Coverage Report

Created: 2024-06-17 06:33

/src/aac/libAACdec/src/rvlcconceal.cpp
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/* -----------------------------------------------------------------------------
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Software License for The Fraunhofer FDK AAC Codec Library for Android
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© Copyright  1995 - 2018 Fraunhofer-Gesellschaft zur Förderung der angewandten
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Forschung e.V. All rights reserved.
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7
 1.    INTRODUCTION
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The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
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scheme for digital audio. This FDK AAC Codec software is intended to be used on
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a wide variety of Android devices.
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13
AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient
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general perceptual audio codecs. AAC-ELD is considered the best-performing
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full-bandwidth communications codec by independent studies and is widely
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deployed. AAC has been standardized by ISO and IEC as part of the MPEG
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specifications.
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
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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
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Android devices already license these patent claims through Via Licensing or
25
directly from the patent owners, and therefore FDK AAC Codec software may
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already be covered under those patent licenses when it is used for those
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licensed purposes only.
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29
Commercially-licensed AAC software libraries, including floating-point versions
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with enhanced sound quality, are also available from Fraunhofer. Users are
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encouraged to check the Fraunhofer website for additional applications
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information and documentation.
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2.    COPYRIGHT LICENSE
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36
Redistribution and use in source and binary forms, with or without modification,
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are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
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You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
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You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
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your modifications thereto in binary form. You must make available free of
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charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
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The name of Fraunhofer may not be used to endorse or promote products derived
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from this library without prior written permission.
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You may not charge copyright license fees for anyone to use, copy or distribute
53
the FDK AAC Codec software or your modifications thereto.
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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"
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must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
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AAC Codec Library for Android."
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3.    NO PATENT LICENSE
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NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
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limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
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Fraunhofer provides no warranty of patent non-infringement with respect to this
66
software.
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You may use this FDK AAC Codec software or modifications thereto only for
69
purposes that are authorized by appropriate patent licenses.
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4.    DISCLAIMER
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This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
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,
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or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
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however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
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this software, even if advised of the possibility of such damage.
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5.    CONTACT INFORMATION
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Fraunhofer Institute for Integrated Circuits IIS
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Attention: Audio and Multimedia Departments - FDK AAC LL
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Am Wolfsmantel 33
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91058 Erlangen, Germany
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www.iis.fraunhofer.de/amm
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amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
94
95
/**************************** AAC decoder library ******************************
96
97
   Author(s):
98
99
   Description:
100
101
*******************************************************************************/
102
103
/*!
104
  \file
105
  \brief  rvlc concealment
106
  \author Josef Hoepfl
107
*/
108
109
#include "rvlcconceal.h"
110
111
#include "block.h"
112
#include "rvlc.h"
113
114
/*---------------------------------------------------------------------------------------------
115
  function:      calcRefValFwd
116
117
  description:   The function determines the scalefactor which is closed to the
118
scalefactorband conceal_min. The same is done for intensity data and noise
119
energies.
120
-----------------------------------------------------------------------------------------------
121
  output:        - reference value scf
122
                 - reference value internsity data
123
                 - reference value noise energy
124
