Coverage Report

Created: 2026-05-23 07:06

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/fdk-aac/libFDK/include/FDK_trigFcts.h
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1
/* -----------------------------------------------------------------------------
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Software License for The Fraunhofer FDK AAC Codec Library for Android
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© Copyright  1995 - 2018 Fraunhofer-Gesellschaft zur Förderung der angewandten
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Forschung e.V. All rights reserved.
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7
 1.    INTRODUCTION
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The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
9
that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
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scheme for digital audio. This FDK AAC Codec software is intended to be used on
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a wide variety of Android devices.
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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
17
specifications.
18
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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
32
information and documentation.
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2.    COPYRIGHT LICENSE
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Redistribution and use in source and binary forms, with or without modification,
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are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
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You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
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You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
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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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
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limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
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Fraunhofer provides no warranty of patent non-infringement with respect to this
66
software.
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You may use this FDK AAC Codec software or modifications thereto only for
69
purposes that are authorized by appropriate patent licenses.
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4.    DISCLAIMER
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This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
74
holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
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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
79
goods or services; loss of use, data, or profits, or business interruption,
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however caused and on any theory of liability, whether in contract, strict
81
liability, or tort (including negligence), arising in any way out of the use of
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this software, even if advised of the possibility of such damage.
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5.    CONTACT INFORMATION
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Fraunhofer Institute for Integrated Circuits IIS
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Attention: Audio and Multimedia Departments - FDK AAC LL
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Am Wolfsmantel 33
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91058 Erlangen, Germany
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www.iis.fraunhofer.de/amm
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amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
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95
/******************* Library for basic calculation routines ********************
96
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   Author(s):   Haricharan Lakshman, Manuel Jander
98
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   Description: Trigonometric functions fixed point fractional implementation.
100
101
*******************************************************************************/
102
103
#if !defined(FDK_TRIGFCTS_H)
104
#define FDK_TRIGFCTS_H
105
106
#include "common_fix.h"
107
108
#include "FDK_tools_rom.h"
109
110
/* Fixed point precision definitions */
111
#define Q(format) ((FIXP_DBL)(((LONG)1) << (format)))
112
113
#ifndef M_PI
114
#define M_PI (3.14159265358979323846f)
115
#endif
116
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/*!
118
 * Inverse tangent function.
119
 */
120
121
/* --- fixp_atan() ----    */
122
0
#define Q_ATANINP (25)  // Input in q25, Output in q30
123
0
#define Q_ATANOUT (30)
124
0
#define ATI_SF ((DFRACT_BITS - 1) - Q_ATANINP) /* 6  */
125
#define ATI_SCALE ((float)(1 << ATI_SF))
126
0
#define ATO_SF ((DFRACT_BITS - 1) - Q_ATANOUT) /* 1   ] -pi/2 .. pi/2 [ */
127
#define ATO_SCALE ((float)(1 << ATO_SF))
128
/* --- fixp_atan2() ---    */
129
0
#define Q_ATAN2OUT (29)
130
0
#define AT2O_SF ((DFRACT_BITS - 1) - Q_ATAN2OUT) /* 2   ] -pi   .. pi   ] */
131
#define AT2O_SCALE ((float)(1 << AT2O_SF))
132
// --------------------
133
134
FIXP_DBL fixp_atan(FIXP_DBL x);
135
FIXP_DBL fixp_atan2(FIXP_DBL y, FIXP_DBL x);
136
137
FIXP_DBL fixp_cos(FIXP_DBL x, int scale);
138
FIXP_DBL fixp_sin(FIXP_DBL x, int scale);
139
140
#define FIXP_COS_SIN
141
142
#include "FDK_tools_rom.h"
143
144
230M
#define SINETAB SineTable512
145
1.79G
#define LD 9
146
147
#ifndef FUNCTION_inline_fixp_cos_sin
148
149
#define FUNCTION_inline_fixp_cos_sin
150
151
/*
152
 * Calculates coarse lookup index and sign for sine.
153
 * Returns delta x residual.
