Coverage Report

Created: 2026-04-01 07:49

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/aom/av1/encoder/tx_search.c
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Source
1
/*
2
 * Copyright (c) 2020, 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 <inttypes.h>
13
14
#include "av1/common/cfl.h"
15
#include "av1/common/reconintra.h"
16
#include "av1/encoder/block.h"
17
#include "av1/encoder/hybrid_fwd_txfm.h"
18
#include "av1/common/idct.h"
19
#include "av1/encoder/model_rd.h"
20
#include "av1/encoder/random.h"
21
#include "av1/encoder/rdopt_utils.h"
22
#include "av1/encoder/sorting_network.h"
23
#include "av1/encoder/tx_prune_model_weights.h"
24
#include "av1/encoder/tx_search.h"
25
#include "av1/encoder/txb_rdopt.h"
26
27
0
#define PROB_THRESH_OFFSET_TX_TYPE 100
28
29
struct rdcost_block_args {
30
  const AV1_COMP *cpi;
31
  MACROBLOCK *x;
32
  ENTROPY_CONTEXT t_above[MAX_MIB_SIZE];
33
  ENTROPY_CONTEXT t_left[MAX_MIB_SIZE];
34
  RD_STATS rd_stats;
35
  int64_t current_rd;
36
  int64_t best_rd;
37
  int exit_early;
38
  int incomplete_exit;
39
  FAST_TX_SEARCH_MODE ftxs_mode;
40
  int skip_trellis;
41
};
42
43
typedef struct {
44
  int64_t rd;
45
  int txb_entropy_ctx;
46
  TX_TYPE tx_type;
47
} TxCandidateInfo;
48
49
// origin_threshold * 128 / 100
50
static const uint32_t skip_pred_threshold[3][BLOCK_SIZES_ALL] = {
51
  {
52
      64, 64, 64, 70, 60, 60, 68, 68, 68, 68, 68,
53
      68, 68, 68, 68, 68, 64, 64, 70, 70, 68, 68,
54
  },
55
  {
56
      88, 88, 88, 86, 87, 87, 68, 68, 68, 68, 68,
57
      68, 68, 68, 68, 68, 88, 88, 86, 86, 68, 68,
58
  },
59
  {
60
      90, 93, 93, 90, 93, 93, 74, 74, 74, 74, 74,
61
      74, 74, 74, 74, 74, 90, 90, 90, 90, 74, 74,
62
  },
63
};
64
65
// lookup table for predict_skip_txfm
66
// int max_tx_size = max_txsize_rect_lookup[bsize];
67
// if (tx_size_high[max_tx_size] > 16 || tx_size_wide[max_tx_size] > 16)
68
//   max_tx_size = AOMMIN(max_txsize_lookup[bsize], TX_16X16);
69
static const TX_SIZE max_predict_sf_tx_size[BLOCK_SIZES_ALL] = {
70
  TX_4X4,   TX_4X8,   TX_8X4,   TX_8X8,   TX_8X16,  TX_16X8,
71
  TX_16X16, TX_16X16, TX_16X16, TX_16X16, TX_16X16, TX_16X16,
72
  TX_16X16, TX_16X16, TX_16X16, TX_16X16, TX_4X16,  TX_16X4,
73
  TX_8X8,   TX_8X8,   TX_16X16, TX_16X16,
74
};
75
76
// look-up table for sqrt of number of pixels in a transform block
77
// rounded up to the nearest integer.
78
static const int sqrt_tx_pixels_2d[TX_SIZES_ALL] = { 4,  8,  16, 32, 32, 6,  6,
79
                                                     12, 12, 23, 23, 32, 32, 8,
80
                                                     8,  16, 16, 23, 23 };
81
82
0
static inline uint32_t get_block_residue_hash(MACROBLOCK *x, BLOCK_SIZE bsize) {
83
0
  const int rows = block_size_high[bsize];
84
0
  const int cols = block_size_wide[bsize];
85
0
  const int16_t *diff = x->plane[0].src_diff;
86
0
  const uint32_t hash =
87
0
      av1_get_crc32c_value(&x->txfm_search_info.mb_rd_record->crc_calculator,
88
0
                           (uint8_t *)diff, 2 * rows * cols);
89
0
  return (hash << 5) + bsize;
90
0
}
91
92
static inline int32_t find_mb_rd_info(const MB_RD_RECORD *const mb_rd_record,
93
                                      const int64_t ref_best_rd,
94
0
                                      const uint32_t hash) {
95
0
  int32_t match_index = -1;
96
0
  if (ref_best_rd != INT64_MAX) {
97
0
    for (int i = 0; i < mb_rd_record->num; ++i) {
98
0
      const int index = (mb_rd_record->index_start + i) % RD_RECORD_BUFFER_LEN;
99
      // If there is a match in the mb_rd_record, fetch the RD decision and
100
      // terminate early.
101
0
      if (mb_rd_record->mb_rd_info[index].hash_value == hash) {
102
0
        match_index = index;
103
0
        break;
104
0
      }
105
0
    }
106
0
  }
107
0
  return match_index;
108
0
}
109
110
static inline void fetch_mb_rd_info(int n4, const MB_RD_INFO *const mb_rd_info,
111
                                    RD_STATS *const rd_stats,
112
0
                                    MACROBLOCK *const x) {
113
0
  MACROBLOCKD *const xd = &x->e_mbd;
114
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
115
0
  mbmi->tx_size = mb_rd_info->tx_size;
116
0
  av1_copy(mbmi->inter_tx_size, mb_rd_info->inter_tx_size);
117
0
  av1_copy_array(xd->tx_type_map, mb_rd_info->tx_type_map, n4);
118
0
  *rd_stats = mb_rd_info->rd_stats;
119
0
}
120
121
int64_t av1_pixel_diff_dist(const MACROBLOCK *x, int plane, int blk_row,
122
                            int blk_col, const BLOCK_SIZE plane_bsize,
123
                            const BLOCK_SIZE tx_bsize,
124
0
                            unsigned int *block_mse_q8) {
125
0
  int visible_rows, visible_cols;
126
0
  const MACROBLOCKD *xd = &x->e_mbd;
127
0
  get_txb_dimensions(xd, plane, plane_bsize, blk_row, blk_col, tx_bsize, NULL,
128
0
                     NULL, &visible_cols, &visible_rows);
129
0
  const int diff_stride = block_size_wide[plane_bsize];
130
0
  const int16_t *diff = x->plane[plane].src_diff;
131
132
0
  diff += ((blk_row * diff_stride + blk_col) << MI_SIZE_LOG2);
133
0
  uint64_t sse =
134
0
      aom_sum_squares_2d_i16(diff, diff_stride, visible_cols, visible_rows);
135
0
  if (block_mse_q8 != NULL) {
136
0
    if (visible_cols > 0 && visible_rows > 0)
137
0
      *block_mse_q8 =
138
0
          (unsigned int)((256 * sse) / (visible_cols * visible_rows));
139
0
    else
140
0
      *block_mse_q8 = UINT_MAX;
141
0
  }
142
0
  return sse;
143
0
}
144
145
// Computes the residual block's SSE and mean on all visible 4x4s in the
146
// transform block
147
static inline int64_t pixel_diff_stats(
148
    MACROBLOCK *x, int plane, int blk_row, int blk_col,
149
    const BLOCK_SIZE plane_bsize, const BLOCK_SIZE tx_bsize,
150
0
    unsigned int *block_mse_q8, int64_t *per_px_mean, uint64_t *block_var) {
151
0
  int visible_rows, visible_cols;
152
0
  const MACROBLOCKD *xd = &x->e_mbd;
153
0
  get_txb_dimensions(xd, plane, plane_bsize, blk_row, blk_col, tx_bsize, NULL,
154
0
                     NULL, &visible_cols, &visible_rows);
155
0
  const int diff_stride = block_size_wide[plane_bsize];
156
0
  const int16_t *diff = x->plane[plane].src_diff;
157
158
0
  diff += ((blk_row * diff_stride + blk_col) << MI_SIZE_LOG2);
159
0
  uint64_t sse = 0;
160
0
  int sum = 0;
161
0
  sse = aom_sum_sse_2d_i16(diff, diff_stride, visible_cols, visible_rows, &sum);
162
0
  if (visible_cols > 0 && visible_rows > 0) {
163
0
    double norm_factor = 1.0 / (visible_cols * visible_rows);
164
0
    int sign_sum = sum > 0 ? 1 : -1;
165
    // Conversion to transform domain
166
0
    *per_px_mean = (int64_t)(norm_factor * abs(sum)) << 7;
167
0
    *per_px_mean = sign_sum * (*per_px_mean);
168
0
    *block_mse_q8 = (unsigned int)(norm_factor * (256 * sse));
169
0
    *block_var = (uint64_t)(sse - (uint64_t)(norm_factor * sum * sum));
170
0
  } else {
171
0
    *block_mse_q8 = UINT_MAX;
172
0
  }
173
0
  return sse;
174
0
}
175
176
// Uses simple features on top of DCT coefficients to quickly predict
177
// whether optimal RD decision is to skip encoding the residual.
178
// The sse value is stored in dist.
179
static int predict_skip_txfm(MACROBLOCK *x, BLOCK_SIZE bsize, int64_t *dist,
180
0
                             int reduced_tx_set) {
181
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
182
0
  const int bw = block_size_wide[bsize];
183
0
  const int bh = block_size_high[bsize];
184
0
  const MACROBLOCKD *xd = &x->e_mbd;
185
0
  const int16_t dc_q = av1_dc_quant_QTX(x->qindex, 0, xd->bd);
186
187
0
  *dist = av1_pixel_diff_dist(x, 0, 0, 0, bsize, bsize, NULL);
188
189
0
  const int64_t mse = *dist / bw / bh;
190
  // Normalized quantizer takes the transform upscaling factor (8 for tx size
191
  // smaller than 32) into account.
192
0
  const int16_t normalized_dc_q = dc_q >> 3;
193
0
  const int64_t mse_thresh = (int64_t)normalized_dc_q * normalized_dc_q / 8;
194
  // For faster early skip decision, use dist to compare against threshold so
195
  // that quality risk is less for the skip=1 decision. Otherwise, use mse
196
  // since the fwd_txfm coeff checks will take care of quality
197
  // TODO(any): Use dist to return 0 when skip_txfm_level is 1
198
0
  int64_t pred_err = (txfm_params->skip_txfm_level >= 2) ? *dist : mse;
199
  // Predict not to skip when error is larger than threshold.
200
0
  if (pred_err > mse_thresh) return 0;
201
  // Return as skip otherwise for aggressive early skip
202
0
  else if (txfm_params->skip_txfm_level >= 2)
203
0
    return 1;
204
205
0
  const int max_tx_size = max_predict_sf_tx_size[bsize];
206
0
  const int tx_h = tx_size_high[max_tx_size];
207
0
  const int tx_w = tx_size_wide[max_tx_size];
208
0
  DECLARE_ALIGNED(32, tran_low_t, coefs[32 * 32]);
209
0
  TxfmParam param;
210
0
  param.tx_type = DCT_DCT;
211
0
  param.tx_size = max_tx_size;
212
0
  param.bd = xd->bd;
213
0
  param.is_hbd = is_cur_buf_hbd(xd);
214
0
  param.lossless = 0;
215
0
  param.tx_set_type = av1_get_ext_tx_set_type(
216
0
      param.tx_size, is_inter_block(xd->mi[0]), reduced_tx_set);
217
0
  const int bd_idx = (xd->bd == 8) ? 0 : ((xd->bd == 10) ? 1 : 2);
218
0
  const uint32_t max_qcoef_thresh = skip_pred_threshold[bd_idx][bsize];
219
0
  const int16_t *src_diff = x->plane[0].src_diff;
220
0
  const int n_coeff = tx_w * tx_h;
221
0
  const int16_t ac_q = av1_ac_quant_QTX(x->qindex, 0, xd->bd);
222
0
  const uint32_t dc_thresh = max_qcoef_thresh * dc_q;
223
0
  const uint32_t ac_thresh = max_qcoef_thresh * ac_q;
224
0
  for (int row = 0; row < bh; row += tx_h) {
225
0
    for (int col = 0; col < bw; col += tx_w) {
226
0
      av1_fwd_txfm(src_diff + col, coefs, bw, &param);
227
      // Operating on TX domain, not pixels; we want the QTX quantizers
228
0
      const uint32_t dc_coef = (((uint32_t)abs(coefs[0])) << 7);
229
0
      if (dc_coef >= dc_thresh) return 0;
230
0
      for (int i = 1; i < n_coeff; ++i) {
231
0
        const uint32_t ac_coef = (((uint32_t)abs(coefs[i])) << 7);
232
0
        if (ac_coef >= ac_thresh) return 0;
233
0
      }
234
0
    }
235
0
    src_diff += tx_h * bw;
236
0
  }
237
0
  return 1;
238
0
}
239
240
// Used to set proper context for early termination with skip = 1.
241
static inline void set_skip_txfm(MACROBLOCK *x, RD_STATS *rd_stats,
242
0
                                 BLOCK_SIZE bsize, int64_t dist) {
243
0
  MACROBLOCKD *const xd = &x->e_mbd;
244
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
245
0
  const int n4 = bsize_to_num_blk(bsize);
246
0
  const TX_SIZE tx_size = max_txsize_rect_lookup[bsize];
247
0
  memset(xd->tx_type_map, DCT_DCT, sizeof(xd->tx_type_map[0]) * n4);
248
0
  memset(mbmi->inter_tx_size, tx_size, sizeof(mbmi->inter_tx_size));
249
0
  mbmi->tx_size = tx_size;
250
0
  rd_stats->skip_txfm = 1;
251
0
  if (is_cur_buf_hbd(xd)) dist = ROUND_POWER_OF_TWO(dist, (xd->bd - 8) * 2);
252
0
  rd_stats->dist = rd_stats->sse = (dist << 4);
253
  // Though decision is to make the block as skip based on luma stats,
254
  // it is possible that block becomes non skip after chroma rd. In addition
255
  // intermediate non skip costs calculated by caller function will be
256
  // incorrect, if rate is set as  zero (i.e., if zero_blk_rate is not
257
  // accounted). Hence intermediate rate is populated to code the luma tx blks
258
  // as skip, the caller function based on final rd decision (i.e., skip vs
259
  // non-skip) sets the final rate accordingly. Here the rate populated
260
  // corresponds to coding all the tx blocks with zero_blk_rate (based on max tx
261
  // size possible) in the current block. Eg: For 128*128 block, rate would be
262
  // 4 * zero_blk_rate where zero_blk_rate corresponds to coding of one 64x64 tx
263
  // block as 'all zeros'
264
0
  ENTROPY_CONTEXT ctxa[MAX_MIB_SIZE];
265
0
  ENTROPY_CONTEXT ctxl[MAX_MIB_SIZE];
266
0
  av1_get_entropy_contexts(bsize, &xd->plane[0], ctxa, ctxl);
267
0
  ENTROPY_CONTEXT *ta = ctxa;
268
0
  ENTROPY_CONTEXT *tl = ctxl;
269
0
  const TX_SIZE txs_ctx = get_txsize_entropy_ctx(tx_size);
270
0
  TXB_CTX txb_ctx;
271
0
  get_txb_ctx(bsize, tx_size, 0, ta, tl, &txb_ctx);
272
0
  const int zero_blk_rate = x->coeff_costs.coeff_costs[txs_ctx][PLANE_TYPE_Y]
273
0
                                .txb_skip_cost[txb_ctx.txb_skip_ctx][1];
274
0
  rd_stats->rate = zero_blk_rate *
275
0
                   (block_size_wide[bsize] >> tx_size_wide_log2[tx_size]) *
276
0
                   (block_size_high[bsize] >> tx_size_high_log2[tx_size]);
277
0
}
278
279
static inline void save_mb_rd_info(int n4, uint32_t hash,
280
                                   const MACROBLOCK *const x,
281
                                   const RD_STATS *const rd_stats,
282
0
                                   MB_RD_RECORD *mb_rd_record) {
283
0
  int index;
284
0
  if (mb_rd_record->num < RD_RECORD_BUFFER_LEN) {
285
0
    index =
286
0
        (mb_rd_record->index_start + mb_rd_record->num) % RD_RECORD_BUFFER_LEN;
287
0
    ++mb_rd_record->num;
288
0
  } else {
289
0
    index = mb_rd_record->index_start;
290
0
    mb_rd_record->index_start =
291
0
        (mb_rd_record->index_start + 1) % RD_RECORD_BUFFER_LEN;
292
0
  }
293
0
  MB_RD_INFO *const mb_rd_info = &mb_rd_record->mb_rd_info[index];
294
0
  const MACROBLOCKD *const xd = &x->e_mbd;
295
0
  const MB_MODE_INFO *const mbmi = xd->mi[0];
296
0
  mb_rd_info->hash_value = hash;
297
0
  mb_rd_info->tx_size = mbmi->tx_size;
298
0
  av1_copy(mb_rd_info->inter_tx_size, mbmi->inter_tx_size);
299
0
  av1_copy_array(mb_rd_info->tx_type_map, xd->tx_type_map, n4);
300
0
  mb_rd_info->rd_stats = *rd_stats;
301
0
}
302
303
static int get_search_init_depth(int mi_width, int mi_height, int is_inter,
304
                                 const SPEED_FEATURES *sf,
305
0
                                 int tx_size_search_method) {
306
0
  if (tx_size_search_method == USE_LARGESTALL) return MAX_VARTX_DEPTH;
307
308
0
  if (sf->tx_sf.tx_size_search_lgr_block) {
309
0
    if (mi_width > mi_size_wide[BLOCK_64X64] ||
310
0
        mi_height > mi_size_high[BLOCK_64X64])
311
0
      return MAX_VARTX_DEPTH;
312
0
  }
313
314
0
  if (is_inter) {
315
0
    return (mi_height != mi_width)
316
0
               ? sf->tx_sf.inter_tx_size_search_init_depth_rect
317
0
               : sf->tx_sf.inter_tx_size_search_init_depth_sqr;
318
0
  } else {
319
0
    return (mi_height != mi_width)
320
0
               ? sf->tx_sf.intra_tx_size_search_init_depth_rect
321
0
               : sf->tx_sf.intra_tx_size_search_init_depth_sqr;
322
0
  }
323
0
}
324
325
static inline void select_tx_block(
326
    const AV1_COMP *cpi, MACROBLOCK *x, int blk_row, int blk_col, int block,
327
    TX_SIZE tx_size, int depth, BLOCK_SIZE plane_bsize, ENTROPY_CONTEXT *ta,
328
    ENTROPY_CONTEXT *tl, TXFM_CONTEXT *tx_above, TXFM_CONTEXT *tx_left,
329
    RD_STATS *rd_stats, int64_t prev_level_rd, int64_t ref_best_rd,
330
    int *is_cost_valid, FAST_TX_SEARCH_MODE ftxs_mode);
331
332
// NOTE: CONFIG_COLLECT_RD_STATS has 3 possible values
333
// 0: Do not collect any RD stats
334
// 1: Collect RD stats for transform units
335
// 2: Collect RD stats for partition units
336
#if CONFIG_COLLECT_RD_STATS
337
338
static inline void get_energy_distribution_fine(
339
    const AV1_COMP *cpi, BLOCK_SIZE bsize, const uint8_t *src, int src_stride,
340
    const uint8_t *dst, int dst_stride, int need_4th, double *hordist,
341
    double *verdist) {
342
  const int bw = block_size_wide[bsize];
343
  const int bh = block_size_high[bsize];
344
  unsigned int esq[16] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };
345
346
  if (bsize < BLOCK_16X16 || (bsize >= BLOCK_4X16 && bsize <= BLOCK_32X8)) {
347
    // Special cases: calculate 'esq' values manually, as we don't have 'vf'
348
    // functions for the 16 (very small) sub-blocks of this block.
349
    const int w_shift = (bw == 4) ? 0 : (bw == 8) ? 1 : (bw == 16) ? 2 : 3;
350
    const int h_shift = (bh == 4) ? 0 : (bh == 8) ? 1 : (bh == 16) ? 2 : 3;
351
    assert(bw <= 32);
352
    assert(bh <= 32);
353
    assert(((bw - 1) >> w_shift) + (((bh - 1) >> h_shift) << 2) == 15);
354
    if (cpi->common.seq_params->use_highbitdepth) {
355
      const uint16_t *src16 = CONVERT_TO_SHORTPTR(src);
356
      const uint16_t *dst16 = CONVERT_TO_SHORTPTR(dst);
357
      for (int i = 0; i < bh; ++i)
358
        for (int j = 0; j < bw; ++j) {
359
          const int index = (j >> w_shift) + ((i >> h_shift) << 2);
360
          esq[index] +=
361
              (src16[j + i * src_stride] - dst16[j + i * dst_stride]) *
362
              (src16[j + i * src_stride] - dst16[j + i * dst_stride]);
363
        }
364
    } else {
365
      for (int i = 0; i < bh; ++i)
366
        for (int j = 0; j < bw; ++j) {
367
          const int index = (j >> w_shift) + ((i >> h_shift) << 2);
368
          esq[index] += (src[j + i * src_stride] - dst[j + i * dst_stride]) *
369
                        (src[j + i * src_stride] - dst[j + i * dst_stride]);
370
        }
371
    }
372
  } else {  // Calculate 'esq' values using 'vf' functions on the 16 sub-blocks.
373
    const int f_index =
374
        (bsize < BLOCK_SIZES) ? bsize - BLOCK_16X16 : bsize - BLOCK_8X16;
375
    assert(f_index >= 0 && f_index < BLOCK_SIZES_ALL);
376
    const BLOCK_SIZE subsize = (BLOCK_SIZE)f_index;
377
    assert(block_size_wide[bsize] == 4 * block_size_wide[subsize]);
378
    assert(block_size_high[bsize] == 4 * block_size_high[subsize]);
379
    cpi->ppi->fn_ptr[subsize].vf(src, src_stride, dst, dst_stride, &esq[0]);
380
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 4, src_stride, dst + bw / 4,
381
                                 dst_stride, &esq[1]);
382
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 2, src_stride, dst + bw / 2,
383
                                 dst_stride, &esq[2]);
384
    cpi->ppi->fn_ptr[subsize].vf(src + 3 * bw / 4, src_stride, dst + 3 * bw / 4,
385
                                 dst_stride, &esq[3]);
386
    src += bh / 4 * src_stride;
387
    dst += bh / 4 * dst_stride;
388
389
    cpi->ppi->fn_ptr[subsize].vf(src, src_stride, dst, dst_stride, &esq[4]);
390
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 4, src_stride, dst + bw / 4,
391
                                 dst_stride, &esq[5]);
392
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 2, src_stride, dst + bw / 2,
393
                                 dst_stride, &esq[6]);
394
    cpi->ppi->fn_ptr[subsize].vf(src + 3 * bw / 4, src_stride, dst + 3 * bw / 4,
395
                                 dst_stride, &esq[7]);
396
    src += bh / 4 * src_stride;
397
    dst += bh / 4 * dst_stride;
398
399
    cpi->ppi->fn_ptr[subsize].vf(src, src_stride, dst, dst_stride, &esq[8]);
400
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 4, src_stride, dst + bw / 4,
401
                                 dst_stride, &esq[9]);
402
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 2, src_stride, dst + bw / 2,
403
                                 dst_stride, &esq[10]);
404
    cpi->ppi->fn_ptr[subsize].vf(src + 3 * bw / 4, src_stride, dst + 3 * bw / 4,
405
                                 dst_stride, &esq[11]);
406
    src += bh / 4 * src_stride;
407
    dst += bh / 4 * dst_stride;
408
409
    cpi->ppi->fn_ptr[subsize].vf(src, src_stride, dst, dst_stride, &esq[12]);
410
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 4, src_stride, dst + bw / 4,
411
                                 dst_stride, &esq[13]);
412
    cpi->ppi->fn_ptr[subsize].vf(src + bw / 2, src_stride, dst + bw / 2,
413
                                 dst_stride, &esq[14]);
414
    cpi->ppi->fn_ptr[subsize].vf(src + 3 * bw / 4, src_stride, dst + 3 * bw / 4,
415
                                 dst_stride, &esq[15]);
416
  }
417
418
  double total = (double)esq[0] + esq[1] + esq[2] + esq[3] + esq[4] + esq[5] +
419
                 esq[6] + esq[7] + esq[8] + esq[9] + esq[10] + esq[11] +
420
                 esq[12] + esq[13] + esq[14] + esq[15];
421
  if (total > 0) {
422
    const double e_recip = 1.0 / total;
423
    hordist[0] = ((double)esq[0] + esq[4] + esq[8] + esq[12]) * e_recip;
424
    hordist[1] = ((double)esq[1] + esq[5] + esq[9] + esq[13]) * e_recip;
425
    hordist[2] = ((double)esq[2] + esq[6] + esq[10] + esq[14]) * e_recip;
426
    if (need_4th) {
427
      hordist[3] = ((double)esq[3] + esq[7] + esq[11] + esq[15]) * e_recip;
428
    }
429
    verdist[0] = ((double)esq[0] + esq[1] + esq[2] + esq[3]) * e_recip;
430
    verdist[1] = ((double)esq[4] + esq[5] + esq[6] + esq[7]) * e_recip;
431
    verdist[2] = ((double)esq[8] + esq[9] + esq[10] + esq[11]) * e_recip;
432
    if (need_4th) {
433
      verdist[3] = ((double)esq[12] + esq[13] + esq[14] + esq[15]) * e_recip;
434
    }
435
  } else {
436
    hordist[0] = verdist[0] = 0.25;
437
    hordist[1] = verdist[1] = 0.25;
438
    hordist[2] = verdist[2] = 0.25;
439
    if (need_4th) {
440
      hordist[3] = verdist[3] = 0.25;
441
    }
442
  }
443
}
444
445
static double get_sse_norm(const int16_t *diff, int stride, int w, int h) {
446
  double sum = 0.0;
447
  for (int j = 0; j < h; ++j) {
448
    for (int i = 0; i < w; ++i) {
449
      const int err = diff[j * stride + i];
450
      sum += err * err;
451
    }
452
  }
453
  assert(w > 0 && h > 0);
454
  return sum / (w * h);
455
}
456
457
static double get_sad_norm(const int16_t *diff, int stride, int w, int h) {
458
  double sum = 0.0;
459
  for (int j = 0; j < h; ++j) {
460
    for (int i = 0; i < w; ++i) {
461
      sum += abs(diff[j * stride + i]);
462
    }
463
  }
464
  assert(w > 0 && h > 0);
465
  return sum / (w * h);
466
}
467
468
static inline void get_2x2_normalized_sses_and_sads(
469
    const AV1_COMP *const cpi, BLOCK_SIZE tx_bsize, const uint8_t *const src,
470
    int src_stride, const uint8_t *const dst, int dst_stride,
471
    const int16_t *const src_diff, int diff_stride, double *const sse_norm_arr,
472
    double *const sad_norm_arr) {
473
  const BLOCK_SIZE tx_bsize_half =
474
      get_partition_subsize(tx_bsize, PARTITION_SPLIT);
475
  if (tx_bsize_half == BLOCK_INVALID) {  // manually calculate stats
476
    const int half_width = block_size_wide[tx_bsize] / 2;
477
    const int half_height = block_size_high[tx_bsize] / 2;
478
    for (int row = 0; row < 2; ++row) {
479
      for (int col = 0; col < 2; ++col) {
480
        const int16_t *const this_src_diff =
481
            src_diff + row * half_height * diff_stride + col * half_width;
482
        if (sse_norm_arr) {
483
          sse_norm_arr[row * 2 + col] =
484
              get_sse_norm(this_src_diff, diff_stride, half_width, half_height);
485
        }
486
        if (sad_norm_arr) {
487
          sad_norm_arr[row * 2 + col] =
488
              get_sad_norm(this_src_diff, diff_stride, half_width, half_height);
489
        }
490
      }
491
    }
492
  } else {  // use function pointers to calculate stats
493
    const int half_width = block_size_wide[tx_bsize_half];
494
    const int half_height = block_size_high[tx_bsize_half];
495
    const int num_samples_half = half_width * half_height;
496
    for (int row = 0; row < 2; ++row) {
497
      for (int col = 0; col < 2; ++col) {
498
        const uint8_t *const this_src =
499
            src + row * half_height * src_stride + col * half_width;
500
        const uint8_t *const this_dst =
501
            dst + row * half_height * dst_stride + col * half_width;
502
503
        if (sse_norm_arr) {
504
          unsigned int this_sse;
505
          cpi->ppi->fn_ptr[tx_bsize_half].vf(this_src, src_stride, this_dst,
506
                                             dst_stride, &this_sse);
507
          sse_norm_arr[row * 2 + col] = (double)this_sse / num_samples_half;
508
        }
509
510
        if (sad_norm_arr) {
511
          const unsigned int this_sad = cpi->ppi->fn_ptr[tx_bsize_half].sdf(
512
              this_src, src_stride, this_dst, dst_stride);
513
          sad_norm_arr[row * 2 + col] = (double)this_sad / num_samples_half;
514
        }
515
      }
516
    }
517
  }
518
}
519
520
#if CONFIG_COLLECT_RD_STATS == 1
521
static double get_mean(const int16_t *diff, int stride, int w, int h) {
522
  double sum = 0.0;
523
  for (int j = 0; j < h; ++j) {
524
    for (int i = 0; i < w; ++i) {
525
      sum += diff[j * stride + i];
526
    }
527
  }
528
  assert(w > 0 && h > 0);
529
  return sum / (w * h);
530
}
531
static inline void PrintTransformUnitStats(
532
    const AV1_COMP *const cpi, MACROBLOCK *x, const RD_STATS *const rd_stats,
533
    int blk_row, int blk_col, BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
534
    TX_TYPE tx_type, int64_t rd) {
535
  if (rd_stats->rate == INT_MAX || rd_stats->dist == INT64_MAX) return;
536
537
  // Generate small sample to restrict output size.
