Coverage Report

Created: 2026-01-16 07:48

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/opus/celt/rate.c
Line
Count
Source
1
/* Copyright (c) 2007-2008 CSIRO
2
   Copyright (c) 2007-2009 Xiph.Org Foundation
3
   Written by Jean-Marc Valin */
4
/*
5
   Redistribution and use in source and binary forms, with or without
6
   modification, are permitted provided that the following conditions
7
   are met:
8
9
   - Redistributions of source code must retain the above copyright
10
   notice, this list of conditions and the following disclaimer.
11
12
   - Redistributions in binary form must reproduce the above copyright
13
   notice, this list of conditions and the following disclaimer in the
14
   documentation and/or other materials provided with the distribution.
15
16
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
17
   ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
18
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
19
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER
20
   OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
21
   EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
22
   PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
23
   PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
24
   LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
25
   NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
26
   SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27
*/
28
29
#ifdef HAVE_CONFIG_H
30
#include "config.h"
31
#endif
32
33
#include <math.h>
34
#include "modes.h"
35
#include "cwrs.h"
36
#include "arch.h"
37
#include "os_support.h"
38
39
#include "entcode.h"
40
#include "rate.h"
41
#include "quant_bands.h"
42
43
static const unsigned char LOG2_FRAC_TABLE[24]={
44
   0,
45
   8,13,
46
  16,19,21,23,
47
  24,26,27,28,29,30,31,32,
48
  32,33,34,34,35,36,36,37,37
49
};
50
51
#if defined(CUSTOM_MODES)
52
53
/*Determines if V(N,K) fits in a 32-bit unsigned integer.
54
  N and K are themselves limited to 15 bits.*/
55
static int fits_in32(int _n, int _k)
56
{
57
   static const opus_int16 maxN[15] = {
58
      32767, 32767, 32767, 1476, 283, 109,  60,  40,
59
       29,  24,  20,  18,  16,  14,  13};
60
   static const opus_int16 maxK[15] = {
61
      32767, 32767, 32767, 32767, 1172, 238,  95,  53,
62
       36,  27,  22,  18,  16,  15,  13};
63
   if (_n>=14)
64
   {
65
      if (_k>=14)
66
         return 0;
67
      else
68
         return _n <= maxN[_k];
69
   } else {
70
      return _k <= maxK[_n];
71
   }
72
}
73
74
void compute_pulse_cache(CELTMode *m, int LM)
75
{
76
   int C;
77
   int i;
78
   int j;
79
   int curr=0;
80
   int nbEntries=0;
81
   int entryN[100], entryK[100], entryI[100];
82
   const opus_int16 *eBands = m->eBands;
83
   PulseCache *cache = &m->cache;
84
   opus_int16 *cindex;
85
   unsigned char *bits;
86
   unsigned char *cap;
87
88
   cindex = (opus_int16 *)opus_alloc(sizeof(cache->index[0])*m->nbEBands*(LM+2));
89
   cache->index = cindex;
90
91
   /* Scan for all unique band sizes */
92
   for (i=0;i<=LM+1;i++)
93
   {
94
      for (j=0;j<m->nbEBands;j++)
95
      {
96
         int k;
97
         int N = (eBands[j+1]-eBands[j])<<i>>1;
98
         cindex[i*m->nbEBands+j] = -1;
99
         /* Find other bands that have the same size */
100
         for (k=0;k<=i;k++)
101
         {
102
            int n;
103
            for (n=0;n<m->nbEBands && (k!=i || n<j);n++)
104
            {
105
               if (N == (eBands[n+1]-eBands[n])<<k>>1)
106
               {
107
                  cindex[i*m->nbEBands+j] = cindex[k*m->nbEBands+n];
108
                  break;
109
               }
110
            }
111
         }
112
         if (cache->index[i*m->nbEBands+j] == -1 && N!=0)
113
         {
114
            int K;
115
            entryN[nbEntries] = N;
116
            K = 0;
117
            while (fits_in32(N,get_pulses(K+1)) && K<MAX_PSEUDO)
118
               K++;
119
            entryK[nbEntries] = K;
120
            cindex[i*m->nbEBands+j] = curr;
121
            entryI[nbEntries] = curr;
122
123
            curr += K+1;
124
            nbEntries++;
125
         }
126
      }
127
   }
128
   bits = (unsigned char *)opus_alloc(sizeof(unsigned char)*curr);
129
   cache->bits = bits;
130
   cache->size = curr;
131
   /* Compute the cache for all unique sizes */
132
   for (i=0;i<nbEntries;i++)
133
   {
134
      unsigned char *ptr = bits+entryI[i];
135
      opus_int16 tmp[CELT_MAX_PULSES+1];
136
      get_required_bits(tmp, entryN[i], get_pulses(entryK[i]), BITRES);
137
      for (j=1;j<=entryK[i];j++)
138
         ptr[j] = tmp[get_pulses(j)]-1;
139
      ptr[0] = entryK[i];
140
   }
141
142
   /* Compute the maximum rate for each band at which we'll reliably use as
143
       many bits as we ask for. */
144
   cache->caps = cap = (unsigned char *)opus_alloc(sizeof(cache->caps[0])*(LM+1)*2*m->nbEBands);
145
   for (i=0;i<=LM;i++)
146
   {
147
      for (C=1;C<=2;C++)
148
      {
149
         for (j=0;j<m->nbEBands;j++)
150
         {
151
            int N0;
152
            int max_bits;
153
            N0 = m->eBands[j+1]-m->eBands[j];
154
            /* N=1 bands only have a sign bit and fine bits. */
155
            if (N0<<i == 1)
156
               max_bits = C*(1+MAX_FINE_BITS)<<BITRES;
157
            else
158
            {
159
               const unsigned char *pcache;
160
               opus_int32           num;
161
               opus_int32           den;
162
               int                  LM0;
163
               int                  N;
164
               int                  offset;
165
               int                  ndof;
166
               int                  qb;
167
               int                  k;
168
               LM0 = 0;
169
               /* Even-sized bands bigger than N=2 can be split one more time.
