Coverage Report

Created: 2026-07-24 06:56

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aac/libSBRdec/src/hbe.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 - 2021 Fraunhofer-Gesellschaft zur Förderung der angewandten
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Forschung e.V. All rights reserved.
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 1.    INTRODUCTION
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The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
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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
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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
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those of Fraunhofer) may be obtained through Via Licensing
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(www.vialicensing.com) or through the respective patent owners individually for
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the purpose of encoding or decoding bit streams in products that are compliant
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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
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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
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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
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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
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satisfy the following conditions:
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You must retain the complete text of this software license in redistributions of
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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
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and/or other materials provided with redistributions of the FDK AAC Codec or
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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
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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
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the FDK AAC Codec software or your modifications thereto.
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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
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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
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software.
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You may use this FDK AAC Codec software or modifications thereto only for
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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
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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
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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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/**************************** SBR decoder library ******************************
96
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   Author(s):
98
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   Description:
100
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*******************************************************************************/
102
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/*!
104
  \file
105
  \brief  Fast FFT routines prototypes
106
  \author Fabian Haussel
107
*/
108
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#include "hbe.h"
110
#include "qmf.h"
111
#include "env_extr.h"
112
113
#define HBE_MAX_QMF_BANDS (40)
114
115
28.5M
#define HBE_MAX_OUT_SLOTS (11)
116
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#define QMF_WIN_LEN                                                          \
118
34.3M
  (12 + 6 - 4 - 1) /* 6 subband slots extra delay to align with HQ - 4 slots \
119
                      to compensate for critical sampling delay - 1 slot to  \
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                      align critical sampling exactly (w additional time     \
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                      domain delay)*/
122
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#ifndef PI
124
#define PI 3.14159265358979323846
125
#endif
126
127
static const int xProducts[MAX_STRETCH_HBE - 1] = {
128
    1, 1, 1}; /* Cross products on(1)/off(0) for T=2,3,4. */
129
static const int startSubband2kL[33] = {
130
    0, 0, 0, 0, 0, 0, 0,  2,  2,  2,  4,  4,  4,  4,  4,  6, 6,
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    6, 8, 8, 8, 8, 8, 10, 10, 10, 12, 12, 12, 12, 12, 12, 12};
132
133
static const int pmin = 12;
134
135
static const FIXP_DBL hintReal_F[4][3] = {
136
    {FL2FXCONST_DBL(0.39840335f), FL2FXCONST_DBL(0.39840335f),
137
     FL2FXCONST_DBL(-0.39840335f)},
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    {FL2FXCONST_DBL(0.39840335f), FL2FXCONST_DBL(-0.39840335f),
139
     FL2FXCONST_DBL(-0.39840335f)},
140
    {FL2FXCONST_DBL(-0.39840335f), FL2FXCONST_DBL(-0.39840335f),
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     FL2FXCONST_DBL(0.39840335f)},
142
    {FL2FXCONST_DBL(-0.39840335f), FL2FXCONST_DBL(0.39840335f),
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     FL2FXCONST_DBL(0.39840335f)}};
144
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static const FIXP_DBL factors[4] = {
146
    FL2FXCONST_DBL(0.39840335f), FL2FXCONST_DBL(-0.39840335f),
147
    FL2FXCONST_DBL(-0.39840335f), FL2FXCONST_DBL(0.39840335f)};
148
149
#define PSCALE 32
150
151
static const FIXP_DBL p_F[128] = {FL2FXCONST_DBL(0.f / (PSCALE * 12.f)),
152
                                  FL2FXCONST_DBL(1.f / (PSCALE * 12.f)),
153
                                  FL2FXCONST_DBL(2.f / (PSCALE * 12.f)),
154
                                  FL2FXCONST_DBL(3.f / (PSCALE * 12.f)),
155
                                  FL2FXCONST_DBL(4.f / (PSCALE * 12.f)),
156
                                  FL2FXCONST_DBL(5.f / (PSCALE * 12.f)),
157
                                  FL2FXCONST_DBL(6.f / (PSCALE * 12.f)),
158
                                  FL2FXCONST_DBL(7.f / (PSCALE * 12.f)),
159
                                  FL2FXCONST_DBL(8.f / (PSCALE * 12.f)),
160
                                  FL2FXCONST_DBL(9.f / (PSCALE * 12.f)),
161
                                  FL2FXCONST_DBL(10.f / (PSCALE * 12.f)),
162
                                  FL2FXCONST_DBL(11.f / (PSCALE * 12.f)),
163
                                  FL2FXCONST_DBL(12.f / (PSCALE * 12.f)),
164
                                  FL2FXCONST_DBL(13.f / (PSCALE * 12.f)),
165
                                  FL2FXCONST_DBL(14.f / (PSCALE * 12.f)),
166
                                  FL2FXCONST_DBL(15.f / (PSCALE * 12.f)),
167
                                  FL2FXCONST_DBL(16.f / (PSCALE * 12.f)),
168
                                  FL2FXCONST_DBL(17.f / (PSCALE * 12.f)),
169
                                  FL2FXCONST_DBL(18.f / (PSCALE * 12.f)),
170
                                  FL2FXCONST_DBL(19.f / (PSCALE * 12.f)),
171
                                  FL2FXCONST_DBL(20.f / (PSCALE * 12.f)),
172
                                  FL2FXCONST_DBL(21.f / (PSCALE * 12.f)),
173
                                  FL2FXCONST_DBL(22.f / (PSCALE * 12.f)),
174
                                  FL2FXCONST_DBL(23.f / (PSCALE * 12.f)),
175
                                  FL2FXCONST_DBL(24.f / (PSCALE * 12.f)),
176
                                  FL2FXCONST_DBL(25.f / (PSCALE * 12.f)),
177
                                  FL2FXCONST_DBL(26.f / (PSCALE * 12.f)),
178
                                  FL2FXCONST_DBL(27.f / (PSCALE * 12.f)),
179
                                  FL2FXCONST_DBL(28.f / (PSCALE * 12.f)),
180
                                  FL2FXCONST_DBL(29.f / (PSCALE * 12.f)),
181
                                  FL2FXCONST_DBL(30.f / (PSCALE * 12.f)),
182
                                  FL2FXCONST_DBL(31.f / (PSCALE * 12.f)),
183
                                  FL2FXCONST_DBL(32.f / (PSCALE * 12.f)),
184
                                  FL2FXCONST_DBL(33.f / (PSCALE * 12.f)),
185
                                  FL2FXCONST_DBL(34.f / (PSCALE * 12.f)),
186
                                  FL2FXCONST_DBL(35.f / (PSCALE * 12.f)),
187
                                  FL2FXCONST_DBL(36.f / (PSCALE * 12.f)),
188
                                  FL2FXCONST_DBL(37.f / (PSCALE * 12.f)),
189
                                  FL2FXCONST_DBL(38.f / (PSCALE * 12.f)),
190
                                  FL2FXCONST_DBL(39.f / (PSCALE * 12.f)),
191
                                  FL2FXCONST_DBL(40.f / (PSCALE * 12.f)),
192
                                  FL2FXCONST_DBL(41.f / (PSCALE * 12.f)),
193
                                  FL2FXCONST_DBL(42.f / (PSCALE * 12.f)),
194
                                  FL2FXCONST_DBL(43.f / (PSCALE * 12.f)),
195
                                  FL2FXCONST_DBL(44.f / (PSCALE * 12.f)),
196
                                  FL2FXCONST_DBL(45.f / (PSCALE * 12.f)),
197
                                  FL2FXCONST_DBL(46.f / (PSCALE * 12.f)),
198
                                  FL2FXCONST_DBL(47.f / (PSCALE * 12.f)),
199
                                  FL2FXCONST_DBL(48.f / (PSCALE * 12.f)),
200
                                  FL2FXCONST_DBL(49.f / (PSCALE * 12.f)),
201
                                  FL2FXCONST_DBL(50.f / (PSCALE * 12.f)),
202
                                  FL2FXCONST_DBL(51.f / (PSCALE * 12.f)),
203
                                  FL2FXCONST_DBL(52.f / (PSCALE * 12.f)),
204
                                  FL2FXCONST_DBL(53.f / (PSCALE * 12.f)),
205
                                  FL2FXCONST_DBL(54.f / (PSCALE * 12.f)),
206
                                  FL2FXCONST_DBL(55.f / (PSCALE * 12.f)),
207
                                  FL2FXCONST_DBL(56.f / (PSCALE * 12.f)),
208
                                  FL2FXCONST_DBL(57.f / (PSCALE * 12.f)),
209
                                  FL2FXCONST_DBL(58.f / (PSCALE * 12.f)),
210
                                  FL2FXCONST_DBL(59.f / (PSCALE * 12.f)),
211
                                  FL2FXCONST_DBL(60.f / (PSCALE * 12.f)),
212
                                  FL2FXCONST_DBL(61.f / (PSCALE * 12.f)),
213
                                  FL2FXCONST_DBL(62.f / (PSCALE * 12.f)),
214
                                  FL2FXCONST_DBL(63.f / (PSCALE * 12.f)),
215
                                  FL2FXCONST_DBL(64.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(65.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(66.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(67.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(68.f / (PSCALE * 12.f)),
220
                                  FL2FXCONST_DBL(69.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(70.f / (PSCALE * 12.f)),
222
                                  FL2FXCONST_DBL(71.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(72.f / (PSCALE * 12.f)),
224
                                  FL2FXCONST_DBL(73.f / (PSCALE * 12.f)),
225
                                  FL2FXCONST_DBL(74.f / (PSCALE * 12.f)),
226
                                  FL2FXCONST_DBL(75.f / (PSCALE * 12.f)),
227
                                  FL2FXCONST_DBL(76.f / (PSCALE * 12.f)),
228
                                  FL2FXCONST_DBL(77.f / (PSCALE * 12.f)),
229
                                  FL2FXCONST_DBL(78.f / (PSCALE * 12.f)),
230
                                  FL2FXCONST_DBL(79.f / (PSCALE * 12.f)),
231
                                  FL2FXCONST_DBL(80.f / (PSCALE * 12.f)),
232
                                  FL2FXCONST_DBL(81.f / (PSCALE * 12.f)),
233
                                  FL2FXCONST_DBL(82.f / (PSCALE * 12.f)),
234
                                  FL2FXCONST_DBL(83.f / (PSCALE * 12.f)),
235
                                  FL2FXCONST_DBL(84.f / (PSCALE * 12.f)),
236
                                  FL2FXCONST_DBL(85.f / (PSCALE * 12.f)),
237
                                  FL2FXCONST_DBL(86.f / (PSCALE * 12.f)),
238
                                  FL2FXCONST_DBL(87.f / (PSCALE * 12.f)),
239
                                  FL2FXCONST_DBL(88.f / (PSCALE * 12.f)),
240
                                  FL2FXCONST_DBL(89.f / (PSCALE * 12.f)),
241
                                  FL2FXCONST_DBL(90.f / (PSCALE * 12.f)),
242
                                  FL2FXCONST_DBL(91.f / (PSCALE * 12.f)),
243
                                  FL2FXCONST_DBL(92.f / (PSCALE * 12.f)),
244
                                  FL2FXCONST_DBL(93.f / (PSCALE * 12.f)),
245
                                  FL2FXCONST_DBL(94.f / (PSCALE * 12.f)),
246
                                  FL2FXCONST_DBL(95.f / (PSCALE * 12.f)),
247
                                  FL2FXCONST_DBL(96.f / (PSCALE * 12.f)),
248
                                  FL2FXCONST_DBL(97.f / (PSCALE * 12.f)),
249
                                  FL2FXCONST_DBL(98.f / (PSCALE * 12.f)),
250
                                  FL2FXCONST_DBL(99.f / (PSCALE * 12.f)),
251
                                  FL2FXCONST_DBL(100.f / (PSCALE * 12.f)),
252
                                  FL2FXCONST_DBL(101.f / (PSCALE * 12.f)),
253
                                  FL2FXCONST_DBL(102.f / (PSCALE * 12.f)),
254
                                  FL2FXCONST_DBL(103.f / (PSCALE * 12.f)),
255
                                  FL2FXCONST_DBL(104.f / (PSCALE * 12.f)),
256
                                  FL2FXCONST_DBL(105.f / (PSCALE * 12.f)),
257
                                  FL2FXCONST_DBL(106.f / (PSCALE * 12.f)),
258
                                  FL2FXCONST_DBL(107.f / (PSCALE * 12.f)),
259
                                  FL2FXCONST_DBL(108.f / (PSCALE * 12.f)),
260
                                  FL2FXCONST_DBL(109.f / (PSCALE * 12.f)),
261
                                  FL2FXCONST_DBL(110.f / (PSCALE * 12.f)),
262
                                  FL2FXCONST_DBL(111.f / (PSCALE * 12.f)),
263
                                  FL2FXCONST_DBL(112.f / (PSCALE * 12.f)),
264
                                  FL2FXCONST_DBL(113.f / (PSCALE * 12.f)),
265
                                  FL2FXCONST_DBL(114.f / (PSCALE * 12.f)),
266
                                  FL2FXCONST_DBL(115.f / (PSCALE * 12.f)),
267
                                  FL2FXCONST_DBL(116.f / (PSCALE * 12.f)),
268
                                  FL2FXCONST_DBL(117.f / (PSCALE * 12.f)),
269
                                  FL2FXCONST_DBL(118.f / (PSCALE * 12.f)),
270
                                  FL2FXCONST_DBL(119.f / (PSCALE * 12.f)),
271
                                  FL2FXCONST_DBL(120.f / (PSCALE * 12.f)),
272
                                  FL2FXCONST_DBL(121.f / (PSCALE * 12.f)),
273
                                  FL2FXCONST_DBL(122.f / (PSCALE * 12.f)),
274
                                  FL2FXCONST_DBL(123.f / (PSCALE * 12.f)),
275
                                  FL2FXCONST_DBL(124.f / (PSCALE * 12.f)),
276
                                  FL2FXCONST_DBL(125.f / (PSCALE * 12.f)),
277
                                  FL2FXCONST_DBL(126.f / (PSCALE * 12.f)),
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                                  FL2FXCONST_DBL(127.f / (PSCALE * 12.f))};
279
280
static const FIXP_DBL band_F[64] = {
281
    FL2FXCONST_DBL((0.f * 2.f + 1) / (PSCALE << 2)),
282
    FL2FXCONST_DBL((1.f * 2.f + 1) / (PSCALE << 2)),
283
    FL2FXCONST_DBL((2.f * 2.f + 1) / (PSCALE << 2)),
284
    FL2FXCONST_DBL((3.f * 2.f + 1) / (PSCALE << 2)),
285
    FL2FXCONST_DBL((4.f * 2.f + 1) / (PSCALE << 2)),
286
    FL2FXCONST_DBL((5.f * 2.f + 1) / (PSCALE << 2)),
287
    FL2FXCONST_DBL((6.f * 2.f + 1) / (PSCALE << 2)),
288
    FL2FXCONST_DBL((7.f * 2.f + 1) / (PSCALE << 2)),
289
    FL2FXCONST_DBL((8.f * 2.f + 1) / (PSCALE << 2)),
290
    FL2FXCONST_DBL((9.f * 2.f + 1) / (PSCALE << 2)),
291
    FL2FXCONST_DBL((10.f * 2.f + 1) / (PSCALE << 2)),
292
    FL2FXCONST_DBL((11.f * 2.f + 1) / (PSCALE << 2)),
293
    FL2FXCONST_DBL((12.f * 2.f + 1) / (PSCALE << 2)),
294
    FL2FXCONST_DBL((13.f * 2.f + 1) / (PSCALE << 2)),
295
    FL2FXCONST_DBL((14.f * 2.f + 1) / (PSCALE << 2)),
296
    FL2FXCONST_DBL((15.f * 2.f + 1) / (PSCALE << 2)),
297
    FL2FXCONST_DBL((16.f * 2.f + 1) / (PSCALE << 2)),
298
    FL2FXCONST_DBL((17.f * 2.f + 1) / (PSCALE << 2)),
299
    FL2FXCONST_DBL((18.f * 2.f + 1) / (PSCALE << 2)),
300
    FL2FXCONST_DBL((19.f * 2.f + 1) / (PSCALE << 2)),
301
    FL2FXCONST_DBL((20.f * 2.f + 1) / (PSCALE << 2)),
302
    FL2FXCONST_DBL((21.f * 2.f + 1) / (PSCALE << 2)),
303
    FL2FXCONST_DBL((22.f * 2.f + 1) / (PSCALE << 2)),
304
    FL2FXCONST_DBL((23.f * 2.f + 1) / (PSCALE << 2)),
305
    FL2FXCONST_DBL((24.f * 2.f + 1) / (PSCALE << 2)),
306
    FL2FXCONST_DBL((25.f * 2.f + 1) / (PSCALE << 2)),
307
    FL2FXCONST_DBL((26.f * 2.f + 1) / (PSCALE << 2)),
308
    FL2FXCONST_DBL((27.f * 2.f + 1) / (PSCALE << 2)),
309
    FL2FXCONST_DBL((28.f * 2.f + 1) / (PSCALE << 2)),
310
    FL2FXCONST_DBL((29.f * 2.f + 1) / (PSCALE << 2)),
311
    FL2FXCONST_DBL((30.f * 2.f + 1) / (PSCALE << 2)),
312
    FL2FXCONST_DBL((31.f * 2.f + 1) / (PSCALE << 2)),
313
    FL2FXCONST_DBL((32.f * 2.f + 1) / (PSCALE << 2)),
314
    FL2FXCONST_DBL((33.f * 2.f + 1) / (PSCALE << 2)),
315
    FL2FXCONST_DBL((34.f * 2.f + 1) / (PSCALE << 2)),
316
    FL2FXCONST_DBL((35.f * 2.f + 1) / (PSCALE << 2)),
317
    FL2FXCONST_DBL((36.f * 2.f + 1) / (PSCALE << 2)),
318
    FL2FXCONST_DBL((37.f * 2.f + 1) / (PSCALE << 2)),
319
    FL2FXCONST_DBL((38.f * 2.f + 1) / (PSCALE << 2)),
