FFmpeg  4.4.8
cbs_av1_syntax_template.c
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18 
20  AV1RawOBUHeader *current)
21 {
23  int err;
24 
25  HEADER("OBU header");
26 
27  fc(1, obu_forbidden_bit, 0, 0);
28 
29  fc(4, obu_type, 0, AV1_OBU_PADDING);
30  flag(obu_extension_flag);
31  flag(obu_has_size_field);
32 
33  fc(1, obu_reserved_1bit, 0, 0);
34 
35  if (current->obu_extension_flag) {
36  fb(3, temporal_id);
37  fb(2, spatial_id);
38  fc(3, extension_header_reserved_3bits, 0, 0);
39  } else {
40  infer(temporal_id, 0);
41  infer(spatial_id, 0);
42  }
43 
44  priv->temporal_id = current->temporal_id;
45  priv->spatial_id = current->spatial_id;
46 
47  return 0;
48 }
49 
50 static int FUNC(trailing_bits)(CodedBitstreamContext *ctx, RWContext *rw, int nb_bits)
51 {
52  int err;
53 
54  av_assert0(nb_bits > 0);
55 
56  fixed(1, trailing_one_bit, 1);
57  --nb_bits;
58 
59  while (nb_bits > 0) {
60  fixed(1, trailing_zero_bit, 0);
61  --nb_bits;
62  }
63 
64  return 0;
65 }
66 
68 {
69  int err;
70 
71  while (byte_alignment(rw) != 0)
72  fixed(1, zero_bit, 0);
73 
74  return 0;
75 }
76 
78  AV1RawColorConfig *current, int seq_profile)
79 {
81  int err;
82 
83  flag(high_bitdepth);
84 
85  if (seq_profile == FF_PROFILE_AV1_PROFESSIONAL &&
86  current->high_bitdepth) {
87  flag(twelve_bit);
88  priv->bit_depth = current->twelve_bit ? 12 : 10;
89  } else {
90  priv->bit_depth = current->high_bitdepth ? 10 : 8;
91  }
92 
93  if (seq_profile == FF_PROFILE_AV1_HIGH)
94  infer(mono_chrome, 0);
95  else
96  flag(mono_chrome);
97  priv->num_planes = current->mono_chrome ? 1 : 3;
98 
99  flag(color_description_present_flag);
100  if (current->color_description_present_flag) {
101  fb(8, color_primaries);
103  fb(8, matrix_coefficients);
104  } else {
107  infer(matrix_coefficients, AVCOL_SPC_UNSPECIFIED);
108  }
109 
110  if (current->mono_chrome) {
111  flag(color_range);
112 
113  infer(subsampling_x, 1);
114  infer(subsampling_y, 1);
115  infer(chroma_sample_position, AV1_CSP_UNKNOWN);
116  infer(separate_uv_delta_q, 0);
117 
118  } else if (current->color_primaries == AVCOL_PRI_BT709 &&
119  current->transfer_characteristics == AVCOL_TRC_IEC61966_2_1 &&
120  current->matrix_coefficients == AVCOL_SPC_RGB) {
121  infer(color_range, 1);
122  infer(subsampling_x, 0);
123  infer(subsampling_y, 0);
124  flag(separate_uv_delta_q);
125 
126  } else {
127  flag(color_range);
128 
129  if (seq_profile == FF_PROFILE_AV1_MAIN) {
130  infer(subsampling_x, 1);
131  infer(subsampling_y, 1);
132  } else if (seq_profile == FF_PROFILE_AV1_HIGH) {
133  infer(subsampling_x, 0);
134  infer(subsampling_y, 0);
135  } else {
136  if (priv->bit_depth == 12) {
137  fb(1, subsampling_x);
138  if (current->subsampling_x)
139  fb(1, subsampling_y);
140  else
141  infer(subsampling_y, 0);
142  } else {
143  infer(subsampling_x, 1);
144  infer(subsampling_y, 0);
145  }
146  }
147  if (current->subsampling_x && current->subsampling_y) {
148  fc(2, chroma_sample_position, AV1_CSP_UNKNOWN,
150  }
151 
152  flag(separate_uv_delta_q);
153  }
154 
155  return 0;
156 }
157 
159  AV1RawTimingInfo *current)
160 {
161  int err;
162 
163  fc(32, num_units_in_display_tick, 1, MAX_UINT_BITS(32));
164  fc(32, time_scale, 1, MAX_UINT_BITS(32));
165 
166  flag(equal_picture_interval);
167  if (current->equal_picture_interval)
168  uvlc(num_ticks_per_picture_minus_1, 0, MAX_UINT_BITS(32) - 1);
169 
170  return 0;
171 }
172 
174  AV1RawDecoderModelInfo *current)
175 {
176  int err;
177 
178  fb(5, buffer_delay_length_minus_1);
179  fb(32, num_units_in_decoding_tick);
180  fb(5, buffer_removal_time_length_minus_1);
181  fb(5, frame_presentation_time_length_minus_1);
182 
183  return 0;
184 }
185 
187  AV1RawSequenceHeader *current)
188 {
190  int i, err;
191 
192  HEADER("Sequence Header");
193 
194  priv->seen_frame_header = 0;
195 
196  fc(3, seq_profile, FF_PROFILE_AV1_MAIN,
198  flag(still_picture);
199  flag(reduced_still_picture_header);
200 
201  if (current->reduced_still_picture_header) {
202  infer(timing_info_present_flag, 0);
203  infer(decoder_model_info_present_flag, 0);
204  infer(initial_display_delay_present_flag, 0);
205  infer(operating_points_cnt_minus_1, 0);
206  infer(operating_point_idc[0], 0);
207 
208  fb(5, seq_level_idx[0]);
209 
210  infer(seq_tier[0], 0);
211  infer(decoder_model_present_for_this_op[0], 0);
212  infer(initial_display_delay_present_for_this_op[0], 0);
213 
214  } else {
215  flag(timing_info_present_flag);
216  if (current->timing_info_present_flag) {
217  CHECK(FUNC(timing_info)(ctx, rw, &current->timing_info));
218 
219  flag(decoder_model_info_present_flag);
220  if (current->decoder_model_info_present_flag) {
222  (ctx, rw, &current->decoder_model_info));
223  }
224  } else {
225  infer(decoder_model_info_present_flag, 0);
226  }
227 
228  flag(initial_display_delay_present_flag);
229 
230  fb(5, operating_points_cnt_minus_1);
231  for (i = 0; i <= current->operating_points_cnt_minus_1; i++) {
232  fbs(12, operating_point_idc[i], 1, i);
233  fbs(5, seq_level_idx[i], 1, i);
234 
235  if (current->seq_level_idx[i] > 7)
236  flags(seq_tier[i], 1, i);
237  else
238  infer(seq_tier[i], 0);
239 
240  if (current->decoder_model_info_present_flag) {
241  flags(decoder_model_present_for_this_op[i], 1, i);
242  if (current->decoder_model_present_for_this_op[i]) {
243  int n = current->decoder_model_info.buffer_delay_length_minus_1 + 1;
244  fbs(n, decoder_buffer_delay[i], 1, i);
245  fbs(n, encoder_buffer_delay[i], 1, i);
246  flags(low_delay_mode_flag[i], 1, i);
247  }
248  } else {
249  infer(decoder_model_present_for_this_op[i], 0);
250  }
251 
252  if (current->initial_display_delay_present_flag) {
253  flags(initial_display_delay_present_for_this_op[i], 1, i);
254  if (current->initial_display_delay_present_for_this_op[i])
255  fbs(4, initial_display_delay_minus_1[i], 1, i);
256  }
257  }
258  }
259 
260  fb(4, frame_width_bits_minus_1);
261  fb(4, frame_height_bits_minus_1);
262 
263  fb(current->frame_width_bits_minus_1 + 1, max_frame_width_minus_1);
264  fb(current->frame_height_bits_minus_1 + 1, max_frame_height_minus_1);
265 
266  if (current->reduced_still_picture_header)
267  infer(frame_id_numbers_present_flag, 0);
268  else
269  flag(frame_id_numbers_present_flag);
270  if (current->frame_id_numbers_present_flag) {
271  fb(4, delta_frame_id_length_minus_2);
272  fb(3, additional_frame_id_length_minus_1);
273  }
274 
275  flag(use_128x128_superblock);
276  flag(enable_filter_intra);
277  flag(enable_intra_edge_filter);
278 
279  if (current->reduced_still_picture_header) {
280  infer(enable_interintra_compound, 0);
281  infer(enable_masked_compound, 0);
282  infer(enable_warped_motion, 0);
283  infer(enable_dual_filter, 0);
284  infer(enable_order_hint, 0);
285  infer(enable_jnt_comp, 0);
286  infer(enable_ref_frame_mvs, 0);
287 
288  infer(seq_force_screen_content_tools,
290  infer(seq_force_integer_mv,
292  } else {
293  flag(enable_interintra_compound);
294  flag(enable_masked_compound);
295  flag(enable_warped_motion);
296  flag(enable_dual_filter);
297 
298  flag(enable_order_hint);
299  if (current->enable_order_hint) {
300  flag(enable_jnt_comp);
301  flag(enable_ref_frame_mvs);
302  } else {
303  infer(enable_jnt_comp, 0);
304  infer(enable_ref_frame_mvs, 0);
305  }
306 
307  flag(seq_choose_screen_content_tools);
308  if (current->seq_choose_screen_content_tools)
309  infer(seq_force_screen_content_tools,
311  else
312  fb(1, seq_force_screen_content_tools);
313  if (current->seq_force_screen_content_tools > 0) {
314  flag(seq_choose_integer_mv);
315  if (current->seq_choose_integer_mv)
316  infer(seq_force_integer_mv,
318  else
319  fb(1, seq_force_integer_mv);
320  } else {
321  infer(seq_force_integer_mv, AV1_SELECT_INTEGER_MV);
322  }
323 
324  if (current->enable_order_hint)
325  fb(3, order_hint_bits_minus_1);
326  }
327 
328  flag(enable_superres);
329  flag(enable_cdef);
330  flag(enable_restoration);
331 
332  CHECK(FUNC(color_config)(ctx, rw, &current->color_config,
333  current->seq_profile));
334 
335  flag(film_grain_params_present);
336 
337  return 0;
338 }
339 
341 {
343 
344  HEADER("Temporal Delimiter");
345 
346  priv->seen_frame_header = 0;
347 
348  return 0;
349 }
350 
352  AV1RawFrameHeader *current)
353 {
355  const AV1RawSequenceHeader *seq = priv->sequence_header;
356  static const uint8_t ref_frame_list[AV1_NUM_REF_FRAMES - 2] = {
359  };
360  int8_t ref_frame_idx[AV1_REFS_PER_FRAME], used_frame[AV1_NUM_REF_FRAMES];
361  int16_t shifted_order_hints[AV1_NUM_REF_FRAMES];
