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Created: 2026-05-30 06:09

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/src/aac/libFDK/src/qmf.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 - 2019 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
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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
16
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
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
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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,
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
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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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49
The name of Fraunhofer may not be used to endorse or promote products derived
50
from this library without prior written permission.
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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.
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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"
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.
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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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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
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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
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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
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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
85
86
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
89
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
/******************* Library for basic calculation routines ********************
96
97
   Author(s):   Markus Lohwasser, Josef Hoepfl, Manuel Jander
98
99
   Description: QMF filterbank
100
101
*******************************************************************************/
102
103
/*!
104
  \file
105
  \brief  Complex qmf analysis/synthesis
106
  This module contains the qmf filterbank for analysis [
107
  cplxAnalysisQmfFiltering() ] and synthesis [ cplxSynthesisQmfFiltering() ]. It
108
  is a polyphase implementation of a complex exponential modulated filter bank.
109
  The analysis part usually runs at half the sample rate than the synthesis
110
  part. (So called "dual-rate" mode.)
111
112
  The coefficients of the prototype filter are specified in #qmf_pfilt640 (in
113
  sbr_rom.cpp). Thus only a 64 channel version (32 on the analysis side) with a
114
  640 tap prototype filter are used.
115
116
  \anchor PolyphaseFiltering <h2>About polyphase filtering</h2>
117
  The polyphase implementation of a filterbank requires filtering at the input
118
  and output. This is implemented as part of cplxAnalysisQmfFiltering() and
119
  cplxSynthesisQmfFiltering(). The implementation requires the filter
120
  coefficients in a specific structure as described in #sbr_qmf_64_640_qmf (in
121
  sbr_rom.cpp).
122
123
  This module comprises the computationally most expensive functions of the SBR
124
  decoder. The accuracy of computations is also important and has a direct
125
  impact on the overall sound quality. Therefore a special test program is
126
  available which can be used to only test the filterbank: main_audio.cpp
127
128
  This modules also uses scaling of data to provide better SNR on fixed-point
129
  processors. See #QMF_SCALE_FACTOR (in sbr_scale.h) for details. An interesting
130
  note: The function getScalefactor() can constitute a significant amount of
131
  computational complexity - very much depending on the bitrate. Since it is a
132
  rather small function, effective assembler optimization might be possible.
133
134
*/
135
136
#include "qmf.h"
137
138
#include "FDK_trigFcts.h"
139
#include "fixpoint_math.h"
140
#include "dct.h"
141
142
#define QSSCALE (0)
143
#define FX_DBL2FX_QSS(x) (x)
144
#define FX_QSS2FX_DBL(x) (x)
145
146
/* moved to qmf_pcm.h: -> qmfSynPrototypeFirSlot */
147
/* moved to qmf_pcm.h: -> qmfSynPrototypeFirSlot_NonSymmetric */
148
/* moved to qmf_pcm.h: -> qmfSynthesisFilteringSlot */
149
150
/*!
151
 *
152
 * \brief Perform real-valued forward modulation of the time domain
153
 *        data of timeIn and stores the real part of the subband
154
 *        samples in rSubband
155
 *
156
 */
157
static void qmfForwardModulationLP_even(
158
    HANDLE_QMF_FILTER_BANK anaQmf, /*!< Handle of Qmf Analysis Bank  */
159
    FIXP_DBL *timeIn,              /*!< Time Signal */
160
    FIXP_DBL *rSubband)            /*!< Real Output */
161
1.12M
{
162
1.12M
  int i;
163
1.12M
  int L = anaQmf->no_channels;
164
1.12M
  int M = L >> 1;
165
1.12M
  int scale = 0;
166
1.12M
  FIXP_DBL accu;
167
168
1.12M
  const FIXP_DBL *timeInTmp1 = (FIXP_DBL *)&timeIn[3 * M];
169
1.12M
  const FIXP_DBL *timeInTmp2 = timeInTmp1;
170
1.12M
  FIXP_DBL *rSubbandTmp = rSubband;
171
172
1.12M
  rSubband[0] = timeIn[3 * M] >> 1;
173
174
18.0M
  for (i = M - 1; i != 0; i--) {
175
16.9M
    accu = ((*--timeInTmp1) >> 1) + ((*++timeInTmp2) >> 1);
176
16.9M
    *++rSubbandTmp = accu;
177
16.9M
  }
178
179
1.12M
  timeInTmp1 = &timeIn[2 * M];
180
1.12M
  timeInTmp2 = &timeIn[0];
181
1.12M
  rSubbandTmp = &rSubband[M];
182
183
19.1M
  for (i = L - M; i != 0; i--) {
184
18.0M
    accu = ((*timeInTmp1--) >> 1) - ((*timeInTmp2++) >> 1);
185
18.0M
    *rSubbandTmp++ = accu;
186
18.0M
  }
187
188
1.12M
  dct_III(rSubband, timeIn, L, &scale);
189
1.12M
}
190
191
#if !defined(FUNCTION_qmfForwardModulationLP_odd)
192
static void qmfForwardModulationLP_odd(
193
    HANDLE_QMF_FILTER_BANK anaQmf, /*!< Handle of Qmf Analysis Bank  */
194
    const FIXP_DBL *timeIn,        /*!< Time Signal */
195
    FIXP_DBL *rSubband)            /*!< Real Output */
196
2.20M
{
197
2.20M
  int i;
198
2.20M
  int L = anaQmf->no_channels;
199
2.20M
  int M = L >> 1;
200
2.20M
  int shift = (anaQmf->no_channels >> 6) + 1;
201
202
36.2M
  for (i = 0; i < M; i++) {
203
34.0M
    rSubband[M + i] = (timeIn[L - 1 - i] >> 1) - (timeIn[i] >> shift);
204
34.0M
    rSubband[M - 1 - i] =
205
34.0M
        (timeIn[L + i] >> 1) + (timeIn[2 * L - 1 - i] >> shift);
206
34.0M
  }
207
208
2.20M
  dct_IV(rSubband, L, &shift);
209
2.20M
}
210
#endif /* !defined(FUNCTION_qmfForwardModulationLP_odd) */
211
212
/*!