154
 */
155
static inline FIXP_DBL fixp_sin_cos_residual_inline(FIXP_DBL x, int scale,
156
                                                    FIXP_DBL *sine,
157
230M
                                                    FIXP_DBL *cosine) {
158
230M
  FIXP_DBL residual;
159
230M
  int s;
160
230M
  int shift = (31 - scale - LD - 1);
161
230M
  int ssign = 1;
162
230M
  int csign = 1;
163
164
230M
  residual = fMult(x, FL2FXCONST_DBL(1.0 / M_PI));
165
230M
  s = ((LONG)residual) >> shift;
166
167
230M
  residual &= ((1 << shift) - 1);
168
230M
  residual = fMult(residual, FL2FXCONST_DBL(M_PI / 4.0)) << 2;
169
230M
  residual <<= scale;
170
171
  /* Sine sign symmetry */
172
230M
  if (s & ((1 << LD) << 1)) {
173
295k
    ssign = -ssign;
174
295k
  }
175
  /* Cosine sign symmetry */
176
230M
  if ((s + (1 << LD)) & ((1 << LD) << 1)) {
177
81.2M
    csign = -csign;
178
81.2M
  }
179
180
230M
  s = fAbs(s);
181
182
230M
  s &= (((1 << LD) << 1) - 1); /* Modulo PI */
183
184
230M
  if (s > (1 << LD)) {
185
81.3M
    s = ((1 << LD) << 1) - s;
186
81.3M
  }
187
188
230M
  {
189
230M
    LONG sl, cl;
190
    /* Because of packed table */
191
230M
    if (s > (1 << (LD - 1))) {
192
98.4M
      FIXP_STP tmp;
193
      /* Cosine/Sine simetry for angles greater than PI/4 */
194
98.4M
      s = (1 << LD) - s;
195
98.4M
      tmp = SINETAB[s];
196
98.4M
      sl = (LONG)tmp.v.re;
197
98.4M
      cl = (LONG)tmp.v.im;
198
132M
    } else {
199
132M
      FIXP_STP tmp;
200
132M
      tmp = SINETAB[s];
201
132M
      sl = (LONG)tmp.v.im;
202
132M
      cl = (LONG)tmp.v.re;
203
132M
    }
204
205
230M
#ifdef SINETABLE_16BIT
206
230M
    *sine = (FIXP_DBL)((sl * ssign) << (DFRACT_BITS - FRACT_BITS));
207
230M
    *cosine = (FIXP_DBL)((cl * csign) << (DFRACT_BITS - FRACT_BITS));
208
#else
209
    /* scale down by 1 for overflow prevention. This is undone at the calling
210
     * function. */
211
    *sine = (FIXP_DBL)(sl * ssign) >> 1;
212
    *cosine = (FIXP_DBL)(cl * csign) >> 1;
213
#endif
214
230M
  }
215
216
230M
  return residual;
217
230M
}
Unexecuted instantiation: usacdec_lpc.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
FDK_trigFcts.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Line
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Source
157
178M
                                                    FIXP_DBL *cosine) {
158
178M
  FIXP_DBL residual;
159
178M
  int s;
160
178M
  int shift = (31 - scale - LD - 1);
161
178M
  int ssign = 1;
162
178M
  int csign = 1;
163
164
178M
  residual = fMult(x, FL2FXCONST_DBL(1.0 / M_PI));
165
178M
  s = ((LONG)residual) >> shift;
166
167
178M
  residual &= ((1 << shift) - 1);
168
178M
  residual = fMult(residual, FL2FXCONST_DBL(M_PI / 4.0)) << 2;
169
178M
  residual <<= scale;
170
171
  /* Sine sign symmetry */
172
178M
  if (s & ((1 << LD) << 1)) {
173
0
    ssign = -ssign;
174
0
  }
175
  /* Cosine sign symmetry */
176
178M
  if ((s + (1 << LD)) & ((1 << LD) << 1)) {
177
81.1M
    csign = -csign;
178
81.1M
  }
179
180
178M
  s = fAbs(s);
181
182
178M
  s &= (((1 << LD) << 1) - 1); /* Modulo PI */
183
184
178M
  if (s > (1 << LD)) {
185
81.1M
    s = ((1 << LD) << 1) - s;
186
81.1M
  }
187
188
178M
  {
189
178M
    LONG sl, cl;
190
    /* Because of packed table */
191
178M
    if (s > (1 << (LD - 1))) {
192
98.3M
      FIXP_STP tmp;
193
      /* Cosine/Sine simetry for angles greater than PI/4 */