538
  static unsigned int seed = 21743;
539
  if (lcg_rand16(&seed) % 256 > 0) return;
540
541
  const char output_file[] = "tu_stats.txt";
542
  FILE *fout = fopen(output_file, "a");
543
  if (!fout) return;
544
545
  const BLOCK_SIZE tx_bsize = txsize_to_bsize[tx_size];
546
  const MACROBLOCKD *const xd = &x->e_mbd;
547
  const int plane = 0;
548
  struct macroblock_plane *const p = &x->plane[plane];
549
  const struct macroblockd_plane *const pd = &xd->plane[plane];
550
  const int txw = tx_size_wide[tx_size];
551
  const int txh = tx_size_high[tx_size];
552
  const int dequant_shift = (is_cur_buf_hbd(xd)) ? xd->bd - 5 : 3;
553
  const int q_step = p->dequant_QTX[1] >> dequant_shift;
554
  const int num_samples = txw * txh;
555
556
  const double rate_norm = (double)rd_stats->rate / num_samples;
557
  const double dist_norm = (double)rd_stats->dist / num_samples;
558
559
  fprintf(fout, "%g %g", rate_norm, dist_norm);
560
561
  const int src_stride = p->src.stride;
562
  const uint8_t *const src =
563
      &p->src.buf[(blk_row * src_stride + blk_col) << MI_SIZE_LOG2];
564
  const int dst_stride = pd->dst.stride;
565
  const uint8_t *const dst =
566
      &pd->dst.buf[(blk_row * dst_stride + blk_col) << MI_SIZE_LOG2];
567
  unsigned int sse;
568
  cpi->ppi->fn_ptr[tx_bsize].vf(src, src_stride, dst, dst_stride, &sse);
569
  const double sse_norm = (double)sse / num_samples;
570
571
  const unsigned int sad =
572
      cpi->ppi->fn_ptr[tx_bsize].sdf(src, src_stride, dst, dst_stride);
573
  const double sad_norm = (double)sad / num_samples;
574
575
  fprintf(fout, " %g %g", sse_norm, sad_norm);
576
577
  const int diff_stride = block_size_wide[plane_bsize];
578
  const int16_t *const src_diff =
579
      &p->src_diff[(blk_row * diff_stride + blk_col) << MI_SIZE_LOG2];
580
581
  double sse_norm_arr[4], sad_norm_arr[4];
582
  get_2x2_normalized_sses_and_sads(cpi, tx_bsize, src, src_stride, dst,
583
                                   dst_stride, src_diff, diff_stride,
584
                                   sse_norm_arr, sad_norm_arr);
585
  for (int i = 0; i < 4; ++i) {
586
    fprintf(fout, " %g", sse_norm_arr[i]);
587
  }
588
  for (int i = 0; i < 4; ++i) {
589
    fprintf(fout, " %g", sad_norm_arr[i]);
590
  }
591
592
  const TX_TYPE_1D tx_type_1d_row = htx_tab[tx_type];
593
  const TX_TYPE_1D tx_type_1d_col = vtx_tab[tx_type];
594
595
  fprintf(fout, " %d %d %d %d %d", q_step, tx_size_wide[tx_size],
596
          tx_size_high[tx_size], tx_type_1d_row, tx_type_1d_col);
597
598
  int model_rate;
599
  int64_t model_dist;
600
  model_rd_sse_fn[MODELRD_CURVFIT](cpi, x, tx_bsize, plane, sse, num_samples,
601
                                   &model_rate, &model_dist);
602
  const double model_rate_norm = (double)model_rate / num_samples;
603
  const double model_dist_norm = (double)model_dist / num_samples;
604
  fprintf(fout, " %g %g", model_rate_norm, model_dist_norm);
605
606
  const double mean = get_mean(src_diff, diff_stride, txw, txh);
607
  float hor_corr, vert_corr;
608
  av1_get_horver_correlation_full(src_diff, diff_stride, txw, txh, &hor_corr,
609
                                  &vert_corr);
610
  fprintf(fout, " %g %g %g", mean, hor_corr, vert_corr);
611
612
  double hdist[4] = { 0 }, vdist[4] = { 0 };
613
  get_energy_distribution_fine(cpi, tx_bsize, src, src_stride, dst, dst_stride,
614
                               1, hdist, vdist);
615
  fprintf(fout, " %g %g %g %g %g %g %g %g", hdist[0], hdist[1], hdist[2],
616
          hdist[3], vdist[0], vdist[1], vdist[2], vdist[3]);
617
618
  fprintf(fout, " %d %" PRId64, x->rdmult, rd);
619
620
  fprintf(fout, "\n");
621
  fclose(fout);
622
}
623
#endif  // CONFIG_COLLECT_RD_STATS == 1
624
625
#if CONFIG_COLLECT_RD_STATS >= 2
626
static int64_t get_sse(const AV1_COMP *cpi, const MACROBLOCK *x) {
627
  const AV1_COMMON *cm = &cpi->common;
628
  const int num_planes = av1_num_planes(cm);
629
  const MACROBLOCKD *xd = &x->e_mbd;
630
  const MB_MODE_INFO *mbmi = xd->mi[0];
631
  int64_t total_sse = 0;
632
  for (int plane = 0; plane < num_planes; ++plane) {
633
    const struct macroblock_plane *const p = &x->plane[plane];
634
    const struct macroblockd_plane *const pd = &xd->plane[plane];
635
    const BLOCK_SIZE bs =
636
        get_plane_block_size(mbmi->bsize, pd->subsampling_x, pd->subsampling_y);
637
    unsigned int sse;
638
639
    if (plane) continue;
640
641
    cpi->ppi->fn_ptr[bs].vf(p->src.buf, p->src.stride, pd->dst.buf,
642
                            pd->dst.stride, &sse);
643
    total_sse += sse;
644
  }
645
  total_sse <<= 4;
646
  return total_sse;
647
}
648
649
static int get_est_rate_dist(const TileDataEnc *tile_data, BLOCK_SIZE bsize,
650
                             int64_t sse, int *est_residue_cost,
651
                             int64_t *est_dist) {
652
  const InterModeRdModel *md = &tile_data->inter_mode_rd_models[bsize];
653
  if (md->ready) {
654
    if (sse < md->dist_mean) {
655
      *est_residue_cost = 0;
656
      *est_dist = sse;
657
    } else {
658
      *est_dist = (int64_t)round(md->dist_mean);
659
      const double est_ld = md->a * sse + md->b;
660
      // Clamp estimated rate cost by INT_MAX / 2.
661
      // TODO(angiebird@google.com): find better solution than clamping.
662
      if (fabs(est_ld) < 1e-2) {
663
        *est_residue_cost = INT_MAX / 2;
664
      } else {
665
        double est_residue_cost_dbl = ((sse - md->dist_mean) / est_ld);
666
        if (est_residue_cost_dbl < 0) {
667
          *est_residue_cost = 0;
668
        } else {
669
          *est_residue_cost =
670
              (int)AOMMIN((int64_t)round(est_residue_cost_dbl), INT_MAX / 2);
671
        }
672
      }
673
      if (*est_residue_cost <= 0) {
674
        *est_residue_cost = 0;
675
        *est_dist = sse;
676
      }
677
    }
678
    return 1;
679
  }
680
  return 0;
681
}
682
683
static double get_highbd_diff_mean(const uint8_t *src8, int src_stride,
684
                                   const uint8_t *dst8, int dst_stride, int w,
685
                                   int h) {
686
  const uint16_t *src = CONVERT_TO_SHORTPTR(src8);
687
  const uint16_t *dst = CONVERT_TO_SHORTPTR(dst8);
688
  double sum = 0.0;
689
  for (int j = 0; j < h; ++j) {
690
    for (int i = 0; i < w; ++i) {
691
      const int diff = src[j * src_stride + i] - dst[j * dst_stride + i];
692
      sum += diff;
693
    }
694
  }
695
  assert(w > 0 && h > 0);
696
  return sum / (w * h);
697
}
698
699
static double get_diff_mean(const uint8_t *src, int src_stride,
700
                            const uint8_t *dst, int dst_stride, int w, int h) {
701
  double sum = 0.0;
702
  for (int j = 0; j < h; ++j) {
703
    for (int i = 0; i < w; ++i) {
704
      const int diff = src[j * src_stride + i] - dst[j * dst_stride + i];
705
      sum += diff;
706
    }
707
  }
708
  assert(w > 0 && h > 0);
709
  return sum / (w * h);
710
}
711
712
static inline void PrintPredictionUnitStats(const AV1_COMP *const cpi,
713
                                            const TileDataEnc *tile_data,
714
                                            MACROBLOCK *x,
715
                                            const RD_STATS *const rd_stats,
716
                                            BLOCK_SIZE plane_bsize) {
717
  if (rd_stats->rate == INT_MAX || rd_stats->dist == INT64_MAX) return;
718
719
  if (cpi->sf.inter_sf.inter_mode_rd_model_estimation == 1 &&
720
      (tile_data == NULL ||
721
       !tile_data->inter_mode_rd_models[plane_bsize].ready))
722
    return;
723
  (void)tile_data;
724
  // Generate small sample to restrict output size.
725
  static unsigned int seed = 95014;
726
727
  if ((lcg_rand16(&seed) % (1 << (14 - num_pels_log2_lookup[plane_bsize]))) !=
728
      1)
729
    return;
730
731
  const char output_file[] = "pu_stats.txt";
732
  FILE *fout = fopen(output_file, "a");
733
  if (!fout) return;
734
735
  MACROBLOCKD *const xd = &x->e_mbd;
736
  const int plane = 0;
737
  struct macroblock_plane *const p = &x->plane[plane];
738
  struct macroblockd_plane *pd = &xd->plane[plane];
739
  const int diff_stride = block_size_wide[plane_bsize];
740
  int bw, bh;
741
  get_txb_dimensions(xd, plane, plane_bsize, 0, 0, plane_bsize, NULL, NULL, &bw,
742
                     &bh);
743
  const int num_samples = bw * bh;
744
  const int dequant_shift = (is_cur_buf_hbd(xd)) ? xd->bd - 5 : 3;
745
  const int q_step = p->dequant_QTX[1] >> dequant_shift;
746
  const int shift = (xd->bd - 8);
747
748
  const double rate_norm = (double)rd_stats->rate / num_samples;
749
  const double dist_norm = (double)rd_stats->dist / num_samples;
750
  const double rdcost_norm =
751
      (double)RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist) / num_samples;
752
753
  fprintf(fout, "%g %g %g", rate_norm, dist_norm, rdcost_norm);
754
755
  const int src_stride = p->src.stride;
756
  const uint8_t *const src = p->src.buf;
757
  const int dst_stride = pd->dst.stride;
758
  const uint8_t *const dst = pd->dst.buf;
759
  const int16_t *const src_diff = p->src_diff;
760
761
  int64_t sse = calculate_sse(xd, p, pd, bw, bh);
762
  const double sse_norm = (double)sse / num_samples;
763
764
  const unsigned int sad =
765
      cpi->ppi->fn_ptr[plane_bsize].sdf(src, src_stride, dst, dst_stride);
766
  const double sad_norm =
767
      (double)sad / (1 << num_pels_log2_lookup[plane_bsize]);
768
769
  fprintf(fout, " %g %g", sse_norm, sad_norm);
770
771
  double sse_norm_arr[4], sad_norm_arr[4];
772
  get_2x2_normalized_sses_and_sads(cpi, plane_bsize, src, src_stride, dst,
773
                                   dst_stride, src_diff, diff_stride,
774
                                   sse_norm_arr, sad_norm_arr);
775
  if (shift) {
776
    for (int k = 0; k < 4; ++k) sse_norm_arr[k] /= (1 << (2 * shift));
777
    for (int k = 0; k < 4; ++k) sad_norm_arr[k] /= (1 << shift);
778
  }
779
  for (int i = 0; i < 4; ++i) {
780
    fprintf(fout, " %g", sse_norm_arr[i]);
781
  }
782
  for (int i = 0; i < 4; ++i) {
783
    fprintf(fout, " %g", sad_norm_arr[i]);
784
  }
785
786
  fprintf(fout, " %d %d %d %d", q_step, x->rdmult, bw, bh);
787
788
  int model_rate;
789
  int64_t model_dist;
790
  model_rd_sse_fn[MODELRD_CURVFIT](cpi, x, plane_bsize, plane, sse, num_samples,
791
                                   &model_rate, &model_dist);
792
  const double model_rdcost_norm =
793
      (double)RDCOST(x->rdmult, model_rate, model_dist) / num_samples;
794
  const double model_rate_norm = (double)model_rate / num_samples;
795
  const double model_dist_norm = (double)model_dist / num_samples;
796
  fprintf(fout, " %g %g %g", model_rate_norm, model_dist_norm,
797
          model_rdcost_norm);
798
799
  double mean;
800
  if (is_cur_buf_hbd(xd)) {
801
    mean = get_highbd_diff_mean(p->src.buf, p->src.stride, pd->dst.buf,
802
                                pd->dst.stride, bw, bh);
803
  } else {
804
    mean = get_diff_mean(p->src.buf, p->src.stride, pd->dst.buf, pd->dst.stride,
805
                         bw, bh);
806
  }
807
  mean /= (1 << shift);
808
  float hor_corr, vert_corr;
809
  av1_get_horver_correlation_full(src_diff, diff_stride, bw, bh, &hor_corr,
810
                                  &vert_corr);
811
  fprintf(fout, " %g %g %g", mean, hor_corr, vert_corr);
812
813
  double hdist[4] = { 0 }, vdist[4] = { 0 };
814
  get_energy_distribution_fine(cpi, plane_bsize, src, src_stride, dst,
815
                               dst_stride, 1, hdist, vdist);
816
  fprintf(fout, " %g %g %g %g %g %g %g %g", hdist[0], hdist[1], hdist[2],
817
          hdist[3], vdist[0], vdist[1], vdist[2], vdist[3]);
818
819
  if (cpi->sf.inter_sf.inter_mode_rd_model_estimation == 1) {
820
    assert(tile_data->inter_mode_rd_models[plane_bsize].ready);
821
    const int64_t overall_sse = get_sse(cpi, x);
822
    int est_residue_cost = 0;
823
    int64_t est_dist = 0;
824
    get_est_rate_dist(tile_data, plane_bsize, overall_sse, &est_residue_cost,
825
                      &est_dist);
826
    const double est_residue_cost_norm = (double)est_residue_cost / num_samples;
827
    const double est_dist_norm = (double)est_dist / num_samples;
828
    const double est_rdcost_norm =
829
        (double)RDCOST(x->rdmult, est_residue_cost, est_dist) / num_samples;
830
    fprintf(fout, " %g %g %g", est_residue_cost_norm, est_dist_norm,
831
            est_rdcost_norm);
832
  }
833
834
  fprintf(fout, "\n");
835
  fclose(fout);
836
}
837
#endif  // CONFIG_COLLECT_RD_STATS >= 2
838
#endif  // CONFIG_COLLECT_RD_STATS
839
840
static inline void inverse_transform_block_facade(MACROBLOCK *const x,
841
                                                  int plane, int block,
842
                                                  int blk_row, int blk_col,
843
0
                                                  int eob, int reduced_tx_set) {
844
0
  if (!eob) return;
845
0
  struct macroblock_plane *const p = &x->plane[plane];
846
0
  MACROBLOCKD *const xd = &x->e_mbd;
847
0
  tran_low_t *dqcoeff = p->dqcoeff + BLOCK_OFFSET(block);
848
0
  const PLANE_TYPE plane_type = get_plane_type(plane);
849
0
  const TX_SIZE tx_size = av1_get_tx_size(plane, xd);
850
0
  const TX_TYPE tx_type = av1_get_tx_type(xd, plane_type, blk_row, blk_col,
851
0
                                          tx_size, reduced_tx_set);
852
853
0
  struct macroblockd_plane *const pd = &xd->plane[plane];
854
0
  const int dst_stride = pd->dst.stride;
855
0
  uint8_t *dst = &pd->dst.buf[(blk_row * dst_stride + blk_col) << MI_SIZE_LOG2];
856
0
  av1_inverse_transform_block(xd, dqcoeff, plane, tx_type, tx_size, dst,
857
0
                              dst_stride, eob, reduced_tx_set);
858
0
}
859
860
static inline void recon_intra(const AV1_COMP *cpi, MACROBLOCK *x, int plane,
861
                               int block, int blk_row, int blk_col,
862
                               BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
863
                               const TXB_CTX *const txb_ctx, int skip_trellis,
864
                               TX_TYPE best_tx_type, int do_quant,
865
0
                               int *rate_cost, uint16_t best_eob) {
866
0
  const AV1_COMMON *cm = &cpi->common;
867
0
  MACROBLOCKD *xd = &x->e_mbd;
868
0
  MB_MODE_INFO *mbmi = xd->mi[0];
869
0
  const int is_inter = is_inter_block(mbmi);
870
0
  if (!is_inter && best_eob &&
871
0
      (blk_row + tx_size_high_unit[tx_size] < mi_size_high[plane_bsize] ||
872
0
       blk_col + tx_size_wide_unit[tx_size] < mi_size_wide[plane_bsize])) {
873
    // if the quantized coefficients are stored in the dqcoeff buffer, we don't
874
    // need to do transform and quantization again.
875
0
    if (do_quant) {
876
0
      TxfmParam txfm_param_intra;
877
0
      QUANT_PARAM quant_param_intra;
878
0
      av1_setup_xform(cm, x, tx_size, best_tx_type, &txfm_param_intra);
879
0
      av1_setup_quant(tx_size, !skip_trellis,
880
0
                      skip_trellis
881
0
                          ? (USE_B_QUANT_NO_TRELLIS ? AV1_XFORM_QUANT_B
882
0
                                                    : AV1_XFORM_QUANT_FP)
883
0
                          : AV1_XFORM_QUANT_FP,
884
0
                      cpi->oxcf.q_cfg.quant_b_adapt, &quant_param_intra);
885
0
      av1_setup_qmatrix(&cm->quant_params, xd, plane, tx_size, best_tx_type,
886
0
                        &quant_param_intra);
887
0
      av1_xform_quant(x, plane, block, blk_row, blk_col, plane_bsize,
888
0
                      &txfm_param_intra, &quant_param_intra);
889
0
      if (quant_param_intra.use_optimize_b) {
890
0
        av1_optimize_b(cpi, x, plane, block, tx_size, best_tx_type, txb_ctx,
891
0
                       rate_cost);
892
0
      }
893
0
    }
894
895
0
    inverse_transform_block_facade(x, plane, block, blk_row, blk_col,
896
0
                                   x->plane[plane].eobs[block],
897
0
                                   cm->features.reduced_tx_set_used);
898
899
    // This may happen because of hash collision. The eob stored in the hash
900
    // table is non-zero, but the real eob is zero. We need to make sure tx_type
901
    // is DCT_DCT in this case.
902
0
    if (plane == 0 && x->plane[plane].eobs[block] == 0 &&
903
0
        best_tx_type != DCT_DCT) {
904
0
      update_txk_array(xd, blk_row, blk_col, tx_size, DCT_DCT);
905
0
    }
906
0
  }
907
0
}
908
909
static unsigned pixel_dist_visible_only(
910
    const AV1_COMP *const cpi, const MACROBLOCK *x, const uint8_t *src,
911
    const int src_stride, const uint8_t *dst, const int dst_stride,
912
    const BLOCK_SIZE tx_bsize, int txb_rows, int txb_cols, int visible_rows,
913
0
    int visible_cols) {
914
0
  unsigned sse;
915
916
0
  if (txb_rows == visible_rows && txb_cols == visible_cols) {
917
0
    cpi->ppi->fn_ptr[tx_bsize].vf(src, src_stride, dst, dst_stride, &sse);
918
0
    return sse;
919
0
  }
920
921
0
#if CONFIG_AV1_HIGHBITDEPTH
922
0
  const MACROBLOCKD *xd = &x->e_mbd;
923
0
  if (is_cur_buf_hbd(xd)) {
924
0
    uint64_t sse64 = aom_highbd_sse_odd_size(src, src_stride, dst, dst_stride,
925
0
                                             visible_cols, visible_rows);
926
0
    return (unsigned int)ROUND_POWER_OF_TWO(sse64, (xd->bd - 8) * 2);
927
0
  }
928
#else
929
  (void)x;
930
#endif
931
0
  sse = aom_sse_odd_size(src, src_stride, dst, dst_stride, visible_cols,
932
0
                         visible_rows);
933
0
  return sse;
934
0
}
935
936
// Compute the pixel domain distortion from src and dst on all visible 4x4s in
937
// the
938
// transform block.
939
static unsigned pixel_dist(const AV1_COMP *const cpi, const MACROBLOCK *x,
940
                           int plane, const uint8_t *src, const int src_stride,
941
                           const uint8_t *dst, const int dst_stride,
942
                           int blk_row, int blk_col,
943
                           const BLOCK_SIZE plane_bsize,
944
0
                           const BLOCK_SIZE tx_bsize) {
945
0
  int txb_rows, txb_cols, visible_rows, visible_cols;
946
0
  const MACROBLOCKD *xd = &x->e_mbd;
947
948
0
  get_txb_dimensions(xd, plane, plane_bsize, blk_row, blk_col, tx_bsize,
949
0
                     &txb_cols, &txb_rows, &visible_cols, &visible_rows);
950
0
  assert(visible_rows > 0);
951
0
  assert(visible_cols > 0);
952
953
0
  unsigned sse = pixel_dist_visible_only(cpi, x, src, src_stride, dst,
954
0
                                         dst_stride, tx_bsize, txb_rows,
955
0
                                         txb_cols, visible_rows, visible_cols);
956
957
0
  return sse;
958
0
}
959
960
static inline int64_t dist_block_px_domain(const AV1_COMP *cpi, MACROBLOCK *x,
961
                                           int plane, BLOCK_SIZE plane_bsize,
962
                                           int block, int blk_row, int blk_col,
963
0
                                           TX_SIZE tx_size) {
964
0
  MACROBLOCKD *const xd = &x->e_mbd;
965
0
  const struct macroblock_plane *const p = &x->plane[plane];
966
0
  const uint16_t eob = p->eobs[block];
967
0
  const BLOCK_SIZE tx_bsize = txsize_to_bsize[tx_size];
968
0
  const int bsw = block_size_wide[tx_bsize];
969
0
  const int bsh = block_size_high[tx_bsize];
970
0
  const int src_stride = x->plane[plane].src.stride;
971
0
  const int dst_stride = xd->plane[plane].dst.stride;
972
  // Scale the transform block index to pixel unit.