-----------------------------------------------------------------------------------------------
125
  return:        -
126
--------------------------------------------------------------------------------------------
127
*/
128
129
static void calcRefValFwd(CErRvlcInfo *pRvlc,
130
                          CAacDecoderChannelInfo *pAacDecoderChannelInfo,
131
29.8k
                          int *refIsFwd, int *refNrgFwd, int *refScfFwd) {
132
29.8k
  int band, bnds, group, startBand;
133
29.8k
  int idIs, idNrg, idScf;
134
29.8k
  int conceal_min, conceal_group_min;
135
29.8k
  int MaximumScaleFactorBands;
136
137
29.8k
  if (GetWindowSequence(&pAacDecoderChannelInfo->icsInfo) == BLOCK_SHORT)
138
517
    MaximumScaleFactorBands = 16;
139
29.3k
  else
140
29.3k
    MaximumScaleFactorBands = 64;
141
142
29.8k
  conceal_min = pRvlc->conceal_min % MaximumScaleFactorBands;
143
29.8k
  conceal_group_min = pRvlc->conceal_min / MaximumScaleFactorBands;
144
145
  /* calculate first reference value for approach in forward direction */
146
29.8k
  idIs = idNrg = idScf = 1;
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148
  /* set reference values */
149
29.8k
  *refIsFwd = -SF_OFFSET;
150
29.8k
  *refNrgFwd = pAacDecoderChannelInfo->pDynData->RawDataInfo.GlobalGain -
151
29.8k
               SF_OFFSET - 90 - 256;
152
29.8k
  *refScfFwd =
153
29.8k
      pAacDecoderChannelInfo->pDynData->RawDataInfo.GlobalGain - SF_OFFSET;
154
155
29.8k
  startBand = conceal_min - 1;
156
59.7k
  for (group = conceal_group_min; group >= 0; group--) {
157
35.4k
    for (band = startBand; band >= 0; band--) {
158
5.54k
      bnds = 16 * group + band;
159
5.54k
      switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
160
649
        case ZERO_HCB:
161
649
          break;
162
770
        case INTENSITY_HCB:
163
966
        case INTENSITY_HCB2:
164
966
          if (idIs) {
165
503
            *refIsFwd =
166
503
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
167
503
            idIs = 0; /* reference value has been set */
168
503
          }
169
966
          break;
170
164
        case NOISE_HCB:
171
164
          if (idNrg) {
172
60
            *refNrgFwd =
173
60
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
174
60
            idNrg = 0; /* reference value has been set */
175
60
          }
176
164
          break;
177
3.76k
        default:
178
3.76k
          if (idScf) {
179
3.01k
            *refScfFwd =
180
3.01k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
181
3.01k
            idScf = 0; /* reference value has been set */
182
3.01k
          }
183
3.76k
          break;
184
5.54k
      }
185
5.54k
    }
186
29.9k
    startBand = pRvlc->maxSfbTransmitted - 1;
187
29.9k
  }
188
29.8k
}
189
190
/*---------------------------------------------------------------------------------------------
191
  function:      calcRefValBwd
192
193
  description:   The function determines the scalefactor which is closed to the
194
scalefactorband conceal_max. The same is done for intensity data and noise
195
energies.
196
-----------------------------------------------------------------------------------------------
197
  output:        - reference value scf
198
                 - reference value internsity data
199
                 - reference value noise energy
200
-----------------------------------------------------------------------------------------------
201
  return:        -
202
--------------------------------------------------------------------------------------------
203
*/
204
205
static void calcRefValBwd(CErRvlcInfo *pRvlc,
206
                          CAacDecoderChannelInfo *pAacDecoderChannelInfo,
207
29.8k
                          int *refIsBwd, int *refNrgBwd, int *refScfBwd) {
208
29.8k
  int band, bnds, group, startBand;
209
29.8k
  int idIs, idNrg, idScf;
210
29.8k
  int conceal_max, conceal_group_max;
211
29.8k
  int MaximumScaleFactorBands;
212
213
29.8k
  if (GetWindowSequence(&pAacDecoderChannelInfo->icsInfo) == BLOCK_SHORT)
214
517
    MaximumScaleFactorBands = 16;
215
29.3k
  else
216
29.3k
    MaximumScaleFactorBands = 64;
217
218
29.8k
  conceal_max = pRvlc->conceal_max % MaximumScaleFactorBands;
219
29.8k
  conceal_group_max = pRvlc->conceal_max / MaximumScaleFactorBands;
220
221
  /* calculate first reference value for approach in backward direction */
222
29.8k
  idIs = idNrg = idScf = 1;
223
224
  /* set reference values */
225
29.8k
  *refIsBwd = pRvlc->dpcm_is_last_position - SF_OFFSET;
226
29.8k
  *refNrgBwd = pRvlc->rev_global_gain + pRvlc->dpcm_noise_last_position -
227
29.8k
               SF_OFFSET - 90 - 256 + pRvlc->dpcm_noise_nrg;
228
29.8k
  *refScfBwd = pRvlc->rev_global_gain - SF_OFFSET;
229
230
29.8k
  startBand = conceal_max + 1;
231
232
  /* if needed, re-set reference values */
233
61.8k
  for (group = conceal_group_max; group < pRvlc->numWindowGroups; group++) {
234
53.1k
    for (band = startBand; band < pRvlc->maxSfbTransmitted; band++) {
235
21.1k
      bnds = 16 * group + band;
236
21.1k
      switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
237
8.41k
        case ZERO_HCB:
238
8.41k
          break;
239
515
        case INTENSITY_HCB:
240
825
        case INTENSITY_HCB2:
241
825
          if (idIs) {
242
149
            *refIsBwd =
243
149
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
244
149
            idIs = 0; /* reference value has been set */
245
149
          }
246
825
          break;
247
645
        case NOISE_HCB:
248
645
          if (idNrg) {
249
152
            *refNrgBwd =
250
152
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
251
152
            idNrg = 0; /* reference value has been set */
252
152
          }
253
645
          break;
254
11.2k
        default:
255
11.2k
          if (idScf) {
256
3.59k
            *refScfBwd =
257
3.59k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
258
3.59k
            idScf = 0; /* reference value has been set */
259
3.59k
          }
260
11.2k
          break;
261
21.1k
      }
262
21.1k
    }
263
31.9k
    startBand = 0;
264
31.9k
  }
265
29.8k
}
266
267
/*---------------------------------------------------------------------------------------------
268
  function:      BidirectionalEstimation_UseLowerScfOfCurrentFrame
269
270
  description:   This approach by means of bidirectional estimation is generally
271
performed when a single bit error has been detected, the bit error can be
272
isolated between 'conceal_min' and 'conceal_max' and the 'sf_concealment' flag
273
is not set. The sets of scalefactors decoded in forward and backward direction
274
are compared with each other. The smaller scalefactor will be considered as the
275
correct one respectively. The reconstruction of the scalefactors with this
276
approach archieve good results in audio quality. The strategy must be applied to
277
scalefactors, intensity data and noise energy seperately.
