Coverage Report

Created: 2026-08-13 06:43

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/src/aac/libAACdec/src/usacdec_fac.cpp
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Source
1
/* -----------------------------------------------------------------------------
2
Software License for The Fraunhofer FDK AAC Codec Library for Android
3
4
© Copyright  1995 - 2019 Fraunhofer-Gesellschaft zur Förderung der angewandten
5
Forschung e.V. All rights reserved.
6
7
 1.    INTRODUCTION
8
The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
10
scheme for digital audio. This FDK AAC Codec software is intended to be used on
11
a wide variety of Android devices.
12
13
AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient
14
general perceptual audio codecs. AAC-ELD is considered the best-performing
15
full-bandwidth communications codec by independent studies and is widely
16
deployed. AAC has been standardized by ISO and IEC as part of the MPEG
17
specifications.
18
19
Patent licenses for necessary patent claims for the FDK AAC Codec (including
20
those of Fraunhofer) may be obtained through Via Licensing
21
(www.vialicensing.com) or through the respective patent owners individually for
22
the purpose of encoding or decoding bit streams in products that are compliant
23
with the ISO/IEC MPEG audio standards. Please note that most manufacturers of
24
Android devices already license these patent claims through Via Licensing or
25
directly from the patent owners, and therefore FDK AAC Codec software may
26
already be covered under those patent licenses when it is used for those
27
licensed purposes only.
28
29
Commercially-licensed AAC software libraries, including floating-point versions
30
with enhanced sound quality, are also available from Fraunhofer. Users are
31
encouraged to check the Fraunhofer website for additional applications
32
information and documentation.
33
34
2.    COPYRIGHT LICENSE
35
36
Redistribution and use in source and binary forms, with or without modification,
37
are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
39
40
You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
42
43
You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
45
your modifications thereto in binary form. You must make available free of
46
charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
48
49
The name of Fraunhofer may not be used to endorse or promote products derived
50
from this library without prior written permission.
51
52
You may not charge copyright license fees for anyone to use, copy or distribute
53
the FDK AAC Codec software or your modifications thereto.
54
55
Your modified versions of the FDK AAC Codec must carry prominent notices stating
56
that you changed the software and the date of any change. For modified versions
57
of the FDK AAC Codec, the term "Fraunhofer FDK AAC Codec Library for Android"
58
must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
59
AAC Codec Library for Android."
60
61
3.    NO PATENT LICENSE
62
63
NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
64
limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
65
Fraunhofer provides no warranty of patent non-infringement with respect to this
66
software.
67
68
You may use this FDK AAC Codec software or modifications thereto only for
69
purposes that are authorized by appropriate patent licenses.
70
71
4.    DISCLAIMER
72
73
This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
75
including but not limited to the implied warranties of merchantability and
76
fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
77
CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
78
or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
80
however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
82
this software, even if advised of the possibility of such damage.
83
84
5.    CONTACT INFORMATION
85
86
Fraunhofer Institute for Integrated Circuits IIS
87
Attention: Audio and Multimedia Departments - FDK AAC LL
88
Am Wolfsmantel 33
89
91058 Erlangen, Germany
90
91
www.iis.fraunhofer.de/amm
92
amm-info@iis.fraunhofer.de
93
----------------------------------------------------------------------------- */
94
95
/**************************** AAC decoder library ******************************
96
97
   Author(s):   Manuel Jander
98
99
   Description: USAC FAC
100
101
*******************************************************************************/
102
103
#include "usacdec_fac.h"
104
105
#include "usacdec_const.h"
106
#include "usacdec_lpc.h"
107
#include "usacdec_acelp.h"
108
#include "usacdec_rom.h"
109
#include "dct.h"
110
#include "FDK_tools_rom.h"
111
#include "mdct.h"
112
113
60.8k
