Coverage Report

Created: 2026-07-24 06:21

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/proc/self/cwd/libfaad/hcr.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: hcr.c,v 1.26 2009/01/26 23:51:15 menno Exp $
29
**/
30
31
#include "common.h"
32
#include "structs.h"
33
34
#include <stdlib.h>
35
36
#include "specrec.h"
37
#include "huffman.h"
38
39
/* ISO/IEC 14496-3/Amd.1
40
 * 8.5.3.3: Huffman Codeword Reordering for AAC spectral data (HCR)
41
 *
42
 * HCR devides the spectral data in known fixed size segments, and
43
 * sorts it by the importance of the data. The importance is firstly
44
 * the (lower) position in the spectrum, and secondly the largest
45
 * value in the used codebook.
46
 * The most important data is written at the start of each segment
47
 * (at known positions), the remaining data is interleaved inbetween,
48
 * with the writing direction alternating.
49
 * Data length is not increased.
50
*/
51
52
#ifdef ERROR_RESILIENCE
53
54
/* 8.5.3.3.1 Pre-sorting */
55
56
430
#define NUM_CB      6
57
5.93k
#define NUM_CB_ER   22
58
#define MAX_CB      32
59
1.28M
#define VCB11_FIRST 16
60
378k
#define VCB11_LAST  31
61
62
static const uint8_t PreSortCB_STD[NUM_CB] =
63
    { 11, 9, 7, 5, 3, 1};
64
65
static const uint8_t PreSortCB_ER[NUM_CB_ER] =
66
    { 11, 31, 30, 29, 28, 27, 26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 9, 7, 5, 3, 1};
67
68
/* 8.5.3.3.2 Derivation of segment width */
69
70
static const uint8_t maxCwLen[MAX_CB] = {0, 11, 9, 20, 16, 13, 11, 14, 12, 17, 14, 49,
71
    0, 0, 0, 0, 14, 17, 21, 21, 25, 25, 29, 29, 29, 29, 33, 33, 33, 37, 37, 41};
72
73
125k
#define segmentWidth(cb)    min(maxCwLen[cb], ics->length_of_longest_codeword)
74
75
/* bit-twiddling helpers */
76
static const uint8_t  S[] = {1, 2, 4, 8, 16};
77
static const uint32_t B[] = {0x55555555, 0x33333333, 0x0F0F0F0F, 0x00FF00FF, 0x0000FFFF};
78
79
typedef struct
80
{
81
    uint8_t     cb;
82
    uint8_t     decoded;
83
    uint16_t  sp_offset;
84
    bits_t      bits;
85
} codeword_t;
86
87
static uint32_t reverse_word(uint32_t v)
88
354k
{
89
354k
    v = ((v >> S[0]) & B[0]) | ((v << S[0]) & ~B[0]);
90
354k
    v = ((v >> S[1]) & B[1]) | ((v << S[1]) & ~B[1]);
91
354k
    v = ((v >> S[2]) & B[2]) | ((v << S[2]) & ~B[2]);
92
354k
    v = ((v >> S[3]) & B[3]) | ((v << S[3]) & ~B[3]);
93
354k
    v = ((v >> S[4]) & B[4]) | ((v << S[4]) & ~B[4]);
94
354k
    return v;
95
354k
}
96
97
/* bits_t version */
98
static void rewrev_bits(bits_t *bits)
99
467k
{
100
467k
    if (bits->len == 0) return;
101
310k
    if (bits->len <= 32) {
102
265k
        bits->bufb = 0;
103
265k
        bits->bufa = reverse_word(bits->bufa) >> (32 - bits->len);
104
265k
    } else {
105
        /* last 32<>32 bit swap via rename */
106
44.1k
        uint32_t lo = reverse_word(bits->bufb);
107
44.1k
        uint32_t hi = reverse_word(bits->bufa);
108
109
44.1k
        if (bits->len == 64) {
110
90
            bits->bufb = hi;
111
90
            bits->bufa = lo;
112
44.0k
        } else {
113
            /* shift off low bits (this is really only one 64 bit shift) */
114
44.0k
            bits->bufb = hi >> (64 - bits->len);
115
44.0k
            bits->bufa = (lo >> (64 - bits->len)) | (hi << (bits->len - 32));
116
44.0k
        }
117
44.1k
    }
118
310k
}
119
120
121
/* merge bits of a to b */
122
/* precondition: a->len + b->len <= 64 */
123
static void concat_bits(bits_t *b, bits_t *a)
124
24.5k
{
125
24.5k
    uint32_t bl, bh, al, ah;
126
127
    /* empty addend */
128
24.5k
    if (a->len == 0) return;
129
130
    /* addend becomes result */
131
24.5k
    if (b->len == 0)
132
0
    {
133
0
        *b = *a;
134
0
        return;
135
0
    }
136
137
24.5k
    al = a->bufa;
138
24.5k
    ah = a->bufb;
139
140
24.5k
    if (b->len > 32)
141
2.22k
    {
142
        /* (b->len - 32) is 1..31 */
143
        /* maskoff superfluous high b bits */
144
2.22k
        bl = b->bufa;
145
2.22k
        bh = b->bufb & ((1u << (b->len-32)) - 1);
146
        /* left shift a b->len bits */
147
2.22k
        ah = al << (b->len - 32);
148
2.22k
        al = 0;
149
22.3k
    } else if (b->len == 32) {
150
262
        bl = b->bufa;
151
262
        bh = 0;
152
262
        ah = al;
153
262
        al = 0;
154
22.0k
    } else {
155
        /* b->len is 1..31, (32 - b->len) is 1..31 */
156
22.0k
        bl = b->bufa & ((1u << (b->len)) - 1);
