Coverage Report

Created: 2026-07-10 07:11

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/src/aac/libAACdec/src/usacdec_acelp.cpp
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/* -----------------------------------------------------------------------------
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Software License for The Fraunhofer FDK AAC Codec Library for Android
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© Copyright  1995 - 2020 Fraunhofer-Gesellschaft zur Förderung der angewandten
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Forschung e.V. All rights reserved.
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7
 1.    INTRODUCTION
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The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
10
scheme for digital audio. This FDK AAC Codec software is intended to be used on
11
a wide variety of Android devices.
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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
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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
26
already be covered under those patent licenses when it is used for those
27
licensed purposes only.
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29
Commercially-licensed AAC software libraries, including floating-point versions
30
with enhanced sound quality, are also available from Fraunhofer. Users are
31
encouraged to check the Fraunhofer website for additional applications
32
information and documentation.
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34
2.    COPYRIGHT LICENSE
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36
Redistribution and use in source and binary forms, with or without modification,
37
are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
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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.
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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.
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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."
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3.    NO PATENT LICENSE
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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.
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71
4.    DISCLAIMER
72
73
This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
75
including but not limited to the implied warranties of merchantability and
76
fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
77
CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
78
or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
80
however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
82
this software, even if advised of the possibility of such damage.
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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
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91
www.iis.fraunhofer.de/amm
92
amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
94
95
/**************************** AAC decoder library ******************************
96
97
   Author(s):   Matthias Hildenbrand
98
99
   Description: USAC ACELP frame decoder
100
101
*******************************************************************************/
102
103
#include "usacdec_acelp.h"
104
105
#include "usacdec_ace_d4t64.h"
106
#include "usacdec_ace_ltp.h"
107
#include "usacdec_rom.h"
108
#include "usacdec_lpc.h"
109
#include "genericStds.h"
110
111
108k
#define PIT_FR2_12k8 128 /* Minimum pitch lag with resolution 1/2      */
112
108k
#define PIT_FR1_12k8 160 /* Minimum pitch lag with resolution 1        */
113
#define TILT_CODE2 \
114
23.8M
  FL2FXCONST_SGL(0.3f * 2.0f) /* ACELP code pre-emphasis factor ( *2 )      */
115
#define PIT_SHARP \
116
2.28M
  FL2FXCONST_SGL(0.85f) /* pitch sharpening factor                    */
117
#define PREEMPH_FAC \
118
51.6M
  FL2FXCONST_SGL(0.68f) /* ACELP synth pre-emphasis factor            */
119
120
254k
#define ACELP_HEADROOM 1
121
254k
#define ACELP_OUTSCALE (MDCT_OUT_HEADROOM - ACELP_HEADROOM)
122
123
/**
124
 * \brief Calculate pre-emphasis (1 - mu z^-1) on input signal.
125
 * \param[in] in pointer to input signal; in[-1] is also needed.
126
 * \param[out] out pointer to output signal.
127
 * \param[in] L length of filtering.
128
 */
129
/* static */
130
56.8k
void E_UTIL_preemph(const FIXP_DBL *in, FIXP_DBL *out, INT L) {
131
56.8k
  int i;
132
133
22.9M
  for (i = 0; i < L; i++) {
134
22.8M
    out[i] = fAddSaturate(in[i], -fMult(PREEMPH_FAC, in[i - 1]));
135
22.8M
  }
136
137
56.8k
  return;
138
56.8k
}
139
140
/**
141
 * \brief Calculate de-emphasis 1/(1 - TILT_CODE z^-1) on innovative codebook
142
 * vector.
143
 * \param[in,out] x innovative codebook vector.
144
 */
145
static void Preemph_code(
146
    FIXP_COD x[] /* (i/o)   : input signal overwritten by the output */
147
378k
) {
148
378k
  int i;
149
378k
  FIXP_DBL L_tmp;
150
151
  /* ARM926: 12 cycles per sample */
152
24.1M
  for (i = L_SUBFR - 1; i > 0; i--) {
153
23.8M
    L_tmp = FX_COD2FX_DBL(x[i]);
154
23.8M
    L_tmp -= fMultDiv2(x[i - 1], TILT_CODE2);
155
23.8M
    x[i] = FX_DBL2FX_COD(L_tmp);
156
23.8M
  }
157
378k
}
158
159
/**
160
 * \brief Apply pitch sharpener to the innovative codebook vector.
161
 * \param[in,out] x innovative codebook vector.
162
 * \param[in] pit_lag decoded pitch lag.
163
 */
164
static void Pit_shrp(
165
    FIXP_COD x[], /* in/out: impulse response (or algebraic code) */
166
    int pit_lag   /* input : pitch lag                            */
167
378k
) {
168
378k
  int i;
169
378k
  FIXP_DBL L_tmp;
170
171
2.65M
  for (i = pit_lag; i < L_SUBFR; i++) {
172
2.28M
    L_tmp = FX_COD2FX_DBL(x[i]);
173
2.28M
    L_tmp += fMult(x[i - pit_lag], PIT_SHARP);
174
2.28M
    x[i] = FX_DBL2FX_COD(L_tmp);
175
2.28M
  }
176
177
378k
  return;
178
378k
}
179
180
  /**
181
   * \brief Calculate Quantized codebook gain, Quantized pitch gain and unbiased
182
   *        Innovative code vector energy.
183
   * \param[in] index index of quantizer.
184
   * \param[in] code innovative code vector with exponent = SF_CODE.
185
   * \param[out] gain_pit Quantized pitch gain g_p with exponent = SF_GAIN_P.
186
   * \param[out] gain_code Quantized codebook gain g_c.
187
   * \param[in] mean_ener mean_ener defined in open-loop (2 bits), exponent = 7.
188
   * \param[out] E_code unbiased innovative code vector energy.
189
   * \param[out] E_code_e exponent of unbiased innovative code vector energy.
190
   */
191
192
370k
#define SF_MEAN_ENER_LG10 9
193
194
/* pow(10.0, {18, 30, 42, 54}/20.0) /(float)(1<<SF_MEAN_ENER_LG10) */
195
static const FIXP_DBL pow_10_mean_energy[4] = {0x01fc5ebd, 0x07e7db92,
196
                                               0x1f791f65, 0x7d4bfba3};
197
198
static void D_gain2_plus(int index, FIXP_COD code[], FIXP_SGL *gain_pit,
199
                         FIXP_DBL *gain_code, int mean_ener_bits, int bfi,
200
                         FIXP_SGL *past_gpit, FIXP_DBL *past_gcode,
201
378k
                         FIXP_DBL *pEner_code, int *pEner_code_e) {
202
378k
  FIXP_DBL Ltmp;
203
378k
  FIXP_DBL gcode0, gcode_inov;
204
378k
  INT gcode0_e, gcode_inov_e;
205
378k
  int i;
206
207
378k
  FIXP_DBL ener_code;
208
378k
  INT ener_code_e;
209
210
  /* ener_code = sum(code[]^2) */
211
378k
  ener_code = FIXP_DBL(0);
212
24.5M
  for (i = 0; i < L_SUBFR; i++) {
213
24.1M
    ener_code += fPow2Div2(code[i]);
214
24.1M
  }
215
216
378k
  ener_code_e = fMax(fNorm(ener_code) - 1, 0);
217
378k
  ener_code <<= ener_code_e;
218
378k
  ener_code_e = 2 * SF_CODE + 1 - ener_code_e;
219
220
  /* export energy of code for calc_period_factor() */
221
378k
  *pEner_code = ener_code;
222
378k
  *pEner_code_e = ener_code_e;
223
224
378k
  ener_code += scaleValue(FL2FXCONST_DBL(0.01f), -ener_code_e);
225
226
  /* ener_code *= 1/L_SUBFR, and make exponent even (because of square root
227
   * below). */
228
378k
  if (ener_code_e & 1) {
229
174k
    ener_code_e -= 5;
230
174k
    ener_code >>= 1;
231
203k
  } else {
232
203k
    ener_code_e -= 6;
233
203k
  }
234
378k
  gcode_inov = invSqrtNorm2(ener_code, &gcode0_e);
235
378k
  gcode_inov_e = gcode0_e - (ener_code_e >> 1);
236
237
378k
  if (bfi) {
238
7.49k
    FIXP_DBL tgcode;
239
7.49k
    FIXP_SGL tgpit;
240
241
7.49k
    tgpit = *past_gpit;
242
243
7.49k
    if (tgpit > FL2FXCONST_SGL(0.95f / (1 << SF_GAIN_P))) {
244
129
      tgpit = FL2FXCONST_SGL(0.95f / (1 << SF_GAIN_P));
245
7.36k
    } else if (tgpit < FL2FXCONST_SGL(0.5f / (1 << SF_GAIN_P))) {
246
5.18k
      tgpit = FL2FXCONST_SGL(0.5f / (1 << SF_GAIN_P));
247
5.18k
    }
248
7.49k
    *gain_pit = tgpit;
249
7.49k
    tgpit = FX_DBL2FX_SGL(fMult(tgpit, FL2FXCONST_DBL(0.95f)));
250
7.49k
    *past_gpit = tgpit;
251
252
7.49k
    tgpit = FL2FXCONST_SGL(1.4f / (1 << SF_GAIN_P)) - tgpit;
253
7.49k
    tgcode = fMult(*past_gcode, tgpit) << SF_GAIN_P;
254
7.49k
    *gain_code = scaleValue(fMult(tgcode, gcode_inov), gcode_inov_e);
255
7.49k
    *past_gcode = tgcode;
256
257
7.49k
    return;
258
7.49k
  }
259
260
  /*-------------- Decode gains ---------------*/
261
  /*
262
   gcode0 = pow(10.0, (float)mean_ener/20.0);
263
   gcode0 = gcode0 / sqrt(ener_code/L_SUBFR);
264
   */
265
370k
  gcode0 = pow_10_mean_energy[mean_ener_bits];
266
370k
  gcode0 = fMultDiv2(gcode0, gcode_inov);
267
370k
  gcode0_e = gcode0_e + SF_MEAN_ENER_LG10 - (ener_code_e >> 1) + 1;
268
269
370k
  i = index << 1;
270
370k
  *gain_pit = t_qua_gain7b[i]; /* adaptive codebook gain */
271
  /* t_qua_gain[ind2p1] : fixed codebook gain correction factor */
272
370k
  Ltmp = fMult(t_qua_gain7b[i + 1], gcode0);
273
370k
  *gain_code = scaleValue(Ltmp, gcode0_e - SF_GAIN_C + SF_QUA_GAIN7B);
274
275
  /* update bad frame handler */
276
370k
  *past_gpit = *gain_pit;
277
278
  /*--------------------------------------------------------
279
    past_gcode  = gain_code/gcode_inov
280
   --------------------------------------------------------*/
281
370k
  {
282
370k
    FIXP_DBL gcode_m;
283
370k
    INT gcode_e;
284
285
370k
    gcode_m = fDivNormHighPrec(Ltmp, gcode_inov, &gcode_e);
286
370k
    gcode_e += (gcode0_e - SF_GAIN_C + SF_QUA_GAIN7B) - (gcode_inov_e);
287
370k
    *past_gcode = scaleValue(gcode_m, gcode_e);
288
370k
  }
289
370k
}
290
291
/**
292
 * \brief Calculate period/voicing factor r_v
293
 * \param[in] exc pitch excitation.
