Coverage Report

Created: 2025-11-16 06:18

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/proc/self/cwd/libfaad/specrec.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: specrec.c,v 1.63 2010/06/04 20:47:56 menno Exp $
29
**/
30
31
/*
32
  Spectral reconstruction:
33
   - grouping/sectioning
34
   - inverse quantization
35
   - applying scalefactors
36
*/
37
38
#include "common.h"
39
#include "structs.h"
40
41
#include <stdlib.h>
42
#include "specrec.h"
43
#include "filtbank.h"
44
#include "syntax.h"
45
#include "iq_table.h"
46
#include "ms.h"
47
#include "is.h"
48
#include "pns.h"
49
#include "tns.h"
50
#include "drc.h"
51
#include "lt_predict.h"
52
#include "ic_predict.h"
53
#ifdef SSR_DEC
54
#include "ssr.h"
55
#include "ssr_fb.h"
56
#endif
57
58
59
/* static function declarations */
60
static uint8_t quant_to_spec(NeAACDecStruct *hDecoder,
61
                             ic_stream *ics, int16_t *quant_data,
62
                             real_t *spec_data, uint16_t frame_len);
63
64
65
#ifdef LD_DEC
66
ALIGN static const uint8_t num_swb_512_window[] =
67
{
68
    0, 0, 0, 36, 36, 37, 31, 31, 0, 0, 0, 0
69
};
70
ALIGN static const uint8_t num_swb_480_window[] =
71
{
72
    0, 0, 0, 35, 35, 37, 30, 30, 0, 0, 0, 0
73
};
74
#endif
75
76
ALIGN static const uint8_t num_swb_960_window[] =
77
{
78
    40, 40, 45, 49, 49, 49, 46, 46, 42, 42, 42, 40
79
};
80
81
ALIGN static const uint8_t num_swb_1024_window[] =
82
{
83
    41, 41, 47, 49, 49, 51, 47, 47, 43, 43, 43, 40
84
};
85
86
ALIGN static const uint8_t num_swb_128_window[] =
87
{
88
    12, 12, 12, 14, 14, 14, 15, 15, 15, 15, 15, 15
89
};
90
91
ALIGN static const uint16_t swb_offset_1024_96[] =
92
{
93
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56,
94
    64, 72, 80, 88, 96, 108, 120, 132, 144, 156, 172, 188, 212, 240,
95
    276, 320, 384, 448, 512, 576, 640, 704, 768, 832, 896, 960, 1024
96
};
97
98
ALIGN static const uint16_t swb_offset_128_96[] =
99
{
100
    0, 4, 8, 12, 16, 20, 24, 32, 40, 48, 64, 92, 128
101
};
102
103
ALIGN static const uint16_t swb_offset_1024_64[] =
104
{
105
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56,
106
    64, 72, 80, 88, 100, 112, 124, 140, 156, 172, 192, 216, 240, 268,
107
    304, 344, 384, 424, 464, 504, 544, 584, 624, 664, 704, 744, 784, 824,
108
    864, 904, 944, 984, 1024
109
};
110
111
ALIGN static const uint16_t swb_offset_128_64[] =
112
{
113
    0, 4, 8, 12, 16, 20, 24, 32, 40, 48, 64, 92, 128
114
};
115
116
ALIGN static const uint16_t swb_offset_1024_48[] =
117
{
118
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 48, 56, 64, 72,
119
    80, 88, 96, 108, 120, 132, 144, 160, 176, 196, 216, 240, 264, 292,
120
    320, 352, 384, 416, 448, 480, 512, 544, 576, 608, 640, 672, 704, 736,
121
    768, 800, 832, 864, 896, 928, 1024
122
};
123
124
#ifdef LD_DEC
125
ALIGN static const uint16_t swb_offset_512_48[] =
126
{
127
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56, 60, 68, 76, 84,
128
    92, 100, 112, 124, 136, 148, 164, 184, 208, 236, 268, 300, 332, 364, 396,
129
    428, 460, 512
130
};
131
132
ALIGN static const uint16_t swb_offset_480_48[] =
133
{
134
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56, 64, 72 ,80 ,88,
135
    96, 108, 120, 132, 144, 156, 172, 188, 212, 240, 272, 304, 336, 368, 400,
136
    432, 480
137
};
138
#endif
139
140
ALIGN static const uint16_t swb_offset_128_48[] =
141
{
142
    0, 4, 8, 12, 16, 20, 28, 36, 44, 56, 68, 80, 96, 112, 128
143
};
144
145
ALIGN static const uint16_t swb_offset_1024_32[] =
146
{
147
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 48, 56, 64, 72,
148
    80, 88, 96, 108, 120, 132, 144, 160, 176, 196, 216, 240, 264, 292,
149
    320, 352, 384, 416, 448, 480, 512, 544, 576, 608, 640, 672, 704, 736,
150
    768, 800, 832, 864, 896, 928, 960, 992, 1024
151
};
152
153
#ifdef LD_DEC
154
ALIGN static const uint16_t swb_offset_512_32[] =
155
{
156
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56, 64, 72, 80,
157
    88, 96, 108, 120, 132, 144, 160, 176, 192, 212, 236, 260, 288, 320, 352,
158
    384, 416, 448, 480, 512
159
};
160
161
ALIGN static const uint16_t swb_offset_480_32[] =
162
{
163
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56, 60, 64, 72, 80,
164
    88, 96, 104, 112, 124, 136, 148, 164, 180, 200, 224, 256, 288, 320, 352,
165
    384, 416, 448, 480
166
};
167
#endif
168
169
ALIGN static const uint16_t swb_offset_1024_24[] =
170
{
171
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 52, 60, 68,
172
    76, 84, 92, 100, 108, 116, 124, 136, 148, 160, 172, 188, 204, 220,
173
    240, 260, 284, 308, 336, 364, 396, 432, 468, 508, 552, 600, 652, 704,
174
    768, 832, 896, 960, 1024
175
};
176
177
#ifdef LD_DEC
178
ALIGN static const uint16_t swb_offset_512_24[] =
179
{
180
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 52, 60, 68,
181
    80, 92, 104, 120, 140, 164, 192, 224, 256, 288, 320, 352, 384, 416,
182
    448, 480, 512
183
};
184
185
ALIGN static const uint16_t swb_offset_480_24[] =
186
{
187
    0, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 52, 60, 68, 80, 92, 104, 120,
188
    140, 164, 192, 224, 256, 288, 320, 352, 384, 416, 448, 480
189
};
190
#endif
191
192
ALIGN static const uint16_t swb_offset_128_24[] =
193
{
194
    0, 4, 8, 12, 16, 20, 24, 28, 36, 44, 52, 64, 76, 92, 108, 128
195
};
196
197
ALIGN static const uint16_t swb_offset_1024_16[] =
198
{
199
    0, 8, 16, 24, 32, 40, 48, 56, 64, 72, 80, 88, 100, 112, 124,
200
    136, 148, 160, 172, 184, 196, 212, 228, 244, 260, 280, 300, 320, 344,
201
    368, 396, 424, 456, 492, 532, 572, 616, 664, 716, 772, 832, 896, 960, 1024
202
};
203
204
ALIGN static const uint16_t swb_offset_128_16[] =
205
{
206
    0, 4, 8, 12, 16, 20, 24, 28, 32, 40, 48, 60, 72, 88, 108, 128
207
};
208
209
ALIGN static const uint16_t swb_offset_1024_8[] =
210
{
211
    0, 12, 24, 36, 48, 60, 72, 84, 96, 108, 120, 132, 144, 156, 172,
212
    188, 204, 220, 236, 252, 268, 288, 308, 328, 348, 372, 396, 420, 448,
213
    476, 508, 544, 580, 620, 664, 712, 764, 820, 880, 944, 1024
214
};
215
216
ALIGN static const uint16_t swb_offset_128_8[] =
217
{
218
    0, 4, 8, 12, 16, 20, 24, 28, 36, 44, 52, 60, 72, 88, 108, 128
219
};
220
221
ALIGN static const uint16_t *swb_offset_1024_window[] =
222
{
223
    swb_offset_1024_96,      /* 96000 */
224
    swb_offset_1024_96,      /* 88200 */
225
    swb_offset_1024_64,      /* 64000 */
226
    swb_offset_1024_48,      /* 48000 */
227
    swb_offset_1024_48,      /* 44100 */
228
    swb_offset_1024_32,      /* 32000 */
229
    swb_offset_1024_24,      /* 24000 */
230
    swb_offset_1024_24,      /* 22050 */
231
    swb_offset_1024_16,      /* 16000 */
232
    swb_offset_1024_16,      /* 12000 */
233
    swb_offset_1024_16,      /* 11025 */
