Coverage Report

Created: 2026-09-14 07:37

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aom/av1/encoder/encoder.c
Line
Count
Source
1
/*
2
 * Copyright (c) 2016, Alliance for Open Media. All rights reserved.
3
 *
4
 * This source code is subject to the terms of the BSD 2 Clause License and
5
 * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
6
 * was not distributed with this source code in the LICENSE file, you can
7
 * obtain it at www.aomedia.org/license/software. If the Alliance for Open
8
 * Media Patent License 1.0 was not distributed with this source code in the
9
 * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
10
 */
11
12
#include <assert.h>
13
#include <float.h>
14
#include <inttypes.h>
15
#include <limits.h>
16
#include <math.h>
17
#include <stdbool.h>
18
#include <stdint.h>
19
#include <stdio.h>
20
#include <stdlib.h>
21
#include <time.h>
22
23
#include "av1/common/scale.h"
24
#include "config/aom_config.h"
25
#include "config/aom_dsp_rtcd.h"
26
27
#include "aom/aomcx.h"
28
29
#if CONFIG_DENOISE
30
#include "aom_dsp/grain_table.h"
31
#include "aom_dsp/noise_util.h"
32
#include "aom_dsp/noise_model.h"
33
#endif
34
#include "aom_dsp/flow_estimation/corner_detect.h"
35
#include "aom_dsp/psnr.h"
36
#if CONFIG_INTERNAL_STATS
37
#include "aom_dsp/ssim.h"
38
#endif
39
#include "aom_ports/aom_timer.h"
40
#include "aom_ports/mem.h"
41
#include "aom_util/aom_pthread.h"
42
#if CONFIG_BITSTREAM_DEBUG
43
#include "aom_util/debug_util.h"
44
#endif  // CONFIG_BITSTREAM_DEBUG
45
46
#include "av1/common/alloccommon.h"
47
#include "av1/common/debugmodes.h"
48
#include "av1/common/filter.h"
49
#include "av1/common/idct.h"
50
#include "av1/common/reconinter.h"
51
#include "av1/common/reconintra.h"
52
#include "av1/common/resize.h"
53
#include "av1/common/tile_common.h"
54
55
#include "av1/encoder/allintra_vis.h"
56
#include "av1/encoder/aq_complexity.h"
57
#include "av1/encoder/aq_cyclicrefresh.h"
58
#include "av1/encoder/aq_variance.h"
59
#include "av1/encoder/bitstream.h"
60
#if CONFIG_INTERNAL_STATS
61
#include "av1/encoder/blockiness.h"
62
#endif
63
#include "av1/encoder/context_tree.h"
64
#include "av1/encoder/dwt.h"
65
#include "av1/encoder/encodeframe.h"
66
#include "av1/encoder/encodemv.h"
67
#include "av1/encoder/encode_strategy.h"
68
#include "av1/encoder/encoder.h"
69
#include "av1/encoder/encoder_alloc.h"
70
#include "av1/encoder/encoder_utils.h"
71
#include "av1/encoder/encodetxb.h"
72
#include "av1/encoder/ethread.h"
73
#include "av1/encoder/firstpass.h"
74
#include "av1/encoder/hash_motion.h"
75
#include "av1/encoder/hybrid_fwd_txfm.h"
76
#include "av1/encoder/intra_mode_search.h"
77
#include "av1/encoder/mv_prec.h"
78
#include "av1/encoder/pass2_strategy.h"
79
#include "av1/encoder/pickcdef.h"
80
#include "av1/encoder/picklpf.h"
81
#include "av1/encoder/pickrst.h"
82
#include "av1/encoder/random.h"
83
#include "av1/encoder/ratectrl.h"
84
#include "av1/encoder/rc_utils.h"
85
#include "av1/encoder/rd.h"
86
#include "av1/encoder/rdopt.h"
87
#if CONFIG_SALIENCY_MAP
88
#include "av1/encoder/saliency_map.h"
89
#endif
90
#include "av1/encoder/segmentation.h"
91
#include "av1/encoder/speed_features.h"
92
#include "av1/encoder/superres_scale.h"
93
#if CONFIG_THREE_PASS
94
#include "av1/encoder/thirdpass.h"
95
#endif
96
#include "av1/encoder/tpl_model.h"
97
#include "av1/encoder/reconinter_enc.h"
98
#include "av1/encoder/var_based_part.h"
99
100
0
#define DEFAULT_EXPLICIT_ORDER_HINT_BITS 7
101
102
// #define OUTPUT_YUV_REC
103
#ifdef OUTPUT_YUV_REC
104
FILE *yuv_rec_file;
105
#define FILE_NAME_LEN 100
106
#endif
107
108
#ifdef OUTPUT_YUV_DENOISED
109
FILE *yuv_denoised_file = NULL;
110
#endif
111
112
0
static inline void Scale2Ratio(AOM_SCALING_MODE mode, int *hr, int *hs) {
113
0
  switch (mode) {
114
0
    case AOME_NORMAL:
115
0
      *hr = 1;
116
0
      *hs = 1;
117
0
      break;
118
0
    case AOME_FOURFIVE:
119
0
      *hr = 4;
120
0
      *hs = 5;
121
0
      break;
122
0
    case AOME_THREEFIVE:
123
0
      *hr = 3;
124
0
      *hs = 5;
125
0
      break;
126
0
    case AOME_THREEFOUR:
127
0
      *hr = 3;
128
0
      *hs = 4;
129
0
      break;
130
0
    case AOME_ONEFOUR:
131
0
      *hr = 1;
132
0
      *hs = 4;
133
0
      break;
134
0
    case AOME_ONEEIGHT:
135
0
      *hr = 1;
136
0
      *hs = 8;
137
0
      break;
138
0
    case AOME_ONETWO:
139
0
      *hr = 1;
140
0
      *hs = 2;
141
0
      break;
142
0
    case AOME_TWOTHREE:
143
0
      *hr = 2;
144
0
      *hs = 3;
145
0
      break;
146
0
    case AOME_ONETHREE:
147
0
      *hr = 1;
148
0
      *hs = 3;
149
0
      break;
150
0
    default:
151
0
      *hr = 1;
152
0
      *hs = 1;
153
0
      assert(0);
154
0
      break;
155
0
  }
156
0
}
157
158
0
static int check_seg_range(int seg_data[8], int range) {
159
0
  for (int i = 0; i < 8; ++i) {
160
    // Note abs() alone can't be used as the behavior of abs(INT_MIN) is
161
    // undefined.
162
0
    if (seg_data[i] > range || seg_data[i] < -range) {
163
0
      return 0;
164
0
    }
165
0
  }
166
0
  return 1;
167
0
}
168
169
int av1_set_roi_map(AV1_COMP *cpi, unsigned char *map, unsigned int rows,
170
                    unsigned int cols, int delta_q[8], int delta_lf[8],
171
0
                    int skip[8], int ref_frame[8]) {
172
0
  AV1_COMMON *cm = &cpi->common;
173
0
  aom_roi_map_t *roi = &cpi->roi;
174
0
  const int range = 63;
175
0
  const int ref_frame_range = REF_FRAMES;
176
0
  const int skip_range = 1;
177
0
  const int frame_rows = cpi->common.mi_params.mi_rows;
178
0
  const int frame_cols = cpi->common.mi_params.mi_cols;
179
180
  // Check number of rows and columns match
181
0
  if (frame_rows != (int)rows || frame_cols != (int)cols) {
182
0
    return AOM_CODEC_INVALID_PARAM;
183
0
  }
184
185
0
  if (!check_seg_range(delta_q, range) || !check_seg_range(delta_lf, range) ||
186
0
      !check_seg_range(ref_frame, ref_frame_range) ||
187
0
      !check_seg_range(skip, skip_range))
188
0
    return AOM_CODEC_INVALID_PARAM;
189
190
  // Also disable segmentation if no deltas are specified.
191
0
  if (!map ||
192
0
      (!(delta_q[0] | delta_q[1] | delta_q[2] | delta_q[3] | delta_q[4] |
193
0
         delta_q[5] | delta_q[6] | delta_q[7] | delta_lf[0] | delta_lf[1] |
194
0
         delta_lf[2] | delta_lf[3] | delta_lf[4] | delta_lf[5] | delta_lf[6] |
195
0
         delta_lf[7] | skip[0] | skip[1] | skip[2] | skip[3] | skip[4] |
196
0
         skip[5] | skip[6] | skip[7]) &&
197
0
       (ref_frame[0] == -1 && ref_frame[1] == -1 && ref_frame[2] == -1 &&
198
0
        ref_frame[3] == -1 && ref_frame[4] == -1 && ref_frame[5] == -1 &&
199
0
        ref_frame[6] == -1 && ref_frame[7] == -1))) {
200
0
    av1_disable_segmentation(&cm->seg);
201
0
    cpi->roi.enabled = 0;
202
0
    return AOM_CODEC_OK;
203
0
  }
204
205
0
  if (roi->roi_map) {
206
0
    aom_free(roi->roi_map);
207
0
    roi->roi_map = NULL;
208
0
  }
209
0
  roi->roi_map = aom_malloc(rows * cols);
210
0
  if (!roi->roi_map) return AOM_CODEC_MEM_ERROR;
211
212
  // Copy to ROI structure in the compressor.
213
0
  memcpy(roi->roi_map, map, rows * cols);
214
0
  memcpy(&roi->delta_q, delta_q, MAX_SEGMENTS * sizeof(delta_q[0]));
215
0
  memcpy(&roi->delta_lf, delta_lf, MAX_SEGMENTS * sizeof(delta_lf[0]));
216
0
  memcpy(&roi->skip, skip, MAX_SEGMENTS * sizeof(skip[0]));
217
0
  memcpy(&roi->ref_frame, ref_frame, MAX_SEGMENTS * sizeof(ref_frame[0]));
218
0
  roi->enabled = 1;
219
0
  roi->rows = rows;
220
0
  roi->cols = cols;
221
222
0
  return AOM_CODEC_OK;
223
0
}
224
225
int av1_set_active_map(AV1_COMP *cpi, unsigned char *new_map_16x16, int rows,
226
0
                       int cols) {
227
0
  const CommonModeInfoParams *const mi_params = &cpi->common.mi_params;
228
0
  if (rows == mi_params->mb_rows && cols == mi_params->mb_cols) {
229
0
    unsigned char *const active_map_4x4 = cpi->active_map.map;
230
0
    const int mi_rows = mi_params->mi_rows;
231
0
    const int mi_cols = mi_params->mi_cols;
232
0
    cpi->active_map.update = 0;
233
0
    cpi->rc.percent_blocks_inactive = 0;
234
0
    assert(mi_rows % 2 == 0 && mi_rows > 0);
235
0
    assert(mi_cols % 2 == 0 && mi_cols > 0);
236
0
    if (new_map_16x16) {
237
0
      int num_samples = 0;
238
0
      int num_blocks_inactive = 0;
239
0
      for (int r = 0; r < mi_rows; r += 4) {
240
0
        for (int c = 0; c < mi_cols; c += 4) {
241
0
          const uint8_t val = new_map_16x16[(r >> 2) * cols + (c >> 2)]
242
0
                                  ? AM_SEGMENT_ID_ACTIVE
243
0
                                  : AM_SEGMENT_ID_INACTIVE;
244
0
          num_samples++;
245
0
          if (val == AM_SEGMENT_ID_INACTIVE) num_blocks_inactive++;
246
0
          const int row_max = AOMMIN(4, mi_rows - r);
247
0
          const int col_max = AOMMIN(4, mi_cols - c);
248
0
          for (int x = 0; x < row_max; ++x) {
249
0
            for (int y = 0; y < col_max; ++y) {
250
0
              active_map_4x4[(r + x) * mi_cols + (c + y)] = val;
251
0
            }
252
0
          }
253
0
        }
254
0
      }
255
0
      cpi->active_map.enabled = 1;
256
0
      cpi->active_map.update = 1;
257
0
      assert(num_samples);
258
0
      cpi->rc.percent_blocks_inactive =
259
0
          (num_blocks_inactive * 100) / num_samples;
260
0
    }
261
0
    return 0;
262
0
  }
263
264
0
  return -1;
265
0
}
266
267
int av1_get_active_map(AV1_COMP *cpi, unsigned char *new_map_16x16, int rows,
268
0
                       int cols) {
269
0
  const CommonModeInfoParams *const mi_params = &cpi->common.mi_params;
270
0
  if (rows == mi_params->mb_rows && cols == mi_params->mb_cols &&
271
0
      new_map_16x16) {
272
0
    unsigned char *const seg_map_8x8 = cpi->enc_seg.map;
273
0
    const int mi_rows = mi_params->mi_rows;
274
0
    const int mi_cols = mi_params->mi_cols;
275
0
    const int row_scale = mi_size_high_log2[BLOCK_16X16];
276
0
    const int col_scale = mi_size_wide_log2[BLOCK_16X16];
277
0
    assert(mi_rows % 2 == 0);
278
0
    assert(mi_cols % 2 == 0);
279
280
0
    memset(new_map_16x16, !cpi->active_map.enabled, rows * cols);
281
0
    if (cpi->active_map.enabled) {
282
0
      for (int r = 0; r < (mi_rows >> row_scale); ++r) {
283
0
        for (int c = 0; c < (mi_cols >> col_scale); ++c) {
284
          // Cyclic refresh segments are considered active despite not having
285
          // AM_SEGMENT_ID_ACTIVE
286
0
          uint8_t temp = 0;
287
0
          temp |= seg_map_8x8[(2 * r + 0) * mi_cols + (2 * c + 0)] !=
288
0
                  AM_SEGMENT_ID_INACTIVE;
289
0
          temp |= seg_map_8x8[(2 * r + 0) * mi_cols + (2 * c + 1)] !=
290
0
                  AM_SEGMENT_ID_INACTIVE;
291
0
          temp |= seg_map_8x8[(2 * r + 1) * mi_cols + (2 * c + 0)] !=
292
0
                  AM_SEGMENT_ID_INACTIVE;
293
0
          temp |= seg_map_8x8[(2 * r + 1) * mi_cols + (2 * c + 1)] !=
294
0
                  AM_SEGMENT_ID_INACTIVE;
295
0
          new_map_16x16[r * cols + c] |= temp;
296
0
        }
297
0
      }
298
0
    }
299
0
    return 0;
300
0
  }
301
302
0
  return -1;
303
0
}
304
305
0
void av1_initialize_enc(unsigned int usage, enum aom_rc_mode end_usage) {
306
0
  bool is_allintra = usage == ALLINTRA;
307
308
0
  av1_rtcd();
309
0
  aom_dsp_rtcd();
310
0
  aom_scale_rtcd();
311
0
  av1_init_intra_predictors();
312
0
  av1_init_me_luts();
313
0
  if (!is_allintra) av1_init_wedge_masks();
314
0
  if (!is_allintra || end_usage != AOM_Q) av1_rc_init_minq_luts();
315
0
}
316
317
0
void av1_new_framerate(AV1_COMP *cpi, double framerate) {
318
0
  cpi->framerate = framerate < 0.1 ? 30 : framerate;
319
0
  av1_rc_update_framerate(cpi, cpi->common.width, cpi->common.height);
320
0
}
321
322
double av1_get_compression_ratio(const AV1_COMMON *const cm,
323
0
                                 size_t encoded_frame_size) {
324
0
  const int upscaled_width = cm->superres_upscaled_width;
325
0
  const int height = cm->height;
326
0
  const int64_t luma_pic_size = (int64_t)upscaled_width * height;
327
0
  const SequenceHeader *const seq_params = cm->seq_params;
328
0
  const BITSTREAM_PROFILE profile = seq_params->profile;
329
0
  const int pic_size_profile_factor =
330
0
      profile == PROFILE_0 ? 15 : (profile == PROFILE_1 ? 30 : 36);
331
0
  encoded_frame_size =
332
0
      (encoded_frame_size > 129 ? encoded_frame_size - 128 : 1);
333
0
  const int64_t uncompressed_frame_size =
334
0
      (luma_pic_size * pic_size_profile_factor) >> 3;
335
0
  return (double)uncompressed_frame_size / encoded_frame_size;
336
0
}
337
338
static void auto_tile_size_balancing(AV1_COMMON *const cm, int num_sbs,
339
0
                                     int num_tiles_lg, int tile_col_row) {
340
0
  CommonTileParams *const tiles = &cm->tiles;
341
0
  int i, start_sb;
342
0
  int size_sb = num_sbs >> num_tiles_lg;
343
0
  int res_sbs = num_sbs - (size_sb << num_tiles_lg);
344
0
  int num_tiles = 1 << num_tiles_lg;
345
0
  int inc_index = num_tiles - res_sbs;
346
347
0
  tiles->uniform_spacing = 0;
348
349
0
  const int max_size_sb =
350
0
      tile_col_row ? tiles->max_width_sb : tiles->max_height_sb;
351
0
  for (i = 0, start_sb = 0; start_sb < num_sbs && i < MAX_TILE_COLS; ++i) {
352
0
    if (i == inc_index) ++size_sb;
353
0
    if (tile_col_row)
354
0
      tiles->col_start_sb[i] = start_sb;
355
0
    else
356
0
      tiles->row_start_sb[i] = start_sb;
357
358
0
    start_sb += AOMMIN(size_sb, max_size_sb);
359
0
  }
360
361
0
  if (tile_col_row) {
362
0
    tiles->cols = i;
363
0
    tiles->col_start_sb[i] = num_sbs;
364
0
  } else {
365
0
    tiles->rows = i;
366
0
    tiles->row_start_sb[i] = num_sbs;
367
0
  }
368
0
}
369
370
static void set_tile_info(AV1_COMMON *const cm,
371
0
                          const TileConfig *const tile_cfg) {
372
0
  const CommonModeInfoParams *const mi_params = &cm->mi_params;
373
0
  const SequenceHeader *const seq_params = cm->seq_params;
374
0
  CommonTileParams *const tiles = &cm->tiles;
375
0
  int i, start_sb;
376
377
0
  av1_get_tile_limits(cm);
378
379
0
  int sb_cols =
380
0
      CEIL_POWER_OF_TWO(mi_params->mi_cols, seq_params->mib_size_log2);
381
  // configure tile columns
382
0
  if (tile_cfg->tile_width_count == 0 || tile_cfg->tile_height_count == 0) {
383
0
    tiles->uniform_spacing = 1;
384
0
    tiles->log2_cols = AOMMAX(tile_cfg->tile_columns, tiles->min_log2_cols);
385
    // Add a special case to handle super resolution
386
0
    sb_cols = coded_to_superres_mi(sb_cols, cm->superres_scale_denominator);
387
0
    int min_log2_cols = 0;
388
0
    for (; (tiles->max_width_sb << min_log2_cols) <= sb_cols; ++min_log2_cols) {
389
0
    }
390
0
    tiles->log2_cols = AOMMAX(tiles->log2_cols, min_log2_cols);
391
392
0
    tiles->log2_cols = AOMMIN(tiles->log2_cols, tiles->max_log2_cols);
393
0
  } else if (tile_cfg->tile_widths[0] < 0) {
394
0
    auto_tile_size_balancing(cm, sb_cols, tile_cfg->tile_columns, 1);
395
0
  } else {
396
0
    int size_sb, j = 0;
397
0
    tiles->uniform_spacing = 0;
398
0
    for (i = 0, start_sb = 0; start_sb < sb_cols && i < MAX_TILE_COLS; i++) {
399
0
      tiles->col_start_sb[i] = start_sb;
400
0
      size_sb = tile_cfg->tile_widths[j++];
401
0
      if (j >= tile_cfg->tile_width_count) j = 0;
402
0
      start_sb += AOMMIN(size_sb, tiles->max_width_sb);
403
0
    }
404
0
    tiles->cols = i;
405
0
    tiles->col_start_sb[i] = sb_cols;
406
0
  }
407
0
  av1_calculate_tile_cols(seq_params, mi_params->mi_rows, mi_params->mi_cols,
408
0
                          tiles);
409
410
  // configure tile rows
411
0
  int sb_rows =
412
0
      CEIL_POWER_OF_TWO(mi_params->mi_rows, seq_params->mib_size_log2);
413
0
  if (tiles->uniform_spacing) {
414
0
    tiles->log2_rows = AOMMAX(tile_cfg->tile_rows, tiles->min_log2_rows);
415
0
    tiles->log2_rows = AOMMIN(tiles->log2_rows, tiles->max_log2_rows);
416
0
  } else if (tile_cfg->tile_heights[0] < 0) {
417
0
    auto_tile_size_balancing(cm, sb_rows, tile_cfg->tile_rows, 0);
418
0
  } else {
419
0
    int size_sb, j = 0;
420
0
    for (i = 0, start_sb = 0; start_sb < sb_rows && i < MAX_TILE_ROWS; i++) {
421
0
      tiles->row_start_sb[i] = start_sb;
422
0
      size_sb = tile_cfg->tile_heights[j++];
423
0
      if (j >= tile_cfg->tile_height_count) j = 0;
424
0
      start_sb += AOMMIN(size_sb, tiles->max_height_sb);
425
0
    }
426
0
    tiles->rows = i;
427
0
    tiles->row_start_sb[i] = sb_rows;
428
0
  }
429
0
  av1_calculate_tile_rows(seq_params, mi_params->mi_rows, tiles);
430
0
}
431
432
static inline void init_frame_info(FRAME_INFO *frame_info,
433
0
                                   const AV1_COMMON *const cm) {
434
0
  const CommonModeInfoParams *const mi_params = &cm->mi_params;
435
0
  const SequenceHeader *const seq_params = cm->seq_params;
436
0
  frame_info->frame_width = cm->width;
437
0
  frame_info->frame_height = cm->height;
438
0
  frame_info->mi_cols = mi_params->mi_cols;
439
0
  frame_info->mi_rows = mi_params->mi_rows;
440
0
  frame_info->mb_cols = mi_params->mb_cols;
441
0
  frame_info->mb_rows = mi_params->mb_rows;
442
0
  frame_info->num_mbs = mi_params->MBs;
443
0
  frame_info->bit_depth = seq_params->bit_depth;
444
0
  frame_info->subsampling_x = seq_params->subsampling_x;
445
0
  frame_info->subsampling_y = seq_params->subsampling_y;
446
0
}
447
448
0
void av1_update_frame_size(AV1_COMP *cpi) {
449
0
  AV1_COMMON *const cm = &cpi->common;
450
0
  MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
451
452
  // Setup mi_params here in case we need more mi's.
453
0
  CommonModeInfoParams *const mi_params = &cm->mi_params;
454
0
  mi_params->set_mb_mi(mi_params, cm->width, cm->height,
455
0
                       cpi->sf.part_sf.default_min_partition_size);
456
457
0
  av1_init_macroblockd(cm, xd);
458
459
0
  if (!cpi->ppi->seq_params_locked)
460
0
    set_sb_size(cm->seq_params,
461
0
                av1_select_sb_size(&cpi->oxcf, cm->width, cm->height,
462
0
                                   cpi->ppi->number_spatial_layers));
463
464
0
  set_tile_info(cm, &cpi->oxcf.tile_cfg);
465
0
  init_frame_info(&cpi->frame_info, cm);
466
0
}
467
468
static inline int does_level_match(int width, int height, double fps,
469
                                   int lvl_width, int lvl_height,
470
0
                                   double lvl_fps, int lvl_dim_mult) {
471
0
  const int64_t lvl_luma_pels = (int64_t)lvl_width * lvl_height;
472
0
  const double lvl_display_sample_rate = lvl_luma_pels * lvl_fps;
473
0
  const int64_t luma_pels = (int64_t)width * height;
474
0
  const double display_sample_rate = luma_pels * fps;
475
0
  return luma_pels <= lvl_luma_pels &&
476
0
         display_sample_rate <= lvl_display_sample_rate &&
477
0
         width <= lvl_width * lvl_dim_mult &&
478
0
         height <= lvl_height * lvl_dim_mult;
479
0
}
480
481
static void set_bitstream_level_tier(AV1_PRIMARY *const ppi, int width,
482
0
                                     int height, double init_framerate) {
483
0
  SequenceHeader *const seq_params = &ppi->seq_params;
484
0
  const AV1LevelParams *const level_params = &ppi->level_params;
485
  // TODO(any): This is a placeholder function that only addresses dimensions
486
  // and max display sample rates.
487
  // Need to add checks for max bit rate, max decoded luma sample rate, header
488
  // rate, etc. that are not covered by this function.
489
0
  AV1_LEVEL level = SEQ_LEVEL_MAX;
490
0
  if (does_level_match(width, height, init_framerate, 512, 288, 30.0, 4)) {
491
0
    level = SEQ_LEVEL_2_0;
492
0
  } else if (does_level_match(width, height, init_framerate, 704, 396, 30.0,
493
0
                              4)) {
494
0
    level = SEQ_LEVEL_2_1;
495
0
  } else if (does_level_match(width, height, init_framerate, 1088, 612, 30.0,
496
0
                              4)) {
497
0
    level = SEQ_LEVEL_3_0;
498
0
  } else if (does_level_match(width, height, init_framerate, 1376, 774, 30.0,
499
0
                              4)) {
500
0
    level = SEQ_LEVEL_3_1;
501
0
  } else if (does_level_match(width, height, init_framerate, 2048, 1152, 30.0,
502
0
                              3)) {
503
0
    level = SEQ_LEVEL_4_0;
504
0
  } else if (does_level_match(width, height, init_framerate, 2048, 1152, 60.0,
505
0
                              3)) {
506
0
    level = SEQ_LEVEL_4_1;
507
0
  } else if (does_level_match(width, height, init_framerate, 4096, 2176, 30.0,
508
0
                              2)) {
509
0
    level = SEQ_LEVEL_5_0;
510
0
  } else if (does_level_match(width, height, init_framerate, 4096, 2176, 60.0,
511
0
                              2)) {
512
0
    level = SEQ_LEVEL_5_1;
513
0
  } else if (does_level_match(width, height, init_framerate, 4096, 2176, 120.0,
514
0
                              2)) {
515
0
    level = SEQ_LEVEL_5_2;
516
0
  } else if (does_level_match(width, height, init_framerate, 8192, 4352, 30.0,
517
0
                              2)) {
518
0
    level = SEQ_LEVEL_6_0;
519
0
  } else if (does_level_match(width, height, init_framerate, 8192, 4352, 60.0,
520
0
                              2)) {
521
0
    level = SEQ_LEVEL_6_1;
522
0
  } else if (does_level_match(width, height, init_framerate, 8192, 4352, 120.0,
523
0
                              2)) {
524
0
    level = SEQ_LEVEL_6_2;
525
0
  }
526
#if CONFIG_CWG_C013
527
  // TODO(bohanli): currently target level is only working for the 0th operating
528
  // point, so scalable coding is not supported.
529
  else if (level_params->target_seq_level_idx[0] >= SEQ_LEVEL_7_0 &&
530
           level_params->target_seq_level_idx[0] <= SEQ_LEVEL_8_3) {
531
    // Only use level 7.x to 8.x when explicitly asked to.
532
    if (does_level_match(width, height, init_framerate, 16384, 8704, 30.0, 2)) {
533
      level = SEQ_LEVEL_7_0;
534
    } else if (does_level_match(width, height, init_framerate, 16384, 8704,
535
                                60.0, 2)) {
536
      level = SEQ_LEVEL_7_1;
537
    } else if (does_level_match(width, height, init_framerate, 16384, 8704,
538
                                120.0, 2)) {
539
      level = SEQ_LEVEL_7_2;
540
    } else if (does_level_match(width, height, init_framerate, 32768, 17408,
541
                                30.0, 2)) {
542
      level = SEQ_LEVEL_8_0;
543
    } else if (does_level_match(width, height, init_framerate, 32768, 17408,
544
                                60.0, 2)) {
545
      level = SEQ_LEVEL_8_1;
546
    } else if (does_level_match(width, height, init_framerate, 32768, 17408,
547
                                120.0, 2)) {
548
      level = SEQ_LEVEL_8_2;
549
    }
550
  }
551
#endif
552
553
0
  for (int i = 0; i < MAX_NUM_OPERATING_POINTS; ++i) {
554
0
    assert(is_valid_seq_level_idx(level_params->target_seq_level_idx[i]) ||
555
0
           level_params->target_seq_level_idx[i] == SEQ_LEVEL_KEEP_STATS);
556
    // If a higher target level is specified, it is then used rather than the
557
    // inferred one from resolution and framerate.
558
0
    seq_params->seq_level_idx[i] =
559
0
        level_params->target_seq_level_idx[i] < SEQ_LEVELS &&
560
0
                level_params->target_seq_level_idx[i] > level
561
0
            ? level_params->target_seq_level_idx[i]
562
0
            : level;
563
    // Set the maximum parameters for bitrate and buffer size for this profile,
564
    // level, and tier
565
0
    seq_params->op_params[i].bitrate = av1_max_level_bitrate(
566
0
        seq_params->profile, seq_params->seq_level_idx[i], seq_params->tier[i]);
567
    // Level with seq_level_idx = 31 returns a high "dummy" bitrate to pass the
568
    // check
569
0
    if (seq_params->op_params[i].bitrate == 0)
570
0
      aom_internal_error(
571
0
          &ppi->error, AOM_CODEC_UNSUP_BITSTREAM,
572
0
          "AV1 does not support this combination of profile, level, and tier.");
573
    // Buffer size in bits is bitrate in bits/s * 1 s
574
0
    seq_params->op_params[i].buffer_size = seq_params->op_params[i].bitrate;
575
0
  }
576
0
}
577
578
0
void av1_set_svc_seq_params(AV1_PRIMARY *const ppi) {
579
0
  SequenceHeader *const seq = &ppi->seq_params;
580
0
  if (seq->operating_points_cnt_minus_1 == 0) {
581
0
    seq->operating_point_idc[0] = 0;
582
0
    seq->has_nonzero_operating_point_idc = false;
583
0
  } else {
584
    // Set operating_point_idc[] such that the i=0 point corresponds to the
585
    // highest quality operating point (all layers), and subsequent
586
    // operarting points (i > 0) are lower quality corresponding to
587
    // skip decoding enhancement  layers (temporal first).
588
0
    int i = 0;
589
0
    assert(seq->operating_points_cnt_minus_1 ==
590
0
           (int)(ppi->number_spatial_layers * ppi->number_temporal_layers - 1));
591
0
    for (unsigned int sl = 0; sl < ppi->number_spatial_layers; sl++) {
592
0
      for (unsigned int tl = 0; tl < ppi->number_temporal_layers; tl++) {
593
0
        seq->operating_point_idc[i] =
594
0
            (~(~0u << (ppi->number_spatial_layers - sl)) << 8) |
595
0
            ~(~0u << (ppi->number_temporal_layers - tl));
596
0
        assert(seq->operating_point_idc[i] != 0);
597
0
        i++;
598
0
      }
599
0
    }
600
0
    seq->has_nonzero_operating_point_idc = true;
601
0
  }
602
0
}
603
604
static void init_seq_coding_tools(AV1_PRIMARY *const ppi,
605
                                  const AV1EncoderConfig *oxcf,
606
0
                                  int disable_frame_id_numbers) {
607
0
  SequenceHeader *const seq = &ppi->seq_params;
608
0
  const FrameDimensionCfg *const frm_dim_cfg = &oxcf->frm_dim_cfg;
609
0
  const ToolCfg *const tool_cfg = &oxcf->tool_cfg;
610
611
0
  seq->still_picture =
612
0
      !tool_cfg->force_video_mode && (oxcf->input_cfg.limit == 1);
613
0
  seq->reduced_still_picture_hdr =
614
0
      seq->still_picture && !tool_cfg->full_still_picture_hdr;
615
0
  seq->force_screen_content_tools = 2;
616
0
  seq->force_integer_mv = 2;
617
0
  seq->order_hint_info.enable_order_hint = tool_cfg->enable_order_hint;
618
0
  seq->frame_id_numbers_present_flag =
619
0
      !seq->reduced_still_picture_hdr &&
620
0
      !oxcf->tile_cfg.enable_large_scale_tile &&
621
0
      tool_cfg->error_resilient_mode && !disable_frame_id_numbers;
622
0
  if (seq->reduced_still_picture_hdr) {
623
0
    seq->order_hint_info.enable_order_hint = 0;
624
0
    seq->force_screen_content_tools = 2;
625
0
    seq->force_integer_mv = 2;
626
0
  }
627
0
  seq->order_hint_info.order_hint_bits_minus_1 =
628
0
      seq->order_hint_info.enable_order_hint
629
0
          ? DEFAULT_EXPLICIT_ORDER_HINT_BITS - 1
630
0
          : -1;
631
632
0
  seq->max_frame_width = frm_dim_cfg->forced_max_frame_width
633
0
                             ? frm_dim_cfg->forced_max_frame_width
634
0
                             : AOMMAX(seq->max_frame_width, frm_dim_cfg->width);
635
0
  seq->max_frame_height =
636
0
      frm_dim_cfg->forced_max_frame_height
637
0
          ? frm_dim_cfg->forced_max_frame_height
638
0
          : AOMMAX(seq->max_frame_height, frm_dim_cfg->height);
639
0
  seq->num_bits_width =
640
0
      (seq->max_frame_width > 1) ? get_msb(seq->max_frame_width - 1) + 1 : 1;
641
0
  seq->num_bits_height =
642
0
      (seq->max_frame_height > 1) ? get_msb(seq->max_frame_height - 1) + 1 : 1;
643
0
  assert(seq->num_bits_width <= 16);
644
0
  assert(seq->num_bits_height <= 16);
645
646
0
  seq->frame_id_length = FRAME_ID_LENGTH;
647
0
  seq->delta_frame_id_length = DELTA_FRAME_ID_LENGTH;
648
649
0
  seq->enable_dual_filter = tool_cfg->enable_dual_filter;
650
0
  seq->order_hint_info.enable_dist_wtd_comp =
651
0
      oxcf->comp_type_cfg.enable_dist_wtd_comp;
652
0
  seq->order_hint_info.enable_dist_wtd_comp &=
653
0
      seq->order_hint_info.enable_order_hint;
654
0
  seq->order_hint_info.enable_ref_frame_mvs = tool_cfg->ref_frame_mvs_present;
655
0
  seq->order_hint_info.enable_ref_frame_mvs &=
656
0
      seq->order_hint_info.enable_order_hint;
657
0
  seq->enable_superres = oxcf->superres_cfg.enable_superres;
658
0
  seq->enable_cdef = tool_cfg->cdef_control != CDEF_NONE ? 1 : 0;
659
0
  seq->enable_restoration = tool_cfg->enable_restoration;
660
0
  seq->enable_warped_motion = oxcf->motion_mode_cfg.enable_warped_motion;
661
0
  seq->enable_interintra_compound = tool_cfg->enable_interintra_comp;
662
0
  seq->enable_masked_compound = oxcf->comp_type_cfg.enable_masked_comp;
663
0
  seq->enable_intra_edge_filter = oxcf->intra_mode_cfg.enable_intra_edge_filter;
664
0
  seq->enable_filter_intra = oxcf->intra_mode_cfg.enable_filter_intra;
665
666
0
  set_bitstream_level_tier(ppi, frm_dim_cfg->width, frm_dim_cfg->height,
667
0
                           oxcf->input_cfg.init_framerate);
668
0
  av1_set_svc_seq_params(ppi);
669
0
}
670
671
static void init_config_sequence(struct AV1_PRIMARY *ppi,
672
0
                                 const AV1EncoderConfig *oxcf) {
673
0
  SequenceHeader *const seq_params = &ppi->seq_params;
674
0
  const DecoderModelCfg *const dec_model_cfg = &oxcf->dec_model_cfg;
675
0
  const ColorCfg *const color_cfg = &oxcf->color_cfg;
676
677
0
  ppi->use_svc = 0;
678
0
  ppi->number_spatial_layers = 1;
679
0
  ppi->number_temporal_layers = 1;
680
681
0
  seq_params->profile = oxcf->profile;
682
0
  seq_params->bit_depth = oxcf->tool_cfg.bit_depth;
683
0
  seq_params->use_highbitdepth = oxcf->use_highbitdepth;
684
0
  seq_params->color_primaries = color_cfg->color_primaries;
685
0
  seq_params->transfer_characteristics = color_cfg->transfer_characteristics;
686
0
  seq_params->matrix_coefficients = color_cfg->matrix_coefficients;
687
0
  seq_params->monochrome = oxcf->tool_cfg.enable_monochrome;
688
0
  seq_params->chroma_sample_position = color_cfg->chroma_sample_position;
689
0
  seq_params->color_range = color_cfg->color_range;
690
0
  seq_params->timing_info_present = dec_model_cfg->timing_info_present;
691
0
  seq_params->timing_info.num_units_in_display_tick =
692
0
      dec_model_cfg->timing_info.num_units_in_display_tick;
693
0
  seq_params->timing_info.time_scale = dec_model_cfg->timing_info.time_scale;
694
0
  seq_params->timing_info.equal_picture_interval =
695
0
      dec_model_cfg->timing_info.equal_picture_interval;
696
0
  seq_params->timing_info.num_ticks_per_picture =
697
0
      dec_model_cfg->timing_info.num_ticks_per_picture;
698
699
0
  seq_params->display_model_info_present_flag =
700
0
      dec_model_cfg->display_model_info_present_flag;
701
0
  seq_params->decoder_model_info_present_flag =
702
0
      dec_model_cfg->decoder_model_info_present_flag;
703
0
  if (dec_model_cfg->decoder_model_info_present_flag) {
704
    // set the decoder model parameters in schedule mode
705
0
    seq_params->decoder_model_info.num_units_in_decoding_tick =
706
0
        dec_model_cfg->num_units_in_decoding_tick;
707
0
    ppi->buffer_removal_time_present = 1;
708
0
    av1_set_aom_dec_model_info(&seq_params->decoder_model_info);
709
0
    av1_set_dec_model_op_parameters(&seq_params->op_params[0]);
710
0
  } else if (seq_params->timing_info_present &&
711
0
             seq_params->timing_info.equal_picture_interval &&
712
0
             !seq_params->decoder_model_info_present_flag) {
713
    // set the decoder model parameters in resource availability mode
714
0
    av1_set_resource_availability_parameters(&seq_params->op_params[0]);
715
0
  } else {
716
0
    seq_params->op_params[0].initial_display_delay =
717
0
        10;  // Default value (not signaled)
718
0
  }
719
720
0
  if (seq_params->monochrome) {
721
0
    seq_params->subsampling_x = 1;
722
0
    seq_params->subsampling_y = 1;
723
0
  } else if (seq_params->color_primaries == AOM_CICP_CP_BT_709 &&
724
0
             seq_params->transfer_characteristics == AOM_CICP_TC_SRGB &&
725
0
             seq_params->matrix_coefficients == AOM_CICP_MC_IDENTITY) {
726
0
    seq_params->subsampling_x = 0;
727
0
    seq_params->subsampling_y = 0;
728
0
  } else {
729
0
    if (seq_params->profile == 0) {
730
0
      seq_params->subsampling_x = 1;
731
0
      seq_params->subsampling_y = 1;
732
0
    } else if (seq_params->profile == 1) {
733
0
      seq_params->subsampling_x = 0;
734
0
      seq_params->subsampling_y = 0;
735
0
    } else {
736
0
      if (seq_params->bit_depth == AOM_BITS_12) {
737
0
        seq_params->subsampling_x = oxcf->input_cfg.chroma_subsampling_x;
738
0
        seq_params->subsampling_y = oxcf->input_cfg.chroma_subsampling_y;
739
0
      } else {
740
0
        seq_params->subsampling_x = 1;
741
0
        seq_params->subsampling_y = 0;
742
0
      }
743
0
    }
744
0
  }
745
0
  av1_change_config_seq(ppi, oxcf, NULL);
746
0
}
747
748
0
static void init_config(struct AV1_COMP *cpi, const AV1EncoderConfig *oxcf) {
749
0
  AV1_COMMON *const cm = &cpi->common;
750
0
  ResizePendingParams *resize_pending_params = &cpi->resize_pending_params;
751
752
0
  cpi->oxcf = *oxcf;
753
0
  cpi->framerate = oxcf->input_cfg.init_framerate;
754
755
0
  cm->width = oxcf->frm_dim_cfg.width;
756
0
  cm->height = oxcf->frm_dim_cfg.height;
757
0
  cpi->is_dropped_frame = false;
758
759
0
  alloc_compressor_data(cpi);
760
761
0
  cpi->data_alloc_width = cm->width;
762
0
  cpi->data_alloc_height = cm->height;
763
0
  cpi->frame_size_related_setup_done = false;
764
765
  // Single thread case: use counts in common.
766
0
  cpi->td.counts = &cpi->counts;
767
768
  // Init SVC parameters.
769
0
  cpi->svc.number_spatial_layers = 1;
770
0
  cpi->svc.number_temporal_layers = 1;
771
0
  cm->spatial_layer_id = 0;
772
0
  cm->temporal_layer_id = 0;
773
0
  cpi->src_sad_blk_alloc_size = 0;
774
  // Init rtc_ref parameters.