973
0
  const int src_idx = (blk_row * src_stride + blk_col) << MI_SIZE_LOG2;
974
0
  const int dst_idx = (blk_row * dst_stride + blk_col) << MI_SIZE_LOG2;
975
0
  const uint8_t *src = &x->plane[plane].src.buf[src_idx];
976
0
  const uint8_t *dst = &xd->plane[plane].dst.buf[dst_idx];
977
0
  const tran_low_t *dqcoeff = p->dqcoeff + BLOCK_OFFSET(block);
978
979
0
  assert(cpi != NULL);
980
0
  assert(tx_size_wide_log2[0] == tx_size_high_log2[0]);
981
982
0
  uint8_t *recon;
983
0
  DECLARE_ALIGNED(16, uint16_t, recon16[MAX_TX_SQUARE]);
984
985
0
#if CONFIG_AV1_HIGHBITDEPTH
986
0
  if (is_cur_buf_hbd(xd)) {
987
0
    recon = CONVERT_TO_BYTEPTR(recon16);
988
0
    aom_highbd_convolve_copy(CONVERT_TO_SHORTPTR(dst), dst_stride,
989
0
                             CONVERT_TO_SHORTPTR(recon), MAX_TX_SIZE, bsw, bsh);
990
0
  } else {
991
0
    recon = (uint8_t *)recon16;
992
0
    aom_convolve_copy(dst, dst_stride, recon, MAX_TX_SIZE, bsw, bsh);
993
0
  }
994
#else
995
  recon = (uint8_t *)recon16;
996
  aom_convolve_copy(dst, dst_stride, recon, MAX_TX_SIZE, bsw, bsh);
997
#endif
998
999
0
  const PLANE_TYPE plane_type = get_plane_type(plane);
1000
0
  TX_TYPE tx_type = av1_get_tx_type(xd, plane_type, blk_row, blk_col, tx_size,
1001
0
                                    cpi->common.features.reduced_tx_set_used);
1002
0
  av1_inverse_transform_block(xd, dqcoeff, plane, tx_type, tx_size, recon,
1003
0
                              MAX_TX_SIZE, eob,
1004
0
                              cpi->common.features.reduced_tx_set_used);
1005
1006
0
  return 16 * pixel_dist(cpi, x, plane, src, src_stride, recon, MAX_TX_SIZE,
1007
0
                         blk_row, blk_col, plane_bsize, tx_bsize);
1008
0
}
1009
1010
// pruning thresholds for prune_txk_type and prune_txk_type_separ
1011
static const int prune_factors[5] = { 200, 200, 120, 80, 40 };  // scale 1000
1012
static const int mul_factors[5] = { 80, 80, 70, 50, 30 };       // scale 100
1013
1014
// R-D costs are sorted in ascending order.
1015
0
static inline void sort_rd(int64_t rds[], int txk[], int len) {
1016
0
  int i, j, k;
1017
1018
0
  for (i = 1; i <= len - 1; ++i) {
1019
0
    for (j = 0; j < i; ++j) {
1020
0
      if (rds[j] > rds[i]) {
1021
0
        int64_t temprd;
1022
0
        int tempi;
1023
1024
0
        temprd = rds[i];
1025
0
        tempi = txk[i];
1026
1027
0
        for (k = i; k > j; k--) {
1028
0
          rds[k] = rds[k - 1];
1029
0
          txk[k] = txk[k - 1];
1030
0
        }
1031
1032
0
        rds[j] = temprd;
1033
0
        txk[j] = tempi;
1034
0
        break;
1035
0
      }
1036
0
    }
1037
0
  }
1038
0
}
1039
1040
static inline int64_t av1_block_error_qm(
1041
    const tran_low_t *coeff, const tran_low_t *dqcoeff, intptr_t block_size,
1042
0
    const qm_val_t *qmatrix, const int16_t *scan, int64_t *ssz, int bd) {
1043
0
  int i;
1044
0
  int64_t error = 0, sqcoeff = 0;
1045
0
  int shift = 2 * (bd - 8);
1046
0
  int rounding = (1 << shift) >> 1;
1047
1048
0
  for (i = 0; i < block_size; i++) {
1049
0
    int64_t weight = qmatrix[scan[i]];
1050
0
    int64_t dd = coeff[i] - dqcoeff[i];
1051
0
    dd *= weight;
1052
0
    int64_t cc = coeff[i];
1053
0
    cc *= weight;
1054
    // The ranges of coeff and dqcoeff are
1055
    //  bd8 : 18 bits (including sign)
1056
    //  bd10: 20 bits (including sign)
1057
    //  bd12: 22 bits (including sign)
1058
    // As AOM_QM_BITS is 5, the intermediate quantities in the calculation
1059
    // below should fit in 54 bits, thus no overflow should happen.
1060
0
    error += (dd * dd + (1 << (2 * AOM_QM_BITS - 1))) >> (2 * AOM_QM_BITS);
1061
0
    sqcoeff += (cc * cc + (1 << (2 * AOM_QM_BITS - 1))) >> (2 * AOM_QM_BITS);
1062
0
  }
1063
1064
0
  error = (error + rounding) >> shift;
1065
0
  sqcoeff = (sqcoeff + rounding) >> shift;
1066
1067
0
  *ssz = sqcoeff;
1068
0
  return error;
1069
0
}
1070
1071
static inline void dist_block_tx_domain(MACROBLOCK *x, int plane, int block,
1072
                                        TX_SIZE tx_size,
1073
                                        const qm_val_t *qmatrix,
1074
                                        const int16_t *scan, int64_t *out_dist,
1075
0
                                        int64_t *out_sse) {
1076
0
  const struct macroblock_plane *const p = &x->plane[plane];
1077
  // Transform domain distortion computation is more efficient as it does
1078
  // not involve an inverse transform, but it is less accurate.
1079
0
  const int buffer_length = av1_get_max_eob(tx_size);
1080
0
  int64_t this_sse;
1081
  // TX-domain results need to shift down to Q2/D10 to match pixel
1082
  // domain distortion values which are in Q2^2
1083
0
  int shift = (MAX_TX_SCALE - av1_get_tx_scale(tx_size)) * 2;
1084
0
  const int block_offset = BLOCK_OFFSET(block);
1085
0
  tran_low_t *const coeff = p->coeff + block_offset;
1086
0
  tran_low_t *const dqcoeff = p->dqcoeff + block_offset;
1087
0
#if CONFIG_AV1_HIGHBITDEPTH
1088
0
  MACROBLOCKD *const xd = &x->e_mbd;
1089
0
  if (is_cur_buf_hbd(xd)) {
1090
0
    if (qmatrix == NULL || !x->txfm_search_params.use_qm_dist_metric) {
1091
0
      *out_dist = av1_highbd_block_error(coeff, dqcoeff, buffer_length,
1092
0
                                         &this_sse, xd->bd);
1093
0
    } else {
1094
0
      *out_dist = av1_block_error_qm(coeff, dqcoeff, buffer_length, qmatrix,
1095
0
                                     scan, &this_sse, xd->bd);
1096
0
    }
1097
0
  } else {
1098
0
#endif
1099
0
    if (qmatrix == NULL || !x->txfm_search_params.use_qm_dist_metric) {
1100
0
      *out_dist = av1_block_error(coeff, dqcoeff, buffer_length, &this_sse);
1101
0
    } else {
1102
0
      *out_dist = av1_block_error_qm(coeff, dqcoeff, buffer_length, qmatrix,
1103
0
                                     scan, &this_sse, 8);
1104
0
    }
1105
0
#if CONFIG_AV1_HIGHBITDEPTH
1106
0
  }
1107
0
#endif
1108
1109
0
  *out_dist = RIGHT_SIGNED_SHIFT(*out_dist, shift);
1110
0
  *out_sse = RIGHT_SIGNED_SHIFT(this_sse, shift);
1111
0
}
1112
1113
static uint16_t prune_txk_type_separ(
1114
    const AV1_COMP *cpi, MACROBLOCK *x, int plane, int block, TX_SIZE tx_size,
1115
    int blk_row, int blk_col, BLOCK_SIZE plane_bsize, int *txk_map,
1116
    int16_t allowed_tx_mask, int prune_factor, const TXB_CTX *const txb_ctx,
1117
0
    int reduced_tx_set_used, int64_t ref_best_rd, int num_sel) {
1118
0
  const AV1_COMMON *cm = &cpi->common;
1119
0
  MACROBLOCKD *xd = &x->e_mbd;
1120
1121
0
  int idx;
1122
1123
0
  int64_t rds_v[4];
1124
0
  int64_t rds_h[4];
1125
0
  int idx_v[4] = { 0, 1, 2, 3 };
1126
0
  int idx_h[4] = { 0, 1, 2, 3 };
1127
0
  int skip_v[4] = { 0 };
1128
0
  int skip_h[4] = { 0 };
1129
0
  const int idx_map[16] = {
1130
0
    DCT_DCT,      DCT_ADST,      DCT_FLIPADST,      V_DCT,
1131
0
    ADST_DCT,     ADST_ADST,     ADST_FLIPADST,     V_ADST,
1132
0
    FLIPADST_DCT, FLIPADST_ADST, FLIPADST_FLIPADST, V_FLIPADST,
1133
0
    H_DCT,        H_ADST,        H_FLIPADST,        IDTX
1134
0
  };
1135
1136
0
  const int sel_pattern_v[16] = {
1137
0
    0, 0, 1, 1, 0, 2, 1, 2, 2, 0, 3, 1, 3, 2, 3, 3
1138
0
  };
1139
0
  const int sel_pattern_h[16] = {
1140
0
    0, 1, 0, 1, 2, 0, 2, 1, 2, 3, 0, 3, 1, 3, 2, 3
1141
0
  };
1142
1143
0
  QUANT_PARAM quant_param;
1144
0
  TxfmParam txfm_param;
1145
0
  av1_setup_xform(cm, x, tx_size, DCT_DCT, &txfm_param);
1146
0
  av1_setup_quant(tx_size, 1, AV1_XFORM_QUANT_B, cpi->oxcf.q_cfg.quant_b_adapt,
1147
0
                  &quant_param);
1148
0
  int tx_type;
1149
  // to ensure we can try ones even outside of ext_tx_set of current block
1150
  // this function should only be called for size < 16
1151
0
  assert(txsize_sqr_up_map[tx_size] <= TX_16X16);
1152
0
  txfm_param.tx_set_type = EXT_TX_SET_ALL16;
1153
1154
0
  int rate_cost = 0;
1155
0
  int64_t dist = 0, sse = 0;
1156
  // evaluate horizontal with vertical DCT
1157
0
  for (idx = 0; idx < 4; ++idx) {
1158
0
    tx_type = idx_map[idx];
1159
0
    txfm_param.tx_type = tx_type;
1160
1161
0
    av1_setup_qmatrix(&cm->quant_params, xd, plane, tx_size, tx_type,
1162
0
                      &quant_param);
1163
1164
0
    av1_xform_quant(x, plane, block, blk_row, blk_col, plane_bsize, &txfm_param,
1165
0
                    &quant_param);
1166
1167
0
    const SCAN_ORDER *const scan_order =
1168
0
        get_scan(txfm_param.tx_size, txfm_param.tx_type);
1169
0
    dist_block_tx_domain(x, plane, block, tx_size, quant_param.qmatrix,
1170
0
                         scan_order->scan, &dist, &sse);
1171
1172
0
    rate_cost = av1_cost_coeffs_txb_laplacian(x, plane, block, tx_size, tx_type,
1173
0
                                              txb_ctx, reduced_tx_set_used, 0);
1174
1175
0
    rds_h[idx] = RDCOST(x->rdmult, rate_cost, dist);
1176
1177
0
    if ((rds_h[idx] - (rds_h[idx] >> 2)) > ref_best_rd) {
1178
0
      skip_h[idx] = 1;
1179
0
    }
1180
0
  }
1181
0
  sort_rd(rds_h, idx_h, 4);
1182
0
  for (idx = 1; idx < 4; idx++) {
1183
0
    if (rds_h[idx] > rds_h[0] * 1.2) skip_h[idx_h[idx]] = 1;
1184
0
  }
1185
1186
0
  if (skip_h[idx_h[0]]) return (uint16_t)0xFFFF;
1187
1188
  // evaluate vertical with the best horizontal chosen
1189
0
  rds_v[0] = rds_h[0];
1190
0
  int start_v = 1, end_v = 4;
1191
0
  const int *idx_map_v = idx_map + idx_h[0];
1192
1193
0
  for (idx = start_v; idx < end_v; ++idx) {
1194
0
    tx_type = idx_map_v[idx_v[idx] * 4];
1195
0
    txfm_param.tx_type = tx_type;
1196
1197
0
    av1_setup_qmatrix(&cm->quant_params, xd, plane, tx_size, tx_type,
1198
0
                      &quant_param);
1199
1200
0
    av1_xform_quant(x, plane, block, blk_row, blk_col, plane_bsize, &txfm_param,
1201
0
                    &quant_param);
1202
1203
0
    const SCAN_ORDER *const scan_order =
1204
0
        get_scan(txfm_param.tx_size, txfm_param.tx_type);
1205
0
    dist_block_tx_domain(x, plane, block, tx_size, quant_param.qmatrix,
1206
0
                         scan_order->scan, &dist, &sse);
1207
1208
0
    rate_cost = av1_cost_coeffs_txb_laplacian(x, plane, block, tx_size, tx_type,
1209
0
                                              txb_ctx, reduced_tx_set_used, 0);
1210
1211
0
    rds_v[idx] = RDCOST(x->rdmult, rate_cost, dist);
1212
1213
0
    if ((rds_v[idx] - (rds_v[idx] >> 2)) > ref_best_rd) {
1214
0
      skip_v[idx] = 1;
1215
0
    }
1216
0
  }
1217
0
  sort_rd(rds_v, idx_v, 4);
1218
0
  for (idx = 1; idx < 4; idx++) {
1219
0
    if (rds_v[idx] > rds_v[0] * 1.2) skip_v[idx_v[idx]] = 1;
1220
0
  }
1221
1222
  // combine rd_h and rd_v to prune tx candidates
1223
0
  int i_v, i_h;
1224
0
  int64_t rds[16];
1225
0
  int num_cand = 0, last = TX_TYPES - 1;
1226
1227
0
  for (int i = 0; i < 16; i++) {
1228
0
    i_v = sel_pattern_v[i];
1229
0
    i_h = sel_pattern_h[i];
1230
0
    tx_type = idx_map[idx_v[i_v] * 4 + idx_h[i_h]];
1231
0
    if (!(allowed_tx_mask & (1 << tx_type)) || skip_h[idx_h[i_h]] ||
1232
0
        skip_v[idx_v[i_v]]) {
1233
0
      txk_map[last] = tx_type;
1234
0
      last--;
1235
0
    } else {
1236
0
      txk_map[num_cand] = tx_type;
1237
0
      rds[num_cand] = rds_v[i_v] + rds_h[i_h];
1238
0
      if (rds[num_cand] == 0) rds[num_cand] = 1;
1239
0
      num_cand++;
1240
0
    }
1241
0
  }
1242
0
  sort_rd(rds, txk_map, num_cand);
1243
1244
0
  uint16_t prune = (uint16_t)(~(1 << txk_map[0]));
1245
0
  num_sel = AOMMIN(num_sel, num_cand);
1246
1247
0
  for (int i = 1; i < num_sel; i++) {
1248
0
    int64_t factor = 1800 * (rds[i] - rds[0]) / (rds[0]);
1249
0
    if (factor < (int64_t)prune_factor)
1250
0
      prune &= ~(1 << txk_map[i]);
1251
0
    else
1252
0
      break;
1253
0
  }
1254
0
  return prune;
1255
0
}
1256
1257
static uint16_t prune_txk_type(const AV1_COMP *cpi, MACROBLOCK *x, int plane,
1258
                               int block, TX_SIZE tx_size, int blk_row,
1259
                               int blk_col, BLOCK_SIZE plane_bsize,
1260
                               int *txk_map, uint16_t allowed_tx_mask,
1261
                               int prune_factor, const TXB_CTX *const txb_ctx,
1262
0
                               int reduced_tx_set_used) {
1263
0
  const AV1_COMMON *cm = &cpi->common;
1264
0
  MACROBLOCKD *xd = &x->e_mbd;
1265
0
  int tx_type;
1266
1267
0
  int64_t rds[TX_TYPES];
1268
1269
0
  int num_cand = 0;
1270
0
  int last = TX_TYPES - 1;
1271
1272
0
  TxfmParam txfm_param;
1273
0
  QUANT_PARAM quant_param;
1274
0
  av1_setup_xform(cm, x, tx_size, DCT_DCT, &txfm_param);
1275
0
  av1_setup_quant(tx_size, 1, AV1_XFORM_QUANT_B, cpi->oxcf.q_cfg.quant_b_adapt,
1276
0
                  &quant_param);
1277
1278
0
  for (int idx = 0; idx < TX_TYPES; idx++) {
1279
0
    tx_type = idx;
1280
0
    int rate_cost = 0;
1281
0
    int64_t dist = 0, sse = 0;
1282
0
    if (!(allowed_tx_mask & (1 << tx_type))) {
1283
0
      txk_map[last] = tx_type;
1284
0
      last--;
1285
0
      continue;
1286
0
    }
1287
0
    txfm_param.tx_type = tx_type;
1288
1289
0
    av1_setup_qmatrix(&cm->quant_params, xd, plane, tx_size, tx_type,
1290
0
                      &quant_param);
1291
1292
    // do txfm and quantization
1293
0
    av1_xform_quant(x, plane, block, blk_row, blk_col, plane_bsize, &txfm_param,
1294
0
                    &quant_param);
1295
    // estimate rate cost
1296
0
    rate_cost = av1_cost_coeffs_txb_laplacian(x, plane, block, tx_size, tx_type,
1297
0
                                              txb_ctx, reduced_tx_set_used, 0);
1298
    // tx domain dist
1299
0
    const SCAN_ORDER *const scan_order =
1300
0
        get_scan(txfm_param.tx_size, txfm_param.tx_type);
1301
0
    dist_block_tx_domain(x, plane, block, tx_size, quant_param.qmatrix,
1302
0
                         scan_order->scan, &dist, &sse);
1303
1304
0
    txk_map[num_cand] = tx_type;
1305
0
    rds[num_cand] = RDCOST(x->rdmult, rate_cost, dist);
1306
0
    if (rds[num_cand] == 0) rds[num_cand] = 1;
1307
0
    num_cand++;
1308
0
  }
1309
1310
0
  if (num_cand == 0) return (uint16_t)0xFFFF;
1311
1312
0
  sort_rd(rds, txk_map, num_cand);
1313
0
  uint16_t prune = (uint16_t)(~(1 << txk_map[0]));
1314
1315
  // 0 < prune_factor <= 1000 controls aggressiveness
1316
0
  int64_t factor = 0;
1317
0
  for (int idx = 1; idx < num_cand; idx++) {
1318
0
    factor = 1000 * (rds[idx] - rds[0]) / rds[0];
1319
0
    if (factor < (int64_t)prune_factor)
1320
0
      prune &= ~(1 << txk_map[idx]);
1321
0
    else
1322
0
      break;
1323
0
  }
1324
0
  return prune;
1325
0
}
1326
1327
// These thresholds were calibrated to provide a certain number of TX types
1328
// pruned by the model on average, i.e. selecting a threshold with index i
1329
// will lead to pruning i+1 TX types on average
1330
static const float *prune_2D_adaptive_thresholds[] = {
1331
  // TX_4X4
1332
  (float[]){ 0.00549f, 0.01306f, 0.02039f, 0.02747f, 0.03406f, 0.04065f,
1333
             0.04724f, 0.05383f, 0.06067f, 0.06799f, 0.07605f, 0.08533f,
1334
             0.09778f, 0.11780f },
1335
  // TX_8X8
1336
  (float[]){ 0.00037f, 0.00183f, 0.00525f, 0.01038f, 0.01697f, 0.02502f,
1337
             0.03381f, 0.04333f, 0.05286f, 0.06287f, 0.07434f, 0.08850f,
1338
             0.10803f, 0.14124f },
1339
  // TX_16X16
1340
  (float[]){ 0.01404f, 0.02000f, 0.04211f, 0.05164f, 0.05798f, 0.06335f,
1341
             0.06897f, 0.07629f, 0.08875f, 0.11169f },
1342
  // TX_32X32
1343
  NULL,
1344
  // TX_64X64
1345
  NULL,
1346
  // TX_4X8
1347
  (float[]){ 0.00183f, 0.00745f, 0.01428f, 0.02185f, 0.02966f, 0.03723f,
1348
             0.04456f, 0.05188f, 0.05920f, 0.06702f, 0.07605f, 0.08704f,
1349
             0.10168f, 0.12585f },
1350
  // TX_8X4
1351
  (float[]){ 0.00085f, 0.00476f, 0.01135f, 0.01892f, 0.02698f, 0.03528f,
1352
             0.04358f, 0.05164f, 0.05994f, 0.06848f, 0.07849f, 0.09021f,
1353
             0.10583f, 0.13123f },
1354
  // TX_8X16
1355
  (float[]){ 0.00037f, 0.00232f, 0.00671f, 0.01257f, 0.01965f, 0.02722f,
1356
             0.03552f, 0.04382f, 0.05237f, 0.06189f, 0.07336f, 0.08728f,
1357
             0.10730f, 0.14221f },
1358
  // TX_16X8
1359
  (float[]){ 0.00061f, 0.00330f, 0.00818f, 0.01453f, 0.02185f, 0.02966f,
1360
             0.03772f, 0.04578f, 0.05383f, 0.06262f, 0.07288f, 0.08582f,
1361
             0.10339f, 0.13464f },
1362
  // TX_16X32
1363
  NULL,
1364
  // TX_32X16
1365
  NULL,
1366
  // TX_32X64
1367
  NULL,
1368
  // TX_64X32
1369
  NULL,
1370
  // TX_4X16
1371
  (float[]){ 0.00232f, 0.00671f, 0.01257f, 0.01941f, 0.02673f, 0.03430f,
1372
             0.04211f, 0.04968f, 0.05750f, 0.06580f, 0.07507f, 0.08655f,
1373
             0.10242f, 0.12878f },
1374
  // TX_16X4
1375
  (float[]){ 0.00110f, 0.00525f, 0.01208f, 0.01990f, 0.02795f, 0.03601f,
1376
             0.04358f, 0.05115f, 0.05896f, 0.06702f, 0.07629f, 0.08752f,
1377
             0.10217f, 0.12610f },
1378
  // TX_8X32
1379
  NULL,
1380
  // TX_32X8
1381
  NULL,
1382
  // TX_16X64
1383
  NULL,
1384
  // TX_64X16
1385
  NULL,
1386
};
1387
1388
static inline float get_adaptive_thresholds(
1389
    TX_SIZE tx_size, TxSetType tx_set_type,
1390
0
    TX_TYPE_PRUNE_MODE prune_2d_txfm_mode) {
1391
0
  const int prune_aggr_table[5][2] = {
1392
0
    { 4, 1 }, { 6, 3 }, { 9, 6 }, { 9, 6 }, { 12, 9 }
1393
0
  };
1394
0
  int pruning_aggressiveness = 0;
1395
0
  if (tx_set_type == EXT_TX_SET_ALL16)
1396
0
    pruning_aggressiveness =
1397
0
        prune_aggr_table[prune_2d_txfm_mode - TX_TYPE_PRUNE_1][0];
1398
0
  else if (tx_set_type == EXT_TX_SET_DTT9_IDTX_1DDCT)
1399
0
    pruning_aggressiveness =
1400
0
        prune_aggr_table[prune_2d_txfm_mode - TX_TYPE_PRUNE_1][1];
1401
1402
0
  return prune_2D_adaptive_thresholds[tx_size][pruning_aggressiveness];
1403
0
}
1404
1405
static inline void get_energy_distribution_finer(const int16_t *diff,
1406
                                                 int stride, int bw, int bh,
1407
                                                 float *hordist,
1408
0
                                                 float *verdist) {
1409
  // First compute downscaled block energy values (esq); downscale factors
1410
  // are defined by w_shift and h_shift.
1411
0
  unsigned int esq[256];
1412
0
  const int w_shift = bw <= 8 ? 0 : 1;
1413
0
  const int h_shift = bh <= 8 ? 0 : 1;
1414
0
  const int esq_w = bw >> w_shift;
1415
0
  const int esq_h = bh >> h_shift;
1416
0
  const int esq_sz = esq_w * esq_h;
1417
0
  int i, j;
1418
0
  memset(esq, 0, esq_sz * sizeof(esq[0]));
1419
0
  if (w_shift) {
1420
0
    for (i = 0; i < bh; i++) {
1421
0
      unsigned int *cur_esq_row = esq + (i >> h_shift) * esq_w;
1422
0
      const int16_t *cur_diff_row = diff + i * stride;
1423
0
      for (j = 0; j < bw; j += 2) {
1424
0
        cur_esq_row[j >> 1] += (cur_diff_row[j] * cur_diff_row[j] +
1425
0
                                cur_diff_row[j + 1] * cur_diff_row[j + 1]);
1426
0
      }
1427
0
    }
1428
0
  } else {
1429
0
    for (i = 0; i < bh; i++) {
1430
0
      unsigned int *cur_esq_row = esq + (i >> h_shift) * esq_w;
1431
0
      const int16_t *cur_diff_row = diff + i * stride;
1432
0
      for (j = 0; j < bw; j++) {
1433
0
        cur_esq_row[j] += cur_diff_row[j] * cur_diff_row[j];
1434
0
      }
1435
0
    }
1436
0
  }
1437
1438
0
  uint64_t total = 0;
1439
0
  for (i = 0; i < esq_sz; i++) total += esq[i];
1440
1441
  // Output hordist and verdist arrays are normalized 1D projections of esq
1442
0
  if (total == 0) {
1443
0
    float hor_val = 1.0f / esq_w;
1444
0
    for (j = 0; j < esq_w - 1; j++) hordist[j] = hor_val;
1445
0
    float ver_val = 1.0f / esq_h;
1446
0
    for (i = 0; i < esq_h - 1; i++) verdist[i] = ver_val;
1447
0
    return;
1448
0
  }
1449
1450
0
  const float e_recip = 1.0f / (float)total;
1451
0
  memset(hordist, 0, (esq_w - 1) * sizeof(hordist[0]));
1452
0
  memset(verdist, 0, (esq_h - 1) * sizeof(verdist[0]));
1453
0
  const unsigned int *cur_esq_row;
1454
0
  for (i = 0; i < esq_h - 1; i++) {
1455
0
    cur_esq_row = esq + i * esq_w;
1456
0
    for (j = 0; j < esq_w - 1; j++) {
1457
0
      hordist[j] += (float)cur_esq_row[j];
1458
0
      verdist[i] += (float)cur_esq_row[j];
1459
0
    }
1460
0
    verdist[i] += (float)cur_esq_row[j];
1461
0
  }
1462
0
  cur_esq_row = esq + i * esq_w;
1463
0
  for (j = 0; j < esq_w - 1; j++) hordist[j] += (float)cur_esq_row[j];
1464
1465
0
  for (j = 0; j < esq_w - 1; j++) hordist[j] *= e_recip;
1466
0
  for (i = 0; i < esq_h - 1; i++) verdist[i] *= e_recip;
1467
0
}
1468
1469
0
static inline bool check_bit_mask(uint16_t mask, int val) {
1470
0
  return mask & (1 << val);
1471
0
}
1472
1473
0
static inline void set_bit_mask(uint16_t *mask, int val) {
1474
0
  *mask |= (1 << val);
1475
0
}
1476
1477
0
static inline void unset_bit_mask(uint16_t *mask, int val) {
1478
0
  *mask &= ~(1 << val);
1479
0
}
1480
1481
static void prune_tx_2D(MACROBLOCK *x, BLOCK_SIZE bsize, TX_SIZE tx_size,
1482
                        int blk_row, int blk_col, TxSetType tx_set_type,
1483
                        TX_TYPE_PRUNE_MODE prune_2d_txfm_mode, int *txk_map,
1484
0
                        uint16_t *allowed_tx_mask) {
1485
  // This table is used because the search order is different from the enum
1486
  // order.