362  int cur_frame_hint, latest_order_hint, earliest_order_hint, ref;
363  int i, j;
364 
365  for (i = 0; i < AV1_REFS_PER_FRAME; i++)
366  ref_frame_idx[i] = -1;
367  ref_frame_idx[AV1_REF_FRAME_LAST - AV1_REF_FRAME_LAST] = current->last_frame_idx;
368  ref_frame_idx[AV1_REF_FRAME_GOLDEN - AV1_REF_FRAME_LAST] = current->golden_frame_idx;
369 
370  for (i = 0; i < AV1_NUM_REF_FRAMES; i++)
371  used_frame[i] = 0;
372  used_frame[current->last_frame_idx] = 1;
373  used_frame[current->golden_frame_idx] = 1;
374 
375  cur_frame_hint = 1 << (seq->order_hint_bits_minus_1);
376  for (i = 0; i < AV1_NUM_REF_FRAMES; i++)
377  shifted_order_hints[i] = cur_frame_hint +
379  priv->order_hint);
380 
381  latest_order_hint = shifted_order_hints[current->last_frame_idx];
382  earliest_order_hint = shifted_order_hints[current->golden_frame_idx];
383 
384  ref = -1;
385  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
386  int hint = shifted_order_hints[i];
387  if (!used_frame[i] && hint >= cur_frame_hint &&
388  (ref < 0 || hint >= latest_order_hint)) {
389  ref = i;
390  latest_order_hint = hint;
391  }
392  }
393  if (ref >= 0) {
394  ref_frame_idx[AV1_REF_FRAME_ALTREF - AV1_REF_FRAME_LAST] = ref;
395  used_frame[ref] = 1;
396  }
397 
398  ref = -1;
399  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
400  int hint = shifted_order_hints[i];
401  if (!used_frame[i] && hint >= cur_frame_hint &&
402  (ref < 0 || hint < earliest_order_hint)) {
403  ref = i;
404  earliest_order_hint = hint;
405  }
406  }
407  if (ref >= 0) {
408  ref_frame_idx[AV1_REF_FRAME_BWDREF - AV1_REF_FRAME_LAST] = ref;
409  used_frame[ref] = 1;
410  }
411 
412  ref = -1;
413  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
414  int hint = shifted_order_hints[i];
415  if (!used_frame[i] && hint >= cur_frame_hint &&
416  (ref < 0 || hint < earliest_order_hint)) {
417  ref = i;
418  earliest_order_hint = hint;
419  }
420  }
421  if (ref >= 0) {
422  ref_frame_idx[AV1_REF_FRAME_ALTREF2 - AV1_REF_FRAME_LAST] = ref;
423  used_frame[ref] = 1;
424  }
425 
426  for (i = 0; i < AV1_REFS_PER_FRAME - 2; i++) {
427  int ref_frame = ref_frame_list[i];
428  if (ref_frame_idx[ref_frame - AV1_REF_FRAME_LAST] < 0 ) {
429  ref = -1;
430  for (j = 0; j < AV1_NUM_REF_FRAMES; j++) {
431  int hint = shifted_order_hints[j];
432  if (!used_frame[j] && hint < cur_frame_hint &&
433  (ref < 0 || hint >= latest_order_hint)) {
434  ref = j;
435  latest_order_hint = hint;
436  }
437  }
438  if (ref >= 0) {
439  ref_frame_idx[ref_frame - AV1_REF_FRAME_LAST] = ref;
440  used_frame[ref] = 1;
441  }
442  }
443  }
444 
445  ref = -1;
446  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
447  int hint = shifted_order_hints[i];
448  if (ref < 0 || hint < earliest_order_hint) {
449  ref = i;
450  earliest_order_hint = hint;
451  }
452  }
453  for (i = 0; i < AV1_REFS_PER_FRAME; i++) {
454  if (ref_frame_idx[i] < 0)
455  ref_frame_idx[i] = ref;
456  infer(ref_frame_idx[i], ref_frame_idx[i]);
457  }
458 
459  return 0;
460 }
461 
463  AV1RawFrameHeader *current)
464 {
466  const AV1RawSequenceHeader *seq = priv->sequence_header;
467  int denom, err;
468 
469  if (seq->enable_superres)
470  flag(use_superres);
471  else
472  infer(use_superres, 0);
473 
474  if (current->use_superres) {
475  fb(3, coded_denom);
476  denom = current->coded_denom + AV1_SUPERRES_DENOM_MIN;
477  } else {
478  denom = AV1_SUPERRES_NUM;
479  }
480 
481  priv->upscaled_width = priv->frame_width;
482  priv->frame_width = (priv->upscaled_width * AV1_SUPERRES_NUM +
483  denom / 2) / denom;
484 
485  return 0;
486 }
487 
489  AV1RawFrameHeader *current)
490 {
492  const AV1RawSequenceHeader *seq = priv->sequence_header;
493  int err;
494 
495  if (current->frame_size_override_flag) {
496  fb(seq->frame_width_bits_minus_1 + 1, frame_width_minus_1);
497  fb(seq->frame_height_bits_minus_1 + 1, frame_height_minus_1);
498  } else {
499  infer(frame_width_minus_1, seq->max_frame_width_minus_1);
500  infer(frame_height_minus_1, seq->max_frame_height_minus_1);
501  }
502 
503  priv->frame_width = current->frame_width_minus_1 + 1;
504  priv->frame_height = current->frame_height_minus_1 + 1;
505 
506  CHECK(FUNC(superres_params)(ctx, rw, current));
507 
508  return 0;
509 }
510 
512  AV1RawFrameHeader *current)
513 {
515  int err;
516 
517  flag(render_and_frame_size_different);
518 
519  if (current->render_and_frame_size_different) {
520  fb(16, render_width_minus_1);
521  fb(16, render_height_minus_1);
522  } else {
523  infer(render_width_minus_1, current->frame_width_minus_1);
524  infer(render_height_minus_1, current->frame_height_minus_1);
525  }
526 
527  priv->render_width = current->render_width_minus_1 + 1;
528  priv->render_height = current->render_height_minus_1 + 1;
529 
530  return 0;
531 }
532 
534  AV1RawFrameHeader *current)
535 {
537  int i, err;
538 
539  for (i = 0; i < AV1_REFS_PER_FRAME; i++) {
540  flags(found_ref[i], 1, i);
541  if (current->found_ref[i]) {
543  &priv->ref[current->ref_frame_idx[i]];
544 
545  if (!ref->valid) {
546  av_log(ctx->log_ctx, AV_LOG_ERROR,
547  "Missing reference frame needed for frame size "
548  "(ref = %d, ref_frame_idx = %d).\n",
549  i, current->ref_frame_idx[i]);
550  return AVERROR_INVALIDDATA;
551  }
552 
553  infer(frame_width_minus_1, ref->upscaled_width - 1);
554  infer(frame_height_minus_1, ref->frame_height - 1);
555  infer(render_width_minus_1, ref->render_width - 1);
556  infer(render_height_minus_1, ref->render_height - 1);
557 
558  priv->upscaled_width = ref->upscaled_width;
559  priv->frame_width = priv->upscaled_width;
560  priv->frame_height = ref->frame_height;
561  priv->render_width = ref->render_width;
562  priv->render_height = ref->render_height;
563  break;
564  }
565  }
566 
567  if (i >= AV1_REFS_PER_FRAME) {
568  CHECK(FUNC(frame_size)(ctx, rw, current));
569  CHECK(FUNC(render_size)(ctx, rw, current));
570  } else {
571  CHECK(FUNC(superres_params)(ctx, rw, current));
572  }
573 
574  return 0;
575 }
576 
578  AV1RawFrameHeader *current)
579 {
580  int err;
581 
582  flag(is_filter_switchable);
583  if (current->is_filter_switchable)
586  else
588 
589  return 0;
590 }
591 
593  AV1RawFrameHeader *current)
594 {
596  const AV1RawSequenceHeader *seq = priv->sequence_header;
597  int mi_cols, mi_rows, sb_cols, sb_rows, sb_shift, sb_size;
598  int max_tile_width_sb, max_tile_height_sb, max_tile_area_sb;
599  int min_log2_tile_cols, max_log2_tile_cols, max_log2_tile_rows;
600  int min_log2_tiles, min_log2_tile_rows;
601  int i, err;
602 
603  mi_cols = 2 * ((priv->frame_width + 7) >> 3);
604  mi_rows = 2 * ((priv->frame_height + 7) >> 3);
605 
606  sb_cols = seq->use_128x128_superblock ? ((mi_cols + 31) >> 5)
607  : ((mi_cols + 15) >> 4);
608  sb_rows = seq->use_128x128_superblock ? ((mi_rows + 31) >> 5)
609  : ((mi_rows + 15) >> 4);
610 
611  sb_shift = seq->use_128x128_superblock ? 5 : 4;
612  sb_size = sb_shift + 2;
613 
614  max_tile_width_sb = AV1_MAX_TILE_WIDTH >> sb_size;
615  max_tile_area_sb = AV1_MAX_TILE_AREA >> (2 * sb_size);
616 
617  min_log2_tile_cols = cbs_av1_tile_log2(max_tile_width_sb, sb_cols);
618  max_log2_tile_cols = cbs_av1_tile_log2(1, FFMIN(sb_cols, AV1_MAX_TILE_COLS));
619  max_log2_tile_rows = cbs_av1_tile_log2(1, FFMIN(sb_rows, AV1_MAX_TILE_ROWS));
620  min_log2_tiles = FFMAX(min_log2_tile_cols,
621  cbs_av1_tile_log2(max_tile_area_sb, sb_rows * sb_cols));
622 
623  flag(uniform_tile_spacing_flag);
624 
625  if (current->uniform_tile_spacing_flag) {
626  int tile_width_sb, tile_height_sb;
627 
628  increment(tile_cols_log2, min_log2_tile_cols, max_log2_tile_cols);
629 
630  tile_width_sb = (sb_cols + (1 << current->tile_cols_log2) - 1) >>
631  current->tile_cols_log2;
632  current->tile_cols = (sb_cols + tile_width_sb - 1) / tile_width_sb;
633 
634  min_log2_tile_rows = FFMAX(min_log2_tiles - current->tile_cols_log2, 0);
635 
636  increment(tile_rows_log2, min_log2_tile_rows, max_log2_tile_rows);
637 
638  tile_height_sb = (sb_rows + (1 << current->tile_rows_log2) - 1) >>
639  current->tile_rows_log2;
640  current->tile_rows = (sb_rows + tile_height_sb - 1) / tile_height_sb;
641 
642  for (i = 0; i < current->tile_cols - 1; i++)
643  infer(width_in_sbs_minus_1[i], tile_width_sb - 1);
644  infer(width_in_sbs_minus_1[i],
645  sb_cols - (current->tile_cols - 1) * tile_width_sb - 1);
646  for (i = 0; i < current->tile_rows - 1; i++)
647  infer(height_in_sbs_minus_1[i], tile_height_sb - 1);
648  infer(height_in_sbs_minus_1[i],
649  sb_rows - (current->tile_rows - 1) * tile_height_sb - 1);
650 
651  } else {
