Coverage Report

Created: 2023-06-17 06:26

/src/aac/libSBRdec/src/sbr_dec.cpp
Line
Count
Source (jump to first uncovered line)
1
/* -----------------------------------------------------------------------------
2
Software License for The Fraunhofer FDK AAC Codec Library for Android
3
4
© Copyright  1995 - 2020 Fraunhofer-Gesellschaft zur Förderung der angewandten
5
Forschung e.V. All rights reserved.
6
7
 1.    INTRODUCTION
8
The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
10
scheme for digital audio. This FDK AAC Codec software is intended to be used on
11
a wide variety of Android devices.
12
13
AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient
14
general perceptual audio codecs. AAC-ELD is considered the best-performing
15
full-bandwidth communications codec by independent studies and is widely
16
deployed. AAC has been standardized by ISO and IEC as part of the MPEG
17
specifications.
18
19
Patent licenses for necessary patent claims for the FDK AAC Codec (including
20
those of Fraunhofer) may be obtained through Via Licensing
21
(www.vialicensing.com) or through the respective patent owners individually for
22
the purpose of encoding or decoding bit streams in products that are compliant
23
with the ISO/IEC MPEG audio standards. Please note that most manufacturers of
24
Android devices already license these patent claims through Via Licensing or
25
directly from the patent owners, and therefore FDK AAC Codec software may
26
already be covered under those patent licenses when it is used for those
27
licensed purposes only.
28
29
Commercially-licensed AAC software libraries, including floating-point versions
30
with enhanced sound quality, are also available from Fraunhofer. Users are
31
encouraged to check the Fraunhofer website for additional applications
32
information and documentation.
33
34
2.    COPYRIGHT LICENSE
35
36
Redistribution and use in source and binary forms, with or without modification,
37
are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
39
40
You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
42
43
You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
45
your modifications thereto in binary form. You must make available free of
46
charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
48
49
The name of Fraunhofer may not be used to endorse or promote products derived
50
from this library without prior written permission.
51
52
You may not charge copyright license fees for anyone to use, copy or distribute
53
the FDK AAC Codec software or your modifications thereto.
54
55
Your modified versions of the FDK AAC Codec must carry prominent notices stating
56
that you changed the software and the date of any change. For modified versions
57
of the FDK AAC Codec, the term "Fraunhofer FDK AAC Codec Library for Android"
58
must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
59
AAC Codec Library for Android."
60
61
3.    NO PATENT LICENSE
62
63
NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
64
limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
65
Fraunhofer provides no warranty of patent non-infringement with respect to this
66
software.
67
68
You may use this FDK AAC Codec software or modifications thereto only for
69
purposes that are authorized by appropriate patent licenses.
70
71
4.    DISCLAIMER
72
73
This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
75
including but not limited to the implied warranties of merchantability and
76
fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
77
CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
78
or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
80
however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
82
this software, even if advised of the possibility of such damage.
83
84
5.    CONTACT INFORMATION
85
86
Fraunhofer Institute for Integrated Circuits IIS
87
Attention: Audio and Multimedia Departments - FDK AAC LL
88
Am Wolfsmantel 33
89
91058 Erlangen, Germany
90
91
www.iis.fraunhofer.de/amm
92
amm-info@iis.fraunhofer.de
93
----------------------------------------------------------------------------- */
94
95
/**************************** SBR decoder library ******************************
96
97
   Author(s):
98
99
   Description:
100
101
*******************************************************************************/
102
103
/*!
104
  \file
105
  \brief  Sbr decoder
106
  This module provides the actual decoder implementation. The SBR data (side
107
  information) is already decoded. Only three functions are provided:
108
109
  \li 1.) createSbrDec(): One time initialization
110
  \li 2.) resetSbrDec(): Called by sbr_Apply() when the information contained in
111
  an SBR_HEADER_ELEMENT requires a reset and recalculation of important SBR
112
  structures. \li 3.) sbr_dec(): The actual decoder. Calls the different tools
113
  such as filterbanks, lppTransposer(), and calculateSbrEnvelope() [the envelope
114
  adjuster].
115
116
  \sa sbr_dec(), \ref documentationOverview
117
*/
118
119
#include "sbr_dec.h"
120
121
#include "sbr_ram.h"
122
#include "env_extr.h"
123
#include "env_calc.h"
124
#include "scale.h"
125
#include "FDK_matrixCalloc.h"
126
#include "hbe.h"
127
128
#include "genericStds.h"
129
130
#include "sbrdec_drc.h"
131
132
static void copyHarmonicSpectrum(int *xOverQmf, FIXP_DBL **qmfReal,
133
                                 FIXP_DBL **qmfImag, int noCols, int overlap,
134
72.5k
                                 KEEP_STATES_SYNCED_MODE keepStatesSynced) {
135
72.5k
  int patchBands;
136
72.5k
  int patch, band, col, target, sourceBands, i;
137
72.5k
  int numPatches = 0;
138
72.5k
  int slotOffset = 0;
139
140
72.5k
  FIXP_DBL **ppqmfReal = qmfReal + overlap;
141
72.5k
  FIXP_DBL **ppqmfImag = qmfImag + overlap;
142
143
72.5k
  if (keepStatesSynced == KEEP_STATES_SYNCED_NORMAL) {
144
24.2k
    slotOffset = noCols - overlap - LPC_ORDER;
145
24.2k
  }
146
147
72.5k
  if (keepStatesSynced == KEEP_STATES_SYNCED_OUTDIFF) {
148
11.5k
    ppqmfReal = qmfReal;
149
11.5k
    ppqmfImag = qmfImag;
150
11.5k
  }
151
152
435k
  for (i = 1; i < MAX_NUM_PATCHES; i++) {
153
362k
    if (xOverQmf[i] != 0) {
154
164k
      numPatches++;
155
164k
    }
156
362k
  }
157
158
104k
  for (patch = (MAX_STRETCH_HBE - 1); patch < numPatches; patch++) {
159
31.9k
    patchBands = xOverQmf[patch + 1] - xOverQmf[patch];
160
31.9k
    target = xOverQmf[patch];
161
31.9k
    sourceBands = xOverQmf[MAX_STRETCH_HBE - 1] - xOverQmf[MAX_STRETCH_HBE - 2];
162
163
71.2k
    while (patchBands > 0) {
164
39.3k
      int numBands = sourceBands;
165
39.3k
      int startBand = xOverQmf[MAX_STRETCH_HBE - 1] - 1;
166
39.3k
      if (target + numBands >= xOverQmf[patch + 1]) {
167
31.9k
        numBands = xOverQmf[patch + 1] - target;
168
31.9k
      }
169
39.3k
      if ((((target + numBands - 1) % 2) +
170
39.3k
           ((xOverQmf[MAX_STRETCH_HBE - 1] - 1) % 2)) %
171
39.3k
          2) {
172
29.6k
        if (numBands == sourceBands) {
173
7.02k
          numBands--;
174
22.6k
        } else {
175
22.6k
          startBand--;
176
22.6k
        }
177
29.6k
      }
178
39.3k
      if (keepStatesSynced == KEEP_STATES_SYNCED_OUTDIFF) {
179
90.4k
        for (col = slotOffset; col < overlap + LPC_ORDER; col++) {
180
84.3k
          i = 0;
181
593k
          for (band = numBands; band > 0; band--) {
182
509k
            if ((target + band - 1 < 64) &&
183
509k
                (target + band - 1 < xOverQmf[patch + 1])) {
184
509k
              ppqmfReal[col][target + band - 1] = ppqmfReal[col][startBand - i];
185
509k
              ppqmfImag[col][target + band - 1] = ppqmfImag[col][startBand - i];
186
509k
              i++;
187
509k
            }
188
509k
          }
189
84.3k
        }
190
33.3k
      } else {
191
1.55M
        for (col = slotOffset; col < noCols; col++) {
192
1.52M
          i = 0;
193
12.3M
          for (band = numBands; band > 0; band--) {
194
10.8M
            if ((target + band - 1 < 64) &&
195
10.8M
                (target + band - 1 < xOverQmf[patch + 1])) {
196
10.8M
              ppqmfReal[col][target + band - 1] = ppqmfReal[col][startBand - i];
197
10.8M
              ppqmfImag[col][target + band - 1] = ppqmfImag[col][startBand - i];
198
10.8M
              i++;
199
10.8M
            }
200
10.8M
          }
201
1.52M
        }
202
33.3k
      }
203
39.3k
      target += numBands;
204
39.3k
      patchBands -= numBands;
205
39.3k
    }
206
31.9k
  }
207
72.5k
}
208
209
/*!
210
  \brief      SBR decoder core function for one channel
211
212
  \image html  BufferMgmtDetailed-1632.png
213
214
  Besides the filter states of the QMF filter bank and the LPC-states of
215
  the LPP-Transposer, processing is mainly based on four buffers:
216
  #timeIn, #timeOut, #WorkBuffer2 and #OverlapBuffer. The #WorkBuffer2
217
  is reused for all channels and might be used by the core decoder, a
218
  static overlap buffer is required for each channel. Due to in-place
219
  processing, #timeIn and #timeOut point to identical locations.
220
221
  The spectral data is organized in so-called slots. Each slot
222
  contains 64 bands of complex data. The number of slots per frame
223
  depends on the frame size. For mp3PRO, there are 18 slots per frame
224
  and 6 slots per #OverlapBuffer. It is not necessary to have the slots
225
  in located consecutive address ranges.
226
227
  To optimize memory usage and to minimize the number of memory
228
  accesses, the memory management is organized as follows (slot numbers
229
  based on mp3PRO):
230
231
  1.) Input time domain signal is located in #timeIn. The last slots
232
  (0..5) of the spectral data of the previous frame are located in the
233
  #OverlapBuffer. In addition, #frameData of the current frame resides
234
  in the upper part of #timeIn.
235
236
  2.) During the cplxAnalysisQmfFiltering(), 32 samples from #timeIn are
237
  transformed into a slot of up to 32 complex spectral low band values at a
238
  time. The first spectral slot -- nr. 6 -- is written at slot number
239
  zero of #WorkBuffer2. #WorkBuffer2 will be completely filled with
240
  spectral data.
241
242
  3.) LPP-Transposition in lppTransposer() is processed on 24 slots. During the
243
  transposition, the high band part of the spectral data is replicated
244
  based on the low band data.
245
246
  Envelope Adjustment is processed on the high band part of the spectral
247
  data only by calculateSbrEnvelope().
