Coverage Report

Created: 2026-07-25 07:52

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ffmpeg/libavcodec/dirac_parser.c
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Source
1
/*
2
 * Dirac parser
3
 *
4
 * Copyright (c) 2007-2008 Marco Gerards <marco@gnu.org>
5
 * Copyright (c) 2008 BBC, Anuradha Suraparaju <asuraparaju@gmail.com>
6
 *
7
 * This file is part of FFmpeg.
8
 *
9
 * FFmpeg is free software; you can redistribute it and/or
10
 * modify it under the terms of the GNU Lesser General Public
11
 * License as published by the Free Software Foundation; either
12
 * version 2.1 of the License, or (at your option) any later version.
13
 *
14
 * FFmpeg is distributed in the hope that it will be useful,
15
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
17
 * Lesser General Public License for more details.
18
 *
19
 * You should have received a copy of the GNU Lesser General Public
20
 * License along with FFmpeg; if not, write to the Free Software
21
 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
22
 */
23
24
/**
25
 * @file
26
 * Dirac Parser
27
 * @author Marco Gerards <marco@gnu.org>
28
 */
29
30
#include <string.h>
31
32
#include "libavutil/attributes.h"
33
#include "libavutil/intreadwrite.h"
34
#include "libavutil/mem.h"
35
36
#include "avcodec.h"
37
#include "parser_internal.h"
38
39
61.0M
#define DIRAC_PARSE_INFO_PREFIX 0x42424344
40
41
/**
42
 * Find the end of the current frame in the bitstream.
43
 * @return the position of the first byte of the next frame or -1
44
 */
45
typedef struct DiracParseContext {
46
    int state;
47
    int is_synced;
48
    int sync_offset;
49
    int header_bytes_needed;
50
    int overread_index;
51
    int buffer_size;
52
    int index;
53
    uint8_t *buffer;
54
    int dirac_unit_size;
55
    uint8_t *dirac_unit;
56
} DiracParseContext;
57
58
static int find_frame_end(DiracParseContext *pc,
59
                          const uint8_t *buf, int buf_size)
60
2.17M
{
61
2.17M
    uint32_t state = pc->state;
62
2.17M
    int i = 0;
63
64
2.17M
    if (!pc->is_synced) {
65
8.86M
        for (i = 0; i < buf_size; i++) {
66
8.75M
            state = (state << 8) | buf[i];
67
8.75M
            if (state == DIRAC_PARSE_INFO_PREFIX) {
68
3.45k
                state                   = -1;
69
3.45k
                pc->is_synced           = 1;
70
3.45k
                pc->header_bytes_needed = 9;
71
3.45k
                pc->sync_offset         = i;
72
3.45k
                break;
73
3.45k
            }
74
8.75M
        }
75
111k
    }
76
77
2.17M
    if (pc->is_synced) {
78
2.06M
        pc->sync_offset = 0;
79
52.4M
        for (; i < buf_size; i++) {
80
52.2M
            if (state == DIRAC_PARSE_INFO_PREFIX) {
81
1.90M
                if ((buf_size - i) >= pc->header_bytes_needed) {
82
1.56M
                    pc->state = -1;
83
1.56M
                    return i + pc->header_bytes_needed;
84
1.56M
                } else {
85
336k
                    pc->header_bytes_needed = 9 - (buf_size - i);
86
336k
                    break;
87
336k
                }
88
1.90M
            } else
89
50.3M
                state = (state << 8) | buf[i];
90
52.2M
        }
91
2.06M
    }
92
608k
    pc->state = state;
93
608k
    return -1;
94
2.17M
}
95
96
typedef struct DiracParseUnit {
97
    int next_pu_offset;
98
    int prev_pu_offset;
99
    uint8_t pu_type;
100
} DiracParseUnit;
101
102
static int unpack_parse_unit(DiracParseUnit *pu, DiracParseContext *pc,
103
                             int offset)
104
2.90M
{
105
2.90M
    int i;
106
2.90M
    int8_t *start;
107
2.90M
    static const uint8_t valid_pu_types[] = {
108
2.90M
        0x00, 0x10, 0x20, 0x30, 0x08, 0x48, 0xC8, 0xE8, 0x0A, 0x0C, 0x0D, 0x0E,
109
2.90M
