Coverage Report

Created: 2026-07-25 07:52

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ffmpeg/libavcodec/mpegaudiodec_template.c
Line
Count
Source
1
/*
2
 * MPEG Audio decoder
3
 * Copyright (c) 2001, 2002 Fabrice Bellard
4
 *
5
 * This file is part of FFmpeg.
6
 *
7
 * FFmpeg is free software; you can redistribute it and/or
8
 * modify it under the terms of the GNU Lesser General Public
9
 * License as published by the Free Software Foundation; either
10
 * version 2.1 of the License, or (at your option) any later version.
11
 *
12
 * FFmpeg is distributed in the hope that it will be useful,
13
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
15
 * Lesser General Public License for more details.
16
 *
17
 * You should have received a copy of the GNU Lesser General Public
18
 * License along with FFmpeg; if not, write to the Free Software
19
 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
20
 */
21
22
/**
23
 * @file
24
 * MPEG Audio decoder
25
 */
26
27
#include "config_components.h"
28
29
#include "libavutil/attributes.h"
30
#include "libavutil/avassert.h"
31
#include "libavutil/channel_layout.h"
32
#include "libavutil/crc.h"
33
#include "libavutil/float_dsp.h"
34
#include "libavutil/libm.h"
35
#include "libavutil/mem.h"
36
#include "libavutil/mem_internal.h"
37
#include "libavutil/thread.h"
38
39
#include "avcodec.h"
40
#include "decode.h"
41
#include "get_bits.h"
42
#include "mathops.h"
43
#include "mpegaudiodsp.h"
44
45
/*
46
 * TODO:
47
 *  - test lsf / mpeg25 extensively.
48
 */
49
50
#include "mpegaudio.h"
51
#include "mpegaudiodecheader.h"
52
53
6.48M
#define BACKSTEP_SIZE 512
54
#define EXTRABYTES 24
55
#define LAST_BUF_SIZE 2 * BACKSTEP_SIZE + EXTRABYTES
56
57
/* layer 3 "granule" */
58
typedef struct GranuleDef {
59
    uint8_t scfsi;
60
    int part2_3_length;
61
    int big_values;
62
    int global_gain;
63
    int scalefac_compress;
64
    uint8_t block_type;
65
    uint8_t switch_point;
66
    int table_select[3];
67
    int subblock_gain[3];
68
    uint8_t scalefac_scale;
69
    uint8_t count1table_select;
70
    int region_size[3]; /* number of huffman codes in each region */
71
    int preflag;
72
    int short_start, long_end; /* long/short band indexes */
73
    uint8_t scale_factors[40];
74
    DECLARE_ALIGNED(16, INTFLOAT, sb_hybrid)[SBLIMIT * 18]; /* 576 samples */
75
} GranuleDef;
76
77
typedef struct MPADecodeContext {
78
    MPA_DECODE_HEADER
79
    uint8_t last_buf[LAST_BUF_SIZE];
80
    int last_buf_size;
81
    int extrasize;
82
    /* next header (used in free format parsing) */
83
    uint32_t free_format_next_header;
84
    GetBitContext gb;
85
    GetBitContext in_gb;
86
    DECLARE_ALIGNED(32, MPA_INT, synth_buf)[MPA_MAX_CHANNELS][512 * 2];
87
    int synth_buf_offset[MPA_MAX_CHANNELS];
88
    DECLARE_ALIGNED(32, INTFLOAT, sb_samples)[MPA_MAX_CHANNELS][36][SBLIMIT];
89
    INTFLOAT mdct_buf[MPA_MAX_CHANNELS][SBLIMIT * 18]; /* previous samples, for layer 3 MDCT */
90
    GranuleDef granules[2][2]; /* Used in Layer 3 */
91
    int adu_mode; ///< 0 for standard mp3, 1 for adu formatted mp3
92
    int dither_state;
93
    int err_recognition;
94
    AVCodecContext* avctx;
95
    MPADSPContext mpadsp;
96
    void (*butterflies_float)(float *restrict v1, float *restrict v2, int len);
97
    AVFrame *frame;
98
    uint32_t crc;
99
} MPADecodeContext;
100
101
20.0M
#define HEADER_SIZE 4
102
103
#include "mpegaudiodata.h"
104
105
#include "mpegaudio_tablegen.h"
106
/* intensity stereo coef table */
107
static INTFLOAT is_table_lsf[2][2][16];
108
109
/* [i][j]:  2^(-j/3) * FRAC_ONE * 2^(i+2) / (2^(i+2) - 1) */
110
static int32_t scale_factor_mult[15][3];
111
/* mult table for layer 2 group quantization */
112
113
#define SCALE_GEN(v) \
114
{ FIXR_OLD(1.0 * (v)), FIXR_OLD(0.7937005259 * (v)), FIXR_OLD(0.6299605249 * (v)) }
115
116
static const int32_t scale_factor_mult2[3][3] = {
117
    SCALE_GEN(4.0 / 3.0), /* 3 steps */
118
    SCALE_GEN(4.0 / 5.0), /* 5 steps */
119
    SCALE_GEN(4.0 / 9.0), /* 9 steps */
120
};
121
122
/**
123
 * Convert region offsets to region sizes and truncate
124
 * size to big_values.
125
 */
126
static void region_offset2size(GranuleDef *g)
127
7.02M
{
128
7.02M
    int i, k, j = 0;
129
7.02M
    g->region_size[2] = 576 / 2;
130
28.0M
    for (i = 0; i < 3; i++) {
131
21.0M
        k = FFMIN(g->region_size[i], g->big_values);
132
21.0M
        g->region_size[i] = k - j;
133
21.0M
        j = k;
134
21.0M
    }
135
7.02M
}
mpegaudiodec_float.c:region_offset2size
Line
Count
Source
127
3.48M
{
128
3.48M
    int i, k, j = 0;
129
3.48M
    g->region_size[2] = 576 / 2;
130
13.9M
    for (i = 0; i < 3; i++) {
131
10.4M
        k = FFMIN(g->region_size[i], g->big_values);
132
10.4M
        g->region_size[i] = k - j;
133
10.4M
        j = k;
134
10.4M
    }
135
3.48M
}
mpegaudiodec_fixed.c:region_offset2size
Line
Count
Source
127
3.53M
{
128
3.53M
    int i, k, j = 0;
129
3.53M
    g->region_size[2] = 576 / 2;
130
14.1M
    for (i = 0; i < 3; i++) {
131
10.5M
        k = FFMIN(g->region_size[i], g->big_values);
132
10.5M
        g->region_size[i] = k - j;
133
10.5M
        j = k;
134
10.5M
    }
135
3.53M
}
136
137
static void init_short_region(MPADecodeContext *s, GranuleDef *g)
138
3.95M
{
139
3.95M
    if (g->block_type == 2) {
140
1.32M
        if (s->sample_rate_index != 8)
141
1.31M
            g->region_size[0] = (36 / 2);
142
13.4k
        else
143
13.4k
            g->region_size[0] = (72 / 2);
144
2.63M
    } else {
145
2.63M
        if (s->sample_rate_index <= 2)
146
24.5k
            g->region_size[0] = (36 / 2);
147
2.61M
        else if (s->sample_rate_index != 8)
148
2.60M
            g->region_size[0] = (54 / 2);
149
9.57k
        else
150
9.57k
            g->region_size[0] = (108 / 2);
151
2.63M
    }
152
3.95M
    g->region_size[1] = (576 / 2);
153
3.95M
}
mpegaudiodec_float.c:init_short_region
Line
Count
Source
138
2.07M
{
139
2.07M
    if (g->block_type == 2) {
140
812k
        if (s->sample_rate_index != 8)
141
803k
            g->region_size[0] = (36 / 2);
142
9.08k
        else
143
9.08k
            g->region_size[0] = (72 / 2);
144
1.25M
    } else {
145
1.25M
        if (s->sample_rate_index <= 2)
146
12.3k
            g->region_size[0] = (36 / 2);
147
1.24M
        else if (s->sample_rate_index != 8)
148
1.24M
            g->region_size[0] = (54 / 2);
149
5.82k
        else
150
5.82k
            g->region_size[0] = (108 / 2);
151
1.25M
    }
152
2.07M
    g->region_size[1] = (576 / 2);
153
2.07M
}
mpegaudiodec_fixed.c:init_short_region
Line
Count
Source
138
1.88M
{
139
1.88M
    if (g->block_type == 2) {
140
511k
        if (s->sample_rate_index != 8)
141
506k
            g->region_size[0] = (36 / 2);
142
4.36k
        else
143
4.36k
            g->region_size[0] = (72 / 2);
144
1.37M
    } else {
145
1.37M
        if (s->sample_rate_index <= 2)
146
12.1k
            g->region_size[0] = (36 / 2);
147
1.36M
        else if (s->sample_rate_index != 8)
148
1.36M
            g->region_size[0] = (54 / 2);
149
3.74k
        else
150
3.74k
            g->region_size[0] = (108 / 2);
151
1.37M
    }
152
1.88M
    g->region_size[1] = (576 / 2);
153
1.88M
}
154
155
static void init_long_region(MPADecodeContext *s, GranuleDef *g,
156
                             int ra1, int ra2)
157
3.06M
{
158
3.06M
    int l;
159
3.06M
    g->region_size[0] = ff_band_index_long[s->sample_rate_index][ra1 + 1];
160
    /* should not overflow */
161
3.06M
    l = FFMIN(ra1 + ra2 + 2, 22);
162
3.06M
    g->region_size[1] = ff_band_index_long[s->sample_rate_index][      l];
163
3.06M
}
mpegaudiodec_float.c:init_long_region
Line
Count
Source
157
1.41M
{
158
1.41M
    int l;
159
1.41M
    g->region_size[0] = ff_band_index_long[s->sample_rate_index][ra1 + 1];
160
    /* should not overflow */
161
1.41M
    l = FFMIN(ra1 + ra2 + 2, 22);
162
1.41M
    g->region_size[1] = ff_band_index_long[s->sample_rate_index][      l];
163
1.41M
}
mpegaudiodec_fixed.c:init_long_region
Line
Count
Source
157
1.64M
{
158
1.64M
    int l;
159
1.64M
    g->region_size[0] = ff_band_index_long[s->sample_rate_index][ra1 + 1];
160
    /* should not overflow */
161
1.64M
    l = FFMIN(ra1 + ra2 + 2, 22);
162
1.64M
    g->region_size[1] = ff_band_index_long[s->sample_rate_index][      l];
163
1.64M
}
164
165
static void compute_band_indexes(MPADecodeContext *s, GranuleDef *g)
166
7.02M
{
167
7.02M
    if (g->block_type == 2) {
168
1.32M
        if (g->switch_point) {
169
1.20M
            if(s->sample_rate_index == 8)
170
12.2k
                avpriv_request_sample(s->avctx, "switch point in 8khz");
171
            /* if switched mode, we handle the 36 first samples as
172
                long blocks.  For 8000Hz, we handle the 72 first
173
                exponents as long blocks */
174
1.20M
            if (s->sample_rate_index <= 2)
175
32.6k
                g->long_end = 8;
176
1.17M
            else
177
1.17M
                g->long_end = 6;
178
179
1.20M
            g->short_start = 3;
180
1.20M
        } else {
181
114k
            g->long_end    = 0;
182
114k
            g->short_start = 0;
183
114k
        }
184
5.69M
    } else {
185
5.69M
        g->short_start = 13;
186
5.69M
        g->long_end    = 22;
187
5.69M
    }
188
7.02M
}
mpegaudiodec_float.c:compute_band_indexes
Line
Count
Source
166
3.48M
{
167
3.48M
    if (g->block_type == 2) {
168
812k
        if (g->switch_point) {
169
720k
            if(s->sample_rate_index == 8)
170
8.32k
                avpriv_request_sample(s->avctx, "switch point in 8khz");
171
            /* if switched mode, we handle the 36 first samples as
172
                long blocks.  For 8000Hz, we handle the 72 first
173
                exponents as long blocks */
174
720k
            if (s->sample_rate_index <= 2)
175
17.8k
                g->long_end = 8;
176
702k
            else
177
702k
                g->long_end = 6;
178
179
720k
            g->short_start = 3;
180
720k
        } else {
181
92.6k
            g->long_end    = 0;
182
92.6k
            g->short_start = 0;
183
92.6k
        }
184
2.67M
    } else {
185
2.67M
        g->short_start = 13;
186
2.67M
        g->long_end    = 22;
187
2.67M
    }
188
3.48M
}
mpegaudiodec_fixed.c:compute_band_indexes
Line
Count
Source
166
3.53M
{
167
3.53M
    if (g->block_type == 2) {
168
511k
        if (g->switch_point) {
169
489k
            if(s->sample_rate_index == 8)
170
3.87k
                avpriv_request_sample(s->avctx, "switch point in 8khz");
171
            /* if switched mode, we handle the 36 first samples as
172
                long blocks.  For 8000Hz, we handle the 72 first
173
                exponents as long blocks */
174
489k
            if (s->sample_rate_index <= 2)
175
14.8k
                g->long_end = 8;
176
474k
            else
177
474k
                g->long_end = 6;
178
179
489k
            g->short_start = 3;
180
489k
        } else {
181
22.1k
            g->long_end    = 0;
182
22.1k
            g->short_start = 0;
183
22.1k
        }
184
3.02M
    } else {
185
3.02M
        g->short_start = 13;
186
3.02M
        g->long_end    = 22;
187
3.02M
    }
188
3.53M
}
189
190
/* layer 1 unscaling */
191
/* n = number of bits of the mantissa minus 1 */
192
static inline int l1_unscale(int n, int mant, int scale_factor)
193
267M
{
194
267M
    int shift, mod;
195
267M
    int64_t val;
196
197
267M
    shift   = ff_scale_factor_modshift[scale_factor];
198
267M
    mod     = shift & 3;
199
267M
    shift >>= 2;
200
267M
    val     = MUL64((int)(mant + (-1U << n) + 1), scale_factor_mult[n-1][mod]);
201
267M
    shift  += n;
202
    /* NOTE: at this point, 1 <= shift >= 21 + 15 */
203
267M
    return (int)((val + (1LL << (shift - 1))) >> shift);
204
267M
}
mpegaudiodec_float.c:l1_unscale
Line
Count
Source
193
140M
{
194
140M
    int shift, mod;
195
140M
    int64_t val;
196
197
140M
    shift   = ff_scale_factor_modshift[scale_factor];
198
140M
    mod     = shift & 3;
199
140M
    shift >>= 2;
200
140M
    val     = MUL64((int)(mant + (-1U << n) + 1), scale_factor_mult[n-1][mod]);
201
140M
    shift  += n;
202
    /* NOTE: at this point, 1 <= shift >= 21 + 15 */
203
140M
    return (int)((val + (1LL << (shift - 1))) >> shift);
204
140M
}
mpegaudiodec_fixed.c:l1_unscale
Line
Count
Source
193
126M
{
194
126M
    int shift, mod;
195
126M
    int64_t val;
196
197
126M
    shift   = ff_scale_factor_modshift[scale_factor];
198
126M
    mod     = shift & 3;
199
126M
    shift >>= 2;
200
126M
    val     = MUL64((int)(mant + (-1U << n) + 1), scale_factor_mult[n-1][mod]);
201
126M
    shift  += n;
202
    /* NOTE: at this point, 1 <= shift >= 21 + 15 */
203
126M
    return (int)((val + (1LL << (shift - 1))) >> shift);
204
126M
}
205
206
static inline int l2_unscale_group(int steps, int mant, int scale_factor)
207
14.1M
{
208
14.1M
    int shift, mod, val;
209
210
14.1M
    shift   = ff_scale_factor_modshift[scale_factor];
211
14.1M
    mod     = shift & 3;
212
14.1M
    shift >>= 2;
213
214
14.1M
    val = (mant - (steps >> 1)) * scale_factor_mult2[steps >> 2][mod];
215
    /* NOTE: at this point, 0 <= shift <= 21 */
216
14.1M
    if (shift > 0)
217
5.83M
        val = (val + (1 << (shift - 1))) >> shift;
218
14.1M
    return val;
219
14.1M
}
mpegaudiodec_float.c:l2_unscale_group
Line
Count
Source
207
7.57M
{
208
7.57M
    int shift, mod, val;
209
210
7.57M
    shift   = ff_scale_factor_modshift[scale_factor];
211
7.57M
    mod     = shift & 3;
212
7.57M
    shift >>= 2;
213
214
7.57M
    val = (mant - (steps >> 1)) * scale_factor_mult2[steps >> 2][mod];
215
    /* NOTE: at this point, 0 <= shift <= 21 */
216
7.57M
    if (shift > 0)
217
2.68M
        val = (val + (1 << (shift - 1))) >> shift;
218
7.57M
    return val;
219
7.57M
}
mpegaudiodec_fixed.c:l2_unscale_group
Line
Count
Source
207
6.55M
{
208
6.55M
    int shift, mod, val;
209
210
6.55M
    shift   = ff_scale_factor_modshift[scale_factor];
211
6.55M
    mod     = shift & 3;
212
6.55M
    shift >>= 2;
213
214
6.55M
    val = (mant - (steps >> 1)) * scale_factor_mult2[steps >> 2][mod];
215
    /* NOTE: at this point, 0 <= shift <= 21 */
216
6.55M
    if (shift > 0)
217
3.15M
        val = (val + (1 << (shift - 1))) >> shift;
218
6.55M
    return val;
219
6.55M
}
220
221
/* compute value^(4/3) * 2^(exponent/4). It normalized to FRAC_BITS */
222
static inline int l3_unscale(int value, int exponent)
223
1.29M
{
224
1.29M
    unsigned int m;
225
1.29M
    int e;
226
227
1.29M
    e  = ff_table_4_3_exp  [4 * value + (exponent & 3)];
228
1.29M
    m  = ff_table_4_3_value[4 * value + (exponent & 3)];
229
1.29M
    e -= exponent >> 2;
230
#ifdef DEBUG
231
    if(e < 1)
232
        av_log(NULL, AV_LOG_WARNING, "l3_unscale: e is %d\n", e);
233
#endif
234
1.29M
    if (e > (SUINT)31)
235
709k
        return 0;
236
580k
    m = (m + ((1U << e) >> 1)) >> e;
237
238
580k
    return m;
239
1.29M
}
mpegaudiodec_float.c:l3_unscale
Line
Count
Source
223
821k
{
224
821k
    unsigned int m;
225
821k
    int e;
226
227
821k
    e  = ff_table_4_3_exp  [4 * value + (exponent & 3)];
228
821k
    m  = ff_table_4_3_value[4 * value + (exponent & 3)];
229
821k
    e -= exponent >> 2;
230
#ifdef DEBUG
231
    if(e < 1)
232
        av_log(NULL, AV_LOG_WARNING, "l3_unscale: e is %d\n", e);
233
#endif
234
821k
    if (e > (SUINT)31)
235
473k
        return 0;
236
347k
    m = (m + ((1U << e) >> 1)) >> e;
237
238
347k
    return m;
239
821k
}
mpegaudiodec_fixed.c:l3_unscale
Line
Count
Source
223
469k
{
224
469k
    unsigned int m;
225
469k
    int e;
226
227
469k
    e  = ff_table_4_3_exp  [4 * value + (exponent & 3)];
228
469k
    m  = ff_table_4_3_value[4 * value + (exponent & 3)];
229
469k
    e -= exponent >> 2;
230
#ifdef DEBUG
231
    if(e < 1)
232
        av_log(NULL, AV_LOG_WARNING, "l3_unscale: e is %d\n", e);
233
#endif
234
469k
    if (e > (SUINT)31)
235
236k
        return 0;
236
233k
    m = (m + ((1U << e) >> 1)) >> e;
237
238
233k
    return m;
239
469k
}
240
241
static av_cold void decode_init_static(void)
242
11
{
243
11
    int i, j;
244
245
    /* scale factor multiply for layer 1 */
246
176
    for (i = 0; i < 15; i++) {
247
165
        int n, norm;
248
165
        n = i + 2;
249
165
        norm = ((INT64_C(1) << n) * FRAC_ONE) / ((1 << n) - 1);
250
165
        scale_factor_mult[i][0] = MULLx(norm, FIXR(1.0          * 2.0), FRAC_BITS);
251
165
        scale_factor_mult[i][1] = MULLx(norm, FIXR(0.7937005259 * 2.0), FRAC_BITS);
252
165
        scale_factor_mult[i][2] = MULLx(norm, FIXR(0.6299605249 * 2.0), FRAC_BITS);
253
165
        ff_dlog(NULL, "%d: norm=%x s=%"PRIx32" %"PRIx32" %"PRIx32"\n", i,
254
165
                (unsigned)norm,
255
165
                scale_factor_mult[i][0],
256
165
                scale_factor_mult[i][1],
257
165
                scale_factor_mult[i][2]);
258
165
    }
259
260
    /* compute n ^ (4/3) and store it in mantissa/exp format */
261
262
11
    mpegaudio_tableinit();
263
264
187
    for (i = 0; i < 16; i++) {
265
176
        double f;
266
176
        int e, k;
267
268
528
        for (j = 0; j < 2; j++) {
269
352
            e = -(j + 1) * ((i + 1) >> 1);
270
352
            f = exp2(e / 4.0);
271
352
            k = i & 1;
272
352
            is_table_lsf[j][k ^ 1][i] = FIXR(f);
273
352
            is_table_lsf[j][k    ][i] = FIXR(1.0);
274
352
            ff_dlog(NULL, "is_table_lsf %d %d: %f %f\n",
275
352
                    i, j, (float) is_table_lsf[j][0][i],
276
352
                    (float) is_table_lsf[j][1][i]);
277
352
        }
278
176
    }
279
11
    RENAME(ff_mpa_synth_init)();
280
11
    ff_mpegaudiodec_common_init_static();
281
11
}
mpegaudiodec_float.c:decode_init_static
Line
Count
Source
242
6
{
243
6
    int i, j;
244
245
    /* scale factor multiply for layer 1 */
246
96
    for (i = 0; i < 15; i++) {
247
90
        int n, norm;
248
90
        n = i + 2;
249
90
        norm = ((INT64_C(1) << n) * FRAC_ONE) / ((1 << n) - 1);
250
90
        scale_factor_mult[i][0] = MULLx(norm, FIXR(1.0          * 2.0), FRAC_BITS);
251
90
        scale_factor_mult[i][1] = MULLx(norm, FIXR(0.7937005259 * 2.0), FRAC_BITS);
252
90
        scale_factor_mult[i][2] = MULLx(norm, FIXR(0.6299605249 * 2.0), FRAC_BITS);
253
90
        ff_dlog(NULL, "%d: norm=%x s=%"PRIx32" %"PRIx32" %"PRIx32"\n", i,
254
90
                (unsigned)norm,
255
90
                scale_factor_mult[i][0],
256
90
                scale_factor_mult[i][1],
257
90
                scale_factor_mult[i][2]);
258
90
    }
259
260
    /* compute n ^ (4/3) and store it in mantissa/exp format */
261
262
6
    mpegaudio_tableinit();
263
264
102
    for (i = 0; i < 16; i++) {
265
96
        double f;
266
96
        int e, k;
267
268
288
        for (j = 0; j < 2; j++) {
269
192
            e = -(j + 1) * ((i + 1) >> 1);
270
192
            f = exp2(e / 4.0);
271
192
            k = i & 1;
272
192
            is_table_lsf[j][k ^ 1][i] = FIXR(f);
273
192
            is_table_lsf[j][k    ][i] = FIXR(1.0);
274
192
            ff_dlog(NULL, "is_table_lsf %d %d: %f %f\n",
275
192
                    i, j, (float) is_table_lsf[j][0][i],
276
192
                    (float) is_table_lsf[j][1][i]);
277
192
        }
278
96
    }
279
6
    RENAME(ff_mpa_synth_init)();
280
6
    ff_mpegaudiodec_common_init_static();
281
6
}
mpegaudiodec_fixed.c:decode_init_static
Line
Count
Source
242
5
{
243
5
    int i, j;
244
245
    /* scale factor multiply for layer 1 */
246
80
    for (i = 0; i < 15; i++) {
247
75
        int n, norm;
248
75
        n = i + 2;
249
75
        norm = ((INT64_C(1) << n) * FRAC_ONE) / ((1 << n) - 1);
250
75
        scale_factor_mult[i][0] = MULLx(norm, FIXR(1.0          * 2.0), FRAC_BITS);
251
75
        scale_factor_mult[i][1] = MULLx(norm, FIXR(0.7937005259 * 2.0), FRAC_BITS);
252
75
        scale_factor_mult[i][2] = MULLx(norm, FIXR(0.6299605249 * 2.0), FRAC_BITS);
253
75
        ff_dlog(NULL, "%d: norm=%x s=%"PRIx32" %"PRIx32" %"PRIx32"\n", i,
254
75
                (unsigned)norm,
255
75
                scale_factor_mult[i][0],
256
75
                scale_factor_mult[i][1],
257
75
                scale_factor_mult[i][2]);
258
75
    }
259
260
    /* compute n ^ (4/3) and store it in mantissa/exp format */
261
262
5
    mpegaudio_tableinit();
263
264
85
    for (i = 0; i < 16; i++) {
265
80
        double f;
266
80
        int e, k;
267
268
240
        for (j = 0; j < 2; j++) {
269
160
            e = -(j + 1) * ((i + 1) >> 1);
270
160
            f = exp2(e / 4.0);
271
160
            k = i & 1;
272
160
            is_table_lsf[j][k ^ 1][i] = FIXR(f);
273
160
            is_table_lsf[j][k    ][i] = FIXR(1.0);
274
160
            ff_dlog(NULL, "is_table_lsf %d %d: %f %f\n",
275
160
                    i, j, (float) is_table_lsf[j][0][i],
276
160
                    (float) is_table_lsf[j][1][i]);
277
160
        }
278
80
    }
279
5
    RENAME(ff_mpa_synth_init)();
280
5
    ff_mpegaudiodec_common_init_static();
281
5
}
282
283
static av_cold int decode_ctx_init(AVCodecContext *avctx, MPADecodeContext *s)
284
32.0k
{
285
32.0k
    static AVOnce init_static_once = AV_ONCE_INIT;
286
287
32.0k
    s->avctx = avctx;
288
289
#if USE_FLOATS
290
    {
291
        AVFloatDSPContext *fdsp;
292
16.8k
        fdsp = avpriv_float_dsp_alloc(avctx->flags & AV_CODEC_FLAG_BITEXACT);
293
16.8k
        if (!fdsp)
294
0
            return AVERROR(ENOMEM);
295
16.8k
        s->butterflies_float = fdsp->butterflies_float;
296
16.8k
        av_free(fdsp);
297
16.8k
    }
298
0
#endif
299
300
0
    ff_mpadsp_init(&s->mpadsp);
301
302
32.0k
    if (avctx->request_sample_fmt == OUT_FMT &&
303
0
        avctx->codec_id != AV_CODEC_ID_MP3ON4)
304
0
        avctx->sample_fmt = OUT_FMT;
305
32.0k
    else
306
32.0k
        avctx->sample_fmt = OUT_FMT_P;
307
16.8k
    s->err_recognition = avctx->err_recognition;
308
309
32.0k
    if (avctx->codec_id == AV_CODEC_ID_MP3ADU)
310
7.35k
        s->adu_mode = 1;
311
312
32.0k
    ff_thread_once(&init_static_once, decode_init_static);
313
314
16.8k
    return 0;
315
32.0k
}
mpegaudiodec_float.c:decode_ctx_init
Line
Count
Source
284
16.8k
{
285
16.8k
    static AVOnce init_static_once = AV_ONCE_INIT;
286
287
16.8k
    s->avctx = avctx;
288
289
16.8k
#if USE_FLOATS
290
16.8k
    {
291
16.8k
        AVFloatDSPContext *fdsp;
292
16.8k
        fdsp = avpriv_float_dsp_alloc(avctx->flags & AV_CODEC_FLAG_BITEXACT);
293
16.8k
        if (!fdsp)
294
0
            return AVERROR(ENOMEM);
295
16.8k
        s->butterflies_float = fdsp->butterflies_float;
296
16.8k
        av_free(fdsp);
297
16.8k
    }
298
0
#endif
299
300
0
    ff_mpadsp_init(&s->mpadsp);
301
302
16.8k
    if (avctx->request_sample_fmt == OUT_FMT &&
303
0
        avctx->codec_id != AV_CODEC_ID_MP3ON4)
304
0
        avctx->sample_fmt = OUT_FMT;
305
16.8k
    else
306
16.8k
        avctx->sample_fmt = OUT_FMT_P;
307
16.8k
    s->err_recognition = avctx->err_recognition;
308
309
16.8k
    if (avctx->codec_id == AV_CODEC_ID_MP3ADU)
310
3.65k
        s->adu_mode = 1;
311
312
16.8k
    ff_thread_once(&init_static_once, decode_init_static);
313
314
16.8k
    return 0;
315
16.8k
}
mpegaudiodec_fixed.c:decode_ctx_init
Line
Count
Source
284
15.2k
{
285
15.2k
    static AVOnce init_static_once = AV_ONCE_INIT;
286
287
15.2k
    s->avctx = avctx;
288
289
#if USE_FLOATS
290
    {
291
        AVFloatDSPContext *fdsp;
292
        fdsp = avpriv_float_dsp_alloc(avctx->flags & AV_CODEC_FLAG_BITEXACT);
293
        if (!fdsp)
294
            return AVERROR(ENOMEM);
295
        s->butterflies_float = fdsp->butterflies_float;
296
        av_free(fdsp);
297
    }
298
#endif
299
300
15.2k
    ff_mpadsp_init(&s->mpadsp);
301
302
15.2k
    if (avctx->request_sample_fmt == OUT_FMT &&
303
0
        avctx->codec_id != AV_CODEC_ID_MP3ON4)
304
0
        avctx->sample_fmt = OUT_FMT;
305
15.2k
    else
306
15.2k
        avctx->sample_fmt = OUT_FMT_P;
307
15.2k
    s->err_recognition = avctx->err_recognition;
308
309
15.2k
    if (avctx->codec_id == AV_CODEC_ID_MP3ADU)
310
3.70k
        s->adu_mode = 1;
311
312
15.2k
    ff_thread_once(&init_static_once, decode_init_static);
313
314
15.2k
    return 0;
315
15.2k
}
316
317
static av_cold int decode_init(AVCodecContext *avctx)
318
29.9k
{
319
29.9k
    return decode_ctx_init(avctx, avctx->priv_data);
320
29.9k
}
mpegaudiodec_float.c:decode_init
Line
Count
Source
318
15.6k
{
319
15.6k
    return decode_ctx_init(avctx, avctx->priv_data);
320
15.6k
}
mpegaudiodec_fixed.c:decode_init
Line
Count
Source
318
14.2k
{
319
14.2k
    return decode_ctx_init(avctx, avctx->priv_data);
320
14.2k
}
321
322
#define C3 FIXHR(0.86602540378443864676/2)
323
#define C4 FIXHR(0.70710678118654752439/2) //0.5 / cos(pi*(9)/36)
324
#define C5 FIXHR(0.51763809020504152469/2) //0.5 / cos(pi*(5)/36)
325
#define C6 FIXHR(1.93185165257813657349/4) //0.5 / cos(pi*(15)/36)
326
327
/* 12 points IMDCT. We compute it "by hand" by factorizing obvious
328
   cases. */
329
static void imdct12(INTFLOAT *out, SUINTFLOAT *in)
330
1.74M
{
331
1.74M
    SUINTFLOAT in0, in1, in2, in3, in4, in5, t1, t2;
332
333
1.74M
    in0  = in[0*3];
334
1.74M
    in1  = in[1*3] + in[0*3];
335
1.74M
    in2  = in[2*3] + in[1*3];
336
1.74M
    in3  = in[3*3] + in[2*3];
337
1.74M
    in4  = in[4*3] + in[3*3];
338
1.74M
    in5  = in[5*3] + in[4*3];
339
1.74M
    in5 += in3;
340
1.74M
    in3 += in1;
341
342
1.74M
    in2  = MULH3(in2, C3, 2);
343
1.74M
    in3  = MULH3(in3, C3, 4);
344
345
1.74M
    t1   = in0 - in4;
346
1.74M
    t2   = MULH3(in1 - in5, C4, 2);
347
348
1.74M
    out[ 7] =
349
1.74M
    out[10] = t1 + t2;
350
1.74M
    out[ 1] =
351
1.74M
    out[ 4] = t1 - t2;
352
353
1.74M
    in0    += SHR(in4, 1);
354
1.74M
    in4     = in0 + in2;
355
1.74M
    in5    += 2*in1;
356
1.74M
    in1     = MULH3(in5 + in3, C5, 1);
357
1.74M
    out[ 8] =
358
1.74M
    out[ 9] = in4 + in1;
359
1.74M
    out[ 2] =
360
1.74M
    out[ 3] = in4 - in1;
361
362
1.74M
    in0    -= in2;
363
1.74M
    in5     = MULH3(in5 - in3, C6, 2);
364
1.74M
    out[ 0] =
365
1.74M
    out[ 5] = in0 - in5;
366
1.74M
    out[ 6] =
367
1.74M
    out[11] = in0 + in5;
368
1.74M
}
mpegaudiodec_float.c:imdct12
Line
Count
Source
330
1.34M
{
331
1.34M
    SUINTFLOAT in0, in1, in2, in3, in4, in5, t1, t2;
332
333
1.34M
    in0  = in[0*3];
334
1.34M
    in1  = in[1*3] + in[0*3];
335
1.34M
    in2  = in[2*3] + in[1*3];
336
1.34M
    in3  = in[3*3] + in[2*3];
337
1.34M
    in4  = in[4*3] + in[3*3];
338
1.34M
    in5  = in[5*3] + in[4*3];
339
1.34M
    in5 += in3;
340
1.34M
    in3 += in1;
341
342
1.34M
    in2  = MULH3(in2, C3, 2);
343
1.34M
    in3  = MULH3(in3, C3, 4);
344
345
1.34M
    t1   = in0 - in4;
346
1.34M
    t2   = MULH3(in1 - in5, C4, 2);
347
348
1.34M
    out[ 7] =
349
1.34M
    out[10] = t1 + t2;
350
1.34M
    out[ 1] =
351
1.34M
    out[ 4] = t1 - t2;
352
353
1.34M
    in0    += SHR(in4, 1);
354
1.34M
    in4     = in0 + in2;
355
1.34M
    in5    += 2*in1;
356
1.34M
    in1     = MULH3(in5 + in3, C5, 1);
357
1.34M
    out[ 8] =
358
1.34M
    out[ 9] = in4 + in1;
359
1.34M
    out[ 2] =
360
1.34M
    out[ 3] = in4 - in1;
361
362
1.34M
    in0    -= in2;
363
1.34M
    in5     = MULH3(in5 - in3, C6, 2);
