Coverage Report

Created: 2025-10-10 07:00

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/src/aac/libSBRdec/src/lpp_tran.cpp
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1
/* -----------------------------------------------------------------------------
2
Software License for The Fraunhofer FDK AAC Codec Library for Android
3
4
© Copyright  1995 - 2021 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  Low Power Profile Transposer
106
  This module provides the transposer. The main entry point is lppTransposer().
107
  The function generates high frequency content by copying data from the low
108
  band (provided by core codec) into the high band. This process is also
109
  referred to as "patching". The function also implements spectral whitening by
110
  means of inverse filtering based on LPC coefficients.
111
112
  Together with the QMF filterbank the transposer can be tested using a supplied
113
  test program. See main_audio.cpp for details. This module does use fractional
114
  arithmetic and the accuracy of the computations has an impact on the overall
115
  sound quality. The module also needs to take into account the different
116
  scaling of spectral data.
117
118
  \sa lppTransposer(), main_audio.cpp, sbr_scale.h, \ref documentationOverview
119
*/
120
121
#if __has_include(<android/ndk-version.h>)
122
#include <android/ndk-version.h>
123
#endif
124
125
#if defined __ANDROID__ && !defined __ANDROID_NDK__
126
#include "log/log.h"
127
#endif
128
129
#include "lpp_tran.h"
130
131
#include "sbr_ram.h"
132
#include "sbr_rom.h"
133
134
#include "genericStds.h"
135
#include "autocorr2nd.h"
136
137
#include "HFgen_preFlat.h"
138
139
21.4M
#define LPC_SCALE_FACTOR 2
140
141
/*!
142
 *
143
 * \brief Get bandwidth expansion factor from filtering level
144
 *
145
 * Returns a filter parameter (bandwidth expansion factor) depending on
146
 * the desired filtering level signalled in the bitstream.
147
 * When switching the filtering level from LOW to OFF, an additional
148
 * level is being inserted to achieve a smooth transition.
149
 */
150
151
static FIXP_DBL mapInvfMode(INVF_MODE mode, INVF_MODE prevMode,
152
641k
                            WHITENING_FACTORS whFactors) {
153
641k
  switch (mode) {
154
206k
    case INVF_LOW_LEVEL:
155
206k
      if (prevMode == INVF_OFF)
156
21.9k
        return whFactors.transitionLevel;
157
184k
      else
158
184k
        return whFactors.lowLevel;
159
160
40.3k
    case INVF_MID_LEVEL:
161
40.3k
      return whFactors.midLevel;
162
163
83.9k
    case INVF_HIGH_LEVEL:
164
83.9k
      return whFactors.highLevel;
165
166
311k
    default:
167
311k
      if (prevMode == INVF_LOW_LEVEL)
168
14.6k
        return whFactors.transitionLevel;
169
296k
      else
170
296k
        return whFactors.off;
171
641k
  }
172
641k
}
173
174
/*!
175
 *
176
 * \brief Perform inverse filtering level emphasis
177
 *
178
 * Retrieve bandwidth expansion factor and apply smoothing for each filter band
179
 *
180
 */
181
182
static void inverseFilteringLevelEmphasis(
183
    HANDLE_SBR_LPP_TRANS hLppTrans, /*!< Handle of lpp transposer  */
184
    UCHAR nInvfBands,              /*!< Number of bands for inverse filtering */
185
    INVF_MODE *sbr_invf_mode,      /*!< Current inverse filtering modes */
186
    INVF_MODE *sbr_invf_mode_prev, /*!< Previous inverse filtering modes */
187
    FIXP_DBL *bwVector             /*!< Resulting filtering levels */
188
274k
) {
189
916k
  for (int i = 0; i < nInvfBands; i++) {
190
641k
    FIXP_DBL accu;
191
641k
    FIXP_DBL bwTmp = mapInvfMode(sbr_invf_mode[i], sbr_invf_mode_prev[i],
192
641k
                                 hLppTrans->pSettings->whFactors);
193
194
641k
    if (bwTmp < hLppTrans->bwVectorOld[i]) {
195
89.5k
      accu = fMultDiv2(FL2FXCONST_DBL(0.75f), bwTmp) +
196
89.5k
             fMultDiv2(FL2FXCONST_DBL(0.25f), hLppTrans->bwVectorOld[i]);
197
552k
    } else {
198
552k
      accu = fMultDiv2(FL2FXCONST_DBL(0.90625f), bwTmp) +
199
552k
             fMultDiv2(FL2FXCONST_DBL(0.09375f), hLppTrans->bwVectorOld[i]);
200
552k
    }
201
202
641k
    if (accu<FL2FXCONST_DBL(0.015625f)>> 1) {
203
254k
      bwVector[i] = FL2FXCONST_DBL(0.0f);
204
386k
    } else {
205
386k
      bwVector[i] = fixMin(accu << 1, FL2FXCONST_DBL(0.99609375f));
206
386k
    }
207
641k
  }
208
274k
}
209
210
/* Resulting autocorrelation determinant exponent */
211
#define ACDET_EXP \
212
  (2 * (DFRACT_BITS + sbrScaleFactor->lb_scale + 10 - ac.det_scale))
213
#define AC_EXP (-sbrScaleFactor->lb_scale + LPC_SCALE_FACTOR)
214
#define ALPHA_EXP (-sbrScaleFactor->lb_scale + LPC_SCALE_FACTOR + 1)
215
/* Resulting transposed QMF values exponent 16 bit normalized samplebits
216
 * assumed. */
217
#define QMFOUT_EXP ((SAMPLE_BITS - 15) - sbrScaleFactor->lb_scale)
218
219
static inline void calc_qmfBufferReal(FIXP_DBL **qmfBufferReal,
220
                                      const FIXP_DBL *const lowBandReal,
221
                                      const int startSample,
222
                                      const int stopSample, const UCHAR hiBand,
223
                                      const int dynamicScale,
224
99.0k
                                      const FIXP_SGL a0r, const FIXP_SGL a1r) {
225
99.0k
  const int dynscale = fixMax(0, dynamicScale - 1) + 1;
226
99.0k
  const int rescale = -fixMin(0, dynamicScale - 1) + 1;
227
99.0k
  const int descale =
228
99.0k
      fixMin(DFRACT_BITS - 1, LPC_SCALE_FACTOR + dynamicScale + rescale);
229
230
2.65M
  for (int i = 0; i < stopSample - startSample; i++) {
231
2.55M
    FIXP_DBL accu;
232
233
2.55M
    accu = fMultDiv2(a1r, lowBandReal[i]) + fMultDiv2(a0r, lowBandReal[i + 1]);
234
2.55M
    accu = (lowBandReal[i + 2] >> descale) + (accu >> dynscale);
235
236
2.55M
    qmfBufferReal[i + startSample][hiBand] =
237
2.55M
        SATURATE_LEFT_SHIFT(accu, rescale, DFRACT_BITS);
238
2.55M
  }
239
99.0k
}
240
241
/*!
242
 *
243
 * \brief Perform transposition by patching of subband samples.
244
 * This function serves as the main entry point into the module. The function
245
 * determines the areas for the patching process (these are the source range as
246
 * well as the target range) and implements spectral whitening by means of
247
 * inverse filtering. The function autoCorrelation2nd() is an auxiliary function
248
 * for calculating the LPC coefficients for the filtering.  The actual
249
 * calculation of the LPC coefficients and the implementation of the filtering
250
 * are done as part of lppTransposer().
251
 *
252
 * Note that the filtering is done on all available QMF subsamples, whereas the
253
 * patching is only done on those QMF subsamples that will be used in the next
254
 * QMF synthesis. The filtering is also implemented before the patching includes
255
 * further dependencies on parameters from the SBR data.
