_pf)[0x80];
  267. ///< aligned buffer for LPC tilting
  268. DECLARE_ALIGNED(32, float, denoise_coeffs_pf)[0x80];
  269. ///< aligned buffer for denoise coefficients
  270. DECLARE_ALIGNED(32, float, synth_filter_out_buf)[0x80 + MAX_LSPS_ALIGN16];
  271. ///< aligned buffer for postfilter speech
  272. ///< synthesis
  273. /**
  274. * @}
  275. */
  276. } WMAVoiceContext;
  277. /**
  278. * Set up the variable bit mode (VBM) tree from container extradata.
  279. * @param gb bit I/O context.
  280. * The bit context (s->gb) should be loaded with byte 23-46 of the
  281. * container extradata (i.e. the ones containing the VBM tree).
  282. * @param vbm_tree pointer to array to which the decoded VBM tree will be
  283. * written.
  284. * @return 0 on success, <0 on error.
  285. */
  286. static av_cold int decode_vbmtree(GetBitContext *gb, int8_t vbm_tree[25])
  287. {
  288. static const uint8_t bits[] = {
  289. 2, 2, 2, 4, 4, 4,
  290. 6, 6, 6, 8, 8, 8,
  291. 10, 10, 10, 12, 12, 12,
  292. 14, 14, 14, 14
  293. };
  294. static const uint16_t codes[] = {
  295. 0x0000, 0x0001, 0x0002, // 00/01/10
  296. 0x000c, 0x000d, 0x000e, // 11+00/01/10
  297. 0x003c, 0x003d, 0x003e, // 1111+00/01/10
  298. 0x00fc, 0x00fd, 0x00fe, // 111111+00/01/10
  299. 0x03fc, 0x03fd, 0x03fe, // 11111111+00/01/10
  300. 0x0ffc, 0x0ffd, 0x0ffe, // 1111111111+00/01/10
  301. 0x3ffc, 0x3ffd, 0x3ffe, 0x3fff // 111111111111+xx
  302. };
  303. int cntr[8] = { 0 }, n, res;
  304. memset(vbm_tree, 0xff, sizeof(vbm_tree[0]) * 25);
  305. for (n = 0; n < 17; n++) {
  306. res = get_bits(gb, 3);
  307. if (cntr[res] > 3) // should be >= 3 + (res == 7))
  308. return -1;
  309. vbm_tree[res * 3 + cntr[res]++] = n;
  310. }
  311. INIT_VLC_STATIC(&frame_type_vlc, VLC_NBITS, sizeof(bits),
  312. bits, 1, 1, codes, 2, 2, 132);
  313. return 0;
  314. }
  315. /**
  316. * Set up decoder with parameters from demuxer (extradata etc.).
  317. */
  318. static av_cold int wmavoice_decode_init(AVCodecContext *ctx)
  319. {
  320. int n, flags, pitch_range, lsp16_flag;
  321. WMAVoiceContext *s = ctx->priv_data;
  322. /**
  323. * Extradata layout:
  324. * - byte 0-18: WMAPro-in-WMAVoice extradata (see wmaprodec.c),
  325. * - byte 19-22: flags field (annoyingly in LE; see below for known
  326. * values),
  327. * - byte 23-46: variable bitmode tree (really just 17 * 3 bits,
  328. * rest is 0).
  329. */
  330. if (ctx->extradata_size != 46) {
  331. av_log(ctx, AV_LOG_ERROR,
  332. "Invalid extradata size %d (should be 46)\n",
  333. ctx->extradata_size);
  334. return -1;
  335. }
  336. flags = AV_RL32(ctx->extradata + 18);
  337. s->spillover_bitsize = 3 + av_ceil_log2(ctx->block_align);
  338. s->do_apf = flags & 0x1;
  339. if (s->do_apf) {
  340. ff_rdft_init(&s->rdft, 7, DFT_R2C);
  341. ff_rdft_init(&s->irdft, 7, IDFT_C2R);
  342. ff_dct_init(&s->dct, 6, DCT_I);
  343. ff_dct_init(&s->dst, 6, DST_I);
  344. ff_sine_window_init(s->cos, 256);
  345. memcpy(&s->sin[255], s->cos, 256 * sizeof(s->cos[0]));
  346. for (n = 0; n < 255; n++) {
  347. s->sin[n] = -s->sin[510 - n];
  348. s->cos[510 - n] = s->cos[n];
  349. }
  350. }
  351. s->denoise_strength = (flags >> 2) & 0xF;
  352. if (s->denoise_strength >= 12) {
  353. av_log(ctx, AV_LOG_ERROR,
  354. "Invalid denoise filter strength %d (max=11)\n",
  355. s->denoise_strength);
  356. return -1;
  357. }
  358. s->denoise_tilt_corr = !!(flags & 0x40);
  359. s->dc_level = (flags >> 7) & 0xF;
  360. s->lsp_q_mode = !!(flags & 0x2000);
  361. s->lsp_def_mode = !!(flags & 0x4000);
  362. lsp16_flag = flags & 0x1000;
  363. if (lsp16_flag) {
  364. s->lsps = 16;
  365. s->frame_lsp_bitsize = 34;
  366. s->sframe_lsp_bitsize = 60;
  367. } else {
  368. s->lsps = 10;
  369. s->frame_lsp_bitsize = 24;
  370. s->sframe_lsp_bitsize = 48;
  371. }
  372. for (n = 0; n < s->lsps; n++)
  373. s->prev_lsps[n] = M_PI * (n + 1.0) / (s->lsps + 1.0);
  374. init_get_bits(&s->gb, ctx->extradata + 22, (ctx->extradata_size - 22) << 3);
  375. if (decode_vbmtree(&s->gb, s->vbm_tree) < 0) {
  376. av_log(ctx, AV_LOG_ERROR, "Invalid VBM tree; broken extradata?\n");
  377. return -1;
  378. }
  379. s->min_pitch_val = ((ctx->sample_rate << 8) / 400 + 50) >> 8;
  380. s->max_pitch_val = ((ctx->sample_rate << 8) * 37 / 2000 + 50) >> 8;
  381. pitch_range = s->max_pitch_val - s->min_pitch_val;
  382. if (pitch_range <= 0) {
  383. av_log(ctx, AV_LOG_ERROR, "Invalid pitch range; broken extradata?\n");
  384. return -1;
  385. }
  386. s->pitch_nbits = av_ceil_log2(pitch_range);
  387. s->last_pitch_val = 40;
  388. s->last_acb_type = ACB_TYPE_NONE;
  389. s->history_nsamples = s->max_pitch_val + 8;
  390. if (s->min_pitch_val < 1 || s->history_nsamples > MAX_SIGNAL_HISTORY) {
  391. int min_sr = ((((1 << 8) - 50) * 400) + 0xFF) >> 8,
  392. max_sr = ((((MAX_SIGNAL_HISTORY - 8) << 8) + 205) * 2000 / 37) >> 8;
  393. av_log(ctx, AV_LOG_ERROR,
  394. "Unsupported samplerate %d (min=%d, max=%d)\n",
  395. ctx->sample_rate, min_sr, max_sr); // 322-22097 Hz
  396. return -1;
  397. }
  398. s->block_conv_table[0] = s->min_pitch_val;
  399. s->block_conv_table[1] = (pitch_range * 25) >> 6;
  400. s->block_conv_table[2] = (pitch_range * 44) >> 6;
  401. s->block_conv_table[3] = s->max_pitch_val - 1;
  402. s->block_delta_pitch_hrange = (pitch_range >> 3) & ~0xF;
  403. if (s->block_delta_pitch_hrange <= 0) {
  404. av_log(ctx, AV_LOG_ERROR, "Invalid delta pitch hrange; broken extradata?\n");
  405. return -1;
  406. }
  407. s->block_delta_pitch_nbits = 1 + av_ceil_log2(s->block_delta_pitch_hrange);
  408. s->block_pitch_range = s->block_conv_table[2] +
  409. s->block_conv_table[3] + 1 +
  410. 2 * (s->block_conv_table[1] - 2 * s->min_pitch_val);
  411. s->block_pitch_nbits = av_ceil_log2(s->block_pitch_range);
  412. ctx->channels = 1;
  413. ctx->channel_layout = AV_CH_LAYOUT_MONO;
  414. ctx->sample_fmt = AV_SAMPLE_FMT_FLT;
  415. return 0;
  416. }
  417. /**
  418. * @name Postfilter functions
  419. * Postfilter functions (gain control, wiener denoise filter, DC filter,
  420. * kalman smoothening, plus surrounding code to wrap it)
  421. * @{
  422. */
  423. /**
  424. * Adaptive gain control (as used in postfilter).
  425. *
  426. * Identical to #ff_adaptive_gain_control() in acelp_vectors.c, except
  427. * that the energy here is calculated using sum(abs(...)), whereas the
  428. * other codecs (e.g. AMR-NB, SIPRO) use sqrt(dotproduct(...)).
  429. *
  430. * @param out output buffer for filtered samples
  431. * @param in input buffer containing the samples as they are after the
  432. * postfilter steps so far
  433. * @param speech_synth input buffer containing speech synth before postfilter
  434. * @param size input buffer size
  435. * @param alpha exponential filter factor
  436. * @param gain_mem pointer to filter memory (single float)
  437. */
  438. static void adaptive_gain_control(float *out, const float *in,
  439. const float *speech_synth,
  440. int size, float alpha, float *gain_mem)
  441. {
  442. int i;
  443. float speech_energy = 0.0, postfilter_energy = 0.0, gain_scale_factor;
  444. float mem = *gain_mem;
  445. for (i = 0; i < size; i++) {
  446. speech_energy += fabsf(speech_synth[i]);
  447. postfilter_energy += fabsf(in[i]);
  448. }
  449. gain_scale_factor = (1.0 - alpha) * speech_energy / postfilter_energy;
  450. for (i = 0; i < size; i++) {
  451. mem = alpha * mem + gain_scale_factor;
  452. out[i] = in[i] * mem;
  453. }
  454. *gain_mem = mem;
  455. }
  456. /**
  457. * Kalman smoothing function.
  458. *
  459. * This function looks back pitch +/- 3 samples back into history to find
  460. * the best fitting curve (that one giving the optimal gain of the two
  461. * signals, i.e. the highest dot product between the two), and then
  462. * uses that signal history to smoothen the output of the speech synthesis
  463. * filter.
  464. *
  465. * @param s WMA Voice decoding context
  466. * @param pitch pitch of the speech signal
  467. * @param in input speech signal
  468. * @param out output pointer for smoothened signal
  469. * @param size input/output buffer size
  470. *
  471. * @returns -1 if no smoothening took place, e.g. because no optimal
  472. * fit could be found, or 0 on success.