775
0
  cpi->ppi->rtc_ref.set_ref_frame_config = 0;
776
0
  cpi->ppi->rtc_ref.non_reference_frame = 0;
777
0
  cpi->ppi->rtc_ref.ref_frame_comp[0] = 0;
778
0
  cpi->ppi->rtc_ref.ref_frame_comp[1] = 0;
779
0
  cpi->ppi->rtc_ref.ref_frame_comp[2] = 0;
780
781
  // change includes all joint functionality
782
0
  av1_change_config(cpi, oxcf, false);
783
784
0
  cpi->ref_frame_flags = 0;
785
786
  // Reset resize pending flags
787
0
  resize_pending_params->width = 0;
788
0
  resize_pending_params->height = 0;
789
790
  // Setup identity scale factor
791
0
  av1_setup_scale_factors_for_frame(&cm->sf_identity, 1, 1, 1, 1);
792
793
0
  init_buffer_indices(&cpi->force_intpel_info, cm->remapped_ref_idx);
794
795
0
  av1_noise_estimate_init(&cpi->noise_estimate, cm->width, cm->height);
796
0
}
797
798
void av1_change_config_seq(struct AV1_PRIMARY *ppi,
799
                           const AV1EncoderConfig *oxcf,
800
0
                           bool *is_sb_size_changed) {
801
0
  SequenceHeader *const seq_params = &ppi->seq_params;
802
0
  const FrameDimensionCfg *const frm_dim_cfg = &oxcf->frm_dim_cfg;
803
0
  const DecoderModelCfg *const dec_model_cfg = &oxcf->dec_model_cfg;
804
0
  const ColorCfg *const color_cfg = &oxcf->color_cfg;
805
806
0
  if (seq_params->profile != oxcf->profile) seq_params->profile = oxcf->profile;
807
0
  seq_params->bit_depth = oxcf->tool_cfg.bit_depth;
808
0
  seq_params->color_primaries = color_cfg->color_primaries;
809
0
  seq_params->transfer_characteristics = color_cfg->transfer_characteristics;
810
0
  seq_params->matrix_coefficients = color_cfg->matrix_coefficients;
811
0
  seq_params->monochrome = oxcf->tool_cfg.enable_monochrome;
812
0
  seq_params->chroma_sample_position = color_cfg->chroma_sample_position;
813
0
  seq_params->color_range = color_cfg->color_range;
814
815
0
  assert(IMPLIES(seq_params->profile <= PROFILE_1,
816
0
                 seq_params->bit_depth <= AOM_BITS_10));
817
818
0
  seq_params->timing_info_present = dec_model_cfg->timing_info_present;
819
0
  seq_params->timing_info.num_units_in_display_tick =
820
0
      dec_model_cfg->timing_info.num_units_in_display_tick;
821
0
  seq_params->timing_info.time_scale = dec_model_cfg->timing_info.time_scale;
822
0
  seq_params->timing_info.equal_picture_interval =
823
0
      dec_model_cfg->timing_info.equal_picture_interval;
824
0
  seq_params->timing_info.num_ticks_per_picture =
825
0
      dec_model_cfg->timing_info.num_ticks_per_picture;
826
827
0
  seq_params->display_model_info_present_flag =
828
0
      dec_model_cfg->display_model_info_present_flag;
829
0
  seq_params->decoder_model_info_present_flag =
830
0
      dec_model_cfg->decoder_model_info_present_flag;
831
0
  if (dec_model_cfg->decoder_model_info_present_flag) {
832
    // set the decoder model parameters in schedule mode
833
0
    seq_params->decoder_model_info.num_units_in_decoding_tick =
834
0
        dec_model_cfg->num_units_in_decoding_tick;
835
0
    ppi->buffer_removal_time_present = 1;
836
0
    av1_set_aom_dec_model_info(&seq_params->decoder_model_info);
837
0
    av1_set_dec_model_op_parameters(&seq_params->op_params[0]);
838
0
  } else if (seq_params->timing_info_present &&
839
0
             seq_params->timing_info.equal_picture_interval &&
840
0
             !seq_params->decoder_model_info_present_flag) {
841
    // set the decoder model parameters in resource availability mode
842
0
    av1_set_resource_availability_parameters(&seq_params->op_params[0]);
843
0
  } else {
844
0
    seq_params->op_params[0].initial_display_delay =
845
0
        10;  // Default value (not signaled)
846
0
  }
847
848
0
#if !CONFIG_REALTIME_ONLY
849
0
  av1_update_film_grain_parameters_seq(ppi, oxcf);
850
0
#endif
851
852
0
  int sb_size = seq_params->sb_size;
853
  // Superblock size should not be updated after the first key frame.
854
0
  if (!ppi->seq_params_locked) {
855
0
    set_sb_size(seq_params, av1_select_sb_size(oxcf, frm_dim_cfg->width,
856
0
                                               frm_dim_cfg->height,
857
0
                                               ppi->number_spatial_layers));
858
0
    for (int i = 0; i < MAX_NUM_OPERATING_POINTS; ++i)
859
0
      seq_params->tier[i] = (oxcf->tier_mask >> i) & 1;
860
0
  }
861
0
  if (is_sb_size_changed != NULL && sb_size != seq_params->sb_size)
862
0
    *is_sb_size_changed = true;
863
864
  // Init sequence level coding tools
865
  // This should not be called after the first key frame.
866
  // Note that for SVC encoding the sequence parameters
867
  // (operating_points_cnt_minus_1, operating_point_idc[],
868
  // has_nonzero_operating_point_idc) should be updated whenever the
869
  // number of layers is changed. This is done in the
870
  // ctrl_set_svc_params().
871
0
  if (!ppi->seq_params_locked) {
872
0
    seq_params->operating_points_cnt_minus_1 =
873
0
        (ppi->number_spatial_layers > 1 || ppi->number_temporal_layers > 1)
874
0
            ? ppi->number_spatial_layers * ppi->number_temporal_layers - 1
875
0
            : 0;
876
0
    init_seq_coding_tools(ppi, oxcf,
877
0
                          ppi->use_svc || ppi->rtc_ref.set_ref_frame_config);
878
0
  }
879
0
  seq_params->timing_info_present &= !seq_params->reduced_still_picture_hdr;
880
881
0
#if CONFIG_AV1_HIGHBITDEPTH
882
0
  highbd_set_var_fns(ppi);
883
0
#endif
884
885
0
  set_primary_rc_buffer_sizes(oxcf, ppi);
886
0
}
887
888
void av1_change_config(struct AV1_COMP *cpi, const AV1EncoderConfig *oxcf,
889
0
                       bool is_sb_size_changed) {
890
0
  AV1_COMMON *const cm = &cpi->common;
891
0
  SequenceHeader *const seq_params = cm->seq_params;
892
0
  RATE_CONTROL *const rc = &cpi->rc;
893
0
  PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
894
0
  MACROBLOCK *const x = &cpi->td.mb;
895
0
  AV1LevelParams *const level_params = &cpi->ppi->level_params;
896
0
  RefreshFrameInfo *const refresh_frame = &cpi->refresh_frame;
897
0
  const FrameDimensionCfg *const frm_dim_cfg = &cpi->oxcf.frm_dim_cfg;
898
0
  const RateControlCfg *const rc_cfg = &oxcf->rc_cfg;
899
0
  FeatureFlags *const features = &cm->features;
900
0
  const int is_highbitdepth = seq_params->use_highbitdepth;
901
902
  // in case of LAP, lag in frames is set according to number of lap buffers
903
  // calculated at init time. This stores and restores LAP's lag in frames to
904
  // prevent override by new cfg.
905
0
  int lap_lag_in_frames = -1;
906
0
  if (cpi->ppi->lap_enabled && cpi->compressor_stage == LAP_STAGE) {
907
0
    lap_lag_in_frames = cpi->oxcf.gf_cfg.lag_in_frames;
908
0
  }
909
910
0
  cpi->oxcf = *oxcf;
911
912
0
#if !CONFIG_REALTIME_ONLY
913
0
  av1_update_film_grain_parameters(cpi, oxcf);
914
0
#endif
915
916
  // When user provides superres_mode = AOM_SUPERRES_AUTO, we still initialize
917
  // superres mode for current encoding = AOM_SUPERRES_NONE. This is to ensure
918
  // that any analysis (e.g. TPL) happening outside the main encoding loop still
919
  // happens at full resolution.
920
  // This value will later be set appropriately just before main encoding loop.
921
0
  cpi->superres_mode = oxcf->superres_cfg.superres_mode == AOM_SUPERRES_AUTO
922
0
                           ? AOM_SUPERRES_NONE
923
0
                           : oxcf->superres_cfg.superres_mode;  // default
924
0
  x->e_mbd.bd = (int)seq_params->bit_depth;
925
0
  x->e_mbd.global_motion = cm->global_motion;
926
927
0
  memcpy(level_params->target_seq_level_idx, cpi->oxcf.target_seq_level_idx,
928
0
         sizeof(level_params->target_seq_level_idx));
929
0
  level_params->keep_level_stats = 0;
930
0
  for (int i = 0; i < MAX_NUM_OPERATING_POINTS; ++i) {
931
0
    if (level_params->target_seq_level_idx[i] < SEQ_LEVELS ||
932
0
        level_params->target_seq_level_idx[i] == SEQ_LEVEL_KEEP_STATS) {
933
0
      level_params->keep_level_stats |= 1u << i;
934
0
      if (!level_params->level_info[i]) {
935
0
        CHECK_MEM_ERROR(cm, level_params->level_info[i],
936
0
                        aom_calloc(1, sizeof(*level_params->level_info[i])));
937
0
      }
938
0
    }
939
0
  }
940
941
  // TODO(huisu@): level targeting currently only works for the 0th operating
942
  // point, so scalable coding is not supported yet.
943
0
  if (level_params->target_seq_level_idx[0] < SEQ_LEVELS) {
944
    // Adjust encoder config in order to meet target level.
945
0
    config_target_level(cpi, level_params->target_seq_level_idx[0],
946
0
                        seq_params->tier[0]);
947
0
  }
948
949
0
  if (has_no_stats_stage(cpi) && (rc_cfg->mode == AOM_Q)) {
950
0
    p_rc->baseline_gf_interval = FIXED_GF_INTERVAL;
951
0
  } else if (!is_one_pass_rt_params(cpi) ||
952
0
             cm->current_frame.frame_number == 0) {
953
    // For rtc mode: logic for setting the baseline_gf_interval is done
954
    // in av1_get_one_pass_rt_params(), and it should not be reset here in
955
    // change_config(), unless after init_config (first frame).
956
0
    p_rc->baseline_gf_interval = (MIN_GF_INTERVAL + MAX_GF_INTERVAL) / 2;
957
0
  }
958
959
0
  refresh_frame->golden_frame = false;
960
0
  refresh_frame->bwd_ref_frame = false;
961
962
0
  features->refresh_frame_context =
963
0
      (oxcf->tool_cfg.frame_parallel_decoding_mode)
964
0
          ? REFRESH_FRAME_CONTEXT_DISABLED
965
0
          : REFRESH_FRAME_CONTEXT_BACKWARD;
966
0
  if (oxcf->tile_cfg.enable_large_scale_tile)
967
0
    features->refresh_frame_context = REFRESH_FRAME_CONTEXT_DISABLED;
968
969
0
  if (x->palette_buffer == NULL) {
970
0
    CHECK_MEM_ERROR(cm, x->palette_buffer,
971
0
                    aom_memalign(16, sizeof(*x->palette_buffer)));
972
0
  }
973
974
0
  if (x->tmp_conv_dst == NULL) {
975
0
    CHECK_MEM_ERROR(
976
0
        cm, x->tmp_conv_dst,
977
0
        aom_memalign(32, MAX_SB_SIZE * MAX_SB_SIZE * sizeof(*x->tmp_conv_dst)));
978
0
    x->e_mbd.tmp_conv_dst = x->tmp_conv_dst;
979
0
  }
980
  // The buffers 'tmp_pred_bufs[]' and 'comp_rd_buffer' are used in inter frames
981
  // to store intermediate inter mode prediction results and are not required
982
  // for allintra encoding mode. Hence, the memory allocations for these buffers
983
  // are avoided for allintra encoding mode.
984
0
  if (cpi->oxcf.kf_cfg.key_freq_max != 0) {
985
0
    if (x->comp_rd_buffer.pred0 == NULL)
986
0
      alloc_compound_type_rd_buffers(cm->error, &x->comp_rd_buffer);
987
988
0
    for (int i = 0; i < 2; ++i) {
989
0
      if (x->tmp_pred_bufs[i] == NULL) {
990
0
        CHECK_MEM_ERROR(cm, x->tmp_pred_bufs[i],
991
0
                        aom_memalign(32, 2 * MAX_MB_PLANE * MAX_SB_SQUARE *
992
0
                                             sizeof(*x->tmp_pred_bufs[i])));
993
0
        x->e_mbd.tmp_obmc_bufs[i] = x->tmp_pred_bufs[i];
994
0
      }
995
0
    }
996
0
  }
997
998
0
  if (x->upsample_pred == NULL) {
999
    // The buffer 'upsampled_pred' is used to store the output of horizontal
1000
    // filtering in aom_(highbd_)upsampled_pred() function. As the length of the
1001
    // interpolation filter used is SUBPEL_TAPS a buffer size of (MAX_SB_SIZE +
1002
    // SUBPEL_TAPS) * MAX_SB_SIZE is allocated.
1003
0
    CHECK_MEM_ERROR(
1004
0
        cm, x->upsample_pred,
1005
0
        aom_memalign(16, (1 + is_highbitdepth) * (MAX_SB_SIZE + SUBPEL_TAPS) *
1006
0
                             MAX_SB_SIZE * sizeof(*x->upsample_pred)));
1007
0
    x->e_mbd.tmp_upsample_pred = x->upsample_pred;
1008
0
  }
1009
1010
0
  av1_reset_segment_features(cm);
1011
1012
0
  av1_set_high_precision_mv(cpi, 1, 0);
1013
1014
  // Under a configuration change, where maximum_buffer_size may change,
1015
  // keep buffer level clipped to the maximum allowed buffer size.
1016
0
  p_rc->bits_off_target =
1017
0
      AOMMIN(p_rc->bits_off_target, p_rc->maximum_buffer_size);
1018
0
  p_rc->buffer_level = AOMMIN(p_rc->buffer_level, p_rc->maximum_buffer_size);
1019
1020
  // Set up frame rate and related parameters rate control values.
1021
0
  av1_new_framerate(cpi, cpi->framerate);
1022
1023
  // Set absolute upper and lower quality limits
1024
0
  rc->worst_quality = rc_cfg->worst_allowed_q;
1025
0
  rc->best_quality = rc_cfg->best_allowed_q;
1026
1027
  // If lossless has been requested make sure average Q accumulators are reset.
1028
0
  if (is_lossless_requested(&cpi->oxcf.rc_cfg)) {
1029
0
    int i;
1030
0
    for (i = 0; i < FRAME_TYPES; ++i) {
1031
0
      p_rc->avg_frame_qindex[i] = 0;
1032
0
    }
1033
0
  }
1034
1035
0
  features->interp_filter =
1036
0
      oxcf->tile_cfg.enable_large_scale_tile ? EIGHTTAP_REGULAR : SWITCHABLE;
1037
0
  features->switchable_motion_mode = is_switchable_motion_mode_allowed(
1038
0
      features->allow_warped_motion, oxcf->motion_mode_cfg.enable_obmc);
1039
1040
0
  if (frm_dim_cfg->render_width > 0 && frm_dim_cfg->render_height > 0) {
1041
0
    cm->render_width = frm_dim_cfg->render_width;
1042
0
    cm->render_height = frm_dim_cfg->render_height;
1043
0
  } else {
1044
0
    cm->render_width = frm_dim_cfg->width;
1045
0
    cm->render_height = frm_dim_cfg->height;
1046
0
  }
1047
1048
0
  int last_width = cm->width;
1049
0
  int last_height = cm->height;
1050
0
  cm->width = frm_dim_cfg->width;
1051
0
  cm->height = frm_dim_cfg->height;
1052
1053
0
  if (cm->width > cpi->data_alloc_width ||
1054
0
      cm->height > cpi->data_alloc_height || is_sb_size_changed) {
1055
0
    av1_free_context_buffers(cm);
1056
0
    av1_free_shared_coeff_buffer(&cpi->td.shared_coeff_buf);
1057
0
    av1_free_sms_tree(&cpi->td);
1058
0
    av1_free_pmc(cpi->td.firstpass_ctx, av1_num_planes(cm));
1059
0
    cpi->td.firstpass_ctx = NULL;
1060
0
    alloc_compressor_data(cpi);
1061
0
    realloc_segmentation_maps(cpi);
1062
0
    cpi->data_alloc_width = cm->width;
1063
0
    cpi->data_alloc_height = cm->height;
1064
0
    cpi->frame_size_related_setup_done = false;
1065
0
  }
1066
0
  av1_update_frame_size(cpi);
1067
1068
0
  if (cm->width != last_width || cm->height != last_height) {
1069
0
    if (cpi->oxcf.q_cfg.aq_mode == CYCLIC_REFRESH_AQ) {
1070
0
      int mi_rows = cpi->common.mi_params.mi_rows;
1071
0
      int mi_cols = cpi->common.mi_params.mi_cols;
1072
0
      aom_free(cpi->cyclic_refresh->map);
1073
0
      CHECK_MEM_ERROR(
1074
0
          cm, cpi->cyclic_refresh->map,
1075
0
          aom_calloc(mi_rows * mi_cols, sizeof(*cpi->cyclic_refresh->map)));
1076
0
      if (cpi->svc.number_spatial_layers > 1) {
1077
0
        for (int sl = 0; sl < cpi->svc.number_spatial_layers; ++sl) {
1078
0
          const int layer =
1079
0
              LAYER_IDS_TO_IDX(sl, 0, cpi->svc.number_temporal_layers);
1080
0
          LAYER_CONTEXT *const lc = &cpi->svc.layer_context[layer];
1081
0
          lc->sb_index = 0;
1082
0
          lc->actual_num_seg1_blocks = 0;
1083
0
          lc->actual_num_seg2_blocks = 0;
1084
0
          lc->counter_encode_maxq_scene_change = 0;
1085
0
          aom_free(lc->map);
1086
0
          CHECK_MEM_ERROR(cm, lc->map,
1087
0
                          aom_calloc(mi_rows * mi_cols, sizeof(*lc->map)));
1088
0
        }
1089
0
      }
1090
0
    }
1091
0
  }
1092
1093
0
  rc->is_src_frame_alt_ref = 0;
1094
1095
0
  if (!cpi->ppi->rtc_ref.set_ref_frame_config)
1096
0
    cpi->ext_flags.refresh_frame.update_pending = 0;
1097
0
  cpi->ext_flags.refresh_frame_context_pending = 0;
1098
1099
0
  if (cpi->ppi->use_svc)
1100
0
    av1_update_layer_context_change_config(cpi, rc_cfg->target_bandwidth);
1101
1102
0
  check_reset_rc_flag(cpi);
1103
1104
  // restore the value of lag_in_frame for LAP stage.
1105
0
  if (lap_lag_in_frames != -1) {
1106
0
    cpi->oxcf.gf_cfg.lag_in_frames = lap_lag_in_frames;
1107
0
  }
1108
1109
#if CONFIG_REALTIME_ONLY
1110
  assert(!oxcf->tool_cfg.enable_global_motion);
1111
  cpi->alloc_pyramid = false;
1112
#else
1113
0
  cpi->alloc_pyramid = oxcf->tool_cfg.enable_global_motion;
1114
0
#endif  // CONFIG_REALTIME_ONLY
1115
0
}
1116
1117
0
static inline void init_frame_index_set(FRAME_INDEX_SET *frame_index_set) {
1118
0
  frame_index_set->show_frame_count = 0;
1119
0
}
1120
1121
0
static inline void update_counters_for_show_frame(AV1_COMP *const cpi) {
1122
0
  assert(cpi->common.show_frame);
1123
0
  cpi->frame_index_set.show_frame_count++;
1124
0
  cpi->common.current_frame.frame_number++;
1125
0
}
1126
1127
AV1_PRIMARY *av1_create_primary_compressor(
1128
    struct aom_codec_pkt_list *pkt_list_head, int num_lap_buffers,
1129
0
    const AV1EncoderConfig *oxcf) {
1130
0
  AV1_PRIMARY *volatile const ppi = aom_memalign(32, sizeof(AV1_PRIMARY));
1131
0
  if (!ppi) return NULL;
1132
0
  av1_zero(*ppi);
1133
1134
  // The jmp_buf is valid only for the duration of the function that calls
1135
  // setjmp(). Therefore, this function must reset the 'setjmp' field to 0
1136
  // before it returns.
1137
0
  if (setjmp(ppi->error.jmp)) {
1138
0
    ppi->error.setjmp = 0;
1139
0
    av1_remove_primary_compressor(ppi);
1140
0
    return 0;
1141
0
  }
1142
0
  ppi->error.setjmp = 1;
1143
1144
0
  ppi->seq_params_locked = 0;
1145
0
  ppi->lap_enabled = num_lap_buffers > 0;
1146
0
  ppi->output_pkt_list = pkt_list_head;
1147
0
  ppi->b_calculate_psnr = CONFIG_INTERNAL_STATS;
1148
0
  ppi->frames_left = oxcf->input_cfg.limit;
1149
0
  ppi->num_fp_contexts = 1;
1150
1151
0
  init_config_sequence(ppi, oxcf);
1152
1153
#if CONFIG_ENTROPY_STATS
1154
  av1_zero(ppi->aggregate_fc);
1155
#endif  // CONFIG_ENTROPY_STATS
1156
1157
0
  av1_primary_rc_init(oxcf, &ppi->p_rc);
1158
1159
  // For two pass and lag_in_frames > 33 in LAP.
1160
0
  ppi->p_rc.enable_scenecut_detection = ENABLE_SCENECUT_MODE_2;
1161
0
  if (ppi->lap_enabled) {
1162
0
    if ((num_lap_buffers <
1163
0
         (MAX_GF_LENGTH_LAP + SCENE_CUT_KEY_TEST_INTERVAL + 1)) &&
1164
0
        num_lap_buffers >= (MAX_GF_LENGTH_LAP + 3)) {
1165
      /*
1166
       * For lag in frames >= 19 and <33, enable scenecut
1167
       * with limited future frame prediction.
1168
       */
1169
0
      ppi->p_rc.enable_scenecut_detection = ENABLE_SCENECUT_MODE_1;
1170
0
    } else if (num_lap_buffers < (MAX_GF_LENGTH_LAP + 3)) {
1171
      // Disable scenecut when lag_in_frames < 19.
1172
0
      ppi->p_rc.enable_scenecut_detection = DISABLE_SCENECUT;
1173
0
    }
1174
0
  }
1175
1176
0
#define BFP(BT, SDF, SDAF, VF, SVF, SVAF, SDX4DF, SDX3DF) \
1177
0
  ppi->fn_ptr[BT].sdf = SDF;                              \
1178
0
  ppi->fn_ptr[BT].sdaf = SDAF;                            \
1179
0
  ppi->fn_ptr[BT].vf = VF;                                \
1180
0
  ppi->fn_ptr[BT].svf = SVF;                              \
1181
0
  ppi->fn_ptr[BT].svaf = SVAF;                            \
1182
0
  ppi->fn_ptr[BT].sdx4df = SDX4DF;                        \
1183
0
  ppi->fn_ptr[BT].sdx3df = SDX3DF;
1184
1185
// Realtime mode doesn't use 4x rectangular blocks.
1186
0
#if !CONFIG_REALTIME_ONLY
1187
  // sdaf (used in compound prediction, get_mvpred_compound_sad()) is unused
1188
  // for 4xN and Nx4 blocks.
1189
0
  BFP(BLOCK_4X16, aom_sad4x16, /*SDAF=*/NULL, aom_variance4x16,
1190
0
      aom_sub_pixel_variance4x16, aom_sub_pixel_avg_variance4x16,
1191
0
      aom_sad4x16x4d, aom_sad4x16x3d)
1192
1193
  // sdaf (used in compound prediction, get_mvpred_compound_sad()) is unused
1194
  // for 4xN and Nx4 blocks.
1195
0
  BFP(BLOCK_16X4, aom_sad16x4, /*SDAF=*/NULL, aom_variance16x4,
1196
0
      aom_sub_pixel_variance16x4, aom_sub_pixel_avg_variance16x4,
1197
0
      aom_sad16x4x4d, aom_sad16x4x3d)
1198
1199
0
  BFP(BLOCK_8X32, aom_sad8x32, aom_sad8x32_avg, aom_variance8x32,
1200
0
      aom_sub_pixel_variance8x32, aom_sub_pixel_avg_variance8x32,
1201
0
      aom_sad8x32x4d, aom_sad8x32x3d)
1202
1203
0
  BFP(BLOCK_32X8, aom_sad32x8, aom_sad32x8_avg, aom_variance32x8,
1204
0
      aom_sub_pixel_variance32x8, aom_sub_pixel_avg_variance32x8,
1205
0
      aom_sad32x8x4d, aom_sad32x8x3d)
1206
1207
0
  BFP(BLOCK_16X64, aom_sad16x64, aom_sad16x64_avg, aom_variance16x64,
1208
0
      aom_sub_pixel_variance16x64, aom_sub_pixel_avg_variance16x64,
1209
0
      aom_sad16x64x4d, aom_sad16x64x3d)
1210
1211
0
  BFP(BLOCK_64X16, aom_sad64x16, aom_sad64x16_avg, aom_variance64x16,
1212
0
      aom_sub_pixel_variance64x16, aom_sub_pixel_avg_variance64x16,
1213
0
      aom_sad64x16x4d, aom_sad64x16x3d)
1214
0
#endif  // !CONFIG_REALTIME_ONLY
1215
1216
0
  BFP(BLOCK_128X128, aom_sad128x128, aom_sad128x128_avg, aom_variance128x128,
1217
0
      aom_sub_pixel_variance128x128, aom_sub_pixel_avg_variance128x128,
1218
0
      aom_sad128x128x4d, aom_sad128x128x3d)
1219
1220
0
  BFP(BLOCK_128X64, aom_sad128x64, aom_sad128x64_avg, aom_variance128x64,
1221
0
      aom_sub_pixel_variance128x64, aom_sub_pixel_avg_variance128x64,
1222
0
      aom_sad128x64x4d, aom_sad128x64x3d)
1223
1224
0
  BFP(BLOCK_64X128, aom_sad64x128, aom_sad64x128_avg, aom_variance64x128,
1225
0
      aom_sub_pixel_variance64x128, aom_sub_pixel_avg_variance64x128,
1226
0
      aom_sad64x128x4d, aom_sad64x128x3d)
1227
1228
0
  BFP(BLOCK_32X16, aom_sad32x16, aom_sad32x16_avg, aom_variance32x16,
1229
0
      aom_sub_pixel_variance32x16, aom_sub_pixel_avg_variance32x16,
1230
0
      aom_sad32x16x4d, aom_sad32x16x3d)
1231
1232
0
  BFP(BLOCK_16X32, aom_sad16x32, aom_sad16x32_avg, aom_variance16x32,
1233
0
      aom_sub_pixel_variance16x32, aom_sub_pixel_avg_variance16x32,
1234
0
      aom_sad16x32x4d, aom_sad16x32x3d)
1235
1236
0
  BFP(BLOCK_64X32, aom_sad64x32, aom_sad64x32_avg, aom_variance64x32,
1237
0
      aom_sub_pixel_variance64x32, aom_sub_pixel_avg_variance64x32,
1238
0
      aom_sad64x32x4d, aom_sad64x32x3d)
1239
1240
0
  BFP(BLOCK_32X64, aom_sad32x64, aom_sad32x64_avg, aom_variance32x64,
1241
0
      aom_sub_pixel_variance32x64, aom_sub_pixel_avg_variance32x64,
1242
0
      aom_sad32x64x4d, aom_sad32x64x3d)
1243
1244
0
  BFP(BLOCK_32X32, aom_sad32x32, aom_sad32x32_avg, aom_variance32x32,
1245
0
      aom_sub_pixel_variance32x32, aom_sub_pixel_avg_variance32x32,
1246
0
      aom_sad32x32x4d, aom_sad32x32x3d)
1247
1248
0
  BFP(BLOCK_64X64, aom_sad64x64, aom_sad64x64_avg, aom_variance64x64,
1249
0
      aom_sub_pixel_variance64x64, aom_sub_pixel_avg_variance64x64,
1250
0
      aom_sad64x64x4d, aom_sad64x64x3d)
1251
1252
0
  BFP(BLOCK_16X16, aom_sad16x16, aom_sad16x16_avg, aom_variance16x16,
1253
0
      aom_sub_pixel_variance16x16, aom_sub_pixel_avg_variance16x16,
1254
0
      aom_sad16x16x4d, aom_sad16x16x3d)
1255
1256
0
  BFP(BLOCK_16X8, aom_sad16x8, aom_sad16x8_avg, aom_variance16x8,
1257
0
      aom_sub_pixel_variance16x8, aom_sub_pixel_avg_variance16x8,
1258
0
      aom_sad16x8x4d, aom_sad16x8x3d)
1259
1260
0
  BFP(BLOCK_8X16, aom_sad8x16, aom_sad8x16_avg, aom_variance8x16,
1261
0
      aom_sub_pixel_variance8x16, aom_sub_pixel_avg_variance8x16,
1262
0
      aom_sad8x16x4d, aom_sad8x16x3d)
1263
1264
0
  BFP(BLOCK_8X8, aom_sad8x8, aom_sad8x8_avg, aom_variance8x8,
1265
0
      aom_sub_pixel_variance8x8, aom_sub_pixel_avg_variance8x8, aom_sad8x8x4d,
1266
0
      aom_sad8x8x3d)
1267
1268
  // sdaf (used in compound prediction, get_mvpred_compound_sad()) is unused
1269
  // for 4xN and Nx4 blocks.
1270
0
  BFP(BLOCK_8X4, aom_sad8x4, /*SDAF=*/NULL, aom_variance8x4,
1271
0
      aom_sub_pixel_variance8x4, aom_sub_pixel_avg_variance8x4, aom_sad8x4x4d,
1272
0
      aom_sad8x4x3d)
1273
1274
  // sdaf (used in compound prediction, get_mvpred_compound_sad()) is unused
1275
  // for 4xN and Nx4 blocks.
1276
0
  BFP(BLOCK_4X8, aom_sad4x8, /*SDAF=*/NULL, aom_variance4x8,
1277
0
      aom_sub_pixel_variance4x8, aom_sub_pixel_avg_variance4x8, aom_sad4x8x4d,
1278
0
      aom_sad4x8x3d)
1279
1280
  // sdaf (used in compound prediction, get_mvpred_compound_sad()) is unused
1281
  // for 4xN and Nx4 blocks.
1282
0
  BFP(BLOCK_4X4, aom_sad4x4, /*SDAF=*/NULL, aom_variance4x4,
1283
0
      aom_sub_pixel_variance4x4, aom_sub_pixel_avg_variance4x4, aom_sad4x4x4d,
1284
0
      aom_sad4x4x3d)
1285
1286
0
#if !CONFIG_REALTIME_ONLY
1287
0
#define OBFP(BT, OSDF, OVF, OSVF) \
1288
0
  ppi->fn_ptr[BT].osdf = OSDF;    \
1289
0
  ppi->fn_ptr[BT].ovf = OVF;      \
1290
0
  ppi->fn_ptr[BT].osvf = OSVF;
1291
1292
0
  OBFP(BLOCK_128X128, aom_obmc_sad128x128, aom_obmc_variance128x128,
1293
0
       aom_obmc_sub_pixel_variance128x128)
1294
0
  OBFP(BLOCK_128X64, aom_obmc_sad128x64, aom_obmc_variance128x64,
1295
0
       aom_obmc_sub_pixel_variance128x64)
1296
0
  OBFP(BLOCK_64X128, aom_obmc_sad64x128, aom_obmc_variance64x128,
1297
0
       aom_obmc_sub_pixel_variance64x128)
1298
0
  OBFP(BLOCK_64X64, aom_obmc_sad64x64, aom_obmc_variance64x64,
1299
0
       aom_obmc_sub_pixel_variance64x64)
1300
0
  OBFP(BLOCK_64X32, aom_obmc_sad64x32, aom_obmc_variance64x32,
1301
0
       aom_obmc_sub_pixel_variance64x32)
1302
0
  OBFP(BLOCK_32X64, aom_obmc_sad32x64, aom_obmc_variance32x64,
1303
0
       aom_obmc_sub_pixel_variance32x64)
1304
0
  OBFP(BLOCK_32X32, aom_obmc_sad32x32, aom_obmc_variance32x32,
1305
0
       aom_obmc_sub_pixel_variance32x32)
1306
0
  OBFP(BLOCK_32X16, aom_obmc_sad32x16, aom_obmc_variance32x16,
1307
0
       aom_obmc_sub_pixel_variance32x16)
1308
0
  OBFP(BLOCK_16X32, aom_obmc_sad16x32, aom_obmc_variance16x32,
1309
0
       aom_obmc_sub_pixel_variance16x32)
1310
0
  OBFP(BLOCK_16X16, aom_obmc_sad16x16, aom_obmc_variance16x16,
1311
0
       aom_obmc_sub_pixel_variance16x16)
1312
0
  OBFP(BLOCK_16X8, aom_obmc_sad16x8, aom_obmc_variance16x8,
1313
0
       aom_obmc_sub_pixel_variance16x8)
1314
0
  OBFP(BLOCK_8X16, aom_obmc_sad8x16, aom_obmc_variance8x16,
1315
0
       aom_obmc_sub_pixel_variance8x16)
1316
0
  OBFP(BLOCK_8X8, aom_obmc_sad8x8, aom_obmc_variance8x8,
1317
0
       aom_obmc_sub_pixel_variance8x8)
1318
0
  OBFP(BLOCK_4X8, aom_obmc_sad4x8, aom_obmc_variance4x8,
1319
0
       aom_obmc_sub_pixel_variance4x8)
1320
0
  OBFP(BLOCK_8X4, aom_obmc_sad8x4, aom_obmc_variance8x4,
1321
0
       aom_obmc_sub_pixel_variance8x4)
1322
0
  OBFP(BLOCK_4X4, aom_obmc_sad4x4, aom_obmc_variance4x4,
1323
0
       aom_obmc_sub_pixel_variance4x4)
1324
0
  OBFP(BLOCK_4X16, aom_obmc_sad4x16, aom_obmc_variance4x16,
1325
0
       aom_obmc_sub_pixel_variance4x16)
1326
0
  OBFP(BLOCK_16X4, aom_obmc_sad16x4, aom_obmc_variance16x4,
1327
0
       aom_obmc_sub_pixel_variance16x4)
1328
0
  OBFP(BLOCK_8X32, aom_obmc_sad8x32, aom_obmc_variance8x32,
1329
0
       aom_obmc_sub_pixel_variance8x32)
1330
0
  OBFP(BLOCK_32X8, aom_obmc_sad32x8, aom_obmc_variance32x8,
1331
0
       aom_obmc_sub_pixel_variance32x8)
1332
0
  OBFP(BLOCK_16X64, aom_obmc_sad16x64, aom_obmc_variance16x64,
1333
0
       aom_obmc_sub_pixel_variance16x64)
1334
0
  OBFP(BLOCK_64X16, aom_obmc_sad64x16, aom_obmc_variance64x16,
1335
0
       aom_obmc_sub_pixel_variance64x16)
1336
0
#endif  // !CONFIG_REALTIME_ONLY
1337
1338
0
#define MBFP(BT, MCSDF, MCSVF)  \
1339
0
  ppi->fn_ptr[BT].msdf = MCSDF; \
1340
0
  ppi->fn_ptr[BT].msvf = MCSVF;
1341
1342
0
  MBFP(BLOCK_128X128, aom_masked_sad128x128,
1343
0
       aom_masked_sub_pixel_variance128x128)
1344
0
  MBFP(BLOCK_128X64, aom_masked_sad128x64, aom_masked_sub_pixel_variance128x64)
1345
0
  MBFP(BLOCK_64X128, aom_masked_sad64x128, aom_masked_sub_pixel_variance64x128)
1346
0
  MBFP(BLOCK_64X64, aom_masked_sad64x64, aom_masked_sub_pixel_variance64x64)
1347
0
  MBFP(BLOCK_64X32, aom_masked_sad64x32, aom_masked_sub_pixel_variance64x32)
1348
0
  MBFP(BLOCK_32X64, aom_masked_sad32x64, aom_masked_sub_pixel_variance32x64)
1349
0
  MBFP(BLOCK_32X32, aom_masked_sad32x32, aom_masked_sub_pixel_variance32x32)
1350
0
  MBFP(BLOCK_32X16, aom_masked_sad32x16, aom_masked_sub_pixel_variance32x16)
1351
0
  MBFP(BLOCK_16X32, aom_masked_sad16x32, aom_masked_sub_pixel_variance16x32)
1352
0
  MBFP(BLOCK_16X16, aom_masked_sad16x16, aom_masked_sub_pixel_variance16x16)
1353
0
  MBFP(BLOCK_16X8, aom_masked_sad16x8, aom_masked_sub_pixel_variance16x8)
1354
0
  MBFP(BLOCK_8X16, aom_masked_sad8x16, aom_masked_sub_pixel_variance8x16)
1355
0
  MBFP(BLOCK_8X8, aom_masked_sad8x8, aom_masked_sub_pixel_variance8x8)
1356
0
  MBFP(BLOCK_4X8, aom_masked_sad4x8, aom_masked_sub_pixel_variance4x8)
1357
0
  MBFP(BLOCK_8X4, aom_masked_sad8x4, aom_masked_sub_pixel_variance8x4)
1358
0
  MBFP(BLOCK_4X4, aom_masked_sad4x4, aom_masked_sub_pixel_variance4x4)
1359
1360
0
#if !CONFIG_REALTIME_ONLY
1361
0
  MBFP(BLOCK_4X16, aom_masked_sad4x16, aom_masked_sub_pixel_variance4x16)
1362
0
  MBFP(BLOCK_16X4, aom_masked_sad16x4, aom_masked_sub_pixel_variance16x4)
1363
0
  MBFP(BLOCK_8X32, aom_masked_sad8x32, aom_masked_sub_pixel_variance8x32)
1364
0
  MBFP(BLOCK_32X8, aom_masked_sad32x8, aom_masked_sub_pixel_variance32x8)
1365
0
  MBFP(BLOCK_16X64, aom_masked_sad16x64, aom_masked_sub_pixel_variance16x64)
1366
0
  MBFP(BLOCK_64X16, aom_masked_sad64x16, aom_masked_sub_pixel_variance64x16)
1367
0
#endif
1368
1369
0
#define SDSFP(BT, SDSF, SDSX4DF) \
1370
0
  ppi->fn_ptr[BT].sdsf = SDSF;   \
1371
0
  ppi->fn_ptr[BT].sdsx4df = SDSX4DF;
1372
1373
0
  SDSFP(BLOCK_128X128, aom_sad_skip_128x128, aom_sad_skip_128x128x4d)
1374
0
  SDSFP(BLOCK_128X64, aom_sad_skip_128x64, aom_sad_skip_128x64x4d)
1375
0
  SDSFP(BLOCK_64X128, aom_sad_skip_64x128, aom_sad_skip_64x128x4d)
1376
0
  SDSFP(BLOCK_64X64, aom_sad_skip_64x64, aom_sad_skip_64x64x4d)
1377
0
  SDSFP(BLOCK_64X32, aom_sad_skip_64x32, aom_sad_skip_64x32x4d)
1378
1379
0
  SDSFP(BLOCK_32X64, aom_sad_skip_32x64, aom_sad_skip_32x64x4d)
1380
0
  SDSFP(BLOCK_32X32, aom_sad_skip_32x32, aom_sad_skip_32x32x4d)
1381
0
  SDSFP(BLOCK_32X16, aom_sad_skip_32x16, aom_sad_skip_32x16x4d)
1382
1383
0
  SDSFP(BLOCK_16X32, aom_sad_skip_16x32, aom_sad_skip_16x32x4d)
1384
0
  SDSFP(BLOCK_16X16, aom_sad_skip_16x16, aom_sad_skip_16x16x4d)
1385
0
  SDSFP(BLOCK_8X16, aom_sad_skip_8x16, aom_sad_skip_8x16x4d)
1386
1387
0
#if !CONFIG_REALTIME_ONLY
1388
0
  SDSFP(BLOCK_64X16, aom_sad_skip_64x16, aom_sad_skip_64x16x4d)
1389
0
  SDSFP(BLOCK_16X64, aom_sad_skip_16x64, aom_sad_skip_16x64x4d)
1390
0
  SDSFP(BLOCK_8X32, aom_sad_skip_8x32, aom_sad_skip_8x32x4d)
1391
0
  SDSFP(BLOCK_4X16, aom_sad_skip_4x16, aom_sad_skip_4x16x4d)
1392
0
#endif
1393
0
#undef SDSFP
1394
1395
0
#if CONFIG_AV1_HIGHBITDEPTH
1396
0
  highbd_set_var_fns(ppi);
1397
0
#endif
1398
1399
0
  {
1400
    // As cm->mi_params is a part of the frame level context (cpi), it is
1401
    // unavailable at this point. mi_params is created as a local temporary
1402
    // variable, to be passed into the functions used for allocating tpl
1403
    // buffers. The values in this variable are populated according to initial
1404
    // width and height of the frame.
1405
0
    CommonModeInfoParams mi_params;
1406
0
    enc_set_mb_mi(&mi_params, oxcf->frm_dim_cfg.width, oxcf->frm_dim_cfg.height,
1407
0
                  BLOCK_4X4);
1408
1409
0
    const BLOCK_SIZE bsize = BLOCK_16X16;
1410
0
    const int w = mi_size_wide[bsize];
1411
0
    const int h = mi_size_high[bsize];
1412
0
    const int num_cols = (mi_params.mi_cols + w - 1) / w;
1413
0
    const int num_rows = (mi_params.mi_rows + h - 1) / h;
1414
0
    AOM_CHECK_MEM_ERROR(
1415
0
        &ppi->error, ppi->tpl_sb_rdmult_scaling_factors,
1416
0
        aom_calloc(num_rows * num_cols,
1417
0
                   sizeof(*ppi->tpl_sb_rdmult_scaling_factors)));
1418
1419
#if CONFIG_INTERNAL_STATS
1420
    ppi->b_calculate_blockiness = 1;
1421
    ppi->b_calculate_consistency = 1;
1422
1423
    for (int i = 0; i <= STAT_ALL; i++) {
1424
      ppi->psnr[0].stat[i] = 0;
1425
      ppi->psnr[1].stat[i] = 0;
1426
1427
      ppi->fastssim.stat[i] = 0;
1428
      ppi->psnrhvs.stat[i] = 0;
1429
    }
1430
1431
    ppi->psnr[0].worst = 100.0;
1432
    ppi->psnr[1].worst = 100.0;
1433
    ppi->worst_ssim = 100.0;
1434
    ppi->worst_ssim_hbd = 100.0;
1435
1436
    ppi->count[0] = 0;
1437
    ppi->count[1] = 0;
1438
    ppi->total_bytes = 0;
1439
1440
    if (ppi->b_calculate_psnr) {
1441
      ppi->total_sq_error[0] = 0;
1442
      ppi->total_samples[0] = 0;
1443
      ppi->total_sq_error[1] = 0;
1444
      ppi->total_samples[1] = 0;
1445
      ppi->total_recode_hits = 0;
1446
      ppi->summed_quality = 0;
1447
      ppi->summed_weights = 0;
1448
      ppi->summed_quality_hbd = 0;
1449
      ppi->summed_weights_hbd = 0;
1450
    }
1451
1452
    ppi->fastssim.worst = 100.0;
1453
    ppi->psnrhvs.worst = 100.0;
1454
1455
    if (ppi->b_calculate_blockiness) {
1456
      ppi->total_blockiness = 0;
1457
      ppi->worst_blockiness = 0.0;
1458
    }
1459
1460
    ppi->total_inconsistency = 0;
1461
    ppi->worst_consistency = 100.0;
1462
    if (ppi->b_calculate_consistency) {
1463
      AOM_CHECK_MEM_ERROR(&ppi->error, ppi->ssim_vars,
1464
                          aom_malloc(sizeof(*ppi->ssim_vars) * 4 *
1465
                                     mi_params.mi_rows * mi_params.mi_cols));
1466
    }
1467
#endif
1468
0
  }
1469
1470
0
  ppi->error.setjmp = 0;
1471
0
  return ppi;
1472
0
}
1473
1474
AV1_COMP *av1_create_compressor(AV1_PRIMARY *ppi, const AV1EncoderConfig *oxcf,
1475
                                BufferPool *const pool, COMPRESSOR_STAGE stage,
1476
0
                                int lap_lag_in_frames) {
1477
0
  AV1_COMP *volatile const cpi = aom_memalign(32, sizeof(AV1_COMP));
1478
1479
0
  if (!cpi) return NULL;
1480
1481
0
  av1_zero(*cpi);
1482
1483
0
  cpi->ppi = ppi;
1484
1485
0
  AV1_COMMON *volatile const cm = &cpi->common;
1486
0
  cm->seq_params = &ppi->seq_params;
1487
0
  cm->error =
1488
0
      (struct aom_internal_error_info *)aom_calloc(1, sizeof(*cm->error));
1489
0
  if (!cm->error) {
1490
0
    aom_free(cpi);
1491
0
    return NULL;
1492
0
  }
1493
1494
  // The jmp_buf is valid only for the duration of the function that calls
1495
  // setjmp(). Therefore, this function must reset the 'setjmp' field to 0
1496
  // before it returns.
