Coverage Report

Created: 2025-12-03 07:28

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aom/av1/common/reconintra.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 <math.h>
13
14
#include "config/aom_config.h"
15
#include "config/aom_dsp_rtcd.h"
16
#include "config/av1_rtcd.h"
17
18
#include "aom_dsp/aom_dsp_common.h"
19
#include "aom_mem/aom_mem.h"
20
#include "aom_ports/aom_once.h"
21
#include "aom_ports/mem.h"
22
#include "av1/common/av1_common_int.h"
23
#include "av1/common/cfl.h"
24
#include "av1/common/reconintra.h"
25
26
enum {
27
  NEED_LEFT = 1 << 1,
28
  NEED_ABOVE = 1 << 2,
29
  NEED_ABOVERIGHT = 1 << 3,
30
  NEED_ABOVELEFT = 1 << 4,
31
  NEED_BOTTOMLEFT = 1 << 5,
32
};
33
34
#define INTRA_EDGE_FILT 3
35
585M
#define INTRA_EDGE_TAPS 5
36
#define MAX_UPSAMPLE_SZ 16
37
83.0M
#define NUM_INTRA_NEIGHBOUR_PIXELS (MAX_TX_SIZE * 2 + 32)
38
39
static const uint8_t extend_modes[INTRA_MODES] = {
40
  NEED_ABOVE | NEED_LEFT,                   // DC
41
  NEED_ABOVE,                               // V
42
  NEED_LEFT,                                // H
43
  NEED_ABOVE | NEED_ABOVERIGHT,             // D45
44
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // D135
45
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // D113
46
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // D157
47
  NEED_LEFT | NEED_BOTTOMLEFT,              // D203
48
  NEED_ABOVE | NEED_ABOVERIGHT,             // D67
49
  NEED_LEFT | NEED_ABOVE,                   // SMOOTH
50
  NEED_LEFT | NEED_ABOVE,                   // SMOOTH_V
51
  NEED_LEFT | NEED_ABOVE,                   // SMOOTH_H
52
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // PAETH
53
};
54
55
// Tables to store if the top-right reference pixels are available. The flags
56
// are represented with bits, packed into 8-bit integers. E.g., for the 32x32
57
// blocks in a 128x128 superblock, the index of the "o" block is 10 (in raster
58
// order), so its flag is stored at the 3rd bit of the 2nd entry in the table,
59
// i.e. (table[10 / 8] >> (10 % 8)) & 1.
60
//       . . . .
61
//       . . . .
62
//       . . o .
63
//       . . . .
64
static uint8_t has_tr_4x4[128] = {
65
  255, 255, 255, 255, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
66
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
67
  255, 127, 255, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
68
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
69
  255, 255, 255, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
70
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
71
  255, 127, 255, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
72
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
73
};
74
static uint8_t has_tr_4x8[64] = {
75
  255, 255, 255, 255, 119, 119, 119, 119, 127, 127, 127, 127, 119,
76
  119, 119, 119, 255, 127, 255, 127, 119, 119, 119, 119, 127, 127,
77
  127, 127, 119, 119, 119, 119, 255, 255, 255, 127, 119, 119, 119,
78
  119, 127, 127, 127, 127, 119, 119, 119, 119, 255, 127, 255, 127,
79
  119, 119, 119, 119, 127, 127, 127, 127, 119, 119, 119, 119,
80
};
81
static uint8_t has_tr_8x4[64] = {
82
  255, 255, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
83
  127, 127, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
84
  255, 127, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
85
  127, 127, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
86
};
87
static uint8_t has_tr_8x8[32] = {
88
  255, 255, 85, 85, 119, 119, 85, 85, 127, 127, 85, 85, 119, 119, 85, 85,
89
  255, 127, 85, 85, 119, 119, 85, 85, 127, 127, 85, 85, 119, 119, 85, 85,
90
};
91
static uint8_t has_tr_8x16[16] = {
92
  255, 255, 119, 119, 127, 127, 119, 119,
93
  255, 127, 119, 119, 127, 127, 119, 119,
94
};
95
static uint8_t has_tr_16x8[16] = {
96
  255, 0, 85, 0, 119, 0, 85, 0, 127, 0, 85, 0, 119, 0, 85, 0,
97
};
98
static uint8_t has_tr_16x16[8] = {
99
  255, 85, 119, 85, 127, 85, 119, 85,
100
};
101
static uint8_t has_tr_16x32[4] = { 255, 119, 127, 119 };
102
static uint8_t has_tr_32x16[4] = { 15, 5, 7, 5 };
103
static uint8_t has_tr_32x32[2] = { 95, 87 };
104
static uint8_t has_tr_32x64[1] = { 127 };
105
static uint8_t has_tr_64x32[1] = { 19 };
106
static uint8_t has_tr_64x64[1] = { 7 };
107
static uint8_t has_tr_64x128[1] = { 3 };
108
static uint8_t has_tr_128x64[1] = { 1 };
109
static uint8_t has_tr_128x128[1] = { 1 };
110
static uint8_t has_tr_4x16[32] = {
111
  255, 255, 255, 255, 127, 127, 127, 127, 255, 127, 255,
112
  127, 127, 127, 127, 127, 255, 255, 255, 127, 127, 127,
113
  127, 127, 255, 127, 255, 127, 127, 127, 127, 127,
114
};
115
static uint8_t has_tr_16x4[32] = {
116
  255, 0, 0, 0, 85, 0, 0, 0, 119, 0, 0, 0, 85, 0, 0, 0,
117
  127, 0, 0, 0, 85, 0, 0, 0, 119, 0, 0, 0, 85, 0, 0, 0,
118
};
119
static uint8_t has_tr_8x32[8] = {
120
  255, 255, 127, 127, 255, 127, 127, 127,
121
};
122
static uint8_t has_tr_32x8[8] = {
123
  15, 0, 5, 0, 7, 0, 5, 0,
124
};
125
static uint8_t has_tr_16x64[2] = { 255, 127 };
126
static uint8_t has_tr_64x16[2] = { 3, 1 };
127
128
static const uint8_t *const has_tr_tables[BLOCK_SIZES_ALL] = {
129
  // 4X4
130
  has_tr_4x4,
131
  // 4X8,       8X4,            8X8
132
  has_tr_4x8, has_tr_8x4, has_tr_8x8,
133
  // 8X16,      16X8,           16X16
134
  has_tr_8x16, has_tr_16x8, has_tr_16x16,
135
  // 16X32,     32X16,          32X32
136
  has_tr_16x32, has_tr_32x16, has_tr_32x32,
137
  // 32X64,     64X32,          64X64
138
  has_tr_32x64, has_tr_64x32, has_tr_64x64,
139
  // 64x128,    128x64,         128x128
140
  has_tr_64x128, has_tr_128x64, has_tr_128x128,
141
  // 4x16,      16x4,            8x32
142
  has_tr_4x16, has_tr_16x4, has_tr_8x32,
143
  // 32x8,      16x64,           64x16
144
  has_tr_32x8, has_tr_16x64, has_tr_64x16
145
};
146
147
static uint8_t has_tr_vert_8x8[32] = {
148
  255, 255, 0, 0, 119, 119, 0, 0, 127, 127, 0, 0, 119, 119, 0, 0,
149
  255, 127, 0, 0, 119, 119, 0, 0, 127, 127, 0, 0, 119, 119, 0, 0,
150
};
151
static uint8_t has_tr_vert_16x16[8] = {
152
  255, 0, 119, 0, 127, 0, 119, 0,
153
};
154
static uint8_t has_tr_vert_32x32[2] = { 15, 7 };
155
static uint8_t has_tr_vert_64x64[1] = { 3 };
156
157
// The _vert_* tables are like the ordinary tables above, but describe the
158
// order we visit square blocks when doing a PARTITION_VERT_A or
159
// PARTITION_VERT_B. This is the same order as normal except for on the last
160
// split where we go vertically (TL, BL, TR, BR). We treat the rectangular block
161
// as a pair of squares, which means that these tables work correctly for both
162
// mixed vertical partition types.
163
//
164
// There are tables for each of the square sizes. Vertical rectangles (like
165
// BLOCK_16X32) use their respective "non-vert" table
166
static const uint8_t *const has_tr_vert_tables[BLOCK_SIZES] = {
167
  // 4X4
168
  NULL,
169
  // 4X8,      8X4,         8X8
170
  has_tr_4x8, NULL, has_tr_vert_8x8,
171
  // 8X16,     16X8,        16X16
172
  has_tr_8x16, NULL, has_tr_vert_16x16,
173
  // 16X32,    32X16,       32X32
174
  has_tr_16x32, NULL, has_tr_vert_32x32,
175
  // 32X64,    64X32,       64X64
176
  has_tr_32x64, NULL, has_tr_vert_64x64,
177
  // 64x128,   128x64,      128x128
178
  has_tr_64x128, NULL, has_tr_128x128
179
};
180
181
static const uint8_t *get_has_tr_table(PARTITION_TYPE partition,
182
16.3M
                                       BLOCK_SIZE bsize) {
183
16.3M
  const uint8_t *ret = NULL;
184
  // If this is a mixed vertical partition, look up bsize in orders_vert.
185
16.3M
  if (partition == PARTITION_VERT_A || partition == PARTITION_VERT_B) {
186
1.29M
    assert(bsize < BLOCK_SIZES);
187
1.29M
    ret = has_tr_vert_tables[bsize];
188
15.0M
  } else {
189
15.0M
    ret = has_tr_tables[bsize];
190
15.0M
  }
191
16.3M
  assert(ret);
192
16.3M
  return ret;
193
16.3M
}
194
195
static int has_top_right(BLOCK_SIZE sb_size, BLOCK_SIZE bsize, int mi_row,
196
                         int mi_col, int top_available, int right_available,
197
                         PARTITION_TYPE partition, TX_SIZE txsz, int row_off,
198
41.5M
                         int col_off, int ss_x, int ss_y) {
199
41.5M
  if (!top_available || !right_available) return 0;
200
201
37.3M
  const int bw_unit = mi_size_wide[bsize];
202
37.3M
  const int plane_bw_unit = AOMMAX(bw_unit >> ss_x, 1);
203
37.3M
  const int top_right_count_unit = tx_size_wide_unit[txsz];
204
205
37.3M
  if (row_off > 0) {  // Just need to check if enough pixels on the right.
206
11.7M
    if (block_size_wide[bsize] > block_size_wide[BLOCK_64X64]) {
207
      // Special case: For 128x128 blocks, the transform unit whose
208
      // top-right corner is at the center of the block does in fact have
209
      // pixels available at its top-right corner.
210
5.48M
      if (row_off == mi_size_high[BLOCK_64X64] >> ss_y &&
211
722k
          col_off + top_right_count_unit == mi_size_wide[BLOCK_64X64] >> ss_x) {
212
207k
        return 1;
213
207k
      }
214
5.27M
      const int plane_bw_unit_64 = mi_size_wide[BLOCK_64X64] >> ss_x;
215
5.27M
      const int col_off_64 = col_off % plane_bw_unit_64;
216
5.27M
      return col_off_64 + top_right_count_unit < plane_bw_unit_64;
217
5.48M
    }
218
6.25M
    return col_off + top_right_count_unit < plane_bw_unit;
219
25.6M
  } else {
220
    // All top-right pixels are in the block above, which is already available.
221
25.6M
    if (col_off + top_right_count_unit < plane_bw_unit) return 1;
222
223
23.4M
    const int bw_in_mi_log2 = mi_size_wide_log2[bsize];
224
23.4M
    const int bh_in_mi_log2 = mi_size_high_log2[bsize];
225
23.4M
    const int sb_mi_size = mi_size_high[sb_size];
226
23.4M
    const int blk_row_in_sb = (mi_row & (sb_mi_size - 1)) >> bh_in_mi_log2;
227
23.4M
    const int blk_col_in_sb = (mi_col & (sb_mi_size - 1)) >> bw_in_mi_log2;
228
229
    // Top row of superblock: so top-right pixels are in the top and/or
230
    // top-right superblocks, both of which are already available.
231
23.4M
    if (blk_row_in_sb == 0) return 1;
232
233
    // Rightmost column of superblock (and not the top row): so top-right pixels
234
    // fall in the right superblock, which is not available yet.
