Coverage Report

Created: 2026-02-26 06:56

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/proc/self/cwd/libfaad/sbr_hfadj.c
Line
Count
Source
1
/*
2
** FAAD2 - Freeware Advanced Audio (AAC) Decoder including SBR decoding
3
** Copyright (C) 2003-2005 M. Bakker, Nero AG, http://www.nero.com
4
**
5
** This program is free software; you can redistribute it and/or modify
6
** it under the terms of the GNU General Public License as published by
7
** the Free Software Foundation; either version 2 of the License, or
8
** (at your option) any later version.
9
**
10
** This program is distributed in the hope that it will be useful,
11
** but WITHOUT ANY WARRANTY; without even the implied warranty of
12
** MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13
** GNU General Public License for more details.
14
**
15
** You should have received a copy of the GNU General Public License
16
** along with this program; if not, write to the Free Software
17
** Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
18
**
19
** Any non-GPL usage of this software or parts of this software is strictly
20
** forbidden.
21
**
22
** The "appropriate copyright message" mentioned in section 2c of the GPLv2
23
** must read: "Code from FAAD2 is copyright (c) Nero AG, www.nero.com"
24
**
25
** Commercial non-GPL licensing of this software is possible.
26
** For more info contact Nero AG through Mpeg4AAClicense@nero.com.
27
**
28
** $Id: sbr_hfadj.c,v 1.23 2008/09/19 22:50:20 menno Exp $
29
**/
30
31
/* High Frequency adjustment */
32
#include <float.h>
33
34
#include "common.h"
35
#include "structs.h"
36
37
#ifdef SBR_DEC
38
39
#include "sbr_syntax.h"
40
#include "sbr_hfadj.h"
41
42
#include "sbr_noise.h"
43
44
45
/* static function declarations */
46
static uint8_t estimate_current_envelope(sbr_info *sbr, sbr_hfadj_info *adj,
47
                                         qmf_t Xsbr[MAX_NTSRHFG][64], uint8_t ch);
48
static void calculate_gain(sbr_info *sbr, sbr_hfadj_info *adj, uint8_t ch);
49
#ifdef SBR_LOW_POWER
50
static void calc_gain_groups(sbr_info *sbr, sbr_hfadj_info *adj, real_t *deg, uint8_t ch);
51
static void aliasing_reduction(sbr_info *sbr, sbr_hfadj_info *adj, real_t *deg, uint8_t ch);
52
#endif
53
static void hf_assembly(sbr_info *sbr, sbr_hfadj_info *adj, qmf_t Xsbr[MAX_NTSRHFG][64], uint8_t ch);
54
55
56
uint8_t hf_adjustment(sbr_info *sbr, qmf_t Xsbr[MAX_NTSRHFG][64]
57
#ifdef SBR_LOW_POWER
58
                      ,real_t *deg /* aliasing degree */
59
#endif
60
                      ,uint8_t ch)
61
28.0k
{
62
28.0k
    ALIGN sbr_hfadj_info adj = {{{0}}};
63
28.0k
    uint8_t ret = 0;
64
65
28.0k
    if (sbr->bs_frame_class[ch] == FIXFIX)
66
7.72k
    {
67
7.72k
        sbr->l_A[ch] = -1;
68
20.2k
    } else if (sbr->bs_frame_class[ch] == VARFIX) {
69
9.68k
        if (sbr->bs_pointer[ch] > 1)
70
2.34k
            sbr->l_A[ch] = sbr->bs_pointer[ch] - 1;
71
7.34k
        else
72
7.34k
            sbr->l_A[ch] = -1;
73
10.6k
    } else {
74
10.6k
        if (sbr->bs_pointer[ch] == 0)
75
3.91k
            sbr->l_A[ch] = -1;
76
6.69k
        else
77
6.69k
            sbr->l_A[ch] = sbr->L_E[ch] + 1 - sbr->bs_pointer[ch];
78
10.6k
    }
79
80
28.0k
    ret = estimate_current_envelope(sbr, &adj, Xsbr, ch);
81
28.0k
    if (ret > 0)
82
812
        return 1;
83
84
27.2k
    calculate_gain(sbr, &adj, ch);
85
86
#ifdef SBR_LOW_POWER
87
    calc_gain_groups(sbr, &adj, deg, ch);
88
    aliasing_reduction(sbr, &adj, deg, ch);
89
#endif
90
91
27.2k
    hf_assembly(sbr, &adj, Xsbr, ch);
92
93
27.2k
    return 0;
94
28.0k
}
95
96
static uint8_t get_S_mapped(sbr_info *sbr, uint8_t ch, uint8_t l, uint8_t current_band)
97
208k
{
98
208k
    if (sbr->f[ch][l] == HI_RES)
99
87.9k
    {
100
        /* in case of using f_table_high we just have 1 to 1 mapping
101
         * from bs_add_harmonic[l][k]
102
         */
103
87.9k
        if ((l >= sbr->l_A[ch]) ||
104
28.1k
            (sbr->bs_add_harmonic_prev[ch][current_band] && sbr->bs_add_harmonic_flag_prev[ch]))
105
61.5k
        {
106
61.5k
            return sbr->bs_add_harmonic[ch][current_band];
107
61.5k
        }
108
120k
    } else {
109
120k
        uint8_t b, lb, ub;
110
111
        /* in case of f_table_low we check if any of the HI_RES bands
112
         * within this LO_RES band has bs_add_harmonic[l][k] turned on
113
         * (note that borders in the LO_RES table are also present in
114
         * the HI_RES table)
115
         */
116
117
        /* find first HI_RES band in current LO_RES band */
118
120k
        lb = 2*current_band - ((sbr->N_high & 1) ? 1 : 0);
119
        /* find first HI_RES band in next LO_RES band */
120
120k
        ub = 2*(current_band+1) - ((sbr->N_high & 1) ? 1 : 0);
121
122
        /* check all HI_RES bands in current LO_RES band for sinusoid */
123
311k
        for (b = lb; b < ub; b++)
124
201k
        {
125
201k
            if ((l >= sbr->l_A[ch]) ||
126
58.7k
                (sbr->bs_add_harmonic_prev[ch][b] && sbr->bs_add_harmonic_flag_prev[ch]))
127
144k
            {
128
144k
                if (sbr->bs_add_harmonic[ch][b] == 1)
129
10.9k
                    return 1;
130
144k
            }
131
201k
        }
132
120k
    }
133
134
136k
    return 0;
135
208k
}
136
137
static uint8_t estimate_current_envelope(sbr_info *sbr, sbr_hfadj_info *adj,
138
                                         qmf_t Xsbr[MAX_NTSRHFG][64], uint8_t ch)
139
28.0k
{
140
28.0k
    uint8_t m, l, j, k, k_l, k_h, p;
141
28.0k
    real_t nrg, div;
142
28.0k
    (void)adj;  /* TODO: remove parameter? */
143
#ifdef FIXED_POINT
144
12.0k
    const real_t half = REAL_CONST(0.5);
145
    real_t limit;
146
    real_t mul;
147
#else
148
    const real_t half = 0;  /* Compiler is smart enough to eliminate +0 op. */
149
    const real_t limit = FLT_MAX;
150
#endif
151
152
28.0k
    if (sbr->bs_interpol_freq == 1)
153
19.4k
    {
154
52.1k
        for (l = 0; l < sbr->L_E[ch]; l++)
155
32.9k
        {
156
32.9k
            uint8_t i, l_i, u_i;
157
158
32.9k
            l_i = sbr->t_E[ch][l];
159
32.9k
            u_i = sbr->t_E[ch][l+1];
160
161
32.9k
            div = (real_t)(u_i - l_i);
162
163
32.9k
            if (div <= 0)
164
1.24k
                div = 1;
165
#ifdef FIXED_POINT
166
13.3k
            limit = div << (30 - (COEF_BITS - REAL_BITS));
167
13.3k
            mul = (1 << (COEF_BITS - REAL_BITS)) / div;
168
#endif
169
170
382k
            for (m = 0; m < sbr->M; m++)
171
350k
            {
172
350k
                nrg = 0;
173
174
6.78M
                for (i = l_i + sbr->tHFAdj; i < u_i + sbr->tHFAdj; i++)
175
6.43M
                {
176
6.43M
                    real_t re = QMF_RE(Xsbr[i][m + sbr->kx]) + half;
177
6.43M
                    real_t im = QMF_IM(Xsbr[i][m + sbr->kx]) + half;
178
6.43M
                    (void)im;
179
                    /* Actually, that should be MUL_R. On floating-point build
180
                       that is the same. On fixed point-build we use it to
181
                       pre-scale result (to aviod overflow). That, of course
182
                       causes some precision loss. */
183
6.43M
                    nrg += MUL_C(re, re)
184
6.43M
#ifndef SBR_LOW_POWER
185
6.43M
                        + MUL_C(im, im)
186
6.43M
#endif
187
6.43M
                        ;
188
6.43M
                }
189
190
350k
                if (nrg < -limit || nrg > limit)
191
257
                    return 1;
192
#ifdef FIXED_POINT
193
153k
                sbr->E_curr[ch][m][l] = nrg * mul;
194
#else
195
196k
                sbr->E_curr[ch][m][l] = nrg / div;
196
196k
#endif
197
#ifdef SBR_LOW_POWER
198
#ifdef FIXED_POINT
199
                sbr->E_curr[ch][m][l] <<= 1;
200
#else
201
                sbr->E_curr[ch][m][l] *= 2;
202
#endif
203
#endif
204
196k
            }
205
32.9k
        }
206
19.4k
    } else {
207
22.1k
        for (l = 0; l < sbr->L_E[ch]; l++)
208
14.1k
        {
209
101k
            for (p = 0; p < sbr->n[sbr->f[ch][l]]; p++)
210
87.5k
            {
211
87.5k
                k_l = sbr->f_table_res[sbr->f[ch][l]][p];
212
87.5k
                k_h = sbr->f_table_res[sbr->f[ch][l]][p+1];
213
214
321k
                for (k = k_l; k < k_h; k++)
215
234k
                {
216
234k
                    uint8_t i, l_i, u_i;
217
234k
                    nrg = 0;
218
219
234k
                    l_i = sbr->t_E[ch][l];
220
234k
                    u_i = sbr->t_E[ch][l+1];
221
222
234k
                    div = (real_t)((u_i - l_i)*(k_h - k_l));
223
224
234k
                    if (div <= 0)
225
8.66k
                        div = 1;
226
#ifdef FIXED_POINT
227
123k
                    limit = div << (30 - (COEF_BITS - REAL_BITS));
228
123k
                    mul = (1 << (COEF_BITS - REAL_BITS)) / div;
229
#endif
230
231
4.85M
                    for (i = l_i + sbr->tHFAdj; i < u_i + sbr->tHFAdj; i++)
232
4.61M
                    {
233
21.5M
                        for (j = k_l; j < k_h; j++)
234
16.9M
                        {
235
16.9M
                            real_t re = QMF_RE(Xsbr[i][j]) + half;
236
16.9M
                            real_t im = QMF_IM(Xsbr[i][j]) + half;
237
16.9M
                            (void)im;
238
                            /* Actually, that should be MUL_R. On floating-point build
239
                               that is the same. On fixed point-build we use it to
240
                               pre-scale result (to aviod overflow). That, of course
241
                               causes some precision loss. */
242
16.9M
                            nrg += MUL_C(re, re)
243
16.9M
#ifndef SBR_LOW_POWER
244
16.9M
                                + MUL_C(im, im)
245
16.9M
#endif
246
16.9M
                                ;
247
16.9M
                        }
248
4.61M
                    }
249
250
234k
                    if (nrg < -limit || nrg > limit)
251
555
                        return 1;
252
#ifdef FIXED_POINT
253
123k
                    sbr->E_curr[ch][k - sbr->kx][l] = nrg * mul;
254
#else
255
111k
                    sbr->E_curr[ch][k - sbr->kx][l] = nrg / div;
256
111k
#endif
257
#ifdef SBR_LOW_POWER
258
#ifdef FIXED_POINT
259
                    sbr->E_curr[ch][k - sbr->kx][l] <<= 1;
260
#else
261
                    sbr->E_curr[ch][k - sbr->kx][l] *= 2;
262
#endif
263
#endif
264
111k
                }
265
87.5k
            }
266
14.1k
        }
267
8.52k
    }
268
269
27.2k
    return 0;
270
28.0k
}
sbr_hfadj.c:estimate_current_envelope
Line
Count
Source
139
12.0k
{
140
12.0k
    uint8_t m, l, j, k, k_l, k_h, p;
141
12.0k
    real_t nrg, div;
142
12.0k
    (void)adj;  /* TODO: remove parameter? */
143
12.0k
#ifdef FIXED_POINT
144
12.0k
    const real_t half = REAL_CONST(0.5);
145
12.0k
    real_t limit;
146
12.0k
    real_t mul;
147
#else
148
    const real_t half = 0;  /* Compiler is smart enough to eliminate +0 op. */
149
    const real_t limit = FLT_MAX;
150
#endif
151
152
12.0k
    if (sbr->bs_interpol_freq == 1)
153
7.43k
    {
154
20.5k
        for (l = 0; l < sbr->L_E[ch]; l++)
155
13.3k
        {
156
13.3k
            uint8_t i, l_i, u_i;
157
158
13.3k
            l_i = sbr->t_E[ch][l];
159
13.3k
            u_i = sbr->t_E[ch][l+1];
160
161
13.3k
            div = (real_t)(u_i - l_i);
162
163
13.3k
            if (div <= 0)
164
566
                div = 1;
165
13.3k
#ifdef FIXED_POINT
166
13.3k
            limit = div << (30 - (COEF_BITS - REAL_BITS));
167
13.3k
            mul = (1 << (COEF_BITS - REAL_BITS)) / div;
168
13.3k
#endif
169
170
166k
            for (m = 0; m < sbr->M; m++)
171
153k
            {
172
153k
                nrg = 0;
173
174
2.69M
                for (i = l_i + sbr->tHFAdj; i < u_i + sbr->tHFAdj; i++)
175
2.53M
                {
176
2.53M
                    real_t re = QMF_RE(Xsbr[i][m + sbr->kx]) + half;
177
2.53M
                    real_t im = QMF_IM(Xsbr[i][m + sbr->kx]) + half;
178
2.53M
                    (void)im;
179
                    /* Actually, that should be MUL_R. On floating-point build
180
                       that is the same. On fixed point-build we use it to
181
                       pre-scale result (to aviod overflow). That, of course
182
                       causes some precision loss. */
183
2.53M
                    nrg += MUL_C(re, re)
184
2.53M
#ifndef SBR_LOW_POWER
185
2.53M
                        + MUL_C(im, im)
186
2.53M
#endif
187
2.53M
                        ;
188
2.53M
                }
189
190
153k
                if (nrg < -limit || nrg > limit)
191
250
                    return 1;
192
153k
#ifdef FIXED_POINT
193
153k
                sbr->E_curr[ch][m][l] = nrg * mul;
194
#else
195
                sbr->E_curr[ch][m][l] = nrg / div;
196
#endif
197
#ifdef SBR_LOW_POWER
198
#ifdef FIXED_POINT
199
                sbr->E_curr[ch][m][l] <<= 1;
200
#else
201
                sbr->E_curr[ch][m][l] *= 2;
202
#endif
203
#endif
204
153k
            }
205
13.3k
        }
206
7.43k
    } else {
207
12.0k
        for (l = 0; l < sbr->L_E[ch]; l++)
208
7.90k
        {
209
52.3k
            for (p = 0; p < sbr->n[sbr->f[ch][l]]; p++)
210
44.9k
            {
211
44.9k
                k_l = sbr->f_table_res[sbr->f[ch][l]][p];
212
44.9k
                k_h = sbr->f_table_res[sbr->f[ch][l]][p+1];
213
214
168k
                for (k = k_l; k < k_h; k++)
215
123k
                {
216
123k
                    uint8_t i, l_i, u_i;
217
123k
                    nrg = 0;
218
219
123k
                    l_i = sbr->t_E[ch][l];
220
123k
                    u_i = sbr->t_E[ch][l+1];
221
222
123k
                    div = (real_t)((u_i - l_i)*(k_h - k_l));
223
224
123k
                    if (div <= 0)
225
4.25k
                        div = 1;
226
123k
#ifdef FIXED_POINT
227
123k
                    limit = div << (30 - (COEF_BITS - REAL_BITS));
228
123k
                    mul = (1 << (COEF_BITS - REAL_BITS)) / div;
229
123k
#endif
230
231
2.54M
                    for (i = l_i + sbr->tHFAdj; i < u_i + sbr->tHFAdj; i++)
232
2.42M
                    {
233
12.4M
                        for (j = k_l; j < k_h; j++)
234
9.99M
                        {
235
9.99M
                            real_t re = QMF_RE(Xsbr[i][j]) + half;
236
9.99M
                            real_t im = QMF_IM(Xsbr[i][j]) + half;
237
9.99M
                            (void)im;
238
                            /* Actually, that should be MUL_R. On floating-point build
239
                               that is the same. On fixed point-build we use it to
240
                               pre-scale result (to aviod overflow). That, of course
241
                               causes some precision loss. */
242
9.99M
                            nrg += MUL_C(re, re)
243
9.99M
#ifndef SBR_LOW_POWER
244
9.99M
                                + MUL_C(im, im)
