Coverage Report

Created: 2026-09-14 07:15

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aom/av1/encoder/rdopt.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 <math.h>
14
#include <stdbool.h>
15
#include <stdint.h>
16
#include <string.h>
17
18
#include "config/aom_config.h"
19
#include "config/aom_dsp_rtcd.h"
20
#include "config/av1_rtcd.h"
21
22
#include "aom_dsp/aom_dsp_common.h"
23
#include "aom_dsp/blend.h"
24
#include "aom_mem/aom_mem.h"
25
#include "aom_ports/aom_timer.h"
26
#include "aom_ports/mem.h"
27
28
#include "av1/common/av1_common_int.h"
29
#include "av1/common/cfl.h"
30
#include "av1/common/blockd.h"
31
#include "av1/common/common.h"
32
#include "av1/common/common_data.h"
33
#include "av1/common/entropy.h"
34
#include "av1/common/entropymode.h"
35
#include "av1/common/enums.h"
36
#include "av1/common/idct.h"
37
#include "av1/common/mvref_common.h"
38
#include "av1/common/obmc.h"
39
#include "av1/common/pred_common.h"
40
#include "av1/common/quant_common.h"
41
#include "av1/common/reconinter.h"
42
#include "av1/common/reconintra.h"
43
#include "av1/common/scan.h"
44
#include "av1/common/seg_common.h"
45
#include "av1/common/txb_common.h"
46
#include "av1/common/warped_motion.h"
47
48
#include "av1/encoder/aq_variance.h"
49
#include "av1/encoder/av1_quantize.h"
50
#include "av1/encoder/block.h"
51
#include "av1/encoder/cost.h"
52
#include "av1/encoder/compound_type.h"
53
#include "av1/encoder/encodemb.h"
54
#include "av1/encoder/encodemv.h"
55
#include "av1/encoder/encoder.h"
56
#include "av1/encoder/encodetxb.h"
57
#include "av1/encoder/hybrid_fwd_txfm.h"
58
#include "av1/encoder/interp_search.h"
59
#include "av1/encoder/intra_mode_search.h"
60
#include "av1/encoder/intra_mode_search_utils.h"
61
#include "av1/encoder/mcomp.h"
62
#include "av1/encoder/ml.h"
63
#include "av1/encoder/mode_prune_model_weights.h"
64
#include "av1/encoder/model_rd.h"
65
#include "av1/encoder/motion_search_facade.h"
66
#include "av1/encoder/palette.h"
67
#include "av1/encoder/pustats.h"
68
#include "av1/encoder/random.h"
69
#include "av1/encoder/ratectrl.h"
70
#include "av1/encoder/rd.h"
71
#include "av1/encoder/rdopt.h"
72
#include "av1/encoder/reconinter_enc.h"
73
#include "av1/encoder/tokenize.h"
74
#include "av1/encoder/tpl_model.h"
75
#include "av1/encoder/tx_search.h"
76
#include "av1/encoder/var_based_part.h"
77
78
0
#define LAST_NEW_MV_INDEX 6
79
80
// Mode_threshold multiplication factor table for prune_inter_modes_if_skippable
81
// The values are kept in Q12 format and equation used to derive is
82
// (2.5 - ((float)x->qindex / MAXQ) * 1.5)
83
0
#define MODE_THRESH_QBITS 12
84
static const int mode_threshold_mul_factor[QINDEX_RANGE] = {
85
  10240, 10216, 10192, 10168, 10144, 10120, 10095, 10071, 10047, 10023, 9999,
86
  9975,  9951,  9927,  9903,  9879,  9854,  9830,  9806,  9782,  9758,  9734,
87
  9710,  9686,  9662,  9638,  9614,  9589,  9565,  9541,  9517,  9493,  9469,
88
  9445,  9421,  9397,  9373,  9349,  9324,  9300,  9276,  9252,  9228,  9204,
89
  9180,  9156,  9132,  9108,  9083,  9059,  9035,  9011,  8987,  8963,  8939,
90
  8915,  8891,  8867,  8843,  8818,  8794,  8770,  8746,  8722,  8698,  8674,
91
  8650,  8626,  8602,  8578,  8553,  8529,  8505,  8481,  8457,  8433,  8409,
92
  8385,  8361,  8337,  8312,  8288,  8264,  8240,  8216,  8192,  8168,  8144,
93
  8120,  8096,  8072,  8047,  8023,  7999,  7975,  7951,  7927,  7903,  7879,
94
  7855,  7831,  7806,  7782,  7758,  7734,  7710,  7686,  7662,  7638,  7614,
95
  7590,  7566,  7541,  7517,  7493,  7469,  7445,  7421,  7397,  7373,  7349,
96
  7325,  7301,  7276,  7252,  7228,  7204,  7180,  7156,  7132,  7108,  7084,
97
  7060,  7035,  7011,  6987,  6963,  6939,  6915,  6891,  6867,  6843,  6819,
98
  6795,  6770,  6746,  6722,  6698,  6674,  6650,  6626,  6602,  6578,  6554,
99
  6530,  6505,  6481,  6457,  6433,  6409,  6385,  6361,  6337,  6313,  6289,
100
  6264,  6240,  6216,  6192,  6168,  6144,  6120,  6096,  6072,  6048,  6024,
101
  5999,  5975,  5951,  5927,  5903,  5879,  5855,  5831,  5807,  5783,  5758,
102
  5734,  5710,  5686,  5662,  5638,  5614,  5590,  5566,  5542,  5518,  5493,
103
  5469,  5445,  5421,  5397,  5373,  5349,  5325,  5301,  5277,  5253,  5228,
104
  5204,  5180,  5156,  5132,  5108,  5084,  5060,  5036,  5012,  4987,  4963,
105
  4939,  4915,  4891,  4867,  4843,  4819,  4795,  4771,  4747,  4722,  4698,
106
  4674,  4650,  4626,  4602,  4578,  4554,  4530,  4506,  4482,  4457,  4433,
107
  4409,  4385,  4361,  4337,  4313,  4289,  4265,  4241,  4216,  4192,  4168,
108
  4144,  4120,  4096
109
};
110
111
static const THR_MODES av1_default_mode_order[MAX_MODES] = {
112
  THR_NEARESTMV,
113
  THR_NEARESTL2,
114
  THR_NEARESTL3,
115
  THR_NEARESTB,
116
  THR_NEARESTA2,
117
  THR_NEARESTA,
118
  THR_NEARESTG,
119
120
  THR_NEWMV,
121
  THR_NEWL2,
122
  THR_NEWL3,
123
  THR_NEWB,
124
  THR_NEWA2,
125
  THR_NEWA,
126
  THR_NEWG,
127
128
  THR_NEARMV,
129
  THR_NEARL2,
130
  THR_NEARL3,
131
  THR_NEARB,
132
  THR_NEARA2,
133
  THR_NEARA,
134
  THR_NEARG,
135
136
  THR_GLOBALMV,
137
  THR_GLOBALL2,
138
  THR_GLOBALL3,
139
  THR_GLOBALB,
140
  THR_GLOBALA2,
141
  THR_GLOBALA,
142
  THR_GLOBALG,
143
144
  THR_COMP_NEAREST_NEARESTLA,
145
  THR_COMP_NEAREST_NEARESTL2A,
146
  THR_COMP_NEAREST_NEARESTL3A,
147
  THR_COMP_NEAREST_NEARESTGA,
148
  THR_COMP_NEAREST_NEARESTLB,
149
  THR_COMP_NEAREST_NEARESTL2B,
150
  THR_COMP_NEAREST_NEARESTL3B,
151
  THR_COMP_NEAREST_NEARESTGB,
152
  THR_COMP_NEAREST_NEARESTLA2,
153
  THR_COMP_NEAREST_NEARESTL2A2,
154
  THR_COMP_NEAREST_NEARESTL3A2,
155
  THR_COMP_NEAREST_NEARESTGA2,
156
  THR_COMP_NEAREST_NEARESTLL2,
157
  THR_COMP_NEAREST_NEARESTLL3,
158
  THR_COMP_NEAREST_NEARESTLG,
159
  THR_COMP_NEAREST_NEARESTBA,
160
161
  THR_COMP_NEAR_NEARLB,
162
  THR_COMP_NEW_NEWLB,
163
  THR_COMP_NEW_NEARESTLB,
164
  THR_COMP_NEAREST_NEWLB,
165
  THR_COMP_NEW_NEARLB,
166
  THR_COMP_NEAR_NEWLB,
167
  THR_COMP_GLOBAL_GLOBALLB,
168
169
  THR_COMP_NEAR_NEARLA,
170
  THR_COMP_NEW_NEWLA,
171
  THR_COMP_NEW_NEARESTLA,
172
  THR_COMP_NEAREST_NEWLA,
173
  THR_COMP_NEW_NEARLA,
174
  THR_COMP_NEAR_NEWLA,
175
  THR_COMP_GLOBAL_GLOBALLA,
176
177
  THR_COMP_NEAR_NEARL2A,
178
  THR_COMP_NEW_NEWL2A,
179
  THR_COMP_NEW_NEARESTL2A,
180
  THR_COMP_NEAREST_NEWL2A,
181
  THR_COMP_NEW_NEARL2A,
182
  THR_COMP_NEAR_NEWL2A,
183
  THR_COMP_GLOBAL_GLOBALL2A,
184
185
  THR_COMP_NEAR_NEARL3A,
186
  THR_COMP_NEW_NEWL3A,
187
  THR_COMP_NEW_NEARESTL3A,
188
  THR_COMP_NEAREST_NEWL3A,
189
  THR_COMP_NEW_NEARL3A,
190
  THR_COMP_NEAR_NEWL3A,
191
  THR_COMP_GLOBAL_GLOBALL3A,
192
193
  THR_COMP_NEAR_NEARGA,
194
  THR_COMP_NEW_NEWGA,
195
  THR_COMP_NEW_NEARESTGA,
196
  THR_COMP_NEAREST_NEWGA,
197
  THR_COMP_NEW_NEARGA,
198
  THR_COMP_NEAR_NEWGA,
199
  THR_COMP_GLOBAL_GLOBALGA,
200
201
  THR_COMP_NEAR_NEARL2B,
202
  THR_COMP_NEW_NEWL2B,
203
  THR_COMP_NEW_NEARESTL2B,
204
  THR_COMP_NEAREST_NEWL2B,
205
  THR_COMP_NEW_NEARL2B,
206
  THR_COMP_NEAR_NEWL2B,
207
  THR_COMP_GLOBAL_GLOBALL2B,
208
209
  THR_COMP_NEAR_NEARL3B,
210
  THR_COMP_NEW_NEWL3B,
211
  THR_COMP_NEW_NEARESTL3B,
212
  THR_COMP_NEAREST_NEWL3B,
213
  THR_COMP_NEW_NEARL3B,
214
  THR_COMP_NEAR_NEWL3B,
215
  THR_COMP_GLOBAL_GLOBALL3B,
216
217
  THR_COMP_NEAR_NEARGB,
218
  THR_COMP_NEW_NEWGB,
219
  THR_COMP_NEW_NEARESTGB,
220
  THR_COMP_NEAREST_NEWGB,
221
  THR_COMP_NEW_NEARGB,
222
  THR_COMP_NEAR_NEWGB,
223
  THR_COMP_GLOBAL_GLOBALGB,
224
225
  THR_COMP_NEAR_NEARLA2,
226
  THR_COMP_NEW_NEWLA2,
227
  THR_COMP_NEW_NEARESTLA2,
228
  THR_COMP_NEAREST_NEWLA2,
229
  THR_COMP_NEW_NEARLA2,
230
  THR_COMP_NEAR_NEWLA2,
231
  THR_COMP_GLOBAL_GLOBALLA2,
232
233
  THR_COMP_NEAR_NEARL2A2,
234
  THR_COMP_NEW_NEWL2A2,
235
  THR_COMP_NEW_NEARESTL2A2,
236
  THR_COMP_NEAREST_NEWL2A2,
237
  THR_COMP_NEW_NEARL2A2,
238
  THR_COMP_NEAR_NEWL2A2,
239
  THR_COMP_GLOBAL_GLOBALL2A2,
240
241
  THR_COMP_NEAR_NEARL3A2,
242
  THR_COMP_NEW_NEWL3A2,
243
  THR_COMP_NEW_NEARESTL3A2,
244
  THR_COMP_NEAREST_NEWL3A2,
245
  THR_COMP_NEW_NEARL3A2,
246
  THR_COMP_NEAR_NEWL3A2,
247
  THR_COMP_GLOBAL_GLOBALL3A2,
248
249
  THR_COMP_NEAR_NEARGA2,
250
  THR_COMP_NEW_NEWGA2,
251
  THR_COMP_NEW_NEARESTGA2,
252
  THR_COMP_NEAREST_NEWGA2,
253
  THR_COMP_NEW_NEARGA2,
254
  THR_COMP_NEAR_NEWGA2,
255
  THR_COMP_GLOBAL_GLOBALGA2,
256
257
  THR_COMP_NEAR_NEARLL2,
258
  THR_COMP_NEW_NEWLL2,
259
  THR_COMP_NEW_NEARESTLL2,
260
  THR_COMP_NEAREST_NEWLL2,
261
  THR_COMP_NEW_NEARLL2,
262
  THR_COMP_NEAR_NEWLL2,
263
  THR_COMP_GLOBAL_GLOBALLL2,
264
265
  THR_COMP_NEAR_NEARLL3,
266
  THR_COMP_NEW_NEWLL3,
267
  THR_COMP_NEW_NEARESTLL3,
268
  THR_COMP_NEAREST_NEWLL3,
269
  THR_COMP_NEW_NEARLL3,
270
  THR_COMP_NEAR_NEWLL3,
271
  THR_COMP_GLOBAL_GLOBALLL3,
272
273
  THR_COMP_NEAR_NEARLG,
274
  THR_COMP_NEW_NEWLG,
275
  THR_COMP_NEW_NEARESTLG,
276
  THR_COMP_NEAREST_NEWLG,
277
  THR_COMP_NEW_NEARLG,
278
  THR_COMP_NEAR_NEWLG,
279
  THR_COMP_GLOBAL_GLOBALLG,
280
281
  THR_COMP_NEAR_NEARBA,
282
  THR_COMP_NEW_NEWBA,
283
  THR_COMP_NEW_NEARESTBA,
284
  THR_COMP_NEAREST_NEWBA,
285
  THR_COMP_NEW_NEARBA,
286
  THR_COMP_NEAR_NEWBA,
287
  THR_COMP_GLOBAL_GLOBALBA,
288
289
  THR_DC,
290
  THR_PAETH,
291
  THR_SMOOTH,
292
  THR_SMOOTH_V,
293
  THR_SMOOTH_H,
294
  THR_H_PRED,
295
  THR_V_PRED,
296
  THR_D135_PRED,
297
  THR_D203_PRED,
298
  THR_D157_PRED,
299
  THR_D67_PRED,
300
  THR_D113_PRED,
301
  THR_D45_PRED,
302
};
303
304
/*!\cond */
305
typedef struct SingleInterModeState {
306
  int64_t rd;
307
  MV_REFERENCE_FRAME ref_frame;
308
  int valid;
309
} SingleInterModeState;
310
311
typedef struct InterModeSearchState {
312
  int64_t best_rd;
313
  int64_t best_skip_rd[2];
314
  MB_MODE_INFO best_mbmode;
315
  int best_rate_y;
316
  int best_rate_uv;
317
  int best_mode_skippable;
318
  int best_skip2;
319
  THR_MODES best_mode_index;
320
  int num_available_refs;
321
  int64_t dist_refs[REF_FRAMES];
322
  int dist_order_refs[REF_FRAMES];
323
  int64_t mode_threshold[MAX_MODES];
324
  int64_t best_intra_rd;
325
  unsigned int best_pred_sse;
326
327
  /*!
328
   * \brief Keep track of best intra rd for use in compound mode.
329
   */
330
  int64_t best_pred_rd[REFERENCE_MODES];
331
  // Save a set of single_newmv for each checked ref_mv.
332
  int_mv single_newmv[MAX_REF_MV_SEARCH][REF_FRAMES];
333
  int single_newmv_rate[MAX_REF_MV_SEARCH][REF_FRAMES];
334
  int single_newmv_valid[MAX_REF_MV_SEARCH][REF_FRAMES];
335
  int64_t modelled_rd[MB_MODE_COUNT][MAX_REF_MV_SEARCH][REF_FRAMES];
336
  // The rd of simple translation in single inter modes
337
  int64_t simple_rd[MB_MODE_COUNT][MAX_REF_MV_SEARCH][REF_FRAMES];
338
  int64_t best_single_rd[REF_FRAMES];
339
  PREDICTION_MODE best_single_mode[REF_FRAMES];
340
341
  // Single search results by [directions][modes][reference frames]
342
  SingleInterModeState single_state[2][SINGLE_INTER_MODE_NUM][FWD_REFS];
343
  int single_state_cnt[2][SINGLE_INTER_MODE_NUM];
344
  SingleInterModeState single_state_modelled[2][SINGLE_INTER_MODE_NUM]
345
                                            [FWD_REFS];
346
  int single_state_modelled_cnt[2][SINGLE_INTER_MODE_NUM];
347
  MV_REFERENCE_FRAME single_rd_order[2][SINGLE_INTER_MODE_NUM][FWD_REFS];
348
  IntraModeSearchState intra_search_state;
349
  RD_STATS best_y_rdcost;
350
} InterModeSearchState;
351
/*!\endcond */
352
353
0
void av1_inter_mode_data_init(TileDataEnc *tile_data) {
354
0
  for (int i = 0; i < BLOCK_SIZES_ALL; ++i) {
355
0
    InterModeRdModel *md = &tile_data->inter_mode_rd_models[i];
356
0
    md->ready = 0;
357
0
    md->num = 0;
358
0
    md->dist_sum = 0;
359
0
    md->ld_sum = 0;
360
0
    md->sse_sum = 0;
361
0
    md->sse_sse_sum = 0;
362
0
    md->sse_ld_sum = 0;
363
0
  }
364
0
}
365
366
static int get_est_rate_dist(const TileDataEnc *tile_data, BLOCK_SIZE bsize,
367
                             int64_t sse, int *est_residue_cost,
368
0
                             int64_t *est_dist) {
369
0
  const InterModeRdModel *md = &tile_data->inter_mode_rd_models[bsize];
370
0
  if (md->ready) {
371
0
    if (sse < md->dist_mean) {
372
0
      *est_residue_cost = 0;
373
0
      *est_dist = sse;
374
0
    } else {
375
0
      *est_dist = (int64_t)round(md->dist_mean);
376
0
      const double est_ld = md->a * sse + md->b;
377
      // Clamp estimated rate cost by INT_MAX / 2.
378
      // TODO(angiebird@google.com): find better solution than clamping.
379
0
      if (fabs(est_ld) < 1e-2) {
380
0
        *est_residue_cost = INT_MAX / 2;
381
0
      } else {
382
0
        double est_residue_cost_dbl = ((sse - md->dist_mean) / est_ld);
383
0
        if (est_residue_cost_dbl < 0) {
384
0
          *est_residue_cost = 0;
385
0
        } else {
386
0
          *est_residue_cost =
387
0
              (int)AOMMIN((int64_t)round(est_residue_cost_dbl), INT_MAX / 2);
388
0
        }
389
0
      }
390
0
      if (*est_residue_cost <= 0) {
391
0
        *est_residue_cost = 0;
392
0
        *est_dist = sse;
393
0
      }
394
0
    }
395
0
    return 1;
396
0
  }
397
0
  return 0;
398
0
}
399
400
0
void av1_inter_mode_data_fit(TileDataEnc *tile_data, int rdmult) {
401
0
  for (int bsize = 0; bsize < BLOCK_SIZES_ALL; ++bsize) {
402
0
    const int block_idx = inter_mode_data_block_idx(bsize);
403
0
    InterModeRdModel *md = &tile_data->inter_mode_rd_models[bsize];
404
0
    if (block_idx == -1) continue;
405
0
    if ((md->ready == 0 && md->num < 200) || (md->ready == 1 && md->num < 64)) {
406
0
      continue;
407
0
    } else {
408
0
      if (md->ready == 0) {
409
0
        md->dist_mean = md->dist_sum / md->num;
410
0
        md->ld_mean = md->ld_sum / md->num;
411
0
        md->sse_mean = md->sse_sum / md->num;
412
0
        md->sse_sse_mean = md->sse_sse_sum / md->num;
413
0
        md->sse_ld_mean = md->sse_ld_sum / md->num;
414
0
      } else {
415
0
        const double factor = 3;
416
0
        md->dist_mean =
417
0
            (md->dist_mean * factor + (md->dist_sum / md->num)) / (factor + 1);
418
0
        md->ld_mean =
419
0
            (md->ld_mean * factor + (md->ld_sum / md->num)) / (factor + 1);
420
0
        md->sse_mean =
421
0
            (md->sse_mean * factor + (md->sse_sum / md->num)) / (factor + 1);
422
0
        md->sse_sse_mean =
423
0
            (md->sse_sse_mean * factor + (md->sse_sse_sum / md->num)) /
424
0
            (factor + 1);
425
0
        md->sse_ld_mean =
426
0
            (md->sse_ld_mean * factor + (md->sse_ld_sum / md->num)) /
427
0
            (factor + 1);
428
0
      }
429
430
0
      const double my = md->ld_mean;
431
0
      const double mx = md->sse_mean;
432
0
      const double dx = sqrt(md->sse_sse_mean);
433
0
      const double dxy = md->sse_ld_mean;
434
435
0
      md->a = (dxy - mx * my) / (dx * dx - mx * mx);
436
0
      md->b = my - md->a * mx;
437
0
      md->ready = 1;
438
439
0
      md->num = 0;
440
0
      md->dist_sum = 0;
441
0
      md->ld_sum = 0;
442
0
      md->sse_sum = 0;
443
0
      md->sse_sse_sum = 0;
444
0
      md->sse_ld_sum = 0;
445
0
    }
446
0
    (void)rdmult;
447
0
  }
448
0
}
449
450
static inline void inter_mode_data_push(TileDataEnc *tile_data,
451
                                        BLOCK_SIZE bsize, int64_t sse,
452
0
                                        int64_t dist, int residue_cost) {
453
0
  if (residue_cost == 0 || sse == dist) return;
454
0
  const int block_idx = inter_mode_data_block_idx(bsize);
455
0
  if (block_idx == -1) return;
456
0
  InterModeRdModel *rd_model = &tile_data->inter_mode_rd_models[bsize];
457
0
  if (rd_model->num < INTER_MODE_RD_DATA_OVERALL_SIZE) {
458
0
    const double ld = (sse - dist) * 1. / residue_cost;
459
0
    ++rd_model->num;
460
0
    rd_model->dist_sum += dist;
461
0
    rd_model->ld_sum += ld;
462
0
    rd_model->sse_sum += sse;
463
0
    rd_model->sse_sse_sum += (double)sse * (double)sse;
464
0
    rd_model->sse_ld_sum += sse * ld;
465
0
  }
466
0
}
467
468
static inline void inter_modes_info_push(InterModesInfo *inter_modes_info,
469
                                         int mode_rate, int64_t sse, int64_t rd,
470
                                         RD_STATS *rd_cost, RD_STATS *rd_cost_y,
471
                                         RD_STATS *rd_cost_uv,
472
0
                                         const MB_MODE_INFO *mbmi) {
473
0
  const int num = inter_modes_info->num;
474
0
  assert(num < MAX_INTER_MODES);
475
0
  inter_modes_info->mbmi_arr[num] = *mbmi;
476
0
  inter_modes_info->mode_rate_arr[num] = mode_rate;
477
0
  inter_modes_info->sse_arr[num] = sse;
478
0
  inter_modes_info->est_rd_arr[num] = rd;
479
0
  inter_modes_info->rd_cost_arr[num] = *rd_cost;
480
0
  inter_modes_info->rd_cost_y_arr[num] = *rd_cost_y;
481
0
  inter_modes_info->rd_cost_uv_arr[num] = *rd_cost_uv;
482
0
  ++inter_modes_info->num;
483
0
}
484
485
0
static int compare_rd_idx_pair(const void *a, const void *b) {
486
0
  if (((RdIdxPair *)a)->rd == ((RdIdxPair *)b)->rd) {
487
    // To avoid inconsistency in qsort() ordering when two elements are equal,
488
    // using idx as tie breaker. Refer aomedia:2928
489
0
    if (((RdIdxPair *)a)->idx == ((RdIdxPair *)b)->idx)
490
0
      return 0;
491
0
    else if (((RdIdxPair *)a)->idx > ((RdIdxPair *)b)->idx)
492
0
      return 1;
493
0
    else
494
0
      return -1;
495
0
  } else if (((const RdIdxPair *)a)->rd > ((const RdIdxPair *)b)->rd) {
496
0
    return 1;
497
0
  } else {
498
0
    return -1;
499
0
  }
500
0
}
501
502
static inline void inter_modes_info_sort(const InterModesInfo *inter_modes_info,
503
0
                                         RdIdxPair *rd_idx_pair_arr) {
504
0
  if (inter_modes_info->num == 0) {
505
0
    return;
506
0
  }
507
0
  for (int i = 0; i < inter_modes_info->num; ++i) {
508
0
    rd_idx_pair_arr[i].idx = i;
509
0
    rd_idx_pair_arr[i].rd = inter_modes_info->est_rd_arr[i];
510
0
  }
511
0
  qsort(rd_idx_pair_arr, inter_modes_info->num, sizeof(rd_idx_pair_arr[0]),
512
0
        compare_rd_idx_pair);
513
0
}
514
515
// Initialize estimated RD Cost records of compound average.
516
static inline void init_comp_avg_est_rd(
517
0
    struct macroblock *x, int skip_cmp_using_top_cmp_avg_est_rd_lvl) {
518
0
  if (!skip_cmp_using_top_cmp_avg_est_rd_lvl) return;
519
520
0
  for (int j = 0; j < TOP_COMP_AVG_EST_RD_COUNT; j++) {
521
0
    x->top_comp_avg_est_rd[j] = INT64_MAX;
522
0
  }
523
0
}
524
525
// Similar to get_horver_correlation, but also takes into account first
526
// row/column, when computing horizontal/vertical correlation.
527
void av1_get_horver_correlation_full_c(const int16_t *diff, int stride,
528
                                       int width, int height, float *hcorr,
529
0
                                       float *vcorr) {
530
  // The following notation is used:
531
  // x - current pixel
532
  // y - left neighbor pixel
533
  // z - top neighbor pixel
534
0
  int64_t x_sum = 0, x2_sum = 0, xy_sum = 0, xz_sum = 0;
535
0
  int64_t x_firstrow = 0, x_finalrow = 0, x_firstcol = 0, x_finalcol = 0;
536
0
  int64_t x2_firstrow = 0, x2_finalrow = 0, x2_firstcol = 0, x2_finalcol = 0;
537
538
  // First, process horizontal correlation on just the first row
539
0
  x_sum += diff[0];
540
0
  x2_sum += diff[0] * diff[0];
541
0
  x_firstrow += diff[0];
542
0
  x2_firstrow += diff[0] * diff[0];
543
0
  for (int j = 1; j < width; ++j) {
544
0
    const int16_t x = diff[j];
545
0
    const int16_t y = diff[j - 1];
546
0
    x_sum += x;
547
0
    x_firstrow += x;
548
0
    x2_sum += x * x;
549
0
    x2_firstrow += x * x;
550
0
    xy_sum += x * y;
551
0
  }
552
553
  // Process vertical correlation in the first column
554
0
  x_firstcol += diff[0];
555
0
  x2_firstcol += diff[0] * diff[0];
556
0
  for (int i = 1; i < height; ++i) {
557
0
    const int16_t x = diff[i * stride];
558
0
    const int16_t z = diff[(i - 1) * stride];
559
0
    x_sum += x;
560
0
    x_firstcol += x;
561
0
    x2_sum += x * x;
562
0
    x2_firstcol += x * x;
563
0
    xz_sum += x * z;
564
0
  }
565
566
  // Now process horiz and vert correlation through the rest unit
567
0
  for (int i = 1; i < height; ++i) {
568
0
    for (int j = 1; j < width; ++j) {
569
0
      const int16_t x = diff[i * stride + j];
570
0
      const int16_t y = diff[i * stride + j - 1];
571
0
      const int16_t z = diff[(i - 1) * stride + j];
572
0
      x_sum += x;
573
0
      x2_sum += x * x;
574
0
      xy_sum += x * y;
575
0
      xz_sum += x * z;
576
0
    }
577
0
  }
578
579
0
  for (int j = 0; j < width; ++j) {
580
0
    x_finalrow += diff[(height - 1) * stride + j];
581
0
    x2_finalrow +=
582
0
        diff[(height - 1) * stride + j] * diff[(height - 1) * stride + j];
583
0
  }
584
0
  for (int i = 0; i < height; ++i) {
585
0
    x_finalcol += diff[i * stride + width - 1];
586
0
    x2_finalcol += diff[i * stride + width - 1] * diff[i * stride + width - 1];
587
0
  }
588
589
0
  int64_t xhor_sum = x_sum - x_finalcol;
590
0
  int64_t xver_sum = x_sum - x_finalrow;
591
0
  int64_t y_sum = x_sum - x_firstcol;
592
0
  int64_t z_sum = x_sum - x_firstrow;
593
0
  int64_t x2hor_sum = x2_sum - x2_finalcol;
594
0
  int64_t x2ver_sum = x2_sum - x2_finalrow;
595
0
  int64_t y2_sum = x2_sum - x2_firstcol;
596
0
  int64_t z2_sum = x2_sum - x2_firstrow;
597
598
0
  const float num_hor = (float)(height * (width - 1));
599
0
  const float num_ver = (float)((height - 1) * width);
600
601
0
  const float xhor_var_n = x2hor_sum - (xhor_sum * xhor_sum) / num_hor;
602
0
  const float xver_var_n = x2ver_sum - (xver_sum * xver_sum) / num_ver;
603
604
0
  const float y_var_n = y2_sum - (y_sum * y_sum) / num_hor;
605
0
  const float z_var_n = z2_sum - (z_sum * z_sum) / num_ver;
606
607
0
  const float xy_var_n = xy_sum - (xhor_sum * y_sum) / num_hor;
608
0
  const float xz_var_n = xz_sum - (xver_sum * z_sum) / num_ver;
609
610
0
  if (xhor_var_n > 0 && y_var_n > 0) {
611
0
    *hcorr = xy_var_n / sqrtf(xhor_var_n * y_var_n);
612
0
    *hcorr = *hcorr < 0 ? 0 : *hcorr;
613
0
  } else {
614
0
    *hcorr = 1.0;
615
0
  }
616
0
  if (xver_var_n > 0 && z_var_n > 0) {
617
0
    *vcorr = xz_var_n / sqrtf(xver_var_n * z_var_n);
618
0
    *vcorr = *vcorr < 0 ? 0 : *vcorr;
619
0
  } else {
620
0
    *vcorr = 1.0;
621
0
  }
622
0
}
623
624
#if CONFIG_AV1_HIGHBITDEPTH
625
static void get_variance_stats_hbd(const MACROBLOCK *x, int64_t *src_var,
626
0
                                   int64_t *rec_var) {
627
0
  const MACROBLOCKD *xd = &x->e_mbd;
628
0
  const MB_MODE_INFO *mbmi = xd->mi[0];
629
0
  const struct macroblockd_plane *const pd = &xd->plane[AOM_PLANE_Y];
630
0
  const struct macroblock_plane *const p = &x->plane[AOM_PLANE_Y];
631
632
0
  BLOCK_SIZE bsize = mbmi->bsize;
633
0
  int bw = block_size_wide[bsize];
634
0
  int bh = block_size_high[bsize];
635
0
  const int shift = 2 * (xd->bd - 8);
636
637
0
  *rec_var = aom_highbd_calc_variance_stat(CONVERT_TO_SHORTPTR(pd->dst.buf),
638
0
                                           pd->dst.stride, bw, bh);
639
0
  *src_var = aom_highbd_calc_variance_stat(CONVERT_TO_SHORTPTR(p->src.buf),
640
0
                                           p->src.stride, bw, bh);
641
642
0
  *rec_var = ROUND_POWER_OF_TWO(*rec_var, shift);
643
0
  *src_var = ROUND_POWER_OF_TWO(*src_var, shift);
644
0
}
645
#endif  // CONFIG_AV1_HIGHBITDEPTH
646
647
static void get_variance_stats(const MACROBLOCK *x, int64_t *src_var,
648
0
                               int64_t *rec_var) {
649
0
#if CONFIG_AV1_HIGHBITDEPTH
650
0
  if (is_cur_buf_hbd(&x->e_mbd)) {
651
0
    get_variance_stats_hbd(x, src_var, rec_var);
652
0
    return;
653
0
  }
654
0
#endif  // CONFIG_AV1_HIGHBITDEPTH
655
0
  const MACROBLOCKD *xd = &x->e_mbd;
656
0
  const MB_MODE_INFO *mbmi = xd->mi[0];
657
0
  const struct macroblockd_plane *const pd = &xd->plane[AOM_PLANE_Y];
658
0
  const struct macroblock_plane *const p = &x->plane[AOM_PLANE_Y];
659
660
0
  BLOCK_SIZE bsize = mbmi->bsize;
661
0
  int bw = block_size_wide[bsize];
662
0
  int bh = block_size_high[bsize];
663
664
0
  *rec_var = aom_calc_variance_stat(pd->dst.buf, pd->dst.stride, bw, bh);
665
0
  *src_var = aom_calc_variance_stat(p->src.buf, p->src.stride, bw, bh);
666
0
}
667
668
static void adjust_rdcost(const AV1_COMP *cpi, const MACROBLOCK *x,
669
0
                          RD_STATS *rd_cost, bool is_inter_pred) {
670
0
  if ((cpi->oxcf.tune_cfg.tuning == AOM_TUNE_IQ ||
671
0
       cpi->oxcf.tune_cfg.tuning == AOM_TUNE_SSIMULACRA2) &&
672
0
      is_inter_pred) {
673
    // Tune IQ and SSIMULACRA2 can be used to encode layered images, where
674
    // keyframes could be encoded at a lower or similar quality (i.e. higher
675
    // QP) than inter-coded frames.
676
    // In this case, libaom tends to underestimate the true RD cost of inter
677
    // prediction candidates, causing encoded file size to increase without a
678
    // corresponding increase in quality.
679
    // When both intra and inter encoded block candidates are available (with
680
    // rdcosts close to each other), the intra-coded candidate was subjectively
681
    // observed to be a bit less blurry, with a corresponding increase in
682
    // SSIMULACRA 2 scores.
683
    // Apply a 1.125x inter block bias to increase overall perceptual
684
    // compression efficiency, while still allowing the encoder to pick inter
685
    // prediction when it's beneficial.
686
0
    rd_cost->dist += rd_cost->dist >> 3;
687
0
    rd_cost->rdcost += rd_cost->rdcost >> 3;
688
0
    return;
689
0
  }
690
691
0
  if (cpi->oxcf.algo_cfg.sharpness != 3) return;
692
693
0
  if (frame_is_kf_gf_arf(cpi)) return;
694
695
0
  int64_t src_var, rec_var;
696
0
  get_variance_stats(x, &src_var, &rec_var);
697
698
0
  if (src_var <= rec_var) return;
699
700
0
  int64_t var_offset = src_var - rec_var;
701
702
0
  rd_cost->dist += var_offset;
703
704
0
  rd_cost->rdcost = RDCOST(x->rdmult, rd_cost->rate, rd_cost->dist);
705
0
}
706
707
static void adjust_cost(const AV1_COMP *cpi, const MACROBLOCK *x,
708
0
                        int64_t *rd_cost, bool is_inter_pred) {
709
0
  if ((cpi->oxcf.tune_cfg.tuning == AOM_TUNE_IQ ||
710
0
       cpi->oxcf.tune_cfg.tuning == AOM_TUNE_SSIMULACRA2) &&
711
0
      is_inter_pred) {
712
0
    *rd_cost += *rd_cost >> 3;
713
0
    return;
714
0
  }
715
716
0
  if (cpi->oxcf.algo_cfg.sharpness != 3) return;
717
718
0
  if (frame_is_kf_gf_arf(cpi)) return;
719
720
0
  int64_t src_var, rec_var;
721
0
  get_variance_stats(x, &src_var, &rec_var);
722
723
0
  if (src_var <= rec_var) return;
724
725
0
  int64_t var_offset = src_var - rec_var;
726
727
0
  *rd_cost += RDCOST(x->rdmult, 0, var_offset);
728
0
}
729
730
static int64_t get_sse(const AV1_COMP *cpi, const MACROBLOCK *x,
731
0
                       int64_t *sse_y) {
732
0
  const AV1_COMMON *cm = &cpi->common;
733
0
  const int num_planes = av1_num_planes(cm);
734
0
  const MACROBLOCKD *xd = &x->e_mbd;
735
0
  const MB_MODE_INFO *mbmi = xd->mi[0];
736
0
  int64_t total_sse = 0;
737
0
  for (int plane = 0; plane < num_planes; ++plane) {
738
0
    if (plane && !xd->is_chroma_ref) break;
739
0
    const struct macroblock_plane *const p = &x->plane[plane];
740
0
    const struct macroblockd_plane *const pd = &xd->plane[plane];
741
0
    const BLOCK_SIZE bs =
742
0
        get_plane_block_size(mbmi->bsize, pd->subsampling_x, pd->subsampling_y);
743
0
    unsigned int sse;
744
0
    int bw, bh;
745
0
    const int block_width = block_size_wide[bs];
746
0
    const int block_height = block_size_high[bs];
747
748
0
    get_visible_dimensions(x, plane, bs, 0, 0, block_width, block_height,
749
0
                           cpi->do_border_pad, &bw, &bh);
750
751
0
    sse = pixel_dist_visible_only(cpi, x, p->src.buf, p->src.stride,
752
0
                                  pd->dst.buf, pd->dst.stride, bs, block_height,
753
0
                                  block_width, bh, bw);
754
0
    total_sse += sse;
755
0
    if (!plane && sse_y) *sse_y = sse;
756
0
  }
757
0
  total_sse <<= 4;
758
0
  return total_sse;
759
0
}
760
761
int64_t av1_block_error_c(const tran_low_t *coeff, const tran_low_t *dqcoeff,
762
0
                          intptr_t block_size, int64_t *ssz) {
763
0
  int i;
764
0
  int64_t error = 0, sqcoeff = 0;
765
766
0
  for (i = 0; i < block_size; i++) {
767
0
    const int diff = coeff[i] - dqcoeff[i];
768
0
    error += diff * diff;
769
0
    sqcoeff += coeff[i] * coeff[i];
770
0
  }
771
772
0
  *ssz = sqcoeff;
773
0
  return error;
774
0
}
775
776
int64_t av1_block_error_lp_c(const int16_t *coeff, const int16_t *dqcoeff,
777
0
                             intptr_t block_size) {
778
0
  int64_t error = 0;
779
780
0
  for (int i = 0; i < block_size; i++) {
781
0
    const int diff = coeff[i] - dqcoeff[i];
782
0
    error += diff * diff;
783
0
  }
784
785
0
  return error;
786
0
}
787
788
#if CONFIG_AV1_HIGHBITDEPTH
789
int64_t av1_highbd_block_error_c(const tran_low_t *coeff,
790
                                 const tran_low_t *dqcoeff, intptr_t block_size,
791
0
                                 int64_t *ssz, int bd) {
792
0
  int i;
793
0
  int64_t error = 0, sqcoeff = 0;
794
0
  int shift = 2 * (bd - 8);
795
0
  int rounding = (1 << shift) >> 1;
796
797
0
  for (i = 0; i < block_size; i++) {
798
0
    const int64_t diff = coeff[i] - dqcoeff[i];
799
0
    error += diff * diff;
800
0
    sqcoeff += (int64_t)coeff[i] * (int64_t)coeff[i];
801
0
  }
802
0
  error = (error + rounding) >> shift;
803
0
  sqcoeff = (sqcoeff + rounding) >> shift;
804
805
0
  *ssz = sqcoeff;
806
0
  return error;
807
0
}
808
#endif
809
810
static int conditional_skipintra(PREDICTION_MODE mode,
811
0
                                 PREDICTION_MODE best_intra_mode) {
812
0
  if (mode == D113_PRED && best_intra_mode != V_PRED &&
813
0
      best_intra_mode != D135_PRED)
814
0
    return 1;
815
0
  if (mode == D67_PRED && best_intra_mode != V_PRED &&
816
0
      best_intra_mode != D45_PRED)
817
0
    return 1;
818
0
  if (mode == D203_PRED && best_intra_mode != H_PRED &&
819
0
      best_intra_mode != D45_PRED)
820
0
    return 1;
821
0
  if (mode == D157_PRED && best_intra_mode != H_PRED &&
822
0
      best_intra_mode != D135_PRED)
823
0
    return 1;
824
0
  return 0;
825
0
}
826
827
static int cost_mv_ref(const ModeCosts *const mode_costs, PREDICTION_MODE mode,
828
0
                       int16_t mode_context) {
829
0
  if (is_inter_compound_mode(mode)) {
830
0
    return mode_costs
831
0
        ->inter_compound_mode_cost[mode_context][INTER_COMPOUND_OFFSET(mode)];
832
0
  }
833
834
0
  int mode_cost = 0;
835
0
  int16_t mode_ctx = mode_context & NEWMV_CTX_MASK;
836
837
0
  assert(is_inter_mode(mode));
838
839
0
  if (mode == NEWMV) {
840
0
    mode_cost = mode_costs->newmv_mode_cost[mode_ctx][0];
841
0
    return mode_cost;
842
0
  } else {
843
0
    mode_cost = mode_costs->newmv_mode_cost[mode_ctx][1];
844
0
    mode_ctx = (mode_context >> GLOBALMV_OFFSET) & GLOBALMV_CTX_MASK;
845
846
0
    if (mode == GLOBALMV) {
847
0
      mode_cost += mode_costs->zeromv_mode_cost[mode_ctx][0];
848
0
      return mode_cost;
849
0
    } else {
850
0
      mode_cost += mode_costs->zeromv_mode_cost[mode_ctx][1];
851
0
      mode_ctx = (mode_context >> REFMV_OFFSET) & REFMV_CTX_MASK;
852
0
      mode_cost += mode_costs->refmv_mode_cost[mode_ctx][mode != NEARESTMV];
853
0
      return mode_cost;
854
0
    }
855
0
  }
856
0
}
857
858
static inline PREDICTION_MODE get_single_mode(PREDICTION_MODE this_mode,
859
0
                                              int ref_idx) {
860
0
  return ref_idx ? compound_ref1_mode(this_mode)
861
0
                 : compound_ref0_mode(this_mode);
862
0
}
863
864
static inline void estimate_ref_frame_costs(
865
    const AV1_COMMON *cm, const MACROBLOCKD *xd, const ModeCosts *mode_costs,
866
    int segment_id, unsigned int *ref_costs_single,
867
0
    unsigned int (*ref_costs_comp)[REF_FRAMES]) {
868
0
  int seg_ref_active =
869
0
      segfeature_active(&cm->seg, segment_id, SEG_LVL_REF_FRAME);
870
0
  if (seg_ref_active) {
871
0
    memset(ref_costs_single, 0, REF_FRAMES * sizeof(*ref_costs_single));
872
0
    int ref_frame;
873
0
    for (ref_frame = 0; ref_frame < REF_FRAMES; ++ref_frame)
874
0
      memset(ref_costs_comp[ref_frame], 0,
875
0
             REF_FRAMES * sizeof((*ref_costs_comp)[0]));
876
0
  } else {
877
0
    int intra_inter_ctx = av1_get_intra_inter_context(xd);
878
0
    ref_costs_single[INTRA_FRAME] =
879
0
        mode_costs->intra_inter_cost[intra_inter_ctx][0];
880
0
    unsigned int base_cost = mode_costs->intra_inter_cost[intra_inter_ctx][1];
881
882
0
    for (int i = LAST_FRAME; i <= ALTREF_FRAME; ++i)
883
0
      ref_costs_single[i] = base_cost;
884
885
0
    const int ctx_p1 = av1_get_pred_context_single_ref_p1(xd);
886
0
    const int ctx_p2 = av1_get_pred_context_single_ref_p2(xd);
887
0
    const int ctx_p3 = av1_get_pred_context_single_ref_p3(xd);
888
0
    const int ctx_p4 = av1_get_pred_context_single_ref_p4(xd);
889
0
    const int ctx_p5 = av1_get_pred_context_single_ref_p5(xd);
890
0
    const int ctx_p6 = av1_get_pred_context_single_ref_p6(xd);
891
892
    // Determine cost of a single ref frame, where frame types are represented
893
    // by a tree:
894
    // Level 0: add cost whether this ref is a forward or backward ref
895
0
    ref_costs_single[LAST_FRAME] += mode_costs->single_ref_cost[ctx_p1][0][0];
896
0
    ref_costs_single[LAST2_FRAME] += mode_costs->single_ref_cost[ctx_p1][0][0];
897
0
    ref_costs_single[LAST3_FRAME] += mode_costs->single_ref_cost[ctx_p1][0][0];
898
0
    ref_costs_single[GOLDEN_FRAME] += mode_costs->single_ref_cost[ctx_p1][0][0];
899
0
    ref_costs_single[BWDREF_FRAME] += mode_costs->single_ref_cost[ctx_p1][0][1];
900
0
    ref_costs_single[ALTREF2_FRAME] +=
901
0
        mode_costs->single_ref_cost[ctx_p1][0][1];
902
0
    ref_costs_single[ALTREF_FRAME] += mode_costs->single_ref_cost[ctx_p1][0][1];
903
904
    // Level 1: if this ref is forward ref,
905
    // add cost whether it is last/last2 or last3/golden
906
0
    ref_costs_single[LAST_FRAME] += mode_costs->single_ref_cost[ctx_p3][2][0];
907
0
    ref_costs_single[LAST2_FRAME] += mode_costs->single_ref_cost[ctx_p3][2][0];
908
0
    ref_costs_single[LAST3_FRAME] += mode_costs->single_ref_cost[ctx_p3][2][1];
909
0
    ref_costs_single[GOLDEN_FRAME] += mode_costs->single_ref_cost[ctx_p3][2][1];
910
911
    // Level 1: if this ref is backward ref
912
    // then add cost whether this ref is altref or backward ref
913
0
    ref_costs_single[BWDREF_FRAME] += mode_costs->single_ref_cost[ctx_p2][1][0];
914
0
    ref_costs_single[ALTREF2_FRAME] +=
915
0
        mode_costs->single_ref_cost[ctx_p2][1][0];
916
0
    ref_costs_single[ALTREF_FRAME] += mode_costs->single_ref_cost[ctx_p2][1][1];
917
918
    // Level 2: further add cost whether this ref is last or last2
919
0
    ref_costs_single[LAST_FRAME] += mode_costs->single_ref_cost[ctx_p4][3][0];
920
0
    ref_costs_single[LAST2_FRAME] += mode_costs->single_ref_cost[ctx_p4][3][1];
921
922
    // Level 2: last3 or golden
923
0
    ref_costs_single[LAST3_FRAME] += mode_costs->single_ref_cost[ctx_p5][4][0];
924
0
    ref_costs_single[GOLDEN_FRAME] += mode_costs->single_ref_cost[ctx_p5][4][1];
925
926
    // Level 2: bwdref or altref2
927
0
    ref_costs_single[BWDREF_FRAME] += mode_costs->single_ref_cost[ctx_p6][5][0];
928
0
    ref_costs_single[ALTREF2_FRAME] +=
929
0
        mode_costs->single_ref_cost[ctx_p6][5][1];
930
931
0
    if (cm->current_frame.reference_mode != SINGLE_REFERENCE) {
932
      // Similar to single ref, determine cost of compound ref frames.
