Coverage Report

Created: 2026-09-01 07:17

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/src/aac/libSACdec/src/sac_process.cpp
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/* -----------------------------------------------------------------------------
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Software License for The Fraunhofer FDK AAC Codec Library for Android
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© Copyright  1995 - 2021 Fraunhofer-Gesellschaft zur Förderung der angewandten
5
Forschung e.V. All rights reserved.
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7
 1.    INTRODUCTION
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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
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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.
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34
2.    COPYRIGHT LICENSE
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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.
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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
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amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
94
95
/*********************** MPEG surround decoder library *************************
96
97
   Author(s):
98
99
   Description: SAC Processing
100
101
*******************************************************************************/
102
103
/* data structures and interfaces for spatial audio reference software */
104
#include "sac_process.h"
105
106
#include "sac_bitdec.h"
107
#include "sac_calcM1andM2.h"
108
#include "sac_smoothing.h"
109
#include "sac_rom.h"
110
111
#include "sac_dec_errorcodes.h"
112
113
#include "FDK_trigFcts.h"
114
#include "FDK_decorrelate.h"
115
116
61.8M
#define SAC_DEC_APPLY_M2_SCALE(spec, s) ((spec) >> (-(s)))
117
118
/**
119
 * \brief  Linear interpolation between two parameter values.
120
 *         a*alpha + b*(1-alpha)
121
 *       = a*alpha + b - b*alpha
122
 *
123
 * \param alpha               Weighting factor.
124
 * \param a                   Parameter a.
125
 * \param b                   Parameter b.
126
 *
127
 * \return Interpolated parameter value.
128
 */
129
FDK_INLINE FIXP_DBL interpolateParameter(const FIXP_SGL alpha, const FIXP_DBL a,
130
141M
                                         const FIXP_DBL b) {
131
141M
  return (b - fMult(alpha, b) + fMult(alpha, a));
132
141M
}
133
134
/**
135
 * \brief Map MPEG Surround channel indices to MPEG 4 PCE like channel indices.
136
 * \param self Spatial decoder handle.
137
 * \param ch MPEG Surround channel index.
138
 * \return MPEG 4 PCE style channel index, corresponding to the given MPEG
139
 * Surround channel index.
140
 */
141
6.44M
static UINT mapChannel(spatialDec *self, UINT ch) {
142
6.44M
  static const UCHAR chanelIdx[][8] = {
143
6.44M
      {0, 1, 2, 3, 4, 5, 6, 7}, /*  binaural, TREE_212, arbitrary tree */
144
6.44M
  };
145
146
6.44M
  int idx = 0;
147
148
6.44M
  return (chanelIdx[idx][ch]);
149
6.44M
}
150
151
69.8k
FIXP_DBL getChGain(spatialDec *self, UINT ch, INT *scale) {
152
  /* init no gain modifier */
153
69.8k
  FIXP_DBL gain = 0x80000000;
154
69.8k
  *scale = 0;
155
156
69.8k
  if ((!isTwoChMode(self->upmixType)) &&
157
69.8k
      (self->upmixType != UPMIXTYPE_BYPASS)) {
158
69.8k
    if ((ch == 0) || (ch == 1) || (ch == 2)) {
159
      /* no modifier */
160
69.8k
    }
161
69.8k
  }
162
163
69.8k
  return gain;
164
69.8k
}
165
166
SACDEC_ERROR SpatialDecQMFAnalysis(spatialDec *self, const PCM_MPS *inData,
167
                                   const INT ts, const INT bypassMode,
168
                                   FIXP_DBL **qmfReal, FIXP_DBL **qmfImag,
169
886k
                                   const int numInputChannels) {
170
886k
  SACDEC_ERROR err = MPS_OK;
171
886k
  int ch, offset;
172
173
886k
  offset = self->pQmfDomain->globalConf.nBandsSynthesis *
174
886k
           self->pQmfDomain->globalConf.nQmfTimeSlots;
175
176
886k
  {
177
1.77M
    for (ch = 0; ch < numInputChannels; ch++) {
178
886k
      const PCM_MPS *inSamples =
179
886k
          &inData[ts * self->pQmfDomain->globalConf.nBandsAnalysis];
180
886k
      FIXP_DBL *pQmfRealAnalysis = qmfReal[ch]; /* no delay in blind mode */
181
886k
      FIXP_DBL *pQmfImagAnalysis = qmfImag[ch];
182
183
886k
      CalculateSpaceAnalysisQmf(&self->pQmfDomain->QmfDomainIn[ch].fb,
184
886k
                                inSamples + (ch * offset), pQmfRealAnalysis,
185
886k
                                pQmfImagAnalysis);
186
187
886k
      if (!isTwoChMode(self->upmixType) && !bypassMode) {
188
886k
        int i;
189
22.5M
        for (i = 0; i < self->qmfBands; i++) {
190
21.6M
          qmfReal[ch][i] = fMult(
191
21.6M
              scaleValueSaturate(qmfReal[ch][i], self->sacInDataHeadroom - (1)),
192
21.6M
              self->clipProtectGain__FDK);
193
21.6M
          qmfImag[ch][i] = fMult(
194
21.6M
              scaleValueSaturate(qmfImag[ch][i], self->sacInDataHeadroom - (1)),
195
21.6M
              self->clipProtectGain__FDK);
196
21.6M
        }
197
886k
      }
198
886k
    }
199
886k
  }
200
201
886k
  self->qmfInputDelayBufPos =
202
886k
      (self->qmfInputDelayBufPos + 1) % self->pc_filterdelay;
203
204
886k
  return err;
205
886k
}
206
207
SACDEC_ERROR SpatialDecFeedQMF(spatialDec *self, FIXP_DBL **qmfInDataReal,
208
                               FIXP_DBL **qmfInDataImag, const INT ts,
209
                               const INT bypassMode, FIXP_DBL **qmfReal__FDK,
210
                               FIXP_DBL **qmfImag__FDK,