157
22.0k
        bh = 0;
158
22.0k
        ah = (ah << (b->len)) | (al >> (32 - b->len));
159
22.0k
        al = al << b->len;
160
22.0k
    }
161
162
    /* merge */
163
24.5k
    b->bufa = bl | al;
164
24.5k
    b->bufb = bh | ah;
165
166
24.5k
    b->len += a->len;
167
24.5k
}
168
169
static uint8_t is_good_cb(uint8_t this_CB, uint8_t this_sec_CB)
170
2.48M
{
171
    /* only want spectral data CB's */
172
2.48M
    if ((this_sec_CB > ZERO_HCB && this_sec_CB <= ESC_HCB) || (this_sec_CB >= VCB11_FIRST && this_sec_CB <= VCB11_LAST))
173
2.22M
    {
174
2.22M
        if (this_CB < ESC_HCB)
175
623k
        {
176
            /* normal codebook pairs */
177
623k
            return ((this_sec_CB == this_CB) || (this_sec_CB == this_CB + 1));
178
623k
        } else
179
1.59M
        {
180
            /* escape codebook */
181
1.59M
            return (this_sec_CB == this_CB);
182
1.59M
        }
183
2.22M
    }
184
266k
    return 0;
185
2.48M
}
186
187
static void read_segment(bits_t *segment, uint8_t segwidth, bitfile *ld)
188
189k
{
189
189k
    segment->len = segwidth;
190
191
189k
     if (segwidth > 32)
192
29.0k
     {
193
29.0k
        segment->bufb = faad_getbits(ld, segwidth - 32);
194
29.0k
        segment->bufa = faad_getbits(ld, 32);
195
196
160k
    } else {
197
160k
        segment->bufb = 0;
198
160k
        segment->bufa = faad_getbits(ld, segwidth);
199
160k
    }
200
189k
}
201
202
static void fill_in_codeword(codeword_t *codeword, uint16_t index, uint16_t sp, uint8_t cb)
203
128k
{
204
128k
    codeword[index].sp_offset = sp;
205
128k
    codeword[index].cb = cb;
206
128k
    codeword[index].decoded = 0;
207
128k
    codeword[index].bits.len = 0;
208
128k
}
209
210
uint8_t reordered_spectral_data(NeAACDecStruct *hDecoder, ic_stream *ics,
211
                                bitfile *ld, int16_t *spectral_data)
212
16.9k
{
213
16.9k
    uint16_t PCWs_done;
214
16.9k
    uint16_t numberOfSegments, numberOfSets, numberOfCodewords;
215
216
16.9k
    codeword_t codeword[512];
217
16.9k
    bits_t segment[512];
218
219
16.9k
    uint16_t sp_offset[8];
220
16.9k
    uint16_t g, i, sortloop, set, bitsread;
221
16.9k
    /*uint16_t bitsleft, codewordsleft*/;
222
16.9k
    uint8_t w_idx, sfb, this_CB, last_CB, this_sec_CB;
223
224
16.9k
    const uint16_t nshort = hDecoder->frameLength/8;
225
16.9k
    const uint16_t sp_data_len = ics->length_of_reordered_spectral_data;
226
227
16.9k
    const uint8_t *PreSortCb;
228
229
    /* no data (e.g. silence) */
230
16.9k
    if (sp_data_len == 0)
231
10.4k
        return 0;
232
233
    /* since there is spectral data, at least one codeword has nonzero length */
234
6.47k
    if (ics->length_of_longest_codeword == 0)
235
94
        return 10;
236
237
6.37k
    if (sp_data_len < ics->length_of_longest_codeword)
238
13
        return 10;
239
240
6.36k
    sp_offset[0] = 0;
241
7.53k
    for (g = 1; g < ics->num_window_groups; g++)
242
1.17k
    {
243
1.17k
        sp_offset[g] = sp_offset[g-1] + nshort*ics->window_group_length[g-1];
244
1.17k
    }
245
246
6.36k
    PCWs_done = 0;
247
6.36k
    numberOfSegments = 0;
248
6.36k
    numberOfCodewords = 0;
249
6.36k
    bitsread = 0;
250
251
    /* VCB11 code books in use */
252
6.36k
    if (hDecoder->aacSectionDataResilienceFlag)
253
5.93k
    {
254
5.93k
        PreSortCb = PreSortCB_ER;
255
5.93k
        last_CB = NUM_CB_ER;
256
5.93k
    } else
257
430
    {
258
430
        PreSortCb = PreSortCB_STD;
259
430
        last_CB = NUM_CB;
260
430
    }
261
262
    /* step 1: decode PCW's (set 0), and stuff data in easier-to-use format */
263
137k
    for (sortloop = 0; sortloop < last_CB; sortloop++)
264
131k
    {
265
        /* select codebook to process this pass */
266
131k
        this_CB = PreSortCb[sortloop];
267
268
        /* loop over sfbs */
269
1.27M
        for (sfb = 0; sfb < ics->max_sfb; sfb++)
270
1.14M
        {
271
            /* loop over all in this sfb, 4 lines per loop */
272
3.49M
            for (w_idx = 0; 4*w_idx < (min(ics->swb_offset[sfb+1], ics->swb_offset_max) - ics->swb_offset[sfb]); w_idx++)
273
2.34M
            {
274
4.83M
                for(g = 0; g < ics->num_window_groups; g++)
275
2.48M
                {
276
16.3M
                    for (i = 0; i < ics->num_sec[g]; i++)
277
13.9M
                    {
278
                        /* check whether sfb used here is the one we want to process */