320
    FL2FXCONST_DBL((39.f * 2.f + 1) / (PSCALE << 2)),
321
    FL2FXCONST_DBL((40.f * 2.f + 1) / (PSCALE << 2)),
322
    FL2FXCONST_DBL((41.f * 2.f + 1) / (PSCALE << 2)),
323
    FL2FXCONST_DBL((42.f * 2.f + 1) / (PSCALE << 2)),
324
    FL2FXCONST_DBL((43.f * 2.f + 1) / (PSCALE << 2)),
325
    FL2FXCONST_DBL((44.f * 2.f + 1) / (PSCALE << 2)),
326
    FL2FXCONST_DBL((45.f * 2.f + 1) / (PSCALE << 2)),
327
    FL2FXCONST_DBL((46.f * 2.f + 1) / (PSCALE << 2)),
328
    FL2FXCONST_DBL((47.f * 2.f + 1) / (PSCALE << 2)),
329
    FL2FXCONST_DBL((48.f * 2.f + 1) / (PSCALE << 2)),
330
    FL2FXCONST_DBL((49.f * 2.f + 1) / (PSCALE << 2)),
331
    FL2FXCONST_DBL((50.f * 2.f + 1) / (PSCALE << 2)),
332
    FL2FXCONST_DBL((51.f * 2.f + 1) / (PSCALE << 2)),
333
    FL2FXCONST_DBL((52.f * 2.f + 1) / (PSCALE << 2)),
334
    FL2FXCONST_DBL((53.f * 2.f + 1) / (PSCALE << 2)),
335
    FL2FXCONST_DBL((54.f * 2.f + 1) / (PSCALE << 2)),
336
    FL2FXCONST_DBL((55.f * 2.f + 1) / (PSCALE << 2)),
337
    FL2FXCONST_DBL((56.f * 2.f + 1) / (PSCALE << 2)),
338
    FL2FXCONST_DBL((57.f * 2.f + 1) / (PSCALE << 2)),
339
    FL2FXCONST_DBL((58.f * 2.f + 1) / (PSCALE << 2)),
340
    FL2FXCONST_DBL((59.f * 2.f + 1) / (PSCALE << 2)),
341
    FL2FXCONST_DBL((60.f * 2.f + 1) / (PSCALE << 2)),
342
    FL2FXCONST_DBL((61.f * 2.f + 1) / (PSCALE << 2)),
343
    FL2FXCONST_DBL((62.f * 2.f + 1) / (PSCALE << 2)),
344
    FL2FXCONST_DBL((63.f * 2.f + 1) / (PSCALE << 2))};
345
346
static const FIXP_DBL tr_str[3] = {FL2FXCONST_DBL(1.f / 4.f),
347
                                   FL2FXCONST_DBL(2.f / 4.f),
348
                                   FL2FXCONST_DBL(3.f / 4.f)};
349
350
static const FIXP_DBL stretchfac[3] = {FL2FXCONST_DBL(1.f / 2.f),
351
                                       FL2FXCONST_DBL(1.f / 3.f),
352
                                       FL2FXCONST_DBL(1.f / 4.f)};
353
354
static const FIXP_DBL cos_F[64] = {
355
    26353028,   -79043208,   131685776,  -184244944,  236697216,  -289006912,
356
    341142496,  -393072608,  444773984,  -496191392,  547325824,  -598114752,
357
    648559104,  -698597248,  748230016,  -797411904,  846083200,  -894275136,
358
    941928192,  -989013760,  1035474624, -1081340672, 1126555136, -1171063296,
359
    1214893696, -1257992192, 1300332544, -1341889408, 1382612736, -1422503808,
360
    1461586944, -1499741440, 1537039104, -1573364864, 1608743808, -1643196672,
361
    1676617344, -1709028992, 1740450560, -1770784896, 1800089472, -1828273536,
362
    1855357440, -1881356288, 1906190080, -1929876608, 1952428928, -1973777664,
363
    1993962880, -2012922240, 2030670208, -2047216000, 2062508288, -2076559488,
364
    2089376128, -2100932224, 2111196800, -2120214784, 2127953792, -2134394368,
365
    2139565056, -2143444864, 2146026624, -2147321856};
366
367
static const FIXP_DBL twiddle[121] = {1073741824,
368
                                      1071442860,
369
                                      1064555814,
370
                                      1053110176,
371
                                      1037154959,
372
                                      1016758484,
373
                                      992008094,
374
                                      963009773,
375
                                      929887697,
376
                                      892783698,
377
                                      851856663,
378
                                      807281846,
379
                                      759250125,
380
                                      707967178,
381
                                      653652607,
382
                                      596538995,
383
                                      536870912,
384
                                      474903865,
385
                                      410903207,
386
                                      345142998,
387
                                      277904834,
388
                                      209476638,
389
                                      140151432,
390
                                      70226075,
391
                                      0,
392
                                      -70226075,
393
                                      -140151432,
394
                                      -209476638,
395
                                      -277904834,
396
                                      -345142998,
397
                                      -410903207,
398
                                      -474903865,
399
                                      -536870912,
400
                                      -596538995,
401
                                      -653652607,
402
                                      -707967178,
403
                                      -759250125,
404
                                      -807281846,
405
                                      -851856663,
406
                                      -892783698,
407
                                      -929887697,
408
                                      -963009773,
409
                                      -992008094,
410
                                      -1016758484,
411
                                      -1037154959,
412
                                      -1053110176,
413
                                      -1064555814,
414
                                      -1071442860,
415
                                      -1073741824,
416
                                      -1071442860,
417
                                      -1064555814,
418
                                      -1053110176,
419
                                      -1037154959,
420
                                      -1016758484,
421
                                      -992008094,
422
                                      -963009773,
423
                                      -929887697,
424
                                      -892783698,
425
                                      -851856663,
426
                                      -807281846,
427
                                      -759250125,
428
                                      -707967178,
429
                                      -653652607,
430
                                      -596538995,
431
                                      -536870912,
432
                                      -474903865,
433
                                      -410903207,
434
                                      -345142998,
435
                                      -277904834,
436
                                      -209476638,
437
                                      -140151432,
438
                                      -70226075,
439
                                      0,
440
                                      70226075,
441
                                      140151432,
442
                                      209476638,
443
                                      277904834,
444
                                      345142998,
445
                                      410903207,
446
                                      474903865,
447
                                      536870912,
448
                                      596538995,
449
                                      653652607,
450
                                      707967178,
451
                                      759250125,
452
                                      807281846,
453
                                      851856663,
454
                                      892783698,
455
                                      929887697,
456
                                      963009773,
457
                                      992008094,
458
                                      1016758484,
459
                                      1037154959,
460
                                      1053110176,
461
                                      1064555814,
462
                                      1071442860,
463
                                      1073741824,
464
                                      1071442860,
465
                                      1064555814,
466
                                      1053110176,
467
                                      1037154959,
468
                                      1016758484,
469
                                      992008094,
470
                                      963009773,
471
                                      929887697,
472
                                      892783698,
473
                                      851856663,
474
                                      807281846,
475
                                      759250125,
476
                                      707967178,
477
                                      653652607,
478
                                      596538995,
479
                                      536870912,
480
                                      474903865,
481
                                      410903207,
482
                                      345142998,
483
                                      277904834,
484
                                      209476638,
485
                                      140151432,
486
                                      70226075,
487
                                      0};
488
489
#if FIXP_QTW == FIXP_SGL
490
#define HTW(x) (x)
491
#else
492
#define HTW(x) FX_DBL2FX_QTW(FX_SGL2FX_DBL((const FIXP_SGL)x))
493
#endif
494
495
static const FIXP_QTW post_twiddle_cos_8[8] = {
496
    HTW(-1606),  HTW(4756),  HTW(-7723),  HTW(10394),
497
    HTW(-12665), HTW(14449), HTW(-15679), HTW(16305)};
498
499
static const FIXP_QTW post_twiddle_cos_16[16] = {
500
    HTW(-804),   HTW(2404),  HTW(-3981),  HTW(5520),  HTW(-7005),  HTW(8423),
501
    HTW(-9760),  HTW(11003), HTW(-12140), HTW(13160), HTW(-14053), HTW(14811),
502
    HTW(-15426), HTW(15893), HTW(-16207), HTW(16364)};
503
504
static const FIXP_QTW post_twiddle_cos_24[24] = {
505
    HTW(-536),   HTW(1606),  HTW(-2669),  HTW(3720),  HTW(-4756),  HTW(5771),
506
    HTW(-6762),  HTW(7723),  HTW(-8652),  HTW(9543),  HTW(-10394), HTW(11200),
507
    HTW(-11958), HTW(12665), HTW(-13318), HTW(13913), HTW(-14449), HTW(14924),
508
    HTW(-15334), HTW(15679), HTW(-15956), HTW(16165), HTW(-16305), HTW(16375)};
509
510
static const FIXP_QTW post_twiddle_cos_32[32] = {
511
    HTW(-402),   HTW(1205),  HTW(-2006),  HTW(2801),  HTW(-3590),  HTW(4370),
512
    HTW(-5139),  HTW(5897),  HTW(-6639),  HTW(7366),  HTW(-8076),  HTW(8765),
513
    HTW(-9434),  HTW(10080), HTW(-10702), HTW(11297), HTW(-11866), HTW(12406),
514
    HTW(-12916), HTW(13395), HTW(-13842), HTW(14256), HTW(-14635), HTW(14978),
515
    HTW(-15286), HTW(15557), HTW(-15791), HTW(15986), HTW(-16143), HTW(16261),
516
    HTW(-16340), HTW(16379)};
517
518
static const FIXP_QTW post_twiddle_cos_40[40] = {
519
    HTW(-322),   HTW(965),   HTW(-1606),  HTW(2245),  HTW(-2880),  HTW(3511),
520
    HTW(-4137),  HTW(4756),  HTW(-5368),  HTW(5971),  HTW(-6566),  HTW(7150),
521
    HTW(-7723),  HTW(8285),  HTW(-8833),  HTW(9368),  HTW(-9889),  HTW(10394),
522
    HTW(-10883), HTW(11356), HTW(-11810), HTW(12247), HTW(-12665), HTW(13063),
523
    HTW(-13441), HTW(13799), HTW(-14135), HTW(14449), HTW(-14741), HTW(15011),
524
    HTW(-15257), HTW(15480), HTW(-15679), HTW(15853), HTW(-16003), HTW(16129),
525
    HTW(-16229), HTW(16305), HTW(-16356), HTW(16381)};
526
527
static const FIXP_QTW post_twiddle_sin_8[8] = {
528
    HTW(16305), HTW(-15679), HTW(14449), HTW(-12665),
529
    HTW(10394), HTW(-7723),  HTW(4756),  HTW(-1606)};
530
531
static const FIXP_QTW post_twiddle_sin_16[16] = {
532
    HTW(16364), HTW(-16207), HTW(15893), HTW(-15426), HTW(14811), HTW(-14053),
533
    HTW(13160), HTW(-12140), HTW(11003), HTW(-9760),  HTW(8423),  HTW(-7005),
534
    HTW(5520),  HTW(-3981),  HTW(2404),  HTW(-804)};
535
536
static const FIXP_QTW post_twiddle_sin_24[24] = {
537
    HTW(16375), HTW(-16305), HTW(16165), HTW(-15956), HTW(15679), HTW(-15334),
538
    HTW(14924), HTW(-14449), HTW(13913), HTW(-13318), HTW(12665), HTW(-11958),
539
    HTW(11200), HTW(-10394), HTW(9543),  HTW(-8652),  HTW(7723),  HTW(-6762),
540
    HTW(5771),  HTW(-4756),  HTW(3720),  HTW(-2669),  HTW(1606),  HTW(-536)};
541
542
static const FIXP_QTW post_twiddle_sin_32[32] = {
543
    HTW(16379), HTW(-16340), HTW(16261), HTW(-16143), HTW(15986), HTW(-15791),
544
    HTW(15557), HTW(-15286), HTW(14978), HTW(-14635), HTW(14256), HTW(-13842),
545
    HTW(13395), HTW(-12916), HTW(12406), HTW(-11866), HTW(11297), HTW(-10702),
546
    HTW(10080), HTW(-9434),  HTW(8765),  HTW(-8076),  HTW(7366),  HTW(-6639),
547
    HTW(5897),  HTW(-5139),  HTW(4370),  HTW(-3590),  HTW(2801),  HTW(-2006),
548
    HTW(1205),  HTW(-402)};
549
550
static const FIXP_QTW post_twiddle_sin_40[40] = {
551
    HTW(16381), HTW(-16356), HTW(16305), HTW(-16229), HTW(16129), HTW(-16003),
552
    HTW(15853), HTW(-15679), HTW(15480), HTW(-15257), HTW(15011), HTW(-14741),
553
    HTW(14449), HTW(-14135), HTW(13799), HTW(-13441), HTW(13063), HTW(-12665),
554
    HTW(12247), HTW(-11810), HTW(11356), HTW(-10883), HTW(10394), HTW(-9889),
555
    HTW(9368),  HTW(-8833),  HTW(8285),  HTW(-7723),  HTW(7150),  HTW(-6566),
556
    HTW(5971),  HTW(-5368),  HTW(4756),  HTW(-4137),  HTW(3511),  HTW(-2880),
557
    HTW(2245),  HTW(-1606),  HTW(965),   HTW(-322)};
558
559
static const FIXP_DBL preModCos[32] = {
560
    -749875776, 786681536,   711263552,  -821592064,  -670937792, 854523392,
561
    628995648,  -885396032,  -585538240, 914135680,   540670208,  -940673088,
562
    -494499680, 964944384,   447137824,  -986891008,  -398698816, 1006460096,
563
    349299264,  -1023604544, -299058240, 1038283072,  248096752,  -1050460288,
564
    -196537584, 1060106816,  144504928,  -1067199488, -92124160,  1071721152,
565
    39521456,   -1073660992};
566
567
static const FIXP_DBL preModSin[32] = {
568
    768510144,   730789760,  -804379072,  -691308864, 838310208,   650162560,
569
    -870221760,  -607449920, 900036928,   563273856,  -927683776,  -517740896,
570
    953095808,   470960608,  -976211712,  -423045728, 996975808,   374111712,
571
    -1015338112, -324276416, 1031254400,  273659904,  -1044686336, -222384144,
572
    1055601472,  170572640,  -1063973632, -118350192, 1069782528,  65842640,
573
    -1073014208, -13176464};
574
575
/* The cube root function */
576
/*****************************************************************************
577
578
    functionname: invCubeRootNorm2
579
    description:  delivers 1/cuberoot(op) in Q1.31 format and modified exponent
580
581
*****************************************************************************/
582
310M
#define CUBE_ROOT_BITS 7
583
#define CUBE_ROOT_VALUES (128 + 2)
584
155M
#define CUBE_ROOT_BITS_MASK 0x7f
585
155M
#define CUBE_ROOT_FRACT_BITS_MASK 0x007FFFFF
586
/* Inverse cube root table for operands running from 0.5 to 1.0 */
587
/* (INT) (1.0/cuberoot((op)));                    */
588
/* Implicit exponent is 1.                        */
589
590
LNK_SECTION_CONSTDATA
591
static const FIXP_DBL invCubeRootTab[CUBE_ROOT_VALUES] = {
592
    (0x50a28be6), (0x506d1172), (0x503823c4), (0x5003c05a), (0x4fcfe4c0),
593
    (0x4f9c8e92), (0x4f69bb7d), (0x4f37693b), (0x4f059594), (0x4ed43e5f),
594
    (0x4ea36181), (0x4e72fcea), (0x4e430e98), (0x4e139495), (0x4de48cf5),
595
    (0x4db5f5db), (0x4d87cd73), (0x4d5a11f2), (0x4d2cc19c), (0x4cffdabb),
596
    (0x4cd35ba4), (0x4ca742b7), (0x4c7b8e5c), (0x4c503d05), (0x4c254d2a),
597
    (0x4bfabd50), (0x4bd08c00), (0x4ba6b7cd), (0x4b7d3f53), (0x4b542134),
598
    (0x4b2b5c18), (0x4b02eeb1), (0x4adad7b8), (0x4ab315ea), (0x4a8ba80d),
599
    (0x4a648cec), (0x4a3dc35b), (0x4a174a30), (0x49f1204a), (0x49cb448d),
600
    (0x49a5b5e2), (0x49807339), (0x495b7b86), (0x4936cdc2), (0x491268ec),
601
    (0x48ee4c08), (0x48ca761f), (0x48a6e63e), (0x48839b76), (0x486094de),
602
    (0x483dd190), (0x481b50ad), (0x47f91156), (0x47d712b3), (0x47b553f0),
603
    (0x4793d43c), (0x477292c9), (0x47518ece), (0x4730c785), (0x47103c2d),
604
    (0x46efec06), (0x46cfd655), (0x46affa61), (0x46905777), (0x4670ece4),
605
    (0x4651b9f9), (0x4632be0b), (0x4613f871), (0x45f56885), (0x45d70da5),
606
    (0x45b8e72f), (0x459af487), (0x457d3511), (0x455fa835), (0x45424d5d),
607
    (0x452523f6), (0x45082b6e), (0x44eb6337), (0x44cecac5), (0x44b2618d),
608
    (0x44962708), (0x447a1ab1), (0x445e3c02), (0x44428a7c), (0x4427059e),
609
    (0x440bacec), (0x43f07fe9), (0x43d57e1c), (0x43baa70e), (0x439ffa48),
610
    (0x43857757), (0x436b1dc8), (0x4350ed2b), (0x4336e511), (0x431d050c),
611
    (0x43034cb2), (0x42e9bb98), (0x42d05156), (0x42b70d85), (0x429defc0),
612
    (0x4284f7a2), (0x426c24cb), (0x425376d8), (0x423aed6a), (0x42228823),
613
    (0x420a46a6), (0x41f22898), (0x41da2d9f), (0x41c25561), (0x41aa9f86),
614
    (0x41930bba), (0x417b99a5), (0x416448f5), (0x414d1956), (0x41360a76),
615
    (0x411f1c06), (0x41084db5), (0x40f19f35), (0x40db1039), (0x40c4a074),
616
    (0x40ae4f9b), (0x40981d64), (0x40820985), (0x406c13b6), (0x40563bb1),
617
    (0x4040812e), (0x402ae3e7), (0x40156399), (0x40000000), (0x3FEAB8D9)};
618
/*  n.a.  */
619
static const FIXP_DBL invCubeRootCorrection[3] = {0x40000000, 0x50A28BE6,
620
                                                  0x6597FA95};
621
622
/*****************************************************************************
623
 * \brief calculate 1.0/cube_root(op), op contains mantissa and exponent
624
 * \param op_m: (i) mantissa of operand, must not be zero (0x0000.0000) or
625
 * negative
626
 * \param op_e: (i) pointer to the exponent of the operand (must be initialized)
627
 * and .. (o) pointer to the exponent of the result
628
 * \return:     (o) mantissa of the result
629
 * \description:
630
 *  This routine calculates the cube root of the input operand, that is
631
 *  given with its mantissa in Q31 format (FIXP_DBL) and its exponent (INT).