211
2.33M
                               const INT numInputChannels) {
212
2.33M
  SACDEC_ERROR err = MPS_OK;
213
2.33M
  int ch;
214
215
2.33M
  {
216
4.67M
    for (ch = 0; ch < numInputChannels; ch++) {
217
2.33M
      FIXP_DBL *pQmfRealAnalysis =
218
2.33M
          qmfReal__FDK[ch]; /* no delay in blind mode */
219
2.33M
      FIXP_DBL *pQmfImagAnalysis = qmfImag__FDK[ch];
220
221
      /* Write Input data to pQmfRealAnalysis. */
222
2.33M
      if (self->bShareDelayWithSBR) {
223
2.32M
        FDK_QmfDomain_GetSlot(&self->pQmfDomain->QmfDomainIn[ch],
224
2.32M
                              ts + HYBRID_FILTER_DELAY, 0,
225
2.32M
                              MAX_QMF_BANDS_TO_HYBRID, pQmfRealAnalysis,
226
2.32M
                              pQmfImagAnalysis, 15 + (1));
227
2.32M
        FDK_QmfDomain_GetSlot(&self->pQmfDomain->QmfDomainIn[ch], ts,
228
2.32M
                              MAX_QMF_BANDS_TO_HYBRID, self->qmfBands,
229
2.32M
                              pQmfRealAnalysis, pQmfImagAnalysis, 15 + (1));
230
2.32M
      } else {
231
14.4k
        FDK_QmfDomain_GetSlot(&self->pQmfDomain->QmfDomainIn[ch], ts, 0,
232
14.4k
                              self->qmfBands, pQmfRealAnalysis,
233
14.4k
                              pQmfImagAnalysis, 15 + (1));
234
14.4k
      }
235
2.33M
      if (ts == self->pQmfDomain->globalConf.nQmfTimeSlots - 1) {
236
        /* Is currently also needed in case we dont have any overlap. We need to
237
         * save lb_scale to ov_lb_scale */
238
72.6k
        FDK_QmfDomain_SaveOverlap(&self->pQmfDomain->QmfDomainIn[ch], 0);
239
72.6k
      }
240
241
      /* Apply clip protection to output. */
242
2.33M
      if (!isTwoChMode(self->upmixType) && !bypassMode) {
243
2.33M
        int i;
244
151M
        for (i = 0; i < self->qmfBands; i++) {
245
149M
          qmfReal__FDK[ch][i] =
246
149M
              fMult(qmfReal__FDK[ch][i], self->clipProtectGain__FDK);
247
149M
          qmfImag__FDK[ch][i] =
248
149M
              fMult(qmfImag__FDK[ch][i], self->clipProtectGain__FDK);
249
149M
        }
250
2.33M
      }
251
252
2.33M
    } /* End of loop over numInputChannels */
253
2.33M
  }
254
255
2.33M
  self->qmfInputDelayBufPos =
256
2.33M
      (self->qmfInputDelayBufPos + 1) % self->pc_filterdelay;
257
258
2.33M
  return err;
259
2.33M
}
260
261
/*******************************************************************************
262
 Functionname: SpatialDecHybridAnalysis
263
 *******************************************************************************
264
265
 Description:
266
267
 Arguments:
268
269
 Input:
270
  float** pointers[4] leftReal, leftIm, rightReal, rightIm
271
272
 Output:
273
  float self->qmfInputReal[MAX_INPUT_CHANNELS][MAX_TIME_SLOTS][MAX_QMF_BANDS];
274
  float self->qmfInputImag[MAX_INPUT_CHANNELS][MAX_TIME_SLOTS][MAX_QMF_BANDS];
275
276
  float
277
self->hybInputReal[MAX_INPUT_CHANNELS][MAX_TIME_SLOTS][MAX_HYBRID_BANDS]; float
278
self->hybInputImag[MAX_INPUT_CHANNELS][MAX_TIME_SLOTS][MAX_HYBRID_BANDS];
279
280
281
*******************************************************************************/
282
SACDEC_ERROR SpatialDecHybridAnalysis(spatialDec *self, FIXP_DBL **qmfInputReal,
283
                                      FIXP_DBL **qmfInputImag,
284
                                      FIXP_DBL **hybOutputReal,
285
                                      FIXP_DBL **hybOutputImag, const INT ts,
286
3.22M
                                      const INT numInputChannels) {
287
3.22M
  SACDEC_ERROR err = MPS_OK;
288
3.22M
  int ch;
289
290
6.44M
  for (ch = 0; ch < numInputChannels;
291
3.22M
       ch++) /* hybrid filtering for down-mix signals */
292
3.22M
  {
293
3.22M
    if (self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_LD) {
294
365k
      int k;
295
      /* No hybrid filtering. Just copy the QMF data. */
296
12.6M
      for (k = 0; k < self->hybridBands; k += 1) {
297
12.2M
        hybOutputReal[ch][k] = qmfInputReal[ch][k];
298
12.2M
        hybOutputImag[ch][k] = qmfInputImag[ch][k];
299
12.2M
      }
300
2.85M
    } else {
301
2.85M
      self->hybridAnalysis[ch].hfMode = self->bShareDelayWithSBR;
302
303
2.85M
      if (self->stereoConfigIndex == 3)
304
2.85M
        FDK_ASSERT(self->hybridAnalysis[ch].hfMode == 0);
305
2.85M
      FDKhybridAnalysisApply(&self->hybridAnalysis[ch], qmfInputReal[ch],
306
2.85M
                             qmfInputImag[ch], hybOutputReal[ch],
307
2.85M
                             hybOutputImag[ch]);
308
2.85M
    }
309
3.22M
  }
310
311
3.22M
  if ((self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_USAC) &&
312
2.85M
      self->residualCoding) {
313
623k
    self->hybridAnalysis[numInputChannels].hfMode = 0;
314
623k
    FDKhybridAnalysisApply(
315
623k
        &self->hybridAnalysis[numInputChannels],
316
623k
        self->qmfResidualReal__FDK[0][0], self->qmfResidualImag__FDK[0][0],
317
623k
        self->hybResidualReal__FDK[0], self->hybResidualImag__FDK[0]);
318
623k
  }
319
320
3.22M
  return err;
321
3.22M
}
322
323
SACDEC_ERROR SpatialDecCreateX(spatialDec *self, FIXP_DBL **hybInputReal,
324
                               FIXP_DBL **hybInputImag, FIXP_DBL **pxReal,
325
3.22M
                               FIXP_DBL **pxImag) {
326
3.22M
  SACDEC_ERROR err = MPS_OK;
327
3.22M
  int row;
328
329
  /* Creating wDry */
330
6.44M
  for (row = 0; row < self->numInputChannels; row++) {
331
    /* pointer to direct signals */
332
3.22M
    pxReal[row] = hybInputReal[row];
333
3.22M
    pxImag[row] = hybInputImag[row];
334
3.22M
  }
335
336
3.22M
  return err;
337
3.22M
}
338
339