234
    swb_offset_1024_8        /* 8000  */
235
};
236
237
#ifdef LD_DEC
238
ALIGN static const uint16_t *swb_offset_512_window[] =
239
{
240
    0,                       /* 96000 */
241
    0,                       /* 88200 */
242
    0,                       /* 64000 */
243
    swb_offset_512_48,       /* 48000 */
244
    swb_offset_512_48,       /* 44100 */
245
    swb_offset_512_32,       /* 32000 */
246
    swb_offset_512_24,       /* 24000 */
247
    swb_offset_512_24,       /* 22050 */
248
    0,                       /* 16000 */
249
    0,                       /* 12000 */
250
    0,                       /* 11025 */
251
    0                        /* 8000  */
252
};
253
254
ALIGN static const uint16_t *swb_offset_480_window[] =
255
{
256
    0,                       /* 96000 */
257
    0,                       /* 88200 */
258
    0,                       /* 64000 */
259
    swb_offset_480_48,       /* 48000 */
260
    swb_offset_480_48,       /* 44100 */
261
    swb_offset_480_32,       /* 32000 */
262
    swb_offset_480_24,       /* 24000 */
263
    swb_offset_480_24,       /* 22050 */
264
    0,                       /* 16000 */
265
    0,                       /* 12000 */
266
    0,                       /* 11025 */
267
    0                        /* 8000  */
268
};
269
#endif
270
271
ALIGN static const  uint16_t *swb_offset_128_window[] =
272
{
273
    swb_offset_128_96,       /* 96000 */
274
    swb_offset_128_96,       /* 88200 */
275
    swb_offset_128_64,       /* 64000 */
276
    swb_offset_128_48,       /* 48000 */
277
    swb_offset_128_48,       /* 44100 */
278
    swb_offset_128_48,       /* 32000 */
279
    swb_offset_128_24,       /* 24000 */
280
    swb_offset_128_24,       /* 22050 */
281
    swb_offset_128_16,       /* 16000 */
282
    swb_offset_128_16,       /* 12000 */
283
    swb_offset_128_16,       /* 11025 */
284
    swb_offset_128_8         /* 8000  */
285
};
286
287
83.9k
#define bit_set(A, B) ((A) & (1<<(B)))
288
289
/* 4.5.2.3.4 */
290
/*
291
  - determine the number of windows in a window_sequence named num_windows
292
  - determine the number of window_groups named num_window_groups
293
  - determine the number of windows in each group named window_group_length[g]
294
  - determine the total number of scalefactor window bands named num_swb for
295
    the actual window type
296
  - determine swb_offset[swb], the offset of the first coefficient in
297
    scalefactor window band named swb of the window actually used
298
  - determine sect_sfb_offset[g][section],the offset of the first coefficient
299
    in section named section. This offset depends on window_sequence and
300
    scale_factor_grouping and is needed to decode the spectral_data().
301
*/
302
uint8_t window_grouping_info(NeAACDecStruct *hDecoder, ic_stream *ics)
303
134k
{
304
134k
    uint8_t i, g;
305
306
134k
    uint8_t sf_index = hDecoder->sf_index;
307
308
134k
    if (sf_index >= 12)
309
3
        return 32;
310
311
134k
    switch (ics->window_sequence) {
312
113k
    case ONLY_LONG_SEQUENCE:
313
120k
    case LONG_START_SEQUENCE:
314
122k
    case LONG_STOP_SEQUENCE:
315
122k
        ics->num_windows = 1;
316
122k
        ics->num_window_groups = 1;
317
122k
        ics->window_group_length[ics->num_window_groups-1] = 1;
318
122k
#ifdef LD_DEC
319
122k
        if (hDecoder->object_type == LD)
320
1.42k
        {
321
1.42k
            if (hDecoder->frameLength == 512)
322
469
                ics->num_swb = num_swb_512_window[sf_index];
323
954
            else /* if (hDecoder->frameLength == 480) */
324
954
                ics->num_swb = num_swb_480_window[sf_index];
325
121k
        } else {
326
121k
#endif
327
121k
            if (hDecoder->frameLength == 1024)
328
101k
                ics->num_swb = num_swb_1024_window[sf_index];
329
19.8k
            else /* if (hDecoder->frameLength == 960) */
330
19.8k
                ics->num_swb = num_swb_960_window[sf_index];
331
121k
#ifdef LD_DEC
332
121k
        }
333
122k
#endif
334
335
122k
        if (ics->max_sfb > ics->num_swb)
336
104
        {
337
104
            return 32;
338
104
        }
339
340
        /* preparation of sect_sfb_offset for long blocks */
341
        /* also copy the last value! */
342
122k
#ifdef LD_DEC
343
122k
        if (hDecoder->object_type == LD)
344
1.41k
        {
345
1.41k
            if (hDecoder->frameLength == 512)
346
466
            {
347
13.2k
                for (i = 0; i < ics->num_swb; i++)
348
12.7k
                {
349
12.7k
                    ics->sect_sfb_offset[0][i] = swb_offset_512_window[sf_index][i];
350
12.7k
                    ics->swb_offset[i] = swb_offset_512_window[sf_index][i];
351
12.7k
                }
352
950
            } else /* if (hDecoder->frameLength == 480) */ {
353
30.8k
                for (i = 0; i < ics->num_swb; i++)
354
29.9k
                {
355
29.9k
                    ics->sect_sfb_offset[0][i] = swb_offset_480_window[sf_index][i];
356
29.9k
                    ics->swb_offset[i] = swb_offset_480_window[sf_index][i];
357
29.9k
                }
358
950
            }
359
1.41k
            ics->sect_sfb_offset[0][ics->num_swb] = hDecoder->frameLength;
360
1.41k
            ics->swb_offset[ics->num_swb] = hDecoder->frameLength;
361
1.41k
            ics->swb_offset_max = hDecoder->frameLength;
362
121k
        } else {
363
121k
#endif
364
5.20M
            for (i = 0; i < ics->num_swb; i++)
365
5.08M
            {
366
5.08M
                ics->sect_sfb_offset[0][i] = swb_offset_1024_window[sf_index][i];
367
5.08M
                ics->swb_offset[i] = swb_offset_1024_window[sf_index][i];
368
5.08M
            }
369
121k
            ics->sect_sfb_offset[0][ics->num_swb] = hDecoder->frameLength;
370
121k
            ics->swb_offset[ics->num_swb] = hDecoder->frameLength;
371
121k
            ics->swb_offset_max = hDecoder->frameLength;
372
121k
#ifdef LD_DEC
373
121k
        }
374
122k
#endif
375
122k
        return 0;
376
12.0k
    case EIGHT_SHORT_SEQUENCE:
377
12.0k
        ics->num_windows = 8;
378
12.0k
        ics->num_window_groups = 1;
379
12.0k
        ics->window_group_length[ics->num_window_groups-1] = 1;
380
12.0k
        ics->num_swb = num_swb_128_window[sf_index];
381
382
12.0k
        if (ics->max_sfb > ics->num_swb)
383
8
        {
384
8
            return 32;
385
8
        }
386
387
176k
        for (i = 0; i < ics->num_swb; i++)
388
164k
            ics->swb_offset[i] = swb_offset_128_window[sf_index][i];
389
11.9k
        ics->swb_offset[ics->num_swb] = hDecoder->frameLength/8;
390
11.9k
        ics->swb_offset_max = hDecoder->frameLength/8;
391
392
95.9k
        for (i = 0; i < ics->num_windows-1; i++) {
393
83.9k
            if (bit_set(ics->scale_factor_grouping, 6-i) == 0)
394
69.2k