248
249
  4.) The cplxSynthesisQmfFiltering() creates 64 time domain samples out
250
  of a slot of 64 complex spectral values at a time. The first 6 slots
251
  in #timeOut are filled from the results of spectral slots 0..5 in the
252
  #OverlapBuffer. The consecutive slots in timeOut are now filled with
253
  the results of spectral slots 6..17.
254
255
  5.) The preprocessed slots 18..23 have to be stored in the
256
  #OverlapBuffer.
257
258
*/
259
260
void sbr_dec(
261
    HANDLE_SBR_DEC hSbrDec,             /*!< handle to Decoder channel */
262
    LONG *timeIn,                       /*!< pointer to input time signal */
263
    LONG *timeOut,                      /*!< pointer to output time signal */
264
    HANDLE_SBR_DEC hSbrDecRight,        /*!< handle to Decoder channel right */
265
    LONG *timeOutRight,                 /*!< pointer to output time signal */
266
    const int strideOut,                /*!< Time data traversal strideOut */
267
    HANDLE_SBR_HEADER_DATA hHeaderData, /*!< Static control data */
268
    HANDLE_SBR_FRAME_DATA hFrameData,   /*!< Control data of current frame */
269
    HANDLE_SBR_PREV_FRAME_DATA
270
        hPrevFrameData,        /*!< Some control data of last frame */
271
    const int applyProcessing, /*!< Flag for SBR operation */
272
    HANDLE_PS_DEC h_ps_d, const UINT flags, const int codecFrameSize,
273
555k
    const INT sbrInDataHeadroom) {
274
555k
  int i, slot, reserve;
275
555k
  int saveLbScale;
276
555k
  int lastSlotOffs;
277
555k
  FIXP_DBL maxVal;
278
279
  /* temporary pointer / variable for QMF;
280
     required as we want to use temporary buffer
281
     creating one frame delay for HBE in LP mode */
282
555k
  LONG *pTimeInQmf = timeIn;
283
284
  /* Number of QMF timeslots in the overlap buffer: */
285
555k
  int ov_len = hSbrDec->LppTrans.pSettings->overlap;
286
287
  /* Number of QMF slots per frame */
288
555k
  int noCols = hHeaderData->numberTimeSlots * hHeaderData->timeStep;
289
290
  /* create pointer array for data to use for HBE and legacy sbr */
291
555k
  FIXP_DBL *pLowBandReal[(3 * 4) + 2 * ((1024) / (32) * (4) / 2)];
292
555k
  FIXP_DBL *pLowBandImag[(3 * 4) + 2 * ((1024) / (32) * (4) / 2)];
293
294
  /* set pReal to where QMF analysis writes in case of legacy SBR */
295
555k
  FIXP_DBL **pReal = pLowBandReal + ov_len;
296
555k
  FIXP_DBL **pImag = pLowBandImag + ov_len;
297
298
  /* map QMF buffer to pointer array (Overlap + Frame)*/
299
20.8M
  for (i = 0; i < noCols + ov_len; i++) {
300
20.2M
    pLowBandReal[i] = hSbrDec->qmfDomainInCh->hQmfSlotsReal[i];
301
20.2M
    pLowBandImag[i] = hSbrDec->qmfDomainInCh->hQmfSlotsImag[i];
302
20.2M
  }
303
304
555k
  if ((flags & SBRDEC_USAC_HARMONICSBR)) {
305
    /* in case of harmonic SBR and no HBE_LP map additional buffer for
306
       one more frame to pointer arry */
307
5.05M
    for (i = 0; i < noCols; i++) {
308
4.95M
      pLowBandReal[i + noCols + ov_len] = hSbrDec->hQmfHBESlotsReal[i];
309
4.95M
      pLowBandImag[i + noCols + ov_len] = hSbrDec->hQmfHBESlotsImag[i];
310
4.95M
    }
311
312
    /* shift scale values according to buffer */
313
90.7k
    hSbrDec->scale_ov = hSbrDec->scale_lb;
314
90.7k
    hSbrDec->scale_lb = hSbrDec->scale_hbe;
315
316
    /* set pReal to where QMF analysis writes in case of HBE */
317
90.7k
    pReal += noCols;
318
90.7k
    pImag += noCols;
319
90.7k
    if (flags & SBRDEC_SKIP_QMF_ANA) {
320
      /* stereoCfgIndex3 with HBE */
321
50.1k
      FDK_QmfDomain_QmfData2HBE(hSbrDec->qmfDomainInCh,
322
50.1k
                                hSbrDec->hQmfHBESlotsReal,
323
50.1k
                                hSbrDec->hQmfHBESlotsImag);
324
50.1k
    } else {
325
      /* We have to move old hbe frame data to lb area of buffer */
326
1.80M
      for (i = 0; i < noCols; i++) {
327
1.76M
        FDKmemcpy(pLowBandReal[ov_len + i], hSbrDec->hQmfHBESlotsReal[i],
328
1.76M
                  hHeaderData->numberOfAnalysisBands * sizeof(FIXP_DBL));
329
1.76M
        FDKmemcpy(pLowBandImag[ov_len + i], hSbrDec->hQmfHBESlotsImag[i],
330
1.76M
                  hHeaderData->numberOfAnalysisBands * sizeof(FIXP_DBL));
331
1.76M
      }
332
40.6k
    }
333
90.7k
  }
334
335
  /*
336
    low band codec signal subband filtering
337
   */
338
339
555k
  if (flags & SBRDEC_SKIP_QMF_ANA) {
340
71.3k
    if (!(flags & SBRDEC_USAC_HARMONICSBR)) /* stereoCfgIndex3 w/o HBE */
341
21.2k
      FDK_QmfDomain_WorkBuffer2ProcChannel(hSbrDec->qmfDomainInCh);
342
483k
  } else {
343
483k
    C_AALLOC_SCRATCH_START(qmfTemp, FIXP_DBL, 2 * (64));
344
483k
    qmfAnalysisFiltering(&hSbrDec->qmfDomainInCh->fb, pReal, pImag,
345
483k
                         &hSbrDec->qmfDomainInCh->scaling, pTimeInQmf,
346
483k
                         0 + sbrInDataHeadroom, 1, qmfTemp);
347
348
483k
    C_AALLOC_SCRATCH_END(qmfTemp, FIXP_DBL, 2 * (64));
349
483k
  }
350
351
  /*
352
    Clear upper half of spectrum
353
  */
354
555k
  if (!((flags & SBRDEC_USAC_HARMONICSBR) &&
355
555k
        (hFrameData->sbrPatchingMode == 0))) {
356
491k
    int nAnalysisBands = hHeaderData->numberOfAnalysisBands;
357
358
491k
    if (!(flags & SBRDEC_LOW_POWER)) {
359
10.0M
      for (slot = ov_len; slot < noCols + ov_len; slot++) {
360
9.76M
        FDKmemclear(&pLowBandReal[slot][nAnalysisBands],
361
9.76M
                    ((64) - nAnalysisBands) * sizeof(FIXP_DBL));
362
9.76M
        FDKmemclear(&pLowBandImag[slot][nAnalysisBands],
363
9.76M
                    ((64) - nAnalysisBands) * sizeof(FIXP_DBL));
364
9.76M
      }
365
272k
    } else {
366
4.60M
      for (slot = ov_len; slot < noCols + ov_len; slot++) {
367
4.38M
        FDKmemclear(&pLowBandReal[slot][nAnalysisBands],
368
4.38M
                    ((64) - nAnalysisBands) * sizeof(FIXP_DBL));
369
4.38M
      }
370
218k
    }
371
491k
  }
372
373
  /*
374
    Shift spectral data left to gain accuracy in transposer and adjustor
375
  */
376
  /* Range was increased from lsb to no_channels because in some cases (e.g.
377
     USAC conf eSbr_4_Pvc.mp4 and some HBE cases) it could be observed that the
378
     signal between lsb and no_channels is used for the patching process.
379
  */
380
555k
  maxVal = maxSubbandSample(pReal, (flags & SBRDEC_LOW_POWER) ? NULL : pImag, 0,
381
555k
                            hSbrDec->qmfDomainInCh->fb.no_channels, 0, noCols);
382
383
555k
  reserve = fixMax(0, CntLeadingZeros(maxVal) - 1);
384
555k
  reserve = fixMin(reserve,
385
555k
                   DFRACT_BITS - 1 - hSbrDec->qmfDomainInCh->scaling.lb_scale);
386
387
  /* If all data is zero, lb_scale could become too large */
388
555k
  rescaleSubbandSamples(pReal, (flags & SBRDEC_LOW_POWER) ? NULL : pImag, 0,
389
555k
                        hSbrDec->qmfDomainInCh->fb.no_channels, 0, noCols,
390
555k
                        reserve);
391
392
555k
  hSbrDec->qmfDomainInCh->scaling.lb_scale += reserve;
393
394
555k
  if ((flags & SBRDEC_USAC_HARMONICSBR)) {
395
    /* actually this is our hbe_scale */
396
90.7k
    hSbrDec->scale_hbe = hSbrDec->qmfDomainInCh->scaling.lb_scale;
397
    /* the real lb_scale is stored in scale_lb from sbr */
398
90.7k
    hSbrDec->qmfDomainInCh->scaling.lb_scale = hSbrDec->scale_lb;
399
90.7k
  }
400
  /*
401
    save low band scale, wavecoding or parametric stereo may modify it
402
  */
403
555k
  saveLbScale = hSbrDec->qmfDomainInCh->scaling.lb_scale;
404
405
555k
  if (applyProcessing) {
406
334k
    UCHAR *borders = hFrameData->frameInfo.borders;
407
334k
    lastSlotOffs = borders[hFrameData->frameInfo.nEnvelopes] -
408
334k
                   hHeaderData->numberTimeSlots;
409
410
334k
    FIXP_DBL degreeAlias[(64)];
411
334k
    PVC_DYNAMIC_DATA pvcDynamicData;
412
334k
    pvcInitFrame(
413
334k
        &hSbrDec->PvcStaticData, &pvcDynamicData,
414
334k
        (hHeaderData->frameErrorFlag ? 0 : hHeaderData->bs_info.pvc_mode),
415
334k
        hFrameData->ns, hHeaderData->timeStep,
416
334k
        hHeaderData->freqBandData.lowSubband,
417
334k
        hFrameData->frameInfo.pvcBorders[0], hFrameData->pvcID);
418
419
334k
    if (!hHeaderData->frameErrorFlag && (hHeaderData->bs_info.pvc_mode > 0)) {
420
78.2k
      pvcDecodeFrame(&hSbrDec->PvcStaticData, &pvcDynamicData, pLowBandReal,
421
78.2k
                     pLowBandImag, ov_len,
422
78.2k
                     SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.ov_lb_scale),
423
78.2k
                     SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.lb_scale));
424
78.2k
    }
425
334k
    pvcEndFrame(&hSbrDec->PvcStaticData, &pvcDynamicData);
426
427
    /* The transposer will override most values in degreeAlias[].