170
                  As of commit 44203907 all bands >1 are even, including custom modes.*/
171
               if (N0 > 2)
172
               {
173
                  N0>>=1;
174
                  LM0--;
175
               }
176
               /* N0=1 bands can't be split down to N<2. */
177
               else if (N0 <= 1)
178
               {
179
                  LM0=IMIN(i,1);
180
                  N0<<=LM0;
181
               }
182
               /* Compute the cost for the lowest-level PVQ of a fully split
183
                   band. */
184
               pcache = bits + cindex[(LM0+1)*m->nbEBands+j];
185
               max_bits = pcache[pcache[0]]+1;
186
               /* Add in the cost of coding regular splits. */
187
               N = N0;
188
               for(k=0;k<i-LM0;k++){
189
                  max_bits <<= 1;
190
                  /* Offset the number of qtheta bits by log2(N)/2
191
                      + QTHETA_OFFSET compared to their "fair share" of
192
                      total/N */
193
                  offset = ((m->logN[j]+(opus_int32)((opus_uint32)(LM0+k)<<BITRES))>>1)-QTHETA_OFFSET;
194
                  /* The number of qtheta bits we'll allocate if the remainder
195
                      is to be max_bits.
196
                     The average measured cost for theta is 0.89701 times qb,
197
                      approximated here as 459/512. */
198
                  num=459*(opus_int32)((2*N-1)*offset+max_bits);
199
                  den=((opus_int32)(2*N-1)<<9)-459;
200
                  qb = IMIN((num+(den>>1))/den, 57);
201
                  celt_assert(qb >= 0);
202
                  max_bits += qb;
203
                  N <<= 1;
204
               }
205
               /* Add in the cost of a stereo split, if necessary. */
206
               if (C==2)
207
               {
208
                  max_bits <<= 1;
209
                  offset = ((m->logN[j]+(i<<BITRES))>>1)-(N==2?QTHETA_OFFSET_TWOPHASE:QTHETA_OFFSET);
210
                  ndof = 2*N-1-(N==2);
211
                  /* The average measured cost for theta with the step PDF is
212
                      0.95164 times qb, approximated here as 487/512. */
213
                  num = (N==2?512:487)*(opus_int32)(max_bits+ndof*offset);
214
                  den = ((opus_int32)ndof<<9)-(N==2?512:487);
215
                  qb = IMIN((num+(den>>1))/den, (N==2?64:61));
216
                  celt_assert(qb >= 0);
217
                  max_bits += qb;
218
               }
219
               /* Add the fine bits we'll use. */
220
               /* Compensate for the extra DoF in stereo */
221
               ndof = C*N + ((C==2 && N>2) ? 1 : 0);
222
               /* Offset the number of fine bits by log2(N)/2 + FINE_OFFSET
223
                   compared to their "fair share" of total/N */
224
               offset = ((m->logN[j] + (i<<BITRES))>>1)-FINE_OFFSET;
225
               /* N=2 is the only point that doesn't match the curve */
226
               if (N==2)
227
                  offset += 1<<BITRES>>2;
228
               /* The number of fine bits we'll allocate if the remainder is
229
                   to be max_bits. */
230
               num = max_bits+ndof*offset;
231
               den = (ndof-1)<<BITRES;
232
               qb = IMIN((num+(den>>1))/den, MAX_FINE_BITS);
233
               celt_assert(qb >= 0);
234
               max_bits += C*qb<<BITRES;
235
            }
236
            max_bits = (4*max_bits/(C*((m->eBands[j+1]-m->eBands[j])<<i)))-64;
237
            celt_assert(max_bits >= 0);
238
            celt_assert(max_bits < 256);
239
            *cap++ = (unsigned char)max_bits;
240
         }
241
      }
242
   }
243
}
244
245
#endif /* CUSTOM_MODES */
246
247
10.0M
#define ALLOC_STEPS 6
248
249
