Coverage Report

Created: 2025-07-11 06:50

/src/aac/libSACdec/src/sac_dec.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 - 2020 Fraunhofer-Gesellschaft zur Förderung der angewandten
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Forschung e.V. All rights reserved.
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 1.    INTRODUCTION
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The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
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that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
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scheme for digital audio. This FDK AAC Codec software is intended to be used on
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a wide variety of Android devices.
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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
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full-bandwidth communications codec by independent studies and is widely
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deployed. AAC has been standardized by ISO and IEC as part of the MPEG
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specifications.
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Patent licenses for necessary patent claims for the FDK AAC Codec (including
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those of Fraunhofer) may be obtained through Via Licensing
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(www.vialicensing.com) or through the respective patent owners individually for
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the purpose of encoding or decoding bit streams in products that are compliant
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with the ISO/IEC MPEG audio standards. Please note that most manufacturers of
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Android devices already license these patent claims through Via Licensing or
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directly from the patent owners, and therefore FDK AAC Codec software may
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already be covered under those patent licenses when it is used for those
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licensed purposes only.
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Commercially-licensed AAC software libraries, including floating-point versions
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with enhanced sound quality, are also available from Fraunhofer. Users are
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encouraged to check the Fraunhofer website for additional applications
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information and documentation.
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2.    COPYRIGHT LICENSE
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Redistribution and use in source and binary forms, with or without modification,
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are permitted without payment of copyright license fees provided that you
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satisfy the following conditions:
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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.
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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
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your modifications thereto in binary form. You must make available free of
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charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
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The name of Fraunhofer may not be used to endorse or promote products derived
50
from this library without prior written permission.
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You may not charge copyright license fees for anyone to use, copy or distribute
53
the FDK AAC Codec software or your modifications thereto.
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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"
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must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
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AAC Codec Library for Android."
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3.    NO PATENT LICENSE
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NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
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limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
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Fraunhofer provides no warranty of patent non-infringement with respect to this
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software.
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You may use this FDK AAC Codec software or modifications thereto only for
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purposes that are authorized by appropriate patent licenses.
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4.    DISCLAIMER
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This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
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holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
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including but not limited to the implied warranties of merchantability and
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fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
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CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
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or consequential damages, including but not limited to procurement of substitute
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goods or services; loss of use, data, or profits, or business interruption,
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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
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this software, even if advised of the possibility of such damage.
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5.    CONTACT INFORMATION
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Fraunhofer Institute for Integrated Circuits IIS
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Attention: Audio and Multimedia Departments - FDK AAC LL
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Am Wolfsmantel 33
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91058 Erlangen, Germany
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www.iis.fraunhofer.de/amm
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amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
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/*********************** MPEG surround decoder library *************************
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   Author(s):
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   Description: SAC Decoder Library
100
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*******************************************************************************/
102
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#include "sac_dec_errorcodes.h"
104
#include "sac_dec.h"
105
106
#include "sac_process.h"
107
#include "sac_bitdec.h"
108
#include "sac_smoothing.h"
109
#include "sac_calcM1andM2.h"
110
#include "sac_reshapeBBEnv.h"
111
#include "sac_stp.h"
112
#include "sac_rom.h"
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#include "FDK_decorrelate.h"
115
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#include "FDK_trigFcts.h"
117
#include "FDK_matrixCalloc.h"
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/* static int pbStrideTable[] = {1, 2, 5, 28}; see sac_rom.cpp */
120
121
enum {
122
  APPLY_M2_NONE = 0,    /* init value */
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  APPLY_M2 = 1,         /* apply m2 fallback implementation */
124
  APPLY_M2_MODE212 = 2, /* apply m2 for 212 mode */
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  APPLY_M2_MODE212_Res_PhaseCoding =
126
      3 /* apply m2 for 212 mode with residuals and phase coding */
127
};
128
129
/******************************************************************************************/
130
/* function: FDK_SpatialDecInitDefaultSpatialSpecificConfig */
131
/* output:   struct of type SPATIAL_SPECIFIC_CONFIG */
132
/* input:    core coder audio object type */
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/* input:    nr of core channels */
134
/* input:    sampling rate */
135
/* input:    nr of time slots */
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/* input:    decoder level */
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/* input:    flag indicating upmix type blind */
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/*                                                                                        */
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/* returns:  error code */
140
/******************************************************************************************/