            {
395
69.2k
                ics->num_window_groups += 1;
396
69.2k
                ics->window_group_length[ics->num_window_groups-1] = 1;
397
69.2k
            } else {
398
14.6k
                ics->window_group_length[ics->num_window_groups-1] += 1;
399
14.6k
            }
400
83.9k
        }
401
402
        /* preparation of sect_sfb_offset for short blocks */
403
93.2k
        for (g = 0; g < ics->num_window_groups; g++)
404
81.2k
        {
405
81.2k
            uint16_t width;
406
81.2k
            uint8_t sect_sfb = 0;
407
81.2k
            uint16_t offset = 0;
408
409
1.19M
            for (i = 0; i < ics->num_swb; i++)
410
1.10M
            {
411
1.10M
                if (i+1 == ics->num_swb)
412
81.2k
                {
413
81.2k
                    width = (hDecoder->frameLength/8) - swb_offset_128_window[sf_index][i];
414
1.02M
                } else {
415
1.02M
                    width = swb_offset_128_window[sf_index][i+1] -
416
1.02M
                        swb_offset_128_window[sf_index][i];
417
1.02M
                }
418
1.10M
                width *= ics->window_group_length[g];
419
1.10M
                ics->sect_sfb_offset[g][sect_sfb++] = offset;
420
1.10M
                offset += width;
421
1.10M
            }
422
81.2k
            ics->sect_sfb_offset[g][sect_sfb] = offset;
423
81.2k
        }
424
11.9k
        return 0;
425
0
    default:
426
0
        return 32;
427
134k
    }
428
134k
}
429
430
/* iquant() * output = sign(input)*abs(input)^(4/3) */
431
static INLINE real_t iquant(int16_t q, const real_t *tab, uint8_t *error)
432
140M
{
433
140M
#ifdef FIXED_POINT
434
/* For FIXED_POINT the iq_table is prescaled by 3 bits (iq_table[]/8) */
435
/* BIG_IQ_TABLE allows you to use the full 8192 value table, if this is not
436
 * defined a 1026 value table and interpolation will be used
437
 */
438
140M
#ifndef BIG_IQ_TABLE
439
140M
    static const real_t errcorr[] = {
440
140M
        REAL_CONST(0), REAL_CONST(1.0/8.0), REAL_CONST(2.0/8.0), REAL_CONST(3.0/8.0),
441
140M
        REAL_CONST(4.0/8.0),  REAL_CONST(5.0/8.0), REAL_CONST(6.0/8.0), REAL_CONST(7.0/8.0),
442
140M
        REAL_CONST(0)
443
140M
    };
444
140M
    real_t x1, x2;
445
140M
#endif
446
140M
    int16_t sgn = 1;
447
448
140M
    if (q < 0)
449
81.5k
    {
450
81.5k
        q = -q;
451
81.5k
        sgn = -1;
452
81.5k
    }
453
454
140M
    if (q < IQ_TABLE_SIZE)
455
140M
    {
456
//#define IQUANT_PRINT
457
#ifdef IQUANT_PRINT
458
        //printf("0x%.8X\n", sgn * tab[q]);
459
        printf("%d\n", sgn * tab[q]);
460
#endif
461
140M
        return sgn * tab[q];
462
140M
    }
463
464
1.76k
#ifndef BIG_IQ_TABLE
465
1.76k
    if (q >= 8192)
466
296
    {
467
296
        *error = 17;
468
296
        return 0;
469
296
    }
470
471
    /* linear interpolation */
472
1.47k
    x1 = tab[q>>3];
473
1.47k
    x2 = tab[(q>>3) + 1];
474
1.47k
    return sgn * 16 * (MUL_R(errcorr[q&7],(x2-x1)) + x1);
475
#else
476
    *error = 17;
477
    return 0;
478
#endif
479
480
#else
481
    if (q < 0)
482
    {
483
        /* tab contains a value for all possible q [0,8192] */
484
        if (-q < IQ_TABLE_SIZE)
485
            return -tab[-q];
486
487
        *error = 17;
488
        return 0;
489
    } else {
490
        /* tab contains a value for all possible q [0,8192] */
491
        if (q < IQ_TABLE_SIZE)
492
            return tab[q];
493
494
        *error = 17;
495
        return 0;
496
    }
497
#endif
498
1.76k
}
499
500
#ifndef FIXED_POINT
501
ALIGN static const real_t pow2sf_tab[] = {
502
    2.9802322387695313E-008, 5.9604644775390625E-008, 1.1920928955078125E-007,
503
    2.384185791015625E-007, 4.76837158203125E-007, 9.5367431640625E-007,
504
    1.9073486328125E-006, 3.814697265625E-006, 7.62939453125E-006,
505
    1.52587890625E-005, 3.0517578125E-005, 6.103515625E-005,
506
    0.0001220703125, 0.000244140625, 0.00048828125,
507
    0.0009765625, 0.001953125, 0.00390625,
508
    0.0078125, 0.015625, 0.03125,
509
    0.0625, 0.125, 0.25,
510
    0.5, 1.0, 2.0,
511
    4.0, 8.0, 16.0, 32.0,
512
    64.0, 128.0, 256.0,
513
    512.0, 1024.0, 2048.0,
514
    4096.0, 8192.0, 16384.0,
515
    32768.0, 65536.0, 131072.0,
516
    262144.0, 524288.0, 1048576.0,
517
    2097152.0, 4194304.0, 8388608.0,
518
    16777216.0, 33554432.0, 67108864.0,
519
    134217728.0, 268435456.0, 536870912.0,
520
    1073741824.0, 2147483648.0, 4294967296.0,
521
    8589934592.0, 17179869184.0, 34359738368.0,
522
    68719476736.0, 137438953472.0, 274877906944.0
523
};
524
#endif
525
526
/* quant_to_spec: perform dequantisation and scaling
527
 * and in case of short block it also does the deinterleaving
528
 */
529
/*
530
  For ONLY_LONG_SEQUENCE windows (num_window_groups = 1,
531
  window_group_length[0] = 1) the spectral data is in ascending spectral
532
  order.
533
  For the EIGHT_SHORT_SEQUENCE window, the spectral order depends on the
534
  grouping in the following manner:
535
  - Groups are ordered sequentially
536
  - Within a group, a scalefactor band consists of the spectral data of all
537
    grouped SHORT_WINDOWs for the associated scalefactor window band. To
538
    clarify via example, the length of a group is in the range of one to eight
539
    SHORT_WINDOWs.
540
  - If there are eight groups each with length one (num_window_groups = 8,
541
    window_group_length[0..7] = 1), the result is a sequence of eight spectra,
542
    each in ascending spectral order.
543
  - If there is only one group with length eight (num_window_groups = 1,
544
    window_group_length[0] = 8), the result is that spectral data of all eight
545
    SHORT_WINDOWs is interleaved by scalefactor window bands.
546
  - Within a scalefactor window band, the coefficients are in ascending
547
    spectral order.
548
*/
549
static uint8_t quant_to_spec(NeAACDecStruct *hDecoder,
550
                             ic_stream *ics, int16_t *quant_data,
551
                             real_t *spec_data, uint16_t frame_len)
552
139k
{
553
139k
    ALIGN static const real_t pow2_table[] =
554
139k
    {
555
139k
        COEF_CONST(1.0),
556
139k
        COEF_CONST(1.1892071150027210667174999705605), /* 2^0.25 */
557
139k
        COEF_CONST(1.4142135623730950488016887242097), /* 2^0.5 */
558
139k
        COEF_CONST(1.6817928305074290860622509524664) /* 2^0.75 */
559
139k
    };
560
139k
    const real_t *tab = iq_table;
561
562
139k
    uint8_t g, sfb, win;
563
139k
    uint16_t width, bin, k, gindex;
564
139k
    uint8_t error = 0; /* Init error flag */
565
#ifndef FIXED_POINT
566
    real_t scf;
567
#else
568
139k
    int32_t sat_shift_mask = 0;
569
139k
#endif
570
571
139k
    k = 0;
572
139k
    gindex = 0;
573
574
    /* In this case quant_to_spec is no-op and spec_data remains undefined.