256
 *
257
 */
258
259
void lppTransposer(
260
    HANDLE_SBR_LPP_TRANS hLppTrans,   /*!< Handle of lpp transposer  */
261
    QMF_SCALE_FACTOR *sbrScaleFactor, /*!< Scaling factors */
262
    FIXP_DBL **qmfBufferReal, /*!< Pointer to pointer to real part of subband
263
                                 samples (source) */
264
265
    FIXP_DBL *degreeAlias,    /*!< Vector for results of aliasing estimation */
266
    FIXP_DBL **qmfBufferImag, /*!< Pointer to pointer to imaginary part of
267
                                 subband samples (source) */
268
    const int useLP, const int fPreWhitening, const int v_k_master0,
269
    const int timeStep,       /*!< Time step of envelope */
270
    const int firstSlotOffs,  /*!< Start position in time */
271
    const int lastSlotOffs,   /*!< Number of overlap-slots into next frame */
272
    const int nInvfBands,     /*!< Number of bands for inverse filtering */
273
    INVF_MODE *sbr_invf_mode, /*!< Current inverse filtering modes */
274
    INVF_MODE *sbr_invf_mode_prev /*!< Previous inverse filtering modes */
275
235k
) {
276
235k
  INT bwIndex[MAX_NUM_PATCHES];
277
235k
  FIXP_DBL bwVector[MAX_NUM_PATCHES]; /*!< pole moving factors */
278
235k
  FIXP_DBL preWhiteningGains[(64) / 2];
279
235k
  int preWhiteningGains_exp[(64) / 2];
280
281
235k
  int i;
282
235k
  int loBand, start, stop;
283
235k
  TRANSPOSER_SETTINGS *pSettings = hLppTrans->pSettings;
284
235k
  PATCH_PARAM *patchParam = pSettings->patchParam;
285
235k
  int patch;
286
287
235k
  FIXP_SGL alphar[LPC_ORDER], a0r, a1r;
288
235k
  FIXP_SGL alphai[LPC_ORDER], a0i = 0, a1i = 0;
289
235k
  FIXP_SGL bw = FL2FXCONST_SGL(0.0f);
290
291
235k
  int autoCorrLength;
292
293
235k
  FIXP_DBL k1, k1_below = 0, k1_below2 = 0;
294
295
235k
  ACORR_COEFS ac;
296
235k
  int startSample;
297
235k
  int stopSample;
298
235k
  int stopSampleClear;
299
300
235k
  int comLowBandScale;
301
235k
  int ovLowBandShift;
302
235k
  int lowBandShift;
303
  /*  int ovHighBandShift;*/
304
305
235k
  alphai[0] = FL2FXCONST_SGL(0.0f);
306
235k
  alphai[1] = FL2FXCONST_SGL(0.0f);
307
308
235k
  startSample = firstSlotOffs * timeStep;
309
235k
  stopSample = pSettings->nCols + lastSlotOffs * timeStep;
310
235k
  FDK_ASSERT((lastSlotOffs * timeStep) <= pSettings->overlap);
311
312
235k
  inverseFilteringLevelEmphasis(hLppTrans, nInvfBands, sbr_invf_mode,
313
235k
                                sbr_invf_mode_prev, bwVector);
314
315
235k
  stopSampleClear = stopSample;
316
317
235k
  autoCorrLength = pSettings->nCols + pSettings->overlap;
318
319
235k
  if (pSettings->noOfPatches > 0) {
320
    /* Set upper subbands to zero:
321
       This is required in case that the patches do not cover the complete
322
       highband (because the last patch would be too short). Possible
323
       optimization: Clearing bands up to usb would be sufficient here. */
324
235k
    int targetStopBand =
325
235k
        patchParam[pSettings->noOfPatches - 1].targetStartBand +
326
235k
        patchParam[pSettings->noOfPatches - 1].numBandsInPatch;
327
328
235k
    int memSize = ((64) - targetStopBand) * sizeof(FIXP_DBL);
329
330
235k
    if (!useLP) {
331
6.95M
      for (i = startSample; i < stopSampleClear; i++) {
332
6.75M
        FDKmemclear(&qmfBufferReal[i][targetStopBand], memSize);
333
6.75M
        FDKmemclear(&qmfBufferImag[i][targetStopBand], memSize);
334
6.75M
      }
335
200k
    } else {
336
948k
      for (i = startSample; i < stopSampleClear; i++) {
337
913k
        FDKmemclear(&qmfBufferReal[i][targetStopBand], memSize);
338
913k
      }
339
35.1k
    }
340
235k
  }
341
#if defined __ANDROID__ && !defined __ANDROID_NDK__
342
  else {
343
    // Safetynet logging
344
    android_errorWriteLog(0x534e4554, "112160868");
345
  }
346
#endif
347
348
  /* init bwIndex for each patch */
349
235k
  FDKmemclear(bwIndex, sizeof(bwIndex));
350
351
  /*
352
    Calc common low band scale factor
353
  */
354
235k
  comLowBandScale =
355
235k
      fixMin(sbrScaleFactor->ov_lb_scale, sbrScaleFactor->lb_scale);
356
357
235k
  ovLowBandShift = sbrScaleFactor->ov_lb_scale - comLowBandScale;
358
235k
  lowBandShift = sbrScaleFactor->lb_scale - comLowBandScale;
359
  /*  ovHighBandShift = firstSlotOffs == 0 ? ovLowBandShift:0;*/
360
361
235k
  if (fPreWhitening) {
362
37.2k
    sbrDecoder_calculateGainVec(
363
37.2k
        qmfBufferReal, qmfBufferImag,
364
37.2k
        DFRACT_BITS - 1 - 16 -
365
37.2k
            sbrScaleFactor->ov_lb_scale, /* convert scale to exponent */
366
37.2k
        DFRACT_BITS - 1 - 16 -
367
37.2k
            sbrScaleFactor->lb_scale, /* convert scale to exponent */
368
37.2k
        pSettings->overlap, preWhiteningGains, preWhiteningGains_exp,
369
37.2k
        v_k_master0, startSample, stopSample);
370
37.2k
  }
371
372
  /* outer loop over bands to do analysis only once for each band */
373
374
235k
  if (!useLP) {
375
200k
    start = pSettings->lbStartPatching;
376
200k
    stop = pSettings->lbStopPatching;
377
200k
  } else {
378
35.1k
    start = fixMax(1, pSettings->lbStartPatching - 2);
379
35.1k
    stop = patchParam[0].targetStartBand;
380
35.1k
  }
381
382
3.55M
  for (loBand = start; loBand < stop; loBand++) {
383
3.32M
    FIXP_DBL lowBandReal[(((1024) / (32) * (4) / 2) + (3 * (4))) + LPC_ORDER];
384
3.32M
    FIXP_DBL *plowBandReal = lowBandReal;
385
3.32M
    FIXP_DBL **pqmfBufferReal =
386
3.32M
        qmfBufferReal + firstSlotOffs * timeStep /* + pSettings->overlap */;
387
3.32M
    FIXP_DBL lowBandImag[(((1024) / (32) * (4) / 2) + (3 * (4))) + LPC_ORDER];
388
3.32M
    FIXP_DBL *plowBandImag = lowBandImag;
389
3.32M
    FIXP_DBL **pqmfBufferImag =
390
3.32M
        qmfBufferImag + firstSlotOffs * timeStep /* + pSettings->overlap */;
391
3.32M
    int resetLPCCoeffs = 0;
392
3.32M
    int dynamicScale = DFRACT_BITS - 1 - LPC_SCALE_FACTOR;
393
3.32M
    int acDetScale = 0; /* scaling of autocorrelation determinant */
394
395
3.32M
    for (i = 0;
396
17.3M
         i < LPC_ORDER + firstSlotOffs * timeStep /*+pSettings->overlap*/;
397
13.9M
         i++) {
398
13.9M
      *plowBandReal++ = hLppTrans->lpcFilterStatesRealLegSBR[i][loBand];
399
13.9M
      if (!useLP)
400
12.4M
        *plowBandImag++ = hLppTrans->lpcFilterStatesImagLegSBR[i][loBand];
401
13.9M
    }
402
403
    /*
404
      Take old slope length qmf slot source values out of (overlap)qmf buffer
405
    */
406
3.32M
    if (!useLP) {
407
2.64M
      for (i = 0;
408
97.3M
           i < pSettings->nCols + pSettings->overlap - firstSlotOffs * timeStep;
409
94.7M
           i++) {
410
94.7M
        *plowBandReal++ = (*pqmfBufferReal++)[loBand];
411
94.7M
        *plowBandImag++ = (*pqmfBufferImag++)[loBand];
412
94.7M
      }
413
2.64M
    } else {
414
      /* pSettings->overlap is always even */
415
677k
      FDK_ASSERT((pSettings->overlap & 1) == 0);
416
11.7M
      for (i = 0; i < ((pSettings->nCols + pSettings->overlap -
417
11.7M
                        firstSlotOffs * timeStep) >>
418
11.7M
                       1);
419
11.1M
           i++) {
420
11.1M
        *plowBandReal++ = (*pqmfBufferReal++)[loBand];
421
11.1M
        *plowBandReal++ = (*pqmfBufferReal++)[loBand];
422
11.1M
      }
423
677k
      if (pSettings->nCols & 1) {
424
97.5k
        *plowBandReal++ = (*pqmfBufferReal++)[loBand];
425
97.5k
      }
426
677k
    }
427
428
    /*
429
      Determine dynamic scaling value.
430
     */
431
3.32M
    dynamicScale =
432
3.32M
        fixMin(dynamicScale,
433
3.32M
               getScalefactor(lowBandReal, LPC_ORDER + pSettings->overlap) +
434
3.32M
                   ovLowBandShift);
435
3.32M
    dynamicScale =
436
3.32M
        fixMin(dynamicScale,
437
3.32M
               getScalefactor(&lowBandReal[LPC_ORDER + pSettings->overlap],
438
3.32M
                              pSettings->nCols) +
439
3.32M
                   lowBandShift);
440
3.32M
    if (!useLP) {
441
2.64M
      dynamicScale =
442
2.64M
          fixMin(dynamicScale,
443
2.64M
                 getScalefactor(lowBandImag, LPC_ORDER + pSettings->overlap) +
444
2.64M
                     ovLowBandShift);
445
2.64M
      dynamicScale =
446
2.64M
          fixMin(dynamicScale,
447
2.64M
                 getScalefactor(&lowBandImag[LPC_ORDER + pSettings->overlap],
448
2.64M
                                pSettings->nCols) +
449
2.64M
                     lowBandShift);
450
2.64M
    }
451
452
3.32M
    if (dynamicScale == 0) {
453
      /* In this special case the available headroom bits as well as
454
         ovLowBandShift and lowBandShift are zero. The spectrum is limited to
455
         prevent -1.0, so negative values for dynamicScale can be avoided. */
456
3.47M
      for (i = 0; i < (LPC_ORDER + pSettings->overlap + pSettings->nCols);
457
3.38M
           i++) {
458
3.38M
        lowBandReal[i] = fixMax(lowBandReal[i], (FIXP_DBL)0x80000001);
459
3.38M
      }
460
85.6k
      if (!useLP) {
461
3.33M
        for (i = 0; i < (LPC_ORDER + pSettings->overlap + pSettings->nCols);
462
3.25M
             i++) {
463
3.25M
          lowBandImag[i] = fixMax(lowBandImag[i], (FIXP_DBL)0x80000001);
464
3.25M
        }
465
81.4k
      }
466
3.23M
    } else {
467
3.23M
      dynamicScale =
468
3.23M
          fixMax(0, dynamicScale -
469
3.23M
                        1); /* one additional bit headroom to prevent -1.0 */
470
3.23M
    }
471
472
    /*
473
      Scale temporal QMF buffer.
