Coverage Report

Created: 2026-09-14 08:00

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/src/opus/celt/bands.c
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1
/* Copyright (c) 2007-2008 CSIRO
2
   Copyright (c) 2007-2009 Xiph.Org Foundation
3
   Copyright (c) 2008-2009 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
#include <math.h>
35
#include "bands.h"
36
#include "modes.h"
37
#include "vq.h"
38
#include "cwrs.h"
39
#include "stack_alloc.h"
40
#include "os_support.h"
41
#include "mathops.h"
42
#include "rate.h"
43
#include "quant_bands.h"
44
#include "pitch.h"
45
46
int hysteresis_decision(opus_val16 val, const opus_val16 *thresholds, const opus_val16 *hysteresis, int N, int prev)
47
0
{
48
0
   int i;
49
0
   for (i=0;i<N;i++)
50
0
   {
51
0
      if (val < thresholds[i])
52
0
         break;
53
0
   }
54
0
   if (i>prev && val < thresholds[prev]+hysteresis[prev])
55
0
      i=prev;
56
0
   if (i<prev && val > thresholds[prev-1]-hysteresis[prev-1])
57
0
      i=prev;
58
0
   return i;
59
0
}
60
61
opus_uint32 celt_lcg_rand(opus_uint32 seed)
62
51.5M
{
63
51.5M
   return 1664525 * seed + 1013904223;
64
51.5M
}
65
66
/* This is a cos() approximation designed to be bit-exact on any platform. Bit exactness
67
   with this approximation is important because it has an impact on the bit allocation */
68
opus_int16 bitexact_cos(opus_int16 x)
69
352k
{
70
352k
   opus_int32 tmp;
71
352k
   opus_int16 x2;
72
352k
   tmp = (4096+((opus_int32)(x)*(x)))>>13;
73
352k
   celt_sig_assert(tmp<=32767);
74
352k
   x2 = tmp;
75
352k
   x2 = (32767-x2) + FRAC_MUL16(x2, (-7651 + FRAC_MUL16(x2, (8277 + FRAC_MUL16(-626, x2)))));
76
352k
   celt_sig_assert(x2<=32766);
77
352k
   return 1+x2;
78
352k
}
79
80
int bitexact_log2tan(int isin,int icos)
81
176k
{
82
176k
   int lc;
83
176k
   int ls;
84
176k
   lc=EC_ILOG(icos);
85
176k
   ls=EC_ILOG(isin);
86
176k
   icos<<=15-lc;
87
176k
   isin<<=15-ls;
88
176k
   return (ls-lc)*(1<<11)
89
176k
         +FRAC_MUL16(isin, FRAC_MUL16(isin, -2597) + 7932)
90
176k
         -FRAC_MUL16(icos, FRAC_MUL16(icos, -2597) + 7932);
91
176k
}
92
93
#ifdef FIXED_POINT
94
/* Compute the amplitude (sqrt energy) in each of the bands */
95
void compute_band_energies(const CELTMode *m, const celt_sig *X, celt_ener *bandE, int end, int C, int LM, int arch)
96
{
97
   int i, c, N;
98
   const opus_int16 *eBands = m->eBands;
99
   (void)arch;
100
   N = m->shortMdctSize<<LM;
101
   c=0; do {
102
      for (i=0;i<end;i++)
103
      {
104
         int j;
105
         opus_val32 maxval=0;
106
         opus_val32 sum = 0;
107
108
         maxval = celt_maxabs32(&X[c*N+(eBands[i]<<LM)], (eBands[i+1]-eBands[i])<<LM);
109
         if (maxval > 0)
110
         {
111
            int shift = IMAX(0, 30 - celt_ilog2(maxval+(maxval>>14)+1) - ((((m->logN[i]+7)>>BITRES)+LM+1)>>1));
112
            j=eBands[i]<<LM; do {
113
               opus_val32 x = SHL32(X[j+c*N],shift);
114
               sum = ADD32(sum, MULT32_32_Q31(x, x));
115
            } while (++j<eBands[i+1]<<LM);
116
            bandE[i+c*m->nbEBands] = MAX32(maxval, PSHR32(celt_sqrt32(SHR32(sum,1)), shift));
117
         } else {
118
            bandE[i+c*m->nbEBands] = EPSILON;
119
         }
120
      }
121
   } while (++c<C);
122
}
123
124
/* Normalise each band such that the energy is one. */
125
void normalise_bands(const CELTMode *m, const celt_sig * OPUS_RESTRICT freq, celt_norm * OPUS_RESTRICT X, const celt_ener *bandE, int end, int C, int M)
126
{
127
   int i, c, N;
128
   const opus_int16 *eBands = m->eBands;
129
   N = M*m->shortMdctSize;
130
   c=0; do {
131
      i=0; do {
132
         int j,shift;
133
         opus_val32 E;
134
         opus_val32 g;
135
         E = bandE[i+c*m->nbEBands];
136
         /* For very low energies, we need this to make sure not to prevent energy rounding from
137
            blowing up the normalized signal. */
138
         if (E < 10) E += EPSILON;
139
         shift = 30-celt_zlog2(E);
140
         E = SHL32(E, shift);
141
         g = celt_rcp_norm32(E);
142
         j=M*eBands[i]; do {
143
            X[j+c*N] = PSHR32(MULT32_32_Q31(g, SHL32(freq[j+c*N], shift)), 30-NORM_SHIFT);
144
         } while (++j<M*eBands[i+1]);
145
      } while (++i<end);
146
   } while (++c<C);
147
}
148
149
#else /* FIXED_POINT */
150
/* Compute the amplitude (sqrt energy) in each of the bands */
151
void compute_band_energies(const CELTMode *m, const celt_sig *X, celt_ener *bandE, int end, int C, int LM, int arch)
152
0
{
153
0
   int i, c, N;
154
0
   const opus_int16 *eBands = m->eBands;
155
0
   N = m->shortMdctSize<<LM;
156
0
   c=0; do {
157
0
      for (i=0;i<end;i++)
158
0
      {
159
0
         opus_val32 sum;
160
0
         sum = 1e-27f + celt_inner_prod(&X[c*N+(eBands[i]<<LM)], &X[c*N+(eBands[i]<<LM)], (eBands[i+1]-eBands[i])<<LM, arch);
161
0
         bandE[i+c*m->nbEBands] = celt_sqrt(sum);
162
         /*printf ("%f ", bandE[i+c*m->nbEBands]);*/
163
0
      }
164
0
   } while (++c<C);
165
   /*printf ("\n");*/
166
0
}
167
168
/* Normalise each band such that the energy is one. */
169
void normalise_bands(const CELTMode *m, const celt_sig * OPUS_RESTRICT freq, celt_norm * OPUS_RESTRICT X, const celt_ener *bandE, int end, int C, int M)
170
0
{
171
0
   int i, c, N;
172
0
   const opus_int16 *eBands = m->eBands;
173
0
   N = M*m->shortMdctSize;
174
0
   c=0; do {
175
0
      for (i=0;i<end;i++)
176
0
      {
177
0
         int j;
178
0
         opus_val16 g = 1.f/(1e-27f+bandE[i+c*m->nbEBands]);
179
0
         for (j=M*eBands[i];j<M*eBands[i+1];j++)
180
0
            X[j+c*N] = freq[j+c*N]*g;
181
0
      }
182
0
   } while (++c<C);
183
0
}
184
185
#endif /* FIXED_POINT */
186
187
/* De-normalise the energy to produce the synthesis from the unit-energy bands */
188
void denormalise_bands(const CELTMode *m, const celt_norm * OPUS_RESTRICT X,
189
      celt_sig * OPUS_RESTRICT freq, const celt_glog *bandLogE, int start,
190
      int end, int M, int downsample, int silence)
191
249k
{
192
249k
   int i, N;
193
249k
   int bound;
194
249k
   celt_sig * OPUS_RESTRICT f;
195
249k
   const celt_norm * OPUS_RESTRICT x;
196
249k
   const opus_int16 *eBands = m->eBands;
197
249k
   N = M*m->shortMdctSize;
198
249k
   bound = M*eBands[end];
199
249k
   if (downsample!=1)
200
0
      bound = IMIN(bound, N/downsample);
201
249k
   if (silence)
202
33.4k
   {
203
33.4k
      bound = 0;
204
33.4k
      start = end = 0;
205
33.4k
   }
206
249k
   f = freq;
207
249k
   x = X+M*eBands[start];
208
249k
   if (start != 0)
209
50.4k
   {
210
11.3M
      for (i=0;i<M*eBands[start];i++)
211
11.3M
         *f++ = 0;
212
198k
   } else {
213
198k
      f += M*eBands[start];
214
198k
   }
215
3.33M
   for (i=start;i<end;i++)
216
3.08M
   {
217
3.08M
      int j, band_end;
218
3.08M
      opus_val32 g;
219
3.08M
      celt_glog lg;
220
#ifdef FIXED_POINT
221
      int shift;
222
#endif
223
3.08M
      j=M*eBands[i];
224
3.08M
      band_end = M*eBands[i+1];
225
3.08M
      lg = ADD32(bandLogE[i], SHL32((opus_val32)eMeans[i],DB_SHIFT-4));
226
3.08M
#ifndef FIXED_POINT
227
3.08M
      g = celt_exp2_db(MIN32(32.f, lg));
228
#else
229
      /* Handle the integer part of the log energy */
230
      shift = 17-(lg>>DB_SHIFT);
231
      if (shift>=31)
232
      {
233
         shift=0;
234
         g=0;
235
      } else {
236
         /* Handle the fractional part. */
237
         g = SHL32(celt_exp2_db_frac((lg&((1<<DB_SHIFT)-1))), 2);
238
      }
239
      /* Handle extreme gains with negative shift. */
240
      if (shift<0)
241
      {
242
         /* To avoid overflow, we're
243
            capping the gain here, which is equivalent to a cap of 18 on lg.