235
19.0M
    if (((blk_col_in_sb + 1) << bw_in_mi_log2) >= sb_mi_size) {
236
2.71M
      return 0;
237
2.71M
    }
238
239
    // General case (neither top row nor rightmost column): check if the
240
    // top-right block is coded before the current block.
241
16.3M
    const int this_blk_index =
242
16.3M
        ((blk_row_in_sb + 0) << (MAX_MIB_SIZE_LOG2 - bw_in_mi_log2)) +
243
16.3M
        blk_col_in_sb + 0;
244
16.3M
    const int idx1 = this_blk_index / 8;
245
16.3M
    const int idx2 = this_blk_index % 8;
246
16.3M
    const uint8_t *has_tr_table = get_has_tr_table(partition, bsize);
247
16.3M
    return (has_tr_table[idx1] >> idx2) & 1;
248
19.0M
  }
249
37.3M
}
250
251
// Similar to the has_tr_* tables, but store if the bottom-left reference
252
// pixels are available.
253
static uint8_t has_bl_4x4[128] = {
254
  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  1,  1,  1,  84, 85, 85,
255
  85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  0,  1,  0,  84, 85, 85, 85, 16, 17,
256
  17, 17, 84, 85, 85, 85, 0,  1,  1,  1,  84, 85, 85, 85, 16, 17, 17, 17, 84,
257
  85, 85, 85, 0,  0,  0,  0,  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85,
258
  0,  1,  1,  1,  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  0,  1,
259
  0,  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  1,  1,  1,  84, 85,
260
  85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  0,  0,  0,
261
};
262
static uint8_t has_bl_4x8[64] = {
263
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 1, 0,
264
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 0, 0,
265
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 1, 0,
266
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 0, 0,
267
};
268
static uint8_t has_bl_8x4[64] = {
269
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 1,
270
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 0,
271
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 1,
272
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 0,
273
};
274
static uint8_t has_bl_8x8[32] = {
275
  84, 85, 16, 17, 84, 85, 0, 1, 84, 85, 16, 17, 84, 85, 0, 0,
276
  84, 85, 16, 17, 84, 85, 0, 1, 84, 85, 16, 17, 84, 85, 0, 0,
277
};
278
static uint8_t has_bl_8x16[16] = {
279
  16, 17, 0, 1, 16, 17, 0, 0, 16, 17, 0, 1, 16, 17, 0, 0,
280
};
281
static uint8_t has_bl_16x8[16] = {
282
  254, 84, 254, 16, 254, 84, 254, 0, 254, 84, 254, 16, 254, 84, 254, 0,
283
};
284
static uint8_t has_bl_16x16[8] = {
285
  84, 16, 84, 0, 84, 16, 84, 0,
286
};
287
static uint8_t has_bl_16x32[4] = { 16, 0, 16, 0 };
288
static uint8_t has_bl_32x16[4] = { 78, 14, 78, 14 };
289
static uint8_t has_bl_32x32[2] = { 4, 4 };
290
static uint8_t has_bl_32x64[1] = { 0 };
291
static uint8_t has_bl_64x32[1] = { 34 };
292
static uint8_t has_bl_64x64[1] = { 0 };
293
static uint8_t has_bl_64x128[1] = { 0 };
294
static uint8_t has_bl_128x64[1] = { 0 };
295
static uint8_t has_bl_128x128[1] = { 0 };
296
static uint8_t has_bl_4x16[32] = {
297
  0, 1, 1, 1, 0, 0, 1, 0, 0, 1, 1, 1, 0, 0, 0, 0,
298
  0, 1, 1, 1, 0, 0, 1, 0, 0, 1, 1, 1, 0, 0, 0, 0,
299
};
300
static uint8_t has_bl_16x4[32] = {
301
  254, 254, 254, 84, 254, 254, 254, 16, 254, 254, 254, 84, 254, 254, 254, 0,
302
  254, 254, 254, 84, 254, 254, 254, 16, 254, 254, 254, 84, 254, 254, 254, 0,
303
};
304
static uint8_t has_bl_8x32[8] = {
305
  0, 1, 0, 0, 0, 1, 0, 0,
306
};
307
static uint8_t has_bl_32x8[8] = {
308
  238, 78, 238, 14, 238, 78, 238, 14,
309
};
310
static uint8_t has_bl_16x64[2] = { 0, 0 };
311
static uint8_t has_bl_64x16[2] = { 42, 42 };
312
313
static const uint8_t *const has_bl_tables[BLOCK_SIZES_ALL] = {
314
  // 4X4
315
  has_bl_4x4,
316
  // 4X8,         8X4,         8X8
317
  has_bl_4x8, has_bl_8x4, has_bl_8x8,
318
  // 8X16,        16X8,        16X16
319
  has_bl_8x16, has_bl_16x8, has_bl_16x16,
320
  // 16X32,       32X16,       32X32
321
  has_bl_16x32, has_bl_32x16, has_bl_32x32,
322
  // 32X64,       64X32,       64X64
323
  has_bl_32x64, has_bl_64x32, has_bl_64x64,
324
  // 64x128,      128x64,      128x128
325
  has_bl_64x128, has_bl_128x64, has_bl_128x128,
326
  // 4x16,        16x4,        8x32
327
  has_bl_4x16, has_bl_16x4, has_bl_8x32,
328
  // 32x8,        16x64,       64x16
329
  has_bl_32x8, has_bl_16x64, has_bl_64x16
330
};
331
332
static uint8_t has_bl_vert_8x8[32] = {
333
  254, 255, 16, 17, 254, 255, 0, 1, 254, 255, 16, 17, 254, 255, 0, 0,
334
  254, 255, 16, 17, 254, 255, 0, 1, 254, 255, 16, 17, 254, 255, 0, 0,
335
};
336
static uint8_t has_bl_vert_16x16[8] = {
337
  254, 16, 254, 0, 254, 16, 254, 0,
338
};
339
static uint8_t has_bl_vert_32x32[2] = { 14, 14 };
340
static uint8_t has_bl_vert_64x64[1] = { 2 };
341
342
// The _vert_* tables are like the ordinary tables above, but describe the
343
// order we visit square blocks when doing a PARTITION_VERT_A or
344
// PARTITION_VERT_B. This is the same order as normal except for on the last
345
// split where we go vertically (TL, BL, TR, BR). We treat the rectangular block
346
// as a pair of squares, which means that these tables work correctly for both
347
// mixed vertical partition types.
348
//
349
// There are tables for each of the square sizes. Vertical rectangles (like
350
// BLOCK_16X32) use their respective "non-vert" table
351
static const uint8_t *const has_bl_vert_tables[BLOCK_SIZES] = {
352
  // 4X4
353
  NULL,
354
  // 4X8,     8X4,         8X8
355
  has_bl_4x8, NULL, has_bl_vert_8x8,
356
  // 8X16,    16X8,        16X16
357
  has_bl_8x16, NULL, has_bl_vert_16x16,
358
  // 16X32,   32X16,       32X32
359
  has_bl_16x32, NULL, has_bl_vert_32x32,
360
  // 32X64,   64X32,       64X64
361
  has_bl_32x64, NULL, has_bl_vert_64x64,
362
  // 64x128,  128x64,      128x128
363
  has_bl_64x128, NULL, has_bl_128x128
364
};
365
366
static const uint8_t *get_has_bl_table(PARTITION_TYPE partition,
367
16.4M
                                       BLOCK_SIZE bsize) {
368
16.4M
  const uint8_t *ret = NULL;
369
  // If this is a mixed vertical partition, look up bsize in orders_vert.
370
16.4M
  if (partition == PARTITION_VERT_A || partition == PARTITION_VERT_B) {
371
1.31M
    assert(bsize < BLOCK_SIZES);
372
1.31M
    ret = has_bl_vert_tables[bsize];
373
15.1M
  } else {
374
15.1M
    ret = has_bl_tables[bsize];
375
15.1M
  }
376
16.4M
  assert(ret);
377
16.4M
  return ret;
378
16.4M
}
379
380
static int has_bottom_left(BLOCK_SIZE sb_size, BLOCK_SIZE bsize, int mi_row,
381
                           int mi_col, int bottom_available, int left_available,
382
                           PARTITION_TYPE partition, TX_SIZE txsz, int row_off,
383
41.5M
                           int col_off, int ss_x, int ss_y) {
384
41.5M
  if (!bottom_available || !left_available) return 0;
385
386
  // Special case for 128x* blocks, when col_off is half the block width.
387
  // This is needed because 128x* superblocks are divided into 64x* blocks in
388
  // raster order
389
38.1M
  if (block_size_wide[bsize] > block_size_wide[BLOCK_64X64] && col_off > 0) {
390
5.60M
    const int plane_bw_unit_64 = mi_size_wide[BLOCK_64X64] >> ss_x;
391
5.60M
    const int col_off_64 = col_off % plane_bw_unit_64;
392
5.60M
    if (col_off_64 == 0) {
393
      // We are at the left edge of top-right or bottom-right 64x* block.
394
805k
      const int plane_bh_unit_64 = mi_size_high[BLOCK_64X64] >> ss_y;
395
805k
      const int row_off_64 = row_off % plane_bh_unit_64;
396
805k
      const int plane_bh_unit =
397
805k
          AOMMIN(mi_size_high[bsize] >> ss_y, plane_bh_unit_64);
398
      // Check if all bottom-left pixels are in the left 64x* block (which is
399
      // already coded).
400
805k
      return row_off_64 + tx_size_high_unit[txsz] < plane_bh_unit;
401
805k
    }
402
5.60M
  }
403
404
37.3M
  if (col_off > 0) {
405
    // Bottom-left pixels are in the bottom-left block, which is not available.
406
10.5M
    return 0;
407
26.7M
  } else {
408
26.7M
    const int bh_unit = mi_size_high[bsize];
409
26.7M
    const int plane_bh_unit = AOMMAX(bh_unit >> ss_y, 1);
410
26.7M
    const int bottom_left_count_unit = tx_size_high_unit[txsz];
411
412
    // All bottom-left pixels are in the left block, which is already available.
413
26.7M
    if (row_off + bottom_left_count_unit < plane_bh_unit) return 1;
414
415
24.0M
    const int bw_in_mi_log2 = mi_size_wide_log2[bsize];
416
24.0M
    const int bh_in_mi_log2 = mi_size_high_log2[bsize];
417
24.0M
    const int sb_mi_size = mi_size_high[sb_size];
418
24.0M
    const int blk_row_in_sb = (mi_row & (sb_mi_size - 1)) >> bh_in_mi_log2;
419
24.0M
    const int blk_col_in_sb = (mi_col & (sb_mi_size - 1)) >> bw_in_mi_log2;
420
421
    // Leftmost column of superblock: so bottom-left pixels maybe in the left
422
    // and/or bottom-left superblocks. But only the left superblock is
423
    // available, so check if all required pixels fall in that superblock.
424
24.0M
    if (blk_col_in_sb == 0) {
425
3.80M
      const int blk_start_row_off =
426
3.80M
          blk_row_in_sb << (bh_in_mi_log2 + MI_SIZE_LOG2 - MI_SIZE_LOG2) >>
427
3.80M
          ss_y;
428
3.80M
      const int row_off_in_sb = blk_start_row_off + row_off;
429
3.80M
      const int sb_height_unit = sb_mi_size >> ss_y;
430
3.80M
      return row_off_in_sb + bottom_left_count_unit < sb_height_unit;
431
3.80M
    }
432
433
    // Bottom row of superblock (and not the leftmost column): so bottom-left
434
    // pixels fall in the bottom superblock, which is not available yet.
435
20.2M
    if (((blk_row_in_sb + 1) << bh_in_mi_log2) >= sb_mi_size) return 0;
436
437
    // General case (neither leftmost column nor bottom row): check if the
438
    // bottom-left block is coded before the current block.