194
98.3M
      s = (1 << LD) - s;
195
98.3M
      tmp = SINETAB[s];
196
98.3M
      sl = (LONG)tmp.v.re;
197
98.3M
      cl = (LONG)tmp.v.im;
198
98.3M
    } else {
199
80.3M
      FIXP_STP tmp;
200
80.3M
      tmp = SINETAB[s];
201
80.3M
      sl = (LONG)tmp.v.im;
202
80.3M
      cl = (LONG)tmp.v.re;
203
80.3M
    }
204
205
178M
#ifdef SINETABLE_16BIT
206
178M
    *sine = (FIXP_DBL)((sl * ssign) << (DFRACT_BITS - FRACT_BITS));
207
178M
    *cosine = (FIXP_DBL)((cl * csign) << (DFRACT_BITS - FRACT_BITS));
208
#else
209
    /* scale down by 1 for overflow prevention. This is undone at the calling
210
     * function. */
211
    *sine = (FIXP_DBL)(sl * ssign) >> 1;
212
    *cosine = (FIXP_DBL)(cl * csign) >> 1;
213
#endif
214
178M
  }
215
216
178M
  return residual;
217
178M
}
Unexecuted instantiation: qmf.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Unexecuted instantiation: block.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Unexecuted instantiation: sac_dec.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
sac_process.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Line
Count
Source
157
49.9M
                                                    FIXP_DBL *cosine) {
158
49.9M
  FIXP_DBL residual;
159
49.9M
  int s;
160
49.9M
  int shift = (31 - scale - LD - 1);
161
49.9M
  int ssign = 1;
162
49.9M
  int csign = 1;
163
164
49.9M
  residual = fMult(x, FL2FXCONST_DBL(1.0 / M_PI));
165
49.9M
  s = ((LONG)residual) >> shift;
166
167
49.9M
  residual &= ((1 << shift) - 1);
168
49.9M
  residual = fMult(residual, FL2FXCONST_DBL(M_PI / 4.0)) << 2;
169
49.9M
  residual <<= scale;
170
171
  /* Sine sign symmetry */
172
49.9M
  if (s & ((1 << LD) << 1)) {
173
247k
    ssign = -ssign;
174
247k
  }
175
  /* Cosine sign symmetry */
176
49.9M
  if ((s + (1 << LD)) & ((1 << LD) << 1)) {
177
91.7k
    csign = -csign;
178
91.7k
  }
179
180
49.9M
  s = fAbs(s);
181
182
49.9M
  s &= (((1 << LD) << 1) - 1); /* Modulo PI */
183
184
49.9M
  if (s > (1 << LD)) {
185
177k
    s = ((1 << LD) << 1) - s;
186
177k
  }
187
188
49.9M
  {
189
49.9M
    LONG sl, cl;
190
    /* Because of packed table */
191
49.9M
    if (s > (1 << (LD - 1))) {
192
99.0k
      FIXP_STP tmp;
193
      /* Cosine/Sine simetry for angles greater than PI/4 */
194
99.0k
      s = (1 << LD) - s;
195
99.0k
      tmp = SINETAB[s];
196
99.0k
      sl = (LONG)tmp.v.re;
197
99.0k
      cl = (LONG)tmp.v.im;
198
49.8M
    } else {
199
49.8M
      FIXP_STP tmp;
200
49.8M
      tmp = SINETAB[s];
201
49.8M
      sl = (LONG)tmp.v.im;
202
49.8M
      cl = (LONG)tmp.v.re;
203
49.8M
    }
204
205
49.9M
#ifdef SINETABLE_16BIT
206
49.9M
    *sine = (FIXP_DBL)((sl * ssign) << (DFRACT_BITS - FRACT_BITS));
207
49.9M
    *cosine = (FIXP_DBL)((cl * csign) << (DFRACT_BITS - FRACT_BITS));
208
#else
209
    /* scale down by 1 for overflow prevention. This is undone at the calling
210
     * function. */
211
    *sine = (FIXP_DBL)(sl * ssign) >> 1;
212
    *cosine = (FIXP_DBL)(cl * csign) >> 1;
213
#endif
214
49.9M
  }
215
216
49.9M
  return residual;
217
49.9M
}
psdec.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Line
Count
Source
157
1.85M
                                                    FIXP_DBL *cosine) {
158
1.85M
  FIXP_DBL residual;
159
1.85M
  int s;
160
1.85M
  int shift = (31 - scale - LD - 1);
161
1.85M
  int ssign = 1;
162
1.85M
  int csign = 1;
163
164
1.85M
