Coverage Report

Created: 2025-07-18 06:36

/proc/self/cwd/libfaad/sbr_fbt.c
Line
Count
Source (jump to first uncovered line)
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_fbt.c,v 1.21 2007/11/01 12:33:35 menno Exp $
29
**/
30
31
/* Calculate frequency band tables */
32
33
#include "common.h"
34
#include "structs.h"
35
36
#ifdef SBR_DEC
37
38
#include <stdlib.h>
39
40
#include "sbr_syntax.h"
41
#include "sbr_fbt.h"
42
43
/* static function declarations */
44
static int32_t find_bands(uint8_t warp, uint8_t bands, uint8_t a0, uint8_t a1);
45
46
47
/* calculate the start QMF channel for the master frequency band table */
48
/* parameter is also called k0 */
49
uint8_t qmf_start_channel(uint8_t bs_start_freq, uint8_t bs_samplerate_mode,
50
                           uint32_t sample_rate)
51
139k
{
52
139k
    static const uint8_t startMinTable[12] = { 7, 7, 10, 11, 12, 16, 16,
53
139k
        17, 24, 32, 35, 48 };
54
139k
    static const uint8_t offsetIndexTable[12] = { 5, 5, 4, 4, 4, 3, 2, 1, 0,
55
139k
        6, 6, 6 };
56
139k
    static const int8_t offset[7][16] = {
57
139k
        { -8, -7, -6, -5, -4, -3, -2, -1, 0, 1, 2, 3, 4, 5, 6, 7 },
58
139k
        { -5, -4, -3, -2, -1, 0, 1, 2, 3, 4, 5, 6, 7, 9, 11, 13 },
59
139k
        { -5, -3, -2, -1, 0, 1, 2, 3, 4, 5, 6, 7, 9, 11, 13, 16 },
60
139k
        { -6, -4, -2, -1, 0, 1, 2, 3, 4, 5, 6, 7, 9, 11, 13, 16 },
61
139k
        { -4, -2, -1, 0, 1, 2, 3, 4, 5, 6, 7, 9, 11, 13, 16, 20 },
62
139k
        { -2, -1, 0, 1, 2, 3, 4, 5, 6, 7, 9, 11, 13, 16, 20, 24 },
63
139k
        { 0, 1, 2, 3, 4, 5, 6, 7, 9, 11, 13, 16, 20, 24, 28, 33 }
64
139k
    };
65
139k
    uint8_t startMin = startMinTable[get_sr_index(sample_rate)];
66
139k
    uint8_t offsetIndex = offsetIndexTable[get_sr_index(sample_rate)];
67
68
#if 0 /* replaced with table (startMinTable) */
69
    if (sample_rate >= 64000)
70
    {
71
        startMin = (uint8_t)((5000.*128.)/(float)sample_rate + 0.5);
72
    } else if (sample_rate < 32000) {
73
        startMin = (uint8_t)((3000.*128.)/(float)sample_rate + 0.5);
74
    } else {
75
        startMin = (uint8_t)((4000.*128.)/(float)sample_rate + 0.5);
76
    }
77
#endif
78
79
139k
    if (bs_samplerate_mode)
80
139k
    {
81
139k
        return startMin + offset[offsetIndex][bs_start_freq];
82
83
#if 0 /* replaced by offsetIndexTable */
84
        switch (sample_rate)
85
        {
86
        case 16000:
87
            return startMin + offset[0][bs_start_freq];
88
        case 22050:
89
            return startMin + offset[1][bs_start_freq];
90
        case 24000:
91
            return startMin + offset[2][bs_start_freq];
92
        case 32000:
93
            return startMin + offset[3][bs_start_freq];
94
        default:
95
            if (sample_rate > 64000)
96
            {
97
                return startMin + offset[5][bs_start_freq];
98
            } else { /* 44100 <= sample_rate <= 64000 */
99
                return startMin + offset[4][bs_start_freq];
100
            }
101
        }
102
#endif
103
139k
    } else {
104
0
        return startMin + offset[6][bs_start_freq];
105
0
    }
106
139k
}
107
108
static int int32cmp(const void *a, const void *b)
109
1.55M
{
110
1.55M
    return ((int)(*(int32_t*)a - *(int32_t*)b));
111
1.55M
}
112
113
static int uint8cmp(const void *a, const void *b)
114
4.32M
{
115
4.32M
    return ((int)(*(uint8_t*)a - *(uint8_t*)b));
116
4.32M
}
117
118
/* calculate the stop QMF channel for the master frequency band table */
119
/* parameter is also called k2 */
120
uint8_t qmf_stop_channel(uint8_t bs_stop_freq, uint32_t sample_rate,
121
                          uint8_t k0)
122
139k
{
123
139k
    if (bs_stop_freq == 15)
124
12.9k
    {
125
12.9k
        return min(64, k0 * 3);
126
126k
    } else if (bs_stop_freq == 14) {
127
4.85k
        return min(64, k0 * 2);
128
121k
    } else {
129
121k
        static const uint8_t stopMinTable[12] = { 13, 15, 20, 21, 23,
130
121k
            32, 32, 35, 48, 64, 70, 96 };
131
121k
        static const int8_t offset[12][14] = {
132
121k
            { 0, 2, 4, 6, 8, 11, 14, 18, 22, 26, 31, 37, 44, 51 },
133
121k
            { 0, 2, 4, 6, 8, 11, 14, 18, 22, 26, 31, 36, 42, 49 },
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121k
            { 0, 2, 4, 6, 8, 11, 14, 17, 21, 25, 29, 34, 39, 44 },
135
121k
            { 0, 2, 4, 6, 8, 11, 14, 17, 20, 24, 28, 33, 38, 43 },
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121k
            { 0, 2, 4, 6, 8, 11, 14, 17, 20, 24, 28, 32, 36, 41 },
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121k
            { 0, 2, 4, 6, 8, 10, 12, 14, 17, 20, 23, 26, 29, 32 },
138
121k
            { 0, 2, 4, 6, 8, 10, 12, 14, 17, 20, 23, 26, 29, 32 },
139
121k
            { 0, 1, 3, 5, 7, 9, 11, 13, 15, 17, 20, 23, 26, 29 },
140
121k
            { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 12, 14, 16 },
141
121k
            { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 },
142
121k
            { 0, -1, -2, -3, -4, -5, -6, -6, -6, -6, -6, -6, -6, -6 },
143
121k
            { 0, -3, -6, -9, -12, -15, -18, -20, -22, -24, -26, -28, -30, -32 }
144
121k
        };
145
#if 0
146
        uint8_t i;
147
        int32_t stopDk[13], stopDk_t[14], k2;
148
#endif
149
121k
        uint8_t stopMin = stopMinTable[get_sr_index(sample_rate)];
150
151
#if 0 /* replaced by table lookup */
152
        if (sample_rate >= 64000)
153
        {
154
            stopMin = (uint8_t)((10000.*128.)/(float)sample_rate + 0.5);
155
        } else if (sample_rate < 32000) {
156
            stopMin = (uint8_t)((6000.*128.)/(float)sample_rate + 0.5);
157
        } else {
158
            stopMin = (uint8_t)((8000.*128.)/(float)sample_rate + 0.5);
159
        }
160
#endif
161
162
#if 0 /* replaced by table lookup */
163
        /* diverging power series */
164
        for (i = 0; i <= 13; i++)
165
        {
166
            stopDk_t[i] = (int32_t)(stopMin*pow(64.0/stopMin, i/13.0) + 0.5);
167
        }
168
        for (i = 0; i < 13; i++)
169
        {
170
            stopDk[i] = stopDk_t[i+1] - stopDk_t[i];
171
        }
172
173
        /* needed? */
174
        qsort(stopDk, 13, sizeof(stopDk[0]), int32cmp);
175
176
        k2 = stopMin;
177
        for (i = 0; i < bs_stop_freq; i++)
178
        {
179
            k2 += stopDk[i];
180
        }
181
        return min(64, k2);
182
#endif
183
        /* bs_stop_freq <= 13 */
184
121k
        return min(64, stopMin + offset[get_sr_index(sample_rate)][min(bs_stop_freq, 13)]);
185
121k
    }
186
187
    // return 0;
188
139k
}
189
190
/* calculate the master frequency table from k0, k2, bs_freq_scale
191
   and bs_alter_scale
192
193
   version for bs_freq_scale = 0
194
*/
195
uint8_t master_frequency_table_fs0(sbr_info *sbr, uint8_t k0, uint8_t k2,
196
                                   uint8_t bs_alter_scale)
197
24.1k
{
198
24.1k
    int8_t incr;
199
24.1k
    uint8_t k;
200
24.1k
    uint8_t dk;
201
24.1k
    int32_t nrBands, k2Achieved;
202
24.1k
    int32_t k2Diff, vDk[64] = {0};
203
204
    /* mft only defined for k2 > k0 */
205
24.1k
    if (k2 <= k0)
206
805
    {
207
805
        sbr->N_master = 0;
208
805
        return 1;
209
805
    }
210
211
23.3k
    dk = bs_alter_scale ? 2 : 1;
212
213
#if 0 /* replaced by float-less design */
214
    nrBands = 2 * (int32_t)((float)(k2-k0)/(dk*2) + (-1+dk)/2.0f);
215
#else
216
23.3k
    if (bs_alter_scale)
217
5.05k
