Coverage Report

Created: 2026-03-31 06:59

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 <assert.h>
13
#include <math.h>
14
15
#include "config/aom_config.h"
16
#include "config/aom_dsp_rtcd.h"
17
#include "config/av1_rtcd.h"
18
19
#include "aom_dsp/aom_dsp_common.h"
20
#include "aom_mem/aom_mem.h"
21
#include "aom_ports/aom_once.h"
22
#include "aom_ports/mem.h"
23
#include "av1/common/av1_common_int.h"
24
#include "av1/common/cfl.h"
25
#include "av1/common/reconintra.h"
26
27
enum {
28
  NEED_LEFT = 1 << 1,
29
  NEED_ABOVE = 1 << 2,
30
  NEED_ABOVERIGHT = 1 << 3,
31
  NEED_ABOVELEFT = 1 << 4,
32
  NEED_BOTTOMLEFT = 1 << 5,
33
};
34
35
#define INTRA_EDGE_FILT 3
36
0
#define INTRA_EDGE_TAPS 5
37
#define MAX_UPSAMPLE_SZ 16
38
153M
#define NUM_INTRA_NEIGHBOUR_PIXELS (MAX_TX_SIZE * 2 + 32)
39
40
static const uint8_t extend_modes[INTRA_MODES] = {
41
  NEED_ABOVE | NEED_LEFT,                   // DC
42
  NEED_ABOVE,                               // V
43
  NEED_LEFT,                                // H
44
  NEED_ABOVE | NEED_ABOVERIGHT,             // D45
45
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // D135
46
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // D113
47
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // D157
48
  NEED_LEFT | NEED_BOTTOMLEFT,              // D203
49
  NEED_ABOVE | NEED_ABOVERIGHT,             // D67
50
  NEED_LEFT | NEED_ABOVE,                   // SMOOTH
51
  NEED_LEFT | NEED_ABOVE,                   // SMOOTH_V
52
  NEED_LEFT | NEED_ABOVE,                   // SMOOTH_H
53
  NEED_LEFT | NEED_ABOVE | NEED_ABOVELEFT,  // PAETH
54
};
55
56
// Tables to store if the top-right reference pixels are available. The flags
57
// are represented with bits, packed into 8-bit integers. E.g., for the 32x32
58
// blocks in a 128x128 superblock, the index of the "o" block is 10 (in raster
59
// order), so its flag is stored at the 3rd bit of the 2nd entry in the table,
60
// i.e. (table[10 / 8] >> (10 % 8)) & 1.
61
//       . . . .
62
//       . . . .
63
//       . . o .
64
//       . . . .
65
static uint8_t has_tr_4x4[128] = {
66
  255, 255, 255, 255, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
67
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
68
  255, 127, 255, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
69
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
70
  255, 255, 255, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
71
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
72
  255, 127, 255, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
73
  127, 127, 127, 127, 85, 85, 85, 85, 119, 119, 119, 119, 85, 85, 85, 85,
74
};
75
static uint8_t has_tr_4x8[64] = {
76
  255, 255, 255, 255, 119, 119, 119, 119, 127, 127, 127, 127, 119,
77
  119, 119, 119, 255, 127, 255, 127, 119, 119, 119, 119, 127, 127,
78
  127, 127, 119, 119, 119, 119, 255, 255, 255, 127, 119, 119, 119,
79
  119, 127, 127, 127, 127, 119, 119, 119, 119, 255, 127, 255, 127,
80
  119, 119, 119, 119, 127, 127, 127, 127, 119, 119, 119, 119,
81
};
82
static uint8_t has_tr_8x4[64] = {
83
  255, 255, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
84
  127, 127, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
85
  255, 127, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
86
  127, 127, 0, 0, 85, 85, 0, 0, 119, 119, 0, 0, 85, 85, 0, 0,
87
};
88
static uint8_t has_tr_8x8[32] = {
89
  255, 255, 85, 85, 119, 119, 85, 85, 127, 127, 85, 85, 119, 119, 85, 85,
90
  255, 127, 85, 85, 119, 119, 85, 85, 127, 127, 85, 85, 119, 119, 85, 85,
91
};
92
static uint8_t has_tr_8x16[16] = {
93
  255, 255, 119, 119, 127, 127, 119, 119,
94
  255, 127, 119, 119, 127, 127, 119, 119,
95
};
96
static uint8_t has_tr_16x8[16] = {
97
  255, 0, 85, 0, 119, 0, 85, 0, 127, 0, 85, 0, 119, 0, 85, 0,
98
};
99
static uint8_t has_tr_16x16[8] = {
100
  255, 85, 119, 85, 127, 85, 119, 85,
101
};
102
static uint8_t has_tr_16x32[4] = { 255, 119, 127, 119 };
103
static uint8_t has_tr_32x16[4] = { 15, 5, 7, 5 };
104
static uint8_t has_tr_32x32[2] = { 95, 87 };
105
static uint8_t has_tr_32x64[1] = { 127 };
106
static uint8_t has_tr_64x32[1] = { 19 };
107
static uint8_t has_tr_64x64[1] = { 7 };
108
static uint8_t has_tr_64x128[1] = { 3 };
109
static uint8_t has_tr_128x64[1] = { 1 };
110
static uint8_t has_tr_128x128[1] = { 1 };
111
static uint8_t has_tr_4x16[32] = {
112
  255, 255, 255, 255, 127, 127, 127, 127, 255, 127, 255,
113
  127, 127, 127, 127, 127, 255, 255, 255, 127, 127, 127,
114
  127, 127, 255, 127, 255, 127, 127, 127, 127, 127,
115
};
116
static uint8_t has_tr_16x4[32] = {
117
  255, 0, 0, 0, 85, 0, 0, 0, 119, 0, 0, 0, 85, 0, 0, 0,
118
  127, 0, 0, 0, 85, 0, 0, 0, 119, 0, 0, 0, 85, 0, 0, 0,
119
};
120
static uint8_t has_tr_8x32[8] = {
121
  255, 255, 127, 127, 255, 127, 127, 127,
122
};
123
static uint8_t has_tr_32x8[8] = {
124
  15, 0, 5, 0, 7, 0, 5, 0,
125
};
126
static uint8_t has_tr_16x64[2] = { 255, 127 };
127
static uint8_t has_tr_64x16[2] = { 3, 1 };
128
129
static const uint8_t *const has_tr_tables[BLOCK_SIZES_ALL] = {
130
  // 4X4
131
  has_tr_4x4,
132
  // 4X8,       8X4,            8X8
133
  has_tr_4x8, has_tr_8x4, has_tr_8x8,
134
  // 8X16,      16X8,           16X16
135
  has_tr_8x16, has_tr_16x8, has_tr_16x16,
136
  // 16X32,     32X16,          32X32
137
  has_tr_16x32, has_tr_32x16, has_tr_32x32,
138
  // 32X64,     64X32,          64X64
139
  has_tr_32x64, has_tr_64x32, has_tr_64x64,
140
  // 64x128,    128x64,         128x128
141
  has_tr_64x128, has_tr_128x64, has_tr_128x128,
142
  // 4x16,      16x4,            8x32
143
  has_tr_4x16, has_tr_16x4, has_tr_8x32,
144
  // 32x8,      16x64,           64x16
145
  has_tr_32x8, has_tr_16x64, has_tr_64x16
146
};
147
148
static uint8_t has_tr_vert_8x8[32] = {
149
  255, 255, 0, 0, 119, 119, 0, 0, 127, 127, 0, 0, 119, 119, 0, 0,
150
  255, 127, 0, 0, 119, 119, 0, 0, 127, 127, 0, 0, 119, 119, 0, 0,
151
};
152
static uint8_t has_tr_vert_16x16[8] = {
153
  255, 0, 119, 0, 127, 0, 119, 0,
154
};
155
static uint8_t has_tr_vert_32x32[2] = { 15, 7 };
156
static uint8_t has_tr_vert_64x64[1] = { 3 };
157
158
// The _vert_* tables are like the ordinary tables above, but describe the
159
// order we visit square blocks when doing a PARTITION_VERT_A or
160
// PARTITION_VERT_B. This is the same order as normal except for on the last
161
// split where we go vertically (TL, BL, TR, BR). We treat the rectangular block
162
// as a pair of squares, which means that these tables work correctly for both
163
// mixed vertical partition types.
164
//
165
// There are tables for each of the square sizes. Vertical rectangles (like
166
// BLOCK_16X32) use their respective "non-vert" table
167
static const uint8_t *const has_tr_vert_tables[BLOCK_SIZES] = {
168
  // 4X4
169
  NULL,
170
  // 4X8,      8X4,         8X8
171
  has_tr_4x8, NULL, has_tr_vert_8x8,
172
  // 8X16,     16X8,        16X16
173
  has_tr_8x16, NULL, has_tr_vert_16x16,
174
  // 16X32,    32X16,       32X32
175
  has_tr_16x32, NULL, has_tr_vert_32x32,
176
  // 32X64,    64X32,       64X64
177
  has_tr_32x64, NULL, has_tr_vert_64x64,
178
  // 64x128,   128x64,      128x128
179
  has_tr_64x128, NULL, has_tr_128x128
180
};
181
182
static const uint8_t *get_has_tr_table(PARTITION_TYPE partition,
183
520k
                                       BLOCK_SIZE bsize) {
184
520k
  const uint8_t *ret = NULL;
185
  // If this is a mixed vertical partition, look up bsize in orders_vert.
186
520k
  if (partition == PARTITION_VERT_A || partition == PARTITION_VERT_B) {
187
50.3k
    assert(bsize < BLOCK_SIZES);
188
50.3k
    ret = has_tr_vert_tables[bsize];
189
470k
  } else {
190
470k
    ret = has_tr_tables[bsize];
191
470k
  }
192
520k
  assert(ret);
193
520k
  return ret;
194
520k
}
195
196
static int has_top_right(BLOCK_SIZE sb_size, BLOCK_SIZE bsize, int mi_row,
197
                         int mi_col, int top_available, int right_available,
198
                         PARTITION_TYPE partition, TX_SIZE txsz, int row_off,
199
890k
                         int col_off, int ss_x, int ss_y) {
200
890k
  if (!top_available || !right_available) return 0;
201
202
837k
  const int bw_unit = mi_size_wide[bsize];
203
837k
  const int plane_bw_unit = AOMMAX(bw_unit >> ss_x, 1);
204
837k
  const int top_right_count_unit = tx_size_wide_unit[txsz];
205
206
837k
  if (row_off > 0) {  // Just need to check if enough pixels on the right.
207
106k
    if (block_size_wide[bsize] > block_size_wide[BLOCK_64X64]) {
208
      // Special case: For 128x128 blocks, the transform unit whose
209
      // top-right corner is at the center of the block does in fact have
210
      // pixels available at its top-right corner.
211
58.8k
      if (row_off == mi_size_high[BLOCK_64X64] >> ss_y &&
212
24.1k
          col_off + top_right_count_unit == mi_size_wide[BLOCK_64X64] >> ss_x) {
213
10.9k
        return 1;
214
10.9k
      }
215
47.8k
      const int plane_bw_unit_64 = mi_size_wide[BLOCK_64X64] >> ss_x;
216
47.8k
      const int col_off_64 = col_off % plane_bw_unit_64;
217
47.8k
      return col_off_64 + top_right_count_unit < plane_bw_unit_64;
218
58.8k
    }
219
47.2k
    return col_off + top_right_count_unit < plane_bw_unit;
220
731k
  } else {
221
    // All top-right pixels are in the block above, which is already available.
222
731k
    if (col_off + top_right_count_unit < plane_bw_unit) return 1;
223
224
703k
    const int bw_in_mi_log2 = mi_size_wide_log2[bsize];
225
703k
    const int bh_in_mi_log2 = mi_size_high_log2[bsize];
226
703k
    const int sb_mi_size = mi_size_high[sb_size];
227
703k
    const int blk_row_in_sb = (mi_row & (sb_mi_size - 1)) >> bh_in_mi_log2;
228
703k
    const int blk_col_in_sb = (mi_col & (sb_mi_size - 1)) >> bw_in_mi_log2;
229
230
    // Top row of superblock: so top-right pixels are in the top and/or
231
    // top-right superblocks, both of which are already available.
232
703k
    if (blk_row_in_sb == 0) return 1;
233
234
    // Rightmost column of superblock (and not the top row): so top-right pixels
235
    // fall in the right superblock, which is not available yet.
236
611k
    if (((blk_col_in_sb + 1) << bw_in_mi_log2) >= sb_mi_size) {
237
90.4k
      return 0;
238
90.4k
    }
239
240
    // General case (neither top row nor rightmost column): check if the
241
    // top-right block is coded before the current block.
242
520k
    const int this_blk_index =
243
520k
        ((blk_row_in_sb + 0) << (MAX_MIB_SIZE_LOG2 - bw_in_mi_log2)) +
244
520k
        blk_col_in_sb + 0;
245
520k
    const int idx1 = this_blk_index / 8;
246
520k
    const int idx2 = this_blk_index % 8;
247
520k
    const uint8_t *has_tr_table = get_has_tr_table(partition, bsize);
248
520k
    return (has_tr_table[idx1] >> idx2) & 1;
249
611k
  }
250
837k
}
251
252
// Similar to the has_tr_* tables, but store if the bottom-left reference
253
// pixels are available.
