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Created: 2026-07-10 07:11

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/src/aac/libAACdec/src/block.cpp
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/* -----------------------------------------------------------------------------
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Software License for The Fraunhofer FDK AAC Codec Library for Android
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4
© Copyright  1995 - 2019 Fraunhofer-Gesellschaft zur Förderung der angewandten
5
Forschung e.V. All rights reserved.
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7
 1.    INTRODUCTION
8
The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
10
scheme for digital audio. This FDK AAC Codec software is intended to be used on
11
a wide variety of Android devices.
12
13
AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient
14
general perceptual audio codecs. AAC-ELD is considered the best-performing
15
full-bandwidth communications codec by independent studies and is widely
16
deployed. AAC has been standardized by ISO and IEC as part of the MPEG
17
specifications.
18
19
Patent licenses for necessary patent claims for the FDK AAC Codec (including
20
those of Fraunhofer) may be obtained through Via Licensing
21
(www.vialicensing.com) or through the respective patent owners individually for
22
the purpose of encoding or decoding bit streams in products that are compliant
23
with the ISO/IEC MPEG audio standards. Please note that most manufacturers of
24
Android devices already license these patent claims through Via Licensing or
25
directly from the patent owners, and therefore FDK AAC Codec software may
26
already be covered under those patent licenses when it is used for those
27
licensed purposes only.
28
29
Commercially-licensed AAC software libraries, including floating-point versions
30
with enhanced sound quality, are also available from Fraunhofer. Users are
31
encouraged to check the Fraunhofer website for additional applications
32
information and documentation.
33
34
2.    COPYRIGHT LICENSE
35
36
Redistribution and use in source and binary forms, with or without modification,
37
are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
39
40
You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
42
43
You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
45
your modifications thereto in binary form. You must make available free of
46
charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
48
49
The name of Fraunhofer may not be used to endorse or promote products derived
50
from this library without prior written permission.
51
52
You may not charge copyright license fees for anyone to use, copy or distribute
53
the FDK AAC Codec software or your modifications thereto.
54
55
Your modified versions of the FDK AAC Codec must carry prominent notices stating
56
that you changed the software and the date of any change. For modified versions
57
of the FDK AAC Codec, the term "Fraunhofer FDK AAC Codec Library for Android"
58
must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
59
AAC Codec Library for Android."
60
61
3.    NO PATENT LICENSE
62
63
NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
64
limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
65
Fraunhofer provides no warranty of patent non-infringement with respect to this
66
software.
67
68
You may use this FDK AAC Codec software or modifications thereto only for
69
purposes that are authorized by appropriate patent licenses.
70
71
4.    DISCLAIMER
72
73
This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
75
including but not limited to the implied warranties of merchantability and
76
fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
77
CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
78
or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
80
however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
82
this software, even if advised of the possibility of such damage.
83
84
5.    CONTACT INFORMATION
85
86
Fraunhofer Institute for Integrated Circuits IIS
87
Attention: Audio and Multimedia Departments - FDK AAC LL
88
Am Wolfsmantel 33
89
91058 Erlangen, Germany
90
91
www.iis.fraunhofer.de/amm
92
amm-info@iis.fraunhofer.de
93
----------------------------------------------------------------------------- */
94
95
/**************************** AAC decoder library ******************************
96
97
   Author(s):   Josef Hoepfl
98
99
   Description: long/short-block decoding
100
101
*******************************************************************************/
102
103
#include "block.h"
104
105
#include "aac_rom.h"
106
#include "FDK_bitstream.h"
107
#include "scale.h"
108
#include "FDK_tools_rom.h"
109
110
#include "usacdec_fac.h"
111
#include "usacdec_lpd.h"
112
#include "usacdec_lpc.h"
113
#include "FDK_trigFcts.h"
114
115
#include "ac_arith_coder.h"
116
117
#include "aacdec_hcr.h"
118
#include "rvlc.h"
119
120
#if defined(__arm__)
121
#include "arm/block_arm.cpp"
122
#endif
123
124
/*!
125
  \brief Read escape sequence of codeword
126
127
  The function reads the escape sequence from the bitstream,
128
  if the absolute value of the quantized coefficient has the
129
  value 16.
130
  A limitation is implemented to maximal 21 bits according to
131
  ISO/IEC 14496-3:2009(E) 4.6.3.3.
132
  This limits the escape prefix to a maximum of eight 1's.
133
  If more than eight 1's are read, MAX_QUANTIZED_VALUE + 1 is
134
  returned, independent of the sign of parameter q.
135
136
  \return  quantized coefficient
137
*/
138
LONG CBlock_GetEscape(HANDLE_FDK_BITSTREAM bs, /*!< pointer to bitstream */
139
                      const LONG q)            /*!< quantized coefficient */
140
619k
{
141
619k
  if (fAbs(q) != 16) return (q);
142
143
36.7k
  LONG i, off;
144
51.1k
  for (i = 4; i < 13; i++) {
145
51.0k
    if (FDKreadBit(bs) == 0) break;
146
51.0k
  }
147
148
36.7k
  if (i == 13) return (MAX_QUANTIZED_VALUE + 1);
149
150
36.7k
  off = FDKreadBits(bs, i);
151
36.7k
  i = off + (1 << i);
152
153
36.7k
  if (q < 0) i = -i;
154
155
36.7k
  return i;
156
36.7k
}
157
158
AAC_DECODER_ERROR CBlock_ReadScaleFactorData(
159
    CAacDecoderChannelInfo *pAacDecoderChannelInfo, HANDLE_FDK_BITSTREAM bs,
160
550k
    UINT flags) {
161
550k
  int temp;
162
550k
  int band;
163
550k
  int group;
164
550k
  int position = 0; /* accu for intensity delta coding */
165
550k
  int factor = pAacDecoderChannelInfo->pDynData->RawDataInfo
166
550k
                   .GlobalGain; /* accu for scale factor delta coding */
167
550k
  UCHAR *pCodeBook = pAacDecoderChannelInfo->pDynData->aCodeBook;
168
550k
  SHORT *pScaleFactor = pAacDecoderChannelInfo->pDynData->aScaleFactor;
169
550k
  const CodeBookDescription *hcb = &AACcodeBookDescriptionTable[BOOKSCL];
170
171
550k
  const USHORT(*CodeBook)[HuffmanEntries] = hcb->CodeBook;
172
173
550k
  int ScaleFactorBandsTransmitted =
174
550k
      GetScaleFactorBandsTransmitted(&pAacDecoderChannelInfo->icsInfo);