652  int widest_tile_sb, start_sb, size_sb, max_width, max_height;
653 
654  widest_tile_sb = 0;
655 
656  start_sb = 0;
657  for (i = 0; start_sb < sb_cols && i < AV1_MAX_TILE_COLS; i++) {
658  max_width = FFMIN(sb_cols - start_sb, max_tile_width_sb);
659  ns(max_width, width_in_sbs_minus_1[i], 1, i);
660  size_sb = current->width_in_sbs_minus_1[i] + 1;
661  widest_tile_sb = FFMAX(size_sb, widest_tile_sb);
662  start_sb += size_sb;
663  }
664  current->tile_cols_log2 = cbs_av1_tile_log2(1, i);
665  current->tile_cols = i;
666 
667  if (min_log2_tiles > 0)
668  max_tile_area_sb = (sb_rows * sb_cols) >> (min_log2_tiles + 1);
669  else
670  max_tile_area_sb = sb_rows * sb_cols;
671  max_tile_height_sb = FFMAX(max_tile_area_sb / widest_tile_sb, 1);
672 
673  start_sb = 0;
674  for (i = 0; start_sb < sb_rows && i < AV1_MAX_TILE_ROWS; i++) {
675  max_height = FFMIN(sb_rows - start_sb, max_tile_height_sb);
676  ns(max_height, height_in_sbs_minus_1[i], 1, i);
677  size_sb = current->height_in_sbs_minus_1[i] + 1;
678  start_sb += size_sb;
679  }
680  current->tile_rows_log2 = cbs_av1_tile_log2(1, i);
681  current->tile_rows = i;
682  }
683 
684  if (current->tile_cols_log2 > 0 ||
685  current->tile_rows_log2 > 0) {
686  fb(current->tile_cols_log2 + current->tile_rows_log2,
687  context_update_tile_id);
688  fb(2, tile_size_bytes_minus1);
689  } else {
690  infer(context_update_tile_id, 0);
691  }
692 
693  priv->tile_cols = current->tile_cols;
694  priv->tile_rows = current->tile_rows;
695 
696  return 0;
697 }
698 
700  AV1RawFrameHeader *current)
701 {
703  const AV1RawSequenceHeader *seq = priv->sequence_header;
704  int err;
705 
706  fb(8, base_q_idx);
707 
708  delta_q(delta_q_y_dc);
709 
710  if (priv->num_planes > 1) {
712  flag(diff_uv_delta);
713  else
714  infer(diff_uv_delta, 0);
715 
716  delta_q(delta_q_u_dc);
717  delta_q(delta_q_u_ac);
718 
719  if (current->diff_uv_delta) {
720  delta_q(delta_q_v_dc);
721  delta_q(delta_q_v_ac);
722  } else {
723  infer(delta_q_v_dc, current->delta_q_u_dc);
724  infer(delta_q_v_ac, current->delta_q_u_ac);
725  }
726  } else {
727  infer(delta_q_u_dc, 0);
728  infer(delta_q_u_ac, 0);
729  infer(delta_q_v_dc, 0);
730  infer(delta_q_v_ac, 0);
731  }
732 
733  flag(using_qmatrix);
734  if (current->using_qmatrix) {
735  fb(4, qm_y);
736  fb(4, qm_u);
738  fb(4, qm_v);
739  else
740  infer(qm_v, current->qm_u);
741  }
742 
743  return 0;
744 }
745 
747  AV1RawFrameHeader *current)
748 {
750  static const uint8_t bits[AV1_SEG_LVL_MAX] = { 8, 6, 6, 6, 6, 3, 0, 0 };
751  static const uint8_t sign[AV1_SEG_LVL_MAX] = { 1, 1, 1, 1, 1, 0, 0, 0 };
752  static const uint8_t default_feature_enabled[AV1_SEG_LVL_MAX] = { 0 };
753  static const int16_t default_feature_value[AV1_SEG_LVL_MAX] = { 0 };
754  int i, j, err;
755 
756  flag(segmentation_enabled);
757 
758  if (current->segmentation_enabled) {
759  if (current->primary_ref_frame == AV1_PRIMARY_REF_NONE) {
760  infer(segmentation_update_map, 1);
761  infer(segmentation_temporal_update, 0);
762  infer(segmentation_update_data, 1);
763  } else {
764  flag(segmentation_update_map);
765  if (current->segmentation_update_map)
766  flag(segmentation_temporal_update);
767  else
768  infer(segmentation_temporal_update, 0);
769  flag(segmentation_update_data);
770  }
771 
772  for (i = 0; i < AV1_MAX_SEGMENTS; i++) {
773  const uint8_t *ref_feature_enabled;
774  const int16_t *ref_feature_value;
775 
776  if (current->primary_ref_frame == AV1_PRIMARY_REF_NONE) {
777  ref_feature_enabled = default_feature_enabled;
778  ref_feature_value = default_feature_value;
779  } else {
780  ref_feature_enabled =
781  priv->ref[current->ref_frame_idx[current->primary_ref_frame]].feature_enabled[i];
782  ref_feature_value =
783  priv->ref[current->ref_frame_idx[current->primary_ref_frame]].feature_value[i];
784  }
785 
786  for (j = 0; j < AV1_SEG_LVL_MAX; j++) {
787  if (current->segmentation_update_data) {
788  flags(feature_enabled[i][j], 2, i, j);
789 
790  if (current->feature_enabled[i][j] && bits[j] > 0) {
791  if (sign[j])
792  sus(1 + bits[j], feature_value[i][j], 2, i, j);
793  else
794  fbs(bits[j], feature_value[i][j], 2, i, j);
795  } else {
796  infer(feature_value[i][j], 0);
797  }
798  } else {
799  infer(feature_enabled[i][j], ref_feature_enabled[j]);
800  infer(feature_value[i][j], ref_feature_value[j]);
801  }
802  }
803  }
804  } else {
805  for (i = 0; i < AV1_MAX_SEGMENTS; i++) {
806  for (j = 0; j < AV1_SEG_LVL_MAX; j++) {
807  infer(feature_enabled[i][j], 0);
808  infer(feature_value[i][j], 0);
809  }
810  }
811  }
812 
813  return 0;
814 }
815 
817  AV1RawFrameHeader *current)
818 {
819  int err;
820 
821  if (current->base_q_idx > 0)
822  flag(delta_q_present);
823  else
824  infer(delta_q_present, 0);
825 
826  if (current->delta_q_present)
827  fb(2, delta_q_res);
828 
829  return 0;
830 }
831 
833  AV1RawFrameHeader *current)
834 {
835  int err;
836 
837  if (current->delta_q_present) {
838  if (!current->allow_intrabc)
839  flag(delta_lf_present);
840  else
841  infer(delta_lf_present, 0);
842  if (current->delta_lf_present) {
843  fb(2, delta_lf_res);
844  flag(delta_lf_multi);
845  } else {
846  infer(delta_lf_res, 0);
847  infer(delta_lf_multi, 0);
848  }
849  } else {
850  infer(delta_lf_present, 0);
851  infer(delta_lf_res, 0);
852  infer(delta_lf_multi, 0);
853  }
854 
855  return 0;
856 }
857 
859  AV1RawFrameHeader *current)
860 {
862  static const int8_t default_loop_filter_ref_deltas[AV1_TOTAL_REFS_PER_FRAME] =
863  { 1, 0, 0, 0, -1, 0, -1, -1 };
864  static const int8_t default_loop_filter_mode_deltas[2] = { 0, 0 };
865  int i, err;
866 
867  if (priv->coded_lossless || current->allow_intrabc) {
868  infer(loop_filter_level[0], 0);
869  infer(loop_filter_level[1], 0);
870  infer(loop_filter_ref_deltas[AV1_REF_FRAME_INTRA], 1);
871  infer(loop_filter_ref_deltas[AV1_REF_FRAME_LAST], 0);
872  infer(loop_filter_ref_deltas[AV1_REF_FRAME_LAST2], 0);
873  infer(loop_filter_ref_deltas[AV1_REF_FRAME_LAST3], 0);
874  infer(loop_filter_ref_deltas[AV1_REF_FRAME_BWDREF], 0);
875  infer(loop_filter_ref_deltas[AV1_REF_FRAME_GOLDEN], -1);
876  infer(loop_filter_ref_deltas[AV1_REF_FRAME_ALTREF], -1);
877  infer(loop_filter_ref_deltas[AV1_REF_FRAME_ALTREF2], -1);
878  for (i = 0; i < 2; i++)
879  infer(loop_filter_mode_deltas[i], 0);
880  return 0;
881  }
882 
883  fb(6, loop_filter_level[0]);
884  fb(6, loop_filter_level[1]);
885 
886  if (priv->num_planes > 1) {
887  if (current->loop_filter_level[0] ||
888  current->loop_filter_level[1]) {
889  fb(6, loop_filter_level[2]);
890  fb(6, loop_filter_level[3]);
891  }
892  }
893 
894  fb(3, loop_filter_sharpness);
895 
896  flag(loop_filter_delta_enabled);
897  if (current->loop_filter_delta_enabled) {
898  const int8_t *ref_loop_filter_ref_deltas, *ref_loop_filter_mode_deltas;
899 
900  if (current->primary_ref_frame == AV1_PRIMARY_REF_NONE) {
901  ref_loop_filter_ref_deltas = default_loop_filter_ref_deltas;
902  ref_loop_filter_mode_deltas = default_loop_filter_mode_deltas;
903  } else {
904  ref_loop_filter_ref_deltas =
905  priv->ref[current->ref_frame_idx[current->primary_ref_frame]].loop_filter_ref_deltas;
906  ref_loop_filter_mode_deltas =
907  priv->ref[current->ref_frame_idx[current->primary_ref_frame]].loop_filter_mode_deltas;
908  }
909 
910  flag(loop_filter_delta_update);
911  for (i = 0; i < AV1_TOTAL_REFS_PER_FRAME; i++) {
912  if (current->loop_filter_delta_update)
913  flags(update_ref_delta[i], 1, i);
914  else
915  infer(update_ref_delta[i], 0);
916  if (current->update_ref_delta[i])
917  sus(1 + 6, loop_filter_ref_deltas[i], 1, i);
918  else
919  infer(loop_filter_ref_deltas[i], ref_loop_filter_ref_deltas[i]);
920  }
921  for (i = 0; i < 2; i++) {
922  if (current->loop_filter_delta_update)
923  flags(update_mode_delta[i], 1, i);
924  else
925  infer(update_mode_delta[i], 0);
926  if (current->update_mode_delta[i])
927  sus(1 + 6, loop_filter_mode_deltas[i], 1, i);
928  else
929  infer(loop_filter_mode_deltas[i], ref_loop_filter_mode_deltas[i]);
930  }
931  } else {
932  for (i = 0; i < AV1_TOTAL_REFS_PER_FRAME; i++)
933  infer(loop_filter_ref_deltas[i], default_loop_filter_ref_deltas[i]);
934  for (i = 0; i < 2; i++)
935  infer(loop_filter_mode_deltas[i], default_loop_filter_mode_deltas[i]);
936  }
937 
938  return 0;
939 }
940 
942  AV1RawFrameHeader *current)
943 {
945  const AV1RawSequenceHeader *seq = priv->sequence_header;
946  int i, err;
947 
948  if (priv->coded_lossless || current->allow_intrabc ||
949  !seq->enable_cdef) {
950  infer(cdef_damping_minus_3, 0);
951  infer(cdef_bits, 0);
