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28 #include "config_components.h"
30 #define UNCHECKED_BITSTREAM_READER 1
61 #define A53_MAX_CC_COUNT 2000
88 #define MB_TYPE_ZERO_MV 0x20000000
141 #define MAX_INDEX (64 - 1)
142 #define check_scantable_index(ctx, x) \
144 if ((x) > MAX_INDEX) { \
145 av_log(ctx->avctx, AV_LOG_ERROR, "ac-tex damaged at %d %d\n", \
146 ctx->mb_x, ctx->mb_y); \
147 return AVERROR_INVALIDDATA; \
152 int16_t *
block,
int n)
155 uint8_t *
const scantable =
s->intra_scantable.permutated;
156 const uint16_t *quant_matrix =
s->inter_matrix;
157 const int qscale =
s->qscale;
165 level = (3 * qscale * quant_matrix[0]) >> 5;
185 level = ((
level * 2 + 1) * qscale * quant_matrix[j]) >> 5;
200 }
else if (
level == 0) {
210 level = ((
level * 2 + 1) * qscale * quant_matrix[j]) >> 5;
214 level = ((
level * 2 + 1) * qscale * quant_matrix[j]) >> 5;
231 s->block_last_index[n] =
i;
240 int16_t *
block,
int n)
243 uint8_t *
const scantable =
s->intra_scantable.permutated;
244 const int qscale =
s->qscale;
252 level = (3 * qscale) >> 1;
288 }
else if (
level == 0) {
319 s->block_last_index[n] =
i;
324 int16_t *
block,
int n)
327 uint8_t *
const scantable =
s->intra_scantable.permutated;
328 const uint16_t *quant_matrix;
329 const int qscale =
s->qscale;
338 quant_matrix =
s->inter_matrix;
340 quant_matrix =
s->chroma_inter_matrix;
345 level = (3 * qscale * quant_matrix[0]) >> 5;
366 level = ((
level * 2 + 1) * qscale * quant_matrix[j]) >> 5;
383 level = ((-
level * 2 + 1) * qscale * quant_matrix[j]) >> 5;
386 level = ((
level * 2 + 1) * qscale * quant_matrix[j]) >> 5;
400 block[63] ^= (mismatch & 1);
404 s->block_last_index[n] =
i;
413 int16_t *
block,
int n)
416 uint8_t *
const scantable =
s->intra_scantable.permutated;
417 const int qscale =
s->qscale;
424 level = (3 * qscale) >> 1;
479 s->block_last_index[n] =
i;
484 int16_t *
block,
int n)
489 uint8_t *
const scantable =
s->intra_scantable.permutated;
490 const uint16_t *quant_matrix;
491 const int qscale =
s->qscale;
496 quant_matrix =
s->intra_matrix;
499 quant_matrix =
s->chroma_intra_matrix;
500 component = (n & 1) + 1;
503 dc =
s->last_dc[component];
505 s->last_dc[component] =
dc;
506 block[0] =
dc * (1 << (3 -
s->intra_dc_precision));
508 mismatch =
block[0] ^ 1;
510 if (
s->intra_vlc_format)
525 }
else if (
level != 0) {
530 level = (
level * qscale * quant_matrix[j]) >> 4;
545 level = (-
level * qscale * quant_matrix[j]) >> 4;
548 level = (
level * qscale * quant_matrix[j]) >> 4;
557 block[63] ^= mismatch & 1;
561 s->block_last_index[n] =
i;
570 int16_t *
block,
int n)
575 uint8_t *
const scantable =
s->intra_scantable.permutated;
576 const uint16_t *quant_matrix;
577 const int qscale =
s->qscale;
581 quant_matrix =
s->intra_matrix;
584 quant_matrix =
s->chroma_intra_matrix;
585 component = (n & 1) + 1;
588 dc =
s->last_dc[component];
590 s->last_dc[component] =
dc;
591 block[0] =
dc * (1 << (3 -
s->intra_dc_precision));
593 if (
s->intra_vlc_format)
606 if (
level >= 64 ||
i > 63) {
608 }
else if (
level != 0) {
611 level = (
level * qscale * quant_matrix[j]) >> 4;
624 level = (-
level * qscale * quant_matrix[j]) >> 4;
627 level = (
level * qscale * quant_matrix[j]) >> 4;
638 s->block_last_index[n] =
i;
661 int i, j, k, cbp,
val, mb_type, motion_type;
662 const int mb_block_count = 4 + (1 <<
s->chroma_format);
665 ff_tlog(
s->avctx,
"decode_mb: x=%d y=%d\n",
s->mb_x,
s->mb_y);
669 if (
s->mb_skip_run-- != 0) {
672 s->current_picture.mb_type[
s->mb_x +
s->mb_y *
s->mb_stride] =
678 mb_type =
s->current_picture.mb_type[
s->mb_x +
s->mb_y *
s->mb_stride - 1];
681 mb_type =
s->current_picture.mb_type[
s->mb_width + (
s->mb_y - 1) *
s->mb_stride - 1];
686 s->current_picture.mb_type[
s->mb_x +
s->mb_y *
s->mb_stride] =
689 if ((
s->mv[0][0][0] |
s->mv[0][0][1] |
s->mv[1][0][0] |
s->mv[1][0][1]) == 0)
696 switch (
s->pict_type) {
702 "Invalid mb type in I-frame at %d %d\n",
715 "Invalid mb type in P-frame at %d %d\n",
s->mb_x,
s->mb_y);
724 "Invalid mb type in B-frame at %d %d\n",
s->mb_x,
s->mb_y);
730 ff_tlog(
s->avctx,
"mb_type=%x\n", mb_type);
733 s->bdsp.clear_blocks(
s->block[0]);
735 if (!
s->chroma_y_shift)
736 s->bdsp.clear_blocks(
s->block[6]);
741 !
s->frame_pred_frame_dct)
747 if (
s->concealment_motion_vectors) {
753 s->last_mv[0][0][0] =
755 s->last_mv[0][0][0]);
757 s->last_mv[0][0][1] =
759 s->last_mv[0][0][1]);
761 check_marker(
s->avctx, &
s->gb,
"after concealment_motion_vectors");
764 memset(
s->last_mv, 0,
sizeof(
s->last_mv));
770 for (
i = 0;
i < 6;
i++)
773 for (
i = 0;
i < mb_block_count;
i++)
778 for (
i = 0;
i < 6;
i++) {
781 s->intra_scantable.permutated,
782 s->last_dc, *
s->pblocks[
i],
790 s->block_last_index[
i] =
ret;
800 && !
s->frame_pred_frame_dct)
806 s->field_select[0][0] =
s->picture_structure - 1;
812 s->last_mv[0][0][0] = 0;
813 s->last_mv[0][0][1] = 0;
814 s->last_mv[0][1][0] = 0;
815 s->last_mv[0][1][1] = 0;
822 if (
s->picture_structure ==
PICT_FRAME &&
s->frame_pred_frame_dct) {
834 s->mv_dir = (mb_type >> 13) & 3;
835 ff_tlog(
s->avctx,
"motion_type=%d\n", motion_type);
836 switch (motion_type) {
841 for (
i = 0;
i < 2;
i++) {
845 s->last_mv[
i][0][0] =
846 s->last_mv[
i][1][0] =
848 s->last_mv[
i][0][0]);
850 s->last_mv[
i][0][1] =
851 s->last_mv[
i][1][1] =
853 s->last_mv[
i][0][1]);
855 if (
s->full_pel[
i]) {
864 for (
i = 0;
i < 2;
i++) {
867 for (j = 0; j < 2; j++) {
869 for (k = 0; k < 2; k++) {
871 s->last_mv[
i][j][k]);
872 s->last_mv[
i][j][k] =
val;
873 s->mv[
i][j][k] =
val;
884 for (
i = 0;
i < 2;
i++) {
886 for (j = 0; j < 2; j++) {
889 s->last_mv[
i][j][0]);
890 s->last_mv[
i][j][0] =
val;
891 s->mv[
i][j][0] =
val;
894 s->last_mv[
i][j][1] >> 1);
895 s->last_mv[
i][j][1] = 2 *
val;
896 s->mv[
i][j][1] =
val;
904 for (
i = 0;
i < 2;
i++) {
907 for (k = 0; k < 2; k++) {
909 s->last_mv[
i][0][k]);
910 s->last_mv[
i][0][k] =
val;
911 s->last_mv[
i][1][k] =
val;
912 s->mv[
i][0][k] =
val;
919 if (
s->progressive_sequence){
924 for (
i = 0;
i < 2;
i++) {
926 int dmx, dmy, mx, my, m;
927 const int my_shift =
s->picture_structure ==
PICT_FRAME;
930 s->last_mv[
i][0][0]);
931 s->last_mv[
i][0][0] = mx;
932 s->last_mv[
i][1][0] = mx;
935 s->last_mv[
i][0][1] >> my_shift);
939 s->last_mv[
i][0][1] = my * (1 << my_shift);
940 s->last_mv[
i][1][1] = my * (1 << my_shift);
951 m =
s->top_field_first ? 1 : 3;
954 s->mv[
i][2][0] = ((mx * m + (mx > 0)) >> 1) + dmx;
955 s->mv[
i][2][1] = ((my * m + (my > 0)) >> 1) + dmy - 1;
957 s->mv[
i][3][0] = ((mx * m + (mx > 0)) >> 1) + dmx;
958 s->mv[
i][3][1] = ((my * m + (my > 0)) >> 1) + dmy + 1;
962 s->mv[
i][2][0] = ((mx + (mx > 0)) >> 1) + dmx;
963 s->mv[
i][2][1] = ((my + (my > 0)) >> 1) + dmy;
974 "00 motion_type at %d %d\n",
s->mb_x,
s->mb_y);
981 s->bdsp.clear_blocks(
s->block[0]);
984 if (mb_block_count > 6) {
985 cbp *= 1 << mb_block_count - 6;
986 cbp |=
get_bits(&
s->gb, mb_block_count - 6);
987 s->bdsp.clear_blocks(
s->block[6]);
991 "invalid cbp %d at %d %d\n", cbp,
s->mb_x,
s->mb_y);
997 for (
i = 0;
i < 6;
i++) {
1001 s->block_last_index[
i] = -1;
1005 cbp <<= 12 - mb_block_count;
1007 for (
i = 0;
i < mb_block_count;
i++) {
1008 if (cbp & (1 << 11)) {
1012 s->block_last_index[
i] = -1;
1019 for (
i = 0;
i < 6;
i++) {
1023 s->block_last_index[
i] = -1;
1027 for (
i = 0;
i < 6;
i++) {
1032 s->block_last_index[
i] = -1;
1039 for (
i = 0;
i < 12;
i++)
1040 s->block_last_index[
i] = -1;
1044 s->current_picture.mb_type[
s->mb_x +
s->mb_y *
s->mb_stride] = mb_type;
1064 s2->chroma_format = 1;
1065 s->mpeg_enc_ctx_allocated = 0;
1066 s->repeat_field = 0;
1072 static int mpeg_decode_update_thread_context(
AVCodecContext *avctx,
1079 if (avctx == avctx_from ||
1080 !ctx_from->mpeg_enc_ctx_allocated ||
1081 !
