Coverage Report

Created: 2025-07-18 06:08

/src/aac/libPCMutils/src/limiter.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
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scheme for digital audio. This FDK AAC Codec software is intended to be used on
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a wide variety of Android devices.
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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.
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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
31
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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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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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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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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This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
75
including but not limited to the implied warranties of merchantability and
76
fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
77
CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
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or consequential damages, including but not limited to procurement of substitute
79
goods or services; loss of use, data, or profits, or business interruption,
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
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this software, even if advised of the possibility of such damage.
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5.    CONTACT INFORMATION
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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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www.iis.fraunhofer.de/amm
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amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
94
95
/**************************** PCM utility library ******************************
96
97
   Author(s):   Matthias Neusinger
98
99
   Description: Hard limiter for clipping prevention
100
101
*******************************************************************************/
102
103
#include "limiter.h"
104
#include "FDK_core.h"
105
106
/* library version */
107
#include "version.h"
108
/* library title */
109
0
#define TDLIMIT_LIB_TITLE "TD Limiter Lib"
110
111
/* create limiter */
112
TDLimiterPtr pcmLimiter_Create(unsigned int maxAttackMs, unsigned int releaseMs,
113
                               FIXP_DBL threshold, unsigned int maxChannels,
114
34.9k
                               UINT maxSampleRate) {
115
34.9k
  TDLimiterPtr limiter = NULL;
116
34.9k
  unsigned int attack, release;
117
34.9k
  FIXP_DBL attackConst, releaseConst, exponent;
118
34.9k
  INT e_ans;
119
120
  /* calc attack and release time in samples */
121
34.9k
  attack = (unsigned int)(maxAttackMs * maxSampleRate / 1000);
122
34.9k
  release = (unsigned int)(releaseMs * maxSampleRate / 1000);
123
124
  /* alloc limiter struct */
125
34.9k
  limiter = (TDLimiterPtr)FDKcalloc(1, sizeof(struct TDLimiter));
126
34.9k
  if (!limiter) return NULL;
127
128
  /* alloc max and delay buffers */