279
13.9M
                        if ((ics->sect_start[g][i] <= sfb) && (ics->sect_end[g][i] > sfb))
280
2.48M
                        {
281
                            /* check whether codebook used here is the one we want to process */
282
2.48M
                            this_sec_CB = ics->sect_cb[g][i];
283
284
2.48M
                            if (is_good_cb(this_CB, this_sec_CB))
285
125k
                            {
286
                                /* precalculate some stuff */
287
125k
                                uint16_t sect_sfb_size = ics->sect_sfb_offset[g][sfb+1] - ics->sect_sfb_offset[g][sfb];
288
125k
                                uint8_t inc = (this_sec_CB < FIRST_PAIR_HCB) ? QUAD_LEN : PAIR_LEN;
289
125k
                                uint16_t group_cws_count = (4*ics->window_group_length[g])/inc;
290
125k
                                uint8_t segwidth = segmentWidth(this_sec_CB);
291
125k
                                uint16_t cws;
292
293
                                /* read codewords until end of sfb or end of window group (shouldn't only 1 trigger?) */
294
441k
                                for (cws = 0; (cws < group_cws_count) && ((cws + w_idx*group_cws_count) < sect_sfb_size); cws++)
295
316k
                                {
296
316k
                                    uint16_t sp = sp_offset[g] + ics->sect_sfb_offset[g][sfb] + inc * (cws + w_idx*group_cws_count);
297
298
                                    /* read and decode PCW */
299
316k
                                    if (!PCWs_done)
300
189k
                                    {
301
                                        /* read in normal segments */
302
189k
                                        if (bitsread + segwidth <= sp_data_len)
303
188k
                                        {
304
188k
                                            read_segment(&segment[numberOfSegments], segwidth, ld);
305
188k
                                            bitsread += segwidth;
306
307
188k
                                            huffman_spectral_data_2(this_sec_CB, &segment[numberOfSegments], &spectral_data[sp]);
308
309
                                            /* keep leftover bits */
310
188k
                                            rewrev_bits(&segment[numberOfSegments]);
311
312
188k
                                            numberOfSegments++;
313
188k
                                        } else {  // sp_data_len - bitsread < segwidth
314
                                            /* remaining stuff after last segment, we unfortunately couldn't read
315
                                               this in earlier because it might not fit in 64 bits. since we already
316
                                               decoded (and removed) the PCW it is now should fit */
317
1.64k
                                            if (bitsread < sp_data_len)
318
1.30k
                                            {
319
1.30k
                                                const uint8_t additional_bits = (uint8_t)(sp_data_len - bitsread);
320
321
1.30k
                                                read_segment(&segment[numberOfSegments], additional_bits, ld);
322
1.30k
                                                segment[numberOfSegments].len += segment[numberOfSegments-1].len;
323
1.30k
                                                if (segment[numberOfSegments].len > 64)
324
107
                                                    return 10;
325
1.19k
                                                rewrev_bits(&segment[numberOfSegments]);
326
327
1.19k
                                                if (segment[numberOfSegments-1].len > 32)
328
220
                                                {
329
220
                                                    segment[numberOfSegments-1].bufb = segment[numberOfSegments].bufb +
330
220
                                                        showbits_hcr(&segment[numberOfSegments-1], segment[numberOfSegments-1].len - 32);
331
220
                                                    segment[numberOfSegments-1].bufa = segment[numberOfSegments].bufa +
332
220
                                                        showbits_hcr(&segment[numberOfSegments-1], 32);
333
973
                                                } else {
334
973