952  infer(cdef_y_pri_strength[0], 0);
953  infer(cdef_y_sec_strength[0], 0);
954  infer(cdef_uv_pri_strength[0], 0);
955  infer(cdef_uv_sec_strength[0], 0);
956 
957  return 0;
958  }
959 
960  fb(2, cdef_damping_minus_3);
961  fb(2, cdef_bits);
962 
963  for (i = 0; i < (1 << current->cdef_bits); i++) {
964  fbs(4, cdef_y_pri_strength[i], 1, i);
965  fbs(2, cdef_y_sec_strength[i], 1, i);
966 
967  if (priv->num_planes > 1) {
968  fbs(4, cdef_uv_pri_strength[i], 1, i);
969  fbs(2, cdef_uv_sec_strength[i], 1, i);
970  }
971  }
972 
973  return 0;
974 }
975 
977  AV1RawFrameHeader *current)
978 {
980  const AV1RawSequenceHeader *seq = priv->sequence_header;
981  int uses_lr, uses_chroma_lr;
982  int i, err;
983 
984  if (priv->all_lossless || current->allow_intrabc ||
985  !seq->enable_restoration) {
986  return 0;
987  }
988 
989  uses_lr = uses_chroma_lr = 0;
990  for (i = 0; i < priv->num_planes; i++) {
991  fbs(2, lr_type[i], 1, i);
992 
993  if (current->lr_type[i] != AV1_RESTORE_NONE) {
994  uses_lr = 1;
995  if (i > 0)
996  uses_chroma_lr = 1;
997  }
998  }
999 
1000  if (uses_lr) {
1001  if (seq->use_128x128_superblock)
1002  increment(lr_unit_shift, 1, 2);
1003  else
1004  increment(lr_unit_shift, 0, 2);
1005 
1006  if(seq->color_config.subsampling_x &&
1007  seq->color_config.subsampling_y && uses_chroma_lr) {
1008  fb(1, lr_uv_shift);
1009  } else {
1010  infer(lr_uv_shift, 0);
1011  }
1012  }
1013 
1014  return 0;
1015 }
1016 
1018  AV1RawFrameHeader *current)
1019 {
1021  int err;
1022 
1023  if (priv->coded_lossless)
1024  infer(tx_mode, 0);
1025  else
1026  increment(tx_mode, 1, 2);
1027 
1028  return 0;
1029 }
1030 
1032  AV1RawFrameHeader *current)
1033 {
1034  int err;
1035 
1036  if (current->frame_type == AV1_FRAME_INTRA_ONLY ||
1037  current->frame_type == AV1_FRAME_KEY)
1038  infer(reference_select, 0);
1039  else
1040  flag(reference_select);
1041 
1042  return 0;
1043 }
1044 
1046  AV1RawFrameHeader *current)
1047 {
1049  const AV1RawSequenceHeader *seq = priv->sequence_header;
1050  int skip_mode_allowed;
1051  int err;
1052 
1053  if (current->frame_type == AV1_FRAME_KEY ||
1054  current->frame_type == AV1_FRAME_INTRA_ONLY ||
1055  !current->reference_select || !seq->enable_order_hint) {
1056  skip_mode_allowed = 0;
1057  } else {
1058  int forward_idx, backward_idx;
1059  int forward_hint, backward_hint;
1060  int ref_hint, dist, i;
1061 
1062  forward_idx = -1;
1063  backward_idx = -1;
1064  for (i = 0; i < AV1_REFS_PER_FRAME; i++) {
1065  ref_hint = priv->ref[current->ref_frame_idx[i]].order_hint;
1066  dist = cbs_av1_get_relative_dist(seq, ref_hint,
1067  priv->order_hint);
1068  if (dist < 0) {
1069  if (forward_idx < 0 ||
1070  cbs_av1_get_relative_dist(seq, ref_hint,
1071  forward_hint) > 0) {
1072  forward_idx = i;
1073  forward_hint = ref_hint;
1074  }
1075  } else if (dist > 0) {
1076  if (backward_idx < 0 ||
1077  cbs_av1_get_relative_dist(seq, ref_hint,
1078  backward_hint) < 0) {
1079  backward_idx = i;
1080  backward_hint = ref_hint;
1081  }
1082  }
1083  }
1084 
1085  if (forward_idx < 0) {
1086  skip_mode_allowed = 0;
1087  } else if (backward_idx >= 0) {
1088  skip_mode_allowed = 1;
1089  // Frames for skip mode are forward_idx and backward_idx.
1090  } else {
1091  int second_forward_idx;
1092  int second_forward_hint;
1093 
1094  second_forward_idx = -1;
1095  for (i = 0; i < AV1_REFS_PER_FRAME; i++) {
1096  ref_hint = priv->ref[current->ref_frame_idx[i]].order_hint;
1097  if (cbs_av1_get_relative_dist(seq, ref_hint,
1098  forward_hint) < 0) {
1099  if (second_forward_idx < 0 ||
1100  cbs_av1_get_relative_dist(seq, ref_hint,
1101  second_forward_hint) > 0) {
1102  second_forward_idx = i;
1103  second_forward_hint = ref_hint;
1104  }
1105  }
1106  }
1107 
1108  if (second_forward_idx < 0) {
1109  skip_mode_allowed = 0;
1110  } else {
1111  skip_mode_allowed = 1;
1112  // Frames for skip mode are forward_idx and second_forward_idx.
1113  }
1114  }
1115  }
1116 
1117  if (skip_mode_allowed)
1118  flag(skip_mode_present);
1119  else
1120  infer(skip_mode_present, 0);
1121 
1122  return 0;
1123 }
1124 
1126  AV1RawFrameHeader *current,
1127  int type, int ref, int idx)
1128 {
1129  uint32_t abs_bits, prec_bits, num_syms;
1130  int err;
1131 
1132  if (idx < 2) {
1134  abs_bits = AV1_GM_ABS_TRANS_ONLY_BITS - !current->allow_high_precision_mv;
1135  prec_bits = AV1_GM_TRANS_ONLY_PREC_BITS - !current->allow_high_precision_mv;
1136  } else {
1137  abs_bits = AV1_GM_ABS_TRANS_BITS;
1138  prec_bits = AV1_GM_TRANS_PREC_BITS;
1139  }
1140  } else {
1141  abs_bits = AV1_GM_ABS_ALPHA_BITS;
1142  prec_bits = AV1_GM_ALPHA_PREC_BITS;
1143  }
1144 
1145  num_syms = 2 * (1 << abs_bits) + 1;
1146  subexp(gm_params[ref][idx], num_syms, 2, ref, idx);
1147 
1148  // Actual gm_params value is not reconstructed here.
1149  (void)prec_bits;
1150 
1151  return 0;
1152 }
1153 
1155  AV1RawFrameHeader *current)
1156 {
1157  int ref, type;
1158  int err;
1159 
1160  if (current->frame_type == AV1_FRAME_KEY ||
1161  current->frame_type == AV1_FRAME_INTRA_ONLY)
1162  return 0;
1163 
1165  flags(is_global[ref], 1, ref);
1166  if (current->is_global[ref]) {
1167  flags(is_rot_zoom[ref], 1, ref);
1168  if (current->is_rot_zoom[ref]) {
1170  } else {
1171  flags(is_translation[ref], 1, ref);
1172  type = current->is_translation[ref] ? AV1_WARP_MODEL_TRANSLATION
1174  }
1175  } else {
1177  }
1178 
1179  if (type >= AV1_WARP_MODEL_ROTZOOM) {
1180  CHECK(FUNC(global_motion_param)(ctx, rw, current, type, ref, 2));
1181  CHECK(FUNC(global_motion_param)(ctx, rw, current, type, ref, 3));
1182  if (type == AV1_WARP_MODEL_AFFINE) {
1183  CHECK(FUNC(global_motion_param)(ctx, rw, current, type, ref, 4));
1184  CHECK(FUNC(global_motion_param)(ctx, rw, current, type, ref, 5));
1185  } else {
1186  // gm_params[ref][4] = -gm_params[ref][3]
1187  // gm_params[ref][5] = gm_params[ref][2]
1188  }
1189  }
1191  CHECK(FUNC(global_motion_param)(ctx, rw, current, type, ref, 0));
1192  CHECK(FUNC(global_motion_param)(ctx, rw, current, type, ref, 1));
1193  }
1194  }
1195 
1196  return 0;
1197 }
1198 
1200  AV1RawFilmGrainParams *current,
1202 {
1204  const AV1RawSequenceHeader *seq = priv->sequence_header;
1205  int num_pos_luma, num_pos_chroma;
1206  int i, err;
1207 
1208  if (!seq->film_grain_params_present ||
1209  (!frame_header->show_frame && !frame_header->showable_frame))
1210  return 0;
1211 
1212  flag(apply_grain);
1213 
1214  if (!current->apply_grain)
1215  return 0;
1216 
1217  fb(16, grain_seed);
1218 
1219  if (frame_header->frame_type == AV1_FRAME_INTER)
1220  flag(update_grain);
1221  else
1222  infer(update_grain, 1);
1223 
1224  if (!current->update_grain) {
1225  fb(3, film_grain_params_ref_idx);
1226  return 0;
1227  }
1228 
1229  fc(4, num_y_points, 0, 14);
1230  for (i = 0; i < current->num_y_points; i++) {
1231  fcs(8, point_y_value[i],
1232  i ? current->point_y_value[i - 1] + 1 : 0,
1233  MAX_UINT_BITS(8) - (current->num_y_points - i - 1),
1234  1, i);
1235  fbs(8, point_y_scaling[i], 1, i);
1236  }
1237 
1238  if (seq->color_config.mono_chrome)
1239  infer(chroma_scaling_from_luma, 0);
1240  else
1241  flag(chroma_scaling_from_luma);
1242 
1243  if (seq->color_config.mono_chrome ||
1244  current->chroma_scaling_from_luma ||
1245  (seq->color_config.subsampling_x == 1 &&
1246  seq->color_config.subsampling_y == 1 &&
1247  current->num_y_points == 0)) {
1248  infer(num_cb_points, 0);
1249  infer(num_cr_points, 0);
1250  } else {
1251  fc(4, num_cb_points, 0, 10);
1252  for (i = 0; i < current->num_cb_points; i++) {
1253  fcs(8, point_cb_value[i],
1254  i ? current->point_cb_value[i - 1] + 1 : 0,
1255  MAX_UINT_BITS(8) - (current->num_cb_points - i - 1),
1256  1, i);
1257  fbs(8, point_cb_scaling[i], 1, i);
1258  }
1259  fc(4, num_cr_points, 0, 10);
1260  for (i = 0; i < current->num_cr_points; i++) {
1261  fcs(8, point_cr_value[i],
1262  i ? current->point_cr_value[i - 1] + 1 : 0,
1263  MAX_UINT_BITS(8) - (current->num_cr_points - i - 1),
1264  1, i);
1265  fbs(8, point_cr_scaling[i], 1, i);
1266  }
1267  }
1268 
1269  fb(2, grain_scaling_minus_8);
1270  fb(2, ar_coeff_lag);
1271  num_pos_luma = 2 * current->ar_coeff_lag * (current->ar_coeff_lag + 1);
1272  if (current->num_y_points) {
1273  num_pos_chroma = num_pos_luma + 1;
1274  for (i = 0; i < num_pos_luma; i++)
1275  fbs(8, ar_coeffs_y_plus_128[i], 1, i);
1276  } else {
1277  num_pos_chroma = num_pos_luma;
1278  }
1279  if (current->chroma_scaling_from_luma || current->num_cb_points) {
1280  for (i = 0; i < num_pos_chroma; i++)
1281  fbs(8, ar_coeffs_cb_plus_128[i], 1, i);