129
34.9k
  limiter->maxBuf = (FIXP_DBL*)FDKcalloc(attack + 1, sizeof(FIXP_DBL));
130
34.9k
  limiter->delayBuf =
131
34.9k
      (FIXP_DBL*)FDKcalloc(attack * maxChannels, sizeof(FIXP_DBL));
132
133
34.9k
  if (!limiter->maxBuf || !limiter->delayBuf) {
134
0
    pcmLimiter_Destroy(limiter);
135
0
    return NULL;
136
0
  }
137
138
  /* attackConst = pow(0.1, 1.0 / (attack + 1)) */
139
34.9k
  exponent = invFixp(attack + 1);
140
34.9k
  attackConst = fPow(FL2FXCONST_DBL(0.1f), 0, exponent, 0, &e_ans);
141
34.9k
  attackConst = scaleValue(attackConst, e_ans);
142
143
  /* releaseConst  = (float)pow(0.1, 1.0 / (release + 1)) */
144
34.9k
  exponent = invFixp(release + 1);
145
34.9k
  releaseConst = fPow(FL2FXCONST_DBL(0.1f), 0, exponent, 0, &e_ans);
146
34.9k
  releaseConst = scaleValue(releaseConst, e_ans);
147
148
  /* init parameters */
149
34.9k
  limiter->attackMs = maxAttackMs;
150
34.9k
  limiter->maxAttackMs = maxAttackMs;
151
34.9k
  limiter->releaseMs = releaseMs;
152
34.9k
  limiter->attack = attack;
153
34.9k
  limiter->attackConst = attackConst;
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34.9k
  limiter->releaseConst = releaseConst;
155
34.9k
  limiter->threshold = threshold;
156
34.9k
  limiter->channels = maxChannels;
157
34.9k
  limiter->maxChannels = maxChannels;
158
34.9k
  limiter->sampleRate = maxSampleRate;
159
34.9k
  limiter->maxSampleRate = maxSampleRate;
160
161
34.9k
  pcmLimiter_Reset(limiter);
162
163
34.9k
  return limiter;
164
34.9k
}
165
166
/* apply limiter */
167
TDLIMITER_ERROR pcmLimiter_Apply(TDLimiterPtr limiter, PCM_LIM* samplesIn,
168
                                 INT_PCM* samplesOut, FIXP_DBL* pGainPerSample,
169
336k
                                 const INT scaling, const UINT nSamples) {
170
336k
  unsigned int i, j;
171
336k
  FIXP_DBL tmp2;
172
336k
  FIXP_DBL tmp, old, gain, additionalGain = 0;
173
336k
  FIXP_DBL minGain = FL2FXCONST_DBL(1.0f / (1 << 1));
174
336k
  UINT additionalGainAvailable = 1;
175
176
336k
  if (limiter == NULL) return TDLIMIT_INVALID_HANDLE;
177
178
336k
  {
179
336k
    unsigned int channels = limiter->channels;
180
336k
    unsigned int attack = limiter->attack;
181
336k
    FIXP_DBL attackConst = limiter->attackConst;
182
336k
    FIXP_DBL releaseConst = limiter->releaseConst;
183
336k
    FIXP_DBL threshold = limiter->threshold >> scaling;
184
185
336k
    FIXP_DBL max = limiter->max;
186
336k
    FIXP_DBL* maxBuf = limiter->maxBuf;
187
336k
    unsigned int maxBufIdx = limiter->maxBufIdx;
188
336k
    FIXP_DBL cor = limiter->cor;
189
336k
    FIXP_DBL* delayBuf = limiter->delayBuf;
190
336k
    unsigned int delayBufIdx = limiter->delayBufIdx;
191
192
336k
    FIXP_DBL smoothState0 = limiter->smoothState0;
193
194
336k
    if (limiter->scaling != scaling) {
195
13.7k
      scaleValuesSaturate(delayBuf, attack * channels,
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13.7k
                          limiter->scaling - scaling);
197
13.7k
      scaleValuesSaturate(maxBuf, attack + 1, limiter->scaling - scaling);
198
13.7k
      max = scaleValueSaturate(max, limiter->scaling - scaling);
199
13.7k
      limiter->scaling = scaling;
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13.7k
    }
201
202
336k
    if (pGainPerSample == NULL) {