#define SPEC_FAC(ptr, i, gl) ((ptr) + ((i) * (gl)))
114
115
FIXP_DBL *CLpd_FAC_GetMemory(CAacDecoderChannelInfo *pAacDecoderChannelInfo,
116
62.2k
                             UCHAR mod[NB_DIV], int *pState) {
117
62.2k
  FIXP_DBL *ptr;
118
62.2k
  int i;
119
62.2k
  int k = 0;
120
62.2k
  int max_windows = 8;
121
122
62.2k
  FDK_ASSERT(*pState >= 0 && *pState < max_windows);
123
124
  /* Look for free space to store FAC data. 2 FAC data blocks fit into each TCX
125
   * spectral data block. */
126
170k
  for (i = *pState; i < max_windows; i++) {
127
169k
    if (mod[i >> 1] == 0) {
128
60.8k
      break;
129
60.8k
    }
130
169k
  }
131
132
62.2k
  *pState = i + 1;
133
134
62.2k
  if (i == max_windows) {
135
1.39k
    ptr = pAacDecoderChannelInfo->data.usac.fac_data0;
136
60.8k
  } else {
137
60.8k
    FDK_ASSERT(mod[(i >> 1)] == 0);
138
60.8k
    ptr = SPEC_FAC(pAacDecoderChannelInfo->pSpectralCoefficient, i,
139
60.8k
                   pAacDecoderChannelInfo->granuleLength << k);
140
60.8k
  }
141
142
62.2k
  return ptr;
143
62.2k
}
144
145
int CLpd_FAC_Read(HANDLE_FDK_BITSTREAM hBs, FIXP_DBL *pFac, SCHAR *pFacScale,
146
99.8k
                  int length, int use_gain, int frame) {
147
99.8k
  FIXP_DBL fac_gain;
148
99.8k
  int fac_gain_e = 0;
149
150
99.8k
  if (use_gain) {
151
41.6k
    CLpd_DecodeGain(&fac_gain, &fac_gain_e, FDKreadBits(hBs, 7));
152
41.6k
  }
153
154
99.8k
  if (CLpc_DecodeAVQ(hBs, pFac, 1, 1, length) != 0) {
155
268
    return -1;
156
268
  }
157
158
99.6k
  {
159
99.6k
    int scale;
160
161
99.6k
    scale = getScalefactor(pFac, length);
162
99.6k
    scaleValues(pFac, length, scale);
163
99.6k
    pFacScale[frame] = DFRACT_BITS - 1 - scale;
164
99.6k
  }
165
166
99.6k
  if (use_gain) {
167
41.3k
    int i;
168
169
41.3k
    pFacScale[frame] += fac_gain_e;
170
171
3.10M
    for (i = 0; i < length; i++) {
172
3.06M
      pFac[i] = fMult(pFac[i], fac_gain);
173
3.06M
    }
174
41.3k
  }
175
99.6k
  return 0;
176
99.8k
}
177
178
/**
179
 * \brief Apply synthesis filter with zero input to x. The overall filter gain
180
 * is 1.0.
181
 * \param a LPC filter coefficients.
182
 * \param length length of the input/output data vector x.
183
 * \param x input/output vector, where the synthesis filter is applied in place.
184
 */
185
static void Syn_filt_zero(const FIXP_LPC a[], const INT a_exp, INT length,
186
82.5k
                          FIXP_DBL x[]) {
187
82.5k
  int i, j;
188
82.5k
  FIXP_DBL L_tmp;
189
190
16.8M
  for (i = 0; i < length; i++) {
191
16.7M
    L_tmp = (FIXP_DBL)0;
192
193
273M
    for (j = 0; j < fMin(i, M_LP_FILTER_ORDER); j++) {
194
256M
      L_tmp -= fMultDiv2(a[j], x[i - (j + 1)]) >> (LP_FILTER_SCALE - 1);
195
256M
    }
196
197
16.7M
    L_tmp = scaleValue(L_tmp, a_exp + LP_FILTER_SCALE);
198
16.7M
    x[i] = fAddSaturate(x[i], L_tmp);
199
16.7M
  }
200
82.5k
}
201
202
/* Table is also correct for coreCoderFrameLength = 768. Factor 3/4 is canceled
203
   out: gainFac = 0.5 * sqrt(fac_length/lFrame)
204
*/
205
static const FIXP_DBL gainFac[4] = {0x40000000, 0x2d413ccd, 0x20000000,
206
                                    0x16a09e66};
207
208
void CFac_ApplyGains(FIXP_DBL fac_data[LFAC], const INT fac_length,
209
                     const FIXP_DBL tcx_gain, const FIXP_DBL alfd_gains[],
210
54.2k
                     const INT mod) {
211
54.2k
  FIXP_DBL facFactor;
212
54.2k
  int i;
213
214
54.2k
  FDK_ASSERT((fac_length == 128) || (fac_length == 96));
215
216
  /* 2) Apply gain factor to FAC data */
217
54.2k
  facFactor = fMult(gainFac[mod], tcx_gain);
218
6.13M
  for (i = 0; i < fac_length; i++) {
219
6.07M
    fac_data[i] = fMult(fac_data[i], facFactor);
220
6.07M
  }
221
222
  /* 3) Apply spectrum deshaping using alfd_gains */
223
1.57M
  for (i = 0; i < fac_length / 4; i++) {
224
1.51M
    int k;
225
226
1.51M
    k = i >> (3 - mod);
227
1.51M
    fac_data[i] = fMult(fac_data[i], alfd_gains[k])
228
1.51M
                  << 1; /* alfd_gains is scaled by one bit. */
229
1.51M
  }
230
54.2k
}
231
232
static void CFac_CalcFacSignal(FIXP_DBL *pOut, FIXP_DBL *pFac,
233
                               const int fac_scale, const int fac_length,
234
                               const FIXP_LPC A[M_LP_FILTER_ORDER],
235
                               const INT A_exp, const int fAddZir,
236
82.5k
                               const int isFdFac) {
237
82.5k
  FIXP_LPC wA[M_LP_FILTER_ORDER];
238
82.5k
  FIXP_DBL tf_gain = (FIXP_DBL)0;
239
82.5k
  int wlength;
240
82.5k
  int scale = fac_scale;
241
242
  /* obtain tranform gain. */
243
82.5k
  imdct_gain(&tf_gain, &scale, isFdFac ? 0 : fac_length);
244
245
  /* 4) Compute inverse DCT-IV of FAC data. Output scale of DCT IV is 16 bits.