1497
0
  if (setjmp(cm->error->jmp)) {
1498
0
    cm->error->setjmp = 0;
1499
0
    av1_remove_compressor(cpi);
1500
0
    return NULL;
1501
0
  }
1502
1503
0
  cm->error->setjmp = 1;
1504
0
  cpi->compressor_stage = stage;
1505
1506
0
  cpi->do_frame_data_update = true;
1507
1508
0
  CommonModeInfoParams *const mi_params = &cm->mi_params;
1509
0
  mi_params->free_mi = enc_free_mi;
1510
0
  mi_params->setup_mi = enc_setup_mi;
1511
0
  mi_params->set_mb_mi =
1512
0
      (oxcf->pass == AOM_RC_FIRST_PASS || cpi->compressor_stage == LAP_STAGE)
1513
0
          ? stat_stage_set_mb_mi
1514
0
          : enc_set_mb_mi;
1515
1516
0
  mi_params->mi_alloc_bsize = BLOCK_4X4;
1517
1518
0
  CHECK_MEM_ERROR(cm, cm->fc,
1519
0
                  (FRAME_CONTEXT *)aom_memalign(32, sizeof(*cm->fc)));
1520
0
  CHECK_MEM_ERROR(
1521
0
      cm, cm->default_frame_context,
1522
0
      (FRAME_CONTEXT *)aom_memalign(32, sizeof(*cm->default_frame_context)));
1523
0
  memset(cm->fc, 0, sizeof(*cm->fc));
1524
0
  memset(cm->default_frame_context, 0, sizeof(*cm->default_frame_context));
1525
1526
0
  cpi->common.buffer_pool = pool;
1527
1528
0
  init_config(cpi, oxcf);
1529
0
  if (cpi->compressor_stage == LAP_STAGE) {
1530
0
    cpi->oxcf.gf_cfg.lag_in_frames = lap_lag_in_frames;
1531
0
  }
1532
1533
0
  av1_rc_init(&cpi->oxcf, &cpi->rc);
1534
1535
0
  init_frame_info(&cpi->frame_info, cm);
1536
0
  init_frame_index_set(&cpi->frame_index_set);
1537
1538
0
  cm->current_frame.frame_number = 0;
1539
0
  cpi->rc.frame_number_encoded = 0;
1540
0
  cpi->rc.prev_frame_is_dropped = 0;
1541
0
  cpi->rc.max_consec_drop = INT_MAX;
1542
0
  cpi->rc.drop_count_consec = 0;
1543
0
  cm->current_frame_id = -1;
1544
0
  cpi->tile_data = NULL;
1545
0
  cpi->last_show_frame_buf = NULL;
1546
0
  realloc_segmentation_maps(cpi);
1547
1548
0
  cpi->refresh_frame.alt_ref_frame = false;
1549
1550
#if CONFIG_SPEED_STATS
1551
  cpi->tx_search_count = 0;
1552
#endif  // CONFIG_SPEED_STATS
1553
1554
0
  cpi->time_stamps.first_ts_start = INT64_MAX;
1555
1556
#ifdef OUTPUT_YUV_REC
1557
  yuv_rec_file = fopen("rec.yuv", "wb");
1558
#endif
1559
#ifdef OUTPUT_YUV_DENOISED
1560
  yuv_denoised_file = fopen("denoised.yuv", "wb");
1561
#endif
1562
1563
0
#if !CONFIG_REALTIME_ONLY
1564
0
  if (is_stat_consumption_stage(cpi)) {
1565
0
    const size_t packet_sz = sizeof(FIRSTPASS_STATS);
1566
0
    const int packets = (int)(oxcf->twopass_stats_in.sz / packet_sz);
1567
1568
0
    if (!cpi->ppi->lap_enabled) {
1569
      /*Re-initialize to stats buffer, populated by application in the case of
1570
       * two pass*/
1571
0
      cpi->ppi->twopass.stats_buf_ctx->stats_in_start =
1572
0
          oxcf->twopass_stats_in.buf;
1573
0
      cpi->twopass_frame.stats_in =
1574
0
          cpi->ppi->twopass.stats_buf_ctx->stats_in_start;
1575
0
      cpi->ppi->twopass.stats_buf_ctx->stats_in_end =
1576
0
          &cpi->ppi->twopass.stats_buf_ctx->stats_in_start[packets - 1];
1577
1578
      // The buffer size is packets - 1 because the last packet is total_stats.
1579
0
      av1_firstpass_info_init(&cpi->ppi->twopass.firstpass_info,
1580
0
                              oxcf->twopass_stats_in.buf, packets - 1);
1581
0
      av1_init_second_pass(cpi);
1582
0
    } else {
1583
0
      av1_firstpass_info_init(&cpi->ppi->twopass.firstpass_info, NULL, 0);
1584
0
      av1_init_single_pass_lap(cpi);
1585
0
    }
1586
0
  }
1587
0
#endif
1588
1589
  // The buffer "obmc_buffer" is used in inter frames for fast obmc search.
1590
  // Hence, the memory allocation for the same is avoided for allintra encoding
1591
  // mode.
1592
0
  if (cpi->oxcf.kf_cfg.key_freq_max != 0)
1593
0
    alloc_obmc_buffers(&cpi->td.mb.obmc_buffer, cm->error);
1594
1595
0
  for (int x = 0; x < 2; x++) {
1596
0
    CHECK_MEM_ERROR(
1597
0
        cm, cpi->td.mb.intrabc_hash_info.hash_value_buffer[x],
1598
0
        (uint32_t *)aom_malloc(
1599
0
            AOM_BUFFER_SIZE_FOR_BLOCK_HASH *
1600
0
            sizeof(*cpi->td.mb.intrabc_hash_info.hash_value_buffer[x])));
1601
0
  }
1602
1603
0
  cpi->td.mb.intrabc_hash_info.crc_initialized = 0;
1604
1605
0
  av1_set_speed_features_framesize_independent(cpi, oxcf->speed);
1606
0
  av1_set_speed_features_framesize_dependent(cpi, oxcf->speed);
1607
1608
0
  int max_mi_cols = mi_params->mi_cols;
1609
0
  int max_mi_rows = mi_params->mi_rows;
1610
0
  if (oxcf->frm_dim_cfg.forced_max_frame_width) {
1611
0
    max_mi_cols = size_in_mi(oxcf->frm_dim_cfg.forced_max_frame_width);
1612
0
  }
1613
0
  if (oxcf->frm_dim_cfg.forced_max_frame_height) {
1614
0
    max_mi_rows = size_in_mi(oxcf->frm_dim_cfg.forced_max_frame_height);
1615
0
  }
1616
1617
0
  const int consec_zero_mv_alloc_size = (max_mi_rows * max_mi_cols) >> 2;
1618
0
  CHECK_MEM_ERROR(
1619
0
      cm, cpi->consec_zero_mv,
1620
0
      aom_calloc(consec_zero_mv_alloc_size, sizeof(*cpi->consec_zero_mv)));
1621
0
  cpi->consec_zero_mv_alloc_size = consec_zero_mv_alloc_size;
1622
1623
0
  cpi->mb_weber_stats = NULL;
1624
0
  cpi->mb_weber_stats_alloc_size = 0;
1625
0
  cpi->mb_delta_q = NULL;
1626
0
  cpi->mb_delta_q_alloc_size = 0;
1627
0
  cpi->palette_pixel_num = 0;
1628
0
  cpi->scaled_last_source_available = 0;
1629
1630
0
  {
1631
0
    const BLOCK_SIZE bsize = BLOCK_16X16;
1632
0
    const int w = mi_size_wide[bsize];
1633
0
    const int h = mi_size_high[bsize];
1634
0
    const int num_cols = (max_mi_cols + w - 1) / w;
1635
0
    const int num_rows = (max_mi_rows + h - 1) / h;
1636
0
    CHECK_MEM_ERROR(cm, cpi->ssim_rdmult_scaling_factors,
1637
0
                    aom_calloc(num_rows * num_cols,
1638
0
                               sizeof(*cpi->ssim_rdmult_scaling_factors)));
1639
0
    CHECK_MEM_ERROR(cm, cpi->tpl_rdmult_scaling_factors,
1640
0
                    aom_calloc(num_rows * num_cols,
1641
0
                               sizeof(*cpi->tpl_rdmult_scaling_factors)));
1642
0
  }
1643
1644
#if CONFIG_TUNE_VMAF
1645
  {
1646
    const BLOCK_SIZE bsize = BLOCK_64X64;
1647
    const int w = mi_size_wide[bsize];
1648
    const int h = mi_size_high[bsize];
1649
    const int num_cols = (mi_params->mi_cols + w - 1) / w;
1650
    const int num_rows = (mi_params->mi_rows + h - 1) / h;
1651
    CHECK_MEM_ERROR(cm, cpi->vmaf_info.rdmult_scaling_factors,
1652
                    aom_calloc(num_rows * num_cols,
1653
                               sizeof(*cpi->vmaf_info.rdmult_scaling_factors)));
1654
    for (int i = 0; i < MAX_ARF_LAYERS; i++) {
1655
      cpi->vmaf_info.last_frame_unsharp_amount[i] = -1.0;
1656
      cpi->vmaf_info.last_frame_ysse[i] = -1.0;
1657
      cpi->vmaf_info.last_frame_vmaf[i] = -1.0;
1658
    }
1659
    cpi->vmaf_info.original_qindex = -1;
1660
    cpi->vmaf_info.vmaf_model = NULL;
1661
  }
1662
#endif
1663
1664
#if CONFIG_TUNE_BUTTERAUGLI
1665
  {
1666
    const int w = mi_size_wide[butteraugli_rdo_bsize];
1667
    const int h = mi_size_high[butteraugli_rdo_bsize];
1668
    const int num_cols = (mi_params->mi_cols + w - 1) / w;
1669
    const int num_rows = (mi_params->mi_rows + h - 1) / h;
1670
    CHECK_MEM_ERROR(
1671
        cm, cpi->butteraugli_info.rdmult_scaling_factors,
1672
        aom_malloc(num_rows * num_cols *
1673
                   sizeof(*cpi->butteraugli_info.rdmult_scaling_factors)));
1674
    memset(&cpi->butteraugli_info.source, 0,
1675
           sizeof(cpi->butteraugli_info.source));
1676
    memset(&cpi->butteraugli_info.resized_source, 0,
1677
           sizeof(cpi->butteraugli_info.resized_source));
1678
    cpi->butteraugli_info.recon_set = false;
1679
  }
1680
#endif
1681
1682
#if CONFIG_SALIENCY_MAP
1683
  {
1684
    CHECK_MEM_ERROR(cm, cpi->saliency_map,
1685
                    (uint8_t *)aom_calloc(cm->height * cm->width,
1686
                                          sizeof(*cpi->saliency_map)));
1687
    // Buffer initialization based on MIN_MIB_SIZE_LOG2 to ensure that
1688
    // cpi->sm_scaling_factor buffer is allocated big enough, since we have no
1689
    // idea of the actual superblock size we are going to use yet.
1690
    const int min_mi_w_sb = (1 << MIN_MIB_SIZE_LOG2);
1691
    const int min_mi_h_sb = (1 << MIN_MIB_SIZE_LOG2);
1692
    const int max_sb_cols =
1693
        (cm->mi_params.mi_cols + min_mi_w_sb - 1) / min_mi_w_sb;
1694
    const int max_sb_rows =
1695
        (cm->mi_params.mi_rows + min_mi_h_sb - 1) / min_mi_h_sb;
1696
    CHECK_MEM_ERROR(cm, cpi->sm_scaling_factor,
1697
                    (double *)aom_calloc(max_sb_rows * max_sb_cols,
1698
                                         sizeof(*cpi->sm_scaling_factor)));
1699
  }
1700
#endif
1701
1702
#if CONFIG_COLLECT_PARTITION_STATS
1703
  av1_zero(cpi->partition_stats);
1704
#endif  // CONFIG_COLLECT_PARTITION_STATS
1705
1706
  // Initialize the members of DeltaQuantParams with INT_MAX to ensure that
1707
  // the quantizer tables are correctly initialized using the default deltaq
1708
  // parameters when av1_init_quantizer is called for the first time.
1709
0
  DeltaQuantParams *const prev_deltaq_params =
1710
0
      &cpi->enc_quant_dequant_params.prev_deltaq_params;
1711
0
  prev_deltaq_params->y_dc_delta_q = INT_MAX;
1712
0
  prev_deltaq_params->u_dc_delta_q = INT_MAX;
1713
0
  prev_deltaq_params->v_dc_delta_q = INT_MAX;
1714
0
  prev_deltaq_params->u_ac_delta_q = INT_MAX;
1715
0
  prev_deltaq_params->v_ac_delta_q = INT_MAX;
1716
1717
0
  av1_init_quantizer(&cpi->enc_quant_dequant_params, &cm->quant_params,
1718
0
                     cm->seq_params->bit_depth, cpi->oxcf.algo_cfg.sharpness);
1719
0
  av1_qm_init(&cm->quant_params, av1_num_planes(cm));
1720
1721
0
  av1_loop_filter_init(cm);
1722
0
  cm->superres_scale_denominator = SCALE_NUMERATOR;
1723
0
  cm->superres_upscaled_width = oxcf->frm_dim_cfg.width;
1724
0
  cm->superres_upscaled_height = oxcf->frm_dim_cfg.height;
1725
0
#if !CONFIG_REALTIME_ONLY
1726
0
  av1_loop_restoration_precal();
1727
0
#endif
1728
1729
#if CONFIG_THREE_PASS
1730
  cpi->third_pass_ctx = NULL;
1731
  if (cpi->oxcf.pass == AOM_RC_THIRD_PASS) {
1732
    av1_init_thirdpass_ctx(cm, &cpi->third_pass_ctx, NULL);
1733
  }
1734
#endif
1735
1736
0
  cpi->second_pass_log_stream = NULL;
1737
0
  cpi->use_ducky_encode = 0;
1738
1739
0
  cm->error->setjmp = 0;
1740
0
  return cpi;
1741
0
}
1742
1743
#if CONFIG_INTERNAL_STATS
1744
#define SNPRINT(H, T) snprintf((H) + strlen(H), sizeof(H) - strlen(H), (T))
1745
1746
#define SNPRINT2(H, T, V) \
1747
  snprintf((H) + strlen(H), sizeof(H) - strlen(H), (T), (V))
1748
#endif  // CONFIG_INTERNAL_STATS
1749
1750
0
void av1_remove_primary_compressor(AV1_PRIMARY *ppi) {
1751
0
  if (!ppi) return;
1752
0
#if !CONFIG_REALTIME_ONLY
1753
0
  av1_tf_info_free(&ppi->tf_info);
1754
0
#endif  // !CONFIG_REALTIME_ONLY
1755
1756
0
  for (int i = 0; i < MAX_NUM_OPERATING_POINTS; ++i) {
1757
0
    aom_free(ppi->level_params.level_info[i]);
1758
0
  }
1759
0
  av1_lookahead_destroy(ppi->lookahead);
1760
1761
0
  aom_free(ppi->tpl_sb_rdmult_scaling_factors);
1762
0
  ppi->tpl_sb_rdmult_scaling_factors = NULL;
1763
1764
0
  TplParams *const tpl_data = &ppi->tpl_data;
1765
0
  aom_free(tpl_data->txfm_stats_list);
1766
1767
0
  for (int frame = 0; frame < MAX_LAG_BUFFERS; ++frame) {
1768
0
    aom_free(tpl_data->tpl_stats_pool[frame]);
1769
0
    aom_free_frame_buffer(&tpl_data->tpl_rec_pool[frame]);
1770
0
    aom_free_frame_buffer(&tpl_data->prev_gop_arf_src);
1771
0
    aom_free_frame_buffer(&tpl_data->prev_gop_arf_tpl_recon);
1772
0
    tpl_data->prev_gop_arf_disp_order = -1;
1773
0
    tpl_data->tpl_stats_pool[frame] = NULL;
1774
0
  }
1775
1776
0
#if !CONFIG_REALTIME_ONLY
1777
0
  av1_tpl_dealloc(&tpl_data->tpl_mt_sync);
1778
0
#endif
1779
1780
0
  av1_terminate_workers(ppi);
1781
0
  free_thread_data(ppi);
1782
1783
0
  aom_free(ppi->p_mt_info.tile_thr_data);
1784
0
  ppi->p_mt_info.tile_thr_data = NULL;
1785
0
  aom_free(ppi->p_mt_info.workers);
1786
0
  ppi->p_mt_info.workers = NULL;
1787
0
  ppi->p_mt_info.num_workers = 0;
1788
1789
0
  aom_free(ppi);
1790
0
}
1791
1792
0
void av1_remove_compressor(AV1_COMP *cpi) {
1793
0
  if (!cpi) return;
1794
#if CONFIG_RATECTRL_LOG
1795
  if (cpi->oxcf.pass == 3) {
1796
    rc_log_show(&cpi->rc_log);
1797
  }
1798
#endif  // CONFIG_RATECTRL_LOG
1799
1800
0
  AV1_COMMON *cm = &cpi->common;
1801
0
  if (cm->current_frame.frame_number > 0) {
1802
#if CONFIG_SPEED_STATS
1803
    if (!is_stat_generation_stage(cpi)) {
1804
      fprintf(stdout, "tx_search_count = %d\n", cpi->tx_search_count);
1805
    }
1806
#endif  // CONFIG_SPEED_STATS
1807
1808
#if CONFIG_COLLECT_PARTITION_STATS == 2
1809
    if (!is_stat_generation_stage(cpi)) {
1810
      av1_print_fr_partition_timing_stats(&cpi->partition_stats,
1811
                                          "fr_part_timing_data.csv");
1812
    }
1813
#endif
1814
0
  }
1815
1816
#if CONFIG_AV1_TEMPORAL_DENOISING
1817
  av1_denoiser_free(&(cpi->denoiser));
1818
#endif
1819
1820
0
  if (cm->error) {
1821
    // Help detect use after free of the error detail string.
1822
0
    memset(cm->error->detail, 'A', sizeof(cm->error->detail) - 1);
1823
0
    cm->error->detail[sizeof(cm->error->detail) - 1] = '\0';
1824
0
    aom_free(cm->error);
1825
0
  }
1826
0
  aom_free(cpi->td.tctx);
1827
0
  MultiThreadInfo *const mt_info = &cpi->mt_info;
1828
0
#if CONFIG_MULTITHREAD
1829
0
  pthread_mutex_t *const enc_row_mt_mutex_ = mt_info->enc_row_mt.mutex_;
1830
0
  pthread_cond_t *const enc_row_mt_cond_ = mt_info->enc_row_mt.cond_;
1831
0
  pthread_mutex_t *const gm_mt_mutex_ = mt_info->gm_sync.mutex_;
1832
0
  pthread_mutex_t *const tpl_error_mutex_ = mt_info->tpl_row_mt.mutex_;
1833
0
  pthread_mutex_t *const pack_bs_mt_mutex_ = mt_info->pack_bs_sync.mutex_;
1834
0
  if (enc_row_mt_mutex_ != NULL) {
1835
0
    pthread_mutex_destroy(enc_row_mt_mutex_);
1836
0
    aom_free(enc_row_mt_mutex_);
1837
0
  }
1838
0
  if (enc_row_mt_cond_ != NULL) {
1839
0
    pthread_cond_destroy(enc_row_mt_cond_);
1840
0
    aom_free(enc_row_mt_cond_);
1841
0
  }
1842
0
  if (gm_mt_mutex_ != NULL) {
1843
0
    pthread_mutex_destroy(gm_mt_mutex_);
1844
0
    aom_free(gm_mt_mutex_);
1845
0
  }
1846
0
  if (tpl_error_mutex_ != NULL) {
1847
0
    pthread_mutex_destroy(tpl_error_mutex_);
1848
0
    aom_free(tpl_error_mutex_);
1849
0
  }
1850
0
  if (pack_bs_mt_mutex_ != NULL) {
1851
0
    pthread_mutex_destroy(pack_bs_mt_mutex_);
1852
0
    aom_free(pack_bs_mt_mutex_);
1853
0
  }
1854
0
#endif
1855
0
  av1_row_mt_mem_dealloc(cpi);
1856
1857
0
  if (mt_info->num_workers > 1) {
1858
0
    av1_row_mt_sync_mem_dealloc(&cpi->ppi->intra_row_mt_sync);
1859
0
    av1_loop_filter_dealloc(&mt_info->lf_row_sync);
1860
0
    av1_cdef_mt_dealloc(&mt_info->cdef_sync);
1861
0
#if !CONFIG_REALTIME_ONLY
1862
0
    av1_loop_restoration_dealloc(&mt_info->lr_row_sync);
1863
0
    av1_tf_mt_dealloc(&mt_info->tf_sync);
1864
0
#endif
1865
0
  }
1866
1867
#if CONFIG_THREE_PASS
1868
  av1_free_thirdpass_ctx(cpi->third_pass_ctx);
1869
1870
  av1_close_second_pass_log(cpi);
1871
#endif
1872
1873
0
  dealloc_compressor_data(cpi);
1874
1875
0
  av1_ext_part_delete(&cpi->ext_part_controller);
1876
1877
0
  av1_remove_common(cm);
1878
1879
0
  aom_free(cpi);
1880
1881
#ifdef OUTPUT_YUV_REC
1882
  fclose(yuv_rec_file);
1883
#endif
1884
1885
#ifdef OUTPUT_YUV_DENOISED
1886
  fclose(yuv_denoised_file);
1887
#endif
1888
0
}
1889
1890
0
static void generate_psnr_packet(AV1_COMP *cpi) {
1891
0
  struct aom_codec_cx_pkt pkt;
1892
0
  int i;
1893
0
  PSNR_STATS psnr;
1894
0
#if CONFIG_AV1_HIGHBITDEPTH
1895
0
  const uint32_t in_bit_depth = cpi->oxcf.input_cfg.input_bit_depth;
1896
0
  const uint32_t bit_depth = cpi->td.mb.e_mbd.bd;
1897
0
  aom_calc_highbd_psnr(cpi->source, &cpi->common.cur_frame->buf, &psnr,
1898
0
                       bit_depth, in_bit_depth);
1899
#else
1900
  aom_calc_psnr(cpi->source, &cpi->common.cur_frame->buf, &psnr);
1901
#endif
1902
1903
0
  for (i = 0; i < 4; ++i) {
1904
0
    pkt.data.psnr.samples[i] = psnr.samples[i];
1905
0
    pkt.data.psnr.sse[i] = psnr.sse[i];
1906
0
    pkt.data.psnr.psnr[i] = psnr.psnr[i];
1907
0
  }
1908
1909
0
#if CONFIG_AV1_HIGHBITDEPTH
1910
0
  if ((cpi->source->flags & YV12_FLAG_HIGHBITDEPTH) &&
1911
0
      (in_bit_depth < bit_depth)) {
1912
0
    for (i = 0; i < 4; ++i) {
1913
0
      pkt.data.psnr.samples_hbd[i] = psnr.samples_hbd[i];
1914
0
      pkt.data.psnr.sse_hbd[i] = psnr.sse_hbd[i];
1915
0
      pkt.data.psnr.psnr_hbd[i] = psnr.psnr_hbd[i];
1916
0
    }
1917
0
  }
1918
0
#endif
1919
1920
0
  pkt.kind = AOM_CODEC_PSNR_PKT;
1921
0
  aom_codec_pkt_list_add(cpi->ppi->output_pkt_list, &pkt);
1922
0
}
1923
1924
0
int av1_use_as_reference(int *ext_ref_frame_flags, int ref_frame_flags) {
1925
0
  if (ref_frame_flags > ((1 << INTER_REFS_PER_FRAME) - 1)) return -1;
1926
1927
0
  *ext_ref_frame_flags = ref_frame_flags;
1928
0
  return 0;
1929
0
}
1930
1931
0
int av1_copy_reference_enc(AV1_COMP *cpi, int idx, YV12_BUFFER_CONFIG *sd) {
1932
0
  AV1_COMMON *const cm = &cpi->common;
1933
0
  const int num_planes = av1_num_planes(cm);
1934
0
  YV12_BUFFER_CONFIG *cfg = get_ref_frame(cm, idx);
1935
0
  if (cfg) {
1936
0
    aom_yv12_copy_frame(cfg, sd, num_planes);
1937
0
    return 0;
1938
0
  } else {
1939
0
    return -1;
1940
0
  }
1941
0
}
1942
1943
0
int av1_set_reference_enc(AV1_COMP *cpi, int idx, YV12_BUFFER_CONFIG *sd) {
1944
0
  AV1_COMMON *const cm = &cpi->common;
1945
0
  const int num_planes = av1_num_planes(cm);
1946
0
  YV12_BUFFER_CONFIG *cfg = get_ref_frame(cm, idx);
1947
0
  if (cfg) {
1948
0
    aom_yv12_copy_frame(sd, cfg, num_planes);
1949
0
    return 0;
1950
0
  } else {
1951
0
    return -1;
1952
0
  }
1953
0
}
1954
1955
#ifdef OUTPUT_YUV_REC
1956
static void aom_write_one_yuv_frame(AV1_COMMON *cm, YV12_BUFFER_CONFIG *s) {
1957
  uint8_t *src = s->y_buffer;
1958
  int h = cm->height;
1959
  if (yuv_rec_file == NULL) return;
1960
  if (s->flags & YV12_FLAG_HIGHBITDEPTH) {
1961
    uint16_t *src16 = CONVERT_TO_SHORTPTR(s->y_buffer);
1962
1963
    do {
1964
      fwrite(src16, s->y_width, 2, yuv_rec_file);
1965
      src16 += s->y_stride;
1966
    } while (--h);
1967
1968
    src16 = CONVERT_TO_SHORTPTR(s->u_buffer);
1969
    h = s->uv_height;
1970
1971
    do {
1972
      fwrite(src16, s->uv_width, 2, yuv_rec_file);
1973
      src16 += s->uv_stride;
1974
    } while (--h);
1975
1976
    src16 = CONVERT_TO_SHORTPTR(s->v_buffer);
1977
    h = s->uv_height;
1978
1979
    do {
1980
      fwrite(src16, s->uv_width, 2, yuv_rec_file);
1981
      src16 += s->uv_stride;
1982
    } while (--h);
1983
1984
    fflush(yuv_rec_file);
1985
    return;
1986
  }
1987
1988
  do {
1989
    fwrite(src, s->y_width, 1, yuv_rec_file);
1990
    src += s->y_stride;
1991
  } while (--h);
1992
1993
  src = s->u_buffer;
1994
  h = s->uv_height;
1995
1996
  do {
1997
    fwrite(src, s->uv_width, 1, yuv_rec_file);
1998
    src += s->uv_stride;
1999
  } while (--h);
2000
2001
  src = s->v_buffer;
2002
  h = s->uv_height;
2003
2004
  do {
2005
    fwrite(src, s->uv_width, 1, yuv_rec_file);
2006
    src += s->uv_stride;
2007
  } while (--h);
2008
2009
  fflush(yuv_rec_file);
2010
}
2011
#endif  // OUTPUT_YUV_REC
2012
2013
0
void av1_set_mv_search_params(AV1_COMP *cpi) {
2014
0
  const AV1_COMMON *const cm = &cpi->common;
2015
0
  MotionVectorSearchParams *const mv_search_params = &cpi->mv_search_params;
2016
0
  const int max_mv_def = AOMMAX(cm->width, cm->height);
2017
2018
  // Default based on max resolution.
2019
0
  mv_search_params->mv_step_param = av1_init_search_range(max_mv_def);
2020
2021
0
  if (cpi->sf.mv_sf.auto_mv_step_size) {
2022
0
    if (frame_is_intra_only(cm)) {
2023
      // Initialize max_mv_magnitude for use in the first INTER frame
2024
      // after a key/intra-only frame.
2025
0
      mv_search_params->max_mv_magnitude = max_mv_def;
2026
0
    } else {
2027
      // Use adaptive mv steps based on previous frame stats for show frames and
2028
      // internal arfs.
2029
0
      FRAME_UPDATE_TYPE cur_update_type =
2030
0
          cpi->ppi->gf_group.update_type[cpi->gf_frame_index];
2031
0
      int use_auto_mv_step =
2032
0
          (cm->show_frame || cur_update_type == INTNL_ARF_UPDATE) &&
2033
0
          mv_search_params->max_mv_magnitude != -1 &&
2034
0
          cpi->sf.mv_sf.auto_mv_step_size >= 2;
2035
0
      if (use_auto_mv_step) {
2036
        // Allow mv_steps to correspond to twice the max mv magnitude found
2037
        // in the previous frame, capped by the default max_mv_magnitude based
2038
        // on resolution.
2039
0
        mv_search_params->mv_step_param = av1_init_search_range(
2040
0
            AOMMIN(max_mv_def, 2 * mv_search_params->max_mv_magnitude));
2041
0
      }
2042
      // Reset max_mv_magnitude based on update flag.
2043
0
      if (cpi->do_frame_data_update) mv_search_params->max_mv_magnitude = -1;
2044
0
    }
2045
0
  }
2046
0
}
2047
2048
// Estimate if the source frame is screen content, based on the portion of
2049
// blocks that have few luma colors.
2050
0
static void estimate_screen_content(AV1_COMP *cpi, FeatureFlags *features) {
2051
0
  const AV1_COMMON *const cm = &cpi->common;
2052
0
  const MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
2053
0
  const uint8_t *src = cpi->unfiltered_source->y_buffer;
2054
0
  assert(src != NULL);
2055
0
  const int use_hbd = cpi->unfiltered_source->flags & YV12_FLAG_HIGHBITDEPTH;
2056
0
  const int stride = cpi->unfiltered_source->y_stride;
2057
0
  const int width = cpi->unfiltered_source->y_width;
2058
0
  const int height = cpi->unfiltered_source->y_height;
2059
0
  const int64_t area = (int64_t)width * height;
2060
0
  const int bd = cm->seq_params->bit_depth;
2061
0
  const int kBlockWidth = 16;
2062
0
  const int kBlockHeight = 16;
2063
0
  const int kBlockArea = kBlockWidth * kBlockHeight;
2064
  // These threshold values are selected experimentally.
2065
0
  const int kColorThresh = 4;
2066
0
  const unsigned int kVarThresh = 0;
2067
  // Counts of blocks with no more than kColorThresh colors.
2068
0
  int64_t counts_1 = 0;
2069
  // Counts of blocks with no more than kColorThresh colors and variance larger
2070
  // than kVarThresh.
2071
0
  int64_t counts_2 = 0;
2072
2073
0
  for (int r = 0; r + kBlockHeight <= height; r += kBlockHeight) {
2074
0
    for (int c = 0; c + kBlockWidth <= width; c += kBlockWidth) {
2075
0
      int count_buf[1 << 8];  // Maximum (1 << 8) bins for hbd path.
2076
0
      const uint8_t *const this_src = src + r * stride + c;
2077
0
      int n_colors;
2078
0
      if (use_hbd) {
2079
0
        av1_count_colors_highbd(this_src, stride, /*rows=*/kBlockHeight,
2080
0
                                /*cols=*/kBlockWidth, bd, NULL, count_buf,
2081
0
                                &n_colors, NULL);
2082
0
      } else {
2083
0
        av1_count_colors(this_src, stride, /*rows=*/kBlockHeight,
2084
0
                         /*cols=*/kBlockWidth, count_buf, &n_colors);
2085
0
      }
2086
0
      if (n_colors > 1 && n_colors <= kColorThresh) {
2087
0
        ++counts_1;
2088
0
        struct buf_2d buf;
2089
0
        buf.stride = stride;
2090
0
        buf.buf = (uint8_t *)this_src;
2091
0
        const unsigned int var = av1_get_perpixel_variance(
2092
0
            cpi, xd, &buf, BLOCK_16X16, AOM_PLANE_Y, use_hbd);
2093
0
        if (var > kVarThresh) ++counts_2;
2094
0
      }
2095
0
    }
2096
0
  }
2097
2098
  // The threshold values are selected experimentally.
2099
0
  features->allow_screen_content_tools = counts_1 * kBlockArea * 10 > area;
2100
  // IntraBC would force loop filters off, so we use more strict rules that also
2101
  // requires that the block has high variance.
2102
0
  features->allow_intrabc =
2103
0
      features->allow_screen_content_tools && counts_2 * kBlockArea * 12 > area;
2104
0
  cpi->use_screen_content_tools = features->allow_screen_content_tools;
2105
0
  cpi->is_screen_content_type =
2106
0
      features->allow_intrabc || (counts_1 * kBlockArea * 10 > area * 4 &&
2107
0
                                  counts_2 * kBlockArea * 30 > area);
2108
0
}
2109
2110
// Macro that helps debug the screen content mode 2 mechanism
2111
// #define OUTPUT_SCR_DET_MODE2_STATS
2112
2113
/*!\brief Helper function that finds the dominant value of a block.
2114
 *
2115
 * This function builds a histogram of all 256 possible (8 bit) values, and
2116
 * returns with the value with the greatest count (i.e. the dominant value).
2117
 */
2118
uint8_t av1_find_dominant_value(const uint8_t *src, int stride, int rows,
2119
0
                                int cols) {
2120
0
  uint32_t value_count[1 << 8] = { 0 };  // Maximum (1 << 8) value levels.
2121
0
  uint32_t dominant_value_count = 0;
2122
0
  uint8_t dominant_value = 0;
2123
2124
0
  for (int r = 0; r < rows; ++r) {
2125
0
    for (int c = 0; c < cols; ++c) {
2126
0
      const uint8_t value = src[r * (ptrdiff_t)stride + c];
2127
2128
0
      value_count[value]++;
2129
2130
0
      if (value_count[value] > dominant_value_count) {
2131
0
        dominant_value = value;
2132
0
        dominant_value_count = value_count[value];
2133
0
      }
2134
0
    }
2135
0
  }
2136
2137
0
  return dominant_value;
2138
0
}
2139
2140
/*!\brief Helper function that performs one round of image dilation on a block.
2141
 *
2142
 * This function finds the dominant value (i.e. the value that appears most
2143
 * often within a block), then performs a round of dilation by "extending" all
2144
 * occurrences of the dominant value outwards in all 8 directions (4 sides + 4
2145
 * corners).
2146
 *
2147
 * For a visual example, let:
2148
 *  - D: the dominant value
2149
 *  - [a-p]: different non-dominant values (usually anti-aliased pixels)
2150
 *  - .: the most common non-dominant value
2151
 *
2152
 * Before dilation:       After dilation:
2153
 * . . a b D c d . .     . . D D D D D . .
2154
 * . e f D D D g h .     D D D D D D D D D
2155
 * . D D D D D D D .     D D D D D D D D D
2156
 * . D D D D D D D .     D D D D D D D D D
2157
 * . i j D D D k l .     D D D D D D D D D
2158
 * . . m n D o p . .     . . D D D D D . .
2159
 */
2160
void av1_dilate_block(const uint8_t *src, int src_stride, uint8_t *dilated,
2161
0
                      int dilated_stride, int rows, int cols) {
2162
0
  uint8_t dominant_value = av1_find_dominant_value(src, src_stride, rows, cols);
2163
2164
0
  for (int r = 0; r < rows; ++r) {
2165
0
    for (int c = 0; c < cols; ++c) {
2166
0
      const uint8_t value = src[r * (ptrdiff_t)src_stride + c];
2167
2168
0
      dilated[r * (ptrdiff_t)dilated_stride + c] = value;
2169
0
    }
2170
0
  }
2171
2172
0
  for (int r = 0; r < rows; ++r) {
2173
0
    for (int c = 0; c < cols; ++c) {
2174
0
      const uint8_t value = src[r * (ptrdiff_t)src_stride + c];
2175
2176
0
      if (value == dominant_value) {
2177
        // Dilate up
2178
0
        if (r != 0) {
2179
0
          dilated[(r - 1) * (ptrdiff_t)dilated_stride + c] = value;
2180
0
        }
2181
        // Dilate down
2182
0
        if (r != rows - 1) {
2183
0
          dilated[(r + 1) * (ptrdiff_t)dilated_stride + c] = value;
2184
0
        }
2185
        // Dilate left
2186
0
        if (c != 0) {
2187
0
          dilated[r * (ptrdiff_t)dilated_stride + (c - 1)] = value;
2188
0
        }
2189
        // Dilate right
2190
0
        if (c != cols - 1) {
2191
0
          dilated[r * (ptrdiff_t)dilated_stride + (c + 1)] = value;
2192
0
        }
2193
        // Dilate upper-left corner
2194
0
        if (r != 0 && c != 0) {
2195
0
          dilated[(r - 1) * (ptrdiff_t)dilated_stride + (c - 1)] = value;
2196
0
        }
2197
        // Dilate upper-right corner
2198
0
        if (r != 0 && c != cols - 1) {
2199
0
          dilated[(r - 1) * (ptrdiff_t)dilated_stride + (c + 1)] = value;
2200
0
        }
2201
        // Dilate lower-left corner
2202
0
        if (r != rows - 1 && c != 0) {
2203
0
          dilated[(r + 1) * (ptrdiff_t)dilated_stride + (c - 1)] = value;
2204
0
        }
2205
        // Dilate lower-right corner
2206
0
        if (r != rows - 1 && c != cols - 1) {
2207
0
          dilated[(r + 1) * (ptrdiff_t)dilated_stride + (c + 1)] = value;
2208
0
        }
2209
0
      }
2210
0
    }
2211
0
  }
2212
0
}
2213
2214
/*!\brief Estimates if the source frame is a candidate to enable palette mode
2215
 * and intra block copy, with an accurate detection of anti-aliased text and
2216
 * graphics.
2217
 *
2218
 * Screen content detection is done by dividing frame's luma plane (Y) into
2219
 * small blocks, counting how many unique colors each block contains and
2220
 * their per-pixel variance, and classifying these blocks into three main
2221
 * categories:
2222
 * 1. Palettizable blocks, low variance (can use palette mode)
2223
 * 2. Palettizable blocks, high variance (can use palette mode and IntraBC)
2224
 * 3. Non palettizable, photo-like blocks (can neither use palette mode nor
2225
 *    IntraBC)
2226
 * Finally, this function decides whether the frame could benefit from
2227
 * enabling palette mode with or without IntraBC, based on the ratio of the
2228
 * three categories mentioned above.