175
1.62M
  for (group = 0; group < GetWindowGroups(&pAacDecoderChannelInfo->icsInfo);
176
1.07M
       group++) {
177
3.31M
    for (band = 0; band < ScaleFactorBandsTransmitted; band++) {
178
2.23M
      switch (pCodeBook[band]) {
179
61.0k
        case ZERO_HCB: /* zero book */
180
61.0k
          pScaleFactor[band] = 0;
181
61.0k
          break;
182
183
2.10M
        default: /* decode scale factor */
184
2.10M
          if (!((flags & (AC_USAC | AC_RSVD50 | AC_RSV603DA)) && band == 0 &&
185
1.96M
                group == 0)) {
186
1.96M
            temp = CBlock_DecodeHuffmanWordCB(bs, CodeBook);
187
1.96M
            factor += temp - 60; /* MIDFAC 1.5 dB */
188
1.96M
          }
189
2.10M
          pScaleFactor[band] = factor - 100;
190
2.10M
          break;
191
192
35.3k
        case INTENSITY_HCB: /* intensity steering */
193
48.8k
        case INTENSITY_HCB2:
194
48.8k
          temp = CBlock_DecodeHuffmanWordCB(bs, CodeBook);
195
48.8k
          position += temp - 60;
196
48.8k
          pScaleFactor[band] = position - 100;
197
48.8k
          break;
198
199
23.3k
        case NOISE_HCB: /* PNS */
200
23.3k
          if (flags & (AC_MPEGD_RES | AC_USAC | AC_RSVD50 | AC_RSV603DA)) {
201
0
            return AAC_DEC_PARSE_ERROR;
202
0
          }
203
23.3k
          CPns_Read(&pAacDecoderChannelInfo->data.aac.PnsData, bs, hcb,
204
23.3k
                    pAacDecoderChannelInfo->pDynData->aScaleFactor,
205
23.3k
                    pAacDecoderChannelInfo->pDynData->RawDataInfo.GlobalGain,
206
23.3k
                    band, group);
207
23.3k
          break;
208
2.23M
      }
209
2.23M
    }
210
1.07M
    pCodeBook += 16;
211
1.07M
    pScaleFactor += 16;
212
1.07M
  }
213
214
550k
  return AAC_DEC_OK;
215
550k
}
216
217
void CBlock_ScaleSpectralData(CAacDecoderChannelInfo *pAacDecoderChannelInfo,
218
                              UCHAR maxSfbs,
219
693k
                              SamplingRateInfo *pSamplingRateInfo) {
220
693k
  int band;
221
693k
  int window;
222
693k
  const SHORT *RESTRICT pSfbScale = pAacDecoderChannelInfo->pDynData->aSfbScale;
223
693k
  SHORT *RESTRICT pSpecScale = pAacDecoderChannelInfo->specScale;
224
693k
  int groupwin, group;
225
693k
  const SHORT *RESTRICT BandOffsets = GetScaleFactorBandOffsets(
226
693k
      &pAacDecoderChannelInfo->icsInfo, pSamplingRateInfo);
227
693k
  SPECTRAL_PTR RESTRICT pSpectralCoefficient =
228
693k
      pAacDecoderChannelInfo->pSpectralCoefficient;
229
230
693k
  FDKmemclear(pSpecScale, 8 * sizeof(SHORT));
231
232
693k
  for (window = 0, group = 0;
233
1.98M
       group < GetWindowGroups(&pAacDecoderChannelInfo->icsInfo); group++) {
234
2.87M
    for (groupwin = 0; groupwin < GetWindowGroupLength(
235
2.87M
                                      &pAacDecoderChannelInfo->icsInfo, group);
236
1.57M
         groupwin++, window++) {
237
1.57M
      int SpecScale_window = pSpecScale[window];
238
1.57M
      FIXP_DBL *pSpectrum = SPEC(pSpectralCoefficient, window,
239
1.57M
                                 pAacDecoderChannelInfo->granuleLength);
240
241
      /* find scaling for current window */
242
5.29M
      for (band = 0; band < maxSfbs; band++) {
243
3.72M
        SpecScale_window =
244
3.72M
            fMax(SpecScale_window, (int)pSfbScale[window * 16 + band]);
245
3.72M
      }
246
247
1.57M
      if (pAacDecoderChannelInfo->pDynData->TnsData.Active &&
248
533k
          pAacDecoderChannelInfo->pDynData->TnsData.NumberOfFilters[window] >
249
533k
              0) {
250
222k
        int filter_index, SpecScale_window_tns;
251
222k
        int tns_start, tns_stop;
252
253
        /* Find max scale of TNS bands */
254
222k
        SpecScale_window_tns = 0;
255
222k
        tns_start = GetMaximumTnsBands(&pAacDecoderChannelInfo->icsInfo,
256
222k
                                       pSamplingRateInfo->samplingRateIndex);
257
222k
        tns_stop = 0;
258
222k
        for (filter_index = 0;
259
464k
             filter_index < (int)pAacDecoderChannelInfo->pDynData->TnsData
260
464k
                                .NumberOfFilters[window];
261
242k
             filter_index++) {
262
242k
          for (band = pAacDecoderChannelInfo->pDynData->TnsData
263
242k
                          .Filter[window][filter_index]
264
242k
                          .StartBand;
265
2.40M
               band < pAacDecoderChannelInfo->pDynData->TnsData
266
2.40M
                          .Filter[window][filter_index]
267
2.40M
                          .StopBand;
268
2.16M
               band++) {
269
2.16M
            SpecScale_window_tns =
270
2.16M
                fMax(SpecScale_window_tns, (int)pSfbScale[window * 16 + band]);
271
2.16M
          }
272
          /* Find TNS line boundaries for all TNS filters */
273
242k
          tns_start =
274
242k
              fMin(tns_start, (int)pAacDecoderChannelInfo->pDynData->TnsData
275
242k
                                  .Filter[window][filter_index]
276
242k
                                  .StartBand);
277
242k
          tns_stop =
278
242k
              fMax(tns_stop, (int)pAacDecoderChannelInfo->pDynData->TnsData
279
242k
                                 .Filter[window][filter_index]
280
242k
                                 .StopBand);
281
242k
        }
282
222k
        SpecScale_window_tns = SpecScale_window_tns +
283
222k
                               pAacDecoderChannelInfo->pDynData->TnsData.GainLd;
284
222k
        FDK_ASSERT(tns_stop >= tns_start);
285
        /* Consider existing headroom of all MDCT lines inside the TNS bands. */
286
222k
        SpecScale_window_tns -=
287
222k
            getScalefactor(pSpectrum + BandOffsets[tns_start],
288
222k
                           BandOffsets[tns_stop] - BandOffsets[tns_start]);
289
222k
        if (SpecScale_window <= 17) {
290
210k
          SpecScale_window_tns++;
291
210k
        }
292
        /* Add enough mantissa head room such that the spectrum is still
293
           representable after applying TNS. */
294
222k
        SpecScale_window = fMax(SpecScale_window, SpecScale_window_tns);
295
222k
      }
296
297
      /* store scaling of current window */
298
1.57M
      pSpecScale[window] = SpecScale_window;
299
300
#ifdef FUNCTION_CBlock_ScaleSpectralData_func1
301
302
      CBlock_ScaleSpectralData_func1(pSpectrum, maxSfbs, BandOffsets,
303
                                     SpecScale_window, pSfbScale, window);
304
305
#else  /* FUNCTION_CBlock_ScaleSpectralData_func1 */
306
5.29M
      for (band = 0; band < maxSfbs; band++) {
307
3.72M
        int scale = fMin(DFRACT_BITS - 1,
308
3.72M
                         SpecScale_window - pSfbScale[window * 16 + band]);
309
3.72M
        if (scale) {
310
2.53M
          FDK_ASSERT(scale > 0);
311
312
          /* following relation can be used for optimizations:
313
           * (BandOffsets[i]%4) == 0 for all i */
314
2.53M
          int max_index = BandOffsets[band + 1];
315
2.53M
          DWORD_ALIGNED(pSpectrum);