364
1.34M
    out[ 0] =
365
1.34M
    out[ 5] = in0 - in5;
366
1.34M
    out[ 6] =
367
1.34M
    out[11] = in0 + in5;
368
1.34M
}
mpegaudiodec_fixed.c:imdct12
Line
Count
Source
330
402k
{
331
402k
    SUINTFLOAT in0, in1, in2, in3, in4, in5, t1, t2;
332
333
402k
    in0  = in[0*3];
334
402k
    in1  = in[1*3] + in[0*3];
335
402k
    in2  = in[2*3] + in[1*3];
336
402k
    in3  = in[3*3] + in[2*3];
337
402k
    in4  = in[4*3] + in[3*3];
338
402k
    in5  = in[5*3] + in[4*3];
339
402k
    in5 += in3;
340
402k
    in3 += in1;
341
342
402k
    in2  = MULH3(in2, C3, 2);
343
402k
    in3  = MULH3(in3, C3, 4);
344
345
402k
    t1   = in0 - in4;
346
402k
    t2   = MULH3(in1 - in5, C4, 2);
347
348
402k
    out[ 7] =
349
402k
    out[10] = t1 + t2;
350
402k
    out[ 1] =
351
402k
    out[ 4] = t1 - t2;
352
353
402k
    in0    += SHR(in4, 1);
354
402k
    in4     = in0 + in2;
355
402k
    in5    += 2*in1;
356
402k
    in1     = MULH3(in5 + in3, C5, 1);
357
402k
    out[ 8] =
358
402k
    out[ 9] = in4 + in1;
359
402k
    out[ 2] =
360
402k
    out[ 3] = in4 - in1;
361
362
402k
    in0    -= in2;
363
402k
    in5     = MULH3(in5 - in3, C6, 2);
364
402k
    out[ 0] =
365
402k
    out[ 5] = in0 - in5;
366
402k
    out[ 6] =
367
402k
    out[11] = in0 + in5;
368
402k
}
369
370
static int handle_crc(MPADecodeContext *s, int sec_len)
371
4.39M
{
372
4.39M
    if (s->error_protection && (s->err_recognition & AV_EF_CRCCHECK)) {
373
399k
        const uint8_t *buf = s->gb.buffer - HEADER_SIZE;
374
399k
        int sec_byte_len  = sec_len >> 3;
375
399k
        int sec_rem_bits  = sec_len & 7;
376
399k
        const AVCRC *crc_tab = av_crc_get_table(AV_CRC_16_ANSI);
377
399k
        uint8_t tmp_buf[4];
378
399k
        uint32_t crc_val = av_crc(crc_tab, UINT16_MAX, &buf[2], 2);
379
399k
        crc_val = av_crc(crc_tab, crc_val, &buf[6], sec_byte_len);
380
381
399k
        AV_WB32(tmp_buf,
382
399k
                ((buf[6 + sec_byte_len] & (0xFF00U >> sec_rem_bits)) << 24) +
383
399k
                ((s->crc << 16) >> sec_rem_bits));
384
385
399k
        crc_val = av_crc(crc_tab, crc_val, tmp_buf, 3);
386
387
399k
        if (crc_val) {
388
396k
            av_log(s->avctx, AV_LOG_ERROR, "CRC mismatch %"PRIX32"!\n", crc_val);
389
396k
            if (s->err_recognition & AV_EF_EXPLODE)
390
15.7k
                return AVERROR_INVALIDDATA;
391
396k
        }
392
399k
    }
393
4.37M
    return 0;
394
4.39M
}
mpegaudiodec_float.c:handle_crc
Line
Count
Source
371
2.36M
{
372
2.36M
    if (s->error_protection && (s->err_recognition & AV_EF_CRCCHECK)) {
373
223k
        const uint8_t *buf = s->gb.buffer - HEADER_SIZE;
374
223k
        int sec_byte_len  = sec_len >> 3;
375
223k
        int sec_rem_bits  = sec_len & 7;
376
223k
        const AVCRC *crc_tab = av_crc_get_table(AV_CRC_16_ANSI);
377
223k
        uint8_t tmp_buf[4];
378
223k
        uint32_t crc_val = av_crc(crc_tab, UINT16_MAX, &buf[2], 2);
379
223k
        crc_val = av_crc(crc_tab, crc_val, &buf[6], sec_byte_len);
380
381
223k
        AV_WB32(tmp_buf,
382
223k
                ((buf[6 + sec_byte_len] & (0xFF00U >> sec_rem_bits)) << 24) +
383
223k
                ((s->crc << 16) >> sec_rem_bits));
384
385
223k
        crc_val = av_crc(crc_tab, crc_val, tmp_buf, 3);
386
387
223k
        if (crc_val) {
388
222k
            av_log(s->avctx, AV_LOG_ERROR, "CRC mismatch %"PRIX32"!\n", crc_val);
389
222k
            if (s->err_recognition & AV_EF_EXPLODE)
390
7.07k
                return AVERROR_INVALIDDATA;
391
222k
        }
392
223k
    }
393
2.35M
    return 0;
394
2.36M
}
mpegaudiodec_fixed.c:handle_crc
Line
Count
Source
371
2.03M
{
372
2.03M
    if (s->error_protection && (s->err_recognition & AV_EF_CRCCHECK)) {
373
175k
        const uint8_t *buf = s->gb.buffer - HEADER_SIZE;
374
175k
        int sec_byte_len  = sec_len >> 3;
375
175k
        int sec_rem_bits  = sec_len & 7;
376
175k
        const AVCRC *crc_tab = av_crc_get_table(AV_CRC_16_ANSI);
377
175k
        uint8_t tmp_buf[4];
378
175k
        uint32_t crc_val = av_crc(crc_tab, UINT16_MAX, &buf[2], 2);
379
175k
        crc_val = av_crc(crc_tab, crc_val, &buf[6], sec_byte_len);
380
381
175k
        AV_WB32(tmp_buf,
382
175k
                ((buf[6 + sec_byte_len] & (0xFF00U >> sec_rem_bits)) << 24) +
383
175k
                ((s->crc << 16) >> sec_rem_bits));
384
385
175k
        crc_val = av_crc(crc_tab, crc_val, tmp_buf, 3);
386
387
175k
        if (crc_val) {
388
174k
            av_log(s->avctx, AV_LOG_ERROR, "CRC mismatch %"PRIX32"!\n", crc_val);
389
174k
            if (s->err_recognition & AV_EF_EXPLODE)
390
8.65k
                return AVERROR_INVALIDDATA;
391
174k
        }
392
175k
    }
393
2.02M
    return 0;
394
2.03M
}
395
396
/* return the number of decoded frames */
397
static int mp_decode_layer1(MPADecodeContext *s)
398
844k
{
399
844k
    int bound, i, v, n, ch, j, mant;
400
844k
    uint8_t allocation[MPA_MAX_CHANNELS][SBLIMIT];
401
844k
    uint8_t scale_factors[MPA_MAX_CHANNELS][SBLIMIT];
402
844k
    int ret;
403
404
844k
    ret = handle_crc(s, (s->nb_channels == 1) ? 8*16  : 8*32);
405
844k
    if (ret < 0)
406
3.75k
        return ret;
407
408
840k
    if (s->mode == MPA_JSTEREO)
409
52.3k
        bound = (s->mode_ext + 1) * 4;
410
788k
    else
411
788k
        bound = SBLIMIT;
412
413
    /* allocation bits */
414
26.4M
    for (i = 0; i < bound; i++) {
415
57.0M
        for (ch = 0; ch < s->nb_channels; ch++) {
416
31.4M
            allocation[ch][i] = get_bits(&s->gb, 4);
417
31.4M
        }
418
25.5M
    }
419
2.14M
    for (i = bound; i < SBLIMIT; i++)
420
1.29M
        allocation[0][i] = get_bits(&s->gb, 4);
421
422
    /* scale factors */
423
26.4M
    for (i = 0; i < bound; i++) {
424
57.0M
        for (ch = 0; ch < s->nb_channels; ch++) {
425
31.4M
            if (allocation[ch][i])
426
20.2M
                scale_factors[ch][i] = get_bits(&s->gb, 6);
427
31.4M
        }
428
25.5M
    }
429
2.14M
    for (i = bound; i < SBLIMIT; i++) {
430
1.29M
        if (allocation[0][i]) {
431
461k
            scale_factors[0][i] = get_bits(&s->gb, 6);
432
461k
            scale_factors[1][i] = get_bits(&s->gb, 6);
433
461k
        }
434
1.29M
    }
435
436
    /* compute samples */
437
10.9M
    for (j = 0; j < 12; j++) {
438
317M
        for (i = 0; i < bound; i++) {
439
684M
            for (ch = 0; ch < s->nb_channels; ch++) {
440
377M
                n = allocation[ch][i];
441
377M
                if (n) {
442
242M
                    mant = get_bits(&s->gb, n + 1);
443
242M
                    v = l1_unscale(n, mant, scale_factors[ch][i]);
444
242M
                } else {
445
135M
                    v = 0;
446
135M
                }
447
377M
                s->sb_samples[ch][j][i] = v;
448
377M
            }
449
307M
        }
450
25.6M
        for (i = bound; i < SBLIMIT; i++) {
451
15.5M
            n = allocation[0][i];
452
15.5M
            if (n) {
453
5.53M
                mant = get_bits(&s->gb, n + 1);
454
5.53M
                v = l1_unscale(n, mant, scale_factors[0][i]);
455
5.53M
                s->sb_samples[0][j][i] = v;
456
5.53M
                v = l1_unscale(n, mant, scale_factors[1][i]);
457
5.53M
                s->sb_samples[1][j][i] = v;
458
10.0M
            } else {
459
10.0M
                s->sb_samples[0][j][i] = 0;
460
10.0M
                s->sb_samples[1][j][i] = 0;
461
10.0M
            }
462
15.5M
        }
463
10.0M
    }
464
840k
    return 12;
465
844k
}
mpegaudiodec_float.c:mp_decode_layer1
Line
Count
Source
398
516k
{
399
516k
    int bound, i, v, n, ch, j, mant;
400
516k
    uint8_t allocation[MPA_MAX_CHANNELS][SBLIMIT];
401
516k
    uint8_t scale_factors[MPA_MAX_CHANNELS][SBLIMIT];
402
516k
    int ret;
403
404
516k
    ret = handle_crc(s, (s->nb_channels == 1) ? 8*16  : 8*32);
405
516k
    if (ret < 0)
406
1.92k
        return ret;
407
408
514k
    if (s->mode == MPA_JSTEREO)
409
31.7k
        bound = (s->mode_ext + 1) * 4;
410
482k
    else
411
482k
        bound = SBLIMIT;
412
413
    /* allocation bits */
414
16.1M
    for (i = 0; i < bound; i++) {
415
36.4M
        for (ch = 0; ch < s->nb_channels; ch++) {
416
20.7M
            allocation[ch][i] = get_bits(&s->gb, 4);
417
20.7M
        }
418
15.6M
    }
419
1.30M
    for (i = bound; i < SBLIMIT; i++)
420
794k
        allocation[0][i] = get_bits(&s->gb, 4);
421
422
    /* scale factors */
423
16.1M
    for (i = 0; i < bound; i++) {
424
36.4M
        for (ch = 0; ch < s->nb_channels; ch++) {
425
20.7M
            if (allocation[ch][i])
426
10.6M
                scale_factors[ch][i] = get_bits(&s->gb, 6);
427
20.7M
        }
428
15.6M
    }
429
1.30M
    for (i = bound; i < SBLIMIT; i++) {
430
794k
        if (allocation[0][i]) {
431
246k
            scale_factors[0][i] = get_bits(&s->gb, 6);
432
246k
            scale_factors[1][i] = get_bits(&s->gb, 6);
433
246k
        }
434
794k
    }
435
436
    /* compute samples */
437
6.68M
    for (j = 0; j < 12; j++) {
438
194M
        for (i = 0; i < bound; i++) {
439
437M
            for (ch = 0; ch < s->nb_channels; ch++) {
440
249M
                n = allocation[ch][i];
441
249M
                if (n) {
442
127M
                    mant = get_bits(&s->gb, n + 1);
443
127M
                    v = l1_unscale(n, mant, scale_factors[ch][i]);
444
127M
                } else {
445
121M
                    v = 0;
446
121M
                }
447
249M
                s->sb_samples[ch][j][i] = v;
448
249M
            }
449
188M
        }
450
15.7M
        for (i = bound; i < SBLIMIT; i++) {
451
9.53M
            n = allocation[0][i];
452
9.53M
            if (n) {
453
2.95M
                mant = get_bits(&s->gb, n + 1);
454
2.95M
                v = l1_unscale(n, mant, scale_factors[0][i]);
455
2.95M
                s->sb_samples[0][j][i] = v;
456
2.95M
                v = l1_unscale(n, mant, scale_factors[1][i]);
457
2.95M
                s->sb_samples[1][j][i] = v;
458
6.58M
            } else {
459
6.58M
                s->sb_samples[0][j][i] = 0;
460
6.58M
                s->sb_samples[1][j][i] = 0;
461
6.58M
            }
462
9.53M
        }
463
6.17M
    }
464
514k
    return 12;
465
516k
}
mpegaudiodec_fixed.c:mp_decode_layer1
Line
Count
Source
398
327k
{
399
327k
    int bound, i, v, n, ch, j, mant;
400
327k
    uint8_t allocation[MPA_MAX_CHANNELS][SBLIMIT];
401
327k
    uint8_t scale_factors[MPA_MAX_CHANNELS][SBLIMIT];
402
327k
    int ret;
403
404
327k
    ret = handle_crc(s, (s->nb_channels == 1) ? 8*16  : 8*32);
405
327k
    if (ret < 0)
406
1.83k
        return ret;
407
408
325k
    if (s->mode == MPA_JSTEREO)
409
20.6k
        bound = (s->mode_ext + 1) * 4;
410
305k
    else
411
305k
        bound = SBLIMIT;
412
413
    /* allocation bits */
414
10.2M
    for (i = 0; i < bound; i++) {
415
20.6M
        for (ch = 0; ch < s->nb_channels; ch++) {
416
10.7M
            allocation[ch][i] = get_bits(&s->gb, 4);
417
10.7M
        }
418
9.92M
    }
419
830k
    for (i = bound; i < SBLIMIT; i++)
420
505k
        allocation[0][i] = get_bits(&s->gb, 4);
421
422
    /* scale factors */
423
10.2M
    for (i = 0; i < bound; i++) {
424
20.6M
        for (ch = 0; ch < s->nb_channels; ch++) {
425
10.7M
            if (allocation[ch][i])
426
9.55M
                scale_factors[ch][i] = get_bits(&s->gb, 6);
427
10.7M
        }
428
9.92M
    }
429
830k
    for (i = bound; i < SBLIMIT; i++) {
430
505k
        if (allocation[0][i]) {
431
215k
            scale_factors[0][i] = get_bits(&s->gb, 6);
432
215k
            scale_factors[1][i] = get_bits(&s->gb, 6);
433
215k
        }
434
505k
    }
435
436
    /* compute samples */
437
4.23M
    for (j = 0; j < 12; j++) {
438
122M
        for (i = 0; i < bound; i++) {
439
247M
            for (ch = 0; ch < s->nb_channels; ch++) {
440
128M
                n = allocation[ch][i];
441
128M
                if (n) {
442
114M
                    mant = get_bits(&s->gb, n + 1);
443
114M
                    v = l1_unscale(n, mant, scale_factors[ch][i]);
444
114M
                } else {
445
13.9M
                    v = 0;
446
13.9M
                }
447
128M
                s->sb_samples[ch][j][i] = v;
448
128M
            }
449
119M
        }
450
9.97M
        for (i = bound; i < SBLIMIT; i++) {
451
6.06M
            n = allocation[0][i];
452
6.06M
            if (n) {
453
2.58M
                mant = get_bits(&s->gb, n + 1);
454
2.58M
                v = l1_unscale(n, mant, scale_factors[0][i]);
455
2.58M
                s->sb_samples[0][j][i] = v;
456
2.58M
                v = l1_unscale(n, mant, scale_factors[1][i]);
457
2.58M
                s->sb_samples[1][j][i] = v;
458
3.47M
            } else {
459
3.47M
                s->sb_samples[0][j][i] = 0;
460
3.47M
                s->sb_samples[1][j][i] = 0;
461
3.47M
            }
462
6.06M
        }
463
3.91M
    }
464
325k
    return 12;
465
327k
}
466
467
static int mp_decode_layer2(MPADecodeContext *s)
468
246k
{
469
246k
    int sblimit; /* number of used subbands */
470
246k
    const unsigned char *alloc_table;
471
246k
    int table, bit_alloc_bits, i, j, ch, bound, v;
472
246k
    unsigned char bit_alloc[MPA_MAX_CHANNELS][SBLIMIT];
473
246k
    unsigned char scale_code[MPA_MAX_CHANNELS][SBLIMIT];
474
246k
    unsigned char scale_factors[MPA_MAX_CHANNELS][SBLIMIT][3], *sf;
475
246k
    int scale, qindex, bits, steps, k, l, m, b;
476
246k
    int ret;
477
478
    /* select decoding table */
479
246k
    table = ff_mpa_l2_select_table(s->bit_rate / 1000, s->nb_channels,
480
246k
                                   s->sample_rate, s->lsf);
481
246k
    sblimit     = ff_mpa_sblimit_table[table];
482
246k
    alloc_table = ff_mpa_alloc_tables[table];
483
484
246k
    if (s->mode == MPA_JSTEREO)
485
143k
        bound = (s->mode_ext + 1) * 4;
486
102k
    else
487
102k
        bound = sblimit;
488
489
246k
    ff_dlog(s->avctx, "bound=%d sblimit=%d\n", bound, sblimit);
490
491
    /* sanity check */
492
246k
    if (bound > sblimit)
493
42.8k
        bound = sblimit;
494
495
    /* parse bit allocation */
496
246k
    j = 0;
497
3.82M
    for (i = 0; i < bound; i++) {
498
3.57M
        bit_alloc_bits = alloc_table[j];
499
10.1M
        for (ch = 0; ch < s->nb_channels; ch++)
500
6.58M
            bit_alloc[ch][i] = get_bits(&s->gb, bit_alloc_bits);
501
3.57M
        j += 1 << bit_alloc_bits;
502
3.57M
    }
503
1.57M
    for (i = bound; i < sblimit; i++) {
504
1.33M
        bit_alloc_bits = alloc_table[j];
505
1.33M
        v = get_bits(&s->gb, bit_alloc_bits);
506
1.33M
        bit_alloc[0][i] = v;
507
1.33M
        bit_alloc[1][i] = v;
508
1.33M
        j += 1 << bit_alloc_bits;
509
1.33M
    }
510
511
    /* scale codes */
512
5.15M
    for (i = 0; i < sblimit; i++) {
513
14.1M
        for (ch = 0; ch < s->nb_channels; ch++) {
514
9.24M
            if (bit_alloc[ch][i])
515
789k
                scale_code[ch][i] = get_bits(&s->gb, 2);
516
9.24M
        }
517
4.90M
    }
518
519
246k
    ret = handle_crc(s, get_bits_count(&s->gb) - 16);
520
246k
    if (ret < 0)
521
4.62k
        return ret;
522
523
    /* scale factors */
524
5.06M
    for (i = 0; i < sblimit; i++) {
525
13.9M
        for (ch = 0; ch < s->nb_channels; ch++) {
526
9.08M
            if (bit_alloc[ch][i]) {
527
768k
                sf = scale_factors[ch][i];
528
768k
                switch (scale_code[ch][i]) {
529
0
                default:
530
419k
                case 0:
531
419k
                    sf[0] = get_bits(&s->gb, 6);
532
419k
                    sf[1] = get_bits(&s->gb, 6);
533
419k
                    sf[2] = get_bits(&s->gb, 6);
534
419k
                    break;
535
74.0k
                case 2:
536
74.0k
                    sf[0] = get_bits(&s->gb, 6);
537
74.0k
                    sf[1] = sf[0];
538
74.0k
                    sf[2] = sf[0];
539
74.0k
                    break;
540
147k
                case 1:
541
147k
                    sf[0] = get_bits(&s->gb, 6);
542
147k
                    sf[2] = get_bits(&s->gb, 6);
543
147k
                    sf[1] = sf[0];
544
147k
                    break;
545
127k
                case 3:
546
127k
                    sf[0] = get_bits(&s->gb, 6);
547
127k
                    sf[2] = get_bits(&s->gb, 6);
548
127k
                    sf[1] = sf[2];
549
127k
                    break;
550
768k
                }
551
768k
            }
552
9.08M
        }
553
4.82M
    }
554
555
    /* samples */
556
967k
    for (k = 0; k < 3; k++) {
557
3.62M
        for (l = 0; l < 12; l += 3) {
558
2.90M
            j = 0;
559
45.1M
            for (i = 0; i < bound; i++) {
560
42.2M
                bit_alloc_bits = alloc_table[j];
561
119M
                for (ch = 0; ch < s->nb_channels; ch++) {
562
77.6M
                    b = bit_alloc[ch][i];
563
77.6M
                    if (b) {
564
6.66M
                        scale = scale_factors[ch][i][k];
565
6.66M
                        qindex = alloc_table[j+b];
566
6.66M
                        bits = ff_mpa_quant_bits[qindex];
567
6.66M
                        if (bits < 0) {
568
2.84M
                            int v2;
569
                            /* 3 values at the same time */
570
2.84M
                            v = get_bits(&s->gb, -bits);
571
2.84M
                            v2 = ff_division_tabs[qindex][v];
572
2.84M
                            steps  = ff_mpa_quant_steps[qindex];
573
574
2.84M
                            s->sb_samples[ch][k * 12 + l + 0][i] =
575
2.84M
                                l2_unscale_group(steps,  v2       & 15, scale);
576
2.84M
                            s->sb_samples[ch][k * 12 + l + 1][i] =
577
2.84M
                                l2_unscale_group(steps, (v2 >> 4) & 15, scale);
578
2.84M
                            s->sb_samples[ch][k * 12 + l + 2][i] =
579
2.84M
                                l2_unscale_group(steps,  v2 >> 8      , scale);
580
3.81M
                        } else {
581
15.2M
                            for (m = 0; m < 3; m++) {
582
11.4M
                                v = get_bits(&s->gb, bits);
583
11.4M
                                v = l1_unscale(bits - 1, v, scale);
584
11.4M
                                s->sb_samples[ch][k * 12 + l + m][i] = v;
585
11.4M
                            }
586
3.81M
                        }
587
70.9M
                    } else {
588
70.9M
                        s->sb_samples[ch][k * 12 + l + 0][i] = 0;
589
70.9M
                        s->sb_samples[ch][k * 12 + l + 1][i] = 0;
590
70.9M
                        s->sb_samples[ch][k * 12 + l + 2][i] = 0;
591
70.9M
                    }
592
77.6M
                }
593
                /* next subband in alloc table */
594
42.2M
                j += 1 << bit_alloc_bits;
595
42.2M
            }
596
            /* XXX: find a way to avoid this duplication of code */
597
18.6M
            for (i = bound; i < sblimit; i++) {
598
15.7M
                bit_alloc_bits = alloc_table[j];
599
15.7M
                b = bit_alloc[0][i];
600
15.7M
                if (b) {
601
1.27M
                    int mant, scale0, scale1;
602
1.27M
                    scale0 = scale_factors[0][i][k];
603
1.27M
                    scale1 = scale_factors[1][i][k];
604
1.27M
                    qindex = alloc_table[j + b];
605
1.27M
                    bits = ff_mpa_quant_bits[qindex];
606
1.27M
                    if (bits < 0) {
607
                        /* 3 values at the same time */
608
930k
                        v = get_bits(&s->gb, -bits);
609
930k
                        steps = ff_mpa_quant_steps[qindex];
610
930k
                        mant = v % steps;
611
930k
                        v = v / steps;
612
930k
                        s->sb_samples[0][k * 12 + l + 0][i] =
613
930k
                            l2_unscale_group(steps, mant, scale0);
614
930k
                        s->sb_samples[1][k * 12 + l + 0][i] =
615
930k
                            l2_unscale_group(steps, mant, scale1);
616
930k
                        mant = v % steps;
617
930k
                        v = v / steps;
618
930k
                        s->sb_samples[0][k * 12 + l + 1][i] =
619
930k
                            l2_unscale_group(steps, mant, scale0);
620
930k
                        s->sb_samples[1][k * 12 + l + 1][i] =
621
930k
                            l2_unscale_group(steps, mant, scale1);
622
930k
                        s->sb_samples[0][k * 12 + l + 2][i] =
623
930k
                            l2_unscale_group(steps, v, scale0);
624
930k
                        s->sb_samples[1][k * 12 + l + 2][i] =
625
930k
                            l2_unscale_group(steps, v, scale1);
626
930k
                    } else {
627
1.37M
                        for (m = 0; m < 3; m++) {
628
1.03M
                            mant = get_bits(&s->gb, bits);
629
1.03M
                            s->sb_samples[0][k * 12 + l + m][i] =
630
1.03M
                                l1_unscale(bits - 1, mant, scale0);
631
1.03M
                            s->sb_samples[1][k * 12 + l + m][i] =
632
1.03M
                                l1_unscale(bits - 1, mant, scale1);
633
1.03M
                        }
634
344k
                    }
635
14.4M
                } else {
636
14.4M
                    s->sb_samples[0][k * 12 + l + 0][i] = 0;
637
14.4M
                    s->sb_samples[0][k * 12 + l + 1][i] = 0;
638
14.4M
                    s->sb_samples[0][k * 12 + l + 2][i] = 0;
639
14.4M
                    s->sb_samples[1][k * 12 + l + 0][i] = 0;
640
14.4M
                    s->sb_samples[1][k * 12 + l + 1][i] = 0;
641
14.4M
                    s->sb_samples[1][k * 12 + l + 2][i] = 0;
642
14.4M
                }
643
                /* next subband in alloc table */
644
15.7M
                j += 1 << bit_alloc_bits;
645
15.7M
            }
646
            /* fill remaining samples to zero */
647
37.8M
            for (i = sblimit; i < SBLIMIT; i++) {
648
103M
                for (ch = 0; ch < s->nb_channels; ch++) {
649
68.3M
                    s->sb_samples[ch][k * 12 + l + 0][i] = 0;
650
68.3M
                    s->sb_samples[ch][k * 12 + l + 1][i] = 0;
651
68.3M
                    s->sb_samples[ch][k * 12 + l + 2][i] = 0;
652
68.3M
                }
653
34.9M
            }
654
2.90M
        }
655
725k
    }
656
241k
    return 3 * 12;
657
241k
}
mpegaudiodec_float.c:mp_decode_layer2
Line
Count
Source
468
152k
{
469
152k
    int sblimit; /* number of used subbands */
470
152k
    const unsigned char *alloc_table;
471
152k
    int table, bit_alloc_bits, i, j, ch, bound, v;
472
152k
    unsigned char bit_alloc[MPA_MAX_CHANNELS][SBLIMIT];
473
152k
    unsigned char scale_code[MPA_MAX_CHANNELS][SBLIMIT];
474
152k
    unsigned char scale_factors[MPA_MAX_CHANNELS][SBLIMIT][3], *sf;
475
152k
    int scale, qindex, bits, steps, k, l, m, b;
476
152k
    int ret;
477
478
    /* select decoding table */
479
152k
    table = ff_mpa_l2_select_table(s->bit_rate / 1000, s->nb_channels,
480
152k
                                   s->sample_rate, s->lsf);
481
152k
    sblimit     = ff_mpa_sblimit_table[table];
482
152k
    alloc_table = ff_mpa_alloc_tables[table];
483
484
152k
    if (s->mode == MPA_JSTEREO)
485
84.8k
        bound = (s->mode_ext + 1) * 4;
486
67.7k
    else
487
67.7k
        bound = sblimit;
488
489
152k
    ff_dlog(s->avctx, "bound=%d sblimit=%d\n", bound, sblimit);
490
491
    /* sanity check */
492
152k
    if (bound > sblimit)
493
32.8k
        bound = sblimit;
494
495
    /* parse bit allocation */
496
152k
    j = 0;
497
2.72M
    for (i = 0; i < bound; i++) {
498
2.57M
        bit_alloc_bits = alloc_table[j];
499
7.46M
        for (ch = 0; ch < s->nb_channels; ch++)
500
4.88M
            bit_alloc[ch][i] = get_bits(&s->gb, bit_alloc_bits);
501
2.57M
        j += 1 << bit_alloc_bits;
502
2.57M
    }
503
1.12M
    for (i = bound; i < sblimit; i++) {
504
973k
        bit_alloc_bits = alloc_table[j];
505
973k
        v = get_bits(&s->gb, bit_alloc_bits);
506
973k
        bit_alloc[0][i] = v;
507
973k
        bit_alloc[1][i] = v;
508
973k
        j += 1 << bit_alloc_bits;
509
973k
    }
510
511
    /* scale codes */
512
3.70M
    for (i = 0; i < sblimit; i++) {
513
10.3M
        for (ch = 0; ch < s->nb_channels; ch++) {
514
6.83M
            if (bit_alloc[ch][i])
515
407k
                scale_code[ch][i] = get_bits(&s->gb, 2);
516
6.83M
        }
517
3.55M
    }
518
519
152k
    ret = handle_crc(s, get_bits_count(&s->gb) - 16);
520
152k
    if (ret < 0)
521
2.59k
        return ret;
522
523
    /* scale factors */
524
3.65M
    for (i = 0; i < sblimit; i++) {
525
10.2M
        for (ch = 0; ch < s->nb_channels; ch++) {
526
6.74M
            if (bit_alloc[ch][i]) {
527
395k
                sf = scale_factors[ch][i];
528
395k
                switch (scale_code[ch][i]) {
529
0
                default:
530
246k
                case 0:
531
246k
                    sf[0] = get_bits(&s->gb, 6);
532
246k
                    sf[1] = get_bits(&s->gb, 6);
533
246k
                    sf[2] = get_bits(&s->gb, 6);
534
246k
                    break;
535
34.1k
                case 2:
536
34.1k
                    sf[0] = get_bits(&s->gb, 6);
537
34.1k
                    sf[1] = sf[0];
538
34.1k
                    sf[2] = sf[0];
539
34.1k
                    break;
540
59.5k
                case 1:
541
59.5k
                    sf[0] = get_bits(&s->gb, 6);
542
59.5k
                    sf[2] = get_bits(&s->gb, 6);
543
59.5k
                    sf[1] = sf[0];
544
59.5k
                    break;
545
55.2k
                case 3:
546
55.2k
                    sf[0] = get_bits(&s->gb, 6);
547
55.2k
                    sf[2] = get_bits(&s->gb, 6);
548
55.2k
                    sf[1] = sf[2];
549
55.2k
                    break;
550
395k
                }
551
395k
            }
552
6.74M
        }
553
3.50M
    }
554
555
    /* samples */
556
600k
    for (k = 0; k < 3; k++) {
557
2.25M
        for (l = 0; l < 12; l += 3) {
558
1.80M
            j = 0;
559
32.2M
            for (i = 0; i < bound; i++) {
560
30.4M
                bit_alloc_bits = alloc_table[j];
561
88.3M
                for (ch = 0; ch < s->nb_channels; ch++) {
562
57.8M
                    b = bit_alloc[ch][i];
563
57.8M
                    if (b) {
564
3.31M
                        scale = scale_factors[ch][i][k];
565
3.31M
                        qindex = alloc_table[j+b];
566
3.31M
                        bits = ff_mpa_quant_bits[qindex];
567
3.31M
                        if (bits < 0) {
568
1.47M
                            int v2;
569
                            /* 3 values at the same time */
570
1.47M
                            v = get_bits(&s->gb, -bits);
571
1.47M
                            v2 = ff_division_tabs[qindex][v];
572
1.47M
                            steps  = ff_mpa_quant_steps[qindex];
573
574
1.47M
                            s->sb_samples[ch][k * 12 + l + 0][i] =
575
1.47M
                                l2_unscale_group(steps,  v2       & 15, scale);
576
1.47M
                            s->sb_samples[ch][k * 12 + l + 1][i] =
577
1.47M
                                l2_unscale_group(steps, (v2 >> 4) & 15, scale);