    {
218
5.05k
        nrBands = (((k2-k0+2)>>2)<<1);
219
18.3k
    } else {
220
18.3k
        nrBands = (((k2-k0)>>1)<<1);
221
18.3k
    }
222
23.3k
#endif
223
23.3k
    nrBands = min(nrBands, 63);
224
23.3k
    if (nrBands <= 0)
225
214
        return 1;
226
227
23.1k
    k2Achieved = k0 + nrBands * dk;
228
23.1k
    k2Diff = k2 - k2Achieved;
229
633k
    for (k = 0; k < nrBands; k++)
230
610k
        vDk[k] = dk;
231
232
23.1k
    if (k2Diff)
233
12.0k
    {
234
12.0k
        incr = (k2Diff > 0) ? -1 : 1;
235
12.0k
        k = (uint8_t) ((k2Diff > 0) ? (nrBands-1) : 0);
236
237
25.1k
        while (k2Diff != 0)
238
13.1k
        {
239
13.1k
            vDk[k] -= incr;
240
13.1k
            k += incr;
241
13.1k
            k2Diff += incr;
242
13.1k
        }
243
12.0k
    }
244
245
23.1k
    sbr->f_master[0] = k0;
246
633k
    for (k = 1; k <= nrBands; k++)
247
610k
        sbr->f_master[k] = (uint8_t)(sbr->f_master[k-1] + vDk[k-1]);
248
249
23.1k
    sbr->N_master = (uint8_t)nrBands;
250
23.1k
    sbr->N_master = (min(sbr->N_master, 64));
251
252
#if 0
253
    printf("f_master[%d]: ", nrBands);
254
    for (k = 0; k <= nrBands; k++)
255
    {
256
        printf("%d ", sbr->f_master[k]);
257
    }
258
    printf("\n");
259
#endif
260
261
23.1k
    return 0;
262
23.3k
}
263
264
/*
265
   This function finds the number of bands using this formula:
266
    bands * log(a1/a0)/log(2.0) + 0.5
267
*/
268
static int32_t find_bands(uint8_t warp, uint8_t bands, uint8_t a0, uint8_t a1)
269
313k
{
270
#ifdef FIXED_POINT
271
    /* table with log2() values */
272
    static const real_t log2Table[65] = {
273
143k
        COEF_CONST(0.0), COEF_CONST(0.0), COEF_CONST(1.0000000000), COEF_CONST(1.5849625007),
274
143k
        COEF_CONST(2.0000000000), COEF_CONST(2.3219280949), COEF_CONST(2.5849625007), COEF_CONST(2.8073549221),
275
143k
        COEF_CONST(3.0000000000), COEF_CONST(3.1699250014), COEF_CONST(3.3219280949), COEF_CONST(3.4594316186),
276
143k
        COEF_CONST(3.5849625007), COEF_CONST(3.7004397181), COEF_CONST(3.8073549221), COEF_CONST(3.9068905956),
277
143k
        COEF_CONST(4.0000000000), COEF_CONST(4.0874628413), COEF_CONST(4.1699250014), COEF_CONST(4.2479275134),
278
143k
        COEF_CONST(4.3219280949), COEF_CONST(4.3923174228), COEF_CONST(4.4594316186), COEF_CONST(4.5235619561),
279
143k
        COEF_CONST(4.5849625007), COEF_CONST(4.6438561898), COEF_CONST(4.7004397181), COEF_CONST(4.7548875022),
280
143k
        COEF_CONST(4.8073549221), COEF_CONST(4.8579809951), COEF_CONST(4.9068905956), COEF_CONST(4.9541963104),
281
143k
        COEF_CONST(5.0000000000), COEF_CONST(5.0443941194), COEF_CONST(5.0874628413), COEF_CONST(5.1292830169),
282
143k
        COEF_CONST(5.1699250014), COEF_CONST(5.2094533656), COEF_CONST(5.2479275134), COEF_CONST(5.2854022189),
283
143k
        COEF_CONST(5.3219280949), COEF_CONST(5.3575520046), COEF_CONST(5.3923174228), COEF_CONST(5.4262647547),
284
143k
        COEF_CONST(5.4594316186), COEF_CONST(5.4918530963), COEF_CONST(5.5235619561), COEF_CONST(5.5545888517),
285
143k
        COEF_CONST(5.5849625007), COEF_CONST(5.6147098441), COEF_CONST(5.6438561898), COEF_CONST(5.6724253420),
286
143k
        COEF_CONST(5.7004397181), COEF_CONST(5.7279204546), COEF_CONST(5.7548875022), COEF_CONST(5.7813597135),
287
143k
        COEF_CONST(5.8073549221), COEF_CONST(5.8328900142), COEF_CONST(5.8579809951), COEF_CONST(5.8826430494),
288
143k
        COEF_CONST(5.9068905956), COEF_CONST(5.9307373376), COEF_CONST(5.9541963104), COEF_CONST(5.9772799235),
289
143k
        COEF_CONST(6.0)
290
    };
291
    real_t r0 = log2Table[a0]; /* coef */
292
    real_t r1 = log2Table[a1]; /* coef */
293
    real_t r2 = (r1 - r0); /* coef */
294
295
143k
    if (warp)
296
21.2k
        r2 = MUL_C(r2, COEF_CONST(1.0/1.3));
297
298
    /* convert r2 to real and then multiply and round */
299
143k
    r2 = (r2 >> (COEF_BITS-REAL_BITS)) * bands + (1<<(REAL_BITS-1));
300
301
143k
    return (r2 >> REAL_BITS);
302
#else
303
    real_t div = (real_t)log(2.0);
304
170k
    if (warp) div *= (real_t)1.3;
305
306
    return (int32_t)(bands * log((float)a1/(float)a0)/div + 0.5);
307
#endif
308
313k
}
sbr_fbt.c:find_bands
Line
Count
Source
269
143k
{
270
143k
#ifdef FIXED_POINT
271
    /* table with log2() values */
272
143k
    static const real_t log2Table[65] = {
273
143k
        COEF_CONST(0.0), COEF_CONST(0.0), COEF_CONST(1.0000000000), COEF_CONST(1.5849625007),
274
143k
        COEF_CONST(2.0000000000), COEF_CONST(2.3219280949), COEF_CONST(2.5849625007), COEF_CONST(2.8073549221),
275
143k
        COEF_CONST(3.0000000000), COEF_CONST(3.1699250014), COEF_CONST(3.3219280949), COEF_CONST(3.4594316186),
276
143k
        COEF_CONST(3.5849625007), COEF_CONST(3.7004397181), COEF_CONST(3.8073549221), COEF_CONST(3.9068905956),
277
143k
        COEF_CONST(4.0000000000), COEF_CONST(4.0874628413), COEF_CONST(4.1699250014), COEF_CONST(4.2479275134),
278
143k
        COEF_CONST(4.3219280949), COEF_CONST(4.3923174228), COEF_CONST(4.4594316186), COEF_CONST(4.5235619561),
279
143k
        COEF_CONST(4.5849625007), COEF_CONST(4.6438561898), COEF_CONST(4.7004397181), COEF_CONST(4.7548875022),
280
143k
        COEF_CONST(4.8073549221), COEF_CONST(4.8579809951), COEF_CONST(4.9068905956), COEF_CONST(4.9541963104),
281
143k
        COEF_CONST(5.0000000000), COEF_CONST(5.0443941194), COEF_CONST(5.0874628413), COEF_CONST(5.1292830169),
282
143k
        COEF_CONST(5.1699250014), COEF_CONST(5.2094533656), COEF_CONST(5.2479275134), COEF_CONST(5.2854022189),
283
143k
        COEF_CONST(5.3219280949), COEF_CONST(5.3575520046), COEF_CONST(5.3923174228), COEF_CONST(5.4262647547),
284
143k
        COEF_CONST(5.4594316186), COEF_CONST(5.4918530963), COEF_CONST(5.5235619561), COEF_CONST(5.5545888517),
285
143k
        COEF_CONST(5.5849625007), COEF_CONST(5.6147098441), COEF_CONST(5.6438561898), COEF_CONST(5.6724253420),
286
143k
        COEF_CONST(5.7004397181), COEF_CONST(5.7279204546), COEF_CONST(5.7548875022), COEF_CONST(5.7813597135),
287
143k
        COEF_CONST(5.8073549221), COEF_CONST(5.8328900142), COEF_CONST(5.8579809951), COEF_CONST(5.8826430494),
288
143k
        COEF_CONST(5.9068905956), COEF_CONST(5.9307373376), COEF_CONST(5.9541963104), COEF_CONST(5.9772799235),
289
143k
        COEF_CONST(6.0)
290
143k
    };
291
143k
    real_t r0 = log2Table[a0]; /* coef */
292
143k
    real_t r1 = log2Table[a1]; /* coef */
293
143k
    real_t r2 = (r1 - r0); /* coef */
294
295
143k
    if (warp)
296
21.2k
        r2 = MUL_C(r2, COEF_CONST(1.0/1.3));
297
298
    /* convert r2 to real and then multiply and round */
299
143k
    r2 = (r2 >> (COEF_BITS-REAL_BITS)) * bands + (1<<(REAL_BITS-1));
300
301
143k
    return (r2 >> REAL_BITS);
302
#else
303
    real_t div = (real_t)log(2.0);
304
    if (warp) div *= (real_t)1.3;
305
306
    return (int32_t)(bands * log((float)a1/(float)a0)/div + 0.5);
307
#endif
308
143k
}
sbr_fbt.c:find_bands
Line
Count
Source
269
170k
{
270
#ifdef FIXED_POINT
271
    /* table with log2() values */
272
    static const real_t log2Table[65] = {
273
        COEF_CONST(0.0), COEF_CONST(0.0), COEF_CONST(1.0000000000), COEF_CONST(1.5849625007),
274
        COEF_CONST(2.0000000000), COEF_CONST(2.3219280949), COEF_CONST(2.5849625007), COEF_CONST(2.8073549221),
275
        COEF_CONST(3.0000000000), COEF_CONST(3.1699250014), COEF_CONST(3.3219280949), COEF_CONST(3.4594316186),
276