1487
0
  static const int tx_type_table_2D[16] = {
1488
0
    DCT_DCT,      DCT_ADST,      DCT_FLIPADST,      V_DCT,
1489
0
    ADST_DCT,     ADST_ADST,     ADST_FLIPADST,     V_ADST,
1490
0
    FLIPADST_DCT, FLIPADST_ADST, FLIPADST_FLIPADST, V_FLIPADST,
1491
0
    H_DCT,        H_ADST,        H_FLIPADST,        IDTX
1492
0
  };
1493
0
  if (tx_set_type != EXT_TX_SET_ALL16 &&
1494
0
      tx_set_type != EXT_TX_SET_DTT9_IDTX_1DDCT)
1495
0
    return;
1496
#if CONFIG_NN_V2
1497
  NN_CONFIG_V2 *nn_config_hor = av1_tx_type_nnconfig_map_hor[tx_size];
1498
  NN_CONFIG_V2 *nn_config_ver = av1_tx_type_nnconfig_map_ver[tx_size];
1499
#else
1500
0
  const NN_CONFIG *nn_config_hor = av1_tx_type_nnconfig_map_hor[tx_size];
1501
0
  const NN_CONFIG *nn_config_ver = av1_tx_type_nnconfig_map_ver[tx_size];
1502
0
#endif
1503
0
  if (!nn_config_hor || !nn_config_ver) return;  // Model not established yet.
1504
1505
0
  float hfeatures[16], vfeatures[16];
1506
0
  float hscores[4], vscores[4];
1507
0
  float scores_2D_raw[16];
1508
0
  const int bw = tx_size_wide[tx_size];
1509
0
  const int bh = tx_size_high[tx_size];
1510
0
  const int hfeatures_num = bw <= 8 ? bw : bw / 2;
1511
0
  const int vfeatures_num = bh <= 8 ? bh : bh / 2;
1512
0
  assert(hfeatures_num <= 16);
1513
0
  assert(vfeatures_num <= 16);
1514
1515
0
  const struct macroblock_plane *const p = &x->plane[0];
1516
0
  const int diff_stride = block_size_wide[bsize];
1517
0
  const int16_t *diff = p->src_diff + 4 * blk_row * diff_stride + 4 * blk_col;
1518
0
  get_energy_distribution_finer(diff, diff_stride, bw, bh, hfeatures,
1519
0
                                vfeatures);
1520
1521
0
  av1_get_horver_correlation_full(diff, diff_stride, bw, bh,
1522
0
                                  &hfeatures[hfeatures_num - 1],
1523
0
                                  &vfeatures[vfeatures_num - 1]);
1524
1525
#if CONFIG_NN_V2
1526
  av1_nn_predict_v2(hfeatures, nn_config_hor, 0, hscores);
1527
  av1_nn_predict_v2(vfeatures, nn_config_ver, 0, vscores);
1528
#else
1529
0
  av1_nn_predict(hfeatures, nn_config_hor, 1, hscores);
1530
0
  av1_nn_predict(vfeatures, nn_config_ver, 1, vscores);
1531
0
#endif
1532
1533
0
  for (int i = 0; i < 4; i++) {
1534
0
    float *cur_scores_2D = scores_2D_raw + i * 4;
1535
0
    cur_scores_2D[0] = vscores[i] * hscores[0];
1536
0
    cur_scores_2D[1] = vscores[i] * hscores[1];
1537
0
    cur_scores_2D[2] = vscores[i] * hscores[2];
1538
0
    cur_scores_2D[3] = vscores[i] * hscores[3];
1539
0
  }
1540
1541
0
  assert(TX_TYPES == 16);
1542
  // This version of the function only works when there are at most 16 classes.
1543
  // So we will need to change the optimization or use av1_nn_softmax instead if
1544
  // this ever gets changed.
1545
0
  av1_nn_fast_softmax_16(scores_2D_raw, scores_2D_raw);
1546
1547
0
  const float score_thresh =
1548
0
      get_adaptive_thresholds(tx_size, tx_set_type, prune_2d_txfm_mode);
1549
1550
  // Always keep the TX type with the highest score, prune all others with
1551
  // score below score_thresh.
1552
0
  int max_score_i = 0;
1553
0
  float max_score = 0.0f;
1554
0
  uint16_t allow_bitmask = 0;
1555
0
  float sum_score = 0.0;
1556
  // Calculate sum of allowed tx type score and Populate allow bit mask based
1557
  // on score_thresh and allowed_tx_mask
1558
0
  int allow_count = 0;
1559
0
  int tx_type_allowed[16] = { TX_TYPE_INVALID, TX_TYPE_INVALID, TX_TYPE_INVALID,
1560
0
                              TX_TYPE_INVALID, TX_TYPE_INVALID, TX_TYPE_INVALID,
1561
0
                              TX_TYPE_INVALID, TX_TYPE_INVALID, TX_TYPE_INVALID,
1562
0
                              TX_TYPE_INVALID, TX_TYPE_INVALID, TX_TYPE_INVALID,
1563
0
                              TX_TYPE_INVALID, TX_TYPE_INVALID, TX_TYPE_INVALID,
1564
0
                              TX_TYPE_INVALID };
1565
0
  float scores_2D[16] = {
1566
0
    -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, -1,
1567
0
  };
1568
0
  for (int tx_idx = 0; tx_idx < TX_TYPES; tx_idx++) {
1569
0
    const int allow_tx_type =
1570
0
        check_bit_mask(*allowed_tx_mask, tx_type_table_2D[tx_idx]);
1571
0
    if (!allow_tx_type) {
1572
0
      continue;
1573
0
    }
1574
0
    if (scores_2D_raw[tx_idx] > max_score) {
1575
0
      max_score = scores_2D_raw[tx_idx];
1576
0
      max_score_i = tx_idx;
1577
0
    }
1578
0
    if (scores_2D_raw[tx_idx] >= score_thresh) {
1579
      // Set allow mask based on score_thresh
1580
0
      set_bit_mask(&allow_bitmask, tx_type_table_2D[tx_idx]);
1581
1582
      // Accumulate score of allowed tx type
1583
0
      sum_score += scores_2D_raw[tx_idx];
1584
1585
0
      scores_2D[allow_count] = scores_2D_raw[tx_idx];
1586
0
      tx_type_allowed[allow_count] = tx_type_table_2D[tx_idx];
1587
0
      allow_count += 1;
1588
0
    }
1589
0
  }
1590
0
  if (!check_bit_mask(allow_bitmask, tx_type_table_2D[max_score_i])) {
1591
    // If even the tx_type with max score is pruned, this means that no other
1592
    // tx_type is feasible. When this happens, we force enable max_score_i and
1593
    // end the search.
1594
0
    set_bit_mask(&allow_bitmask, tx_type_table_2D[max_score_i]);
1595
0
    memcpy(txk_map, tx_type_table_2D, sizeof(tx_type_table_2D));
1596
0
    *allowed_tx_mask = allow_bitmask;
1597
0
    return;
1598
0
  }
1599
1600
  // Sort tx type probability of all types
1601
0
  if (allow_count <= 8) {
1602
0
    av1_sort_fi32_8(scores_2D, tx_type_allowed);
1603
0
  } else {
1604
0
    av1_sort_fi32_16(scores_2D, tx_type_allowed);
1605
0
  }
1606
1607
  // Enable more pruning based on tx type probability and number of allowed tx
1608
  // types
1609
0
  if (prune_2d_txfm_mode >= TX_TYPE_PRUNE_4) {
1610
0
    float temp_score = 0.0;
1611
0
    float score_ratio = 0.0;
1612
0
    int tx_idx, tx_count = 0;
1613
0
    const float inv_sum_score = 100 / sum_score;
1614
    // Get allowed tx types based on sorted probability score and tx count
1615
0
    for (tx_idx = 0; tx_idx < allow_count; tx_idx++) {
1616
      // Skip the tx type which has more than 30% of cumulative
1617
      // probability and allowed tx type count is more than 2
1618
0
      if (score_ratio > 30.0 && tx_count >= 2) break;
1619
1620
0
      assert(check_bit_mask(allow_bitmask, tx_type_allowed[tx_idx]));
1621
      // Calculate cumulative probability
1622
0
      temp_score += scores_2D[tx_idx];
1623
1624
      // Calculate percentage of cumulative probability of allowed tx type
1625
0
      score_ratio = temp_score * inv_sum_score;
1626
0
      tx_count++;
1627
0
    }
1628
    // Set remaining tx types as pruned
1629
0
    for (; tx_idx < allow_count; tx_idx++)
1630
0
      unset_bit_mask(&allow_bitmask, tx_type_allowed[tx_idx]);
1631
0
  }
1632
1633
0
  memcpy(txk_map, tx_type_allowed, sizeof(tx_type_table_2D));
1634
0
  *allowed_tx_mask = allow_bitmask;
1635
0
}
1636
1637
0
static float get_dev(float mean, double x2_sum, int num) {
1638
0
  const float e_x2 = (float)(x2_sum / num);
1639
0
  const float diff = e_x2 - mean * mean;
1640
0
  const float dev = (diff > 0) ? sqrtf(diff) : 0;
1641
0
  return dev;
1642
0
}
1643
1644
// Writes the features required by the ML model to predict tx split based on
1645
// mean and standard deviation values of the block and sub-blocks.
1646
// Returns the number of elements written to the output array which is at most
1647
// 12 currently. Hence 'features' buffer should be able to accommodate at least
1648
// 12 elements.
1649
static inline int get_mean_dev_features(const int16_t *data, int stride, int bw,
1650
0
                                        int bh, float *features) {
1651
0
  const int16_t *const data_ptr = &data[0];
1652
0
  const int subh = (bh >= bw) ? (bh >> 1) : bh;
1653
0
  const int subw = (bw >= bh) ? (bw >> 1) : bw;
1654
0
  const int num = bw * bh;
1655
0
  const int sub_num = subw * subh;
1656
0
  int feature_idx = 2;
1657
0
  int total_x_sum = 0;
1658
0
  int64_t total_x2_sum = 0;
1659
0
  int num_sub_blks = 0;
1660
0
  double mean2_sum = 0.0f;
1661
0
  float dev_sum = 0.0f;
1662
1663
0
  for (int row = 0; row < bh; row += subh) {
1664
0
    for (int col = 0; col < bw; col += subw) {
1665
0
      int x_sum;
1666
0
      int64_t x2_sum;
1667
      // TODO(any): Write a SIMD version. Clear registers.
1668
0
      aom_get_blk_sse_sum(data_ptr + row * stride + col, stride, subw, subh,
1669
0
                          &x_sum, &x2_sum);
1670
0
      total_x_sum += x_sum;
1671
0
      total_x2_sum += x2_sum;
1672
1673
0
      const float mean = (float)x_sum / sub_num;
1674
0
      const float dev = get_dev(mean, (double)x2_sum, sub_num);
1675
0
      features[feature_idx++] = mean;
1676
0
      features[feature_idx++] = dev;
1677
0
      mean2_sum += (double)(mean * mean);
1678
0
      dev_sum += dev;
1679
0
      num_sub_blks++;
1680
0
    }
1681
0
  }
1682
1683
0
  const float lvl0_mean = (float)total_x_sum / num;
1684
0
  features[0] = lvl0_mean;
1685
0
  features[1] = get_dev(lvl0_mean, (double)total_x2_sum, num);
1686
1687
  // Deviation of means.
1688
0
  features[feature_idx++] = get_dev(lvl0_mean, mean2_sum, num_sub_blks);
1689
  // Mean of deviations.
1690
0
  features[feature_idx++] = dev_sum / num_sub_blks;
1691
1692
0
  return feature_idx;
1693
0
}
1694
1695
static int ml_predict_tx_split(MACROBLOCK *x, BLOCK_SIZE bsize, int blk_row,
1696
0
                               int blk_col, TX_SIZE tx_size) {
1697
0
  const NN_CONFIG *nn_config = av1_tx_split_nnconfig_map[tx_size];
1698
0
  if (!nn_config) return -1;
1699
1700
0
  const int diff_stride = block_size_wide[bsize];
1701
0
  const int16_t *diff =
1702
0
      x->plane[0].src_diff + 4 * blk_row * diff_stride + 4 * blk_col;
1703
0
  const int bw = tx_size_wide[tx_size];
1704
0
  const int bh = tx_size_high[tx_size];
1705
1706
0
  float features[64] = { 0.0f };
1707
0
  get_mean_dev_features(diff, diff_stride, bw, bh, features);
1708
1709
0
  float score = 0.0f;
1710
0
  av1_nn_predict(features, nn_config, 1, &score);
1711
1712
0
  int int_score = (int)(score * 10000);
1713
0
  return clamp(int_score, -80000, 80000);
1714
0
}
1715
1716
static inline uint16_t get_tx_mask(
1717
    const AV1_COMP *cpi, MACROBLOCK *x, int plane, int block, int blk_row,
1718
    int blk_col, BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
1719
    const TXB_CTX *const txb_ctx, FAST_TX_SEARCH_MODE ftxs_mode,
1720
0
    int64_t ref_best_rd, TX_TYPE *allowed_txk_types, int *txk_map) {
1721
0
  const AV1_COMMON *cm = &cpi->common;
1722
0
  MACROBLOCKD *xd = &x->e_mbd;
1723
0
  MB_MODE_INFO *mbmi = xd->mi[0];
1724
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
1725
0
  const int is_inter = is_inter_block(mbmi);
1726
0
  const int fast_tx_search = ftxs_mode & FTXS_DCT_AND_1D_DCT_ONLY;
1727
  // if txk_allowed = TX_TYPES, >1 tx types are allowed, else, if txk_allowed <
1728
  // TX_TYPES, only that specific tx type is allowed.
1729
0
  TX_TYPE txk_allowed = TX_TYPES;
1730
1731
0
  const FRAME_UPDATE_TYPE update_type =
1732
0
      get_frame_update_type(&cpi->ppi->gf_group, cpi->gf_frame_index);
1733
0
  int use_actual_frame_probs = 1;
1734
0
  const int *tx_type_probs;
1735
#if CONFIG_FPMT_TEST
1736
  use_actual_frame_probs =
1737
      (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) ? 0 : 1;
1738
  if (!use_actual_frame_probs) {
1739
    tx_type_probs =
1740
        (int *)cpi->ppi->temp_frame_probs.tx_type_probs[update_type][tx_size];
1741
  }
1742
#endif
1743
0
  if (use_actual_frame_probs) {
1744
0
    tx_type_probs = cpi->ppi->frame_probs.tx_type_probs[update_type][tx_size];
1745
0
  }
1746
1747
0
  if ((!is_inter && txfm_params->use_default_intra_tx_type) ||
1748
0
      (is_inter && txfm_params->default_inter_tx_type_prob_thresh == 0)) {
1749
0
    txk_allowed =
1750
0
        get_default_tx_type(0, xd, tx_size, cpi->use_screen_content_tools);
1751
0
  } else if (is_inter &&
1752
0
             txfm_params->default_inter_tx_type_prob_thresh != INT_MAX) {
1753
0
    if (tx_type_probs[DEFAULT_INTER_TX_TYPE] >
1754
0
        txfm_params->default_inter_tx_type_prob_thresh) {
1755
0
      txk_allowed = DEFAULT_INTER_TX_TYPE;
1756
0
    } else {
1757
0
      int force_tx_type = 0;
1758
0
      int max_prob = 0;
1759
0
      const int tx_type_prob_threshold =
1760
0
          txfm_params->default_inter_tx_type_prob_thresh +
1761
0
          PROB_THRESH_OFFSET_TX_TYPE;
1762
0
      for (int i = 1; i < TX_TYPES; i++) {  // find maximum probability.
1763
0
        if (tx_type_probs[i] > max_prob) {
1764
0
          max_prob = tx_type_probs[i];
1765
0
          force_tx_type = i;
1766
0
        }
1767
0
      }
1768
0
      if (max_prob > tx_type_prob_threshold)  // force tx type with max prob.
1769
0
        txk_allowed = force_tx_type;
1770
0
      else if (x->rd_model == LOW_TXFM_RD) {
1771
0
        if (plane == 0) txk_allowed = DCT_DCT;
1772
0
      }
1773
0
    }
1774
0
  } else if (x->rd_model == LOW_TXFM_RD) {
1775
0
    if (plane == 0) txk_allowed = DCT_DCT;
1776
0
  }
1777
1778
0
  const TxSetType tx_set_type = av1_get_ext_tx_set_type(
1779
0
      tx_size, is_inter, cm->features.reduced_tx_set_used);
1780
1781
0
  TX_TYPE uv_tx_type = DCT_DCT;
1782
0
  if (plane) {
1783
    // tx_type of PLANE_TYPE_UV should be the same as PLANE_TYPE_Y
1784
0
    uv_tx_type = txk_allowed =
1785
0
        av1_get_tx_type(xd, get_plane_type(plane), blk_row, blk_col, tx_size,
1786
0
                        cm->features.reduced_tx_set_used);
1787
0
  }
1788
0
  PREDICTION_MODE intra_dir =
1789
0
      mbmi->filter_intra_mode_info.use_filter_intra
1790
0
          ? fimode_to_intradir[mbmi->filter_intra_mode_info.filter_intra_mode]
1791
0
          : mbmi->mode;
1792
0
  uint16_t ext_tx_used_flag =
1793
0
      cpi->sf.tx_sf.tx_type_search.use_reduced_intra_txset != 0 &&
1794
0
              tx_set_type == EXT_TX_SET_DTT4_IDTX_1DDCT
1795
0
          ? av1_reduced_intra_tx_used_flag[intra_dir]
1796
0
          : av1_ext_tx_used_flag[tx_set_type];
1797
1798
0
  if (cpi->sf.tx_sf.tx_type_search.use_reduced_intra_txset == 2)
1799
0
    ext_tx_used_flag &= av1_derived_intra_tx_used_flag[intra_dir];
1800
1801
0
  if (xd->lossless[mbmi->segment_id] || txsize_sqr_up_map[tx_size] > TX_32X32 ||
1802
0
      ext_tx_used_flag == 0x0001 ||
1803
0
      (is_inter && cpi->oxcf.txfm_cfg.use_inter_dct_only) ||
1804
0
      (!is_inter && cpi->oxcf.txfm_cfg.use_intra_dct_only)) {
1805
0
    txk_allowed = DCT_DCT;
1806
0
  }
1807
1808
0
  if (cpi->oxcf.txfm_cfg.enable_flip_idtx == 0)
1809
0
    ext_tx_used_flag &= DCT_ADST_TX_MASK;
1810
1811
0
  uint16_t allowed_tx_mask = 0;  // 1: allow; 0: skip.
1812
0
  if (txk_allowed < TX_TYPES) {
1813
0
    allowed_tx_mask = 1 << txk_allowed;
1814
0
    allowed_tx_mask &= ext_tx_used_flag;
1815
0
  } else if (fast_tx_search) {
1816
0
    allowed_tx_mask = 0x0c01;  // V_DCT, H_DCT, DCT_DCT
1817
0
    allowed_tx_mask &= ext_tx_used_flag;
1818
0
  } else if (!is_inter && txfm_params->use_derived_intra_tx_type_set) {
1819
0
    allowed_tx_mask = av1_derived_intra_tx_used_flag[intra_dir];
1820
0
    allowed_tx_mask &= ext_tx_used_flag;
1821
0
  } else {
1822
0
    assert(plane == 0);
1823
0
    allowed_tx_mask = ext_tx_used_flag;
1824
0
    int num_allowed = 0;
1825
0
    int i;
1826
1827
0
    if (cpi->sf.tx_sf.tx_type_search.prune_tx_type_using_stats) {
1828
0
      static const int thresh_arr[2][7] = { { 10, 15, 15, 10, 15, 15, 15 },
1829
0
                                            { 10, 17, 17, 10, 17, 17, 17 } };
1830
0
      const int thresh =
1831
0
          thresh_arr[cpi->sf.tx_sf.tx_type_search.prune_tx_type_using_stats - 1]
1832
0
                    [update_type];
1833
0
      uint16_t prune = 0;
1834
0
      int max_prob = -1;
1835
0
      int max_idx = 0;
1836
0
      for (i = 0; i < TX_TYPES; i++) {
1837
0
        if (tx_type_probs[i] > max_prob && (allowed_tx_mask & (1 << i))) {
1838
0
          max_prob = tx_type_probs[i];
1839
0
          max_idx = i;
1840
0
        }
1841
0
        if (tx_type_probs[i] < thresh) prune |= (1 << i);
1842
0
      }
1843
0
      if ((prune >> max_idx) & 0x01) prune &= ~(1 << max_idx);
1844
0
      allowed_tx_mask &= (~prune);
1845
0
    }
1846
0
    for (i = 0; i < TX_TYPES; i++) {
1847
0
      if (allowed_tx_mask & (1 << i)) num_allowed++;
1848
0
    }
1849
0
    assert(num_allowed > 0);
1850
1851
0
    if (num_allowed > 2 && cpi->sf.tx_sf.tx_type_search.prune_tx_type_est_rd) {
1852
0
      int pf = prune_factors[txfm_params->prune_2d_txfm_mode];
1853
0
      int mf = mul_factors[txfm_params->prune_2d_txfm_mode];
1854
0
      if (num_allowed <= 7) {
1855
0
        const uint16_t prune =
1856
0
            prune_txk_type(cpi, x, plane, block, tx_size, blk_row, blk_col,
1857
0
                           plane_bsize, txk_map, allowed_tx_mask, pf, txb_ctx,
1858
0
                           cm->features.reduced_tx_set_used);
1859
0
        allowed_tx_mask &= (~prune);
1860
0
      } else {
1861
0
        const int num_sel = (num_allowed * mf + 50) / 100;
1862
0
        const uint16_t prune = prune_txk_type_separ(
1863
0
            cpi, x, plane, block, tx_size, blk_row, blk_col, plane_bsize,
1864
0
            txk_map, allowed_tx_mask, pf, txb_ctx,
1865
0
            cm->features.reduced_tx_set_used, ref_best_rd, num_sel);
1866
1867
0
        allowed_tx_mask &= (~prune);
1868
0
      }
1869
0
    } else {
1870
0
      assert(num_allowed > 0);
1871
0
      int allowed_tx_count =
1872
0
          (txfm_params->prune_2d_txfm_mode >= TX_TYPE_PRUNE_4) ? 1 : 5;
1873
      // !fast_tx_search && txk_end != txk_start && plane == 0
1874
0
      if (txfm_params->prune_2d_txfm_mode >= TX_TYPE_PRUNE_1 && is_inter &&
1875
0
          num_allowed > allowed_tx_count) {
1876
0
        prune_tx_2D(x, plane_bsize, tx_size, blk_row, blk_col, tx_set_type,
1877
0
                    txfm_params->prune_2d_txfm_mode, txk_map, &allowed_tx_mask);
1878
0
      }
1879
0
    }
1880
0
  }
1881
1882
  // Need to have at least one transform type allowed.
1883
0
  if (allowed_tx_mask == 0) {
1884
0
    txk_allowed = (plane ? uv_tx_type : DCT_DCT);
1885
0
    allowed_tx_mask = (1 << txk_allowed);
1886
0
  }
1887
1888
0
  assert(IMPLIES(txk_allowed < TX_TYPES, allowed_tx_mask == 1 << txk_allowed));
1889
0
  *allowed_txk_types = txk_allowed;
1890
0
  return allowed_tx_mask;
1891
0
}
1892
1893
#if CONFIG_RD_DEBUG
1894
static inline void update_txb_coeff_cost(RD_STATS *rd_stats, int plane,
1895
                                         int txb_coeff_cost) {
1896
  rd_stats->txb_coeff_cost[plane] += txb_coeff_cost;
1897
}
1898
#endif
1899
1900
static inline int cost_coeffs(MACROBLOCK *x, int plane, int block,
1901
                              TX_SIZE tx_size, const TX_TYPE tx_type,
1902
                              const TXB_CTX *const txb_ctx,
1903
0
                              int reduced_tx_set_used) {
1904
#if TXCOEFF_COST_TIMER
1905
  struct aom_usec_timer timer;
1906
  aom_usec_timer_start(&timer);
1907
#endif
1908
0
  const int cost = av1_cost_coeffs_txb(x, plane, block, tx_size, tx_type,
1909
0
                                       txb_ctx, reduced_tx_set_used);
1910
#if TXCOEFF_COST_TIMER
1911
  AV1_COMMON *tmp_cm = (AV1_COMMON *)&cpi->common;
1912
  aom_usec_timer_mark(&timer);
1913
  const int64_t elapsed_time = aom_usec_timer_elapsed(&timer);
1914
  tmp_cm->txcoeff_cost_timer += elapsed_time;
1915
  ++tmp_cm->txcoeff_cost_count;
1916
#endif
1917
0
  return cost;
1918
0
}
1919
1920
static int skip_trellis_opt_based_on_satd(MACROBLOCK *x,
1921
                                          QUANT_PARAM *quant_param, int plane,
1922
                                          int block, TX_SIZE tx_size,
1923
                                          int quant_b_adapt, int qstep,
1924
                                          unsigned int coeff_opt_satd_threshold,
1925
0
                                          int skip_trellis, int dc_only_blk) {
1926
0
  if (skip_trellis || (coeff_opt_satd_threshold == UINT_MAX))
1927
0
    return skip_trellis;
1928
1929
0
  const struct macroblock_plane *const p = &x->plane[plane];
1930
0
  const int block_offset = BLOCK_OFFSET(block);
1931
0
  tran_low_t *const coeff_ptr = p->coeff + block_offset;
1932
0
  const int n_coeffs = av1_get_max_eob(tx_size);
1933
0
  const int shift = (MAX_TX_SCALE - av1_get_tx_scale(tx_size));
1934
0
  int satd = (dc_only_blk) ? abs(coeff_ptr[0]) : aom_satd(coeff_ptr, n_coeffs);
1935
0
  satd = RIGHT_SIGNED_SHIFT(satd, shift);
1936
0
  satd >>= (x->e_mbd.bd - 8);
1937
1938
0
  const int skip_block_trellis =
1939
0
      ((uint64_t)satd >
1940
0
       (uint64_t)coeff_opt_satd_threshold * qstep * sqrt_tx_pixels_2d[tx_size]);
1941
1942
0
  av1_setup_quant(
1943
0
      tx_size, !skip_block_trellis,
1944
0
      skip_block_trellis
1945
0
          ? (USE_B_QUANT_NO_TRELLIS ? AV1_XFORM_QUANT_B : AV1_XFORM_QUANT_FP)
1946
0
          : AV1_XFORM_QUANT_FP,
1947
0
      quant_b_adapt, quant_param);
1948
1949
0
  return skip_block_trellis;
1950
0
}
1951
1952
// Predict DC only blocks if the residual variance is below a qstep based
1953
// threshold.For such blocks, transform type search is bypassed.