  473. */
  474. static int kalman_smoothen(WMAVoiceContext *s, int pitch,
  475. const float *in, float *out, int size)
  476. {
  477. int n;
  478. float optimal_gain = 0, dot;
  479. const float *ptr = &in[-FFMAX(s->min_pitch_val, pitch - 3)],
  480. *end = &in[-FFMIN(s->max_pitch_val, pitch + 3)],
  481. *best_hist_ptr;
  482. /* find best fitting point in history */
  483. do {
  484. dot = avpriv_scalarproduct_float_c(in, ptr, size);
  485. if (dot > optimal_gain) {
  486. optimal_gain = dot;
  487. best_hist_ptr = ptr;
  488. }
  489. } while (--ptr >= end);
  490. if (optimal_gain <= 0)
  491. return -1;
  492. dot = avpriv_scalarproduct_float_c(best_hist_ptr, best_hist_ptr, size);
  493. if (dot <= 0) // would be 1.0
  494. return -1;
  495. if (optimal_gain <= dot) {
  496. dot = dot / (dot + 0.6 * optimal_gain); // 0.625-1.000
  497. } else
  498. dot = 0.625;
  499. /* actual smoothing */
  500. for (n = 0; n < size; n++)
  501. out[n] = best_hist_ptr[n] + dot * (in[n] - best_hist_ptr[n]);
  502. return 0;
  503. }
  504. /**
  505. * Get the tilt factor of a formant filter from its transfer function
  506. * @see #tilt_factor() in amrnbdec.c, which does essentially the same,
  507. * but somehow (??) it does a speech synthesis filter in the
  508. * middle, which is missing here
  509. *
  510. * @param lpcs LPC coefficients
  511. * @param n_lpcs Size of LPC buffer
  512. * @returns the tilt factor
  513. */
  514. static float tilt_factor(const float *lpcs, int n_lpcs)
  515. {
  516. float rh0, rh1;
  517. rh0 = 1.0 + avpriv_scalarproduct_float_c(lpcs, lpcs, n_lpcs);
  518. rh1 = lpcs[0] + avpriv_scalarproduct_float_c(lpcs, &lpcs[1], n_lpcs - 1);
  519. return rh1 / rh0;
  520. }
  521. /**
  522. * Derive denoise filter coefficients (in real domain) from the LPCs.
  523. */
  524. static void calc_input_response(WMAVoiceContext *s, float *lpcs,
  525. int fcb_type, float *coeffs, int remainder)
  526. {
  527. float last_coeff, min = 15.0, max = -15.0;
  528. float irange, angle_mul, gain_mul, range, sq;
  529. int n, idx;
  530. /* Create frequency power spectrum of speech input (i.e. RDFT of LPCs) */
  531. s->rdft.rdft_calc(&s->rdft, lpcs);
  532. #define log_range(var, assign) do { \
  533. float tmp = log10f(assign); var = tmp; \
  534. max = FFMAX(max, tmp); min = FFMIN(min, tmp); \
  535. } while (0)
  536. log_range(last_coeff, lpcs[1] * lpcs[1]);
  537. for (n = 1; n < 64; n++)
  538. log_range(lpcs[n], lpcs[n * 2] * lpcs[n * 2] +
  539. lpcs[n * 2 + 1] * lpcs[n * 2 + 1]);
  540. log_range(lpcs[0], lpcs[0] * lpcs[0]);
  541. #undef log_range
  542. range = max - min;
  543. lpcs[64] = last_coeff;
  544. /* Now, use this spectrum to pick out these frequencies with higher
  545. * (relative) power/energy (which we then take to be "not noise"),
  546. * and set up a table (still in lpc[]) of (relative) gains per frequency.
  547. * These frequencies will be maintained, while others ("noise") will be
  548. * decreased in the filter output. */
  549. irange = 64.0 / range; // so irange*(max-value) is in the range [0, 63]
  550. gain_mul = range * (fcb_type == FCB_TYPE_HARDCODED ? (5.0 / 13.0) :
  551. (5.0 / 14.7));
  552. angle_mul = gain_mul * (8.0 * M_LN10 / M_PI);
  553. for (n = 0; n <= 64; n++) {
  554. float pwr;
  555. idx = FFMAX(0, lrint((max - lpcs[n]) * irange) - 1);
  556. pwr = wmavoice_denoise_power_table[s->denoise_strength][idx];
  557. lpcs[n] = angle_mul * pwr;
  558. /* 70.57 =~ 1/log10(1.0331663) */
  559. idx = (pwr * gain_mul - 0.0295) * 70.570526123;
  560. if (idx > 127) { // fallback if index falls outside table range
  561. coeffs[n] = wmavoice_energy_table[127] *
  562. powf(1.0331663, idx - 127);
  563. } else
  564. coeffs[n] = wmavoice_energy_table[FFMAX(0, idx)];
  565. }
  566. /* calculate the Hilbert transform of the gains, which we do (since this
  567. * is a sinus input) by doing a phase shift (in theory, H(sin())=cos()).
  568. * Hilbert_Transform(RDFT(x)) = Laplace_Transform(x), which calculates the
  569. * "moment" of the LPCs in this filter. */
  570. s->dct.dct_calc(&s->dct, lpcs);
  571. s->dst.dct_calc(&s->dst, lpcs);
  572. /* Split out the coefficient indexes into phase/magnitude pairs */
  573. idx = 255 + av_clip(lpcs[64], -255, 255);
  574. coeffs[0] = coeffs[0] * s->cos[idx];
  575. idx = 255 + av_clip(lpcs[64] - 2 * lpcs[63], -255, 255);
  576. last_coeff = coeffs[64] * s->cos[idx];
  577. for (n = 63;; n--) {
  578. idx = 255 + av_clip(-lpcs[64] - 2 * lpcs[n - 1], -255, 255);
  579. coeffs[n * 2 + 1] = coeffs[n] * s->sin[idx];
  580. coeffs[n * 2] = coeffs[n] * s->cos[idx];
  581. if (!--n) break;
  582. idx = 255 + av_clip( lpcs[64] - 2 * lpcs[n - 1], -255, 255);
  583. coeffs[n * 2 + 1] = coeffs[n] * s->sin[idx];
  584. coeffs[n * 2] = coeffs[n] * s->cos[idx];
  585. }
  586. coeffs[1] = last_coeff;
  587. /* move into real domain */
  588. s->irdft.rdft_calc(&s->irdft, coeffs);
  589. /* tilt correction and normalize scale */
  590. memset(&coeffs[remainder], 0, sizeof(coeffs[0]) * (128 - remainder));
  591. if (s->denoise_tilt_corr) {
  592. float tilt_mem = 0;
  593. coeffs[remainder - 1] = 0;
  594. ff_tilt_compensation(&tilt_mem,
  595. -1.8 * tilt_factor(coeffs, remainder - 1),
  596. coeffs, remainder);
  597. }
  598. sq = (1.0 / 64.0) * sqrtf(1 / avpriv_scalarproduct_float_c(coeffs, coeffs,
  599. remainder));
  600. for (n = 0; n < remainder; n++)
  601. coeffs[n] *= sq;
  602. }
  603. /**
  604. * This function applies a Wiener filter on the (noisy) speech signal as
  605. * a means to denoise it.
  606. *
  607. * - take RDFT of LPCs to get the power spectrum of the noise + speech;
  608. * - using this power spectrum, calculate (for each frequency) the Wiener
  609. * filter gain, which depends on the frequency power and desired level
  610. * of noise subtraction (when set too high, this leads to artifacts)
  611. * We can do this symmetrically over the X-axis (so 0-4kHz is the inverse
  612. * of 4-8kHz);
  613. * - by doing a phase shift, calculate the Hilbert transform of this array
  614. * of per-frequency filter-gains to get the filtering coefficients;
  615. * - smoothen/normalize/de-tilt these filter coefficients as desired;
  616. * - take RDFT of noisy sound, apply the coefficients and take its IRDFT
  617. * to get the denoised speech signal;
  618. * - the leftover (i.e. output of the IRDFT on denoised speech data beyond
  619. * the frame boundary) are saved and applied to subsequent frames by an
  620. * overlap-add method (otherwise you get clicking-artifacts).
  621. *
  622. * @param s WMA Voice decoding context
  623. * @param fcb_type Frame (codebook) type
  624. * @param synth_pf input: the noisy speech signal, output: denoised speech
  625. * data; should be 16-byte aligned (for ASM purposes)
  626. * @param size size of the speech data
  627. * @param lpcs LPCs used to synthesize this frame's speech data
  628. */
  629. static void wiener_denoise(WMAVoiceContext *s, int fcb_type,
  630. float *synth_pf, int size,
  631. const float *lpcs)
  632. {
  633. int remainder, lim, n;
  634. if (fcb_type != FCB_TYPE_SILENCE) {
  635. float *tilted_lpcs = s->tilted_lpcs_pf,
  636. *coeffs = s->denoise_coeffs_pf, tilt_mem = 0;
  637. tilted_lpcs[0] = 1.0;
  638. memcpy(&tilted_lpcs[1], lpcs, sizeof(lpcs[0]) * s->lsps);
  639. memset(&tilted_lpcs[s->lsps + 1], 0,
  640. sizeof(tilted_lpcs[0]) * (128 - s->lsps - 1));
  641. ff_tilt_compensation(&tilt_mem, 0.7 * tilt_factor(lpcs, s->lsps),
  642. tilted_lpcs, s->lsps + 2);
  643. /* The IRDFT output (127 samples for 7-bit filter) beyond the frame
  644. * size is applied to the next frame. All input beyond this is zero,
  645. * and thus all output beyond this will go towards zero, hence we can
  646. * limit to min(size-1, 127-size) as a performance consideration. */
  647. remainder = FFMIN(127 - size, size - 1);
  648. calc_input_response(s, tilted_lpcs, fcb_type, coeffs, remainder);
  649. /* apply coefficients (in frequency spectrum domain), i.e. complex
  650. * number multiplication */
  651. memset(&synth_pf[size], 0, sizeof(synth_pf[0]) * (128 - size));
  652. s->rdft.rdft_calc(&s->rdft, synth_pf);
  653. s->rdft.rdft_calc(&s->rdft, coeffs);
  654. synth_pf[0] *= coeffs[0];
  655. synth_pf[1] *= coeffs[1];
  656. for (n = 1; n < 64; n++) {
  657. float v1 = synth_pf[n * 2], v2 = synth_pf[n * 2 + 1];
  658. synth_pf[n * 2] = v1 * coeffs[n * 2] - v2 * coeffs[n * 2 + 1];
  659. synth_pf[n * 2 + 1] = v2 * coeffs[n * 2] + v1 * coeffs[n * 2 + 1];
  660. }
  661. s->irdft.rdft_calc(&s->irdft, synth_pf);
  662. }
  663. /* merge filter output with the history of previous runs */
  664. if (s->denoise_filter_cache_size) {
  665. lim = FFMIN(s->denoise_filter_cache_size, size);
  666. for (n = 0; n < lim; n++)
  667. synth_pf[n] += s->denoise_filter_cache[n];
  668. s->denoise_filter_cache_size -= lim;
  669. memmove(s->denoise_filter_cache, &s->denoise_filter_cache[size],
  670. sizeof(s->denoise_filter_cache[0]) * s->denoise_filter_cache_size);
  671. }
  672. /* move remainder of filter output into a cache for future runs */
  673. if (fcb_type != FCB_TYPE_SILENCE) {
  674. lim = FFMIN(remainder, s->denoise_filter_cache_size);
  675. for (n = 0; n < lim; n++)
  676. s->denoise_filter_cache[n] += synth_pf[size + n];
  677. if (lim < remainder) {
  678. memcpy(&s->denoise_filter_cache[lim], &synth_pf[size + lim],
  679. sizeof(s->denoise_filter_cache[0]) * (remainder - lim));
  680. s->denoise_filter_cache_size = remainder;
  681. }
  682. }
  683. }
  684. /**
  685. * Averaging projection filter, the postfilter used in WMAVoice.