428
       The array needs to be cleared at least from lowSubband to highSubband
429
       before. */
430
334k
    if (flags & SBRDEC_LOW_POWER)
431
61.6k
      FDKmemclear(&degreeAlias[hHeaderData->freqBandData.lowSubband],
432
61.6k
                  (hHeaderData->freqBandData.highSubband -
433
61.6k
                   hHeaderData->freqBandData.lowSubband) *
434
61.6k
                      sizeof(FIXP_DBL));
435
436
    /*
437
      Inverse filtering of lowband and transposition into the SBR-frequency
438
      range
439
    */
440
441
334k
    {
442
334k
      KEEP_STATES_SYNCED_MODE keepStatesSyncedMode =
443
334k
          ((flags & SBRDEC_USAC_HARMONICSBR) &&
444
334k
           (hFrameData->sbrPatchingMode != 0))
445
334k
              ? KEEP_STATES_SYNCED_NORMAL
446
334k
              : KEEP_STATES_SYNCED_OFF;
447
448
334k
      if (flags & SBRDEC_USAC_HARMONICSBR) {
449
82.3k
        if (flags & SBRDEC_QUAD_RATE) {
450
60.9k
          pReal -= 32;
451
60.9k
          pImag -= 32;
452
60.9k
        }
453
454
82.3k
        if ((hSbrDec->savedStates == 0) && (hFrameData->sbrPatchingMode == 1)) {
455
          /* copy saved states from previous frame to legacy SBR lpc filterstate
456
           * buffer   */
457
348k
          for (i = 0; i < LPC_ORDER + ov_len; i++) {
458
324k
            FDKmemcpy(
459
324k
                hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[i],
460
324k
                hSbrDec->codecQMFBufferReal[noCols - LPC_ORDER - ov_len + i],
461
324k
                hSbrDec->hHBE->noChannels * sizeof(FIXP_DBL));
462
324k
            FDKmemcpy(
463
324k
                hSbrDec->LppTrans.lpcFilterStatesImagLegSBR[i],
464
324k
                hSbrDec->codecQMFBufferImag[noCols - LPC_ORDER - ov_len + i],
465
324k
                hSbrDec->hHBE->noChannels * sizeof(FIXP_DBL));
466
324k
          }
467
23.4k
        }
468
469
        /* saving unmodified QMF states in case we are switching from legacy SBR
470
         * to HBE */
471
4.66M
        for (i = 0; i < hSbrDec->hHBE->noCols; i++) {
472
4.58M
          FDKmemcpy(hSbrDec->codecQMFBufferReal[i], pLowBandReal[ov_len + i],
473
4.58M
                    hSbrDec->hHBE->noChannels * sizeof(FIXP_DBL));
474
4.58M
          FDKmemcpy(hSbrDec->codecQMFBufferImag[i], pLowBandImag[ov_len + i],
475
4.58M
                    hSbrDec->hHBE->noChannels * sizeof(FIXP_DBL));
476
4.58M
        }
477
478
82.3k
        QmfTransposerApply(
479
82.3k
            hSbrDec->hHBE, pReal, pImag, noCols, pLowBandReal, pLowBandImag,
480
82.3k
            hSbrDec->LppTrans.lpcFilterStatesRealHBE,
481
82.3k
            hSbrDec->LppTrans.lpcFilterStatesImagHBE,
482
82.3k
            hFrameData->sbrPitchInBins, hSbrDec->scale_lb, hSbrDec->scale_hbe,
483
82.3k
            &hSbrDec->qmfDomainInCh->scaling.hb_scale, hHeaderData->timeStep,
484
82.3k
            borders[0], ov_len, keepStatesSyncedMode);
485
486
82.3k
        if (flags & SBRDEC_QUAD_RATE) {
487
60.9k
          int *xOverQmf = GetxOverBandQmfTransposer(hSbrDec->hHBE);
488
489
60.9k
          copyHarmonicSpectrum(xOverQmf, pLowBandReal, pLowBandImag, noCols,
490
60.9k
                               ov_len, keepStatesSyncedMode);
491
60.9k
        }
492
82.3k
      }
493
334k
    }
494
495
334k
    if ((flags & SBRDEC_USAC_HARMONICSBR) &&
496
334k
        (hFrameData->sbrPatchingMode == 0)) {
497
56.1k
      hSbrDec->prev_frame_lSbr = 0;
498
56.1k
      hSbrDec->prev_frame_hbeSbr = 1;
499
500
56.1k
      lppTransposerHBE(
501
56.1k
          &hSbrDec->LppTrans, hSbrDec->hHBE, &hSbrDec->qmfDomainInCh->scaling,
502
56.1k
          pLowBandReal, pLowBandImag, hHeaderData->timeStep, borders[0],
503
56.1k
          lastSlotOffs, hHeaderData->freqBandData.nInvfBands,
504
56.1k
          hFrameData->sbr_invf_mode, hPrevFrameData->sbr_invf_mode);
505
506
278k
    } else {
507
278k
      if (flags & SBRDEC_USAC_HARMONICSBR) {
508
380k
        for (i = 0; i < LPC_ORDER + hSbrDec->LppTrans.pSettings->overlap; i++) {
509
          /*
510
          Store the unmodified qmf Slots values for upper part of spectrum
511
          (required for LPC filtering) required if next frame is a HBE frame
512
          */
513
354k
          FDKmemcpy(hSbrDec->LppTrans.lpcFilterStatesRealHBE[i],
514
354k
                    hSbrDec->qmfDomainInCh
515
354k
                        ->hQmfSlotsReal[hSbrDec->hHBE->noCols - LPC_ORDER + i],
516
354k
                    (64) * sizeof(FIXP_DBL));
517
354k
          FDKmemcpy(hSbrDec->LppTrans.lpcFilterStatesImagHBE[i],
518
354k
                    hSbrDec->qmfDomainInCh
519
354k
                        ->hQmfSlotsImag[hSbrDec->hHBE->noCols - LPC_ORDER + i],
520
354k
                    (64) * sizeof(FIXP_DBL));
521
354k
        }
522
26.1k
      }
523
278k
      {
524
278k
        hSbrDec->prev_frame_lSbr = 1;
525
278k
        hSbrDec->prev_frame_hbeSbr = 0;
526
278k
      }
527
528
278k
      lppTransposer(
529
278k
          &hSbrDec->LppTrans, &hSbrDec->qmfDomainInCh->scaling, pLowBandReal,
530
278k
          degreeAlias,  // only used if useLP = 1
531
278k
          pLowBandImag, flags & SBRDEC_LOW_POWER,
532
278k
          hHeaderData->bs_info.sbr_preprocessing,
533
278k
          hHeaderData->freqBandData.v_k_master[0], hHeaderData->timeStep,
534
278k
          borders[0], lastSlotOffs, hHeaderData->freqBandData.nInvfBands,
535
278k
          hFrameData->sbr_invf_mode, hPrevFrameData->sbr_invf_mode);
536
278k
    }
537
538
    /*
539
      Adjust envelope of current frame.