245
9.99M
#endif
246
9.99M
                                ;
247
9.99M
                        }
248
2.42M
                    }
249
250
123k
                    if (nrg < -limit || nrg > limit)
251
548
                        return 1;
252
123k
#ifdef FIXED_POINT
253
123k
                    sbr->E_curr[ch][k - sbr->kx][l] = nrg * mul;
254
#else
255
                    sbr->E_curr[ch][k - sbr->kx][l] = nrg / div;
256
#endif
257
#ifdef SBR_LOW_POWER
258
#ifdef FIXED_POINT
259
                    sbr->E_curr[ch][k - sbr->kx][l] <<= 1;
260
#else
261
                    sbr->E_curr[ch][k - sbr->kx][l] *= 2;
262
#endif
263
#endif
264
123k
                }
265
44.9k
            }
266
7.90k
        }
267
4.65k
    }
268
269
11.2k
    return 0;
270
12.0k
}
sbr_hfadj.c:estimate_current_envelope
Line
Count
Source
139
15.9k
{
140
15.9k
    uint8_t m, l, j, k, k_l, k_h, p;
141
15.9k
    real_t nrg, div;
142
15.9k
    (void)adj;  /* TODO: remove parameter? */
143
#ifdef FIXED_POINT
144
    const real_t half = REAL_CONST(0.5);
145
    real_t limit;
146
    real_t mul;
147
#else
148
15.9k
    const real_t half = 0;  /* Compiler is smart enough to eliminate +0 op. */
149
15.9k
    const real_t limit = FLT_MAX;
150
15.9k
#endif
151
152
15.9k
    if (sbr->bs_interpol_freq == 1)
153
12.0k
    {
154
31.6k
        for (l = 0; l < sbr->L_E[ch]; l++)
155
19.6k
        {
156
19.6k
            uint8_t i, l_i, u_i;
157
158
19.6k
            l_i = sbr->t_E[ch][l];
159
19.6k
            u_i = sbr->t_E[ch][l+1];
160
161
19.6k
            div = (real_t)(u_i - l_i);
162
163
19.6k
            if (div <= 0)
164
680
                div = 1;
165
#ifdef FIXED_POINT
166
            limit = div << (30 - (COEF_BITS - REAL_BITS));
167
            mul = (1 << (COEF_BITS - REAL_BITS)) / div;
168
#endif
169
170
216k
            for (m = 0; m < sbr->M; m++)
171
196k
            {
172
196k
                nrg = 0;
173
174
4.08M
                for (i = l_i + sbr->tHFAdj; i < u_i + sbr->tHFAdj; i++)
175
3.89M
                {
176
3.89M
                    real_t re = QMF_RE(Xsbr[i][m + sbr->kx]) + half;
177
3.89M
                    real_t im = QMF_IM(Xsbr[i][m + sbr->kx]) + half;
178
3.89M
                    (void)im;
179
                    /* Actually, that should be MUL_R. On floating-point build
180
                       that is the same. On fixed point-build we use it to
181
                       pre-scale result (to aviod overflow). That, of course
182
                       causes some precision loss. */
183
3.89M
                    nrg += MUL_C(re, re)
184
3.89M
#ifndef SBR_LOW_POWER
185
3.89M
                        + MUL_C(im, im)
186
3.89M
#endif
187
3.89M
                        ;
188
3.89M
                }
189
190
196k
                if (nrg < -limit || nrg > limit)
191
7
                    return 1;
192
#ifdef FIXED_POINT
193
                sbr->E_curr[ch][m][l] = nrg * mul;
194
#else
195
196k
                sbr->E_curr[ch][m][l] = nrg / div;
196
196k
#endif
197
#ifdef SBR_LOW_POWER
198
#ifdef FIXED_POINT
199
                sbr->E_curr[ch][m][l] <<= 1;
200
#else
201
                sbr->E_curr[ch][m][l] *= 2;
202
#endif
203
#endif
204
196k
            }
205
19.6k
        }
206
12.0k
    } else {
207
10.1k
        for (l = 0; l < sbr->L_E[ch]; l++)
208
6.23k
        {
209
48.7k
            for (p = 0; p < sbr->n[sbr->f[ch][l]]; p++)
210
42.5k
            {
211
42.5k
                k_l = sbr->f_table_res[sbr->f[ch][l]][p];
212
42.5k
                k_h = sbr->f_table_res[sbr->f[ch][l]][p+1];
213
214
153k
                for (k = k_l; k < k_h; k++)
215
111k
                {
216
111k
                    uint8_t i, l_i, u_i;
217
111k
                    nrg = 0;
218
219
111k
                    l_i = sbr->t_E[ch][l];
220
111k
                    u_i = sbr->t_E[ch][l+1];
221
222
111k
                    div = (real_t)((u_i - l_i)*(k_h - k_l));
223
224
111k
                    if (div <= 0)
225
4.41k
                        div = 1;
226
#ifdef FIXED_POINT
227
                    limit = div << (30 - (COEF_BITS - REAL_BITS));
228
                    mul = (1 << (COEF_BITS - REAL_BITS)) / div;
229
#endif
230
231
2.30M
                    for (i = l_i + sbr->tHFAdj; i < u_i + sbr->tHFAdj; i++)
232
2.19M
                    {
233
9.11M
                        for (j = k_l; j < k_h; j++)
234
6.91M
                        {
235
6.91M
                            real_t re = QMF_RE(Xsbr[i][j]) + half;
236
6.91M
                            real_t im = QMF_IM(Xsbr[i][j]) + half;
237
6.91M
                            (void)im;
238
                            /* Actually, that should be MUL_R. On floating-point build
239
                               that is the same. On fixed point-build we use it to
240
                               pre-scale result (to aviod overflow). That, of course
241
                               causes some precision loss. */
242
6.91M
                            nrg += MUL_C(re, re)
243
6.91M
#ifndef SBR_LOW_POWER
244
6.91M
                                + MUL_C(im, im)
245
6.91M
#endif
246
6.91M
                                ;
247
6.91M
                        }
248
2.19M
                    }
249
250
111k
                    if (nrg < -limit || nrg > limit)
251
7
                        return 1;
252
#ifdef FIXED_POINT
253
                    sbr->E_curr[ch][k - sbr->kx][l] = nrg * mul;
254
#else
255
111k
                    sbr->E_curr[ch][k - sbr->kx][l] = nrg / div;
256
111k
#endif
257
#ifdef SBR_LOW_POWER
258
#ifdef FIXED_POINT
259
                    sbr->E_curr[ch][k - sbr->kx][l] <<= 1;
260
#else
261
                    sbr->E_curr[ch][k - sbr->kx][l] *= 2;
262
#endif
263
#endif
264
111k
                }
265
42.5k
            }
266
6.23k
        }
267
3.87k
    }
268
269
15.9k
    return 0;
270
15.9k
}
271
272
#ifdef FIXED_POINT
273
#define EPS (1) /* smallest number available in fixed point */
274
#else
275
191k
#define EPS (1e-12)
276
#endif
277
278
279
280
#ifdef FIXED_POINT
281
282
/* log2 values of [0..63] */
283
static const real_t log2_int_tab[] = {
284
    LOG2_MIN_INF, REAL_CONST(0.000000000000000), REAL_CONST(1.000000000000000), REAL_CONST(1.584962500721156),
285
    REAL_CONST(2.000000000000000), REAL_CONST(2.321928094887362), REAL_CONST(2.584962500721156), REAL_CONST(2.807354922057604),
286
    REAL_CONST(3.000000000000000), REAL_CONST(3.169925001442313), REAL_CONST(3.321928094887363), REAL_CONST(3.459431618637297),
287
    REAL_CONST(3.584962500721156), REAL_CONST(3.700439718141092), REAL_CONST(3.807354922057604), REAL_CONST(3.906890595608519),
288
    REAL_CONST(4.000000000000000), REAL_CONST(4.087462841250339), REAL_CONST(4.169925001442312), REAL_CONST(4.247927513443585),
289
    REAL_CONST(4.321928094887362), REAL_CONST(4.392317422778761), REAL_CONST(4.459431618637297), REAL_CONST(4.523561956057013),
290
    REAL_CONST(4.584962500721156), REAL_CONST(4.643856189774724), REAL_CONST(4.700439718141093), REAL_CONST(4.754887502163468),
291
    REAL_CONST(4.807354922057604), REAL_CONST(4.857980995127572), REAL_CONST(4.906890595608519), REAL_CONST(4.954196310386875),
292
    REAL_CONST(5.000000000000000), REAL_CONST(5.044394119358453), REAL_CONST(5.087462841250340), REAL_CONST(5.129283016944966),
293
    REAL_CONST(5.169925001442312), REAL_CONST(5.209453365628949), REAL_CONST(5.247927513443585), REAL_CONST(5.285402218862248),
294
    REAL_CONST(5.321928094887363), REAL_CONST(5.357552004618084), REAL_CONST(5.392317422778761), REAL_CONST(5.426264754702098),
295
    REAL_CONST(5.459431618637297), REAL_CONST(5.491853096329675), REAL_CONST(5.523561956057013), REAL_CONST(5.554588851677637),
296
    REAL_CONST(5.584962500721156), REAL_CONST(5.614709844115208), REAL_CONST(5.643856189774724), REAL_CONST(5.672425341971495),
297
    REAL_CONST(5.700439718141093), REAL_CONST(5.727920454563200), REAL_CONST(5.754887502163469), REAL_CONST(5.781359713524660),
298
    REAL_CONST(5.807354922057605), REAL_CONST(5.832890014164742), REAL_CONST(5.857980995127572), REAL_CONST(5.882643049361842),
299
    REAL_CONST(5.906890595608518), REAL_CONST(5.930737337562887), REAL_CONST(5.954196310386876), REAL_CONST(5.977279923499916)
300
};
301
302
// pan_log2_tab[X] = log2(2**X + 1) - X
303
static const real_t pan_log2_tab[13] = {
304
    REAL_CONST(1.000000000000000), REAL_CONST(0.584962500721156), REAL_CONST(0.321928094887362), REAL_CONST(0.169925001442312), REAL_CONST(0.087462841250339),
305
    REAL_CONST(0.044394119358453), REAL_CONST(0.022367813028455), REAL_CONST(0.011227255423254), REAL_CONST(0.005624549193878), REAL_CONST(0.002815015607054),
306
    REAL_CONST(0.001408194392808), REAL_CONST(0.000704269011247), REAL_CONST(0.000352177480301)
307
};
308
309
static real_t find_log2_E(sbr_info *sbr, uint8_t k, uint8_t l, uint8_t ch)
310
390k
{
311
    /* check for coupled energy/noise data */
312
390k
    if (sbr->bs_coupling == 1)
313
180k
    {
314
180k
        int16_t e = sbr->E[0][k][l];
315
180k
        int16_t E = sbr->E[1][k][l];
316
180k
        uint8_t amp0 = (sbr->amp_res[0]) ? 0 : 1;
317
180k
        uint8_t amp1 = (sbr->amp_res[1]) ? 0 : 1;
318
180k
        real_t tmp, pan;
319
320
        /* E[1] should always be even so shifting is OK */
321
180k
        E >>= amp1;
322
180k
        if (e < 0 || e >= 64 || E < 0 || E > 24)
323
44.9k
            return LOG2_MIN_INF;
324
135k
        E -= 12;
325
326
135k
        if (ch != 0)  // L/R anti-symmetry
327
68.0k
            E = -E;
328
329
135k
        if (E >= 0)
330
69.0k
        {
331
            /* negative */
332
69.0k
            pan = pan_log2_tab[E];
333
69.0k
        } else {
334
            /* positive */
335
66.8k
            pan = pan_log2_tab[-E] + ((-E)<<REAL_BITS);
336
66.8k
        }
337
338
        /* tmp / pan in log2 */
339
135k
        tmp = (7 << REAL_BITS) + (e << (REAL_BITS-amp0));
340
135k
        return tmp - pan;
341
209k
    } else {
342
209k
        int16_t e = sbr->E[ch][k][l];
343
209k
        uint8_t amp = (sbr->amp_res[ch]) ? 0 : 1;
344
209k
        if (e < 0 || (e >> amp) >= 64)
345
28.3k
            return LOG2_MIN_INF;
346
181k
        return 6 * REAL_PRECISION + e * (REAL_PRECISION >> amp);
347
209k
    }
348
390k
}
349
350
static real_t find_log2_Q(sbr_info *sbr, uint8_t k, uint8_t l, uint8_t ch)
351
269k
{
352
    /* check for coupled energy/noise data */
353
269k
    if (sbr->bs_coupling == 1)
354
128k
    {
355
128k
        int32_t q = sbr->Q[0][k][l];
356
128k
        int32_t Q = sbr->Q[1][k][l];
357
128k
        real_t tmp, pan;
358
359
128k
        if (q < 0 || q > 30 || Q < 0 || Q > 24)
360
26.8k
            return LOG2_MIN_INF;
361
101k
        Q -= 12;
362
363
101k
        if (ch != 0)  // L/R anti-symmetry
364
50.8k
            Q = -Q;
365
366
101k
        if (Q >= 0)
367
51.4k
        {
368
            /* negative */
369
51.4k
            pan = pan_log2_tab[Q];
370
51.4k
        } else {
371
            /* positive */
372
50.0k
            pan = pan_log2_tab[-Q] + ((-Q)<<REAL_BITS);
373
50.0k
        }
374
375
        /* tmp / pan in log2 */
376
101k
        tmp = (7 - q) * REAL_PRECISION;
377
101k
        return tmp - pan;
378
140k
    } else {
379
140k
        int32_t q = sbr->Q[ch][k][l];
380
140k
        if (q < 0 || q > 30)
381
20.3k
            return LOG2_MIN_INF;
382
120k
        return (6 - q) * REAL_PRECISION;
383
140k
    }
384
269k
}
385
386
static const real_t log_Qplus1_pan[31][13] = {
387
    { REAL_CONST(0.044383447617292), REAL_CONST(0.169768601655960), REAL_CONST(0.583090126514435), REAL_CONST(1.570089221000671), REAL_CONST(3.092446088790894), REAL_CONST(4.733354568481445), REAL_CONST(6.022367954254150), REAL_CONST(6.692092418670654), REAL_CONST(6.924463272094727), REAL_CONST(6.989034175872803), REAL_CONST(7.005646705627441), REAL_CONST(7.009829998016357), REAL_CONST(7.010877609252930) },
388
    { REAL_CONST(0.022362394258380), REAL_CONST(0.087379962205887), REAL_CONST(0.320804953575134), REAL_CONST(0.988859415054321), REAL_CONST(2.252387046813965), REAL_CONST(3.786596298217773), REAL_CONST(5.044394016265869), REAL_CONST(5.705977916717529), REAL_CONST(5.936291694641113), REAL_CONST(6.000346660614014), REAL_CONST(6.016829967498779), REAL_CONST(6.020981311798096), REAL_CONST(6.022020816802979) },
389
    { REAL_CONST(0.011224525049329), REAL_CONST(0.044351425021887), REAL_CONST(0.169301137328148), REAL_CONST(0.577544987201691), REAL_CONST(1.527246952056885), REAL_CONST(2.887525320053101), REAL_CONST(4.087462902069092), REAL_CONST(4.733354568481445), REAL_CONST(4.959661006927490), REAL_CONST(5.022709369659424), REAL_CONST(5.038940429687500), REAL_CONST(5.043028831481934), REAL_CONST(5.044052600860596) },
390
    { REAL_CONST(0.005623178556561), REAL_CONST(0.022346137091517), REAL_CONST(0.087132595479488), REAL_CONST(0.317482173442841), REAL_CONST(0.956931233406067), REAL_CONST(2.070389270782471), REAL_CONST(3.169924974441528), REAL_CONST(3.786596298217773), REAL_CONST(4.005294322967529), REAL_CONST(4.066420555114746), REAL_CONST(4.082170009613037), REAL_CONST(4.086137294769287), REAL_CONST(4.087131500244141) },
391
    { REAL_CONST(0.002814328996465), REAL_CONST(0.011216334067285), REAL_CONST(0.044224001467228), REAL_CONST(0.167456731200218), REAL_CONST(0.556393325328827), REAL_CONST(1.378511548042297), REAL_CONST(2.321928024291992), REAL_CONST(2.887525320053101), REAL_CONST(3.092446088790894), REAL_CONST(3.150059700012207), REAL_CONST(3.164926528930664), REAL_CONST(3.168673276901245), REAL_CONST(3.169611930847168) },
392
    { REAL_CONST(0.001407850766554), REAL_CONST(0.005619067233056), REAL_CONST(0.022281449288130), REAL_CONST(0.086156636476517), REAL_CONST(0.304854571819305), REAL_CONST(0.847996890544891), REAL_CONST(1.584962487220764), REAL_CONST(2.070389270782471), REAL_CONST(2.252387046813965), REAL_CONST(2.304061651229858), REAL_CONST(2.317430257797241), REAL_CONST(2.320801734924316), REAL_CONST(2.321646213531494) },
393
    { REAL_CONST(0.000704097095877), REAL_CONST(0.002812269143760), REAL_CONST(0.011183738708496), REAL_CONST(0.043721374124289), REAL_CONST(0.160464659333229), REAL_CONST(0.485426813364029), REAL_CONST(1.000000000000000), REAL_CONST(1.378511548042297), REAL_CONST(1.527246952056885), REAL_CONST(1.570089221000671), REAL_CONST(1.581215262413025), REAL_CONST(1.584023833274841), REAL_CONST(1.584727644920349) },
394
    { REAL_CONST(0.000352177477907), REAL_CONST(0.001406819908880), REAL_CONST(0.005602621007711), REAL_CONST(0.022026389837265), REAL_CONST(0.082462236285210), REAL_CONST(0.263034462928772), REAL_CONST(0.584962487220764), REAL_CONST(0.847996890544891), REAL_CONST(0.956931233406067), REAL_CONST(0.988859415054321), REAL_CONST(0.997190535068512), REAL_CONST(0.999296069145203), REAL_CONST(0.999823868274689) },
395
