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00030 #include <string.h>
00031 
00032 #include "libavutil/intreadwrite.h"
00033 #include "libavutil/mem.h"
00034 #include "parser.h"
00035 
00036 #define DIRAC_PARSE_INFO_PREFIX 0x42424344
00037 
00042 typedef struct DiracParseContext {
00043     int state;
00044     int is_synced;
00045     int sync_offset;
00046     int header_bytes_needed;
00047     int overread_index;
00048     int buffer_size;
00049     int index;
00050     uint8_t *buffer;
00051     int dirac_unit_size;
00052     uint8_t *dirac_unit;
00053 } DiracParseContext;
00054 
00055 static int find_frame_end(DiracParseContext *pc,
00056                           const uint8_t *buf, int buf_size)
00057 {
00058     uint32_t state = pc->state;
00059     int i = 0;
00060 
00061     if (!pc->is_synced) {
00062         for (i = 0; i < buf_size; i++) {
00063             state = (state << 8) | buf[i];
00064             if (state == DIRAC_PARSE_INFO_PREFIX) {
00065                 state                   = -1;
00066                 pc->is_synced           = 1;
00067                 pc->header_bytes_needed = 9;
00068                 pc->sync_offset         = i;
00069                 break;
00070             }
00071         }
00072     }
00073 
00074     if (pc->is_synced) {
00075         pc->sync_offset = 0;
00076         for (; i < buf_size; i++) {
00077             if (state == DIRAC_PARSE_INFO_PREFIX) {
00078                 if ((buf_size-i) >= pc->header_bytes_needed) {
00079                     pc->state = -1;
00080                     return i + pc->header_bytes_needed;
00081                 } else {
00082                     pc->header_bytes_needed = 9-(buf_size-i);
00083                     break;
00084                 }
00085             } else
00086               state = (state << 8) | buf[i];
00087         }
00088     }
00089     pc->state = state;
00090     return -1;
00091 }
00092 
00093 typedef struct DiracParseUnit
00094 {
00095     int next_pu_offset;
00096     int prev_pu_offset;
00097     uint8_t pu_type;
00098 } DiracParseUnit;
00099 
00100 static int unpack_parse_unit(DiracParseUnit *pu, DiracParseContext *pc,
00101                              int offset)
00102 {
00103     uint8_t *start = pc->buffer + offset;
00104     uint8_t *end   = pc->buffer + pc->index;
00105     if (start < pc->buffer || (start+13 > end))
00106         return 0;
00107     pu->pu_type = start[4];
00108 
00109     pu->next_pu_offset = AV_RB32(start+5);
00110     pu->prev_pu_offset = AV_RB32(start+9);
00111 
00112     if (pu->pu_type == 0x10 && pu->next_pu_offset == 0)
00113         pu->next_pu_offset = 13;
00114 
00115     return 1;
00116 }
00117 
00118 static int dirac_combine_frame(AVCodecParserContext *s, AVCodecContext *avctx,
00119                                int next, const uint8_t **buf, int *buf_size)
00120 {
00121     int parse_timing_info = (s->pts == AV_NOPTS_VALUE &&
00122                              s->dts == AV_NOPTS_VALUE);
00123     DiracParseContext *pc = s->priv_data;
00124 
00125     if (pc->overread_index) {
00126         memcpy(pc->buffer, pc->buffer + pc->overread_index,
00127                pc->index - pc->overread_index);
00128         pc->index -= pc->overread_index;
00129         pc->overread_index = 0;
00130         if (*buf_size == 0 && pc->buffer[4] == 0x10) {
00131             *buf      = pc->buffer;
00132             *buf_size = pc->index;
00133             return 0;
00134         }
00135     }
00136 
00137     if ( next == -1) {
00138         
00139         void *new_buffer = av_fast_realloc(pc->buffer, &pc->buffer_size,
00140                                            pc->index + (*buf_size -
00141                                                         pc->sync_offset));
00142         pc->buffer = new_buffer;