933
      // cost_compound_refs = cost_first_ref + cost_second_ref
934
0
      const int bwdref_comp_ctx_p = av1_get_pred_context_comp_bwdref_p(xd);
935
0
      const int bwdref_comp_ctx_p1 = av1_get_pred_context_comp_bwdref_p1(xd);
936
0
      const int ref_comp_ctx_p = av1_get_pred_context_comp_ref_p(xd);
937
0
      const int ref_comp_ctx_p1 = av1_get_pred_context_comp_ref_p1(xd);
938
0
      const int ref_comp_ctx_p2 = av1_get_pred_context_comp_ref_p2(xd);
939
940
0
      const int comp_ref_type_ctx = av1_get_comp_reference_type_context(xd);
941
0
      unsigned int ref_bicomp_costs[REF_FRAMES] = { 0 };
942
943
0
      ref_bicomp_costs[LAST_FRAME] = ref_bicomp_costs[LAST2_FRAME] =
944
0
          ref_bicomp_costs[LAST3_FRAME] = ref_bicomp_costs[GOLDEN_FRAME] =
945
0
              base_cost + mode_costs->comp_ref_type_cost[comp_ref_type_ctx][1];
946
0
      ref_bicomp_costs[BWDREF_FRAME] = ref_bicomp_costs[ALTREF2_FRAME] = 0;
947
0
      ref_bicomp_costs[ALTREF_FRAME] = 0;
948
949
      // cost of first ref frame
950
0
      ref_bicomp_costs[LAST_FRAME] +=
951
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p][0][0];
952
0
      ref_bicomp_costs[LAST2_FRAME] +=
953
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p][0][0];
954
0
      ref_bicomp_costs[LAST3_FRAME] +=
955
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p][0][1];
956
0
      ref_bicomp_costs[GOLDEN_FRAME] +=
957
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p][0][1];
958
959
0
      ref_bicomp_costs[LAST_FRAME] +=
960
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p1][1][0];
961
0
      ref_bicomp_costs[LAST2_FRAME] +=
962
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p1][1][1];
963
964
0
      ref_bicomp_costs[LAST3_FRAME] +=
965
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p2][2][0];
966
0
      ref_bicomp_costs[GOLDEN_FRAME] +=
967
0
          mode_costs->comp_ref_cost[ref_comp_ctx_p2][2][1];
968
969
      // cost of second ref frame
970
0
      ref_bicomp_costs[BWDREF_FRAME] +=
971
0
          mode_costs->comp_bwdref_cost[bwdref_comp_ctx_p][0][0];
972
0
      ref_bicomp_costs[ALTREF2_FRAME] +=
973
0
          mode_costs->comp_bwdref_cost[bwdref_comp_ctx_p][0][0];
974
0
      ref_bicomp_costs[ALTREF_FRAME] +=
975
0
          mode_costs->comp_bwdref_cost[bwdref_comp_ctx_p][0][1];
976
977
0
      ref_bicomp_costs[BWDREF_FRAME] +=
978
0
          mode_costs->comp_bwdref_cost[bwdref_comp_ctx_p1][1][0];
979
0
      ref_bicomp_costs[ALTREF2_FRAME] +=
980
0
          mode_costs->comp_bwdref_cost[bwdref_comp_ctx_p1][1][1];
981
982
      // cost: if one ref frame is forward ref, the other ref is backward ref
983
0
      int ref0, ref1;
984
0
      for (ref0 = LAST_FRAME; ref0 <= GOLDEN_FRAME; ++ref0) {
985
0
        for (ref1 = BWDREF_FRAME; ref1 <= ALTREF_FRAME; ++ref1) {
986
0
          ref_costs_comp[ref0][ref1] =
987
0
              ref_bicomp_costs[ref0] + ref_bicomp_costs[ref1];
988
0
        }
989
0
      }
990
991
      // cost: if both ref frames are the same side.
992
0
      const int uni_comp_ref_ctx_p = av1_get_pred_context_uni_comp_ref_p(xd);
993
0
      const int uni_comp_ref_ctx_p1 = av1_get_pred_context_uni_comp_ref_p1(xd);
994
0
      const int uni_comp_ref_ctx_p2 = av1_get_pred_context_uni_comp_ref_p2(xd);
995
0
      ref_costs_comp[LAST_FRAME][LAST2_FRAME] =
996
0
          base_cost + mode_costs->comp_ref_type_cost[comp_ref_type_ctx][0] +
997
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p][0][0] +
998
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p1][1][0];
999
0
      ref_costs_comp[LAST_FRAME][LAST3_FRAME] =
1000
0
          base_cost + mode_costs->comp_ref_type_cost[comp_ref_type_ctx][0] +
1001
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p][0][0] +
1002
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p1][1][1] +
1003
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p2][2][0];
1004
0
      ref_costs_comp[LAST_FRAME][GOLDEN_FRAME] =
1005
0
          base_cost + mode_costs->comp_ref_type_cost[comp_ref_type_ctx][0] +
1006
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p][0][0] +
1007
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p1][1][1] +
1008
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p2][2][1];
1009
0
      ref_costs_comp[BWDREF_FRAME][ALTREF_FRAME] =
1010
0
          base_cost + mode_costs->comp_ref_type_cost[comp_ref_type_ctx][0] +
1011
0
          mode_costs->uni_comp_ref_cost[uni_comp_ref_ctx_p][0][1];
1012
0
    } else {
1013
0
      int ref0, ref1;
1014
0
      for (ref0 = LAST_FRAME; ref0 <= GOLDEN_FRAME; ++ref0) {
1015
0
        for (ref1 = BWDREF_FRAME; ref1 <= ALTREF_FRAME; ++ref1)
1016
0
          ref_costs_comp[ref0][ref1] = 512;
1017
0
      }
1018
0
      ref_costs_comp[LAST_FRAME][LAST2_FRAME] = 512;
1019
0
      ref_costs_comp[LAST_FRAME][LAST3_FRAME] = 512;
1020
0
      ref_costs_comp[LAST_FRAME][GOLDEN_FRAME] = 512;
1021
0
      ref_costs_comp[BWDREF_FRAME][ALTREF_FRAME] = 512;
1022
0
    }
1023
0
  }
1024
0
}
1025
1026
static inline void store_coding_context(
1027
#if CONFIG_INTERNAL_STATS
1028
    MACROBLOCK *x, PICK_MODE_CONTEXT *ctx, int mode_index,
1029
#else
1030
    MACROBLOCK *x, PICK_MODE_CONTEXT *ctx,
1031
#endif  // CONFIG_INTERNAL_STATS
1032
0
    int skippable) {
1033
0
  MACROBLOCKD *const xd = &x->e_mbd;
1034
1035
  // Take a snapshot of the coding context so it can be
1036
  // restored if we decide to encode this way
1037
0
  ctx->rd_stats.skip_txfm = x->txfm_search_info.skip_txfm;
1038
0
  ctx->skippable = skippable;
1039
#if CONFIG_INTERNAL_STATS
1040
  ctx->best_mode_index = mode_index;
1041
#endif  // CONFIG_INTERNAL_STATS
1042
0
  ctx->mic = *xd->mi[0];
1043
0
  av1_copy_mbmi_ext_to_mbmi_ext_frame(&ctx->mbmi_ext_best, &x->mbmi_ext,
1044
0
                                      av1_ref_frame_type(xd->mi[0]->ref_frame));
1045
0
}
1046
1047
static inline void setup_buffer_ref_mvs_inter(
1048
    const AV1_COMP *const cpi, MACROBLOCK *x, MV_REFERENCE_FRAME ref_frame,
1049
0
    BLOCK_SIZE block_size, struct buf_2d yv12_mb[REF_FRAMES][MAX_MB_PLANE]) {
1050
0
  const AV1_COMMON *cm = &cpi->common;
1051
0
  const int num_planes = av1_num_planes(cm);
1052
0
  const YV12_BUFFER_CONFIG *scaled_ref_frame =
1053
0
      av1_get_scaled_ref_frame(cpi, ref_frame);
1054
0
  MACROBLOCKD *const xd = &x->e_mbd;
1055
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
1056
0
  MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
1057
0
  const struct scale_factors *const sf =
1058
0
      get_ref_scale_factors_const(cm, ref_frame);
1059
0
  const YV12_BUFFER_CONFIG *yv12 = get_ref_frame_yv12_buf(cm, ref_frame);
1060
0
  assert(yv12 != NULL);
1061
1062
0
  if (scaled_ref_frame) {
1063
    // Setup pred block based on scaled reference, because av1_mv_pred() doesn't
1064
    // support scaling.
1065
0
    av1_setup_pred_block(xd, yv12_mb[ref_frame], scaled_ref_frame, NULL, NULL,
1066
0
                         num_planes);
1067
0
  } else {
1068
0
    av1_setup_pred_block(xd, yv12_mb[ref_frame], yv12, sf, sf, num_planes);
1069
0
  }
1070
1071
  // Gets an initial list of candidate vectors from neighbours and orders them
1072
0
  av1_find_mv_refs(cm, xd, mbmi, ref_frame, mbmi_ext->ref_mv_count,
1073
0
                   xd->ref_mv_stack, xd->weight, NULL, mbmi_ext->global_mvs,
1074
0
                   mbmi_ext->mode_context);
1075
  // TODO(Ravi): Populate mbmi_ext->ref_mv_stack[ref_frame][4] and
1076
  // mbmi_ext->weight[ref_frame][4] inside av1_find_mv_refs.
1077
0
  av1_copy_usable_ref_mv_stack_and_weight(xd, mbmi_ext, ref_frame);
1078
  // Further refinement that is encode side only to test the top few candidates
1079
  // in full and choose the best as the center point for subsequent searches.
1080
  // The current implementation doesn't support scaling.
1081
0
  av1_mv_pred(cpi, x, yv12_mb[ref_frame][0].buf, yv12_mb[ref_frame][0].stride,
1082
0
              ref_frame, block_size);
1083
1084
  // Go back to unscaled reference.
1085
0
  if (scaled_ref_frame) {
1086
    // We had temporarily setup pred block based on scaled reference above. Go
1087
    // back to unscaled reference now, for subsequent use.
1088
0
    av1_setup_pred_block(xd, yv12_mb[ref_frame], yv12, sf, sf, num_planes);
1089
0
  }
1090
0
}
1091
1092
0
#define LEFT_TOP_MARGIN ((AOM_BORDER_IN_PIXELS - AOM_INTERP_EXTEND) << 3)
1093
0
#define RIGHT_BOTTOM_MARGIN ((AOM_BORDER_IN_PIXELS - AOM_INTERP_EXTEND) << 3)
1094
1095
// TODO(jingning): this mv clamping function should be block size dependent.
1096
0
static inline void clamp_mv2(MV *mv, const MACROBLOCKD *xd) {
1097
0
  const SubpelMvLimits mv_limits = { xd->mb_to_left_edge - LEFT_TOP_MARGIN,
1098
0
                                     xd->mb_to_right_edge + RIGHT_BOTTOM_MARGIN,
1099
0
                                     xd->mb_to_top_edge - LEFT_TOP_MARGIN,
1100
0
                                     xd->mb_to_bottom_edge +
1101
0
                                         RIGHT_BOTTOM_MARGIN };
1102
0
  clamp_mv(mv, &mv_limits);
1103
0
}
1104
1105
/* If the current mode shares the same mv with other modes with higher cost,
1106
 * skip this mode. */
1107
static AOM_FORCE_INLINE int skip_repeated_mv(
1108
    const AV1_COMMON *const cm, const MACROBLOCK *const x,
1109
    PREDICTION_MODE this_mode, const MV_REFERENCE_FRAME ref_frames[2],
1110
0
    InterModeSearchState *search_state) {
1111
0
  const int is_comp_pred = ref_frames[1] > INTRA_FRAME;
1112
0
  const uint8_t ref_frame_type = av1_ref_frame_type(ref_frames);
1113
0
  const MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
1114
0
  const int ref_mv_count = mbmi_ext->ref_mv_count[ref_frame_type];
1115
0
  PREDICTION_MODE compare_mode = MB_MODE_COUNT;
1116
0
  if (!is_comp_pred) {
1117
0
    if (this_mode == NEARMV) {
1118
0
      if (ref_mv_count == 0) {
1119
        // NEARMV has the same motion vector as NEARESTMV
1120
0
        compare_mode = NEARESTMV;
1121
0
      }
1122
0
      if (ref_mv_count == 1 &&
1123
0
          cm->global_motion[ref_frames[0]].wmtype <= TRANSLATION) {
1124
        // NEARMV has the same motion vector as GLOBALMV
1125
0
        compare_mode = GLOBALMV;
1126
0
      }
1127
0
    }
1128
0
    if (this_mode == GLOBALMV) {
1129
0
      if (ref_mv_count == 0 &&
1130
0
          cm->global_motion[ref_frames[0]].wmtype <= TRANSLATION) {
1131
        // GLOBALMV has the same motion vector as NEARESTMV
1132
0
        compare_mode = NEARESTMV;
1133
0
      }
1134
0
      if (ref_mv_count == 1) {
1135
        // GLOBALMV has the same motion vector as NEARMV
1136
0
        compare_mode = NEARMV;
1137
0
      }
1138
0
    }
1139
1140
0
    if (compare_mode != MB_MODE_COUNT) {
1141
      // Use modelled_rd to check whether compare mode was searched
1142
0
      if (search_state->modelled_rd[compare_mode][0][ref_frames[0]] !=
1143
0
          INT64_MAX) {
1144
0
        const int16_t mode_ctx =
1145
0
            av1_mode_context_analyzer(mbmi_ext->mode_context, ref_frames);
1146
0
        const int compare_cost =
1147
0
            cost_mv_ref(&x->mode_costs, compare_mode, mode_ctx);
1148
0
        const int this_cost = cost_mv_ref(&x->mode_costs, this_mode, mode_ctx);
1149
1150
        // Only skip if the mode cost is larger than compare mode cost
1151
0
        if (this_cost > compare_cost) {
1152
0
          search_state->modelled_rd[this_mode][0][ref_frames[0]] =
1153
0
              search_state->modelled_rd[compare_mode][0][ref_frames[0]];
1154
0
          return 1;
1155
0
        }
1156
0
      }
1157
0
    }
1158
0
  }
1159
0
  return 0;
1160
0
}
1161
1162
static inline int clamp_and_check_mv(int_mv *out_mv, int_mv in_mv,
1163
                                     const AV1_COMMON *cm,
1164
0
                                     const MACROBLOCK *x) {
1165
0
  const MACROBLOCKD *const xd = &x->e_mbd;
1166
0
  *out_mv = in_mv;
1167
0
  lower_mv_precision(&out_mv->as_mv, cm->features.allow_high_precision_mv,
1168
0
                     cm->features.cur_frame_force_integer_mv);
1169
0
  clamp_mv2(&out_mv->as_mv, xd);
1170
0
  return av1_is_fullmv_in_range(&x->mv_limits,
1171
0
                                get_fullmv_from_mv(&out_mv->as_mv));
1172
0
}
1173
1174
// To use single newmv directly for compound modes, need to clamp the mv to the
1175
// valid mv range. Without this, encoder would generate out of range mv, and
1176
// this is seen in 8k encoding.
1177
static inline void clamp_mv_in_range(MACROBLOCK *const x, int_mv *mv,
1178
0
                                     int ref_idx) {
1179
0
  const int_mv ref_mv = av1_get_ref_mv(x, ref_idx);
1180
0
  SubpelMvLimits mv_limits;
1181
1182
0
  av1_set_subpel_mv_search_range(&mv_limits, &x->mv_limits, &ref_mv.as_mv);
1183
0
  clamp_mv(&mv->as_mv, &mv_limits);
1184
0
}
1185
1186
static int64_t handle_newmv(const AV1_COMP *const cpi, MACROBLOCK *const x,
1187
                            const BLOCK_SIZE bsize, int_mv *cur_mv,
1188
                            int *const rate_mv, HandleInterModeArgs *const args,
1189
0
                            inter_mode_info *mode_info) {
1190
0
  MACROBLOCKD *const xd = &x->e_mbd;
1191
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
1192
0
  const int is_comp_pred = has_second_ref(mbmi);
1193
0
  const PREDICTION_MODE this_mode = mbmi->mode;
1194
0
  const int refs[2] = { mbmi->ref_frame[0],
1195
0
                        mbmi->ref_frame[1] < 0 ? 0 : mbmi->ref_frame[1] };
1196
0
  const int ref_mv_idx = mbmi->ref_mv_idx;
1197
1198
0
  if (is_comp_pred) {
1199
0
    const int valid_mv0 = args->single_newmv_valid[ref_mv_idx][refs[0]];
1200
0
    const int valid_mv1 = args->single_newmv_valid[ref_mv_idx][refs[1]];
1201
0
    if (this_mode == NEW_NEWMV) {
1202
0
      if (valid_mv0) {
1203
0
        cur_mv[0].as_int = args->single_newmv[ref_mv_idx][refs[0]].as_int;
1204
0
        clamp_mv_in_range(x, &cur_mv[0], 0);
1205
0
      }
1206
0
      if (valid_mv1) {
1207
0
        cur_mv[1].as_int = args->single_newmv[ref_mv_idx][refs[1]].as_int;
1208
0
        clamp_mv_in_range(x, &cur_mv[1], 1);
1209
0
      }
1210
0
      *rate_mv = 0;
1211
0
      for (int i = 0; i < 2; ++i) {
1212
0
        const int_mv ref_mv = av1_get_ref_mv(x, i);
1213
0
        *rate_mv += av1_mv_bit_cost(&cur_mv[i].as_mv, &ref_mv.as_mv,
1214
0
                                    x->mv_costs->nmv_joint_cost,
1215
0
                                    x->mv_costs->mv_cost_stack, MV_COST_WEIGHT);
1216
0
      }
1217
0
    } else if (this_mode == NEAREST_NEWMV || this_mode == NEAR_NEWMV) {
1218
0
      if (valid_mv1) {
1219
0
        cur_mv[1].as_int = args->single_newmv[ref_mv_idx][refs[1]].as_int;
1220
0
        clamp_mv_in_range(x, &cur_mv[1], 1);
1221
0
      }
1222
0
      const int_mv ref_mv = av1_get_ref_mv(x, 1);
1223
0
      *rate_mv = av1_mv_bit_cost(&cur_mv[1].as_mv, &ref_mv.as_mv,
1224
0
                                 x->mv_costs->nmv_joint_cost,
1225
0
                                 x->mv_costs->mv_cost_stack, MV_COST_WEIGHT);
1226
0
    } else {
1227
0
      assert(this_mode == NEW_NEARESTMV || this_mode == NEW_NEARMV);
1228
0
      if (valid_mv0) {
1229
0
        cur_mv[0].as_int = args->single_newmv[ref_mv_idx][refs[0]].as_int;
1230
0
        clamp_mv_in_range(x, &cur_mv[0], 0);
1231
0
      }
1232
0
      const int_mv ref_mv = av1_get_ref_mv(x, 0);
1233
0
      *rate_mv = av1_mv_bit_cost(&cur_mv[0].as_mv, &ref_mv.as_mv,
1234
0
                                 x->mv_costs->nmv_joint_cost,
1235
0
                                 x->mv_costs->mv_cost_stack, MV_COST_WEIGHT);
1236
0
    }
1237
0
  } else {
1238
    // Single ref case.
1239
0
    const int ref_idx = 0;
1240
0
    int search_range = INT_MAX;
1241
1242
0
    if (cpi->sf.mv_sf.reduce_search_range && mbmi->ref_mv_idx > 0) {
1243
0
      const MV ref_mv = av1_get_ref_mv(x, ref_idx).as_mv;
1244
0
      int min_mv_diff = INT_MAX;
1245
0
      int best_match = -1;
1246
0
      MV prev_ref_mv[2] = { { 0 } };
1247
0
      for (int idx = 0; idx < mbmi->ref_mv_idx; ++idx) {
1248
0
        prev_ref_mv[idx] = av1_get_ref_mv_from_stack(ref_idx, mbmi->ref_frame,
1249
0
                                                     idx, &x->mbmi_ext)
1250
0
                               .as_mv;
1251
0
        const int ref_mv_diff = AOMMAX(abs(ref_mv.row - prev_ref_mv[idx].row),
1252
0
                                       abs(ref_mv.col - prev_ref_mv[idx].col));
1253
1254
0
        if (min_mv_diff > ref_mv_diff) {
1255
0
          min_mv_diff = ref_mv_diff;
1256
0
          best_match = idx;
1257
0
        }
1258
0
      }
1259
1260
0
      if (min_mv_diff < (16 << 3)) {
1261
0
        if (args->single_newmv_valid[best_match][refs[0]]) {
1262
0
          search_range = min_mv_diff;
1263
0
          search_range +=
1264
0
              AOMMAX(abs(args->single_newmv[best_match][refs[0]].as_mv.row -
1265
0
                         prev_ref_mv[best_match].row),
1266
0
                     abs(args->single_newmv[best_match][refs[0]].as_mv.col -
1267
0
                         prev_ref_mv[best_match].col));
1268
          // Get full pixel search range.
1269
0
          search_range = (search_range + 4) >> 3;
1270
0
        }
1271
0
      }
1272
0
    }
1273
1274
0
    int_mv best_mv;
1275
0
    av1_single_motion_search(cpi, x, bsize, ref_idx, rate_mv, search_range,
1276
0
                             mode_info, &best_mv, args);
1277
0
    if (best_mv.as_int == INVALID_MV) return INT64_MAX;
1278
1279
0
    args->single_newmv[ref_mv_idx][refs[0]] = best_mv;
1280
0
    args->single_newmv_rate[ref_mv_idx][refs[0]] = *rate_mv;
1281
0
    args->single_newmv_valid[ref_mv_idx][refs[0]] = 1;
1282
0
    cur_mv[0].as_int = best_mv.as_int;
1283
1284
    // Return after single_newmv is set.
1285
0
    if (mode_info[mbmi->ref_mv_idx].skip) return INT64_MAX;
1286
0
  }
1287
1288
0
  return 0;
1289
0
}
1290
1291
static inline void update_mode_start_end_index(
1292
    const AV1_COMP *const cpi, const MB_MODE_INFO *const mbmi,
1293
    int *mode_index_start, int *mode_index_end, int last_motion_mode_allowed,
1294
0
    int interintra_allowed, int eval_motion_mode) {
1295
0
  *mode_index_start = (int)SIMPLE_TRANSLATION;
1296
0
  *mode_index_end = (int)last_motion_mode_allowed + interintra_allowed;
1297
0
  if (cpi->sf.winner_mode_sf.motion_mode_for_winner_cand) {
1298
0
    if (!eval_motion_mode) {
1299
0
      *mode_index_end = (int)SIMPLE_TRANSLATION;
1300
0
    } else {
1301
      // Set the start index appropriately to process motion modes other than
1302
      // simple translation
1303
0
      *mode_index_start = 1;
1304
0
    }
1305
0
  }
1306
0
  if (cpi->sf.inter_sf.extra_prune_warped && mbmi->bsize > BLOCK_16X16)
1307
0
    *mode_index_end = SIMPLE_TRANSLATION;
1308
0
}
1309
1310
// Scale rate, dist and sse of RD_STATS as per the given bias percentage
1311
0
static inline void scale_rdstats(RD_STATS *rd_stats, double rd_scale_pct) {
1312
0
  if (rd_stats == NULL) return;
1313
0
  rd_stats->rate += (int)(rd_scale_pct * rd_stats->rate + 0.5);
1314
0
  rd_stats->dist += (int64_t)(rd_scale_pct * rd_stats->dist + 0.5);
1315
0
  rd_stats->sse += (int64_t)(rd_scale_pct * rd_stats->sse + 0.5);
1316
0
  rd_stats->zero_rate += (int)(rd_scale_pct * rd_stats->zero_rate + 0.5);
1317
0
}
1318
1319
// Increase rate, distortion and SSE in RD_STATS structure of warp and obmc
1320
// motion modes for low complexity decoding.
1321
static inline void increase_motion_mode_rdstats(const AV1_COMP *cpi,
1322
                                                const MB_MODE_INFO *this_mbmi,
1323
                                                RD_STATS *rd_stats,
1324
                                                RD_STATS *rd_stats_y,
1325
0
                                                RD_STATS *rd_stats_uv) {
1326
0
  if (rd_stats->rate == INT_MAX ||
1327
0
      (rd_stats_y != NULL && rd_stats_y->rate == INT_MAX) ||
1328
0
      (rd_stats_uv != NULL && rd_stats_uv->rate == INT_MAX))
1329
0
    return;
1330
0
  const INTER_MODE_SPEED_FEATURES *const inter_sf = &cpi->sf.inter_sf;
1331
0
  double rd_bias_scale = 0.0;
1332
0
  if (this_mbmi->motion_mode == WARPED_CAUSAL) {
1333
0
    rd_bias_scale = inter_sf->bias_warp_mode_rd_scale_pct / 100.0;
1334
0
  } else if (this_mbmi->motion_mode == OBMC_CAUSAL) {
1335
0
    rd_bias_scale = inter_sf->bias_obmc_mode_rd_scale_pct / 100.0;
1336
0
  } else if (this_mbmi->mode == GLOBALMV ||
1337
0
             this_mbmi->mode == GLOBAL_GLOBALMV) {
1338
0
    rd_bias_scale = get_global_mv_mode_bias(cpi, this_mbmi);
1339
0
  }
1340
0
  if (rd_bias_scale <= 0.0) return;
1341
1342
0
  scale_rdstats(rd_stats, rd_bias_scale);
1343
0
  scale_rdstats(rd_stats_y, rd_bias_scale);
1344
0
  scale_rdstats(rd_stats_uv, rd_bias_scale);
1345
0
}
1346
1347
/*!\brief AV1 motion mode search
1348
 *
1349
 * \ingroup inter_mode_search
1350
 * Function to search over and determine the motion mode. It will update
1351
 * mbmi->motion_mode to one of SIMPLE_TRANSLATION, OBMC_CAUSAL, or
1352
 * WARPED_CAUSAL and determine any necessary side information for the selected
1353
 * motion mode. It will also perform the full transform search, unless the
1354
 * input parameter do_tx_search indicates to do an estimation of the RD rather
1355
 * than an RD corresponding to a full transform search. It will return the
1356
 * RD for the final motion_mode.
1357
 * Do the RD search for a given inter mode and compute all information relevant
1358
 * to the input mode. It will compute the best MV,
1359
 * compound parameters (if the mode is a compound mode) and interpolation filter
1360
 * parameters.
1361
 *
1362
 * \param[in]     cpi               Top-level encoder structure.
1363
 * \param[in]     tile_data         Pointer to struct holding adaptive
1364
 *                                  data/contexts/models for the tile during
1365
 *                                  encoding.
1366
 * \param[in]     x                 Pointer to struct holding all the data for
1367
 *                                  the current macroblock.
1368
 * \param[in]     bsize             Current block size.
1369
 * \param[in,out] rd_stats          Struct to keep track of the overall RD
1370
 *                                  information.
1371
 * \param[in,out] rd_stats_y        Struct to keep track of the RD information
1372
 *                                  for only the Y plane.
1373
 * \param[in,out] rd_stats_uv       Struct to keep track of the RD information
1374
 *                                  for only the UV planes.
1375
 * \param[in]     args              HandleInterModeArgs struct holding
1376
 *                                  miscellaneous arguments for inter mode
1377
 *                                  search. See the documentation for this
1378
 *                                  struct for a description of each member.
1379
 * \param[in]     ref_best_rd       Best RD found so far for this block.
1380
 *                                  It is used for early termination of this
1381
 *                                  search if the RD exceeds this value.
1382
 * \param[in,out] ref_skip_rd       A length 2 array, where skip_rd[0] is the
1383
 *                                  best total RD for a skip mode so far, and
1384
 *                                  skip_rd[1] is the best RD for a skip mode so
1385
 *                                  far in luma. This is used as a speed feature
1386
 *                                  to skip the transform search if the computed
1387
 *                                  skip RD for the current mode is not better
1388
 *                                  than the best skip_rd so far.
1389
 * \param[in,out] rate_mv           The rate associated with the motion vectors.
1390
 *                                  This will be modified if a motion search is
1391
 *                                  done in the motion mode search.
1392
 * \param[in,out] orig_dst          A prediction buffer to hold a computed
1393
 *                                  prediction. This will eventually hold the
1394
 *                                  final prediction, and the tmp_dst info will
1395
 *                                  be copied here.
1396
 * \param[in,out] best_est_rd       Estimated RD for motion mode search if
1397
 *                                  do_tx_search (see below) is 0.
1398
 * \param[in]     do_tx_search      Parameter to indicate whether or not to do
1399
 *                                  a full transform search. This will compute
1400
 *                                  an estimated RD for the modes without the
1401
 *                                  transform search and later perform the full
1402
 *                                  transform search on the best candidates.
1403
 * \param[in]     inter_modes_info  InterModesInfo struct to hold inter mode
1404
 *                                  information to perform a full transform
1405
 *                                  search only on winning candidates searched
1406
 *                                  with an estimate for transform coding RD.
1407
 * \param[in]     eval_motion_mode  Boolean whether or not to evaluate motion
1408
 *                                  motion modes other than SIMPLE_TRANSLATION.
1409
 * \param[out]    yrd               Stores the rdcost corresponding to encoding
1410
 *                                  the luma plane.
1411
 * \return Returns INT64_MAX if the determined motion mode is invalid and the
1412
 * current motion mode being tested should be skipped. It returns 0 if the
1413
 * motion mode search is a success.
1414
 */
1415
static int64_t motion_mode_rd(
1416
    const AV1_COMP *const cpi, TileDataEnc *tile_data, MACROBLOCK *const x,
1417
    BLOCK_SIZE bsize, RD_STATS *rd_stats, RD_STATS *rd_stats_y,
1418
    RD_STATS *rd_stats_uv, HandleInterModeArgs *const args, int64_t ref_best_rd,
1419
    int64_t *ref_skip_rd, int *rate_mv, const BUFFER_SET *orig_dst,
1420
    int64_t *best_est_rd, int do_tx_search, InterModesInfo *inter_modes_info,
1421
0
    int eval_motion_mode, int64_t *yrd) {
1422
0
  const AV1_COMMON *const cm = &cpi->common;
1423
0
  const FeatureFlags *const features = &cm->features;
1424
0
  TxfmSearchInfo *txfm_info = &x->txfm_search_info;
1425
0
  const int num_planes = av1_num_planes(cm);
1426
0
  MACROBLOCKD *xd = &x->e_mbd;
1427
0
  MB_MODE_INFO *mbmi = xd->mi[0];
1428
0
  const int is_comp_pred = has_second_ref(mbmi);
1429
0
  const PREDICTION_MODE this_mode = mbmi->mode;
1430
0
  const int rate2_nocoeff = rd_stats->rate;
1431
0
  int best_xskip_txfm = 0;
1432
0
  RD_STATS best_rd_stats, best_rd_stats_y, best_rd_stats_uv;
1433
0
  uint8_t best_tx_type_map[MAX_MIB_SIZE * MAX_MIB_SIZE];
1434
0
  const int rate_mv0 = *rate_mv;
1435
0
  const int interintra_allowed = cm->seq_params->enable_interintra_compound &&
1436
0
                                 is_interintra_allowed(mbmi) &&
1437
0
                                 mbmi->compound_idx;
1438
0
  WARP_SAMPLE_INFO *const warp_sample_info =
1439
0
      &x->warp_sample_info[mbmi->ref_frame[0]];
1440
0
  int *pts0 = warp_sample_info->pts;
1441
0
  int *pts_inref0 = warp_sample_info->pts_inref;
1442
1443
0
  assert(mbmi->ref_frame[1] != INTRA_FRAME);
1444
0
  const MV_REFERENCE_FRAME ref_frame_1 = mbmi->ref_frame[1];
1445
0
  av1_invalid_rd_stats(&best_rd_stats);
1446
0
  mbmi->num_proj_ref = 1;  // assume num_proj_ref >=1
1447
0
  MOTION_MODE last_motion_mode_allowed = SIMPLE_TRANSLATION;
1448
0
  *yrd = INT64_MAX;
1449
0
  if (features->switchable_motion_mode) {
1450
    // Determine which motion modes to search if more than SIMPLE_TRANSLATION
1451
    // is allowed.
1452
0
    last_motion_mode_allowed = motion_mode_allowed(
1453
0
        xd->global_motion, xd, mbmi, features->allow_warped_motion);
1454
0
  }
1455
1456
0
  if (last_motion_mode_allowed == WARPED_CAUSAL) {
1457
    // Collect projection samples used in least squares approximation of
1458
    // the warped motion parameters if WARPED_CAUSAL is going to be searched.
1459
0
    if (warp_sample_info->num < 0) {
1460
0
      warp_sample_info->num = av1_findSamples(cm, xd, pts0, pts_inref0);
1461
0
    }
1462
0
    mbmi->num_proj_ref = warp_sample_info->num;
1463
0
  }
1464
0
  const int total_samples = mbmi->num_proj_ref;
1465
0
  if (total_samples == 0) {
1466
    // Do not search WARPED_CAUSAL if there are no samples to use to determine
1467
    // warped parameters.
1468
0
    last_motion_mode_allowed = OBMC_CAUSAL;
1469
0
  }
1470
1471
0
  const MB_MODE_INFO base_mbmi = *mbmi;
1472
0
  MB_MODE_INFO best_mbmi;
1473
0
  const int interp_filter = features->interp_filter;
1474
0
  const int switchable_rate =
1475
0
      av1_is_interp_needed(xd)
1476
0
          ? av1_get_switchable_rate(x, xd, interp_filter,
1477
0
                                    cm->seq_params->enable_dual_filter)
1478
0
          : 0;
1479
0
  int64_t best_rd = INT64_MAX;
1480
0
  int best_rate_mv = rate_mv0;
1481
0
  const int mi_row = xd->mi_row;
1482
0
  const int mi_col = xd->mi_col;
1483
0
  int mode_index_start, mode_index_end;
1484
0
  const int txfm_rd_gate_level =
1485
0
      get_txfm_rd_gate_level(cm->seq_params->enable_masked_compound,
1486
0
                             cpi->sf.inter_sf.txfm_rd_gate_level, bsize,
1487
0
                             TX_SEARCH_MOTION_MODE, eval_motion_mode);
1488
1489
  // Modify the start and end index according to speed features. For example,
1490
  // if SIMPLE_TRANSLATION has already been searched according to
1491
  // the motion_mode_for_winner_cand speed feature, update the mode_index_start
1492
  // to avoid searching it again.
1493
0
  update_mode_start_end_index(cpi, mbmi, &mode_index_start, &mode_index_end,
1494
0
                              last_motion_mode_allowed, interintra_allowed,
1495
0
                              eval_motion_mode);
1496
  // Main function loop. This loops over all of the possible motion modes and
1497
  // computes RD to determine the best one. This process includes computing
1498
  // any necessary side information for the motion mode and performing the
1499
  // transform search.
1500
0
  for (int mode_index = mode_index_start; mode_index <= mode_index_end;
1501
0
       mode_index++) {
1502
0
    if (args->skip_motion_mode && mode_index) continue;
1503
0
    int tmp_rate2 = rate2_nocoeff;
1504
0
    const int is_interintra_mode = mode_index > (int)last_motion_mode_allowed;
1505
0
    int tmp_rate_mv = rate_mv0;
1506
1507
0
    *mbmi = base_mbmi;
1508
0
    if (is_interintra_mode) {
1509
      // Only use SIMPLE_TRANSLATION for interintra
1510
0
      mbmi->motion_mode = SIMPLE_TRANSLATION;
1511
0
    } else {
1512
0
      mbmi->motion_mode = (MOTION_MODE)mode_index;
1513
0
      assert(mbmi->ref_frame[1] != INTRA_FRAME);
1514
0
    }
1515
1516
0
    if (cpi->oxcf.algo_cfg.sharpness == 3 &&
1517
0
        (mbmi->motion_mode == OBMC_CAUSAL ||
1518
0
         mbmi->motion_mode == WARPED_CAUSAL))
1519
0
      continue;
1520
1521
    // Do not search OBMC if the probability of selecting it is below a
1522
    // predetermined threshold for this update_type and block size.
1523
0
    const FRAME_UPDATE_TYPE update_type =
1524
0
        get_frame_update_type(&cpi->ppi->gf_group, cpi->gf_frame_index);
1525
0
    int use_actual_frame_probs = 1;
1526
0
    int prune_obmc;
1527
#if CONFIG_FPMT_TEST
1528
    use_actual_frame_probs =
1529
        (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) ? 0 : 1;
1530
    if (!use_actual_frame_probs) {
1531
      prune_obmc = cpi->ppi->temp_frame_probs.obmc_probs[update_type][bsize] <
1532
                   cpi->sf.inter_sf.prune_obmc_prob_thresh;
1533
    }
1534
#endif
1535
0
    if (use_actual_frame_probs) {
1536
0
      prune_obmc = cpi->ppi->frame_probs.obmc_probs[update_type][bsize] <
1537
0
                   cpi->sf.inter_sf.prune_obmc_prob_thresh;
1538
0
    }
1539
0
    if ((!cpi->oxcf.motion_mode_cfg.enable_obmc || prune_obmc) &&
1540
0
        mbmi->motion_mode == OBMC_CAUSAL)
1541
0
      continue;
1542
1543
0
    if (mbmi->motion_mode == SIMPLE_TRANSLATION && !is_interintra_mode) {
1544
      // SIMPLE_TRANSLATION mode: no need to recalculate.
1545
      // The prediction is calculated before motion_mode_rd() is called in
1546
      // handle_inter_mode()
1547
0
    } else if (mbmi->motion_mode == OBMC_CAUSAL) {
1548
0
      const uint32_t cur_mv = mbmi->mv[0].as_int;
1549
      // OBMC_CAUSAL not allowed for compound prediction
1550
0
      assert(!is_comp_pred);
1551
0
      if (have_newmv_in_inter_mode(this_mode)) {
1552
0
        av1_single_motion_search(cpi, x, bsize, 0, &tmp_rate_mv, INT_MAX, NULL,
1553
0
                                 &mbmi->mv[0], NULL);
1554
0
        tmp_rate2 = rate2_nocoeff - rate_mv0 + tmp_rate_mv;
1555
0
      }
1556
0
      if ((mbmi->mv[0].as_int != cur_mv) || eval_motion_mode) {
1557
        // Build the predictor according to the current motion vector if it has
1558
        // not already been built
1559
0
        av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, orig_dst, bsize,
1560
0
                                      0, av1_num_planes(cm) - 1);
1561
0
      }
1562
      // Build the inter predictor by blending the predictor corresponding to
1563
      // this MV, and the neighboring blocks using the OBMC model
1564
0
      av1_build_obmc_inter_prediction(
1565
0
          cm, xd, args->above_pred_buf, args->above_pred_stride,
1566
0
          args->left_pred_buf, args->left_pred_stride);
1567
0
#if !CONFIG_REALTIME_ONLY
1568
0
    } else if (mbmi->motion_mode == WARPED_CAUSAL) {
1569
0
      int pts[SAMPLES_ARRAY_SIZE], pts_inref[SAMPLES_ARRAY_SIZE];
1570
0
      mbmi->motion_mode = WARPED_CAUSAL;
1571
0
      mbmi->wm_params.wmtype = DEFAULT_WMTYPE;
1572
0
      mbmi->interp_filters =
1573
0
          av1_broadcast_interp_filter(av1_unswitchable_filter(interp_filter));
1574
1575
0
      memcpy(pts, pts0, total_samples * 2 * sizeof(*pts0));
1576
0
      memcpy(pts_inref, pts_inref0, total_samples * 2 * sizeof(*pts_inref0));
1577
      // Select the samples according to motion vector difference
1578
0
      if (mbmi->num_proj_ref > 1) {
1579
0
        mbmi->num_proj_ref = av1_selectSamples(
1580
0
            &mbmi->mv[0].as_mv, pts, pts_inref, mbmi->num_proj_ref, bsize);
1581
0
      }
1582
1583
      // Compute the warped motion parameters with a least squares fit
1584
      //  using the collected samples
1585
0
      if (!av1_find_projection(mbmi->num_proj_ref, pts, pts_inref, bsize,
1586
0
                               mbmi->mv[0].as_mv.row, mbmi->mv[0].as_mv.col,
1587
0
                               &mbmi->wm_params, mi_row, mi_col)) {
1588
0
        assert(!is_comp_pred);
1589
0
        if (have_newmv_in_inter_mode(this_mode)) {
1590
          // Refine MV for NEWMV mode
1591
0
          const int_mv mv0 = mbmi->mv[0];
1592
0
          const WarpedMotionParams wm_params0 = mbmi->wm_params;
1593
0
          const int num_proj_ref0 = mbmi->num_proj_ref;
1594
1595
0
          const int_mv ref_mv = av1_get_ref_mv(x, 0);
1596
0
          SUBPEL_MOTION_SEARCH_PARAMS ms_params;
1597
0
          av1_make_default_subpel_ms_params(&ms_params, cpi, x, bsize,
1598
0
                                            &ref_mv.as_mv, NULL);
1599
1600
          // Refine MV in a small range.
1601
0
          av1_refine_warped_mv(xd, cm, &ms_params, bsize, pts0, pts_inref0,
1602
0
                               total_samples, cpi->sf.mv_sf.warp_search_method,
1603
0
                               cpi->sf.mv_sf.warp_search_iters);
1604
1605
0
          if (mv0.as_int != mbmi->mv[0].as_int) {
1606
            // Keep the refined MV and WM parameters.
1607
0
            tmp_rate_mv = av1_mv_bit_cost(
1608
0
                &mbmi->mv[0].as_mv, &ref_mv.as_mv, x->mv_costs->nmv_joint_cost,
1609
0
                x->mv_costs->mv_cost_stack, MV_COST_WEIGHT);
1610
0
            tmp_rate2 = rate2_nocoeff - rate_mv0 + tmp_rate_mv;
1611
0
          } else {
1612
            // Restore the old MV and WM parameters.
1613
0
            mbmi->mv[0] = mv0;
1614
0
            mbmi->wm_params = wm_params0;
1615
0
            mbmi->num_proj_ref = num_proj_ref0;
1616
0
          }
1617
0
        }
1618
1619
        // Build the warped predictor
1620
0
        av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, NULL, bsize, 0,
1621
0
                                      av1_num_planes(cm) - 1);
1622
0
      } else {
1623
0
        continue;
1624
0
      }
1625
0
#endif  // !CONFIG_REALTIME_ONLY
1626
0
    } else if (is_interintra_mode) {
1627
0
      const int ret =
1628
0
          av1_handle_inter_intra_mode(cpi, x, bsize, mbmi, args, ref_best_rd,
1629
0
                                      &tmp_rate_mv, &tmp_rate2, orig_dst);
1630
0
      if (ret < 0) continue;
1631
0
    }
1632
1633
    // If we are searching newmv and the mv is the same as refmv, skip the
1634
    // current mode
1635
0
    if (!av1_check_newmv_joint_nonzero(cm, x)) continue;
1636
1637
    // Update rd_stats for the current motion mode
1638
0
    txfm_info->skip_txfm = 0;
1639
0
    rd_stats->dist = 0;
1640
0
    rd_stats->sse = 0;
1641
0
    rd_stats->skip_txfm = 1;
1642
0
    rd_stats->rate = tmp_rate2;
1643
0
    const ModeCosts *mode_costs = &x->mode_costs;
1644
0
    if (mbmi->motion_mode != WARPED_CAUSAL) rd_stats->rate += switchable_rate;
1645
0
    if (interintra_allowed) {
1646
0
      rd_stats->rate +=
1647
0
          mode_costs->interintra_cost[size_group_lookup[bsize]]
1648
0
                                     [mbmi->ref_frame[1] == INTRA_FRAME];
1649
0
    }
1650
0
    if ((last_motion_mode_allowed > SIMPLE_TRANSLATION) &&
1651
0
        (mbmi->ref_frame[1] != INTRA_FRAME)) {
1652
0
      if (last_motion_mode_allowed == WARPED_CAUSAL) {
1653
0
        rd_stats->rate +=
1654
0
            mode_costs->motion_mode_cost[bsize][mbmi->motion_mode];
1655
0
      } else {
1656
0
        rd_stats->rate +=
1657
0
            mode_costs->motion_mode_cost1[bsize][mbmi->motion_mode];
1658
0
      }
1659
0
    }
1660
1661
0
    int64_t this_yrd = INT64_MAX;
1662
1663
0
    if (!do_tx_search) {
1664
      // Avoid doing a transform search here to speed up the overall mode
1665
      // search. It will be done later in the mode search if the current
1666
      // motion mode seems promising.
1667
0
      int64_t curr_sse = -1;
1668
0
      int64_t sse_y = -1;
1669
0
      int est_residue_cost = 0;
1670
0
      int64_t est_dist = 0;
1671
0
      int64_t est_rd = 0;
1672
0
      if (cpi->sf.inter_sf.inter_mode_rd_model_estimation == 1) {
1673
0
        curr_sse = get_sse(cpi, x, &sse_y);
1674
0
        const int has_est_rd = get_est_rate_dist(tile_data, bsize, curr_sse,
1675
0
                                                 &est_residue_cost, &est_dist);
1676
0
        (void)has_est_rd;
1677
0
        assert(has_est_rd);
1678
0
      } else if (cpi->sf.inter_sf.inter_mode_rd_model_estimation == 2 ||
1679
0
                 cpi->sf.rt_sf.use_nonrd_pick_mode) {
1680
0
        model_rd_sb_fn[MODELRD_TYPE_MOTION_MODE_RD](
1681
0
            cpi, bsize, x, xd, 0, num_planes - 1, &est_residue_cost, &est_dist,
1682
0
            NULL, &curr_sse, NULL, NULL, NULL);
1683
0
        sse_y = x->pred_sse[xd->mi[0]->ref_frame[0]];
1684
0
      }
1685
0
      est_rd = RDCOST(x->rdmult, rd_stats->rate + est_residue_cost, est_dist);
1686
0
      if (est_rd * 0.80 > *best_est_rd) {
1687
0
        mbmi->ref_frame[1] = ref_frame_1;
1688
0
        continue;
1689
0
      }
1690
0
      const int mode_rate = rd_stats->rate;
1691
0
      rd_stats->rate += est_residue_cost;
1692
0
      rd_stats->dist = est_dist;
1693
0
      rd_stats->rdcost = est_rd;
1694
0
      if (rd_stats->rdcost < *best_est_rd) {
1695
0
        *best_est_rd = rd_stats->rdcost;
1696
0
        assert(sse_y >= 0);
1697
0
        ref_skip_rd[1] = txfm_rd_gate_level
1698
0
                             ? RDCOST(x->rdmult, mode_rate, (sse_y << 4))
1699
0
                             : INT64_MAX;
1700
0
      }
1701
0
      if (cm->current_frame.reference_mode == SINGLE_REFERENCE) {
1702
0
        if (!is_comp_pred) {
1703
0
          assert(curr_sse >= 0);
1704
0
          inter_modes_info_push(inter_modes_info, mode_rate, curr_sse,
1705
0
                                rd_stats->rdcost, rd_stats, rd_stats_y,
1706
0
                                rd_stats_uv, mbmi);
1707
0
        }
1708
0
      } else {
1709
0
        assert(curr_sse >= 0);
1710
0
        inter_modes_info_push(inter_modes_info, mode_rate, curr_sse,
1711
0
                              rd_stats->rdcost, rd_stats, rd_stats_y,
1712
0
                              rd_stats_uv, mbmi);
1713
0
      }
1714
0
      mbmi->skip_txfm = 0;
1715
0
      increase_motion_mode_rdstats(cpi, mbmi, rd_stats, NULL, NULL);
1716
1717
0
    } else {
1718
      // Perform full transform search
1719
0
      int64_t skip_rd = INT64_MAX;
1720
0
      int64_t skip_rdy = INT64_MAX;
1721
0
      if (txfm_rd_gate_level) {
1722
        // Check if the mode is good enough based on skip RD
1723
0
        int64_t sse_y = INT64_MAX;
1724
0
        int64_t curr_sse = get_sse(cpi, x, &sse_y);
1725
0
        skip_rd = RDCOST(x->rdmult, rd_stats->rate, curr_sse);
1726
0
        skip_rdy = RDCOST(x->rdmult, rd_stats->rate, (sse_y << 4));
1727
0
        int eval_txfm = check_txfm_eval(x, bsize, ref_skip_rd[0], skip_rd,
1728
0
                                        txfm_rd_gate_level, 0);
1729
0
        if (!eval_txfm) continue;
1730
0
      }
1731
1732
      // Do transform search
1733
0
      const int mode_rate = rd_stats->rate;
1734
0
      if (!av1_txfm_search(cpi, x, bsize, rd_stats, rd_stats_y, rd_stats_uv,
1735
0
                           rd_stats->rate, ref_best_rd)) {
1736
0
        if (rd_stats_y->rate == INT_MAX && mode_index == 0) {
1737
0
          return INT64_MAX;
1738
0
        }
1739
0
        continue;
1740
0
      }
1741
0
      const int skip_ctx = av1_get_skip_txfm_context(xd);
1742
0
      const int *skip_txfm_cost_ptr = mode_costs->skip_txfm_cost[skip_ctx];
1743
1744
0
      if (cpi->sf.inter_sf.inter_mode_rd_model_estimation == 1) {
1745
0
        inter_mode_data_push(tile_data, mbmi->bsize, rd_stats->sse,
1746
0
                             rd_stats->dist,
1747
0
                             rd_stats_y->rate + rd_stats_uv->rate +
1748
0
                                 skip_txfm_cost_ptr[mbmi->skip_txfm]);
1749
0
      }
1750
      // Scale RD_STATS after mode stats are collected. Thus unscaled metrics
1751
      // are used for model generation
1752
0
      increase_motion_mode_rdstats(cpi, mbmi, rd_stats, rd_stats_y,
1753
0
                                   rd_stats_uv);
1754
0
      const int skip_rate =
1755
0
          rd_stats->skip_txfm ? skip_txfm_cost_ptr[1] : skip_txfm_cost_ptr[0];
1756
1757
0
      const int32_t scaled_skip_rate =
1758
0
          increase_motion_mode_rate(cpi, mbmi, skip_rate);
1759
0
      const int y_rate =
1760
0
          scaled_skip_rate + (rd_stats->skip_txfm ? 0 : rd_stats_y->rate);
1761
0
      this_yrd = RDCOST(x->rdmult, y_rate + mode_rate, rd_stats_y->dist);
1762
1763
0
      const int64_t curr_rd = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
1764
0
      if (curr_rd < ref_best_rd) {
1765
0
        ref_best_rd = curr_rd;
1766
0
        ref_skip_rd[0] = skip_rd;
1767
0
        ref_skip_rd[1] = skip_rdy;
1768
0
      }
1769
0
    }
1770
1771
0
    if (this_mode == GLOBALMV || this_mode == GLOBAL_GLOBALMV) {
1772
0
      if (is_nontrans_global_motion(xd, xd->mi[0])) {
1773
0
        mbmi->interp_filters =
1774
0
            av1_broadcast_interp_filter(av1_unswitchable_filter(interp_filter));
1775
0
      }
1776
0
    }
1777
1778
0
    if (this_yrd < INT64_MAX) {
1779
0
      adjust_cost(cpi, x, &this_yrd, /*is_inter_pred=*/true);
1780
0
    }
1781
0
    adjust_rdcost(cpi, x, rd_stats, /*is_inter_pred=*/true);
1782
    // Bug 494653438: If do_tx_search is 0, rd_stats_y is uninitialized, so
1783
    // valgrind will warn if we use rd_stats_y->rdcost in a conditional.