141
int FDK_SpatialDecInitDefaultSpatialSpecificConfig(
142
    SPATIAL_SPECIFIC_CONFIG *pSpatialSpecificConfig,
143
    AUDIO_OBJECT_TYPE coreCodec, int coreChannels, int samplingFreq,
144
0
    int nTimeSlots, int decoderLevel, int isBlind) {
145
0
  return SpatialDecDefaultSpecificConfig(pSpatialSpecificConfig, coreCodec,
146
0
                                         samplingFreq, nTimeSlots, decoderLevel,
147
0
                                         isBlind, coreChannels);
148
0
}
149
150
/******************************************************************************************/
151
/* function: FDK_SpatialDecCompareSpatialSpecificConfigHeader */
152
/* input:    2 pointers to a ssc */
153
/*                                                                                        */
154
/* output:   - */
155
/* returns:  error code (0 = equal, <>0 unequal) */
156
/******************************************************************************************/
157
int FDK_SpatialDecCompareSpatialSpecificConfigHeader(
158
0
    SPATIAL_SPECIFIC_CONFIG *pSsc1, SPATIAL_SPECIFIC_CONFIG *pSsc2) {
159
0
  int result = MPS_OK;
160
161
  /* we assume: every bit must be equal */
162
0
  if (FDKmemcmp(pSsc1, pSsc2, sizeof(SPATIAL_SPECIFIC_CONFIG)) != 0) {
163
0
    result = MPS_UNEQUAL_SSC;
164
0
  }
165
0
  return result;
166
0
}
167
168
/*******************************************************************************
169
 Functionname: SpatialDecClearFrameData
170
 *******************************************************************************
171
172
 Description: Clear/Fake frame data to avoid misconfiguration and allow proper
173
              error concealment.
174
 Arguments:
175
 Input:       self (frame data)
176
 Output:      No return value.
177
178
*******************************************************************************/
179
static void SpatialDecClearFrameData(
180
    spatialDec *self, /* Shall be removed */
181
0
    SPATIAL_BS_FRAME *bsFrame, const SACDEC_CREATION_PARAMS *const setup) {
182
0
  int i;
183
184
0
  FDK_ASSERT(self != NULL);
185
0
  FDK_ASSERT(bsFrame != NULL);
186
0
  FDK_ASSERT(setup != NULL);
187
188
  /* do not apply shaping tools (GES or STP) */
189
0
  for (i = 0; i < setup->maxNumOutputChannels;
190
0
       i += 1) { /* MAX_OUTPUT_CHANNELS */
191
0
    bsFrame->tempShapeEnableChannelSTP[i] = 0;
192
0
    bsFrame->tempShapeEnableChannelGES[i] = 0;
193
0
  }
194
195
0
  bsFrame->TsdData->bsTsdEnable = 0;
196
197
  /* use only 1 parameter set at the end of the frame */
198
0
  bsFrame->numParameterSets = 1;
199
0
  bsFrame->paramSlot[0] = self->timeSlots - 1;
200
201
  /* parameter smoothing tool set to off */
202
0
  bsFrame->bsSmoothMode[0] = 0;
203
0
  initParameterSmoothing(self);
204
205
  /* reset residual data */
206
0
  {
207
0
    int resQmfBands, resTimeSlots = (1);
208
209
0
    resQmfBands = setup->maxNumQmfBands;
210
211
0
    for (i = 0; i < setup->bProcResidual
212
0
                    ? fMin(setup->maxNumResChannels,
213
0
                           setup->maxNumOttBoxes + setup->maxNumInputChannels)
214
0
                    : 0;
215
0
         i += 1) {
216
0
      for (int j = 0; j < resTimeSlots; j += 1) {
217
0
        for (int k = 0; k < resQmfBands; k += 1) {
218
0
          self->qmfResidualReal__FDK[i][j][k] = FL2FXCONST_DBL(0.0f);
219
0
          self->qmfResidualImag__FDK[i][j][k] = FL2FXCONST_DBL(0.0f);
220
0
        }
221
0
      }
222
0
    }
223
0
  }
224
225
0
  return;
226
0
}
227
228
/*******************************************************************************
229
 Functionname: FDK_SpatialDecOpen
230
 *******************************************************************************
231
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 Description:
233
234
 Arguments:
235
236
 Return:
237
238
*******************************************************************************/
239
spatialDec *FDK_SpatialDecOpen(const SPATIAL_DEC_CONFIG *config,
240
0
                               int stereoConfigIndex) {
241
0
  int i;
242
0
  int lfSize, hfSize;
243
0
  spatialDec *self = NULL;
244
0
  SACDEC_CREATION_PARAMS setup;
245
246
0
  switch (config->decoderLevel) {
247
0
    case DECODER_LEVEL_0: /* 212 maxNumOutputChannels== 2 */
248
0
      setup.maxNumInputChannels = 1;
249
0
      setup.maxNumOutputChannels = 2;
250
0
      setup.maxNumQmfBands = 64;
251
0
      setup.maxNumXChannels = 2;
252
0
      setup.maxNumVChannels = 2;
253
0
      setup.maxNumDecorChannels = 1;
254
0
      setup.bProcResidual = 1;
255
0
      setup.maxNumResidualChannels = 0;
256
0
      setup.maxNumOttBoxes = 1;
257
0
      setup.maxNumParams = setup.maxNumInputChannels + setup.maxNumOttBoxes;
258
0
      break;
259
0
    default:
260
0
      return NULL;
261
0
  }
262
263
0
  setup.maxNumResChannels = 1;
264
265
0
  {
266
0
    switch (config->maxNumOutputChannels) {
267
0
      case OUTPUT_CHANNELS_2_0:
268
0
        setup.maxNumOutputChannels = fMin(setup.maxNumOutputChannels, 2);
269
0
        break;
270
0
      case OUTPUT_CHANNELS_DEFAULT:
271
0
      default:
272
0
        break;
273
0
    }
274
0
  }
275
276
0
  setup.maxNumHybridBands = SacGetHybridSubbands(setup.maxNumQmfBands);
277
278
0
  switch (config->decoderMode) {
279
0
    case EXT_HQ_ONLY:
280
0
      setup.maxNumCmplxQmfBands = setup.maxNumQmfBands;
281
0
      setup.maxNumCmplxHybBands = setup.maxNumHybridBands;
282
0
      break;
283
0
    default:
284
0
      setup.maxNumCmplxQmfBands = fixMax(PC_NUM_BANDS, setup.maxNumQmfBands);
285
0
      setup.maxNumCmplxHybBands =
286
0
          fixMax(PC_NUM_HYB_BANDS, setup.maxNumHybridBands);
287
0
      break;
288
0
  } /* switch config->decoderMode */
289
290
0
  FDK_ALLOCATE_MEMORY_1D_INT(self, 1, spatialDec, SECT_DATA_L2)
291
292
0
  self->createParams = setup;
293
294
0
  FDK_ALLOCATE_MEMORY_1D(self->param2hyb, MAX_PARAMETER_BANDS + 1, int)
295
296
0
  FDK_ALLOCATE_MEMORY_1D(self->numOttBands, setup.maxNumOttBoxes, int)
297
298
  /* allocate arrays */
299
300
0
  FDK_ALLOCATE_MEMORY_1D(self->smgTime, MAX_PARAMETER_SETS, int)
301
0
  FDK_ALLOCATE_MEMORY_2D(self->smgData, MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS,
302
0
                         UCHAR)
303
304
0
  FDK_ALLOCATE_MEMORY_3D(self->ottCLD__FDK, setup.maxNumOttBoxes,
305
0
                         MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS, SCHAR)
306
0
  FDK_ALLOCATE_MEMORY_3D(self->ottICC__FDK, setup.maxNumOttBoxes,
307
0
                         MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS, SCHAR)
308
0
  FDK_ALLOCATE_MEMORY_3D(self->ottIPD__FDK, setup.maxNumOttBoxes,
309
0
                         MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS, SCHAR)
310
311
  /* Last parameters from prev frame */
312
0
  FDK_ALLOCATE_MEMORY_2D(self->ottCLDidxPrev, setup.maxNumOttBoxes,
313
0
                         MAX_PARAMETER_BANDS, SCHAR)
314
0
  FDK_ALLOCATE_MEMORY_2D(self->ottICCidxPrev, setup.maxNumOttBoxes,
315
0
                         MAX_PARAMETER_BANDS, SCHAR)
316
0
  FDK_ALLOCATE_MEMORY_3D(self->ottICCdiffidx, setup.maxNumOttBoxes,
317
0
                         MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS, SCHAR)
318
0
  FDK_ALLOCATE_MEMORY_2D(self->ottIPDidxPrev, setup.maxNumOttBoxes,
319
0
                         MAX_PARAMETER_BANDS, SCHAR)
320
0
  FDK_ALLOCATE_MEMORY_2D(self->arbdmxGainIdxPrev, setup.maxNumInputChannels,
321
0
                         MAX_PARAMETER_BANDS, SCHAR)
322
0
  FDK_ALLOCATE_MEMORY_2D(self->cmpOttCLDidxPrev, setup.maxNumOttBoxes,
323
0
                         MAX_PARAMETER_BANDS, SCHAR)
324
0
  FDK_ALLOCATE_MEMORY_2D(self->cmpOttICCidxPrev, setup.maxNumOttBoxes,
325
0
                         MAX_PARAMETER_BANDS, SCHAR)
326
0
  FDK_ALLOCATE_MEMORY_3D(self->outIdxData, setup.maxNumOttBoxes,
327
0
                         MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS, SCHAR)
328
329
0
  FDK_ALLOCATE_MEMORY_3D(self->arbdmxGain__FDK, setup.maxNumInputChannels,
330
0
                         MAX_PARAMETER_SETS, MAX_PARAMETER_BANDS, SCHAR)
331
0
  FDK_ALLOCATE_MEMORY_1D(self->arbdmxAlpha__FDK, setup.maxNumInputChannels,
332
0
                         FIXP_DBL)
333
0
  FDK_ALLOCATE_MEMORY_1D(self->arbdmxAlphaPrev__FDK, setup.maxNumInputChannels,
334
0
                         FIXP_DBL)
335
0
  FDK_ALLOCATE_MEMORY_2D(self->cmpArbdmxGainIdxPrev, setup.maxNumInputChannels,
336
0
                         MAX_PARAMETER_BANDS, SCHAR)
337
338
0
  FDK_ALLOCATE_MEMORY_2D(self->cmpOttIPDidxPrev, setup.maxNumOttBoxes,
339
0
                         MAX_PARAMETER_BANDS, SCHAR)
340
341
0
  FDK_ALLOCATE_MEMORY_3D_INT(self->M2Real__FDK, setup.maxNumOutputChannels,
342
0
                             setup.maxNumVChannels, MAX_PARAMETER_BANDS,
343
0
                             FIXP_DBL, SECT_DATA_L2)
344
0
  FDK_ALLOCATE_MEMORY_3D(self->M2Imag__FDK, setup.maxNumOutputChannels,
345
0
                         setup.maxNumVChannels, MAX_PARAMETER_BANDS, FIXP_DBL)
346
347
0
  FDK_ALLOCATE_MEMORY_3D_INT(self->M2RealPrev__FDK, setup.maxNumOutputChannels,
348
0
                             setup.maxNumVChannels, MAX_PARAMETER_BANDS,