578
1.47M
                            s->sb_samples[ch][k * 12 + l + 2][i] =
579
1.47M
                                l2_unscale_group(steps,  v2 >> 8      , scale);
580
1.84M
                        } else {
581
7.36M
                            for (m = 0; m < 3; m++) {
582
5.52M
                                v = get_bits(&s->gb, bits);
583
5.52M
                                v = l1_unscale(bits - 1, v, scale);
584
5.52M
                                s->sb_samples[ch][k * 12 + l + m][i] = v;
585
5.52M
                            }
586
1.84M
                        }
587
54.5M
                    } else {
588
54.5M
                        s->sb_samples[ch][k * 12 + l + 0][i] = 0;
589
54.5M
                        s->sb_samples[ch][k * 12 + l + 1][i] = 0;
590
54.5M
                        s->sb_samples[ch][k * 12 + l + 2][i] = 0;
591
54.5M
                    }
592
57.8M
                }
593
                /* next subband in alloc table */
594
30.4M
                j += 1 << bit_alloc_bits;
595
30.4M
            }
596
            /* XXX: find a way to avoid this duplication of code */
597
13.3M
            for (i = bound; i < sblimit; i++) {
598
11.5M
                bit_alloc_bits = alloc_table[j];
599
11.5M
                b = bit_alloc[0][i];
600
11.5M
                if (b) {
601
713k
                    int mant, scale0, scale1;
602
713k
                    scale0 = scale_factors[0][i][k];
603
713k
                    scale1 = scale_factors[1][i][k];
604
713k
                    qindex = alloc_table[j + b];
605
713k
                    bits = ff_mpa_quant_bits[qindex];
606
713k
                    if (bits < 0) {
607
                        /* 3 values at the same time */
608
526k
                        v = get_bits(&s->gb, -bits);
609
526k
                        steps = ff_mpa_quant_steps[qindex];
610
526k
                        mant = v % steps;
611
526k
                        v = v / steps;
612
526k
                        s->sb_samples[0][k * 12 + l + 0][i] =
613
526k
                            l2_unscale_group(steps, mant, scale0);
614
526k
                        s->sb_samples[1][k * 12 + l + 0][i] =
615
526k
                            l2_unscale_group(steps, mant, scale1);
616
526k
                        mant = v % steps;
617
526k
                        v = v / steps;
618
526k
                        s->sb_samples[0][k * 12 + l + 1][i] =
619
526k
                            l2_unscale_group(steps, mant, scale0);
620
526k
                        s->sb_samples[1][k * 12 + l + 1][i] =
621
526k
                            l2_unscale_group(steps, mant, scale1);
622
526k
                        s->sb_samples[0][k * 12 + l + 2][i] =
623
526k
                            l2_unscale_group(steps, v, scale0);
624
526k
                        s->sb_samples[1][k * 12 + l + 2][i] =
625
526k
                            l2_unscale_group(steps, v, scale1);
626
526k
                    } else {
627
745k
                        for (m = 0; m < 3; m++) {
628
558k
                            mant = get_bits(&s->gb, bits);
629
558k
                            s->sb_samples[0][k * 12 + l + m][i] =
630
558k
                                l1_unscale(bits - 1, mant, scale0);
631
558k
                            s->sb_samples[1][k * 12 + l + m][i] =
632
558k
                                l1_unscale(bits - 1, mant, scale1);
633
558k
                        }
634
186k
                    }
635
10.8M
                } else {
636
10.8M
                    s->sb_samples[0][k * 12 + l + 0][i] = 0;
637
10.8M
                    s->sb_samples[0][k * 12 + l + 1][i] = 0;
638
10.8M
                    s->sb_samples[0][k * 12 + l + 2][i] = 0;
639
10.8M
                    s->sb_samples[1][k * 12 + l + 0][i] = 0;
640
10.8M
                    s->sb_samples[1][k * 12 + l + 1][i] = 0;
641
10.8M
                    s->sb_samples[1][k * 12 + l + 2][i] = 0;
642
10.8M
                }
643
                /* next subband in alloc table */
644
11.5M
                j += 1 << bit_alloc_bits;
645
11.5M
            }
646
            /* fill remaining samples to zero */
647
17.4M
            for (i = sblimit; i < SBLIMIT; i++) {
648
46.1M
                for (ch = 0; ch < s->nb_channels; ch++) {
649
30.5M
                    s->sb_samples[ch][k * 12 + l + 0][i] = 0;
650
30.5M
                    s->sb_samples[ch][k * 12 + l + 1][i] = 0;
651
30.5M
                    s->sb_samples[ch][k * 12 + l + 2][i] = 0;
652
30.5M
                }
653
15.6M
            }
654
1.80M
        }
655
450k
    }
656
150k
    return 3 * 12;
657
150k
}
mpegaudiodec_fixed.c:mp_decode_layer2
Line
Count
Source
468
93.9k
{
469
93.9k
    int sblimit; /* number of used subbands */
470
93.9k
    const unsigned char *alloc_table;
471
93.9k
    int table, bit_alloc_bits, i, j, ch, bound, v;
472
93.9k
    unsigned char bit_alloc[MPA_MAX_CHANNELS][SBLIMIT];
473
93.9k
    unsigned char scale_code[MPA_MAX_CHANNELS][SBLIMIT];
474
93.9k
    unsigned char scale_factors[MPA_MAX_CHANNELS][SBLIMIT][3], *sf;
475
93.9k
    int scale, qindex, bits, steps, k, l, m, b;
476
93.9k
    int ret;
477
478
    /* select decoding table */
479
93.9k
    table = ff_mpa_l2_select_table(s->bit_rate / 1000, s->nb_channels,
480
93.9k
                                   s->sample_rate, s->lsf);
481
93.9k
    sblimit     = ff_mpa_sblimit_table[table];
482
93.9k
    alloc_table = ff_mpa_alloc_tables[table];
483
484
93.9k
    if (s->mode == MPA_JSTEREO)
485
58.7k
        bound = (s->mode_ext + 1) * 4;
486
35.1k
    else
487
35.1k
        bound = sblimit;
488
489
93.9k
    ff_dlog(s->avctx, "bound=%d sblimit=%d\n", bound, sblimit);
490
491
    /* sanity check */
492
93.9k
    if (bound > sblimit)
493
9.91k
        bound = sblimit;
494
495
    /* parse bit allocation */
496
93.9k
    j = 0;
497
1.09M
    for (i = 0; i < bound; i++) {
498
999k
        bit_alloc_bits = alloc_table[j];
499
2.69M
        for (ch = 0; ch < s->nb_channels; ch++)
500
1.69M
            bit_alloc[ch][i] = get_bits(&s->gb, bit_alloc_bits);
501
999k
        j += 1 << bit_alloc_bits;
502
999k
    }
503
450k
    for (i = bound; i < sblimit; i++) {
504
357k
        bit_alloc_bits = alloc_table[j];
505
357k
        v = get_bits(&s->gb, bit_alloc_bits);
506
357k
        bit_alloc[0][i] = v;
507
357k
        bit_alloc[1][i] = v;
508
357k
        j += 1 << bit_alloc_bits;
509
357k
    }
510
511
    /* scale codes */
512
1.45M
    for (i = 0; i < sblimit; i++) {
513
3.76M
        for (ch = 0; ch < s->nb_channels; ch++) {
514
2.40M
            if (bit_alloc[ch][i])
515
382k
                scale_code[ch][i] = get_bits(&s->gb, 2);
516
2.40M
        }
517
1.35M
    }
518
519
93.9k
    ret = handle_crc(s, get_bits_count(&s->gb) - 16);
520
93.9k
    if (ret < 0)
521
2.03k
        return ret;
522
523
    /* scale factors */
524
1.41M
    for (i = 0; i < sblimit; i++) {
525
3.67M
        for (ch = 0; ch < s->nb_channels; ch++) {
526
2.34M
            if (bit_alloc[ch][i]) {
527
372k
                sf = scale_factors[ch][i];
528
372k
                switch (scale_code[ch][i]) {
529
0
                default:
530
173k
                case 0:
531
173k
                    sf[0] = get_bits(&s->gb, 6);
532
173k
                    sf[1] = get_bits(&s->gb, 6);
533
173k
                    sf[2] = get_bits(&s->gb, 6);
534
173k
                    break;
535
39.9k
                case 2:
536
39.9k
                    sf[0] = get_bits(&s->gb, 6);
537
39.9k
                    sf[1] = sf[0];
538
39.9k
                    sf[2] = sf[0];
539
39.9k
                    break;
540
87.4k
                case 1:
541
87.4k
                    sf[0] = get_bits(&s->gb, 6);
542
87.4k
                    sf[2] = get_bits(&s->gb, 6);
543
87.4k
                    sf[1] = sf[0];
544
87.4k
                    break;
545
72.4k
                case 3:
546
72.4k
                    sf[0] = get_bits(&s->gb, 6);
547
72.4k
                    sf[2] = get_bits(&s->gb, 6);
548
72.4k
                    sf[1] = sf[2];
549
72.4k
                    break;
550
372k
                }
551
372k
            }
552
2.34M
        }
553
1.32M
    }
554
555
    /* samples */
556
367k
    for (k = 0; k < 3; k++) {
557
1.37M
        for (l = 0; l < 12; l += 3) {
558
1.10M
            j = 0;
559
12.8M
            for (i = 0; i < bound; i++) {
560
11.7M
                bit_alloc_bits = alloc_table[j];
561
31.4M
                for (ch = 0; ch < s->nb_channels; ch++) {
562
19.7M
                    b = bit_alloc[ch][i];
563
19.7M
                    if (b) {
564
3.35M
                        scale = scale_factors[ch][i][k];
565
3.35M
                        qindex = alloc_table[j+b];
566
3.35M
                        bits = ff_mpa_quant_bits[qindex];
567
3.35M
                        if (bits < 0) {
568
1.37M
                            int v2;
569
                            /* 3 values at the same time */
570
1.37M
                            v = get_bits(&s->gb, -bits);
571
1.37M
                            v2 = ff_division_tabs[qindex][v];
572
1.37M
                            steps  = ff_mpa_quant_steps[qindex];
573
574
1.37M
                            s->sb_samples[ch][k * 12 + l + 0][i] =
575
1.37M
                                l2_unscale_group(steps,  v2       & 15, scale);
576
1.37M
                            s->sb_samples[ch][k * 12 + l + 1][i] =
577
1.37M
                                l2_unscale_group(steps, (v2 >> 4) & 15, scale);
578
1.37M
                            s->sb_samples[ch][k * 12 + l + 2][i] =
579
1.37M
                                l2_unscale_group(steps,  v2 >> 8      , scale);
580
1.97M
                        } else {
581
7.90M
                            for (m = 0; m < 3; m++) {
582
5.92M
                                v = get_bits(&s->gb, bits);
583
5.92M
                                v = l1_unscale(bits - 1, v, scale);
584
5.92M
                                s->sb_samples[ch][k * 12 + l + m][i] = v;
585
5.92M
                            }
586
1.97M
                        }
587
16.4M
                    } else {
588
16.4M
                        s->sb_samples[ch][k * 12 + l + 0][i] = 0;
589
16.4M
                        s->sb_samples[ch][k * 12 + l + 1][i] = 0;
590
16.4M
                        s->sb_samples[ch][k * 12 + l + 2][i] = 0;
591
16.4M
                    }
592
19.7M
                }
593
                /* next subband in alloc table */
594
11.7M
                j += 1 << bit_alloc_bits;
595
11.7M
            }
596
            /* XXX: find a way to avoid this duplication of code */
597
5.29M
            for (i = bound; i < sblimit; i++) {
598
4.19M
                bit_alloc_bits = alloc_table[j];
599
4.19M
                b = bit_alloc[0][i];
600
4.19M
                if (b) {
601
561k
                    int mant, scale0, scale1;
602
561k
                    scale0 = scale_factors[0][i][k];
603
561k
                    scale1 = scale_factors[1][i][k];
604
561k
                    qindex = alloc_table[j + b];
605
561k
                    bits = ff_mpa_quant_bits[qindex];
606
561k
                    if (bits < 0) {
607
                        /* 3 values at the same time */
608
404k
                        v = get_bits(&s->gb, -bits);
609
404k
                        steps = ff_mpa_quant_steps[qindex];
610
404k
                        mant = v % steps;
611
404k
                        v = v / steps;
612
404k
                        s->sb_samples[0][k * 12 + l + 0][i] =
613
404k
                            l2_unscale_group(steps, mant, scale0);
614
404k
                        s->sb_samples[1][k * 12 + l + 0][i] =
615
404k
                            l2_unscale_group(steps, mant, scale1);
616
404k
                        mant = v % steps;
617
404k
                        v = v / steps;
618
404k
                        s->sb_samples[0][k * 12 + l + 1][i] =
619
404k
                            l2_unscale_group(steps, mant, scale0);
620
404k
                        s->sb_samples[1][k * 12 + l + 1][i] =
621
404k
                            l2_unscale_group(steps, mant, scale1);
622
404k
                        s->sb_samples[0][k * 12 + l + 2][i] =
623
404k
                            l2_unscale_group(steps, v, scale0);
624
404k
                        s->sb_samples[1][k * 12 + l + 2][i] =
625
404k
                            l2_unscale_group(steps, v, scale1);
626
404k
                    } else {
627
631k
                        for (m = 0; m < 3; m++) {
628
473k
                            mant = get_bits(&s->gb, bits);
629
473k
                            s->sb_samples[0][k * 12 + l + m][i] =
630
473k
                                l1_unscale(bits - 1, mant, scale0);
631
473k
                            s->sb_samples[1][k * 12 + l + m][i] =
632
473k
                                l1_unscale(bits - 1, mant, scale1);
633
473k
                        }
634
157k
                    }
635
3.63M
                } else {
636
3.63M
                    s->sb_samples[0][k * 12 + l + 0][i] = 0;
637
3.63M
                    s->sb_samples[0][k * 12 + l + 1][i] = 0;
638
3.63M
                    s->sb_samples[0][k * 12 + l + 2][i] = 0;
639
3.63M
                    s->sb_samples[1][k * 12 + l + 0][i] = 0;
640
3.63M
                    s->sb_samples[1][k * 12 + l + 1][i] = 0;
641
3.63M
                    s->sb_samples[1][k * 12 + l + 2][i] = 0;
642
3.63M
                }
643
                /* next subband in alloc table */
644
4.19M
                j += 1 << bit_alloc_bits;
645
4.19M
            }
646
            /* fill remaining samples to zero */
647
20.4M
            for (i = sblimit; i < SBLIMIT; i++) {
648
57.1M
                for (ch = 0; ch < s->nb_channels; ch++) {
649
37.7M
                    s->sb_samples[ch][k * 12 + l + 0][i] = 0;
650
37.7M
                    s->sb_samples[ch][k * 12 + l + 1][i] = 0;
651
37.7M
                    s->sb_samples[ch][k * 12 + l + 2][i] = 0;
652
37.7M
                }
653
19.3M
            }
654
1.10M
        }
655
275k
    }
656
91.9k
    return 3 * 12;
657
91.9k
}
658
659
#define SPLIT(dst,sf,n)             \
660
11.1M
    if (n == 3) {                   \
661
25.9k
        int m = (sf * 171) >> 9;    \
662
25.9k
        dst   = sf - 3 * m;         \
663
25.9k
        sf    = m;                  \
664
11.0M
    } else if (n == 4) {            \
665
4.22M
        dst  = sf & 3;              \
666
4.22M
        sf >>= 2;                   \
667
6.85M
    } else if (n == 5) {            \
668
2.32M
        int m = (sf * 205) >> 10;   \
669
2.32M
        dst   = sf - 5 * m;         \
670
2.32M
        sf    = m;                  \
671
4.52M
    } else if (n == 6) {            \
672
2.51M
        int m = (sf * 171) >> 10;   \
673
2.51M
        dst   = sf - 6 * m;         \
674
2.51M
        sf    = m;                  \
675
2.51M
    } else {                        \
676
2.01M
        dst = 0;                    \
677
2.01M
    }
678
679
static av_always_inline void lsf_sf_expand(int *slen, int sf, int n1, int n2,
680
                                           int n3)
681
3.70M
{
682
3.70M
    SPLIT(slen[3], sf, n3)
683
3.70M
    SPLIT(slen[2], sf, n2)
684
3.70M
    SPLIT(slen[1], sf, n1)
685
3.70M
    slen[0] = sf;
686
3.70M
}
mpegaudiodec_float.c:lsf_sf_expand
Line
Count
Source
681
1.76M
{
682
1.76M
    SPLIT(slen[3], sf, n3)
683
1.76M
    SPLIT(slen[2], sf, n2)
684
1.76M
    SPLIT(slen[1], sf, n1)
685
1.76M
    slen[0] = sf;
686
1.76M
}
mpegaudiodec_fixed.c:lsf_sf_expand
Line
Count
Source
681
1.94M
{
682
1.94M
    SPLIT(slen[3], sf, n3)
683
1.94M
    SPLIT(slen[2], sf, n2)
684
1.94M
    SPLIT(slen[1], sf, n1)
685
1.94M
    slen[0] = sf;
686
1.94M
}
687
688
static void exponents_from_scale_factors(MPADecodeContext *s, GranuleDef *g,
689
                                         int16_t *exponents)
690
4.89M
{
691
4.89M
    const uint8_t *bstab, *pretab;
692
4.89M
    int len, i, j, k, l, v0, shift, gain, gains[3];
693
4.89M
    int16_t *exp_ptr;
694
695
4.89M
    exp_ptr = exponents;
696
4.89M
    gain    = g->global_gain - 210;
697
4.89M
    shift   = g->scalefac_scale + 1;
698
699
4.89M
    bstab  = ff_band_size_long[s->sample_rate_index];
700
4.89M
    pretab = ff_mpa_pretab[g->preflag];
701
98.9M
    for (i = 0; i < g->long_end; i++) {
702
94.0M
        v0 = gain - ((g->scale_factors[i] + pretab[i]) << shift) + 400;
703
94.0M
        len = bstab[i];
704
2.46G
        for (j = len; j > 0; j--)
705
2.37G
            *exp_ptr++ = v0;
706
94.0M
    }
707
708
4.89M
    if (g->short_start < 13) {
709
822k
        bstab    = ff_band_size_short[s->sample_rate_index];
710
822k
        gains[0] = gain - (g->subblock_gain[0] << 3);
711
822k
        gains[1] = gain - (g->subblock_gain[1] << 3);
712
822k
        gains[2] = gain - (g->subblock_gain[2] << 3);
713
822k
        k        = g->long_end;
714
9.29M
        for (i = g->short_start; i < 13; i++) {
715
8.47M
            len = bstab[i];
716
33.9M
            for (l = 0; l < 3; l++) {
717
25.4M
                v0 = gains[l] - (g->scale_factors[k++] << shift) + 400;
718
472M
                for (j = len; j > 0; j--)
719
446M
                    *exp_ptr++ = v0;
720
25.4M
            }
721
8.47M
        }
722
822k
    }
723
4.89M
}
mpegaudiodec_float.c:exponents_from_scale_factors
Line
Count
Source
690
2.19M
{
691
2.19M
    const uint8_t *bstab, *pretab;
692
2.19M
    int len, i, j, k, l, v0, shift, gain, gains[3];
693
2.19M
    int16_t *exp_ptr;
694
695
2.19M
    exp_ptr = exponents;
696
2.19M
    gain    = g->global_gain - 210;
697
2.19M
    shift   = g->scalefac_scale + 1;
698
699
2.19M
    bstab  = ff_band_size_long[s->sample_rate_index];
700
2.19M
    pretab = ff_mpa_pretab[g->preflag];
701
42.4M
    for (i = 0; i < g->long_end; i++) {
702
40.2M
        v0 = gain - ((g->scale_factors[i] + pretab[i]) << shift) + 400;
703
40.2M
        len = bstab[i];
704
1.04G
        for (j = len; j > 0; j--)
705
1.00G
            *exp_ptr++ = v0;
706
40.2M
    }
707
708
2.19M
    if (g->short_start < 13) {
709
484k
        bstab    = ff_band_size_short[s->sample_rate_index];
710
484k
        gains[0] = gain - (g->subblock_gain[0] << 3);
711
484k
        gains[1] = gain - (g->subblock_gain[1] << 3);
712
484k
        gains[2] = gain - (g->subblock_gain[2] << 3);
713
484k
        k        = g->long_end;
714
5.52M
        for (i = g->short_start; i < 13; i++) {
715
5.03M
            len = bstab[i];
716
20.1M
            for (l = 0; l < 3; l++) {
717
15.1M
                v0 = gains[l] - (g->scale_factors[k++] << shift) + 400;
718
278M
                for (j = len; j > 0; j--)
719
263M
                    *exp_ptr++ = v0;
720
15.1M
            }
721
5.03M
        }
722
484k
    }
723
2.19M
}
mpegaudiodec_fixed.c:exponents_from_scale_factors
Line
Count
Source
690
2.69M
{
691
2.69M
    const uint8_t *bstab, *pretab;
692
2.69M
    int len, i, j, k, l, v0, shift, gain, gains[3];
693
2.69M
    int16_t *exp_ptr;
694
695
2.69M
    exp_ptr = exponents;
696
2.69M
    gain    = g->global_gain - 210;
697
2.69M
    shift   = g->scalefac_scale + 1;
698
699
2.69M
    bstab  = ff_band_size_long[s->sample_rate_index];
700
2.69M
    pretab = ff_mpa_pretab[g->preflag];
701
56.4M
    for (i = 0; i < g->long_end; i++) {
702
53.7M
        v0 = gain - ((g->scale_factors[i] + pretab[i]) << shift) + 400;
703
53.7M
        len = bstab[i];
704
1.42G
        for (j = len; j > 0; j--)
705
1.36G
            *exp_ptr++ = v0;
706
53.7M
    }
707
708
2.69M
    if (g->short_start < 13) {
709
337k
        bstab    = ff_band_size_short[s->sample_rate_index];
710
337k
        gains[0] = gain - (g->subblock_gain[0] << 3);
711
337k
        gains[1] = gain - (g->subblock_gain[1] << 3);
712
337k
        gains[2] = gain - (g->subblock_gain[2] << 3);
713
337k
        k        = g->long_end;
714
3.77M
        for (i = g->short_start; i < 13; i++) {
715
3.43M
            len = bstab[i];
716
13.7M
            for (l = 0; l < 3; l++) {
717
10.3M
                v0 = gains[l] - (g->scale_factors[k++] << shift) + 400;
718
193M
                for (j = len; j > 0; j--)
719
183M
                    *exp_ptr++ = v0;
720
10.3M
            }
721
3.43M
        }
722
337k
    }
723
2.69M
}
724
725
static void switch_buffer(MPADecodeContext *s, int *pos, int *end_pos,
726
                          int *end_pos2)
727
11.8M
{
728
11.8M
    if (s->in_gb.buffer && *pos >= s->gb.size_in_bits - s->extrasize * 8) {
729
1.20M
        s->gb           = s->in_gb;
730
1.20M
        s->in_gb.buffer = NULL;
731
1.20M
        s->extrasize    = 0;
732
1.20M
        av_assert2((get_bits_count(&s->gb) & 7) == 0);
733
1.20M
        skip_bits_long(&s->gb, *pos - *end_pos);
734
1.20M
        *end_pos2 =
735
1.20M
        *end_pos  = *end_pos2 + get_bits_count(&s->gb) - *pos;
736
1.20M
        *pos      = get_bits_count(&s->gb);
737
1.20M
    }
738
11.8M
}
mpegaudiodec_float.c:switch_buffer
Line
Count
Source
727
5.29M
{
728
5.29M
    if (s->in_gb.buffer && *pos >= s->gb.size_in_bits - s->extrasize * 8) {
729
640k
        s->gb           = s->in_gb;
730
640k
        s->in_gb.buffer = NULL;
731
640k
        s->extrasize    = 0;
732
640k
        av_assert2((get_bits_count(&s->gb) & 7) == 0);
733
640k
        skip_bits_long(&s->gb, *pos - *end_pos);
734
640k
        *end_pos2 =
735
640k
        *end_pos  = *end_pos2 + get_bits_count(&s->gb) - *pos;
736
640k
        *pos      = get_bits_count(&s->gb);
737
640k
    }
738
5.29M
}
mpegaudiodec_fixed.c:switch_buffer
Line
Count
Source
727
6.60M
{
728
6.60M
    if (s->in_gb.buffer && *pos >= s->gb.size_in_bits - s->extrasize * 8) {
729
563k
        s->gb           = s->in_gb;
730
563k
        s->in_gb.buffer = NULL;
731
563k
        s->extrasize    = 0;
732
563k
        av_assert2((get_bits_count(&s->gb) & 7) == 0);
733
563k
        skip_bits_long(&s->gb, *pos - *end_pos);
734
563k
        *end_pos2 =
735
563k
        *end_pos  = *end_pos2 + get_bits_count(&s->gb) - *pos;
736
563k
        *pos      = get_bits_count(&s->gb);
737
563k
    }
738
6.60M
}
739
740
/* Following is an optimized code for
741
            INTFLOAT v = *src
742
            if(get_bits1(&s->gb))
743
                v = -v;
744
            *dst = v;
745
*/
746
#if USE_FLOATS
747
#define READ_FLIP_SIGN(dst,src)                     \
748
9.25M
    v = AV_RN32A(src) ^ (get_bits1(&s->gb) << 31);  \
749
9.25M
    AV_WN32A(dst, v);
750
#else
751
#define READ_FLIP_SIGN(dst,src)     \
752
4.15M
    v      = -get_bits1(&s->gb);    \
753
4.15M
    *(dst) = (*(src) ^ v) - v;
754
#endif
755
756
static int huffman_decode(MPADecodeContext *s, GranuleDef *g,
757
                          int16_t *exponents, int end_pos2)
758
4.89M
{
759
4.89M
    int s_index;
760
4.89M
    int i;
761
4.89M
    int last_pos, bits_left;
762
4.89M
    VLC *vlc;
763
4.89M
    int end_pos = FFMIN(end_pos2, s->gb.size_in_bits - s->extrasize * 8);
764
765
    /* low frequencies (called big values) */
766
4.89M
    s_index = 0;
767
19.5M
    for (i = 0; i < 3; i++) {
768
14.6M
        const VLCElem *vlctab;
769
14.6M
        int j, k, l, linbits;
770
14.6M
        j = g->region_size[i];
771
14.6M
        if (j == 0)
772
9.63M
            continue;
773
        /* select vlc table */
774
5.03M
        k       = g->table_select[i];
775
5.03M
        l       = ff_mpa_huff_data[k][0];
776
5.03M
        linbits = ff_mpa_huff_data[k][1];
777
778
5.03M
        if (!l) {
779
2.82M
            memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid) * 2 * j);
780
2.82M
            s_index += 2 * j;
781
2.82M
            continue;
782
2.82M
        }
783
2.21M
        vlctab  = ff_huff_vlc[l];
784
785
        /* read huffcode and compute each couple */
786
5.86M
        for (; j > 0; j--) {
787
5.79M
            int exponent, x, y;
788
5.79M
            int v;
789
5.79M
            int pos = get_bits_count(&s->gb);
790
791
5.79M
            if (pos >= end_pos){
792
2.16M
                switch_buffer(s, &pos, &end_pos, &end_pos2);
793
2.16M
                if (pos >= end_pos)
794
2.14M
                    break;
795
2.16M
            }
796
3.64M
            y = get_vlc2(&s->gb, vlctab, 7, 3);
797
798
3.64M
            if (!y) {
799
1.10M
                g->sb_hybrid[s_index    ] =
800
1.10M
                g->sb_hybrid[s_index + 1] = 0;
801
1.10M
                s_index += 2;
802
1.10M
                continue;
803
1.10M
            }
804
805
2.54M
            exponent= exponents[s_index];
806
807
2.54M
            ff_dlog(s->avctx, "region=%d n=%d y=%d exp=%d\n",
808
2.54M
                    i, g->region_size[i] - j, y, exponent);
809
2.54M
            if (y & 16) {
810
2.10M
                x = y >> 5;
811
2.10M
                y = y & 0x0f;
812
2.10M
                if (x < 15) {
813
1.86M
                    READ_FLIP_SIGN(g->sb_hybrid + s_index, RENAME(expval_table)[exponent] + x)
814
1.86M
                } else {
815
241k
                    x += get_bitsz(&s->gb, linbits);
816
241k
                    v  = l3_unscale(x, exponent);
817
241k
                    if (get_bits1(&s->gb))
818
45.7k
                        v = -v;
819
241k
                    g->sb_hybrid[s_index] = v;
820
241k
                }
821
2.10M
                if (y < 15) {
822
1.09M
                    READ_FLIP_SIGN(g->sb_hybrid + s_index + 1, RENAME(expval_table)[exponent] + y)
823
1.09M
                } else {
824
1.01M
                    y += get_bitsz(&s->gb, linbits);
825
1.01M
                    v  = l3_unscale(y, exponent);
826
1.01M
                    if (get_bits1(&s->gb))
827
70.8k
                        v = -v;
828
1.01M
                    g->sb_hybrid[s_index + 1] = v;
829
1.01M
                }
830
2.10M
            } else {
831
439k
                x = y >> 5;
832
439k
                y = y & 0x0f;
833
439k
                x += y;
834
439k
                if (x < 15) {
835
407k
                    READ_FLIP_SIGN(g->sb_hybrid + s_index + !!y, RENAME(expval_table)[exponent] + x)
836
407k
                } else {
837
31.5k
                    x += get_bitsz(&s->gb, linbits);
838
31.5k
                    v  = l3_unscale(x, exponent);
839
31.5k
                    if (get_bits1(&s->gb))
840
10.3k
                        v = -v;
841
31.5k
                    g->sb_hybrid[s_index+!!y] = v;
842
31.5k
                }
843
439k
                g->sb_hybrid[s_index + !y] = 0;
844
439k
            }
845
2.54M
            s_index += 2;
846
2.54M
        }
847
2.21M
    }
848
849
    /* high frequencies */
850
4.89M
    vlc = &ff_huff_quad_vlc[g->count1table_select];
851
4.89M
    last_pos = 0;
852
19.8M
    while (s_index <= 572) {
853
19.7M
        int pos, code;
854
19.7M
        pos = get_bits_count(&s->gb);
855
19.7M
        if (pos >= end_pos) {
856
4.85M
            if (pos > end_pos2 && last_pos) {
857
                /* some encoders generate an incorrect size for this
858
                   part. We must go back into the data */
859
20.4k
                s_index -= 4;
860
20.4k
                skip_bits_long(&s->gb, last_pos - pos);
861
20.4k
                av_log(s->avctx, AV_LOG_INFO, "overread, skip %d enddists: %d %d\n", last_pos - pos, end_pos-pos, end_pos2-pos);
