Coverage Report

Created: 2025-11-16 07:20

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/src/fdk-aac/libFDK/include/fft.h
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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 - 2018 Fraunhofer-Gesellschaft zur Förderung der angewandten
5
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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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
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deployed. AAC has been standardized by ISO and IEC as part of the MPEG
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specifications.
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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
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already be covered under those patent licenses when it is used for those
27
licensed purposes only.
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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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36
Redistribution and use in source and binary forms, with or without modification,
37
are permitted without payment of copyright license fees provided that you
38
satisfy the following conditions:
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40
You must retain the complete text of this software license in redistributions of
41
the FDK AAC Codec or your modifications thereto in source code form.
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43
You must retain the complete text of this software license in the documentation
44
and/or other materials provided with redistributions of the FDK AAC Codec or
45
your modifications thereto in binary form. You must make available free of
46
charge copies of the complete source code of the FDK AAC Codec and your
47
modifications thereto to recipients of copies in binary form.
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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
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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
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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
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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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/******************* Library for basic calculation routines ********************
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   Author(s):   Josef Hoepfl, DSP Solutions
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   Description: Fix point FFT
100
101
*******************************************************************************/
102
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#ifndef FFT_H
104
#define FFT_H
105
106
#include "common_fix.h"
107
108
/**
109
 * \brief Perform an inplace complex valued FFT of length 2^n
110
 *
111
 * \param length Length of the FFT to be calculated.