254
static uint8_t has_bl_4x4[128] = {
255
  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  1,  1,  1,  84, 85, 85,
256
  85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  0,  1,  0,  84, 85, 85, 85, 16, 17,
257
  17, 17, 84, 85, 85, 85, 0,  1,  1,  1,  84, 85, 85, 85, 16, 17, 17, 17, 84,
258
  85, 85, 85, 0,  0,  0,  0,  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85,
259
  0,  1,  1,  1,  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  0,  1,
260
  0,  84, 85, 85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  1,  1,  1,  84, 85,
261
  85, 85, 16, 17, 17, 17, 84, 85, 85, 85, 0,  0,  0,  0,
262
};
263
static uint8_t has_bl_4x8[64] = {
264
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 1, 0,
265
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 0, 0,
266
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 1, 0,
267
  16, 17, 17, 17, 0, 1, 1, 1, 16, 17, 17, 17, 0, 0, 0, 0,
268
};
269
static uint8_t has_bl_8x4[64] = {
270
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 1,
271
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 0,
272
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 1,
273
  254, 255, 84, 85, 254, 255, 16, 17, 254, 255, 84, 85, 254, 255, 0, 0,
274
};
275
static uint8_t has_bl_8x8[32] = {
276
  84, 85, 16, 17, 84, 85, 0, 1, 84, 85, 16, 17, 84, 85, 0, 0,
277
  84, 85, 16, 17, 84, 85, 0, 1, 84, 85, 16, 17, 84, 85, 0, 0,
278
};
279
static uint8_t has_bl_8x16[16] = {
280
  16, 17, 0, 1, 16, 17, 0, 0, 16, 17, 0, 1, 16, 17, 0, 0,
281
};
282
static uint8_t has_bl_16x8[16] = {
283
  254, 84, 254, 16, 254, 84, 254, 0, 254, 84, 254, 16, 254, 84, 254, 0,
284
};
285
static uint8_t has_bl_16x16[8] = {
286
  84, 16, 84, 0, 84, 16, 84, 0,
287
};
288
static uint8_t has_bl_16x32[4] = { 16, 0, 16, 0 };
289
static uint8_t has_bl_32x16[4] = { 78, 14, 78, 14 };
290
static uint8_t has_bl_32x32[2] = { 4, 4 };
291
static uint8_t has_bl_32x64[1] = { 0 };
292
static uint8_t has_bl_64x32[1] = { 34 };
293
static uint8_t has_bl_64x64[1] = { 0 };
294
static uint8_t has_bl_64x128[1] = { 0 };
295
static uint8_t has_bl_128x64[1] = { 0 };
296
static uint8_t has_bl_128x128[1] = { 0 };
297
static uint8_t has_bl_4x16[32] = {
298
  0, 1, 1, 1, 0, 0, 1, 0, 0, 1, 1, 1, 0, 0, 0, 0,
299
  0, 1, 1, 1, 0, 0, 1, 0, 0, 1, 1, 1, 0, 0, 0, 0,
300
};
301
static uint8_t has_bl_16x4[32] = {
302
  254, 254, 254, 84, 254, 254, 254, 16, 254, 254, 254, 84, 254, 254, 254, 0,
303
  254, 254, 254, 84, 254, 254, 254, 16, 254, 254, 254, 84, 254, 254, 254, 0,
304
};
305
static uint8_t has_bl_8x32[8] = {
306
  0, 1, 0, 0, 0, 1, 0, 0,
307
};
308
static uint8_t has_bl_32x8[8] = {
309
  238, 78, 238, 14, 238, 78, 238, 14,
310
};
311
static uint8_t has_bl_16x64[2] = { 0, 0 };
312
static uint8_t has_bl_64x16[2] = { 42, 42 };
313
314
static const uint8_t *const has_bl_tables[BLOCK_SIZES_ALL] = {
315
  // 4X4
316
  has_bl_4x4,
317
  // 4X8,         8X4,         8X8
318
  has_bl_4x8, has_bl_8x4, has_bl_8x8,
319
  // 8X16,        16X8,        16X16
320
  has_bl_8x16, has_bl_16x8, has_bl_16x16,
321
  // 16X32,       32X16,       32X32
322
  has_bl_16x32, has_bl_32x16, has_bl_32x32,
323
  // 32X64,       64X32,       64X64
324
  has_bl_32x64, has_bl_64x32, has_bl_64x64,
325
  // 64x128,      128x64,      128x128
326
  has_bl_64x128, has_bl_128x64, has_bl_128x128,
327
  // 4x16,        16x4,        8x32
328
  has_bl_4x16, has_bl_16x4, has_bl_8x32,
329
  // 32x8,        16x64,       64x16
330
  has_bl_32x8, has_bl_16x64, has_bl_64x16
331
};
332
333
static uint8_t has_bl_vert_8x8[32] = {
334
  254, 255, 16, 17, 254, 255, 0, 1, 254, 255, 16, 17, 254, 255, 0, 0,
335
  254, 255, 16, 17, 254, 255, 0, 1, 254, 255, 16, 17, 254, 255, 0, 0,
336
};
337
static uint8_t has_bl_vert_16x16[8] = {
338
  254, 16, 254, 0, 254, 16, 254, 0,
339
};
340
static uint8_t has_bl_vert_32x32[2] = { 14, 14 };
341
static uint8_t has_bl_vert_64x64[1] = { 2 };
342
343
// The _vert_* tables are like the ordinary tables above, but describe the
344
// order we visit square blocks when doing a PARTITION_VERT_A or
345
// PARTITION_VERT_B. This is the same order as normal except for on the last
346
// split where we go vertically (TL, BL, TR, BR). We treat the rectangular block
347
// as a pair of squares, which means that these tables work correctly for both
348
// mixed vertical partition types.
349
//
350
// There are tables for each of the square sizes. Vertical rectangles (like
351
// BLOCK_16X32) use their respective "non-vert" table
352
static const uint8_t *const has_bl_vert_tables[BLOCK_SIZES] = {
353
  // 4X4
354
  NULL,
355
  // 4X8,     8X4,         8X8
356
  has_bl_4x8, NULL, has_bl_vert_8x8,
357
  // 8X16,    16X8,        16X16
358
  has_bl_8x16, NULL, has_bl_vert_16x16,
359
  // 16X32,   32X16,       32X32
360
  has_bl_16x32, NULL, has_bl_vert_32x32,
361
  // 32X64,   64X32,       64X64
362
  has_bl_32x64, NULL, has_bl_vert_64x64,
363
  // 64x128,  128x64,      128x128
364
  has_bl_64x128, NULL, has_bl_128x128
365
};
366
367
static const uint8_t *get_has_bl_table(PARTITION_TYPE partition,
368
747k
                                       BLOCK_SIZE bsize) {
369
747k
  const uint8_t *ret = NULL;
370
  // If this is a mixed vertical partition, look up bsize in orders_vert.
371
747k
  if (partition == PARTITION_VERT_A || partition == PARTITION_VERT_B) {
372
62.1k
    assert(bsize < BLOCK_SIZES);
373
62.1k
    ret = has_bl_vert_tables[bsize];
374
685k
  } else {
375
685k
    ret = has_bl_tables[bsize];
376
685k
  }
377
747k
  assert(ret);
378
747k
  return ret;
379
747k
}
380
381
static int has_bottom_left(BLOCK_SIZE sb_size, BLOCK_SIZE bsize, int mi_row,
382
                           int mi_col, int bottom_available, int left_available,
383
                           PARTITION_TYPE partition, TX_SIZE txsz, int row_off,
384
1.39M
                           int col_off, int ss_x, int ss_y) {
385
1.39M
  if (!bottom_available || !left_available) return 0;
386
387
  // Special case for 128x* blocks, when col_off is half the block width.
388
  // This is needed because 128x* superblocks are divided into 64x* blocks in
389
  // raster order
390
1.27M
  if (block_size_wide[bsize] > block_size_wide[BLOCK_64X64] && col_off > 0) {
391
87.1k
    const int plane_bw_unit_64 = mi_size_wide[BLOCK_64X64] >> ss_x;
392
87.1k
    const int col_off_64 = col_off % plane_bw_unit_64;
393
87.1k
    if (col_off_64 == 0) {
394
      // We are at the left edge of top-right or bottom-right 64x* block.
395
39.5k
      const int plane_bh_unit_64 = mi_size_high[BLOCK_64X64] >> ss_y;
396
39.5k
      const int row_off_64 = row_off % plane_bh_unit_64;
397
39.5k
      const int plane_bh_unit =
398
39.5k
          AOMMIN(mi_size_high[bsize] >> ss_y, plane_bh_unit_64);
399
      // Check if all bottom-left pixels are in the left 64x* block (which is
400
      // already coded).
401
39.5k
      return row_off_64 + tx_size_high_unit[txsz] < plane_bh_unit;
402
39.5k
    }
403
87.1k
  }
404
405
1.24M
  if (col_off > 0) {
406
    // Bottom-left pixels are in the bottom-left block, which is not available.
407
156k
    return 0;
408
1.08M
  } else {
409
1.08M
    const int bh_unit = mi_size_high[bsize];
410
1.08M
    const int plane_bh_unit = AOMMAX(bh_unit >> ss_y, 1);
411
1.08M
    const int bottom_left_count_unit = tx_size_high_unit[txsz];
412
413
    // All bottom-left pixels are in the left block, which is already available.
414
1.08M
    if (row_off + bottom_left_count_unit < plane_bh_unit) return 1;
415
416
1.04M
    const int bw_in_mi_log2 = mi_size_wide_log2[bsize];
417
1.04M
    const int bh_in_mi_log2 = mi_size_high_log2[bsize];
418
1.04M
    const int sb_mi_size = mi_size_high[sb_size];
419
1.04M
    const int blk_row_in_sb = (mi_row & (sb_mi_size - 1)) >> bh_in_mi_log2;
420
1.04M
    const int blk_col_in_sb = (mi_col & (sb_mi_size - 1)) >> bw_in_mi_log2;
421
422
    // Leftmost column of superblock: so bottom-left pixels maybe in the left
423
    // and/or bottom-left superblocks. But only the left superblock is
424
    // available, so check if all required pixels fall in that superblock.
425
1.04M
    if (blk_col_in_sb == 0) {
426
170k
      const int blk_start_row_off =
427
170k
          blk_row_in_sb << (bh_in_mi_log2 + MI_SIZE_LOG2 - MI_SIZE_LOG2) >>
428
170k
          ss_y;
429
170k
      const int row_off_in_sb = blk_start_row_off + row_off;
430
170k
      const int sb_height_unit = sb_mi_size >> ss_y;
431
170k
      return row_off_in_sb + bottom_left_count_unit < sb_height_unit;
432
170k
    }
433
434
    // Bottom row of superblock (and not the leftmost column): so bottom-left
435
    // pixels fall in the bottom superblock, which is not available yet.
436
869k
    if (((blk_row_in_sb + 1) << bh_in_mi_log2) >= sb_mi_size) return 0;
437
438
    // General case (neither leftmost column nor bottom row): check if the
439
    // bottom-left block is coded before the current block.