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322k
      additionalGainAvailable = 0;
204
322k
    }
205
206
702M
    for (i = 0; i < nSamples; i++) {
207
      /* get maximum absolute sample value of all channels, including the
208
       * additional gain. */
209
702M
      tmp = (FIXP_DBL)0;
210
2.01G
      for (j = 0; j < channels; j++) {
211
1.31G
        tmp2 = PCM_LIM2FIXP_DBL(samplesIn[j]);
212
1.31G
        tmp2 =
213
1.31G
            (tmp2 == (FIXP_DBL)MINVAL_DBL) ? (FIXP_DBL)MAXVAL_DBL : fAbs(tmp2);
214
1.31G
        tmp = fMax(tmp, tmp2);
215
1.31G
      }
216
217
702M
      if (additionalGainAvailable) {
218
21.9M
        additionalGain = pGainPerSample[i];
219
21.9M
        tmp = fMult(tmp, additionalGain);
220
21.9M
      }
221
222
      /* set threshold as lower border to save calculations in running maximum
223
       * algorithm */
224
702M
      tmp = fMax(tmp, threshold);
225
226
      /* running maximum */
227
702M
      old = maxBuf[maxBufIdx];
228
702M
      maxBuf[maxBufIdx] = tmp;
229
230
702M
      if (tmp >= max) {
231
        /* new sample is greater than old maximum, so it is the new maximum */
232
449M
        max = tmp;
233
449M
      } else if (old < max) {
234
        /* maximum does not change, as the sample, which has left the window was
235
           not the maximum */
236
238M
      } else {
237
        /* the old maximum has left the window, we have to search the complete
238
           buffer for the new max */
239
14.2M
        max = maxBuf[0];
240
2.78G
        for (j = 1; j <= attack; j++) {
241
2.77G
          max = fMax(max, maxBuf[j]);
242
2.77G
        }
243
14.2M
      }
244
702M
      maxBufIdx++;
245
702M
      if (maxBufIdx >= attack + 1) maxBufIdx = 0;
246
247
      /* calc gain */
248
      /* gain is downscaled by one, so that gain = 1.0 can be represented */
249
702M
      if (max > threshold) {
250
261M
        gain = fDivNorm(threshold, max) >> 1;
251
440M
      } else {
252
440M
        gain = FL2FXCONST_DBL(1.0f / (1 << 1));
253
440M
      }
254
255
      /* gain smoothing, method: TDL_EXPONENTIAL */
256
      /* first order IIR filter with attack correction to avoid overshoots */
257
258
      /* correct the 'aiming' value of the exponential attack to avoid the
259
       * remaining overshoot */
260
702M
      if (gain < smoothState0) {
261
89.3M
        cor = fMin(cor,
262
89.3M
                   fMultDiv2((gain - fMultDiv2(FL2FXCONST_SGL(0.1f * (1 << 1)),
263
89.3M
                                               smoothState0)),
264
89.3M
                             FL2FXCONST_SGL(1.11111111f / (1 << 1)))
265
89.3M
                       << 2);
266
612M
      } else {
267
612M
        cor = gain;
268
612M
      }
269
270
      /* smoothing filter */
271
702M
      if (cor < smoothState0) {
272
89.3M
        smoothState0 =
273
89.3M
            fMult(attackConst, (smoothState0 - cor)) + cor; /* attack */
274
89.3M
        smoothState0 = fMax(smoothState0, gain); /* avoid overshooting target */
275
612M
      } else {
276
        /* sign inversion twice to round towards +infinity,
277
           so that gain can converge to 1.0 again,
278
           for bit-identical output when limiter is not active */
279
612M
        smoothState0 =
280
612M