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 * \param pInput Input/Output data buffer. The input data must have at least 1
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 * bit scale headroom. The values are interleaved, real/imag pairs.
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 * \param scalefactor Pointer to an INT, which contains the current scale of the
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 * input data, which is updated according to the FFT scale.
116
 */
117
void fft(int length, FIXP_DBL *pInput, INT *scalefactor);
118
119
/**
120
 * \brief Perform an inplace complex valued IFFT of length 2^n
121
 *
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 * \param length Length of the FFT to be calculated.
123
 * \param pInput Input/Output data buffer. The input data must have at least 1
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 * bit scale headroom. The values are interleaved, real/imag pairs.
125
 * \param scalefactor Pointer to an INT, which contains the current scale of the
126
 * input data, which is updated according to the IFFT scale.
127
 */
128
void ifft(int length, FIXP_DBL *pInput, INT *scalefactor);
129
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/*
131
 * Frequently used and fixed short length FFTs.
132
 */
133
134
#ifndef FUNCTION_fft_4
135
/**
136
 * \brief Perform an inplace complex valued FFT of length 4
137
 *
138
 * \param pInput Input/Output data buffer. The input data must have at least 1
139
 * bit scale headroom. The values are interleaved, real/imag pairs.
140
 */
141
LNK_SECTION_CODE_L1
142
3.28M
static inline void fft_4(FIXP_DBL *x) {
143
3.28M
  FIXP_DBL a00, a10, a20, a30, tmp0, tmp1;
144
145
3.28M
  a00 = (x[0] + x[4]) >> 1; /* Re A + Re B */
146
3.28M
  a10 = (x[2] + x[6]) >> 1; /* Re C + Re D */
147
3.28M
  a20 = (x[1] + x[5]) >> 1; /* Im A + Im B */
148
3.28M
  a30 = (x[3] + x[7]) >> 1; /* Im C + Im D */
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150
3.28M
  x[0] = a00 + a10; /* Re A' = Re A + Re B + Re C + Re D */
151
3.28M
  x[1] = a20 + a30; /* Im A' = Im A + Im B + Im C + Im D */
152
153
3.28M
  tmp0 = a00 - x[4]; /* Re A - Re B */
154
3.28M
  tmp1 = a20 - x[5]; /* Im A - Im B */
155
156
3.28M
  x[4] = a00 - a10; /* Re C' = Re A + Re B - Re C - Re D */
157
3.28M
  x[5] = a20 - a30; /* Im C' = Im A + Im B - Im C - Im D */
158
159
3.28M
  a10 = a10 - x[6]; /* Re C - Re D */
160
3.28M
  a30 = a30 - x[7]; /* Im C - Im D */
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162
3.28M
  x[2] = tmp0 + a30; /* Re B' = Re A - Re B + Im C - Im D */
163
3.28M
  x[6] = tmp0 - a30; /* Re D' = Re A - Re B - Im C + Im D */
164
3.28M
  x[3] = tmp1 - a10; /* Im B' = Im A - Im B - Re C + Re D */
165
3.28M
  x[7] = tmp1 + a10; /* Im D' = Im A - Im B + Re C - Re D */
166
3.28M
}
Unexecuted instantiation: usacdec_lpd.cpp:fft_4(int*)
Unexecuted instantiation: FDK_hybrid.cpp:fft_4(int*)
Unexecuted instantiation: dct.cpp:fft_4(int*)
fft.cpp:fft_4(int*)