1784
0
    if (!do_tx_search || rd_stats_y->rdcost < INT64_MAX) {
1785
0
      adjust_rdcost(cpi, x, rd_stats_y, /*is_inter_pred=*/true);
1786
0
    }
1787
1788
0
    const int64_t tmp_rd = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
1789
0
    if (mode_index == 0) {
1790
0
      args->simple_rd[this_mode][mbmi->ref_mv_idx][mbmi->ref_frame[0]] = tmp_rd;
1791
0
    }
1792
0
    if (mode_index == 0 || tmp_rd < best_rd) {
1793
      // Update best_rd data if this is the best motion mode so far
1794
0
      best_mbmi = *mbmi;
1795
0
      best_rd = tmp_rd;
1796
0
      best_rd_stats = *rd_stats;
1797
0
      best_rd_stats_y = *rd_stats_y;
1798
0
      best_rate_mv = tmp_rate_mv;
1799
0
      *yrd = this_yrd;
1800
0
      if (num_planes > 1) best_rd_stats_uv = *rd_stats_uv;
1801
0
      av1_copy_array(best_tx_type_map, xd->tx_type_map, xd->height * xd->width);
1802
0
      best_xskip_txfm = mbmi->skip_txfm;
1803
0
    }
1804
0
  }
1805
  // Update RD and mbmi stats for selected motion mode
1806
0
  mbmi->ref_frame[1] = ref_frame_1;
1807
0
  *rate_mv = best_rate_mv;
1808
0
  if (best_rd == INT64_MAX || !av1_check_newmv_joint_nonzero(cm, x)) {
1809
0
    av1_invalid_rd_stats(rd_stats);
1810
0
    restore_dst_buf(xd, *orig_dst, num_planes);
1811
0
    return INT64_MAX;
1812
0
  }
1813
0
  *mbmi = best_mbmi;
1814
0
  *rd_stats = best_rd_stats;
1815
0
  *rd_stats_y = best_rd_stats_y;
1816
0
  if (num_planes > 1) *rd_stats_uv = best_rd_stats_uv;
1817
0
  av1_copy_array(xd->tx_type_map, best_tx_type_map, xd->height * xd->width);
1818
0
  txfm_info->skip_txfm = best_xskip_txfm;
1819
1820
0
  restore_dst_buf(xd, *orig_dst, num_planes);
1821
0
  return 0;
1822
0
}
1823
1824
static int64_t skip_mode_rd(RD_STATS *rd_stats, const AV1_COMP *const cpi,
1825
                            MACROBLOCK *const x, BLOCK_SIZE bsize,
1826
0
                            const BUFFER_SET *const orig_dst, int64_t best_rd) {
1827
0
  assert(bsize < BLOCK_SIZES_ALL);
1828
0
  const AV1_COMMON *cm = &cpi->common;
1829
0
  const int num_planes = av1_num_planes(cm);
1830
0
  MACROBLOCKD *const xd = &x->e_mbd;
1831
0
  const int mi_row = xd->mi_row;
1832
0
  const int mi_col = xd->mi_col;
1833
0
  int64_t total_sse = 0;
1834
0
  int64_t this_rd = INT64_MAX;
1835
0
  const int skip_mode_ctx = av1_get_skip_mode_context(xd);
1836
0
  rd_stats->rate = x->mode_costs.skip_mode_cost[skip_mode_ctx][1];
1837
1838
0
  for (int plane = 0; plane < num_planes; ++plane) {
1839
    // Call av1_enc_build_inter_predictor() for one plane at a time.
1840
0
    av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, orig_dst, bsize,
1841
0
                                  plane, plane);
1842
0
    const struct macroblockd_plane *const pd = &xd->plane[plane];
1843
0
    const BLOCK_SIZE plane_bsize =
1844
0
        get_plane_block_size(bsize, pd->subsampling_x, pd->subsampling_y);
1845
1846
0
    av1_subtract_plane(x, plane_bsize, plane, cpi->do_border_pad);
1847
1848
0
    int64_t sse =
1849
0
        av1_pixel_diff_dist(x, plane, 0, 0, plane_bsize, plane_bsize, NULL);
1850
0
    if (is_cur_buf_hbd(xd)) sse = ROUND_POWER_OF_TWO(sse, (xd->bd - 8) * 2);
1851
0
    sse <<= 4;
1852
0
    total_sse += sse;
1853
    // When current rd cost is more than the best rd, skip evaluation of
1854
    // remaining planes.
1855
0
    this_rd = RDCOST(x->rdmult, rd_stats->rate, total_sse);
1856
0
    if (this_rd > best_rd) break;
1857
0
  }
1858
1859
0
  rd_stats->dist = rd_stats->sse = total_sse;
1860
0
  rd_stats->rdcost = this_rd;
1861
1862
0
  restore_dst_buf(xd, *orig_dst, num_planes);
1863
0
  return 0;
1864
0
}
1865
1866
// Check NEARESTMV, NEARMV, GLOBALMV ref mvs for duplicate and skip the relevant
1867
// mode
1868
// Note(rachelbarker): This speed feature currently does not interact correctly
1869
// with global motion. The issue is that, when global motion is used, GLOBALMV
1870
// produces a different prediction to NEARESTMV/NEARMV even if the motion
1871
// vectors are the same. Thus GLOBALMV should not be pruned in this case.
1872
static inline int check_repeat_ref_mv(const MB_MODE_INFO_EXT *mbmi_ext,
1873
                                      int ref_idx,
1874
                                      const MV_REFERENCE_FRAME *ref_frame,
1875
0
                                      PREDICTION_MODE single_mode) {
1876
0
  const uint8_t ref_frame_type = av1_ref_frame_type(ref_frame);
1877
0
  const int ref_mv_count = mbmi_ext->ref_mv_count[ref_frame_type];
1878
0
  assert(single_mode != NEWMV);
1879
0
  if (single_mode == NEARESTMV) {
1880
0
    return 0;
1881
0
  } else if (single_mode == NEARMV) {
1882
    // when ref_mv_count = 0, NEARESTMV and NEARMV are same as GLOBALMV
1883
    // when ref_mv_count = 1, NEARMV is same as GLOBALMV
1884
0
    if (ref_mv_count < 2) return 1;
1885
0
  } else if (single_mode == GLOBALMV) {
1886
    // when ref_mv_count == 0, GLOBALMV is same as NEARESTMV
1887
0
    if (ref_mv_count == 0) return 1;
1888
    // when ref_mv_count == 1, NEARMV is same as GLOBALMV
1889
0
    else if (ref_mv_count == 1)
1890
0
      return 0;
1891
1892
0
    int stack_size = AOMMIN(USABLE_REF_MV_STACK_SIZE, ref_mv_count);
1893
    // Check GLOBALMV is matching with any mv in ref_mv_stack
1894
0
    for (int ref_mv_idx = 0; ref_mv_idx < stack_size; ref_mv_idx++) {
1895
0
      int_mv this_mv;
1896
1897
0
      if (ref_idx == 0)
1898
0
        this_mv = mbmi_ext->ref_mv_stack[ref_frame_type][ref_mv_idx].this_mv;
1899
0
      else
1900
0
        this_mv = mbmi_ext->ref_mv_stack[ref_frame_type][ref_mv_idx].comp_mv;
1901
1902
0
      if (this_mv.as_int == mbmi_ext->global_mvs[ref_frame[ref_idx]].as_int)
1903
0
        return 1;
1904
0
    }
1905
0
  }
1906
0
  return 0;
1907
0
}
1908
1909
static inline int get_this_mv(int_mv *this_mv, PREDICTION_MODE this_mode,
1910
                              int ref_idx, int ref_mv_idx,
1911
                              int skip_repeated_ref_mv,
1912
                              const MV_REFERENCE_FRAME *ref_frame,
1913
0
                              const MB_MODE_INFO_EXT *mbmi_ext) {
1914
0
  const PREDICTION_MODE single_mode = get_single_mode(this_mode, ref_idx);
1915
0
  assert(is_inter_singleref_mode(single_mode));
1916
0
  if (single_mode == NEWMV) {
1917
0
    this_mv->as_int = INVALID_MV;
1918
0
  } else if (single_mode == GLOBALMV) {
1919
0
    if (skip_repeated_ref_mv &&
1920
0
        check_repeat_ref_mv(mbmi_ext, ref_idx, ref_frame, single_mode))
1921
0
      return 0;
1922
0
    *this_mv = mbmi_ext->global_mvs[ref_frame[ref_idx]];
1923
0
  } else {
1924
0
    assert(single_mode == NEARMV || single_mode == NEARESTMV);
1925
0
    const uint8_t ref_frame_type = av1_ref_frame_type(ref_frame);
1926
0
    const int ref_mv_offset = single_mode == NEARESTMV ? 0 : ref_mv_idx + 1;
1927
0
    if (ref_mv_offset < mbmi_ext->ref_mv_count[ref_frame_type]) {
1928
0
      assert(ref_mv_offset >= 0);
1929
0
      if (ref_idx == 0) {
1930
0
        *this_mv =
1931
0
            mbmi_ext->ref_mv_stack[ref_frame_type][ref_mv_offset].this_mv;
1932
0
      } else {
1933
0
        *this_mv =
1934
0
            mbmi_ext->ref_mv_stack[ref_frame_type][ref_mv_offset].comp_mv;
1935
0
      }
1936
0
    } else {
1937
0
      if (skip_repeated_ref_mv &&
1938
0
          check_repeat_ref_mv(mbmi_ext, ref_idx, ref_frame, single_mode))
1939
0
        return 0;
1940
0
      *this_mv = mbmi_ext->global_mvs[ref_frame[ref_idx]];
1941
0
    }
1942
0
  }
1943
0
  return 1;
1944
0
}
1945
1946
// Skip NEARESTMV and NEARMV modes based on refmv weight computed in ref mv list
1947
// population
1948
static inline int skip_nearest_near_mv_using_refmv_weight(
1949
    const MACROBLOCK *const x, const PREDICTION_MODE this_mode,
1950
0
    const int8_t ref_frame_type, PREDICTION_MODE best_mode) {
1951
0
  if (this_mode != NEARESTMV && this_mode != NEARMV) return 0;
1952
  // Do not skip the mode if the current block has not yet obtained a valid
1953
  // inter mode.
1954
0
  if (!is_inter_mode(best_mode)) return 0;
1955
1956
0
  const MACROBLOCKD *xd = &x->e_mbd;
1957
  // Do not skip the mode if both the top and left neighboring blocks are not
1958
  // available.
1959
0
  if (!xd->left_available || !xd->up_available) return 0;
1960
0
  const MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
1961
0
  const uint16_t *const ref_mv_weight = mbmi_ext->weight[ref_frame_type];
1962
0
  const int ref_mv_count =
1963
0
      AOMMIN(MAX_REF_MV_SEARCH, mbmi_ext->ref_mv_count[ref_frame_type]);
1964
1965
0
  if (ref_mv_count == 0) return 0;
1966
  // If ref mv list has at least one nearest candidate do not prune NEARESTMV
1967
0
  if (this_mode == NEARESTMV && ref_mv_weight[0] >= REF_CAT_LEVEL) return 0;
1968
1969
  // Count number of ref mvs populated from nearest candidates
1970
0
  int nearest_refmv_count = 0;
1971
0
  for (int ref_mv_idx = 0; ref_mv_idx < ref_mv_count; ref_mv_idx++) {
1972
0
    if (ref_mv_weight[ref_mv_idx] >= REF_CAT_LEVEL) nearest_refmv_count++;
1973
0
  }
1974
1975
  // nearest_refmv_count indicates the closeness of block motion characteristics
1976
  // with respect to its spatial neighbor. Smaller value of nearest_refmv_count
1977
  // w.r.t to ref_mv_count means less correlation with its spatial neighbors.
1978
  // Hence less possibility for NEARESTMV and NEARMV modes becoming the best
1979
  // mode since these modes work well for blocks that shares similar motion
1980
  // characteristics with its neighbor. Thus, NEARMV mode is pruned when
1981
  // nearest_refmv_count is relatively smaller than ref_mv_count and NEARESTMV
1982
  // mode is pruned if none of the ref mvs are populated from nearest candidate.
1983
0
  const int prune_thresh = 1 + (ref_mv_count >= 2);
1984
0
  if (nearest_refmv_count < prune_thresh) return 1;
1985
0
  return 0;
1986
0
}
1987
1988
// This function update the non-new mv for the current prediction mode
1989
static inline int build_cur_mv(int_mv *cur_mv, PREDICTION_MODE this_mode,
1990
                               const AV1_COMMON *cm, const MACROBLOCK *x,
1991
0
                               int skip_repeated_ref_mv) {
1992
0
  const MACROBLOCKD *xd = &x->e_mbd;
1993
0
  const MB_MODE_INFO *mbmi = xd->mi[0];
1994
0
  const int is_comp_pred = has_second_ref(mbmi);
1995
1996
0
  int ret = 1;
1997
0
  for (int i = 0; i < is_comp_pred + 1; ++i) {
1998
0
    int_mv this_mv;
1999
0
    this_mv.as_int = INVALID_MV;
2000
0
    ret = get_this_mv(&this_mv, this_mode, i, mbmi->ref_mv_idx,
2001
0
                      skip_repeated_ref_mv, mbmi->ref_frame, &x->mbmi_ext);
2002
0
    if (!ret) return 0;
2003
0
    const PREDICTION_MODE single_mode = get_single_mode(this_mode, i);
2004
0
    if (single_mode == NEWMV) {
2005
0
      const uint8_t ref_frame_type = av1_ref_frame_type(mbmi->ref_frame);
2006
0
      cur_mv[i] =
2007
0
          (i == 0) ? x->mbmi_ext.ref_mv_stack[ref_frame_type][mbmi->ref_mv_idx]
2008
0
                         .this_mv
2009
0
                   : x->mbmi_ext.ref_mv_stack[ref_frame_type][mbmi->ref_mv_idx]
2010
0
                         .comp_mv;
2011
0
    } else {
2012
0
      ret &= clamp_and_check_mv(cur_mv + i, this_mv, cm, x);
2013
0
    }
2014
0
  }
2015
0
  return ret;
2016
0
}
2017
2018
static inline int get_drl_cost(const MB_MODE_INFO *mbmi,
2019
                               const MB_MODE_INFO_EXT *mbmi_ext,
2020
                               const int (*const drl_mode_cost0)[2],
2021
0
                               int8_t ref_frame_type) {
2022
0
  int cost = 0;
2023
0
  if (mbmi->mode == NEWMV || mbmi->mode == NEW_NEWMV) {
2024
0
    for (int idx = 0; idx < 2; ++idx) {
2025
0
      if (mbmi_ext->ref_mv_count[ref_frame_type] > idx + 1) {
2026
0
        uint8_t drl_ctx = av1_drl_ctx(mbmi_ext->weight[ref_frame_type], idx);
2027
0
        cost += drl_mode_cost0[drl_ctx][mbmi->ref_mv_idx != idx];
2028
0
        if (mbmi->ref_mv_idx == idx) return cost;
2029
0
      }
2030
0
    }
2031
0
    return cost;
2032
0
  }
2033
2034
0
  if (have_nearmv_in_inter_mode(mbmi->mode)) {
2035
0
    for (int idx = 1; idx < 3; ++idx) {
2036
0
      if (mbmi_ext->ref_mv_count[ref_frame_type] > idx + 1) {
2037
0
        uint8_t drl_ctx = av1_drl_ctx(mbmi_ext->weight[ref_frame_type], idx);
2038
0
        cost += drl_mode_cost0[drl_ctx][mbmi->ref_mv_idx != (idx - 1)];
2039
0
        if (mbmi->ref_mv_idx == (idx - 1)) return cost;
2040
0
      }
2041
0
    }
2042
0
    return cost;
2043
0
  }
2044
0
  return cost;
2045
0
}
2046
2047
static inline int is_single_newmv_valid(const HandleInterModeArgs *const args,
2048
                                        const MB_MODE_INFO *const mbmi,
2049
0
                                        PREDICTION_MODE this_mode) {
2050
0
  for (int ref_idx = 0; ref_idx < 2; ++ref_idx) {
2051
0
    const PREDICTION_MODE single_mode = get_single_mode(this_mode, ref_idx);
2052
0
    const MV_REFERENCE_FRAME ref = mbmi->ref_frame[ref_idx];
2053
0
    if (single_mode == NEWMV &&
2054
0
        args->single_newmv_valid[mbmi->ref_mv_idx][ref] == 0) {
2055
0
      return 0;
2056
0
    }
2057
0
  }
2058
0
  return 1;
2059
0
}
2060
2061
static int get_drl_refmv_count(const MACROBLOCK *const x,
2062
                               const MV_REFERENCE_FRAME *ref_frame,
2063
0
                               PREDICTION_MODE mode) {
2064
0
  const MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
2065
0
  const int8_t ref_frame_type = av1_ref_frame_type(ref_frame);
2066
0
  const int has_nearmv = have_nearmv_in_inter_mode(mode) ? 1 : 0;
2067
0
  const int ref_mv_count = mbmi_ext->ref_mv_count[ref_frame_type];
2068
0
  const int only_newmv = (mode == NEWMV || mode == NEW_NEWMV);
2069
0
  const int has_drl =
2070
0
      (has_nearmv && ref_mv_count > 2) || (only_newmv && ref_mv_count > 1);
2071
0
  const int ref_set =
2072
0
      has_drl ? AOMMIN(MAX_REF_MV_SEARCH, ref_mv_count - has_nearmv) : 1;
2073
2074
0
  return ref_set;
2075
0
}
2076
2077
// Checks if particular ref_mv_idx should be pruned.
2078
static int prune_ref_mv_idx_using_qindex(const int reduce_inter_modes,
2079
                                         const int qindex,
2080
0
                                         const int ref_mv_idx) {
2081
0
  if (reduce_inter_modes >= 3) return 1;
2082
  // Q-index logic based pruning is enabled only for
2083
  // reduce_inter_modes = 2.
2084
0
  assert(reduce_inter_modes == 2);
2085
  // When reduce_inter_modes=2, pruning happens as below based on q index.
2086
  // For q index range between 0 and 85: prune if ref_mv_idx >= 1.
2087
  // For q index range between 86 and 170: prune if ref_mv_idx == 2.
2088
  // For q index range between 171 and 255: no pruning.
2089
0
  const int min_prune_ref_mv_idx = (qindex * 3 / QINDEX_RANGE) + 1;
2090
0
  return (ref_mv_idx >= min_prune_ref_mv_idx);
2091
0
}
2092
2093
// Whether this reference motion vector can be skipped, based on initial
2094
// heuristics.
2095
static bool ref_mv_idx_early_breakout(
2096
    const SPEED_FEATURES *const sf,
2097
    const RefFrameDistanceInfo *const ref_frame_dist_info, MACROBLOCK *x,
2098
    const HandleInterModeArgs *const args, int64_t ref_best_rd,
2099
0
    int ref_mv_idx) {
2100
0
  MACROBLOCKD *xd = &x->e_mbd;
2101
0
  MB_MODE_INFO *mbmi = xd->mi[0];
2102
0
  const MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
2103
0
  const int8_t ref_frame_type = av1_ref_frame_type(mbmi->ref_frame);
2104
0
  const int is_comp_pred = has_second_ref(mbmi);
2105
0
  if (sf->inter_sf.reduce_inter_modes && ref_mv_idx > 0) {
2106
0
    if (mbmi->ref_frame[0] == LAST2_FRAME ||
2107
0
        mbmi->ref_frame[0] == LAST3_FRAME ||
2108
0
        mbmi->ref_frame[1] == LAST2_FRAME ||
2109
0
        mbmi->ref_frame[1] == LAST3_FRAME) {
2110
0
      const int has_nearmv = have_nearmv_in_inter_mode(mbmi->mode) ? 1 : 0;
2111
0
      if (mbmi_ext->weight[ref_frame_type][ref_mv_idx + has_nearmv] <
2112
0
          REF_CAT_LEVEL) {
2113
0
        return true;
2114
0
      }
2115
0
    }
2116
    // TODO(any): Experiment with reduce_inter_modes for compound prediction
2117
0
    if (sf->inter_sf.reduce_inter_modes >= 2 && !is_comp_pred &&
2118
0
        have_newmv_in_inter_mode(mbmi->mode)) {
2119
0
      if (mbmi->ref_frame[0] != ref_frame_dist_info->nearest_past_ref &&
2120
0
          mbmi->ref_frame[0] != ref_frame_dist_info->nearest_future_ref) {
2121
0
        const int has_nearmv = have_nearmv_in_inter_mode(mbmi->mode) ? 1 : 0;
2122
0
        const int do_prune = prune_ref_mv_idx_using_qindex(
2123
0
            sf->inter_sf.reduce_inter_modes, x->qindex, ref_mv_idx);
2124
0
        if (do_prune &&
2125
0
            (mbmi_ext->weight[ref_frame_type][ref_mv_idx + has_nearmv] <
2126
0
             REF_CAT_LEVEL)) {
2127
0
          return true;
2128
0
        }
2129
0
      }
2130
0
    }
2131
0
  }
2132
2133
0
  mbmi->ref_mv_idx = ref_mv_idx;
2134
0
  if (is_comp_pred && (!is_single_newmv_valid(args, mbmi, mbmi->mode))) {
2135
0
    return true;
2136
0
  }
2137
0
  size_t est_rd_rate = args->ref_frame_cost + args->single_comp_cost;
2138
0
  const int drl_cost = get_drl_cost(
2139
0
      mbmi, mbmi_ext, x->mode_costs.drl_mode_cost0, ref_frame_type);
2140
0
  est_rd_rate += drl_cost;
2141
0
  if (RDCOST(x->rdmult, est_rd_rate, 0) > ref_best_rd &&
2142
0
      mbmi->mode != NEARESTMV && mbmi->mode != NEAREST_NEARESTMV) {
2143
0
    return true;
2144
0
  }
2145
0
  return false;
2146
0
}
2147
2148
// Compute the estimated RD cost for the motion vector with simple translation.
2149
static int64_t simple_translation_pred_rd(AV1_COMP *const cpi, MACROBLOCK *x,
2150
                                          HandleInterModeArgs *args,
2151
                                          int ref_mv_idx, int64_t ref_best_rd,
2152
0
                                          BLOCK_SIZE bsize) {
2153
0
  MACROBLOCKD *xd = &x->e_mbd;
2154
0
  MB_MODE_INFO *mbmi = xd->mi[0];
2155
0
  MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
2156
0
  const int8_t ref_frame_type = av1_ref_frame_type(mbmi->ref_frame);
2157
0
  const AV1_COMMON *cm = &cpi->common;
2158
0
  const int is_comp_pred = has_second_ref(mbmi);
2159
0
  const ModeCosts *mode_costs = &x->mode_costs;
2160
2161
0
  struct macroblockd_plane *p = xd->plane;
2162
0
  const BUFFER_SET orig_dst = {
2163
0
    { p[0].dst.buf, p[1].dst.buf, p[2].dst.buf },
2164
0
    { p[0].dst.stride, p[1].dst.stride, p[2].dst.stride },
2165
0
  };
2166
0
  RD_STATS rd_stats;
2167
0
  av1_init_rd_stats(&rd_stats);
2168
2169
0
  mbmi->interinter_comp.type = COMPOUND_AVERAGE;
2170
0
  mbmi->comp_group_idx = 0;
2171
0
  mbmi->compound_idx = 1;
2172
0
  if (mbmi->ref_frame[1] == INTRA_FRAME) {
2173
0
    mbmi->ref_frame[1] = NONE_FRAME;
2174
0
  }
2175
0
  int16_t mode_ctx =
2176
0
      av1_mode_context_analyzer(mbmi_ext->mode_context, mbmi->ref_frame);
2177
2178
0
  mbmi->num_proj_ref = 0;
2179
0
  mbmi->motion_mode = SIMPLE_TRANSLATION;
2180
0
  mbmi->ref_mv_idx = ref_mv_idx;
2181
2182
0
  rd_stats.rate += args->ref_frame_cost + args->single_comp_cost;
2183
0
  const int drl_cost =
2184
0
      get_drl_cost(mbmi, mbmi_ext, mode_costs->drl_mode_cost0, ref_frame_type);
2185
0
  rd_stats.rate += drl_cost;
2186
2187
0
  int_mv cur_mv[2];
2188
0
  if (!build_cur_mv(cur_mv, mbmi->mode, cm, x, 0)) {
2189
0
    return INT64_MAX;
2190
0
  }
2191
0
  assert(have_nearmv_in_inter_mode(mbmi->mode));
2192
0
  for (int i = 0; i < is_comp_pred + 1; ++i) {
2193
0
    mbmi->mv[i].as_int = cur_mv[i].as_int;
2194
0
  }
2195
0
  const int ref_mv_cost = cost_mv_ref(mode_costs, mbmi->mode, mode_ctx);
2196
0
  rd_stats.rate += ref_mv_cost;
2197
2198
0
  if (RDCOST(x->rdmult, rd_stats.rate, 0) > ref_best_rd) {
2199
0
    return INT64_MAX;
2200
0
  }
2201
2202
0
  mbmi->motion_mode = SIMPLE_TRANSLATION;
2203
0
  mbmi->num_proj_ref = 0;
2204
0
  if (is_comp_pred) {
2205
    // Only compound_average
2206
0
    mbmi->interinter_comp.type = COMPOUND_AVERAGE;
2207
0
    mbmi->comp_group_idx = 0;
2208
0
    mbmi->compound_idx = 1;
2209
0
  }
2210
0
  set_default_interp_filters(mbmi, cm->features.interp_filter);
2211
2212
0
  const int mi_row = xd->mi_row;
2213
0
  const int mi_col = xd->mi_col;
2214
0
  av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, &orig_dst, bsize,
2215
0
                                AOM_PLANE_Y, AOM_PLANE_Y);
2216
0
  int est_rate;
2217
0
  int64_t est_dist;
2218
0
  model_rd_sb_fn[MODELRD_CURVFIT](cpi, bsize, x, xd, 0, 0, &est_rate, &est_dist,
2219
0
                                  NULL, NULL, NULL, NULL, NULL);
2220
0
  return RDCOST(x->rdmult, rd_stats.rate + est_rate, est_dist);
2221
0
}
2222
2223
// Represents a set of integers, from 0 to sizeof(int) * 8, as bits in
2224
// an integer. 0 for the i-th bit means that integer is excluded, 1 means
2225
// it is included.
2226
0
static inline void mask_set_bit(int *mask, int index) { *mask |= (1 << index); }
2227
2228
0
static inline bool mask_check_bit(int mask, int index) {
2229
0
  return (mask >> index) & 0x1;
2230
0
}
2231
2232
// Before performing the full MV search in handle_inter_mode, do a simple
2233
// translation search and see if we can eliminate any motion vectors.
2234
// Returns an integer where, if the i-th bit is set, it means that the i-th
2235
// motion vector should be searched. This is only set for NEAR_MV.
2236
static int ref_mv_idx_to_search(AV1_COMP *const cpi, MACROBLOCK *x,
2237
                                HandleInterModeArgs *const args,
2238
                                int64_t ref_best_rd, BLOCK_SIZE bsize,
2239
0
                                const int ref_set) {
2240
  // If the number of ref mv count is equal to 1, do not prune the same. It
2241
  // is better to evaluate the same than to prune it.
2242
0
  if (ref_set == 1) return 1;
2243
0
  AV1_COMMON *const cm = &cpi->common;
2244
0
  const MACROBLOCKD *const xd = &x->e_mbd;
2245
0
  const MB_MODE_INFO *const mbmi = xd->mi[0];
2246
0
  const PREDICTION_MODE this_mode = mbmi->mode;
2247
2248
  // Only search indices if they have some chance of being good.
2249
0
  int good_indices = 0;
2250
0
  for (int i = 0; i < ref_set; ++i) {
2251
0
    if (ref_mv_idx_early_breakout(&cpi->sf, &cpi->ref_frame_dist_info, x, args,
2252
0
                                  ref_best_rd, i)) {
2253
0
      continue;
2254
0
    }
2255
0
    mask_set_bit(&good_indices, i);
2256
0
  }
2257
2258
  // Only prune in NEARMV mode, if the speed feature is set, and the block size
2259
  // is large enough. If these conditions are not met, return all good indices
2260
  // found so far.
2261
0
  if (!cpi->sf.inter_sf.prune_mode_search_simple_translation)
2262
0
    return good_indices;
2263
0
  if (!have_nearmv_in_inter_mode(this_mode)) return good_indices;
2264
0
  if (num_pels_log2_lookup[bsize] <= 6) return good_indices;
2265
  // Do not prune when there is internal resizing. TODO(elliottk) fix this
2266
  // so b/2384 can be resolved.
2267
0
  if (av1_is_scaled(get_ref_scale_factors(cm, mbmi->ref_frame[0])) ||
2268
0
      (mbmi->ref_frame[1] > 0 &&
2269
0
       av1_is_scaled(get_ref_scale_factors(cm, mbmi->ref_frame[1])))) {
2270
0
    return good_indices;
2271
0
  }
2272
2273
  // Calculate the RD cost for the motion vectors using simple translation.
2274
0
  int64_t idx_rdcost[] = { INT64_MAX, INT64_MAX, INT64_MAX };
2275
0
  for (int ref_mv_idx = 0; ref_mv_idx < ref_set; ++ref_mv_idx) {
2276
    // If this index is bad, ignore it.
2277
0
    if (!mask_check_bit(good_indices, ref_mv_idx)) {
2278
0
      continue;
2279
0
    }
2280
0
    idx_rdcost[ref_mv_idx] = simple_translation_pred_rd(
2281
0
        cpi, x, args, ref_mv_idx, ref_best_rd, bsize);
2282
0
  }
2283
  // Find the index with the best RD cost.
2284
0
  int best_idx = 0;
2285
0
  for (int i = 1; i < MAX_REF_MV_SEARCH; ++i) {
2286
0
    if (idx_rdcost[i] < idx_rdcost[best_idx]) {
2287
0
      best_idx = i;
2288
0
    }
2289
0
  }
2290
  // Only include indices that are good and within a % of the best.
2291
0
  const double dth = has_second_ref(mbmi) ? 1.05 : 1.001;
2292
  // If the simple translation cost is not within this multiple of the
2293
  // best RD, skip it. Note that the cutoff is derived experimentally.
2294
0
  const double ref_dth = 5;
2295
0
  int result = 0;
2296
0
  for (int i = 0; i < ref_set; ++i) {
2297
0
    if (mask_check_bit(good_indices, i) &&
2298
0
        (1.0 * idx_rdcost[i]) / idx_rdcost[best_idx] < dth &&
2299
0
        (1.0 * idx_rdcost[i]) / ref_best_rd < ref_dth) {
2300
0
      mask_set_bit(&result, i);
2301
0
    }
2302
0
  }
2303
0
  return result;
2304
0
}
2305
2306
/*!\brief Motion mode information for inter mode search speedup.
2307
 *
2308
 * Used in a speed feature to search motion modes other than
2309
 * SIMPLE_TRANSLATION only on winning candidates.
2310
 */
2311
typedef struct motion_mode_candidate {
2312
  /*!
2313
   * Mode info for the motion mode candidate.
2314
   */
2315
  MB_MODE_INFO mbmi;
2316
  /*!
2317
   * Rate describing the cost of the motion vectors for this candidate.
2318
   */
2319
  int rate_mv;
2320
  /*!
2321
   * Rate before motion mode search and transform coding is applied.
2322
   */
2323
  int rate2_nocoeff;
2324
  /*!
2325
   * An integer value 0 or 1 which indicates whether or not to skip the motion
2326
   * mode search and default to SIMPLE_TRANSLATION as a speed feature for this
2327
   * candidate.
2328
   */
2329
  int skip_motion_mode;
2330
  /*!
2331
   * Total RD cost for this candidate.
2332
   */
2333
  int64_t rd_cost;
2334
} motion_mode_candidate;
2335
2336
/*!\cond */
2337
typedef struct motion_mode_best_st_candidate {
2338
  motion_mode_candidate motion_mode_cand[MAX_WINNER_MOTION_MODES];
2339
  int num_motion_mode_cand;
2340
} motion_mode_best_st_candidate;
2341
2342
// Checks if the current reference frame matches with neighbouring block's
2343
// (top/left) reference frames
2344
static inline int ref_match_found_in_nb_blocks(MB_MODE_INFO *cur_mbmi,
2345
0
                                               MB_MODE_INFO *nb_mbmi) {
2346
0
  MV_REFERENCE_FRAME nb_ref_frames[2] = { nb_mbmi->ref_frame[0],
2347
0
                                          nb_mbmi->ref_frame[1] };
2348
0
  MV_REFERENCE_FRAME cur_ref_frames[2] = { cur_mbmi->ref_frame[0],
2349
0
                                           cur_mbmi->ref_frame[1] };
2350
0
  const int is_cur_comp_pred = has_second_ref(cur_mbmi);
2351
0
  int match_found = 0;
2352
2353
0
  for (int i = 0; i < (is_cur_comp_pred + 1); i++) {
2354
0
    if ((cur_ref_frames[i] == nb_ref_frames[0]) ||
2355
0
        (cur_ref_frames[i] == nb_ref_frames[1]))
2356
0
      match_found = 1;
2357
0
  }
2358
0
  return match_found;
2359
0
}
2360
2361
static inline int find_ref_match_in_above_nbs(const int total_mi_cols,
2362
0
                                              MACROBLOCKD *xd) {
2363
0
  if (!xd->up_available) return 1;
2364
0
  const int mi_col = xd->mi_col;
2365
0
  MB_MODE_INFO **cur_mbmi = xd->mi;
2366
  // prev_row_mi points into the mi array, starting at the beginning of the
2367
  // previous row.
2368
0
  MB_MODE_INFO **prev_row_mi = xd->mi - mi_col - 1 * xd->mi_stride;
2369
0
  const int end_col = AOMMIN(mi_col + xd->width, total_mi_cols);
2370
0
  uint8_t mi_step;
2371
0
  for (int above_mi_col = mi_col; above_mi_col < end_col;
2372
0
       above_mi_col += mi_step) {
2373
0
    MB_MODE_INFO **above_mi = prev_row_mi + above_mi_col;
2374
0
    mi_step = mi_size_wide[above_mi[0]->bsize];
2375
0
    int match_found = 0;
2376
0
    if (is_inter_block(*above_mi))
2377
0
      match_found = ref_match_found_in_nb_blocks(*cur_mbmi, *above_mi);
2378
0
    if (match_found) return 1;
2379
0
  }
2380
0
  return 0;
2381
0
}
2382
2383
static inline int find_ref_match_in_left_nbs(const int total_mi_rows,
2384
0
                                             MACROBLOCKD *xd) {
2385
0
  if (!xd->left_available) return 1;
2386
0
  const int mi_row = xd->mi_row;
2387
0
  MB_MODE_INFO **cur_mbmi = xd->mi;
2388
  // prev_col_mi points into the mi array, starting at the top of the
2389
  // previous column
2390
0
  MB_MODE_INFO **prev_col_mi = xd->mi - 1 - mi_row * xd->mi_stride;
2391
0
  const int end_row = AOMMIN(mi_row + xd->height, total_mi_rows);
2392
0
  uint8_t mi_step;
2393
0
  for (int left_mi_row = mi_row; left_mi_row < end_row;
2394
0
       left_mi_row += mi_step) {
2395
0
    MB_MODE_INFO **left_mi = prev_col_mi + left_mi_row * xd->mi_stride;
2396
0
    mi_step = mi_size_high[left_mi[0]->bsize];
2397
0
    int match_found = 0;
2398
0
    if (is_inter_block(*left_mi))
2399
0
      match_found = ref_match_found_in_nb_blocks(*cur_mbmi, *left_mi);
2400
0
    if (match_found) return 1;
2401
0
  }
2402
0
  return 0;
2403
0
}
2404
/*!\endcond */
2405
2406
/*! \brief Struct used to hold TPL data to
2407
 * narrow down parts of the inter mode search.
2408
 */
2409
typedef struct {
2410
  /*!
2411
   * The best inter cost out of all of the reference frames.
2412
   */
2413
  int64_t best_inter_cost;
2414
  /*!
2415
   * The inter cost for each reference frame.
2416
   */
2417
  int64_t ref_inter_cost[INTER_REFS_PER_FRAME];
2418
} PruneInfoFromTpl;
2419
2420
#if !CONFIG_REALTIME_ONLY
2421
// TODO(Remya): Check if get_tpl_stats_b() can be reused
2422
static inline void get_block_level_tpl_stats(
2423
    AV1_COMP *cpi, BLOCK_SIZE bsize, int mi_row, int mi_col, int *valid_refs,
2424
0
    PruneInfoFromTpl *inter_cost_info_from_tpl) {
2425
0
  AV1_COMMON *const cm = &cpi->common;
2426
2427
0
  assert(IMPLIES(cpi->ppi->gf_group.size > 0,
2428
0
                 cpi->gf_frame_index < cpi->ppi->gf_group.size));
2429
0
  const int tpl_idx = cpi->gf_frame_index;
2430
0
  TplParams *const tpl_data = &cpi->ppi->tpl_data;
2431
0
  if (!av1_tpl_stats_ready(tpl_data, tpl_idx)) return;
2432
0
  const TplDepFrame *tpl_frame = &tpl_data->tpl_frame[tpl_idx];
2433
0
  const TplDepStats *tpl_stats = tpl_frame->tpl_stats_ptr;
2434
0
  const int mi_wide = mi_size_wide[bsize];
2435
0
  const int mi_high = mi_size_high[bsize];
2436
0
  const int tpl_stride = tpl_frame->stride;
2437
0
  const int step = 1 << tpl_data->tpl_stats_block_mis_log2;
2438
0
  const int mi_col_sr =
2439
0
      coded_to_superres_mi(mi_col, cm->superres_scale_denominator);
2440
0
  const int mi_col_end_sr =
2441
0
      coded_to_superres_mi(mi_col + mi_wide, cm->superres_scale_denominator);
2442
0
  const int mi_cols_sr = av1_pixels_to_mi(cm->superres_upscaled_width);
2443
2444
0
  const int row_step = step;
2445
0
  const int col_step_sr =
2446
0
      coded_to_superres_mi(step, cm->superres_scale_denominator);
2447
0
  for (int row = mi_row; row < AOMMIN(mi_row + mi_high, cm->mi_params.mi_rows);
2448
0
       row += row_step) {
2449
0
    for (int col = mi_col_sr; col < AOMMIN(mi_col_end_sr, mi_cols_sr);
2450
0
         col += col_step_sr) {
2451
0
      const TplDepStats *this_stats = &tpl_stats[av1_tpl_ptr_pos(
2452
0
          row, col, tpl_stride, tpl_data->tpl_stats_block_mis_log2)];
2453
2454
      // Sums up the inter cost of corresponding ref frames
2455
0
      for (int ref_idx = 0; ref_idx < INTER_REFS_PER_FRAME; ref_idx++) {
2456
0
        inter_cost_info_from_tpl->ref_inter_cost[ref_idx] +=
2457
0
            this_stats->pred_error[ref_idx];
2458
0
      }
2459
0
    }
2460
0
  }
2461
2462
  // Computes the best inter cost (minimum inter_cost)
2463
0
  int64_t best_inter_cost = INT64_MAX;
2464
0
  for (int ref_idx = 0; ref_idx < INTER_REFS_PER_FRAME; ref_idx++) {
2465
0
    const int64_t cur_inter_cost =
2466
0
        inter_cost_info_from_tpl->ref_inter_cost[ref_idx];
2467
    // For invalid ref frames, cur_inter_cost = 0 and has to be handled while
2468
    // calculating the minimum inter_cost
2469
0
    if (cur_inter_cost != 0 && (cur_inter_cost < best_inter_cost) &&
2470
0
        valid_refs[ref_idx])
2471
0
      best_inter_cost = cur_inter_cost;
2472
0
  }
2473
0
  inter_cost_info_from_tpl->best_inter_cost = best_inter_cost;
2474
0
}
2475
#endif
2476
2477
static inline int prune_modes_based_on_tpl_stats(
2478
    PruneInfoFromTpl *inter_cost_info_from_tpl, const int *refs, int ref_mv_idx,
2479
0
    const PREDICTION_MODE this_mode, int prune_mode_level) {
2480
0
  const int is_ref_last2 = refs[0] == LAST2_FRAME || refs[1] == LAST2_FRAME;
2481
0
  if (prune_mode_level == 1 && !is_ref_last2) return 0;
2482
2483
0
  const int have_newmv = have_newmv_in_inter_mode(this_mode);
2484
0
  if ((prune_mode_level == 2) && have_newmv) return 0;
2485
2486
0
  const int64_t best_inter_cost = inter_cost_info_from_tpl->best_inter_cost;
2487
0
  if (best_inter_cost == INT64_MAX) return 0;
2488
2489
0
  int64_t cur_inter_cost;
2490
2491
0
  const int is_comp_pred = (refs[1] > INTRA_FRAME);
2492
0
  if (!is_comp_pred) {
2493
0
    cur_inter_cost = inter_cost_info_from_tpl->ref_inter_cost[refs[0] - 1];
2494
0
  } else {
2495
0
    const int64_t inter_cost_ref0 =
2496
0
        inter_cost_info_from_tpl->ref_inter_cost[refs[0] - 1];
2497
0
    const int64_t inter_cost_ref1 =
2498
0
        inter_cost_info_from_tpl->ref_inter_cost[refs[1] - 1];
2499
    // Choose maximum inter_cost among inter_cost_ref0 and inter_cost_ref1 for
2500
    // more aggressive pruning
2501
0
    cur_inter_cost = AOMMAX(inter_cost_ref0, inter_cost_ref1);
2502
0
  }
2503
2504
0
  if (is_ref_last2) return (cur_inter_cost > best_inter_cost);
2505
2506
0
  const int is_globalmv =
2507
0
      (this_mode == GLOBALMV) || (this_mode == GLOBAL_GLOBALMV);
2508
0
  const int prune_index = is_globalmv ? MAX_REF_MV_SEARCH : ref_mv_idx;
2509
0
  const int prune_level = prune_mode_level - 2;
2510
2511
  // Thresholds used for pruning:
2512
  // Lower value indicates aggressive pruning and higher value indicates
2513
  // conservative pruning which is set based on ref_mv_idx and speed feature.
2514
  // 'prune_index' 0, 1, 2 corresponds to ref_mv indices 0, 1 and 2.
2515
  // prune_index 3 corresponds to GLOBALMV/GLOBAL_GLOBALMV
2516
0
  static const int tpl_inter_mode_prune_mul_factor[3][MAX_REF_MV_SEARCH + 1] = {
2517
0
    { 6, 6, 6, 4 }, { 6, 4, 4, 4 }, { 5, 4, 4, 4 }
2518
0
  };
2519
2520
  // Prune the mode if cur_inter_cost is greater than threshold times
2521
  // best_inter_cost
2522
0
  if (cur_inter_cost >
2523
0
      ((tpl_inter_mode_prune_mul_factor[prune_level][prune_index] *
2524
0
        best_inter_cost) >>
2525
0
       2))
2526
0
    return 1;
2527
0
  return 0;
2528
0
}
2529
2530
/*!\brief High level function to select parameters for compound mode.
2531
 *
2532
 * \ingroup inter_mode_search
2533
 * The main search functionality is done in the call to av1_compound_type_rd().
2534
 *
2535
 * \param[in]     cpi               Top-level encoder structure.
2536
 * \param[in]     x                 Pointer to struct holding all the data for
2537
 *                                  the current macroblock.
2538
 * \param[in]     args              HandleInterModeArgs struct holding
2539
 *                                  miscellaneous arguments for inter mode
2540
 *                                  search. See the documentation for this
2541
 *                                  struct for a description of each member.
2542
 * \param[in]     ref_best_rd       Best RD found so far for this block.
2543
 *                                  It is used for early termination of this
2544
 *                                  search if the RD exceeds this value.
2545
 * \param[in,out] cur_mv            Current motion vector.
2546
 * \param[in]     bsize             Current block size.
2547
 * \param[in,out] compmode_interinter_cost  RD of the selected interinter
2548
                                    compound mode.
2549
 * \param[in,out] rd_buffers        CompoundTypeRdBuffers struct to hold all
2550
 *                                  allocated buffers for the compound
2551
 *                                  predictors and masks in the compound type
2552
 *                                  search.
2553
 * \param[in,out] orig_dst          A prediction buffer to hold a computed
2554
 *                                  prediction. This will eventually hold the
2555
 *                                  final prediction, and the tmp_dst info will
2556
 *                                  be copied here.
2557
 * \param[in]     tmp_dst           A temporary prediction buffer to hold a
2558
 *                                  computed prediction.
2559
 * \param[in,out] rate_mv           The rate associated with the motion vectors.
2560
 *                                  This will be modified if a motion search is
2561
 *                                  done in the motion mode search.
2562
 * \param[in,out] rd_stats          Struct to keep track of the overall RD
2563
 *                                  information.
2564
 * \param[in,out] skip_rd           An array of length 2 where skip_rd[0] is the
2565
 *                                  best total RD for a skip mode so far, and
2566
 *                                  skip_rd[1] is the best RD for a skip mode so
2567
 *                                  far in luma. This is used as a speed feature
2568
 *                                  to skip the transform search if the computed
2569
 *                                  skip RD for the current mode is not better
2570
 *                                  than the best skip_rd so far.
2571
 * \param[out] skip_build_pred      Indicates whether or not to build the inter
2572
 *                                  predictor during/after interpolation
2573
 *                                  filter search.
2574
 * \return Returns 1 if this mode is worse than one already seen and 0 if it is
2575
 * a viable candidate.
2576
 */
2577
static int process_compound_inter_mode(
2578
    AV1_COMP *const cpi, MACROBLOCK *x, HandleInterModeArgs *args,
2579
    int64_t ref_best_rd, int_mv *cur_mv, BLOCK_SIZE bsize,
2580
    int *compmode_interinter_cost, const CompoundTypeRdBuffers *rd_buffers,
2581
    const BUFFER_SET *orig_dst, const BUFFER_SET *tmp_dst, int *rate_mv,
2582
0
    RD_STATS *rd_stats, int64_t *skip_rd, int *skip_build_pred) {
2583
0
  MACROBLOCKD *xd = &x->e_mbd;
2584
0
  MB_MODE_INFO *mbmi = xd->mi[0];
2585
0
  const AV1_COMMON *cm = &cpi->common;
2586
0
  const int masked_compound_used = is_any_masked_compound_used(bsize) &&
2587
0
                                   cm->seq_params->enable_masked_compound;
2588
0
  int mode_search_mask = (1 << COMPOUND_AVERAGE) | (1 << COMPOUND_DISTWTD) |
2589
0
                         (1 << COMPOUND_WEDGE) | (1 << COMPOUND_DIFFWTD);
2590
2591
0
  const int num_planes = av1_num_planes(cm);
2592
0
  const int mi_row = xd->mi_row;
2593
0
  const int mi_col = xd->mi_col;
2594
0
  int is_luma_interp_done = 0;
2595
0
  set_default_interp_filters(mbmi, cm->features.interp_filter);
2596
2597
0
  int64_t best_rd_compound;
2598
0
  int64_t rd_thresh;
2599
0
  const int comp_type_rd_shift = COMP_TYPE_RD_THRESH_SHIFT;
2600
0
  const int comp_type_rd_scale = COMP_TYPE_RD_THRESH_SCALE;
2601
0
  rd_thresh = get_rd_thresh_from_best_rd(ref_best_rd, (1 << comp_type_rd_shift),
2602
0
                                         comp_type_rd_scale);
2603
  // Select compound type and any parameters related to that type
2604
  // (for example, the mask parameters if it is a masked mode) and compute
2605
  // the RD
2606
0
  *compmode_interinter_cost = av1_compound_type_rd(
2607
0
      cpi, x, args, bsize, cur_mv, mode_search_mask, masked_compound_used,
2608
0
      orig_dst, tmp_dst, rd_buffers, rate_mv, &best_rd_compound, rd_stats,
2609
0
      ref_best_rd, skip_rd[1], &is_luma_interp_done, rd_thresh);
2610
0
  if (ref_best_rd < INT64_MAX &&
2611
0
      (best_rd_compound >> comp_type_rd_shift) * comp_type_rd_scale >
2612
0
          ref_best_rd) {
2613
0
    restore_dst_buf(xd, *orig_dst, num_planes);
2614
0
    return 1;
2615
0
  }
2616
2617
  // Build only uv predictor for COMPOUND_AVERAGE.
2618
  // Note there is no need to call av1_enc_build_inter_predictor
2619
  // for luma if COMPOUND_AVERAGE is selected because it is the first
2620
  // candidate in av1_compound_type_rd, which means it used the dst_buf
2621
  // rather than the tmp_buf.