440
747k
    const int this_blk_index =
441
747k
        ((blk_row_in_sb + 0) << (MAX_MIB_SIZE_LOG2 - bw_in_mi_log2)) +
442
747k
        blk_col_in_sb + 0;
443
747k
    const int idx1 = this_blk_index / 8;
444
747k
    const int idx2 = this_blk_index % 8;
445
747k
    const uint8_t *has_bl_table = get_has_bl_table(partition, bsize);
446
747k
    return (has_bl_table[idx1] >> idx2) & 1;
447
869k
  }
448
1.24M
}
449
450
typedef void (*intra_pred_fn)(uint8_t *dst, ptrdiff_t stride,
451
                              const uint8_t *above, const uint8_t *left);
452
453
static intra_pred_fn pred[INTRA_MODES][TX_SIZES_ALL];
454
static intra_pred_fn dc_pred[2][2][TX_SIZES_ALL];
455
456
#if CONFIG_AV1_HIGHBITDEPTH
457
typedef void (*intra_high_pred_fn)(uint16_t *dst, ptrdiff_t stride,
458
                                   const uint16_t *above, const uint16_t *left,
459
                                   int bd);
460
static intra_high_pred_fn pred_high[INTRA_MODES][TX_SIZES_ALL];
461
static intra_high_pred_fn dc_pred_high[2][2][TX_SIZES_ALL];
462
#endif
463
464
1
static void init_intra_predictors_internal(void) {
465
1
  assert(NELEMENTS(mode_to_angle_map) == INTRA_MODES);
466
467
#if CONFIG_REALTIME_ONLY && !CONFIG_AV1_DECODER
468
#define INIT_RECTANGULAR(p, type)             \
469
  p[TX_4X8] = aom_##type##_predictor_4x8;     \
470
  p[TX_8X4] = aom_##type##_predictor_8x4;     \
471
  p[TX_8X16] = aom_##type##_predictor_8x16;   \
472
  p[TX_16X8] = aom_##type##_predictor_16x8;   \
473
  p[TX_16X32] = aom_##type##_predictor_16x32; \
474
  p[TX_32X16] = aom_##type##_predictor_32x16; \
475
  p[TX_32X64] = aom_##type##_predictor_32x64; \
476
  p[TX_64X32] = aom_##type##_predictor_64x32;
477
#else
478
1
#define INIT_RECTANGULAR(p, type)             \
479
20
  p[TX_4X8] = aom_##type##_predictor_4x8;     \
480
20
  p[TX_8X4] = aom_##type##_predictor_8x4;     \
481
20
  p[TX_8X16] = aom_##type##_predictor_8x16;   \
482
20
  p[TX_16X8] = aom_##type##_predictor_16x8;   \
483
20
  p[TX_16X32] = aom_##type##_predictor_16x32; \
484
20
  p[TX_32X16] = aom_##type##_predictor_32x16; \
485
20
  p[TX_32X64] = aom_##type##_predictor_32x64; \
486
20
  p[TX_64X32] = aom_##type##_predictor_64x32; \
487
20
  p[TX_4X16] = aom_##type##_predictor_4x16;   \
488
20
  p[TX_16X4] = aom_##type##_predictor_16x4;   \
489
20
  p[TX_8X32] = aom_##type##_predictor_8x32;   \
490
20
  p[TX_32X8] = aom_##type##_predictor_32x8;   \
491
20
  p[TX_16X64] = aom_##type##_predictor_16x64; \
492
20
  p[TX_64X16] = aom_##type##_predictor_64x16;
493
1
#endif  // CONFIG_REALTIME_ONLY && !CONFIG_AV1_DECODER
494
495
1
#define INIT_NO_4X4(p, type)                  \
496
20
  p[TX_8X8] = aom_##type##_predictor_8x8;     \
497
20
  p[TX_16X16] = aom_##type##_predictor_16x16; \
498
20
  p[TX_32X32] = aom_##type##_predictor_32x32; \
499
20
  p[TX_64X64] = aom_##type##_predictor_64x64; \
500
20
  INIT_RECTANGULAR(p, type)
501
502
1
#define INIT_ALL_SIZES(p, type)           \
503
20
  p[TX_4X4] = aom_##type##_predictor_4x4; \
504
20
  INIT_NO_4X4(p, type)
505
506
1
  INIT_ALL_SIZES(pred[V_PRED], v)
507
1
  INIT_ALL_SIZES(pred[H_PRED], h)
508
1
  INIT_ALL_SIZES(pred[PAETH_PRED], paeth)
509
1
  INIT_ALL_SIZES(pred[SMOOTH_PRED], smooth)
510
1
  INIT_ALL_SIZES(pred[SMOOTH_V_PRED], smooth_v)
511
1
  INIT_ALL_SIZES(pred[SMOOTH_H_PRED], smooth_h)
512
1
  INIT_ALL_SIZES(dc_pred[0][0], dc_128)
513
1
  INIT_ALL_SIZES(dc_pred[0][1], dc_top)
514
1
  INIT_ALL_SIZES(dc_pred[1][0], dc_left)
515
1
  INIT_ALL_SIZES(dc_pred[1][1], dc)
516
1
#if CONFIG_AV1_HIGHBITDEPTH
517
1
  INIT_ALL_SIZES(pred_high[V_PRED], highbd_v)
518
1
  INIT_ALL_SIZES(pred_high[H_PRED], highbd_h)
519
1
  INIT_ALL_SIZES(pred_high[PAETH_PRED], highbd_paeth)
520
1
  INIT_ALL_SIZES(pred_high[SMOOTH_PRED], highbd_smooth)
521
1
  INIT_ALL_SIZES(pred_high[SMOOTH_V_PRED], highbd_smooth_v)
522
1
  INIT_ALL_SIZES(pred_high[SMOOTH_H_PRED], highbd_smooth_h)
523
1
  INIT_ALL_SIZES(dc_pred_high[0][0], highbd_dc_128)
524
1
  INIT_ALL_SIZES(dc_pred_high[0][1], highbd_dc_top)
525
1
  INIT_ALL_SIZES(dc_pred_high[1][0], highbd_dc_left)
526
1
  INIT_ALL_SIZES(dc_pred_high[1][1], highbd_dc)
527
1
#endif
528
1
#undef intra_pred_allsizes
529
1
}
530
531
// Directional prediction, zone 1: 0 < angle < 90
532
void av1_dr_prediction_z1_c(uint8_t *dst, ptrdiff_t stride, int bw, int bh,
533
                            const uint8_t *above, const uint8_t *left,
534
0
                            int upsample_above, int dx, int dy) {
535
0
  int r, c, x, base, shift, val;
536
537
0
  (void)left;
538
0
  (void)dy;
539
0
  assert(dy == 1);
540
0
  assert(dx > 0);
541
542
0
  const int max_base_x = ((bw + bh) - 1) << upsample_above;
543
0
  const int frac_bits = 6 - upsample_above;
544
0
  const int base_inc = 1 << upsample_above;
545
0
  x = dx;
546
0
  for (r = 0; r < bh; ++r, dst += stride, x += dx) {
547
0
    base = x >> frac_bits;
548
0
    shift = ((x << upsample_above) & 0x3F) >> 1;
549
550
0
    if (base >= max_base_x) {
551
0
      for (int i = r; i < bh; ++i) {
552
0
        memset(dst, above[max_base_x], bw * sizeof(dst[0]));
553
0
        dst += stride;
554
0
      }
555
0
      return;
556
0
    }
557
558
0
    for (c = 0; c < bw; ++c, base += base_inc) {
559
0
      if (base < max_base_x) {
560
0
        val = above[base] * (32 - shift) + above[base + 1] * shift;
561
0
        dst[c] = ROUND_POWER_OF_TWO(val, 5);
562
0
      } else {
563
0
        dst[c] = above[max_base_x];
564
0
      }
565
0
    }
566
0
  }
567
0
}
568
569
// Directional prediction, zone 2: 90 < angle < 180
570
void av1_dr_prediction_z2_c(uint8_t *dst, ptrdiff_t stride, int bw, int bh,
571
                            const uint8_t *above, const uint8_t *left,
572
                            int upsample_above, int upsample_left, int dx,
573
0
                            int dy) {
574
0
  assert(dx > 0);
575
0
  assert(dy > 0);
576
577
0
  const int min_base_x = -(1 << upsample_above);
578
0
  const int min_base_y = -(1 << upsample_left);
579
0
  (void)min_base_y;
580
0
  const int frac_bits_x = 6 - upsample_above;
581
0
  const int frac_bits_y = 6 - upsample_left;
582
583
0
  for (int r = 0; r < bh; ++r) {
584
0
    for (int c = 0; c < bw; ++c) {
585
0
      int val;
586
0
      int y = r + 1;
587
0
      int x = (c << 6) - y * dx;
588
0
      const int base_x = x >> frac_bits_x;
589
0
      if (base_x >= min_base_x) {
590
0
        const int shift = ((x * (1 << upsample_above)) & 0x3F) >> 1;
591
0
        val = above[base_x] * (32 - shift) + above[base_x + 1] * shift;
592
0
        val = ROUND_POWER_OF_TWO(val, 5);
593
0
      } else {
594
0
        x = c + 1;
595
0
        y = (r << 6) - x * dy;
596
0
        const int base_y = y >> frac_bits_y;
597
0
        assert(base_y >= min_base_y);
598
0
        const int shift = ((y * (1 << upsample_left)) & 0x3F) >> 1;
599
0
        val = left[base_y] * (32 - shift) + left[base_y + 1] * shift;
600
0
        val = ROUND_POWER_OF_TWO(val, 5);
601
0
      }
602
0
      dst[c] = val;
603
0
    }
604
0
    dst += stride;
605
0
  }
606
0
}
607
608
// Directional prediction, zone 3: 180 < angle < 270
609
void av1_dr_prediction_z3_c(uint8_t *dst, ptrdiff_t stride, int bw, int bh,
610
                            const uint8_t *above, const uint8_t *left,
611
0
                            int upsample_left, int dx, int dy) {
612
0
  int r, c, y, base, shift, val;
613
614
0
  (void)above;
615
0
  (void)dx;
616
617
0
  assert(dx == 1);
618
0
  assert(dy > 0);
619
620
0
  const int max_base_y = (bw + bh - 1) << upsample_left;
621
0
  const int frac_bits = 6 - upsample_left;
622
0
  const int base_inc = 1 << upsample_left;
623
0
  y = dy;
624
0
  for (c = 0; c < bw; ++c, y += dy) {
625
0
    base = y >> frac_bits;
626
0
    shift = ((y << upsample_left) & 0x3F) >> 1;
627
628
0
    for (r = 0; r < bh; ++r, base += base_inc) {
629
0
      if (base < max_base_y) {
630
0
        val = left[base] * (32 - shift) + left[base + 1] * shift;
631
0
        dst[r * stride + c] = ROUND_POWER_OF_TWO(val, 5);
632
0
      } else {
633
0
        for (; r < bh; ++r) dst[r * stride + c] = left[max_base_y];
634
0
        break;
635
0
      }
636
0
    }
637
0
  }
638
0
}
639
640
static void dr_predictor(uint8_t *dst, ptrdiff_t stride, TX_SIZE tx_size,
641
                         const uint8_t *above, const uint8_t *left,
642
2.79M
                         int upsample_above, int upsample_left, int angle) {
643
2.79M
  const int dx = av1_get_dx(angle);
644
2.79M
  const int dy = av1_get_dy(angle);
645
2.79M
  const int bw = tx_size_wide[tx_size];
646
2.79M
  const int bh = tx_size_high[tx_size];
647
2.79M
  assert(angle > 0 && angle < 270);
648
649
2.79M
  if (angle > 0 && angle < 90) {
650
288k
    av1_dr_prediction_z1(dst, stride, bw, bh, above, left, upsample_above, dx,
651
288k
                         dy);
652
2.50M
  } else if (angle > 90 && angle < 180) {
653
686k
    av1_dr_prediction_z2(dst, stride, bw, bh, above, left, upsample_above,
654
686k
                         upsample_left, dx, dy);
655
1.81M
  } else if (angle > 180 && angle < 270) {
656
482k
    av1_dr_prediction_z3(dst, stride, bw, bh, above, left, upsample_left, dx,
657
482k
                         dy);
658
1.33M
  } else if (angle == 90) {
659
315k
    pred[V_PRED][tx_size](dst, stride, above, left);
660
1.02M
  } else if (angle == 180) {
661
1.02M
    pred[H_PRED][tx_size](dst, stride, above, left);
662
1.02M
  }
663
2.79M
}
664
665
#if CONFIG_AV1_HIGHBITDEPTH
666
// Directional prediction, zone 1: 0 < angle < 90
667
void av1_highbd_dr_prediction_z1_c(uint16_t *dst, ptrdiff_t stride, int bw,
668
                                   int bh, const uint16_t *above,
669
                                   const uint16_t *left, int upsample_above,
670
0
                                   int dx, int dy, int bd) {
671
0
  int r, c, x, base, shift, val;
672
673
0
  (void)left;
674
0
  (void)dy;
675
0
  (void)bd;
676
0
  assert(dy == 1);
677
0
  assert(dx > 0);
678
679
0
  const int max_base_x = ((bw + bh) - 1) << upsample_above;
680
0
  const int frac_bits = 6 - upsample_above;
681
0
  const int base_inc = 1 << upsample_above;
682
0
  x = dx;
683
0
  for (r = 0; r < bh; ++r, dst += stride, x += dx) {
684
0
    base = x >> frac_bits;
685
0
    shift = ((x << upsample_above) & 0x3F) >> 1;
686
687
0
    if (base >= max_base_x) {
688
0
      for (int i = r; i < bh; ++i) {
689
0
        aom_memset16(dst, above[max_base_x], bw);
690
0
        dst += stride;
691
0
      }
692
0
      return;
693
0
    }
694
695
0
    for (c = 0; c < bw; ++c, base += base_inc) {
696
0
      if (base < max_base_x) {
697
0
        val = above[base] * (32 - shift) + above[base + 1] * shift;
698
0
        dst[c] = ROUND_POWER_OF_TWO(val, 5);
699
0
      } else {
700
0
        dst[c] = above[max_base_x];
701
0
      }
702
0
    }
703
0
  }
704
0
}
705
706
// Directional prediction, zone 2: 90 < angle < 180
707
void av1_highbd_dr_prediction_z2_c(uint16_t *dst, ptrdiff_t stride, int bw,