244
            This shouldn't trigger unless the bitstream is already corrupted. */
245
         g = 2147483647;
246
         shift = 0;
247
      }
248
#endif
249
53.0M
      do {
250
53.0M
         *f++ = PSHR32(MULT32_32_Q31(SHL32(*x, 30-NORM_SHIFT), g), shift);
251
53.0M
         x++;
252
53.0M
      } while (++j<band_end);
253
3.08M
   }
254
249k
   celt_assert(start <= end);
255
249k
   OPUS_CLEAR(&freq[bound], N-bound);
256
249k
}
257
258
/* This prevents energy collapse for transients with multiple short MDCTs */
259
void anti_collapse(const CELTMode *m, celt_norm *X_, unsigned char *collapse_masks, int LM, int C, int size,
260
      int start, int end, const celt_glog *logE, const celt_glog *prev1logE,
261
      const celt_glog *prev2logE, const int *pulses, opus_uint32 seed, int encode, int arch)
262
1.79k
{
263
1.79k
   int c, i, j, k;
264
28.8k
   for (i=start;i<end;i++)
265
27.0k
   {
266
27.0k
      int N0;
267
27.0k
      opus_val16 thresh, sqrt_1;
268
27.0k
      int depth;
269
#ifdef FIXED_POINT
270
      int shift;
271
      opus_val32 thresh32;
272
#endif
273
274
27.0k
      N0 = m->eBands[i+1]-m->eBands[i];
275
      /* depth in 1/8 bits */
276
27.0k
      celt_sig_assert(pulses[i]>=0);
277
27.0k
      depth = celt_udiv(1+pulses[i], (m->eBands[i+1]-m->eBands[i]))>>LM;
278
279
#ifdef FIXED_POINT
280
      thresh32 = SHR32(celt_exp2(-SHL16(depth, 10-BITRES)),1);
281
      thresh = MULT16_32_Q15(QCONST16(0.5f, 15), MIN32(32767,thresh32));
282
      {
283
         opus_val32 t;
284
         t = N0<<LM;
285
         shift = celt_ilog2(t)>>1;
286
         t = SHL32(t, (7-shift)<<1);
287
         sqrt_1 = celt_rsqrt_norm(t);
288
      }
289
#else
290
27.0k
      thresh = .5f*celt_exp2(-.125f*depth);
291
27.0k
      sqrt_1 = celt_rsqrt(N0<<LM);
292
27.0k
#endif
293
294
27.0k
      c=0; do
295
30.4k
      {
296
30.4k
         celt_norm *X;
297
30.4k
         celt_glog prev1;
298
30.4k
         celt_glog prev2;
299
30.4k
         opus_val32 Ediff;
300
30.4k
         celt_norm r;
301
30.4k
         int renormalize=0;
302
30.4k
         prev1 = prev1logE[c*m->nbEBands+i];
303
30.4k
         prev2 = prev2logE[c*m->nbEBands+i];
304
30.4k
         if (!encode && C==1)
305
23.5k
         {
306
23.5k
            prev1 = MAXG(prev1,prev1logE[m->nbEBands+i]);
307
23.5k
            prev2 = MAXG(prev2,prev2logE[m->nbEBands+i]);
308
23.5k
         }
309
30.4k
         Ediff = logE[c*m->nbEBands+i]-MING(prev1,prev2);
310
30.4k
         Ediff = MAX32(0, Ediff);
311
312
#ifdef FIXED_POINT
313
         if (Ediff < GCONST(16.f))
314
         {
315
            opus_val32 r32 = SHR32(celt_exp2_db(-Ediff),1);
316
            r = 2*MIN16(16383,r32);
317
         } else {
318
            r = 0;
319
         }
320
         if (LM==3)
321
            r = MULT16_16_Q14(23170, MIN32(23169, r));
322
         r = SHR16(MIN16(thresh, r),1);
323
         r = VSHR32(MULT16_16_Q15(sqrt_1, r),shift+14-NORM_SHIFT);
324
#else
325
         /* r needs to be multiplied by 2 or 2*sqrt(2) depending on LM because
326
            short blocks don't have the same energy as long */
327
30.4k
         r = 2.f*celt_exp2_db(-Ediff);
328
30.4k
         if (LM==3)
329
5.09k
            r *= 1.41421356f;
330
30.4k
         r = MIN16(thresh, r);
331
30.4k
         r = r*sqrt_1;
332
30.4k
#endif
333
30.4k
         X = X_+c*size+(m->eBands[i]<<LM);
334
172k
         for (k=0;k<1<<LM;k++)
335
142k
         {
336
            /* Detect collapse */
337
142k
            if (!(collapse_masks[i*C+c]&1<<k))
338
29.3k
            {
339
               /* Fill with noise */
340
108k
               for (j=0;j<N0;j++)
341
79.6k
               {
342
79.6k
                  seed = celt_lcg_rand(seed);
343
79.6k
                  X[(j<<LM)+k] = (seed&0x8000 ? r : -r);
344
79.6k
               }
345
29.3k
               renormalize = 1;
346
29.3k
            }
347
142k
         }
348
         /* We just added some energy, so we need to renormalise */
349
30.4k
         if (renormalize)
350
10.1k
            renormalise_vector(X, N0<<LM, Q31ONE, arch);
351
30.4k
      } while (++c<C);
352
27.0k
   }
353
1.79k
}
354
355
/* Compute the weights to use for optimizing normalized distortion across
356
   channels. We use the amplitude to weight square distortion, which means
357
   that we use the square root of the value we would have been using if we
358
   wanted to minimize the MSE in the non-normalized domain. This roughly
359
   corresponds to some quick-and-dirty perceptual experiments I ran to
360
   measure inter-aural masking (there doesn't seem to be any published data
361
   on the topic). */
362
static void compute_channel_weights(celt_ener Ex, celt_ener Ey, opus_val16 w[2])
363
0
{
364
0
   celt_ener minE;
365
#ifdef FIXED_POINT
366
   int shift;
367
#endif
368
0
   minE = MIN32(Ex, Ey);
369
   /* Adjustment to make the weights a bit more conservative. */
370
0
   Ex = ADD32(Ex, minE/3);
371
0
   Ey = ADD32(Ey, minE/3);
372
#ifdef FIXED_POINT
373
   shift = celt_ilog2(EPSILON+MAX32(Ex, Ey))-14;
374
#endif
375
0
   w[0] = VSHR32(Ex, shift);
376
0
   w[1] = VSHR32(Ey, shift);
377
0
}
378
379
static void intensity_stereo(const CELTMode *m, celt_norm * OPUS_RESTRICT X, const celt_norm * OPUS_RESTRICT Y, const celt_ener *bandE, int bandID, int N)
380
0
{
381
0
   int i = bandID;
382
0
   int j;
383
0
   opus_val16 a1, a2;
384
0
   opus_val16 left, right;
385
0
   opus_val16 norm;
386
#ifdef FIXED_POINT
387
   int shift = celt_zlog2(MAX32(bandE[i], bandE[i+m->nbEBands]))-13;
388
#endif
389
0
   left = VSHR32(bandE[i],shift);
390
0
   right = VSHR32(bandE[i+m->nbEBands],shift);
391
0
   norm = EPSILON + celt_sqrt(EPSILON+MULT16_16(left,left)+MULT16_16(right,right));
392
#ifdef FIXED_POINT
393
   left = MIN32(left, norm-1);
394
   right = MIN32(right, norm-1);
395
#endif
396
0
   a1 = DIV32_16(SHL32(EXTEND32(left),15),norm);
397
0
   a2 = DIV32_16(SHL32(EXTEND32(right),15),norm);
398
0
   for (j=0;j<N;j++)
399
0
   {
400
0
      X[j] = ADD32(MULT16_32_Q15(a1, X[j]), MULT16_32_Q15(a2, Y[j]));
401
      /* Side is not encoded, no need to calculate */
402
0
   }
403
0
}
404
405
static void stereo_split(celt_norm * OPUS_RESTRICT X, celt_norm * OPUS_RESTRICT Y, int N)
406
0
{
407
0
   int j;
408
0
   for (j=0;j<N;j++)
409
0
   {
410
0
      opus_val32 r, l;
411
0
      l = MULT32_32_Q31(QCONST32(.70710678f,31), X[j]);
412
0
      r = MULT32_32_Q31(QCONST32(.70710678f,31), Y[j]);
413
0
      X[j] = ADD32(l, r);
414
0
      Y[j] = SUB32(r, l);
415
0
   }
416
0
}
417
418
static void stereo_merge(celt_norm * OPUS_RESTRICT X, celt_norm * OPUS_RESTRICT Y, opus_val32 mid, int N, int arch)
419
190k
{
420
190k
   int j;
421
190k
   opus_val32 xp=0, side=0;
422
190k
   opus_val32 El, Er;
423
#ifdef FIXED_POINT
424
   int kl, kr;
425
#endif
426
190k
   opus_val32 t, lgain, rgain;
427
428
   /* Compute the norm of X+Y and X-Y as |X|^2 + |Y|^2 +/- sum(xy) */
429
190k
   xp = celt_inner_prod_norm_shift(Y, X, N, arch);
430
190k
   side = celt_inner_prod_norm_shift(Y, Y, N, arch);
431
   /* Compensating for the mid normalization */
432
190k
   xp = MULT32_32_Q31(mid, xp);
433
   /* mid and side are in Q15, not Q14 like X and Y */
434
190k
   El = SHR32(MULT32_32_Q31(mid, mid),3) + side - 2*xp;
435
190k
   Er = SHR32(MULT32_32_Q31(mid, mid),3) + side + 2*xp;
436
190k
   if (Er < QCONST32(6e-4f, 28) || El < QCONST32(6e-4f, 28))
437
732
   {
438
732
      OPUS_COPY(Y, X, N);
439
732
      return;
440
732
   }
441
442
#ifdef FIXED_POINT
443
   kl = celt_ilog2(El)>>1;
444
   kr = celt_ilog2(Er)>>1;
445
#endif
446
189k
   t = VSHR32(El, (kl<<1)-29);
447
189k
   lgain = celt_rsqrt_norm32(t);
448
189k
   t = VSHR32(Er, (kr<<1)-29);
449
189k
   rgain = celt_rsqrt_norm32(t);
450
451
#ifdef FIXED_POINT
452
   if (kl < 7)
453
      kl = 7;
454
   if (kr < 7)
455
      kr = 7;
456
#endif
457
458
5.68M
   for (j=0;j<N;j++)
459
5.49M
   {
460
5.49M
      celt_norm r, l;
461
      /* Apply mid scaling (side is already scaled) */
462
5.49M
      l = MULT32_32_Q31(mid, X[j]);
463
5.49M
      r = Y[j];
464
5.49M
      X[j] = VSHR32(MULT32_32_Q31(lgain, SUB32(l,r)), kl-15);
465
5.49M
      Y[j] = VSHR32(MULT32_32_Q31(rgain, ADD32(l,r)), kr-15);
466
5.49M
   }
467
189k
}
468
469
/* Decide whether we should spread the pulses in the current frame */
470
int spreading_decision(const CELTMode *m, const celt_norm *X, int *average,
471
      int last_decision, int *hf_average, int *tapset_decision, int update_hf,
472
      int end, int C, int M, const int *spread_weight)
473
0
{
474
0
   int i, c, N0;
475
0
   int sum = 0, nbBands=0;
476
0
   const opus_int16 * OPUS_RESTRICT eBands = m->eBands;
477
0
   int decision;
478
0
   int hf_sum=0;
479
480
0
   celt_assert(end>0);
481
482
0
   N0 = M*m->shortMdctSize;
483
484
0
   if (M*(eBands[end]-eBands[end-1]) <= 8)
485
0
      return SPREAD_NONE;
486
0
   c=0; do {
487
0
      for (i=0;i<end;i++)
488
0
      {
489
0
         int j, N, tmp=0;
490
0
         int tcount[3] = {0,0,0};
491
0
         const celt_norm * OPUS_RESTRICT x = X+M*eBands[i]+c*N0;
492
0
         N = M*(eBands[i+1]-eBands[i]);
493
0
         if (N<=8)
494
0
            continue;
495
         /* Compute rough CDF of |x[j]| */
496
0
         for (j=0;j<N;j++)
497
0
         {
498
0
            opus_val32 x2N; /* Q13 */
499
500
0
            x2N = MULT16_16(MULT16_16_Q15(SHR32(x[j], NORM_SHIFT-14), SHR32(x[j], NORM_SHIFT-14)), N);
501
0