        COEF_CONST(3.5849625007), COEF_CONST(3.7004397181), COEF_CONST(3.8073549221), COEF_CONST(3.9068905956),
277
        COEF_CONST(4.0000000000), COEF_CONST(4.0874628413), COEF_CONST(4.1699250014), COEF_CONST(4.2479275134),
278
        COEF_CONST(4.3219280949), COEF_CONST(4.3923174228), COEF_CONST(4.4594316186), COEF_CONST(4.5235619561),
279
        COEF_CONST(4.5849625007), COEF_CONST(4.6438561898), COEF_CONST(4.7004397181), COEF_CONST(4.7548875022),
280
        COEF_CONST(4.8073549221), COEF_CONST(4.8579809951), COEF_CONST(4.9068905956), COEF_CONST(4.9541963104),
281
        COEF_CONST(5.0000000000), COEF_CONST(5.0443941194), COEF_CONST(5.0874628413), COEF_CONST(5.1292830169),
282
        COEF_CONST(5.1699250014), COEF_CONST(5.2094533656), COEF_CONST(5.2479275134), COEF_CONST(5.2854022189),
283
        COEF_CONST(5.3219280949), COEF_CONST(5.3575520046), COEF_CONST(5.3923174228), COEF_CONST(5.4262647547),
284
        COEF_CONST(5.4594316186), COEF_CONST(5.4918530963), COEF_CONST(5.5235619561), COEF_CONST(5.5545888517),
285
        COEF_CONST(5.5849625007), COEF_CONST(5.6147098441), COEF_CONST(5.6438561898), COEF_CONST(5.6724253420),
286
        COEF_CONST(5.7004397181), COEF_CONST(5.7279204546), COEF_CONST(5.7548875022), COEF_CONST(5.7813597135),
287
        COEF_CONST(5.8073549221), COEF_CONST(5.8328900142), COEF_CONST(5.8579809951), COEF_CONST(5.8826430494),
288
        COEF_CONST(5.9068905956), COEF_CONST(5.9307373376), COEF_CONST(5.9541963104), COEF_CONST(5.9772799235),
289
        COEF_CONST(6.0)
290
    };
291
    real_t r0 = log2Table[a0]; /* coef */
292
    real_t r1 = log2Table[a1]; /* coef */
293
    real_t r2 = (r1 - r0); /* coef */
294
295
    if (warp)
296
        r2 = MUL_C(r2, COEF_CONST(1.0/1.3));
297
298
    /* convert r2 to real and then multiply and round */
299
    r2 = (r2 >> (COEF_BITS-REAL_BITS)) * bands + (1<<(REAL_BITS-1));
300
301
    return (r2 >> REAL_BITS);
302
#else
303
170k
    real_t div = (real_t)log(2.0);
304
170k
    if (warp) div *= (real_t)1.3;
305
306
170k
    return (int32_t)(bands * log((float)a1/(float)a0)/div + 0.5);
307
170k
#endif
308
170k
}
309
310
static real_t find_initial_power(uint8_t bands, uint8_t a0, uint8_t a1)
311
154k
{
312
#ifdef FIXED_POINT
313
    /* table with log() values */
314
    static const real_t logTable[65] = {
315
71.7k
        COEF_CONST(0.0), COEF_CONST(0.0), COEF_CONST(0.6931471806), COEF_CONST(1.0986122887),
316
71.7k
        COEF_CONST(1.3862943611), COEF_CONST(1.6094379124), COEF_CONST(1.7917594692), COEF_CONST(1.9459101491),
317
71.7k
        COEF_CONST(2.0794415417), COEF_CONST(2.1972245773), COEF_CONST(2.3025850930), COEF_CONST(2.3978952728),
318
71.7k
        COEF_CONST(2.4849066498), COEF_CONST(2.5649493575), COEF_CONST(2.6390573296), COEF_CONST(2.7080502011),
319
71.7k
        COEF_CONST(2.7725887222), COEF_CONST(2.8332133441), COEF_CONST(2.8903717579), COEF_CONST(2.9444389792),
320
71.7k
        COEF_CONST(2.9957322736), COEF_CONST(3.0445224377), COEF_CONST(3.0910424534), COEF_CONST(3.1354942159),
321
71.7k
        COEF_CONST(3.1780538303), COEF_CONST(3.2188758249), COEF_CONST(3.2580965380), COEF_CONST(3.2958368660),
322
71.7k
        COEF_CONST(3.3322045102), COEF_CONST(3.3672958300), COEF_CONST(3.4011973817), COEF_CONST(3.4339872045),
323
71.7k
        COEF_CONST(3.4657359028), COEF_CONST(3.4965075615), COEF_CONST(3.5263605246), COEF_CONST(3.5553480615),
324
71.7k
        COEF_CONST(3.5835189385), COEF_CONST(3.6109179126), COEF_CONST(3.6375861597), COEF_CONST(3.6635616461),
325
71.7k
        COEF_CONST(3.6888794541), COEF_CONST(3.7135720667), COEF_CONST(3.7376696183), COEF_CONST(3.7612001157),
326
71.7k
        COEF_CONST(3.7841896339), COEF_CONST(3.8066624898), COEF_CONST(3.8286413965), COEF_CONST(3.8501476017),
327
71.7k
        COEF_CONST(3.8712010109), COEF_CONST(3.8918202981), COEF_CONST(3.9120230054), COEF_CONST(3.9318256327),
328
71.7k
        COEF_CONST(3.9512437186), COEF_CONST(3.9702919136), COEF_CONST(3.9889840466), COEF_CONST(4.0073331852),
329
71.7k
        COEF_CONST(4.0253516907), COEF_CONST(4.0430512678), COEF_CONST(4.0604430105), COEF_CONST(4.0775374439),
330
71.7k
        COEF_CONST(4.0943445622), COEF_CONST(4.1108738642), COEF_CONST(4.1271343850), COEF_CONST(4.1431347264),
331
71.7k
        COEF_CONST(4.158883083)
332
    };
333
    /* standard Taylor polynomial coefficients for exp(x) around 0 */
334
    /* a polynomial around x=1 is more precise, as most values are around 1.07,
335
       but this is just fine already */
336
71.7k
    static const real_t c1 = COEF_CONST(1.0);
337
71.7k
    static const real_t c2 = COEF_CONST(1.0/2.0);
338
71.7k
    static const real_t c3 = COEF_CONST(1.0/6.0);
339
71.7k
    static const real_t c4 = COEF_CONST(1.0/24.0);
340
341
    real_t r0 = logTable[a0]; /* coef */
342
    real_t r1 = logTable[a1]; /* coef */
343
    real_t r2 = (r1 - r0) / bands; /* coef */
344
71.7k
    real_t rexp = c1 + MUL_C((c1 + MUL_C((c2 + MUL_C((c3 + MUL_C(c4,r2)), r2)), r2)), r2);
345
346
71.7k
    return (rexp >> (COEF_BITS-REAL_BITS)); /* real */
347
#else
348
    return (real_t)pow((real_t)a1/(real_t)a0, 1.0/(real_t)bands);
349
#endif
350
154k
}
sbr_fbt.c:find_initial_power
Line
Count
Source
311
71.7k
{
312
71.7k
#ifdef FIXED_POINT
313
    /* table with log() values */
314
71.7k
    static const real_t logTable[65] = {
315
71.7k
        COEF_CONST(0.0), COEF_CONST(0.0), COEF_CONST(0.6931471806), COEF_CONST(1.0986122887),
316
71.7k
        COEF_CONST(1.3862943611), COEF_CONST(1.6094379124), COEF_CONST(1.7917594692), COEF_CONST(1.9459101491),
317
71.7k
        COEF_CONST(2.0794415417), COEF_CONST(2.1972245773), COEF_CONST(2.3025850930), COEF_CONST(2.3978952728),
318
71.7k
        COEF_CONST(2.4849066498), COEF_CONST(2.5649493575), COEF_CONST(2.6390573296), COEF_CONST(2.7080502011),
319
71.7k
        COEF_CONST(2.7725887222), COEF_CONST(2.8332133441), COEF_CONST(2.8903717579), COEF_CONST(2.9444389792),
320
71.7k
        COEF_CONST(2.9957322736), COEF_CONST(3.0445224377), COEF_CONST(3.0910424534), COEF_CONST(3.1354942159),
321
71.7k
        COEF_CONST(3.1780538303), COEF_CONST(3.2188758249), COEF_CONST(3.2580965380), COEF_CONST(3.2958368660),
322
71.7k
        COEF_CONST(3.3322045102), COEF_CONST(3.3672958300), COEF_CONST(3.4011973817), COEF_CONST(3.4339872045),
323
71.7k
        COEF_CONST(3.4657359028), COEF_CONST(3.4965075615), COEF_CONST(3.5263605246), COEF_CONST(3.5553480615),
324
71.7k
        COEF_CONST(3.5835189385), COEF_CONST(3.6109179126), COEF_CONST(3.6375861597), COEF_CONST(3.6635616461),
325
71.7k
        COEF_CONST(3.6888794541), COEF_CONST(3.7135720667), COEF_CONST(3.7376696183), COEF_CONST(3.7612001157),
326
71.7k
        COEF_CONST(3.7841896339), COEF_CONST(3.8066624898), COEF_CONST(3.8286413965), COEF_CONST(3.8501476017),
327
71.7k
        COEF_CONST(3.8712010109), COEF_CONST(3.8918202981), COEF_CONST(3.9120230054), COEF_CONST(3.9318256327),
328
71.7k
        COEF_CONST(3.9512437186), COEF_CONST(3.9702919136), COEF_CONST(3.9889840466), COEF_CONST(4.0073331852),
329
71.7k
        COEF_CONST(4.0253516907), COEF_CONST(4.0430512678), COEF_CONST(4.0604430105), COEF_CONST(4.0775374439),
330
71.7k
        COEF_CONST(4.0943445622), COEF_CONST(4.1108738642), COEF_CONST(4.1271343850), COEF_CONST(4.1431347264),
331
71.7k
        COEF_CONST(4.158883083)
332
71.7k
    };
333
    /* standard Taylor polynomial coefficients for exp(x) around 0 */
334