  residual = fMult(x, FL2FXCONST_DBL(1.0 / M_PI));
165
1.85M
  s = ((LONG)residual) >> shift;
166
167
1.85M
  residual &= ((1 << shift) - 1);
168
1.85M
  residual = fMult(residual, FL2FXCONST_DBL(M_PI / 4.0)) << 2;
169
1.85M
  residual <<= scale;
170
171
  /* Sine sign symmetry */
172
1.85M
  if (s & ((1 << LD) << 1)) {
173
48.0k
    ssign = -ssign;
174
48.0k
  }
175
  /* Cosine sign symmetry */
176
1.85M
  if ((s + (1 << LD)) & ((1 << LD) << 1)) {
177
9.21k
    csign = -csign;
178
9.21k
  }
179
180
1.85M
  s = fAbs(s);
181
182
1.85M
  s &= (((1 << LD) << 1) - 1); /* Modulo PI */
183
184
1.85M
  if (s > (1 << LD)) {
185
7.92k
    s = ((1 << LD) << 1) - s;
186
7.92k
  }
187
188
1.85M
  {
189
1.85M
    LONG sl, cl;
190
    /* Because of packed table */
191
1.85M
    if (s > (1 << (LD - 1))) {
192
16.9k
      FIXP_STP tmp;
193
      /* Cosine/Sine simetry for angles greater than PI/4 */
194
16.9k
      s = (1 << LD) - s;
195
16.9k
      tmp = SINETAB[s];
196
16.9k
      sl = (LONG)tmp.v.re;
197
16.9k
      cl = (LONG)tmp.v.im;
198
1.83M
    } else {
199
1.83M
      FIXP_STP tmp;
200
1.83M
      tmp = SINETAB[s];
201
1.83M
      sl = (LONG)tmp.v.im;
202
1.83M
      cl = (LONG)tmp.v.re;
203
1.83M
    }
204
205
1.85M
#ifdef SINETABLE_16BIT
206
1.85M
    *sine = (FIXP_DBL)((sl * ssign) << (DFRACT_BITS - FRACT_BITS));
207
1.85M
    *cosine = (FIXP_DBL)((cl * csign) << (DFRACT_BITS - FRACT_BITS));
208
#else
209
    /* scale down by 1 for overflow prevention. This is undone at the calling
210
     * function. */
211
    *sine = (FIXP_DBL)(sl * ssign) >> 1;
212
    *cosine = (FIXP_DBL)(cl * csign) >> 1;
213
#endif
214
1.85M
  }
215
216
1.85M
  return residual;
217
1.85M
}
Unexecuted instantiation: sac_calcM1andM2.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Unexecuted instantiation: sacenc_dmx_tdom_enh.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
Unexecuted instantiation: psy_configuration.cpp:fixp_sin_cos_residual_inline(int, int, int*, int*)
218
219
/**
220
 * \brief Calculate cosine and sine value each of 2 angles different angle
221
 * values.
222
 * \param x1 first angle value
223
 * \param x2 second angle value
224
 * \param scale exponent of x1 and x2
225
 * \param out pointer to 4 FIXP_DBL locations, were the values cos(x1), sin(x1),
226
 * cos(x2), sin(x2) will be stored into.
227
 */
228
static inline void inline_fixp_cos_sin(FIXP_DBL x1, FIXP_DBL x2,
229
25.8M
                                       const int scale, FIXP_DBL *out) {
230
25.8M
  FIXP_DBL residual, error0, error1, sine, cosine;
231
25.8M
  residual = fixp_sin_cos_residual_inline(x1, scale, &sine, &cosine);
232
25.8M
  error0 = fMultDiv2(sine, residual);
233
25.8M
  error1 = fMultDiv2(cosine, residual);
234
235
25.8M
#ifdef SINETABLE_16BIT
236
25.8M
  *out++ = cosine - (error0 << 1);
237
25.8M
  *out++ = sine + (error1 << 1);
238
#else
239
  /* Undo downscaling by 1 which was done at fixp_sin_cos_residual_inline */
240
  *out++ = SATURATE_LEFT_SHIFT(cosine - (error0 << 1), 1, DFRACT_BITS);
241
  *out++ = SATURATE_LEFT_SHIFT(sine + (error1 << 1), 1, DFRACT_BITS);
242
#endif
243
244
25.8M
  residual = fixp_sin_cos_residual_inline(x2, scale, &sine, &cosine);
245
25.8M
  error0 = fMultDiv2(sine, residual);
246
25.8M
  error1 = fMultDiv2(cosine, residual);
247
248
25.8M
#ifdef SINETABLE_16BIT
249
25.8M
  *out++ = cosine - (error0 << 1);
250
25.8M
  *out++ = sine + (error1 << 1);
251
#else