static void M2ParamToKernelMult(FIXP_SGL *RESTRICT pKernel,
340
                                FIXP_DBL *RESTRICT Mparam,
341
                                FIXP_DBL *RESTRICT MparamPrev,
342
                                int *RESTRICT pWidth, FIXP_SGL alpha__FDK,
343
11.1M
                                int nBands) {
344
11.1M
  int pb;
345
346
124M
  for (pb = 0; pb < nBands; pb++) {
347
113M
    FIXP_SGL tmp = FX_DBL2FX_SGL(
348
113M
        interpolateParameter(alpha__FDK, Mparam[pb], MparamPrev[pb]));
349
350
113M
    int i = pWidth[pb];
351
113M
    if (i & 1) *pKernel++ = tmp;
352
113M
    if (i & 2) {
353
48.3M
      *pKernel++ = tmp;
354
48.3M
      *pKernel++ = tmp;
355
48.3M
    }
356
250M
    for (i >>= 2; i--;) {
357
136M
      *pKernel++ = tmp;
358
136M
      *pKernel++ = tmp;
359
136M
      *pKernel++ = tmp;
360
136M
      *pKernel++ = tmp;
361
136M
    }
362
113M
  }
363
11.1M
}
364
365
SACDEC_ERROR SpatialDecApplyM1_CreateW_Mode212(
366
    spatialDec *self, const SPATIAL_BS_FRAME *frame, FIXP_DBL **xReal,
367
3.22M
    FIXP_DBL **xImag, FIXP_DBL **vReal, FIXP_DBL **vImag) {
368
3.22M
  SACDEC_ERROR err = MPS_OK;
369
3.22M
  int res;
370
3.22M
  FIXP_DBL *decorrInReal = vReal[0];
371
3.22M
  FIXP_DBL *decorrInImag = vImag[0];
372
373
  /* M1 does not do anything in 212 mode, so use simplified processing */
374
3.22M
  FDK_ASSERT(self->numVChannels == 2);
375
3.22M
  FDK_ASSERT(self->numDirektSignals == 1);
376
3.22M
  FDK_ASSERT(self->numDecorSignals == 1);
377
3.22M
  FDKmemcpy(vReal[0], xReal[0], self->hybridBands * sizeof(FIXP_DBL));
378
3.22M
  FDKmemcpy(vImag[0], xImag[0], self->hybridBands * sizeof(FIXP_DBL));
379
380
3.22M
  if (isTsdActive(frame->TsdData)) {
381
    /* Generate v_{x,nonTr} as input for allpass based decorrelator */
382
22.8k
    TsdGenerateNonTr(self->hybridBands, frame->TsdData, self->TsdTs, vReal[0],
383
22.8k
                     vImag[0], vReal[1], vImag[1], &decorrInReal,
384
22.8k
                     &decorrInImag);
385
22.8k
  }
386
  /* - Decorrelate */
387
3.22M
  res = SpatialDecGetResidualIndex(self, 1);
388
3.22M
  if (FDKdecorrelateApply(&self->apDecor[0], decorrInReal, decorrInImag,
389
3.22M
                          vReal[1], vImag[1],
390
3.22M
                          self->param2hyb[self->residualBands[res]])) {
391
0
    return MPS_NOTOK;
392
0
  }
393
3.22M
  if (isTsdActive(frame->TsdData)) {
394
    /* Generate v_{x,Tr}, apply transient decorrelator and add to allpass based
395
     * decorrelator output */
396
22.8k
    TsdApply(self->hybridBands, frame->TsdData, &self->TsdTs,
397
22.8k
             vReal[0], /* input: v_x */
398
22.8k
             vImag[0],
399
22.8k
             vReal[1], /* input: d_{x,nonTr}; output: d_{x,nonTr} + d_{x,Tr} */
400
22.8k
             vImag[1]);
401
22.8k
  }
402
403
  /* Write residual signal in approriate parameter bands */
404
3.22M
  if (self->residualBands[res] > 0) {
405
536k
    int stopBand = self->param2hyb[self->residualBands[res]];
406
536k
    FDKmemcpy(vReal[1], self->hybResidualReal__FDK[res],
407
536k
              fixMin(stopBand, self->hybridBands) * sizeof(FIXP_DBL));
408
536k
    FDKmemcpy(vImag[1], self->hybResidualImag__FDK[res],
409
536k
              fixMin(stopBand, self->hybridBands) * sizeof(FIXP_DBL));
410
536k
  } /* (self->residualBands[res]>0) */
411
412
3.22M
  return err;
413
3.22M
}
414
415
SACDEC_ERROR SpatialDecApplyM2_Mode212(spatialDec *self, INT ps,
416
                                       const FIXP_SGL alpha, FIXP_DBL **wReal,
417
                                       FIXP_DBL **wImag,
418
                                       FIXP_DBL **hybOutputRealDry,
419
442k
                                       FIXP_DBL **hybOutputImagDry) {
420
442k
  SACDEC_ERROR err = MPS_OK;
421
442k
  INT row;
422
423
442k
  INT *pWidth = self->kernels_width;
424
  /* for stereoConfigIndex == 3 case hybridBands is < 71 */
425
442k
  INT pb_max = self->kernels[self->hybridBands - 1] + 1;
426
442k
  INT max_row = self->numOutputChannels;
427
428
442k
  INT M2_exp = 0;
429
442k
  if (self->residualCoding) M2_exp = 3;
430
431
1.32M
  for (row = 0; row < max_row; row++)  // 2 times
432
885k
  {
433
885k
    FIXP_DBL *Mparam0 = self->M2Real__FDK[row][0];
434
885k
    FIXP_DBL *Mparam1 = self->M2Real__FDK[row][1];
435
885k
    FIXP_DBL *MparamPrev0 = self->M2RealPrev__FDK[row][0];
436
885k
    FIXP_DBL *MparamPrev1 = self->M2RealPrev__FDK[row][1];
437
438
885k
    FIXP_DBL *RESTRICT pHybOutRealDry = hybOutputRealDry[row];
439
885k
    FIXP_DBL *RESTRICT pHybOutImagDry = hybOutputImagDry[row];
440
441
885k
    FIXP_DBL *RESTRICT pWReal0 = wReal[0];
442
885k
    FIXP_DBL *RESTRICT pWReal1 = wReal[1];
443
885k
    FIXP_DBL *RESTRICT pWImag0 = wImag[0];
444
885k
    FIXP_DBL *RESTRICT pWImag1 = wImag[1];
445
9.01M
    for (INT pb = 0; pb < pb_max; pb++) {
446
8.12M
      FIXP_DBL tmp0, tmp1;
447
448
8.12M
      tmp0 = interpolateParameter(alpha, Mparam0[pb], MparamPrev0[pb]);
449
8.12M
      tmp1 = interpolateParameter(alpha, Mparam1[pb], MparamPrev1[pb]);
450
451
8.12M
      INT i = pWidth[pb];
452
453
8.12M
      do  // about 3-4 times
454
30.4M
      {
455
30.4M
        FIXP_DBL var0, var1, real, imag;
456
457
30.4M
        var0 = *pWReal0++;
458
30.4M
        var1 = *pWReal1++;
459
30.4M
        real = fMultDiv2(var0, tmp0);
460
30.4M
        var0 = *pWImag0++;
461
30.4M
        real = fMultAddDiv2(real, var1, tmp1);
462
30.4M
        var1 = *pWImag1++;
463
30.4M
        imag = fMultDiv2(var0, tmp0);
464
30.4M
        *pHybOutRealDry++ = real << (1 + M2_exp);
465
30.4M
        imag = fMultAddDiv2(imag, var1, tmp1);
466
30.4M