439
16.4M
    const int this_blk_index =
440
16.4M
        ((blk_row_in_sb + 0) << (MAX_MIB_SIZE_LOG2 - bw_in_mi_log2)) +
441
16.4M
        blk_col_in_sb + 0;
442
16.4M
    const int idx1 = this_blk_index / 8;
443
16.4M
    const int idx2 = this_blk_index % 8;
444
16.4M
    const uint8_t *has_bl_table = get_has_bl_table(partition, bsize);
445
16.4M
    return (has_bl_table[idx1] >> idx2) & 1;
446
20.2M
  }
447
37.3M
}
448
449
typedef void (*intra_pred_fn)(uint8_t *dst, ptrdiff_t stride,
450
                              const uint8_t *above, const uint8_t *left);
451
452
static intra_pred_fn pred[INTRA_MODES][TX_SIZES_ALL];
453
static intra_pred_fn dc_pred[2][2][TX_SIZES_ALL];
454
455
#if CONFIG_AV1_HIGHBITDEPTH
456
typedef void (*intra_high_pred_fn)(uint16_t *dst, ptrdiff_t stride,
457
                                   const uint16_t *above, const uint16_t *left,
458
                                   int bd);
459
static intra_high_pred_fn pred_high[INTRA_MODES][TX_SIZES_ALL];
460
static intra_high_pred_fn dc_pred_high[2][2][TX_SIZES_ALL];
461
#endif
462
463
5
static void init_intra_predictors_internal(void) {
464
5
  assert(NELEMENTS(mode_to_angle_map) == INTRA_MODES);
465
466
#if CONFIG_REALTIME_ONLY
467
#define INIT_RECTANGULAR(p, type)             \
468
  p[TX_4X8] = aom_##type##_predictor_4x8;     \
469
  p[TX_8X4] = aom_##type##_predictor_8x4;     \
470
  p[TX_8X16] = aom_##type##_predictor_8x16;   \
471
  p[TX_16X8] = aom_##type##_predictor_16x8;   \
472
  p[TX_16X32] = aom_##type##_predictor_16x32; \
473
  p[TX_32X16] = aom_##type##_predictor_32x16; \
474
  p[TX_32X64] = aom_##type##_predictor_32x64; \
475
  p[TX_64X32] = aom_##type##_predictor_64x32;
476
#else
477
5
#define INIT_RECTANGULAR(p, type)             \
478
100
  p[TX_4X8] = aom_##type##_predictor_4x8;     \
479
100
  p[TX_8X4] = aom_##type##_predictor_8x4;     \
480
100
  p[TX_8X16] = aom_##type##_predictor_8x16;   \
481
100
  p[TX_16X8] = aom_##type##_predictor_16x8;   \
482
100
  p[TX_16X32] = aom_##type##_predictor_16x32; \
483
100
  p[TX_32X16] = aom_##type##_predictor_32x16; \
484
100
  p[TX_32X64] = aom_##type##_predictor_32x64; \
485
100
  p[TX_64X32] = aom_##type##_predictor_64x32; \
486
100
  p[TX_4X16] = aom_##type##_predictor_4x16;   \
487
100
  p[TX_16X4] = aom_##type##_predictor_16x4;   \
488
100
  p[TX_8X32] = aom_##type##_predictor_8x32;   \
489
100
  p[TX_32X8] = aom_##type##_predictor_32x8;   \
490
100
  p[TX_16X64] = aom_##type##_predictor_16x64; \
491
100
  p[TX_64X16] = aom_##type##_predictor_64x16;
492
5
#endif
493
494
5
#define INIT_NO_4X4(p, type)                  \
495
100
  p[TX_8X8] = aom_##type##_predictor_8x8;     \
496
100
  p[TX_16X16] = aom_##type##_predictor_16x16; \
497
100
  p[TX_32X32] = aom_##type##_predictor_32x32; \
498
100
  p[TX_64X64] = aom_##type##_predictor_64x64; \
499
100
  INIT_RECTANGULAR(p, type)
500
501
5
#define INIT_ALL_SIZES(p, type)           \
502
100
  p[TX_4X4] = aom_##type##_predictor_4x4; \
503
100
  INIT_NO_4X4(p, type)
504
505
5
  INIT_ALL_SIZES(pred[V_PRED], v);
506
5
  INIT_ALL_SIZES(pred[H_PRED], h);
507
5
  INIT_ALL_SIZES(pred[PAETH_PRED], paeth);
508
5
  INIT_ALL_SIZES(pred[SMOOTH_PRED], smooth);
509
5
  INIT_ALL_SIZES(pred[SMOOTH_V_PRED], smooth_v);
510
5
  INIT_ALL_SIZES(pred[SMOOTH_H_PRED], smooth_h);
511
5
  INIT_ALL_SIZES(dc_pred[0][0], dc_128);
512
5
  INIT_ALL_SIZES(dc_pred[0][1], dc_top);
513
5
  INIT_ALL_SIZES(dc_pred[1][0], dc_left);
514
5
  INIT_ALL_SIZES(dc_pred[1][1], dc);
515
5
#if CONFIG_AV1_HIGHBITDEPTH
516
5
  INIT_ALL_SIZES(pred_high[V_PRED], highbd_v);
517
5
  INIT_ALL_SIZES(pred_high[H_PRED], highbd_h);
518
5
  INIT_ALL_SIZES(pred_high[PAETH_PRED], highbd_paeth);
519
5
  INIT_ALL_SIZES(pred_high[SMOOTH_PRED], highbd_smooth);
520
5
  INIT_ALL_SIZES(pred_high[SMOOTH_V_PRED], highbd_smooth_v);
521
5
  INIT_ALL_SIZES(pred_high[SMOOTH_H_PRED], highbd_smooth_h);
522
5
  INIT_ALL_SIZES(dc_pred_high[0][0], highbd_dc_128);
523
5
  INIT_ALL_SIZES(dc_pred_high[0][1], highbd_dc_top);
524
5
  INIT_ALL_SIZES(dc_pred_high[1][0], highbd_dc_left);
525
5
  INIT_ALL_SIZES(dc_pred_high[1][1], highbd_dc);
526
5
#endif
527
5
#undef intra_pred_allsizes
528
5
}
529
530
// Directional prediction, zone 1: 0 < angle < 90
531
void av1_dr_prediction_z1_c(uint8_t *dst, ptrdiff_t stride, int bw, int bh,
532
                            const uint8_t *above, const uint8_t *left,
533
963k
                            int upsample_above, int dx, int dy) {
534
963k
  int r, c, x, base, shift, val;
535
536
963k
  (void)left;
537
963k
  (void)dy;
538
963k
  assert(dy == 1);
539
963k
  assert(dx > 0);
540
541
963k
  const int max_base_x = ((bw + bh) - 1) << upsample_above;
542
963k
  const int frac_bits = 6 - upsample_above;
543
963k
  const int base_inc = 1 << upsample_above;
544
963k
  x = dx;
545
12.0M
  for (r = 0; r < bh; ++r, dst += stride, x += dx) {
546
11.0M
    base = x >> frac_bits;
547
11.0M
    shift = ((x << upsample_above) & 0x3F) >> 1;
548
549
11.0M
    if (base >= max_base_x) {
550
17.2k
      for (int i = r; i < bh; ++i) {
551
11.6k
        memset(dst, above[max_base_x], bw * sizeof(dst[0]));
552
11.6k
        dst += stride;
553
11.6k
      }
554
5.63k
      return;
555
5.63k
    }
556
557
214M
    for (c = 0; c < bw; ++c, base += base_inc) {
558
203M
      if (base < max_base_x) {
559
202M
        val = above[base] * (32 - shift) + above[base + 1] * shift;
560
202M
        dst[c] = ROUND_POWER_OF_TWO(val, 5);
561
202M
      } else {
562
1.28M
        dst[c] = above[max_base_x];
563
1.28M
      }
564
203M
    }
565
11.0M
  }
566
963k
}
567
568
// Directional prediction, zone 2: 90 < angle < 180
569
void av1_dr_prediction_z2_c(uint8_t *dst, ptrdiff_t stride, int bw, int bh,
570
                            const uint8_t *above, const uint8_t *left,
571
                            int upsample_above, int upsample_left, int dx,
572
1.71M
                            int dy) {
573
1.71M
  assert(dx > 0);
574
1.71M
  assert(dy > 0);
575
576
1.71M
  const int min_base_x = -(1 << upsample_above);
577
1.71M
  const int min_base_y = -(1 << upsample_left);
578
1.71M
  (void)min_base_y;
579
1.71M
  const int frac_bits_x = 6 - upsample_above;
580
1.71M
  const int frac_bits_y = 6 - upsample_left;
581
582
22.1M
  for (int r = 0; r < bh; ++r) {
583
399M
    for (int c = 0; c < bw; ++c) {
584
378M
      int val;
585
378M
      int y = r + 1;
586
378M
      int x = (c << 6) - y * dx;
587
378M
      const int base_x = x >> frac_bits_x;
588
378M
      if (base_x >= min_base_x) {
589
180M
        const int shift = ((x * (1 << upsample_above)) & 0x3F) >> 1;
590
180M
        val = above[base_x] * (32 - shift) + above[base_x + 1] * shift;
591
180M
        val = ROUND_POWER_OF_TWO(val, 5);
592
198M
      } else {
593
198M
        x = c + 1;
594
198M
        y = (r << 6) - x * dy;
595
198M
        const int base_y = y >> frac_bits_y;
596
198M
        assert(base_y >= min_base_y);
597
198M
        const int shift = ((y * (1 << upsample_left)) & 0x3F) >> 1;
598
198M
        val = left[base_y] * (32 - shift) + left[base_y + 1] * shift;
599
198M
        val = ROUND_POWER_OF_TWO(val, 5);
600
198M
      }
601
378M
      dst[c] = val;
602
378M
    }
603
20.4M
    dst += stride;
604
20.4M
  }
605
1.71M
}
606
607
// Directional prediction, zone 3: 180 < angle < 270
608
void av1_dr_prediction_z3_c(uint8_t *dst, ptrdiff_t stride, int bw, int bh,
609
                            const uint8_t *above, const uint8_t *left,
610
1.03M
                            int upsample_left, int dx, int dy) {
611
1.03M
  int r, c, y, base, shift, val;
612
613
1.03M
  (void)above;
614
1.03M
  (void)dx;
615
616
1.03M
  assert(dx == 1);
617
1.03M
  assert(dy > 0);
618
619
1.03M
  const int max_base_y = (bw + bh - 1) << upsample_left;
620
1.03M
  const int frac_bits = 6 - upsample_left;
621
1.03M
  const int base_inc = 1 << upsample_left;
622
1.03M
  y = dy;
623
13.7M
  for (c = 0; c < bw; ++c, y += dy) {
624
12.7M
    base = y >> frac_bits;
625
12.7M
    shift = ((y << upsample_left) & 0x3F) >> 1;
626
627
230M
    for (r = 0; r < bh; ++r, base += base_inc) {
628
217M
      if (base < max_base_y) {
629
217M
        val = left[base] * (32 - shift) + left[base + 1] * shift;
630
217M
        dst[r * stride + c] = val = ROUND_POWER_OF_TWO(val, 5);
631
217M
      } else {
632
0
        for (; r < bh; ++r) dst[r * stride + c] = left[max_base_y];
633
0
        break;
634
0
      }
635
217M
    }
636
12.7M
  }
637
1.03M
}
638
639
static void dr_predictor(uint8_t *dst, ptrdiff_t stride, TX_SIZE tx_size,
640
                         const uint8_t *above, const uint8_t *left,
641
5.19M
                         int upsample_above, int upsample_left, int angle) {
642
5.19M
  const int dx = av1_get_dx(angle);
643
5.19M
  const int dy = av1_get_dy(angle);
644
5.19M
  const int bw = tx_size_wide[tx_size];
645
5.19M
  const int bh = tx_size_high[tx_size];
646
5.19M
  assert(angle > 0 && angle < 270);
647
648
5.19M
  if (angle > 0 && angle < 90) {
649
963k
    av1_dr_prediction_z1(dst, stride, bw, bh, above, left, upsample_above, dx,
650
963k
                         dy);
651
4.22M
  } else if (angle > 90 && angle < 180) {
652
1.71M
    av1_dr_prediction_z2(dst, stride, bw, bh, above, left, upsample_above,
653
1.71M
                         upsample_left, dx, dy);
654
2.51M
  } else if (angle > 180 && angle < 270) {
655
1.03M
    av1_dr_prediction_z3(dst, stride, bw, bh, above, left, upsample_left, dx,
656
1.03M
                         dy);
657
1.48M
  } else if (angle == 90) {
658
616k
    pred[V_PRED][tx_size](dst, stride, above, left);
659
864k
  } else if (angle == 180) {
660
864k