708
                                   int bh, const uint16_t *above,
709
                                   const uint16_t *left, int upsample_above,
710
0
                                   int upsample_left, int dx, int dy, int bd) {
711
0
  (void)bd;
712
0
  assert(dx > 0);
713
0
  assert(dy > 0);
714
715
0
  const int min_base_x = -(1 << upsample_above);
716
0
  const int min_base_y = -(1 << upsample_left);
717
0
  (void)min_base_y;
718
0
  const int frac_bits_x = 6 - upsample_above;
719
0
  const int frac_bits_y = 6 - upsample_left;
720
721
0
  for (int r = 0; r < bh; ++r) {
722
0
    for (int c = 0; c < bw; ++c) {
723
0
      int val;
724
0
      int y = r + 1;
725
0
      int x = (c << 6) - y * dx;
726
0
      const int base_x = x >> frac_bits_x;
727
0
      if (base_x >= min_base_x) {
728
0
        const int shift = ((x * (1 << upsample_above)) & 0x3F) >> 1;
729
0
        val = above[base_x] * (32 - shift) + above[base_x + 1] * shift;
730
0
        val = ROUND_POWER_OF_TWO(val, 5);
731
0
      } else {
732
0
        x = c + 1;
733
0
        y = (r << 6) - x * dy;
734
0
        const int base_y = y >> frac_bits_y;
735
0
        assert(base_y >= min_base_y);
736
0
        const int shift = ((y * (1 << upsample_left)) & 0x3F) >> 1;
737
0
        val = left[base_y] * (32 - shift) + left[base_y + 1] * shift;
738
0
        val = ROUND_POWER_OF_TWO(val, 5);
739
0
      }
740
0
      dst[c] = val;
741
0
    }
742
0
    dst += stride;
743
0
  }
744
0
}
745
746
// Directional prediction, zone 3: 180 < angle < 270
747
void av1_highbd_dr_prediction_z3_c(uint16_t *dst, ptrdiff_t stride, int bw,
748
                                   int bh, const uint16_t *above,
749
                                   const uint16_t *left, int upsample_left,
750
0
                                   int dx, int dy, int bd) {
751
0
  int r, c, y, base, shift, val;
752
753
0
  (void)above;
754
0
  (void)dx;
755
0
  (void)bd;
756
0
  assert(dx == 1);
757
0
  assert(dy > 0);
758
759
0
  const int max_base_y = (bw + bh - 1) << upsample_left;
760
0
  const int frac_bits = 6 - upsample_left;
761
0
  const int base_inc = 1 << upsample_left;
762
0
  y = dy;
763
0
  for (c = 0; c < bw; ++c, y += dy) {
764
0
    base = y >> frac_bits;
765
0
    shift = ((y << upsample_left) & 0x3F) >> 1;
766
767
0
    for (r = 0; r < bh; ++r, base += base_inc) {
768
0
      if (base < max_base_y) {
769
0
        val = left[base] * (32 - shift) + left[base + 1] * shift;
770
0
        dst[r * stride + c] = ROUND_POWER_OF_TWO(val, 5);
771
0
      } else {
772
0
        for (; r < bh; ++r) dst[r * stride + c] = left[max_base_y];
773
0
        break;
774
0
      }
775
0
    }
776
0
  }
777
0
}
778
779
static void highbd_dr_predictor(uint16_t *dst, ptrdiff_t stride,
780
                                TX_SIZE tx_size, const uint16_t *above,
781
                                const uint16_t *left, int upsample_above,
782
4.73M
                                int upsample_left, int angle, int bd) {
783
4.73M
  const int dx = av1_get_dx(angle);
784
4.73M
  const int dy = av1_get_dy(angle);
785
4.73M
  const int bw = tx_size_wide[tx_size];
786
4.73M
  const int bh = tx_size_high[tx_size];
787
4.73M
  assert(angle > 0 && angle < 270);
788
789
4.73M
  if (angle > 0 && angle < 90) {
790
571k
    av1_highbd_dr_prediction_z1(dst, stride, bw, bh, above, left,
791
571k
                                upsample_above, dx, dy, bd);
792
4.16M
  } else if (angle > 90 && angle < 180) {
793
1.12M
    av1_highbd_dr_prediction_z2(dst, stride, bw, bh, above, left,
794
1.12M
                                upsample_above, upsample_left, dx, dy, bd);
795
3.03M
  } else if (angle > 180 && angle < 270) {
796
816k
    av1_highbd_dr_prediction_z3(dst, stride, bw, bh, above, left, upsample_left,
797
816k
                                dx, dy, bd);
798
2.21M
  } else if (angle == 90) {
799
508k
    pred_high[V_PRED][tx_size](dst, stride, above, left, bd);
800
1.71M
  } else if (angle == 180) {
801
1.71M
    pred_high[H_PRED][tx_size](dst, stride, above, left, bd);
802
1.71M
  }
803
4.73M
}
804
#endif  // CONFIG_AV1_HIGHBITDEPTH
805
806
DECLARE_ALIGNED(16, const int8_t,
807
                av1_filter_intra_taps[FILTER_INTRA_MODES][8][8]) = {
808
  {
809
      { -6, 10, 0, 0, 0, 12, 0, 0 },
810
      { -5, 2, 10, 0, 0, 9, 0, 0 },
811
      { -3, 1, 1, 10, 0, 7, 0, 0 },
812
      { -3, 1, 1, 2, 10, 5, 0, 0 },
813
      { -4, 6, 0, 0, 0, 2, 12, 0 },
814
      { -3, 2, 6, 0, 0, 2, 9, 0 },
815
      { -3, 2, 2, 6, 0, 2, 7, 0 },
816
      { -3, 1, 2, 2, 6, 3, 5, 0 },
817
  },
818
  {
819
      { -10, 16, 0, 0, 0, 10, 0, 0 },
820
      { -6, 0, 16, 0, 0, 6, 0, 0 },
821
      { -4, 0, 0, 16, 0, 4, 0, 0 },
822
      { -2, 0, 0, 0, 16, 2, 0, 0 },
823
      { -10, 16, 0, 0, 0, 0, 10, 0 },
824
      { -6, 0, 16, 0, 0, 0, 6, 0 },
825
      { -4, 0, 0, 16, 0, 0, 4, 0 },
826
      { -2, 0, 0, 0, 16, 0, 2, 0 },
827
  },
828
  {
829
      { -8, 8, 0, 0, 0, 16, 0, 0 },
830
      { -8, 0, 8, 0, 0, 16, 0, 0 },
831
      { -8, 0, 0, 8, 0, 16, 0, 0 },
832
      { -8, 0, 0, 0, 8, 16, 0, 0 },
833
      { -4, 4, 0, 0, 0, 0, 16, 0 },
834
      { -4, 0, 4, 0, 0, 0, 16, 0 },
835
      { -4, 0, 0, 4, 0, 0, 16, 0 },
836
      { -4, 0, 0, 0, 4, 0, 16, 0 },
837
  },
838
  {
839
      { -2, 8, 0, 0, 0, 10, 0, 0 },
840
      { -1, 3, 8, 0, 0, 6, 0, 0 },
841
      { -1, 2, 3, 8, 0, 4, 0, 0 },
842
      { 0, 1, 2, 3, 8, 2, 0, 0 },
843
      { -1, 4, 0, 0, 0, 3, 10, 0 },
844
      { -1, 3, 4, 0, 0, 4, 6, 0 },
845
      { -1, 2, 3, 4, 0, 4, 4, 0 },
846
      { -1, 2, 2, 3, 4, 3, 3, 0 },
847
  },
848
  {
849
      { -12, 14, 0, 0, 0, 14, 0, 0 },
850
      { -10, 0, 14, 0, 0, 12, 0, 0 },
851
      { -9, 0, 0, 14, 0, 11, 0, 0 },
852
      { -8, 0, 0, 0, 14, 10, 0, 0 },
853
      { -10, 12, 0, 0, 0, 0, 14, 0 },
854
      { -9, 1, 12, 0, 0, 0, 12, 0 },
855
      { -8, 0, 0, 12, 0, 1, 11, 0 },
856
      { -7, 0, 0, 1, 12, 1, 9, 0 },
857
  },
858
};
859
860
void av1_filter_intra_predictor_c(uint8_t *dst, ptrdiff_t stride,
861
                                  TX_SIZE tx_size, const uint8_t *above,
862
0
                                  const uint8_t *left, int mode) {
863
0
  int r, c;
864
0
  uint8_t buffer[33][33];
865
0
  const int bw = tx_size_wide[tx_size];
866
0
  const int bh = tx_size_high[tx_size];
867
868
0
  assert(bw <= 32 && bh <= 32);
869
870
0
  for (r = 0; r < bh; ++r) buffer[r + 1][0] = left[r];
871
0
  memcpy(buffer[0], &above[-1], (bw + 1) * sizeof(uint8_t));
872
873
0
  for (r = 1; r < bh + 1; r += 2)
874
0
    for (c = 1; c < bw + 1; c += 4) {
875
0
      const uint8_t p0 = buffer[r - 1][c - 1];
876
0
      const uint8_t p1 = buffer[r - 1][c];
877
0
      const uint8_t p2 = buffer[r - 1][c + 1];
878
0
      const uint8_t p3 = buffer[r - 1][c + 2];
879
0
      const uint8_t p4 = buffer[r - 1][c + 3];
880
0
      const uint8_t p5 = buffer[r][c - 1];
881
0
      const uint8_t p6 = buffer[r + 1][c - 1];
882
0
      for (int k = 0; k < 8; ++k) {
883
0
        int r_offset = k >> 2;
884
0
        int c_offset = k & 0x03;
885
0
        int pr = av1_filter_intra_taps[mode][k][0] * p0 +
886
0
                 av1_filter_intra_taps[mode][k][1] * p1 +
887
0
                 av1_filter_intra_taps[mode][k][2] * p2 +
888
0
                 av1_filter_intra_taps[mode][k][3] * p3 +
889
0
                 av1_filter_intra_taps[mode][k][4] * p4 +
890
0
                 av1_filter_intra_taps[mode][k][5] * p5 +
891
0
                 av1_filter_intra_taps[mode][k][6] * p6;
892
        // Section 7.11.2.3 specifies the right-hand side of the assignment as
893
        //   Clip1( Round2Signed( pr, INTRA_FILTER_SCALE_BITS ) ).
894
        // Since Clip1() clips a negative value to 0, it is safe to replace
895
        // Round2Signed() with Round2().
896
0
        buffer[r + r_offset][c + c_offset] =
897
0
            clip_pixel(ROUND_POWER_OF_TWO(pr, FILTER_INTRA_SCALE_BITS));
898
0
      }
899
0
    }
900
901
0
  for (r = 0; r < bh; ++r) {
902
0
    memcpy(dst, &buffer[r + 1][1], bw * sizeof(uint8_t));
903
0
    dst += stride;
904
0
  }
905
0
}
906
907
#if CONFIG_AV1_HIGHBITDEPTH
908
static void highbd_filter_intra_predictor(uint16_t *dst, ptrdiff_t stride,
909
                                          TX_SIZE tx_size,
910
                                          const uint16_t *above,
911
                                          const uint16_t *left, int mode,
912
646k
                                          int bd) {
913
646k
  int r, c;
914
646k
  uint16_t buffer[33][33];
915
646k
  const int bw = tx_size_wide[tx_size];
916
646k
  const int bh = tx_size_high[tx_size];
917
918
646k
  assert(bw <= 32 && bh <= 32);
919
920
7.23M
  for (r = 0; r < bh; ++r) buffer[r + 1][0] = left[r];
921
646k
  memcpy(buffer[0], &above[-1], (bw + 1) * sizeof(buffer[0][0]));
922
923
3.92M
  for (r = 1; r < bh + 1; r += 2)
924
15.5M
    for (c = 1; c < bw + 1; c += 4) {
925
12.2M
      const uint16_t p0 = buffer[r - 1][c - 1];
926
12.2M
      const uint16_t p1 = buffer[r - 1][c];
927
12.2M
      const uint16_t p2 = buffer[r - 1][c + 1];
928
12.2M
      const uint16_t p3 = buffer[r - 1][c + 2];
929
12.2M
      const uint16_t p4 = buffer[r - 1][c + 3];
930
12.2M
      const uint16_t p5 = buffer[r][c - 1];
931
12.2M
      const uint16_t p6 = buffer[r + 1][c - 1];
932
110M
      for (int k = 0; k < 8; ++k) {
933
97.8M
        int r_offset = k >> 2;
934
97.8M
        int c_offset = k & 0x03;
935
97.8M
        int pr = av1_filter_intra_taps[mode][k][0] * p0 +
936
97.8M
                 av1_filter_intra_taps[mode][k][1] * p1 +
937
97.8M
                 av1_filter_intra_taps[mode][k][2] * p2 +
938
97.8M
                 av1_filter_intra_taps[mode][k][3] * p3 +
939
97.8M
                 av1_filter_intra_taps[mode][k][4] * p4 +
940
97.8M
                 av1_filter_intra_taps[mode][k][5] * p5 +
941
97.8M
                 av1_filter_intra_taps[mode][k][6] * p6;
942
        // Section 7.11.2.3 specifies the right-hand side of the assignment as
943
        //   Clip1( Round2Signed( pr, INTRA_FILTER_SCALE_BITS ) ).
944
        // Since Clip1() clips a negative value to 0, it is safe to replace
945
        // Round2Signed() with Round2().
946
97.8M
        buffer[r + r_offset][c + c_offset] = clip_pixel_highbd(
947
97.8M
            ROUND_POWER_OF_TWO(pr, FILTER_INTRA_SCALE_BITS), bd);
948
97.8M
      }
949
12.2M
    }
950
951
7.23M
  for (r = 0; r < bh; ++r) {
952
6.58M
    memcpy(dst, &buffer[r + 1][1], bw * sizeof(dst[0]));
953
6.58M
    dst += stride;
954
6.58M
  }
955
646k
}
956
#endif  // CONFIG_AV1_HIGHBITDEPTH
957
958
15.4M
static int is_smooth(const MB_MODE_INFO *mbmi, int plane) {
959
15.4M
  if (plane == 0) {
960
7.58M
    const PREDICTION_MODE mode = mbmi->mode;
961
7.58M
    return (mode == SMOOTH_PRED || mode == SMOOTH_V_PRED ||
962
6.81M
            mode == SMOOTH_H_PRED);
963
7.91M
  } else {
964
    // uv_mode is not set for inter blocks, so need to explicitly
965
    // detect that case.