294
 * \param[in] gain_pit gain of pitch g_p.
295
 * \param[in] gain_code gain of code g_c.
296
 * \param[in] gain_code_e exponent of gain of code.
297
 * \param[in] ener_code unbiased innovative code vector energy.
298
 * \param[in] ener_code_e exponent of unbiased innovative code vector energy.
299
 * \return period/voice factor r_v (-1=unvoiced to 1=voiced), exponent SF_PFAC.
300
 */
301
static FIXP_DBL calc_period_factor(FIXP_DBL exc[], FIXP_SGL gain_pit,
302
                                   FIXP_DBL gain_code, FIXP_DBL ener_code,
303
378k
                                   int ener_code_e) {
304
378k
  int ener_exc_e, L_tmp_e, s = 0;
305
378k
  FIXP_DBL ener_exc, L_tmp;
306
378k
  FIXP_DBL period_fac;
307
308
  /* energy of pitch excitation */
309
378k
  ener_exc = (FIXP_DBL)0;
310
24.5M
  for (int i = 0; i < L_SUBFR; i++) {
311
24.1M
    ener_exc += fPow2Div2(exc[i]) >> s;
312
24.1M
    if (ener_exc >= FL2FXCONST_DBL(0.5f)) {
313
129k
      ener_exc >>= 1;
314
129k
      s++;
315
129k
    }
316
24.1M
  }
317
318
378k
  ener_exc_e = fNorm(ener_exc);
319
378k
  ener_exc = fMult(ener_exc << ener_exc_e, fPow2(gain_pit));
320
378k
  if (ener_exc != (FIXP_DBL)0) {
321
336k
    ener_exc_e = 2 * SF_EXC + 1 + 2 * SF_GAIN_P - ener_exc_e + s;
322
336k
  } else {
323
41.5k
    ener_exc_e = 0;
324
41.5k
  }
325
326
  /* energy of innovative code excitation */
327
  /* L_tmp = ener_code * gain_code*gain_code; */
328
378k
  L_tmp_e = fNorm(gain_code);
329
378k
  L_tmp = fPow2(gain_code << L_tmp_e);
330
378k
  L_tmp = fMult(ener_code, L_tmp);
331
378k
  L_tmp_e = 2 * SF_GAIN_C + ener_code_e - 2 * L_tmp_e;
332
333
  /* Find common exponent */
334
378k
  {
335
378k
    FIXP_DBL num, den;
336
378k
    int exp_diff;
337
338
378k
    exp_diff = ener_exc_e - L_tmp_e;
339
378k
    if (exp_diff >= 0) {
340
226k
      ener_exc >>= 1;
341
226k
      if (exp_diff <= DFRACT_BITS - 2) {
342
225k
        L_tmp >>= exp_diff + 1;
343
225k
      } else {
344
275
        L_tmp = (FIXP_DBL)0;
345
275
      }
346
226k
      den = ener_exc + L_tmp;
347
226k
      if (ener_exc_e < DFRACT_BITS - 1) {
348
145k
        den += scaleValue(FL2FXCONST_DBL(0.01f), -ener_exc_e - 1);
349
145k
      }
350
226k
    } else {
351
152k
      if (exp_diff >= -(DFRACT_BITS - 2)) {
352
151k
        ener_exc >>= 1 - exp_diff;
353
151k
      } else {
354
577
        ener_exc = (FIXP_DBL)0;
355
577
      }
356
152k
      L_tmp >>= 1;
357
152k
      den = ener_exc + L_tmp;
358
152k
      if (L_tmp_e < DFRACT_BITS - 1) {
359
146k
        den += scaleValue(FL2FXCONST_DBL(0.01f), -L_tmp_e - 1);
360
146k
      }
361
152k
    }
362
378k
    num = (ener_exc - L_tmp);
363
378k
    num >>= SF_PFAC;
364
365
378k
    if (den > (FIXP_DBL)0) {
366
378k
      if (ener_exc > L_tmp) {
367
148k
        period_fac = schur_div(num, den, 16);
368
229k
      } else {
369
229k
        period_fac = -schur_div(-num, den, 16);
370
229k
      }
371
378k
    } else {
372
92
      period_fac = (FIXP_DBL)MAXVAL_DBL;
373
92
    }
374
378k
  }
375
376
  /* exponent = SF_PFAC */
377
378k
  return period_fac;
378
378k
}
379
380
/*------------------------------------------------------------*
381
 * noise enhancer                                             *
382
 * ~~~~~~~~~~~~~~                                             *
383
 * - Enhance excitation on noise. (modify gain of code)       *
384
 *   If signal is noisy and LPC filter is stable, move gain   *
385
 *   of code 1.5 dB toward gain of code threshold.            *
386
 *   This decrease by 3 dB noise energy variation.            *
387
 *------------------------------------------------------------*/
388
/**
389
 * \brief Enhance excitation on noise. (modify gain of code)
390
 * \param[in] gain_code Quantized codebook gain g_c, exponent = SF_GAIN_C.
391
 * \param[in] period_fac periodicity factor, exponent = SF_PFAC.
392
 * \param[in] stab_fac stability factor, exponent = SF_STAB.
393
 * \param[in,out] p_gc_threshold modified gain of previous subframe.
394
 * \return gain_code smoothed gain of code g_sc, exponent = SF_GAIN_C.
