Coverage Report

Created: 2026-09-28 07:27

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/vlc/contrib/contrib-build/opus/celt/celt_decoder.c
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Count
Source
1
/* Copyright (c) 2007-2008 CSIRO
2
   Copyright (c) 2007-2010 Xiph.Org Foundation
3
   Copyright (c) 2008 Gregory Maxwell
4
   Written by Jean-Marc Valin and Gregory Maxwell */
5
/*
6
   Redistribution and use in source and binary forms, with or without
7
   modification, are permitted provided that the following conditions
8
   are met:
9
10
   - Redistributions of source code must retain the above copyright
11
   notice, this list of conditions and the following disclaimer.
12
13
   - Redistributions in binary form must reproduce the above copyright
14
   notice, this list of conditions and the following disclaimer in the
15
   documentation and/or other materials provided with the distribution.
16
17
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
18
   ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
19
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
20
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER
21
   OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
22
   EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
23
   PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
24
   PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
25
   LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
26
   NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
27
   SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
28
*/
29
30
#ifdef HAVE_CONFIG_H
31
#include "config.h"
32
#endif
33
34
#define CELT_DECODER_C
35
36
#include "cpu_support.h"
37
#include "os_support.h"
38
#include "mdct.h"
39
#include <math.h>
40
#include "celt.h"
41
#include "pitch.h"
42
#include "bands.h"
43
#include "modes.h"
44
#include "entcode.h"
45
#include "quant_bands.h"
46
#include "rate.h"
47
#include "stack_alloc.h"
48
#include "mathops.h"
49
#include "float_cast.h"
50
#include <stdarg.h>
51
#include "celt_lpc.h"
52
#include "vq.h"
53
54
#ifdef ENABLE_DEEP_PLC
55
#include "lpcnet.h"
56
#include "lpcnet_private.h"
57
#endif
58
59
/* The maximum pitch lag to allow in the pitch-based PLC. It's possible to save
60
   CPU time in the PLC pitch search by making this smaller than MAX_PERIOD. The
61
   current value corresponds to a pitch of 66.67 Hz. */
62
0
#define PLC_PITCH_LAG_MAX (720)
63
/* The minimum pitch lag to allow in the pitch-based PLC. This corresponds to a
64
   pitch of 480 Hz. */
65
0
#define PLC_PITCH_LAG_MIN (100)
66
67
10
#define FRAME_NONE         0
68
0
#define FRAME_NORMAL       1
69
0
#define FRAME_PLC_NOISE    2
70
0
#define FRAME_PLC_PERIODIC 3
71
0
#define FRAME_PLC_NEURAL   4
72
0
#define FRAME_DRED         5
73
74
/**********************************************************************/
75
/*                                                                    */
76
/*                             DECODER                                */
77
/*                                                                    */
78
/**********************************************************************/
79
0
#define DECODE_BUFFER_SIZE DEC_PITCH_BUF_SIZE
80
81
#define PLC_UPDATE_FRAMES 4
82
#define PLC_UPDATE_SAMPLES (PLC_UPDATE_FRAMES*FRAME_SIZE)
83
84
/** Decoder state
85
 @brief Decoder state
86
 */
87
struct OpusCustomDecoder {
88
   const OpusCustomMode *mode;
89
   int overlap;
90
   int channels;
91
   int stream_channels;
92
93
   int downsample;
94
   int start, end;
95
   int signalling;
96
   int disable_inv;
97
   int complexity;
98
   int arch;
99
#ifdef ENABLE_QEXT
100
   int qext_scale;
101
#endif
102
103
   /* Everything beyond this point gets cleared on a reset */
104
#define DECODER_RESET_START rng
105
106
   opus_uint32 rng;
107
   int error;
108
   int last_pitch_index;
109
   int loss_duration;
110
   int plc_duration;
111
   int last_frame_type;
112
   int skip_plc;
113
   int postfilter_period;
114
   int postfilter_period_old;
115
   opus_val16 postfilter_gain;
116
   opus_val16 postfilter_gain_old;
117
   int postfilter_tapset;
118
   int postfilter_tapset_old;
119
   int prefilter_and_fold;
120
121
   celt_sig preemph_memD[2];
122
123
#ifdef ENABLE_DEEP_PLC
124
   opus_int16 plc_pcm[PLC_UPDATE_SAMPLES];
125
   int plc_fill;
126
   float plc_preemphasis_mem;
127
#endif
128
129
#ifdef ENABLE_QEXT
130
   celt_glog qext_oldBandE[2*NB_QEXT_BANDS];
131
#endif
132
133
   celt_sig _decode_mem[1]; /* Size = channels*(DECODE_BUFFER_SIZE+mode->overlap) */
134
   /* celt_glog oldEBands[], Size = 2*mode->nbEBands */
135
   /* celt_glog oldLogE[], Size = 2*mode->nbEBands */
136
   /* celt_glog oldLogE2[], Size = 2*mode->nbEBands */
137
   /* celt_glog backgroundLogE[], Size = 2*mode->nbEBands */
138
   /* opus_val16 lpc[],  Size = channels*CELT_LPC_ORDER */
139
};
140
141
#if defined(ENABLE_HARDENING) || defined(ENABLE_ASSERTIONS)
142
/* Make basic checks on the CELT state to ensure we don't end
143
   up writing all over memory. */
144
void validate_celt_decoder(CELTDecoder *st)
145
0
{
146
0
#if !defined(CUSTOM_MODES) && !defined(ENABLE_OPUS_CUSTOM_API) && !defined(ENABLE_QEXT)
147
0
   celt_assert(st->mode == opus_custom_mode_create(48000, 960, NULL));
148
0
   celt_assert(st->overlap == 120);
149
0
   celt_assert(st->end <= 21);
150
#else
151
/* From Section 4.3 in the spec: "The normal CELT layer uses 21 of those bands,
152
   though Opus Custom (see Section 6.2) may use a different number of bands"
153
154
   Check if it's within the maximum number of Bark frequency bands instead */
155
   celt_assert(st->end <= 25);
156
#endif
157
0
   celt_assert(st->channels == 1 || st->channels == 2);
158
0
   celt_assert(st->stream_channels == 1 || st->stream_channels == 2);
159
0
   celt_assert(st->downsample > 0);
160
0
   celt_assert(st->start == 0 || st->start == 17);
161
0
   celt_assert(st->start < st->end);
162
0
#ifdef OPUS_ARCHMASK
163
0
   celt_assert(st->arch >= 0);
164
0
   celt_assert(st->arch <= OPUS_ARCHMASK);
165
0
#endif
166
0
#ifndef ENABLE_QEXT
167
0
   celt_assert(st->last_pitch_index <= PLC_PITCH_LAG_MAX);
168
0
   celt_assert(st->last_pitch_index >= PLC_PITCH_LAG_MIN || st->last_pitch_index == 0);
169
0
#endif
170
0
   celt_assert(st->postfilter_period < MAX_PERIOD);
171
0
   celt_assert(st->postfilter_period >= COMBFILTER_MINPERIOD || st->postfilter_period == 0);
172
0
   celt_assert(st->postfilter_period_old < MAX_PERIOD);
173
0
   celt_assert(st->postfilter_period_old >= COMBFILTER_MINPERIOD || st->postfilter_period_old == 0);
174
0
   celt_assert(st->postfilter_tapset <= 2);
175
0
   celt_assert(st->postfilter_tapset >= 0);
176
0
   celt_assert(st->postfilter_tapset_old <= 2);
177
0
   celt_assert(st->postfilter_tapset_old >= 0);
178
0
}
179
#endif
180
181
int celt_decoder_get_size(int channels)
182
70
{
183
#ifdef ENABLE_QEXT
184
   const CELTMode *mode = opus_custom_mode_create(96000, 960, NULL);
185
#else
186
70
   const CELTMode *mode = opus_custom_mode_create(48000, 960, NULL);
187
70
#endif
188
70
   return opus_custom_decoder_get_size(mode, channels);
189
70
}
190
191
OPUS_CUSTOM_NOSTATIC int opus_custom_decoder_get_size(const CELTMode *mode, int channels)
192
90
{
193
90
   int size;
194
#ifdef ENABLE_QEXT
195
   int qext_scale;
196
   if (mode->Fs == 96000 && (mode->shortMdctSize==240 || mode->shortMdctSize==180)) {
197
      qext_scale = 2;
198
   } else qext_scale = 1;
199
#endif
200
90
   size = sizeof(struct CELTDecoder)
201
90
            + (channels*(QEXT_SCALE(DECODE_BUFFER_SIZE)+mode->overlap)-1)*sizeof(celt_sig)
202
90
            + 4*2*mode->nbEBands*sizeof(celt_glog)
203
90
            + channels*CELT_LPC_ORDER*sizeof(opus_val16);
204
90
   return size;
205
90
}
206
207
#if defined(CUSTOM_MODES) || defined(ENABLE_OPUS_CUSTOM_API)
208
CELTDecoder *opus_custom_decoder_create(const CELTMode *mode, int channels, int *error)
209
{
210
   int ret;
211
   CELTDecoder *st = (CELTDecoder *)opus_alloc(opus_custom_decoder_get_size(mode, channels));
212
   ret = opus_custom_decoder_init(st, mode, channels);
213
   if (ret != OPUS_OK)
214
   {
215
      opus_custom_decoder_destroy(st);
216
      st = NULL;
217
   }
218
   if (error)
219
      *error = ret;
220
   return st;
221
}
222
#endif /* CUSTOM_MODES */
223
224
int celt_decoder_init(CELTDecoder *st, opus_int32 sampling_rate, int channels)
225
10
{
226
10
   int ret;
227
#ifdef ENABLE_QEXT
228
   if (sampling_rate == 96000) {
229
      return opus_custom_decoder_init(st, opus_custom_mode_create(96000, 960, NULL), channels);
230