246
   */
247
82.5k
  dct_IV(pFac, fac_length, &scale);
248
  /* dct_IV scale = log2(fac_length). "- 7" is a factor of 2/128 */
249
82.5k
  if (tf_gain != (FIXP_DBL)0) { /* non-radix 2 transform gain */
250
33.5k
    int i;
251
252
3.25M
    for (i = 0; i < fac_length; i++) {
253
3.21M
      pFac[i] = fMult(tf_gain, pFac[i]);
254
3.21M
    }
255
33.5k
  }
256
82.5k
  scaleValuesSaturate(pOut, pFac, fac_length,
257
82.5k
                      scale); /* Avoid overflow issues and saturate. */
258
259
82.5k
  E_LPC_a_weight(wA, A, M_LP_FILTER_ORDER);
260
261
  /* We need the output of the IIR filter to be longer than "fac_length".
262
  For this reason we run it with zero input appended to the end of the input
263
  sequence, i.e. we generate its ZIR and extend the output signal.*/
264
82.5k
  FDKmemclear(pOut + fac_length, fac_length * sizeof(FIXP_DBL));
265
82.5k
  wlength = 2 * fac_length;
266
267
  /* 5) Apply weighted synthesis filter to FAC data, including optional Zir (5.
268
   * item 4). */
269
82.5k
  Syn_filt_zero(wA, A_exp, wlength, pOut);
270
82.5k
}
271
272
INT CLpd_FAC_Mdct2Acelp(H_MDCT hMdct, FIXP_DBL *output, FIXP_DBL *pFac,
273
                        const int fac_scale, FIXP_LPC *A, INT A_exp,
274
                        INT nrOutSamples, const INT fac_length,
275
53.3k
                        const INT isFdFac, UCHAR prevWindowShape) {
276
53.3k
  FIXP_DBL *pOvl;
277
53.3k
  FIXP_DBL *pOut0;
278
53.3k
  const FIXP_WTP *pWindow;
279
53.3k
  int i, fl, nrSamples = 0;
280
281
53.3k
  FDK_ASSERT(fac_length <= 1024 / (4 * 2));
282
283
53.3k
  fl = fac_length * 2;
284
285
53.3k
  pWindow = FDKgetWindowSlope(fl, prevWindowShape);
286
287
  /* Adapt window slope length in case of frame loss. */
288
53.3k
  if (hMdct->prev_fr != fl) {
289
13.4k
    int nl = 0;
290
13.4k
    imdct_adapt_parameters(hMdct, &fl, &nl, fac_length, pWindow, nrOutSamples);
291
13.4k
    FDK_ASSERT(nl == 0);
292
13.4k
  }
293
294
53.3k
  if (nrSamples < nrOutSamples) {
295
36.0k
    pOut0 = output;
296
36.0k
    nrSamples += hMdct->ov_offset;
297
    /* Purge buffered output. */
298
36.0k
    FDKmemcpy(pOut0, hMdct->overlap.time, hMdct->ov_offset * sizeof(pOut0[0]));
299
36.0k
    hMdct->ov_offset = 0;
300
36.0k
  }
301
302
53.3k
  pOvl = hMdct->overlap.freq + hMdct->ov_size - 1;
303
304
53.3k
  if (nrSamples >= nrOutSamples) {
305
17.3k
    pOut0 = hMdct->overlap.time + hMdct->ov_offset;
306
17.3k
    hMdct->ov_offset += hMdct->prev_nr + fl / 2;
307
36.0k
  } else {
308
36.0k
    pOut0 = output + nrSamples;
309
36.0k
    nrSamples += hMdct->prev_nr + fl / 2;
310
36.0k
  }
311
53.3k
  if (hMdct->prevPrevAliasSymmetry == 0) {
312
5.53M
    for (i = 0; i < hMdct->prev_nr; i++) {
313
5.47M
      FIXP_DBL x = -(*pOvl--);
314
5.47M
      *pOut0 = IMDCT_SCALE_DBL(x);
315
5.47M
      pOut0++;
316
5.47M
    }
317
53.3k
  } else {
318
0
    for (i = 0; i < hMdct->prev_nr; i++) {
319
0
      FIXP_DBL x = (*pOvl--);
320
0
      *pOut0 = IMDCT_SCALE_DBL(x);
321
0
      pOut0++;
322
0
    }
323
0
  }
324
53.3k
  hMdct->prev_nr = 0;
325
326
53.3k
  {