        *pHybOutImagDry++ = imag << (1 + M2_exp);
467
30.4M
      } while (--i != 0);
468
8.12M
    }
469
885k
  }
470
442k
  return err;
471
442k
}
472
473
SACDEC_ERROR SpatialDecApplyM2_Mode212_ResidualsPlusPhaseCoding(
474
    spatialDec *self, INT ps, const FIXP_SGL alpha, FIXP_DBL **wReal,
475
    FIXP_DBL **wImag, FIXP_DBL **hybOutputRealDry,
476
85.7k
    FIXP_DBL **hybOutputImagDry) {
477
85.7k
  SACDEC_ERROR err = MPS_OK;
478
85.7k
  INT row;
479
85.7k
  INT scale_param_m2;
480
85.7k
  INT *pWidth = self->kernels_width;
481
85.7k
  INT pb_max = self->kernels[self->hybridBands - 1] + 1;
482
483
85.7k
  scale_param_m2 = SCALE_PARAM_M2_212_PRED + SCALE_DATA_APPLY_M2;
484
485
257k
  for (row = 0; row < self->numM2rows; row++) {
486
171k
    INT qs, pb;
487
488
171k
    FIXP_DBL *RESTRICT pWReal0 = wReal[0];
489
171k
    FIXP_DBL *RESTRICT pWImag0 = wImag[0];
490
171k
    FIXP_DBL *RESTRICT pWReal1 = wReal[1];
491
171k
    FIXP_DBL *RESTRICT pWImag1 = wImag[1];
492
493
171k
    FIXP_DBL *MReal0 = self->M2Real__FDK[row][0];
494
171k
    FIXP_DBL *MImag0 = self->M2Imag__FDK[row][0];
495
171k
    FIXP_DBL *MReal1 = self->M2Real__FDK[row][1];
496
171k
    FIXP_DBL *MRealPrev0 = self->M2RealPrev__FDK[row][0];
497
171k
    FIXP_DBL *MImagPrev0 = self->M2ImagPrev__FDK[row][0];
498
171k
    FIXP_DBL *MRealPrev1 = self->M2RealPrev__FDK[row][1];
499
500
171k
    FIXP_DBL *RESTRICT pHybOutRealDry = hybOutputRealDry[row];
501
171k
    FIXP_DBL *RESTRICT pHybOutImagDry = hybOutputImagDry[row];
502
503
171k
    FDK_ASSERT(!(self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_LD));
504
171k
    FDK_ASSERT((pWidth[0] + pWidth[1]) >= 3);
505
506
514k
    for (pb = 0, qs = 3; pb < 2; pb++) {
507
342k
      INT s;
508
342k
      FIXP_DBL maxVal;
509
342k
      FIXP_DBL mReal1;
510
342k
      FIXP_DBL mReal0, mImag0;
511
342k
      FIXP_DBL iReal0, iImag0, iReal1;
512
513
342k
      iReal0 = interpolateParameter(alpha, MReal0[pb], MRealPrev0[pb]);
514
342k
      iImag0 = -interpolateParameter(alpha, MImag0[pb], MImagPrev0[pb]);
515
342k
      iReal1 = interpolateParameter(alpha, MReal1[pb], MRealPrev1[pb]);
516
517
342k
      maxVal = fAbs(iReal0) | fAbs(iImag0);
518
342k
      maxVal |= fAbs(iReal1);
519
520
342k
      s = fMin(CntLeadingZeros(maxVal) - 2, scale_param_m2);
521
522
342k
      mReal0 = scaleValue(iReal0, s);
523
342k
      mImag0 = scaleValue(iImag0, s);
524
342k
      mReal1 = scaleValue(iReal1, s);
525
526
342k
      s = scale_param_m2 - s;
527
528
342k
      INT i = pWidth[pb];
529
530
1.06M
      do {
531
1.06M
        FIXP_DBL real, imag, wReal0, wImag0, wReal1, wImag1;
532
533
1.06M
        wReal0 = *pWReal0++;
534
1.06M
        wImag0 = *pWImag0++;
535
1.06M
        wReal1 = *pWReal1++;
536
1.06M
        wImag1 = *pWImag1++;
537
538
1.06M
        cplxMultDiv2(&real, &imag, wReal0, wImag0, mReal0, mImag0);
539
540
1.06M
        *pHybOutRealDry++ = fMultAddDiv2(real, wReal1, mReal1) << s;
541
1.06M
        *pHybOutImagDry++ = fMultAddDiv2(imag, wImag1, mReal1) << s;
542
543
1.06M
        if (qs > 0) {
544
514k
          mImag0 = -mImag0;
545
514k
          qs--;
546
514k
        }
547
1.06M
      } while (--i != 0);
548
342k
    }
549
550
2.07M
    for (; pb < pb_max; pb++) {
551
1.90M
      INT s;
552
1.90M
      FIXP_DBL maxVal;
553
1.90M
      FIXP_SGL mReal1;
554
1.90M
      FIXP_SGL mReal0, mImag0;
555
1.90M
      FIXP_DBL iReal0, iImag0, iReal1;
556
557
1.90M
      iReal0 = interpolateParameter(alpha, MReal0[pb], MRealPrev0[pb]);
558
1.90M
      iImag0 = interpolateParameter(alpha, MImag0[pb], MImagPrev0[pb]);
559
1.90M
      iReal1 = interpolateParameter(alpha, MReal1[pb], MRealPrev1[pb]);
560
561
1.90M
      maxVal = fAbs(iReal0) | fAbs(iImag0);
562
1.90M
      maxVal |= fAbs(iReal1);
563
564
1.90M
      s = fMin(CntLeadingZeros(maxVal) - 2, scale_param_m2);
565
566
1.90M
      mReal0 = FX_DBL2FX_SGL(scaleValue(iReal0, s));
567
1.90M
      mImag0 = FX_DBL2FX_SGL(scaleValue(iImag0, s));
568
1.90M
      mReal1 = FX_DBL2FX_SGL(scaleValue(iReal1, s));
569
570
1.90M
      s = scale_param_m2 - s;
571
572
1.90M
      INT i = pWidth[pb];
573
574
5.59M
      do {
575
5.59M
        FIXP_DBL real, imag, wReal0, wImag0, wReal1, wImag1;
576
577
5.59M
        wReal0 = *pWReal0++;
578
5.59M
        wImag0 = *pWImag0++;
579
5.59M
        wReal1 = *pWReal1++;
580
5.59M
        wImag1 = *pWImag1++;
581
582
5.59M
        cplxMultDiv2(&real, &imag, wReal0, wImag0, mReal0, mImag0);
583
584
5.59M
        *pHybOutRealDry++ = fMultAddDiv2(real, wReal1, mReal1) << s;
585
5.59M
        *pHybOutImagDry++ = fMultAddDiv2(imag, wImag1, mReal1) << s;
586
5.59M
      } while (--i != 0);
587
1.90M
    }
588
171k
  }
589
590
85.7k
  return err;
591
85.7k
}
592
593
SACDEC_ERROR SpatialDecApplyM2(spatialDec *self, INT ps, const FIXP_SGL alpha,
594
                               FIXP_DBL **wReal, FIXP_DBL **wImag,
595
                               FIXP_DBL **hybOutputRealDry,
596
                               FIXP_DBL **hybOutputImagDry,
597
                               FIXP_DBL **hybOutputRealWet,
598
2.69M
                               FIXP_DBL **hybOutputImagWet) {
599
2.69M
  SACDEC_ERROR err = MPS_OK;
600
601
2.69M
  {
602
2.69M
    int qs, row, col;
603
2.69M
    int complexHybBands;
604
2.69M
    int complexParBands;
605
2.69M
    int scale_param_m2 = 0;
606
2.69M
    int toolsDisabled;
607
608
2.69M
    UCHAR activParamBands;
609
2.69M
    FIXP_DBL *RESTRICT pWReal, *RESTRICT pWImag, *RESTRICT pHybOutRealDry,
610
2.69M
        *RESTRICT pHybOutImagDry, *RESTRICT pHybOutRealWet,
611
2.69M
        *RESTRICT pHybOutImagWet;
612
2.69M