   }
231
#endif
232
10
   ret = opus_custom_decoder_init(st, opus_custom_mode_create(48000, 960, NULL), channels);
233
10
   if (ret != OPUS_OK)
234
0
      return ret;
235
10
   st->downsample = resampling_factor(sampling_rate);
236
10
   if (st->downsample==0)
237
0
      return OPUS_BAD_ARG;
238
10
   else
239
10
      return OPUS_OK;
240
10
}
241
242
OPUS_CUSTOM_NOSTATIC int opus_custom_decoder_init(CELTDecoder *st, const CELTMode *mode, int channels)
243
10
{
244
10
   if (channels < 0 || channels > 2)
245
0
      return OPUS_BAD_ARG;
246
247
10
   if (st==NULL)
248
0
      return OPUS_ALLOC_FAIL;
249
250
10
   OPUS_CLEAR((char*)st, opus_custom_decoder_get_size(mode, channels));
251
252
10
   st->mode = mode;
253
10
   st->overlap = mode->overlap;
254
10
   st->stream_channels = st->channels = channels;
255
256
10
   st->downsample = 1;
257
10
   st->start = 0;
258
10
   st->end = st->mode->effEBands;
259
10
   st->signalling = 1;
260
10
#ifndef DISABLE_UPDATE_DRAFT
261
10
   st->disable_inv = channels == 1;
262
#else
263
   st->disable_inv = 0;
264
#endif
265
10
   st->arch = opus_select_arch();
266
267
#ifdef ENABLE_QEXT
268
   if (st->mode->Fs == 96000 && (mode->shortMdctSize==240 || mode->shortMdctSize==180)) st->qext_scale = 2;
269
   else st->qext_scale = 1;
270
#endif
271
272
10
   opus_custom_decoder_ctl(st, OPUS_RESET_STATE);
273
274
10
   return OPUS_OK;
275
10
}
276
277
#if defined(CUSTOM_MODES) || defined(ENABLE_OPUS_CUSTOM_API)
278
void opus_custom_decoder_destroy(CELTDecoder *st)
279
{
280
   opus_free(st);
281
}
282
#endif /* CUSTOM_MODES */
283
284
#if !defined(CUSTOM_MODES) && !defined(ENABLE_OPUS_CUSTOM_API) && !defined(ENABLE_QEXT)
285
/* Special case for stereo with no downsampling and no accumulation. This is
286
   quite common and we can make it faster by processing both channels in the
287
   same loop, reducing overhead due to the dependency loop in the IIR filter. */
288
static void deemphasis_stereo_simple(celt_sig *in[], opus_res *pcm, int N, const opus_val16 coef0,
289
      celt_sig *mem)
290
0
{
291
0
   celt_sig * OPUS_RESTRICT x0;
292
0
   celt_sig * OPUS_RESTRICT x1;
293
0
   celt_sig m0, m1;
294
0
   int j;
295
0
   x0=in[0];
296
0
   x1=in[1];
297
0
   m0 = mem[0];
298
0
   m1 = mem[1];
299
0
   for (j=0;j<N;j++)
300
0
   {
301
0
      celt_sig tmp0, tmp1;
302
      /* Add VERY_SMALL to x[] first to reduce dependency chain. */
303
0
      tmp0 = SATURATE(x0[j] + VERY_SMALL + m0, SIG_SAT);
304
0
      tmp1 = SATURATE(x1[j] + VERY_SMALL + m1, SIG_SAT);
305
0
      m0 = MULT16_32_Q15(coef0, tmp0);
306
0
      m1 = MULT16_32_Q15(coef0, tmp1);
307
0
      pcm[2*j  ] = SIG2RES(tmp0);
308
0
      pcm[2*j+1] = SIG2RES(tmp1);
309
0
   }
310
0
   mem[0] = m0;
311
0
   mem[1] = m1;
312
0
}
313
#endif
314
315
#ifndef RESYNTH
316
static
317
#endif
318
void deemphasis(celt_sig *in[], opus_res *pcm, int N, int C, int downsample, const opus_val16 *coef,
319
      celt_sig *mem, int accum)
320
0
{
321
0
   int c;
322
0
   int Nd;
323
0
   int apply_downsampling=0;
324
0
   opus_val16 coef0;
325
0
   VARDECL(celt_sig, scratch);
326
0
   SAVE_STACK;
327
0
#if !defined(CUSTOM_MODES) && !defined(ENABLE_OPUS_CUSTOM_API) && !defined(ENABLE_QEXT)
328
   /* Short version for common case. */
329
0
   if (downsample == 1 && C == 2 && !accum)
330
0
   {
331
0
      deemphasis_stereo_simple(in, pcm, N, coef[0], mem);
332
0
      return;
333
0
   }
334
0
#endif
335
0
   ALLOC(scratch, N, celt_sig);
336
0
   coef0 = coef[0];
337
0
   Nd = N/downsample;
338
0
   c=0; do {
339
0
      int j;
340
0
      celt_sig * OPUS_RESTRICT x;
341
0
      opus_res  * OPUS_RESTRICT y;
342
0
      celt_sig m = mem[c];
343
0
      x =in[c];
344
0
      y = pcm+c;
345
#if defined(CUSTOM_MODES) || defined(ENABLE_OPUS_CUSTOM_API) || defined(ENABLE_QEXT)
346
      if (coef[1] != 0)
347
      {
348
         opus_val16 coef1 = coef[1];
349
         opus_val16 coef3 = coef[3];
350
         for (j=0;j<N;j++)
351
         {
352
            celt_sig tmp = SATURATE(x[j] + m + VERY_SMALL, SIG_SAT);
353
            m = MULT16_32_Q15(coef0, tmp)
354
                          - MULT16_32_Q15(coef1, x[j]);
355
            tmp = SHL32(MULT16_32_Q15(coef3, tmp), 2);
356
            scratch[j] = tmp;
357
         }
358
         apply_downsampling=1;
359
      } else
360
#endif
361
0
      if (downsample>1)
362
0
      {
363
         /* Shortcut for the standard (non-custom modes) case */
364
0
         for (j=0;j<N;j++)
365
0
         {
366
0
            celt_sig tmp = SATURATE(x[j] + VERY_SMALL + m, SIG_SAT);
367
0
            m = MULT16_32_Q15(coef0, tmp);
368
0
            scratch[j] = tmp;
369
0
         }
370
0
         apply_downsampling=1;
371
0
      } else {
372
         /* Shortcut for the standard (non-custom modes) case */
373
0
         if (accum)
374
0
         {
375
0
            for (j=0;j<N;j++)
376
0
            {
377
0
               celt_sig tmp = SATURATE(x[j] + m + VERY_SMALL, SIG_SAT);
378
0
               m = MULT16_32_Q15(coef0, tmp);
379
0
               y[j*C] = ADD_RES(y[j*C], SIG2RES(tmp));
380
0
            }
381
0
         } else
382
0
         {
383
0
            for (j=0;j<N;j++)
384
0
            {
385
0
               celt_sig tmp = SATURATE(x[j] + VERY_SMALL + m, SIG_SAT);
386
0
               m = MULT16_32_Q15(coef0, tmp);
387
0
               y[j*C] = SIG2RES(tmp);
388
0
            }
389
0
         }
390
0
      }
391
0
      mem[c] = m;
392
393
0
      if (apply_downsampling)
394
0
      {
395
         /* Perform down-sampling */
396
0
         if (accum)
397
0
         {
398
0
            for (j=0;j<Nd;j++)
399
0
               y[j*C] = ADD_RES(y[j*C], SIG2RES(scratch[j*downsample]));
400
0
         } else
401
0
         {
402
0
            for (j=0;j<Nd;j++)
403
0
               y[j*C] = SIG2RES(scratch[j*downsample]);
404
0
         }
405
0
      }
406
0
   } while (++c<C);
407
0
   RESTORE_STACK;
408
0
}
409
410
#ifndef RESYNTH
411
static
412
#endif
413
void celt_synthesis(const CELTMode *mode, celt_norm *X, celt_sig * out_syn[],
414
                    celt_glog *oldBandE, int start, int effEnd, int C, int CC,
415
                    int isTransient, int LM, int downsample,
416
                    int silence, int arch ARG_QEXT(const CELTMode *qext_mode) ARG_QEXT(const celt_glog *qext_bandLogE) ARG_QEXT(int qext_end))
417
0
{
418
0
   int c, i;
419
0
   int M;
420
0
   int b;
421
0
   int B;
422
0
   int N, NB;
423
0
   int shift;
424
0
   int nbEBands;
425
0
   int overlap;
426
0
   VARDECL(celt_sig, freq);
427
0
   SAVE_STACK;
428
429
0
   overlap = mode->overlap;
430
0
   nbEBands = mode->nbEBands;
431
0
   N = mode->shortMdctSize<<LM;
432
0
   ALLOC(freq, N, celt_sig); /**< Interleaved signal MDCTs */
433
0
   M = 1<<LM;
434
#ifdef ENABLE_QEXT
435
   if (mode->Fs != 96000) qext_end=2;
436
#endif
437
438
0
   if (isTransient)
439
0
   {
440
0
      B = M;
441
0
      NB = mode->shortMdctSize;
442
0
      shift = mode->maxLM;
443
0
   } else {
444
0
      B = 1;
445
0
      NB = mode->shortMdctSize<<LM;
446
0
      shift = mode->maxLM-LM;
447
0
   }
448
449
0
   if (CC==2&&C==1)
450
0
   {
451
      /* Copying a mono streams to two channels */
452
0
      celt_sig *freq2;
453
0
      denormalise_bands(mode, X, freq, oldBandE, start, effEnd, M,
454
0
            downsample, silence);
455
#ifdef ENABLE_QEXT
456
      if (qext_mode)
457
         denormalise_bands(qext_mode, X, freq, qext_bandLogE, 0, qext_end, M,
458
                        downsample, silence);
459
#endif
460
      /* Store a temporary copy in the output buffer because the IMDCT destroys its input. */
461
0
      freq2 = out_syn[1]+overlap/2;
462
0
      OPUS_COPY(freq2, freq, N);
463
0
      for (b=0;b<B;b++)
464
0
         clt_mdct_backward(&mode->mdct, &freq2[b], out_syn[0]+NB*b, mode->window, overlap, shift, B, arch);
465
0
      for (b=0;b<B;b++)
466
0
         clt_mdct_backward(&mode->mdct, &freq[b], out_syn[1]+NB*b, mode->window, overlap, shift, B, arch);
467
0
   } else if (CC==1&&C==2)
468
0
   {
469
      /* Downmixing a stereo stream to mono */
470
0
      celt_sig *freq2;
471
0
      freq2 = out_syn[0]+overlap/2;
472
0
      denormalise_bands(mode, X, freq, oldBandE, start, effEnd, M,
473
0
            downsample, silence);
474
      /* Use the output buffer as temp array before downmixing. */
475
0
      denormalise_bands(mode, X+N, freq2, oldBandE+nbEBands, start, effEnd, M,
476
0
            downsample, silence);
477
#ifdef ENABLE_QEXT
478
      if (qext_mode)
479
      {
480
         denormalise_bands(qext_mode, X, freq, qext_bandLogE, 0, qext_end, M,