1954
static inline void predict_dc_only_block(
1955
    MACROBLOCK *x, int plane, BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
1956
    int block, int blk_row, int blk_col, RD_STATS *best_rd_stats,
1957
    int64_t *block_sse, unsigned int *block_mse_q8, int64_t *per_px_mean,
1958
0
    int *dc_only_blk) {
1959
0
  MACROBLOCKD *xd = &x->e_mbd;
1960
0
  MB_MODE_INFO *mbmi = xd->mi[0];
1961
0
  const int dequant_shift = (is_cur_buf_hbd(xd)) ? xd->bd - 5 : 3;
1962
0
  const int qstep = x->plane[plane].dequant_QTX[1] >> dequant_shift;
1963
0
  uint64_t block_var = UINT64_MAX;
1964
0
  const int dc_qstep = x->plane[plane].dequant_QTX[0] >> 3;
1965
0
  *block_sse = pixel_diff_stats(x, plane, blk_row, blk_col, plane_bsize,
1966
0
                                txsize_to_bsize[tx_size], block_mse_q8,
1967
0
                                per_px_mean, &block_var);
1968
0
  assert((*block_mse_q8) != UINT_MAX);
1969
0
  uint64_t var_threshold = (uint64_t)(1.8 * qstep * qstep);
1970
0
  if (is_cur_buf_hbd(xd))
1971
0
    block_var = ROUND_POWER_OF_TWO(block_var, (xd->bd - 8) * 2);
1972
1973
0
  if (block_var >= var_threshold) return;
1974
0
  const unsigned int predict_dc_level = x->txfm_search_params.predict_dc_level;
1975
0
  assert(predict_dc_level != 0);
1976
1977
  // Prediction of skip block if residual mean and variance are less
1978
  // than qstep based threshold
1979
0
  if ((llabs(*per_px_mean) * dc_coeff_scale[tx_size]) < (dc_qstep << 12)) {
1980
    // If the normalized mean of residual block is less than the dc qstep and
1981
    // the  normalized block variance is less than ac qstep, then the block is
1982
    // assumed to be a skip block and its rdcost is updated accordingly.
1983
0
    best_rd_stats->skip_txfm = 1;
1984
1985
0
    x->plane[plane].eobs[block] = 0;
1986
1987
0
    if (is_cur_buf_hbd(xd))
1988
0
      *block_sse = ROUND_POWER_OF_TWO((*block_sse), (xd->bd - 8) * 2);
1989
1990
0
    best_rd_stats->dist = (*block_sse) << 4;
1991
0
    best_rd_stats->sse = best_rd_stats->dist;
1992
1993
0
    ENTROPY_CONTEXT ctxa[MAX_MIB_SIZE];
1994
0
    ENTROPY_CONTEXT ctxl[MAX_MIB_SIZE];
1995
0
    av1_get_entropy_contexts(plane_bsize, &xd->plane[plane], ctxa, ctxl);
1996
0
    ENTROPY_CONTEXT *ta = ctxa;
1997
0
    ENTROPY_CONTEXT *tl = ctxl;
1998
0
    const TX_SIZE txs_ctx = get_txsize_entropy_ctx(tx_size);
1999
0
    TXB_CTX txb_ctx_tmp;
2000
0
    const PLANE_TYPE plane_type = get_plane_type(plane);
2001
0
    get_txb_ctx(plane_bsize, tx_size, plane, ta, tl, &txb_ctx_tmp);
2002
0
    const int zero_blk_rate = x->coeff_costs.coeff_costs[txs_ctx][plane_type]
2003
0
                                  .txb_skip_cost[txb_ctx_tmp.txb_skip_ctx][1];
2004
0
    best_rd_stats->rate = zero_blk_rate;
2005
2006
0
    best_rd_stats->rdcost =
2007
0
        RDCOST(x->rdmult, best_rd_stats->rate, best_rd_stats->sse);
2008
2009
0
    x->plane[plane].txb_entropy_ctx[block] = 0;
2010
0
  } else if (predict_dc_level > 1) {
2011
    // Predict DC only blocks based on residual variance.
2012
    // For chroma plane, this prediction is disabled for intra blocks.
2013
0
    if ((plane == 0) || (plane > 0 && is_inter_block(mbmi))) *dc_only_blk = 1;
2014
0
  }
2015
0
}
2016
2017
// Search for the best transform type for a given transform block.
2018
// This function can be used for both inter and intra, both luma and chroma.
2019
static void search_tx_type(const AV1_COMP *cpi, MACROBLOCK *x, int plane,
2020
                           int block, int blk_row, int blk_col,
2021
                           BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
2022
                           const TXB_CTX *const txb_ctx,
2023
                           FAST_TX_SEARCH_MODE ftxs_mode, int64_t ref_best_rd,
2024
0
                           RD_STATS *best_rd_stats) {
2025
0
  const AV1_COMMON *cm = &cpi->common;
2026
0
  MACROBLOCKD *xd = &x->e_mbd;
2027
0
  MB_MODE_INFO *mbmi = xd->mi[0];
2028
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
2029
0
  int64_t best_rd = INT64_MAX;
2030
0
  uint16_t best_eob = 0;
2031
0
  TX_TYPE best_tx_type = DCT_DCT;
2032
0
  int rate_cost = 0;
2033
0
  struct macroblock_plane *const p = &x->plane[plane];
2034
0
  tran_low_t *orig_dqcoeff = p->dqcoeff;
2035
0
  tran_low_t *best_dqcoeff = x->dqcoeff_buf;
2036
0
  const int tx_type_map_idx =
2037
0
      plane ? 0 : blk_row * xd->tx_type_map_stride + blk_col;
2038
0
  av1_invalid_rd_stats(best_rd_stats);
2039
2040
0
  int skip_trellis = !is_trellis_used(
2041
0
      cpi->optimize_seg_arr[xd->mi[0]->segment_id], DRY_RUN_NORMAL);
2042
2043
0
  uint8_t best_txb_ctx = 0;
2044
  // txk_allowed = TX_TYPES: >1 tx types are allowed
2045
  // txk_allowed < TX_TYPES: only that specific tx type is allowed.
2046
0
  TX_TYPE txk_allowed = TX_TYPES;
2047
0
  int txk_map[TX_TYPES] = {
2048
0
    0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15
2049
0
  };
2050
0
  const int dequant_shift = (is_cur_buf_hbd(xd)) ? xd->bd - 5 : 3;
2051
0
  const int qstep = x->plane[plane].dequant_QTX[1] >> dequant_shift;
2052
2053
0
  const uint8_t txw = tx_size_wide[tx_size];
2054
0
  const uint8_t txh = tx_size_high[tx_size];
2055
0
  int64_t block_sse;
2056
0
  unsigned int block_mse_q8;
2057
0
  int dc_only_blk = 0;
2058
0
  const bool predict_dc_block =
2059
0
      txfm_params->predict_dc_level >= 1 && txw != 64 && txh != 64;
2060
0
  int64_t per_px_mean = INT64_MAX;
2061
0
  if (predict_dc_block) {
2062
0
    predict_dc_only_block(x, plane, plane_bsize, tx_size, block, blk_row,
2063
0
                          blk_col, best_rd_stats, &block_sse, &block_mse_q8,
2064
0
                          &per_px_mean, &dc_only_blk);
2065
0
    if (best_rd_stats->skip_txfm == 1) {
2066
0
      const TX_TYPE tx_type = DCT_DCT;
2067
0
      if (plane == 0) xd->tx_type_map[tx_type_map_idx] = tx_type;
2068
0
      return;
2069
0
    }
2070
0
  } else {
2071
0
    block_sse = av1_pixel_diff_dist(x, plane, blk_row, blk_col, plane_bsize,
2072
0
                                    txsize_to_bsize[tx_size], &block_mse_q8);
2073
0
    assert(block_mse_q8 != UINT_MAX);
2074
0
  }
2075
2076
  // Bit mask to indicate which transform types are allowed in the RD search.
2077
0
  uint16_t tx_mask;
2078
2079
  // Use DCT_DCT transform for DC only block.
2080
0
  if (dc_only_blk || cpi->sf.rt_sf.dct_only_palette_nonrd == 1)
2081
0
    tx_mask = 1 << DCT_DCT;
2082
0
  else
2083
0
    tx_mask = get_tx_mask(cpi, x, plane, block, blk_row, blk_col, plane_bsize,
2084
0
                          tx_size, txb_ctx, ftxs_mode, ref_best_rd,
2085
0
                          &txk_allowed, txk_map);
2086
0
  const uint16_t allowed_tx_mask = tx_mask;
2087
2088
0
  if (is_cur_buf_hbd(xd)) {
2089
0
    block_sse = ROUND_POWER_OF_TWO(block_sse, (xd->bd - 8) * 2);
2090
0
    block_mse_q8 = ROUND_POWER_OF_TWO(block_mse_q8, (xd->bd - 8) * 2);
2091
0
  }
2092
0
  block_sse *= 16;
2093
  // Use mse / qstep^2 based threshold logic to take decision of R-D
2094
  // optimization of coeffs. For smaller residuals, coeff optimization
2095
  // would be helpful. For larger residuals, R-D optimization may not be
2096
  // effective.
2097
  // TODO(any): Experiment with variance and mean based thresholds
2098
0
  const int perform_block_coeff_opt =
2099
0
      ((uint64_t)block_mse_q8 <=
2100
0
       (uint64_t)txfm_params->coeff_opt_thresholds[0] * qstep * qstep);
2101
0
  skip_trellis |= !perform_block_coeff_opt;
2102
2103
  // Flag to indicate if distortion should be calculated in transform domain or
2104
  // not during iterating through transform type candidates.
2105
  // Transform domain distortion is accurate for higher residuals.
2106
  // TODO(any): Experiment with variance and mean based thresholds
2107
0
  int use_transform_domain_distortion =
2108
0
      (txfm_params->use_transform_domain_distortion > 0) &&
2109
0
      (block_mse_q8 >= txfm_params->tx_domain_dist_threshold) &&
2110
      // Any 64-pt transforms only preserves half the coefficients.
2111
      // Therefore transform domain distortion is not valid for these
2112
      // transform sizes.
2113
0
      (txsize_sqr_up_map[tx_size] != TX_64X64) &&
2114
      // Use pixel domain distortion for DC only blocks
2115
0
      !dc_only_blk;
2116
  // Flag to indicate if an extra calculation of distortion in the pixel domain
2117
  // should be performed at the end, after the best transform type has been
2118
  // decided.
2119
0
  int calc_pixel_domain_distortion_final =
2120
0
      txfm_params->use_transform_domain_distortion == 1 &&
2121
0
      use_transform_domain_distortion && x->rd_model != LOW_TXFM_RD;
2122
0
  if (calc_pixel_domain_distortion_final &&
2123
0
      (txk_allowed < TX_TYPES || allowed_tx_mask == 0x0001))
2124
0
    calc_pixel_domain_distortion_final = use_transform_domain_distortion = 0;
2125
2126
0
  const uint16_t *eobs_ptr = x->plane[plane].eobs;
2127
2128
0
  TxfmParam txfm_param;
2129
0
  QUANT_PARAM quant_param;
2130
0
  int skip_trellis_based_on_satd[TX_TYPES] = { 0 };
2131
0
  av1_setup_xform(cm, x, tx_size, DCT_DCT, &txfm_param);
2132
0
  av1_setup_quant(tx_size, !skip_trellis,
2133
0
                  skip_trellis ? (USE_B_QUANT_NO_TRELLIS ? AV1_XFORM_QUANT_B
2134
0
                                                         : AV1_XFORM_QUANT_FP)
2135
0
                               : AV1_XFORM_QUANT_FP,
2136
0
                  cpi->oxcf.q_cfg.quant_b_adapt, &quant_param);
2137
2138
  // Iterate through all transform type candidates.
2139
0
  for (int idx = 0; idx < TX_TYPES; ++idx) {
2140
0
    const TX_TYPE tx_type = (TX_TYPE)txk_map[idx];
2141
0
    if (tx_type == TX_TYPE_INVALID || !check_bit_mask(allowed_tx_mask, tx_type))
2142
0
      continue;
2143
0
    txfm_param.tx_type = tx_type;
2144
0
    if (av1_use_qmatrix(&cm->quant_params, xd, mbmi->segment_id)) {
2145
0
      av1_setup_qmatrix(&cm->quant_params, xd, plane, tx_size, tx_type,
2146
0
                        &quant_param);
2147
0
    }
2148
0
    if (plane == 0) xd->tx_type_map[tx_type_map_idx] = tx_type;
2149
0
    RD_STATS this_rd_stats;
2150
0
    av1_invalid_rd_stats(&this_rd_stats);
2151
2152
0
    if (!dc_only_blk)
2153
0
      av1_xform(x, plane, block, blk_row, blk_col, plane_bsize, &txfm_param);
2154
0
    else
2155
0
      av1_xform_dc_only(x, plane, block, &txfm_param, per_px_mean);
2156
2157
0
    skip_trellis_based_on_satd[tx_type] = skip_trellis_opt_based_on_satd(
2158
0
        x, &quant_param, plane, block, tx_size, cpi->oxcf.q_cfg.quant_b_adapt,
2159
0
        qstep, txfm_params->coeff_opt_thresholds[1], skip_trellis, dc_only_blk);
2160
2161
0
    av1_quant(x, plane, block, &txfm_param, &quant_param);
2162
2163
    // Calculate rate cost of quantized coefficients.
2164
0
    if (quant_param.use_optimize_b) {
2165
      // TODO(aomedia:3209): update Trellis quantization to take into account
2166
      // quantization matrices.
2167
0
      av1_optimize_b(cpi, x, plane, block, tx_size, tx_type, txb_ctx,
2168
0
                     &rate_cost);
2169
0
    } else {
2170
0
      rate_cost = cost_coeffs(x, plane, block, tx_size, tx_type, txb_ctx,
2171
0
                              cm->features.reduced_tx_set_used);
2172
0
    }
2173
2174
    // If rd cost based on coeff rate alone is already more than best_rd,
2175
    // terminate early.
2176
0
    if (RDCOST(x->rdmult, rate_cost, 0) > best_rd) continue;
2177
2178
    // Calculate distortion.
2179
0
    if (eobs_ptr[block] == 0) {
2180
      // When eob is 0, pixel domain distortion is more efficient and accurate.
2181
0
      this_rd_stats.dist = this_rd_stats.sse = block_sse;
2182
0
    } else if (dc_only_blk) {
2183
0
      this_rd_stats.sse = block_sse;
2184
0
      this_rd_stats.dist = dist_block_px_domain(
2185
0
          cpi, x, plane, plane_bsize, block, blk_row, blk_col, tx_size);
2186
0
    } else if (use_transform_domain_distortion) {
2187
0
      const SCAN_ORDER *const scan_order =
2188
0
          get_scan(txfm_param.tx_size, txfm_param.tx_type);
2189
0
      dist_block_tx_domain(x, plane, block, tx_size, quant_param.qmatrix,
2190
0
                           scan_order->scan, &this_rd_stats.dist,
2191
0
                           &this_rd_stats.sse);
2192
0
    } else {
2193
0
      int64_t sse_diff = INT64_MAX;
2194
      // high_energy threshold assumes that every pixel within a txfm block
2195
      // has a residue energy of at least 25% of the maximum, i.e. 128 * 128
2196
      // for 8 bit.
2197
0
      const int64_t high_energy_thresh =
2198
0
          ((int64_t)128 * 128 * tx_size_2d[tx_size]);
2199
0
      const int is_high_energy = (block_sse >= high_energy_thresh);
2200
0
      if (tx_size == TX_64X64 || is_high_energy) {
2201
        // Because 3 out 4 quadrants of transform coefficients are forced to
2202
        // zero, the inverse transform has a tendency to overflow. sse_diff
2203
        // is effectively the energy of those 3 quadrants, here we use it
2204
        // to decide if we should do pixel domain distortion. If the energy
2205
        // is mostly in first quadrant, then it is unlikely that we have
2206
        // overflow issue in inverse transform.
2207
0
        const SCAN_ORDER *const scan_order =
2208
0
            get_scan(txfm_param.tx_size, txfm_param.tx_type);
2209
0
        dist_block_tx_domain(x, plane, block, tx_size, quant_param.qmatrix,
2210
0
                             scan_order->scan, &this_rd_stats.dist,
2211
0
                             &this_rd_stats.sse);
2212
0
        sse_diff = block_sse - this_rd_stats.sse;
2213
0
      }
2214
0
      if (tx_size != TX_64X64 || !is_high_energy ||
2215
0
          (sse_diff * 2) < this_rd_stats.sse) {
2216
0
        const int64_t tx_domain_dist = this_rd_stats.dist;
2217
0
        this_rd_stats.dist = dist_block_px_domain(
2218
0
            cpi, x, plane, plane_bsize, block, blk_row, blk_col, tx_size);
2219
        // For high energy blocks, occasionally, the pixel domain distortion
2220
        // can be artificially low due to clamping at reconstruction stage
2221
        // even when inverse transform output is hugely different from the
2222
        // actual residue.
2223
0
        if (is_high_energy && this_rd_stats.dist < tx_domain_dist)
2224
0
          this_rd_stats.dist = tx_domain_dist;
2225
0
      } else {
2226
0
        assert(sse_diff < INT64_MAX);
2227
0
        this_rd_stats.dist += sse_diff;
2228
0
      }
2229
0
      this_rd_stats.sse = block_sse;
2230
0
    }
2231
2232
0
    this_rd_stats.rate = rate_cost;
2233
2234
0
    const int64_t rd =
2235
0
        RDCOST(x->rdmult, this_rd_stats.rate, this_rd_stats.dist);
2236
2237
0
    if (rd < best_rd) {
2238
0
      best_rd = rd;
2239
0
      *best_rd_stats = this_rd_stats;
2240
0
      best_tx_type = tx_type;
2241
0
      best_txb_ctx = x->plane[plane].txb_entropy_ctx[block];
2242
0
      best_eob = x->plane[plane].eobs[block];
2243
      // Swap dqcoeff buffers
2244
0
      tran_low_t *const tmp_dqcoeff = best_dqcoeff;
2245
0
      best_dqcoeff = p->dqcoeff;
2246
0
      p->dqcoeff = tmp_dqcoeff;
2247
0
    }
2248
2249
#if CONFIG_COLLECT_RD_STATS == 1
2250
    if (plane == 0) {
2251
      PrintTransformUnitStats(cpi, x, &this_rd_stats, blk_row, blk_col,
2252
                              plane_bsize, tx_size, tx_type, rd);
2253
    }
2254
#endif  // CONFIG_COLLECT_RD_STATS == 1
2255
2256
#if COLLECT_TX_SIZE_DATA
2257
    // Generate small sample to restrict output size.
2258
    static unsigned int seed = 21743;
2259
    if (lcg_rand16(&seed) % 200 == 0) {
2260
      FILE *fp = NULL;
2261
2262
      if (within_border) {
2263
        fp = fopen(av1_tx_size_data_output_file, "a");
2264
      }
2265
2266
      if (fp) {
2267
        // Transform info and RD
2268
        const int txb_w = tx_size_wide[tx_size];
2269
        const int txb_h = tx_size_high[tx_size];
2270
2271
        // Residue signal.
2272
        const int diff_stride = block_size_wide[plane_bsize];
2273
        struct macroblock_plane *const p = &x->plane[plane];
2274
        const int16_t *src_diff =
2275
            &p->src_diff[(blk_row * diff_stride + blk_col) * 4];
2276
2277
        for (int r = 0; r < txb_h; ++r) {
2278
          for (int c = 0; c < txb_w; ++c) {
2279
            fprintf(fp, "%d,", src_diff[c]);
2280
          }
2281
          src_diff += diff_stride;
2282
        }
2283
2284
        fprintf(fp, "%d,%d,%d,%" PRId64, txb_w, txb_h, tx_type, rd);
2285
        fprintf(fp, "\n");
2286
        fclose(fp);
2287
      }
2288
    }
2289
#endif  // COLLECT_TX_SIZE_DATA
2290
2291
    // If the current best RD cost is much worse than the reference RD cost,
2292
    // terminate early.
2293
0
    if (cpi->sf.tx_sf.adaptive_txb_search_level) {
2294
0
      if ((best_rd - (best_rd >> cpi->sf.tx_sf.adaptive_txb_search_level)) >
2295
0
          ref_best_rd) {
2296
0
        break;
2297
0
      }
2298
0
    }
2299
2300
    // Terminate transform type search if the block has been quantized to
2301
    // all zero.
2302
0
    if (cpi->sf.tx_sf.tx_type_search.skip_tx_search && !best_eob) break;
2303
0
  }
2304
2305
0
  assert(best_rd != INT64_MAX);
2306
2307
0
  best_rd_stats->skip_txfm = best_eob == 0;
2308
0
  if (plane == 0) update_txk_array(xd, blk_row, blk_col, tx_size, best_tx_type);
2309
0
  x->plane[plane].txb_entropy_ctx[block] = best_txb_ctx;
2310
0
  x->plane[plane].eobs[block] = best_eob;
2311
0
  skip_trellis = skip_trellis_based_on_satd[best_tx_type];
2312
2313
  // Point dqcoeff to the quantized coefficients corresponding to the best
2314
  // transform type, then we can skip transform and quantization, e.g. in the
2315
  // final pixel domain distortion calculation and recon_intra().
2316
0
  p->dqcoeff = best_dqcoeff;
2317
2318
0
  if (calc_pixel_domain_distortion_final && best_eob) {
2319
0
    best_rd_stats->dist = dist_block_px_domain(
2320
0
        cpi, x, plane, plane_bsize, block, blk_row, blk_col, tx_size);
2321
0
    best_rd_stats->sse = block_sse;
2322
0
  }
2323
2324
  // Intra mode needs decoded pixels such that the next transform block
2325
  // can use them for prediction.
2326
0
  recon_intra(cpi, x, plane, block, blk_row, blk_col, plane_bsize, tx_size,
2327
0
              txb_ctx, skip_trellis, best_tx_type, 0, &rate_cost, best_eob);
2328
0
  p->dqcoeff = orig_dqcoeff;
2329
0
}
2330
2331
// Pick transform type for a luma transform block of tx_size. Note this function
2332
// is used only for inter-predicted blocks.
2333
static inline void tx_type_rd(const AV1_COMP *cpi, MACROBLOCK *x,
2334
                              TX_SIZE tx_size, int blk_row, int blk_col,
2335
                              int block, int plane_bsize, TXB_CTX *txb_ctx,
2336
                              RD_STATS *rd_stats, FAST_TX_SEARCH_MODE ftxs_mode,
2337
0
                              int64_t ref_rdcost) {
2338
0
  assert(is_inter_block(x->e_mbd.mi[0]));
2339
0
  RD_STATS this_rd_stats;
2340
0
  search_tx_type(cpi, x, 0, block, blk_row, blk_col, plane_bsize, tx_size,
2341
0
                 txb_ctx, ftxs_mode, ref_rdcost, &this_rd_stats);
2342
2343
0
  av1_merge_rd_stats(rd_stats, &this_rd_stats);
2344
0
}
2345
2346
static inline void try_tx_block_no_split(
2347
    const AV1_COMP *cpi, MACROBLOCK *x, int blk_row, int blk_col, int block,
2348
    TX_SIZE tx_size, int depth, BLOCK_SIZE plane_bsize,
2349
    const ENTROPY_CONTEXT *ta, const ENTROPY_CONTEXT *tl,
2350
    int txfm_partition_ctx, RD_STATS *rd_stats, int64_t ref_best_rd,
2351
0
    FAST_TX_SEARCH_MODE ftxs_mode, TxCandidateInfo *no_split) {
2352
0
  MACROBLOCKD *const xd = &x->e_mbd;
2353
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
2354
0
  struct macroblock_plane *const p = &x->plane[0];
2355
0
  const ENTROPY_CONTEXT *const pta = ta + blk_col;
2356
0
  const ENTROPY_CONTEXT *const ptl = tl + blk_row;
2357
0
  const TX_SIZE txs_ctx = get_txsize_entropy_ctx(tx_size);
2358
0
  TXB_CTX txb_ctx;
2359
0
  get_txb_ctx(plane_bsize, tx_size, 0, pta, ptl, &txb_ctx);
2360
0
  const int zero_blk_rate = x->coeff_costs.coeff_costs[txs_ctx][PLANE_TYPE_Y]
2361
0
                                .txb_skip_cost[txb_ctx.txb_skip_ctx][1];
2362
0
  rd_stats->zero_rate = zero_blk_rate;
2363
0
  const int index = av1_get_txb_size_index(plane_bsize, blk_row, blk_col);
2364
0
  mbmi->inter_tx_size[index] = tx_size;
2365
0
  tx_type_rd(cpi, x, tx_size, blk_row, blk_col, block, plane_bsize, &txb_ctx,
2366
0
             rd_stats, ftxs_mode, ref_best_rd);
2367
0
  assert(rd_stats->rate < INT_MAX);
2368
2369
0
  const int pick_skip_txfm =
2370
0
      !xd->lossless[mbmi->segment_id] &&
2371
0
      (rd_stats->skip_txfm == 1 ||
2372
0
       RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist) >=
2373
0
           RDCOST(x->rdmult, zero_blk_rate, rd_stats->sse));
2374
0
  if (pick_skip_txfm) {
2375
#if CONFIG_RD_DEBUG
2376
    update_txb_coeff_cost(rd_stats, 0, zero_blk_rate - rd_stats->rate);
2377
#endif  // CONFIG_RD_DEBUG
2378
0
    rd_stats->rate = zero_blk_rate;
2379
0
    rd_stats->dist = rd_stats->sse;
2380
0
    p->eobs[block] = 0;
2381
0
    update_txk_array(xd, blk_row, blk_col, tx_size, DCT_DCT);
2382
0
  }
2383
0
  rd_stats->skip_txfm = pick_skip_txfm;
2384
2385
0
  if (tx_size > TX_4X4 && depth < MAX_VARTX_DEPTH)
2386
0
    rd_stats->rate += x->mode_costs.txfm_partition_cost[txfm_partition_ctx][0];
2387
2388
0
  no_split->rd = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
2389
0
  no_split->txb_entropy_ctx = p->txb_entropy_ctx[block];
2390
0
  no_split->tx_type =
2391
0
      xd->tx_type_map[blk_row * xd->tx_type_map_stride + blk_col];
2392
0
}
2393
2394
static inline void try_tx_block_split(
2395
    const AV1_COMP *cpi, MACROBLOCK *x, int blk_row, int blk_col, int block,
2396
    TX_SIZE tx_size, int depth, BLOCK_SIZE plane_bsize, ENTROPY_CONTEXT *ta,
2397
    ENTROPY_CONTEXT *tl, TXFM_CONTEXT *tx_above, TXFM_CONTEXT *tx_left,
2398
    int txfm_partition_ctx, int64_t no_split_rd, int64_t ref_best_rd,
2399
0
    FAST_TX_SEARCH_MODE ftxs_mode, RD_STATS *split_rd_stats) {
2400
0
  assert(tx_size < TX_SIZES_ALL);
2401
0
  MACROBLOCKD *const xd = &x->e_mbd;
2402
0
  const int max_blocks_high = max_block_high(xd, plane_bsize, 0);
2403
0
  const int max_blocks_wide = max_block_wide(xd, plane_bsize, 0);
2404
0
  const int txb_width = tx_size_wide_unit[tx_size];
2405
0
  const int txb_height = tx_size_high_unit[tx_size];
2406
  // Transform size after splitting current block.