632
 *  The resulting mantissa is returned in format Q31. The exponent (*op_e)
633
 *  is modified accordingly. It is not assured, that the result is fully
634
 * left-aligned but assumed to have not more than 2 bits headroom. There is one
635
 * macro to activate the use of this algorithm: FUNCTION_invCubeRootNorm2 By
636
 * means of activating the macro INVCUBEROOTNORM2_LINEAR_INTERPOLATE_HQ, a
637
 * slightly higher precision is reachable (by default, not active). For DEBUG
638
 * purpose only: a FDK_ASSERT macro validates, if the input mantissa is greater
639
 * zero.
640
 *
641
 */
642
static
643
#ifdef __arm__
644
    FIXP_DBL __attribute__((always_inline))
645
    invCubeRootNorm2(FIXP_DBL op_m, INT* op_e)
646
#else
647
    FIXP_DBL
648
    invCubeRootNorm2(FIXP_DBL op_m, INT* op_e)
649
#endif
650
155M
{
651
155M
  FDK_ASSERT(op_m > FIXP_DBL(0));
652
653
  /* normalize input, calculate shift value */
654
155M
  INT exponent = (INT)fNormz(op_m) - 1;
655
155M
  op_m <<= exponent;
656
657
155M
  INT index = (INT)(op_m >> (DFRACT_BITS - 1 - (CUBE_ROOT_BITS + 1))) &
658
155M
              CUBE_ROOT_BITS_MASK;
659
155M
  FIXP_DBL fract = (FIXP_DBL)(((INT)op_m & CUBE_ROOT_FRACT_BITS_MASK)
660
155M
                              << (CUBE_ROOT_BITS + 1));
661
155M
  FIXP_DBL diff = invCubeRootTab[index + 1] - invCubeRootTab[index];
662
155M
  op_m = fMultAddDiv2(invCubeRootTab[index], diff << 1, fract);
663
#if defined(INVCUBEROOTNORM2_LINEAR_INTERPOLATE_HQ)
664
  /* reg1 = t[i] + (t[i+1]-t[i])*fract ... already computed ... +
665
   * (1-fract)fract*(t[i+2]-t[i+1])/2 */
666
  if (fract != (FIXP_DBL)0) {
667
    /* fract = fract * (1 - fract) */
668
    fract = fMultDiv2(fract, (FIXP_DBL)((LONG)0x80000000 - (LONG)fract)) << 1;
669
    diff = diff - (invCubeRootTab[index + 2] - invCubeRootTab[index + 1]);
670
    op_m = fMultAddDiv2(op_m, fract, diff);
671
  }
672
#endif /* INVCUBEROOTNORM2_LINEAR_INTERPOLATE_HQ */
673
674
  /* calculate the output exponent = input * exp/3 = cubicroot(m)*2^(exp/3)
675
   * where 2^(exp/3) = 2^k'*2 or 2^k'*2^(1/3) or 2^k'*2^(2/3) */
676
155M
  exponent = exponent - *op_e + 3;
677
155M
  INT shift_tmp =
678
155M
      ((INT)fMultDiv2((FIXP_SGL)fAbs(exponent), (FIXP_SGL)0x5556)) >> 16;
679
155M
  if (exponent < 0) {
680
93.0M
    shift_tmp = -shift_tmp;
681
93.0M
  }
682
155M
  INT rem = exponent - 3 * shift_tmp;
683
155M
  if (rem < 0) {
684
63.0M
    rem += 3;
685
63.0M
    shift_tmp--;
686
63.0M
  }
687
688
155M
  *op_e = shift_tmp;
689
155M
  op_m = fMultDiv2(op_m, invCubeRootCorrection[rem]) << 2;
690
691
155M
  return (op_m);
692
155M
}
693
694
  /*****************************************************************************
695
696
      functionname: invFourthRootNorm2
697
      description:  delivers 1/FourthRoot(op) in Q1.31 format and modified
698
  exponent
699
700
  *****************************************************************************/
701
702
322M
#define FOURTHROOT_BITS 7
703
#define FOURTHROOT_VALUES (128 + 2)
704
161M
#define FOURTHROOT_BITS_MASK 0x7f
705
161M
#define FOURTHROOT_FRACT_BITS_MASK 0x007FFFFF
706
707
LNK_SECTION_CONSTDATA
708
static const FIXP_DBL invFourthRootTab[FOURTHROOT_VALUES] = {
709
    (0x4c1bf829), (0x4bf61977), (0x4bd09843), (0x4bab72ef), (0x4b86a7eb),
710
    (0x4b6235ac), (0x4b3e1ab6), (0x4b1a5592), (0x4af6e4d4), (0x4ad3c718),
711
    (0x4ab0fb03), (0x4a8e7f42), (0x4a6c5288), (0x4a4a7393), (0x4a28e126),
712
    (0x4a079a0c), (0x49e69d16), (0x49c5e91f), (0x49a57d04), (0x498557ac),
713
    (0x49657802), (0x4945dcf9), (0x49268588), (0x490770ac), (0x48e89d6a),
714
    (0x48ca0ac9), (0x48abb7d6), (0x488da3a6), (0x486fcd4f), (0x485233ed),
715
    (0x4834d6a3), (0x4817b496), (0x47faccf0), (0x47de1ee0), (0x47c1a999),
716
    (0x47a56c51), (0x47896643), (0x476d96af), (0x4751fcd6), (0x473697ff),
717
    (0x471b6773), (0x47006a81), (0x46e5a079), (0x46cb08ae), (0x46b0a279),
718
    (0x46966d34), (0x467c683d), (0x466292f4), (0x4648ecbc), (0x462f74fe),
719
    (0x46162b20), (0x45fd0e91), (0x45e41ebe), (0x45cb5b19), (0x45b2c315),
720
    (0x459a562a), (0x458213cf), (0x4569fb81), (0x45520cbc), (0x453a4701),
721
    (0x4522a9d1), (0x450b34b0), (0x44f3e726), (0x44dcc0ba), (0x44c5c0f7),
722
    (0x44aee768), (0x4498339e), (0x4481a527), (0x446b3b96), (0x4454f67e),
723
    (0x443ed576), (0x4428d815), (0x4412fdf3), (0x43fd46ad), (0x43e7b1de),
724
    (0x43d23f23), (0x43bcee1e), (0x43a7be6f), (0x4392afb8), (0x437dc19d),
725
    (0x4368f3c5), (0x435445d6), (0x433fb779), (0x432b4856), (0x4316f81a),
726
    (0x4302c66f), (0x42eeb305), (0x42dabd8a), (0x42c6e5ad), (0x42b32b21),
727
    (0x429f8d96), (0x428c0cc2), (0x4278a859), (0x42656010), (0x4252339e),
728
    (0x423f22bc), (0x422c2d23), (0x4219528b), (0x420692b2), (0x41f3ed51),
729
    (0x41e16228), (0x41cef0f2), (0x41bc9971), (0x41aa5b62), (0x41983687),
730
    (0x41862aa2), (0x41743775), (0x41625cc3), (0x41509a50), (0x413eefe2),
731
    (0x412d5d3e), (0x411be22b), (0x410a7e70), (0x40f931d5), (0x40e7fc23),
732
    (0x40d6dd24), (0x40c5d4a2), (0x40b4e268), (0x40a40642), (0x40933ffc),
733
    (0x40828f64), (0x4071f447), (0x40616e73), (0x4050fdb9), (0x4040a1e6),
734
    (0x40305acc), (0x4020283c), (0x40100a08), (0x40000000), (0x3ff009f9),
735
};
736
737
static const FIXP_DBL invFourthRootCorrection[4] = {0x40000000, 0x4C1BF829,
738
                                                    0x5A82799A, 0x6BA27E65};
739
740
/* The fourth root function */
741
/*****************************************************************************
742
 * \brief calculate 1.0/fourth_root(op), op contains mantissa and exponent
743
 * \param op_m: (i) mantissa of operand, must not be zero (0x0000.0000) or
744
 * negative
745
 * \param op_e: (i) pointer to the exponent of the operand (must be initialized)
746
 * and .. (o) pointer to the exponent of the result
747
 * \return:     (o) mantissa of the result
748
 * \description:
749
 *  This routine calculates the cube root of the input operand, that is
750
 *  given with its mantissa in Q31 format (FIXP_DBL) and its exponent (INT).
751
 *  The resulting mantissa is returned in format Q31. The exponent (*op_e)
752
 *  is modified accordingly. It is not assured, that the result is fully
753
 * left-aligned but assumed to have not more than 2 bits headroom. There is one
754
 * macro to activate the use of this algorithm: FUNCTION_invFourthRootNorm2 By
755
 * means of activating the macro INVFOURTHROOTNORM2_LINEAR_INTERPOLATE_HQ, a
756
 * slightly higher precision is reachable (by default, not active). For DEBUG
757
 * purpose only: a FDK_ASSERT macro validates, if the input mantissa is greater
758
 * zero.
759
 *
760
 */
761
762
/* #define INVFOURTHROOTNORM2_LINEAR_INTERPOLATE_HQ */
763
764
static
765
#ifdef __arm__
766
    FIXP_DBL __attribute__((always_inline))
767
    invFourthRootNorm2(FIXP_DBL op_m, INT* op_e)
768
#else
769
    FIXP_DBL
770
    invFourthRootNorm2(FIXP_DBL op_m, INT* op_e)
771
#endif
772
161M
{
773
161M
  FDK_ASSERT(op_m > FL2FXCONST_DBL(0.0));
774
775
  /* normalize input, calculate shift value */
776
161M
  INT exponent = (INT)fNormz(op_m) - 1;
777
161M
  op_m <<= exponent;
778
779
161M
  INT index = (INT)(op_m >> (DFRACT_BITS - 1 - (FOURTHROOT_BITS + 1))) &
780
161M
              FOURTHROOT_BITS_MASK;
781
161M
  FIXP_DBL fract = (FIXP_DBL)(((INT)op_m & FOURTHROOT_FRACT_BITS_MASK)
782
161M
                              << (FOURTHROOT_BITS + 1));
783
161M
  FIXP_DBL diff = invFourthRootTab[index + 1] - invFourthRootTab[index];
784
161M
  op_m = invFourthRootTab[index] + (fMultDiv2(diff, fract) << 1);
785
786
#if defined(INVFOURTHROOTNORM2_LINEAR_INTERPOLATE_HQ)
787
  /* reg1 = t[i] + (t[i+1]-t[i])*fract ... already computed ... +
788
   * (1-fract)fract*(t[i+2]-t[i+1])/2 */
789
  if (fract != (FIXP_DBL)0) {
790
    /* fract = fract * (1 - fract) */
791
    fract = fMultDiv2(fract, (FIXP_DBL)((LONG)0x80000000 - (LONG)fract)) << 1;
792
    diff = diff - (invFourthRootTab[index + 2] - invFourthRootTab[index + 1]);
793
    op_m = fMultAddDiv2(op_m, fract, diff);
794
  }
795
#endif /* INVFOURTHROOTNORM2_LINEAR_INTERPOLATE_HQ */
796
797
161M
  exponent = exponent - *op_e + 4;
798
161M
  INT rem = exponent & 0x00000003;
799
161M
  INT shift_tmp = (exponent >> 2);
800
801
161M
  *op_e = shift_tmp;
802
161M
  op_m = fMultDiv2(op_m, invFourthRootCorrection[rem]) << 2;
803
804
161M
  return (op_m);
805
161M
}
806
807
/*****************************************************************************
808
809
    functionname: inv3EigthRootNorm2
810
    description:  delivers 1/cubert(op) normalized to .5...1 and the shift value
811
of the OUTPUT
812
813
*****************************************************************************/
814
103M
#define THREEIGTHROOT_BITS 7
815
#define THREEIGTHROOT_VALUES (128 + 2)
816
51.8M
#define THREEIGTHROOT_BITS_MASK 0x7f
817
51.8M
#define THREEIGTHROOT_FRACT_BITS_MASK 0x007FFFFF
818
819
LNK_SECTION_CONSTDATA
820
static const FIXP_DBL inv3EigthRootTab[THREEIGTHROOT_VALUES] = {
821
    (0x45cae0f2), (0x45b981bf), (0x45a8492a), (0x45973691), (0x45864959),
822
    (0x457580e6), (0x4564dca4), (0x45545c00), (0x4543fe6b), (0x4533c35a),
823
    (0x4523aa44), (0x4513b2a4), (0x4503dbf7), (0x44f425be), (0x44e48f7b),
824
    (0x44d518b6), (0x44c5c0f7), (0x44b687c8), (0x44a76cb8), (0x44986f58),
825
    (0x44898f38), (0x447acbef), (0x446c2514), (0x445d9a3f), (0x444f2b0d),
826
    (0x4440d71a), (0x44329e07), (0x44247f73), (0x44167b04), (0x4408905e),
827
    (0x43fabf28), (0x43ed070b), (0x43df67b0), (0x43d1e0c5), (0x43c471f7),
828
    (0x43b71af6), (0x43a9db71), (0x439cb31c), (0x438fa1ab), (0x4382a6d2),
829
    (0x4375c248), (0x4368f3c5), (0x435c3b03), (0x434f97bc), (0x434309ac),
830
    (0x43369091), (0x432a2c28), (0x431ddc30), (0x4311a06c), (0x4305789c),
831
    (0x42f96483), (0x42ed63e5), (0x42e17688), (0x42d59c30), (0x42c9d4a6),
832
    (0x42be1fb1), (0x42b27d1a), (0x42a6ecac), (0x429b6e2f), (0x42900172),
833
    (0x4284a63f), (0x42795c64), (0x426e23b0), (0x4262fbf2), (0x4257e4f9),
834
    (0x424cde96), (0x4241e89a), (0x423702d8), (0x422c2d23), (0x4221674d),
835
    (0x4216b12c), (0x420c0a94), (0x4201735b), (0x41f6eb57), (0x41ec725f),
836
    (0x41e2084b), (0x41d7acf3), (0x41cd6030), (0x41c321db), (0x41b8f1ce),
837
    (0x41aecfe5), (0x41a4bbf8), (0x419ab5e6), (0x4190bd89), (0x4186d2bf),
838
    (0x417cf565), (0x41732558), (0x41696277), (0x415faca1), (0x415603b4),
839
    (0x414c6792), (0x4142d818), (0x4139552a), (0x412fdea6), (0x41267470),
840
    (0x411d1668), (0x4113c472), (0x410a7e70), (0x41014445), (0x40f815d4),
841
    (0x40eef302), (0x40e5dbb4), (0x40dccfcd), (0x40d3cf33), (0x40cad9cb),
842
    (0x40c1ef7b), (0x40b9102a), (0x40b03bbd), (0x40a7721c), (0x409eb32e),
843
    (0x4095feda), (0x408d5508), (0x4084b5a0), (0x407c208b), (0x407395b2),
844
    (0x406b14fd), (0x40629e56), (0x405a31a6), (0x4051ced8), (0x404975d5),
845
    (0x40412689), (0x4038e0dd), (0x4030a4bd), (0x40287215), (0x402048cf),
846
    (0x401828d7), (0x4010121a), (0x40080483), (0x40000000), (0x3ff8047d),
847
};
848
849
/* The last value is rounded in order to avoid any overflow due to the values
850
 * range of the root table */
851
static const FIXP_DBL inv3EigthRootCorrection[8] = {
852
    0x40000000, 0x45CAE0F2, 0x4C1BF829, 0x52FF6B55,
853
    0x5A82799A, 0x62B39509, 0x6BA27E65, 0x75606373};
854
855
/* The 3/8 root function */
856
/*****************************************************************************
857
 * \brief calculate 1.0/3Eigth_root(op) = 1.0/(x)^(3/8), op contains mantissa
858
 * and exponent
859
 * \param op_m: (i) mantissa of operand, must not be zero (0x0000.0000) or
860
 * negative
861
 * \param op_e: (i) pointer to the exponent of the operand (must be initialized)
862
 * and .. (o) pointer to the exponent of the result
863
 * \return:     (o) mantissa of the result
864
 * \description:
865
 *  This routine calculates the cube root of the input operand, that is
866
 *  given with its mantissa in Q31 format (FIXP_DBL) and its exponent (INT).