            -fMult(releaseConst, -(smoothState0 - cor)) + cor; /* release */
281
612M
      }
282
283
702M
      gain = smoothState0;
284
285
702M
      FIXP_DBL* p_delayBuf = &delayBuf[delayBufIdx * channels + 0];
286
702M
      if (gain < FL2FXCONST_DBL(1.0f / (1 << 1))) {
287
386M
        gain <<= 1;
288
        /* lookahead delay, apply gain */
289
1.15G
        for (j = 0; j < channels; j++) {
290
765M
          tmp = p_delayBuf[j];
291
292
765M
          if (additionalGainAvailable) {
293
1.35M
            p_delayBuf[j] = fMult((FIXP_PCM_LIM)samplesIn[j], additionalGain);
294
764M
          } else {
295
764M
            p_delayBuf[j] = PCM_LIM2FIXP_DBL(samplesIn[j]);
296
764M
          }
297
298
          /* Apply gain to delayed signal */
299
765M
          tmp = fMultDiv2(tmp, gain);
300
#if (SAMPLE_BITS == DFRACT_BITS)
301
          samplesOut[j] = (INT_PCM)FX_DBL2FX_PCM(
302
              (FIXP_DBL)SATURATE_LEFT_SHIFT(tmp, scaling + 1, DFRACT_BITS));
303
#else
304
765M
          samplesOut[j] = (INT_PCM)FX_DBL2FX_PCM((FIXP_DBL)SATURATE_LEFT_SHIFT(
305
765M
              tmp + ((FIXP_DBL)0x8000 >> (scaling + 1)), scaling + 1,
306
765M
              DFRACT_BITS));
307
765M
#endif
308
765M
        }
309
386M
        gain >>= 1;
310
386M
      } else {
311
        /* lookahead delay, apply gain=1.0f */
312
859M
        for (j = 0; j < channels; j++) {
313
544M
          tmp = p_delayBuf[j];
314
544M
          if (additionalGainAvailable) {
315
42.9M
            p_delayBuf[j] = fMult((FIXP_PCM_LIM)samplesIn[j], additionalGain);
316
501M
          } else {
317
501M
            p_delayBuf[j] = PCM_LIM2FIXP_DBL(samplesIn[j]);
318
501M
          }
319
320
#if (SAMPLE_BITS == DFRACT_BITS)
321
          samplesOut[j] = (INT_PCM)FX_DBL2FX_PCM(
322
              (FIXP_DBL)SATURATE_LEFT_SHIFT(tmp, scaling, DFRACT_BITS));
323
#else
324
544M
          samplesOut[j] = (INT_PCM)FX_DBL2FX_PCM((FIXP_DBL)SATURATE_LEFT_SHIFT(
325
544M
              (tmp >> 1) + ((FIXP_DBL)0x8000 >> (scaling + 1)), scaling + 1,
326
544M
              DFRACT_BITS));
327
544M
#endif
328
544M
        }
329
315M
      }
330
331
702M
      delayBufIdx++;
332
702M
      if (delayBufIdx >= attack) {
333
5.51M
        delayBufIdx = 0;
334
5.51M
      }
335
336
      /* save minimum gain factor */
337
702M
      if (gain < minGain) {
338
48.5M
        minGain = gain;
339
48.5M
      }
340
341
      /* advance sample pointer by <channel> samples */
342
702M
      samplesIn += channels;
343
702M
      samplesOut += channels;
344
702M
    }
345
346
336k
    limiter->max = max;
347
336k
    limiter->maxBufIdx = maxBufIdx;
348
336k
    limiter->cor = cor;
349
336k
    limiter->delayBufIdx = delayBufIdx;
350
351
336k
    limiter->smoothState0 = smoothState0;
352
353
336k
    limiter->minGain = minGain;
354
355
336k
    return TDLIMIT_OK;
356
336k
  }
357
336k
}
358
359
/* set limiter threshold */
360
TDLIMITER_ERROR pcmLimiter_SetThreshold(TDLimiterPtr limiter,
361
81.9k
                                        FIXP_DBL threshold) {
362
81.9k
  if (limiter == NULL) return TDLIMIT_INVALID_HANDLE;
363
364
81.9k
  limiter->threshold = threshold;
365
366
81.9k
  return TDLIMIT_OK;
367
81.9k
}
368
369
/* reset limiter */
370
34.9k
TDLIMITER_ERROR pcmLimiter_Reset(TDLimiterPtr limiter) {