575
     * Without peeking into AAC specification, there is no strong evidence if
576
     * such streams are invalid -> just calm down MSAN. */
577
139k
    if (ics->num_swb == 0)
578
195
        memset(spec_data, 0, frame_len * sizeof(real_t));
579
580
349k
    for (g = 0; g < ics->num_window_groups; g++)
581
209k
    {
582
209k
        uint16_t j = 0;
583
209k
        uint16_t gincrease = 0;
584
209k
        uint16_t win_inc = ics->swb_offset[ics->num_swb];
585
586
6.66M
        for (sfb = 0; sfb < ics->num_swb; sfb++)
587
6.45M
        {
588
6.45M
            int32_t exp, frac;
589
6.45M
            uint16_t wa = gindex + j;
590
6.45M
            int16_t scale_factor = ics->scale_factors[g][sfb];
591
592
6.45M
            width = ics->swb_offset[sfb+1] - ics->swb_offset[sfb];
593
594
6.45M
#ifdef FIXED_POINT
595
6.45M
            scale_factor -= 100;
596
            /* IMDCT pre-scaling */
597
6.45M
            if (hDecoder->object_type == LD)
598
39.9k
            {
599
39.9k
                scale_factor -= 24 /*9*/;
600
6.41M
            } else {
601
6.41M
                if (ics->window_sequence == EIGHT_SHORT_SEQUENCE)
602
1.11M
                    scale_factor -= 16 /*7*/;
603
5.29M
                else
604
5.29M
                    scale_factor -= 28 /*10*/;
605
6.41M
            }
606
6.45M
            if (scale_factor > 120)
607
322
                scale_factor = 120;  /* => exp <= 30 */
608
#else
609
            (void)hDecoder;
610
#endif
611
612
            /* scale_factor for IS or PNS, has different meaning; fill with almost zeroes */
613
6.45M
            if (is_intensity(ics, g, sfb) || is_noise(ics, g, sfb))
614
28.9k
            {
615
28.9k
                scale_factor = 0;
616
28.9k
            }
617
618
            /* scale_factor must be between 0 and 255 */
619
6.45M
            exp = (scale_factor /* - 100 */) >> 2;
620
            /* frac must always be > 0 */
621
6.45M
            frac = (scale_factor /* - 100 */) & 3;
622
623
#ifndef FIXED_POINT
624
            scf = pow2sf_tab[exp/*+25*/] * pow2_table[frac];
625
#else
626
6.45M
            if (exp > 0)
627
16.0k
                sat_shift_mask = SAT_SHIFT_MASK(exp);
628
6.45M
#endif
629
630
13.1M
            for (win = 0; win < ics->window_group_length[g]; win++)
631
6.66M
            {
632
41.8M
                for (bin = 0; bin < width; bin += 4)
633
35.2M
                {
634
35.2M
                    uint16_t wb = wa + bin;
635
#ifndef FIXED_POINT
636
                    spec_data[wb+0] = iquant(quant_data[k+0], tab, &error) * scf;
637
                    spec_data[wb+1] = iquant(quant_data[k+1], tab, &error) * scf;
638
                    spec_data[wb+2] = iquant(quant_data[k+2], tab, &error) * scf;
639
                    spec_data[wb+3] = iquant(quant_data[k+3], tab, &error) * scf;
640
#else
641
35.2M
                    real_t iq0 = iquant(quant_data[k+0], tab, &error);
642
35.2M
                    real_t iq1 = iquant(quant_data[k+1], tab, &error);
643
35.2M
                    real_t iq2 = iquant(quant_data[k+2], tab, &error);
644
35.2M
                    real_t iq3 = iquant(quant_data[k+3], tab, &error);
645
646
35.2M
                    if (exp == -32)
647
31.8M
                    {
648
31.8M
                        spec_data[wb+0] = 0;
649
31.8M
                        spec_data[wb+1] = 0;
650
31.8M
                        spec_data[wb+2] = 0;
651
31.8M
                        spec_data[wb+3] = 0;
652
31.8M
                    } else if (exp <= 0) {
653
3.31M
                        spec_data[wb+0] = iq0 >> -exp;
654
3.31M
                        spec_data[wb+1] = iq1 >> -exp;
655
3.31M
                        spec_data[wb+2] = iq2 >> -exp;
656
3.31M
                        spec_data[wb+3] = iq3 >> -exp;
657
3.31M
                    } else { /* exp > 0 */
658
84.9k
                        spec_data[wb+0] = SAT_SHIFT(iq0, exp, sat_shift_mask);
659
84.9k
                        spec_data[wb+1] = SAT_SHIFT(iq1, exp, sat_shift_mask);
660
84.9k
                        spec_data[wb+2] = SAT_SHIFT(iq2, exp, sat_shift_mask);
661
84.9k
                        spec_data[wb+3] = SAT_SHIFT(iq3, exp, sat_shift_mask);
662
84.9k
                    }
663
35.2M
                    if (frac != 0)
664
134k
                    {
665
134k
                        spec_data[wb+0] = MUL_C(spec_data[wb+0],pow2_table[frac]);
666
134k
                        spec_data[wb+1] = MUL_C(spec_data[wb+1],pow2_table[frac]);
667
134k
                        spec_data[wb+2] = MUL_C(spec_data[wb+2],pow2_table[frac]);
668
134k
                        spec_data[wb+3] = MUL_C(spec_data[wb+3],pow2_table[frac]);
669
134k
                    }
670
671
//#define SCFS_PRINT
672
#ifdef SCFS_PRINT
673
                    printf("%d\n", spec_data[gindex+(win*win_inc)+j+bin+0]);
674
                    printf("%d\n", spec_data[gindex+(win*win_inc)+j+bin+1]);
675
                    printf("%d\n", spec_data[gindex+(win*win_inc)+j+bin+2]);
676
                    printf("%d\n", spec_data[gindex+(win*win_inc)+j+bin+3]);
677
                    //printf("0x%.8X\n", spec_data[gindex+(win*win_inc)+j+bin+0]);
678
                    //printf("0x%.8X\n", spec_data[gindex+(win*win_inc)+j+bin+1]);
679
                    //printf("0x%.8X\n", spec_data[gindex+(win*win_inc)+j+bin+2]);
680
                    //printf("0x%.8X\n", spec_data[gindex+(win*win_inc)+j+bin+3]);
681
#endif
682
35.2M
#endif
683
684
35.2M
                    gincrease += 4;
685
35.2M
                    k += 4;
686
35.2M
                }
687
6.66M
                wa += win_inc;
688
6.66M
            }
689
6.45M
            j += width;
690
6.45M
        }
691
209k
        gindex += gincrease;
692
209k
    }
693
694
139k
    return error;
695
139k
}
696
697
static uint8_t allocate_single_channel(NeAACDecStruct *hDecoder, uint8_t channel,
698
                                       uint8_t output_channels)
699
102k
{
700
102k
    int mul = 1;
701
702
#ifdef MAIN_DEC
703
    /* MAIN object type prediction */
704
    if (hDecoder->object_type == MAIN)
705
    {
706
        /* allocate the state only when needed */
707
        if (hDecoder->pred_stat[channel] != NULL)
708
        {
709
            faad_free(hDecoder->pred_stat[channel]);
710
            hDecoder->pred_stat[channel] = NULL;
711
        }
712
713
        hDecoder->pred_stat[channel] = (pred_state*)faad_malloc(hDecoder->frameLength * sizeof(pred_state));
714
        reset_all_predictors(hDecoder->pred_stat[channel], hDecoder->frameLength);
715
    }
716
#endif
717
718
102k
#ifdef LTP_DEC
719
102k
    if (is_ltp_ot(hDecoder->object_type))
720
55.9k
    {
721
        /* allocate the state only when needed */
722
55.9k
        if (hDecoder->lt_pred_stat[channel] != NULL)
723
682
        {
724
682
            faad_free(hDecoder->lt_pred_stat[channel]);
725
682
            hDecoder->lt_pred_stat[channel] = NULL;
726
682
        }
727
728
55.9k
        hDecoder->lt_pred_stat[channel] = (int16_t*)faad_malloc(hDecoder->frameLength*4 * sizeof(int16_t));
729
55.9k
        memset(hDecoder->lt_pred_stat[channel], 0, hDecoder->frameLength*4 * sizeof(int16_t));
730
55.9k
    }
731
102k
#endif
732
733
102k
    if (hDecoder->time_out[channel] != NULL)
734
4.01k
    {
735
4.01k
        faad_free(hDecoder->time_out[channel]);
736
4.01k
        hDecoder->time_out[channel] = NULL;
737
4.01k
    }
738
739
102k
    {
740
102k
        mul = 1;
741
102k
#ifdef SBR_DEC
742
102k
        hDecoder->sbr_alloced[hDecoder->fr_ch_ele] = 0;
743
102k
        if ((hDecoder->sbr_present_flag == 1) || (hDecoder->forceUpSampling == 1))
744
79.8k
        {
745
            /* SBR requires 2 times as much output data */
746
79.8k
            mul = 2;
747
79.8k
            hDecoder->sbr_alloced[hDecoder->fr_ch_ele] = 1;
748
79.8k
        }
749
102k
#endif
750
102k
        hDecoder->time_out[channel] = (real_t*)faad_malloc(mul*hDecoder->frameLength*sizeof(real_t));
751
102k
        memset(hDecoder->time_out[channel], 0, mul*hDecoder->frameLength*sizeof(real_t));
752
102k
    }
753
754
102k
#if (defined(PS_DEC) || defined(DRM_PS))