s1->context_initialized)
1088 if (!
ctx->mpeg_enc_ctx_allocated)
1096 const uint8_t *new_perm)
1098 uint16_t temp_matrix[64];
1101 memcpy(temp_matrix,
matrix, 64 *
sizeof(uint16_t));
1103 for (
i = 0;
i < 64;
i++)
1104 matrix[new_perm[
i]] = temp_matrix[old_perm[
i]];
1108 #if CONFIG_MPEG1_NVDEC_HWACCEL
1111 #if CONFIG_MPEG1_VDPAU_HWACCEL
1119 #if CONFIG_MPEG2_NVDEC_HWACCEL
1122 #if CONFIG_MPEG2_VDPAU_HWACCEL
1125 #if CONFIG_MPEG2_DXVA2_HWACCEL
1128 #if CONFIG_MPEG2_D3D11VA_HWACCEL
1132 #if CONFIG_MPEG2_VAAPI_HWACCEL
1135 #if CONFIG_MPEG2_VIDEOTOOLBOX_HWACCEL
1161 if (
s->chroma_format < 2)
1165 else if (
s->chroma_format == 2)
1179 uint8_t old_permutation[64];
1188 if (
s1->aspect_ratio_info > 1) {
1192 s1->pan_scan.height }),
1199 if ((
s1->pan_scan.width == 0) || (
s1->pan_scan.height == 0) ||
1202 s->avctx->sample_aspect_ratio =
1206 s->avctx->sample_aspect_ratio =
1208 (
AVRational) { s1->pan_scan.width, s1->pan_scan.height });
1213 ff_dlog(avctx,
"aspect A %d/%d\n",
1216 ff_dlog(avctx,
"aspect B %d/%d\n",
s->avctx->sample_aspect_ratio.num,
1217 s->avctx->sample_aspect_ratio.den);
1220 s->avctx->sample_aspect_ratio =
1233 if ((
s1->mpeg_enc_ctx_allocated == 0) ||
1236 s1->save_width !=
s->width ||
1237 s1->save_height !=
s->height ||
1238 av_cmp_q(
s1->save_aspect,
s->avctx->sample_aspect_ratio) ||
1239 (
s1->save_progressive_seq !=
s->progressive_sequence &&
FFALIGN(
s->height, 16) !=
FFALIGN(
s->height, 32)) ||
1241 if (
s1->mpeg_enc_ctx_allocated) {
1243 s1->mpeg_enc_ctx_allocated = 0;
1253 (
s->bit_rate != 0x3FFFF*400 ||
s->vbv_delay != 0xFFFF)) {
1256 s1->save_aspect =
s->avctx->sample_aspect_ratio;
1257 s1->save_width =
s->width;
1258 s1->save_height =
s->height;
1259 s1->save_progressive_seq =
s->progressive_sequence;
1274 &
s->avctx->framerate.den,
1280 switch (
s->chroma_format) {
1292 memcpy(old_permutation,
s->idsp.idct_permutation, 64 *
sizeof(uint8_t));
1303 s1->mpeg_enc_ctx_allocated = 1;
1313 int ref, f_code, vbv_delay,
ret;
1321 if (
s->pict_type == 0 ||
s->pict_type > 3)
1325 s->vbv_delay = vbv_delay;
1333 s->mpeg_f_code[0][0] = f_code;
1334 s->mpeg_f_code[0][1] = f_code;
1342 s->mpeg_f_code[1][0] = f_code;
1343 s->mpeg_f_code[1][1] = f_code;
1345 s->current_picture.f->pict_type =
s->pict_type;
1350 "vbv_delay %d, ref %d type:%d\n", vbv_delay,
ref,
s->pict_type);
1360 int horiz_size_ext, vert_size_ext;
1370 if (!
s->chroma_format) {
1371 s->chroma_format = 1;
1377 s->width |= (horiz_size_ext << 12);
1378 s->height |= (vert_size_ext << 12);
1380 s->bit_rate += (bit_rate_ext << 18) * 400LL;
1382 s1->rc_buffer_size +=
get_bits(&
s->gb, 8) * 1024 * 16 << 10;
1391 ff_dlog(
s->avctx,
"sequence extension\n");
1396 if (
s->bit_rate != 0x3FFFF*400)
1402 "profile: %d, level: %d ps: %d cf:%d vbv buffer: %d, bitrate:%"PRId64
"\n",
1403 s->avctx->profile,
s->avctx->level,
s->progressive_sequence,
s->chroma_format,
1404 s1->rc_buffer_size,
s->bit_rate);
1410 int color_description,
w,
h;
1414 if (color_description) {
1415 s->avctx->color_primaries =
get_bits(&
s->gb, 8);
1424 s1->pan_scan.width = 16 *
w;
1425 s1->pan_scan.height = 16 *
h;
1437 if (
s->progressive_sequence) {
1438 if (
s->repeat_first_field) {
1440 if (
s->top_field_first)
1446 if (
s->repeat_first_field)
1450 for (
i = 0;
i < nofco;
i++) {
1459 "pde (%"PRId16
",%"PRId16
") (%"PRId16
",%"PRId16
") (%"PRId16
",%"PRId16
")\n",
1460 s1->pan_scan.position[0][0],
s1->pan_scan.position[0][1],
1461 s1->pan_scan.position[1][0],
s1->pan_scan.position[1][1],
1462 s1->pan_scan.position[2][0],
s1->pan_scan.position[2][1]);
1466 uint16_t matrix1[64],
int intra)
1470 for (
i = 0;
i < 64;
i++) {
1477 if (intra &&
i == 0 && v != 8) {
1478 av_log(
s->avctx,
AV_LOG_DEBUG,
"intra matrix specifies invalid DC quantizer %d, ignoring\n", v);
1490 ff_dlog(
s->avctx,
"matrix extension\n");
1506 s->full_pel[0] =
s->full_pel[1] = 0;
1511 s->mpeg_f_code[0][0] += !
s->mpeg_f_code[0][0];
1512 s->mpeg_f_code[0][1] += !
s->mpeg_f_code[0][1];
1513 s->mpeg_f_code[1][0] += !
s->mpeg_f_code[1][0];
1514 s->mpeg_f_code[1][1] += !
s->mpeg_f_code[1][1];
1515 if (!
s->pict_type &&
s1->mpeg_enc_ctx_allocated) {
1520 if (
s->mpeg_f_code[1][0] == 15 &&
s->mpeg_f_code[1][1] == 15) {
1521 if (
s->mpeg_f_code[0][0] == 15 &&
s->mpeg_f_code[0][1] == 15)
1527 s->current_picture.f->pict_type =
s->pict_type;
1535 s->concealment_motion_vectors =
get_bits1(&
s->gb);
1543 if (
s->alternate_scan) {
1552 ff_dlog(
s->avctx,
"intra_dc_precision=%d\n",
s->intra_dc_precision);
1553 ff_dlog(
s->avctx,
"picture_structure=%d\n",
s->picture_structure);
1554 ff_dlog(
s->avctx,
"top field first=%d\n",
s->top_field_first);
1555 ff_dlog(
s->avctx,
"repeat first field=%d\n",
s->repeat_first_field);
1556 ff_dlog(
s->avctx,
"conceal=%d\n",
s->concealment_motion_vectors);
1557 ff_dlog(
s->avctx,
"intra_vlc_format=%d\n",
s->intra_vlc_format);
1558 ff_dlog(
s->avctx,
"alternate_scan=%d\n",
s->alternate_scan);
1559 ff_dlog(
s->avctx,
"frame_pred_frame_dct=%d\n",
s->frame_pred_frame_dct);
1560 ff_dlog(
s->avctx,
"progressive_frame=%d\n",
s->progressive_frame);
1572 if (
s->mb_width *
s->mb_height * 11LL / (33 * 2 * 8) > buf_size)
1577 if (
s->first_field ||
s->picture_structure ==
PICT_FRAME) {
1586 s->current_picture_ptr->f->repeat_pict = 0;
1587 if (
s->repeat_first_field) {
1588 if (
s->progressive_sequence) {
1589 if (
s->top_field_first)
1590 s->current_picture_ptr->f->repeat_pict = 4;
1592 s->current_picture_ptr->f->repeat_pict = 2;
1593 }
else if (
s->progressive_frame) {
1594 s->current_picture_ptr->f->repeat_pict = 1;
1600 sizeof(
s1->pan_scan));
1603 memcpy(pan_scan->
data, &
s1->pan_scan,
sizeof(
s1->pan_scan));
1605 if (
s1->a53_buf_ref) {
1614 if (
s1->has_stereo3d) {
1619 *stereo =
s1->stereo3d;
1620 s1->has_stereo3d = 0;
1639 if (!