static OPUS_INLINE int interp_bits2pulses(const CELTMode *m, int start, int end, int skip_start,
250
      const int *bits1, const int *bits2, const int *thresh, const int *cap, opus_int32 total, opus_int32 *_balance,
251
      int skip_rsv, int *intensity, int intensity_rsv, int *dual_stereo, int dual_stereo_rsv, int *bits,
252
      int *ebits, int *fine_priority, int C, int LM, ec_ctx *ec, int encode, int prev, int signalBandwidth)
253
114k
{
254
114k
   opus_int32 psum;
255
114k
   int lo, hi;
256
114k
   int i, j;
257
114k
   int logM;
258
114k
   int stereo;
259
114k
   int codedBands=-1;
260
114k
   int alloc_floor;
261
114k
   opus_int32 left, percoeff;
262
114k
   int done;
263
114k
   opus_int32 balance;
264
114k
   SAVE_STACK;
265
266
114k
   alloc_floor = C<<BITRES;
267
114k
   stereo = C>1;
268
269
114k
   logM = LM<<BITRES;
270
114k
   lo = 0;
271
114k
   hi = 1<<ALLOC_STEPS;
272
800k
   for (i=0;i<ALLOC_STEPS;i++)
273
686k
   {
274
686k
      int mid = (lo+hi)>>1;
275
686k
      psum = 0;
276
686k
      done = 0;
277
8.51M
      for (j=end;j-->start;)
278
7.83M
      {
279
7.83M
         int tmp = bits1[j] + (mid*(opus_int32)bits2[j]>>ALLOC_STEPS);
280
7.83M
         if (tmp >= thresh[j] || done)
281
4.81M
         {
282
4.81M
            done = 1;
283
            /* Don't allocate more than we can actually use */
284
4.81M
            psum += IMIN(tmp, cap[j]);
285
4.81M
         } else {
286
3.01M
            if (tmp >= alloc_floor)
287
328k
               psum += alloc_floor;
288
3.01M
         }
289
7.83M
      }
290
686k
      if (psum > total)
291
314k
         hi = mid;
292
371k
      else
293
371k
         lo = mid;
294
686k
   }
295
114k
   psum = 0;
296
   /*printf ("interp bisection gave %d\n", lo);*/
297
114k
   done = 0;
298
1.41M
   for (j=end;j-->start;)
299
1.30M
   {
300
1.30M
      int tmp = bits1[j] + ((opus_int32)lo*bits2[j]>>ALLOC_STEPS);
301
1.30M
      if (tmp < thresh[j] && !done)
302
595k
      {
303
595k
         if (tmp >= alloc_floor)
304
33.0k
            tmp = alloc_floor;
305
561k
         else
306
561k
            tmp = 0;
307
595k
      } else
308
710k
         done = 1;
309
      /* Don't allocate more than we can actually use */
310
1.30M
      tmp = IMIN(tmp, cap[j]);
311
1.30M
      bits[j] = tmp;
312
1.30M
      psum += tmp;
313
1.30M
   }
314
315
   /* Decide which bands to skip, working backwards from the end. */
316
688k
   for (codedBands=end;;codedBands--)
317
802k
   {
318
802k
      int band_width;
319
802k
      int band_bits;
320
802k
      int rem;
321
802k
      j = codedBands-1;
322
      /* Never skip the first band, nor a band that has been boosted by
323
          dynalloc.
324
         In the first case, we'd be coding a bit to signal we're going to waste
325
          all the other bits.
326
         In the second case, we'd be coding a bit to redistribute all the bits
327
          we just signaled should be concentrated in this band. */
328
802k
      if (j<=skip_start)
329
76.0k
      {
330
         /* Give the bit we reserved to end skipping back. */
331
76.0k
         total += skip_rsv;
332
76.0k
         break;
333
76.0k
      }
334
      /*Figure out how many left-over bits we would be adding to this band.
335
        This can include bits we've stolen back from higher, skipped bands.*/
336
726k
      left = total-psum;
337
726k
      percoeff = celt_udiv(left, m->eBands[codedBands]-m->eBands[start]);
338
726k
      left -= (m->eBands[codedBands]-m->eBands[start])*percoeff;
339
726k
      rem = IMAX(left-(m->eBands[j]-m->eBands[start]),0);
340
726k
      band_width = m->eBands[codedBands]-m->eBands[j];
341
726k
      band_bits = (int)(bits[j] + percoeff*band_width + rem);
342
      /*Only code a skip decision if we're above the threshold for this band.
343
        Otherwise it is force-skipped.