395
 */
396
static FIXP_DBL
397
noise_enhancer(/* (o) : smoothed gain g_sc                     SF_GAIN_C */
398
               FIXP_DBL gain_code, /* (i) : Quantized codebook gain SF_GAIN_C */
399
               FIXP_DBL period_fac, /* (i) : periodicity factor (-1=unvoiced to
400
                                       1=voiced), SF_PFAC */
401
               FIXP_SGL stab_fac,   /* (i) : stability factor (0 <= ... < 1.0)
402
                                       SF_STAB   */
403
               FIXP_DBL
404
                   *p_gc_threshold) /* (io): gain of code threshold SF_GAIN_C */
405
378k
{
406
378k
  FIXP_DBL fac, L_tmp, gc_thres;
407
408
378k
  gc_thres = *p_gc_threshold;
409
410
378k
  L_tmp = gain_code;
411
378k
  if (L_tmp < gc_thres) {
412
172k
    L_tmp += fMultDiv2(gain_code,
413
172k
                       FL2FXCONST_SGL(2.0 * 0.19f)); /* +1.5dB => *(1.0+0.19) */
414
172k
    if (L_tmp > gc_thres) {
415
16.5k
      L_tmp = gc_thres;
416
16.5k
    }
417
205k
  } else {
418
205k
    L_tmp = fMult(gain_code,
419
205k
                  FL2FXCONST_SGL(1.0f / 1.19f)); /* -1.5dB => *10^(-1.5/20) */
420
205k
    if (L_tmp < gc_thres) {
421
15.3k
      L_tmp = gc_thres;
422
15.3k
    }
423
205k
  }
424
378k
  *p_gc_threshold = L_tmp;
425
426
  /* voicing factor     lambda = 0.5*(1-period_fac) */
427
  /* gain smoothing factor S_m = lambda*stab_fac  (=fac)
428
                               = 0.5(stab_fac - stab_fac * period_fac) */
429
378k
  fac = (FX_SGL2FX_DBL(stab_fac) >> (SF_PFAC + 1)) -
430
378k
        fMultDiv2(stab_fac, period_fac);
431
  /* fac_e = SF_PFAC + SF_STAB */
432
378k
  FDK_ASSERT(fac >= (FIXP_DBL)0);
433
434
  /* gain_code = (float)((fac*tmp) + ((1.0-fac)*gain_code)); */
435
378k
  gain_code = fMult(fac, L_tmp) -
436
378k
              fMult(FL2FXCONST_DBL(-1.0f / (1 << (SF_PFAC + SF_STAB))) + fac,
437
378k
                    gain_code);
438
378k
  gain_code <<= (SF_PFAC + SF_STAB);
439
440
378k
  return gain_code;
441
378k
}
442
443
/**
444
 * \brief Update adaptive codebook u'(n) (exc)
445
 *        Enhance pitch of c(n) and build post-processed excitation u(n) (exc2)
446
 * \param[in] code innovative codevector c(n), exponent = SF_CODE.
447
 * \param[in,out] exc filtered adaptive codebook v(n), exponent = SF_EXC.
448
 * \param[in] gain_pit adaptive codebook gain, exponent = SF_GAIN_P.
449
 * \param[in] gain_code innovative codebook gain g_c, exponent = SF_GAIN_C.
450
 * \param[in] gain_code_smoothed smoothed innov. codebook gain g_sc, exponent =
451
 * SF_GAIN_C.
452
 * \param[in] period_fac periodicity factor r_v, exponent = SF_PFAC.
453
 * \param[out] exc2 post-processed excitation u(n), exponent = SF_EXC.
454
 */
455
void BuildAdaptiveExcitation(
456
    FIXP_COD code[],    /* (i) : algebraic codevector c(n)             Q9  */
457
    FIXP_DBL exc[],     /* (io): filtered adaptive codebook v(n)       Q15 */
458
    FIXP_SGL gain_pit,  /* (i) : adaptive codebook gain g_p            Q14 */
459
    FIXP_DBL gain_code, /* (i) : innovative codebook gain g_c          Q16 */
460
    FIXP_DBL gain_code_smoothed, /* (i) : smoothed innov. codebook gain g_sc
461
                                    Q16 */
462
    FIXP_DBL period_fac, /* (i) : periodicity factor r_v                Q15 */
463
    FIXP_DBL exc2[]      /* (o) : post-processed excitation u(n)        Q15 */
464
378k
) {
465
/* Note: code[L_SUBFR] and exc2[L_SUBFR] share the same memory!
466
         If exc2[i] is written, code[i] will be destroyed!
467
*/
468
120M
#define SF_HEADROOM (1)
469
48.3M
#define SF (SF_CODE + SF_GAIN_C + 1 - SF_EXC - SF_HEADROOM)
470
24.1M
#define SF_GAIN_P2 (SF_GAIN_P - SF_HEADROOM)
471
472
378k
  int i;
473
378k
  FIXP_DBL tmp, cpe, code_smooth_prev, code_smooth;
474
475
378k
  FIXP_COD code_i;
476
378k
  FIXP_DBL cpe_code_smooth, cpe_code_smooth_prev;
477
478
  /* cpe = (1+r_v)/8 * 2 ; ( SF = -1) */
479
378k
  cpe = (period_fac >> (2 - SF_PFAC)) + FL2FXCONST_DBL(0.25f);
480
481
  /* u'(n) */
482
378k
  tmp = fMultDiv2(*exc, gain_pit) << (SF_GAIN_P2 + 1); /* v(0)*g_p */
483
378k
  *exc++ = (tmp + (fMultDiv2(code[0], gain_code) << SF)) << SF_HEADROOM;
484
485
  /* u(n) */
486
378k
  code_smooth_prev = fMultDiv2(*code++, gain_code_smoothed)
487
378k
                     << SF; /* c(0) * g_sc */
488
378k
  code_i = *code++;
489
378k
  code_smooth = fMultDiv2(code_i, gain_code_smoothed) << SF; /* c(1) * g_sc */
490
378k
  tmp += code_smooth_prev; /* tmp = v(0)*g_p + c(0)*g_sc */
491
378k
  cpe_code_smooth = fMultDiv2(cpe, code_smooth);
492
378k
  *exc2++ = (tmp - cpe_code_smooth) << SF_HEADROOM;
493
378k
  cpe_code_smooth_prev = fMultDiv2(cpe, code_smooth_prev);
494
495
378k
  i = L_SUBFR - 2;
496
378k
  do /* ARM926: 22 cycles per iteration */
497
23.4M
  {
498
    /* u'(n) */
499
23.4M
    tmp = fMultDiv2(*exc, gain_pit) << (SF_GAIN_P2 + 1);
500
23.4M
    *exc++ = (tmp + (fMultDiv2(code_i, gain_code) << SF)) << SF_HEADROOM;
501
    /* u(n) */
502
23.4M
    tmp += code_smooth; /* += g_sc * c(i) */
503
23.4M
    tmp -= cpe_code_smooth_prev;
504
23.4M
    cpe_code_smooth_prev = cpe_code_smooth;
505
23.4M
    code_i = *code++;
506
23.4M
    code_smooth = fMultDiv2(code_i, gain_code_smoothed) << SF;
507
23.4M
    cpe_code_smooth = fMultDiv2(cpe, code_smooth);
508
23.4M
    *exc2++ = (tmp - cpe_code_smooth)
509
23.4M
              << SF_HEADROOM; /* tmp - c_pe * g_sc * c(i+1) */
510
23.4M
  } while (--i != 0);
511
512
  /* u'(n) */
513
378k
  tmp = fMultDiv2(*exc, gain_pit) << (SF_GAIN_P2 + 1);
514
378k
  *exc = (tmp + (fMultDiv2(code_i, gain_code) << SF)) << SF_HEADROOM;
515
  /* u(n) */
516
378k
  tmp += code_smooth;
517
378k
  tmp -= cpe_code_smooth_prev;
518
378k
  *exc2++ = tmp << SF_HEADROOM;
519
520
378k
  return;
521
378k
}
522
523
/**
524
 * \brief Interpolate LPC vector in LSP domain for current subframe and convert
525
 * to LP domain
526
 * \param[in] lsp_old LPC vector (LSP domain) corresponding to the beginning of
527
 * current ACELP frame.
528
 * \param[in] lsp_new LPC vector (LSP domain) corresponding to the end of
529
 * current ACELP frame.
530
 * \param[in] subfr_nr number of current ACELP subframe 0..3.
531
 * \param[in] nb_subfr total number of ACELP subframes in this frame.
532
 * \param[out] A LP filter coefficients for current ACELP subframe, exponent =
533
 * SF_A_COEFFS.
534
 */
535
/* static */
536
void int_lpc_acelp(
537
    const FIXP_LPC lsp_old[], /* input : LSPs from past frame              */
538
    const FIXP_LPC lsp_new[], /* input : LSPs from present frame           */
539
    int subfr_nr, int nb_subfr,
540
    FIXP_LPC
541
        A[], /* output: interpolated LP coefficients for current subframe */
542
384k
    INT *A_exp) {
543
384k
  int i;
544
384k
  FIXP_LPC lsp_interpol[M_LP_FILTER_ORDER];
545
384k
  FIXP_SGL fac_old, fac_new;
546
547
384k
  FDK_ASSERT((nb_subfr == 3) || (nb_subfr == 4));
548
549
384k
  fac_old = lsp_interpol_factor[nb_subfr & 0x1][(nb_subfr - 1) - subfr_nr];
550
384k
  fac_new = lsp_interpol_factor[nb_subfr & 0x1][subfr_nr];
551
6.53M
  for (i = 0; i < M_LP_FILTER_ORDER; i++) {
552
6.14M
    lsp_interpol[i] = FX_DBL2FX_LPC(
553
6.14M
        (fMultDiv2(lsp_old[i], fac_old) + fMultDiv2(lsp_new[i], fac_new)) << 1);
554
6.14M
  }
555
556
384k
  E_LPC_f_lsp_a_conversion(lsp_interpol, A, A_exp);
557
558
384k
  return;
559
384k
}
560
561
/**
562
 * \brief Perform LP synthesis by filtering the post-processed excitation u(n)
563
 *        through the LP synthesis filter 1/A(z)
564
 * \param[in] a LP filter coefficients, exponent = SF_A_COEFFS.