966
7.91M
    if (is_inter_block(mbmi)) return 0;
967
968
7.09M
    const UV_PREDICTION_MODE uv_mode = mbmi->uv_mode;
969
7.09M
    return (uv_mode == UV_SMOOTH_PRED || uv_mode == UV_SMOOTH_V_PRED ||
970
6.60M
            uv_mode == UV_SMOOTH_H_PRED);
971
7.91M
  }
972
15.4M
}
973
974
8.76M
static int get_intra_edge_filter_type(const MACROBLOCKD *xd, int plane) {
975
8.76M
  const MB_MODE_INFO *above;
976
8.76M
  const MB_MODE_INFO *left;
977
978
8.76M
  if (plane == 0) {
979
4.40M
    above = xd->above_mbmi;
980
4.40M
    left = xd->left_mbmi;
981
4.40M
  } else {
982
4.35M
    above = xd->chroma_above_mbmi;
983
4.35M
    left = xd->chroma_left_mbmi;
984
4.35M
  }
985
986
8.76M
  return (above && is_smooth(above, plane)) || (left && is_smooth(left, plane));
987
8.76M
}
988
989
4.80M
static int intra_edge_filter_strength(int bs0, int bs1, int delta, int type) {
990
4.80M
  const int d = abs(delta);
991
4.80M
  int strength = 0;
992
993
4.80M
  const int blk_wh = bs0 + bs1;
994
4.80M
  if (type == 0) {
995
3.73M
    if (blk_wh <= 8) {
996
614k
      if (d >= 56) strength = 1;
997
3.12M
    } else if (blk_wh <= 12) {
998
417k
      if (d >= 40) strength = 1;
999
2.70M
    } else if (blk_wh <= 16) {
1000
582k
      if (d >= 40) strength = 1;
1001
2.12M
    } else if (blk_wh <= 24) {
1002
805k
      if (d >= 8) strength = 1;
1003
805k
      if (d >= 16) strength = 2;
1004
805k
      if (d >= 32) strength = 3;
1005
1.31M
    } else if (blk_wh <= 32) {
1006
412k
      if (d >= 1) strength = 1;
1007
412k
      if (d >= 4) strength = 2;
1008
412k
      if (d >= 32) strength = 3;
1009
905k
    } else {
1010
906k
      if (d >= 1) strength = 3;
1011
905k
    }
1012
3.73M
  } else {
1013
1.07M
    if (blk_wh <= 8) {
1014
140k
      if (d >= 40) strength = 1;
1015
140k
      if (d >= 64) strength = 2;
1016
930k
    } else if (blk_wh <= 16) {
1017
295k
      if (d >= 20) strength = 1;
1018
295k
      if (d >= 48) strength = 2;
1019
635k
    } else if (blk_wh <= 24) {
1020
244k
      if (d >= 4) strength = 3;
1021
391k
    } else {
1022
392k
      if (d >= 1) strength = 3;
1023
391k
    }
1024
1.07M
  }
1025
4.80M
  return strength;
1026
4.80M
}
1027
1028
0
void av1_filter_intra_edge_c(uint8_t *p, int sz, int strength) {
1029
0
  if (!strength) return;
1030
1031
0
  const int kernel[INTRA_EDGE_FILT][INTRA_EDGE_TAPS] = { { 0, 4, 8, 4, 0 },
1032
0
                                                         { 0, 5, 6, 5, 0 },
1033
0
                                                         { 2, 4, 4, 4, 2 } };
1034
0
  const int filt = strength - 1;
1035
0
  uint8_t edge[129];
1036
1037
0
  memcpy(edge, p, sz * sizeof(*p));
1038
0
  for (int i = 1; i < sz; i++) {
1039
0
    int s = 0;
1040
0
    for (int j = 0; j < INTRA_EDGE_TAPS; j++) {
1041
0
      int k = i - 2 + j;
1042
0
      k = (k < 0) ? 0 : k;
1043
0
      k = (k > sz - 1) ? sz - 1 : k;
1044
0
      s += edge[k] * kernel[filt][j];
1045
0
    }
1046
0
    s = (s + 8) >> 4;
1047
0
    p[i] = s;
1048
0
  }
1049
0
}
1050
1051
270k
static void filter_intra_edge_corner(uint8_t *p_above, uint8_t *p_left) {
1052
270k
  const int kernel[3] = { 5, 6, 5 };
1053
1054
270k
  int s = (p_left[0] * kernel[0]) + (p_above[-1] * kernel[1]) +
1055
270k
          (p_above[0] * kernel[2]);
1056
270k
  s = (s + 8) >> 4;
1057
270k
  p_above[-1] = s;
1058
270k
  p_left[-1] = s;
1059
270k
}
1060
1061
0
void av1_upsample_intra_edge_c(uint8_t *p, int sz) {
1062
  // interpolate half-sample positions
1063
0
  assert(sz <= MAX_UPSAMPLE_SZ);
1064
1065
0
  uint8_t in[MAX_UPSAMPLE_SZ + 3];
1066
  // copy p[-1..(sz-1)] and extend first and last samples
1067
0
  in[0] = p[-1];
1068
0
  in[1] = p[-1];
1069
0
  for (int i = 0; i < sz; i++) {
1070
0
    in[i + 2] = p[i];
1071
0
  }
1072
0
  in[sz + 2] = p[sz - 1];
1073
1074
  // interpolate half-sample edge positions
1075
0
  p[-2] = in[0];
1076
0
  for (int i = 0; i < sz; i++) {
1077
0
    int s = -in[i] + (9 * in[i + 1]) + (9 * in[i + 2]) - in[i + 3];
1078
0
    s = clip_pixel((s + 8) >> 4);
1079
0
    p[2 * i - 1] = s;
1080
0
    p[2 * i] = in[i + 2];
1081
0
  }
1082
0
}
1083
1084
static void build_directional_and_filter_intra_predictors(
1085
    const uint8_t *ref, int ref_stride, uint8_t *dst, int dst_stride,
1086
    PREDICTION_MODE mode, int p_angle, FILTER_INTRA_MODE filter_intra_mode,
1087
    TX_SIZE tx_size, int disable_edge_filter, int n_top_px, int n_topright_px,
1088
3.26M
    int n_left_px, int n_bottomleft_px, int intra_edge_filter_type) {
1089
3.26M
  int i;
1090
3.26M
  const uint8_t *above_ref = ref - ref_stride;
1091
3.26M
  const uint8_t *left_ref = ref - 1;
1092
3.26M
  DECLARE_ALIGNED(16, uint8_t, left_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1093
3.26M
  DECLARE_ALIGNED(16, uint8_t, above_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1094
3.26M
  uint8_t *const above_row = above_data + 16;
1095
3.26M
  uint8_t *const left_col = left_data + 16;
1096
3.26M
  const int txwpx = tx_size_wide[tx_size];
1097
3.26M
  const int txhpx = tx_size_high[tx_size];
1098
3.26M
  int need_left = extend_modes[mode] & NEED_LEFT;
1099
3.26M
  int need_above = extend_modes[mode] & NEED_ABOVE;
1100
3.26M
  int need_above_left = extend_modes[mode] & NEED_ABOVELEFT;
1101
3.26M
  const int is_dr_mode = av1_is_directional_mode(mode);
1102
3.26M
  const int use_filter_intra = filter_intra_mode != FILTER_INTRA_MODES;
1103
3.26M
  assert(use_filter_intra || is_dr_mode);
1104
  // The left_data, above_data buffers must be zeroed to fix some intermittent
1105
  // valgrind errors. Uninitialized reads in intra pred modules (e.g. width = 4
1106
  // path in av1_dr_prediction_z1_avx2()) from left_data, above_data are seen to
1107
  // be the potential reason for this issue.
1108
3.26M
  memset(left_data, 129, NUM_INTRA_NEIGHBOUR_PIXELS);
1109
3.26M
  memset(above_data, 127, NUM_INTRA_NEIGHBOUR_PIXELS);
1110
1111
  // The default values if ref pixels are not available:
1112
  // 128 127 127 .. 127 127 127 127 127 127
1113
  // 129  A   B  ..  Y   Z
1114
  // 129  C   D  ..  W   X
1115
  // 129  E   F  ..  U   V
1116
  // 129  G   H  ..  S   T   T   T   T   T
1117
  // ..
1118
1119
3.26M
  if (is_dr_mode) {
1120
2.83M
    if (p_angle <= 90)
1121
623k
      need_above = 1, need_left = 0, need_above_left = 1;
1122
2.21M
    else if (p_angle < 180)
1123
686k
      need_above = 1, need_left = 1, need_above_left = 1;
1124
1.52M
    else
1125
1.52M
      need_above = 0, need_left = 1, need_above_left = 1;
1126
2.83M
  }
1127
3.26M
  if (use_filter_intra) need_left = need_above = need_above_left = 1;
1128
1129
3.26M
  assert(n_top_px >= 0);
1130
3.26M
  assert(n_topright_px >= -1);
1131
3.26M
  assert(n_left_px >= 0);
1132
3.26M
  assert(n_bottomleft_px >= -1);
1133
1134
3.26M
  if ((!need_above && n_left_px == 0) || (!need_left && n_top_px == 0)) {
1135
44.8k
    int val;
1136
44.8k
    if (need_left) {
1137
24.7k
      val = (n_top_px > 0) ? above_ref[0] : 129;
1138
24.7k
    } else {
1139
20.0k
      val = (n_left_px > 0) ? left_ref[0] : 127;
1140
20.0k
    }
1141
1.43M
    for (i = 0; i < txhpx; ++i) {
1142
1.38M
      memset(dst, val, txwpx);
1143
1.38M
      dst += dst_stride;
1144
1.38M
    }
1145
44.8k
    return;
1146
44.8k
  }
1147
1148
  // NEED_LEFT
1149
3.22M
  if (need_left) {
1150
2.61M
    const int num_left_pixels_needed =
1151
2.61M
        txhpx + (n_bottomleft_px >= 0 ? txwpx : 0);
1152
2.61M
    i = 0;
1153
2.61M
    if (n_left_px > 0) {
1154
35.7M
      for (; i < n_left_px; i++) left_col[i] = left_ref[i * ref_stride];
1155
2.58M
      if (n_bottomleft_px > 0) {
1156
197k
        assert(i == txhpx);
1157
2.43M
        for (; i < txhpx + n_bottomleft_px; i++)
1158
2.23M
          left_col[i] = left_ref[i * ref_stride];
1159
197k
      }
1160
2.58M
      if (i < num_left_pixels_needed)
1161
407k
        memset(&left_col[i], left_col[i - 1], num_left_pixels_needed - i);
1162
2.58M
    } else if (n_top_px > 0) {
1163
19.4k
      memset(left_col, above_ref[0], num_left_pixels_needed);
1164
19.4k
    }
1165
2.61M
  }
1166
1167
  // NEED_ABOVE
1168
3.22M
  if (need_above) {
1169
1.72M
    const int num_top_pixels_needed = txwpx + (n_topright_px >= 0 ? txhpx : 0);
1170
1.72M
    if (n_top_px > 0) {
1171
1.68M
      memcpy(above_row, above_ref, n_top_px);
1172
1.68M
      i = n_top_px;
1173
1.68M
      if (n_topright_px > 0) {
1174
165k
        assert(n_top_px == txwpx);
1175
165k
        memcpy(above_row + txwpx, above_ref + txwpx, n_topright_px);
1176
165k
        i += n_topright_px;
1177
165k
      }
1178
1.68M
      if (i < num_top_pixels_needed)
1179
171k
        memset(&above_row[i], above_row[i - 1], num_top_pixels_needed - i);
1180
1.68M
    } else if (n_left_px > 0) {
1181
28.2k
      memset(above_row, left_ref[0], num_top_pixels_needed);
1182
28.2k
    }
1183
1.72M
  }
1184
1185
3.22M
  if (need_above_left) {
1186
3.22M
    if (n_top_px > 0 && n_left_px > 0) {
1187
3.10M
      above_row[-1] = above_ref[-1];
1188
3.10M
    } else if (n_top_px > 0) {
1189
43.1k
      above_row[-1] = above_ref[0];
1190
78.5k
    } else if (n_left_px > 0) {
1191
68.5k
      above_row[-1] = left_ref[0];
1192
68.5k
    } else {
1193
9.92k
      above_row[-1] = 128;
1194
9.92k
    }
1195
3.22M
    left_col[-1] = above_row[-1];
1196
3.22M
  }
1197
1198
3.22M
  if (use_filter_intra) {
1199
432k
    av1_filter_intra_predictor(dst, dst_stride, tx_size, above_row, left_col,
1200
432k
                               filter_intra_mode);
1201
432k
    return;
1202
432k
  }
1203
1204
3.22M
  assert(is_dr_mode);
1205
2.79M
  int upsample_above = 0;
1206
2.79M
  int upsample_left = 0;
1207
2.79M
  if (!disable_edge_filter) {
1208
2.59M
    const int need_right = p_angle < 90;
1209
2.59M
    const int need_bottom = p_angle > 180;
1210
2.59M
    if (p_angle != 90 && p_angle != 180) {
1211
1.33M
      assert(need_above_left);
1212
1.33M
      const int ab_le = 1;
1213
1.33M
      if (need_above && need_left && (txwpx + txhpx >= 24)) {
1214
270k
        filter_intra_edge_corner(above_row, left_col);
1215
270k
      }
1216
1.33M
      if (need_above && n_top_px > 0) {
1217
868k
        const int strength = intra_edge_filter_strength(
1218
868k
            txwpx, txhpx, p_angle - 90, intra_edge_filter_type);
1219
868k
        const int n_px = n_top_px + ab_le + (need_right ? txhpx : 0);
1220
868k
        av1_filter_intra_edge(above_row - ab_le, n_px, strength);
1221
868k
      }
1222
1.33M
      if (need_left && n_left_px > 0) {
1223
1.08M
        const int strength = intra_edge_filter_strength(
1224
1.08M
            txhpx, txwpx, p_angle - 180, intra_edge_filter_type);
1225
1.08M
        const int n_px = n_left_px + ab_le + (need_bottom ? txwpx : 0);
1226
1.08M
        av1_filter_intra_edge(left_col - ab_le, n_px, strength);
1227
1.08M
      }
1228
1.33M
    }
1229
2.59M
    upsample_above = av1_use_intra_edge_upsample(txwpx, txhpx, p_angle - 90,
1230
2.59M
                                                 intra_edge_filter_type);
1231
2.59M
    if (need_above && upsample_above) {
1232
146k
      const int n_px = txwpx + (need_right ? txhpx : 0);
1233
146k
      av1_upsample_intra_edge(above_row, n_px);
1234
146k
    }
1235
2.59M
    upsample_left = av1_use_intra_edge_upsample(txhpx, txwpx, p_angle - 180,
1236
2.59M
                                                intra_edge_filter_type);
1237
2.59M
    if (need_left && upsample_left) {
1238
290k
      const int n_px = txhpx + (need_bottom ? txwpx : 0);
1239
290k
      av1_upsample_intra_edge(left_col, n_px);
1240
290k
    }
1241
2.59M
  }
1242
2.79M
  dr_predictor(dst, dst_stride, tx_size, above_row, left_col, upsample_above,
1243
2.79M
               upsample_left, p_angle);
1244
2.79M
}
1245
1246
// This function generates the pred data of a given block for non-directional
1247
// intra prediction modes (i.e., DC, SMOOTH, SMOOTH_H, SMOOTH_V and PAETH).
