Coverage Report

Created: 2026-07-25 07:03

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aom/av1/common/reconinter.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 <stdio.h>
14
#include <limits.h>
15
16
#include "config/aom_config.h"
17
#include "config/aom_dsp_rtcd.h"
18
#include "config/aom_scale_rtcd.h"
19
20
#include "aom/aom_integer.h"
21
#include "aom_dsp/blend.h"
22
#include "aom_ports/aom_once.h"
23
24
#include "av1/common/av1_common_int.h"
25
#include "av1/common/blockd.h"
26
#include "av1/common/mvref_common.h"
27
#include "av1/common/obmc.h"
28
#include "av1/common/reconinter.h"
29
#include "av1/common/reconintra.h"
30
31
// This function will determine whether or not to create a warped
32
// prediction.
33
static int allow_warp(const MB_MODE_INFO *const mbmi,
34
                      const WarpTypesAllowed *const warp_types,
35
                      const WarpedMotionParams *const gm_params,
36
                      int build_for_obmc, const struct scale_factors *const sf,
37
189k
                      WarpedMotionParams *final_warp_params) {
38
  // Note: As per the spec, we must test the fixed point scales here, which are
39
  // at a higher precision (1 << 14) than the xs and ys in subpel_params (that
40
  // have 1 << 10 precision).
41
189k
  if (av1_is_scaled(sf)) return 0;
42
43
183k
  if (final_warp_params != NULL) *final_warp_params = default_warp_params;
44
45
183k
  if (build_for_obmc) return 0;
46
47
183k
  if (warp_types->local_warp_allowed && !mbmi->wm_params.invalid) {
48
6.83k
    if (final_warp_params != NULL) *final_warp_params = mbmi->wm_params;
49
6.83k
    return 1;
50
176k
  } else if (warp_types->global_warp_allowed && !gm_params->invalid) {
51
12.4k
    if (final_warp_params != NULL) *final_warp_params = *gm_params;
52
12.4k
    return 1;
53
12.4k
  }
54
55
163k
  return 0;
56
183k
}
57
58
void av1_init_warp_params(InterPredParams *inter_pred_params,
59
                          const WarpTypesAllowed *warp_types, int ref,
60
396k
                          const MACROBLOCKD *xd, const MB_MODE_INFO *mi) {
61
396k
  if (inter_pred_params->block_height < 8 || inter_pred_params->block_width < 8)
62
195k
    return;
63
64
201k
  if (xd->cur_frame_force_integer_mv) return;
65
66
189k
  if (allow_warp(mi, warp_types, &xd->global_motion[mi->ref_frame[ref]], 0,
67
189k
                 inter_pred_params->scale_factors,
68
189k
                 &inter_pred_params->warp_params)) {
69
#if CONFIG_REALTIME_ONLY && !CONFIG_AV1_DECODER
70
    aom_internal_error(xd->error_info, AOM_CODEC_UNSUP_FEATURE,
71
                       "Warped motion is disabled in realtime only build.");
72
#endif  // CONFIG_REALTIME_ONLY && !CONFIG_AV1_DECODER
73
19.3k
    inter_pred_params->mode = WARP_PRED;
74
19.3k
  }
75
189k
}
76
77
void av1_make_inter_predictor(const uint8_t *src, int src_stride, uint8_t *dst,
78
                              int dst_stride,
79
                              InterPredParams *inter_pred_params,
80
411k
                              const SubpelParams *subpel_params) {
81
411k
  assert(IMPLIES(inter_pred_params->conv_params.is_compound,
82
411k
                 inter_pred_params->conv_params.dst != NULL));
83
84
411k
  if (inter_pred_params->mode == TRANSLATION_PRED) {
85
392k
#if CONFIG_AV1_HIGHBITDEPTH
86
392k
    if (inter_pred_params->use_hbd_buf) {
87
198k
      highbd_inter_predictor(src, src_stride, dst, dst_stride, subpel_params,
88
198k
                             inter_pred_params->block_width,
89
198k
                             inter_pred_params->block_height,
90
198k
                             &inter_pred_params->conv_params,
91
198k
                             inter_pred_params->interp_filter_params,
92
198k
                             inter_pred_params->bit_depth);
93
198k
    } else {
94
193k
      inter_predictor(src, src_stride, dst, dst_stride, subpel_params,
95
193k
                      inter_pred_params->block_width,
96
193k
                      inter_pred_params->block_height,
97
193k
                      &inter_pred_params->conv_params,
98
193k
                      inter_pred_params->interp_filter_params);
99
193k
    }
100
#else
101
    inter_predictor(src, src_stride, dst, dst_stride, subpel_params,
102
                    inter_pred_params->block_width,
103
                    inter_pred_params->block_height,
104
                    &inter_pred_params->conv_params,
105
                    inter_pred_params->interp_filter_params);
106
#endif
107
392k
  }
108
19.3k
#if !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
109
  // TODO(jingning): av1_warp_plane() can be further cleaned up.
110
19.3k
  else if (inter_pred_params->mode == WARP_PRED) {
111
19.3k
    av1_warp_plane(
112
19.3k
        &inter_pred_params->warp_params, inter_pred_params->use_hbd_buf,
113
19.3k
        inter_pred_params->bit_depth, inter_pred_params->ref_frame_buf.buf0,
114
19.3k
        inter_pred_params->ref_frame_buf.width,
115
19.3k
        inter_pred_params->ref_frame_buf.height,
116
19.3k
        inter_pred_params->ref_frame_buf.stride, dst,
117
19.3k
        inter_pred_params->pix_col, inter_pred_params->pix_row,
118
19.3k
        inter_pred_params->block_width, inter_pred_params->block_height,
119
19.3k
        dst_stride, inter_pred_params->subsampling_x,
120
19.3k
        inter_pred_params->subsampling_y, &inter_pred_params->conv_params);
121
19.3k
  }
122
0
#endif  // !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
123
0
  else {
124
0
    assert(0 && "Unsupported inter_pred_params->mode");
125
0
  }
126
411k
}
127
128
static const uint8_t wedge_master_oblique_odd[MASK_MASTER_SIZE] = {
129
  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,
130
  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  1,  2,  6,  18,
131
  37, 53, 60, 63, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
132
  64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
133
};
134
static const uint8_t wedge_master_oblique_even[MASK_MASTER_SIZE] = {
135
  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,
136
  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  1,  4,  11, 27,
137
  46, 58, 62, 63, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
138
  64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
139
};
140
static const uint8_t wedge_master_vertical[MASK_MASTER_SIZE] = {
141
  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,
142
  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  2,  7,  21,
143
  43, 57, 62, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
144
  64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
145
};
146
147
static inline void shift_copy(const uint8_t *src, uint8_t *dst, int shift,
148
128
                              int width) {
149
128
  if (shift >= 0) {
150
66
    memcpy(dst + shift, src, width - shift);
151
66
    memset(dst, src[0], shift);
152
66
  } else {
153
62
    shift = -shift;
154
62
    memcpy(dst, src + shift, width - shift);
155
62
    memset(dst + width - shift, src[width - 1], shift);
156
62
  }
157
128
}
158
159
/* clang-format off */
160
DECLARE_ALIGNED(16, static uint8_t,
161
                wedge_signflip_lookup[BLOCK_SIZES_ALL][MAX_WEDGE_TYPES]) = {
162
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
163
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
164
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
165
  { 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
166
  { 1, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
167
  { 1, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
168
  { 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
169
  { 1, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
170
  { 1, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
171
  { 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, },
172
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
173
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
174
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
175
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
176
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
177
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
178
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
179
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
180
  { 1, 1, 1, 1, 0, 1, 1, 1, 0, 1, 0, 1, 1, 1, 0, 1, },
181
  { 1, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0, 1, 0, 1, 0, 1, },
182
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
183
  { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, },  // not used
184
};
185
/* clang-format on */
186
187
// [negative][direction]
188
DECLARE_ALIGNED(
189
    16, static uint8_t,
190
    wedge_mask_obl[2][WEDGE_DIRECTIONS][MASK_MASTER_SIZE * MASK_MASTER_SIZE]);
191
192
// 4 * MAX_WEDGE_SQUARE is an easy to compute and fairly tight upper bound
193
// on the sum of all mask sizes up to an including MAX_WEDGE_SQUARE.