565
 * \param[in] length length of input/output signal.
566
 * \param[in] x post-processed excitation u(n).
567
 * \param[in,out] y LP synthesis signal and filter memory
568
 * y[-M_LP_FILTER_ORDER..-1].
569
 */
570
571
/* static */
572
void Syn_filt(const FIXP_LPC a[], /* (i) : a[m] prediction coefficients Q12 */
573
              const INT a_exp,
574
              INT length,   /* (i) : length of input/output signal (64|128)   */
575
              FIXP_DBL x[], /* (i) : input signal Qx  */
576
              FIXP_DBL y[]  /* (i/o) : filter states / output signal  Qx-s*/
577
434k
) {
578
434k
  int i, j;
579
434k
  FIXP_DBL L_tmp;
580
581
29.5M
  for (i = 0; i < length; i++) {
582
29.1M
    L_tmp = (FIXP_DBL)0;
583
584
494M
    for (j = 0; j < M_LP_FILTER_ORDER; j++) {
585
465M
      L_tmp -= fMultDiv2(a[j], y[i - (j + 1)]) >> (LP_FILTER_SCALE - 1);
586
465M
    }
587
588
29.1M
    L_tmp = scaleValue(L_tmp, a_exp + LP_FILTER_SCALE);
589
29.1M
    y[i] = fAddSaturate(L_tmp, x[i]);
590
29.1M
  }
591
592
434k
  return;
593
434k
}
594
595
/**
596
 * \brief Calculate de-emphasis 1/(1 - mu z^-1) on input signal.
597
 * \param[in] x input signal.
598
 * \param[out] y output signal.
599
 * \param[in] L length of signal.
600
 * \param[in,out] mem memory (signal[-1]).
601
 */
602
/* static */
603
158k
void Deemph(FIXP_DBL *x, FIXP_DBL *y, int L, FIXP_DBL *mem) {
604
158k
  int i;
605
158k
  FIXP_DBL yi = *mem;
606
607
28.8M
  for (i = 0; i < L; i++) {
608
28.7M
    FIXP_DBL xi = x[i] >> 1;
609
28.7M
    xi = fMultAddDiv2(xi, PREEMPH_FAC, yi);
610
28.7M
    yi = SATURATE_LEFT_SHIFT(xi, 1, 32);
611
28.7M
    y[i] = yi;
612
28.7M
  }
613
158k
  *mem = yi;
614
158k
  return;
615
158k
}
616
617
/**
618
 * \brief Compute the LP residual by filtering the input speech through the
619
 * analysis filter A(z).
620
 * \param[in] a LP filter coefficients, exponent = SF_A_COEFFS
621
 * \param[in] x input signal (note that values x[-m..-1] are needed), exponent =
622
 * SF_SYNTH
623
 * \param[out] y output signal (residual), exponent = SF_EXC
624
 * \param[in] l length of filtering
625
 */
626
/* static */
627
void E_UTIL_residu(const FIXP_LPC *a, const INT a_exp, FIXP_DBL *x, FIXP_DBL *y,
628
97.0k
                   INT l) {
629
97.0k
  FIXP_DBL s;
630
97.0k
  INT i, j;
631
632
  /* (note that values x[-m..-1] are needed) */
633
20.0M
  for (i = 0; i < l; i++) {
634
19.9M
    s = (FIXP_DBL)0;
635
636
338M
    for (j = 0; j < M_LP_FILTER_ORDER; j++) {
637
318M
      s += fMultDiv2(a[j], x[i - j - 1]) >> (LP_FILTER_SCALE - 1);
638
318M
    }
639
640
19.9M
    s = scaleValue(s, a_exp + LP_FILTER_SCALE);
641
19.9M
    y[i] = fAddSaturate(s, x[i]);
642
19.9M
  }
643
644
97.0k
  return;
645
97.0k
}
646
647
/* use to map subfr number to number of bits used for acb_index */
648
static const UCHAR num_acb_idx_bits_table[2][NB_SUBFR] = {
649
    {9, 6, 9, 6}, /* coreCoderFrameLength == 1024 */
650
    {9, 6, 6, 0}  /* coreCoderFrameLength == 768  */
651
};
652
653
static int DecodePitchLag(HANDLE_FDK_BITSTREAM hBs,
654
                          const UCHAR num_acb_idx_bits,
655
                          const int PIT_MIN, /* TMIN */
656
                          const int PIT_FR2, /* TFR2 */
657
                          const int PIT_FR1, /* TFR1 */
658
                          const int PIT_MAX, /* TMAX */
659
378k
                          int *pT0, int *pT0_frac, int *pT0_min, int *pT0_max) {
660
378k
  int acb_idx;
661
378k
  int error = 0;
662
378k
  int T0, T0_frac;
663
664
378k
  FDK_ASSERT((num_acb_idx_bits == 9) || (num_acb_idx_bits == 6));
665
666
378k
  acb_idx = FDKreadBits(hBs, num_acb_idx_bits);
667
668
378k
  if (num_acb_idx_bits == 6) {
669
    /* When the pitch value is encoded on 6 bits, a pitch resolution of 1/4 is
670
       always used in the range [T1-8, T1+7.75], where T1 is nearest integer to
671
       the fractional pitch lag of the previous subframe.
672
    */
673
216k
    T0 = *pT0_min + acb_idx / 4;
674
216k
    T0_frac = acb_idx & 0x3;
675
216k
  } else { /* num_acb_idx_bits == 9 */
676
    /* When the pitch value is encoded on 9 bits, a fractional pitch delay is
677
       used with resolutions 0.25 in the range [TMIN, TFR2-0.25], resolutions
678
       0.5 in the range [TFR2, TFR1-0.5], and integers only in the range [TFR1,
679
       TMAX]. NOTE: for small sampling rates TMAX can get smaller than TFR1.