867
 *  The resulting mantissa is returned in format Q31. The exponent (*op_e)
868
 *  is modified accordingly. It is not assured, that the result is fully
869
 * left-aligned but assumed to have not more than 2 bits headroom. There is one
870
 * macro to activate the use of this algorithm: FUNCTION_inv3EigthRootNorm2 By
871
 * means of activating the macro INVTHREEIGTHROOTNORM2_LINEAR_INTERPOLATE_HQ, a
872
 * slightly higher precision is reachable (by default, not active). For DEBUG
873
 * purpose only: a FDK_ASSERT macro validates, if the input mantissa is greater
874
 * zero.
875
 *
876
 */
877
878
/* #define INVTHREEIGTHROOTNORM2_LINEAR_INTERPOLATE_HQ */
879
880
static
881
#ifdef __arm__
882
    FIXP_DBL __attribute__((always_inline))
883
    inv3EigthRootNorm2(FIXP_DBL op_m, INT* op_e)
884
#else
885
    FIXP_DBL
886
    inv3EigthRootNorm2(FIXP_DBL op_m, INT* op_e)
887
#endif
888
51.8M
{
889
51.8M
  FDK_ASSERT(op_m > FL2FXCONST_DBL(0.0));
890
891
  /* normalize input, calculate shift op_mue */
892
51.8M
  INT exponent = (INT)fNormz(op_m) - 1;
893
51.8M
  op_m <<= exponent;
894
895
51.8M
  INT index = (INT)(op_m >> (DFRACT_BITS - 1 - (THREEIGTHROOT_BITS + 1))) &
896
51.8M
              THREEIGTHROOT_BITS_MASK;
897
51.8M
  FIXP_DBL fract = (FIXP_DBL)(((INT)op_m & THREEIGTHROOT_FRACT_BITS_MASK)
898
51.8M
                              << (THREEIGTHROOT_BITS + 1));
899
51.8M
  FIXP_DBL diff = inv3EigthRootTab[index + 1] - inv3EigthRootTab[index];
900
51.8M
  op_m = inv3EigthRootTab[index] + (fMultDiv2(diff, fract) << 1);
901
902
#if defined(INVTHREEIGTHROOTNORM2_LINEAR_INTERPOLATE_HQ)
903
  /* op_m = t[i] + (t[i+1]-t[i])*fract ... already computed ... +
904
   * (1-fract)fract*(t[i+2]-t[i+1])/2 */
905
  if (fract != (FIXP_DBL)0) {
906
    /* fract = fract * (1 - fract) */
907
    fract = fMultDiv2(fract, (FIXP_DBL)((LONG)0x80000000 - (LONG)fract)) << 1;
908
    diff = diff - (inv3EigthRootTab[index + 2] - inv3EigthRootTab[index + 1]);
909
    op_m = fMultAddDiv2(op_m, fract, diff);
910
  }
911
#endif /* INVTHREEIGTHROOTNORM2_LINEAR_INTERPOLATE_HQ */
912
913
51.8M
  exponent = exponent - *op_e + 8;
914
51.8M
  INT rem = exponent & 0x00000007;
915
51.8M
  INT shift_tmp = (exponent >> 3);
916
917
51.8M
  *op_e = shift_tmp * 3;
918
51.8M
  op_m = fMultDiv2(op_m, inv3EigthRootCorrection[rem]) << 2;
919
920
51.8M
  return (fMult(op_m, fMult(op_m, op_m)));
921
51.8M
}
922
923
SBR_ERROR
924
QmfTransposerCreate(HANDLE_HBE_TRANSPOSER* hQmfTransposer, const int frameSize,
925
32.3k
                    int bDisableCrossProducts, int bSbr41) {
926
32.3k
  HANDLE_HBE_TRANSPOSER hQmfTran = NULL;
927
928
32.3k
  int i;
929
930
32.3k
  if (hQmfTransposer != NULL) {
931
    /* Memory allocation */
932
    /*--------------------------------------------------------------------------------------------*/
933
32.3k
    hQmfTran =
934
32.3k
        (HANDLE_HBE_TRANSPOSER)FDKcalloc(1, sizeof(struct hbeTransposer));
935
32.3k
    if (hQmfTran == NULL) {
936
0
      return SBRDEC_MEM_ALLOC_FAILED;
937
0
    }
938
939
129k
    for (i = 0; i < MAX_STRETCH_HBE - 1; i++) {
940
97.0k
      hQmfTran->bXProducts[i] = (bDisableCrossProducts ? 0 : xProducts[i]);
941
97.0k
    }
942
943
32.3k
    hQmfTran->timeDomainWinLen = frameSize;
944
32.3k
    if (frameSize == 768) {
945
8.80k
      hQmfTran->noCols =
946
8.80k
          (8 * frameSize / 3) / QMF_SYNTH_CHANNELS; /* 32 for 24:64 */
947
23.5k
    } else {
948
23.5k
      hQmfTran->noCols =
949
23.5k
          (bSbr41 + 1) * 2 * frameSize /
950
23.5k
          QMF_SYNTH_CHANNELS; /* 32 for 32:64 and 64 for 16:64 -> identical to
951
                                 sbrdec->no_cols */
952
23.5k
    }
953
954
32.3k
    hQmfTran->noChannels = frameSize / hQmfTran->noCols;
955
956
32.3k
    hQmfTran->qmfInBufSize = QMF_WIN_LEN;
957
32.3k
    hQmfTran->qmfOutBufSize = 2 * (hQmfTran->noCols / 2 + QMF_WIN_LEN - 1);
958
959
32.3k
    hQmfTran->inBuf_F =
960
32.3k
        (LONG*)FDKcalloc(QMF_SYNTH_CHANNELS + 20 + 1, sizeof(LONG));
961
    /* buffered time signal needs to be delayed by synthesis_size; max
962
     * synthesis_size = 20; */
963
32.3k
    if (hQmfTran->inBuf_F == NULL) {
964
0
      QmfTransposerClose(hQmfTran);
965
0
      return SBRDEC_MEM_ALLOC_FAILED;
966
0
    }
967
968
32.3k
    hQmfTran->qmfInBufReal_F =
969
32.3k
        (FIXP_DBL**)FDKcalloc(hQmfTran->qmfInBufSize, sizeof(FIXP_DBL*));
970
32.3k
    hQmfTran->qmfInBufImag_F =
971
32.3k
        (FIXP_DBL**)FDKcalloc(hQmfTran->qmfInBufSize, sizeof(FIXP_DBL*));
972
973
32.3k
    if (hQmfTran->qmfInBufReal_F == NULL) {
974
0
      QmfTransposerClose(hQmfTran);
975
0
      return SBRDEC_MEM_ALLOC_FAILED;
976
0
    }
977
32.3k
    if (hQmfTran->qmfInBufImag_F == NULL) {
978
0
      QmfTransposerClose(hQmfTran);
979
0
      return SBRDEC_MEM_ALLOC_FAILED;
980
0
    }
981
982
453k
    for (i = 0; i < hQmfTran->qmfInBufSize; i++) {
983
420k
      hQmfTran->qmfInBufReal_F[i] = (FIXP_DBL*)FDKaalloc(
984
420k
          QMF_SYNTH_CHANNELS * sizeof(FIXP_DBL), ALIGNMENT_DEFAULT);
985
420k
      hQmfTran->qmfInBufImag_F[i] = (FIXP_DBL*)FDKaalloc(
986
420k
          QMF_SYNTH_CHANNELS * sizeof(FIXP_DBL), ALIGNMENT_DEFAULT);
987
420k
      if (hQmfTran->qmfInBufReal_F[i] == NULL) {
988
0
        QmfTransposerClose(hQmfTran);
989
0
        return SBRDEC_MEM_ALLOC_FAILED;
990
0
      }
991
420k
      if (hQmfTran->qmfInBufImag_F[i] == NULL) {
992
0
        QmfTransposerClose(hQmfTran);
993
0
        return SBRDEC_MEM_ALLOC_FAILED;
994
0
      }
995
420k
    }
996
997
32.3k
    hQmfTran->qmfHBEBufReal_F =
998
32.3k
        (FIXP_DBL**)FDKcalloc(HBE_MAX_OUT_SLOTS, sizeof(FIXP_DBL*));
999
32.3k
    hQmfTran->qmfHBEBufImag_F =
1000
32.3k
        (FIXP_DBL**)FDKcalloc(HBE_MAX_OUT_SLOTS, sizeof(FIXP_DBL*));
1001
1002
32.3k
    if (hQmfTran->qmfHBEBufReal_F == NULL) {
1003
0
      QmfTransposerClose(hQmfTran);
1004
0
      return SBRDEC_MEM_ALLOC_FAILED;
1005
0
    }
1006
32.3k
    if (hQmfTran->qmfHBEBufImag_F == NULL) {
1007
0
      QmfTransposerClose(hQmfTran);
1008
0
      return SBRDEC_MEM_ALLOC_FAILED;
1009
0
    }
1010
1011
388k
    for (i = 0; i < HBE_MAX_OUT_SLOTS; i++) {
1012
355k
      hQmfTran->qmfHBEBufReal_F[i] =
1013
355k
          (FIXP_DBL*)FDKcalloc(QMF_SYNTH_CHANNELS, sizeof(FIXP_DBL));
1014
355k
      hQmfTran->qmfHBEBufImag_F[i] =
1015
355k
          (FIXP_DBL*)FDKcalloc(QMF_SYNTH_CHANNELS, sizeof(FIXP_DBL));
1016
355k
      if (hQmfTran->qmfHBEBufReal_F[i] == NULL) {
1017
0
        QmfTransposerClose(hQmfTran);
1018
0
        return SBRDEC_MEM_ALLOC_FAILED;
1019
0
      }
1020
355k
      if (hQmfTran->qmfHBEBufImag_F[i] == NULL) {
1021
0
        QmfTransposerClose(hQmfTran);
1022
0
        return SBRDEC_MEM_ALLOC_FAILED;
1023
0
      }
1024
355k
    }
1025
1026
32.3k
    hQmfTran->qmfBufferCodecTempSlot_F =
1027
32.3k
        (FIXP_DBL*)FDKcalloc(QMF_SYNTH_CHANNELS / 2, sizeof(FIXP_DBL));
1028
32.3k
    if (hQmfTran->qmfBufferCodecTempSlot_F == NULL) {
1029
0
      QmfTransposerClose(hQmfTran);
1030
0
      return SBRDEC_MEM_ALLOC_FAILED;
1031
0
    }
1032
1033
32.3k
    hQmfTran->bSbr41 = bSbr41;
1034
1035
32.3k
    hQmfTran->highband_exp[0] = 0;
1036
32.3k
    hQmfTran->highband_exp[1] = 0;
1037
32.3k
    hQmfTran->target_exp[0] = 0;
1038
32.3k
    hQmfTran->target_exp[1] = 0;
1039
1040
32.3k
    *hQmfTransposer = hQmfTran;
1041
32.3k
  }
1042
1043
32.3k
  return SBRDEC_OK;
1044
32.3k
}
1045
1046
SBR_ERROR QmfTransposerReInit(HANDLE_HBE_TRANSPOSER hQmfTransposer,
1047
                              UCHAR* FreqBandTable[2], UCHAR NSfb[2])
1048
/* removed bSbr41 from parameterlist:
1049
   don't know where to get this value from
1050
   at call-side */
1051
30.6k
{
1052
30.6k
  int L, sfb, patch, stopPatch, qmfErr;
1053
1054
30.6k
  if (hQmfTransposer != NULL) {
1055
30.6k
    const FIXP_QTW* tmp_t_cos;
1056
30.6k
    const FIXP_QTW* tmp_t_sin;
1057
1058
30.6k
    hQmfTransposer->startBand = FreqBandTable[0][0];
1059
30.6k
    FDK_ASSERT((!hQmfTransposer->bSbr41 && hQmfTransposer->startBand <= 32) ||
1060
30.6k
               (hQmfTransposer->bSbr41 &&
1061
30.6k
                hQmfTransposer->startBand <=
1062
30.6k
                    16)); /* is checked by resetFreqBandTables() */
1063
30.6k
    hQmfTransposer->stopBand = FreqBandTable[0][NSfb[0]];
1064
1065
30.6k
    hQmfTransposer->synthSize =
1066
30.6k
        4 * ((hQmfTransposer->startBand + 4) / 8 + 1); /* 8, 12, 16, 20 */
1067
30.6k
    hQmfTransposer->kstart = startSubband2kL[hQmfTransposer->startBand];
1068
1069
    /* don't know where to take this information from */
1070
    /* hQmfTransposer->bSbr41 = bSbr41;               */
1071
1072
30.6k
    if (hQmfTransposer->bSbr41) {
1073
6.98k
      if (hQmfTransposer->kstart + hQmfTransposer->synthSize > 16)
1074
3.38k
        hQmfTransposer->kstart = 16 - hQmfTransposer->synthSize;
1075
23.7k
    } else if (hQmfTransposer->timeDomainWinLen == 768) {
1076
23.0k
      if (hQmfTransposer->kstart + hQmfTransposer->synthSize > 24)
1077
12.6k
        hQmfTransposer->kstart = 24 - hQmfTransposer->synthSize;
1078
23.0k
    }
1079
1080
30.6k
    hQmfTransposer->synthesisQmfPreModCos_F =
1081
30.6k
        &preModCos[hQmfTransposer->kstart];
1082
30.6k
    hQmfTransposer->synthesisQmfPreModSin_F =
1083
30.6k
        &preModSin[hQmfTransposer->kstart];
1084
1085
30.6k
    L = 2 * hQmfTransposer->synthSize; /* 8, 16, 24, 32, 40 */
1086
                                       /* Change analysis post twiddles */
1087
1088
30.6k
    switch (L) {
1089
0
      case 8:
1090
0
        tmp_t_cos = post_twiddle_cos_8;
1091
0
        tmp_t_sin = post_twiddle_sin_8;
1092
0
        break;
1093
3.26k
      case 16:
1094
3.26k
        tmp_t_cos = post_twiddle_cos_16;
1095
3.26k
        tmp_t_sin = post_twiddle_sin_16;
1096
3.26k
        break;
1097
14.1k
      case 24:
1098
14.1k
        tmp_t_cos = post_twiddle_cos_24;
1099
14.1k
        tmp_t_sin = post_twiddle_sin_24;
1100
14.1k
        break;
1101
12.2k
      case 32:
1102
12.2k
        tmp_t_cos = post_twiddle_cos_32;
1103
12.2k
        tmp_t_sin = post_twiddle_sin_32;
1104
12.2k
        break;
1105
1.06k
      case 40:
1106
1.06k
        tmp_t_cos = post_twiddle_cos_40;
1107
1.06k
        tmp_t_sin = post_twiddle_sin_40;
1108
1.06k
        break;
1109
0
      default:
1110
0
        return SBRDEC_UNSUPPORTED_CONFIG;
1111
30.6k
    }
1112
1113
30.6k
    qmfErr = qmfInitSynthesisFilterBank(
1114
30.6k
        &hQmfTransposer->HBESynthesisQMF, hQmfTransposer->synQmfStates,
1115
30.6k
        hQmfTransposer->noCols, 0, hQmfTransposer->synthSize,
1116
30.6k
        hQmfTransposer->synthSize, 1);
1117
30.6k
    if (qmfErr != 0) {
1118
0
      return SBRDEC_UNSUPPORTED_CONFIG;
1119
0
    }
1120
1121
30.6k
    qmfErr = qmfInitAnalysisFilterBank(
1122
30.6k
        &hQmfTransposer->HBEAnalysiscQMF, hQmfTransposer->anaQmfStates,
1123
30.6k
        hQmfTransposer->noCols / 2, 0, 2 * hQmfTransposer->synthSize,
1124
30.6k
        2 * hQmfTransposer->synthSize, 0);
1125
1126
30.6k
    if (qmfErr != 0) {
1127
0
      return SBRDEC_UNSUPPORTED_CONFIG;
1128
0
    }
1129
1130
30.6k
    hQmfTransposer->HBEAnalysiscQMF.t_cos = tmp_t_cos;
1131
30.6k
    hQmfTransposer->HBEAnalysiscQMF.t_sin = tmp_t_sin;
1132
1133
30.6k
    FDKmemset(hQmfTransposer->xOverQmf, 0,
1134
30.6k
              MAX_NUM_PATCHES * sizeof(int)); /* global */
1135
30.6k
    sfb = 0;
1136
30.6k
    if (hQmfTransposer->bSbr41) {
1137
6.98k
      stopPatch = MAX_NUM_PATCHES;
1138
6.98k
      hQmfTransposer->maxStretch = MAX_STRETCH_HBE;
1139
23.7k
    } else {
1140
23.7k
      stopPatch = MAX_STRETCH_HBE;
1141
23.7k
    }
1142
1143
105k
    for (patch = 1; patch <= stopPatch; patch++) {
1144
380k
      while (sfb <= NSfb[0] &&
1145
350k
             FreqBandTable[0][sfb] <= patch * hQmfTransposer->startBand)
1146
275k
        sfb++;
1147
105k
      if (sfb <= NSfb[0]) {
1148
        /* If the distance is larger than three QMF bands - try aligning to high
1149
         * resolution frequency bands instead. */
1150
74.5k
        if ((patch * hQmfTransposer->startBand - FreqBandTable[0][sfb - 1]) <=
1151
74.5k
            3) {
1152
69.8k
          hQmfTransposer->xOverQmf[patch - 1] = FreqBandTable[0][sfb - 1];
1153
69.8k
        } else {
1154
4.64k
          int sfb_tmp = 0;
1155
72.9k
          while (sfb_tmp <= NSfb[1] &&
1156
72.9k
                 FreqBandTable[1][sfb_tmp] <= patch * hQmfTransposer->startBand)
1157
68.3k
            sfb_tmp++;
1158
4.64k
          hQmfTransposer->xOverQmf[patch - 1] = FreqBandTable[1][sfb_tmp - 1];
1159
4.64k
        }
1160
74.5k
      } else {
1161
30.6k
        hQmfTransposer->xOverQmf[patch - 1] = hQmfTransposer->stopBand;
1162
30.6k
        hQmfTransposer->maxStretch = fMin(patch, MAX_STRETCH_HBE);
1163
30.6k
        break;
1164
30.6k
      }
1165
105k
    }
1166
1167
30.6k
    hQmfTransposer->highband_exp[0] = 0;
1168
30.6k
    hQmfTransposer->highband_exp[1] = 0;
1169
30.6k
    hQmfTransposer->target_exp[0] = 0;