327
53.3k
    if (pFac != NULL) {
328
      /* Note: The FAC gain might have been applied directly after bit stream
329
       * parse in this case. */
330
36.2k
      CFac_CalcFacSignal(pOut0, pFac, fac_scale, fac_length, A, A_exp, 0,
331
36.2k
                         isFdFac);
332
36.2k
    } else {
333
      /* Clear buffer because of the overlap and ADD! */
334
17.1k
      FDKmemclear(pOut0, fac_length * sizeof(FIXP_DBL));
335
17.1k
    }
336
53.3k
  }
337
338
53.3k
  i = 0;
339
340
53.3k
  if (hMdct->prevPrevAliasSymmetry == 0) {
341
5.58M
    for (; i < fl / 2; i++) {
342
5.53M
      FIXP_DBL x0;
343
344
      /* Overlap Add */
345
5.53M
      x0 = -fMult(*pOvl--, pWindow[i].v.re);
346
347
5.53M
      *pOut0 = fAddSaturate(*pOut0, IMDCT_SCALE_DBL(x0));
348
5.53M
      pOut0++;
349
5.53M
    }
350
53.3k
  } else {
351
0
    for (; i < fl / 2; i++) {
352
0
      FIXP_DBL x0;
353
354
      /* Overlap Add */
355
0
      x0 = fMult(*pOvl--, pWindow[i].v.re);
356
357
0
      *pOut0 = fAddSaturate(*pOut0, IMDCT_SCALE_DBL(x0));
358
0
      pOut0++;
359
0
    }
360
0
  }
361
53.3k
  if (hMdct->pFacZir !=
362
53.3k
      0) { /* this should only happen for ACELP -> TCX20 -> ACELP transition */
363
12.6k
    FIXP_DBL *pOut = pOut0 - fl / 2; /* fl/2 == fac_length */
364
1.41M
    for (i = 0; i < fl / 2; i++) {
365
1.40M
      pOut[i] = fAddSaturate(pOut[i], IMDCT_SCALE_DBL(hMdct->pFacZir[i]));
366
1.40M
    }
367
12.6k
    hMdct->pFacZir = NULL;
368
12.6k
  }
369
370
53.3k
  hMdct->prev_fr = 0;
371
53.3k
  hMdct->prev_nr = 0;
372
53.3k
  hMdct->prev_tl = 0;
373
53.3k
  hMdct->prevPrevAliasSymmetry = hMdct->prevAliasSymmetry;
374
375
53.3k
  return nrSamples;
376
53.3k
}
377
378
INT CLpd_FAC_Acelp2Mdct(H_MDCT hMdct, FIXP_DBL *output, FIXP_DBL *_pSpec,
379
                        const SHORT spec_scale[], const int nSpec,
380
                        FIXP_DBL *pFac, const int fac_scale,
381
                        const INT fac_length, INT noOutSamples, const INT tl,
382
                        const FIXP_WTP *wrs, const INT fr, FIXP_LPC A[16],
383
                        INT A_exp, CAcelpStaticMem *acelp_mem,
384
                        const FIXP_DBL gain, const int last_frame_lost,
385
                        const int isFdFac, const UCHAR last_lpd_mode,
386
46.3k
                        const int k, int currAliasingSymmetry) {
387
46.3k
  FIXP_DBL *pCurr, *pOvl, *pSpec;
388
46.3k
  const FIXP_WTP *pWindow;
389
46.3k
  const FIXP_WTB *FacWindowZir_conceal;
390
46.3k
  UCHAR doFacZirConceal = 0;
391
46.3k
  int doDeemph = 1;
392
46.3k
  const FIXP_WTB *FacWindowZir, *FacWindowSynth;
393
46.3k
  FIXP_DBL *pOut0 = output, *pOut1;
394
46.3k
  int w, i, fl, nl, nr, f_len, nrSamples = 0, s = 0, scale, total_gain_e;
395
46.3k
  FIXP_DBL *pF, *pFAC_and_FAC_ZIR = NULL;
396
46.3k
  FIXP_DBL total_gain = gain;
397
398
46.3k
  FDK_ASSERT(fac_length <= 1024 / (4 * 2));
399
46.3k
  switch (fac_length) {
400
    /* coreCoderFrameLength = 1024 */
401
15.9k
    case 128:
402
15.9k
      pWindow = SineWindow256;
403
15.9k
      FacWindowZir = FacWindowZir128;