    C_ALLOC_SCRATCH_START(pKernel, FIXP_SGL, MAX_HYBRID_BANDS);
613
614
    /* The wet signal is added to the dry signal directly in applyM2 if GES and
615
     * STP are disabled */
616
2.69M
    toolsDisabled =
617
2.69M
        ((self->tempShapeConfig == 1) || (self->tempShapeConfig == 2)) ? 0 : 1;
618
619
2.69M
    {
620
2.69M
      complexHybBands = self->hybridBands;
621
2.69M
      complexParBands = self->numParameterBands;
622
2.69M
    }
623
624
2.69M
    FDKmemclear(hybOutputImagDry[0],
625
2.69M
                self->createParams.maxNumOutputChannels *
626
2.69M
                    self->createParams.maxNumCmplxHybBands * sizeof(FIXP_DBL));
627
2.69M
    FDKmemclear(hybOutputRealDry[0], self->createParams.maxNumOutputChannels *
628
2.69M
                                         self->createParams.maxNumHybridBands *
629
2.69M
                                         sizeof(FIXP_DBL));
630
631
2.69M
    if (!toolsDisabled) {
632
2.60M
      FDKmemclear(hybOutputRealWet[0],
633
2.60M
                  self->createParams.maxNumOutputChannels *
634
2.60M
                      self->createParams.maxNumHybridBands * sizeof(FIXP_DBL));
635
2.60M
      FDKmemclear(hybOutputImagWet[0],
636
2.60M
                  self->createParams.maxNumOutputChannels *
637
2.60M
                      self->createParams.maxNumCmplxHybBands *
638
2.60M
                      sizeof(FIXP_DBL));
639
2.60M
    }
640
641
2.69M
    if (self->phaseCoding == 3) {
642
80.0k
      scale_param_m2 = -(SCALE_DATA_APPLY_M2_PC - 1);
643
80.0k
    }
644
645
8.08M
    for (row = 0; row < self->numM2rows; row++) {
646
5.39M
      pHybOutRealDry = hybOutputRealDry[row];
647
5.39M
      pHybOutImagDry = hybOutputImagDry[row];
648
649
5.39M
      if (toolsDisabled) {
650
173k
        pHybOutRealWet = hybOutputRealDry[row];
651
173k
        pHybOutImagWet = hybOutputImagDry[row];
652
5.21M
      } else {
653
5.21M
        pHybOutRealWet = hybOutputRealWet[row];
654
5.21M
        pHybOutImagWet = hybOutputImagWet[row];
655
5.21M
      }
656
657
10.7M
      for (col = 0; col < self->numDirektSignals; col++) {
658
5.39M
        if (self->pActivM2ParamBands ==
659
5.39M
            0) { /* default setting, calculate all rows and columns */
660
5.39M
          activParamBands = 1;
661
5.39M
        } else {
662
0
          if (self->pActivM2ParamBands[MAX_M2_INPUT * row +
663
0
                                       col]) /* table with activ and inactiv
664
                                                bands exists for current
665
                                                configuration */
666
0
            activParamBands = 1;
667
0
          else
668
0
            activParamBands = 0;
669
0
        }
670
5.39M
        if (activParamBands) {
671
5.39M
          pWReal = wReal[col];
672
5.39M
          pWImag = wImag[col];
673
674
5.39M
          M2ParamToKernelMult(pKernel, self->M2Real__FDK[row][col],
675
5.39M
                              self->M2RealPrev__FDK[row][col],
676
5.39M
                              self->kernels_width, alpha,
677
5.39M
                              self->numParameterBands);
678
679
5.39M
          if (1 && (self->phaseCoding != 3)) {
680
            /* direct signals */
681
5.23M
            {
682
              /* only one sample will be assigned to each row, hence
683
               * accumulation is not neccessary; that is valid for all
684
               * configurations */
685
342M
              for (qs = 0; qs < complexHybBands; qs++) {
686
337M
                pHybOutRealDry[qs] = fMult(pWReal[qs], pKernel[qs]);
687
337M
                pHybOutImagDry[qs] = fMult(pWImag[qs], pKernel[qs]);
688
337M
              }
689
5.23M
            }
690
5.23M
          } else { /*  isBinauralMode(self->upmixType)  */
691
692
7.89M
            for (qs = 0; qs < complexHybBands; qs++) {
693
7.73M
              pHybOutRealDry[qs] += SAC_DEC_APPLY_M2_SCALE(
694
7.73M
                  fMultDiv2(pWReal[qs], pKernel[qs]), scale_param_m2);
695
7.73M
              pHybOutImagDry[qs] += SAC_DEC_APPLY_M2_SCALE(
696
7.73M
                  fMultDiv2(pWImag[qs], pKernel[qs]), scale_param_m2);
697
7.73M
            }
698
699
160k
            M2ParamToKernelMult(pKernel, self->M2Imag__FDK[row][col],
700
160k
                                self->M2ImagPrev__FDK[row][col],
701
160k
                                self->kernels_width, alpha, complexParBands);
702
703
            /* direct signals sign is -1 for qs = 0,2 */
704
160k
            pHybOutRealDry[0] += SAC_DEC_APPLY_M2_SCALE(
705
160k
                fMultDiv2(pWImag[0], pKernel[0]), scale_param_m2);
706
160k
            pHybOutImagDry[0] -= SAC_DEC_APPLY_M2_SCALE(
707
160k
                fMultDiv2(pWReal[0], pKernel[0]), scale_param_m2);
708
709
160k
            pHybOutRealDry[2] += SAC_DEC_APPLY_M2_SCALE(
710
160k
                fMultDiv2(pWImag[2], pKernel[2]), scale_param_m2);
711
160k
            pHybOutImagDry[2] -= SAC_DEC_APPLY_M2_SCALE(
712
160k
                fMultDiv2(pWReal[2], pKernel[2]), scale_param_m2);
713
714
            /* direct signals sign is +1 for qs = 1,3,4,5,...,complexHybBands */
715
160k
            pHybOutRealDry[1] -= SAC_DEC_APPLY_M2_SCALE(
716
160k
                fMultDiv2(pWImag[1], pKernel[1]), scale_param_m2);
717
160k
            pHybOutImagDry[1] += SAC_DEC_APPLY_M2_SCALE(
718
160k
                fMultDiv2(pWReal[1], pKernel[1]), scale_param_m2);
719
720
7.41M
            for (qs = 3; qs < complexHybBands; qs++) {
721
7.25M
              pHybOutRealDry[qs] -= SAC_DEC_APPLY_M2_SCALE(
722
7.25M
                  fMultDiv2(pWImag[qs], pKernel[qs]), scale_param_m2);
723
7.25M