    pred[H_PRED][tx_size](dst, stride, above, left);
661
864k
  }
662
5.19M
}
663
664
#if CONFIG_AV1_HIGHBITDEPTH
665
// Directional prediction, zone 1: 0 < angle < 90
666
void av1_highbd_dr_prediction_z1_c(uint16_t *dst, ptrdiff_t stride, int bw,
667
                                   int bh, const uint16_t *above,
668
                                   const uint16_t *left, int upsample_above,
669
818k
                                   int dx, int dy, int bd) {
670
818k
  int r, c, x, base, shift, val;
671
672
818k
  (void)left;
673
818k
  (void)dy;
674
818k
  (void)bd;
675
818k
  assert(dy == 1);
676
818k
  assert(dx > 0);
677
678
818k
  const int max_base_x = ((bw + bh) - 1) << upsample_above;
679
818k
  const int frac_bits = 6 - upsample_above;
680
818k
  const int base_inc = 1 << upsample_above;
681
818k
  x = dx;
682
9.84M
  for (r = 0; r < bh; ++r, dst += stride, x += dx) {
683
9.03M
    base = x >> frac_bits;
684
9.03M
    shift = ((x << upsample_above) & 0x3F) >> 1;
685
686
9.03M
    if (base >= max_base_x) {
687
13.3k
      for (int i = r; i < bh; ++i) {
688
8.71k
        aom_memset16(dst, above[max_base_x], bw);
689
8.71k
        dst += stride;
690
8.71k
      }
691
4.65k
      return;
692
4.65k
    }
693
694
181M
    for (c = 0; c < bw; ++c, base += base_inc) {
695
172M
      if (base < max_base_x) {
696
171M
        val = above[base] * (32 - shift) + above[base + 1] * shift;
697
171M
        dst[c] = ROUND_POWER_OF_TWO(val, 5);
698
171M
      } else {
699
1.12M
        dst[c] = above[max_base_x];
700
1.12M
      }
701
172M
    }
702
9.02M
  }
703
818k
}
704
705
// Directional prediction, zone 2: 90 < angle < 180
706
void av1_highbd_dr_prediction_z2_c(uint16_t *dst, ptrdiff_t stride, int bw,
707
                                   int bh, const uint16_t *above,
708
                                   const uint16_t *left, int upsample_above,
709
1.56M
                                   int upsample_left, int dx, int dy, int bd) {
710
1.56M
  (void)bd;
711
1.56M
  assert(dx > 0);
712
1.56M
  assert(dy > 0);
713
714
1.56M
  const int min_base_x = -(1 << upsample_above);
715
1.56M
  const int min_base_y = -(1 << upsample_left);
716
1.56M
  (void)min_base_y;
717
1.56M
  const int frac_bits_x = 6 - upsample_above;
718
1.56M
  const int frac_bits_y = 6 - upsample_left;
719
720
18.2M
  for (int r = 0; r < bh; ++r) {
721
343M
    for (int c = 0; c < bw; ++c) {
722
326M
      int val;
723
326M
      int y = r + 1;
724
326M
      int x = (c << 6) - y * dx;
725
326M
      const int base_x = x >> frac_bits_x;
726
326M
      if (base_x >= min_base_x) {
727
152M
        const int shift = ((x * (1 << upsample_above)) & 0x3F) >> 1;
728
152M
        val = above[base_x] * (32 - shift) + above[base_x + 1] * shift;
729
152M
        val = ROUND_POWER_OF_TWO(val, 5);
730
173M
      } else {
731
173M
        x = c + 1;
732
173M
        y = (r << 6) - x * dy;
733
173M
        const int base_y = y >> frac_bits_y;
734
173M
        assert(base_y >= min_base_y);
735
173M
        const int shift = ((y * (1 << upsample_left)) & 0x3F) >> 1;
736
173M
        val = left[base_y] * (32 - shift) + left[base_y + 1] * shift;
737
173M
        val = ROUND_POWER_OF_TWO(val, 5);
738
173M
      }
739
326M
      dst[c] = val;
740
326M
    }
741
16.7M
    dst += stride;
742
16.7M
  }
743
1.56M
}
744
745
// Directional prediction, zone 3: 180 < angle < 270
746
void av1_highbd_dr_prediction_z3_c(uint16_t *dst, ptrdiff_t stride, int bw,
747
                                   int bh, const uint16_t *above,
748
                                   const uint16_t *left, int upsample_left,
749
945k
                                   int dx, int dy, int bd) {
750
945k
  int r, c, y, base, shift, val;
751
752
945k
  (void)above;
753
945k
  (void)dx;
754
945k
  (void)bd;
755
945k
  assert(dx == 1);
756
945k
  assert(dy > 0);
757
758
945k
  const int max_base_y = (bw + bh - 1) << upsample_left;
759
945k
  const int frac_bits = 6 - upsample_left;
760
945k
  const int base_inc = 1 << upsample_left;
761
945k
  y = dy;
762
11.6M
  for (c = 0; c < bw; ++c, y += dy) {
763
10.7M
    base = y >> frac_bits;
764
10.7M
    shift = ((y << upsample_left) & 0x3F) >> 1;
765
766
204M
    for (r = 0; r < bh; ++r, base += base_inc) {
767
193M
      if (base < max_base_y) {
768
193M
        val = left[base] * (32 - shift) + left[base + 1] * shift;
769
193M
        dst[r * stride + c] = ROUND_POWER_OF_TWO(val, 5);
770
193M
      } else {
771
0
        for (; r < bh; ++r) dst[r * stride + c] = left[max_base_y];
772
0
        break;
773
0
      }
774
193M
    }
775
10.7M
  }
776
945k
}
777
778
static void highbd_dr_predictor(uint16_t *dst, ptrdiff_t stride,
779
                                TX_SIZE tx_size, const uint16_t *above,
780
                                const uint16_t *left, int upsample_above,
781
4.52M
                                int upsample_left, int angle, int bd) {
782
4.52M
  const int dx = av1_get_dx(angle);
783
4.52M
  const int dy = av1_get_dy(angle);
784
4.52M
  const int bw = tx_size_wide[tx_size];
785
4.52M
  const int bh = tx_size_high[tx_size];
786
4.52M
  assert(angle > 0 && angle < 270);
787
788
4.52M
  if (angle > 0 && angle < 90) {
789
818k
    av1_highbd_dr_prediction_z1(dst, stride, bw, bh, above, left,
790
818k
                                upsample_above, dx, dy, bd);
791
3.71M
  } else if (angle > 90 && angle < 180) {
792
1.56M
    av1_highbd_dr_prediction_z2(dst, stride, bw, bh, above, left,
793
1.56M
                                upsample_above, upsample_left, dx, dy, bd);
794
2.14M
  } else if (angle > 180 && angle < 270) {
795
945k
    av1_highbd_dr_prediction_z3(dst, stride, bw, bh, above, left, upsample_left,
796
945k
                                dx, dy, bd);
797
1.20M
  } else if (angle == 90) {
798
464k
    pred_high[V_PRED][tx_size](dst, stride, above, left, bd);
799
736k
  } else if (angle == 180) {
800
736k
    pred_high[H_PRED][tx_size](dst, stride, above, left, bd);
801
736k
  }
802
4.52M
}
803
#endif  // CONFIG_AV1_HIGHBITDEPTH
804
805
DECLARE_ALIGNED(16, const int8_t,
806
                av1_filter_intra_taps[FILTER_INTRA_MODES][8][8]) = {
807
  {
808
      { -6, 10, 0, 0, 0, 12, 0, 0 },
809
      { -5, 2, 10, 0, 0, 9, 0, 0 },
810
      { -3, 1, 1, 10, 0, 7, 0, 0 },
811
      { -3, 1, 1, 2, 10, 5, 0, 0 },
812
      { -4, 6, 0, 0, 0, 2, 12, 0 },
813
      { -3, 2, 6, 0, 0, 2, 9, 0 },
814
      { -3, 2, 2, 6, 0, 2, 7, 0 },
815
      { -3, 1, 2, 2, 6, 3, 5, 0 },
816
  },
817
  {
818
      { -10, 16, 0, 0, 0, 10, 0, 0 },
819
      { -6, 0, 16, 0, 0, 6, 0, 0 },
820
      { -4, 0, 0, 16, 0, 4, 0, 0 },
821
      { -2, 0, 0, 0, 16, 2, 0, 0 },
822
      { -10, 16, 0, 0, 0, 0, 10, 0 },
823
      { -6, 0, 16, 0, 0, 0, 6, 0 },
824
      { -4, 0, 0, 16, 0, 0, 4, 0 },
825
      { -2, 0, 0, 0, 16, 0, 2, 0 },
826
  },
827
  {
828
      { -8, 8, 0, 0, 0, 16, 0, 0 },
829
      { -8, 0, 8, 0, 0, 16, 0, 0 },
830
      { -8, 0, 0, 8, 0, 16, 0, 0 },
831
      { -8, 0, 0, 0, 8, 16, 0, 0 },
832
      { -4, 4, 0, 0, 0, 0, 16, 0 },
833
      { -4, 0, 4, 0, 0, 0, 16, 0 },
834
      { -4, 0, 0, 4, 0, 0, 16, 0 },
835
      { -4, 0, 0, 0, 4, 0, 16, 0 },
836
  },
837
  {
838
      { -2, 8, 0, 0, 0, 10, 0, 0 },
839
      { -1, 3, 8, 0, 0, 6, 0, 0 },
840
      { -1, 2, 3, 8, 0, 4, 0, 0 },
841
      { 0, 1, 2, 3, 8, 2, 0, 0 },
842
      { -1, 4, 0, 0, 0, 3, 10, 0 },
843
      { -1, 3, 4, 0, 0, 4, 6, 0 },
844
      { -1, 2, 3, 4, 0, 4, 4, 0 },
845
      { -1, 2, 2, 3, 4, 3, 3, 0 },
846
  },
847
  {
848
      { -12, 14, 0, 0, 0, 14, 0, 0 },
849
      { -10, 0, 14, 0, 0, 12, 0, 0 },
850
      { -9, 0, 0, 14, 0, 11, 0, 0 },
851
      { -8, 0, 0, 0, 14, 10, 0, 0 },
852
      { -10, 12, 0, 0, 0, 0, 14, 0 },
853
      { -9, 1, 12, 0, 0, 0, 12, 0 },
854
      { -8, 0, 0, 12, 0, 1, 11, 0 },
855
      { -7, 0, 0, 1, 12, 1, 9, 0 },
856
  },
857
};
858
859
void av1_filter_intra_predictor_c(uint8_t *dst, ptrdiff_t stride,
860
                                  TX_SIZE tx_size, const uint8_t *above,
861
1.10M
                                  const uint8_t *left, int mode) {
862
1.10M
  int r, c;
863
1.10M
  uint8_t buffer[33][33];
864
1.10M
  const int bw = tx_size_wide[tx_size];
865
1.10M
  const int bh = tx_size_high[tx_size];
866
867
1.10M
  assert(bw <= 32 && bh <= 32);
868
869
10.4M
  for (r = 0; r < bh; ++r) buffer[r + 1][0] = left[r];
870
1.10M
  memcpy(buffer[0], &above[-1], (bw + 1) * sizeof(uint8_t));
871
872
5.79M
  for (r = 1; r < bh + 1; r += 2)
873
17.7M
    for (c = 1; c < bw + 1; c += 4) {
874
13.0M
      const uint8_t p0 = buffer[r - 1][c - 1];
875
13.0M
      const uint8_t p1 = buffer[r - 1][c];
876
13.0M
      const uint8_t p2 = buffer[r - 1][c + 1];
877
13.0M
      const uint8_t p3 = buffer[r - 1][c + 2];
878
13.0M
      const uint8_t p4 = buffer[r - 1][c + 3];
879
13.0M
      const uint8_t p5 = buffer[r][c - 1];
880
13.0M
      const uint8_t p6 = buffer[r + 1][c - 1];
881
117M
      for (int k = 0; k < 8; ++k) {
882
104M
        int r_offset = k >> 2;
883
104M
        int c_offset = k & 0x03;
884
104M
        int pr = av1_filter_intra_taps[mode][k][0] * p0 +
885
104M
                 av1_filter_intra_taps[mode][k][1] * p1 +
886
104M
                 av1_filter_intra_taps[mode][k][2] * p2 +
887
104M
                 av1_filter_intra_taps[mode][k][3] * p3 +
888
104M
                 av1_filter_intra_taps[mode][k][4] * p4 +
889
104M
                 av1_filter_intra_taps[mode][k][5] * p5 +
890
104M
                 av1_filter_intra_taps[mode][k][6] * p6;
891
        // Section 7.11.2.3 specifies the right-hand side of the assignment as
892
        //   Clip1( Round2Signed( pr, INTRA_FILTER_SCALE_BITS ) ).