252
  *out++ = SATURATE_LEFT_SHIFT(cosine - (error0 << 1), 1, DFRACT_BITS);
253
  *out++ = SATURATE_LEFT_SHIFT(sine + (error1 << 1), 1, DFRACT_BITS);
254
#endif
255
25.8M
}
Unexecuted instantiation: usacdec_lpc.cpp:inline_fixp_cos_sin(int, int, int, int*)
Unexecuted instantiation: FDK_trigFcts.cpp:inline_fixp_cos_sin(int, int, int, int*)
Unexecuted instantiation: qmf.cpp:inline_fixp_cos_sin(int, int, int, int*)
Unexecuted instantiation: block.cpp:inline_fixp_cos_sin(int, int, int, int*)
Unexecuted instantiation: sac_dec.cpp:inline_fixp_cos_sin(int, int, int, int*)
sac_process.cpp:inline_fixp_cos_sin(int, int, int, int*)
Line
Count
Source
229
24.9M
                                       const int scale, FIXP_DBL *out) {
230
24.9M
  FIXP_DBL residual, error0, error1, sine, cosine;
231
24.9M
  residual = fixp_sin_cos_residual_inline(x1, scale, &sine, &cosine);
232
24.9M
  error0 = fMultDiv2(sine, residual);
233
24.9M
  error1 = fMultDiv2(cosine, residual);
234
235
24.9M
#ifdef SINETABLE_16BIT
236
24.9M
  *out++ = cosine - (error0 << 1);
237
24.9M
  *out++ = sine + (error1 << 1);
238
#else
239
  /* Undo downscaling by 1 which was done at fixp_sin_cos_residual_inline */
240
  *out++ = SATURATE_LEFT_SHIFT(cosine - (error0 << 1), 1, DFRACT_BITS);
241
  *out++ = SATURATE_LEFT_SHIFT(sine + (error1 << 1), 1, DFRACT_BITS);
242
#endif
243
244
24.9M
  residual = fixp_sin_cos_residual_inline(x2, scale, &sine, &cosine);
245
24.9M
  error0 = fMultDiv2(sine, residual);
246
24.9M
  error1 = fMultDiv2(cosine, residual);
247
248
24.9M
#ifdef SINETABLE_16BIT
249
24.9M
  *out++ = cosine - (error0 << 1);
250
24.9M
  *out++ = sine + (error1 << 1);
251
#else
252
  *out++ = SATURATE_LEFT_SHIFT(cosine - (error0 << 1), 1, DFRACT_BITS);
253
  *out++ = SATURATE_LEFT_SHIFT(sine + (error1 << 1), 1, DFRACT_BITS);
254
#endif
255
24.9M
}
psdec.cpp:inline_fixp_cos_sin(int, int, int, int*)
Line
Count
Source
229
925k
                                       const int scale, FIXP_DBL *out) {
230
925k
  FIXP_DBL residual, error0, error1, sine, cosine;
231
925k
  residual = fixp_sin_cos_residual_inline(x1, scale, &sine, &cosine);
232
925k
  error0 = fMultDiv2(sine, residual);
233
925k
  error1 = fMultDiv2(cosine, residual);
234
235
925k
#ifdef SINETABLE_16BIT
236
925k
  *out++ = cosine - (error0 << 1);
237
925k
  *out++ = sine + (error1 << 1);
238
#else
239
  /* Undo downscaling by 1 which was done at fixp_sin_cos_residual_inline */
240
  *out++ = SATURATE_LEFT_SHIFT(cosine - (error0 << 1), 1, DFRACT_BITS);
241
  *out++ = SATURATE_LEFT_SHIFT(sine + (error1 << 1), 1, DFRACT_BITS);
242
#endif
243
244
925k
  residual = fixp_sin_cos_residual_inline(x2, scale, &sine, &cosine);
245
925k
  error0 = fMultDiv2(sine, residual);
246
925k
  error1 = fMultDiv2(cosine, residual);
247
248
925k
#ifdef SINETABLE_16BIT
249
925k
  *out++ = cosine - (error0 << 1);
250
925k
  *out++ = sine + (error1 << 1);
251
#else
252
  *out++ = SATURATE_LEFT_SHIFT(cosine - (error0 << 1), 1, DFRACT_BITS);
253
  *out++ = SATURATE_LEFT_SHIFT(sine + (error1 << 1), 1, DFRACT_BITS);
254
#endif
255
925k
}
Unexecuted instantiation: sac_calcM1andM2.cpp:inline_fixp_cos_sin(int, int, int, int*)
Unexecuted instantiation: sacenc_dmx_tdom_enh.cpp:inline_fixp_cos_sin(int, int, int, int*)
Unexecuted instantiation: psy_configuration.cpp:inline_fixp_cos_sin(int, int, int, int*)
256
#endif
257
258
#endif /* !defined(FDK_TRIGFCTS_H) */