680
    */
681
162k
    int T0_min, T0_max;
682
683
162k
    if (acb_idx < (PIT_FR2 - PIT_MIN) * 4) {
684
      /* first interval with 0.25 pitch resolution */
685
97.3k
      T0 = PIT_MIN + (acb_idx / 4);
686
97.3k
      T0_frac = acb_idx & 0x3;
687
97.3k
    } else if (acb_idx < ((PIT_FR2 - PIT_MIN) * 4 + (PIT_FR1 - PIT_FR2) * 2)) {
688
      /* second interval with 0.5 pitch resolution */
689
21.9k
      acb_idx -= (PIT_FR2 - PIT_MIN) * 4;
690
21.9k
      T0 = PIT_FR2 + (acb_idx / 2);
691
21.9k
      T0_frac = (acb_idx & 0x1) * 2;
692
43.3k
    } else {
693
      /* third interval with 1.0 pitch resolution */
694
43.3k
      T0 = acb_idx + PIT_FR1 - ((PIT_FR2 - PIT_MIN) * 4) -
695
43.3k
           ((PIT_FR1 - PIT_FR2) * 2);
696
43.3k
      T0_frac = 0;
697
43.3k
    }
698
    /* find T0_min and T0_max for subframe 1 or 3 */
699
162k
    T0_min = T0 - 8;
700
162k
    if (T0_min < PIT_MIN) {
701
56.0k
      T0_min = PIT_MIN;
702
56.0k
    }
703
162k
    T0_max = T0_min + 15;
704
162k
    if (T0_max > PIT_MAX) {
705
5.48k
      T0_max = PIT_MAX;
706
5.48k
      T0_min = T0_max - 15;
707
5.48k
    }
708
162k
    *pT0_min = T0_min;
709
162k
    *pT0_max = T0_max;
710
162k
  }
711
378k
  *pT0 = T0;
712
378k
  *pT0_frac = T0_frac;
713
714
378k
  return error;
715
378k
}
716
static void ConcealPitchLag(CAcelpStaticMem *acelp_mem, const int PIT_MAX,
717
7.49k
                            int *pT0, int *pT0_frac) {
718
7.49k
  USHORT *pold_T0 = &acelp_mem->old_T0;
719
7.49k
  UCHAR *pold_T0_frac = &acelp_mem->old_T0_frac;
720
721
7.49k
  if ((int)*pold_T0 >= PIT_MAX) {
722
21
    *pold_T0 = (USHORT)(PIT_MAX - 5);
723
21
  }
724
7.49k
  *pT0 = (int)*pold_T0;
725
7.49k
  *pT0_frac = (int)*pold_T0_frac;
726
7.49k
}
727
728
static UCHAR tab_coremode2nbits[8] = {20, 28, 36, 44, 52, 64, 12, 16};
729
730
478k
static int MapCoreMode2NBits(int core_mode) {
731
478k
  return (int)tab_coremode2nbits[core_mode];
732
478k
}
733
734
void CLpd_AcelpDecode(CAcelpStaticMem *acelp_mem, INT i_offset,
735
                      const FIXP_LPC lsp_old[M_LP_FILTER_ORDER],
736
                      const FIXP_LPC lsp_new[M_LP_FILTER_ORDER],
737
                      FIXP_SGL stab_fac, CAcelpChannelData *pAcelpData,
738
                      INT numLostSubframes, int lastLpcLost, int frameCnt,
739
                      FIXP_DBL synth[], int pT[], FIXP_DBL *pit_gain,
740
108k
                      INT coreCoderFrameLength) {
741
108k
  int i_subfr, subfr_nr, l_div, T;
742
108k
  int T0 = -1, T0_frac = -1; /* mark invalid */
743
744
108k
  int pit_gain_index = 0;
745
746
108k
  const int PIT_MAX = PIT_MAX_12k8 + (6 * i_offset); /* maximum pitch lag */
747
748
108k
  FIXP_COD *code;
749
108k
  FIXP_DBL *exc2;
750
108k
  FIXP_DBL *syn;
751
108k
  FIXP_DBL *exc;
752
108k
  FIXP_LPC A[M_LP_FILTER_ORDER];
753
108k
  INT A_exp;
754
755
108k
  FIXP_DBL period_fac;
756
108k
  FIXP_SGL gain_pit;
757
108k
  FIXP_DBL gain_code, gain_code_smooth, Ener_code;
758
108k
  int Ener_code_e;
759
108k
  int n;
760
108k
  int bfi = (numLostSubframes > 0) ? 1 : 0;
761
762
108k
  C_ALLOC_SCRATCH_START(
763
108k
      exc_buf, FIXP_DBL,
764
108k
      PIT_MAX_MAX + L_INTERPOL + L_DIV + 1); /* 411 + 17 + 256 + 1 = 685 */
765
108k
  C_ALLOC_SCRATCH_START(syn_buf, FIXP_DBL,
766
108k
                        M_LP_FILTER_ORDER + L_DIV); /* 16 + 256 = 272 */
767
  /* use same memory for code[L_SUBFR] and exc2[L_SUBFR] */
768
108k
  C_ALLOC_SCRATCH_START(tmp_buf, FIXP_DBL, L_SUBFR); /* 64 */
769
  /* make sure they don't overlap if they are accessed alternatingly in
770
   * BuildAdaptiveExcitation() */
771
108k
#if (COD_BITS == FRACT_BITS)
772
108k
  code = (FIXP_COD *)(tmp_buf + L_SUBFR / 2);
773
#elif (COD_BITS == DFRACT_BITS)
774
  code = (FIXP_COD *)tmp_buf;
775
#endif
776
108k
  exc2 = (FIXP_DBL *)tmp_buf;
777
778
108k
  syn = syn_buf + M_LP_FILTER_ORDER;
779
108k
  exc = exc_buf + PIT_MAX_MAX + L_INTERPOL;
780
781
108k
  FDKmemcpy(syn_buf, acelp_mem->old_syn_mem,
782
108k
            M_LP_FILTER_ORDER * sizeof(FIXP_DBL));
783
108k
  FDKmemcpy(exc_buf, acelp_mem->old_exc_mem,
784
108k
            (PIT_MAX_MAX + L_INTERPOL) * sizeof(FIXP_DBL));
785
786
108k
  FDKmemclear(exc_buf + (PIT_MAX_MAX + L_INTERPOL),
787
108k
              (L_DIV + 1) * sizeof(FIXP_DBL));
788
789
108k
  l_div = coreCoderFrameLength / NB_DIV;
790
791
486k
  for (i_subfr = 0, subfr_nr = 0; i_subfr < l_div;
792
378k
       i_subfr += L_SUBFR, subfr_nr++) {
793
    /*-------------------------------------------------*
794
     * - Decode pitch lag (T0 and T0_frac)             *
795
     *-------------------------------------------------*/
796
378k
    if (bfi) {
797
7.49k
      ConcealPitchLag(acelp_mem, PIT_MAX, &T0, &T0_frac);
798
370k
    } else {
799
370k
      T0 = (int)pAcelpData->T0[subfr_nr];
800
370k
      T0_frac = (int)pAcelpData->T0_frac[subfr_nr];
801
370k
    }
802
803
    /*-------------------------------------------------*
804
     * - Find the pitch gain, the interpolation filter *
805
     *   and the adaptive codebook vector.             *
806
     *-------------------------------------------------*/
807
378k
    Pred_lt4(&exc[i_subfr], T0, T0_frac);
808
809
378k
    if ((!bfi && pAcelpData->ltp_filtering_flag[subfr_nr] == 0) ||
810
245k
        (bfi && numLostSubframes == 1 && stab_fac < FL2FXCONST_SGL(0.25f))) {
811
      /* find pitch excitation with lp filter: v'(n) => v(n) */
812
245k
      Pred_lt4_postfilter(&exc[i_subfr]);
813
245k
    }
814
815
    /*-------------------------------------------------------*
816
     * - Decode innovative codebook.                         *
817
     * - Add the fixed-gain pitch contribution to code[].    *
818
     *-------------------------------------------------------*/
819
378k
    if (bfi) {
820
486k
      for (n = 0; n < L_SUBFR; n++) {
821
479k
        code[n] =
822
479k
            FX_SGL2FX_COD((FIXP_SGL)E_UTIL_random(&acelp_mem->seed_ace)) >> 4;
823
479k
      }
824
370k
    } else {
825
370k
      int nbits = MapCoreMode2NBits((int)pAcelpData->acelp_core_mode);
826
370k
      D_ACELP_decode_4t64(pAcelpData->icb_index[subfr_nr], nbits, &code[0]);
827
370k
    }
828
829
378k
    T = T0;
830
378k
    if (T0_frac > 2) {
831
52.3k
      T += 1;
832
52.3k
    }
833
834
378k
    Preemph_code(code);
835
378k
    Pit_shrp(code, T);
836
837
    /* Output pitch lag for bass post-filter */
838
378k
    if (T > PIT_MAX) {
839
3.02k
      pT[subfr_nr] = PIT_MAX;
840
375k
    } else {
841
375k
      pT[subfr_nr] = T;
842
375k
    }
843
378k
    D_gain2_plus(
844
378k
        pAcelpData->gains[subfr_nr],
845
378k
        code,       /* (i)  : Innovative code vector, exponent = SF_CODE */
846
378k
        &gain_pit,  /* (o)  : Quantized pitch gain, exponent = SF_GAIN_P */
847
378k
        &gain_code, /* (o)  : Quantized codebook gain                    */
848
378k
        pAcelpData
849
378k
            ->mean_energy, /* (i)  : mean_ener defined in open-loop (2 bits) */
850
378k
        bfi, &acelp_mem->past_gpit, &acelp_mem->past_gcode,
851
378k
        &Ener_code,    /* (o)  : Innovative code vector energy              */
852
378k
        &Ener_code_e); /* (o)  : Innovative code vector energy exponent     */
853
854
378k