481
                        downsample, silence);
482
         denormalise_bands(qext_mode, X+N, freq2, qext_bandLogE+NB_QEXT_BANDS, 0, qext_end, M,
483
                        downsample, silence);
484
      }
485
#endif
486
0
      for (i=0;i<N;i++)
487
0
         freq[i] = ADD32(HALF32(freq[i]), HALF32(freq2[i]));
488
0
      for (b=0;b<B;b++)
489
0
         clt_mdct_backward(&mode->mdct, &freq[b], out_syn[0]+NB*b, mode->window, overlap, shift, B, arch);
490
0
   } else {
491
      /* Normal case (mono or stereo) */
492
0
      c=0; do {
493
0
         denormalise_bands(mode, X+c*N, freq, oldBandE+c*nbEBands, start, effEnd, M,
494
0
               downsample, silence);
495
#ifdef ENABLE_QEXT
496
         if (qext_mode)
497
            denormalise_bands(qext_mode, X+c*N, freq, qext_bandLogE+c*NB_QEXT_BANDS, 0, qext_end, M,
498
                           downsample, silence);
499
#endif
500
0
         for (b=0;b<B;b++)
501
0
            clt_mdct_backward(&mode->mdct, &freq[b], out_syn[c]+NB*b, mode->window, overlap, shift, B, arch);
502
0
      } while (++c<CC);
503
0
   }
504
   /* Saturate IMDCT output so that we can't overflow in the pitch postfilter
505
      or in the */
506
0
   c=0; do {
507
0
      for (i=0;i<N;i++)
508
0
         out_syn[c][i] = SATURATE(out_syn[c][i], SIG_SAT);
509
0
   } while (++c<CC);
510
0
   RESTORE_STACK;
511
0
}
512
513
static void tf_decode(int start, int end, int isTransient, int *tf_res, int LM, ec_dec *dec)
514
0
{
515
0
   int i, curr, tf_select;
516
0
   int tf_select_rsv;
517
0
   int tf_changed;
518
0
   int logp;
519
0
   opus_uint32 budget;
520
0
   opus_uint32 tell;
521
522
0
   budget = dec->storage*8;
523
0
   tell = ec_tell(dec);
524
0
   logp = isTransient ? 2 : 4;
525
0
   tf_select_rsv = LM>0 && tell+logp+1<=budget;
526
0
   budget -= tf_select_rsv;
527
0
   tf_changed = curr = 0;
528
0
   for (i=start;i<end;i++)
529
0
   {
530
0
      if (tell+logp<=budget)
531
0
      {
532
0
         curr ^= ec_dec_bit_logp(dec, logp);
533
0
         tell = ec_tell(dec);
534
0
         tf_changed |= curr;
535
0
      }
536
0
      tf_res[i] = curr;
537
0
      logp = isTransient ? 4 : 5;
538
0
   }
539
0
   tf_select = 0;
540
0
   if (tf_select_rsv &&
541
0
     tf_select_table[LM][4*isTransient+0+tf_changed] !=
542
0
     tf_select_table[LM][4*isTransient+2+tf_changed])
543
0
   {
544
0
      tf_select = ec_dec_bit_logp(dec, 1);
545
0
   }
546
0
   for (i=start;i<end;i++)
547
0
   {
548
0
      tf_res[i] = tf_select_table[LM][4*isTransient+2*tf_select+tf_res[i]];
549
0
   }
550
0
}
551
552
static int celt_plc_pitch_search(CELTDecoder *st, celt_sig *decode_mem[2], int C, int arch)
553
0
{
554
0
   int pitch_index;
555
#ifdef ENABLE_QEXT
556
   int qext_scale;
557
#endif
558
0
   VARDECL( opus_val16, lp_pitch_buf );
559
0
   SAVE_STACK;
560
#ifdef ENABLE_QEXT
561
   qext_scale = st->qext_scale;
562
#else
563
0
   (void)st;
564
0
#endif
565
0
   ALLOC( lp_pitch_buf, DECODE_BUFFER_SIZE>>1, opus_val16 );
566
0
   pitch_downsample(decode_mem, lp_pitch_buf,
567
0
         DECODE_BUFFER_SIZE>>1, C, QEXT_SCALE(2), arch);
568
0
   pitch_search(lp_pitch_buf+(PLC_PITCH_LAG_MAX>>1), lp_pitch_buf,
569
0
         DECODE_BUFFER_SIZE-PLC_PITCH_LAG_MAX,
570
0
         PLC_PITCH_LAG_MAX-PLC_PITCH_LAG_MIN, &pitch_index, arch);
571
0
   pitch_index = PLC_PITCH_LAG_MAX-pitch_index;
572
0
   RESTORE_STACK;
573
0
   return QEXT_SCALE(pitch_index);
574
0
}
575
576
static void prefilter_and_fold(CELTDecoder * OPUS_RESTRICT st, int N)
577
0
{
578
0
   int c;
579
0
   int CC;
580
0
   int i;
581
0
   int overlap;
582
0
   celt_sig *decode_mem[2];
583
0
   const OpusCustomMode *mode;
584
0
   int decode_buffer_size;
585
#ifdef ENABLE_QEXT
586
   int qext_scale;
587
#endif
588
0
   VARDECL(opus_val32, etmp);
589
0
   SAVE_STACK
590
#ifdef ENABLE_QEXT
591
   qext_scale = st->qext_scale;
592
#endif
593
0
   decode_buffer_size = QEXT_SCALE(DECODE_BUFFER_SIZE);
594
0
   mode = st->mode;
595
0
   overlap = st->overlap;
596
0
   CC = st->channels;
597
0
   ALLOC(etmp, overlap, opus_val32);
598
0
   c=0; do {
599
0
      decode_mem[c] = st->_decode_mem + c*(decode_buffer_size+overlap);
600
0
   } while (++c<CC);
601
602
0
   c=0; do {
603
      /* Apply the pre-filter to the MDCT overlap for the next frame because
604
         the post-filter will be re-applied in the decoder after the MDCT
605
         overlap. */
606
0
      comb_filter(etmp, decode_mem[c]+decode_buffer_size-N,
607
0
         st->postfilter_period_old, st->postfilter_period, overlap,
608
0
         -st->postfilter_gain_old, -st->postfilter_gain,
609
0
         st->postfilter_tapset_old, st->postfilter_tapset, NULL, 0, st->arch);
610
611
      /* Simulate TDAC on the concealed audio so that it blends with the
612
         MDCT of the next frame. */
613
0
      for (i=0;i<overlap/2;i++)
614
0
      {
615
0
         decode_mem[c][decode_buffer_size-N+i] =
616
0
            MULT16_32_Q15(COEF2VAL16(mode->window[i]), etmp[overlap-1-i])
617
0
            + MULT16_32_Q15 (COEF2VAL16(mode->window[overlap-i-1]), etmp[i]);
618
0
      }
619
0
   } while (++c<CC);
620
0
   RESTORE_STACK;
621
0
}
622
623
#ifdef ENABLE_DEEP_PLC
624
625
#define SINC_ORDER 48
626
/* h=cos(pi/2*abs(sin([-24:24]/48*pi*23./24)).^2);
627
   b=sinc([-24:24]/3*1.02).*h;
628
   b=b/sum(b); */
629
static const float sinc_filter[SINC_ORDER+1] = {
630
    4.2931e-05f, -0.000190293f, -0.000816132f, -0.000637162f, 0.00141662f, 0.00354764f, 0.00184368f, -0.00428274f,
631
    -0.00856105f, -0.0034003f, 0.00930201f, 0.0159616f, 0.00489785f, -0.0169649f, -0.0259484f, -0.00596856f,
632
    0.0286551f, 0.0405872f, 0.00649994f, -0.0509284f, -0.0716655f, -0.00665212f,  0.134336f,  0.278927f,
633
    0.339995f,  0.278927f,  0.134336f, -0.00665212f, -0.0716655f, -0.0509284f, 0.00649994f, 0.0405872f,
634
    0.0286551f, -0.00596856f, -0.0259484f, -0.0169649f, 0.00489785f, 0.0159616f, 0.00930201f, -0.0034003f,
635
    -0.00856105f, -0.00428274f, 0.00184368f, 0.00354764f, 0.00141662f, -0.000637162f, -0.000816132f, -0.000190293f,
636
    4.2931e-05f
637
};
638
639
void update_plc_state(LPCNetPLCState *lpcnet, celt_sig *decode_mem[2], float *plc_preemphasis_mem, int CC)
640
{
641
   int i;
642
   int tmp_read_post, tmp_fec_skip;
643
   int offset;
644
   celt_sig buf48k[DECODE_BUFFER_SIZE];
645
   opus_int16 buf16k[PLC_UPDATE_SAMPLES];
646
   if (CC == 1) OPUS_COPY(buf48k, decode_mem[0], DECODE_BUFFER_SIZE);
647
   else {
648
      for (i=0;i<DECODE_BUFFER_SIZE;i++) {
649
         buf48k[i] = .5*(decode_mem[0][i] + decode_mem[1][i]);
650
      }
651
   }
652
   /* Down-sample the last 40 ms. */
653
   for (i=1;i<DECODE_BUFFER_SIZE;i++) buf48k[i] += PREEMPHASIS*buf48k[i-1];
654
   *plc_preemphasis_mem = buf48k[DECODE_BUFFER_SIZE-1];
655
   offset = DECODE_BUFFER_SIZE-SINC_ORDER-1 - 3*(PLC_UPDATE_SAMPLES-1);
656
   celt_assert(3*(PLC_UPDATE_SAMPLES-1) + SINC_ORDER + offset == DECODE_BUFFER_SIZE-1);
657
   for (i=0;i<PLC_UPDATE_SAMPLES;i++) {
658
      int j;
659
      float sum = 0;
660
      for (j=0;j<SINC_ORDER+1;j++) {
661
         sum += buf48k[3*i + j + offset]*sinc_filter[j];
662
      }
663
      buf16k[i] = float2int(MIN32(32767.f, MAX32(-32767.f, sum)));
664
   }
665
   tmp_read_post = lpcnet->fec_read_pos;
666
   tmp_fec_skip = lpcnet->fec_skip;
667
   for (i=0;i<PLC_UPDATE_FRAMES;i++) {
668
      lpcnet_plc_update(lpcnet, &buf16k[FRAME_SIZE*i]);
669
   }
670
   lpcnet->fec_read_pos = tmp_read_post;
671
   lpcnet->fec_skip = tmp_fec_skip;
672
}
673
#endif
674
675
static void celt_decode_lost(CELTDecoder * OPUS_RESTRICT st, int N, int LM
676
#ifdef ENABLE_DEEP_PLC
677
      ,LPCNetPLCState *lpcnet
678
#endif
679
      )
680
0
{
681
0
   int c;
682
0
   int i;
683
0
   const int C = st->channels;
684
0
   celt_sig *decode_mem[2];
685
0
   celt_sig *out_syn[2];
686
0
   opus_val16 *lpc;
687
0
   celt_glog *oldBandE, *oldLogE, *oldLogE2, *backgroundLogE;
688
0
   const OpusCustomMode *mode;
689
0
   int nbEBands;
690
0
   int overlap;
691
0
   int start;
692
0
   int loss_duration;
693
0
   int curr_frame_type;
694
0
   const opus_int16 *eBands;
695
0
   int decode_buffer_size;
696
0
   int max_period;
697
#ifdef ENABLE_QEXT
698
   int qext_scale;
699
#endif
700
0
   SAVE_STACK;
701
#ifdef ENABLE_QEXT
702
   qext_scale = st->qext_scale;
703
#endif
704
0
   decode_buffer_size = QEXT_SCALE(DECODE_BUFFER_SIZE);
705
0
   max_period = QEXT_SCALE(MAX_PERIOD);
706
0
   mode = st->mode;
707
0
   nbEBands = mode->nbEBands;
708
0
   overlap = mode->overlap;
709
0
   eBands = mode->eBands;
710
711
0
   c=0; do {
712
0