862
20.4k
                if(s->err_recognition & (AV_EF_BITSTREAM|AV_EF_COMPLIANT))
863
6.92k
                    s_index=0;
864
20.4k
                break;
865
20.4k
            }
866
4.83M
            switch_buffer(s, &pos, &end_pos, &end_pos2);
867
4.83M
            if (pos >= end_pos)
868
4.75M
                break;
869
4.83M
        }
870
14.9M
        last_pos = pos;
871
872
14.9M
        code = get_vlc2(&s->gb, vlc->table, vlc->bits, 1);
873
14.9M
        ff_dlog(s->avctx, "t=%d code=%d\n", g->count1table_select, code);
874
14.9M
        g->sb_hybrid[s_index + 0] =
875
14.9M
        g->sb_hybrid[s_index + 1] =
876
14.9M
        g->sb_hybrid[s_index + 2] =
877
14.9M
        g->sb_hybrid[s_index + 3] = 0;
878
25.0M
        while (code) {
879
10.0M
            static const int idxtab[16] = { 3,3,2,2,1,1,1,1,0,0,0,0,0,0,0,0 };
880
10.0M
            int v;
881
10.0M
            int pos = s_index + idxtab[code];
882
10.0M
            code   ^= 8 >> idxtab[code];
883
10.0M
            READ_FLIP_SIGN(g->sb_hybrid + pos, RENAME(exp_table)+exponents[pos])
884
10.0M
        }
885
14.9M
        s_index += 4;
886
14.9M
    }
887
    /* skip extension bits */
888
4.89M
    bits_left = end_pos2 - get_bits_count(&s->gb);
889
4.89M
    if (bits_left < 0 && (s->err_recognition & (AV_EF_BUFFER|AV_EF_COMPLIANT))) {
890
1.18M
        av_log(s->avctx, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
891
1.18M
        s_index=0;
892
3.70M
    } else if (bits_left > 0 && (s->err_recognition & (AV_EF_BUFFER|AV_EF_AGGRESSIVE))) {
893
160k
        av_log(s->avctx, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
894
160k
        s_index = 0;
895
160k
    }
896
4.89M
    memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid) * (576 - s_index));
897
4.89M
    skip_bits_long(&s->gb, bits_left);
898
899
4.89M
    i = get_bits_count(&s->gb);
900
4.89M
    switch_buffer(s, &i, &end_pos, &end_pos2);
901
902
4.89M
    return 0;
903
4.89M
}
mpegaudiodec_float.c:huffman_decode
Line
Count
Source
758
2.19M
{
759
2.19M
    int s_index;
760
2.19M
    int i;
761
2.19M
    int last_pos, bits_left;
762
2.19M
    VLC *vlc;
763
2.19M
    int end_pos = FFMIN(end_pos2, s->gb.size_in_bits - s->extrasize * 8);
764
765
    /* low frequencies (called big values) */
766
2.19M
    s_index = 0;
767
8.79M
    for (i = 0; i < 3; i++) {
768
6.59M
        const VLCElem *vlctab;
769
6.59M
        int j, k, l, linbits;
770
6.59M
        j = g->region_size[i];
771
6.59M
        if (j == 0)
772
4.32M
            continue;
773
        /* select vlc table */
774
2.27M
        k       = g->table_select[i];
775
2.27M
        l       = ff_mpa_huff_data[k][0];
776
2.27M
        linbits = ff_mpa_huff_data[k][1];
777
778
2.27M
        if (!l) {
779
1.31M
            memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid) * 2 * j);
780
1.31M
            s_index += 2 * j;
781
1.31M
            continue;
782
1.31M
        }
783
957k
        vlctab  = ff_huff_vlc[l];
784
785
        /* read huffcode and compute each couple */
786
2.95M
        for (; j > 0; j--) {
787
2.91M
            int exponent, x, y;
788
2.91M
            int v;
789
2.91M
            int pos = get_bits_count(&s->gb);
790
791
2.91M
            if (pos >= end_pos){
792
932k
                switch_buffer(s, &pos, &end_pos, &end_pos2);
793
932k
                if (pos >= end_pos)
794
917k
                    break;
795
932k
            }
796
1.99M
            y = get_vlc2(&s->gb, vlctab, 7, 3);
797
798
1.99M
            if (!y) {
799
589k
                g->sb_hybrid[s_index    ] =
800
589k
                g->sb_hybrid[s_index + 1] = 0;
801
589k
                s_index += 2;
802
589k
                continue;
803
589k
            }
804
805
1.40M
            exponent= exponents[s_index];
806
807
1.40M
            ff_dlog(s->avctx, "region=%d n=%d y=%d exp=%d\n",
808
1.40M
                    i, g->region_size[i] - j, y, exponent);
809
1.40M
            if (y & 16) {
810
1.21M
                x = y >> 5;
811
1.21M
                y = y & 0x0f;
812
1.21M
                if (x < 15) {
813
1.06M
                    READ_FLIP_SIGN(g->sb_hybrid + s_index, RENAME(expval_table)[exponent] + x)
814
1.06M
                } else {
815
154k
                    x += get_bitsz(&s->gb, linbits);
816
154k
                    v  = l3_unscale(x, exponent);
817
154k
                    if (get_bits1(&s->gb))
818
21.1k
                        v = -v;
819
154k
                    g->sb_hybrid[s_index] = v;
820
154k
                }
821
1.21M
                if (y < 15) {
822
562k
                    READ_FLIP_SIGN(g->sb_hybrid + s_index + 1, RENAME(expval_table)[exponent] + y)
823
652k
                } else {
824
652k
                    y += get_bitsz(&s->gb, linbits);
825
652k
                    v  = l3_unscale(y, exponent);
826
652k
                    if (get_bits1(&s->gb))
827
40.9k
                        v = -v;
828
652k
                    g->sb_hybrid[s_index + 1] = v;
829
652k
                }
830
1.21M
            } else {
831
188k
                x = y >> 5;
832
188k
                y = y & 0x0f;
833
188k
                x += y;
834
188k
                if (x < 15) {
835
174k
                    READ_FLIP_SIGN(g->sb_hybrid + s_index + !!y, RENAME(expval_table)[exponent] + x)
836
174k
                } else {
837
14.5k
                    x += get_bitsz(&s->gb, linbits);
838
14.5k
                    v  = l3_unscale(x, exponent);
839
14.5k
                    if (get_bits1(&s->gb))
840
2.82k
                        v = -v;
841
14.5k
                    g->sb_hybrid[s_index+!!y] = v;
842
14.5k
                }
843
188k
                g->sb_hybrid[s_index + !y] = 0;
844
188k
            }
845
1.40M
            s_index += 2;
846
1.40M
        }
847
957k
    }
848
849
    /* high frequencies */
850
2.19M
    vlc = &ff_huff_quad_vlc[g->count1table_select];
851
2.19M
    last_pos = 0;
852
15.9M
    while (s_index <= 572) {
853
15.8M
        int pos, code;
854
15.8M
        pos = get_bits_count(&s->gb);
855
15.8M
        if (pos >= end_pos) {
856
2.17M
            if (pos > end_pos2 && last_pos) {
857
                /* some encoders generate an incorrect size for this
858
                   part. We must go back into the data */
859
9.71k
                s_index -= 4;
860
9.71k
                skip_bits_long(&s->gb, last_pos - pos);
861
9.71k
                av_log(s->avctx, AV_LOG_INFO, "overread, skip %d enddists: %d %d\n", last_pos - pos, end_pos-pos, end_pos2-pos);
862
9.71k
                if(s->err_recognition & (AV_EF_BITSTREAM|AV_EF_COMPLIANT))
863
3.19k
                    s_index=0;
864
9.71k
                break;
865
9.71k
            }
866
2.16M
            switch_buffer(s, &pos, &end_pos, &end_pos2);
867
2.16M
            if (pos >= end_pos)
868
2.08M
                break;
869
2.16M
        }
870
13.7M
        last_pos = pos;
871
872
13.7M
        code = get_vlc2(&s->gb, vlc->table, vlc->bits, 1);
873
13.7M
        ff_dlog(s->avctx, "t=%d code=%d\n", g->count1table_select, code);
874
13.7M
        g->sb_hybrid[s_index + 0] =
875
13.7M
        g->sb_hybrid[s_index + 1] =
876
13.7M
        g->sb_hybrid[s_index + 2] =
877
13.7M
        g->sb_hybrid[s_index + 3] = 0;
878
21.2M
        while (code) {
879
7.46M
            static const int idxtab[16] = { 3,3,2,2,1,1,1,1,0,0,0,0,0,0,0,0 };
880
7.46M
            int v;
881
7.46M
            int pos = s_index + idxtab[code];
882
7.46M
            code   ^= 8 >> idxtab[code];
883
7.46M
            READ_FLIP_SIGN(g->sb_hybrid + pos, RENAME(exp_table)+exponents[pos])
884
7.46M
        }
885
13.7M
        s_index += 4;
886
13.7M
    }
887
    /* skip extension bits */
888
2.19M
    bits_left = end_pos2 - get_bits_count(&s->gb);
889
2.19M
    if (bits_left < 0 && (s->err_recognition & (AV_EF_BUFFER|AV_EF_COMPLIANT))) {
890
532k
        av_log(s->avctx, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
891
532k
        s_index=0;
892
1.66M
    } else if (bits_left > 0 && (s->err_recognition & (AV_EF_BUFFER|AV_EF_AGGRESSIVE))) {
893
129k
        av_log(s->avctx, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
894
129k
        s_index = 0;
895
129k
    }
896
2.19M
    memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid) * (576 - s_index));
897
2.19M
    skip_bits_long(&s->gb, bits_left);
898
899
2.19M
    i = get_bits_count(&s->gb);
900
2.19M
    switch_buffer(s, &i, &end_pos, &end_pos2);
901
902
2.19M
    return 0;
903
2.19M
}
mpegaudiodec_fixed.c:huffman_decode
Line
Count
Source
758
2.69M
{
759
2.69M
    int s_index;
760
2.69M
    int i;
761
2.69M
    int last_pos, bits_left;
762
2.69M
    VLC *vlc;
763
2.69M
    int end_pos = FFMIN(end_pos2, s->gb.size_in_bits - s->extrasize * 8);
764
765
    /* low frequencies (called big values) */
766
2.69M
    s_index = 0;
767
10.7M
    for (i = 0; i < 3; i++) {
768
8.08M
        const VLCElem *vlctab;
769
8.08M
        int j, k, l, linbits;
770
8.08M
        j = g->region_size[i];
771
8.08M
        if (j == 0)
772
5.31M
            continue;
773
        /* select vlc table */
774
2.76M
        k       = g->table_select[i];
775
2.76M
        l       = ff_mpa_huff_data[k][0];
776
2.76M
        linbits = ff_mpa_huff_data[k][1];
777
778
2.76M
        if (!l) {
779
1.50M
            memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid) * 2 * j);
780
1.50M
            s_index += 2 * j;
781
1.50M
            continue;
782
1.50M
        }
783
1.25M
        vlctab  = ff_huff_vlc[l];
784
785
        /* read huffcode and compute each couple */
786
2.91M
        for (; j > 0; j--) {
787
2.88M
            int exponent, x, y;
788
2.88M
            int v;
789
2.88M
            int pos = get_bits_count(&s->gb);
790
791
2.88M
            if (pos >= end_pos){
792
1.23M
                switch_buffer(s, &pos, &end_pos, &end_pos2);
793
1.23M
                if (pos >= end_pos)
794
1.23M
                    break;
795
1.23M
            }
796
1.65M
            y = get_vlc2(&s->gb, vlctab, 7, 3);
797
798
1.65M
            if (!y) {
799
510k
                g->sb_hybrid[s_index    ] =
800
510k
                g->sb_hybrid[s_index + 1] = 0;
801
510k
                s_index += 2;
802
510k
                continue;
803
510k
            }
804
805
1.14M
            exponent= exponents[s_index];
806
807
1.14M
            ff_dlog(s->avctx, "region=%d n=%d y=%d exp=%d\n",
808
1.14M
                    i, g->region_size[i] - j, y, exponent);
809
1.14M
            if (y & 16) {
810
893k
                x = y >> 5;
811
893k
                y = y & 0x0f;
812
893k
                if (x < 15) {
813
806k
                    READ_FLIP_SIGN(g->sb_hybrid + s_index, RENAME(expval_table)[exponent] + x)
814
806k
                } else {
815
87.0k
                    x += get_bitsz(&s->gb, linbits);
816
87.0k
                    v  = l3_unscale(x, exponent);
817
87.0k
                    if (get_bits1(&s->gb))
818
24.5k
                        v = -v;
819
87.0k
                    g->sb_hybrid[s_index] = v;
820
87.0k
                }
821
893k
                if (y < 15) {
822
528k
                    READ_FLIP_SIGN(g->sb_hybrid + s_index + 1, RENAME(expval_table)[exponent] + y)
823
528k
                } else {
824
365k
                    y += get_bitsz(&s->gb, linbits);
825
365k
                    v  = l3_unscale(y, exponent);
826
365k
                    if (get_bits1(&s->gb))
827
29.9k
                        v = -v;
828
365k
                    g->sb_hybrid[s_index + 1] = v;
829
365k
                }
830
893k
            } else {
831
250k
                x = y >> 5;
832
250k
                y = y & 0x0f;
833
250k
                x += y;
834
250k
                if (x < 15) {
835
233k
                    READ_FLIP_SIGN(g->sb_hybrid + s_index + !!y, RENAME(expval_table)[exponent] + x)
836
233k
                } else {
837
17.0k
                    x += get_bitsz(&s->gb, linbits);
838
17.0k
                    v  = l3_unscale(x, exponent);
839
17.0k
                    if (get_bits1(&s->gb))
840
7.55k
                        v = -v;
841
17.0k
                    g->sb_hybrid[s_index+!!y] = v;
842
17.0k
                }
843
250k
                g->sb_hybrid[s_index + !y] = 0;
844
250k
            }
845
1.14M
            s_index += 2;
846
1.14M
        }
847
1.25M
    }
848
849
    /* high frequencies */
850
2.69M
    vlc = &ff_huff_quad_vlc[g->count1table_select];
851
2.69M
    last_pos = 0;
852
3.87M
    while (s_index <= 572) {
853
3.86M
        int pos, code;
854
3.86M
        pos = get_bits_count(&s->gb);
855
3.86M
        if (pos >= end_pos) {
856
2.68M
            if (pos > end_pos2 && last_pos) {
857
                /* some encoders generate an incorrect size for this
858
                   part. We must go back into the data */
859
10.6k
                s_index -= 4;
860
10.6k
                skip_bits_long(&s->gb, last_pos - pos);
861
10.6k
                av_log(s->avctx, AV_LOG_INFO, "overread, skip %d enddists: %d %d\n", last_pos - pos, end_pos-pos, end_pos2-pos);
862
10.6k
                if(s->err_recognition & (AV_EF_BITSTREAM|AV_EF_COMPLIANT))
863
3.73k
                    s_index=0;
864
10.6k
                break;
865
10.6k
            }
866
2.67M
            switch_buffer(s, &pos, &end_pos, &end_pos2);
867
2.67M
            if (pos >= end_pos)
868
2.66M
                break;
869
2.67M
        }
870
1.18M
        last_pos = pos;
871
872
1.18M
        code = get_vlc2(&s->gb, vlc->table, vlc->bits, 1);
873
1.18M
        ff_dlog(s->avctx, "t=%d code=%d\n", g->count1table_select, code);
874
1.18M
        g->sb_hybrid[s_index + 0] =
875
1.18M
        g->sb_hybrid[s_index + 1] =
876
1.18M
        g->sb_hybrid[s_index + 2] =
877
1.18M
        g->sb_hybrid[s_index + 3] = 0;
878
3.77M
        while (code) {
879
2.58M
            static const int idxtab[16] = { 3,3,2,2,1,1,1,1,0,0,0,0,0,0,0,0 };
880
2.58M
            int v;
881
2.58M
            int pos = s_index + idxtab[code];
882
2.58M
            code   ^= 8 >> idxtab[code];
883
2.58M
            READ_FLIP_SIGN(g->sb_hybrid + pos, RENAME(exp_table)+exponents[pos])
884
2.58M
        }
885
1.18M
        s_index += 4;
886
1.18M
    }
887
    /* skip extension bits */
888
2.69M
    bits_left = end_pos2 - get_bits_count(&s->gb);
889
2.69M
    if (bits_left < 0 && (s->err_recognition & (AV_EF_BUFFER|AV_EF_COMPLIANT))) {
890
649k
        av_log(s->avctx, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
891
649k
        s_index=0;
892
2.04M
    } else if (bits_left > 0 && (s->err_recognition & (AV_EF_BUFFER|AV_EF_AGGRESSIVE))) {
893
30.3k
        av_log(s->avctx, AV_LOG_ERROR, "bits_left=%d\n", bits_left);
894
30.3k
        s_index = 0;
895
30.3k
    }
896
2.69M
    memset(&g->sb_hybrid[s_index], 0, sizeof(*g->sb_hybrid) * (576 - s_index));
897
2.69M
    skip_bits_long(&s->gb, bits_left);
898
899
2.69M
    i = get_bits_count(&s->gb);
900
2.69M
    switch_buffer(s, &i, &end_pos, &end_pos2);
901
902
2.69M
    return 0;
903
2.69M
}
904
905
/* Reorder short blocks from bitstream order to interleaved order. It
906
   would be faster to do it in parsing, but the code would be far more
907
   complicated */
908
static void reorder_block(MPADecodeContext *s, GranuleDef *g)
909
4.89M
{
910
4.89M
    int i, j, len;
911
4.89M
    INTFLOAT *ptr, *dst, *ptr1;
912
4.89M
    INTFLOAT tmp[576];
913
914
4.89M
    if (g->block_type != 2)
915
4.06M
        return;
916
917
822k
    if (g->switch_point) {
918
737k
        if (s->sample_rate_index != 8)
919
728k
            ptr = g->sb_hybrid + 36;
920
8.54k
        else
921
8.54k
            ptr = g->sb_hybrid + 72;
922
737k
    } else {
923
85.0k
        ptr = g->sb_hybrid;
924
85.0k
    }
925
926
9.29M
    for (i = g->short_start; i < 13; i++) {
927
8.47M
        len  = ff_band_size_short[s->sample_rate_index][i];
928
8.47M
        ptr1 = ptr;
929
8.47M
        dst  = tmp;
930
157M
        for (j = len; j > 0; j--) {
931
148M
            *dst++ = ptr[0*len];
932
148M
            *dst++ = ptr[1*len];
933
148M
            *dst++ = ptr[2*len];
934
148M
            ptr++;
935
148M
        }
936
8.47M
        ptr += 2 * len;
937
8.47M
        memcpy(ptr1, tmp, len * 3 * sizeof(*ptr1));
938
8.47M
    }
939
822k
}
mpegaudiodec_float.c:reorder_block
Line
Count
Source
909
2.19M
{
910
2.19M
    int i, j, len;
911
2.19M
    INTFLOAT *ptr, *dst, *ptr1;
912
2.19M
    INTFLOAT tmp[576];
913
914
2.19M
    if (g->block_type != 2)
915
1.71M
        return;
916
917
484k
    if (g->switch_point) {
918
418k
        if (s->sample_rate_index != 8)
919
413k
            ptr = g->sb_hybrid + 36;
920
5.31k
        else
921
5.31k
            ptr = g->sb_hybrid + 72;
922
418k
    } else {
923
65.6k
        ptr = g->sb_hybrid;
924
65.6k
    }
925
926
5.52M
    for (i = g->short_start; i < 13; i++) {
927
5.03M
        len  = ff_band_size_short[s->sample_rate_index][i];
928
5.03M
        ptr1 = ptr;
929
5.03M
        dst  = tmp;
930
92.9M
        for (j = len; j > 0; j--) {
931
87.8M
            *dst++ = ptr[0*len];
932
87.8M
            *dst++ = ptr[1*len];
933
87.8M
            *dst++ = ptr[2*len];
934
87.8M
            ptr++;
935
87.8M
        }
936
5.03M
        ptr += 2 * len;
937
5.03M
        memcpy(ptr1, tmp, len * 3 * sizeof(*ptr1));
938
5.03M
    }
939
484k
}
mpegaudiodec_fixed.c:reorder_block
Line
Count
Source
909
2.69M
{
910
2.69M
    int i, j, len;
911
2.69M
    INTFLOAT *ptr, *dst, *ptr1;
912
2.69M
    INTFLOAT tmp[576];
913
914
2.69M
    if (g->block_type != 2)
915
2.35M
        return;
916
917
337k
    if (g->switch_point) {
918
318k
        if (s->sample_rate_index != 8)
919
315k
            ptr = g->sb_hybrid + 36;
920
3.22k
        else
921
3.22k
            ptr = g->sb_hybrid + 72;
922
318k
    } else {
923
19.4k
        ptr = g->sb_hybrid;
924
19.4k
    }
925
926
3.77M
    for (i = g->short_start; i < 13; i++) {
927
3.43M
        len  = ff_band_size_short[s->sample_rate_index][i];
928
3.43M
        ptr1 = ptr;
929
3.43M
        dst  = tmp;
930
64.4M
        for (j = len; j > 0; j--) {
931
61.0M
            *dst++ = ptr[0*len];
932
61.0M
            *dst++ = ptr[1*len];
933
61.0M
            *dst++ = ptr[2*len];
934
61.0M
            ptr++;
935
61.0M
        }
936
3.43M
        ptr += 2 * len;
937
3.43M
        memcpy(ptr1, tmp, len * 3 * sizeof(*ptr1));
938
3.43M
    }
939
337k
}
940
941
#define ISQRT2 FIXR(0.70710678118654752440)
942
943
static void compute_stereo(MPADecodeContext *s, GranuleDef *g0, GranuleDef *g1)
944
1.98M
{
945
1.98M
    int i, j, k, l;
946
1.98M
    int sf_max, sf, len, non_zero_found;
947
1.98M
    INTFLOAT *tab0, *tab1, v1, v2;
948
1.98M
    const INTFLOAT (*is_tab)[16];
949
1.98M
    SUINTFLOAT tmp0, tmp1;
950
1.98M
    int non_zero_found_short[3];
951
952
    /* intensity stereo */
953
1.98M
    if (s->mode_ext & MODE_EXT_I_STEREO) {
954
1.61M
        if (!s->lsf) {
955
267k
            is_tab = is_table;
956
267k
            sf_max = 7;
957
1.34M
        } else {
958
1.34M
            is_tab = is_table_lsf[g1->scalefac_compress & 1];
959
1.34M
            sf_max = 16;
960
1.34M
        }
961
962
1.61M
        tab0 = g0->sb_hybrid + 576;
963
1.61M
        tab1 = g1->sb_hybrid + 576;
964
965
1.61M
        non_zero_found_short[0] = 0;
966
1.61M
        non_zero_found_short[1] = 0;
967
1.61M
        non_zero_found_short[2] = 0;
968
1.61M
        k = (13 - g1->short_start) * 3 + g1->long_end - 3;
969
2.81M
        for (i = 12; i >= g1->short_start; i--) {
970
            /* for last band, use previous scale factor */
971
1.19M
            if (i != 11)
972
1.08M
                k -= 3;
973
1.19M
            len = ff_band_size_short[s->sample_rate_index][i];
974
4.78M
            for (l = 2; l >= 0; l--) {
975
3.58M
                tab0 -= len;
976
3.58M
                tab1 -= len;
977
3.58M
                if (!non_zero_found_short[l]) {
978
                    /* test if non zero band. if so, stop doing i-stereo */
979
63.1M
                    for (j = 0; j < len; j++) {
980
59.7M
                        if (tab1[j] != 0) {
981
16.6k
                            non_zero_found_short[l] = 1;
982
16.6k
                            goto found1;
983
16.6k
                        }
984
59.7M
                    }
985
3.45M
                    sf = g1->scale_factors[k + l];
986
3.45M
                    if (sf >= sf_max)
987
77.1k
                        goto found1;
988
989
3.37M
                    v1 = is_tab[0][sf];
990
3.37M
                    v2 = is_tab[1][sf];
991
61.2M
                    for (j = 0; j < len; j++) {
992
57.9M
                        tmp0    = tab0[j];
993
57.9M
                        tab0[j] = MULLx(tmp0, v1, FRAC_BITS);
994
57.9M
                        tab1[j] = MULLx(tmp0, v2, FRAC_BITS);
995
57.9M
                    }
996
3.37M
                } else {
997
212k
found1:
998
212k
                    if (s->mode_ext & MODE_EXT_MS_STEREO) {
999
                        /* lower part of the spectrum : do ms stereo
1000
                           if enabled */
1001
1.31M
                        for (j = 0; j < len; j++) {
1002
1.23M
                            tmp0    = tab0[j];
1003
1.23M
                            tmp1    = tab1[j];
1004
1.23M
                            tab0[j] = MULLx(tmp0 + tmp1, ISQRT2, FRAC_BITS);
1005
1.23M
                            tab1[j] = MULLx(tmp0 - tmp1, ISQRT2, FRAC_BITS);
1006
1.23M
                        }
1007
83.9k
                    }
1008
212k
                }
1009
3.58M
            }
1010
1.19M
        }
1011
1012
1.61M
        non_zero_found = non_zero_found_short[0] |
1013
1.61M
                         non_zero_found_short[1] |
1014
1.61M
                         non_zero_found_short[2];
1015
1016
35.2M
        for (i = g1->long_end - 1;i >= 0;i--) {
1017
33.6M
            len   = ff_band_size_long[s->sample_rate_index][i];
1018
33.6M
            tab0 -= len;
1019
33.6M
            tab1 -= len;
1020
            /* test if non zero band. if so, stop doing i-stereo */
1021
33.6M
            if (!non_zero_found) {
1022
900M
                for (j = 0; j < len; j++) {
1023
867M
                    if (tab1[j] != 0) {
1024
11.1k
                        non_zero_found = 1;
1025
11.1k
                        goto found2;
1026
11.1k
                    }
1027
867M
                }
1028
                /* for last band, use previous scale factor */
1029
33.5M
                k  = (i == 21) ? 20 : i;
1030
33.5M
                sf = g1->scale_factors[k];
1031
33.5M
                if (sf >= sf_max)
1032
11.0k
                    goto found2;
1033
33.5M
                v1 = is_tab[0][sf];
1034
33.5M
                v2 = is_tab[1][sf];
1035
900M
                for (j = 0; j < len; j++) {
1036
867M
                    tmp0    = tab0[j];
1037
867M
                    tab0[j] = MULLx(tmp0, v1, FRAC_BITS);
1038
867M
                    tab1[j] = MULLx(tmp0, v2, FRAC_BITS);
1039
867M
                }
1040
33.5M
            } else {
1041
134k
found2:
1042
134k
                if (s->mode_ext & MODE_EXT_MS_STEREO) {
1043
                    /* lower part of the spectrum : do ms stereo
1044
                       if enabled */
1045
2.32M
                    for (j = 0; j < len; j++) {
1046
2.21M
                        tmp0    = tab0[j];
1047
2.21M
                        tmp1    = tab1[j];
1048
2.21M
                        tab0[j] = MULLx(tmp0 + tmp1, ISQRT2, FRAC_BITS);
1049
2.21M
                        tab1[j] = MULLx(tmp0 - tmp1, ISQRT2, FRAC_BITS);
1050
2.21M
                    }
1051
117k
                }
1052
134k
            }
1053
33.6M
        }
1054
1.61M
    } else if (s->mode_ext & MODE_EXT_MS_STEREO) {
1055
        /* ms stereo ONLY */
1056
        /* NOTE: the 1/sqrt(2) normalization factor is included in the
1057
           global gain */
1058
#if USE_FLOATS
1059
       s->butterflies_float(g0->sb_hybrid, g1->sb_hybrid, 576);
1060
#else
1061
        tab0 = g0->sb_hybrid;
1062
        tab1 = g1->sb_hybrid;
1063
80.8M
        for (i = 0; i < 576; i++) {
1064
80.6M
            tmp0    = tab0[i];
1065
80.6M
            tmp1    = tab1[i];
1066
80.6M
            tab0[i] = tmp0 + tmp1;
1067
80.6M
            tab1[i] = tmp0 - tmp1;
1068
80.6M
        }
1069
#endif
1070
276k
    }
1071
1.98M
}
mpegaudiodec_float.c:compute_stereo
Line
Count
Source
944
1.01M
{
945
1.01M
    int i, j, k, l;
946
1.01M
    int sf_max, sf, len, non_zero_found;
947
1.01M
    INTFLOAT *tab0, *tab1, v1, v2;
948
1.01M
    const INTFLOAT (*is_tab)[16];
949
1.01M
    SUINTFLOAT tmp0, tmp1;
950
1.01M
    int non_zero_found_short[3];
951
952
    /* intensity stereo */
953
1.01M
    if (s->mode_ext & MODE_EXT_I_STEREO) {
954
814k
        if (!s->lsf) {
955
42.8k
            is_tab = is_table;
956
42.8k
            sf_max = 7;
957
771k
        } else {
958
771k
            is_tab = is_table_lsf[g1->scalefac_compress & 1];
959
771k
            sf_max = 16;
960
771k
        }
961
962
814k
        tab0 = g0->sb_hybrid + 576;
963
814k
        tab1 = g1->sb_hybrid + 576;
964
965
814k
        non_zero_found_short[0] = 0;
966
814k
        non_zero_found_short[1] = 0;
967
814k
        non_zero_found_short[2] = 0;
968
814k
        k = (13 - g1->short_start) * 3 + g1->long_end - 3;
969
1.80M
        for (i = 12; i >= g1->short_start; i--) {
970
            /* for last band, use previous scale factor */
971
987k
            if (i != 11)
972
892k
                k -= 3;
973
987k
            len = ff_band_size_short[s->sample_rate_index][i];
974
3.94M
            for (l = 2; l >= 0; l--) {
975
2.96M
                tab0 -= len;
976
2.96M
                tab1 -= len;
977
2.96M
                if (!non_zero_found_short[l]) {
978
                    /* test if non zero band. if so, stop doing i-stereo */
979
53.1M
                    for (j = 0; j < len; j++) {
980
50.2M
                        if (tab1[j] != 0) {
981
10.0k
                            non_zero_found_short[l] = 1;
982
10.0k
                            goto found1;
983
10.0k
                        }
984
50.2M
                    }
985
2.87M
                    sf = g1->scale_factors[k + l];
986
2.87M
                    if (sf >= sf_max)
987
38.6k
                        goto found1;
988
989
2.83M
                    v1 = is_tab[0][sf];
990
2.83M
                    v2 = is_tab[1][sf];
991
52.1M
                    for (j = 0; j < len; j++) {
992
49.3M
                        tmp0    = tab0[j];
993
49.3M
                        tab0[j] = MULLx(tmp0, v1, FRAC_BITS);
994
49.3M
                        tab1[j] = MULLx(tmp0, v2, FRAC_BITS);
995
49.3M
                    }
996
2.83M
                } else {
997
128k
found1:
998
128k
                    if (s->mode_ext & MODE_EXT_MS_STEREO) {
999
                        /* lower part of the spectrum : do ms stereo
1000
                           if enabled */
1001
644k
                        for (j = 0; j < len; j++) {
1002
602k
                            tmp0    = tab0[j];
1003
602k
                            tmp1    = tab1[j];
1004
602k
                            tab0[j] = MULLx(tmp0 + tmp1, ISQRT2, FRAC_BITS);
1005
602k