            if (x2N < QCONST16(0.25f,13))
502
0
               tcount[0]++;
503
0
            if (x2N < QCONST16(0.0625f,13))
504
0
               tcount[1]++;
505
0
            if (x2N < QCONST16(0.015625f,13))
506
0
               tcount[2]++;
507
0
         }
508
509
         /* Only include four last bands (8 kHz and up) */
510
0
         if (i>m->nbEBands-4)
511
0
            hf_sum += celt_udiv(32*(tcount[1]+tcount[0]), N);
512
0
         tmp = (2*tcount[2] >= N) + (2*tcount[1] >= N) + (2*tcount[0] >= N);
513
0
         sum += tmp*spread_weight[i];
514
0
         nbBands+=spread_weight[i];
515
0
      }
516
0
   } while (++c<C);
517
518
0
   if (update_hf)
519
0
   {
520
0
      if (hf_sum)
521
0
         hf_sum = celt_udiv(hf_sum, C*(4-m->nbEBands+end));
522
0
      *hf_average = (*hf_average+hf_sum)>>1;
523
0
      hf_sum = *hf_average;
524
0
      if (*tapset_decision==2)
525
0
         hf_sum += 4;
526
0
      else if (*tapset_decision==0)
527
0
         hf_sum -= 4;
528
0
      if (hf_sum > 22)
529
0
         *tapset_decision=2;
530
0
      else if (hf_sum > 18)
531
0
         *tapset_decision=1;
532
0
      else
533
0
         *tapset_decision=0;
534
0
   }
535
   /*printf("%d %d %d\n", hf_sum, *hf_average, *tapset_decision);*/
536
0
   celt_assert(nbBands>0); /* end has to be non-zero */
537
0
   celt_assert(sum>=0);
538
0
   sum = celt_udiv((opus_int32)sum<<8, nbBands);
539
   /* Recursive averaging */
540
0
   sum = (sum+*average)>>1;
541
0
   *average = sum;
542
   /* Hysteresis */
543
0
   sum = (3*sum + (((3-last_decision)<<7) + 64) + 2)>>2;
544
0
   if (sum < 80)
545
0
   {
546
0
      decision = SPREAD_AGGRESSIVE;
547
0
   } else if (sum < 256)
548
0
   {
549
0
      decision = SPREAD_NORMAL;
550
0
   } else if (sum < 384)
551
0
   {
552
0
      decision = SPREAD_LIGHT;
553
0
   } else {
554
0
      decision = SPREAD_NONE;
555
0
   }
556
#ifdef FUZZING
557
   decision = rand()&0x3;
558
   *tapset_decision=rand()%3;
559
#endif
560
0
   return decision;
561
0
}
562
563
/* Indexing table for converting from natural Hadamard to ordery Hadamard
564
   This is essentially a bit-reversed Gray, on top of which we've added
565
   an inversion of the order because we want the DC at the end rather than
566
   the beginning. The lines are for N=2, 4, 8, 16 */
567
static const int ordery_table[] = {
568
       1,  0,
569
       3,  0,  2,  1,
570
       7,  0,  4,  3,  6,  1,  5,  2,
571
      15,  0,  8,  7, 12,  3, 11,  4, 14,  1,  9,  6, 13,  2, 10,  5,
572
};
573
574
static void deinterleave_hadamard(celt_norm *X, int N0, int stride, int hadamard)
575
136k
{
576
136k
   int i,j;
577
136k
   VARDECL(celt_norm, tmp);
578
136k
   int N;
579
136k
   SAVE_STACK;
580
136k
   N = N0*stride;
581
136k
   ALLOC(tmp, N, celt_norm);
582
136k
   celt_assert(stride>0);
583
136k
   if (hadamard)
584
87.3k
   {
585
87.3k
      const int *ordery = ordery_table+stride-2;
586
514k
      for (i=0;i<stride;i++)
587
427k
      {
588
1.68M
         for (j=0;j<N0;j++)
589
1.25M
            tmp[ordery[i]*N0+j] = X[j*stride+i];
590
427k
      }
591
87.3k
   } else {
592
300k
      for (i=0;i<stride;i++)
593
856k
         for (j=0;j<N0;j++)
594
604k
            tmp[i*N0+j] = X[j*stride+i];
595
49.3k
   }
596
136k
   OPUS_COPY(X, tmp, N);
597
136k
   RESTORE_STACK;
598
136k
}
599
600
static void interleave_hadamard(celt_norm *X, int N0, int stride, int hadamard)
601
168k
{
602
168k
   int i,j;
603
168k
   VARDECL(celt_norm, tmp);
604
168k
   int N;
605
168k
   SAVE_STACK;
606
168k
   N = N0*stride;
607
168k
   ALLOC(tmp, N, celt_norm);
608
168k
   if (hadamard)
609
112k
   {
610
112k
      const int *ordery = ordery_table+stride-2;
611
667k
      for (i=0;i<stride;i++)
612
2.40M
         for (j=0;j<N0;j++)
613
1.84M
            tmp[j*stride+i] = X[ordery[i]*N0+j];
614
112k
   } else {
615
348k
      for (i=0;i<stride;i++)
616
1.02M
         for (j=0;j<N0;j++)
617
731k
            tmp[j*stride+i] = X[i*N0+j];
618
55.9k
   }
619
168k
   OPUS_COPY(X, tmp, N);
620
168k
   RESTORE_STACK;
621
168k
}
622
623
void haar1(celt_norm *X, int N0, int stride)
624
640k
{
625
640k
   int i, j;
626
640k
   N0 >>= 1;
627
1.81M
   for (i=0;i<stride;i++)
628
6.54M
      for (j=0;j<N0;j++)
629
5.37M
      {
630
5.37M
         opus_val32 tmp1, tmp2;
631
5.37M
         tmp1 = MULT32_32_Q31(QCONST32(.70710678f,31), X[stride*2*j+i]);
632
5.37M
         tmp2 = MULT32_32_Q31(QCONST32(.70710678f,31), X[stride*(2*j+1)+i]);
633
5.37M
         X[stride*2*j+i] = ADD32(tmp1, tmp2);
634
5.37M
         X[stride*(2*j+1)+i] = SUB32(tmp1, tmp2);
635
5.37M
      }
636
640k
}
637
638
static int compute_qn(int N, int b, int offset, int pulse_cap, int stereo)
639
413k
{
640
413k
   static const opus_int16 exp2_table8[8] =
641
413k
      {16384, 17866, 19483, 21247, 23170, 25267, 27554, 30048};
642
413k
   int qn, qb;
643
413k
   int N2 = 2*N-1;
644
413k
   if (stereo && N==2)
645
61.5k
      N2--;
646
   /* The upper limit ensures that in a stereo split with itheta==16384, we'll
647
       always have enough bits left over to code at least one pulse in the
648
       side; otherwise it would collapse, since it doesn't get folded. */
649
413k
   qb = celt_sudiv(b+N2*offset, N2);
650
413k
   qb = IMIN(b-pulse_cap-(4<<BITRES), qb);
651
652
413k
   qb = IMIN(8<<BITRES, qb);
653
654
413k
   if (qb<(1<<BITRES>>1)) {
655
182k
      qn = 1;
656
230k
   } else {
657
230k
      qn = exp2_table8[qb&0x7]>>(14-(qb>>BITRES));
658
230k
      qn = (qn+1)>>1<<1;
659
230k
   }
660
413k
   celt_assert(qn <= 256);
661
413k
   return qn;
662
413k
}
663
664
struct band_ctx {
665
   int encode;
666
   int resynth;
667
   const CELTMode *m;
668
   int i;
669
   int intensity;
670
   int spread;
671
   int tf_change;
672
   ec_ctx *ec;
673
   opus_int32 remaining_bits;
674
   const celt_ener *bandE;
675
   opus_uint32 seed;
676
   int arch;
677
   int theta_round;
678
   int disable_inv;
679
   int avoid_split_noise;
680
#ifdef ENABLE_QEXT
681
   ec_ctx *ext_ec;
682
   int extra_bits;
683
   opus_int32 ext_total_bits;
684
   int extra_bands;
685
#endif
686
};
687
688
struct split_ctx {
689
   int inv;
690
   int imid;
691
   int iside;
692
   int delta;
693
   int itheta;
694
#ifdef ENABLE_QEXT
695
   int itheta_q30;
696
#endif
697
   int qalloc;
698
};
699
700
static void compute_theta(struct band_ctx *ctx, struct split_ctx *sctx,
701
      celt_norm *X, celt_norm *Y, int N, int *b, int B, int B0,
702
      int LM,
703
      int stereo, int *fill ARG_QEXT(int *ext_b))
704
413k
{
705
413k
   int qn;
706
413k
   int itheta=0;
707
413k
   int itheta_q30=0;
708
413k
   int delta;
709
413k
   int imid, iside;
710
413k
   int qalloc;
711
413k
   int pulse_cap;
712
413k
   int offset;
713
413k
   opus_int32 tell;
714
413k
   int inv=0;
715
413k
   int encode;
716
413k
   const CELTMode *m;
717
413k
   int i;
718
413k
   int intensity;
719
413k
   ec_ctx *ec;
720
413k
   const celt_ener *bandE;
721
722
413k
   encode = ctx->encode;
723
413k
   m = ctx->m;
724
413k
   i = ctx->i;
725
413k
   intensity = ctx->intensity;
726
413k
   ec = ctx->ec;
727
413k
   bandE = ctx->bandE;
728
729
   /* Decide on the resolution to give to the split parameter theta */
730
413k
   pulse_cap = m->logN[i]+LM*(1<<BITRES);
731
413k
   offset = (pulse_cap>>1) - (stereo&&N==2 ? QTHETA_OFFSET_TWOPHASE : QTHETA_OFFSET);
732
413k
   qn = compute_qn(N, *b, offset, pulse_cap, stereo);
733
413k
   if (stereo && i>=intensity)
734
220k
      qn = 1;
735
413k
   if (encode)
736
0
   {
737
      /* theta is the atan() of the ratio between the (normalized)
738
         side and mid. With just that parameter, we can re-scale both
739
         mid and side because we know that 1) they have unit norm and
740
         2) they are orthogonal. */
741
0
      itheta_q30 = stereo_itheta(X, Y, stereo, N, ctx->arch);
742
0
      itheta = itheta_q30>>16;
743
0
   }
744
413k
   tell = ec_tell_frac(ec);
745
413k
   if (qn!=1)
746
187k
   {
747
187k
      if (encode)
748
0
      {
749
0
         if (!stereo || ctx->theta_round == 0)
750
0
         {
751
0
            itheta = (itheta*(opus_int32)qn+8192)>>14;
752
0
            if (!stereo && ctx->avoid_split_noise && itheta > 0 && itheta < qn)
753
0
            {
754
               /* Check if the selected value of theta will cause the bit allocation
755
                  to inject noise on one side. If so, make sure the energy of that side
756
                  is zero. */
757
0
               int unquantized = celt_udiv((opus_int32)itheta*16384, qn);
758
0
               imid = bitexact_cos((opus_int16)unquantized);
759
0
               iside = bitexact_cos((opus_int16)(16384-unquantized));
760
0
               delta = FRAC_MUL16((N-1)<<7,bitexact_log2tan(iside,imid));
761
0
               if (delta > *b)
762
0
                  itheta = qn;
763
0
               else if (delta < -*b)
764
0
                  itheta = 0;
765
0
            }
766
0
         } else {
767
0
            int down;
768
            /* Bias quantization towards itheta=0 and itheta=16384. */
769
0
            int bias = itheta > 8192 ? 32767/qn : -32767/qn;
770
0
            down = IMIN(qn-1, IMAX(0, (itheta*(opus_int32)qn + bias)>>14));
771
0
            if (ctx->theta_round < 0)
772
0
               itheta = down;
773
0
            else
774
0
               itheta = down+1;
775
0
         }
776
0
      }
777
      /* Entropy coding of the angle. We use a uniform pdf for the