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Source
142
3.28M
static inline void fft_4(FIXP_DBL *x) {
143
3.28M
  FIXP_DBL a00, a10, a20, a30, tmp0, tmp1;
144
145
3.28M
  a00 = (x[0] + x[4]) >> 1; /* Re A + Re B */
146
3.28M
  a10 = (x[2] + x[6]) >> 1; /* Re C + Re D */
147
3.28M
  a20 = (x[1] + x[5]) >> 1; /* Im A + Im B */
148
3.28M
  a30 = (x[3] + x[7]) >> 1; /* Im C + Im D */
149
150
3.28M
  x[0] = a00 + a10; /* Re A' = Re A + Re B + Re C + Re D */
151
3.28M
  x[1] = a20 + a30; /* Im A' = Im A + Im B + Im C + Im D */
152
153
3.28M
  tmp0 = a00 - x[4]; /* Re A - Re B */
154
3.28M
  tmp1 = a20 - x[5]; /* Im A - Im B */
155
156
3.28M
  x[4] = a00 - a10; /* Re C' = Re A + Re B - Re C - Re D */
157
3.28M
  x[5] = a20 - a30; /* Im C' = Im A + Im B - Im C - Im D */
158
159
3.28M
  a10 = a10 - x[6]; /* Re C - Re D */
160
3.28M
  a30 = a30 - x[7]; /* Im C - Im D */
161
162
3.28M
  x[2] = tmp0 + a30; /* Re B' = Re A - Re B + Im C - Im D */
163
3.28M
  x[6] = tmp0 - a30; /* Re D' = Re A - Re B - Im C + Im D */
164
3.28M
  x[3] = tmp1 - a10; /* Im B' = Im A - Im B - Re C + Re D */
165
3.28M
  x[7] = tmp1 + a10; /* Im D' = Im A - Im B + Re C - Re D */
166
3.28M
}
167
#endif /* FUNCTION_fft_4 */
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169
#ifndef FUNCTION_fft_8
170
LNK_SECTION_CODE_L1
171
14.3M
static inline void fft_8(FIXP_DBL *x) {
172
14.3M
  FIXP_SPK w_PiFOURTH = {{FIXP_SGL(0x5A82), FIXP_SGL(0x5A82)}};
173
174
14.3M
  FIXP_DBL a00, a10, a20, a30;
175
14.3M
  FIXP_DBL y[16];
176
177
14.3M
  a00 = (x[0] + x[8]) >> 1;
178
14.3M
  a10 = x[4] + x[12];
179
14.3M
  a20 = (x[1] + x[9]) >> 1;
180
14.3M
  a30 = x[5] + x[13];
181
182
14.3M
  y[0] = a00 + (a10 >> 1);
183
14.3M
  y[4] = a00 - (a10 >> 1);
184
14.3M
  y[1] = a20 + (a30 >> 1);
185
14.3M
  y[5] = a20 - (a30 >> 1);
186
187
14.3M
  a00 = a00 - x[8];
188
14.3M
  a10 = (a10 >> 1) - x[12];
189
14.3M
  a20 = a20 - x[9];
190
14.3M
  a30 = (a30 >> 1) - x[13];
191
192
14.3M
  y[2] = a00 + a30;
193
14.3M
  y[6] = a00 - a30;
194
14.3M
  y[3] = a20 - a10;
195
14.3M
  y[7] = a20 + a10;
196
197
14.3M
  a00 = (x[2] + x[10]) >> 1;
198
14.3M
  a10 = x[6] + x[14];
199
14.3M
  a20 = (x[3] + x[11]) >> 1;
200
14.3M
  a30 = x[7] + x[15];
201
202
14.3M
  y[8] = a00 + (a10 >> 1);
203
14.3M
  y[12] = a00 - (a10 >> 1);
204
14.3M
  y[9] = a20 + (a30 >> 1);
205
14.3M
  y[13] = a20 - (a30 >> 1);
206
207
14.3M
  a00 = a00 - x[10];
208
14.3M
  a10 = (a10 >> 1) - x[14];
209
14.3M
  a20 = a20 - x[11];
210
14.3M
  a30 = (a30 >> 1) - x[15];
211
212
14.3M
  y[10] = a00 + a30;
213
14.3M
  y[14] = a00 - a30;
214
14.3M
  y[11] = a20 - a10;
215
14.3M
  y[15] = a20 + a10;
216
217
14.3M
  FIXP_DBL vr, vi, ur, ui;
218
219
14.3M
  ur = y[0] >> 1;
220
14.3M
  ui = y[1] >> 1;
221
14.3M
  vr = y[8];
222
14.3M
  vi = y[9];
223
14.3M
  x[0] = ur + (vr >> 1);
224
14.3M
  x[1] = ui + (vi >> 1);
225
14.3M
  x[8] = ur - (vr >> 1);
226
14.3M
  x[9] = ui - (vi >> 1);
227
228
14.3M
  ur = y[4] >> 1;
229
14.3M
  ui = y[5] >> 1;
230