474
     */
475
3.32M
    scaleValues(&lowBandReal[0], LPC_ORDER + pSettings->overlap,
476
3.32M
                dynamicScale - ovLowBandShift);
477
3.32M
    scaleValues(&lowBandReal[LPC_ORDER + pSettings->overlap], pSettings->nCols,
478
3.32M
                dynamicScale - lowBandShift);
479
480
3.32M
    if (!useLP) {
481
2.64M
      scaleValues(&lowBandImag[0], LPC_ORDER + pSettings->overlap,
482
2.64M
                  dynamicScale - ovLowBandShift);
483
2.64M
      scaleValues(&lowBandImag[LPC_ORDER + pSettings->overlap],
484
2.64M
                  pSettings->nCols, dynamicScale - lowBandShift);
485
2.64M
    }
486
487
3.32M
    if (!useLP) {
488
2.64M
      acDetScale += autoCorr2nd_cplx(&ac, lowBandReal + LPC_ORDER,
489
2.64M
                                     lowBandImag + LPC_ORDER, autoCorrLength);
490
2.64M
    } else {
491
677k
      acDetScale +=
492
677k
          autoCorr2nd_real(&ac, lowBandReal + LPC_ORDER, autoCorrLength);
493
677k
    }
494
495
    /* Examine dynamic of determinant in autocorrelation. */
496
3.32M
    acDetScale += 2 * (comLowBandScale + dynamicScale);
497
3.32M
    acDetScale *= 2;            /* two times reflection coefficent scaling */
498
3.32M
    acDetScale += ac.det_scale; /* ac scaling of determinant */
499
500
    /* In case of determinant < 10^-38, resetLPCCoeffs=1 has to be enforced. */
501
3.32M
    if (acDetScale > 126) {
502
1.14M
      resetLPCCoeffs = 1;
503
1.14M
    }
504
505
3.32M
    alphar[1] = FL2FXCONST_SGL(0.0f);
506
3.32M
    if (!useLP) alphai[1] = FL2FXCONST_SGL(0.0f);
507
508
3.32M
    if (ac.det != FL2FXCONST_DBL(0.0f)) {
509
2.16M
      FIXP_DBL tmp, absTmp, absDet;
510
511
2.16M
      absDet = fixp_abs(ac.det);
512
513
2.16M
      if (!useLP) {
514
2.03M
        tmp = (fMultDiv2(ac.r01r, ac.r12r) >> (LPC_SCALE_FACTOR - 1)) -
515
2.03M
              ((fMultDiv2(ac.r01i, ac.r12i) + fMultDiv2(ac.r02r, ac.r11r)) >>
516
2.03M
               (LPC_SCALE_FACTOR - 1));
517
2.03M
      } else {
518
126k
        tmp = (fMultDiv2(ac.r01r, ac.r12r) >> (LPC_SCALE_FACTOR - 1)) -
519
126k
              (fMultDiv2(ac.r02r, ac.r11r) >> (LPC_SCALE_FACTOR - 1));
520
126k
      }
521
2.16M
      absTmp = fixp_abs(tmp);
522
523
      /*
524
        Quick check: is first filter coeff >= 1(4)
525
       */
526
2.16M
      {
527
2.16M
        INT scale;
528
2.16M
        FIXP_DBL result = fDivNorm(absTmp, absDet, &scale);
529
2.16M
        scale = scale + ac.det_scale;
530
531
2.16M
        if ((scale > 0) && (result >= (FIXP_DBL)MAXVAL_DBL >> scale)) {
532
7.25k
          resetLPCCoeffs = 1;
533
2.15M
        } else {
534
2.15M
          alphar[1] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale));
535
2.15M
          if ((tmp < FL2FX_DBL(0.0f)) ^ (ac.det < FL2FX_DBL(0.0f))) {
536
1.89M
            alphar[1] = -alphar[1];
537
1.89M
          }
538
2.15M
        }
539
2.16M
      }
540
541
2.16M
      if (!useLP) {
542
2.03M
        tmp = (fMultDiv2(ac.r01i, ac.r12r) >> (LPC_SCALE_FACTOR - 1)) +
543
2.03M
              ((fMultDiv2(ac.r01r, ac.r12i) -
544
2.03M
                (FIXP_DBL)fMultDiv2(ac.r02i, ac.r11r)) >>
545
2.03M
               (LPC_SCALE_FACTOR - 1));
546
547
2.03M
        absTmp = fixp_abs(tmp);
548
549
        /*
550
        Quick check: is second filter coeff >= 1(4)
551
        */
552
2.03M
        {
553
2.03M
          INT scale;
554
2.03M
          FIXP_DBL result = fDivNorm(absTmp, absDet, &scale);
555
2.03M
          scale = scale + ac.det_scale;
556
557
2.03M
          if ((scale > 0) &&
558
109k
              (result >= /*FL2FXCONST_DBL(1.f)*/ (FIXP_DBL)MAXVAL_DBL >>
559
109k
               scale)) {
560
3.46k
            resetLPCCoeffs = 1;
561
2.03M
          } else {
562
2.03M
            alphai[1] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale));
563
2.03M
            if ((tmp < FL2FX_DBL(0.0f)) ^ (ac.det < FL2FX_DBL(0.0f))) {
564
739k
              alphai[1] = -alphai[1];
565
739k
            }
566
2.03M
          }
567
2.03M
        }
568
2.03M
      }
569
2.16M
    }
570
571
3.32M
    alphar[0] = FL2FXCONST_SGL(0.0f);
572
3.32M
    if (!useLP) alphai[0] = FL2FXCONST_SGL(0.0f);
573
574
3.32M
    if (ac.r11r != FL2FXCONST_DBL(0.0f)) {
575
      /* ac.r11r is always >=0 */
576
2.16M
      FIXP_DBL tmp, absTmp;
577
578
2.16M
      if (!useLP) {
579
2.03M
        tmp = (ac.r01r >> (LPC_SCALE_FACTOR + 1)) +
580
2.03M
              (fMultDiv2(alphar[1], ac.r12r) + fMultDiv2(alphai[1], ac.r12i));
581
2.03M
      } else {
582
126k
        if (ac.r01r >= FL2FXCONST_DBL(0.0f))
583
77.8k
          tmp = (ac.r01r >> (LPC_SCALE_FACTOR + 1)) +
584
77.8k
                fMultDiv2(alphar[1], ac.r12r);
585
48.9k
        else
586
48.9k
          tmp = -((-ac.r01r) >> (LPC_SCALE_FACTOR + 1)) +
587
48.9k
                fMultDiv2(alphar[1], ac.r12r);
588
126k
      }
589
590
2.16M
      absTmp = fixp_abs(tmp);
591
592
      /*
593
        Quick check: is first filter coeff >= 1(4)
594
      */
595
596
2.16M
      if (absTmp >= (ac.r11r >> 1)) {
597
3.35k
        resetLPCCoeffs = 1;
598
2.16M
      } else {
599
2.16M
        INT scale;
600
2.16M
        FIXP_DBL result = fDivNorm(absTmp, fixp_abs(ac.r11r), &scale);
601
2.16M
        alphar[0] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale + 1));
602
603
2.16M
        if ((tmp > FL2FX_DBL(0.0f)) ^ (ac.r11r < FL2FX_DBL(0.0f)))
604
1.20M
          alphar[0] = -alphar[0];
605
2.16M
      }
606
607
2.16M
      if (!useLP) {
608
2.03M
        tmp = (ac.r01i >> (LPC_SCALE_FACTOR + 1)) +
609
2.03M
              (fMultDiv2(alphai[1], ac.r12r) - fMultDiv2(alphar[1], ac.r12i));
610
611
2.03M
        absTmp = fixp_abs(tmp);
612
613
        /*
614
        Quick check: is second filter coeff >= 1(4)
615
        */
616
2.03M
        if (absTmp >= (ac.r11r >> 1)) {
617
2.88k
          resetLPCCoeffs = 1;
618
2.03M
        } else {
619
2.03M
          INT scale;
620
2.03M
          FIXP_DBL result = fDivNorm(absTmp, fixp_abs(ac.r11r), &scale);
621
2.03M
          alphai[0] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale + 1));
622
2.03M
          if ((tmp > FL2FX_DBL(0.0f)) ^ (ac.r11r < FL2FX_DBL(0.0f)))
623
939k
            alphai[0] = -alphai[0];
624
2.03M
        }
625
2.03M
      }
626
2.16M
    }
627
628
3.32M
    if (!useLP) {
629
      /* Now check the quadratic criteria */
630
2.64M
      if ((fMultDiv2(alphar[0], alphar[0]) + fMultDiv2(alphai[0], alphai[0])) >=
631
2.64M
          FL2FXCONST_DBL(0.5f))
632
1.00k
        resetLPCCoeffs = 1;
633
2.64M
      if ((fMultDiv2(alphar[1], alphar[1]) + fMultDiv2(alphai[1], alphai[1])) >=
634
2.64M
          FL2FXCONST_DBL(0.5f))
635
830
        resetLPCCoeffs = 1;
636
2.64M
    }
637
638
3.32M
    if (resetLPCCoeffs) {
639
1.16M
      alphar[0] = FL2FXCONST_SGL(0.0f);
640
1.16M
      alphar[1] = FL2FXCONST_SGL(0.0f);
641
1.16M
      if (!useLP) {
642
608k
        alphai[0] = FL2FXCONST_SGL(0.0f);
643
608k
        alphai[1] = FL2FXCONST_SGL(0.0f);
644
608k
      }
645
1.16M
    }
646
647
3.32M
    if (useLP) {
648
      /* Aliasing detection */
649
677k
      if (ac.r11r == FL2FXCONST_DBL(0.0f)) {
650
550k
        k1 = FL2FXCONST_DBL(0.0f);
651
550k
      } else {
652
126k
        if (fixp_abs(ac.r01r) >= fixp_abs(ac.r11r)) {
653
5.05k
          if (fMultDiv2(ac.r01r, ac.r11r) < FL2FX_DBL(0.0f)) {
654
980
            k1 = (FIXP_DBL)MAXVAL_DBL /*FL2FXCONST_SGL(1.0f)*/;
655
4.07k
          } else {
656
            /* Since this value is squared later, it must not ever become -1.0f.