755
102k
    if (output_channels == 2)
756
4.06k
    {
757
4.06k
        if (hDecoder->time_out[channel+1] != NULL)
758
1.53k
        {
759
1.53k
            faad_free(hDecoder->time_out[channel+1]);
760
1.53k
            hDecoder->time_out[channel+1] = NULL;
761
1.53k
        }
762
763
4.06k
        hDecoder->time_out[channel+1] = (real_t*)faad_malloc(mul*hDecoder->frameLength*sizeof(real_t));
764
4.06k
        memset(hDecoder->time_out[channel+1], 0, mul*hDecoder->frameLength*sizeof(real_t));
765
4.06k
    }
766
102k
#endif
767
768
102k
    if (hDecoder->fb_intermed[channel] != NULL)
769
3.47k
    {
770
3.47k
        faad_free(hDecoder->fb_intermed[channel]);
771
3.47k
        hDecoder->fb_intermed[channel] = NULL;
772
3.47k
    }
773
774
102k
    hDecoder->fb_intermed[channel] = (real_t*)faad_malloc(hDecoder->frameLength*sizeof(real_t));
775
102k
    memset(hDecoder->fb_intermed[channel], 0, hDecoder->frameLength*sizeof(real_t));
776
777
#ifdef SSR_DEC
778
    if (hDecoder->object_type == SSR)
779
    {
780
        if (hDecoder->ssr_overlap[channel] == NULL)
781
        {
782
            hDecoder->ssr_overlap[channel] = (real_t*)faad_malloc(2*hDecoder->frameLength*sizeof(real_t));
783
            memset(hDecoder->ssr_overlap[channel], 0, 2*hDecoder->frameLength*sizeof(real_t));
784
        }
785
        if (hDecoder->prev_fmd[channel] == NULL)
786
        {
787
            uint16_t k;
788
            hDecoder->prev_fmd[channel] = (real_t*)faad_malloc(2*hDecoder->frameLength*sizeof(real_t));
789
            for (k = 0; k < 2*hDecoder->frameLength; k++)
790
                hDecoder->prev_fmd[channel][k] = REAL_CONST(-1);
791
        }
792
    }
793
#endif
794
795
102k
    return 0;
796
102k
}
797
798
static uint8_t allocate_channel_pair(NeAACDecStruct *hDecoder,
799
                                     uint8_t channel, uint8_t paired_channel)
800
11.4k
{
801
11.4k
    int mul = 1;
802
803
#ifdef MAIN_DEC
804
    /* MAIN object type prediction */
805
    if (hDecoder->object_type == MAIN)
806
    {
807
        /* allocate the state only when needed */
808
        if (hDecoder->pred_stat[channel] == NULL)
809
        {
810
            hDecoder->pred_stat[channel] = (pred_state*)faad_malloc(hDecoder->frameLength * sizeof(pred_state));
811
            reset_all_predictors(hDecoder->pred_stat[channel], hDecoder->frameLength);
812
        }
813
        if (hDecoder->pred_stat[paired_channel] == NULL)
814
        {
815
            hDecoder->pred_stat[paired_channel] = (pred_state*)faad_malloc(hDecoder->frameLength * sizeof(pred_state));
816
            reset_all_predictors(hDecoder->pred_stat[paired_channel], hDecoder->frameLength);
817
        }
818
    }
819
#endif
820
821
11.4k
#ifdef LTP_DEC
822
11.4k
    if (is_ltp_ot(hDecoder->object_type))
823
4.36k
    {
824
        /* allocate the state only when needed */
825
4.36k
        if (hDecoder->lt_pred_stat[channel] == NULL)
826
4.34k
        {
827
4.34k
            hDecoder->lt_pred_stat[channel] = (int16_t*)faad_malloc(hDecoder->frameLength*4 * sizeof(int16_t));
828
4.34k
            memset(hDecoder->lt_pred_stat[channel], 0, hDecoder->frameLength*4 * sizeof(int16_t));
829
4.34k
        }
830
4.36k
        if (hDecoder->lt_pred_stat[paired_channel] == NULL)
831
4.34k
        {
832
4.34k
            hDecoder->lt_pred_stat[paired_channel] = (int16_t*)faad_malloc(hDecoder->frameLength*4 * sizeof(int16_t));
833
4.34k
            memset(hDecoder->lt_pred_stat[paired_channel], 0, hDecoder->frameLength*4 * sizeof(int16_t));
834
4.34k
        }
835
4.36k
    }
836
11.4k
#endif
837
838
11.4k
    {
839
11.4k
        mul = 1;
840
11.4k
#ifdef SBR_DEC
841
11.4k
        hDecoder->sbr_alloced[hDecoder->fr_ch_ele] = 0;
842
11.4k
        if ((hDecoder->sbr_present_flag == 1) || (hDecoder->forceUpSampling == 1))
843
9.91k
        {
844
            /* SBR requires 2 times as much output data */
845
9.91k
            mul = 2;
846
9.91k
            hDecoder->sbr_alloced[hDecoder->fr_ch_ele] = 1;
847
9.91k
        }
848
11.4k
#endif
849
11.4k
    }
850
11.4k
    if (hDecoder->time_out[channel] == NULL)
851
11.4k
    {
852
11.4k
        hDecoder->time_out[channel] = (real_t*)faad_malloc(mul*hDecoder->frameLength*sizeof(real_t));
853
11.4k
        memset(hDecoder->time_out[channel], 0, mul*hDecoder->frameLength*sizeof(real_t));
854
11.4k
    }
855
11.4k
    if (hDecoder->time_out[paired_channel] == NULL)
856
11.4k
    {
857
11.4k
        hDecoder->time_out[paired_channel] = (real_t*)faad_malloc(mul*hDecoder->frameLength*sizeof(real_t));
858
11.4k
        memset(hDecoder->time_out[paired_channel], 0, mul*hDecoder->frameLength*sizeof(real_t));
859
11.4k
    }
860
861
11.4k
    if (hDecoder->fb_intermed[channel] == NULL)
862
11.4k
    {
863
11.4k
        hDecoder->fb_intermed[channel] = (real_t*)faad_malloc(hDecoder->frameLength*sizeof(real_t));
864
11.4k
        memset(hDecoder->fb_intermed[channel], 0, hDecoder->frameLength*sizeof(real_t));
865
11.4k
    }
866
11.4k
    if (hDecoder->fb_intermed[paired_channel] == NULL)
867
11.4k
    {
868
11.4k
        hDecoder->fb_intermed[paired_channel] = (real_t*)faad_malloc(hDecoder->frameLength*sizeof(real_t));
869
11.4k
        memset(hDecoder->fb_intermed[paired_channel], 0, hDecoder->frameLength*sizeof(real_t));
870
11.4k
    }
871
872
#ifdef SSR_DEC
873
    if (hDecoder->object_type == SSR)
874
    {
875
        if (hDecoder->ssr_overlap[cpe->channel] == NULL)
876
        {
877
            hDecoder->ssr_overlap[cpe->channel] = (real_t*)faad_malloc(2*hDecoder->frameLength*sizeof(real_t));
878
            memset(hDecoder->ssr_overlap[cpe->channel], 0, 2*hDecoder->frameLength*sizeof(real_t));
879
        }
880
        if (hDecoder->ssr_overlap[cpe->paired_channel] == NULL)
881
        {
882
            hDecoder->ssr_overlap[cpe->paired_channel] = (real_t*)faad_malloc(2*hDecoder->frameLength*sizeof(real_t));
883
            memset(hDecoder->ssr_overlap[cpe->paired_channel], 0, 2*hDecoder->frameLength*sizeof(real_t));
884
        }
885
        if (hDecoder->prev_fmd[cpe->channel] == NULL)
886
        {
887
            uint16_t k;
888
            hDecoder->prev_fmd[cpe->channel] = (real_t*)faad_malloc(2*hDecoder->frameLength*sizeof(real_t));
889
            for (k = 0; k < 2*hDecoder->frameLength; k++)
890
                hDecoder->prev_fmd[cpe->channel][k] = REAL_CONST(-1);
891
        }
892
        if (hDecoder->prev_fmd[cpe->paired_channel] == NULL)
893
        {
894
            uint16_t k;
895
            hDecoder->prev_fmd[cpe->paired_channel] = (real_t*)faad_malloc(2*hDecoder->frameLength*sizeof(real_t));
896
            for (k = 0; k < 2*hDecoder->frameLength; k++)
897
                hDecoder->prev_fmd[cpe->paired_channel][k] = REAL_CONST(-1);
898
        }
899
    }
900
#endif
901
902
11.4k
    return 0;
903
11.4k
}
904
905
uint8_t reconstruct_single_channel(NeAACDecStruct *hDecoder, ic_stream *ics,
906
                                   element *sce, int16_t *spec_data)
907
112k
{
908
112k
    uint8_t retval;
909
112k
    uint8_t output_channels;
910
112k
    ALIGN real_t spec_coef[1024];
911
912
#ifdef PROFILE
913
    int64_t count = faad_get_ts();
914
#endif
915
916
917
    /* always allocate 2 channels, PS can always "suddenly" turn up */
918
#if ( (defined(DRM) && defined(DRM_PS)) )
919
    output_channels = 2;
920
#elif defined(PS_DEC)
921
112k
    if (hDecoder->ps_used[hDecoder->fr_ch_ele])
922
4.81k
        output_channels = 2;
923
107k
    else
924
107k
        output_channels = 1;
925
#else
926
    output_channels = 1;
927
#endif
928
929
112k
    if (hDecoder->element_output_channels[hDecoder->fr_ch_ele] == 0)
930
98.5k
    {
931
        /* element_output_channels not set yet */
932
98.5k
        hDecoder->element_output_channels[hDecoder->fr_ch_ele] = output_channels;
933
98.5k
    } else if (hDecoder->element_output_channels[hDecoder->fr_ch_ele] != output_channels) {
934
        /* element inconsistency */
935
936
        /* this only happens if PS is actually found but not in the first frame
937
         * this means that there is only 1 bitstream element!