213
 *
214
 * \brief Perform complex-valued forward modulation of the time domain
215
 *        data of timeIn and stores the real part of the subband
216
 *        samples in rSubband, and the imaginary part in iSubband
217
 *
218
 *
219
 */
220
#if !defined(FUNCTION_qmfForwardModulationHQ)
221
static void qmfForwardModulationHQ(
222
    HANDLE_QMF_FILTER_BANK anaQmf,   /*!< Handle of Qmf Analysis Bank  */
223
    const FIXP_DBL *RESTRICT timeIn, /*!< Time Signal */
224
    FIXP_DBL *RESTRICT rSubband,     /*!< Real Output */
225
    FIXP_DBL *RESTRICT iSubband      /*!< Imaginary Output */
226
13.2M
) {
227
13.2M
  int i;
228
13.2M
  int L = anaQmf->no_channels;
229
13.2M
  int L2 = L << 1;
230
13.2M
  int shift = 0;
231
232
  /* Time advance by one sample, which is equivalent to the complex
233
     rotation at the end of the analysis. Works only for STD mode. */
234
13.2M
  if ((L == 64) && !(anaQmf->flags & (QMF_FLAG_CLDFB | QMF_FLAG_MPSLDFB))) {
235
0
    FIXP_DBL x, y;
236
237
    /*rSubband[0] = u[1] + u[0]*/
238
    /*iSubband[0] = u[1] - u[0]*/
239
0
    x = timeIn[1] >> 1;
240
0
    y = timeIn[0];
241
0
    rSubband[0] = x + (y >> 1);
242
0
    iSubband[0] = x - (y >> 1);
243
244
    /*rSubband[n] = u[n+1] - u[2M-n], n=1,...,M-1*/
245
    /*iSubband[n] = u[n+1] + u[2M-n], n=1,...,M-1*/
246
0
    for (i = 1; i < L; i++) {
247
0
      x = timeIn[i + 1] >> 1; /*u[n+1]  */
248
0
      y = timeIn[L2 - i];     /*u[2M-n] */
249
0
      rSubband[i] = x - (y >> 1);
250
0
      iSubband[i] = x + (y >> 1);
251
0
    }
252
13.2M
  } else {
253
182M
    for (i = 0; i < L; i += 2) {
254
168M
      FIXP_DBL x0, x1, y0, y1;
255
256
168M
      x0 = timeIn[i + 0] >> 1;
257
168M
      x1 = timeIn[i + 1] >> 1;
258
168M
      y0 = timeIn[L2 - 1 - i];
259
168M
      y1 = timeIn[L2 - 2 - i];
260
261
168M
      rSubband[i + 0] = x0 - (y0 >> 1);
262
168M
      rSubband[i + 1] = x1 - (y1 >> 1);
263
168M
      iSubband[i + 0] = x0 + (y0 >> 1);
264
168M
      iSubband[i + 1] = x1 + (y1 >> 1);
265
168M
    }
266
13.2M
  }
267
268
13.2M
  dct_IV(rSubband, L, &shift);
269
13.2M
  dst_IV(iSubband, L, &shift);
270
271
  /* Do the complex rotation except for the case of 64 bands (in STD mode). */
272
13.2M
  if ((L != 64) || (anaQmf->flags & (QMF_FLAG_CLDFB | QMF_FLAG_MPSLDFB))) {
273
13.2M
    if (anaQmf->flags & QMF_FLAG_MPSLDFB_OPTIMIZE_MODULATION) {
274
618k
      FIXP_DBL iBand;
275
10.6M
      for (i = 0; i < fMin(anaQmf->lsb, L); i += 2) {
276
10.0M
        iBand = rSubband[i];
277
10.0M
        rSubband[i] = -iSubband[i];
278
10.0M
        iSubband[i] = iBand;
279
280
10.0M
        iBand = -rSubband[i + 1];
281
10.0M
        rSubband[i + 1] = iSubband[i + 1];
282
10.0M
        iSubband[i + 1] = iBand;
283
10.0M
      }
284
12.5M
    } else {
285
12.5M
      const FIXP_QTW *sbr_t_cos;
286
12.5M
      const FIXP_QTW *sbr_t_sin;
287
12.5M
      const int len = L; /* was len = fMin(anaQmf->lsb, L) but in case of USAC
288
                            the signal above lsb is actually needed in some
289
                            cases (HBE?) */
290
12.5M
      sbr_t_cos = anaQmf->t_cos;
291
12.5M
      sbr_t_sin = anaQmf->t_sin;
292
293
330M
      for (i = 0; i < len; i++) {
294
317M
        cplxMult(&iSubband[i], &rSubband[i], iSubband[i], rSubband[i],
295
317M
                 sbr_t_cos[i], sbr_t_sin[i]);
296
317M
      }
297
12.5M
    }
298
13.2M
  }
299
13.2M
}
300
#endif /* FUNCTION_qmfForwardModulationHQ */
301
302
/*!