              pHybOutImagDry[qs] += SAC_DEC_APPLY_M2_SCALE(
724
7.25M
                  fMultDiv2(pWReal[qs], pKernel[qs]), scale_param_m2);
725
7.25M
            }
726
160k
          } /* self->upmixType */
727
5.39M
        }   /* if (activParamBands) */
728
5.39M
      }     /* self->numDirektSignals */
729
730
10.7M
      for (; col < self->numVChannels; col++) {
731
5.39M
        if (self->pActivM2ParamBands ==
732
5.39M
            0) { /* default setting, calculate all rows and columns */
733
5.39M
          activParamBands = 1;
734
5.39M
        } else {
735
0
          if (self->pActivM2ParamBands[MAX_M2_INPUT * row +
736
0
                                       col]) /* table with activ and inactiv
737
                                                bands exists for current
738
                                                configuration */
739
0
            activParamBands = 1;
740
0
          else
741
0
            activParamBands = 0;
742
0
        }
743
744
5.39M
        if (activParamBands) {
745
5.39M
          int resBandIndex;
746
5.39M
          int resHybIndex;
747
748
5.39M
          resBandIndex =
749
5.39M
              self->residualBands[SpatialDecGetResidualIndex(self, col)];
750
5.39M
          resHybIndex = self->param2hyb[resBandIndex];
751
752
5.39M
          pWReal = wReal[col];
753
5.39M
          pWImag = wImag[col];
754
755
5.39M
          M2ParamToKernelMult(pKernel, self->M2Real__FDK[row][col],
756
5.39M
                              self->M2RealPrev__FDK[row][col],
757
5.39M
                              self->kernels_width, alpha,
758
5.39M
                              self->numParameterBands);
759
760
5.39M
          if (1 && (self->phaseCoding != 3)) {
761
            /* residual signals */
762
6.74M
            for (qs = 0; qs < resHybIndex; qs++) {
763
1.51M
              pHybOutRealDry[qs] += fMult(pWReal[qs], pKernel[qs]);
764
1.51M
              pHybOutImagDry[qs] += fMult(pWImag[qs], pKernel[qs]);
765
1.51M
            }
766
            /* decor signals */
767
340M
            for (; qs < complexHybBands; qs++) {
768
335M
              pHybOutRealWet[qs] += fMult(pWReal[qs], pKernel[qs]);
769
335M
              pHybOutImagWet[qs] += fMult(pWImag[qs], pKernel[qs]);
770
335M
            }
771
5.23M
          } else { /* self->upmixType */
772
            /* residual signals */
773
160k
            FIXP_DBL *RESTRICT pHybOutReal;
774
160k
            FIXP_DBL *RESTRICT pHybOutImag;
775
776
1.17M
            for (qs = 0; qs < resHybIndex; qs++) {
777
1.01M
              pHybOutRealDry[qs] += SAC_DEC_APPLY_M2_SCALE(
778
1.01M
                  fMultDiv2(pWReal[qs], pKernel[qs]), scale_param_m2);
779
1.01M
              pHybOutImagDry[qs] += SAC_DEC_APPLY_M2_SCALE(
780
1.01M
                  fMultDiv2(pWImag[qs], pKernel[qs]), scale_param_m2);
781
1.01M
            }
782
            /* decor signals */
783
6.88M
            for (; qs < complexHybBands; qs++) {
784
6.72M
              pHybOutRealWet[qs] += SAC_DEC_APPLY_M2_SCALE(
785
6.72M
                  fMultDiv2(pWReal[qs], pKernel[qs]), scale_param_m2);
786
6.72M
              pHybOutImagWet[qs] += SAC_DEC_APPLY_M2_SCALE(
787
6.72M
                  fMultDiv2(pWImag[qs], pKernel[qs]), scale_param_m2);
788
6.72M
            }
789
790
160k
            M2ParamToKernelMult(pKernel, self->M2Imag__FDK[row][col],
791
160k
                                self->M2ImagPrev__FDK[row][col],
792
160k
                                self->kernels_width, alpha, complexParBands);
793
794
            /* direct signals sign is -1 for qs = 0,2 */
795
            /* direct signals sign is +1 for qs = 1,3.. */
796
160k
            if (toolsDisabled) {
797
0
              pHybOutRealDry[0] += SAC_DEC_APPLY_M2_SCALE(
798
0
                  fMultDiv2(pWImag[0], pKernel[0]), scale_param_m2);
799
0
              pHybOutImagDry[0] -= SAC_DEC_APPLY_M2_SCALE(
800
0
                  fMultDiv2(pWReal[0], pKernel[0]), scale_param_m2);
801
802
0
              pHybOutRealDry[1] -= SAC_DEC_APPLY_M2_SCALE(
803
0
                  fMultDiv2(pWImag[1], pKernel[1]), scale_param_m2);
804
0
              pHybOutImagDry[1] += SAC_DEC_APPLY_M2_SCALE(
805
0
                  fMultDiv2(pWReal[1], pKernel[1]), scale_param_m2);
806
807
0
              pHybOutRealDry[2] += SAC_DEC_APPLY_M2_SCALE(
808
0
                  fMultDiv2(pWImag[2], pKernel[2]), scale_param_m2);
809
0
              pHybOutImagDry[2] -= SAC_DEC_APPLY_M2_SCALE(
810
0
                  fMultDiv2(pWReal[2], pKernel[2]), scale_param_m2);
811
160k
            } else {
812
160k
              pHybOutReal = &pHybOutRealDry[0];
813
160k
              pHybOutImag = &pHybOutImagDry[0];
814
160k
              if (0 == resHybIndex) {
815
105k
                pHybOutReal = &pHybOutRealWet[0];
816
105k
                pHybOutImag = &pHybOutImagWet[0];
817
105k
              }
818
160k
              pHybOutReal[0] += SAC_DEC_APPLY_M2_SCALE(
819
160k
                  fMultDiv2(pWImag[0], pKernel[0]), scale_param_m2);
820
160k
              pHybOutImag[0] -= SAC_DEC_APPLY_M2_SCALE(
821
160k
                  fMultDiv2(pWReal[0], pKernel[0]), scale_param_m2);
822
823
160k
              if (1 == resHybIndex) {
824
0
                pHybOutReal = &pHybOutRealWet[0];
825
0
                pHybOutImag = &pHybOutImagWet[0];
826
0
              }
827
160k
              pHybOutReal[1] -= SAC_DEC_APPLY_M2_SCALE(
828
160k
                  fMultDiv2(pWImag[1], pKernel[1]), scale_param_m2);
829
160k
              pHybOutImag[1] += SAC_DEC_APPLY_M2_SCALE(
830
160k
                  fMultDiv2(pWReal[1], pKernel[1]), scale_param_m2);
831
832
160k