                                                    segment[numberOfSegments-1].bufa = segment[numberOfSegments].bufa +
335
973
                                                        showbits_hcr(&segment[numberOfSegments-1], segment[numberOfSegments-1].len);
336
973
                                                    segment[numberOfSegments-1].bufb = segment[numberOfSegments].bufb;
337
973
                                                }
338
1.19k
                                                segment[numberOfSegments-1].len += additional_bits;
339
1.19k
                                            }
340
1.53k
                                            bitsread = sp_data_len;
341
1.53k
                                            PCWs_done = 1;
342
343
1.53k
                                            fill_in_codeword(codeword, 0, sp, this_sec_CB);
344
1.53k
                                        }
345
189k
                                    } else {
346
127k
                                        fill_in_codeword(codeword, numberOfCodewords - numberOfSegments, sp, this_sec_CB);
347
127k
                                    }
348
316k
                                    numberOfCodewords++;
349
316k
                                }
350
125k
                            }
351
2.48M
                        }
352
13.9M
                    }
353
2.48M
                 }
354
2.34M
             }
355
1.14M
         }
356
131k
    }
357
358
6.25k
    if (numberOfSegments == 0)
359
118
        return 10;
360
361
6.13k
    numberOfSets = numberOfCodewords / numberOfSegments;
362
363
    /* step 2: decode nonPCWs */
364
23.3k
    for (set = 1; set <= numberOfSets; set++)
365
17.1k
    {
366
17.1k
        uint16_t trial;
367
368
295k
        for (trial = 0; trial < numberOfSegments; trial++)
369
277k
        {
370
277k
            uint16_t codewordBase;
371
372
12.3M
            for (codewordBase = 0; codewordBase < numberOfSegments; codewordBase++)
373
12.2M
            {
374
12.2M
                const uint16_t segment_idx = (trial + codewordBase) % numberOfSegments;
375
12.2M
                const uint16_t codeword_idx = codewordBase + set*numberOfSegments - numberOfSegments;
376
377
                /* data up */
378
12.2M
                if (codeword_idx >= numberOfCodewords - numberOfSegments) break;
379
380
12.0M
                if (!codeword[codeword_idx].decoded && segment[segment_idx].len > 0)
381
120k
                {
382
120k
                    uint8_t tmplen = segment[segment_idx].len + codeword[codeword_idx].bits.len;
383
384
120k
                    if (tmplen > 64)
385
1.60k
                    {
386
                      // Drop bits that do not fit concatenation result.
387
1.60k
                      flushbits_hcr(&codeword[codeword_idx].bits, tmplen - 64);
388
1.60k
                    }
389
390
120k
                    if (codeword[codeword_idx].bits.len != 0)
391
24.5k
                        concat_bits(&segment[segment_idx], &codeword[codeword_idx].bits);
392
393
120k
                    tmplen = segment[segment_idx].len;
394
395
120k
                    if (huffman_spectral_data_2(codeword[codeword_idx].cb, &segment[segment_idx],
396
120k
                                               &spectral_data[codeword[codeword_idx].sp_offset]) >= 0)
397
94.3k
                    {
398
94.3k
                        codeword[codeword_idx].decoded = 1;
399
94.3k
                    } else
400
26.2k
                    {
401
26.2k
                        codeword[codeword_idx].bits = segment[segment_idx];
402
26.2k
                        codeword[codeword_idx].bits.len = tmplen;
403
26.2k
                    }
404
405
120k
                }
406
12.0M
            }
407
277k
        }
408
295k
        for (i = 0; i < numberOfSegments; i++)
409
277k
            rewrev_bits(&segment[i]);
410
17.1k
    }
411
412
#if 0 // Seems to give false errors
413
    bitsleft = 0;
414
415
    for (i = 0; i < numberOfSegments && !bitsleft; i++)
416
        bitsleft += segment[i].len;
417
418
    if (bitsleft) return 10;
419
420
    codewordsleft = 0;
421
422
    for (i = 0; (i < numberOfCodewords - numberOfSegments) && (!codewordsleft); i++)
423
        if (!codeword[i].decoded)
424
                codewordsleft++;
425
426
    if (codewordsleft) return 10;
427
#endif
428
429
430
6.13k
    return 0;
431
432
6.25k
}
433
#endif