      decode_mem[c] = st->_decode_mem + c*(decode_buffer_size+overlap);
713
0
      out_syn[c] = decode_mem[c]+decode_buffer_size-N;
714
0
   } while (++c<C);
715
0
   oldBandE = (celt_glog*)(st->_decode_mem+(decode_buffer_size+overlap)*C);
716
0
   oldLogE = oldBandE + 2*nbEBands;
717
0
   oldLogE2 = oldLogE + 2*nbEBands;
718
0
   backgroundLogE = oldLogE2 + 2*nbEBands;
719
0
   lpc = (opus_val16*)(backgroundLogE + 2*nbEBands);
720
721
0
   loss_duration = st->loss_duration;
722
0
   start = st->start;
723
0
   curr_frame_type = FRAME_PLC_PERIODIC;
724
0
   if (st->plc_duration >= 40 || start != 0 || st->skip_plc)
725
0
      curr_frame_type = FRAME_PLC_NOISE;
726
#ifdef ENABLE_DEEP_PLC
727
   if (start == 0 && lpcnet != NULL && st->mode->Fs != 96000 && lpcnet->loaded)
728
   {
729
      if (st->complexity >= 5 && st->plc_duration < 80 && !st->skip_plc)
730
         curr_frame_type = FRAME_PLC_NEURAL;
731
#ifdef ENABLE_DRED
732
      if (lpcnet->fec_fill_pos > lpcnet->fec_read_pos)
733
         curr_frame_type = FRAME_DRED;
734
#endif
735
   }
736
#endif
737
738
0
   if (curr_frame_type == FRAME_PLC_NOISE)
739
0
   {
740
      /* Noise-based PLC/CNG */
741
0
      VARDECL(celt_norm, X);
742
0
      opus_uint32 seed;
743
0
      int end;
744
0
      int effEnd;
745
0
      celt_glog decay;
746
0
      end = st->end;
747
0
      effEnd = IMAX(start, IMIN(end, mode->effEBands));
748
749
0
      ALLOC(X, C*N, celt_norm);   /**< Interleaved normalised MDCTs */
750
0
      c=0; do {
751
0
         OPUS_MOVE(decode_mem[c], decode_mem[c]+N,
752
0
               decode_buffer_size-N+overlap);
753
0
      } while (++c<C);
754
755
0
      if (st->prefilter_and_fold) {
756
0
         prefilter_and_fold(st, N);
757
0
      }
758
759
      /* Energy decay */
760
0
      decay = loss_duration==0 ? GCONST(1.5f) : GCONST(.5f);
761
0
      c=0; do
762
0
      {
763
0
         for (i=start;i<end;i++)
764
0
            oldBandE[c*nbEBands+i] = MAXG(backgroundLogE[c*nbEBands+i], oldBandE[c*nbEBands+i] - decay);
765
0
      } while (++c<C);
766
0
      seed = st->rng;
767
0
      for (c=0;c<C;c++)
768
0
      {
769
0
         for (i=start;i<effEnd;i++)
770
0
         {
771
0
            int j;
772
0
            int boffs;
773
0
            int blen;
774
0
            boffs = N*c+(eBands[i]<<LM);
775
0
            blen = (eBands[i+1]-eBands[i])<<LM;
776
0
            for (j=0;j<blen;j++)
777
0
            {
778
0
               seed = celt_lcg_rand(seed);
779
0
               X[boffs+j] = SHL32((celt_norm)((opus_int32)seed>>20), NORM_SHIFT-14);
780
0
            }
781
0
            renormalise_vector(X+boffs, blen, Q31ONE, st->arch);
782
0
         }
783
0
      }
784
0
      st->rng = seed;
785
786
0
      celt_synthesis(mode, X, out_syn, oldBandE, start, effEnd, C, C, 0, LM, st->downsample, 0, st->arch ARG_QEXT(NULL) ARG_QEXT(NULL) ARG_QEXT(0));
787
788
      /* Run the postfilter with the last parameters. */
789
0
      c=0; do {
790
0
         st->postfilter_period=IMAX(st->postfilter_period, COMBFILTER_MINPERIOD);
791
0
         st->postfilter_period_old=IMAX(st->postfilter_period_old, COMBFILTER_MINPERIOD);
792
0
         comb_filter(out_syn[c], out_syn[c], st->postfilter_period_old, st->postfilter_period, mode->shortMdctSize,
793
0
               st->postfilter_gain_old, st->postfilter_gain, st->postfilter_tapset_old, st->postfilter_tapset,
794
0
               mode->window, overlap, st->arch);
795
0
         if (LM!=0)
796
0
            comb_filter(out_syn[c]+mode->shortMdctSize, out_syn[c]+mode->shortMdctSize, st->postfilter_period, st->postfilter_period, N-mode->shortMdctSize,
797
0
                  st->postfilter_gain, st->postfilter_gain, st->postfilter_tapset, st->postfilter_tapset,
798
0
                  mode->window, overlap, st->arch);
799
800
0
      } while (++c<C);
801
0
      st->postfilter_period_old = st->postfilter_period;
802
0
      st->postfilter_gain_old = st->postfilter_gain;
803
0
      st->postfilter_tapset_old = st->postfilter_tapset;
804
805
0
      st->prefilter_and_fold = 0;
806
      /* Skip regular PLC until we get two consecutive packets. */
807
0
      st->skip_plc = 1;
808
0
   } else {
809
0
      int exc_length;
810
      /* Pitch-based PLC */
811
0
      const celt_coef *window;
812
0
      opus_val16 *exc;
813
0
      opus_val16 fade = Q15ONE;
814
0
      int pitch_index;
815
0
      int curr_neural;
816
0
      int last_neural;
817
0
      VARDECL(opus_val16, _exc);
818
0
      VARDECL(opus_val16, fir_tmp);
819
820
0
      curr_neural = curr_frame_type == FRAME_PLC_NEURAL || curr_frame_type == FRAME_DRED;
821
0
      last_neural = st->last_frame_type == FRAME_PLC_NEURAL || st->last_frame_type == FRAME_DRED;
822
0
      if (st->last_frame_type != FRAME_PLC_PERIODIC && !(last_neural && curr_neural))
823
0
      {
824
0
         st->last_pitch_index = pitch_index = celt_plc_pitch_search(st, decode_mem, C, st->arch);
825
0
      } else {
826
0
         pitch_index = st->last_pitch_index;
827
0
         fade = QCONST16(.8f,15);
828
0
      }
829
#ifdef ENABLE_DEEP_PLC
830
      if (curr_neural && !last_neural) update_plc_state(lpcnet, decode_mem, &st->plc_preemphasis_mem, C);
831
#endif
832
833
      /* We want the excitation for 2 pitch periods in order to look for a
834
         decaying signal, but we can't get more than MAX_PERIOD. */
835
0
      exc_length = IMIN(2*pitch_index, max_period);
836
837
0
      ALLOC(_exc, max_period+CELT_LPC_ORDER, opus_val16);
838
0
      ALLOC(fir_tmp, exc_length, opus_val16);
839
0
      exc = _exc+CELT_LPC_ORDER;
840
0
      window = mode->window;
841
0
      c=0; do {
842
0
         opus_val16 decay;
843
0
         opus_val16 attenuation;
844
0
         opus_val32 S1=0;
845
0
         celt_sig *buf;
846
0
         int extrapolation_offset;
847
0
         int extrapolation_len;
848
0
         int j;
849
850
0
         buf = decode_mem[c];
851
0
         for (i=0;i<max_period+CELT_LPC_ORDER;i++)
852
0
            exc[i-CELT_LPC_ORDER] = SROUND16(buf[decode_buffer_size-max_period-CELT_LPC_ORDER+i], SIG_SHIFT);
853
854
0
         if (st->last_frame_type != FRAME_PLC_PERIODIC && !(last_neural && curr_neural))
855
0
         {
856
0
            opus_val32 ac[CELT_LPC_ORDER+1];
857
            /* Compute LPC coefficients for the last MAX_PERIOD samples before
858
               the first loss so we can work in the excitation-filter domain. */
859
0
            _celt_autocorr(exc, ac, window, overlap,
860
0
                   CELT_LPC_ORDER, max_period, st->arch);
861
            /* Add a noise floor of -40 dB. */
862
#ifdef FIXED_POINT
863
            ac[0] += SHR32(ac[0],13);
864
#else
865
0
            ac[0] *= 1.0001f;
866
0
#endif
867
            /* Use lag windowing to stabilize the Levinson-Durbin recursion. */
868
0
            for (i=1;i<=CELT_LPC_ORDER;i++)
869
0
            {
870
               /*ac[i] *= exp(-.5*(2*M_PI*.002*i)*(2*M_PI*.002*i));*/
871
#ifdef FIXED_POINT
872
               ac[i] -= MULT16_32_Q15(2*i*i, ac[i]);
873
#else
874
0
               ac[i] -= ac[i]*(0.008f*0.008f)*i*i;
875
0
#endif
876
0
            }
877
0
            _celt_lpc(lpc+c*CELT_LPC_ORDER, ac, CELT_LPC_ORDER);
878
#ifdef FIXED_POINT
879
         /* For fixed-point, apply bandwidth expansion until we can guarantee that
880
            no overflow can happen in the IIR filter. This means:
881
            32768*sum(abs(filter)) < 2^31 */
882
         while (1) {
883
            opus_val16 tmp=Q15ONE;
884
            opus_val32 sum=QCONST16(1., SIG_SHIFT);
885
            for (i=0;i<CELT_LPC_ORDER;i++)
886
               sum += ABS16(lpc[c*CELT_LPC_ORDER+i]);
887
            if (sum < 65535) break;
888
            for (i=0;i<CELT_LPC_ORDER;i++)
889
            {
890
               tmp = MULT16_16_Q15(QCONST16(.99f,15), tmp);
891
               lpc[c*CELT_LPC_ORDER+i] = MULT16_16_Q15(lpc[c*CELT_LPC_ORDER+i], tmp);
892
            }
893
         }
894
#endif
895
0
         }
896
         /* Initialize the LPC history with the samples just before the start
897
            of the region for which we're computing the excitation. */
898
0
         {
899
            /* Compute the excitation for exc_length samples before the loss. We need the copy
900
               because celt_fir() cannot filter in-place. */
901
0
            celt_fir(exc+max_period-exc_length, lpc+c*CELT_LPC_ORDER,
902
0
                  fir_tmp, exc_length, CELT_LPC_ORDER, st->arch);
903
0
            OPUS_COPY(exc+max_period-exc_length, fir_tmp, exc_length);
904
0
         }
905
906
         /* Check if the waveform is decaying, and if so how fast.