540
    */
541
542
334k
    if ((hFrameData->sbrPatchingMode !=
543
334k
         hSbrDec->SbrCalculateEnvelope.sbrPatchingMode)) {
544
33.5k
      ResetLimiterBands(hHeaderData->freqBandData.limiterBandTable,
545
33.5k
                        &hHeaderData->freqBandData.noLimiterBands,
546
33.5k
                        hHeaderData->freqBandData.freqBandTable[0],
547
33.5k
                        hHeaderData->freqBandData.nSfb[0],
548
33.5k
                        hSbrDec->LppTrans.pSettings->patchParam,
549
33.5k
                        hSbrDec->LppTrans.pSettings->noOfPatches,
550
33.5k
                        hHeaderData->bs_data.limiterBands,
551
33.5k
                        hFrameData->sbrPatchingMode,
552
33.5k
                        (flags & SBRDEC_USAC_HARMONICSBR) &&
553
33.5k
                                (hFrameData->sbrPatchingMode == 0)
554
33.5k
                            ? GetxOverBandQmfTransposer(hSbrDec->hHBE)
555
33.5k
                            : NULL,
556
33.5k
                        Get41SbrQmfTransposer(hSbrDec->hHBE));
557
558
33.5k
      hSbrDec->SbrCalculateEnvelope.sbrPatchingMode =
559
33.5k
          hFrameData->sbrPatchingMode;
560
33.5k
    }
561
562
334k
    calculateSbrEnvelope(
563
334k
        &hSbrDec->qmfDomainInCh->scaling, &hSbrDec->SbrCalculateEnvelope,
564
334k
        hHeaderData, hFrameData, &pvcDynamicData, pLowBandReal, pLowBandImag,
565
334k
        flags & SBRDEC_LOW_POWER,
566
567
334k
        degreeAlias, flags,
568
334k
        (hHeaderData->frameErrorFlag || hPrevFrameData->frameErrorFlag));
569
570
#if (SBRDEC_MAX_HB_FADE_FRAMES > 0)
571
    /* Avoid hard onsets of high band */
572
    if (hHeaderData->frameErrorFlag) {
573
      if (hSbrDec->highBandFadeCnt < SBRDEC_MAX_HB_FADE_FRAMES) {
574
        hSbrDec->highBandFadeCnt += 1;
575
      }
576
    } else {
577
      if (hSbrDec->highBandFadeCnt >
578
          0) { /* Manipulate high band scale factor to get a smooth fade-in */
579
        hSbrDec->qmfDomainInCh->scaling.hb_scale += hSbrDec->highBandFadeCnt;
580
        hSbrDec->qmfDomainInCh->scaling.hb_scale =
581
            fMin(hSbrDec->qmfDomainInCh->scaling.hb_scale, DFRACT_BITS - 1);
582
        hSbrDec->highBandFadeCnt -= 1;
583
      }
584
    }
585
586
#endif
587
    /*
588
      Update hPrevFrameData (to be used in the next frame)
589
    */
590
1.05M
    for (i = 0; i < hHeaderData->freqBandData.nInvfBands; i++) {
591
723k
      hPrevFrameData->sbr_invf_mode[i] = hFrameData->sbr_invf_mode[i];
592
723k
    }
593
334k
    hPrevFrameData->coupling = hFrameData->coupling;
594
334k
    hPrevFrameData->stopPos = borders[hFrameData->frameInfo.nEnvelopes];
595
334k
    hPrevFrameData->ampRes = hFrameData->ampResolutionCurrentFrame;
596
334k
    hPrevFrameData->prevSbrPitchInBins = hFrameData->sbrPitchInBins;
597
    /* could be done in extractFrameInfo_pvc() but hPrevFrameData is not
598
     * available there */
599
334k
    FDKmemcpy(&hPrevFrameData->prevFrameInfo, &hFrameData->frameInfo,
600
334k
              sizeof(FRAME_INFO));
601
334k
  } else {
602
    /* rescale from lsb to nAnalysisBands in order to compensate scaling with
603
     * hb_scale in this area, done by synthesisFiltering*/
604
220k
    int rescale;
605
220k
    int lsb;
606
220k
    int length;
607
608
    /* Reset hb_scale if no highband is present, because hb_scale is considered
609
     * in the QMF-synthesis */
610
220k
    hSbrDec->qmfDomainInCh->scaling.hb_scale = saveLbScale;
611
612
220k
    rescale = hSbrDec->qmfDomainInCh->scaling.hb_scale -
613
220k
              hSbrDec->qmfDomainInCh->scaling.ov_lb_scale;
614
220k
    lsb = hSbrDec->qmfDomainOutCh->fb.lsb;
615
220k
    length = (hSbrDec->qmfDomainInCh->fb.no_channels - lsb);
616
617
220k
    if ((rescale < 0) && (length > 0)) {
618
15.4k
      if (!(flags & SBRDEC_LOW_POWER)) {
619
28.3k
        for (i = 0; i < ov_len; i++) {
620
24.6k
          scaleValues(&pLowBandReal[i][lsb], length, rescale);
621
24.6k
          scaleValues(&pLowBandImag[i][lsb], length, rescale);
622
24.6k
        }
623
11.7k
      } else {
624
13.0k
        for (i = 0; i < ov_len; i++) {
625
1.34k
          scaleValues(&pLowBandReal[i][lsb], length, rescale);
626
1.34k
        }
627
11.7k
      }
628
15.4k
    }
629
220k
  }
630
631
555k
  if (!(flags & SBRDEC_USAC_HARMONICSBR)) {
632
464k
    int length = hSbrDec->qmfDomainInCh->fb.lsb;
633
464k
    if (flags & SBRDEC_SYNTAX_USAC) {
634
237k
      length = hSbrDec->qmfDomainInCh->fb.no_channels;
635
237k
    }
636
637
    /* in case of legacy sbr saving of filter states here */
638
3.30M
    for (i = 0; i < LPC_ORDER + ov_len; i++) {
639
      /*
640
        Store the unmodified qmf Slots values (required for LPC filtering)
641
      */
642
2.84M
      if (!(flags & SBRDEC_LOW_POWER)) {
643
2.00M
        FDKmemcpy(hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[i],
644
2.00M
                  pLowBandReal[noCols - LPC_ORDER + i],
645
2.00M
                  length * sizeof(FIXP_DBL));
646
2.00M
        FDKmemcpy(hSbrDec->LppTrans.lpcFilterStatesImagLegSBR[i],
647
2.00M
                  pLowBandImag[noCols - LPC_ORDER + i],
648
2.00M
                  length * sizeof(FIXP_DBL));
649
2.00M
      } else
650
838k
        FDKmemcpy(hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[i],
651
838k
                  pLowBandReal[noCols - LPC_ORDER + i],
652
838k
                  length * sizeof(FIXP_DBL));
653
2.84M
    }
654
464k
  }
655
656
  /*
657
    Synthesis subband filtering.
658
  */
659
660
555k
  if (!(flags & SBRDEC_PS_DECODED)) {
661
551k
    if (!(flags & SBRDEC_SKIP_QMF_SYN)) {
662
457k
      int outScalefactor = -(8);
663
664
457k
      if (h_ps_d != NULL) {
665
39.3k
        h_ps_d->procFrameBased = 1; /* we here do frame based processing */
666
39.3k
      }
667
668
457k
      sbrDecoder_drcApply(&hSbrDec->sbrDrcChannel, pLowBandReal,
669
457k
                          (flags & SBRDEC_LOW_POWER) ? NULL : pLowBandImag,
670
457k
                          hSbrDec->qmfDomainOutCh->fb.no_col, &outScalefactor);
671
672
457k
      qmfChangeOutScalefactor(&hSbrDec->qmfDomainOutCh->fb, outScalefactor);
673
674
457k
      {
675
457k
        HANDLE_FREQ_BAND_DATA hFreq = &hHeaderData->freqBandData;
676
457k
        int save_usb = hSbrDec->qmfDomainOutCh->fb.usb;
677
678
457k
#if (QMF_MAX_SYNTHESIS_BANDS <= 64)
679
457k
        C_AALLOC_SCRATCH_START(qmfTemp, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
680
#else
681
        C_AALLOC_STACK_START(qmfTemp, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
682
#endif
683
457k
        if (hSbrDec->qmfDomainOutCh->fb.usb < hFreq->ov_highSubband) {
684
          /* we need to patch usb for this frame as overlap may contain higher
685
             frequency range if headerchange occured; fb. usb is always limited
686
             to maximum fb.no_channels; In case of wrongly decoded headers it
687
             might be that ov_highSubband is higher than the number of synthesis
688
             channels (fb.no_channels), which is forbidden, therefore we need to
689
             limit ov_highSubband with fMin function to avoid not allowed usb in
690
             synthesis filterbank. */
691
46.3k
          hSbrDec->qmfDomainOutCh->fb.usb =
692
46.3k
              fMin((UINT)hFreq->ov_highSubband,
693
46.3k
                   (UINT)hSbrDec->qmfDomainOutCh->fb.no_channels);
694
46.3k
        }
695
457k
        {
696
457k
          qmfSynthesisFiltering(
697
457k
              &hSbrDec->qmfDomainOutCh->fb, pLowBandReal,
698
457k
              (flags & SBRDEC_LOW_POWER) ? NULL : pLowBandImag,
699
457k
              &hSbrDec->qmfDomainInCh->scaling,
700
457k
              hSbrDec->LppTrans.pSettings->overlap, timeOut, strideOut,
701
457k
              qmfTemp);
702
457k
        }
703
        /* restore saved value */
704
457k
        hSbrDec->qmfDomainOutCh->fb.usb = save_usb;
705
457k
        hFreq->ov_highSubband = save_usb;
706
457k
#if (QMF_MAX_SYNTHESIS_BANDS <= 64)
707
457k
        C_AALLOC_SCRATCH_END(qmfTemp, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
708
#else
709
        C_AALLOC_STACK_END(qmfTemp, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
710
#endif
711
457k
      }
712
457k
    }
713
714
551k
  } else { /* (flags & SBRDEC_PS_DECODED) */
715
3.67k
    INT sdiff;
716
3.67k
    INT scaleFactorHighBand, scaleFactorLowBand_ov, scaleFactorLowBand_no_ov,
717
3.67k
        outScalefactor, outScalefactorR, outScalefactorL;
718
719
3.67k
    HANDLE_QMF_FILTER_BANK synQmf = &hSbrDec->qmfDomainOutCh->fb;
720
3.67k
    HANDLE_QMF_FILTER_BANK synQmfRight = &hSbrDecRight->qmfDomainOutCh->fb;
721
722
    /* adapt scaling */
723
3.67k
    sdiff = hSbrDec->qmfDomainInCh->scaling.lb_scale -
724
3.67k
            reserve; /* Scaling difference */
725
3.67k
    scaleFactorHighBand = sdiff - hSbrDec->qmfDomainInCh->scaling.hb_scale;
726
3.67k
    scaleFactorLowBand_ov = sdiff - hSbrDec->qmfDomainInCh->scaling.ov_lb_scale;
727
3.67k
    scaleFactorLowBand_no_ov = sdiff - hSbrDec->qmfDomainInCh->scaling.lb_scale;
728
729
    /* Scale of low band overlapping QMF data */
730
3.67k
    scaleFactorLowBand_ov =
731
3.67k
        fMin(DFRACT_BITS - 1, fMax(-(DFRACT_BITS - 1), scaleFactorLowBand_ov));
732
    /* Scale of low band current QMF data     */
733
3.67k
    scaleFactorLowBand_no_ov = fMin(
734
3.67k
        DFRACT_BITS - 1, fMax(-(DFRACT_BITS - 1), scaleFactorLowBand_no_ov));
735
    /* Scale of current high band */
736
3.67k
    scaleFactorHighBand =
737
3.67k
        fMin(DFRACT_BITS - 1, fMax(-(DFRACT_BITS - 1), scaleFactorHighBand));
738
739
3.67k
    if (h_ps_d->procFrameBased == 1) /* If we have switched from frame to slot
740
                                        based processing copy filter states */
741
468
    {                                /* procFrameBased will be unset later */
742
      /* copy filter states from left to right */
743
      /* was ((640)-(64))*sizeof(FIXP_QSS)
744
         flexible amount of synthesis bands needed for QMF based resampling
745
      */
746
468
      FDK_ASSERT(hSbrDec->qmfDomainInCh->pGlobalConf->nBandsSynthesis <=
747
0
                 QMF_MAX_SYNTHESIS_BANDS);
748
0
      synQmfRight->outScalefactor = synQmf->outScalefactor;
749
468