  686. *
  687. * This uses the following steps:
  688. * - A zero-synthesis filter (generate excitation from synth signal)
  689. * - Kalman smoothing on excitation, based on pitch
  690. * - Re-synthesized smoothened output
  691. * - Iterative Wiener denoise filter
  692. * - Adaptive gain filter
  693. * - DC filter
  694. *
  695. * @param s WMAVoice decoding context
  696. * @param synth Speech synthesis output (before postfilter)
  697. * @param samples Output buffer for filtered samples
  698. * @param size Buffer size of synth & samples
  699. * @param lpcs Generated LPCs used for speech synthesis
  700. * @param zero_exc_pf destination for zero synthesis filter (16-byte aligned)
  701. * @param fcb_type Frame type (silence, hardcoded, AW-pulses or FCB-pulses)
  702. * @param pitch Pitch of the input signal
  703. */
  704. static void postfilter(WMAVoiceContext *s, const float *synth,
  705. float *samples, int size,
  706. const float *lpcs, float *zero_exc_pf,
  707. int fcb_type, int pitch)
  708. {
  709. float synth_filter_in_buf[MAX_FRAMESIZE / 2],
  710. *synth_pf = &s->synth_filter_out_buf[MAX_LSPS_ALIGN16],
  711. *synth_filter_in = zero_exc_pf;
  712. assert(size <= MAX_FRAMESIZE / 2);
  713. /* generate excitation from input signal */
  714. ff_celp_lp_zero_synthesis_filterf(zero_exc_pf, lpcs, synth, size, s->lsps);
  715. if (fcb_type >= FCB_TYPE_AW_PULSES &&
  716. !kalman_smoothen(s, pitch, zero_exc_pf, synth_filter_in_buf, size))
  717. synth_filter_in = synth_filter_in_buf;
  718. /* re-synthesize speech after smoothening, and keep history */
  719. ff_celp_lp_synthesis_filterf(synth_pf, lpcs,
  720. synth_filter_in, size, s->lsps);
  721. memcpy(&synth_pf[-s->lsps], &synth_pf[size - s->lsps],
  722. sizeof(synth_pf[0]) * s->lsps);
  723. wiener_denoise(s, fcb_type, synth_pf, size, lpcs);
  724. adaptive_gain_control(samples, synth_pf, synth, size, 0.99,
  725. &s->postfilter_agc);
  726. if (s->dc_level > 8) {
  727. /* remove ultra-low frequency DC noise / highpass filter;
  728. * coefficients are identical to those used in SIPR decoding,
  729. * and very closely resemble those used in AMR-NB decoding. */
  730. ff_acelp_apply_order_2_transfer_function(samples, samples,
  731. (const float[2]) { -1.99997, 1.0 },
  732. (const float[2]) { -1.9330735188, 0.93589198496 },
  733. 0.93980580475, s->dcf_mem, size);
  734. }
  735. }
  736. /**
  737. * @}
  738. */
  739. /**
  740. * Dequantize LSPs
  741. * @param lsps output pointer to the array that will hold the LSPs
  742. * @param num number of LSPs to be dequantized
  743. * @param values quantized values, contains n_stages values
  744. * @param sizes range (i.e. max value) of each quantized value
  745. * @param n_stages number of dequantization runs
  746. * @param table dequantization table to be used
  747. * @param mul_q LSF multiplier
  748. * @param base_q base (lowest) LSF values
  749. */
  750. static void dequant_lsps(double *lsps, int num,
  751. const uint16_t *values,
  752. const uint16_t *sizes,
  753. int n_stages, const uint8_t *table,
  754. const double *mul_q,
  755. const double *base_q)
  756. {
  757. int n, m;
  758. memset(lsps, 0, num * sizeof(*lsps));
  759. for (n = 0; n < n_stages; n++) {
  760. const uint8_t *t_off = &table[values[n] * num];
  761. double base = base_q[n], mul = mul_q[n];
  762. for (m = 0; m < num; m++)
  763. lsps[m] += base + mul * t_off[m];
  764. table += sizes[n] * num;
  765. }
  766. }
  767. /**
  768. * @name LSP dequantization routines
  769. * LSP dequantization routines, for 10/16LSPs and independent/residual coding.
  770. * @note we assume enough bits are available, caller should check.
  771. * lsp10i() consumes 24 bits; lsp10r() consumes an additional 24 bits;
  772. * lsp16i() consumes 34 bits; lsp16r() consumes an additional 26 bits.
  773. * @{
  774. */
  775. /**
  776. * Parse 10 independently-coded LSPs.
  777. */
  778. static void dequant_lsp10i(GetBitContext *gb, double *lsps)
  779. {
  780. static const uint16_t vec_sizes[4] = { 256, 64, 32, 32 };
  781. static const double mul_lsf[4] = {
  782. 5.2187144800e-3, 1.4626986422e-3,
  783. 9.6179549166e-4, 1.1325736225e-3
  784. };
  785. static const double base_lsf[4] = {
  786. M_PI * -2.15522e-1, M_PI * -6.1646e-2,
  787. M_PI * -3.3486e-2, M_PI * -5.7408e-2
  788. };
  789. uint16_t v[4];
  790. v[0] = get_bits(gb, 8);
  791. v[1] = get_bits(gb, 6);
  792. v[2] = get_bits(gb, 5);
  793. v[3] = get_bits(gb, 5);
  794. dequant_lsps(lsps, 10, v, vec_sizes, 4, wmavoice_dq_lsp10i,
  795. mul_lsf, base_lsf);
  796. }
  797. /**
  798. * Parse 10 independently-coded LSPs, and then derive the tables to
  799. * generate LSPs for the other frames from them (residual coding).
  800. */
  801. static void dequant_lsp10r(GetBitContext *gb,
  802. double *i_lsps, const double *old,
  803. double *a1, double *a2, int q_mode)
  804. {
  805. static const uint16_t vec_sizes[3] = { 128, 64, 64 };
  806. static const double mul_lsf[3] = {
  807. 2.5807601174e-3, 1.2354460219e-3, 1.1763821673e-3
  808. };
  809. static const double base_lsf[3] = {
  810. M_PI * -1.07448e-1, M_PI * -5.2706e-2, M_PI * -5.1634e-2
  811. };
  812. const float (*ipol_tab)[2][10] = q_mode ?
  813. wmavoice_lsp10_intercoeff_b : wmavoice_lsp10_intercoeff_a;
  814. uint16_t interpol, v[3];
  815. int n;
  816. dequant_lsp10i(gb, i_lsps);
  817. interpol = get_bits(gb, 5);
  818. v[0] = get_bits(gb, 7);
  819. v[1] = get_bits(gb, 6);
  820. v[2] = get_bits(gb, 6);
  821. for (n = 0; n < 10; n++) {
  822. double delta = old[n] - i_lsps[n];
  823. a1[n] = ipol_tab[interpol][0][n] * delta + i_lsps[n];
  824. a1[10 + n] = ipol_tab[interpol][1][n] * delta + i_lsps[n];
  825. }
  826. dequant_lsps(a2, 20, v, vec_sizes, 3, wmavoice_dq_lsp10r,
  827. mul_lsf, base_lsf);
  828. }
  829. /**
  830. * Parse 16 independently-coded LSPs.
  831. */
  832. static void dequant_lsp16i(GetBitContext *gb, double *lsps)
  833. {
  834. static const uint16_t vec_sizes[5] = { 256, 64, 128, 64, 128 };
  835. static const double mul_lsf[5] = {
  836. 3.3439586280e-3, 6.9908173703e-4,
  837. 3.3216608306e-3, 1.0334960326e-3,
  838. 3.1899104283e-3
  839. };
  840. static const double base_lsf[5] = {
  841. M_PI * -1.27576e-1, M_PI * -2.4292e-2,
  842. M_PI * -1.28094e-1, M_PI * -3.2128e-2,
  843. M_PI * -1.29816e-1
  844. };
  845. uint16_t v[5];
  846. v[0] = get_bits(gb, 8);
  847. v[1] = get_bits(gb, 6);
  848. v[2] = get_bits(gb, 7);
  849. v[3] = get_bits(gb, 6);
  850. v[4] = get_bits(gb, 7);
  851. dequant_lsps( lsps, 5, v, vec_sizes, 2,
  852. wmavoice_dq_lsp16i1, mul_lsf, base_lsf);
  853. dequant_lsps(&lsps[5], 5, &v[2], &vec_sizes[2], 2,
  854. wmavoice_dq_lsp16i2, &mul_lsf[2], &base_lsf[2]);
  855. dequant_lsps(&lsps[10], 6, &v[4], &vec_sizes[4], 1,
  856. wmavoice_dq_lsp16i3, &mul_lsf[4], &base_lsf[4]);
  857. }
  858. /**
  859. * Parse 16 independently-coded LSPs, and then derive the tables to
  860. * generate LSPs for the other frames from them (residual coding).
  861. */
  862. static void dequant_lsp16r(GetBitContext *gb,
  863. double *i_lsps, const double *old,
  864. double *a1, double *a2, int q_mode)
  865. {
  866. static const uint16_t vec_sizes[3] = { 128, 128, 128 };
  867. static const double mul_lsf[3] = {
  868. 1.2232979501e-3, 1.4062241527e-3, 1.6114744851e-3
  869. };
  870. static const double base_lsf[3] = {
  871. M_PI * -5.5830e-2, M_PI * -5.2908e-2, M_PI * -5.4776e-2
  872. };
  873. const float (*ipol_tab)[2][16] = q_mode ?