344
        This ensures that we have enough bits to code the skip flag.*/
345
726k
      if (band_bits >= IMAX(thresh[j], alloc_floor+(1<<BITRES)))
346
173k
      {
347
173k
         if (encode)
348
0
         {
349
            /*This if() block is the only part of the allocation function that
350
               is not a mandatory part of the bitstream: any bands we choose to
351
               skip here must be explicitly signaled.*/
352
0
            int depth_threshold;
353
            /*We choose a threshold with some hysteresis to keep bands from
354
               fluctuating in and out, but we try not to fold below a certain point. */
355
0
            if (codedBands > 17)
356
0
               depth_threshold = j<prev ? 7 : 9;
357
0
            else
358
0
               depth_threshold = 0;
359
#ifdef FUZZING
360
            (void)signalBandwidth;
361
            (void)depth_threshold;
362
            if ((rand()&0x1) == 0)
363
#else
364
0
            if (codedBands<=start+2 || (band_bits > (depth_threshold*band_width<<LM<<BITRES)>>4 && j<=signalBandwidth))
365
0
#endif
366
0
            {
367
0
               ec_enc_bit_logp(ec, 1, 1);
368
0
               break;
369
0
            }
370
0
            ec_enc_bit_logp(ec, 0, 1);
371
173k
         } else if (ec_dec_bit_logp(ec, 1)) {
372
38.3k
            break;
373
38.3k
         }
374
         /*We used a bit to skip this band.*/
375
135k
         psum += 1<<BITRES;
376
135k
         band_bits -= 1<<BITRES;
377
135k
      }
378
      /*Reclaim the bits originally allocated to this band.*/
379
688k
      psum -= bits[j]+intensity_rsv;
380
688k
      if (intensity_rsv > 0)
381
61.7k
         intensity_rsv = LOG2_FRAC_TABLE[j-start];
382
688k
      psum += intensity_rsv;
383
688k
      if (band_bits >= alloc_floor)
384
189k
      {
385
         /*If we have enough for a fine energy bit per channel, use it.*/
386
189k
         psum += alloc_floor;
387
189k
         bits[j] = alloc_floor;
388
498k
      } else {
389
         /*Otherwise this band gets nothing at all.*/
390
498k
         bits[j] = 0;
391
498k
      }
392
688k
   }
393
394
114k
   celt_assert(codedBands > start);
395
   /* Code the intensity and dual stereo parameters. */
396
114k
   if (intensity_rsv > 0)
397
15.3k
   {
398
15.3k
      if (encode)
399
0
      {
400
0
         *intensity = IMIN(*intensity, codedBands);
401
0
         ec_enc_uint(ec, *intensity-start, codedBands+1-start);
402
0
      }
403
15.3k
      else
404
15.3k
         *intensity = start+ec_dec_uint(ec, codedBands+1-start);
405
15.3k
   }
406
99.0k
   else
407
99.0k
      *intensity = 0;
408
114k
   if (*intensity <= start)
409
101k
   {
410
101k
      total += dual_stereo_rsv;
411
101k
      dual_stereo_rsv = 0;
412
101k
   }
413
114k
   if (dual_stereo_rsv > 0)
414
12.4k
   {
415
12.4k
      if (encode)
416
0
         ec_enc_bit_logp(ec, *dual_stereo, 1);
417
12.4k
      else
418
12.4k
         *dual_stereo = ec_dec_bit_logp(ec, 1);
419
12.4k
   }
420
101k
   else
421
101k
      *dual_stereo = 0;
422
423
   /* Allocate the remaining bits */
424
114k
   left = total-psum;
425
114k
   percoeff = celt_udiv(left, m->eBands[codedBands]-m->eBands[start]);
426
114k
   left -= (m->eBands[codedBands]-m->eBands[start])*percoeff;
427
731k
   for (j=start;j<codedBands;j++)
428
617k
      bits[j] += ((int)percoeff*(m->eBands[j+1]-m->eBands[j]));
429
731k
   for (j=start;j<codedBands;j++)
430
617k
   {
431
617k
      int tmp = (int)IMIN(left, m->eBands[j+1]-m->eBands[j]);
432
617k
      bits[j] += tmp;
433
617k
      left -= tmp;
434
617k
   }
435
   /*for (j=0;j<end;j++)printf("%d ", bits[j]);printf("\n");*/
436
437
114k
   balance = 0;
438
731k
   for (j=start;j<codedBands;j++)
439
617k
   {
440
617k
      int N0, N, den;
441
617k
      int offset;
442
617k
      int NClogN;
443
617k
      opus_int32 excess, bit;
444
445
617k
      celt_assert(bits[j] >= 0);
446
617k
      N0 = m->eBands[j+1]-m->eBands[j];
447
617k
      N=N0<<LM;
448
617k
      bit = (opus_int32)bits[j]+balance;
449
450
617k
      if (N>1)
451
553k
      {
452
553k
         excess = MAX32(bit-cap[j],0);
453
553k
         bits[j] = bit-excess;
454
455
         /* Compensate for the extra DoF in stereo */
456
553k
         den=(C*N+ ((C==2 && N>2 && !*dual_stereo && j<*intensity) ? 1 : 0));
457
458
553k
         NClogN = den*(m->logN[j] + logM);
459
460
         /* Offset for the number of fine bits by log2(N)/2 + FINE_OFFSET
461
            compared to their "fair share" of total/N */
462
553k
         offset = (NClogN>>1)-den*FINE_OFFSET;
463
464
         /* N=2 is the only point that doesn't match the curve */
465
553k
         if (N==2)
466
174k
            offset += den<<BITRES>>2;
467
468
         /* Changing the offset for allocating the second and third
469
             fine energy bit */
470
553k
         if (bits[j] + offset < den*2<<BITRES)
471
335k
            offset += NClogN>>2;
472
218k
         else if (bits[j] + offset < den*3<<BITRES)
473
39.7k
            offset += NClogN>>3;
474
475
         /* Divide with rounding */
476
553k
         ebits[j] = IMAX(0, (bits[j] + offset + (den<<(BITRES-1))));
477
553k
         ebits[j] = celt_udiv(ebits[j], den)>>BITRES;
478
479
         /* Make sure not to bust */
480
553k
         if (C*ebits[j] > (bits[j]>>BITRES))
481
32.7k
            ebits[j] = bits[j] >> stereo >> BITRES;
482
483
         /* More than that is useless because that's about as far as PVQ can go */
484
553k
         ebits[j] = IMIN(ebits[j], MAX_FINE_BITS);
485
486
         /* If we rounded down or capped this band, make it a candidate for the
487
             final fine energy pass */
488
553k
         fine_priority[j] = ebits[j]*(den<<BITRES) >= bits[j]+offset;
489
490
         /* Remove the allocated fine bits; the rest are assigned to PVQ */
491
553k
         bits[j] -= C*ebits[j]<<BITRES;
492
493
553k
      } else {
494
         /* For N=1, all bits go to fine energy except for a single sign bit */
495
63.4k
         excess = MAX32(0,bit-(C<<BITRES));
496
63.4k
         bits[j] = bit-excess;
497
63.4k
         ebits[j] = 0;
498
63.4k
         fine_priority[j] = 1;
499
63.4k
      }
500
501
      /* Fine energy can't take advantage of the re-balancing in
502
          quant_all_bands().