303
 *
304
 * \brief Perform low power inverse modulation of the subband
305
 *        samples stored in rSubband (real part) and iSubband (imaginary
306
 *        part) and stores the result in pWorkBuffer.
307
 *
308
 */
309
inline static void qmfInverseModulationLP_even(
310
    HANDLE_QMF_FILTER_BANK synQmf, /*!< Handle of Qmf Synthesis Bank  */
311
    const FIXP_DBL *qmfReal, /*!< Pointer to qmf real subband slot (input) */
312
    const int scaleFactorLowBand,  /*!< Scalefactor for Low band */
313
    const int scaleFactorHighBand, /*!< Scalefactor for High band */
314
    FIXP_DBL *pTimeOut             /*!< Pointer to qmf subband slot (output)*/
315
5.97M
) {
316
5.97M
  int i;
317
5.97M
  int L = synQmf->no_channels;
318
5.97M
  int M = L >> 1;
319
5.97M
  int scale = 0;
320
5.97M
  FIXP_DBL tmp;
321
5.97M
  FIXP_DBL *RESTRICT tReal = pTimeOut;
322
5.97M
  FIXP_DBL *RESTRICT tImag = pTimeOut + L;
323
324
  /* Move input to output vector with offset */
325
5.97M
  scaleValuesSaturate(&tReal[0], &qmfReal[0], synQmf->lsb, scaleFactorLowBand);
326
5.97M
  scaleValuesSaturate(&tReal[0 + synQmf->lsb], &qmfReal[0 + synQmf->lsb],
327
5.97M
                      synQmf->usb - synQmf->lsb, scaleFactorHighBand);
328
5.97M
  FDKmemclear(&tReal[0 + synQmf->usb], (L - synQmf->usb) * sizeof(FIXP_DBL));
329
330
  /* Dct type-2 transform */
331
5.97M
  dct_II(tReal, tImag, L, &scale);
332
333
  /* Expand output and replace inplace the output buffers */
334
5.97M
  tImag[0] = tReal[M];
335
5.97M
  tImag[M] = (FIXP_DBL)0;
336
5.97M
  tmp = tReal[0];
337
5.97M
  tReal[0] = tReal[M];
338
5.97M
  tReal[M] = tmp;
339
340
33.2M
  for (i = 1; i < M / 2; i++) {
341
    /* Imag */
342
27.2M
    tmp = tReal[L - i];
343
27.2M
    tImag[M - i] = tmp;
344
27.2M
    tImag[i + M] = -tmp;
345
346
27.2M
    tmp = tReal[M + i];
347
27.2M
    tImag[i] = tmp;
348
27.2M
    tImag[L - i] = -tmp;
349
350
    /* Real */
351
27.2M
    tReal[M + i] = tReal[i];
352
27.2M
    tReal[L - i] = tReal[M - i];
353
27.2M
    tmp = tReal[i];
354
27.2M
    tReal[i] = tReal[M - i];
355
27.2M
    tReal[M - i] = tmp;
356
27.2M
  }
357
  /* Remaining odd terms */
358
5.97M
  tmp = tReal[M + M / 2];
359
5.97M
  tImag[M / 2] = tmp;
360
5.97M
  tImag[M / 2 + M] = -tmp;
361
362
5.97M
  tReal[M + M / 2] = tReal[M / 2];
363
5.97M
}
364
365
inline static void qmfInverseModulationLP_odd(
366
    HANDLE_QMF_FILTER_BANK synQmf, /*!< Handle of Qmf Synthesis Bank  */
367
    const FIXP_DBL *qmfReal, /*!< Pointer to qmf real subband slot (input) */
368
    const int scaleFactorLowBand,  /*!< Scalefactor for Low band */
369
    const int scaleFactorHighBand, /*!< Scalefactor for High band */
370
    FIXP_DBL *pTimeOut             /*!< Pointer to qmf subband slot (output)*/
371
2.20M
) {
372
2.20M
  int i;
373
2.20M
  int L = synQmf->no_channels;
374
2.20M
  int M = L >> 1;
375
2.20M
  int shift = 0;
376
377
  /* Move input to output vector with offset */
378
2.20M
  scaleValuesSaturate(pTimeOut + M, qmfReal, synQmf->lsb, scaleFactorLowBand);
379
2.20M
  scaleValuesSaturate(pTimeOut + M + synQmf->lsb, qmfReal + synQmf->lsb,
380
2.20M
                      synQmf->usb - synQmf->lsb, scaleFactorHighBand);
381
2.20M
  FDKmemclear(pTimeOut + M + synQmf->usb, (L - synQmf->usb) * sizeof(FIXP_DBL));