2622
0
  if (mbmi->interinter_comp.type == COMPOUND_AVERAGE && is_luma_interp_done) {
2623
0
    if (num_planes > 1) {
2624
0
      av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, orig_dst, bsize,
2625
0
                                    AOM_PLANE_U, num_planes - 1);
2626
0
    }
2627
0
    *skip_build_pred = INTERP_SKIP_LUMA_SKIP_CHROMA;
2628
0
  }
2629
0
  return 0;
2630
0
}
2631
2632
// Speed feature to prune out MVs that are similar to previous MVs if they
2633
// don't achieve the best RD advantage.
2634
static int prune_ref_mv_idx_search(int ref_mv_idx, int best_ref_mv_idx,
2635
                                   int_mv save_mv[MAX_REF_MV_SEARCH - 1][2],
2636
0
                                   MB_MODE_INFO *mbmi, int pruning_factor) {
2637
0
  int i;
2638
0
  const int is_comp_pred = has_second_ref(mbmi);
2639
0
  const int thr = (1 + is_comp_pred) << (pruning_factor + 1);
2640
2641
  // Skip the evaluation if an MV match is found.
2642
0
  if (ref_mv_idx > 0) {
2643
0
    for (int idx = 0; idx < ref_mv_idx; ++idx) {
2644
0
      if (save_mv[idx][0].as_int == INVALID_MV) continue;
2645
2646
0
      int mv_diff = 0;
2647
0
      for (i = 0; i < 1 + is_comp_pred; ++i) {
2648
0
        mv_diff += abs(save_mv[idx][i].as_mv.row - mbmi->mv[i].as_mv.row) +
2649
0
                   abs(save_mv[idx][i].as_mv.col - mbmi->mv[i].as_mv.col);
2650
0
      }
2651
2652
      // If this mode is not the best one, and current MV is similar to
2653
      // previous stored MV, terminate this ref_mv_idx evaluation.
2654
0
      if (best_ref_mv_idx == -1 && mv_diff <= thr) return 1;
2655
0
    }
2656
0
  }
2657
2658
0
  if (ref_mv_idx < MAX_REF_MV_SEARCH - 1) {
2659
0
    for (i = 0; i < is_comp_pred + 1; ++i)
2660
0
      save_mv[ref_mv_idx][i].as_int = mbmi->mv[i].as_int;
2661
0
  }
2662
2663
0
  return 0;
2664
0
}
2665
2666
/*!\brief Prunes ZeroMV Search Using Best NEWMV's SSE
2667
 *
2668
 * \ingroup inter_mode_search
2669
 *
2670
 * Compares the sse of zero mv and the best sse found in single new_mv. If the
2671
 * sse of the zero_mv is higher, returns 1 to signal zero_mv can be skipped.
2672
 * Else returns 0.
2673
 *
2674
 * Note that the sse of here comes from single_motion_search. So it is
2675
 * interpolated with the filter in motion search, not the actual interpolation
2676
 * filter used in encoding.
2677
 *
2678
 * \param[in]     fn_ptr            A table of function pointers to compute SSE.
2679
 * \param[in]     x                 Pointer to struct holding all the data for
2680
 *                                  the current macroblock.
2681
 * \param[in]     bsize             The current block_size.
2682
 * \param[in]     args              The args to handle_inter_mode, used to track
2683
 *                                  the best SSE.
2684
 * \param[in]    prune_zero_mv_with_sse  The argument holds speed feature
2685
 *                                       prune_zero_mv_with_sse value
2686
 * \return Returns 1 if zero_mv is pruned, 0 otherwise.
2687
 */
2688
static inline int prune_zero_mv_with_sse(const aom_variance_fn_ptr_t *fn_ptr,
2689
                                         const MACROBLOCK *x, BLOCK_SIZE bsize,
2690
                                         const HandleInterModeArgs *args,
2691
0
                                         int prune_zero_mv_with_sse) {
2692
0
  const MACROBLOCKD *xd = &x->e_mbd;
2693
0
  const MB_MODE_INFO *mbmi = xd->mi[0];
2694
2695
0
  const int is_comp_pred = has_second_ref(mbmi);
2696
0
  const MV_REFERENCE_FRAME *refs = mbmi->ref_frame;
2697
2698
0
  for (int idx = 0; idx < 1 + is_comp_pred; idx++) {
2699
0
    if (xd->global_motion[refs[idx]].wmtype != IDENTITY) {
2700
      // Pruning logic only works for IDENTITY type models
2701
      // Note: In theory we could apply similar logic for TRANSLATION
2702
      // type models, but we do not code these due to a spec bug
2703
      // (see comments in gm_get_motion_vector() in av1/common/mv.h)
2704
0
      assert(xd->global_motion[refs[idx]].wmtype != TRANSLATION);
2705
0
      return 0;
2706
0
    }
2707
2708
    // Don't prune if we have invalid data
2709
0
    assert(mbmi->mv[idx].as_int == 0);
2710
0
    if (args->best_single_sse_in_refs[refs[idx]] == INT32_MAX) {
2711
0
      return 0;
2712
0
    }
2713
0
  }
2714
2715
  // Sum up the sse of ZEROMV and best NEWMV
2716
0
  unsigned int this_sse_sum = 0;
2717
0
  unsigned int best_sse_sum = 0;
2718
0
  for (int idx = 0; idx < 1 + is_comp_pred; idx++) {
2719
0
    const struct macroblock_plane *const p = &x->plane[AOM_PLANE_Y];
2720
0
    const struct macroblockd_plane *pd = xd->plane;
2721
0
    const struct buf_2d *src_buf = &p->src;
2722
0
    const struct buf_2d *ref_buf = &pd->pre[idx];
2723
0
    const uint8_t *src = src_buf->buf;
2724
0
    const uint8_t *ref = ref_buf->buf;
2725
0
    const int src_stride = src_buf->stride;
2726
0
    const int ref_stride = ref_buf->stride;
2727
2728
0
    unsigned int this_sse;
2729
0
    fn_ptr[bsize].vf(ref, ref_stride, src, src_stride, &this_sse);
2730
0
    this_sse_sum += this_sse;
2731
2732
0
    const unsigned int best_sse = args->best_single_sse_in_refs[refs[idx]];
2733
0
    best_sse_sum += best_sse;
2734
0
  }
2735
2736
0
  const double mul = prune_zero_mv_with_sse > 1 ? 1.00 : 1.25;
2737
0
  if ((double)this_sse_sum > (mul * (double)best_sse_sum)) {
2738
0
    return 1;
2739
0
  }
2740
2741
0
  return 0;
2742
0
}
2743
2744
/*!\brief Searches for interpolation filter in realtime mode during winner eval
2745
 *
2746
 * \ingroup inter_mode_search
2747
 *
2748
 * Does a simple interpolation filter search during winner mode evaluation. This
2749
 * is currently only used by realtime mode as \ref
2750
 * av1_interpolation_filter_search is not called during realtime encoding.
2751
 *
2752
 * This function only searches over two possible filters. EIGHTTAP_REGULAR is
2753
 * always search. For lowres clips (<= 240p), MULTITAP_SHARP is also search. For
2754
 * higher  res slips (>240p), EIGHTTAP_SMOOTH is also searched.
2755
 *  *
2756
 * \param[in]     cpi               Pointer to the compressor. Used for feature
2757
 *                                  flags.
2758
 * \param[in,out] x                 Pointer to macroblock. This is primarily
2759
 *                                  used to access the buffers.
2760
 * \param[in]     mi_row            The current row in mi unit (4X4 pixels).
2761
 * \param[in]     mi_col            The current col in mi unit (4X4 pixels).
2762
 * \param[in]     bsize             The current block_size.
2763
 * \return Returns true if a predictor is built in xd->dst, false otherwise.
2764
 */
2765
static inline bool fast_interp_search(const AV1_COMP *cpi, MACROBLOCK *x,
2766
                                      int mi_row, int mi_col,
2767
0
                                      BLOCK_SIZE bsize) {
2768
0
  static const InterpFilters filters_ref_set[3] = {
2769
0
    { EIGHTTAP_REGULAR, EIGHTTAP_REGULAR },
2770
0
    { EIGHTTAP_SMOOTH, EIGHTTAP_SMOOTH },
2771
0
    { MULTITAP_SHARP, MULTITAP_SHARP }
2772
0
  };
2773
2774
0
  const AV1_COMMON *const cm = &cpi->common;
2775
0
  MACROBLOCKD *const xd = &x->e_mbd;
2776
0
  MB_MODE_INFO *const mi = xd->mi[0];
2777
0
  int64_t best_cost = INT64_MAX;
2778
0
  int best_filter_index = -1;
2779
  // dst_bufs[0] sores the new predictor, and dist_bifs[1] stores the best
2780
0
  const int num_planes = av1_num_planes(cm);
2781
0
  const int is_240p_or_lesser = AOMMIN(cm->width, cm->height) <= 240;
2782
0
  assert(is_inter_mode(mi->mode));
2783
0
  assert(mi->motion_mode == SIMPLE_TRANSLATION);
2784
0
  assert(!is_inter_compound_mode(mi->mode));
2785
2786
0
  if (!av1_is_interp_needed(xd)) {
2787
0
    return false;
2788
0
  }
2789
2790
0
  struct macroblockd_plane *pd = xd->plane;
2791
0
  const BUFFER_SET orig_dst = {
2792
0
    { pd[0].dst.buf, pd[1].dst.buf, pd[2].dst.buf },
2793
0
    { pd[0].dst.stride, pd[1].dst.stride, pd[2].dst.stride },
2794
0
  };
2795
0
  uint8_t *const tmp_buf = get_buf_by_bd(xd, x->tmp_pred_bufs[0]);
2796
0
  const BUFFER_SET tmp_dst = { { tmp_buf, tmp_buf + 1 * MAX_SB_SQUARE,
2797
0
                                 tmp_buf + 2 * MAX_SB_SQUARE },
2798
0
                               { MAX_SB_SIZE, MAX_SB_SIZE, MAX_SB_SIZE } };
2799
0
  const BUFFER_SET *dst_bufs[2] = { &orig_dst, &tmp_dst };
2800
2801
0
  for (int i = 0; i < 3; ++i) {
2802
0
    if (is_240p_or_lesser) {
2803
0
      if (filters_ref_set[i].x_filter == EIGHTTAP_SMOOTH) {
2804
0
        continue;
2805
0
      }
2806
0
    } else {
2807
0
      if (filters_ref_set[i].x_filter == MULTITAP_SHARP) {
2808
0
        continue;
2809
0
      }
2810
0
    }
2811
0
    int64_t cost;
2812
0
    RD_STATS tmp_rd = { 0 };
2813
2814
0
    mi->interp_filters.as_filters = filters_ref_set[i];
2815
0
    av1_enc_build_inter_predictor_y(xd, mi_row, mi_col);
2816
2817
0
    model_rd_sb_fn[cpi->sf.rt_sf.use_simple_rd_model
2818
0
                       ? MODELRD_LEGACY
2819
0
                       : MODELRD_TYPE_INTERP_FILTER](
2820
0
        cpi, bsize, x, xd, AOM_PLANE_Y, AOM_PLANE_Y, &tmp_rd.rate, &tmp_rd.dist,
2821
0
        &tmp_rd.skip_txfm, &tmp_rd.sse, NULL, NULL, NULL);
2822
2823
0
    tmp_rd.rate += av1_get_switchable_rate(x, xd, cm->features.interp_filter,
2824
0
                                           cm->seq_params->enable_dual_filter);
2825
0
    cost = RDCOST(x->rdmult, tmp_rd.rate, tmp_rd.dist);
2826
0
    if (cost < best_cost) {
2827
0
      best_filter_index = i;
2828
0
      best_cost = cost;
2829
0
      swap_dst_buf(xd, dst_bufs, num_planes);
2830
0
    }
2831
0
  }
2832
0
  assert(best_filter_index >= 0);
2833
2834
0
  mi->interp_filters.as_filters = filters_ref_set[best_filter_index];
2835
2836
0
  const bool is_best_pred_in_orig = &orig_dst == dst_bufs[1];
2837
2838
0
  if (is_best_pred_in_orig) {
2839
0
    swap_dst_buf(xd, dst_bufs, num_planes);
2840
0
  } else {
2841
    // Note that xd->pd's bufers are kept in sync with dst_bufs[0]. So if
2842
    // is_best_pred_in_orig is false, that means the current buffer is the
2843
    // original one.
2844
0
    assert(&orig_dst == dst_bufs[0]);
2845
0
    assert(xd->plane[AOM_PLANE_Y].dst.buf == orig_dst.plane[AOM_PLANE_Y]);
2846
0
    const int width = block_size_wide[bsize];
2847
0
    const int height = block_size_high[bsize];
2848
0
#if CONFIG_AV1_HIGHBITDEPTH
2849
0
    const bool is_hbd = is_cur_buf_hbd(xd);
2850
0
    if (is_hbd) {
2851
0
      aom_highbd_convolve_copy(CONVERT_TO_SHORTPTR(tmp_dst.plane[AOM_PLANE_Y]),
2852
0
                               tmp_dst.stride[AOM_PLANE_Y],
2853
0
                               CONVERT_TO_SHORTPTR(orig_dst.plane[AOM_PLANE_Y]),
2854
0
                               orig_dst.stride[AOM_PLANE_Y], width, height);
2855
0
    } else {
2856
0
      aom_convolve_copy(tmp_dst.plane[AOM_PLANE_Y], tmp_dst.stride[AOM_PLANE_Y],
2857
0
                        orig_dst.plane[AOM_PLANE_Y],
2858
0
                        orig_dst.stride[AOM_PLANE_Y], width, height);
2859
0
    }
2860
#else
2861
    aom_convolve_copy(tmp_dst.plane[AOM_PLANE_Y], tmp_dst.stride[AOM_PLANE_Y],
2862
                      orig_dst.plane[AOM_PLANE_Y], orig_dst.stride[AOM_PLANE_Y],
2863
                      width, height);
2864
#endif
2865
0
  }
2866
2867
  // Build the YUV predictor.
2868
0
  if (num_planes > 1) {
2869
0
    av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, NULL, bsize,
2870
0
                                  AOM_PLANE_U, AOM_PLANE_V);
2871
0
  }
2872
2873
0
  return true;
2874
0
}
2875
2876
/*!\brief AV1 inter mode RD computation
2877
 *
2878
 * \ingroup inter_mode_search
2879
 * Do the RD search for a given inter mode and compute all information relevant
2880
 * to the input mode. It will compute the best MV,
2881
 * compound parameters (if the mode is a compound mode) and interpolation filter
2882
 * parameters.
2883
 *
2884
 * \param[in]     cpi               Top-level encoder structure.
2885
 * \param[in]     tile_data         Pointer to struct holding adaptive
2886
 *                                  data/contexts/models for the tile during
2887
 *                                  encoding.
2888
 * \param[in]     x                 Pointer to structure holding all the data
2889
 *                                  for the current macroblock.
2890
 * \param[in]     bsize             Current block size.
2891
 * \param[in,out] rd_stats          Struct to keep track of the overall RD
2892
 *                                  information.
2893
 * \param[out]    rd_stats_y        Struct to keep track of the RD information
2894
 *                                  for only the Y plane.
2895
 * \param[out]    rd_stats_uv       Struct to keep track of the RD information
2896
 *                                  for only the UV planes.
2897
 * \param[in]     args              HandleInterModeArgs struct holding
2898
 *                                  miscellaneous arguments for inter mode
2899
 *                                  search. See the documentation for this
2900
 *                                  struct for a description of each member.
2901
 * \param[in]     ref_best_rd       Best RD found so far for this block.
2902
 *                                  It is used for early termination of this
2903
 *                                  search if the RD exceeds this value.
2904
 * \param[in]     tmp_buf           Temporary buffer used to hold predictors
2905
 *                                  built in this search.
2906
 * \param[in,out] rd_buffers        CompoundTypeRdBuffers struct to hold all
2907
 *                                  allocated buffers for the compound
2908
 *                                  predictors and masks in the compound type
2909
 *                                  search.
2910
 * \param[in,out] best_est_rd       Estimated RD for motion mode search if
2911
 *                                  do_tx_search (see below) is 0.
2912
 * \param[in]     do_tx_search      Parameter to indicate whether or not to do
2913
 *                                  a full transform search. This will compute
2914
 *                                  an estimated RD for the modes without the
2915
 *                                  transform search and later perform the full
2916
 *                                  transform search on the best candidates.
2917
 * \param[in,out] inter_modes_info  InterModesInfo struct to hold inter mode
2918
 *                                  information to perform a full transform
2919
 *                                  search only on winning candidates searched
2920
 *                                  with an estimate for transform coding RD.
2921
 * \param[in,out] motion_mode_cand  A motion_mode_candidate struct to store
2922
 *                                  motion mode information used in a speed
2923
 *                                  feature to search motion modes other than
2924
 *                                  SIMPLE_TRANSLATION only on winning
2925
 *                                  candidates.
2926
 * \param[in,out] skip_rd           A length 2 array, where skip_rd[0] is the
2927
 *                                  best total RD for a skip mode so far, and
2928
 *                                  skip_rd[1] is the best RD for a skip mode so
2929
 *                                  far in luma. This is used as a speed feature
2930
 *                                  to skip the transform search if the computed
2931
 *                                  skip RD for the current mode is not better
2932
 *                                  than the best skip_rd so far.
2933
 * \param[in]     inter_cost_info_from_tpl A PruneInfoFromTpl struct used to
2934
 *                                         narrow down the search based on data
2935
 *                                         collected in the TPL model.
2936
 * \param[out]    yrd               Stores the rdcost corresponding to encoding
2937
 *                                  the luma plane.
2938
 *
2939
 * \return The RD cost for the mode being searched. If the return value is
2940
 *         INT64_MAX, the output parameters are not set; do not use them.
2941
 */
2942
static int64_t handle_inter_mode(
2943
    AV1_COMP *const cpi, TileDataEnc *tile_data, MACROBLOCK *x,
2944
    BLOCK_SIZE bsize, RD_STATS *rd_stats, RD_STATS *rd_stats_y,
2945
    RD_STATS *rd_stats_uv, HandleInterModeArgs *args, int64_t ref_best_rd,
2946
    uint8_t *const tmp_buf, const CompoundTypeRdBuffers *rd_buffers,
2947
    int64_t *best_est_rd, const int do_tx_search,
2948
    InterModesInfo *inter_modes_info, motion_mode_candidate *motion_mode_cand,
2949
    int64_t *skip_rd, PruneInfoFromTpl *inter_cost_info_from_tpl,
2950
0
    int64_t *yrd) {
2951
0
  const AV1_COMMON *cm = &cpi->common;
2952
0
  const int num_planes = av1_num_planes(cm);
2953
0
  MACROBLOCKD *xd = &x->e_mbd;
2954
0
  MB_MODE_INFO *mbmi = xd->mi[0];
2955
0
  MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
2956
0
  TxfmSearchInfo *txfm_info = &x->txfm_search_info;
2957
0
  const int is_comp_pred = has_second_ref(mbmi);
2958
0
  const PREDICTION_MODE this_mode = mbmi->mode;
2959
2960
#if CONFIG_REALTIME_ONLY
2961
  const int prune_modes_based_on_tpl = 0;
2962
#else   // CONFIG_REALTIME_ONLY
2963
0
  const TplParams *const tpl_data = &cpi->ppi->tpl_data;
2964
0
  const int prune_modes_based_on_tpl =
2965
0
      cpi->sf.inter_sf.prune_inter_modes_based_on_tpl &&
2966
0
      av1_tpl_stats_ready(tpl_data, cpi->gf_frame_index);
2967
0
#endif  // CONFIG_REALTIME_ONLY
2968
0
  int i;
2969
  // Reference frames for this mode
2970
0
  const int refs[2] = { mbmi->ref_frame[0],
2971
0
                        (mbmi->ref_frame[1] < 0 ? 0 : mbmi->ref_frame[1]) };
2972
0
  int rate_mv = 0;
2973
0
  int64_t rd = INT64_MAX;
2974
  // Do first prediction into the destination buffer. Do the next
2975
  // prediction into a temporary buffer. Then keep track of which one
2976
  // of these currently holds the best predictor, and use the other
2977
  // one for future predictions. In the end, copy from tmp_buf to
2978
  // dst if necessary.
2979
0
  struct macroblockd_plane *pd = xd->plane;
2980
0
  const BUFFER_SET orig_dst = {
2981
0
    { pd[0].dst.buf, pd[1].dst.buf, pd[2].dst.buf },
2982
0
    { pd[0].dst.stride, pd[1].dst.stride, pd[2].dst.stride },
2983
0
  };
2984
0
  const BUFFER_SET tmp_dst = { { tmp_buf, tmp_buf + 1 * MAX_SB_SQUARE,
2985
0
                                 tmp_buf + 2 * MAX_SB_SQUARE },
2986
0
                               { MAX_SB_SIZE, MAX_SB_SIZE, MAX_SB_SIZE } };
2987
2988
0
  int64_t ret_val = INT64_MAX;
2989
0
  const int8_t ref_frame_type = av1_ref_frame_type(mbmi->ref_frame);
2990
0
  RD_STATS best_rd_stats, best_rd_stats_y, best_rd_stats_uv;
2991
0
  int64_t best_rd = INT64_MAX;
2992
0
  uint8_t best_tx_type_map[MAX_MIB_SIZE * MAX_MIB_SIZE];
2993
0
  int64_t best_yrd = INT64_MAX;
2994
0
  MB_MODE_INFO best_mbmi = *mbmi;
2995
0
  int best_xskip_txfm = 0;
2996
0
  int64_t newmv_ret_val = INT64_MAX;
2997
0
  inter_mode_info mode_info[MAX_REF_MV_SEARCH];
2998
2999
  // Do not prune the mode based on inter cost from tpl if the current ref frame
3000
  // is the winner ref in neighbouring blocks.
3001
0
  int ref_match_found_in_above_nb = 0;
3002
0
  int ref_match_found_in_left_nb = 0;
3003
0
  if (prune_modes_based_on_tpl) {
3004
0
    ref_match_found_in_above_nb =
3005
0
        find_ref_match_in_above_nbs(cm->mi_params.mi_cols, xd);
3006
0
    ref_match_found_in_left_nb =
3007
0
        find_ref_match_in_left_nbs(cm->mi_params.mi_rows, xd);
3008
0
  }
3009
3010
  // First, perform a simple translation search for each of the indices. If
3011
  // an index performs well, it will be fully searched in the main loop
3012
  // of this function.
3013
0
  const int ref_set = get_drl_refmv_count(x, mbmi->ref_frame, this_mode);
3014
  // Save MV results from first 2 ref_mv_idx.
3015
0
  int_mv save_mv[MAX_REF_MV_SEARCH - 1][2];
3016
0
  int best_ref_mv_idx = -1;
3017
0
  const int idx_mask =
3018
0
      ref_mv_idx_to_search(cpi, x, args, ref_best_rd, bsize, ref_set);
3019
0
  const int16_t mode_ctx =
3020
0
      av1_mode_context_analyzer(mbmi_ext->mode_context, mbmi->ref_frame);
3021
0
  const ModeCosts *mode_costs = &x->mode_costs;
3022
0
  const int ref_mv_cost = cost_mv_ref(mode_costs, this_mode, mode_ctx);
3023
0
  const int base_rate =
3024
0
      args->ref_frame_cost + args->single_comp_cost + ref_mv_cost;
3025
3026
0
  for (i = 0; i < MAX_REF_MV_SEARCH - 1; ++i) {
3027
0
    save_mv[i][0].as_int = INVALID_MV;
3028
0
    save_mv[i][1].as_int = INVALID_MV;
3029
0
  }
3030
0
  args->start_mv_cnt = 0;
3031
3032
  // Main loop of this function. This will  iterate over all of the ref mvs
3033
  // in the dynamic reference list and do the following:
3034
  //    1.) Get the current MV. Create newmv MV if necessary
3035
  //    2.) Search compound type and parameters if applicable
3036
  //    3.) Do interpolation filter search
3037
  //    4.) Build the inter predictor
3038
  //    5.) Pick the motion mode (SIMPLE_TRANSLATION, OBMC_CAUSAL,
3039
  //        WARPED_CAUSAL)
3040
  //    6.) Update stats if best so far
3041
0
  for (int ref_mv_idx = 0; ref_mv_idx < ref_set; ++ref_mv_idx) {
3042
0
    mbmi->ref_mv_idx = ref_mv_idx;
3043
3044
0
    mode_info[ref_mv_idx].full_search_mv.as_int = INVALID_MV;
3045
0
    mode_info[ref_mv_idx].full_mv_bestsme = INT_MAX;
3046
0
    const int drl_cost = get_drl_cost(
3047
0
        mbmi, mbmi_ext, mode_costs->drl_mode_cost0, ref_frame_type);
3048
0
    mode_info[ref_mv_idx].drl_cost = drl_cost;
3049
0
    mode_info[ref_mv_idx].skip = 0;
3050
3051
0
    if (!mask_check_bit(idx_mask, ref_mv_idx)) {
3052
      // MV did not perform well in simple translation search. Skip it.
3053
0
      continue;
3054
0
    }
3055
0
    if (prune_modes_based_on_tpl && !ref_match_found_in_above_nb &&
3056
0
        !ref_match_found_in_left_nb && (ref_best_rd != INT64_MAX)) {
3057
      // Skip mode if TPL model indicates it will not be beneficial.
3058
0
      if (prune_modes_based_on_tpl_stats(
3059
0
              inter_cost_info_from_tpl, refs, ref_mv_idx, this_mode,
3060
0
              cpi->sf.inter_sf.prune_inter_modes_based_on_tpl))
3061
0
        continue;
3062
0
    }
3063
0
    av1_init_rd_stats(rd_stats);
3064
3065
    // Initialize compound mode data
3066
0
    mbmi->interinter_comp.type = COMPOUND_AVERAGE;
3067
0
    mbmi->comp_group_idx = 0;
3068
0
    mbmi->compound_idx = 1;
3069
0
    if (mbmi->ref_frame[1] == INTRA_FRAME) mbmi->ref_frame[1] = NONE_FRAME;
3070
3071
0
    mbmi->num_proj_ref = 0;
3072
0
    mbmi->motion_mode = SIMPLE_TRANSLATION;
3073
3074
    // Compute cost for signalling this DRL index
3075
0
    rd_stats->rate = base_rate;
3076
0
    rd_stats->rate += drl_cost;
3077
3078
0
    int rs = 0;
3079
0
    int compmode_interinter_cost = 0;
3080
3081
0
    int_mv cur_mv[2];
3082
3083
    // TODO(Cherma): Extend this speed feature to support compound mode
3084
0
    int skip_repeated_ref_mv =
3085
0
        is_comp_pred ? 0 : cpi->sf.inter_sf.skip_repeated_ref_mv;
3086
    // Generate the current mv according to the prediction mode
3087
0
    if (!build_cur_mv(cur_mv, this_mode, cm, x, skip_repeated_ref_mv)) {
3088
0
      continue;
3089
0
    }
3090
3091
    // The above call to build_cur_mv does not handle NEWMV modes. Build
3092
    // the mv here if we have NEWMV for any predictors.
3093
0
    if (have_newmv_in_inter_mode(this_mode)) {
3094
#if CONFIG_COLLECT_COMPONENT_TIMING
3095
      start_timing(cpi, handle_newmv_time);
3096
#endif
3097
0
      newmv_ret_val =
3098
0
          handle_newmv(cpi, x, bsize, cur_mv, &rate_mv, args, mode_info);
3099
#if CONFIG_COLLECT_COMPONENT_TIMING
3100
      end_timing(cpi, handle_newmv_time);
3101
#endif
3102
3103
0
      if (newmv_ret_val != 0) continue;
3104
3105
0
      if (is_inter_singleref_mode(this_mode) &&
3106
0
          cur_mv[0].as_int != INVALID_MV) {
3107
0
        const MV_REFERENCE_FRAME ref = refs[0];
3108
0
        const unsigned int this_sse = x->pred_sse[ref];
3109
0
        if (this_sse < args->best_single_sse_in_refs[ref]) {
3110
0
          args->best_single_sse_in_refs[ref] = this_sse;
3111
0
        }
3112
3113
0
        if (cpi->sf.rt_sf.skip_newmv_mode_based_on_sse) {
3114
0
          const int th_idx = cpi->sf.rt_sf.skip_newmv_mode_based_on_sse - 1;
3115
0
          const int pix_idx = num_pels_log2_lookup[bsize] - 4;
3116
0
          const double scale_factor[3][11] = {
3117
0
            { 0.7, 0.7, 0.7, 0.7, 0.7, 0.8, 0.8, 0.9, 0.9, 0.9, 0.9 },
3118
0
            { 0.7, 0.7, 0.7, 0.7, 0.8, 0.8, 1, 1, 1, 1, 1 },
3119
0
            { 0.7, 0.7, 0.7, 0.7, 1, 1, 1, 1, 1, 1, 1 }
3120
0
          };
3121
0
          assert(pix_idx >= 0);
3122
0
          assert(th_idx <= 2);
3123
0
          if (args->best_pred_sse < scale_factor[th_idx][pix_idx] * this_sse)
3124
0
            continue;
3125
0
        }
3126
0
      }
3127
3128
0
      rd_stats->rate += rate_mv;
3129
0
    }
3130
    // Copy the motion vector for this mode into mbmi struct
3131
0
    for (i = 0; i < is_comp_pred + 1; ++i) {
3132
0
      mbmi->mv[i].as_int = cur_mv[i].as_int;
3133
0
    }
3134
3135
0
    if (RDCOST(x->rdmult, rd_stats->rate, 0) > ref_best_rd &&
3136
0
        mbmi->mode != NEARESTMV && mbmi->mode != NEAREST_NEARESTMV) {
3137
0
      continue;
3138
0
    }
3139
3140
    // Skip the rest of the search if prune_ref_mv_idx_search speed feature
3141
    // is enabled, and the current MV is similar to a previous one.
3142
0
    if (cpi->sf.inter_sf.prune_ref_mv_idx_search && is_comp_pred &&
3143
0
        prune_ref_mv_idx_search(ref_mv_idx, best_ref_mv_idx, save_mv, mbmi,
3144
0
                                cpi->sf.inter_sf.prune_ref_mv_idx_search))
3145
0
      continue;
3146
3147
0
    if (cpi->sf.gm_sf.prune_zero_mv_with_sse &&
3148
0
        (this_mode == GLOBALMV || this_mode == GLOBAL_GLOBALMV)) {
3149
0
      if (prune_zero_mv_with_sse(cpi->ppi->fn_ptr, x, bsize, args,
3150
0
                                 cpi->sf.gm_sf.prune_zero_mv_with_sse)) {
3151
0
        continue;
3152
0
      }
3153
0
    }
3154
3155
    // Flag to indicate whether to skip av1_enc_build_inter_predictor() after
3156
    // interpolation filter search
3157
0
    int skip_build_pred = INTERP_EVAL_LUMA_EVAL_CHROMA;
3158
0
    const int mi_row = xd->mi_row;
3159
0
    const int mi_col = xd->mi_col;
3160
3161
    // Handle a compound predictor, continue if it is determined this
3162
    // cannot be the best compound mode
3163
0
    if (is_comp_pred) {
3164
#if CONFIG_COLLECT_COMPONENT_TIMING
3165
      start_timing(cpi, compound_type_rd_time);
3166
#endif
3167
0
      const int not_best_mode = process_compound_inter_mode(
3168
0
          cpi, x, args, ref_best_rd, cur_mv, bsize, &compmode_interinter_cost,
3169
0
          rd_buffers, &orig_dst, &tmp_dst, &rate_mv, rd_stats, skip_rd,
3170
0
          &skip_build_pred);
3171
#if CONFIG_COLLECT_COMPONENT_TIMING
3172
      end_timing(cpi, compound_type_rd_time);
3173
#endif
3174
0
      if (not_best_mode) continue;
3175
0
    }
3176
3177
0
    if (!args->skip_ifs) {
3178
#if CONFIG_COLLECT_COMPONENT_TIMING
3179
      start_timing(cpi, interpolation_filter_search_time);
3180
#endif
3181
      // Determine the interpolation filter for this mode
3182
0
      ret_val = av1_interpolation_filter_search(
3183
0
          x, cpi, tile_data, bsize, &tmp_dst, &orig_dst, &rd, &rs,
3184
0
          &skip_build_pred, args, ref_best_rd);
3185
#if CONFIG_COLLECT_COMPONENT_TIMING
3186
      end_timing(cpi, interpolation_filter_search_time);
3187
#endif
3188
0
      if (args->modelled_rd != NULL && !is_comp_pred) {
3189
0
        args->modelled_rd[this_mode][ref_mv_idx][refs[0]] = rd;
3190
0
      }
3191
0
      if (ret_val != 0) {
3192
0
        restore_dst_buf(xd, orig_dst, num_planes);
3193
0
        continue;
3194
0
      } else if (cpi->sf.inter_sf.model_based_post_interp_filter_breakout &&
3195
0
                 ref_best_rd != INT64_MAX && (rd >> 3) * 3 > ref_best_rd) {
3196
0
        restore_dst_buf(xd, orig_dst, num_planes);
3197
0
        continue;
3198
0
      }
3199
3200
      // Compute modelled RD if enabled
3201
0
      if (args->modelled_rd != NULL) {
3202
0
        if (is_comp_pred) {
3203
0
          const int mode0 = compound_ref0_mode(this_mode);
3204
0
          const int mode1 = compound_ref1_mode(this_mode);
3205
0
          const int64_t mrd =
3206
0
              AOMMIN(args->modelled_rd[mode0][ref_mv_idx][refs[0]],
3207
0
                     args->modelled_rd[mode1][ref_mv_idx][refs[1]]);
3208
0
          if ((rd >> 3) * 6 > mrd && ref_best_rd < INT64_MAX) {
3209
0
            restore_dst_buf(xd, orig_dst, num_planes);
3210
0
            continue;
3211
0
          }
3212
0
        }
3213
0
      }
3214
0
    }
3215
3216
0
    rd_stats->rate += compmode_interinter_cost;
3217
0
    if (skip_build_pred != INTERP_SKIP_LUMA_SKIP_CHROMA) {
3218
      // Chroma plane of COMPOUND_DIFFWTD mode shares the segment mask of luma
3219
      // which is stored in xd->seg_mask. Hence, the predictor is populated for
3220
      // all planes. This should avoid usage of incorrect segment mask when the
3221
      // call is made only for chroma.
3222
0
      const int skip_luma_plane =
3223
0
          skip_build_pred == INTERP_SKIP_LUMA_EVAL_CHROMA &&
3224
0
          mbmi->interinter_comp.type != COMPOUND_DIFFWTD;
3225
0
      const int start_plane = skip_luma_plane ? AOM_PLANE_U : AOM_PLANE_Y;
3226
      // Build this inter predictor if it has not been previously built
3227
0
      av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, &orig_dst, bsize,
3228
0
                                    start_plane, num_planes - 1);
3229
0
    }
3230
#if CONFIG_COLLECT_COMPONENT_TIMING
3231
    start_timing(cpi, motion_mode_rd_time);
3232
#endif
3233
0
    int rate2_nocoeff = rd_stats->rate;
3234
    // Determine the motion mode. This will be one of SIMPLE_TRANSLATION,
3235
    // OBMC_CAUSAL or WARPED_CAUSAL
3236
0
    int64_t this_yrd;
3237
0
    ret_val = motion_mode_rd(cpi, tile_data, x, bsize, rd_stats, rd_stats_y,
3238
0
                             rd_stats_uv, args, ref_best_rd, skip_rd, &rate_mv,
3239
0
                             &orig_dst, best_est_rd, do_tx_search,
3240
0
                             inter_modes_info, 0, &this_yrd);
3241
#if CONFIG_COLLECT_COMPONENT_TIMING
3242
    end_timing(cpi, motion_mode_rd_time);
3243
#endif
3244
0
    assert(
3245
0
        IMPLIES(!av1_check_newmv_joint_nonzero(cm, x), ret_val == INT64_MAX));
3246
3247
0
    if (ret_val != INT64_MAX) {
3248
0
      int64_t tmp_rd = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
3249
0
      const THR_MODES mode_enum = get_prediction_mode_idx(
3250
0
          mbmi->mode, mbmi->ref_frame[0], mbmi->ref_frame[1]);
3251
      // Collect mode stats for multiwinner mode processing
3252
0
      store_winner_mode_stats(cpi, x, mbmi, rd_stats, rd_stats_y, rd_stats_uv,
3253
0
                              mode_enum, NULL, bsize, tmp_rd,
3254
0
                              cpi->sf.winner_mode_sf.multi_winner_mode_type,
3255
0
                              do_tx_search);
3256
0
      if (tmp_rd < best_rd) {
3257
0
        best_yrd = this_yrd;
3258
        // Update the best rd stats if we found the best mode so far
3259
0
        best_rd_stats = *rd_stats;
3260
0
        best_rd_stats_y = *rd_stats_y;
3261
0
        best_rd_stats_uv = *rd_stats_uv;
3262
0
        best_rd = tmp_rd;
3263
0
        best_mbmi = *mbmi;
3264
0
        best_xskip_txfm = txfm_info->skip_txfm;
3265
0
        av1_copy_array(best_tx_type_map, xd->tx_type_map,
3266
0
                       xd->height * xd->width);
3267
0
        motion_mode_cand->rate_mv = rate_mv;
3268
0
        motion_mode_cand->rate2_nocoeff = rate2_nocoeff;
3269
0
      }
3270
3271
0
      if (tmp_rd < ref_best_rd) {
3272
0
        ref_best_rd = tmp_rd;
3273
0
        best_ref_mv_idx = ref_mv_idx;
3274
0
      }
3275
0
    }
3276
0
    restore_dst_buf(xd, orig_dst, num_planes);
3277
0
  }
3278
3279
0
  if (best_rd == INT64_MAX) return INT64_MAX;
3280
3281
  // re-instate status of the best choice
3282
0
  *rd_stats = best_rd_stats;
3283
0
  *rd_stats_y = best_rd_stats_y;
3284
0
  *rd_stats_uv = best_rd_stats_uv;
3285
0
  *yrd = best_yrd;
3286
0
  *mbmi = best_mbmi;
3287
0
  txfm_info->skip_txfm = best_xskip_txfm;
3288
0
  assert(IMPLIES(mbmi->comp_group_idx == 1,
3289
0
                 mbmi->interinter_comp.type != COMPOUND_AVERAGE));
3290
0
  av1_copy_array(xd->tx_type_map, best_tx_type_map, xd->height * xd->width);
3291
3292
0
  rd_stats->rdcost = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
3293
3294
0
  return rd_stats->rdcost;
3295
0
}
3296
3297
/*!\brief Search for the best intrabc predictor
3298
 *
3299
 * \ingroup intra_mode_search
3300
 * \callergraph
3301
 * This function performs a motion search to find the best intrabc predictor.
3302
 *
3303
 * \returns Returns the best overall rdcost (including the non-intrabc modes
3304
 * search before this function).
3305
 */
3306
static int64_t rd_pick_intrabc_mode_sb(const AV1_COMP *cpi, MACROBLOCK *x,
3307
                                       PICK_MODE_CONTEXT *ctx,
3308
                                       RD_STATS *rd_stats, BLOCK_SIZE bsize,
3309
0
                                       int64_t best_rd) {
3310
0
  const AV1_COMMON *const cm = &cpi->common;
3311
0
  if (!av1_allow_intrabc(cm) || !cpi->oxcf.kf_cfg.enable_intrabc ||
3312
0
      !cpi->sf.mv_sf.use_intrabc ||
3313
0
      (cpi->sf.rt_sf.use_nonrd_pick_mode && !cpi->sf.rt_sf.rt_use_intrabc))
3314
0
    return INT64_MAX;
3315
0
  if (cpi->sf.mv_sf.intrabc_search_level >= 1 && bsize != BLOCK_4X4 &&
3316
0
      bsize != BLOCK_8X8 && bsize != BLOCK_16X16) {
3317
0
    return INT64_MAX;
3318
0
  }
3319
0
  const int num_planes = av1_num_planes(cm);
3320
3321
0
  MACROBLOCKD *const xd = &x->e_mbd;
3322
0
  const TileInfo *tile = &xd->tile;
3323
0
  MB_MODE_INFO *mbmi = xd->mi[0];
3324
3325
0
  const int mi_row = xd->mi_row;
3326
0
  const int mi_col = xd->mi_col;
3327
0
  const int w = block_size_wide[bsize];
3328
0
  const int h = block_size_high[bsize];
3329
0
  const int sb_row = mi_row >> cm->seq_params->mib_size_log2;
3330
0
  const int sb_col = mi_col >> cm->seq_params->mib_size_log2;
3331
3332
0
  MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
3333
0
  const MV_REFERENCE_FRAME ref_frame = INTRA_FRAME;
3334
0
  av1_find_mv_refs(cm, xd, mbmi, ref_frame, mbmi_ext->ref_mv_count,
3335
0
                   xd->ref_mv_stack, xd->weight, NULL, mbmi_ext->global_mvs,
3336
0
                   mbmi_ext->mode_context);
3337
  // TODO(Ravi): Populate mbmi_ext->ref_mv_stack[ref_frame][4] and
3338
  // mbmi_ext->weight[ref_frame][4] inside av1_find_mv_refs.
3339
0
  av1_copy_usable_ref_mv_stack_and_weight(xd, mbmi_ext, ref_frame);
3340
0
  int_mv nearestmv, nearmv;
3341
0
  av1_find_best_ref_mvs_from_stack(0, mbmi_ext, ref_frame, &nearestmv, &nearmv,
3342
0
                                   0);
3343
3344
0
  if (nearestmv.as_int == INVALID_MV) {
3345
0
    nearestmv.as_int = 0;
3346
0
  }
3347
0
  if (nearmv.as_int == INVALID_MV) {
3348
0
    nearmv.as_int = 0;
3349
0
  }
3350
3351
0
  int_mv dv_ref = nearestmv.as_int == 0 ? nearmv : nearestmv;
3352
0
  if (dv_ref.as_int == 0) {
3353
0
    av1_find_ref_dv(&dv_ref, tile, cm->seq_params->mib_size, mi_row);
3354
0
  }
3355
  // Ref DV should not have sub-pel.
3356
0
  assert((dv_ref.as_mv.col & 7) == 0);
3357
0
  assert((dv_ref.as_mv.row & 7) == 0);
3358
0
  mbmi_ext->ref_mv_stack[INTRA_FRAME][0].this_mv = dv_ref;
3359
3360
0
  struct buf_2d yv12_mb[MAX_MB_PLANE];
3361
0
  av1_setup_pred_block(xd, yv12_mb, xd->cur_buf, NULL, NULL, num_planes);
3362
0
  for (int i = 0; i < num_planes; ++i) {
3363
0
    xd->plane[i].pre[0] = yv12_mb[i];
3364
0
  }
3365
3366
0
  enum IntrabcMotionDirection {
3367
0
    IBC_MOTION_ABOVE,
3368
0
    IBC_MOTION_LEFT,
3369
0
    IBC_MOTION_DIRECTIONS
3370
0
  };
3371
3372
0
  MB_MODE_INFO best_mbmi = *mbmi;
3373
0
  RD_STATS best_rdstats = *rd_stats;
3374
0
  uint8_t best_tx_type_map[MAX_MIB_SIZE * MAX_MIB_SIZE];
3375
0
  av1_copy_array(best_tx_type_map, xd->tx_type_map, ctx->num_4x4_blk);
3376
3377
0
  FULLPEL_MOTION_SEARCH_PARAMS fullms_params;
3378
0
  const SEARCH_METHODS search_method =
3379
0
      av1_get_default_mv_search_method(x, &cpi->sf.mv_sf, bsize);
3380
0
  const search_site_config *lookahead_search_sites =
3381
0
      cpi->mv_search_params.search_site_cfg[SS_CFG_LOOKAHEAD];
3382
0
  const FULLPEL_MV start_mv = get_fullmv_from_mv(&dv_ref.as_mv);
3383
0
  av1_make_default_fullpel_ms_params(&fullms_params, cpi, x, bsize,
3384
0
                                     &dv_ref.as_mv, start_mv,
3385
0
                                     lookahead_search_sites, search_method,
3386
0
                                     /*fine_search_interval=*/0);
3387
0
  const IntraBCMVCosts *const dv_costs = x->dv_costs;
3388
0
  av1_set_ms_to_intra_mode(&fullms_params, dv_costs);
3389
3390
0
  const enum IntrabcMotionDirection max_dir = cpi->sf.mv_sf.intrabc_search_level
3391
0
                                                  ? IBC_MOTION_LEFT
3392
0
                                                  : IBC_MOTION_DIRECTIONS;
3393
3394
0
  for (enum IntrabcMotionDirection dir = IBC_MOTION_ABOVE; dir < max_dir;
3395
0
       ++dir) {
3396
0
    switch (dir) {
3397
0
      case IBC_MOTION_ABOVE:
3398
0
        fullms_params.mv_limits.col_min =
3399
0
            (tile->mi_col_start - mi_col) * MI_SIZE;
3400
0
        fullms_params.mv_limits.col_max =
3401
0
            (tile->mi_col_end - mi_col) * MI_SIZE - w;
3402
0
        fullms_params.mv_limits.row_min =
3403
0
            (tile->mi_row_start - mi_row) * MI_SIZE;
3404
0
        fullms_params.mv_limits.row_max =
3405
0
            (sb_row * cm->seq_params->mib_size - mi_row) * MI_SIZE - h;
3406
0
        break;
3407
0
      case IBC_MOTION_LEFT:
3408
0
        fullms_params.mv_limits.col_min =
3409
0
            (tile->mi_col_start - mi_col) * MI_SIZE;
3410
0
        fullms_params.mv_limits.col_max =
3411
0
            (sb_col * cm->seq_params->mib_size - mi_col) * MI_SIZE - w;
3412
        // TODO(aconverse@google.com): Minimize the overlap between above and
3413
        // left areas.
3414
0
        fullms_params.mv_limits.row_min =
3415
0
            (tile->mi_row_start - mi_row) * MI_SIZE;
3416
0
        int bottom_coded_mi_edge =
3417
0
            AOMMIN((sb_row + 1) * cm->seq_params->mib_size, tile->mi_row_end);
3418
0
        fullms_params.mv_limits.row_max =
3419
0
            (bottom_coded_mi_edge - mi_row) * MI_SIZE - h;
3420
0
        break;
3421
0
      default: assert(0);
3422
0
    }
3423
0
    assert(fullms_params.mv_limits.col_min >= fullms_params.mv_limits.col_min);
3424
0
    assert(fullms_params.mv_limits.col_max <= fullms_params.mv_limits.col_max);
3425
0
    assert(fullms_params.mv_limits.row_min >= fullms_params.mv_limits.row_min);
3426
0
    assert(fullms_params.mv_limits.row_max <= fullms_params.mv_limits.row_max);
3427
3428
0
    av1_set_mv_search_range(&fullms_params.mv_limits, &dv_ref.as_mv);
3429
3430
0
    if (fullms_params.mv_limits.col_max < fullms_params.mv_limits.col_min ||
3431
0
        fullms_params.mv_limits.row_max < fullms_params.mv_limits.row_min) {
3432
0
      continue;
3433
0
    }
3434
3435
0
    const int step_param = cpi->mv_search_params.mv_step_param;
3436
0
    IntraBCHashInfo *intrabc_hash_info = &x->intrabc_hash_info;
3437
0
    int_mv best_mv;
3438
0
    FULLPEL_MV_STATS best_mv_stats;
3439
0
    int bestsme = INT_MAX;
3440
3441
    // Perform a hash search first, and see if we get any matches.
3442
0
    if (!cpi->sf.mv_sf.hash_max_8x8_intrabc_blocks || bsize <= BLOCK_8X8) {
3443
0
      bestsme = av1_intrabc_hash_search(cpi, xd, &fullms_params,
3444
0
                                        intrabc_hash_info, &best_mv.as_fullmv);
3445
0
    }
3446
3447
    // If intrabc_search_level is not 0 and we found a hash search match, do
3448
    // not proceed with pixel search as the hash match is very likely to be the
3449
    // best intrabc candidate anyway.
3450
0
    if (bestsme == INT_MAX || cpi->sf.mv_sf.intrabc_search_level == 0) {
3451
0
      int_mv best_pixel_mv;
3452
0
      const int pixelsme =
3453
0
          av1_full_pixel_search(start_mv, &fullms_params, step_param, NULL,
3454
0
                                &best_pixel_mv.as_fullmv, &best_mv_stats, NULL);
3455
0
      if (pixelsme < bestsme) {
3456
0
        bestsme = pixelsme;
3457
0
        best_mv = best_pixel_mv;
3458
0
      }
3459
0
    }
3460
0
    if (bestsme == INT_MAX) continue;
3461
0
    const MV dv = get_mv_from_fullmv(&best_mv.as_fullmv);
3462
0
    if (!av1_is_fullmv_in_range(&fullms_params.mv_limits,
3463
0
                                get_fullmv_from_mv(&dv)))
3464
0
      continue;
3465
0
    if (!av1_is_dv_valid(dv, cm, xd, mi_row, mi_col, bsize,
3466
0
                         cm->seq_params->mib_size_log2))
3467
0
      continue;
3468
3469
    // DV should not have sub-pel.