371
34.9k
  if (limiter != NULL) {
372
34.9k
    limiter->maxBufIdx = 0;
373
34.9k
    limiter->delayBufIdx = 0;
374
34.9k
    limiter->max = (FIXP_DBL)0;
375
34.9k
    limiter->cor = FL2FXCONST_DBL(1.0f / (1 << 1));
376
34.9k
    limiter->smoothState0 = FL2FXCONST_DBL(1.0f / (1 << 1));
377
34.9k
    limiter->minGain = FL2FXCONST_DBL(1.0f / (1 << 1));
378
34.9k
    limiter->scaling = 0;
379
380
34.9k
    FDKmemset(limiter->maxBuf, 0, (limiter->attack + 1) * sizeof(FIXP_DBL));
381
34.9k
    FDKmemset(limiter->delayBuf, 0,
382
34.9k
              limiter->attack * limiter->channels * sizeof(FIXP_DBL));
383
34.9k
  } else {
384
0
    return TDLIMIT_INVALID_HANDLE;
385
0
  }
386
387
34.9k
  return TDLIMIT_OK;
388
34.9k
}
389
390
/* destroy limiter */
391
34.9k
TDLIMITER_ERROR pcmLimiter_Destroy(TDLimiterPtr limiter) {
392
34.9k
  if (limiter != NULL) {
393
34.9k
    FDKfree(limiter->maxBuf);
394
34.9k
    FDKfree(limiter->delayBuf);
395
396
34.9k
    FDKfree(limiter);
397
34.9k
  } else {
398
0
    return TDLIMIT_INVALID_HANDLE;
399
0
  }
400
34.9k
  return TDLIMIT_OK;
401
34.9k
}
402
403
/* get delay in samples */
404
336k
unsigned int pcmLimiter_GetDelay(TDLimiterPtr limiter) {
405
336k
  FDK_ASSERT(limiter != NULL);
406
336k
  return limiter->attack;
407
336k
}
408
409
/* get maximum gain reduction of last processed block */
410
0
INT pcmLimiter_GetMaxGainReduction(TDLimiterPtr limiter) {
411
  /* maximum gain reduction in dB = -20 * log10(limiter->minGain)
412
     = -20 * log2(limiter->minGain)/log2(10) = -6.0206*log2(limiter->minGain) */
413
0
  int e_ans;
414
0
  FIXP_DBL loggain, maxGainReduction;
415
416
0
  FDK_ASSERT(limiter != NULL);
417
418
0
  loggain = fLog2(limiter->minGain, 1, &e_ans);
419
420
0
  maxGainReduction = fMult(loggain, FL2FXCONST_DBL(-6.0206f / (1 << 3)));
421
422
0
  return fixp_roundToInt(maxGainReduction, (e_ans + 3));
423
0
}
424
425
/* set number of channels */
426
TDLIMITER_ERROR pcmLimiter_SetNChannels(TDLimiterPtr limiter,
427
336k
                                        unsigned int nChannels) {
428
336k
  if (limiter == NULL) return TDLIMIT_INVALID_HANDLE;
429
430
336k
  if (nChannels > limiter->maxChannels) return TDLIMIT_INVALID_PARAMETER;
431
432
336k
  limiter->channels = nChannels;
433
  // pcmLimiter_Reset(limiter);
434
435
336k
  return TDLIMIT_OK;
436
336k
}
437
438
/* set sampling rate */
439
TDLIMITER_ERROR pcmLimiter_SetSampleRate(TDLimiterPtr limiter,
440
336k
                                         UINT sampleRate) {
441
336k
  unsigned int attack, release;
442
336k
  FIXP_DBL attackConst, releaseConst, exponent;
443
336k
  INT e_ans;
444
445
336k
  if (limiter == NULL) return TDLIMIT_INVALID_HANDLE;
446
447
336k
  if (sampleRate > limiter->maxSampleRate) return TDLIMIT_INVALID_PARAMETER;
448
449
  /* update attack and release time in samples */
450
327k
  attack = (unsigned int)(limiter->attackMs * sampleRate / 1000);
451
327k
  release = (unsigned int)(limiter->releaseMs * sampleRate / 1000);
452
453
  /* attackConst = pow(0.1, 1.0 / (attack + 1)) */
454
327k
  exponent = invFixp(attack + 1);
455
327k
  attackConst = fPow(FL2FXCONST_DBL(0.1f), 0, exponent, 0, &e_ans);
456
327k
  attackConst = scaleValue(attackConst, e_ans);
457
458