194
DECLARE_ALIGNED(16, static uint8_t,
195
                wedge_mask_buf[2 * MAX_WEDGE_TYPES * 4 * MAX_WEDGE_SQUARE]);
196
197
DECLARE_ALIGNED(16, static uint8_t,
198
                smooth_interintra_mask_buf[INTERINTRA_MODES][BLOCK_SIZES_ALL]
199
                                          [MAX_WEDGE_SQUARE]);
200
201
static wedge_masks_type wedge_masks[BLOCK_SIZES_ALL][2];
202
203
static const wedge_code_type wedge_codebook_16_hgtw[16] = {
204
  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
205
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
206
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 4 },
207
  { WEDGE_HORIZONTAL, 4, 6 }, { WEDGE_VERTICAL, 4, 4 },
208
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
209
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
210
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
211
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
212
};
213
214
static const wedge_code_type wedge_codebook_16_hltw[16] = {
215
  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
216
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
217
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 4, 4 },
218
  { WEDGE_VERTICAL, 6, 4 },   { WEDGE_HORIZONTAL, 4, 4 },
219
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
220
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
221
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
222
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
223
};
224
225
static const wedge_code_type wedge_codebook_16_heqw[16] = {
226
  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
227
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
228
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 6 },
229
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 6, 4 },
230
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
231
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
232
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
233
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
234
};
235
236
const wedge_params_type av1_wedge_params_lookup[BLOCK_SIZES_ALL] = {
237
  { 0, NULL, NULL, NULL },
238
  { 0, NULL, NULL, NULL },
239
  { 0, NULL, NULL, NULL },
240
  { MAX_WEDGE_TYPES, wedge_codebook_16_heqw, wedge_signflip_lookup[BLOCK_8X8],
241
    wedge_masks[BLOCK_8X8] },
242
  { MAX_WEDGE_TYPES, wedge_codebook_16_hgtw, wedge_signflip_lookup[BLOCK_8X16],
243
    wedge_masks[BLOCK_8X16] },
244
  { MAX_WEDGE_TYPES, wedge_codebook_16_hltw, wedge_signflip_lookup[BLOCK_16X8],
245
    wedge_masks[BLOCK_16X8] },
246
  { MAX_WEDGE_TYPES, wedge_codebook_16_heqw, wedge_signflip_lookup[BLOCK_16X16],
247
    wedge_masks[BLOCK_16X16] },
248
  { MAX_WEDGE_TYPES, wedge_codebook_16_hgtw, wedge_signflip_lookup[BLOCK_16X32],
249
    wedge_masks[BLOCK_16X32] },
250
  { MAX_WEDGE_TYPES, wedge_codebook_16_hltw, wedge_signflip_lookup[BLOCK_32X16],
251
    wedge_masks[BLOCK_32X16] },
252
  { MAX_WEDGE_TYPES, wedge_codebook_16_heqw, wedge_signflip_lookup[BLOCK_32X32],
253
    wedge_masks[BLOCK_32X32] },
254
  { 0, NULL, NULL, NULL },
255
  { 0, NULL, NULL, NULL },
256
  { 0, NULL, NULL, NULL },
257
  { 0, NULL, NULL, NULL },
258
  { 0, NULL, NULL, NULL },
259
  { 0, NULL, NULL, NULL },
260
  { 0, NULL, NULL, NULL },
261
  { 0, NULL, NULL, NULL },
262
  { MAX_WEDGE_TYPES, wedge_codebook_16_hgtw, wedge_signflip_lookup[BLOCK_8X32],
263
    wedge_masks[BLOCK_8X32] },
264
  { MAX_WEDGE_TYPES, wedge_codebook_16_hltw, wedge_signflip_lookup[BLOCK_32X8],
265
    wedge_masks[BLOCK_32X8] },
266
  { 0, NULL, NULL, NULL },
267
  { 0, NULL, NULL, NULL },
268
};
269
270
static const uint8_t *get_wedge_mask_inplace(int wedge_index, int neg,
271
576
                                             BLOCK_SIZE sb_type) {
272
576
  const uint8_t *master;
273
576
  const int bh = block_size_high[sb_type];
274
576
  const int bw = block_size_wide[sb_type];
275
576
  const wedge_code_type *a =
276
576
      av1_wedge_params_lookup[sb_type].codebook + wedge_index;
277
576
  int woff, hoff;
278
576
  const uint8_t wsignflip =
279
576
      av1_wedge_params_lookup[sb_type].signflip[wedge_index];
280
281
576
  assert(wedge_index >= 0 && wedge_index < get_wedge_types_lookup(sb_type));
282
576
  woff = (a->x_offset * bw) >> 3;
283
576
  hoff = (a->y_offset * bh) >> 3;
284
576
  master = wedge_mask_obl[neg ^ wsignflip][a->direction] +
285
576
           MASK_MASTER_STRIDE * (MASK_MASTER_SIZE / 2 - hoff) +
286
576
           MASK_MASTER_SIZE / 2 - woff;
287
576
  return master;
288
576
}
289
290
const uint8_t *av1_get_compound_type_mask(
291
3.54k
    const INTERINTER_COMPOUND_DATA *const comp_data, BLOCK_SIZE sb_type) {
292
3.54k
  (void)sb_type;
293
3.54k
  switch (comp_data->type) {
294
2.63k
    case COMPOUND_WEDGE:
295
2.63k
      return av1_get_contiguous_soft_mask(comp_data->wedge_index,
296
2.63k
                                          comp_data->wedge_sign, sb_type);
297
913
    default: return comp_data->seg_mask;
298
3.54k
  }
299
3.54k
}
300
301
static inline void diffwtd_mask_d16(uint8_t *mask, int which_inverse,
302
                                    int mask_base, const CONV_BUF_TYPE *src0,
303
                                    int src0_stride, const CONV_BUF_TYPE *src1,
304
                                    int src1_stride, int h, int w,
305
309
                                    ConvolveParams *conv_params, int bd) {
306
309
  int round =
307
309
      2 * FILTER_BITS - conv_params->round_0 - conv_params->round_1 + (bd - 8);
308
309
  int i, j, m, diff;
309
4.58k
  for (i = 0; i < h; ++i) {
310
120k
    for (j = 0; j < w; ++j) {
311
116k
      diff = abs(src0[i * src0_stride + j] - src1[i * src1_stride + j]);
312
116k
      diff = ROUND_POWER_OF_TWO(diff, round);
313
116k
      m = clamp(mask_base + (diff / DIFF_FACTOR), 0, AOM_BLEND_A64_MAX_ALPHA);
314
116k
      mask[i * w + j] = which_inverse ? AOM_BLEND_A64_MAX_ALPHA - m : m;
315
116k
    }
316
4.27k
  }
317
309
}
318
319
void av1_build_compound_diffwtd_mask_d16_c(
320
    uint8_t *mask, DIFFWTD_MASK_TYPE mask_type, const CONV_BUF_TYPE *src0,
321
    int src0_stride, const CONV_BUF_TYPE *src1, int src1_stride, int h, int w,
322
309
    ConvolveParams *conv_params, int bd) {
323
309
  switch (mask_type) {
324
227
    case DIFFWTD_38:
325
227
      diffwtd_mask_d16(mask, 0, 38, src0, src0_stride, src1, src1_stride, h, w,
326
227
                       conv_params, bd);
327
227
      break;
328
82
    case DIFFWTD_38_INV:
329
82
      diffwtd_mask_d16(mask, 1, 38, src0, src0_stride, src1, src1_stride, h, w,
330
82
                       conv_params, bd);
331
82
      break;
332
0
    default: assert(0);
333
309
  }
334
309
}
335
336
static inline void diffwtd_mask(uint8_t *mask, int which_inverse, int mask_base,