    { REAL_CONST(0.000176099492819), REAL_CONST(0.000703581434209), REAL_CONST(0.002804030198604), REAL_CONST(0.011055230163038), REAL_CONST(0.041820213198662), REAL_CONST(0.137503549456596), REAL_CONST(0.321928083896637), REAL_CONST(0.485426813364029), REAL_CONST(0.556393325328827), REAL_CONST(0.577544987201691), REAL_CONST(0.583090126514435), REAL_CONST(0.584493279457092), REAL_CONST(0.584845066070557) },
396
    { REAL_CONST(0.000088052431238), REAL_CONST(0.000351833587047), REAL_CONST(0.001402696361765), REAL_CONST(0.005538204684854), REAL_CONST(0.021061634644866), REAL_CONST(0.070389263331890), REAL_CONST(0.169925004243851), REAL_CONST(0.263034462928772), REAL_CONST(0.304854571819305), REAL_CONST(0.317482173442841), REAL_CONST(0.320804953575134), REAL_CONST(0.321646571159363), REAL_CONST(0.321857661008835) },
397
    { REAL_CONST(0.000044026888645), REAL_CONST(0.000175927518285), REAL_CONST(0.000701518612914), REAL_CONST(0.002771759871393), REAL_CONST(0.010569252073765), REAL_CONST(0.035623874515295), REAL_CONST(0.087462842464447), REAL_CONST(0.137503549456596), REAL_CONST(0.160464659333229), REAL_CONST(0.167456731200218), REAL_CONST(0.169301137328148), REAL_CONST(0.169768601655960), REAL_CONST(0.169885858893394) },
398
    { REAL_CONST(0.000022013611670), REAL_CONST(0.000088052431238), REAL_CONST(0.000350801943569), REAL_CONST(0.001386545598507), REAL_CONST(0.005294219125062), REAL_CONST(0.017921976745129), REAL_CONST(0.044394120573997), REAL_CONST(0.070389263331890), REAL_CONST(0.082462236285210), REAL_CONST(0.086156636476517), REAL_CONST(0.087132595479488), REAL_CONST(0.087379962205887), REAL_CONST(0.087442122399807) },
399
    { REAL_CONST(0.000011006847672), REAL_CONST(0.000044026888645), REAL_CONST(0.000175411638338), REAL_CONST(0.000693439331371), REAL_CONST(0.002649537986144), REAL_CONST(0.008988817222416), REAL_CONST(0.022367812693119), REAL_CONST(0.035623874515295), REAL_CONST(0.041820213198662), REAL_CONST(0.043721374124289), REAL_CONST(0.044224001467228), REAL_CONST(0.044351425021887), REAL_CONST(0.044383447617292) },
400
    { REAL_CONST(0.000005503434295), REAL_CONST(0.000022013611670), REAL_CONST(0.000087708482170), REAL_CONST(0.000346675369656), REAL_CONST(0.001325377263129), REAL_CONST(0.004501323681325), REAL_CONST(0.011227255687118), REAL_CONST(0.017921976745129), REAL_CONST(0.021061634644866), REAL_CONST(0.022026389837265), REAL_CONST(0.022281449288130), REAL_CONST(0.022346137091517), REAL_CONST(0.022362394258380) },
401
    { REAL_CONST(0.000002751719876), REAL_CONST(0.000011006847672), REAL_CONST(0.000043854910473), REAL_CONST(0.000173348103999), REAL_CONST(0.000662840844598), REAL_CONST(0.002252417383716), REAL_CONST(0.005624548997730), REAL_CONST(0.008988817222416), REAL_CONST(0.010569252073765), REAL_CONST(0.011055230163038), REAL_CONST(0.011183738708496), REAL_CONST(0.011216334067285), REAL_CONST(0.011224525049329) },
402
    { REAL_CONST(0.000001375860506), REAL_CONST(0.000005503434295), REAL_CONST(0.000022013611670), REAL_CONST(0.000086676649516), REAL_CONST(0.000331544462824), REAL_CONST(0.001126734190620), REAL_CONST(0.002815015614033), REAL_CONST(0.004501323681325), REAL_CONST(0.005294219125062), REAL_CONST(0.005538204684854), REAL_CONST(0.005602621007711), REAL_CONST(0.005619067233056), REAL_CONST(0.005623178556561) },
403
    { REAL_CONST(0.000000687930424), REAL_CONST(0.000002751719876), REAL_CONST(0.000011006847672), REAL_CONST(0.000043338975956), REAL_CONST(0.000165781748365), REAL_CONST(0.000563477107789), REAL_CONST(0.001408194424585), REAL_CONST(0.002252417383716), REAL_CONST(0.002649537986144), REAL_CONST(0.002771759871393), REAL_CONST(0.002804030198604), REAL_CONST(0.002812269143760), REAL_CONST(0.002814328996465) },
404
    { REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000005503434295), REAL_CONST(0.000021669651687), REAL_CONST(0.000082893253420), REAL_CONST(0.000281680084299), REAL_CONST(0.000704268983100), REAL_CONST(0.001126734190620), REAL_CONST(0.001325377263129), REAL_CONST(0.001386545598507), REAL_CONST(0.001402696361765), REAL_CONST(0.001406819908880), REAL_CONST(0.001407850766554) },
405
    { REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002751719876), REAL_CONST(0.000010834866771), REAL_CONST(0.000041447223339), REAL_CONST(0.000140846910654), REAL_CONST(0.000352177477907), REAL_CONST(0.000563477107789), REAL_CONST(0.000662840844598), REAL_CONST(0.000693439331371), REAL_CONST(0.000701518612914), REAL_CONST(0.000703581434209), REAL_CONST(0.000704097095877) },
406
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000005503434295), REAL_CONST(0.000020637769921), REAL_CONST(0.000070511166996), REAL_CONST(0.000176099492819), REAL_CONST(0.000281680084299), REAL_CONST(0.000331544462824), REAL_CONST(0.000346675369656), REAL_CONST(0.000350801943569), REAL_CONST(0.000351833587047), REAL_CONST(0.000352177477907) },
407
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002751719876), REAL_CONST(0.000010318922250), REAL_CONST(0.000035256012779), REAL_CONST(0.000088052431238), REAL_CONST(0.000140846910654), REAL_CONST(0.000165781748365), REAL_CONST(0.000173348103999), REAL_CONST(0.000175411638338), REAL_CONST(0.000175927518285), REAL_CONST(0.000176099492819) },
408
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000005159470220), REAL_CONST(0.000017542124624), REAL_CONST(0.000044026888645), REAL_CONST(0.000070511166996), REAL_CONST(0.000082893253420), REAL_CONST(0.000086676649516), REAL_CONST(0.000087708482170), REAL_CONST(0.000088052431238), REAL_CONST(0.000088052431238) },
409
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002579737384), REAL_CONST(0.000008771088687), REAL_CONST(0.000022013611670), REAL_CONST(0.000035256012779), REAL_CONST(0.000041447223339), REAL_CONST(0.000043338975956), REAL_CONST(0.000043854910473), REAL_CONST(0.000044026888645), REAL_CONST(0.000044026888645) },
410
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000004471542070), REAL_CONST(0.000011006847672), REAL_CONST(0.000017542124624), REAL_CONST(0.000020637769921), REAL_CONST(0.000021669651687), REAL_CONST(0.000022013611670), REAL_CONST(0.000022013611670), REAL_CONST(0.000022013611670) },
411
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002235772627), REAL_CONST(0.000005503434295), REAL_CONST(0.000008771088687), REAL_CONST(0.000010318922250), REAL_CONST(0.000010834866771), REAL_CONST(0.000011006847672), REAL_CONST(0.000011006847672), REAL_CONST(0.000011006847672) },
412
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001031895522), REAL_CONST(0.000002751719876), REAL_CONST(0.000004471542070), REAL_CONST(0.000005159470220), REAL_CONST(0.000005503434295), REAL_CONST(0.000005503434295), REAL_CONST(0.000005503434295), REAL_CONST(0.000005503434295) },
413
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000515947875), REAL_CONST(0.000001375860506), REAL_CONST(0.000002235772627), REAL_CONST(0.000002579737384), REAL_CONST(0.000002751719876), REAL_CONST(0.000002751719876), REAL_CONST(0.000002751719876), REAL_CONST(0.000002751719876) },
414
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000000687930424), REAL_CONST(0.000001031895522), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506) },
415
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000343965269), REAL_CONST(0.000000515947875), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424) },
416
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269) },
417
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634) }
418
};
419
420
static const real_t log_Qplus1[31] = {
421
    REAL_CONST(6.022367813028454), REAL_CONST(5.044394119358453), REAL_CONST(4.087462841250339),
422
    REAL_CONST(3.169925001442313), REAL_CONST(2.321928094887362), REAL_CONST(1.584962500721156),
423
    REAL_CONST(1.000000000000000), REAL_CONST(0.584962500721156), REAL_CONST(0.321928094887362),
424
    REAL_CONST(0.169925001442312), REAL_CONST(0.087462841250339), REAL_CONST(0.044394119358453),
425
    REAL_CONST(0.022367813028455), REAL_CONST(0.011227255423254), REAL_CONST(0.005624549193878),
426
    REAL_CONST(0.002815015607054), REAL_CONST(0.001408194392808), REAL_CONST(0.000704269011247),
427
    REAL_CONST(0.000352177480301), REAL_CONST(0.000176099486443), REAL_CONST(0.000088052430122),
428
    REAL_CONST(0.000044026886827), REAL_CONST(0.000022013611360), REAL_CONST(0.000011006847667),
429
    REAL_CONST(0.000005503434331), REAL_CONST(0.000002751719790), REAL_CONST(0.000001375860551),
430
    REAL_CONST(0.000000687930439), REAL_CONST(0.000000343965261), REAL_CONST(0.000000171982641),
431
    REAL_CONST(0.000000000000000)
432
};
433
434
static real_t find_log2_Qplus1(sbr_info *sbr, uint8_t k, uint8_t l, uint8_t ch)
435
269k
{
436
    /* check for coupled energy/noise data */
437
269k
    if (sbr->bs_coupling == 1)
438
128k
    {
439
128k
        if ((sbr->Q[0][k][l] >= 0) && (sbr->Q[0][k][l] <= 30) &&
440
118k
            (sbr->Q[1][k][l] >= 0) && (sbr->Q[1][k][l] <= 24))
441
101k
        {
442
101k
            if (ch == 0)
443
50.6k
            {
444
50.6k
                return log_Qplus1_pan[sbr->Q[0][k][l]][sbr->Q[1][k][l] >> 1];
445
50.8k
            } else {
446
50.8k
                return log_Qplus1_pan[sbr->Q[0][k][l]][12 - (sbr->Q[1][k][l] >> 1)];
447
50.8k
            }
448
101k
        } else {
449
26.8k
            return 0;
450
26.8k
        }
451
140k
    } else {
452
140k
        if (sbr->Q[ch][k][l] >= 0 && sbr->Q[ch][k][l] <= 30)
453
120k
        {
454
120k
            return log_Qplus1[sbr->Q[ch][k][l]];
455
120k
        } else {
456
20.3k
            return 0;
457
20.3k
        }
458
140k
    }
459
269k
}
460
461
static void calculate_gain(sbr_info *sbr, sbr_hfadj_info *adj, uint8_t ch)
462
11.2k
{
463
    /* log2 values of limiter gains */
464
    /* Last one less than log2(1e10) due to FIXED POINT float limitations */
465
11.2k
    static real_t limGain[] = {
466
11.2k
        REAL_CONST(-1.0), REAL_CONST(0.0), REAL_CONST(1.0), REAL_CONST(21.0)
467
11.2k
    };
468
11.2k
    uint8_t m, l, k;
469
470
11.2k
    uint8_t current_t_noise_band = 0;
471
11.2k
    uint8_t S_mapped;
472
473
11.2k
    ALIGN real_t Q_M_lim[MAX_M];
474
11.2k
    ALIGN real_t G_lim[MAX_M];
475
11.2k
    ALIGN real_t G_boost;
476
11.2k
    ALIGN real_t S_M[MAX_M];
477
478
11.2k
    real_t exp = REAL_CONST(-10);
479
480
31.7k
    for (l = 0; l < sbr->L_E[ch]; l++)
481
20.4k
    {
482
20.4k
        uint8_t current_f_noise_band = 0;
483
20.4k
        uint8_t current_res_band = 0;
484
20.4k
        uint8_t current_res_band2 = 0;
485
20.4k
        uint8_t current_hi_res_band = 0;
486
487
20.4k
        real_t delta = (l == sbr->l_A[ch] || l == sbr->prevEnvIsShort[ch]) ? 0 : 1;
488
489
20.4k
        S_mapped = get_S_mapped(sbr, ch, l, current_res_band2);
490
491
20.4k
        if (sbr->t_E[ch][l+1] > sbr->t_Q[ch][current_t_noise_band+1])
492
3.37k
        {
493
3.37k
            current_t_noise_band++;
494
3.37k
        }
495
496
62.6k
        for (k = 0; k < sbr->N_L[sbr->bs_limiter_bands]; k++)
497
42.2k
        {
498
42.2k
            real_t Q_M = 0;
499
42.2k
            real_t G_max;
500
42.2k
            uint64_t den = 0, acc1 = 0, acc2 = 0;
501
42.2k
            uint8_t current_res_band_size = 0;
502
42.2k
            uint8_t Q_M_size = 0;
503
42.2k
            real_t log_e, log_den, log_acc1, log_acc2;
504
505
42.2k
            uint8_t ml1, ml2;
506
507
            /* bounds of current limiter bands */
508
42.2k
            ml1 = sbr->f_table_lim[sbr->bs_limiter_bands][k];
509
42.2k
            ml2 = sbr->f_table_lim[sbr->bs_limiter_bands][k+1];
510
511
42.2k
            if (ml1 > MAX_M)
512
0
                ml1 = MAX_M;
513
514
42.2k
            if (ml2 > MAX_M)
515
0
                ml2 = MAX_M;
516
517
518
            /* calculate the accumulated E_orig and E_curr over the limiter band */
519
311k
            for (m = ml1; m < ml2; m++)
520
269k
            {
521
269k
                if ((m + sbr->kx) < sbr->f_table_res[sbr->f[ch][l]][current_res_band+1])
522
190k
                {
523
190k
                    current_res_band_size++;
524
190k
                } else {
525
79.0k
                    log_e = find_log2_E(sbr, current_res_band, l, ch);
526
79.0k
                    acc1 += pow2_int(exp + log2_int_tab[current_res_band_size] + log_e);
527
528
79.0k
                    current_res_band++;
529
79.0k
                    current_res_band_size = 1;
530
79.0k
                }
531
532
269k
                acc2 += sbr->E_curr[ch][m][l];
533
269k
            }
534
42.2k
            if (current_res_band_size) {
535
42.2k
                log_e = find_log2_E(sbr, current_res_band, l, ch);
536
42.2k
                acc1 += pow2_int(exp + log2_int_tab[current_res_band_size] + log_e);
537
42.2k
            }
538
539
540
42.2k
            if (acc1 == 0)
541
25.2k
                log_acc1 = LOG2_MIN_INF;
542
16.9k
            else
543
16.9k
                log_acc1 = log2_int(acc1);
544
545
42.2k
            if (acc2 == 0)
546
41.0k
                log_acc2 = LOG2_MIN_INF;
547
1.19k
            else
548
1.19k
                log_acc2 = log2_int(acc2);
549
550
            /* calculate the maximum gain */
551
            /* ratio of the energy of the original signal and the energy
552
             * of the HF generated signal
553
             */
554
42.2k
            G_max = log_acc1 - log_acc2 + limGain[sbr->bs_limiter_gains];
555
42.2k
            G_max = min(G_max, limGain[3]);
556
557
558
311k
            for (m = ml1; m < ml2; m++)
559
269k
            {
560
269k
                real_t G;
561
269k
                real_t E_curr, E_orig;
562
269k
                real_t Q_orig, Q_orig_plus1;
563
269k
                uint8_t S_index_mapped;
564
565
566
                /* check if m is on a noise band border */
567
269k
                if ((m + sbr->kx) == sbr->f_table_noise[current_f_noise_band+1])
568
16.8k
                {
569
                    /* step to next noise band */
570
16.8k
                    current_f_noise_band++;
571
16.8k
                }
572
573
574
                /* check if m is on a resolution band border */
575
269k
                if ((m + sbr->kx) == sbr->f_table_res[sbr->f[ch][l]][current_res_band2+1])
576
79.0k
                {
577
                    /* accumulate a whole range of equal Q_Ms */
578
79.0k
                    if (Q_M_size > 0)
579
36.1k
                        den += pow2_int(log2_int_tab[Q_M_size] + Q_M);
580
79.0k
                    Q_M_size = 0;
581
582
                    /* step to next resolution band */
583
79.0k
                    current_res_band2++;
584
585
                    /* if we move to a new resolution band, we should check if we are
586
                     * going to add a sinusoid in this band
587
                     */
588
79.0k