  874. wmavoice_lsp16_intercoeff_b : wmavoice_lsp16_intercoeff_a;
  875. uint16_t interpol, v[3];
  876. int n;
  877. dequant_lsp16i(gb, i_lsps);
  878. interpol = get_bits(gb, 5);
  879. v[0] = get_bits(gb, 7);
  880. v[1] = get_bits(gb, 7);
  881. v[2] = get_bits(gb, 7);
  882. for (n = 0; n < 16; n++) {
  883. double delta = old[n] - i_lsps[n];
  884. a1[n] = ipol_tab[interpol][0][n] * delta + i_lsps[n];
  885. a1[16 + n] = ipol_tab[interpol][1][n] * delta + i_lsps[n];
  886. }
  887. dequant_lsps( a2, 10, v, vec_sizes, 1,
  888. wmavoice_dq_lsp16r1, mul_lsf, base_lsf);
  889. dequant_lsps(&a2[10], 10, &v[1], &vec_sizes[1], 1,
  890. wmavoice_dq_lsp16r2, &mul_lsf[1], &base_lsf[1]);
  891. dequant_lsps(&a2[20], 12, &v[2], &vec_sizes[2], 1,
  892. wmavoice_dq_lsp16r3, &mul_lsf[2], &base_lsf[2]);
  893. }
  894. /**
  895. * @}
  896. * @name Pitch-adaptive window coding functions
  897. * The next few functions are for pitch-adaptive window coding.
  898. * @{
  899. */
  900. /**
  901. * Parse the offset of the first pitch-adaptive window pulses, and
  902. * the distribution of pulses between the two blocks in this frame.
  903. * @param s WMA Voice decoding context private data
  904. * @param gb bit I/O context
  905. * @param pitch pitch for each block in this frame
  906. */
  907. static void aw_parse_coords(WMAVoiceContext *s, GetBitContext *gb,
  908. const int *pitch)
  909. {
  910. static const int16_t start_offset[94] = {
  911. -11, -9, -7, -5, -3, -1, 1, 3, 5, 7, 9, 11,
  912. 13, 15, 18, 17, 19, 20, 21, 22, 23, 24, 25, 26,
  913. 27, 28, 29, 30, 31, 32, 33, 35, 37, 39, 41, 43,
  914. 45, 47, 49, 51, 53, 55, 57, 59, 61, 63, 65, 67,
  915. 69, 71, 73, 75, 77, 79, 81, 83, 85, 87, 89, 91,
  916. 93, 95, 97, 99, 101, 103, 105, 107, 109, 111, 113, 115,
  917. 117, 119, 121, 123, 125, 127, 129, 131, 133, 135, 137, 139,
  918. 141, 143, 145, 147, 149, 151, 153, 155, 157, 159
  919. };
  920. int bits, offset;
  921. /* position of pulse */
  922. s->aw_idx_is_ext = 0;
  923. if ((bits = get_bits(gb, 6)) >= 54) {
  924. s->aw_idx_is_ext = 1;
  925. bits += (bits - 54) * 3 + get_bits(gb, 2);
  926. }
  927. /* for a repeated pulse at pulse_off with a pitch_lag of pitch[], count
  928. * the distribution of the pulses in each block contained in this frame. */
  929. s->aw_pulse_range = FFMIN(pitch[0], pitch[1]) > 32 ? 24 : 16;
  930. for (offset = start_offset[bits]; offset < 0; offset += pitch[0]) ;
  931. s->aw_n_pulses[0] = (pitch[0] - 1 + MAX_FRAMESIZE / 2 - offset) / pitch[0];
  932. s->aw_first_pulse_off[0] = offset - s->aw_pulse_range / 2;
  933. offset += s->aw_n_pulses[0] * pitch[0];
  934. s->aw_n_pulses[1] = (pitch[1] - 1 + MAX_FRAMESIZE - offset) / pitch[1];
  935. s->aw_first_pulse_off[1] = offset - (MAX_FRAMESIZE + s->aw_pulse_range) / 2;
  936. /* if continuing from a position before the block, reset position to
  937. * start of block (when corrected for the range over which it can be
  938. * spread in aw_pulse_set1()). */
  939. if (start_offset[bits] < MAX_FRAMESIZE / 2) {
  940. while (s->aw_first_pulse_off[1] - pitch[1] + s->aw_pulse_range > 0)
  941. s->aw_first_pulse_off[1] -= pitch[1];
  942. if (start_offset[bits] < 0)
  943. while (s->aw_first_pulse_off[0] - pitch[0] + s->aw_pulse_range > 0)
  944. s->aw_first_pulse_off[0] -= pitch[0];
  945. }
  946. }
  947. /**
  948. * Apply second set of pitch-adaptive window pulses.
  949. * @param s WMA Voice decoding context private data
  950. * @param gb bit I/O context
  951. * @param block_idx block index in frame [0, 1]
  952. * @param fcb structure containing fixed codebook vector info
  953. */
  954. static void aw_pulse_set2(WMAVoiceContext *s, GetBitContext *gb,
  955. int block_idx, AMRFixed *fcb)
  956. {
  957. uint16_t use_mask_mem[9]; // only 5 are used, rest is padding
  958. uint16_t *use_mask = use_mask_mem + 2;
  959. /* in this function, idx is the index in the 80-bit (+ padding) use_mask
  960. * bit-array. Since use_mask consists of 16-bit values, the lower 4 bits
  961. * of idx are the position of the bit within a particular item in the
  962. * array (0 being the most significant bit, and 15 being the least
  963. * significant bit), and the remainder (>> 4) is the index in the
  964. * use_mask[]-array. This is faster and uses less memory than using a
  965. * 80-byte/80-int array. */
  966. int pulse_off = s->aw_first_pulse_off[block_idx],
  967. pulse_start, n, idx, range, aidx, start_off = 0;
  968. /* set offset of first pulse to within this block */
  969. if (s->aw_n_pulses[block_idx] > 0)
  970. while (pulse_off + s->aw_pulse_range < 1)
  971. pulse_off += fcb->pitch_lag;
  972. /* find range per pulse */
  973. if (s->aw_n_pulses[0] > 0) {
  974. if (block_idx == 0) {
  975. range = 32;
  976. } else /* block_idx = 1 */ {
  977. range = 8;
  978. if (s->aw_n_pulses[block_idx] > 0)
  979. pulse_off = s->aw_next_pulse_off_cache;
  980. }
  981. } else
  982. range = 16;
  983. pulse_start = s->aw_n_pulses[block_idx] > 0 ? pulse_off - range / 2 : 0;
  984. /* aw_pulse_set1() already applies pulses around pulse_off (to be exactly,
  985. * in the range of [pulse_off, pulse_off + s->aw_pulse_range], and thus
  986. * we exclude that range from being pulsed again in this function. */
  987. memset(&use_mask[-2], 0, 2 * sizeof(use_mask[0]));
  988. memset( use_mask, -1, 5 * sizeof(use_mask[0]));
  989. memset(&use_mask[5], 0, 2 * sizeof(use_mask[0]));
  990. if (s->aw_n_pulses[block_idx] > 0)
  991. for (idx = pulse_off; idx < MAX_FRAMESIZE / 2; idx += fcb->pitch_lag) {
  992. int excl_range = s->aw_pulse_range; // always 16 or 24
  993. uint16_t *use_mask_ptr = &use_mask[idx >> 4];
  994. int first_sh = 16 - (idx & 15);
  995. *use_mask_ptr++ &= 0xFFFFu << first_sh;
  996. excl_range -= first_sh;
  997. if (excl_range >= 16) {
  998. *use_mask_ptr++ = 0;
  999. *use_mask_ptr &= 0xFFFF >> (excl_range - 16);
  1000. } else
  1001. *use_mask_ptr &= 0xFFFF >> excl_range;
  1002. }
  1003. /* find the 'aidx'th offset that is not excluded */
  1004. aidx = get_bits(gb, s->aw_n_pulses[0] > 0 ? 5 - 2 * block_idx : 4);
  1005. for (n = 0; n <= aidx; pulse_start++) {
  1006. for (idx = pulse_start; idx < 0; idx += fcb->pitch_lag) ;
  1007. if (idx >= MAX_FRAMESIZE / 2) { // find from zero
  1008. if (use_mask[0]) idx = 0x0F;
  1009. else if (use_mask[1]) idx = 0x1F;
  1010. else if (use_mask[2]) idx = 0x2F;
  1011. else if (use_mask[3]) idx = 0x3F;
  1012. else if (use_mask[4]) idx = 0x4F;
  1013. else return;
  1014. idx -= av_log2_16bit(use_mask[idx >> 4]);
  1015. }
  1016. if (use_mask[idx >> 4] & (0x8000 >> (idx & 15))) {
  1017. use_mask[idx >> 4] &= ~(0x8000 >> (idx & 15));
  1018. n++;
  1019. start_off = idx;
  1020. }
  1021. }
  1022. fcb->x[fcb->n] = start_off;
  1023. fcb->y[fcb->n] = get_bits1(gb) ? -1.0 : 1.0;
  1024. fcb->n++;
  1025. /* set offset for next block, relative to start of that block */
  1026. n = (MAX_FRAMESIZE / 2 - start_off) % fcb->pitch_lag;
  1027. s->aw_next_pulse_off_cache = n ? fcb->pitch_lag - n : 0;
  1028. }
  1029. /**
  1030. * Apply first set of pitch-adaptive window pulses.
  1031. * @param s WMA Voice decoding context private data
  1032. * @param gb bit I/O context
  1033. * @param block_idx block index in frame [0, 1]
  1034. * @param fcb storage location for fixed codebook pulse info
  1035. */
  1036. static void aw_pulse_set1(WMAVoiceContext *s, GetBitContext *gb,
  1037. int block_idx, AMRFixed *fcb)
  1038. {
  1039. int val = get_bits(gb, 12 - 2 * (s->aw_idx_is_ext && !block_idx));
  1040. float v;
  1041. if (s->aw_n_pulses[block_idx] > 0) {
  1042. int n, v_mask, i_mask, sh, n_pulses;
  1043. if (s->aw_pulse_range == 24) { // 3 pulses, 1:sign + 3:index each
  1044. n_pulses = 3;
  1045. v_mask = 8;
  1046. i_mask = 7;
  1047. sh = 4;
  1048. } else { // 4 pulses, 1:sign + 2:index each
  1049. n_pulses = 4;
  1050. v_mask = 4;
  1051. i_mask = 3;
  1052. sh = 3;
  1053. }
  1054. for (n = n_pulses - 1; n >= 0; n--, val >>= sh) {
  1055. fcb->y[fcb->n] = (val & v_mask) ? -1.0 : 1.0;
  1056. fcb->x[fcb->n] = (val & i_mask) * n_pulses + n +
  1057. s->aw_first_pulse_off[block_idx];
  1058. while (fcb->x[fcb->n] < 0)
  1059. fcb->x[fcb->n] += fcb->pitch_lag;
  1060. if (fcb->x[fcb->n] < MAX_FRAMESIZE / 2)
  1061. fcb->n++;
  1062. }
  1063. } else {
  1064. int num2 = (val & 0x1FF) >> 1, delta, idx;
  1065. if (num2 < 1 * 79) { delta = 1; idx = num2 + 1; }
  1066. else if (num2 < 2 * 78) { delta = 3; idx = num2 + 1 - 1 * 77; }
  1067. else if (num2 < 3 * 77) { delta = 5; idx = num2 + 1 - 2 * 76; }
  1068. else { delta = 7; idx = num2 + 1 - 3 * 75; }
  1069. v = (val & 0x200) ? -1.0 : 1.0;
  1070. fcb->no_repeat_mask |= 3 << fcb->n;
  1071. fcb->x[fcb->n] = idx - delta;
  1072. fcb->y[fcb->n] = v;
  1073. fcb->x[fcb->n + 1] = idx;
  1074. fcb->y[fcb->n + 1] = (val & 1) ? -v : v;
  1075. fcb->n += 2;
  1076. }
  1077. }
  1078. /**
  1079. * @}
  1080. *
  1081. * Generate a random number from frame_cntr and block_idx, which will lief
  1082. * in the range [0, 1000 - block_size] (so it can be used as an index in a
  1083. * table of size 1000 of which you want to read block_size entries).