316
22.4M
          for (int index = BandOffsets[band]; index < max_index; index++) {
317
19.8M
            pSpectrum[index] >>= scale;
318
19.8M
          }
319
2.53M
        }
320
3.72M
      }
321
1.57M
#endif /* FUNCTION_CBlock_ScaleSpectralData_func1 */
322
1.57M
    }
323
1.29M
  }
324
693k
}
325
326
AAC_DECODER_ERROR CBlock_ReadSectionData(
327
    HANDLE_FDK_BITSTREAM bs, CAacDecoderChannelInfo *pAacDecoderChannelInfo,
328
420k
    const SamplingRateInfo *pSamplingRateInfo, const UINT flags) {
329
420k
  int top, band;
330
420k
  int sect_len, sect_len_incr;
331
420k
  int group;
332
420k
  UCHAR sect_cb;
333
420k
  UCHAR *pCodeBook = pAacDecoderChannelInfo->pDynData->aCodeBook;
334
  /* HCR input (long) */
335
420k
  SHORT *pNumLinesInSec =
336
420k
      pAacDecoderChannelInfo->pDynData->specificTo.aac.aNumLineInSec4Hcr;
337
420k
  int numLinesInSecIdx = 0;
338
420k
  UCHAR *pHcrCodeBook =
339
420k
      pAacDecoderChannelInfo->pDynData->specificTo.aac.aCodeBooks4Hcr;
340
420k
  const SHORT *BandOffsets = GetScaleFactorBandOffsets(
341
420k
      &pAacDecoderChannelInfo->icsInfo, pSamplingRateInfo);
342
420k
  pAacDecoderChannelInfo->pDynData->specificTo.aac.numberSection = 0;
343
420k
  AAC_DECODER_ERROR ErrorStatus = AAC_DEC_OK;
344
345
420k
  FDKmemclear(pCodeBook, sizeof(UCHAR) * (8 * 16));
346
347
420k
  const int nbits =
348
420k
      (IsLongBlock(&pAacDecoderChannelInfo->icsInfo) == 1) ? 5 : 3;
349
350
420k
  int sect_esc_val = (1 << nbits) - 1;
351
352
420k
  UCHAR ScaleFactorBandsTransmitted =
353
420k
      GetScaleFactorBandsTransmitted(&pAacDecoderChannelInfo->icsInfo);
354
1.16M
  for (group = 0; group < GetWindowGroups(&pAacDecoderChannelInfo->icsInfo);
355
744k
       group++) {
356
83.3M
    for (band = 0; band < ScaleFactorBandsTransmitted;) {
357
82.6M
      sect_len = 0;
358
82.6M
      if (flags & AC_ER_VCB11) {
359
56.7M
        sect_cb = (UCHAR)FDKreadBits(bs, 5);
360
56.7M
      } else
361
25.8M
        sect_cb = (UCHAR)FDKreadBits(bs, 4);
362
363
82.6M
      if (((flags & AC_ER_VCB11) == 0) || (sect_cb < 11) ||
364
82.5M
          ((sect_cb > 11) && (sect_cb < 16))) {
365
82.5M
        sect_len_incr = FDKreadBits(bs, nbits);
366
82.7M
        while (sect_len_incr == sect_esc_val) {
367
227k
          sect_len += sect_esc_val;
368
227k
          sect_len_incr = FDKreadBits(bs, nbits);
369
227k
        }
370
82.5M
      } else {
371
111k
        sect_len_incr = 1;
372
111k
      }
373
374
82.6M
      sect_len += sect_len_incr;
375
376
82.6M
      top = band + sect_len;
377
378
82.6M
      if (flags & AC_ER_HCR) {
379
        /* HCR input (long) -- collecting sideinfo (for HCR-_long_ only) */
380
153k
        if (numLinesInSecIdx >= MAX_SFB_HCR) {
381
261
          return AAC_DEC_PARSE_ERROR;
382
261
        }
383
153k
        if (top > (int)GetNumberOfScaleFactorBands(
384
153k
                      &pAacDecoderChannelInfo->icsInfo, pSamplingRateInfo)) {
385
9
          return AAC_DEC_PARSE_ERROR;
386
9
        }
387
153k
        pNumLinesInSec[numLinesInSecIdx] = BandOffsets[top] - BandOffsets[band];
388
153k
        numLinesInSecIdx++;
389
153k
        if (sect_cb == BOOKSCL) {
390
8
          return AAC_DEC_INVALID_CODE_BOOK;
391
153k
        } else {
392
153k
          *pHcrCodeBook++ = sect_cb;
393
153k
        }
394
153k
        pAacDecoderChannelInfo->pDynData->specificTo.aac.numberSection++;
395
153k
      }
396
397
      /* Check spectral line limits */
398
82.6M
      if (IsLongBlock(&(pAacDecoderChannelInfo->icsInfo))) {
399
18.4M
        if (top > 64) {
400
15
          return AAC_DEC_DECODE_FRAME_ERROR;
401
15
        }
402
64.1M
      } else { /* short block */
403
64.1M
        if (top + group * 16 > (8 * 16)) {
404
33
          return AAC_DEC_DECODE_FRAME_ERROR;
405
33
        }
406
64.1M
      }
407
408
      /* Check if decoded codebook index is feasible */
409
82.6M
      if ((sect_cb == BOOKSCL) ||
410
82.6M
          ((sect_cb == INTENSITY_HCB || sect_cb == INTENSITY_HCB2) &&
411
48.9k
           pAacDecoderChannelInfo->pDynData->RawDataInfo.CommonWindow == 0)) {
412
209
        return AAC_DEC_INVALID_CODE_BOOK;
413
209
      }
414
415
      /* Store codebook index */
416
86.3M
      for (; band < top; band++) {
417
3.72M
        pCodeBook[group * 16 + band] = sect_cb;
418
3.72M
      }
419
82.6M
    }
420
744k
  }
421
422
419k
  return ErrorStatus;
423
420k
}
424
425
/* mso: provides a faster way to i-quantize a whole band in one go */
426
427
/**
428
 * \brief inverse quantize one sfb. Each value of the sfb is processed according
429
 * to the formula: spectrum[i] = Sign(spectrum[i]) * Matissa(spectrum[i])^(4/3)
430
 * * 2^(lsb/4).
431
 * \param spectrum pointer to first line of the sfb to be inverse quantized.
432
 * \param noLines number of lines belonging to the sfb.
433
 * \param lsb last 2 bits of the scale factor of the sfb.
434
 * \param scale max allowed shift scale for the sfb.
435
 */
436
static inline void InverseQuantizeBand(
437
    FIXP_DBL *RESTRICT spectrum, const FIXP_DBL *RESTRICT InverseQuantTabler,
438
    const FIXP_DBL *RESTRICT MantissaTabler,
439
1.54M
    const SCHAR *RESTRICT ExponentTabler, INT noLines, INT scale) {
440
1.54M
  scale = scale + 1; /* +1 to compensate fMultDiv2 shift-right in loop */
441
442
1.54M
  FIXP_DBL *RESTRICT ptr = spectrum;
443
1.54M
  FIXP_DBL signedValue;
444
445
10.8M
  for (INT i = noLines; i--;) {
446
9.31M
    if ((signedValue = *ptr++) != FL2FXCONST_DBL(0)) {
447
4.46M
      FIXP_DBL value = fAbs(signedValue);
448
4.46M
      UINT freeBits = CntLeadingZeros(value);
449
4.46M
      UINT exponent = 32 - freeBits;
450
451
4.46M
      UINT x = (UINT)(LONG)value << (INT)freeBits;
452
4.46M
      x <<= 1; /* shift out sign bit to avoid masking later on */
453
4.46M
      UINT tableIndex = x >> 24;
454
4.46M
      x = (x >> 20) & 0x0F;
455
456
4.46M
      UINT r0 = (UINT)(LONG)InverseQuantTabler[tableIndex + 0];
457
4.46M
      UINT r1 = (UINT)(LONG)InverseQuantTabler[tableIndex + 1];
458
4.46M
      UINT temp = (r1 - r0) * x + (r0 << 4);
459
460
4.46M
      value = fMultDiv2((FIXP_DBL)temp, MantissaTabler[exponent]);
461
462
      /* + 1 compensates fMultDiv2() */
463
4.46M
      scaleValueInPlace(&value, scale + ExponentTabler[exponent]);
464
465
4.46M
      signedValue = (signedValue < (FIXP_DBL)0) ? -value : value;
466
4.46M
      ptr[-1] = signedValue;
467
4.46M
    }
468
9.31M
  }
469
1.54M
}
470
471
static inline FIXP_DBL maxabs_D(const FIXP_DBL *pSpectralCoefficient,
472
2.88M
                                const int noLines) {
473
  /* Find max spectral line value of the current sfb */
474
2.88M
  FIXP_DBL locMax = (FIXP_DBL)0;
475
2.88M
  int i;
476
477
2.88M
  DWORD_ALIGNED(pSpectralCoefficient);
478
479
25.1M
  for (i = noLines; i-- > 0;) {
480
    /* Expensive memory access */
481
22.2M
    locMax = fMax(fixp_abs(pSpectralCoefficient[i]), locMax);
482
22.2M
  }
483
484
2.88M
  return locMax;
485
2.88M
}
486
487
AAC_DECODER_ERROR CBlock_InverseQuantizeSpectralData(