278
-----------------------------------------------------------------------------------------------
279
  output:        Concealed scalefactor, noise energy and intensity data between
280
conceal_min and conceal_max
281
-----------------------------------------------------------------------------------------------
282
  return:        -
283
--------------------------------------------------------------------------------------------
284
*/
285
286
void BidirectionalEstimation_UseLowerScfOfCurrentFrame(
287
34.4k
    CAacDecoderChannelInfo *pAacDecoderChannelInfo) {
288
34.4k
  CErRvlcInfo *pRvlc =
289
34.4k
      &pAacDecoderChannelInfo->pComData->overlay.aac.erRvlcInfo;
290
34.4k
  int band, bnds, startBand, endBand, group;
291
34.4k
  int conceal_min, conceal_max;
292
34.4k
  int conceal_group_min, conceal_group_max;
293
34.4k
  int MaximumScaleFactorBands;
294
295
34.4k
  if (GetWindowSequence(&pAacDecoderChannelInfo->icsInfo) == BLOCK_SHORT) {
296
3.64k
    MaximumScaleFactorBands = 16;
297
30.8k
  } else {
298
30.8k
    MaximumScaleFactorBands = 64;
299
30.8k
  }
300
301
  /* If an error was detected just in forward or backward direction, set the
302
     corresponding border for concealment to a appropriate scalefactor band. The
303
     border is set to first or last sfb respectively, because the error will
304
     possibly not follow directly after the corrupt bit but just after decoding
305
     some more (wrong) scalefactors. */
306
34.4k
  if (pRvlc->conceal_min == CONCEAL_MIN_INIT) pRvlc->conceal_min = 0;
307
308
34.4k
  if (pRvlc->conceal_max == CONCEAL_MAX_INIT)
309
1.39k
    pRvlc->conceal_max =
310
1.39k
        (pRvlc->numWindowGroups - 1) * 16 + pRvlc->maxSfbTransmitted - 1;
311
312
34.4k
  conceal_min = pRvlc->conceal_min % MaximumScaleFactorBands;
313
34.4k
  conceal_group_min = pRvlc->conceal_min / MaximumScaleFactorBands;
314
34.4k
  conceal_max = pRvlc->conceal_max % MaximumScaleFactorBands;
315
34.4k
  conceal_group_max = pRvlc->conceal_max / MaximumScaleFactorBands;
316
317
34.4k
  if (pRvlc->conceal_min == pRvlc->conceal_max) {
318
29.8k
    int refIsFwd, refNrgFwd, refScfFwd;
319
29.8k
    int refIsBwd, refNrgBwd, refScfBwd;
320
321
29.8k
    bnds = pRvlc->conceal_min;
322
29.8k
    calcRefValFwd(pRvlc, pAacDecoderChannelInfo, &refIsFwd, &refNrgFwd,
323
29.8k
                  &refScfFwd);
324
29.8k
    calcRefValBwd(pRvlc, pAacDecoderChannelInfo, &refIsBwd, &refNrgBwd,
325
29.8k
                  &refScfBwd);
326
327
29.8k
    switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
328
20.9k
      case ZERO_HCB:
329
20.9k
        break;
330
422
      case INTENSITY_HCB:
331
532
      case INTENSITY_HCB2:
332
532
        if (refIsFwd < refIsBwd)
333
186
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = refIsFwd;
334
346
        else
335
346
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = refIsBwd;
336
532
        break;
337
904
      case NOISE_HCB:
338
904
        if (refNrgFwd < refNrgBwd)
339
854
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = refNrgFwd;
340
50
        else
341
50
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = refNrgBwd;
342
904
        break;
343
7.46k
      default:
344
7.46k
        if (refScfFwd < refScfBwd)
345
6.43k
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = refScfFwd;
346
1.02k
        else
347
1.02k
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = refScfBwd;
348
7.46k
        break;
349
29.8k
    }
350
29.8k
  } else {
351
4.64k
    pAacDecoderChannelInfo->pComData->overlay.aac
352
4.64k
        .aRvlcScfFwd[pRvlc->conceal_max] =
353
4.64k
        pAacDecoderChannelInfo->pComData->overlay.aac