  1084. *
  1085. * @param frame_cntr current frame number
  1086. * @param block_num current block index
  1087. * @param block_size amount of entries we want to read from a table
  1088. * that has 1000 entries
  1089. * @return a (non-)random number in the [0, 1000 - block_size] range.
  1090. */
  1091. static int pRNG(int frame_cntr, int block_num, int block_size)
  1092. {
  1093. /* array to simplify the calculation of z:
  1094. * y = (x % 9) * 5 + 6;
  1095. * z = (49995 * x) / y;
  1096. * Since y only has 9 values, we can remove the division by using a
  1097. * LUT and using FASTDIV-style divisions. For each of the 9 values
  1098. * of y, we can rewrite z as:
  1099. * z = x * (49995 / y) + x * ((49995 % y) / y)
  1100. * In this table, each col represents one possible value of y, the
  1101. * first number is 49995 / y, and the second is the FASTDIV variant
  1102. * of 49995 % y / y. */
  1103. static const unsigned int div_tbl[9][2] = {
  1104. { 8332, 3 * 715827883U }, // y = 6
  1105. { 4545, 0 * 390451573U }, // y = 11
  1106. { 3124, 11 * 268435456U }, // y = 16
  1107. { 2380, 15 * 204522253U }, // y = 21
  1108. { 1922, 23 * 165191050U }, // y = 26
  1109. { 1612, 23 * 138547333U }, // y = 31
  1110. { 1388, 27 * 119304648U }, // y = 36
  1111. { 1219, 16 * 104755300U }, // y = 41
  1112. { 1086, 39 * 93368855U } // y = 46
  1113. };
  1114. unsigned int z, y, x = MUL16(block_num, 1877) + frame_cntr;
  1115. if (x >= 0xFFFF) x -= 0xFFFF; // max value of x is 8*1877+0xFFFE=0x13AA6,
  1116. // so this is effectively a modulo (%)
  1117. y = x - 9 * MULH(477218589, x); // x % 9
  1118. z = (uint16_t) (x * div_tbl[y][0] + UMULH(x, div_tbl[y][1]));
  1119. // z = x * 49995 / (y * 5 + 6)
  1120. return z % (1000 - block_size);
  1121. }
  1122. /**
  1123. * Parse hardcoded signal for a single block.
  1124. * @note see #synth_block().
  1125. */
  1126. static void synth_block_hardcoded(WMAVoiceContext *s, GetBitContext *gb,
  1127. int block_idx, int size,
  1128. const struct frame_type_desc *frame_desc,
  1129. float *excitation)
  1130. {
  1131. float gain;
  1132. int n, r_idx;
  1133. assert(size <= MAX_FRAMESIZE);
  1134. /* Set the offset from which we start reading wmavoice_std_codebook */
  1135. if (frame_desc->fcb_type == FCB_TYPE_SILENCE) {
  1136. r_idx = pRNG(s->frame_cntr, block_idx, size);
  1137. gain = s->silence_gain;
  1138. } else /* FCB_TYPE_HARDCODED */ {
  1139. r_idx = get_bits(gb, 8);
  1140. gain = wmavoice_gain_universal[get_bits(gb, 6)];
  1141. }
  1142. /* Clear gain prediction parameters */
  1143. memset(s->gain_pred_err, 0, sizeof(s->gain_pred_err));
  1144. /* Apply gain to hardcoded codebook and use that as excitation signal */
  1145. for (n = 0; n < size; n++)
  1146. excitation[n] = wmavoice_std_codebook[r_idx + n] * gain;
  1147. }
  1148. /**
  1149. * Parse FCB/ACB signal for a single block.
  1150. * @note see #synth_block().
  1151. */
  1152. static void synth_block_fcb_acb(WMAVoiceContext *s, GetBitContext *gb,
  1153. int block_idx, int size,
  1154. int block_pitch_sh2,
  1155. const struct frame_type_desc *frame_desc,
  1156. float *excitation)
  1157. {
  1158. static const float gain_coeff[6] = {
  1159. 0.8169, -0.06545, 0.1726, 0.0185, -0.0359, 0.0458
  1160. };
  1161. float pulses[MAX_FRAMESIZE / 2], pred_err, acb_gain, fcb_gain;
  1162. int n, idx, gain_weight;
  1163. AMRFixed fcb;
  1164. assert(size <= MAX_FRAMESIZE / 2);
  1165. memset(pulses, 0, sizeof(*pulses) * size);
  1166. fcb.pitch_lag = block_pitch_sh2 >> 2;
  1167. fcb.pitch_fac = 1.0;
  1168. fcb.no_repeat_mask = 0;
  1169. fcb.n = 0;
  1170. /* For the other frame types, this is where we apply the innovation
  1171. * (fixed) codebook pulses of the speech signal. */
  1172. if (frame_desc->fcb_type == FCB_TYPE_AW_PULSES) {
  1173. aw_pulse_set1(s, gb, block_idx, &fcb);
  1174. aw_pulse_set2(s, gb, block_idx, &fcb);
  1175. } else /* FCB_TYPE_EXC_PULSES */ {
  1176. int offset_nbits = 5 - frame_desc->log_n_blocks;
  1177. fcb.no_repeat_mask = -1;
  1178. /* similar to ff_decode_10_pulses_35bits(), but with single pulses
  1179. * (instead of double) for a subset of pulses */
  1180. for (n = 0; n < 5; n++) {
  1181. float sign;
  1182. int pos1, pos2;
  1183. sign = get_bits1(gb) ? 1.0 : -1.0;
  1184. pos1 = get_bits(gb, offset_nbits);
  1185. fcb.x[fcb.n] = n + 5 * pos1;
  1186. fcb.y[fcb.n++] = sign;
  1187. if (n < frame_desc->dbl_pulses) {
  1188. pos2 = get_bits(gb, offset_nbits);
  1189. fcb.x[fcb.n] = n + 5 * pos2;
  1190. fcb.y[fcb.n++] = (pos1 < pos2) ? -sign : sign;
  1191. }
  1192. }
  1193. }
  1194. ff_set_fixed_vector(pulses, &fcb, 1.0, size);
  1195. /* Calculate gain for adaptive & fixed codebook signal.
  1196. * see ff_amr_set_fixed_gain(). */
  1197. idx = get_bits(gb, 7);
  1198. fcb_gain = expf(avpriv_scalarproduct_float_c(s->gain_pred_err,
  1199. gain_coeff, 6) -
  1200. 5.2409161640 + wmavoice_gain_codebook_fcb[idx]);
  1201. acb_gain = wmavoice_gain_codebook_acb[idx];
  1202. pred_err = av_clipf(wmavoice_gain_codebook_fcb[idx],
  1203. -2.9957322736 /* log(0.05) */,
  1204. 1.6094379124 /* log(5.0) */);
  1205. gain_weight = 8 >> frame_desc->log_n_blocks;
  1206. memmove(&s->gain_pred_err[gain_weight], s->gain_pred_err,
  1207. sizeof(*s->gain_pred_err) * (6 - gain_weight));
  1208. for (n = 0; n < gain_weight; n++)
  1209. s->gain_pred_err[n] = pred_err;
  1210. /* Calculation of adaptive codebook */
  1211. if (frame_desc->acb_type == ACB_TYPE_ASYMMETRIC) {
  1212. int len;
  1213. for (n = 0; n < size; n += len) {
  1214. int next_idx_sh16;
  1215. int abs_idx = block_idx * size + n;
  1216. int pitch_sh16 = (s->last_pitch_val << 16) +
  1217. s->pitch_diff_sh16 * abs_idx;
  1218. int pitch = (pitch_sh16 + 0x6FFF) >> 16;
  1219. int idx_sh16 = ((pitch << 16) - pitch_sh16) * 8 + 0x58000;
  1220. idx = idx_sh16 >> 16;
  1221. if (s->pitch_diff_sh16) {
  1222. if (s->pitch_diff_sh16 > 0) {
  1223. next_idx_sh16 = (idx_sh16) &~ 0xFFFF;
  1224. } else
  1225. next_idx_sh16 = (idx_sh16 + 0x10000) &~ 0xFFFF;
  1226. len = av_clip((idx_sh16 - next_idx_sh16) / s->pitch_diff_sh16 / 8,
  1227. 1, size - n);
  1228. } else
  1229. len = size;
  1230. ff_acelp_interpolatef(&excitation[n], &excitation[n - pitch],
  1231. wmavoice_ipol1_coeffs, 17,
  1232. idx, 9, len);
  1233. }
  1234. } else /* ACB_TYPE_HAMMING */ {
  1235. int block_pitch = block_pitch_sh2 >> 2;
  1236. idx = block_pitch_sh2 & 3;
  1237. if (idx) {
  1238. ff_acelp_interpolatef(excitation, &excitation[-block_pitch],
  1239. wmavoice_ipol2_coeffs, 4,
  1240. idx, 8, size);
  1241. } else
  1242. av_memcpy_backptr((uint8_t *) excitation, sizeof(float) * block_pitch,
  1243. sizeof(float) * size);
  1244. }
  1245. /* Interpolate ACB/FCB and use as excitation signal */
  1246. ff_weighted_vector_sumf(excitation, excitation, pulses,
  1247. acb_gain, fcb_gain, size);
  1248. }
  1249. /**
  1250. * Parse data in a single block.
  1251. * @note we assume enough bits are available, caller should check.