1248
static void build_non_directional_intra_predictors(
1249
    const uint8_t *ref, int ref_stride, uint8_t *dst, int dst_stride,
1250
8.82M
    PREDICTION_MODE mode, TX_SIZE tx_size, int n_top_px, int n_left_px) {
1251
8.82M
  const uint8_t *above_ref = ref - ref_stride;
1252
8.82M
  const uint8_t *left_ref = ref - 1;
1253
8.82M
  const int txwpx = tx_size_wide[tx_size];
1254
8.82M
  const int txhpx = tx_size_high[tx_size];
1255
8.82M
  const int need_left = extend_modes[mode] & NEED_LEFT;
1256
8.82M
  const int need_above = extend_modes[mode] & NEED_ABOVE;
1257
8.82M
  const int need_above_left = extend_modes[mode] & NEED_ABOVELEFT;
1258
8.82M
  int i = 0;
1259
8.82M
  assert(n_top_px >= 0);
1260
8.82M
  assert(n_left_px >= 0);
1261
8.82M
  assert(mode == DC_PRED || mode == SMOOTH_PRED || mode == SMOOTH_V_PRED ||
1262
8.82M
         mode == SMOOTH_H_PRED || mode == PAETH_PRED);
1263
1264
8.82M
  if ((!need_above && n_left_px == 0) || (!need_left && n_top_px == 0)) {
1265
0
    int val = 0;
1266
0
    if (need_left) {
1267
0
      val = (n_top_px > 0) ? above_ref[0] : 129;
1268
0
    } else {
1269
0
      val = (n_left_px > 0) ? left_ref[0] : 127;
1270
0
    }
1271
0
    for (i = 0; i < txhpx; ++i) {
1272
0
      memset(dst, val, txwpx);
1273
0
      dst += dst_stride;
1274
0
    }
1275
0
    return;
1276
0
  }
1277
1278
8.82M
  DECLARE_ALIGNED(16, uint8_t, left_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1279
8.82M
  DECLARE_ALIGNED(16, uint8_t, above_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1280
8.82M
  uint8_t *const above_row = above_data + 16;
1281
8.82M
  uint8_t *const left_col = left_data + 16;
1282
1283
8.82M
  if (need_left) {
1284
8.82M
    memset(left_data, 129, NUM_INTRA_NEIGHBOUR_PIXELS);
1285
8.82M
    if (n_left_px > 0) {
1286
154M
      for (i = 0; i < n_left_px; i++) left_col[i] = left_ref[i * ref_stride];
1287
8.42M
      if (i < txhpx) memset(&left_col[i], left_col[i - 1], txhpx - i);
1288
8.42M
    } else if (n_top_px > 0) {
1289
333k
      memset(left_col, above_ref[0], txhpx);
1290
333k
    }
1291
8.82M
  }
1292
1293
8.82M
  if (need_above) {
1294
8.82M
    memset(above_data, 127, NUM_INTRA_NEIGHBOUR_PIXELS);
1295
8.82M
    if (n_top_px > 0) {
1296
8.44M
      memcpy(above_row, above_ref, n_top_px);
1297
8.44M
      i = n_top_px;
1298
8.44M
      if (i < txwpx) memset(&above_row[i], above_row[i - 1], txwpx - i);
1299
8.44M
    } else if (n_left_px > 0) {
1300
314k
      memset(above_row, left_ref[0], txwpx);
1301
314k
    }
1302
8.82M
  }
1303
1304
8.82M
  if (need_above_left) {
1305
2.29M
    if (n_top_px > 0 && n_left_px > 0) {
1306
2.10M
      above_row[-1] = above_ref[-1];
1307
2.10M
    } else if (n_top_px > 0) {
1308
141k
      above_row[-1] = above_ref[0];
1309
141k
    } else if (n_left_px > 0) {
1310
48.0k
      above_row[-1] = left_ref[0];
1311
48.0k
    } else {
1312
2.21k
      above_row[-1] = 128;
1313
2.21k
    }
1314
2.29M
    left_col[-1] = above_row[-1];
1315
2.29M
  }
1316
1317
8.82M
  if (mode == DC_PRED) {
1318
5.37M
    dc_pred[n_left_px > 0][n_top_px > 0][tx_size](dst, dst_stride, above_row,
1319
5.37M
                                                  left_col);
1320
5.37M
  } else {
1321
3.44M
    pred[mode][tx_size](dst, dst_stride, above_row, left_col);
1322
3.44M
  }
1323
8.82M
}
1324
1325
#if CONFIG_AV1_HIGHBITDEPTH
1326
0
void av1_highbd_filter_intra_edge_c(uint16_t *p, int sz, int strength) {
1327
0
  if (!strength) return;
1328
1329
0
  const int kernel[INTRA_EDGE_FILT][INTRA_EDGE_TAPS] = { { 0, 4, 8, 4, 0 },
1330
0
                                                         { 0, 5, 6, 5, 0 },
1331
0
                                                         { 2, 4, 4, 4, 2 } };
1332
0
  const int filt = strength - 1;
1333
0
  uint16_t edge[129];
1334
1335
0
  memcpy(edge, p, sz * sizeof(*p));
1336
0
  for (int i = 1; i < sz; i++) {
1337
0
    int s = 0;
1338
0
    for (int j = 0; j < INTRA_EDGE_TAPS; j++) {
1339
0
      int k = i - 2 + j;
1340
0
      k = (k < 0) ? 0 : k;
1341
0
      k = (k > sz - 1) ? sz - 1 : k;
1342
0
      s += edge[k] * kernel[filt][j];
1343
0
    }
1344
0
    s = (s + 8) >> 4;
1345
0
    p[i] = s;
1346
0
  }
1347
0
}
1348
1349
static void highbd_filter_intra_edge_corner(uint16_t *p_above,
1350
409k
                                            uint16_t *p_left) {
1351
409k
  const int kernel[3] = { 5, 6, 5 };
1352
1353
409k
  int s = (p_left[0] * kernel[0]) + (p_above[-1] * kernel[1]) +
1354
409k
          (p_above[0] * kernel[2]);
1355
409k
  s = (s + 8) >> 4;
1356
409k
  p_above[-1] = s;
1357
409k
  p_left[-1] = s;
1358
409k
}
1359
1360
0
void av1_highbd_upsample_intra_edge_c(uint16_t *p, int sz, int bd) {
1361
  // interpolate half-sample positions
1362
0
  assert(sz <= MAX_UPSAMPLE_SZ);
1363
1364
0
  uint16_t in[MAX_UPSAMPLE_SZ + 3];
1365
  // copy p[-1..(sz-1)] and extend first and last samples
1366
0
  in[0] = p[-1];
1367
0
  in[1] = p[-1];
1368
0
  for (int i = 0; i < sz; i++) {
1369
0
    in[i + 2] = p[i];
1370
0
  }
1371
0
  in[sz + 2] = p[sz - 1];
1372
1373
  // interpolate half-sample edge positions
1374
0
  p[-2] = in[0];
1375
0
  for (int i = 0; i < sz; i++) {
1376
0
    int s = -in[i] + (9 * in[i + 1]) + (9 * in[i + 2]) - in[i + 3];
1377
0
    s = (s + 8) >> 4;
1378
0
    s = clip_pixel_highbd(s, bd);
1379
0
    p[2 * i - 1] = s;
1380
0
    p[2 * i] = in[i + 2];
1381
0
  }
1382
0
}
1383
1384
static void highbd_build_directional_and_filter_intra_predictors(
1385
    const uint8_t *ref8, int ref_stride, uint8_t *dst8, int dst_stride,
1386
    PREDICTION_MODE mode, int p_angle, FILTER_INTRA_MODE filter_intra_mode,
1387
    TX_SIZE tx_size, int disable_edge_filter, int n_top_px, int n_topright_px,
1388
    int n_left_px, int n_bottomleft_px, int intra_edge_filter_type,
1389
5.49M
    int bit_depth) {
1390
5.49M
  int i;
1391
5.49M
  uint16_t *dst = CONVERT_TO_SHORTPTR(dst8);
1392
5.49M
  const uint16_t *const ref = CONVERT_TO_SHORTPTR(ref8);
1393
5.49M
  DECLARE_ALIGNED(16, uint16_t, left_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1394
5.49M
  DECLARE_ALIGNED(16, uint16_t, above_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1395
5.49M
  uint16_t *const above_row = above_data + 16;
1396
5.49M
  uint16_t *const left_col = left_data + 16;
1397
5.49M
  const int txwpx = tx_size_wide[tx_size];
1398
5.49M
  const int txhpx = tx_size_high[tx_size];
1399
5.49M
  int need_left = extend_modes[mode] & NEED_LEFT;
1400
5.49M
  int need_above = extend_modes[mode] & NEED_ABOVE;
1401
5.49M
  int need_above_left = extend_modes[mode] & NEED_ABOVELEFT;
1402
5.49M
  const uint16_t *above_ref = ref - ref_stride;
1403
5.49M
  const uint16_t *left_ref = ref - 1;
1404
5.49M
  const int is_dr_mode = av1_is_directional_mode(mode);
1405
5.49M
  const int use_filter_intra = filter_intra_mode != FILTER_INTRA_MODES;
1406
5.49M
  assert(use_filter_intra || is_dr_mode);
1407
5.49M
  const int base = 128 << (bit_depth - 8);
1408
  // The left_data, above_data buffers must be zeroed to fix some intermittent
1409
  // valgrind errors. Uninitialized reads in intra pred modules (e.g. width = 4
1410
  // path in av1_highbd_dr_prediction_z2_avx2()) from left_data, above_data are
1411
  // seen to be the potential reason for this issue.