2407
0
  const TX_SIZE sub_txs = sub_tx_size_map[tx_size];
2408
0
  const int sub_txb_width = tx_size_wide_unit[sub_txs];
2409
0
  const int sub_txb_height = tx_size_high_unit[sub_txs];
2410
0
  const int sub_step = sub_txb_width * sub_txb_height;
2411
0
  const int nblks = (txb_height / sub_txb_height) * (txb_width / sub_txb_width);
2412
0
  assert(nblks > 0);
2413
0
  av1_init_rd_stats(split_rd_stats);
2414
0
  split_rd_stats->rate =
2415
0
      x->mode_costs.txfm_partition_cost[txfm_partition_ctx][1];
2416
2417
0
  for (int r = 0, blk_idx = 0; r < txb_height; r += sub_txb_height) {
2418
0
    const int offsetr = blk_row + r;
2419
0
    if (offsetr >= max_blocks_high) break;
2420
0
    for (int c = 0; c < txb_width; c += sub_txb_width, ++blk_idx) {
2421
0
      assert(blk_idx < 4);
2422
0
      const int offsetc = blk_col + c;
2423
0
      if (offsetc >= max_blocks_wide) continue;
2424
2425
0
      RD_STATS this_rd_stats;
2426
0
      int this_cost_valid = 1;
2427
0
      select_tx_block(cpi, x, offsetr, offsetc, block, sub_txs, depth + 1,
2428
0
                      plane_bsize, ta, tl, tx_above, tx_left, &this_rd_stats,
2429
0
                      no_split_rd / nblks, ref_best_rd - split_rd_stats->rdcost,
2430
0
                      &this_cost_valid, ftxs_mode);
2431
0
      if (!this_cost_valid) {
2432
0
        split_rd_stats->rdcost = INT64_MAX;
2433
0
        return;
2434
0
      }
2435
0
      av1_merge_rd_stats(split_rd_stats, &this_rd_stats);
2436
0
      split_rd_stats->rdcost =
2437
0
          RDCOST(x->rdmult, split_rd_stats->rate, split_rd_stats->dist);
2438
0
      if (split_rd_stats->rdcost > ref_best_rd) {
2439
0
        split_rd_stats->rdcost = INT64_MAX;
2440
0
        return;
2441
0
      }
2442
0
      block += sub_step;
2443
0
    }
2444
0
  }
2445
0
}
2446
2447
0
static float get_var(float mean, double x2_sum, int num) {
2448
0
  const float e_x2 = (float)(x2_sum / num);
2449
0
  const float diff = e_x2 - mean * mean;
2450
0
  return diff;
2451
0
}
2452
2453
static inline void get_blk_var_dev(const int16_t *data, int stride, int bw,
2454
                                   int bh, float *dev_of_mean,
2455
0
                                   float *var_of_vars) {
2456
0
  const int16_t *const data_ptr = &data[0];
2457
0
  const int subh = (bh >= bw) ? (bh >> 1) : bh;
2458
0
  const int subw = (bw >= bh) ? (bw >> 1) : bw;
2459
0
  const int num = bw * bh;
2460
0
  const int sub_num = subw * subh;
2461
0
  int total_x_sum = 0;
2462
0
  int64_t total_x2_sum = 0;
2463
0
  int blk_idx = 0;
2464
0
  float var_sum = 0.0f;
2465
0
  float mean_sum = 0.0f;
2466
0
  double var2_sum = 0.0f;
2467
0
  double mean2_sum = 0.0f;
2468
2469
0
  for (int row = 0; row < bh; row += subh) {
2470
0
    for (int col = 0; col < bw; col += subw) {
2471
0
      int x_sum;
2472
0
      int64_t x2_sum;
2473
0
      aom_get_blk_sse_sum(data_ptr + row * stride + col, stride, subw, subh,
2474
0
                          &x_sum, &x2_sum);
2475
0
      total_x_sum += x_sum;
2476
0
      total_x2_sum += x2_sum;
2477
2478
0
      const float mean = (float)x_sum / sub_num;
2479
0
      const float var = get_var(mean, (double)x2_sum, sub_num);
2480
0
      mean_sum += mean;
2481
0
      mean2_sum += (double)(mean * mean);
2482
0
      var_sum += var;
2483
0
      var2_sum += var * var;
2484
0
      blk_idx++;
2485
0
    }
2486
0
  }
2487
2488
0
  const float lvl0_mean = (float)total_x_sum / num;
2489
0
  const float block_var = get_var(lvl0_mean, (double)total_x2_sum, num);
2490
0
  mean_sum += lvl0_mean;
2491
0
  mean2_sum += (double)(lvl0_mean * lvl0_mean);
2492
0
  var_sum += block_var;
2493
0
  var2_sum += block_var * block_var;
2494
0
  const float av_mean = mean_sum / 5;
2495
2496
0
  if (blk_idx > 1) {
2497
    // Deviation of means.
2498
0
    *dev_of_mean = get_dev(av_mean, mean2_sum, (blk_idx + 1));
2499
    // Variance of variances.
2500
0
    const float mean_var = var_sum / (blk_idx + 1);
2501
0
    *var_of_vars = get_var(mean_var, var2_sum, (blk_idx + 1));
2502
0
  }
2503
0
}
2504
2505
static void prune_tx_split_no_split(MACROBLOCK *x, BLOCK_SIZE bsize,
2506
                                    int blk_row, int blk_col, TX_SIZE tx_size,
2507
                                    int *try_no_split, int *try_split,
2508
0
                                    int pruning_level) {
2509
0
  const int diff_stride = block_size_wide[bsize];
2510
0
  const int16_t *diff =
2511
0
      x->plane[0].src_diff + 4 * blk_row * diff_stride + 4 * blk_col;
2512
0
  const int bw = tx_size_wide[tx_size];
2513
0
  const int bh = tx_size_high[tx_size];
2514
0
  float dev_of_means = 0.0f;
2515
0
  float var_of_vars = 0.0f;
2516
2517
  // This function calculates the deviation of means, and the variance of pixel
2518
  // variances of the block as well as it's sub-blocks.
2519
0
  get_blk_var_dev(diff, diff_stride, bw, bh, &dev_of_means, &var_of_vars);
2520
0
  const int dc_q = x->plane[0].dequant_QTX[0] >> 3;
2521
0
  const int ac_q = x->plane[0].dequant_QTX[1] >> 3;
2522
0
  const int no_split_thresh_scales[4] = { 0, 24, 8, 8 };
2523
0
  const int no_split_thresh_scale = no_split_thresh_scales[pruning_level];
2524
0
  const int split_thresh_scales[4] = { 0, 24, 10, 8 };
2525
0
  const int split_thresh_scale = split_thresh_scales[pruning_level];
2526
2527
0
  if ((dev_of_means <= dc_q) &&
2528
0
      (split_thresh_scale * var_of_vars <= ac_q * ac_q)) {
2529
0
    *try_split = 0;
2530
0
  }
2531
0
  if ((dev_of_means > no_split_thresh_scale * dc_q) &&
2532
0
      (var_of_vars > no_split_thresh_scale * ac_q * ac_q)) {
2533
0
    *try_no_split = 0;
2534
0
  }
2535
0
}
2536
2537
// Search for the best transform partition(recursive)/type for a given
2538
// inter-predicted luma block. The obtained transform selection will be saved
2539
// in xd->mi[0], the corresponding RD stats will be saved in rd_stats.
2540
static inline void select_tx_block(
2541
    const AV1_COMP *cpi, MACROBLOCK *x, int blk_row, int blk_col, int block,
2542
    TX_SIZE tx_size, int depth, BLOCK_SIZE plane_bsize, ENTROPY_CONTEXT *ta,
2543
    ENTROPY_CONTEXT *tl, TXFM_CONTEXT *tx_above, TXFM_CONTEXT *tx_left,
2544
    RD_STATS *rd_stats, int64_t prev_level_rd, int64_t ref_best_rd,
2545
0
    int *is_cost_valid, FAST_TX_SEARCH_MODE ftxs_mode) {
2546
0
  assert(tx_size < TX_SIZES_ALL);
2547
0
  av1_init_rd_stats(rd_stats);
2548
0
  if (ref_best_rd < 0) {
2549
0
    *is_cost_valid = 0;
2550
0
    return;
2551
0
  }
2552
2553
0
  MACROBLOCKD *const xd = &x->e_mbd;
2554
0
  assert(blk_row < max_block_high(xd, plane_bsize, 0) &&
2555
0
         blk_col < max_block_wide(xd, plane_bsize, 0));
2556
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
2557
0
  const int ctx = txfm_partition_context(tx_above + blk_col, tx_left + blk_row,
2558
0
                                         mbmi->bsize, tx_size);
2559
0
  struct macroblock_plane *const p = &x->plane[0];
2560
2561
0
  int try_no_split = (cpi->oxcf.txfm_cfg.enable_tx64 ||
2562
0
                      txsize_sqr_up_map[tx_size] != TX_64X64) &&
2563
0
                     (cpi->oxcf.txfm_cfg.enable_rect_tx ||
2564
0
                      tx_size_wide[tx_size] == tx_size_high[tx_size]);
2565
0
  int try_split = tx_size > TX_4X4 && depth < MAX_VARTX_DEPTH;
2566
0
  TxCandidateInfo no_split = { INT64_MAX, 0, TX_TYPES };
2567
2568
  // Prune tx_split and no-split based on sub-block properties.
2569
0
  if (tx_size != TX_4X4 && try_split == 1 && try_no_split == 1 &&
2570
0
      cpi->sf.tx_sf.prune_tx_size_level > 0) {
2571
0
    prune_tx_split_no_split(x, plane_bsize, blk_row, blk_col, tx_size,
2572
0
                            &try_no_split, &try_split,
2573
0
                            cpi->sf.tx_sf.prune_tx_size_level);
2574
0
  }
2575
2576
0
  if (cpi->sf.rt_sf.skip_tx_no_split_var_based_partition) {
2577
0
    if (x->try_merge_partition && try_split && p->eobs[block]) try_no_split = 0;
2578
0
  }
2579
2580
  // Try using current block as a single transform block without split.
2581
0
  if (try_no_split) {
2582
0
    try_tx_block_no_split(cpi, x, blk_row, blk_col, block, tx_size, depth,
2583
0
                          plane_bsize, ta, tl, ctx, rd_stats, ref_best_rd,
2584
0
                          ftxs_mode, &no_split);
2585
2586
    // Speed features for early termination.
2587
0
    const int search_level = cpi->sf.tx_sf.adaptive_txb_search_level;
2588
0
    if (search_level) {
2589
0
      if ((no_split.rd - (no_split.rd >> (1 + search_level))) > ref_best_rd) {
2590
0
        *is_cost_valid = 0;
2591
0
        return;
2592
0
      }
2593
0
      if (no_split.rd - (no_split.rd >> (2 + search_level)) > prev_level_rd) {
2594
0
        try_split = 0;
2595
0
      }
2596
0
    }
2597
0
    if (cpi->sf.tx_sf.txb_split_cap) {
2598
0
      if (p->eobs[block] == 0) try_split = 0;
2599
0
    }
2600
0
  }
2601
2602
  // ML based speed feature to skip searching for split transform blocks.
2603
0
  if (x->e_mbd.bd == 8 && try_split &&
2604
0
      !(ref_best_rd == INT64_MAX && no_split.rd == INT64_MAX)) {
2605
0
    const int threshold = cpi->sf.tx_sf.tx_type_search.ml_tx_split_thresh;
2606
0
    if (threshold >= 0) {
2607
0
      const int split_score =
2608
0
          ml_predict_tx_split(x, plane_bsize, blk_row, blk_col, tx_size);
2609
0
      if (split_score < -threshold) try_split = 0;
2610
0
    }
2611
0
  }
2612
2613
0
  RD_STATS split_rd_stats;
2614
0
  split_rd_stats.rdcost = INT64_MAX;
2615
  // Try splitting current block into smaller transform blocks.
2616
0
  if (try_split) {
2617
0
    try_tx_block_split(cpi, x, blk_row, blk_col, block, tx_size, depth,
2618
0
                       plane_bsize, ta, tl, tx_above, tx_left, ctx, no_split.rd,
2619
0
                       AOMMIN(no_split.rd, ref_best_rd), ftxs_mode,
2620
0
                       &split_rd_stats);
2621
0
  }
2622
2623
0
  if (no_split.rd < split_rd_stats.rdcost) {
2624
0
    ENTROPY_CONTEXT *pta = ta + blk_col;
2625
0
    ENTROPY_CONTEXT *ptl = tl + blk_row;
2626
0
    p->txb_entropy_ctx[block] = no_split.txb_entropy_ctx;
2627
0
    av1_set_txb_context(x, 0, block, tx_size, pta, ptl);
2628
0
    txfm_partition_update(tx_above + blk_col, tx_left + blk_row, tx_size,
2629
0
                          tx_size);
2630
0
    for (int idy = 0; idy < tx_size_high_unit[tx_size]; ++idy) {
2631
0
      for (int idx = 0; idx < tx_size_wide_unit[tx_size]; ++idx) {
2632
0
        const int index =
2633
0
            av1_get_txb_size_index(plane_bsize, blk_row + idy, blk_col + idx);
2634
0
        mbmi->inter_tx_size[index] = tx_size;
2635
0
      }
2636
0
    }
2637
0
    mbmi->tx_size = tx_size;
2638
0
    update_txk_array(xd, blk_row, blk_col, tx_size, no_split.tx_type);
2639
0
  } else {
2640
0
    *rd_stats = split_rd_stats;
2641
0
    if (split_rd_stats.rdcost == INT64_MAX) *is_cost_valid = 0;
2642
0
  }
2643
0
}
2644
2645
static inline void choose_largest_tx_size(const AV1_COMP *const cpi,
2646
                                          MACROBLOCK *x, RD_STATS *rd_stats,
2647
0
                                          int64_t ref_best_rd, BLOCK_SIZE bs) {
2648
0
  MACROBLOCKD *const xd = &x->e_mbd;
2649
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
2650
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
2651
0
  mbmi->tx_size = tx_size_from_tx_mode(bs, txfm_params->tx_mode_search_type);
2652
2653
  // If tx64 is not enabled, we need to go down to the next available size
2654
0
  if (!cpi->oxcf.txfm_cfg.enable_tx64 && cpi->oxcf.txfm_cfg.enable_rect_tx) {
2655
0
    static const TX_SIZE tx_size_max_32[TX_SIZES_ALL] = {
2656
0
      TX_4X4,    // 4x4 transform
2657
0
      TX_8X8,    // 8x8 transform
2658
0
      TX_16X16,  // 16x16 transform
2659
0
      TX_32X32,  // 32x32 transform
2660
0
      TX_32X32,  // 64x64 transform
2661
0
      TX_4X8,    // 4x8 transform
2662
0
      TX_8X4,    // 8x4 transform
2663
0
      TX_8X16,   // 8x16 transform
2664
0
      TX_16X8,   // 16x8 transform
2665
0
      TX_16X32,  // 16x32 transform
2666
0
      TX_32X16,  // 32x16 transform
2667
0
      TX_32X32,  // 32x64 transform
2668
0
      TX_32X32,  // 64x32 transform
2669
0
      TX_4X16,   // 4x16 transform
2670
0
      TX_16X4,   // 16x4 transform
2671
0
      TX_8X32,   // 8x32 transform
2672
0
      TX_32X8,   // 32x8 transform
2673
0
      TX_16X32,  // 16x64 transform
2674
0
      TX_32X16,  // 64x16 transform
2675
0
    };
2676
0
    mbmi->tx_size = tx_size_max_32[mbmi->tx_size];
2677
0
  } else if (cpi->oxcf.txfm_cfg.enable_tx64 &&
2678
0
             !cpi->oxcf.txfm_cfg.enable_rect_tx) {
2679
0
    static const TX_SIZE tx_size_max_square[TX_SIZES_ALL] = {
2680
0
      TX_4X4,    // 4x4 transform
2681
0
      TX_8X8,    // 8x8 transform
2682
0
      TX_16X16,  // 16x16 transform
2683
0
      TX_32X32,  // 32x32 transform
2684
0
      TX_64X64,  // 64x64 transform
2685
0
      TX_4X4,    // 4x8 transform
2686
0
      TX_4X4,    // 8x4 transform
2687
0
      TX_8X8,    // 8x16 transform
2688
0
      TX_8X8,    // 16x8 transform
2689
0
      TX_16X16,  // 16x32 transform
2690
0
      TX_16X16,  // 32x16 transform
2691
0
      TX_32X32,  // 32x64 transform
2692
0
      TX_32X32,  // 64x32 transform
2693
0
      TX_4X4,    // 4x16 transform
2694
0
      TX_4X4,    // 16x4 transform
2695
0
      TX_8X8,    // 8x32 transform
2696
0
      TX_8X8,    // 32x8 transform
2697
0
      TX_16X16,  // 16x64 transform
2698
0
      TX_16X16,  // 64x16 transform
2699
0
    };
2700
0
    mbmi->tx_size = tx_size_max_square[mbmi->tx_size];
2701
0
  } else if (!cpi->oxcf.txfm_cfg.enable_tx64 &&
2702
0
             !cpi->oxcf.txfm_cfg.enable_rect_tx) {
2703
0
    static const TX_SIZE tx_size_max_32_square[TX_SIZES_ALL] = {
2704
0
      TX_4X4,    // 4x4 transform
2705
0
      TX_8X8,    // 8x8 transform
2706
0
      TX_16X16,  // 16x16 transform
2707
0
      TX_32X32,  // 32x32 transform
2708
0
      TX_32X32,  // 64x64 transform
2709
0
      TX_4X4,    // 4x8 transform
2710
0
      TX_4X4,    // 8x4 transform
2711
0
      TX_8X8,    // 8x16 transform
2712
0
      TX_8X8,    // 16x8 transform
2713
0
      TX_16X16,  // 16x32 transform
2714
0
      TX_16X16,  // 32x16 transform
2715
0
      TX_32X32,  // 32x64 transform
2716
0
      TX_32X32,  // 64x32 transform
2717
0
      TX_4X4,    // 4x16 transform
2718
0
      TX_4X4,    // 16x4 transform
2719
0
      TX_8X8,    // 8x32 transform
2720
0
      TX_8X8,    // 32x8 transform
2721
0
      TX_16X16,  // 16x64 transform
2722
0
      TX_16X16,  // 64x16 transform
2723
0
    };
2724
2725
0
    mbmi->tx_size = tx_size_max_32_square[mbmi->tx_size];
2726
0
  }
2727
2728
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
2729
0
  const int no_skip_txfm_rate = x->mode_costs.skip_txfm_cost[skip_ctx][0];
2730
0
  const int skip_txfm_rate = x->mode_costs.skip_txfm_cost[skip_ctx][1];
2731
  // Skip RDcost is used only for Inter blocks
2732
0
  const int64_t skip_txfm_rd =
2733
0
      is_inter_block(mbmi) ? RDCOST(x->rdmult, skip_txfm_rate, 0) : INT64_MAX;
2734
0
  const int64_t no_skip_txfm_rd = RDCOST(x->rdmult, no_skip_txfm_rate, 0);
2735
0
  av1_txfm_rd_in_plane(x, cpi, rd_stats, ref_best_rd,
2736
0
                       AOMMIN(no_skip_txfm_rd, skip_txfm_rd), AOM_PLANE_Y, bs,
2737
0
                       mbmi->tx_size, FTXS_NONE);
2738
0
}
2739
2740
static inline void choose_smallest_tx_size(const AV1_COMP *const cpi,
2741
                                           MACROBLOCK *x, RD_STATS *rd_stats,
2742
0
                                           int64_t ref_best_rd, BLOCK_SIZE bs) {
2743
0
  MACROBLOCKD *const xd = &x->e_mbd;
2744
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
2745
2746
0
  mbmi->tx_size = TX_4X4;
2747
  // TODO(any) : Pass this_rd based on skip/non-skip cost
2748
0
  av1_txfm_rd_in_plane(x, cpi, rd_stats, ref_best_rd, 0, 0, bs, mbmi->tx_size,
2749
0
                       FTXS_NONE);
2750
0
}
2751
2752
#if !CONFIG_REALTIME_ONLY
2753
static void ml_predict_intra_tx_depth_prune(MACROBLOCK *x, int blk_row,
2754
                                            int blk_col, BLOCK_SIZE bsize,
2755
0
                                            TX_SIZE tx_size) {
2756
0
  const MACROBLOCKD *const xd = &x->e_mbd;
2757
0
  const MB_MODE_INFO *const mbmi = xd->mi[0];
2758
2759
  // Disable the pruning logic using NN model for the following cases:
2760
  // 1) Lossless coding as only 4x4 transform is evaluated in this case
2761
  // 2) When transform and current block sizes do not match as the features are
2762
  // obtained over the current block
2763
  // 3) When operating bit-depth is not 8-bit as the input features are not
2764
  // scaled according to bit-depth.
2765
0
  if (xd->lossless[mbmi->segment_id] || txsize_to_bsize[tx_size] != bsize ||
2766
0
      xd->bd != 8)
2767
0
    return;
2768
2769
  // Currently NN model based pruning is supported only when largest transform
2770
  // size is 8x8
2771
0
  if (tx_size != TX_8X8) return;
2772
2773
  // Neural network model is a sequential neural net and was trained using SGD
2774
  // optimizer. The model can be further improved in terms of speed/quality by
2775
  // considering the following experiments:
2776
  // 1) Generate ML model by training with balanced data for different learning
2777
  // rates and optimizers.
2778
  // 2) Experiment with ML model by adding features related to the statistics of
2779
  // top and left pixels to capture the accuracy of reconstructed neighbouring
2780
  // pixels for 4x4 blocks numbered 1, 2, 3 in 8x8 block, source variance of 4x4
2781
  // sub-blocks, etc.
2782
  // 3) Generate ML models for transform blocks other than 8x8.
2783
0
  const NN_CONFIG *const nn_config = &av1_intra_tx_split_nnconfig_8x8;
2784
0
  const float *const intra_tx_prune_thresh = av1_intra_tx_prune_nn_thresh_8x8;
2785
2786
0
  float features[NUM_INTRA_TX_SPLIT_FEATURES] = { 0.0f };
2787
0
  const int diff_stride = block_size_wide[bsize];
2788
2789
0
  const int16_t *diff = x->plane[0].src_diff + MI_SIZE * blk_row * diff_stride +
2790
0
                        MI_SIZE * blk_col;
2791
0
  const int bw = tx_size_wide[tx_size];
2792
0
  const int bh = tx_size_high[tx_size];
2793
2794
0
  int feature_idx = get_mean_dev_features(diff, diff_stride, bw, bh, features);
2795
2796
0
  features[feature_idx++] = log1pf((float)x->source_variance);
2797
2798
0
  const int dc_q = av1_dc_quant_QTX(x->qindex, 0, xd->bd) >> (xd->bd - 8);
2799
0
  const float log_dc_q_square = log1pf((float)(dc_q * dc_q) / 256.0f);
2800
0
  features[feature_idx++] = log_dc_q_square;
2801
0
  assert(feature_idx == NUM_INTRA_TX_SPLIT_FEATURES);
2802
0
  for (int i = 0; i < NUM_INTRA_TX_SPLIT_FEATURES; i++) {
2803
0
    features[i] = (features[i] - av1_intra_tx_split_8x8_mean[i]) /
2804
0
                  av1_intra_tx_split_8x8_std[i];
2805
0
  }
2806
2807
0
  float score;
2808
0
  av1_nn_predict(features, nn_config, 1, &score);
2809
2810
0
  TxfmSearchParams *const txfm_params = &x->txfm_search_params;
2811
0
  if (score <= intra_tx_prune_thresh[0])
2812
0
    txfm_params->nn_prune_depths_for_intra_tx = TX_PRUNE_SPLIT;
2813
0
  else if (score > intra_tx_prune_thresh[1])
2814
0
    txfm_params->nn_prune_depths_for_intra_tx = TX_PRUNE_LARGEST;
2815
0
}
2816
#endif  // !CONFIG_REALTIME_ONLY
2817
2818
/*!\brief Transform type search for luma macroblock with fixed transform size.
2819
 *
2820
 * \ingroup transform_search
2821
 * Search for the best transform type and return the transform coefficients RD
2822
 * cost of current luma macroblock with the given uniform transform size.
2823
 *
2824
 * \param[in]    x              Pointer to structure holding the data for the
2825
                                current encoding macroblock
2826
 * \param[in]    cpi            Top-level encoder structure
2827
 * \param[in]    rd_stats       Pointer to struct to keep track of the RD stats
2828
 * \param[in]    ref_best_rd    Best RD cost seen for this block so far
2829
 * \param[in]    bs             Size of the current macroblock
2830
 * \param[in]    tx_size        The given transform size
2831
 * \param[in]    ftxs_mode      Transform search mode specifying desired speed
2832
                                and quality tradeoff
2833
 * \return       An int64_t value that is the best RD cost found.