2229
 */
2230
static void estimate_screen_content_antialiasing_aware(AV1_COMP *cpi,
2231
0
                                                       FeatureFlags *features) {
2232
0
  enum {
2233
0
    kBlockWidth = 16,
2234
0
    kBlockHeight = 16,
2235
0
    kBlockArea = kBlockWidth * kBlockHeight
2236
0
  };
2237
2238
0
  const bool fast_detection =
2239
0
      cpi->sf.hl_sf.screen_detection_mode2_fast_detection;
2240
0
  const AV1_COMMON *const cm = &cpi->common;
2241
0
  const MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
2242
0
  const uint8_t *src = cpi->unfiltered_source->y_buffer;
2243
0
  assert(src != NULL);
2244
0
  const int use_hbd = cpi->unfiltered_source->flags & YV12_FLAG_HIGHBITDEPTH;
2245
0
  const int stride = cpi->unfiltered_source->y_stride;
2246
0
  const int width = cpi->unfiltered_source->y_width;
2247
0
  const int height = cpi->unfiltered_source->y_height;
2248
0
  const int64_t area = (int64_t)width * height;
2249
0
  const int bd = cm->seq_params->bit_depth;
2250
  // Holds the down-converted block to 8 bit (if source is HBD)
2251
0
  uint8_t downconv_blk[kBlockArea];
2252
  // Holds the block after a round of dilation
2253
0
  uint8_t dilated_blk[kBlockArea];
2254
2255
  // These threshold values are selected experimentally
2256
  // Detects text and glyphs without anti-aliasing, and graphics with a 4-color
2257
  // palette
2258
0
  const int kSimpleColorThresh = 4;
2259
  // Detects potential text and glyphs with anti-aliasing, and graphics with a
2260
  // more extended color palette
2261
0
  const int kComplexInitialColorThresh = 40;
2262
  // Detects text and glyphs with anti-aliasing, and graphics with a more
2263
  // extended color palette
2264
0
  const int kComplexFinalColorThresh = 6;
2265
  // Threshold used to classify low-variance and high-variance blocks
2266
0
  const int kVarThresh = 5;
2267
  // Count of blocks that are candidates for using palette mode
2268
0
  int64_t count_palette = 0;
2269
  // Count of blocks that are candidates for using IntraBC
2270
0
  int64_t count_intrabc = 0;
2271
  // Count of "photo-like" blocks (i.e. can't use palette mode or IntraBC)
2272
0
  int64_t count_photo = 0;
2273
2274
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2275
  FILE *stats_file;
2276
  stats_file = fopen("scrdetm2.stt", "a");
2277
2278
  fprintf(stats_file, "\n");
2279
  fprintf(stats_file, "Screen detection mode 2 image map legend\n");
2280
  if (fast_detection) {
2281
    fprintf(stats_file, "Fast detection enabled\n");
2282
  }
2283
  fprintf(stats_file,
2284
          "-------------------------------------------------------\n");
2285
  fprintf(stats_file,
2286
          "S: simple block, high var    C: complex block, high var\n");
2287
  fprintf(stats_file,
2288
          "-: simple block, low var     =: complex block, low var \n");
2289
  fprintf(stats_file,
2290
          "x: photo-like block          .: non-palettizable block \n");
2291
  fprintf(stats_file,
2292
          "(whitespace): solid block                              \n");
2293
  fprintf(stats_file,
2294
          "-------------------------------------------------------\n");
2295
#endif
2296
2297
  // Skip every other block and weigh each block twice as much when performing
2298
  // fast detection
2299
0
  const int multiplier = fast_detection ? 2 : 1;
2300
2301
0
  for (int r = 0; r + kBlockHeight <= height; r += kBlockHeight) {
2302
    // Alternate skipping in a "checkerboard" pattern when performing fast
2303
    // detection
2304
0
    const int initial_col =
2305
0
        (fast_detection && (r / kBlockHeight) % 2) ? kBlockWidth : 0;
2306
2307
0
    for (int c = initial_col; c + kBlockWidth <= width;
2308
0
         c += kBlockWidth * multiplier) {
2309
0
      const uint8_t *blk_src = src + r * (ptrdiff_t)stride + c;
2310
0
      const uint8_t *blk = blk_src;
2311
0
      int blk_stride = stride;
2312
2313
      // Down-convert pixels to 8-bit domain if source is HBD
2314
0
      if (use_hbd) {
2315
0
        const uint16_t *blk_src_hbd = CONVERT_TO_SHORTPTR(blk_src);
2316
2317
0
        for (int blk_r = 0; blk_r < kBlockHeight; ++blk_r) {
2318
0
          for (int blk_c = 0; blk_c < kBlockWidth; ++blk_c) {
2319
0
            const int downconv_val =
2320
0
                (blk_src_hbd[blk_r * (ptrdiff_t)stride + blk_c]) >> (bd - 8);
2321
2322
            // Ensure down-converted value is 8-bit
2323
0
            assert(downconv_val < (1 << 8));
2324
0
            downconv_blk[blk_r * (ptrdiff_t)kBlockWidth + blk_c] = downconv_val;
2325
0
          }
2326
0
        }
2327
2328
        // Switch block source and stride to down-converted buffer and its width
2329
0
        blk = downconv_blk;
2330
0
        blk_stride = kBlockWidth;
2331
0
      }
2332
2333
      // First, find if the block could be palettized
2334
0
      int number_of_colors;
2335
0
      bool under_threshold = av1_count_colors_with_threshold(
2336
0
          blk, blk_stride, /*rows=*/kBlockHeight,
2337
0
          /*cols=*/kBlockWidth, kComplexInitialColorThresh, &number_of_colors);
2338
0
      if (number_of_colors > 1 && under_threshold) {
2339
0
        struct buf_2d buf;
2340
0
        buf.stride = stride;
2341
0
        buf.buf = (uint8_t *)blk_src;
2342
2343
0
        if (number_of_colors <= kSimpleColorThresh) {
2344
          // Simple block detected, add to block count with no further
2345
          // processing required
2346
0
          ++count_palette;
2347
          // Variance always comes from the source image with no down-conversion
2348
0
          int var = av1_get_perpixel_variance(cpi, xd, &buf, BLOCK_16X16,
2349
0
                                              AOM_PLANE_Y, use_hbd);
2350
2351
0
          if (var > kVarThresh) {
2352
0
            ++count_intrabc;
2353
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2354
            fprintf(stats_file, "S");
2355
          } else {
2356
            fprintf(stats_file, "-");
2357
#endif
2358
0
          }
2359
0
        } else {
2360
          // Complex block detected, try to find if it's palettizable
2361
          // Dilate block with dominant color, to exclude anti-aliased pixels
2362
          // from final palette count
2363
0
          av1_dilate_block(blk, blk_stride, dilated_blk, kBlockWidth,
2364
0
                           /*rows=*/kBlockHeight, /*cols=*/kBlockWidth);
2365
0
          under_threshold = av1_count_colors_with_threshold(
2366
0
              dilated_blk, kBlockWidth, /*rows=*/kBlockHeight,
2367
0
              /*cols=*/kBlockWidth, kComplexFinalColorThresh,
2368
0
              &number_of_colors);
2369
2370
0
          if (under_threshold) {
2371
            // Variance always comes from the source image with no
2372
            // down-conversion
2373
0
            int var = av1_get_perpixel_variance(cpi, xd, &buf, BLOCK_16X16,
2374
0
                                                AOM_PLANE_Y, use_hbd);
2375
2376
0
            if (var > kVarThresh) {
2377
0
              ++count_palette;
2378
0
              ++count_intrabc;
2379
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2380
              fprintf(stats_file, "C");
2381
            } else {
2382
              fprintf(stats_file, "=");
2383
#endif
2384
0
            }
2385
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2386
          } else {
2387
            fprintf(stats_file, ".");
2388
#endif
2389
0
          }
2390
0
        }
2391
0
      } else {
2392
0
        if (number_of_colors > kComplexInitialColorThresh) {
2393
0
          ++count_photo;
2394
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2395
          fprintf(stats_file, "x");
2396
        } else {
2397
          fprintf(stats_file, " ");  // Solid block (1 color)
2398
#endif
2399
0
        }
2400
0
      }
2401
0
    }
2402
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2403
    fprintf(stats_file, "\n");
2404
#endif
2405
0
  }
2406
2407
  // Normalize counts to account for the blocks that were skipped
2408
0
  if (fast_detection) {
2409
0
    count_photo *= multiplier;
2410
0
    count_palette *= multiplier;
2411
0
    count_intrabc *= multiplier;
2412
0
  }
2413
2414
  // The threshold values are selected experimentally.
2415
  // Penalize presence of photo-like blocks (1/16th the weight of a palettizable
2416
  // block)
2417
0
  features->allow_screen_content_tools =
2418
0
      ((count_palette - count_photo / 16) * kBlockArea * 10 > area);
2419
2420
  // IntraBC would force loop filters off, so we use more strict rules that also
2421
  // requires that the block has high variance.
2422
  // Penalize presence of photo-like blocks (1/16th the weight of a palettizable
2423
  // block)
2424
0
  features->allow_intrabc =
2425
0
      features->allow_screen_content_tools &&
2426
0
      ((count_intrabc - count_photo / 16) * kBlockArea * 12 > area);
2427
0
  cpi->use_screen_content_tools = features->allow_screen_content_tools;
2428
0
  cpi->is_screen_content_type =
2429
0
      features->allow_intrabc || (count_palette * kBlockArea * 15 > area * 4 &&
2430
0
                                  count_intrabc * kBlockArea * 30 > area);
2431
2432
#ifdef OUTPUT_SCR_DET_MODE2_STATS
2433
  fprintf(stats_file,
2434
          "block count palette: %" PRId64 ", count intrabc: %" PRId64
2435
          ", count photo: %" PRId64 ", total: %d\n",
2436
          count_palette, count_intrabc, count_photo,
2437
          (int)(ceil(width / kBlockWidth) * ceil(height / kBlockHeight)));
2438
  fprintf(stats_file, "sc palette value: %" PRId64 ", threshold %" PRId64 "\n",
2439
          (count_palette - count_photo / 16) * kBlockArea * 10, area);
2440
  fprintf(stats_file, "sc ibc value: %" PRId64 ", threshold %" PRId64 "\n",
2441
          (count_intrabc - count_photo / 16) * kBlockArea * 12, area);
2442
  fprintf(stats_file, "allow sct: %d, allow ibc: %d\n",
2443
          features->allow_screen_content_tools, features->allow_intrabc);
2444
#endif
2445
0
}
2446
2447
0
void av1_set_screen_content_options(AV1_COMP *cpi, FeatureFlags *features) {
2448
0
  const AV1_COMMON *const cm = &cpi->common;
2449
2450
0
  if (cm->seq_params->force_screen_content_tools != 2) {
2451
0
    features->allow_screen_content_tools = features->allow_intrabc =
2452
0
        cm->seq_params->force_screen_content_tools;
2453
0
    return;
2454
0
  }
2455
2456
0
  if (cpi->oxcf.tune_cfg.content == AOM_CONTENT_SCREEN) {
2457
0
    features->allow_screen_content_tools = 1;
2458
0
    features->allow_intrabc =
2459
0
        (cpi->oxcf.mode == REALTIME && !cpi->sf.rt_sf.rt_use_intrabc) ? 0 : 1;
2460
0
    cpi->is_screen_content_type = 1;
2461
0
    cpi->use_screen_content_tools = 1;
2462
0
    return;
2463
0
  }
2464
2465
0
  if (cpi->oxcf.mode == REALTIME) {
2466
0
    features->allow_screen_content_tools = features->allow_intrabc = 0;
2467
0
    return;
2468
0
  }
2469
2470
  // Screen content tools are not evaluated in non-RD encoding mode unless
2471
  // content type is not set explicitly, i.e., when
2472
  // cpi->oxcf.tune_cfg.content != AOM_CONTENT_SCREEN, use_nonrd_pick_mode = 1
2473
  // and hybrid_intra_pickmode = 0. Hence, screen content detection is
2474
  // disabled.
2475
0
  if (cpi->sf.rt_sf.use_nonrd_pick_mode &&
2476
0
      !cpi->sf.rt_sf.hybrid_intra_pickmode) {
2477
0
    features->allow_screen_content_tools = features->allow_intrabc = 0;
2478
0
    return;
2479
0
  }
2480
2481
0
  if (cpi->oxcf.algo_cfg.screen_detection_mode ==
2482
0
      AOM_SCREEN_DETECTION_ANTIALIASING_AWARE) {
2483
0
    estimate_screen_content_antialiasing_aware(cpi, features);
2484
0
  } else {
2485
0
    estimate_screen_content(cpi, features);
2486
0
  }
2487
0
}
2488
2489
0
static void init_motion_estimation(AV1_COMP *cpi) {
2490
0
  AV1_COMMON *const cm = &cpi->common;
2491
0
  MotionVectorSearchParams *const mv_search_params = &cpi->mv_search_params;
2492
0
  const int aligned_width = (cm->width + 7) & ~7;
2493
0
  const int y_stride =
2494
0
      aom_calc_y_stride(aligned_width, cpi->oxcf.border_in_pixels);
2495
0
  const int y_stride_src = ((cpi->oxcf.frm_dim_cfg.width != cm->width ||
2496
0
                             cpi->oxcf.frm_dim_cfg.height != cm->height) ||
2497
0
                            av1_superres_scaled(cm))
2498
0
                               ? y_stride
2499
0
                               : cpi->ppi->lookahead->buf->img.y_stride;
2500
0
  int fpf_y_stride =
2501
0
      cm->cur_frame != NULL ? cm->cur_frame->buf.y_stride : y_stride;
2502
2503
  // Update if search_site_cfg is uninitialized or the current frame has a new
2504
  // stride
2505
0
  const int should_update =
2506
0
      !mv_search_params->search_site_cfg[SS_CFG_SRC][DIAMOND].stride ||
2507
0
      !mv_search_params->search_site_cfg[SS_CFG_LOOKAHEAD][DIAMOND].stride ||
2508
0
      (y_stride !=
2509
0
       mv_search_params->search_site_cfg[SS_CFG_SRC][DIAMOND].stride);
2510
2511
0
  if (!should_update) {
2512
0
    return;
2513
0
  }
2514
2515
  // Initialization of search_site_cfg for NUM_DISTINCT_SEARCH_METHODS.
2516
0
  for (SEARCH_METHODS i = DIAMOND; i < NUM_DISTINCT_SEARCH_METHODS; i++) {
2517
0
    const int level = ((i == NSTEP_8PT) || (i == CLAMPED_DIAMOND)) ? 1 : 0;
2518
0
    av1_init_motion_compensation[i](
2519
0
        &mv_search_params->search_site_cfg[SS_CFG_SRC][i], y_stride, level);
2520
0
    av1_init_motion_compensation[i](
2521
0
        &mv_search_params->search_site_cfg[SS_CFG_LOOKAHEAD][i], y_stride_src,
2522
0
        level);
2523
0
  }
2524
2525
  // First pass search site config initialization.
2526
0
  av1_init_motion_fpf(&mv_search_params->search_site_cfg[SS_CFG_FPF][DIAMOND],
2527
0
                      fpf_y_stride);
2528
0
  for (SEARCH_METHODS i = NSTEP; i < NUM_DISTINCT_SEARCH_METHODS; i++) {
2529
0
    memcpy(&mv_search_params->search_site_cfg[SS_CFG_FPF][i],
2530
0
           &mv_search_params->search_site_cfg[SS_CFG_FPF][DIAMOND],
2531
0
           sizeof(search_site_config));
2532
0
  }
2533
0
}
2534
2535
0
static void init_ref_frame_bufs(AV1_COMP *cpi) {
2536
0
  AV1_COMMON *const cm = &cpi->common;
2537
0
  int i;
2538
0
  if (cm->cur_frame) {
2539
0
    cm->cur_frame->ref_count--;
2540
0
    cm->cur_frame = NULL;
2541
0
  }
2542
0
  for (i = 0; i < REF_FRAMES; ++i) {
2543
0
    if (cm->ref_frame_map[i]) {
2544
0
      cm->ref_frame_map[i]->ref_count--;
2545
0
      cm->ref_frame_map[i] = NULL;
2546
0
    }
2547
0
  }
2548
0
#ifndef NDEBUG
2549
0
  BufferPool *const pool = cm->buffer_pool;
2550
0
  for (i = 0; i < pool->num_frame_bufs; ++i) {
2551
0
    assert(pool->frame_bufs[i].ref_count == 0);
2552
0
  }
2553
0
#endif
2554
0
}
2555
2556
// TODO(chengchen): consider renaming this function as it is necessary
2557
// for the encoder to setup critical parameters, and it does not
2558
// deal with initial width any longer.
2559
aom_codec_err_t av1_check_initial_width(AV1_COMP *cpi, int use_highbitdepth,
2560
0
                                        int subsampling_x, int subsampling_y) {
2561
0
  AV1_COMMON *const cm = &cpi->common;
2562
0
  SequenceHeader *const seq_params = cm->seq_params;
2563
2564
0
  if (!cpi->frame_size_related_setup_done ||
2565
0
      seq_params->use_highbitdepth != use_highbitdepth ||
2566
0
      seq_params->subsampling_x != subsampling_x ||
2567
0
      seq_params->subsampling_y != subsampling_y) {
2568
0
    seq_params->subsampling_x = subsampling_x;
2569
0
    seq_params->subsampling_y = subsampling_y;
2570
0
    seq_params->use_highbitdepth = use_highbitdepth;
2571
2572
0
    av1_set_speed_features_framesize_independent(cpi, cpi->oxcf.speed);
2573
0
    av1_set_speed_features_framesize_dependent(cpi, cpi->oxcf.speed);
2574
2575
0
    if (!is_stat_generation_stage(cpi)) {
2576
0
#if !CONFIG_REALTIME_ONLY
2577
0
      if (!av1_tf_info_alloc(&cpi->ppi->tf_info, cpi))
2578
0
        return AOM_CODEC_MEM_ERROR;
2579
0
#endif  // !CONFIG_REALTIME_ONLY
2580
0
    }
2581
0
    init_ref_frame_bufs(cpi);
2582
2583
0
    init_motion_estimation(cpi);  // TODO(agrange) This can be removed.
2584
2585
0
    cpi->initial_mbs = cm->mi_params.MBs;
2586
0
    cpi->frame_size_related_setup_done = true;
2587
0
  }
2588
0
  return AOM_CODEC_OK;
2589
0
}
2590
2591
#if CONFIG_AV1_TEMPORAL_DENOISING
2592
static void setup_denoiser_buffer(AV1_COMP *cpi) {
2593
  AV1_COMMON *const cm = &cpi->common;
2594
  if (cpi->oxcf.noise_sensitivity > 0 &&
2595
      !cpi->denoiser.frame_buffer_initialized) {
2596
    if (av1_denoiser_alloc(
2597
            cm, &cpi->svc, &cpi->denoiser, cpi->ppi->use_svc,
2598
            cpi->oxcf.noise_sensitivity, cm->width, cm->height,
2599
            cm->seq_params->subsampling_x, cm->seq_params->subsampling_y,
2600
            cm->seq_params->use_highbitdepth, AOM_BORDER_IN_PIXELS))
2601
      aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
2602
                         "Failed to allocate denoiser");
2603
  }
2604
}
2605
#endif
2606
2607
// Returns 1 if the assigned width or height was <= 0.
2608
0
static int set_size_literal(AV1_COMP *cpi, int width, int height) {
2609
0
  AV1_COMMON *cm = &cpi->common;
2610
0
  aom_codec_err_t err = av1_check_initial_width(
2611
0
      cpi, cm->seq_params->use_highbitdepth, cm->seq_params->subsampling_x,
2612
0
      cm->seq_params->subsampling_y);
2613
0
  if (err != AOM_CODEC_OK) {
2614
0
    aom_internal_error(cm->error, err, "av1_check_initial_width() failed");
2615
0
  }
2616
2617
0
  if (width <= 0 || height <= 0) return 1;
2618
2619
0
  cm->width = width;
2620
0
  cm->height = height;
2621
2622
#if CONFIG_AV1_TEMPORAL_DENOISING
2623
  setup_denoiser_buffer(cpi);
2624
#endif
2625
2626
0
  if (cm->width > cpi->data_alloc_width ||
2627
0
      cm->height > cpi->data_alloc_height) {
2628
0
    av1_free_context_buffers(cm);
2629
0
    av1_free_shared_coeff_buffer(&cpi->td.shared_coeff_buf);
2630
0
    av1_free_sms_tree(&cpi->td);
2631
0
    av1_free_pmc(cpi->td.firstpass_ctx, av1_num_planes(cm));
2632
0
    cpi->td.firstpass_ctx = NULL;
2633
0
    alloc_compressor_data(cpi);
2634
0
    realloc_segmentation_maps(cpi);
2635
0
    cpi->data_alloc_width = cm->width;
2636
0
    cpi->data_alloc_height = cm->height;
2637
0
    cpi->frame_size_related_setup_done = false;
2638
0
  }
2639
0
  alloc_mb_mode_info_buffers(cpi);
2640
0
  av1_update_frame_size(cpi);
2641
2642
0
  return 0;
2643
0
}
2644
2645
0
void av1_set_frame_size(AV1_COMP *cpi, int width, int height) {
2646
0
  AV1_COMMON *const cm = &cpi->common;
2647
0
  const SequenceHeader *const seq_params = cm->seq_params;
2648
0
  const int num_planes = av1_num_planes(cm);
2649
0
  MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
2650
0
  int ref_frame;
2651
2652
0
  if (width != cm->width || height != cm->height) {
2653
    // There has been a change in the encoded frame size
2654
0
    set_size_literal(cpi, width, height);
2655
    // Recalculate 'all_lossless' in case super-resolution was (un)selected.
2656
0
    cm->features.all_lossless =
2657
0
        cm->features.coded_lossless && !av1_superres_scaled(cm);
2658
2659
0
    av1_noise_estimate_init(&cpi->noise_estimate, cm->width, cm->height);
2660
#if CONFIG_AV1_TEMPORAL_DENOISING
2661
    // Reset the denoiser on the resized frame.
2662
    if (cpi->oxcf.noise_sensitivity > 0) {
2663
      av1_denoiser_free(&(cpi->denoiser));
2664
      setup_denoiser_buffer(cpi);
2665
    }
2666
#endif
2667
0
  }
2668
0
  if (is_stat_consumption_stage(cpi)) {
2669
0
    av1_set_target_rate(cpi, cm->width, cm->height);
2670
0
  }
2671
2672
0
  alloc_frame_mvs(cm, cm->cur_frame);
2673
2674
  // Allocate above context buffers
2675
0
  CommonContexts *const above_contexts = &cm->above_contexts;
2676
0
  if (above_contexts->num_planes < av1_num_planes(cm) ||
2677
0
      above_contexts->num_mi_cols < cm->mi_params.mi_cols ||
2678
0
      above_contexts->num_tile_rows < cm->tiles.rows) {
2679
0
    av1_free_above_context_buffers(above_contexts);
2680
0
    if (av1_alloc_above_context_buffers(above_contexts, cm->tiles.rows,
2681
0
                                        cm->mi_params.mi_cols,
2682
0
                                        av1_num_planes(cm)))
2683
0
      aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
2684
0
                         "Failed to allocate context buffers");
2685
0
  }
2686
2687
0
  AV1EncoderConfig *oxcf = &cpi->oxcf;
2688
0
  oxcf->border_in_pixels = av1_get_enc_border_size(
2689
0
      av1_is_resize_needed(oxcf), oxcf->kf_cfg.key_freq_max == 0,
2690
0
      cm->seq_params->sb_size);
2691
2692
  // Reset the frame pointers to the current frame size.
2693
0
  if (aom_realloc_frame_buffer(
2694
0
          &cm->cur_frame->buf, cm->width, cm->height, seq_params->subsampling_x,
2695
0
          seq_params->subsampling_y, seq_params->use_highbitdepth,
2696
0
          cpi->oxcf.border_in_pixels, cm->features.byte_alignment, NULL, NULL,
2697
0
          NULL, cpi->alloc_pyramid, 0))
2698
0
    aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
2699
0
                       "Failed to allocate frame buffer");
2700
2701
0
  if (!is_stat_generation_stage(cpi)) av1_init_cdef_worker(cpi);
2702
2703
0
#if !CONFIG_REALTIME_ONLY
2704
0
  if (is_restoration_used(cm)) {
2705
0
    for (int i = 0; i < num_planes; ++i)
2706
0
      cm->rst_info[i].frame_restoration_type = RESTORE_NONE;
2707
2708
0
    const bool is_sgr_enabled = !cpi->sf.lpf_sf.disable_sgr_filter;
2709
0
    av1_alloc_restoration_buffers(cm, is_sgr_enabled);
2710
    // Store the allocated restoration buffers in MT object.
2711
0
    if (cpi->ppi->p_mt_info.num_workers > 1) {
2712
0
      av1_init_lr_mt_buffers(cpi);
2713
0
    }
2714
0
  }
2715
0
#endif
2716
2717
0
  init_motion_estimation(cpi);
2718
2719
0
  int has_valid_ref_frame = 0;
2720
0
  for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
2721
0
    RefCntBuffer *const buf = get_ref_frame_buf(cm, ref_frame);
2722
0
    if (buf != NULL) {
2723
0
      struct scale_factors *sf = get_ref_scale_factors(cm, ref_frame);
2724
0
      av1_setup_scale_factors_for_frame(sf, buf->buf.y_crop_width,
2725
0
                                        buf->buf.y_crop_height, cm->width,
2726
0
                                        cm->height);
2727
0
      has_valid_ref_frame |= av1_is_valid_scale(sf);
2728
0
      if (av1_is_scaled(sf)) aom_extend_frame_borders(&buf->buf, num_planes);
2729
0
    }
2730
0
  }
2731
  // For 1 pass CBR mode: we can skip this check for spatial enhancement
2732
  // layer if the target_bandwidth is zero, since it will be dropped.
2733
0
  const bool dropped_frame =
2734
0
      has_no_stats_stage(cpi) && cpi->oxcf.rc_cfg.mode == AOM_CBR &&
2735
0
      cpi->svc.spatial_layer_id > 0 && cpi->oxcf.rc_cfg.target_bandwidth == 0;
2736
0
  if (!frame_is_intra_only(cm) && !has_valid_ref_frame && !dropped_frame) {
2737
0
    aom_internal_error(
2738
0
        cm->error, AOM_CODEC_CORRUPT_FRAME,
2739
0
        "Can't find at least one reference frame with valid size");
2740
0
  }
2741
2742
0
  av1_setup_scale_factors_for_frame(&cm->sf_identity, cm->width, cm->height,
2743
0
                                    cm->width, cm->height);
2744
2745
0
  set_ref_ptrs(cm, xd, LAST_FRAME, LAST_FRAME);
2746
0
}
2747
2748
static inline int extend_borders_mt(const AV1_COMP *cpi,
2749
0
                                    MULTI_THREADED_MODULES stage, int plane) {
2750
0
  const AV1_COMMON *const cm = &cpi->common;
2751
0
  if (cpi->mt_info.num_mod_workers[stage] < 2) return 0;
2752
0
  switch (stage) {
2753
    // TODO(deepa.kg@ittiam.com): When cdef and loop-restoration are disabled,
2754
    // multi-thread frame border extension along with loop filter frame.
2755
    // As loop-filtering of a superblock row modifies the pixels of the
2756
    // above superblock row, border extension requires that loop filtering
2757
    // of the current and above superblock row is complete.
2758
0
    case MOD_LPF: return 0;
2759
0
    case MOD_CDEF:
2760
0
      return is_cdef_used(cm) && !cpi->ppi->rtc_ref.non_reference_frame &&
2761
0
             !is_restoration_used(cm) && !av1_superres_scaled(cm);
2762
0
    case MOD_LR:
2763
0
      return is_restoration_used(cm) &&
2764
0
             (cm->rst_info[plane].frame_restoration_type != RESTORE_NONE);
2765
0
    default: assert(0);
2766
0
  }
2767
0
  return 0;
2768
0
}
2769
2770
/*!\brief Select and apply cdef filters and switchable restoration filters
2771
 *
2772
 * \ingroup high_level_algo
2773
 */
2774
static void cdef_restoration_frame(AV1_COMP *cpi, AV1_COMMON *cm,
2775
                                   MACROBLOCKD *xd, int use_restoration,
2776
                                   int use_cdef,
2777
0
                                   unsigned int skip_apply_postproc_filters) {
2778
0
#if !CONFIG_REALTIME_ONLY
2779
0
  if (use_restoration)
2780
0
    av1_loop_restoration_save_boundary_lines(&cm->cur_frame->buf, cm, 0);
2781
#else
2782
  (void)use_restoration;
2783
#endif
2784
2785
0
  if (use_cdef) {
2786
#if CONFIG_COLLECT_COMPONENT_TIMING
2787
    start_timing(cpi, cdef_time);
2788
#endif
2789
0
    const int num_workers = cpi->mt_info.num_mod_workers[MOD_CDEF];
2790
    // Find CDEF parameters
2791
0
    av1_cdef_search(cpi);
2792
2793
    // Apply the filter
2794
0
    if ((skip_apply_postproc_filters & SKIP_APPLY_CDEF) == 0) {
2795
0
      assert(!cpi->ppi->rtc_ref.non_reference_frame);
2796
0
      if (num_workers > 1) {
2797
        // Extension of frame borders is multi-threaded along with cdef.
2798
0
        const int do_extend_border =
2799
0
            extend_borders_mt(cpi, MOD_CDEF, /* plane */ 0);
2800
0
        av1_cdef_frame_mt(cm, xd, cpi->mt_info.cdef_worker,
2801
0
                          cpi->mt_info.workers, &cpi->mt_info.cdef_sync,
2802
0
                          num_workers, av1_cdef_init_fb_row_mt,
2803
0
                          do_extend_border);
2804
0
      } else {
2805
0
        av1_cdef_frame(&cm->cur_frame->buf, cm, xd, av1_cdef_init_fb_row);
2806
0
      }
2807
0
    }
2808
#if CONFIG_COLLECT_COMPONENT_TIMING
2809
    end_timing(cpi, cdef_time);
2810
#endif
2811
0
  }
2812
2813
0
  const int use_superres = av1_superres_scaled(cm);
2814
0
  if (use_superres) {
2815
0
    if ((skip_apply_postproc_filters & SKIP_APPLY_SUPERRES) == 0) {
2816
0
      av1_superres_post_encode(cpi);
2817
0
    }
2818
0
  }
2819
2820
0
#if !CONFIG_REALTIME_ONLY
2821
#if CONFIG_COLLECT_COMPONENT_TIMING
2822
  start_timing(cpi, loop_restoration_time);
2823
#endif
2824
0
  if (use_restoration) {
2825
0
    MultiThreadInfo *const mt_info = &cpi->mt_info;
2826
0
    const int num_workers = mt_info->num_mod_workers[MOD_LR];
2827
0
    av1_loop_restoration_save_boundary_lines(&cm->cur_frame->buf, cm, 1);
2828
0
    av1_pick_filter_restoration(cpi->source, cpi);
2829
0
    if ((skip_apply_postproc_filters & SKIP_APPLY_RESTORATION) == 0 &&
2830
0
        (cm->rst_info[0].frame_restoration_type != RESTORE_NONE ||
2831
0
         cm->rst_info[1].frame_restoration_type != RESTORE_NONE ||
2832
0
         cm->rst_info[2].frame_restoration_type != RESTORE_NONE)) {
2833
0
      if (num_workers > 1) {
2834
        // Extension of frame borders is multi-threaded along with loop
2835
        // restoration filter.
2836
0
        const int do_extend_border = 1;
2837
0
        av1_loop_restoration_filter_frame_mt(
2838
0
            &cm->cur_frame->buf, cm, 0, mt_info->workers, num_workers,
2839
0
            &mt_info->lr_row_sync, &cpi->lr_ctxt, do_extend_border);
2840
0
      } else {
2841
0
        av1_loop_restoration_filter_frame(&cm->cur_frame->buf, cm, 0,
2842
0
                                          &cpi->lr_ctxt);
2843
0
      }
2844
0
    }
2845
0
  }
2846
#if CONFIG_COLLECT_COMPONENT_TIMING
2847
  end_timing(cpi, loop_restoration_time);
2848
#endif
2849
0
#endif  // !CONFIG_REALTIME_ONLY
2850
0
}
2851
2852
0
static void extend_frame_borders(AV1_COMP *cpi) {
2853
0
  const AV1_COMMON *const cm = &cpi->common;
2854
  // TODO(debargha): Fix mv search range on encoder side
2855
0
  for (int plane = 0; plane < av1_num_planes(cm); ++plane) {
2856
0
    const bool extend_border_done = extend_borders_mt(cpi, MOD_CDEF, plane) ||
2857
0
                                    extend_borders_mt(cpi, MOD_LR, plane);
2858
0
    if (!extend_border_done) {
2859
0
      const YV12_BUFFER_CONFIG *const ybf = &cm->cur_frame->buf;
2860
0
      aom_extend_frame_borders_plane_row(ybf, plane, 0,
2861
0
                                         ybf->crop_heights[plane > 0]);
2862
0
    }
2863
0
  }
2864
0
}
2865
2866
/*!\brief Select and apply deblocking filters, cdef filters, and restoration
2867
 * filters.
2868
 *
2869
 * \ingroup high_level_algo
2870
 */
2871
0
static void loopfilter_frame(AV1_COMP *cpi, AV1_COMMON *cm) {
2872
0
  MultiThreadInfo *const mt_info = &cpi->mt_info;
2873
0
  const int num_workers = mt_info->num_mod_workers[MOD_LPF];
2874
0
  const int num_planes = av1_num_planes(cm);
2875
0
  MACROBLOCKD *xd = &cpi->td.mb.e_mbd;
2876
0
  cpi->td.mb.rdmult = cpi->rd.RDMULT;
2877
2878
0
  assert(IMPLIES(is_lossless_requested(&cpi->oxcf.rc_cfg),
2879
0
                 cm->features.coded_lossless && cm->features.all_lossless));
2880
2881
0
  const int use_loopfilter =
2882
0
      is_loopfilter_used(cm) && !cpi->mt_info.pipeline_lpf_mt_with_enc;
2883
0
  const int use_cdef = is_cdef_used(cm);
2884
0
  const int use_superres = av1_superres_scaled(cm);
2885
0
  const int use_restoration = is_restoration_used(cm);
2886
2887
0
  const unsigned int skip_apply_postproc_filters =
2888
0
      derive_skip_apply_postproc_filters(cpi, use_loopfilter, use_cdef,
2889
0
                                         use_superres, use_restoration);
2890
2891
#if CONFIG_COLLECT_COMPONENT_TIMING
2892
  start_timing(cpi, loop_filter_time);
2893
#endif
2894
0
  if (use_loopfilter) {
2895
0
    av1_pick_filter_level(cpi->source, cpi, cpi->sf.lpf_sf.lpf_pick);
2896
0
    struct loopfilter *lf = &cm->lf;
2897
0
    if ((lf->filter_level[0] || lf->filter_level[1]) &&
2898
0
        (skip_apply_postproc_filters & SKIP_APPLY_LOOPFILTER) == 0) {
2899
0
      assert(!cpi->ppi->rtc_ref.non_reference_frame);
2900
      // lpf_opt_level = 1 : Enables dual/quad loop-filtering.
2901
      // lpf_opt_level is set to 1 if transform size search depth in inter
2902
      // blocks is limited to one as quad loop filtering assumes that all the
2903
      // transform blocks within a 16x8/8x16/16x16 prediction block are of the
2904
      // same size. lpf_opt_level = 2 : Filters both chroma planes together, in
2905
      // addition to enabling dual/quad loop-filtering. This is enabled when lpf
2906
      // pick method is LPF_PICK_FROM_Q as u and v plane filter levels are
2907
      // equal.
2908
0
      int lpf_opt_level = get_lpf_opt_level(&cpi->sf);
2909
0
      av1_loop_filter_frame_mt(&cm->cur_frame->buf, cm, xd, 0, num_planes, 0,
2910
0
                               mt_info->workers, num_workers,
2911
0
                               &mt_info->lf_row_sync, lpf_opt_level);
2912
0
    }
2913
0
  }
2914
2915
#if CONFIG_COLLECT_COMPONENT_TIMING
2916
  end_timing(cpi, loop_filter_time);
2917
#endif
2918
2919
0
  cdef_restoration_frame(cpi, cm, xd, use_restoration, use_cdef,
2920
0
                         skip_apply_postproc_filters);
2921
0
}
2922
2923
0
static void update_motion_stat(AV1_COMP *const cpi) {
2924
0
  AV1_COMMON *const cm = &cpi->common;
2925
0
  const CommonModeInfoParams *const mi_params = &cm->mi_params;
2926
0
  RATE_CONTROL *const rc = &cpi->rc;
2927
0
  SVC *const svc = &cpi->svc;
2928
0
  const int avg_cnt_zeromv =
2929
0
      100 * cpi->rc.cnt_zeromv / (mi_params->mi_rows * mi_params->mi_cols);
2930
0
  if (!cpi->ppi->use_svc ||
2931
0
      (cpi->ppi->use_svc &&
2932
0
       !cpi->svc.layer_context[cpi->svc.temporal_layer_id].is_key_frame &&
2933
0
       cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1)) {
2934
0
    rc->avg_frame_low_motion =
2935
0
        (rc->avg_frame_low_motion == 0)
2936
0
            ? avg_cnt_zeromv
2937
0
            : (3 * rc->avg_frame_low_motion + avg_cnt_zeromv) / 4;
2938
    // For SVC: set avg_frame_low_motion (only computed on top spatial layer)
2939
    // to all lower spatial layers.
2940
0
    if (cpi->ppi->use_svc &&
2941
0
        svc->spatial_layer_id == svc->number_spatial_layers - 1) {
2942
0
      for (int i = 0; i < svc->number_spatial_layers - 1; ++i) {
2943
0
        const int layer = LAYER_IDS_TO_IDX(i, svc->temporal_layer_id,
2944
0
                                           svc->number_temporal_layers);
2945
0
        LAYER_CONTEXT *const lc = &svc->layer_context[layer];
2946
0
        RATE_CONTROL *const lrc = &lc->rc;
2947
0
        lrc->avg_frame_low_motion = rc->avg_frame_low_motion;
2948
0
      }
2949
0
    }
2950
0
  }
2951
0
}
2952
2953
/*!\brief Encode a frame without the recode loop, usually used in one-pass
2954
 * encoding and realtime coding.
2955
 *
2956
 * \ingroup high_level_algo
2957
 *
2958
 * \param[in]    cpi             Top-level encoder structure
2959
 *
2960
 * \return Returns a value to indicate if the encoding is done successfully.
2961
 * \retval #AOM_CODEC_OK
2962
 * \retval #AOM_CODEC_ERROR
2963
 */
2964
0
static int encode_without_recode(AV1_COMP *cpi) {
2965
0
  AV1_COMMON *const cm = &cpi->common;
2966
0
  const QuantizationCfg *const q_cfg = &cpi->oxcf.q_cfg;
2967
0
  SVC *const svc = &cpi->svc;
2968
0
  const int resize_pending = is_frame_resize_pending(cpi);
2969
0
  int top_index = 0, bottom_index = 0, q = 0;
2970
0
  YV12_BUFFER_CONFIG *unscaled = cpi->unscaled_source;
2971
0
  InterpFilter filter_scaler =
2972
0
      cpi->ppi->use_svc ? svc->downsample_filter_type[svc->spatial_layer_id]
2973
0
                        : EIGHTTAP_SMOOTH;
2974
0
  int phase_scaler = cpi->ppi->use_svc
2975
0
                         ? svc->downsample_filter_phase[svc->spatial_layer_id]
2976
0
                         : 0;
2977
2978
0
  if (cpi->rc.postencode_drop && allow_postencode_drop_rtc(cpi))
2979
0
    av1_save_all_coding_context(cpi);
2980
2981
0
  set_size_independent_vars(cpi);
2982
0
  av1_setup_frame_size(cpi);
2983
0
  cm->prev_frame = get_primary_ref_frame_buf(cm);
2984
0
  av1_set_size_dependent_vars(cpi, &q, &bottom_index, &top_index);
2985
0
  av1_set_mv_search_params(cpi);
2986
2987
0
  const SequenceHeader *seq_params = cm->seq_params;
2988
0
  if ((cpi->svc.source_last_TL0.buffer_alloc_sz == 0 ||
2989
0
       cpi->svc.source_last_TL0.y_crop_width != cpi->oxcf.frm_dim_cfg.width ||
2990
0
       cpi->svc.source_last_TL0.y_crop_height != cpi->oxcf.frm_dim_cfg.height ||
2991
0
       cpi->svc.source_last_TL0.subsampling_x != seq_params->subsampling_x ||
2992
0
       cpi->svc.source_last_TL0.subsampling_y != seq_params->subsampling_y ||
2993
0
       cpi->svc.source_last_TL0.flags != cpi->source->flags) &&
2994
0
      (cpi->ppi->use_svc || cpi->oxcf.rc_cfg.drop_frames_water_mark > 0)) {
2995
0
    if (aom_alloc_frame_buffer(
2996
0
            &cpi->svc.source_last_TL0, cpi->oxcf.frm_dim_cfg.width,
2997
0
            cpi->oxcf.frm_dim_cfg.height, seq_params->subsampling_x,
2998
0
            seq_params->subsampling_y, seq_params->use_highbitdepth,
2999
0
            cpi->oxcf.border_in_pixels, cm->features.byte_alignment, false,
3000
0
            0)) {
3001
0
      aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
3002
0
                         "Failed to allocate buffer for source_last_TL0");
3003
0
    }
3004
0
  }
3005
3006
0
  if (!cpi->ppi->use_svc) {
3007
0
    phase_scaler = 8;
3008
    // 2:1 scaling.
3009
0
    if ((cm->width << 1) == unscaled->y_crop_width &&
3010
0
        (cm->height << 1) == unscaled->y_crop_height) {
3011
0
      filter_scaler = BILINEAR;
3012
      // For lower resolutions use eighttap_smooth.
3013
0
      if (cm->width * cm->height <= 320 * 180) filter_scaler = EIGHTTAP_SMOOTH;
3014
0
    } else if ((cm->width << 2) == unscaled->y_crop_width &&
3015
0
               (cm->height << 2) == unscaled->y_crop_height) {
3016
      // 4:1 scaling.
3017
0
      filter_scaler = EIGHTTAP_SMOOTH;
3018
0
    } else if ((cm->width << 2) == 3 * unscaled->y_crop_width &&
3019
0
               (cm->height << 2) == 3 * unscaled->y_crop_height) {
3020
      // 4:3 scaling.
3021
0
      filter_scaler = EIGHTTAP_REGULAR;
3022
0
    }
3023
0
  }
3024
3025
0
  allocate_gradient_info_for_hog(cpi);
3026
3027
0
  allocate_src_var_of_4x4_sub_block_buf(cpi);
3028
3029
0
  const SPEED_FEATURES *sf = &cpi->sf;
3030
0
  if (sf->part_sf.partition_search_type == VAR_BASED_PARTITION)
3031
0
    variance_partition_alloc(cpi);
3032
3033
0
  if (cm->current_frame.frame_type == KEY_FRAME ||
3034
0
      ((sf->inter_sf.extra_prune_warped && cpi->refresh_frame.golden_frame)))
3035
0
    copy_frame_prob_info(cpi);
3036
3037
#if CONFIG_COLLECT_COMPONENT_TIMING
3038
  printf("\n Encoding a frame: \n");
3039
#endif
3040
3041
#if CONFIG_TUNE_BUTTERAUGLI
3042
  if (cpi->oxcf.tune_cfg.tuning == AOM_TUNE_BUTTERAUGLI) {
3043
    av1_setup_butteraugli_rdmult(cpi);
3044
  }
3045
#endif
3046
3047
0
  cpi->source = av1_realloc_and_scale_if_required(
3048
0
      cm, unscaled, &cpi->scaled_source, filter_scaler, phase_scaler, true,
3049
0
      false, cpi->oxcf.border_in_pixels, cpi->alloc_pyramid);
3050
0
  if (frame_is_intra_only(cm) || resize_pending != 0) {
3051
0
    const int current_size =
3052
0
        (cm->mi_params.mi_rows * cm->mi_params.mi_cols) >> 2;
3053
0
    if (cpi->consec_zero_mv &&
3054
0
        (cpi->consec_zero_mv_alloc_size < current_size)) {
3055
0
      aom_free(cpi->consec_zero_mv);
3056
0
      cpi->consec_zero_mv_alloc_size = 0;
3057
0
      CHECK_MEM_ERROR(cm, cpi->consec_zero_mv,
3058
0
                      aom_malloc(current_size * sizeof(*cpi->consec_zero_mv)));
3059
0
      cpi->consec_zero_mv_alloc_size = current_size;
3060
0
    }
3061
0
    assert(cpi->consec_zero_mv != NULL);
3062
0
    memset(cpi->consec_zero_mv, 0, current_size * sizeof(*cpi->consec_zero_mv));
3063
0
  }
3064
3065
0
  if (cpi->scaled_last_source_available) {
3066
0
    cpi->last_source = &cpi->scaled_last_source;
3067
0
    cpi->scaled_last_source_available = 0;
3068
0
  } else if (cpi->unscaled_last_source != NULL) {
3069
0
    cpi->last_source = av1_realloc_and_scale_if_required(
3070
0
        cm, cpi->unscaled_last_source, &cpi->scaled_last_source, filter_scaler,
3071
0
        phase_scaler, true, false, cpi->oxcf.border_in_pixels,
3072
0
        cpi->alloc_pyramid);
3073
0
  }
3074
3075
0
  if (cpi->sf.rt_sf.use_temporal_noise_estimate) {
3076
0
    av1_update_noise_estimate(cpi);
3077
0
  }
3078
3079
#if CONFIG_AV1_TEMPORAL_DENOISING
3080
  if (cpi->oxcf.noise_sensitivity > 0 && cpi->ppi->use_svc)
3081
    av1_denoiser_reset_on_first_frame(cpi);
3082
#endif
3083
3084
  // For 1 spatial layer encoding: if the (non-LAST) reference has different
3085
  // resolution from the source then disable that reference. This is to avoid
3086
  // significant increase in encode time from scaling the references in
3087
  // av1_scale_references. Note GOLDEN is forced to update on the (first/tigger)
3088
  // resized frame and ALTREF will be refreshed ~4 frames later, so both
3089
  // references become available again after few frames.