    pit_gain[pit_gain_index++] = FX_SGL2FX_DBL(gain_pit);
855
856
    /* calc periodicity factor r_v */
857
378k
    period_fac =
858
378k
        calc_period_factor(/* (o) : factor (-1=unvoiced to 1=voiced)    */
859
378k
                           &exc[i_subfr], /* (i) : pitch excitation, exponent =
860
                                             SF_EXC */
861
378k
                           gain_pit,      /* (i) : gain of pitch, exponent =
862
                                             SF_GAIN_P */
863
378k
                           gain_code,     /* (i) : gain of code     */
864
378k
                           Ener_code,     /* (i) : Energy of code[]     */
865
378k
                           Ener_code_e);  /* (i) : Exponent of energy of code[]
866
                                           */
867
868
378k
    if (lastLpcLost && frameCnt == 0) {
869
493
      if (gain_pit > FL2FXCONST_SGL(1.0f / (1 << SF_GAIN_P))) {
870
13
        gain_pit = FL2FXCONST_SGL(1.0f / (1 << SF_GAIN_P));
871
13
      }
872
493
    }
873
874
378k
    gain_code_smooth =
875
378k
        noise_enhancer(/* (o) : smoothed gain g_sc exponent = SF_GAIN_C */
876
378k
                       gain_code,  /* (i) : Quantized codebook gain  */
877
378k
                       period_fac, /* (i) : periodicity factor (-1=unvoiced to
878
                                      1=voiced)  */
879
378k
                       stab_fac,   /* (i) : stability factor (0 <= ... < 1),
880
                                      exponent = 1 */
881
378k
                       &acelp_mem->gc_threshold);
882
883
    /* Compute adaptive codebook update u'(n), pitch enhancement c'(n) and
884
     * post-processed excitation u(n). */
885
378k
    BuildAdaptiveExcitation(code, exc + i_subfr, gain_pit, gain_code,
886
378k
                            gain_code_smooth, period_fac, exc2);
887
888
    /* Interpolate filter coeffs for current subframe in lsp domain and convert
889
     * to LP domain */
890
378k
    int_lpc_acelp(lsp_old,  /* input : LSPs from past frame              */
891
378k
                  lsp_new,  /* input : LSPs from present frame           */
892
378k
                  subfr_nr, /* input : ACELP subframe index              */
893
378k
                  coreCoderFrameLength / L_DIV,
894
378k
                  A, /* output: LP coefficients of this subframe  */
895
378k
                  &A_exp);
896
897
378k
    Syn_filt(A, /* (i) : a[m] prediction coefficients               */
898
378k
             A_exp, L_SUBFR, /* (i) : length */
899
378k
             exc2, /* (i) : input signal                               */
900
378k
             &syn[i_subfr] /* (i/o) : filter states / output signal */
901
378k
    );
902
903
378k
  } /* end of subframe loop */
904
905
  /* update pitch value for bfi procedure */
906
108k
  acelp_mem->old_T0_frac = T0_frac;
907
108k
  acelp_mem->old_T0 = T0;
908
909
  /* save old excitation and old synthesis memory for next ACELP frame */
910
108k
  FDKmemcpy(acelp_mem->old_exc_mem, exc + l_div - (PIT_MAX_MAX + L_INTERPOL),
911
108k
            sizeof(FIXP_DBL) * (PIT_MAX_MAX + L_INTERPOL));
912
108k
  FDKmemcpy(acelp_mem->old_syn_mem, syn_buf + l_div,
913
108k
            sizeof(FIXP_DBL) * M_LP_FILTER_ORDER);
914
915
108k
  Deemph(syn, synth, l_div,
916
108k
         &acelp_mem->de_emph_mem); /* ref soft: mem = synth[-1] */
917
918
108k
  scaleValues(synth, l_div, -ACELP_OUTSCALE);
919
108k
  acelp_mem->deemph_mem_wsyn = acelp_mem->de_emph_mem;
920
921
108k
  C_ALLOC_SCRATCH_END(tmp_buf, FIXP_DBL, L_SUBFR);
922
108k
  C_ALLOC_SCRATCH_END(syn_buf, FIXP_DBL, M_LP_FILTER_ORDER + L_DIV);
923
108k
  C_ALLOC_SCRATCH_END(exc_buf, FIXP_DBL, PIT_MAX_MAX + L_INTERPOL + L_DIV + 1);
924
108k
  return;
925
108k
}
926
927
33.0k
void CLpd_AcelpReset(CAcelpStaticMem *acelp) {
928
33.0k
  acelp->gc_threshold = (FIXP_DBL)0;
929
930
33.0k
  acelp->past_gpit = (FIXP_SGL)0;
931
33.0k
  acelp->past_gcode = (FIXP_DBL)0;
932
33.0k
  acelp->old_T0 = 64;
933
33.0k
  acelp->old_T0_frac = 0;
934
33.0k
  acelp->deemph_mem_wsyn = (FIXP_DBL)0;
935
33.0k
  acelp->wsyn_rms = (FIXP_DBL)0;
936
33.0k
  acelp->seed_ace = 0;
937
33.0k
}
938
939
/* TCX time domain concealment */
940
/*   Compare to figure 13a on page 54 in 3GPP TS 26.290 */
941
void CLpd_TcxTDConceal(CAcelpStaticMem *acelp_mem, SHORT *pitch,
942
                       const FIXP_LPC lsp_old[M_LP_FILTER_ORDER],
943
                       const FIXP_LPC lsp_new[M_LP_FILTER_ORDER],
944
                       const FIXP_SGL stab_fac, INT nLostSf, FIXP_DBL synth[],
945
1.74k
                       INT coreCoderFrameLength, UCHAR last_tcx_noise_factor) {
946
  /* repeat past excitation with pitch from previous decoded TCX frame */
947
1.74k
  C_ALLOC_SCRATCH_START(
948
1.74k
      exc_buf, FIXP_DBL,
949
1.74k
      PIT_MAX_MAX + L_INTERPOL + L_DIV); /* 411 +  17 + 256 + 1 =  */
950
1.74k
  C_ALLOC_SCRATCH_START(syn_buf, FIXP_DBL,
951
1.74k
                        M_LP_FILTER_ORDER + L_DIV); /* 256 +  16           =  */
952
                                                    /*                    +=  */
953
1.74k
  FIXP_DBL ns_buf[L_DIV + 1];
954
1.74k
  FIXP_DBL *syn = syn_buf + M_LP_FILTER_ORDER;
955
1.74k
  FIXP_DBL *exc = exc_buf + PIT_MAX_MAX + L_INTERPOL;
956
1.74k
  FIXP_DBL *ns = ns_buf + 1;
957
1.74k
  FIXP_DBL tmp, fact_exc;
958
1.74k
  INT T = fMin(*pitch, (SHORT)PIT_MAX_MAX);
959
1.74k
  int i, i_subfr, subfr_nr;
960
1.74k
  int lDiv = coreCoderFrameLength / NB_DIV;
961
962
1.74k
  FDKmemcpy(syn_buf, acelp_mem->old_syn_mem,
963
1.74k
            M_LP_FILTER_ORDER * sizeof(FIXP_DBL));
964
1.74k
  FDKmemcpy(exc_buf, acelp_mem->old_exc_mem,
965
1.74k
            (PIT_MAX_MAX + L_INTERPOL) * sizeof(FIXP_DBL));
966
967
  /* if we lost all packets (i.e. 1 packet of TCX-20 ms, 2 packets of
968
     the TCX-40 ms or 4 packets of the TCX-80ms), we lost the whole
969
     coded frame extrapolation strategy: repeat lost excitation and
970
     use extrapolated LSFs */
971
972
  /* AMR-WB+ like TCX TD concealment */
973
974
  /* number of lost frame cmpt */
975
1.74k
  if (nLostSf < 2) {
976
347
    fact_exc = FL2FXCONST_DBL(0.8f);
977
1.39k
  } else {
978
1.39k
    fact_exc = FL2FXCONST_DBL(0.4f);
979
1.39k
  }
980
981
  /* repeat past excitation */
982
395k
  for (i = 0; i < lDiv; i++) {
983
394k
    exc[i] = fMult(fact_exc, exc[i - T]);
984
394k
  }
985
986
1.74k
  tmp = fMult(fact_exc, acelp_mem->wsyn_rms);
987
1.74k
  acelp_mem->wsyn_rms = tmp;
988
989
  /* init deemph_mem_wsyn */
990
1.74k
  acelp_mem->deemph_mem_wsyn = exc[-1];
991
992
1.74k
  ns[-1] = acelp_mem->deemph_mem_wsyn;
993
994
7.90k
  for (i_subfr = 0, subfr_nr = 0; i_subfr < lDiv;
995
6.16k
       i_subfr += L_SUBFR, subfr_nr++) {
996
6.16k
    FIXP_DBL tRes[L_SUBFR];
997
6.16k
    FIXP_LPC A[M_LP_FILTER_ORDER];
998
6.16k
    INT A_exp;
999
1000
    /* interpolate LPC coefficients */
1001
6.16k
    int_lpc_acelp(lsp_old, lsp_new, subfr_nr, lDiv / L_SUBFR, A, &A_exp);
1002
1003
6.16k
    Syn_filt(A,              /* (i) : a[m] prediction coefficients         */
1004
6.16k
             A_exp, L_SUBFR, /* (i) : length                               */
1005
6.16k
             &exc[i_subfr],  /* (i) : input signal                         */