    /* a polynomial around x=1 is more precise, as most values are around 1.07,
335
       but this is just fine already */
336
71.7k
    static const real_t c1 = COEF_CONST(1.0);
337
71.7k
    static const real_t c2 = COEF_CONST(1.0/2.0);
338
71.7k
    static const real_t c3 = COEF_CONST(1.0/6.0);
339
71.7k
    static const real_t c4 = COEF_CONST(1.0/24.0);
340
341
71.7k
    real_t r0 = logTable[a0]; /* coef */
342
71.7k
    real_t r1 = logTable[a1]; /* coef */
343
71.7k
    real_t r2 = (r1 - r0) / bands; /* coef */
344
71.7k
    real_t rexp = c1 + MUL_C((c1 + MUL_C((c2 + MUL_C((c3 + MUL_C(c4,r2)), r2)), r2)), r2);
345
346
71.7k
    return (rexp >> (COEF_BITS-REAL_BITS)); /* real */
347
#else
348
    return (real_t)pow((real_t)a1/(real_t)a0, 1.0/(real_t)bands);
349
#endif
350
71.7k
}
sbr_fbt.c:find_initial_power
Line
Count
Source
311
83.1k
{
312
#ifdef FIXED_POINT
313
    /* table with log() values */
314
    static const real_t logTable[65] = {
315
        COEF_CONST(0.0), COEF_CONST(0.0), COEF_CONST(0.6931471806), COEF_CONST(1.0986122887),
316
        COEF_CONST(1.3862943611), COEF_CONST(1.6094379124), COEF_CONST(1.7917594692), COEF_CONST(1.9459101491),
317
        COEF_CONST(2.0794415417), COEF_CONST(2.1972245773), COEF_CONST(2.3025850930), COEF_CONST(2.3978952728),
318
        COEF_CONST(2.4849066498), COEF_CONST(2.5649493575), COEF_CONST(2.6390573296), COEF_CONST(2.7080502011),
319
        COEF_CONST(2.7725887222), COEF_CONST(2.8332133441), COEF_CONST(2.8903717579), COEF_CONST(2.9444389792),
320
        COEF_CONST(2.9957322736), COEF_CONST(3.0445224377), COEF_CONST(3.0910424534), COEF_CONST(3.1354942159),
321
        COEF_CONST(3.1780538303), COEF_CONST(3.2188758249), COEF_CONST(3.2580965380), COEF_CONST(3.2958368660),
322
        COEF_CONST(3.3322045102), COEF_CONST(3.3672958300), COEF_CONST(3.4011973817), COEF_CONST(3.4339872045),
323
        COEF_CONST(3.4657359028), COEF_CONST(3.4965075615), COEF_CONST(3.5263605246), COEF_CONST(3.5553480615),
324
        COEF_CONST(3.5835189385), COEF_CONST(3.6109179126), COEF_CONST(3.6375861597), COEF_CONST(3.6635616461),
325
        COEF_CONST(3.6888794541), COEF_CONST(3.7135720667), COEF_CONST(3.7376696183), COEF_CONST(3.7612001157),
326
        COEF_CONST(3.7841896339), COEF_CONST(3.8066624898), COEF_CONST(3.8286413965), COEF_CONST(3.8501476017),
327
        COEF_CONST(3.8712010109), COEF_CONST(3.8918202981), COEF_CONST(3.9120230054), COEF_CONST(3.9318256327),
328
        COEF_CONST(3.9512437186), COEF_CONST(3.9702919136), COEF_CONST(3.9889840466), COEF_CONST(4.0073331852),
329
        COEF_CONST(4.0253516907), COEF_CONST(4.0430512678), COEF_CONST(4.0604430105), COEF_CONST(4.0775374439),
330
        COEF_CONST(4.0943445622), COEF_CONST(4.1108738642), COEF_CONST(4.1271343850), COEF_CONST(4.1431347264),
331
        COEF_CONST(4.158883083)
332
    };
333
    /* standard Taylor polynomial coefficients for exp(x) around 0 */
334
    /* a polynomial around x=1 is more precise, as most values are around 1.07,
335
       but this is just fine already */
336
    static const real_t c1 = COEF_CONST(1.0);
337
    static const real_t c2 = COEF_CONST(1.0/2.0);
338
    static const real_t c3 = COEF_CONST(1.0/6.0);
339
    static const real_t c4 = COEF_CONST(1.0/24.0);
340
341
    real_t r0 = logTable[a0]; /* coef */
342
    real_t r1 = logTable[a1]; /* coef */
343
    real_t r2 = (r1 - r0) / bands; /* coef */
344
    real_t rexp = c1 + MUL_C((c1 + MUL_C((c2 + MUL_C((c3 + MUL_C(c4,r2)), r2)), r2)), r2);
345
346
    return (rexp >> (COEF_BITS-REAL_BITS)); /* real */
347
#else
348
83.1k
    return (real_t)pow((real_t)a1/(real_t)a0, 1.0/(real_t)bands);
349
83.1k
#endif
350
83.1k
}
351
352
/*
353
   version for bs_freq_scale > 0
354
*/
355
uint8_t master_frequency_table(sbr_info *sbr, uint8_t k0, uint8_t k2,
356
                               uint8_t bs_freq_scale, uint8_t bs_alter_scale)
357
115k
{
358
115k
    uint8_t k, bands, twoRegions;
359
115k
    uint8_t k1;
360
115k
    uint8_t nrBand0, nrBand1;
361
115k
    int32_t vDk0[64] = {0}, vDk1[64] = {0};
362
115k
    int32_t vk0[64] = {0}, vk1[64] = {0};
363
115k
    uint8_t temp1[] = { 6, 5, 4 };
364
115k
    real_t q, qk;
365
115k
    int32_t A_1;
366
#ifdef FIXED_POINT
367
    real_t rk2, rk0;
368
#endif
369
115k
    (void)bs_alter_scale;  /* TODO: remove parameter? */
370
371
    /* mft only defined for k2 > k0 */
372
115k
    if (k2 <= k0)
373
2.18k
    {
374
2.18k
        sbr->N_master = 0;
375
2.18k
        return 1;
376
2.18k
    }
377
378
113k
    bands = temp1[bs_freq_scale-1];
379
380
#ifdef FIXED_POINT
381
50.8k
    rk0 = (real_t)k0 << REAL_BITS;
382
50.8k
    rk2 = (real_t)k2 << REAL_BITS;
383
50.8k
    if (rk2 > MUL_C(rk0, COEF_CONST(2.2449)))
384
#else
385
62.2k
    if ((float)k2/(float)k0 > 2.2449)
386
23.3k
#endif
387
45.6k
    {
388
45.6k
        twoRegions = 1;
389
45.6k
        k1 = k0 << 1;
390
67.3k
    } else {
391
67.3k
        twoRegions = 0;
392
67.3k
        k1 = k2;
393
67.3k
    }
394
395
113k
    nrBand0 = (uint8_t)(2 * find_bands(0, bands, k0, k1));
396
113k
    nrBand0 = min(nrBand0, 63);
397
113k
    if (nrBand0 <= 0)
398
698
        return 1;
399
400
112k
    q = find_initial_power(nrBand0, k0, k1);
401
#ifdef FIXED_POINT
402
50.5k
    qk = (real_t)k0 << REAL_BITS;
403
    //A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
404
    A_1 = k0;
405
#else
406
61.8k
    qk = REAL_CONST(k0);
407
    A_1 = (int32_t)(qk + .5);
408
#endif
409
1.12M
    for (k = 0; k <= nrBand0; k++)
410
1.00M
    {
411
1.00M
        int32_t A_0 = A_1;
412
#ifdef FIXED_POINT
413
447k
        qk = MUL_R(qk,q);
414
447k
        A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
415
#else
416
        qk *= q;
417
        A_1 = (int32_t)(qk + 0.5);
418
#endif
419
1.00M
        vDk0[k] = A_1 - A_0;
420
1.00M
    }
421
422
    /* needed? */
423
112k
    qsort(vDk0, nrBand0, sizeof(vDk0[0]), int32cmp);
424
425
112k
    vk0[0] = k0;
426
915k
    for (k = 1; k <= nrBand0; k++)
427
819k
    {
428
819k
        vk0[k] = vk0[k-1] + vDk0[k-1];
429
819k
        if (vDk0[k-1] == 0)
430
16.3k
            return 1;
431
819k
    }
432
433
96.0k
    if (!twoRegions)
434
53.4k
    {
435
489k
        for (k = 0; k <= nrBand0; k++)
436
436k
            sbr->f_master[k] = (uint8_t) vk0[k];
437
438
53.4k
        sbr->N_master = nrBand0;
439
53.4k
        sbr->N_master = min(sbr->N_master, 64);
440
53.4k
        return 0;
441
53.4k
    }
442
443
42.6k
    nrBand1 = (uint8_t)(2 * find_bands(1 /* warped */, bands, k1, k2));
444
42.6k
    nrBand1 = min(nrBand1, 63);
445
446
42.6k
    q = find_initial_power(nrBand1, k1, k2);
447
#ifdef FIXED_POINT
448
21.2k
    qk = (real_t)k1 << REAL_BITS;
449
    //A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
450
    A_1 = k1;
451
#else
452
21.3k
    qk = REAL_CONST(k1);
453
    A_1 = (int32_t)(qk + .5);
454
#endif
455
186k
    for (k = 0; k <= nrBand1 - 1; k++)
456
144k
    {
457
144k
        int32_t A_0 = A_1;
458
#ifdef FIXED_POINT
459
68.5k
        qk = MUL_R(qk,q);
460
68.5k
        A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
461
#else
462
        qk *= q;
463
        A_1 = (int32_t)(qk + 0.5);
464
#endif
465
144k
        vDk1[k] = A_1 - A_0;
466
144k
    }
467
468
42.6k
    if (vDk1[0] < vDk0[nrBand0 - 1])
469
1.66k
    {
470
1.66k
        int32_t change;
471
472
        /* needed? */
473
1.66k
        qsort(vDk1, nrBand1 + 1, sizeof(vDk1[0]), int32cmp);