657
             */
658
4.07k
            k1 = (FIXP_DBL)(MINVAL_DBL + 1) /*FL2FXCONST_SGL(-1.0f)*/;
659
4.07k
          }
660
121k
        } else {
661
121k
          INT scale;
662
121k
          FIXP_DBL result =
663
121k
              fDivNorm(fixp_abs(ac.r01r), fixp_abs(ac.r11r), &scale);
664
121k
          k1 = scaleValueSaturate(result, scale);
665
666
121k
          if (!((ac.r01r < FL2FX_DBL(0.0f)) ^ (ac.r11r < FL2FX_DBL(0.0f)))) {
667
73.7k
            k1 = -k1;
668
73.7k
          }
669
121k
        }
670
126k
      }
671
677k
      if ((loBand > 1) && (loBand < v_k_master0)) {
672
        /* Check if the gain should be locked */
673
565k
        FIXP_DBL deg =
674
565k
            /*FL2FXCONST_DBL(1.0f)*/ (FIXP_DBL)MAXVAL_DBL - fPow2(k1_below);
675
565k
        degreeAlias[loBand] = FL2FXCONST_DBL(0.0f);
676
565k
        if (((loBand & 1) == 0) && (k1 < FL2FXCONST_DBL(0.0f))) {
677
35.4k
          if (k1_below < FL2FXCONST_DBL(0.0f)) { /* 2-Ch Aliasing Detection */
678
17.9k
            degreeAlias[loBand] = (FIXP_DBL)MAXVAL_DBL /*FL2FXCONST_DBL(1.0f)*/;
679
17.9k
            if (k1_below2 >
680
17.9k
                FL2FXCONST_DBL(0.0f)) { /* 3-Ch Aliasing Detection */
681
4.60k
              degreeAlias[loBand - 1] = deg;
682
4.60k
            }
683
17.9k
          } else if (k1_below2 >
684
17.5k
                     FL2FXCONST_DBL(0.0f)) { /* 3-Ch Aliasing Detection */
685
4.52k
            degreeAlias[loBand] = deg;
686
4.52k
          }
687
35.4k
        }
688
565k
        if (((loBand & 1) == 1) && (k1 > FL2FXCONST_DBL(0.0f))) {
689
24.2k
          if (k1_below > FL2FXCONST_DBL(0.0f)) { /* 2-CH Aliasing Detection */
690
9.62k
            degreeAlias[loBand] = (FIXP_DBL)MAXVAL_DBL /*FL2FXCONST_DBL(1.0f)*/;
691
9.62k
            if (k1_below2 <
692
9.62k
                FL2FXCONST_DBL(0.0f)) { /* 3-CH Aliasing Detection */
693
3.36k
              degreeAlias[loBand - 1] = deg;
694
3.36k
            }
695
14.5k
          } else if (k1_below2 <
696
14.5k
                     FL2FXCONST_DBL(0.0f)) { /* 3-CH Aliasing Detection */
697
5.64k
            degreeAlias[loBand] = deg;
698
5.64k
          }
699
24.2k
        }
700
565k
      }
701
      /* remember k1 values of the 2 QMF channels below the current channel */
702
677k
      k1_below2 = k1_below;
703
677k
      k1_below = k1;
704
677k
    }
705
706
3.32M
    patch = 0;
707
708
11.5M
    while (patch < pSettings->noOfPatches) { /* inner loop over every patch */
709
710
8.18M
      int hiBand = loBand + patchParam[patch].targetBandOffs;
711
712
8.18M
      if (loBand < patchParam[patch].sourceStartBand ||
713
5.71M
          loBand >= patchParam[patch].sourceStopBand
714
          //|| hiBand >= hLppTrans->pSettings->noChannels
715
8.18M
      ) {
716
        /* Lowband not in current patch - proceed */
717
2.80M
        patch++;
718
2.80M
        continue;
719
2.80M
      }
720
721
5.38M
      FDK_ASSERT(hiBand < (64));
722
723
      /* bwIndex[patch] is already initialized with value from previous band
724
       * inside this patch */
725
6.07M
      while (hiBand >= pSettings->bwBorders[bwIndex[patch]] &&
726
698k
             bwIndex[patch] < MAX_NUM_PATCHES - 1) {
727
698k
        bwIndex[patch]++;
728
698k
      }
729
730
      /*
731
        Filter Step 2: add the left slope with the current filter to the buffer
732
                       pure source values are already in there
733
      */
734
5.38M
      bw = FX_DBL2FX_SGL(bwVector[bwIndex[patch]]);
735
736
5.38M
      a0r = FX_DBL2FX_SGL(
737
5.38M
          fMult(bw, alphar[0])); /* Apply current bandwidth expansion factor */
738
739
5.38M
      if (!useLP) a0i = FX_DBL2FX_SGL(fMult(bw, alphai[0]));
740
5.38M
      bw = FX_DBL2FX_SGL(fPow2(bw));
741
5.38M
      a1r = FX_DBL2FX_SGL(fMult(bw, alphar[1]));
742
5.38M
      if (!useLP) a1i = FX_DBL2FX_SGL(fMult(bw, alphai[1]));
743
744
      /*
745
        Filter Step 3: insert the middle part which won't be windowed
746
      */
747
5.38M
      if (bw <= FL2FXCONST_SGL(0.0f)) {
748
2.05M
        if (!useLP) {
749
1.58M
          int descale =
750
1.58M
              fixMin(DFRACT_BITS - 1, (LPC_SCALE_FACTOR + dynamicScale));
751
54.0M
          for (i = startSample; i < stopSample; i++) {
752
52.4M
            FIXP_DBL accu1, accu2;
753
52.4M
            accu1 = lowBandReal[LPC_ORDER + i] >> descale;
754
52.4M
            accu2 = lowBandImag[LPC_ORDER + i] >> descale;
755
52.4M
            if (fPreWhitening) {
756
22.1M
              accu1 = scaleValueSaturate(
757
22.1M
                  fMultDiv2(accu1, preWhiteningGains[loBand]),
758
22.1M
                  preWhiteningGains_exp[loBand] + 1);
759
22.1M
              accu2 = scaleValueSaturate(
760
22.1M
                  fMultDiv2(accu2, preWhiteningGains[loBand]),
761
22.1M
                  preWhiteningGains_exp[loBand] + 1);
762
22.1M
            }
763
52.4M
            qmfBufferReal[i][hiBand] = accu1;
764
52.4M
            qmfBufferImag[i][hiBand] = accu2;
765
52.4M
          }
766
1.58M
        } else {
767
469k
          int descale =
768
469k
              fixMin(DFRACT_BITS - 1, (LPC_SCALE_FACTOR + dynamicScale));
769
14.7M
          for (i = startSample; i < stopSample; i++) {
770
14.2M
            qmfBufferReal[i][hiBand] = lowBandReal[LPC_ORDER + i] >> descale;
771
14.2M
          }
772
469k
        }
773
3.32M
      } else { /* bw <= 0 */
774
775
3.32M
        if (!useLP) {
776
3.22M
          const int dynscale = fixMax(0, dynamicScale - 2) + 1;
777
3.22M
          const int rescale = -fixMin(0, dynamicScale - 2) + 1;
778
3.22M
          const int descale = fixMin(DFRACT_BITS - 1,
779
3.22M
                                     LPC_SCALE_FACTOR + dynamicScale + rescale);
780
781
110M
          for (i = startSample; i < stopSample; i++) {
782
106M
            FIXP_DBL accu1, accu2;
783
784
106M
            accu1 = ((fMultDiv2(a0r, lowBandReal[LPC_ORDER + i - 1]) -
785
106M
                      fMultDiv2(a0i, lowBandImag[LPC_ORDER + i - 1])) >>
786
106M
                     1) +
787
106M
                    ((fMultDiv2(a1r, lowBandReal[LPC_ORDER + i - 2]) -
788
106M
                      fMultDiv2(a1i, lowBandImag[LPC_ORDER + i - 2])) >>
789
106M
                     1);
790
106M
            accu2 = ((fMultDiv2(a0i, lowBandReal[LPC_ORDER + i - 1]) +
791
106M
                      fMultDiv2(a0r, lowBandImag[LPC_ORDER + i - 1])) >>
792
106M
                     1) +
793
106M
                    ((fMultDiv2(a1i, lowBandReal[LPC_ORDER + i - 2]) +
794
106M
                      fMultDiv2(a1r, lowBandImag[LPC_ORDER + i - 2])) >>
795
106M
                     1);
796
797
106M
            accu1 =
798
106M
                (lowBandReal[LPC_ORDER + i] >> descale) + (accu1 >> dynscale);
799
106M
            accu2 =
800
106M
                (lowBandImag[LPC_ORDER + i] >> descale) + (accu2 >> dynscale);
801
106M
            if (fPreWhitening) {
802
15.5M
              qmfBufferReal[i][hiBand] = scaleValueSaturate(
803
15.5M
                  fMultDiv2(accu1, preWhiteningGains[loBand]),
804
15.5M
                  preWhiteningGains_exp[loBand] + 1 + rescale);
805
15.5M
              qmfBufferImag[i][hiBand] = scaleValueSaturate(
806
15.5M
                  fMultDiv2(accu2, preWhiteningGains[loBand]),
807
15.5M
                  preWhiteningGains_exp[loBand] + 1 + rescale);
808
91.3M
            } else {
809
91.3M
              qmfBufferReal[i][hiBand] =
810
91.3M
                  SATURATE_LEFT_SHIFT(accu1, rescale, DFRACT_BITS);
811
91.3M