1170
30.6k
    hQmfTransposer->target_exp[1] = 0;
1171
30.6k
  }
1172
1173
30.6k
  return SBRDEC_OK;
1174
30.6k
}
1175
1176
32.3k
void QmfTransposerClose(HANDLE_HBE_TRANSPOSER hQmfTransposer) {
1177
32.3k
  int i;
1178
1179
32.3k
  if (hQmfTransposer != NULL) {
1180
32.3k
    if (hQmfTransposer->inBuf_F) FDKfree(hQmfTransposer->inBuf_F);
1181
1182
32.3k
    if (hQmfTransposer->qmfInBufReal_F) {
1183
453k
      for (i = 0; i < hQmfTransposer->qmfInBufSize; i++) {
1184
420k
        FDKafree(hQmfTransposer->qmfInBufReal_F[i]);
1185
420k
      }
1186
32.3k
      FDKfree(hQmfTransposer->qmfInBufReal_F);
1187
32.3k
    }
1188
1189
32.3k
    if (hQmfTransposer->qmfInBufImag_F) {
1190
453k
      for (i = 0; i < hQmfTransposer->qmfInBufSize; i++) {
1191
420k
        FDKafree(hQmfTransposer->qmfInBufImag_F[i]);
1192
420k
      }
1193
32.3k
      FDKfree(hQmfTransposer->qmfInBufImag_F);
1194
32.3k
    }
1195
1196
32.3k
    if (hQmfTransposer->qmfHBEBufReal_F) {
1197
388k
      for (i = 0; i < HBE_MAX_OUT_SLOTS; i++) {
1198
355k
        FDKfree(hQmfTransposer->qmfHBEBufReal_F[i]);
1199
355k
      }
1200
32.3k
      FDKfree(hQmfTransposer->qmfHBEBufReal_F);
1201
32.3k
    }
1202
1203
32.3k
    if (hQmfTransposer->qmfHBEBufImag_F) {
1204
388k
      for (i = 0; i < HBE_MAX_OUT_SLOTS; i++) {
1205
355k
        FDKfree(hQmfTransposer->qmfHBEBufImag_F[i]);
1206
355k
      }
1207
32.3k
      FDKfree(hQmfTransposer->qmfHBEBufImag_F);
1208
32.3k
    }
1209
1210
32.3k
    FDKfree(hQmfTransposer->qmfBufferCodecTempSlot_F);
1211
1212
32.3k
    FDKfree(hQmfTransposer);
1213
32.3k
  }
1214
32.3k
}
1215
1216
532M
inline void scaleUp(FIXP_DBL* real_m, FIXP_DBL* imag_m, INT* _e) {
1217
532M
  INT reserve;
1218
  /* shift gc_r and gc_i up if possible */
1219
532M
  reserve = CntLeadingZeros((INT(*real_m) ^ INT((*real_m >> 31))) |
1220
532M
                            (INT(*imag_m) ^ INT((*imag_m >> 31)))) -
1221
532M
            1;
1222
532M
  reserve = fMax(reserve - 1,
1223
532M
                 0); /* Leave one bit headroom such that (real_m^2 + imag_m^2)
1224
                        does not overflow later if both are 0x80000000. */
1225
532M
  reserve = fMin(reserve, *_e);
1226
532M
  FDK_ASSERT(reserve >= 0);
1227
532M
  *real_m <<= reserve;
1228
532M
  *imag_m <<= reserve;
1229
532M
  *_e -= reserve;
1230
532M
}
1231
1232
static void calculateCenterFIXP(FIXP_DBL gammaVecReal, FIXP_DBL gammaVecImag,
1233
                                FIXP_DBL* centerReal, FIXP_DBL* centerImag,
1234
74.1M
                                INT* exponent, int stretch, int mult) {
1235
74.1M
  scaleUp(&gammaVecReal, &gammaVecImag, exponent);
1236
74.1M
  FIXP_DBL energy = fPow2Div2(gammaVecReal) + fPow2Div2(gammaVecImag);
1237
1238
74.1M
  if (energy != FL2FXCONST_DBL(0.f)) {
1239
45.7M
    FIXP_DBL gc_r_m, gc_i_m, factor_m = (FIXP_DBL)0;
1240
45.7M
    INT factor_e, gc_e;
1241
45.7M
    factor_e = 2 * (*exponent) + 1;
1242
1243
45.7M
    switch (stretch) {
1244
16.6M
      case 2:
1245
16.6M
        factor_m = invFourthRootNorm2(energy, &factor_e);
1246
16.6M
        break;
1247
19.8M
      case 3:
1248
19.8M
        factor_m = invCubeRootNorm2(energy, &factor_e);
1249
19.8M
        break;
1250
9.24M
      case 4:
1251
9.24M
        factor_m = inv3EigthRootNorm2(energy, &factor_e);
1252
9.24M
        break;
1253
45.7M
    }
1254
1255
45.7M
    gc_r_m = fMultDiv2(gammaVecReal,
1256
45.7M
                       factor_m); /* exponent = HBE_SCALE + factor_e + 1 */
1257
45.7M
    gc_i_m = fMultDiv2(gammaVecImag,
1258
45.7M
                       factor_m); /* exponent = HBE_SCALE + factor_e + 1*/
1259
45.7M
    gc_e = *exponent + factor_e + 1;
1260
1261
45.7M
    scaleUp(&gc_r_m, &gc_i_m, &gc_e);
1262
1263
45.7M
    switch (mult) {
1264
19.4M
      case 0:
1265
19.4M
        *centerReal = gc_r_m;
1266
19.4M
        *centerImag = gc_i_m;
1267
19.4M
        break;
1268
18.7M
      case 1:
1269
18.7M
        *centerReal = fPow2Div2(gc_r_m) - fPow2Div2(gc_i_m);
1270
18.7M
        *centerImag = fMult(gc_r_m, gc_i_m);
1271
18.7M
        gc_e = 2 * gc_e + 1;
1272
18.7M
        break;
1273
7.58M
      case 2:
1274
7.58M
        FIXP_DBL tmp_r = gc_r_m;
1275
7.58M
        FIXP_DBL tmp_i = gc_i_m;
1276
7.58M
        gc_r_m = fPow2Div2(gc_r_m) - fPow2Div2(gc_i_m);
1277
7.58M
        gc_i_m = fMult(tmp_r, gc_i_m);
1278
7.58M
        gc_e = 3 * gc_e + 1 + 1;
1279
7.58M
        cplxMultDiv2(&centerReal[0], &centerImag[0], gc_r_m, gc_i_m, tmp_r,
1280
7.58M
                     tmp_i);
1281
7.58M
        break;
1282
45.7M
    }
1283
1284
45.7M
    scaleUp(centerReal, centerImag, &gc_e);
1285
1286
45.7M
    FDK_ASSERT(gc_e >= 0);
1287
45.7M
    *exponent = gc_e;
1288
45.7M
  } else {
1289
28.3M
    *centerReal = energy; /* energy = 0 */
1290
28.3M
    *centerImag = energy; /* energy = 0 */
1291
28.3M
    *exponent = (INT)energy;
1292
28.3M
  }
1293
74.1M
}
1294
1295
static int getHBEScaleFactorFrame(const int bSbr41, const int maxStretch,
1296
107k
                                  const int pitchInBins) {
1297
107k
  if (pitchInBins >= pmin * (1 + bSbr41)) {
1298
    /* crossproducts enabled */
1299
12.8k
    return 26;
1300
94.9k
  } else {
1301
94.9k
    return (maxStretch == 2) ? 24 : 25;
1302
94.9k
  }
1303
107k
}
1304
1305
static void addHighBandPart(FIXP_DBL g_r_m, FIXP_DBL g_i_m, INT g_e,
1306
                            FIXP_DBL mult, FIXP_DBL gammaCenterReal_m,
1307
                            FIXP_DBL gammaCenterImag_m, INT gammaCenter_e,
1308
                            INT stretch, INT scale_factor_hbe,
1309
                            FIXP_DBL* qmfHBEBufReal_F,
1310
557M
                            FIXP_DBL* qmfHBEBufImag_F) {
1311
557M
  if ((g_r_m | g_i_m) != FL2FXCONST_DBL(0.f)) {
1312
322M
    FIXP_DBL factor_m = (FIXP_DBL)0;
1313
322M
    INT factor_e;
1314
322M
    INT add = (stretch == 4) ? 1 : 0;
1315
322M
    INT shift = (stretch == 4) ? 1 : 2;
1316
1317
322M
    scaleUp(&g_r_m, &g_i_m, &g_e);
1318
322M
    FIXP_DBL energy = fPow2AddDiv2(fPow2Div2(g_r_m), g_i_m);
1319
322M
    factor_e = 2 * g_e + 1;
1320
1321
322M
    switch (stretch) {
1322
144M
      case 2:
1323
144M
        factor_m = invFourthRootNorm2(energy, &factor_e);
1324
144M
        break;
1325
135M
      case 3:
1326
135M
        factor_m = invCubeRootNorm2(energy, &factor_e);
1327
135M
        break;
1328
42.5M
      case 4:
1329
42.5M
        factor_m = inv3EigthRootNorm2(energy, &factor_e);
1330
42.5M
        break;
1331
322M
    }
1332
1333
322M
    factor_m = fMult(factor_m, mult);
1334
1335
322M
    FIXP_DBL tmp_r, tmp_i;
1336
322M
    cplxMultDiv2(&tmp_r, &tmp_i, g_r_m, g_i_m, gammaCenterReal_m,
1337
322M
                 gammaCenterImag_m);
1338
1339
322M
    g_r_m = fMultDiv2(tmp_r, factor_m) << shift;
1340
322M
    g_i_m = fMultDiv2(tmp_i, factor_m) << shift;
1341
322M
    g_e = scale_factor_hbe - (g_e + factor_e + gammaCenter_e + add);
1342
322M
    g_e = fMax((INT)0, g_e);
1343
322M
    *qmfHBEBufReal_F += g_r_m >> g_e;
1344
322M
    *qmfHBEBufImag_F += g_i_m >> g_e;
1345
322M
  }
1346
557M
}
1347
1348
void QmfTransposerApply(HANDLE_HBE_TRANSPOSER hQmfTransposer,
1349
                        FIXP_DBL** qmfBufferCodecReal,
1350
                        FIXP_DBL** qmfBufferCodecImag, int nColsIn,
1351
                        FIXP_DBL** ppQmfBufferOutReal_F,
1352
                        FIXP_DBL** ppQmfBufferOutImag_F,
1353
                        FIXP_DBL lpcFilterStatesReal[2 + (3 * (4))][(64)],
1354
                        FIXP_DBL lpcFilterStatesImag[2 + (3 * (4))][(64)],
1355
                        int pitchInBins, int scale_lb, int scale_hbe,
1356
                        int* scale_hb, int timeStep, int firstSlotOffsset,
1357
                        int ov_len,
1358
107k
                        KEEP_STATES_SYNCED_MODE keepStatesSyncedMode) {
1359
107k
  int i, j, stretch, band, sourceband, r, s;
1360
107k
  int qmfVocoderColsIn = hQmfTransposer->noCols / 2;
1361
107k
  int bSbr41 = hQmfTransposer->bSbr41;
1362
1363
107k
  const int winLength[3] = {10, 8, 6};
1364
107k
  const int slotOffset = 6; /* hQmfTransposer->winLen-6; */
1365
1366
107k
  int qmfOffset = 2 * hQmfTransposer->kstart;
1367
107k
  int scale_border = (nColsIn == 64) ? 32 : nColsIn;
1368
1369
107k
  INT slot_stretch4[9] = {0, 0, 0, 0, 2, 4, 6, 8, 10};
1370
107k
  INT slot_stretch2[11] = {0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10};
1371
107k
  INT slot_stretch3[10] = {0, 0, 0, 1, 3, 4, 6, 7, 9, 10};
1372
107k
  INT filt_stretch3[10] = {0, 0, 0, 1, 0, 1, 0, 1, 0, 1};
1373
107k
  INT filt_dummy[11] = {0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0};
1374
107k
  INT* pSlotStretch;
1375
107k
  INT* pFilt;
1376
1377
107k
  int offset = 0; /* where to take  QmfTransposer data */
1378
1379
107k
  int signPreMod =
1380
107k
      (hQmfTransposer->synthesisQmfPreModCos_F[0] < FL2FXCONST_DBL(0.f)) ? 1
1381
107k
                                                                         : -1;
1382
1383
107k
  int scale_factor_hbe =
1384
107k
      getHBEScaleFactorFrame(bSbr41, hQmfTransposer->maxStretch, pitchInBins);
1385
1386
107k
  if (keepStatesSyncedMode != KEEP_STATES_SYNCED_OFF) {
1387
71.8k
    offset = hQmfTransposer->noCols - ov_len - LPC_ORDER;
1388
71.8k
  }
1389
1390
107k
  hQmfTransposer->highband_exp[0] = hQmfTransposer->highband_exp[1];
1391
107k
  hQmfTransposer->target_exp[0] = hQmfTransposer->target_exp[1];
1392
1393
107k
  hQmfTransposer->highband_exp[1] = scale_factor_hbe;
1394
107k
  hQmfTransposer->target_exp[1] =
1395
107k
      fixMax(hQmfTransposer->highband_exp[1], hQmfTransposer->highband_exp[0]);
1396
1397
107k
  scale_factor_hbe = hQmfTransposer->target_exp[1];
1398
1399
107k
  int shift_ov = hQmfTransposer->target_exp[0] - hQmfTransposer->target_exp[1];
1400
1401
107k
  if (shift_ov != 0) {
1402
447k
    for (i = 0; i < HBE_MAX_OUT_SLOTS; i++) {
1403
409k
      scaleValuesSaturate(&hQmfTransposer->qmfHBEBufReal_F[i][0],
1404
409k
                          QMF_SYNTH_CHANNELS, shift_ov);
1405
409k
      scaleValuesSaturate(&hQmfTransposer->qmfHBEBufImag_F[i][0],
1406
409k
                          QMF_SYNTH_CHANNELS, shift_ov);
1407
409k
    }
1408
1409
37.2k
    if (keepStatesSyncedMode == KEEP_STATES_SYNCED_OFF) {
1410
5.21k
      int nBands =
1411
5.21k
          fMax(0, hQmfTransposer->stopBand - hQmfTransposer->startBand);
1412
1413
21.8k
      for (i = timeStep * firstSlotOffsset; i < ov_len; i++) {
1414
16.6k
        scaleValuesSaturate(&ppQmfBufferOutReal_F[i][hQmfTransposer->startBand],
1415
16.6k
                            nBands, shift_ov);
1416
16.6k
        scaleValuesSaturate(&ppQmfBufferOutImag_F[i][hQmfTransposer->startBand],
1417
16.6k
                            nBands, shift_ov);
1418
16.6k
      }
1419
1420
      /* shift lpc filterstates */
1421
33.5k
      for (i = 0; i < timeStep * firstSlotOffsset + LPC_ORDER; i++) {
1422
28.2k
        scaleValuesSaturate(&lpcFilterStatesReal[i][0], (64), shift_ov);
1423
28.2k
        scaleValuesSaturate(&lpcFilterStatesImag[i][0], (64), shift_ov);
1424
28.2k
      }
1425
5.21k
    }
1426
37.2k
  }
1427
1428
107k
  FIXP_DBL twid_m_new[3][2]; /* [stretch][cos/sin] */
1429
107k
  INT stepsize = 1 + !bSbr41, sine_offset = 24, mod = 96;
1430
107k
  INT mult[3] = {1, 2, 3};
1431
1432
431k
  for (s = 0; s <= MAX_STRETCH_HBE - 2; s++) {
1433
323k
    twid_m_new[s][0] = twiddle[(mult[s] * (stepsize * pitchInBins)) % mod];
1434
323k
    twid_m_new[s][1] =
1435
323k
        twiddle[((mult[s] * (stepsize * pitchInBins)) + sine_offset) % mod];
1436
323k
  }
1437
1438
  /* Time-stretch */
1439
2.34M
  for (j = 0; j < qmfVocoderColsIn; j++) {
1440
2.24M
    int sign = -1, k, z, addrshift, codecTemp_e;
1441
    /* update inbuf */
1442
30.6M
    for (i = 0; i < hQmfTransposer->synthSize; i++) {
1443
28.3M
      hQmfTransposer->inBuf_F[i] =
1444
28.3M
          hQmfTransposer->inBuf_F[i + 2 * hQmfTransposer->synthSize];
1445
28.3M
    }
1446
1447
    /* run synthesis for two sbr slots as transposer uses
1448
    half slots double bands representation */
1449
6.72M
    for (z = 0; z < 2; z++) {
1450
4.48M
      int scale_factor = ((nColsIn == 64) && ((2 * j + z) < scale_border))
1451
4.48M
                             ? scale_lb
1452
4.48M
                             : scale_hbe;
1453
4.48M
      codecTemp_e = scale_factor - 1; /* -2 for Div2 and cos/sin scale of 1 */
1454
1455
61.2M
      for (k = 0; k < hQmfTransposer->synthSize; k++) {
1456
56.7M
        int ki = hQmfTransposer->kstart + k;
1457
56.7M
        hQmfTransposer->qmfBufferCodecTempSlot_F[k] =
1458
56.7M
            fMultDiv2(signPreMod * hQmfTransposer->synthesisQmfPreModCos_F[k],
1459
56.7M
                      qmfBufferCodecReal[2 * j + z][ki]);
1460
56.7M
        hQmfTransposer->qmfBufferCodecTempSlot_F[k] +=
1461
56.7M
            fMultDiv2(signPreMod * hQmfTransposer->synthesisQmfPreModSin_F[k],
1462
56.7M