907
            We do this to avoid adding energy when concealing in a segment
908
            with decaying energy. */
909
0
         {
910
0
            opus_val32 E1=1, E2=1;
911
0
            int decay_length;
912
#ifdef FIXED_POINT
913
            int shift = IMAX(0,2*celt_zlog2(celt_maxabs16(&exc[max_period-exc_length], exc_length))-20);
914
#ifdef ENABLE_QEXT
915
            if (st->qext_scale==2) shift++;
916
#endif
917
#endif
918
0
            decay_length = exc_length>>1;
919
0
            for (i=0;i<decay_length;i++)
920
0
            {
921
0
               opus_val16 e;
922
0
               e = exc[max_period-decay_length+i];
923
0
               E1 += SHR32(MULT16_16(e, e), shift);
924
0
               e = exc[max_period-2*decay_length+i];
925
0
               E2 += SHR32(MULT16_16(e, e), shift);
926
0
            }
927
0
            E1 = MIN32(E1, E2);
928
0
            decay = celt_sqrt(frac_div32(SHR32(E1, 1), E2));
929
0
         }
930
931
         /* Move the decoder memory one frame to the left to give us room to
932
            add the data for the new frame. We ignore the overlap that extends
933
            past the end of the buffer, because we aren't going to use it. */
934
0
         OPUS_MOVE(buf, buf+N, decode_buffer_size-N);
935
936
         /* Extrapolate from the end of the excitation with a period of
937
            "pitch_index", scaling down each period by an additional factor of
938
            "decay". */
939
0
         extrapolation_offset = max_period-pitch_index;
940
         /* We need to extrapolate enough samples to cover a complete MDCT
941
            window (including overlap/2 samples on both sides). */
942
0
         extrapolation_len = N+overlap;
943
         /* We also apply fading if this is not the first loss. */
944
0
         attenuation = MULT16_16_Q15(fade, decay);
945
0
         for (i=j=0;i<extrapolation_len;i++,j++)
946
0
         {
947
0
            opus_val16 tmp;
948
0
            if (j >= pitch_index) {
949
0
               j -= pitch_index;
950
0
               attenuation = MULT16_16_Q15(attenuation, decay);
951
0
            }
952
0
            buf[decode_buffer_size-N+i] =
953
0
                  SHL32(EXTEND32(MULT16_16_Q15(attenuation,
954
0
                        exc[extrapolation_offset+j])), SIG_SHIFT);
955
            /* Compute the energy of the previously decoded signal whose
956
               excitation we're copying. */
957
0
            tmp = SROUND16(
958
0
                  buf[decode_buffer_size-max_period-N+extrapolation_offset+j],
959
0
                  SIG_SHIFT);
960
0
            S1 += SHR32(MULT16_16(tmp, tmp), 11);
961
0
         }
962
0
         {
963
0
            opus_val16 lpc_mem[CELT_LPC_ORDER];
964
            /* Copy the last decoded samples (prior to the overlap region) to
965
               synthesis filter memory so we can have a continuous signal. */
966
0
            for (i=0;i<CELT_LPC_ORDER;i++)
967
0
               lpc_mem[i] = SROUND16(buf[decode_buffer_size-N-1-i], SIG_SHIFT);
968
            /* Apply the synthesis filter to convert the excitation back into
969
               the signal domain. */
970
0
            celt_iir(buf+decode_buffer_size-N, lpc+c*CELT_LPC_ORDER,
971
0
                  buf+decode_buffer_size-N, extrapolation_len, CELT_LPC_ORDER,
972
0
                  lpc_mem, st->arch);
973
#ifdef FIXED_POINT
974
            for (i=0; i < extrapolation_len; i++)
975
               buf[decode_buffer_size-N+i] = SATURATE(buf[decode_buffer_size-N+i], SIG_SAT);
976
#endif
977
0
         }
978
979
         /* Check if the synthesis energy is higher than expected, which can
980
            happen with the signal changes during our window. If so,
981
            attenuate. */
982
0
         {
983
0
            opus_val32 S2=0;
984
0
            for (i=0;i<extrapolation_len;i++)
985
0
            {
986
0
               opus_val16 tmp = SROUND16(buf[decode_buffer_size-N+i], SIG_SHIFT);
987
0
               S2 += SHR32(MULT16_16(tmp, tmp), 11);
988
0
            }
989
            /* This checks for an "explosion" in the synthesis. */
990
#ifdef FIXED_POINT
991
            if (!(S1 > SHR32(S2,2)))
992
#else
993
            /* The float test is written this way to catch NaNs in the output
994
               of the IIR filter at the same time. */
995
0
            if (!(S1 > 0.2f*S2))
996
0
#endif
997
0
            {
998
0
               for (i=0;i<extrapolation_len;i++)
999
0
                  buf[decode_buffer_size-N+i] = 0;
1000
0
            } else if (S1 < S2)
1001
0
            {
1002
0
               opus_val16 ratio = celt_sqrt(frac_div32(SHR32(S1,1)+1,S2+1));
1003
0
               for (i=0;i<overlap;i++)
1004
0
               {
1005
0
                  opus_val16 tmp_g = Q15ONE
1006
0
                        - MULT16_16_Q15(COEF2VAL16(window[i]), Q15ONE-ratio);
1007
0
                  buf[decode_buffer_size-N+i] =
1008
0
                        MULT16_32_Q15(tmp_g, buf[decode_buffer_size-N+i]);
1009
0
               }
1010
0
               for (i=overlap;i<extrapolation_len;i++)
1011
0
               {
1012
0
                  buf[decode_buffer_size-N+i] =
1013
0
                        MULT16_32_Q15(ratio, buf[decode_buffer_size-N+i]);
1014
0
               }
1015
0
            }
1016
0
         }
1017
1018
0
      } while (++c<C);
1019
1020
#ifdef ENABLE_DEEP_PLC
1021
      if (curr_neural) {
1022
         float overlap_mem;
1023
         int samples_needed16k;
1024
         celt_sig *buf;
1025
         VARDECL(float, buf_copy);
1026
         buf = decode_mem[0];
1027
         ALLOC(buf_copy, C*overlap, float);
1028
         c=0; do {
1029
            OPUS_COPY(buf_copy+c*overlap, &decode_mem[c][decode_buffer_size-N], overlap);
1030
         } while (++c<C);
1031
1032
         /* Need enough samples from the PLC to cover the frame size, resampling delay,
1033
            and the overlap at the end. */
1034
         samples_needed16k = (N+SINC_ORDER+overlap)/3;
1035
         if (!last_neural) {
1036
            st->plc_fill = 0;
1037
         }
1038
         while (st->plc_fill < samples_needed16k) {
1039
            lpcnet_plc_conceal(lpcnet, &st->plc_pcm[st->plc_fill]);
1040
            st->plc_fill += FRAME_SIZE;
1041
         }
1042
         /* Resample to 48 kHz. */
1043
         for (i=0;i<(N+overlap)/3;i++) {
1044
            int j;
1045
            float sum;
1046
            for (sum=0, j=0;j<17;j++) sum += 3*st->plc_pcm[i+j]*sinc_filter[3*j];
1047
            buf[decode_buffer_size-N+3*i] = sum;
1048
            for (sum=0, j=0;j<16;j++) sum += 3*st->plc_pcm[i+j+1]*sinc_filter[3*j+2];
1049
            buf[decode_buffer_size-N+3*i+1] = sum;
1050
            for (sum=0, j=0;j<16;j++) sum += 3*st->plc_pcm[i+j+1]*sinc_filter[3*j+1];
1051
            buf[decode_buffer_size-N+3*i+2] = sum;
1052
         }
1053
         OPUS_MOVE(st->plc_pcm, &st->plc_pcm[N/3], st->plc_fill-N/3);
1054
         st->plc_fill -= N/3;
1055
         for (i=0;i<N;i++) {
1056
            float tmp = buf[decode_buffer_size-N+i];
1057
            buf[decode_buffer_size-N+i] -= PREEMPHASIS*st->plc_preemphasis_mem;
1058
            st->plc_preemphasis_mem = tmp;
1059
         }
1060
         overlap_mem = st->plc_preemphasis_mem;
1061
         for (i=0;i<overlap;i++) {
1062
            float tmp = buf[decode_buffer_size+i];
1063
            buf[decode_buffer_size+i] -= PREEMPHASIS*overlap_mem;
1064
            overlap_mem = tmp;
1065
         }
1066
         /* For now, we just do mono PLC. */
1067
         if (C==2) OPUS_COPY(decode_mem[1], decode_mem[0], decode_buffer_size+overlap);
1068
         c=0; do {
1069
            /* Cross-fade with 48-kHz non-neural PLC for the first 2.5 ms to avoid a discontinuity. */
1070
            if (!last_neural) {
1071
               for (i=0;i<overlap;i++) decode_mem[c][decode_buffer_size-N+i] = (1-window[i])*buf_copy[c*overlap+i] + (window[i])*decode_mem[c][decode_buffer_size-N+i];
1072
            }
1073
         } while (++c<C);
1074
      }
1075
#endif
1076
0
      st->prefilter_and_fold = 1;
1077
0
   }
1078
1079
   /* Saturate to something large to avoid wrap-around. */
1080
0
   st->loss_duration = IMIN(10000, loss_duration+(1<<LM));
1081
0
   st->plc_duration = IMIN(10000, st->plc_duration+(1<<LM));
1082
#ifdef ENABLE_DRED
1083
   if (curr_frame_type == FRAME_DRED) {
1084
      st->plc_duration = 0;
1085
      st->skip_plc = 0;
1086
   }
1087
#endif
1088
0
   st->last_frame_type = curr_frame_type;
1089
0
   RESTORE_STACK;
1090
0
}
1091
1092
#ifdef ENABLE_QEXT
1093
static void decode_qext_stereo_params(ec_dec *ec, int qext_end, int *qext_intensity, int *qext_dual_stereo) {
1094
   *qext_intensity = ec_dec_uint(ec, qext_end+1);
1095
   if (*qext_intensity != 0) *qext_dual_stereo = ec_dec_bit_logp(ec, 1);
1096
   else *qext_dual_stereo = 0;
1097
}
1098
#endif
1099
1100
int celt_decode_with_ec_dred(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data,
1101
      int len, opus_res * OPUS_RESTRICT pcm, int frame_size, ec_dec *dec, int accum
1102
#ifdef ENABLE_DEEP_PLC
1103
      ,LPCNetPLCState *lpcnet
1104
#endif
1105
      ARG_QEXT(const unsigned char *qext_payload) ARG_QEXT(int qext_payload_len)
1106
      )
1107
0
{
1108
0
   int c, i, N;
1109
0
   int spread_decision;
1110
0
   opus_int32 bits;
1111
0
   ec_dec _dec;
1112
0
   VARDECL(celt_norm, X);
1113
0
   VARDECL(int, fine_quant);
1114
0
   VARDECL(int, pulses);
1115
0
   VARDECL(int, cap);
1116
0
   VARDECL(int, offsets);
1117
0
   VARDECL(int, fine_priority);
1118
0
   VARDECL(int, tf_res);
1119
0
   VARDECL(unsigned char, collapse_masks);
1120
0
   celt_sig *decode_mem[2];
1121
0
   celt_sig *out_syn[2];
1122
0
   celt_glog *oldBandE, *oldLogE, *oldLogE2, *backgroundLogE;
1123
1124
0
   int shortBlocks;
1125
0
   int isTransient;
1126
0
   int intra_ener;
1127
0
   const int CC = st->channels;
1128
0
   int LM, M;
1129
0
   int start;
1130
0
   int end;
1131
0
   int effEnd;
1132
0
   int codedBands;
1133
0
   int alloc_trim;
1134
0
   int postfilter_pitch;
1135
0
   opus_val16 postfilter_gain;
1136
0
   int intensity=0;
1137
0
   int dual_stereo=0;
1138
0
   opus_int32 total_bits;
1139
0
   opus_int32 balance;
1140
0
   opus_int32 tell;
1141
0
   int dynalloc_logp;
1142
0
   int postfilter_tapset;
1143