              qmfBufferImag[i][hiBand] =
812
91.3M
                  SATURATE_LEFT_SHIFT(accu2, rescale, DFRACT_BITS);
813
91.3M
            }
814
106M
          }
815
3.22M
        } else {
816
99.0k
          FDK_ASSERT(dynamicScale >= 0);
817
99.0k
          calc_qmfBufferReal(
818
99.0k
              qmfBufferReal, &(lowBandReal[LPC_ORDER + startSample - 2]),
819
99.0k
              startSample, stopSample, hiBand, dynamicScale, a0r, a1r);
820
99.0k
        }
821
3.32M
      } /* bw <= 0 */
822
823
5.38M
      patch++;
824
825
5.38M
    } /* inner loop over patches */
826
827
    /*
828
     * store the unmodified filter coefficients if there is
829
     * an overlapping envelope
830
     *****************************************************************/
831
832
3.32M
  } /* outer loop over bands (loBand) */
833
834
235k
  if (useLP) {
835
35.1k
    for (loBand = pSettings->lbStartPatching;
836
521k
         loBand < pSettings->lbStopPatching; loBand++) {
837
486k
      patch = 0;
838
1.09M
      while (patch < pSettings->noOfPatches) {
839
605k
        UCHAR hiBand = loBand + patchParam[patch].targetBandOffs;
840
841
605k
        if (loBand < patchParam[patch].sourceStartBand ||
842
572k
            loBand >= patchParam[patch].sourceStopBand ||
843
568k
            hiBand >= (64) /* Highband out of range (biterror) */
844
605k
        ) {
845
          /* Lowband not in current patch or highband out of range (might be
846
           * caused by biterrors)- proceed */
847
37.2k
          patch++;
848
37.2k
          continue;
849
37.2k
        }
850
851
568k
        if (hiBand != patchParam[patch].targetStartBand)
852
524k
          degreeAlias[hiBand] = degreeAlias[loBand];
853
854
568k
        patch++;
855
568k
      }
856
486k
    } /* end  for loop */
857
35.1k
  }
858
859
754k
  for (i = 0; i < nInvfBands; i++) {
860
519k
    hLppTrans->bwVectorOld[i] = bwVector[i];
861
519k
  }
862
863
  /*
864
    set high band scale factor
865
  */
866
235k
  sbrScaleFactor->hb_scale = comLowBandScale - (LPC_SCALE_FACTOR);
867
235k
}
868
869
void lppTransposerHBE(
870
    HANDLE_SBR_LPP_TRANS hLppTrans, /*!< Handle of lpp transposer  */
871
    HANDLE_HBE_TRANSPOSER hQmfTransposer,
872
    QMF_SCALE_FACTOR *sbrScaleFactor, /*!< Scaling factors */
873
    FIXP_DBL **qmfBufferReal, /*!< Pointer to pointer to real part of subband
874
                                 samples (source) */
875
    FIXP_DBL **qmfBufferImag, /*!< Pointer to pointer to imaginary part of
876
                                 subband samples (source) */
877
    const int timeStep,       /*!< Time step of envelope */
878
    const int firstSlotOffs,  /*!< Start position in time */
879
    const int lastSlotOffs,   /*!< Number of overlap-slots into next frame */
880
    const int nInvfBands,     /*!< Number of bands for inverse filtering */
881
    INVF_MODE *sbr_invf_mode, /*!< Current inverse filtering modes */
882
    INVF_MODE *sbr_invf_mode_prev /*!< Previous inverse filtering modes */
883
39.2k
) {
884
39.2k
  INT bwIndex;
885
39.2k
  FIXP_DBL bwVector[MAX_NUM_PATCHES_HBE]; /*!< pole moving factors */
886
887
39.2k
  int i;
888
39.2k
  int loBand, start, stop;
889
39.2k
  TRANSPOSER_SETTINGS *pSettings = hLppTrans->pSettings;
890
39.2k
  PATCH_PARAM *patchParam = pSettings->patchParam;
891
892
39.2k
  FIXP_SGL alphar[LPC_ORDER], a0r, a1r;
893
39.2k
  FIXP_SGL alphai[LPC_ORDER], a0i = 0, a1i = 0;
894
39.2k
  FIXP_SGL bw = FL2FXCONST_SGL(0.0f);
895
896
39.2k
  int autoCorrLength;
897
898
39.2k
  ACORR_COEFS ac;
899
39.2k
  int startSample;
900
39.2k
  int stopSample;
901
39.2k
  int stopSampleClear;
902
903
39.2k
  int comBandScale;
904
39.2k
  int ovLowBandShift;
905
39.2k
  int lowBandShift;
906
  /*  int ovHighBandShift;*/
907
908
39.2k
  alphai[0] = FL2FXCONST_SGL(0.0f);
909
39.2k
  alphai[1] = FL2FXCONST_SGL(0.0f);
910
911
39.2k
  startSample = firstSlotOffs * timeStep;
912
39.2k
  stopSample = pSettings->nCols + lastSlotOffs * timeStep;
913
914
39.2k
  inverseFilteringLevelEmphasis(hLppTrans, nInvfBands, sbr_invf_mode,
915
39.2k
                                sbr_invf_mode_prev, bwVector);
916
917
39.2k
  stopSampleClear = stopSample;
918
919
39.2k
  autoCorrLength = pSettings->nCols + pSettings->overlap;
920
921
39.2k
  if (pSettings->noOfPatches > 0) {
922
    /* Set upper subbands to zero:
923
       This is required in case that the patches do not cover the complete
924
       highband (because the last patch would be too short). Possible
925
       optimization: Clearing bands up to usb would be sufficient here. */
926
39.2k
    int targetStopBand =
927
39.2k
        patchParam[pSettings->noOfPatches - 1].targetStartBand +
928
39.2k
        patchParam[pSettings->noOfPatches - 1].numBandsInPatch;
929
930
39.2k
    int memSize = ((64) - targetStopBand) * sizeof(FIXP_DBL);
931
932
1.96M
    for (i = startSample; i < stopSampleClear; i++) {
933
1.92M
      FDKmemclear(&qmfBufferReal[i][targetStopBand], memSize);
934
1.92M
      FDKmemclear(&qmfBufferImag[i][targetStopBand], memSize);
935
1.92M
    }
936
39.2k
  }
937
#if defined __ANDROID__ && !defined __ANDROID_NDK__
938
  else {
939
    // Safetynet logging
940
    android_errorWriteLog(0x534e4554, "112160868");
941
  }
942
#endif
943
944
  /*
945
  Calc common low band scale factor
946
  */
947
39.2k
  comBandScale = sbrScaleFactor->hb_scale;
948
949
39.2k
  ovLowBandShift = sbrScaleFactor->hb_scale - comBandScale;
950
39.2k
  lowBandShift = sbrScaleFactor->hb_scale - comBandScale;
951
  /*  ovHighBandShift = firstSlotOffs == 0 ? ovLowBandShift:0;*/
952
953
  /* outer loop over bands to do analysis only once for each band */
954
955
39.2k
  start = hQmfTransposer->startBand;
956
39.2k
  stop = hQmfTransposer->stopBand;
957
958
1.35M
  for (loBand = start; loBand < stop; loBand++) {
959
1.31M
    bwIndex = 0;
960
961
1.31M
    FIXP_DBL lowBandReal[(((1024) / (32) * (4) / 2) + (3 * (4))) + LPC_ORDER];
962
1.31M
    FIXP_DBL lowBandImag[(((1024) / (32) * (4) / 2) + (3 * (4))) + LPC_ORDER];
963
964
1.31M
    int resetLPCCoeffs = 0;
965
1.31M
    int dynamicScale = DFRACT_BITS - 1 - LPC_SCALE_FACTOR;
966
1.31M
    int acDetScale = 0; /* scaling of autocorrelation determinant */
967
968
3.95M
    for (i = 0; i < LPC_ORDER; i++) {
969
2.63M
      lowBandReal[i] = hLppTrans->lpcFilterStatesRealHBE[i][loBand];
970
2.63M
      lowBandImag[i] = hLppTrans->lpcFilterStatesImagHBE[i][loBand];
971
2.63M
    }
972
973
2.64M
    for (; i < LPC_ORDER + firstSlotOffs * timeStep; i++) {
974
1.32M
      lowBandReal[i] = hLppTrans->lpcFilterStatesRealHBE[i][loBand];
975
1.32M
      lowBandImag[i] = hLppTrans->lpcFilterStatesImagHBE[i][loBand];
976
1.32M
    }
977
978
    /*
979
    Take old slope length qmf slot source values out of (overlap)qmf buffer
980
    */
981
1.31M
    for (i = firstSlotOffs * timeStep;
982
71.2M
         i < pSettings->nCols + pSettings->overlap; i++) {
983
69.9M
      lowBandReal[i + LPC_ORDER] = qmfBufferReal[i][loBand];
984
69.9M
      lowBandImag[i + LPC_ORDER] = qmfBufferImag[i][loBand];
985
69.9M
    }
986
987
    /* store unmodified values to buffer */
988
15.2M
    for (i = 0; i < LPC_ORDER + pSettings->overlap; i++) {
989
13.8M
      hLppTrans->lpcFilterStatesRealHBE[i][loBand] =
990
13.8M
          qmfBufferReal[pSettings->nCols - LPC_ORDER + i][loBand];
991
13.8M
      hLppTrans->lpcFilterStatesImagHBE[i][loBand] =
992
13.8M
          qmfBufferImag[pSettings->nCols - LPC_ORDER + i][loBand];
993
13.8M
    }
994
995
    /*
996
    Determine dynamic scaling value.