488
    CAacDecoderChannelInfo *pAacDecoderChannelInfo,
489
    SamplingRateInfo *pSamplingRateInfo, UCHAR *band_is_noise,
490
712k
    UCHAR active_band_search) {
491
712k
  int window, group, groupwin, band;
492
712k
  int ScaleFactorBandsTransmitted =
493
712k
      GetScaleFactorBandsTransmitted(&pAacDecoderChannelInfo->icsInfo);
494
712k
  UCHAR *RESTRICT pCodeBook = pAacDecoderChannelInfo->pDynData->aCodeBook;
495
712k
  SHORT *RESTRICT pSfbScale = pAacDecoderChannelInfo->pDynData->aSfbScale;
496
712k
  SHORT *RESTRICT pScaleFactor = pAacDecoderChannelInfo->pDynData->aScaleFactor;
497
712k
  const SHORT *RESTRICT BandOffsets = GetScaleFactorBandOffsets(
498
712k
      &pAacDecoderChannelInfo->icsInfo, pSamplingRateInfo);
499
712k
  const SHORT total_bands =
500
712k
      GetScaleFactorBandsTotal(&pAacDecoderChannelInfo->icsInfo);
501
502
712k
  FDKmemclear(pAacDecoderChannelInfo->pDynData->aSfbScale,
503
712k
              (8 * 16) * sizeof(SHORT));
504
505
712k
  for (window = 0, group = 0;
506
2.05M
       group < GetWindowGroups(&pAacDecoderChannelInfo->icsInfo); group++) {
507
2.97M
    for (groupwin = 0; groupwin < GetWindowGroupLength(
508
2.97M
                                      &pAacDecoderChannelInfo->icsInfo, group);
509
1.63M
         groupwin++, window++) {
510
      /* inverse quantization */
511
5.37M
      for (band = 0; band < ScaleFactorBandsTransmitted; band++) {
512
3.74M
        FIXP_DBL *pSpectralCoefficient =
513
3.74M
            SPEC(pAacDecoderChannelInfo->pSpectralCoefficient, window,
514
3.74M
                 pAacDecoderChannelInfo->granuleLength) +
515
3.74M
            BandOffsets[band];
516
3.74M
        FIXP_DBL locMax;
517
518
3.74M
        const int noLines = BandOffsets[band + 1] - BandOffsets[band];
519
3.74M
        const int bnds = group * 16 + band;
520
521
3.74M
        if ((pCodeBook[bnds] == ZERO_HCB) ||
522
3.21M
            (pCodeBook[bnds] == INTENSITY_HCB) ||
523
3.10M
            (pCodeBook[bnds] == INTENSITY_HCB2))
524
740k
          continue;
525
526
3.00M
        if (pCodeBook[bnds] == NOISE_HCB) {
527
          /* Leave headroom for PNS values. + 1 because ceil(log2(2^(0.25*3))) =
528
             1, worst case of additional headroom required because of the
529
             scalefactor. */
530
117k
          pSfbScale[window * 16 + band] = (pScaleFactor[bnds] >> 2) + 1;
531
117k
          continue;
532
117k
        }
533
534
2.88M
        locMax = maxabs_D(pSpectralCoefficient, noLines);
535
536
2.88M
        if (active_band_search) {
537
2.88M
          if (locMax != FIXP_DBL(0)) {
538
1.54M
            band_is_noise[group * 16 + band] = 0;
539
1.54M
          }
540
2.88M
        }
541
542
        /* Cheap robustness improvement - Do not remove!!! */
543
2.88M
        if (fixp_abs(locMax) > (FIXP_DBL)MAX_QUANTIZED_VALUE) {
544
28
          return AAC_DEC_PARSE_ERROR;
545
28
        }
546
547
        /* Added by Youliy Ninov:
548
        The inverse quantization operation is given by (ISO/IEC 14496-3:2009(E))
549
        by:
550
551
        x_invquant=Sign(x_quant). abs(x_quant)^(4/3)
552
553
        We apply a gain, derived from the scale factor for the particular sfb,
554
        according to the following function:
555
556
        gain=2^(0.25*ScaleFactor)
557
558
        So, after scaling we have:
559
560
        x_rescale=gain*x_invquant=Sign(x_quant)*2^(0.25*ScaleFactor)*abs(s_quant)^(4/3)
561
562
        We could represent the ScaleFactor as:
563
564
        ScaleFactor= (ScaleFactor >> 2)*4 + ScaleFactor %4
565
566
        When we substitute it we get:
567
568
        x_rescale=Sign(x_quant)*2^(ScaleFactor>>2)* (
569
        2^(0.25*(ScaleFactor%4))*abs(s_quant)^(4/3))
570
571
        When we set: msb=(ScaleFactor>>2) and lsb=(ScaleFactor%4), we obtain:
572
573
        x_rescale=Sign(x_quant)*(2^msb)* ( 2^(lsb/4)*abs(s_quant)^(4/3))
574
575
        The rescaled output can be represented by:
576
           mantissa : Sign(x_quant)*( 2^(lsb/4)*abs(s_quant)^(4/3))
577
           exponent :(2^msb)
578
579
        */
580
581
2.88M
        int msb = pScaleFactor[bnds] >> 2;
582
583
        /* Inverse quantize band only if it is not empty */
584
2.88M
        if (locMax != FIXP_DBL(0)) {
585
1.54M
          int lsb = pScaleFactor[bnds] & 0x03;
586
587
1.54M
          int scale = EvaluatePower43(&locMax, lsb);
588
589
1.54M
          scale = CntLeadingZeros(locMax) - scale - 2;
590
591
1.54M
          pSfbScale[window * 16 + band] = msb - scale;
592
1.54M
          InverseQuantizeBand(pSpectralCoefficient, InverseQuantTable,
593
1.54M
                              MantissaTable[lsb], ExponentTable[lsb], noLines,
594
1.54M
                              scale);
595
1.54M
        } else {
596
1.33M
          pSfbScale[window * 16 + band] = msb;
597
1.33M
        }
598
599
2.88M
      } /* for (band=0; band < ScaleFactorBandsTransmitted; band++) */
600
601
      /* Make sure the array is cleared to the end */
602
1.63M
      SHORT start_clear = BandOffsets[ScaleFactorBandsTransmitted];
603
1.63M
      SHORT end_clear = BandOffsets[total_bands];
604
1.63M
      int diff_clear = (int)(end_clear - start_clear);
605
1.63M
      FIXP_DBL *pSpectralCoefficient =
606
1.63M
          SPEC(pAacDecoderChannelInfo->pSpectralCoefficient, window,
607
1.63M
               pAacDecoderChannelInfo->granuleLength) +
608
1.63M
          start_clear;
609
1.63M
      FDKmemclear(pSpectralCoefficient, diff_clear * sizeof(FIXP_DBL));
610
611
1.63M
    } /* for (groupwin=0; groupwin <
612
         GetWindowGroupLength(&pAacDecoderChannelInfo->icsInfo,group);
613
         groupwin++, window++) */
614
1.34M
  }   /* for (window=0, group=0; group <
615
         GetWindowGroups(&pAacDecoderChannelInfo->icsInfo); group++)*/
616
617
712k
  return AAC_DEC_OK;
618
712k
}
619
620
AAC_DECODER_ERROR CBlock_ReadSpectralData(
621
    HANDLE_FDK_BITSTREAM bs, CAacDecoderChannelInfo *pAacDecoderChannelInfo,
622
419k
    const SamplingRateInfo *pSamplingRateInfo, const UINT flags) {
623
419k
  int index, i;
624
419k
  const SHORT *RESTRICT BandOffsets = GetScaleFactorBandOffsets(
625
419k
      &pAacDecoderChannelInfo->icsInfo, pSamplingRateInfo);
626
627
419k
  SPECTRAL_PTR pSpectralCoefficient =
628
419k
      pAacDecoderChannelInfo->pSpectralCoefficient;
629
630
419k
  FDK_ASSERT(BandOffsets != NULL);
631
632
419k
  FDKmemclear(pSpectralCoefficient, sizeof(SPECTRUM));
633
634
419k
  if ((flags & AC_ER_HCR) == 0) {
635
407k
    int group;
636
407k
    int groupoffset;
637
407k
    UCHAR *pCodeBook = pAacDecoderChannelInfo->pDynData->aCodeBook;
638
407k
    int ScaleFactorBandsTransmitted =
639
407k
        GetScaleFactorBandsTransmitted(&pAacDecoderChannelInfo->icsInfo);
640
407k
    int granuleLength = pAacDecoderChannelInfo->granuleLength;
641
642
407k
    groupoffset = 0;
643
644
    /* plain huffman decoder  short */
645
407k
    int max_group = GetWindowGroups(&pAacDecoderChannelInfo->icsInfo);
646
647
1.11M