                    S_mapped = get_S_mapped(sbr, ch, l, current_res_band2);
589
79.0k
                }
590
591
592
                /* check if m is on a HI_RES band border */
593
269k
                if ((m + sbr->kx) == sbr->f_table_res[HI_RES][current_hi_res_band+1])
594
124k
                {
595
                    /* step to next HI_RES band */
596
124k
                    current_hi_res_band++;
597
124k
                }
598
599
600
                /* find S_index_mapped
601
                 * S_index_mapped can only be 1 for the m in the middle of the
602
                 * current HI_RES band
603
                 */
604
269k
                S_index_mapped = 0;
605
269k
                if ((l >= sbr->l_A[ch]) ||
606
70.2k
                    (sbr->bs_add_harmonic_prev[ch][current_hi_res_band] && sbr->bs_add_harmonic_flag_prev[ch]))
607
200k
                {
608
                    /* find the middle subband of the HI_RES frequency band */
609
200k
                    if ((m + sbr->kx) == (sbr->f_table_res[HI_RES][current_hi_res_band+1] + sbr->f_table_res[HI_RES][current_hi_res_band]) >> 1)
610
104k
                        S_index_mapped = sbr->bs_add_harmonic[ch][current_hi_res_band];
611
200k
                }
612
613
614
                /* find bitstream parameters */
615
269k
                if (sbr->E_curr[ch][m][l] == 0)
616
261k
                    E_curr = LOG2_MIN_INF;
617
7.91k
                else
618
7.91k
                    E_curr = log2_int(sbr->E_curr[ch][m][l]);
619
269k
                E_orig = exp + find_log2_E(sbr, current_res_band2, l, ch);
620
621
622
269k
                Q_orig = find_log2_Q(sbr, current_f_noise_band, current_t_noise_band, ch);
623
269k
                Q_orig_plus1 = find_log2_Qplus1(sbr, current_f_noise_band, current_t_noise_band, ch);
624
625
626
                /* Q_M only depends on E_orig and Q_div2:
627
                 * since N_Q <= N_Low <= N_High we only need to recalculate Q_M on
628
                 * a change of current res band (HI or LO)
629
                 */
630
269k
                Q_M = E_orig + Q_orig - Q_orig_plus1;
631
632
633
                /* S_M only depends on E_orig, Q_div and S_index_mapped:
634
                 * S_index_mapped can only be non-zero once per HI_RES band
635
                 */
636
269k
                if (S_index_mapped == 0)
637
254k
                {
638
254k
                    S_M[m] = LOG2_MIN_INF; /* -inf */
639
254k
                } else {
640
14.7k
                    S_M[m] = E_orig - Q_orig_plus1;
641
14.7k
                    S_M[m] = min(S_M[m], limGain[3]);
642
643
                    /* accumulate sinusoid part of the total energy */
644
14.7k
                    den += pow2_int(S_M[m]);
645
14.7k
                }
646
647
648
                /* calculate gain */
649
                /* ratio of the energy of the original signal and the energy
650
                 * of the HF generated signal
651
                 */
652
                /* E_curr here is officially E_curr+1 so the log2() of that can never be < 0 */
653
                /* scaled by exp */
654
269k
                G = E_orig - max(exp, E_curr);
655
269k
                if ((S_mapped == 0) && (delta == 1))
656
215k
                {
657
                    /* G = G * 1/(1+Q) */
658
215k
                    G -= Q_orig_plus1;
659
215k
                } else if (S_mapped == 1) {
660
                    /* G = G * Q/(1+Q) */
661
31.3k
                    G += Q_orig - Q_orig_plus1;
662
31.3k
                }
663
664
665
                /* limit the additional noise energy level */
666
                /* and apply the limiter */
667
269k
                if (G_max > G)
668
173k
                {
669
173k
                    Q_M_lim[m] = Q_M;
670
173k
                    G_lim[m] = G;
671
672
173k
                    if ((S_index_mapped == 0) && (l != sbr->l_A[ch]))
673
154k
                    {
674
154k
                        Q_M_size++;
675
154k
                    }
676
173k
                } else {
677
                    /* G >= G_max */
678
95.1k
                    Q_M_lim[m] = Q_M + G_max - G;
679
95.1k
                    G_lim[m] = G_max;
680
681
                    /* accumulate limited Q_M */
682
95.1k
                    if ((S_index_mapped == 0) && (l != sbr->l_A[ch]))
683
81.0k
                    {
684
81.0k
                        den += pow2_int(Q_M_lim[m]);
685
81.0k
                    }
686
95.1k
                }
687
688
689
                /* accumulate the total energy */
690
                /* E_curr changes for every m so we do need to accumulate every m */
691
269k
                den += pow2_int(E_curr + G_lim[m]);
692
269k
            }
693
694
            /* accumulate last range of equal Q_Ms */
695
42.2k
            if (Q_M_size > 0)
696
24.5k
            {
697
24.5k
                den += pow2_int(log2_int_tab[Q_M_size] + Q_M);
698
24.5k
            }
699
700
42.2k
            if (den == 0)
701
31.9k
                log_den = LOG2_MIN_INF;
702
10.2k
            else
703
10.2k
                log_den = log2_int(den /*+ EPS*/);
704
705
            /* calculate the final gain */
706
            /* G_boost: [0..2.51188643] */
707
42.2k
            G_boost = log_acc1 - log_den;
708
42.2k
            G_boost = min(G_boost, REAL_CONST(1.328771237) /* log2(1.584893192 ^ 2) */);
709
710
711
311k
            for (m = ml1; m < ml2; m++)
712
269k
            {
713
                /* apply compensation to gain, noise floor sf's and sinusoid levels */
714
269k
#ifndef SBR_LOW_POWER
715
269k
                adj->G_lim_boost[l][m] = pow2_fix((G_lim[m] + G_boost) >> 1);
716
#else
717
                /* sqrt() will be done after the aliasing reduction to save a
718
                 * few multiplies
719
                 */
720
                adj->G_lim_boost[l][m] = pow2_fix(G_lim[m] + G_boost);
721
#endif
722
269k
                adj->Q_M_lim_boost[l][m] = pow2_fix((Q_M_lim[m] + G_boost) >> 1);
723
724
269k
                adj->S_M_boost[l][m] = pow2_fix((S_M[m] + G_boost) >> 1);
725
269k
            }
726
42.2k
        }
727
20.4k
    }
728
11.2k
}
729
730
#else
731
732
//#define LOG2_TEST
733
734
#ifdef LOG2_TEST
735
736
#define LOG2_MIN_INF -100000
737
738
__inline float pow2(float val)
739
{
740
    return pow(2.0, val);
741
}
742
__inline float log2(float val)
743
{
744
    return log(val)/log(2.0);
745
}
746
747
#define RB 14
748
749
float QUANTISE2REAL(float val)
750
{
751
    __int32 ival = (__int32)(val * (1<<RB));
752
    return (float)ival / (float)((1<<RB));
753
}
754
755
float QUANTISE2INT(float val)
756
{
757
    return floor(val);
758
}
759
760
/* log2 values of [0..63] */
761
static const real_t log2_int_tab[] = {
762
    LOG2_MIN_INF,      0.000000000000000, 1.000000000000000, 1.584962500721156,
763
    2.000000000000000, 2.321928094887362, 2.584962500721156, 2.807354922057604,
764
    3.000000000000000, 3.169925001442313, 3.321928094887363, 3.459431618637297,
765
    3.584962500721156, 3.700439718141092, 3.807354922057604, 3.906890595608519,
766
    4.000000000000000, 4.087462841250339, 4.169925001442312, 4.247927513443585,
767
    4.321928094887362, 4.392317422778761, 4.459431618637297, 4.523561956057013,
768
    4.584962500721156, 4.643856189774724, 4.700439718141093, 4.754887502163468,
769
    4.807354922057604, 4.857980995127572, 4.906890595608519, 4.954196310386875,
770
    5.000000000000000, 5.044394119358453, 5.087462841250340, 5.129283016944966,
771
    5.169925001442312, 5.209453365628949, 5.247927513443585, 5.285402218862248,
772
    5.321928094887363, 5.357552004618084, 5.392317422778761, 5.426264754702098,
773
    5.459431618637297, 5.491853096329675, 5.523561956057013, 5.554588851677637,
774
    5.584962500721156, 5.614709844115208, 5.643856189774724, 5.672425341971495,
775
    5.700439718141093, 5.727920454563200, 5.754887502163469, 5.781359713524660,
776
    5.807354922057605, 5.832890014164742, 5.857980995127572, 5.882643049361842,
777
    5.906890595608518, 5.930737337562887, 5.954196310386876, 5.977279923499916
778
};
779
780
static const real_t pan_log2_tab[] = {
781
    1.000000000000000, 0.584962500721156, 0.321928094887362, 0.169925001442312, 0.087462841250339,
782
    0.044394119358453, 0.022367813028455, 0.011227255423254, 0.005624549193878, 0.002815015607054,
783
    0.001408194392808, 0.000704269011247, 0.000352177480301, 0.000176099486443, 0.000088052430122,
784
    0.000044026886827, 0.000022013611360, 0.000011006847667
785
};
786
787
static real_t find_log2_E(sbr_info *sbr, uint8_t k, uint8_t l, uint8_t ch)
788
{
789
    /* check for coupled energy/noise data */
790
    if (sbr->bs_coupling == 1)
791
    {
792
        real_t amp0 = (sbr->amp_res[0]) ? 1.0 : 0.5;
793
        real_t amp1 = (sbr->amp_res[1]) ? 1.0 : 0.5;
794
        float tmp = QUANTISE2REAL(7.0 + (real_t)sbr->E[0][k][l] * amp0);
795
        float pan;
796
797
        int E = (int)(sbr->E[1][k][l] * amp1);
798
799
        if (ch == 0)
800
        {
801
            if (E > 12)
802
            {
803
                /* negative */
804
                pan = QUANTISE2REAL(pan_log2_tab[-12 + E]);
805
            } else {
806
                /* positive */
807
                pan = QUANTISE2REAL(pan_log2_tab[12 - E] + (12 - E));
808
            }
809
        } else {
810
            if (E < 12)
811
            {
812
                /* negative */
813
                pan = QUANTISE2REAL(pan_log2_tab[-E + 12]);
814
            } else {
815
                /* positive */
816
                pan = QUANTISE2REAL(pan_log2_tab[E - 12] + (E - 12));
817
            }
818
        }
819
820
        /* tmp / pan in log2 */
821
        return QUANTISE2REAL(tmp - pan);
822
    } else {
823
        real_t amp = (sbr->amp_res[ch]) ? 1.0 : 0.5;
824
825
        return QUANTISE2REAL(6.0 + (real_t)sbr->E[ch][k][l] * amp);
826
    }
827
}
828
829
static real_t find_log2_Q(sbr_info *sbr, uint8_t k, uint8_t l, uint8_t ch)
830
{
831
    /* check for coupled energy/noise data */
832
    if (sbr->bs_coupling == 1)
833
    {
834
        float tmp = QUANTISE2REAL(7.0 - (real_t)sbr->Q[0][k][l]);
835
        float pan;
836
837
        int Q = (int)(sbr->Q[1][k][l]);
838
839
        if (ch == 0)
840
        {
841
            if (Q > 12)
842
            {
843
                /* negative */
844
                pan = QUANTISE2REAL(pan_log2_tab[-12 + Q]);
845
            } else {
846
                /* positive */
847
                pan = QUANTISE2REAL(pan_log2_tab[12 - Q] + (12 - Q));
848
            }
849
        } else {
850
            if (Q < 12)
851
            {
852
                /* negative */
853
                pan = QUANTISE2REAL(pan_log2_tab[-Q + 12]);
854
            } else {
855
                /* positive */
856
                pan = QUANTISE2REAL(pan_log2_tab[Q - 12] + (Q - 12));
857
            }
858
        }
859
860
        /* tmp / pan in log2 */
861
        return QUANTISE2REAL(tmp - pan);
862
    } else {
863
        return QUANTISE2REAL(6.0 - (real_t)sbr->Q[ch][k][l]);
864
    }
865
}
866
867
static const real_t log_Qplus1_pan[31][13] = {
868
    { REAL_CONST(0.044383447617292), REAL_CONST(0.169768601655960), REAL_CONST(0.583090126514435), REAL_CONST(1.570089221000671), REAL_CONST(3.092446088790894), REAL_CONST(4.733354568481445), REAL_CONST(6.022367954254150), REAL_CONST(6.692092418670654), REAL_CONST(6.924463272094727), REAL_CONST(6.989034175872803), REAL_CONST(7.005646705627441), REAL_CONST(7.009829998016357), REAL_CONST(7.010877609252930) },
869
    { REAL_CONST(0.022362394258380), REAL_CONST(0.087379962205887), REAL_CONST(0.320804953575134), REAL_CONST(0.988859415054321), REAL_CONST(2.252387046813965), REAL_CONST(3.786596298217773), REAL_CONST(5.044394016265869), REAL_CONST(5.705977916717529), REAL_CONST(5.936291694641113), REAL_CONST(6.000346660614014), REAL_CONST(6.016829967498779), REAL_CONST(6.020981311798096), REAL_CONST(6.022020816802979) },
870
    { REAL_CONST(0.011224525049329), REAL_CONST(0.044351425021887), REAL_CONST(0.169301137328148), REAL_CONST(0.577544987201691), REAL_CONST(1.527246952056885), REAL_CONST(2.887525320053101), REAL_CONST(4.087462902069092), REAL_CONST(4.733354568481445), REAL_CONST(4.959661006927490), REAL_CONST(5.022709369659424), REAL_CONST(5.038940429687500), REAL_CONST(5.043028831481934), REAL_CONST(5.044052600860596) },
871
    { REAL_CONST(0.005623178556561), REAL_CONST(0.022346137091517), REAL_CONST(0.087132595479488), REAL_CONST(0.317482173442841), REAL_CONST(0.956931233406067), REAL_CONST(2.070389270782471), REAL_CONST(3.169924974441528), REAL_CONST(3.786596298217773), REAL_CONST(4.005294322967529), REAL_CONST(4.066420555114746), REAL_CONST(4.082170009613037), REAL_CONST(4.086137294769287), REAL_CONST(4.087131500244141) },
872
    { REAL_CONST(0.002814328996465), REAL_CONST(0.011216334067285), REAL_CONST(0.044224001467228), REAL_CONST(0.167456731200218), REAL_CONST(0.556393325328827), REAL_CONST(1.378511548042297), REAL_CONST(2.321928024291992), REAL_CONST(2.887525320053101), REAL_CONST(3.092446088790894), REAL_CONST(3.150059700012207), REAL_CONST(3.164926528930664), REAL_CONST(3.168673276901245), REAL_CONST(3.169611930847168) },
873
    { REAL_CONST(0.001407850766554), REAL_CONST(0.005619067233056), REAL_CONST(0.022281449288130), REAL_CONST(0.086156636476517), REAL_CONST(0.304854571819305), REAL_CONST(0.847996890544891), REAL_CONST(1.584962487220764), REAL_CONST(2.070389270782471), REAL_CONST(2.252387046813965), REAL_CONST(2.304061651229858), REAL_CONST(2.317430257797241), REAL_CONST(2.320801734924316), REAL_CONST(2.321646213531494) },
874
    { REAL_CONST(0.000704097095877), REAL_CONST(0.002812269143760), REAL_CONST(0.011183738708496), REAL_CONST(0.043721374124289), REAL_CONST(0.160464659333229), REAL_CONST(0.485426813364029), REAL_CONST(1.000000000000000), REAL_CONST(1.378511548042297), REAL_CONST(1.527246952056885), REAL_CONST(1.570089221000671), REAL_CONST(1.581215262413025), REAL_CONST(1.584023833274841), REAL_CONST(1.584727644920349) },
875
    { REAL_CONST(0.000352177477907), REAL_CONST(0.001406819908880), REAL_CONST(0.005602621007711), REAL_CONST(0.022026389837265), REAL_CONST(0.082462236285210), REAL_CONST(0.263034462928772), REAL_CONST(0.584962487220764), REAL_CONST(0.847996890544891), REAL_CONST(0.956931233406067), REAL_CONST(0.988859415054321), REAL_CONST(0.997190535068512), REAL_CONST(0.999296069145203), REAL_CONST(0.999823868274689) },
876
    { REAL_CONST(0.000176099492819), REAL_CONST(0.000703581434209), REAL_CONST(0.002804030198604), REAL_CONST(0.011055230163038), REAL_CONST(0.041820213198662), REAL_CONST(0.137503549456596), REAL_CONST(0.321928083896637), REAL_CONST(0.485426813364029), REAL_CONST(0.556393325328827), REAL_CONST(0.577544987201691), REAL_CONST(0.583090126514435), REAL_CONST(0.584493279457092), REAL_CONST(0.584845066070557) },