349
0
                             FIXP_DBL, SECT_DATA_L2)
350
0
  FDK_ALLOCATE_MEMORY_3D(self->M2ImagPrev__FDK, setup.maxNumOutputChannels,
351
0
                         setup.maxNumVChannels, MAX_PARAMETER_BANDS, FIXP_DBL)
352
353
0
  FDK_ALLOCATE_MEMORY_2D_INT_ALIGNED(
354
0
      self->qmfInputReal__FDK, setup.maxNumInputChannels, setup.maxNumQmfBands,
355
0
      FIXP_DBL, SECT_DATA_L2)
356
0
  FDK_ALLOCATE_MEMORY_2D_INT_ALIGNED(
357
0
      self->qmfInputImag__FDK, setup.maxNumInputChannels,
358
0
      setup.maxNumCmplxQmfBands, FIXP_DBL, SECT_DATA_L2)
359
360
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->hybInputReal__FDK, setup.maxNumInputChannels,
361
0
                             setup.maxNumHybridBands, FIXP_DBL, SECT_DATA_L2)
362
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->hybInputImag__FDK, setup.maxNumInputChannels,
363
0
                             setup.maxNumCmplxHybBands, FIXP_DBL, SECT_DATA_L2)
364
365
0
  if (setup.bProcResidual) {
366
0
    FDK_ALLOCATE_MEMORY_1D(self->qmfResidualReal__FDK, setup.maxNumResChannels,
367
0
                           FIXP_DBL **)
368
0
    FDK_ALLOCATE_MEMORY_1D(self->qmfResidualImag__FDK, setup.maxNumResChannels,
369
0
                           FIXP_DBL **)
370
371
0
    FDK_ALLOCATE_MEMORY_1D(self->hybResidualReal__FDK, setup.maxNumResChannels,
372
0
                           FIXP_DBL *)
373
0
    FDK_ALLOCATE_MEMORY_1D(self->hybResidualImag__FDK, setup.maxNumResChannels,
374
0
                           FIXP_DBL *)
375
376
0
    for (i = 0; i < setup.maxNumResChannels; i++) {
377
0
      int resQmfBands = (config->decoderMode == EXT_LP_ONLY)
378
0
                            ? PC_NUM_BANDS
379
0
                            : setup.maxNumQmfBands;
380
0
      int resHybBands = (config->decoderMode == EXT_LP_ONLY)
381
0
                            ? PC_NUM_HYB_BANDS
382
0
                            : setup.maxNumHybridBands;
383
      /* Alignment is needed for USAC residuals because QMF analysis directly
384
       * writes to this buffer. */
385
0
      FDK_ALLOCATE_MEMORY_2D_INT_ALIGNED(self->qmfResidualReal__FDK[i], (1),
386
0
                                         resQmfBands, FIXP_DBL, SECT_DATA_L1)
387
0
      FDK_ALLOCATE_MEMORY_2D_INT_ALIGNED(self->qmfResidualImag__FDK[i], (1),
388
0
                                         resQmfBands, FIXP_DBL, SECT_DATA_L1)
389
390
0
      FDK_ALLOCATE_MEMORY_1D(self->hybResidualReal__FDK[i],
391
0
                             setup.maxNumHybridBands, FIXP_DBL)
392
0
      FDK_ALLOCATE_MEMORY_1D(self->hybResidualImag__FDK[i], resHybBands,
393
0
                             FIXP_DBL)
394
0
    }
395
0
  } /* if (setup.bProcResidual) */
396
397
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->wReal__FDK, setup.maxNumVChannels,
398
0
                             setup.maxNumHybridBands, FIXP_DBL, SECT_DATA_L2)
399
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->wImag__FDK, setup.maxNumVChannels,
400
0
                             setup.maxNumCmplxHybBands, FIXP_DBL, SECT_DATA_L2)
401
402
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->hybOutputRealDry__FDK,
403
0
                             setup.maxNumOutputChannels,
404
0
                             setup.maxNumHybridBands, FIXP_DBL, SECT_DATA_L2)
405
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->hybOutputImagDry__FDK,
406
0
                             setup.maxNumOutputChannels,
407
0
                             setup.maxNumCmplxHybBands, FIXP_DBL, SECT_DATA_L2)
408
409
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->hybOutputRealWet__FDK,
410
0
                             setup.maxNumOutputChannels,
411
0
                             setup.maxNumHybridBands, FIXP_DBL, SECT_DATA_L2)
412
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->hybOutputImagWet__FDK,
413
0
                             setup.maxNumOutputChannels,
414
0
                             setup.maxNumCmplxHybBands, FIXP_DBL, SECT_DATA_L2)
415
416
0
  FDK_ALLOCATE_MEMORY_1D(self->hybridSynthesis, setup.maxNumOutputChannels,
417
0
                         FDK_SYN_HYB_FILTER)
418
419
0
  FDK_ALLOCATE_MEMORY_1D(
420
0
      self->hybridAnalysis,
421
0
      setup.bProcResidual ? setup.maxNumInputChannels + setup.maxNumResChannels
422
0
                          : setup.maxNumInputChannels,
423
0
      FDK_ANA_HYB_FILTER)
424
425
0
  lfSize = 2 * BUFFER_LEN_LF * MAX_QMF_BANDS_TO_HYBRID;
426
0
  {
427
0
    hfSize =
428
0
        BUFFER_LEN_HF * ((setup.maxNumQmfBands - MAX_QMF_BANDS_TO_HYBRID) +
429
0
                         (setup.maxNumCmplxQmfBands - MAX_QMF_BANDS_TO_HYBRID));
430
0
  }
431
432
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->pHybridAnaStatesLFdmx,
433
0
                             setup.maxNumInputChannels, lfSize, FIXP_DBL,
434
0
                             SECT_DATA_L2) {
435
0
    FDK_ALLOCATE_MEMORY_2D(self->pHybridAnaStatesHFdmx,
436
0
                           setup.maxNumInputChannels, hfSize, FIXP_DBL)
437
0
  }
438
439
0
  for (i = 0; i < setup.maxNumInputChannels; i++) {
440
0
    FIXP_DBL *pHybridAnaStatesHFdmx;
441
442
0
    pHybridAnaStatesHFdmx = self->pHybridAnaStatesHFdmx[i];
443
444
0
    FDKhybridAnalysisOpen(&self->hybridAnalysis[i],
445
0
                          self->pHybridAnaStatesLFdmx[i],
446
0
                          lfSize * sizeof(FIXP_DBL), pHybridAnaStatesHFdmx,
447
0
                          hfSize * sizeof(FIXP_DBL));
448
0
  }
449
0
  if (setup.bProcResidual) {
450
0
    lfSize = 2 * BUFFER_LEN_LF * MAX_QMF_BANDS_TO_HYBRID;
451
0
    hfSize = BUFFER_LEN_HF *
452
0
             ((((config->decoderMode == EXT_LP_ONLY) ? PC_NUM_BANDS
453
0
                                                     : setup.maxNumQmfBands) -
454
0
               MAX_QMF_BANDS_TO_HYBRID) +
455
0
              (setup.maxNumCmplxQmfBands - MAX_QMF_BANDS_TO_HYBRID));
456
457
0
    FDK_ALLOCATE_MEMORY_2D_INT(self->pHybridAnaStatesLFres,
458
0
                               setup.maxNumResChannels, lfSize, FIXP_DBL,
459
0
                               SECT_DATA_L2)
460
0
    FDK_ALLOCATE_MEMORY_2D(self->pHybridAnaStatesHFres, setup.maxNumResChannels,
461
0
                           hfSize, FIXP_DBL)
462
463
0
    for (i = setup.maxNumInputChannels;
464
0
         i < (setup.maxNumInputChannels + setup.maxNumResChannels); i++) {
465
0
      FDKhybridAnalysisOpen(
466
0
          &self->hybridAnalysis[i],
467
0
          self->pHybridAnaStatesLFres[i - setup.maxNumInputChannels],
468
0
          lfSize * sizeof(FIXP_DBL),
469
0
          self->pHybridAnaStatesHFres[i - setup.maxNumInputChannels],
470
0
          hfSize * sizeof(FIXP_DBL));
471
0
    }
472
0
  }
473
474
0
  FDK_ALLOCATE_MEMORY_1D(self->smoothState, 1, SMOOTHING_STATE)
475
0
  FDK_ALLOCATE_MEMORY_1D(self->reshapeBBEnvState, 1, RESHAPE_BBENV_STATE)
476
477
0
  FDK_ALLOCATE_MEMORY_1D(self->apDecor, setup.maxNumDecorChannels, DECORR_DEC)
478
0
  FDK_ALLOCATE_MEMORY_2D_INT(self->pDecorBufferCplx, setup.maxNumDecorChannels,
479
0
                             (2 * ((825) + (373))), FIXP_DBL, SECT_DATA_L2)
480
481
0
  for (i = 0; i < setup.maxNumDecorChannels; i++) {
482
0
    if (FDKdecorrelateOpen(&self->apDecor[i], self->pDecorBufferCplx[i],
483
0
                           (2 * ((825) + (373))))) {
484
0
      goto bail;
485
0
    }
486
0
  }
487
488
0
  if (subbandTPCreate(&self->hStpDec) != MPS_OK) {
489
0
    goto bail;
490
0
  }
491
492
  /* save general decoder configuration */
493
0
  self->decoderLevel = config->decoderLevel;
494
0
  self->decoderMode = config->decoderMode;
495
0
  self->binauralMode = config->binauralMode;
496
497
  /* preinitialize configuration */
498
0
  self->partiallyComplex = (config->decoderMode != EXT_HQ_ONLY) ? 1 : 0;
499
500
  /* Set to default state */
501
0
  SpatialDecConcealment_Init(&self->concealInfo, MPEGS_CONCEAL_RESET_ALL);
502
503
  /* Everything is fine so return the handle */
504
0
  return self;
505
506
0
bail:
507
  /* Collector for all errors.
508
     Deallocate all memory and return a invalid handle. */
509
0
  FDK_SpatialDecClose(self);
510
511
0
  return NULL;
512
0
}
513
514
/*******************************************************************************
515
 Functionname: isValidConfig
516
 *******************************************************************************
517
518
 Description: Validate if configuration is supported in present instance
519
520
 Arguments:
521
522
 Return: 1: all okay
523
         0: configuration not supported
524
*******************************************************************************/
525
static int isValidConfig(spatialDec const *const self,
526
                         const SPATIAL_DEC_UPMIX_TYPE upmixType,
527
                         SPATIALDEC_PARAM const *const pUserParams,
528
0
                         const AUDIO_OBJECT_TYPE coreAot) {
529
0
  UPMIXTYPE nUpmixType;
530
531
0
  FDK_ASSERT(self != NULL);
532
0
  FDK_ASSERT(pUserParams != NULL);
533
534
0
  nUpmixType = (UPMIXTYPE)upmixType;
535
536
0
  switch (nUpmixType) {
537
0
    case UPMIXTYPE_BYPASS: /* UPMIX_TYPE_BYPASS */
538
0
      break;
539
0
    case UPMIXTYPE_NORMAL: /* UPMIX_TYPE_NORMAL */
540
0