s->current_picture_ptr) {
1644 if (
s->avctx->hwaccel) {
1645 if ((
ret =
s->avctx->hwaccel->end_frame(
s->avctx)) < 0) {
1647 "hardware accelerator failed to decode first field\n");
1652 for (
i = 0;
i < 4;
i++) {
1653 s->current_picture.f->data[
i] =
s->current_picture_ptr->f->data[
i];
1655 s->current_picture.f->data[
i] +=
1656 s->current_picture_ptr->f->linesize[
i];
1668 #define DECODE_SLICE_ERROR -1
1669 #define DECODE_SLICE_OK 0
1678 const uint8_t **buf,
int buf_size)
1681 const int lowres =
s->avctx->lowres;
1682 const int field_pic =
s->picture_structure !=
PICT_FRAME;
1686 s->resync_mb_y = -1;
1698 s->interlaced_dct = 0;
1702 if (
s->qscale == 0) {
1713 if (mb_y == 0 &&
s->codec_tag ==
AV_RL32(
"SLIF")) {
1734 if (
s->mb_x >= (
unsigned)
s->mb_width) {
1740 const uint8_t *buf_end, *buf_start = *buf - 4;
1743 if (buf_end < *buf + buf_size)
1752 s->resync_mb_x =
s->mb_x;
1753 s->resync_mb_y =
s->mb_y = mb_y;
1757 if (
s->mb_y == 0 &&
s->mb_x == 0 && (
s->first_field ||
s->picture_structure ==
PICT_FRAME)) {
1760 "qp:%d fc:%2d%2d%2d%2d %c %s %s %s %s dc:%d pstruct:%d fdct:%d cmv:%d qtype:%d ivlc:%d rff:%d %s\n",
1762 s->mpeg_f_code[0][0],
s->mpeg_f_code[0][1],
1763 s->mpeg_f_code[1][0],
s->mpeg_f_code[1][1],
1767 s->progressive_sequence ?
"ps" :
"",
1768 s->progressive_frame ?
"pf" :
"",
1769 s->alternate_scan ?
"alt" :
"",
1770 s->top_field_first ?
"top" :
"",
1771 s->intra_dc_precision,
s->picture_structure,
1772 s->frame_pred_frame_dct,
s->concealment_motion_vectors,
1773 s->q_scale_type,
s->intra_vlc_format,
1774 s->repeat_first_field,
s->chroma_420_type ?
"420" :
"");
1783 if (
s->current_picture.motion_val[0]) {
1784 const int wrap =
s->b8_stride;
1785 int xy =
s->mb_x * 2 +
s->mb_y * 2 *
wrap;
1786 int b8_xy = 4 * (
s->mb_x +
s->mb_y *
s->mb_stride);
1787 int motion_x, motion_y, dir,
i;
1789 for (
i = 0;
i < 2;
i++) {
1790 for (dir = 0; dir < 2; dir++) {
1793 motion_x = motion_y = 0;
1796 motion_x =
s->mv[dir][0][0];
1797 motion_y =
s->mv[dir][0][1];
1799 motion_x =
s->mv[dir][
i][0];
1800 motion_y =
s->mv[dir][
i][1];
1803 s->current_picture.motion_val[dir][xy][0] = motion_x;
1804 s->current_picture.motion_val[dir][xy][1] = motion_y;
1805 s->current_picture.motion_val[dir][xy + 1][0] = motion_x;
1806 s->current_picture.motion_val[dir][xy + 1][1] = motion_y;
1807 s->current_picture.ref_index [dir][b8_xy] =
1808 s->current_picture.ref_index [dir][b8_xy + 1] =
s->field_select[dir][
i];
1810 s->field_select[dir][
i] == 1);
1818 s->dest[1] +=(16 >>
lowres) >>
s->chroma_x_shift;
1819 s->dest[2] +=(16 >>
lowres) >>
s->chroma_x_shift;
1823 if (++
s->mb_x >=
s->mb_width) {
1824 const int mb_size = 16 >>
s->avctx->lowres;
1831 s->mb_y += 1 << field_pic;
1833 if (
s->mb_y >=
s->mb_height) {
1835 int is_d10 =
s->chroma_format == 2 &&
1838 s->intra_dc_precision == 2 &&
1839 s->q_scale_type == 1 &&
s->alternate_scan == 0 &&
1840 s->progressive_frame == 0
1843 if (
left >= 32 && !is_d10) {
1870 if (
s->mb_y >= ((
s->height + 15) >> 4) &&
1871 !
s->progressive_sequence &&
1874 s->mb_skip_run == -1 &&
1882 if (
s->mb_skip_run == -1) {
1894 s->mb_skip_run += 33;
1895 }
else if (
code == 35) {
1896 if (
s->mb_skip_run != 0 ||
show_bits(&
s->gb, 15) != 0) {
1904 s->mb_skip_run +=
code;
1908 if (
s->mb_skip_run) {
1912 "skipped MB in I-frame at %d %d\n",
s->mb_x,
s->mb_y);
1918 for (
i = 0;
i < 12;
i++)
1919 s->block_last_index[
i] = -1;
1927 s->mv[0][0][0] =
s->mv[0][0][1] = 0;
1928 s->last_mv[0][0][0] =
s->last_mv[0][0][1] = 0;
1929 s->last_mv[0][1][0] =
s->last_mv[0][1][1] = 0;
1930 s->field_select[0][0] = (
s->picture_structure - 1) & 1;
1933 s->mv[0][0][0] =
s->last_mv[0][0][0];
1934 s->mv[0][0][1] =
s->last_mv[0][0][1];
1935 s->mv[1][0][0] =
s->last_mv[1][0][0];
1936 s->mv[1][0][1] =
s->last_mv[1][0][1];
1937 s->field_select[0][0] = (
s->picture_structure - 1) & 1;
1938 s->field_select[1][0] = (
s->picture_structure - 1) & 1;
1949 ff_dlog(
s,
"Slice start:%d %d end:%d %d\n",
s->resync_mb_x,
s->resync_mb_y,
s->mb_x,
s->mb_y);
1956 const uint8_t *buf =
s->gb.buffer;
1957 int mb_y =
s->start_mb_y;
1958 const int field_pic =
s->picture_structure !=
PICT_FRAME;
1960 s->er.error_count = (3 * (
s->end_mb_y -
s->start_mb_y) *
s->mb_width) >> field_pic;
1968 ff_dlog(
c,
"ret:%d resync:%d/%d mb:%d/%d ts:%d/%d ec:%d\n",
1969 ret,
s->resync_mb_x,
s->resync_mb_y,
s->mb_x,
s->mb_y,
1970 s->start_mb_y,
s->end_mb_y,
s->er.error_count);
1974 if (
s->resync_mb_x >= 0 &&
s->resync_mb_y >= 0)
1980 s->mb_x - 1,
s->mb_y,
1984 if (
s->mb_y ==
s->end_mb_y)
1993 mb_y += (*buf&0xE0)<<2;
1997 if (mb_y >=
s->end_mb_y)
2011 if (!
s1->mpeg_enc_ctx_allocated || !
s->current_picture_ptr)
2014 if (
s->avctx->hwaccel) {
2015 int ret =
s->avctx->hwaccel->end_frame(
s->avctx);
2018 "hardware accelerator failed to decode picture\n");
2024 if ( !
s->first_field && !