1282  }
1283  if (current->chroma_scaling_from_luma || current->num_cr_points) {
1284  for (i = 0; i < num_pos_chroma; i++)
1285  fbs(8, ar_coeffs_cr_plus_128[i], 1, i);
1286  }
1287  fb(2, ar_coeff_shift_minus_6);
1288  fb(2, grain_scale_shift);
1289  if (current->num_cb_points) {
1290  fb(8, cb_mult);
1291  fb(8, cb_luma_mult);
1292  fb(9, cb_offset);
1293  }
1294  if (current->num_cr_points) {
1295  fb(8, cr_mult);
1296  fb(8, cr_luma_mult);
1297  fb(9, cr_offset);
1298  }
1299 
1300  flag(overlap_flag);
1301  flag(clip_to_restricted_range);
1302 
1303  return 0;
1304 }
1305 
1307  AV1RawFrameHeader *current)
1308 {
1310  const AV1RawSequenceHeader *seq;
1311  int id_len, diff_len, all_frames, frame_is_intra, order_hint_bits;
1312  int i, err;
1313 
1314  if (!priv->sequence_header) {
1315  av_log(ctx->log_ctx, AV_LOG_ERROR, "No sequence header available: "
1316  "unable to decode frame header.\n");
1317  return AVERROR_INVALIDDATA;
1318  }
1319  seq = priv->sequence_header;
1320 
1321  id_len = seq->additional_frame_id_length_minus_1 +
1323  all_frames = (1 << AV1_NUM_REF_FRAMES) - 1;
1324 
1325  if (seq->reduced_still_picture_header) {
1326  infer(show_existing_frame, 0);
1328  infer(show_frame, 1);
1329  infer(showable_frame, 0);
1330  frame_is_intra = 1;
1331 
1332  } else {
1333  flag(show_existing_frame);
1334 
1335  if (current->show_existing_frame) {
1337 
1338  fb(3, frame_to_show_map_idx);
1339  ref = &priv->ref[current->frame_to_show_map_idx];
1340 
1341  if (!ref->valid) {
1342  av_log(ctx->log_ctx, AV_LOG_ERROR, "Missing reference frame needed for "
1343  "show_existing_frame (frame_to_show_map_idx = %d).\n",
1344  current->frame_to_show_map_idx);
1345  return AVERROR_INVALIDDATA;
1346  }
1347 
1351  frame_presentation_time);
1352  }
1353 
1355  fb(id_len, display_frame_id);
1356 
1357  infer(frame_type, ref->frame_type);
1358  if (current->frame_type == AV1_FRAME_KEY) {
1359  infer(refresh_frame_flags, all_frames);
1360 
1361  // Section 7.21
1362  infer(current_frame_id, ref->frame_id);
1363  priv->upscaled_width = ref->upscaled_width;
1364  priv->frame_width = ref->frame_width;
1365  priv->frame_height = ref->frame_height;
1366  priv->render_width = ref->render_width;
1367  priv->render_height = ref->render_height;
1368  priv->bit_depth = ref->bit_depth;
1369  priv->order_hint = ref->order_hint;
1370  } else
1371  infer(refresh_frame_flags, 0);
1372 
1373  infer(frame_width_minus_1, ref->upscaled_width - 1);
1374  infer(frame_height_minus_1, ref->frame_height - 1);
1375  infer(render_width_minus_1, ref->render_width - 1);
1376  infer(render_height_minus_1, ref->render_height - 1);
1377 
1378  // Section 7.20
1379  goto update_refs;
1380  }
1381 
1382  fb(2, frame_type);
1383  frame_is_intra = (current->frame_type == AV1_FRAME_INTRA_ONLY ||
1384  current->frame_type == AV1_FRAME_KEY);
1385 
1386  flag(show_frame);
1387  if (current->show_frame &&
1391  frame_presentation_time);
1392  }
1393  if (current->show_frame)
1394  infer(showable_frame, current->frame_type != AV1_FRAME_KEY);
1395  else
1396  flag(showable_frame);
1397 
1398  if (current->frame_type == AV1_FRAME_SWITCH ||
1399  (current->frame_type == AV1_FRAME_KEY && current->show_frame))
1400  infer(error_resilient_mode, 1);
1401  else
1402  flag(error_resilient_mode);
1403  }
1404 
1405  if (current->frame_type == AV1_FRAME_KEY && current->show_frame) {
1406  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
1407  priv->ref[i].valid = 0;
1408  priv->ref[i].order_hint = 0;
1409  }
1410  }
1411 
1412  flag(disable_cdf_update);
1413 
1414  if (seq->seq_force_screen_content_tools ==
1416  flag(allow_screen_content_tools);
1417  } else {
1418  infer(allow_screen_content_tools,
1420  }
1421  if (current->allow_screen_content_tools) {
1423  flag(force_integer_mv);
1424  else
1425  infer(force_integer_mv, seq->seq_force_integer_mv);
1426  } else {
1427  infer(force_integer_mv, 0);
1428  }
1429 
1430  if (seq->frame_id_numbers_present_flag) {
1431  fb(id_len, current_frame_id);
1432 
1433  diff_len = seq->delta_frame_id_length_minus_2 + 2;
1434  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
1435  if (current->current_frame_id > (1 << diff_len)) {
1436  if (priv->ref[i].frame_id > current->current_frame_id ||
1437  priv->ref[i].frame_id < (current->current_frame_id -
1438  (1 << diff_len)))
1439  priv->ref[i].valid = 0;
1440  } else {
1441  if (priv->ref[i].frame_id > current->current_frame_id &&
1442  priv->ref[i].frame_id < ((1 << id_len) +
1443  current->current_frame_id -
1444  (1 << diff_len)))
1445  priv->ref[i].valid = 0;
1446  }
1447  }
1448  } else {
1449  infer(current_frame_id, 0);
1450  }
1451 
1452  if (current->frame_type == AV1_FRAME_SWITCH)
1453  infer(frame_size_override_flag, 1);
1454  else if(seq->reduced_still_picture_header)
1455  infer(frame_size_override_flag, 0);
1456  else
1457  flag(frame_size_override_flag);
1458 
1459  order_hint_bits =
1460  seq->enable_order_hint ? seq->order_hint_bits_minus_1 + 1 : 0;
1461  if (order_hint_bits > 0)
1462  fb(order_hint_bits, order_hint);
1463  else
1464  infer(order_hint, 0);
1465  priv->order_hint = current->order_hint;
1466 
1467  if (frame_is_intra || current->error_resilient_mode)
1468  infer(primary_ref_frame, AV1_PRIMARY_REF_NONE);
1469  else
1470  fb(3, primary_ref_frame);
1471 
1473  flag(buffer_removal_time_present_flag);
1474  if (current->buffer_removal_time_present_flag) {
1475  for (i = 0; i <= seq->operating_points_cnt_minus_1; i++) {
1477  int op_pt_idc = seq->operating_point_idc[i];
1478  int in_temporal_layer = (op_pt_idc >> priv->temporal_id ) & 1;
1479  int in_spatial_layer = (op_pt_idc >> (priv->spatial_id + 8)) & 1;
1480  if (seq->operating_point_idc[i] == 0 ||
1481  (in_temporal_layer && in_spatial_layer)) {
1483  buffer_removal_time[i], 1, i);
1484  }
1485  }
1486  }
1487  }
1488  }
1489 
1490  if (current->frame_type == AV1_FRAME_SWITCH ||
1491  (current->frame_type == AV1_FRAME_KEY && current->show_frame))
1492  infer(refresh_frame_flags, all_frames);
1493  else
1494  fb(8, refresh_frame_flags);
1495 
1496  if (!frame_is_intra || current->refresh_frame_flags != all_frames) {
1497  if (seq->enable_order_hint) {
1498  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
1499  if (current->error_resilient_mode)
1500  fbs(order_hint_bits, ref_order_hint[i], 1, i);
1501  else
1502  infer(ref_order_hint[i], priv->ref[i].order_hint);
1503  if (current->ref_order_hint[i] != priv->ref[i].order_hint)
1504  priv->ref[i].valid = 0;
1505  }
1506  }
1507  }
1508 
1509  if (current->frame_type == AV1_FRAME_KEY ||
1510  current->frame_type == AV1_FRAME_INTRA_ONLY) {
1511  CHECK(FUNC(frame_size)(ctx, rw, current));
1512  CHECK(FUNC(render_size)(ctx, rw, current));
1513 
1514  if (current->allow_screen_content_tools &&
1515  priv->upscaled_width == priv->frame_width)
1516  flag(allow_intrabc);
1517  else
1518  infer(allow_intrabc, 0);
1519 
1520  } else {
1521  if (!seq->enable_order_hint) {
1522  infer(frame_refs_short_signaling, 0);
1523  } else {
1524  flag(frame_refs_short_signaling);
1525  if (current->frame_refs_short_signaling) {
1526  fb(3, last_frame_idx);
1527  fb(3, golden_frame_idx);
1528  CHECK(FUNC(set_frame_refs)(ctx, rw, current));
1529  }
1530  }
1531 
1532  for (i = 0; i < AV1_REFS_PER_FRAME; i++) {
1533  if (!current->frame_refs_short_signaling)
1534  fbs(3, ref_frame_idx[i], 1, i);
1535  if (seq->frame_id_numbers_present_flag) {
1537  delta_frame_id_minus1[i], 1, i);
1538  }
1539  }
1540 
1541  if (current->frame_size_override_flag &&
1542  !current->error_resilient_mode) {
1543  CHECK(FUNC(frame_size_with_refs)(ctx, rw, current));
1544  } else {
1545  CHECK(FUNC(frame_size)(ctx, rw, current));
1546  CHECK(FUNC(render_size)(ctx, rw, current));
1547  }
1548 
1549  if (current->force_integer_mv)
1550  infer(allow_high_precision_mv, 0);
1551  else
1552  flag(allow_high_precision_mv);
1553 
1554  CHECK(FUNC(interpolation_filter)(ctx, rw, current));
1555 
1556  flag(is_motion_mode_switchable);
1557 
1558  if (current->error_resilient_mode ||
1559  !seq->enable_ref_frame_mvs)
1560  infer(use_ref_frame_mvs, 0);
1561  else
1562  flag(use_ref_frame_mvs);
1563 
1564  infer(allow_intrabc, 0);
1565  }
1566 
1567  if (!frame_is_intra) {
1568  // Derive reference frame sign biases.
1569  }
1570 
1571  if (seq->reduced_still_picture_header || current->disable_cdf_update)
1572  infer(disable_frame_end_update_cdf, 1);
1573  else
1574  flag(disable_frame_end_update_cdf);
1575 
1576  if (current->primary_ref_frame == AV1_PRIMARY_REF_NONE) {
1577  // Init non-coeff CDFs.