2834
 */
2835
static int64_t uniform_txfm_yrd(const AV1_COMP *const cpi, MACROBLOCK *x,
2836
                                RD_STATS *rd_stats, int64_t ref_best_rd,
2837
                                BLOCK_SIZE bs, TX_SIZE tx_size,
2838
0
                                FAST_TX_SEARCH_MODE ftxs_mode) {
2839
0
  assert(IMPLIES(is_rect_tx(tx_size), is_rect_tx_allowed_bsize(bs)));
2840
0
  MACROBLOCKD *const xd = &x->e_mbd;
2841
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
2842
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
2843
0
  const ModeCosts *mode_costs = &x->mode_costs;
2844
0
  const int is_inter = is_inter_block(mbmi);
2845
0
  const int tx_select = txfm_params->tx_mode_search_type == TX_MODE_SELECT &&
2846
0
                        block_signals_txsize(mbmi->bsize);
2847
0
  int tx_size_rate = 0;
2848
0
  if (tx_select) {
2849
0
    const int ctx = txfm_partition_context(
2850
0
        xd->above_txfm_context, xd->left_txfm_context, mbmi->bsize, tx_size);
2851
0
    tx_size_rate = is_inter ? mode_costs->txfm_partition_cost[ctx][0]
2852
0
                            : tx_size_cost(x, bs, tx_size);
2853
0
  }
2854
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
2855
0
  const int no_skip_txfm_rate = mode_costs->skip_txfm_cost[skip_ctx][0];
2856
0
  const int skip_txfm_rate = mode_costs->skip_txfm_cost[skip_ctx][1];
2857
0
  const int64_t skip_txfm_rd =
2858
0
      is_inter ? RDCOST(x->rdmult, skip_txfm_rate, 0) : INT64_MAX;
2859
0
  const int64_t no_this_rd =
2860
0
      RDCOST(x->rdmult, no_skip_txfm_rate + tx_size_rate, 0);
2861
2862
0
  mbmi->tx_size = tx_size;
2863
0
  av1_txfm_rd_in_plane(x, cpi, rd_stats, ref_best_rd,
2864
0
                       AOMMIN(no_this_rd, skip_txfm_rd), AOM_PLANE_Y, bs,
2865
0
                       tx_size, ftxs_mode);
2866
0
  if (rd_stats->rate == INT_MAX) return INT64_MAX;
2867
2868
0
  int64_t rd;
2869
  // rdstats->rate should include all the rate except skip/non-skip cost as the
2870
  // same is accounted in the caller functions after rd evaluation of all
2871
  // planes. However the decisions should be done after considering the
2872
  // skip/non-skip header cost
2873
0
  if (rd_stats->skip_txfm && is_inter) {
2874
0
    rd = RDCOST(x->rdmult, skip_txfm_rate, rd_stats->sse);
2875
0
  } else {
2876
    // Intra blocks are always signalled as non-skip
2877
0
    rd = RDCOST(x->rdmult, rd_stats->rate + no_skip_txfm_rate + tx_size_rate,
2878
0
                rd_stats->dist);
2879
0
    rd_stats->rate += tx_size_rate;
2880
0
  }
2881
  // Check if forcing the block to skip transform leads to smaller RD cost.
2882
0
  if (is_inter && !rd_stats->skip_txfm && !xd->lossless[mbmi->segment_id]) {
2883
0
    int64_t temp_skip_txfm_rd =
2884
0
        RDCOST(x->rdmult, skip_txfm_rate, rd_stats->sse);
2885
0
    if (temp_skip_txfm_rd <= rd) {
2886
0
      rd = temp_skip_txfm_rd;
2887
0
      rd_stats->rate = 0;
2888
0
      rd_stats->dist = rd_stats->sse;
2889
0
      rd_stats->skip_txfm = 1;
2890
0
    }
2891
0
  }
2892
2893
0
  return rd;
2894
0
}
2895
2896
// Search for the best uniform transform size and type for current coding block.
2897
static inline void choose_tx_size_type_from_rd(const AV1_COMP *const cpi,
2898
                                               MACROBLOCK *x,
2899
                                               RD_STATS *rd_stats,
2900
                                               int64_t ref_best_rd,
2901
0
                                               BLOCK_SIZE bs) {
2902
0
  av1_invalid_rd_stats(rd_stats);
2903
2904
0
  MACROBLOCKD *const xd = &x->e_mbd;
2905
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
2906
0
  TxfmSearchParams *const txfm_params = &x->txfm_search_params;
2907
0
  const TX_SIZE max_rect_tx_size = max_txsize_rect_lookup[bs];
2908
0
  const int tx_select = txfm_params->tx_mode_search_type == TX_MODE_SELECT;
2909
0
  int start_tx;
2910
  // The split depth can be at most MAX_TX_DEPTH, so the init_depth controls
2911
  // how many times of splitting is allowed during the RD search.
2912
0
  int init_depth;
2913
2914
0
  if (tx_select) {
2915
0
    start_tx = max_rect_tx_size;
2916
0
    init_depth = get_search_init_depth(mi_size_wide[bs], mi_size_high[bs],
2917
0
                                       is_inter_block(mbmi), &cpi->sf,
2918
0
                                       txfm_params->tx_size_search_method);
2919
0
    if (init_depth == MAX_TX_DEPTH && !cpi->oxcf.txfm_cfg.enable_tx64 &&
2920
0
        txsize_sqr_up_map[start_tx] == TX_64X64) {
2921
0
      start_tx = sub_tx_size_map[start_tx];
2922
0
    }
2923
0
  } else {
2924
0
    const TX_SIZE chosen_tx_size =
2925
0
        tx_size_from_tx_mode(bs, txfm_params->tx_mode_search_type);
2926
0
    start_tx = chosen_tx_size;
2927
0
    init_depth = MAX_TX_DEPTH;
2928
0
  }
2929
2930
0
  uint8_t best_txk_type_map[MAX_MIB_SIZE * MAX_MIB_SIZE];
2931
0
  TX_SIZE best_tx_size = max_rect_tx_size;
2932
0
  int64_t best_rd = INT64_MAX;
2933
0
  const int num_blks = bsize_to_num_blk(bs);
2934
0
  x->rd_model = FULL_TXFM_RD;
2935
0
  int64_t rd[MAX_TX_DEPTH + 1] = { INT64_MAX, INT64_MAX, INT64_MAX };
2936
0
  for (int tx_size = start_tx, depth = init_depth; depth <= MAX_TX_DEPTH;
2937
0
       depth++, tx_size = sub_tx_size_map[tx_size]) {
2938
0
    if ((!cpi->oxcf.txfm_cfg.enable_tx64 &&
2939
0
         txsize_sqr_up_map[tx_size] == TX_64X64) ||
2940
0
        (!cpi->oxcf.txfm_cfg.enable_rect_tx &&
2941
0
         tx_size_wide[tx_size] != tx_size_high[tx_size])) {
2942
0
      continue;
2943
0
    }
2944
2945
0
#if !CONFIG_REALTIME_ONLY
2946
0
    if (txfm_params->nn_prune_depths_for_intra_tx == TX_PRUNE_SPLIT) break;
2947
2948
    // Set the flag to enable the evaluation of NN classifier to prune transform
2949
    // depths. As the features are based on intra residual information of
2950
    // largest transform, the evaluation of NN model is enabled only for this
2951
    // case.
2952
0
    txfm_params->enable_nn_prune_intra_tx_depths =
2953
0
        (cpi->sf.tx_sf.prune_intra_tx_depths_using_nn && tx_size == start_tx);
2954
0
#endif
2955
2956
0
    RD_STATS this_rd_stats;
2957
    // When the speed feature use_rd_based_breakout_for_intra_tx_search is
2958
    // enabled, use the known minimum best_rd for early termination.
2959
0
    const int64_t rd_thresh =
2960
0
        cpi->sf.tx_sf.use_rd_based_breakout_for_intra_tx_search
2961
0
            ? AOMMIN(ref_best_rd, best_rd)
2962
0
            : ref_best_rd;
2963
0
    rd[depth] = uniform_txfm_yrd(cpi, x, &this_rd_stats, rd_thresh, bs, tx_size,
2964
0
                                 FTXS_NONE);
2965
0
    if (rd[depth] < best_rd) {
2966
0
      av1_copy_array(best_txk_type_map, xd->tx_type_map, num_blks);
2967
0
      best_tx_size = tx_size;
2968
0
      best_rd = rd[depth];
2969
0
      *rd_stats = this_rd_stats;
2970
0
    }
2971
0
    if (tx_size == TX_4X4) break;
2972
    // If we are searching three depths, prune the smallest size depending
2973
    // on rd results for the first two depths for low contrast blocks.
2974
0
    if (depth > init_depth && depth != MAX_TX_DEPTH &&
2975
0
        x->source_variance < 256) {
2976
0
      if (rd[depth - 1] != INT64_MAX && rd[depth] > rd[depth - 1]) break;
2977
0
    }
2978
0
  }
2979
2980
0
  if (rd_stats->rate != INT_MAX) {
2981
0
    mbmi->tx_size = best_tx_size;
2982
0
    av1_copy_array(xd->tx_type_map, best_txk_type_map, num_blks);
2983
0
  }
2984
2985
0
#if !CONFIG_REALTIME_ONLY
2986
  // Reset the flags to avoid any unintentional evaluation of NN model and
2987
  // consumption of prune depths.
2988
0
  txfm_params->enable_nn_prune_intra_tx_depths = false;
2989
0
  txfm_params->nn_prune_depths_for_intra_tx = TX_PRUNE_NONE;
2990
0
#endif
2991
0
}
2992
2993
// Search for the best transform type for the given transform block in the
2994
// given plane/channel, and calculate the corresponding RD cost.
2995
static inline void block_rd_txfm(int plane, int block, int blk_row, int blk_col,
2996
                                 BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
2997
0
                                 void *arg) {
2998
0
  struct rdcost_block_args *args = arg;
2999
0
  if (args->exit_early) {
3000
0
    args->incomplete_exit = 1;
3001
0
    return;
3002
0
  }
3003
3004
0
  MACROBLOCK *const x = args->x;
3005
0
  MACROBLOCKD *const xd = &x->e_mbd;
3006
0
  const int is_inter = is_inter_block(xd->mi[0]);
3007
0
  const AV1_COMP *cpi = args->cpi;
3008
0
  ENTROPY_CONTEXT *a = args->t_above + blk_col;
3009
0
  ENTROPY_CONTEXT *l = args->t_left + blk_row;
3010
0
  const AV1_COMMON *cm = &cpi->common;
3011
0
  RD_STATS this_rd_stats;
3012
0
  av1_init_rd_stats(&this_rd_stats);
3013
3014
0
  if (!is_inter) {
3015
0
    av1_predict_intra_block_facade(cm, xd, plane, blk_col, blk_row, tx_size);
3016
0
    av1_subtract_txb(x, plane, plane_bsize, blk_col, blk_row, tx_size);
3017
0
#if !CONFIG_REALTIME_ONLY
3018
0
    const TxfmSearchParams *const txfm_params = &x->txfm_search_params;
3019
0
    if (txfm_params->enable_nn_prune_intra_tx_depths) {
3020
0
      ml_predict_intra_tx_depth_prune(x, blk_row, blk_col, plane_bsize,
3021
0
                                      tx_size);
3022
0
      if (txfm_params->nn_prune_depths_for_intra_tx == TX_PRUNE_LARGEST) {
3023
0
        av1_invalid_rd_stats(&args->rd_stats);
3024
0
        args->exit_early = 1;
3025
0
        return;
3026
0
      }
3027
0
    }
3028
0
#endif
3029
0
  }
3030
3031
0
  TXB_CTX txb_ctx;
3032
0
  get_txb_ctx(plane_bsize, tx_size, plane, a, l, &txb_ctx);
3033
0
  search_tx_type(cpi, x, plane, block, blk_row, blk_col, plane_bsize, tx_size,
3034
0
                 &txb_ctx, args->ftxs_mode, args->best_rd - args->current_rd,
3035
0
                 &this_rd_stats);
3036
3037
0
#if !CONFIG_REALTIME_ONLY
3038
0
  if (plane == AOM_PLANE_Y && xd->cfl.store_y) {
3039
0
    assert(!is_inter || plane_bsize < BLOCK_8X8);
3040
0
    cfl_store_tx(xd, blk_row, blk_col, tx_size, plane_bsize);
3041
0
  }
3042
0
#endif
3043
3044
#if CONFIG_RD_DEBUG
3045
  update_txb_coeff_cost(&this_rd_stats, plane, this_rd_stats.rate);
3046
#endif  // CONFIG_RD_DEBUG
3047
0
  av1_set_txb_context(x, plane, block, tx_size, a, l);
3048
3049
0
  int64_t rd;
3050
0
  if (is_inter) {
3051
0
    const int64_t no_skip_txfm_rd =
3052
0
        RDCOST(x->rdmult, this_rd_stats.rate, this_rd_stats.dist);
3053
0
    const int64_t skip_txfm_rd = RDCOST(x->rdmult, 0, this_rd_stats.sse);
3054
0
    rd = AOMMIN(no_skip_txfm_rd, skip_txfm_rd);
3055
0
    this_rd_stats.skip_txfm &= !x->plane[plane].eobs[block];
3056
0
  } else {
3057
    // Signal non-skip_txfm for Intra blocks
3058
0
    rd = RDCOST(x->rdmult, this_rd_stats.rate, this_rd_stats.dist);
3059
0
    this_rd_stats.skip_txfm = 0;
3060
0
  }
3061
3062
0
  av1_merge_rd_stats(&args->rd_stats, &this_rd_stats);
3063
3064
0
  args->current_rd += rd;
3065
0
  if (args->current_rd > args->best_rd) args->exit_early = 1;
3066
0
}
3067
3068
int64_t av1_estimate_txfm_yrd(const AV1_COMP *const cpi, MACROBLOCK *x,
3069
                              RD_STATS *rd_stats, int64_t ref_best_rd,
3070
0
                              BLOCK_SIZE bs, TX_SIZE tx_size) {
3071
0
  MACROBLOCKD *const xd = &x->e_mbd;
3072
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3073
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
3074
0
  const ModeCosts *mode_costs = &x->mode_costs;
3075
0
  const int is_inter = is_inter_block(mbmi);
3076
0
  const int tx_select = txfm_params->tx_mode_search_type == TX_MODE_SELECT &&
3077
0
                        block_signals_txsize(mbmi->bsize);
3078
0
  int tx_size_rate = 0;
3079
0
  if (tx_select) {
3080
0
    const int ctx = txfm_partition_context(
3081
0
        xd->above_txfm_context, xd->left_txfm_context, mbmi->bsize, tx_size);
3082
0
    tx_size_rate = mode_costs->txfm_partition_cost[ctx][0];
3083
0
  }
3084
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
3085
0
  const int no_skip_txfm_rate = mode_costs->skip_txfm_cost[skip_ctx][0];
3086
0
  const int skip_txfm_rate = mode_costs->skip_txfm_cost[skip_ctx][1];
3087
0
  const int64_t skip_txfm_rd = RDCOST(x->rdmult, skip_txfm_rate, 0);
3088
0
  const int64_t no_this_rd =
3089
0
      RDCOST(x->rdmult, no_skip_txfm_rate + tx_size_rate, 0);
3090
0
  mbmi->tx_size = tx_size;
3091
3092
0
  const uint8_t txw_unit = tx_size_wide_unit[tx_size];
3093
0
  const uint8_t txh_unit = tx_size_high_unit[tx_size];
3094
0
  const int step = txw_unit * txh_unit;
3095
0
  const int max_blocks_wide = max_block_wide(xd, bs, 0);
3096
0
  const int max_blocks_high = max_block_high(xd, bs, 0);
3097
3098
0
  struct rdcost_block_args args;
3099
0
  av1_zero(args);
3100
0
  args.x = x;
3101
0
  args.cpi = cpi;
3102
0
  args.best_rd = ref_best_rd;
3103
0
  args.current_rd = AOMMIN(no_this_rd, skip_txfm_rd);
3104
0
  av1_init_rd_stats(&args.rd_stats);
3105
0
  av1_get_entropy_contexts(bs, &xd->plane[0], args.t_above, args.t_left);
3106
0
  int i = 0;
3107
0
  for (int blk_row = 0; blk_row < max_blocks_high && !args.incomplete_exit;
3108
0
       blk_row += txh_unit) {
3109
0
    for (int blk_col = 0; blk_col < max_blocks_wide; blk_col += txw_unit) {
3110
0
      RD_STATS this_rd_stats;
3111
0
      av1_init_rd_stats(&this_rd_stats);
3112
3113
0
      if (args.exit_early) {
3114
0
        args.incomplete_exit = 1;
3115
0
        break;
3116
0
      }
3117
3118
0
      ENTROPY_CONTEXT *a = args.t_above + blk_col;
3119
0
      ENTROPY_CONTEXT *l = args.t_left + blk_row;
3120
0
      TXB_CTX txb_ctx;
3121
0
      get_txb_ctx(bs, tx_size, 0, a, l, &txb_ctx);
3122
3123
0
      TxfmParam txfm_param;
3124
0
      QUANT_PARAM quant_param;
3125
0
      av1_setup_xform(&cpi->common, x, tx_size, DCT_DCT, &txfm_param);
3126
0
      av1_setup_quant(tx_size, 0, AV1_XFORM_QUANT_B, 0, &quant_param);
3127
3128
0
      av1_xform(x, 0, i, blk_row, blk_col, bs, &txfm_param);
3129
0
      av1_quant(x, 0, i, &txfm_param, &quant_param);
3130
3131
0
      this_rd_stats.rate =
3132
0
          cost_coeffs(x, 0, i, tx_size, txfm_param.tx_type, &txb_ctx, 0);
3133
3134
0
      const SCAN_ORDER *const scan_order =
3135
0
          get_scan(txfm_param.tx_size, txfm_param.tx_type);
3136
0
      dist_block_tx_domain(x, 0, i, tx_size, quant_param.qmatrix,
3137
0
                           scan_order->scan, &this_rd_stats.dist,
3138
0
                           &this_rd_stats.sse);
3139
3140
0
      const int64_t no_skip_txfm_rd =
3141
0
          RDCOST(x->rdmult, this_rd_stats.rate, this_rd_stats.dist);
3142
0
      const int64_t skip_rd = RDCOST(x->rdmult, 0, this_rd_stats.sse);
3143
3144
0
      this_rd_stats.skip_txfm &= !x->plane[0].eobs[i];
3145
3146
0
      av1_merge_rd_stats(&args.rd_stats, &this_rd_stats);
3147
0
      args.current_rd += AOMMIN(no_skip_txfm_rd, skip_rd);
3148
3149
0
      if (args.current_rd > ref_best_rd) {
3150
0
        args.exit_early = 1;
3151
0
        break;
3152
0
      }
3153
3154
0
      av1_set_txb_context(x, 0, i, tx_size, a, l);
3155
0
      i += step;
3156
0
    }
3157
0
  }
3158
3159
0
  if (args.incomplete_exit) av1_invalid_rd_stats(&args.rd_stats);
3160
3161
0
  *rd_stats = args.rd_stats;
3162
0
  if (rd_stats->rate == INT_MAX) return INT64_MAX;
3163
3164
0
  int64_t rd;
3165
  // rdstats->rate should include all the rate except skip/non-skip cost as the
3166
  // same is accounted in the caller functions after rd evaluation of all
3167
  // planes. However the decisions should be done after considering the
3168
  // skip/non-skip header cost
3169
0
  if (rd_stats->skip_txfm && is_inter) {
3170
0
    rd = RDCOST(x->rdmult, skip_txfm_rate, rd_stats->sse);
3171
0
  } else {
3172
    // Intra blocks are always signalled as non-skip
3173
0
    rd = RDCOST(x->rdmult, rd_stats->rate + no_skip_txfm_rate + tx_size_rate,
3174
0
                rd_stats->dist);
3175
0
    rd_stats->rate += tx_size_rate;
3176
0
  }
3177
  // Check if forcing the block to skip transform leads to smaller RD cost.
3178
0
  if (is_inter && !rd_stats->skip_txfm && !xd->lossless[mbmi->segment_id]) {
3179
0
    int64_t temp_skip_txfm_rd =
3180
0
        RDCOST(x->rdmult, skip_txfm_rate, rd_stats->sse);
3181
0
    if (temp_skip_txfm_rd <= rd) {
3182
0
      rd = temp_skip_txfm_rd;
3183
0
      rd_stats->rate = 0;
3184
0
      rd_stats->dist = rd_stats->sse;
3185
0
      rd_stats->skip_txfm = 1;
3186
0
    }
3187
0
  }
3188
3189
0
  return rd;
3190
0
}
3191
3192
// Search for the best transform type for a luma inter-predicted block, given
3193
// the transform block partitions.
3194
// This function is used only when some speed features are enabled.
3195
static inline void tx_block_yrd(const AV1_COMP *cpi, MACROBLOCK *x, int blk_row,
3196
                                int blk_col, int block, TX_SIZE tx_size,
3197
                                BLOCK_SIZE plane_bsize, int depth,
3198
                                ENTROPY_CONTEXT *above_ctx,
3199
                                ENTROPY_CONTEXT *left_ctx,
3200
                                TXFM_CONTEXT *tx_above, TXFM_CONTEXT *tx_left,
3201
                                int64_t ref_best_rd, RD_STATS *rd_stats,
3202
0
                                FAST_TX_SEARCH_MODE ftxs_mode) {
3203
0
  assert(tx_size < TX_SIZES_ALL);
3204
0
  MACROBLOCKD *const xd = &x->e_mbd;
3205
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3206
0
  assert(is_inter_block(mbmi));
3207
0
  const int max_blocks_high = max_block_high(xd, plane_bsize, 0);
3208
0
  const int max_blocks_wide = max_block_wide(xd, plane_bsize, 0);
3209
3210
0
  if (blk_row >= max_blocks_high || blk_col >= max_blocks_wide) return;
3211
3212
0
  const TX_SIZE plane_tx_size = mbmi->inter_tx_size[av1_get_txb_size_index(
3213
0
      plane_bsize, blk_row, blk_col)];
3214
0
  const int ctx = txfm_partition_context(tx_above + blk_col, tx_left + blk_row,
3215
0
                                         mbmi->bsize, tx_size);
3216
3217
0
  av1_init_rd_stats(rd_stats);
3218
0
  if (tx_size == plane_tx_size) {
3219
0
    ENTROPY_CONTEXT *ta = above_ctx + blk_col;
3220
0
    ENTROPY_CONTEXT *tl = left_ctx + blk_row;
3221
0
    const TX_SIZE txs_ctx = get_txsize_entropy_ctx(tx_size);
3222
0
    TXB_CTX txb_ctx;
3223
0
    get_txb_ctx(plane_bsize, tx_size, 0, ta, tl, &txb_ctx);
3224
3225
0
    const int zero_blk_rate =
3226
0
        x->coeff_costs.coeff_costs[txs_ctx][get_plane_type(0)]
3227
0
            .txb_skip_cost[txb_ctx.txb_skip_ctx][1];
3228
0
    rd_stats->zero_rate = zero_blk_rate;
3229
0
    tx_type_rd(cpi, x, tx_size, blk_row, blk_col, block, plane_bsize, &txb_ctx,
3230
0
               rd_stats, ftxs_mode, ref_best_rd);
3231
0
    if (RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist) >=
3232
0
            RDCOST(x->rdmult, zero_blk_rate, rd_stats->sse) ||
3233
0
        rd_stats->skip_txfm == 1) {
3234
0
      rd_stats->rate = zero_blk_rate;
3235
0
      rd_stats->dist = rd_stats->sse;
3236
0
      rd_stats->skip_txfm = 1;
3237
0
      x->plane[0].eobs[block] = 0;
3238
0
      x->plane[0].txb_entropy_ctx[block] = 0;
3239
0
      update_txk_array(xd, blk_row, blk_col, tx_size, DCT_DCT);
3240
0
    } else {
3241
0
      rd_stats->skip_txfm = 0;
3242
0
    }
3243
0
    if (tx_size > TX_4X4 && depth < MAX_VARTX_DEPTH)
3244
0
      rd_stats->rate += x->mode_costs.txfm_partition_cost[ctx][0];
3245
0
    av1_set_txb_context(x, 0, block, tx_size, ta, tl);
3246
0
    txfm_partition_update(tx_above + blk_col, tx_left + blk_row, tx_size,
3247
0
                          tx_size);
3248
0
  } else {
3249
0
    const TX_SIZE sub_txs = sub_tx_size_map[tx_size];
3250
0
    const int txb_width = tx_size_wide_unit[sub_txs];
3251
0
    const int txb_height = tx_size_high_unit[sub_txs];
3252
0
    const int step = txb_height * txb_width;
3253
0
    const int row_end =
3254
0
        AOMMIN(tx_size_high_unit[tx_size], max_blocks_high - blk_row);
3255
0
    const int col_end =
3256
0
        AOMMIN(tx_size_wide_unit[tx_size], max_blocks_wide - blk_col);
3257
0
    RD_STATS pn_rd_stats;
3258
0
    int64_t this_rd = 0;
3259
0
    assert(txb_width > 0 && txb_height > 0);
3260
3261
0
    for (int row = 0; row < row_end; row += txb_height) {
3262
0
      const int offsetr = blk_row + row;
3263
0
      for (int col = 0; col < col_end; col += txb_width) {
3264
0
        const int offsetc = blk_col + col;
3265
3266
0
        av1_init_rd_stats(&pn_rd_stats);
3267
0
        tx_block_yrd(cpi, x, offsetr, offsetc, block, sub_txs, plane_bsize,
3268
0
                     depth + 1, above_ctx, left_ctx, tx_above, tx_left,
3269
0
                     ref_best_rd - this_rd, &pn_rd_stats, ftxs_mode);
3270
0
        if (pn_rd_stats.rate == INT_MAX) {
3271
0
          av1_invalid_rd_stats(rd_stats);
3272
0
          return;
3273
0
        }
3274
0
        av1_merge_rd_stats(rd_stats, &pn_rd_stats);
3275
0
        this_rd += RDCOST(x->rdmult, pn_rd_stats.rate, pn_rd_stats.dist);
3276
0
        block += step;
3277
0
      }
3278
0
    }
3279
3280
0
    if (tx_size > TX_4X4 && depth < MAX_VARTX_DEPTH)
3281
0
      rd_stats->rate += x->mode_costs.txfm_partition_cost[ctx][1];
3282
0
  }
3283
0
}
3284
3285
// search for tx type with tx sizes already decided for a inter-predicted luma
3286
// partition block. It's used only when some speed features are enabled.
3287
// Return value 0: early termination triggered, no valid rd cost available;
3288
//              1: rd cost values are valid.