1412
5.49M
  aom_memset16(left_data, base + 1, NUM_INTRA_NEIGHBOUR_PIXELS);
1413
5.49M
  aom_memset16(above_data, base - 1, NUM_INTRA_NEIGHBOUR_PIXELS);
1414
1415
  // The default values if ref pixels are not available:
1416
  // base   base-1 base-1 .. base-1 base-1 base-1 base-1 base-1 base-1
1417
  // base+1   A      B  ..     Y      Z
1418
  // base+1   C      D  ..     W      X
1419
  // base+1   E      F  ..     U      V
1420
  // base+1   G      H  ..     S      T      T      T      T      T
1421
1422
5.49M
  if (is_dr_mode) {
1423
4.85M
    if (p_angle <= 90)
1424
1.10M
      need_above = 1, need_left = 0, need_above_left = 1;
1425
3.74M
    else if (p_angle < 180)
1426
1.12M
      need_above = 1, need_left = 1, need_above_left = 1;
1427
2.61M
    else
1428
2.61M
      need_above = 0, need_left = 1, need_above_left = 1;
1429
4.85M
  }
1430
5.49M
  if (use_filter_intra) need_left = need_above = need_above_left = 1;
1431
1432
5.49M
  assert(n_top_px >= 0);
1433
5.49M
  assert(n_topright_px >= -1);
1434
5.49M
  assert(n_left_px >= 0);
1435
5.49M
  assert(n_bottomleft_px >= -1);
1436
1437
5.49M
  if ((!need_above && n_left_px == 0) || (!need_left && n_top_px == 0)) {
1438
123k
    int val;
1439
123k
    if (need_left) {
1440
95.0k
      val = (n_top_px > 0) ? above_ref[0] : base + 1;
1441
95.0k
    } else {
1442
28.4k
      val = (n_left_px > 0) ? left_ref[0] : base - 1;
1443
28.4k
    }
1444
2.62M
    for (i = 0; i < txhpx; ++i) {
1445
2.49M
      aom_memset16(dst, val, txwpx);
1446
2.49M
      dst += dst_stride;
1447
2.49M
    }
1448
123k
    return;
1449
123k
  }
1450
1451
  // NEED_LEFT
1452
5.37M
  if (need_left) {
1453
4.29M
    const int num_left_pixels_needed =
1454
4.29M
        txhpx + (n_bottomleft_px >= 0 ? txwpx : 0);
1455
4.29M
    i = 0;
1456
4.29M
    if (n_left_px > 0) {
1457
57.8M
      for (; i < n_left_px; i++) left_col[i] = left_ref[i * ref_stride];
1458
4.26M
      if (n_bottomleft_px > 0) {
1459
319k
        assert(i == txhpx);
1460
3.79M
        for (; i < txhpx + n_bottomleft_px; i++)
1461
3.47M
          left_col[i] = left_ref[i * ref_stride];
1462
319k
      }
1463
4.26M
      if (i < num_left_pixels_needed)
1464
698k
        aom_memset16(&left_col[i], left_col[i - 1], num_left_pixels_needed - i);
1465
4.26M
    } else if (n_top_px > 0) {
1466
26.9k
      aom_memset16(left_col, above_ref[0], num_left_pixels_needed);
1467
26.9k
    }
1468
4.29M
  }
1469
1470
  // NEED_ABOVE
1471
5.37M
  if (need_above) {
1472
2.85M
    const int num_top_pixels_needed = txwpx + (n_topright_px >= 0 ? txhpx : 0);
1473
2.85M
    if (n_top_px > 0) {
1474
2.81M
      memcpy(above_row, above_ref, n_top_px * sizeof(above_ref[0]));
1475
2.81M
      i = n_top_px;
1476
2.81M
      if (n_topright_px > 0) {
1477
316k
        assert(n_top_px == txwpx);
1478
316k
        memcpy(above_row + txwpx, above_ref + txwpx,
1479
316k
               n_topright_px * sizeof(above_ref[0]));
1480
316k
        i += n_topright_px;
1481
316k
      }
1482
2.81M
      if (i < num_top_pixels_needed)
1483
351k
        aom_memset16(&above_row[i], above_row[i - 1],
1484
351k
                     num_top_pixels_needed - i);
1485
2.81M
    } else if (n_left_px > 0) {
1486
32.8k
      aom_memset16(above_row, left_ref[0], num_top_pixels_needed);
1487
32.8k
    }
1488
2.85M
  }
1489
1490
5.37M
  if (need_above_left) {
1491
5.37M
    if (n_top_px > 0 && n_left_px > 0) {
1492
5.21M
      above_row[-1] = above_ref[-1];
1493
5.21M
    } else if (n_top_px > 0) {
1494
51.5k
      above_row[-1] = above_ref[0];
1495
107k
    } else if (n_left_px > 0) {
1496
104k
      above_row[-1] = left_ref[0];
1497
104k
    } else {
1498
3.48k
      above_row[-1] = base;
1499
3.48k
    }
1500
5.37M
    left_col[-1] = above_row[-1];
1501
5.37M
  }
1502
1503
5.37M
  if (use_filter_intra) {
1504
646k
    highbd_filter_intra_predictor(dst, dst_stride, tx_size, above_row, left_col,
1505
646k
                                  filter_intra_mode, bit_depth);
1506
646k
    return;
1507
646k
  }
1508
1509
5.37M
  assert(is_dr_mode);
1510
4.72M
  int upsample_above = 0;
1511
4.72M
  int upsample_left = 0;
1512
4.72M
  if (!disable_edge_filter) {
1513
4.06M
    const int need_right = p_angle < 90;
1514
4.06M
    const int need_bottom = p_angle > 180;
1515
4.06M
    if (p_angle != 90 && p_angle != 180) {
1516
2.01M
      assert(need_above_left);
1517
2.01M
      const int ab_le = 1;
1518
2.01M
      if (need_above && need_left && (txwpx + txhpx >= 24)) {
1519
409k
        highbd_filter_intra_edge_corner(above_row, left_col);
1520
409k
      }
1521
2.01M
      if (need_above && n_top_px > 0) {
1522
1.30M
        const int strength = intra_edge_filter_strength(
1523
1.30M
            txwpx, txhpx, p_angle - 90, intra_edge_filter_type);
1524
1.30M
        const int n_px = n_top_px + ab_le + (need_right ? txhpx : 0);
1525
1.30M
        av1_highbd_filter_intra_edge(above_row - ab_le, n_px, strength);
1526
1.30M
      }
1527
2.01M
      if (need_left && n_left_px > 0) {
1528
1.55M
        const int strength = intra_edge_filter_strength(
1529
1.55M
            txhpx, txwpx, p_angle - 180, intra_edge_filter_type);
1530
1.55M
        const int n_px = n_left_px + ab_le + (need_bottom ? txwpx : 0);
1531
1.55M
        av1_highbd_filter_intra_edge(left_col - ab_le, n_px, strength);
1532
1.55M
      }
1533
2.01M
    }
1534
4.06M
    upsample_above = av1_use_intra_edge_upsample(txwpx, txhpx, p_angle - 90,
1535
4.06M
                                                 intra_edge_filter_type);
1536
4.06M
    if (need_above && upsample_above) {
1537
213k
      const int n_px = txwpx + (need_right ? txhpx : 0);
1538
213k
      av1_highbd_upsample_intra_edge(above_row, n_px, bit_depth);
1539
213k
    }
1540
4.06M
    upsample_left = av1_use_intra_edge_upsample(txhpx, txwpx, p_angle - 180,
1541
4.06M
                                                intra_edge_filter_type);
1542
4.06M
    if (need_left && upsample_left) {
1543
390k
      const int n_px = txhpx + (need_bottom ? txwpx : 0);
1544
390k
      av1_highbd_upsample_intra_edge(left_col, n_px, bit_depth);
1545
390k
    }
1546
4.06M
  }
1547
4.72M
  highbd_dr_predictor(dst, dst_stride, tx_size, above_row, left_col,
1548
4.72M
                      upsample_above, upsample_left, p_angle, bit_depth);
1549
4.72M
}
1550
1551
// For HBD encode/decode, this function generates the pred data of a given
1552
// block for non-directional intra prediction modes (i.e., DC, SMOOTH, SMOOTH_H,
1553
// SMOOTH_V and PAETH).
1554
static void highbd_build_non_directional_intra_predictors(
1555
    const uint8_t *ref8, int ref_stride, uint8_t *dst8, int dst_stride,
1556
    PREDICTION_MODE mode, TX_SIZE tx_size, int n_top_px, int n_left_px,
1557
59.2M
    int bit_depth) {
1558
59.2M
  int i = 0;
1559
59.2M
  uint16_t *dst = CONVERT_TO_SHORTPTR(dst8);
1560
59.2M
  const uint16_t *const ref = CONVERT_TO_SHORTPTR(ref8);
1561
59.2M
  const int txwpx = tx_size_wide[tx_size];
1562
59.2M
  const int txhpx = tx_size_high[tx_size];
1563
59.2M
  int need_left = extend_modes[mode] & NEED_LEFT;
1564
59.2M
  int need_above = extend_modes[mode] & NEED_ABOVE;
1565
59.2M
  int need_above_left = extend_modes[mode] & NEED_ABOVELEFT;
1566
59.2M
  const uint16_t *above_ref = ref - ref_stride;
1567
59.2M
  const uint16_t *left_ref = ref - 1;
1568
59.2M
  const int base = 128 << (bit_depth - 8);
1569
1570
59.2M
  assert(n_top_px >= 0);
1571
59.2M
  assert(n_left_px >= 0);
1572
59.2M
  assert(mode == DC_PRED || mode == SMOOTH_PRED || mode == SMOOTH_V_PRED ||
1573
59.2M
         mode == SMOOTH_H_PRED || mode == PAETH_PRED);
1574
1575
59.2M
  if ((!need_above && n_left_px == 0) || (!need_left && n_top_px == 0)) {
1576
0
    int val = 0;
1577
0
    if (need_left) {
1578
0
      val = (n_top_px > 0) ? above_ref[0] : base + 1;
1579
0
    } else {
1580
0
      val = (n_left_px > 0) ? left_ref[0] : base - 1;
1581
0
    }
1582
0
    for (i = 0; i < txhpx; ++i) {
1583
0
      aom_memset16(dst, val, txwpx);
1584
0
      dst += dst_stride;
1585
0
    }
1586
0
    return;
1587
0
  }
1588
1589
59.2M
  DECLARE_ALIGNED(16, uint16_t, left_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1590
59.2M
  DECLARE_ALIGNED(16, uint16_t, above_data[NUM_INTRA_NEIGHBOUR_PIXELS]);
1591
59.2M
  uint16_t *const above_row = above_data + 16;
1592
59.2M
  uint16_t *const left_col = left_data + 16;
1593
1594
59.2M
  if (need_left) {
1595
59.2M
    aom_memset16(left_data, base + 1, NUM_INTRA_NEIGHBOUR_PIXELS);
1596
59.2M
    if (n_left_px > 0) {
1597
421M
      for (i = 0; i < n_left_px; i++) left_col[i] = left_ref[i * ref_stride];
1598
58.0M
      if (i < txhpx) aom_memset16(&left_col[i], left_col[i - 1], txhpx - i);
1599
58.0M
    } else if (n_top_px > 0) {
1600
1.10M
      aom_memset16(left_col, above_ref[0], txhpx);
1601
1.10M
    }
1602
59.2M
  }
1603
1604
59.2M
  if (need_above) {
1605
59.2M
    aom_memset16(above_data, base - 1, NUM_INTRA_NEIGHBOUR_PIXELS);
1606
59.2M
    if (n_top_px > 0) {
1607
58.8M
      memcpy(above_row, above_ref, n_top_px * sizeof(above_ref[0]));
1608
58.8M
      i = n_top_px;
1609
58.8M
      if (i < txwpx) aom_memset16(&above_row[i], above_row[i - 1], (txwpx - i));
1610
58.8M
    } else if (n_left_px > 0) {
1611
355k
      aom_memset16(above_row, left_ref[0], txwpx);
1612
355k
    }
1613
59.2M
  }
1614
1615
59.2M
  if (need_above_left) {
1616
2.40M
    if (n_top_px > 0 && n_left_px > 0) {
1617
2.29M
      above_row[-1] = above_ref[-1];
1618
2.29M
    } else if (n_top_px > 0) {
1619
44.7k
      above_row[-1] = above_ref[0];
1620
61.5k
    } else if (n_left_px > 0) {
1621
59.3k
      above_row[-1] = left_ref[0];
1622
59.3k
    } else {
1623
2.19k
      above_row[-1] = base;
1624
2.19k
    }
1625
2.40M
    left_col[-1] = above_row[-1];
1626
2.40M
  }
1627
1628
59.2M
  if (mode == DC_PRED) {
1629
54.8M
    dc_pred_high[n_left_px > 0][n_top_px > 0][tx_size](
1630
54.8M
        dst, dst_stride, above_row, left_col, bit_depth);
1631
54.8M
  } else {
1632
4.38M
    pred_high[mode][tx_size](dst, dst_stride, above_row, left_col, bit_depth);
1633
4.38M
  }
1634
59.2M
}
1635
#endif  // CONFIG_AV1_HIGHBITDEPTH
1636
1637
static inline BLOCK_SIZE scale_chroma_bsize(BLOCK_SIZE bsize, int subsampling_x,
1638
2.78M
                                            int subsampling_y) {
1639
2.78M
  assert(subsampling_x >= 0 && subsampling_x < 2);
1640
2.78M
  assert(subsampling_y >= 0 && subsampling_y < 2);
1641
2.78M
  BLOCK_SIZE bs = bsize;
1642
2.78M
  switch (bsize) {
1643
12.9k
    case BLOCK_4X4:
1644
12.9k
      if (subsampling_x == 1 && subsampling_y == 1)
1645
12.8k
        bs = BLOCK_8X8;
1646
118
      else if (subsampling_x == 1)
1647
118
        bs = BLOCK_8X4;
1648
0
      else if (subsampling_y == 1)
1649
0
        bs = BLOCK_4X8;
1650
12.9k
      break;
1651
27.8k
    case BLOCK_4X8:
1652
27.8k
      if (subsampling_x == 1 && subsampling_y == 1)
1653
27.8k
        bs = BLOCK_8X8;
1654
0
      else if (subsampling_x == 1)
1655
0
        bs = BLOCK_8X8;
1656
0
      else if (subsampling_y == 1)
1657
0
        bs = BLOCK_4X8;
1658
27.8k
      break;
1659
37.3k
    case BLOCK_8X4:
1660
37.3k
      if (subsampling_x == 1 && subsampling_y == 1)
1661
36.0k
        bs = BLOCK_8X8;
1662
1.30k
      else if (subsampling_x == 1)
1663
1.30k
        bs = BLOCK_8X4;
1664
0
      else if (subsampling_y == 1)
1665
0
        bs = BLOCK_8X8;
1666
37.3k
      break;
1667
31.9k
    case BLOCK_4X16:
1668
31.9k
      if (subsampling_x == 1 && subsampling_y == 1)
1669
31.9k
        bs = BLOCK_8X16;
1670
0
      else if (subsampling_x == 1)
1671
0
        bs = BLOCK_8X16;
1672
0
      else if (subsampling_y == 1)
1673
0
        bs = BLOCK_4X16;
1674
31.9k
      break;
1675
58.3k
    case BLOCK_16X4:
1676
58.3k
      if (subsampling_x == 1 && subsampling_y == 1)
1677
57.5k
        bs = BLOCK_16X8;
1678
854
      else if (subsampling_x == 1)
1679
854
        bs = BLOCK_16X4;
1680
0
      else if (subsampling_y == 1)
1681
0
        bs = BLOCK_16X8;
1682
58.3k
      break;
1683
2.61M
    default: break;
1684
2.78M
  }
1685
2.78M
  return bs;
1686
2.78M
}
1687
1688
void av1_predict_intra_block(const MACROBLOCKD *xd, BLOCK_SIZE sb_size,
1689
                             int enable_intra_edge_filter, int wpx, int hpx,
1690
                             TX_SIZE tx_size, PREDICTION_MODE mode,
1691
                             int angle_delta, int use_palette,
1692
                             FILTER_INTRA_MODE filter_intra_mode,
1693
                             const uint8_t *ref, int ref_stride, uint8_t *dst,
1694
                             int dst_stride, int col_off, int row_off,
1695
76.8M
                             int plane) {
1696
76.8M
  const MB_MODE_INFO *const mbmi = xd->mi[0];
1697
76.8M
  const int txwpx = tx_size_wide[tx_size];
1698
76.8M
  const int txhpx = tx_size_high[tx_size];
1699
76.8M
  const int x = col_off << MI_SIZE_LOG2;
1700
76.8M
  const int y = row_off << MI_SIZE_LOG2;
1701
76.8M
  const int is_hbd = is_cur_buf_hbd(xd);
1702
1703
76.8M
  assert(mode < INTRA_MODES);
1704
1705
76.8M
  if (use_palette) {
1706
112k
    int r, c;
1707
112k
    const uint8_t *const map = xd->plane[plane != 0].color_index_map +
1708
112k
                               xd->color_index_map_offset[plane != 0];
1709
112k
    const uint16_t *const palette =
1710
112k
        mbmi->palette_mode_info.palette_colors + plane * PALETTE_MAX_SIZE;
1711
112k
    if (is_hbd) {
1712
46.5k
      uint16_t *dst16 = CONVERT_TO_SHORTPTR(dst);
1713
497k
      for (r = 0; r < txhpx; ++r) {
1714
6.49M
        for (c = 0; c < txwpx; ++c) {
1715
6.04M
          dst16[r * dst_stride + c] = palette[map[(r + y) * wpx + c + x]];
1716
6.04M
        }
1717
450k
      }
1718
65.6k
    } else {
1719
788k
      for (r = 0; r < txhpx; ++r) {
1720
14.7M
        for (c = 0; c < txwpx; ++c) {
1721
14.0M
          dst[r * dst_stride + c] =
1722
14.0M
              (uint8_t)palette[map[(r + y) * wpx + c + x]];
1723
14.0M
        }
1724
722k
      }
1725
65.6k
    }
1726
112k
    return;
1727
112k
  }
1728
1729
76.7M
  const struct macroblockd_plane *const pd = &xd->plane[plane];
1730
76.7M
  const int ss_x = pd->subsampling_x;
1731
76.7M
  const int ss_y = pd->subsampling_y;
1732
76.7M
  const int have_top =
1733
76.7M
      row_off || (ss_y ? xd->chroma_up_available : xd->up_available);
1734
76.7M
  const int have_left =
1735
76.7M
      col_off || (ss_x ? xd->chroma_left_available : xd->left_available);
1736
1737
  // Distance between the right edge of this prediction block to
1738
  // the frame right edge
1739
76.7M
  const int xr = (xd->mb_to_right_edge >> (3 + ss_x)) + wpx - x - txwpx;
1740
  // Distance between the bottom edge of this prediction block to
1741
  // the frame bottom edge
1742
76.7M
  const int yd = (xd->mb_to_bottom_edge >> (3 + ss_y)) + hpx - y - txhpx;
1743
76.7M
  const int use_filter_intra = filter_intra_mode != FILTER_INTRA_MODES;
1744
76.7M
  const int is_dr_mode = av1_is_directional_mode(mode);
1745
1746
  // The computations in this function, as well as in build_intra_predictors(),
1747
  // are generalized for all intra modes. Some of these operations are not
1748
  // required since non-directional intra modes (i.e., DC, SMOOTH, SMOOTH_H,
1749
  // SMOOTH_V, and PAETH) specifically require left and top neighbors. Hence, a
1750
  // separate function build_non_directional_intra_predictors() is introduced
1751
  // for these modes to avoid redundant computations while generating pred data.