    for (group = 0; group < max_group; group++) {
648
710k
      int max_groupwin =
649
710k
          GetWindowGroupLength(&pAacDecoderChannelInfo->icsInfo, group);
650
710k
      int band;
651
652
710k
      int bnds = group * 16;
653
654
710k
      int bandOffset1 = BandOffsets[0];
655
1.91M
      for (band = 0; band < ScaleFactorBandsTransmitted; band++, bnds++) {
656
1.20M
        UCHAR currentCB = pCodeBook[bnds];
657
1.20M
        int bandOffset0 = bandOffset1;
658
1.20M
        bandOffset1 = BandOffsets[band + 1];
659
660
        /* patch to run plain-huffman-decoder with vcb11 input codebooks
661
         * (LAV-checking might be possible below using the virtual cb and a
662
         * LAV-table) */
663
1.20M
        if ((currentCB >= 16) && (currentCB <= 31)) {
664
83.5k
          pCodeBook[bnds] = currentCB = 11;
665
83.5k
        }
666
1.20M
        if (((currentCB != ZERO_HCB) && (currentCB != NOISE_HCB) &&
667
773k
             (currentCB != INTENSITY_HCB) && (currentCB != INTENSITY_HCB2))) {
668
627k
          const CodeBookDescription *hcb =
669
627k
              &AACcodeBookDescriptionTable[currentCB];
670
627k
          int step = hcb->Dimension;
671
627k
          int offset = hcb->Offset;
672
627k
          int bits = hcb->numBits;
673
627k
          int mask = (1 << bits) - 1;
674
627k
          const USHORT(*CodeBook)[HuffmanEntries] = hcb->CodeBook;
675
627k
          int groupwin;
676
677
627k
          FIXP_DBL *mdctSpectrum =
678
627k
              &pSpectralCoefficient[groupoffset * granuleLength];
679
680
627k
          if (offset == 0) {
681
843k
            for (groupwin = 0; groupwin < max_groupwin; groupwin++) {
682
1.31M
              for (index = bandOffset0; index < bandOffset1; index += step) {
683
871k
                int idx = CBlock_DecodeHuffmanWordCB(bs, CodeBook);
684
2.91M
                for (i = 0; i < step; i++, idx >>= bits) {
685
2.04M
                  FIXP_DBL tmp = (FIXP_DBL)((idx & mask) - offset);
686
2.04M
                  if (tmp != FIXP_DBL(0)) tmp = (FDKreadBit(bs)) ? -tmp : tmp;
687
2.04M
                  mdctSpectrum[index + i] = tmp;
688
2.04M
                }
689
690
871k
                if (currentCB == ESCBOOK) {
691
928k
                  for (int j = 0; j < 2; j++)
692
619k
                    mdctSpectrum[index + j] = (FIXP_DBL)CBlock_GetEscape(
693
619k
                        bs, (LONG)mdctSpectrum[index + j]);
694
309k
                }
695
871k
              }
696
442k
              mdctSpectrum += granuleLength;
697
442k
            }
698
400k
          } else {
699
462k
            for (groupwin = 0; groupwin < max_groupwin; groupwin++) {
700
616k
              for (index = bandOffset0; index < bandOffset1; index += step) {
701
381k
                int idx = CBlock_DecodeHuffmanWordCB(bs, CodeBook);
702
1.47M
                for (i = 0; i < step; i++, idx >>= bits) {
703
1.09M
                  mdctSpectrum[index + i] = (FIXP_DBL)((idx & mask) - offset);
704
1.09M
                }
705
381k
                if (currentCB == ESCBOOK) {
706
0
                  for (int j = 0; j < 2; j++)
707
0
                    mdctSpectrum[index + j] = (FIXP_DBL)CBlock_GetEscape(
708
0
                        bs, (LONG)mdctSpectrum[index + j]);
709
0
                }
710
381k
              }
711
235k
              mdctSpectrum += granuleLength;
712
235k
            }
713
226k
          }
714
627k
        }
715
1.20M
      }
716
710k
      groupoffset += max_groupwin;
717
710k
    }
718
    /* plain huffman decoding (short) finished */
719
407k
  }
720
721
  /* HCR - Huffman Codeword Reordering  short */
722
12.1k
  else /* if ( flags & AC_ER_HCR ) */
723
724
12.1k
  {
725
12.1k
    H_HCR_INFO hHcr = &pAacDecoderChannelInfo->pComData->overlay.aac.erHcrInfo;
726
727
12.1k
    int hcrStatus = 0;
728
729
    /* advanced Huffman decoding starts here (HCR decoding :) */
730
12.1k
    if (pAacDecoderChannelInfo->pDynData->specificTo.aac
731
12.1k
            .lenOfReorderedSpectralData != 0) {
732
      /* HCR initialization short */
733
10.9k
      hcrStatus = HcrInit(hHcr, pAacDecoderChannelInfo, pSamplingRateInfo, bs);
734
735
10.9k
      if (hcrStatus != 0) {
736
44
        return AAC_DEC_DECODE_FRAME_ERROR;
737
44
      }
738
739
      /* HCR decoding short */
740
10.8k
      hcrStatus =
741
10.8k
          HcrDecoder(hHcr, pAacDecoderChannelInfo, pSamplingRateInfo, bs);
742
743
10.8k
      if (hcrStatus != 0) {
744
7.64k
#if HCR_ERROR_CONCEALMENT
745
7.64k
        HcrMuteErroneousLines(hHcr);
746
#else
747
        return AAC_DEC_DECODE_FRAME_ERROR;
748
#endif /* HCR_ERROR_CONCEALMENT */
749
7.64k
      }
750
751
10.8k
      FDKpushFor(bs, pAacDecoderChannelInfo->pDynData->specificTo.aac
752
10.8k
                         .lenOfReorderedSpectralData);
753
10.8k
    }
754
12.1k
  }
755
  /* HCR - Huffman Codeword Reordering short finished */
756
757
419k
  if (IsLongBlock(&pAacDecoderChannelInfo->icsInfo) &&
758
345k
      !(flags & (AC_ELD | AC_SCALABLE))) {
759
    /* apply pulse data */
760
24.0k
    CPulseData_Apply(
761
24.0k
        &pAacDecoderChannelInfo->pDynData->specificTo.aac.PulseData,
762
24.0k
        GetScaleFactorBandOffsets(&pAacDecoderChannelInfo->icsInfo,
763
24.0k
                                  pSamplingRateInfo),
764
24.0k
        SPEC_LONG(pSpectralCoefficient));
765
24.0k
  }
766
767
419k
  return AAC_DEC_OK;
768
419k
}
769
770
static const FIXP_SGL noise_level_tab[8] = {
771
    /* FDKpow(2, (float)(noise_level-14)/3.0f) * 2; (*2 to compensate for
772
       fMultDiv2) noise_level_tab(noise_level==0) == 0 by definition
773
    */
774
    FX_DBL2FXCONST_SGL(0x00000000 /*0x0a145173*/),
775
    FX_DBL2FXCONST_SGL(0x0cb2ff5e),
776
    FX_DBL2FXCONST_SGL(0x10000000),
777
    FX_DBL2FXCONST_SGL(0x1428a2e7),
778
    FX_DBL2FXCONST_SGL(0x1965febd),
779
    FX_DBL2FXCONST_SGL(0x20000000),
780
    FX_DBL2FXCONST_SGL(0x28514606),
781
    FX_DBL2FXCONST_SGL(0x32cbfd33)};
782
783
void CBlock_ApplyNoise(CAacDecoderChannelInfo *pAacDecoderChannelInfo,
784
                       SamplingRateInfo *pSamplingRateInfo, ULONG *nfRandomSeed,
785
11.2k
                       UCHAR *band_is_noise) {
786
11.2k
  const SHORT *swb_offset = GetScaleFactorBandOffsets(
787
11.2k
      &pAacDecoderChannelInfo->icsInfo, pSamplingRateInfo);
788
11.2k
  int g, win, gwin, sfb, noiseFillingStartOffset, nfStartOffset_sfb;
789
790
  /* Obtain noise level and scale factor offset. */
791
11.2k
  int noise_level = pAacDecoderChannelInfo->pDynData->specificTo.usac
792
11.2k
                        .fd_noise_level_and_offset >>
793
11.2k
                    5;
794
11.2k
  const FIXP_SGL noiseVal_pos = noise_level_tab[noise_level];
795
796
  /* noise_offset can change even when noise_level=0. Neccesary for IGF stereo
797
   * filling */
798
11.2k
  const int noise_offset = (pAacDecoderChannelInfo->pDynData->specificTo.usac
799
11.2k
                                .fd_noise_level_and_offset &
800
11.2k
                            0x1f) -