      break;
541
0
    default:
542
0
      return 0; /* unsupported upmixType */
543
0
  }
544
545
0
  return 1; /* upmixType supported */
546
0
}
547
548
static SACDEC_ERROR CheckLevelTreeUpmixType(
549
    const SACDEC_CREATION_PARAMS *const pCreateParams,
550
    const SPATIAL_SPECIFIC_CONFIG *const pSsc, const int decoderLevel,
551
0
    const UPMIXTYPE upmixType) {
552
0
  SACDEC_ERROR err = MPS_OK;
553
0
  int nOutputChannels, treeConfig;
554
555
0
  FDK_ASSERT(pCreateParams != NULL);
556
0
  FDK_ASSERT(pSsc != NULL);
557
558
0
  treeConfig = pSsc->treeConfig;
559
560
0
  switch (decoderLevel) {
561
0
    case 0: {
562
0
      if (treeConfig != SPATIALDEC_MODE_RSVD7) {
563
0
        err = MPS_INVALID_TREECONFIG;
564
0
        goto bail;
565
0
      }
566
0
      break;
567
0
    }
568
0
    default:
569
0
      err = MPS_INVALID_PARAMETER /* MPS_UNIMPLEMENTED */;
570
0
      goto bail;
571
0
  }
572
573
0
  switch (upmixType) {
574
0
    case UPMIXTYPE_BYPASS:
575
0
      nOutputChannels = pSsc->nInputChannels;
576
0
      break;
577
0
    default:
578
0
      nOutputChannels = pSsc->nOutputChannels;
579
0
      break;
580
0
  }
581
582
  /* Is sufficient memory allocated. */
583
0
  if ((pSsc->nInputChannels > pCreateParams->maxNumInputChannels) ||
584
0
      (nOutputChannels > pCreateParams->maxNumOutputChannels) ||
585
0
      (pSsc->nOttBoxes > pCreateParams->maxNumOttBoxes)) {
586
0
    err = MPS_INVALID_PARAMETER;
587
0
  }
588
589
0
bail:
590
0
  return err;
591
0
}
592
593
0
void SpatialDecInitParserContext(spatialDec *self) {
594
0
  int i, j;
595
596
0
  for (i = 0; i < self->createParams.maxNumOttBoxes; i += 1) {
597
0
    for (j = 0; j < MAX_PARAMETER_BANDS; j++) {
598
0
      self->ottCLDidxPrev[i][j] = 0;
599
0
      self->ottICCidxPrev[i][j] = 0;
600
0
      self->cmpOttCLDidxPrev[i][j] = 0;
601
0
      self->cmpOttICCidxPrev[i][j] = 0;
602
0
    }
603
0
  }
604
0
  for (i = 0; i < self->createParams.maxNumInputChannels; i++) {
605
0
    for (j = 0; j < MAX_PARAMETER_BANDS; j++) {
606
0
      self->arbdmxGainIdxPrev[i][j] = 0;
607
0
      self->cmpArbdmxGainIdxPrev[i][j] = 0;
608
0
    }
609
0
  }
610
0
}
611
612
/*******************************************************************************
613
 Functionname: FDK_SpatialDecInit
614
 *******************************************************************************
615
616
 Description:
617
618
 Arguments:
619
620
 Return:
621
622
*******************************************************************************/
623
624
SACDEC_ERROR FDK_SpatialDecInit(spatialDec *self, SPATIAL_BS_FRAME *frame,
625
                                SPATIAL_SPECIFIC_CONFIG *pSpatialSpecificConfig,
626
                                int nQmfBands,
627
                                SPATIAL_DEC_UPMIX_TYPE const upmixType,
628
0
                                SPATIALDEC_PARAM *pUserParams, UINT initFlags) {
629
0
  SACDEC_ERROR err = MPS_OK;
630
0
  int nCh, i, j, k;
631
0
  int maxQmfBands;
632
0
  int bypassMode = 0;
633
634
0
  self->useFDreverb = 0;
635
636
  /* check configuration parameter */
637
0
  if (!isValidConfig(self, upmixType, pUserParams,
638
0
                     pSpatialSpecificConfig->coreCodec)) {
639
0
    return MPS_INVALID_PARAMETER;
640
0
  }
641
642
  /* check tree configuration */
643
0
  err = CheckLevelTreeUpmixType(&self->createParams, pSpatialSpecificConfig,
644
0
                                self->decoderLevel, (UPMIXTYPE)upmixType);
645
0
  if (err != MPS_OK) {
646
0
    goto bail;
647
0
  }
648
649
  /* Store and update instance after all checks passed successfully: */
650
0
  self->upmixType = (UPMIXTYPE)upmixType;
651
652
0
  if (initFlags & MPEGS_INIT_PARAMS_ERROR_CONCEALMENT) { /* At least one error
653
                                                            concealment
654
                                                            parameter changed */
655
0
    err = SpatialDecConcealment_SetParam(
656
0
        &self->concealInfo, SAC_DEC_CONCEAL_METHOD, pUserParams->concealMethod);
657
0
    if (err != MPS_OK) {
658
0
      goto bail;
659
0
    }
660
0
    err = SpatialDecConcealment_SetParam(&self->concealInfo,
661
0
                                         SAC_DEC_CONCEAL_NUM_KEEP_FRAMES,
662
0
                                         pUserParams->concealNumKeepFrames);
663
0
    if (err != MPS_OK) {
664
0
      goto bail;
665
0
    }
666
0
    err = SpatialDecConcealment_SetParam(
667
0
        &self->concealInfo, SAC_DEC_CONCEAL_FADE_OUT_SLOPE_LENGTH,
668
0
        pUserParams->concealFadeOutSlopeLength);
669
0
    if (err != MPS_OK) {
670
0
      goto bail;
671
0
    }
672
0
    err = SpatialDecConcealment_SetParam(&self->concealInfo,
673
0
                                         SAC_DEC_CONCEAL_FADE_IN_SLOPE_LENGTH,
674
0
                                         pUserParams->concealFadeInSlopeLength);
675
0
    if (err != MPS_OK) {
676
0
      goto bail;
677
0
    }
678
0
    err = SpatialDecConcealment_SetParam(&self->concealInfo,
679
0
                                         SAC_DEC_CONCEAL_NUM_RELEASE_FRAMES,
680
0
                                         pUserParams->concealNumReleaseFrames);
681
0
    if (err != MPS_OK) {
682
0
      goto bail;
683
0
    }
684
0
  }
685
686
0
  if (initFlags &
687
0
      MPEGS_INIT_STATES_ERROR_CONCEALMENT) { /* Set to default state */
688
0
    SpatialDecConcealment_Init(&self->concealInfo, MPEGS_CONCEAL_RESET_STATE);
689
0
  }
690
691
  /* determine bypass mode */
692
0
  bypassMode |= pUserParams->bypassMode;
693
0
  bypassMode |= ((self->upmixType == UPMIXTYPE_BYPASS) ? 1 : 0);
694
695
  /* static decoder scale depends on number of qmf bands */
696
0
  switch (nQmfBands) {
697
0
    case 16:
698
0
    case 24:
699
0
    case 32:
700
0
      self->staticDecScale = 21;
701
0
      break;
702
0
    case 64:
703
0
      self->staticDecScale = 22;
704
0
      break;
705
0
    default:
706
0
      return MPS_INVALID_PARAMETER;
707
0
  }
708
709
0
  self->numParameterSetsPrev = 1;
710
711
0
  self->qmfBands = nQmfBands;
712
  /* self->hybridBands will be updated in SpatialDecDecodeHeader() below. */
713
714
0
  self->bShareDelayWithSBR = 0;
715
716
0
  err = SpatialDecDecodeHeader(self, pSpatialSpecificConfig);
717
0
  if (err != MPS_OK) {
718
0
    goto bail;
719
0
  }
720
721
0
  self->stereoConfigIndex = pSpatialSpecificConfig->stereoConfigIndex;
722
723
0
  if (initFlags & MPEGS_INIT_STATES_ANA_QMF_FILTER) {
724
0
    self->qmfInputDelayBufPos = 0;
725
0
    self->pc_filterdelay = 1; /* Division by 0 not possible */
726
0
  }
727
728
0
  maxQmfBands = self->qmfBands;
729
730
  /* init residual decoder */
731
732
  /* init tonality smoothing */
733
0
  if (initFlags & MPEGS_INIT_STATES_PARAM) {
734
0
    initParameterSmoothing(self);
735
0
  }
736
737
  /* init GES */
738
0
  initBBEnv(self, (initFlags & MPEGS_INIT_STATES_GES) ? 1 : 0);
739
740
  /* Clip protection is applied only for normal processing. */
741
0
  if (!isTwoChMode(self->upmixType) && !bypassMode) {
742
0
    self->staticDecScale += self->clipProtectGainSF__FDK;
743
0
  }
744
745
0
  {
746
0
    UINT flags = 0;
747
0
    INT initStatesFlag = (initFlags & MPEGS_INIT_STATES_ANA_QMF_FILTER) ? 1 : 0;
748
0
    INT useLdFilter =
749
0
        (self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_LD) ? 1 : 0;
750
751
0
    flags = self->pQmfDomain->globalConf.flags_requested;
752
0
    flags &= (~(UINT)QMF_FLAG_LP);
753
754
0
    if (initStatesFlag)
755
0
      flags &= ~QMF_FLAG_KEEP_STATES;
756
0
    else
757
0
      flags |= QMF_FLAG_KEEP_STATES;
758
759
0
    if (useLdFilter)
760
0
      flags |= QMF_FLAG_MPSLDFB;
761
0
    else
762
0
      flags &= ~QMF_FLAG_MPSLDFB;
763
764
0
    self->pQmfDomain->globalConf.flags_requested = flags;
765
0
    FDK_QmfDomain_Configure(self->pQmfDomain);
766
767
    /* output scaling */
768
0
    for (nCh = 0; nCh < self->numOutputChannelsAT; nCh++) {
769
0
      int outputScale = 0, outputGain_e = 0, scale = -(8) + (1);
770
0
      FIXP_DBL outputGain_m = getChGain(self, nCh, &outputGain_e);
771
772
0
      if (!isTwoChMode(self->upmixType) && !bypassMode) {
773
0
        outputScale +=
774
0
            self->clipProtectGainSF__FDK; /* consider clip protection scaling at
775
                                             synthesis qmf */
776
0
      }
777
778
0
      scale += outputScale;
779
780
0
      qmfChangeOutScalefactor(&self->pQmfDomain->QmfDomainOut[nCh].fb, scale);
781
0
      qmfChangeOutGain(&self->pQmfDomain->QmfDomainOut[nCh].fb, outputGain_m,
782
0
                       outputGain_e);
783
0
    }
784
0
  }
785
786
0
  for (nCh = 0; nCh < self->numOutputChannelsAT; nCh++) {
787
0
    FDKhybridSynthesisInit(&self->hybridSynthesis[nCh], THREE_TO_TEN,
788
0
                           self->qmfBands, maxQmfBands);
789
0
  }
790
791
  /* for input, residual channels and arbitrary down-mix residual channels */
792
0
  for (nCh = 0; nCh < self->createParams.maxNumInputChannels; nCh++) {
793
0
    FDKhybridAnalysisInit(
794
0
        &self->hybridAnalysis[nCh], THREE_TO_TEN, self->qmfBands, maxQmfBands,
795
0
        (initFlags & MPEGS_INIT_STATES_ANA_HYB_FILTER) ? 1 : 0);
796
0
  }
797
0