382
383
2.20M
  dct_IV(pTimeOut + M, L, &shift);
384
58.0M
  for (i = 0; i < M; i++) {
385
55.8M
    pTimeOut[i] = pTimeOut[L - 1 - i];
386
55.8M
    pTimeOut[2 * L - 1 - i] = -pTimeOut[L + i];
387
55.8M
  }
388
2.20M
}
389
390
#ifndef FUNCTION_qmfInverseModulationHQ
391
/*!
392
 *
393
 * \brief Perform complex-valued inverse modulation of the subband
394
 *        samples stored in rSubband (real part) and iSubband (imaginary
395
 *        part) and stores the result in pWorkBuffer.
396
 *
397
 */
398
inline static void qmfInverseModulationHQ(
399
    HANDLE_QMF_FILTER_BANK synQmf, /*!< Handle of Qmf Synthesis Bank     */
400
    const FIXP_DBL *qmfReal,       /*!< Pointer to qmf real subband slot */
401
    const FIXP_DBL *qmfImag,       /*!< Pointer to qmf imag subband slot */
402
    const int scaleFactorLowBand,  /*!< Scalefactor for Low band         */
403
    const int scaleFactorHighBand, /*!< Scalefactor for High band        */
404
    FIXP_DBL *pWorkBuffer          /*!< WorkBuffer (output)              */
405
15.1M
) {
406
15.1M
  int i;
407
15.1M
  int L = synQmf->no_channels;
408
15.1M
  int M = L >> 1;
409
15.1M
  int shift = 0;
410
15.1M
  FIXP_DBL *RESTRICT tReal = pWorkBuffer;
411
15.1M
  FIXP_DBL *RESTRICT tImag = pWorkBuffer + L;
412
413
15.1M
  if (synQmf->flags & QMF_FLAG_CLDFB) {
414
921k
    for (i = 0; i < synQmf->usb; i++) {
415
896k
      cplxMultDiv2(&tImag[i], &tReal[i], qmfImag[i], qmfReal[i],
416
896k
                   synQmf->t_cos[i], synQmf->t_sin[i]);
417
896k
    }
418
25.6k
    scaleValuesSaturate(&tReal[0], synQmf->lsb, scaleFactorLowBand + 1);
419
25.6k
    scaleValuesSaturate(&tReal[0 + synQmf->lsb], synQmf->usb - synQmf->lsb,
420
25.6k
                        scaleFactorHighBand + 1);
421
25.6k
    scaleValuesSaturate(&tImag[0], synQmf->lsb, scaleFactorLowBand + 1);
422
25.6k
    scaleValuesSaturate(&tImag[0 + synQmf->lsb], synQmf->usb - synQmf->lsb,
423
25.6k
                        scaleFactorHighBand + 1);
424
25.6k
  }
425
426
15.1M
  if ((synQmf->flags & QMF_FLAG_CLDFB) == 0) {
427
15.0M
    scaleValuesSaturate(&tReal[0], &qmfReal[0], synQmf->lsb,
428
15.0M
                        scaleFactorLowBand);
429
15.0M
    scaleValuesSaturate(&tReal[0 + synQmf->lsb], &qmfReal[0 + synQmf->lsb],
430
15.0M
                        synQmf->usb - synQmf->lsb, scaleFactorHighBand);
431
15.0M
    scaleValuesSaturate(&tImag[0], &qmfImag[0], synQmf->lsb,
432
15.0M
                        scaleFactorLowBand);
433
15.0M
    scaleValuesSaturate(&tImag[0 + synQmf->lsb], &qmfImag[0 + synQmf->lsb],
434
15.0M
                        synQmf->usb - synQmf->lsb, scaleFactorHighBand);
435
15.0M
  }
436
437
15.1M
  FDKmemclear(&tReal[synQmf->usb],
438
15.1M
              (synQmf->no_channels - synQmf->usb) * sizeof(FIXP_DBL));
439
15.1M
  FDKmemclear(&tImag[synQmf->usb],
440
15.1M
              (synQmf->no_channels - synQmf->usb) * sizeof(FIXP_DBL));
441
442
15.1M
  dct_IV(tReal, L, &shift);
443
15.1M
  dst_IV(tImag, L, &shift);
444
445
15.1M
  if (synQmf->flags & QMF_FLAG_CLDFB) {
446
551k
    for (i = 0; i < M; i++) {
447
526k
      FIXP_DBL r1, i1, r2, i2;
448
526k
      r1 = tReal[i];
449
526k
      i2 = tImag[L - 1 - i];
450
526k
      r2 = tReal[L - i - 1];
451
526k
      i1 = tImag[i];