3090
  // For superres: don't disable golden reference.
3091
0
  if (svc->number_spatial_layers == 1) {
3092
0
    if (!cpi->oxcf.superres_cfg.enable_superres) {
3093
0
      if (cpi->ref_frame_flags & av1_ref_frame_flag_list[GOLDEN_FRAME]) {
3094
0
        const YV12_BUFFER_CONFIG *const ref =
3095
0
            get_ref_frame_yv12_buf(cm, GOLDEN_FRAME);
3096
0
        if (ref == NULL || ref->y_crop_width != cm->width ||
3097
0
            ref->y_crop_height != cm->height) {
3098
0
          cpi->ref_frame_flags ^= AOM_GOLD_FLAG;
3099
0
        }
3100
0
      }
3101
0
    }
3102
0
    if (cpi->ref_frame_flags & av1_ref_frame_flag_list[ALTREF_FRAME]) {
3103
0
      const YV12_BUFFER_CONFIG *const ref =
3104
0
          get_ref_frame_yv12_buf(cm, ALTREF_FRAME);
3105
0
      if (ref == NULL || ref->y_crop_width != cm->width ||
3106
0
          ref->y_crop_height != cm->height) {
3107
0
        cpi->ref_frame_flags ^= AOM_ALT_FLAG;
3108
0
      }
3109
0
    }
3110
0
  }
3111
3112
0
  int scale_references = 0;
3113
#if CONFIG_FPMT_TEST
3114
  scale_references =
3115
      cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE ? 1 : 0;
3116
#endif  // CONFIG_FPMT_TEST
3117
0
  if (scale_references ||
3118
0
      cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] == 0) {
3119
0
    if (!frame_is_intra_only(cm)) {
3120
0
      av1_scale_references(cpi, filter_scaler, phase_scaler, 1);
3121
0
    }
3122
0
  }
3123
3124
0
  av1_set_quantizer(cm, q_cfg->qm_minlevel, q_cfg->qm_maxlevel, q,
3125
0
                    q_cfg->enable_chroma_deltaq, q_cfg->enable_hdr_deltaq,
3126
0
                    cpi->oxcf.mode == ALLINTRA, cpi->oxcf.tune_cfg.tuning);
3127
0
  av1_set_speed_features_qindex_dependent(cpi, cpi->oxcf.speed);
3128
0
  av1_init_quantizer(&cpi->enc_quant_dequant_params, &cm->quant_params,
3129
0
                     cm->seq_params->bit_depth, cpi->oxcf.algo_cfg.sharpness);
3130
0
  av1_set_variance_partition_thresholds(cpi, q, 0);
3131
0
  av1_setup_frame(cpi);
3132
3133
  // Check if this high_source_sad (scene/slide change) frame should be
3134
  // encoded at high/max QP, and if so, set the q and adjust some rate
3135
  // control parameters.
3136
0
  if (cpi->sf.rt_sf.overshoot_detection_cbr == FAST_DETECTION_MAXQ &&
3137
0
      cpi->rc.high_source_sad) {
3138
0
    if (av1_encodedframe_overshoot_cbr(cpi, &q)) {
3139
0
      av1_set_quantizer(cm, q_cfg->qm_minlevel, q_cfg->qm_maxlevel, q,
3140
0
                        q_cfg->enable_chroma_deltaq, q_cfg->enable_hdr_deltaq,
3141
0
                        cpi->oxcf.mode == ALLINTRA, cpi->oxcf.tune_cfg.tuning);
3142
0
      av1_set_speed_features_qindex_dependent(cpi, cpi->oxcf.speed);
3143
0
      av1_init_quantizer(&cpi->enc_quant_dequant_params, &cm->quant_params,
3144
0
                         cm->seq_params->bit_depth,
3145
0
                         cpi->oxcf.algo_cfg.sharpness);
3146
0
      av1_set_variance_partition_thresholds(cpi, q, 0);
3147
0
      if (frame_is_intra_only(cm) || cm->features.error_resilient_mode ||
3148
0
          cm->features.primary_ref_frame == PRIMARY_REF_NONE)
3149
0
        av1_setup_frame(cpi);
3150
0
    }
3151
0
  }
3152
0
  av1_apply_active_map(cpi);
3153
0
  if (cpi->roi.enabled) {
3154
    // For now if roi map is used: don't setup cyclic refresh.
3155
0
    av1_apply_roi_map(cpi);
3156
0
  } else if (q_cfg->aq_mode == CYCLIC_REFRESH_AQ) {
3157
0
    av1_cyclic_refresh_setup(cpi);
3158
0
  }
3159
0
  if (cm->seg.enabled) {
3160
0
    if (!cm->seg.update_data && cm->prev_frame) {
3161
0
      segfeatures_copy(&cm->seg, &cm->prev_frame->seg);
3162
0
      cm->seg.enabled = cm->prev_frame->seg.enabled;
3163
0
    } else {
3164
0
      av1_calculate_segdata(&cm->seg);
3165
0
    }
3166
0
  } else {
3167
0
    memset(&cm->seg, 0, sizeof(cm->seg));
3168
0
  }
3169
0
  segfeatures_copy(&cm->cur_frame->seg, &cm->seg);
3170
0
  cm->cur_frame->seg.enabled = cm->seg.enabled;
3171
3172
  // This is for rtc temporal filtering case.
3173
0
  if (is_psnr_calc_enabled(cpi) && cpi->sf.rt_sf.use_rtc_tf) {
3174
0
    if (cpi->orig_source.buffer_alloc_sz == 0 ||
3175
0
        cpi->orig_source.y_crop_width != cpi->source->y_crop_width ||
3176
0
        cpi->orig_source.y_crop_height != cpi->source->y_crop_height ||
3177
0
        cpi->orig_source.subsampling_x != cpi->source->subsampling_x ||
3178
0
        cpi->orig_source.subsampling_y != cpi->source->subsampling_y ||
3179
0
        cpi->orig_source.flags != cpi->source->flags) {
3180
      // Allocate a source buffer to store the original source for psnr
3181
      // calculation.
3182
0
      const int use_highbitdepth =
3183
0
          (cpi->source->flags & YV12_FLAG_HIGHBITDEPTH) != 0;
3184
0
      if (aom_alloc_frame_buffer(&cpi->orig_source, cpi->source->y_crop_width,
3185
0
                                 cpi->source->y_crop_height,
3186
0
                                 cpi->source->subsampling_x,
3187
0
                                 cpi->source->subsampling_y, use_highbitdepth,
3188
0
                                 cpi->oxcf.border_in_pixels,
3189
0
                                 cm->features.byte_alignment, false, 0))
3190
0
        aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
3191
0
                           "Failed to allocate cpi->orig_source buffer");
3192
0
    }
3193
3194
0
    aom_yv12_copy_y(cpi->source, &cpi->orig_source, 1);
3195
0
    aom_yv12_copy_u(cpi->source, &cpi->orig_source, 1);
3196
0
    aom_yv12_copy_v(cpi->source, &cpi->orig_source, 1);
3197
0
  }
3198
3199
#if CONFIG_COLLECT_COMPONENT_TIMING
3200
  start_timing(cpi, av1_encode_frame_time);
3201
#endif
3202
3203
  // Set the motion vector precision based on mv stats from the last coded
3204
  // frame.
3205
0
  if (!frame_is_intra_only(cm)) av1_pick_and_set_high_precision_mv(cpi, q);
3206
3207
0
  if (svc->temporal_layer_id == 0) {
3208
0
    cpi->rc.num_col_blscroll_last_tl0 = 0;
3209
0
    cpi->rc.num_row_blscroll_last_tl0 = 0;
3210
0
  }
3211
3212
  // transform / motion compensation build reconstruction frame
3213
0
  av1_encode_frame(cpi);
3214
3215
0
  if (!cpi->rc.rtc_external_ratectrl && !frame_is_intra_only(cm))
3216
0
    update_motion_stat(cpi);
3217
3218
  // Adjust the refresh of the golden (longer-term) reference based on QP
3219
  // selected for this frame. This is for CBR real-time mode, and only
3220
  // for single layer without usage of the set_ref_frame_config (so
3221
  // reference structure for 1 layer is set internally).
3222
0
  if (!frame_is_intra_only(cm) && cpi->oxcf.rc_cfg.mode == AOM_CBR &&
3223
0
      cpi->oxcf.mode == REALTIME && svc->number_spatial_layers == 1 &&
3224
0
      svc->number_temporal_layers == 1 && !cpi->rc.rtc_external_ratectrl &&
3225
0
      !cpi->ppi->rtc_ref.set_ref_frame_config &&
3226
0
      sf->rt_sf.gf_refresh_based_on_qp)
3227
0
    av1_adjust_gf_refresh_qp_one_pass_rt(cpi);
3228
3229
  // For non-svc: if scaling is required, copy scaled_source
3230
  // into scaled_last_source.
3231
0
  if (cm->current_frame.frame_number > 1 && !cpi->ppi->use_svc &&
3232
0
      cpi->scaled_source.y_buffer != NULL &&
3233
0
      cpi->scaled_last_source.y_buffer != NULL &&
3234
0
      cpi->scaled_source.y_crop_width == cpi->scaled_last_source.y_crop_width &&
3235
0
      cpi->scaled_source.y_crop_height ==
3236
0
          cpi->scaled_last_source.y_crop_height &&
3237
0
      (cm->width != cpi->unscaled_source->y_crop_width ||
3238
0
       cm->height != cpi->unscaled_source->y_crop_height)) {
3239
0
    cpi->scaled_last_source_available = 1;
3240
0
    aom_yv12_copy_y(&cpi->scaled_source, &cpi->scaled_last_source, 1);
3241
0
    aom_yv12_copy_u(&cpi->scaled_source, &cpi->scaled_last_source, 1);
3242
0
    aom_yv12_copy_v(&cpi->scaled_source, &cpi->scaled_last_source, 1);
3243
0
  }
3244
3245
#if CONFIG_COLLECT_COMPONENT_TIMING
3246
  end_timing(cpi, av1_encode_frame_time);
3247
#endif
3248
#if CONFIG_INTERNAL_STATS
3249
  ++cpi->frame_recode_hits;
3250
#endif
3251
3252
0
  return AOM_CODEC_OK;
3253
0
}
3254
3255
#if !CONFIG_REALTIME_ONLY
3256
3257
/*!\brief Recode loop for encoding one frame. the purpose of encoding one frame
3258
 * for multiple times can be approaching a target bitrate or adjusting the usage
3259
 * of global motions.
3260
 *
3261
 * \ingroup high_level_algo
3262
 *
3263
 * \param[in]    cpi             Top-level encoder structure
3264
 * \param[in]    size            Bitstream size
3265
 * \param[out]   dest            Bitstream output buffer
3266
 * \param[in]    dest_size       Bitstream output buffer size
3267
 *
3268
 * \return Returns a value to indicate if the encoding is done successfully.
3269
 * \retval #AOM_CODEC_OK
3270
 * \retval -1
3271
 * \retval #AOM_CODEC_ERROR
3272
 */
3273
static int encode_with_recode_loop(AV1_COMP *cpi, size_t *size, uint8_t *dest,
3274
0
                                   size_t dest_size) {
3275
0
  AV1_COMMON *const cm = &cpi->common;
3276
0
  RATE_CONTROL *const rc = &cpi->rc;
3277
0
  GlobalMotionInfo *const gm_info = &cpi->gm_info;
3278
0
  const AV1EncoderConfig *const oxcf = &cpi->oxcf;
3279
0
  const QuantizationCfg *const q_cfg = &oxcf->q_cfg;
3280
0
  const int allow_recode = (cpi->sf.hl_sf.recode_loop != DISALLOW_RECODE);
3281
  // Must allow recode if minimum compression ratio is set.
3282
0
  assert(IMPLIES(oxcf->rc_cfg.min_cr > 0, allow_recode));
3283
3284
0
  set_size_independent_vars(cpi);
3285
0
  if (is_stat_consumption_stage_twopass(cpi) &&
3286
0
      cpi->sf.interp_sf.adaptive_interp_filter_search)
3287
0
    cpi->interp_search_flags.interp_filter_search_mask =
3288
0
        av1_setup_interp_filter_search_mask(cpi);
3289
3290
0
  av1_setup_frame_size(cpi);
3291
3292
0
  if (av1_superres_in_recode_allowed(cpi) &&
3293
0
      cpi->superres_mode != AOM_SUPERRES_NONE &&
3294
0
      cm->superres_scale_denominator == SCALE_NUMERATOR) {
3295
    // Superres mode is currently enabled, but the denominator selected will
3296
    // disable superres. So no need to continue, as we will go through another
3297
    // recode loop for full-resolution after this anyway.
3298
0
    return -1;
3299
0
  }
3300
3301
0
  int top_index = 0, bottom_index = 0;
3302
0
  int q = 0, q_low = 0, q_high = 0;
3303
0
  av1_set_size_dependent_vars(cpi, &q, &bottom_index, &top_index);
3304
0
  q_low = bottom_index;
3305
0
  q_high = top_index;
3306
3307
0
  av1_set_mv_search_params(cpi);
3308
3309
0
  allocate_gradient_info_for_hog(cpi);
3310
3311
0
  allocate_src_var_of_4x4_sub_block_buf(cpi);
3312
3313
0
  if (cpi->sf.part_sf.partition_search_type == VAR_BASED_PARTITION)
3314
0
    variance_partition_alloc(cpi);
3315
3316
0
  if (cm->current_frame.frame_type == KEY_FRAME) copy_frame_prob_info(cpi);
3317
3318
#if CONFIG_COLLECT_COMPONENT_TIMING
3319
  printf("\n Encoding a frame: \n");
3320
#endif
3321
3322
0
#if !CONFIG_RD_COMMAND
3323
  // Determine whether to use screen content tools using two fast encoding.
3324
0
  if (!cpi->sf.hl_sf.disable_extra_sc_testing && !cpi->use_ducky_encode)
3325
0
    av1_determine_sc_tools_with_encoding(cpi, q);
3326
0
#endif  // !CONFIG_RD_COMMAND
3327
3328
#if CONFIG_TUNE_VMAF
3329
  if (oxcf->tune_cfg.tuning == AOM_TUNE_VMAF_NEG_MAX_GAIN) {
3330
    av1_vmaf_neg_preprocessing(cpi, cpi->unscaled_source);
3331
  }
3332
#endif
3333
3334
#if CONFIG_TUNE_BUTTERAUGLI
3335
  cpi->butteraugli_info.recon_set = false;
3336
  int original_q = 0;
3337
#endif
3338
3339
0
  cpi->num_frame_recode = 0;
3340
3341
  // Loop variables
3342
0
  int loop = 0;
3343
0
  int loop_count = 0;
3344
0
  int overshoot_seen = 0;
3345
0
  int undershoot_seen = 0;
3346
0
  int low_cr_seen = 0;
3347
0
  int last_loop_allow_hp = 0;
3348
3349
0
  do {
3350
0
    loop = 0;
3351
0
    int do_mv_stats_collection = 1;
3352
3353
    // if frame was scaled calculate global_motion_search again if already
3354
    // done
3355
0
    if (loop_count > 0 && cpi->source && gm_info->search_done) {
3356
0
      if (cpi->source->y_crop_width != cm->width ||
3357
0
          cpi->source->y_crop_height != cm->height) {
3358
0
        gm_info->search_done = 0;
3359
0
      }
3360
0
    }
3361
0
    cpi->source = av1_realloc_and_scale_if_required(
3362
0
        cm, cpi->unscaled_source, &cpi->scaled_source, EIGHTTAP_REGULAR, 0,
3363
0
        false, false, cpi->oxcf.border_in_pixels, cpi->alloc_pyramid);
3364
3365
#if CONFIG_TUNE_BUTTERAUGLI
3366
    if (oxcf->tune_cfg.tuning == AOM_TUNE_BUTTERAUGLI) {
3367
      if (loop_count == 0) {
3368
        original_q = q;
3369
        // TODO(sdeng): different q here does not make big difference. Use a
3370
        // faster pass instead.
3371
        q = 96;
3372
        av1_setup_butteraugli_source(cpi);
3373
      } else {
3374
        q = original_q;
3375
      }
3376
    }
3377
#endif
3378
3379
0
    if (cpi->unscaled_last_source != NULL) {
3380
0
      cpi->last_source = av1_realloc_and_scale_if_required(
3381
0
          cm, cpi->unscaled_last_source, &cpi->scaled_last_source,
3382
0
          EIGHTTAP_REGULAR, 0, false, false, cpi->oxcf.border_in_pixels,
3383
0
          cpi->alloc_pyramid);
3384
0
    }
3385
3386
0
    int scale_references = 0;
3387
#if CONFIG_FPMT_TEST
3388
    scale_references =
3389
        cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE ? 1 : 0;
3390
#endif  // CONFIG_FPMT_TEST
3391
0
    if (scale_references ||
3392
0
        cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] == 0) {
3393
0
      if (!frame_is_intra_only(cm)) {
3394
0
        if (loop_count > 0) {
3395
0
          release_scaled_references(cpi);
3396
0
        }
3397
0
        av1_scale_references(cpi, EIGHTTAP_REGULAR, 0, 0);
3398
0
      }
3399
0
    }
3400
3401
#if CONFIG_TUNE_VMAF
3402
    if (oxcf->tune_cfg.tuning >= AOM_TUNE_VMAF_WITH_PREPROCESSING &&
3403
        oxcf->tune_cfg.tuning <= AOM_TUNE_VMAF_NEG_MAX_GAIN) {
3404
      cpi->vmaf_info.original_qindex = q;
3405
      q = av1_get_vmaf_base_qindex(cpi, q);
3406
    }
3407
#endif
3408
3409
#if CONFIG_RD_COMMAND
3410
    RD_COMMAND *rd_command = &cpi->rd_command;
3411
    RD_OPTION option = rd_command->option_ls[rd_command->frame_index];
3412
    if (option == RD_OPTION_SET_Q || option == RD_OPTION_SET_Q_RDMULT) {
3413
      q = rd_command->q_index_ls[rd_command->frame_index];
3414
    }
3415
#endif  // CONFIG_RD_COMMAND
3416
3417
#if CONFIG_BITRATE_ACCURACY
3418
#if CONFIG_THREE_PASS
3419
    if (oxcf->pass == AOM_RC_THIRD_PASS && cpi->vbr_rc_info.ready == 1) {
3420
      int frame_coding_idx =
3421
          av1_vbr_rc_frame_coding_idx(&cpi->vbr_rc_info, cpi->gf_frame_index);
3422
      if (frame_coding_idx < cpi->vbr_rc_info.total_frame_count) {
3423
        q = cpi->vbr_rc_info.q_index_list[frame_coding_idx];
3424
      } else {
3425
        // TODO(angiebird): Investigate why sometimes there is an extra frame
3426
        // after the last GOP.
3427
        q = cpi->vbr_rc_info.base_q_index;
3428
      }
3429
    }
3430
#else
3431
    if (cpi->vbr_rc_info.q_index_list_ready) {
3432
      q = cpi->vbr_rc_info.q_index_list[cpi->gf_frame_index];
3433
    }
3434
#endif  // CONFIG_THREE_PASS
3435
#endif  // CONFIG_BITRATE_ACCURACY
3436
3437
#if CONFIG_RATECTRL_LOG && CONFIG_THREE_PASS && CONFIG_BITRATE_ACCURACY
3438
    // TODO(angiebird): Move this into a function.
3439
    if (oxcf->pass == AOM_RC_THIRD_PASS) {
3440
      int frame_coding_idx =
3441
          av1_vbr_rc_frame_coding_idx(&cpi->vbr_rc_info, cpi->gf_frame_index);
3442
      double qstep_ratio = cpi->vbr_rc_info.qstep_ratio_list[frame_coding_idx];
3443
      FRAME_UPDATE_TYPE update_type =
3444
          cpi->vbr_rc_info.update_type_list[frame_coding_idx];
3445
      rc_log_frame_encode_param(&cpi->rc_log, frame_coding_idx, qstep_ratio, q,
3446
                                update_type);
3447
    }
3448
#endif  // CONFIG_RATECTRL_LOG && CONFIG_THREE_PASS && CONFIG_BITRATE_ACCURACY
3449
3450
0
    if (cpi->use_ducky_encode) {
3451
0
      const DuckyEncodeFrameInfo *frame_info =
3452
0
          &cpi->ducky_encode_info.frame_info;
3453
0
      if (frame_info->qp_mode == DUCKY_ENCODE_FRAME_MODE_QINDEX) {
3454
0
        q = frame_info->q_index;
3455
0
        cm->delta_q_info.delta_q_present_flag = frame_info->delta_q_enabled;
3456
0
      }
3457
0
    }
3458
3459
0
    if (av1_encode_for_extrc(&cpi->ext_ratectrl)) {
3460
0
      aom_codec_err_t codec_status;
3461
0
      aom_rc_encodeframe_decision_t encode_frame_decision;
3462
0
      const int sb_rows = CEIL_POWER_OF_TWO(cm->mi_params.mi_rows,
3463
0
                                            cm->seq_params->mib_size_log2);
3464
0
      const int sb_cols = CEIL_POWER_OF_TWO(cm->mi_params.mi_cols,
3465
0
                                            cm->seq_params->mib_size_log2);
3466
      // This assumes frame sizes don't change when used with external RC.
3467
      // cpi->ext_ratectrl is zero'ed at init.
3468
0
      if (cpi->ext_ratectrl.sb_params_list == NULL) {
3469
0
        CHECK_MEM_ERROR(
3470
0
            cm, cpi->ext_ratectrl.sb_params_list,
3471
0
            (aom_sb_params *)aom_calloc(
3472
0
                sb_rows * sb_cols, sizeof(*cpi->ext_ratectrl.sb_params_list)));
3473
0
      }
3474
0
      encode_frame_decision.sb_params_list = cpi->ext_ratectrl.sb_params_list;
3475
0
      encode_frame_decision.use_delta_q = &cpi->ext_ratectrl.use_delta_q;
3476
0
      codec_status = av1_extrc_get_encodeframe_decision(
3477
0
          &cpi->ext_ratectrl, cpi->gf_frame_index, &encode_frame_decision);
3478
0
      if (codec_status != AOM_CODEC_OK) {
3479
0
        aom_internal_error(cm->error, codec_status,
3480
0
                           "av1_extrc_get_encodeframe_decision() failed");
3481
0
      }
3482
      // If the external model recommends a reserved value, we use the default
3483
      // q.
3484
0
      if (encode_frame_decision.q_index != AOM_DEFAULT_Q) {
3485
0
        q = encode_frame_decision.q_index;
3486
0
      }
3487
0
    }
3488
3489
0
    av1_set_quantizer(cm, q_cfg->qm_minlevel, q_cfg->qm_maxlevel, q,
3490
0
                      q_cfg->enable_chroma_deltaq, q_cfg->enable_hdr_deltaq,
3491
0
                      oxcf->mode == ALLINTRA, oxcf->tune_cfg.tuning);
3492
0
    av1_set_speed_features_qindex_dependent(cpi, oxcf->speed);
3493
0
    av1_init_quantizer(&cpi->enc_quant_dequant_params, &cm->quant_params,
3494
0
                       cm->seq_params->bit_depth, cpi->oxcf.algo_cfg.sharpness);
3495
3496
0
    av1_set_variance_partition_thresholds(cpi, q, 0);
3497
3498
0
    if (loop_count == 0) {
3499
0
      av1_setup_frame(cpi);
3500
0
    } else if (get_primary_ref_frame_buf(cm) == NULL) {
3501
      // Base q-index may have changed, so we need to assign proper default coef
3502
      // probs before every iteration.
3503
0
      av1_default_coef_probs(cm);
3504
0
      av1_setup_frame_contexts(cm);
3505
0
    }
3506
3507
0
    if (q_cfg->aq_mode == VARIANCE_AQ) {
3508
0
      av1_vaq_frame_setup(cpi);
3509
0
    } else if (q_cfg->aq_mode == COMPLEXITY_AQ) {
3510
0
      av1_setup_in_frame_q_adj(cpi);
3511
0
    }
3512
3513
0
    if (cm->seg.enabled) {
3514
0
      if (!cm->seg.update_data && cm->prev_frame) {
3515
0
        segfeatures_copy(&cm->seg, &cm->prev_frame->seg);
3516
0
        cm->seg.enabled = cm->prev_frame->seg.enabled;
3517
0
      } else {
3518
0
        av1_calculate_segdata(&cm->seg);
3519
0
      }
3520
0
    } else {
3521
0
      memset(&cm->seg, 0, sizeof(cm->seg));
3522
0
    }
3523
0
    segfeatures_copy(&cm->cur_frame->seg, &cm->seg);
3524
0
    cm->cur_frame->seg.enabled = cm->seg.enabled;
3525
3526
#if CONFIG_COLLECT_COMPONENT_TIMING
3527
    start_timing(cpi, av1_encode_frame_time);
3528
#endif
3529
    // Set the motion vector precision based on mv stats from the last coded
3530
    // frame.
3531
0
    if (!frame_is_intra_only(cm)) {
3532
0
      av1_pick_and_set_high_precision_mv(cpi, q);
3533
3534
      // If the precision has changed during different iteration of the loop,
3535
      // then we need to reset the global motion vectors
3536
0
      if (loop_count > 0 &&
3537
0
          cm->features.allow_high_precision_mv != last_loop_allow_hp) {
3538
0
        gm_info->search_done = 0;
3539
0
      }
3540
0
      last_loop_allow_hp = cm->features.allow_high_precision_mv;
3541
0
    }
3542
3543
    // transform / motion compensation build reconstruction frame
3544
0
    av1_encode_frame(cpi);
3545
3546
    // Disable mv_stats collection for parallel frames based on update flag.
3547
0
    if (!cpi->do_frame_data_update) do_mv_stats_collection = 0;
3548
3549
    // Reset the mv_stats in case we are interrupted by an intraframe or an
3550
    // overlay frame.
3551
0
    if (cpi->mv_stats.valid && do_mv_stats_collection) av1_zero(cpi->mv_stats);
3552
3553
    // Gather the mv_stats for the next frame
3554
0
    if (cpi->sf.hl_sf.high_precision_mv_usage == LAST_MV_DATA &&
3555
0
        av1_frame_allows_smart_mv(cpi) && do_mv_stats_collection) {
3556
0
      av1_collect_mv_stats(cpi, q);
3557
0
    }
3558
3559
#if CONFIG_COLLECT_COMPONENT_TIMING
3560
    end_timing(cpi, av1_encode_frame_time);
3561
#endif
3562
3563
#if CONFIG_BITRATE_ACCURACY || CONFIG_RD_COMMAND
3564
    const int do_dummy_pack = 1;
3565
#else   // CONFIG_BITRATE_ACCURACY
3566
    // Dummy pack of the bitstream using up to date stats to get an
3567
    // accurate estimate of output frame size to determine if we need
3568
    // to recode.
3569
0
    const int do_dummy_pack =
3570
0
        (cpi->sf.hl_sf.recode_loop >= ALLOW_RECODE_KFARFGF &&
3571
0
         oxcf->rc_cfg.mode != AOM_Q) ||
3572
0
        oxcf->rc_cfg.min_cr > 0;
3573
0
#endif  // CONFIG_BITRATE_ACCURACY
3574
0
    if (do_dummy_pack) {
3575
0
      av1_finalize_encoded_frame(cpi);
3576
0
      int largest_tile_id = 0;  // Output from bitstream: unused here
3577
0
      rc->coefficient_size = 0;
3578
0
      if (av1_pack_bitstream(cpi, dest, dest_size, size, &largest_tile_id) !=
3579
0
          AOM_CODEC_OK) {
3580
0
        return AOM_CODEC_ERROR;
3581
0
      }
3582
3583
      // bits used for this frame
3584
0
      rc->projected_frame_size = (int)(*size) << 3;
3585
#if CONFIG_RD_COMMAND
3586
      PSNR_STATS psnr;
3587
      aom_calc_psnr(cpi->source, &cpi->common.cur_frame->buf, &psnr);
3588
      printf("q %d rdmult %d rate %d dist %" PRIu64 "\n", q, cpi->rd.RDMULT,
3589
             rc->projected_frame_size, psnr.sse[0]);
3590
      ++rd_command->frame_index;
3591
      if (rd_command->frame_index == rd_command->frame_count) {
3592
        return AOM_CODEC_ERROR;
3593
      }
3594
#endif  // CONFIG_RD_COMMAND
3595
3596
#if CONFIG_RATECTRL_LOG && CONFIG_THREE_PASS && CONFIG_BITRATE_ACCURACY
3597
      if (oxcf->pass == AOM_RC_THIRD_PASS) {
3598
        int frame_coding_idx =
3599
            av1_vbr_rc_frame_coding_idx(&cpi->vbr_rc_info, cpi->gf_frame_index);
3600
        rc_log_frame_entropy(&cpi->rc_log, frame_coding_idx,
3601
                             rc->projected_frame_size, rc->coefficient_size);
3602
      }
3603
#endif  // CONFIG_RATECTRL_LOG && CONFIG_THREE_PASS && CONFIG_BITRATE_ACCURACY
3604
0
    }
3605
3606
#if CONFIG_TUNE_VMAF
3607
    if (oxcf->tune_cfg.tuning >= AOM_TUNE_VMAF_WITH_PREPROCESSING &&
3608
        oxcf->tune_cfg.tuning <= AOM_TUNE_VMAF_NEG_MAX_GAIN) {
3609
      q = cpi->vmaf_info.original_qindex;
3610
    }
3611
#endif
3612
0
    if (allow_recode) {
3613
      // Update q and decide whether to do a recode loop
3614
0
      recode_loop_update_q(cpi, &loop, &q, &q_low, &q_high, top_index,
3615
0
                           bottom_index, &undershoot_seen, &overshoot_seen,
3616
0
                           &low_cr_seen, loop_count);
3617
0
    }
3618
3619
#if CONFIG_TUNE_BUTTERAUGLI
3620
    if (loop_count == 0 && oxcf->tune_cfg.tuning == AOM_TUNE_BUTTERAUGLI) {
3621
      loop = 1;
3622
      av1_setup_butteraugli_rdmult_and_restore_source(cpi, 0.4);
3623
    }
3624
#endif
3625
3626
0
    if (cpi->use_ducky_encode) {
3627
      // Ducky encode currently does not support recode loop.
3628
0
      loop = 0;
3629
0
    }
3630
3631
    // Do not recode if external rate control is used.
3632
0
    if (av1_encode_for_extrc(&cpi->ext_ratectrl)) {
3633
0
      loop = 0;
3634
0
    }
3635
#if CONFIG_BITRATE_ACCURACY || CONFIG_RD_COMMAND
3636
    loop = 0;  // turn off recode loop when CONFIG_BITRATE_ACCURACY is on
3637
#endif         // CONFIG_BITRATE_ACCURACY || CONFIG_RD_COMMAND
3638
3639
0
    if (loop) {
3640
0
      ++loop_count;
3641
0
      cpi->num_frame_recode =
3642
0
          (cpi->num_frame_recode < (NUM_RECODES_PER_FRAME - 1))
3643
0
              ? (cpi->num_frame_recode + 1)
3644
0
              : (NUM_RECODES_PER_FRAME - 1);
3645
#if CONFIG_INTERNAL_STATS
3646
      ++cpi->frame_recode_hits;
3647
#endif
3648
0
    }
3649
#if CONFIG_COLLECT_COMPONENT_TIMING
3650
    if (loop) printf("\n Recoding:");
3651
#endif
3652
0
  } while (loop);
3653
3654
0
  return AOM_CODEC_OK;
3655
0
}
3656
#endif  // !CONFIG_REALTIME_ONLY
3657
3658
// TODO(jingning, paulwilkins): Set up high grain level to test
3659
// hardware decoders. Need to adapt the actual noise variance
3660
// according to the difference between reconstructed frame and the
3661
// source signal.
3662
0
static void set_grain_syn_params(AV1_COMMON *cm) {
3663
0
  aom_film_grain_t *film_grain_params = &cm->film_grain_params;
3664
0
  film_grain_params->apply_grain = 1;
3665
0
  film_grain_params->update_parameters = 1;
3666
0
  film_grain_params->random_seed = rand() & 0xffff;
3667
3668
0
  film_grain_params->num_y_points = 1;
3669
0
  film_grain_params->scaling_points_y[0][0] = 128;
3670
0
  film_grain_params->scaling_points_y[0][1] = 100;
3671
3672
0
  if (!cm->seq_params->monochrome) {
3673
0
    film_grain_params->num_cb_points = 1;
3674
0
    film_grain_params->scaling_points_cb[0][0] = 128;
3675
0
    film_grain_params->scaling_points_cb[0][1] = 100;
3676
3677
0
    film_grain_params->num_cr_points = 1;
3678
0
    film_grain_params->scaling_points_cr[0][0] = 128;
3679
0
    film_grain_params->scaling_points_cr[0][1] = 100;
3680
0
  } else {
3681
0
    film_grain_params->num_cb_points = 0;
3682
0
    film_grain_params->num_cr_points = 0;
3683
0
  }
3684
3685
0
  film_grain_params->chroma_scaling_from_luma = 0;
3686
3687
0
  film_grain_params->scaling_shift = 1;
3688
0
  film_grain_params->ar_coeff_lag = 0;
3689
0
  film_grain_params->ar_coeff_shift = 1;
3690
0
  film_grain_params->overlap_flag = 1;
3691
0
  film_grain_params->grain_scale_shift = 0;
3692
0
}
3693
3694
/*!\brief Recode loop or a single loop for encoding one frame, followed by
3695
 * in-loop deblocking filters, CDEF filters, and restoration filters.
3696
 *
3697
 * \ingroup high_level_algo
3698
 * \callgraph
3699
 * \callergraph
3700
 *
3701
 * \param[in]    cpi             Top-level encoder structure
3702
 * \param[in]    size            Bitstream size
3703
 * \param[out]   dest            Bitstream output buffer
3704
 * \param[in]    dest_size       Bitstream output buffer size
3705
 * \param[in]    sse             Total distortion of the frame
3706
 * \param[in]    rate            Total rate of the frame
3707
 * \param[in]    largest_tile_id Tile id of the last tile
3708
 *
3709
 * \return Returns a value to indicate if the encoding is done successfully.
3710
 * \retval #AOM_CODEC_OK
3711
 * \retval #AOM_CODEC_ERROR
3712
 */
3713
static int encode_with_recode_loop_and_filter(AV1_COMP *cpi, size_t *size,
3714
                                              uint8_t *dest, size_t dest_size,
3715
                                              int64_t *sse, int64_t *rate,
3716
0
                                              int *largest_tile_id) {
3717
#if CONFIG_COLLECT_COMPONENT_TIMING
3718
  start_timing(cpi, encode_with_or_without_recode_time);
3719
#endif
3720
0
  for (int i = 0; i < NUM_RECODES_PER_FRAME; i++) {
3721
0
    cpi->do_update_frame_probs_txtype[i] = 0;
3722
0
    cpi->do_update_frame_probs_obmc[i] = 0;
3723
0
    cpi->do_update_frame_probs_warp[i] = 0;
3724
0
    cpi->do_update_frame_probs_interpfilter[i] = 0;
3725
0
  }
3726
3727
0
  cpi->do_update_vbr_bits_off_target_fast = 0;
3728
0
  int err;
3729
#if CONFIG_REALTIME_ONLY
3730
  err = encode_without_recode(cpi);
3731
#else
3732
0
  if (cpi->sf.hl_sf.recode_loop == DISALLOW_RECODE)
3733
0
    err = encode_without_recode(cpi);
3734
0
  else
3735
0
    err = encode_with_recode_loop(cpi, size, dest, dest_size);
3736
0
#endif
3737
#if CONFIG_COLLECT_COMPONENT_TIMING
3738
  end_timing(cpi, encode_with_or_without_recode_time);
3739
#endif
3740
0
  if (err != AOM_CODEC_OK) {
3741
0
    if (err == -1) {
3742
      // special case as described in encode_with_recode_loop().
3743
      // Encoding was skipped.
3744
0
      err = AOM_CODEC_OK;
3745
0
      if (sse != NULL) *sse = INT64_MAX;
3746
0
      if (rate != NULL) *rate = INT64_MAX;
3747
0
      *largest_tile_id = 0;
3748
0
    }
3749
0
    return err;
3750
0
  }
3751
3752
#ifdef OUTPUT_YUV_DENOISED
3753
  const AV1EncoderConfig *const oxcf = &cpi->oxcf;
3754
  if (oxcf->noise_sensitivity > 0 && denoise_svc(cpi)) {
3755
    aom_write_yuv_frame(yuv_denoised_file,
3756
                        &cpi->denoiser.running_avg_y[INTRA_FRAME]);
3757
  }
3758
#endif
3759
3760
0
  AV1_COMMON *const cm = &cpi->common;
3761
0
  SequenceHeader *const seq_params = cm->seq_params;
3762
3763
  // Special case code to reduce pulsing when key frames are forced at a
3764
  // fixed interval. Note the reconstruction error if it is the frame before
3765
  // the force key frame
3766
0
  if (cpi->ppi->p_rc.next_key_frame_forced && cpi->rc.frames_to_key == 1) {
3767
0
#if CONFIG_AV1_HIGHBITDEPTH
3768
0
    if (seq_params->use_highbitdepth) {
3769
0
      cpi->ambient_err = aom_highbd_get_y_sse(cpi->source, &cm->cur_frame->buf);
3770
0
    } else {
3771
0
      cpi->ambient_err = aom_get_y_sse(cpi->source, &cm->cur_frame->buf);
3772
0
    }
3773
#else
3774
    cpi->ambient_err = aom_get_y_sse(cpi->source, &cm->cur_frame->buf);
3775
#endif
3776
0
  }
3777
3778
0
  cm->cur_frame->buf.color_primaries = seq_params->color_primaries;
3779
0
  cm->cur_frame->buf.transfer_characteristics =
3780
0
      seq_params->transfer_characteristics;
3781
0
  cm->cur_frame->buf.matrix_coefficients = seq_params->matrix_coefficients;
3782
0
  cm->cur_frame->buf.monochrome = seq_params->monochrome;
3783
0
  cm->cur_frame->buf.chroma_sample_position =
3784
0
      seq_params->chroma_sample_position;
3785
0
  cm->cur_frame->buf.color_range = seq_params->color_range;
3786
0
  cm->cur_frame->buf.render_width = cm->render_width;
3787
0
  cm->cur_frame->buf.render_height = cm->render_height;
3788
3789
0
  if (!cpi->mt_info.pipeline_lpf_mt_with_enc)
3790
0
    set_postproc_filter_default_params(&cpi->common);
3791
3792
0
  if (!cm->features.allow_intrabc) {
3793
0
    loopfilter_frame(cpi, cm);
3794
0
  }
3795
3796
0
  if (cpi->oxcf.mode != ALLINTRA && !cpi->ppi->rtc_ref.non_reference_frame) {
3797
0
    extend_frame_borders(cpi);
3798
0
  }
3799
3800
#ifdef OUTPUT_YUV_REC
3801
  aom_write_one_yuv_frame(cm, &cm->cur_frame->buf);
3802
#endif
3803
3804
0
  if (cpi->oxcf.tune_cfg.content == AOM_CONTENT_FILM) {
3805
0
    set_grain_syn_params(cm);
3806
0
  }
3807
3808
0
  av1_finalize_encoded_frame(cpi);
3809
  // Build the bitstream
3810
#if CONFIG_COLLECT_COMPONENT_TIMING
3811
  start_timing(cpi, av1_pack_bitstream_final_time);
3812
#endif
3813
0
  cpi->rc.coefficient_size = 0;
3814
0
  if (av1_pack_bitstream(cpi, dest, dest_size, size, largest_tile_id) !=
3815
0
      AOM_CODEC_OK)
3816
0
    return AOM_CODEC_ERROR;
3817
#if CONFIG_COLLECT_COMPONENT_TIMING
3818
  end_timing(cpi, av1_pack_bitstream_final_time);
3819
#endif
3820
3821
0
  if (cpi->rc.postencode_drop && allow_postencode_drop_rtc(cpi) &&
3822
0
      av1_postencode_drop_cbr(cpi, size)) {
3823
0
    return AOM_CODEC_OK;
3824
0
  }
3825
3826
  // Compute sse and rate.
3827
0
  if (sse != NULL) {
3828
0
#if CONFIG_AV1_HIGHBITDEPTH
3829
0
    *sse = (seq_params->use_highbitdepth)
3830
0
               ? aom_highbd_get_y_sse(cpi->source, &cm->cur_frame->buf)
3831
0
               : aom_get_y_sse(cpi->source, &cm->cur_frame->buf);
3832
#else
3833
    *sse = aom_get_y_sse(cpi->source, &cm->cur_frame->buf);
3834
#endif
3835
0
  }
3836
0
  if (rate != NULL) {
3837
0
    const int64_t bits = (*size << 3);
3838
0
    *rate = (bits << 5);  // To match scale.