0
   int anti_collapse_rsv;
1144
0
   int anti_collapse_on=0;
1145
0
   int silence;
1146
0
   int C = st->stream_channels;
1147
0
   const OpusCustomMode *mode;
1148
0
   int nbEBands;
1149
0
   int overlap;
1150
0
   const opus_int16 *eBands;
1151
0
   celt_glog max_background_increase;
1152
0
   int decode_buffer_size;
1153
#ifdef ENABLE_QEXT
1154
   opus_int32 qext_bits;
1155
   ec_dec ext_dec;
1156
   int qext_bytes=0;
1157
   int qext_end=0;
1158
   int qext_intensity=0;
1159
   int qext_dual_stereo=0;
1160
   VARDECL(int, extra_quant);
1161
   VARDECL(int, extra_pulses);
1162
   const CELTMode *qext_mode = NULL;
1163
   CELTMode qext_mode_struct;
1164
   int qext_scale;
1165
#else
1166
0
# define qext_bytes 0
1167
0
#endif
1168
0
   ALLOC_STACK;
1169
#ifdef ENABLE_QEXT
1170
   qext_scale = st->qext_scale;
1171
#endif
1172
0
   decode_buffer_size = QEXT_SCALE(DECODE_BUFFER_SIZE);
1173
1174
0
   VALIDATE_CELT_DECODER(st);
1175
0
   mode = st->mode;
1176
0
   nbEBands = mode->nbEBands;
1177
0
   overlap = mode->overlap;
1178
0
   eBands = mode->eBands;
1179
0
   start = st->start;
1180
0
   end = st->end;
1181
0
   frame_size *= st->downsample;
1182
1183
0
   oldBandE = (celt_glog*)(st->_decode_mem+(decode_buffer_size+overlap)*CC);
1184
0
   oldLogE = oldBandE + 2*nbEBands;
1185
0
   oldLogE2 = oldLogE + 2*nbEBands;
1186
0
   backgroundLogE = oldLogE2 + 2*nbEBands;
1187
1188
#ifdef ENABLE_QEXT
1189
   if (qext_payload) {
1190
      ec_dec_init(&ext_dec, (unsigned char*)qext_payload, qext_payload_len);
1191
      qext_bytes = qext_payload_len;
1192
   } else {
1193
      ec_dec_init(&ext_dec, NULL, 0);
1194
   }
1195
#endif
1196
#if defined(CUSTOM_MODES) || defined(ENABLE_OPUS_CUSTOM_API)
1197
   if (st->signalling && data!=NULL)
1198
   {
1199
      int data0=data[0];
1200
      /* Convert "standard mode" to Opus header */
1201
# ifndef ENABLE_QEXT
1202
      if (mode->Fs==48000 && mode->shortMdctSize==120)
1203
# endif
1204
      {
1205
         data0 = fromOpus(data0);
1206
         if (data0<0)
1207
            return OPUS_INVALID_PACKET;
1208
      }
1209
      st->end = end = IMAX(1, mode->effEBands-2*(data0>>5));
1210
      LM = (data0>>3)&0x3;
1211
      C = 1 + ((data0>>2)&0x1);
1212
      if ((data[0] & 0x03) == 0x03) {
1213
         data++;
1214
         len--;
1215
         if (len<=0)
1216
            return OPUS_INVALID_PACKET;
1217
         if (data[0] & 0x40) {
1218
            int p;
1219
            int padding=0;
1220
            data++;
1221
            len--;
1222
            do {
1223
               int tmp;
1224
               if (len<=0)
1225
                  return OPUS_INVALID_PACKET;
1226
               p = *data++;
1227
               len--;
1228
               tmp = p==255 ? 254: p;
1229
               len -= tmp;
1230
               padding += tmp;
1231
            } while (p==255);
1232
            padding--;
1233
            if (len <= 0 || padding<0) return OPUS_INVALID_PACKET;
1234
#ifdef ENABLE_QEXT
1235
            qext_bytes = padding;
1236
            if (data[len] != QEXT_EXTENSION_ID<<1)
1237
               qext_bytes=0;
1238
            ec_dec_init(&ext_dec, (unsigned char*)data+len+1, qext_bytes);
1239
#endif
1240
         }
1241
      } else
1242
      {
1243
         data++;
1244
         len--;
1245
      }
1246
      if (LM>mode->maxLM)
1247
         return OPUS_INVALID_PACKET;
1248
      if (frame_size < mode->shortMdctSize<<LM)
1249
         return OPUS_BUFFER_TOO_SMALL;
1250
      else
1251
         frame_size = mode->shortMdctSize<<LM;
1252
   } else {
1253
#else
1254
0
   {
1255
0
#endif
1256
0
      for (LM=0;LM<=mode->maxLM;LM++)
1257
0
         if (mode->shortMdctSize<<LM==frame_size)
1258
0
            break;
1259
0
      if (LM>mode->maxLM)
1260
0
         return OPUS_BAD_ARG;
1261
0
   }
1262
0
   M=1<<LM;
1263
1264
0
   if (len<0 || len>1275 || pcm==NULL)
1265
0
      return OPUS_BAD_ARG;
1266
1267
0
   N = M*mode->shortMdctSize;
1268
0
   c=0; do {
1269
0
      decode_mem[c] = st->_decode_mem + c*(decode_buffer_size+overlap);
1270
0
      out_syn[c] = decode_mem[c]+decode_buffer_size-N;
1271
0
   } while (++c<CC);
1272
1273
0
   effEnd = end;
1274
0
   if (effEnd > mode->effEBands)
1275
0
      effEnd = mode->effEBands;
1276
1277
0
   if (data == NULL || len<=1)
1278
0
   {
1279
0
      celt_decode_lost(st, N, LM
1280
#ifdef ENABLE_DEEP_PLC
1281
      , lpcnet
1282
#endif
1283
0
                      );
1284
0
      deemphasis(out_syn, pcm, N, CC, st->downsample, mode->preemph, st->preemph_memD, accum);
1285
0
      RESTORE_STACK;
1286
0
      return frame_size/st->downsample;
1287
0
   }
1288
#ifdef ENABLE_DEEP_PLC
1289
   else {
1290
      /* FIXME: This is a bit of a hack just to make sure opus_decode_native() knows we're no longer in PLC. */
1291
      if (lpcnet) lpcnet->blend = 0;
1292
   }
1293
#endif
1294
1295
   /* Check if there are at least two packets received consecutively before
1296
    * turning on the pitch-based PLC */
1297
0
   if (st->loss_duration == 0) st->skip_plc = 0;
1298
1299
0
   if (dec == NULL)
1300
0
   {
1301
0
      ec_dec_init(&_dec,(unsigned char*)data,len);
1302
0
      dec = &_dec;
1303
0
   }
1304
1305
0
   if (C==1)
1306
0
   {
1307
0
      for (i=0;i<nbEBands;i++)
1308
0
         oldBandE[i]=MAXG(oldBandE[i],oldBandE[nbEBands+i]);
1309
0
   }
1310
1311
0
   total_bits = len*8;
1312
0
   tell = ec_tell(dec);
1313
1314
0
   if (tell >= total_bits)
1315
0
      silence = 1;
1316
0
   else if (tell==1)
1317
0
      silence = ec_dec_bit_logp(dec, 15);
1318
0
   else
1319
0
      silence = 0;
1320
0
   if (silence)
1321
0
   {
1322
      /* Pretend we've read all the remaining bits */
1323
0
      tell = len*8;
1324
0
      dec->nbits_total+=tell-ec_tell(dec);
1325
0
   }
1326
1327
0
   postfilter_gain = 0;
1328
0
   postfilter_pitch = 0;
1329
0
   postfilter_tapset = 0;
1330
0
   if (start==0 && tell+16 <= total_bits)
1331
0
   {
1332
0
      if(ec_dec_bit_logp(dec, 1))
1333
0
      {
1334
0
         int qg, octave;
1335
0
         octave = ec_dec_uint(dec, 6);
1336
0
         postfilter_pitch = (16<<octave)+ec_dec_bits(dec, 4+octave)-1;
1337
0
         qg = ec_dec_bits(dec, 3);
1338
0
         if (ec_tell(dec)+2<=total_bits)
1339
0
            postfilter_tapset = ec_dec_icdf(dec, tapset_icdf, 2);
1340
0
         postfilter_gain = QCONST16(.09375f,15)*(qg+1);
1341
0
      }
1342
0
      tell = ec_tell(dec);
1343
0
   }
1344
1345
0
   if (LM > 0 && tell+3 <= total_bits)
1346
0
   {
1347
0
      isTransient = ec_dec_bit_logp(dec, 3);
1348
0
      tell = ec_tell(dec);
1349
0
   }
1350
0
   else
1351
0
      isTransient = 0;
1352
1353
0
   if (isTransient)
1354
0
      shortBlocks = M;
1355
0
   else
1356
0
      shortBlocks = 0;
1357
1358
   /* Decode the global flags (first symbols in the stream) */
1359
0
   intra_ener = tell+3<=total_bits ? ec_dec_bit_logp(dec, 3) : 0;
1360
   /* If recovering from packet loss, make sure we make the energy prediction safe to reduce the
1361
      risk of getting loud artifacts. */
1362
0
   if (!intra_ener && st->loss_duration != 0) {
1363
0
      c=0; do
1364
0
      {
1365
0
         celt_glog safety = 0;
1366
0
         int missing = IMIN(10, st->loss_duration>>LM);
1367
0
         if (LM==0) safety = GCONST(1.5f);
1368
0
         else if (LM==1) safety = GCONST(.5f);
1369
0
         for (i=start;i<end;i++)
1370
0
         {
1371
0
            if (oldBandE[c*nbEBands+i] < MAXG(oldLogE[c*nbEBands+i], oldLogE2[c*nbEBands+i])) {
1372
               /* If energy is going down already, continue the trend. */
1373
0
               opus_val32 slope;
1374
0
               opus_val32 E0, E1, E2;
1375
0
               E0 = oldBandE[c*nbEBands+i];
1376
0
               E1 = oldLogE[c*nbEBands+i];
1377
0
               E2 = oldLogE2[c*nbEBands+i];
1378
0
               slope = MAX32(E1 - E0, HALF32(E2 - E0));
1379
0
               slope = MING(slope, GCONST(2.f));
1380
0
               E0 -= MAX32(0, (1+missing)*slope);
1381
0
               oldBandE[c*nbEBands+i] = MAX32(-GCONST(20.f), E0);
1382
0
            } else {
1383
               /* Otherwise take the min of the last frames. */
1384
0
               oldBandE[c*nbEBands+i] = MING(MING(oldBandE[c*nbEBands+i], oldLogE[c*nbEBands+i]), oldLogE2[c*nbEBands+i]);
1385
0
            }
1386
            /* Shorter frames have more natural fluctuations -- play it safe. */
1387
0
            oldBandE[c*nbEBands+i] -= safety;
1388
0
         }
1389
0
      } while (++c<2);
1390
0
   }
1391
   /* Get band energies */
1392
0
   unquant_coarse_energy(mode, start, end, oldBandE,
1393
0
         intra_ener, dec, C, LM);
1394
1395
0
   ALLOC(tf_res, nbEBands, int);
1396
0
   tf_decode(start, end, isTransient, tf_res, LM, dec);
1397
1398
0
   tell = ec_tell(dec);
1399
0
   spread_decision = SPREAD_NORMAL;
1400
0
   if (tell+4 <= total_bits)
1401
0
      spread_decision = ec_dec_icdf(dec, spread_icdf, 5);
1402
1403
0
   ALLOC(cap, nbEBands, int);
1404
1405
0
   init_caps(mode,cap,LM,C);
1406
1407
0
   ALLOC(offsets, nbEBands, int);
1408
1409
0
   dynalloc_logp = 6;
1410
0
   total_bits<<=BITRES;
1411
0
   tell = ec_tell_frac(dec);
1412
0
   for (i=start;i<end;i++)
1413
0
   {
1414
0
      int width, quanta;
1415
0
      int dynalloc_loop_logp;
1416
0
      int boost;
1417
0
      width = C*(eBands[i+1]-eBands[i])<<LM;
1418
      /* quanta is 6 bits, but no more than 1 bit/sample
1419
         and no less than 1/8 bit/sample */
1420
0
      quanta = IMIN(width<<BITRES, IMAX(6<<BITRES, width));
1421
0
      dynalloc_loop_logp = dynalloc_logp;
1422
0
      boost = 0;
1423
0
      while (tell+(dynalloc_loop_logp<<BITRES) < total_bits && boost < cap[i])
1424
0
      {
1425
0
         int flag;
1426
0
         flag = ec_dec_bit_logp(dec, dynalloc_loop_logp);
1427
0
         tell = ec_tell_frac(dec);
1428
0
         if (!flag)
1429
0
            break;
1430
0
         boost += quanta;
1431
0
         total_bits -= quanta;
1432
0
         dynalloc_loop_logp = 1;
1433
0
      }
1434
0
      offsets[i] = boost;
1435
      /* Making dynalloc more likely */
1436
0
      if (boost>0)
1437
0
         dynalloc_logp = IMAX(2, dynalloc_logp-1);
1438
0
   }
1439
1440
0
   ALLOC(fine_quant, nbEBands, int);
1441
0
   alloc_trim = tell+(6<<BITRES) <= total_bits ?