                            tab1[j] = MULLx(tmp0 - tmp1, ISQRT2, FRAC_BITS);
1006
602k
                        }
1007
42.0k
                    }
1008
128k
                }
1009
2.96M
            }
1010
987k
        }
1011
1012
814k
        non_zero_found = non_zero_found_short[0] |
1013
814k
                         non_zero_found_short[1] |
1014
814k
                         non_zero_found_short[2];
1015
1016
17.1M
        for (i = g1->long_end - 1;i >= 0;i--) {
1017
16.3M
            len   = ff_band_size_long[s->sample_rate_index][i];
1018
16.3M
            tab0 -= len;
1019
16.3M
            tab1 -= len;
1020
            /* test if non zero band. if so, stop doing i-stereo */
1021
16.3M
            if (!non_zero_found) {
1022
432M
                for (j = 0; j < len; j++) {
1023
416M
                    if (tab1[j] != 0) {
1024
6.64k
                        non_zero_found = 1;
1025
6.64k
                        goto found2;
1026
6.64k
                    }
1027
416M
                }
1028
                /* for last band, use previous scale factor */
1029
16.2M
                k  = (i == 21) ? 20 : i;
1030
16.2M
                sf = g1->scale_factors[k];
1031
16.2M
                if (sf >= sf_max)
1032
6.60k
                    goto found2;
1033
16.2M
                v1 = is_tab[0][sf];
1034
16.2M
                v2 = is_tab[1][sf];
1035
432M
                for (j = 0; j < len; j++) {
1036
416M
                    tmp0    = tab0[j];
1037
416M
                    tab0[j] = MULLx(tmp0, v1, FRAC_BITS);
1038
416M
                    tab1[j] = MULLx(tmp0, v2, FRAC_BITS);
1039
416M
                }
1040
16.2M
            } else {
1041
72.0k
found2:
1042
72.0k
                if (s->mode_ext & MODE_EXT_MS_STEREO) {
1043
                    /* lower part of the spectrum : do ms stereo
1044
                       if enabled */
1045
1.20M
                    for (j = 0; j < len; j++) {
1046
1.14M
                        tmp0    = tab0[j];
1047
1.14M
                        tmp1    = tab1[j];
1048
1.14M
                        tab0[j] = MULLx(tmp0 + tmp1, ISQRT2, FRAC_BITS);
1049
1.14M
                        tab1[j] = MULLx(tmp0 - tmp1, ISQRT2, FRAC_BITS);
1050
1.14M
                    }
1051
60.9k
                }
1052
72.0k
            }
1053
16.3M
        }
1054
814k
    } else if (s->mode_ext & MODE_EXT_MS_STEREO) {
1055
        /* ms stereo ONLY */
1056
        /* NOTE: the 1/sqrt(2) normalization factor is included in the
1057
           global gain */
1058
136k
#if USE_FLOATS
1059
136k
       s->butterflies_float(g0->sb_hybrid, g1->sb_hybrid, 576);
1060
#else
1061
        tab0 = g0->sb_hybrid;
1062
        tab1 = g1->sb_hybrid;
1063
        for (i = 0; i < 576; i++) {
1064
            tmp0    = tab0[i];
1065
            tmp1    = tab1[i];
1066
            tab0[i] = tmp0 + tmp1;
1067
            tab1[i] = tmp0 - tmp1;
1068
        }
1069
#endif
1070
136k
    }
1071
1.01M
}
mpegaudiodec_fixed.c:compute_stereo
Line
Count
Source
944
969k
{
945
969k
    int i, j, k, l;
946
969k
    int sf_max, sf, len, non_zero_found;
947
969k
    INTFLOAT *tab0, *tab1, v1, v2;
948
969k
    const INTFLOAT (*is_tab)[16];
949
969k
    SUINTFLOAT tmp0, tmp1;
950
969k
    int non_zero_found_short[3];
951
952
    /* intensity stereo */
953
969k
    if (s->mode_ext & MODE_EXT_I_STEREO) {
954
801k
        if (!s->lsf) {
955
225k
            is_tab = is_table;
956
225k
            sf_max = 7;
957
576k
        } else {
958
576k
            is_tab = is_table_lsf[g1->scalefac_compress & 1];
959
576k
            sf_max = 16;
960
576k
        }
961
962
801k
        tab0 = g0->sb_hybrid + 576;
963
801k
        tab1 = g1->sb_hybrid + 576;
964
965
801k
        non_zero_found_short[0] = 0;
966
801k
        non_zero_found_short[1] = 0;
967
801k
        non_zero_found_short[2] = 0;
968
801k
        k = (13 - g1->short_start) * 3 + g1->long_end - 3;
969
1.01M
        for (i = 12; i >= g1->short_start; i--) {
970
            /* for last band, use previous scale factor */
971
208k
            if (i != 11)
972
190k
                k -= 3;
973
208k
            len = ff_band_size_short[s->sample_rate_index][i];
974
834k
            for (l = 2; l >= 0; l--) {
975
625k
                tab0 -= len;
976
625k
                tab1 -= len;
977
625k
                if (!non_zero_found_short[l]) {
978
                    /* test if non zero band. if so, stop doing i-stereo */
979
10.0M
                    for (j = 0; j < len; j++) {
980
9.48M
                        if (tab1[j] != 0) {
981
6.59k
                            non_zero_found_short[l] = 1;
982
6.59k
                            goto found1;
983
6.59k
                        }
984
9.48M
                    }
985
579k
                    sf = g1->scale_factors[k + l];
986
579k
                    if (sf >= sf_max)
987
38.5k
                        goto found1;
988
989
541k
                    v1 = is_tab[0][sf];
990
541k
                    v2 = is_tab[1][sf];
991
9.10M
                    for (j = 0; j < len; j++) {
992
8.56M
                        tmp0    = tab0[j];
993
8.56M
                        tab0[j] = MULLx(tmp0, v1, FRAC_BITS);
994
8.56M
                        tab1[j] = MULLx(tmp0, v2, FRAC_BITS);
995
8.56M
                    }
996
541k
                } else {
997
84.6k
found1:
998
84.6k
                    if (s->mode_ext & MODE_EXT_MS_STEREO) {
999
                        /* lower part of the spectrum : do ms stereo
1000
                           if enabled */
1001
669k
                        for (j = 0; j < len; j++) {
1002
627k
                            tmp0    = tab0[j];
1003
627k
                            tmp1    = tab1[j];
1004
627k
                            tab0[j] = MULLx(tmp0 + tmp1, ISQRT2, FRAC_BITS);
1005
627k
                            tab1[j] = MULLx(tmp0 - tmp1, ISQRT2, FRAC_BITS);
1006
627k
                        }
1007
41.8k
                    }
1008
84.6k
                }
1009
625k
            }
1010
208k
        }
1011
1012
801k
        non_zero_found = non_zero_found_short[0] |
1013
801k
                         non_zero_found_short[1] |
1014
801k
                         non_zero_found_short[2];
1015
1016
18.1M
        for (i = g1->long_end - 1;i >= 0;i--) {
1017
17.3M
            len   = ff_band_size_long[s->sample_rate_index][i];
1018
17.3M
            tab0 -= len;
1019
17.3M
            tab1 -= len;
1020
            /* test if non zero band. if so, stop doing i-stereo */
1021
17.3M
            if (!non_zero_found) {
1022
467M
                for (j = 0; j < len; j++) {
1023
450M
                    if (tab1[j] != 0) {
1024
4.51k
                        non_zero_found = 1;
1025
4.51k
                        goto found2;
1026
4.51k
                    }
1027
450M
                }
1028
                /* for last band, use previous scale factor */
1029
17.2M
                k  = (i == 21) ? 20 : i;
1030
17.2M
                sf = g1->scale_factors[k];
1031
17.2M
                if (sf >= sf_max)
1032
4.41k
                    goto found2;
1033
17.2M
                v1 = is_tab[0][sf];
1034
17.2M
                v2 = is_tab[1][sf];
1035
467M
                for (j = 0; j < len; j++) {
1036
450M
                    tmp0    = tab0[j];
1037
450M
                    tab0[j] = MULLx(tmp0, v1, FRAC_BITS);
1038
450M
                    tab1[j] = MULLx(tmp0, v2, FRAC_BITS);
1039
450M
                }
1040
17.2M
            } else {
1041
62.8k
found2:
1042
62.8k
                if (s->mode_ext & MODE_EXT_MS_STEREO) {
1043
                    /* lower part of the spectrum : do ms stereo
1044
                       if enabled */
1045
1.12M
                    for (j = 0; j < len; j++) {
1046
1.06M
                        tmp0    = tab0[j];
1047
1.06M
                        tmp1    = tab1[j];
1048
1.06M
                        tab0[j] = MULLx(tmp0 + tmp1, ISQRT2, FRAC_BITS);
1049
1.06M
                        tab1[j] = MULLx(tmp0 - tmp1, ISQRT2, FRAC_BITS);
1050
1.06M
                    }
1051
56.3k
                }
1052
62.8k
            }
1053
17.3M
        }
1054
801k
    } else if (s->mode_ext & MODE_EXT_MS_STEREO) {
1055
        /* ms stereo ONLY */
1056
        /* NOTE: the 1/sqrt(2) normalization factor is included in the
1057
           global gain */
1058
#if USE_FLOATS
1059
       s->butterflies_float(g0->sb_hybrid, g1->sb_hybrid, 576);
1060
#else
1061
140k
        tab0 = g0->sb_hybrid;
1062
140k
        tab1 = g1->sb_hybrid;
1063
80.8M
        for (i = 0; i < 576; i++) {
1064
80.6M
            tmp0    = tab0[i];
1065
80.6M
            tmp1    = tab1[i];
1066
80.6M
            tab0[i] = tmp0 + tmp1;
1067
80.6M
            tab1[i] = tmp0 - tmp1;
1068
80.6M
        }
1069
140k
#endif
1070
140k
    }
1071
969k
}
1072
1073
#if USE_FLOATS
1074
#if HAVE_MIPSFPU
1075
#   include "mips/compute_antialias_float.h"
1076
#endif /* HAVE_MIPSFPU */
1077
#else
1078
#if HAVE_MIPSDSP
1079
#   include "mips/compute_antialias_fixed.h"
1080
#endif /* HAVE_MIPSDSP */
1081
#endif /* USE_FLOATS */
1082
1083
#ifndef compute_antialias
1084
#if USE_FLOATS
1085
428M
#define AA(j) do {                                                      \
1086
428M
        float tmp0 = ptr[-1-j];                                         \
1087
428M
        float tmp1 = ptr[   j];                                         \
1088
428M
        ptr[-1-j] = tmp0 * csa_table[j][0] - tmp1 * csa_table[j][1];    \
1089
428M
        ptr[   j] = tmp0 * csa_table[j][1] + tmp1 * csa_table[j][0];    \
1090
428M
    } while (0)
1091
#else
1092
586M
#define AA(j) do {                                              \
1093
586M
        SUINT tmp0 = ptr[-1-j];                                   \
1094
586M
        SUINT tmp1 = ptr[   j];                                   \
1095
586M
        SUINT tmp2 = MULH(tmp0 + tmp1, csa_table[j][0]);          \
1096
586M
        ptr[-1-j] = 4 * (tmp2 - MULH(tmp1, csa_table[j][2]));   \
1097
586M
        ptr[   j] = 4 * (tmp2 + MULH(tmp0, csa_table[j][3]));   \
1098
586M
    } while (0)
1099
#endif
1100
1101
static void compute_antialias(MPADecodeContext *s, GranuleDef *g)
1102
4.89M
{
1103
4.89M
    INTFLOAT *ptr;
1104
4.89M
    int n, i;
1105
1106
    /* we antialias only "long" bands */
1107
4.89M
    if (g->block_type == 2) {
1108
822k
        if (!g->switch_point)
1109
85.0k
            return;
1110
        /* XXX: check this for 8000Hz case */
1111
737k
        n = 1;
1112
4.06M
    } else {
1113
4.06M
        n = SBLIMIT - 1;
1114
4.06M
    }
1115
1116
4.80M
    ptr = g->sb_hybrid + 18;
1117
131M
    for (i = n; i > 0; i--) {
1118
126M
        AA(0);
1119
126M
        AA(1);
1120
126M
        AA(2);
1121
126M
        AA(3);
1122
126M
        AA(4);
1123
126M
        AA(5);
1124
126M
        AA(6);
1125
126M
        AA(7);
1126
1127
126M
        ptr += 18;
1128
126M
    }
1129
4.80M
}
mpegaudiodec_float.c:compute_antialias
Line
Count
Source
1102
2.19M
{
1103
2.19M
    INTFLOAT *ptr;
1104
2.19M
    int n, i;
1105
1106
    /* we antialias only "long" bands */
1107
2.19M
    if (g->block_type == 2) {
1108
484k
        if (!g->switch_point)
1109
65.6k
            return;
1110
        /* XXX: check this for 8000Hz case */
1111
418k
        n = 1;
1112
1.71M
    } else {
1113
1.71M
        n = SBLIMIT - 1;
1114
1.71M
    }
1115
1116
2.13M
    ptr = g->sb_hybrid + 18;
1117
55.6M
    for (i = n; i > 0; i--) {
1118
53.5M
        AA(0);
1119
53.5M
        AA(1);
1120
53.5M
        AA(2);
1121
53.5M
        AA(3);
1122
53.5M
        AA(4);
1123
53.5M
        AA(5);
1124
53.5M
        AA(6);
1125
53.5M
        AA(7);
1126
1127
53.5M
        ptr += 18;
1128
53.5M
    }
1129
2.13M
}
mpegaudiodec_fixed.c:compute_antialias
Line
Count
Source
1102
2.69M
{
1103
2.69M
    INTFLOAT *ptr;
1104
2.69M
    int n, i;
1105
1106
    /* we antialias only "long" bands */
1107
2.69M
    if (g->block_type == 2) {
1108
337k
        if (!g->switch_point)
1109
19.4k
            return;
1110
        /* XXX: check this for 8000Hz case */
1111
318k
        n = 1;
1112
2.35M
    } else {
1113
2.35M
        n = SBLIMIT - 1;
1114
2.35M
    }
1115
1116
2.67M
    ptr = g->sb_hybrid + 18;
1117
76.0M
    for (i = n; i > 0; i--) {
1118
73.3M
        AA(0);
1119
73.3M
        AA(1);
1120
73.3M
        AA(2);
1121
73.3M
        AA(3);
1122
73.3M
        AA(4);
1123
73.3M
        AA(5);
1124
73.3M
        AA(6);
1125
73.3M
        AA(7);
1126
1127
73.3M
        ptr += 18;
1128
73.3M
    }
1129
2.67M
}
1130
#endif /* compute_antialias */
1131
1132
static void compute_imdct(MPADecodeContext *s, GranuleDef *g,
1133
                          INTFLOAT *sb_samples, INTFLOAT *mdct_buf)
1134
6.94M
{
1135
6.94M
    INTFLOAT *win, *out_ptr, *ptr, *buf, *ptr1;
1136
6.94M
    INTFLOAT out2[12];
1137
6.94M
    int i, j, mdct_long_end, sblimit;
1138
1139
    /* find last non zero block */
1140
6.94M
    ptr  = g->sb_hybrid + 576;
1141
6.94M
    ptr1 = g->sb_hybrid + 2 * 18;
1142
634M
    while (ptr >= ptr1) {
1143
628M
        int32_t *p;
1144
628M
        ptr -= 6;
1145
628M
        p    = (int32_t*)ptr;
1146
628M
        if (p[0] | p[1] | p[2] | p[3] | p[4] | p[5])
1147
121k
            break;
1148
628M
    }
1149
6.94M
    sblimit = ((ptr - g->sb_hybrid) / 18) + 1;
1150
1151
6.94M
    if (g->block_type == 2) {
1152
        /* XXX: check for 8000 Hz */
1153
1.31M
        if (g->switch_point)
1154
1.20M
            mdct_long_end = 2;
1155
108k
        else
1156
108k
            mdct_long_end = 0;
1157
5.62M
    } else {
1158
5.62M
        mdct_long_end = sblimit;
1159
5.62M
    }
1160
1161
6.94M
    s->mpadsp.RENAME(imdct36_blocks)(sb_samples, mdct_buf, g->sb_hybrid,
1162
6.94M
                                     mdct_long_end, g->switch_point,
1163
6.94M
                                     g->block_type);
1164
1165
6.94M
    buf = mdct_buf + 4*18*(mdct_long_end >> 2) + (mdct_long_end & 3);
1166
6.94M
    ptr = g->sb_hybrid + 18 * mdct_long_end;
1167
1168
7.52M
    for (j = mdct_long_end; j < sblimit; j++) {
1169
        /* select frequency inversion */
1170
583k
        win     = RENAME(ff_mdct_win)[2 + (4  & -(j & 1))];
1171
583k
        out_ptr = sb_samples + j;
1172
1173
4.08M
        for (i = 0; i < 6; i++) {
1174
3.49M
            *out_ptr = buf[4*i];
1175
3.49M
            out_ptr += SBLIMIT;
1176
3.49M
        }
1177
583k
        imdct12(out2, ptr + 0);
1178
4.08M
        for (i = 0; i < 6; i++) {
1179
3.49M
            *out_ptr     = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*1)];
1180
3.49M
            buf[4*(i + 6*2)] = MULH3(out2[i + 6], win[i + 6], 1);
1181
3.49M
            out_ptr += SBLIMIT;
1182
3.49M
        }
1183
583k
        imdct12(out2, ptr + 1);
1184
4.08M
        for (i = 0; i < 6; i++) {
1185
3.49M
            *out_ptr     = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*2)];
1186
3.49M
            buf[4*(i + 6*0)] = MULH3(out2[i + 6], win[i + 6], 1);
1187
3.49M
            out_ptr += SBLIMIT;
1188
3.49M
        }
1189
583k
        imdct12(out2, ptr + 2);
1190
4.08M
        for (i = 0; i < 6; i++) {
1191
3.49M
            buf[4*(i + 6*0)] = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*0)];
1192
3.49M
            buf[4*(i + 6*1)] = MULH3(out2[i + 6], win[i + 6], 1);
1193
3.49M
            buf[4*(i + 6*2)] = 0;
1194
3.49M
        }
1195
583k
        ptr += 18;
1196
583k
        buf += (j&3) != 3 ? 1 : (4*18-3);
1197
583k
    }
1198
    /* zero bands */
1199
213M
    for (j = sblimit; j < SBLIMIT; j++) {
1200
        /* overlap */
1201
207M
        out_ptr = sb_samples + j;
1202
3.93G
        for (i = 0; i < 18; i++) {
1203
3.72G
            *out_ptr = buf[4*i];
1204
3.72G
            buf[4*i]   = 0;
1205
3.72G
            out_ptr += SBLIMIT;
1206
3.72G
        }
1207
207M
        buf += (j&3) != 3 ? 1 : (4*18-3);
1208
207M
    }
1209
6.94M
}
mpegaudiodec_float.c:compute_imdct
Line
Count
Source
1134
3.43M
{
1135
3.43M
    INTFLOAT *win, *out_ptr, *ptr, *buf, *ptr1;
1136
3.43M
    INTFLOAT out2[12];
1137
3.43M
    int i, j, mdct_long_end, sblimit;
1138
1139
    /* find last non zero block */
1140
3.43M
    ptr  = g->sb_hybrid + 576;
1141
3.43M
    ptr1 = g->sb_hybrid + 2 * 18;
1142
313M
    while (ptr >= ptr1) {
1143
310M
        int32_t *p;
1144
310M
        ptr -= 6;
1145
310M
        p    = (int32_t*)ptr;
1146
310M
        if (p[0] | p[1] | p[2] | p[3] | p[4] | p[5])
1147
92.7k
            break;
1148
310M
    }
1149
3.43M
    sblimit = ((ptr - g->sb_hybrid) / 18) + 1;
1150
1151
3.43M
    if (g->block_type == 2) {
1152
        /* XXX: check for 8000 Hz */
1153
806k
        if (g->switch_point)
1154
719k
            mdct_long_end = 2;
1155
87.4k
        else
1156
87.4k
            mdct_long_end = 0;
1157
2.63M
    } else {
1158
2.63M
        mdct_long_end = sblimit;
1159
2.63M
    }
1160
1161
3.43M
    s->mpadsp.RENAME(imdct36_blocks)(sb_samples, mdct_buf, g->sb_hybrid,
1162
3.43M
                                     mdct_long_end, g->switch_point,
1163
3.43M
                                     g->block_type);
1164
1165
3.43M
    buf = mdct_buf + 4*18*(mdct_long_end >> 2) + (mdct_long_end & 3);
1166
3.43M
    ptr = g->sb_hybrid + 18 * mdct_long_end;
1167
1168
3.88M
    for (j = mdct_long_end; j < sblimit; j++) {
1169
        /* select frequency inversion */
1170
449k
        win     = RENAME(ff_mdct_win)[2 + (4  & -(j & 1))];
1171
449k
        out_ptr = sb_samples + j;
1172
1173
3.14M
        for (i = 0; i < 6; i++) {
1174
2.69M
            *out_ptr = buf[4*i];
1175
2.69M
            out_ptr += SBLIMIT;
1176
2.69M
        }
1177
449k
        imdct12(out2, ptr + 0);
1178
3.14M
        for (i = 0; i < 6; i++) {
1179
2.69M
            *out_ptr     = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*1)];
1180
2.69M
            buf[4*(i + 6*2)] = MULH3(out2[i + 6], win[i + 6], 1);
1181
2.69M
            out_ptr += SBLIMIT;
1182
2.69M
        }
1183
449k
        imdct12(out2, ptr + 1);
1184
3.14M
        for (i = 0; i < 6; i++) {
1185
2.69M
            *out_ptr     = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*2)];
1186
2.69M
            buf[4*(i + 6*0)] = MULH3(out2[i + 6], win[i + 6], 1);
1187
2.69M
            out_ptr += SBLIMIT;
1188
2.69M
        }
1189
449k
        imdct12(out2, ptr + 2);
1190
3.14M
        for (i = 0; i < 6; i++) {
1191
2.69M
            buf[4*(i + 6*0)] = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*0)];
1192
2.69M
            buf[4*(i + 6*1)] = MULH3(out2[i + 6], win[i + 6], 1);
1193
2.69M
            buf[4*(i + 6*2)] = 0;
1194
2.69M
        }
1195
449k
        ptr += 18;
1196
449k
        buf += (j&3) != 3 ? 1 : (4*18-3);
1197
449k
    }
1198
    /* zero bands */
1199
105M
    for (j = sblimit; j < SBLIMIT; j++) {
1200
        /* overlap */
1201
102M
        out_ptr = sb_samples + j;
1202
1.94G
        for (i = 0; i < 18; i++) {
1203
1.84G
            *out_ptr = buf[4*i];
1204
1.84G
            buf[4*i]   = 0;
1205
1.84G
            out_ptr += SBLIMIT;
1206
1.84G
        }
1207
102M
        buf += (j&3) != 3 ? 1 : (4*18-3);
1208
102M
    }
1209
3.43M
}
mpegaudiodec_fixed.c:compute_imdct
Line
Count
Source
1134
3.50M
{
1135
3.50M
    INTFLOAT *win, *out_ptr, *ptr, *buf, *ptr1;
1136
3.50M
    INTFLOAT out2[12];
1137
3.50M
    int i, j, mdct_long_end, sblimit;
1138
1139
    /* find last non zero block */
1140
3.50M
    ptr  = g->sb_hybrid + 576;
1141
3.50M
    ptr1 = g->sb_hybrid + 2 * 18;
1142
321M
    while (ptr >= ptr1) {
1143
317M
        int32_t *p;
1144
317M
        ptr -= 6;
1145
317M
        p    = (int32_t*)ptr;
1146
317M
        if (p[0] | p[1] | p[2] | p[3] | p[4] | p[5])
1147
28.7k
            break;
1148
317M
    }
1149
3.50M
    sblimit = ((ptr - g->sb_hybrid) / 18) + 1;
1150
1151
3.50M
    if (g->block_type == 2) {
1152
        /* XXX: check for 8000 Hz */
1153
509k
        if (g->switch_point)
1154
488k
            mdct_long_end = 2;
1155
21.0k
        else
1156
21.0k
            mdct_long_end = 0;
1157
2.99M
    } else {
1158
2.99M
        mdct_long_end = sblimit;
1159
2.99M
    }
1160
1161
3.50M
    s->mpadsp.RENAME(imdct36_blocks)(sb_samples, mdct_buf, g->sb_hybrid,
1162
3.50M
                                     mdct_long_end, g->switch_point,
1163
3.50M
                                     g->block_type);
1164
1165
3.50M
    buf = mdct_buf + 4*18*(mdct_long_end >> 2) + (mdct_long_end & 3);
1166
3.50M
    ptr = g->sb_hybrid + 18 * mdct_long_end;
1167
1168
3.63M
    for (j = mdct_long_end; j < sblimit; j++) {
1169
        /* select frequency inversion */
1170
134k
        win     = RENAME(ff_mdct_win)[2 + (4  & -(j & 1))];
1171
134k
        out_ptr = sb_samples + j;
1172
1173
939k
        for (i = 0; i < 6; i++) {
1174
805k
            *out_ptr = buf[4*i];
1175
805k
            out_ptr += SBLIMIT;
1176
805k
        }
1177
134k
        imdct12(out2, ptr + 0);
1178
939k
        for (i = 0; i < 6; i++) {
1179
805k
            *out_ptr     = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*1)];
1180
805k
            buf[4*(i + 6*2)] = MULH3(out2[i + 6], win[i + 6], 1);
1181
805k
            out_ptr += SBLIMIT;
1182
805k
        }
1183
134k
        imdct12(out2, ptr + 1);
1184
939k
        for (i = 0; i < 6; i++) {
1185
805k
            *out_ptr     = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*2)];
1186
805k
            buf[4*(i + 6*0)] = MULH3(out2[i + 6], win[i + 6], 1);
1187
805k
            out_ptr += SBLIMIT;
1188
805k
        }
1189
134k
        imdct12(out2, ptr + 2);
1190
939k
        for (i = 0; i < 6; i++) {
1191
805k
            buf[4*(i + 6*0)] = MULH3(out2[i    ], win[i    ], 1) + buf[4*(i + 6*0)];
1192
805k
            buf[4*(i + 6*1)] = MULH3(out2[i + 6], win[i + 6], 1);
1193
805k
            buf[4*(i + 6*2)] = 0;
1194
805k
        }
1195
134k
        ptr += 18;
1196
134k
        buf += (j&3) != 3 ? 1 : (4*18-3);
1197
134k
    }
1198
    /* zero bands */
1199
108M
    for (j = sblimit; j < SBLIMIT; j++) {
1200
        /* overlap */
1201
104M
        out_ptr = sb_samples + j;
1202
1.98G
        for (i = 0; i < 18; i++) {
1203
1.88G
            *out_ptr = buf[4*i];
1204
1.88G
            buf[4*i]   = 0;
1205
1.88G
            out_ptr += SBLIMIT;
1206
1.88G
        }
1207
104M
        buf += (j&3) != 3 ? 1 : (4*18-3);
1208
104M
    }
1209
3.50M
}
1210
1211
/* main layer3 decoding function */
1212
static int mp_decode_layer3(MPADecodeContext *s)
1213
3.30M
{
1214
3.30M
    int nb_granules, main_data_begin;
1215
3.30M
    int gr, ch, blocksplit_flag, i, j, k, n, bits_pos;
1216
3.30M
    GranuleDef *g;
1217
3.30M
    int16_t exponents[576]; //FIXME try INTFLOAT
1218
3.30M
    int ret;
1219
1220
    /* read side info */
1221
3.30M
    if (s->lsf) {
1222
2.93M
        ret = handle_crc(s, ((s->nb_channels == 1) ? 8*9  : 8*17));
1223
2.93M
        main_data_begin = get_bits(&s->gb, 8);
1224
2.93M
        skip_bits(&s->gb, s->nb_channels);
1225
2.93M
        nb_granules = 1;
1226
2.93M
    } else {
1227
372k
        ret = handle_crc(s, ((s->nb_channels == 1) ? 8*17 : 8*32));
1228
372k
        main_data_begin = get_bits(&s->gb, 9);
1229
372k
        if (s->nb_channels == 2)
1230
331k
            skip_bits(&s->gb, 3);
1231
41.0k
        else
1232
41.0k
            skip_bits(&s->gb, 5);
1233
372k
        nb_granules = 2;
1234
1.07M
        for (ch = 0; ch < s->nb_channels; ch++) {
1235
703k
            s->granules[ch][0].scfsi = 0;/* all scale factors are transmitted */
1236
703k
            s->granules[ch][1].scfsi = get_bits(&s->gb, 4);
1237
703k
        }
1238
372k
    }
1239
3.30M
    if (ret < 0)
1240
7.34k
        return ret;
1241
1242
6.82M
    for (gr = 0; gr < nb_granules; gr++) {
1243
10.6M
        for (ch = 0; ch < s->nb_channels; ch++) {
1244
7.13M
            ff_dlog(s->avctx, "gr=%d ch=%d: side_info\n", gr, ch);
1245
7.13M
            g = &s->granules[ch][gr];
1246
7.13M
            g->part2_3_length = get_bits(&s->gb, 12);
1247
7.13M
            g->big_values     = get_bits(&s->gb,  9);
1248
7.13M
            if (g->big_values > 288) {
1249
93.4k
                av_log(s->avctx, AV_LOG_ERROR, "big_values too big\n");
1250
93.4k
                return AVERROR_INVALIDDATA;
1251
93.4k
            }
1252
1253
7.04M
            g->global_gain = get_bits(&s->gb, 8);
1254
            /* if MS stereo only is selected, we precompute the
1255
               1/sqrt(2) renormalization factor */
1256
7.04M
            if ((s->mode_ext & (MODE_EXT_MS_STEREO | MODE_EXT_I_STEREO)) ==
1257
7.04M
                MODE_EXT_MS_STEREO)
1258
730k
                g->global_gain -= 2;
1259
7.04M
            if (s->lsf)
1260
5.73M
                g->scalefac_compress = get_bits(&s->gb, 9);
1261
1.30M
            else
1262
1.30M
                g->scalefac_compress = get_bits(&s->gb, 4);
1263
7.04M
            blocksplit_flag = get_bits1(&s->gb);
1264
7.04M
            if (blocksplit_flag) {
1265
3.97M
                g->block_type = get_bits(&s->gb, 2);
1266
3.97M
                if (g->block_type == 0) {
1267
19.9k
                    av_log(s->avctx, AV_LOG_ERROR, "invalid block type\n");
1268
19.9k
                    return AVERROR_INVALIDDATA;
1269
19.9k
                }
1270
3.95M
                g->switch_point = get_bits1(&s->gb);
1271
11.8M
                for (i = 0; i < 2; i++)
1272
7.91M
                    g->table_select[i] = get_bits(&s->gb, 5);
1273
15.8M
                for (i = 0; i < 3; i++)
1274
11.8M
                    g->subblock_gain[i] = get_bits(&s->gb, 3);
1275
3.95M
                init_short_region(s, g);
1276
3.95M
            } else {
1277
3.06M
                int region_address1, region_address2;
1278
3.06M
                g->block_type = 0;
1279
3.06M
                g->switch_point = 0;
1280
12.2M
                for (i = 0; i < 3; i++)
1281
9.18M
                    g->table_select[i] = get_bits(&s->gb, 5);
1282
                /* compute huffman coded region sizes */
1283
3.06M
                region_address1 = get_bits(&s->gb, 4);
1284
3.06M
                region_address2 = get_bits(&s->gb, 3);
1285
3.06M
                ff_dlog(s->avctx, "region1=%d region2=%d\n",
1286
3.06M
                        region_address1, region_address2);
1287
3.06M
                init_long_region(s, g, region_address1, region_address2);
1288
3.06M
            }
1289
7.02M
            region_offset2size(g);
1290
7.02M
            compute_band_indexes(s, g);
1291
1292
7.02M
            g->preflag = 0;
1293
7.02M
            if (!s->lsf)
1294
1.29M
                g->preflag = get_bits1(&s->gb);
1295
7.02M
            g->scalefac_scale     = get_bits1(&s->gb);
1296
7.02M
            g->count1table_select = get_bits1(&s->gb);
1297
7.02M
            ff_dlog(s->avctx, "block_type=%d switch_point=%d\n",
1298
7.02M
                    g->block_type, g->switch_point);
1299
7.02M
        }
1300
3.64M
    }
1301
1302
3.18M
    if (!s->adu_mode) {
1303
2.78M
        int skip;
1304
2.78M
        const uint8_t *ptr = s->gb.buffer + (get_bits_count(&s->gb) >> 3);
1305
2.78M
        s->extrasize = av_clip((get_bits_left(&s->gb) >> 3) - s->extrasize, 0,
1306
2.78M
                               FFMAX(0, LAST_BUF_SIZE - s->last_buf_size));
1307
2.78M
        av_assert1((get_bits_count(&s->gb) & 7) == 0);