404
15.9k
      FacWindowSynth = FacWindowSynth128;
405
15.9k
      break;
406
5.63k
    case 64:
407
5.63k
      pWindow = SineWindow128;
408
5.63k
      FacWindowZir = FacWindowZir64;
409
5.63k
      FacWindowSynth = FacWindowSynth64;
410
5.63k
      break;
411
0
    case 32:
412
0
      pWindow = SineWindow64;
413
0
      FacWindowZir = FacWindowZir32;
414
0
      FacWindowSynth = FacWindowSynth32;
415
0
      break;
416
    /* coreCoderFrameLength = 768 */
417
17.4k
    case 96:
418
17.4k
      pWindow = SineWindow192;
419
17.4k
      FacWindowZir = FacWindowZir96;
420
17.4k
      FacWindowSynth = FacWindowSynth96;
421
17.4k
      break;
422
7.33k
    case 48:
423
7.33k
      pWindow = SineWindow96;
424
7.33k
      FacWindowZir = FacWindowZir48;
425
7.33k
      FacWindowSynth = FacWindowSynth48;
426
7.33k
      break;
427
0
    default:
428
0
      FDK_ASSERT(0);
429
0
      return 0;
430
46.3k
  }
431
432
46.3k
  FacWindowZir_conceal = FacWindowSynth;
433
  /* Derive NR and NL */
434
46.3k
  fl = fac_length * 2;
435
46.3k
  nl = (tl - fl) >> 1;
436
46.3k
  nr = (tl - fr) >> 1;
437
438
46.3k
  if (noOutSamples > nrSamples) {
439
    /* Purge buffered output. */
440
29.5k
    FDKmemcpy(pOut0, hMdct->overlap.time, hMdct->ov_offset * sizeof(pOut0[0]));
441
29.5k
    nrSamples = hMdct->ov_offset;
442
29.5k
    hMdct->ov_offset = 0;
443
29.5k
  }
444
445
46.3k
  if (nrSamples >= noOutSamples) {
446
16.8k
    pOut1 = hMdct->overlap.time + hMdct->ov_offset;
447
16.8k
    if (hMdct->ov_offset < fac_length) {
448
10.1k
      pOut0 = output + nrSamples;
449
10.1k
    } else {
450
6.70k
      pOut0 = pOut1;
451
6.70k
    }
452
16.8k
    hMdct->ov_offset += fac_length + nl;
453
29.5k
  } else {
454
29.5k
    pOut1 = output + nrSamples;
455
29.5k
    pOut0 = output + nrSamples;
456
29.5k
  }
457
458
46.3k
  {
459
46.3k
    pFAC_and_FAC_ZIR = CLpd_ACELP_GetFreeExcMem(acelp_mem, 2 * fac_length);
460
46.3k
    {
461
46.3k
      const FIXP_DBL *pTmp1, *pTmp2;
462
463
46.3k
      doFacZirConceal |= ((last_frame_lost != 0) && (k == 0));
464
46.3k
      doDeemph &= (last_lpd_mode != 4);
465
46.3k
      if (doFacZirConceal) {
466
        /* ACELP contribution in concealment case:
467
           Use ZIR with a modified ZIR window to preserve some more energy.
468
           Dont use FAC, which contains wrong information for concealed frame
469
           Dont use last ACELP samples, but double ZIR, instead (afterwards) */
470
6
        FDKmemclear(pFAC_and_FAC_ZIR, 2 * fac_length * sizeof(FIXP_DBL));
471
6
        FacWindowSynth = (FIXP_WTB *)pFAC_and_FAC_ZIR;
472
6
        FacWindowZir = FacWindowZir_conceal;
473
46.3k
      } else {
474
46.3k
        CFac_CalcFacSignal(pFAC_and_FAC_ZIR, pFac, fac_scale + s, fac_length, A,
475
46.3k
                           A_exp, 1, isFdFac);
476
46.3k
      }
477
      /* 6) Get windowed past ACELP samples and ACELP ZIR signal */
478
479
      /*
480
       * Get ACELP ZIR (pFac[]) and ACELP past samples (pOut0[]) and add them
481
       * to the FAC synth signal contribution on pOut1[].