3470
0
    assert((dv.col & 7) == 0);
3471
0
    assert((dv.row & 7) == 0);
3472
0
    memset(&mbmi->palette_mode_info, 0, sizeof(mbmi->palette_mode_info));
3473
0
    mbmi->filter_intra_mode_info.use_filter_intra = 0;
3474
0
    mbmi->use_intrabc = 1;
3475
0
    mbmi->mode = DC_PRED;
3476
0
    mbmi->uv_mode = UV_DC_PRED;
3477
0
    mbmi->motion_mode = SIMPLE_TRANSLATION;
3478
0
    mbmi->mv[0].as_mv = dv;
3479
0
    mbmi->interp_filters = av1_broadcast_interp_filter(BILINEAR);
3480
0
    mbmi->skip_txfm = 0;
3481
0
    av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, NULL, bsize, 0,
3482
0
                                  av1_num_planes(cm) - 1);
3483
3484
    // TODO(aconverse@google.com): The full motion field defining discount
3485
    // in MV_COST_WEIGHT is too large. Explore other values.
3486
0
    const int rate_mv = av1_mv_bit_cost(&dv, &dv_ref.as_mv, dv_costs->joint_mv,
3487
0
                                        dv_costs->dv_costs, MV_COST_WEIGHT_SUB);
3488
0
    const int rate_mode = x->mode_costs.intrabc_cost[1];
3489
0
    RD_STATS rd_stats_yuv, rd_stats_y, rd_stats_uv;
3490
0
    if (!av1_txfm_search(cpi, x, bsize, &rd_stats_yuv, &rd_stats_y,
3491
0
                         &rd_stats_uv, rate_mode + rate_mv, INT64_MAX))
3492
0
      continue;
3493
0
    rd_stats_yuv.rdcost =
3494
0
        RDCOST(x->rdmult, rd_stats_yuv.rate, rd_stats_yuv.dist);
3495
0
    if (rd_stats_yuv.rdcost < best_rd) {
3496
0
      best_rd = rd_stats_yuv.rdcost;
3497
0
      best_mbmi = *mbmi;
3498
0
      best_rdstats = rd_stats_yuv;
3499
0
      av1_copy_array(best_tx_type_map, xd->tx_type_map, xd->height * xd->width);
3500
0
    }
3501
0
  }
3502
0
  *mbmi = best_mbmi;
3503
0
  *rd_stats = best_rdstats;
3504
0
  av1_copy_array(xd->tx_type_map, best_tx_type_map, ctx->num_4x4_blk);
3505
#if CONFIG_RD_DEBUG
3506
  mbmi->rd_stats = *rd_stats;
3507
#endif
3508
0
  return best_rd;
3509
0
}
3510
3511
// TODO(chiyotsai@google.com): We are using struct $struct_name instead of their
3512
// typedef here because Doxygen doesn't know about the typedefs yet. So using
3513
// the typedef will prevent doxygen from finding this function and generating
3514
// the callgraph. Once documents for AV1_COMP and MACROBLOCK are added to
3515
// doxygen, we can revert back to using the typedefs.
3516
void av1_rd_pick_intra_mode_sb(const struct AV1_COMP *cpi, struct macroblock *x,
3517
                               struct RD_STATS *rd_cost, BLOCK_SIZE bsize,
3518
0
                               PICK_MODE_CONTEXT *ctx, int64_t best_rd) {
3519
0
  const AV1_COMMON *const cm = &cpi->common;
3520
0
  MACROBLOCKD *const xd = &x->e_mbd;
3521
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3522
0
  const int num_planes = av1_num_planes(cm);
3523
0
  int rate_y = 0, rate_uv = 0, rate_y_tokenonly = 0, rate_uv_tokenonly = 0;
3524
0
  uint8_t y_skip_txfm = 0, uv_skip_txfm = 0;
3525
0
  int64_t dist_y = 0, dist_uv = 0;
3526
3527
0
  ctx->rd_stats.skip_txfm = 0;
3528
0
  mbmi->ref_frame[0] = INTRA_FRAME;
3529
0
  mbmi->ref_frame[1] = NONE_FRAME;
3530
0
  mbmi->use_intrabc = 0;
3531
0
  mbmi->mv[0].as_int = 0;
3532
0
  mbmi->skip_mode = 0;
3533
3534
0
  const int64_t intra_yrd =
3535
0
      av1_rd_pick_intra_sby_mode(cpi, x, &rate_y, &rate_y_tokenonly, &dist_y,
3536
0
                                 &y_skip_txfm, bsize, best_rd, ctx);
3537
3538
  // Initialize default mode evaluation params
3539
0
  set_mode_eval_params(cpi, x, DEFAULT_EVAL);
3540
3541
0
  if (intra_yrd < best_rd) {
3542
    // Search intra modes for uv planes if needed
3543
0
    if (num_planes > 1) {
3544
      // Set up the tx variables for reproducing the y predictions in case we
3545
      // need it for chroma-from-luma.
3546
0
      if (xd->is_chroma_ref && store_cfl_required_rdo(cm, x)) {
3547
0
        av1_copy_array(xd->tx_type_map, ctx->tx_type_map, ctx->num_4x4_blk);
3548
0
      }
3549
0
      const TX_SIZE max_uv_tx_size = av1_get_tx_size(AOM_PLANE_U, xd);
3550
0
      av1_rd_pick_intra_sbuv_mode(cpi, x, &rate_uv, &rate_uv_tokenonly,
3551
0
                                  &dist_uv, &uv_skip_txfm, bsize,
3552
0
                                  max_uv_tx_size);
3553
0
    }
3554
3555
    // Intra block is always coded as non-skip
3556
0
    rd_cost->rate =
3557
0
        rate_y + rate_uv +
3558
0
        x->mode_costs.skip_txfm_cost[av1_get_skip_txfm_context(xd)][0];
3559
0
    rd_cost->dist = dist_y + dist_uv;
3560
0
    rd_cost->rdcost = RDCOST(x->rdmult, rd_cost->rate, rd_cost->dist);
3561
0
    rd_cost->skip_txfm = 0;
3562
0
  } else {
3563
0
    rd_cost->rate = INT_MAX;
3564
0
  }
3565
3566
0
  if (rd_cost->rate != INT_MAX && rd_cost->rdcost < best_rd)
3567
0
    best_rd = rd_cost->rdcost;
3568
0
  if (rd_pick_intrabc_mode_sb(cpi, x, ctx, rd_cost, bsize, best_rd) < best_rd) {
3569
0
    ctx->rd_stats.skip_txfm = mbmi->skip_txfm;
3570
0
    assert(rd_cost->rate != INT_MAX);
3571
0
  }
3572
0
  if (rd_cost->rate == INT_MAX) return;
3573
3574
0
  ctx->mic = *mbmi;
3575
0
  av1_copy_mbmi_ext_to_mbmi_ext_frame(&ctx->mbmi_ext_best, &x->mbmi_ext,
3576
0
                                      av1_ref_frame_type(xd->mi[0]->ref_frame));
3577
0
  av1_copy_array(ctx->tx_type_map, xd->tx_type_map, ctx->num_4x4_blk);
3578
0
}
3579
3580
static inline void calc_target_weighted_pred(
3581
    const AV1_COMMON *cm, const MACROBLOCK *x, const MACROBLOCKD *xd,
3582
    const uint8_t *above, int above_stride, const uint8_t *left,
3583
    int left_stride);
3584
3585
static inline void rd_pick_skip_mode(
3586
    RD_STATS *rd_cost, InterModeSearchState *search_state,
3587
    const AV1_COMP *const cpi, MACROBLOCK *const x, BLOCK_SIZE bsize,
3588
0
    struct buf_2d yv12_mb[REF_FRAMES][MAX_MB_PLANE]) {
3589
0
  const AV1_COMMON *const cm = &cpi->common;
3590
0
  const SkipModeInfo *const skip_mode_info = &cm->current_frame.skip_mode_info;
3591
0
  const int num_planes = av1_num_planes(cm);
3592
0
  MACROBLOCKD *const xd = &x->e_mbd;
3593
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3594
3595
0
  x->compound_idx = 1;  // COMPOUND_AVERAGE
3596
0
  RD_STATS skip_mode_rd_stats;
3597
0
  av1_invalid_rd_stats(&skip_mode_rd_stats);
3598
3599
0
  if (skip_mode_info->ref_frame_idx_0 == INVALID_IDX ||
3600
0
      skip_mode_info->ref_frame_idx_1 == INVALID_IDX) {
3601
0
    return;
3602
0
  }
3603
3604
0
  const MV_REFERENCE_FRAME ref_frame =
3605
0
      LAST_FRAME + skip_mode_info->ref_frame_idx_0;
3606
0
  const MV_REFERENCE_FRAME second_ref_frame =
3607
0
      LAST_FRAME + skip_mode_info->ref_frame_idx_1;
3608
0
  const PREDICTION_MODE this_mode = NEAREST_NEARESTMV;
3609
0
  const THR_MODES mode_index =
3610
0
      get_prediction_mode_idx(this_mode, ref_frame, second_ref_frame);
3611
3612
0
  if (mode_index == THR_INVALID) {
3613
0
    return;
3614
0
  }
3615
3616
0
  if ((!cpi->oxcf.ref_frm_cfg.enable_onesided_comp ||
3617
0
       cpi->sf.inter_sf.disable_onesided_comp) &&
3618
0
      cpi->all_one_sided_refs) {
3619
0
    return;
3620
0
  }
3621
3622
0
  mbmi->mode = this_mode;
3623
0
  mbmi->uv_mode = UV_DC_PRED;
3624
0
  mbmi->ref_frame[0] = ref_frame;
3625
0
  mbmi->ref_frame[1] = second_ref_frame;
3626
0
  const uint8_t ref_frame_type = av1_ref_frame_type(mbmi->ref_frame);
3627
0
  if (x->mbmi_ext.ref_mv_count[ref_frame_type] == UINT8_MAX) {
3628
0
    MB_MODE_INFO_EXT *mbmi_ext = &x->mbmi_ext;
3629
0
    if (mbmi_ext->ref_mv_count[ref_frame] == UINT8_MAX ||
3630
0
        mbmi_ext->ref_mv_count[second_ref_frame] == UINT8_MAX) {
3631
0
      return;
3632
0
    }
3633
0
    av1_find_mv_refs(cm, xd, mbmi, ref_frame_type, mbmi_ext->ref_mv_count,
3634
0
                     xd->ref_mv_stack, xd->weight, NULL, mbmi_ext->global_mvs,
3635
0
                     mbmi_ext->mode_context);
3636
    // TODO(Ravi): Populate mbmi_ext->ref_mv_stack[ref_frame][4] and
3637
    // mbmi_ext->weight[ref_frame][4] inside av1_find_mv_refs.
3638
0
    av1_copy_usable_ref_mv_stack_and_weight(xd, mbmi_ext, ref_frame_type);
3639
0
  }
3640
3641
0
  assert(this_mode == NEAREST_NEARESTMV);
3642
0
  if (!build_cur_mv(mbmi->mv, this_mode, cm, x, 0)) {
3643
0
    return;
3644
0
  }
3645
3646
0
  mbmi->filter_intra_mode_info.use_filter_intra = 0;
3647
0
  mbmi->interintra_mode = (INTERINTRA_MODE)(II_DC_PRED - 1);
3648
0
  mbmi->comp_group_idx = 0;
3649
0
  mbmi->compound_idx = x->compound_idx;
3650
0
  mbmi->interinter_comp.type = COMPOUND_AVERAGE;
3651
0
  mbmi->motion_mode = SIMPLE_TRANSLATION;
3652
0
  mbmi->ref_mv_idx = 0;
3653
0
  mbmi->skip_mode = mbmi->skip_txfm = 1;
3654
0
  mbmi->palette_mode_info.palette_size[0] = 0;
3655
0
  mbmi->palette_mode_info.palette_size[1] = 0;
3656
3657
0
  set_default_interp_filters(mbmi, cm->features.interp_filter);
3658
3659
0
  set_ref_ptrs(cm, xd, mbmi->ref_frame[0], mbmi->ref_frame[1]);
3660
0
  for (int i = 0; i < num_planes; i++) {
3661
0
    xd->plane[i].pre[0] = yv12_mb[mbmi->ref_frame[0]][i];
3662
0
    xd->plane[i].pre[1] = yv12_mb[mbmi->ref_frame[1]][i];
3663
0
  }
3664
3665
0
  BUFFER_SET orig_dst;
3666
0
  for (int i = 0; i < num_planes; i++) {
3667
0
    orig_dst.plane[i] = xd->plane[i].dst.buf;
3668
0
    orig_dst.stride[i] = xd->plane[i].dst.stride;
3669
0
  }
3670
3671
  // Compare the use of skip_mode with the best intra/inter mode obtained.
3672
0
  const int skip_mode_ctx = av1_get_skip_mode_context(xd);
3673
0
  int64_t best_intra_inter_mode_cost = INT64_MAX;
3674
0
  if (rd_cost->dist < INT64_MAX && rd_cost->rate < INT32_MAX) {
3675
0
    const ModeCosts *mode_costs = &x->mode_costs;
3676
0
    best_intra_inter_mode_cost = RDCOST(
3677
0
        x->rdmult, rd_cost->rate + mode_costs->skip_mode_cost[skip_mode_ctx][0],
3678
0
        rd_cost->dist);
3679
    // Account for non-skip mode rate in total rd stats
3680
0
    rd_cost->rate += mode_costs->skip_mode_cost[skip_mode_ctx][0];
3681
0
    av1_rd_cost_update(x->rdmult, rd_cost);
3682
0
  }
3683
3684
  // Obtain the rdcost for skip_mode.
3685
0
  skip_mode_rd(&skip_mode_rd_stats, cpi, x, bsize, &orig_dst,
3686
0
               best_intra_inter_mode_cost);
3687
3688
0
  if (skip_mode_rd_stats.rdcost <= best_intra_inter_mode_cost &&
3689
0
      (!xd->lossless[mbmi->segment_id] || skip_mode_rd_stats.dist == 0)) {
3690
0
    assert(mode_index != THR_INVALID);
3691
0
    search_state->best_mbmode.skip_mode = 1;
3692
0
    search_state->best_mbmode = *mbmi;
3693
0
    memset(search_state->best_mbmode.inter_tx_size,
3694
0
           search_state->best_mbmode.tx_size,
3695
0
           sizeof(search_state->best_mbmode.inter_tx_size));
3696
0
    set_txfm_ctxs(search_state->best_mbmode.tx_size, xd->width, xd->height,
3697
0
                  search_state->best_mbmode.skip_txfm && is_inter_block(mbmi),
3698
0
                  xd);
3699
0
    search_state->best_mode_index = mode_index;
3700
3701
    // Update rd_cost
3702
0
    rd_cost->rate = skip_mode_rd_stats.rate;
3703
0
    rd_cost->dist = rd_cost->sse = skip_mode_rd_stats.dist;
3704
0
    rd_cost->rdcost = skip_mode_rd_stats.rdcost;
3705
3706
0
    search_state->best_rd = rd_cost->rdcost;
3707
0
    search_state->best_skip2 = 1;
3708
0
    search_state->best_mode_skippable = 1;
3709
3710
0
    x->txfm_search_info.skip_txfm = 1;
3711
0
  }
3712
0
}
3713
3714
// Get winner mode stats of given mode index
3715
static inline MB_MODE_INFO *get_winner_mode_stats(
3716
    MACROBLOCK *x, MB_MODE_INFO *best_mbmode, RD_STATS *best_rd_cost,
3717
    int best_rate_y, int best_rate_uv, THR_MODES *best_mode_index,
3718
    RD_STATS **winner_rd_cost, int *winner_rate_y, int *winner_rate_uv,
3719
    THR_MODES *winner_mode_index, MULTI_WINNER_MODE_TYPE multi_winner_mode_type,
3720
0
    int mode_idx) {
3721
0
  MB_MODE_INFO *winner_mbmi;
3722
0
  if (multi_winner_mode_type) {
3723
0
    assert(mode_idx >= 0 && mode_idx < x->winner_mode_count);
3724
0
    WinnerModeStats *winner_mode_stat = &x->winner_mode_stats[mode_idx];
3725
0
    winner_mbmi = &winner_mode_stat->mbmi;
3726
3727
0
    *winner_rd_cost = &winner_mode_stat->rd_cost;
3728
0
    *winner_rate_y = winner_mode_stat->rate_y;
3729
0
    *winner_rate_uv = winner_mode_stat->rate_uv;
3730
0
    *winner_mode_index = winner_mode_stat->mode_index;
3731
0
  } else {
3732
0
    winner_mbmi = best_mbmode;
3733
0
    *winner_rd_cost = best_rd_cost;
3734
0
    *winner_rate_y = best_rate_y;
3735
0
    *winner_rate_uv = best_rate_uv;
3736
0
    *winner_mode_index = *best_mode_index;
3737
0
  }
3738
0
  return winner_mbmi;
3739
0
}
3740
3741
// speed feature: fast intra/inter transform type search
3742
// Used for speed >= 2
3743
// When this speed feature is on, in rd mode search, only DCT is used.
3744
// After the mode is determined, this function is called, to select
3745
// transform types and get accurate rdcost.
3746
static inline void refine_winner_mode_tx(
3747
    const AV1_COMP *cpi, MACROBLOCK *x, RD_STATS *rd_cost, BLOCK_SIZE bsize,
3748
    PICK_MODE_CONTEXT *ctx, THR_MODES *best_mode_index,
3749
    MB_MODE_INFO *best_mbmode, struct buf_2d yv12_mb[REF_FRAMES][MAX_MB_PLANE],
3750
0
    int best_rate_y, int best_rate_uv, int *best_skip2, int winner_mode_count) {
3751
0
  const AV1_COMMON *const cm = &cpi->common;
3752
0
  MACROBLOCKD *const xd = &x->e_mbd;
3753
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3754
0
  TxfmSearchParams *txfm_params = &x->txfm_search_params;
3755
0
  int64_t best_rd;
3756
0
  const int num_planes = av1_num_planes(cm);
3757
3758
0
  if (!is_winner_mode_processing_enabled(cpi, x, best_mbmode,
3759
0
                                         rd_cost->skip_txfm))
3760
0
    return;
3761
3762
  // Set params for winner mode evaluation
3763
0
  set_mode_eval_params(cpi, x, WINNER_MODE_EVAL);
3764
3765
  // No best mode identified so far
3766
0
  if (*best_mode_index == THR_INVALID) return;
3767
3768
0
  best_rd = RDCOST(x->rdmult, rd_cost->rate, rd_cost->dist);
3769
0
  for (int mode_idx = 0; mode_idx < winner_mode_count; mode_idx++) {
3770
0
    RD_STATS *winner_rd_stats = NULL;
3771
0
    int winner_rate_y = 0, winner_rate_uv = 0;
3772
0
    THR_MODES winner_mode_index = 0;
3773
3774
    // TODO(any): Combine best mode and multi-winner mode processing paths
3775
    // Get winner mode stats for current mode index
3776
0
    MB_MODE_INFO *winner_mbmi = get_winner_mode_stats(
3777
0
        x, best_mbmode, rd_cost, best_rate_y, best_rate_uv, best_mode_index,
3778
0
        &winner_rd_stats, &winner_rate_y, &winner_rate_uv, &winner_mode_index,
3779
0
        cpi->sf.winner_mode_sf.multi_winner_mode_type, mode_idx);
3780
3781
0
    if (xd->lossless[winner_mbmi->segment_id] == 0 &&
3782
0
        winner_mode_index != THR_INVALID &&
3783
0
        is_winner_mode_processing_enabled(cpi, x, winner_mbmi,
3784
0
                                          rd_cost->skip_txfm)) {
3785
0
      RD_STATS rd_stats = *winner_rd_stats;
3786
0
      int skip_blk = 0;
3787
0
      RD_STATS rd_stats_y, rd_stats_uv;
3788
0
      const int skip_ctx = av1_get_skip_txfm_context(xd);
3789
3790
0
      *mbmi = *winner_mbmi;
3791
3792
0
      set_ref_ptrs(cm, xd, mbmi->ref_frame[0], mbmi->ref_frame[1]);
3793
3794
      // Select prediction reference frames.
3795
0
      for (int i = 0; i < num_planes; i++) {
3796
0
        xd->plane[i].pre[0] = yv12_mb[mbmi->ref_frame[0]][i];
3797
0
        if (has_second_ref(mbmi))
3798
0
          xd->plane[i].pre[1] = yv12_mb[mbmi->ref_frame[1]][i];
3799
0
      }
3800
3801
0
      if (is_inter_mode(mbmi->mode)) {
3802
0
        const int mi_row = xd->mi_row;
3803
0
        const int mi_col = xd->mi_col;
3804
0
        bool is_predictor_built = false;
3805
0
        const PREDICTION_MODE prediction_mode = mbmi->mode;
3806
        // Do interpolation filter search for realtime mode if applicable.
3807
0
        if (cpi->sf.winner_mode_sf.winner_mode_ifs &&
3808
0
            cpi->oxcf.mode == REALTIME &&
3809
0
            cm->current_frame.reference_mode == SINGLE_REFERENCE &&
3810
0
            is_inter_mode(prediction_mode) &&
3811
0
            mbmi->motion_mode == SIMPLE_TRANSLATION &&
3812
0
            !is_inter_compound_mode(prediction_mode)) {
3813
0
          is_predictor_built =
3814
0
              fast_interp_search(cpi, x, mi_row, mi_col, bsize);
3815
0
        }
3816
0
        if (!is_predictor_built) {
3817
0
          av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, NULL, bsize, 0,
3818
0
                                        av1_num_planes(cm) - 1);
3819
0
        }
3820
0
        if (mbmi->motion_mode == OBMC_CAUSAL)
3821
0
          av1_build_obmc_inter_predictors_sb(cm, xd);
3822
3823
0
        av1_subtract_plane(x, bsize, PLANE_TYPE_Y, cpi->do_border_pad);
3824
0
        if (txfm_params->tx_mode_search_type == TX_MODE_SELECT &&
3825
0
            !xd->lossless[mbmi->segment_id]) {
3826
0
          av1_pick_recursive_tx_size_type_yrd(cpi, x, &rd_stats_y, bsize,
3827
0
                                              INT64_MAX);
3828
0
          assert(rd_stats_y.rate != INT_MAX);
3829
0
        } else {
3830
0
          av1_pick_uniform_tx_size_type_yrd(cpi, x, &rd_stats_y, bsize,
3831
0
                                            INT64_MAX);
3832
0
          memset(mbmi->inter_tx_size, mbmi->tx_size,
3833
0
                 sizeof(mbmi->inter_tx_size));
3834
0
        }
3835
0
      } else {
3836
0
        av1_pick_uniform_tx_size_type_yrd(cpi, x, &rd_stats_y, bsize,
3837
0
                                          INT64_MAX);
3838
0
      }
3839
3840
0
      if (num_planes > 1) {
3841
0
        av1_txfm_uvrd(cpi, x, &rd_stats_uv, bsize, INT64_MAX);
3842
0
      } else {
3843
0
        av1_init_rd_stats(&rd_stats_uv);
3844
0
      }
3845
3846
0
      const int comp_pred = mbmi->ref_frame[1] > INTRA_FRAME;
3847
3848
0
      const ModeCosts *mode_costs = &x->mode_costs;
3849
0
      int64_t this_dist = rd_stats_y.dist + rd_stats_uv.dist;
3850
0
      int64_t this_sse = rd_stats_y.sse + rd_stats_uv.sse;
3851
0
      if (cpi->sf.hl_sf.weighted_chroma_distortion) {
3852
0
        this_dist = rd_stats_y.dist + rd_stats_uv.dist * 15 / 16;
3853
0
        this_sse = rd_stats_y.sse + rd_stats_uv.sse * 15 / 16;
3854
0
      }
3855
3856
0
      if (is_inter_mode(mbmi->mode) &&
3857
0
          (!cpi->oxcf.algo_cfg.sharpness || !comp_pred) &&
3858
0
          RDCOST(x->rdmult,
3859
0
                 mode_costs->skip_txfm_cost[skip_ctx][0] + rd_stats_y.rate +
3860
0
                     rd_stats_uv.rate,
3861
0
                 this_dist) > RDCOST(x->rdmult,
3862
0
                                     mode_costs->skip_txfm_cost[skip_ctx][1],
3863
0
                                     this_sse)) {
3864
0
        skip_blk = 1;
3865
0
        rd_stats_y.rate = mode_costs->skip_txfm_cost[skip_ctx][1];
3866
0
        rd_stats_uv.rate = 0;
3867
0
        rd_stats_y.dist = rd_stats_y.sse;
3868
0
        rd_stats_uv.dist = rd_stats_uv.sse;
3869
0
        this_dist = this_sse;
3870
0
      } else {
3871
0
        skip_blk = 0;
3872
0
        rd_stats_y.rate += mode_costs->skip_txfm_cost[skip_ctx][0];
3873
0
      }
3874
0
      increase_motion_mode_rdstats(cpi, mbmi, &rd_stats, &rd_stats_y,
3875
0
                                   &rd_stats_uv);
3876
0
      int this_rate = rd_stats.rate + rd_stats_y.rate + rd_stats_uv.rate -
3877
0
                      winner_rate_y - winner_rate_uv;
3878
0
      int64_t this_rd = RDCOST(x->rdmult, this_rate, this_dist);
3879
0
      if (best_rd > this_rd) {
3880
0
        *best_mbmode = *mbmi;
3881
0
        *best_mode_index = winner_mode_index;
3882
0
        av1_copy_array(ctx->tx_type_map, xd->tx_type_map, ctx->num_4x4_blk);
3883
0
        rd_cost->rate = this_rate;
3884
0
        rd_cost->dist = this_dist;
3885
0
        rd_cost->sse = this_sse;
3886
0
        rd_cost->rdcost = this_rd;
3887
0
        best_rd = this_rd;
3888
0
        *best_skip2 = skip_blk;
3889
0
      }
3890
0
    }
3891
0
  }
3892
0
}
3893
3894
/*!\cond */
3895
typedef struct {
3896
  // Mask for each reference frame, specifying which prediction modes to NOT try
3897
  // during search.
3898
  uint32_t pred_modes[REF_FRAMES];
3899
  // If ref_combo[i][j + 1] is true, do NOT try prediction using combination of
3900
  // reference frames (i, j).
3901
  // Note: indexing with 'j + 1' is due to the fact that 2nd reference can be -1
3902
  // (NONE_FRAME).
3903
  bool ref_combo[REF_FRAMES][REF_FRAMES + 1];
3904
} mode_skip_mask_t;
3905
/*!\endcond */
3906
3907
// Update 'ref_combo' mask to disable given 'ref' in single and compound modes.
3908
static inline void disable_reference(
3909
0
    MV_REFERENCE_FRAME ref, bool ref_combo[REF_FRAMES][REF_FRAMES + 1]) {
3910
0
  for (MV_REFERENCE_FRAME ref2 = NONE_FRAME; ref2 < REF_FRAMES; ++ref2) {
3911
0
    ref_combo[ref][ref2 + 1] = true;
3912
0
  }
3913
0
}
3914
3915
// Update 'ref_combo' mask to disable all inter references except ALTREF.
3916
static inline void disable_inter_references_except_altref(
3917
0
    bool ref_combo[REF_FRAMES][REF_FRAMES + 1]) {
3918
0
  disable_reference(LAST_FRAME, ref_combo);
3919
0
  disable_reference(LAST2_FRAME, ref_combo);
3920
0
  disable_reference(LAST3_FRAME, ref_combo);
3921
0
  disable_reference(GOLDEN_FRAME, ref_combo);
3922
0
  disable_reference(BWDREF_FRAME, ref_combo);
3923
0
  disable_reference(ALTREF2_FRAME, ref_combo);
3924
0
}
3925
3926
static const MV_REFERENCE_FRAME reduced_ref_combos[][2] = {
3927
  { LAST_FRAME, NONE_FRAME },     { ALTREF_FRAME, NONE_FRAME },
3928
  { LAST_FRAME, ALTREF_FRAME },   { GOLDEN_FRAME, NONE_FRAME },
3929
  { INTRA_FRAME, NONE_FRAME },    { GOLDEN_FRAME, ALTREF_FRAME },
3930
  { LAST_FRAME, GOLDEN_FRAME },   { LAST_FRAME, INTRA_FRAME },
3931
  { LAST_FRAME, BWDREF_FRAME },   { LAST_FRAME, LAST3_FRAME },
3932
  { GOLDEN_FRAME, BWDREF_FRAME }, { GOLDEN_FRAME, INTRA_FRAME },
3933
  { BWDREF_FRAME, NONE_FRAME },   { BWDREF_FRAME, ALTREF_FRAME },
3934
  { ALTREF_FRAME, INTRA_FRAME },  { BWDREF_FRAME, INTRA_FRAME },
3935
};
3936
3937
typedef enum { REF_SET_FULL, REF_SET_REDUCED, REF_SET_REALTIME } REF_SET;
3938
3939
0
static inline void default_skip_mask(mode_skip_mask_t *mask, REF_SET ref_set) {
3940
0
  if (ref_set == REF_SET_FULL) {
3941
    // Everything available by default.
3942
0
    memset(mask, 0, sizeof(*mask));
3943
0
  } else {
3944
    // All modes available by default.
3945
0
    memset(mask->pred_modes, 0, sizeof(mask->pred_modes));
3946
    // All references disabled first.
3947
0
    for (MV_REFERENCE_FRAME ref1 = INTRA_FRAME; ref1 < REF_FRAMES; ++ref1) {
3948
0
      for (MV_REFERENCE_FRAME ref2 = NONE_FRAME; ref2 < REF_FRAMES; ++ref2) {
3949
0
        mask->ref_combo[ref1][ref2 + 1] = true;
3950
0
      }
3951
0
    }
3952
0
    const MV_REFERENCE_FRAME(*ref_set_combos)[2];
3953
0
    int num_ref_combos;
3954
3955
    // Then enable reduced set of references explicitly.
3956
0
    switch (ref_set) {
3957
0
      case REF_SET_REDUCED:
3958
0
        ref_set_combos = reduced_ref_combos;
3959
0
        num_ref_combos =
3960
0
            (int)sizeof(reduced_ref_combos) / sizeof(reduced_ref_combos[0]);
3961
0
        break;
3962
0
      case REF_SET_REALTIME:
3963
0
        ref_set_combos = real_time_ref_combos;
3964
0
        num_ref_combos =
3965
0
            (int)sizeof(real_time_ref_combos) / sizeof(real_time_ref_combos[0]);
3966
0
        break;
3967
0
      default: assert(0); num_ref_combos = 0;
3968
0
    }
3969
3970
0
    for (int i = 0; i < num_ref_combos; ++i) {
3971
0
      const MV_REFERENCE_FRAME *const this_combo = ref_set_combos[i];
3972
0
      mask->ref_combo[this_combo[0]][this_combo[1] + 1] = false;
3973
0
    }
3974
0
  }
3975
0
}
3976
3977
static inline void init_mode_skip_mask(mode_skip_mask_t *mask,
3978
                                       const AV1_COMP *cpi, MACROBLOCK *x,
3979
0
                                       BLOCK_SIZE bsize) {
3980
0
  const AV1_COMMON *const cm = &cpi->common;
3981
0
  const struct segmentation *const seg = &cm->seg;
3982
0
  MACROBLOCKD *const xd = &x->e_mbd;
3983
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3984
0
  unsigned char segment_id = mbmi->segment_id;
3985
0
  const SPEED_FEATURES *const sf = &cpi->sf;
3986
0
  const INTER_MODE_SPEED_FEATURES *const inter_sf = &sf->inter_sf;
3987
0
  REF_SET ref_set = REF_SET_FULL;
3988
3989
0
  if (sf->rt_sf.use_real_time_ref_set)
3990
0
    ref_set = REF_SET_REALTIME;
3991
0
  else if (cpi->oxcf.ref_frm_cfg.enable_reduced_reference_set)
3992
0
    ref_set = REF_SET_REDUCED;
3993
3994
0
  default_skip_mask(mask, ref_set);
3995
3996
0
  int min_pred_mv_sad = INT_MAX;
3997
0
  MV_REFERENCE_FRAME ref_frame;
3998
0
  if (ref_set == REF_SET_REALTIME) {
3999
    // For real-time encoding, we only look at a subset of ref frames. So the
4000
    // threshold for pruning should be computed from this subset as well.
4001
0
    const int num_rt_refs =
4002
0
        sizeof(real_time_ref_combos) / sizeof(*real_time_ref_combos);
4003
0
    for (int r_idx = 0; r_idx < num_rt_refs; r_idx++) {
4004
0
      const MV_REFERENCE_FRAME ref = real_time_ref_combos[r_idx][0];
4005
0
      if (ref != INTRA_FRAME) {
4006
0
        const MV_REFERENCE_FRAME ref_frames[2] = { ref, NONE_FRAME };
4007
0
        const int_mv ref_mv =
4008
0
            av1_get_ref_mv_from_stack(0, ref_frames, 0, &x->mbmi_ext);
4009
0
        const FULLPEL_MV full_mv = get_fullmv_from_mv(&ref_mv.as_mv);
4010
0
        if (av1_is_fullmv_in_range(&x->mv_limits, full_mv)) {
4011
0
          min_pred_mv_sad = AOMMIN(min_pred_mv_sad, x->pred_mv_sad[ref]);
4012
0
        }
4013
0
      }
4014
0
    }
4015
0
  } else {
4016
0
    for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame)
4017
0
      min_pred_mv_sad = AOMMIN(min_pred_mv_sad, x->pred_mv_sad[ref_frame]);
4018
0
  }
4019
4020
0
  for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
4021
0
    if (!(cpi->ref_frame_flags & av1_ref_frame_flag_list[ref_frame])) {
4022
      // Skip checking missing reference in both single and compound reference
4023
      // modes.
4024
0
      disable_reference(ref_frame, mask->ref_combo);
4025
0
    } else {
4026
      // Skip fixed mv modes for poor references
4027
0
      if ((x->pred_mv_sad[ref_frame] >> 2) > min_pred_mv_sad) {
4028
0
        mask->pred_modes[ref_frame] |= INTER_NEAREST_NEAR_ZERO;
4029
0
      }
4030
0
    }
4031
0
    if (segfeature_active(seg, segment_id, SEG_LVL_REF_FRAME) &&
4032
0
        get_segdata(seg, segment_id, SEG_LVL_REF_FRAME) != (int)ref_frame) {
4033
      // Reference not used for the segment.
4034
0
      disable_reference(ref_frame, mask->ref_combo);
4035
0
    }
4036
0
  }
4037
  // Note: We use the following drop-out only if the SEG_LVL_REF_FRAME feature
4038
  // is disabled for this segment. This is to prevent the possibility that we
4039
  // end up unable to pick any mode.
4040
0
  if (!segfeature_active(seg, segment_id, SEG_LVL_REF_FRAME)) {
4041
    // Only consider GLOBALMV/ALTREF_FRAME for alt ref frame,
4042
    // unless ARNR filtering is enabled in which case we want
4043
    // an unfiltered alternative. We allow near/nearest as well
4044
    // because they may result in zero-zero MVs but be cheaper.
4045
0
    if (cpi->rc.is_src_frame_alt_ref &&
4046
0
        (cpi->oxcf.algo_cfg.arnr_max_frames == 0)) {
4047
0
      disable_inter_references_except_altref(mask->ref_combo);
4048
4049
0
      mask->pred_modes[ALTREF_FRAME] = ~INTER_NEAREST_NEAR_ZERO;
4050
0
      const MV_REFERENCE_FRAME tmp_ref_frames[2] = { ALTREF_FRAME, NONE_FRAME };
4051
0
      int_mv near_mv, nearest_mv, global_mv;
4052
0
      get_this_mv(&nearest_mv, NEARESTMV, 0, 0, 0, tmp_ref_frames,
4053
0
                  &x->mbmi_ext);
4054
0
      get_this_mv(&near_mv, NEARMV, 0, 0, 0, tmp_ref_frames, &x->mbmi_ext);
4055
0
      get_this_mv(&global_mv, GLOBALMV, 0, 0, 0, tmp_ref_frames, &x->mbmi_ext);
4056
4057
0
      if (near_mv.as_int != global_mv.as_int)
4058
0
        mask->pred_modes[ALTREF_FRAME] |= (1 << NEARMV);
4059
0
      if (nearest_mv.as_int != global_mv.as_int)
4060
0
        mask->pred_modes[ALTREF_FRAME] |= (1 << NEARESTMV);
4061
0
    }
4062
0
  }
4063
4064
0
  if (cpi->rc.is_src_frame_alt_ref) {
4065
0
    if (inter_sf->alt_ref_search_fp &&
4066
0
        (cpi->ref_frame_flags & av1_ref_frame_flag_list[ALTREF_FRAME])) {
4067
0
      mask->pred_modes[ALTREF_FRAME] = 0;
4068
0
      disable_inter_references_except_altref(mask->ref_combo);
4069
0
      disable_reference(INTRA_FRAME, mask->ref_combo);
4070
0
    }
4071
0
  }
4072
4073
0
  if (inter_sf->alt_ref_search_fp) {
4074
0
    if (!cm->show_frame && x->best_pred_mv_sad[0] < INT_MAX) {
4075
0
      int sad_thresh = x->best_pred_mv_sad[0] + (x->best_pred_mv_sad[0] >> 3);
4076
      // Conservatively skip the modes w.r.t. BWDREF, ALTREF2 and ALTREF, if
4077
      // those are past frames
4078
0
      MV_REFERENCE_FRAME start_frame =
4079
0
          inter_sf->alt_ref_search_fp == 1 ? ALTREF2_FRAME : BWDREF_FRAME;
4080
0
      for (ref_frame = start_frame; ref_frame <= ALTREF_FRAME; ref_frame++) {
4081
0
        if (cpi->ref_frame_dist_info.ref_relative_dist[ref_frame - LAST_FRAME] <
4082
0
            0) {
4083
          // Prune inter modes when relative dist of ALTREF2 and ALTREF is close
4084
          // to the relative dist of LAST_FRAME.
4085
0
          if (abs(cpi->ref_frame_dist_info
4086
0
                      .ref_relative_dist[ref_frame - LAST_FRAME] -
4087
0
                  cpi->ref_frame_dist_info
4088
0
                      .ref_relative_dist[LAST_FRAME - LAST_FRAME]) > 4) {
4089
0
            continue;
4090
0
          }
4091
0
          if (x->pred_mv_sad[ref_frame] > sad_thresh)
4092
0
            mask->pred_modes[ref_frame] |= INTER_ALL;
4093
0
        }
4094
0
      }
4095
0
    }
4096
0
  }
4097
4098
0
  if (sf->rt_sf.prune_inter_modes_wrt_gf_arf_based_on_sad) {
4099
0
    if (x->best_pred_mv_sad[0] < INT_MAX) {
4100
0
      int sad_thresh = x->best_pred_mv_sad[0] + (x->best_pred_mv_sad[0] >> 1);
4101
0
      const int prune_ref_list[2] = { GOLDEN_FRAME, ALTREF_FRAME };
4102
4103
      // Conservatively skip the modes w.r.t. GOLDEN and ALTREF references
4104
0
      for (int ref_idx = 0; ref_idx < 2; ref_idx++) {
4105
0
        ref_frame = prune_ref_list[ref_idx];
4106
0
        if (x->pred_mv_sad[ref_frame] > sad_thresh)
4107
0
          mask->pred_modes[ref_frame] |= INTER_NEAREST_NEAR_ZERO;
4108
0
      }
4109
0
    }
4110
0
  }
4111
4112
0
  if (bsize > sf->part_sf.max_intra_bsize) {
4113
0
    disable_reference(INTRA_FRAME, mask->ref_combo);
4114
0
  }
4115
4116
0
  if (!cpi->oxcf.tool_cfg.enable_global_motion) {
4117
0
    for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
4118
0
      mask->pred_modes[ref_frame] |= (1 << GLOBALMV);
4119
0
      mask->pred_modes[ref_frame] |= (1 << GLOBAL_GLOBALMV);
4120
0
    }
4121
0
  }
4122
4123
0
  mask->pred_modes[INTRA_FRAME] |=
4124
0
      ~(uint32_t)sf->intra_sf.intra_y_mode_mask[max_txsize_lookup[bsize]];
4125
4126
  // Prune reference frames which are not the closest to the current
4127
  // frame and with large pred_mv_sad.
4128
0
  if (inter_sf->prune_single_ref) {
4129
0
    assert(inter_sf->prune_single_ref > 0 && inter_sf->prune_single_ref < 5);
4130
0
    const double prune_thresh = (inter_sf->prune_single_ref <= 3) ? 1.20 : 1.05;
4131
4132
0
    for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
4133
0
      const RefFrameDistanceInfo *const ref_frame_dist_info =
4134
0
          &cpi->ref_frame_dist_info;
4135
0
      const int is_closest_ref =
4136
0
          (ref_frame == ref_frame_dist_info->nearest_past_ref) ||
4137
0
          (ref_frame == ref_frame_dist_info->nearest_future_ref);
4138
0
      const int ref_idx = ref_frame - LAST_FRAME;
4139
4140
0
      if (!(cpi->keep_single_ref_frame_mask & (1 << ref_idx) ||
4141
0
            is_closest_ref)) {
4142
0
        const int dir =
4143
0
            (ref_frame_dist_info->ref_relative_dist[ref_frame - LAST_FRAME] < 0)
4144
0
                ? 0
4145
0
                : 1;
4146
0
        if (x->best_pred_mv_sad[dir] < INT_MAX &&
4147
0
            x->pred_mv_sad[ref_frame] > prune_thresh * x->best_pred_mv_sad[dir])
4148
0
          mask->pred_modes[ref_frame] |= INTER_SINGLE_ALL;
4149
0
      }
4150
0
    }
4151
0
  }
4152
0
}
4153
4154
static inline void init_neighbor_pred_buf(const OBMCBuffer *const obmc_buffer,
4155
                                          HandleInterModeArgs *const args,
4156
0
                                          int is_hbd) {
4157
0
  if (is_hbd) {
4158
0
    const int len = sizeof(uint16_t);
4159
0
    args->above_pred_buf[0] = CONVERT_TO_BYTEPTR(obmc_buffer->above_pred);
4160
0
    args->above_pred_buf[1] = CONVERT_TO_BYTEPTR(obmc_buffer->above_pred +
4161
0
                                                 (MAX_SB_SQUARE >> 1) * len);
4162
0
    args->above_pred_buf[2] =
4163
0
        CONVERT_TO_BYTEPTR(obmc_buffer->above_pred + MAX_SB_SQUARE * len);
4164
0
    args->left_pred_buf[0] = CONVERT_TO_BYTEPTR(obmc_buffer->left_pred);
4165
0
    args->left_pred_buf[1] =
4166
0
        CONVERT_TO_BYTEPTR(obmc_buffer->left_pred + (MAX_SB_SQUARE >> 1) * len);
4167
0
    args->left_pred_buf[2] =
4168
0
        CONVERT_TO_BYTEPTR(obmc_buffer->left_pred + MAX_SB_SQUARE * len);
4169
0
  } else {
4170
0
    args->above_pred_buf[0] = obmc_buffer->above_pred;
4171
0
    args->above_pred_buf[1] = obmc_buffer->above_pred + (MAX_SB_SQUARE >> 1);
4172
0
    args->above_pred_buf[2] = obmc_buffer->above_pred + MAX_SB_SQUARE;
4173
0
    args->left_pred_buf[0] = obmc_buffer->left_pred;
4174
0
    args->left_pred_buf[1] = obmc_buffer->left_pred + (MAX_SB_SQUARE >> 1);
4175
0
    args->left_pred_buf[2] = obmc_buffer->left_pred + MAX_SB_SQUARE;
4176
0
  }
4177
0
}
4178
4179
static inline int prune_ref_frame(const AV1_COMP *cpi, const MACROBLOCK *x,
4180
0
                                  MV_REFERENCE_FRAME ref_frame) {
4181
0
  const AV1_COMMON *const cm = &cpi->common;
4182
0
  MV_REFERENCE_FRAME rf[2];
4183
0
  av1_set_ref_frame(rf, ref_frame);
4184
4185
0
  if ((cpi->prune_ref_frame_mask >> ref_frame) & 1) return 1;
4186
4187
0
  if (prune_ref_by_selective_ref_frame(cpi, x, rf,
4188
0
                                       cm->cur_frame->ref_display_order_hint)) {
4189
0
    return 1;
4190
0
  }
4191
4192
0
  return 0;
4193
0
}
4194
4195
static inline int is_ref_frame_used_by_compound_ref(int ref_frame,
4196
0
                                                    int skip_ref_frame_mask) {
4197
0
  for (int r = ALTREF_FRAME + 1; r < MODE_CTX_REF_FRAMES; ++r) {
4198
0
    if (!(skip_ref_frame_mask & (1 << r))) {
4199
0
      const MV_REFERENCE_FRAME *rf = ref_frame_map[r - REF_FRAMES];
4200
0
      if (rf[0] == ref_frame || rf[1] == ref_frame) {
4201
0
        return 1;
4202
0
      }
4203
0
    }
4204
0
  }
4205
0
  return 0;
4206
0
}
4207
4208
static inline int is_ref_frame_used_in_cache(MV_REFERENCE_FRAME ref_frame,
4209
0
                                             const MB_MODE_INFO *mi_cache) {
4210
0
  if (!mi_cache) {
4211
0
    return 0;
4212
0
  }
4213
4214
0
  if (ref_frame < REF_FRAMES) {
4215
0
    return (ref_frame == mi_cache->ref_frame[0] ||
4216
0
            ref_frame == mi_cache->ref_frame[1]);
4217
0
  }
4218
4219
  // if we are here, then the current mode is compound.
4220
0
  MV_REFERENCE_FRAME cached_ref_type = av1_ref_frame_type(mi_cache->ref_frame);
4221
0
  return ref_frame == cached_ref_type;
4222
0
}
4223
4224
// Please add/modify parameter setting in this function, making it consistent
4225
// and easy to read and maintain.
4226
static inline void set_params_rd_pick_inter_mode(
4227
    const AV1_COMP *cpi, MACROBLOCK *x, HandleInterModeArgs *args,
4228
    BLOCK_SIZE bsize, mode_skip_mask_t *mode_skip_mask, int skip_ref_frame_mask,
4229
    unsigned int *ref_costs_single, unsigned int (*ref_costs_comp)[REF_FRAMES],
4230
0
    struct buf_2d (*yv12_mb)[MAX_MB_PLANE]) {
4231
0
  const AV1_COMMON *const cm = &cpi->common;
4232
0
  MACROBLOCKD *const xd = &x->e_mbd;
4233
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
4234
0
  MB_MODE_INFO_EXT *const mbmi_ext = &x->mbmi_ext;
4235
0
  unsigned char segment_id = mbmi->segment_id;
4236
4237
0
  init_neighbor_pred_buf(&x->obmc_buffer, args, is_cur_buf_hbd(&x->e_mbd));
4238
0
  av1_collect_neighbors_ref_counts(xd);
4239
0
  estimate_ref_frame_costs(cm, xd, &x->mode_costs, segment_id, ref_costs_single,
4240
0
                           ref_costs_comp);
4241
4242
0
  const int mi_row = xd->mi_row;
4243
0
  const int mi_col = xd->mi_col;
4244
0
  x->best_pred_mv_sad[0] = INT_MAX;
4245
0
  x->best_pred_mv_sad[1] = INT_MAX;
4246
4247
0
  for (MV_REFERENCE_FRAME ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME;
4248
0
       ++ref_frame) {
4249
0
    x->pred_mv_sad[ref_frame] = INT_MAX;
4250
0
    mbmi_ext->mode_context[ref_frame] = 0;
4251
0
    mbmi_ext->ref_mv_count[ref_frame] = UINT8_MAX;
4252
0
    if (cpi->ref_frame_flags & av1_ref_frame_flag_list[ref_frame]) {
4253
      // Skip the ref frame if the mask says skip and the ref is not used by
4254
      // compound ref.
4255
0
      if (skip_ref_frame_mask & (1 << ref_frame) &&
4256
0
          !is_ref_frame_used_by_compound_ref(ref_frame, skip_ref_frame_mask) &&
4257
0
          !is_ref_frame_used_in_cache(ref_frame, x->mb_mode_cache)) {
4258
0
        continue;
4259
0
      }
4260
0
      assert(get_ref_frame_yv12_buf(cm, ref_frame) != NULL);
4261
0
      setup_buffer_ref_mvs_inter(cpi, x, ref_frame, bsize, yv12_mb);
4262
0
    }
4263
0
    if (cpi->sf.inter_sf.alt_ref_search_fp ||
4264
0
        cpi->sf.inter_sf.prune_single_ref ||
4265
0
        cpi->sf.rt_sf.prune_inter_modes_wrt_gf_arf_based_on_sad) {
4266
      // Store the best pred_mv_sad across all past frames
4267
0
      if (cpi->ref_frame_dist_info.ref_relative_dist[ref_frame - LAST_FRAME] <
4268
0
          0)
4269
0
        x->best_pred_mv_sad[0] =
4270
0
            AOMMIN(x->best_pred_mv_sad[0], x->pred_mv_sad[ref_frame]);
4271
0
      else
4272
        // Store the best pred_mv_sad across all future frames
4273
0
        x->best_pred_mv_sad[1] =
4274
0
            AOMMIN(x->best_pred_mv_sad[1], x->pred_mv_sad[ref_frame]);
4275
0
    }
4276
0
  }
4277
4278
0
  if (!cpi->sf.rt_sf.use_real_time_ref_set && is_comp_ref_allowed(bsize)) {
4279
    // No second reference on RT ref set, so no need to initialize
4280
0
    for (MV_REFERENCE_FRAME ref_frame = EXTREF_FRAME;
4281
0
         ref_frame < MODE_CTX_REF_FRAMES; ++ref_frame) {
4282
0
      mbmi_ext->mode_context[ref_frame] = 0;
4283
0
      mbmi_ext->ref_mv_count[ref_frame] = UINT8_MAX;
4284
0
      const MV_REFERENCE_FRAME *rf = ref_frame_map[ref_frame - REF_FRAMES];
4285
0
      if (!((cpi->ref_frame_flags & av1_ref_frame_flag_list[rf[0]]) &&
4286
0
            (cpi->ref_frame_flags & av1_ref_frame_flag_list[rf[1]]))) {
4287
0
        continue;
4288
0
      }
4289
4290
0
      if (skip_ref_frame_mask & (1 << ref_frame) &&
4291
0
          !is_ref_frame_used_in_cache(ref_frame, x->mb_mode_cache)) {
4292
0
        continue;
4293
0
      }
4294
      // Ref mv list population is not required, when compound references are
4295
      // pruned.