      FDKmemcpy(synQmfRight->FilterStates, synQmf->FilterStates,
750
468
                9 * hSbrDec->qmfDomainInCh->pGlobalConf->nBandsSynthesis *
751
468
                    sizeof(FIXP_QSS));
752
468
    }
753
754
    /* Feed delaylines when parametric stereo is switched on. */
755
0
    PreparePsProcessing(h_ps_d, pLowBandReal, pLowBandImag,
756
3.67k
                        scaleFactorLowBand_ov);
757
758
    /* use the same synthese qmf values for left and right channel */
759
3.67k
    synQmfRight->no_col = synQmf->no_col;
760
3.67k
    synQmfRight->lsb = synQmf->lsb;
761
3.67k
    synQmfRight->usb = synQmf->usb;
762
763
3.67k
    int env = 0;
764
765
3.67k
    {
766
3.67k
#if (QMF_MAX_SYNTHESIS_BANDS <= 64)
767
3.67k
      C_AALLOC_SCRATCH_START(pWorkBuffer, FIXP_DBL,
768
3.67k
                             2 * QMF_MAX_SYNTHESIS_BANDS);
769
#else
770
      C_AALLOC_STACK_START(pWorkBuffer, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
771
#endif
772
773
3.67k
      int maxShift = 0;
774
775
3.67k
      if (hSbrDec->sbrDrcChannel.enable != 0) {
776
918
        if (hSbrDec->sbrDrcChannel.prevFact_exp > maxShift) {
777
673
          maxShift = hSbrDec->sbrDrcChannel.prevFact_exp;
778
673
        }
779
918
        if (hSbrDec->sbrDrcChannel.currFact_exp > maxShift) {
780
167
          maxShift = hSbrDec->sbrDrcChannel.currFact_exp;
781
167
        }
782
918
        if (hSbrDec->sbrDrcChannel.nextFact_exp > maxShift) {
783
176
          maxShift = hSbrDec->sbrDrcChannel.nextFact_exp;
784
176
        }
785
918
      }
786
787
      /* copy DRC data to right channel (with PS both channels use the same DRC
788
       * gains) */
789
3.67k
      FDKmemcpy(&hSbrDecRight->sbrDrcChannel, &hSbrDec->sbrDrcChannel,
790
3.67k
                sizeof(SBRDEC_DRC_CHANNEL));
791
792
3.67k
      outScalefactor = maxShift - (8);
793
3.67k
      outScalefactorL = outScalefactorR =
794
3.67k
          sbrInDataHeadroom + 1; /* +1: psDiffScale! (MPEG-PS) */
795
796
115k
      for (i = 0; i < synQmf->no_col; i++) { /* ----- no_col loop ----- */
797
798
        /* qmf timeslot of right channel */
799
112k
        FIXP_DBL *rQmfReal = pWorkBuffer;
800
112k
        FIXP_DBL *rQmfImag = pWorkBuffer + synQmf->no_channels;
801
802
112k
        {
803
112k
          if (i ==
804
112k
              h_ps_d->bsData[h_ps_d->processSlot].mpeg.aEnvStartStop[env]) {
805
8.75k
            initSlotBasedRotation(h_ps_d, env,
806
8.75k
                                  hHeaderData->freqBandData.highSubband);
807
8.75k
            env++;
808
8.75k
          }
809
810
112k
          ApplyPsSlot(
811
112k
              h_ps_d,             /* parametric stereo decoder handle  */
812
112k
              (pLowBandReal + i), /* one timeslot of left/mono channel */
813
112k
              (pLowBandImag + i), /* one timeslot of left/mono channel */
814
112k
              rQmfReal,           /* one timeslot or right channel     */
815
112k
              rQmfImag,           /* one timeslot or right channel     */
816
112k
              scaleFactorLowBand_no_ov,
817
112k
              (i < hSbrDec->LppTrans.pSettings->overlap)
818
112k
                  ? scaleFactorLowBand_ov
819
112k
                  : scaleFactorLowBand_no_ov,
820
112k
              scaleFactorHighBand, synQmf->lsb, synQmf->usb);
821
112k
        }
822
823
112k
        sbrDecoder_drcApplySlot(/* right channel */
824
112k
                                &hSbrDecRight->sbrDrcChannel, rQmfReal,
825
112k
                                rQmfImag, i, synQmfRight->no_col, maxShift);
826
827
112k
        sbrDecoder_drcApplySlot(/* left channel */
828
112k
                                &hSbrDec->sbrDrcChannel, *(pLowBandReal + i),
829
112k
                                *(pLowBandImag + i), i, synQmf->no_col,
830
112k
                                maxShift);
831
832
112k
        if (!(flags & SBRDEC_SKIP_QMF_SYN)) {
833
112k
          qmfChangeOutScalefactor(synQmf, outScalefactor);
834
112k
          qmfChangeOutScalefactor(synQmfRight, outScalefactor);
835
836
112k
          qmfSynthesisFilteringSlot(
837
112k
              synQmfRight, rQmfReal, /* QMF real buffer */
838
112k
              rQmfImag,              /* QMF imag buffer */
839
112k
              outScalefactorL, outScalefactorL,
840
112k
              timeOutRight + (i * synQmf->no_channels * strideOut), strideOut,
841
112k
              pWorkBuffer);
842
843
112k
          qmfSynthesisFilteringSlot(
844
112k
              synQmf, *(pLowBandReal + i), /* QMF real buffer */
845
112k
              *(pLowBandImag + i),         /* QMF imag buffer */
846
112k
              outScalefactorR, outScalefactorR,
847
112k
              timeOut + (i * synQmf->no_channels * strideOut), strideOut,
848
112k
              pWorkBuffer);
849
112k
        }
850
112k
      } /* no_col loop  i  */
851
3.67k
#if (QMF_MAX_SYNTHESIS_BANDS <= 64)
852
3.67k
      C_AALLOC_SCRATCH_END(pWorkBuffer, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
853
#else
854
      C_AALLOC_STACK_END(pWorkBuffer, FIXP_DBL, 2 * QMF_MAX_SYNTHESIS_BANDS);
855
#endif
856
3.67k
    }
857
3.67k
  }
858
859
0
  sbrDecoder_drcUpdateChannel(&hSbrDec->sbrDrcChannel);
860
861
  /*
862
    Update overlap buffer
863
    Even bands above usb are copied to avoid outdated spectral data in case
864
    the stop frequency raises.
865
  */
866
867
555k
  if (!(flags & SBRDEC_SKIP_QMF_SYN)) {
868
460k
    {
869
460k
      FDK_QmfDomain_SaveOverlap(hSbrDec->qmfDomainInCh, 0);
870
460k
      FDK_ASSERT(hSbrDec->qmfDomainInCh->scaling.ov_lb_scale == saveLbScale);
871
460k
    }
872
460k
  }
873
874
0
  hSbrDec->savedStates = 0;
875
876
  /* Save current frame status */
877
555k
  hPrevFrameData->frameErrorFlag = hHeaderData->frameErrorFlag;
878
555k
  hSbrDec->applySbrProc_old = applyProcessing;
879
880
555k
} /* sbr_dec() */
881
882
/*!
883
  \brief     Creates sbr decoder structure
884
  \return    errorCode, 0 if successful
885
*/
886
SBR_ERROR
887
createSbrDec(SBR_CHANNEL *hSbrChannel,
888
             HANDLE_SBR_HEADER_DATA hHeaderData, /*!< Static control data */
889
             TRANSPOSER_SETTINGS *pSettings,
890
             const int downsampleFac, /*!< Downsampling factor */
891
             const UINT qmfFlags, /*!< flags -> 1: HQ/LP selector, 2: CLDFB */
892
             const UINT flags, const int overlap,
893
             int chan, /*!< Channel for which to assign buffers etc. */
894
             int codecFrameSize)
895
896
233k
{
897
233k
  SBR_ERROR err = SBRDEC_OK;
898
233k
  int timeSlots =
899
233k
      hHeaderData->numberTimeSlots; /* Number of SBR slots per frame */
900
233k
  int noCols =
901
233k
      timeSlots * hHeaderData->timeStep; /* Number of QMF slots per frame */
902
233k
  HANDLE_SBR_DEC hs = &(hSbrChannel->SbrDec);
903
904
#if (SBRDEC_MAX_HB_FADE_FRAMES > 0)
905
  hs->highBandFadeCnt = SBRDEC_MAX_HB_FADE_FRAMES;
906
907
#endif
908
233k
  hs->scale_hbe = 15;
909
233k
  hs->scale_lb = 15;
910
233k
  hs->scale_ov = 15;
911
912
233k
  hs->prev_frame_lSbr = 0;
913
233k
  hs->prev_frame_hbeSbr = 0;
914
915
233k
  hs->codecFrameSize = codecFrameSize;
916
917
  /*
918
    create envelope calculator
919
  */
920
233k
  err = createSbrEnvelopeCalc(&hs->SbrCalculateEnvelope, hHeaderData, chan,
921
233k
                              flags);
922
233k
  if (err != SBRDEC_OK) {
923
2.22k
    return err;
924
2.22k
  }
925
926
231k
  initSbrPrevFrameData(&hSbrChannel->prevFrameData, timeSlots);
927
928
  /*
929
    create transposer
930
  */
931
231k
  err = createLppTransposer(
932
231k
      &hs->LppTrans, pSettings, hHeaderData->freqBandData.lowSubband,
933
231k
      hHeaderData->freqBandData.v_k_master, hHeaderData->freqBandData.numMaster,
934
231k
      hHeaderData->freqBandData.highSubband, timeSlots, noCols,
935
231k
      hHeaderData->freqBandData.freqBandTableNoise,
936
231k
      hHeaderData->freqBandData.nNfb, hHeaderData->sbrProcSmplRate, chan,
937
231k
      overlap);
938
231k
  if (err != SBRDEC_OK) {
939
221
    return err;
940
221
  }
941
942
231k
  if (flags & SBRDEC_USAC_HARMONICSBR) {
943
46.1k
    int noChannels, bSbr41 = flags & SBRDEC_QUAD_RATE ? 1 : 0;
944
945
46.1k
    noChannels =
946
46.1k
        QMF_SYNTH_CHANNELS /
947
46.1k
        ((bSbr41 + 1) * 2); /* 32 for (32:64 and 24:64) and 16 for 16:64 */
948
949
    /* shared memory between hbeLightTimeDelayBuffer and hQmfHBESlotsReal if
950
     * SBRDEC_HBE_ENABLE */
951
46.1k
    hSbrChannel->SbrDec.tmp_memory = (FIXP_DBL **)fdkCallocMatrix2D_aligned(
952
46.1k
        noCols, noChannels, sizeof(FIXP_DBL));
953
46.1k
    if (hSbrChannel->SbrDec.tmp_memory == NULL) {
954
0
      return SBRDEC_MEM_ALLOC_FAILED;
955
0
    }
956
957
46.1k
    hSbrChannel->SbrDec.hQmfHBESlotsReal = hSbrChannel->SbrDec.tmp_memory;
958
46.1k
    hSbrChannel->SbrDec.hQmfHBESlotsImag =
959
46.1k
        (FIXP_DBL **)fdkCallocMatrix2D_aligned(noCols, noChannels,
960
46.1k
                                               sizeof(FIXP_DBL));
961
46.1k
    if (hSbrChannel->SbrDec.hQmfHBESlotsImag == NULL) {
962
0
      return SBRDEC_MEM_ALLOC_FAILED;
963
0
    }
964
965
    /* buffers containing unmodified qmf data; required when switching from
966
     * legacy SBR to HBE                       */
967
    /* buffer can be used as LPCFilterstates buffer because legacy SBR needs
968
     * exactly these values for LPC filtering */
969
46.1k
    hSbrChannel->SbrDec.codecQMFBufferReal =
970
46.1k
        (FIXP_DBL **)fdkCallocMatrix2D_aligned(noCols, noChannels,
971
46.1k
                                               sizeof(FIXP_DBL));
972
46.1k
    if (hSbrChannel->SbrDec.codecQMFBufferReal == NULL) {
973
0
      return SBRDEC_MEM_ALLOC_FAILED;
974
0
    }
975
976
46.1k
    hSbrChannel->SbrDec.codecQMFBufferImag =
977
46.1k
        (FIXP_DBL **)fdkCallocMatrix2D_aligned(noCols, noChannels,
978
46.1k
                                               sizeof(FIXP_DBL));
979
46.1k
    if (hSbrChannel->SbrDec.codecQMFBufferImag == NULL) {
980
0
      return SBRDEC_MEM_ALLOC_FAILED;
981
0
    }
982
983
46.1k
    err = QmfTransposerCreate(&hs->hHBE, codecFrameSize, 0, bSbr41);
984
46.1k
    if (err != SBRDEC_OK) {
985
0
      return err;
986
0
    }
987
46.1k
  }
988
989
231k
  return err;
990
231k
}
991
992
/*!