503
         Instead, do the re-balancing here.*/
504
617k
      if(excess > 0)
505
152k
      {
506
152k
         int extra_fine;
507
152k
         int extra_bits;
508
152k
         extra_fine = IMIN(excess>>(stereo+BITRES),MAX_FINE_BITS-ebits[j]);
509
152k
         ebits[j] += extra_fine;
510
152k
         extra_bits = extra_fine*C<<BITRES;
511
152k
         fine_priority[j] = extra_bits >= excess-balance;
512
152k
         excess -= extra_bits;
513
152k
      }
514
617k
      balance = excess;
515
516
617k
      celt_assert(bits[j] >= 0);
517
617k
      celt_assert(ebits[j] >= 0);
518
617k
   }
519
   /* Save any remaining bits over the cap for the rebalancing in
520
       quant_all_bands(). */
521
114k
   *_balance = balance;
522
523
   /* The skipped bands use all their bits for fine energy. */
524
802k
   for (;j<end;j++)
525
688k
   {
526
688k
      ebits[j] = bits[j] >> stereo >> BITRES;
527
688k
      celt_assert(C*ebits[j]<<BITRES == bits[j]);
528
688k
      bits[j] = 0;
529
688k
      fine_priority[j] = ebits[j]<1;
530
688k
   }
531
114k
   RESTORE_STACK;
532
114k
   return codedBands;
533
114k
}
534
535
int clt_compute_allocation(const CELTMode *m, int start, int end, const int *offsets, const int *cap, int alloc_trim, int *intensity, int *dual_stereo,
536
      opus_int32 total, opus_int32 *balance, int *pulses, int *ebits, int *fine_priority, int C, int LM, ec_ctx *ec, int encode, int prev, int signalBandwidth)
537
114k
{
538
114k
   int lo, hi, len, j;
539
114k
   int codedBands;
540
114k
   int skip_start;
541
114k
   int skip_rsv;
542
114k
   int intensity_rsv;
543
114k
   int dual_stereo_rsv;
544
114k
   VARDECL(int, bits1);
545
114k
   VARDECL(int, bits2);
546
114k
   VARDECL(int, thresh);
547
114k
   VARDECL(int, trim_offset);
548
114k
   SAVE_STACK;
549
550
114k
   total = IMAX(total, 0);
551
114k
   len = m->nbEBands;
552
114k
   skip_start = start;
553
   /* Reserve a bit to signal the end of manually skipped bands. */
554
114k
   skip_rsv = total >= 1<<BITRES ? 1<<BITRES : 0;
555
114k
   total -= skip_rsv;
556
   /* Reserve bits for the intensity and dual stereo parameters. */
557
114k
   intensity_rsv = dual_stereo_rsv = 0;
558
114k
   if (C==2)
559
30.7k
   {
560
30.7k
      intensity_rsv = LOG2_FRAC_TABLE[end-start];
561
30.7k
      if (intensity_rsv>total)
562
15.4k
         intensity_rsv = 0;
563
15.3k
      else
564
15.3k
      {
565
15.3k
         total -= intensity_rsv;
566
15.3k
         dual_stereo_rsv = total>=1<<BITRES ? 1<<BITRES : 0;
567
15.3k
         total -= dual_stereo_rsv;
568
15.3k
      }
569
30.7k
   }
570
114k
   ALLOC(bits1, len, int);
571
114k
   ALLOC(bits2, len, int);
572
114k
   ALLOC(thresh, len, int);
573
114k
   ALLOC(trim_offset, len, int);
574
575
1.41M
   for (j=start;j<end;j++)
576
1.30M
   {
577
      /* Below this threshold, we're sure not to allocate any PVQ bits */
578
1.30M
      thresh[j] = IMAX((C)<<BITRES, (3*(m->eBands[j+1]-m->eBands[j])<<LM<<BITRES)>>4);
579
      /* Tilt of the allocation curve */
580
1.30M
      trim_offset[j] = C*(m->eBands[j+1]-m->eBands[j])*(alloc_trim-5-LM)*(end-j-1)
581
1.30M
            *(1<<(LM+BITRES))>>6;
582
      /* Giving less resolution to single-coefficient bands because they get
583
         more benefit from having one coarse value per coefficient*/
584
1.30M
      if ((m->eBands[j+1]-m->eBands[j])<<LM==1)
585
164k
         trim_offset[j] -= C<<BITRES;
586
1.30M
   }
587
114k
   lo = 1;
588
114k
   hi = m->nbAllocVectors - 1;
589
114k
   do
590
398k
   {
591
398k
      int done = 0;
592
398k
      int psum = 0;
593
398k
      int mid = (lo+hi) >> 1;
594
4.73M
      for (j=end;j-->start;)