778
         time split, a step for stereo, and a triangular one for the rest. */
779
187k
      if (stereo && N>2)
780
14.9k
      {
781
14.9k
         int p0 = 3;
782
14.9k
         int x = itheta;
783
14.9k
         int x0 = qn/2;
784
14.9k
         int ft = p0*(x0+1) + x0;
785
         /* Use a probability of p0 up to itheta=8192 and then use 1 after */
786
14.9k
         if (encode)
787
0
         {
788
0
            ec_encode(ec,x<=x0?p0*x:(x-1-x0)+(x0+1)*p0,x<=x0?p0*(x+1):(x-x0)+(x0+1)*p0,ft);
789
14.9k
         } else {
790
14.9k
            int fs;
791
14.9k
            fs=ec_decode(ec,ft);
792
14.9k
            if (fs<(x0+1)*p0)
793
11.5k
               x=fs/p0;
794
3.37k
            else
795
3.37k
               x=x0+1+(fs-(x0+1)*p0);
796
14.9k
            ec_dec_update(ec,x<=x0?p0*x:(x-1-x0)+(x0+1)*p0,x<=x0?p0*(x+1):(x-x0)+(x0+1)*p0,ft);
797
14.9k
            itheta = x;
798
14.9k
         }
799
172k
      } else if (B0>1 || stereo) {
800
         /* Uniform pdf */
801
57.6k
         if (encode)
802
0
            ec_enc_uint(ec, itheta, qn+1);
803
57.6k
         else
804
57.6k
            itheta = ec_dec_uint(ec, qn+1);
805
114k
      } else {
806
114k
         int fs=1, ft;
807
114k
         ft = ((qn>>1)+1)*((qn>>1)+1);
808
114k
         if (encode)
809
0
         {
810
0
            int fl;
811
812
0
            fs = itheta <= (qn>>1) ? itheta + 1 : qn + 1 - itheta;
813
0
            fl = itheta <= (qn>>1) ? itheta*(itheta + 1)>>1 :
814
0
             ft - ((qn + 1 - itheta)*(qn + 2 - itheta)>>1);
815
816
0
            ec_encode(ec, fl, fl+fs, ft);
817
114k
         } else {
818
            /* Triangular pdf */
819
114k
            int fl=0;
820
114k
            int fm;
821
114k
            fm = ec_decode(ec, ft);
822
823
114k
            if (fm < ((qn>>1)*((qn>>1) + 1)>>1))
824
56.2k
            {
825
56.2k
               itheta = (isqrt32(8*(opus_uint32)fm + 1) - 1)>>1;
826
56.2k
               fs = itheta + 1;
827
56.2k
               fl = itheta*(itheta + 1)>>1;
828
56.2k
            }
829
58.2k
            else
830
58.2k
            {
831
58.2k
               itheta = (2*(qn + 1)
832
58.2k
                - isqrt32(8*(opus_uint32)(ft - fm - 1) + 1))>>1;
833
58.2k
               fs = qn + 1 - itheta;
834
58.2k
               fl = ft - ((qn + 1 - itheta)*(qn + 2 - itheta)>>1);
835
58.2k
            }
836
837
114k
            ec_dec_update(ec, fl, fl+fs, ft);
838
114k
         }
839
114k
      }
840
187k
      celt_assert(itheta>=0);
841
187k
      itheta = celt_udiv((opus_int32)itheta*16384, qn);
842
#ifdef ENABLE_QEXT
843
      *ext_b = IMIN(*ext_b, ctx->ext_total_bits - (opus_int32)ec_tell_frac(ctx->ext_ec));
844
      if (*ext_b >= 2*N<<BITRES && ctx->ext_total_bits-ec_tell_frac(ctx->ext_ec)-1 > 2<<BITRES) {
845
         int extra_bits;
846
         int ext_tell = ec_tell_frac(ctx->ext_ec);
847
         extra_bits = IMIN(14, IMAX(2, celt_sudiv(*ext_b, (2*N-1)<<BITRES)));
848
         if (encode) {
849
            itheta_q30 = itheta_q30 - (itheta<<16);
850
            itheta_q30 = (itheta_q30*(opus_int64)qn*((1<<extra_bits)-1)+(1<<29))>>30;
851
            itheta_q30 += (1<<(extra_bits-1))-1;
852
            itheta_q30 = IMAX(0, IMIN((1<<extra_bits)-2, itheta_q30));
853
            ec_enc_uint(ctx->ext_ec, itheta_q30, (1<<extra_bits)-1);
854
         } else {
855
            itheta_q30 = ec_dec_uint(ctx->ext_ec, (1<<extra_bits)-1);
856
         }
857
         itheta_q30 -= (1<<(extra_bits-1))-1;
858
         itheta_q30 = (itheta<<16) + itheta_q30*(opus_int64)(1<<30)/(qn*((1<<extra_bits)-1));
859
         /* Hard bounds on itheta (can only trigger on corrupted bitstreams). */
860
         itheta_q30 = IMAX(0, IMIN(itheta_q30, 1073741824));
861
         *ext_b -= ec_tell_frac(ctx->ext_ec) - ext_tell;
862
      } else {
863
         itheta_q30 = (opus_int32)itheta<<16;
864
      }
865
#endif
866
187k
      if (encode && stereo)
867
0
      {
868
0
         if (itheta==0)
869
0
            intensity_stereo(m, X, Y, bandE, i, N);
870
0
         else
871
0
            stereo_split(X, Y, N);
872
0
      }
873
      /* NOTE: Renormalising X and Y *may* help fixed-point a bit at very high rate.
874
               Let's do that at higher complexity */
875
226k
   } else if (stereo) {
876
226k
      if (encode)
877
0
      {
878
0
         inv = itheta > 8192 && !ctx->disable_inv;
879
0
         if (inv)
880
0
         {
881
0
            int j;
882
0
            for (j=0;j<N;j++)
883
0
               Y[j] = -Y[j];
884
0
         }
885
0
         intensity_stereo(m, X, Y, bandE, i, N);
886
0
      }
887
226k
      if (*b>2<<BITRES && ctx->remaining_bits > 2<<BITRES)
888
57.4k
      {
889
57.4k
         if (encode)
890
0
            ec_enc_bit_logp(ec, inv, 2);
891
57.4k
         else
892
57.4k
            inv = ec_dec_bit_logp(ec, 2);
893
57.4k
      } else
894
168k
         inv = 0;
895
      /* inv flag override to avoid problems with downmixing. */
896
226k
      if (ctx->disable_inv)
897
0
         inv = 0;
898
226k
      itheta = 0;
899
226k
      itheta_q30 = 0;
900
226k
   }
901
413k
   qalloc = ec_tell_frac(ec) - tell;
902
413k
   *b -= qalloc;
903
904
413k
   if (itheta == 0)
905
232k
   {
906
232k
      imid = 32767;
907
232k
      iside = 0;
908
232k
      *fill &= (1<<B)-1;
909
232k
      delta = -16384;
910
232k
   } else if (itheta == 16384)
911
4.72k
   {
912
4.72k
      imid = 0;
913
4.72k
      iside = 32767;
914
4.72k
      *fill &= ((1<<B)-1)<<B;
915
4.72k
      delta = 16384;
916
176k
   } else {
917
176k
      imid = bitexact_cos((opus_int16)itheta);
918
176k
      iside = bitexact_cos((opus_int16)(16384-itheta));
919
      /* This is the mid vs side allocation that minimizes squared error
920
         in that band. */
921
176k
      delta = FRAC_MUL16((N-1)<<7,bitexact_log2tan(iside,imid));
922
176k
   }
923
924
413k
   sctx->inv = inv;
925
413k
   sctx->imid = imid;
926
413k
   sctx->iside = iside;
927
413k
   sctx->delta = delta;
928
413k
   sctx->itheta = itheta;
929
#ifdef ENABLE_QEXT
930
   sctx->itheta_q30 = itheta_q30;
931
#endif
932
413k
   sctx->qalloc = qalloc;
933
413k
}
934
static unsigned quant_band_n1(struct band_ctx *ctx, celt_norm *X, celt_norm *Y,
935
      celt_norm *lowband_out)
936
123k
{
937
123k
   int c;
938
123k
   int stereo;
939
123k
   celt_norm *x = X;
940
123k
   int encode;
941
123k
   ec_ctx *ec;
942
943
123k
   encode = ctx->encode;
944
123k
   ec = ctx->ec;
945
946
123k
   stereo = Y != NULL;
947
180k
   c=0; do {
948
180k
      int sign=0;
949
180k
      if (ctx->remaining_bits>=1<<BITRES)
950
61.8k
      {
951
61.8k
         if (encode)
952
0
         {
953
0
            sign = x[0]<0;
954
0
            ec_enc_bits(ec, sign, 1);
955
61.8k
         } else {
956
61.8k
            sign = ec_dec_bits(ec, 1);
957
61.8k
         }
958
61.8k
         ctx->remaining_bits -= 1<<BITRES;
959
61.8k
      }
960
180k
      if (ctx->resynth)
961
180k
         x[0] = sign ? -NORM_SCALING : NORM_SCALING;
962
180k
      x = Y;
963
180k
   } while (++c<1+stereo);
964
123k
   if (lowband_out)
965
123k
      lowband_out[0] = SHR32(X[0],4);
966
123k
   return 1;
967
123k
}
968
969
/* This function is responsible for encoding and decoding a mono partition.
970
   It can split the band in two and transmit the energy difference with
971
   the two half-bands. It can be called recursively so bands can end up being
972
   split in 8 parts. */
973
static unsigned quant_partition(struct band_ctx *ctx, celt_norm *X,
974
      int N, int b, int B, celt_norm *lowband,
975
      int LM,
976
      opus_val32 gain, int fill
977
      ARG_QEXT(int ext_b))
978
1.39M
{
979
1.39M
   const unsigned char *cache;
980
1.39M
   int q;
981
1.39M
   int curr_bits;
982
1.39M
   int imid=0, iside=0;
983
1.39M
   int B0=B;
984
1.39M
   opus_val32 mid=0, side=0;
985
1.39M
   unsigned cm=0;
986
1.39M
   celt_norm *Y=NULL;
987
1.39M
   int encode;
988
1.39M
   const CELTMode *m;
989
1.39M
   int i;
990
1.39M
   int spread;
991
1.39M
   ec_ctx *ec;
992
993
1.39M
   encode = ctx->encode;
994
1.39M
   m = ctx->m;
995
1.39M
   i = ctx->i;
996
1.39M
   spread = ctx->spread;
997
1.39M
   ec = ctx->ec;
998
999
   /* If we need 1.5 more bit than we can produce, split the band in two. */
1000
1.39M
   cache = m->cache.bits + m->cache.index[(LM+1)*m->nbEBands+i];
1001
1.39M
   if (LM != -1 && b > cache[cache[0]]+12 && N>2)
1002
161k
   {
1003
161k
      int mbits, sbits, delta;
1004
161k
      int itheta;
1005
161k
      int qalloc;
1006
161k
      struct split_ctx sctx;
1007
161k
      celt_norm *next_lowband2=NULL;
1008
161k
      opus_int32 rebalance;
1009
1010
161k
      N >>= 1;
1011
161k
      Y = X+N;
1012
161k
      LM -= 1;
1013
161k
      if (B==1)
1014
114k
         fill = (fill&1)|(fill<<1);
1015
161k
      B = (B+1)>>1;
1016
1017
161k
      compute_theta(ctx, &sctx, X, Y, N, &b, B, B0, LM, 0, &fill ARG_QEXT(&ext_b));
1018
161k
      imid = sctx.imid;
1019
161k
      iside = sctx.iside;
1020
161k
      delta = sctx.delta;
1021
161k
      itheta = sctx.itheta;
1022
161k
      qalloc = sctx.qalloc;
1023
#ifdef FIXED_POINT
1024
# ifdef ENABLE_QEXT
1025
      (void)imid;
1026
      (void)iside;
1027
      mid = celt_cos_norm32(sctx.itheta_q30);
1028
      side = celt_cos_norm32((1<<30)-sctx.itheta_q30);
1029
# else
1030
      mid = SHL32(EXTEND32(imid), 16);
1031
      side = SHL32(EXTEND32(iside), 16);
1032