474
1.66k
        change = vDk0[nrBand0 - 1] - vDk1[0];
475
1.66k
        vDk1[0] = vDk0[nrBand0 - 1];
476
1.66k
        vDk1[nrBand1 - 1] = vDk1[nrBand1 - 1] - change;
477
1.66k
    }
478
479
    /* needed? */
480
42.6k
    qsort(vDk1, nrBand1, sizeof(vDk1[0]), int32cmp);
481
42.6k
    vk1[0] = k1;
482
186k
    for (k = 1; k <= nrBand1; k++)
483
144k
    {
484
144k
        vk1[k] = vk1[k-1] + vDk1[k-1];
485
144k
        if (vDk1[k-1] == 0)
486
0
            return 1;
487
144k
    }
488
489
42.6k
    sbr->N_master = nrBand0 + nrBand1;
490
42.6k
    sbr->N_master = min(sbr->N_master, 64);
491
505k
    for (k = 0; k <= nrBand0; k++)
492
463k
    {
493
463k
        sbr->f_master[k] =  (uint8_t) vk0[k];
494
463k
    }
495
186k
    for (k = nrBand0 + 1; k <= sbr->N_master; k++)
496
144k
    {
497
144k
        sbr->f_master[k] = (uint8_t) vk1[k - nrBand0];
498
144k
    }
499
500
#if 0
501
    printf("f_master[%d]: ", sbr->N_master);
502
    for (k = 0; k <= sbr->N_master; k++)
503
    {
504
        printf("%d ", sbr->f_master[k]);
505
    }
506
    printf("\n");
507
#endif
508
509
42.6k
    return 0;
510
42.6k
}
master_frequency_table
Line
Count
Source
357
51.1k
{
358
51.1k
    uint8_t k, bands, twoRegions;
359
51.1k
    uint8_t k1;
360
51.1k
    uint8_t nrBand0, nrBand1;
361
51.1k
    int32_t vDk0[64] = {0}, vDk1[64] = {0};
362
51.1k
    int32_t vk0[64] = {0}, vk1[64] = {0};
363
51.1k
    uint8_t temp1[] = { 6, 5, 4 };
364
51.1k
    real_t q, qk;
365
51.1k
    int32_t A_1;
366
51.1k
#ifdef FIXED_POINT
367
51.1k
    real_t rk2, rk0;
368
51.1k
#endif
369
51.1k
    (void)bs_alter_scale;  /* TODO: remove parameter? */
370
371
    /* mft only defined for k2 > k0 */
372
51.1k
    if (k2 <= k0)
373
383
    {
374
383
        sbr->N_master = 0;
375
383
        return 1;
376
383
    }
377
378
50.8k
    bands = temp1[bs_freq_scale-1];
379
380
50.8k
#ifdef FIXED_POINT
381
50.8k
    rk0 = (real_t)k0 << REAL_BITS;
382
50.8k
    rk2 = (real_t)k2 << REAL_BITS;
383
50.8k
    if (rk2 > MUL_C(rk0, COEF_CONST(2.2449)))
384
#else
385
    if ((float)k2/(float)k0 > 2.2449)
386
#endif
387
22.3k
    {
388
22.3k
        twoRegions = 1;
389
22.3k
        k1 = k0 << 1;
390
28.5k
    } else {
391
28.5k
        twoRegions = 0;
392
28.5k
        k1 = k2;
393
28.5k
    }
394
395
50.8k
    nrBand0 = (uint8_t)(2 * find_bands(0, bands, k0, k1));
396
50.8k
    nrBand0 = min(nrBand0, 63);
397
50.8k
    if (nrBand0 <= 0)
398
252
        return 1;
399
400
50.5k
    q = find_initial_power(nrBand0, k0, k1);
401
50.5k
#ifdef FIXED_POINT
402
50.5k
    qk = (real_t)k0 << REAL_BITS;
403
    //A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
404
50.5k
    A_1 = k0;
405
#else
406
    qk = REAL_CONST(k0);
407
    A_1 = (int32_t)(qk + .5);
408
#endif
409
498k
    for (k = 0; k <= nrBand0; k++)
410
447k
    {
411
447k
        int32_t A_0 = A_1;
412
447k
#ifdef FIXED_POINT
413
447k
        qk = MUL_R(qk,q);
414
447k
        A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
415
#else
416
        qk *= q;
417
        A_1 = (int32_t)(qk + 0.5);
418
#endif
419
447k
        vDk0[k] = A_1 - A_0;
420
447k
    }
421
422
    /* needed? */
423
50.5k
    qsort(vDk0, nrBand0, sizeof(vDk0[0]), int32cmp);
424
425
50.5k
    vk0[0] = k0;
426
414k
    for (k = 1; k <= nrBand0; k++)
427
370k
    {
428
370k
        vk0[k] = vk0[k-1] + vDk0[k-1];
429
370k
        if (vDk0[k-1] == 0)
430
6.35k
            return 1;
431
370k
    }
432
433
44.2k
    if (!twoRegions)
434
22.9k
    {
435
200k
        for (k = 0; k <= nrBand0; k++)
436
177k
            sbr->f_master[k] = (uint8_t) vk0[k];
437
438
22.9k
        sbr->N_master = nrBand0;
439
22.9k
        sbr->N_master = min(sbr->N_master, 64);
440
22.9k
        return 0;
441
22.9k
    }
442
443
21.2k
    nrBand1 = (uint8_t)(2 * find_bands(1 /* warped */, bands, k1, k2));
444
21.2k
    nrBand1 = min(nrBand1, 63);
445
446
21.2k
    q = find_initial_power(nrBand1, k1, k2);
447
21.2k
#ifdef FIXED_POINT
448
21.2k
    qk = (real_t)k1 << REAL_BITS;
449
    //A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
450
21.2k
    A_1 = k1;
451
#else
452
    qk = REAL_CONST(k1);
453
    A_1 = (int32_t)(qk + .5);
454
#endif
455
89.8k
    for (k = 0; k <= nrBand1 - 1; k++)
456
68.5k
    {
457
68.5k
        int32_t A_0 = A_1;
458
68.5k
#ifdef FIXED_POINT
459
68.5k
        qk = MUL_R(qk,q);
460
68.5k
        A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
461
#else
462
        qk *= q;
463
        A_1 = (int32_t)(qk + 0.5);
464
#endif
465
68.5k
        vDk1[k] = A_1 - A_0;
466
68.5k
    }
467
468
21.2k
    if (vDk1[0] < vDk0[nrBand0 - 1])
469
563
    {
470
563
        int32_t change;
471
472
        /* needed? */
473
563
        qsort(vDk1, nrBand1 + 1, sizeof(vDk1[0]), int32cmp);
474
563
        change = vDk0[nrBand0 - 1] - vDk1[0];
475
563
        vDk1[0] = vDk0[nrBand0 - 1];
476
563
        vDk1[nrBand1 - 1] = vDk1[nrBand1 - 1] - change;
477
563
    }
478
479
    /* needed? */
480
21.2k
    qsort(vDk1, nrBand1, sizeof(vDk1[0]), int32cmp);
481
21.2k
    vk1[0] = k1;
482
89.8k
    for (k = 1; k <= nrBand1; k++)
483
68.5k
    {
484
68.5k
        vk1[k] = vk1[k-1] + vDk1[k-1];
485
68.5k
        if (vDk1[k-1] == 0)
486
0
            return 1;
487
68.5k
    }
488
489
21.2k
    sbr->N_master = nrBand0 + nrBand1;
490
21.2k
    sbr->N_master = min(sbr->N_master, 64);
491
251k
    for (k = 0; k <= nrBand0; k++)
492
230k
    {
493
230k
        sbr->f_master[k] =  (uint8_t) vk0[k];
494
230k
    }
495
89.8k
    for (k = nrBand0 + 1; k <= sbr->N_master; k++)
496
68.5k
    {
497
68.5k
        sbr->f_master[k] = (uint8_t) vk1[k - nrBand0];
498
68.5k
    }
499
500
#if 0
501
    printf("f_master[%d]: ", sbr->N_master);
502
    for (k = 0; k <= sbr->N_master; k++)
503
    {
504
        printf("%d ", sbr->f_master[k]);
505
    }
506
    printf("\n");
507
#endif
508
509
21.2k
    return 0;
510
21.2k
}
master_frequency_table
Line
Count
Source
357
64.0k
{
358
64.0k
    uint8_t k, bands, twoRegions;
359
64.0k
    uint8_t k1;
360
64.0k
    uint8_t nrBand0, nrBand1;
361
64.0k
    int32_t vDk0[64] = {0}, vDk1[64] = {0};
362
64.0k
    int32_t vk0[64] = {0}, vk1[64] = {0};
363
64.0k
    uint8_t temp1[] = { 6, 5, 4 };
364
64.0k
    real_t q, qk;
365
64.0k
    int32_t A_1;
366
#ifdef FIXED_POINT
367
    real_t rk2, rk0;
368
#endif
369
64.0k
    (void)bs_alter_scale;  /* TODO: remove parameter? */
370
371
    /* mft only defined for k2 > k0 */
372
64.0k
    if (k2 <= k0)
373
1.80k
    {
374
1.80k
        sbr->N_master = 0;
375
1.80k
        return 1;
376
1.80k
    }
377
378
62.2k
    bands = temp1[bs_freq_scale-1];
379
380
#ifdef FIXED_POINT
381
    rk0 = (real_t)k0 << REAL_BITS;
382
    rk2 = (real_t)k2 << REAL_BITS;
383
    if (rk2 > MUL_C(rk0, COEF_CONST(2.2449)))
384
#else
385
62.2k
    if ((float)k2/(float)k0 > 2.2449)
386
23.3k
#endif
387
23.3k
    {
388
23.3k
        twoRegions = 1;
389
23.3k
        k1 = k0 << 1;
390
38.8k
    } else {
391
38.8k
        twoRegions = 0;
392
38.8k
        k1 = k2;
393
38.8k
    }
394
395
62.2k
    nrBand0 = (uint8_t)(2 * find_bands(0, bands, k0, k1));
396
62.2k
    nrBand0 = min(nrBand0, 63);
397
62.2k
    if (nrBand0 <= 0)
398
446
        return 1;
399
400
61.8k
    q = find_initial_power(nrBand0, k0, k1);
401
#ifdef FIXED_POINT
402
    qk = (real_t)k0 << REAL_BITS;
403
    //A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
404
    A_1 = k0;
405
#else
406
61.8k
    qk = REAL_CONST(k0);