        0x4C, 0x09, 0xCC, 0x88, 0xCB
110
2.90M
    };
111
112
2.90M
    if (offset < 0 || pc->index - 13 < offset)
113
135k
        return 0;
114
115
2.76M
    start = pc->buffer + offset;
116
2.76M
    pu->pu_type = start[4];
117
118
2.76M
    pu->next_pu_offset = AV_RB32(start + 5);
119
2.76M
    pu->prev_pu_offset = AV_RB32(start + 9);
120
121
    /* Check for valid parse code */
122
15.4M
    for (i = 0; i < 17; i++)
123
15.1M
        if (valid_pu_types[i] == pu->pu_type)
124
2.47M
            break;
125
2.76M
    if (i == 17)
126
293k
        return 0;
127
128
2.47M
    if (pu->pu_type == 0x10 && pu->next_pu_offset == 0x00)
129
301k
        pu->next_pu_offset = 13; /* The length of a parse info header */
130
131
    /* Check if the parse offsets are somewhat sane */
132
2.47M
    if ((pu->next_pu_offset && pu->next_pu_offset < 13) ||
133
2.46M
        (pu->prev_pu_offset && pu->prev_pu_offset < 13))
134
87.6k
        return 0;
135
136
2.38M
    return 1;
137
2.47M
}
138
139
static int dirac_combine_frame(AVCodecParserContext *s, AVCodecContext *avctx,
140
                               int next, const uint8_t **buf, int *buf_size)
141
2.06M
{
142
2.06M
    int parse_timing_info = (s->pts == AV_NOPTS_VALUE &&
143
2.06M
                             s->dts == AV_NOPTS_VALUE);
144
2.06M
    DiracParseContext *pc = s->priv_data;
145
146
2.06M
    if (pc->overread_index) {
147
632k
        memmove(pc->buffer, pc->buffer + pc->overread_index,
148
632k
               pc->index - pc->overread_index);
149
632k
        pc->index         -= pc->overread_index;
150
632k
        pc->overread_index = 0;
151
632k
        if (*buf_size == 0 && pc->buffer[4] == 0x10) {
152
930
            *buf      = pc->buffer;
153
930
            *buf_size = pc->index;
154
930
            return 0;
155
930
        }
156
632k
    }
157
158
2.06M
    if (next == -1) {
159
        /* Found a possible frame start but not a frame end */
160
499k
        void *new_buffer =
161
499k
            av_fast_realloc(pc->buffer, &pc->buffer_size,
162
499k
                            pc->index + (*buf_size - pc->sync_offset));
163
499k
        if (!new_buffer)
164
0
            return AVERROR(ENOMEM);
165
499k
        pc->buffer = new_buffer;
166
499k
        memcpy(pc->buffer + pc->index, (*buf + pc->sync_offset),
167
499k
               *buf_size - pc->sync_offset);
168
499k
        pc->index += *buf_size - pc->sync_offset;
169
499k
        return -1;
170
1.56M
    } else {
171
        /* Found a possible frame start and a  possible frame end */
172
1.56M
        DiracParseUnit pu1, pu;
173
1.56M
        void *new_buffer = av_fast_realloc(pc->buffer, &pc->buffer_size,
174
1.56M
                                           pc->index + next);
175
1.56M
        if (!new_buffer)
176
0
            return AVERROR(ENOMEM);
177
1.56M
        pc->buffer = new_buffer;
178
1.56M
        memcpy(pc->buffer + pc->index, *buf, next);
179
1.56M
        pc->index += next;
180
181
        /* Need to check if we have a valid Parse Unit. We can't go by the
182
         * sync pattern 'BBCD' alone because arithmetic coding of the residual
183
         * and motion data can cause the pattern triggering a false start of
184
         * frame. So check if the previous parse offset of the next parse unit
185
         * is equal to the next parse offset of the current parse unit then
186
         * we can be pretty sure that we have a valid parse unit */
187
1.56M
        if (!unpack_parse_unit(&pu1, pc, pc->index - 13)                     ||
188
1.33M
            !unpack_parse_unit(&pu, pc, pc->index - 13 - pu1.prev_pu_offset) ||
189
1.04M
            pu.next_pu_offset != pu1.prev_pu_offset                          ||
190
957k