1308
        /* now we get bits from the main_data_begin offset */
1309
2.78M
        ff_dlog(s->avctx, "seekback:%d, lastbuf:%d\n",
1310
2.78M
                main_data_begin, s->last_buf_size);
1311
1312
2.78M
        memcpy(s->last_buf + s->last_buf_size, ptr, s->extrasize);
1313
2.78M
        s->in_gb = s->gb;
1314
2.78M
        init_get_bits(&s->gb, s->last_buf, (s->last_buf_size + s->extrasize) * 8);
1315
2.78M
        s->last_buf_size <<= 3;
1316
3.82M
        for (gr = 0; gr < nb_granules && (s->last_buf_size >> 3) < main_data_begin; gr++) {
1317
3.09M
            for (ch = 0; ch < s->nb_channels; ch++) {
1318
2.05M
                g = &s->granules[ch][gr];
1319
2.05M
                s->last_buf_size += g->part2_3_length;
1320
2.05M
                memset(g->sb_hybrid, 0, sizeof(g->sb_hybrid));
1321
2.05M
                compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
1322
2.05M
            }
1323
1.04M
        }
1324
2.78M
        skip = s->last_buf_size - 8 * main_data_begin;
1325
2.78M
        if (skip >= s->gb.size_in_bits - s->extrasize * 8 && s->in_gb.buffer) {
1326
728k
            skip_bits_long(&s->in_gb, skip - s->gb.size_in_bits + s->extrasize * 8);
1327
728k
            s->gb           = s->in_gb;
1328
728k
            s->in_gb.buffer = NULL;
1329
728k
            s->extrasize    = 0;
1330
2.05M
        } else {
1331
2.05M
            skip_bits_long(&s->gb, skip);
1332
2.05M
        }
1333
2.78M
    } else {
1334
402k
        gr = 0;
1335
402k
        s->extrasize = 0;
1336
402k
    }
1337
1338
5.66M
    for (; gr < nb_granules; gr++) {
1339
7.37M
        for (ch = 0; ch < s->nb_channels; ch++) {
1340
4.89M
            g = &s->granules[ch][gr];
1341
4.89M
            bits_pos = get_bits_count(&s->gb);
1342
1343
4.89M
            if (!s->lsf) {
1344
1.19M
                uint8_t *sc;
1345
1.19M
                int slen, slen1, slen2;
1346
1347
                /* MPEG-1 scale factors */
1348
1.19M
                slen1 = ff_slen_table[0][g->scalefac_compress];
1349
1.19M
                slen2 = ff_slen_table[1][g->scalefac_compress];
1350
1.19M
                ff_dlog(s->avctx, "slen1=%d slen2=%d\n", slen1, slen2);
1351
1.19M
                if (g->block_type == 2) {
1352
71.0k
                    n = g->switch_point ? 17 : 18;
1353
71.0k
                    j = 0;
1354
71.0k
                    if (slen1) {
1355
940k
                        for (i = 0; i < n; i++)
1356
889k
                            g->scale_factors[j++] = get_bits(&s->gb, slen1);
1357
50.6k
                    } else {
1358
377k
                        for (i = 0; i < n; i++)
1359
357k
                            g->scale_factors[j++] = 0;
1360
20.4k
                    }
1361
71.0k
                    if (slen2) {
1362
1.11M
                        for (i = 0; i < 18; i++)
1363
1.05M
                            g->scale_factors[j++] = get_bits(&s->gb, slen2);
1364
233k
                        for (i = 0; i < 3; i++)
1365
175k
                            g->scale_factors[j++] = 0;
1366
58.4k
                    } else {
1367
276k
                        for (i = 0; i < 21; i++)
1368
264k
                            g->scale_factors[j++] = 0;
1369
12.5k
                    }
1370
1.11M
                } else {
1371
1.11M
                    sc = s->granules[ch][0].scale_factors;
1372
1.11M
                    j = 0;
1373
5.59M
                    for (k = 0; k < 4; k++) {
1374
4.47M
                        n = k == 0 ? 6 : 5;
1375
4.47M
                        if ((g->scfsi & (0x8 >> k)) == 0) {
1376
4.33M
                            slen = (k < 2) ? slen1 : slen2;
1377
4.33M
                            if (slen) {
1378
1.07M
                                for (i = 0; i < n; i++)
1379
906k
                                    g->scale_factors[j++] = get_bits(&s->gb, slen);
1380
4.16M
                            } else {
1381
26.0M
                                for (i = 0; i < n; i++)
1382
21.8M
                                    g->scale_factors[j++] = 0;
1383
4.16M
                            }
1384
4.33M
                        } else {
1385
                            /* simply copy from last granule */
1386
854k
                            for (i = 0; i < n; i++) {
1387
716k
                                g->scale_factors[j] = sc[j];
1388
716k
                                j++;
1389
716k
                            }
1390
138k
                        }
1391
4.47M
                    }
1392
1.11M
                    g->scale_factors[j++] = 0;
1393
1.11M
                }
1394
3.70M
            } else {
1395
3.70M
                int tindex, tindex2, slen[4], sl, sf;
1396
1397
                /* LSF scale factors */
1398
3.70M
                if (g->block_type == 2)
1399
751k
                    tindex = g->switch_point ? 2 : 1;
1400
2.95M
                else
1401
2.95M
                    tindex = 0;
1402
1403
3.70M
                sf = g->scalefac_compress;
1404
3.70M
                if ((s->mode_ext & MODE_EXT_I_STEREO) && ch == 1) {
1405
                    /* intensity stereo case */
1406
1.35M
                    sf >>= 1;
1407
1.35M
                    if (sf < 180) {
1408
1.25M
                        lsf_sf_expand(slen, sf, 6, 6, 0);
1409
1.25M
                        tindex2 = 3;
1410
1.25M
                    } else if (sf < 244) {
1411
90.8k
                        lsf_sf_expand(slen, sf - 180, 4, 4, 0);
1412
90.8k
                        tindex2 = 4;
1413
90.8k
                    } else {
1414
8.02k
                        lsf_sf_expand(slen, sf - 244, 3, 0, 0);
1415
8.02k
                        tindex2 = 5;
1416
8.02k
                    }
1417
2.34M
                } else {
1418
                    /* normal case */
1419
2.34M
                    if (sf < 400) {
1420
1.71M
                        lsf_sf_expand(slen, sf, 5, 4, 4);
1421
1.71M
                        tindex2 = 0;
1422
1.71M
                    } else if (sf < 500) {
1423
615k
                        lsf_sf_expand(slen, sf - 400, 5, 4, 0);
1424
615k
                        tindex2 = 1;
1425
615k
                    } else {
1426
17.9k
                        lsf_sf_expand(slen, sf - 500, 3, 0, 0);
1427
17.9k
                        tindex2 = 2;
1428
17.9k
                        g->preflag = 1;
1429
17.9k
                    }
1430
2.34M
                }
1431
1432
3.70M
                j = 0;
1433
18.5M
                for (k = 0; k < 4; k++) {
1434
14.8M
                    n  = ff_lsf_nsf_table[tindex2][tindex][k];
1435
14.8M
                    sl = slen[k];
1436
14.8M
                    if (sl) {
1437
56.9M
                        for (i = 0; i < n; i++)
1438
49.6M
                            g->scale_factors[j++] = get_bits(&s->gb, sl);
1439
7.50M
                    } else {
1440
44.7M
                        for (i = 0; i < n; i++)
1441
37.2M
                            g->scale_factors[j++] = 0;
1442
7.50M
                    }
1443
14.8M
                }
1444
                /* XXX: should compute exact size */
1445
64.8M
                for (; j < 40; j++)
1446
61.1M
                    g->scale_factors[j] = 0;
1447
3.70M
            }
1448
1449
4.89M
            exponents_from_scale_factors(s, g, exponents);
1450
1451
            /* read Huffman coded residue */
1452
4.89M
            huffman_decode(s, g, exponents, bits_pos + g->part2_3_length);
1453
4.89M
        } /* ch */
1454
1455
2.47M
        if (s->mode == MPA_JSTEREO)
1456
1.98M
            compute_stereo(s, &s->granules[0][gr], &s->granules[1][gr]);
1457
1458
7.37M
        for (ch = 0; ch < s->nb_channels; ch++) {
1459
4.89M
            g = &s->granules[ch][gr];
1460
1461
4.89M
            reorder_block(s, g);
1462
4.89M
            compute_antialias(s, g);
1463
4.89M
            compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
1464
4.89M
        }
1465
2.47M
    } /* gr */
1466
3.18M
    if (get_bits_count(&s->gb) < 0)
1467
0
        skip_bits_long(&s->gb, -get_bits_count(&s->gb));
1468
3.18M
    return nb_granules * 18;
1469
3.29M
}
mpegaudiodec_float.c:mp_decode_layer3
Line
Count
Source
1213
1.69M
{
1214
1.69M
    int nb_granules, main_data_begin;
1215
1.69M
    int gr, ch, blocksplit_flag, i, j, k, n, bits_pos;
1216
1.69M
    GranuleDef *g;
1217
1.69M
    int16_t exponents[576]; //FIXME try INTFLOAT
1218
1.69M
    int ret;
1219
1220
    /* read side info */
1221
1.69M
    if (s->lsf) {
1222
1.54M
        ret = handle_crc(s, ((s->nb_channels == 1) ? 8*9  : 8*17));
1223
1.54M
        main_data_begin = get_bits(&s->gb, 8);
1224
1.54M
        skip_bits(&s->gb, s->nb_channels);
1225
1.54M
        nb_granules = 1;
1226
1.54M
    } else {
1227
145k
        ret = handle_crc(s, ((s->nb_channels == 1) ? 8*17 : 8*32));
1228
145k
        main_data_begin = get_bits(&s->gb, 9);
1229
145k
        if (s->nb_channels == 2)
1230
120k
            skip_bits(&s->gb, 3);
1231
25.8k
        else
1232
25.8k
            skip_bits(&s->gb, 5);
1233
145k
        nb_granules = 2;
1234
411k
        for (ch = 0; ch < s->nb_channels; ch++) {
1235
265k
            s->granules[ch][0].scfsi = 0;/* all scale factors are transmitted */
1236
265k
            s->granules[ch][1].scfsi = get_bits(&s->gb, 4);
1237
265k
        }
1238
145k
    }
1239
1.69M
    if (ret < 0)
1240
2.55k
        return ret;
1241
1242
3.43M
    for (gr = 0; gr < nb_granules; gr++) {
1243
5.30M
        for (ch = 0; ch < s->nb_channels; ch++) {
1244
3.55M
            ff_dlog(s->avctx, "gr=%d ch=%d: side_info\n", gr, ch);
1245
3.55M
            g = &s->granules[ch][gr];
1246
3.55M
            g->part2_3_length = get_bits(&s->gb, 12);
1247
3.55M
            g->big_values     = get_bits(&s->gb,  9);
1248
3.55M
            if (g->big_values > 288) {
1249
56.0k
                av_log(s->avctx, AV_LOG_ERROR, "big_values too big\n");
1250
56.0k
                return AVERROR_INVALIDDATA;
1251
56.0k
            }
1252
1253
3.50M
            g->global_gain = get_bits(&s->gb, 8);
1254
            /* if MS stereo only is selected, we precompute the
1255
               1/sqrt(2) renormalization factor */
1256
3.50M
            if ((s->mode_ext & (MODE_EXT_MS_STEREO | MODE_EXT_I_STEREO)) ==
1257
3.50M
                MODE_EXT_MS_STEREO)
1258
314k
                g->global_gain -= 2;
1259
3.50M
            if (s->lsf)
1260
3.01M
                g->scalefac_compress = get_bits(&s->gb, 9);
1261
484k
            else
1262
484k
                g->scalefac_compress = get_bits(&s->gb, 4);
1263
3.50M
            blocksplit_flag = get_bits1(&s->gb);
1264
3.50M
            if (blocksplit_flag) {
1265
2.08M
                g->block_type = get_bits(&s->gb, 2);
1266
2.08M
                if (g->block_type == 0) {
1267
12.9k
                    av_log(s->avctx, AV_LOG_ERROR, "invalid block type\n");
1268
12.9k
                    return AVERROR_INVALIDDATA;
1269
12.9k
                }
1270
2.07M
                g->switch_point = get_bits1(&s->gb);
1271
6.21M
                for (i = 0; i < 2; i++)
1272
4.14M
                    g->table_select[i] = get_bits(&s->gb, 5);
1273
8.28M
                for (i = 0; i < 3; i++)
1274
6.21M
                    g->subblock_gain[i] = get_bits(&s->gb, 3);
1275
2.07M
                init_short_region(s, g);
1276
2.07M
            } else {
1277
1.41M
                int region_address1, region_address2;
1278
1.41M
                g->block_type = 0;
1279
1.41M
                g->switch_point = 0;
1280
5.67M
                for (i = 0; i < 3; i++)
1281
4.25M
                    g->table_select[i] = get_bits(&s->gb, 5);
1282
                /* compute huffman coded region sizes */
1283
1.41M
                region_address1 = get_bits(&s->gb, 4);
1284
1.41M
                region_address2 = get_bits(&s->gb, 3);
1285
1.41M
                ff_dlog(s->avctx, "region1=%d region2=%d\n",
1286
1.41M
                        region_address1, region_address2);
1287
1.41M
                init_long_region(s, g, region_address1, region_address2);
1288
1.41M
            }
1289
3.48M
            region_offset2size(g);
1290
3.48M
            compute_band_indexes(s, g);
1291
1292
3.48M
            g->preflag = 0;
1293
3.48M
            if (!s->lsf)
1294
476k
                g->preflag = get_bits1(&s->gb);
1295
3.48M
            g->scalefac_scale     = get_bits1(&s->gb);
1296
3.48M
            g->count1table_select = get_bits1(&s->gb);
1297
3.48M
            ff_dlog(s->avctx, "block_type=%d switch_point=%d\n",
1298
3.48M
                    g->block_type, g->switch_point);
1299
3.48M
        }
1300
1.81M
    }
1301
1302
1.61M
    if (!s->adu_mode) {
1303
1.48M
        int skip;
1304
1.48M
        const uint8_t *ptr = s->gb.buffer + (get_bits_count(&s->gb) >> 3);
1305
1.48M
        s->extrasize = av_clip((get_bits_left(&s->gb) >> 3) - s->extrasize, 0,
1306
1.48M
                               FFMAX(0, LAST_BUF_SIZE - s->last_buf_size));
1307
1.48M
        av_assert1((get_bits_count(&s->gb) & 7) == 0);
1308
        /* now we get bits from the main_data_begin offset */
1309
1.48M
        ff_dlog(s->avctx, "seekback:%d, lastbuf:%d\n",
1310
1.48M
                main_data_begin, s->last_buf_size);
1311
1312
1.48M
        memcpy(s->last_buf + s->last_buf_size, ptr, s->extrasize);
1313
1.48M
        s->in_gb = s->gb;
1314
1.48M
        init_get_bits(&s->gb, s->last_buf, (s->last_buf_size + s->extrasize) * 8);
1315
1.48M
        s->last_buf_size <<= 3;
1316
2.11M
        for (gr = 0; gr < nb_granules && (s->last_buf_size >> 3) < main_data_begin; gr++) {
1317
1.86M
            for (ch = 0; ch < s->nb_channels; ch++) {
1318
1.24M
                g = &s->granules[ch][gr];
1319
1.24M
                s->last_buf_size += g->part2_3_length;
1320
1.24M
                memset(g->sb_hybrid, 0, sizeof(g->sb_hybrid));
1321
1.24M
                compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
1322
1.24M
            }
1323
625k
        }
1324
1.48M
        skip = s->last_buf_size - 8 * main_data_begin;
1325
1.48M
        if (skip >= s->gb.size_in_bits - s->extrasize * 8 && s->in_gb.buffer) {
1326
340k
            skip_bits_long(&s->in_gb, skip - s->gb.size_in_bits + s->extrasize * 8);
1327
340k
            s->gb           = s->in_gb;
1328
340k
            s->in_gb.buffer = NULL;
1329
340k
            s->extrasize    = 0;
1330
1.14M
        } else {
1331
1.14M
            skip_bits_long(&s->gb, skip);
1332
1.14M
        }
1333
1.48M
    } else {
1334
129k
        gr = 0;
1335
129k
        s->extrasize = 0;
1336
129k
    }
1337
1338
2.74M
    for (; gr < nb_granules; gr++) {
1339
3.31M
        for (ch = 0; ch < s->nb_channels; ch++) {
1340
2.19M
            g = &s->granules[ch][gr];
1341
2.19M
            bits_pos = get_bits_count(&s->gb);
1342
1343
2.19M
            if (!s->lsf) {
1344
436k
                uint8_t *sc;
1345
436k
                int slen, slen1, slen2;
1346
1347
                /* MPEG-1 scale factors */
1348
436k
                slen1 = ff_slen_table[0][g->scalefac_compress];
1349
436k
                slen2 = ff_slen_table[1][g->scalefac_compress];
1350
436k
                ff_dlog(s->avctx, "slen1=%d slen2=%d\n", slen1, slen2);
1351
436k
                if (g->block_type == 2) {
1352
40.2k
                    n = g->switch_point ? 17 : 18;
1353
40.2k
                    j = 0;
1354
40.2k
                    if (slen1) {
1355
534k
                        for (i = 0; i < n; i++)
1356
505k
                            g->scale_factors[j++] = get_bits(&s->gb, slen1);
1357
28.7k
                    } else {
1358
212k
                        for (i = 0; i < n; i++)
1359
201k
                            g->scale_factors[j++] = 0;
1360
11.4k
                    }
1361
40.2k
                    if (slen2) {
1362
626k
                        for (i = 0; i < 18; i++)
1363
593k
                            g->scale_factors[j++] = get_bits(&s->gb, slen2);
1364
131k
                        for (i = 0; i < 3; i++)
1365
98.9k
                            g->scale_factors[j++] = 0;
1366
32.9k
                    } else {
1367
159k
                        for (i = 0; i < 21; i++)
1368
152k
                            g->scale_factors[j++] = 0;
1369
7.25k
                    }
1370
396k
                } else {
1371
396k
                    sc = s->granules[ch][0].scale_factors;
1372
396k
                    j = 0;
1373
1.98M
                    for (k = 0; k < 4; k++) {
1374
1.58M
                        n = k == 0 ? 6 : 5;
1375
1.58M
                        if ((g->scfsi & (0x8 >> k)) == 0) {
1376
1.52M
                            slen = (k < 2) ? slen1 : slen2;
1377
1.52M
                            if (slen) {
1378
492k
                                for (i = 0; i < n; i++)
1379
413k
                                    g->scale_factors[j++] = get_bits(&s->gb, slen);
1380
1.44M
                            } else {
1381
9.05M
                                for (i = 0; i < n; i++)
1382
7.60M
                                    g->scale_factors[j++] = 0;
1383
1.44M
                            }
1384
1.52M
                        } else {
1385
                            /* simply copy from last granule */
1386
358k
                            for (i = 0; i < n; i++) {
1387
300k
                                g->scale_factors[j] = sc[j];
1388
300k
                                j++;
1389
300k
                            }
1390
58.1k
                        }
1391
1.58M
                    }
1392
396k
                    g->scale_factors[j++] = 0;
1393
396k
                }
1394
1.76M
            } else {
1395
1.76M
                int tindex, tindex2, slen[4], sl, sf;
1396
1397
                /* LSF scale factors */
1398
1.76M
                if (g->block_type == 2)
1399
444k
                    tindex = g->switch_point ? 2 : 1;
1400
1.31M
                else
1401
1.31M
                    tindex = 0;
1402
1403
1.76M
                sf = g->scalefac_compress;
1404
1.76M
                if ((s->mode_ext & MODE_EXT_I_STEREO) && ch == 1) {
1405
                    /* intensity stereo case */
1406
775k
                    sf >>= 1;
1407
775k
                    if (sf < 180) {
1408
684k
                        lsf_sf_expand(slen, sf, 6, 6, 0);
1409
684k
                        tindex2 = 3;
1410
684k
                    } else if (sf < 244) {
1411
86.7k
                        lsf_sf_expand(slen, sf - 180, 4, 4, 0);
1412
86.7k
                        tindex2 = 4;
1413
86.7k
                    } else {
1414
3.98k
                        lsf_sf_expand(slen, sf - 244, 3, 0, 0);
1415
3.98k
                        tindex2 = 5;
1416
3.98k
                    }
1417
986k
                } else {
1418
                    /* normal case */
1419
986k
                    if (sf < 400) {
1420
680k
                        lsf_sf_expand(slen, sf, 5, 4, 4);
1421
680k
                        tindex2 = 0;
1422
680k
                    } else if (sf < 500) {
1423
300k
                        lsf_sf_expand(slen, sf - 400, 5, 4, 0);
1424
300k
                        tindex2 = 1;
1425
300k
                    } else {
1426
5.84k
                        lsf_sf_expand(slen, sf - 500, 3, 0, 0);
1427
5.84k
                        tindex2 = 2;
1428
5.84k
                        g->preflag = 1;
1429
5.84k
                    }
1430
986k
                }
1431
1432
1.76M
                j = 0;
1433
8.80M
                for (k = 0; k < 4; k++) {
1434
7.04M
                    n  = ff_lsf_nsf_table[tindex2][tindex][k];
1435
7.04M
                    sl = slen[k];
1436
7.04M
                    if (sl) {
1437
26.7M
                        for (i = 0; i < n; i++)
1438
23.4M
                            g->scale_factors[j++] = get_bits(&s->gb, sl);
1439
3.78M
                    } else {
1440
22.7M
                        for (i = 0; i < n; i++)
1441
19.0M
                            g->scale_factors[j++] = 0;
1442
3.78M
                    }
1443
7.04M
                }
1444
                /* XXX: should compute exact size */
1445
29.7M
                for (; j < 40; j++)
1446
28.0M
                    g->scale_factors[j] = 0;
1447
1.76M
            }
1448
1449
2.19M
            exponents_from_scale_factors(s, g, exponents);
1450
1451
            /* read Huffman coded residue */
1452
2.19M
            huffman_decode(s, g, exponents, bits_pos + g->part2_3_length);
1453
2.19M
        } /* ch */
1454
1455
1.12M
        if (s->mode == MPA_JSTEREO)
1456
1.01M
            compute_stereo(s, &s->granules[0][gr], &s->granules[1][gr]);
1457
1458
3.31M
        for (ch = 0; ch < s->nb_channels; ch++) {
1459
2.19M
            g = &s->granules[ch][gr];
1460
1461
2.19M
            reorder_block(s, g);
1462
2.19M
            compute_antialias(s, g);
1463
2.19M
            compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
1464
2.19M
        }
1465
1.12M
    } /* gr */
1466
1.61M
    if (get_bits_count(&s->gb) < 0)
1467
0
        skip_bits_long(&s->gb, -get_bits_count(&s->gb));
1468
1.61M
    return nb_granules * 18;
1469
1.68M
}
mpegaudiodec_fixed.c:mp_decode_layer3
Line
Count
Source
1213
1.61M
{
1214
1.61M
    int nb_granules, main_data_begin;
1215
1.61M
    int gr, ch, blocksplit_flag, i, j, k, n, bits_pos;
1216
1.61M
    GranuleDef *g;
1217
1.61M
    int16_t exponents[576]; //FIXME try INTFLOAT
1218
1.61M
    int ret;
1219
1220
    /* read side info */
1221
1.61M
    if (s->lsf) {
1222
1.38M
        ret = handle_crc(s, ((s->nb_channels == 1) ? 8*9  : 8*17));
1223
1.38M
        main_data_begin = get_bits(&s->gb, 8);
1224
1.38M
        skip_bits(&s->gb, s->nb_channels);
1225
1.38M
        nb_granules = 1;
1226
1.38M
    } else {
1227
226k
        ret = handle_crc(s, ((s->nb_channels == 1) ? 8*17 : 8*32));
1228
226k
        main_data_begin = get_bits(&s->gb, 9);
1229
226k
        if (s->nb_channels == 2)
1230
210k
            skip_bits(&s->gb, 3);
1231
15.2k
        else
1232
15.2k
            skip_bits(&s->gb, 5);
1233
226k
        nb_granules = 2;
1234
663k
        for (ch = 0; ch < s->nb_channels; ch++) {
1235
437k
            s->granules[ch][0].scfsi = 0;/* all scale factors are transmitted */
1236
437k
            s->granules[ch][1].scfsi = get_bits(&s->gb, 4);
1237
437k
        }
1238
226k
    }
1239
1.61M
    if (ret < 0)
1240
4.79k
        return ret;
1241
1242
3.38M
    for (gr = 0; gr < nb_granules; gr++) {
1243
5.35M
        for (ch = 0; ch < s->nb_channels; ch++) {
1244
3.57M
            ff_dlog(s->avctx, "gr=%d ch=%d: side_info\n", gr, ch);
1245
3.57M
            g = &s->granules[ch][gr];
1246
3.57M
            g->part2_3_length = get_bits(&s->gb, 12);
1247
3.57M
            g->big_values     = get_bits(&s->gb,  9);
1248
3.57M
            if (g->big_values > 288) {
1249
37.3k
                av_log(s->avctx, AV_LOG_ERROR, "big_values too big\n");
1250
37.3k
                return AVERROR_INVALIDDATA;
1251
37.3k
            }
1252
1253
3.53M
            g->global_gain = get_bits(&s->gb, 8);
1254
            /* if MS stereo only is selected, we precompute the
1255
               1/sqrt(2) renormalization factor */
1256
3.53M
            if ((s->mode_ext & (MODE_EXT_MS_STEREO | MODE_EXT_I_STEREO)) ==
1257
3.53M
                MODE_EXT_MS_STEREO)
1258
415k
                g->global_gain -= 2;
1259
3.53M
            if (s->lsf)
1260
2.71M
                g->scalefac_compress = get_bits(&s->gb, 9);
1261
820k
            else
1262
820k
                g->scalefac_compress = get_bits(&s->gb, 4);
1263
3.53M
            blocksplit_flag = get_bits1(&s->gb);
1264
3.53M
            if (blocksplit_flag) {
1265
1.89M
                g->block_type = get_bits(&s->gb, 2);
1266
1.89M
                if (g->block_type == 0) {
1267
6.96k
                    av_log(s->avctx, AV_LOG_ERROR, "invalid block type\n");
1268
6.96k
                    return AVERROR_INVALIDDATA;
1269
6.96k
                }
1270
1.88M
                g->switch_point = get_bits1(&s->gb);
1271
5.66M
                for (i = 0; i < 2; i++)
1272
3.77M
                    g->table_select[i] = get_bits(&s->gb, 5);
1273
7.54M
                for (i = 0; i < 3; i++)
1274
5.66M
                    g->subblock_gain[i] = get_bits(&s->gb, 3);
1275
1.88M
                init_short_region(s, g);
1276
1.88M
            } else {
1277
1.64M
                int region_address1, region_address2;
1278
1.64M
                g->block_type = 0;
1279
1.64M
                g->switch_point = 0;
1280
6.57M
                for (i = 0; i < 3; i++)
1281
4.93M
                    g->table_select[i] = get_bits(&s->gb, 5);
1282
                /* compute huffman coded region sizes */
1283
1.64M
                region_address1 = get_bits(&s->gb, 4);
1284
1.64M
                region_address2 = get_bits(&s->gb, 3);
1285
1.64M
                ff_dlog(s->avctx, "region1=%d region2=%d\n",
1286
1.64M
                        region_address1, region_address2);
1287
1.64M
                init_long_region(s, g, region_address1, region_address2);
1288
1.64M
            }
1289
3.53M
            region_offset2size(g);
1290
3.53M
            compute_band_indexes(s, g);
1291
1292
3.53M
            g->preflag = 0;
1293
3.53M
            if (!s->lsf)
1294
816k
                g->preflag = get_bits1(&s->gb);
1295
3.53M
            g->scalefac_scale     = get_bits1(&s->gb);
1296
3.53M
            g->count1table_select = get_bits1(&s->gb);
1297
3.53M
            ff_dlog(s->avctx, "block_type=%d switch_point=%d\n",
1298
3.53M
                    g->block_type, g->switch_point);
1299
3.53M
        }
1300
1.82M
    }
1301
1302
1.56M
    if (!s->adu_mode) {
1303
1.29M
        int skip;
1304
1.29M
        const uint8_t *ptr = s->gb.buffer + (get_bits_count(&s->gb) >> 3);
1305
1.29M
        s->extrasize = av_clip((get_bits_left(&s->gb) >> 3) - s->extrasize, 0,
1306
1.29M
                               FFMAX(0, LAST_BUF_SIZE - s->last_buf_size));
1307
1.29M
        av_assert1((get_bits_count(&s->gb) & 7) == 0);
1308
        /* now we get bits from the main_data_begin offset */
1309
1.29M
        ff_dlog(s->avctx, "seekback:%d, lastbuf:%d\n",
1310
1.29M
                main_data_begin, s->last_buf_size);
1311
1312
1.29M
        memcpy(s->last_buf + s->last_buf_size, ptr, s->extrasize);
1313
1.29M
        s->in_gb = s->gb;
1314
1.29M
        init_get_bits(&s->gb, s->last_buf, (s->last_buf_size + s->extrasize) * 8);
1315
1.29M
        s->last_buf_size <<= 3;
1316
1.70M
        for (gr = 0; gr < nb_granules && (s->last_buf_size >> 3) < main_data_begin; gr++) {
1317
1.22M
            for (ch = 0; ch < s->nb_channels; ch++) {
1318
811k
                g = &s->granules[ch][gr];
1319
811k
                s->last_buf_size += g->part2_3_length;
1320
811k
                memset(g->sb_hybrid, 0, sizeof(g->sb_hybrid));
1321
811k
                compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
1322
811k
            }
1323
414k
        }
1324
1.29M
        skip = s->last_buf_size - 8 * main_data_begin;
1325
1.29M
        if (skip >= s->gb.size_in_bits - s->extrasize * 8 && s->in_gb.buffer) {
1326
388k
            skip_bits_long(&s->in_gb, skip - s->gb.size_in_bits + s->extrasize * 8);
1327
388k
            s->gb           = s->in_gb;