1578  // Setup past independence.
1579  } else {
1580  // Load CDF tables from previous frame.
1581  // Load params from previous frame.
1582  }
1583 
1584  if (current->use_ref_frame_mvs) {
1585  // Perform motion field estimation process.
1586  }
1587 
1588  CHECK(FUNC(tile_info)(ctx, rw, current));
1589 
1590  CHECK(FUNC(quantization_params)(ctx, rw, current));
1591 
1592  CHECK(FUNC(segmentation_params)(ctx, rw, current));
1593 
1594  CHECK(FUNC(delta_q_params)(ctx, rw, current));
1595 
1596  CHECK(FUNC(delta_lf_params)(ctx, rw, current));
1597 
1598  // Init coeff CDFs / load previous segments.
1599 
1600  priv->coded_lossless = 1;
1601  for (i = 0; i < AV1_MAX_SEGMENTS; i++) {
1602  int qindex;
1603  if (current->feature_enabled[i][AV1_SEG_LVL_ALT_Q]) {
1604  qindex = (current->base_q_idx +
1605  current->feature_value[i][AV1_SEG_LVL_ALT_Q]);
1606  } else {
1607  qindex = current->base_q_idx;
1608  }
1609  qindex = av_clip_uintp2(qindex, 8);
1610 
1611  if (qindex || current->delta_q_y_dc ||
1612  current->delta_q_u_ac || current->delta_q_u_dc ||
1613  current->delta_q_v_ac || current->delta_q_v_dc) {
1614  priv->coded_lossless = 0;
1615  }
1616  }
1617  priv->all_lossless = priv->coded_lossless &&
1618  priv->frame_width == priv->upscaled_width;
1619 
1620  CHECK(FUNC(loop_filter_params)(ctx, rw, current));
1621 
1622  CHECK(FUNC(cdef_params)(ctx, rw, current));
1623 
1624  CHECK(FUNC(lr_params)(ctx, rw, current));
1625 
1626  CHECK(FUNC(read_tx_mode)(ctx, rw, current));
1627 
1628  CHECK(FUNC(frame_reference_mode)(ctx, rw, current));
1629 
1630  CHECK(FUNC(skip_mode_params)(ctx, rw, current));
1631 
1632  if (frame_is_intra || current->error_resilient_mode ||
1633  !seq->enable_warped_motion)
1634  infer(allow_warped_motion, 0);
1635  else
1636  flag(allow_warped_motion);
1637 
1638  flag(reduced_tx_set);
1639 
1640  CHECK(FUNC(global_motion_params)(ctx, rw, current));
1641 
1642  CHECK(FUNC(film_grain_params)(ctx, rw, &current->film_grain, current));
1643 
1644  av_log(ctx->log_ctx, AV_LOG_DEBUG, "Frame %d: size %dx%d "
1645  "upscaled %d render %dx%d subsample %dx%d "
1646  "bitdepth %d tiles %dx%d.\n", priv->order_hint,
1647  priv->frame_width, priv->frame_height, priv->upscaled_width,
1648  priv->render_width, priv->render_height,
1649  seq->color_config.subsampling_x + 1,
1650  seq->color_config.subsampling_y + 1, priv->bit_depth,
1651  priv->tile_rows, priv->tile_cols);
1652 
1653 update_refs:
1654  for (i = 0; i < AV1_NUM_REF_FRAMES; i++) {
1655  if (current->refresh_frame_flags & (1 << i)) {
1656  priv->ref[i] = (AV1ReferenceFrameState) {
1657  .valid = 1,
1658  .frame_id = current->current_frame_id,
1659  .upscaled_width = priv->upscaled_width,
1660  .frame_width = priv->frame_width,
1661  .frame_height = priv->frame_height,
1662  .render_width = priv->render_width,
1663  .render_height = priv->render_height,
1664  .frame_type = current->frame_type,
1665  .subsampling_x = seq->color_config.subsampling_x,
1666  .subsampling_y = seq->color_config.subsampling_y,
1667  .bit_depth = priv->bit_depth,
1668  .order_hint = priv->order_hint,
1669  };
1670  memcpy(priv->ref[i].loop_filter_ref_deltas, current->loop_filter_ref_deltas,
1671  sizeof(current->loop_filter_ref_deltas));
1672  memcpy(priv->ref[i].loop_filter_mode_deltas, current->loop_filter_mode_deltas,
1673  sizeof(current->loop_filter_mode_deltas));
1674  memcpy(priv->ref[i].feature_enabled, current->feature_enabled,
1675  sizeof(current->feature_enabled));
1676  memcpy(priv->ref[i].feature_value, current->feature_value,
1677  sizeof(current->feature_value));
1678  }
1679  }
1680 
1681  return 0;
1682 }
1683 
1685  AV1RawFrameHeader *current, int redundant,
1686  AVBufferRef *rw_buffer_ref)
1687 {
1689  int start_pos, fh_bits, fh_bytes, err;
1690  uint8_t *fh_start;
1691 
1692  if (priv->seen_frame_header) {
1693  if (!redundant) {
1694  av_log(ctx->log_ctx, AV_LOG_ERROR, "Invalid repeated "
1695  "frame header OBU.\n");
1696  return AVERROR_INVALIDDATA;
1697  } else {
1698  GetBitContext fh;
1699  size_t i, b;
1700  uint32_t val;
1701 
1702  HEADER("Redundant Frame Header");
1703 
1704  av_assert0(priv->frame_header_ref && priv->frame_header);
1705 
1706  init_get_bits(&fh, priv->frame_header,
1707  priv->frame_header_size);
1708  for (i = 0; i < priv->frame_header_size; i += 8) {
1709  b = FFMIN(priv->frame_header_size - i, 8);
1710  val = get_bits(&fh, b);
1711  xf(b, frame_header_copy[i],
1712  val, val, val, 1, i / 8);
1713  }
1714  }
1715  } else {
1716  if (redundant)
1717  HEADER("Redundant Frame Header (used as Frame Header)");
1718  else
1719  HEADER("Frame Header");
1720 
1721 #ifdef READ
1722  start_pos = get_bits_count(rw);
1723 #else
1724  start_pos = put_bits_count(rw);
1725 #endif
1726 
1727  CHECK(FUNC(uncompressed_header)(ctx, rw, current));
1728 
1729  priv->tile_num = 0;
1730 
1731  if (current->show_existing_frame) {
1732  priv->seen_frame_header = 0;
1733  } else {
1734  priv->seen_frame_header = 1;
1735 
1737 
1738 #ifdef READ
1739  fh_bits = get_bits_count(rw) - start_pos;
1740  fh_start = (uint8_t*)rw->buffer + start_pos / 8;
1741 #else
1742  // Need to flush the bitwriter so that we can copy its output,
1743  // but use a copy so we don't affect the caller's structure.
1744  {
1745  PutBitContext tmp = *rw;
1746  flush_put_bits(&tmp);
1747  }
1748 
1749  fh_bits = put_bits_count(rw) - start_pos;
1750  fh_start = rw->buf + start_pos / 8;
1751 #endif
1752  fh_bytes = (fh_bits + 7) / 8;
1753 
1754  priv->frame_header_size = fh_bits;
1755 
1756  if (rw_buffer_ref) {
1757  priv->frame_header_ref = av_buffer_ref(rw_buffer_ref);
1758  if (!priv->frame_header_ref)
1759  return AVERROR(ENOMEM);
1760  priv->frame_header = fh_start;
1761  } else {
1762  priv->frame_header_ref =
1764  if (!priv->frame_header_ref)
1765  return AVERROR(ENOMEM);
1766  priv->frame_header = priv->frame_header_ref->data;
1767  memcpy(priv->frame_header, fh_start, fh_bytes);
1768  }
1769  }
1770  }
1771 
1772  return 0;
1773 }
1774 
1776  AV1RawTileGroup *current)
1777 {
1779  int num_tiles, tile_bits;
1780  int err;
1781 
1782  HEADER("Tile Group");
1783 
1784  num_tiles = priv->tile_cols * priv->tile_rows;
1785  if (num_tiles > 1)
1786  flag(tile_start_and_end_present_flag);
1787  else
1788  infer(tile_start_and_end_present_flag, 0);
1789 
1790  if (num_tiles == 1 || !current->tile_start_and_end_present_flag) {
1791  infer(tg_start, 0);
1792  infer(tg_end, num_tiles - 1);
1793  } else {
1794  tile_bits = cbs_av1_tile_log2(1, priv->tile_cols) +
1795  cbs_av1_tile_log2(1, priv->tile_rows);
1796  fc(tile_bits, tg_start, priv->tile_num, num_tiles - 1);
1797  fc(tile_bits, tg_end, current->tg_start, num_tiles - 1);
1798  }
1799 
1800  priv->tile_num = current->tg_end + 1;
1801 
1802  CHECK(FUNC(byte_alignment)(ctx, rw));
1803 
1804  // Reset header for next frame.
1805  if (current->tg_end == num_tiles - 1)
1806  priv->seen_frame_header = 0;
1807 
1808  // Tile data follows.
1809 
1810  return 0;
1811 }
1812 
1814  AV1RawFrame *current,
1815  AVBufferRef *rw_buffer_ref)
1816 {
1817  int err;
1818 
1819  CHECK(FUNC(frame_header_obu)(ctx, rw, &current->header,
1820  0, rw_buffer_ref));
1821 
1822  CHECK(FUNC(byte_alignment)(ctx, rw));
1823 
1824  CHECK(FUNC(tile_group_obu)(ctx, rw, &current->tile_group));
1825 
1826  return 0;
1827 }
1828 
1830  AV1RawTileList *current)
1831 {
1832  int err;
1833 
1834  fb(8, output_frame_width_in_tiles_minus_1);
1835  fb(8, output_frame_height_in_tiles_minus_1);
1836 
1837  fb(16, tile_count_minus_1);
1838 
1839  // Tile data follows.
1840 
1841  return 0;
1842 }
1843 
1845  AV1RawMetadataHDRCLL *current)
1846 {
1847  int err;
1848 
1849  fb(16, max_cll);
1850  fb(16, max_fall);
1851 
1852  return 0;
1853 }
1854 
1856  AV1RawMetadataHDRMDCV *current)
1857 {
1858  int err, i;
1859 
1860  for (i = 0; i < 3; i++) {
1861  fbs(16, primary_chromaticity_x[i], 1, i);
1862  fbs(16, primary_chromaticity_y[i], 1, i);
1863  }
1864 
1865  fb(16, white_point_chromaticity_x);
1866  fb(16, white_point_chromaticity_y);
1867 
1868  fc(32, luminance_max, 1, MAX_UINT_BITS(32));
1869  // luminance_min must be lower than luminance_max. Convert luminance_max from
1870  // 24.8 fixed point to 18.14 fixed point in order to compare them.