354
4.64k
            .aRvlcScfBwd[pRvlc->conceal_max];
355
4.64k
    pAacDecoderChannelInfo->pComData->overlay.aac
356
4.64k
        .aRvlcScfBwd[pRvlc->conceal_min] =
357
4.64k
        pAacDecoderChannelInfo->pComData->overlay.aac
358
4.64k
            .aRvlcScfFwd[pRvlc->conceal_min];
359
360
    /* consider the smaller of the forward and backward decoded value as the
361
     * correct one */
362
4.64k
    startBand = conceal_min;
363
4.64k
    if (conceal_group_min == conceal_group_max)
364
2.08k
      endBand = conceal_max;
365
2.55k
    else
366
2.55k
      endBand = pRvlc->maxSfbTransmitted - 1;
367
368
14.3k
    for (group = conceal_group_min; group <= conceal_group_max; group++) {
369
39.5k
      for (band = startBand; band <= endBand; band++) {
370
29.8k
        bnds = 16 * group + band;
371
29.8k
        if (pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds] <
372
29.8k
            pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds])
373
14.3k
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
374
14.3k
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
375
15.5k
        else
376
15.5k
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
377
15.5k
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
378
29.8k
      }
379
9.73k
      startBand = 0;
380
9.73k
      if ((group + 1) == conceal_group_max) endBand = conceal_max;
381
9.73k
    }
382
4.64k
  }
383
384
  /* now copy all data to the output buffer which needs not to be concealed */
385
34.4k
  if (conceal_group_min == 0)
386
33.2k
    endBand = conceal_min;
387
1.21k
  else
388
1.21k
    endBand = pRvlc->maxSfbTransmitted;
389
73.2k
  for (group = 0; group <= conceal_group_min; group++) {
390
66.3k
    for (band = 0; band < endBand; band++) {
391
27.6k
      bnds = 16 * group + band;
392
27.6k
      pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
393
27.6k
          pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
394
27.6k
    }
395
38.7k
    if ((group + 1) == conceal_group_min) endBand = conceal_min;
396
38.7k
  }
397
398
34.4k
  startBand = conceal_max + 1;
399
77.5k
  for (group = conceal_group_max; group < pRvlc->numWindowGroups; group++) {
400
89.8k
    for (band = startBand; band < pRvlc->maxSfbTransmitted; band++) {
401
46.7k
      bnds = 16 * group + band;
402
46.7k
      pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
403
46.7k
          pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
404
46.7k
    }
405
43.0k
    startBand = 0;
406
43.0k
  }
407
34.4k
}
408
409
/*---------------------------------------------------------------------------------------------
410
  function:      BidirectionalEstimation_UseScfOfPrevFrameAsReference
411
412
  description:   This approach by means of bidirectional estimation is generally
413
performed when a single bit error has been detected, the bit error can be
414
isolated between 'conceal_min' and 'conceal_max', the 'sf_concealment' flag is
415
set and the previous frame has the same block type as the current frame. The
416
scalefactor decoded in forward and backward direction and the scalefactor of the
417
previous frame are compared with each other. The smaller scalefactor will be
418
considered as the correct one. At this the codebook of the previous and current
419
frame must be of the same set (scf, nrg, is) in each scalefactorband. Otherwise
420
the scalefactor of the previous frame is not considered in the minimum
421
calculation. The reconstruction of the scalefactors with this approach archieve
422
good results in audio quality. The strategy must be applied to scalefactors,
423
intensity data and noise energy seperately.