14.3M
  vi = y[12];
231
14.3M
  vr = y[13];
232
14.3M
  x[4] = ur + (vr >> 1);
233
14.3M
  x[5] = ui - (vi >> 1);
234
14.3M
  x[12] = ur - (vr >> 1);
235
14.3M
  x[13] = ui + (vi >> 1);
236
237
14.3M
  ur = y[10];
238
14.3M
  ui = y[11];
239
240
14.3M
  cplxMultDiv2(&vi, &vr, ui, ur, w_PiFOURTH);
241
242
14.3M
  ur = y[2];
243
14.3M
  ui = y[3];
244
14.3M
  x[2] = (ur >> 1) + vr;
245
14.3M
  x[3] = (ui >> 1) + vi;
246
14.3M
  x[10] = (ur >> 1) - vr;
247
14.3M
  x[11] = (ui >> 1) - vi;
248
249
14.3M
  ur = y[14];
250
14.3M
  ui = y[15];
251
252
14.3M
  cplxMultDiv2(&vr, &vi, ui, ur, w_PiFOURTH);
253
254
14.3M
  ur = y[6];
255
14.3M
  ui = y[7];
256
14.3M
  x[6] = (ur >> 1) + vr;
257
14.3M
  x[7] = (ui >> 1) - vi;
258
14.3M
  x[14] = (ur >> 1) - vr;
259
14.3M
  x[15] = (ui >> 1) + vi;
260
14.3M
}
Unexecuted instantiation: usacdec_lpd.cpp:fft_8(int*)
FDK_hybrid.cpp:fft_8(int*)
Line
Count
Source
171
4.80M
static inline void fft_8(FIXP_DBL *x) {
172
4.80M
  FIXP_SPK w_PiFOURTH = {{FIXP_SGL(0x5A82), FIXP_SGL(0x5A82)}};
173
174
4.80M
  FIXP_DBL a00, a10, a20, a30;
175
4.80M
  FIXP_DBL y[16];
176
177
4.80M
  a00 = (x[0] + x[8]) >> 1;
178
4.80M
  a10 = x[4] + x[12];
179
4.80M
  a20 = (x[1] + x[9]) >> 1;
180
4.80M
  a30 = x[5] + x[13];
181
182
4.80M
  y[0] = a00 + (a10 >> 1);
183
4.80M
  y[4] = a00 - (a10 >> 1);
184
4.80M
  y[1] = a20 + (a30 >> 1);
185
4.80M
  y[5] = a20 - (a30 >> 1);
186
187
4.80M
  a00 = a00 - x[8];
188
4.80M
  a10 = (a10 >> 1) - x[12];
189
4.80M
  a20 = a20 - x[9];
190
4.80M
  a30 = (a30 >> 1) - x[13];
191
192
4.80M
  y[2] = a00 + a30;
193
4.80M
  y[6] = a00 - a30;
194
4.80M
  y[3] = a20 - a10;
195
4.80M
  y[7] = a20 + a10;
196
197
4.80M
  a00 = (x[2] + x[10]) >> 1;
198
4.80M
  a10 = x[6] + x[14];
199
4.80M
  a20 = (x[3] + x[11]) >> 1;
200
4.80M
  a30 = x[7] + x[15];
201
202
4.80M
  y[8] = a00 + (a10 >> 1);
203
4.80M
  y[12] = a00 - (a10 >> 1);
204
4.80M
  y[9] = a20 + (a30 >> 1);
205
4.80M
  y[13] = a20 - (a30 >> 1);
206
207
4.80M
  a00 = a00 - x[10];
208
4.80M
  a10 = (a10 >> 1) - x[14];
209
4.80M
  a20 = a20 - x[11];
210
4.80M
  a30 = (a30 >> 1) - x[15];
211
212
4.80M
  y[10] = a00 + a30;
213
4.80M
  y[14] = a00 - a30;
214
4.80M
  y[11] = a20 - a10;
215
4.80M
  y[15] = a20 + a10;
216
217
4.80M
  FIXP_DBL vr, vi, ur, ui;
218
219
4.80M
  ur = y[0] >> 1;
220
4.80M
  ui = y[1] >> 1;
221
4.80M
  vr = y[8];
222
4.80M
  vi = y[9];
223
4.80M
  x[0] = ur + (vr >> 1);
224
4.80M
  x[1] = ui + (vi >> 1);
225
4.80M
  x[8] = ur - (vr >> 1);
226
4.80M
  x[9] = ui - (vi >> 1);
227
228
4.80M
  ur = y[4] >> 1;
229
4.80M
  ui = y[5] >> 1;
230
4.80M
  vi = y[12];
231
4.80M
  vr = y[13];
232
4.80M
  x[4] = ur + (vr >> 1);
233
4.80M
  x[5] = ui - (vi >> 1);
234
4.80M
  x[12] = ur - (vr >> 1);
235
4.80M
  x[13] = ui + (vi >> 1);
236
237
4.80M
  ur = y[10];
238
4.80M
  ui = y[11];
239
240
4.80M
  cplxMultDiv2(&vi, &vr, ui, ur, w_PiFOURTH);
241
242
4.80M
  ur = y[2];
243
4.80M
  ui = y[3];
244
4.80M
  x[2] = (ur >> 1) + vr;
245
4.80M
  x[3] = (ui >> 1) + vi;