877
    { REAL_CONST(0.000088052431238), REAL_CONST(0.000351833587047), REAL_CONST(0.001402696361765), REAL_CONST(0.005538204684854), REAL_CONST(0.021061634644866), REAL_CONST(0.070389263331890), REAL_CONST(0.169925004243851), REAL_CONST(0.263034462928772), REAL_CONST(0.304854571819305), REAL_CONST(0.317482173442841), REAL_CONST(0.320804953575134), REAL_CONST(0.321646571159363), REAL_CONST(0.321857661008835) },
878
    { REAL_CONST(0.000044026888645), REAL_CONST(0.000175927518285), REAL_CONST(0.000701518612914), REAL_CONST(0.002771759871393), REAL_CONST(0.010569252073765), REAL_CONST(0.035623874515295), REAL_CONST(0.087462842464447), REAL_CONST(0.137503549456596), REAL_CONST(0.160464659333229), REAL_CONST(0.167456731200218), REAL_CONST(0.169301137328148), REAL_CONST(0.169768601655960), REAL_CONST(0.169885858893394) },
879
    { REAL_CONST(0.000022013611670), REAL_CONST(0.000088052431238), REAL_CONST(0.000350801943569), REAL_CONST(0.001386545598507), REAL_CONST(0.005294219125062), REAL_CONST(0.017921976745129), REAL_CONST(0.044394120573997), REAL_CONST(0.070389263331890), REAL_CONST(0.082462236285210), REAL_CONST(0.086156636476517), REAL_CONST(0.087132595479488), REAL_CONST(0.087379962205887), REAL_CONST(0.087442122399807) },
880
    { REAL_CONST(0.000011006847672), REAL_CONST(0.000044026888645), REAL_CONST(0.000175411638338), REAL_CONST(0.000693439331371), REAL_CONST(0.002649537986144), REAL_CONST(0.008988817222416), REAL_CONST(0.022367812693119), REAL_CONST(0.035623874515295), REAL_CONST(0.041820213198662), REAL_CONST(0.043721374124289), REAL_CONST(0.044224001467228), REAL_CONST(0.044351425021887), REAL_CONST(0.044383447617292) },
881
    { REAL_CONST(0.000005503434295), REAL_CONST(0.000022013611670), REAL_CONST(0.000087708482170), REAL_CONST(0.000346675369656), REAL_CONST(0.001325377263129), REAL_CONST(0.004501323681325), REAL_CONST(0.011227255687118), REAL_CONST(0.017921976745129), REAL_CONST(0.021061634644866), REAL_CONST(0.022026389837265), REAL_CONST(0.022281449288130), REAL_CONST(0.022346137091517), REAL_CONST(0.022362394258380) },
882
    { REAL_CONST(0.000002751719876), REAL_CONST(0.000011006847672), REAL_CONST(0.000043854910473), REAL_CONST(0.000173348103999), REAL_CONST(0.000662840844598), REAL_CONST(0.002252417383716), REAL_CONST(0.005624548997730), REAL_CONST(0.008988817222416), REAL_CONST(0.010569252073765), REAL_CONST(0.011055230163038), REAL_CONST(0.011183738708496), REAL_CONST(0.011216334067285), REAL_CONST(0.011224525049329) },
883
    { REAL_CONST(0.000001375860506), REAL_CONST(0.000005503434295), REAL_CONST(0.000022013611670), REAL_CONST(0.000086676649516), REAL_CONST(0.000331544462824), REAL_CONST(0.001126734190620), REAL_CONST(0.002815015614033), REAL_CONST(0.004501323681325), REAL_CONST(0.005294219125062), REAL_CONST(0.005538204684854), REAL_CONST(0.005602621007711), REAL_CONST(0.005619067233056), REAL_CONST(0.005623178556561) },
884
    { REAL_CONST(0.000000687930424), REAL_CONST(0.000002751719876), REAL_CONST(0.000011006847672), REAL_CONST(0.000043338975956), REAL_CONST(0.000165781748365), REAL_CONST(0.000563477107789), REAL_CONST(0.001408194424585), REAL_CONST(0.002252417383716), REAL_CONST(0.002649537986144), REAL_CONST(0.002771759871393), REAL_CONST(0.002804030198604), REAL_CONST(0.002812269143760), REAL_CONST(0.002814328996465) },
885
    { REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000005503434295), REAL_CONST(0.000021669651687), REAL_CONST(0.000082893253420), REAL_CONST(0.000281680084299), REAL_CONST(0.000704268983100), REAL_CONST(0.001126734190620), REAL_CONST(0.001325377263129), REAL_CONST(0.001386545598507), REAL_CONST(0.001402696361765), REAL_CONST(0.001406819908880), REAL_CONST(0.001407850766554) },
886
    { REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002751719876), REAL_CONST(0.000010834866771), REAL_CONST(0.000041447223339), REAL_CONST(0.000140846910654), REAL_CONST(0.000352177477907), REAL_CONST(0.000563477107789), REAL_CONST(0.000662840844598), REAL_CONST(0.000693439331371), REAL_CONST(0.000701518612914), REAL_CONST(0.000703581434209), REAL_CONST(0.000704097095877) },
887
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000005503434295), REAL_CONST(0.000020637769921), REAL_CONST(0.000070511166996), REAL_CONST(0.000176099492819), REAL_CONST(0.000281680084299), REAL_CONST(0.000331544462824), REAL_CONST(0.000346675369656), REAL_CONST(0.000350801943569), REAL_CONST(0.000351833587047), REAL_CONST(0.000352177477907) },
888
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002751719876), REAL_CONST(0.000010318922250), REAL_CONST(0.000035256012779), REAL_CONST(0.000088052431238), REAL_CONST(0.000140846910654), REAL_CONST(0.000165781748365), REAL_CONST(0.000173348103999), REAL_CONST(0.000175411638338), REAL_CONST(0.000175927518285), REAL_CONST(0.000176099492819) },
889
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000005159470220), REAL_CONST(0.000017542124624), REAL_CONST(0.000044026888645), REAL_CONST(0.000070511166996), REAL_CONST(0.000082893253420), REAL_CONST(0.000086676649516), REAL_CONST(0.000087708482170), REAL_CONST(0.000088052431238), REAL_CONST(0.000088052431238) },
890
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002579737384), REAL_CONST(0.000008771088687), REAL_CONST(0.000022013611670), REAL_CONST(0.000035256012779), REAL_CONST(0.000041447223339), REAL_CONST(0.000043338975956), REAL_CONST(0.000043854910473), REAL_CONST(0.000044026888645), REAL_CONST(0.000044026888645) },
891
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001375860506), REAL_CONST(0.000004471542070), REAL_CONST(0.000011006847672), REAL_CONST(0.000017542124624), REAL_CONST(0.000020637769921), REAL_CONST(0.000021669651687), REAL_CONST(0.000022013611670), REAL_CONST(0.000022013611670), REAL_CONST(0.000022013611670) },
892
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000687930424), REAL_CONST(0.000002235772627), REAL_CONST(0.000005503434295), REAL_CONST(0.000008771088687), REAL_CONST(0.000010318922250), REAL_CONST(0.000010834866771), REAL_CONST(0.000011006847672), REAL_CONST(0.000011006847672), REAL_CONST(0.000011006847672) },
893
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000001031895522), REAL_CONST(0.000002751719876), REAL_CONST(0.000004471542070), REAL_CONST(0.000005159470220), REAL_CONST(0.000005503434295), REAL_CONST(0.000005503434295), REAL_CONST(0.000005503434295), REAL_CONST(0.000005503434295) },
894
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000515947875), REAL_CONST(0.000001375860506), REAL_CONST(0.000002235772627), REAL_CONST(0.000002579737384), REAL_CONST(0.000002751719876), REAL_CONST(0.000002751719876), REAL_CONST(0.000002751719876), REAL_CONST(0.000002751719876) },
895
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000343965269), REAL_CONST(0.000000687930424), REAL_CONST(0.000001031895522), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506), REAL_CONST(0.000001375860506) },
896
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000343965269), REAL_CONST(0.000000515947875), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424), REAL_CONST(0.000000687930424) },
897
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269), REAL_CONST(0.000000343965269) },
898
    { REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000000000000), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634), REAL_CONST(0.000000171982634) }
899
};
900
901
static const real_t log_Qplus1[31] = {
902
    REAL_CONST(6.022367813028454), REAL_CONST(5.044394119358453), REAL_CONST(4.087462841250339),
903
    REAL_CONST(3.169925001442313), REAL_CONST(2.321928094887362), REAL_CONST(1.584962500721156),
904
    REAL_CONST(1.000000000000000), REAL_CONST(0.584962500721156), REAL_CONST(0.321928094887362),
905
    REAL_CONST(0.169925001442312), REAL_CONST(0.087462841250339), REAL_CONST(0.044394119358453),
906
    REAL_CONST(0.022367813028455), REAL_CONST(0.011227255423254), REAL_CONST(0.005624549193878),
907
    REAL_CONST(0.002815015607054), REAL_CONST(0.001408194392808), REAL_CONST(0.000704269011247),
908
    REAL_CONST(0.000352177480301), REAL_CONST(0.000176099486443), REAL_CONST(0.000088052430122),
909
    REAL_CONST(0.000044026886827), REAL_CONST(0.000022013611360), REAL_CONST(0.000011006847667),
910
    REAL_CONST(0.000005503434331), REAL_CONST(0.000002751719790), REAL_CONST(0.000001375860551),
911
    REAL_CONST(0.000000687930439), REAL_CONST(0.000000343965261), REAL_CONST(0.000000171982641),
912
    REAL_CONST(0.000000000000000)
913
};
914
915
static real_t find_log2_Qplus1(sbr_info *sbr, uint8_t k, uint8_t l, uint8_t ch)
916
{
917
    /* check for coupled energy/noise data */
918
    if (sbr->bs_coupling == 1)
919
    {
920
        if ((sbr->Q[0][k][l] >= 0) && (sbr->Q[0][k][l] <= 30) &&
921
            (sbr->Q[1][k][l] >= 0) && (sbr->Q[1][k][l] <= 24))
922
        {
923
            if (ch == 0)
924
            {
925
                return QUANTISE2REAL(log_Qplus1_pan[sbr->Q[0][k][l]][sbr->Q[1][k][l] >> 1]);
926
            } else {
927
                return QUANTISE2REAL(log_Qplus1_pan[sbr->Q[0][k][l]][12 - (sbr->Q[1][k][l] >> 1)]);
928
            }
929
        } else {
930
            return 0;
931
        }
932
    } else {
933
        if (sbr->Q[ch][k][l] >= 0 && sbr->Q[ch][k][l] <= 30)
934
        {
935
            return QUANTISE2REAL(log_Qplus1[sbr->Q[ch][k][l]]);
936
        } else {
937
            return 0;
938
        }
939
    }
940
}
941
942
static void calculate_gain(sbr_info *sbr, sbr_hfadj_info *adj, uint8_t ch)
943
{
944
    /* log2 values of limiter gains */
945
    static real_t limGain[] = { -1.0, 0.0, 1.0, 33.219 };
946
    uint8_t m, l, k;
947
948
    uint8_t current_t_noise_band = 0;
949
    uint8_t S_mapped;
950
951
    ALIGN real_t Q_M_lim[MAX_M];
952
    ALIGN real_t G_lim[MAX_M];
953
    ALIGN real_t G_boost;
954
    ALIGN real_t S_M[MAX_M];
955
956
957
    for (l = 0; l < sbr->L_E[ch]; l++)
958
    {
959
        uint8_t current_f_noise_band = 0;
960
        uint8_t current_res_band = 0;
961
        uint8_t current_res_band2 = 0;
962
        uint8_t current_hi_res_band = 0;
963
964
        real_t delta = (l == sbr->l_A[ch] || l == sbr->prevEnvIsShort[ch]) ? 0 : 1;
965
966
        S_mapped = get_S_mapped(sbr, ch, l, current_res_band2);
967
968
        if (sbr->t_E[ch][l+1] > sbr->t_Q[ch][current_t_noise_band+1])
969
        {
970
            current_t_noise_band++;
971
        }
972
973
        for (k = 0; k < sbr->N_L[sbr->bs_limiter_bands]; k++)
974
        {
975
            real_t Q_M = 0;
976
            real_t G_max;
977
            real_t den = 0;
978
            real_t acc1 = 0;
979
            real_t acc2 = 0;
980
            uint8_t current_res_band_size = 0;
981
            uint8_t Q_M_size = 0;
982
983
            uint8_t ml1, ml2;
984
985
            /* bounds of current limiter bands */
986
            ml1 = sbr->f_table_lim[sbr->bs_limiter_bands][k];
987
            ml2 = sbr->f_table_lim[sbr->bs_limiter_bands][k+1];
988
989
            if (ml1 > MAX_M)
990
                ml1 = MAX_M;
991
992
            if (ml2 > MAX_M)
993
                ml2 = MAX_M;
994
995
996
            /* calculate the accumulated E_orig and E_curr over the limiter band */
997
            for (m = ml1; m < ml2; m++)
998
            {
999
                if ((m + sbr->kx) < sbr->f_table_res[sbr->f[ch][l]][current_res_band+1])
1000
                {
1001
                    current_res_band_size++;
1002
                } else {
1003
                    acc1 += QUANTISE2INT(pow2(-10 + log2_int_tab[current_res_band_size] + find_log2_E(sbr, current_res_band, l, ch)));
1004
1005
                    current_res_band++;
1006
                    current_res_band_size = 1;
1007
                }
1008
1009
                acc2 += QUANTISE2INT(sbr->E_curr[ch][m][l]/1024.0);
1010
            }
1011
            acc1 += QUANTISE2INT(pow2(-10 + log2_int_tab[current_res_band_size] + find_log2_E(sbr, current_res_band, l, ch)));
1012
1013
            acc1 = QUANTISE2REAL( log2(EPS + acc1) );
1014
1015
1016
            /* calculate the maximum gain */
1017
            /* ratio of the energy of the original signal and the energy
1018
             * of the HF generated signal
1019
             */
1020
            G_max = acc1 - QUANTISE2REAL(log2(EPS + acc2)) + QUANTISE2REAL(limGain[sbr->bs_limiter_gains]);
1021
            G_max = min(G_max, QUANTISE2REAL(limGain[3]));
1022
1023
1024
            for (m = ml1; m < ml2; m++)
1025
            {
1026
                real_t G;
1027
                real_t E_curr, E_orig;
1028
                real_t Q_orig, Q_orig_plus1;
1029
                uint8_t S_index_mapped;
1030
1031
1032
                /* check if m is on a noise band border */
1033
                if ((m + sbr->kx) == sbr->f_table_noise[current_f_noise_band+1])
1034
                {
1035
                    /* step to next noise band */
1036
                    current_f_noise_band++;
1037
                }
1038
1039
1040
                /* check if m is on a resolution band border */
1041
                if ((m + sbr->kx) == sbr->f_table_res[sbr->f[ch][l]][current_res_band2+1])
1042
                {
1043
                    /* accumulate a whole range of equal Q_Ms */
1044
                    if (Q_M_size > 0)
1045
                        den += QUANTISE2INT(pow2(log2_int_tab[Q_M_size] + Q_M));
1046
                    Q_M_size = 0;
1047
1048
                    /* step to next resolution band */
1049
                    current_res_band2++;
1050
1051
                    /* if we move to a new resolution band, we should check if we are
1052
                     * going to add a sinusoid in this band
1053
                     */
1054
                    S_mapped = get_S_mapped(sbr, ch, l, current_res_band2);
1055
                }
1056
1057
1058
                /* check if m is on a HI_RES band border */
1059
                if ((m + sbr->kx) == sbr->f_table_res[HI_RES][current_hi_res_band+1])
1060
                {
1061
                    /* step to next HI_RES band */
1062
                    current_hi_res_band++;
1063
                }
1064
1065
1066
                /* find S_index_mapped
1067
                 * S_index_mapped can only be 1 for the m in the middle of the
1068
                 * current HI_RES band
1069
                 */
1070
                S_index_mapped = 0;
1071
                if ((l >= sbr->l_A[ch]) ||
1072
                    (sbr->bs_add_harmonic_prev[ch][current_hi_res_band] && sbr->bs_add_harmonic_flag_prev[ch]))
1073
                {
1074
                    /* find the middle subband of the HI_RES frequency band */
1075