452
453
526k
      tReal[i] = (r1 - i1) >> 1;
454
526k
      tImag[L - 1 - i] = -(r1 + i1) >> 1;
455
526k
      tReal[L - i - 1] = (r2 - i2) >> 1;
456
526k
      tImag[i] = -(r2 + i2) >> 1;
457
526k
    }
458
15.0M
  } else {
459
    /* The array accesses are negative to compensate the missing minus sign in
460
     * the low and hi band gain. */
461
    /* 26 cycles on ARM926 */
462
478M
    for (i = 0; i < M; i++) {
463
463M
      FIXP_DBL r1, i1, r2, i2;
464
463M
      r1 = -tReal[i];
465
463M
      i2 = -tImag[L - 1 - i];
466
463M
      r2 = -tReal[L - i - 1];
467
463M
      i1 = -tImag[i];
468
469
463M
      tReal[i] = (r1 - i1) >> 1;
470
463M
      tImag[L - 1 - i] = -(r1 + i1) >> 1;
471
463M
      tReal[L - i - 1] = (r2 - i2) >> 1;
472
463M
      tImag[i] = -(r2 + i2) >> 1;
473
463M
    }
474
15.0M
  }
475
15.1M
}
476
#endif /* #ifndef FUNCTION_qmfInverseModulationHQ */
477
478
/*!
479
 *
480
 * \brief Create QMF filter bank instance
481
 *
482
 * \return 0 if successful
483
 *
484
 */
485
static int qmfInitFilterBank(
486
    HANDLE_QMF_FILTER_BANK h_Qmf, /*!< Handle to return */
487
    void *pFilterStates,          /*!< Handle to filter states */
488
    int noCols,                   /*!< Number of timeslots per frame */
489
    int lsb,                      /*!< Lower end of QMF frequency range */
490
    int usb,                      /*!< Upper end of QMF frequency range */
491
    int no_channels,              /*!< Number of channels (bands) */
492
    UINT flags,                   /*!< flags */
493
    int synflag)                  /*!< 1: synthesis; 0: analysis */
494
267k
{
495
267k
  FDKmemclear(h_Qmf, sizeof(QMF_FILTER_BANK));
496
497
267k
  if (flags & QMF_FLAG_MPSLDFB) {
498
13.3k
    flags |= QMF_FLAG_NONSYMMETRIC;
499
13.3k
    flags |= QMF_FLAG_MPSLDFB_OPTIMIZE_MODULATION;
500
501
13.3k
    h_Qmf->t_cos = NULL;
502
13.3k
    h_Qmf->t_sin = NULL;
503
13.3k
    h_Qmf->filterScale = QMF_MPSLDFB_PFT_SCALE;
504
13.3k
    h_Qmf->p_stride = 1;
505
506
13.3k
    switch (no_channels) {
507
3.46k
      case 64:
508
3.46k
        h_Qmf->p_filter = qmf_mpsldfb_640;
509
3.46k
        h_Qmf->FilterSize = 640;
510
3.46k
        break;
511
9.88k
      case 32:
512
9.88k
        h_Qmf->p_filter = qmf_mpsldfb_320;
513
9.88k
        h_Qmf->FilterSize = 320;
514
9.88k
        break;
515
0
      default:
516
0
        return -1;
517
13.3k
    }
518
13.3k
  }
519
520
267k
  if (!(flags & QMF_FLAG_MPSLDFB) && (flags & QMF_FLAG_CLDFB)) {
521
101k
    flags |= QMF_FLAG_NONSYMMETRIC;
522
101k
    h_Qmf->filterScale = QMF_CLDFB_PFT_SCALE;
523
524
101k
    h_Qmf->p_stride = 1;
525
101k
    switch (no_channels) {
526
9.55k
      case 64:
527
9.55k
        h_Qmf->t_cos = qmf_phaseshift_cos64_cldfb;
528
9.55k
        h_Qmf->t_sin = qmf_phaseshift_sin64_cldfb;
529
9.55k
        h_Qmf->p_filter = qmf_cldfb_640;
530
9.55k
        h_Qmf->FilterSize = 640;
531
9.55k
        break;
532
69.4k
      case 32:
533
69.4k
        h_Qmf->t_cos = (synflag) ? qmf_phaseshift_cos32_cldfb_syn
534
69.4k
                                 : qmf_phaseshift_cos32_cldfb_ana;
535
69.4k
        h_Qmf->t_sin = qmf_phaseshift_sin32_cldfb;
536
69.4k
        h_Qmf->p_filter = qmf_cldfb_320;
537
69.4k
        h_Qmf->FilterSize = 320;
538
69.4k
        break;