00143         memcpy(pc->buffer+pc->index, (*buf + pc->sync_offset),
00144                *buf_size - pc->sync_offset);
00145         pc->index += *buf_size - pc->sync_offset;
00146         return -1;
00147     } else {
00148         
00149         DiracParseUnit pu1, pu;
00150         void *new_buffer = av_fast_realloc(pc->buffer, &pc->buffer_size,
00151                                            pc->index + next);
00152         pc->buffer = new_buffer;
00153         memcpy(pc->buffer + pc->index, *buf, next);
00154         pc->index += next;
00155 
00156         
00157 
00158 
00159 
00160 
00161 
00162         if (!unpack_parse_unit(&pu1, pc, pc->index - 13)                     ||
00163             !unpack_parse_unit(&pu, pc, pc->index - 13 - pu1.prev_pu_offset) ||
00164             pu.next_pu_offset != pu1.prev_pu_offset) {
00165             pc->index -= 9;
00166             *buf_size = next-9;
00167             pc->header_bytes_needed = 9;
00168             return -1;
00169         }
00170 
00171         
00172 
00173 
00174 
00175         pc->dirac_unit = pc->buffer + pc->index - 13 -
00176                          pu1.prev_pu_offset - pc->dirac_unit_size;
00177 
00178         pc->dirac_unit_size += pu.next_pu_offset;
00179 
00180         if ((pu.pu_type&0x08) != 0x08) {
00181             pc->header_bytes_needed = 9;
00182             *buf_size = next;
00183             return -1;
00184         }
00185 
00186         
00187         if (parse_timing_info) {
00188             uint8_t *cur_pu = pc->buffer +
00189                               pc->index - 13 - pu1.prev_pu_offset;
00190             int pts =  AV_RB32(cur_pu + 13);
00191             if (s->last_pts == 0 && s->last_dts == 0)
00192                 s->dts = pts - 1;
00193             else
00194                 s->dts = s->last_dts+1;
00195             s->pts = pts;
00196             if (!avctx->has_b_frames && (cur_pu[4] & 0x03))
00197                 avctx->has_b_frames = 1;
00198         }
00199         if (avctx->has_b_frames && s->pts == s->dts)
00200              s->pict_type = AV_PICTURE_TYPE_B;
00201 
00202         
00203         *buf      = pc->dirac_unit;
00204         *buf_size = pc->dirac_unit_size;
00205 
00206         pc->dirac_unit_size     = 0;
00207         pc->overread_index      = pc->index-13;
00208         pc->header_bytes_needed = 9;
00209     }
00210     return next;
00211 }
00212 
00213 static int dirac_parse(AVCodecParserContext *s, AVCodecContext *avctx,
00214                        const uint8_t **poutbuf, int *poutbuf_size,
00215                        const uint8_t *buf, int buf_size)
00216 {
00217     DiracParseContext *pc = s->priv_data;
00218     int next;
00219 
00220     *poutbuf = NULL;
00221     *poutbuf_size = 0;
00222 
00223     if (s->flags & PARSER_FLAG_COMPLETE_FRAMES) {
00224         next = buf_size;
00225         *poutbuf = buf;
00226         *poutbuf_size = buf_size;
00227         
00228     } else {
00229         next = find_frame_end(pc, buf, buf_size);
00230         if (!pc->is_synced && next == -1) {
00231             
00232             return buf_size;
00233         }
00234 
00235         if (dirac_combine_frame(s, avctx, next, &buf, &buf_size) < 0) {
00236             return buf_size;
00237         }
00238     }
00239 
00240     *poutbuf = buf;
00241     *poutbuf_size = buf_size;
00242     return next;
00243 }
00244 
00245 static void dirac_parse_close(AVCodecParserContext *s)
00246 {
00247     DiracParseContext *pc = s->priv_data;
00248 
00249     if (pc->buffer_size > 0)
00250         av_free(pc->buffer);
00251 }
00252 
00253 AVCodecParser ff_dirac_parser = {
00254     .codec_ids      = { AV_CODEC_ID_DIRAC },
00255     .priv_data_size = sizeof(DiracParseContext),
00256     .parser_parse   = dirac_parse,
00257     .parser_close   = dirac_parse_close,
00258 };