s1->first_slice) {
2039 if (
s->last_picture_ptr) {
2055 const uint8_t *buf,
int buf_size)
2070 "Invalid horizontal or vertical size value.\n");
2075 if (
s1->aspect_ratio_info == 0) {
2081 if (
s1->frame_rate_index == 0 ||
s1->frame_rate_index > 13) {
2083 "frame_rate_index %d is invalid\n",
s1->frame_rate_index);
2084 s1->frame_rate_index = 1;
2091 s1->rc_buffer_size =
get_bits(&
s->gb, 10) * 1024 * 16;
2098 for (
i = 0;
i < 64;
i++) {
2099 j =
s->idsp.idct_permutation[
i];
2101 s->intra_matrix[j] = v;
2102 s->chroma_intra_matrix[j] = v;
2108 for (
i = 0;
i < 64;
i++) {
2109 int j =
s->idsp.idct_permutation[
i];
2111 s->inter_matrix[j] = v;
2112 s->chroma_inter_matrix[j] = v;
2125 s->progressive_sequence = 1;
2126 s->progressive_frame = 1;
2129 s->frame_pred_frame_dct = 1;
2130 s->chroma_format = 1;
2138 av_log(
s->avctx,
AV_LOG_DEBUG,
"vbv buffer: %d, bitrate:%"PRId64
", aspect_ratio_info: %d \n",
2139 s1->rc_buffer_size,
s->bit_rate,
s1->aspect_ratio_info);
2152 if (
s1->mpeg_enc_ctx_allocated) {
2154 s1->mpeg_enc_ctx_allocated = 0;
2166 s1->mpeg_enc_ctx_allocated = 1;
2168 for (
i = 0;
i < 64;
i++) {
2169 int j =
s->idsp.idct_permutation[
i];
2171 s->intra_matrix[j] = v;
2172 s->chroma_intra_matrix[j] = v;
2175 s->inter_matrix[j] = v;
2176 s->chroma_inter_matrix[j] = v;
2179 s->progressive_sequence = 1;
2180 s->progressive_frame = 1;
2183 s->frame_pred_frame_dct = 1;
2184 s->chroma_format = 1;
2185 if (
s->codec_tag ==
AV_RL32(
"BW10")) {
2190 s1->save_width =
s->width;
2191 s1->save_height =
s->height;
2192 s1->save_progressive_seq =
s->progressive_sequence;
2197 const uint8_t *p,
int buf_size)
2201 if (buf_size >= 6 &&
2202 p[0] ==
'G' && p[1] ==
'A' && p[2] ==
'9' && p[3] ==
'4' &&
2203 p[4] == 3 && (p[5] & 0x40)) {
2205 int cc_count = p[5] & 0x1f;
2206 if (cc_count > 0 && buf_size >= 7 + cc_count * 3) {
2207 int old_size =
s1->a53_buf_ref ?
s1->a53_buf_ref->size : 0;
2208 const uint64_t new_size = (old_size + cc_count
2217 memcpy(
s1->a53_buf_ref->data + old_size, p + 7, cc_count * UINT64_C(3));
2222 }
else if (buf_size >= 2 &&
2223 p[0] == 0x03 && (p[1]&0x7f) == 0x01) {
2234 int old_size =
s1->a53_buf_ref ?
s1->a53_buf_ref->size : 0;
2235 const uint64_t new_size = (old_size + cc_count
2242 uint8_t
field, cc1, cc2;
2243 uint8_t *cap =
s1->a53_buf_ref->data;
2245 memset(
s1->a53_buf_ref->data + old_size, 0, cc_count * 3);
2255 cap[0] = cap[1] = cap[2] = 0x00;
2259 cap[0] = 0x04 |
field;
2269 }
else if (buf_size >= 11 &&
2270 p[0] ==
'C' && p[1] ==
'C' && p[2] == 0x01 && p[3] == 0xf8) {
2300 for (
i = 5;
i + 6 <= buf_size && ((p[
i] & 0xfe) == 0xfe);
i += 6)
2304 int old_size =
s1->a53_buf_ref ?
s1->a53_buf_ref->size : 0;
2305 const uint64_t new_size = (old_size + cc_count
2312 uint8_t field1 = !!(p[4] & 0x80);
2313 uint8_t *cap =
s1->a53_buf_ref->data;
2315 for (
i = 0;
i < cc_count;
i++) {
2316 cap[0] = (p[0] == 0xff && field1) ? 0xfc : 0xfd;
2319 cap[3] = (p[3] == 0xff && !field1) ? 0xfc : 0xfd;
2334 const uint8_t *p,
int buf_size)
2337 const uint8_t *buf_end = p + buf_size;
2342 for(
i=0; !(!p[
i-2] && !p[
i-1] && p[
i]==1) &&
i<buf_size;
i++){
2351 if (!memcmp(p+
i,
"\0TMPGEXS\0", 9)){
2356 if (buf_end - p >= 5 &&
2357 p[0] ==
'D' && p[1] ==
'T' && p[2] ==
'G' && p[3] ==
'1') {
2365 if (buf_end - p < 1)
2368 s1->afd = p[0] & 0x0f;
2370 }
else if (buf_end - p >= 6 &&
2371 p[0] ==
'J' && p[1] ==
'P' && p[2] ==
'3' && p[3] ==
'D' &&
2374 const uint8_t S3D_video_format_type = p[5] & 0x7F;
2376 if (S3D_video_format_type == 0x03 ||
2377 S3D_video_format_type == 0x04 ||
2378 S3D_video_format_type == 0x08 ||
2379 S3D_video_format_type == 0x23) {
2381 s1->has_stereo3d = 1;
2383 switch (S3D_video_format_type) {
2404 const uint8_t *buf,
int buf_size)
2427 "GOP (%s) closed_gop=%d broken_link=%d\n",
2428 tcbuf,
s1->closed_gop, broken_link);
2435 int *got_output,
const uint8_t *buf,
int buf_size)
2439 const uint8_t *buf_ptr = buf;
2440 const uint8_t *buf_end = buf + buf_size;
2441 int ret, input_size;
2442 int last_code = 0, skip_frame = 0;
2443 int picture_start_code_seen = 0;
2458 &
s2->thread_context[0],
NULL,
2459 s->slice_count,
sizeof(
void *));
2460 for (
i = 0;
i <
s->slice_count;
i++)
2461 s2->er.error_count +=
s2->thread_context[
i]->er.error_count;
2478 return FFMAX(0, buf_ptr - buf);
2481 input_size = buf_end - buf_ptr;
2490 if (last_code == 0) {
2496 "ignoring SEQ_START_CODE after %X\n", last_code);
2503 if (picture_start_code_seen &&
s2->picture_structure ==
PICT_FRAME) {
2509 picture_start_code_seen = 1;
2511 if (
s2->width <= 0 ||
s2->height <= 0) {
2513 s2->width,
s2->height);
2518 s2->intra_dc_precision= 3;
2519 s2->intra_matrix[0]= 1;
2522 !avctx->
hwaccel &&
s->slice_count) {
2526 s2->thread_context,
NULL,
2527 s->slice_count,
sizeof(
void *));
2528 for (
i = 0;
i <
s->slice_count;
i++)
2529 s2->er.error_count +=
s2->thread_context[
i]->er.error_count;
2536 "mpeg_decode_postinit() failure\n");
2547 "ignoring pic after %X\n", last_code);
2559 if (last_code == 0) {
2563 "ignoring seq ext after %X\n", last_code);
2584 "ignoring pic cod ext after %X\n", last_code);
2595 if (last_code == 0) {
2596 s2->first_field = 0;
2603 "ignoring GOP_START_CODE after %X\n", last_code);
2611 if (
s2->progressive_sequence && !
s2->progressive_frame) {
2612 s2->progressive_frame = 1;
2614 "interlaced frame in progressive sequence, ignoring\n");
2617 if (
s2->picture_structure == 0 ||
2618 (
s2->progressive_frame &&
s2->picture_structure !=
PICT_FRAME)) {
2620 "picture_structure %d invalid, ignoring\n",
2621 s2->picture_structure);
2625 if (
s2->progressive_sequence && !
s2->frame_pred_frame_dct)
2629 s2->first_field = 0;
2630 s2->v_edge_pos = 16 *
s2->mb_height;
2632 s2->first_field ^= 1;
2633 s2->v_edge_pos = 8 *
s2->mb_height;
2634 memset(
s2->mbskip_table, 0,
s2->mb_stride *
s2->mb_height);
2639 const int field_pic =
s2->picture_structure !=
PICT_FRAME;
2643 mb_y += (*buf_ptr&0xE0)<<2;
2649 if (buf_end - buf_ptr < 2) {
2654 if (mb_y >=
s2->mb_height) {
2656 "slice below image (%d >= %d)\n", mb_y,
s2->mb_height);
2660 if (!
s2->last_picture_ptr) {
2664 if (!
s->closed_gop) {
2667 "Skipping B slice due to open GOP\n");
2674 if (!
s2->next_picture_ptr) {
2680 "Skipping P slice due to !sync\n");
2693 if (!
s->mpeg_enc_ctx_allocated)
2697 if (mb_y < avctx->skip_top ||
2702 if (!
s2->pict_type) {
2709 if (
s->first_slice) {
2715 if (!
s2->current_picture_ptr) {
2717 "current_picture not initialized\n");
2724 int threshold = (
s2->mb_height *
s->slice_count +
2725 s2->slice_context_count / 2) /
2726 s2->slice_context_count;
2728 if (threshold <= mb_y) {
2733 if (
s->slice_count) {
2734 s2->thread_context[
s->slice_count - 1]->end_mb_y = mb_y;
2752 if (
s2->resync_mb_x >= 0 &&
s2->resync_mb_y >= 0)
2754 s2->resync_mb_y,
s2->mb_x,
s2->mb_y,
2758 s2->resync_mb_y,
s2->mb_x - 1,
s2->mb_y,
2771 const uint8_t *buf = avpkt->
data;
2773 int buf_size = avpkt->
size;
2779 if (
s2->low_delay == 0 &&
s2->next_picture_ptr) {
2784 s2->next_picture_ptr =
NULL;
2791 if (
s->mpeg_enc_ctx_allocated == 0 && (
s2->codec_tag ==
AV_RL32(
"VCR2")
2798 if (avctx->
extradata && !