  1252. *
  1253. * @param s WMA Voice decoding context private data
  1254. * @param gb bit I/O context
  1255. * @param block_idx index of the to-be-read block
  1256. * @param size amount of samples to be read in this block
  1257. * @param block_pitch_sh2 pitch for this block << 2
  1258. * @param lsps LSPs for (the end of) this frame
  1259. * @param prev_lsps LSPs for the last frame
  1260. * @param frame_desc frame type descriptor
  1261. * @param excitation target memory for the ACB+FCB interpolated signal
  1262. * @param synth target memory for the speech synthesis filter output
  1263. * @return 0 on success, <0 on error.
  1264. */
  1265. static void synth_block(WMAVoiceContext *s, GetBitContext *gb,
  1266. int block_idx, int size,
  1267. int block_pitch_sh2,
  1268. const double *lsps, const double *prev_lsps,
  1269. const struct frame_type_desc *frame_desc,
  1270. float *excitation, float *synth)
  1271. {
  1272. double i_lsps[MAX_LSPS];
  1273. float lpcs[MAX_LSPS];
  1274. float fac;
  1275. int n;
  1276. if (frame_desc->acb_type == ACB_TYPE_NONE)
  1277. synth_block_hardcoded(s, gb, block_idx, size, frame_desc, excitation);
  1278. else
  1279. synth_block_fcb_acb(s, gb, block_idx, size, block_pitch_sh2,
  1280. frame_desc, excitation);
  1281. /* convert interpolated LSPs to LPCs */
  1282. fac = (block_idx + 0.5) / frame_desc->n_blocks;
  1283. for (n = 0; n < s->lsps; n++) // LSF -> LSP
  1284. i_lsps[n] = cos(prev_lsps[n] + fac * (lsps[n] - prev_lsps[n]));
  1285. ff_acelp_lspd2lpc(i_lsps, lpcs, s->lsps >> 1);
  1286. /* Speech synthesis */
  1287. ff_celp_lp_synthesis_filterf(synth, lpcs, excitation, size, s->lsps);
  1288. }
  1289. /**
  1290. * Synthesize output samples for a single frame.
  1291. * @note we assume enough bits are available, caller should check.
  1292. *
  1293. * @param ctx WMA Voice decoder context
  1294. * @param gb bit I/O context (s->gb or one for cross-packet superframes)
  1295. * @param frame_idx Frame number within superframe [0-2]
  1296. * @param samples pointer to output sample buffer, has space for at least 160
  1297. * samples
  1298. * @param lsps LSP array
  1299. * @param prev_lsps array of previous frame's LSPs
  1300. * @param excitation target buffer for excitation signal
  1301. * @param synth target buffer for synthesized speech data
  1302. * @return 0 on success, <0 on error.
  1303. */
  1304. static int synth_frame(AVCodecContext *ctx, GetBitContext *gb, int frame_idx,
  1305. float *samples,
  1306. const double *lsps, const double *prev_lsps,
  1307. float *excitation, float *synth)
  1308. {
  1309. WMAVoiceContext *s = ctx->priv_data;
  1310. int n, n_blocks_x2, log_n_blocks_x2, cur_pitch_val;
  1311. int pitch[MAX_BLOCKS], last_block_pitch;
  1312. /* Parse frame type ("frame header"), see frame_descs */
  1313. int bd_idx = s->vbm_tree[get_vlc2(gb, frame_type_vlc.table, 6, 3)], block_nsamples;
  1314. if (bd_idx < 0) {
  1315. av_log(ctx, AV_LOG_ERROR,
  1316. "Invalid frame type VLC code, skipping\n");
  1317. return -1;
  1318. }
  1319. block_nsamples = MAX_FRAMESIZE / frame_descs[bd_idx].n_blocks;
  1320. /* Pitch calculation for ACB_TYPE_ASYMMETRIC ("pitch-per-frame") */
  1321. if (frame_descs[bd_idx].acb_type == ACB_TYPE_ASYMMETRIC) {
  1322. /* Pitch is provided per frame, which is interpreted as the pitch of
  1323. * the last sample of the last block of this frame. We can interpolate
  1324. * the pitch of other blocks (and even pitch-per-sample) by gradually
  1325. * incrementing/decrementing prev_frame_pitch to cur_pitch_val. */
  1326. n_blocks_x2 = frame_descs[bd_idx].n_blocks << 1;
  1327. log_n_blocks_x2 = frame_descs[bd_idx].log_n_blocks + 1;
  1328. cur_pitch_val = s->min_pitch_val + get_bits(gb, s->pitch_nbits);
  1329. cur_pitch_val = FFMIN(cur_pitch_val, s->max_pitch_val - 1);
  1330. if (s->last_acb_type == ACB_TYPE_NONE ||
  1331. 20 * abs(cur_pitch_val - s->last_pitch_val) >
  1332. (cur_pitch_val + s->last_pitch_val))
  1333. s->last_pitch_val = cur_pitch_val;
  1334. /* pitch per block */
  1335. for (n = 0; n < frame_descs[bd_idx].n_blocks; n++) {
  1336. int fac = n * 2 + 1;
  1337. pitch[n] = (MUL16(fac, cur_pitch_val) +
  1338. MUL16((n_blocks_x2 - fac), s->last_pitch_val) +
  1339. frame_descs[bd_idx].n_blocks) >> log_n_blocks_x2;
  1340. }
  1341. /* "pitch-diff-per-sample" for calculation of pitch per sample */
  1342. s->pitch_diff_sh16 =
  1343. ((cur_pitch_val - s->last_pitch_val) << 16) / MAX_FRAMESIZE;
  1344. }
  1345. /* Global gain (if silence) and pitch-adaptive window coordinates */
  1346. switch (frame_descs[bd_idx].fcb_type) {
  1347. case FCB_TYPE_SILENCE:
  1348. s->silence_gain = wmavoice_gain_silence[get_bits(gb, 8)];
  1349. break;
  1350. case FCB_TYPE_AW_PULSES:
  1351. aw_parse_coords(s, gb, pitch);
  1352. break;
  1353. }
  1354. for (n = 0; n < frame_descs[bd_idx].n_blocks; n++) {
  1355. int bl_pitch_sh2;
  1356. /* Pitch calculation for ACB_TYPE_HAMMING ("pitch-per-block") */
  1357. switch (frame_descs[bd_idx].acb_type) {
  1358. case ACB_TYPE_HAMMING: {
  1359. /* Pitch is given per block. Per-block pitches are encoded as an
  1360. * absolute value for the first block, and then delta values
  1361. * relative to this value) for all subsequent blocks. The scale of
  1362. * this pitch value is semi-logaritmic compared to its use in the
  1363. * decoder, so we convert it to normal scale also. */
  1364. int block_pitch,
  1365. t1 = (s->block_conv_table[1] - s->block_conv_table[0]) << 2,
  1366. t2 = (s->block_conv_table[2] - s->block_conv_table[1]) << 1,
  1367. t3 = s->block_conv_table[3] - s->block_conv_table[2] + 1;
  1368. if (n == 0) {
  1369. block_pitch = get_bits(gb, s->block_pitch_nbits);
  1370. } else
  1371. block_pitch = last_block_pitch - s->block_delta_pitch_hrange +
  1372. get_bits(gb, s->block_delta_pitch_nbits);
  1373. /* Convert last_ so that any next delta is within _range */
  1374. last_block_pitch = av_clip(block_pitch,
  1375. s->block_delta_pitch_hrange,
  1376. s->block_pitch_range -
  1377. s->block_delta_pitch_hrange);
  1378. /* Convert semi-log-style scale back to normal scale */
  1379. if (block_pitch < t1) {
  1380. bl_pitch_sh2 = (s->block_conv_table[0] << 2) + block_pitch;
  1381. } else {
  1382. block_pitch -= t1;
  1383. if (block_pitch < t2) {
  1384. bl_pitch_sh2 =
  1385. (s->block_conv_table[1] << 2) + (block_pitch << 1);
  1386. } else {
  1387. block_pitch -= t2;
  1388. if (block_pitch < t3) {
  1389. bl_pitch_sh2 =
  1390. (s->block_conv_table[2] + block_pitch) << 2;
  1391. } else
  1392. bl_pitch_sh2 = s->block_conv_table[3] << 2;
  1393. }
  1394. }
  1395. pitch[n] = bl_pitch_sh2 >> 2;
  1396. break;
  1397. }
  1398. case ACB_TYPE_ASYMMETRIC: {
  1399. bl_pitch_sh2 = pitch[n] << 2;
  1400. break;
  1401. }
  1402. default: // ACB_TYPE_NONE has no pitch
  1403. bl_pitch_sh2 = 0;
  1404. break;
  1405. }
  1406. synth_block(s, gb, n, block_nsamples, bl_pitch_sh2,
  1407. lsps, prev_lsps, &frame_descs[bd_idx],
  1408. &excitation[n * block_nsamples],
  1409. &synth[n * block_nsamples]);
  1410. }
  1411. /* Averaging projection filter, if applicable. Else, just copy samples
  1412. * from synthesis buffer */
  1413. if (s->do_apf) {
  1414. double i_lsps[MAX_LSPS];
  1415. float lpcs[MAX_LSPS];
  1416. for (n = 0; n < s->lsps; n++) // LSF -> LSP
  1417. i_lsps[n] = cos(0.5 * (prev_lsps[n] + lsps[n]));
  1418. ff_acelp_lspd2lpc(i_lsps, lpcs, s->lsps >> 1);
  1419. postfilter(s, synth, samples, 80, lpcs,
  1420. &s->zero_exc_pf[s->history_nsamples + MAX_FRAMESIZE * frame_idx],
  1421. frame_descs[bd_idx].fcb_type, pitch[0]);
  1422. for (n = 0; n < s->lsps; n++) // LSF -> LSP
  1423. i_lsps[n] = cos(lsps[n]);
  1424. ff_acelp_lspd2lpc(i_lsps, lpcs, s->lsps >> 1);
  1425. postfilter(s, &synth[80], &samples[80], 80, lpcs,
  1426. &s->zero_exc_pf[s->history_nsamples + MAX_FRAMESIZE * frame_idx + 80],
  1427. frame_descs[bd_idx].fcb_type, pitch[0]);
  1428. } else
  1429. memcpy(samples, synth, 160 * sizeof(synth[0]));
  1430. /* Cache values for next frame */
  1431. s->frame_cntr++;
  1432. if (s->frame_cntr >= 0xFFFF) s->frame_cntr -= 0xFFFF; // i.e. modulo (%)
  1433. s->last_acb_type = frame_descs[bd_idx].acb_type;
  1434. switch (frame_descs[bd_idx].acb_type) {
  1435. case ACB_TYPE_NONE:
  1436. s->last_pitch_val = 0;
  1437. break;
  1438. case ACB_TYPE_ASYMMETRIC:
  1439. s->last_pitch_val = cur_pitch_val;
  1440. break;
  1441. case ACB_TYPE_HAMMING:
  1442. s->last_pitch_val = pitch[frame_descs[bd_idx].n_blocks - 1];
  1443. break;
  1444. }
  1445. return 0;
  1446. }
  1447. /**
  1448. * Ensure minimum value for first item, maximum value for last value,
  1449. * proper spacing between each value and proper ordering.