# endif
1033
#else
1034
# ifdef ENABLE_QEXT
1035
      (void)imid;
1036
      (void)iside;
1037
      mid = celt_cos_norm2(sctx.itheta_q30*(1.f/(1<<30)));
1038
      side = celt_cos_norm2(1.f-sctx.itheta_q30*(1.f/(1<<30)));
1039
# else
1040
161k
      mid = (1.f/32768)*imid;
1041
161k
      side = (1.f/32768)*iside;
1042
161k
# endif
1043
161k
#endif
1044
1045
      /* Give more bits to low-energy MDCTs than they would otherwise deserve */
1046
161k
      if (B0>1 && (itheta&0x3fff))
1047
43.6k
      {
1048
43.6k
         if (itheta > 8192)
1049
            /* Rough approximation for pre-echo masking */
1050
19.5k
            delta -= delta>>(4-LM);
1051
24.1k
         else
1052
            /* Corresponds to a forward-masking slope of 1.5 dB per 10 ms */
1053
24.1k
            delta = IMIN(0, delta + (N<<BITRES>>(5-LM)));
1054
43.6k
      }
1055
161k
      mbits = IMAX(0, IMIN(b, (b-delta)/2));
1056
161k
      sbits = b-mbits;
1057
161k
      ctx->remaining_bits -= qalloc;
1058
1059
161k
      if (lowband)
1060
119k
         next_lowband2 = lowband+N; /* >32-bit split case */
1061
1062
161k
      rebalance = ctx->remaining_bits;
1063
161k
      if (mbits >= sbits)
1064
82.3k
      {
1065
82.3k
         cm = quant_partition(ctx, X, N, mbits, B, lowband, LM,
1066
82.3k
               MULT32_32_Q31(gain,mid), fill ARG_QEXT(ext_b/2));
1067
82.3k
         rebalance = mbits - (rebalance-ctx->remaining_bits);
1068
82.3k
         if (rebalance > 3<<BITRES && itheta!=0)
1069
45.6k
            sbits += rebalance - (3<<BITRES);
1070
82.3k
         cm |= quant_partition(ctx, Y, N, sbits, B, next_lowband2, LM,
1071
82.3k
               MULT32_32_Q31(gain,side), fill>>B ARG_QEXT(ext_b/2))<<(B0>>1);
1072
82.3k
      } else {
1073
79.4k
         cm = quant_partition(ctx, Y, N, sbits, B, next_lowband2, LM,
1074
79.4k
               MULT32_32_Q31(gain,side), fill>>B ARG_QEXT(ext_b/2))<<(B0>>1);
1075
79.4k
         rebalance = sbits - (rebalance-ctx->remaining_bits);
1076
79.4k
         if (rebalance > 3<<BITRES && itheta!=16384)
1077
47.2k
            mbits += rebalance - (3<<BITRES);
1078
79.4k
         cm |= quant_partition(ctx, X, N, mbits, B, lowband, LM,
1079
79.4k
               MULT32_32_Q31(gain,mid), fill ARG_QEXT(ext_b/2));
1080
79.4k
      }
1081
1.23M
   } else {
1082
#ifdef ENABLE_QEXT
1083
      int extra_bits;
1084
      int ext_remaining_bits;
1085
      extra_bits = ext_b/(N-1)>>BITRES;
1086
      ext_remaining_bits = ctx->ext_total_bits-(opus_int32)ec_tell_frac(ctx->ext_ec);
1087
      if (ext_remaining_bits < ((extra_bits+1)*(N-1)+N)<<BITRES) {
1088
         extra_bits = (ext_remaining_bits-(N<<BITRES))/(N-1)>>BITRES;
1089
         extra_bits = IMAX(extra_bits-1, 0);
1090
      }
1091
      extra_bits = IMIN(14, extra_bits);
1092
#endif
1093
      /* This is the basic no-split case */
1094
1.23M
      q = bits2pulses(m, i, LM, b);
1095
1.23M
      curr_bits = pulses2bits(m, i, LM, q);
1096
1.23M
      ctx->remaining_bits -= curr_bits;
1097
1098
      /* Ensures we can never bust the budget */
1099
1.25M
      while (ctx->remaining_bits < 0 && q > 0)
1100
14.5k
      {
1101
14.5k
         ctx->remaining_bits += curr_bits;
1102
14.5k
         q--;
1103
14.5k
         curr_bits = pulses2bits(m, i, LM, q);
1104
14.5k
         ctx->remaining_bits -= curr_bits;
1105
14.5k
      }
1106
1107
1.23M
      if (q!=0)
1108
500k
      {
1109
500k
         int K = get_pulses(q);
1110
1111
         /* Finally do the actual quantization */
1112
500k
         if (encode)
1113
0
         {
1114
0
            cm = alg_quant(X, N, K, spread, B, ec, gain, ctx->resynth
1115
0
                           ARG_QEXT(ctx->ext_ec) ARG_QEXT(extra_bits),
1116
0
                           ctx->arch);
1117
500k
         } else {
1118
500k
            cm = alg_unquant(X, N, K, spread, B, ec, gain
1119
500k
                             ARG_QEXT(ctx->ext_ec) ARG_QEXT(extra_bits));
1120
500k
         }
1121
#ifdef ENABLE_QEXT
1122
      } else if (ext_b > 2*N<<BITRES)
1123
      {
1124
         extra_bits = ext_b/(N-1)>>BITRES;
1125
         ext_remaining_bits = ctx->ext_total_bits-ec_tell_frac(ctx->ext_ec);
1126
         if (ext_remaining_bits < ((extra_bits+1)*(N-1)+N)<<BITRES) {
1127
            extra_bits = (ext_remaining_bits-(N<<BITRES))/(N-1)>>BITRES;
1128
            extra_bits = IMAX(extra_bits-1, 0);
1129
         }
1130
         extra_bits = IMIN(14, extra_bits);
1131
         if (encode) cm = cubic_quant(X, N, extra_bits, B, ctx->ext_ec, gain, ctx->resynth);
1132
         else cm = cubic_unquant(X, N, extra_bits, B, ctx->ext_ec, gain);
1133
#endif
1134
735k
      } else {
1135
         /* If there's no pulse, fill the band anyway */
1136
735k
         int j;
1137
735k
         if (ctx->resynth)
1138
735k
         {
1139
735k
            unsigned cm_mask;
1140
            /* B can be as large as 16, so this shift might overflow an int on a
1141
               16-bit platform; use a long to get defined behavior.*/
1142
735k
            cm_mask = (unsigned)(1UL<<B)-1;
1143
735k
            fill &= cm_mask;
1144
735k
            if (!fill)
1145
185k
            {
1146
185k
               OPUS_CLEAR(X, N);
1147
550k
            } else {
1148
550k
               if (lowband == NULL)
1149
35.1k
               {
1150
                  /* Noise */
1151
998k
                  for (j=0;j<N;j++)
1152
962k
                  {
1153
962k
                     ctx->seed = celt_lcg_rand(ctx->seed);
1154
962k
                     X[j] = SHL32((celt_norm)((opus_int32)ctx->seed>>20), NORM_SHIFT-14);
1155
962k
                  }
1156
35.1k
                  cm = cm_mask;
1157
515k
               } else {
1158
                  /* Folded spectrum */
1159
10.3M
                  for (j=0;j<N;j++)
1160
9.79M
                  {
1161
9.79M
                     opus_val16 tmp;
1162
9.79M
                     ctx->seed = celt_lcg_rand(ctx->seed);
1163
                     /* About 48 dB below the "normal" folding level */
1164
9.79M
                     tmp = QCONST16(1.0f/256, NORM_SHIFT-4);
1165
9.79M
                     tmp = (ctx->seed)&0x8000 ? tmp : -tmp;
1166
9.79M
                     X[j] = lowband[j]+tmp;
1167
9.79M
                  }
1168
515k
                  cm = fill;
1169
515k
               }
1170
550k
               renormalise_vector(X, N, gain, ctx->arch);
1171
550k
            }
1172
735k
         }
1173
735k
      }
1174
1.23M
   }
1175
1176
1.39M
   return cm;
1177
1.39M
}
1178
1179
#ifdef ENABLE_QEXT
1180
static unsigned cubic_quant_partition(struct band_ctx *ctx, celt_norm *X, int N, int b, int B, ec_ctx *ec, int LM, opus_val32 gain, int resynth, int encode)
1181
{
1182
   celt_assert(LM>=0);
1183
   ctx->remaining_bits = ctx->ec->storage*8*8 - ec_tell_frac(ctx->ec);
1184
   b = IMIN(b, ctx->remaining_bits);
1185
   /* As long as we have at least two bits of depth, split all the way to LM=0 (not -1 like PVQ). */
1186
   if (LM==0 || b<=2*N<<BITRES) {
1187
      int res, ret;
1188
      b = IMIN(b + ((N-1)<<BITRES)/2, ctx->remaining_bits);
1189
      /* Resolution left after taking into account coding the cube face. */
1190
      res = (b-(1<<BITRES)-ctx->m->logN[ctx->i]-(LM<<BITRES)-1)/(N-1)>>BITRES;
1191
      res = IMIN(14, IMAX(0, res));
1192
      if (encode) ret = cubic_quant(X, N, res, B, ec, gain, resynth);
1193
      else ret = cubic_unquant(X, N, res, B, ec, gain);
1194
      ctx->remaining_bits = ctx->ec->storage*8*8 - ec_tell_frac(ctx->ec);
1195
      return ret;
1196
   } else {
1197
      celt_norm *Y;
1198
      opus_int32 itheta_q30;
1199
      opus_val32 g1, g2;
1200
      opus_int32 theta_res;
1201
      opus_int32 qtheta;
1202
      int delta;
1203
      int b1, b2;
1204
      int cm;
1205
      int N0;
1206
      N0 = N;
1207
      N >>= 1;
1208
      Y = X+N;
1209
      LM -= 1;
1210
      B = (B+1)>>1;
1211
      theta_res = IMIN(16, (b>>BITRES)/(N0-1) + 1);
1212
      if (encode) {
1213
         itheta_q30 = stereo_itheta(X, Y, 0, N, ctx->arch);
1214
         qtheta = (itheta_q30+(1<<(29-theta_res)))>>(30-theta_res);
1215
         ec_enc_uint(ec, qtheta, (1<<theta_res)+1);
1216
      } else {
1217
         qtheta = ec_dec_uint(ec, (1<<theta_res)+1);
1218
      }
1219
      itheta_q30 = qtheta<<(30-theta_res);
1220
      b -= theta_res<<BITRES;
1221
      delta = (N0-1) * 23 * ((itheta_q30>>16)-8192) >> (17-BITRES);
1222
1223
#ifdef FIXED_POINT
1224
      g1 = celt_cos_norm32(itheta_q30);
1225
      g2 = celt_cos_norm32((1<<30)-itheta_q30);
1226
#else
1227
      g1 = celt_cos_norm2(itheta_q30*(1.f/(1<<30)));
1228
      g2 = celt_cos_norm2(1.f-itheta_q30*(1.f/(1<<30)));
1229
#endif
1230
      if (itheta_q30 == 0) {
1231
         b1=b;
1232
         b2=0;
1233
      } else if (itheta_q30==1073741824) {
1234
         b1=0;
1235
         b2=b;
1236
      } else {
1237
         b1 = IMIN(b, IMAX(0, (b-delta)/2));
1238
         b2 = b-b1;
1239
      }
1240
      cm  = cubic_quant_partition(ctx, X, N, b1, B, ec, LM, MULT32_32_Q31(gain, g1), resynth, encode);
1241
      cm |= cubic_quant_partition(ctx, Y, N, b2, B, ec, LM, MULT32_32_Q31(gain, g2), resynth, encode);
1242
      return cm;
1243
   }
1244
}
1245
#endif
1246
1247
/* This function is responsible for encoding and decoding a band for the mono case. */
1248
static unsigned quant_band(struct band_ctx *ctx, celt_norm *X,
1249
      int N, int b, int B, celt_norm *lowband,
1250
      int LM, celt_norm *lowband_out,