938
         */
939
940
        /* The simplest way to fix the accounting,
941
         * is to reallocate this and all the following channels.
942
         */
943
911
        memset(&hDecoder->element_alloced[hDecoder->fr_ch_ele], 0,
944
911
            sizeof(uint8_t) * (MAX_SYNTAX_ELEMENTS - hDecoder->fr_ch_ele));
945
946
911
        hDecoder->element_output_channels[hDecoder->fr_ch_ele] = output_channels;
947
948
        //return 21;
949
911
    }
950
951
112k
    if (hDecoder->element_alloced[hDecoder->fr_ch_ele] == 0)
952
102k
    {
953
102k
        retval = allocate_single_channel(hDecoder, sce->channel, output_channels);
954
102k
        if (retval > 0)
955
0
            return retval;
956
957
102k
        hDecoder->element_alloced[hDecoder->fr_ch_ele] = 1;
958
102k
    }
959
960
    /* sanity check, CVE-2018-20199, CVE-2018-20360 */
961
112k
    if(!hDecoder->time_out[sce->channel])
962
0
        return 15;
963
112k
    if(output_channels > 1 && !hDecoder->time_out[sce->channel+1])
964
0
        return 15;
965
112k
    if(!hDecoder->fb_intermed[sce->channel])
966
0
        return 15;
967
968
    /* dequantisation and scaling */
969
112k
    retval = quant_to_spec(hDecoder, ics, spec_data, spec_coef, hDecoder->frameLength);
970
112k
    if (retval > 0)
971
29
        return retval;
972
973
#ifdef PROFILE
974
    count = faad_get_ts() - count;
975
    hDecoder->requant_cycles += count;
976
#endif
977
978
979
    /* pns decoding */
980
112k
    pns_decode(ics, NULL, spec_coef, NULL, hDecoder->frameLength, 0, hDecoder->object_type,
981
112k
        &(hDecoder->__r1), &(hDecoder->__r2));
982
983
#ifdef MAIN_DEC
984
    /* MAIN object type prediction */
985
    if (hDecoder->object_type == MAIN)
986
    {
987
    if (!hDecoder->pred_stat[sce->channel])
988
      return 33;
989
990
        /* intra channel prediction */
991
        ic_prediction(ics, spec_coef, hDecoder->pred_stat[sce->channel], hDecoder->frameLength,
992
            hDecoder->sf_index);
993
994
        /* In addition, for scalefactor bands coded by perceptual
995
           noise substitution the predictors belonging to the
996
           corresponding spectral coefficients are reset.
997
        */
998
        pns_reset_pred_state(ics, hDecoder->pred_stat[sce->channel]);
999
    }
1000
#endif
1001
1002
112k
#ifdef LTP_DEC
1003
112k
    if (is_ltp_ot(hDecoder->object_type))
1004
60.8k
    {
1005
60.8k
#ifdef LD_DEC
1006
60.8k
        if (hDecoder->object_type == LD)
1007
304
        {
1008
304
            if (ics->ltp.data_present)
1009
18
            {
1010
18
                if (ics->ltp.lag_update)
1011
6
                    hDecoder->ltp_lag[sce->channel] = ics->ltp.lag;
1012
18
            }
1013
304
            ics->ltp.lag = hDecoder->ltp_lag[sce->channel];
1014
304
        }
1015
60.8k
#endif
1016
1017
        /* long term prediction */
1018
60.8k
        lt_prediction(ics, &(ics->ltp), spec_coef, hDecoder->lt_pred_stat[sce->channel], hDecoder->fb,
1019
60.8k
            ics->window_shape, hDecoder->window_shape_prev[sce->channel],
1020
60.8k
            hDecoder->sf_index, hDecoder->object_type, hDecoder->frameLength);
1021
60.8k
    }
1022
112k
#endif
1023
1024
    /* tns decoding */
1025
112k
    tns_decode_frame(ics, &(ics->tns), hDecoder->sf_index, hDecoder->object_type,
1026
112k
        spec_coef, hDecoder->frameLength);
1027
1028
    /* drc decoding */
1029
112k
#ifdef APPLY_DRC
1030
112k
    if (hDecoder->drc->present)
1031
6.47k
    {
1032
6.47k
        if (!hDecoder->drc->exclude_mask[sce->channel] || !hDecoder->drc->excluded_chns_present)
1033
5.61k
            drc_decode(hDecoder->drc, spec_coef);
1034
6.47k
    }
1035
112k
#endif
1036
    /* filter bank */
1037
#ifdef SSR_DEC
1038
    if (hDecoder->object_type != SSR)
1039
    {
1040
#endif
1041
112k
        ifilter_bank(hDecoder->fb, ics->window_sequence, ics->window_shape,
1042
112k
            hDecoder->window_shape_prev[sce->channel], spec_coef,
1043
112k
            hDecoder->time_out[sce->channel], hDecoder->fb_intermed[sce->channel],
1044
112k
            hDecoder->object_type, hDecoder->frameLength);
1045
#ifdef SSR_DEC
1046
    } else {
1047
        ssr_decode(&(ics->ssr), hDecoder->fb, ics->window_sequence, ics->window_shape,
1048
            hDecoder->window_shape_prev[sce->channel], spec_coef, hDecoder->time_out[sce->channel],
1049
            hDecoder->ssr_overlap[sce->channel], hDecoder->ipqf_buffer[sce->channel], hDecoder->prev_fmd[sce->channel],
1050
            hDecoder->frameLength);
1051
    }
1052
#endif
1053
1054
    /* save window shape for next frame */
1055
112k
    hDecoder->window_shape_prev[sce->channel] = ics->window_shape;
1056
1057
112k
#ifdef LTP_DEC
1058
112k
    if (is_ltp_ot(hDecoder->object_type))
1059
60.8k
    {
1060
60.8k
        lt_update_state(hDecoder->lt_pred_stat[sce->channel], hDecoder->time_out[sce->channel],
1061
60.8k
            hDecoder->fb_intermed[sce->channel], hDecoder->frameLength, hDecoder->object_type);
1062
60.8k
    }
1063
112k
#endif
1064
1065
112k
#ifdef SBR_DEC
1066
112k
    if (((hDecoder->sbr_present_flag == 1) || (hDecoder->forceUpSampling == 1))
1067
88.3k
        && hDecoder->sbr_alloced[hDecoder->fr_ch_ele])
1068
88.3k
    {
1069
88.3k
        int ele = hDecoder->fr_ch_ele;
1070
88.3k
        int ch = sce->channel;
1071
1072
        /* following case can happen when forceUpSampling == 1 */
1073
88.3k
        if (hDecoder->sbr[ele] == NULL)
1074
67.5k
        {
1075
67.5k
            hDecoder->sbr[ele] = sbrDecodeInit(hDecoder->frameLength,
1076
67.5k
                hDecoder->element_id[ele], 2*get_sample_rate(hDecoder->sf_index),
1077
67.5k
                hDecoder->downSampledSBR
1078
#ifdef DRM
1079
                , 0
1080
#endif
1081
67.5k
                );
1082
67.5k
        }
1083
88.3k
        if (!hDecoder->sbr[ele])
1084
39
            return 19;