                    if ((m + sbr->kx) == (sbr->f_table_res[HI_RES][current_hi_res_band+1] + sbr->f_table_res[HI_RES][current_hi_res_band]) >> 1)
1076
                        S_index_mapped = sbr->bs_add_harmonic[ch][current_hi_res_band];
1077
                }
1078
1079
1080
                /* find bitstream parameters */
1081
                if (sbr->E_curr[ch][m][l] == 0)
1082
                    E_curr = LOG2_MIN_INF;
1083
                else
1084
                    E_curr = -10 + log2(sbr->E_curr[ch][m][l]);
1085
                E_orig = -10 + find_log2_E(sbr, current_res_band2, l, ch);
1086
1087
                Q_orig = find_log2_Q(sbr, current_f_noise_band, current_t_noise_band, ch);
1088
                Q_orig_plus1 = find_log2_Qplus1(sbr, current_f_noise_band, current_t_noise_band, ch);
1089
1090
1091
                /* Q_M only depends on E_orig and Q_div2:
1092
                 * since N_Q <= N_Low <= N_High we only need to recalculate Q_M on
1093
                 * a change of current res band (HI or LO)
1094
                 */
1095
                Q_M = E_orig + Q_orig - Q_orig_plus1;
1096
1097
1098
                /* S_M only depends on E_orig, Q_div and S_index_mapped:
1099
                 * S_index_mapped can only be non-zero once per HI_RES band
1100
                 */
1101
                if (S_index_mapped == 0)
1102
                {
1103
                    S_M[m] = LOG2_MIN_INF; /* -inf */
1104
                } else {
1105
                    S_M[m] = E_orig - Q_orig_plus1;
1106
1107
                    /* accumulate sinusoid part of the total energy */
1108
                    den += pow2(S_M[m]);
1109
                }
1110
1111
1112
                /* calculate gain */
1113
                /* ratio of the energy of the original signal and the energy
1114
                 * of the HF generated signal
1115
                 */
1116
                /* E_curr here is officially E_curr+1 so the log2() of that can never be < 0 */
1117
                /* scaled by -10 */
1118
                G = E_orig - max(-10, E_curr);
1119
                if ((S_mapped == 0) && (delta == 1))
1120
                {
1121
                    /* G = G * 1/(1+Q) */
1122
                    G -= Q_orig_plus1;
1123
                } else if (S_mapped == 1) {
1124
                    /* G = G * Q/(1+Q) */
1125
                    G += Q_orig - Q_orig_plus1;
1126
                }
1127
1128
1129
                /* limit the additional noise energy level */
1130
                /* and apply the limiter */
1131
                if (G_max > G)
1132
                {
1133
                    Q_M_lim[m] = QUANTISE2REAL(Q_M);
1134
                    G_lim[m] = QUANTISE2REAL(G);
1135
1136
                    if ((S_index_mapped == 0) && (l != sbr->l_A[ch]))
1137
                    {
1138
                        Q_M_size++;
1139
                    }
1140
                } else {
1141
                    /* G > G_max */
1142
                    Q_M_lim[m] = QUANTISE2REAL(Q_M) + G_max - QUANTISE2REAL(G);
1143
                    G_lim[m] = G_max;
1144
1145
                    /* accumulate limited Q_M */
1146
                    if ((S_index_mapped == 0) && (l != sbr->l_A[ch]))
1147
                    {
1148
                        den += QUANTISE2INT(pow2(Q_M_lim[m]));
1149
                    }
1150
                }
1151
1152
1153
                /* accumulate the total energy */
1154
                /* E_curr changes for every m so we do need to accumulate every m */
1155
                den += QUANTISE2INT(pow2(E_curr + G_lim[m]));
1156
            }
1157
1158
            /* accumulate last range of equal Q_Ms */
1159
            if (Q_M_size > 0)
1160
            {
1161
                den += QUANTISE2INT(pow2(log2_int_tab[Q_M_size] + Q_M));
1162
            }
1163
1164
1165
            /* calculate the final gain */
1166
            /* G_boost: [0..2.51188643] */
1167
            G_boost = acc1 - QUANTISE2REAL(log2(den + EPS));
1168
            G_boost = min(G_boost, QUANTISE2REAL(1.328771237) /* log2(1.584893192 ^ 2) */);
1169
1170
1171
            for (m = ml1; m < ml2; m++)
1172
            {
1173
                /* apply compensation to gain, noise floor sf's and sinusoid levels */
1174
#ifndef SBR_LOW_POWER
1175
                adj->G_lim_boost[l][m] = QUANTISE2REAL(pow2((G_lim[m] + G_boost) / 2.0));
1176
#else
1177
                /* sqrt() will be done after the aliasing reduction to save a
1178
                 * few multiplies
1179
                 */
1180
                adj->G_lim_boost[l][m] = QUANTISE2REAL(pow2(G_lim[m] + G_boost));
1181
#endif
1182
                adj->Q_M_lim_boost[l][m] = QUANTISE2REAL(pow2((Q_M_lim[m] + 10 + G_boost) / 2.0));
1183
1184
                if (S_M[m] != LOG2_MIN_INF)
1185
                {
1186
                    adj->S_M_boost[l][m] = QUANTISE2REAL(pow2((S_M[m] + 10 + G_boost) / 2.0));
1187
                } else {
1188
                    adj->S_M_boost[l][m] = 0;
1189
                }
1190
            }
1191
        }
1192
    }
1193
}
1194
1195
#else
1196
1197
static void calculate_gain(sbr_info *sbr, sbr_hfadj_info *adj, uint8_t ch)
1198
15.9k
{
1199
15.9k
    static real_t limGain[] = { 0.5, 1.0, 2.0, 1e10 };
1200
15.9k
    uint8_t m, l, k;
1201
1202
15.9k
    uint8_t current_t_noise_band = 0;
1203
15.9k
    uint8_t S_mapped;
1204
1205
15.9k
    ALIGN real_t Q_M_lim[MAX_M];
1206
15.9k
    ALIGN real_t G_lim[MAX_M];
1207
15.9k
    ALIGN real_t G_boost;
1208
15.9k
    ALIGN real_t S_M[MAX_M];
1209
1210
41.7k
    for (l = 0; l < sbr->L_E[ch]; l++)
1211
25.8k
    {
1212
25.8k
        uint8_t current_f_noise_band = 0;
1213
25.8k
        uint8_t current_res_band = 0;
1214
25.8k
        uint8_t current_res_band2 = 0;
1215
25.8k
        uint8_t current_hi_res_band = 0;
1216
1217
25.8k
        real_t delta = (l == sbr->l_A[ch] || l == sbr->prevEnvIsShort[ch]) ? 0 : 1;
1218
1219
25.8k
        S_mapped = get_S_mapped(sbr, ch, l, current_res_band2);
1220
1221
25.8k
        if (sbr->t_E[ch][l+1] > sbr->t_Q[ch][current_t_noise_band+1])
1222
4.73k
        {
1223
4.73k
            current_t_noise_band++;
1224
4.73k
        }
1225
1226
73.6k
        for (k = 0; k < sbr->N_L[sbr->bs_limiter_bands]; k++)
1227
47.8k
        {
1228
47.8k
            real_t G_max;
1229
47.8k
            real_t den = 0;
1230
47.8k
            real_t acc1 = 0;
1231
47.8k
            real_t acc2 = 0;
1232
1233
47.8k
            uint8_t ml1, ml2;
1234
1235
47.8k
            ml1 = sbr->f_table_lim[sbr->bs_limiter_bands][k];
1236
47.8k
            ml2 = sbr->f_table_lim[sbr->bs_limiter_bands][k+1];
1237
1238
47.8k
            if (ml1 > MAX_M)
1239
0
                ml1 = MAX_M;
1240
1241
47.8k
            if (ml2 > MAX_M)
1242
0
                ml2 = MAX_M;
1243
1244
1245
            /* calculate the accumulated E_orig and E_curr over the limiter band */
1246
346k
            for (m = ml1; m < ml2; m++)
1247
299k
            {
1248
299k
                if ((m + sbr->kx) == sbr->f_table_res[sbr->f[ch][l]][current_res_band+1])
1249
83.4k
                {
1250
83.4k
                    current_res_band++;
1251
83.4k
                }
1252
299k
                acc1 += sbr->E_orig[ch][current_res_band][l];
1253
299k
                acc2 += sbr->E_curr[ch][m][l];
1254
299k
            }
1255
1256
1257
            /* calculate the maximum gain */
1258
            /* ratio of the energy of the original signal and the energy
1259
             * of the HF generated signal
1260
             */
1261
47.8k
            G_max = ((EPS + acc1) / (EPS + acc2)) * limGain[sbr->bs_limiter_gains];
1262
47.8k
            G_max = min(G_max, 1e10);
1263
1264
1265
346k
            for (m = ml1; m < ml2; m++)
1266
299k
            {
1267
299k
                real_t Q_M, G;
1268
299k
                real_t Q_div, Q_div2;
1269
299k
                uint8_t S_index_mapped;
1270
1271
1272
                /* check if m is on a noise band border */
1273
299k
                if ((m + sbr->kx) == sbr->f_table_noise[current_f_noise_band+1])
1274
18.5k
                {
1275
                    /* step to next noise band */
1276
18.5k
                    current_f_noise_band++;
1277
18.5k
                }
1278
1279
1280
                /* check if m is on a resolution band border */
1281
299k
                if ((m + sbr->kx) == sbr->f_table_res[sbr->f[ch][l]][current_res_band2+1])
1282
83.4k
                {
1283
                    /* step to next resolution band */
1284
83.4k
                    current_res_band2++;
1285
1286
                    /* if we move to a new resolution band, we should check if we are
1287
                     * going to add a sinusoid in this band
1288
                     */
1289
83.4k
                    S_mapped = get_S_mapped(sbr, ch, l, current_res_band2);
1290
83.4k
                }
1291
1292
1293
                /* check if m is on a HI_RES band border */
1294
299k
                if ((m + sbr->kx) == sbr->f_table_res[HI_RES][current_hi_res_band+1])
1295
141k
                {
1296
                    /* step to next HI_RES band */
1297
141k
                    current_hi_res_band++;
1298
141k
                }
1299
1300
1301
                /* find S_index_mapped
1302
                 * S_index_mapped can only be 1 for the m in the middle of the
1303
                 * current HI_RES band
1304
                 */
1305
299k
                S_index_mapped = 0;
1306
299k
                if ((l >= sbr->l_A[ch]) ||
1307
75.2k
                    (sbr->bs_add_harmonic_prev[ch][current_hi_res_band] && sbr->bs_add_harmonic_flag_prev[ch]))
1308
228k
                {
1309
                    /* find the middle subband of the HI_RES frequency band */
1310
228k
                    if ((m + sbr->kx) == (sbr->f_table_res[HI_RES][current_hi_res_band+1] + sbr->f_table_res[HI_RES][current_hi_res_band]) >> 1)
1311
120k
                        S_index_mapped = sbr->bs_add_harmonic[ch][current_hi_res_band];
1312
228k
                }
1313
1314
1315
                /* Q_div: [0..1] (1/(1+Q_mapped)) */
1316
299k
                Q_div = sbr->Q_div[ch][current_f_noise_band][current_t_noise_band];
1317
1318
1319
                /* Q_div2: [0..1] (Q_mapped/(1+Q_mapped)) */
1320
299k
                Q_div2 = sbr->Q_div2[ch][current_f_noise_band][current_t_noise_band];
1321
1322
1323
                /* Q_M only depends on E_orig and Q_div2:
1324
                 * since N_Q <= N_Low <= N_High we only need to recalculate Q_M on
1325
                 * a change of current noise band
1326
                 */
1327
299k
                Q_M = sbr->E_orig[ch][current_res_band2][l] * Q_div2;
1328
1329
1330
                /* S_M only depends on E_orig, Q_div and S_index_mapped:
1331
                 * S_index_mapped can only be non-zero once per HI_RES band
1332
                 */
1333
299k
                if (S_index_mapped == 0)
1334
285k
                {
1335
285k
                    S_M[m] = 0;
1336
285k
                } else {
1337
13.7k
                    S_M[m] = sbr->E_orig[ch][current_res_band2][l] * Q_div;
1338
1339
                    /* accumulate sinusoid part of the total energy */
1340
13.7k
                    den += S_M[m];
1341
13.7k
                }
1342
1343
1344
                /* calculate gain */
1345
                /* ratio of the energy of the original signal and the energy
1346
                 * of the HF generated signal
1347
                 */
1348
299k
                G = sbr->E_orig[ch][current_res_band2][l] / (1.0 + sbr->E_curr[ch][m][l]);
1349
299k
                if ((S_mapped == 0) && (delta == 1))
1350
245k
                    G *= Q_div;
1351
53.3k
                else if (S_mapped == 1)
1352
34.1k
                    G *= Q_div2;
1353
1354
1355
                /* limit the additional noise energy level */
1356
                /* and apply the limiter */
1357
299k
                if (G <= G_max)
1358
262k
                {
1359
262k
                    Q_M_lim[m] = Q_M;
1360
262k
                    G_lim[m] = G;
1361
262k
                } else {
1362
36.8k
                    Q_M_lim[m] = Q_M * G_max / G;
1363
36.8k
                    G_lim[m] = G_max;
1364
36.8k
                }
1365
1366
1367
                /* accumulate the total energy */
1368
299k
                den += sbr->E_curr[ch][m][l] * G_lim[m];
1369
299k
                if ((S_index_mapped == 0) && (l != sbr->l_A[ch]))
1370
269k
                    den += Q_M_lim[m];
1371
299k
            }
1372
1373
            /* G_boost: [0..2.51188643] */
1374
47.8k
            G_boost = (acc1 + EPS) / (den + EPS);
1375
47.8k
            G_boost = min(G_boost, 2.51188643 /* 1.584893192 ^ 2 */);
1376
1377
346k
            for (m = ml1; m < ml2; m++)
1378
299k
            {
1379
                /* apply compensation to gain, noise floor sf's and sinusoid levels */
1380
299k
#ifndef SBR_LOW_POWER
1381
299k
                adj->G_lim_boost[l][m] = sqrt(G_lim[m] * G_boost);
1382
#else
1383
                /* sqrt() will be done after the aliasing reduction to save a
1384
                 * few multiplies
1385
                 */
1386
                adj->G_lim_boost[l][m] = G_lim[m] * G_boost;
1387
#endif
1388
299k
                adj->Q_M_lim_boost[l][m] = sqrt(Q_M_lim[m] * G_boost);
1389
1390
299k
                if (S_M[m] != 0)
1391
10.1k
                {
1392
10.1k
                    adj->S_M_boost[l][m] = sqrt(S_M[m] * G_boost);
1393
288k
                } else {
1394
288k
                    adj->S_M_boost[l][m] = 0;
1395
288k
                }
1396
299k
            }
1397
47.8k
        }
1398
25.8k
    }
1399
15.9k
}
1400
#endif // log2_test
1401
1402
#endif
1403
1404
#ifdef SBR_LOW_POWER
1405
static void calc_gain_groups(sbr_info *sbr, sbr_hfadj_info *adj, real_t *deg, uint8_t ch)
1406
{
1407
    uint8_t l, k, i;
1408
    uint8_t grouping;
1409
    uint8_t S_mapped;
1410
1411
    for (l = 0; l < sbr->L_E[ch]; l++)
1412
    {
1413
        uint8_t current_res_band = 0;
1414
        i = 0;
1415
        grouping = 0;
1416
1417
        S_mapped = get_S_mapped(sbr, ch, l, current_res_band);
1418
1419
        for (k = sbr->kx; k < sbr->kx + sbr->M - 1; k++)
1420
        {
1421
            if (k == sbr->f_table_res[sbr->f[ch][l]][current_res_band+1])
1422
            {
1423
                /* step to next resolution band */
1424
                current_res_band++;
1425
1426
                S_mapped = get_S_mapped(sbr, ch, l, current_res_band);
1427
            }
1428
1429
            if (deg[k + 1] && S_mapped == 0)
1430
            {
1431
                if (grouping == 0)
1432
                {
1433
                    sbr->f_group[l][i] = k;
1434
                    grouping = 1;
1435
                    i++;
1436
                }
1437
            } else {