993
  \brief     Delete sbr decoder structure
994
  \return    errorCode, 0 if successful
995
*/
996
235k
int deleteSbrDec(SBR_CHANNEL *hSbrChannel) {
997
235k
  HANDLE_SBR_DEC hs = &hSbrChannel->SbrDec;
998
999
235k
  deleteSbrEnvelopeCalc(&hs->SbrCalculateEnvelope);
1000
1001
235k
  if (hs->tmp_memory != NULL) {
1002
46.1k
    FDK_FREE_MEMORY_2D_ALIGNED(hs->tmp_memory);
1003
46.1k
  }
1004
1005
  /* modify here */
1006
235k
  FDK_FREE_MEMORY_2D_ALIGNED(hs->hQmfHBESlotsImag);
1007
1008
235k
  if (hs->hHBE != NULL) QmfTransposerClose(hs->hHBE);
1009
1010
235k
  if (hs->codecQMFBufferReal != NULL) {
1011
46.1k
    FDK_FREE_MEMORY_2D_ALIGNED(hs->codecQMFBufferReal);
1012
46.1k
  }
1013
1014
235k
  if (hs->codecQMFBufferImag != NULL) {
1015
46.1k
    FDK_FREE_MEMORY_2D_ALIGNED(hs->codecQMFBufferImag);
1016
46.1k
  }
1017
1018
235k
  return 0;
1019
235k
}
1020
1021
/*!
1022
  \brief     resets sbr decoder structure
1023
  \return    errorCode, 0 if successful
1024
*/
1025
SBR_ERROR
1026
resetSbrDec(HANDLE_SBR_DEC hSbrDec, HANDLE_SBR_HEADER_DATA hHeaderData,
1027
            HANDLE_SBR_PREV_FRAME_DATA hPrevFrameData, const int downsampleFac,
1028
325k
            const UINT flags, HANDLE_SBR_FRAME_DATA hFrameData) {
1029
325k
  SBR_ERROR sbrError = SBRDEC_OK;
1030
325k
  int i;
1031
325k
  FIXP_DBL *pLowBandReal[128];
1032
325k
  FIXP_DBL *pLowBandImag[128];
1033
325k
  int useLP = flags & SBRDEC_LOW_POWER;
1034
1035
325k
  int old_lsb = hSbrDec->qmfDomainInCh->fb.lsb;
1036
325k
  int old_usb = hSbrDec->qmfDomainInCh->fb.usb;
1037
325k
  int new_lsb = hHeaderData->freqBandData.lowSubband;
1038
  /* int new_usb = hHeaderData->freqBandData.highSubband; */
1039
325k
  int l, startBand, stopBand, startSlot, size;
1040
1041
325k
  FIXP_DBL **OverlapBufferReal = hSbrDec->qmfDomainInCh->hQmfSlotsReal;
1042
325k
  FIXP_DBL **OverlapBufferImag = hSbrDec->qmfDomainInCh->hQmfSlotsImag;
1043
1044
  /* in case the previous frame was not active in terms of SBR processing, the
1045
     full band from 0 to no_channels was rescaled and not overwritten. Thats why
1046
     the scaling factor lb_scale can be seen as assigned to all bands from 0 to
1047
     no_channels in the previous frame. The same states for the current frame if
1048
     the current frame is not active in terms of SBR processing
1049
  */
1050
325k
  int applySbrProc = (hHeaderData->syncState == SBR_ACTIVE ||
1051
325k
                      (hHeaderData->frameErrorFlag == 0 &&
1052
325k
                       hHeaderData->syncState == SBR_HEADER));
1053
325k
  int applySbrProc_old = hSbrDec->applySbrProc_old;
1054
1055
325k
  if (!applySbrProc) {
1056
226k
    new_lsb = (hSbrDec->qmfDomainInCh->fb).no_channels;
1057
226k
  }
1058
325k
  if (!applySbrProc_old) {
1059
240k
    old_lsb = (hSbrDec->qmfDomainInCh->fb).no_channels;
1060
240k
    old_usb = old_lsb;
1061
240k
  }
1062
1063
325k
  resetSbrEnvelopeCalc(&hSbrDec->SbrCalculateEnvelope);
1064
1065
  /* Change lsb and usb */
1066
  /* Synthesis */
1067
325k
  FDK_ASSERT(hSbrDec->qmfDomainOutCh != NULL);
1068
0
  hSbrDec->qmfDomainOutCh->fb.lsb =
1069
325k
      fixMin((INT)hSbrDec->qmfDomainOutCh->fb.no_channels,
1070
325k
             (INT)hHeaderData->freqBandData.lowSubband);
1071
325k
  hSbrDec->qmfDomainOutCh->fb.usb =
1072
325k
      fixMin((INT)hSbrDec->qmfDomainOutCh->fb.no_channels,
1073
325k
             (INT)hHeaderData->freqBandData.highSubband);
1074
  /* Analysis */
1075
325k
  FDK_ASSERT(hSbrDec->qmfDomainInCh != NULL);
1076
0
  hSbrDec->qmfDomainInCh->fb.lsb = hSbrDec->qmfDomainOutCh->fb.lsb;
1077
325k
  hSbrDec->qmfDomainInCh->fb.usb = hSbrDec->qmfDomainOutCh->fb.usb;
1078
1079
  /*
1080
    The following initialization of spectral data in the overlap buffer
1081
    is required for dynamic x-over or a change of the start-freq for 2 reasons:
1082
1083
    1. If the lowband gets _wider_, unadjusted data would remain
1084
1085
    2. If the lowband becomes _smaller_, the highest bands of the old lowband
1086
       must be cleared because the whitening would be affected
1087
  */
1088
325k
  startBand = old_lsb;
1089
325k
  stopBand = new_lsb;
1090
325k
  startSlot = fMax(0, hHeaderData->timeStep * (hPrevFrameData->stopPos -
1091
325k
                                               hHeaderData->numberTimeSlots));
1092
325k
  size = fMax(0, stopBand - startBand);
1093
1094
  /* in case of USAC we don't want to zero out the memory, as this can lead to
1095
     holes in the spectrum; fix shall only be applied for USAC not for MPEG-4
1096
     SBR, in this case setting zero remains         */
1097
325k
  if (!(flags & SBRDEC_SYNTAX_USAC)) {
1098
    /* keep already adjusted data in the x-over-area */
1099
191k
    if (!useLP) {
1100
43.3k
      for (l = startSlot; l < hSbrDec->LppTrans.pSettings->overlap; l++) {
1101
35.7k
        FDKmemclear(&OverlapBufferReal[l][startBand], size * sizeof(FIXP_DBL));
1102
35.7k
        FDKmemclear(&OverlapBufferImag[l][startBand], size * sizeof(FIXP_DBL));
1103
35.7k
      }
1104
184k
    } else {
1105
437k
      for (l = startSlot; l < hSbrDec->LppTrans.pSettings->overlap; l++) {
1106
253k
        FDKmemclear(&OverlapBufferReal[l][startBand], size * sizeof(FIXP_DBL));
1107
253k
      }
1108
184k
    }
1109
1110
    /*
1111
    reset LPC filter states
1112
    */
1113
191k
    startBand = fixMin(old_lsb, new_lsb);
1114
191k
    stopBand = fixMax(old_lsb, new_lsb);
1115
191k
    size = fixMax(0, stopBand - startBand);
1116
1117
191k
    FDKmemclear(&hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[0][startBand],
1118
191k
                size * sizeof(FIXP_DBL));
1119
191k
    FDKmemclear(&hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[1][startBand],
1120
191k
                size * sizeof(FIXP_DBL));
1121
191k
    if (!useLP) {
1122
7.57k
      FDKmemclear(&hSbrDec->LppTrans.lpcFilterStatesImagLegSBR[0][startBand],
1123
7.57k
                  size * sizeof(FIXP_DBL));
1124
7.57k
      FDKmemclear(&hSbrDec->LppTrans.lpcFilterStatesImagLegSBR[1][startBand],
1125
7.57k
                  size * sizeof(FIXP_DBL));
1126
7.57k
    }
1127
191k
  }
1128
1129
325k
  if (startSlot != 0) {
1130
18.9k
    int source_exp, target_exp, delta_exp, target_lsb, target_usb, reserve;
1131
18.9k
    FIXP_DBL maxVal;
1132
1133
    /*
1134
    Rescale already processed spectral data between old and new x-over
1135
    frequency. This must be done because of the separate scalefactors for
1136
    lowband and highband.