595
4.33M
      {
596
4.33M
         int bitsj;
597
4.33M
         int N = m->eBands[j+1]-m->eBands[j];
598
4.33M
         bitsj = C*N*m->allocVectors[mid*len+j]<<LM>>2;
599
4.33M
         if (bitsj > 0)
600
3.92M
            bitsj = IMAX(0, bitsj + trim_offset[j]);
601
4.33M
         bitsj += offsets[j];
602
4.33M
         if (bitsj >= thresh[j] || done)
603
3.84M
         {
604
3.84M
            done = 1;
605
            /* Don't allocate more than we can actually use */
606
3.84M
            psum += IMIN(bitsj, cap[j]);
607
3.84M
         } else {
608
493k
            if (bitsj >= C<<BITRES)
609
65.8k
               psum += C<<BITRES;
610
493k
         }
611
4.33M
      }
612
398k
      if (psum > total)
613
233k
         hi = mid - 1;
614
164k
      else
615
164k
         lo = mid + 1;
616
      /*printf ("lo = %d, hi = %d\n", lo, hi);*/
617
398k
   }
618
398k
   while (lo <= hi);
619
114k
   hi = lo--;
620
   /*printf ("interp between %d and %d\n", lo, hi);*/
621
1.41M
   for (j=start;j<end;j++)
622
1.30M
   {
623
1.30M
      int bits1j, bits2j;
624
1.30M
      int N = m->eBands[j+1]-m->eBands[j];
625
1.30M
      bits1j = C*N*m->allocVectors[lo*len+j]<<LM>>2;
626
1.30M
      bits2j = hi>=m->nbAllocVectors ?
627
1.14M
            cap[j] : C*N*m->allocVectors[hi*len+j]<<LM>>2;
628
1.30M
      if (bits1j > 0)
629
543k
         bits1j = IMAX(0, bits1j + trim_offset[j]);
630
1.30M
      if (bits2j > 0)
631
1.16M
         bits2j = IMAX(0, bits2j + trim_offset[j]);
632
1.30M
      if (lo > 0)
633
660k
         bits1j += offsets[j];
634
1.30M
      bits2j += offsets[j];
635
1.30M
      if (offsets[j]>0)
636
20.0k
         skip_start = j;
637
1.30M
      bits2j = IMAX(0,bits2j-bits1j);
638
1.30M
      bits1[j] = bits1j;
639
1.30M
      bits2[j] = bits2j;
640
1.30M
   }
641
114k
   codedBands = interp_bits2pulses(m, start, end, skip_start, bits1, bits2, thresh, cap,
642
114k
         total, balance, skip_rsv, intensity, intensity_rsv, dual_stereo, dual_stereo_rsv,
643
114k
         pulses, ebits, fine_priority, C, LM, ec, encode, prev, signalBandwidth);
644
114k
   RESTORE_STACK;
645
114k
   return codedBands;
646
114k
}
647
#ifdef ENABLE_QEXT
648
649
static const unsigned char last_zero[3] = {64, 50, 0};
650
static const unsigned char last_cap[3] = {110, 60, 0};
651
static const unsigned char last_other[4] = {120, 112, 70, 0};
652
653
static void ec_enc_depth(ec_enc *enc, opus_int32 depth, opus_int32 cap, opus_int32 *last) {
654
   int sym = 3;
655
   if (depth==*last) sym = 2;
656
   if (depth==cap) sym = 1;
657
   if (depth==0) sym = 0;
658
   if (*last == 0) {
659
      ec_enc_icdf(enc, IMIN(sym, 2), last_zero, 7);
660
   } else if (*last == cap) {
661
      ec_enc_icdf(enc, IMIN(sym, 2), last_cap, 7);
662
   } else {
663
      ec_enc_icdf(enc, sym, last_other, 7);
664
   }
665
   /* We accept some redundancy if depth==last (for last different from 0 and cap). */
666
   if (sym == 3) ec_enc_uint(enc, depth-1, cap);
667
   *last = depth;
668
}
669
670
static int ec_dec_depth(ec_dec *dec, opus_int32 cap, opus_int32 *last) {
671
   int depth, sym;
672
   if (*last == 0) {
673
      sym = ec_dec_icdf(dec, last_zero, 7);
674
      if (sym==2) sym=3;
675
   } else if (*last == cap) {
676
      sym = ec_dec_icdf(dec, last_cap, 7);
677
      if (sym==2) sym=3;
678
   } else {
679
      sym = ec_dec_icdf(dec, last_other, 7);
680
   }
681
   if (sym==0) depth=0;
682
   else if (sym==1) depth=cap;
683
   else if (sym==2) depth=*last;
684
   else depth = 1 + ec_dec_uint(dec, cap);
685
   *last = depth;
686
   return depth;
687
}
688
689
#define MSWAP16(a,b) do {opus_val16 tmp = a;a=b;b=tmp;} while(0)