337
                                const uint8_t *src0, int src0_stride,
338
                                const uint8_t *src1, int src1_stride, int h,
339
0
                                int w) {
340
0
  int i, j, m, diff;
341
0
  for (i = 0; i < h; ++i) {
342
0
    for (j = 0; j < w; ++j) {
343
0
      diff =
344
0
          abs((int)src0[i * src0_stride + j] - (int)src1[i * src1_stride + j]);
345
0
      m = clamp(mask_base + (diff / DIFF_FACTOR), 0, AOM_BLEND_A64_MAX_ALPHA);
346
0
      mask[i * w + j] = which_inverse ? AOM_BLEND_A64_MAX_ALPHA - m : m;
347
0
    }
348
0
  }
349
0
}
350
351
void av1_build_compound_diffwtd_mask_c(uint8_t *mask,
352
                                       DIFFWTD_MASK_TYPE mask_type,
353
                                       const uint8_t *src0, int src0_stride,
354
                                       const uint8_t *src1, int src1_stride,
355
0
                                       int h, int w) {
356
0
  switch (mask_type) {
357
0
    case DIFFWTD_38:
358
0
      diffwtd_mask(mask, 0, 38, src0, src0_stride, src1, src1_stride, h, w);
359
0
      break;
360
0
    case DIFFWTD_38_INV:
361
0
      diffwtd_mask(mask, 1, 38, src0, src0_stride, src1, src1_stride, h, w);
362
0
      break;
363
0
    default: assert(0);
364
0
  }
365
0
}
366
367
#if CONFIG_AV1_HIGHBITDEPTH
368
static AOM_FORCE_INLINE void diffwtd_mask_highbd(
369
    uint8_t *mask, int which_inverse, int mask_base, const uint16_t *src0,
370
    int src0_stride, const uint16_t *src1, int src1_stride, int h, int w,
371
0
    const unsigned int bd) {
372
0
  assert(bd >= 8);
373
0
  if (bd == 8) {
374
0
    if (which_inverse) {
375
0
      for (int i = 0; i < h; ++i) {
376
0
        for (int j = 0; j < w; ++j) {
377
0
          int diff = abs((int)src0[j] - (int)src1[j]) / DIFF_FACTOR;
378
0
          unsigned int m = negative_to_zero(mask_base + diff);
379
0
          m = AOMMIN(m, AOM_BLEND_A64_MAX_ALPHA);
380
0
          mask[j] = AOM_BLEND_A64_MAX_ALPHA - m;
381
0
        }
382
0
        src0 += src0_stride;
383
0
        src1 += src1_stride;
384
0
        mask += w;
385
0
      }
386
0
    } else {
387
0
      for (int i = 0; i < h; ++i) {
388
0
        for (int j = 0; j < w; ++j) {
389
0
          int diff = abs((int)src0[j] - (int)src1[j]) / DIFF_FACTOR;
390
0
          unsigned int m = negative_to_zero(mask_base + diff);
391
0
          m = AOMMIN(m, AOM_BLEND_A64_MAX_ALPHA);
392
0
          mask[j] = m;
393
0
        }
394
0
        src0 += src0_stride;
395
0
        src1 += src1_stride;
396
0
        mask += w;
397
0
      }
398
0
    }
399
0
  } else {
400
0
    const unsigned int bd_shift = bd - 8;
401
0
    if (which_inverse) {
402
0
      for (int i = 0; i < h; ++i) {
403
0
        for (int j = 0; j < w; ++j) {
404
0
          int diff =
405
0
              (abs((int)src0[j] - (int)src1[j]) >> bd_shift) / DIFF_FACTOR;
406
0
          unsigned int m = negative_to_zero(mask_base + diff);
407
0
          m = AOMMIN(m, AOM_BLEND_A64_MAX_ALPHA);
408
0
          mask[j] = AOM_BLEND_A64_MAX_ALPHA - m;
409
0
        }
410
0
        src0 += src0_stride;
411
0
        src1 += src1_stride;
412
0
        mask += w;
413
0
      }
414
0
    } else {
415
0
      for (int i = 0; i < h; ++i) {
416
0
        for (int j = 0; j < w; ++j) {
417
0
          int diff =
418
0
              (abs((int)src0[j] - (int)src1[j]) >> bd_shift) / DIFF_FACTOR;
419
0
          unsigned int m = negative_to_zero(mask_base + diff);
420
0
          m = AOMMIN(m, AOM_BLEND_A64_MAX_ALPHA);
421
0
          mask[j] = m;
422
0
        }
423
0
        src0 += src0_stride;
424
0
        src1 += src1_stride;
425
0
        mask += w;
426
0
      }
427
0
    }
428
0
  }
429
0
}
430
431
void av1_build_compound_diffwtd_mask_highbd_c(
432
    uint8_t *mask, DIFFWTD_MASK_TYPE mask_type, const uint8_t *src0,
433
    int src0_stride, const uint8_t *src1, int src1_stride, int h, int w,
434
0
    int bd) {
435
0
  switch (mask_type) {
436
0
    case DIFFWTD_38:
437
0
      diffwtd_mask_highbd(mask, 0, 38, CONVERT_TO_SHORTPTR(src0), src0_stride,
438
0
                          CONVERT_TO_SHORTPTR(src1), src1_stride, h, w, bd);
439
0
      break;
440
0
    case DIFFWTD_38_INV:
441
0
      diffwtd_mask_highbd(mask, 1, 38, CONVERT_TO_SHORTPTR(src0), src0_stride,
442
0
                          CONVERT_TO_SHORTPTR(src1), src1_stride, h, w, bd);
443
0
      break;
444
0
    default: assert(0);
445
0
  }
446
0
}
447
#endif  // CONFIG_AV1_HIGHBITDEPTH
448
449
2
static inline void init_wedge_master_masks(void) {
450
2
  int i, j;
451
2
  const int w = MASK_MASTER_SIZE;
452
2
  const int h = MASK_MASTER_SIZE;
453
2
  const int stride = MASK_MASTER_STRIDE;
454
  // Note: index [0] stores the masters, and [1] its complement.
455
  // Generate prototype by shifting the masters
456
2
  int shift = h / 4;
457
66
  for (i = 0; i < h; i += 2) {
458
64
    shift_copy(wedge_master_oblique_even,
459
64
               &wedge_mask_obl[0][WEDGE_OBLIQUE63][i * stride], shift,
460
64
               MASK_MASTER_SIZE);
461
64
    shift--;
462
64
    shift_copy(wedge_master_oblique_odd,
463
64
               &wedge_mask_obl[0][WEDGE_OBLIQUE63][(i + 1) * stride], shift,
464
64
               MASK_MASTER_SIZE);
465
64
    memcpy(&wedge_mask_obl[0][WEDGE_VERTICAL][i * stride],
466
64
           wedge_master_vertical,
467
64
           MASK_MASTER_SIZE * sizeof(wedge_master_vertical[0]));
468
64
    memcpy(&wedge_mask_obl[0][WEDGE_VERTICAL][(i + 1) * stride],
469
64
           wedge_master_vertical,
470
64
           MASK_MASTER_SIZE * sizeof(wedge_master_vertical[0]));
471
64
  }
472
473
130
  for (i = 0; i < h; ++i) {
474
8.32k
    for (j = 0; j < w; ++j) {
475
8.19k
      const int msk = wedge_mask_obl[0][WEDGE_OBLIQUE63][i * stride + j];
476
8.19k
      wedge_mask_obl[0][WEDGE_OBLIQUE27][j * stride + i] = msk;
477
8.19k
      wedge_mask_obl[0][WEDGE_OBLIQUE117][i * stride + w - 1 - j] =
478
8.19k
          wedge_mask_obl[0][WEDGE_OBLIQUE153][(w - 1 - j) * stride + i] =
479
8.19k
              (1 << WEDGE_WEIGHT_BITS) - msk;
480
8.19k
      wedge_mask_obl[1][WEDGE_OBLIQUE63][i * stride + j] =
481
8.19k
          wedge_mask_obl[1][WEDGE_OBLIQUE27][j * stride + i] =
482
8.19k
              (1 << WEDGE_WEIGHT_BITS) - msk;
483
8.19k
      wedge_mask_obl[1][WEDGE_OBLIQUE117][i * stride + w - 1 - j] =
484
8.19k
          wedge_mask_obl[1][WEDGE_OBLIQUE153][(w - 1 - j) * stride + i] = msk;
485
8.19k
      const int mskx = wedge_mask_obl[0][WEDGE_VERTICAL][i * stride + j];
486
8.19k
      wedge_mask_obl[0][WEDGE_HORIZONTAL][j * stride + i] = mskx;
487
8.19k
      wedge_mask_obl[1][WEDGE_VERTICAL][i * stride + j] =
488
8.19k