  1450. *
  1451. * @param lsps array of LSPs
  1452. * @param num size of LSP array
  1453. *
  1454. * @note basically a double version of #ff_acelp_reorder_lsf(), might be
  1455. * useful to put in a generic location later on. Parts are also
  1456. * present in #ff_set_min_dist_lsf() + #ff_sort_nearly_sorted_floats(),
  1457. * which is in float.
  1458. */
  1459. static void stabilize_lsps(double *lsps, int num)
  1460. {
  1461. int n, m, l;
  1462. /* set minimum value for first, maximum value for last and minimum
  1463. * spacing between LSF values.
  1464. * Very similar to ff_set_min_dist_lsf(), but in double. */
  1465. lsps[0] = FFMAX(lsps[0], 0.0015 * M_PI);
  1466. for (n = 1; n < num; n++)
  1467. lsps[n] = FFMAX(lsps[n], lsps[n - 1] + 0.0125 * M_PI);
  1468. lsps[num - 1] = FFMIN(lsps[num - 1], 0.9985 * M_PI);
  1469. /* reorder (looks like one-time / non-recursed bubblesort).
  1470. * Very similar to ff_sort_nearly_sorted_floats(), but in double. */
  1471. for (n = 1; n < num; n++) {
  1472. if (lsps[n] < lsps[n - 1]) {
  1473. for (m = 1; m < num; m++) {
  1474. double tmp = lsps[m];
  1475. for (l = m - 1; l >= 0; l--) {
  1476. if (lsps[l] <= tmp) break;
  1477. lsps[l + 1] = lsps[l];
  1478. }
  1479. lsps[l + 1] = tmp;
  1480. }
  1481. break;
  1482. }
  1483. }
  1484. }
  1485. /**
  1486. * Test if there's enough bits to read 1 superframe.
  1487. *
  1488. * @param orig_gb bit I/O context used for reading. This function
  1489. * does not modify the state of the bitreader; it
  1490. * only uses it to copy the current stream position
  1491. * @param s WMA Voice decoding context private data
  1492. * @return -1 if unsupported, 1 on not enough bits or 0 if OK.
  1493. */
  1494. static int check_bits_for_superframe(GetBitContext *orig_gb,
  1495. WMAVoiceContext *s)
  1496. {
  1497. GetBitContext s_gb, *gb = &s_gb;
  1498. int n, need_bits, bd_idx;
  1499. const struct frame_type_desc *frame_desc;
  1500. /* initialize a copy */
  1501. init_get_bits(gb, orig_gb->buffer, orig_gb->size_in_bits);
  1502. skip_bits_long(gb, get_bits_count(orig_gb));
  1503. assert(get_bits_left(gb) == get_bits_left(orig_gb));
  1504. /* superframe header */
  1505. if (get_bits_left(gb) < 14)
  1506. return 1;
  1507. if (!get_bits1(gb))
  1508. return -1; // WMAPro-in-WMAVoice superframe
  1509. if (get_bits1(gb)) skip_bits(gb, 12); // number of samples in superframe
  1510. if (s->has_residual_lsps) { // residual LSPs (for all frames)
  1511. if (get_bits_left(gb) < s->sframe_lsp_bitsize)
  1512. return 1;
  1513. skip_bits_long(gb, s->sframe_lsp_bitsize);
  1514. }
  1515. /* frames */
  1516. for (n = 0; n < MAX_FRAMES; n++) {
  1517. int aw_idx_is_ext = 0;
  1518. if (!s->has_residual_lsps) { // independent LSPs (per-frame)
  1519. if (get_bits_left(gb) < s->frame_lsp_bitsize) return 1;
  1520. skip_bits_long(gb, s->frame_lsp_bitsize);
  1521. }
  1522. bd_idx = s->vbm_tree[get_vlc2(gb, frame_type_vlc.table, 6, 3)];
  1523. if (bd_idx < 0)
  1524. return -1; // invalid frame type VLC code
  1525. frame_desc = &frame_descs[bd_idx];
  1526. if (frame_desc->acb_type == ACB_TYPE_ASYMMETRIC) {
  1527. if (get_bits_left(gb) < s->pitch_nbits)
  1528. return 1;
  1529. skip_bits_long(gb, s->pitch_nbits);
  1530. }
  1531. if (frame_desc->fcb_type == FCB_TYPE_SILENCE) {
  1532. skip_bits(gb, 8);
  1533. } else if (frame_desc->fcb_type == FCB_TYPE_AW_PULSES) {
  1534. int tmp = get_bits(gb, 6);
  1535. if (tmp >= 0x36) {
  1536. skip_bits(gb, 2);
  1537. aw_idx_is_ext = 1;
  1538. }
  1539. }
  1540. /* blocks */
  1541. if (frame_desc->acb_type == ACB_TYPE_HAMMING) {
  1542. need_bits = s->block_pitch_nbits +
  1543. (frame_desc->n_blocks - 1) * s->block_delta_pitch_nbits;
  1544. } else if (frame_desc->fcb_type == FCB_TYPE_AW_PULSES) {
  1545. need_bits = 2 * !aw_idx_is_ext;
  1546. } else
  1547. need_bits = 0;
  1548. need_bits += frame_desc->frame_size;
  1549. if (get_bits_left(gb) < need_bits)
  1550. return 1;
  1551. skip_bits_long(gb, need_bits);
  1552. }
  1553. return 0;
  1554. }
  1555. /**
  1556. * Synthesize output samples for a single superframe. If we have any data
  1557. * cached in s->sframe_cache, that will be used instead of whatever is loaded
  1558. * in s->gb.
  1559. *
  1560. * WMA Voice superframes contain 3 frames, each containing 160 audio samples,
  1561. * to give a total of 480 samples per frame. See #synth_frame() for frame
  1562. * parsing. In addition to 3 frames, superframes can also contain the LSPs
  1563. * (if these are globally specified for all frames (residually); they can
  1564. * also be specified individually per-frame. See the s->has_residual_lsps
  1565. * option), and can specify the number of samples encoded in this superframe
  1566. * (if less than 480), usually used to prevent blanks at track boundaries.
  1567. *
  1568. * @param ctx WMA Voice decoder context
  1569. * @return 0 on success, <0 on error or 1 if there was not enough data to
  1570. * fully parse the superframe
  1571. */
  1572. static int synth_superframe(AVCodecContext *ctx, AVFrame *frame,
  1573. int *got_frame_ptr)
  1574. {
  1575. WMAVoiceContext *s = ctx->priv_data;
  1576. GetBitContext *gb = &s->gb, s_gb;
  1577. int n, res, n_samples = 480;
  1578. double lsps[MAX_FRAMES][MAX_LSPS];
  1579. const double *mean_lsf = s->lsps == 16 ?
  1580. wmavoice_mean_lsf16[s->lsp_def_mode] : wmavoice_mean_lsf10[s->lsp_def_mode];
  1581. float excitation[MAX_SIGNAL_HISTORY + MAX_SFRAMESIZE + 12];
  1582. float synth[MAX_LSPS + MAX_SFRAMESIZE];
  1583. float *samples;
  1584. memcpy(synth, s->synth_history,
  1585. s->lsps * sizeof(*synth));
  1586. memcpy(excitation, s->excitation_history,
  1587. s->history_nsamples * sizeof(*excitation));
  1588. if (s->sframe_cache_size > 0) {
  1589. gb = &s_gb;
  1590. init_get_bits(gb, s->sframe_cache, s->sframe_cache_size);
  1591. s->sframe_cache_size = 0;
  1592. }
  1593. if ((res = check_bits_for_superframe(gb, s)) == 1) {
  1594. *got_frame_ptr = 0;
  1595. return 1;
  1596. }
  1597. /* First bit is speech/music bit, it differentiates between WMAVoice
  1598. * speech samples (the actual codec) and WMAVoice music samples, which
  1599. * are really WMAPro-in-WMAVoice-superframes. I've never seen those in
  1600. * the wild yet. */
  1601. if (!get_bits1(gb)) {
  1602. avpriv_request_sample(ctx, "WMAPro-in-WMAVoice");
  1603. return AVERROR_PATCHWELCOME;
  1604. }
  1605. /* (optional) nr. of samples in superframe; always <= 480 and >= 0 */
  1606. if (get_bits1(gb)) {
  1607. if ((n_samples = get_bits(gb, 12)) > 480) {
  1608. av_log(ctx, AV_LOG_ERROR,
  1609. "Superframe encodes >480 samples (%d), not allowed\n",
  1610. n_samples);
  1611. return -1;
  1612. }
  1613. }
  1614. /* Parse LSPs, if global for the superframe (can also be per-frame). */
  1615. if (s->has_residual_lsps) {
  1616. double prev_lsps[MAX_LSPS], a1[MAX_LSPS * 2], a2[MAX_LSPS * 2];
  1617. for (n = 0; n < s->lsps; n++)
  1618. prev_lsps[n] = s->prev_lsps[n] - mean_lsf[n];
  1619. if (s->lsps == 10) {
  1620. dequant_lsp10r(gb, lsps[2], prev_lsps, a1, a2, s->lsp_q_mode);
  1621. } else /* s->lsps == 16 */
  1622. dequant_lsp16r(gb, lsps[2], prev_lsps, a1, a2, s->lsp_q_mode);
  1623. for (n = 0; n < s->lsps; n++) {
  1624. lsps[0][n] = mean_lsf[n] + (a1[n] - a2[n * 2]);
  1625. lsps[1][n] = mean_lsf[n] + (a1[s->lsps + n] - a2[n * 2 + 1]);
  1626. lsps[2][n] += mean_lsf[n];
  1627. }
  1628. for (n = 0; n < 3; n++)
  1629. stabilize_lsps(lsps[n], s->lsps);
  1630. }
  1631. /* get output buffer */
  1632. frame->nb_samples = 480;
  1633. if ((res = ff_get_buffer(ctx, frame, 0)) < 0) {
  1634. av_log(ctx, AV_LOG_ERROR, "get_buffer() failed\n");
  1635. return res;
  1636. }
  1637. frame->nb_samples = n_samples;
  1638. samples = (float *)frame->data[0];
  1639. /* Parse frames, optionally preceded by per-frame (independent) LSPs. */
  1640. for (n = 0; n < 3; n++) {
  1641. if (!s->has_residual_lsps) {
  1642. int m;
  1643. if (s->lsps == 10) {
  1644. dequant_lsp10i(gb, lsps[n]);
  1645. } else /* s->lsps == 16 */
  1646. dequant_lsp16i(gb, lsps[n]);
  1647. for (m = 0; m < s->lsps; m++)
  1648. lsps[n][m] += mean_lsf[m];
  1649. stabilize_lsps(lsps[n], s->lsps);
  1650. }
  1651. if ((res = synth_frame(ctx, gb, n,
  1652. &samples[n * MAX_FRAMESIZE],
  1653. lsps[n], n == 0 ? s->prev_lsps : lsps[n - 1],
  1654. &excitation[s->history_nsamples + n * MAX_FRAMESIZE],
  1655. &synth[s->lsps + n * MAX_FRAMESIZE]))) {
  1656. *got_frame_ptr = 0;
  1657. return res;
  1658. }
  1659. }
  1660. /* Statistics? FIXME - we don't check for length, a slight overrun
  1661. * will be caught by internal buffer padding, and anything else
  1662. * will be skipped, not read. */
  1663. if (get_bits1(gb)) {
  1664. res = get_bits(gb, 4);
  1665. skip_bits(gb, 10 * (res + 1));
  1666. }
  1667. *got_frame_ptr = 1;
  1668. /* Update history */
  1669. memcpy(s->prev_lsps, lsps[2],
  1670. s->lsps * sizeof(*s->prev_lsps));
  1671. memcpy(s->synth_history, &synth[MAX_SFRAMESIZE],
  1672. s->lsps * sizeof(*synth));
  1673. memcpy(s->excitation_history, &excitation[MAX_SFRAMESIZE],
  1674. s->history_nsamples * sizeof(*excitation));
  1675. if (s->do_apf)
  1676. memmove(s->zero_exc_pf, &s->zero_exc_pf[MAX_SFRAMESIZE],
  1677. s->history_nsamples * sizeof(*s->zero_exc_pf));
  1678. return 0;
  1679. }
  1680. /**
  1681. * Parse the packet header at the start of each packet (input data to this
  1682. * decoder).