407
61.8k
    A_1 = (int32_t)(qk + .5);
408
61.8k
#endif
409
622k
    for (k = 0; k <= nrBand0; k++)
410
560k
    {
411
560k
        int32_t A_0 = A_1;
412
#ifdef FIXED_POINT
413
        qk = MUL_R(qk,q);
414
        A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
415
#else
416
560k
        qk *= q;
417
560k
        A_1 = (int32_t)(qk + 0.5);
418
560k
#endif
419
560k
        vDk0[k] = A_1 - A_0;
420
560k
    }
421
422
    /* needed? */
423
61.8k
    qsort(vDk0, nrBand0, sizeof(vDk0[0]), int32cmp);
424
425
61.8k
    vk0[0] = k0;
426
501k
    for (k = 1; k <= nrBand0; k++)
427
449k
    {
428
449k
        vk0[k] = vk0[k-1] + vDk0[k-1];
429
449k
        if (vDk0[k-1] == 0)
430
9.99k
            return 1;
431
449k
    }
432
433
51.8k
    if (!twoRegions)
434
30.4k
    {
435
288k
        for (k = 0; k <= nrBand0; k++)
436
258k
            sbr->f_master[k] = (uint8_t) vk0[k];
437
438
30.4k
        sbr->N_master = nrBand0;
439
30.4k
        sbr->N_master = min(sbr->N_master, 64);
440
30.4k
        return 0;
441
30.4k
    }
442
443
21.3k
    nrBand1 = (uint8_t)(2 * find_bands(1 /* warped */, bands, k1, k2));
444
21.3k
    nrBand1 = min(nrBand1, 63);
445
446
21.3k
    q = find_initial_power(nrBand1, k1, k2);
447
#ifdef FIXED_POINT
448
    qk = (real_t)k1 << REAL_BITS;
449
    //A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
450
    A_1 = k1;
451
#else
452
21.3k
    qk = REAL_CONST(k1);
453
21.3k
    A_1 = (int32_t)(qk + .5);
454
21.3k
#endif
455
97.0k
    for (k = 0; k <= nrBand1 - 1; k++)
456
75.6k
    {
457
75.6k
        int32_t A_0 = A_1;
458
#ifdef FIXED_POINT
459
        qk = MUL_R(qk,q);
460
        A_1 = (int32_t)((qk + REAL_CONST(0.5)) >> REAL_BITS);
461
#else
462
75.6k
        qk *= q;
463
75.6k
        A_1 = (int32_t)(qk + 0.5);
464
75.6k
#endif
465
75.6k
        vDk1[k] = A_1 - A_0;
466
75.6k
    }
467
468
21.3k
    if (vDk1[0] < vDk0[nrBand0 - 1])
469
1.09k
    {
470
1.09k
        int32_t change;
471
472
        /* needed? */
473
1.09k
        qsort(vDk1, nrBand1 + 1, sizeof(vDk1[0]), int32cmp);
474
1.09k
        change = vDk0[nrBand0 - 1] - vDk1[0];
475
1.09k
        vDk1[0] = vDk0[nrBand0 - 1];
476
1.09k
        vDk1[nrBand1 - 1] = vDk1[nrBand1 - 1] - change;
477
1.09k
    }
478
479
    /* needed? */
480
21.3k
    qsort(vDk1, nrBand1, sizeof(vDk1[0]), int32cmp);
481
21.3k
    vk1[0] = k1;
482
97.0k
    for (k = 1; k <= nrBand1; k++)
483
75.6k
    {
484
75.6k
        vk1[k] = vk1[k-1] + vDk1[k-1];
485
75.6k
        if (vDk1[k-1] == 0)
486
0
            return 1;
487
75.6k
    }
488
489
21.3k
    sbr->N_master = nrBand0 + nrBand1;
490
21.3k
    sbr->N_master = min(sbr->N_master, 64);
491
254k
    for (k = 0; k <= nrBand0; k++)
492
232k
    {
493
232k
        sbr->f_master[k] =  (uint8_t) vk0[k];
494
232k
    }
495
97.0k
    for (k = nrBand0 + 1; k <= sbr->N_master; k++)
496
75.6k
    {
497
75.6k
        sbr->f_master[k] = (uint8_t) vk1[k - nrBand0];
498
75.6k
    }
499
500
#if 0
501
    printf("f_master[%d]: ", sbr->N_master);
502
    for (k = 0; k <= sbr->N_master; k++)
503
    {
504
        printf("%d ", sbr->f_master[k]);
505
    }
506
    printf("\n");
507
#endif
508
509
21.3k
    return 0;
510
21.3k
}
511
512
/* calculate the derived frequency border tables from f_master */
513
uint8_t derived_frequency_table(sbr_info *sbr, uint8_t bs_xover_band,
514
                                uint8_t k2)
515
139k
{
516
139k
    uint8_t k, i;
517
139k
    uint32_t minus;
518
519
    /* The following relation shall be satisfied: bs_xover_band < N_Master */
520
139k
    if (sbr->N_master <= bs_xover_band)
521
10.4k
        return 1;
522
523
129k
    sbr->N_high = sbr->N_master - bs_xover_band;
524
129k
    sbr->N_low = (sbr->N_high>>1) + (sbr->N_high - ((sbr->N_high>>1)<<1));
525
526
129k
    sbr->n[0] = sbr->N_low;
527
129k
    sbr->n[1] = sbr->N_high;
528
529
1.65M
    for (k = 0; k <= sbr->N_high; k++)
530
1.52M
    {
531
1.52M
        sbr->f_table_res[HI_RES][k] = sbr->f_master[k + bs_xover_band];
532
1.52M
    }
533
534
129k
    sbr->M = sbr->f_table_res[HI_RES][sbr->N_high] - sbr->f_table_res[HI_RES][0];
535
129k
    if (sbr->M > MAX_M)
536
1.09k
        return 1;
537
127k
    sbr->kx = sbr->f_table_res[HI_RES][0];
538
127k
    if (sbr->kx > 32)
539
13.7k
        return 1;
540
114k
    if (sbr->kx + sbr->M > 64)
541
0
        return 1;
542
543
114k
    minus = (sbr->N_high & 1) ? 1 : 0;
544
545
114k
    i = 0;
546
870k
    for (k = 0; k <= sbr->N_low; k++)
547
756k
    {
548
756k
        if (k != 0)
549
641k
            i = (uint8_t)(2*k - minus);
550
756k
        sbr->f_table_res[LO_RES][k] = sbr->f_table_res[HI_RES][i];
551
756k
    }
552
553
#if 0
554
    printf("bs_freq_scale: %d\n", sbr->bs_freq_scale);
555
    printf("bs_limiter_bands: %d\n", sbr->bs_limiter_bands);
556
    printf("f_table_res[HI_RES][%d]: ", sbr->N_high);
557
    for (k = 0; k <= sbr->N_high; k++)
558
    {
559
        printf("%d ", sbr->f_table_res[HI_RES][k]);
560
    }
561
    printf("\n");
562
#endif
563
#if 0
564
    printf("f_table_res[LO_RES][%d]: ", sbr->N_low);
565
    for (k = 0; k <= sbr->N_low; k++)
566
    {
567
        printf("%d ", sbr->f_table_res[LO_RES][k]);
568
    }
569
    printf("\n");
570
#endif
571
572
114k
    sbr->N_Q = 0;
573
114k
    if (sbr->bs_noise_bands == 0)
574
23.8k
    {
575
23.8k
        sbr->N_Q = 1;
576
90.2k
    } else {
577
#if 0
578
        sbr->N_Q = max(1, (int32_t)(sbr->bs_noise_bands*(log(k2/(float)sbr->kx)/log(2.0)) + 0.5));
579
#else
580
90.2k
        sbr->N_Q = (uint8_t)(max(1, find_bands(0, sbr->bs_noise_bands, sbr->kx, k2)));
581
90.2k
#endif
582
90.2k
        sbr->N_Q = min(5, sbr->N_Q);
583
90.2k
    }
584
585
114k
    i = 0;
586
426k
    for (k = 0; k <= sbr->N_Q; k++)
587
312k
    {
588
312k
        if (k != 0)
589
197k
            i = i + (sbr->N_low - i)/(sbr->N_Q + 1 - k);
590
312k
        sbr->f_table_noise[k] = sbr->f_table_res[LO_RES][i];
591
312k
    }
592
593
    /* build table for mapping k to g in hf patching */
594
7.42M
    for (k = 0; k < 64; k++)
595
7.30M
    {
596
7.30M
        uint8_t g;
597
17.0M
        for (g = 0; g < sbr->N_Q; g++)
598
11.8M
        {
599
11.8M
            if ((sbr->f_table_noise[g] <= k) &&
600
11.8M
                (k < sbr->f_table_noise[g+1]))
601
2.17M
            {
602
2.17M
                sbr->table_map_k_to_g[k] = g;
603
2.17M
                break;
604
2.17M
            }
605
11.8M
        }
606
7.30M
    }
607
608
#if 0
609
    printf("f_table_noise[%d]: ", sbr->N_Q);
610
    for (k = 0; k <= sbr->N_Q; k++)
611
    {
612
        printf("%d ", sbr->f_table_noise[k] - sbr->kx);
613
    }
614
    printf("\n");
615
#endif
616
617
114k
    return 0;
618
114k
}
619
620
/* TODO: blegh, ugly */
621
/* Modified to calculate for all possible bs_limiter_bands always
622
 * This reduces the number calls to this functions needed (now only on
623
 * header reset)
624
 */
625
void limiter_frequency_table(sbr_info *sbr)
626
27.1k
{
627
#if 0
628
    static const real_t limiterBandsPerOctave[] = { REAL_CONST(1.2),
629
        REAL_CONST(2), REAL_CONST(3) };
630
#else
631
27.1k
    static const real_t limiterBandsCompare[] = { REAL_CONST(1.327152),
632
27.1k
        REAL_CONST(1.185093), REAL_CONST(1.119872) };
633
27.1k
#endif
634
27.1k
    uint8_t k, s;
635
27.1k
    int8_t nrLim;
636
#if 0
637
    real_t limBands;
638
#endif
639
640
27.1k
    sbr->f_table_lim[0][0] = sbr->f_table_res[LO_RES][0] - sbr->kx;