1442
0
         ec_dec_icdf(dec, trim_icdf, 7) : 5;
1443
1444
0
   bits = (((opus_int32)len*8)<<BITRES) - (opus_int32)ec_tell_frac(dec) - 1;
1445
0
   anti_collapse_rsv = isTransient&&LM>=2&&bits>=((LM+2)<<BITRES) ? (1<<BITRES) : 0;
1446
0
   bits -= anti_collapse_rsv;
1447
1448
0
   ALLOC(pulses, nbEBands, int);
1449
0
   ALLOC(fine_priority, nbEBands, int);
1450
1451
0
   codedBands = clt_compute_allocation(mode, start, end, offsets, cap,
1452
0
         alloc_trim, &intensity, &dual_stereo, bits, &balance, pulses,
1453
0
         fine_quant, fine_priority, C, LM, dec, 0, 0, 0);
1454
1455
0
   unquant_fine_energy(mode, start, end, oldBandE, NULL, fine_quant, dec, C);
1456
1457
0
   ALLOC(X, C*N, celt_norm);   /**< Interleaved normalised MDCTs */
1458
1459
#ifdef ENABLE_QEXT
1460
   if (qext_bytes && end == nbEBands &&
1461
         ((mode->Fs == 48000 && (mode->shortMdctSize==120 || mode->shortMdctSize==90))
1462
       || (mode->Fs == 96000 && (mode->shortMdctSize==240 || mode->shortMdctSize==180)))) {
1463
      int qext_intra_ener;
1464
      compute_qext_mode(&qext_mode_struct, mode);
1465
      qext_mode = &qext_mode_struct;
1466
      qext_end = ec_dec_bit_logp(&ext_dec, 1) ? NB_QEXT_BANDS : 2;
1467
      if (C==2) decode_qext_stereo_params(&ext_dec, qext_end, &qext_intensity, &qext_dual_stereo);
1468
      qext_intra_ener = ec_tell(&ext_dec)+3<=qext_bytes*8 ? ec_dec_bit_logp(&ext_dec, 3) : 0;
1469
      unquant_coarse_energy(qext_mode, 0, qext_end, st->qext_oldBandE,
1470
            qext_intra_ener, &ext_dec, C, LM);
1471
   }
1472
   ALLOC(extra_quant, nbEBands+NB_QEXT_BANDS, int);
1473
   ALLOC(extra_pulses, nbEBands+NB_QEXT_BANDS, int);
1474
   qext_bits = ((opus_int32)qext_bytes*8<<BITRES) - (opus_int32)ec_tell_frac(dec) - 1;
1475
   clt_compute_extra_allocation(mode, qext_mode, start, end, qext_end, NULL, NULL,
1476
         qext_bits, extra_pulses, extra_quant, C, LM, &ext_dec, 0, 0, 0);
1477
   if (qext_bytes > 0) {
1478
      unquant_fine_energy(mode, start, end, oldBandE, fine_quant, extra_quant, &ext_dec, C);
1479
   }
1480
#endif
1481
1482
0
   c=0; do {
1483
0
      OPUS_MOVE(decode_mem[c], decode_mem[c]+N, decode_buffer_size-N+overlap);
1484
0
   } while (++c<CC);
1485
1486
   /* Decode fixed codebook */
1487
0
   ALLOC(collapse_masks, C*nbEBands, unsigned char);
1488
1489
0
   quant_all_bands(0, mode, start, end, X, C==2 ? X+N : NULL, collapse_masks,
1490
0
         NULL, pulses, shortBlocks, spread_decision, dual_stereo, intensity, tf_res,
1491
0
         len*(8<<BITRES)-anti_collapse_rsv, balance, dec, LM, codedBands, &st->rng, 0,
1492
0
         st->arch, st->disable_inv
1493
0
         ARG_QEXT(&ext_dec) ARG_QEXT(extra_pulses)
1494
0
         ARG_QEXT(qext_bytes*(8<<BITRES)) ARG_QEXT(cap));
1495
1496
#ifdef ENABLE_QEXT
1497
   if (qext_mode) {
1498
      VARDECL(int, zeros);
1499
      VARDECL(unsigned char, qext_collapse_masks);
1500
      ec_dec dummy_dec;
1501
      int ext_balance;
1502
      ALLOC(zeros, nbEBands, int);
1503
      ALLOC(qext_collapse_masks, C*NB_QEXT_BANDS, unsigned char);
1504
      ec_dec_init(&dummy_dec, NULL, 0);
1505
      OPUS_CLEAR(zeros, end);
1506
      ext_balance = qext_bytes*(8<<BITRES) - ec_tell_frac(&ext_dec);
1507
      for (i=0;i<qext_end;i++) ext_balance -= extra_pulses[nbEBands+i] + C*(extra_quant[nbEBands+1]<<BITRES);
1508
      unquant_fine_energy(qext_mode, 0, qext_end, st->qext_oldBandE, NULL, &extra_quant[nbEBands], &ext_dec, C);
1509
      quant_all_bands(0, qext_mode, 0, qext_end, X, C==2 ? X+N : NULL, qext_collapse_masks,
1510
            NULL, &extra_pulses[nbEBands], shortBlocks, spread_decision, qext_dual_stereo, qext_intensity, zeros,
1511
            qext_bytes*(8<<BITRES), ext_balance, &ext_dec, LM, qext_end, &st->rng, 0,
1512
            st->arch, st->disable_inv, &dummy_dec, zeros, 0, NULL);
1513
   }
1514
#endif
1515
1516
0
   if (anti_collapse_rsv > 0)
1517
0
   {
1518
0
      anti_collapse_on = ec_dec_bits(dec, 1);
1519
0
   }
1520
0
   unquant_energy_finalise(mode, start, end, (qext_bytes > 0) ? NULL : oldBandE,
1521
0
         fine_quant, fine_priority, len*8-ec_tell(dec), dec, C);
1522
0
   if (anti_collapse_on)
1523
0
      anti_collapse(mode, X, collapse_masks, LM, C, N,
1524
0
            start, end, oldBandE, oldLogE, oldLogE2, pulses, st->rng, 0, st->arch);
1525
1526
0
   if (silence)
1527
0
   {
1528
0
      for (i=0;i<C*nbEBands;i++)
1529
0
         oldBandE[i] = -GCONST(28.f);
1530
0
   }
1531
0
   if (st->prefilter_and_fold) {
1532
0
      prefilter_and_fold(st, N);
1533
0
   }
1534
0
   celt_synthesis(mode, X, out_syn, oldBandE, start, effEnd,
1535
0
                  C, CC, isTransient, LM, st->downsample, silence, st->arch ARG_QEXT(qext_mode) ARG_QEXT(st->qext_oldBandE) ARG_QEXT(qext_end));
1536
1537
0
   c=0; do {
1538
0
      st->postfilter_period=IMAX(st->postfilter_period, COMBFILTER_MINPERIOD);
1539
0
      st->postfilter_period_old=IMAX(st->postfilter_period_old, COMBFILTER_MINPERIOD);
1540
0
      comb_filter(out_syn[c], out_syn[c], st->postfilter_period_old, st->postfilter_period, mode->shortMdctSize,
1541
0
            st->postfilter_gain_old, st->postfilter_gain, st->postfilter_tapset_old, st->postfilter_tapset,
1542
0
            mode->window, overlap, st->arch);
1543
0
      if (LM!=0)
1544
0
         comb_filter(out_syn[c]+mode->shortMdctSize, out_syn[c]+mode->shortMdctSize, st->postfilter_period, postfilter_pitch, N-mode->shortMdctSize,
1545
0
               st->postfilter_gain, postfilter_gain, st->postfilter_tapset, postfilter_tapset,
1546
0
               mode->window, overlap, st->arch);
1547
1548
0
   } while (++c<CC);
1549
0
   st->postfilter_period_old = st->postfilter_period;
1550
0
   st->postfilter_gain_old = st->postfilter_gain;
1551
0
   st->postfilter_tapset_old = st->postfilter_tapset;
1552
0
   st->postfilter_period = postfilter_pitch;
1553
0
   st->postfilter_gain = postfilter_gain;
1554
0
   st->postfilter_tapset = postfilter_tapset;
1555
0
   if (LM!=0)
1556
0
   {
1557
0
      st->postfilter_period_old = st->postfilter_period;
1558
0
      st->postfilter_gain_old = st->postfilter_gain;
1559
0
      st->postfilter_tapset_old = st->postfilter_tapset;
1560
0
   }
1561
1562
0
   if (C==1)
1563
0
      OPUS_COPY(&oldBandE[nbEBands], oldBandE, nbEBands);
1564
1565
0
   if (!isTransient)
1566
0
   {
1567
0
      OPUS_COPY(oldLogE2, oldLogE, 2*nbEBands);
1568
0
      OPUS_COPY(oldLogE, oldBandE, 2*nbEBands);
1569
0
   } else {
1570
0
      for (i=0;i<2*nbEBands;i++)
1571
0
         oldLogE[i] = MING(oldLogE[i], oldBandE[i]);
1572
0
   }
1573
   /* In normal circumstances, we only allow the noise floor to increase by
1574
      up to 2.4 dB/second, but when we're in DTX we give the weight of
1575
      all missing packets to the update packet. */
1576
0
   max_background_increase = IMIN(160, st->loss_duration+M)*GCONST(0.001f);
1577
0
   for (i=0;i<2*nbEBands;i++)
1578
0
      backgroundLogE[i] = MING(backgroundLogE[i] + max_background_increase, oldBandE[i]);
1579
   /* In case start or end were to change */
1580
0
   c=0; do
1581
0
   {
1582
0
      for (i=0;i<start;i++)
1583
0
      {
1584
0
         oldBandE[c*nbEBands+i]=0;
1585
0
         oldLogE[c*nbEBands+i]=oldLogE2[c*nbEBands+i]=-GCONST(28.f);
1586
0
      }
1587
0
      for (i=end;i<nbEBands;i++)
1588
0
      {
1589
0
         oldBandE[c*nbEBands+i]=0;
1590
0
         oldLogE[c*nbEBands+i]=oldLogE2[c*nbEBands+i]=-GCONST(28.f);
1591
0
      }
1592
0
   } while (++c<2);
1593
0
   st->rng = dec->rng;
1594
#ifdef ENABLE_QEXT
1595
   if (qext_bytes) st->rng = st->rng ^ ext_dec.rng;
1596
#endif
1597
1598
0
   deemphasis(out_syn, pcm, N, CC, st->downsample, mode->preemph, st->preemph_memD, accum);
1599
0
   st->loss_duration = 0;
1600
0
   st->plc_duration = 0;
1601
0
   st->last_frame_type = FRAME_NORMAL;
1602
0
   st->prefilter_and_fold = 0;
1603
0
   RESTORE_STACK;
1604
0
   if (ec_tell(dec) > 8*len)
1605
0
      return OPUS_INTERNAL_ERROR;
1606
#ifdef ENABLE_QEXT
1607
   if (qext_bytes != 0 && ec_tell(&ext_dec) > 8*qext_bytes)
1608
      return OPUS_INTERNAL_ERROR;
1609
#endif
1610
0
   if(ec_get_error(dec))
1611
0
      st->error = 1;
1612
0
   return frame_size/st->downsample;
1613
0
}
1614
1615
int celt_decode_with_ec(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data,
1616