          wedge_mask_obl[1][WEDGE_HORIZONTAL][j * stride + i] =
489
8.19k
              (1 << WEDGE_WEIGHT_BITS) - mskx;
490
8.19k
    }
491
128
  }
492
2
}
493
494
2
static inline void init_wedge_masks(void) {
495
2
  uint8_t *dst = wedge_mask_buf;
496
2
  BLOCK_SIZE bsize;
497
2
  memset(wedge_masks, 0, sizeof(wedge_masks));
498
46
  for (bsize = BLOCK_4X4; bsize < BLOCK_SIZES_ALL; ++bsize) {
499
44
    const wedge_params_type *wedge_params = &av1_wedge_params_lookup[bsize];
500
44
    const int wtypes = wedge_params->wedge_types;
501
44
    if (wtypes == 0) continue;
502
18
    const uint8_t *mask;
503
18
    const int bw = block_size_wide[bsize];
504
18
    const int bh = block_size_high[bsize];
505
18
    int w;
506
306
    for (w = 0; w < wtypes; ++w) {
507
288
      mask = get_wedge_mask_inplace(w, 0, bsize);
508
288
      aom_convolve_copy(mask, MASK_MASTER_STRIDE, dst, bw /* dst_stride */, bw,
509
288
                        bh);
510
288
      wedge_params->masks[0][w] = dst;
511
288
      dst += bw * bh;
512
513
288
      mask = get_wedge_mask_inplace(w, 1, bsize);
514
288
      aom_convolve_copy(mask, MASK_MASTER_STRIDE, dst, bw /* dst_stride */, bw,
515
288
                        bh);
516
288
      wedge_params->masks[1][w] = dst;
517
288
      dst += bw * bh;
518
288
    }
519
18
    assert(sizeof(wedge_mask_buf) >= (size_t)(dst - wedge_mask_buf));
520
18
  }
521
2
}
522
523
/* clang-format off */
524
static const uint8_t ii_weights1d[MAX_SB_SIZE] = {
525
  60, 58, 56, 54, 52, 50, 48, 47, 45, 44, 42, 41, 39, 38, 37, 35, 34, 33, 32,
526
  31, 30, 29, 28, 27, 26, 25, 24, 23, 22, 22, 21, 20, 19, 19, 18, 18, 17, 16,
527
  16, 15, 15, 14, 14, 13, 13, 12, 12, 12, 11, 11, 10, 10, 10,  9,  9,  9,  8,
528
  8,  8,  8,  7,  7,  7,  7,  6,  6,  6,  6,  6,  5,  5,  5,  5,  5,  4,  4,
529
  4,  4,  4,  4,  4,  4,  3,  3,  3,  3,  3,  3,  3,  3,  3,  2,  2,  2,  2,
530
  2,  2,  2,  2,  2,  2,  2,  2,  2,  2,  2,  1,  1,  1,  1,  1,  1,  1,  1,
531
  1,  1,  1,  1,  1,  1,  1,  1,  1,  1,  1,  1,  1,  1
532
};
533
static uint8_t ii_size_scales[BLOCK_SIZES_ALL] = {
534
    32, 16, 16, 16, 8, 8, 8, 4,
535
    4,  4,  2,  2,  2, 1, 1, 1,
536
    8,  8,  4,  4,  2, 2
537
};
538
/* clang-format on */
539
540
static inline void build_smooth_interintra_mask(uint8_t *mask, int stride,
541
                                                BLOCK_SIZE plane_bsize,
542
2.14k
                                                INTERINTRA_MODE mode) {
543
2.14k
  int i, j;
544
2.14k
  const int bw = block_size_wide[plane_bsize];
545
2.14k
  const int bh = block_size_high[plane_bsize];
546
2.14k
  const int size_scale = ii_size_scales[plane_bsize];
547
548
2.14k
  switch (mode) {
549
608
    case II_V_PRED:
550
7.29k
      for (i = 0; i < bh; ++i) {
551
6.68k
        memset(mask, ii_weights1d[i * size_scale], bw * sizeof(mask[0]));
552
6.68k
        mask += stride;
553
6.68k
      }
554
608
      break;
555
556
296
    case II_H_PRED:
557
3.92k
      for (i = 0; i < bh; ++i) {
558
51.1k
        for (j = 0; j < bw; ++j) mask[j] = ii_weights1d[j * size_scale];
559
3.63k
        mask += stride;
560
3.63k
      }
561
296
      break;
562
563
1.18k
    case II_SMOOTH_PRED:
564
10.8k
      for (i = 0; i < bh; ++i) {
565
65.8k
        for (j = 0; j < bw; ++j)
566
56.1k
          mask[j] = ii_weights1d[(i < j ? i : j) * size_scale];
567
9.64k
        mask += stride;
568
9.64k
      }
569
1.18k
      break;
570
571
58
    case II_DC_PRED:
572
58
    default:
573
1.13k
      for (i = 0; i < bh; ++i) {
574
1.08k
        memset(mask, 32, bw * sizeof(mask[0]));
575
1.08k
        mask += stride;
576
1.08k
      }
577
58
      break;
578
2.14k
  }
579
2.14k
}
580
581
2
static inline void init_smooth_interintra_masks(void) {
582
10
  for (int m = 0; m < INTERINTRA_MODES; ++m) {
583
184
    for (int bs = 0; bs < BLOCK_SIZES_ALL; ++bs) {
584
176
      const int bw = block_size_wide[bs];
585
176
      const int bh = block_size_high[bs];
586
176
      if (bw > MAX_WEDGE_SIZE || bh > MAX_WEDGE_SIZE) continue;
587
112
      build_smooth_interintra_mask(smooth_interintra_mask_buf[m][bs], bw, bs,
588
112
                                   m);
589
112
    }
590
8
  }
591
2
}
592
593
// Equation of line: f(x, y) = a[0]*(x - a[2]*w/8) + a[1]*(y - a[3]*h/8) = 0
594
2
static void init_all_wedge_masks(void) {
595
2
  init_wedge_master_masks();
596
2
  init_wedge_masks();
597
2
  init_smooth_interintra_masks();
598
2
}
599
600
11.7k
void av1_init_wedge_masks(void) { aom_once(init_all_wedge_masks); }
601
602
static inline void build_masked_compound_no_round(
603
    uint8_t *dst, int dst_stride, const CONV_BUF_TYPE *src0, int src0_stride,
604
    const CONV_BUF_TYPE *src1, int src1_stride,
605
    const INTERINTER_COMPOUND_DATA *const comp_data, BLOCK_SIZE sb_type, int h,
606
3.54k
    int w, InterPredParams *inter_pred_params) {
607
3.54k
  const int ssy = inter_pred_params->subsampling_y;
608
3.54k
  const int ssx = inter_pred_params->subsampling_x;
609
3.54k
  const uint8_t *mask = av1_get_compound_type_mask(comp_data, sb_type);
610
3.54k
  const int mask_stride = block_size_wide[sb_type];
611
3.54k
#if CONFIG_AV1_HIGHBITDEPTH
612
3.54k
  if (inter_pred_params->use_hbd_buf) {
613
2.16k
    aom_highbd_blend_a64_d16_mask(dst, dst_stride, src0, src0_stride, src1,
614
2.16k
                                  src1_stride, mask, mask_stride, w, h, ssx,
615
2.16k
                                  ssy, &inter_pred_params->conv_params,
616
2.16k
                                  inter_pred_params->bit_depth);
617
2.16k
  } else {
618
1.37k
    aom_lowbd_blend_a64_d16_mask(dst, dst_stride, src0, src0_stride, src1,
619
1.37k
                                 src1_stride, mask, mask_stride, w, h, ssx, ssy,
620
1.37k
                                 &inter_pred_params->conv_params);
621
1.37k
  }
622
#else
623
  aom_lowbd_blend_a64_d16_mask(dst, dst_stride, src0, src0_stride, src1,
624
                               src1_stride, mask, mask_stride, w, h, ssx, ssy,
625
                               &inter_pred_params->conv_params);
626
#endif
627
3.54k
}
628
629
void av1_make_masked_inter_predictor(const uint8_t *pre, int pre_stride,
630
                                     uint8_t *dst, int dst_stride,
631
                                     InterPredParams *inter_pred_params,
632
3.54k
                                     const SubpelParams *subpel_params) {
633
3.54k
  const INTERINTER_COMPOUND_DATA *comp_data = &inter_pred_params->mask_comp;
634
3.54k
  BLOCK_SIZE sb_type = inter_pred_params->sb_type;
635
636
  // We're going to call av1_make_inter_predictor to generate a prediction into
637
  // a temporary buffer, then will blend that temporary buffer with that from
638
  // the other reference.
