Coverage Report

Created: 2026-07-24 06:21

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/proc/self/cwd/libfaad/pns.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: pns.c,v 1.39 2010/06/04 20:47:56 menno Exp $
29
**/
30
31
#include "common.h"
32
#include "structs.h"
33
34
#include "pns.h"
35
36
37
/* static function declarations */
38
static void gen_rand_vector(real_t *spec, int16_t scale_factor, uint16_t size,
39
                            uint8_t sub,
40
                            /* RNG states */ uint32_t *__r1, uint32_t *__r2);
41
42
43
#ifdef FIXED_POINT
44
45
static real_t const pow2_table[] =
46
{
47
    COEF_CONST(1.0),
48
    COEF_CONST(1.18920711500272),
49
    COEF_CONST(1.41421356237310),
50
    COEF_CONST(1.68179283050743)
51
};
52
53
// mean_energy_table[x] == sqrt(3 / x)
54
static real_t const mean_energy_table[] =
55
{
56
    COEF_CONST(0.0),                // should not happen
57
    COEF_CONST(1.7320508075688772),
58
    COEF_CONST(1.224744871391589),
59
    COEF_CONST(1.0),                // sqrt(3/3)
60
    COEF_CONST(0.8660254037844386),
61
    COEF_CONST(0.7745966692414834),
62
    COEF_CONST(0.7071067811865476),
63
    COEF_CONST(0.6546536707079771),
64
    COEF_CONST(0.6123724356957945),
65
    COEF_CONST(0.5773502691896257),
66
    COEF_CONST(0.5477225575051661),
67
    COEF_CONST(0.5222329678670935),
68
    COEF_CONST(0.5),                // sqrt(3/12)
69
    COEF_CONST(0.4803844614152614),
70
    COEF_CONST(0.4629100498862757),
71
    COEF_CONST(0.4472135954999579),
72
};
73
#endif
74
75
/* The function gen_rand_vector(addr, size) generates a vector of length
76
   <size> with signed random values of average energy MEAN_NRG per random
77
   value. A suitable random number generator can be realized using one
78
   multiplication/accumulation per random value.
79
*/
80
static INLINE void gen_rand_vector(real_t *spec, int16_t scale_factor, uint16_t size,
81
                                   uint8_t sub,
82
                                   /* RNG states */ uint32_t *__r1, uint32_t *__r2)
83
53.8k
{
84
#ifndef FIXED_POINT
85
    uint16_t i;
86
    real_t energy = 0.0;
87
    (void)sub;
88
89
    scale_factor = min(max(scale_factor, -120), 120);
90
91
    for (i = 0; i < size; i++)
92
    {
93
        real_t tmp = (real_t)(int32_t)ne_rng(__r1, __r2);
94
        spec[i] = tmp;
95
        energy += tmp*tmp;
96
    }
97
98
    if (energy > 0)
99
    {
100
        real_t scale = (real_t)1.0/(real_t)sqrt(energy);
101
        scale *= (real_t)pow(2.0, 0.25 * scale_factor);
102
        for (i = 0; i < size; i++)
103
        {
104
            spec[i] *= scale;
105
        }
106
    }
107
#else
108
53.8k
    uint16_t i;
109
53.8k
    real_t scale;
110
53.8k
    int32_t exp, frac;
111
53.8k
    int32_t idx, mask;
112
113
    /* IMDCT pre-scaling */
114
53.8k
    scale_factor -= 4 * sub;
115
116
    // 52 stands for 2**13 == 8192 factor; larger factor causes overflows later (in cfft).
117
53.8k
    scale_factor = min(max(scale_factor, -(REAL_BITS * 4)), 52);
118
119
53.8k
    exp = scale_factor >> 2;
120
53.8k
    frac = scale_factor & 3;
121
122
    /* 29 <= REAL_BITS + exp <= 0 */
123
53.8k
    mask = (1 << (REAL_BITS + exp)) - 1;
124
125
53.8k
    idx = size;
126
53.8k
    scale = COEF_CONST(1);
127
    // At most 2 iterations.
128
64.2k
    while (idx >= 16)
129
10.4k
    {
130
10.4k
        idx >>= 2;
131
10.4k
        scale >>= 1;
132
10.4k
    }
133
53.8k
    scale = MUL_C(scale, mean_energy_table[idx]);
134
53.8k
    if (frac)
135
9.02k
        scale = MUL_C(scale, pow2_table[frac]);
136
    // scale is less than 4.0 now.