1137
    */
1138
1139
    /* We have four relevant transitions to cover:
1140
    1. old_usb is lower than new_lsb; old SBR area is completely below new SBR
1141
    area.
1142
       -> entire old area was highband and belongs to lowband now
1143
          and has to be rescaled.
1144
    2. old_lsb is higher than new_usb; new SBR area is completely below old SBR
1145
    area.
1146
       -> old area between new_lsb and old_lsb was lowband and belongs to
1147
    highband now and has to be rescaled to match new highband scale.
1148
    3. old_lsb is lower and old_usb is higher than new_lsb; old and new SBR
1149
    areas overlap.
1150
       -> old area between old_lsb and new_lsb was highband and belongs to
1151
    lowband now and has to be rescaled to match new lowband scale.
1152
    4. new_lsb is lower and new_usb_is higher than old_lsb; old and new SBR
1153
    areas overlap.
1154
       -> old area between new_lsb and old_usb was lowband and belongs to
1155
    highband now and has to be rescaled to match new highband scale.
1156
    */
1157
1158
18.9k
    if (new_lsb > old_lsb) {
1159
      /* case 1 and 3 */
1160
11.5k
      source_exp = SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.ov_hb_scale);
1161
11.5k
      target_exp = SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.ov_lb_scale);
1162
1163
11.5k
      startBand = old_lsb;
1164
1165
11.5k
      if (new_lsb >= old_usb) {
1166
        /* case 1 */
1167
3.48k
        stopBand = old_usb;
1168
8.03k
      } else {
1169
        /* case 3 */
1170
8.03k
        stopBand = new_lsb;
1171
8.03k
      }
1172
1173
11.5k
      target_lsb = 0;
1174
11.5k
      target_usb = old_lsb;
1175
11.5k
    } else {
1176
      /* case 2 and 4 */
1177
7.41k
      source_exp = SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.ov_lb_scale);
1178
7.41k
      target_exp = SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.ov_hb_scale);
1179
1180
7.41k
      startBand = new_lsb;
1181
7.41k
      stopBand = old_lsb;
1182
1183
7.41k
      target_lsb = old_lsb;
1184
7.41k
      target_usb = old_usb;
1185
7.41k
    }
1186
1187
18.9k
    maxVal =
1188
18.9k
        maxSubbandSample(OverlapBufferReal, (useLP) ? NULL : OverlapBufferImag,
1189
18.9k
                         startBand, stopBand, 0, startSlot);
1190
1191
18.9k
    reserve = ((LONG)maxVal != 0 ? CntLeadingZeros(maxVal) - 1 : 0);
1192
18.9k
    reserve = fixMin(
1193
18.9k
        reserve,
1194
18.9k
        DFRACT_BITS - 1 -
1195
18.9k
            EXP2SCALE(
1196
18.9k
                source_exp)); /* what is this line for, why do we need it? */
1197
1198
    /* process only if x-over-area is not dominant after rescale;
1199
       otherwise I'm not sure if all buffers are scaled correctly;
1200
    */
1201
18.9k
    if (target_exp - (source_exp - reserve) >= 0) {
1202
7.69k
      rescaleSubbandSamples(OverlapBufferReal,
1203
7.69k
                            (useLP) ? NULL : OverlapBufferImag, startBand,
1204
7.69k
                            stopBand, 0, startSlot, reserve);
1205
7.69k
      source_exp -= reserve;
1206
7.69k
    }
1207
1208
18.9k
    delta_exp = target_exp - source_exp;
1209
1210
18.9k
    if (delta_exp < 0) { /* x-over-area is dominant */
1211
11.2k
      startBand = target_lsb;
1212
11.2k
      stopBand = target_usb;
1213
11.2k
      delta_exp = -delta_exp;
1214
1215
11.2k
      if (new_lsb > old_lsb) {
1216
        /* The lowband has to be rescaled */
1217
6.08k
        hSbrDec->qmfDomainInCh->scaling.ov_lb_scale = EXP2SCALE(source_exp);
1218
6.08k
      } else {
1219
        /* The highband has to be rescaled */
1220
5.16k
        hSbrDec->qmfDomainInCh->scaling.ov_hb_scale = EXP2SCALE(source_exp);
1221
5.16k
      }
1222
11.2k
    }
1223
1224
18.9k
    FDK_ASSERT(startBand <= stopBand);
1225
1226
18.9k
    if (!useLP) {
1227
103k
      for (l = 0; l < startSlot; l++) {
1228
86.8k
        scaleValues(OverlapBufferReal[l] + startBand, stopBand - startBand,
1229
86.8k
                    -delta_exp);
1230
86.8k
        scaleValues(OverlapBufferImag[l] + startBand, stopBand - startBand,
1231
86.8k
                    -delta_exp);
1232
86.8k
      }
1233
16.4k
    } else
1234
12.7k
      for (l = 0; l < startSlot; l++) {
1235
10.1k
        scaleValues(OverlapBufferReal[l] + startBand, stopBand - startBand,
1236
10.1k
                    -delta_exp);
1237
10.1k
      }
1238
18.9k
  } /* startSlot != 0 */
1239
1240
  /*
1241
    Initialize transposer and limiter
1242
  */
1243
0
  sbrError = resetLppTransposer(
1244
325k
      &hSbrDec->LppTrans, hHeaderData->freqBandData.lowSubband,
1245
325k
      hHeaderData->freqBandData.v_k_master, hHeaderData->freqBandData.numMaster,
1246
325k
      hHeaderData->freqBandData.freqBandTableNoise,
1247
325k
      hHeaderData->freqBandData.nNfb, hHeaderData->freqBandData.highSubband,
1248
325k
      hHeaderData->sbrProcSmplRate);
1249
325k
  if (sbrError != SBRDEC_OK) return sbrError;
1250
1251
324k
  hSbrDec->savedStates = 0;
1252
1253
324k
  if ((flags & SBRDEC_USAC_HARMONICSBR) && applySbrProc) {
1254
28.0k
    sbrError = QmfTransposerReInit(hSbrDec->hHBE,
1255
28.0k
                                   hHeaderData->freqBandData.freqBandTable,
1256
28.0k
                                   hHeaderData->freqBandData.nSfb);
1257
28.0k
    if (sbrError != SBRDEC_OK) return sbrError;
1258
1259
    /* copy saved states from previous frame to legacy SBR lpc filterstate
1260
     * buffer   */
1261
330k
    for (i = 0; i < LPC_ORDER + hSbrDec->LppTrans.pSettings->overlap; i++) {
1262
302k
      FDKmemcpy(
1263
302k
          hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[i],
1264
302k
          hSbrDec->codecQMFBufferReal[hSbrDec->hHBE->noCols - LPC_ORDER -
1265
302k
                                      hSbrDec->LppTrans.pSettings->overlap + i],
1266
302k
          hSbrDec->hHBE->noChannels * sizeof(FIXP_DBL));
1267
302k
      FDKmemcpy(
1268
302k
          hSbrDec->LppTrans.lpcFilterStatesImagLegSBR[i],
1269
302k
          hSbrDec->codecQMFBufferImag[hSbrDec->hHBE->noCols - LPC_ORDER -
1270
302k
                                      hSbrDec->LppTrans.pSettings->overlap + i],
1271
302k
          hSbrDec->hHBE->noChannels * sizeof(FIXP_DBL));
1272
302k
    }
1273
28.0k
    hSbrDec->savedStates = 1;
1274
1275
28.0k
    {
1276
      /* map QMF buffer to pointer array (Overlap + Frame)*/
1277
330k
      for (i = 0; i < hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER; i++) {
1278
302k
        pLowBandReal[i] = hSbrDec->LppTrans.lpcFilterStatesRealHBE[i];
1279
302k
        pLowBandImag[i] = hSbrDec->LppTrans.lpcFilterStatesImagHBE[i];
1280
302k
      }
1281
1282
      /* map QMF buffer to pointer array (Overlap + Frame)*/
1283
1.34M
      for (i = 0; i < hSbrDec->hHBE->noCols; i++) {
1284
1.31M
        pLowBandReal[i + hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER] =
1285
1.31M
            hSbrDec->codecQMFBufferReal[i];
1286
1.31M
        pLowBandImag[i + hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER] =
1287
1.31M
            hSbrDec->codecQMFBufferImag[i];
1288
1.31M
      }
1289
1290
28.0k
      if (flags & SBRDEC_QUAD_RATE) {
1291
12.9k
        if (hFrameData->sbrPatchingMode == 0) {
1292
11.5k
          int *xOverQmf = GetxOverBandQmfTransposer(hSbrDec->hHBE);
1293
1294
          /* in case of harmonic SBR and no HBE_LP map additional buffer for
1295
          one more frame to pointer arry */
1296
381k
          for (i = 0; i < hSbrDec->hHBE->noCols / 2; i++) {
1297
370k
            pLowBandReal[i + hSbrDec->hHBE->noCols +
1298
370k
                         hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER] =
1299
370k
                hSbrDec->hQmfHBESlotsReal[i];
1300
370k
            pLowBandImag[i + hSbrDec->hHBE->noCols +
1301
370k
                         hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER] =
1302
370k
                hSbrDec->hQmfHBESlotsImag[i];
1303
370k
          }
1304
1305
11.5k
          QmfTransposerApply(
1306
11.5k
              hSbrDec->hHBE,
1307
11.5k
              pLowBandReal + hSbrDec->LppTrans.pSettings->overlap +
1308
11.5k
                  hSbrDec->hHBE->noCols / 2 + LPC_ORDER,
1309
11.5k
              pLowBandImag + hSbrDec->LppTrans.pSettings->overlap +
1310
11.5k
                  hSbrDec->hHBE->noCols / 2 + LPC_ORDER,
1311
11.5k
              hSbrDec->hHBE->noCols, pLowBandReal, pLowBandImag,
1312
11.5k
              hSbrDec->LppTrans.lpcFilterStatesRealHBE,
1313
11.5k
              hSbrDec->LppTrans.lpcFilterStatesImagHBE,
1314
11.5k
              hPrevFrameData->prevSbrPitchInBins, hSbrDec->scale_lb,
1315
11.5k
              hSbrDec->scale_hbe, &hSbrDec->qmfDomainInCh->scaling.hb_scale,
1316
11.5k
              hHeaderData->timeStep, hFrameData->frameInfo.borders[0],