639
3.54k
  DECLARE_ALIGNED(32, uint8_t, tmp_buf[2 * MAX_SB_SQUARE]);
640
3.54k
  uint8_t *tmp_dst =
641
3.54k
      inter_pred_params->use_hbd_buf ? CONVERT_TO_BYTEPTR(tmp_buf) : tmp_buf;
642
643
3.54k
  const int tmp_buf_stride = MAX_SB_SIZE;
644
3.54k
  CONV_BUF_TYPE *org_dst = inter_pred_params->conv_params.dst;
645
3.54k
  int org_dst_stride = inter_pred_params->conv_params.dst_stride;
646
3.54k
  CONV_BUF_TYPE *tmp_buf16 = (CONV_BUF_TYPE *)tmp_buf;
647
3.54k
  inter_pred_params->conv_params.dst = tmp_buf16;
648
3.54k
  inter_pred_params->conv_params.dst_stride = tmp_buf_stride;
649
3.54k
  assert(inter_pred_params->conv_params.do_average == 0);
650
651
  // This will generate a prediction in tmp_buf for the second reference
652
3.54k
  av1_make_inter_predictor(pre, pre_stride, tmp_dst, MAX_SB_SIZE,
653
3.54k
                           inter_pred_params, subpel_params);
654
655
3.54k
  if (!inter_pred_params->conv_params.plane &&
656
1.18k
      comp_data->type == COMPOUND_DIFFWTD) {
657
309
    av1_build_compound_diffwtd_mask_d16(
658
309
        comp_data->seg_mask, comp_data->mask_type, org_dst, org_dst_stride,
659
309
        tmp_buf16, tmp_buf_stride, inter_pred_params->block_height,
660
309
        inter_pred_params->block_width, &inter_pred_params->conv_params,
661
309
        inter_pred_params->bit_depth);
662
309
  }
663
3.54k
  build_masked_compound_no_round(
664
3.54k
      dst, dst_stride, org_dst, org_dst_stride, tmp_buf16, tmp_buf_stride,
665
3.54k
      comp_data, sb_type, inter_pred_params->block_height,
666
3.54k
      inter_pred_params->block_width, inter_pred_params);
667
3.54k
}
668
669
void av1_dist_wtd_comp_weight_assign(const AV1_COMMON *cm,
670
                                     const MB_MODE_INFO *mbmi, int *fwd_offset,
671
                                     int *bck_offset,
672
                                     int *use_dist_wtd_comp_avg,
673
405k
                                     int is_compound) {
674
405k
  assert(fwd_offset != NULL && bck_offset != NULL);
675
405k
  if (!is_compound || mbmi->compound_idx) {
676
390k
    *fwd_offset = 8;
677
390k
    *bck_offset = 8;
678
390k
    *use_dist_wtd_comp_avg = 0;
679
390k
    return;
680
390k
  }
681
682
15.1k
  *use_dist_wtd_comp_avg = 1;
683
15.1k
  const RefCntBuffer *const bck_buf = get_ref_frame_buf(cm, mbmi->ref_frame[0]);
684
15.1k
  const RefCntBuffer *const fwd_buf = get_ref_frame_buf(cm, mbmi->ref_frame[1]);
685
15.1k
  const int cur_frame_index = cm->cur_frame->order_hint;
686
15.1k
  int bck_frame_index = 0, fwd_frame_index = 0;
687
688
15.1k
  if (bck_buf != NULL) bck_frame_index = bck_buf->order_hint;
689
15.1k
  if (fwd_buf != NULL) fwd_frame_index = fwd_buf->order_hint;
690
691
15.1k
  int d0 = clamp(abs(get_relative_dist(&cm->seq_params->order_hint_info,
692
15.1k
                                       fwd_frame_index, cur_frame_index)),
693
15.1k
                 0, MAX_FRAME_DISTANCE);
694
15.1k
  int d1 = clamp(abs(get_relative_dist(&cm->seq_params->order_hint_info,
695
15.1k
                                       cur_frame_index, bck_frame_index)),
696
15.1k
                 0, MAX_FRAME_DISTANCE);
697
698
15.1k
  const int order = d0 <= d1;
699
700
15.1k
  if (d0 == 0 || d1 == 0) {
701
2.28k
    *fwd_offset = quant_dist_lookup_table[3][order];
702
2.28k
    *bck_offset = quant_dist_lookup_table[3][1 - order];
703
2.28k
    return;
704
2.28k
  }
705
706
12.8k
  int i;
707
19.7k
  for (i = 0; i < 3; ++i) {
708
18.3k
    int c0 = quant_dist_weight[i][order];
709
18.3k
    int c1 = quant_dist_weight[i][!order];
710
18.3k
    int d0_c0 = d0 * c0;
711
18.3k
    int d1_c1 = d1 * c1;
712
18.3k
    if ((d0 > d1 && d0_c0 < d1_c1) || (d0 <= d1 && d0_c0 > d1_c1)) break;
713
18.3k
  }
714
715
12.8k
  *fwd_offset = quant_dist_lookup_table[i][order];
716
12.8k
  *bck_offset = quant_dist_lookup_table[i][1 - order];
717
12.8k
}
718
719
void av1_setup_dst_planes(struct macroblockd_plane *planes, BLOCK_SIZE bsize,
720
                          const YV12_BUFFER_CONFIG *src, int mi_row, int mi_col,
721
7.35M
                          const int plane_start, const int plane_end) {
722
  // We use AOMMIN(num_planes, MAX_MB_PLANE) instead of num_planes to quiet
723
  // the static analysis warnings.
724
28.6M
  for (int i = plane_start; i < AOMMIN(plane_end, MAX_MB_PLANE); ++i) {
725
21.3M
    struct macroblockd_plane *const pd = &planes[i];
726
21.3M
    const int is_uv = i > 0;
727
21.3M
    setup_pred_plane(&pd->dst, bsize, src->buffers[i], src->crop_widths[is_uv],
728
21.3M
                     src->crop_heights[is_uv], src->strides[is_uv], mi_row,
729
21.3M
                     mi_col, NULL, pd->subsampling_x, pd->subsampling_y);
730
21.3M
  }
731
7.35M
}
732
733
void av1_setup_pre_planes(MACROBLOCKD *xd, int idx,
734
                          const YV12_BUFFER_CONFIG *src, int mi_row, int mi_col,
735
                          const struct scale_factors *sf,
736
54.2k
                          const int num_planes) {
737
54.2k
  if (src != NULL) {
738
    // We use AOMMIN(num_planes, MAX_MB_PLANE) instead of num_planes to quiet
739
    // the static analysis warnings.
740
200k
    for (int i = 0; i < AOMMIN(num_planes, MAX_MB_PLANE); ++i) {
741
146k
      struct macroblockd_plane *const pd = &xd->plane[i];
742
146k
      const int is_uv = i > 0;
743
146k
      setup_pred_plane(&pd->pre[idx], xd->mi[0]->bsize, src->buffers[i],
744
146k
                       src->crop_widths[is_uv], src->crop_heights[is_uv],
745
146k
                       src->strides[is_uv], mi_row, mi_col, sf,
746
146k
                       pd->subsampling_x, pd->subsampling_y);
747
146k
    }
748
54.2k
  }
749
54.2k
}
750
751
// obmc_mask_N[overlap_position]
752
static const uint8_t obmc_mask_1[1] = { 64 };
753
DECLARE_ALIGNED(2, static const uint8_t, obmc_mask_2[2]) = { 45, 64 };
754
755
DECLARE_ALIGNED(4, static const uint8_t, obmc_mask_4[4]) = { 39, 50, 59, 64 };
756
757
static const uint8_t obmc_mask_8[8] = { 36, 42, 48, 53, 57, 61, 64, 64 };
758
759
static const uint8_t obmc_mask_16[16] = { 34, 37, 40, 43, 46, 49, 52, 54,
760
                                          56, 58, 60, 61, 64, 64, 64, 64 };
761
762
static const uint8_t obmc_mask_32[32] = { 33, 35, 36, 38, 40, 41, 43, 44,
763
                                          45, 47, 48, 50, 51, 52, 53, 55,
764
                                          56, 57, 58, 59, 60, 60, 61, 62,
765
                                          64, 64, 64, 64, 64, 64, 64, 64 };
766
767
static const uint8_t obmc_mask_64[64] = {
768
  33, 34, 35, 35, 36, 37, 38, 39, 40, 40, 41, 42, 43, 44, 44, 44,
769
  45, 46, 47, 47, 48, 49, 50, 51, 51, 51, 52, 52, 53, 54, 55, 56,
770
  56, 56, 57, 57, 58, 58, 59, 60, 60, 60, 60, 60, 61, 62, 62, 62,
771
  62, 62, 63, 63, 63, 63, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
772
};
773
774
8.76k
const uint8_t *av1_get_obmc_mask(int length) {
775
8.76k
  switch (length) {
776
0
    case 1: return obmc_mask_1;
777
478
    case 2: return obmc_mask_2;
778
6.37k
    case 4: return obmc_mask_4;
779
1.84k
    case 8: return obmc_mask_8;
780
52
    case 16: return obmc_mask_16;
781
11
    case 32: return obmc_mask_32;
782
0
    case 64: return obmc_mask_64;
783
0
    default: assert(0); return NULL;
784
8.76k
  }
785
8.76k
}
786
787
static inline void increment_int_ptr(MACROBLOCKD *xd, int rel_mi_row,
788
                                     int rel_mi_col, uint8_t op_mi_size,
789
                                     int dir, MB_MODE_INFO *mi, void *fun_ctxt,
790
19.9k
                                     const int num_planes) {
791
19.9k
  (void)xd;
792
19.9k
  (void)rel_mi_row;
793
19.9k
  (void)rel_mi_col;
794
19.9k
  (void)op_mi_size;
795
19.9k
  (void)dir;
796
19.9k
  (void)mi;
797
19.9k
  ++*(uint8_t *)fun_ctxt;
798
19.9k
  (void)num_planes;
799
19.9k
}
800
801
59.4k
void av1_count_overlappable_neighbors(const AV1_COMMON *cm, MACROBLOCKD *xd) {
802
59.4k
  MB_MODE_INFO *mbmi = xd->mi[0];
803
804
59.4k
  mbmi->overlappable_neighbors = 0;
805
806
59.4k
  if (!is_motion_variation_allowed_bsize(mbmi->bsize)) return;
807
808
28.5k
  foreach_overlappable_nb_above(cm, xd, INT_MAX, increment_int_ptr,
809
28.5k
                                &mbmi->overlappable_neighbors);
810
28.5k
  if (mbmi->overlappable_neighbors) return;
811
20.2k
  foreach_overlappable_nb_left(cm, xd, INT_MAX, increment_int_ptr,
812
20.2k
                               &mbmi->overlappable_neighbors);
813
20.2k
}
814
815
// HW does not support < 4x4 prediction. To limit the bandwidth requirement, if
816
// block-size of current plane is smaller than 8x8, always only blend with the
817
// left neighbor(s) (skip blending with the above side).