1251
      opus_val32 gain, celt_norm *lowband_scratch, int fill
1252
      ARG_QEXT(int ext_b))
1253
1.14M
{
1254
1.14M
   int N0=N;
1255
1.14M
   int N_B=N;
1256
1.14M
   int N_B0;
1257
1.14M
   int B0=B;
1258
1.14M
   int time_divide=0;
1259
1.14M
   int recombine=0;
1260
1.14M
   int longBlocks;
1261
1.14M
   unsigned cm=0;
1262
1.14M
   int k;
1263
1.14M
   int encode;
1264
1.14M
   int tf_change;
1265
1266
1.14M
   encode = ctx->encode;
1267
1.14M
   tf_change = ctx->tf_change;
1268
1269
1.14M
   longBlocks = B0==1;
1270
1271
1.14M
   N_B = celt_udiv(N_B, B);
1272
1273
   /* Special case for one sample */
1274
1.14M
   if (N==1)
1275
67.5k
   {
1276
67.5k
      return quant_band_n1(ctx, X, NULL, lowband_out);
1277
67.5k
   }
1278
1279
1.07M
   if (tf_change>0)
1280
66.1k
      recombine = tf_change;
1281
   /* Band recombining to increase frequency resolution */
1282
1283
1.07M
   if (lowband_scratch && lowband && (recombine || ((N_B&1) == 0 && tf_change<0) || B0>1))
1284
160k
   {
1285
160k
      OPUS_COPY(lowband_scratch, lowband, N);
1286
160k
      lowband = lowband_scratch;
1287
160k
   }
1288
1289
1.18M
   for (k=0;k<recombine;k++)
1290
107k
   {
1291
107k
      static const unsigned char bit_interleave_table[16]={
1292
107k
            0,1,1,1,2,3,3,3,2,3,3,3,2,3,3,3
1293
107k
      };
1294
107k
      if (encode)
1295
0
         haar1(X, N>>k, 1<<k);
1296
107k
      if (lowband)
1297
87.1k
         haar1(lowband, N>>k, 1<<k);
1298
107k
      fill = bit_interleave_table[fill&0xF]|bit_interleave_table[fill>>4]<<2;
1299
107k
   }
1300
1.07M
   B>>=recombine;
1301
1.07M
   N_B<<=recombine;
1302
1303
   /* Increasing the time resolution */
1304
1.32M
   while ((N_B&1) == 0 && tf_change<0)
1305
250k
   {
1306
250k
      if (encode)
1307
0
         haar1(X, N_B, B);
1308
250k
      if (lowband)
1309
194k
         haar1(lowband, N_B, B);
1310
250k
      fill |= fill<<B;
1311
250k
      B <<= 1;
1312
250k
      N_B >>= 1;
1313
250k
      time_divide++;
1314
250k
      tf_change++;
1315
250k
   }
1316
1.07M
   B0=B;
1317
1.07M
   N_B0 = N_B;
1318
1319
   /* Reorganize the samples in time order instead of frequency order */
1320
1.07M
   if (B0>1)
1321
168k
   {
1322
168k
      if (encode)
1323
0
         deinterleave_hadamard(X, N_B>>recombine, B0<<recombine, longBlocks);
1324
168k
      if (lowband)
1325
136k
         deinterleave_hadamard(lowband, N_B>>recombine, B0<<recombine, longBlocks);
1326
168k
   }
1327
1328
#ifdef ENABLE_QEXT
1329
   if (ctx->extra_bands && b > (3*N<<BITRES)+(ctx->m->logN[ctx->i]+8+8*LM)) {
1330
      cm = cubic_quant_partition(ctx, X, N, b, B, ctx->ec, LM, gain, ctx->resynth, encode);
1331
   } else
1332
#endif
1333
1.07M
   {
1334
1.07M
      cm = quant_partition(ctx, X, N, b, B, lowband, LM, gain, fill ARG_QEXT(ext_b));
1335
1.07M
   }
1336
1337
   /* This code is used by the decoder and by the resynthesis-enabled encoder */
1338
1.07M
   if (ctx->resynth)
1339
1.07M
   {
1340
      /* Undo the sample reorganization going from time order to frequency order */
1341
1.07M
      if (B0>1)
1342
168k
         interleave_hadamard(X, N_B>>recombine, B0<<recombine, longBlocks);
1343
1344
      /* Undo time-freq changes that we did earlier */
1345
1.07M
      N_B = N_B0;
1346
1.07M
      B = B0;
1347
1.32M
      for (k=0;k<time_divide;k++)
1348
250k
      {
1349
250k
         B >>= 1;
1350
250k
         N_B <<= 1;
1351
250k
         cm |= cm>>B;
1352
250k
         haar1(X, N_B, B);
1353
250k
      }
1354
1355
1.18M
      for (k=0;k<recombine;k++)
1356
107k
      {
1357
107k
         static const unsigned char bit_deinterleave_table[16]={
1358
107k
               0x00,0x03,0x0C,0x0F,0x30,0x33,0x3C,0x3F,
1359
107k
               0xC0,0xC3,0xCC,0xCF,0xF0,0xF3,0xFC,0xFF
1360
107k
         };
1361
107k
         cm = bit_deinterleave_table[cm];
1362
107k
         haar1(X, N0>>k, 1<<k);
1363
107k
      }
1364
1.07M
      B<<=recombine;
1365
1366
      /* Scale output for later folding */
1367
1.07M
      if (lowband_out)
1368
802k
      {
1369
802k
         int j;
1370
802k
         opus_val16 n;
1371
802k
         n = celt_sqrt(SHL32(EXTEND32(N0),22));
1372
10.1M
         for (j=0;j<N0;j++)
1373
9.34M
            lowband_out[j] = MULT16_32_Q15(n,X[j]);
1374
802k
      }
1375
1.07M
      cm &= (1<<B)-1;
1376
1.07M
   }
1377
1.07M
   return cm;
1378
1.14M
}
1379
1380
#ifdef FIXED_POINT
1381
#define MIN_STEREO_ENERGY 2
1382
#else
1383
0
#define MIN_STEREO_ENERGY 1e-10f
1384
#endif
1385
1386
/* This function is responsible for encoding and decoding a band for the stereo case. */
1387
static unsigned quant_band_stereo(struct band_ctx *ctx, celt_norm *X, celt_norm *Y,
1388
      int N, int b, int B, celt_norm *lowband,
1389
      int LM, celt_norm *lowband_out,
1390
      celt_norm *lowband_scratch, int fill
1391
      ARG_QEXT(int ext_b) ARG_QEXT(const int *cap))
1392
307k
{
1393
307k
   int imid=0, iside=0;
1394
307k
   int inv = 0;
1395
307k
   opus_val32 mid=0, side=0;
1396
307k
   unsigned cm=0;
1397
307k
   int mbits, sbits, delta;
1398
307k
   int itheta;
1399
307k
   int qalloc;
1400
307k
   struct split_ctx sctx;
1401
307k
   int orig_fill;
1402
307k
   int encode;
1403
307k
   ec_ctx *ec;
1404
1405
307k
   encode = ctx->encode;
1406
307k
   ec = ctx->ec;
1407
1408
   /* Special case for one sample */
1409
307k
   if (N==1)
1410
56.2k
   {
1411
56.2k
      return quant_band_n1(ctx, X, Y, lowband_out);
1412
56.2k
   }
1413
1414
251k
   orig_fill = fill;
1415
1416
251k
   if (encode) {
1417
0
      if (ctx->bandE[ctx->i] < MIN_STEREO_ENERGY || ctx->bandE[ctx->m->nbEBands+ctx->i] < MIN_STEREO_ENERGY) {
1418
0
         if (ctx->bandE[ctx->i] > ctx->bandE[ctx->m->nbEBands+ctx->i]) OPUS_COPY(Y, X, N);
1419
0
         else OPUS_COPY(X, Y, N);
1420
0
      }
1421
0
   }
1422
251k
   compute_theta(ctx, &sctx, X, Y, N, &b, B, B, LM, 1, &fill ARG_QEXT(&ext_b));
1423
251k
   inv = sctx.inv;
1424
251k
   imid = sctx.imid;
1425
251k
   iside = sctx.iside;
1426
251k
   delta = sctx.delta;
1427
251k
   itheta = sctx.itheta;
1428
251k
   qalloc = sctx.qalloc;
1429
#ifdef FIXED_POINT
1430
# ifdef ENABLE_QEXT
1431
   (void)imid;
1432
   (void)iside;
1433
   mid = celt_cos_norm32(sctx.itheta_q30);
1434
   side = celt_cos_norm32((1<<30)-sctx.itheta_q30);
1435
# else
1436
   mid = SHL32(EXTEND32(imid), 16);
1437
   side = SHL32(EXTEND32(iside), 16);
1438
# endif
1439
#else
1440
# ifdef ENABLE_QEXT
1441
   (void)imid;
1442
   (void)iside;
1443
   mid = celt_cos_norm2(sctx.itheta_q30*(1.f/(1<<30)));
1444
   side = celt_cos_norm2(1.f-sctx.itheta_q30*(1.f/(1<<30)));
1445
# else
1446
251k
   mid = (1.f/32768)*imid;
1447
251k
   side = (1.f/32768)*iside;
1448
251k
# endif
1449
251k
#endif
1450
1451
   /* This is a special case for N=2 that only works for stereo and takes
1452
      advantage of the fact that mid and side are orthogonal to encode
1453
      the side with just one bit. */
1454
251k
   if (N==2)
1455
61.5k
   {
1456
61.5k
      int c;
1457
61.5k
      int sign=0;
1458
61.5k
      celt_norm *x2, *y2;
1459
61.5k
      mbits = b;
1460
61.5k
      sbits = 0;
1461
      /* Only need one bit for the side. */
1462
61.5k
      if (itheta != 0 && itheta != 16384)
1463
8.89k
         sbits = 1<<BITRES;
1464
61.5k
      mbits -= sbits;
1465
61.5k
      c = itheta > 8192;
1466
61.5k
      ctx->remaining_bits -= qalloc+sbits;
1467
1468
61.5k
      x2 = c ? Y : X;
1469
61.5k
      y2 = c ? X : Y;
1470
61.5k
      if (sbits)
1471
8.89k
      {
1472
8.89k
         if (encode)
1473
0
         {
1474
            /* Here we only need to encode a sign for the side. */
1475
            /* FIXME: Need to increase fixed-point precision? */
1476
0
            sign = MULT32_32_Q31(x2[0],y2[1]) - MULT32_32_Q31(x2[1],y2[0]) < 0;
1477
0
            ec_enc_bits(ec, sign, 1);
1478
8.89k
         } else {
1479
8.89k
            sign = ec_dec_bits(ec, 1);
1480
8.89k
         }
1481
8.89k
      }
1482
61.5k
      sign = 1-2*sign;
1483
      /* We use orig_fill here because we want to fold the side, but if
1484
         itheta==16384, we'll have cleared the low bits of fill. */
1485
61.5k
      cm = quant_band(ctx, x2, N, mbits, B, lowband, LM, lowband_out, Q31ONE,
1486
61.5k
            lowband_scratch, orig_fill ARG_QEXT(ext_b));
1487
      /* We don't split N=2 bands, so cm is either 1 or 0 (for a fold-collapse),
1488
         and there's no need to worry about mixing with the other channel. */
1489
61.5k
      y2[0] = -sign*x2[1];
1490
61.5k
      y2[1] = sign*x2[0];
1491
61.5k
      if (ctx->resynth)
1492
61.5k
      {
1493
61.5k
         celt_norm tmp;
1494
61.5k
         X[0] = MULT32_32_Q31(mid, X[0]);
1495
61.5k
         X[1] = MULT32_32_Q31(mid, X[1]);
1496
61.5k
         Y[0] = MULT32_32_Q31(side, Y[0]);
1497
61.5k
         Y[1] = MULT32_32_Q31(side, Y[1]);
1498
61.5k
         tmp = X[0];
1499
61.5k
         X[0] = SUB32(tmp,Y[0]);
1500
61.5k
         Y[0] = ADD32(tmp,Y[0]);
1501
61.5k
         tmp = X[1];
1502
61.5k
         X[1] = SUB32(tmp,Y[1]);
1503
61.5k
         Y[1] = ADD32(tmp,Y[1]);
1504
61.5k
      }
1505
190k
   } else {
1506
      /* "Normal" split code */
1507
190k
      opus_int32 rebalance;
1508
1509
190k
      mbits = IMAX(0, IMIN(b, (b-delta)/2));
1510
190k
      sbits = b-mbits;
1511
190k
      ctx->remaining_bits -= qalloc;
1512
1513
190k
      rebalance = ctx->remaining_bits;
1514
190k
      if (mbits >= sbits)
1515
184k