1085
1086
88.2k
        if (sce->ics1.window_sequence == EIGHT_SHORT_SEQUENCE)
1087
9.67k
            hDecoder->sbr[ele]->maxAACLine = 8*min(sce->ics1.swb_offset[max(sce->ics1.max_sfb-1, 0)], sce->ics1.swb_offset_max);
1088
78.6k
        else
1089
78.6k
            hDecoder->sbr[ele]->maxAACLine = min(sce->ics1.swb_offset[max(sce->ics1.max_sfb-1, 0)], sce->ics1.swb_offset_max);
1090
1091
        /* check if any of the PS tools is used */
1092
88.2k
#if (defined(PS_DEC) || defined(DRM_PS))
1093
88.2k
        if (hDecoder->ps_used[ele] == 0)
1094
83.4k
        {
1095
83.4k
#endif
1096
83.4k
            retval = sbrDecodeSingleFrame(hDecoder->sbr[ele], hDecoder->time_out[ch],
1097
83.4k
                hDecoder->postSeekResetFlag, hDecoder->downSampledSBR);
1098
83.4k
#if (defined(PS_DEC) || defined(DRM_PS))
1099
83.4k
        } else {
1100
4.81k
            retval = sbrDecodeSingleFramePS(hDecoder->sbr[ele], hDecoder->time_out[ch],
1101
4.81k
                hDecoder->time_out[ch+1], hDecoder->postSeekResetFlag,
1102
4.81k
                hDecoder->downSampledSBR);
1103
4.81k
        }
1104
88.2k
#endif
1105
88.2k
        if (retval > 0)
1106
16
            return retval;
1107
88.2k
    } else if (((hDecoder->sbr_present_flag == 1) || (hDecoder->forceUpSampling == 1))
1108
6
        && !hDecoder->sbr_alloced[hDecoder->fr_ch_ele])
1109
6
    {
1110
6
        return 23;
1111
6
    }
1112
112k
#endif
1113
1114
    /* copy L to R when no PS is used */
1115
112k
#if (defined(PS_DEC) || defined(DRM_PS))
1116
112k
    if ((hDecoder->ps_used[hDecoder->fr_ch_ele] == 0) &&
1117
107k
        (hDecoder->element_output_channels[hDecoder->fr_ch_ele] == 2))
1118
0
    {
1119
0
        int ele = hDecoder->fr_ch_ele;
1120
0
        int ch = sce->channel;
1121
0
        int frame_size = (hDecoder->sbr_alloced[ele]) ? 2 : 1;
1122
0
        frame_size *= hDecoder->frameLength*sizeof(real_t);
1123
1124
0
        memcpy(hDecoder->time_out[ch+1], hDecoder->time_out[ch], frame_size);
1125
0
    }
1126
112k
#endif
1127
1128
112k
    return 0;
1129
112k
}
1130
1131
uint8_t reconstruct_channel_pair(NeAACDecStruct *hDecoder, ic_stream *ics1, ic_stream *ics2,
1132
                                 element *cpe, int16_t *spec_data1, int16_t *spec_data2)
1133
13.6k
{
1134
13.6k
    uint8_t retval;
1135
13.6k
    ALIGN real_t spec_coef1[1024];
1136
13.6k
    ALIGN real_t spec_coef2[1024];
1137
1138
#ifdef PROFILE
1139
    int64_t count = faad_get_ts();
1140
#endif
1141
13.6k
    if (hDecoder->element_alloced[hDecoder->fr_ch_ele] != 2)
1142
11.4k
    {
1143
11.4k
        retval = allocate_channel_pair(hDecoder, cpe->channel, (uint8_t)cpe->paired_channel);
1144
11.4k
        if (retval > 0)
1145
0
            return retval;
1146
1147
11.4k
        hDecoder->element_alloced[hDecoder->fr_ch_ele] = 2;
1148
11.4k
    }
1149
1150
    /* sanity check, CVE-2018-20199, CVE-2018-20360 */
1151
13.6k
    if(!hDecoder->time_out[cpe->channel] || !hDecoder->time_out[cpe->paired_channel])
1152
0
        return 15;
1153
13.6k
    if(!hDecoder->fb_intermed[cpe->channel] || !hDecoder->fb_intermed[cpe->paired_channel])
1154
0
        return 15;
1155
1156
    /* dequantisation and scaling */
1157
13.6k
    retval = quant_to_spec(hDecoder, ics1, spec_data1, spec_coef1, hDecoder->frameLength);
1158
13.6k
    if (retval > 0)
1159
15
        return retval;
1160
13.6k
    retval = quant_to_spec(hDecoder, ics2, spec_data2, spec_coef2, hDecoder->frameLength);
1161
13.6k
    if (retval > 0)
1162
3
        return retval;
1163
1164
#ifdef PROFILE
1165
    count = faad_get_ts() - count;
1166
    hDecoder->requant_cycles += count;
1167
#endif
1168
1169
    /* pns decoding */
1170
13.6k
    if (ics1->ms_mask_present)
1171
2.75k
    {
1172
2.75k
        pns_decode(ics1, ics2, spec_coef1, spec_coef2, hDecoder->frameLength, 1, hDecoder->object_type,
1173
2.75k
            &(hDecoder->__r1), &(hDecoder->__r2));
1174
10.8k
    } else {
1175
10.8k
        pns_decode(ics1, ics2, spec_coef1, spec_coef2, hDecoder->frameLength, 0, hDecoder->object_type,
1176
10.8k
            &(hDecoder->__r1), &(hDecoder->__r2));
1177
10.8k
    }
1178
1179
    /* mid/side decoding */
1180
13.6k
    ms_decode(ics1, ics2, spec_coef1, spec_coef2, hDecoder->frameLength);
1181
1182
#if 0
1183
    {
1184
        int i;
1185
        for (i = 0; i < 1024; i++)
1186
        {
1187
            //printf("%d\n", spec_coef1[i]);
1188
            printf("0x%.8X\n", spec_coef1[i]);
1189
        }
1190
        for (i = 0; i < 1024; i++)
1191
        {
1192
            //printf("%d\n", spec_coef2[i]);
1193
            printf("0x%.8X\n", spec_coef2[i]);
1194
        }
1195
    }
1196
#endif
1197
1198
    /* intensity stereo decoding */
1199
13.6k
    is_decode(ics1, ics2, spec_coef1, spec_coef2, hDecoder->frameLength);
1200
1201
#if 0
1202
    {
1203
        int i;
1204
        for (i = 0; i < 1024; i++)
1205
        {
1206
            printf("%d\n", spec_coef1[i]);
1207
            //printf("0x%.8X\n", spec_coef1[i]);
1208
        }
1209
        for (i = 0; i < 1024; i++)
1210
        {
1211
            printf("%d\n", spec_coef2[i]);
1212
            //printf("0x%.8X\n", spec_coef2[i]);
1213
        }
1214
    }
1215
#endif
1216
1217
#ifdef MAIN_DEC
1218
    /* MAIN object type prediction */
1219
    if (hDecoder->object_type == MAIN)
1220
    {
1221
        /* intra channel prediction */
1222
        ic_prediction(ics1, spec_coef1, hDecoder->pred_stat[cpe->channel], hDecoder->frameLength,
1223
            hDecoder->sf_index);
1224
        ic_prediction(ics2, spec_coef2, hDecoder->pred_stat[cpe->paired_channel], hDecoder->frameLength,
1225
            hDecoder->sf_index);
1226
1227
        /* In addition, for scalefactor bands coded by perceptual
1228
           noise substitution the predictors belonging to the
1229
           corresponding spectral coefficients are reset.