482
       */
483
46.3k
      {
484
46.3k
        {
485
46.3k
          CLpd_Acelp_Zir(A, A_exp, acelp_mem, fac_length, pFac, doDeemph);
486
487
46.3k
          pTmp1 = pOut0;
488
46.3k
          pTmp2 = pFac;
489
46.3k
        }
490
491
4.47M
        for (i = 0, w = 0; i < fac_length; i++) {
492
4.42M
          FIXP_DBL x;
493
          /* Div2 is compensated by table scaling */
494
4.42M
          x = fMultDiv2(pTmp2[i], FacWindowZir[w]);
495
4.42M
          x += fMultDiv2(pTmp1[-i - 1], FacWindowSynth[w]);
496
4.42M
          pOut1[i] = fAddSaturate(x, pFAC_and_FAC_ZIR[i]);
497
4.42M
          w++;
498
4.42M
        }
499
46.3k
      }
500
501
46.3k
      if (doFacZirConceal) {
502
        /* ZIR is the only ACELP contribution, so double it */
503
6
        scaleValues(pOut1, fac_length, 1);
504
6
      }
505
46.3k
    }
506
46.3k
  }
507
508
46.3k
  if (nrSamples < noOutSamples) {
509
29.5k
    nrSamples += fac_length + nl;
510
29.5k
  }
511
512
  /* Obtain transform gain */
513
46.3k
  total_gain = gain;
514
46.3k
  total_gain_e = 0;
515
46.3k
  imdct_gain(&total_gain, &total_gain_e, tl);
516
517
  /* IMDCT overlap add */
518
46.3k
  scale = total_gain_e;
519
46.3k
  pSpec = _pSpec;
520
521
  /* Note:when comming from an LPD frame (TCX/ACELP) the previous alisaing
522
   * symmetry must always be 0 */
523
46.3k
  if (currAliasingSymmetry == 0) {
524
46.3k
    dct_IV(pSpec, tl, &scale);
525
46.3k
  } else {
526
0
    FIXP_DBL _tmp[1024 + ALIGNMENT_DEFAULT / sizeof(FIXP_DBL)];
527
0
    FIXP_DBL *tmp = (FIXP_DBL *)ALIGN_PTR(_tmp);
528
0
    C_ALLOC_ALIGNED_REGISTER(tmp, sizeof(_tmp));
529
0
    dst_III(pSpec, tmp, tl, &scale);
530
0
    C_ALLOC_ALIGNED_UNREGISTER(tmp);
531
0
  }
532
533
  /* Optional scaling of time domain - no yet windowed - of current spectrum */
534
46.3k
  if (total_gain != (FIXP_DBL)0) {
535
10.0M
    for (i = 0; i < tl; i++) {
536
10.0M
      pSpec[i] = fMult(pSpec[i], total_gain);
537
10.0M
    }
538
37.8k
  }
539
46.3k
  int loc_scale = fixmin_I(spec_scale[0] + scale, (INT)DFRACT_BITS - 1);
540
46.3k
  scaleValuesSaturate(pSpec, tl, loc_scale);
541
542
46.3k
  pOut1 += fl / 2 - 1;
543
46.3k
  pCurr = pSpec + tl - fl / 2;
544
545
4.47M
  for (i = 0; i < fl / 2; i++) {
546
4.42M
    FIXP_DBL x1;
547
548
    /* FAC signal is already on pOut1, because of that the += operator. */
549
4.42M
    x1 = fMult(*pCurr++, pWindow[i].v.re);
550
4.42M
    FDK_ASSERT((pOut1 >= hMdct->overlap.time &&
551
4.42M
                pOut1 < hMdct->overlap.time + hMdct->ov_size) ||
552
4.42M
               (pOut1 >= output && pOut1 < output + 1024));
553
4.42M
    *pOut1 = fAddSaturate(*pOut1, IMDCT_SCALE_DBL(-x1));
554
4.42M
    pOut1--;
555
4.42M
  }
556
557
  /* NL output samples TL/2+FL/2..TL. - current[FL/2..0] */
558
46.3k
  pOut1 += (fl / 2) + 1;
559
560
46.3k
  pFAC_and_FAC_ZIR += fac_length; /* set pointer to beginning of FAC ZIR */
561
562
46.3k
  if (nl == 0) {
563
    /* save pointer to write FAC ZIR data later */
564
32.6k
    hMdct->pFacZir = pFAC_and_FAC_ZIR;
565
32.6k
  } else {
566
13.6k
    FDK_ASSERT(nl >= fac_length);
567
    /* FAC ZIR will be added now ... */
568
13.6k
    hMdct->pFacZir = NULL;
569
13.6k
  }
570
571
46.3k
  pF = pFAC_and_FAC_ZIR;
572
46.3k
  f_len = fac_length;