424
-----------------------------------------------------------------------------------------------
425
  output:        Concealed scalefactor, noise energy and intensity data between
426
conceal_min and conceal_max
427
-----------------------------------------------------------------------------------------------
428
  return:        -
429
--------------------------------------------------------------------------------------------
430
*/
431
432
void BidirectionalEstimation_UseScfOfPrevFrameAsReference(
433
    CAacDecoderChannelInfo *pAacDecoderChannelInfo,
434
30.0k
    CAacDecoderStaticChannelInfo *pAacDecoderStaticChannelInfo) {
435
30.0k
  CErRvlcInfo *pRvlc =
436
30.0k
      &pAacDecoderChannelInfo->pComData->overlay.aac.erRvlcInfo;
437
30.0k
  int band, bnds, startBand, endBand, group;
438
30.0k
  int conceal_min, conceal_max;
439
30.0k
  int conceal_group_min, conceal_group_max;
440
30.0k
  int MaximumScaleFactorBands;
441
30.0k
  SHORT commonMin;
442
443
30.0k
  if (GetWindowSequence(&pAacDecoderChannelInfo->icsInfo) == BLOCK_SHORT) {
444
2.11k
    MaximumScaleFactorBands = 16;
445
27.8k
  } else {
446
27.8k
    MaximumScaleFactorBands = 64;
447
27.8k
  }
448
449
  /* If an error was detected just in forward or backward direction, set the
450
     corresponding border for concealment to a appropriate scalefactor band. The
451
     border is set to first or last sfb respectively, because the error will
452
     possibly not follow directly after the corrupt bit but just after decoding
453
     some more (wrong) scalefactors. */
454
30.0k
  if (pRvlc->conceal_min == CONCEAL_MIN_INIT) pRvlc->conceal_min = 0;
455
456
30.0k
  if (pRvlc->conceal_max == CONCEAL_MAX_INIT)
457
1.52k
    pRvlc->conceal_max =
458
1.52k
        (pRvlc->numWindowGroups - 1) * 16 + pRvlc->maxSfbTransmitted - 1;
459
460
30.0k
  conceal_min = pRvlc->conceal_min % MaximumScaleFactorBands;
461
30.0k
  conceal_group_min = pRvlc->conceal_min / MaximumScaleFactorBands;
462
30.0k
  conceal_max = pRvlc->conceal_max % MaximumScaleFactorBands;
463
30.0k
  conceal_group_max = pRvlc->conceal_max / MaximumScaleFactorBands;
464
465
30.0k
  pAacDecoderChannelInfo->pComData->overlay.aac
466
30.0k
      .aRvlcScfFwd[pRvlc->conceal_max] =
467
30.0k
      pAacDecoderChannelInfo->pComData->overlay.aac
468
30.0k
          .aRvlcScfBwd[pRvlc->conceal_max];
469
30.0k
  pAacDecoderChannelInfo->pComData->overlay.aac
470
30.0k
      .aRvlcScfBwd[pRvlc->conceal_min] =
471
30.0k
      pAacDecoderChannelInfo->pComData->overlay.aac
472
30.0k
          .aRvlcScfFwd[pRvlc->conceal_min];
473
474
  /* consider the smaller of the forward and backward decoded value as the
475
   * correct one */
476
30.0k
  startBand = conceal_min;
477
30.0k
  if (conceal_group_min == conceal_group_max)
478
28.2k
    endBand = conceal_max;
479
1.73k
  else
480
1.73k
    endBand = pRvlc->maxSfbTransmitted - 1;
481
482
63.1k
  for (group = conceal_group_min; group <= conceal_group_max; group++) {
483
89.8k
    for (band = startBand; band <= endBand; band++) {
484
56.7k
      bnds = 16 * group + band;
485
56.7k
      switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
486
24.3k
        case ZERO_HCB:
487
24.3k
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = 0;
488
24.3k
          break;
489
490
1.94k
        case INTENSITY_HCB:
491
11.2k
        case INTENSITY_HCB2:
492
11.2k
          if ((pAacDecoderStaticChannelInfo->concealmentInfo
493
11.2k
                   .aRvlcPreviousCodebook[bnds] == INTENSITY_HCB) ||
494
11.2k
              (pAacDecoderStaticChannelInfo->concealmentInfo
495
10.9k
                   .aRvlcPreviousCodebook[bnds] == INTENSITY_HCB2)) {
496
7.39k
            commonMin = fMin(
497
7.39k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
498
7.39k
                pAacDecoderChannelInfo->pComData->overlay.aac
499
7.39k
                    .aRvlcScfBwd[bnds]);
500
7.39k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
501
7.39k
                fMin(commonMin, pAacDecoderStaticChannelInfo->concealmentInfo
502
7.39k
                                    .aRvlcPreviousScaleFactor[bnds]);
503
7.39k
          } else {
504
3.84k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = fMin(
505
3.84k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
506
3.84k
                pAacDecoderChannelInfo->pComData->overlay.aac
507
3.84k
                    .aRvlcScfBwd[bnds]);
508
3.84k
          }
509
11.2k
          break;
510
511
1.79k
        case NOISE_HCB:
512
1.79k
          if (pAacDecoderStaticChannelInfo->concealmentInfo