3839
0
  }
3840
3841
0
#if !CONFIG_REALTIME_ONLY
3842
0
  if (cpi->use_ducky_encode) {
3843
0
    PSNR_STATS psnr;
3844
0
    aom_calc_psnr(cpi->source, &cpi->common.cur_frame->buf, &psnr);
3845
0
    DuckyEncodeFrameResult *frame_result = &cpi->ducky_encode_info.frame_result;
3846
0
    frame_result->global_order_idx = cm->cur_frame->display_order_hint;
3847
0
    frame_result->q_index = cm->quant_params.base_qindex;
3848
0
    frame_result->rdmult = cpi->rd.RDMULT;
3849
0
    frame_result->rate = (int)(*size) * 8;
3850
0
    frame_result->dist = psnr.sse[0];
3851
0
    frame_result->psnr = psnr.psnr[0];
3852
0
  }
3853
0
#endif  // !CONFIG_REALTIME_ONLY
3854
3855
0
  return AOM_CODEC_OK;
3856
0
}
3857
3858
static int encode_with_and_without_superres(AV1_COMP *cpi, size_t *size,
3859
                                            uint8_t *dest, size_t dest_size,
3860
0
                                            int *largest_tile_id) {
3861
0
  const AV1_COMMON *const cm = &cpi->common;
3862
0
  assert(cm->seq_params->enable_superres);
3863
0
  assert(av1_superres_in_recode_allowed(cpi));
3864
0
  aom_codec_err_t err = AOM_CODEC_OK;
3865
0
  av1_save_all_coding_context(cpi);
3866
3867
0
  int64_t sse1 = INT64_MAX;
3868
0
  int64_t rate1 = INT64_MAX;
3869
0
  int largest_tile_id1 = 0;
3870
0
  int64_t sse2 = INT64_MAX;
3871
0
  int64_t rate2 = INT64_MAX;
3872
0
  int largest_tile_id2;
3873
0
  double proj_rdcost1 = DBL_MAX;
3874
0
  const GF_GROUP *const gf_group = &cpi->ppi->gf_group;
3875
0
  const FRAME_UPDATE_TYPE update_type =
3876
0
      gf_group->update_type[cpi->gf_frame_index];
3877
0
  const aom_bit_depth_t bit_depth = cm->seq_params->bit_depth;
3878
3879
  // Encode with superres.
3880
0
  if (cpi->sf.hl_sf.superres_auto_search_type == SUPERRES_AUTO_ALL) {
3881
0
    SuperResCfg *const superres_cfg = &cpi->oxcf.superres_cfg;
3882
0
    int64_t superres_sses[SCALE_NUMERATOR];
3883
0
    int64_t superres_rates[SCALE_NUMERATOR];
3884
0
    int superres_largest_tile_ids[SCALE_NUMERATOR];
3885
    // Use superres for Key-frames and Alt-ref frames only.
3886
0
    if (update_type != OVERLAY_UPDATE && update_type != INTNL_OVERLAY_UPDATE) {
3887
0
      for (int denom = SCALE_NUMERATOR + 1; denom <= 2 * SCALE_NUMERATOR;
3888
0
           ++denom) {
3889
0
        superres_cfg->superres_scale_denominator = denom;
3890
0
        superres_cfg->superres_kf_scale_denominator = denom;
3891
0
        const int this_index = denom - (SCALE_NUMERATOR + 1);
3892
3893
0
        cpi->superres_mode = AOM_SUPERRES_AUTO;  // Super-res on for this loop.
3894
0
        err = encode_with_recode_loop_and_filter(
3895
0
            cpi, size, dest, dest_size, &superres_sses[this_index],
3896
0
            &superres_rates[this_index],
3897
0
            &superres_largest_tile_ids[this_index]);
3898
0
        cpi->superres_mode = AOM_SUPERRES_NONE;  // Reset to default (full-res).
3899
0
        if (err != AOM_CODEC_OK) return err;
3900
0
        restore_all_coding_context(cpi);
3901
0
      }
3902
      // Reset.
3903
0
      superres_cfg->superres_scale_denominator = SCALE_NUMERATOR;
3904
0
      superres_cfg->superres_kf_scale_denominator = SCALE_NUMERATOR;
3905
0
    } else {
3906
0
      for (int denom = SCALE_NUMERATOR + 1; denom <= 2 * SCALE_NUMERATOR;
3907
0
           ++denom) {
3908
0
        const int this_index = denom - (SCALE_NUMERATOR + 1);
3909
0
        superres_sses[this_index] = INT64_MAX;
3910
0
        superres_rates[this_index] = INT64_MAX;
3911
0
        superres_largest_tile_ids[this_index] = 0;
3912
0
      }
3913
0
    }
3914
    // Encode without superres.
3915
0
    assert(cpi->superres_mode == AOM_SUPERRES_NONE);
3916
0
    err = encode_with_recode_loop_and_filter(cpi, size, dest, dest_size, &sse2,
3917
0
                                             &rate2, &largest_tile_id2);
3918
0
    if (err != AOM_CODEC_OK) return err;
3919
3920
    // Note: Both use common rdmult based on base qindex of fullres.
3921
0
    const int64_t rdmult = av1_compute_rd_mult_based_on_qindex(
3922
0
        bit_depth, update_type, cm->quant_params.base_qindex,
3923
0
        cpi->oxcf.tune_cfg.tuning, cpi->oxcf.mode);
3924
3925
    // Find the best rdcost among all superres denoms.
3926
0
    int best_denom = -1;
3927
0
    for (int denom = SCALE_NUMERATOR + 1; denom <= 2 * SCALE_NUMERATOR;
3928
0
         ++denom) {
3929
0
      const int this_index = denom - (SCALE_NUMERATOR + 1);
3930
0
      const int64_t this_sse = superres_sses[this_index];
3931
0
      const int64_t this_rate = superres_rates[this_index];
3932
0
      const int this_largest_tile_id = superres_largest_tile_ids[this_index];
3933
0
      const double this_rdcost = RDCOST_DBL_WITH_NATIVE_BD_DIST(
3934
0
          rdmult, this_rate, this_sse, bit_depth);
3935
0
      if (this_rdcost < proj_rdcost1) {
3936
0
        sse1 = this_sse;
3937
0
        rate1 = this_rate;
3938
0
        largest_tile_id1 = this_largest_tile_id;
3939
0
        proj_rdcost1 = this_rdcost;
3940
0
        best_denom = denom;
3941
0
      }
3942
0
    }
3943
0
    const double proj_rdcost2 =
3944
0
        RDCOST_DBL_WITH_NATIVE_BD_DIST(rdmult, rate2, sse2, bit_depth);
3945
    // Re-encode with superres if it's better.
3946
0
    if (proj_rdcost1 < proj_rdcost2) {
3947
0
      restore_all_coding_context(cpi);
3948
      // TODO(urvang): We should avoid rerunning the recode loop by saving
3949
      // previous output+state, or running encode only for the selected 'q' in
3950
      // previous step.
3951
      // Again, temporarily force the best denom.
3952
0
      superres_cfg->superres_scale_denominator = best_denom;
3953
0
      superres_cfg->superres_kf_scale_denominator = best_denom;
3954
0
      int64_t sse3 = INT64_MAX;
3955
0
      int64_t rate3 = INT64_MAX;
3956
0
      cpi->superres_mode =
3957
0
          AOM_SUPERRES_AUTO;  // Super-res on for this recode loop.
3958
0
      err = encode_with_recode_loop_and_filter(cpi, size, dest, dest_size,
3959
0
                                               &sse3, &rate3, largest_tile_id);
3960
0
      cpi->superres_mode = AOM_SUPERRES_NONE;  // Reset to default (full-res).
3961
0
      assert(sse1 == sse3);
3962
0
      assert(rate1 == rate3);
3963
0
      assert(largest_tile_id1 == *largest_tile_id);
3964
      // Reset.
3965
0
      superres_cfg->superres_scale_denominator = SCALE_NUMERATOR;
3966
0
      superres_cfg->superres_kf_scale_denominator = SCALE_NUMERATOR;
3967
0
    } else {
3968
0
      *largest_tile_id = largest_tile_id2;
3969
0
    }
3970
0
  } else {
3971
0
    assert(cpi->sf.hl_sf.superres_auto_search_type == SUPERRES_AUTO_DUAL);
3972
0
    cpi->superres_mode =
3973
0
        AOM_SUPERRES_AUTO;  // Super-res on for this recode loop.
3974
0
    err = encode_with_recode_loop_and_filter(cpi, size, dest, dest_size, &sse1,
3975
0
                                             &rate1, &largest_tile_id1);
3976
0
    cpi->superres_mode = AOM_SUPERRES_NONE;  // Reset to default (full-res).
3977
0
    if (err != AOM_CODEC_OK) return err;
3978
0
    restore_all_coding_context(cpi);
3979
    // Encode without superres.
3980
0
    assert(cpi->superres_mode == AOM_SUPERRES_NONE);
3981
0
    err = encode_with_recode_loop_and_filter(cpi, size, dest, dest_size, &sse2,
3982
0
                                             &rate2, &largest_tile_id2);
3983
0
    if (err != AOM_CODEC_OK) return err;
3984
3985
    // Note: Both use common rdmult based on base qindex of fullres.
3986
0
    const int64_t rdmult = av1_compute_rd_mult_based_on_qindex(
3987
0
        bit_depth, update_type, cm->quant_params.base_qindex,
3988
0
        cpi->oxcf.tune_cfg.tuning, cpi->oxcf.mode);
3989
0
    proj_rdcost1 =
3990
0
        RDCOST_DBL_WITH_NATIVE_BD_DIST(rdmult, rate1, sse1, bit_depth);
3991
0
    const double proj_rdcost2 =
3992
0
        RDCOST_DBL_WITH_NATIVE_BD_DIST(rdmult, rate2, sse2, bit_depth);
3993
    // Re-encode with superres if it's better.
3994
0
    if (proj_rdcost1 < proj_rdcost2) {
3995
0
      restore_all_coding_context(cpi);
3996
      // TODO(urvang): We should avoid rerunning the recode loop by saving
3997
      // previous output+state, or running encode only for the selected 'q' in
3998
      // previous step.
3999
0
      int64_t sse3 = INT64_MAX;
4000
0
      int64_t rate3 = INT64_MAX;
4001
0
      cpi->superres_mode =
4002
0
          AOM_SUPERRES_AUTO;  // Super-res on for this recode loop.
4003
0
      err = encode_with_recode_loop_and_filter(cpi, size, dest, dest_size,
4004
0
                                               &sse3, &rate3, largest_tile_id);
4005
0
      cpi->superres_mode = AOM_SUPERRES_NONE;  // Reset to default (full-res).
4006
0
      assert(sse1 == sse3);
4007
0
      assert(rate1 == rate3);
4008
0
      assert(largest_tile_id1 == *largest_tile_id);
4009
0
    } else {
4010
0
      *largest_tile_id = largest_tile_id2;
4011
0
    }
4012
0
  }
4013
4014
0
  return err;
4015
0
}
4016
4017
// Conditions to disable cdf_update mode in selective mode for real-time.
4018
// Handle case for layers, scene change, and resizing.
4019
0
static inline int selective_disable_cdf_rtc(const AV1_COMP *cpi) {
4020
0
  const AV1_COMMON *const cm = &cpi->common;
4021
0
  const RATE_CONTROL *const rc = &cpi->rc;
4022
  // For single layer.
4023
0
  if (cpi->svc.number_spatial_layers == 1 &&
4024
0
      cpi->svc.number_temporal_layers == 1) {
4025
    // Don't disable on intra_only, scene change (high_source_sad = 1),
4026
    // or resized frame. To avoid quality loss force enable at
4027
    // for ~30 frames after key or scene/slide change, and
4028
    // after 8 frames since last update if frame_source_sad > 0.
4029
0
    if (frame_is_intra_only(cm) || is_frame_resize_pending(cpi) ||
4030
0
        rc->high_source_sad || rc->frames_since_key < 30 ||
4031
0
        (cpi->oxcf.q_cfg.aq_mode == CYCLIC_REFRESH_AQ &&
4032
0
         cpi->cyclic_refresh->counter_encode_maxq_scene_change < 30) ||
4033
0
        (cpi->frames_since_last_update > 8 && cpi->rc.frame_source_sad > 0))
4034
0
      return 0;
4035
0
    else
4036
0
      return 1;
4037
0
  } else if (cpi->svc.number_temporal_layers > 1) {
4038
    // Disable only on top temporal enhancement layer for now.
4039
0
    return cpi->svc.temporal_layer_id == cpi->svc.number_temporal_layers - 1;
4040
0
  }
4041
0
  return 1;
4042
0
}
4043
4044
#if !CONFIG_REALTIME_ONLY
4045
static void subtract_stats(FIRSTPASS_STATS *section,
4046
0
                           const FIRSTPASS_STATS *frame) {
4047
0
  section->frame -= frame->frame;
4048
0
  section->weight -= frame->weight;
4049
0
  section->intra_error -= frame->intra_error;
4050
0
  section->frame_avg_wavelet_energy -= frame->frame_avg_wavelet_energy;
4051
0
  section->coded_error -= frame->coded_error;
4052
0
  section->sr_coded_error -= frame->sr_coded_error;
4053
0
  section->lt_coded_error -= frame->lt_coded_error;
4054
0
  section->pcnt_inter -= frame->pcnt_inter;
4055
0
  section->pcnt_motion -= frame->pcnt_motion;
4056
0
  section->pcnt_second_ref -= frame->pcnt_second_ref;
4057
0
  section->pcnt_neutral -= frame->pcnt_neutral;
4058
0
  section->intra_skip_pct -= frame->intra_skip_pct;
4059
0
  section->inactive_zone_rows -= frame->inactive_zone_rows;
4060
0
  section->inactive_zone_cols -= frame->inactive_zone_cols;
4061
0
  section->MVr -= frame->MVr;
4062
0
  section->mvr_abs -= frame->mvr_abs;
4063
0
  section->MVc -= frame->MVc;
4064
0
  section->mvc_abs -= frame->mvc_abs;
4065
0
  section->MVrv -= frame->MVrv;
4066
0
  section->MVcv -= frame->MVcv;
4067
0
  section->mv_in_out_count -= frame->mv_in_out_count;
4068
0
  section->new_mv_count -= frame->new_mv_count;
4069
0
  section->count -= frame->count;
4070
0
  section->duration -= frame->duration;
4071
0
}
4072
4073
0
static void calculate_frame_avg_haar_energy(AV1_COMP *cpi) {
4074
0
  TWO_PASS *const twopass = &cpi->ppi->twopass;
4075
0
  const FIRSTPASS_STATS *const total_stats =
4076
0
      twopass->stats_buf_ctx->total_stats;
4077
4078
0
  if (is_one_pass_rt_params(cpi) ||
4079
0
      (cpi->oxcf.q_cfg.deltaq_mode != DELTA_Q_PERCEPTUAL) ||
4080
0
      (is_fp_wavelet_energy_invalid(total_stats) == 0))
4081
0
    return;
4082
4083
0
  const int num_mbs = (cpi->oxcf.resize_cfg.resize_mode != RESIZE_NONE)
4084
0
                          ? cpi->initial_mbs
4085
0
                          : cpi->common.mi_params.MBs;
4086
0
  const YV12_BUFFER_CONFIG *const unfiltered_source = cpi->unfiltered_source;
4087
0
  const uint8_t *const src = unfiltered_source->y_buffer;
4088
0
  const int hbd = unfiltered_source->flags & YV12_FLAG_HIGHBITDEPTH;
4089
0
  const int stride = unfiltered_source->y_stride;
4090
0
  const BLOCK_SIZE fp_block_size =
4091
0
      get_fp_block_size(cpi->is_screen_content_type);
4092
0
  const int fp_block_size_width = block_size_wide[fp_block_size];
4093
0
  const int fp_block_size_height = block_size_high[fp_block_size];
4094
0
  const int num_unit_cols =
4095
0
      get_num_blocks(unfiltered_source->y_crop_width, fp_block_size_width);
4096
0
  const int num_unit_rows =
4097
0
      get_num_blocks(unfiltered_source->y_crop_height, fp_block_size_height);
4098
0
  const int num_8x8_cols = num_unit_cols * (fp_block_size_width / 8);
4099
0
  const int num_8x8_rows = num_unit_rows * (fp_block_size_height / 8);
4100
0
  int64_t frame_avg_wavelet_energy = av1_haar_ac_sad_mxn_uint8_input(
4101
0
      src, stride, hbd, num_8x8_rows, num_8x8_cols);
4102
4103
0
  cpi->twopass_frame.frame_avg_haar_energy =
4104
0
      log1p((double)frame_avg_wavelet_energy / num_mbs);
4105
0
}
4106
#endif
4107
4108
/*!\brief Run the final pass encoding for 1-pass/2-pass encoding mode, and pack
4109
 * the bitstream
4110
 *
4111
 * \ingroup high_level_algo
4112
 * \callgraph
4113
 * \callergraph
4114
 *
4115
 * \param[in]    cpi             Top-level encoder structure
4116
 * \param[in]    size            Bitstream size
4117
 * \param[out]   dest            Bitstream output buffer
4118
 * \param[in]    dest_size       Bitstream output buffer size
4119
 *
4120
 * \return Returns a value to indicate if the encoding is done successfully.
4121
 * \retval #AOM_CODEC_OK
4122
 * \retval #AOM_CODEC_ERROR
4123
 */
4124
static int encode_frame_to_data_rate(AV1_COMP *cpi, size_t *size, uint8_t *dest,
4125
0
                                     size_t dest_size) {
4126
0
  AV1_COMMON *const cm = &cpi->common;
4127
0
  SequenceHeader *const seq_params = cm->seq_params;
4128
0
  CurrentFrame *const current_frame = &cm->current_frame;
4129
0
  const AV1EncoderConfig *const oxcf = &cpi->oxcf;
4130
0
  struct segmentation *const seg = &cm->seg;
4131
0
  FeatureFlags *const features = &cm->features;
4132
0
  const TileConfig *const tile_cfg = &oxcf->tile_cfg;
4133
0
  assert(cpi->source != NULL);
4134
0
  cpi->td.mb.e_mbd.cur_buf = cpi->source;
4135
4136
#if CONFIG_COLLECT_COMPONENT_TIMING
4137
  start_timing(cpi, encode_frame_to_data_rate_time);
4138
#endif
4139
4140
0
#if !CONFIG_REALTIME_ONLY
4141
0
  calculate_frame_avg_haar_energy(cpi);
4142
0
#endif
4143
4144
  // frame type has been decided outside of this function call
4145
0
  cm->cur_frame->frame_type = current_frame->frame_type;
4146
4147
0
  cm->tiles.large_scale = tile_cfg->enable_large_scale_tile;
4148
0
  cm->tiles.single_tile_decoding = tile_cfg->enable_single_tile_decoding;
4149
4150
0
  features->allow_ref_frame_mvs &= frame_might_allow_ref_frame_mvs(cm);
4151
  // features->allow_ref_frame_mvs needs to be written into the frame header
4152
  // while cm->tiles.large_scale is 1, therefore, "cm->tiles.large_scale=1" case
4153
  // is separated from frame_might_allow_ref_frame_mvs().
4154
0
  features->allow_ref_frame_mvs &= !cm->tiles.large_scale;
4155
4156
0
  features->allow_warped_motion = oxcf->motion_mode_cfg.allow_warped_motion &&
4157
0
                                  frame_might_allow_warped_motion(cm);
4158
4159
0
  cpi->last_frame_type = current_frame->frame_type;
4160
4161
0
  if (frame_is_intra_only(cm)) {
4162
0
    cpi->frames_since_last_update = 0;
4163
0
  }
4164
4165
0
  if (frame_is_sframe(cm)) {
4166
0
    GF_GROUP *gf_group = &cpi->ppi->gf_group;
4167
    // S frame will wipe out any previously encoded altref so we cannot place
4168
    // an overlay frame
4169
0
    gf_group->update_type[gf_group->size] = GF_UPDATE;
4170
0
  }
4171
4172
0
  if (encode_show_existing_frame(cm)) {
4173
#if CONFIG_RATECTRL_LOG && CONFIG_THREE_PASS && CONFIG_BITRATE_ACCURACY
4174
    // TODO(angiebird): Move this into a function.
4175
    if (oxcf->pass == AOM_RC_THIRD_PASS) {
4176
      int frame_coding_idx =
4177
          av1_vbr_rc_frame_coding_idx(&cpi->vbr_rc_info, cpi->gf_frame_index);
4178
      rc_log_frame_encode_param(
4179
          &cpi->rc_log, frame_coding_idx, 1, 255,
4180
          cpi->ppi->gf_group.update_type[cpi->gf_frame_index]);
4181
    }
4182
#endif
4183
0
    av1_finalize_encoded_frame(cpi);
4184
    // Build the bitstream
4185
0
    int largest_tile_id = 0;  // Output from bitstream: unused here
4186
0
    cpi->rc.coefficient_size = 0;
4187
0
    if (av1_pack_bitstream(cpi, dest, dest_size, size, &largest_tile_id) !=
4188
0
        AOM_CODEC_OK)
4189
0
      return AOM_CODEC_ERROR;
4190
4191
0
    if (seq_params->frame_id_numbers_present_flag &&
4192
0
        current_frame->frame_type == KEY_FRAME) {
4193
      // Displaying a forward key-frame, so reset the ref buffer IDs
4194
0
      int display_frame_id = cm->ref_frame_id[cpi->existing_fb_idx_to_show];
4195
0
      for (int i = 0; i < REF_FRAMES; i++)
4196
0
        cm->ref_frame_id[i] = display_frame_id;
4197
0
    }
4198
4199
#if DUMP_RECON_FRAMES == 1
4200
    // NOTE(zoeliu): For debug - Output the filtered reconstructed video.
4201
    av1_dump_filtered_recon_frames(cpi);
4202
#endif  // DUMP_RECON_FRAMES
4203
4204
    // NOTE: Save the new show frame buffer index for --test-code=warn, i.e.,
4205
    //       for the purpose to verify no mismatch between encoder and decoder.
4206
0
    if (cm->show_frame) cpi->last_show_frame_buf = cm->cur_frame;
4207
4208
#if CONFIG_AV1_TEMPORAL_DENOISING
4209
    av1_denoiser_update_ref_frame(cpi);
4210
#endif
4211
4212
    // Since we allocate a spot for the OVERLAY frame in the gf group, we need
4213
    // to do post-encoding update accordingly.
4214
0
    av1_set_target_rate(cpi, cm->width, cm->height);
4215
4216
0
    if (is_psnr_calc_enabled(cpi)) {
4217
0
      cpi->source =
4218
0
          realloc_and_scale_source(cpi, cm->cur_frame->buf.y_crop_width,
4219
0
                                   cm->cur_frame->buf.y_crop_height);
4220
0
    }
4221
4222
0
#if !CONFIG_REALTIME_ONLY
4223
0
    if (cpi->use_ducky_encode) {
4224
0
      PSNR_STATS psnr;
4225
0
      aom_calc_psnr(cpi->source, &cpi->common.cur_frame->buf, &psnr);
4226
0
      DuckyEncodeFrameResult *frame_result =
4227
0
          &cpi->ducky_encode_info.frame_result;
4228
0
      frame_result->global_order_idx = cm->cur_frame->display_order_hint;
4229
0
      frame_result->q_index = cm->quant_params.base_qindex;
4230
0
      frame_result->rdmult = cpi->rd.RDMULT;
4231
0
      frame_result->rate = (int)(*size) * 8;
4232
0
      frame_result->dist = psnr.sse[0];
4233
0
      frame_result->psnr = psnr.psnr[0];
4234
0
    }
4235
0
#endif  // !CONFIG_REALTIME_ONLY
4236
4237
0
    update_counters_for_show_frame(cpi);
4238
0
    return AOM_CODEC_OK;
4239
0
  }
4240
4241
  // Work out whether to force_integer_mv this frame
4242
0
  if (!is_stat_generation_stage(cpi) &&
4243
0
      cpi->common.features.allow_screen_content_tools &&
4244
0
      !frame_is_intra_only(cm) && !cpi->sf.rt_sf.use_nonrd_pick_mode) {
4245
0
    if (cpi->common.seq_params->force_integer_mv == 2) {
4246
      // Adaptive mode: see what previous frame encoded did
4247
0
      if (cpi->unscaled_last_source != NULL) {
4248
0
        features->cur_frame_force_integer_mv = av1_is_integer_mv(
4249
0
            cpi->source, cpi->unscaled_last_source, &cpi->force_intpel_info);
4250
0
      } else {
4251
0
        cpi->common.features.cur_frame_force_integer_mv = 0;
4252
0
      }
4253
0
    } else {
4254
0
      cpi->common.features.cur_frame_force_integer_mv =
4255
0
          cpi->common.seq_params->force_integer_mv;
4256
0
    }
4257
0
  } else {
4258
0
    cpi->common.features.cur_frame_force_integer_mv = 0;
4259
0
  }
4260
4261
  // This is used by av1_pack_bitstream. So this needs to be set in case of
4262
  // row-mt where the encoding code will use a temporary structure.
4263
0
  cpi->td.mb.e_mbd.cur_frame_force_integer_mv =
4264
0
      cpi->common.features.cur_frame_force_integer_mv;
4265
4266
  // Set default state for segment based loop filter update flags.
4267
0
  cm->lf.mode_ref_delta_update = 0;
4268
4269
  // Set various flags etc to special state if it is a key frame.
4270
0
  if (frame_is_intra_only(cm) || frame_is_sframe(cm)) {
4271
    // Reset the loop filter deltas and segmentation map.
4272
0
    av1_reset_segment_features(cm);
4273
4274
    // If segmentation is enabled force a map update for key frames.
4275
0
    if (seg->enabled) {
4276
0
      seg->update_map = 1;
4277
0
      seg->update_data = 1;
4278
0
    }
4279
0
  }
4280
0
  if (tile_cfg->mtu == 0) {
4281
0
    cpi->num_tg = tile_cfg->num_tile_groups;
4282
0
  } else {
4283
    // Use a default value for the purposes of weighting costs in probability
4284
    // updates
4285
0
    cpi->num_tg = DEFAULT_MAX_NUM_TG;
4286
0
  }
4287
4288
  // For 1 pass CBR mode: check if we are dropping this frame.
4289
0
  if (has_no_stats_stage(cpi) && oxcf->rc_cfg.mode == AOM_CBR) {
4290
    // Always drop for spatial enhancement layer if layer bandwidth is 0.
4291
    // Otherwise check for frame-dropping based on buffer level in
4292
    // av1_rc_drop_frame().
4293
0
    if ((cpi->svc.spatial_layer_id > 0 &&
4294
0
         cpi->oxcf.rc_cfg.target_bandwidth == 0) ||
4295
0
        av1_rc_drop_frame(cpi)) {
4296
0
      cpi->is_dropped_frame = true;
4297
0
    }
4298
0
    if (cpi->is_dropped_frame) {
4299
0
      av1_setup_frame_size(cpi);
4300
0
      av1_set_mv_search_params(cpi);
4301
0
      av1_rc_postencode_update_drop_frame(cpi);
4302
0
      release_scaled_references(cpi);
4303
0
      cpi->ppi->gf_group.is_frame_dropped[cpi->gf_frame_index] = true;
4304
      // A dropped frame might not be shown but it always takes a slot in the gf
4305
      // group. Therefore, even when it is not shown, we still need to update
4306
      // the relevant frame counters.
4307
0
      if (cm->show_frame) {
4308
0
        update_counters_for_show_frame(cpi);
4309
0
      }
4310
0
      return AOM_CODEC_OK;
4311
0
    }
4312
0
  }
4313
4314
0
  if (oxcf->tune_cfg.tuning == AOM_TUNE_SSIM ||
4315
0
      oxcf->tune_cfg.tuning == AOM_TUNE_IQ ||
4316
0
      oxcf->tune_cfg.tuning == AOM_TUNE_SSIMULACRA2) {
4317
0
    av1_set_mb_ssim_rdmult_scaling(cpi);
4318
0
  }
4319
#if CONFIG_SALIENCY_MAP
4320
  else if (oxcf->tune_cfg.tuning == AOM_TUNE_VMAF_SALIENCY_MAP &&
4321
           !(cpi->source->flags & YV12_FLAG_HIGHBITDEPTH)) {
4322
    if (av1_set_saliency_map(cpi) == 0) {
4323
      return AOM_CODEC_MEM_ERROR;
4324
    }
4325
#if !CONFIG_REALTIME_ONLY
4326
    double motion_ratio = av1_setup_motion_ratio(cpi);
4327
#else
4328
    double motion_ratio = 1.0;
4329
#endif
4330
    if (av1_setup_sm_rdmult_scaling_factor(cpi, motion_ratio) == 0) {
4331
      return AOM_CODEC_MEM_ERROR;
4332
    }
4333
  }
4334
#endif
4335
#if CONFIG_TUNE_VMAF
4336
  else if (oxcf->tune_cfg.tuning == AOM_TUNE_VMAF_WITHOUT_PREPROCESSING ||
4337
           oxcf->tune_cfg.tuning == AOM_TUNE_VMAF_MAX_GAIN ||
4338
           oxcf->tune_cfg.tuning == AOM_TUNE_VMAF_NEG_MAX_GAIN) {
4339
    av1_set_mb_vmaf_rdmult_scaling(cpi);
4340
  }
4341
#endif
4342
4343
0
  if (cpi->oxcf.q_cfg.deltaq_mode == DELTA_Q_PERCEPTUAL_AI &&
4344
0
      cpi->sf.rt_sf.use_nonrd_pick_mode == 0) {
4345
0
    av1_init_mb_wiener_var_buffer(cpi);
4346
0
    av1_set_mb_wiener_variance(cpi);
4347
0
  }
4348
4349
0
  if (cpi->oxcf.q_cfg.deltaq_mode == DELTA_Q_USER_RATING_BASED) {
4350
0
    av1_init_mb_ur_var_buffer(cpi);
4351
0
    av1_set_mb_ur_variance(cpi);
4352
0
  }
4353
4354
#if CONFIG_INTERNAL_STATS
4355
  memset(cpi->mode_chosen_counts, 0,
4356
         MAX_MODES * sizeof(*cpi->mode_chosen_counts));
4357
#endif
4358
4359
0
  if (seq_params->frame_id_numbers_present_flag) {
4360
    /* Non-normative definition of current_frame_id ("frame counter" with
4361
     * wraparound) */
4362
0
    if (cm->current_frame_id == -1) {
4363
0
      int lsb, msb;
4364
      /* quasi-random initialization of current_frame_id for a key frame */
4365
0
      if (cpi->source->flags & YV12_FLAG_HIGHBITDEPTH) {
4366
0
        lsb = CONVERT_TO_SHORTPTR(cpi->source->y_buffer)[0] & 0xff;
4367
0
        msb = CONVERT_TO_SHORTPTR(cpi->source->y_buffer)[1] & 0xff;
4368
0
      } else {
4369
0
        lsb = cpi->source->y_buffer[0] & 0xff;
4370
0
        msb = cpi->source->y_buffer[1] & 0xff;
4371
0
      }
4372
0
      cm->current_frame_id =
4373
0
          ((msb << 8) + lsb) % (1 << seq_params->frame_id_length);
4374
4375
      // S_frame is meant for stitching different streams of different
4376
      // resolutions together, so current_frame_id must be the
4377
      // same across different streams of the same content current_frame_id
4378
      // should be the same and not random. 0x37 is a chosen number as start
4379
      // point
4380
0
      if (oxcf->kf_cfg.sframe_dist != 0) cm->current_frame_id = 0x37;
4381
0
    } else {
4382
0
      cm->current_frame_id =
4383
0
          (cm->current_frame_id + 1 + (1 << seq_params->frame_id_length)) %
4384
0
          (1 << seq_params->frame_id_length);
4385
0
    }
4386
0
  }
4387
4388
0
  switch (oxcf->algo_cfg.cdf_update_mode) {
4389
0
    case 0:  // No CDF update for any frames(4~6% compression loss).
4390
0
      features->disable_cdf_update = 1;
4391
0
      break;
4392
0
    case 1:  // Enable CDF update for all frames.
4393
0
      if (cpi->sf.rt_sf.disable_cdf_update_non_reference_frame &&
4394
0
          cpi->ppi->rtc_ref.non_reference_frame && cpi->rc.frames_since_key > 2)
4395
0
        features->disable_cdf_update = 1;
4396
0
      else if (cpi->sf.rt_sf.selective_cdf_update)
4397
0
        features->disable_cdf_update = selective_disable_cdf_rtc(cpi);
4398
0
      else
4399
0
        features->disable_cdf_update = 0;
4400
0
      break;
4401
0
    case 2:
4402
      // Strategically determine at which frames to do CDF update.
4403
      // Currently only enable CDF update for all-intra and no-show frames(1.5%
4404
      // compression loss) for good qualiy or allintra mode.
4405
0
      if (oxcf->mode == GOOD || oxcf->mode == ALLINTRA) {
4406
0
        features->disable_cdf_update =
4407
0
            (frame_is_intra_only(cm) || !cm->show_frame) ? 0 : 1;
4408
0
      } else {
4409
0
        features->disable_cdf_update = selective_disable_cdf_rtc(cpi);
4410
0
      }
4411
0
      break;
4412
0
  }
4413
4414
  // Disable cdf update for the INTNL_ARF_UPDATE frame with
4415
  // frame_parallel_level 1.
4416
0
  if (!cpi->do_frame_data_update &&
4417
0
      cpi->ppi->gf_group.update_type[cpi->gf_frame_index] == INTNL_ARF_UPDATE) {
4418
0
    assert(cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] == 1);
4419
0
    features->disable_cdf_update = 1;
4420
0
  }
4421
4422
0
#if !CONFIG_REALTIME_ONLY
4423
0
  if (cpi->oxcf.tool_cfg.enable_global_motion && !frame_is_intra_only(cm)) {
4424
    // Flush any stale global motion information, which may be left over
4425
    // from a previous frame
4426
0
    aom_invalidate_pyramid(cpi->source->y_pyramid);
4427
0
    av1_invalidate_corner_list(cpi->source->corners);
4428
0
  }
4429
0
#endif  // !CONFIG_REALTIME_ONLY
4430
4431
0
  int largest_tile_id = 0;
4432
0
  if (av1_superres_in_recode_allowed(cpi)) {
4433
0
    if (encode_with_and_without_superres(cpi, size, dest, dest_size,
4434
0
                                         &largest_tile_id) != AOM_CODEC_OK) {
4435
0
      return AOM_CODEC_ERROR;
4436
0
    }
4437
0
  } else {
4438
0
    const aom_superres_mode orig_superres_mode = cpi->superres_mode;  // save
4439
0
    cpi->superres_mode = cpi->oxcf.superres_cfg.superres_mode;
4440
0
    if (encode_with_recode_loop_and_filter(cpi, size, dest, dest_size, NULL,
4441
0
                                           NULL,
4442
0
                                           &largest_tile_id) != AOM_CODEC_OK) {
4443
0
      return AOM_CODEC_ERROR;
4444
0
    }
4445
0
    cpi->superres_mode = orig_superres_mode;  // restore
4446
0
  }
4447
4448
  // Update reference frame ids for reference frames this frame will overwrite
4449
0
  if (seq_params->frame_id_numbers_present_flag) {
4450
0
    for (int i = 0; i < REF_FRAMES; i++) {
4451
0
      if ((current_frame->refresh_frame_flags >> i) & 1) {
4452
0
        cm->ref_frame_id[i] = cm->current_frame_id;
4453
0
      }
4454
0
    }
4455
0
  }
4456
4457
0
  if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1)
4458
0
    cpi->svc.num_encoded_top_layer++;
4459
4460
#if DUMP_RECON_FRAMES == 1
4461
  // NOTE(zoeliu): For debug - Output the filtered reconstructed video.
4462
  av1_dump_filtered_recon_frames(cpi);
4463
#endif  // DUMP_RECON_FRAMES
4464
4465
0
  if (cm->seg.enabled) {
4466
0
    if (cm->seg.update_map == 0 && cm->last_frame_seg_map) {
4467
0
      memcpy(cm->cur_frame->seg_map, cm->last_frame_seg_map,
4468
0
             cm->cur_frame->mi_cols * cm->cur_frame->mi_rows *
4469
0
                 sizeof(*cm->cur_frame->seg_map));
4470
0
    }
4471
0
  }
4472
4473
0
  int release_scaled_refs = 0;
4474
#if CONFIG_FPMT_TEST
4475
  release_scaled_refs =
4476
      (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) ? 1 : 0;
4477
#endif  // CONFIG_FPMT_TEST
4478
0
  if (release_scaled_refs ||
4479
0
      cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] == 0) {
4480
0
    if (frame_is_intra_only(cm) == 0) {
4481
0
      release_scaled_references(cpi);
4482
0
    }
4483
0
  }
4484
#if CONFIG_AV1_TEMPORAL_DENOISING
4485
  av1_denoiser_update_ref_frame(cpi);
4486
#endif
4487
4488
  // NOTE: Save the new show frame buffer index for --test-code=warn, i.e.,
4489
  //       for the purpose to verify no mismatch between encoder and decoder.
4490
0
  if (cm->show_frame) cpi->last_show_frame_buf = cm->cur_frame;
4491
4492
0
  if (features->refresh_frame_context == REFRESH_FRAME_CONTEXT_BACKWARD) {
4493
0
    *cm->fc = cpi->tile_data[largest_tile_id].tctx;
4494
0
    av1_reset_cdf_symbol_counters(cm->fc);
4495
0
  }
4496
0
  if (!cm->tiles.large_scale) {
4497
0
    cm->cur_frame->frame_context = *cm->fc;
4498
0
  }
4499
4500
0
  if (tile_cfg->enable_ext_tile_debug) {
4501
    // (yunqing) This test ensures the correctness of large scale tile coding.
4502
0
    if (cm->tiles.large_scale && is_stat_consumption_stage(cpi)) {
4503
0
      char fn[20] = "./fc";
4504
0
      fn[4] = current_frame->frame_number / 100 + '0';
4505
0
      fn[5] = (current_frame->frame_number % 100) / 10 + '0';
4506
0
      fn[6] = (current_frame->frame_number % 10) + '0';
4507
0
      fn[7] = '\0';
4508
0
      av1_print_frame_contexts(cm->fc, fn);
4509
0
    }
4510
0
  }
4511
4512
0
  cpi->last_frame_type = current_frame->frame_type;
4513
4514
0
  if (cm->features.disable_cdf_update) {
4515
0
    cpi->frames_since_last_update++;
4516
0
  } else {
4517
0
    cpi->frames_since_last_update = 1;
4518
0
  }
4519
4520
0
  if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1) {
4521
0
    cpi->svc.prev_number_spatial_layers = cpi->svc.number_spatial_layers;
4522
0
  }
4523
0
  cpi->svc.prev_number_temporal_layers = cpi->svc.number_temporal_layers;
4524
4525
  // Clear the one shot update flags for segmentation map and mode/ref loop
4526
  // filter deltas.
4527
0
  cm->seg.update_map = 0;
4528
0
  cm->seg.update_data = 0;
4529
0
  cm->lf.mode_ref_delta_update = 0;
4530
4531
0
  if (cm->show_frame) {
4532
0
    update_counters_for_show_frame(cpi);
4533
0
  }
4534
4535
#if CONFIG_COLLECT_COMPONENT_TIMING
4536
  end_timing(cpi, encode_frame_to_data_rate_time);
4537
#endif
4538
4539
0
  return AOM_CODEC_OK;
4540
0
}
4541
4542
int av1_encode(AV1_COMP *const cpi, uint8_t *const dest, size_t dest_size,
4543
               const EncodeFrameInput *const frame_input,
4544
               const EncodeFrameParams *const frame_params,
4545
0
               size_t *const frame_size) {
4546
0
  AV1_COMMON *const cm = &cpi->common;
4547
0
  CurrentFrame *const current_frame = &cm->current_frame;
4548
4549
0
  cpi->unscaled_source = frame_input->source;
4550
0
  cpi->source = frame_input->source;
4551
0
  cpi->unscaled_last_source = frame_input->last_source;
4552
4553
0
  current_frame->refresh_frame_flags = frame_params->refresh_frame_flags;
4554
0
  cm->features.error_resilient_mode = frame_params->error_resilient_mode;
4555
0
  cm->features.primary_ref_frame = frame_params->primary_ref_frame;
4556
0
  cm->current_frame.frame_type = frame_params->frame_type;
4557
0
  cm->show_frame = frame_params->show_frame;
4558
0
  cpi->ref_frame_flags = frame_params->ref_frame_flags;
4559
0
  cpi->speed = frame_params->speed;
4560
0
  cm->show_existing_frame = frame_params->show_existing_frame;
4561
0
  cpi->existing_fb_idx_to_show = frame_params->existing_fb_idx_to_show;
4562
4563
0
  if (cpi->oxcf.mode == GOOD &&
4564
0
      cpi->oxcf.q_cfg.deltaq_mode == DELTA_Q_OBJECTIVE &&
4565
0
      cpi->oxcf.algo_cfg.enable_tpl_model && cpi->oxcf.q_cfg.aq_mode == NO_AQ &&
4566
0
      !cpi->common.seg.enabled && !cpi->roi.enabled && !cpi->oxcf.sb_qp_sweep &&
4567
0
      !cpi->use_ducky_encode && cpi->oxcf.algo_cfg.sharpness != 3) {
4568
0
    cpi->do_border_pad = true;
4569
0
  } else {
4570
0
    cpi->do_border_pad = false;
4571
0
  }
4572
4573
0
  memcpy(cm->remapped_ref_idx, frame_params->remapped_ref_idx,
4574
0
         REF_FRAMES * sizeof(*cm->remapped_ref_idx));
4575
4576
0
  memcpy(&cpi->refresh_frame, &frame_params->refresh_frame,
4577
0
         sizeof(cpi->refresh_frame));
4578
4579
0
  if (current_frame->frame_type == KEY_FRAME &&
4580
0
      cpi->ppi->gf_group.refbuf_state[cpi->gf_frame_index] == REFBUF_RESET) {
4581
0
    current_frame->frame_number = 0;
4582
0
  }
4583
4584
0
  current_frame->order_hint =
4585
0
      current_frame->frame_number + frame_params->order_offset;
4586
4587
0
  current_frame->display_order_hint = current_frame->order_hint;
4588
0
  current_frame->order_hint %=
4589
0
      (1 << (cm->seq_params->order_hint_info.order_hint_bits_minus_1 + 1));
4590
4591
0
  current_frame->pyramid_level = get_true_pyr_level(
4592
0
      cpi->ppi->gf_group.layer_depth[cpi->gf_frame_index],
4593
0
      current_frame->display_order_hint, cpi->ppi->gf_group.max_layer_depth);
4594
4595
0
#if !CONFIG_REALTIME_ONLY
4596
0
  const GF_GROUP *gf_group = &cpi->ppi->gf_group;
4597
  // Check if this is the last frame in the gop. If so, make a copy of the
4598
  // source for TPL.