1230
        */
1231
        pns_reset_pred_state(ics1, hDecoder->pred_stat[cpe->channel]);
1232
        pns_reset_pred_state(ics2, hDecoder->pred_stat[cpe->paired_channel]);
1233
    }
1234
#endif
1235
1236
13.6k
#ifdef LTP_DEC
1237
13.6k
    if (is_ltp_ot(hDecoder->object_type))
1238
5.41k
    {
1239
5.41k
        ltp_info *ltp1 = &(ics1->ltp);
1240
5.41k
        ltp_info *ltp2 = (cpe->common_window) ? &(ics2->ltp2) : &(ics2->ltp);
1241
5.41k
#ifdef LD_DEC
1242
5.41k
        if (hDecoder->object_type == LD)
1243
510
        {
1244
510
            if (ltp1->data_present)
1245
37
            {
1246
37
                if (ltp1->lag_update)
1247
13
                    hDecoder->ltp_lag[cpe->channel] = ltp1->lag;
1248
37
            }
1249
510
            ltp1->lag = hDecoder->ltp_lag[cpe->channel];
1250
510
            if (ltp2->data_present)
1251
8
            {
1252
8
                if (ltp2->lag_update)
1253
3
                    hDecoder->ltp_lag[cpe->paired_channel] = ltp2->lag;
1254
8
            }
1255
510
            ltp2->lag = hDecoder->ltp_lag[cpe->paired_channel];
1256
510
        }
1257
5.41k
#endif
1258
1259
        /* long term prediction */
1260
5.41k
        lt_prediction(ics1, ltp1, spec_coef1, hDecoder->lt_pred_stat[cpe->channel], hDecoder->fb,
1261
5.41k
            ics1->window_shape, hDecoder->window_shape_prev[cpe->channel],
1262
5.41k
            hDecoder->sf_index, hDecoder->object_type, hDecoder->frameLength);
1263
5.41k
        lt_prediction(ics2, ltp2, spec_coef2, hDecoder->lt_pred_stat[cpe->paired_channel], hDecoder->fb,
1264
5.41k
            ics2->window_shape, hDecoder->window_shape_prev[cpe->paired_channel],
1265
5.41k
            hDecoder->sf_index, hDecoder->object_type, hDecoder->frameLength);
1266
5.41k
    }
1267
13.6k
#endif
1268
1269
    /* tns decoding */
1270
13.6k
    tns_decode_frame(ics1, &(ics1->tns), hDecoder->sf_index, hDecoder->object_type,
1271
13.6k
        spec_coef1, hDecoder->frameLength);
1272
13.6k
    tns_decode_frame(ics2, &(ics2->tns), hDecoder->sf_index, hDecoder->object_type,
1273
13.6k
        spec_coef2, hDecoder->frameLength);
1274
1275
    /* drc decoding */
1276
13.6k
#if APPLY_DRC
1277
13.6k
    if (hDecoder->drc->present)
1278
595
    {
1279
595
        if (!hDecoder->drc->exclude_mask[cpe->channel] || !hDecoder->drc->excluded_chns_present)
1280
540
            drc_decode(hDecoder->drc, spec_coef1);
1281
595
        if (!hDecoder->drc->exclude_mask[cpe->paired_channel] || !hDecoder->drc->excluded_chns_present)
1282
544
            drc_decode(hDecoder->drc, spec_coef2);
1283
595
    }
1284
13.6k
#endif
1285
    /* filter bank */
1286
#ifdef SSR_DEC
1287
    if (hDecoder->object_type != SSR)
1288
    {
1289
#endif
1290
13.6k
        ifilter_bank(hDecoder->fb, ics1->window_sequence, ics1->window_shape,
1291
13.6k
            hDecoder->window_shape_prev[cpe->channel], spec_coef1,
1292
13.6k
            hDecoder->time_out[cpe->channel], hDecoder->fb_intermed[cpe->channel],
1293
13.6k
            hDecoder->object_type, hDecoder->frameLength);
1294
13.6k
        ifilter_bank(hDecoder->fb, ics2->window_sequence, ics2->window_shape,
1295
13.6k
            hDecoder->window_shape_prev[cpe->paired_channel], spec_coef2,
1296
13.6k
            hDecoder->time_out[cpe->paired_channel], hDecoder->fb_intermed[cpe->paired_channel],
1297
13.6k
            hDecoder->object_type, hDecoder->frameLength);
1298
#ifdef SSR_DEC
1299
    } else {
1300
        ssr_decode(&(ics1->ssr), hDecoder->fb, ics1->window_sequence, ics1->window_shape,
1301
            hDecoder->window_shape_prev[cpe->channel], spec_coef1, hDecoder->time_out[cpe->channel],
1302
            hDecoder->ssr_overlap[cpe->channel], hDecoder->ipqf_buffer[cpe->channel],
1303
            hDecoder->prev_fmd[cpe->channel], hDecoder->frameLength);
1304
        ssr_decode(&(ics2->ssr), hDecoder->fb, ics2->window_sequence, ics2->window_shape,
1305
            hDecoder->window_shape_prev[cpe->paired_channel], spec_coef2, hDecoder->time_out[cpe->paired_channel],
1306
            hDecoder->ssr_overlap[cpe->paired_channel], hDecoder->ipqf_buffer[cpe->paired_channel],
1307
            hDecoder->prev_fmd[cpe->paired_channel], hDecoder->frameLength);
1308
    }
1309
#endif
1310
1311
    /* save window shape for next frame */
1312
13.6k
    hDecoder->window_shape_prev[cpe->channel] = ics1->window_shape;
1313
13.6k
    hDecoder->window_shape_prev[cpe->paired_channel] = ics2->window_shape;
1314
1315
13.6k
#ifdef LTP_DEC
1316
13.6k
    if (is_ltp_ot(hDecoder->object_type))
1317
5.41k
    {
1318
5.41k
        lt_update_state(hDecoder->lt_pred_stat[cpe->channel], hDecoder->time_out[cpe->channel],
1319
5.41k
            hDecoder->fb_intermed[cpe->channel], hDecoder->frameLength, hDecoder->object_type);
1320
5.41k
        lt_update_state(hDecoder->lt_pred_stat[cpe->paired_channel], hDecoder->time_out[cpe->paired_channel],
1321
5.41k
            hDecoder->fb_intermed[cpe->paired_channel], hDecoder->frameLength, hDecoder->object_type);
1322
5.41k
    }
1323
13.6k
#endif
1324
1325
13.6k
#ifdef SBR_DEC
1326
13.6k
    if (((hDecoder->sbr_present_flag == 1) || (hDecoder->forceUpSampling == 1))
1327
11.8k
        && hDecoder->sbr_alloced[hDecoder->fr_ch_ele])
1328
11.8k
    {
1329
11.8k
        int ele = hDecoder->fr_ch_ele;
1330
11.8k
        int ch0 = cpe->channel;
1331
11.8k
        int ch1 = cpe->paired_channel;
1332
1333
        /* following case can happen when forceUpSampling == 1 */
1334
11.8k
        if (hDecoder->sbr[ele] == NULL)
1335
4.04k
        {
1336
4.04k
            hDecoder->sbr[ele] = sbrDecodeInit(hDecoder->frameLength,
1337
4.04k
                hDecoder->element_id[ele], 2*get_sample_rate(hDecoder->sf_index),
1338
4.04k
                hDecoder->downSampledSBR
1339
#ifdef DRM
1340
                , 0
1341
#endif
1342
4.04k
                );
1343
4.04k
        }
1344
11.8k
        if (!hDecoder->sbr[ele])
1345
26
            return 19;
1346
1347
11.8k
        if (cpe->ics1.window_sequence == EIGHT_SHORT_SEQUENCE)
1348
533
            hDecoder->sbr[ele]->maxAACLine = 8*min(cpe->ics1.swb_offset[max(cpe->ics1.max_sfb-1, 0)], cpe->ics1.swb_offset_max);
1349
11.3k
        else
1350
11.3k
            hDecoder->sbr[ele]->maxAACLine = min(cpe->ics1.swb_offset[max(cpe->ics1.max_sfb-1, 0)], cpe->ics1.swb_offset_max);
1351
1352
11.8k
        retval = sbrDecodeCoupleFrame(hDecoder->sbr[ele],
1353
11.8k
            hDecoder->time_out[ch0], hDecoder->time_out[ch1],
1354
11.8k
            hDecoder->postSeekResetFlag, hDecoder->downSampledSBR);
1355
11.8k
        if (retval > 0)
1356
0
            return retval;
1357
11.8k
    } else if (((hDecoder->sbr_present_flag == 1) || (hDecoder->forceUpSampling == 1))
1358
1
        && !hDecoder->sbr_alloced[hDecoder->fr_ch_ele])
1359
1
    {
1360
1
        return 23;
1361
1
    }
1362
13.5k
#endif
1363
1364
13.5k
    return 0;
1365
13.6k
}