513
1.79k
                  .aRvlcPreviousCodebook[bnds] == NOISE_HCB) {
514
108
            commonMin = fMin(
515
108
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
516
108
                pAacDecoderChannelInfo->pComData->overlay.aac
517
108
                    .aRvlcScfBwd[bnds]);
518
108
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
519
108
                fMin(commonMin, pAacDecoderStaticChannelInfo->concealmentInfo
520
108
                                    .aRvlcPreviousScaleFactor[bnds]);
521
1.68k
          } else {
522
1.68k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = fMin(
523
1.68k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
524
1.68k
                pAacDecoderChannelInfo->pComData->overlay.aac
525
1.68k
                    .aRvlcScfBwd[bnds]);
526
1.68k
          }
527
1.79k
          break;
528
529
19.3k
        default:
530
19.3k
          if ((pAacDecoderStaticChannelInfo->concealmentInfo
531
19.3k
                   .aRvlcPreviousCodebook[bnds] != ZERO_HCB) &&
532
19.3k
              (pAacDecoderStaticChannelInfo->concealmentInfo
533
7.26k
                   .aRvlcPreviousCodebook[bnds] != NOISE_HCB) &&
534
19.3k
              (pAacDecoderStaticChannelInfo->concealmentInfo
535
6.83k
                   .aRvlcPreviousCodebook[bnds] != INTENSITY_HCB) &&
536
19.3k
              (pAacDecoderStaticChannelInfo->concealmentInfo
537
6.81k
                   .aRvlcPreviousCodebook[bnds] != INTENSITY_HCB2)) {
538
6.73k
            commonMin = fMin(
539
6.73k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
540
6.73k
                pAacDecoderChannelInfo->pComData->overlay.aac
541
6.73k
                    .aRvlcScfBwd[bnds]);
542
6.73k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
543
6.73k
                fMin(commonMin, pAacDecoderStaticChannelInfo->concealmentInfo
544
6.73k
                                    .aRvlcPreviousScaleFactor[bnds]);
545
12.6k
          } else {
546
12.6k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = fMin(
547
12.6k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
548
12.6k
                pAacDecoderChannelInfo->pComData->overlay.aac
549
12.6k
                    .aRvlcScfBwd[bnds]);
550
12.6k
          }
551
19.3k
          break;
552
56.7k
      }
553
56.7k
    }
554
33.1k
    startBand = 0;
555
33.1k
    if ((group + 1) == conceal_group_max) endBand = conceal_max;
556
33.1k
  }
557
558
  /* now copy all data to the output buffer which needs not to be concealed */
559
30.0k
  if (conceal_group_min == 0)
560
28.0k
    endBand = conceal_min;
561
1.94k
  else
562
1.94k
    endBand = pRvlc->maxSfbTransmitted;
563
64.8k
  for (group = 0; group <= conceal_group_min; group++) {
564
52.0k
    for (band = 0; band < endBand; band++) {
565
17.2k
      bnds = 16 * group + band;
566
17.2k
      pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
567
17.2k
          pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
568
17.2k
    }
569
34.8k
    if ((group + 1) == conceal_group_min) endBand = conceal_min;
570
34.8k
  }
571
572
30.0k
  startBand = conceal_max + 1;
573
62.4k
  for (group = conceal_group_max; group < pRvlc->numWindowGroups; group++) {
574
46.8k
    for (band = startBand; band < pRvlc->maxSfbTransmitted; band++) {
575
14.4k
      bnds = 16 * group + band;
576
14.4k
      pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
577
14.4k
          pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
578
14.4k
    }
579
32.4k
    startBand = 0;
580
32.4k
  }
581
30.0k
}
582
583
/*---------------------------------------------------------------------------------------------
584
  function:      StatisticalEstimation
585
586
  description:   This approach by means of statistical estimation is generally
587
performed when both the start value and the end value are different and no
588
further errors have been detected. Considering the forward and backward decoded
589
scalefactors, the set with the lower scalefactors in sum will be considered as
590
the correct one. The scalefactors are differentially encoded. Normally it would
591
reach to compare one pair of the forward and backward decoded scalefactors to
592
specify the lower set. But having detected no further errors does not
593
necessarily mean the absence of errors. Therefore all scalefactors decoded in
594
forward and backward direction are summed up seperately. The set with the lower
595
sum will be used. The strategy must be applied to scalefactors, intensity data
596
and noise energy seperately.