1438
                if (grouping)
1439
                {
1440
                    if (S_mapped)
1441
                    {
1442
                        sbr->f_group[l][i] = k;
1443
                    } else {
1444
                        sbr->f_group[l][i] = k + 1;
1445
                    }
1446
                    grouping = 0;
1447
                    i++;
1448
                }
1449
            }
1450
        }
1451
1452
        if (grouping)
1453
        {
1454
            sbr->f_group[l][i] = sbr->kx + sbr->M;
1455
            i++;
1456
        }
1457
1458
        sbr->N_G[l] = (uint8_t)(i >> 1);
1459
    }
1460
}
1461
1462
static void aliasing_reduction(sbr_info *sbr, sbr_hfadj_info *adj, real_t *deg, uint8_t ch)
1463
{
1464
    uint8_t l, k, m;
1465
    real_t E_total, E_total_est, G_target, acc;
1466
1467
    for (l = 0; l < sbr->L_E[ch]; l++)
1468
    {
1469
        for (k = 0; k < sbr->N_G[l]; k++)
1470
        {
1471
            E_total_est = E_total = 0;
1472
1473
            for (m = sbr->f_group[l][k<<1]; m < sbr->f_group[l][(k<<1) + 1]; m++)
1474
            {
1475
                /* E_curr: integer */
1476
                /* G_lim_boost: fixed point */
1477
                /* E_total_est: integer */
1478
                /* E_total: integer */
1479
                E_total_est += sbr->E_curr[ch][m-sbr->kx][l];
1480
#ifdef FIXED_POINT
1481
                E_total += MUL_Q2(sbr->E_curr[ch][m-sbr->kx][l], adj->G_lim_boost[l][m-sbr->kx]);
1482
#else
1483
                E_total += sbr->E_curr[ch][m-sbr->kx][l] * adj->G_lim_boost[l][m-sbr->kx];
1484
#endif
1485
            }
1486
1487
            /* G_target: fixed point */
1488
            if ((E_total_est + EPS) == 0)
1489
            {
1490
                G_target = 0;
1491
            } else {
1492
#ifdef FIXED_POINT
1493
                G_target = (((int64_t)(E_total))<<Q2_BITS)/(E_total_est + EPS);
1494
#else
1495
                G_target = E_total / (E_total_est + EPS);
1496
#endif
1497
            }
1498
            acc = 0;
1499
1500
            for (m = sbr->f_group[l][(k<<1)]; m < sbr->f_group[l][(k<<1) + 1]; m++)
1501
            {
1502
                real_t alpha;
1503
1504
                /* alpha: (COEF) fixed point */
1505
                if (m < sbr->kx + sbr->M - 1)
1506
                {
1507
                    alpha = max(deg[m], deg[m + 1]);
1508
                } else {
1509
                    alpha = deg[m];
1510
                }
1511
1512
                adj->G_lim_boost[l][m-sbr->kx] = MUL_C(alpha, G_target) +
1513
                    MUL_C((COEF_CONST(1)-alpha), adj->G_lim_boost[l][m-sbr->kx]);
1514
1515
                /* acc: integer */
1516
#ifdef FIXED_POINT
1517
                acc += MUL_Q2(adj->G_lim_boost[l][m-sbr->kx], sbr->E_curr[ch][m-sbr->kx][l]);
1518
#else
1519
                acc += adj->G_lim_boost[l][m-sbr->kx] * sbr->E_curr[ch][m-sbr->kx][l];
1520
#endif
1521
            }
1522
1523
            /* acc: fixed point */
1524
            if (acc + EPS == 0)
1525
            {
1526
                acc = 0;
1527
            } else {
1528
#ifdef FIXED_POINT
1529
                acc = (((int64_t)(E_total))<<Q2_BITS)/(acc + EPS);
1530
#else
1531
                acc = E_total / (acc + EPS);
1532
#endif
1533
            }
1534
            for(m = sbr->f_group[l][(k<<1)]; m < sbr->f_group[l][(k<<1) + 1]; m++)
1535
            {
1536
#ifdef FIXED_POINT
1537
                adj->G_lim_boost[l][m-sbr->kx] = MUL_Q2(acc, adj->G_lim_boost[l][m-sbr->kx]);
1538
#else
1539
                adj->G_lim_boost[l][m-sbr->kx] = acc * adj->G_lim_boost[l][m-sbr->kx];
1540
#endif
1541
            }
1542
        }
1543
    }
1544
1545
    for (l = 0; l < sbr->L_E[ch]; l++)
1546
    {
1547
        for (k = 0; k < sbr->N_L[sbr->bs_limiter_bands]; k++)
1548
        {
1549
            for (m = sbr->f_table_lim[sbr->bs_limiter_bands][k];
1550
                 m < sbr->f_table_lim[sbr->bs_limiter_bands][k+1]; m++)
1551
            {
1552
#ifdef FIXED_POINT
1553
                 adj->G_lim_boost[l][m] = SBR_SQRT_Q2(adj->G_lim_boost[l][m]);
1554
#else
1555
                 adj->G_lim_boost[l][m] = sqrt(adj->G_lim_boost[l][m]);
1556
#endif
1557
            }
1558
        }
1559
    }
1560
}
1561
#endif
1562
1563
static void hf_assembly(sbr_info *sbr, sbr_hfadj_info *adj,
1564
                        qmf_t Xsbr[MAX_NTSRHFG][64], uint8_t ch)
1565
27.2k
{
1566
27.2k
    static real_t h_smooth[] = {
1567
27.2k
        FRAC_CONST(0.03183050093751), FRAC_CONST(0.11516383427084),
1568
27.2k
        FRAC_CONST(0.21816949906249), FRAC_CONST(0.30150283239582),
1569
27.2k
        FRAC_CONST(0.33333333333333)
1570
27.2k
    };
1571
27.2k
    static int8_t phi_re[] = { 1, 0, -1, 0 };
1572
27.2k
    static int8_t phi_im[] = { 0, 1, 0, -1 };
1573
1574
27.2k
    uint8_t m, l, i, n;
1575
27.2k
    uint16_t fIndexNoise = 0;
1576
27.2k
    uint8_t fIndexSine = 0;
1577
27.2k
    uint8_t assembly_reset = 0;
1578
1579
27.2k
    real_t G_filt, Q_filt;
1580
1581
27.2k
    uint8_t h_SL;
1582
1583
1584
27.2k
    if (sbr->Reset == 1)
1585
26.4k
    {
1586
26.4k
        assembly_reset = 1;
1587
26.4k
        fIndexNoise = 0;
1588
26.4k
    } else {
1589
744
        fIndexNoise = sbr->index_noise_prev[ch];
1590
744
    }
1591
27.2k
    fIndexSine = sbr->psi_is_prev[ch];
1592
1593
1594
73.4k
    for (l = 0; l < sbr->L_E[ch]; l++)
1595
46.2k
    {
1596
46.2k
        uint8_t no_noise = (l == sbr->l_A[ch] || l == sbr->prevEnvIsShort[ch]) ? 1 : 0;
1597
1598
#ifdef SBR_LOW_POWER
1599
        h_SL = 0;
1600
#else
1601
46.2k
        h_SL = (sbr->bs_smoothing_mode == 1) ? 0 : 4;
1602
46.2k
        h_SL = (no_noise ? 0 : h_SL);
1603
46.2k
#endif
1604
1605
46.2k
        if (assembly_reset)
1606
26.3k
        {
1607
131k
            for (n = 0; n < 4; n++)
1608
105k
            {
1609
105k
                memcpy(sbr->G_temp_prev[ch][n], adj->G_lim_boost[l], sbr->M*sizeof(real_t));
1610
105k
                memcpy(sbr->Q_temp_prev[ch][n], adj->Q_M_lim_boost[l], sbr->M*sizeof(real_t));
1611
105k
            }
1612
            /* reset ringbuffer index */
1613
26.3k
            sbr->GQ_ringbuf_index[ch] = 4;
1614
26.3k
            assembly_reset = 0;
1615
26.3k
        }
1616
1617
886k
        for (i = sbr->t_E[ch][l]; i < sbr->t_E[ch][l+1]; i++)
1618
840k
        {
1619
#ifdef SBR_LOW_POWER
1620
            uint8_t i_min1, i_plus1;
1621
            uint8_t sinusoids = 0;
1622
#endif
1623
1624
            /* load new values into ringbuffer */
1625
840k
            memcpy(sbr->G_temp_prev[ch][sbr->GQ_ringbuf_index[ch]], adj->G_lim_boost[l], sbr->M*sizeof(real_t));
1626
840k
            memcpy(sbr->Q_temp_prev[ch][sbr->GQ_ringbuf_index[ch]], adj->Q_M_lim_boost[l], sbr->M*sizeof(real_t));
1627
1628
11.7M
            for (m = 0; m < sbr->M; m++)
1629
10.9M
            {
1630
10.9M
                qmf_t psi;
1631
1632
10.9M
                G_filt = 0;
1633
10.9M
                Q_filt = 0;
1634
1635
10.9M
#ifndef SBR_LOW_POWER
1636
10.9M
                if (h_SL != 0)
1637
3.98M
                {
1638
3.98M
                    uint8_t ri = sbr->GQ_ringbuf_index[ch];
1639
23.9M
                    for (n = 0; n <= 4; n++)
1640
19.9M
                    {
1641
19.9M
                        real_t curr_h_smooth = h_smooth[n];
1642
19.9M
                        ri++;
1643
19.9M
                        if (ri >= 5)
1644
3.98M
                            ri -= 5;
1645
19.9M
                        G_filt += MUL_F(sbr->G_temp_prev[ch][ri][m], curr_h_smooth);
1646
19.9M
                        Q_filt += MUL_F(sbr->Q_temp_prev[ch][ri][m], curr_h_smooth);
1647
19.9M
                    }
1648
6.96M
               } else {
1649
6.96M
#endif
1650
6.96M
                    G_filt = sbr->G_temp_prev[ch][sbr->GQ_ringbuf_index[ch]][m];
1651
6.96M
                    Q_filt = sbr->Q_temp_prev[ch][sbr->GQ_ringbuf_index[ch]][m];
1652
6.96M
#ifndef SBR_LOW_POWER
1653
6.96M
                }
1654
10.9M
#endif
1655
10.9M
                if (adj->S_M_boost[l][m] != 0 || no_noise)
1656
958k
                    Q_filt = 0;
1657
1658
                /* add noise to the output */
1659
10.9M
                fIndexNoise = (fIndexNoise + 1) & 511;
1660
1661
                /* the smoothed gain values are applied to Xsbr */
1662
                /* V is defined, not calculated */
1663
                //QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_Q2(G_filt, QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1664
                //    + MUL_F(Q_filt, RE(V[fIndexNoise]));
1665
10.9M
                QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_R(G_filt, QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1666
10.9M
                    + MUL_F(Q_filt, RE(V[fIndexNoise]));
1667
10.9M
                if (sbr->bs_extension_id == 3 && sbr->bs_extension_data == 42)
1668
10.5k
                    QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = 16428320;
1669
10.9M
#ifndef SBR_LOW_POWER
1670
                //QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_Q2(G_filt, QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1671
                //    + MUL_F(Q_filt, IM(V[fIndexNoise]));
1672
10.9M
                QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_R(G_filt, QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1673
10.9M
                    + MUL_F(Q_filt, IM(V[fIndexNoise]));
1674
10.9M
#endif
1675
1676
10.9M
                {
1677
10.9M
                    int8_t rev = (((m + sbr->kx) & 1) ? -1 : 1);
1678
10.9M
                    QMF_RE(psi) = adj->S_M_boost[l][m] * phi_re[fIndexSine];
1679
10.9M
                    QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) += QMF_RE(psi);
1680
1681
10.9M
#ifndef SBR_LOW_POWER
1682
10.9M
                    QMF_IM(psi) = rev * adj->S_M_boost[l][m] * phi_im[fIndexSine];
1683
10.9M
                    QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) += QMF_IM(psi);
1684
#else
1685
1686
                    i_min1 = (fIndexSine - 1) & 3;
1687
                    i_plus1 = (fIndexSine + 1) & 3;
1688
1689
                    if ((m == 0) && (phi_re[i_plus1] != 0))
1690
                    {
1691
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx - 1]) +=
1692
                            (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][0], FRAC_CONST(0.00815)));
1693
                        if (sbr->M != 0)
1694
                        {
1695
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1696
                                (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][1], FRAC_CONST(0.00815)));
1697
                        }
1698
                    }
1699
                    if ((m > 0) && (m < sbr->M - 1) && (sinusoids < 16) && (phi_re[i_min1] != 0))
1700
                    {
1701
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1702
                            (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m - 1], FRAC_CONST(0.00815)));
1703
                    }
1704
                    if ((m > 0) && (m < sbr->M - 1) && (sinusoids < 16) && (phi_re[i_plus1] != 0))
1705
                    {
1706
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1707
                            (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][m + 1], FRAC_CONST(0.00815)));
1708
                    }
1709
                    if ((m == sbr->M - 1) && (sinusoids < 16) && (phi_re[i_min1] != 0))
1710
                    {
1711
                        if (m > 0)
1712
                        {
1713
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1714
                                (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m - 1], FRAC_CONST(0.00815)));
1715
                        }
1716
                        if (m + sbr->kx < 64)
1717
                        {
1718
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx + 1]) +=
1719
                                (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m], FRAC_CONST(0.00815)));
1720
                        }
1721
                    }
1722
1723
                    if (adj->S_M_boost[l][m] != 0)
1724
                        sinusoids++;
1725
#endif
1726
10.9M
                }
1727
10.9M
            }
1728
1729
840k
            fIndexSine = (fIndexSine + 1) & 3;
1730
1731
            /* update the ringbuffer index used for filtering G and Q with h_smooth */
1732
840k
            sbr->GQ_ringbuf_index[ch]++;
1733
840k
            if (sbr->GQ_ringbuf_index[ch] >= 5)
1734
180k
                sbr->GQ_ringbuf_index[ch] = 0;
1735
840k
        }
1736
46.2k
    }
1737
1738
27.2k
    sbr->index_noise_prev[ch] = fIndexNoise;
1739
27.2k
    sbr->psi_is_prev[ch] = fIndexSine;
1740
27.2k
}
sbr_hfadj.c:hf_assembly
Line
Count
Source
1565
11.2k
{
1566
11.2k
    static real_t h_smooth[] = {
1567
11.2k
        FRAC_CONST(0.03183050093751), FRAC_CONST(0.11516383427084),
1568
11.2k
        FRAC_CONST(0.21816949906249), FRAC_CONST(0.30150283239582),
1569
11.2k
        FRAC_CONST(0.33333333333333)
1570
11.2k
    };
1571
11.2k
    static int8_t phi_re[] = { 1, 0, -1, 0 };
1572
11.2k
    static int8_t phi_im[] = { 0, 1, 0, -1 };
1573
1574
11.2k
    uint8_t m, l, i, n;
1575
11.2k
    uint16_t fIndexNoise = 0;
1576
11.2k
    uint8_t fIndexSine = 0;
1577
11.2k
    uint8_t assembly_reset = 0;
1578
1579
11.2k
    real_t G_filt, Q_filt;
1580
1581
11.2k
    uint8_t h_SL;
1582
1583
1584
11.2k
    if (sbr->Reset == 1)
1585
11.0k
    {
1586
11.0k
        assembly_reset = 1;
1587
11.0k
        fIndexNoise = 0;
1588
11.0k
    } else {
1589
253
        fIndexNoise = sbr->index_noise_prev[ch];
1590
253
    }
1591
11.2k
    fIndexSine = sbr->psi_is_prev[ch];
1592
1593
1594
31.7k
    for (l = 0; l < sbr->L_E[ch]; l++)
1595
20.4k
    {
1596
20.4k
        uint8_t no_noise = (l == sbr->l_A[ch] || l == sbr->prevEnvIsShort[ch]) ? 1 : 0;
1597
1598
#ifdef SBR_LOW_POWER
1599
        h_SL = 0;
1600
#else
1601
20.4k
        h_SL = (sbr->bs_smoothing_mode == 1) ? 0 : 4;
1602
20.4k
        h_SL = (no_noise ? 0 : h_SL);
1603
20.4k
#endif
1604
1605
20.4k
        if (assembly_reset)
1606
11.0k
        {
1607
55.0k
            for (n = 0; n < 4; n++)
1608
44.0k
            {
1609
44.0k
                memcpy(sbr->G_temp_prev[ch][n], adj->G_lim_boost[l], sbr->M*sizeof(real_t));
1610
44.0k
                memcpy(sbr->Q_temp_prev[ch][n], adj->Q_M_lim_boost[l], sbr->M*sizeof(real_t));
1611
44.0k
            }
1612
            /* reset ringbuffer index */
1613
11.0k
            sbr->GQ_ringbuf_index[ch] = 4;
1614
11.0k
            assembly_reset = 0;
1615
11.0k
        }
1616
1617
374k
        for (i = sbr->t_E[ch][l]; i < sbr->t_E[ch][l+1]; i++)
1618
354k
        {
1619
#ifdef SBR_LOW_POWER
1620
            uint8_t i_min1, i_plus1;
1621