893
        // Since Clip1() clips a negative value to 0, it is safe to replace
894
        // Round2Signed() with Round2().
895
104M
        buffer[r + r_offset][c + c_offset] =
896
104M
            clip_pixel(ROUND_POWER_OF_TWO(pr, FILTER_INTRA_SCALE_BITS));
897
104M
      }
898
13.0M
    }
899
900
10.4M
  for (r = 0; r < bh; ++r) {
901
9.37M
    memcpy(dst, &buffer[r + 1][1], bw * sizeof(uint8_t));
902
9.37M
    dst += stride;
903
9.37M
  }
904
1.10M
}
905
906
#if CONFIG_AV1_HIGHBITDEPTH
907
static void highbd_filter_intra_predictor(uint16_t *dst, ptrdiff_t stride,
908
                                          TX_SIZE tx_size,
909
                                          const uint16_t *above,
910
                                          const uint16_t *left, int mode,
911
1.05M
                                          int bd) {
912
1.05M
  int r, c;
913
1.05M
  uint16_t buffer[33][33];
914
1.05M
  const int bw = tx_size_wide[tx_size];
915
1.05M
  const int bh = tx_size_high[tx_size];
916
917
1.05M
  assert(bw <= 32 && bh <= 32);
918
919
9.89M
  for (r = 0; r < bh; ++r) buffer[r + 1][0] = left[r];
920
1.05M
  memcpy(buffer[0], &above[-1], (bw + 1) * sizeof(buffer[0][0]));
921
922
5.47M
  for (r = 1; r < bh + 1; r += 2)
923
16.7M
    for (c = 1; c < bw + 1; c += 4) {
924
12.2M
      const uint16_t p0 = buffer[r - 1][c - 1];
925
12.2M
      const uint16_t p1 = buffer[r - 1][c];
926
12.2M
      const uint16_t p2 = buffer[r - 1][c + 1];
927
12.2M
      const uint16_t p3 = buffer[r - 1][c + 2];
928
12.2M
      const uint16_t p4 = buffer[r - 1][c + 3];
929
12.2M
      const uint16_t p5 = buffer[r][c - 1];
930
12.2M
      const uint16_t p6 = buffer[r + 1][c - 1];
931
110M
      for (int k = 0; k < 8; ++k) {
932
98.2M
        int r_offset = k >> 2;
933
98.2M
        int c_offset = k & 0x03;
934
98.2M
        int pr = av1_filter_intra_taps[mode][k][0] * p0 +
935
98.2M
                 av1_filter_intra_taps[mode][k][1] * p1 +
936
98.2M
                 av1_filter_intra_taps[mode][k][2] * p2 +
937
98.2M
                 av1_filter_intra_taps[mode][k][3] * p3 +
938
98.2M
                 av1_filter_intra_taps[mode][k][4] * p4 +
939
98.2M
                 av1_filter_intra_taps[mode][k][5] * p5 +
940
98.2M
                 av1_filter_intra_taps[mode][k][6] * p6;
941
        // Section 7.11.2.3 specifies the right-hand side of the assignment as
942
        //   Clip1( Round2Signed( pr, INTRA_FILTER_SCALE_BITS ) ).
943
        // Since Clip1() clips a negative value to 0, it is safe to replace
944
        // Round2Signed() with Round2().
945
98.2M
        buffer[r + r_offset][c + c_offset] = clip_pixel_highbd(
946
98.2M
            ROUND_POWER_OF_TWO(pr, FILTER_INTRA_SCALE_BITS), bd);
947
98.2M
      }
948
12.2M
    }
949
950
9.89M
  for (r = 0; r < bh; ++r) {
951
8.84M
    memcpy(dst, &buffer[r + 1][1], bw * sizeof(dst[0]));
952
8.84M
    dst += stride;
953
8.84M
  }
954
1.05M
}
955
#endif  // CONFIG_AV1_HIGHBITDEPTH
956
957
72.3M
static int is_smooth(const MB_MODE_INFO *mbmi, int plane) {
958
72.3M
  if (plane == 0) {
959
30.2M
    const PREDICTION_MODE mode = mbmi->mode;
960
30.2M
    return (mode == SMOOTH_PRED || mode == SMOOTH_V_PRED ||
961
26.8M
            mode == SMOOTH_H_PRED);
962
42.0M
  } else {
963
    // uv_mode is not set for inter blocks, so need to explicitly
964
    // detect that case.
965
42.0M
    if (is_inter_block(mbmi)) return 0;
966
967
41.9M
    const UV_PREDICTION_MODE uv_mode = mbmi->uv_mode;
968
41.9M
    return (uv_mode == UV_SMOOTH_PRED || uv_mode == UV_SMOOTH_V_PRED ||
969
37.8M
            uv_mode == UV_SMOOTH_H_PRED);
970
42.0M
  }
971
72.3M
}
972
973
41.5M
static int get_intra_edge_filter_type(const MACROBLOCKD *xd, int plane) {
974
41.5M
  int ab_sm, le_sm;
975
976
41.5M
  if (plane == 0) {
977
17.5M
    const MB_MODE_INFO *ab = xd->above_mbmi;
978
17.5M
    const MB_MODE_INFO *le = xd->left_mbmi;
979
17.5M
    ab_sm = ab ? is_smooth(ab, plane) : 0;
980
17.5M
    le_sm = le ? is_smooth(le, plane) : 0;
981
24.0M
  } else {
982
24.0M
    const MB_MODE_INFO *ab = xd->chroma_above_mbmi;
983
24.0M
    const MB_MODE_INFO *le = xd->chroma_left_mbmi;
984
24.0M
    ab_sm = ab ? is_smooth(ab, plane) : 0;
985
24.0M
    le_sm = le ? is_smooth(le, plane) : 0;
986
24.0M
  }
987
988
41.5M
  return (ab_sm || le_sm) ? 1 : 0;
989
41.5M
}
990
991
8.43M
static int intra_edge_filter_strength(int bs0, int bs1, int delta, int type) {
992
8.43M
  const int d = abs(delta);
993
8.43M
  int strength = 0;
994
995
8.43M
  const int blk_wh = bs0 + bs1;
996
8.43M
  if (type == 0) {
997
6.25M
    if (blk_wh <= 8) {
998
2.02M
      if (d >= 56) strength = 1;
999
4.23M
    } else if (blk_wh <= 12) {
1000
608k
      if (d >= 40) strength = 1;
1001
3.62M
    } else if (blk_wh <= 16) {
1002
1.11M
      if (d >= 40) strength = 1;
1003
2.50M
    } else if (blk_wh <= 24) {
1004
1.04M
      if (d >= 8) strength = 1;
1005
1.04M
      if (d >= 16) strength = 2;
1006
1.04M
      if (d >= 32) strength = 3;
1007
1.45M
    } else if (blk_wh <= 32) {
1008
551k
      if (d >= 1) strength = 1;
1009
551k
      if (d >= 4) strength = 2;
1010
551k
      if (d >= 32) strength = 3;
1011
907k
    } else {
1012
907k
      if (d >= 1) strength = 3;
1013
907k
    }
1014
6.25M
  } else {
1015
2.17M
    if (blk_wh <= 8) {
1016
478k
      if (d >= 40) strength = 1;
1017
478k
      if (d >= 64) strength = 2;
1018
1.69M
    } else if (blk_wh <= 16) {
1019
707k
      if (d >= 20) strength = 1;
1020
707k
      if (d >= 48) strength = 2;
1021
990k
    } else if (blk_wh <= 24) {
1022
442k
      if (d >= 4) strength = 3;
1023
547k
    } else {
1024
547k
      if (d >= 1) strength = 3;
1025
547k
    }
1026
2.17M
  }
1027
8.43M
  return strength;
1028
8.43M
}
1029
1030
4.03M
void av1_filter_intra_edge_c(uint8_t *p, int sz, int strength) {
1031
4.03M
  if (!strength) return;
1032
1033
2.63M
  const int kernel[INTRA_EDGE_FILT][INTRA_EDGE_TAPS] = { { 0, 4, 8, 4, 0 },
1034
2.63M
                                                         { 0, 5, 6, 5, 0 },
1035
2.63M
                                                         { 2, 4, 4, 4, 2 } };
1036
2.63M
  const int filt = strength - 1;
1037
2.63M
  uint8_t edge[129];
1038
1039
2.63M
  memcpy(edge, p, sz * sizeof(*p));
1040
55.1M
  for (int i = 1; i < sz; i++) {
1041
52.5M
    int s = 0;
1042
315M
    for (int j = 0; j < INTRA_EDGE_TAPS; j++) {
1043
262M
      int k = i - 2 + j;
1044
262M
      k = (k < 0) ? 0 : k;
1045
262M
      k = (k > sz - 1) ? sz - 1 : k;
1046
262M
      s += edge[k] * kernel[filt][j];
1047
262M
    }
1048
52.5M
    s = (s + 8) >> 4;
1049
52.5M
    p[i] = s;
1050
52.5M
  }
1051
2.63M
}
1052
1053
518k
static void filter_intra_edge_corner(uint8_t *p_above, uint8_t *p_left) {
1054
518k
  const int kernel[3] = { 5, 6, 5 };
1055
1056
518k
  int s = (p_left[0] * kernel[0]) + (p_above[-1] * kernel[1]) +
1057
518k
          (p_above[0] * kernel[2]);
1058
518k
  s = (s + 8) >> 4;
1059
518k
  p_above[-1] = s;
1060
518k
  p_left[-1] = s;
1061
518k
}
1062
1063
4.39M
void av1_filter_intra_edge_high_c(uint16_t *p, int sz, int strength) {
1064
4.39M
  if (!strength) return;
1065
1066
2.38M
  const int kernel[INTRA_EDGE_FILT][INTRA_EDGE_TAPS] = { { 0, 4, 8, 4, 0 },
1067
2.38M
                                                         { 0, 5, 6, 5, 0 },
1068
2.38M
                                                         { 2, 4, 4, 4, 2 } };
1069
2.38M
  const int filt = strength - 1;
1070
2.38M
  uint16_t edge[129];
1071
1072
2.38M
  memcpy(edge, p, sz * sizeof(*p));
1073
47.4M
  for (int i = 1; i < sz; i++) {
1074
45.1M
    int s = 0;
1075
270M
    for (int j = 0; j < INTRA_EDGE_TAPS; j++) {
1076
225M
      int k = i - 2 + j;
1077
225M
      k = (k < 0) ? 0 : k;
1078
225M
      k = (k > sz - 1) ? sz - 1 : k;
1079
225M
      s += edge[k] * kernel[filt][j];
1080
225M
    }
1081
45.1M
    s = (s + 8) >> 4;
1082
45.1M
    p[i] = s;
1083
45.1M
  }
1084
2.38M
}
1085
1086
#if CONFIG_AV1_HIGHBITDEPTH
1087
395k
static void filter_intra_edge_corner_high(uint16_t *p_above, uint16_t *p_left) {
1088
395k
  const int kernel[3] = { 5, 6, 5 };
1089
1090
395k
  int s = (p_left[0] * kernel[0]) + (p_above[-1] * kernel[1]) +
1091
395k
          (p_above[0] * kernel[2]);
1092
395k
  s = (s + 8) >> 4;
1093
395k
  p_above[-1] = s;
1094
395k
  p_left[-1] = s;
1095
395k
}
1096
#endif
1097
1098
1.07M
void av1_upsample_intra_edge_c(uint8_t *p, int sz) {
1099
  // interpolate half-sample positions
1100
1.07M
  assert(sz <= MAX_UPSAMPLE_SZ);
1101
1102
1.07M
  uint8_t in[MAX_UPSAMPLE_SZ + 3];
1103
  // copy p[-1..(sz-1)] and extend first and last samples
1104
1.07M
  in[0] = p[-1];
1105
1.07M
  in[1] = p[-1];
1106
10.3M
  for (int i = 0; i < sz; i++) {
1107
9.29M
    in[i + 2] = p[i];
1108
9.29M
  }
1109
1.07M
  in[sz + 2] = p[sz - 1];
1110
1111
  // interpolate half-sample edge positions
1112
1.07M
  p[-2] = in[0];
1113
10.3M
  for (int i = 0; i < sz; i++) {
1114
9.29M
    int s = -in[i] + (9 * in[i + 1]) + (9 * in[i + 2]) - in[i + 3];
1115
9.29M
    s = clip_pixel((s + 8) >> 4);
1116
9.29M
    p[2 * i - 1] = s;
1117
9.29M
    p[2 * i] = in[i + 2];
1118
9.29M
  }
1119
1.07M
}
1120
1121
1.42M
void av1_upsample_intra_edge_high_c(uint16_t *p, int sz, int bd) {
1122
  // interpolate half-sample positions
1123
1.42M
  assert(sz <= MAX_UPSAMPLE_SZ);
1124
1125
1.42M
  uint16_t in[MAX_UPSAMPLE_SZ + 3];
1126
  // copy p[-1..(sz-1)] and extend first and last samples
1127
1.42M
  in[0] = p[-1];
1128
1.42M
  in[1] = p[-1];
1129
13.0M
  for (int i = 0; i < sz; i++) {
1130
11.6M
    in[i + 2] = p[i];
1131
11.6M
  }
1132
1.42M
  in[sz + 2] = p[sz - 1];
1133
1134
  // interpolate half-sample edge positions
1135
1.42M
  p[-2] = in[0];
1136
13.0M
  for (int i = 0; i < sz; i++) {
1137
11.6M
    int s = -in[i] + (9 * in[i + 1]) + (9 * in[i + 2]) - in[i + 3];
1138
11.6M
    s = (s + 8) >> 4;
1139
11.6M
    s = clip_pixel_highbd(s, bd);
1140
11.6M
    p[2 * i - 1] = s;
1141
11.6M
    p[2 * i] = in[i + 2];
1142
11.6M
  }
1143
1.42M
}
1144
#if CONFIG_AV1_HIGHBITDEPTH
1145
static void build_intra_predictors_high(
1146
    const uint8_t *ref8, int ref_stride, uint8_t *dst8, int dst_stride,
1147
    PREDICTION_MODE mode, int angle_delta, FILTER_INTRA_MODE filter_intra_mode,
1148
    TX_SIZE tx_size, int disable_edge_filter, int n_top_px, int n_topright_px,