                      qmfBufferCodecImag[2 * j + z][ki]);
1463
56.7M
      }
1464
1465
4.48M
      C_AALLOC_SCRATCH_START(pWorkBuffer, FIXP_DBL, (HBE_MAX_QMF_BANDS << 1));
1466
1467
4.48M
      qmfSynthesisFilteringSlot(
1468
4.48M
          &hQmfTransposer->HBESynthesisQMF,
1469
4.48M
          hQmfTransposer->qmfBufferCodecTempSlot_F, NULL, 0,
1470
4.48M
          -7 - hQmfTransposer->HBESynthesisQMF.filterScale - codecTemp_e + 1,
1471
4.48M
          hQmfTransposer->inBuf_F + hQmfTransposer->synthSize * (z + 1), 1,
1472
4.48M
          pWorkBuffer);
1473
1474
4.48M
      C_AALLOC_SCRATCH_END(pWorkBuffer, FIXP_DBL, (HBE_MAX_QMF_BANDS << 1));
1475
4.48M
    }
1476
1477
2.24M
    C_AALLOC_SCRATCH_START(pWorkBuffer, FIXP_DBL, (HBE_MAX_QMF_BANDS << 1));
1478
1479
2.24M
    qmfAnalysisFilteringSlot(&hQmfTransposer->HBEAnalysiscQMF,
1480
2.24M
                             hQmfTransposer->qmfInBufReal_F[QMF_WIN_LEN - 1],
1481
2.24M
                             hQmfTransposer->qmfInBufImag_F[QMF_WIN_LEN - 1],
1482
2.24M
                             hQmfTransposer->inBuf_F + 1, 1, pWorkBuffer);
1483
1484
2.24M
    C_AALLOC_SCRATCH_END(pWorkBuffer, FIXP_DBL, (HBE_MAX_QMF_BANDS << 1));
1485
1486
2.24M
    if ((keepStatesSyncedMode == KEEP_STATES_SYNCED_NORMAL) &&
1487
628k
        j <= qmfVocoderColsIn - ((LPC_ORDER + ov_len + QMF_WIN_LEN - 1) >> 1)) {
1488
      /* update in buffer */
1489
4.14M
      for (i = 0; i < QMF_WIN_LEN - 1; i++) {
1490
3.82M
        FDKmemcpy(
1491
3.82M
            hQmfTransposer->qmfInBufReal_F[i],
1492
3.82M
            hQmfTransposer->qmfInBufReal_F[i + 1],
1493
3.82M
            sizeof(FIXP_DBL) * hQmfTransposer->HBEAnalysiscQMF.no_channels);
1494
3.82M
        FDKmemcpy(
1495
3.82M
            hQmfTransposer->qmfInBufImag_F[i],
1496
3.82M
            hQmfTransposer->qmfInBufImag_F[i + 1],
1497
3.82M
            sizeof(FIXP_DBL) * hQmfTransposer->HBEAnalysiscQMF.no_channels);
1498
3.82M
      }
1499
319k
      continue;
1500
319k
    }
1501
1502
6.38M
    for (stretch = 2; stretch <= hQmfTransposer->maxStretch; stretch++) {
1503
4.46M
      int start = slotOffset - winLength[stretch - 2] / 2;
1504
4.46M
      int stop = slotOffset + winLength[stretch - 2] / 2;
1505
1506
4.46M
      FIXP_DBL factor = FL2FXCONST_DBL(1.f / 3.f);
1507
1508
4.46M
      for (band = hQmfTransposer->xOverQmf[stretch - 2];
1509
64.3M
           band < hQmfTransposer->xOverQmf[stretch - 1]; band++) {
1510
59.8M
        FIXP_DBL gammaCenterReal_m[2] = {(FIXP_DBL)0, (FIXP_DBL)0},
1511
59.8M
                 gammaCenterImag_m[2] = {(FIXP_DBL)0, (FIXP_DBL)0};
1512
59.8M
        INT gammaCenter_e[2] = {0, 0};
1513
1514
59.8M
        FIXP_DBL gammaVecReal_m[2] = {(FIXP_DBL)0, (FIXP_DBL)0},
1515
59.8M
                 gammaVecImag_m[2] = {(FIXP_DBL)0, (FIXP_DBL)0};
1516
59.8M
        INT gammaVec_e[2] = {0, 0};
1517
1518
59.8M
        FIXP_DBL wingain = (FIXP_DBL)0;
1519
1520
59.8M
        gammaCenter_e[0] =
1521
59.8M
            SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1522
59.8M
        gammaCenter_e[1] =
1523
59.8M
            SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1524
1525
        /* interpolation filters for 3rd order */
1526
59.8M
        sourceband = 2 * band / stretch - qmfOffset;
1527
59.8M
        FDK_ASSERT(sourceband >= 0);
1528
1529
        /* maximum gammaCenter_e == 20 */
1530
59.8M
        calculateCenterFIXP(
1531
59.8M
            hQmfTransposer->qmfInBufReal_F[slotOffset][sourceband],
1532
59.8M
            hQmfTransposer->qmfInBufImag_F[slotOffset][sourceband],
1533
59.8M
            &gammaCenterReal_m[0], &gammaCenterImag_m[0], &gammaCenter_e[0],
1534
59.8M
            stretch, stretch - 2);
1535
1536
59.8M
        if (stretch == 4) {
1537
13.9M
          r = band - 2 * (band / 2);
1538
13.9M
          sourceband += (r == 0) ? -1 : 1;
1539
13.9M
          pSlotStretch = slot_stretch4;
1540
13.9M
          factor = FL2FXCONST_DBL(2.f / 3.f);
1541
13.9M
          pFilt = filt_dummy;
1542
45.8M
        } else if (stretch == 2) {
1543
24.3M
          r = 0;
1544
24.3M
          sourceband = 2 * band / stretch - qmfOffset;
1545
24.3M
          pSlotStretch = slot_stretch2;
1546
24.3M
          factor = FL2FXCONST_DBL(1.f / 3.f);
1547
24.3M
          pFilt = filt_dummy;
1548
24.3M
        } else {
1549
21.5M
          r = 2 * band - 3 * (2 * band / 3);
1550
21.5M
          sourceband = 2 * band / stretch - qmfOffset;
1551
21.5M
          pSlotStretch = slot_stretch3;
1552
21.5M
          factor = FL2FXCONST_DBL(1.4142f / 3.0f);
1553
21.5M
          pFilt = filt_stretch3;
1554
21.5M
        }
1555
1556
59.8M
        if (r == 2) {
1557
7.18M
          calculateCenterFIXP(
1558
7.18M
              hQmfTransposer->qmfInBufReal_F[slotOffset][sourceband + 1],
1559
7.18M
              hQmfTransposer->qmfInBufImag_F[slotOffset][sourceband + 1],
1560
7.18M
              &gammaCenterReal_m[1], &gammaCenterImag_m[1], &gammaCenter_e[1],
1561
7.18M
              stretch, stretch - 2);
1562
1563
7.18M
          factor = FL2FXCONST_DBL(1.4142f / 6.0f);
1564
7.18M
        }
1565
1566
59.8M
        if (r == 2) {
1567
64.6M
          for (k = start; k < stop; k++) {
1568
57.4M
            gammaVecReal_m[0] =
1569
57.4M
                hQmfTransposer->qmfInBufReal_F[pSlotStretch[k]][sourceband];
1570
57.4M
            gammaVecReal_m[1] =
1571
57.4M
                hQmfTransposer->qmfInBufReal_F[pSlotStretch[k]][sourceband + 1];
1572
57.4M
            gammaVecImag_m[0] =
1573
57.4M
                hQmfTransposer->qmfInBufImag_F[pSlotStretch[k]][sourceband];
1574
57.4M
            gammaVecImag_m[1] =
1575
57.4M
                hQmfTransposer->qmfInBufImag_F[pSlotStretch[k]][sourceband + 1];
1576
57.4M
            gammaVec_e[0] = gammaVec_e[1] =
1577
57.4M
                SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1578
1579
57.4M
            if (pFilt[k] == 1) {
1580
28.7M
              FIXP_DBL tmpRealF = gammaVecReal_m[0], tmpImagF;
1581
28.7M
              gammaVecReal_m[0] =
1582
28.7M
                  (fMult(gammaVecReal_m[0], hintReal_F[sourceband % 4][1]) -
1583
28.7M
                   fMult(gammaVecImag_m[0],
1584
28.7M
                         hintReal_F[(sourceband + 3) % 4][1])) >>
1585
28.7M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1586
28.7M
              gammaVecImag_m[0] =
1587
28.7M
                  (fMult(tmpRealF, hintReal_F[(sourceband + 3) % 4][1]) +
1588
28.7M
                   fMult(gammaVecImag_m[0], hintReal_F[sourceband % 4][1])) >>
1589
28.7M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1590
1591
28.7M
              tmpRealF = hQmfTransposer
1592
28.7M
                             ->qmfInBufReal_F[pSlotStretch[k] + 1][sourceband];
1593
28.7M
              tmpImagF = hQmfTransposer
1594
28.7M
                             ->qmfInBufImag_F[pSlotStretch[k] + 1][sourceband];
1595
1596
28.7M
              gammaVecReal_m[0] +=
1597
28.7M
                  (fMult(tmpRealF, hintReal_F[sourceband % 4][1]) -
1598
28.7M
                   fMult(tmpImagF, hintReal_F[(sourceband + 1) % 4][1])) >>
1599
28.7M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1600
28.7M
              gammaVecImag_m[0] +=
1601
28.7M
                  (fMult(tmpRealF, hintReal_F[(sourceband + 1) % 4][1]) +
1602
28.7M
                   fMult(tmpImagF, hintReal_F[sourceband % 4][1])) >>
1603
28.7M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1604
28.7M
              gammaVec_e[0]++;
1605
1606
28.7M
              tmpRealF = gammaVecReal_m[1];
1607
1608
28.7M
              gammaVecReal_m[1] =
1609
28.7M
                  (fMult(gammaVecReal_m[1], hintReal_F[sourceband % 4][2]) -
1610
28.7M
                   fMult(gammaVecImag_m[1],
1611
28.7M
                         hintReal_F[(sourceband + 3) % 4][2])) >>
1612
28.7M
                  1;
1613
28.7M
              gammaVecImag_m[1] =
1614
28.7M
                  (fMult(tmpRealF, hintReal_F[(sourceband + 3) % 4][2]) +
1615
28.7M
                   fMult(gammaVecImag_m[1], hintReal_F[sourceband % 4][2])) >>
1616
28.7M
                  1;
1617
1618
28.7M
              tmpRealF =
1619
28.7M
                  hQmfTransposer
1620
28.7M
                      ->qmfInBufReal_F[pSlotStretch[k] + 1][sourceband + 1];
1621
28.7M
              tmpImagF =
1622
28.7M
                  hQmfTransposer
1623
28.7M
                      ->qmfInBufImag_F[pSlotStretch[k] + 1][sourceband + 1];
1624
1625
28.7M
              gammaVecReal_m[1] +=
1626
28.7M
                  (fMult(tmpRealF, hintReal_F[sourceband % 4][2]) -
1627
28.7M
                   fMult(tmpImagF, hintReal_F[(sourceband + 1) % 4][2])) >>
1628
28.7M
                  1;
1629
28.7M
              gammaVecImag_m[1] +=
1630
28.7M
                  (fMult(tmpRealF, hintReal_F[(sourceband + 1) % 4][2]) +
1631
28.7M
                   fMult(tmpImagF, hintReal_F[sourceband % 4][2])) >>
1632
28.7M
                  1;
1633
28.7M
              gammaVec_e[1]++;
1634
28.7M
            }
1635
1636
57.4M
            addHighBandPart(gammaVecReal_m[1], gammaVecImag_m[1], gammaVec_e[1],
1637
57.4M
                            factor, gammaCenterReal_m[0], gammaCenterImag_m[0],
1638
57.4M
                            gammaCenter_e[0], stretch, scale_factor_hbe,
1639
57.4M
                            &hQmfTransposer->qmfHBEBufReal_F[k][band],
1640
57.4M
                            &hQmfTransposer->qmfHBEBufImag_F[k][band]);
1641
1642
57.4M
            addHighBandPart(gammaVecReal_m[0], gammaVecImag_m[0], gammaVec_e[0],
1643
57.4M
                            factor, gammaCenterReal_m[1], gammaCenterImag_m[1],
1644
57.4M
                            gammaCenter_e[1], stretch, scale_factor_hbe,
1645
57.4M
                            &hQmfTransposer->qmfHBEBufReal_F[k][band],
1646
57.4M
                            &hQmfTransposer->qmfHBEBufImag_F[k][band]);
1647
57.4M
          }
1648
52.6M
        } else {
1649
494M
          for (k = start; k < stop; k++) {
1650
442M
            gammaVecReal_m[0] =
1651
442M
                hQmfTransposer->qmfInBufReal_F[pSlotStretch[k]][sourceband];
1652
442M
            gammaVecImag_m[0] =
1653
442M
                hQmfTransposer->qmfInBufImag_F[pSlotStretch[k]][sourceband];
1654
442M
            gammaVec_e[0] =
1655
442M
                SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1656
1657
442M
            if (pFilt[k] == 1) {
1658
57.2M
              FIXP_DBL tmpRealF = gammaVecReal_m[0], tmpImagF;
1659
57.2M
              gammaVecReal_m[0] =
1660
57.2M
                  (fMult(gammaVecReal_m[0], hintReal_F[sourceband % 4][1]) -
1661
57.2M
                   fMult(gammaVecImag_m[0],
1662
57.2M
                         hintReal_F[(sourceband + 3) % 4][1])) >>
1663
57.2M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1664
57.2M
              gammaVecImag_m[0] =
1665
57.2M
                  (fMult(tmpRealF, hintReal_F[(sourceband + 3) % 4][1]) +
1666
57.2M
                   fMult(gammaVecImag_m[0], hintReal_F[sourceband % 4][1])) >>
1667
57.2M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1668
1669
57.2M
              tmpRealF = hQmfTransposer
1670
57.2M
                             ->qmfInBufReal_F[pSlotStretch[k] + 1][sourceband];
1671
57.2M
              tmpImagF = hQmfTransposer
1672
57.2M
                             ->qmfInBufImag_F[pSlotStretch[k] + 1][sourceband];
1673
1674
57.2M
              gammaVecReal_m[0] +=
1675
57.2M
                  (fMult(tmpRealF, hintReal_F[sourceband % 4][1]) -
1676
57.2M
                   fMult(tmpImagF, hintReal_F[(sourceband + 1) % 4][1])) >>
1677
57.2M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1678
57.2M
              gammaVecImag_m[0] +=
1679
57.2M
                  (fMult(tmpRealF, hintReal_F[(sourceband + 1) % 4][1]) +
1680
57.2M
                   fMult(tmpImagF, hintReal_F[sourceband % 4][1])) >>
1681
57.2M
                  1; /* sum should be <= 1 because of sin/cos multiplication */
1682
57.2M
              gammaVec_e[0]++;
1683
57.2M
            }
1684
1685
442M
            addHighBandPart(gammaVecReal_m[0], gammaVecImag_m[0], gammaVec_e[0],
1686
442M
                            factor, gammaCenterReal_m[0], gammaCenterImag_m[0],
1687
442M
                            gammaCenter_e[0], stretch, scale_factor_hbe,
1688
442M
                            &hQmfTransposer->qmfHBEBufReal_F[k][band],
1689
442M
                            &hQmfTransposer->qmfHBEBufImag_F[k][band]);
1690
442M
          }
1691
52.6M
        }
1692
1693
        /* pitchInBins is given with the resolution of a 768 bins FFT and we
1694
         * need 64 QMF units so factor 768/64 = 12 */
1695
59.8M
        if (pitchInBins >= pmin * (1 + bSbr41)) {
1696
8.87M
          int tr, ti1, ti2, mTr = 0, ts1 = 0, ts2 = 0, mVal_e = 0, temp_e = 0;
1697
8.87M
          int sqmag0_e =
1698
8.87M
              SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1699
1700
8.87M
          FIXP_DBL mVal_F = FL2FXCONST_DBL(0.f), sqmag0_F, sqmag1_F, sqmag2_F,