s->extradata_decoded) {
2806 s->extradata_decoded = 1;
2808 s2->current_picture_ptr =
NULL;
2814 if (
ret<0 || *got_output) {
2815 s2->current_picture_ptr =
NULL;
2817 if (
s->timecode_frame_start != -1 && *got_output) {
2824 memcpy(tcside->
data, &
s->timecode_frame_start,
sizeof(int64_t));
2829 s->timecode_frame_start = -1;
2851 if (
s->mpeg_enc_ctx_allocated)
2858 .
p.
name =
"mpeg1video",
2873 #if CONFIG_MPEG1_NVDEC_HWACCEL
2876 #if CONFIG_MPEG1_VDPAU_HWACCEL
2879 #if CONFIG_MPEG1_VIDEOTOOLBOX_HWACCEL
2887 .
p.
name =
"mpeg2video",
2902 #if CONFIG_MPEG2_DXVA2_HWACCEL
2905 #if CONFIG_MPEG2_D3D11VA_HWACCEL
2908 #if CONFIG_MPEG2_D3D11VA2_HWACCEL
2911 #if CONFIG_MPEG2_NVDEC_HWACCEL
2914 #if CONFIG_MPEG2_VAAPI_HWACCEL
2917 #if CONFIG_MPEG2_VDPAU_HWACCEL
2920 #if CONFIG_MPEG2_VIDEOTOOLBOX_HWACCEL
2929 .
p.
name =
"mpegvideo",
2973 if (
s->flags & 0x10) {
2984 for (
int y = 0; y < avctx->
height; y += 16) {
2987 for (
int x = 0; x < avctx->
width; x += 16) {
3006 memset(
s->block, 0,
sizeof(
s->block));
3008 for (
int n = 0; n < 6; n++) {
3009 if (
s->flags & 0x80) {
3026 frame->linesize[0],
s->block[0]);
3028 frame->linesize[0],
s->block[1]);
3030 frame->linesize[0],
s->block[2]);
3032 frame->linesize[0],
s->block[3]);
3034 frame->linesize[1],
s->block[4]);
3036 frame->linesize[2],
s->block[5]);
3045 frame->key_frame = 1;
3062 for (
int i = 0;
i < 64;
i++) {
3069 for (
int i = 0;
i < 64;
i++) {
static int vcr2_init_sequence(AVCodecContext *avctx)
av_cold int ff_mpv_common_init(MpegEncContext *s)
init common structure for both encoder and decoder.
const struct AVHWAccel * hwaccel
Hardware accelerator in use.
#define MV_TYPE_16X16
1 vector for the whole mb
#define AV_LOG_WARNING
Something somehow does not look correct.
#define AV_TIMECODE_STR_SIZE
@ AV_PIX_FMT_CUDA
HW acceleration through CUDA.
AVPixelFormat
Pixel format.
#define AV_EF_EXPLODE
abort decoding on minor error detection
AVBufferRef * a53_buf_ref
const AVRational ff_mpeg2_aspect[16]
#define FF_CODEC_CAP_INIT_CLEANUP
The codec allows calling the close function for deallocation even if the init function returned a fai...
static unsigned int show_bits_long(GetBitContext *s, int n)
Show 0-32 bits.
static int mpeg_decode_a53_cc(AVCodecContext *avctx, const uint8_t *p, int buf_size)
static int get_bits_left(GetBitContext *gb)
Filter the word “frame” indicates either a video frame or a group of audio as stored in an AVFrame structure Format for each input and each output the list of supported formats For video that means pixel format For audio that means channel sample they are references to shared objects When the negotiation mechanism computes the intersection of the formats supported at each end of a all references to both lists are replaced with a reference to the intersection And when a single format is eventually chosen for a link amongst the remaining all references to the list are updated That means that if a filter requires that its input and output have the same format amongst a supported all it has to do is use a reference to the same list of formats query_formats can leave some formats unset and return AVERROR(EAGAIN) to cause the negotiation mechanism toagain later. That can be used by filters with complex requirements to use the format negotiated on one link to set the formats supported on another. Frame references ownership and permissions
int ff_mpv_export_qp_table(const MpegEncContext *s, AVFrame *f, const Picture *p, int qp_type)
@ AV_STEREO3D_SIDEBYSIDE_QUINCUNX
Views are next to each other, but when upscaling apply a checkerboard pattern.
#define FF_MPV_QSCALE_TYPE_MPEG2
static int mpeg_decode_frame(AVCodecContext *avctx, AVFrame *picture, int *got_output, AVPacket *avpkt)
#define AV_EF_COMPLIANT
consider all spec non compliances as errors
#define ff_thread_get_format
AVFrameSideData * av_frame_new_side_data(AVFrame *frame, enum AVFrameSideDataType type, size_t size)
Add a new side data to a frame.
#define check_scantable_index(ctx, x)
@ AV_FRAME_DATA_A53_CC
ATSC A53 Part 4 Closed Captions.
#define MV_TYPE_16X8
2 vectors, one per 16x8 block
AVRational av_div_q(AVRational b, AVRational c)
Divide one rational by another.
int err_recognition
Error recognition; may misdetect some more or less valid parts as errors.
#define SLICE_MAX_START_CODE
static int get_bits_count(const GetBitContext *s)
static av_cold int ipu_decode_init(AVCodecContext *avctx)
int ff_update_duplicate_context(MpegEncContext *dst, const MpegEncContext *src)
This structure describes decoded (raw) audio or video data.
void ff_mpv_report_decode_progress(MpegEncContext *s)
#define HWACCEL_DXVA2(codec)
const FFCodec ff_mpegvideo_decoder
static av_cold int ipu_decode_end(AVCodecContext *avctx)
static int mpeg_decode_mb(MpegEncContext *s, int16_t block[12][64])
static int mpeg2_decode_block_intra(MpegEncContext *s, int16_t *block, int n)
#define HWACCEL_D3D11VA2(codec)
const uint8_t ff_reverse[256]
int last_dc[3]
last DC values for MPEG-1
@ AV_PIX_FMT_D3D11VA_VLD
HW decoding through Direct3D11 via old API, Picture.data[3] contains a ID3D11VideoDecoderOutputView p...
static int mpeg2_fast_decode_block_intra(MpegEncContext *s, int16_t *block, int n)
Changing this would eat up any speed benefits it has.
#define PICT_BOTTOM_FIELD
void ff_er_add_slice(ERContext *s, int startx, int starty, int endx, int endy, int status)
Add a slice.
void ff_init_block_index(MpegEncContext *s)
#define UPDATE_CACHE(name, gb)
static int mpeg_decode_postinit(AVCodecContext *avctx)
AVCPBProperties * ff_add_cpb_side_data(AVCodecContext *avctx)
Add a CPB properties side data to an encoding context.
int ff_set_dimensions(AVCodecContext *s, int width, int height)
Check that the provided frame dimensions are valid and set them on the codec context.
#define FF_DEBUG_PICT_INFO
#define MV_TYPE_DMV
2 vectors, special mpeg2 Dual Prime Vectors
#define GET_CACHE(name, gb)
static void skip_bits(GetBitContext *s, int n)
RL_VLC_ELEM ff_mpeg2_rl_vlc[674]
ScanTable intra_scantable
@ AV_STEREO3D_SIDEBYSIDE
Views are next to each other.
static unsigned int get_bits(GetBitContext *s, int n)
Read 1-25 bits.
void ff_mpv_reconstruct_mb(MpegEncContext *s, int16_t block[12][64])
AVCodec p
The public AVCodec.
static int decode_chunks(AVCodecContext *avctx, AVFrame *picture, int *got_output, const uint8_t *buf, int buf_size)
enum AVDiscard skip_frame
Skip decoding for selected frames.
static void mpeg_decode_quant_matrix_extension(MpegEncContext *s)
int thread_count
thread count is used to decide how many independent tasks should be passed to execute()
@ AV_STEREO3D_2D
Video is not stereoscopic (and metadata has to be there).
#define AV_EF_BITSTREAM
detect bitstream specification deviations
#define USES_LIST(a, list)
static int slice_decode_thread(AVCodecContext *c, void *arg)
int flags
AV_CODEC_FLAG_*.
void(* idct_put)(uint8_t *dest, ptrdiff_t line_size, int16_t *block)
block -> idct -> clip to unsigned 8 bit -> dest.
static double val(void *priv, double ch)
#define HWACCEL_VDPAU(codec)
#define AV_CODEC_FLAG_LOW_DELAY
Force low delay.
static enum AVPixelFormat mpeg12_pixfmt_list_444[]
void ff_print_debug_info(const MpegEncContext *s, const Picture *p, AVFrame *pict)
static int mpeg1_decode_sequence(AVCodecContext *avctx, const uint8_t *buf, int buf_size)
int av_reduce(int *dst_num, int *dst_den, int64_t num, int64_t den, int64_t max)
Reduce a fraction.
static enum AVPixelFormat mpeg1_hwaccel_pixfmt_list_420[]
void ff_mpv_common_end(MpegEncContext *s)
const FFCodec ff_mpeg2video_decoder
#define AV_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
unsigned frame_rate_index
static int ipu_decode_frame(AVCodecContext *avctx, AVFrame *frame, int *got_frame, AVPacket *avpkt)
static enum AVPixelFormat mpeg2_hwaccel_pixfmt_list_420[]
static int init_get_bits8(GetBitContext *s, const uint8_t *buffer, int byte_size)
Initialize GetBitContext.
static int mpeg1_decode_picture(AVCodecContext *avctx, const uint8_t *buf, int buf_size)
static void flush(AVCodecContext *avctx)
#define CLOSE_READER(name, gb)
int has_b_frames
Size of the frame reordering buffer in the decoder.