4599
0
  if (cpi->oxcf.algo_cfg.enable_tpl_model &&
4600
0
      av1_tpl_stats_ready(&cpi->ppi->tpl_data, cpi->gf_frame_index) &&
4601
0
      gf_group->update_type[cpi->gf_frame_index] != OVERLAY_UPDATE &&
4602
0
      gf_group->update_type[cpi->gf_frame_index] != INTNL_OVERLAY_UPDATE) {
4603
0
    int is_last = 1;
4604
0
    for (int i = 0; i < gf_group->size; ++i) {
4605
0
      if (gf_group->display_idx[i] >
4606
0
          gf_group->display_idx[cpi->gf_frame_index]) {
4607
0
        is_last = 0;
4608
0
        break;
4609
0
      }
4610
0
    }
4611
0
    if (is_last) {
4612
0
      const int alloc_y_plane_only =
4613
0
          cpi->sf.tpl_sf.use_y_only_rate_distortion ? 1 : 0;
4614
0
      cpi->ppi->tpl_data.prev_gop_arf_disp_order = -1;
4615
0
      const AV1EncoderConfig *const oxcf = &cpi->oxcf;
4616
0
      int available = 1;
4617
0
      int ret = aom_realloc_frame_buffer(
4618
0
          &cpi->ppi->tpl_data.prev_gop_arf_src, oxcf->frm_dim_cfg.width,
4619
0
          oxcf->frm_dim_cfg.height, cm->seq_params->subsampling_x,
4620
0
          cm->seq_params->subsampling_y, cm->seq_params->use_highbitdepth,
4621
0
          cpi->oxcf.border_in_pixels, cm->features.byte_alignment, NULL, NULL,
4622
0
          NULL, cpi->alloc_pyramid, alloc_y_plane_only);
4623
0
      if (ret)
4624
0
        aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
4625
0
                           "Failed to allocate tpl prev_gop_arf_src buf.");
4626
4627
      // Currently it is not supported if source/reference is resized.
4628
0
      if (cpi->source->y_width == cpi->ppi->tpl_data.prev_gop_arf_src.y_width &&
4629
0
          cpi->source->y_height ==
4630
0
              cpi->ppi->tpl_data.prev_gop_arf_src.y_height) {
4631
        // Copy the content from source to this buffer for next gop.
4632
0
        aom_yv12_copy_frame(cpi->source, &cpi->ppi->tpl_data.prev_gop_arf_src,
4633
0
                            alloc_y_plane_only ? 1 : av1_num_planes(cm));
4634
0
      } else {
4635
0
        available = 0;
4636
0
      }
4637
4638
0
      ret = aom_realloc_frame_buffer(
4639
0
          &cpi->ppi->tpl_data.prev_gop_arf_tpl_recon, oxcf->frm_dim_cfg.width,
4640
0
          oxcf->frm_dim_cfg.height, cm->seq_params->subsampling_x,
4641
0
          cm->seq_params->subsampling_y, cm->seq_params->use_highbitdepth,
4642
0
          cpi->oxcf.border_in_pixels, cm->features.byte_alignment, NULL, NULL,
4643
0
          NULL, cpi->alloc_pyramid, alloc_y_plane_only);
4644
0
      if (ret)
4645
0
        aom_internal_error(
4646
0
            cm->error, AOM_CODEC_MEM_ERROR,
4647
0
            "Failed to allocate tpl prev_gop_arf_tpl_recon buf.");
4648
4649
0
      YV12_BUFFER_CONFIG *prev_gop_arf_tpl_recon_buf =
4650
0
          cpi->ppi->tpl_data.tpl_frame
4651
0
              ? cpi->ppi->tpl_data.tpl_frame[cpi->gf_frame_index].rec_picture
4652
0
              : NULL;
4653
4654
      // Currently it is not supported if source/reference is resized.
4655
0
      if (prev_gop_arf_tpl_recon_buf &&
4656
0
          prev_gop_arf_tpl_recon_buf->y_width ==
4657
0
              cpi->ppi->tpl_data.prev_gop_arf_tpl_recon.y_width &&
4658
0
          prev_gop_arf_tpl_recon_buf->y_height ==
4659
0
              cpi->ppi->tpl_data.prev_gop_arf_tpl_recon.y_height) {
4660
        // Copy the content from source to this buffer for next gop.
4661
0
        aom_yv12_copy_frame(prev_gop_arf_tpl_recon_buf,
4662
0
                            &cpi->ppi->tpl_data.prev_gop_arf_tpl_recon,
4663
0
                            alloc_y_plane_only ? 1 : av1_num_planes(cm));
4664
0
      } else {
4665
0
        available = 0;
4666
0
      }
4667
4668
0
      if (available) {
4669
0
        cpi->ppi->tpl_data.prev_gop_arf_disp_order =
4670
0
            current_frame->display_order_hint;
4671
0
      }
4672
0
    }
4673
0
  }
4674
0
#endif
4675
4676
0
  if (is_stat_generation_stage(cpi)) {
4677
0
#if !CONFIG_REALTIME_ONLY
4678
0
    if (cpi->oxcf.q_cfg.use_fixed_qp_offsets != 0)
4679
0
      av1_noop_first_pass_frame(cpi, frame_input->ts_duration);
4680
0
    else
4681
0
      av1_first_pass(cpi, frame_input->ts_duration);
4682
0
#endif
4683
0
  } else if (cpi->oxcf.pass == AOM_RC_ONE_PASS ||
4684
0
             cpi->oxcf.pass >= AOM_RC_SECOND_PASS) {
4685
0
    if (encode_frame_to_data_rate(cpi, frame_size, dest, dest_size) !=
4686
0
        AOM_CODEC_OK) {
4687
0
      return AOM_CODEC_ERROR;
4688
0
    }
4689
0
  } else {
4690
0
    return AOM_CODEC_ERROR;
4691
0
  }
4692
4693
0
  if (cpi->ext_ratectrl.ready &&
4694
0
      cpi->ext_ratectrl.funcs.update_encodeframe_result != NULL) {
4695
0
    aom_codec_err_t codec_status = av1_extrc_update_encodeframe_result(
4696
0
        &cpi->ext_ratectrl, (*frame_size) << 3, cm->quant_params.base_qindex);
4697
0
    if (codec_status != AOM_CODEC_OK) {
4698
0
      aom_internal_error(cm->error, codec_status,
4699
0
                         "av1_extrc_update_encodeframe_result() failed");
4700
0
    }
4701
0
  }
4702
4703
0
  return AOM_CODEC_OK;
4704
0
}
4705
4706
#if CONFIG_DENOISE && !CONFIG_REALTIME_ONLY
4707
static int apply_denoise_2d(AV1_COMP *cpi, const YV12_BUFFER_CONFIG *sd,
4708
                            int block_size, float noise_level,
4709
0
                            int64_t time_stamp, int64_t end_time) {
4710
0
  AV1_COMMON *const cm = &cpi->common;
4711
0
  if (!cpi->denoise_and_model) {
4712
0
    cpi->denoise_and_model = aom_denoise_and_model_alloc(
4713
0
        cm->seq_params->bit_depth, block_size, noise_level);
4714
0
    if (!cpi->denoise_and_model) {
4715
0
      aom_set_error(cm->error, AOM_CODEC_MEM_ERROR,
4716
0
                    "Error allocating denoise and model");
4717
0
      return -1;
4718
0
    }
4719
0
  }
4720
0
  if (!cpi->film_grain_table) {
4721
0
    cpi->film_grain_table = aom_malloc(sizeof(*cpi->film_grain_table));
4722
0
    if (!cpi->film_grain_table) {
4723
0
      aom_set_error(cm->error, AOM_CODEC_MEM_ERROR,
4724
0
                    "Error allocating grain table");
4725
0
      return -1;
4726
0
    }
4727
0
    memset(cpi->film_grain_table, 0, sizeof(*cpi->film_grain_table));
4728
0
  }
4729
0
  if (aom_denoise_and_model_run(cpi->denoise_and_model, sd,
4730
0
                                &cm->film_grain_params,
4731
0
                                cpi->oxcf.enable_dnl_denoising)) {
4732
0
    if (cm->film_grain_params.apply_grain) {
4733
0
      aom_film_grain_table_append(cpi->film_grain_table, time_stamp, end_time,
4734
0
                                  &cm->film_grain_params);
4735
0
    }
4736
0
  }
4737
0
  return 0;
4738
0
}
4739
#endif
4740
4741
int av1_receive_raw_frame(AV1_COMP *cpi, aom_enc_frame_flags_t frame_flags,
4742
                          const YV12_BUFFER_CONFIG *sd, int64_t time_stamp,
4743
0
                          int64_t end_time) {
4744
0
  AV1_COMMON *const cm = &cpi->common;
4745
0
  const SequenceHeader *const seq_params = cm->seq_params;
4746
0
  int res = 0;
4747
0
  const int subsampling_x = sd->subsampling_x;
4748
0
  const int subsampling_y = sd->subsampling_y;
4749
0
  const int use_highbitdepth = (sd->flags & YV12_FLAG_HIGHBITDEPTH) != 0;
4750
4751
  // Note: Regarding profile setting, the following checks are added to help
4752
  // choose a proper profile for the input video. The criterion is that all
4753
  // bitstreams must be designated as the lowest profile that match its content.
4754
  // E.G. A bitstream that contains 4:4:4 video must be designated as High
4755
  // Profile in the seq header, and likewise a bitstream that contains 4:2:2
4756
  // bitstream must be designated as Professional Profile in the sequence
4757
  // header.
4758
0
  if ((seq_params->profile == PROFILE_0) && !seq_params->monochrome &&
4759
0
      (subsampling_x != 1 || subsampling_y != 1)) {
4760
0
    aom_set_error(cm->error, AOM_CODEC_INVALID_PARAM,
4761
0
                  "Non-4:2:0 color format requires profile 1 or 2");
4762
0
    return -1;
4763
0
  }
4764
0
  if ((seq_params->profile == PROFILE_1) &&
4765
0
      !(subsampling_x == 0 && subsampling_y == 0)) {
4766
0
    aom_set_error(cm->error, AOM_CODEC_INVALID_PARAM,
4767
0
                  "Profile 1 requires 4:4:4 color format");
4768
0
    return -1;
4769
0
  }
4770
0
  if ((seq_params->profile == PROFILE_2) &&
4771
0
      (seq_params->bit_depth <= AOM_BITS_10) &&
4772
0
      !(subsampling_x == 1 && subsampling_y == 0)) {
4773
0
    aom_set_error(cm->error, AOM_CODEC_INVALID_PARAM,
4774
0
                  "Profile 2 bit-depth <= 10 requires 4:2:2 color format");
4775
0
    return -1;
4776
0
  }
4777
4778
#if CONFIG_TUNE_VMAF
4779
  if (!is_stat_generation_stage(cpi) &&
4780
      cpi->oxcf.tune_cfg.tuning == AOM_TUNE_VMAF_WITH_PREPROCESSING) {
4781
    av1_vmaf_frame_preprocessing(cpi, sd);
4782
  }
4783
  if (!is_stat_generation_stage(cpi) &&
4784
      cpi->oxcf.tune_cfg.tuning == AOM_TUNE_VMAF_MAX_GAIN) {
4785
    av1_vmaf_blk_preprocessing(cpi, sd);
4786
  }
4787
#endif
4788
4789
#if CONFIG_INTERNAL_STATS
4790
  struct aom_usec_timer timer;
4791
  aom_usec_timer_start(&timer);
4792
#endif
4793
4794
#if CONFIG_AV1_TEMPORAL_DENOISING
4795
  setup_denoiser_buffer(cpi);
4796
#endif
4797
4798
0
#if CONFIG_DENOISE
4799
  // even if denoise_noise_level is > 0, we don't need need to denoise on pass
4800
  // 1 of 2 if enable_dnl_denoising is disabled since the 2nd pass will be
4801
  // encoding the original (non-denoised) frame
4802
0
  if (cpi->oxcf.noise_level > 0 && !(cpi->oxcf.pass == AOM_RC_FIRST_PASS &&
4803
0
                                     !cpi->oxcf.enable_dnl_denoising)) {
4804
0
#if !CONFIG_REALTIME_ONLY
4805
    // Choose a synthetic noise level for still images for enhanced perceptual
4806
    // quality based on an estimated noise level in the source, but only if
4807
    // the noise level is set on the command line to > 0.
4808
0
    if (cpi->oxcf.mode == ALLINTRA) {
4809
      // No noise synthesis if source is very clean.
4810
      // Uses a low edge threshold to focus on smooth areas.
4811
      // Increase output noise setting a little compared to measured value.
4812
0
      double y_noise_level = 0.0;
4813
0
      av1_estimate_noise_level(sd, &y_noise_level, AOM_PLANE_Y, AOM_PLANE_Y,
4814
0
                               cm->seq_params->bit_depth, 16);
4815
0
      cpi->oxcf.noise_level = (float)(y_noise_level - 0.1);
4816
0
      cpi->oxcf.noise_level = (float)AOMMAX(0.0, cpi->oxcf.noise_level);
4817
0
      if (cpi->oxcf.noise_level > 0.0) {
4818
0
        cpi->oxcf.noise_level += (float)0.5;
4819
0
      }
4820
0
      cpi->oxcf.noise_level = (float)AOMMIN(5.0, cpi->oxcf.noise_level);
4821
0
    }
4822
4823
0
    if (apply_denoise_2d(cpi, sd, cpi->oxcf.noise_block_size,
4824
0
                         cpi->oxcf.noise_level, time_stamp, end_time) < 0)
4825
0
      res = -1;
4826
0
#endif  // !CONFIG_REALTIME_ONLY
4827
0
  }
4828
0
#endif  //  CONFIG_DENOISE
4829
4830
0
  if (av1_lookahead_push(cpi->ppi->lookahead, sd, time_stamp, end_time,
4831
0
                         use_highbitdepth, cpi->alloc_pyramid, frame_flags)) {
4832
0
    aom_set_error(cm->error, AOM_CODEC_ERROR, "av1_lookahead_push() failed");
4833
0
    res = -1;
4834
0
  }
4835
#if CONFIG_INTERNAL_STATS
4836
  aom_usec_timer_mark(&timer);
4837
  cpi->ppi->total_time_receive_data += aom_usec_timer_elapsed(&timer);
4838
#endif
4839
4840
0
  return res;
4841
0
}
4842
4843
#if CONFIG_ENTROPY_STATS
4844
void print_entropy_stats(AV1_PRIMARY *const ppi) {
4845
  if (!ppi->cpi) return;
4846
4847
  if (ppi->cpi->oxcf.pass != 1 &&
4848
      ppi->cpi->common.current_frame.frame_number > 0) {
4849
    fprintf(stderr, "Writing counts.stt\n");
4850
    FILE *f = fopen("counts.stt", "wb");
4851
    fwrite(&ppi->aggregate_fc, sizeof(ppi->aggregate_fc), 1, f);
4852
    fclose(f);
4853
  }
4854
}
4855
#endif  // CONFIG_ENTROPY_STATS
4856
4857
#if CONFIG_INTERNAL_STATS
4858
static void adjust_image_stat(double y, double u, double v, double all,
4859
                              ImageStat *s) {
4860
  s->stat[STAT_Y] += y;
4861
  s->stat[STAT_U] += u;
4862
  s->stat[STAT_V] += v;
4863
  s->stat[STAT_ALL] += all;
4864
  s->worst = AOMMIN(s->worst, all);
4865
}
4866
4867
static void compute_internal_stats(AV1_COMP *cpi, int frame_bytes) {
4868
  AV1_PRIMARY *const ppi = cpi->ppi;
4869
  AV1_COMMON *const cm = &cpi->common;
4870
  double samples = 0.0;
4871
  const uint32_t in_bit_depth = cpi->oxcf.input_cfg.input_bit_depth;
4872
  const uint32_t bit_depth = cpi->td.mb.e_mbd.bd;
4873
4874
  if (cpi->ppi->use_svc &&
4875
      cpi->svc.spatial_layer_id < cpi->svc.number_spatial_layers - 1)
4876
    return;
4877
4878
#if CONFIG_INTER_STATS_ONLY
4879
  if (cm->current_frame.frame_type == KEY_FRAME) return;  // skip key frame
4880
#endif
4881
  cpi->bytes += frame_bytes;
4882
  if (cm->show_frame) {
4883
    const YV12_BUFFER_CONFIG *orig = cpi->source;
4884
    const YV12_BUFFER_CONFIG *recon = &cpi->common.cur_frame->buf;
4885
    double y, u, v, frame_all;
4886
4887
    ppi->count[0]++;
4888
    ppi->count[1]++;
4889
    if (cpi->ppi->b_calculate_psnr) {
4890
      PSNR_STATS psnr;
4891
      double weight[2] = { 0.0, 0.0 };
4892
      double frame_ssim2[2] = { 0.0, 0.0 };
4893
#if CONFIG_AV1_HIGHBITDEPTH
4894
      aom_calc_highbd_psnr(orig, recon, &psnr, bit_depth, in_bit_depth);
4895
#else
4896
      aom_calc_psnr(orig, recon, &psnr);
4897
#endif
4898
      adjust_image_stat(psnr.psnr[1], psnr.psnr[2], psnr.psnr[3], psnr.psnr[0],
4899
                        &(ppi->psnr[0]));
4900
      ppi->total_sq_error[0] += psnr.sse[0];
4901
      ppi->total_samples[0] += psnr.samples[0];
4902
      samples = psnr.samples[0];
4903
4904
      aom_calc_ssim(orig, recon, bit_depth, in_bit_depth,
4905
                    cm->seq_params->use_highbitdepth, weight, frame_ssim2);
4906
4907
      ppi->worst_ssim = AOMMIN(ppi->worst_ssim, frame_ssim2[0]);
4908
      ppi->summed_quality += frame_ssim2[0] * weight[0];
4909
      ppi->summed_weights += weight[0];
4910
4911
#if CONFIG_AV1_HIGHBITDEPTH
4912
      // Compute PSNR based on stream bit depth
4913
      if ((cpi->source->flags & YV12_FLAG_HIGHBITDEPTH) &&
4914
          (in_bit_depth < bit_depth)) {
4915
        adjust_image_stat(psnr.psnr_hbd[1], psnr.psnr_hbd[2], psnr.psnr_hbd[3],
4916
                          psnr.psnr_hbd[0], &ppi->psnr[1]);
4917
        ppi->total_sq_error[1] += psnr.sse_hbd[0];
4918
        ppi->total_samples[1] += psnr.samples_hbd[0];
4919
4920
        ppi->worst_ssim_hbd = AOMMIN(ppi->worst_ssim_hbd, frame_ssim2[1]);
4921
        ppi->summed_quality_hbd += frame_ssim2[1] * weight[1];
4922
        ppi->summed_weights_hbd += weight[1];
4923
      }
4924
#endif
4925
4926
#if 0
4927
      {
4928
        FILE *f = fopen("q_used.stt", "a");
4929
        double y2 = psnr.psnr[1];
4930
        double u2 = psnr.psnr[2];
4931
        double v2 = psnr.psnr[3];
4932
        double frame_psnr2 = psnr.psnr[0];
4933
        fprintf(f, "%5d : Y%f7.3:U%f7.3:V%f7.3:F%f7.3:S%7.3f\n",
4934
                cm->current_frame.frame_number, y2, u2, v2,
4935
                frame_psnr2, frame_ssim2);
4936
        fclose(f);
4937
      }
4938
#endif
4939
    }
4940
    if (ppi->b_calculate_blockiness) {
4941
      if (!cm->seq_params->use_highbitdepth) {
4942
        const double frame_blockiness =
4943
            av1_get_blockiness(orig->y_buffer, orig->y_stride, recon->y_buffer,
4944
                               recon->y_stride, orig->y_width, orig->y_height);
4945
        ppi->worst_blockiness = AOMMAX(ppi->worst_blockiness, frame_blockiness);
4946
        ppi->total_blockiness += frame_blockiness;
4947
      }
4948
4949
      if (ppi->b_calculate_consistency) {
4950
        if (!cm->seq_params->use_highbitdepth) {
4951
          const double this_inconsistency = aom_get_ssim_metrics(
4952
              orig->y_buffer, orig->y_stride, recon->y_buffer, recon->y_stride,
4953
              orig->y_width, orig->y_height, ppi->ssim_vars, &ppi->metrics, 1);
4954
4955
          const double peak = (double)((1 << in_bit_depth) - 1);
4956
          const double consistency =
4957
              aom_sse_to_psnr(samples, peak, ppi->total_inconsistency);
4958
          if (consistency > 0.0)
4959
            ppi->worst_consistency =
4960
                AOMMIN(ppi->worst_consistency, consistency);
4961
          ppi->total_inconsistency += this_inconsistency;
4962
        }
4963
      }
4964
    }
4965
4966
    frame_all =
4967
        aom_calc_fastssim(orig, recon, &y, &u, &v, bit_depth, in_bit_depth);
4968
    adjust_image_stat(y, u, v, frame_all, &ppi->fastssim);
4969
    frame_all = aom_psnrhvs(orig, recon, &y, &u, &v, bit_depth, in_bit_depth);
4970
    adjust_image_stat(y, u, v, frame_all, &ppi->psnrhvs);
4971
  }
4972
}
4973
4974
void print_internal_stats(AV1_PRIMARY *ppi) {
4975
  if (!ppi->cpi) return;
4976
  AV1_COMP *const cpi = ppi->cpi;
4977
4978
  if (ppi->cpi->oxcf.pass != 1 &&
4979
      ppi->cpi->common.current_frame.frame_number > 0) {
4980
    char headings[512] = { 0 };
4981
    char results[512] = { 0 };
4982
    FILE *f = fopen("opsnr.stt", "a");
4983
    double time_encoded =
4984
        (cpi->time_stamps.prev_ts_end - cpi->time_stamps.first_ts_start) /
4985
        10000000.000;
4986
    double total_encode_time =
4987
        (ppi->total_time_receive_data + ppi->total_time_compress_data) /
4988
        1000.000;
4989
    const double dr =
4990
        (double)ppi->total_bytes * (double)8 / (double)1000 / time_encoded;
4991
    const double peak =
4992
        (double)((1 << ppi->cpi->oxcf.input_cfg.input_bit_depth) - 1);
4993
    const double target_rate =
4994
        (double)ppi->cpi->oxcf.rc_cfg.target_bandwidth / 1000;
4995
    const double rate_err = ((100.0 * (dr - target_rate)) / target_rate);
4996
4997
    if (ppi->b_calculate_psnr) {
4998
      const double total_psnr = aom_sse_to_psnr(
4999
          (double)ppi->total_samples[0], peak, (double)ppi->total_sq_error[0]);
5000
      const double total_ssim =
5001
          100 * pow(ppi->summed_quality / ppi->summed_weights, 8.0);
5002
      snprintf(headings, sizeof(headings),
5003
               "Bitrate\tAVGPsnr\tGLBPsnr\tAVPsnrP\tGLPsnrP\t"
5004
               "AOMSSIM\tVPSSIMP\tFASTSIM\tPSNRHVS\t"
5005
               "WstPsnr\tWstSsim\tWstFast\tWstHVS\t"
5006
               "AVPsrnY\tAPsnrCb\tAPsnrCr");
5007
      snprintf(results, sizeof(results),
5008
               "%7.2f\t%7.3f\t%7.3f\t%7.3f\t%7.3f\t"
5009
               "%7.3f\t%7.3f\t%7.3f\t%7.3f\t"
5010
               "%7.3f\t%7.3f\t%7.3f\t%7.3f\t"
5011
               "%7.3f\t%7.3f\t%7.3f",
5012
               dr, ppi->psnr[0].stat[STAT_ALL] / ppi->count[0], total_psnr,
5013
               ppi->psnr[0].stat[STAT_ALL] / ppi->count[0], total_psnr,
5014
               total_ssim, total_ssim,
5015
               ppi->fastssim.stat[STAT_ALL] / ppi->count[0],
5016
               ppi->psnrhvs.stat[STAT_ALL] / ppi->count[0], ppi->psnr[0].worst,
5017
               ppi->worst_ssim, ppi->fastssim.worst, ppi->psnrhvs.worst,
5018
               ppi->psnr[0].stat[STAT_Y] / ppi->count[0],
5019
               ppi->psnr[0].stat[STAT_U] / ppi->count[0],
5020
               ppi->psnr[0].stat[STAT_V] / ppi->count[0]);
5021
5022
      if (ppi->b_calculate_blockiness) {
5023
        SNPRINT(headings, "\t  Block\tWstBlck");
5024
        SNPRINT2(results, "\t%7.3f", ppi->total_blockiness / ppi->count[0]);
5025
        SNPRINT2(results, "\t%7.3f", ppi->worst_blockiness);
5026
      }
5027
5028
      if (ppi->b_calculate_consistency) {
5029
        double consistency =
5030
            aom_sse_to_psnr((double)ppi->total_samples[0], peak,
5031
                            (double)ppi->total_inconsistency);
5032
5033
        SNPRINT(headings, "\tConsist\tWstCons");
5034
        SNPRINT2(results, "\t%7.3f", consistency);
5035
        SNPRINT2(results, "\t%7.3f", ppi->worst_consistency);
5036
      }
5037
5038
      SNPRINT(headings, "\t   Time\tRcErr\tAbsErr");
5039
      SNPRINT2(results, "\t%8.0f", total_encode_time);
5040
      SNPRINT2(results, " %7.2f", rate_err);
5041
      SNPRINT2(results, " %7.2f", fabs(rate_err));
5042
5043
      SNPRINT(headings, "\tAPsnr611");
5044
      SNPRINT2(results, " %7.3f",
5045
               (6 * ppi->psnr[0].stat[STAT_Y] + ppi->psnr[0].stat[STAT_U] +
5046
                ppi->psnr[0].stat[STAT_V]) /
5047
                   (ppi->count[0] * 8));
5048
5049
#if CONFIG_AV1_HIGHBITDEPTH
5050
      const uint32_t in_bit_depth = ppi->cpi->oxcf.input_cfg.input_bit_depth;
5051
      const uint32_t bit_depth = ppi->seq_params.bit_depth;
5052
      // Since cpi->source->flags is not available here, but total_samples[1]
5053
      // will be non-zero if cpi->source->flags & YV12_FLAG_HIGHBITDEPTH was
5054
      // true in compute_internal_stats
5055
      if ((ppi->total_samples[1] > 0) && (in_bit_depth < bit_depth)) {
5056
        const double peak_hbd = (double)((1 << bit_depth) - 1);
5057
        const double total_psnr_hbd =
5058
            aom_sse_to_psnr((double)ppi->total_samples[1], peak_hbd,
5059
                            (double)ppi->total_sq_error[1]);
5060
        const double total_ssim_hbd =
5061
            100 * pow(ppi->summed_quality_hbd / ppi->summed_weights_hbd, 8.0);
5062
        SNPRINT(headings,
5063
                "\t AVGPsnrH GLBPsnrH AVPsnrPH GLPsnrPH"
5064
                " AVPsnrYH APsnrCbH APsnrCrH WstPsnrH"
5065
                " AOMSSIMH VPSSIMPH WstSsimH");
5066
        SNPRINT2(results, "\t%7.3f",
5067
                 ppi->psnr[1].stat[STAT_ALL] / ppi->count[1]);
5068
        SNPRINT2(results, "  %7.3f", total_psnr_hbd);
5069
        SNPRINT2(results, "  %7.3f",
5070
                 ppi->psnr[1].stat[STAT_ALL] / ppi->count[1]);
5071
        SNPRINT2(results, "  %7.3f", total_psnr_hbd);
5072
        SNPRINT2(results, "  %7.3f", ppi->psnr[1].stat[STAT_Y] / ppi->count[1]);
5073
        SNPRINT2(results, "  %7.3f", ppi->psnr[1].stat[STAT_U] / ppi->count[1]);
5074
        SNPRINT2(results, "  %7.3f", ppi->psnr[1].stat[STAT_V] / ppi->count[1]);
5075
        SNPRINT2(results, "  %7.3f", ppi->psnr[1].worst);
5076
        SNPRINT2(results, "  %7.3f", total_ssim_hbd);
5077
        SNPRINT2(results, "  %7.3f", total_ssim_hbd);
5078
        SNPRINT2(results, "  %7.3f", ppi->worst_ssim_hbd);
5079
      }
5080
#endif
5081
      fprintf(f, "%s\n", headings);
5082
      fprintf(f, "%s\n", results);
5083
    }
5084
5085
    fclose(f);
5086
5087
    aom_free(ppi->ssim_vars);
5088
    ppi->ssim_vars = NULL;
5089
  }
5090
}
5091
#endif  // CONFIG_INTERNAL_STATS
5092
5093
0
static inline void update_keyframe_counters(AV1_COMP *cpi) {
5094
0
  if (cpi->common.show_frame && cpi->rc.frames_to_key) {
5095
0
#if !CONFIG_REALTIME_ONLY
5096
0
    FIRSTPASS_INFO *firstpass_info = &cpi->ppi->twopass.firstpass_info;
5097
0
    if (firstpass_info->past_stats_count > FIRSTPASS_INFO_STATS_PAST_MIN) {
5098
0
      av1_firstpass_info_move_cur_index_and_pop(firstpass_info);
5099
0
    } else {
5100
      // When there is not enough past stats, we move the current
5101
      // index without popping the past stats
5102
0
      av1_firstpass_info_move_cur_index(firstpass_info);
5103
0
    }
5104
0
#endif
5105
0
    if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1) {
5106
0
      cpi->rc.frames_since_key++;
5107
0
      cpi->rc.frames_to_key--;
5108
0
      cpi->rc.frames_to_fwd_kf--;
5109
0
      cpi->rc.frames_since_scene_change++;
5110
0
    }
5111
0
  }
5112
0
}
5113
5114
0
static inline void update_frames_till_gf_update(AV1_COMP *cpi) {
5115
  // TODO(weitinglin): Updating this counter for is_frame_droppable
5116
  // is a work-around to handle the condition when a frame is drop.
5117
  // We should fix the cpi->common.show_frame flag
5118
  // instead of checking the other condition to update the counter properly.
5119
0
  if (cpi->common.show_frame ||
5120
0
      is_frame_droppable(&cpi->ppi->rtc_ref, &cpi->ext_flags.refresh_frame)) {
5121
    // Decrement count down till next gf
5122
0
    if (cpi->rc.frames_till_gf_update_due > 0)
5123
0
      cpi->rc.frames_till_gf_update_due--;
5124
0
  }
5125
0
}
5126
5127
0
static inline void update_gf_group_index(AV1_COMP *cpi) {
5128
  // Increment the gf group index ready for the next frame.
5129
0
  ++cpi->gf_frame_index;
5130
  // Reset gf_frame_index in case it reaches MAX_STATIC_GF_GROUP_LENGTH.
5131
0
  if (cpi->gf_frame_index == MAX_STATIC_GF_GROUP_LENGTH)
5132
0
    cpi->gf_frame_index = 0;
5133
0
}
5134
5135
static void update_fb_of_context_type(const AV1_COMP *const cpi,
5136
0
                                      int *const fb_of_context_type) {
5137
0
  const AV1_COMMON *const cm = &cpi->common;
5138
0
  const int current_frame_ref_type = get_current_frame_ref_type(cpi);
5139
5140
0
  if (frame_is_intra_only(cm) || cm->features.error_resilient_mode ||
5141
0
      cpi->ext_flags.use_primary_ref_none) {
5142
0
    for (int i = 0; i < REF_FRAMES; i++) {
5143
0
      fb_of_context_type[i] = -1;
5144
0
    }
5145
0
    fb_of_context_type[current_frame_ref_type] =
5146
0
        cm->show_frame ? get_ref_frame_map_idx(cm, GOLDEN_FRAME)
5147
0
                       : get_ref_frame_map_idx(cm, ALTREF_FRAME);
5148
0
  }
5149
5150
0
  if (!encode_show_existing_frame(cm)) {
5151
    // Refresh fb_of_context_type[]: see encoder.h for explanation
5152
0
    if (cm->current_frame.frame_type == KEY_FRAME) {
5153
      // All ref frames are refreshed, pick one that will live long enough
5154
0
      fb_of_context_type[current_frame_ref_type] = 0;
5155
0
    } else {
5156
      // If more than one frame is refreshed, it doesn't matter which one we
5157
      // pick so pick the first.  LST sometimes doesn't refresh any: this is ok
5158
5159
0
      for (int i = 0; i < REF_FRAMES; i++) {
5160
0
        if (cm->current_frame.refresh_frame_flags & (1 << i)) {
5161
0
          fb_of_context_type[current_frame_ref_type] = i;
5162
0
          break;
5163
0
        }
5164
0
      }
5165
0
    }
5166
0
  }
5167
0
}
5168
5169
0
static void update_rc_counts(AV1_COMP *cpi) {
5170
0
  update_keyframe_counters(cpi);
5171
0
  update_frames_till_gf_update(cpi);
5172
0
  update_gf_group_index(cpi);
5173
0
}
5174
5175
0
static void update_end_of_frame_stats(AV1_COMP *cpi) {
5176
0
  if (cpi->do_frame_data_update) {
5177
    // Store current frame loopfilter levels in ppi, if update flag is set.
5178
0
    if (!cpi->common.show_existing_frame) {
5179
0
      AV1_COMMON *const cm = &cpi->common;
5180
0
      struct loopfilter *const lf = &cm->lf;
5181
0
      cpi->ppi->filter_level[0] = lf->backup_filter_level[0];
5182
0
      cpi->ppi->filter_level[1] = lf->backup_filter_level[1];
5183
0
      cpi->ppi->filter_level_u = lf->backup_filter_level_u;
5184
0
      cpi->ppi->filter_level_v = lf->backup_filter_level_v;
5185
0
    }
5186
0
  }
5187
  // Store frame level mv_stats from cpi to ppi.
5188
0
  cpi->ppi->mv_stats = cpi->mv_stats;
5189
0
}
5190
5191
// Updates frame level stats related to global motion
5192
0
static inline void update_gm_stats(AV1_COMP *cpi) {
5193
0
  FRAME_UPDATE_TYPE update_type =
5194
0
      cpi->ppi->gf_group.update_type[cpi->gf_frame_index];
5195
0
  int i, is_gm_present = 0;
5196
5197
  // Check if the current frame has any valid global motion model across its
5198
  // reference frames
5199
0
  for (i = 0; i < REF_FRAMES; i++) {
5200
0
    if (cpi->common.global_motion[i].wmtype != IDENTITY) {
5201
0
      is_gm_present = 1;
5202
0
      break;
5203
0
    }
5204
0
  }
5205
0
  int update_actual_stats = 1;
5206
#if CONFIG_FPMT_TEST
5207
  update_actual_stats =
5208
      (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) ? 0 : 1;
5209
  if (!update_actual_stats) {
5210
    if (cpi->ppi->temp_valid_gm_model_found[update_type] == INT32_MAX) {
5211
      cpi->ppi->temp_valid_gm_model_found[update_type] = is_gm_present;
5212
    } else {
5213
      cpi->ppi->temp_valid_gm_model_found[update_type] |= is_gm_present;
5214
    }
5215
    int show_existing_between_parallel_frames =
5216
        (cpi->ppi->gf_group.update_type[cpi->gf_frame_index] ==
5217
             INTNL_OVERLAY_UPDATE &&
5218
         cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index + 1] == 2);
5219
    if (cpi->do_frame_data_update == 1 &&
5220
        !show_existing_between_parallel_frames) {
5221
      for (i = 0; i < FRAME_UPDATE_TYPES; i++) {
5222
        cpi->ppi->valid_gm_model_found[i] =
5223
            cpi->ppi->temp_valid_gm_model_found[i];
5224
      }
5225
    }
5226
  }
5227
#endif
5228
0
  if (update_actual_stats) {
5229
0
    if (cpi->ppi->valid_gm_model_found[update_type] == INT32_MAX) {
5230
0
      cpi->ppi->valid_gm_model_found[update_type] = is_gm_present;
5231
0
    } else {
5232
0
      cpi->ppi->valid_gm_model_found[update_type] |= is_gm_present;
5233
0
    }
5234
0
  }
5235
0
}
5236
5237
void av1_post_encode_updates(AV1_COMP *const cpi,
5238
0
                             const AV1_COMP_DATA *const cpi_data) {
5239
0
  AV1_PRIMARY *const ppi = cpi->ppi;
5240
0
  AV1_COMMON *const cm = &cpi->common;
5241
5242
0
  if (ppi->b_freeze_internal_state) {
5243
    // Should not update encoder state, just necessary work to get the
5244
    // expected output and then return early.
5245
5246
    // Note *size = 0 indicates a dropped frame for which psnr is not calculated
5247
0
    if (ppi->b_calculate_psnr && cpi_data->frame_size > 0) {
5248
0
      if (cm->show_existing_frame ||
5249
0
          (!is_stat_generation_stage(cpi) && cm->show_frame)) {
5250
0
        generate_psnr_packet(cpi);
5251
0
      }
5252
0
    }
5253
5254
0
    if (cpi_data->pop_lookahead == 1) {
5255
0
      av1_lookahead_pop(cpi->ppi->lookahead, cpi_data->flush,
5256
0
                        cpi->compressor_stage);
5257
0
    }
5258
0
    return;
5259
0
  }
5260
5261
0
  update_gm_stats(cpi);
5262
5263
0
#if !CONFIG_REALTIME_ONLY
5264
  // Update the total stats remaining structure.
5265
0
  if (cpi->twopass_frame.this_frame != NULL &&
5266
0
      ppi->twopass.stats_buf_ctx->total_left_stats) {
5267
0
    subtract_stats(ppi->twopass.stats_buf_ctx->total_left_stats,
5268
0
                   cpi->twopass_frame.this_frame);
5269
0
  }
5270
0
#endif
5271
5272
#if CONFIG_OUTPUT_FRAME_SIZE
5273
  FILE *f = fopen("frame_sizes.csv", "a");
5274
  fprintf(f, "%d,", 8 * (int)cpi_data->frame_size);
5275
  fprintf(f, "%d\n", cm->quant_params.base_qindex);
5276
  fclose(f);
5277
#endif  // CONFIG_OUTPUT_FRAME_SIZE
5278
5279
0
  if (!is_stat_generation_stage(cpi) && !cpi->is_dropped_frame) {
5280
    // Before calling refresh_reference_frames(), copy ppi->ref_frame_map_copy
5281
    // to cm->ref_frame_map for frame_parallel_level 2 frame in a parallel
5282
    // encode set of lower layer frames.
5283
    // TODO(Remya): Move ref_frame_map from AV1_COMMON to AV1_PRIMARY to avoid
5284
    // copy.
5285
0
    if (ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] == 2 &&
5286
0
        ppi->gf_group.frame_parallel_level[cpi->gf_frame_index - 1] == 1 &&
5287
0
        ppi->gf_group.update_type[cpi->gf_frame_index - 1] ==
5288
0
            INTNL_ARF_UPDATE) {
5289
0
      memcpy(cm->ref_frame_map, ppi->ref_frame_map_copy,
5290
0
             sizeof(cm->ref_frame_map));
5291
0
    }
5292
0
    refresh_reference_frames(cpi);
5293
    // For frame_parallel_level 1 frame in a parallel encode set of lower layer
5294
    // frames, store the updated cm->ref_frame_map in ppi->ref_frame_map_copy.
5295
0
    if (ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] == 1 &&
5296
0
        ppi->gf_group.update_type[cpi->gf_frame_index] == INTNL_ARF_UPDATE) {
5297
0
      memcpy(ppi->ref_frame_map_copy, cm->ref_frame_map,
5298
0
             sizeof(cm->ref_frame_map));
5299
0
    }
5300
0
    av1_rc_postencode_update(cpi, cpi_data->frame_size);
5301
0
  }
5302
5303
0
  if (cpi_data->pop_lookahead == 1) {
5304
0
    av1_lookahead_pop(cpi->ppi->lookahead, cpi_data->flush,
5305
0
                      cpi->compressor_stage);
5306
0
  }
5307
0
  if (cpi->common.show_frame) {
5308
0
    cpi->ppi->ts_start_last_show_frame = cpi_data->ts_frame_start;
5309
0
    cpi->ppi->ts_end_last_show_frame = cpi_data->ts_frame_end;
5310
0
  }
5311
0
  if (ppi->level_params.keep_level_stats && !is_stat_generation_stage(cpi)) {
5312
    // Initialize level info. at the beginning of each sequence.
5313
0
    if (cm->current_frame.frame_type == KEY_FRAME &&
5314
0
        ppi->gf_group.refbuf_state[cpi->gf_frame_index] == REFBUF_RESET) {
5315
0
      av1_init_level_info(cpi);
5316
0
    }
5317
0
    av1_update_level_info(cpi, cpi_data->frame_size, cpi_data->ts_frame_start,
5318
0
                          cpi_data->ts_frame_end);
5319
0
  }
5320
5321
0
  if (!is_stat_generation_stage(cpi)) {
5322
0
#if !CONFIG_REALTIME_ONLY
5323
0
    if (!has_no_stats_stage(cpi)) av1_twopass_postencode_update(cpi);
5324
0
#endif
5325
0
    update_fb_of_context_type(cpi, ppi->fb_of_context_type);
5326
0
    update_rc_counts(cpi);
5327
0
    update_end_of_frame_stats(cpi);
5328
0
  }
5329
5330
#if CONFIG_THREE_PASS
5331
  if (cpi->oxcf.pass == AOM_RC_THIRD_PASS && cpi->third_pass_ctx) {
5332
    av1_pop_third_pass_info(cpi->third_pass_ctx);
5333
  }
5334
#endif
5335
5336
0
  if (ppi->rtc_ref.set_ref_frame_config && !cpi->is_dropped_frame) {
5337
0
    av1_svc_update_buffer_slot_refreshed(cpi);
5338
0
    av1_svc_set_reference_was_previous(cpi);
5339
0
  }
5340
5341
0
  if (ppi->use_svc) av1_save_layer_context(cpi);
5342
5343
  // Note *size = 0 indicates a dropped frame for which psnr is not calculated
5344
0
  if (ppi->b_calculate_psnr && cpi_data->frame_size > 0) {
5345
0
    if (cm->show_existing_frame ||
5346
0
        (!is_stat_generation_stage(cpi) && cm->show_frame)) {
5347
0
      generate_psnr_packet(cpi);
5348
0
    }
5349
0
  }
5350
5351
#if CONFIG_INTERNAL_STATS
5352
  if (!is_stat_generation_stage(cpi)) {
5353
    compute_internal_stats(cpi, (int)cpi_data->frame_size);
5354
  }
5355
#endif  // CONFIG_INTERNAL_STATS
5356
5357
#if CONFIG_THREE_PASS
5358
  // Write frame info. Subtract 1 from frame index since if was incremented in
5359
  // update_rc_counts.