      {
1516
#ifdef ENABLE_QEXT
1517
         int qext_extra = 0;
1518
         /* Reallocate any mid bits that cannot be used to extra mid bits. */
1519
         if (cap != NULL && ext_b != 0) qext_extra = IMAX(0, IMIN(ext_b/2, mbits - cap[ctx->i]/2));
1520
#endif
1521
         /* In stereo mode, we do not apply a scaling to the mid because we need the normalized
1522
            mid for folding later. */
1523
184k
         cm = quant_band(ctx, X, N, mbits, B, lowband, LM, lowband_out, Q31ONE,
1524
184k
               lowband_scratch, fill ARG_QEXT(ext_b/2+qext_extra));
1525
184k
         rebalance = mbits - (rebalance-ctx->remaining_bits);
1526
184k
         if (rebalance > 3<<BITRES && itheta!=0)
1527
992
            sbits += rebalance - (3<<BITRES);
1528
#ifdef ENABLE_QEXT
1529
         /* Guard against overflowing the EC with the angle if the cubic quant used too many bits for the mid. */
1530
         if (ctx->extra_bands) sbits = IMIN(sbits, ctx->remaining_bits);
1531
#endif
1532
         /* For a stereo split, the high bits of fill are always zero, so no
1533
            folding will be done to the side. */
1534
184k
         cm |= quant_band(ctx, Y, N, sbits, B, NULL, LM, NULL, side, NULL, fill>>B ARG_QEXT(ext_b/2-qext_extra));
1535
184k
      } else {
1536
#ifdef ENABLE_QEXT
1537
         int qext_extra = 0;
1538
         /* Reallocate any side bits that cannot be used to extra side bits. */
1539
         if (cap != NULL && ext_b != 0) qext_extra = IMAX(0, IMIN(ext_b/2, sbits - cap[ctx->i]/2));
1540
#endif
1541
         /* For a stereo split, the high bits of fill are always zero, so no
1542
            folding will be done to the side. */
1543
5.65k
         cm = quant_band(ctx, Y, N, sbits, B, NULL, LM, NULL, side, NULL, fill>>B ARG_QEXT(ext_b/2+qext_extra));
1544
5.65k
         rebalance = sbits - (rebalance-ctx->remaining_bits);
1545
5.65k
         if (rebalance > 3<<BITRES && itheta!=16384)
1546
455
            mbits += rebalance - (3<<BITRES);
1547
#ifdef ENABLE_QEXT
1548
         /* Guard against overflowing the EC with the angle if the cubic quant used too many bits for the side. */
1549
         if (ctx->extra_bands) mbits = IMIN(mbits, ctx->remaining_bits);
1550
#endif
1551
         /* In stereo mode, we do not apply a scaling to the mid because we need the normalized
1552
            mid for folding later. */
1553
5.65k
         cm |= quant_band(ctx, X, N, mbits, B, lowband, LM, lowband_out, Q31ONE,
1554
5.65k
               lowband_scratch, fill ARG_QEXT(ext_b/2-qext_extra));
1555
5.65k
      }
1556
190k
   }
1557
1558
1559
   /* This code is used by the decoder and by the resynthesis-enabled encoder */
1560
251k
   if (ctx->resynth)
1561
251k
   {
1562
251k
      if (N!=2)
1563
190k
         stereo_merge(X, Y, mid, N, ctx->arch);
1564
251k
      if (inv)
1565
12.7k
      {
1566
12.7k
         int j;
1567
125k
         for (j=0;j<N;j++)
1568
112k
            Y[j] = -Y[j];
1569
12.7k
      }
1570
251k
   }
1571
251k
   return cm;
1572
307k
}
1573
1574
#ifndef DISABLE_UPDATE_DRAFT
1575
static void special_hybrid_folding(const CELTMode *m, celt_norm *norm, celt_norm *norm2, int start, int M, int dual_stereo)
1576
81.0k
{
1577
81.0k
   int n1, n2;
1578
81.0k
   const opus_int16 * OPUS_RESTRICT eBands = m->eBands;
1579
81.0k
   n1 = M*(eBands[start+1]-eBands[start]);
1580
81.0k
   n2 = M*(eBands[start+2]-eBands[start+1]);
1581
   /* Duplicate enough of the first band folding data to be able to fold the second band.
1582
      Copies no data for CELT-only mode. */
1583
81.0k
   OPUS_COPY(&norm[n1], &norm[2*n1 - n2], n2-n1);
1584
81.0k
   if (dual_stereo)
1585
3.87k
      OPUS_COPY(&norm2[n1], &norm2[2*n1 - n2], n2-n1);
1586
81.0k
}
1587
#endif
1588
1589
void quant_all_bands(int encode, const CELTMode *m, int start, int end,
1590
      celt_norm *X_, celt_norm *Y_, unsigned char *collapse_masks,
1591
      const celt_ener *bandE, int *pulses, int shortBlocks, int spread,
1592
      int dual_stereo, int intensity, int *tf_res, opus_int32 total_bits,
1593
      opus_int32 balance, ec_ctx *ec, int LM, int codedBands,
1594
      opus_uint32 *seed, int complexity, int arch, int disable_inv
1595
      ARG_QEXT(ec_ctx *ext_ec) ARG_QEXT(int *extra_pulses)
1596
      ARG_QEXT(opus_int32 ext_total_bits) ARG_QEXT(const int *cap))
1597
81.0k
{
1598
81.0k
   int i;
1599
81.0k
   opus_int32 remaining_bits;
1600
81.0k
   const opus_int16 * OPUS_RESTRICT eBands = m->eBands;
1601
81.0k
   celt_norm * OPUS_RESTRICT norm, * OPUS_RESTRICT norm2;
1602
81.0k
   VARDECL(celt_norm, _norm);
1603
81.0k
   VARDECL(celt_norm, _lowband_scratch);
1604
81.0k
   VARDECL(celt_norm, X_save);
1605
81.0k
   VARDECL(celt_norm, Y_save);
1606
81.0k
   VARDECL(celt_norm, X_save2);
1607
81.0k
   VARDECL(celt_norm, Y_save2);
1608
81.0k
   VARDECL(celt_norm, norm_save2);
1609
81.0k
   VARDECL(unsigned char, bytes_save);
1610
81.0k
   int resynth_alloc;
1611
81.0k
   celt_norm *lowband_scratch;
1612
81.0k
   int B;
1613
81.0k
   int M;
1614
81.0k
   int lowband_offset;
1615
81.0k
   int update_lowband = 1;
1616
81.0k
   int C = Y_ != NULL ? 2 : 1;
1617
81.0k
   int norm_offset;
1618
81.0k
   int theta_rdo = encode && Y_!=NULL && !dual_stereo && complexity>=8;
1619
#ifdef RESYNTH
1620
   int resynth = 1;
1621
#else
1622
81.0k
   int resynth = !encode || theta_rdo;
1623
81.0k
#endif
1624
81.0k
   struct band_ctx ctx;
1625
#ifdef ENABLE_QEXT
1626
   int ext_b;
1627
   opus_int32 ext_balance=0;
1628
   opus_int32 ext_tell=0;
1629
   VARDECL(unsigned char, ext_bytes_save);
1630
#endif
1631
81.0k
   SAVE_STACK;
1632
1633
81.0k
   M = 1<<LM;
1634
81.0k
   B = shortBlocks ? M : 1;
1635
81.0k
   norm_offset = M*eBands[start];
1636
   /* No need to allocate norm for the last band because we don't need an
1637
      output in that band. */
1638
81.0k
   ALLOC(_norm, C*(M*eBands[m->nbEBands-1]-norm_offset), celt_norm);
1639
81.0k
   norm = _norm;
1640
81.0k
   norm2 = norm + M*eBands[m->nbEBands-1]-norm_offset;
1641
1642
   /* For decoding, we can use the last band as scratch space because we don't need that
1643
      scratch space for the last band and we don't care about the data there until we're
1644
      decoding the last band. */
1645
81.0k
   if (encode && resynth)
1646
0
      resynth_alloc = M*(eBands[m->nbEBands]-eBands[m->nbEBands-1]);
1647
81.0k
   else
1648
81.0k
      resynth_alloc = ALLOC_NONE;
1649
81.0k
   ALLOC(_lowband_scratch, resynth_alloc, celt_norm);
1650
81.0k
   if (encode && resynth)
1651
0
      lowband_scratch = _lowband_scratch;
1652
81.0k
   else
1653
81.0k
      lowband_scratch = X_+M*eBands[m->effEBands-1];
1654
81.0k
   ALLOC(X_save, resynth_alloc, celt_norm);
1655
81.0k
   ALLOC(Y_save, resynth_alloc, celt_norm);
1656
81.0k
   ALLOC(X_save2, resynth_alloc, celt_norm);
1657
81.0k
   ALLOC(Y_save2, resynth_alloc, celt_norm);
1658
81.0k
   ALLOC(norm_save2, resynth_alloc, celt_norm);
1659
1660
81.0k
   lowband_offset = 0;
1661
81.0k
   ctx.bandE = bandE;
1662
81.0k
   ctx.ec = ec;
1663
81.0k
   ctx.encode = encode;
1664
81.0k
   ctx.intensity = intensity;
1665
81.0k
   ctx.m = m;
1666
81.0k
   ctx.seed = *seed;
1667
81.0k
   ctx.spread = spread;
1668
81.0k
   ctx.arch = arch;
1669
81.0k
   ctx.disable_inv = disable_inv;
1670
81.0k
   ctx.resynth = resynth;
1671
81.0k
   ctx.theta_round = 0;
1672
#ifdef ENABLE_QEXT
1673
   ctx.ext_ec = ext_ec;
1674
   ctx.ext_total_bits = ext_total_bits;
1675
   ctx.extra_bands = (cap == NULL);
1676
   if (ctx.extra_bands || ext_total_bits!=0) theta_rdo = 0;
1677
   ALLOC(ext_bytes_save, theta_rdo ? QEXT_PACKET_SIZE_CAP : ALLOC_NONE, unsigned char);
1678
#endif
1679
81.0k
   ALLOC(bytes_save, theta_rdo ? 1275 : ALLOC_NONE, unsigned char);
1680
1681
   /* Avoid injecting noise in the first band on transients. */
1682
81.0k
   ctx.avoid_split_noise = B > 1;
1683
1.05M
   for (i=start;i<end;i++)
1684
975k
   {
1685
975k
      opus_int32 tell;
1686
975k
      int b;
1687
975k
      int N;
1688
975k
      opus_int32 curr_balance;
1689
975k
      int effective_lowband=-1;
1690
975k
      celt_norm * OPUS_RESTRICT X, * OPUS_RESTRICT Y;
1691
975k
      int tf_change=0;
1692
975k
      unsigned x_cm;
1693
975k
      unsigned y_cm;
1694
975k
      int last;
1695
1696
975k
      ctx.i = i;
1697
975k
      last = (i==end-1);
1698
1699
975k
      X = X_+M*eBands[i];
1700
975k
      if (Y_!=NULL)
1701
340k
         Y = Y_+M*eBands[i];
1702
635k
      else
1703
635k
         Y = NULL;
1704
975k
      N = M*eBands[i+1]-M*eBands[i];
1705
975k
      celt_assert(N > 0);
1706
975k
      tell = ec_tell_frac(ec);
1707
1708
      /* Compute how many bits we want to allocate to this band */
1709
975k
      if (i != start)
1710
894k
         balance -= tell;
1711
975k
      remaining_bits = total_bits-tell-1;
1712
975k
      ctx.remaining_bits = remaining_bits;
1713
#ifdef ENABLE_QEXT
1714
      if (i != start) {
1715
         ext_balance += extra_pulses[i-1] + ext_tell;
1716
      }
1717
      ext_tell = ec_tell_frac(ext_ec);
1718
      ctx.extra_bits = extra_pulses[i];
1719
      if (i != start)
1720
         ext_balance -= ext_tell;
1721
      if (i <= codedBands-1)
1722
      {
1723
         opus_int32 ext_curr_balance = celt_sudiv(ext_balance, IMIN(3, codedBands-i));
1724
         ext_b = IMAX(0, IMIN(16383, IMIN(ext_total_bits-ext_tell,extra_pulses[i]+ext_curr_balance)));
1725
      } else {
1726
         ext_b = 0;
1727
      }
1728