1317
11.5k
              hSbrDec->LppTrans.pSettings->overlap, KEEP_STATES_SYNCED_OUTDIFF);
1318
1319
11.5k
          copyHarmonicSpectrum(
1320
11.5k
              xOverQmf, pLowBandReal, pLowBandImag, hSbrDec->hHBE->noCols,
1321
11.5k
              hSbrDec->LppTrans.pSettings->overlap, KEEP_STATES_SYNCED_OUTDIFF);
1322
11.5k
        }
1323
15.0k
      } else {
1324
        /* in case of harmonic SBR and no HBE_LP map additional buffer for
1325
        one more frame to pointer arry */
1326
497k
        for (i = 0; i < hSbrDec->hHBE->noCols; i++) {
1327
482k
          pLowBandReal[i + hSbrDec->hHBE->noCols +
1328
482k
                       hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER] =
1329
482k
              hSbrDec->hQmfHBESlotsReal[i];
1330
482k
          pLowBandImag[i + hSbrDec->hHBE->noCols +
1331
482k
                       hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER] =
1332
482k
              hSbrDec->hQmfHBESlotsImag[i];
1333
482k
        }
1334
1335
15.0k
        if (hFrameData->sbrPatchingMode == 0) {
1336
13.8k
          QmfTransposerApply(
1337
13.8k
              hSbrDec->hHBE,
1338
13.8k
              pLowBandReal + hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER,
1339
13.8k
              pLowBandImag + hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER,
1340
13.8k
              hSbrDec->hHBE->noCols, pLowBandReal, pLowBandImag,
1341
13.8k
              hSbrDec->LppTrans.lpcFilterStatesRealHBE,
1342
13.8k
              hSbrDec->LppTrans.lpcFilterStatesImagHBE,
1343
13.8k
              0 /* not required for keeping states updated in this frame*/,
1344
13.8k
              hSbrDec->scale_lb, hSbrDec->scale_lb,
1345
13.8k
              &hSbrDec->qmfDomainInCh->scaling.hb_scale, hHeaderData->timeStep,
1346
13.8k
              hFrameData->frameInfo.borders[0],
1347
13.8k
              hSbrDec->LppTrans.pSettings->overlap, KEEP_STATES_SYNCED_NOOUT);
1348
13.8k
        }
1349
1350
15.0k
        QmfTransposerApply(
1351
15.0k
            hSbrDec->hHBE,
1352
15.0k
            pLowBandReal + hSbrDec->LppTrans.pSettings->overlap +
1353
15.0k
                hSbrDec->hHBE->noCols + LPC_ORDER,
1354
15.0k
            pLowBandImag + hSbrDec->LppTrans.pSettings->overlap +
1355
15.0k
                hSbrDec->hHBE->noCols + LPC_ORDER,
1356
15.0k
            hSbrDec->hHBE->noCols, pLowBandReal, pLowBandImag,
1357
15.0k
            hSbrDec->LppTrans.lpcFilterStatesRealHBE,
1358
15.0k
            hSbrDec->LppTrans.lpcFilterStatesImagHBE,
1359
15.0k
            hPrevFrameData->prevSbrPitchInBins, hSbrDec->scale_lb,
1360
15.0k
            hSbrDec->scale_hbe, &hSbrDec->qmfDomainInCh->scaling.hb_scale,
1361
15.0k
            hHeaderData->timeStep, hFrameData->frameInfo.borders[0],
1362
15.0k
            hSbrDec->LppTrans.pSettings->overlap, KEEP_STATES_SYNCED_OUTDIFF);
1363
15.0k
      }
1364
1365
28.0k
      if (hFrameData->sbrPatchingMode == 0) {
1366
245k
        for (i = startSlot; i < hSbrDec->LppTrans.pSettings->overlap; i++) {
1367
          /*
1368
          Store the unmodified qmf Slots values for upper part of spectrum
1369
          (required for LPC filtering) required if next frame is a HBE frame
1370
          */
1371
220k
          FDKmemcpy(hSbrDec->qmfDomainInCh->hQmfSlotsReal[i],
1372
220k
                    hSbrDec->LppTrans.lpcFilterStatesRealHBE[i + LPC_ORDER],
1373
220k
                    (64) * sizeof(FIXP_DBL));
1374
220k
          FDKmemcpy(hSbrDec->qmfDomainInCh->hQmfSlotsImag[i],
1375
220k
                    hSbrDec->LppTrans.lpcFilterStatesImagHBE[i + LPC_ORDER],
1376
220k
                    (64) * sizeof(FIXP_DBL));
1377
220k
        }
1378
1379
245k
        for (i = startSlot; i < hSbrDec->LppTrans.pSettings->overlap; i++) {
1380
          /*
1381
          Store the unmodified qmf Slots values for upper part of spectrum
1382
          (required for LPC filtering) required if next frame is a HBE frame
1383
          */
1384
220k
          FDKmemcpy(
1385
220k
              hSbrDec->qmfDomainInCh->hQmfSlotsReal[i],
1386
220k
              hSbrDec->codecQMFBufferReal[hSbrDec->hHBE->noCols -
1387
220k
                                          hSbrDec->LppTrans.pSettings->overlap +
1388
220k
                                          i],
1389
220k
              new_lsb * sizeof(FIXP_DBL));
1390
220k
          FDKmemcpy(
1391
220k
              hSbrDec->qmfDomainInCh->hQmfSlotsImag[i],
1392
220k
              hSbrDec->codecQMFBufferImag[hSbrDec->hHBE->noCols -
1393
220k
                                          hSbrDec->LppTrans.pSettings->overlap +
1394
220k
                                          i],
1395
220k
              new_lsb * sizeof(FIXP_DBL));
1396
220k
        }
1397
25.3k
      }
1398
28.0k
    }
1399
28.0k
  }
1400
1401
324k
  {
1402
324k
    int adapt_lb = 0, diff = 0,
1403
324k
        new_scale = hSbrDec->qmfDomainInCh->scaling.ov_lb_scale;
1404
1405
324k
    if ((hSbrDec->qmfDomainInCh->scaling.ov_lb_scale !=
1406
324k
         hSbrDec->qmfDomainInCh->scaling.lb_scale) &&
1407
324k
        startSlot != 0) {
1408
      /* we need to adapt spectrum to have equal scale factor, always larger
1409
       * than zero */
1410
6.46k
      diff = SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.ov_lb_scale) -
1411
6.46k
             SCALE2EXP(hSbrDec->qmfDomainInCh->scaling.lb_scale);
1412
1413
6.46k
      if (diff > 0) {
1414
1.85k
        adapt_lb = 1;
1415
1.85k
        diff = -diff;
1416
1.85k
        new_scale = hSbrDec->qmfDomainInCh->scaling.ov_lb_scale;
1417
1.85k
      }
1418
1419
6.46k
      stopBand = new_lsb;
1420
6.46k
    }
1421
1422
324k
    if (hFrameData->sbrPatchingMode == 1) {
1423
      /* scale states from LegSBR filterstates buffer */
1424
971k
      for (i = 0; i < hSbrDec->LppTrans.pSettings->overlap + LPC_ORDER; i++) {
1425
844k
        scaleValues(hSbrDec->LppTrans.lpcFilterStatesRealLegSBR[i], new_lsb,
1426
844k
                    diff);
1427
844k
        if (!useLP) {
1428
568k
          scaleValues(hSbrDec->LppTrans.lpcFilterStatesImagLegSBR[i], new_lsb,
1429
568k
                      diff);
1430
568k
        }
1431
844k
      }
1432
1433
126k
      if (flags & SBRDEC_SYNTAX_USAC) {
1434
        /* get missing states between old and new x_over from LegSBR
1435
         * filterstates buffer */
1436
        /* in case of legacy SBR we leave these values zeroed out */
1437
400k
        for (i = startSlot; i < hSbrDec->LppTrans.pSettings->overlap; i++) {
1438
333k
          FDKmemcpy(&OverlapBufferReal[i][old_lsb],
1439
333k
                    &hSbrDec->LppTrans
1440
333k
                         .lpcFilterStatesRealLegSBR[LPC_ORDER + i][old_lsb],
1441
333k
                    fMax(new_lsb - old_lsb, 0) * sizeof(FIXP_DBL));
1442
333k
          if (!useLP) {
1443
333k
            FDKmemcpy(&OverlapBufferImag[i][old_lsb],
1444
333k
                      &hSbrDec->LppTrans
1445
333k
                           .lpcFilterStatesImagLegSBR[LPC_ORDER + i][old_lsb],
1446
333k
                      fMax(new_lsb - old_lsb, 0) * sizeof(FIXP_DBL));
1447
333k
          }
1448
333k
        }
1449
67.3k
      }
1450
1451
126k
      if (new_lsb > old_lsb) {
1452
37.5k
        stopBand = old_lsb;
1453
37.5k
      }
1454
126k
    }
1455
324k
    if ((adapt_lb == 1) && (stopBand > startBand)) {
1456
5.44k
      for (l = startSlot; l < hSbrDec->LppTrans.pSettings->overlap; l++) {
1457
3.59k
        scaleValues(OverlapBufferReal[l] + startBand, stopBand - startBand,
1458
3.59k
                    diff);
1459
3.59k
        if (!useLP) {
1460
786
          scaleValues(OverlapBufferImag[l] + startBand, stopBand - startBand,
1461
786
                      diff);
1462
786
        }
1463
3.59k
      }
1464
1.84k
    }
1465
324k
    hSbrDec->qmfDomainInCh->scaling.ov_lb_scale = new_scale;
1466
324k
  }
1467
1468
324k
  sbrError = ResetLimiterBands(hHeaderData->freqBandData.limiterBandTable,
1469
324k
                               &hHeaderData->freqBandData.noLimiterBands,
1470
324k
                               hHeaderData->freqBandData.freqBandTable[0],
1471
324k
                               hHeaderData->freqBandData.nSfb[0],
1472
324k
                               hSbrDec->LppTrans.pSettings->patchParam,
1473
324k
                               hSbrDec->LppTrans.pSettings->noOfPatches,
1474
324k
                               hHeaderData->bs_data.limiterBands,
1475
324k
                               hFrameData->sbrPatchingMode,
1476
324k
                               GetxOverBandQmfTransposer(hSbrDec->hHBE),
1477
324k
                               Get41SbrQmfTransposer(hSbrDec->hHBE));
1478
1479
324k
  hSbrDec->SbrCalculateEnvelope.sbrPatchingMode = hFrameData->sbrPatchingMode;
1480
1481
324k
  return sbrError;
1482
324k
}