997
    */
998
1.31M
    dynamicScale =
999
1.31M
        fixMin(dynamicScale,
1000
1.31M
               getScalefactor(lowBandReal, LPC_ORDER + pSettings->overlap) +
1001
1.31M
                   ovLowBandShift);
1002
1.31M
    dynamicScale =
1003
1.31M
        fixMin(dynamicScale,
1004
1.31M
               getScalefactor(&lowBandReal[LPC_ORDER + pSettings->overlap],
1005
1.31M
                              pSettings->nCols) +
1006
1.31M
                   lowBandShift);
1007
1.31M
    dynamicScale =
1008
1.31M
        fixMin(dynamicScale,
1009
1.31M
               getScalefactor(lowBandImag, LPC_ORDER + pSettings->overlap) +
1010
1.31M
                   ovLowBandShift);
1011
1.31M
    dynamicScale =
1012
1.31M
        fixMin(dynamicScale,
1013
1.31M
               getScalefactor(&lowBandImag[LPC_ORDER + pSettings->overlap],
1014
1.31M
                              pSettings->nCols) +
1015
1.31M
                   lowBandShift);
1016
1017
1.31M
    dynamicScale =
1018
1.31M
        dynamicScale - 1; /* one additional bit headroom to prevent -1.0 */
1019
1020
    /*
1021
    Scale temporal QMF buffer.
1022
    */
1023
1.31M
    scaleValues(&lowBandReal[0], LPC_ORDER + pSettings->overlap,
1024
1.31M
                dynamicScale - ovLowBandShift);
1025
1.31M
    scaleValues(&lowBandReal[LPC_ORDER + pSettings->overlap], pSettings->nCols,
1026
1.31M
                dynamicScale - lowBandShift);
1027
1.31M
    scaleValues(&lowBandImag[0], LPC_ORDER + pSettings->overlap,
1028
1.31M
                dynamicScale - ovLowBandShift);
1029
1.31M
    scaleValues(&lowBandImag[LPC_ORDER + pSettings->overlap], pSettings->nCols,
1030
1.31M
                dynamicScale - lowBandShift);
1031
1032
1.31M
    acDetScale += autoCorr2nd_cplx(&ac, lowBandReal + LPC_ORDER,
1033
1.31M
                                   lowBandImag + LPC_ORDER, autoCorrLength);
1034
1035
    /* Examine dynamic of determinant in autocorrelation. */
1036
1.31M
    acDetScale += 2 * (comBandScale + dynamicScale);
1037
1.31M
    acDetScale *= 2;            /* two times reflection coefficent scaling */
1038
1.31M
    acDetScale += ac.det_scale; /* ac scaling of determinant */
1039
1040
    /* In case of determinant < 10^-38, resetLPCCoeffs=1 has to be enforced. */
1041
1.31M
    if (acDetScale > 126) {
1042
663k
      resetLPCCoeffs = 1;
1043
663k
    }
1044
1045
1.31M
    alphar[1] = FL2FXCONST_SGL(0.0f);
1046
1.31M
    alphai[1] = FL2FXCONST_SGL(0.0f);
1047
1048
1.31M
    if (ac.det != FL2FXCONST_DBL(0.0f)) {
1049
650k
      FIXP_DBL tmp, absTmp, absDet;
1050
1051
650k
      absDet = fixp_abs(ac.det);
1052
1053
650k
      tmp = (fMultDiv2(ac.r01r, ac.r12r) >> (LPC_SCALE_FACTOR - 1)) -
1054
650k
            ((fMultDiv2(ac.r01i, ac.r12i) + fMultDiv2(ac.r02r, ac.r11r)) >>
1055
650k
             (LPC_SCALE_FACTOR - 1));
1056
650k
      absTmp = fixp_abs(tmp);
1057
1058
      /*
1059
      Quick check: is first filter coeff >= 1(4)
1060
      */
1061
650k
      {
1062
650k
        INT scale;
1063
650k
        FIXP_DBL result = fDivNorm(absTmp, absDet, &scale);
1064
650k
        scale = scale + ac.det_scale;
1065
1066
650k
        if ((scale > 0) && (result >= (FIXP_DBL)MAXVAL_DBL >> scale)) {
1067
17.3k
          resetLPCCoeffs = 1;
1068
633k
        } else {
1069
633k
          alphar[1] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale));
1070
633k
          if ((tmp < FL2FX_DBL(0.0f)) ^ (ac.det < FL2FX_DBL(0.0f))) {
1071
430k
            alphar[1] = -alphar[1];
1072
430k
          }
1073
633k
        }
1074
650k
      }
1075
1076
650k
      tmp = (fMultDiv2(ac.r01i, ac.r12r) >> (LPC_SCALE_FACTOR - 1)) +
1077
650k
            ((fMultDiv2(ac.r01r, ac.r12i) -
1078
650k
              (FIXP_DBL)fMultDiv2(ac.r02i, ac.r11r)) >>
1079
650k
             (LPC_SCALE_FACTOR - 1));
1080
1081
650k
      absTmp = fixp_abs(tmp);
1082
1083
      /*
1084
      Quick check: is second filter coeff >= 1(4)
1085
      */
1086
650k
      {
1087
650k
        INT scale;
1088
650k
        FIXP_DBL result = fDivNorm(absTmp, absDet, &scale);
1089
650k
        scale = scale + ac.det_scale;
1090
1091
650k
        if ((scale > 0) &&
1092
28.0k
            (result >= /*FL2FXCONST_DBL(1.f)*/ (FIXP_DBL)MAXVAL_DBL >> scale)) {
1093
16.6k
          resetLPCCoeffs = 1;
1094
634k
        } else {
1095
634k
          alphai[1] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale));
1096
634k
          if ((tmp < FL2FX_DBL(0.0f)) ^ (ac.det < FL2FX_DBL(0.0f))) {
1097
286k
            alphai[1] = -alphai[1];
1098
286k
          }
1099
634k
        }
1100
650k
      }
1101
650k
    }
1102
1103
1.31M
    alphar[0] = FL2FXCONST_SGL(0.0f);
1104
1.31M
    alphai[0] = FL2FXCONST_SGL(0.0f);
1105
1106
1.31M
    if (ac.r11r != FL2FXCONST_DBL(0.0f)) {
1107
      /* ac.r11r is always >=0 */
1108
652k
      FIXP_DBL tmp, absTmp;
1109
1110
652k
      tmp = (ac.r01r >> (LPC_SCALE_FACTOR + 1)) +
1111
652k
            (fMultDiv2(alphar[1], ac.r12r) + fMultDiv2(alphai[1], ac.r12i));
1112
1113
652k
      absTmp = fixp_abs(tmp);
1114
1115
      /*
1116
      Quick check: is first filter coeff >= 1(4)
1117
      */
1118
1119
652k
      if (absTmp >= (ac.r11r >> 1)) {
1120
1.23k
        resetLPCCoeffs = 1;
1121
651k
      } else {
1122
651k
        INT scale;
1123
651k
        FIXP_DBL result = fDivNorm(absTmp, fixp_abs(ac.r11r), &scale);
1124
651k
        alphar[0] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale + 1));
1125
1126
651k
        if ((tmp > FL2FX_DBL(0.0f)) ^ (ac.r11r < FL2FX_DBL(0.0f)))
1127
432k
          alphar[0] = -alphar[0];
1128
651k
      }
1129
1130
652k
      tmp = (ac.r01i >> (LPC_SCALE_FACTOR + 1)) +
1131
652k
            (fMultDiv2(alphai[1], ac.r12r) - fMultDiv2(alphar[1], ac.r12i));
1132
1133
652k
      absTmp = fixp_abs(tmp);
1134
1135
      /*
1136
      Quick check: is second filter coeff >= 1(4)
1137
      */
1138
652k
      if (absTmp >= (ac.r11r >> 1)) {
1139
1.84k
        resetLPCCoeffs = 1;
1140
650k
      } else {
1141
650k
        INT scale;
1142
650k
        FIXP_DBL result = fDivNorm(absTmp, fixp_abs(ac.r11r), &scale);
1143
650k
        alphai[0] = FX_DBL2FX_SGL(scaleValueSaturate(result, scale + 1));
1144
650k
        if ((tmp > FL2FX_DBL(0.0f)) ^ (ac.r11r < FL2FX_DBL(0.0f))) {
1145
320k
          alphai[0] = -alphai[0];
1146
320k
        }
1147