690
static opus_val16 median_of_5_val16(const opus_val16 *x)
691
{
692
   opus_val16 t0, t1, t2, t3, t4;
693
   t2 = x[2];
694
   if (x[0] > x[1])
695
   {
696
      t0 = x[1];
697
      t1 = x[0];
698
   } else {
699
      t0 = x[0];
700
      t1 = x[1];
701
   }
702
   if (x[3] > x[4])
703
   {
704
      t3 = x[4];
705
      t4 = x[3];
706
   } else {
707
      t3 = x[3];
708
      t4 = x[4];
709
   }
710
   if (t0 > t3)
711
   {
712
      MSWAP16(t0, t3);
713
      MSWAP16(t1, t4);
714
   }
715
   if (t2 > t1)
716
   {
717
      if (t1 < t3)
718
         return MIN16(t2, t3);
719
      else
720
         return MIN16(t4, t1);
721
   } else {
722
      if (t2 < t3)
723
         return MIN16(t1, t3);
724
      else
725
         return MIN16(t2, t4);
726
   }
727
}
728
729
void clt_compute_extra_allocation(const CELTMode *m, const CELTMode *qext_mode, int start, int end, int qext_end, const celt_glog *bandLogE, const celt_glog *qext_bandLogE,
730
      opus_int32 total, int *extra_pulses, int *extra_equant, int C, int LM, ec_ctx *ec, int encode, opus_val16 tone_freq, opus_val32 toneishness)
731
{
732
   int i;
733
   opus_int32 last=0;
734
   opus_val32 sum;
735
   opus_val32 fill;
736
   int iter;
737
   int tot_bands;
738
   int tot_samples;
739
   VARDECL(int, depth);
740
   VARDECL(opus_int32, cap);
741
#ifdef FUZZING
742
   float depth_std;
743
#endif
744
   SAVE_STACK;
745
#ifdef FUZZING
746
   depth_std = -10.f*log(1e-8+(float)rand()/(float)RAND_MAX);
747
   depth_std = FMAX(0, FMIN(48, depth_std));
748
#endif
749
   if (qext_mode != NULL) {
750
      celt_assert(end==m->nbEBands);
751
      tot_bands = end + qext_end;
752
      tot_samples = qext_mode->eBands[qext_end]*C<<LM;
753
   } else {
754
      tot_bands = end;
755
      tot_samples = (m->eBands[end]-m->eBands[start])*C<<LM;
756
   }
757
   ALLOC(cap, tot_bands, opus_int32);
758
   for (i=start;i<end;i++) cap[i] = 12;
759
   if (qext_mode != NULL) {
760
      for (i=0;i<qext_end;i++) cap[end+i] = 14;
761
   }
762
   if (total <= 0) {
763
      for (i=start;i<m->nbEBands+qext_end;i++) {
764
         extra_pulses[i] = extra_equant[i] = 0;
765
      }
766
      RESTORE_STACK;
767
      return;
768
   }
769
   ALLOC(depth, tot_bands, int);
770
   if (encode) {
771
      VARDECL(opus_val16, flatE);
772
      VARDECL(int, Ncoef);
773
      VARDECL(opus_val16, min);
774
      VARDECL(opus_val16, follower);
775
776
      ALLOC(flatE, tot_bands, opus_val16);
777
      ALLOC(min, tot_bands, opus_val16);
778
      ALLOC(Ncoef, tot_bands, int);
779
      for (i=start;i<end;i++) {
780
         Ncoef[i] = (m->eBands[i+1]-m->eBands[i])*C<<LM;
781
      }
782
      /* Remove the effect of band width, eMeans and pre-emphasis to compute the real (flat) spectrum. */
783
      for (i=start;i<end;i++) {
784
         flatE[i] = PSHR32(bandLogE[i] - GCONST(0.0625f)*m->logN[i] + SHL32(eMeans[i],DB_SHIFT-4) - GCONST(.0062f)*(i+5)*(i+5), DB_SHIFT-10);
785
         min[i] = 0;
786
      }
787
      if (C==2) {
788
         for (i=start;i<end;i++) {
789
            flatE[i] = MAXG(flatE[i], PSHR32(bandLogE[m->nbEBands+i] - GCONST(0.0625f)*m->logN[i] + SHL32(eMeans[i],DB_SHIFT-4) - GCONST(.0062f)*(i+5)*(i+5), DB_SHIFT-10));
790
         }
791
      }
792
      flatE[end-1] += QCONST16(2.f, 10);
793
      if (qext_mode != NULL) {
794
         opus_val16 min_depth = 0;
795
         /* If we have enough bits, give at least 1 bit of depth to all higher bands. */
796
         if (total >= 3*C*(qext_mode->eBands[qext_end]-qext_mode->eBands[start])<<LM<<BITRES && (toneishness < QCONST32(.98f, 29) || tone_freq > 1.33f))
797