  for (; nCh < (self->createParams.bProcResidual
798
0
                    ? (self->createParams.maxNumInputChannels +
799
0
                       self->createParams.maxNumResChannels)
800
0
                    : self->createParams.maxNumInputChannels);
801
0
       nCh++) {
802
0
    FDKhybridAnalysisInit(&self->hybridAnalysis[nCh], THREE_TO_TEN, maxQmfBands,
803
0
                          maxQmfBands, 0);
804
0
  }
805
806
0
  {
807
0
    for (k = 0; k < self->numDecorSignals; k++) {
808
0
      int errCode, idec;
809
0
      FDK_DECORR_TYPE decorrType = DECORR_PS;
810
0
      decorrType = DECORR_LD;
811
0
      if (self->pConfigCurrent->syntaxFlags &
812
0
          (SACDEC_SYNTAX_USAC | SACDEC_SYNTAX_RSVD50)) {
813
0
        decorrType =
814
0
            ((self->treeConfig == TREE_212) && (self->decorrType == DECORR_PS))
815
0
                ? DECORR_PS
816
0
                : DECORR_USAC;
817
0
      }
818
0
      {
819
0
        idec = k;
820
0
        if (self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_LD) {
821
0
          if (self->treeConfig == TREE_212 && k == 0) {
822
0
            idec = 2;
823
0
          }
824
0
        }
825
0
      }
826
0
      errCode = FDKdecorrelateInit(
827
0
          &self->apDecor[k], self->hybridBands, decorrType, DUCKER_AUTOMATIC,
828
0
          self->decorrConfig, idec, 0, /* self->partiallyComplex */
829
0
          0, 0,                        /* isLegacyPS */
830
0
          (initFlags & MPEGS_INIT_STATES_DECORRELATOR) ? 1 : 0);
831
0
      if (errCode) return MPS_NOTOK;
832
0
    }
833
0
  } /* !self->partiallyComplex */
834
835
0
  err = initM1andM2(self, (initFlags & MPEGS_INIT_STATES_M1M2) ? 1 : 0,
836
0
                    (initFlags & MPEGS_INIT_CONFIG) ? 1 : 0);
837
0
  if (err != MPS_OK) return err;
838
839
  /* Initialization of previous frame data */
840
0
  if (initFlags & MPEGS_INIT_STATES_PARAM) {
841
0
    for (i = 0; i < self->createParams.maxNumOttBoxes; i += 1) {
842
      /* reset icc diff data */
843
0
      for (k = 0; k < MAX_PARAMETER_SETS; k += 1) {
844
0
        for (j = 0; j < MAX_PARAMETER_BANDS; j += 1) {
845
0
          self->ottICCdiffidx[i][k][j] = 0;
846
0
        }
847
0
      }
848
0
    }
849
    /* Parameter Smoothing */
850
    /* robustness: init with one of the values of smgTimeTable[] = {64, 128,
851
       256, 512} to avoid division by zero in calcFilterCoeff__FDK() */
852
0
    self->smoothState->prevSmgTime = smgTimeTable[2]; /* == 256 */
853
0
    FDKmemclear(self->smoothState->prevSmgData,
854
0
                MAX_PARAMETER_BANDS * sizeof(UCHAR));
855
0
    FDKmemclear(self->smoothState->opdLeftState__FDK,
856
0
                MAX_PARAMETER_BANDS * sizeof(FIXP_DBL));
857
0
    FDKmemclear(self->smoothState->opdRightState__FDK,
858
0
                MAX_PARAMETER_BANDS * sizeof(FIXP_DBL));
859
0
  }
860
861
0
  self->prevTimeSlot = -1;
862
0
  self->curTimeSlot =
863
0
      MAX_TIME_SLOTS + 1; /* Initialize with a invalid value to trigger
864
                             concealment if first frame has no valid data. */
865
0
  self->curPs = 0;
866
867
0
  subbandTPInit(self->hStpDec);
868
869
0
bail:
870
0
  return err;
871
0
}
872
873
void SpatialDecChannelProperties(spatialDec *self,
874
                                 AUDIO_CHANNEL_TYPE channelType[],
875
                                 UCHAR channelIndices[],
876
0
                                 const FDK_channelMapDescr *const mapDescr) {
877
0
  if ((self == NULL) || (channelType == NULL) || (channelIndices == NULL) ||
878
0
      (mapDescr == NULL)) {
879
0
    return; /* no extern buffer to be filled */
880
0
  }
881
882
0
  if (self->numOutputChannelsAT !=
883
0
      treePropertyTable[self->treeConfig].numOutputChannels) {
884
0
    int ch;
885
    /* Declare all channels to be front channels: */
886
0
    for (ch = 0; ch < self->numOutputChannelsAT; ch += 1) {
887
0
      channelType[ch] = ACT_FRONT;
888
0
      channelIndices[ch] = ch;
889
0
    }
890
0
  } else {
891
    /* ISO/IEC FDIS 23003-1:2006(E), page 46, Table 40 bsTreeConfig */
892
0
    switch (self->treeConfig) {
893
0
      case TREE_212:
894
0
        channelType[0] = ACT_FRONT;
895
0
        channelIndices[0] = 0;
896
0
        channelType[1] = ACT_FRONT;
897
0
        channelIndices[1] = 1;
898
0
        break;
899
0
      default:;
900
0
    }
901
0
  }
902
0
}
903
904
/*******************************************************************************
905
 Functionname: FDK_SpatialDecClose
906
 *******************************************************************************
907
908
 Description:
909
910
 Arguments:
911
912
 Return:
913
914
*******************************************************************************/
915
916
29
void FDK_SpatialDecClose(spatialDec *self) {
917
29
  if (self) {
918
0
    int k;
919
920
0
    if (self->apDecor != NULL) {
921
0
      for (k = 0; k < self->createParams.maxNumDecorChannels; k++) {
922
0
        FDKdecorrelateClose(&(self->apDecor[k]));
923
0
      }
924
0
      FDK_FREE_MEMORY_1D(self->apDecor);
925
0
    }
926
0
    if (self->pDecorBufferCplx != NULL) {
927
0
      FDK_FREE_MEMORY_2D(self->pDecorBufferCplx);
928
0
    }
929
930
0
    subbandTPDestroy(&self->hStpDec);
931
932
0
    FDK_FREE_MEMORY_1D(self->reshapeBBEnvState);
933
0
    FDK_FREE_MEMORY_1D(self->smoothState);
934
935
0
    FDK_FREE_MEMORY_2D(self->pHybridAnaStatesLFdmx);
936
0
    FDK_FREE_MEMORY_2D(self->pHybridAnaStatesHFdmx);
937
0
    FDK_FREE_MEMORY_2D(self->pHybridAnaStatesLFres);
938
0
    FDK_FREE_MEMORY_2D(self->pHybridAnaStatesHFres);
939
0
    FDK_FREE_MEMORY_1D(self->hybridAnalysis);
940
941
0
    FDK_FREE_MEMORY_1D(self->hybridSynthesis);
942
943
    /* The time buffer is passed to the decoder from outside to avoid copying
944
     * (zero copy). */
945
    /* FDK_FREE_MEMORY_2D(self->timeOut__FDK); */
946
947
0
    FDK_FREE_MEMORY_2D(self->hybOutputImagWet__FDK);
948
0
    FDK_FREE_MEMORY_2D(self->hybOutputRealWet__FDK);
949
950
0
    FDK_FREE_MEMORY_2D(self->hybOutputImagDry__FDK);
951
0
    FDK_FREE_MEMORY_2D(self->hybOutputRealDry__FDK);
952
953
0
    FDK_FREE_MEMORY_2D(self->wImag__FDK);
954
0
    FDK_FREE_MEMORY_2D(self->wReal__FDK);
955
956
0
    if (self->createParams.bProcResidual) {
957
0
      int i;
958
959
0
      for (i = 0; i < self->createParams.maxNumResChannels; i++) {
960
0
        if (self->hybResidualImag__FDK != NULL)
961
0
          FDK_FREE_MEMORY_1D(self->hybResidualImag__FDK[i]);
962
0
        if (self->hybResidualReal__FDK != NULL)
963
0
          FDK_FREE_MEMORY_1D(self->hybResidualReal__FDK[i]);
964
0
        if (self->qmfResidualImag__FDK != NULL)
965
0
          FDK_FREE_MEMORY_2D_ALIGNED(self->qmfResidualImag__FDK[i]);
966
0
        if (self->qmfResidualReal__FDK != NULL)
967
0
          FDK_FREE_MEMORY_2D_ALIGNED(self->qmfResidualReal__FDK[i]);
968
0
      }
969
970
0
      FDK_FREE_MEMORY_1D(self->hybResidualImag__FDK);
971
0
      FDK_FREE_MEMORY_1D(self->hybResidualReal__FDK);
972
973
0
      FDK_FREE_MEMORY_1D(self->qmfResidualImag__FDK);
974
0
      FDK_FREE_MEMORY_1D(self->qmfResidualReal__FDK);
975
976
0
    } /* self->createParams.bProcResidual */
977
978
0
    FDK_FREE_MEMORY_2D(self->hybInputImag__FDK);
979
0
    FDK_FREE_MEMORY_2D(self->hybInputReal__FDK);
980
981
0
    FDK_FREE_MEMORY_2D_ALIGNED(self->qmfInputImag__FDK);
982
0
    FDK_FREE_MEMORY_2D_ALIGNED(self->qmfInputReal__FDK);
983
984
0
    FDK_FREE_MEMORY_3D(self->M2ImagPrev__FDK);
985
986
0
    FDK_FREE_MEMORY_3D(self->M2RealPrev__FDK);
987
988
0
    FDK_FREE_MEMORY_3D(self->M2Imag__FDK);
989
990
0
    FDK_FREE_MEMORY_3D(self->M2Real__FDK);
991
992
0
    FDK_FREE_MEMORY_1D(self->arbdmxAlphaPrev__FDK);
993
0
    FDK_FREE_MEMORY_1D(self->arbdmxAlpha__FDK);
994
995
0
    FDK_FREE_MEMORY_3D(self->arbdmxGain__FDK);
996
997
0
    FDK_FREE_MEMORY_3D(self->ottIPD__FDK);
998
0
    FDK_FREE_MEMORY_3D(self->ottICC__FDK);
999
0
    FDK_FREE_MEMORY_3D(self->ottCLD__FDK);
1000
1001
    /* Last parameters from prev frame */
1002
0
    FDK_FREE_MEMORY_2D(self->ottCLDidxPrev);
1003
0
    FDK_FREE_MEMORY_2D(self->ottICCidxPrev);
1004
0
    FDK_FREE_MEMORY_3D(self->ottICCdiffidx);
1005
0
    FDK_FREE_MEMORY_2D(self->ottIPDidxPrev);
1006
0
    FDK_FREE_MEMORY_2D(self->arbdmxGainIdxPrev);
1007
1008
0
    FDK_FREE_MEMORY_2D(self->cmpOttCLDidxPrev);
1009
0
    FDK_FREE_MEMORY_2D(self->cmpOttICCidxPrev);
1010
0
    FDK_FREE_MEMORY_3D(self->outIdxData);
1011
0
    FDK_FREE_MEMORY_2D(self->cmpOttIPDidxPrev);
1012
0
    FDK_FREE_MEMORY_2D(self->cmpArbdmxGainIdxPrev);
1013
1014
0
    FDK_FREE_MEMORY_2D(self->smgData);
1015
0
    FDK_FREE_MEMORY_1D(self->smgTime);
1016
1017
0
    FDK_FREE_MEMORY_1D(self->numOttBands);
1018
1019
0
    FDK_FREE_MEMORY_1D(self->param2hyb);
1020
1021
0
    FDK_FREE_MEMORY_1D(self);
1022
0
  }
1023
1024
29
  return;
1025
29
}
1026
1027
/**
1028
 * \brief Apply Surround bypass buffer copies
1029
 * \param self spatialDec handle
1030
 * \param hybInputReal
1031
 * \param hybInputImag
1032
 * \param hybOutputReal
1033
 * \param hybOutputImag
1034
 * \param numInputChannels amount if input channels available in hybInputReal
1035
 * and hybInputImag, which may differ from self->numInputChannels.