1328
388k
            s->in_gb.buffer = NULL;
1329
388k
            s->extrasize    = 0;
1330
903k
        } else {
1331
903k
            skip_bits_long(&s->gb, skip);
1332
903k
        }
1333
1.29M
    } else {
1334
272k
        gr = 0;
1335
272k
        s->extrasize = 0;
1336
272k
    }
1337
1338
2.92M
    for (; gr < nb_granules; gr++) {
1339
4.05M
        for (ch = 0; ch < s->nb_channels; ch++) {
1340
2.69M
            g = &s->granules[ch][gr];
1341
2.69M
            bits_pos = get_bits_count(&s->gb);
1342
1343
2.69M
            if (!s->lsf) {
1344
753k
                uint8_t *sc;
1345
753k
                int slen, slen1, slen2;
1346
1347
                /* MPEG-1 scale factors */
1348
753k
                slen1 = ff_slen_table[0][g->scalefac_compress];
1349
753k
                slen2 = ff_slen_table[1][g->scalefac_compress];
1350
753k
                ff_dlog(s->avctx, "slen1=%d slen2=%d\n", slen1, slen2);
1351
753k
                if (g->block_type == 2) {
1352
30.8k
                    n = g->switch_point ? 17 : 18;
1353
30.8k
                    j = 0;
1354
30.8k
                    if (slen1) {
1355
405k
                        for (i = 0; i < n; i++)
1356
384k
                            g->scale_factors[j++] = get_bits(&s->gb, slen1);
1357
21.8k
                    } else {
1358
165k
                        for (i = 0; i < n; i++)
1359
156k
                            g->scale_factors[j++] = 0;
1360
8.95k
                    }
1361
30.8k
                    if (slen2) {
1362
483k
                        for (i = 0; i < 18; i++)
1363
458k
                            g->scale_factors[j++] = get_bits(&s->gb, slen2);
1364
101k
                        for (i = 0; i < 3; i++)
1365
76.4k
                            g->scale_factors[j++] = 0;
1366
25.4k
                    } else {
1367
117k
                        for (i = 0; i < 21; i++)
1368
111k
                            g->scale_factors[j++] = 0;
1369
5.33k
                    }
1370
722k
                } else {
1371
722k
                    sc = s->granules[ch][0].scale_factors;
1372
722k
                    j = 0;
1373
3.61M
                    for (k = 0; k < 4; k++) {
1374
2.89M
                        n = k == 0 ? 6 : 5;
1375
2.89M
                        if ((g->scfsi & (0x8 >> k)) == 0) {
1376
2.81M
                            slen = (k < 2) ? slen1 : slen2;
1377
2.81M
                            if (slen) {
1378
587k
                                for (i = 0; i < n; i++)
1379
493k
                                    g->scale_factors[j++] = get_bits(&s->gb, slen);
1380
2.71M
                            } else {
1381
16.9M
                                for (i = 0; i < n; i++)
1382
14.2M
                                    g->scale_factors[j++] = 0;
1383
2.71M
                            }
1384
2.81M
                        } else {
1385
                            /* simply copy from last granule */
1386
495k
                            for (i = 0; i < n; i++) {
1387
415k
                                g->scale_factors[j] = sc[j];
1388
415k
                                j++;
1389
415k
                            }
1390
80.4k
                        }
1391
2.89M
                    }
1392
722k
                    g->scale_factors[j++] = 0;
1393
722k
                }
1394
1.94M
            } else {
1395
1.94M
                int tindex, tindex2, slen[4], sl, sf;
1396
1397
                /* LSF scale factors */
1398
1.94M
                if (g->block_type == 2)
1399
307k
                    tindex = g->switch_point ? 2 : 1;
1400
1.63M
                else
1401
1.63M
                    tindex = 0;
1402
1403
1.94M
                sf = g->scalefac_compress;
1404
1.94M
                if ((s->mode_ext & MODE_EXT_I_STEREO) && ch == 1) {
1405
                    /* intensity stereo case */
1406
580k
                    sf >>= 1;
1407
580k
                    if (sf < 180) {
1408
572k
                        lsf_sf_expand(slen, sf, 6, 6, 0);
1409
572k
                        tindex2 = 3;
1410
572k
                    } else if (sf < 244) {
1411
4.14k
                        lsf_sf_expand(slen, sf - 180, 4, 4, 0);
1412
4.14k
                        tindex2 = 4;
1413
4.14k
                    } else {
1414
4.04k
                        lsf_sf_expand(slen, sf - 244, 3, 0, 0);
1415
4.04k
                        tindex2 = 5;
1416
4.04k
                    }
1417
1.35M
                } else {
1418
                    /* normal case */
1419
1.35M
                    if (sf < 400) {
1420
1.03M
                        lsf_sf_expand(slen, sf, 5, 4, 4);
1421
1.03M
                        tindex2 = 0;
1422
1.03M
                    } else if (sf < 500) {
1423
314k
                        lsf_sf_expand(slen, sf - 400, 5, 4, 0);
1424
314k
                        tindex2 = 1;
1425
314k
                    } else {
1426
12.1k
                        lsf_sf_expand(slen, sf - 500, 3, 0, 0);
1427
12.1k
                        tindex2 = 2;
1428
12.1k
                        g->preflag = 1;
1429
12.1k
                    }
1430
1.35M
                }
1431
1432
1.94M
                j = 0;
1433
9.70M
                for (k = 0; k < 4; k++) {
1434
7.76M
                    n  = ff_lsf_nsf_table[tindex2][tindex][k];
1435
7.76M
                    sl = slen[k];
1436
7.76M
                    if (sl) {
1437
30.2M
                        for (i = 0; i < n; i++)
1438
26.2M
                            g->scale_factors[j++] = get_bits(&s->gb, sl);
1439
4.03M
                    } else {
1440
21.9M
                        for (i = 0; i < n; i++)
1441
18.2M
                            g->scale_factors[j++] = 0;
1442
3.72M
                    }
1443
7.76M
                }
1444
                /* XXX: should compute exact size */
1445
35.1M
                for (; j < 40; j++)
1446
33.1M
                    g->scale_factors[j] = 0;
1447
1.94M
            }
1448
1449
2.69M
            exponents_from_scale_factors(s, g, exponents);
1450
1451
            /* read Huffman coded residue */
1452
2.69M
            huffman_decode(s, g, exponents, bits_pos + g->part2_3_length);
1453
2.69M
        } /* ch */
1454
1455
1.35M
        if (s->mode == MPA_JSTEREO)
1456
969k
            compute_stereo(s, &s->granules[0][gr], &s->granules[1][gr]);
1457
1458
4.05M
        for (ch = 0; ch < s->nb_channels; ch++) {
1459
2.69M
            g = &s->granules[ch][gr];
1460
1461
2.69M
            reorder_block(s, g);
1462
2.69M
            compute_antialias(s, g);
1463
2.69M
            compute_imdct(s, g, &s->sb_samples[ch][18 * gr][0], s->mdct_buf[ch]);
1464
2.69M
        }
1465
1.35M
    } /* gr */
1466
1.56M
    if (get_bits_count(&s->gb) < 0)
1467
0
        skip_bits_long(&s->gb, -get_bits_count(&s->gb));
1468
1.56M
    return nb_granules * 18;
1469
1.60M
}
1470
1471
static int mp_decode_frame(MPADecodeContext *s, OUT_INT **samples,
1472
                           const uint8_t *buf, int buf_size)
1473
4.39M
{
1474
4.39M
    int i, nb_frames, ch, ret;
1475
4.39M
    OUT_INT *samples_ptr;
1476
1477
4.39M
    init_get_bits(&s->gb, buf + HEADER_SIZE, (buf_size - HEADER_SIZE) * 8);
1478
4.39M
    if (s->error_protection)
1479
916k
        s->crc = get_bits(&s->gb, 16);
1480
1481
4.39M
    switch(s->layer) {
1482
844k
    case 1:
1483
844k
        s->avctx->frame_size = 384;
1484
844k
        nb_frames = mp_decode_layer1(s);
1485
844k
        break;
1486
246k
    case 2:
1487
246k
        s->avctx->frame_size = 1152;
1488
246k
        nb_frames = mp_decode_layer2(s);
1489
246k
        break;
1490
3.30M
    case 3:
1491
3.30M
        s->avctx->frame_size = s->lsf ? 576 : 1152;
1492
3.30M
        av_fallthrough;
1493
3.30M
    default:
1494
3.30M
        nb_frames = mp_decode_layer3(s);
1495
1496
3.30M
        s->last_buf_size=0;
1497
3.30M
        if (s->in_gb.buffer) {
1498
849k
            align_get_bits(&s->gb);
1499
849k
            i = (get_bits_left(&s->gb) >> 3) - s->extrasize;
1500
849k
            if (i >= 0 && i <= BACKSTEP_SIZE) {
1501
849k
                memmove(s->last_buf, s->gb.buffer + (get_bits_count(&s->gb) >> 3), i);
1502
849k
                s->last_buf_size=i;
1503
849k
            } else
1504
0
                av_log(s->avctx, AV_LOG_ERROR, "invalid old backstep %d\n", i);
1505
849k
            s->gb           = s->in_gb;
1506
849k
            s->in_gb.buffer = NULL;
1507
849k
            s->extrasize    = 0;
1508
849k
        }
1509
1510
3.30M
        align_get_bits(&s->gb);
1511
3.30M
        av_assert1((get_bits_count(&s->gb) & 7) == 0);
1512
3.30M
        i = (get_bits_left(&s->gb) >> 3) - s->extrasize;
1513
3.30M
        if (i < 0 || i > BACKSTEP_SIZE || nb_frames < 0) {
1514
1.07M
            if (i < 0)
1515
972k
                av_log(s->avctx, AV_LOG_ERROR, "invalid new backstep %d\n", i);
1516
1.07M
            i = FFMIN(BACKSTEP_SIZE, buf_size - HEADER_SIZE);
1517
1.07M
        }
1518
3.30M
        av_assert1(i <= buf_size - HEADER_SIZE && i >= 0);
1519
3.30M
        memcpy(s->last_buf + s->last_buf_size, s->gb.buffer + buf_size - HEADER_SIZE - i, i);
1520
3.30M
        s->last_buf_size += i;
1521
4.39M
    }
1522
1523
4.39M
    if(nb_frames < 0)
1524
129k
        return nb_frames;
1525
1526
    /* get output buffer */
1527
4.26M
    if (!samples) {
1528
3.90M
        av_assert0(s->frame);
1529
3.90M
        s->frame->nb_samples = s->avctx->frame_size;
1530
3.90M
        if ((ret = ff_get_buffer(s->avctx, s->frame, 0)) < 0)
1531
0
            return ret;
1532
3.90M
        samples = (OUT_INT **)s->frame->extended_data;
1533
3.90M
    }
1534
1535
    /* apply the synthesis filter */
1536
12.1M
    for (ch = 0; ch < s->nb_channels; ch++) {
1537
7.83M
        int sample_stride;
1538
7.83M
        if (s->avctx->sample_fmt == OUT_FMT_P) {
1539
7.83M
            samples_ptr   = samples[ch];
1540
7.83M
            sample_stride = 1;
1541
7.83M
        } else {
1542
0
            samples_ptr   = samples[0] + ch;
1543
0
            sample_stride = s->nb_channels;
1544
0
        }
1545
162M
        for (i = 0; i < nb_frames; i++) {
1546
154M
            RENAME(ff_mpa_synth_filter)(&s->mpadsp, s->synth_buf[ch],
1547
154M
                                        &(s->synth_buf_offset[ch]),
1548
154M
                                        RENAME(ff_mpa_synth_window),
1549
154M
                                        &s->dither_state, samples_ptr,
1550
154M
                                        sample_stride, s->sb_samples[ch][i]);
1551
154M
            samples_ptr += 32 * sample_stride;
1552
154M
        }
1553
7.83M
    }
1554
1555
4.26M
    return nb_frames * 32 * sizeof(OUT_INT) * s->nb_channels;
1556
4.26M
}
mpegaudiodec_float.c:mp_decode_frame
Line
Count
Source
1473
2.36M
{
1474
2.36M
    int i, nb_frames, ch, ret;
1475
2.36M
    OUT_INT *samples_ptr;
1476
1477
2.36M
    init_get_bits(&s->gb, buf + HEADER_SIZE, (buf_size - HEADER_SIZE) * 8);
1478
2.36M
    if (s->error_protection)
1479
480k
        s->crc = get_bits(&s->gb, 16);
1480
1481
2.36M
    switch(s->layer) {
1482
516k
    case 1:
1483
516k
        s->avctx->frame_size = 384;
1484
516k
        nb_frames = mp_decode_layer1(s);
1485
516k
        break;
1486
152k
    case 2:
1487
152k
        s->avctx->frame_size = 1152;
1488
152k
        nb_frames = mp_decode_layer2(s);
1489
152k
        break;
1490
1.69M
    case 3:
1491
1.69M
        s->avctx->frame_size = s->lsf ? 576 : 1152;
1492
1.69M
        av_fallthrough;
1493
1.69M
    default:
1494
1.69M
        nb_frames = mp_decode_layer3(s);
1495
1496
1.69M
        s->last_buf_size=0;
1497
1.69M
        if (s->in_gb.buffer) {
1498
508k
            align_get_bits(&s->gb);
1499
508k
            i = (get_bits_left(&s->gb) >> 3) - s->extrasize;
1500
508k
            if (i >= 0 && i <= BACKSTEP_SIZE) {
1501
508k
                memmove(s->last_buf, s->gb.buffer + (get_bits_count(&s->gb) >> 3), i);
1502
508k
                s->last_buf_size=i;
1503
508k
            } else
1504
0
                av_log(s->avctx, AV_LOG_ERROR, "invalid old backstep %d\n", i);
1505
508k
            s->gb           = s->in_gb;
1506
508k
            s->in_gb.buffer = NULL;
1507
508k
            s->extrasize    = 0;
1508
508k
        }
1509
1510
1.69M
        align_get_bits(&s->gb);
1511
1.69M
        av_assert1((get_bits_count(&s->gb) & 7) == 0);
1512
1.69M
        i = (get_bits_left(&s->gb) >> 3) - s->extrasize;
1513
1.69M
        if (i < 0 || i > BACKSTEP_SIZE || nb_frames < 0) {
1514
557k
            if (i < 0)
1515
490k
                av_log(s->avctx, AV_LOG_ERROR, "invalid new backstep %d\n", i);
1516
557k
            i = FFMIN(BACKSTEP_SIZE, buf_size - HEADER_SIZE);
1517
557k
        }
1518
1.69M
        av_assert1(i <= buf_size - HEADER_SIZE && i >= 0);
1519
1.69M
        memcpy(s->last_buf + s->last_buf_size, s->gb.buffer + buf_size - HEADER_SIZE - i, i);
1520
1.69M
        s->last_buf_size += i;
1521
2.36M
    }
1522
1523
2.36M
    if(nb_frames < 0)
1524
76.0k
        return nb_frames;
1525
1526
    /* get output buffer */
1527
2.28M
    if (!samples) {
1528
2.11M
        av_assert0(s->frame);
1529
2.11M
        s->frame->nb_samples = s->avctx->frame_size;
1530
2.11M
        if ((ret = ff_get_buffer(s->avctx, s->frame, 0)) < 0)
1531
0
            return ret;
1532
2.11M
        samples = (OUT_INT **)s->frame->extended_data;
1533
2.11M
    }
1534
1535
    /* apply the synthesis filter */
1536
6.47M
    for (ch = 0; ch < s->nb_channels; ch++) {
1537
4.19M
        int sample_stride;
1538
4.19M
        if (s->avctx->sample_fmt == OUT_FMT_P) {
1539
4.19M
            samples_ptr   = samples[ch];
1540
4.19M
            sample_stride = 1;
1541
4.19M
        } else {
1542
0
            samples_ptr   = samples[0] + ch;
1543
0
            sample_stride = s->nb_channels;
1544
0
        }
1545
84.9M
        for (i = 0; i < nb_frames; i++) {
1546
80.7M
            RENAME(ff_mpa_synth_filter)(&s->mpadsp, s->synth_buf[ch],
1547
80.7M
                                        &(s->synth_buf_offset[ch]),
1548
80.7M
                                        RENAME(ff_mpa_synth_window),
1549
80.7M
                                        &s->dither_state, samples_ptr,
1550
80.7M
                                        sample_stride, s->sb_samples[ch][i]);
1551
80.7M
            samples_ptr += 32 * sample_stride;
1552
80.7M
        }
1553
4.19M
    }
1554
1555
2.28M
    return nb_frames * 32 * sizeof(OUT_INT) * s->nb_channels;
1556
2.28M
}
mpegaudiodec_fixed.c:mp_decode_frame
Line
Count
Source
1473
2.03M
{
1474
2.03M
    int i, nb_frames, ch, ret;
1475
2.03M
    OUT_INT *samples_ptr;
1476
1477
2.03M
    init_get_bits(&s->gb, buf + HEADER_SIZE, (buf_size - HEADER_SIZE) * 8);
1478
2.03M
    if (s->error_protection)
1479
436k
        s->crc = get_bits(&s->gb, 16);
1480
1481
2.03M
    switch(s->layer) {
1482
327k
    case 1:
1483
327k
        s->avctx->frame_size = 384;
1484
327k
        nb_frames = mp_decode_layer1(s);
1485
327k
        break;
1486
93.9k
    case 2:
1487
93.9k
        s->avctx->frame_size = 1152;
1488
93.9k
        nb_frames = mp_decode_layer2(s);
1489
93.9k
        break;
1490
1.61M
    case 3:
1491
1.61M
        s->avctx->frame_size = s->lsf ? 576 : 1152;
1492
1.61M
        av_fallthrough;
1493
1.61M
    default:
1494
1.61M
        nb_frames = mp_decode_layer3(s);
1495
1496
1.61M
        s->last_buf_size=0;
1497
1.61M
        if (s->in_gb.buffer) {
1498
340k
            align_get_bits(&s->gb);
1499
340k
            i = (get_bits_left(&s->gb) >> 3) - s->extrasize;
1500
340k
            if (i >= 0 && i <= BACKSTEP_SIZE) {
1501
340k
                memmove(s->last_buf, s->gb.buffer + (get_bits_count(&s->gb) >> 3), i);
1502
340k
                s->last_buf_size=i;
1503
340k
            } else
1504
0
                av_log(s->avctx, AV_LOG_ERROR, "invalid old backstep %d\n", i);
1505
340k
            s->gb           = s->in_gb;
1506
340k
            s->in_gb.buffer = NULL;
1507
340k
            s->extrasize    = 0;
1508
340k
        }
1509
1510
1.61M
        align_get_bits(&s->gb);
1511
1.61M
        av_assert1((get_bits_count(&s->gb) & 7) == 0);
1512
1.61M
        i = (get_bits_left(&s->gb) >> 3) - s->extrasize;
1513
1.61M
        if (i < 0 || i > BACKSTEP_SIZE || nb_frames < 0) {
1514
522k
            if (i < 0)
1515
481k
                av_log(s->avctx, AV_LOG_ERROR, "invalid new backstep %d\n", i);
1516
522k
            i = FFMIN(BACKSTEP_SIZE, buf_size - HEADER_SIZE);
1517
522k
        }
1518
1.61M
        av_assert1(i <= buf_size - HEADER_SIZE && i >= 0);
1519
1.61M
        memcpy(s->last_buf + s->last_buf_size, s->gb.buffer + buf_size - HEADER_SIZE - i, i);
1520
1.61M
        s->last_buf_size += i;
1521
2.03M
    }
1522
1523
2.03M
    if(nb_frames < 0)
1524
52.9k
        return nb_frames;
1525
1526
    /* get output buffer */
1527
1.98M
    if (!samples) {
1528
1.79M
        av_assert0(s->frame);
1529
1.79M
        s->frame->nb_samples = s->avctx->frame_size;
1530
1.79M
        if ((ret = ff_get_buffer(s->avctx, s->frame, 0)) < 0)
1531
0
            return ret;
1532
1.79M
        samples = (OUT_INT **)s->frame->extended_data;
1533
1.79M
    }
1534
1535
    /* apply the synthesis filter */
1536
5.62M
    for (ch = 0; ch < s->nb_channels; ch++) {
1537
3.64M
        int sample_stride;
1538
3.64M
        if (s->avctx->sample_fmt == OUT_FMT_P) {
1539
3.64M
            samples_ptr   = samples[ch];
1540
3.64M
            sample_stride = 1;
1541
3.64M
        } else {
1542
0
            samples_ptr   = samples[0] + ch;
1543
0
            sample_stride = s->nb_channels;
1544
0
        }
1545
77.3M
        for (i = 0; i < nb_frames; i++) {
1546
73.6M
            RENAME(ff_mpa_synth_filter)(&s->mpadsp, s->synth_buf[ch],
1547
73.6M
                                        &(s->synth_buf_offset[ch]),
1548
73.6M
                                        RENAME(ff_mpa_synth_window),
1549
73.6M
                                        &s->dither_state, samples_ptr,
1550
73.6M
                                        sample_stride, s->sb_samples[ch][i]);
1551
73.6M
            samples_ptr += 32 * sample_stride;
1552
73.6M
        }
1553
3.64M
    }
1554
1555
1.98M
    return nb_frames * 32 * sizeof(OUT_INT) * s->nb_channels;
1556
1.98M
}
1557
1558
static int decode_frame(AVCodecContext *avctx, AVFrame *frame,
1559
                        int *got_frame_ptr, AVPacket *avpkt)
1560
5.21M
{
1561
5.21M
    const uint8_t *buf  = avpkt->data;
1562
5.21M
    int buf_size        = avpkt->size;
1563
5.21M
    MPADecodeContext *s = avctx->priv_data;
1564
5.21M
    uint32_t header;
1565
5.21M
    int ret;
1566
1567
5.21M
    int skipped = 0;
1568
592M
    while(buf_size && !*buf){
1569
587M
        buf++;
1570
587M
        buf_size--;
1571
587M
        skipped++;
1572
587M
    }
1573
1574
5.21M
    if (buf_size < HEADER_SIZE)
1575
1.07M
        return AVERROR_INVALIDDATA;
1576
1577
4.13M
    header = AV_RB32(buf);
1578
4.13M
    if (header >> 8 == AV_RB32("TAG") >> 8) {
1579
275k
        av_log(avctx, AV_LOG_DEBUG, "discarding ID3 tag\n");
1580
275k
        return buf_size + skipped;
1581
275k
    }
1582
3.85M
    ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)s, header);
1583
3.85M
    if (ret < 0) {
1584
752k
        av_log(avctx, AV_LOG_ERROR, "Header missing\n");
1585
752k
        return AVERROR_INVALIDDATA;
1586
3.10M
    } else if (ret == 1) {
1587
        /* free format: prepare to compute frame size */
1588
3.47k
        s->frame_size = -1;
1589
3.47k
        return AVERROR_INVALIDDATA;
1590
3.47k
    }
1591
    /* update codec info */
1592
3.10M
    av_channel_layout_uninit(&avctx->ch_layout);
1593
3.10M
    avctx->ch_layout = s->nb_channels == 1 ? (AVChannelLayout)AV_CHANNEL_LAYOUT_MONO :
1594
3.10M
                                             (AVChannelLayout)AV_CHANNEL_LAYOUT_STEREO;
1595
3.10M
    if (!avctx->bit_rate)
1596
295
        avctx->bit_rate = s->bit_rate;
1597
1598
3.10M
    if (s->frame_size <= 0) {
1599
0
        av_log(avctx, AV_LOG_ERROR, "incomplete frame\n");
1600
0
        return AVERROR_INVALIDDATA;
1601
3.10M
    } else if (s->frame_size < buf_size) {
1602
792k
        av_log(avctx, AV_LOG_DEBUG, "incorrect frame size - multiple frames in buffer?\n");
1603
792k
        buf_size= s->frame_size;
1604
792k
    }
1605
1606
3.10M
    s->frame = frame;
1607
1608
3.10M
    ret = mp_decode_frame(s, NULL, buf, buf_size);
1609
3.10M
    if (ret >= 0) {
1610
3.02M
        s->frame->nb_samples = avctx->frame_size;
1611
3.02M
        *got_frame_ptr       = 1;
1612
3.02M
        if (avctx->codec_id != AV_CODEC_ID_AHX)
1613
2.71M
            avctx->sample_rate = s->sample_rate;
1614
        //FIXME maybe move the other codec info stuff from above here too
1615
3.02M
    } else {
1616
75.1k
        av_log(avctx, AV_LOG_ERROR, "Error while decoding MPEG audio frame.\n");
1617
        /* Only return an error if the bad frame makes up the whole packet or
1618
         * the error is related to buffer management.
1619
         * If there is more data in the packet, just consume the bad frame
1620
         * instead of returning an error, which would discard the whole
1621
         * packet. */
1622
75.1k
        *got_frame_ptr = 0;
1623
75.1k
        if (buf_size == avpkt->size || ret != AVERROR_INVALIDDATA)
1624
62.0k
            return ret;
1625
75.1k
    }
1626
3.04M
    s->frame_size = 0;
1627
3.04M
    return buf_size + skipped;
1628
3.10M
}
mpegaudiodec_float.c:decode_frame
Line
Count
Source
1560
3.35M
{
1561
3.35M
    const uint8_t *buf  = avpkt->data;
1562
3.35M
    int buf_size        = avpkt->size;
1563
3.35M
    MPADecodeContext *s = avctx->priv_data;
1564
3.35M
    uint32_t header;
1565
3.35M
    int ret;
1566
1567
3.35M
    int skipped = 0;
1568
589M
    while(buf_size && !*buf){
1569
586M
        buf++;
1570
586M
        buf_size--;
1571
586M
        skipped++;
1572
586M
    }
1573
1574
3.35M
    if (buf_size < HEADER_SIZE)
1575
845k
        return AVERROR_INVALIDDATA;
1576
1577
2.50M
    header = AV_RB32(buf);
1578
2.50M
    if (header >> 8 == AV_RB32("TAG") >> 8) {
1579
83.5k
        av_log(avctx, AV_LOG_DEBUG, "discarding ID3 tag\n");
1580
83.5k
        return buf_size + skipped;
1581
83.5k
    }
1582
2.42M
    ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)s, header);
1583
2.42M
    if (ret < 0) {
1584
711k
        av_log(avctx, AV_LOG_ERROR, "Header missing\n");
1585
711k
        return AVERROR_INVALIDDATA;
1586
1.71M
    } else if (ret == 1) {
1587
        /* free format: prepare to compute frame size */
1588
2.40k
        s->frame_size = -1;
1589
2.40k
        return AVERROR_INVALIDDATA;
1590
2.40k
    }
1591
    /* update codec info */
1592
1.71M
    av_channel_layout_uninit(&avctx->ch_layout);
1593
1.71M
    avctx->ch_layout = s->nb_channels == 1 ? (AVChannelLayout)AV_CHANNEL_LAYOUT_MONO :
1594
1.71M
                                             (AVChannelLayout)AV_CHANNEL_LAYOUT_STEREO;
1595
1.71M
    if (!avctx->bit_rate)
1596
170
        avctx->bit_rate = s->bit_rate;
1597
1598
1.71M
    if (s->frame_size <= 0) {
1599
0
        av_log(avctx, AV_LOG_ERROR, "incomplete frame\n");
1600
0
        return AVERROR_INVALIDDATA;
1601
1.71M
    } else if (s->frame_size < buf_size) {
1602
512k
        av_log(avctx, AV_LOG_DEBUG, "incorrect frame size - multiple frames in buffer?\n");
1603
512k
        buf_size= s->frame_size;
1604
512k
    }
1605
1606
1.71M
    s->frame = frame;
1607
1608
1.71M
    ret = mp_decode_frame(s, NULL, buf, buf_size);
1609
1.71M
    if (ret >= 0) {
1610
1.65M
        s->frame->nb_samples = avctx->frame_size;
1611
1.65M
        *got_frame_ptr       = 1;
1612
1.65M
        if (avctx->codec_id != AV_CODEC_ID_AHX)
1613
1.35M
            avctx->sample_rate = s->sample_rate;
1614
        //FIXME maybe move the other codec info stuff from above here too
1615
1.65M
    } else {
1616
52.4k
        av_log(avctx, AV_LOG_ERROR, "Error while decoding MPEG audio frame.\n");
1617
        /* Only return an error if the bad frame makes up the whole packet or
1618
         * the error is related to buffer management.
1619
         * If there is more data in the packet, just consume the bad frame
1620
         * instead of returning an error, which would discard the whole
1621
         * packet. */
1622
52.4k
        *got_frame_ptr = 0;
1623
52.4k
        if (buf_size == avpkt->size || ret != AVERROR_INVALIDDATA)
1624
41.8k
            return ret;
1625
52.4k
    }
1626
1.67M
    s->frame_size = 0;
1627
1.67M
    return buf_size + skipped;
1628
1.71M
}
mpegaudiodec_fixed.c:decode_frame
Line
Count
Source
1560
1.85M
{
1561
1.85M
    const uint8_t *buf  = avpkt->data;
1562
1.85M
    int buf_size        = avpkt->size;
1563
1.85M
    MPADecodeContext *s = avctx->priv_data;
1564
1.85M
    uint32_t header;
1565
1.85M
    int ret;
1566
1567
1.85M
    int skipped = 0;
1568
2.73M
    while(buf_size && !*buf){
1569
882k
        buf++;
1570
882k
        buf_size--;
1571
882k
        skipped++;
1572
882k
    }
1573
1574
1.85M
    if (buf_size < HEADER_SIZE)
1575
232k
        return AVERROR_INVALIDDATA;
1576
1577
1.62M
    header = AV_RB32(buf);
1578
1.62M
    if (header >> 8 == AV_RB32("TAG") >> 8) {
1579
191k
        av_log(avctx, AV_LOG_DEBUG, "discarding ID3 tag\n");
1580
191k
        return buf_size + skipped;
1581
191k
    }
1582
1.43M
    ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)s, header);
1583
1.43M
    if (ret < 0) {
1584
41.0k
        av_log(avctx, AV_LOG_ERROR, "Header missing\n");
1585
41.0k
        return AVERROR_INVALIDDATA;
1586
1.39M
    } else if (ret == 1) {
1587
        /* free format: prepare to compute frame size */
1588
1.07k
        s->frame_size = -1;
1589
1.07k
        return AVERROR_INVALIDDATA;
1590
1.07k
    }
1591
    /* update codec info */
1592
1.39M
    av_channel_layout_uninit(&avctx->ch_layout);
1593
1.39M
    avctx->ch_layout = s->nb_channels == 1 ? (AVChannelLayout)AV_CHANNEL_LAYOUT_MONO :
1594
1.39M
                                             (AVChannelLayout)AV_CHANNEL_LAYOUT_STEREO;
1595
1.39M
    if (!avctx->bit_rate)
1596
125
        avctx->bit_rate = s->bit_rate;
1597
1598
1.39M
    if (s->frame_size <= 0) {
1599
0
        av_log(avctx, AV_LOG_ERROR, "incomplete frame\n");
1600
0
        return AVERROR_INVALIDDATA;
1601
1.39M
    } else if (s->frame_size < buf_size) {
1602
280k
        av_log(avctx, AV_LOG_DEBUG, "incorrect frame size - multiple frames in buffer?\n");
1603
280k
        buf_size= s->frame_size;
1604
280k
    }
1605
1606
1.39M
    s->frame = frame;
1607
1608
1.39M
    ret = mp_decode_frame(s, NULL, buf, buf_size);
1609
1.39M
    if (ret >= 0) {
1610
1.36M
        s->frame->nb_samples = avctx->frame_size;
1611
1.36M
        *got_frame_ptr       = 1;
1612
1.36M
        if (avctx->codec_id != AV_CODEC_ID_AHX)
1613
1.36M
            avctx->sample_rate = s->sample_rate;
1614
        //FIXME maybe move the other codec info stuff from above here too
1615
1.36M
    } else {
1616
22.7k
        av_log(avctx, AV_LOG_ERROR, "Error while decoding MPEG audio frame.\n");
1617
        /* Only return an error if the bad frame makes up the whole packet or
1618
         * the error is related to buffer management.