818
#define DISABLE_CHROMA_U8X8_OBMC 0  // 0: one-sided obmc; 1: disable
819
820
int av1_skip_u4x4_pred_in_obmc(BLOCK_SIZE bsize,
821
18.3k
                               const struct macroblockd_plane *pd, int dir) {
822
18.3k
  assert(is_motion_variation_allowed_bsize(bsize));
823
824
18.3k
  const BLOCK_SIZE bsize_plane =
825
18.3k
      get_plane_block_size(bsize, pd->subsampling_x, pd->subsampling_y);
826
18.3k
  switch (bsize_plane) {
827
#if DISABLE_CHROMA_U8X8_OBMC
828
    case BLOCK_4X4:
829
    case BLOCK_8X4:
830
    case BLOCK_4X8: return 1;
831
#else
832
8
    case BLOCK_4X4:
833
8
    case BLOCK_8X4:
834
1.77k
    case BLOCK_4X8: return dir == 0;
835
0
#endif
836
16.5k
    default: return 0;
837
18.3k
  }
838
18.3k
}
839
840
#if CONFIG_AV1_DECODER
841
3.05k
static void modify_neighbor_predictor_for_obmc(MB_MODE_INFO *mbmi) {
842
3.05k
  mbmi->ref_frame[1] = NONE_FRAME;
843
3.05k
  mbmi->interinter_comp.type = COMPOUND_AVERAGE;
844
3.05k
}
845
#endif  // CONFIG_AV1_DECODER
846
847
struct obmc_inter_pred_ctxt {
848
  uint8_t **adjacent;
849
  int *adjacent_stride;
850
};
851
852
static inline void build_obmc_inter_pred_above(
853
    MACROBLOCKD *xd, int rel_mi_row, int rel_mi_col, uint8_t op_mi_size,
854
1.05k
    int dir, MB_MODE_INFO *above_mi, void *fun_ctxt, const int num_planes) {
855
1.05k
  (void)above_mi;
856
1.05k
  (void)rel_mi_row;
857
1.05k
  (void)dir;
858
1.05k
  struct obmc_inter_pred_ctxt *ctxt = (struct obmc_inter_pred_ctxt *)fun_ctxt;
859
1.05k
  const BLOCK_SIZE bsize = xd->mi[0]->bsize;
860
1.05k
  const int overlap =
861
1.05k
      AOMMIN(block_size_high[bsize], block_size_high[BLOCK_64X64]) >> 1;
862
863
4.23k
  for (int plane = 0; plane < num_planes; ++plane) {
864
3.17k
    const struct macroblockd_plane *pd = &xd->plane[plane];
865
3.17k
    const int bw = (op_mi_size * MI_SIZE) >> pd->subsampling_x;
866
3.17k
    const int bh = overlap >> pd->subsampling_y;
867
3.17k
    const int plane_col = (rel_mi_col * MI_SIZE) >> pd->subsampling_x;
868
869
3.17k
    if (av1_skip_u4x4_pred_in_obmc(bsize, pd, 0)) continue;
870
871
2.76k
    const int dst_stride = pd->dst.stride;
872
2.76k
    uint8_t *const dst = &pd->dst.buf[plane_col];
873
2.76k
    const int tmp_stride = ctxt->adjacent_stride[plane];
874
2.76k
    const uint8_t *const tmp = &ctxt->adjacent[plane][plane_col];
875
2.76k
    const uint8_t *const mask = av1_get_obmc_mask(bh);
876
2.76k
#if CONFIG_AV1_HIGHBITDEPTH
877
2.76k
    const int is_hbd = is_cur_buf_hbd(xd);
878
2.76k
    if (is_hbd)
879
2.20k
      aom_highbd_blend_a64_vmask(dst, dst_stride, dst, dst_stride, tmp,
880
2.20k
                                 tmp_stride, mask, bw, bh, xd->bd);
881
559
    else
882
559
      aom_blend_a64_vmask(dst, dst_stride, dst, dst_stride, tmp, tmp_stride,
883
559
                          mask, bw, bh);
884
#else
885
    aom_blend_a64_vmask(dst, dst_stride, dst, dst_stride, tmp, tmp_stride, mask,
886
                        bw, bh);
887
#endif
888
2.76k
  }
889
1.05k
}
890
891
static inline void build_obmc_inter_pred_left(
892
    MACROBLOCKD *xd, int rel_mi_row, int rel_mi_col, uint8_t op_mi_size,
893
1.99k
    int dir, MB_MODE_INFO *left_mi, void *fun_ctxt, const int num_planes) {
894
1.99k
  (void)left_mi;
895
1.99k
  (void)rel_mi_col;
896
1.99k
  (void)dir;
897
1.99k
  struct obmc_inter_pred_ctxt *ctxt = (struct obmc_inter_pred_ctxt *)fun_ctxt;
898
1.99k
  const BLOCK_SIZE bsize = xd->mi[0]->bsize;
899
1.99k
  const int overlap =
900
1.99k
      AOMMIN(block_size_wide[bsize], block_size_wide[BLOCK_64X64]) >> 1;
901
902
7.99k
  for (int plane = 0; plane < num_planes; ++plane) {
903
5.99k
    const struct macroblockd_plane *pd = &xd->plane[plane];
904
5.99k
    const int bw = overlap >> pd->subsampling_x;
905
5.99k
    const int bh = (op_mi_size * MI_SIZE) >> pd->subsampling_y;
906
5.99k
    const int plane_row = (rel_mi_row * MI_SIZE) >> pd->subsampling_y;
907
908
5.99k
    if (av1_skip_u4x4_pred_in_obmc(bsize, pd, 1)) continue;
909
910
5.99k
    const int dst_stride = pd->dst.stride;
911
5.99k
    uint8_t *const dst = &pd->dst.buf[plane_row * dst_stride];
912
5.99k
    const int tmp_stride = ctxt->adjacent_stride[plane];
913
5.99k
    const uint8_t *const tmp = &ctxt->adjacent[plane][plane_row * tmp_stride];
914
5.99k
    const uint8_t *const mask = av1_get_obmc_mask(bw);
915
916
5.99k
#if CONFIG_AV1_HIGHBITDEPTH
917
5.99k
    const int is_hbd = is_cur_buf_hbd(xd);
918
5.99k
    if (is_hbd)
919
3.18k
      aom_highbd_blend_a64_hmask(dst, dst_stride, dst, dst_stride, tmp,
920
3.18k
                                 tmp_stride, mask, bw, bh, xd->bd);
921
2.81k
    else
922
2.81k
      aom_blend_a64_hmask(dst, dst_stride, dst, dst_stride, tmp, tmp_stride,
923
2.81k
                          mask, bw, bh);
924
#else
925
    aom_blend_a64_hmask(dst, dst_stride, dst, dst_stride, tmp, tmp_stride, mask,
926
                        bw, bh);
927
#endif
928
5.99k
  }
929
1.99k
}
930
931
// This function combines motion compensated predictions that are generated by
932
// top/left neighboring blocks' inter predictors with the regular inter
933
// prediction. We assume the original prediction (bmc) is stored in
934
// xd->plane[].dst.buf
935
void av1_build_obmc_inter_prediction(const AV1_COMMON *cm, MACROBLOCKD *xd,
936
                                     uint8_t *above[MAX_MB_PLANE],
937
                                     int above_stride[MAX_MB_PLANE],
938
                                     uint8_t *left[MAX_MB_PLANE],
939
2.68k
                                     int left_stride[MAX_MB_PLANE]) {
940
2.68k
  const BLOCK_SIZE bsize = xd->mi[0]->bsize;
941
942
  // handle above row
943
2.68k
  struct obmc_inter_pred_ctxt ctxt_above = { above, above_stride };
944
2.68k
  foreach_overlappable_nb_above(cm, xd,
945
2.68k
                                max_neighbor_obmc[mi_size_wide_log2[bsize]],
946
2.68k
                                build_obmc_inter_pred_above, &ctxt_above);
947
948
  // handle left column
949
2.68k
  struct obmc_inter_pred_ctxt ctxt_left = { left, left_stride };
950
2.68k
  foreach_overlappable_nb_left(cm, xd,
951
2.68k
                               max_neighbor_obmc[mi_size_high_log2[bsize]],