650k
      }
1148
652k
    }
1149
1150
    /* Now check the quadratic criteria */
1151
1.31M
    if ((fMultDiv2(alphar[0], alphar[0]) + fMultDiv2(alphai[0], alphai[0])) >=
1152
1.31M
        FL2FXCONST_DBL(0.5f)) {
1153
833
      resetLPCCoeffs = 1;
1154
833
    }
1155
1.31M
    if ((fMultDiv2(alphar[1], alphar[1]) + fMultDiv2(alphai[1], alphai[1])) >=
1156
1.31M
        FL2FXCONST_DBL(0.5f)) {
1157
2.79k
      resetLPCCoeffs = 1;
1158
2.79k
    }
1159
1160
1.31M
    if (resetLPCCoeffs) {
1161
692k
      alphar[0] = FL2FXCONST_SGL(0.0f);
1162
692k
      alphar[1] = FL2FXCONST_SGL(0.0f);
1163
692k
      alphai[0] = FL2FXCONST_SGL(0.0f);
1164
692k
      alphai[1] = FL2FXCONST_SGL(0.0f);
1165
692k
    }
1166
1167
4.00M
    while (bwIndex < MAX_NUM_PATCHES - 1 &&
1168
4.00M
           loBand >= pSettings->bwBorders[bwIndex]) {
1169
2.68M
      bwIndex++;
1170
2.68M
    }
1171
1172
    /*
1173
    Filter Step 2: add the left slope with the current filter to the buffer
1174
    pure source values are already in there
1175
    */
1176
1.31M
    bw = FX_DBL2FX_SGL(bwVector[bwIndex]);
1177
1178
1.31M
    a0r = FX_DBL2FX_SGL(
1179
1.31M
        fMult(bw, alphar[0])); /* Apply current bandwidth expansion factor */
1180
1.31M
    a0i = FX_DBL2FX_SGL(fMult(bw, alphai[0]));
1181
1.31M
    bw = FX_DBL2FX_SGL(fPow2(bw));
1182
1.31M
    a1r = FX_DBL2FX_SGL(fMult(bw, alphar[1]));
1183
1.31M
    a1i = FX_DBL2FX_SGL(fMult(bw, alphai[1]));
1184
1185
    /*
1186
    Filter Step 3: insert the middle part which won't be windowed
1187
    */
1188
1.31M
    if (bw <= FL2FXCONST_SGL(0.0f)) {
1189
899k
      int descale = fixMin(DFRACT_BITS - 1, (LPC_SCALE_FACTOR + dynamicScale));
1190
37.4M
      for (i = startSample; i < stopSample; i++) {
1191
36.5M
        qmfBufferReal[i][loBand] = lowBandReal[LPC_ORDER + i] >> descale;
1192
36.5M
        qmfBufferImag[i][loBand] = lowBandImag[LPC_ORDER + i] >> descale;
1193
36.5M
      }
1194
899k
    } else { /* bw <= 0 */
1195
1196
417k
      int descale = fixMin(DFRACT_BITS - 1, (LPC_SCALE_FACTOR + dynamicScale));
1197
417k
      dynamicScale +=
1198
417k
          1; /* prevent negativ scale factor due to 'one additional bit
1199
                headroom' */
1200
1201
23.1M
      for (i = startSample; i < stopSample; i++) {
1202
22.7M
        FIXP_DBL accu1, accu2;
1203
1204
22.7M
        accu1 = (fMultDiv2(a0r, lowBandReal[LPC_ORDER + i - 1]) -
1205
22.7M
                 fMultDiv2(a0i, lowBandImag[LPC_ORDER + i - 1]) +
1206
22.7M
                 fMultDiv2(a1r, lowBandReal[LPC_ORDER + i - 2]) -
1207
22.7M
                 fMultDiv2(a1i, lowBandImag[LPC_ORDER + i - 2])) >>
1208
22.7M
                dynamicScale;
1209
22.7M
        accu2 = (fMultDiv2(a0i, lowBandReal[LPC_ORDER + i - 1]) +
1210
22.7M
                 fMultDiv2(a0r, lowBandImag[LPC_ORDER + i - 1]) +
1211
22.7M
                 fMultDiv2(a1i, lowBandReal[LPC_ORDER + i - 2]) +
1212
22.7M
                 fMultDiv2(a1r, lowBandImag[LPC_ORDER + i - 2])) >>
1213
22.7M
                dynamicScale;
1214
1215
22.7M
        qmfBufferReal[i][loBand] =
1216
22.7M
            (lowBandReal[LPC_ORDER + i] >> descale) + (accu1 << (1 + 1));
1217
22.7M
        qmfBufferImag[i][loBand] =
1218
22.7M
            (lowBandImag[LPC_ORDER + i] >> descale) + (accu2 << (1 + 1));
1219
22.7M
      }
1220
417k
    } /* bw <= 0 */
1221
1222
    /*
1223
     * store the unmodified filter coefficients if there is
1224
     * an overlapping envelope
1225
     *****************************************************************/
1226
1227
1.31M
  } /* outer loop over bands (loBand) */
1228
1229
161k
  for (i = 0; i < nInvfBands; i++) {
1230
122k
    hLppTrans->bwVectorOld[i] = bwVector[i];
1231
122k
  }
1232
1233
  /*
1234
  set high band scale factor
1235
  */
1236
39.2k
  sbrScaleFactor->hb_scale = comBandScale - (LPC_SCALE_FACTOR);
1237
39.2k
}
1238
1239
/*!
1240
 *
1241
 * \brief Initialize one low power transposer instance
1242
 *
1243
 *
1244
 */
1245
SBR_ERROR
1246
createLppTransposer(
1247
    HANDLE_SBR_LPP_TRANS hs,        /*!< Handle of low power transposer  */
1248
    TRANSPOSER_SETTINGS *pSettings, /*!< Pointer to settings */
1249
    const int highBandStartSb,      /*!< ? */
1250
    UCHAR *v_k_master,              /*!< Master table */
1251
    const int numMaster,            /*!< Valid entries in master table */
1252
    const int usb,                  /*!< Highband area stop subband */
1253
    const int timeSlots,            /*!< Number of time slots */
1254
    const int nCols,                /*!< Number of colums (codec qmf bank) */
1255
    UCHAR *noiseBandTable,  /*!< Mapping of SBR noise bands to QMF bands */
1256
    const int noNoiseBands, /*!< Number of noise bands */
1257
    UINT fs,                /*!< Sample Frequency */
1258
    const int chan,         /*!< Channel number */
1259
178k
    const int overlap) {
1260
  /* FB inverse filtering settings */
1261
178k
  hs->pSettings = pSettings;
1262
1263
178k
  pSettings->nCols = nCols;
1264
178k
  pSettings->overlap = overlap;
1265
1266
178k
  switch (timeSlots) {
1267
63.4k
    case 15:
1268
178k
    case 16:
1269
178k
      break;
1270
1271
0
    default:
1272
0
      return SBRDEC_UNSUPPORTED_CONFIG; /* Unimplemented */
1273
178k
  }
1274
1275
178k
  if (chan == 0) {
1276
    /* Init common data only once */
1277
114k
    hs->pSettings->nCols = nCols;
1278
1279
114k
    return resetLppTransposer(hs, highBandStartSb, v_k_master, numMaster,
1280
114k
                              noiseBandTable, noNoiseBands, usb, fs);
1281
114k
  }
1282
63.8k
  return SBRDEC_OK;
1283
178k
}
1284
1285
static int findClosestEntry(UCHAR goalSb, UCHAR *v_k_master, UCHAR numMaster,
1286
745k
                            UCHAR direction) {
1287
745k
  int index;
1288
1289
745k
  if (goalSb <= v_k_master[0]) return v_k_master[0];
1290
1291
720k
  if (goalSb >= v_k_master[numMaster]) return v_k_master[numMaster];
1292
1293
388k
  if (direction) {
1294
19.0k
    index = 0;
1295
244k
    while (v_k_master[index] < goalSb) {
1296
225k
      index++;
1297
225k
    }
1298
369k
  } else {
1299
369k
    index = numMaster;
1300
2.01M
    while (v_k_master[index] > goalSb) {
1301
1.64M
      index--;
1302
1.64M
    }
1303
369k
  }
1304
1305
388k
  return v_k_master[index];
1306
720k
}
1307
1308
/*!