573
574
46.3k
  pCurr = pSpec + tl - fl / 2 - 1;
575
2.45M
  for (i = 0; i < nl; i++) {
576
2.41M
    FIXP_DBL x = -(*pCurr--);
577
    /* 5) (item 4) Synthesis filter Zir component, FAC ZIR (another one). */
578
2.41M
    if (i < f_len) {
579
1.45M
      x = fAddSaturate(x, *pF++);
580
1.45M
    }
581
582
2.41M
    FDK_ASSERT((pOut1 >= hMdct->overlap.time &&
583
2.41M
                pOut1 < hMdct->overlap.time + hMdct->ov_size) ||
584
2.41M
               (pOut1 >= output && pOut1 < output + 1024));
585
2.41M
    *pOut1 = IMDCT_SCALE_DBL(x);
586
2.41M
    pOut1++;
587
2.41M
  }
588
589
46.3k
  hMdct->prev_nr = nr;
590
46.3k
  hMdct->prev_fr = fr;
591
46.3k
  hMdct->prev_wrs = wrs;
592
46.3k
  hMdct->prev_tl = tl;
593
46.3k
  hMdct->prevPrevAliasSymmetry = hMdct->prevAliasSymmetry;
594
46.3k
  hMdct->prevAliasSymmetry = currAliasingSymmetry;
595
46.3k
  fl = fr;
596
46.3k
  nl = nr;
597
598
46.3k
  pOvl = pSpec + tl / 2 - 1;
599
46.3k
  pOut0 = pOut1;
600
601
137k
  for (w = 1; w < nSpec; w++) /* for ACELP -> FD short */
602
90.7k
  {
603
90.7k
    const FIXP_WTP *pWindow_prev;
604
605
    /* Setup window pointers */
606
90.7k
    pWindow_prev = hMdct->prev_wrs;
607
608
    /* Current spectrum */
609
90.7k
    pSpec = _pSpec + w * tl;
610
611
90.7k
    scale = total_gain_e;
612
613
    /* For the second, third, etc. short frames the alisaing symmetry is equal,
614
     * either (0,0) or (1,1) */
615
90.7k
    if (currAliasingSymmetry == 0) {
616
      /* DCT IV of current spectrum */
617
90.7k
      dct_IV(pSpec, tl, &scale);
618
90.7k
    } else {
619
0
      dst_IV(pSpec, tl, &scale);
620
0
    }
621
622
    /* Optional scaling of time domain - no yet windowed - of current spectrum
623
     */
624
    /* and de-scale current spectrum signal (time domain, no yet windowed) */
625
90.7k
    if (total_gain != (FIXP_DBL)0) {
626
4.97M
      for (i = 0; i < tl; i++) {
627
4.92M
        pSpec[i] = fMult(pSpec[i], total_gain);
628
4.92M
      }
629
51.3k
    }
630
90.7k
    loc_scale = fixmin_I(spec_scale[w] + scale, (INT)DFRACT_BITS - 1);
631
90.7k
    scaleValuesSaturate(pSpec, tl, loc_scale);
632
633
90.7k
    if (noOutSamples <= nrSamples) {
634
      /* Divert output first half to overlap buffer if we already got enough
635
       * output samples. */
636
38.8k
      pOut0 = hMdct->overlap.time + hMdct->ov_offset;
637
38.8k
      hMdct->ov_offset += hMdct->prev_nr + fl / 2;
638
51.8k
    } else {
639
      /* Account output samples */
640
51.8k
      nrSamples += hMdct->prev_nr + fl / 2;
641
51.8k
    }
642
643
    /* NR output samples 0 .. NR. -overlap[TL/2..TL/2-NR] */
644
90.7k
    for (i = 0; i < hMdct->prev_nr; i++) {
645
0
      FIXP_DBL x = -(*pOvl--);
646
0
      *pOut0 = IMDCT_SCALE_DBL(x);
647
0
      pOut0++;
648
0
    }
649
650
90.7k
    if (noOutSamples <= nrSamples) {
651
      /* Divert output second half to overlap buffer if we already got enough
652
       * output samples. */
653
51.8k
      pOut1 = hMdct->overlap.time + hMdct->ov_offset + fl / 2 - 1;
654
51.8k
      hMdct->ov_offset += fl / 2 + nl;
655
51.8k
    } else {
656
38.8k
      pOut1 = pOut0 + (fl - 1);
657
38.8k
      nrSamples += fl / 2 + nl;
658
38.8k
    }
659
660
    /* output samples before window crossing point NR .. TL/2.