      int len, opus_res * OPUS_RESTRICT pcm, int frame_size, ec_dec *dec, int accum)
1617
0
{
1618
0
   return celt_decode_with_ec_dred(st, data, len, pcm, frame_size, dec, accum
1619
#ifdef ENABLE_DEEP_PLC
1620
       , NULL
1621
#endif
1622
0
       ARG_QEXT(NULL) ARG_QEXT(0)
1623
0
       );
1624
0
}
1625
1626
#if defined(CUSTOM_MODES) || defined(ENABLE_OPUS_CUSTOM_API)
1627
1628
#if defined(FIXED_POINT) && !defined(ENABLE_RES24)
1629
int opus_custom_decode(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data, int len, opus_int16 * OPUS_RESTRICT pcm, int frame_size)
1630
{
1631
   return celt_decode_with_ec(st, data, len, pcm, frame_size, NULL, 0);
1632
}
1633
#else
1634
int opus_custom_decode(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data, int len, opus_int16 * OPUS_RESTRICT pcm, int frame_size)
1635
{
1636
   int j, ret, C, N;
1637
   VARDECL(opus_res, out);
1638
   ALLOC_STACK;
1639
1640
   if (pcm==NULL)
1641
      return OPUS_BAD_ARG;
1642
1643
   C = st->channels;
1644
   N = frame_size;
1645
1646
   ALLOC(out, C*N, opus_res);
1647
   ret = celt_decode_with_ec(st, data, len, out, frame_size, NULL, 0);
1648
   if (ret>0)
1649
      for (j=0;j<C*ret;j++)
1650
         pcm[j]=RES2INT16(out[j]);
1651
1652
   RESTORE_STACK;
1653
   return ret;
1654
}
1655
#endif
1656
1657
#if defined(FIXED_POINT) && defined(ENABLE_RES24)
1658
int opus_custom_decode24(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data, int len, opus_int32 * OPUS_RESTRICT pcm, int frame_size)
1659
{
1660
   return celt_decode_with_ec(st, data, len, pcm, frame_size, NULL, 0);
1661
}
1662
#else
1663
int opus_custom_decode24(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data, int len, opus_int32 * OPUS_RESTRICT pcm, int frame_size)
1664
{
1665
   int j, ret, C, N;
1666
   VARDECL(opus_res, out);
1667
   ALLOC_STACK;
1668
1669
   if (pcm==NULL)
1670
      return OPUS_BAD_ARG;
1671
1672
   C = st->channels;
1673
   N = frame_size;
1674
1675
   ALLOC(out, C*N, opus_res);
1676
   ret = celt_decode_with_ec(st, data, len, out, frame_size, NULL, 0);
1677
   if (ret>0)
1678
      for (j=0;j<C*ret;j++)
1679
         pcm[j]=RES2INT24(out[j]);
1680
1681
   RESTORE_STACK;
1682
   return ret;
1683
}
1684
#endif
1685
1686
1687
#ifndef DISABLE_FLOAT_API
1688
1689
# if !defined(FIXED_POINT)
1690
int opus_custom_decode_float(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data, int len, float * OPUS_RESTRICT pcm, int frame_size)
1691
{
1692
   return celt_decode_with_ec(st, data, len, pcm, frame_size, NULL, 0);
1693
}
1694
# else
1695
int opus_custom_decode_float(CELTDecoder * OPUS_RESTRICT st, const unsigned char *data, int len, float * OPUS_RESTRICT pcm, int frame_size)
1696
{
1697
   int j, ret, C, N;
1698
   VARDECL(opus_res, out);
1699
   ALLOC_STACK;
1700
1701
   if (pcm==NULL)
1702
      return OPUS_BAD_ARG;
1703
1704
   C = st->channels;
1705
   N = frame_size;
1706
1707
   ALLOC(out, C*N, opus_res);
1708
   ret=celt_decode_with_ec(st, data, len, out, frame_size, NULL, 0);
1709
   if (ret>0)
1710
      for (j=0;j<C*ret;j++)
1711
         pcm[j]=RES2FLOAT(out[j]);
1712
1713
   RESTORE_STACK;
1714
   return ret;
1715
}
1716
# endif
1717
1718
#endif
1719
1720
#endif /* CUSTOM_MODES */
1721
1722
int opus_custom_decoder_ctl(CELTDecoder * OPUS_RESTRICT st, int request, ...)
1723
20
{
1724
20
   va_list ap;
1725
1726
20
   va_start(ap, request);
1727
20
   switch (request)
1728
20
   {
1729
0
      case OPUS_SET_COMPLEXITY_REQUEST:
1730
0
      {
1731
0
          opus_int32 value = va_arg(ap, opus_int32);
1732
0
          if(value<0 || value>10)
1733
0
          {
1734
0
             goto bad_arg;
1735
0
          }
1736
0
          st->complexity = value;
1737
0
      }
1738
0
      break;
1739
0
      case OPUS_GET_COMPLEXITY_REQUEST:
1740
0
      {
1741
0
          opus_int32 *value = va_arg(ap, opus_int32*);
1742
0
          if (!value)
1743
0
          {
1744
0
             goto bad_arg;
1745
0
          }
1746
0
          *value = st->complexity;
1747
0
      }
1748
0
      break;
1749
0
      case CELT_SET_START_BAND_REQUEST:
1750
0
      {
1751
0
         opus_int32 value = va_arg(ap, opus_int32);
1752
0
         if (value<0 || value>=st->mode->nbEBands)
1753
0
            goto bad_arg;
1754
0
         st->start = value;
1755
0
      }
1756
0
      break;
1757
0
      case CELT_SET_END_BAND_REQUEST:
1758
0
      {
1759
0
         opus_int32 value = va_arg(ap, opus_int32);
1760
0
         if (value<1 || value>st->mode->nbEBands)
1761
0
            goto bad_arg;
1762
0
         st->end = value;
1763
0
      }
1764
0
      break;
1765
0
      case CELT_SET_CHANNELS_REQUEST:
1766
0
      {
1767
0
         opus_int32 value = va_arg(ap, opus_int32);
1768
0
         if (value<1 || value>2)
1769
0
            goto bad_arg;
1770
0
         st->stream_channels = value;
1771
0
      }
1772
0
      break;
1773
0
      case CELT_GET_AND_CLEAR_ERROR_REQUEST:
1774
0
      {
1775
0
         opus_int32 *value = va_arg(ap, opus_int32*);
1776
0
         if (value==NULL)
1777
0
            goto bad_arg;
1778
0
         *value=st->error;
1779
0
         st->error = 0;
1780
0
      }
1781
0
      break;
1782
0
      case OPUS_GET_LOOKAHEAD_REQUEST:
1783
0
      {
1784
0
         opus_int32 *value = va_arg(ap, opus_int32*);
1785
0
         if (value==NULL)
1786
0
            goto bad_arg;
1787
0
         *value = st->overlap/st->downsample;
1788
0
      }
1789
0
      break;
1790
10
      case OPUS_RESET_STATE:
1791
10
      {
1792
10
         int i;
1793
10
         celt_glog *oldBandE, *oldLogE, *oldLogE2;
1794
10
         int decode_buffer_size;
1795
#ifdef ENABLE_QEXT
1796
         int qext_scale = st->qext_scale;
1797
#endif
1798
10
         decode_buffer_size = QEXT_SCALE(DECODE_BUFFER_SIZE);
1799
10
         oldBandE = (celt_glog*)(st->_decode_mem+(decode_buffer_size+st->overlap)*st->channels);
1800
10
         oldLogE = oldBandE + 2*st->mode->nbEBands;
1801
10
         oldLogE2 = oldLogE + 2*st->mode->nbEBands;
1802
10
         OPUS_CLEAR((char*)&st->DECODER_RESET_START,
1803
10
               opus_custom_decoder_get_size(st->mode, st->channels)-
1804
10
               ((char*)&st->DECODER_RESET_START - (char*)st));
1805
430
         for (i=0;i<2*st->mode->nbEBands;i++)
1806
420
            oldLogE[i]=oldLogE2[i]=-GCONST(28.f);
1807
10
         st->skip_plc = 1;
1808
10
         st->last_frame_type = FRAME_NONE;
1809
10
      }
1810
10
      break;
1811
0
      case OPUS_GET_PITCH_REQUEST:
1812
0
      {
1813
0
         opus_int32 *value = va_arg(ap, opus_int32*);
1814
0
         if (value==NULL)
1815
0
            goto bad_arg;
1816
0
         *value = st->postfilter_period;
1817
0
      }
1818
0
      break;
1819
0
      case CELT_GET_MODE_REQUEST:
1820
0
      {
1821
0
         const CELTMode ** value = va_arg(ap, const CELTMode**);
1822
0
         if (value==0)
1823
0
            goto bad_arg;
1824
0
         *value=st->mode;
1825
0
      }
1826
0
      break;
1827
10
      case CELT_SET_SIGNALLING_REQUEST:
1828
10
      {
1829
10
         opus_int32 value = va_arg(ap, opus_int32);
1830
10
         st->signalling = value;
1831
10
      }
1832
10
      break;
1833
0
      case OPUS_GET_FINAL_RANGE_REQUEST:
1834
0
      {
1835
0
         opus_uint32 * value = va_arg(ap, opus_uint32 *);
1836
0
         if (value==0)
1837
0
            goto bad_arg;
1838
0
         *value=st->rng;
1839
0
      }
1840
0
      break;
1841
0
      case OPUS_SET_PHASE_INVERSION_DISABLED_REQUEST:
1842
0
      {
1843
0
          opus_int32 value = va_arg(ap, opus_int32);
1844
0
          if(value<0 || value>1)
1845
0
          {
1846
0
             goto bad_arg;
1847
0
          }
1848
0
          st->disable_inv = value;
1849
0
      }
1850
0
      break;
1851
0
      case OPUS_GET_PHASE_INVERSION_DISABLED_REQUEST:
1852
0
      {
1853
0
          opus_int32 *value = va_arg(ap, opus_int32*);
1854
0
          if (!value)
1855
0
          {
1856
0
             goto bad_arg;
1857
0
          }
1858
0
          *value = st->disable_inv;
1859
0
      }
1860
0
      break;
1861
0
      default:
1862
0
         goto bad_request;
1863
20
   }
1864
20
   va_end(ap);
1865
20
   return OPUS_OK;
1866
0
bad_arg:
1867
0
   va_end(ap);
1868
0
   return OPUS_BAD_ARG;
1869
0
bad_request:
1870
0
      va_end(ap);
1871
0
  return OPUS_UNIMPLEMENTED;
1872
20
}