1149
    int n_left_px, int n_bottomleft_px, int intra_edge_filter_type,
1150
19.0M
    int bit_depth) {
1151
19.0M
  int i;
1152
19.0M
  uint16_t *dst = CONVERT_TO_SHORTPTR(dst8);
1153
19.0M
  uint16_t *ref = CONVERT_TO_SHORTPTR(ref8);
1154
19.0M
  DECLARE_ALIGNED(16, uint16_t, left_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1155
19.0M
  DECLARE_ALIGNED(16, uint16_t, above_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1156
19.0M
  uint16_t *const above_row = above_data + 16;
1157
19.0M
  uint16_t *const left_col = left_data + 16;
1158
19.0M
  const int txwpx = tx_size_wide[tx_size];
1159
19.0M
  const int txhpx = tx_size_high[tx_size];
1160
19.0M
  int need_left = extend_modes[mode] & NEED_LEFT;
1161
19.0M
  int need_above = extend_modes[mode] & NEED_ABOVE;
1162
19.0M
  int need_above_left = extend_modes[mode] & NEED_ABOVELEFT;
1163
19.0M
  const uint16_t *above_ref = ref - ref_stride;
1164
19.0M
  const uint16_t *left_ref = ref - 1;
1165
19.0M
  int p_angle = 0;
1166
19.0M
  const int is_dr_mode = av1_is_directional_mode(mode);
1167
19.0M
  const int use_filter_intra = filter_intra_mode != FILTER_INTRA_MODES;
1168
19.0M
  int base = 128 << (bit_depth - 8);
1169
  // The left_data, above_data buffers must be zeroed to fix some intermittent
1170
  // valgrind errors. Uninitialized reads in intra pred modules (e.g. width = 4
1171
  // path in av1_highbd_dr_prediction_z2_avx2()) from left_data, above_data are
1172
  // seen to be the potential reason for this issue.
1173
19.0M
  aom_memset16(left_data, base + 1, NUM_INTRA_NEIGHBOUR_PIXELS);
1174
19.0M
  aom_memset16(above_data, base - 1, NUM_INTRA_NEIGHBOUR_PIXELS);
1175
1176
  // The default values if ref pixels are not available:
1177
  // base   base-1 base-1 .. base-1 base-1 base-1 base-1 base-1 base-1
1178
  // base+1   A      B  ..     Y      Z
1179
  // base+1   C      D  ..     W      X
1180
  // base+1   E      F  ..     U      V
1181
  // base+1   G      H  ..     S      T      T      T      T      T
1182
1183
19.0M
  if (is_dr_mode) {
1184
4.64M
    p_angle = mode_to_angle_map[mode] + angle_delta;
1185
4.64M
    if (p_angle <= 90)
1186
1.32M
      need_above = 1, need_left = 0, need_above_left = 1;
1187
3.31M
    else if (p_angle < 180)
1188
1.56M
      need_above = 1, need_left = 1, need_above_left = 1;
1189
1.75M
    else
1190
1.75M
      need_above = 0, need_left = 1, need_above_left = 1;
1191
4.64M
  }
1192
19.0M
  if (use_filter_intra) need_left = need_above = need_above_left = 1;
1193
1194
19.0M
  assert(n_top_px >= 0);
1195
19.0M
  assert(n_topright_px >= 0);
1196
19.0M
  assert(n_left_px >= 0);
1197
19.0M
  assert(n_bottomleft_px >= 0);
1198
1199
19.0M
  if ((!need_above && n_left_px == 0) || (!need_left && n_top_px == 0)) {
1200
118k
    int val;
1201
118k
    if (need_left) {
1202
72.9k
      val = (n_top_px > 0) ? above_ref[0] : base + 1;
1203
72.9k
    } else {
1204
45.3k
      val = (n_left_px > 0) ? left_ref[0] : base - 1;
1205
45.3k
    }
1206
3.11M
    for (i = 0; i < txhpx; ++i) {
1207
2.99M
      aom_memset16(dst, val, txwpx);
1208
2.99M
      dst += dst_stride;
1209
2.99M
    }
1210
118k
    return;
1211
118k
  }
1212
1213
  // NEED_LEFT
1214
18.9M
  if (need_left) {
1215
17.6M
    int need_bottom = extend_modes[mode] & NEED_BOTTOMLEFT;
1216
17.6M
    if (use_filter_intra) need_bottom = 0;
1217
17.6M
    if (is_dr_mode) need_bottom = p_angle > 180;
1218
17.6M
    const int num_left_pixels_needed = txhpx + (need_bottom ? txwpx : 0);
1219
17.6M
    i = 0;
1220
17.6M
    if (n_left_px > 0) {
1221
219M
      for (; i < n_left_px; i++) left_col[i] = left_ref[i * ref_stride];
1222
16.4M
      if (need_bottom && n_bottomleft_px > 0) {
1223
298k
        assert(i == txhpx);
1224
3.15M
        for (; i < txhpx + n_bottomleft_px; i++)
1225
2.85M
          left_col[i] = left_ref[i * ref_stride];
1226
298k
      }
1227
16.4M
      if (i < num_left_pixels_needed)
1228
851k
        aom_memset16(&left_col[i], left_col[i - 1], num_left_pixels_needed - i);
1229
16.4M
    } else if (n_top_px > 0) {
1230
1.07M
      aom_memset16(left_col, above_ref[0], num_left_pixels_needed);
1231
1.07M
    }
1232
17.6M
  }
1233
1234
  // NEED_ABOVE
1235
18.9M
  if (need_above) {
1236
17.2M
    int need_right = extend_modes[mode] & NEED_ABOVERIGHT;
1237
17.2M
    if (use_filter_intra) need_right = 0;
1238
17.2M
    if (is_dr_mode) need_right = p_angle < 90;
1239
17.2M
    const int num_top_pixels_needed = txwpx + (need_right ? txhpx : 0);
1240
17.2M
    if (n_top_px > 0) {
1241
16.5M
      memcpy(above_row, above_ref, n_top_px * sizeof(above_ref[0]));
1242
16.5M
      i = n_top_px;
1243
16.5M
      if (need_right && n_topright_px > 0) {
1244
528k
        assert(n_top_px == txwpx);
1245
528k
        memcpy(above_row + txwpx, above_ref + txwpx,
1246
528k
               n_topright_px * sizeof(above_ref[0]));
1247
528k
        i += n_topright_px;
1248
528k
      }
1249
16.5M
      if (i < num_top_pixels_needed)
1250
685k
        aom_memset16(&above_row[i], above_row[i - 1],
1251
685k
                     num_top_pixels_needed - i);
1252
16.5M
    } else if (n_left_px > 0) {
1253
637k
      aom_memset16(above_row, left_ref[0], num_top_pixels_needed);
1254
637k
    }
1255
17.2M
  }
1256
1257
18.9M
  if (need_above_left) {
1258
8.59M
    if (n_top_px > 0 && n_left_px > 0) {
1259
7.94M
      above_row[-1] = above_ref[-1];
1260
7.94M
    } else if (n_top_px > 0) {
1261
378k
      above_row[-1] = above_ref[0];
1262
378k
    } else if (n_left_px > 0) {
1263
261k
      above_row[-1] = left_ref[0];
1264
261k
    } else {
1265
11.5k
      above_row[-1] = base;
1266
11.5k
    }
1267
8.59M
    left_col[-1] = above_row[-1];
1268
8.59M
  }
1269
1270
18.9M
  if (use_filter_intra) {
1271
1.05M
    highbd_filter_intra_predictor(dst, dst_stride, tx_size, above_row, left_col,
1272
1.05M
                                  filter_intra_mode, bit_depth);
1273
1.05M
    return;
1274
1.05M
  }
1275
1276
17.8M
  if (is_dr_mode) {
1277
4.52M
    int upsample_above = 0;
1278
4.52M
    int upsample_left = 0;
1279
4.52M
    if (!disable_edge_filter) {
1280
4.14M
      const int need_right = p_angle < 90;
1281
4.14M
      const int need_bottom = p_angle > 180;
1282
4.14M
      if (p_angle != 90 && p_angle != 180) {
1283
3.04M
        const int ab_le = need_above_left ? 1 : 0;
1284
3.04M
        if (need_above && need_left && (txwpx + txhpx >= 24)) {
1285
395k
          filter_intra_edge_corner_high(above_row, left_col);
1286
395k
        }
1287
3.04M
        if (need_above && n_top_px > 0) {
1288
2.11M
          const int strength = intra_edge_filter_strength(
1289
2.11M
              txwpx, txhpx, p_angle - 90, intra_edge_filter_type);
1290
2.11M
          const int n_px = n_top_px + ab_le + (need_right ? txhpx : 0);
1291
2.11M
          av1_filter_intra_edge_high(above_row - ab_le, n_px, strength);
1292
2.11M
        }
1293
3.04M
        if (need_left && n_left_px > 0) {
1294
2.27M
          const int strength = intra_edge_filter_strength(
1295
2.27M
              txhpx, txwpx, p_angle - 180, intra_edge_filter_type);
1296
2.27M
          const int n_px = n_left_px + ab_le + (need_bottom ? txwpx : 0);
1297
2.27M
          av1_filter_intra_edge_high(left_col - ab_le, n_px, strength);
1298
2.27M
        }
1299
3.04M
      }
1300
4.14M
      upsample_above = av1_use_intra_edge_upsample(txwpx, txhpx, p_angle - 90,
1301
4.14M
                                                   intra_edge_filter_type);
1302
4.14M
      if (need_above && upsample_above) {
1303
583k
        const int n_px = txwpx + (need_right ? txhpx : 0);
1304
583k
        av1_upsample_intra_edge_high(above_row, n_px, bit_depth);
1305
583k
      }
1306
4.14M
      upsample_left = av1_use_intra_edge_upsample(txhpx, txwpx, p_angle - 180,
1307
4.14M
                                                  intra_edge_filter_type);
1308
4.14M
      if (need_left && upsample_left) {
1309
844k
        const int n_px = txhpx + (need_bottom ? txwpx : 0);
1310
844k
        av1_upsample_intra_edge_high(left_col, n_px, bit_depth);
1311
844k
      }
1312
4.14M
    }
1313
4.52M
    highbd_dr_predictor(dst, dst_stride, tx_size, above_row, left_col,
1314
4.52M
                        upsample_above, upsample_left, p_angle, bit_depth);
1315
4.52M
    return;
1316
4.52M
  }
1317
1318
  // predict
1319
13.3M
  if (mode == DC_PRED) {
1320
7.73M
    dc_pred_high[n_left_px > 0][n_top_px > 0][tx_size](
1321
7.73M
        dst, dst_stride, above_row, left_col, bit_depth);
1322
7.73M
  } else {
1323
5.58M
    pred_high[mode][tx_size](dst, dst_stride, above_row, left_col, bit_depth);
1324
5.58M
  }
1325
13.3M
}
1326
#endif  // CONFIG_AV1_HIGHBITDEPTH
1327
1328
static void build_intra_predictors(
1329
    const uint8_t *ref, int ref_stride, uint8_t *dst, int dst_stride,
1330
    PREDICTION_MODE mode, int angle_delta, FILTER_INTRA_MODE filter_intra_mode,
1331
    TX_SIZE tx_size, int disable_edge_filter, int n_top_px, int n_topright_px,
1332
22.4M
    int n_left_px, int n_bottomleft_px, int intra_edge_filter_type) {
1333
22.4M
  int i;
1334
22.4M
  const uint8_t *above_ref = ref - ref_stride;
1335
22.4M
  const uint8_t *left_ref = ref - 1;
1336
22.4M
  DECLARE_ALIGNED(16, uint8_t, left_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1337
22.4M
  DECLARE_ALIGNED(16, uint8_t, above_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1338
22.4M
  uint8_t *const above_row = above_data + 16;
1339
22.4M
  uint8_t *const left_col = left_data + 16;
1340
22.4M
  const int txwpx = tx_size_wide[tx_size];
1341
22.4M
  const int txhpx = tx_size_high[tx_size];
1342
22.4M
  int need_left = extend_modes[mode] & NEED_LEFT;
1343
22.4M
  int need_above = extend_modes[mode] & NEED_ABOVE;
1344
22.4M
  int need_above_left = extend_modes[mode] & NEED_ABOVELEFT;
1345
22.4M
  int p_angle = 0;
1346
22.4M
  const int is_dr_mode = av1_is_directional_mode(mode);
1347
22.4M
  const int use_filter_intra = filter_intra_mode != FILTER_INTRA_MODES;
1348
  // The left_data, above_data buffers must be zeroed to fix some intermittent
1349
  // valgrind errors. Uninitialized reads in intra pred modules (e.g. width = 4
1350
  // path in av1_dr_prediction_z1_avx2()) from left_data, above_data are seen to
1351
  // be the potential reason for this issue.