539
17.2k
      case 16:
540
17.2k
        h_Qmf->t_cos = (synflag) ? qmf_phaseshift_cos16_cldfb_syn
541
17.2k
                                 : qmf_phaseshift_cos16_cldfb_ana;
542
17.2k
        h_Qmf->t_sin = qmf_phaseshift_sin16_cldfb;
543
17.2k
        h_Qmf->p_filter = qmf_cldfb_160;
544
17.2k
        h_Qmf->FilterSize = 160;
545
17.2k
        break;
546
5.09k
      case 8:
547
5.09k
        h_Qmf->t_cos = (synflag) ? qmf_phaseshift_cos8_cldfb_syn
548
5.09k
                                 : qmf_phaseshift_cos8_cldfb_ana;
549
5.09k
        h_Qmf->t_sin = qmf_phaseshift_sin8_cldfb;
550
5.09k
        h_Qmf->p_filter = qmf_cldfb_80;
551
5.09k
        h_Qmf->FilterSize = 80;
552
5.09k
        break;
553
0
      default:
554
0
        return -1;
555
101k
    }
556
101k
  }
557
558
267k
  if (!(flags & QMF_FLAG_MPSLDFB) && ((flags & QMF_FLAG_CLDFB) == 0)) {
559
152k
    switch (no_channels) {
560
46.2k
      case 64:
561
46.2k
        h_Qmf->p_filter = qmf_pfilt640;
562
46.2k
        h_Qmf->t_cos = qmf_phaseshift_cos64;
563
46.2k
        h_Qmf->t_sin = qmf_phaseshift_sin64;
564
46.2k
        h_Qmf->p_stride = 1;
565
46.2k
        h_Qmf->FilterSize = 640;
566
46.2k
        h_Qmf->filterScale = 0;
567
46.2k
        break;
568
1.27k
      case 40:
569
1.27k
        if (synflag) {
570
0
          break;
571
1.27k
        } else {
572
1.27k
          h_Qmf->p_filter = qmf_pfilt400; /* Scaling factor 0.8 */
573
1.27k
          h_Qmf->t_cos = qmf_phaseshift_cos40;
574
1.27k
          h_Qmf->t_sin = qmf_phaseshift_sin40;
575
1.27k
          h_Qmf->filterScale = 1;
576
1.27k
          h_Qmf->p_stride = 1;
577
1.27k
          h_Qmf->FilterSize = no_channels * 10;
578
1.27k
        }
579
1.27k
        break;
580
37.3k
      case 32:
581
37.3k
        h_Qmf->p_filter = qmf_pfilt640;
582
37.3k
        if (flags & QMF_FLAG_DOWNSAMPLED) {
583
994
          h_Qmf->t_cos = qmf_phaseshift_cos_downsamp32;
584
994
          h_Qmf->t_sin = qmf_phaseshift_sin_downsamp32;
585
36.3k
        } else {
586
36.3k
          h_Qmf->t_cos = qmf_phaseshift_cos32;
587
36.3k
          h_Qmf->t_sin = qmf_phaseshift_sin32;
588
36.3k
        }
589
37.3k
        h_Qmf->p_stride = 2;
590
37.3k
        h_Qmf->FilterSize = 640;
591
37.3k
        h_Qmf->filterScale = 0;
592
37.3k
        break;
593
1.27k
      case 20:
594
1.27k
        h_Qmf->p_filter = qmf_pfilt200;
595
1.27k
        h_Qmf->p_stride = 1;
596
1.27k
        h_Qmf->FilterSize = 200;
597
1.27k
        h_Qmf->filterScale = 0;
598
1.27k
        break;
599
15.9k
      case 12:
600
15.9k
        h_Qmf->p_filter = qmf_pfilt120;
601
15.9k
        h_Qmf->p_stride = 1;
602
15.9k
        h_Qmf->FilterSize = 120;
603
15.9k
        h_Qmf->filterScale = 0;
604
15.9k
        break;
605
3.24k
      case 8:
606
3.24k
        h_Qmf->p_filter = qmf_pfilt640;
607
3.24k
        h_Qmf->p_stride = 8;
608
3.24k
        h_Qmf->FilterSize = 640;
609
3.24k
        h_Qmf->filterScale = 0;
610
3.24k
        break;
611
19.9k
      case 16:
612
19.9k
        h_Qmf->p_filter = qmf_pfilt640;
613
19.9k
        h_Qmf->t_cos = qmf_phaseshift_cos16;
614
19.9k
        h_Qmf->t_sin = qmf_phaseshift_sin16;
615
19.9k
        h_Qmf->p_stride = 4;
616
19.9k
        h_Qmf->FilterSize = 640;
617
19.9k
        h_Qmf->filterScale = 0;