1006
6.16k
             &syn[i_subfr]   /* (i/o) : filter states / output signal      */
1007
6.16k
    );
1008
1009
6.16k
    E_LPC_a_weight(
1010
6.16k
        A, A,
1011
6.16k
        M_LP_FILTER_ORDER); /* overwrite A as it is not needed any longer */
1012
1013
6.16k
    E_UTIL_residu(A, A_exp, &syn[i_subfr], tRes, L_SUBFR);
1014
1015
6.16k
    Deemph(tRes, &ns[i_subfr], L_SUBFR, &acelp_mem->deemph_mem_wsyn);
1016
1017
    /* Amplitude limiter (saturate at wsyn_rms) */
1018
400k
    for (i = i_subfr; i < i_subfr + L_SUBFR; i++) {
1019
394k
      if (ns[i] > tmp) {
1020
115k
        ns[i] = tmp;
1021
279k
      } else {
1022
279k
        if (ns[i] < -tmp) {
1023
114k
          ns[i] = -tmp;
1024
114k
        }
1025
279k
      }
1026
394k
    }
1027
1028
6.16k
    E_UTIL_preemph(&ns[i_subfr], tRes, L_SUBFR);
1029
1030
6.16k
    Syn_filt(A,              /* (i) : a[m] prediction coefficients         */
1031
6.16k
             A_exp, L_SUBFR, /* (i) : length                               */
1032
6.16k
             tRes,           /* (i) : input signal                         */
1033
6.16k
             &syn[i_subfr]   /* (i/o) : filter states / output signal      */
1034
6.16k
    );
1035
1036
6.16k
    FDKmemmove(&synth[i_subfr], &syn[i_subfr], L_SUBFR * sizeof(FIXP_DBL));
1037
6.16k
  }
1038
1039
  /* save old excitation and old synthesis memory for next ACELP frame */
1040
1.74k
  FDKmemcpy(acelp_mem->old_exc_mem, exc + lDiv - (PIT_MAX_MAX + L_INTERPOL),
1041
1.74k
            sizeof(FIXP_DBL) * (PIT_MAX_MAX + L_INTERPOL));
1042
1.74k
  FDKmemcpy(acelp_mem->old_syn_mem, syn_buf + lDiv,
1043
1.74k
            sizeof(FIXP_DBL) * M_LP_FILTER_ORDER);
1044
1.74k
  acelp_mem->de_emph_mem = acelp_mem->deemph_mem_wsyn;
1045
1046
1.74k
  C_ALLOC_SCRATCH_END(syn_buf, FIXP_DBL, M_LP_FILTER_ORDER + L_DIV);
1047
1.74k
  C_ALLOC_SCRATCH_END(exc_buf, FIXP_DBL, PIT_MAX_MAX + L_INTERPOL + L_DIV);
1048
1.74k
}
1049
1050
void Acelp_PreProcessing(FIXP_DBL *synth_buf, FIXP_DBL *old_synth, INT *pitch,
1051
                         INT *old_T_pf, FIXP_DBL *pit_gain,
1052
                         FIXP_DBL *old_gain_pf, INT samplingRate, INT *i_offset,
1053
                         INT coreCoderFrameLength, INT synSfd,
1054
47.5k
                         INT nbSubfrSuperfr) {
1055
47.5k
  int n;
1056
1057
  /* init beginning of synth_buf with old synthesis from previous frame */
1058
47.5k
  FDKmemcpy(synth_buf, old_synth, sizeof(FIXP_DBL) * (PIT_MAX_MAX - BPF_DELAY));
1059
1060
  /* calculate pitch lag offset for ACELP decoder */
1061
47.5k
  *i_offset =
1062
47.5k
      (samplingRate * PIT_MIN_12k8 + (FSCALE_DENOM / 2)) / FSCALE_DENOM -
1063
47.5k
      PIT_MIN_12k8;
1064
1065
  /* for bass postfilter */
1066
330k
  for (n = 0; n < synSfd; n++) {
1067
283k
    pitch[n] = old_T_pf[n];
1068
283k
    pit_gain[n] = old_gain_pf[n];
1069
283k
  }
1070
708k
  for (n = 0; n < nbSubfrSuperfr; n++) {
1071
661k
    pitch[n + synSfd] = L_SUBFR;
1072
661k
    pit_gain[n + synSfd] = (FIXP_DBL)0;
1073
661k
  }
1074
47.5k
}
1075
1076
void Acelp_PostProcessing(FIXP_DBL *synth_buf, FIXP_DBL *old_synth, INT *pitch,
1077
                          INT *old_T_pf, INT coreCoderFrameLength, INT synSfd,
1078
47.5k
                          INT nbSubfrSuperfr) {
1079
47.5k
  int n;
1080
1081
  /* store last part of synth_buf (which is not handled by the IMDCT overlap)
1082
   * for next frame */
1083
47.5k
  FDKmemcpy(old_synth, synth_buf + coreCoderFrameLength,
1084
47.5k
            sizeof(FIXP_DBL) * (PIT_MAX_MAX - BPF_DELAY));
1085
1086
  /* for bass postfilter */
1087
330k
  for (n = 0; n < synSfd; n++) {
1088
283k
    old_T_pf[n] = pitch[nbSubfrSuperfr + n];
1089
283k
  }
1090
47.5k
}
1091
1092
44.0k
#define L_FAC_ZIR (LFAC)
1093
1094
void CLpd_Acelp_Zir(const FIXP_LPC A[], const INT A_exp,
1095
                    CAcelpStaticMem *acelp_mem, const INT length,
1096
44.0k
                    FIXP_DBL zir[], int doDeemph) {
1097
44.0k
  C_ALLOC_SCRATCH_START(tmp_buf, FIXP_DBL, L_FAC_ZIR + M_LP_FILTER_ORDER);
1098
44.0k
  FDK_ASSERT(length <= L_FAC_ZIR);
1099
1100
44.0k
  FDKmemcpy(tmp_buf, acelp_mem->old_syn_mem,
1101
44.0k
            M_LP_FILTER_ORDER * sizeof(FIXP_DBL));
1102
44.0k
  FDKmemset(tmp_buf + M_LP_FILTER_ORDER, 0, L_FAC_ZIR * sizeof(FIXP_DBL));
1103
1104
44.0k
  Syn_filt(A, A_exp, length, &tmp_buf[M_LP_FILTER_ORDER],
1105
44.0k
           &tmp_buf[M_LP_FILTER_ORDER]);
1106
44.0k
  if (!doDeemph) {
1107
    /* if last lpd mode was TD concealment, then bypass deemph */
1108
6
    FDKmemcpy(zir, tmp_buf, length * sizeof(*zir));
1109
44.0k
  } else {
1110
44.0k
    Deemph(&tmp_buf[M_LP_FILTER_ORDER], &zir[0], length,
1111
44.0k
           &acelp_mem->de_emph_mem);
1112
44.0k
    scaleValues(zir, length, -ACELP_OUTSCALE);
1113
44.0k
  }
1114
44.0k
  C_ALLOC_SCRATCH_END(tmp_buf, FIXP_DBL, L_FAC_ZIR + M_LP_FILTER_ORDER);
1115
44.0k
}
1116
1117
void CLpd_AcelpPrepareInternalMem(const FIXP_DBL *synth, UCHAR last_lpd_mode,
1118
                                  UCHAR last_last_lpd_mode,
1119
                                  const FIXP_LPC *A_new, const INT A_new_exp,
1120
                                  const FIXP_LPC *A_old, const INT A_old_exp,
1121
                                  CAcelpStaticMem *acelp_mem,
1122
                                  INT coreCoderFrameLength, INT clearOldExc,
1123
51.0k
                                  UCHAR lpd_mode) {
1124
51.0k
  int l_div =
1125
51.0k
      coreCoderFrameLength / NB_DIV; /* length of one ACELP/TCX20 frame */
1126
51.0k
  int l_div_partial;
1127
51.0k
  FIXP_DBL *syn, *old_exc_mem;
1128
1129
51.0k
  C_ALLOC_SCRATCH_START(synth_buf, FIXP_DBL,
1130
51.0k
                        PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER);
1131
51.0k
  syn = &synth_buf[M_LP_FILTER_ORDER];
1132
1133
51.0k
  l_div_partial = PIT_MAX_MAX + L_INTERPOL - l_div;
1134
51.0k
  old_exc_mem = acelp_mem->old_exc_mem;
1135
1136
51.0k
  if (lpd_mode == 4) {
1137
    /* Bypass Domain conversion. TCXTD Concealment does no deemphasis in the
1138
     * end. */
1139
347
    FDKmemcpy(
1140
347
        synth_buf, &synth[-(PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER)],
1141
347
        (PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER) * sizeof(FIXP_DBL));
1142
    /* Set deemphasis memory state for TD concealment */
1143
347
    acelp_mem->deemph_mem_wsyn = scaleValueSaturate(synth[-1], ACELP_OUTSCALE);
1144
50.6k
  } else {
1145
    /* convert past [PIT_MAX_MAX+L_INTERPOL+M_LP_FILTER_ORDER] synthesis to
1146
     * preemph domain */
1147
50.6k
    E_UTIL_preemph(&synth[-(PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER)],
1148
50.6k
                   synth_buf, PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER);
1149
50.6k
    scaleValuesSaturate(synth_buf, PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER,
1150
50.6k
                        ACELP_OUTSCALE);
1151
50.6k
  }
1152
1153
  /* Set deemphasis memory state */
1154
51.0k
  acelp_mem->de_emph_mem = scaleValueSaturate(synth[-1], ACELP_OUTSCALE);
1155
1156
  /* update acelp synth filter memory */
1157
51.0k
  FDKmemcpy(acelp_mem->old_syn_mem,
1158
51.0k
            &syn[PIT_MAX_MAX + L_INTERPOL - M_LP_FILTER_ORDER],