1871  fc(32, luminance_min, 0, FFMIN(((uint64_t)current->luminance_max << 6) - 1,
1872  MAX_UINT_BITS(32)));
1873 
1874  return 0;
1875 }
1876 
1878  AV1RawMetadataScalability *current)
1879 {
1881  const AV1RawSequenceHeader *seq;
1882  int err, i, j;
1883 
1884  if (!priv->sequence_header) {
1885  av_log(ctx->log_ctx, AV_LOG_ERROR, "No sequence header available: "
1886  "unable to parse scalability metadata.\n");
1887  return AVERROR_INVALIDDATA;
1888  }
1889  seq = priv->sequence_header;
1890 
1891  fb(2, spatial_layers_cnt_minus_1);
1892  flag(spatial_layer_dimensions_present_flag);
1893  flag(spatial_layer_description_present_flag);
1894  flag(temporal_group_description_present_flag);
1895  fc(3, scalability_structure_reserved_3bits, 0, 0);
1896  if (current->spatial_layer_dimensions_present_flag) {
1897  for (i = 0; i <= current->spatial_layers_cnt_minus_1; i++) {
1898  fcs(16, spatial_layer_max_width[i],
1899  0, seq->max_frame_width_minus_1 + 1, 1, i);
1900  fcs(16, spatial_layer_max_height[i],
1901  0, seq->max_frame_height_minus_1 + 1, 1, i);
1902  }
1903  }
1904  if (current->spatial_layer_description_present_flag) {
1905  for (i = 0; i <= current->spatial_layers_cnt_minus_1; i++)
1906  fbs(8, spatial_layer_ref_id[i], 1, i);
1907  }
1908  if (current->temporal_group_description_present_flag) {
1909  fb(8, temporal_group_size);
1910  for (i = 0; i < current->temporal_group_size; i++) {
1911  fbs(3, temporal_group_temporal_id[i], 1, i);
1912  flags(temporal_group_temporal_switching_up_point_flag[i], 1, i);
1913  flags(temporal_group_spatial_switching_up_point_flag[i], 1, i);
1914  fbs(3, temporal_group_ref_cnt[i], 1, i);
1915  for (j = 0; j < current->temporal_group_ref_cnt[i]; j++) {
1916  fbs(8, temporal_group_ref_pic_diff[i][j], 2, i, j);
1917  }
1918  }
1919  }
1920 
1921  return 0;
1922 }
1923 
1925  AV1RawMetadataScalability *current)
1926 {
1927  int err;
1928 
1929  fb(8, scalability_mode_idc);
1930 
1931  if (current->scalability_mode_idc == AV1_SCALABILITY_SS)
1932  CHECK(FUNC(scalability_structure)(ctx, rw, current));
1933 
1934  return 0;
1935 }
1936 
1938  AV1RawMetadataITUTT35 *current)
1939 {
1940  int err;
1941  size_t i;
1942 
1943  fb(8, itu_t_t35_country_code);
1944  if (current->itu_t_t35_country_code == 0xff)
1945  fb(8, itu_t_t35_country_code_extension_byte);
1946 
1947 #ifdef READ
1948  // The payload runs up to the start of the trailing bits, but there might
1949  // be arbitrarily many trailing zeroes so we need to read through twice.
1950  current->payload_size = cbs_av1_get_payload_bytes_left(rw);
1951 
1952  current->payload_ref = av_buffer_alloc(current->payload_size);
1953  if (!current->payload_ref)
1954  return AVERROR(ENOMEM);
1955  current->payload = current->payload_ref->data;
1956 #endif
1957 
1958  for (i = 0; i < current->payload_size; i++)
1959  xf(8, itu_t_t35_payload_bytes[i], current->payload[i],
1960  0x00, 0xff, 1, i);
1961 
1962  return 0;
1963 }
1964 
1966  AV1RawMetadataTimecode *current)
1967 {
1968  int err;
1969 
1970  fb(5, counting_type);
1971  flag(full_timestamp_flag);
1972  flag(discontinuity_flag);
1973  flag(cnt_dropped_flag);
1974  fb(9, n_frames);
1975 
1976  if (current->full_timestamp_flag) {
1977  fc(6, seconds_value, 0, 59);
1978  fc(6, minutes_value, 0, 59);
1979  fc(5, hours_value, 0, 23);
1980  } else {
1981  flag(seconds_flag);
1982  if (current->seconds_flag) {
1983  fc(6, seconds_value, 0, 59);
1984  flag(minutes_flag);
1985  if (current->minutes_flag) {
1986  fc(6, minutes_value, 0, 59);
1987  flag(hours_flag);
1988  if (current->hours_flag)
1989  fc(5, hours_value, 0, 23);
1990  }
1991  }
1992  }
1993 
1994  fb(5, time_offset_length);
1995  if (current->time_offset_length > 0)
1996  fb(current->time_offset_length, time_offset_value);
1997  else
1998  infer(time_offset_length, 0);
1999 
2000  return 0;
2001 }
2002 
2004  AV1RawMetadata *current)
2005 {
2006  int err;
2007 
2008  leb128(metadata_type);
2009 
2010  switch (current->metadata_type) {
2012  CHECK(FUNC(metadata_hdr_cll)(ctx, rw, &current->metadata.hdr_cll));
2013  break;
2015  CHECK(FUNC(metadata_hdr_mdcv)(ctx, rw, &current->metadata.hdr_mdcv));
2016  break;
2018  CHECK(FUNC(metadata_scalability)(ctx, rw, &current->metadata.scalability));
2019  break;
2021  CHECK(FUNC(metadata_itut_t35)(ctx, rw, &current->metadata.itut_t35));
2022  break;
2024  CHECK(FUNC(metadata_timecode)(ctx, rw, &current->metadata.timecode));
2025  break;
2026  default:
2027  // Unknown metadata type.
2028  return AVERROR_PATCHWELCOME;
2029  }
2030 
2031  return 0;
2032 }
2033 
2035  AV1RawPadding *current)
2036 {
2037  int i, err;
2038 
2039  HEADER("Padding");
2040 
2041 #ifdef READ
2042  // The payload runs up to the start of the trailing bits, but there might
2043  // be arbitrarily many trailing zeroes so we need to read through twice.
2044  current->payload_size = cbs_av1_get_payload_bytes_left(rw);
2045 
2046  current->payload_ref = av_buffer_alloc(current->payload_size);
2047  if (!current->payload_ref)
2048  return AVERROR(ENOMEM);
2049  current->payload = current->payload_ref->data;
2050 #endif
2051 
2052  for (i = 0; i < current->payload_size; i++)
2053  xf(8, obu_padding_byte[i], current->payload[i], 0x00, 0xff, 1, i);
2054 
2055  return 0;
2056 }
static double val(void *priv, double ch)
Definition: aeval.c:76
uint8_t
#define av_assert0(cond)
assert() equivalent, that is always enabled.
Definition: avassert.h:37
#define FF_PROFILE_AV1_HIGH
Definition: avcodec.h:1959
#define FF_PROFILE_AV1_MAIN
Definition: avcodec.h:1958
#define FF_PROFILE_AV1_PROFESSIONAL
Definition: avcodec.h:1960
#define FUNC(a)
#define fixed(width, name, value)
Definition: cbs_av1.c:577
#define fbs(width, name, subs,...)
Definition: cbs_av1.c:568
static size_t cbs_av1_get_payload_bytes_left(GetBitContext *gbc)
Definition: cbs_av1.c:532
#define flag(name)
Definition: cbs_av1.c:564
#define xf(width, name, var, range_min, range_max, subs,...)
Definition: cbs_av1.c:675
#define fb(width, name)
Definition: cbs_av1.c:560
#define fcs(width, name, range_min, range_max, subs,...)
Definition: cbs_av1.c:570
#define flags(name, subs,...)
Definition: cbs_av1.c:572
#define infer(name, value)
Definition: cbs_av1.c:720
#define ns(max_value, name, subs,...)
Definition: cbs_av1.c:693
static int cbs_av1_get_relative_dist(const AV1RawSequenceHeader *seq, unsigned int a, unsigned int b)
Definition: cbs_av1.c:520
#define subexp(name, max, subs,...)
Definition: cbs_av1.c:704
#define RWContext
Definition: cbs_av1.c:673
#define leb128(name)
Definition: cbs_av1.c:716
static int cbs_av1_tile_log2(int blksize, int target)
Definition: cbs_av1.c:513
#define sus(width, name, subs,...)
Definition: cbs_av1.c:574
#define increment(name, min, max)
Definition: cbs_av1.c:699
#define fc(width, name, range_min, range_max)
Definition: cbs_av1.c:562
#define uvlc(name, range_min, range_max)
Definition: cbs_av1.c:688
#define delta_q(name)
Definition: cbs_av1.c:710
#define HEADER(name)
Definition: cbs_av1.c:544
static int FUNC() metadata_itut_t35(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadataITUTT35 *current)
static int FUNC() metadata_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadata *current)
static int FUNC() cdef_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() byte_alignment(CodedBitstreamContext *ctx, RWContext *rw)
static int FUNC() lr_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() uncompressed_header(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() metadata_scalability(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadataScalability *current)
static int FUNC() metadata_timecode(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadataTimecode *current)
static int FUNC() frame_header_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current, int redundant, AVBufferRef *rw_buffer_ref)
static int FUNC() tile_list_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawTileList *current)
static int FUNC() loop_filter_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() skip_mode_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() set_frame_refs(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() timing_info(CodedBitstreamContext *ctx, RWContext *rw, AV1RawTimingInfo *current)
static int FUNC() superres_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() padding_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawPadding *current)
static int FUNC() decoder_model_info(CodedBitstreamContext *ctx, RWContext *rw, AV1RawDecoderModelInfo *current)
static int FUNC() tile_group_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawTileGroup *current)
static int FUNC() frame_size_with_refs(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() global_motion_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() frame_reference_mode(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() obu_header(CodedBitstreamContext *ctx, RWContext *rw, AV1RawOBUHeader *current)
static int FUNC() segmentation_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() color_config(CodedBitstreamContext *ctx, RWContext *rw, AV1RawColorConfig *current, int seq_profile)
static int FUNC() tile_info(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() metadata_hdr_cll(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadataHDRCLL *current)
static int FUNC() temporal_delimiter_obu(CodedBitstreamContext *ctx, RWContext *rw)
static int FUNC() film_grain_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFilmGrainParams *current, AV1RawFrameHeader *frame_header)
static int FUNC() sequence_header_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawSequenceHeader *current)
static int FUNC() interpolation_filter(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() trailing_bits(CodedBitstreamContext *ctx, RWContext *rw, int nb_bits)
static int FUNC() metadata_hdr_mdcv(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadataHDRMDCV *current)
static int FUNC() read_tx_mode(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() quantization_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() delta_lf_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() scalability_structure(CodedBitstreamContext *ctx, RWContext *rw, AV1RawMetadataScalability *current)
static int FUNC() global_motion_param(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current, int type, int ref, int idx)
static int FUNC() frame_obu(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrame *current, AVBufferRef *rw_buffer_ref)
static int FUNC() delta_q_params(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() frame_size(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
static int FUNC() render_size(CodedBitstreamContext *ctx, RWContext *rw, AV1RawFrameHeader *current)
#define MAX_UINT_BITS(length)
Definition: cbs_internal.h:169
static int FUNC() frame_header(CodedBitstreamContext *ctx, RWContext *rw, JPEGRawFrameHeader *current)
#define FFMIN(a, b)
Definition: common.h:105
#define FFMAX(a, b)
Definition: common.h:103
#define av_clip_uintp2
Definition: common.h:146
static void show_frame(WriterContext *w, AVFrame *frame, AVStream *stream, AVFormatContext *fmt_ctx)
Definition: ffprobe.c:2216
static int get_bits_count(const GetBitContext *s)
Definition: get_bits.h:219
static unsigned int get_bits(GetBitContext *s, int n)
Read 1-25 bits.