            pc->index < pc->dirac_unit_size + 13LL + pu1.prev_pu_offset
191
1.56M
        ) {
192
611k
            pc->index              -= 9;
193
611k
            *buf_size               = next - 9;
194
611k
            pc->header_bytes_needed = 9;
195
611k
            return -1;
196
611k
        }
197
198
        /* All non-frame data must be accompanied by frame data. This is to
199
         * ensure that pts is set correctly. So if the current parse unit is
200
         * not frame data, wait for frame data to come along */
201
202
954k
        pc->dirac_unit = pc->buffer + pc->index - 13 -
203
954k
                         pu1.prev_pu_offset - pc->dirac_unit_size;
204
205
954k
        pc->dirac_unit_size += pu.next_pu_offset;
206
207
954k
        if ((pu.pu_type & 0x08) != 0x08) {
208
321k
            pc->header_bytes_needed = 9;
209
321k
            *buf_size               = next;
210
321k
            return -1;
211
321k
        }
212
213
        /* Get the picture number to set the pts and dts*/
214
632k
        if (parse_timing_info && pu1.prev_pu_offset >= 13) {
215
423k
            uint8_t *cur_pu = pc->buffer +
216
423k
                              pc->index - 13 - pu1.prev_pu_offset;
217
423k
            int64_t pts = AV_RB32(cur_pu + 13);
218
423k
            if (s->last_pts == 0 && s->last_dts == 0)
219
12.4k
                s->dts = pts - 1;
220
411k
            else if (s->last_dts != AV_NOPTS_VALUE)
221
369k
                s->dts = s->last_dts + 1;
222
423k
            s->pts = pts;
223
423k
            if (!avctx->has_b_frames && (cur_pu[4] & 0x03))
224
1.95k
                avctx->has_b_frames = 1;
225
423k
        }
226
632k
        if (avctx->has_b_frames && s->pts == s->dts)
227
117k
            s->pict_type = AV_PICTURE_TYPE_B;
228
229
        /* Finally have a complete Dirac data unit */
230
632k
        *buf      = pc->dirac_unit;
231
632k
        *buf_size = pc->dirac_unit_size;
232
233
632k
        pc->dirac_unit_size     = 0;
234
632k
        pc->overread_index      = pc->index - 13;
235
632k
        pc->header_bytes_needed = 9;
236
632k
    }
237
632k
    return next;
238
2.06M
}
239
240
static int dirac_parse(AVCodecParserContext *s, AVCodecContext *avctx,
241
                       const uint8_t **poutbuf, int *poutbuf_size,
242
                       const uint8_t *buf, int buf_size)
243
2.17M
{
244
2.17M
    DiracParseContext *pc = s->priv_data;
245
2.17M
    int next;
246
247
2.17M
    *poutbuf      = NULL;
248
2.17M
    *poutbuf_size = 0;
249
250
2.17M
    if (s->flags & PARSER_FLAG_COMPLETE_FRAMES) {
251
2.08k
        next          = buf_size;
252
2.08k
        *poutbuf      = buf;
253
2.08k
        *poutbuf_size = buf_size;
254
        /* Assume that data has been packetized into an encapsulation unit. */
255
2.17M
    } else {
256
2.17M
        next = find_frame_end(pc, buf, buf_size);
257
2.17M
        if (!pc->is_synced && next == -1)
258
            /* No frame start found yet. So throw away the entire buffer. */
259
107k
            return buf_size;
260
261
2.06M
        if (dirac_combine_frame(s, avctx, next, &buf, &buf_size) < 0)
262
1.43M
            return buf_size;
263
2.06M
    }
264
265
635k
    *poutbuf      = buf;
266
635k
    *poutbuf_size = buf_size;
267
635k
    return next;
268
2.17M
}
269
270
static av_cold void dirac_parse_close(AVCodecParserContext *s)
271
6.05k
{
272
6.05k
    DiracParseContext *pc = s->priv_data;
273
274
6.05k
    if (pc->buffer_size > 0)
275
3.45k
        av_freep(&pc->buffer);
276
6.05k
}
277
278
const FFCodecParser ff_dirac_parser = {
279
    PARSER_CODEC_LIST(AV_CODEC_ID_DIRAC),
280
    .priv_data_size = sizeof(DiracParseContext),
281
    .parse          = dirac_parse,
282
    .close          = dirac_parse_close,
283
};