#define FF_CODEC_DECODE_CB(func)
@ AV_PIX_FMT_DXVA2_VLD
HW decoding through DXVA2, Picture.data[3] contains a LPDIRECT3DSURFACE9 pointer.
const float ff_mpeg1_aspect[16]
int ticks_per_frame
For some codecs, the time base is closer to the field rate than the frame rate.
static int slice_end(AVCodecContext *avctx, AVFrame *pict)
Handle slice ends.
int mpeg_enc_ctx_allocated
#define SHOW_SBITS(name, gb, num)
int(* init)(AVBSFContext *ctx)
void ff_mpeg_er_frame_start(MpegEncContext *s)
#define av_assert0(cond)
assert() equivalent, that is always enabled.
unsigned aspect_ratio_info
static enum AVPixelFormat pix_fmts[]
static void mpeg_decode_sequence_display_extension(Mpeg1Context *s1)
static int get_sbits(GetBitContext *s, int n)
#define AV_LOG_DEBUG
Stuff which is only useful for libav* developers.
static enum AVPixelFormat mpeg12_pixfmt_list_422[]
#define SKIP_BITS(name, gb, num)
it s the only field you need to keep assuming you have a context There is some magic you don t need to care about around this field
@ AV_PIX_FMT_YUV420P
planar YUV 4:2:0, 12bpp, (1 Cr & Cb sample per 2x2 Y samples)
int64_t rc_max_rate
maximum bitrate
This structure describes the bitrate properties of an encoded bitstream.
#define CODEC_LONG_NAME(str)
@ AVDISCARD_ALL
discard all
#define MB_PTYPE_VLC_BITS
#define PTRDIFF_SPECIFIER
enum AVColorRange color_range
MPEG vs JPEG YUV range.
void av_buffer_unref(AVBufferRef **buf)
Free a given reference and automatically free the buffer if there are no more references to it.
#define SLICE_MIN_START_CODE
av_cold void ff_mpv_idct_init(MpegEncContext *s)
@ AVCHROMA_LOC_LEFT
MPEG-2/4 4:2:0, H.264 default for 4:2:0.
Rational number (pair of numerator and denominator).
@ AVCHROMA_LOC_TOPLEFT
ITU-R 601, SMPTE 274M 296M S314M(DV 4:1:1), mpeg2 4:2:2.
int64_t bit_rate
the average bitrate
static void mpeg_decode_picture_display_extension(Mpeg1Context *s1)
uint16_t inter_matrix[64]
#define AV_CODEC_FLAG2_FAST
Allow non spec compliant speedup tricks.
@ AV_PICTURE_TYPE_I
Intra.
static unsigned int get_bits1(GetBitContext *s)
#define LAST_SKIP_BITS(name, gb, num)
const uint8_t * avpriv_find_start_code(const uint8_t *p, const uint8_t *end, uint32_t *state)
AVFrameSideData * av_frame_new_side_data_from_buf(AVFrame *frame, enum AVFrameSideDataType type, AVBufferRef *buf)
Add a new side data to a frame from an existing AVBufferRef.
RL_VLC_ELEM ff_mpeg1_rl_vlc[680]
#define MB_BTYPE_VLC_BITS
#define UPDATE_THREAD_CONTEXT(func)
@ AV_PIX_FMT_GRAY8
Y , 8bpp.
static av_always_inline int get_vlc2(GetBitContext *s, const VLCElem *table, int bits, int max_depth)
Parse a vlc code.
@ AV_FRAME_DATA_AFD
Active Format Description data consisting of a single byte as specified in ETSI TS 101 154 using AVAc...
Undefined Behavior In the C some operations are like signed integer dereferencing freed accessing outside allocated Undefined Behavior must not occur in a C it is not safe even if the output of undefined operations is unused The unsafety may seem nit picking but Optimizing compilers have in fact optimized code on the assumption that no undefined Behavior occurs Optimizing code based on wrong assumptions can and has in some cases lead to effects beyond the output of computations The signed integer overflow problem in speed critical code Code which is highly optimized and works with signed integers sometimes has the problem that often the output of the computation does not c
static void quant_matrix_rebuild(uint16_t *matrix, const uint8_t *old_perm, const uint8_t *new_perm)
@ AVDISCARD_NONKEY
discard all frames except keyframes
static int check_marker(void *logctx, GetBitContext *s, const char *msg)
int flags2
AV_CODEC_FLAG2_*.
int ff_get_buffer(AVCodecContext *avctx, AVFrame *frame, int flags)
Get a buffer for a frame.
#define AV_CODEC_CAP_DR1
Codec uses get_buffer() or get_encode_buffer() for allocating buffers and supports custom allocators.
#define AV_CODEC_FLAG_GRAY
Only decode/encode grayscale.
Tag MUST be and< 10hcoeff half pel interpolation filter coefficients, hcoeff[0] are the 2 middle coefficients[1] are the next outer ones and so on, resulting in a filter like:...eff[2], hcoeff[1], hcoeff[0], hcoeff[0], hcoeff[1], hcoeff[2] ... the sign of the coefficients is not explicitly stored but alternates after each coeff and coeff[0] is positive, so ...,+,-,+,-,+,+,-,+,-,+,... hcoeff[0] is not explicitly stored but found by subtracting the sum of all stored coefficients with signs from 32 hcoeff[0]=32 - hcoeff[1] - hcoeff[2] - ... a good choice for hcoeff and htaps is htaps=6 hcoeff={40,-10, 2} an alternative which requires more computations at both encoder and decoder side and may or may not be better is htaps=8 hcoeff={42,-14, 6,-2}ref_frames minimum of the number of available reference frames and max_ref_frames for example the first frame after a key frame always has ref_frames=1spatial_decomposition_type wavelet type 0 is a 9/7 symmetric compact integer wavelet 1 is a 5/3 symmetric compact integer wavelet others are reserved stored as delta from last, last is reset to 0 if always_reset||keyframeqlog quality(logarithmic quantizer scale) stored as delta from last, last is reset to 0 if always_reset||keyframemv_scale stored as delta from last, last is reset to 0 if always_reset||keyframe FIXME check that everything works fine if this changes between framesqbias dequantization bias stored as delta from last, last is reset to 0 if always_reset||keyframeblock_max_depth maximum depth of the block tree stored as delta from last, last is reset to 0 if always_reset||keyframequant_table quantization tableHighlevel bitstream structure:==============================--------------------------------------------|Header|--------------------------------------------|------------------------------------|||Block0||||split?||||yes no||||......... intra?||||:Block01 :yes no||||:Block02 :....... ..........||||:Block03 ::y DC ::ref index:||||:Block04 ::cb DC ::motion x :||||......... :cr DC ::motion y :||||....... ..........|||------------------------------------||------------------------------------|||Block1|||...|--------------------------------------------|------------ ------------ ------------|||Y subbands||Cb subbands||Cr subbands||||--- ---||--- ---||--- ---|||||LL0||HL0||||LL0||HL0||||LL0||HL0|||||--- ---||--- ---||--- ---||||--- ---||--- ---||--- ---|||||LH0||HH0||||LH0||HH0||||LH0||HH0|||||--- ---||--- ---||--- ---||||--- ---||--- ---||--- ---|||||HL1||LH1||||HL1||LH1||||HL1||LH1|||||--- ---||--- ---||--- ---||||--- ---||--- ---||--- ---|||||HH1||HL2||||HH1||HL2||||HH1||HL2|||||...||...||...|||------------ ------------ ------------|--------------------------------------------Decoding process:=================------------|||Subbands|------------||||------------|Intra DC||||LL0 subband prediction ------------|\ Dequantization ------------------- \||Reference frames|\ IDWT|------- -------|Motion \|||Frame 0||Frame 1||Compensation . OBMC v -------|------- -------|--------------. \------> Frame n output Frame Frame<----------------------------------/|...|------------------- Range Coder:============Binary Range Coder:------------------- The implemented range coder is an adapted version based upon "Range encoding: an algorithm for removing redundancy from a digitised message." by G. N. N. Martin. The symbols encoded by the Snow range coder are bits(0|1). The associated probabilities are not fix but change depending on the symbol mix seen so far. bit seen|new state ---------+----------------------------------------------- 0|256 - state_transition_table[256 - old_state];1|state_transition_table[old_state];state_transition_table={ 0, 0, 0, 0, 0, 0, 0, 0, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 114, 115, 116, 117, 118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, 150, 151, 152, 152, 153, 154, 155, 156, 157, 158, 159, 160, 161, 162, 163, 164, 165, 166, 167, 168, 169, 170, 171, 171, 172, 173, 174, 175, 176, 177, 178, 179, 180, 181, 182, 183, 184, 185, 186, 187, 188, 189, 190, 190, 191, 192, 194, 194, 195, 196, 197, 198, 199, 200, 201, 202, 202, 204, 205, 206, 207, 208, 209, 209, 210, 211, 212, 213, 215, 215, 216, 217, 218, 219, 220, 220, 222, 223, 224, 225, 226, 227, 227, 229, 229, 230, 231, 232, 234, 234, 235, 236, 237, 238, 239, 240, 241, 242, 243, 244, 245, 246, 247, 248, 248, 0, 0, 0, 0, 0, 0, 0};FIXME Range Coding of integers:------------------------- FIXME Neighboring Blocks:===================left and top are set to the respective blocks unless they are outside of the image in which case they are set to the Null block top-left is set to the top left block unless it is outside of the image in which case it is set to the left block if this block has no larger parent block or it is at the left side of its parent block and the top right block is not outside of the image then the top right block is used for top-right else the top-left block is used Null block y, cb, cr are 128 level, ref, mx and my are 0 Motion Vector Prediction:=========================1. the motion vectors of all the neighboring blocks are scaled to compensate for the difference of reference frames scaled_mv=(mv *(256 *(current_reference+1)/(mv.reference+1))+128)> the median of the scaled top and top right vectors is used as motion vector prediction the used motion vector is the sum of the predictor and(mvx_diff, mvy_diff) *mv_scale Intra DC Prediction block[y][x] dc[1]
#define NULL_IF_CONFIG_SMALL(x)
Return NULL if CONFIG_SMALL is true, otherwise the argument without modification.