246
4.80M
  x[10] = (ur >> 1) - vr;
247
4.80M
  x[11] = (ui >> 1) - vi;
248
249
4.80M
  ur = y[14];
250
4.80M
  ui = y[15];
251
252
4.80M
  cplxMultDiv2(&vr, &vi, ui, ur, w_PiFOURTH);
253
254
4.80M
  ur = y[6];
255
4.80M
  ui = y[7];
256
4.80M
  x[6] = (ur >> 1) + vr;
257
4.80M
  x[7] = (ui >> 1) - vi;
258
4.80M
  x[14] = (ur >> 1) - vr;
259
4.80M
  x[15] = (ui >> 1) + vi;
260
4.80M
}
Unexecuted instantiation: dct.cpp:fft_8(int*)
fft.cpp:fft_8(int*)
Line
Count
Source
171
9.58M
static inline void fft_8(FIXP_DBL *x) {
172
9.58M
  FIXP_SPK w_PiFOURTH = {{FIXP_SGL(0x5A82), FIXP_SGL(0x5A82)}};
173
174
9.58M
  FIXP_DBL a00, a10, a20, a30;
175
9.58M
  FIXP_DBL y[16];
176
177
9.58M
  a00 = (x[0] + x[8]) >> 1;
178
9.58M
  a10 = x[4] + x[12];
179
9.58M
  a20 = (x[1] + x[9]) >> 1;
180
9.58M
  a30 = x[5] + x[13];
181
182
9.58M
  y[0] = a00 + (a10 >> 1);
183
9.58M
  y[4] = a00 - (a10 >> 1);
184
9.58M
  y[1] = a20 + (a30 >> 1);
185
9.58M
  y[5] = a20 - (a30 >> 1);
186
187
9.58M
  a00 = a00 - x[8];
188
9.58M
  a10 = (a10 >> 1) - x[12];
189
9.58M
  a20 = a20 - x[9];
190
9.58M
  a30 = (a30 >> 1) - x[13];
191
192
9.58M
  y[2] = a00 + a30;
193
9.58M
  y[6] = a00 - a30;
194
9.58M
  y[3] = a20 - a10;
195
9.58M
  y[7] = a20 + a10;
196
197
9.58M
  a00 = (x[2] + x[10]) >> 1;
198
9.58M
  a10 = x[6] + x[14];
199
9.58M
  a20 = (x[3] + x[11]) >> 1;
200
9.58M
  a30 = x[7] + x[15];
201
202
9.58M
  y[8] = a00 + (a10 >> 1);
203
9.58M
  y[12] = a00 - (a10 >> 1);
204
9.58M
  y[9] = a20 + (a30 >> 1);
205
9.58M
  y[13] = a20 - (a30 >> 1);
206
207
9.58M
  a00 = a00 - x[10];
208
9.58M
  a10 = (a10 >> 1) - x[14];
209
9.58M
  a20 = a20 - x[11];
210
9.58M
  a30 = (a30 >> 1) - x[15];
211
212
9.58M
  y[10] = a00 + a30;
213
9.58M
  y[14] = a00 - a30;
214
9.58M
  y[11] = a20 - a10;
215
9.58M
  y[15] = a20 + a10;
216
217
9.58M
  FIXP_DBL vr, vi, ur, ui;
218
219
9.58M
  ur = y[0] >> 1;
220
9.58M
  ui = y[1] >> 1;
221
9.58M
  vr = y[8];
222
9.58M
  vi = y[9];
223
9.58M
  x[0] = ur + (vr >> 1);
224
9.58M
  x[1] = ui + (vi >> 1);
225
9.58M
  x[8] = ur - (vr >> 1);
226
9.58M
  x[9] = ui - (vi >> 1);
227
228
9.58M
  ur = y[4] >> 1;
229
9.58M
  ui = y[5] >> 1;
230
9.58M
  vi = y[12];
231
9.58M
  vr = y[13];
232
9.58M
  x[4] = ur + (vr >> 1);
233
9.58M
  x[5] = ui - (vi >> 1);
234
9.58M
  x[12] = ur - (vr >> 1);
235
9.58M
  x[13] = ui + (vi >> 1);
236
237
9.58M
  ur = y[10];
238
9.58M
  ui = y[11];
239
240
9.58M
  cplxMultDiv2(&vi, &vr, ui, ur, w_PiFOURTH);
241
242
9.58M
  ur = y[2];
243
9.58M
  ui = y[3];
244
9.58M
  x[2] = (ur >> 1) + vr;
245
9.58M
  x[3] = (ui >> 1) + vi;
246
9.58M
  x[10] = (ur >> 1) - vr;
247
9.58M
  x[11] = (ui >> 1) - vi;
248
249
9.58M
  ur = y[14];
250
9.58M
  ui = y[15];
251
252
9.58M
  cplxMultDiv2(&vr, &vi, ui, ur, w_PiFOURTH);
253
254
9.58M
  ur = y[6];
255
9.58M
  ui = y[7];
256
9.58M
  x[6] = (ur >> 1) + vr;
257
9.58M
  x[7] = (ui >> 1) - vi;
258
9.58M
  x[14] = (ur >> 1) - vr;
259
9.58M
  x[15] = (ui >> 1) + vi;
260
9.58M
}
261
#endif /* FUNCTION_fft_8 */
262
263
#endif