5360
  av1_write_second_pass_per_frame_info(cpi, cpi->gf_frame_index - 1);
5361
#endif
5362
0
}
5363
5364
0
int av1_get_compressed_data(AV1_COMP *cpi, AV1_COMP_DATA *const cpi_data) {
5365
0
  const AV1EncoderConfig *const oxcf = &cpi->oxcf;
5366
0
  AV1_COMMON *const cm = &cpi->common;
5367
5368
  // The jmp_buf is valid only for the duration of the function that calls
5369
  // setjmp(). Therefore, this function must reset the 'setjmp' field to 0
5370
  // before it returns.
5371
0
  if (setjmp(cm->error->jmp)) {
5372
0
    cm->error->setjmp = 0;
5373
0
    return cm->error->error_code;
5374
0
  }
5375
0
  cm->error->setjmp = 1;
5376
5377
#if CONFIG_INTERNAL_STATS
5378
  cpi->frame_recode_hits = 0;
5379
  cpi->time_compress_data = 0;
5380
  cpi->bytes = 0;
5381
#endif
5382
#if CONFIG_ENTROPY_STATS
5383
  if (cpi->compressor_stage == ENCODE_STAGE) {
5384
    av1_zero(cpi->counts);
5385
  }
5386
#endif
5387
5388
#if CONFIG_BITSTREAM_DEBUG
5389
  assert(cpi->oxcf.max_threads <= 1 &&
5390
         "bitstream debug tool does not support multithreading");
5391
  bitstream_queue_record_write();
5392
5393
  if (cm->seq_params->order_hint_info.enable_order_hint) {
5394
    aom_bitstream_queue_set_frame_write(cm->current_frame.order_hint * 2 +
5395
                                        cm->show_frame);
5396
  } else {
5397
    // This is currently used in RTC encoding. cm->show_frame is always 1.
5398
    aom_bitstream_queue_set_frame_write(cm->current_frame.frame_number);
5399
  }
5400
#endif
5401
0
  if (cpi->ppi->use_svc) {
5402
0
    av1_one_pass_cbr_svc_start_layer(cpi);
5403
0
  }
5404
5405
0
  cpi->is_dropped_frame = false;
5406
0
  cm->showable_frame = 0;
5407
0
  cpi_data->frame_size = 0;
5408
#if CONFIG_INTERNAL_STATS
5409
  struct aom_usec_timer cmptimer;
5410
  aom_usec_timer_start(&cmptimer);
5411
#endif
5412
0
  av1_set_high_precision_mv(cpi, 1, 0);
5413
5414
  // Normal defaults
5415
0
  cm->features.refresh_frame_context =
5416
0
      oxcf->tool_cfg.frame_parallel_decoding_mode
5417
0
          ? REFRESH_FRAME_CONTEXT_DISABLED
5418
0
          : REFRESH_FRAME_CONTEXT_BACKWARD;
5419
0
  if (oxcf->tile_cfg.enable_large_scale_tile)
5420
0
    cm->features.refresh_frame_context = REFRESH_FRAME_CONTEXT_DISABLED;
5421
5422
0
  if (assign_cur_frame_new_fb(cm) == NULL) {
5423
0
    aom_internal_error(cpi->common.error, AOM_CODEC_ERROR,
5424
0
                       "Failed to allocate new cur_frame");
5425
0
  }
5426
5427
#if CONFIG_COLLECT_COMPONENT_TIMING
5428
  // Accumulate 2nd pass time in 2-pass case or 1 pass time in 1-pass case.
5429
  if (cpi->oxcf.pass == 2 || cpi->oxcf.pass == 0)
5430
    start_timing(cpi, av1_encode_strategy_time);
5431
#endif
5432
5433
0
  const int result = av1_encode_strategy(
5434
0
      cpi, &cpi_data->frame_size, cpi_data->cx_data, cpi_data->cx_data_sz,
5435
0
      &cpi_data->lib_flags, &cpi_data->ts_frame_start, &cpi_data->ts_frame_end,
5436
0
      cpi_data->timestamp_ratio, &cpi_data->pop_lookahead, cpi_data->flush);
5437
5438
#if CONFIG_COLLECT_COMPONENT_TIMING
5439
  if (cpi->oxcf.pass == 2 || cpi->oxcf.pass == 0)
5440
    end_timing(cpi, av1_encode_strategy_time);
5441
5442
  // Print out timing information.
5443
  // Note: Use "cpi->frame_component_time[0] > 100 us" to avoid showing of
5444
  // show_existing_frame and lag-in-frames.
5445
  if ((cpi->oxcf.pass == 2 || cpi->oxcf.pass == 0) &&
5446
      cpi->frame_component_time[0] > 100) {
5447
    int i;
5448
    uint64_t frame_total = 0, total = 0;
5449
    const GF_GROUP *const gf_group = &cpi->ppi->gf_group;
5450
    FRAME_UPDATE_TYPE frame_update_type =
5451
        get_frame_update_type(gf_group, cpi->gf_frame_index);
5452
5453
    fprintf(stderr,
5454
            "\n Frame number: %d, Frame type: %s, Show Frame: %d, Frame Update "
5455
            "Type: %d, Q: %d\n",
5456
            cm->current_frame.frame_number,
5457
            get_frame_type_enum(cm->current_frame.frame_type), cm->show_frame,
5458
            frame_update_type, cm->quant_params.base_qindex);
5459
    for (i = 0; i < kTimingComponents; i++) {
5460
      cpi->component_time[i] += cpi->frame_component_time[i];
5461
      // Use av1_encode_strategy_time (i = 0) as the total time.
5462
      if (i == 0) {
5463
        frame_total = cpi->frame_component_time[0];
5464
        total = cpi->component_time[0];
5465
      }
5466
      fprintf(stderr,
5467
              " %50s:  %15" PRId64 " us [%6.2f%%] (total: %15" PRId64
5468
              " us [%6.2f%%])\n",
5469
              get_component_name(i), cpi->frame_component_time[i],
5470
              (float)((float)cpi->frame_component_time[i] * 100.0 /
5471
                      (float)frame_total),
5472
              cpi->component_time[i],
5473
              (float)((float)cpi->component_time[i] * 100.0 / (float)total));
5474
      cpi->frame_component_time[i] = 0;
5475
    }
5476
  }
5477
#endif
5478
5479
  // Reset the flag to 0 afer encoding.
5480
0
  cpi->rc.use_external_qp_one_pass = 0;
5481
5482
0
  if (result == -1) {
5483
0
    cm->error->setjmp = 0;
5484
    // Returning -1 indicates no frame encoded; more input is required
5485
0
    return -1;
5486
0
  }
5487
0
  if (result != AOM_CODEC_OK) {
5488
0
    aom_internal_error(cpi->common.error, AOM_CODEC_ERROR,
5489
0
                       "Failed to encode frame");
5490
0
  }
5491
#if CONFIG_INTERNAL_STATS
5492
  aom_usec_timer_mark(&cmptimer);
5493
  cpi->time_compress_data += aom_usec_timer_elapsed(&cmptimer);
5494
#endif  // CONFIG_INTERNAL_STATS
5495
5496
#if CONFIG_SPEED_STATS
5497
  if (!is_stat_generation_stage(cpi) && !cm->show_existing_frame) {
5498
    cpi->tx_search_count += cpi->td.mb.txfm_search_info.tx_search_count;
5499
    cpi->td.mb.txfm_search_info.tx_search_count = 0;
5500
  }
5501
#endif  // CONFIG_SPEED_STATS
5502
5503
0
  cm->error->setjmp = 0;
5504
0
  return AOM_CODEC_OK;
5505
0
}
5506
5507
// Populates cpi->scaled_ref_buf corresponding to frames in a parallel encode
5508
// set. Also sets the bitmask 'ref_buffers_used_map'.
5509
0
static void scale_references_fpmt(AV1_COMP *cpi, int *ref_buffers_used_map) {
5510
0
  AV1_COMMON *cm = &cpi->common;
5511
0
  MV_REFERENCE_FRAME ref_frame;
5512
5513
0
  for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
5514
    // Need to convert from AOM_REFFRAME to index into ref_mask (subtract 1).
5515
0
    if (cpi->ref_frame_flags & av1_ref_frame_flag_list[ref_frame]) {
5516
0
      const YV12_BUFFER_CONFIG *const ref =
5517
0
          get_ref_frame_yv12_buf(cm, ref_frame);
5518
5519
0
      if (ref == NULL) {
5520
0
        cpi->scaled_ref_buf[ref_frame - 1] = NULL;
5521
0
        continue;
5522
0
      }
5523
5524
      // FPMT does not support scaling yet.
5525
0
      assert(ref->y_crop_width == cm->width &&
5526
0
             ref->y_crop_height == cm->height);
5527
5528
0
      RefCntBuffer *buf = get_ref_frame_buf(cm, ref_frame);
5529
0
      cpi->scaled_ref_buf[ref_frame - 1] = buf;
5530
0
      for (int i = 0; i < cm->buffer_pool->num_frame_bufs; ++i) {
5531
0
        if (&cm->buffer_pool->frame_bufs[i] == buf) {
5532
0
          *ref_buffers_used_map |= (1 << i);
5533
0
        }
5534
0
      }
5535
0
    } else {
5536
0
      if (!has_no_stats_stage(cpi)) cpi->scaled_ref_buf[ref_frame - 1] = NULL;
5537
0
    }
5538
0
  }
5539
0
}
5540
5541
// Increments the ref_count of frame buffers referenced by cpi->scaled_ref_buf
5542
// corresponding to frames in a parallel encode set.
5543
static void increment_scaled_ref_counts_fpmt(BufferPool *buffer_pool,
5544
0
                                             int ref_buffers_used_map) {
5545
0
  for (int i = 0; i < buffer_pool->num_frame_bufs; ++i) {
5546
0
    if (ref_buffers_used_map & (1 << i)) {
5547
0
      ++buffer_pool->frame_bufs[i].ref_count;
5548
0
    }
5549
0
  }
5550
0
}
5551
5552
// Releases cpi->scaled_ref_buf corresponding to frames in a parallel encode
5553
// set.
5554
0
void av1_release_scaled_references_fpmt(AV1_COMP *cpi) {
5555
  // TODO(isbs): only refresh the necessary frames, rather than all of them
5556
0
  for (int i = 0; i < INTER_REFS_PER_FRAME; ++i) {
5557
0
    RefCntBuffer *const buf = cpi->scaled_ref_buf[i];
5558
0
    if (buf != NULL) {
5559
0
      cpi->scaled_ref_buf[i] = NULL;
5560
0
    }
5561
0
  }
5562
0
}
5563
5564
// Decrements the ref_count of frame buffers referenced by cpi->scaled_ref_buf
5565
// corresponding to frames in a parallel encode set.
5566
void av1_decrement_ref_counts_fpmt(BufferPool *buffer_pool,
5567
0
                                   int ref_buffers_used_map) {
5568
0
  for (int i = 0; i < buffer_pool->num_frame_bufs; ++i) {
5569
0
    if (ref_buffers_used_map & (1 << i)) {
5570
0
      --buffer_pool->frame_bufs[i].ref_count;
5571
0
    }
5572
0
  }
5573
0
}
5574
5575
// Initialize parallel frame contexts with screen content decisions.
5576
0
void av1_init_sc_decisions(AV1_PRIMARY *const ppi) {
5577
0
  AV1_COMP *const first_cpi = ppi->cpi;
5578
0
  for (int i = 1; i < ppi->num_fp_contexts; ++i) {
5579
0
    AV1_COMP *cur_cpi = ppi->parallel_cpi[i];
5580
0
    cur_cpi->common.features.allow_screen_content_tools =
5581
0
        first_cpi->common.features.allow_screen_content_tools;
5582
0
    cur_cpi->common.features.allow_intrabc =
5583
0
        first_cpi->common.features.allow_intrabc;
5584
0
    cur_cpi->use_screen_content_tools = first_cpi->use_screen_content_tools;
5585
0
    cur_cpi->is_screen_content_type = first_cpi->is_screen_content_type;
5586
0
  }
5587
0
}
5588
5589
AV1_COMP *av1_get_parallel_frame_enc_data(AV1_PRIMARY *const ppi,
5590
0
                                          AV1_COMP_DATA *const first_cpi_data) {
5591
0
  int cpi_idx = 0;
5592
5593
  // Loop over parallel_cpi to find the cpi that processed the current
5594
  // gf_frame_index ahead of time.
5595
0
  for (int i = 1; i < ppi->num_fp_contexts; i++) {
5596
0
    if (ppi->cpi->gf_frame_index == ppi->parallel_cpi[i]->gf_frame_index) {
5597
0
      cpi_idx = i;
5598
0
      break;
5599
0
    }
5600
0
  }
5601
5602
0
  assert(cpi_idx > 0);
5603
0
  assert(!ppi->parallel_cpi[cpi_idx]->common.show_existing_frame);
5604
5605
  // Release the previously-used frame-buffer.
5606
0
  if (ppi->cpi->common.cur_frame != NULL) {
5607
0
    --ppi->cpi->common.cur_frame->ref_count;
5608
0
    ppi->cpi->common.cur_frame = NULL;
5609
0
  }
5610
5611
  // Swap the appropriate parallel_cpi with the parallel_cpi[0].
5612
0
  ppi->cpi = ppi->parallel_cpi[cpi_idx];
5613
0
  ppi->parallel_cpi[cpi_idx] = ppi->parallel_cpi[0];
5614
0
  ppi->parallel_cpi[0] = ppi->cpi;
5615
5616
  // Copy appropriate parallel_frames_data to local data.
5617
0
  {
5618
0
    AV1_COMP_DATA *data = &ppi->parallel_frames_data[cpi_idx - 1];
5619
0
    assert(data->frame_size > 0);
5620
0
    if (data->frame_size > first_cpi_data->cx_data_sz) {
5621
0
      aom_internal_error(&ppi->error, AOM_CODEC_ERROR,
5622
0
                         "first_cpi_data->cx_data buffer full");
5623
0
    }
5624
5625
0
    first_cpi_data->lib_flags = data->lib_flags;
5626
0
    first_cpi_data->ts_frame_start = data->ts_frame_start;
5627
0
    first_cpi_data->ts_frame_end = data->ts_frame_end;
5628
0
    memcpy(first_cpi_data->cx_data, data->cx_data, data->frame_size);
5629
0
    first_cpi_data->frame_size = data->frame_size;
5630
0
    if (ppi->cpi->common.show_frame) {
5631
0
      first_cpi_data->pop_lookahead = 1;
5632
0
    }
5633
0
  }
5634
5635
0
  return ppi->cpi;
5636
0
}
5637
5638
// Initialises frames belonging to a parallel encode set.
5639
int av1_init_parallel_frame_context(const AV1_COMP_DATA *const first_cpi_data,
5640
                                    AV1_PRIMARY *const ppi,
5641
0
                                    int *ref_buffers_used_map) {
5642
0
  AV1_COMP *const first_cpi = ppi->cpi;
5643
0
  GF_GROUP *const gf_group = &ppi->gf_group;
5644
0
  int gf_index_start = first_cpi->gf_frame_index;
5645
0
  assert(gf_group->frame_parallel_level[gf_index_start] == 1);
5646
0
  int parallel_frame_count = 0;
5647
0
  int cur_frame_num = first_cpi->common.current_frame.frame_number;
5648
0
  int show_frame_count = first_cpi->frame_index_set.show_frame_count;
5649
0
  int frames_since_key = first_cpi->rc.frames_since_key;
5650
0
  int frames_to_key = first_cpi->rc.frames_to_key;
5651
0
  int frames_to_fwd_kf = first_cpi->rc.frames_to_fwd_kf;
5652
0
  int cur_frame_disp = cur_frame_num + gf_group->arf_src_offset[gf_index_start];
5653
0
  const FIRSTPASS_STATS *stats_in = first_cpi->twopass_frame.stats_in;
5654
5655
0
  assert(*ref_buffers_used_map == 0);
5656
5657
  // Release the previously used frame-buffer by a frame_parallel_level 1 frame.
5658
0
  if (first_cpi->common.cur_frame != NULL) {
5659
0
    --first_cpi->common.cur_frame->ref_count;
5660
0
    first_cpi->common.cur_frame = NULL;
5661
0
  }
5662
5663
0
  RefFrameMapPair ref_frame_map_pairs[REF_FRAMES];
5664
0
  RefFrameMapPair first_ref_frame_map_pairs[REF_FRAMES];
5665
0
  init_ref_map_pair(first_cpi, first_ref_frame_map_pairs);
5666
0
  memcpy(ref_frame_map_pairs, first_ref_frame_map_pairs,
5667
0
         sizeof(RefFrameMapPair) * REF_FRAMES);
5668
5669
  // Store the reference refresh index of frame_parallel_level 1 frame in a
5670
  // parallel encode set of lower layer frames.
5671
0
  if (gf_group->update_type[gf_index_start] == INTNL_ARF_UPDATE) {
5672
0
    first_cpi->ref_refresh_index = av1_calc_refresh_idx_for_intnl_arf(
5673
0
        first_cpi, ref_frame_map_pairs, gf_index_start);
5674
0
    assert(first_cpi->ref_refresh_index != INVALID_IDX &&
5675
0
           first_cpi->ref_refresh_index < REF_FRAMES);
5676
0
    first_cpi->refresh_idx_available = true;
5677
    // Update ref_frame_map_pairs.
5678
0
    ref_frame_map_pairs[first_cpi->ref_refresh_index].disp_order =
5679
0
        gf_group->display_idx[gf_index_start];
5680
0
    ref_frame_map_pairs[first_cpi->ref_refresh_index].pyr_level =
5681
0
        gf_group->layer_depth[gf_index_start];
5682
0
  }
5683
5684
  // Set do_frame_data_update flag as false for frame_parallel_level 1 frame.
5685
0
  first_cpi->do_frame_data_update = false;
5686
0
  if (gf_group->arf_src_offset[gf_index_start] == 0) {
5687
0
    first_cpi->time_stamps.prev_ts_start = ppi->ts_start_last_show_frame;
5688
0
    first_cpi->time_stamps.prev_ts_end = ppi->ts_end_last_show_frame;
5689
0
  }
5690
5691
0
  av1_get_ref_frames(first_ref_frame_map_pairs, cur_frame_disp, first_cpi,
5692
0
                     gf_index_start, 1, first_cpi->common.remapped_ref_idx);
5693
5694
0
  scale_references_fpmt(first_cpi, ref_buffers_used_map);
5695
0
  parallel_frame_count++;
5696
5697
  // Iterate through the GF_GROUP to find the remaining frame_parallel_level 2
5698
  // frames which are part of the current parallel encode set and initialize the
5699
  // required cpi elements.
5700
0
  for (int i = gf_index_start + 1; i < gf_group->size; i++) {
5701
    // Update frame counters if previous frame was show frame or show existing
5702
    // frame.
5703
0
    if (gf_group->arf_src_offset[i - 1] == 0) {
5704
0
      cur_frame_num++;
5705
0
      show_frame_count++;
5706
0
      if (frames_to_fwd_kf <= 0)
5707
0
        frames_to_fwd_kf = first_cpi->oxcf.kf_cfg.fwd_kf_dist;
5708
0
      if (frames_to_key) {
5709
0
        frames_since_key++;
5710
0
        frames_to_key--;
5711
0
        frames_to_fwd_kf--;
5712
0
      }
5713
0
      stats_in++;
5714
0
    }
5715
0
    cur_frame_disp = cur_frame_num + gf_group->arf_src_offset[i];
5716
0
    if (gf_group->frame_parallel_level[i] == 2) {
5717
0
      AV1_COMP *cur_cpi = ppi->parallel_cpi[parallel_frame_count];
5718
0
      AV1_COMP_DATA *cur_cpi_data =
5719
0
          &ppi->parallel_frames_data[parallel_frame_count - 1];
5720
0
      cur_cpi->gf_frame_index = i;
5721
0
      cur_cpi->framerate = first_cpi->framerate;
5722
0
      cur_cpi->common.current_frame.frame_number = cur_frame_num;
5723
0
      cur_cpi->common.current_frame.frame_type = gf_group->frame_type[i];
5724
0
      cur_cpi->frame_index_set.show_frame_count = show_frame_count;
5725
0
      cur_cpi->rc.frames_since_key = frames_since_key;
5726
0
      cur_cpi->rc.frames_to_key = frames_to_key;
5727
0
      cur_cpi->rc.frames_to_fwd_kf = frames_to_fwd_kf;
5728
0
      cur_cpi->rc.active_worst_quality = first_cpi->rc.active_worst_quality;
5729
0
      cur_cpi->rc.avg_frame_bandwidth = first_cpi->rc.avg_frame_bandwidth;
5730
0
      cur_cpi->rc.max_frame_bandwidth = first_cpi->rc.max_frame_bandwidth;
5731
0
      cur_cpi->rc.min_frame_bandwidth = first_cpi->rc.min_frame_bandwidth;
5732
0
      cur_cpi->rc.intervals_till_gf_calculate_due =
5733
0
          first_cpi->rc.intervals_till_gf_calculate_due;
5734
0
      cur_cpi->mv_search_params.max_mv_magnitude =
5735
0
          first_cpi->mv_search_params.max_mv_magnitude;
5736
0
      if (gf_group->update_type[cur_cpi->gf_frame_index] == INTNL_ARF_UPDATE) {
5737
0
        cur_cpi->common.lf.mode_ref_delta_enabled = 1;
5738
0
      }
5739
0
      cur_cpi->do_frame_data_update = false;
5740
      // Initialize prev_ts_start and prev_ts_end for show frame(s) and show
5741
      // existing frame(s).
5742
0
      if (gf_group->arf_src_offset[i] == 0) {
5743
        // Choose source of prev frame.
5744
0
        int src_index = gf_group->src_offset[i];
5745
0
        struct lookahead_entry *prev_source = av1_lookahead_peek(
5746
0
            ppi->lookahead, src_index - 1, cur_cpi->compressor_stage);
5747
        // Save timestamps of prev frame.
5748
0
        cur_cpi->time_stamps.prev_ts_start = prev_source->ts_start;
5749
0
        cur_cpi->time_stamps.prev_ts_end = prev_source->ts_end;
5750
0
      }
5751
0
      cur_cpi->time_stamps.first_ts_start =
5752
0
          first_cpi->time_stamps.first_ts_start;
5753
5754
0
      memcpy(cur_cpi->common.ref_frame_map, first_cpi->common.ref_frame_map,
5755
0
             sizeof(first_cpi->common.ref_frame_map));
5756
0
      cur_cpi_data->lib_flags = 0;
5757
0
      cur_cpi_data->timestamp_ratio = first_cpi_data->timestamp_ratio;
5758
0
      cur_cpi_data->flush = first_cpi_data->flush;
5759
0
      cur_cpi_data->frame_size = 0;
5760
0
      if (gf_group->update_type[gf_index_start] == INTNL_ARF_UPDATE) {
5761
        // If the first frame in a parallel encode set is INTNL_ARF_UPDATE
5762
        // frame, initialize lib_flags of frame_parallel_level 2 frame in the
5763
        // set with that of frame_parallel_level 1 frame.
5764
0
        cur_cpi_data->lib_flags = first_cpi_data->lib_flags;
5765
        // Store the reference refresh index of frame_parallel_level 2 frame in
5766
        // a parallel encode set of lower layer frames.
5767
0
        cur_cpi->ref_refresh_index =
5768
0
            av1_calc_refresh_idx_for_intnl_arf(cur_cpi, ref_frame_map_pairs, i);
5769
0
        cur_cpi->refresh_idx_available = true;
5770
        // Skip the reference frame which will be refreshed by
5771
        // frame_parallel_level 1 frame in a parallel encode set of lower layer
5772
        // frames.
5773
0
        cur_cpi->ref_idx_to_skip = first_cpi->ref_refresh_index;
5774
0
      } else {
5775
0
        cur_cpi->ref_idx_to_skip = INVALID_IDX;
5776
0
        cur_cpi->ref_refresh_index = INVALID_IDX;
5777
0
        cur_cpi->refresh_idx_available = false;
5778
0
      }
5779
0
      cur_cpi->twopass_frame.stats_in = stats_in;
5780
5781
0
      av1_get_ref_frames(first_ref_frame_map_pairs, cur_frame_disp, cur_cpi, i,
5782
0
                         1, cur_cpi->common.remapped_ref_idx);
5783
0
      scale_references_fpmt(cur_cpi, ref_buffers_used_map);
5784
0
      parallel_frame_count++;
5785
0
    }
5786
5787
    // Set do_frame_data_update to true for the last frame_parallel_level 2
5788
    // frame in the current parallel encode set.
5789
0
    if (i == (gf_group->size - 1) ||
5790
0
        (gf_group->frame_parallel_level[i + 1] == 0 &&
5791
0
         (gf_group->update_type[i + 1] == ARF_UPDATE ||
5792
0
          gf_group->update_type[i + 1] == INTNL_ARF_UPDATE)) ||
5793
0
        gf_group->frame_parallel_level[i + 1] == 1) {
5794
0
      ppi->parallel_cpi[parallel_frame_count - 1]->do_frame_data_update = true;
5795
0
      break;
5796
0
    }
5797
0
  }
5798
5799
0
  increment_scaled_ref_counts_fpmt(first_cpi->common.buffer_pool,
5800
0
                                   *ref_buffers_used_map);
5801
5802
  // Return the number of frames in the parallel encode set.
5803
0
  return parallel_frame_count;
5804
0
}
5805
5806
0
int av1_get_preview_raw_frame(AV1_COMP *cpi, YV12_BUFFER_CONFIG *dest) {
5807
0
  AV1_COMMON *cm = &cpi->common;
5808
0
  if (!cm->show_frame) {
5809
0
    return -1;
5810
0
  } else {
5811
0
    int ret;
5812
0
    if (cm->cur_frame != NULL && !cpi->oxcf.algo_cfg.skip_postproc_filtering) {
5813
0
      *dest = cm->cur_frame->buf;
5814
0
      dest->y_width = cm->width;
5815
0
      dest->y_height = cm->height;
5816
0
      dest->uv_width = cm->width >> cm->seq_params->subsampling_x;
5817
0
      dest->uv_height = cm->height >> cm->seq_params->subsampling_y;
5818
0
      ret = 0;
5819
0
    } else {
5820
0
      ret = -1;
5821
0
    }
5822
0
    return ret;
5823
0
  }
5824
0
}
5825
5826
0
int av1_get_last_show_frame(AV1_COMP *cpi, YV12_BUFFER_CONFIG *frame) {
5827
0
  if (cpi->last_show_frame_buf == NULL ||
5828
0
      cpi->oxcf.algo_cfg.skip_postproc_filtering)
5829
0
    return -1;
5830
5831
0
  *frame = cpi->last_show_frame_buf->buf;
5832
0
  return 0;
5833
0
}
5834
5835
aom_codec_err_t av1_copy_new_frame_enc(AV1_COMMON *cm,
5836
                                       YV12_BUFFER_CONFIG *new_frame,
5837
0
                                       YV12_BUFFER_CONFIG *sd) {
5838
0
  const int num_planes = av1_num_planes(cm);
5839
0
  if (!equal_dimensions_and_border(new_frame, sd))
5840
0
    aom_internal_error(cm->error, AOM_CODEC_ERROR,
5841
0
                       "Incorrect buffer dimensions");
5842
0
  else
5843
0
    aom_yv12_copy_frame(new_frame, sd, num_planes);
5844
5845
0
  return cm->error->error_code;
5846
0
}
5847
5848
int av1_set_internal_size(AV1EncoderConfig *const oxcf,
5849
                          ResizePendingParams *resize_pending_params,
5850
                          AOM_SCALING_MODE horiz_mode,
5851
0
                          AOM_SCALING_MODE vert_mode) {
5852
0
  int hr = 0, hs = 0, vr = 0, vs = 0;
5853
5854
  // Checks for invalid AOM_SCALING_MODE values.
5855
0
  if (horiz_mode > AOME_ONETHREE || vert_mode > AOME_ONETHREE) return -1;
5856
5857
0
  Scale2Ratio(horiz_mode, &hr, &hs);
5858
0
  Scale2Ratio(vert_mode, &vr, &vs);
5859
5860
  // always go to the next whole number
5861
0
  resize_pending_params->width = (hs - 1 + oxcf->frm_dim_cfg.width * hr) / hs;
5862
0
  resize_pending_params->height = (vs - 1 + oxcf->frm_dim_cfg.height * vr) / vs;
5863
5864
0
  if (horiz_mode != AOME_NORMAL || vert_mode != AOME_NORMAL) {
5865
0
    oxcf->resize_cfg.resize_mode = RESIZE_FIXED;
5866
0
    oxcf->algo_cfg.enable_tpl_model = 0;
5867
0
  }
5868
0
  return 0;
5869
0
}
5870
5871
0
int av1_get_quantizer(AV1_COMP *cpi) {
5872
0
  return cpi->common.quant_params.base_qindex;
5873
0
}
5874
5875
int av1_convert_sect5obus_to_annexb(uint8_t *buffer, size_t buffer_size,
5876
0
                                    size_t *frame_size) {
5877
0
  assert(*frame_size <= buffer_size);
5878
0
  size_t output_size = 0;
5879
0
  size_t remaining_size = *frame_size;
5880
0
  uint8_t *buff_ptr = buffer;
5881
5882
  // go through each OBUs
5883
0
  while (remaining_size > 0) {
5884
0
    uint8_t saved_obu_header[2];
5885
0
    uint64_t obu_payload_size;
5886
0
    size_t length_of_payload_size;
5887
0
    size_t length_of_obu_size;
5888
0
    const uint32_t obu_header_size = (buff_ptr[0] >> 2) & 0x1 ? 2 : 1;
5889
0
    size_t obu_bytes_read = obu_header_size;  // bytes read for current obu
5890
5891
    // save the obu header (1 or 2 bytes)
5892
0
    memcpy(saved_obu_header, buff_ptr, obu_header_size);
5893
    // clear the obu_has_size_field
5894
0
    saved_obu_header[0] &= ~0x2;
5895
5896
    // get the payload_size and length of payload_size
5897
0
    if (aom_uleb_decode(buff_ptr + obu_header_size,
5898
0
                        remaining_size - obu_header_size, &obu_payload_size,
5899
0
                        &length_of_payload_size) != 0) {
5900
0
      return AOM_CODEC_ERROR;
5901
0
    }
5902
0
    obu_bytes_read += length_of_payload_size;
5903
5904
    // calculate the length of size of the obu header plus payload
5905
0
    const uint64_t obu_size = obu_header_size + obu_payload_size;
5906
0
    length_of_obu_size = aom_uleb_size_in_bytes(obu_size);
5907
5908
0
    if (length_of_obu_size + obu_header_size >
5909
0
        buffer_size - output_size - (remaining_size - obu_bytes_read)) {
5910
0
      return AOM_CODEC_ERROR;
5911
0
    }
5912
    // move the rest of data to new location
5913
0
    memmove(buff_ptr + length_of_obu_size + obu_header_size,
5914
0
            buff_ptr + obu_bytes_read, remaining_size - obu_bytes_read);
5915
0
    obu_bytes_read += (size_t)obu_payload_size;
5916
5917
    // write the new obu size
5918
0
    size_t coded_obu_size;
5919
0
    if (aom_uleb_encode(obu_size, length_of_obu_size, buff_ptr,
5920
0
                        &coded_obu_size) != 0 ||
5921
0
        coded_obu_size != length_of_obu_size) {
5922
0
      return AOM_CODEC_ERROR;
5923
0
    }
5924
5925
    // write the saved (modified) obu_header following obu size
5926
0
    memcpy(buff_ptr + length_of_obu_size, saved_obu_header, obu_header_size);
5927
5928
0
    remaining_size -= obu_bytes_read;
5929
0
    buff_ptr += length_of_obu_size + (size_t)obu_size;
5930
0
    output_size += length_of_obu_size + (size_t)obu_size;
5931
0
  }
5932
5933
0
  *frame_size = output_size;
5934
0
  return AOM_CODEC_OK;
5935
0
}
5936
5937
static void rtc_set_updates_ref_frame_config(
5938
    ExtRefreshFrameFlagsInfo *const ext_refresh_frame_flags,
5939
0
    RTC_REF *const rtc_ref) {
5940
0
  ext_refresh_frame_flags->update_pending = 1;
5941
0
  ext_refresh_frame_flags->last_frame = rtc_ref->refresh[rtc_ref->ref_idx[0]];
5942
0
  ext_refresh_frame_flags->golden_frame = rtc_ref->refresh[rtc_ref->ref_idx[3]];
5943
0
  ext_refresh_frame_flags->bwd_ref_frame =
5944
0
      rtc_ref->refresh[rtc_ref->ref_idx[4]];
5945
0
  ext_refresh_frame_flags->alt2_ref_frame =
5946
0
      rtc_ref->refresh[rtc_ref->ref_idx[5]];
5947
0
  ext_refresh_frame_flags->alt_ref_frame =
5948
0
      rtc_ref->refresh[rtc_ref->ref_idx[6]];
5949
0
  rtc_ref->non_reference_frame = 1;
5950
0
  for (int i = 0; i < REF_FRAMES; i++) {
5951
0
    if (rtc_ref->refresh[i] == 1) {
5952
0
      rtc_ref->non_reference_frame = 0;
5953
0
      break;
5954
0
    }
5955
0
  }
5956
0
}
5957
5958
0
static int rtc_set_references_external_ref_frame_config(AV1_COMP *cpi) {
5959
  // LAST_FRAME (0), LAST2_FRAME(1), LAST3_FRAME(2), GOLDEN_FRAME(3),
5960
  // BWDREF_FRAME(4), ALTREF2_FRAME(5), ALTREF_FRAME(6).
5961
0
  int ref = AOM_REFFRAME_ALL;
5962
0
  for (int i = 0; i < INTER_REFS_PER_FRAME; i++) {
5963
0
    if (!cpi->ppi->rtc_ref.reference[i]) ref ^= (1 << i);
5964
0
  }
5965
0
  return ref;
5966
0
}
5967
5968
0
void av1_apply_encoding_flags(AV1_COMP *cpi, aom_enc_frame_flags_t flags) {
5969
  // TODO(yunqingwang): For what references to use, external encoding flags
5970
  // should be consistent with internal reference frame selection. Need to
5971
  // ensure that there is not conflict between the two. In AV1 encoder, the
5972
  // priority rank for 7 reference frames are: LAST, ALTREF, LAST2, LAST3,
5973
  // GOLDEN, BWDREF, ALTREF2.
5974
5975
0
  ExternalFlags *const ext_flags = &cpi->ext_flags;
5976
0
  ExtRefreshFrameFlagsInfo *const ext_refresh_frame_flags =
5977
0
      &ext_flags->refresh_frame;
5978
0
  ext_flags->ref_frame_flags = AOM_REFFRAME_ALL;
5979
0
  if (flags &
5980
0
      (AOM_EFLAG_NO_REF_LAST | AOM_EFLAG_NO_REF_LAST2 | AOM_EFLAG_NO_REF_LAST3 |
5981
0
       AOM_EFLAG_NO_REF_GF | AOM_EFLAG_NO_REF_ARF | AOM_EFLAG_NO_REF_BWD |
5982
0
       AOM_EFLAG_NO_REF_ARF2)) {
5983
0
    int ref = AOM_REFFRAME_ALL;
5984
5985
0
    if (flags & AOM_EFLAG_NO_REF_LAST) ref ^= AOM_LAST_FLAG;
5986
0
    if (flags & AOM_EFLAG_NO_REF_LAST2) ref ^= AOM_LAST2_FLAG;
5987
0
    if (flags & AOM_EFLAG_NO_REF_LAST3) ref ^= AOM_LAST3_FLAG;
5988
5989
0
    if (flags & AOM_EFLAG_NO_REF_GF) ref ^= AOM_GOLD_FLAG;
5990
5991
0
    if (flags & AOM_EFLAG_NO_REF_ARF) {
5992
0
      ref ^= AOM_ALT_FLAG;
5993
0
      ref ^= AOM_BWD_FLAG;
5994
0
      ref ^= AOM_ALT2_FLAG;
5995
0
    } else {
5996
0
      if (flags & AOM_EFLAG_NO_REF_BWD) ref ^= AOM_BWD_FLAG;
5997
0
      if (flags & AOM_EFLAG_NO_REF_ARF2) ref ^= AOM_ALT2_FLAG;
5998
0
    }
5999
6000
0
    av1_use_as_reference(&ext_flags->ref_frame_flags, ref);
6001
0
  } else {
6002
0
    if (cpi->ppi->rtc_ref.set_ref_frame_config) {
6003
0
      int ref = rtc_set_references_external_ref_frame_config(cpi);
6004
0
      av1_use_as_reference(&ext_flags->ref_frame_flags, ref);
6005
0
    }
6006
0
  }
6007
6008
0
  if (flags &
6009
0
      (AOM_EFLAG_NO_UPD_LAST | AOM_EFLAG_NO_UPD_GF | AOM_EFLAG_NO_UPD_ARF)) {
6010
0
    int upd = AOM_REFFRAME_ALL;
6011
6012
    // Refreshing LAST/LAST2/LAST3 is handled by 1 common flag.
6013
0
    if (flags & AOM_EFLAG_NO_UPD_LAST) upd ^= AOM_LAST_FLAG;
6014
6015
0
    if (flags & AOM_EFLAG_NO_UPD_GF) upd ^= AOM_GOLD_FLAG;
6016
6017
0
    if (flags & AOM_EFLAG_NO_UPD_ARF) {
6018
0
      upd ^= AOM_ALT_FLAG;
6019
0
      upd ^= AOM_BWD_FLAG;
6020
0
      upd ^= AOM_ALT2_FLAG;
6021
0
    }
6022
6023
0
    ext_refresh_frame_flags->last_frame = (upd & AOM_LAST_FLAG) != 0;
6024
0
    ext_refresh_frame_flags->golden_frame = (upd & AOM_GOLD_FLAG) != 0;
6025
0
    ext_refresh_frame_flags->alt_ref_frame = (upd & AOM_ALT_FLAG) != 0;
6026
0
    ext_refresh_frame_flags->bwd_ref_frame = (upd & AOM_BWD_FLAG) != 0;
6027
0
    ext_refresh_frame_flags->alt2_ref_frame = (upd & AOM_ALT2_FLAG) != 0;
6028
0
    ext_refresh_frame_flags->update_pending = 1;
6029
0
  } else {
6030
0
    if (cpi->ppi->rtc_ref.set_ref_frame_config)
6031
0
      rtc_set_updates_ref_frame_config(ext_refresh_frame_flags,
6032
0
                                       &cpi->ppi->rtc_ref);
6033
0
    else
6034
0
      ext_refresh_frame_flags->update_pending = 0;
6035
0
  }
6036
6037
0
  ext_flags->use_ref_frame_mvs = cpi->oxcf.tool_cfg.enable_ref_frame_mvs &
6038
0
                                 ((flags & AOM_EFLAG_NO_REF_FRAME_MVS) == 0);
6039
0
  ext_flags->use_error_resilient = cpi->oxcf.tool_cfg.error_resilient_mode |
6040
0
                                   ((flags & AOM_EFLAG_ERROR_RESILIENT) != 0);
6041
0
  ext_flags->use_s_frame =
6042
0
      cpi->oxcf.kf_cfg.enable_sframe | ((flags & AOM_EFLAG_SET_S_FRAME) != 0);
6043
0
  ext_flags->use_primary_ref_none =
6044
0
      (flags & AOM_EFLAG_SET_PRIMARY_REF_NONE) != 0;
6045
6046
0
  if (flags & AOM_EFLAG_NO_UPD_ENTROPY) {
6047
0
    update_entropy(&ext_flags->refresh_frame_context,
6048
0
                   &ext_flags->refresh_frame_context_pending, 0);
6049
0
  }
6050
0
}
6051
6052
0
aom_fixed_buf_t *av1_get_global_headers(AV1_PRIMARY *ppi) {
6053
0
  if (!ppi) return NULL;
6054
6055
0
  uint8_t header_buf[512] = { 0 };
6056
0
  const uint32_t sequence_header_size = av1_write_sequence_header_obu(
6057
0
      &ppi->seq_params, &header_buf[0], sizeof(header_buf));
6058
0
  assert(sequence_header_size <= sizeof(header_buf));
6059
0
  if (sequence_header_size == 0) return NULL;
6060
6061
0
  const size_t obu_header_size = 1;
6062
0
  const size_t size_field_size = aom_uleb_size_in_bytes(sequence_header_size);
6063
0
  const size_t payload_offset = obu_header_size + size_field_size;
6064
6065
0
  if (payload_offset + sequence_header_size > sizeof(header_buf)) return NULL;
6066
0
  memmove(&header_buf[payload_offset], &header_buf[0], sequence_header_size);
6067
6068
0
  if (av1_write_obu_header(&ppi->level_params, &ppi->cpi->frame_header_count,
6069
0
                           OBU_SEQUENCE_HEADER,
6070
0
                           ppi->seq_params.has_nonzero_operating_point_idc,
6071
0
                           /*is_layer_specific_obu=*/false, 0,
6072
0
                           &header_buf[0]) != obu_header_size) {
6073
0
    return NULL;
6074
0
  }
6075
6076
0
  size_t coded_size_field_size = 0;
6077
0
  if (aom_uleb_encode(sequence_header_size, size_field_size,
6078
0
                      &header_buf[obu_header_size],
6079
0
                      &coded_size_field_size) != 0) {
6080
0
    return NULL;
6081
0
  }
6082
0
  assert(coded_size_field_size == size_field_size);
6083
6084
0
  aom_fixed_buf_t *global_headers =
6085
0
      (aom_fixed_buf_t *)malloc(sizeof(*global_headers));
6086
0
  if (!global_headers) return NULL;
6087
6088
0
  const size_t global_header_buf_size =
6089
0
      obu_header_size + size_field_size + sequence_header_size;
6090
6091
0
  global_headers->buf = malloc(global_header_buf_size);
6092
0
  if (!global_headers->buf) {
6093
0
    free(global_headers);
6094
0
    return NULL;
6095
0
  }
6096
6097
0
  memcpy(global_headers->buf, &header_buf[0], global_header_buf_size);
6098
0
  global_headers->sz = global_header_buf_size;
6099
0
  return global_headers;
6100
0
}