1352
22.4M
  memset(left_data, 129, NUM_INTRA_NEIGHBOUR_PIXELS);
1353
22.4M
  memset(above_data, 127, NUM_INTRA_NEIGHBOUR_PIXELS);
1354
1355
  // The default values if ref pixels are not available:
1356
  // 128 127 127 .. 127 127 127 127 127 127
1357
  // 129  A   B  ..  Y   Z
1358
  // 129  C   D  ..  W   X
1359
  // 129  E   F  ..  U   V
1360
  // 129  G   H  ..  S   T   T   T   T   T
1361
  // ..
1362
1363
22.4M
  if (is_dr_mode) {
1364
5.28M
    p_angle = mode_to_angle_map[mode] + angle_delta;
1365
5.28M
    if (p_angle <= 90)
1366
1.61M
      need_above = 1, need_left = 0, need_above_left = 1;
1367
3.67M
    else if (p_angle < 180)
1368
1.71M
      need_above = 1, need_left = 1, need_above_left = 1;
1369
1.95M
    else
1370
1.95M
      need_above = 0, need_left = 1, need_above_left = 1;
1371
5.28M
  }
1372
22.4M
  if (use_filter_intra) need_left = need_above = need_above_left = 1;
1373
1374
22.4M
  assert(n_top_px >= 0);
1375
22.4M
  assert(n_topright_px >= 0);
1376
22.4M
  assert(n_left_px >= 0);
1377
22.4M
  assert(n_bottomleft_px >= 0);
1378
1379
22.4M
  if ((!need_above && n_left_px == 0) || (!need_left && n_top_px == 0)) {
1380
93.6k
    int val;
1381
93.6k
    if (need_left) {
1382
59.5k
      val = (n_top_px > 0) ? above_ref[0] : 129;
1383
59.5k
    } else {
1384
34.1k
      val = (n_left_px > 0) ? left_ref[0] : 127;
1385
34.1k
    }
1386
2.13M
    for (i = 0; i < txhpx; ++i) {
1387
2.04M
      memset(dst, val, txwpx);
1388
2.04M
      dst += dst_stride;
1389
2.04M
    }
1390
93.6k
    return;
1391
93.6k
  }
1392
1393
  // NEED_LEFT
1394
22.3M
  if (need_left) {
1395
20.8M
    int need_bottom = extend_modes[mode] & NEED_BOTTOMLEFT;
1396
20.8M
    if (use_filter_intra) need_bottom = 0;
1397
20.8M
    if (is_dr_mode) need_bottom = p_angle > 180;
1398
20.8M
    const int num_left_pixels_needed = txhpx + (need_bottom ? txwpx : 0);
1399
20.8M
    i = 0;
1400
20.8M
    if (n_left_px > 0) {
1401
264M
      for (; i < n_left_px; i++) left_col[i] = left_ref[i * ref_stride];
1402
19.6M
      if (need_bottom && n_bottomleft_px > 0) {
1403
361k
        assert(i == txhpx);
1404
3.93M
        for (; i < txhpx + n_bottomleft_px; i++)
1405
3.57M
          left_col[i] = left_ref[i * ref_stride];
1406
361k
      }
1407
19.6M
      if (i < num_left_pixels_needed)
1408
938k
        memset(&left_col[i], left_col[i - 1], num_left_pixels_needed - i);
1409
19.6M
    } else if (n_top_px > 0) {
1410
1.11M
      memset(left_col, above_ref[0], num_left_pixels_needed);
1411
1.11M
    }
1412
20.8M
  }
1413
1414
  // NEED_ABOVE
1415
22.3M
  if (need_above) {
1416
20.4M
    int need_right = extend_modes[mode] & NEED_ABOVERIGHT;
1417
20.4M
    if (use_filter_intra) need_right = 0;
1418
20.4M
    if (is_dr_mode) need_right = p_angle < 90;
1419
20.4M
    const int num_top_pixels_needed = txwpx + (need_right ? txhpx : 0);
1420
20.4M
    if (n_top_px > 0) {
1421
19.8M
      memcpy(above_row, above_ref, n_top_px);
1422
19.8M
      i = n_top_px;
1423
19.8M
      if (need_right && n_topright_px > 0) {
1424
606k
        assert(n_top_px == txwpx);
1425
606k
        memcpy(above_row + txwpx, above_ref + txwpx, n_topright_px);
1426
606k
        i += n_topright_px;
1427
606k
      }
1428
19.8M
      if (i < num_top_pixels_needed)
1429
898k
        memset(&above_row[i], above_row[i - 1], num_top_pixels_needed - i);
1430
19.8M
    } else if (n_left_px > 0) {
1431
599k
      memset(above_row, left_ref[0], num_top_pixels_needed);
1432
599k
    }
1433
20.4M
  }
1434
1435
22.3M
  if (need_above_left) {
1436
10.0M
    if (n_top_px > 0 && n_left_px > 0) {
1437
9.38M
      above_row[-1] = above_ref[-1];
1438
9.38M
    } else if (n_top_px > 0) {
1439
401k
      above_row[-1] = above_ref[0];
1440
401k
    } else if (n_left_px > 0) {
1441
301k
      above_row[-1] = left_ref[0];
1442
301k
    } else {
1443
7.25k
      above_row[-1] = 128;
1444
7.25k
    }
1445
10.0M
    left_col[-1] = above_row[-1];
1446
10.0M
  }
1447
1448
22.3M
  if (use_filter_intra) {
1449
1.10M
    av1_filter_intra_predictor(dst, dst_stride, tx_size, above_row, left_col,
1450
1.10M
                               filter_intra_mode);
1451
1.10M
    return;
1452
1.10M
  }
1453
1454
21.2M
  if (is_dr_mode) {
1455
5.19M
    int upsample_above = 0;
1456
5.19M
    int upsample_left = 0;
1457
5.19M
    if (!disable_edge_filter) {
1458
3.98M
      const int need_right = p_angle < 90;
1459
3.98M
      const int need_bottom = p_angle > 180;
1460
3.98M
      if (p_angle != 90 && p_angle != 180) {
1461
2.82M
        const int ab_le = need_above_left ? 1 : 0;
1462
2.82M
        if (need_above && need_left && (txwpx + txhpx >= 24)) {
1463
518k
          filter_intra_edge_corner(above_row, left_col);
1464
518k
        }
1465
2.82M
        if (need_above && n_top_px > 0) {
1466
1.98M
          const int strength = intra_edge_filter_strength(
1467
1.98M
              txwpx, txhpx, p_angle - 90, intra_edge_filter_type);
1468
1.98M
          const int n_px = n_top_px + ab_le + (need_right ? txhpx : 0);
1469
1.98M
          av1_filter_intra_edge(above_row - ab_le, n_px, strength);
1470
1.98M
        }
1471
2.82M
        if (need_left && n_left_px > 0) {
1472
2.05M
          const int strength = intra_edge_filter_strength(
1473
2.05M
              txhpx, txwpx, p_angle - 180, intra_edge_filter_type);
1474
2.05M
          const int n_px = n_left_px + ab_le + (need_bottom ? txwpx : 0);
1475
2.05M
          av1_filter_intra_edge(left_col - ab_le, n_px, strength);
1476
2.05M
        }
1477
2.82M
      }
1478
3.98M
      upsample_above = av1_use_intra_edge_upsample(txwpx, txhpx, p_angle - 90,
1479
3.98M
                                                   intra_edge_filter_type);
1480
3.98M
      if (need_above && upsample_above) {
1481
483k
        const int n_px = txwpx + (need_right ? txhpx : 0);
1482
483k
        av1_upsample_intra_edge(above_row, n_px);
1483
483k
      }
1484
3.98M
      upsample_left = av1_use_intra_edge_upsample(txhpx, txwpx, p_angle - 180,
1485
3.98M
                                                  intra_edge_filter_type);
1486
3.98M
      if (need_left && upsample_left) {
1487
589k
        const int n_px = txhpx + (need_bottom ? txwpx : 0);
1488
589k
        av1_upsample_intra_edge(left_col, n_px);
1489
589k
      }
1490
3.98M
    }
1491
5.19M
    dr_predictor(dst, dst_stride, tx_size, above_row, left_col, upsample_above,
1492
5.19M
                 upsample_left, p_angle);
1493
5.19M
    return;
1494
5.19M
  }
1495
1496
  // predict
1497
16.0M
  if (mode == DC_PRED) {
1498
9.07M
    dc_pred[n_left_px > 0][n_top_px > 0][tx_size](dst, dst_stride, above_row,
1499
9.07M
                                                  left_col);
1500
9.07M
  } else {
1501
7.02M
    pred[mode][tx_size](dst, dst_stride, above_row, left_col);
1502
7.02M
  }
1503
16.0M
}
1504
1505
static INLINE BLOCK_SIZE scale_chroma_bsize(BLOCK_SIZE bsize, int subsampling_x,
1506
7.45M
                                            int subsampling_y) {
1507
7.45M
  assert(subsampling_x >= 0 && subsampling_x < 2);
1508
7.45M
  assert(subsampling_y >= 0 && subsampling_y < 2);
1509
7.45M
  BLOCK_SIZE bs = bsize;
1510
7.45M
  switch (bsize) {
1511
141k
    case BLOCK_4X4:
1512
141k
      if (subsampling_x == 1 && subsampling_y == 1)
1513
140k
        bs = BLOCK_8X8;
1514
1.15k
      else if (subsampling_x == 1)
1515
1.15k
        bs = BLOCK_8X4;
1516
0
      else if (subsampling_y == 1)
1517
0
        bs = BLOCK_4X8;
1518
141k
      break;
1519
194k
    case BLOCK_4X8:
1520
194k
      if (subsampling_x == 1 && subsampling_y == 1)
1521
194k
        bs = BLOCK_8X8;
1522
0
      else if (subsampling_x == 1)
1523
0
        bs = BLOCK_8X8;
1524
0
      else if (subsampling_y == 1)
1525
0
        bs = BLOCK_4X8;
1526
194k
      break;
1527
241k
    case BLOCK_8X4:
1528
241k
      if (subsampling_x == 1 && subsampling_y == 1)
1529
240k
        bs = BLOCK_8X8;
1530
1.92k
      else if (subsampling_x == 1)
1531
1.92k
        bs = BLOCK_8X4;
1532
0
      else if (subsampling_y == 1)
1533
0
        bs = BLOCK_8X8;
1534
241k
      break;
1535
290k
    case BLOCK_4X16:
1536
290k
      if (subsampling_x == 1 && subsampling_y == 1)
1537
290k
        bs = BLOCK_8X16;
1538
0
      else if (subsampling_x == 1)
1539
0
        bs = BLOCK_8X16;
1540
0
      else if (subsampling_y == 1)
1541
0
        bs = BLOCK_4X16;
1542
290k
      break;
1543
315k
    case BLOCK_16X4:
1544
315k
      if (subsampling_x == 1 && subsampling_y == 1)
1545
311k
        bs = BLOCK_16X8;
1546
3.82k
      else if (subsampling_x == 1)