618
19.9k
        break;
619
27.0k
      case 24:
620
27.0k
        h_Qmf->p_filter = qmf_pfilt240;
621
27.0k
        h_Qmf->t_cos = qmf_phaseshift_cos24;
622
27.0k
        h_Qmf->t_sin = qmf_phaseshift_sin24;
623
27.0k
        h_Qmf->p_stride = 1;
624
27.0k
        h_Qmf->FilterSize = 240;
625
27.0k
        h_Qmf->filterScale = 1;
626
27.0k
        break;
627
14
      default:
628
14
        return -1;
629
152k
    }
630
152k
  }
631
632
267k
  h_Qmf->synScalefactor = h_Qmf->filterScale;
633
  // DCT|DST dependency
634
267k
  switch (no_channels) {
635
0
    case 128:
636
0
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK + 1;
637
0
      break;
638
1.27k
    case 40: {
639
1.27k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK - 1;
640
1.27k
    } break;
641
59.2k
    case 64:
642
59.2k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK;
643
59.2k
      break;
644
8.33k
    case 8:
645
8.33k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK - 3;
646
8.33k
      break;
647
15.9k
    case 12:
648
15.9k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK;
649
15.9k
      break;
650
1.27k
    case 20:
651
1.27k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK + 1;
652
1.27k
      break;
653
116k
    case 32:
654
116k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK - 1;
655
116k
      break;
656
37.2k
    case 16:
657
37.2k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK - 2;
658
37.2k
      break;
659
27.0k
    case 24:
660
27.0k
      h_Qmf->synScalefactor += ALGORITHMIC_SCALING_IN_SYNTHESIS_FILTERBANK - 1;
661
27.0k
      break;
662
0
    default:
663
0
      return -1;
664
267k
  }
665
666
267k
  h_Qmf->flags = flags;
667
668
267k
  h_Qmf->no_channels = no_channels;
669
267k
  h_Qmf->no_col = noCols;
670
671
267k
  h_Qmf->lsb = fMin(lsb, h_Qmf->no_channels);
672
267k
  h_Qmf->usb = synflag
673
267k
                   ? fMin(usb, h_Qmf->no_channels)
674
267k
                   : usb; /* was: h_Qmf->usb = fMin(usb, h_Qmf->no_channels); */
675
676
267k
  h_Qmf->FilterStates = (void *)pFilterStates;
677
678
267k
  h_Qmf->outScalefactor =
679
267k
      (ALGORITHMIC_SCALING_IN_ANALYSIS_FILTERBANK + h_Qmf->filterScale) +
680
267k
      h_Qmf->synScalefactor;
681
682
267k
  h_Qmf->outGain_m =
683
267k
      (FIXP_DBL)0x80000000; /* default init value will be not applied */
684
267k
  h_Qmf->outGain_e = 0;
685
686
267k
  return (0);
687
267k
}
688
689
/*!
690
 *
691
 * \brief Adjust synthesis qmf filter states
692
 *
693
 * \return void
694
 *
695
 */
696
static inline void qmfAdaptFilterStates(
697
    HANDLE_QMF_FILTER_BANK synQmf, /*!< Handle of Qmf Filter Bank */
698
    int scaleFactorDiff)           /*!< Scale factor difference to be applied */
699
131k
{
700
131k
  if (synQmf == NULL || synQmf->FilterStates == NULL) {
701
0
    return;
702
0
  }
703
131k
  if (scaleFactorDiff > 0) {
704
82.9k
    scaleValuesSaturate((FIXP_QSS *)synQmf->FilterStates,
705
82.9k
                        synQmf->no_channels * (QMF_NO_POLY * 2 - 1),
706
82.9k
                        scaleFactorDiff);
707
82.9k
  } else {
708
48.3k
    scaleValues((FIXP_QSS *)synQmf->FilterStates,
709
48.3k
                synQmf->no_channels * (QMF_NO_POLY * 2 - 1), scaleFactorDiff);
710
48.3k
  }
711
131k
}
712
713
/*!