@ AV_FRAME_DATA_PANSCAN
The data is the AVPanScan struct defined in libavcodec.
int av_frame_ref(AVFrame *dst, const AVFrame *src)
Set up a new reference to the data described by the source frame.
#define DECLARE_ALIGNED(n, t, v)
static int shift(int a, int b)
uint16_t intra_matrix[64]
matrix transmitted in the bitstream
void ff_mpeg1_clean_buffers(MpegEncContext *s)
const FFCodec ff_mpeg1video_decoder
uint64_t_TMPL AV_WL64 unsigned int_TMPL AV_WL32 unsigned int_TMPL AV_WL24 unsigned int_TMPL AV_WL16 uint64_t_TMPL AV_WB64 unsigned int_TMPL AV_RB32
#define FF_CODEC_CAP_SKIP_FRAME_FILL_PARAM
The decoder extracts and fills its parameters even if the frame is skipped due to the skip_frame sett...
#define FF_THREAD_SLICE
Decode more than one part of a single frame at once.
void ff_mpeg_draw_horiz_band(MpegEncContext *s, int y, int h)
#define PICTURE_START_CODE
int skip_bottom
Number of macroblock rows at the bottom which are skipped.
const uint16_t ff_mpeg1_default_intra_matrix[256]
static av_always_inline int diff(const struct color_info *a, const struct color_info *b, const int trans_thresh)
int ff_mpv_frame_start(MpegEncContext *s, AVCodecContext *avctx)
generic function called after decoding the header and before a frame is decoded.
#define MB_TYPE_INTERLACED
#define OPEN_READER(name, gb)
void ff_mpeg_flush(AVCodecContext *avctx)
static av_cold int mpeg_decode_init(AVCodecContext *avctx)
#define AV_CODEC_CAP_SLICE_THREADS
Codec supports slice-based (or partition-based) multithreading.
#define HWACCEL_D3D11VA(codec)
int ff_mpeg1_decode_block_intra(GetBitContext *gb, const uint16_t *quant_matrix, const uint8_t *scantable, int last_dc[3], int16_t *block, int index, int qscale)
#define MV_TYPE_FIELD
2 vectors, one per field
static void skip_bits1(GetBitContext *s)
@ AV_PIX_FMT_D3D11
Hardware surfaces for Direct3D11.
#define HWACCEL_NVDEC(codec)
@ AV_PIX_FMT_VAAPI
Hardware acceleration through VA-API, data[3] contains a VASurfaceID.
#define FF_THREAD_FRAME
Decode more than one frame at once.
const AVProfile ff_mpeg2_video_profiles[]
@ AV_PIX_FMT_VDPAU
HW acceleration through VDPAU, Picture.data[3] contains a VdpVideoSurface.
@ AV_PIX_FMT_VIDEOTOOLBOX
hardware decoding through Videotoolbox
av_cold void ff_init_scantable(const uint8_t *permutation, ScanTable *st, const uint8_t *src_scantable)
int block_last_index[12]
last non zero coefficient in block
#define av_assert2(cond)
assert() equivalent, that does lie in speed critical code.
uint16_t chroma_inter_matrix[64]
#define i(width, name, range_min, range_max)
and forward the test the status of outputs and forward it to the corresponding return FFERROR_NOT_READY If the filters stores internally one or a few frame for some it can consider them to be part of the FIFO and delay acknowledging a status change accordingly Example code
#define AV_CODEC_FLAG2_SHOW_ALL
Show all frames before the first keyframe.
unsigned properties
Properties of the stream that gets decoded.
const uint8_t ff_alternate_vertical_scan[64]
static const uint32_t btype2mb_type[11]
uint8_t * extradata
some codecs need / can use extradata like Huffman tables.
int(* decode_slice)(AVCodecContext *avctx, const uint8_t *buf, uint32_t buf_size)
Callback for each slice.
static unsigned int show_bits(GetBitContext *s, int n)
Show 1-25 bits.
void ff_mpv_decode_init(MpegEncContext *s, AVCodecContext *avctx)
Initialize the given MpegEncContext for decoding.
@ AV_STEREO3D_TOPBOTTOM
Views are on top of each other.
int64_t max_bitrate
Maximum bitrate of the stream, in bits per second.
av_cold void ff_mpeg12_init_vlcs(void)
#define FF_DEBUG_STARTCODE
AVRational av_d2q(double d, int max)
Convert a double precision floating point number to a rational.
static int mpeg1_decode_block_inter(MpegEncContext *s, int16_t *block, int n)
void av_frame_unref(AVFrame *frame)
Unreference all the buffers referenced by frame and reset the frame fields.
static const uint32_t ptype2mb_type[7]
const char * name
Name of the codec implementation.
enum AVChromaLocation chroma_sample_location
This defines the location of chroma samples.
enum AVPixelFormat pix_fmt
Pixel format, see AV_PIX_FMT_xxx.
@ AVCOL_RANGE_MPEG
Narrow or limited range content.
#define HWACCEL_VIDEOTOOLBOX(codec)
static int av_cmp_q(AVRational a, AVRational b)
Compare two rationals.
#define GET_RL_VLC(level, run, name, gb, table, bits, max_depth, need_update)
const uint8_t ff_zigzag_direct[64]
const AVRational ff_mpeg12_frame_rate_tab[]
static int mpeg_decode_gop(AVCodecContext *avctx, const uint8_t *buf, int buf_size)
#define AV_EF_AGGRESSIVE
consider things that a sane encoder/muxer should not do as an error
static const float pred[4]
@ AV_FRAME_DATA_GOP_TIMECODE
The GOP timecode in 25 bit timecode format.
these buffered frames must be flushed immediately if a new input produces new the filter must not call request_frame to get more It must just process the frame or queue it The task of requesting more frames is left to the filter s request_frame method or the application If a filter has several the filter must be ready for frames arriving randomly on any input any filter with several inputs will most likely require some kind of queuing mechanism It is perfectly acceptable to have a limited queue and to drop frames when the inputs are too unbalanced request_frame For filters that do not use the this method is called when a frame is wanted on an output For a it should directly call filter_frame on the corresponding output For a if there are queued frames already one of these frames should be pushed If the filter should request a frame on one of its repeatedly until at least one frame has been pushed Return or at least make progress towards producing a frame
const uint16_t ff_mpeg1_default_non_intra_matrix[64]
int64_t buffer_size
The size of the buffer to which the ratecontrol is applied, in bits.
static int mpeg1_fast_decode_block_inter(MpegEncContext *s, int16_t *block, int n)
Changing this would eat up any speed benefits it has.