4296
0
      if (prune_ref_frame(cpi, x, ref_frame)) continue;
4297
4298
0
      av1_find_mv_refs(cm, xd, mbmi, ref_frame, mbmi_ext->ref_mv_count,
4299
0
                       xd->ref_mv_stack, xd->weight, NULL, mbmi_ext->global_mvs,
4300
0
                       mbmi_ext->mode_context);
4301
      // TODO(Ravi): Populate mbmi_ext->ref_mv_stack[ref_frame][4] and
4302
      // mbmi_ext->weight[ref_frame][4] inside av1_find_mv_refs.
4303
0
      av1_copy_usable_ref_mv_stack_and_weight(xd, mbmi_ext, ref_frame);
4304
0
    }
4305
0
  }
4306
4307
0
  av1_count_overlappable_neighbors(cm, xd);
4308
0
  const FRAME_UPDATE_TYPE update_type =
4309
0
      get_frame_update_type(&cpi->ppi->gf_group, cpi->gf_frame_index);
4310
0
  int use_actual_frame_probs = 1;
4311
0
  int prune_obmc;
4312
#if CONFIG_FPMT_TEST
4313
  use_actual_frame_probs =
4314
      (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) ? 0 : 1;
4315
  if (!use_actual_frame_probs) {
4316
    prune_obmc = cpi->ppi->temp_frame_probs.obmc_probs[update_type][bsize] <
4317
                 cpi->sf.inter_sf.prune_obmc_prob_thresh;
4318
  }
4319
#endif
4320
0
  if (use_actual_frame_probs) {
4321
0
    prune_obmc = cpi->ppi->frame_probs.obmc_probs[update_type][bsize] <
4322
0
                 cpi->sf.inter_sf.prune_obmc_prob_thresh;
4323
0
  }
4324
0
  if (cpi->oxcf.motion_mode_cfg.enable_obmc && !prune_obmc) {
4325
0
    if (check_num_overlappable_neighbors(mbmi) &&
4326
0
        is_motion_variation_allowed_bsize(bsize)) {
4327
0
      int dst_width1[MAX_MB_PLANE] = { MAX_SB_SIZE, MAX_SB_SIZE, MAX_SB_SIZE };
4328
0
      int dst_width2[MAX_MB_PLANE] = { MAX_SB_SIZE >> 1, MAX_SB_SIZE >> 1,
4329
0
                                       MAX_SB_SIZE >> 1 };
4330
0
      int dst_height1[MAX_MB_PLANE] = { MAX_SB_SIZE >> 1, MAX_SB_SIZE >> 1,
4331
0
                                        MAX_SB_SIZE >> 1 };
4332
0
      int dst_height2[MAX_MB_PLANE] = { MAX_SB_SIZE, MAX_SB_SIZE, MAX_SB_SIZE };
4333
0
      av1_build_prediction_by_above_preds(cm, xd, args->above_pred_buf,
4334
0
                                          dst_width1, dst_height1,
4335
0
                                          args->above_pred_stride);
4336
0
      av1_build_prediction_by_left_preds(cm, xd, args->left_pred_buf,
4337
0
                                         dst_width2, dst_height2,
4338
0
                                         args->left_pred_stride);
4339
0
      const int num_planes = av1_num_planes(cm);
4340
0
      av1_setup_dst_planes(xd->plane, bsize, &cm->cur_frame->buf, mi_row,
4341
0
                           mi_col, 0, num_planes);
4342
0
      calc_target_weighted_pred(
4343
0
          cm, x, xd, args->above_pred_buf[0], args->above_pred_stride[0],
4344
0
          args->left_pred_buf[0], args->left_pred_stride[0]);
4345
0
    }
4346
0
  }
4347
4348
0
  init_mode_skip_mask(mode_skip_mask, cpi, x, bsize);
4349
4350
  // Set params for mode evaluation
4351
0
  set_mode_eval_params(cpi, x, MODE_EVAL);
4352
4353
0
  x->comp_rd_stats_idx = 0;
4354
4355
0
  for (int idx = 0; idx < REF_FRAMES; idx++) {
4356
0
    args->best_single_sse_in_refs[idx] = INT32_MAX;
4357
0
  }
4358
0
}
4359
4360
static inline void init_single_inter_mode_search_state(
4361
0
    InterModeSearchState *search_state) {
4362
0
  for (int dir = 0; dir < 2; ++dir) {
4363
0
    for (int mode = 0; mode < SINGLE_INTER_MODE_NUM; ++mode) {
4364
0
      for (int ref_frame = 0; ref_frame < FWD_REFS; ++ref_frame) {
4365
0
        SingleInterModeState *state;
4366
4367
0
        state = &search_state->single_state[dir][mode][ref_frame];
4368
0
        state->ref_frame = NONE_FRAME;
4369
0
        state->rd = INT64_MAX;
4370
4371
0
        state = &search_state->single_state_modelled[dir][mode][ref_frame];
4372
0
        state->ref_frame = NONE_FRAME;
4373
0
        state->rd = INT64_MAX;
4374
4375
0
        search_state->single_rd_order[dir][mode][ref_frame] = NONE_FRAME;
4376
0
      }
4377
0
    }
4378
0
  }
4379
4380
0
  for (int ref_frame = 0; ref_frame < REF_FRAMES; ++ref_frame) {
4381
0
    search_state->best_single_rd[ref_frame] = INT64_MAX;
4382
0
    search_state->best_single_mode[ref_frame] = PRED_MODE_INVALID;
4383
0
  }
4384
0
  av1_zero(search_state->single_state_cnt);
4385
0
  av1_zero(search_state->single_state_modelled_cnt);
4386
0
}
4387
4388
static inline void init_inter_mode_search_state(
4389
    InterModeSearchState *search_state, const AV1_COMP *cpi,
4390
0
    const MACROBLOCK *x, BLOCK_SIZE bsize, int64_t best_rd_so_far) {
4391
0
  init_intra_mode_search_state(&search_state->intra_search_state);
4392
0
  av1_invalid_rd_stats(&search_state->best_y_rdcost);
4393
4394
0
  search_state->best_rd = best_rd_so_far;
4395
0
  search_state->best_skip_rd[0] = INT64_MAX;
4396
0
  search_state->best_skip_rd[1] = INT64_MAX;
4397
4398
0
  av1_zero(search_state->best_mbmode);
4399
4400
0
  search_state->best_rate_y = INT_MAX;
4401
4402
0
  search_state->best_rate_uv = INT_MAX;
4403
4404
0
  search_state->best_mode_skippable = 0;
4405
4406
0
  search_state->best_skip2 = 0;
4407
4408
0
  search_state->best_mode_index = THR_INVALID;
4409
4410
0
  const MACROBLOCKD *const xd = &x->e_mbd;
4411
0
  const MB_MODE_INFO *const mbmi = xd->mi[0];
4412
0
  const unsigned char segment_id = mbmi->segment_id;
4413
4414
0
  search_state->num_available_refs = 0;
4415
0
  memset(search_state->dist_refs, -1, sizeof(search_state->dist_refs));
4416
0
  memset(search_state->dist_order_refs, -1,
4417
0
         sizeof(search_state->dist_order_refs));
4418
4419
0
  for (int i = 0; i <= LAST_NEW_MV_INDEX; ++i)
4420
0
    search_state->mode_threshold[i] = 0;
4421
0
  const int *const rd_threshes = cpi->rd.threshes[segment_id][bsize];
4422
0
  for (int i = LAST_NEW_MV_INDEX + 1; i < SINGLE_REF_MODE_END; ++i)
4423
0
    search_state->mode_threshold[i] =
4424
0
        ((int64_t)rd_threshes[i] * x->thresh_freq_fact[bsize][i]) >>
4425
0
        RD_THRESH_FAC_FRAC_BITS;
4426
4427
0
  search_state->best_intra_rd = INT64_MAX;
4428
4429
0
  search_state->best_pred_sse = UINT_MAX;
4430
4431
0
  av1_zero(search_state->single_newmv);
4432
0
  av1_zero(search_state->single_newmv_rate);
4433
0
  av1_zero(search_state->single_newmv_valid);
4434
0
  for (int i = SINGLE_INTER_MODE_START; i < SINGLE_INTER_MODE_END; ++i) {
4435
0
    for (int j = 0; j < MAX_REF_MV_SEARCH; ++j) {
4436
0
      for (int ref_frame = 0; ref_frame < REF_FRAMES; ++ref_frame) {
4437
0
        search_state->modelled_rd[i][j][ref_frame] = INT64_MAX;
4438
0
        search_state->simple_rd[i][j][ref_frame] = INT64_MAX;
4439
0
      }
4440
0
    }
4441
0
  }
4442
4443
0
  for (int i = 0; i < REFERENCE_MODES; ++i) {
4444
0
    search_state->best_pred_rd[i] = INT64_MAX;
4445
0
  }
4446
4447
0
  if (cpi->common.current_frame.reference_mode != SINGLE_REFERENCE) {
4448
0
    for (int i = SINGLE_REF_MODE_END; i < THR_INTER_MODE_END; ++i)
4449
0
      search_state->mode_threshold[i] =
4450
0
          ((int64_t)rd_threshes[i] * x->thresh_freq_fact[bsize][i]) >>
4451
0
          RD_THRESH_FAC_FRAC_BITS;
4452
4453
0
    for (int i = COMP_INTER_MODE_START; i < COMP_INTER_MODE_END; ++i) {
4454
0
      for (int j = 0; j < MAX_REF_MV_SEARCH; ++j) {
4455
0
        for (int ref_frame = 0; ref_frame < REF_FRAMES; ++ref_frame) {
4456
0
          search_state->modelled_rd[i][j][ref_frame] = INT64_MAX;
4457
0
          search_state->simple_rd[i][j][ref_frame] = INT64_MAX;
4458
0
        }
4459
0
      }
4460
0
    }
4461
4462
0
    init_single_inter_mode_search_state(search_state);
4463
0
  }
4464
0
}
4465
4466
static bool mask_says_skip(const mode_skip_mask_t *mode_skip_mask,
4467
                           const MV_REFERENCE_FRAME *ref_frame,
4468
0
                           const PREDICTION_MODE this_mode) {
4469
0
  if (mode_skip_mask->pred_modes[ref_frame[0]] & (1 << this_mode)) {
4470
0
    return true;
4471
0
  }
4472
4473
0
  return mode_skip_mask->ref_combo[ref_frame[0]][ref_frame[1] + 1];
4474
0
}
4475
4476
static AOM_FORCE_INLINE int inter_mode_compatible_skip(
4477
    const AV1_COMP *cpi, const MACROBLOCK *x, BLOCK_SIZE bsize,
4478
0
    PREDICTION_MODE curr_mode, const MV_REFERENCE_FRAME *ref_frames) {
4479
0
  const int comp_pred = ref_frames[1] > INTRA_FRAME;
4480
0
  if (comp_pred) {
4481
0
    if (!is_comp_ref_allowed(bsize)) return 1;
4482
0
    if (!(cpi->ref_frame_flags & av1_ref_frame_flag_list[ref_frames[1]])) {
4483
0
      return 1;
4484
0
    }
4485
4486
0
    const AV1_COMMON *const cm = &cpi->common;
4487
0
    if (frame_is_intra_only(cm)) return 1;
4488
4489
0
    const CurrentFrame *const current_frame = &cm->current_frame;
4490
0
    if (current_frame->reference_mode == SINGLE_REFERENCE) return 1;
4491
4492
0
    const struct segmentation *const seg = &cm->seg;
4493
0
    const unsigned char segment_id = x->e_mbd.mi[0]->segment_id;
4494
    // Do not allow compound prediction if the segment level reference frame
4495
    // feature is in use as in this case there can only be one reference.
4496
0
    if (segfeature_active(seg, segment_id, SEG_LVL_REF_FRAME)) return 1;
4497
0
  }
4498
4499
0
  if (ref_frames[0] > INTRA_FRAME && ref_frames[1] == INTRA_FRAME) {
4500
    // Mode must be compatible
4501
0
    if (!is_interintra_allowed_bsize(bsize)) return 1;
4502
0
    if (!is_interintra_allowed_mode(curr_mode)) return 1;
4503
0
  }
4504
4505
0
  return 0;
4506
0
}
4507
4508
static int fetch_picked_ref_frames_mask(const MACROBLOCK *const x,
4509
0
                                        BLOCK_SIZE bsize, int mib_size) {
4510
0
  const int sb_size_mask = mib_size - 1;
4511
0
  const MACROBLOCKD *const xd = &x->e_mbd;
4512
0
  const int mi_row = xd->mi_row;
4513
0
  const int mi_col = xd->mi_col;
4514
0
  const int mi_row_in_sb = mi_row & sb_size_mask;
4515
0
  const int mi_col_in_sb = mi_col & sb_size_mask;
4516
0
  const int mi_w = mi_size_wide[bsize];
4517
0
  const int mi_h = mi_size_high[bsize];
4518
0
  int picked_ref_frames_mask = 0;
4519
0
  for (int i = mi_row_in_sb; i < mi_row_in_sb + mi_h; ++i) {
4520
0
    for (int j = mi_col_in_sb; j < mi_col_in_sb + mi_w; ++j) {
4521
0
      picked_ref_frames_mask |= x->picked_ref_frames_mask[i * 32 + j];
4522
0
    }
4523
0
  }
4524
0
  return picked_ref_frames_mask;
4525
0
}
4526
4527
// Check if reference frame pair of the current block matches with the given
4528
// block.
4529
static inline int match_ref_frame_pair(const MB_MODE_INFO *mbmi,
4530
0
                                       const MV_REFERENCE_FRAME *ref_frames) {
4531
0
  return ((ref_frames[0] == mbmi->ref_frame[0]) &&
4532
0
          (ref_frames[1] == mbmi->ref_frame[1]));
4533
0
}
4534
4535
// Case 1: return 0, means don't skip this mode
4536
// Case 2: return 1, means skip this mode completely
4537
// Case 3: return 2, means skip compound only, but still try single motion modes
4538
static AOM_FORCE_INLINE int inter_mode_search_order_independent_skip(
4539
    const AV1_COMP *cpi, const MACROBLOCK *x, mode_skip_mask_t *mode_skip_mask,
4540
    InterModeSearchState *search_state, int skip_ref_frame_mask,
4541
0
    PREDICTION_MODE mode, const MV_REFERENCE_FRAME *ref_frame) {
4542
0
  if (mask_says_skip(mode_skip_mask, ref_frame, mode)) {
4543
0
    return 1;
4544
0
  }
4545
4546
0
  const int ref_type = av1_ref_frame_type(ref_frame);
4547
0
  if (!cpi->sf.rt_sf.use_real_time_ref_set)
4548
0
    if (prune_ref_frame(cpi, x, ref_type)) return 1;
4549
4550
  // This is only used in motion vector unit test.
4551
0
  if (cpi->oxcf.unit_test_cfg.motion_vector_unit_test &&
4552
0
      ref_frame[0] == INTRA_FRAME)
4553
0
    return 1;
4554
4555
0
  const AV1_COMMON *const cm = &cpi->common;
4556
0
  if (skip_repeated_mv(cm, x, mode, ref_frame, search_state)) {
4557
0
    return 1;
4558
0
  }
4559
4560
  // Reuse the prediction mode in cache
4561
0
  if (x->use_mb_mode_cache) {
4562
0
    const MB_MODE_INFO *cached_mi = x->mb_mode_cache;
4563
0
    const PREDICTION_MODE cached_mode = cached_mi->mode;
4564
0
    const MV_REFERENCE_FRAME *cached_frame = cached_mi->ref_frame;
4565
0
    const int cached_mode_is_single = cached_frame[1] <= INTRA_FRAME;
4566
4567
    // If the cached mode is intra, then we just need to match the mode.
4568
0
    if (is_mode_intra(cached_mode) && mode != cached_mode) {
4569
0
      return 1;
4570
0
    }
4571
4572
    // If the cached mode is single inter mode, then we match the mode and
4573
    // reference frame.
4574
0
    if (cached_mode_is_single) {
4575
0
      if (mode != cached_mode || ref_frame[0] != cached_frame[0]) {
4576
0
        return 1;
4577
0
      }
4578
0
    } else {
4579
      // If the cached mode is compound, then we need to consider several cases.
4580
0
      const int mode_is_single = ref_frame[1] <= INTRA_FRAME;
4581
0
      if (mode_is_single) {
4582
        // If the mode is single, we know the modes can't match. But we might
4583
        // still want to search it if compound mode depends on the current mode.
4584
0
        int skip_motion_mode_only = 0;
4585
0
        if (cached_mode == NEW_NEARMV || cached_mode == NEW_NEARESTMV) {
4586
0
          skip_motion_mode_only = (ref_frame[0] == cached_frame[0]);
4587
0
        } else if (cached_mode == NEAR_NEWMV || cached_mode == NEAREST_NEWMV) {
4588
0
          skip_motion_mode_only = (ref_frame[0] == cached_frame[1]);
4589
0
        } else if (cached_mode == NEW_NEWMV) {
4590
0
          skip_motion_mode_only = (ref_frame[0] == cached_frame[0] ||
4591
0
                                   ref_frame[0] == cached_frame[1]);
4592
0
        }
4593
4594
0
        return 1 + skip_motion_mode_only;
4595
0
      } else {
4596
        // If both modes are compound, then everything must match.
4597
0
        if (mode != cached_mode || ref_frame[0] != cached_frame[0] ||
4598
0
            ref_frame[1] != cached_frame[1]) {
4599
0
          return 1;
4600
0
        }
4601
0
      }
4602
0
    }
4603
0
  }
4604
4605
0
  const MB_MODE_INFO *const mbmi = x->e_mbd.mi[0];
4606
  // If no valid mode has been found so far in PARTITION_NONE when finding a
4607
  // valid partition is required, do not skip mode.
4608
0
  if (search_state->best_rd == INT64_MAX && mbmi->partition == PARTITION_NONE &&
4609
0
      x->must_find_valid_partition)
4610
0
    return 0;
4611
4612
0
  const SPEED_FEATURES *const sf = &cpi->sf;
4613
  // Prune NEARMV and NEAR_NEARMV based on q index and neighbor's reference
4614
  // frames
4615
0
  if (sf->inter_sf.prune_nearmv_using_neighbors &&
4616
0
      (mode == NEAR_NEARMV || mode == NEARMV)) {
4617
0
    const MACROBLOCKD *const xd = &x->e_mbd;
4618
0
    if (search_state->best_rd != INT64_MAX && xd->left_available &&
4619
0
        xd->up_available) {
4620
0
      const int thresholds[PRUNE_NEARMV_MAX][3] = { { 1, 0, 0 },
4621
0
                                                    { 1, 1, 0 },
4622
0
                                                    { 2, 1, 0 } };
4623
0
      const int qindex_sub_range = x->qindex * 3 / QINDEX_RANGE;
4624
4625
0
      assert(sf->inter_sf.prune_nearmv_using_neighbors <= PRUNE_NEARMV_MAX &&
4626
0
             qindex_sub_range < 3);
4627
0
      const int num_ref_frame_pair_match_thresh =
4628
0
          thresholds[sf->inter_sf.prune_nearmv_using_neighbors - 1]
4629
0
                    [qindex_sub_range];
4630
4631
0
      assert(num_ref_frame_pair_match_thresh <= 2 &&
4632
0
             num_ref_frame_pair_match_thresh >= 0);
4633
0
      int num_ref_frame_pair_match = 0;
4634
4635
0
      num_ref_frame_pair_match = match_ref_frame_pair(xd->left_mbmi, ref_frame);
4636
0
      num_ref_frame_pair_match +=
4637
0
          match_ref_frame_pair(xd->above_mbmi, ref_frame);
4638
4639
      // Pruning based on ref frame pair match with neighbors.
4640
0
      if (num_ref_frame_pair_match < num_ref_frame_pair_match_thresh) return 1;
4641
0
    }
4642
0
  }
4643
4644
0
  int skip_motion_mode = 0;
4645
0
  if (mbmi->partition != PARTITION_NONE) {
4646
0
    assert(ref_type > NONE_FRAME);
4647
0
    int skip_ref = skip_ref_frame_mask & (1 << ref_type);
4648
0
    if (ref_type <= ALTREF_FRAME && skip_ref) {
4649
      // Since the compound ref modes depends on the motion estimation result of
4650
      // two single ref modes (best mv of single ref modes as the start point),
4651
      // if current single ref mode is marked skip, we need to check if it will
4652
      // be used in compound ref modes.
4653
0
      if (is_ref_frame_used_by_compound_ref(ref_type, skip_ref_frame_mask)) {
4654
        // Found a not skipped compound ref mode which contains current
4655
        // single ref. So this single ref can't be skipped completely
4656
        // Just skip its motion mode search, still try its simple
4657
        // transition mode.
4658
0
        skip_motion_mode = 1;
4659
0
        skip_ref = 0;
4660
0
      }
4661
0
    }
4662
    // If we are reusing the prediction from cache, and the current frame is
4663
    // required by the cache, then we cannot prune it.
4664
0
    if (is_ref_frame_used_in_cache(ref_type, x->mb_mode_cache)) {
4665
0
      skip_ref = 0;
4666
      // If the cache only needs the current reference type for compound
4667
      // prediction, then we can skip motion mode search.
4668
0
      skip_motion_mode = (ref_type <= ALTREF_FRAME &&
4669
0
                          x->mb_mode_cache->ref_frame[1] > INTRA_FRAME);
4670
0
    }
4671
0
    if (skip_ref) return 1;
4672
0
  }
4673
4674
0
  if (ref_frame[0] == INTRA_FRAME) {
4675
0
    if (mode != DC_PRED) {
4676
      // Disable intra modes other than DC_PRED for blocks with low variance
4677
      // Threshold for intra skipping based on source variance
4678
      // TODO(debargha): Specialize the threshold for super block sizes
4679
0
      const unsigned int skip_intra_var_thresh = 64;
4680
0
      if ((sf->rt_sf.mode_search_skip_flags & FLAG_SKIP_INTRA_LOWVAR) &&
4681
0
          x->source_variance < skip_intra_var_thresh)
4682
0
        return 1;
4683
0
    }
4684
0
  }
4685
4686
0
  if (skip_motion_mode) return 2;
4687
4688
0
  return 0;
4689
0
}
4690
4691
static inline void init_mbmi(MB_MODE_INFO *mbmi, PREDICTION_MODE curr_mode,
4692
                             const MV_REFERENCE_FRAME *ref_frames,
4693
0
                             const AV1_COMMON *cm) {
4694
0
  PALETTE_MODE_INFO *const pmi = &mbmi->palette_mode_info;
4695
0
  mbmi->ref_mv_idx = 0;
4696
0
  mbmi->mode = curr_mode;
4697
0
  mbmi->uv_mode = UV_DC_PRED;
4698
0
  mbmi->ref_frame[0] = ref_frames[0];
4699
0
  mbmi->ref_frame[1] = ref_frames[1];
4700
0
  pmi->palette_size[0] = 0;
4701
0
  pmi->palette_size[1] = 0;
4702
0
  mbmi->filter_intra_mode_info.use_filter_intra = 0;
4703
0
  mbmi->mv[0].as_int = mbmi->mv[1].as_int = 0;
4704
0
  mbmi->motion_mode = SIMPLE_TRANSLATION;
4705
0
  mbmi->interintra_mode = (INTERINTRA_MODE)(II_DC_PRED - 1);
4706
0
  set_default_interp_filters(mbmi, cm->features.interp_filter);
4707
0
}
4708
4709
static inline void collect_single_states(MACROBLOCK *x,
4710
                                         InterModeSearchState *search_state,
4711
0
                                         const MB_MODE_INFO *const mbmi) {
4712
0
  int i, j;
4713
0
  const MV_REFERENCE_FRAME ref_frame = mbmi->ref_frame[0];
4714
0
  const PREDICTION_MODE this_mode = mbmi->mode;
4715
0
  const int dir = ref_frame <= GOLDEN_FRAME ? 0 : 1;
4716
0
  const int mode_offset = INTER_OFFSET(this_mode);
4717
0
  const int ref_set = get_drl_refmv_count(x, mbmi->ref_frame, this_mode);
4718
4719
  // Simple rd
4720
0
  int64_t simple_rd = search_state->simple_rd[this_mode][0][ref_frame];
4721
0
  for (int ref_mv_idx = 1; ref_mv_idx < ref_set; ++ref_mv_idx) {
4722
0
    const int64_t rd =
4723
0
        search_state->simple_rd[this_mode][ref_mv_idx][ref_frame];
4724
0
    if (rd < simple_rd) simple_rd = rd;
4725
0
  }
4726
4727
  // Insertion sort of single_state
4728
0
  const SingleInterModeState this_state_s = { simple_rd, ref_frame, 1 };
4729
0
  SingleInterModeState *state_s = search_state->single_state[dir][mode_offset];
4730
0
  i = search_state->single_state_cnt[dir][mode_offset];
4731
0
  for (j = i; j > 0 && state_s[j - 1].rd > this_state_s.rd; --j)
4732
0
    state_s[j] = state_s[j - 1];
4733
0
  state_s[j] = this_state_s;
4734
0
  search_state->single_state_cnt[dir][mode_offset]++;
4735
4736
  // Modelled rd
4737
0
  int64_t modelled_rd = search_state->modelled_rd[this_mode][0][ref_frame];
4738
0
  for (int ref_mv_idx = 1; ref_mv_idx < ref_set; ++ref_mv_idx) {
4739
0
    const int64_t rd =
4740
0
        search_state->modelled_rd[this_mode][ref_mv_idx][ref_frame];
4741
0
    if (rd < modelled_rd) modelled_rd = rd;
4742
0
  }
4743
4744
  // Insertion sort of single_state_modelled
4745
0
  const SingleInterModeState this_state_m = { modelled_rd, ref_frame, 1 };
4746
0
  SingleInterModeState *state_m =
4747
0
      search_state->single_state_modelled[dir][mode_offset];
4748
0
  i = search_state->single_state_modelled_cnt[dir][mode_offset];
4749
0
  for (j = i; j > 0 && state_m[j - 1].rd > this_state_m.rd; --j)
4750
0
    state_m[j] = state_m[j - 1];
4751
0
  state_m[j] = this_state_m;
4752
0
  search_state->single_state_modelled_cnt[dir][mode_offset]++;
4753
0
}
4754
4755
static inline void analyze_single_states(const AV1_COMP *cpi,
4756
0
                                         InterModeSearchState *search_state) {
4757
0
  const int prune_level = cpi->sf.inter_sf.prune_comp_search_by_single_result;
4758
0
  assert(prune_level >= 1);
4759
0
  int i, j, dir, mode;
4760
4761
0
  for (dir = 0; dir < 2; ++dir) {
4762
0
    int64_t best_rd;
4763
0
    SingleInterModeState(*state)[FWD_REFS];
4764
0
    const int prune_factor = prune_level >= 2 ? 6 : 5;
4765
4766
    // Use the best rd of GLOBALMV or NEWMV to prune the unlikely
4767
    // reference frames for all the modes (NEARESTMV and NEARMV may not
4768
    // have same motion vectors). Always keep the best of each mode
4769
    // because it might form the best possible combination with other mode.
4770
0
    state = search_state->single_state[dir];
4771
0
    best_rd = AOMMIN(state[INTER_OFFSET(NEWMV)][0].rd,
4772
0
                     state[INTER_OFFSET(GLOBALMV)][0].rd);
4773
0
    for (mode = 0; mode < SINGLE_INTER_MODE_NUM; ++mode) {
4774
0
      for (i = 1; i < search_state->single_state_cnt[dir][mode]; ++i) {
4775
0
        if (state[mode][i].rd != INT64_MAX &&
4776
0
            (state[mode][i].rd >> 3) * prune_factor > best_rd) {
4777
0
          state[mode][i].valid = 0;
4778
0
        }
4779
0
      }
4780
0
    }
4781
4782
0
    state = search_state->single_state_modelled[dir];
4783
0
    best_rd = AOMMIN(state[INTER_OFFSET(NEWMV)][0].rd,
4784
0
                     state[INTER_OFFSET(GLOBALMV)][0].rd);
4785
0
    for (mode = 0; mode < SINGLE_INTER_MODE_NUM; ++mode) {
4786
0
      for (i = 1; i < search_state->single_state_modelled_cnt[dir][mode]; ++i) {
4787
0
        if (state[mode][i].rd != INT64_MAX &&
4788
0
            (state[mode][i].rd >> 3) * prune_factor > best_rd) {
4789
0
          state[mode][i].valid = 0;
4790
0
        }
4791
0
      }
4792
0
    }
4793
0
  }
4794
4795
  // Ordering by simple rd first, then by modelled rd
4796
0
  for (dir = 0; dir < 2; ++dir) {
4797
0
    for (mode = 0; mode < SINGLE_INTER_MODE_NUM; ++mode) {
4798
0
      const int state_cnt_s = search_state->single_state_cnt[dir][mode];
4799
0
      const int state_cnt_m =
4800
0
          search_state->single_state_modelled_cnt[dir][mode];
4801
0
      SingleInterModeState *state_s = search_state->single_state[dir][mode];
4802
0
      SingleInterModeState *state_m =
4803
0
          search_state->single_state_modelled[dir][mode];
4804
0
      int count = 0;
4805
0
      const int max_candidates = AOMMAX(state_cnt_s, state_cnt_m);
4806
0
      for (i = 0; i < state_cnt_s; ++i) {
4807
0
        if (state_s[i].rd == INT64_MAX) break;
4808
0
        if (state_s[i].valid) {
4809
0
          search_state->single_rd_order[dir][mode][count++] =
4810
0
              state_s[i].ref_frame;
4811
0
        }
4812
0
      }
4813
0
      if (count >= max_candidates) continue;
4814
4815
0
      for (i = 0; i < state_cnt_m && count < max_candidates; ++i) {
4816
0
        if (state_m[i].rd == INT64_MAX) break;
4817
0
        if (!state_m[i].valid) continue;
4818
0
        const int ref_frame = state_m[i].ref_frame;
4819
0
        int match = 0;
4820
        // Check if existing already
4821
0
        for (j = 0; j < count; ++j) {
4822
0
          if (search_state->single_rd_order[dir][mode][j] == ref_frame) {
4823
0
            match = 1;
4824
0
            break;
4825
0
          }
4826
0
        }
4827
0
        if (match) continue;
4828
        // Check if this ref_frame is removed in simple rd
4829
0
        int valid = 1;
4830
0
        for (j = 0; j < state_cnt_s; ++j) {
4831
0
          if (ref_frame == state_s[j].ref_frame) {
4832
0
            valid = state_s[j].valid;
4833
0
            break;
4834
0
          }
4835
0
        }
4836
0
        if (valid) {
4837
0
          search_state->single_rd_order[dir][mode][count++] = ref_frame;
4838
0
        }
4839
0
      }
4840
0
    }
4841
0
  }
4842
0
}
4843
4844
static int compound_skip_get_candidates(
4845
    const AV1_COMP *cpi, const InterModeSearchState *search_state,
4846
0
    const int dir, const PREDICTION_MODE mode) {
4847
0
  const int mode_offset = INTER_OFFSET(mode);
4848
0
  const SingleInterModeState *state =
4849
0
      search_state->single_state[dir][mode_offset];
4850
0
  const SingleInterModeState *state_modelled =
4851
0
      search_state->single_state_modelled[dir][mode_offset];
4852
4853
0
  int max_candidates = 0;
4854
0
  for (int i = 0; i < FWD_REFS; ++i) {
4855
0
    if (search_state->single_rd_order[dir][mode_offset][i] == NONE_FRAME) break;
4856
0
    max_candidates++;
4857
0
  }
4858
4859
0
  int candidates = max_candidates;
4860
0
  if (cpi->sf.inter_sf.prune_comp_search_by_single_result >= 2) {
4861
0
    candidates = AOMMIN(2, max_candidates);
4862
0
  }
4863
0
  if (cpi->sf.inter_sf.prune_comp_search_by_single_result >= 3) {
4864
0
    if (state[0].rd != INT64_MAX && state_modelled[0].rd != INT64_MAX &&
4865
0
        state[0].ref_frame == state_modelled[0].ref_frame)
4866
0
      candidates = 1;
4867
0
    if (mode == NEARMV || mode == GLOBALMV) candidates = 1;
4868
0
  }
4869
4870
0
  if (cpi->sf.inter_sf.prune_comp_search_by_single_result >= 4) {
4871
    // Limit the number of candidates to 1 in each direction for compound
4872
    // prediction
4873
0
    candidates = AOMMIN(1, candidates);
4874
0
  }
4875
0
  return candidates;
4876
0
}
4877
4878
static AOM_FORCE_INLINE int compound_skip_by_single_states(
4879
    const AV1_COMP *cpi, const InterModeSearchState *search_state,
4880
    const PREDICTION_MODE this_mode, const MV_REFERENCE_FRAME ref_frame,
4881
0
    const MV_REFERENCE_FRAME second_ref_frame, const MACROBLOCK *x) {
4882
0
  const MV_REFERENCE_FRAME refs[2] = { ref_frame, second_ref_frame };
4883
0
  const int mode[2] = { compound_ref0_mode(this_mode),
4884
0
                        compound_ref1_mode(this_mode) };
4885
0
  const int mode_offset[2] = { INTER_OFFSET(mode[0]), INTER_OFFSET(mode[1]) };
4886
0
  const int mode_dir[2] = { refs[0] <= GOLDEN_FRAME ? 0 : 1,
4887
0
                            refs[1] <= GOLDEN_FRAME ? 0 : 1 };
4888
0
  int ref_searched[2] = { 0, 0 };
4889
0
  int ref_mv_match[2] = { 1, 1 };
4890
0
  int i, j;
4891
4892
0
  for (i = 0; i < 2; ++i) {
4893
0
    const SingleInterModeState *state =
4894
0
        search_state->single_state[mode_dir[i]][mode_offset[i]];
4895
0
    const int state_cnt =
4896
0
        search_state->single_state_cnt[mode_dir[i]][mode_offset[i]];
4897
0
    for (j = 0; j < state_cnt; ++j) {
4898
0
      if (state[j].ref_frame == refs[i]) {
4899
0
        ref_searched[i] = 1;
4900
0
        break;
4901
0
      }
4902
0
    }
4903
0
  }
4904
4905
0
  const int ref_set = get_drl_refmv_count(x, refs, this_mode);
4906
0
  for (i = 0; i < 2; ++i) {
4907
0
    if (!ref_searched[i] || (mode[i] != NEARESTMV && mode[i] != NEARMV)) {
4908
0
      continue;
4909
0
    }
4910
0
    const MV_REFERENCE_FRAME single_refs[2] = { refs[i], NONE_FRAME };
4911
0
    for (int ref_mv_idx = 0; ref_mv_idx < ref_set; ref_mv_idx++) {
4912
0
      int_mv single_mv;
4913
0
      int_mv comp_mv;
4914
0
      get_this_mv(&single_mv, mode[i], 0, ref_mv_idx, 0, single_refs,
4915
0
                  &x->mbmi_ext);
4916
0
      get_this_mv(&comp_mv, this_mode, i, ref_mv_idx, 0, refs, &x->mbmi_ext);
4917
0
      if (single_mv.as_int != comp_mv.as_int) {
4918
0
        ref_mv_match[i] = 0;
4919
0
        break;
4920
0
      }
4921
0
    }
4922
0
  }
4923
4924
0
  for (i = 0; i < 2; ++i) {
4925
0
    if (!ref_searched[i] || !ref_mv_match[i]) continue;
4926
0
    const int candidates =
4927
0
        compound_skip_get_candidates(cpi, search_state, mode_dir[i], mode[i]);
4928
0
    const MV_REFERENCE_FRAME *ref_order =
4929
0
        search_state->single_rd_order[mode_dir[i]][mode_offset[i]];
4930
0
    int match = 0;
4931
0
    for (j = 0; j < candidates; ++j) {
4932
0
      if (refs[i] == ref_order[j]) {
4933
0
        match = 1;
4934
0
        break;
4935
0
      }
4936
0
    }
4937
0
    if (!match) return 1;
4938
0
  }
4939
4940
0
  return 0;
4941
0
}
4942
4943
// Check if ref frames of current block matches with given block.
4944
static inline void match_ref_frame(const MB_MODE_INFO *const mbmi,
4945
                                   const MV_REFERENCE_FRAME *ref_frames,
4946
0
                                   int *const is_ref_match) {
4947
0
  if (is_inter_block(mbmi)) {
4948
0
    is_ref_match[0] |= ref_frames[0] == mbmi->ref_frame[0];
4949
0
    is_ref_match[1] |= ref_frames[1] == mbmi->ref_frame[0];
4950
0
    if (has_second_ref(mbmi)) {
4951
0
      is_ref_match[0] |= ref_frames[0] == mbmi->ref_frame[1];
4952
0
      is_ref_match[1] |= ref_frames[1] == mbmi->ref_frame[1];
4953
0
    }
4954
0
  }
4955
0
}
4956
4957
// Prune compound mode using ref frames of neighbor blocks.
4958
static inline int compound_skip_using_neighbor_refs(
4959
    MACROBLOCKD *const xd, const PREDICTION_MODE this_mode,
4960
0
    const MV_REFERENCE_FRAME *ref_frames, int prune_ext_comp_using_neighbors) {
4961
  // Exclude non-extended compound modes from pruning
4962
0
  if (this_mode == NEAREST_NEARESTMV || this_mode == NEAR_NEARMV ||
4963
0
      this_mode == NEW_NEWMV || this_mode == GLOBAL_GLOBALMV)
4964
0
    return 0;
4965
4966
0
  if (prune_ext_comp_using_neighbors >= 3) return 1;
4967
4968
0
  int is_ref_match[2] = { 0 };  // 0 - match for forward refs
4969
                                // 1 - match for backward refs
4970
  // Check if ref frames of this block matches with left neighbor.
4971
0
  if (xd->left_available)
4972
0
    match_ref_frame(xd->left_mbmi, ref_frames, is_ref_match);
4973
4974
  // Check if ref frames of this block matches with above neighbor.
4975
0
  if (xd->up_available)
4976
0
    match_ref_frame(xd->above_mbmi, ref_frames, is_ref_match);
4977
4978
  // Combine ref frame match with neighbors in forward and backward refs.
4979
0
  const int track_ref_match = is_ref_match[0] + is_ref_match[1];
4980
4981
  // Pruning based on ref frame match with neighbors.
4982
0
  if (track_ref_match >= prune_ext_comp_using_neighbors) return 0;
4983
0
  return 1;
4984
0
}
4985
4986
// Update best single mode for the given reference frame based on simple rd.
4987
static inline void update_best_single_mode(InterModeSearchState *search_state,
4988
                                           const PREDICTION_MODE this_mode,
4989
                                           const MV_REFERENCE_FRAME ref_frame,
4990
0
                                           int64_t this_rd) {
4991
0
  if (this_rd < search_state->best_single_rd[ref_frame]) {
4992
0
    search_state->best_single_rd[ref_frame] = this_rd;
4993
0
    search_state->best_single_mode[ref_frame] = this_mode;
4994
0
  }
4995
0
}
4996
4997
// Prune compound mode using best single mode for the same reference.
4998
static inline int skip_compound_using_best_single_mode_ref(
4999
    const PREDICTION_MODE this_mode, const MV_REFERENCE_FRAME *ref_frames,
5000
    const PREDICTION_MODE *best_single_mode,
5001
0
    int prune_comp_using_best_single_mode_ref) {
5002
  // Exclude non-extended compound modes from pruning
5003
0
  if (this_mode == NEAREST_NEARESTMV || this_mode == NEAR_NEARMV ||
5004
0
      this_mode == NEW_NEWMV || this_mode == GLOBAL_GLOBALMV)
5005
0
    return 0;
5006
5007
0
  assert(this_mode >= NEAREST_NEWMV && this_mode <= NEW_NEARMV);
5008
0
  const PREDICTION_MODE comp_mode_ref0 = compound_ref0_mode(this_mode);
5009
  // Get ref frame direction corresponding to NEWMV
5010
  // 0 - NEWMV corresponding to forward direction
5011
  // 1 - NEWMV corresponding to backward direction
5012
0
  const int newmv_dir = comp_mode_ref0 != NEWMV;
5013
5014
  // Avoid pruning the compound mode when ref frame corresponding to NEWMV
5015
  // have NEWMV as single mode winner.
5016
  // Example: For an extended-compound mode,
5017
  // {mode, {fwd_frame, bwd_frame}} = {NEAR_NEWMV, {LAST_FRAME, ALTREF_FRAME}}
5018
  // - Ref frame corresponding to NEWMV is ALTREF_FRAME
5019
  // - Avoid pruning this mode, if best single mode corresponding to ref frame
5020
  //   ALTREF_FRAME is NEWMV
5021
0
  const PREDICTION_MODE single_mode = best_single_mode[ref_frames[newmv_dir]];
5022
0
  if (single_mode == NEWMV) return 0;
5023
5024
  // Avoid pruning the compound mode when best single mode is not available
5025
0
  if (prune_comp_using_best_single_mode_ref == 1)
5026
0
    if (single_mode == MB_MODE_COUNT) return 0;
5027
0
  return 1;
5028
0
}
5029
5030
0
static int compare_int64(const void *a, const void *b) {
5031
0
  int64_t a64 = *((int64_t *)a);
5032
0
  int64_t b64 = *((int64_t *)b);
5033
0
  if (a64 < b64) {
5034
0
    return -1;
5035
0
  } else if (a64 == b64) {
5036
0
    return 0;
5037
0
  } else {
5038
0
    return 1;
5039
0
  }
5040
0
}
5041
5042
static inline void update_search_state(
5043
    const AV1_COMP *cpi, InterModeSearchState *search_state,
5044
    RD_STATS *best_rd_stats_dst, PICK_MODE_CONTEXT *ctx,
5045
    const RD_STATS *new_best_rd_stats, const RD_STATS *new_best_rd_stats_y,
5046
    const RD_STATS *new_best_rd_stats_uv, THR_MODES new_best_mode,
5047
0
    const MACROBLOCK *x, int txfm_search_done) {
5048
0
  const MACROBLOCKD *xd = &x->e_mbd;
5049
0
  const MB_MODE_INFO *mbmi = xd->mi[0];
5050
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
5051
0
  const int skip_txfm =
5052
0
      mbmi->skip_txfm && !is_mode_intra(av1_mode_defs[new_best_mode].mode);
5053
5054
0
  search_state->best_rd = new_best_rd_stats->rdcost;
5055
0
  search_state->best_mode_index = new_best_mode;
5056
0
  *best_rd_stats_dst = *new_best_rd_stats;
5057
0
  search_state->best_mbmode = *mbmi;
5058
0
  search_state->best_skip2 = skip_txfm;
5059
0
  search_state->best_mode_skippable = new_best_rd_stats->skip_txfm;
5060
  // When !txfm_search_done, new_best_rd_stats won't provide correct rate_y and
5061
  // rate_uv because av1_txfm_search process is replaced by rd estimation.
5062
  // Therefore, we should avoid updating best_rate_y and best_rate_uv here.
5063
  // These two values will be updated when av1_txfm_search is called.
5064
0
  if (txfm_search_done) {
5065
0
    const int32_t skip_rate =
5066
0
        x->mode_costs.skip_txfm_cost[skip_ctx]
5067
0
                                    [new_best_rd_stats->skip_txfm || skip_txfm];
5068
0
    const int32_t scaled_skip_rate =
5069
0
        increase_motion_mode_rate(cpi, mbmi, skip_rate);
5070
0
    search_state->best_rate_y = new_best_rd_stats_y->rate + scaled_skip_rate;
5071
0
    search_state->best_rate_uv = new_best_rd_stats_uv->rate;
5072
0
  }
5073
0
  search_state->best_y_rdcost = *new_best_rd_stats_y;
5074
0
  av1_copy_array(ctx->tx_type_map, xd->tx_type_map, ctx->num_4x4_blk);
5075
0
}
5076
5077
// Find the best RD for a reference frame (among single reference modes)
5078
// and store +10% of it in the 0-th element in ref_frame_rd.
5079
0
static inline void find_top_ref(int64_t ref_frame_rd[REF_FRAMES]) {
5080
0
  assert(ref_frame_rd[0] == INT64_MAX);
5081
0
  int64_t ref_copy[REF_FRAMES - 1];
5082
0
  memcpy(ref_copy, ref_frame_rd + 1,
5083
0
         sizeof(ref_frame_rd[0]) * (REF_FRAMES - 1));
5084
0
  qsort(ref_copy, REF_FRAMES - 1, sizeof(int64_t), compare_int64);
5085
5086
0
  int64_t cutoff = ref_copy[0];
5087
  // The cut-off is within 10% of the best.
5088
0
  if (cutoff != INT64_MAX) {
5089
0
    assert(cutoff < INT64_MAX / 200);
5090
0
    cutoff = (110 * cutoff) / 100;
5091
0
  }
5092
0
  ref_frame_rd[0] = cutoff;
5093
0
}
5094
5095
// Check if either frame is within the cutoff.
5096
static inline bool in_single_ref_cutoff(int64_t ref_frame_rd[REF_FRAMES],
5097
                                        MV_REFERENCE_FRAME frame1,
5098
0
                                        MV_REFERENCE_FRAME frame2) {
5099
0
  assert(frame2 > 0);
5100
0
  return ref_frame_rd[frame1] <= ref_frame_rd[0] ||
5101
0
         ref_frame_rd[frame2] <= ref_frame_rd[0];
5102
0
}
5103
5104
static inline void evaluate_motion_mode_for_winner_candidates(
5105
    const AV1_COMP *const cpi, MACROBLOCK *const x, RD_STATS *const rd_cost,
5106
    HandleInterModeArgs *const args, TileDataEnc *const tile_data,
5107
    PICK_MODE_CONTEXT *const ctx,
5108
    struct buf_2d yv12_mb[REF_FRAMES][MAX_MB_PLANE],
5109
    const motion_mode_best_st_candidate *const best_motion_mode_cands,
5110
    int do_tx_search, const BLOCK_SIZE bsize, int64_t *const best_est_rd,
5111
0
    InterModeSearchState *const search_state, int64_t *yrd) {
5112
0
  const AV1_COMMON *const cm = &cpi->common;
5113
0
  const int num_planes = av1_num_planes(cm);
5114
0
  MACROBLOCKD *const xd = &x->e_mbd;
5115
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
5116
0
  InterModesInfo *const inter_modes_info = x->inter_modes_info;
5117
0
  const int num_best_cand = best_motion_mode_cands->num_motion_mode_cand;
5118
5119
0
  for (int cand = 0; cand < num_best_cand; cand++) {
5120
0
    RD_STATS rd_stats;
5121
0
    RD_STATS rd_stats_y;
5122
0
    RD_STATS rd_stats_uv;
5123
0
    av1_init_rd_stats(&rd_stats);
5124
0
    av1_init_rd_stats(&rd_stats_y);
5125
0
    av1_init_rd_stats(&rd_stats_uv);
5126
0
    int rate_mv;
5127
5128
0
    rate_mv = best_motion_mode_cands->motion_mode_cand[cand].rate_mv;
5129
0
    args->skip_motion_mode =
5130
0
        best_motion_mode_cands->motion_mode_cand[cand].skip_motion_mode;
5131
0
    *mbmi = best_motion_mode_cands->motion_mode_cand[cand].mbmi;
5132
0
    rd_stats.rate =
5133
0
        best_motion_mode_cands->motion_mode_cand[cand].rate2_nocoeff;
5134
5135
    // Continue if the best candidate is compound.
5136
0
    if (!is_inter_singleref_mode(mbmi->mode)) continue;
5137
5138
0
    x->txfm_search_info.skip_txfm = 0;
5139
0
    struct macroblockd_plane *pd = xd->plane;
5140
0
    const BUFFER_SET orig_dst = {
5141
0
      { pd[0].dst.buf, pd[1].dst.buf, pd[2].dst.buf },
5142
0
      { pd[0].dst.stride, pd[1].dst.stride, pd[2].dst.stride },
5143
0
    };
5144
5145
0
    set_ref_ptrs(cm, xd, mbmi->ref_frame[0], mbmi->ref_frame[1]);
5146
    // Initialize motion mode to simple translation
5147
    // Calculation of switchable rate depends on it.