1036
 */
1037
static void SpatialDecApplyBypass(spatialDec *self, FIXP_DBL **hybInputReal,
1038
                                  FIXP_DBL **hybInputImag,
1039
                                  FIXP_DBL **hybOutputReal,
1040
                                  FIXP_DBL **hybOutputImag,
1041
0
                                  const int numInputChannels) {
1042
0
  int complexHybBands;
1043
1044
0
  complexHybBands = self->hybridBands;
1045
1046
0
  {
1047
0
    int ch;
1048
0
    int rf = -1, lf = -1, cf = -1; /* Right Front, Left Front, Center Front */
1049
1050
    /* Determine output channel indices according to tree config */
1051
0
    switch (self->treeConfig) {
1052
0
      case TREE_212: /* 212  */
1053
0
        lf = 0;
1054
0
        rf = 1;
1055
0
        break;
1056
0
      default:;
1057
0
    }
1058
1059
    /* Note: numInputChannels might not match the tree config ! */
1060
0
    switch (numInputChannels) {
1061
0
      case 1:
1062
0
        if (cf > 0) {
1063
0
          FDKmemcpy(hybOutputReal[cf], hybInputReal[0],
1064
0
                    self->hybridBands * sizeof(FIXP_DBL));
1065
0
          FDKmemcpy(hybOutputImag[cf], hybInputImag[0],
1066
0
                    complexHybBands * sizeof(FIXP_DBL));
1067
0
        } else {
1068
0
          FDKmemcpy(hybOutputReal[lf], hybInputReal[0],
1069
0
                    self->hybridBands * sizeof(FIXP_DBL));
1070
0
          FDKmemcpy(hybOutputReal[rf], hybInputReal[0],
1071
0
                    self->hybridBands * sizeof(FIXP_DBL));
1072
0
          FDKmemcpy(hybOutputImag[lf], hybInputImag[0],
1073
0
                    complexHybBands * sizeof(FIXP_DBL));
1074
0
          FDKmemcpy(hybOutputImag[rf], hybInputImag[0],
1075
0
                    complexHybBands * sizeof(FIXP_DBL));
1076
0
        }
1077
0
        break;
1078
0
      case 2:
1079
0
        FDK_ASSERT(lf != -1);
1080
0
        FDK_ASSERT(rf != -1);
1081
0
        FDKmemcpy(hybOutputReal[lf], hybInputReal[0],
1082
0
                  self->hybridBands * sizeof(FIXP_DBL));
1083
0
        FDKmemcpy(hybOutputReal[rf], hybInputReal[1],
1084
0
                  self->hybridBands * sizeof(FIXP_DBL));
1085
0
        FDKmemcpy(hybOutputImag[lf], hybInputImag[0],
1086
0
                  complexHybBands * sizeof(FIXP_DBL));
1087
0
        FDKmemcpy(hybOutputImag[rf], hybInputImag[1],
1088
0
                  complexHybBands * sizeof(FIXP_DBL));
1089
0
        break;
1090
0
    }
1091
0
    for (ch = 0; ch < self->numOutputChannelsAT; ch++) {
1092
0
      if (ch == lf || ch == rf || ch == cf) {
1093
0
        continue; /* Skip bypassed channels */
1094
0
      }
1095
0
      FDKmemclear(hybOutputReal[ch], self->hybridBands * sizeof(FIXP_DBL));
1096
0
      FDKmemclear(hybOutputImag[ch], complexHybBands * sizeof(FIXP_DBL));
1097
0
    }
1098
0
  }
1099
0
}
1100
1101
/**
1102
 * \brief Set internal error and reset error status
1103
 *
1104
 * \param self         spatialDec handle.
1105
 * \param bypassMode   pointer to bypassMode.
1106
 * \param err          error status.
1107
 *
1108
 * \return  error status.
1109
 */
1110
static SACDEC_ERROR SpatialDecSetInternalError(spatialDec *self,
1111
                                               int *bypassMode,
1112
0
                                               SACDEC_ERROR err) {
1113
0
  *bypassMode = 1;
1114
1115
0
  if (self->errInt == MPS_OK) {
1116
    /* store internal error before it gets overwritten */
1117
0
    self->errInt = err;
1118
0
  }
1119
1120
0
  return MPS_OK;
1121
0
}
1122
1123
/*******************************************************************************
1124
 Functionname: SpatialDecApplyParameterSets
1125
 *******************************************************************************
1126
1127
 Description:
1128
1129
 Arguments:
1130
1131
 Return:
1132
1133
*******************************************************************************/
1134
static SACDEC_ERROR SpatialDecApplyParameterSets(
1135
    spatialDec *self, const SPATIAL_BS_FRAME *frame, SPATIALDEC_INPUT_MODE mode,
1136
    PCM_MPS *inData,          /* Time domain input  */
1137
    FIXP_DBL **qmfInDataReal, /* QMF domain data l/r */
1138
    FIXP_DBL **qmfInDataImag, /* QMF domain data l/r */
1139
    UINT nSamples, UINT controlFlags, int numInputChannels,
1140
0
    const FDK_channelMapDescr *const mapDescr) {
1141
0
  SACDEC_ERROR err = MPS_OK;
1142
1143
0
  FIXP_SGL alpha = FL2FXCONST_SGL(0.0);
1144
1145
0
  int ts;
1146
0
  int ch;
1147
0
  int hyb;
1148
1149
0
  int prevSlot = self->prevTimeSlot;
1150
0
  int ps = self->curPs;
1151
0
  int ts_io = 0; /* i/o dependent slot */
1152
0
  int bypassMode = (controlFlags & MPEGS_BYPASSMODE) ? 1 : 0;
1153
1154
  /* Bypass can be triggered by the upmixType, too. */
1155
0
  bypassMode |= ((self->upmixType == UPMIXTYPE_BYPASS) ? 1 : 0);
1156
1157
  /*
1158
   * Decode available slots
1159
   */
1160
0
  for (ts = self->curTimeSlot;
1161
0
       ts <= fixMin(self->curTimeSlot + (int)nSamples / self->qmfBands - 1,
1162
0
                    self->timeSlots - 1);
1163
0
       ts++, ts_io++) {
1164
0
    int currSlot = frame->paramSlot[ps];
1165
1166
0
    err = (currSlot < ts) ? MPS_WRONG_PARAMETERSETS : MPS_OK;
1167
0
    if (err != MPS_OK) {
1168
0
      err = SpatialDecSetInternalError(self, &bypassMode, err);
1169
0
    }
1170
1171
    /*
1172
     * Get new parameter set
1173
     */
1174
0
    if (ts == prevSlot + 1) {
1175
0
      if (bypassMode == 0) {
1176
0
        err = SpatialDecCalculateM1andM2(
1177
0
            self, ps, frame); /* input: ottCLD, ottICC, ... */
1178
                              /* output: M1param(Real/Imag), M2(Real/Imag) */
1179
0
        if (err != MPS_OK) {
1180
0
          err = SpatialDecSetInternalError(self, &bypassMode, err);
1181
0
        }
1182
0
      }
1183
1184
0
      if ((ps == 0) && (self->bOverwriteM1M2prev != 0)) {
1185
        /* copy matrix entries of M1/M2 of the first parameter set to the
1186
           previous matrices (of the last frame). This avoids the interpolation
1187
           of incompatible values. E.g. for residual bands the coefficients are
1188
           calculated differently compared to non-residual bands.