1159
51.0k
            M_LP_FILTER_ORDER * sizeof(FIXP_DBL));
1160
1161
51.0k
  if (clearOldExc) {
1162
1
    FDKmemclear(old_exc_mem, (PIT_MAX_MAX + L_INTERPOL) * sizeof(FIXP_DBL));
1163
1
    C_ALLOC_SCRATCH_END(synth_buf, FIXP_DBL,
1164
1
                        PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER);
1165
1
    return;
1166
1
  }
1167
1168
  /* update past [PIT_MAX_MAX+L_INTERPOL] samples of exc memory */
1169
51.0k
  if (last_lpd_mode == 1) {        /* last frame was TCX20 */
1170
24.7k
    if (last_last_lpd_mode == 0) { /* ACELP -> TCX20 -> ACELP transition */
1171
      /* Delay valid part of excitation buffer (from previous ACELP frame) by
1172
       * l_div samples */
1173
11.1k
      FDKmemmove(old_exc_mem, old_exc_mem + l_div,
1174
11.1k
                 sizeof(FIXP_DBL) * l_div_partial);
1175
13.6k
    } else if (last_last_lpd_mode > 0) { /* TCX -> TCX20 -> ACELP transition */
1176
13.6k
      E_UTIL_residu(A_old, A_old_exp, syn, old_exc_mem, l_div_partial);
1177
13.6k
    }
1178
24.7k
    E_UTIL_residu(A_new, A_new_exp, syn + l_div_partial,
1179
24.7k
                  old_exc_mem + l_div_partial, l_div);
1180
26.2k
  } else { /* prev frame was FD, TCX40 or TCX80 */
1181
26.2k
    int exc_A_new_length = (coreCoderFrameLength / 2 > PIT_MAX_MAX + L_INTERPOL)
1182
26.2k
                               ? PIT_MAX_MAX + L_INTERPOL
1183
26.2k
                               : coreCoderFrameLength / 2;
1184
26.2k
    int exc_A_old_length = PIT_MAX_MAX + L_INTERPOL - exc_A_new_length;
1185
26.2k
    E_UTIL_residu(A_old, A_old_exp, syn, old_exc_mem, exc_A_old_length);
1186
26.2k
    E_UTIL_residu(A_new, A_new_exp, &syn[exc_A_old_length],
1187
26.2k
                  &old_exc_mem[exc_A_old_length], exc_A_new_length);
1188
26.2k
  }
1189
51.0k
  C_ALLOC_SCRATCH_END(synth_buf, FIXP_DBL,
1190
51.0k
                      PIT_MAX_MAX + L_INTERPOL + M_LP_FILTER_ORDER);
1191
1192
51.0k
  return;
1193
51.0k
}
1194
1195
44.0k
FIXP_DBL *CLpd_ACELP_GetFreeExcMem(CAcelpStaticMem *acelp_mem, INT length) {
1196
44.0k
  FDK_ASSERT(length <= PIT_MAX_MAX + L_INTERPOL);
1197
44.0k
  return acelp_mem->old_exc_mem;
1198
44.0k
}
1199
1200
INT CLpd_AcelpRead(HANDLE_FDK_BITSTREAM hBs, CAcelpChannelData *acelp,
1201
                   INT acelp_core_mode, INT coreCoderFrameLength,
1202
108k
                   INT i_offset) {
1203
108k
  int nb_subfr = coreCoderFrameLength / L_DIV;
1204
108k
  const UCHAR *num_acb_index_bits =
1205
108k
      (nb_subfr == 4) ? num_acb_idx_bits_table[0] : num_acb_idx_bits_table[1];
1206
108k
  int nbits;
1207
108k
  int error = 0;
1208
1209
108k
  const int PIT_MIN = PIT_MIN_12k8 + i_offset;
1210
108k
  const int PIT_FR2 = PIT_FR2_12k8 - i_offset;
1211
108k
  const int PIT_FR1 = PIT_FR1_12k8;
1212
108k
  const int PIT_MAX = PIT_MAX_12k8 + (6 * i_offset);
1213
108k
  int T0, T0_frac, T0_min = 0, T0_max;
1214
1215
108k
  if (PIT_MAX > PIT_MAX_MAX) {
1216
0
    error = AAC_DEC_DECODE_FRAME_ERROR;
1217
0
    goto bail;
1218
0
  }
1219
1220
108k
  acelp->acelp_core_mode = acelp_core_mode;
1221
1222
108k
  nbits = MapCoreMode2NBits(acelp_core_mode);
1223
1224
  /* decode mean energy with 2 bits : 18, 30, 42 or 54 dB */
1225
108k
  acelp->mean_energy = FDKreadBits(hBs, 2);
1226
1227
487k
  for (int sfr = 0; sfr < nb_subfr; sfr++) {
1228
    /* read ACB index and store T0 and T0_frac for each ACELP subframe. */
1229
378k
    error = DecodePitchLag(hBs, num_acb_index_bits[sfr], PIT_MIN, PIT_FR2,
1230
378k
                           PIT_FR1, PIT_MAX, &T0, &T0_frac, &T0_min, &T0_max);
1231
378k
    if (error) {
1232
0
      goto bail;
1233
0
    }
1234
378k
    acelp->T0[sfr] = (USHORT)T0;
1235
378k
    acelp->T0_frac[sfr] = (UCHAR)T0_frac;
1236
378k
    acelp->ltp_filtering_flag[sfr] = FDKreadBits(hBs, 1);
1237
378k
    switch (nbits) {
1238
43.8k
      case 12: /* 12 bits AMR-WB codebook is used */
1239
43.8k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 1);
1240
43.8k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 5);
1241
43.8k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 1);
1242
43.8k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 5);
1243
43.8k
        break;
1244
89.8k
      case 16: /* 16 bits AMR-WB codebook is used */
1245
89.8k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 1);
1246
89.8k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 5);
1247
89.8k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 5);
1248
89.8k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 5);
1249
89.8k
        break;
1250
151k
      case 20: /* 20 bits AMR-WB codebook is used */
1251
151k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 5);
1252
151k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 5);
1253
151k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 5);
1254
151k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 5);
1255
151k
        break;
1256
16.1k
      case 28: /* 28 bits AMR-WB codebook is used */
1257
16.1k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 9);
1258
16.1k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 9);
1259
16.1k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 5);
1260
16.1k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 5);
1261
16.1k
        break;
1262
25.8k
      case 36: /* 36 bits AMR-WB codebook is used */
1263
25.8k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 9);
1264
25.8k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 9);
1265
25.8k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 9);
1266
25.8k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 9);
1267
25.8k
        break;
1268
11.7k
      case 44: /* 44 bits AMR-WB codebook is used */
1269
11.7k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 13);
1270
11.7k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 13);
1271
11.7k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 9);
1272
11.7k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 9);
1273
11.7k
        break;
1274
9.28k
      case 52: /* 52 bits AMR-WB codebook is used */
1275
9.28k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 13);
1276
9.28k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 13);
1277
9.28k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 13);
1278
9.28k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 13);
1279
9.28k
        break;
1280
30.8k
      case 64: /* 64 bits AMR-WB codebook is used */
1281
30.8k
        acelp->icb_index[sfr][0] = FDKreadBits(hBs, 2);
1282
30.8k
        acelp->icb_index[sfr][1] = FDKreadBits(hBs, 2);
1283
30.8k
        acelp->icb_index[sfr][2] = FDKreadBits(hBs, 2);
1284
30.8k
        acelp->icb_index[sfr][3] = FDKreadBits(hBs, 2);
1285
30.8k
        acelp->icb_index[sfr][4] = FDKreadBits(hBs, 14);
1286
30.8k
        acelp->icb_index[sfr][5] = FDKreadBits(hBs, 14);
1287
30.8k
        acelp->icb_index[sfr][6] = FDKreadBits(hBs, 14);
1288
30.8k
        acelp->icb_index[sfr][7] = FDKreadBits(hBs, 14);
1289
30.8k
        break;
1290
0
      default:
1291
0
        FDK_ASSERT(0);
1292
0
        break;
1293
378k
    }
1294
378k
    acelp->gains[sfr] = FDKreadBits(hBs, 7);
1295
378k
  }
1296
1297
108k
bail:
1298
108k
  return error;
1299
108k
}