597
-----------------------------------------------------------------------------------------------
598
  output:        Concealed scalefactor, noise energy and intensity data
599
-----------------------------------------------------------------------------------------------
600
  return:        -
601
--------------------------------------------------------------------------------------------
602
*/
603
604
2.26k
void StatisticalEstimation(CAacDecoderChannelInfo *pAacDecoderChannelInfo) {
605
2.26k
  CErRvlcInfo *pRvlc =
606
2.26k
      &pAacDecoderChannelInfo->pComData->overlay.aac.erRvlcInfo;
607
2.26k
  int band, bnds, group;
608
2.26k
  int sumIsFwd, sumIsBwd;   /* sum of intensity data forward/backward */
609
2.26k
  int sumNrgFwd, sumNrgBwd; /* sum of noise energy data forward/backward */
610
2.26k
  int sumScfFwd, sumScfBwd; /* sum of scalefactor data forward/backward */
611
2.26k
  int useIsFwd, useNrgFwd, useScfFwd; /* the flags signals the elements which
612
                                         are used for the final result */
613
614
2.26k
  sumIsFwd = sumIsBwd = sumNrgFwd = sumNrgBwd = sumScfFwd = sumScfBwd = 0;
615
2.26k
  useIsFwd = useNrgFwd = useScfFwd = 0;
616
617
  /* calculate sum of each group (scf,nrg,is) of forward and backward direction
618
   */
619
4.93k
  for (group = 0; group < pRvlc->numWindowGroups; group++) {
620
18.1k
    for (band = 0; band < pRvlc->maxSfbTransmitted; band++) {
621
15.4k
      bnds = 16 * group + band;
622
15.4k
      switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
623
6.15k
        case ZERO_HCB:
624
6.15k
          break;
625
626
924
        case INTENSITY_HCB:
627
1.26k
        case INTENSITY_HCB2:
628
1.26k
          sumIsFwd +=
629
1.26k
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
630
1.26k
          sumIsBwd +=
631
1.26k
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
632
1.26k
          break;
633
634
911
        case NOISE_HCB:
635
911
          sumNrgFwd +=
636
911
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
637
911
          sumNrgBwd +=
638
911
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
639
911
          break;
640
641
7.12k
        default:
642
7.12k
          sumScfFwd +=
643
7.12k
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
644
7.12k
          sumScfBwd +=
645
7.12k
              pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
646
7.12k
          break;
647
15.4k
      }
648
15.4k
    }
649
2.67k
  }
650
651
  /* find for each group (scf,nrg,is) the correct direction */
652
2.26k
  if (sumIsFwd < sumIsBwd) useIsFwd = 1;
653
654
2.26k
  if (sumNrgFwd < sumNrgBwd) useNrgFwd = 1;
655
656
2.26k
  if (sumScfFwd < sumScfBwd) useScfFwd = 1;
657
658
  /* conceal each group (scf,nrg,is) */
659
4.93k
  for (group = 0; group < pRvlc->numWindowGroups; group++) {
660
18.1k
    for (band = 0; band < pRvlc->maxSfbTransmitted; band++) {
661
15.4k
      bnds = 16 * group + band;
662
15.4k
      switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
663
6.15k
        case ZERO_HCB:
664
6.15k
          break;
665
666
924
        case INTENSITY_HCB:
667
1.26k
        case INTENSITY_HCB2:
668
1.26k
          if (useIsFwd)
669
562
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
670
562
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
671
704
          else
672
704
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
673
704
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
674
1.26k
          break;
675
676
911
        case NOISE_HCB:
677
911
          if (useNrgFwd)
678
375
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
679
375
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
680
536
          else
681
536
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
682
536
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
683
911
          break;
684
685
7.12k
        default:
686
7.12k
          if (useScfFwd)
687
3.38k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
688
3.38k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds];
689
3.74k
          else
690
3.74k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
691
3.74k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfBwd[bnds];
692
7.12k
          break;
693
15.4k
      }
694
15.4k
    }
695
2.67k
  }
696
2.26k
}
697
698
/*---------------------------------------------------------------------------------------------
699
  description:   Approach by means of predictive interpolation
700
                 This approach by means of predictive estimation is generally
701
performed when the error cannot be isolated between 'conceal_min' and
702
'conceal_max', the 'sf_concealment' flag is set and the previous frame has the
703
same block type as the current frame. Check for each scalefactorband if the same
704
type of data (scalefactor, internsity data, noise energies) is transmitted. If
705
so use the scalefactor (intensity data, noise energy) in the current frame.
706
Otherwise set the scalefactor (intensity data, noise energy) for this
707
scalefactorband to zero.