5148
0
    mbmi->motion_mode = 0;
5149
0
    const int is_comp_pred = mbmi->ref_frame[1] > INTRA_FRAME;
5150
0
    for (int i = 0; i < num_planes; i++) {
5151
0
      xd->plane[i].pre[0] = yv12_mb[mbmi->ref_frame[0]][i];
5152
0
      if (is_comp_pred) xd->plane[i].pre[1] = yv12_mb[mbmi->ref_frame[1]][i];
5153
0
    }
5154
5155
0
    int64_t skip_rd[2] = { search_state->best_skip_rd[0],
5156
0
                           search_state->best_skip_rd[1] };
5157
0
    int64_t this_yrd = INT64_MAX;
5158
0
    int64_t ret_value = motion_mode_rd(
5159
0
        cpi, tile_data, x, bsize, &rd_stats, &rd_stats_y, &rd_stats_uv, args,
5160
0
        search_state->best_rd, skip_rd, &rate_mv, &orig_dst, best_est_rd,
5161
0
        do_tx_search, inter_modes_info, 1, &this_yrd);
5162
5163
0
    if (ret_value != INT64_MAX) {
5164
0
      rd_stats.rdcost = RDCOST(x->rdmult, rd_stats.rate, rd_stats.dist);
5165
0
      const THR_MODES mode_enum = get_prediction_mode_idx(
5166
0
          mbmi->mode, mbmi->ref_frame[0], mbmi->ref_frame[1]);
5167
      // Collect mode stats for multiwinner mode processing
5168
0
      store_winner_mode_stats(
5169
0
          cpi, x, mbmi, &rd_stats, &rd_stats_y, &rd_stats_uv, mode_enum, NULL,
5170
0
          bsize, rd_stats.rdcost, cpi->sf.winner_mode_sf.multi_winner_mode_type,
5171
0
          do_tx_search);
5172
5173
0
      if (rd_stats.rdcost < search_state->best_rd) {
5174
0
        *yrd = this_yrd;
5175
0
        update_search_state(cpi, search_state, rd_cost, ctx, &rd_stats,
5176
0
                            &rd_stats_y, &rd_stats_uv, mode_enum, x,
5177
0
                            do_tx_search);
5178
0
        if (do_tx_search) search_state->best_skip_rd[0] = skip_rd[0];
5179
0
      }
5180
0
    }
5181
0
  }
5182
0
}
5183
5184
/*!\cond */
5185
// Arguments for speed feature pruning of inter mode search
5186
typedef struct {
5187
  int *skip_motion_mode;
5188
  mode_skip_mask_t *mode_skip_mask;
5189
  InterModeSearchState *search_state;
5190
  int skip_ref_frame_mask;
5191
  int reach_first_comp_mode;
5192
  int mode_thresh_mul_fact;
5193
  int num_single_modes_processed;
5194
  int prune_cpd_using_sr_stats_ready;
5195
} InterModeSFArgs;
5196
/*!\endcond */
5197
5198
static AOM_FORCE_INLINE int skip_inter_mode(AV1_COMP *cpi, MACROBLOCK *x,
5199
                                            const BLOCK_SIZE bsize,
5200
                                            int64_t *ref_frame_rd, int midx,
5201
                                            InterModeSFArgs *args,
5202
0
                                            int is_low_temp_var) {
5203
0
  const SPEED_FEATURES *const sf = &cpi->sf;
5204
0
  MACROBLOCKD *const xd = &x->e_mbd;
5205
  // Get the actual prediction mode we are trying in this iteration
5206
0
  const THR_MODES mode_enum = av1_default_mode_order[midx];
5207
0
  const MODE_DEFINITION *mode_def = &av1_mode_defs[mode_enum];
5208
0
  const PREDICTION_MODE this_mode = mode_def->mode;
5209
0
  const MV_REFERENCE_FRAME *ref_frames = mode_def->ref_frame;
5210
0
  const MV_REFERENCE_FRAME ref_frame = ref_frames[0];
5211
0
  const MV_REFERENCE_FRAME second_ref_frame = ref_frames[1];
5212
0
  const int comp_pred = second_ref_frame > INTRA_FRAME;
5213
5214
0
  if (ref_frame == INTRA_FRAME) return 1;
5215
5216
0
  const FRAME_UPDATE_TYPE update_type =
5217
0
      get_frame_update_type(&cpi->ppi->gf_group, cpi->gf_frame_index);
5218
0
  if (sf->inter_sf.skip_arf_compound && update_type == ARF_UPDATE &&
5219
0
      comp_pred) {
5220
0
    return 1;
5221
0
  }
5222
5223
  // This is for real time encoding.
5224
0
  if (is_low_temp_var && !comp_pred && ref_frame != LAST_FRAME &&
5225
0
      this_mode != NEARESTMV)
5226
0
    return 1;
5227
5228
  // Check if this mode should be skipped because it is incompatible with the
5229
  // current frame
5230
0
  if (inter_mode_compatible_skip(cpi, x, bsize, this_mode, ref_frames))
5231
0
    return 1;
5232
0
  const int ret = inter_mode_search_order_independent_skip(
5233
0
      cpi, x, args->mode_skip_mask, args->search_state,
5234
0
      args->skip_ref_frame_mask, this_mode, mode_def->ref_frame);
5235
0
  if (ret == 1) return 1;
5236
0
  *(args->skip_motion_mode) = (ret == 2);
5237
5238
  // We've reached the first compound prediction mode, get stats from the
5239
  // single reference predictors to help with pruning.
5240
  // Disable this pruning logic if interpolation filter search was skipped for
5241
  // single prediction modes as it can result in aggressive pruning of compound
5242
  // prediction modes due to the absence of modelled_rd populated by
5243
  // av1_interpolation_filter_search().
5244
  // TODO(Remya): Check the impact of the sf
5245
  // 'prune_comp_search_by_single_result' if compound prediction modes are
5246
  // enabled in future for REALTIME encode.
5247
0
  if (!sf->interp_sf.skip_interp_filter_search &&
5248
0
      sf->inter_sf.prune_comp_search_by_single_result > 0 && comp_pred &&
5249
0
      args->reach_first_comp_mode == 0) {
5250
0
    analyze_single_states(cpi, args->search_state);
5251
0
    args->reach_first_comp_mode = 1;
5252
0
  }
5253
5254
  // Prune aggressively when best mode is skippable.
5255
0
  int mul_fact = args->search_state->best_mode_skippable
5256
0
                     ? args->mode_thresh_mul_fact
5257
0
                     : (1 << MODE_THRESH_QBITS);
5258
0
  int64_t mode_threshold =
5259
0
      (args->search_state->mode_threshold[mode_enum] * mul_fact) >>
5260
0
      MODE_THRESH_QBITS;
5261
5262
0
  if (args->search_state->best_rd < mode_threshold) return 1;
5263
5264
  // Skip this compound mode based on the RD results from the single prediction
5265
  // modes
5266
0
  if (!sf->interp_sf.skip_interp_filter_search &&
5267
0
      sf->inter_sf.prune_comp_search_by_single_result > 0 && comp_pred) {
5268
0
    if (compound_skip_by_single_states(cpi, args->search_state, this_mode,
5269
0
                                       ref_frame, second_ref_frame, x))
5270
0
      return 1;
5271
0
  }
5272
5273
0
  if (sf->inter_sf.prune_compound_using_single_ref && comp_pred) {
5274
    // After we done with single reference modes, find the 2nd best RD
5275
    // for a reference frame. Only search compound modes that have a reference
5276
    // frame at least as good as the 2nd best.
5277
0
    if (!args->prune_cpd_using_sr_stats_ready &&
5278
0
        args->num_single_modes_processed == NUM_SINGLE_REF_MODES) {
5279
0
      find_top_ref(ref_frame_rd);
5280
0
      args->prune_cpd_using_sr_stats_ready = 1;
5281
0
    }
5282
0
    if (args->prune_cpd_using_sr_stats_ready &&
5283
0
        !in_single_ref_cutoff(ref_frame_rd, ref_frame, second_ref_frame))
5284
0
      return 1;
5285
0
  }
5286
5287
  // Skip NEW_NEARMV and NEAR_NEWMV extended compound modes
5288
0
  if (sf->inter_sf.skip_ext_comp_nearmv_mode &&
5289
0
      (this_mode == NEW_NEARMV || this_mode == NEAR_NEWMV)) {
5290
0
    return 1;
5291
0
  }
5292
5293
0
  if (sf->inter_sf.prune_ext_comp_using_neighbors && comp_pred) {
5294
0
    if (compound_skip_using_neighbor_refs(
5295
0
            xd, this_mode, ref_frames,
5296
0
            sf->inter_sf.prune_ext_comp_using_neighbors))
5297
0
      return 1;
5298
0
  }
5299
5300
0
  if (sf->inter_sf.prune_comp_using_best_single_mode_ref && comp_pred) {
5301
0
    if (skip_compound_using_best_single_mode_ref(
5302
0
            this_mode, ref_frames, args->search_state->best_single_mode,
5303
0
            sf->inter_sf.prune_comp_using_best_single_mode_ref))
5304
0
      return 1;
5305
0
  }
5306
5307
0
  if (sf->inter_sf.prune_nearest_near_mv_using_refmv_weight && !comp_pred) {
5308
0
    const int8_t ref_frame_type = av1_ref_frame_type(ref_frames);
5309
0
    if (skip_nearest_near_mv_using_refmv_weight(
5310
0
            x, this_mode, ref_frame_type,
5311
0
            args->search_state->best_mbmode.mode)) {
5312
      // Ensure the mode is pruned only when the current block has obtained a
5313
      // valid inter mode.
5314
0
      assert(is_inter_mode(args->search_state->best_mbmode.mode));
5315
0
      return 1;
5316
0
    }
5317
0
  }
5318
5319
0
  if (sf->rt_sf.prune_inter_modes_with_golden_ref &&
5320
0
      ref_frame == GOLDEN_FRAME && !comp_pred) {
5321
0
    const int subgop_size = AOMMIN(cpi->ppi->gf_group.size, FIXED_GF_INTERVAL);
5322
0
    if (cpi->rc.frames_since_golden > (subgop_size >> 2) &&
5323
0
        args->search_state->best_mbmode.ref_frame[0] != GOLDEN_FRAME) {
5324
0
      if ((bsize > BLOCK_16X16 && this_mode == NEWMV) || this_mode == NEARMV)
5325
0
        return 1;
5326
0
    }
5327
0
  }
5328
5329
0
  return 0;
5330
0
}
5331
5332
static void record_best_compound(REFERENCE_MODE reference_mode,
5333
                                 RD_STATS *rd_stats, int comp_pred, int rdmult,
5334
                                 InterModeSearchState *search_state,
5335
0
                                 int compmode_cost) {
5336
0
  int64_t single_rd, hybrid_rd, single_rate, hybrid_rate;
5337
5338
0
  if (reference_mode == REFERENCE_MODE_SELECT) {
5339
0
    single_rate = rd_stats->rate - compmode_cost;
5340
0
    hybrid_rate = rd_stats->rate;
5341
0
  } else {
5342
0
    single_rate = rd_stats->rate;
5343
0
    hybrid_rate = rd_stats->rate + compmode_cost;
5344
0
  }
5345
5346
0
  single_rd = RDCOST(rdmult, single_rate, rd_stats->dist);
5347
0
  hybrid_rd = RDCOST(rdmult, hybrid_rate, rd_stats->dist);
5348
5349
0
  if (!comp_pred) {
5350
0
    if (single_rd < search_state->best_pred_rd[SINGLE_REFERENCE])
5351
0
      search_state->best_pred_rd[SINGLE_REFERENCE] = single_rd;
5352
0
  } else {
5353
0
    if (single_rd < search_state->best_pred_rd[COMPOUND_REFERENCE])
5354
0
      search_state->best_pred_rd[COMPOUND_REFERENCE] = single_rd;
5355
0
  }
5356
0
  if (hybrid_rd < search_state->best_pred_rd[REFERENCE_MODE_SELECT])
5357
0
    search_state->best_pred_rd[REFERENCE_MODE_SELECT] = hybrid_rd;
5358
0
}
5359
5360
// Does a transform search over a list of the best inter mode candidates.
5361
// This is called if the original mode search computed an RD estimate
5362
// for the transform search rather than doing a full search.
5363
static void tx_search_best_inter_candidates(
5364
    AV1_COMP *cpi, TileDataEnc *tile_data, MACROBLOCK *x,
5365
    int64_t best_rd_so_far, BLOCK_SIZE bsize,
5366
    struct buf_2d yv12_mb[REF_FRAMES][MAX_MB_PLANE], int mi_row, int mi_col,
5367
    InterModeSearchState *search_state, RD_STATS *rd_cost,
5368
0
    PICK_MODE_CONTEXT *ctx, int64_t *yrd) {
5369
0
  AV1_COMMON *const cm = &cpi->common;
5370
0
  MACROBLOCKD *const xd = &x->e_mbd;
5371
0
  TxfmSearchInfo *txfm_info = &x->txfm_search_info;
5372
0
  const ModeCosts *mode_costs = &x->mode_costs;
5373
0
  const int num_planes = av1_num_planes(cm);
5374
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
5375
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
5376
0
  InterModesInfo *inter_modes_info = x->inter_modes_info;
5377
0
  inter_modes_info_sort(inter_modes_info, inter_modes_info->rd_idx_pair_arr);
5378
0
  search_state->best_rd = best_rd_so_far;
5379
0
  search_state->best_mode_index = THR_INVALID;
5380
  // Initialize best mode stats for winner mode processing
5381
0
  x->winner_mode_count = 0;
5382
0
  store_winner_mode_stats(cpi, x, mbmi, NULL, NULL, NULL, THR_INVALID, NULL,
5383
0
                          bsize, best_rd_so_far,
5384
0
                          cpi->sf.winner_mode_sf.multi_winner_mode_type, 0);
5385
0
  inter_modes_info->num =
5386
0
      inter_modes_info->num < cpi->sf.rt_sf.num_inter_modes_for_tx_search
5387
0
          ? inter_modes_info->num
5388
0
          : cpi->sf.rt_sf.num_inter_modes_for_tx_search;
5389
0
  const int64_t top_est_rd =
5390
0
      inter_modes_info->num > 0
5391
0
          ? inter_modes_info
5392
0
                ->est_rd_arr[inter_modes_info->rd_idx_pair_arr[0].idx]
5393
0
          : INT64_MAX;
5394
0
  *yrd = INT64_MAX;
5395
0
  int64_t best_rd_in_this_partition = INT64_MAX;
5396
0
  int num_inter_mode_cands = inter_modes_info->num;
5397
0
  int newmv_mode_evaled = 0;
5398
0
  int max_allowed_cands = INT_MAX;
5399
0
  if (cpi->sf.inter_sf.limit_inter_mode_cands) {
5400
    // The bound on the no. of inter mode candidates, beyond which the
5401
    // candidates are limited if a newmv mode got evaluated, is set as
5402
    // max_allowed_cands + 1.
5403
0
    const int num_allowed_cands[5] = { INT_MAX, 10, 9, 6, 2 };
5404
0
    assert(cpi->sf.inter_sf.limit_inter_mode_cands <= 4);
5405
0
    max_allowed_cands =
5406
0
        num_allowed_cands[cpi->sf.inter_sf.limit_inter_mode_cands];
5407
0
  }
5408
5409
0
  int num_mode_thresh = INT_MAX;
5410
0
  if (cpi->sf.inter_sf.limit_txfm_eval_per_mode) {
5411
    // Bound the no. of transform searches per prediction mode beyond a
5412
    // threshold.
5413
0
    const int num_mode_thresh_ary[4] = { INT_MAX, 4, 3, 0 };
5414
0
    assert(cpi->sf.inter_sf.limit_txfm_eval_per_mode <= 3);
5415
0
    num_mode_thresh =
5416
0
        num_mode_thresh_ary[cpi->sf.inter_sf.limit_txfm_eval_per_mode];
5417
0
  }
5418
5419
0
  int num_tx_cands = 0;
5420
0
  int num_tx_search_modes[INTER_MODE_END - INTER_MODE_START] = { 0 };
5421
  // Iterate over best inter mode candidates and perform tx search
5422
0
  for (int j = 0; j < num_inter_mode_cands; ++j) {
5423
0
    const int data_idx = inter_modes_info->rd_idx_pair_arr[j].idx;
5424
0
    *mbmi = inter_modes_info->mbmi_arr[data_idx];
5425
0
    const PREDICTION_MODE prediction_mode = mbmi->mode;
5426
0
    int64_t curr_est_rd = inter_modes_info->est_rd_arr[data_idx];
5427
0
    if (curr_est_rd * 0.80 > top_est_rd) break;
5428
5429
0
    if (num_tx_cands > num_mode_thresh) {
5430
0
      if ((prediction_mode != NEARESTMV &&
5431
0
           num_tx_search_modes[prediction_mode - INTER_MODE_START] >= 1) ||
5432
0
          (prediction_mode == NEARESTMV &&
5433
0
           num_tx_search_modes[prediction_mode - INTER_MODE_START] >= 2))
5434
0
        continue;
5435
0
    }
5436
5437
0
    txfm_info->skip_txfm = 0;
5438
0
    set_ref_ptrs(cm, xd, mbmi->ref_frame[0], mbmi->ref_frame[1]);
5439
5440
    // Select prediction reference frames.
5441
0
    const int is_comp_pred = mbmi->ref_frame[1] > INTRA_FRAME;
5442
0
    for (int i = 0; i < num_planes; i++) {
5443
0
      xd->plane[i].pre[0] = yv12_mb[mbmi->ref_frame[0]][i];
5444
0
      if (is_comp_pred) xd->plane[i].pre[1] = yv12_mb[mbmi->ref_frame[1]][i];
5445
0
    }
5446
5447
0
    bool is_predictor_built = false;
5448
5449
    // Initialize RD stats
5450
0
    RD_STATS rd_stats;
5451
0
    RD_STATS rd_stats_y;
5452
0
    RD_STATS rd_stats_uv;
5453
0
    const int mode_rate = inter_modes_info->mode_rate_arr[data_idx];
5454
0
    int64_t skip_rd = INT64_MAX;
5455
0
    const int txfm_rd_gate_level = get_txfm_rd_gate_level(
5456
0
        cm->seq_params->enable_masked_compound,
5457
0
        cpi->sf.inter_sf.txfm_rd_gate_level, bsize, TX_SEARCH_DEFAULT,
5458
0
        /*eval_motion_mode=*/0);
5459
0
    if (txfm_rd_gate_level) {
5460
      // Check if the mode is good enough based on skip RD
5461
0
      int64_t curr_sse = inter_modes_info->sse_arr[data_idx];
5462
0
      skip_rd = RDCOST(x->rdmult, mode_rate, curr_sse);
5463
0
      int eval_txfm = check_txfm_eval(x, bsize, search_state->best_skip_rd[0],
5464
0
                                      skip_rd, txfm_rd_gate_level, 0);
5465
0
      if (!eval_txfm) continue;
5466
0
    }
5467
5468
    // Build the prediction for this mode
5469
0
    if (!is_predictor_built) {
5470
0
      av1_enc_build_inter_predictor(cm, xd, mi_row, mi_col, NULL, bsize, 0,
5471
0
                                    av1_num_planes(cm) - 1);
5472
0
    }
5473
0
    if (mbmi->motion_mode == OBMC_CAUSAL) {
5474
0
      av1_build_obmc_inter_predictors_sb(cm, xd);
5475
0
    }
5476
5477
0
    num_tx_cands++;
5478
0
    if (have_newmv_in_inter_mode(prediction_mode)) newmv_mode_evaled = 1;
5479
0
    num_tx_search_modes[prediction_mode - INTER_MODE_START]++;
5480
0
    int64_t this_yrd = INT64_MAX;
5481
    // Do the transform search
5482
0
    if (!av1_txfm_search(cpi, x, bsize, &rd_stats, &rd_stats_y, &rd_stats_uv,
5483
0
                         mode_rate, search_state->best_rd)) {
5484
0
      continue;
5485
0
    } else {
5486
0
      if (cpi->sf.inter_sf.inter_mode_rd_model_estimation == 1) {
5487
0
        inter_mode_data_push(
5488
0
            tile_data, mbmi->bsize, rd_stats.sse, rd_stats.dist,
5489
0
            rd_stats_y.rate + rd_stats_uv.rate +
5490
0
                mode_costs->skip_txfm_cost[skip_ctx][mbmi->skip_txfm]);
5491
0
      }
5492
0
      increase_motion_mode_rdstats(cpi, mbmi, &rd_stats, &rd_stats_y,
5493
0
                                   &rd_stats_uv);
5494
0
      const int *skip_txfm_cost_ptr = mode_costs->skip_txfm_cost[skip_ctx];
5495
0
      const int skip_rate =
5496
0
          rd_stats.skip_txfm ? skip_txfm_cost_ptr[1] : skip_txfm_cost_ptr[0];
5497
0
      const int32_t scaled_skip_rate =
5498
0
          increase_motion_mode_rate(cpi, mbmi, skip_rate);
5499
0
      const int y_rate =
5500
0
          scaled_skip_rate + (rd_stats.skip_txfm ? 0 : rd_stats_y.rate);
5501
0
      this_yrd = RDCOST(x->rdmult, y_rate + mode_rate, rd_stats_y.dist);
5502
0
    }
5503
5504
0
    rd_stats.rdcost = RDCOST(x->rdmult, rd_stats.rate, rd_stats.dist);
5505
5506
0
    const THR_MODES mode_enum = get_prediction_mode_idx(
5507
0
        prediction_mode, mbmi->ref_frame[0], mbmi->ref_frame[1]);
5508
5509
    // Collect mode stats for multiwinner mode processing
5510
0
    const int txfm_search_done = 1;
5511
0
    store_winner_mode_stats(cpi, x, mbmi, &rd_stats, &rd_stats_y, &rd_stats_uv,
5512
0
                            mode_enum, NULL, bsize, rd_stats.rdcost,
5513
0
                            cpi->sf.winner_mode_sf.multi_winner_mode_type,
5514
0
                            txfm_search_done);
5515
5516
0
    if (rd_stats.rdcost < best_rd_in_this_partition) {
5517
0
      best_rd_in_this_partition = rd_stats.rdcost;
5518
0
      *yrd = this_yrd;
5519
0
    }
5520
5521
0
    if (rd_stats.rdcost < search_state->best_rd) {
5522
0
      update_search_state(cpi, search_state, rd_cost, ctx, &rd_stats,
5523
0
                          &rd_stats_y, &rd_stats_uv, mode_enum, x,
5524
0
                          txfm_search_done);
5525
0
      search_state->best_skip_rd[0] = skip_rd;
5526
      // Limit the total number of modes to be evaluated if the first is valid
5527
      // and transform skip or compound
5528
0
      if (cpi->sf.inter_sf.inter_mode_txfm_breakout) {
5529
0
        if (!j && (search_state->best_mbmode.skip_txfm || rd_stats.skip_txfm)) {
5530
          // Evaluate more candidates at high quantizers where occurrence of
5531
          // transform skip is high.
5532
0
          const int max_cands_cap[5] = { 2, 3, 5, 7, 9 };
5533
0
          const int qindex_band = (5 * x->qindex) >> QINDEX_BITS;
5534
0
          num_inter_mode_cands =
5535
0
              AOMMIN(max_cands_cap[qindex_band], inter_modes_info->num);
5536
0
        } else if (!j && has_second_ref(&search_state->best_mbmode)) {
5537
0
          const int aggr = cpi->sf.inter_sf.inter_mode_txfm_breakout - 1;
5538
          // Evaluate more candidates at low quantizers where occurrence of
5539
          // single reference mode is high.
5540
0
          const int max_cands_cap_cmp[2][4] = { { 10, 7, 5, 4 },
5541
0
                                                { 10, 7, 5, 3 } };
5542
0
          const int qindex_band_cmp = (4 * x->qindex) >> QINDEX_BITS;
5543
0
          num_inter_mode_cands = AOMMIN(
5544
0
              max_cands_cap_cmp[aggr][qindex_band_cmp], inter_modes_info->num);
5545
0
        }
5546
0
      }
5547
0
    }
5548
    // If the number of candidates evaluated exceeds max_allowed_cands, break if
5549
    // a newmv mode was evaluated already.
5550
0
    if ((num_tx_cands > max_allowed_cands) && newmv_mode_evaled) break;
5551
0
  }
5552
0
}
5553
5554
// Indicates number of winner simple translation modes to be used
5555
static const unsigned int num_winner_motion_modes[3] = { 0, 10, 3 };
5556
5557
// Adds a motion mode to the candidate list for motion_mode_for_winner_cand
5558
// speed feature. This list consists of modes that have only searched
5559
// SIMPLE_TRANSLATION. The final list will be used to search other motion
5560
// modes after the initial RD search.
5561
static void handle_winner_cand(
5562
    MB_MODE_INFO *const mbmi,
5563
    motion_mode_best_st_candidate *best_motion_mode_cands,
5564
    int max_winner_motion_mode_cand, int64_t this_rd,
5565
0
    motion_mode_candidate *motion_mode_cand, int skip_motion_mode) {
5566
  // Number of current motion mode candidates in list
5567
0
  const int num_motion_mode_cand = best_motion_mode_cands->num_motion_mode_cand;
5568
0
  int valid_motion_mode_cand_loc = num_motion_mode_cand;
5569
5570
  // find the best location to insert new motion mode candidate
5571
0
  for (int j = 0; j < num_motion_mode_cand; j++) {
5572
0
    if (this_rd < best_motion_mode_cands->motion_mode_cand[j].rd_cost) {
5573
0
      valid_motion_mode_cand_loc = j;
5574
0
      break;
5575
0
    }
5576
0
  }
5577
5578
  // Insert motion mode if location is found
5579
0
  if (valid_motion_mode_cand_loc < max_winner_motion_mode_cand) {
5580
0
    if (num_motion_mode_cand > 0 &&
5581
0
        valid_motion_mode_cand_loc < max_winner_motion_mode_cand - 1)
5582
0
      memmove(
5583
0
          &best_motion_mode_cands
5584
0
               ->motion_mode_cand[valid_motion_mode_cand_loc + 1],
5585
0
          &best_motion_mode_cands->motion_mode_cand[valid_motion_mode_cand_loc],
5586
0
          (AOMMIN(num_motion_mode_cand, max_winner_motion_mode_cand - 1) -
5587
0
           valid_motion_mode_cand_loc) *
5588
0
              sizeof(best_motion_mode_cands->motion_mode_cand[0]));
5589
0
    motion_mode_cand->mbmi = *mbmi;
5590
0
    motion_mode_cand->rd_cost = this_rd;
5591
0
    motion_mode_cand->skip_motion_mode = skip_motion_mode;
5592
0
    best_motion_mode_cands->motion_mode_cand[valid_motion_mode_cand_loc] =
5593
0
        *motion_mode_cand;
5594
0
    best_motion_mode_cands->num_motion_mode_cand =
5595
0
        AOMMIN(max_winner_motion_mode_cand,
5596
0
               best_motion_mode_cands->num_motion_mode_cand + 1);
5597
0
  }
5598
0
}
5599
5600
/*!\brief Search intra modes in interframes
5601
 *
5602
 * \ingroup intra_mode_search
5603
 *
5604
 * This function searches for the best intra mode when the current frame is an
5605
 * interframe. This function however does *not* handle luma palette mode.
5606
 * Palette mode is currently handled by \ref av1_search_palette_mode.
5607
 *
5608
 * This function will first iterate through the luma mode candidates to find the
5609
 * best luma intra mode. Once the best luma mode it's found, it will then search
5610
 * for the best chroma mode. Because palette mode is currently not handled by
5611
 * here, a cache of uv mode is stored in
5612
 * InterModeSearchState::intra_search_state so it can be reused later by \ref
5613
 * av1_search_palette_mode.
5614
 *
5615
 * \param[in,out] search_state      Struct keep track of the prediction mode
5616
 *                                  search state in interframe.
5617
 *
5618
 * \param[in]     cpi               Top-level encoder structure.
5619
 * \param[in,out] x                 Pointer to struct holding all the data for
5620
 *                                  the current prediction block.
5621
 * \param[out]    rd_cost           Stores the best rd_cost among all the
5622
 *                                  prediction modes searched.
5623
 * \param[in]     bsize             Current block size.
5624
 * \param[in,out] ctx               Structure to hold the number of 4x4 blks to
5625
 *                                  copy the tx_type and txfm_skip arrays.
5626
 *                                  for only the Y plane.
5627
 * \param[in]     sf_args           Stores the list of intra mode candidates
5628
 *                                  to be searched.
5629
 * \param[in]     intra_ref_frame_cost  The entropy cost for signaling that the
5630
 *                                      current ref frame is an intra frame.
5631
 * \param[in]     yrd_threshold     The rdcost threshold for luma intra mode to
5632
 *                                  terminate chroma intra mode search.
5633
 *
5634
 * \remark If a new best mode is found, search_state and rd_costs are updated
5635
 * correspondingly. While x is also modified, it is only used as a temporary
5636
 * buffer, and the final decisions are stored in search_state.
5637
 */
5638
static inline void search_intra_modes_in_interframe(
5639
    InterModeSearchState *search_state, const AV1_COMP *cpi, MACROBLOCK *x,
5640
    RD_STATS *rd_cost, BLOCK_SIZE bsize, PICK_MODE_CONTEXT *ctx,
5641
    const InterModeSFArgs *sf_args, unsigned int intra_ref_frame_cost,
5642
0
    int64_t yrd_threshold) {
5643
0
  const AV1_COMMON *const cm = &cpi->common;
5644
0
  const SPEED_FEATURES *const sf = &cpi->sf;
5645
0
  const IntraModeCfg *const intra_mode_cfg = &cpi->oxcf.intra_mode_cfg;
5646
0
  MACROBLOCKD *const xd = &x->e_mbd;
5647
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
5648
0
  IntraModeSearchState *intra_search_state = &search_state->intra_search_state;
5649
5650
0
  int is_best_y_mode_intra = 0;
5651
0
  RD_STATS best_intra_rd_stats_y;
5652
0
  int64_t best_rd_y = INT64_MAX;
5653
0
  int best_mode_cost_y = -1;
5654
0
  MB_MODE_INFO best_mbmi = *xd->mi[0];
5655
0
  THR_MODES best_mode_enum = THR_INVALID;
5656
0
  uint8_t best_tx_type_map[MAX_MIB_SIZE * MAX_MIB_SIZE];
5657
0
  const int num_4x4 = bsize_to_num_blk(bsize);
5658
5659
  // Performs luma search
5660
0
  int64_t best_model_rd = INT64_MAX;
5661
0
  int64_t top_intra_model_rd[TOP_INTRA_MODEL_COUNT];
5662
0
  for (int i = 0; i < TOP_INTRA_MODEL_COUNT; i++) {
5663
0
    top_intra_model_rd[i] = INT64_MAX;
5664
0
  }
5665
5666
0
  if (cpi->oxcf.algo_cfg.sharpness) {
5667
0
    int bh = mi_size_high[bsize];
5668
0
    int bw = mi_size_wide[bsize];
5669
0
    if (bh > 4 || bw > 4) return;
5670
0
  }
5671
5672
0
  mbmi->skip_txfm = 0;
5673
5674
0
  for (int mode_idx = 0; mode_idx < LUMA_MODE_COUNT; ++mode_idx) {
5675
0
    if (sf->intra_sf.skip_intra_in_interframe &&
5676
0
        search_state->intra_search_state.skip_intra_modes)
5677
0
      break;
5678
0
    set_y_mode_and_delta_angle(
5679
0
        mode_idx, mbmi, sf->intra_sf.prune_luma_odd_delta_angles_in_intra);
5680
0
    assert(mbmi->mode < INTRA_MODE_END);
5681
5682
    // Use intra_y_mode_mask speed feature to skip intra mode evaluation.
5683
0
    if (sf_args->mode_skip_mask->pred_modes[INTRA_FRAME] & (1 << mbmi->mode))
5684
0
      continue;
5685
5686
0
    const THR_MODES mode_enum =
5687
0
        get_prediction_mode_idx(mbmi->mode, INTRA_FRAME, NONE_FRAME);
5688
0
    if ((!intra_mode_cfg->enable_smooth_intra ||
5689
0
         cpi->sf.intra_sf.disable_smooth_intra) &&
5690
0
        (mbmi->mode == SMOOTH_PRED || mbmi->mode == SMOOTH_H_PRED ||
5691
0
         mbmi->mode == SMOOTH_V_PRED))
5692
0
      continue;
5693
0
    if (!intra_mode_cfg->enable_paeth_intra && mbmi->mode == PAETH_PRED)
5694
0
      continue;
5695
0
    if (av1_is_directional_mode(mbmi->mode) &&
5696
0
        !(av1_use_angle_delta(bsize) && intra_mode_cfg->enable_angle_delta) &&
5697
0
        mbmi->angle_delta[PLANE_TYPE_Y] != 0)
5698
0
      continue;
5699
0
    const PREDICTION_MODE this_mode = mbmi->mode;
5700
5701
0
    assert(av1_mode_defs[mode_enum].ref_frame[0] == INTRA_FRAME);
5702
0
    assert(av1_mode_defs[mode_enum].ref_frame[1] == NONE_FRAME);
5703
0
    init_mbmi(mbmi, this_mode, av1_mode_defs[mode_enum].ref_frame, cm);
5704
0
    x->txfm_search_info.skip_txfm = 0;
5705
5706
0
    if (this_mode != DC_PRED) {
5707
      // Only search the oblique modes if the best so far is
5708
      // one of the neighboring directional modes
5709
0
      if ((sf->rt_sf.mode_search_skip_flags & FLAG_SKIP_INTRA_BESTINTER) &&
5710
0
          (this_mode >= D45_PRED && this_mode <= PAETH_PRED)) {
5711
0
        if (search_state->best_mode_index != THR_INVALID &&
5712
0
            search_state->best_mbmode.ref_frame[0] > INTRA_FRAME)
5713
0
          continue;
5714
0
      }
5715
0
      if (sf->rt_sf.mode_search_skip_flags & FLAG_SKIP_INTRA_DIRMISMATCH) {
5716
0
        if (conditional_skipintra(
5717
0
                this_mode, search_state->intra_search_state.best_intra_mode))
5718
0
          continue;
5719
0
      }
5720
0
    }
5721
5722
0
    RD_STATS intra_rd_stats_y;
5723
0
    int mode_cost_y;
5724
0
    int64_t intra_rd_y = INT64_MAX;
5725
0
    const int is_luma_result_valid = av1_handle_intra_y_mode(
5726
0
        intra_search_state, cpi, x, bsize, intra_ref_frame_cost, ctx,
5727
0
        &intra_rd_stats_y, search_state->best_rd, &mode_cost_y, &intra_rd_y,
5728
0
        &best_model_rd, top_intra_model_rd);
5729
5730
0
    if (intra_rd_y < INT64_MAX) {
5731
0
      adjust_cost(cpi, x, &intra_rd_y, /*is_inter_pred=*/false);
5732
0
    }
5733
5734
0
    if (is_luma_result_valid && intra_rd_y < yrd_threshold) {
5735
0
      is_best_y_mode_intra = 1;
5736
0
      if (intra_rd_y < best_rd_y) {
5737
0
        best_intra_rd_stats_y = intra_rd_stats_y;
5738
0
        best_mode_cost_y = mode_cost_y;
5739
0
        best_rd_y = intra_rd_y;
5740
0
        best_mbmi = *mbmi;
5741
0
        best_mode_enum = mode_enum;
5742
0
        av1_copy_array(best_tx_type_map, xd->tx_type_map, num_4x4);
5743
0
      }
5744
0
    }
5745
0
  }
5746
5747
0
  if (!is_best_y_mode_intra) {
5748
0
    return;
5749
0
  }
5750
5751
0
  assert(best_rd_y < INT64_MAX);
5752
5753
  // Restores the best luma mode
5754
0
  *mbmi = best_mbmi;
5755
0
  av1_copy_array(xd->tx_type_map, best_tx_type_map, num_4x4);
5756
5757
  // Performs chroma search
5758
0
  RD_STATS intra_rd_stats, intra_rd_stats_uv;
5759
0
  av1_init_rd_stats(&intra_rd_stats);
5760
0
  av1_init_rd_stats(&intra_rd_stats_uv);
5761
0
  const int num_planes = av1_num_planes(cm);
5762
0
  if (num_planes > 1) {
5763
0
    const int intra_uv_mode_valid = av1_search_intra_uv_modes_in_interframe(
5764
0
        intra_search_state, cpi, x, bsize, &intra_rd_stats,
5765
0
        &best_intra_rd_stats_y, &intra_rd_stats_uv, search_state->best_rd);
5766
5767
0
    if (!intra_uv_mode_valid) {
5768
0
      return;
5769
0
    }
5770
0
  }
5771
5772
  // Merge the luma and chroma rd stats
5773
0
  assert(best_mode_cost_y >= 0);
5774
0
  intra_rd_stats.rate = best_intra_rd_stats_y.rate + best_mode_cost_y;
5775
0
  if (!xd->lossless[mbmi->segment_id] && block_signals_txsize(bsize)) {
5776
    // av1_pick_uniform_tx_size_type_yrd above includes the cost of the tx_size
5777
    // in the tokenonly rate, but for intra blocks, tx_size is always coded
5778
    // (prediction granularity), so we account for it in the full rate,
5779
    // not the tokenonly rate.
5780
0
    best_intra_rd_stats_y.rate -= tx_size_cost(x, bsize, mbmi->tx_size);
5781
0
  }
5782
5783
0
  const ModeCosts *mode_costs = &x->mode_costs;
5784
0
  const PREDICTION_MODE mode = mbmi->mode;
5785
0
  if (num_planes > 1 && xd->is_chroma_ref) {
5786
0
    const int uv_mode_cost =
5787
0
        mode_costs->intra_uv_mode_cost[is_cfl_allowed(xd)][mode][mbmi->uv_mode];
5788
0
    intra_rd_stats.rate +=
5789
0
        intra_rd_stats_uv.rate +
5790
0
        intra_mode_info_cost_uv(cpi, x, mbmi, bsize, uv_mode_cost);
5791
0
  }
5792
5793
  // Intra block is always coded as non-skip
5794
0
  intra_rd_stats.skip_txfm = 0;
5795
0
  intra_rd_stats.dist = best_intra_rd_stats_y.dist + intra_rd_stats_uv.dist;
5796
  // Add in the cost of the no skip flag.
5797
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
5798
0
  intra_rd_stats.rate += mode_costs->skip_txfm_cost[skip_ctx][0];
5799
  // Calculate the final RD estimate for this mode.
5800
0
  const int64_t this_rd =
5801
0
      RDCOST(x->rdmult, intra_rd_stats.rate, intra_rd_stats.dist);
5802
  // Keep record of best intra rd
5803
0
  if (this_rd < search_state->best_intra_rd) {
5804
0
    search_state->best_intra_rd = this_rd;
5805
0
    intra_search_state->best_intra_mode = mode;
5806
0
  }
5807
5808
0
  for (int i = 0; i < REFERENCE_MODES; ++i) {
5809
0
    search_state->best_pred_rd[i] =
5810
0
        AOMMIN(search_state->best_pred_rd[i], this_rd);
5811
0
  }
5812
5813
0
  intra_rd_stats.rdcost = this_rd;
5814
5815
0
  adjust_rdcost(cpi, x, &intra_rd_stats, /*is_inter_pred=*/false);
5816
5817
  // Collect mode stats for multiwinner mode processing
5818
0
  const int txfm_search_done = 1;
5819
0
  store_winner_mode_stats(
5820
0
      cpi, x, mbmi, &intra_rd_stats, &best_intra_rd_stats_y, &intra_rd_stats_uv,
5821
0
      best_mode_enum, NULL, bsize, intra_rd_stats.rdcost,
5822
0
      cpi->sf.winner_mode_sf.multi_winner_mode_type, txfm_search_done);
5823
0
  if (intra_rd_stats.rdcost < search_state->best_rd) {
5824
0
    update_search_state(cpi, search_state, rd_cost, ctx, &intra_rd_stats,
5825
0
                        &best_intra_rd_stats_y, &intra_rd_stats_uv,
5826
0
                        best_mode_enum, x, txfm_search_done);
5827
0
  }
5828
0
}
5829
5830
// Initialize the table that stores best RD Costs of transform no-split.
5831
static inline void init_top_tx_no_split_rd_for_inter_modes(
5832
0
    MACROBLOCK *x, int prune_inter_tx_split_rd_eval_lvl) {
5833
0
  if (!prune_inter_tx_split_rd_eval_lvl) return;
5834
5835
0
  for (int i = 0; i < MAX_TX_BLOCKS_IN_MAX_SB; i++) {
5836
0
    for (int j = 0; j < TOP_INTER_TX_NO_SPLIT_COUNT; j++) {
5837
0
      x->top_inter_tx_no_split_rd[i][j] = INT64_MAX;
5838
0
    }
5839
0
  }
5840
0
}
5841
5842
#if !CONFIG_REALTIME_ONLY
5843
// Prepare inter_cost and intra_cost from TPL stats, which are used as ML
5844
// features in intra mode pruning.
5845
static inline void calculate_cost_from_tpl_data(const AV1_COMP *cpi,
5846
                                                MACROBLOCK *x, BLOCK_SIZE bsize,
5847
                                                int mi_row, int mi_col,
5848
                                                int64_t *inter_cost,
5849
0
                                                int64_t *intra_cost) {
5850
0
  const AV1_COMMON *const cm = &cpi->common;
5851
  // Only consider full SB.
5852
0
  const BLOCK_SIZE sb_size = cm->seq_params->sb_size;
5853
0
  const int tpl_bsize_1d = cpi->ppi->tpl_data.tpl_bsize_1d;
5854
0
  const int len = (block_size_wide[sb_size] / tpl_bsize_1d) *
5855
0
                  (block_size_high[sb_size] / tpl_bsize_1d);
5856
0
  SuperBlockEnc *sb_enc = &x->sb_enc;
5857
0
  if (sb_enc->tpl_data_count == len) {
5858
0
    const BLOCK_SIZE tpl_bsize = convert_length_to_bsize(tpl_bsize_1d);
5859
0
    const int tpl_stride = sb_enc->tpl_stride;
5860
0
    const int tplw = mi_size_wide[tpl_bsize];
5861
0
    const int tplh = mi_size_high[tpl_bsize];
5862
0
    const int nw = mi_size_wide[bsize] / tplw;
5863
0
    const int nh = mi_size_high[bsize] / tplh;
5864
0
    if (nw >= 1 && nh >= 1) {
5865
0
      const int of_h = mi_row % mi_size_high[sb_size];
5866
0
      const int of_w = mi_col % mi_size_wide[sb_size];
5867
0
      const int start = of_h / tplh * tpl_stride + of_w / tplw;
5868
5869
0
      for (int k = 0; k < nh; k++) {
5870
0
        for (int l = 0; l < nw; l++) {
5871
0
          *inter_cost += sb_enc->tpl_inter_cost[start + k * tpl_stride + l];
5872
0
          *intra_cost += sb_enc->tpl_intra_cost[start + k * tpl_stride + l];
5873
0
        }
5874
0
      }
5875
0
      *inter_cost /= nw * nh;
5876
0
      *intra_cost /= nw * nh;
5877
0
    }
5878
0
  }
5879
0
}
5880
#endif  // !CONFIG_REALTIME_ONLY
5881
5882
// When the speed feature skip_intra_in_interframe > 0, enable ML model to prune
5883
// intra mode search.
5884
static inline void skip_intra_modes_in_interframe(
5885
    AV1_COMMON *const cm, struct macroblock *x, BLOCK_SIZE bsize,
5886
    InterModeSearchState *search_state, const SPEED_FEATURES *const sf,
5887
0
    int64_t inter_cost, int64_t intra_cost) {
5888
0
  MACROBLOCKD *const xd = &x->e_mbd;
5889
0
  const int comp_pred = search_state->best_mbmode.ref_frame[1] > INTRA_FRAME;
5890
0
  if (sf->rt_sf.prune_intra_mode_based_on_mv_range &&
5891
0
      bsize > sf->part_sf.max_intra_bsize && !comp_pred) {
5892
0
    const MV best_mv = search_state->best_mbmode.mv[0].as_mv;
5893
0
    const int mv_thresh = 16 << sf->rt_sf.prune_intra_mode_based_on_mv_range;
5894
0
    if (abs(best_mv.row) < mv_thresh && abs(best_mv.col) < mv_thresh &&
5895
0
        x->source_variance > 128) {
5896
0
      search_state->intra_search_state.skip_intra_modes = 1;
5897
0
      return;
5898
0
    }
5899
0
  }
5900
5901
0
  const unsigned int src_var_thresh_intra_skip = 1;
5902
0
  const int skip_intra_in_interframe = sf->intra_sf.skip_intra_in_interframe;
5903
0
  if (!(skip_intra_in_interframe &&
5904
0
        (x->source_variance > src_var_thresh_intra_skip)))
5905
0
    return;
5906
5907
  // Prune intra search based on best inter mode being transfrom skip.
5908
0
  if ((skip_intra_in_interframe >= 2) && search_state->best_mbmode.skip_txfm) {
5909
0
    const int qindex_thresh[2] = { 200, MAXQ };
5910
0
    const int ind = (skip_intra_in_interframe >= 3) ? 1 : 0;
5911
0
    if (!have_newmv_in_inter_mode(search_state->best_mbmode.mode) &&
5912
0
        (x->qindex <= qindex_thresh[ind])) {
5913
0
      search_state->intra_search_state.skip_intra_modes = 1;
5914
0
      return;
5915
0
    } else if ((skip_intra_in_interframe >= 4) &&
5916
0
               (inter_cost < 0 || intra_cost < 0)) {
5917
0
      search_state->intra_search_state.skip_intra_modes = 1;
5918
0
      return;
5919
0
    }
5920
0
  }
5921
  // Use ML model to prune intra search.
5922
0
  if (inter_cost >= 0 && intra_cost >= 0) {
5923
0
    const NN_CONFIG *nn_config = (AOMMIN(cm->width, cm->height) <= 480)
5924
0
                                     ? &av1_intrap_nn_config
5925
0
                                     : &av1_intrap_hd_nn_config;
5926
0
    float nn_features[6];
5927
0
    float scores[2] = { 0.0f };
5928
5929
0
    nn_features[0] = (float)search_state->best_mbmode.skip_txfm;
5930
0
    nn_features[1] = (float)mi_size_wide_log2[bsize];
5931
0
    nn_features[2] = (float)mi_size_high_log2[bsize];
5932
0
    nn_features[3] = (float)intra_cost;
5933
0
    nn_features[4] = (float)inter_cost;
5934
0
    const int ac_q = av1_ac_quant_QTX(x->qindex, 0, xd->bd);
5935
0
    const int ac_q_max = av1_ac_quant_QTX(255, 0, xd->bd);
5936
0
    nn_features[5] = (float)(ac_q_max / ac_q);
5937
5938
0
    av1_nn_predict(nn_features, nn_config, 1, scores);
5939
5940
    // For two parameters, the max prob returned from av1_nn_softmax equals
5941
    // 1.0 / (1.0 + e^(-|diff_score|)). Here use scores directly to avoid the
5942
    // calling of av1_nn_softmax.
5943
0
    const float thresh[5] = { 1.4f, 1.4f, 1.4f, 1.4f, 1.4f };
5944
0
    assert(skip_intra_in_interframe <= 5);
5945
0
    if (scores[1] > scores[0] + thresh[skip_intra_in_interframe - 1]) {
5946
0
      search_state->intra_search_state.skip_intra_modes = 1;
5947
0
    }
5948
0
  }
5949
0
}
5950
5951
static inline bool skip_interp_filter_search(const AV1_COMP *cpi,
5952
0
                                             int is_single_pred) {
5953
0
  const MODE encoding_mode = cpi->oxcf.mode;
5954
0
  if (encoding_mode == REALTIME) {
5955
0
    return (cpi->common.current_frame.reference_mode == SINGLE_REFERENCE &&
5956
0
            (cpi->sf.interp_sf.skip_interp_filter_search ||
5957
0
             cpi->sf.winner_mode_sf.winner_mode_ifs));
5958
0
  } else if (encoding_mode == GOOD) {
5959
    // Skip interpolation filter search for single prediction modes.
5960
0
    return (cpi->sf.interp_sf.skip_interp_filter_search && is_single_pred);
5961
0
  }
5962
0
  return false;
5963
0
}
5964
5965
static inline int get_block_temp_var(const AV1_COMP *cpi, const MACROBLOCK *x,
5966
0
                                     BLOCK_SIZE bsize) {
5967
0
  const AV1_COMMON *const cm = &cpi->common;
5968
0
  const SPEED_FEATURES *const sf = &cpi->sf;
5969
5970
0
  if (sf->part_sf.partition_search_type != VAR_BASED_PARTITION ||
5971
0
      !sf->rt_sf.short_circuit_low_temp_var ||
5972
0
      !sf->rt_sf.prune_inter_modes_using_temp_var) {
5973
0
    return 0;
5974
0
  }
5975
5976
0
  const int mi_row = x->e_mbd.mi_row;
5977
0
  const int mi_col = x->e_mbd.mi_col;
5978
0
  int is_low_temp_var = 0;
5979
5980
0
  if (cm->seq_params->sb_size == BLOCK_64X64)
5981
0
    is_low_temp_var = av1_get_force_skip_low_temp_var_small_sb(
5982
0
        &x->part_search_info.variance_low[0], mi_row, mi_col, bsize);
5983
0
  else
5984
0
    is_low_temp_var = av1_get_force_skip_low_temp_var(
5985
0
        &x->part_search_info.variance_low[0], mi_row, mi_col, bsize);
5986
5987
0
  return is_low_temp_var;
5988
0
}
5989
5990
// TODO(chiyotsai@google.com): See the todo for av1_rd_pick_intra_mode_sb.