641
27.1k
    sbr->f_table_lim[0][1] = sbr->f_table_res[LO_RES][sbr->N_low] - sbr->kx;
642
27.1k
    sbr->N_L[0] = 1;
643
644
#if 0
645
    printf("f_table_lim[%d][%d]: ", 0, sbr->N_L[0]);
646
    for (k = 0; k <= sbr->N_L[0]; k++)
647
    {
648
        printf("%d ", sbr->f_table_lim[0][k]);
649
    }
650
    printf("\n");
651
#endif
652
653
108k
    for (s = 1; s < 4; s++)
654
81.3k
    {
655
81.3k
        uint8_t limTable[100 /*TODO*/] = {0};
656
81.3k
        uint8_t patchBorders[64/*??*/] = {0};
657
658
#if 0
659
        limBands = limiterBandsPerOctave[s - 1];
660
#endif
661
662
81.3k
        patchBorders[0] = sbr->kx;
663
255k
        for (k = 1; k <= sbr->noPatches; k++)
664
174k
        {
665
174k
            patchBorders[k] = patchBorders[k-1] + sbr->patchNoSubbands[k-1];
666
174k
        }
667
668
497k
        for (k = 0; k <= sbr->N_low; k++)
669
416k
        {
670
416k
            limTable[k] = sbr->f_table_res[LO_RES][k];
671
416k
        }
672
174k
        for (k = 1; k < sbr->noPatches; k++)
673
93.1k
        {
674
93.1k
            limTable[k+sbr->N_low] = patchBorders[k];
675
93.1k
        }
676
677
        /* needed */
678
81.3k
        qsort(limTable, sbr->noPatches + sbr->N_low, sizeof(limTable[0]), uint8cmp);
679
81.3k
        k = 1;
680
81.3k
        nrLim = sbr->noPatches + sbr->N_low - 1;
681
682
81.3k
        if (nrLim < 0) // TODO: BIG FAT PROBLEM
683
0
            return;
684
685
509k
restart:
686
509k
        if (k <= nrLim)
687
428k
        {
688
428k
            real_t nOctaves;
689
690
428k
            if (limTable[k-1] != 0)
691
#if 0
692
                nOctaves = REAL_CONST(log((float)limTable[k]/(float)limTable[k-1])/log(2.0));
693
#else
694
#ifdef FIXED_POINT
695
224k
                nOctaves = DIV_R((limTable[k]<<REAL_BITS),REAL_CONST(limTable[k-1]));
696
#else
697
203k
                nOctaves = (real_t)limTable[k]/(real_t)limTable[k-1];
698
0
#endif
699
0
#endif
700
0
            else
701
0
                nOctaves = 0;
702
703
#if 0
704
            if ((MUL_R(nOctaves,limBands)) < REAL_CONST(0.49))
705
#else
706
428k
            if (nOctaves < limiterBandsCompare[s - 1])
707
274k
#endif
708
274k
            {
709
274k
                uint8_t i;
710
274k
                if (limTable[k] != limTable[k-1])
711
219k
                {
712
219k
                    uint8_t found = 0, found2 = 0;
713
1.10M
                    for (i = 0; i <= sbr->noPatches; i++)
714
886k
                    {
715
886k
                        if (limTable[k] == patchBorders[i])
716
90.7k
                            found = 1;
717
886k
                    }
718
219k
                    if (found)
719
90.7k
                    {
720
90.7k
                        found2 = 0;
721
430k
                        for (i = 0; i <= sbr->noPatches; i++)
722
339k
                        {
723
339k
                            if (limTable[k-1] == patchBorders[i])
724
62.8k
                                found2 = 1;
725
339k
                        }
726
90.7k
                        if (found2)
727
62.8k
                        {
728
62.8k
                            k++;
729
62.8k
                            goto restart;
730
62.8k
                        } else {
731
                            /* remove (k-1)th element */
732
27.8k
                            limTable[k-1] = sbr->f_table_res[LO_RES][sbr->N_low];
733
27.8k
                            qsort(limTable, sbr->noPatches + sbr->N_low, sizeof(limTable[0]), uint8cmp);
734
27.8k
                            nrLim--;
735
27.8k
                            goto restart;
736
27.8k
                        }
737
90.7k
                    }
738
219k
                }
739
                /* remove kth element */
740
184k
                limTable[k] = sbr->f_table_res[LO_RES][sbr->N_low];
741
184k
                qsort(limTable, nrLim, sizeof(limTable[0]), uint8cmp);
742
184k
                nrLim--;
743
184k
                goto restart;
744
274k
            } else {
745
153k
                k++;
746
153k
                goto restart;
747
153k
            }
748
428k
        }
749
750
81.3k
        sbr->N_L[s] = nrLim;
751
378k
        for (k = 0; k <= nrLim; k++)
752
297k
        {
753
297k
            sbr->f_table_lim[s][k] = limTable[k] - sbr->kx;
754
297k
        }
755
756
#if 0
757
        printf("f_table_lim[%d][%d]: ", s, sbr->N_L[s]);
758
        for (k = 0; k <= sbr->N_L[s]; k++)
759
        {
760
            printf("%d ", sbr->f_table_lim[s][k]);
761
        }
762
        printf("\n");
763
#endif
764
81.3k
    }
765
27.1k
}
limiter_frequency_table
Line
Count
Source
626
13.2k
{
627
#if 0
628
    static const real_t limiterBandsPerOctave[] = { REAL_CONST(1.2),
629
        REAL_CONST(2), REAL_CONST(3) };
630
#else
631
13.2k
    static const real_t limiterBandsCompare[] = { REAL_CONST(1.327152),
632
13.2k
        REAL_CONST(1.185093), REAL_CONST(1.119872) };
633
13.2k
#endif
634
13.2k
    uint8_t k, s;
635
13.2k
    int8_t nrLim;
636
#if 0
637
    real_t limBands;
638
#endif
639
640
13.2k
    sbr->f_table_lim[0][0] = sbr->f_table_res[LO_RES][0] - sbr->kx;
641
13.2k
    sbr->f_table_lim[0][1] = sbr->f_table_res[LO_RES][sbr->N_low] - sbr->kx;
642
13.2k
    sbr->N_L[0] = 1;
643
644
#if 0
645
    printf("f_table_lim[%d][%d]: ", 0, sbr->N_L[0]);
646
    for (k = 0; k <= sbr->N_L[0]; k++)
647
    {
648
        printf("%d ", sbr->f_table_lim[0][k]);
649
    }
650
    printf("\n");
651
#endif
652
653
53.1k
    for (s = 1; s < 4; s++)
654
39.8k
    {
655
39.8k
        uint8_t limTable[100 /*TODO*/] = {0};
656
39.8k
        uint8_t patchBorders[64/*??*/] = {0};
657
658
#if 0
659
        limBands = limiterBandsPerOctave[s - 1];
660
#endif
661
662
39.8k
        patchBorders[0] = sbr->kx;
663
131k
        for (k = 1; k <= sbr->noPatches; k++)
664
91.5k
        {
665
91.5k
            patchBorders[k] = patchBorders[k-1] + sbr->patchNoSubbands[k-1];
666
91.5k
        }
667
668
252k
        for (k = 0; k <= sbr->N_low; k++)
669
212k
        {
670
212k
            limTable[k] = sbr->f_table_res[LO_RES][k];
671
212k
        }
672
91.5k
        for (k = 1; k < sbr->noPatches; k++)
673
51.6k
        {
674
51.6k
            limTable[k+sbr->N_low] = patchBorders[k];
675
51.6k
        }
676
677
        /* needed */
678
39.8k
        qsort(limTable, sbr->noPatches + sbr->N_low, sizeof(limTable[0]), uint8cmp);
679
39.8k
        k = 1;
680
39.8k
        nrLim = sbr->noPatches + sbr->N_low - 1;
681
682
39.8k
        if (nrLim < 0) // TODO: BIG FAT PROBLEM
683
0
            return;
684
685
264k
restart:
686
264k
        if (k <= nrLim)
687
224k
        {
688
224k
            real_t nOctaves;
689
690
224k
            if (limTable[k-1] != 0)
691
#if 0
692
                nOctaves = REAL_CONST(log((float)limTable[k]/(float)limTable[k-1])/log(2.0));
693
#else
694
224k
#ifdef FIXED_POINT
695
224k
                nOctaves = DIV_R((limTable[k]<<REAL_BITS),REAL_CONST(limTable[k-1]));
696
#else
697
                nOctaves = (real_t)limTable[k]/(real_t)limTable[k-1];
698
#endif
699
0
#endif
700
0
            else
701
0
                nOctaves = 0;
702
703
#if 0
704
            if ((MUL_R(nOctaves,limBands)) < REAL_CONST(0.49))
705
#else
706
224k
            if (nOctaves < limiterBandsCompare[s - 1])
707
142k
#endif
708
142k
            {
709
142k
                uint8_t i;
710
142k
                if (limTable[k] != limTable[k-1])
711
111k