1309
 *
1310
 * \brief Reset memory for one lpp transposer instance
1311
 *
1312
 * \return SBRDEC_OK on success, SBRDEC_UNSUPPORTED_CONFIG on error
1313
 */
1314
SBR_ERROR
1315
resetLppTransposer(
1316
    HANDLE_SBR_LPP_TRANS hLppTrans, /*!< Handle of lpp transposer  */
1317
    UCHAR highBandStartSb,          /*!< High band area: start subband */
1318
    UCHAR *v_k_master,              /*!< Master table */
1319
    UCHAR numMaster,                /*!< Valid entries in master table */
1320
    UCHAR *noiseBandTable, /*!< Mapping of SBR noise bands to QMF bands */
1321
    UCHAR noNoiseBands,    /*!< Number of noise bands */
1322
    UCHAR usb,             /*!< High band area: stop subband */
1323
    UINT fs                /*!< SBR output sampling frequency */
1324
373k
) {
1325
373k
  TRANSPOSER_SETTINGS *pSettings = hLppTrans->pSettings;
1326
373k
  PATCH_PARAM *patchParam = pSettings->patchParam;
1327
1328
373k
  int i, patch;
1329
373k
  int targetStopBand;
1330
373k
  int sourceStartBand;
1331
373k
  int patchDistance;
1332
373k
  int numBandsInPatch;
1333
1334
373k
  int lsb = v_k_master[0]; /* Start subband expressed in "non-critical" sampling
1335
                              terms*/
1336
373k
  int xoverOffset = highBandStartSb -
1337
373k
                    lsb; /* Calculate distance in QMF bands between k0 and kx */
1338
373k
  int startFreqHz;
1339
1340
373k
  int desiredBorder;
1341
1342
373k
  usb = fixMin(usb, v_k_master[numMaster]); /* Avoid endless loops (compare with
1343
                                               float code). */
1344
1345
  /*
1346
   * Plausibility check
1347
   */
1348
1349
373k
  if (pSettings->nCols == 64) {
1350
19.7k
    if (lsb < 4) {
1351
      /* 4:1 SBR Requirement k0 >= 4 missed! */
1352
71
      return SBRDEC_UNSUPPORTED_CONFIG;
1353
71
    }
1354
353k
  } else if (lsb - SHIFT_START_SB < 4) {
1355
119
    return SBRDEC_UNSUPPORTED_CONFIG;
1356
119
  }
1357
1358
  /*
1359
   * Initialize the patching parameter
1360
   */
1361
  /* ISO/IEC 14496-3 (Figure 4.48): goalSb = round( 2.048e6 / fs ) */
1362
372k
  desiredBorder = (((2048000 * 2) / fs) + 1) >> 1;
1363
1364
372k
  desiredBorder = findClosestEntry(desiredBorder, v_k_master, numMaster,
1365
372k
                                   1); /* Adapt region to master-table */
1366
1367
  /* First patch */
1368
372k
  sourceStartBand = SHIFT_START_SB + xoverOffset;
1369
372k
  targetStopBand = lsb + xoverOffset; /* upperBand */
1370
1371
  /* Even (odd) numbered channel must be patched to even (odd) numbered channel
1372
   */
1373
372k
  patch = 0;
1374
1.05M
  while (targetStopBand < usb) {
1375
    /* Too many patches?
1376
       Allow MAX_NUM_PATCHES+1 patches here.
1377
       we need to check later again, since patch might be the highest patch
1378
       AND contain less than 3 bands => actual number of patches will be reduced
1379
       by 1.
1380
    */
1381
680k
    if (patch > MAX_NUM_PATCHES) {
1382
818
      return SBRDEC_UNSUPPORTED_CONFIG;
1383
818
    }
1384
1385
679k
    patchParam[patch].guardStartBand = targetStopBand;
1386
679k
    patchParam[patch].targetStartBand = targetStopBand;
1387
1388
679k
    numBandsInPatch =
1389
679k
        desiredBorder - targetStopBand; /* Get the desired range of the patch */
1390
1391
679k
    if (numBandsInPatch >= lsb - sourceStartBand) {
1392
      /* Desired number bands are not available -> patch whole source range */
1393
372k
      patchDistance =
1394
372k
          targetStopBand - sourceStartBand; /* Get the targetOffset */
1395
372k
      patchDistance =
1396
372k
          patchDistance & ~1; /* Rounding off odd numbers and make all even */
1397
372k
      numBandsInPatch =
1398
372k
          lsb - (targetStopBand -
1399
372k
                 patchDistance); /* Update number of bands to be patched */
1400
372k
      numBandsInPatch = findClosestEntry(targetStopBand + numBandsInPatch,
1401
372k
                                         v_k_master, numMaster, 0) -
1402
372k
                        targetStopBand; /* Adapt region to master-table */
1403
372k
    }
1404
1405
679k
    if (pSettings->nCols == 64) {
1406
61.4k
      if (numBandsInPatch == 0 && sourceStartBand == SHIFT_START_SB) {
1407
209
        return SBRDEC_UNSUPPORTED_CONFIG;
1408
209
      }
1409
61.4k
    }
1410
1411
    /* Desired number bands are available -> get the minimal even patching
1412
     * distance */
1413
679k
    patchDistance =
1414
679k
        numBandsInPatch + targetStopBand - lsb; /* Get minimal distance */
1415
679k
    patchDistance = (patchDistance + 1) &
1416
679k
                    ~1; /* Rounding up odd numbers and make all even */
1417
1418
679k
    if (numBandsInPatch > 0) {
1419
652k
      patchParam[patch].sourceStartBand = targetStopBand - patchDistance;
1420
652k
      patchParam[patch].targetBandOffs = patchDistance;
1421
652k
      patchParam[patch].numBandsInPatch = numBandsInPatch;
1422
652k
      patchParam[patch].sourceStopBand =
1423
652k
          patchParam[patch].sourceStartBand + numBandsInPatch;
1424
1425
652k
      targetStopBand += patchParam[patch].numBandsInPatch;
1426
652k
      patch++;
1427
652k
    }
1428
1429
    /* All patches but first */
1430
679k
    sourceStartBand = SHIFT_START_SB;
1431
1432
    /* Check if we are close to desiredBorder */
1433
679k
    if (desiredBorder - targetStopBand < 3) /* MPEG doc */
1434
338k
    {
1435
338k
      desiredBorder = usb;
1436
338k
    }
1437
679k
  }
1438
1439
371k
  patch--;
1440
1441
  /* If highest patch contains less than three subband: skip it */
1442
371k
  if ((patch > 0) && (patchParam[patch].numBandsInPatch < 3)) {
1443
28.2k
    patch--;
1444
28.2k
    targetStopBand =
1445
28.2k
        patchParam[patch].targetStartBand + patchParam[patch].numBandsInPatch;
1446
28.2k
  }
1447
1448
  /* now check if we don't have one too many */
1449
371k
  if (patch >= MAX_NUM_PATCHES) {
1450
1.94k
    return SBRDEC_UNSUPPORTED_CONFIG;
1451
1.94k
  }
1452
1453
369k
  pSettings->noOfPatches = patch + 1;
1454
1455
  /* Check lowest and highest source subband */
1456
369k
  pSettings->lbStartPatching = targetStopBand;
1457
369k
  pSettings->lbStopPatching = 0;
1458
973k
  for (patch = 0; patch < pSettings->noOfPatches; patch++) {
1459
603k
    pSettings->lbStartPatching =
1460
603k
        fixMin(pSettings->lbStartPatching, patchParam[patch].sourceStartBand);
1461
603k
    pSettings->lbStopPatching =
1462
603k
        fixMax(pSettings->lbStopPatching, patchParam[patch].sourceStopBand);
1463
603k
  }
1464
1465
1.21M
  for (i = 0; i < noNoiseBands; i++) {
1466
847k
    pSettings->bwBorders[i] = noiseBandTable[i + 1];
1467
847k
  }
1468
3.22M
  for (; i < MAX_NUM_NOISE_VALUES; i++) {
1469
2.85M
    pSettings->bwBorders[i] = 255;
1470
2.85M
  }
1471
1472
  /*
1473
   * Choose whitening factors
1474
   */
1475
1476
369k
  startFreqHz =
1477
369k
      ((lsb + xoverOffset) * fs) >> 7; /* Shift does a division by 2*(64) */
1478
1479
1.10M
  for (i = 1; i < NUM_WHFACTOR_TABLE_ENTRIES; i++) {
1480
1.04M
    if (startFreqHz < FDK_sbrDecoder_sbr_whFactorsIndex[i]) break;
1481
1.04M
  }
1482
369k
  i--;
1483
1484
369k
  pSettings->whFactors.off = FDK_sbrDecoder_sbr_whFactorsTable[i][0];
1485
369k
  pSettings->whFactors.transitionLevel =
1486
369k
      FDK_sbrDecoder_sbr_whFactorsTable[i][1];
1487
369k
  pSettings->whFactors.lowLevel = FDK_sbrDecoder_sbr_whFactorsTable[i][2];
1488
369k
  pSettings->whFactors.midLevel = FDK_sbrDecoder_sbr_whFactorsTable[i][3];
1489
369k
  pSettings->whFactors.highLevel = FDK_sbrDecoder_sbr_whFactorsTable[i][4];
1490
1491
369k
  return SBRDEC_OK;
1492
371k
}