801
11.2k
                           16;
802
803
11.2k
  int max_sfb =
804
11.2k
      GetScaleFactorBandsTransmitted(&pAacDecoderChannelInfo->icsInfo);
805
806
11.2k
  noiseFillingStartOffset =
807
11.2k
      (GetWindowSequence(&pAacDecoderChannelInfo->icsInfo) == BLOCK_SHORT)
808
11.2k
          ? 20
809
11.2k
          : 160;
810
11.2k
  if (pAacDecoderChannelInfo->granuleLength == 96) {
811
3.71k
    noiseFillingStartOffset =
812
3.71k
        (3 * noiseFillingStartOffset) /
813
3.71k
        4; /* scale offset with 3/4 for coreCoderFrameLength == 768 */
814
3.71k
  }
815
816
  /* determine sfb from where on noise filling is applied */
817
115k
  for (sfb = 0; swb_offset[sfb] < noiseFillingStartOffset; sfb++)
818
103k
    ;
819
11.2k
  nfStartOffset_sfb = sfb;
820
821
  /* if (noise_level!=0) */
822
11.2k
  {
823
60.5k
    for (g = 0, win = 0; g < GetWindowGroups(&pAacDecoderChannelInfo->icsInfo);
824
49.2k
         g++) {
825
49.2k
      int windowGroupLength =
826
49.2k
          GetWindowGroupLength(&pAacDecoderChannelInfo->icsInfo, g);
827
56.1k
      for (sfb = nfStartOffset_sfb; sfb < max_sfb; sfb++) {
828
6.87k
        int bin_start = swb_offset[sfb];
829
6.87k
        int bin_stop = swb_offset[sfb + 1];
830
831
6.87k
        int flagN = band_is_noise[g * 16 + sfb];
832
833
        /* if all bins of one sfb in one window group are zero modify the scale
834
         * factor by noise_offset */
835
6.87k
        if (flagN) {
836
          /* Change scaling factors for empty signal bands */
837
4.40k
          pAacDecoderChannelInfo->pDynData->aScaleFactor[g * 16 + sfb] +=
838
4.40k
              noise_offset;
839
          /* scale factor "sf" implied gain "g" is g = 2^(sf/4) */
840
9.51k
          for (gwin = 0; gwin < windowGroupLength; gwin++) {
841
5.10k
            pAacDecoderChannelInfo->pDynData
842
5.10k
                ->aSfbScale[(win + gwin) * 16 + sfb] += (noise_offset >> 2);
843
5.10k
          }
844
4.40k
        }
845
846
6.87k
        ULONG seed = *nfRandomSeed;
847
        /* + 1 because exponent of MantissaTable[lsb][0] is always 1. */
848
6.87k
        int scale =
849
6.87k
            (pAacDecoderChannelInfo->pDynData->aScaleFactor[g * 16 + sfb] >>
850
6.87k
             2) +
851
6.87k
            1;
852
6.87k
        int lsb =
853
6.87k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[g * 16 + sfb] & 3;
854
6.87k
        FIXP_DBL mantissa = MantissaTable[lsb][0];
855
856
16.3k
        for (gwin = 0; gwin < windowGroupLength; gwin++) {
857
9.47k
          FIXP_DBL *pSpec =
858
9.47k
              SPEC(pAacDecoderChannelInfo->pSpectralCoefficient, win + gwin,
859
9.47k
                   pAacDecoderChannelInfo->granuleLength);
860
861
9.47k
          int scale1 = scale - pAacDecoderChannelInfo->pDynData
862
9.47k
                                   ->aSfbScale[(win + gwin) * 16 + sfb];
863
9.47k
          FIXP_DBL scaled_noiseVal_pos =
864
9.47k
              scaleValue(fMultDiv2(noiseVal_pos, mantissa), scale1);
865
9.47k
          FIXP_DBL scaled_noiseVal_neg = -scaled_noiseVal_pos;
866
867
          /* If the whole band is zero, just fill without checking */
868
9.47k
          if (flagN) {
869
78.2k
            for (int bin = bin_start; bin < bin_stop; bin++) {
870
73.1k
              seed = (ULONG)(
871
73.1k
                  (UINT64)seed * 69069 +
872
73.1k
                  5); /* Inlined: UsacRandomSign - origin in usacdec_lpd.h */
873
73.1k
              pSpec[bin] =
874
73.1k
                  (seed & 0x10000) ? scaled_noiseVal_neg : scaled_noiseVal_pos;
875
73.1k
            } /* for (bin...) */
876
5.10k
          }
877
          /*If band is sparsely filled, check for 0 and fill */
878
4.37k
          else {
879
51.4k
            for (int bin = bin_start; bin < bin_stop; bin++) {
880
47.1k
              if (pSpec[bin] == (FIXP_DBL)0) {
881
35.5k
                seed = (ULONG)(
882
35.5k
                    (UINT64)seed * 69069 +
883
35.5k
                    5); /* Inlined: UsacRandomSign - origin in usacdec_lpd.h */
884
35.5k
                pSpec[bin] = (seed & 0x10000) ? scaled_noiseVal_neg
885
35.5k
                                              : scaled_noiseVal_pos;
886
35.5k
              }
887
47.1k
            } /* for (bin...) */
888
4.37k
          }
889
890
9.47k
        } /* for (gwin...) */
891
6.87k
        *nfRandomSeed = seed;
892
6.87k
      } /* for (sfb...) */
893
49.2k
      win += windowGroupLength;
894
49.2k
    } /* for (g...) */
895
896
11.2k
  } /* ... */
897
11.2k
}
898
899
AAC_DECODER_ERROR CBlock_ReadAcSpectralData(
900
    HANDLE_FDK_BITSTREAM hBs, CAacDecoderChannelInfo *pAacDecoderChannelInfo,
901
    CAacDecoderStaticChannelInfo *pAacDecoderStaticChannelInfo,
902
    const SamplingRateInfo *pSamplingRateInfo, const UINT frame_length,
903
295k
    const UINT flags) {
904
295k
  AAC_DECODER_ERROR errorAAC = AAC_DEC_OK;
905
295k
  ARITH_CODING_ERROR error = ARITH_CODER_OK;
906
295k
  int arith_reset_flag, lg, numWin, win, winLen;
907
295k
  const SHORT *RESTRICT BandOffsets;
908
909
  /* number of transmitted spectral coefficients */
910
295k
  BandOffsets = GetScaleFactorBandOffsets(&pAacDecoderChannelInfo->icsInfo,
911
295k
                                          pSamplingRateInfo);
912
295k
  lg = BandOffsets[GetScaleFactorBandsTransmitted(
913
295k
      &pAacDecoderChannelInfo->icsInfo)];
914
915
295k
  numWin = GetWindowsPerFrame(&pAacDecoderChannelInfo->icsInfo);
916
295k
  winLen = (IsLongBlock(&pAacDecoderChannelInfo->icsInfo))
917
295k
               ? (int)frame_length
918
295k
               : (int)frame_length / numWin;
919
920
295k
  if (flags & AC_INDEP) {
921
211k
    arith_reset_flag = 1;
922
211k
  } else {
923
83.7k
    arith_reset_flag = (USHORT)FDKreadBits(hBs, 1);
924
83.7k
  }
925
926
995k
  for (win = 0; win < numWin; win++) {
927
701k
    error =
928
701k
        CArco_DecodeArithData(pAacDecoderStaticChannelInfo->hArCo, hBs,
929
701k
                              SPEC(pAacDecoderChannelInfo->pSpectralCoefficient,
930
701k
                                   win, pAacDecoderChannelInfo->granuleLength),
931
701k
                              lg, winLen, arith_reset_flag && (win == 0));
932
701k
    if (error != ARITH_CODER_OK) {
933
1.41k
      goto bail;
934
1.41k
    }
935
701k
  }
936
937
295k
bail:
938
295k
  if (error == ARITH_CODER_ERROR) {
939
1.41k
    errorAAC = AAC_DEC_PARSE_ERROR;
940
1.41k
  }
941
942
295k
  return errorAAC;
943
295k
}
944
945
void ApplyTools(CAacDecoderChannelInfo *pAacDecoderChannelInfo[],
946
                const SamplingRateInfo *pSamplingRateInfo, const UINT flags,
947
                const UINT elFlags, const int channel,
948
642k
                const int common_window) {
949
642k
  if (!(flags & (AC_USAC | AC_RSVD50 | AC_MPEGD_RES | AC_RSV603DA))) {
950
409k
    CPns_Apply(&pAacDecoderChannelInfo[channel]->data.aac.PnsData,
951
409k
               &pAacDecoderChannelInfo[channel]->icsInfo,
952
409k
               pAacDecoderChannelInfo[channel]->pSpectralCoefficient,