5991
void av1_rd_pick_inter_mode(struct AV1_COMP *cpi, struct TileDataEnc *tile_data,
5992
                            struct macroblock *x, struct RD_STATS *rd_cost,
5993
                            BLOCK_SIZE bsize, PICK_MODE_CONTEXT *ctx,
5994
0
                            int64_t best_rd_so_far) {
5995
0
  AV1_COMMON *const cm = &cpi->common;
5996
0
  const FeatureFlags *const features = &cm->features;
5997
0
  const int num_planes = av1_num_planes(cm);
5998
0
  const SPEED_FEATURES *const sf = &cpi->sf;
5999
0
  MACROBLOCKD *const xd = &x->e_mbd;
6000
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
6001
0
  TxfmSearchInfo *txfm_info = &x->txfm_search_info;
6002
0
  int i;
6003
0
  const ModeCosts *mode_costs = &x->mode_costs;
6004
0
  const int *comp_inter_cost =
6005
0
      mode_costs->comp_inter_cost[av1_get_reference_mode_context(xd)];
6006
6007
0
  InterModeSearchState search_state;
6008
0
  init_inter_mode_search_state(&search_state, cpi, x, bsize, best_rd_so_far);
6009
0
  INTERINTRA_MODE interintra_modes[REF_FRAMES] = {
6010
0
    INTERINTRA_MODES, INTERINTRA_MODES, INTERINTRA_MODES, INTERINTRA_MODES,
6011
0
    INTERINTRA_MODES, INTERINTRA_MODES, INTERINTRA_MODES, INTERINTRA_MODES
6012
0
  };
6013
6014
0
  init_top_tx_no_split_rd_for_inter_modes(
6015
0
      x, sf->tx_sf.prune_inter_tx_split_rd_eval_lvl);
6016
6017
0
  HandleInterModeArgs args = { { NULL },
6018
0
                               { MAX_SB_SIZE, MAX_SB_SIZE, MAX_SB_SIZE },
6019
0
                               { NULL },
6020
0
                               { MAX_SB_SIZE >> 1, MAX_SB_SIZE >> 1,
6021
0
                                 MAX_SB_SIZE >> 1 },
6022
0
                               NULL,
6023
0
                               NULL,
6024
0
                               NULL,
6025
0
                               search_state.modelled_rd,
6026
0
                               INT_MAX,
6027
0
                               INT_MAX,
6028
0
                               search_state.simple_rd,
6029
0
                               0,
6030
0
                               false,
6031
0
                               interintra_modes,
6032
0
                               { { { 0 }, { { 0 } }, { 0 }, 0, 0, 0, 0 } },
6033
0
                               { { 0, 0 } },
6034
0
                               { 0 },
6035
0
                               0,
6036
0
                               0,
6037
0
                               -1,
6038
0
                               -1,
6039
0
                               -1,
6040
0
                               { 0 },
6041
0
                               { 0 },
6042
0
                               UINT_MAX };
6043
  // Currently, is_low_temp_var is used in real time encoding.
6044
0
  const int is_low_temp_var = get_block_temp_var(cpi, x, bsize);
6045
6046
0
  for (i = 0; i < MODE_CTX_REF_FRAMES; ++i) args.cmp_mode[i] = -1;
6047
  // Indicates the appropriate number of simple translation winner modes for
6048
  // exhaustive motion mode evaluation
6049
0
  const int max_winner_motion_mode_cand =
6050
0
      num_winner_motion_modes[sf->winner_mode_sf.motion_mode_for_winner_cand];
6051
0
  assert(max_winner_motion_mode_cand <= MAX_WINNER_MOTION_MODES);
6052
0
  motion_mode_candidate motion_mode_cand;
6053
0
  motion_mode_best_st_candidate best_motion_mode_cands;
6054
  // Initializing the number of motion mode candidates to zero.
6055
0
  best_motion_mode_cands.num_motion_mode_cand = 0;
6056
0
  for (i = 0; i < MAX_WINNER_MOTION_MODES; ++i)
6057
0
    best_motion_mode_cands.motion_mode_cand[i].rd_cost = INT64_MAX;
6058
6059
0
  for (i = 0; i < REF_FRAMES; ++i) x->pred_sse[i] = INT_MAX;
6060
6061
0
  av1_invalid_rd_stats(rd_cost);
6062
6063
0
  for (i = 0; i < REF_FRAMES; ++i) {
6064
0
    x->warp_sample_info[i].num = -1;
6065
0
  }
6066
6067
  // Ref frames that are selected by square partition blocks.
6068
0
  int picked_ref_frames_mask = 0;
6069
0
  if (sf->inter_sf.prune_ref_frame_for_rect_partitions &&
6070
0
      mbmi->partition != PARTITION_NONE) {
6071
    // prune_ref_frame_for_rect_partitions = 1 implies prune only extended
6072
    // partition blocks. prune_ref_frame_for_rect_partitions >=2
6073
    // implies prune for vert, horiz and extended partition blocks.
6074
0
    if ((mbmi->partition != PARTITION_VERT &&
6075
0
         mbmi->partition != PARTITION_HORZ) ||
6076
0
        sf->inter_sf.prune_ref_frame_for_rect_partitions >= 2) {
6077
0
      picked_ref_frames_mask =
6078
0
          fetch_picked_ref_frames_mask(x, bsize, cm->seq_params->mib_size);
6079
0
    }
6080
0
  }
6081
6082
#if CONFIG_COLLECT_COMPONENT_TIMING
6083
  start_timing(cpi, set_params_rd_pick_inter_mode_time);
6084
#endif
6085
  // Skip ref frames that never selected by square blocks.
6086
0
  const int skip_ref_frame_mask =
6087
0
      picked_ref_frames_mask ? ~picked_ref_frames_mask : 0;
6088
0
  mode_skip_mask_t mode_skip_mask;
6089
0
  unsigned int ref_costs_single[REF_FRAMES];
6090
0
  unsigned int ref_costs_comp[REF_FRAMES][REF_FRAMES];
6091
0
  struct buf_2d yv12_mb[REF_FRAMES][MAX_MB_PLANE];
6092
  // init params, set frame modes, speed features
6093
0
  set_params_rd_pick_inter_mode(cpi, x, &args, bsize, &mode_skip_mask,
6094
0
                                skip_ref_frame_mask, ref_costs_single,
6095
0
                                ref_costs_comp, yv12_mb);
6096
#if CONFIG_COLLECT_COMPONENT_TIMING
6097
  end_timing(cpi, set_params_rd_pick_inter_mode_time);
6098
#endif
6099
6100
0
  int64_t best_est_rd = INT64_MAX;
6101
0
  const InterModeRdModel *md = &tile_data->inter_mode_rd_models[bsize];
6102
  // If do_tx_search is 0, only estimated RD should be computed.
6103
  // If do_tx_search is 1, all modes have TX search performed.
6104
0
  const int do_tx_search =
6105
0
      !((sf->inter_sf.inter_mode_rd_model_estimation == 1 && md->ready) ||
6106
0
        (sf->inter_sf.inter_mode_rd_model_estimation == 2 &&
6107
0
         num_pels_log2_lookup[bsize] > 8));
6108
0
  InterModesInfo *inter_modes_info = x->inter_modes_info;
6109
0
  inter_modes_info->num = 0;
6110
6111
  // Temporary buffers used by handle_inter_mode().
6112
0
  uint8_t *const tmp_buf = get_buf_by_bd(xd, x->tmp_pred_bufs[0]);
6113
6114
  // The best RD found for the reference frame, among single reference modes.
6115
  // Note that the 0-th element will contain a cut-off that is later used
6116
  // to determine if we should skip a compound mode.
6117
0
  int64_t ref_frame_rd[REF_FRAMES] = { INT64_MAX, INT64_MAX, INT64_MAX,
6118
0
                                       INT64_MAX, INT64_MAX, INT64_MAX,
6119
0
                                       INT64_MAX, INT64_MAX };
6120
6121
  // Prepared stats used later to check if we could skip intra mode eval.
6122
0
  int64_t inter_cost = -1;
6123
0
  int64_t intra_cost = -1;
6124
  // Need to tweak the threshold for hdres speed 0 & 1.
6125
0
  const int mi_row = xd->mi_row;
6126
0
  const int mi_col = xd->mi_col;
6127
6128
  // Obtain the relevant tpl stats for pruning inter modes
6129
0
  PruneInfoFromTpl inter_cost_info_from_tpl;
6130
0
#if !CONFIG_REALTIME_ONLY
6131
0
  if (sf->inter_sf.prune_inter_modes_based_on_tpl) {
6132
    // x->tpl_keep_ref_frame[id] = 1 => no pruning in
6133
    // prune_ref_by_selective_ref_frame()
6134
    // x->tpl_keep_ref_frame[id] = 0  => ref frame can be pruned in
6135
    // prune_ref_by_selective_ref_frame()
6136
    // Populating valid_refs[idx] = 1 ensures that
6137
    // 'inter_cost_info_from_tpl.best_inter_cost' does not correspond to a
6138
    // pruned ref frame.
6139
0
    int valid_refs[INTER_REFS_PER_FRAME];
6140
0
    for (MV_REFERENCE_FRAME frame = LAST_FRAME; frame < REF_FRAMES; frame++) {
6141
0
      const MV_REFERENCE_FRAME refs[2] = { frame, NONE_FRAME };
6142
0
      valid_refs[frame - 1] =
6143
0
          x->tpl_keep_ref_frame[frame] ||
6144
0
          !prune_ref_by_selective_ref_frame(
6145
0
              cpi, x, refs, cm->cur_frame->ref_display_order_hint);
6146
0
    }
6147
0
    av1_zero(inter_cost_info_from_tpl);
6148
0
    get_block_level_tpl_stats(cpi, bsize, mi_row, mi_col, valid_refs,
6149
0
                              &inter_cost_info_from_tpl);
6150
0
  }
6151
6152
0
  const int do_pruning =
6153
0
      (AOMMIN(cm->width, cm->height) > 480 && cpi->speed <= 1) ? 0 : 1;
6154
0
  if (do_pruning && sf->intra_sf.skip_intra_in_interframe &&
6155
0
      cpi->oxcf.algo_cfg.enable_tpl_model)
6156
0
    calculate_cost_from_tpl_data(cpi, x, bsize, mi_row, mi_col, &inter_cost,
6157
0
                                 &intra_cost);
6158
0
#endif  // !CONFIG_REALTIME_ONLY
6159
6160
  // Initialize best mode stats for winner mode processing.
6161
0
  const int max_winner_mode_count =
6162
0
      winner_mode_count_allowed[sf->winner_mode_sf.multi_winner_mode_type];
6163
0
  zero_winner_mode_stats(bsize, max_winner_mode_count, x->winner_mode_stats);
6164
0
  x->winner_mode_count = 0;
6165
0
  store_winner_mode_stats(cpi, x, mbmi, NULL, NULL, NULL, THR_INVALID, NULL,
6166
0
                          bsize, best_rd_so_far,
6167
0
                          sf->winner_mode_sf.multi_winner_mode_type, 0);
6168
6169
0
  int mode_thresh_mul_fact = (1 << MODE_THRESH_QBITS);
6170
0
  if (sf->inter_sf.prune_inter_modes_if_skippable) {
6171
    // Higher multiplication factor values for lower quantizers.
6172
0
    mode_thresh_mul_fact = mode_threshold_mul_factor[x->qindex];
6173
0
  }
6174
6175
  // Initialize arguments for mode loop speed features
6176
0
  InterModeSFArgs sf_args = { &args.skip_motion_mode,
6177
0
                              &mode_skip_mask,
6178
0
                              &search_state,
6179
0
                              skip_ref_frame_mask,
6180
0
                              0,
6181
0
                              mode_thresh_mul_fact,
6182
0
                              0,
6183
0
                              0 };
6184
0
  int64_t best_inter_yrd = INT64_MAX;
6185
6186
  // This is the main loop of this function. It loops over all possible inter
6187
  // modes and calls handle_inter_mode() to compute the RD for each.
6188
  // Here midx is just an iterator index that should not be used by itself
6189
  // except to keep track of the number of modes searched. It should be used
6190
  // with av1_default_mode_order to get the enum that defines the mode, which
6191
  // can be used with av1_mode_defs to get the prediction mode and the ref
6192
  // frames.
6193
  // TODO(yunqing, any): Setting mode_start and mode_end outside for-loop brings
6194
  // good speedup for real time case. If we decide to use compound mode in real
6195
  // time, maybe we can modify av1_default_mode_order table.
6196
0
  THR_MODES mode_start = THR_INTER_MODE_START;
6197
0
  THR_MODES mode_end = THR_INTER_MODE_END;
6198
0
  const CurrentFrame *const current_frame = &cm->current_frame;
6199
0
  if (current_frame->reference_mode == SINGLE_REFERENCE) {
6200
0
    mode_start = SINGLE_REF_MODE_START;
6201
0
    mode_end = SINGLE_REF_MODE_END;
6202
0
  }
6203
0
  init_comp_avg_est_rd(x, sf->inter_sf.skip_cmp_using_top_cmp_avg_est_rd_lvl);
6204
0
  for (THR_MODES midx = mode_start; midx < mode_end; ++midx) {
6205
    // Get the actual prediction mode we are trying in this iteration
6206
0
    const THR_MODES mode_enum = av1_default_mode_order[midx];
6207
0
    const MODE_DEFINITION *mode_def = &av1_mode_defs[mode_enum];
6208
0
    const PREDICTION_MODE this_mode = mode_def->mode;
6209
0
    const MV_REFERENCE_FRAME *ref_frames = mode_def->ref_frame;
6210
6211
0
    const MV_REFERENCE_FRAME ref_frame = ref_frames[0];
6212
0
    const MV_REFERENCE_FRAME second_ref_frame = ref_frames[1];
6213
0
    const int is_single_pred =
6214
0
        ref_frame > INTRA_FRAME && second_ref_frame == NONE_FRAME;
6215
0
    const int comp_pred = second_ref_frame > INTRA_FRAME;
6216
6217
0
    txfm_info->skip_txfm = 0;
6218
0
    sf_args.num_single_modes_processed += is_single_pred;
6219
#if CONFIG_COLLECT_COMPONENT_TIMING
6220
    start_timing(cpi, skip_inter_mode_time);
6221
#endif
6222
    // Apply speed features to decide if this inter mode can be skipped
6223
0
    const int is_skip_inter_mode = skip_inter_mode(
6224
0
        cpi, x, bsize, ref_frame_rd, midx, &sf_args, is_low_temp_var);
6225
#if CONFIG_COLLECT_COMPONENT_TIMING
6226
    end_timing(cpi, skip_inter_mode_time);
6227
#endif
6228
0
    if (is_skip_inter_mode) continue;
6229
6230
0
    init_mbmi(mbmi, this_mode, ref_frames, cm);
6231
0
    set_ref_ptrs(cm, xd, ref_frame, second_ref_frame);
6232
6233
    // Select prediction reference frames.
6234
0
    for (i = 0; i < num_planes; i++) {
6235
0
      xd->plane[i].pre[0] = yv12_mb[ref_frame][i];
6236
0
      if (comp_pred) xd->plane[i].pre[1] = yv12_mb[second_ref_frame][i];
6237
0
    }
6238
6239
0
    mbmi->angle_delta[PLANE_TYPE_Y] = 0;
6240
0
    mbmi->angle_delta[PLANE_TYPE_UV] = 0;
6241
0
    mbmi->filter_intra_mode_info.use_filter_intra = 0;
6242
0
    mbmi->ref_mv_idx = 0;
6243
6244
0
    const int64_t ref_best_rd = search_state.best_rd;
6245
0
    RD_STATS rd_stats, rd_stats_y, rd_stats_uv;
6246
0
    av1_init_rd_stats(&rd_stats);
6247
6248
0
    const int ref_frame_cost = comp_pred
6249
0
                                   ? ref_costs_comp[ref_frame][second_ref_frame]
6250
0
                                   : ref_costs_single[ref_frame];
6251
0
    const int compmode_cost =
6252
0
        is_comp_ref_allowed(mbmi->bsize) ? comp_inter_cost[comp_pred] : 0;
6253
0
    const int real_compmode_cost =
6254
0
        cm->current_frame.reference_mode == REFERENCE_MODE_SELECT
6255
0
            ? compmode_cost
6256
0
            : 0;
6257
    // Point to variables that are maintained between loop iterations
6258
0
    args.single_newmv = search_state.single_newmv;
6259
0
    args.single_newmv_rate = search_state.single_newmv_rate;
6260
0
    args.single_newmv_valid = search_state.single_newmv_valid;
6261
0
    args.single_comp_cost = real_compmode_cost;
6262
0
    args.ref_frame_cost = ref_frame_cost;
6263
0
    args.best_pred_sse = search_state.best_pred_sse;
6264
0
    args.skip_ifs = skip_interp_filter_search(cpi, is_single_pred);
6265
0
    int64_t skip_rd[2] = { search_state.best_skip_rd[0],
6266
0
                           search_state.best_skip_rd[1] };
6267
0
    int64_t this_yrd = INT64_MAX;
6268
#if CONFIG_COLLECT_COMPONENT_TIMING
6269
    start_timing(cpi, handle_inter_mode_time);
6270
#endif
6271
0
    int64_t this_rd = handle_inter_mode(
6272
0
        cpi, tile_data, x, bsize, &rd_stats, &rd_stats_y, &rd_stats_uv, &args,
6273
0
        ref_best_rd, tmp_buf, &x->comp_rd_buffer, &best_est_rd, do_tx_search,
6274
0
        inter_modes_info, &motion_mode_cand, skip_rd, &inter_cost_info_from_tpl,
6275
0
        &this_yrd);
6276
#if CONFIG_COLLECT_COMPONENT_TIMING
6277
    end_timing(cpi, handle_inter_mode_time);
6278
#endif
6279
0
    if (current_frame->reference_mode != SINGLE_REFERENCE) {
6280
0
      if (!args.skip_ifs &&
6281
0
          sf->inter_sf.prune_comp_search_by_single_result > 0 &&
6282
0
          is_inter_singleref_mode(this_mode)) {
6283
0
        collect_single_states(x, &search_state, mbmi);
6284
0
      }
6285
6286
0
      if (sf->inter_sf.prune_comp_using_best_single_mode_ref > 0 &&
6287
0
          is_inter_singleref_mode(this_mode))
6288
0
        update_best_single_mode(&search_state, this_mode, ref_frame, this_rd);
6289
0
    }
6290
6291
0
    if (this_rd == INT64_MAX) continue;
6292
6293
0
    if (mbmi->skip_txfm) {
6294
0
      rd_stats_y.rate = 0;
6295
0
      rd_stats_uv.rate = 0;
6296
0
    }
6297
6298
0
    if (sf->inter_sf.prune_compound_using_single_ref && is_single_pred &&
6299
0
        this_rd < ref_frame_rd[ref_frame]) {
6300
0
      ref_frame_rd[ref_frame] = this_rd;
6301
0
    }
6302
6303
0
    adjust_cost(cpi, x, &this_rd, /*is_inter_pred=*/true);
6304
0
    adjust_rdcost(cpi, x, &rd_stats, /*is_inter_pred=*/true);
6305
6306
    // Did this mode help, i.e., is it the new best mode
6307
0
    if (this_rd < search_state.best_rd) {
6308
0
      assert(IMPLIES(comp_pred,
6309
0
                     cm->current_frame.reference_mode != SINGLE_REFERENCE));
6310
0
      search_state.best_pred_sse = x->pred_sse[ref_frame];
6311
0
      best_inter_yrd = this_yrd;
6312
0
      update_search_state(cpi, &search_state, rd_cost, ctx, &rd_stats,
6313
0
                          &rd_stats_y, &rd_stats_uv, mode_enum, x,
6314
0
                          do_tx_search);
6315
0
      if (do_tx_search) search_state.best_skip_rd[0] = skip_rd[0];
6316
      // skip_rd[0] is the best total rd for a skip mode so far.
6317
      // skip_rd[1] is the best total rd for a skip mode so far in luma.
6318
      // When do_tx_search = 1, both skip_rd[0] and skip_rd[1] are updated.
6319
      // When do_tx_search = 0, skip_rd[1] is updated.
6320
0
      search_state.best_skip_rd[1] = skip_rd[1];
6321
0
    }
6322
0
    if (sf->winner_mode_sf.motion_mode_for_winner_cand) {
6323
      // Add this mode to motion mode candidate list for motion mode search
6324
      // if using motion_mode_for_winner_cand speed feature
6325
0
      handle_winner_cand(mbmi, &best_motion_mode_cands,
6326
0
                         max_winner_motion_mode_cand, this_rd,
6327
0
                         &motion_mode_cand, args.skip_motion_mode);
6328
0
    }
6329
6330
    /* keep record of best compound/single-only prediction */
6331
0
    record_best_compound(cm->current_frame.reference_mode, &rd_stats, comp_pred,
6332
0
                         x->rdmult, &search_state, compmode_cost);
6333
0
  }
6334
6335
#if CONFIG_COLLECT_COMPONENT_TIMING
6336
  start_timing(cpi, evaluate_motion_mode_for_winner_candidates_time);
6337
#endif
6338
0
  if (sf->winner_mode_sf.motion_mode_for_winner_cand) {
6339
    // For the single ref winner candidates, evaluate other motion modes (non
6340
    // simple translation).
6341
0
    evaluate_motion_mode_for_winner_candidates(
6342
0
        cpi, x, rd_cost, &args, tile_data, ctx, yv12_mb,
6343
0
        &best_motion_mode_cands, do_tx_search, bsize, &best_est_rd,
6344
0
        &search_state, &best_inter_yrd);
6345
0
  }
6346
#if CONFIG_COLLECT_COMPONENT_TIMING
6347
  end_timing(cpi, evaluate_motion_mode_for_winner_candidates_time);
6348
#endif
6349
6350
#if CONFIG_COLLECT_COMPONENT_TIMING
6351
  start_timing(cpi, do_tx_search_time);
6352
#endif
6353
0
  if (do_tx_search != 1) {
6354
    // A full tx search has not yet been done, do tx search for
6355
    // top mode candidates
6356
0
    tx_search_best_inter_candidates(cpi, tile_data, x, best_rd_so_far, bsize,
6357
0
                                    yv12_mb, mi_row, mi_col, &search_state,
6358
0
                                    rd_cost, ctx, &best_inter_yrd);
6359
0
  }
6360
#if CONFIG_COLLECT_COMPONENT_TIMING
6361
  end_timing(cpi, do_tx_search_time);
6362
#endif
6363
6364
#if CONFIG_COLLECT_COMPONENT_TIMING
6365
  start_timing(cpi, handle_intra_mode_time);
6366
#endif
6367
  // Gate intra mode evaluation if best of inter is skip except when source
6368
  // variance is extremely low and also based on max intra bsize.
6369
0
  skip_intra_modes_in_interframe(cm, x, bsize, &search_state, sf, inter_cost,
6370
0
                                 intra_cost);
6371
6372
0
  const unsigned int intra_ref_frame_cost = ref_costs_single[INTRA_FRAME];
6373
0
  search_intra_modes_in_interframe(&search_state, cpi, x, rd_cost, bsize, ctx,
6374
0
                                   &sf_args, intra_ref_frame_cost,
6375
0
                                   best_inter_yrd);
6376
#if CONFIG_COLLECT_COMPONENT_TIMING
6377
  end_timing(cpi, handle_intra_mode_time);
6378
#endif
6379
6380
#if CONFIG_COLLECT_COMPONENT_TIMING
6381
  start_timing(cpi, refine_winner_mode_tx_time);
6382
#endif
6383
0
  int winner_mode_count =
6384
0
      sf->winner_mode_sf.multi_winner_mode_type ? x->winner_mode_count : 1;
6385
  // In effect only when fast tx search speed features are enabled.
6386
0
  refine_winner_mode_tx(
6387
0
      cpi, x, rd_cost, bsize, ctx, &search_state.best_mode_index,
6388
0
      &search_state.best_mbmode, yv12_mb, search_state.best_rate_y,
6389
0
      search_state.best_rate_uv, &search_state.best_skip2, winner_mode_count);
6390
#if CONFIG_COLLECT_COMPONENT_TIMING
6391
  end_timing(cpi, refine_winner_mode_tx_time);
6392
#endif
6393
6394
  // Initialize default mode evaluation params
6395
0
  set_mode_eval_params(cpi, x, DEFAULT_EVAL);
6396
6397
  // Only try palette mode when the best mode so far is an intra mode.
6398
0
  const int try_palette =
6399
0
      cpi->oxcf.tool_cfg.enable_palette &&
6400
0
      av1_allow_palette(features->allow_screen_content_tools, mbmi->bsize) &&
6401
0
      !is_inter_mode(search_state.best_mbmode.mode) && rd_cost->rate != INT_MAX;
6402
0
  RD_STATS this_rd_cost;
6403
0
  int this_skippable = 0;
6404
0
  if (try_palette) {
6405
#if CONFIG_COLLECT_COMPONENT_TIMING
6406
    start_timing(cpi, av1_search_palette_mode_time);
6407
#endif
6408
0
    this_skippable = av1_search_palette_mode(
6409
0
        &search_state.intra_search_state, cpi, x, bsize, intra_ref_frame_cost,
6410
0
        ctx, &this_rd_cost, search_state.best_rd);
6411
#if CONFIG_COLLECT_COMPONENT_TIMING
6412
    end_timing(cpi, av1_search_palette_mode_time);
6413
#endif
6414
0
    if (this_rd_cost.rdcost < search_state.best_rd) {
6415
0
      search_state.best_mode_index = THR_DC;
6416
0
      mbmi->mv[0].as_int = 0;
6417
0
      rd_cost->rate = this_rd_cost.rate;
6418
0
      rd_cost->dist = this_rd_cost.dist;
6419
0
      rd_cost->rdcost = this_rd_cost.rdcost;
6420
0
      search_state.best_rd = rd_cost->rdcost;
6421
0
      search_state.best_mbmode = *mbmi;
6422
0
      search_state.best_skip2 = 0;
6423
0
      search_state.best_mode_skippable = this_skippable;
6424
0
      av1_copy_array(ctx->tx_type_map, xd->tx_type_map, ctx->num_4x4_blk);
6425
0
    }
6426
0
  }
6427
6428
0
  search_state.best_mbmode.skip_mode = 0;
6429
0
  if (cm->current_frame.skip_mode_info.skip_mode_flag &&
6430
0
      cpi->oxcf.algo_cfg.sharpness != 3 && is_comp_ref_allowed(bsize)) {
6431
0
    const struct segmentation *const seg = &cm->seg;
6432
0
    unsigned char segment_id = mbmi->segment_id;
6433
0
    if (!segfeature_active(seg, segment_id, SEG_LVL_REF_FRAME)) {
6434
0
      rd_pick_skip_mode(rd_cost, &search_state, cpi, x, bsize, yv12_mb);
6435
0
    }
6436
0
  }
6437
6438
  // Make sure that the ref_mv_idx is only nonzero when we're
6439
  // using a mode which can support ref_mv_idx
6440
0
  if (search_state.best_mbmode.ref_mv_idx != 0 &&
6441
0
      !(search_state.best_mbmode.mode == NEWMV ||
6442
0
        search_state.best_mbmode.mode == NEW_NEWMV ||
6443
0
        have_nearmv_in_inter_mode(search_state.best_mbmode.mode))) {
6444
0
    search_state.best_mbmode.ref_mv_idx = 0;
6445
0
  }
6446
6447
0
  if (search_state.best_mode_index == THR_INVALID ||
6448
0
      search_state.best_rd >= best_rd_so_far) {
6449
0
    rd_cost->rate = INT_MAX;
6450
0
    rd_cost->rdcost = INT64_MAX;
6451
0
    return;
6452
0
  }
6453
6454
0
  const InterpFilter interp_filter = features->interp_filter;
6455
0
  assert((interp_filter == SWITCHABLE) ||
6456
0
         (interp_filter ==
6457
0
          search_state.best_mbmode.interp_filters.as_filters.y_filter) ||
6458
0
         !is_inter_block(&search_state.best_mbmode));
6459
0
  assert((interp_filter == SWITCHABLE) ||
6460
0
         (interp_filter ==
6461
0
          search_state.best_mbmode.interp_filters.as_filters.x_filter) ||
6462
0
         !is_inter_block(&search_state.best_mbmode));
6463
6464
0
  if (!cpi->rc.is_src_frame_alt_ref && sf->inter_sf.adaptive_rd_thresh) {
6465
0
    av1_update_rd_thresh_fact(
6466
0
        cm, x->thresh_freq_fact, sf->inter_sf.adaptive_rd_thresh, bsize,
6467
0
        search_state.best_mode_index, mode_start, mode_end, THR_DC, MAX_MODES);
6468
0
  }
6469
6470
  // macroblock modes
6471
0
  *mbmi = search_state.best_mbmode;
6472
0
  txfm_info->skip_txfm |= search_state.best_skip2;
6473
6474
  // Note: this section is needed since the mode may have been forced to
6475
  // GLOBALMV by the all-zero mode handling of ref-mv.
6476
0
  if (mbmi->mode == GLOBALMV || mbmi->mode == GLOBAL_GLOBALMV) {
6477
    // Correct the interp filters for GLOBALMV
6478
0
    if (is_nontrans_global_motion(xd, xd->mi[0])) {
6479
0
      int_interpfilters filters =
6480
0
          av1_broadcast_interp_filter(av1_unswitchable_filter(interp_filter));
6481
0
      assert(mbmi->interp_filters.as_int == filters.as_int);
6482
0
      (void)filters;
6483
0
    }
6484
0
  }
6485
6486
0
  txfm_info->skip_txfm |= search_state.best_mode_skippable;
6487
6488
0
  assert(search_state.best_mode_index != THR_INVALID);
6489
6490
#if CONFIG_INTERNAL_STATS
6491
  store_coding_context(x, ctx, search_state.best_mode_index,
6492
                       search_state.best_mode_skippable);
6493
#else
6494
0
  store_coding_context(x, ctx, search_state.best_mode_skippable);
6495
0
#endif  // CONFIG_INTERNAL_STATS
6496
6497
0
  if (mbmi->palette_mode_info.palette_size[1] > 0) {
6498
0
    assert(try_palette);
6499
0
    av1_restore_uv_color_map(cpi, x);
6500
0
  }
6501
0
}
6502
6503
void av1_rd_pick_inter_mode_sb_seg_skip(const AV1_COMP *cpi,
6504
                                        TileDataEnc *tile_data, MACROBLOCK *x,
6505
                                        int mi_row, int mi_col,
6506
                                        RD_STATS *rd_cost, BLOCK_SIZE bsize,
6507
                                        PICK_MODE_CONTEXT *ctx,
6508
0
                                        int64_t best_rd_so_far) {
6509
0
  const AV1_COMMON *const cm = &cpi->common;
6510
0
  const FeatureFlags *const features = &cm->features;
6511
0
  MACROBLOCKD *const xd = &x->e_mbd;
6512
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
6513
0
  unsigned char segment_id = mbmi->segment_id;
6514
0
  const int comp_pred = 0;
6515
0
  int i;
6516
0
  unsigned int ref_costs_single[REF_FRAMES];
6517
0
  unsigned int ref_costs_comp[REF_FRAMES][REF_FRAMES];
6518
0
  const ModeCosts *mode_costs = &x->mode_costs;
6519
0
  const int *comp_inter_cost =
6520
0
      mode_costs->comp_inter_cost[av1_get_reference_mode_context(xd)];
6521
0
  InterpFilter best_filter = SWITCHABLE;
6522
0
  int64_t this_rd = INT64_MAX;
6523
0
  int rate2 = 0;
6524
0
  const int64_t distortion2 = 0;
6525
0
  (void)mi_row;
6526
0
  (void)mi_col;
6527
0
  (void)tile_data;
6528
6529
0
  av1_collect_neighbors_ref_counts(xd);
6530
6531
0
  estimate_ref_frame_costs(cm, xd, mode_costs, segment_id, ref_costs_single,
6532
0
                           ref_costs_comp);
6533
6534
0
  for (i = 0; i < REF_FRAMES; ++i) x->pred_sse[i] = INT_MAX;
6535
0
  for (i = LAST_FRAME; i < REF_FRAMES; ++i) x->pred_mv_sad[i] = INT_MAX;
6536
6537
0
  rd_cost->rate = INT_MAX;
6538
6539
0
  assert(segfeature_active(&cm->seg, segment_id, SEG_LVL_SKIP));
6540
6541
0
  mbmi->palette_mode_info.palette_size[0] = 0;
6542
0
  mbmi->palette_mode_info.palette_size[1] = 0;
6543
0
  mbmi->filter_intra_mode_info.use_filter_intra = 0;
6544
0
  mbmi->mode = GLOBALMV;
6545
0
  mbmi->motion_mode = SIMPLE_TRANSLATION;
6546
0
  mbmi->uv_mode = UV_DC_PRED;
6547
0
  if (segfeature_active(&cm->seg, segment_id, SEG_LVL_REF_FRAME))
6548
0
    mbmi->ref_frame[0] = get_segdata(&cm->seg, segment_id, SEG_LVL_REF_FRAME);
6549
0
  else
6550
0
    mbmi->ref_frame[0] = LAST_FRAME;
6551
0
  mbmi->ref_frame[1] = NONE_FRAME;
6552
0
  mbmi->mv[0].as_int =
6553
0
      gm_get_motion_vector(&cm->global_motion[mbmi->ref_frame[0]],
6554
0
                           features->allow_high_precision_mv, bsize, mi_col,
6555
0
                           mi_row, features->cur_frame_force_integer_mv)
6556
0
          .as_int;
6557
0
  mbmi->tx_size = max_txsize_lookup[bsize];
6558
0
  x->txfm_search_info.skip_txfm = 1;
6559
6560
0
  mbmi->ref_mv_idx = 0;
6561
6562
0
  mbmi->motion_mode = SIMPLE_TRANSLATION;
6563
0
  av1_count_overlappable_neighbors(cm, xd);
6564
0
  if (is_motion_variation_allowed_bsize(bsize) && !has_second_ref(mbmi)) {
6565
0
    int pts[SAMPLES_ARRAY_SIZE], pts_inref[SAMPLES_ARRAY_SIZE];
6566
0
    mbmi->num_proj_ref = av1_findSamples(cm, xd, pts, pts_inref);
6567
    // Select the samples according to motion vector difference
6568
0
    if (mbmi->num_proj_ref > 1) {
6569
0
      mbmi->num_proj_ref = av1_selectSamples(&mbmi->mv[0].as_mv, pts, pts_inref,
6570
0
                                             mbmi->num_proj_ref, bsize);
6571
0
    }
6572
0
  }
6573
6574
0
  const InterpFilter interp_filter = features->interp_filter;
6575
0
  set_default_interp_filters(mbmi, interp_filter);
6576
6577
0
  if (interp_filter != SWITCHABLE) {
6578
0
    best_filter = interp_filter;
6579
0
  } else {
6580
0
    best_filter = EIGHTTAP_REGULAR;
6581
0
    if (av1_is_interp_needed(xd)) {
6582
0
      int rs;
6583
0
      int best_rs = INT_MAX;
6584
0
      for (i = 0; i < SWITCHABLE_FILTERS; ++i) {
6585
0
        mbmi->interp_filters = av1_broadcast_interp_filter(i);
6586
0
        rs = av1_get_switchable_rate(x, xd, interp_filter,
6587
0
                                     cm->seq_params->enable_dual_filter);
6588
0
        if (rs < best_rs) {
6589
0
          best_rs = rs;
6590
0
          best_filter = mbmi->interp_filters.as_filters.y_filter;
6591
0
        }
6592
0
      }
6593
0
    }
6594
0
  }
6595
  // Set the appropriate filter
6596
0
  mbmi->interp_filters = av1_broadcast_interp_filter(best_filter);
6597
0
  rate2 += av1_get_switchable_rate(x, xd, interp_filter,
6598
0
                                   cm->seq_params->enable_dual_filter);
6599
6600
0
  if (cm->current_frame.reference_mode == REFERENCE_MODE_SELECT)
6601
0
    rate2 += comp_inter_cost[comp_pred];
6602
6603
  // Estimate the reference frame signaling cost and add it
6604
  // to the rolling cost variable.
6605
0
  rate2 += ref_costs_single[LAST_FRAME];
6606
0
  this_rd = RDCOST(x->rdmult, rate2, distortion2);
6607
6608
0
  rd_cost->rate = rate2;
6609
0
  rd_cost->dist = distortion2;
6610
0
  rd_cost->rdcost = this_rd;
6611
6612
0
  if (this_rd >= best_rd_so_far) {
6613
0
    rd_cost->rate = INT_MAX;
6614
0
    rd_cost->rdcost = INT64_MAX;
6615
0
    return;
6616
0
  }
6617
6618
0
  assert((interp_filter == SWITCHABLE) ||
6619
0
         (interp_filter == mbmi->interp_filters.as_filters.y_filter));
6620
6621
0
  if (cpi->sf.inter_sf.adaptive_rd_thresh) {
6622
0
    av1_update_rd_thresh_fact(cm, x->thresh_freq_fact,
6623
0
                              cpi->sf.inter_sf.adaptive_rd_thresh, bsize,
6624
0
                              THR_GLOBALMV, THR_INTER_MODE_START,
6625
0
                              THR_INTER_MODE_END, THR_DC, MAX_MODES);
6626
0
  }
6627
6628
#if CONFIG_INTERNAL_STATS
6629
  store_coding_context(x, ctx, THR_GLOBALMV, 0);
6630
#else
6631
0
  store_coding_context(x, ctx, 0);
6632
0
#endif  // CONFIG_INTERNAL_STATS
6633
0
}
6634
6635
/*!\cond */
6636
struct calc_target_weighted_pred_ctxt {
6637
  const OBMCBuffer *obmc_buffer;
6638
  const uint8_t *tmp;
6639
  int tmp_stride;
6640
  int overlap;
6641
};
6642
/*!\endcond */
6643
6644
static inline void calc_target_weighted_pred_above(
6645
    MACROBLOCKD *xd, int rel_mi_row, int rel_mi_col, uint8_t op_mi_size,
6646
0
    int dir, MB_MODE_INFO *nb_mi, void *fun_ctxt, const int num_planes) {
6647
0
  (void)nb_mi;
6648
0
  (void)num_planes;
6649
0
  (void)rel_mi_row;
6650
0
  (void)dir;
6651
6652
0
  struct calc_target_weighted_pred_ctxt *ctxt =
6653
0
      (struct calc_target_weighted_pred_ctxt *)fun_ctxt;
6654
6655
0
  const int bw = xd->width << MI_SIZE_LOG2;
6656
0
  const uint8_t *const mask1d = av1_get_obmc_mask(ctxt->overlap);
6657
6658
0
  int32_t *wsrc = ctxt->obmc_buffer->wsrc + (rel_mi_col * MI_SIZE);
6659
0
  int32_t *mask = ctxt->obmc_buffer->mask + (rel_mi_col * MI_SIZE);
6660
0
  const uint8_t *tmp = ctxt->tmp + rel_mi_col * MI_SIZE;
6661
0
  const int is_hbd = is_cur_buf_hbd(xd);
6662
6663
0
  if (!is_hbd) {
6664
0
    for (int row = 0; row < ctxt->overlap; ++row) {
6665
0
      const uint8_t m0 = mask1d[row];
6666
0
      const uint8_t m1 = AOM_BLEND_A64_MAX_ALPHA - m0;
6667
0
      for (int col = 0; col < op_mi_size * MI_SIZE; ++col) {
6668
0
        wsrc[col] = m1 * tmp[col];
6669
0
        mask[col] = m0;
6670
0
      }
6671
0
      wsrc += bw;
6672
0
      mask += bw;
6673
0
      tmp += ctxt->tmp_stride;
6674
0
    }
6675
0
  } else {
6676
0
    const uint16_t *tmp16 = CONVERT_TO_SHORTPTR(tmp);
6677
6678
0
    for (int row = 0; row < ctxt->overlap; ++row) {
6679
0
      const uint8_t m0 = mask1d[row];
6680
0
      const uint8_t m1 = AOM_BLEND_A64_MAX_ALPHA - m0;
6681
0
      for (int col = 0; col < op_mi_size * MI_SIZE; ++col) {
6682
0
        wsrc[col] = m1 * tmp16[col];
6683
0
        mask[col] = m0;
6684
0
      }
6685
0
      wsrc += bw;
6686
0
      mask += bw;
6687
0
      tmp16 += ctxt->tmp_stride;
6688
0
    }
6689
0
  }
6690
0
}
6691
6692
static inline void calc_target_weighted_pred_left(
6693
    MACROBLOCKD *xd, int rel_mi_row, int rel_mi_col, uint8_t op_mi_size,
6694
0
    int dir, MB_MODE_INFO *nb_mi, void *fun_ctxt, const int num_planes) {
6695
0
  (void)nb_mi;
6696
0
  (void)num_planes;
6697
0
  (void)rel_mi_col;
6698
0
  (void)dir;
6699
6700
0
  struct calc_target_weighted_pred_ctxt *ctxt =
6701
0
      (struct calc_target_weighted_pred_ctxt *)fun_ctxt;
6702
6703
0
  const int bw = xd->width << MI_SIZE_LOG2;
6704
0
  const uint8_t *const mask1d = av1_get_obmc_mask(ctxt->overlap);
6705
6706
0
  int32_t *wsrc = ctxt->obmc_buffer->wsrc + (rel_mi_row * MI_SIZE * bw);
6707
0
  int32_t *mask = ctxt->obmc_buffer->mask + (rel_mi_row * MI_SIZE * bw);
6708
0
  const uint8_t *tmp = ctxt->tmp + (rel_mi_row * MI_SIZE * ctxt->tmp_stride);
6709
0
  const int is_hbd = is_cur_buf_hbd(xd);
6710
6711
0
  if (!is_hbd) {
6712
0
    for (int row = 0; row < op_mi_size * MI_SIZE; ++row) {
6713
0
      for (int col = 0; col < ctxt->overlap; ++col) {
6714
0
        const uint8_t m0 = mask1d[col];
6715
0
        const uint8_t m1 = AOM_BLEND_A64_MAX_ALPHA - m0;
6716
0
        wsrc[col] = (wsrc[col] >> AOM_BLEND_A64_ROUND_BITS) * m0 +
6717
0
                    (tmp[col] << AOM_BLEND_A64_ROUND_BITS) * m1;
6718
0
        mask[col] = (mask[col] >> AOM_BLEND_A64_ROUND_BITS) * m0;
6719
0
      }
6720
0
      wsrc += bw;
6721
0
      mask += bw;
6722
0
      tmp += ctxt->tmp_stride;
6723
0
    }
6724
0
  } else {
6725
0
    const uint16_t *tmp16 = CONVERT_TO_SHORTPTR(tmp);
6726
6727
0
    for (int row = 0; row < op_mi_size * MI_SIZE; ++row) {
6728
0
      for (int col = 0; col < ctxt->overlap; ++col) {
6729
0
        const uint8_t m0 = mask1d[col];
6730
0
        const uint8_t m1 = AOM_BLEND_A64_MAX_ALPHA - m0;
6731
0
        wsrc[col] = (wsrc[col] >> AOM_BLEND_A64_ROUND_BITS) * m0 +
6732
0
                    (tmp16[col] << AOM_BLEND_A64_ROUND_BITS) * m1;
6733
0
        mask[col] = (mask[col] >> AOM_BLEND_A64_ROUND_BITS) * m0;
6734
0
      }
6735
0
      wsrc += bw;
6736
0
      mask += bw;
6737
0
      tmp16 += ctxt->tmp_stride;
6738
0
    }
6739
0
  }
6740
0
}
6741
6742
// This function has a structure similar to av1_build_obmc_inter_prediction
6743
//
6744
// The OBMC predictor is computed as:
6745
//
6746
//  PObmc(x,y) =
6747
//    AOM_BLEND_A64(Mh(x),
6748
//                  AOM_BLEND_A64(Mv(y), P(x,y), PAbove(x,y)),
6749
//                  PLeft(x, y))
6750
//
6751
// Scaling up by AOM_BLEND_A64_MAX_ALPHA ** 2 and omitting the intermediate
6752
// rounding, this can be written as:
6753
//
6754
//  AOM_BLEND_A64_MAX_ALPHA * AOM_BLEND_A64_MAX_ALPHA * Pobmc(x,y) =
6755
//    Mh(x) * Mv(y) * P(x,y) +
6756
//      Mh(x) * Cv(y) * Pabove(x,y) +
6757
//      AOM_BLEND_A64_MAX_ALPHA * Ch(x) * PLeft(x, y)
6758
//
6759
// Where :
6760
//
6761
//  Cv(y) = AOM_BLEND_A64_MAX_ALPHA - Mv(y)
6762
//  Ch(y) = AOM_BLEND_A64_MAX_ALPHA - Mh(y)
6763
//
6764
// This function computes 'wsrc' and 'mask' as:
6765
//
6766
//  wsrc(x, y) =
6767
//    AOM_BLEND_A64_MAX_ALPHA * AOM_BLEND_A64_MAX_ALPHA * src(x, y) -
6768
//      Mh(x) * Cv(y) * Pabove(x,y) +
6769
//      AOM_BLEND_A64_MAX_ALPHA * Ch(x) * PLeft(x, y)
6770
//
6771
//  mask(x, y) = Mh(x) * Mv(y)
6772
//
6773
// These can then be used to efficiently approximate the error for any
6774
// predictor P in the context of the provided neighbouring predictors by
6775
// computing:
6776
//
6777
//  error(x, y) =
6778
//    wsrc(x, y) - mask(x, y) * P(x, y) / (AOM_BLEND_A64_MAX_ALPHA ** 2)
6779
//
6780
static inline void calc_target_weighted_pred(
6781
    const AV1_COMMON *cm, const MACROBLOCK *x, const MACROBLOCKD *xd,
6782
    const uint8_t *above, int above_stride, const uint8_t *left,
6783
0
    int left_stride) {
6784
0
  const BLOCK_SIZE bsize = xd->mi[0]->bsize;
6785
0
  const int bw = xd->width << MI_SIZE_LOG2;
6786
0
  const int bh = xd->height << MI_SIZE_LOG2;
6787
0
  const OBMCBuffer *obmc_buffer = &x->obmc_buffer;
6788
0
  int32_t *mask_buf = obmc_buffer->mask;
6789
0
  int32_t *wsrc_buf = obmc_buffer->wsrc;
6790
6791
0
  const int is_hbd = is_cur_buf_hbd(xd);
6792
0
  const int src_scale = AOM_BLEND_A64_MAX_ALPHA * AOM_BLEND_A64_MAX_ALPHA;
6793
6794
  // plane 0 should not be sub-sampled
6795
0
  assert(xd->plane[0].subsampling_x == 0);
6796
0
  assert(xd->plane[0].subsampling_y == 0);
6797
6798
0
  av1_zero_array(wsrc_buf, bw * bh);
6799
0
  for (int i = 0; i < bw * bh; ++i) mask_buf[i] = AOM_BLEND_A64_MAX_ALPHA;
6800
6801
  // handle above row
6802
0
  if (xd->up_available) {
6803
0
    const int overlap =
6804
0
        AOMMIN(block_size_high[bsize], block_size_high[BLOCK_64X64]) >> 1;
6805
0
    struct calc_target_weighted_pred_ctxt ctxt = { obmc_buffer, above,
6806
0
                                                   above_stride, overlap };
6807
0
    foreach_overlappable_nb_above(cm, (MACROBLOCKD *)xd,
6808
0
                                  max_neighbor_obmc[mi_size_wide_log2[bsize]],
6809
0
                                  calc_target_weighted_pred_above, &ctxt);
6810
0
  }
6811
6812
0
  for (int i = 0; i < bw * bh; ++i) {
6813
0
    wsrc_buf[i] *= AOM_BLEND_A64_MAX_ALPHA;
6814
0
    mask_buf[i] *= AOM_BLEND_A64_MAX_ALPHA;
6815
0
  }
6816
6817
  // handle left column
6818
0
  if (xd->left_available) {
6819
0
    const int overlap =
6820
0
        AOMMIN(block_size_wide[bsize], block_size_wide[BLOCK_64X64]) >> 1;
6821
0
    struct calc_target_weighted_pred_ctxt ctxt = { obmc_buffer, left,
6822
0
                                                   left_stride, overlap };
6823
0
    foreach_overlappable_nb_left(cm, (MACROBLOCKD *)xd,
6824
0
                                 max_neighbor_obmc[mi_size_high_log2[bsize]],
6825
0
                                 calc_target_weighted_pred_left, &ctxt);
6826
0
  }
6827
6828
0
  if (!is_hbd) {
6829
0
    const uint8_t *src = x->plane[0].src.buf;
6830
6831
0
    for (int row = 0; row < bh; ++row) {
6832
0
      for (int col = 0; col < bw; ++col) {
6833
0
        wsrc_buf[col] = src[col] * src_scale - wsrc_buf[col];
6834
0
      }
6835
0
      wsrc_buf += bw;
6836
0
      src += x->plane[0].src.stride;
6837
0
    }
6838
0
  } else {
6839
0
    const uint16_t *src = CONVERT_TO_SHORTPTR(x->plane[0].src.buf);
6840
6841
0
    for (int row = 0; row < bh; ++row) {
6842
0
      for (int col = 0; col < bw; ++col) {
6843
0
        wsrc_buf[col] = src[col] * src_scale - wsrc_buf[col];
6844
0
      }
6845
0
      wsrc_buf += bw;
6846
0
      src += x->plane[0].src.stride;
6847
0
    }
6848
0
  }
6849
0
}