                {
712
111k
                    uint8_t found = 0, found2 = 0;
713
562k
                    for (i = 0; i <= sbr->noPatches; i++)
714
451k
                    {
715
451k
                        if (limTable[k] == patchBorders[i])
716
47.2k
                            found = 1;
717
451k
                    }
718
111k
                    if (found)
719
47.2k
                    {
720
47.2k
                        found2 = 0;
721
232k
                        for (i = 0; i <= sbr->noPatches; i++)
722
185k
                        {
723
185k
                            if (limTable[k-1] == patchBorders[i])
724
31.9k
                                found2 = 1;
725
185k
                        }
726
47.2k
                        if (found2)
727
31.9k
                        {
728
31.9k
                            k++;
729
31.9k
                            goto restart;
730
31.9k
                        } else {
731
                            /* remove (k-1)th element */
732
15.2k
                            limTable[k-1] = sbr->f_table_res[LO_RES][sbr->N_low];
733
15.2k
                            qsort(limTable, sbr->noPatches + sbr->N_low, sizeof(limTable[0]), uint8cmp);
734
15.2k
                            nrLim--;
735
15.2k
                            goto restart;
736
15.2k
                        }
737
47.2k
                    }
738
111k
                }
739
                /* remove kth element */
740
94.8k
                limTable[k] = sbr->f_table_res[LO_RES][sbr->N_low];
741
94.8k
                qsort(limTable, nrLim, sizeof(limTable[0]), uint8cmp);
742
94.8k
                nrLim--;
743
94.8k
                goto restart;
744
142k
            } else {
745
82.5k
                k++;
746
82.5k
                goto restart;
747
82.5k
            }
748
224k
        }
749
750
39.8k
        sbr->N_L[s] = nrLim;
751
194k
        for (k = 0; k <= nrLim; k++)
752
154k
        {
753
154k
            sbr->f_table_lim[s][k] = limTable[k] - sbr->kx;
754
154k
        }
755
756
#if 0
757
        printf("f_table_lim[%d][%d]: ", s, sbr->N_L[s]);
758
        for (k = 0; k <= sbr->N_L[s]; k++)
759
        {
760
            printf("%d ", sbr->f_table_lim[s][k]);
761
        }
762
        printf("\n");
763
#endif
764
39.8k
    }
765
13.2k
}
limiter_frequency_table
Line
Count
Source
626
13.8k
{
627
#if 0
628
    static const real_t limiterBandsPerOctave[] = { REAL_CONST(1.2),
629
        REAL_CONST(2), REAL_CONST(3) };
630
#else
631
13.8k
    static const real_t limiterBandsCompare[] = { REAL_CONST(1.327152),
632
13.8k
        REAL_CONST(1.185093), REAL_CONST(1.119872) };
633
13.8k
#endif
634
13.8k
    uint8_t k, s;
635
13.8k
    int8_t nrLim;
636
#if 0
637
    real_t limBands;
638
#endif
639
640
13.8k
    sbr->f_table_lim[0][0] = sbr->f_table_res[LO_RES][0] - sbr->kx;
641
13.8k
    sbr->f_table_lim[0][1] = sbr->f_table_res[LO_RES][sbr->N_low] - sbr->kx;
642
13.8k
    sbr->N_L[0] = 1;
643
644
#if 0
645
    printf("f_table_lim[%d][%d]: ", 0, sbr->N_L[0]);
646
    for (k = 0; k <= sbr->N_L[0]; k++)
647
    {
648
        printf("%d ", sbr->f_table_lim[0][k]);
649
    }
650
    printf("\n");
651
#endif
652
653
55.2k
    for (s = 1; s < 4; s++)
654
41.4k
    {
655
41.4k
        uint8_t limTable[100 /*TODO*/] = {0};
656
41.4k
        uint8_t patchBorders[64/*??*/] = {0};
657
658
#if 0
659
        limBands = limiterBandsPerOctave[s - 1];
660
#endif
661
662
41.4k
        patchBorders[0] = sbr->kx;
663
124k
        for (k = 1; k <= sbr->noPatches; k++)
664
82.9k
        {
665
82.9k
            patchBorders[k] = patchBorders[k-1] + sbr->patchNoSubbands[k-1];
666
82.9k
        }
667
668
244k
        for (k = 0; k <= sbr->N_low; k++)
669
203k
        {
670
203k
            limTable[k] = sbr->f_table_res[LO_RES][k];
671
203k
        }
672
82.9k
        for (k = 1; k < sbr->noPatches; k++)
673
41.5k
        {
674
41.5k
            limTable[k+sbr->N_low] = patchBorders[k];
675
41.5k
        }
676
677
        /* needed */
678
41.4k
        qsort(limTable, sbr->noPatches + sbr->N_low, sizeof(limTable[0]), uint8cmp);
679
41.4k
        k = 1;
680
41.4k
        nrLim = sbr->noPatches + sbr->N_low - 1;
681
682
41.4k
        if (nrLim < 0) // TODO: BIG FAT PROBLEM
683
0
            return;
684
685
244k
restart:
686
244k
        if (k <= nrLim)
687
203k
        {
688
203k
            real_t nOctaves;
689
690
203k
            if (limTable[k-1] != 0)
691
#if 0
692
                nOctaves = REAL_CONST(log((float)limTable[k]/(float)limTable[k-1])/log(2.0));
693
#else
694
#ifdef FIXED_POINT
695
                nOctaves = DIV_R((limTable[k]<<REAL_BITS),REAL_CONST(limTable[k-1]));
696
#else
697
203k
                nOctaves = (real_t)limTable[k]/(real_t)limTable[k-1];
698
0
#endif
699
0
#endif
700
0
            else
701
0
                nOctaves = 0;
702
703
#if 0
704
            if ((MUL_R(nOctaves,limBands)) < REAL_CONST(0.49))
705
#else
706
203k
            if (nOctaves < limiterBandsCompare[s - 1])
707
132k
#endif
708
132k
            {
709
132k
                uint8_t i;
710
132k
                if (limTable[k] != limTable[k-1])
711
108k
                {
712
108k
                    uint8_t found = 0, found2 = 0;
713
543k
                    for (i = 0; i <= sbr->noPatches; i++)
714
434k
                    {
715
434k
                        if (limTable[k] == patchBorders[i])
716
43.5k
                            found = 1;
717
434k
                    }
718
108k
                    if (found)
719
43.5k
                    {
720
43.5k
                        found2 = 0;
721
198k
                        for (i = 0; i <= sbr->noPatches; i++)
722
154k
                        {
723
154k
                            if (limTable[k-1] == patchBorders[i])
724
30.8k
                                found2 = 1;
725
154k
                        }
726
43.5k
                        if (found2)
727
30.8k
                        {
728
30.8k
                            k++;
729
30.8k
                            goto restart;
730
30.8k
                        } else {
731
                            /* remove (k-1)th element */
732
12.6k
                            limTable[k-1] = sbr->f_table_res[LO_RES][sbr->N_low];
733
12.6k
                            qsort(limTable, sbr->noPatches + sbr->N_low, sizeof(limTable[0]), uint8cmp);
734
12.6k
                            nrLim--;
735
12.6k
                            goto restart;
736
12.6k
                        }
737
43.5k
                    }
738
108k
                }
739
                /* remove kth element */
740
89.1k
                limTable[k] = sbr->f_table_res[LO_RES][sbr->N_low];
741
89.1k
                qsort(limTable, nrLim, sizeof(limTable[0]), uint8cmp);
742
89.1k
                nrLim--;
743
89.1k
                goto restart;
744
132k
            } else {
745
70.7k
                k++;
746
70.7k
                goto restart;
747
70.7k
            }
748
203k
        }
749
750
41.4k
        sbr->N_L[s] = nrLim;
751
184k
        for (k = 0; k <= nrLim; k++)
752
143k
        {
753
143k
            sbr->f_table_lim[s][k] = limTable[k] - sbr->kx;
754
143k
        }
755
756
#if 0
757
        printf("f_table_lim[%d][%d]: ", s, sbr->N_L[s]);
758
        for (k = 0; k <= sbr->N_L[s]; k++)
759
        {
760
            printf("%d ", sbr->f_table_lim[s][k]);
761
        }
762
        printf("\n");
763
#endif
764
41.4k
    }
765
13.8k
}
766
767
#endif