  1683. *
  1684. * @param s WMA Voice decoding context private data
  1685. * @return 1 if not enough bits were available, or 0 on success.
  1686. */
  1687. static int parse_packet_header(WMAVoiceContext *s)
  1688. {
  1689. GetBitContext *gb = &s->gb;
  1690. unsigned int res;
  1691. if (get_bits_left(gb) < 11)
  1692. return 1;
  1693. skip_bits(gb, 4); // packet sequence number
  1694. s->has_residual_lsps = get_bits1(gb);
  1695. do {
  1696. res = get_bits(gb, 6); // number of superframes per packet
  1697. // (minus first one if there is spillover)
  1698. if (get_bits_left(gb) < 6 * (res == 0x3F) + s->spillover_bitsize)
  1699. return 1;
  1700. } while (res == 0x3F);
  1701. s->spillover_nbits = get_bits(gb, s->spillover_bitsize);
  1702. return 0;
  1703. }
  1704. /**
  1705. * Copy (unaligned) bits from gb/data/size to pb.
  1706. *
  1707. * @param pb target buffer to copy bits into
  1708. * @param data source buffer to copy bits from
  1709. * @param size size of the source data, in bytes
  1710. * @param gb bit I/O context specifying the current position in the source.
  1711. * data. This function might use this to align the bit position to
  1712. * a whole-byte boundary before calling #avpriv_copy_bits() on aligned
  1713. * source data
  1714. * @param nbits the amount of bits to copy from source to target
  1715. *
  1716. * @note after calling this function, the current position in the input bit
  1717. * I/O context is undefined.
  1718. */
  1719. static void copy_bits(PutBitContext *pb,
  1720. const uint8_t *data, int size,
  1721. GetBitContext *gb, int nbits)
  1722. {
  1723. int rmn_bytes, rmn_bits;
  1724. rmn_bits = rmn_bytes = get_bits_left(gb);
  1725. if (rmn_bits < nbits)
  1726. return;
  1727. if (nbits > pb->size_in_bits - put_bits_count(pb))
  1728. return;
  1729. rmn_bits &= 7; rmn_bytes >>= 3;
  1730. if ((rmn_bits = FFMIN(rmn_bits, nbits)) > 0)
  1731. put_bits(pb, rmn_bits, get_bits(gb, rmn_bits));
  1732. avpriv_copy_bits(pb, data + size - rmn_bytes,
  1733. FFMIN(nbits - rmn_bits, rmn_bytes << 3));
  1734. }
  1735. /**
  1736. * Packet decoding: a packet is anything that the (ASF) demuxer contains,
  1737. * and we expect that the demuxer / application provides it to us as such
  1738. * (else you'll probably get garbage as output). Every packet has a size of
  1739. * ctx->block_align bytes, starts with a packet header (see
  1740. * #parse_packet_header()), and then a series of superframes. Superframe
  1741. * boundaries may exceed packets, i.e. superframes can split data over
  1742. * multiple (two) packets.
  1743. *
  1744. * For more information about frames, see #synth_superframe().
  1745. */
  1746. static int wmavoice_decode_packet(AVCodecContext *ctx, void *data,
  1747. int *got_frame_ptr, AVPacket *avpkt)
  1748. {
  1749. WMAVoiceContext *s = ctx->priv_data;
  1750. GetBitContext *gb = &s->gb;
  1751. int size, res, pos;
  1752. /* Packets are sometimes a multiple of ctx->block_align, with a packet
  1753. * header at each ctx->block_align bytes. However, Libav's ASF demuxer
  1754. * feeds us ASF packets, which may concatenate multiple "codec" packets
  1755. * in a single "muxer" packet, so we artificially emulate that by
  1756. * capping the packet size at ctx->block_align. */
  1757. for (size = avpkt->size; size > ctx->block_align; size -= ctx->block_align);
  1758. if (!size) {
  1759. *got_frame_ptr = 0;
  1760. return 0;
  1761. }
  1762. init_get_bits(&s->gb, avpkt->data, size << 3);
  1763. /* size == ctx->block_align is used to indicate whether we are dealing with
  1764. * a new packet or a packet of which we already read the packet header
  1765. * previously. */
  1766. if (size == ctx->block_align) { // new packet header
  1767. if ((res = parse_packet_header(s)) < 0)
  1768. return res;
  1769. /* If the packet header specifies a s->spillover_nbits, then we want
  1770. * to push out all data of the previous packet (+ spillover) before
  1771. * continuing to parse new superframes in the current packet. */
  1772. if (s->spillover_nbits > 0) {
  1773. if (s->sframe_cache_size > 0) {
  1774. int cnt = get_bits_count(gb);
  1775. copy_bits(&s->pb, avpkt->data, size, gb, s->spillover_nbits);
  1776. flush_put_bits(&s->pb);
  1777. s->sframe_cache_size += s->spillover_nbits;
  1778. if ((res = synth_superframe(ctx, data, got_frame_ptr)) == 0 &&
  1779. *got_frame_ptr) {
  1780. cnt += s->spillover_nbits;
  1781. s->skip_bits_next = cnt & 7;
  1782. return cnt >> 3;
  1783. } else
  1784. skip_bits_long (gb, s->spillover_nbits - cnt +
  1785. get_bits_count(gb)); // resync
  1786. } else
  1787. skip_bits_long(gb, s->spillover_nbits); // resync
  1788. }
  1789. } else if (s->skip_bits_next)
  1790. skip_bits(gb, s->skip_bits_next);
  1791. /* Try parsing superframes in current packet */
  1792. s->sframe_cache_size = 0;
  1793. s->skip_bits_next = 0;
  1794. pos = get_bits_left(gb);
  1795. if ((res = synth_superframe(ctx, data, got_frame_ptr)) < 0) {
  1796. return res;
  1797. } else if (*got_frame_ptr) {
  1798. int cnt = get_bits_count(gb);
  1799. s->skip_bits_next = cnt & 7;
  1800. return cnt >> 3;
  1801. } else if ((s->sframe_cache_size = pos) > 0) {
  1802. /* rewind bit reader to start of last (incomplete) superframe... */
  1803. init_get_bits(gb, avpkt->data, size << 3);
  1804. skip_bits_long(gb, (size << 3) - pos);
  1805. assert(get_bits_left(gb) == pos);
  1806. /* ...and cache it for spillover in next packet */
  1807. init_put_bits(&s->pb, s->sframe_cache, SFRAME_CACHE_MAXSIZE);
  1808. copy_bits(&s->pb, avpkt->data, size, gb, s->sframe_cache_size);
  1809. // FIXME bad - just copy bytes as whole and add use the
  1810. // skip_bits_next field
  1811. }
  1812. return size;
  1813. }
  1814. static av_cold int wmavoice_decode_end(AVCodecContext *ctx)
  1815. {
  1816. WMAVoiceContext *s = ctx->priv_data;
  1817. if (s->do_apf) {
  1818. ff_rdft_end(&s->rdft);
  1819. ff_rdft_end(&s->irdft);
  1820. ff_dct_end(&s->dct);
  1821. ff_dct_end(&s->dst);
  1822. }
  1823. return 0;
  1824. }
  1825. static av_cold void wmavoice_flush(AVCodecContext *ctx)
  1826. {
  1827. WMAVoiceContext *s = ctx->priv_data;
  1828. int n;
  1829. s->postfilter_agc = 0;
  1830. s->sframe_cache_size = 0;
  1831. s->skip_bits_next = 0;
  1832. for (n = 0; n < s->lsps; n++)
  1833. s->prev_lsps[n] = M_PI * (n + 1.0) / (s->lsps + 1.0);
  1834. memset(s->excitation_history, 0,
  1835. sizeof(*s->excitation_history) * MAX_SIGNAL_HISTORY);
  1836. memset(s->synth_history, 0,
  1837. sizeof(*s->synth_history) * MAX_LSPS);
  1838. memset(s->gain_pred_err, 0,
  1839. sizeof(s->gain_pred_err));
  1840. if (s->do_apf) {
  1841. memset(&s->synth_filter_out_buf[MAX_LSPS_ALIGN16 - s->lsps], 0,
  1842. sizeof(*s->synth_filter_out_buf) * s->lsps);
  1843. memset(s->dcf_mem, 0,
  1844. sizeof(*s->dcf_mem) * 2);
  1845. memset(s->zero_exc_pf, 0,
  1846. sizeof(*s->zero_exc_pf) * s->history_nsamples);
  1847. memset(s->denoise_filter_cache, 0, sizeof(s->denoise_filter_cache));
  1848. }
  1849. }
  1850. AVCodec ff_wmavoice_decoder = {
  1851. .name = "wmavoice",
  1852. .type = AVMEDIA_TYPE_AUDIO,
  1853. .id = AV_CODEC_ID_WMAVOICE,
  1854. .priv_data_size = sizeof(WMAVoiceContext),
  1855. .init = wmavoice_decode_init,
  1856. .close = wmavoice_decode_end,
  1857. .decode = wmavoice_decode_packet,
  1858. .capabilities = CODEC_CAP_SUBFRAMES | CODEC_CAP_DR1,
  1859. .flush = wmavoice_flush,
  1860. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Audio Voice"),
  1861. };