1619
         * If there is more data in the packet, just consume the bad frame
1620
         * instead of returning an error, which would discard the whole
1621
         * packet. */
1622
22.7k
        *got_frame_ptr = 0;
1623
22.7k
        if (buf_size == avpkt->size || ret != AVERROR_INVALIDDATA)
1624
20.1k
            return ret;
1625
22.7k
    }
1626
1.37M
    s->frame_size = 0;
1627
1.37M
    return buf_size + skipped;
1628
1.39M
}
1629
1630
static av_cold void mp_flush(MPADecodeContext *ctx)
1631
2.69M
{
1632
2.69M
    memset(ctx->synth_buf, 0, sizeof(ctx->synth_buf));
1633
2.69M
    memset(ctx->mdct_buf, 0, sizeof(ctx->mdct_buf));
1634
2.69M
    ctx->last_buf_size = 0;
1635
2.69M
    ctx->dither_state = 0;
1636
2.69M
}
mpegaudiodec_float.c:mp_flush
Line
Count
Source
1631
1.58M
{
1632
1.58M
    memset(ctx->synth_buf, 0, sizeof(ctx->synth_buf));
1633
1.58M
    memset(ctx->mdct_buf, 0, sizeof(ctx->mdct_buf));
1634
1.58M
    ctx->last_buf_size = 0;
1635
1.58M
    ctx->dither_state = 0;
1636
1.58M
}
mpegaudiodec_fixed.c:mp_flush
Line
Count
Source
1631
1.10M
{
1632
1.10M
    memset(ctx->synth_buf, 0, sizeof(ctx->synth_buf));
1633
1.10M
    memset(ctx->mdct_buf, 0, sizeof(ctx->mdct_buf));
1634
1.10M
    ctx->last_buf_size = 0;
1635
1.10M
    ctx->dither_state = 0;
1636
1.10M
}
1637
1638
static av_cold void flush(AVCodecContext *avctx)
1639
2.11M
{
1640
2.11M
    mp_flush(avctx->priv_data);
1641
2.11M
}
mpegaudiodec_float.c:flush
Line
Count
Source
1639
1.26M
{
1640
1.26M
    mp_flush(avctx->priv_data);
1641
1.26M
}
mpegaudiodec_fixed.c:flush
Line
Count
Source
1639
851k
{
1640
851k
    mp_flush(avctx->priv_data);
1641
851k
}
1642
1643
#if CONFIG_MP3ADU_DECODER || CONFIG_MP3ADUFLOAT_DECODER
1644
static int decode_frame_adu(AVCodecContext *avctx, AVFrame *frame,
1645
                            int *got_frame_ptr, AVPacket *avpkt)
1646
1.07M
{
1647
1.07M
    const uint8_t *buf  = avpkt->data;
1648
1.07M
    int buf_size        = avpkt->size;
1649
1.07M
    MPADecodeContext *s = avctx->priv_data;
1650
1.07M
    uint32_t header;
1651
1.07M
    int len, ret;
1652
1653
1.07M
    len = buf_size;
1654
1655
    // Discard too short frames
1656
1.07M
    if (buf_size < HEADER_SIZE) {
1657
162k
        av_log(avctx, AV_LOG_ERROR, "Packet is too small\n");
1658
162k
        return AVERROR_INVALIDDATA;
1659
162k
    }
1660
1661
1662
907k
    if (len > MPA_MAX_CODED_FRAME_SIZE)
1663
2.19k
        len = MPA_MAX_CODED_FRAME_SIZE;
1664
1665
    // Get header and restore sync word
1666
907k
    header = AV_RB32(buf) | 0xffe00000;
1667
1668
907k
    ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)s, header);
1669
907k
    if (ret < 0) {
1670
26.1k
        av_log(avctx, AV_LOG_ERROR, "Invalid frame header\n");
1671
26.1k
        return ret;
1672
26.1k
    }
1673
    /* update codec info */
1674
881k
    avctx->sample_rate = s->sample_rate;
1675
881k
    av_channel_layout_uninit(&avctx->ch_layout);
1676
881k
    avctx->ch_layout = s->nb_channels == 1 ? (AVChannelLayout)AV_CHANNEL_LAYOUT_MONO :
1677
881k
                                             (AVChannelLayout)AV_CHANNEL_LAYOUT_STEREO;
1678
881k
    if (!avctx->bit_rate)
1679
1.28k
        avctx->bit_rate = s->bit_rate;
1680
1681
881k
    s->frame_size = len;
1682
1683
881k
    s->frame = frame;
1684
1685
881k
    ret = mp_decode_frame(s, NULL, buf, buf_size);
1686
881k
    if (ret < 0) {
1687
8.12k
        av_log(avctx, AV_LOG_ERROR, "Error while decoding MPEG audio frame.\n");
1688
8.12k
        return ret;
1689
8.12k
    }
1690
1691
873k
    *got_frame_ptr = 1;
1692
1693
873k
    return buf_size;
1694
881k
}
mpegaudiodec_float.c:decode_frame_adu
Line
Count
Source
1646
548k
{
1647
548k
    const uint8_t *buf  = avpkt->data;
1648
548k
    int buf_size        = avpkt->size;
1649
548k
    MPADecodeContext *s = avctx->priv_data;
1650
548k
    uint32_t header;
1651
548k
    int len, ret;
1652
1653
548k
    len = buf_size;
1654
1655
    // Discard too short frames
1656
548k
    if (buf_size < HEADER_SIZE) {
1657
82.4k
        av_log(avctx, AV_LOG_ERROR, "Packet is too small\n");
1658
82.4k
        return AVERROR_INVALIDDATA;
1659
82.4k
    }
1660
1661
1662
466k
    if (len > MPA_MAX_CODED_FRAME_SIZE)
1663
1.14k
        len = MPA_MAX_CODED_FRAME_SIZE;
1664
1665
    // Get header and restore sync word
1666
466k
    header = AV_RB32(buf) | 0xffe00000;
1667
1668
466k
    ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)s, header);
1669
466k
    if (ret < 0) {
1670
12.6k
        av_log(avctx, AV_LOG_ERROR, "Invalid frame header\n");
1671
12.6k
        return ret;
1672
12.6k
    }
1673
    /* update codec info */
1674
453k
    avctx->sample_rate = s->sample_rate;
1675
453k
    av_channel_layout_uninit(&avctx->ch_layout);
1676
453k
    avctx->ch_layout = s->nb_channels == 1 ? (AVChannelLayout)AV_CHANNEL_LAYOUT_MONO :
1677
453k
                                             (AVChannelLayout)AV_CHANNEL_LAYOUT_STEREO;
1678
453k
    if (!avctx->bit_rate)
1679
592
        avctx->bit_rate = s->bit_rate;
1680
1681
453k
    s->frame_size = len;
1682
1683
453k
    s->frame = frame;
1684
1685
453k
    ret = mp_decode_frame(s, NULL, buf, buf_size);
1686
453k
    if (ret < 0) {
1687
3.47k
        av_log(avctx, AV_LOG_ERROR, "Error while decoding MPEG audio frame.\n");
1688
3.47k
        return ret;
1689
3.47k
    }
1690
1691
450k
    *got_frame_ptr = 1;
1692
1693
450k
    return buf_size;
1694
453k
}
mpegaudiodec_fixed.c:decode_frame_adu
Line
Count
Source
1646
521k
{
1647
521k
    const uint8_t *buf  = avpkt->data;
1648
521k
    int buf_size        = avpkt->size;
1649
521k
    MPADecodeContext *s = avctx->priv_data;
1650
521k
    uint32_t header;
1651
521k
    int len, ret;
1652
1653
521k
    len = buf_size;
1654
1655
    // Discard too short frames
1656
521k
    if (buf_size < HEADER_SIZE) {
1657
80.4k
        av_log(avctx, AV_LOG_ERROR, "Packet is too small\n");
1658
80.4k
        return AVERROR_INVALIDDATA;
1659
80.4k
    }
1660
1661
1662
441k
    if (len > MPA_MAX_CODED_FRAME_SIZE)
1663
1.05k
        len = MPA_MAX_CODED_FRAME_SIZE;
1664
1665
    // Get header and restore sync word
1666
441k
    header = AV_RB32(buf) | 0xffe00000;
1667
1668
441k
    ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)s, header);
1669
441k
    if (ret < 0) {
1670
13.4k
        av_log(avctx, AV_LOG_ERROR, "Invalid frame header\n");
1671
13.4k
        return ret;
1672
13.4k
    }
1673
    /* update codec info */
1674
427k
    avctx->sample_rate = s->sample_rate;
1675
427k
    av_channel_layout_uninit(&avctx->ch_layout);
1676
427k
    avctx->ch_layout = s->nb_channels == 1 ? (AVChannelLayout)AV_CHANNEL_LAYOUT_MONO :
1677
427k
                                             (AVChannelLayout)AV_CHANNEL_LAYOUT_STEREO;
1678
427k
    if (!avctx->bit_rate)
1679
689
        avctx->bit_rate = s->bit_rate;
1680
1681
427k
    s->frame_size = len;
1682
1683
427k
    s->frame = frame;
1684
1685
427k
    ret = mp_decode_frame(s, NULL, buf, buf_size);
1686
427k
    if (ret < 0) {
1687
4.64k
        av_log(avctx, AV_LOG_ERROR, "Error while decoding MPEG audio frame.\n");
1688
4.64k
        return ret;
1689
4.64k
    }
1690
1691
423k
    *got_frame_ptr = 1;
1692
1693
423k
    return buf_size;
1694
427k
}
1695
#endif /* CONFIG_MP3ADU_DECODER || CONFIG_MP3ADUFLOAT_DECODER */
1696
1697
#if CONFIG_MP3ON4_DECODER || CONFIG_MP3ON4FLOAT_DECODER
1698
1699
/**
1700
 * Context for MP3On4 decoder
1701
 */
1702
typedef struct MP3On4DecodeContext {
1703
    int frames;                     ///< number of mp3 frames per block (number of mp3 decoder instances)
1704
    int syncword;                   ///< syncword patch
1705
    const uint8_t *coff;            ///< channel offsets in output buffer
1706
    MPADecodeContext *mp3decctx[5]; ///< MPADecodeContext for every decoder instance
1707
} MP3On4DecodeContext;
1708
1709
#include "mpeg4audio.h"
1710
1711
/* Next 3 arrays are indexed by channel config number (passed via codecdata) */
1712
1713
/* number of mp3 decoder instances */
1714
static const uint8_t mp3Frames[8] = { 0, 1, 1, 2, 3, 3, 4, 5 };
1715
1716
/* offsets into output buffer, assume output order is FL FR C LFE BL BR SL SR */
1717
static const uint8_t chan_offset[8][5] = {
1718
    { 0             },
1719
    { 0             },  // C
1720
    { 0             },  // FLR
1721
    { 2, 0          },  // C FLR
1722
    { 2, 0, 3       },  // C FLR BS
1723
    { 2, 0, 3       },  // C FLR BLRS
1724
    { 2, 0, 4, 3    },  // C FLR BLRS LFE
1725
    { 2, 0, 6, 4, 3 },  // C FLR BLRS BLR LFE
1726
};
1727
1728
/* mp3on4 channel layouts */
1729
static const int16_t chan_layout[8] = {
1730
    0,
1731
    AV_CH_LAYOUT_MONO,
1732
    AV_CH_LAYOUT_STEREO,
1733
    AV_CH_LAYOUT_SURROUND,
1734
    AV_CH_LAYOUT_4POINT0,
1735
    AV_CH_LAYOUT_5POINT0,
1736
    AV_CH_LAYOUT_5POINT1,
1737
    AV_CH_LAYOUT_7POINT1
1738
};
1739
1740
static av_cold int decode_close_mp3on4(AVCodecContext * avctx)
1741
3.13k
{
1742
3.13k
    MP3On4DecodeContext *s = avctx->priv_data;
1743
1744
3.13k
    av_freep(&s->mp3decctx[0]);
1745
1746
3.13k
    return 0;
1747
3.13k
}
mpegaudiodec_float.c:decode_close_mp3on4
Line
Count
Source
1741
1.60k
{
1742
1.60k
    MP3On4DecodeContext *s = avctx->priv_data;
1743
1744
1.60k
    av_freep(&s->mp3decctx[0]);
1745
1746
1.60k
    return 0;
1747
1.60k
}
mpegaudiodec_fixed.c:decode_close_mp3on4
Line
Count
Source
1741
1.52k
{
1742
1.52k
    MP3On4DecodeContext *s = avctx->priv_data;
1743
1744
1.52k
    av_freep(&s->mp3decctx[0]);
1745
1746
1.52k
    return 0;
1747
1.52k
}
1748
1749
1750
static av_cold int decode_init_mp3on4(AVCodecContext * avctx)
1751
3.13k
{
1752
3.13k
    MP3On4DecodeContext *s = avctx->priv_data;
1753
3.13k
    MPEG4AudioConfig cfg;
1754
3.13k
    int i, ret;
1755
1756
3.13k
    if ((avctx->extradata_size < 2) || !avctx->extradata) {
1757
347
        av_log(avctx, AV_LOG_ERROR, "Codec extradata missing or too short.\n");
1758
347
        return AVERROR_INVALIDDATA;
1759
347
    }
1760
1761
2.78k
    avpriv_mpeg4audio_get_config2(&cfg, avctx->extradata,
1762
2.78k
                                  avctx->extradata_size, 1, avctx);
1763
2.78k
    if (!cfg.chan_config || cfg.chan_config > 7) {
1764
604
        av_log(avctx, AV_LOG_ERROR, "Invalid channel config number.\n");
1765
604
        return AVERROR_INVALIDDATA;
1766
604
    }
1767
2.17k
    s->frames             = mp3Frames[cfg.chan_config];
1768
2.17k
    s->coff               = chan_offset[cfg.chan_config];
1769
2.17k
    av_channel_layout_uninit(&avctx->ch_layout);
1770
2.17k
    av_channel_layout_from_mask(&avctx->ch_layout, chan_layout[cfg.chan_config]);
1771
1772
2.17k
    if (cfg.sample_rate < 16000)
1773
352
        s->syncword = 0xffe00000;
1774
1.82k
    else
1775
1.82k
        s->syncword = 0xfff00000;
1776
1777
    /* Init the first mp3 decoder in standard way, so that all tables get built
1778
     * Other decoders will be initialized here copying data from the first context
1779
     */
1780
    // Allocate zeroed memory for the decoder contexts
1781
2.17k
    s->mp3decctx[0] = av_calloc(s->frames, sizeof(*s->mp3decctx[0]));
1782
2.17k
    if (!s->mp3decctx[0])
1783
0
        return AVERROR(ENOMEM);
1784
2.17k
    ret = decode_ctx_init(avctx, s->mp3decctx[0]);
1785
2.17k
    if (ret < 0)
1786
0
        return ret;
1787
2.17k
    s->mp3decctx[0]->adu_mode = 1; // Set adu mode
1788
1789
    /* Create a separate codec/context for each frame (first is already ok).
1790
     * Each frame is 1 or 2 channels - up to 5 frames allowed
1791
     */
1792
5.99k
    for (i = 1; i < s->frames; i++) {
1793
3.81k
        s->mp3decctx[i] = s->mp3decctx[0] + i;
1794
3.81k
        s->mp3decctx[i]->adu_mode = 1;
1795
3.81k
        s->mp3decctx[i]->avctx = avctx;
1796
3.81k
        s->mp3decctx[i]->mpadsp = s->mp3decctx[0]->mpadsp;
1797
#if USE_FLOATS
1798
        s->mp3decctx[i]->butterflies_float = s->mp3decctx[0]->butterflies_float;
1799
#endif
1800
3.81k
    }
1801
1802
2.17k
    return 0;
1803
2.17k
}
mpegaudiodec_float.c:decode_init_mp3on4
Line
Count
Source
1751
1.60k
{
1752
1.60k
    MP3On4DecodeContext *s = avctx->priv_data;
1753
1.60k
    MPEG4AudioConfig cfg;
1754
1.60k
    int i, ret;
1755
1756
1.60k
    if ((avctx->extradata_size < 2) || !avctx->extradata) {
1757
167
        av_log(avctx, AV_LOG_ERROR, "Codec extradata missing or too short.\n");
1758
167
        return AVERROR_INVALIDDATA;
1759
167
    }
1760
1761
1.43k
    avpriv_mpeg4audio_get_config2(&cfg, avctx->extradata,
1762
1.43k
                                  avctx->extradata_size, 1, avctx);
1763
1.43k
    if (!cfg.chan_config || cfg.chan_config > 7) {
1764
322
        av_log(avctx, AV_LOG_ERROR, "Invalid channel config number.\n");
1765
322
        return AVERROR_INVALIDDATA;
1766
322
    }
1767
1.11k
    s->frames             = mp3Frames[cfg.chan_config];
1768
1.11k
    s->coff               = chan_offset[cfg.chan_config];
1769
1.11k
    av_channel_layout_uninit(&avctx->ch_layout);
1770
1.11k
    av_channel_layout_from_mask(&avctx->ch_layout, chan_layout[cfg.chan_config]);
1771
1772
1.11k
    if (cfg.sample_rate < 16000)
1773
208
        s->syncword = 0xffe00000;
1774
904
    else
1775
904
        s->syncword = 0xfff00000;
1776
1777
    /* Init the first mp3 decoder in standard way, so that all tables get built
1778
     * Other decoders will be initialized here copying data from the first context
1779
     */
1780
    // Allocate zeroed memory for the decoder contexts
1781
1.11k
    s->mp3decctx[0] = av_calloc(s->frames, sizeof(*s->mp3decctx[0]));
1782
1.11k
    if (!s->mp3decctx[0])
1783
0
        return AVERROR(ENOMEM);
1784
1.11k
    ret = decode_ctx_init(avctx, s->mp3decctx[0]);
1785
1.11k
    if (ret < 0)
1786
0
        return ret;
1787
1.11k
    s->mp3decctx[0]->adu_mode = 1; // Set adu mode
1788
1789
    /* Create a separate codec/context for each frame (first is already ok).
1790
     * Each frame is 1 or 2 channels - up to 5 frames allowed
1791
     */
1792
2.83k
    for (i = 1; i < s->frames; i++) {
1793
1.72k
        s->mp3decctx[i] = s->mp3decctx[0] + i;
1794
1.72k
        s->mp3decctx[i]->adu_mode = 1;
1795
1.72k
        s->mp3decctx[i]->avctx = avctx;
1796
1.72k
        s->mp3decctx[i]->mpadsp = s->mp3decctx[0]->mpadsp;
1797
1.72k
#if USE_FLOATS
1798
1.72k
        s->mp3decctx[i]->butterflies_float = s->mp3decctx[0]->butterflies_float;
1799
1.72k
#endif
1800
1.72k
    }
1801
1802
1.11k
    return 0;
1803
1.11k
}
mpegaudiodec_fixed.c:decode_init_mp3on4
Line
Count
Source
1751
1.52k
{
1752
1.52k
    MP3On4DecodeContext *s = avctx->priv_data;
1753
1.52k
    MPEG4AudioConfig cfg;
1754
1.52k
    int i, ret;
1755
1756
1.52k
    if ((avctx->extradata_size < 2) || !avctx->extradata) {
1757
180
        av_log(avctx, AV_LOG_ERROR, "Codec extradata missing or too short.\n");
1758
180
        return AVERROR_INVALIDDATA;
1759
180
    }
1760
1761
1.34k
    avpriv_mpeg4audio_get_config2(&cfg, avctx->extradata,
1762
1.34k
                                  avctx->extradata_size, 1, avctx);
1763
1.34k
    if (!cfg.chan_config || cfg.chan_config > 7) {
1764
282
        av_log(avctx, AV_LOG_ERROR, "Invalid channel config number.\n");
1765
282
        return AVERROR_INVALIDDATA;
1766
282
    }
1767
1.06k
    s->frames             = mp3Frames[cfg.chan_config];
1768
1.06k
    s->coff               = chan_offset[cfg.chan_config];
1769
1.06k
    av_channel_layout_uninit(&avctx->ch_layout);
1770
1.06k
    av_channel_layout_from_mask(&avctx->ch_layout, chan_layout[cfg.chan_config]);
1771
1772
1.06k
    if (cfg.sample_rate < 16000)
1773
144
        s->syncword = 0xffe00000;
1774
923
    else
1775
923
        s->syncword = 0xfff00000;
1776
1777
    /* Init the first mp3 decoder in standard way, so that all tables get built
1778
     * Other decoders will be initialized here copying data from the first context
1779
     */
1780
    // Allocate zeroed memory for the decoder contexts
1781
1.06k
    s->mp3decctx[0] = av_calloc(s->frames, sizeof(*s->mp3decctx[0]));
1782
1.06k
    if (!s->mp3decctx[0])
1783
0
        return AVERROR(ENOMEM);
1784
1.06k
    ret = decode_ctx_init(avctx, s->mp3decctx[0]);
1785
1.06k
    if (ret < 0)
1786
0
        return ret;
1787
1.06k
    s->mp3decctx[0]->adu_mode = 1; // Set adu mode
1788
1789
    /* Create a separate codec/context for each frame (first is already ok).
1790
     * Each frame is 1 or 2 channels - up to 5 frames allowed
1791
     */
1792
3.15k
    for (i = 1; i < s->frames; i++) {
1793
2.09k
        s->mp3decctx[i] = s->mp3decctx[0] + i;
1794
2.09k
        s->mp3decctx[i]->adu_mode = 1;
1795
2.09k
        s->mp3decctx[i]->avctx = avctx;
1796
2.09k
        s->mp3decctx[i]->mpadsp = s->mp3decctx[0]->mpadsp;
1797
#if USE_FLOATS
1798
        s->mp3decctx[i]->butterflies_float = s->mp3decctx[0]->butterflies_float;
1799
#endif
1800
2.09k
    }
1801
1802
1.06k
    return 0;
1803
1.06k
}
1804
1805
1806
static av_cold void flush_mp3on4(AVCodecContext *avctx)
1807
245k
{
1808
245k
    int i;
1809
245k
    MP3On4DecodeContext *s = avctx->priv_data;
1810
1811
823k
    for (i = 0; i < s->frames; i++)
1812
578k
        mp_flush(s->mp3decctx[i]);
1813
245k
}
mpegaudiodec_float.c:flush_mp3on4
Line
Count
Source
1807
125k
{
1808
125k
    int i;
1809
125k
    MP3On4DecodeContext *s = avctx->priv_data;
1810
1811
447k
    for (i = 0; i < s->frames; i++)
1812
321k
        mp_flush(s->mp3decctx[i]);
1813
125k
}
mpegaudiodec_fixed.c:flush_mp3on4
Line
Count
Source
1807
119k
{
1808
119k
    int i;
1809
119k
    MP3On4DecodeContext *s = avctx->priv_data;
1810
1811
375k
    for (i = 0; i < s->frames; i++)
1812
256k
        mp_flush(s->mp3decctx[i]);
1813
119k
}
1814
1815
1816
static int decode_frame_mp3on4(AVCodecContext *avctx, AVFrame *frame,
1817
                               int *got_frame_ptr, AVPacket *avpkt)
1818
740k
{
1819
740k
    const uint8_t *buf     = avpkt->data;
1820
740k
    int buf_size           = avpkt->size;
1821
740k
    MP3On4DecodeContext *s = avctx->priv_data;
1822
740k
    MPADecodeContext *m;
1823
740k
    int fsize, len = buf_size, out_size = 0;
1824
740k
    uint32_t header;
1825
740k
    OUT_INT **out_samples;
1826
740k
    OUT_INT *outptr[2];
1827
740k
    int fr, ch, ret;
1828
1829
    /* get output buffer */
1830
740k
    frame->nb_samples = MPA_FRAME_SIZE;
1831
740k
    if ((ret = ff_get_buffer(avctx, frame, 0)) < 0)
1832
0
        return ret;
1833
740k
    out_samples = (OUT_INT **)frame->extended_data;
1834
1835
    // Discard too short frames
1836
740k
    if (buf_size < HEADER_SIZE)
1837
299k
        return AVERROR_INVALIDDATA;
1838
1839
440k
    avctx->bit_rate = 0;
1840
1841
440k
    ch = 0;
1842
850k
    for (fr = 0; fr < s->frames; fr++) {
1843
580k
        fsize = AV_RB16(buf) >> 4;
1844
580k
        fsize = FFMIN3(fsize, len, MPA_MAX_CODED_FRAME_SIZE);
1845
580k
        m     = s->mp3decctx[fr];
1846
580k
        av_assert1(m);
1847
1848
580k
        if (fsize < HEADER_SIZE) {
1849
112k
            av_log(avctx, AV_LOG_ERROR, "Frame size smaller than header size\n");
1850
112k
            return AVERROR_INVALIDDATA;
1851
112k
        }
1852
468k
        header = (AV_RB32(buf) & 0x000fffff) | s->syncword; // patch header
1853
1854
468k
        ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)m, header);
1855
468k
        if (ret < 0) {
1856
35.5k
            av_log(avctx, AV_LOG_ERROR, "Bad header, discard block\n");
1857
35.5k
            return AVERROR_INVALIDDATA;
1858
35.5k
        }
1859
1860
433k
        if (ch + m->nb_channels > avctx->ch_layout.nb_channels ||
1861
413k
            s->coff[fr] + m->nb_channels > avctx->ch_layout.nb_channels) {
1862
22.5k
            av_log(avctx, AV_LOG_ERROR, "frame channel count exceeds codec "
1863
22.5k
                                        "channel count\n");
1864
22.5k
            return AVERROR_INVALIDDATA;
1865
22.5k
        }
1866
410k
        ch += m->nb_channels;
1867
1868
410k
        outptr[0] = out_samples[s->coff[fr]];
1869
410k
        if (m->nb_channels > 1)
1870
386k
            outptr[1] = out_samples[s->coff[fr] + 1];
1871
1872
410k
        if ((ret = mp_decode_frame(m, outptr, buf, fsize)) < 0) {
1873
45.7k
            av_log(avctx, AV_LOG_ERROR, "failed to decode channel %d\n", ch);
1874
45.7k
            memset(outptr[0], 0, MPA_FRAME_SIZE*sizeof(OUT_INT));
1875
45.7k
            if (m->nb_channels > 1)
1876
40.3k
                memset(outptr[1], 0, MPA_FRAME_SIZE*sizeof(OUT_INT));
1877
45.7k
            ret = m->nb_channels * MPA_FRAME_SIZE*sizeof(OUT_INT);
1878
45.7k
        }
1879
1880
410k
        out_size += ret;
1881
410k
        buf      += fsize;
1882
410k
        len      -= fsize;
1883
1884
410k
        avctx->bit_rate += m->bit_rate;
1885
410k
    }
1886
270k
    if (ch != avctx->ch_layout.nb_channels) {
1887
5.07k
        av_log(avctx, AV_LOG_ERROR, "failed to decode all channels\n");
1888
5.07k
        return AVERROR_INVALIDDATA;
1889
5.07k
    }
1890
1891
    /* update codec info */
1892
265k
    avctx->sample_rate = s->mp3decctx[0]->sample_rate;
1893
1894
265k
    frame->nb_samples = out_size / (avctx->ch_layout.nb_channels * sizeof(OUT_INT));
1895
265k
    *got_frame_ptr    = 1;
1896
1897
265k
    return buf_size;
1898
270k
}
mpegaudiodec_float.c:decode_frame_mp3on4
Line
Count
Source
1818
364k
{
1819
364k
    const uint8_t *buf     = avpkt->data;
1820
364k
    int buf_size           = avpkt->size;
1821
364k
    MP3On4DecodeContext *s = avctx->priv_data;
1822
364k
    MPADecodeContext *m;
1823
364k
    int fsize, len = buf_size, out_size = 0;
1824
364k
    uint32_t header;
1825
364k
    OUT_INT **out_samples;
1826
364k
    OUT_INT *outptr[2];
1827
364k
    int fr, ch, ret;
1828
1829
    /* get output buffer */
1830
364k
    frame->nb_samples = MPA_FRAME_SIZE;
1831
364k
    if ((ret = ff_get_buffer(avctx, frame, 0)) < 0)
1832
0
        return ret;
1833
364k
    out_samples = (OUT_INT **)frame->extended_data;
1834
1835
    // Discard too short frames
1836
364k
    if (buf_size < HEADER_SIZE)
1837
152k
        return AVERROR_INVALIDDATA;
1838
1839
211k
    avctx->bit_rate = 0;
1840
1841
211k
    ch = 0;
1842
405k
    for (fr = 0; fr < s->frames; fr++) {
1843
275k
        fsize = AV_RB16(buf) >> 4;
1844
275k
        fsize = FFMIN3(fsize, len, MPA_MAX_CODED_FRAME_SIZE);
1845
275k
        m     = s->mp3decctx[fr];
1846
275k
        av_assert1(m);
1847
1848
275k
        if (fsize < HEADER_SIZE) {
1849
51.4k
            av_log(avctx, AV_LOG_ERROR, "Frame size smaller than header size\n");
1850
51.4k
            return AVERROR_INVALIDDATA;
1851
51.4k
        }
1852
223k
        header = (AV_RB32(buf) & 0x000fffff) | s->syncword; // patch header
1853
1854
223k
        ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)m, header);
1855
223k
        if (ret < 0) {
1856
20.5k
            av_log(avctx, AV_LOG_ERROR, "Bad header, discard block\n");
1857
20.5k
            return AVERROR_INVALIDDATA;
1858
20.5k
        }
1859
1860
203k
        if (ch + m->nb_channels > avctx->ch_layout.nb_channels ||
1861
195k
            s->coff[fr] + m->nb_channels > avctx->ch_layout.nb_channels) {
1862
9.21k
            av_log(avctx, AV_LOG_ERROR, "frame channel count exceeds codec "
1863
9.21k
                                        "channel count\n");
1864
9.21k
            return AVERROR_INVALIDDATA;
1865
9.21k
        }
1866
194k
        ch += m->nb_channels;
1867
1868
194k
        outptr[0] = out_samples[s->coff[fr]];
1869
194k
        if (m->nb_channels > 1)
1870
182k
            outptr[1] = out_samples[s->coff[fr] + 1];
1871
1872
194k
        if ((ret = mp_decode_frame(m, outptr, buf, fsize)) < 0) {
1873
20.1k
            av_log(avctx, AV_LOG_ERROR, "failed to decode channel %d\n", ch);
1874
20.1k
            memset(outptr[0], 0, MPA_FRAME_SIZE*sizeof(OUT_INT));
1875
20.1k
            if (m->nb_channels > 1)
1876
17.4k
                memset(outptr[1], 0, MPA_FRAME_SIZE*sizeof(OUT_INT));
1877
20.1k
            ret = m->nb_channels * MPA_FRAME_SIZE*sizeof(OUT_INT);
1878
20.1k
        }
1879
1880
194k
        out_size += ret;
1881
194k
        buf      += fsize;
1882
194k
        len      -= fsize;
1883
1884
194k
        avctx->bit_rate += m->bit_rate;
1885
194k
    }
1886
130k
    if (ch != avctx->ch_layout.nb_channels) {
1887
2.07k
        av_log(avctx, AV_LOG_ERROR, "failed to decode all channels\n");
1888
2.07k
        return AVERROR_INVALIDDATA;
1889
2.07k
    }
1890
1891
    /* update codec info */
1892
128k
    avctx->sample_rate = s->mp3decctx[0]->sample_rate;
1893
1894
128k
    frame->nb_samples = out_size / (avctx->ch_layout.nb_channels * sizeof(OUT_INT));
1895
128k
    *got_frame_ptr    = 1;
1896
1897
128k
    return buf_size;
1898
130k
}
mpegaudiodec_fixed.c:decode_frame_mp3on4
Line
Count
Source
1818
376k
{
1819
376k
    const uint8_t *buf     = avpkt->data;
1820
376k
    int buf_size           = avpkt->size;
1821
376k
    MP3On4DecodeContext *s = avctx->priv_data;
1822
376k
    MPADecodeContext *m;
1823
376k
    int fsize, len = buf_size, out_size = 0;
1824
376k
    uint32_t header;
1825
376k
    OUT_INT **out_samples;
1826
376k
    OUT_INT *outptr[2];
1827
376k
    int fr, ch, ret;
1828
1829
    /* get output buffer */
1830
376k
    frame->nb_samples = MPA_FRAME_SIZE;
1831
376k
    if ((ret = ff_get_buffer(avctx, frame, 0)) < 0)
1832
0
        return ret;
1833
376k
    out_samples = (OUT_INT **)frame->extended_data;
1834
1835
    // Discard too short frames
1836
376k
    if (buf_size < HEADER_SIZE)
1837
147k
        return AVERROR_INVALIDDATA;
1838
1839
228k
    avctx->bit_rate = 0;
1840
1841
228k
    ch = 0;
1842
445k
    for (fr = 0; fr < s->frames; fr++) {
1843
305k
        fsize = AV_RB16(buf) >> 4;
1844
305k
        fsize = FFMIN3(fsize, len, MPA_MAX_CODED_FRAME_SIZE);
1845
305k
        m     = s->mp3decctx[fr];
1846
305k
        av_assert1(m);
1847
1848
305k
        if (fsize < HEADER_SIZE) {
1849
60.7k
            av_log(avctx, AV_LOG_ERROR, "Frame size smaller than header size\n");
1850
60.7k
            return AVERROR_INVALIDDATA;
1851
60.7k
        }
1852
244k
        header = (AV_RB32(buf) & 0x000fffff) | s->syncword; // patch header
1853
1854
244k
        ret = avpriv_mpegaudio_decode_header((MPADecodeHeader *)m, header);
1855
244k
        if (ret < 0) {
1856
15.0k
            av_log(avctx, AV_LOG_ERROR, "Bad header, discard block\n");
1857
15.0k
            return AVERROR_INVALIDDATA;
1858
15.0k
        }
1859
1860
229k
        if (ch + m->nb_channels > avctx->ch_layout.nb_channels ||
1861
217k
            s->coff[fr] + m->nb_channels > avctx->ch_layout.nb_channels) {
1862
13.3k
            av_log(avctx, AV_LOG_ERROR, "frame channel count exceeds codec "
1863
13.3k
                                        "channel count\n");
1864
13.3k
            return AVERROR_INVALIDDATA;
1865
13.3k
        }
1866
216k
        ch += m->nb_channels;
1867
1868
216k
        outptr[0] = out_samples[s->coff[fr]];
1869
216k
        if (m->nb_channels > 1)
1870
204k
            outptr[1] = out_samples[s->coff[fr] + 1];
1871
1872
216k
        if ((ret = mp_decode_frame(m, outptr, buf, fsize)) < 0) {
1873
25.6k
            av_log(avctx, AV_LOG_ERROR, "failed to decode channel %d\n", ch);
1874
25.6k
            memset(outptr[0], 0, MPA_FRAME_SIZE*sizeof(OUT_INT));
1875
25.6k
            if (m->nb_channels > 1)
1876
22.8k
                memset(outptr[1], 0, MPA_FRAME_SIZE*sizeof(OUT_INT));
1877
25.6k
            ret = m->nb_channels * MPA_FRAME_SIZE*sizeof(OUT_INT);
1878
25.6k
        }
1879
1880
216k
        out_size += ret;
1881
216k
        buf      += fsize;
1882
216k
        len      -= fsize;
1883
1884
216k
        avctx->bit_rate += m->bit_rate;
1885
216k
    }
1886
139k
    if (ch != avctx->ch_layout.nb_channels) {
1887
3.00k
        av_log(avctx, AV_LOG_ERROR, "failed to decode all channels\n");
1888
3.00k
        return AVERROR_INVALIDDATA;
1889
3.00k
    }
1890
1891
    /* update codec info */
1892
136k
    avctx->sample_rate = s->mp3decctx[0]->sample_rate;
1893
1894
136k
    frame->nb_samples = out_size / (avctx->ch_layout.nb_channels * sizeof(OUT_INT));
1895
136k
    *got_frame_ptr    = 1;
1896
1897
136k
    return buf_size;
1898
139k
}
1899
#endif /* CONFIG_MP3ON4_DECODER || CONFIG_MP3ON4FLOAT_DECODER */