#endif
1729
975k
      if (i <= codedBands-1)
1730
409k
      {
1731
409k
         curr_balance = celt_sudiv(balance, IMIN(3, codedBands-i));
1732
409k
         b = IMAX(0, IMIN(16383, IMIN(remaining_bits+1,pulses[i]+curr_balance)));
1733
565k
      } else {
1734
565k
         b = 0;
1735
565k
      }
1736
1737
975k
#ifndef DISABLE_UPDATE_DRAFT
1738
975k
      if (resynth && (M*eBands[i]-N >= M*eBands[start] || i==start+1) && (update_lowband || lowband_offset==0))
1739
320k
            lowband_offset = i;
1740
975k
      if (i == start+1)
1741
81.0k
         special_hybrid_folding(m, norm, norm2, start, M, dual_stereo);
1742
#else
1743
      if (resynth && M*eBands[i]-N >= M*eBands[start] && (update_lowband || lowband_offset==0))
1744
            lowband_offset = i;
1745
#endif
1746
1747
975k
      tf_change = tf_res[i];
1748
975k
      ctx.tf_change = tf_change;
1749
975k
      if (i>=m->effEBands)
1750
0
      {
1751
0
         celt_assert(eBands[i+1]-eBands[i] <= eBands[m->nbEBands-1]-eBands[start]);
1752
0
         X=norm;
1753
0
         if (Y_!=NULL)
1754
0
            Y = norm2;
1755
0
         lowband_scratch = NULL;
1756
0
      }
1757
975k
      if (last && !theta_rdo)
1758
81.0k
         lowband_scratch = NULL;
1759
1760
      /* Get a conservative estimate of the collapse_mask's for the bands we're
1761
         going to be folding from. */
1762
975k
      if (lowband_offset != 0 && (spread!=SPREAD_AGGRESSIVE || B>1 || tf_change<0))
1763
870k
      {
1764
870k
         int fold_start;
1765
870k
         int fold_end;
1766
870k
         int fold_i;
1767
         /* This ensures we never repeat spectral content within one band */
1768
870k
         effective_lowband = IMAX(0, M*eBands[lowband_offset]-norm_offset-N);
1769
870k
         fold_start = lowband_offset;
1770
1.10M
         while(M*eBands[--fold_start] > effective_lowband+norm_offset);
1771
870k
         fold_end = lowband_offset-1;
1772
870k
#ifndef DISABLE_UPDATE_DRAFT
1773
1.64M
         while(++fold_end < i && M*eBands[fold_end] < effective_lowband+norm_offset+N);
1774
#else
1775
         while(M*eBands[++fold_end] < effective_lowband+norm_offset+N);
1776
#endif
1777
870k
         x_cm = y_cm = 0;
1778
1.87M
         fold_i = fold_start; do {
1779
1.87M
           x_cm |= collapse_masks[fold_i*C+0];
1780
1.87M
           y_cm |= collapse_masks[fold_i*C+C-1];
1781
1.87M
         } while (++fold_i<fold_end);
1782
870k
      }
1783
      /* Otherwise, we'll be using the LCG to fold, so all blocks will (almost
1784
         always) be non-zero. */
1785
105k
      else
1786
105k
         x_cm = y_cm = (1<<B)-1;
1787
1788
975k
      if (dual_stereo && i==intensity)
1789
3.47k
      {
1790
3.47k
         int j;
1791
1792
         /* Switch off dual stereo to do intensity. */
1793
3.47k
         dual_stereo = 0;
1794
3.47k
         if (resynth)
1795
113k
            for (j=0;j<M*eBands[i]-norm_offset;j++)
1796
109k
               norm[j] = HALF32(norm[j]+norm2[j]);
1797
3.47k
      }
1798
975k
      if (dual_stereo)
1799
32.4k
      {
1800
32.4k
         x_cm = quant_band(&ctx, X, N, b/2, B,
1801
32.4k
               effective_lowband != -1 ? norm+effective_lowband : NULL, LM,
1802
32.4k
               last?NULL:norm+M*eBands[i]-norm_offset, Q31ONE, lowband_scratch, x_cm ARG_QEXT(ext_b/2));
1803
32.4k
         y_cm = quant_band(&ctx, Y, N, b/2, B,
1804
32.4k
               effective_lowband != -1 ? norm2+effective_lowband : NULL, LM,
1805
32.4k
               last?NULL:norm2+M*eBands[i]-norm_offset, Q31ONE, lowband_scratch, y_cm ARG_QEXT(ext_b/2));
1806
943k
      } else {
1807
943k
         if (Y!=NULL)
1808
307k
         {
1809
307k
            if (theta_rdo && i < intensity)
1810
0
            {
1811
0
               ec_ctx ec_save, ec_save2;
1812
0
               struct band_ctx ctx_save, ctx_save2;
1813
0
               opus_val32 dist0, dist1;
1814
0
               unsigned cm, cm2;
1815
0
               int nstart_bytes, nend_bytes, save_bytes;
1816
0
               unsigned char *bytes_buf;
1817
#ifdef ENABLE_QEXT
1818
               ec_ctx ext_ec_save, ext_ec_save2;
1819
               unsigned char *ext_bytes_buf;
1820
               int ext_nstart_bytes, ext_nend_bytes, ext_save_bytes;
1821
#endif
1822
0
               opus_val16 w[2];
1823
0
               compute_channel_weights(bandE[i], bandE[i+m->nbEBands], w);
1824
               /* Make a copy. */
1825
0
               cm = x_cm|y_cm;
1826
0
               ec_save = *ec;
1827
#ifdef ENABLE_QEXT
1828
               ext_ec_save = *ext_ec;
1829
#endif
1830
0
               ctx_save = ctx;
1831
0
               OPUS_COPY(X_save, X, N);
1832
0
               OPUS_COPY(Y_save, Y, N);
1833
               /* Encode and round down. */
1834
0
               ctx.theta_round = -1;
1835
0
               x_cm = quant_band_stereo(&ctx, X, Y, N, b, B,
1836
0
                     effective_lowband != -1 ? norm+effective_lowband : NULL, LM,
1837
0
                     last?NULL:norm+M*eBands[i]-norm_offset, lowband_scratch, cm ARG_QEXT(ext_b) ARG_QEXT(cap));
1838
0
               dist0 = MULT16_32_Q15(w[0], celt_inner_prod_norm_shift(X_save, X, N, arch)) + MULT16_32_Q15(w[1], celt_inner_prod_norm_shift(Y_save, Y, N, arch));
1839
1840
               /* Save first result. */
1841
0
               cm2 = x_cm;
1842
0
               ec_save2 = *ec;
1843
#ifdef ENABLE_QEXT
1844
               ext_ec_save2 = *ext_ec;
1845
#endif
1846
0
               ctx_save2 = ctx;
1847
0
               OPUS_COPY(X_save2, X, N);
1848
0
               OPUS_COPY(Y_save2, Y, N);
1849
0
               if (!last)
1850
0
                  OPUS_COPY(norm_save2, norm+M*eBands[i]-norm_offset, N);
1851
0
               nstart_bytes = ec_save.offs;
1852
0
               nend_bytes = ec_save.storage;
1853
0
               bytes_buf = ec_save.buf+nstart_bytes;
1854
0
               save_bytes = nend_bytes-nstart_bytes;
1855
0
               OPUS_COPY(bytes_save, bytes_buf, save_bytes);
1856
#ifdef ENABLE_QEXT
1857
               ext_nstart_bytes = ext_ec_save.offs;
1858
               ext_nend_bytes = ext_ec_save.storage;
1859
               ext_bytes_buf = ext_ec_save.buf!=NULL ? ext_ec_save.buf+ext_nstart_bytes : NULL;
1860
               ext_save_bytes = ext_nend_bytes-ext_nstart_bytes;
1861
               if (ext_save_bytes) OPUS_COPY(ext_bytes_save, ext_bytes_buf, ext_save_bytes);
1862
#endif
1863
               /* Restore */
1864
0
               *ec = ec_save;
1865
#ifdef ENABLE_QEXT
1866
               *ext_ec = ext_ec_save;
1867
#endif
1868
0
               ctx = ctx_save;
1869
0
               OPUS_COPY(X, X_save, N);
1870
0
               OPUS_COPY(Y, Y_save, N);
1871
0
#ifndef DISABLE_UPDATE_DRAFT
1872
0
               if (i == start+1)
1873
0
                  special_hybrid_folding(m, norm, norm2, start, M, dual_stereo);
1874
0
#endif
1875
               /* Encode and round up. */
1876
0
               ctx.theta_round = 1;
1877
0
               x_cm = quant_band_stereo(&ctx, X, Y, N, b, B,
1878
0
                     effective_lowband != -1 ? norm+effective_lowband : NULL, LM,
1879
0
                     last?NULL:norm+M*eBands[i]-norm_offset, lowband_scratch, cm ARG_QEXT(ext_b) ARG_QEXT(cap));
1880
0
               dist1 = MULT16_32_Q15(w[0], celt_inner_prod_norm_shift(X_save, X, N, arch)) + MULT16_32_Q15(w[1], celt_inner_prod_norm_shift(Y_save, Y, N, arch));
1881
0
               if (dist0 >= dist1) {
1882
0
                  x_cm = cm2;
1883
0
                  *ec = ec_save2;
1884
#ifdef ENABLE_QEXT
1885
                  *ext_ec = ext_ec_save2;
1886
#endif
1887
0
                  ctx = ctx_save2;
1888
0
                  OPUS_COPY(X, X_save2, N);
1889
0
                  OPUS_COPY(Y, Y_save2, N);
1890
0
                  if (!last)
1891
0
                     OPUS_COPY(norm+M*eBands[i]-norm_offset, norm_save2, N);
1892
0
                  OPUS_COPY(bytes_buf, bytes_save, save_bytes);
1893
#ifdef ENABLE_QEXT
1894
                  if (ext_save_bytes) OPUS_COPY(ext_bytes_buf, ext_bytes_save, ext_save_bytes);
1895
#endif
1896
0
               }
1897
307k
            } else {
1898
307k
               ctx.theta_round = 0;
1899
307k
               x_cm = quant_band_stereo(&ctx, X, Y, N, b, B,
1900
307k
                     effective_lowband != -1 ? norm+effective_lowband : NULL, LM,
1901
307k
                     last?NULL:norm+M*eBands[i]-norm_offset, lowband_scratch, x_cm|y_cm ARG_QEXT(ext_b) ARG_QEXT(cap));
1902
307k
            }
1903
635k
         } else {
1904
635k
            x_cm = quant_band(&ctx, X, N, b, B,
1905
635k
                  effective_lowband != -1 ? norm+effective_lowband : NULL, LM,
1906
635k
                  last?NULL:norm+M*eBands[i]-norm_offset, Q31ONE, lowband_scratch, x_cm|y_cm ARG_QEXT(ext_b));
1907
635k
         }
1908
943k
         y_cm = x_cm;
1909
943k
      }
1910
975k
      collapse_masks[i*C+0] = (unsigned char)x_cm;
1911
975k
      collapse_masks[i*C+C-1] = (unsigned char)y_cm;
1912
975k
      balance += pulses[i] + tell;
1913
1914
      /* Update the folding position only as long as we have 1 bit/sample depth. */
1915
975k
      update_lowband = b>(N<<BITRES);
1916
      /* We only need to avoid noise on a split for the first band. After that, we
1917
         have folding. */
1918
975k
      ctx.avoid_split_noise = 0;
1919
975k
   }
1920
81.0k
   *seed = ctx.seed;
1921
1922
81.0k
   RESTORE_STACK;
1923
81.0k
}