              if (2 == resHybIndex) {
833
6.33k
                pHybOutReal = &pHybOutRealWet[0];
834
6.33k
                pHybOutImag = &pHybOutImagWet[0];
835
6.33k
              }
836
160k
              pHybOutReal[2] += SAC_DEC_APPLY_M2_SCALE(
837
160k
                  fMultDiv2(pWImag[2], pKernel[2]), scale_param_m2);
838
160k
              pHybOutImag[2] -= SAC_DEC_APPLY_M2_SCALE(
839
160k
                  fMultDiv2(pWReal[2], pKernel[2]), scale_param_m2);
840
160k
            }
841
842
1.01M
            for (qs = 3; qs < resHybIndex; qs++) {
843
859k
              pHybOutRealDry[qs] -= SAC_DEC_APPLY_M2_SCALE(
844
859k
                  fMultDiv2(pWImag[qs], pKernel[qs]), scale_param_m2);
845
859k
              pHybOutImagDry[qs] += SAC_DEC_APPLY_M2_SCALE(
846
859k
                  fMultDiv2(pWReal[qs], pKernel[qs]), scale_param_m2);
847
859k
            }
848
            /* decor signals */
849
6.55M
            for (; qs < complexHybBands; qs++) {
850
6.39M
              pHybOutRealWet[qs] -= SAC_DEC_APPLY_M2_SCALE(
851
6.39M
                  fMultDiv2(pWImag[qs], pKernel[qs]), scale_param_m2);
852
6.39M
              pHybOutImagWet[qs] += SAC_DEC_APPLY_M2_SCALE(
853
6.39M
                  fMultDiv2(pWReal[qs], pKernel[qs]), scale_param_m2);
854
6.39M
            }
855
160k
          } /* self->upmixType */
856
5.39M
        }   /* if (activParamBands) { */
857
5.39M
      }     /*  self->numVChannels */
858
859
5.39M
      if (self->phaseCoding == 3) {
860
160k
        scaleValuesSaturate(pHybOutRealDry, complexHybBands,
861
160k
                            SCALE_PARAM_M2_212_PRED + SCALE_DATA_APPLY_M2_PC);
862
160k
        scaleValuesSaturate(pHybOutImagDry, complexHybBands,
863
160k
                            SCALE_PARAM_M2_212_PRED + SCALE_DATA_APPLY_M2_PC);
864
865
160k
        if (!toolsDisabled) {
866
160k
          scaleValuesSaturate(pHybOutRealWet, complexHybBands,
867
160k
                              SCALE_PARAM_M2_212_PRED + SCALE_DATA_APPLY_M2_PC);
868
160k
          scaleValuesSaturate(pHybOutImagWet, complexHybBands,
869
160k
                              SCALE_PARAM_M2_212_PRED + SCALE_DATA_APPLY_M2_PC);
870
160k
        }
871
160k
      }
872
5.39M
    }
873
874
2.69M
    C_ALLOC_SCRATCH_END(pKernel, FIXP_SGL, MAX_HYBRID_BANDS);
875
2.69M
  }
876
877
2.69M
  return err;
878
2.69M
}
879
880
SACDEC_ERROR SpatialDecSynthesis(spatialDec *self, const INT ts,
881
                                 FIXP_DBL **hybOutputReal,
882
                                 FIXP_DBL **hybOutputImag, PCM_MPS *timeOut,
883
                                 const INT numInputChannels,
884
3.22M
                                 const FDK_channelMapDescr *const mapDescr) {
885
3.22M
  SACDEC_ERROR err = MPS_OK;
886
887
3.22M
  int ch;
888
3.22M
  int stride, offset;
889
890
3.22M
  stride = self->numOutputChannelsAT;
891
3.22M
  offset = 1;
892
893
3.22M
  PCM_MPS *pTimeOut__FDK =
894
3.22M
      &timeOut[stride * self->pQmfDomain->globalConf.nBandsSynthesis * ts];
895
3.22M
  C_ALLOC_SCRATCH_START(pQmfReal, FIXP_DBL, QMF_MAX_SYNTHESIS_BANDS);
896
3.22M
  C_ALLOC_SCRATCH_START(pQmfImag, FIXP_DBL, QMF_MAX_SYNTHESIS_BANDS);
897
898
9.67M
  for (ch = 0; ch < self->numOutputChannelsAT; ch++) {
899
6.44M
    if (self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_LD) {
900
731k
      int k;
901
      /* No hybrid filtering. Just copy the QMF data. */
902
25.3M
      for (k = 0; k < self->hybridBands; k += 1) {
903
24.5M
        pQmfReal[k] = hybOutputReal[ch][k];
904
24.5M
        pQmfImag[k] = hybOutputImag[ch][k];
905
24.5M
      }
906
5.71M
    } else {
907
5.71M
      FDKhybridSynthesisApply(&self->hybridSynthesis[ch], hybOutputReal[ch],
908
5.71M
                              hybOutputImag[ch], pQmfReal, pQmfImag);
909
5.71M
    }
910
911
    /* Map channel indices from MPEG Surround -> PCE style -> channelMapping[]
912
     */
913
6.44M
    FDK_ASSERT(self->numOutputChannelsAT <= 6);
914
6.44M
    int outCh = FDK_chMapDescr_getMapValue(mapDescr, mapChannel(self, ch),
915
6.44M
                                           self->numOutputChannelsAT);
916
917
6.44M
    {
918
6.44M
      if (self->stereoConfigIndex == 3) {
919
        /* MPS -> SBR */
920
1.07M
        int i;
921
1.07M
        FIXP_DBL *pWorkBufReal, *pWorkBufImag;
922
1.07M
        FDK_ASSERT((self->pQmfDomain->QmfDomainOut[outCh].fb.outGain_m ==
923
1.07M
                    (FIXP_DBL)0x80000000) &&
924
1.07M
                   (self->pQmfDomain->QmfDomainOut[outCh].fb.outGain_e == 0));
925
1.07M
        FDK_QmfDomain_GetWorkBuffer(&self->pQmfDomain->QmfDomainIn[outCh], ts,
926
1.07M
                                    &pWorkBufReal, &pWorkBufImag);
927
1.07M
        FDK_ASSERT(self->qmfBands <=
928
1.07M
                   self->pQmfDomain->QmfDomainIn[outCh].workBuf_nBands);
929
21.3M
        for (i = 0; i < self->qmfBands; i++) {
930
20.2M
          pWorkBufReal[i] = pQmfReal[i];
931
20.2M
          pWorkBufImag[i] = pQmfImag[i];
932
20.2M
        }
933
1.07M
        self->pQmfDomain->QmfDomainIn[outCh].scaling.lb_scale =
934
1.07M
            -7; /*-ALGORITHMIC_SCALING_IN_ANALYSIS_FILTERBANK;*/
935
1.07M
        self->pQmfDomain->QmfDomainIn[outCh].scaling.lb_scale -=
936
1.07M
            self->pQmfDomain->QmfDomainIn[outCh].fb.filterScale;
937
1.07M
        self->pQmfDomain->QmfDomainIn[outCh].scaling.lb_scale -=
938
1.07M
            self->clipProtectGainSF__FDK;
939
940
1.07M
        self->pQmfDomain->QmfDomainIn[outCh].scaling.lb_scale -= (1);
941
5.37M
      } else {
942
        /* Call the QMF synthesis for dry. */
943
5.37M