1752
1753
76.7M
  const int n_top_px = have_top ? AOMMIN(txwpx, xr + txwpx) : 0;
1754
76.7M
  const int n_left_px = have_left ? AOMMIN(txhpx, yd + txhpx) : 0;
1755
76.7M
  if (!use_filter_intra && !is_dr_mode) {
1756
68.0M
#if CONFIG_AV1_HIGHBITDEPTH
1757
68.0M
    if (is_hbd) {
1758
59.2M
      highbd_build_non_directional_intra_predictors(
1759
59.2M
          ref, ref_stride, dst, dst_stride, mode, tx_size, n_top_px, n_left_px,
1760
59.2M
          xd->bd);
1761
59.2M
      return;
1762
59.2M
    }
1763
8.82M
#endif  // CONFIG_AV1_HIGHBITDEPTH
1764
8.82M
    build_non_directional_intra_predictors(ref, ref_stride, dst, dst_stride,
1765
8.82M
                                           mode, tx_size, n_top_px, n_left_px);
1766
8.82M
    return;
1767
68.0M
  }
1768
1769
8.73M
  const int txw = tx_size_wide_unit[tx_size];
1770
8.73M
  const int txh = tx_size_high_unit[tx_size];
1771
8.73M
  const int mi_row = -xd->mb_to_top_edge >> (3 + MI_SIZE_LOG2);
1772
8.73M
  const int mi_col = -xd->mb_to_left_edge >> (3 + MI_SIZE_LOG2);
1773
8.73M
  const int right_available =
1774
8.73M
      mi_col + ((col_off + txw) << ss_x) < xd->tile.mi_col_end;
1775
8.73M
  const int bottom_available =
1776
8.73M
      (yd > 0) && (mi_row + ((row_off + txh) << ss_y) < xd->tile.mi_row_end);
1777
1778
8.73M
  const PARTITION_TYPE partition = mbmi->partition;
1779
1780
8.73M
  BLOCK_SIZE bsize = mbmi->bsize;
1781
  // force 4x4 chroma component block size.
1782
8.73M
  if (ss_x || ss_y) {
1783
2.78M
    bsize = scale_chroma_bsize(bsize, ss_x, ss_y);
1784
2.78M
  }
1785
1786
8.73M
  int p_angle = 0;
1787
8.73M
  int need_top_right = extend_modes[mode] & NEED_ABOVERIGHT;
1788
8.73M
  int need_bottom_left = extend_modes[mode] & NEED_BOTTOMLEFT;
1789
1790
8.73M
  if (use_filter_intra) {
1791
1.07M
    need_top_right = 0;
1792
1.07M
    need_bottom_left = 0;
1793
1.07M
  }
1794
8.73M
  if (is_dr_mode) {
1795
7.69M
    p_angle = mode_to_angle_map[mode] + angle_delta;
1796
7.69M
    need_top_right = p_angle < 90;
1797
7.69M
    need_bottom_left = p_angle > 180;
1798
7.69M
  }
1799
1800
  // Possible states for have_top_right(TR) and have_bottom_left(BL)
1801
  // -1 : TR and BL are not needed
1802
  //  0 : TR and BL are needed but not available
1803
  // > 0 : TR and BL are needed and pixels are available
1804
8.73M
  const int have_top_right =
1805
8.73M
      need_top_right ? has_top_right(sb_size, bsize, mi_row, mi_col, have_top,
1806
890k
                                     right_available, partition, tx_size,
1807
890k
                                     row_off, col_off, ss_x, ss_y)
1808
8.73M
                     : -1;
1809
8.73M
  const int have_bottom_left =
1810
8.73M
      need_bottom_left ? has_bottom_left(sb_size, bsize, mi_row, mi_col,
1811
1.39M
                                         bottom_available, have_left, partition,
1812
1.39M
                                         tx_size, row_off, col_off, ss_x, ss_y)
1813
8.73M
                       : -1;
1814
1815
8.73M
  const int disable_edge_filter = !enable_intra_edge_filter;
1816
8.73M
  const int intra_edge_filter_type = get_intra_edge_filter_type(xd, plane);
1817
8.73M
  const int n_topright_px =
1818
8.73M
      have_top_right > 0 ? AOMMIN(txwpx, xr) : have_top_right;
1819
8.73M
  const int n_bottomleft_px =
1820
8.73M
      have_bottom_left > 0 ? AOMMIN(txhpx, yd) : have_bottom_left;
1821
8.73M
#if CONFIG_AV1_HIGHBITDEPTH
1822
8.73M
  if (is_hbd) {
1823
5.49M
    highbd_build_directional_and_filter_intra_predictors(
1824
5.49M
        ref, ref_stride, dst, dst_stride, mode, p_angle, filter_intra_mode,
1825
5.49M
        tx_size, disable_edge_filter, n_top_px, n_topright_px, n_left_px,
1826
5.49M
        n_bottomleft_px, intra_edge_filter_type, xd->bd);
1827
5.49M
    return;
1828
5.49M
  }
1829
3.23M
#endif
1830
3.23M
  build_directional_and_filter_intra_predictors(
1831
3.23M
      ref, ref_stride, dst, dst_stride, mode, p_angle, filter_intra_mode,
1832
3.23M
      tx_size, disable_edge_filter, n_top_px, n_topright_px, n_left_px,
1833
3.23M
      n_bottomleft_px, intra_edge_filter_type);
1834
3.23M
}
1835
1836
void av1_predict_intra_block_facade(const AV1_COMMON *cm, MACROBLOCKD *xd,
1837
                                    int plane, int blk_col, int blk_row,
1838
76.1M
                                    TX_SIZE tx_size) {
1839
76.1M
  const MB_MODE_INFO *const mbmi = xd->mi[0];
1840
76.1M
  struct macroblockd_plane *const pd = &xd->plane[plane];
1841
76.1M
  const int dst_stride = pd->dst.stride;
1842
76.1M
  uint8_t *dst = &pd->dst.buf[(blk_row * dst_stride + blk_col) << MI_SIZE_LOG2];
1843
76.1M
  const PREDICTION_MODE mode =
1844
76.1M
      (plane == AOM_PLANE_Y) ? mbmi->mode : get_uv_mode(mbmi->uv_mode);
1845
76.1M
  const int use_palette = mbmi->palette_mode_info.palette_size[plane != 0] > 0;
1846
76.1M
  const FILTER_INTRA_MODE filter_intra_mode =
1847
76.1M
      (plane == AOM_PLANE_Y && mbmi->filter_intra_mode_info.use_filter_intra)
1848
76.1M
          ? mbmi->filter_intra_mode_info.filter_intra_mode
1849
76.1M
          : FILTER_INTRA_MODES;
1850
76.1M
  const int angle_delta = mbmi->angle_delta[plane != AOM_PLANE_Y] * ANGLE_STEP;
1851
76.1M
  const SequenceHeader *seq_params = cm->seq_params;
1852
1853
76.1M
#if !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
1854
76.1M
  if (plane != AOM_PLANE_Y && mbmi->uv_mode == UV_CFL_PRED) {
1855
#if CONFIG_DEBUG
1856
    assert(is_cfl_allowed(xd));
1857
    const BLOCK_SIZE plane_bsize =
1858
        get_plane_block_size(mbmi->bsize, pd->subsampling_x, pd->subsampling_y);
1859
    (void)plane_bsize;
1860
    assert(plane_bsize < BLOCK_SIZES_ALL);
1861
    if (!xd->lossless[mbmi->segment_id]) {
1862
      assert(blk_col == 0);
1863
      assert(blk_row == 0);
1864
      assert(block_size_wide[plane_bsize] == tx_size_wide[tx_size]);
1865
      assert(block_size_high[plane_bsize] == tx_size_high[tx_size]);
1866
    }
1867
#endif
1868
2.46M
    CFL_CTX *const cfl = &xd->cfl;
1869
2.46M
    CFL_PRED_TYPE pred_plane = get_cfl_pred_type(plane);
1870
2.46M
    if (!cfl->dc_pred_is_cached[pred_plane]) {
1871
2.46M
      av1_predict_intra_block(xd, seq_params->sb_size,
1872
2.46M
                              seq_params->enable_intra_edge_filter, pd->width,
1873
2.46M
                              pd->height, tx_size, mode, angle_delta,
1874
2.46M
                              use_palette, filter_intra_mode, dst, dst_stride,
1875
2.46M
                              dst, dst_stride, blk_col, blk_row, plane);
1876
2.46M
      if (cfl->use_dc_pred_cache) {
1877
0
        cfl_store_dc_pred(xd, dst, pred_plane, tx_size_wide[tx_size]);
1878
0
        cfl->dc_pred_is_cached[pred_plane] = true;
1879
0
      }
1880
2.46M
    } else {
1881
1
      cfl_load_dc_pred(xd, dst, dst_stride, tx_size, pred_plane);
1882
1
    }
1883
2.46M
    av1_cfl_predict_block(xd, dst, dst_stride, tx_size, plane);
1884
2.46M
    return;
1885
2.46M
  }
1886
73.7M
#endif  // !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
1887
73.7M
  av1_predict_intra_block(
1888
73.7M
      xd, seq_params->sb_size, seq_params->enable_intra_edge_filter, pd->width,
1889
73.7M
      pd->height, tx_size, mode, angle_delta, use_palette, filter_intra_mode,
1890
73.7M
      dst, dst_stride, dst, dst_stride, blk_col, blk_row, plane);
1891
73.7M
}
1892
1893
9.66k
void av1_init_intra_predictors(void) {
1894
9.66k
  aom_once(init_intra_predictors_internal);
1895
9.66k
}