Definition: get_bits.h:379
static int init_get_bits(GetBitContext *s, const uint8_t *buffer, int bit_size)
Initialize GetBitContext.
Definition: get_bits.h:659
#define AV_INPUT_BUFFER_PADDING_SIZE
Required number of additionally allocated bytes at the end of the input bitstream for decoding.
Definition: avcodec.h:215
void av_buffer_unref(AVBufferRef **buf)
Free a given reference and automatically free the buffer if there are no more references to it.
Definition: buffer.c:125
AVBufferRef * av_buffer_alloc(buffer_size_t size)
Allocate an AVBuffer of the given size using av_malloc().
Definition: buffer.c:67
AVBufferRef * av_buffer_ref(AVBufferRef *buf)
Create a new reference to an AVBuffer.
Definition: buffer.c:93
#define AVERROR_PATCHWELCOME
Not yet implemented in FFmpeg, patches welcome.
Definition: error.h:62
#define AVERROR_INVALIDDATA
Invalid data found when processing input.
Definition: error.h:59
#define AVERROR(e)
Definition: error.h:43
#define AV_LOG_DEBUG
Stuff which is only useful for libav* developers.
Definition: log.h:215
#define AV_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
Definition: log.h:194
cl_device_type type
int i
Definition: input.c:407
frame_type
@ AV1_RESTORE_NONE
Definition: av1.h:172
@ AV1_OBU_PADDING
Definition: av1.h:39
@ AV1_REF_FRAME_LAST2
Definition: av1.h:63
@ AV1_REF_FRAME_LAST
Definition: av1.h:62
@ AV1_REF_FRAME_ALTREF2
Definition: av1.h:67
@ AV1_REF_FRAME_INTRA
Definition: av1.h:61
@ AV1_REF_FRAME_ALTREF
Definition: av1.h:68
@ AV1_REF_FRAME_BWDREF
Definition: av1.h:66
@ AV1_REF_FRAME_GOLDEN
Definition: av1.h:65
@ AV1_REF_FRAME_LAST3
Definition: av1.h:64
@ AV1_FRAME_KEY
Definition: av1.h:53
@ AV1_FRAME_INTER
Definition: av1.h:54
@ AV1_FRAME_INTRA_ONLY
Definition: av1.h:55
@ AV1_FRAME_SWITCH
Definition: av1.h:56
@ AV1_SCALABILITY_SS
Definition: av1.h:153
@ AV1_METADATA_TYPE_SCALABILITY
Definition: av1.h:46
@ AV1_METADATA_TYPE_HDR_MDCV
Definition: av1.h:45
@ AV1_METADATA_TYPE_TIMECODE
Definition: av1.h:48
@ AV1_METADATA_TYPE_ITUT_T35
Definition: av1.h:47
@ AV1_METADATA_TYPE_HDR_CLL
Definition: av1.h:44
@ AV1_CSP_COLOCATED
Definition: av1.h:134
@ AV1_CSP_UNKNOWN
Definition: av1.h:132
@ AV1_WARP_MODEL_ROTZOOM
Definition: av1.h:115
@ AV1_SUPERRES_DENOM_MIN
Definition: av1.h:101
@ AV1_GM_TRANS_ONLY_PREC_BITS
Definition: av1.h:108
@ AV1_WARP_MODEL_IDENTITY
Definition: av1.h:113
@ AV1_SEG_LVL_MAX
Definition: av1.h:89
@ AV1_SELECT_SCREEN_CONTENT_TOOLS
Definition: av1.h:97
@ AV1_MAX_TILE_WIDTH
Definition: av1.h:78
@ AV1_PRIMARY_REF_NONE
Definition: av1.h:86
@ AV1_SUPERRES_NUM
Definition: av1.h:100
@ AV1_NUM_REF_FRAMES
Definition: av1.h:83
@ AV1_INTERPOLATION_FILTER_SWITCHABLE
Definition: av1.h:103
@ AV1_GM_ALPHA_PREC_BITS
Definition: av1.h:106
@ AV1_MAX_TILE_COLS
Definition: av1.h:81
@ AV1_MAX_SEGMENTS
Definition: av1.h:88
@ AV1_SELECT_INTEGER_MV
Definition: av1.h:98
@ AV1_GM_ABS_ALPHA_BITS
Definition: av1.h:105
@ AV1_REFS_PER_FRAME
Definition: av1.h:84
@ AV1_TOTAL_REFS_PER_FRAME
Definition: av1.h:85
@ AV1_WARP_MODEL_TRANSLATION
Definition: av1.h:114
@ AV1_MAX_TILE_ROWS
Definition: av1.h:80
@ AV1_SEG_LVL_ALT_Q
Definition: av1.h:91
@ AV1_GM_ABS_TRANS_BITS
Definition: av1.h:109
@ AV1_GM_ABS_TRANS_ONLY_BITS
Definition: av1.h:107
@ AV1_MAX_TILE_AREA
Definition: av1.h:79
@ AV1_WARP_MODEL_AFFINE
Definition: av1.h:116
@ AV1_GM_TRANS_PREC_BITS
Definition: av1.h:110
static const struct TransferCharacteristics transfer_characteristics[AVCOL_TRC_NB]
static const struct ColorPrimaries color_primaries[AVCOL_PRI_NB]
@ AVCOL_PRI_BT709
also ITU-R BT1361 / IEC 61966-2-4 / SMPTE RP177 Annex B
Definition: pixfmt.h:460
@ AVCOL_PRI_UNSPECIFIED
Definition: pixfmt.h:461
@ AVCOL_TRC_IEC61966_2_1
IEC 61966-2-1 (sRGB or sYCC)
Definition: pixfmt.h:497
@ AVCOL_TRC_UNSPECIFIED
Definition: pixfmt.h:486
@ AVCOL_SPC_RGB
order of coefficients is actually GBR, also IEC 61966-2-1 (sRGB)
Definition: pixfmt.h:513
@ AVCOL_SPC_UNSPECIFIED
Definition: pixfmt.h:515
static int put_bits_count(PutBitContext *s)
Definition: put_bits.h:76
static void flush_put_bits(PutBitContext *s)
Pad the end of the output stream with zeros.
Definition: put_bits.h:110
typedef void(RENAME(mix_any_func_type))
uint8_t subsampling_x
Definition: cbs_av1.h:52
uint8_t mono_chrome
Definition: cbs_av1.h:44
uint8_t subsampling_y
Definition: cbs_av1.h:53
uint8_t separate_uv_delta_q
Definition: cbs_av1.h:55
uint8_t frame_presentation_time_length_minus_1
Definition: cbs_av1.h:70
uint8_t buffer_removal_time_length_minus_1
Definition: cbs_av1.h:69
uint8_t use_128x128_superblock
Definition: cbs_av1.h:105
uint8_t enable_ref_frame_mvs
Definition: cbs_av1.h:115
uint8_t frame_id_numbers_present_flag
Definition: cbs_av1.h:101
uint8_t enable_restoration
Definition: cbs_av1.h:126
uint8_t decoder_model_info_present_flag
Definition: cbs_av1.h:79
uint8_t enable_cdef
Definition: cbs_av1.h:125
uint8_t reduced_still_picture_header
Definition: cbs_av1.h:76
uint16_t max_frame_height_minus_1
Definition: cbs_av1.h:99
uint8_t seq_force_integer_mv
Definition: cbs_av1.h:120
uint8_t film_grain_params_present
Definition: cbs_av1.h:130
AV1RawColorConfig color_config
Definition: cbs_av1.h:128
uint8_t additional_frame_id_length_minus_1
Definition: cbs_av1.h:103
uint8_t delta_frame_id_length_minus_2
Definition: cbs_av1.h:102
uint16_t operating_point_idc[AV1_MAX_OPERATING_POINTS]
Definition: cbs_av1.h:86
uint8_t enable_superres
Definition: cbs_av1.h:124
AV1RawDecoderModelInfo decoder_model_info
Definition: cbs_av1.h:84
uint8_t frame_height_bits_minus_1
Definition: cbs_av1.h:97
uint8_t decoder_model_present_for_this_op[AV1_MAX_OPERATING_POINTS]
Definition: cbs_av1.h:89
uint8_t enable_warped_motion
Definition: cbs_av1.h:110
uint8_t order_hint_bits_minus_1
Definition: cbs_av1.h:122
uint8_t frame_width_bits_minus_1
Definition: cbs_av1.h:96
AV1RawTimingInfo timing_info
Definition: cbs_av1.h:83
uint16_t max_frame_width_minus_1
Definition: cbs_av1.h:98
uint8_t enable_order_hint
Definition: cbs_av1.h:113
uint8_t seq_force_screen_content_tools
Definition: cbs_av1.h:118
uint8_t operating_points_cnt_minus_1
Definition: cbs_av1.h:81
uint8_t equal_picture_interval
Definition: cbs_av1.h:62
int8_t loop_filter_ref_deltas[AV1_TOTAL_REFS_PER_FRAME]
Definition: cbs_av1.h:421
uint8_t feature_enabled[AV1_MAX_SEGMENTS][AV1_SEG_LVL_MAX]
Definition: cbs_av1.h:423
int16_t feature_value[AV1_MAX_SEGMENTS][AV1_SEG_LVL_MAX]
Definition: cbs_av1.h:424
int8_t loop_filter_mode_deltas[2]
Definition: cbs_av1.h:422
A reference to a data buffer.
Definition: buffer.h:84
uint8_t * data
The data buffer.
Definition: buffer.h:92
AVDictionary * metadata
Metadata that applies to the whole file.
Definition: avformat.h:1474
void * priv_data
Format private data.
Definition: avformat.h:1260
uint8_t * frame_header
Definition: cbs_av1.h:435
AV1RawSequenceHeader * sequence_header
Definition: cbs_av1.h:430
AVBufferRef * frame_header_ref
Definition: cbs_av1.h:434
AV1ReferenceFrameState ref[AV1_NUM_REF_FRAMES]
Definition: cbs_av1.h:457
Context structure for coded bitstream operations.
Definition: cbs.h:170
#define av_log(a,...)
static uint8_t tmp[11]
Definition: aes_ctr.c:27
static int ref[MAX_W *MAX_W]
Definition: jpeg2000dwt.c:107
AVFormatContext * ctx
Definition: movenc.c:48
const char * b
Definition: vf_curves.c:119
CHECK(-1) CHECK(-2) }} }} CHECK(1) CHECK(2) }} }} } if(diff0+diff1 > 0) temp -
color_range
uint8_t bits
Definition: vp3data.h:141
static void update_refs(VP8Context *s)
Definition: vp8.c:478