            min_depth = QCONST16(1.f, 10);
798
         for (i=0;i<qext_end;i++) {
799
            Ncoef[end+i] = (qext_mode->eBands[i+1]-qext_mode->eBands[i])*C<<LM;
800
            min[end+i] = min_depth;
801
         }
802
         for (i=0;i<qext_end;i++) {
803
            flatE[end+i] = PSHR32(qext_bandLogE[i] - GCONST(0.0625f)*qext_mode->logN[i] + SHL32(eMeans[i],DB_SHIFT-4) - GCONST(.0062f)*(end+i+5)*(end+i+5), DB_SHIFT-10);
804
         }
805
         if (C==2) {
806
            for (i=0;i<qext_end;i++) {
807
               flatE[end+i] = MAXG(flatE[end+i], PSHR32(qext_bandLogE[NB_QEXT_BANDS+i] - GCONST(0.0625f)*qext_mode->logN[i] + SHL32(eMeans[i],DB_SHIFT-4) - GCONST(.0062f)*(end+i+5)*(end+i+5), DB_SHIFT-10));
808
            }
809
         }
810
      }
811
      ALLOC(follower, tot_bands, opus_val16);
812
      for (i=start+2;i<tot_bands-2;i++) {
813
         follower[i] = median_of_5_val16(&flatE[i-2]);
814
      }
815
      follower[start] = follower[start+1] = follower[start+2];
816
      follower[tot_bands-1] = follower[tot_bands-2] = follower[tot_bands-3];
817
      for (i=start+1;i<tot_bands;i++) {
818
         follower[i] = MAX16(follower[i], follower[i-1]-QCONST16(1.f, 10));
819
      }
820
      for (i=tot_bands-2;i>=start;i--) {
821
         follower[i] = MAX16(follower[i], follower[i+1]-QCONST16(1.f, 10));
822
      }
823
      for (i=start;i<tot_bands;i++) flatE[i] -= MULT16_16_Q15(Q15ONE-PSHR32(toneishness, 14), follower[i]);
824
      if (qext_mode != NULL) {
825
         for (i=0;i<qext_end;i++) flatE[end+i] = flatE[end+i] + QCONST16(3.f, 10) + QCONST16(.2f, 10)*i;
826
      }
827
      /* Approximate fill level assuming all bands contribute fully. */
828
      sum = 0;
829
      for (i=start;i<tot_bands;i++) {
830
         sum += MULT16_16(Ncoef[i], flatE[i]);
831
      }
832
      total >>= BITRES;
833
      fill = (SHL32(total, 10) + sum)/tot_samples;
834
      /* Iteratively refine the fill level considering the depth min and cap. */
835
      for (iter=0;iter<10;iter++) {
836
         sum = 0;
837
         for (i=start;i<tot_bands;i++)
838
            sum += Ncoef[i] * MIN32(SHL32(cap[i], 10), MAX32(min[i], flatE[i]-fill));
839
         fill -= (SHL32(total, 10) - sum)/tot_samples;
840
      }
841
      for (i=start;i<tot_bands;i++) {
842
#ifdef FIXED_POINT
843
         depth[i] = PSHR32(MIN32(SHL32(cap[i], 10), MAX32(min[i], flatE[i]-fill)), 10-2);
844
#else
845
         depth[i] = (int)floor(.5+4*MIN32(SHL32(cap[i], 10), MAX32(min[i], flatE[i]-fill)));
846
#endif
847
#ifdef FUZZING
848
         depth[i] = (int)-depth_std*log(1e-8+(float)rand()/(float)RAND_MAX);
849
         depth[i] = IMAX(0, IMIN(cap[i]<<2, depth[i]));
850
#endif
851
         if (ec_tell_frac(ec) + 80 < ec->storage*8<<BITRES)
852
            ec_enc_depth(ec, depth[i], 4*cap[i], &last);
853
         else
854
            depth[i] = 0;
855
      }
856
   } else {
857
      for (i=start;i<tot_bands;i++) {
858
         if (ec_tell_frac(ec) + 80 < ec->storage*8<<BITRES)
859
            depth[i] = ec_dec_depth(ec, 4*cap[i], &last);
860
         else
861
            depth[i] = 0;
862
      }
863
   }
864
   for (i=start;i<end;i++) {
865
      extra_equant[i] = (depth[i]+3)>>2;
866
      extra_pulses[i] = ((((m->eBands[i+1]-m->eBands[i])<<LM)-1)*C * depth[i] * (1<<BITRES) + 2)>>2;
867
   }
868
   if (qext_mode) {
869
      for (i=0;i<qext_end;i++) {
870
         extra_equant[end+i] = (depth[end+i]+3)>>2;
871
         extra_pulses[end+i] = ((((qext_mode->eBands[i+1]-qext_mode->eBands[i])<<LM)-1)*C * depth[end+i] * (1<<BITRES) + 2)>>2;
872
      }
873
   }
874
   RESTORE_STACK;
875
}
876
#endif