952
2.68k
                               build_obmc_inter_pred_left, &ctxt_left);
953
2.68k
}
954
955
void av1_setup_obmc_dst_bufs(MACROBLOCKD *xd, uint8_t **dst_buf1,
956
2.68k
                             uint8_t **dst_buf2) {
957
2.68k
  if (is_cur_buf_hbd(xd)) {
958
1.57k
    int len = sizeof(uint16_t);
959
1.57k
    dst_buf1[0] = CONVERT_TO_BYTEPTR(xd->tmp_obmc_bufs[0]);
960
1.57k
    dst_buf1[1] =
961
1.57k
        CONVERT_TO_BYTEPTR(xd->tmp_obmc_bufs[0] + MAX_SB_SQUARE * len);
962
1.57k
    dst_buf1[2] =
963
1.57k
        CONVERT_TO_BYTEPTR(xd->tmp_obmc_bufs[0] + MAX_SB_SQUARE * 2 * len);
964
1.57k
    dst_buf2[0] = CONVERT_TO_BYTEPTR(xd->tmp_obmc_bufs[1]);
965
1.57k
    dst_buf2[1] =
966
1.57k
        CONVERT_TO_BYTEPTR(xd->tmp_obmc_bufs[1] + MAX_SB_SQUARE * len);
967
1.57k
    dst_buf2[2] =
968
1.57k
        CONVERT_TO_BYTEPTR(xd->tmp_obmc_bufs[1] + MAX_SB_SQUARE * 2 * len);
969
1.57k
  } else {
970
1.10k
    dst_buf1[0] = xd->tmp_obmc_bufs[0];
971
1.10k
    dst_buf1[1] = xd->tmp_obmc_bufs[0] + MAX_SB_SQUARE;
972
1.10k
    dst_buf1[2] = xd->tmp_obmc_bufs[0] + MAX_SB_SQUARE * 2;
973
1.10k
    dst_buf2[0] = xd->tmp_obmc_bufs[1];
974
1.10k
    dst_buf2[1] = xd->tmp_obmc_bufs[1] + MAX_SB_SQUARE;
975
1.10k
    dst_buf2[2] = xd->tmp_obmc_bufs[1] + MAX_SB_SQUARE * 2;
976
1.10k
  }
977
2.68k
}
978
979
#if CONFIG_AV1_DECODER
980
void av1_setup_build_prediction_by_above_pred(
981
    MACROBLOCKD *xd, int rel_mi_col, uint8_t above_mi_width,
982
    MB_MODE_INFO *above_mbmi, struct build_prediction_ctxt *ctxt,
983
1.05k
    const int num_planes) {
984
1.05k
  const BLOCK_SIZE a_bsize = AOMMAX(BLOCK_8X8, above_mbmi->bsize);
985
1.05k
  const int above_mi_col = xd->mi_col + rel_mi_col;
986
987
1.05k
  modify_neighbor_predictor_for_obmc(above_mbmi);
988
989
4.23k
  for (int j = 0; j < num_planes; ++j) {
990
3.17k
    struct macroblockd_plane *const pd = &xd->plane[j];
991
3.17k
    setup_pred_plane(&pd->dst, a_bsize, ctxt->tmp_buf[j], ctxt->tmp_width[j],
992
3.17k
                     ctxt->tmp_height[j], ctxt->tmp_stride[j], 0, rel_mi_col,
993
3.17k
                     NULL, pd->subsampling_x, pd->subsampling_y);
994
3.17k
  }
995
996
1.05k
  const int num_refs = 1 + has_second_ref(above_mbmi);
997
998
2.11k
  for (int ref = 0; ref < num_refs; ++ref) {
999
1.05k
    const MV_REFERENCE_FRAME frame = above_mbmi->ref_frame[ref];
1000
1001
1.05k
    const RefCntBuffer *const ref_buf = get_ref_frame_buf(ctxt->cm, frame);
1002
1.05k
    const struct scale_factors *const sf =
1003
1.05k
        get_ref_scale_factors_const(ctxt->cm, frame);
1004
1.05k
    xd->block_ref_scale_factors[ref] = sf;
1005
1.05k
    if ((!av1_is_valid_scale(sf)))
1006
0
      aom_internal_error(xd->error_info, AOM_CODEC_UNSUP_BITSTREAM,
1007
0
                         "Reference frame has invalid dimensions");
1008
1.05k
    av1_setup_pre_planes(xd, ref, &ref_buf->buf, xd->mi_row, above_mi_col, sf,
1009
1.05k
                         num_planes);
1010
1.05k
  }
1011
1012
1.05k
  xd->mb_to_left_edge = 8 * MI_SIZE * (-above_mi_col);
1013
1.05k
  xd->mb_to_right_edge =
1014
1.05k
      ctxt->mb_to_far_edge +
1015
1.05k
      (xd->width - rel_mi_col - above_mi_width) * MI_SIZE * 8;
1016
1.05k
}
1017
1018
void av1_setup_build_prediction_by_left_pred(MACROBLOCKD *xd, int rel_mi_row,
1019
                                             uint8_t left_mi_height,
1020
                                             MB_MODE_INFO *left_mbmi,
1021
                                             struct build_prediction_ctxt *ctxt,
1022
1.99k
                                             const int num_planes) {
1023
1.99k
  const BLOCK_SIZE l_bsize = AOMMAX(BLOCK_8X8, left_mbmi->bsize);
1024
1.99k
  const int left_mi_row = xd->mi_row + rel_mi_row;
1025
1026
1.99k
  modify_neighbor_predictor_for_obmc(left_mbmi);
1027
1028
7.99k
  for (int j = 0; j < num_planes; ++j) {
1029
5.99k
    struct macroblockd_plane *const pd = &xd->plane[j];
1030
5.99k
    setup_pred_plane(&pd->dst, l_bsize, ctxt->tmp_buf[j], ctxt->tmp_width[j],
1031
5.99k
                     ctxt->tmp_height[j], ctxt->tmp_stride[j], rel_mi_row, 0,
1032
5.99k
                     NULL, pd->subsampling_x, pd->subsampling_y);
1033
5.99k
  }
1034
1035
1.99k
  const int num_refs = 1 + has_second_ref(left_mbmi);
1036
1037
3.99k
  for (int ref = 0; ref < num_refs; ++ref) {
1038
1.99k
    const MV_REFERENCE_FRAME frame = left_mbmi->ref_frame[ref];
1039
1040
1.99k
    const RefCntBuffer *const ref_buf = get_ref_frame_buf(ctxt->cm, frame);
1041
1.99k
    const struct scale_factors *const ref_scale_factors =
1042
1.99k
        get_ref_scale_factors_const(ctxt->cm, frame);
1043
1044
1.99k
    xd->block_ref_scale_factors[ref] = ref_scale_factors;
1045
1.99k
    if ((!av1_is_valid_scale(ref_scale_factors)))
1046
0
      aom_internal_error(xd->error_info, AOM_CODEC_UNSUP_BITSTREAM,
1047
0
                         "Reference frame has invalid dimensions");
1048
1.99k
    av1_setup_pre_planes(xd, ref, &ref_buf->buf, left_mi_row, xd->mi_col,
1049
1.99k
                         ref_scale_factors, num_planes);
1050
1.99k
  }
1051
1052
1.99k
  xd->mb_to_top_edge = GET_MV_SUBPEL(MI_SIZE * (-left_mi_row));
1053
1.99k
  xd->mb_to_bottom_edge =
1054
1.99k
      ctxt->mb_to_far_edge +
1055
1.99k
      GET_MV_SUBPEL((xd->height - rel_mi_row - left_mi_height) * MI_SIZE);
1056
1.99k
}
1057
#endif  // CONFIG_AV1_DECODER
1058
1059
static inline void combine_interintra(
1060
    INTERINTRA_MODE mode, int8_t use_wedge_interintra, int8_t wedge_index,
1061
    int8_t wedge_sign, BLOCK_SIZE bsize, BLOCK_SIZE plane_bsize,
1062
    uint8_t *comppred, int compstride, const uint8_t *interpred,
1063
1.09k
    int interstride, const uint8_t *intrapred, int intrastride) {
1064
1.09k
  const int bw = block_size_wide[plane_bsize];
1065
1.09k
  const int bh = block_size_high[plane_bsize];
1066
1067
1.09k
  if (use_wedge_interintra) {
1068
515
    if (av1_is_wedge_used(bsize)) {
1069
515
      const uint8_t *mask =
1070
515
          av1_get_contiguous_soft_mask(wedge_index, wedge_sign, bsize);
1071
515
      const int subw = 2 * mi_size_wide[bsize] == bw;
1072
515