953
409k
               pAacDecoderChannelInfo[channel]->specScale,
954
409k
               pAacDecoderChannelInfo[channel]->pDynData->aScaleFactor,
955
409k
               pSamplingRateInfo,
956
409k
               pAacDecoderChannelInfo[channel]->granuleLength, channel);
957
409k
  }
958
959
642k
  UCHAR nbands =
960
642k
      GetScaleFactorBandsTransmitted(&pAacDecoderChannelInfo[channel]->icsInfo);
961
962
642k
  CTns_Apply(&pAacDecoderChannelInfo[channel]->pDynData->TnsData,
963
642k
             &pAacDecoderChannelInfo[channel]->icsInfo,
964
642k
             pAacDecoderChannelInfo[channel]->pSpectralCoefficient,
965
642k
             pSamplingRateInfo, pAacDecoderChannelInfo[channel]->granuleLength,
966
642k
             nbands, (elFlags & AC_EL_ENHANCED_NOISE) ? 1 : 0, flags);
967
642k
}
968
969
204k
static int getWindow2Nr(int length, int shape) {
970
204k
  int nr = 0;
971
972
204k
  if (shape == 2) {
973
    /* Low Overlap, 3/4 zeroed */
974
170
    nr = (length * 3) >> 2;
975
170
  }
976
977
204k
  return nr;
978
204k
}
979
980
266k
FIXP_DBL get_gain(const FIXP_DBL *x, const FIXP_DBL *y, int n) {
981
266k
  FIXP_DBL corr = (FIXP_DBL)0;
982
266k
  FIXP_DBL ener = (FIXP_DBL)1;
983
984
266k
  int headroom_x = getScalefactor(x, n);
985
266k
  int headroom_y = getScalefactor(y, n);
986
987
  /*Calculate the normalization necessary due to addition*/
988
  /* Check for power of two /special case */
989
266k
  INT width_shift = (INT)(fNormz((FIXP_DBL)n));
990
  /* Get the number of bits necessary minus one, because we need one sign bit
991
   * only */
992
266k
  width_shift = 31 - width_shift;
993
994
17.3M
  for (int i = 0; i < n; i++) {
995
17.0M
    corr +=
996
17.0M
        fMultDiv2((x[i] << headroom_x), (y[i] << headroom_y)) >> width_shift;
997
17.0M
    ener += fPow2Div2((y[i] << headroom_y)) >> width_shift;
998
17.0M
  }
999
1000
266k
  int exp_corr = (17 - headroom_x) + (17 - headroom_y) + width_shift + 1;
1001
266k
  int exp_ener = ((17 - headroom_y) << 1) + width_shift + 1;
1002
1003
266k
  int temp_exp = 0;
1004
266k
  FIXP_DBL output = fDivNormSigned(corr, ener, &temp_exp);
1005
1006
266k
  int output_exp = (exp_corr - exp_ener) + temp_exp;
1007
1008
266k
  INT output_shift = 17 - output_exp;
1009
266k
  output_shift = fMin(output_shift, 31);
1010
1011
266k
  output = scaleValue(output, -output_shift);
1012
1013
266k
  return output;
1014
266k
}
1015
1016
void CBlock_FrequencyToTime(
1017
    CAacDecoderStaticChannelInfo *pAacDecoderStaticChannelInfo,
1018
    CAacDecoderChannelInfo *pAacDecoderChannelInfo, PCM_DEC outSamples[],
1019
    const SHORT frameLen, const int frameOk, FIXP_DBL *pWorkBuffer1,
1020
412k
    const INT aacOutDataHeadroom, UINT elFlags, INT elCh) {
1021
412k
  int fr, fl, tl, nSpec;
1022
1023
412k
#if defined(FDK_ASSERT_ENABLE)
1024
412k
  LONG nSamples;
1025
412k
#endif
1026
1027
  /* Determine left slope length (fl), right slope length (fr) and transform
1028
     length (tl). USAC: The slope length may mismatch with the previous frame in
1029
     case of LPD / FD transitions. The adjustment is handled by the imdct
1030
     implementation.
1031
  */
1032
412k
  tl = frameLen;
1033
412k
  nSpec = 1;
1034
1035
412k
  switch (pAacDecoderChannelInfo->icsInfo.WindowSequence) {
1036
0
    default:
1037
204k
    case BLOCK_LONG:
1038
204k
      fl = frameLen;
1039
204k
      fr = frameLen -
1040
204k
           getWindow2Nr(frameLen,
1041
204k
                        GetWindowShape(&pAacDecoderChannelInfo->icsInfo));
1042
      /* New startup needs differentiation between sine shape and low overlap
1043
         shape. This is a special case for the LD-AAC transformation windows,
1044
         because the slope length can be different while using the same window
1045
         sequence. */
1046
204k
      if (pAacDecoderStaticChannelInfo->IMdct.prev_tl == 0) {
1047
20.3k
        fl = fr;
1048
20.3k
      }
1049
204k
      break;
1050
32.6k
    case BLOCK_STOP:
1051
32.6k
      fl = frameLen >> 3;
1052
32.6k
      fr = frameLen;
1053
32.6k
      break;
1054
44.6k
    case BLOCK_START: /* or StopStartSequence */
1055
44.6k
      fl = frameLen;
1056
44.6k
      fr = frameLen >> 3;
1057
44.6k
      break;
1058
130k
    case BLOCK_SHORT:
1059
130k
      fl = fr = frameLen >> 3;
1060
130k
      tl >>= 3;
1061
130k
      nSpec = 8;
1062
130k
      break;
1063
412k
  }
1064
1065
412k
  {
1066
412k
    int last_frame_lost = pAacDecoderStaticChannelInfo->last_lpc_lost;
1067
1068
412k
    if (pAacDecoderStaticChannelInfo->last_core_mode == LPD) {
1069
23.6k
      INT fac_FB = 1;
1070
23.6k
      if (elFlags & AC_EL_FULLBANDLPD) {
1071
0
        fac_FB = 2;
1072
0
      }
1073
1074
23.6k
      FIXP_DBL *synth;
1075
1076
      /* Keep some free space at the beginning of the buffer. To be used for
1077
       * past data */
1078
23.6k
      if (!(elFlags & AC_EL_LPDSTEREOIDX)) {
1079
23.6k
        synth = pWorkBuffer1 + ((PIT_MAX_MAX - (1 * L_SUBFR)) * fac_FB);
1080
23.6k
      } else {
1081
0
        synth = pWorkBuffer1 + PIT_MAX_MAX * fac_FB;
1082
0
      }
1083
1084
23.6k
      int fac_length =
1085
23.6k
          (pAacDecoderChannelInfo->icsInfo.WindowSequence == BLOCK_SHORT)
1086
23.6k
              ? (frameLen >> 4)
1087
23.6k
              : (frameLen >> 3);
1088
1089
23.6k
      INT pitch[NB_SUBFR_SUPERFR + SYN_SFD];
1090
23.6k
      FIXP_DBL pit_gain[NB_SUBFR_SUPERFR + SYN_SFD];
1091
1092
23.6k
      int nbDiv = (elFlags & AC_EL_FULLBANDLPD) ? 2 : 4;
1093
23.6k
      int lFrame = (elFlags & AC_EL_FULLBANDLPD) ? frameLen / 2 : frameLen;
1094
23.6k
      int nbSubfr =
1095
23.6k
          lFrame / (nbDiv * L_SUBFR); /* number of subframes per division */
1096
23.6k
      int LpdSfd = (nbDiv * nbSubfr) >> 1;
1097
23.6k
      int SynSfd = LpdSfd - BPF_SFD;
1098
1099
23.6k
      FDKmemclear(
1100
23.6k
          pitch,
1101
23.6k
          sizeof(
1102
23.6k
              pitch));  // added to prevent ferret errors in bass_pf_1sf_delay
1103
23.6k
      FDKmemclear(pit_gain, sizeof(pit_gain));
1104
1105
      /* FAC case */
1106
23.6k
      if (pAacDecoderStaticChannelInfo->last_lpd_mode == 0 ||
1107
18.5k
          pAacDecoderStaticChannelInfo->last_lpd_mode == 4) {
1108
18.5k
        FIXP_DBL fac_buf[LFAC];
1109
18.5k
        FIXP_LPC *A = pAacDecoderChannelInfo->data.usac.lp_coeff[0];
1110
1111
18.5k
        if (!frameOk || last_frame_lost ||
1112
18.5k
            (pAacDecoderChannelInfo->data.usac.fac_data[0] == NULL)) {
1113
4
          FDKmemclear(fac_buf,
1114
4
                      pAacDecoderChannelInfo->granuleLength * sizeof(FIXP_DBL));
1115
4
          pAacDecoderChannelInfo->data.usac.fac_data[0] = fac_buf;
1116
4
          pAacDecoderChannelInfo->data.usac.fac_data_e[0] = 0;
1117
4
        }
1118
1119
18.5k
        INT A_exp; /* linear prediction coefficients exponent */
1120
18.5k
        {
1121
314k
          for (int i = 0; i < M_LP_FILTER_ORDER; i++) {
1122
296k
            A[i] = FX_DBL2FX_LPC(fixp_cos(