1701
8.87M
                   temp_F, f1_F; /* all equal exponent */
1702
8.87M
          sign = -1;
1703
1704
8.87M
          sourceband = 2 * band / stretch - qmfOffset; /* consistent with the
1705
                                                          already computed for
1706
                                                          stretch = 3,4. */
1707
8.87M
          FDK_ASSERT(sourceband >= 0);
1708
1709
8.87M
          FIXP_DBL sqmag0R_F =
1710
8.87M
              hQmfTransposer->qmfInBufReal_F[slotOffset][sourceband];
1711
8.87M
          FIXP_DBL sqmag0I_F =
1712
8.87M
              hQmfTransposer->qmfInBufImag_F[slotOffset][sourceband];
1713
8.87M
          scaleUp(&sqmag0R_F, &sqmag0I_F, &sqmag0_e);
1714
1715
8.87M
          sqmag0_F = fPow2Div2(sqmag0R_F);
1716
8.87M
          sqmag0_F += fPow2Div2(sqmag0I_F);
1717
8.87M
          sqmag0_e = 2 * sqmag0_e + 1;
1718
1719
24.5M
          for (tr = 1; tr < stretch; tr++) {
1720
15.6M
            int sqmag1_e =
1721
15.6M
                SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1722
15.6M
            int sqmag2_e =
1723
15.6M
                SCALE2EXP(-hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1724
1725
15.6M
            FIXP_DBL tmp_band = band_F[band];
1726
15.6M
            FIXP_DBL tr_p =
1727
15.6M
                fMult(p_F[pitchInBins] >> bSbr41, tr_str[tr - 1]); /* scale 7 */
1728
15.6M
            f1_F =
1729
15.6M
                fMult(tmp_band - tr_p, stretchfac[stretch - 2]); /* scale 7 */
1730
15.6M
            ti1 = (INT)(f1_F >> (DFRACT_BITS - 1 - 7)) - qmfOffset;
1731
15.6M
            ti2 = (INT)(((f1_F) + ((p_F[pitchInBins] >> bSbr41) >> 2)) >>
1732
15.6M
                        (DFRACT_BITS - 1 - 7)) -
1733
15.6M
                  qmfOffset;
1734
1735
15.6M
            if (ti1 >= 0 && ti2 < 2 * hQmfTransposer->synthSize) {
1736
15.3M
              FIXP_DBL sqmag1R_F =
1737
15.3M
                  hQmfTransposer->qmfInBufReal_F[slotOffset][ti1];
1738
15.3M
              FIXP_DBL sqmag1I_F =
1739
15.3M
                  hQmfTransposer->qmfInBufImag_F[slotOffset][ti1];
1740
15.3M
              scaleUp(&sqmag1R_F, &sqmag1I_F, &sqmag1_e);
1741
15.3M
              sqmag1_F = fPow2Div2(sqmag1R_F);
1742
15.3M
              sqmag1_F += fPow2Div2(sqmag1I_F);
1743
15.3M
              sqmag1_e = 2 * sqmag1_e + 1;
1744
1745
15.3M
              FIXP_DBL sqmag2R_F =
1746
15.3M
                  hQmfTransposer->qmfInBufReal_F[slotOffset][ti2];
1747
15.3M
              FIXP_DBL sqmag2I_F =
1748
15.3M
                  hQmfTransposer->qmfInBufImag_F[slotOffset][ti2];
1749
15.3M
              scaleUp(&sqmag2R_F, &sqmag2I_F, &sqmag2_e);
1750
15.3M
              sqmag2_F = fPow2Div2(sqmag2R_F);
1751
15.3M
              sqmag2_F += fPow2Div2(sqmag2I_F);
1752
15.3M
              sqmag2_e = 2 * sqmag2_e + 1;
1753
1754
15.3M
              int shift1 = fMin(fMax(sqmag1_e, sqmag2_e) - sqmag1_e, 31);
1755
15.3M
              int shift2 = fMin(fMax(sqmag1_e, sqmag2_e) - sqmag2_e, 31);
1756
1757
15.3M
              temp_F = fMin((sqmag1_F >> shift1), (sqmag2_F >> shift2));
1758
15.3M
              temp_e = fMax(sqmag1_e, sqmag2_e);
1759
1760
15.3M
              int shift3 = fMin(fMax(temp_e, mVal_e) - temp_e, 31);
1761
15.3M
              int shift4 = fMin(fMax(temp_e, mVal_e) - mVal_e, 31);
1762
1763
15.3M
              if ((temp_F >> shift3) > (mVal_F >> shift4)) {
1764
8.19M
                mVal_F = temp_F;
1765
8.19M
                mVal_e = temp_e; /* equals sqmag2_e + shift2 */
1766
8.19M
                mTr = tr;
1767
8.19M
                ts1 = ti1;
1768
8.19M
                ts2 = ti2;
1769
8.19M
              }
1770
15.3M
            }
1771
15.6M
          }
1772
1773
8.87M
          int shift1 = fMin(fMax(sqmag0_e, mVal_e) - sqmag0_e, 31);
1774
8.87M
          int shift2 = fMin(fMax(sqmag0_e, mVal_e) - mVal_e, 31);
1775
1776
8.87M
          if ((mVal_F >> shift2) > (sqmag0_F >> shift1) && ts1 >= 0 &&
1777
2.36M
              ts2 < 2 * hQmfTransposer->synthSize) {
1778
2.36M
            INT gammaOut_e[2];
1779
2.36M
            FIXP_DBL gammaOutReal_m[2], gammaOutImag_m[2];
1780
2.36M
            FIXP_DBL tmpReal_m = (FIXP_DBL)0, tmpImag_m = (FIXP_DBL)0;
1781
1782
2.36M
            int Tcenter, Tvec;
1783
1784
2.36M
            Tcenter = stretch - mTr; /* default phase power parameters */
1785
2.36M
            Tvec = mTr;
1786
2.36M
            switch (stretch) /* 2 tap block creation design depends on stretch
1787
                                order */
1788
2.36M
            {
1789
693k
              case 2:
1790
693k
                wingain =
1791
693k
                    FL2FXCONST_DBL(5.f / 12.f); /* sum of taps divided by two */
1792
1793
693k
                if (hQmfTransposer->bXProducts[0]) {
1794
693k
                  gammaCenterReal_m[0] =
1795
693k
                      hQmfTransposer->qmfInBufReal_F[slotOffset][ts1];
1796
693k
                  gammaCenterImag_m[0] =
1797
693k
                      hQmfTransposer->qmfInBufImag_F[slotOffset][ts1];
1798
1799
2.08M
                  for (k = 0; k < 2; k++) {
1800
1.38M
                    gammaVecReal_m[k] =
1801
1.38M
                        hQmfTransposer->qmfInBufReal_F[slotOffset - 1 + k][ts2];
1802
1.38M
                    gammaVecImag_m[k] =
1803
1.38M
                        hQmfTransposer->qmfInBufImag_F[slotOffset - 1 + k][ts2];
1804
1.38M
                  }
1805
1806
693k
                  gammaCenter_e[0] = SCALE2EXP(
1807
693k
                      -hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1808
693k
                  gammaVec_e[0] = gammaVec_e[1] = SCALE2EXP(
1809
693k
                      -hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1810
693k
                }
1811
693k
                break;
1812
1813
704k
              case 4:
1814
704k
                wingain =
1815
704k
                    FL2FXCONST_DBL(6.f / 12.f); /* sum of taps divided by two */
1816
704k
                if (hQmfTransposer->bXProducts[2]) {
1817
704k
                  if (mTr == 1) {
1818
235k
                    gammaCenterReal_m[0] =
1819
235k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts1];
1820
235k
                    gammaCenterImag_m[0] =
1821
235k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts1];
1822
1823
706k
                    for (k = 0; k < 2; k++) {
1824
471k
                      gammaVecReal_m[k] =
1825
471k
                          hQmfTransposer
1826
471k
                              ->qmfInBufReal_F[slotOffset + 2 * (k - 1)][ts2];
1827
471k
                      gammaVecImag_m[k] =
1828
471k
                          hQmfTransposer
1829
471k
                              ->qmfInBufImag_F[slotOffset + 2 * (k - 1)][ts2];
1830
471k
                    }
1831
468k
                  } else if (mTr == 2) {
1832
263k
                    gammaCenterReal_m[0] =
1833
263k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts1];
1834
263k
                    gammaCenterImag_m[0] =
1835
263k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts1];
1836
1837
790k
                    for (k = 0; k < 2; k++) {
1838
527k
                      gammaVecReal_m[k] =
1839
527k
                          hQmfTransposer
1840
527k
                              ->qmfInBufReal_F[slotOffset + (k - 1)][ts2];
1841
527k
                      gammaVecImag_m[k] =
1842
527k
                          hQmfTransposer
1843
527k
                              ->qmfInBufImag_F[slotOffset + (k - 1)][ts2];
1844
527k
                    }
1845
263k
                  } else /* (mTr == 3) */
1846
205k
                  {
1847
205k
                    sign = 1;
1848
205k
                    Tcenter = mTr; /* opposite phase power parameters as ts2 is
1849
                                      center */
1850
205k
                    Tvec = stretch - mTr;
1851
1852
205k
                    gammaCenterReal_m[0] =
1853
205k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts2];
1854
205k
                    gammaCenterImag_m[0] =
1855
205k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts2];
1856
1857
615k
                    for (k = 0; k < 2; k++) {
1858
410k
                      gammaVecReal_m[k] =
1859
410k
                          hQmfTransposer
1860
410k
                              ->qmfInBufReal_F[slotOffset + 2 * (k - 1)][ts1];
1861
410k
                      gammaVecImag_m[k] =
1862
410k
                          hQmfTransposer
1863
410k
                              ->qmfInBufImag_F[slotOffset + 2 * (k - 1)][ts1];
1864
410k
                    }
1865
205k
                  }
1866
1867
704k
                  gammaCenter_e[0] = SCALE2EXP(
1868
704k
                      -hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1869
704k
                  gammaVec_e[0] = gammaVec_e[1] = SCALE2EXP(
1870
704k
                      -hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1871
704k
                }
1872
704k
                break;
1873
1874
971k
              case 3:
1875
971k
                wingain = FL2FXCONST_DBL(5.6568f /
1876
971k
                                         12.f); /* sum of taps divided by two */
1877
1878
971k
                if (hQmfTransposer->bXProducts[1]) {
1879
971k
                  FIXP_DBL tmpReal_F, tmpImag_F;
1880
971k
                  if (mTr == 1) {
1881
440k
                    gammaCenterReal_m[0] =
1882
440k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts1];
1883
440k
                    gammaCenterImag_m[0] =
1884
440k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts1];
1885
440k
                    gammaVecReal_m[1] =
1886
440k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts2];
1887
440k
                    gammaVecImag_m[1] =
1888
440k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts2];
1889
1890
440k
                    addrshift = -2;
1891
440k
                    tmpReal_F =
1892
440k
                        hQmfTransposer
1893
440k
                            ->qmfInBufReal_F[addrshift + slotOffset][ts2];
1894
440k
                    tmpImag_F =
1895
440k
                        hQmfTransposer
1896
440k
                            ->qmfInBufImag_F[addrshift + slotOffset][ts2];
1897
1898
440k
                    gammaVecReal_m[0] =
1899
440k
                        (fMult(factors[ts2 % 4], tmpReal_F) -
1900
440k
                         fMult(factors[(ts2 + 3) % 4], tmpImag_F)) >>
1901
440k
                        1;
1902
440k
                    gammaVecImag_m[0] =
1903
440k
                        (fMult(factors[(ts2 + 3) % 4], tmpReal_F) +
1904
440k
                         fMult(factors[ts2 % 4], tmpImag_F)) >>
1905
440k
                        1;
1906
1907
440k
                    tmpReal_F =
1908
440k
                        hQmfTransposer
1909
440k
                            ->qmfInBufReal_F[addrshift + 1 + slotOffset][ts2];
1910
440k
                    tmpImag_F =
1911
440k
                        hQmfTransposer
1912
440k
                            ->qmfInBufImag_F[addrshift + 1 + slotOffset][ts2];
1913
1914
440k
                    gammaVecReal_m[0] +=
1915
440k
                        (fMult(factors[ts2 % 4], tmpReal_F) -
1916
440k
                         fMult(factors[(ts2 + 1) % 4], tmpImag_F)) >>
1917
440k
                        1;
1918
440k
                    gammaVecImag_m[0] +=
1919
440k
                        (fMult(factors[(ts2 + 1) % 4], tmpReal_F) +
1920
440k
                         fMult(factors[ts2 % 4], tmpImag_F)) >>
1921
440k
                        1;
1922
1923
440k
                  } else /* (mTr == 2) */
1924
531k
                  {
1925
531k
                    sign = 1;
1926
531k
                    Tcenter = mTr; /* opposite phase power parameters as ts2 is
1927
                                      center */
1928
531k
                    Tvec = stretch - mTr;
1929
1930
531k
                    gammaCenterReal_m[0] =
1931
531k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts2];
1932
531k
                    gammaCenterImag_m[0] =
1933
531k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts2];
1934
531k
                    gammaVecReal_m[1] =
1935
531k
                        hQmfTransposer->qmfInBufReal_F[slotOffset][ts1];
1936
531k
                    gammaVecImag_m[1] =
1937
531k
                        hQmfTransposer->qmfInBufImag_F[slotOffset][ts1];
1938
1939
531k
                    addrshift = -2;
1940
531k
                    tmpReal_F =
1941
531k
                        hQmfTransposer
1942
531k
                            ->qmfInBufReal_F[addrshift + slotOffset][ts1];
1943
531k
                    tmpImag_F =
1944
531k
                        hQmfTransposer
1945
531k
                            ->qmfInBufImag_F[addrshift + slotOffset][ts1];
1946
1947
531k
                    gammaVecReal_m[0] =
1948
531k
                        (fMult(factors[ts1 % 4], tmpReal_F) -
1949