            uint8_t sinusoids = 0;
1622
#endif
1623
1624
            /* load new values into ringbuffer */
1625
354k
            memcpy(sbr->G_temp_prev[ch][sbr->GQ_ringbuf_index[ch]], adj->G_lim_boost[l], sbr->M*sizeof(real_t));
1626
354k
            memcpy(sbr->Q_temp_prev[ch][sbr->GQ_ringbuf_index[ch]], adj->Q_M_lim_boost[l], sbr->M*sizeof(real_t));
1627
1628
5.22M
            for (m = 0; m < sbr->M; m++)
1629
4.86M
            {
1630
4.86M
                qmf_t psi;
1631
1632
4.86M
                G_filt = 0;
1633
4.86M
                Q_filt = 0;
1634
1635
4.86M
#ifndef SBR_LOW_POWER
1636
4.86M
                if (h_SL != 0)
1637
2.06M
                {
1638
2.06M
                    uint8_t ri = sbr->GQ_ringbuf_index[ch];
1639
12.4M
                    for (n = 0; n <= 4; n++)
1640
10.3M
                    {
1641
10.3M
                        real_t curr_h_smooth = h_smooth[n];
1642
10.3M
                        ri++;
1643
10.3M
                        if (ri >= 5)
1644
2.06M
                            ri -= 5;
1645
10.3M
                        G_filt += MUL_F(sbr->G_temp_prev[ch][ri][m], curr_h_smooth);
1646
10.3M
                        Q_filt += MUL_F(sbr->Q_temp_prev[ch][ri][m], curr_h_smooth);
1647
10.3M
                    }
1648
2.80M
               } else {
1649
2.80M
#endif
1650
2.80M
                    G_filt = sbr->G_temp_prev[ch][sbr->GQ_ringbuf_index[ch]][m];
1651
2.80M
                    Q_filt = sbr->Q_temp_prev[ch][sbr->GQ_ringbuf_index[ch]][m];
1652
2.80M
#ifndef SBR_LOW_POWER
1653
2.80M
                }
1654
4.86M
#endif
1655
4.86M
                if (adj->S_M_boost[l][m] != 0 || no_noise)
1656
505k
                    Q_filt = 0;
1657
1658
                /* add noise to the output */
1659
4.86M
                fIndexNoise = (fIndexNoise + 1) & 511;
1660
1661
                /* the smoothed gain values are applied to Xsbr */
1662
                /* V is defined, not calculated */
1663
                //QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_Q2(G_filt, QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1664
                //    + MUL_F(Q_filt, RE(V[fIndexNoise]));
1665
4.86M
                QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_R(G_filt, QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1666
4.86M
                    + MUL_F(Q_filt, RE(V[fIndexNoise]));
1667
4.86M
                if (sbr->bs_extension_id == 3 && sbr->bs_extension_data == 42)
1668
5.93k
                    QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = 16428320;
1669
4.86M
#ifndef SBR_LOW_POWER
1670
                //QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_Q2(G_filt, QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1671
                //    + MUL_F(Q_filt, IM(V[fIndexNoise]));
1672
4.86M
                QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_R(G_filt, QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1673
4.86M
                    + MUL_F(Q_filt, IM(V[fIndexNoise]));
1674
4.86M
#endif
1675
1676
4.86M
                {
1677
4.86M
                    int8_t rev = (((m + sbr->kx) & 1) ? -1 : 1);
1678
4.86M
                    QMF_RE(psi) = adj->S_M_boost[l][m] * phi_re[fIndexSine];
1679
4.86M
                    QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) += QMF_RE(psi);
1680
1681
4.86M
#ifndef SBR_LOW_POWER
1682
4.86M
                    QMF_IM(psi) = rev * adj->S_M_boost[l][m] * phi_im[fIndexSine];
1683
4.86M
                    QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) += QMF_IM(psi);
1684
#else
1685
1686
                    i_min1 = (fIndexSine - 1) & 3;
1687
                    i_plus1 = (fIndexSine + 1) & 3;
1688
1689
                    if ((m == 0) && (phi_re[i_plus1] != 0))
1690
                    {
1691
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx - 1]) +=
1692
                            (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][0], FRAC_CONST(0.00815)));
1693
                        if (sbr->M != 0)
1694
                        {
1695
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1696
                                (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][1], FRAC_CONST(0.00815)));
1697
                        }
1698
                    }
1699
                    if ((m > 0) && (m < sbr->M - 1) && (sinusoids < 16) && (phi_re[i_min1] != 0))
1700
                    {
1701
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1702
                            (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m - 1], FRAC_CONST(0.00815)));
1703
                    }
1704
                    if ((m > 0) && (m < sbr->M - 1) && (sinusoids < 16) && (phi_re[i_plus1] != 0))
1705
                    {
1706
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1707
                            (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][m + 1], FRAC_CONST(0.00815)));
1708
                    }
1709
                    if ((m == sbr->M - 1) && (sinusoids < 16) && (phi_re[i_min1] != 0))
1710
                    {
1711
                        if (m > 0)
1712
                        {
1713
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1714
                                (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m - 1], FRAC_CONST(0.00815)));
1715
                        }
1716
                        if (m + sbr->kx < 64)
1717
                        {
1718
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx + 1]) +=
1719
                                (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m], FRAC_CONST(0.00815)));
1720
                        }
1721
                    }
1722
1723
                    if (adj->S_M_boost[l][m] != 0)
1724
                        sinusoids++;
1725
#endif
1726
4.86M
                }
1727
4.86M
            }
1728
1729
354k
            fIndexSine = (fIndexSine + 1) & 3;
1730
1731
            /* update the ringbuffer index used for filtering G and Q with h_smooth */
1732
354k
            sbr->GQ_ringbuf_index[ch]++;
1733
354k
            if (sbr->GQ_ringbuf_index[ch] >= 5)
1734
76.4k
                sbr->GQ_ringbuf_index[ch] = 0;
1735
354k
        }
1736
20.4k
    }
1737
1738
11.2k
    sbr->index_noise_prev[ch] = fIndexNoise;
1739
11.2k
    sbr->psi_is_prev[ch] = fIndexSine;
1740
11.2k
}
sbr_hfadj.c:hf_assembly
Line
Count
Source
1565
15.9k
{
1566
15.9k
    static real_t h_smooth[] = {
1567
15.9k
        FRAC_CONST(0.03183050093751), FRAC_CONST(0.11516383427084),
1568
15.9k
        FRAC_CONST(0.21816949906249), FRAC_CONST(0.30150283239582),
1569
15.9k
        FRAC_CONST(0.33333333333333)
1570
15.9k
    };
1571
15.9k
    static int8_t phi_re[] = { 1, 0, -1, 0 };
1572
15.9k
    static int8_t phi_im[] = { 0, 1, 0, -1 };
1573
1574
15.9k
    uint8_t m, l, i, n;
1575
15.9k
    uint16_t fIndexNoise = 0;
1576
15.9k
    uint8_t fIndexSine = 0;
1577
15.9k
    uint8_t assembly_reset = 0;
1578
1579
15.9k
    real_t G_filt, Q_filt;
1580
1581
15.9k
    uint8_t h_SL;
1582
1583
1584
15.9k
    if (sbr->Reset == 1)
1585
15.4k
    {
1586
15.4k
        assembly_reset = 1;
1587
15.4k
        fIndexNoise = 0;
1588
15.4k
    } else {
1589
491
        fIndexNoise = sbr->index_noise_prev[ch];
1590
491
    }
1591
15.9k
    fIndexSine = sbr->psi_is_prev[ch];
1592
1593
1594
41.7k
    for (l = 0; l < sbr->L_E[ch]; l++)
1595
25.8k
    {
1596
25.8k
        uint8_t no_noise = (l == sbr->l_A[ch] || l == sbr->prevEnvIsShort[ch]) ? 1 : 0;
1597
1598
#ifdef SBR_LOW_POWER
1599
        h_SL = 0;
1600
#else
1601
25.8k
        h_SL = (sbr->bs_smoothing_mode == 1) ? 0 : 4;
1602
25.8k
        h_SL = (no_noise ? 0 : h_SL);
1603
25.8k
#endif
1604
1605
25.8k
        if (assembly_reset)
1606
15.3k
        {
1607
76.9k
            for (n = 0; n < 4; n++)
1608
61.5k
            {
1609
61.5k
                memcpy(sbr->G_temp_prev[ch][n], adj->G_lim_boost[l], sbr->M*sizeof(real_t));
1610
61.5k
                memcpy(sbr->Q_temp_prev[ch][n], adj->Q_M_lim_boost[l], sbr->M*sizeof(real_t));
1611
61.5k
            }
1612
            /* reset ringbuffer index */
1613
15.3k
            sbr->GQ_ringbuf_index[ch] = 4;
1614
15.3k
            assembly_reset = 0;
1615
15.3k
        }
1616
1617
512k
        for (i = sbr->t_E[ch][l]; i < sbr->t_E[ch][l+1]; i++)
1618
486k
        {
1619
#ifdef SBR_LOW_POWER
1620
            uint8_t i_min1, i_plus1;
1621
            uint8_t sinusoids = 0;
1622
#endif
1623
1624
            /* load new values into ringbuffer */
1625
486k
            memcpy(sbr->G_temp_prev[ch][sbr->GQ_ringbuf_index[ch]], adj->G_lim_boost[l], sbr->M*sizeof(real_t));
1626
486k
            memcpy(sbr->Q_temp_prev[ch][sbr->GQ_ringbuf_index[ch]], adj->Q_M_lim_boost[l], sbr->M*sizeof(real_t));
1627
1628
6.56M
            for (m = 0; m < sbr->M; m++)
1629
6.08M
            {
1630
6.08M
                qmf_t psi;
1631
1632
6.08M
                G_filt = 0;
1633
6.08M
                Q_filt = 0;
1634
1635
6.08M
#ifndef SBR_LOW_POWER
1636
6.08M
                if (h_SL != 0)
1637
1.92M
                {
1638
1.92M
                    uint8_t ri = sbr->GQ_ringbuf_index[ch];
1639
11.5M
                    for (n = 0; n <= 4; n++)
1640
9.60M
                    {
1641
9.60M
                        real_t curr_h_smooth = h_smooth[n];
1642
9.60M
                        ri++;
1643
9.60M
                        if (ri >= 5)
1644
1.92M
                            ri -= 5;
1645
9.60M
                        G_filt += MUL_F(sbr->G_temp_prev[ch][ri][m], curr_h_smooth);
1646
9.60M
                        Q_filt += MUL_F(sbr->Q_temp_prev[ch][ri][m], curr_h_smooth);
1647
9.60M
                    }
1648
4.16M
               } else {
1649
4.16M
#endif
1650
4.16M
                    G_filt = sbr->G_temp_prev[ch][sbr->GQ_ringbuf_index[ch]][m];
1651
4.16M
                    Q_filt = sbr->Q_temp_prev[ch][sbr->GQ_ringbuf_index[ch]][m];
1652
4.16M
#ifndef SBR_LOW_POWER
1653
4.16M
                }
1654
6.08M
#endif
1655
6.08M
                if (adj->S_M_boost[l][m] != 0 || no_noise)
1656
452k
                    Q_filt = 0;
1657
1658
                /* add noise to the output */
1659
6.08M
                fIndexNoise = (fIndexNoise + 1) & 511;
1660
1661
                /* the smoothed gain values are applied to Xsbr */
1662
                /* V is defined, not calculated */
1663
                //QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_Q2(G_filt, QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1664
                //    + MUL_F(Q_filt, RE(V[fIndexNoise]));
1665
6.08M
                QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_R(G_filt, QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1666
6.08M
                    + MUL_F(Q_filt, RE(V[fIndexNoise]));
1667
6.08M
                if (sbr->bs_extension_id == 3 && sbr->bs_extension_data == 42)
1668
4.65k
                    QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = 16428320;
1669
6.08M
#ifndef SBR_LOW_POWER
1670
                //QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_Q2(G_filt, QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1671
                //    + MUL_F(Q_filt, IM(V[fIndexNoise]));
1672
6.08M
                QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) = MUL_R(G_filt, QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]))
1673
6.08M
                    + MUL_F(Q_filt, IM(V[fIndexNoise]));
1674
6.08M
#endif
1675
1676
6.08M
                {
1677
6.08M
                    int8_t rev = (((m + sbr->kx) & 1) ? -1 : 1);
1678
6.08M
                    QMF_RE(psi) = adj->S_M_boost[l][m] * phi_re[fIndexSine];
1679
6.08M
                    QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) += QMF_RE(psi);
1680
1681
6.08M
#ifndef SBR_LOW_POWER
1682
6.08M
                    QMF_IM(psi) = rev * adj->S_M_boost[l][m] * phi_im[fIndexSine];
1683
6.08M
                    QMF_IM(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) += QMF_IM(psi);
1684
#else
1685
1686
                    i_min1 = (fIndexSine - 1) & 3;
1687
                    i_plus1 = (fIndexSine + 1) & 3;
1688
1689
                    if ((m == 0) && (phi_re[i_plus1] != 0))
1690
                    {
1691
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx - 1]) +=
1692
                            (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][0], FRAC_CONST(0.00815)));
1693
                        if (sbr->M != 0)
1694
                        {
1695
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1696
                                (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][1], FRAC_CONST(0.00815)));
1697
                        }
1698
                    }
1699
                    if ((m > 0) && (m < sbr->M - 1) && (sinusoids < 16) && (phi_re[i_min1] != 0))
1700
                    {
1701
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1702
                            (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m - 1], FRAC_CONST(0.00815)));
1703
                    }
1704
                    if ((m > 0) && (m < sbr->M - 1) && (sinusoids < 16) && (phi_re[i_plus1] != 0))
1705
                    {
1706
                        QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1707
                            (rev*phi_re[i_plus1] * MUL_F(adj->S_M_boost[l][m + 1], FRAC_CONST(0.00815)));
1708
                    }
1709
                    if ((m == sbr->M - 1) && (sinusoids < 16) && (phi_re[i_min1] != 0))
1710
                    {
1711
                        if (m > 0)
1712
                        {
1713
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx]) -=
1714
                                (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m - 1], FRAC_CONST(0.00815)));
1715
                        }
1716
                        if (m + sbr->kx < 64)
1717
                        {
1718
                            QMF_RE(Xsbr[i + sbr->tHFAdj][m+sbr->kx + 1]) +=
1719
                                (rev*phi_re[i_min1] * MUL_F(adj->S_M_boost[l][m], FRAC_CONST(0.00815)));
1720
                        }
1721
                    }
1722
1723
                    if (adj->S_M_boost[l][m] != 0)
1724
                        sinusoids++;
1725
#endif
1726
6.08M
                }
1727
6.08M
            }
1728
1729
486k
            fIndexSine = (fIndexSine + 1) & 3;
1730
1731
            /* update the ringbuffer index used for filtering G and Q with h_smooth */
1732
486k
            sbr->GQ_ringbuf_index[ch]++;
1733
486k
            if (sbr->GQ_ringbuf_index[ch] >= 5)
1734
104k
                sbr->GQ_ringbuf_index[ch] = 0;
1735
486k
        }
1736
25.8k
    }
1737
1738
15.9k
    sbr->index_noise_prev[ch] = fIndexNoise;
1739
15.9k
    sbr->psi_is_prev[ch] = fIndexSine;
1740
15.9k
}
1741
1742
#endif