1189
         */
1190
0
        SpatialDecBufferMatrices(self); /* input: M(1/2)param(Real/Imag) */
1191
                                        /* output: M(1/2)param(Real/Imag)Prev */
1192
0
        self->bOverwriteM1M2prev = 0;
1193
0
      }
1194
1195
0
      if (bypassMode == 0) {
1196
0
        SpatialDecSmoothM1andM2(
1197
0
            self, frame,
1198
0
            ps); /* input: M1param(Real/Imag)(Prev), M2(Real/Imag)(Prev) */
1199
0
      }          /* output: M1param(Real/Imag), M2(Real/Imag) */
1200
0
    }
1201
1202
0
    if (bypassMode == 0) {
1203
0
      alpha = FX_DBL2FX_SGL(fDivNorm(ts - prevSlot, currSlot - prevSlot));
1204
0
    }
1205
1206
0
    switch (mode) {
1207
0
      case INPUTMODE_QMF_SBR:
1208
0
        if (self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_LD)
1209
0
          self->bShareDelayWithSBR = 0; /* We got no hybrid delay */
1210
0
        else
1211
0
          self->bShareDelayWithSBR = 1;
1212
0
        SpatialDecFeedQMF(
1213
0
            self, qmfInDataReal, qmfInDataImag, ts_io, bypassMode,
1214
0
            self->qmfInputReal__FDK, self->qmfInputImag__FDK,
1215
0
            (bypassMode) ? numInputChannels : self->numInputChannels);
1216
0
        break;
1217
0
      case INPUTMODE_TIME:
1218
0
        self->bShareDelayWithSBR = 0;
1219
0
        SpatialDecQMFAnalysis(
1220
0
            self, inData, ts_io, bypassMode, self->qmfInputReal__FDK,
1221
0
            self->qmfInputImag__FDK,
1222
0
            (bypassMode) ? numInputChannels : self->numInputChannels);
1223
0
        break;
1224
0
      default:
1225
0
        break;
1226
0
    }
1227
1228
0
    if ((self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_USAC) &&
1229
0
        self->residualCoding) {
1230
0
      int offset;
1231
0
      ch = 1;
1232
1233
0
      offset = self->pQmfDomain->globalConf.nBandsSynthesis *
1234
0
               self->pQmfDomain->globalConf.nQmfTimeSlots;
1235
1236
0
      {
1237
0
        const PCM_MPS *inSamples =
1238
0
            &inData[ts * self->pQmfDomain->globalConf.nBandsAnalysis];
1239
1240
0
        CalculateSpaceAnalysisQmf(
1241
0
            &self->pQmfDomain->QmfDomainIn[ch].fb, inSamples + (ch * offset),
1242
0
            self->qmfResidualReal__FDK[0][0], self->qmfResidualImag__FDK[0][0]);
1243
1244
0
        if (!isTwoChMode(self->upmixType) && !bypassMode) {
1245
0
          int i;
1246
0
          FIXP_DBL *RESTRICT self_qmfResidualReal__FDK_0_0 =
1247
0
              &self->qmfResidualReal__FDK[0][0][0];
1248
0
          FIXP_DBL *RESTRICT self_qmfResidualImag__FDK_0_0 =
1249
0
              &self->qmfResidualImag__FDK[0][0][0];
1250
1251
0
          if ((self->pQmfDomain->globalConf.nBandsAnalysis == 24) &&
1252
0
              !(self->stereoConfigIndex == 3)) {
1253
0
            for (i = 0; i < self->qmfBands; i++) {
1254
0
              self_qmfResidualReal__FDK_0_0[i] =
1255
0
                  fMult(scaleValueSaturate(self_qmfResidualReal__FDK_0_0[i],
1256
0
                                           1 + self->sacInDataHeadroom - (1)),
1257
0
                        self->clipProtectGain__FDK);
1258
0
              self_qmfResidualImag__FDK_0_0[i] =
1259
0
                  fMult(scaleValueSaturate(self_qmfResidualImag__FDK_0_0[i],
1260
0
                                           1 + self->sacInDataHeadroom - (1)),
1261
0
                        self->clipProtectGain__FDK);
1262
0
            }
1263
0
          } else {
1264
0
            for (i = 0; i < self->qmfBands; i++) {
1265
0
              self_qmfResidualReal__FDK_0_0[i] =
1266
0
                  fMult(scaleValueSaturate(self_qmfResidualReal__FDK_0_0[i],
1267
0
                                           self->sacInDataHeadroom - (1)),
1268
0
                        self->clipProtectGain__FDK);
1269
0
              self_qmfResidualImag__FDK_0_0[i] =
1270
0
                  fMult(scaleValueSaturate(self_qmfResidualImag__FDK_0_0[i],
1271
0
                                           self->sacInDataHeadroom - (1)),
1272
0
                        self->clipProtectGain__FDK);
1273
0
            }
1274
0
          }
1275
0
        }
1276
0
      }
1277
0
    }
1278
1279
0
    SpatialDecHybridAnalysis(
1280
0
        self, /* input: qmfInput(Real/Imag), qmfResidual(Real/Imag) */
1281
0
        self->qmfInputReal__FDK, self->qmfInputImag__FDK,
1282
0
        self->hybInputReal__FDK, self->hybInputImag__FDK, ts, numInputChannels);
1283
1284
0
    if (bypassMode) {
1285
0
      SpatialDecApplyBypass(
1286
0
          self, self->hybInputReal__FDK, /* input: hybInput(Real/Imag) */
1287
0
          self->hybInputImag__FDK,
1288
0
          self->hybOutputRealDry__FDK, /* output: hybOutput(Real/Imag)Dry */
1289
0
          self->hybOutputImagDry__FDK, numInputChannels);
1290
0
    } else /* !bypassMode */
1291
0
    {
1292
0
      FIXP_DBL *pxReal[MAX_NUM_XCHANNELS] = {NULL};
1293
0
      FIXP_DBL *pxImag[MAX_NUM_XCHANNELS] = {NULL};
1294
1295
0
      SpatialDecCreateX(self,
1296
0
                        self->hybInputReal__FDK, /* input: hybInput(Real/Imag),
1297
                                                    hybResidual(Real/Imag) */
1298
0
                        self->hybInputImag__FDK, pxReal, pxImag);
1299
1300
0
      {
1301
0
        SpatialDecApplyM1_CreateW_Mode212(
1302
0
            self, frame, pxReal, pxImag,
1303
0
            self->wReal__FDK, /* output: w(Real/Imag) */
1304
0
            self->wImag__FDK);
1305
0
      }
1306
0
      if (err != MPS_OK) goto bail;
1307
1308
0
      int applyM2Config = APPLY_M2_NONE;
1309
1310
0
      applyM2Config = APPLY_M2;
1311
0
      if ((self->pConfigCurrent->syntaxFlags &
1312
0
           (SACDEC_SYNTAX_USAC | SACDEC_SYNTAX_RSVD50)) &&
1313
0
          (self->tempShapeConfig != 1) && (self->tempShapeConfig != 2)) {
1314
0
        if (self->phaseCoding == 3)
1315
0
          applyM2Config = APPLY_M2_MODE212_Res_PhaseCoding;
1316
0
        else
1317
0
          applyM2Config = APPLY_M2_MODE212;
1318
0
      }
1319
1320
0
      switch (applyM2Config) {
1321
0
        case APPLY_M2_MODE212: {
1322
0
          err = SpatialDecApplyM2_Mode212(
1323
0
              self, ps, alpha, self->wReal__FDK, self->wImag__FDK,
1324
0
              self->hybOutputRealDry__FDK, self->hybOutputImagDry__FDK);
1325
0
        } break;
1326
0
        case APPLY_M2_MODE212_Res_PhaseCoding:
1327
0
          err = SpatialDecApplyM2_Mode212_ResidualsPlusPhaseCoding(
1328
0
              self, ps, alpha, self->wReal__FDK, self->wImag__FDK,
1329
0
              self->hybOutputRealDry__FDK, self->hybOutputImagDry__FDK);
1330
0
          break;
1331
0
        case APPLY_M2:
1332
0
          err = SpatialDecApplyM2(
1333
0
              self, ps, alpha, self->wReal__FDK, self->wImag__FDK,
1334
0
              self->hybOutputRealDry__FDK, self->hybOutputImagDry__FDK,
1335
0
              self->hybOutputRealWet__FDK, self->hybOutputImagWet__FDK);
1336
0
          break;
1337
0
        default:
1338
0
          err = MPS_APPLY_M2_ERROR;
1339
0
          goto bail;
1340
0
      }
1341
1342
0
      if (err != MPS_OK) goto bail;
1343
1344
0
      if ((self->tempShapeConfig == 2) && (!isTwoChMode(self->upmixType))) {
1345
0
        SpatialDecReshapeBBEnv(self, frame,
1346
0
                               ts); /* input: reshapeBBEnvState,
1347
                                       hybOutput(Real/Imag)(Dry/Wet),
1348
                                       hybInput(Real/Imag) */
1349
0
      }                             /* output: hybOutput(Real/Imag)Dry */
1350
1351
      /* Merge parts of the dry and wet QMF buffers. */
1352
0
      if ((self->tempShapeConfig == 1) && (!isTwoChMode(self->upmixType))) {
1353
0