      const int subh = 2 * mi_size_high[bsize] == bh;
1073
515
      aom_blend_a64_mask(comppred, compstride, intrapred, intrastride,
1074
515
                         interpred, interstride, mask, block_size_wide[bsize],
1075
515
                         bw, bh, subw, subh);
1076
515
    }
1077
515
    return;
1078
515
  }
1079
1080
579
  const uint8_t *mask = smooth_interintra_mask_buf[mode][plane_bsize];
1081
579
  aom_blend_a64_mask(comppred, compstride, intrapred, intrastride, interpred,
1082
579
                     interstride, mask, bw, bw, bh, 0, 0);
1083
579
}
1084
1085
#if CONFIG_AV1_HIGHBITDEPTH
1086
static inline void combine_interintra_highbd(
1087
    INTERINTRA_MODE mode, int8_t use_wedge_interintra, int8_t wedge_index,
1088
    int8_t wedge_sign, BLOCK_SIZE bsize, BLOCK_SIZE plane_bsize,
1089
    uint8_t *comppred8, int compstride, const uint8_t *interpred8,
1090
3.17k
    int interstride, const uint8_t *intrapred8, int intrastride, int bd) {
1091
3.17k
  const int bw = block_size_wide[plane_bsize];
1092
3.17k
  const int bh = block_size_high[plane_bsize];
1093
1094
3.17k
  if (use_wedge_interintra) {
1095
1.14k
    if (av1_is_wedge_used(bsize)) {
1096
1.14k
      const uint8_t *mask =
1097
1.14k
          av1_get_contiguous_soft_mask(wedge_index, wedge_sign, bsize);
1098
1.14k
      const int subh = 2 * mi_size_high[bsize] == bh;
1099
1.14k
      const int subw = 2 * mi_size_wide[bsize] == bw;
1100
1.14k
      aom_highbd_blend_a64_mask(comppred8, compstride, intrapred8, intrastride,
1101
1.14k
                                interpred8, interstride, mask,
1102
1.14k
                                block_size_wide[bsize], bw, bh, subw, subh, bd);
1103
1.14k
    }
1104
1.14k
    return;
1105
1.14k
  }
1106
1107
2.03k
  uint8_t mask[MAX_SB_SQUARE];
1108
2.03k
  build_smooth_interintra_mask(mask, bw, plane_bsize, mode);
1109
2.03k
  aom_highbd_blend_a64_mask(comppred8, compstride, intrapred8, intrastride,
1110
2.03k
                            interpred8, interstride, mask, bw, bw, bh, 0, 0,
1111
2.03k
                            bd);
1112
2.03k
}
1113
#endif
1114
1115
void av1_build_intra_predictors_for_interintra(const AV1_COMMON *cm,
1116
                                               MACROBLOCKD *xd,
1117
                                               BLOCK_SIZE bsize, int plane,
1118
                                               const BUFFER_SET *ctx,
1119
4.27k
                                               uint8_t *dst, int dst_stride) {
1120
4.27k
  struct macroblockd_plane *const pd = &xd->plane[plane];
1121
4.27k
  const int ssx = xd->plane[plane].subsampling_x;
1122
4.27k
  const int ssy = xd->plane[plane].subsampling_y;
1123
4.27k
  BLOCK_SIZE plane_bsize = get_plane_block_size(bsize, ssx, ssy);
1124
4.27k
  PREDICTION_MODE mode = interintra_to_intra_mode[xd->mi[0]->interintra_mode];
1125
4.27k
  assert(xd->mi[0]->angle_delta[PLANE_TYPE_Y] == 0);
1126
4.27k
  assert(xd->mi[0]->angle_delta[PLANE_TYPE_UV] == 0);
1127
4.27k
  assert(xd->mi[0]->filter_intra_mode_info.use_filter_intra == 0);
1128
4.27k
  assert(xd->mi[0]->use_intrabc == 0);
1129
4.27k
  const SequenceHeader *seq_params = cm->seq_params;
1130
1131
4.27k
  av1_predict_intra_block(xd, seq_params->sb_size,
1132
4.27k
                          seq_params->enable_intra_edge_filter, pd->width,
1133
4.27k
                          pd->height, max_txsize_rect_lookup[plane_bsize], mode,
1134
4.27k
                          0, 0, FILTER_INTRA_MODES, ctx->plane[plane],
1135
4.27k
                          ctx->stride[plane], dst, dst_stride, 0, 0, plane);
1136
4.27k
}
1137
1138
void av1_combine_interintra(MACROBLOCKD *xd, BLOCK_SIZE bsize, int plane,
1139
                            const uint8_t *inter_pred, int inter_stride,
1140
4.27k
                            const uint8_t *intra_pred, int intra_stride) {
1141
4.27k
  const int ssx = xd->plane[plane].subsampling_x;
1142
4.27k
  const int ssy = xd->plane[plane].subsampling_y;
1143
4.27k
  const BLOCK_SIZE plane_bsize = get_plane_block_size(bsize, ssx, ssy);
1144
4.27k
#if CONFIG_AV1_HIGHBITDEPTH
1145
4.27k
  if (is_cur_buf_hbd(xd)) {
1146
3.17k
    combine_interintra_highbd(
1147
3.17k
        xd->mi[0]->interintra_mode, xd->mi[0]->use_wedge_interintra,
1148
3.17k
        xd->mi[0]->interintra_wedge_index, INTERINTRA_WEDGE_SIGN, bsize,
1149
3.17k
        plane_bsize, xd->plane[plane].dst.buf, xd->plane[plane].dst.stride,
1150
3.17k
        inter_pred, inter_stride, intra_pred, intra_stride, xd->bd);
1151
3.17k
    return;
1152
3.17k
  }
1153
1.09k
#endif
1154
1.09k
  combine_interintra(
1155
1.09k
      xd->mi[0]->interintra_mode, xd->mi[0]->use_wedge_interintra,
1156
1.09k
      xd->mi[0]->interintra_wedge_index, INTERINTRA_WEDGE_SIGN, bsize,
1157
1.09k
      plane_bsize, xd->plane[plane].dst.buf, xd->plane[plane].dst.stride,
1158
1.09k
      inter_pred, inter_stride, intra_pred, intra_stride);
1159
1.09k
}
1160
1161
// build interintra_predictors for one plane
1162
void av1_build_interintra_predictor(const AV1_COMMON *cm, MACROBLOCKD *xd,
1163
                                    uint8_t *pred, int stride,
1164
                                    const BUFFER_SET *ctx, int plane,
1165
4.27k
                                    BLOCK_SIZE bsize) {
1166
4.27k
  assert(bsize < BLOCK_SIZES_ALL);
1167
4.27k
  if (is_cur_buf_hbd(xd)) {
1168
3.17k
    DECLARE_ALIGNED(16, uint16_t, intrapredictor[MAX_SB_SQUARE]);
1169
3.17k
    av1_build_intra_predictors_for_interintra(
1170
3.17k
        cm, xd, bsize, plane, ctx, CONVERT_TO_BYTEPTR(intrapredictor),
1171
3.17k
        MAX_SB_SIZE);
1172
3.17k
    av1_combine_interintra(xd, bsize, plane, pred, stride,
1173
3.17k
                           CONVERT_TO_BYTEPTR(intrapredictor), MAX_SB_SIZE);
1174
3.17k
  } else {
1175
1.09k
    DECLARE_ALIGNED(16, uint8_t, intrapredictor[MAX_SB_SQUARE]);
1176
1.09k
    av1_build_intra_predictors_for_interintra(cm, xd, bsize, plane, ctx,
1177
1.09k
                                              intrapredictor, MAX_SB_SIZE);
1178
1.09k
    av1_combine_interintra(xd, bsize, plane, pred, stride, intrapredictor,
1179
1.09k
                           MAX_SB_SIZE);
1180
1.09k
  }
1181
4.27k
}