714
 *
715
 * \brief Create QMF filter bank instance
716
 *
717
 *
718
 * \return 0 if succesful
719
 *
720
 */
721
int qmfInitSynthesisFilterBank(
722
    HANDLE_QMF_FILTER_BANK h_Qmf, /*!< Returns handle */
723
    FIXP_QSS *pFilterStates,      /*!< Handle to filter states */
724
    int noCols,                   /*!< Number of timeslots per frame */
725
    int lsb,                      /*!< lower end of QMF */
726
    int usb,                      /*!< upper end of QMF */
727
    int no_channels,              /*!< Number of channels (bands) */
728
    int flags)                    /*!< Low Power flag */
729
138k
{
730
138k
  int oldOutScale = h_Qmf->outScalefactor;
731
138k
  int err = qmfInitFilterBank(h_Qmf, pFilterStates, noCols, lsb, usb,
732
138k
                              no_channels, flags, 1);
733
138k
  if (h_Qmf->FilterStates != NULL) {
734
138k
    if (!(flags & QMF_FLAG_KEEP_STATES)) {
735
95.6k
      FDKmemclear(
736
95.6k
          h_Qmf->FilterStates,
737
95.6k
          (2 * QMF_NO_POLY - 1) * h_Qmf->no_channels * sizeof(FIXP_QSS));
738
95.6k
    } else {
739
42.9k
      qmfAdaptFilterStates(h_Qmf, oldOutScale - h_Qmf->outScalefactor);
740
42.9k
    }
741
138k
  }
742
743
138k
  FDK_ASSERT(h_Qmf->no_channels >= h_Qmf->lsb);
744
138k
  FDK_ASSERT(h_Qmf->no_channels >= h_Qmf->usb);
745
746
138k
  return err;
747
138k
}
748
749
/*!
750
 *
751
 * \brief Change scale factor for output data and adjust qmf filter states
752
 *
753
 * \return void
754
 *
755
 */
756
void qmfChangeOutScalefactor(
757
    HANDLE_QMF_FILTER_BANK synQmf, /*!< Handle of Qmf Synthesis Bank */
758
    int outScalefactor             /*!< New scaling factor for output data */
759
679k
) {
760
679k
  if (synQmf == NULL) {
761
0
    return;
762
0
  }
763
764
  /* Add internal filterbank scale */
765
679k
  outScalefactor +=
766
679k
      (ALGORITHMIC_SCALING_IN_ANALYSIS_FILTERBANK + synQmf->filterScale) +
767
679k
      synQmf->synScalefactor;
768
769
  /* adjust filter states when scale factor has been changed */
770
679k
  if (synQmf->outScalefactor != outScalefactor) {
771
88.3k
    int diff;
772
773
88.3k
    diff = synQmf->outScalefactor - outScalefactor;
774
775
88.3k
    qmfAdaptFilterStates(synQmf, diff);
776
777
    /* save new scale factor */
778
88.3k
    synQmf->outScalefactor = outScalefactor;
779
88.3k
  }
780
679k
}
781
782
/*!
783
 *
784
 * \brief Get scale factor change which was set by qmfChangeOutScalefactor()
785
 *
786
 * \return scaleFactor
787
 *
788
 */
789
int qmfGetOutScalefactor(
790
    HANDLE_QMF_FILTER_BANK synQmf) /*!< Handle of Qmf Synthesis Bank */
791
106k
{
792
106k
  int scaleFactor = synQmf->outScalefactor
793
106k
                        ? (synQmf->outScalefactor -
794
41.1k
                           (ALGORITHMIC_SCALING_IN_ANALYSIS_FILTERBANK +
795
41.1k
                            synQmf->filterScale + synQmf->synScalefactor))
796
106k
                        : 0;
797
106k
  return scaleFactor;
798
106k
}
799
800
/*!
801
 *
802
 * \brief Change gain for output data
803
 *
804
 * \return void
805
 *
806
 */
807
void qmfChangeOutGain(
808
    HANDLE_QMF_FILTER_BANK synQmf, /*!< Handle of Qmf Synthesis Bank */
809
    FIXP_DBL outputGain,           /*!< New gain for output data (mantissa) */
810
    int outputGainScale            /*!< New gain for output data (exponent) */
811
152k
) {
812
152k
  synQmf->outGain_m = outputGain;
813
152k
  synQmf->outGain_e = outputGainScale;
814
152k
}
815
816
0
#define INT_PCM_QMFOUT INT_PCM
817
0
#define SAMPLE_BITS_QMFOUT SAMPLE_BITS
818
#include "qmf_pcm.h"
819
#if SAMPLE_BITS == 16
820
  /* also create a 32 bit output version */
821
#undef INT_PCM_QMFOUT
822
#undef SAMPLE_BITS_QMFOUT
823
#undef QMF_PCM_H
824
#undef FIXP_QAS
825
#undef QAS_BITS
826
#undef INT_PCM_QMFIN
827
1.17G
#define INT_PCM_QMFOUT LONG
828
23.2M
#define SAMPLE_BITS_QMFOUT 32
829
43.9M
#define FIXP_QAS FIXP_DBL
830
#define QAS_BITS 32
831
#define INT_PCM_QMFIN LONG
832
#include "qmf_pcm.h"
833
#endif