        for (ch = 0; ch < self->numOutputChannels; ch++) {
1354
0
          for (hyb = 0; hyb < self->tp_hybBandBorder; hyb++) {
1355
0
            self->hybOutputRealDry__FDK[ch][hyb] =
1356
0
                fAddSaturate(self->hybOutputRealDry__FDK[ch][hyb],
1357
0
                             self->hybOutputRealWet__FDK[ch][hyb]);
1358
0
            self->hybOutputImagDry__FDK[ch][hyb] =
1359
0
                fAddSaturate(self->hybOutputImagDry__FDK[ch][hyb],
1360
0
                             self->hybOutputImagWet__FDK[ch][hyb]);
1361
0
          } /* loop hyb */
1362
0
        }   /* loop ch */
1363
0
        err = subbandTPApply(
1364
0
            self, frame); /* input: hStpDec, hybOutput(Real/Imag)Dry/Wet */
1365
                          /* output: hStpDec, hybOutput(Real/Imag)Dry */
1366
0
        if (err != MPS_OK) goto bail;
1367
0
      } /* (self->tempShapeConfig == 1) */
1368
0
      else {
1369
        /* The wet signal is added to the dry signal in applyM2 if GES and STP
1370
         * are disabled */
1371
0
        if ((self->tempShapeConfig == 1) || (self->tempShapeConfig == 2)) {
1372
0
          int nHybBands;
1373
0
          nHybBands = self->hybridBands;
1374
1375
0
          for (ch = 0; ch < self->numOutputChannels; ch++) {
1376
0
            FIXP_DBL *RESTRICT pRealDry = self->hybOutputRealDry__FDK[ch];
1377
0
            FIXP_DBL *RESTRICT pImagDry = self->hybOutputImagDry__FDK[ch];
1378
0
            FIXP_DBL *RESTRICT pRealWet = self->hybOutputRealWet__FDK[ch];
1379
0
            FIXP_DBL *RESTRICT pImagWet = self->hybOutputImagWet__FDK[ch];
1380
0
            for (hyb = 0; hyb < nHybBands; hyb++) {
1381
0
              pRealDry[hyb] = fAddSaturate(pRealDry[hyb], pRealWet[hyb]);
1382
0
              pImagDry[hyb] = fAddSaturate(pImagDry[hyb], pImagWet[hyb]);
1383
0
            } /* loop hyb */
1384
0
            for (; hyb < self->hybridBands; hyb++) {
1385
0
              pRealDry[hyb] = fAddSaturate(pRealDry[hyb], pRealWet[hyb]);
1386
0
            } /* loop hyb */
1387
0
          }   /* loop ch */
1388
0
        } /* ( self->tempShapeConfig == 1 ) || ( self->tempShapeConfig == 2 ) */
1389
0
      }   /* !self->tempShapeConfig == 1 */
1390
0
    }     /*  !bypassMode */
1391
1392
0
    if ((self->phaseCoding == 1) && (bypassMode == 0)) {
1393
      /* only if bsPhaseCoding == 1 and bsResidualCoding == 0 */
1394
1395
0
      SpatialDecApplyPhase(
1396
0
          self, alpha, (ts == currSlot) /* signal the last slot of the set */
1397
0
      );
1398
0
    }
1399
1400
    /*
1401
     * Synthesis Filtering
1402
     */
1403
1404
0
    err = SpatialDecSynthesis(
1405
0
        self, ts_io,
1406
0
        self->hybOutputRealDry__FDK, /* input: hybOutput(Real/Imag)Dry */
1407
0
        self->hybOutputImagDry__FDK, self->timeOut__FDK, /* output: timeOut */
1408
0
        numInputChannels, mapDescr);
1409
1410
0
    if (err != MPS_OK) goto bail;
1411
1412
    /*
1413
     * Update parameter buffer
1414
     */
1415
0
    if (ts == currSlot) {
1416
0
      SpatialDecBufferMatrices(self); /* input: M(1/2)param(Real/Imag) */
1417
                                      /* output: M(1/2)param(Real/Imag)Prev */
1418
1419
0
      prevSlot = currSlot;
1420
0
      ps++;
1421
0
    } /* if (ts==currSlot) */
1422
1423
0
  } /* ts loop */
1424
1425
  /*
1426
   * Save parameter states
1427
   */
1428
0
  self->prevTimeSlot = prevSlot;
1429
0
  self->curTimeSlot = ts;
1430
0
  self->curPs = ps;
1431
1432
0
bail:
1433
1434
0
  return err;
1435
0
}
1436
1437
SACDEC_ERROR SpatialDecApplyFrame(
1438
    spatialDec *self,
1439
    SPATIAL_BS_FRAME *frame, /* parsed frame data to be applied */
1440
    SPATIALDEC_INPUT_MODE inputMode, PCM_MPS *inData, /* Time domain input  */
1441
    FIXP_DBL **qmfInDataReal,                         /* QMF domain data l/r */
1442
    FIXP_DBL **qmfInDataImag,                         /* QMF domain data l/r */
1443
    PCM_MPS *pcmOutBuf, /* MAX_OUTPUT_CHANNELS*MAX_TIME_SLOTS*NUM_QMF_BANDS] */
1444
    UINT nSamples, UINT *pControlFlags, int numInputChannels,
1445
0
    const FDK_channelMapDescr *const mapDescr) {
1446
0
  SACDEC_ERROR err = MPS_OK;
1447
1448
0
  int fDecAndMapFrameData;
1449
0
  int controlFlags;
1450
1451
0
  FDK_ASSERT(self != NULL);
1452
0
  FDK_ASSERT(pControlFlags != NULL);
1453
0
  FDK_ASSERT(pcmOutBuf != NULL);
1454
0
  FDK_ASSERT(self->sacInDataHeadroom >= (1));
1455
1456
0
  self->errInt = err; /* Init internal error */
1457
1458
0
  controlFlags = *pControlFlags;
1459
1460
0
  if ((self->pConfigCurrent->syntaxFlags & SACDEC_SYNTAX_USAC) &&
1461
0
      (self->stereoConfigIndex > 1)) {
1462
0
    numInputChannels =
1463
0
        1; /* Do not count residual channel as input channel. It is handled
1464
              seperately. */
1465
0
  }
1466
1467
  /* Check if input amount of channels is consistent */
1468
0
  if (numInputChannels != self->numInputChannels) {
1469
0
    controlFlags |= MPEGS_CONCEAL;
1470
0
    if (numInputChannels > self->createParams.maxNumInputChannels) {
1471
0
      return MPS_INVALID_PARAMETER;
1472
0
    }
1473
0
  }
1474
1475
0
  self->timeOut__FDK = pcmOutBuf;
1476
1477
  /* Determine local function control flags */
1478
0
  fDecAndMapFrameData = frame->newBsData;
1479
1480
0
  if (((fDecAndMapFrameData ==
1481
0
        0) /* assures that conceal flag will not be set for blind mode */
1482
0
       && (self->curTimeSlot + (int)nSamples / self->qmfBands >
1483
0
           self->timeSlots)) ||
1484
0
      (frame->numParameterSets ==
1485
0
       0)) { /* New input samples but missing side info */
1486
0
    fDecAndMapFrameData = 1;
1487
0
    controlFlags |= MPEGS_CONCEAL;
1488
0
  }
1489
1490
0
  if ((fDecAndMapFrameData == 0) &&
1491
0
      (frame->paramSlot[fMax(0, frame->numParameterSets - 1)] !=
1492
0
           (self->timeSlots - 1) ||
1493
0
       self->curTimeSlot >
1494
0
           frame->paramSlot[self->curPs])) { /* Detected faulty parameter slot
1495
                                                data. */
1496
0
    fDecAndMapFrameData = 1;
1497
0
    controlFlags |= MPEGS_CONCEAL;
1498
0
  }
1499
1500
  /* Update concealment state machine */
1501
0
  SpatialDecConcealment_UpdateState(
1502
0
      &self->concealInfo,
1503
0
      (controlFlags & MPEGS_CONCEAL)
1504
0
          ? 0
1505
0
          : 1); /* convert from conceal flag to frame ok flag */
1506
1507
0
  if (fDecAndMapFrameData) {
1508
    /* Reset spatial framing control vars */
1509
0
    frame->newBsData = 0;
1510
0
    self->prevTimeSlot = -1;
1511
0
    self->curTimeSlot = 0;
1512
0
    self->curPs = 0;
1513
1514
0
    if (controlFlags & MPEGS_CONCEAL) {
1515
      /* Reset frame data to avoid misconfiguration. */
1516
0
      SpatialDecClearFrameData(self, frame, &self->createParams);
1517
0
    }
1518
1519
0
    {
1520
0
      err = SpatialDecDecodeFrame(self, frame); /* input: ... */
1521
      /* output: decodeAndMapFrameDATA */
1522
0
    }
1523
1524
0
    if (err != MPS_OK) {
1525
      /* Rescue strategy is to apply bypass mode in order
1526
         to keep at least the downmix channels continuous. */
1527
0
      controlFlags |= MPEGS_CONCEAL;
1528
0
      if (self->errInt == MPS_OK) {
1529
        /* store internal error befor it gets overwritten */
1530
0
        self->errInt = err;
1531
0
      }
1532
0
    }
1533
0
  }
1534
1535
0
  err = SpatialDecApplyParameterSets(
1536
0
      self, frame, inputMode, inData, qmfInDataReal, qmfInDataImag, nSamples,
1537
0
      controlFlags | ((err == MPS_OK) ? 0 : MPEGS_BYPASSMODE), numInputChannels,
1538
0
      mapDescr);
1539
0
  if (err != MPS_OK) {
1540
0
    goto bail;
1541
0
  }
1542
1543
0
bail:
1544
1545
0
  *pControlFlags = controlFlags;
1546
1547
0
  return err;
1548
0
}