1123
296k
                fMult(pAacDecoderStaticChannelInfo->lpc4_lsf[i],
1124
296k
                      FL2FXCONST_SGL((1 << LSPARG_SCALE) * M_PI / 6400.0)),
1125
296k
                LSF_SCALE - LSPARG_SCALE));
1126
296k
          }
1127
1128
18.5k
          E_LPC_f_lsp_a_conversion(A, A, &A_exp);
1129
18.5k
        }
1130
1131
18.5k
#if defined(FDK_ASSERT_ENABLE)
1132
18.5k
        nSamples =
1133
18.5k
#endif
1134
18.5k
            CLpd_FAC_Acelp2Mdct(
1135
18.5k
                &pAacDecoderStaticChannelInfo->IMdct, synth,
1136
18.5k
                SPEC_LONG(pAacDecoderChannelInfo->pSpectralCoefficient),
1137
18.5k
                pAacDecoderChannelInfo->specScale, nSpec,
1138
18.5k
                pAacDecoderChannelInfo->data.usac.fac_data[0],
1139
18.5k
                pAacDecoderChannelInfo->data.usac.fac_data_e[0], fac_length,
1140
18.5k
                frameLen, tl,
1141
18.5k
                FDKgetWindowSlope(
1142
18.5k
                    fr, GetWindowShape(&pAacDecoderChannelInfo->icsInfo)),
1143
18.5k
                fr, A, A_exp, &pAacDecoderStaticChannelInfo->acelp,
1144
18.5k
                (FIXP_DBL)0, /* FAC gain has already been applied. */
1145
18.5k
                (last_frame_lost || !frameOk), 1,
1146
18.5k
                pAacDecoderStaticChannelInfo->last_lpd_mode, 0,
1147
18.5k
                pAacDecoderChannelInfo->currAliasingSymmetry);
1148
1149
18.5k
      } else {
1150
5.18k
#if defined(FDK_ASSERT_ENABLE)
1151
5.18k
        nSamples =
1152
5.18k
#endif
1153
5.18k
            imlt_block(
1154
5.18k
                &pAacDecoderStaticChannelInfo->IMdct, synth,
1155
5.18k
                SPEC_LONG(pAacDecoderChannelInfo->pSpectralCoefficient),
1156
5.18k
                pAacDecoderChannelInfo->specScale, nSpec, frameLen, tl,
1157
5.18k
                FDKgetWindowSlope(
1158
5.18k
                    fl, GetWindowShape(&pAacDecoderChannelInfo->icsInfo)),
1159
5.18k
                fl,
1160
5.18k
                FDKgetWindowSlope(
1161
5.18k
                    fr, GetWindowShape(&pAacDecoderChannelInfo->icsInfo)),
1162
5.18k
                fr, (FIXP_DBL)0,
1163
5.18k
                pAacDecoderChannelInfo->currAliasingSymmetry
1164
5.18k
                    ? MLT_FLAG_CURR_ALIAS_SYMMETRY
1165
5.18k
                    : 0);
1166
5.18k
      }
1167
23.6k
      FDK_ASSERT(nSamples == frameLen);
1168
1169
      /* The "if" clause is entered both for fullbandLpd mono and
1170
       * non-fullbandLpd*. The "else"-> just for fullbandLpd stereo*/
1171
23.6k
      if (!(elFlags & AC_EL_LPDSTEREOIDX)) {
1172
23.6k
        FDKmemcpy(pitch, pAacDecoderStaticChannelInfo->old_T_pf,
1173
23.6k
                  SynSfd * sizeof(INT));
1174
23.6k
        FDKmemcpy(pit_gain, pAacDecoderStaticChannelInfo->old_gain_pf,
1175
23.6k
                  SynSfd * sizeof(FIXP_DBL));
1176
1177
118k
        for (int i = SynSfd; i < LpdSfd + 3; i++) {
1178
94.7k
          pitch[i] = L_SUBFR;
1179
94.7k
          pit_gain[i] = (FIXP_DBL)0;
1180
94.7k
        }
1181
1182
23.6k
        if (pAacDecoderStaticChannelInfo->last_lpd_mode == 0) {
1183
18.5k
          pitch[SynSfd] = pitch[SynSfd - 1];
1184
18.5k
          pit_gain[SynSfd] = pit_gain[SynSfd - 1];
1185
18.5k
          if (IsLongBlock(&pAacDecoderChannelInfo->icsInfo)) {
1186
5.28k
            pitch[SynSfd + 1] = pitch[SynSfd];
1187
5.28k
            pit_gain[SynSfd + 1] = pit_gain[SynSfd];
1188
5.28k
          }
1189
18.5k
        }
1190
1191
        /* Copy old data to the beginning of the buffer */
1192
23.6k
        {
1193
23.6k
          FDKmemcpy(
1194
23.6k
              pWorkBuffer1, pAacDecoderStaticChannelInfo->old_synth,
1195
23.6k
              ((PIT_MAX_MAX - (1 * L_SUBFR)) * fac_FB) * sizeof(FIXP_DBL));
1196
23.6k
        }
1197
1198
23.6k
        FIXP_DBL *p2_synth = pWorkBuffer1 + (PIT_MAX_MAX * fac_FB);
1199
1200
        /* recalculate pitch gain to allow postfilering on FAC area */
1201
218k
        for (int i = 0; i < SynSfd + 2; i++) {
1202
194k
          int T = pitch[i];
1203
194k
          FIXP_DBL gain = pit_gain[i];
1204
1205
194k
          if (gain > (FIXP_DBL)0) {
1206
93.5k
            gain = get_gain(&p2_synth[i * L_SUBFR * fac_FB],
1207
93.5k
                            &p2_synth[(i * L_SUBFR * fac_FB) - fac_FB * T],
1208
93.5k
                            L_SUBFR * fac_FB);
1209
93.5k
            pit_gain[i] = gain;
1210
93.5k
          }
1211
194k
        }
1212
1213
23.6k
        bass_pf_1sf_delay(p2_synth, pitch, pit_gain, frameLen,
1214
23.6k
                          (LpdSfd + 2) * L_SUBFR + BPF_SFD * L_SUBFR,
1215
23.6k
                          frameLen - (LpdSfd + 4) * L_SUBFR, outSamples,
1216
23.6k
                          aacOutDataHeadroom,
1217
23.6k
                          pAacDecoderStaticChannelInfo->mem_bpf);
1218
23.6k
      }
1219
1220
23.6k
    } else /* last_core_mode was not LPD */
1221
389k
    {
1222
389k
      FIXP_DBL *tmp =
1223
389k
          pAacDecoderChannelInfo->pComStaticData->pWorkBufferCore1->mdctOutTemp;
1224
389k
#if defined(FDK_ASSERT_ENABLE)
1225
389k
      nSamples =
1226
389k
#endif
1227
389k
          imlt_block(&pAacDecoderStaticChannelInfo->IMdct, tmp,
1228
389k
                     SPEC_LONG(pAacDecoderChannelInfo->pSpectralCoefficient),
1229
389k
                     pAacDecoderChannelInfo->specScale, nSpec, frameLen, tl,
1230
389k
                     FDKgetWindowSlope(
1231
389k
                         fl, GetWindowShape(&pAacDecoderChannelInfo->icsInfo)),
1232
389k
                     fl,
1233
389k
                     FDKgetWindowSlope(
1234
389k
                         fr, GetWindowShape(&pAacDecoderChannelInfo->icsInfo)),
1235
389k
                     fr, (FIXP_DBL)0,
1236
389k
                     pAacDecoderChannelInfo->currAliasingSymmetry
1237
389k
                         ? MLT_FLAG_CURR_ALIAS_SYMMETRY
1238
389k
                         : 0);
1239
1240
389k
      scaleValuesSaturate(outSamples, tmp, frameLen,
1241
389k
                          MDCT_OUT_HEADROOM - aacOutDataHeadroom);
1242
389k
    }
1243
412k
  }
1244
1245
412k
  FDK_ASSERT(nSamples == frameLen);
1246
1247
412k
  pAacDecoderStaticChannelInfo->last_core_mode =
1248
412k
      (pAacDecoderChannelInfo->icsInfo.WindowSequence == BLOCK_SHORT) ? FD_SHORT
1249
412k
                                                                      : FD_LONG;
1250
412k
  pAacDecoderStaticChannelInfo->last_lpd_mode = 255;
1251
412k
}
1252
1253
#include "ldfiltbank.h"
1254
void CBlock_FrequencyToTimeLowDelay(
1255
    CAacDecoderStaticChannelInfo *pAacDecoderStaticChannelInfo,
1256
    CAacDecoderChannelInfo *pAacDecoderChannelInfo, PCM_DEC outSamples[],
1257
301k
    const short frameLen) {
1258
301k
  InvMdctTransformLowDelay_fdk(
1259
301k
      SPEC_LONG(pAacDecoderChannelInfo->pSpectralCoefficient),
1260
301k
      pAacDecoderChannelInfo->specScale[0], outSamples,
1261
301k
      pAacDecoderStaticChannelInfo->pOverlapBuffer, frameLen);
1262
301k
}