  /* releaseConst  = (float)pow(0.1, 1.0 / (release + 1)) */
459
327k
  exponent = invFixp(release + 1);
460
327k
  releaseConst = fPow(FL2FXCONST_DBL(0.1f), 0, exponent, 0, &e_ans);
461
327k
  releaseConst = scaleValue(releaseConst, e_ans);
462
463
327k
  limiter->attack = attack;
464
327k
  limiter->attackConst = attackConst;
465
327k
  limiter->releaseConst = releaseConst;
466
327k
  limiter->sampleRate = sampleRate;
467
468
  /* reset */
469
  // pcmLimiter_Reset(limiter);
470
471
327k
  return TDLIMIT_OK;
472
336k
}
473
474
/* set attack time */
475
TDLIMITER_ERROR pcmLimiter_SetAttack(TDLimiterPtr limiter,
476
81.9k
                                     unsigned int attackMs) {
477
81.9k
  unsigned int attack;
478
81.9k
  FIXP_DBL attackConst, exponent;
479
81.9k
  INT e_ans;
480
481
81.9k
  if (limiter == NULL) return TDLIMIT_INVALID_HANDLE;
482
483
81.9k
  if (attackMs > limiter->maxAttackMs) return TDLIMIT_INVALID_PARAMETER;
484
485
  /* calculate attack time in samples */
486
81.9k
  attack = (unsigned int)(attackMs * limiter->sampleRate / 1000);
487
488
  /* attackConst = pow(0.1, 1.0 / (attack + 1)) */
489
81.9k
  exponent = invFixp(attack + 1);
490
81.9k
  attackConst = fPow(FL2FXCONST_DBL(0.1f), 0, exponent, 0, &e_ans);
491
81.9k
  attackConst = scaleValue(attackConst, e_ans);
492
493
81.9k
  limiter->attack = attack;
494
81.9k
  limiter->attackConst = attackConst;
495
81.9k
  limiter->attackMs = attackMs;
496
497
81.9k
  return TDLIMIT_OK;
498
81.9k
}
499
500
/* set release time */
501
TDLIMITER_ERROR pcmLimiter_SetRelease(TDLimiterPtr limiter,
502
0
                                      unsigned int releaseMs) {
503
0
  unsigned int release;
504
0
  FIXP_DBL releaseConst, exponent;
505
0
  INT e_ans;
506
507
0
  if (limiter == NULL) return TDLIMIT_INVALID_HANDLE;
508
509
  /* calculate  release time in samples */
510
0
  release = (unsigned int)(releaseMs * limiter->sampleRate / 1000);
511
512
  /* releaseConst  = (float)pow(0.1, 1.0 / (release + 1)) */
513
0
  exponent = invFixp(release + 1);
514
0
  releaseConst = fPow(FL2FXCONST_DBL(0.1f), 0, exponent, 0, &e_ans);
515
0
  releaseConst = scaleValue(releaseConst, e_ans);
516
517
0
  limiter->releaseConst = releaseConst;
518
0
  limiter->releaseMs = releaseMs;
519
520
0
  return TDLIMIT_OK;
521
0
}
522
523
/* Get library info for this module. */
524
0
TDLIMITER_ERROR pcmLimiter_GetLibInfo(LIB_INFO* info) {
525
0
  int i;
526
527
0
  if (info == NULL) {
528
0
    return TDLIMIT_INVALID_PARAMETER;
529
0
  }
530
531
  /* Search for next free tab */
532
0
  for (i = 0; i < FDK_MODULE_LAST; i++) {
533
0
    if (info[i].module_id == FDK_NONE) break;
534
0
  }
535
0
  if (i == FDK_MODULE_LAST) {
536
0
    return TDLIMIT_UNKNOWN;
537
0
  }
538
539
  /* Add the library info */
540
0
  info[i].module_id = FDK_TDLIMIT;
541
0
  info[i].version =
542
0
      LIB_VERSION(PCMUTIL_LIB_VL0, PCMUTIL_LIB_VL1, PCMUTIL_LIB_VL2);
543
0
  LIB_VERSION_STRING(info + i);
544
0
  info[i].build_date = PCMUTIL_LIB_BUILD_DATE;
545
0
  info[i].build_time = PCMUTIL_LIB_BUILD_TIME;
546
0
  info[i].title = TDLIMIT_LIB_TITLE;
547
548
  /* Set flags */
549
0
  info[i].flags = CAPF_LIMITER;
550
551
  /* Add lib info for FDK tools (if not yet done). */
552
0
  FDK_toolsGetLibInfo(info);
553
554
0
  return TDLIMIT_OK;
555
0
}