static const uint8_t * align_get_bits(GetBitContext *s)
the pkt_dts and pkt_pts fields in AVFrame will work as usual Restrictions on codec whose streams don t reset across will not work because their bitstreams cannot be decoded in parallel *The contents of buffers must not be read before as well as code calling up to before the decode process starts Call ff_thread_finish_setup() afterwards. If some code can 't be moved
Tag MUST be and< 10hcoeff half pel interpolation filter coefficients, hcoeff[0] are the 2 middle coefficients[1] are the next outer ones and so on, resulting in a filter like:...eff[2], hcoeff[1], hcoeff[0], hcoeff[0], hcoeff[1], hcoeff[2] ... the sign of the coefficients is not explicitly stored but alternates after each coeff and coeff[0] is positive, so ...,+,-,+,-,+,+,-,+,-,+,... hcoeff[0] is not explicitly stored but found by subtracting the sum of all stored coefficients with signs from 32 hcoeff[0]=32 - hcoeff[1] - hcoeff[2] - ... a good choice for hcoeff and htaps is htaps=6 hcoeff={40,-10, 2} an alternative which requires more computations at both encoder and decoder side and may or may not be better is htaps=8 hcoeff={42,-14, 6,-2}ref_frames minimum of the number of available reference frames and max_ref_frames for example the first frame after a key frame always has ref_frames=1spatial_decomposition_type wavelet type 0 is a 9/7 symmetric compact integer wavelet 1 is a 5/3 symmetric compact integer wavelet others are reserved stored as delta from last, last is reset to 0 if always_reset||keyframeqlog quality(logarithmic quantizer scale) stored as delta from last, last is reset to 0 if always_reset||keyframemv_scale stored as delta from last, last is reset to 0 if always_reset||keyframe FIXME check that everything works fine if this changes between framesqbias dequantization bias stored as delta from last, last is reset to 0 if always_reset||keyframeblock_max_depth maximum depth of the block tree stored as delta from last, last is reset to 0 if always_reset||keyframequant_table quantization tableHighlevel bitstream structure:==============================--------------------------------------------|Header|--------------------------------------------|------------------------------------|||Block0||||split?||||yes no||||......... intra?||||:Block01 :yes no||||:Block02 :....... ..........||||:Block03 ::y DC ::ref index:||||:Block04 ::cb DC ::motion x :||||......... :cr DC ::motion y :||||....... ..........|||------------------------------------||------------------------------------|||Block1|||...|--------------------------------------------|------------ ------------ ------------|||Y subbands||Cb subbands||Cr subbands||||--- ---||--- ---||--- ---|||||LL0||HL0||||LL0||HL0||||LL0||HL0|||||--- ---||--- ---||--- ---||||--- ---||--- ---||--- ---|||||LH0||HH0||||LH0||HH0||||LH0||HH0|||||--- ---||--- ---||--- ---||||--- ---||--- ---||--- ---|||||HL1||LH1||||HL1||LH1||||HL1||LH1|||||--- ---||--- ---||--- ---||||--- ---||--- ---||--- ---|||||HH1||HL2||||HH1||HL2||||HH1||HL2|||||...||...||...|||------------ ------------ ------------|--------------------------------------------Decoding process:=================------------|||Subbands|------------||||------------|Intra DC||||LL0 subband prediction ------------|\ Dequantization ------------------- \||Reference frames|\ IDWT|------- -------|Motion \|||Frame 0||Frame 1||Compensation . OBMC v -------|------- -------|--------------. \------> Frame n output Frame Frame<----------------------------------/|...|------------------- Range Coder:============Binary Range Coder:------------------- The implemented range coder is an adapted version based upon "Range encoding: an algorithm for removing redundancy from a digitised message." by G. N. N. Martin. The symbols encoded by the Snow range coder are bits(0|1). The associated probabilities are not fix but change depending on the symbol mix seen so far. bit seen|new state ---------+----------------------------------------------- 0|256 - state_transition_table[256 - old_state];1|state_transition_table[old_state];state_transition_table={ 0, 0, 0, 0, 0, 0, 0, 0, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 114, 115, 116, 117, 118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, 150, 151, 152, 152, 153, 154, 155, 156, 157, 158, 159, 160, 161, 162, 163, 164, 165, 166, 167, 168, 169, 170, 171, 171, 172, 173, 174, 175, 176, 177, 178, 179, 180, 181, 182, 183, 184, 185, 186, 187, 188, 189, 190, 190, 191, 192, 194, 194, 195, 196, 197, 198, 199, 200, 201, 202, 202, 204, 205, 206, 207, 208, 209, 209, 210, 211, 212, 213, 215, 215, 216, 217, 218, 219, 220, 220, 222, 223, 224, 225, 226, 227, 227, 229, 229, 230, 231, 232, 234, 234, 235, 236, 237, 238, 239, 240, 241, 242, 243, 244, 245, 246, 247, 248, 248, 0, 0, 0, 0, 0, 0, 0};FIXME Range Coding of integers:------------------------- FIXME Neighboring Blocks:===================left and top are set to the respective blocks unless they are outside of the image in which case they are set to the Null block top-left is set to the top left block unless it is outside of the image in which case it is set to the left block if this block has no larger parent block or it is at the left side of its parent block and the top right block is not outside of the image then the top right block is used for top-right else the top-left block is used Null block y, cb, cr are 128 level, ref, mx and my are 0 Motion Vector Prediction:=========================1. the motion vectors of all the neighboring blocks are scaled to compensate for the difference of reference frames scaled_mv=(mv *(256 *(current_reference+1)/(mv.reference+1))+128)> the median of the scaled left
static enum AVPixelFormat mpeg_get_pixelformat(AVCodecContext *avctx)
#define AV_CODEC_FLAG2_CHUNKS
Input bitstream might be truncated at a packet boundaries instead of only at frame boundaries.
uint64_t_TMPL AV_WL64 unsigned int_TMPL AV_RL32
static int mpeg2_fast_decode_block_non_intra(MpegEncContext *s, int16_t *block, int n)
Changing this would eat up any speed benefits it has.
static int mpeg_field_start(MpegEncContext *s, const uint8_t *buf, int buf_size)
int ff_mpeg_update_thread_context(AVCodecContext *dst, const AVCodecContext *src)
static int skip_1stop_8data_bits(GetBitContext *gb)
main external API structure.
int active_thread_type
Which multithreading methods are in use by the codec.
char * av_timecode_make_mpeg_tc_string(char *buf, uint32_t tc25bit)
Get the timecode string from the 25-bit timecode format (MPEG GOP format).
int(* execute)(struct AVCodecContext *c, int(*func)(struct AVCodecContext *c2, void *arg), void *arg2, int *ret, int count, int size)
The codec may call this to execute several independent things.
#define SHOW_UBITS(name, gb, num)
@ AV_PICTURE_TYPE_B
Bi-dir predicted.
@ AVCHROMA_LOC_CENTER
MPEG-1 4:2:0, JPEG 4:2:0, H.263 4:2:0.
AVDictionary * metadata
metadata.
static av_const int sign_extend(int val, unsigned bits)
void ff_mpv_frame_end(MpegEncContext *s)
static int ref[MAX_W *MAX_W]
#define AV_CODEC_CAP_DELAY
Encoder or decoder requires flushing with NULL input at the end in order to give the complete and cor...
#define FF_CODEC_PROPERTY_CLOSED_CAPTIONS
AVRational av_mul_q(AVRational b, AVRational c)
Multiply two rationals.
@ AV_PIX_FMT_YUV444P
planar YUV 4:4:4, 24bpp, (1 Cr & Cb sample per 1x1 Y samples)
int av_buffer_realloc(AVBufferRef **pbuf, size_t size)
Reallocate a given buffer.
int(* start_frame)(AVCodecContext *avctx, const uint8_t *buf, uint32_t buf_size)
Called at the beginning of each frame or field picture.
int coded_width
Bitstream width / height, may be different from width/height e.g.
static int get_dmv(MpegEncContext *s)
@ AV_PICTURE_TYPE_P
Predicted.
static av_cold int mpeg_decode_end(AVCodecContext *avctx)
@ AV_PIX_FMT_YUV422P
planar YUV 4:2:2, 16bpp, (1 Cr & Cb sample per 2x1 Y samples)
A reference to a data buffer.
ScanTable inter_scantable
if inter == intra then intra should be used to reduce the cache usage
uint8_t idct_permutation[64]
IDCT input permutation.
const FFCodec ff_ipu_decoder
AVStereo3D * av_stereo3d_create_side_data(AVFrame *frame)
Allocate a complete AVFrameSideData and add it to the frame.
Structure to hold side data for an AVFrame.
unsigned int codec_tag
fourcc (LSB first, so "ABCD" -> ('D'<<24) + ('C'<<16) + ('B'<<8) + 'A').
MpegEncContext mpeg_enc_ctx
This structure stores compressed data.
void ff_er_frame_end(ERContext *s)
int av_dict_set(AVDictionary **pm, const char *key, const char *value, int flags)
Set the given entry in *pm, overwriting an existing entry.
static int mpeg_get_qscale(MpegEncContext *s)
static void mpeg_decode_sequence_extension(Mpeg1Context *s1)
#define HWACCEL_VAAPI(codec)
int width
picture width / height.
#define flags(name, subs,...)
#define AV_CODEC_CAP_DRAW_HORIZ_BAND
Decoder can use draw_horiz_band callback.
The exact code depends on how similar the blocks are and how related they are to the block
AVRational frame_rate_ext
static int mpeg_decode_motion(MpegEncContext *s, int fcode, int pred)
#define AVERROR_INVALIDDATA
Invalid data found when processing input.
static void mpeg_decode_user_data(AVCodecContext *avctx, const uint8_t *p, int buf_size)
int end_mb_y
end mb_y of this thread (so current thread should process start_mb_y <= row < end_mb_y)
Stereo 3D type: this structure describes how two videos are packed within a single video surface,...
int av_image_check_sar(unsigned int w, unsigned int h, AVRational sar)
Check if the given sample aspect ratio of an image is valid.
int64_t timecode_frame_start
int start_mb_y
start mb_y of this thread (so current thread should process start_mb_y <= row < end_mb_y)
@ AVDISCARD_NONREF
discard all non reference
@ AV_CODEC_ID_MPEG2VIDEO
preferred ID for MPEG-1/2 video decoding
#define DECODE_SLICE_ERROR
static int load_matrix(MpegEncContext *s, uint16_t matrix0[64], uint16_t matrix1[64], int intra)
AVRational sample_aspect_ratio
sample aspect ratio (0 if unknown) That is the width of a pixel divided by the height of the pixel.
static int decode_dc(GetBitContext *gb, int component)
uint16_t chroma_intra_matrix[64]
static int mpeg_decode_picture_coding_extension(Mpeg1Context *s1)
static int mpeg2_decode_block_non_intra(MpegEncContext *s, int16_t *block, int n)
static int mpeg_decode_slice(MpegEncContext *s, int mb_y, const uint8_t **buf, int buf_size)
Decode a slice.