708
-----------------------------------------------------------------------------------------------
709
  output:        Concealed scalefactor, noise energy and intensity data
710
-----------------------------------------------------------------------------------------------
711
  return:        -
712
--------------------------------------------------------------------------------------------
713
*/
714
715
void PredictiveInterpolation(
716
    CAacDecoderChannelInfo *pAacDecoderChannelInfo,
717
7.80k
    CAacDecoderStaticChannelInfo *pAacDecoderStaticChannelInfo) {
718
7.80k
  CErRvlcInfo *pRvlc =
719
7.80k
      &pAacDecoderChannelInfo->pComData->overlay.aac.erRvlcInfo;
720
7.80k
  int band, bnds, group;
721
7.80k
  SHORT commonMin;
722
723
16.5k
  for (group = 0; group < pRvlc->numWindowGroups; group++) {
724
47.0k
    for (band = 0; band < pRvlc->maxSfbTransmitted; band++) {
725
38.3k
      bnds = 16 * group + band;
726
38.3k
      switch (pAacDecoderChannelInfo->pDynData->aCodeBook[bnds]) {
727
135
        case ZERO_HCB:
728
135
          pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = 0;
729
135
          break;
730
731
197
        case INTENSITY_HCB:
732
21.4k
        case INTENSITY_HCB2:
733
21.4k
          if ((pAacDecoderStaticChannelInfo->concealmentInfo
734
21.4k
                   .aRvlcPreviousCodebook[bnds] == INTENSITY_HCB) ||
735
21.4k
              (pAacDecoderStaticChannelInfo->concealmentInfo
736
21.4k
                   .aRvlcPreviousCodebook[bnds] == INTENSITY_HCB2)) {
737
15.7k
            commonMin = fMin(
738
15.7k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
739
15.7k
                pAacDecoderChannelInfo->pComData->overlay.aac
740
15.7k
                    .aRvlcScfBwd[bnds]);
741
15.7k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
742
15.7k
                fMin(commonMin, pAacDecoderStaticChannelInfo->concealmentInfo
743
15.7k
                                    .aRvlcPreviousScaleFactor[bnds]);
744
15.7k
          } else {
745
5.78k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = -110;
746
5.78k
          }
747
21.4k
          break;
748
749
565
        case NOISE_HCB:
750
565
          if (pAacDecoderStaticChannelInfo->concealmentInfo
751
565
                  .aRvlcPreviousCodebook[bnds] == NOISE_HCB) {
752
384
            commonMin = fMin(
753
384
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
754
384
                pAacDecoderChannelInfo->pComData->overlay.aac
755
384
                    .aRvlcScfBwd[bnds]);
756
384
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
757
384
                fMin(commonMin, pAacDecoderStaticChannelInfo->concealmentInfo
758
384
                                    .aRvlcPreviousScaleFactor[bnds]);
759
384
          } else {
760
181
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = -110;
761
181
          }
762
565
          break;
763
764
16.1k
        default:
765
16.1k
          if ((pAacDecoderStaticChannelInfo->concealmentInfo
766
16.1k
                   .aRvlcPreviousCodebook[bnds] != ZERO_HCB) &&
767
16.1k
              (pAacDecoderStaticChannelInfo->concealmentInfo
768
11.8k
                   .aRvlcPreviousCodebook[bnds] != NOISE_HCB) &&
769
16.1k
              (pAacDecoderStaticChannelInfo->concealmentInfo
770
11.7k
                   .aRvlcPreviousCodebook[bnds] != INTENSITY_HCB) &&
771
16.1k
              (pAacDecoderStaticChannelInfo->concealmentInfo
772
11.7k
                   .aRvlcPreviousCodebook[bnds] != INTENSITY_HCB2)) {
773
11.7k
            commonMin = fMin(
774
11.7k
                pAacDecoderChannelInfo->pComData->overlay.aac.aRvlcScfFwd[bnds],
775
11.7k
                pAacDecoderChannelInfo->pComData->overlay.aac
776
11.7k
                    .aRvlcScfBwd[bnds]);
777
11.7k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] =
778
11.7k
                fMin(commonMin, pAacDecoderStaticChannelInfo->concealmentInfo
779
11.7k
                                    .aRvlcPreviousScaleFactor[bnds]);
780
11.7k
          } else {
781
4.39k
            pAacDecoderChannelInfo->pDynData->aScaleFactor[bnds] = 0;
782
4.39k
          }
783
16.1k
          break;
784
38.3k
      }
785
38.3k
    }
786
8.71k
  }
787
7.80k
}