137
138
607k
    for (i = 0; i < size; i++)
139
553k
    {
140
553k
        real_t tmp = (int32_t)ne_rng(__r1, __r2);
141
553k
        if (tmp < 0)
142
280k
            tmp = -(tmp & mask);
143
273k
        else
144
273k
            tmp = (tmp & mask);
145
553k
        spec[i] = MUL_C(tmp, scale);
146
553k
    }
147
53.8k
#endif
148
53.8k
}
149
150
void pns_decode(ic_stream *ics_left, ic_stream *ics_right,
151
                real_t *spec_left, real_t *spec_right, uint16_t frame_len,
152
                uint8_t channel_pair, uint8_t object_type,
153
                /* RNG states */ uint32_t *__r1, uint32_t *__r2)
154
256k
{
155
256k
    uint8_t g, sfb, b;
156
256k
    uint16_t begin, end;
157
158
256k
    uint8_t group = 0;
159
256k
    uint16_t nshort = frame_len >> 3;
160
161
256k
    uint8_t sub = 0;
162
163
256k
#ifdef FIXED_POINT
164
    /* IMDCT scaling */
165
256k
    if (object_type == LD)
166
1.64k
    {
167
1.64k
        sub = 9 /*9*/;
168
254k
    } else {
169
254k
        if (ics_left->window_sequence == EIGHT_SHORT_SEQUENCE)
170
16.1k
            sub = 7 /*7*/;
171
238k
        else
172
238k
            sub = 10 /*10*/;
173
254k
    }
174
#else
175
    (void)object_type;
176
#endif
177
178
604k
    for (g = 0; g < ics_left->num_window_groups; g++)
179
348k
    {
180
        /* Do perceptual noise substitution decoding */
181
717k
        for (b = 0; b < ics_left->window_group_length[g]; b++)
182
369k
        {
183
369k
            uint16_t base = group * nshort;
184
550k
            for (sfb = 0; sfb < ics_left->max_sfb; sfb++)
185
181k
            {
186
181k
                uint32_t r1_dep = 0, r2_dep = 0;
187
188
181k
                if (is_noise(ics_left, g, sfb))
189
39.1k
                {
190
39.1k
#ifdef LTP_DEC
191
                    /* Simultaneous use of LTP and PNS is not prevented in the
192
                       syntax. If both LTP, and PNS are enabled on the same
193
                       scalefactor band, PNS takes precedence, and no prediction
194
                       is applied to this band.
195
                    */
196
39.1k
                    ics_left->ltp.long_used[sfb] = 0;
197
39.1k
                    ics_left->ltp2.long_used[sfb] = 0;
198
39.1k
#endif
199
200
#ifdef MAIN_DEC
201
                    /* For scalefactor bands coded using PNS the corresponding
202
                       predictors are switched to "off".
203
                    */
204
                    ics_left->pred.prediction_used[sfb] = 0;
205
#endif
206
39.1k
                    begin = min(base + ics_left->swb_offset[sfb], ics_left->swb_offset_max);
207
39.1k
                    end = min(base + ics_left->swb_offset[sfb+1], ics_left->swb_offset_max);
208
209
39.1k
                    r1_dep = *__r1;
210
39.1k
                    r2_dep = *__r2;
211
212
                    /* Generate random vector */
213
39.1k
                    gen_rand_vector(&spec_left[begin],
214
39.1k
                        ics_left->scale_factors[g][sfb], end - begin, sub, __r1, __r2);
215
39.1k
                }
216
217
/* From the spec:
218
   If the same scalefactor band and group is coded by perceptual noise
219
   substitution in both channels of a channel pair, the correlation of
220
   the noise signal can be controlled by means of the ms_used field: While
221
   the default noise generation process works independently for each channel
222
   (separate generation of random vectors), the same random vector is used
223
   for both channels if ms_used[] is set for a particular scalefactor band
224
   and group. In this case, no M/S stereo coding is carried out (because M/S
225
   stereo coding and noise substitution coding are mutually exclusive).
226
   If the same scalefactor band and group is coded by perceptual noise
227
   substitution in only one channel of a channel pair the setting of ms_used[]
228
   is not evaluated.
229
*/
230
181k
                if ((ics_right != NULL)
231
79.8k
                    && is_noise(ics_right, g, sfb))
232
14.6k
                {
233
14.6k
#ifdef LTP_DEC
234
                    /* See comment above. */
235
14.6k
                    ics_right->ltp.long_used[sfb] = 0;
236
14.6k
                    ics_right->ltp2.long_used[sfb] = 0;
237
14.6k
#endif
238
#ifdef MAIN_DEC
239
                    /* See comment above. */
240
                    ics_right->pred.prediction_used[sfb] = 0;
241
#endif
242
243
14.6k
                    if (channel_pair && is_noise(ics_left, g, sfb) &&
244
6.21k
                        (((ics_left->ms_mask_present == 1) &&
245
5.89k
                        (ics_left->ms_used[g][sfb])) ||
246
3.68k
                        (ics_left->ms_mask_present == 2)))
247
2.85k
                    {
248
                        /*uint16_t c;*/
249
250
2.85k
                        begin = min(base + ics_right->swb_offset[sfb], ics_right->swb_offset_max);
251
2.85k
                        end = min(base + ics_right->swb_offset[sfb+1], ics_right->swb_offset_max);
252
253
                        /* Generate random vector dependent on left channel*/
254
2.85k
                        gen_rand_vector(&spec_right[begin],
255
2.85k
                            ics_right->scale_factors[g][sfb], end - begin, sub, &r1_dep, &r2_dep);
256
257
11.8k
                    } else /*if (ics_left->ms_mask_present == 0)*/ {
258
11.8k
                        begin = min(base + ics_right->swb_offset[sfb], ics_right->swb_offset_max);
259
11.8k
                        end = min(base + ics_right->swb_offset[sfb+1], ics_right->swb_offset_max);
260
261
                        /* Generate random vector */
262
11.8k
                        gen_rand_vector(&spec_right[begin],
263
11.8k
                            ics_right->scale_factors[g][sfb], end - begin, sub, __r1, __r2);
264
11.8k
                    }
265
14.6k
                }
266
181k
            } /* sfb */
267
369k
            group++;
268
369k
        } /* b */
269
348k
    } /* g */
270
256k
}