        err = CalculateSpaceSynthesisQmf(&self->pQmfDomain->QmfDomainOut[outCh],
944
5.37M
                                         pQmfReal, pQmfImag, stride,
945
5.37M
                                         pTimeOut__FDK + (offset * outCh));
946
5.37M
      }
947
6.44M
      if (err != MPS_OK) goto bail;
948
6.44M
    }
949
6.44M
  } /* ch loop */
950
951
3.22M
bail:
952
3.22M
  C_ALLOC_SCRATCH_END(pQmfImag, FIXP_DBL, QMF_MAX_SYNTHESIS_BANDS);
953
3.22M
  C_ALLOC_SCRATCH_END(pQmfReal, FIXP_DBL, QMF_MAX_SYNTHESIS_BANDS);
954
955
3.22M
  return err;
956
3.22M
}
957
958
136k
void SpatialDecBufferMatrices(spatialDec *self) {
959
136k
  int row, col;
960
136k
  int complexParBands;
961
136k
  complexParBands = self->numParameterBands;
962
963
  /*
964
    buffer matrices M2
965
  */
966
409k
  for (row = 0; row < self->numM2rows; row++) {
967
819k
    for (col = 0; col < self->numVChannels; col++) {
968
546k
      FDKmemcpy(self->M2RealPrev__FDK[row][col], self->M2Real__FDK[row][col],
969
546k
                self->numParameterBands * sizeof(FIXP_DBL));
970
546k
      if (0 || (self->phaseCoding == 3)) {
971
25.9k
        FDKmemcpy(self->M2ImagPrev__FDK[row][col], self->M2Imag__FDK[row][col],
972
25.9k
                  complexParBands * sizeof(FIXP_DBL));
973
25.9k
      }
974
546k
    }
975
273k
  }
976
977
  /* buffer phase */
978
136k
  FDKmemcpy(self->PhasePrevLeft__FDK, self->PhaseLeft__FDK,
979
136k
            self->numParameterBands * sizeof(FIXP_DBL));
980
136k
  FDKmemcpy(self->PhasePrevRight__FDK, self->PhaseRight__FDK,
981
136k
            self->numParameterBands * sizeof(FIXP_DBL));
982
136k
}
983
984
66.8M
#define PHASE_SCALE 2
985
986
#ifndef P_PI
987
#define P_PI 3.1415926535897932
988
#endif
989
990
/* For better precision, PI (pi_x2) is already doubled */
991
static FIXP_DBL interp_angle__FDK(FIXP_DBL angle1, FIXP_DBL angle2,
992
4.69M
                                  FIXP_SGL alpha, FIXP_DBL pi_x2) {
993
4.69M
  if (angle2 - angle1 > (pi_x2 >> 1)) angle2 -= pi_x2;
994
995
4.69M
  if (angle1 - angle2 > (pi_x2 >> 1)) angle1 -= pi_x2;
996
997
4.69M
  return interpolateParameter(alpha, angle2, angle1);
998
4.69M
}
999
1000
/*
1001
 *
1002
 */
1003
void SpatialDecApplyPhase(spatialDec *self, FIXP_SGL alpha__FDK,
1004
235k
                          int lastSlotOfParamSet) {
1005
235k
  int pb, qs;
1006
235k
  FIXP_DBL ppb[MAX_PARAMETER_BANDS *
1007
235k
               4]; /* left real, imag - right real, imag interleaved */
1008
1009
235k
  const FIXP_DBL pi_x2 = PIx2__IPD;
1010
2.58M
  for (pb = 0; pb < self->numParameterBands; pb++) {
1011
2.34M
    FIXP_DBL pl, pr;
1012
1013
2.34M
    pl = interp_angle__FDK(self->PhasePrevLeft__FDK[pb],
1014
2.34M
                           self->PhaseLeft__FDK[pb], alpha__FDK, pi_x2);
1015
2.34M
    pr = interp_angle__FDK(self->PhasePrevRight__FDK[pb],
1016
2.34M
                           self->PhaseRight__FDK[pb], alpha__FDK, pi_x2);
1017
1018
2.34M
    inline_fixp_cos_sin(pl, pr, IPD_SCALE, &ppb[4 * pb]);
1019
2.34M
  }
1020
1021
  /* sign is -1 for qs = 0,2 and +1 for qs = 1 */
1022
1023
235k
  const SCHAR *kernels = &self->kernels[0];
1024
1025
235k
  FIXP_DBL *Dry_real0 = &self->hybOutputRealDry__FDK[0][0];
1026
235k
  FIXP_DBL *Dry_imag0 = &self->hybOutputImagDry__FDK[0][0];
1027
235k
  FIXP_DBL *Dry_real1 = &self->hybOutputRealDry__FDK[1][0];
1028
235k
  FIXP_DBL *Dry_imag1 = &self->hybOutputImagDry__FDK[1][0];
1029
1030
941k
  for (qs = 2; qs >= 0; qs--) {
1031
706k
    FIXP_DBL out_re, out_im;
1032
1033
706k
    pb = *kernels++;
1034
706k
    if (qs == 1) /* sign[qs] >= 0 */
1035
235k
    {
1036
235k
      cplxMultDiv2(&out_re, &out_im, *Dry_real0, *Dry_imag0, ppb[4 * pb + 0],
1037
235k
                   ppb[4 * pb + 1]);
1038
235k
      out_re <<= PHASE_SCALE - 1;
1039
235k
      out_im <<= PHASE_SCALE - 1;
1040
235k
      *Dry_real0++ = out_re;
1041
235k
      *Dry_imag0++ = out_im;
1042
1043
235k
      cplxMultDiv2(&out_re, &out_im, *Dry_real1, *Dry_imag1, ppb[4 * pb + 2],
1044
235k
                   ppb[4 * pb + 3]);
1045
235k
      out_re <<= PHASE_SCALE - 1;
1046
235k
      out_im <<= PHASE_SCALE - 1;
1047
235k
      *Dry_real1++ = out_re;
1048
235k
      *Dry_imag1++ = out_im;
1049
470k
    } else {
1050
470k
      cplxMultDiv2(&out_re, &out_im, *Dry_real0, *Dry_imag0, ppb[4 * pb + 0],
1051
470k
                   -ppb[4 * pb + 1]);
1052
470k
      out_re <<= PHASE_SCALE - 1;
1053
470k
      out_im <<= PHASE_SCALE - 1;
1054
470k
      *Dry_real0++ = out_re;
1055
470k
      *Dry_imag0++ = out_im;
1056
1057
470k
      cplxMultDiv2(&out_re, &out_im, *Dry_real1, *Dry_imag1, ppb[4 * pb + 2],
1058
470k
                   -ppb[4 * pb + 3]);
1059
470k
      out_re <<= PHASE_SCALE - 1;
1060
470k
      out_im <<= PHASE_SCALE - 1;
1061
470k
      *Dry_real1++ = out_re;
1062
470k
      *Dry_imag1++ = out_im;
1063
470k
    }
1064
706k
  }
1065
1066
  /* sign is +1 for qs >=3 */
1067
16.2M
  for (qs = self->hybridBands - 3; qs--;) {
1068
16.0M
    FIXP_DBL out_re, out_im;
1069
1070
16.0M
    pb = *kernels++;
1071
16.0M
    cplxMultDiv2(&out_re, &out_im, *Dry_real0, *Dry_imag0, ppb[4 * pb + 0],
1072
16.0M
                 ppb[4 * pb + 1]);
1073
16.0M
    out_re <<= PHASE_SCALE - 1;
1074
16.0M
    out_im <<= PHASE_SCALE - 1;
1075
16.0M
    *Dry_real0++ = out_re;
1076
16.0M
    *Dry_imag0++ = out_im;
1077
1078
16.0M
    cplxMultDiv2(&out_re, &out_im, *Dry_real1, *Dry_imag1, ppb[4 * pb + 2],
1079
16.0M
                 ppb[4 * pb + 3]);
1080
16.0M
    out_re <<= PHASE_SCALE - 1;
1081
16.0M
    out_im <<= PHASE_SCALE - 1;
1082
16.0M
    *Dry_real1++ = out_re;
1083
16.0M
    *Dry_imag1++ = out_im;
1084
16.0M
  }
1085
235k
}