1547
3.82k
        bs = BLOCK_16X4;
1548
0
      else if (subsampling_y == 1)
1549
0
        bs = BLOCK_16X8;
1550
315k
      break;
1551
6.27M
    default: break;
1552
7.45M
  }
1553
7.45M
  return bs;
1554
7.45M
}
1555
1556
void av1_predict_intra_block(const MACROBLOCKD *xd, BLOCK_SIZE sb_size,
1557
                             int enable_intra_edge_filter, int wpx, int hpx,
1558
                             TX_SIZE tx_size, PREDICTION_MODE mode,
1559
                             int angle_delta, int use_palette,
1560
                             FILTER_INTRA_MODE filter_intra_mode,
1561
                             const uint8_t *ref, int ref_stride, uint8_t *dst,
1562
                             int dst_stride, int col_off, int row_off,
1563
42.1M
                             int plane) {
1564
42.1M
  const MB_MODE_INFO *const mbmi = xd->mi[0];
1565
42.1M
  const int txwpx = tx_size_wide[tx_size];
1566
42.1M
  const int txhpx = tx_size_high[tx_size];
1567
42.1M
  const int x = col_off << MI_SIZE_LOG2;
1568
42.1M
  const int y = row_off << MI_SIZE_LOG2;
1569
1570
42.1M
  if (use_palette) {
1571
661k
    int r, c;
1572
661k
    const uint8_t *const map = xd->plane[plane != 0].color_index_map +
1573
661k
                               xd->color_index_map_offset[plane != 0];
1574
661k
    const uint16_t *const palette =
1575
661k
        mbmi->palette_mode_info.palette_colors + plane * PALETTE_MAX_SIZE;
1576
661k
    if (is_cur_buf_hbd(xd)) {
1577
56.4k
      uint16_t *dst16 = CONVERT_TO_SHORTPTR(dst);
1578
463k
      for (r = 0; r < txhpx; ++r) {
1579
5.18M
        for (c = 0; c < txwpx; ++c) {
1580
4.77M
          dst16[r * dst_stride + c] = palette[map[(r + y) * wpx + c + x]];
1581
4.77M
        }
1582
406k
      }
1583
604k
    } else {
1584
6.51M
      for (r = 0; r < txhpx; ++r) {
1585
92.0M
        for (c = 0; c < txwpx; ++c) {
1586
86.0M
          dst[r * dst_stride + c] =
1587
86.0M
              (uint8_t)palette[map[(r + y) * wpx + c + x]];
1588
86.0M
        }
1589
5.90M
      }
1590
604k
    }
1591
661k
    return;
1592
661k
  }
1593
1594
41.5M
  const struct macroblockd_plane *const pd = &xd->plane[plane];
1595
41.5M
  const int txw = tx_size_wide_unit[tx_size];
1596
41.5M
  const int txh = tx_size_high_unit[tx_size];
1597
41.5M
  const int ss_x = pd->subsampling_x;
1598
41.5M
  const int ss_y = pd->subsampling_y;
1599
41.5M
  const int have_top =
1600
41.5M
      row_off || (ss_y ? xd->chroma_up_available : xd->up_available);
1601
41.5M
  const int have_left =
1602
41.5M
      col_off || (ss_x ? xd->chroma_left_available : xd->left_available);
1603
41.5M
  const int mi_row = -xd->mb_to_top_edge >> (3 + MI_SIZE_LOG2);
1604
41.5M
  const int mi_col = -xd->mb_to_left_edge >> (3 + MI_SIZE_LOG2);
1605
1606
  // Distance between the right edge of this prediction block to
1607
  // the frame right edge
1608
41.5M
  const int xr = (xd->mb_to_right_edge >> (3 + ss_x)) + wpx - x - txwpx;
1609
  // Distance between the bottom edge of this prediction block to
1610
  // the frame bottom edge
1611
41.5M
  const int yd = (xd->mb_to_bottom_edge >> (3 + ss_y)) + hpx - y - txhpx;
1612
41.5M
  const int right_available =
1613
41.5M
      mi_col + ((col_off + txw) << ss_x) < xd->tile.mi_col_end;
1614
41.5M
  const int bottom_available =
1615
41.5M
      (yd > 0) && (mi_row + ((row_off + txh) << ss_y) < xd->tile.mi_row_end);
1616
1617
41.5M
  const PARTITION_TYPE partition = mbmi->partition;
1618
1619
41.5M
  BLOCK_SIZE bsize = mbmi->bsize;
1620
  // force 4x4 chroma component block size.
1621
41.5M
  if (ss_x || ss_y) {
1622
7.45M
    bsize = scale_chroma_bsize(bsize, ss_x, ss_y);
1623
7.45M
  }
1624
1625
41.5M
  const int have_top_right =
1626
41.5M
      has_top_right(sb_size, bsize, mi_row, mi_col, have_top, right_available,
1627
41.5M
                    partition, tx_size, row_off, col_off, ss_x, ss_y);
1628
41.5M
  const int have_bottom_left = has_bottom_left(
1629
41.5M
      sb_size, bsize, mi_row, mi_col, bottom_available, have_left, partition,
1630
41.5M
      tx_size, row_off, col_off, ss_x, ss_y);
1631
1632
41.5M
  const int disable_edge_filter = !enable_intra_edge_filter;
1633
41.5M
  const int intra_edge_filter_type = get_intra_edge_filter_type(xd, plane);
1634
41.5M
#if CONFIG_AV1_HIGHBITDEPTH
1635
41.5M
  if (is_cur_buf_hbd(xd)) {
1636
19.0M
    build_intra_predictors_high(
1637
19.0M
        ref, ref_stride, dst, dst_stride, mode, angle_delta, filter_intra_mode,
1638
19.0M
        tx_size, disable_edge_filter, have_top ? AOMMIN(txwpx, xr + txwpx) : 0,
1639
19.0M
        have_top_right ? AOMMIN(txwpx, xr) : 0,
1640
19.0M
        have_left ? AOMMIN(txhpx, yd + txhpx) : 0,
1641
19.0M
        have_bottom_left ? AOMMIN(txhpx, yd) : 0, intra_edge_filter_type,
1642
19.0M
        xd->bd);
1643
19.0M
    return;
1644
19.0M
  }
1645
22.4M
#endif
1646
22.4M
  build_intra_predictors(
1647
22.4M
      ref, ref_stride, dst, dst_stride, mode, angle_delta, filter_intra_mode,
1648
22.4M
      tx_size, disable_edge_filter, have_top ? AOMMIN(txwpx, xr + txwpx) : 0,
1649
22.4M
      have_top_right ? AOMMIN(txwpx, xr) : 0,
1650
22.4M
      have_left ? AOMMIN(txhpx, yd + txhpx) : 0,
1651
22.4M
      have_bottom_left ? AOMMIN(txhpx, yd) : 0, intra_edge_filter_type);
1652
22.4M
}
1653
1654
void av1_predict_intra_block_facade(const AV1_COMMON *cm, MACROBLOCKD *xd,
1655
                                    int plane, int blk_col, int blk_row,
1656
42.1M
                                    TX_SIZE tx_size) {
1657
42.1M
  const MB_MODE_INFO *const mbmi = xd->mi[0];
1658
42.1M
  struct macroblockd_plane *const pd = &xd->plane[plane];
1659
42.1M
  const int dst_stride = pd->dst.stride;
1660
42.1M
  uint8_t *dst = &pd->dst.buf[(blk_row * dst_stride + blk_col) << MI_SIZE_LOG2];
1661
42.1M
  const PREDICTION_MODE mode =
1662
42.1M
      (plane == AOM_PLANE_Y) ? mbmi->mode : get_uv_mode(mbmi->uv_mode);
1663
42.1M
  const int use_palette = mbmi->palette_mode_info.palette_size[plane != 0] > 0;
1664
42.1M
  const FILTER_INTRA_MODE filter_intra_mode =
1665
42.1M
      (plane == AOM_PLANE_Y && mbmi->filter_intra_mode_info.use_filter_intra)
1666
42.1M
          ? mbmi->filter_intra_mode_info.filter_intra_mode
1667
42.1M
          : FILTER_INTRA_MODES;
1668
42.1M
  const int angle_delta = mbmi->angle_delta[plane != AOM_PLANE_Y] * ANGLE_STEP;
1669
42.1M
  const SequenceHeader *seq_params = cm->seq_params;
1670
1671
42.1M
  if (plane != AOM_PLANE_Y && mbmi->uv_mode == UV_CFL_PRED) {
1672
4.44M
#if CONFIG_DEBUG
1673
4.44M
    assert(is_cfl_allowed(xd));
1674
4.44M
    const BLOCK_SIZE plane_bsize =
1675
4.44M
        get_plane_block_size(mbmi->bsize, pd->subsampling_x, pd->subsampling_y);
1676
4.44M
    (void)plane_bsize;
1677
4.44M
    assert(plane_bsize < BLOCK_SIZES_ALL);
1678
4.44M
    if (!xd->lossless[mbmi->segment_id]) {
1679
4.43M
      assert(blk_col == 0);
1680
4.43M
      assert(blk_row == 0);
1681
4.43M
      assert(block_size_wide[plane_bsize] == tx_size_wide[tx_size]);
1682
4.43M
      assert(block_size_high[plane_bsize] == tx_size_high[tx_size]);
1683
4.43M
    }
1684
4.44M
#endif
1685
4.44M
    CFL_CTX *const cfl = &xd->cfl;
1686
4.44M
    CFL_PRED_TYPE pred_plane = get_cfl_pred_type(plane);
1687
4.44M
    if (cfl->dc_pred_is_cached[pred_plane] == 0) {
1688
4.44M
      av1_predict_intra_block(xd, seq_params->sb_size,
1689
4.44M
                              seq_params->enable_intra_edge_filter, pd->width,
1690
4.44M
                              pd->height, tx_size, mode, angle_delta,
1691
4.44M
                              use_palette, filter_intra_mode, dst, dst_stride,
1692
4.44M
                              dst, dst_stride, blk_col, blk_row, plane);
1693
4.44M
      if (cfl->use_dc_pred_cache) {
1694
0
        cfl_store_dc_pred(xd, dst, pred_plane, tx_size_wide[tx_size]);
1695
0
        cfl->dc_pred_is_cached[pred_plane] = 1;
1696
0
      }
1697
4.44M
    } else {
1698
0
      cfl_load_dc_pred(xd, dst, dst_stride, tx_size, pred_plane);
1699
0
    }
1700
4.44M
    cfl_predict_block(xd, dst, dst_stride, tx_size, plane);
1701
4.44M
    return;
1702
4.44M
  }
1703
37.7M
  av1_predict_intra_block(
1704
37.7M
      xd, seq_params->sb_size, seq_params->enable_intra_edge_filter, pd->width,
1705
37.7M
      pd->height, tx_size, mode, angle_delta, use_palette, filter_intra_mode,
1706
37.7M
      dst, dst_stride, dst, dst_stride, blk_col, blk_row, plane);
1707
37.7M
}
1708
1709
5
void av1_init_intra_predictors(void) {
1710
5
  aom_once(init_intra_predictors_internal);
1711
5
}