661
     * -overlap[TL/2-NR..TL/2-NR-FL/2] + current[NR..TL/2] */
662
    /* output samples after window crossing point TL/2 .. TL/2+FL/2.
663
     * -overlap[0..FL/2] - current[TL/2..FL/2] */
664
90.7k
    pCurr = pSpec + tl - fl / 2;
665
90.7k
    if (currAliasingSymmetry == 0) {
666
5.07M
      for (i = 0; i < fl / 2; i++) {
667
4.98M
        FIXP_DBL x0, x1;
668
669
4.98M
        cplxMultDiv2(&x1, &x0, *pCurr++, -*pOvl--, pWindow_prev[i]);
670
4.98M
        *pOut0 = IMDCT_SCALE_DBL_LSH1(x0);
671
4.98M
        *pOut1 = IMDCT_SCALE_DBL_LSH1(-x1);
672
4.98M
        pOut0++;
673
4.98M
        pOut1--;
674
4.98M
      }
675
90.7k
    } else {
676
0
      if (hMdct->prevPrevAliasSymmetry == 0) {
677
        /* Jump DST II -> DST IV for the second window */
678
0
        for (i = 0; i < fl / 2; i++) {
679
0
          FIXP_DBL x0, x1;
680
681
0
          cplxMultDiv2(&x1, &x0, *pCurr++, -*pOvl--, pWindow_prev[i]);
682
0
          *pOut0 = IMDCT_SCALE_DBL_LSH1(x0);
683
0
          *pOut1 = IMDCT_SCALE_DBL_LSH1(x1);
684
0
          pOut0++;
685
0
          pOut1--;
686
0
        }
687
0
      } else {
688
        /* Jump DST IV -> DST IV from the second window on */
689
0
        for (i = 0; i < fl / 2; i++) {
690
0
          FIXP_DBL x0, x1;
691
692
0
          cplxMultDiv2(&x1, &x0, *pCurr++, *pOvl--, pWindow_prev[i]);
693
0
          *pOut0 = IMDCT_SCALE_DBL_LSH1(x0);
694
0
          *pOut1 = IMDCT_SCALE_DBL_LSH1(x1);
695
0
          pOut0++;
696
0
          pOut1--;
697
0
        }
698
0
      }
699
0
    }
700
701
90.7k
    if (hMdct->pFacZir != 0) {
702
      /* add FAC ZIR of previous ACELP -> mdct transition */
703
12.9k
      FIXP_DBL *pOut = pOut0 - fl / 2;
704
12.9k
      FDK_ASSERT(fl / 2 <= 128);
705
725k
      for (i = 0; i < fl / 2; i++) {
706
712k
        pOut[i] = fAddSaturate(pOut[i], IMDCT_SCALE_DBL(hMdct->pFacZir[i]));
707
712k
      }
708
12.9k
      hMdct->pFacZir = NULL;
709
12.9k
    }
710
90.7k
    pOut0 += (fl / 2);
711
712
    /* NL output samples TL/2+FL/2..TL. - current[FL/2..0] */
713
90.7k
    pOut1 += (fl / 2) + 1;
714
90.7k
    pCurr = pSpec + tl - fl / 2 - 1;
715
90.7k
    for (i = 0; i < nl; i++) {
716
0
      FIXP_DBL x = -(*pCurr--);
717
0
      *pOut1 = IMDCT_SCALE_DBL(x);
718
0
      pOut1++;
719
0
    }
720
721
    /* Set overlap source pointer for next window pOvl = pSpec + tl/2 - 1; */
722
90.7k
    pOvl = pSpec + tl / 2 - 1;
723
724
    /* Previous window values. */
725
90.7k
    hMdct->prev_nr = nr;
726
90.7k
    hMdct->prev_fr = fr;
727
90.7k
    hMdct->prev_tl = tl;
728
90.7k
    hMdct->prev_wrs = pWindow_prev;
729
90.7k
    hMdct->prevPrevAliasSymmetry = hMdct->prevAliasSymmetry;
730
90.7k
    hMdct->prevAliasSymmetry = currAliasingSymmetry;
731
90.7k
  }
732
733
  /* Save overlap */
734
735
46.3k
  pOvl = hMdct->overlap.freq + hMdct->ov_size - tl / 2;
736
46.3k
  FDK_ASSERT(pOvl >= hMdct->overlap.time + hMdct->ov_offset);
737
46.3k
  FDK_ASSERT(tl / 2 <= hMdct->ov_size);
738
6.88M
  for (i = 0; i < tl / 2; i++) {
739
6.83M
    pOvl[i] = _pSpec[i + (w - 1) * tl];
740
6.83M
  }
741
742
46.3k
  return nrSamples;
743
46.3k
}