531k
                         fMult(factors[(ts1 + 3) % 4], tmpImag_F)) >>
1950
531k
                        1;
1951
531k
                    gammaVecImag_m[0] =
1952
531k
                        (fMult(factors[(ts1 + 3) % 4], tmpReal_F) +
1953
531k
                         fMult(factors[ts1 % 4], tmpImag_F)) >>
1954
531k
                        1;
1955
1956
531k
                    tmpReal_F =
1957
531k
                        hQmfTransposer
1958
531k
                            ->qmfInBufReal_F[addrshift + 1 + slotOffset][ts1];
1959
531k
                    tmpImag_F =
1960
531k
                        hQmfTransposer
1961
531k
                            ->qmfInBufImag_F[addrshift + 1 + slotOffset][ts1];
1962
1963
531k
                    gammaVecReal_m[0] +=
1964
531k
                        (fMult(factors[ts1 % 4], tmpReal_F) -
1965
531k
                         fMult(factors[(ts1 + 1) % 4], tmpImag_F)) >>
1966
531k
                        1;
1967
531k
                    gammaVecImag_m[0] +=
1968
531k
                        (fMult(factors[(ts1 + 1) % 4], tmpReal_F) +
1969
531k
                         fMult(factors[ts1 % 4], tmpImag_F)) >>
1970
531k
                        1;
1971
531k
                  }
1972
1973
971k
                  gammaCenter_e[0] = gammaVec_e[1] = SCALE2EXP(
1974
971k
                      -hQmfTransposer->HBEAnalysiscQMF.outScalefactor);
1975
971k
                  gammaVec_e[0] =
1976
971k
                      SCALE2EXP(
1977
971k
                          -hQmfTransposer->HBEAnalysiscQMF.outScalefactor) +
1978
971k
                      1;
1979
971k
                }
1980
971k
                break;
1981
0
              default:
1982
0
                FDK_ASSERT(0);
1983
0
                break;
1984
2.36M
            } /* stretch cases */
1985
1986
            /* parameter controlled phase modification parts */
1987
            /* maximum *_e == 20 */
1988
2.36M
            calculateCenterFIXP(gammaCenterReal_m[0], gammaCenterImag_m[0],
1989
2.36M
                                &gammaCenterReal_m[0], &gammaCenterImag_m[0],
1990
2.36M
                                &gammaCenter_e[0], stretch, Tcenter - 1);
1991
2.36M
            calculateCenterFIXP(gammaVecReal_m[0], gammaVecImag_m[0],
1992
2.36M
                                &gammaVecReal_m[0], &gammaVecImag_m[0],
1993
2.36M
                                &gammaVec_e[0], stretch, Tvec - 1);
1994
2.36M
            calculateCenterFIXP(gammaVecReal_m[1], gammaVecImag_m[1],
1995
2.36M
                                &gammaVecReal_m[1], &gammaVecImag_m[1],
1996
2.36M
                                &gammaVec_e[1], stretch, Tvec - 1);
1997
1998
            /*    Final multiplication of prepared parts  */
1999
7.10M
            for (k = 0; k < 2; k++) {
2000
4.73M
              gammaOutReal_m[k] =
2001
4.73M
                  fMultDiv2(gammaVecReal_m[k], gammaCenterReal_m[0]) -
2002
4.73M
                  fMultDiv2(gammaVecImag_m[k], gammaCenterImag_m[0]);
2003
4.73M
              gammaOutImag_m[k] =
2004
4.73M
                  fMultDiv2(gammaVecReal_m[k], gammaCenterImag_m[0]) +
2005
4.73M
                  fMultDiv2(gammaVecImag_m[k], gammaCenterReal_m[0]);
2006
4.73M
              gammaOut_e[k] = gammaCenter_e[0] + gammaVec_e[k] + 1;
2007
4.73M
            }
2008
2009
2.36M
            scaleUp(&gammaOutReal_m[0], &gammaOutImag_m[0], &gammaOut_e[0]);
2010
2.36M
            scaleUp(&gammaOutReal_m[1], &gammaOutImag_m[1], &gammaOut_e[1]);
2011
2.36M
            FDK_ASSERT(gammaOut_e[0] >= 0);
2012
2.36M
            FDK_ASSERT(gammaOut_e[0] < 32);
2013
2014
2.36M
            tmpReal_m = gammaOutReal_m[0];
2015
2.36M
            tmpImag_m = gammaOutImag_m[0];
2016
2017
2.36M
            INT modstretch4 = ((stretch == 4) && (mTr == 2));
2018
2019
2.36M
            FIXP_DBL cos_twid = twid_m_new[stretch - 2 - modstretch4][0];
2020
2.36M
            FIXP_DBL sin_twid = sign * twid_m_new[stretch - 2 - modstretch4][1];
2021
2022
2.36M
            gammaOutReal_m[0] =
2023
2.36M
                fMult(tmpReal_m, cos_twid) -
2024
2.36M
                fMult(tmpImag_m, sin_twid); /* sum should be <= 1 because of
2025
                                               sin/cos multiplication */
2026
2.36M
            gammaOutImag_m[0] =
2027
2.36M
                fMult(tmpImag_m, cos_twid) +
2028
2.36M
                fMult(tmpReal_m, sin_twid); /* sum should be <= 1 because of
2029
                                               sin/cos multiplication */
2030
2031
            /* wingain */
2032
7.10M
            for (k = 0; k < 2; k++) {
2033
4.73M
              gammaOutReal_m[k] = (fMult(gammaOutReal_m[k], wingain) << 1);
2034
4.73M
              gammaOutImag_m[k] = (fMult(gammaOutImag_m[k], wingain) << 1);
2035
4.73M
            }
2036
2037
2.36M
            gammaOutReal_m[1] >>= 1;
2038
2.36M
            gammaOutImag_m[1] >>= 1;
2039
2.36M
            gammaOut_e[0] += 2;
2040
2.36M
            gammaOut_e[1] += 2;
2041
2042
            /* OLA including window scaling by wingain/3 */
2043
7.10M
            for (k = 0; k < 2; k++) /* need k=1 to correspond to
2044
                                       grainModImag[slotOffset] -> out to
2045
                                       j*2+(slotOffset-offset)  */
2046
4.73M
            {
2047
4.73M
              hQmfTransposer->qmfHBEBufReal_F[(k + slotOffset - 1)][band] +=
2048
4.73M
                  gammaOutReal_m[k] >> (scale_factor_hbe - gammaOut_e[k]);
2049
4.73M
              hQmfTransposer->qmfHBEBufImag_F[(k + slotOffset - 1)][band] +=
2050
4.73M
                  gammaOutImag_m[k] >> (scale_factor_hbe - gammaOut_e[k]);
2051
4.73M
            }
2052
2.36M
          } /* mVal > qThrQMF * qThrQMF * sqmag0 && ts1 > 0 && ts2 < 64 */
2053
8.87M
        }   /* p >= pmin */
2054
59.8M
      }     /* for band */
2055
4.46M
    }       /* for stretch */
2056
2057
24.9M
    for (i = 0; i < QMF_WIN_LEN - 1; i++) {
2058
23.0M
      FDKmemcpy(hQmfTransposer->qmfInBufReal_F[i],
2059
23.0M
                hQmfTransposer->qmfInBufReal_F[i + 1],
2060
23.0M
                sizeof(FIXP_DBL) * hQmfTransposer->HBEAnalysiscQMF.no_channels);
2061
23.0M
      FDKmemcpy(hQmfTransposer->qmfInBufImag_F[i],
2062
23.0M
                hQmfTransposer->qmfInBufImag_F[i + 1],
2063
23.0M
                sizeof(FIXP_DBL) * hQmfTransposer->HBEAnalysiscQMF.no_channels);
2064
23.0M
    }
2065
2066
1.92M
    if (keepStatesSyncedMode != KEEP_STATES_SYNCED_NOOUT) {
2067
1.76M
      if (2 * j >= offset) {
2068
        /* copy first two slots of internal buffer to output */
2069
1.15M
        if (keepStatesSyncedMode == KEEP_STATES_SYNCED_OUTDIFF) {
2070
420k
          for (i = 0; i < 2; i++) {
2071
280k
            FDKmemcpy(&ppQmfBufferOutReal_F[2 * j - offset + i]
2072
280k
                                           [hQmfTransposer->xOverQmf[0]],
2073
280k
                      &hQmfTransposer
2074
280k
                           ->qmfHBEBufReal_F[i][hQmfTransposer->xOverQmf[0]],
2075
280k
                      (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2076
280k
                          sizeof(FIXP_DBL));
2077
280k
            FDKmemcpy(&ppQmfBufferOutImag_F[2 * j - offset + i]
2078
280k
                                           [hQmfTransposer->xOverQmf[0]],
2079
280k
                      &hQmfTransposer
2080
280k
                           ->qmfHBEBufImag_F[i][hQmfTransposer->xOverQmf[0]],
2081
280k
                      (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2082
280k
                          sizeof(FIXP_DBL));
2083
280k
          }
2084
1.01M
        } else {
2085
3.05M
          for (i = 0; i < 2; i++) {
2086
2.03M
            FDKmemcpy(&ppQmfBufferOutReal_F[2 * j + i + ov_len]
2087
2.03M
                                           [hQmfTransposer->xOverQmf[0]],
2088
2.03M
                      &hQmfTransposer
2089
2.03M
                           ->qmfHBEBufReal_F[i][hQmfTransposer->xOverQmf[0]],
2090
2.03M
                      (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2091
2.03M
                          sizeof(FIXP_DBL));
2092
2.03M
            FDKmemcpy(&ppQmfBufferOutImag_F[2 * j + i + ov_len]
2093
2.03M
                                           [hQmfTransposer->xOverQmf[0]],
2094
2.03M
                      &hQmfTransposer
2095
2.03M
                           ->qmfHBEBufImag_F[i][hQmfTransposer->xOverQmf[0]],
2096
2.03M
                      (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2097
2.03M
                          sizeof(FIXP_DBL));
2098
2.03M
          }
2099
1.01M
        }
2100
1.15M
      }
2101
1.76M
    }
2102
2103
    /* move slots up */
2104
19.2M
    for (i = 0; i < HBE_MAX_OUT_SLOTS - 2; i++) {
2105
17.2M
      FDKmemcpy(
2106
17.2M
          &hQmfTransposer->qmfHBEBufReal_F[i][hQmfTransposer->xOverQmf[0]],
2107
17.2M
          &hQmfTransposer->qmfHBEBufReal_F[i + 2][hQmfTransposer->xOverQmf[0]],
2108
17.2M
          (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2109
17.2M
              sizeof(FIXP_DBL));
2110
17.2M
      FDKmemcpy(
2111
17.2M
          &hQmfTransposer->qmfHBEBufImag_F[i][hQmfTransposer->xOverQmf[0]],
2112
17.2M
          &hQmfTransposer->qmfHBEBufImag_F[i + 2][hQmfTransposer->xOverQmf[0]],
2113
17.2M
          (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2114
17.2M
              sizeof(FIXP_DBL));
2115
17.2M
    }
2116
2117
    /* finally set last two slot to zero */
2118
5.76M
    for (i = 0; i < 2; i++) {
2119
3.84M
      FDKmemset(&hQmfTransposer->qmfHBEBufReal_F[HBE_MAX_OUT_SLOTS - 1 - i]
2120
3.84M
                                                [hQmfTransposer->xOverQmf[0]],
2121
3.84M
                0,
2122
3.84M
                (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2123
3.84M
                    sizeof(FIXP_DBL));
2124
3.84M
      FDKmemset(&hQmfTransposer->qmfHBEBufImag_F[HBE_MAX_OUT_SLOTS - 1 - i]
2125
3.84M
                                                [hQmfTransposer->xOverQmf[0]],
2126
3.84M
                0,
2127
3.84M
                (QMF_SYNTH_CHANNELS - hQmfTransposer->xOverQmf[0]) *
2128
3.84M
                    sizeof(FIXP_DBL));
2129
3.84M
    }
2130
1.92M
  } /* qmfVocoderColsIn */
2131
2132
107k
  if (keepStatesSyncedMode != KEEP_STATES_SYNCED_NOOUT) {
2133
98.0k
    if (keepStatesSyncedMode == KEEP_STATES_SYNCED_OUTDIFF) {
2134
310k
      for (i = 0; i < ov_len + LPC_ORDER; i++) {
2135
9.74M
        for (band = hQmfTransposer->startBand; band < hQmfTransposer->stopBand;
2136
9.46M
             band++) {
2137
9.46M
          FIXP_DBL tmpR = ppQmfBufferOutReal_F[i][band];
2138
9.46M
          FIXP_DBL tmpI = ppQmfBufferOutImag_F[i][band];
2139
2140
9.46M
          ppQmfBufferOutReal_F[i][band] =
2141
9.46M
              fMult(tmpR, cos_F[band]) -
2142
9.46M
              fMult(tmpI, (-cos_F[64 - band - 1])); /* sum should be <= 1
2143
                                                       because of sin/cos
2144
                                                       multiplication */
2145
9.46M
          ppQmfBufferOutImag_F[i][band] =
2146
9.46M
              fMult(tmpR, (-cos_F[64 - band - 1])) +
2147
9.46M
              fMult(tmpI, cos_F[band]); /* sum should by <= 1 because of sin/cos
2148
                                           multiplication */
2149
9.46M
        }
2150
280k
      }
2151
67.9k
    } else {
2152
2.10M
      for (i = offset; i < hQmfTransposer->noCols; i++) {
2153
68.0M
        for (band = hQmfTransposer->startBand; band < hQmfTransposer->stopBand;
2154
65.9M
             band++) {
2155
65.9M
          FIXP_DBL tmpR = ppQmfBufferOutReal_F[i + ov_len][band];
2156
65.9M
          FIXP_DBL tmpI = ppQmfBufferOutImag_F[i + ov_len][band];
2157
2158
65.9M
          ppQmfBufferOutReal_F[i + ov_len][band] =
2159
65.9M
              fMult(tmpR, cos_F[band]) -
2160
65.9M
              fMult(tmpI, (-cos_F[64 - band - 1])); /* sum should be <= 1
2161
                                                       because of sin/cos
2162
                                                       multiplication */
2163
65.9M
          ppQmfBufferOutImag_F[i + ov_len][band] =
2164
65.9M
              fMult(tmpR, (-cos_F[64 - band - 1])) +
2165
65.9M
              fMult(tmpI, cos_F[band]); /* sum should by <= 1 because of sin/cos
2166
                                           multiplication */
2167
65.9M
        }
2168
2.03M
      }
2169
67.9k
    }
2170
98.0k
  }
2171
2172
107k
  *scale_hb = EXP2SCALE(scale_factor_hbe);
2173
107k
}
2174
2175
279k
int* GetxOverBandQmfTransposer(HANDLE_HBE_TRANSPOSER hQmfTransposer) {
2176
279k
  if (hQmfTransposer)
2177
88.2k
    return hQmfTransposer->xOverQmf;
2178
191k
  else
2179
191k
    return NULL;
2180
279k
}
2181
2182
254k
int Get41SbrQmfTransposer(HANDLE_HBE_TRANSPOSER hQmfTransposer) {
2183
254k
  if (hQmfTransposer != NULL)
2184
62.5k
    return hQmfTransposer->bSbr41;
2185
191k
  else
2186
191k
    return 0;
2187
254k
}