3289
static int inter_block_yrd(const AV1_COMP *cpi, MACROBLOCK *x,
3290
                           RD_STATS *rd_stats, BLOCK_SIZE bsize,
3291
0
                           int64_t ref_best_rd, FAST_TX_SEARCH_MODE ftxs_mode) {
3292
0
  if (ref_best_rd < 0) {
3293
0
    av1_invalid_rd_stats(rd_stats);
3294
0
    return 0;
3295
0
  }
3296
3297
0
  av1_init_rd_stats(rd_stats);
3298
3299
0
  MACROBLOCKD *const xd = &x->e_mbd;
3300
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
3301
0
  const struct macroblockd_plane *const pd = &xd->plane[0];
3302
0
  const int mi_width = mi_size_wide[bsize];
3303
0
  const int mi_height = mi_size_high[bsize];
3304
0
  const TX_SIZE max_tx_size = get_vartx_max_txsize(xd, bsize, 0);
3305
0
  const int bh = tx_size_high_unit[max_tx_size];
3306
0
  const int bw = tx_size_wide_unit[max_tx_size];
3307
0
  const int step = bw * bh;
3308
0
  const int init_depth = get_search_init_depth(
3309
0
      mi_width, mi_height, 1, &cpi->sf, txfm_params->tx_size_search_method);
3310
0
  ENTROPY_CONTEXT ctxa[MAX_MIB_SIZE];
3311
0
  ENTROPY_CONTEXT ctxl[MAX_MIB_SIZE];
3312
0
  TXFM_CONTEXT tx_above[MAX_MIB_SIZE];
3313
0
  TXFM_CONTEXT tx_left[MAX_MIB_SIZE];
3314
0
  av1_get_entropy_contexts(bsize, pd, ctxa, ctxl);
3315
0
  memcpy(tx_above, xd->above_txfm_context, sizeof(TXFM_CONTEXT) * mi_width);
3316
0
  memcpy(tx_left, xd->left_txfm_context, sizeof(TXFM_CONTEXT) * mi_height);
3317
3318
0
  int64_t this_rd = 0;
3319
0
  for (int idy = 0, block = 0; idy < mi_height; idy += bh) {
3320
0
    for (int idx = 0; idx < mi_width; idx += bw) {
3321
0
      RD_STATS pn_rd_stats;
3322
0
      av1_init_rd_stats(&pn_rd_stats);
3323
0
      tx_block_yrd(cpi, x, idy, idx, block, max_tx_size, bsize, init_depth,
3324
0
                   ctxa, ctxl, tx_above, tx_left, ref_best_rd - this_rd,
3325
0
                   &pn_rd_stats, ftxs_mode);
3326
0
      if (pn_rd_stats.rate == INT_MAX) {
3327
0
        av1_invalid_rd_stats(rd_stats);
3328
0
        return 0;
3329
0
      }
3330
0
      av1_merge_rd_stats(rd_stats, &pn_rd_stats);
3331
0
      this_rd +=
3332
0
          AOMMIN(RDCOST(x->rdmult, pn_rd_stats.rate, pn_rd_stats.dist),
3333
0
                 RDCOST(x->rdmult, pn_rd_stats.zero_rate, pn_rd_stats.sse));
3334
0
      block += step;
3335
0
    }
3336
0
  }
3337
3338
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
3339
0
  const int no_skip_txfm_rate = x->mode_costs.skip_txfm_cost[skip_ctx][0];
3340
0
  const int skip_txfm_rate = x->mode_costs.skip_txfm_cost[skip_ctx][1];
3341
0
  const int64_t skip_txfm_rd = RDCOST(x->rdmult, skip_txfm_rate, rd_stats->sse);
3342
0
  this_rd =
3343
0
      RDCOST(x->rdmult, rd_stats->rate + no_skip_txfm_rate, rd_stats->dist);
3344
0
  if (skip_txfm_rd < this_rd) {
3345
0
    this_rd = skip_txfm_rd;
3346
0
    rd_stats->rate = 0;
3347
0
    rd_stats->dist = rd_stats->sse;
3348
0
    rd_stats->skip_txfm = 1;
3349
0
  }
3350
3351
0
  const int is_cost_valid = this_rd > ref_best_rd;
3352
0
  if (!is_cost_valid) {
3353
    // reset cost value
3354
0
    av1_invalid_rd_stats(rd_stats);
3355
0
  }
3356
0
  return is_cost_valid;
3357
0
}
3358
3359
// Search for the best transform size and type for current inter-predicted
3360
// luma block with recursive transform block partitioning. The obtained
3361
// transform selection will be saved in xd->mi[0], the corresponding RD stats
3362
// will be saved in rd_stats. The returned value is the corresponding RD cost.
3363
static int64_t select_tx_size_and_type(const AV1_COMP *cpi, MACROBLOCK *x,
3364
                                       RD_STATS *rd_stats, BLOCK_SIZE bsize,
3365
0
                                       int64_t ref_best_rd) {
3366
0
  MACROBLOCKD *const xd = &x->e_mbd;
3367
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
3368
0
  assert(is_inter_block(xd->mi[0]));
3369
0
  assert(bsize < BLOCK_SIZES_ALL);
3370
0
  const int fast_tx_search = txfm_params->tx_size_search_method > USE_FULL_RD;
3371
0
  int64_t rd_thresh = ref_best_rd;
3372
0
  if (rd_thresh == 0) {
3373
0
    av1_invalid_rd_stats(rd_stats);
3374
0
    return INT64_MAX;
3375
0
  }
3376
0
  if (fast_tx_search && rd_thresh < INT64_MAX) {
3377
0
    if (INT64_MAX - rd_thresh > (rd_thresh >> 3)) rd_thresh += (rd_thresh >> 3);
3378
0
  }
3379
0
  assert(rd_thresh > 0);
3380
0
  const FAST_TX_SEARCH_MODE ftxs_mode =
3381
0
      fast_tx_search ? FTXS_DCT_AND_1D_DCT_ONLY : FTXS_NONE;
3382
0
  const struct macroblockd_plane *const pd = &xd->plane[0];
3383
0
  assert(bsize < BLOCK_SIZES_ALL);
3384
0
  const int mi_width = mi_size_wide[bsize];
3385
0
  const int mi_height = mi_size_high[bsize];
3386
0
  ENTROPY_CONTEXT ctxa[MAX_MIB_SIZE];
3387
0
  ENTROPY_CONTEXT ctxl[MAX_MIB_SIZE];
3388
0
  TXFM_CONTEXT tx_above[MAX_MIB_SIZE];
3389
0
  TXFM_CONTEXT tx_left[MAX_MIB_SIZE];
3390
0
  av1_get_entropy_contexts(bsize, pd, ctxa, ctxl);
3391
0
  memcpy(tx_above, xd->above_txfm_context, sizeof(TXFM_CONTEXT) * mi_width);
3392
0
  memcpy(tx_left, xd->left_txfm_context, sizeof(TXFM_CONTEXT) * mi_height);
3393
0
  const int init_depth = get_search_init_depth(
3394
0
      mi_width, mi_height, 1, &cpi->sf, txfm_params->tx_size_search_method);
3395
0
  const TX_SIZE max_tx_size = max_txsize_rect_lookup[bsize];
3396
0
  const int bh = tx_size_high_unit[max_tx_size];
3397
0
  const int bw = tx_size_wide_unit[max_tx_size];
3398
0
  const int step = bw * bh;
3399
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
3400
0
  const int no_skip_txfm_cost = x->mode_costs.skip_txfm_cost[skip_ctx][0];
3401
0
  const int skip_txfm_cost = x->mode_costs.skip_txfm_cost[skip_ctx][1];
3402
0
  int64_t skip_txfm_rd = RDCOST(x->rdmult, skip_txfm_cost, 0);
3403
0
  int64_t no_skip_txfm_rd = RDCOST(x->rdmult, no_skip_txfm_cost, 0);
3404
0
  int block = 0;
3405
3406
0
  av1_init_rd_stats(rd_stats);
3407
0
  for (int idy = 0; idy < max_block_high(xd, bsize, 0); idy += bh) {
3408
0
    for (int idx = 0; idx < max_block_wide(xd, bsize, 0); idx += bw) {
3409
0
      const int64_t best_rd_sofar =
3410
0
          (rd_thresh == INT64_MAX)
3411
0
              ? INT64_MAX
3412
0
              : (rd_thresh - (AOMMIN(skip_txfm_rd, no_skip_txfm_rd)));
3413
0
      int is_cost_valid = 1;
3414
0
      RD_STATS pn_rd_stats;
3415
      // Search for the best transform block size and type for the sub-block.
3416
0
      select_tx_block(cpi, x, idy, idx, block, max_tx_size, init_depth, bsize,
3417
0
                      ctxa, ctxl, tx_above, tx_left, &pn_rd_stats, INT64_MAX,
3418
0
                      best_rd_sofar, &is_cost_valid, ftxs_mode);
3419
0
      if (!is_cost_valid || pn_rd_stats.rate == INT_MAX) {
3420
0
        av1_invalid_rd_stats(rd_stats);
3421
0
        return INT64_MAX;
3422
0
      }
3423
0
      av1_merge_rd_stats(rd_stats, &pn_rd_stats);
3424
0
      skip_txfm_rd = RDCOST(x->rdmult, skip_txfm_cost, rd_stats->sse);
3425
0
      no_skip_txfm_rd =
3426
0
          RDCOST(x->rdmult, rd_stats->rate + no_skip_txfm_cost, rd_stats->dist);
3427
0
      block += step;
3428
0
    }
3429
0
  }
3430
3431
0
  if (rd_stats->rate == INT_MAX) return INT64_MAX;
3432
3433
0
  rd_stats->skip_txfm = (skip_txfm_rd <= no_skip_txfm_rd);
3434
3435
  // If fast_tx_search is true, only DCT and 1D DCT were tested in
3436
  // select_inter_block_yrd() above. Do a better search for tx type with
3437
  // tx sizes already decided.
3438
0
  if (fast_tx_search && cpi->sf.tx_sf.refine_fast_tx_search_results) {
3439
0
    if (!inter_block_yrd(cpi, x, rd_stats, bsize, ref_best_rd, FTXS_NONE))
3440
0
      return INT64_MAX;
3441
0
  }
3442
3443
0
  int64_t final_rd;
3444
0
  if (rd_stats->skip_txfm) {
3445
0
    final_rd = RDCOST(x->rdmult, skip_txfm_cost, rd_stats->sse);
3446
0
  } else {
3447
0
    final_rd =
3448
0
        RDCOST(x->rdmult, rd_stats->rate + no_skip_txfm_cost, rd_stats->dist);
3449
0
    if (!xd->lossless[xd->mi[0]->segment_id]) {
3450
0
      final_rd =
3451
0
          AOMMIN(final_rd, RDCOST(x->rdmult, skip_txfm_cost, rd_stats->sse));
3452
0
    }
3453
0
  }
3454
3455
0
  return final_rd;
3456
0
}
3457
3458
// Return 1 to terminate transform search early. The decision is made based on
3459
// the comparison with the reference RD cost and the model-estimated RD cost.
3460
static inline int model_based_tx_search_prune(const AV1_COMP *cpi,
3461
                                              MACROBLOCK *x, BLOCK_SIZE bsize,
3462
0
                                              int64_t ref_best_rd) {
3463
0
  const int level = cpi->sf.tx_sf.model_based_prune_tx_search_level;
3464
0
  assert(level >= 0 && level <= 2);
3465
0
  int model_rate;
3466
0
  int64_t model_dist;
3467
0
  uint8_t model_skip;
3468
0
  MACROBLOCKD *const xd = &x->e_mbd;
3469
0
  model_rd_sb_fn[MODELRD_TYPE_TX_SEARCH_PRUNE](
3470
0
      cpi, bsize, x, xd, 0, 0, &model_rate, &model_dist, &model_skip, NULL,
3471
0
      NULL, NULL, NULL);
3472
0
  if (model_skip) return 0;
3473
0
  const int64_t model_rd = RDCOST(x->rdmult, model_rate, model_dist);
3474
  // TODO(debargha, urvang): Improve the model and make the check below
3475
  // tighter.
3476
0
  static const int prune_factor_by8[] = { 3, 5 };
3477
0
  const int factor = prune_factor_by8[level - 1];
3478
0
  return ((model_rd * factor) >> 3) > ref_best_rd;
3479
0
}
3480
3481
void av1_pick_recursive_tx_size_type_yrd(const AV1_COMP *cpi, MACROBLOCK *x,
3482
                                         RD_STATS *rd_stats, BLOCK_SIZE bsize,
3483
0
                                         int64_t ref_best_rd) {
3484
0
  MACROBLOCKD *const xd = &x->e_mbd;
3485
0
  const TxfmSearchParams *txfm_params = &x->txfm_search_params;
3486
0
  assert(is_inter_block(xd->mi[0]));
3487
3488
0
  av1_invalid_rd_stats(rd_stats);
3489
3490
  // If modeled RD cost is a lot worse than the best so far, terminate early.
3491
0
  if (cpi->sf.tx_sf.model_based_prune_tx_search_level &&
3492
0
      ref_best_rd != INT64_MAX) {
3493
0
    if (model_based_tx_search_prune(cpi, x, bsize, ref_best_rd)) return;
3494
0
  }
3495
3496
  // Hashing based speed feature. If the hash of the prediction residue block is
3497
  // found in the hash table, use previous search results and terminate early.
3498
0
  uint32_t hash = 0;
3499
0
  MB_RD_RECORD *mb_rd_record = NULL;
3500
0
  const int mi_row = x->e_mbd.mi_row;
3501
0
  const int mi_col = x->e_mbd.mi_col;
3502
0
  const int within_border =
3503
0
      mi_row >= xd->tile.mi_row_start &&
3504
0
      (mi_row + mi_size_high[bsize] < xd->tile.mi_row_end) &&
3505
0
      mi_col >= xd->tile.mi_col_start &&
3506
0
      (mi_col + mi_size_wide[bsize] < xd->tile.mi_col_end);
3507
0
  const int is_mb_rd_hash_enabled =
3508
0
      (within_border && cpi->sf.rd_sf.use_mb_rd_hash);
3509
0
  const int n4 = bsize_to_num_blk(bsize);
3510
0
  if (is_mb_rd_hash_enabled) {
3511
0
    hash = get_block_residue_hash(x, bsize);
3512
0
    mb_rd_record = x->txfm_search_info.mb_rd_record;
3513
0
    const int match_index = find_mb_rd_info(mb_rd_record, ref_best_rd, hash);
3514
0
    if (match_index != -1) {
3515
0
      MB_RD_INFO *mb_rd_info = &mb_rd_record->mb_rd_info[match_index];
3516
0
      fetch_mb_rd_info(n4, mb_rd_info, rd_stats, x);
3517
0
      return;
3518
0
    }
3519
0
  }
3520
3521
  // If we predict that skip is the optimal RD decision - set the respective
3522
  // context and terminate early.
3523
0
  int64_t dist;
3524
0
  if (txfm_params->skip_txfm_level &&
3525
0
      predict_skip_txfm(x, bsize, &dist,
3526
0
                        cpi->common.features.reduced_tx_set_used)) {
3527
0
    set_skip_txfm(x, rd_stats, bsize, dist);
3528
    // Save the RD search results into mb_rd_record.
3529
0
    if (is_mb_rd_hash_enabled)
3530
0
      save_mb_rd_info(n4, hash, x, rd_stats, mb_rd_record);
3531
0
    return;
3532
0
  }
3533
#if CONFIG_SPEED_STATS
3534
  ++x->txfm_search_info.tx_search_count;
3535
#endif  // CONFIG_SPEED_STATS
3536
3537
0
  const int64_t rd =
3538
0
      select_tx_size_and_type(cpi, x, rd_stats, bsize, ref_best_rd);
3539
3540
0
  if (rd == INT64_MAX) {
3541
    // We should always find at least one candidate unless ref_best_rd is less
3542
    // than INT64_MAX (in which case, all the calls to select_tx_size_fix_type
3543
    // might have failed to find something better)
3544
0
    assert(ref_best_rd != INT64_MAX);
3545
0
    av1_invalid_rd_stats(rd_stats);
3546
0
    return;
3547
0
  }
3548
3549
  // Save the RD search results into mb_rd_record.
3550
0
  if (is_mb_rd_hash_enabled) {
3551
0
    assert(mb_rd_record != NULL);
3552
0
    save_mb_rd_info(n4, hash, x, rd_stats, mb_rd_record);
3553
0
  }
3554
0
}
3555
3556
void av1_pick_uniform_tx_size_type_yrd(const AV1_COMP *const cpi, MACROBLOCK *x,
3557
                                       RD_STATS *rd_stats, BLOCK_SIZE bs,
3558
0
                                       int64_t ref_best_rd) {
3559
0
  MACROBLOCKD *const xd = &x->e_mbd;
3560
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3561
0
  const TxfmSearchParams *tx_params = &x->txfm_search_params;
3562
0
  assert(bs == mbmi->bsize);
3563
0
  const int is_inter = is_inter_block(mbmi);
3564
0
  const int mi_row = xd->mi_row;
3565
0
  const int mi_col = xd->mi_col;
3566
3567
0
  av1_init_rd_stats(rd_stats);
3568
3569
  // Hashing based speed feature for inter blocks. If the hash of the residue
3570
  // block is found in the table, use previously saved search results and
3571
  // terminate early.
3572
0
  uint32_t hash = 0;
3573
0
  MB_RD_RECORD *mb_rd_record = NULL;
3574
0
  const int num_blks = bsize_to_num_blk(bs);
3575
0
  if (is_inter && cpi->sf.rd_sf.use_mb_rd_hash) {
3576
0
    const int within_border =
3577
0
        mi_row >= xd->tile.mi_row_start &&
3578
0
        (mi_row + mi_size_high[bs] < xd->tile.mi_row_end) &&
3579
0
        mi_col >= xd->tile.mi_col_start &&
3580
0
        (mi_col + mi_size_wide[bs] < xd->tile.mi_col_end);
3581
0
    if (within_border) {
3582
0
      hash = get_block_residue_hash(x, bs);
3583
0
      mb_rd_record = x->txfm_search_info.mb_rd_record;
3584
0
      const int match_index = find_mb_rd_info(mb_rd_record, ref_best_rd, hash);
3585
0
      if (match_index != -1) {
3586
0
        MB_RD_INFO *mb_rd_info = &mb_rd_record->mb_rd_info[match_index];
3587
0
        fetch_mb_rd_info(num_blks, mb_rd_info, rd_stats, x);
3588
0
        return;
3589
0
      }
3590
0
    }
3591
0
  }
3592
3593
  // If we predict that skip is the optimal RD decision - set the respective
3594
  // context and terminate early.
3595
0
  int64_t dist;
3596
0
  if (tx_params->skip_txfm_level && is_inter &&
3597
0
      !xd->lossless[mbmi->segment_id] &&
3598
0
      predict_skip_txfm(x, bs, &dist,
3599
0
                        cpi->common.features.reduced_tx_set_used)) {
3600
    // Populate rdstats as per skip decision
3601
0
    set_skip_txfm(x, rd_stats, bs, dist);
3602
    // Save the RD search results into mb_rd_record.
3603
0
    if (mb_rd_record) {
3604
0
      save_mb_rd_info(num_blks, hash, x, rd_stats, mb_rd_record);
3605
0
    }
3606
0
    return;
3607
0
  }
3608
3609
0
  if (xd->lossless[mbmi->segment_id]) {
3610
    // Lossless mode can only pick the smallest (4x4) transform size.
3611
0
    choose_smallest_tx_size(cpi, x, rd_stats, ref_best_rd, bs);
3612
0
  } else if (tx_params->tx_size_search_method == USE_LARGESTALL) {
3613
0
    choose_largest_tx_size(cpi, x, rd_stats, ref_best_rd, bs);
3614
0
  } else {
3615
0
    choose_tx_size_type_from_rd(cpi, x, rd_stats, ref_best_rd, bs);
3616
0
  }
3617
3618
  // Save the RD search results into mb_rd_record for possible reuse in future.
3619
0
  if (mb_rd_record) {
3620
0
    save_mb_rd_info(num_blks, hash, x, rd_stats, mb_rd_record);
3621
0
  }
3622
0
}
3623
3624
int av1_txfm_uvrd(const AV1_COMP *const cpi, MACROBLOCK *x, RD_STATS *rd_stats,
3625
0
                  BLOCK_SIZE bsize, int64_t ref_best_rd) {
3626
0
  av1_init_rd_stats(rd_stats);
3627
0
  if (ref_best_rd < 0) return 0;
3628
0
  if (!x->e_mbd.is_chroma_ref) return 1;
3629
3630
0
  MACROBLOCKD *const xd = &x->e_mbd;
3631
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3632
0
  struct macroblockd_plane *const pd = &xd->plane[AOM_PLANE_U];
3633
0
  const int is_inter = is_inter_block(mbmi);
3634
0
  int64_t this_rd = 0, skip_txfm_rd = 0;
3635
0
  const BLOCK_SIZE plane_bsize =
3636
0
      get_plane_block_size(bsize, pd->subsampling_x, pd->subsampling_y);
3637
3638
0
  if (is_inter) {
3639
0
    for (int plane = 1; plane < MAX_MB_PLANE; ++plane)
3640
0
      av1_subtract_plane(x, plane_bsize, plane);
3641
0
  }
3642
3643
0
  const TX_SIZE uv_tx_size = av1_get_tx_size(AOM_PLANE_U, xd);
3644
0
  int is_cost_valid = 1;
3645
0
  for (int plane = 1; plane < MAX_MB_PLANE; ++plane) {
3646
0
    RD_STATS this_rd_stats;
3647
0
    int64_t chroma_ref_best_rd = ref_best_rd;
3648
    // For inter blocks, refined ref_best_rd is used for early exit
3649
    // For intra blocks, even though current rd crosses ref_best_rd, early
3650
    // exit is not recommended as current rd is used for gating subsequent
3651
    // modes as well (say, for angular modes)
3652
    // TODO(any): Extend the early exit mechanism for intra modes as well
3653
0
    if (cpi->sf.inter_sf.perform_best_rd_based_gating_for_chroma && is_inter &&
3654
0
        chroma_ref_best_rd != INT64_MAX)
3655
0
      chroma_ref_best_rd = ref_best_rd - AOMMIN(this_rd, skip_txfm_rd);
3656
0
    av1_txfm_rd_in_plane(x, cpi, &this_rd_stats, chroma_ref_best_rd, 0, plane,
3657
0
                         plane_bsize, uv_tx_size, FTXS_NONE);
3658
0
    if (this_rd_stats.rate == INT_MAX) {
3659
0
      is_cost_valid = 0;
3660
0
      break;
3661
0
    }
3662
0
    av1_merge_rd_stats(rd_stats, &this_rd_stats);
3663
0
    this_rd = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
3664
0
    skip_txfm_rd = RDCOST(x->rdmult, 0, rd_stats->sse);
3665
0
    if (AOMMIN(this_rd, skip_txfm_rd) > ref_best_rd) {
3666
0
      is_cost_valid = 0;
3667
0
      break;
3668
0
    }
3669
0
  }
3670
3671
0
  if (!is_cost_valid) {
3672
    // reset cost value
3673
0
    av1_invalid_rd_stats(rd_stats);
3674
0
  }
3675
3676
0
  return is_cost_valid;
3677
0
}
3678
3679
void av1_txfm_rd_in_plane(MACROBLOCK *x, const AV1_COMP *cpi,
3680
                          RD_STATS *rd_stats, int64_t ref_best_rd,
3681
                          int64_t current_rd, int plane, BLOCK_SIZE plane_bsize,
3682
0
                          TX_SIZE tx_size, FAST_TX_SEARCH_MODE ftxs_mode) {
3683
0
  assert(IMPLIES(plane == 0, x->e_mbd.mi[0]->tx_size == tx_size));
3684
3685
0
  if (!cpi->oxcf.txfm_cfg.enable_tx64 &&
3686
0
      txsize_sqr_up_map[tx_size] == TX_64X64) {
3687
0
    av1_invalid_rd_stats(rd_stats);
3688
0
    return;
3689
0
  }
3690
3691
0
  if (current_rd > ref_best_rd) {
3692
0
    av1_invalid_rd_stats(rd_stats);
3693
0
    return;
3694
0
  }
3695
3696
0
  MACROBLOCKD *const xd = &x->e_mbd;
3697
0
  const struct macroblockd_plane *const pd = &xd->plane[plane];
3698
0
  struct rdcost_block_args args;
3699
0
  av1_zero(args);
3700
0
  args.x = x;
3701
0
  args.cpi = cpi;
3702
0
  args.best_rd = ref_best_rd;
3703
0
  args.current_rd = current_rd;
3704
0
  args.ftxs_mode = ftxs_mode;
3705
0
  args.skip_trellis = 0;
3706
0
  av1_init_rd_stats(&args.rd_stats);
3707
3708
0
  av1_get_entropy_contexts(plane_bsize, pd, args.t_above, args.t_left);
3709
0
  av1_foreach_transformed_block_in_plane(xd, plane_bsize, plane, block_rd_txfm,
3710
0
                                         &args);
3711
3712
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3713
0
  const int is_inter = is_inter_block(mbmi);
3714
0
  const int invalid_rd = is_inter ? args.incomplete_exit : args.exit_early;
3715
3716
0
  if (invalid_rd) {
3717
0
    av1_invalid_rd_stats(rd_stats);
3718
0
  } else {
3719
0
    *rd_stats = args.rd_stats;
3720
0
  }
3721
0
}
3722
3723
int av1_txfm_search(const AV1_COMP *cpi, MACROBLOCK *x, BLOCK_SIZE bsize,
3724
                    RD_STATS *rd_stats, RD_STATS *rd_stats_y,
3725
0
                    RD_STATS *rd_stats_uv, int mode_rate, int64_t ref_best_rd) {
3726
0
  MACROBLOCKD *const xd = &x->e_mbd;
3727
0
  TxfmSearchParams *txfm_params = &x->txfm_search_params;
3728
0
  const int skip_ctx = av1_get_skip_txfm_context(xd);
3729
0
  const int skip_txfm_cost[2] = { x->mode_costs.skip_txfm_cost[skip_ctx][0],
3730
0
                                  x->mode_costs.skip_txfm_cost[skip_ctx][1] };
3731
0
  const int64_t min_header_rate =
3732
0
      mode_rate + AOMMIN(skip_txfm_cost[0], skip_txfm_cost[1]);
3733
  // Account for minimum skip and non_skip rd.
3734
  // Eventually either one of them will be added to mode_rate
3735
0
  const int64_t min_header_rd_possible = RDCOST(x->rdmult, min_header_rate, 0);
3736
0
  if (min_header_rd_possible > ref_best_rd) {
3737
0
    av1_invalid_rd_stats(rd_stats_y);
3738
0
    return 0;
3739
0
  }
3740
3741
0
  const AV1_COMMON *cm = &cpi->common;
3742
0
  MB_MODE_INFO *const mbmi = xd->mi[0];
3743
0
  const int64_t mode_rd = RDCOST(x->rdmult, mode_rate, 0);
3744
0
  const int64_t rd_thresh =
3745
0
      ref_best_rd == INT64_MAX ? INT64_MAX : ref_best_rd - mode_rd;
3746
0
  av1_init_rd_stats(rd_stats);
3747
0
  av1_init_rd_stats(rd_stats_y);
3748
0
  rd_stats->rate = mode_rate;
3749
3750
  // cost and distortion
3751
0
  av1_subtract_plane(x, bsize, 0);
3752
0
  if (txfm_params->tx_mode_search_type == TX_MODE_SELECT &&
3753
0
      !xd->lossless[mbmi->segment_id]) {
3754
0
    av1_pick_recursive_tx_size_type_yrd(cpi, x, rd_stats_y, bsize, rd_thresh);
3755
#if CONFIG_COLLECT_RD_STATS == 2
3756
    PrintPredictionUnitStats(cpi, tile_data, x, rd_stats_y, bsize);
3757
#endif  // CONFIG_COLLECT_RD_STATS == 2
3758
0
  } else {
3759
0
    av1_pick_uniform_tx_size_type_yrd(cpi, x, rd_stats_y, bsize, rd_thresh);
3760
0
    memset(mbmi->inter_tx_size, mbmi->tx_size, sizeof(mbmi->inter_tx_size));
3761
0
  }
3762
3763
0
  if (rd_stats_y->rate == INT_MAX) return 0;
3764
3765
0
  av1_merge_rd_stats(rd_stats, rd_stats_y);
3766
3767
0
  const int64_t non_skip_txfm_rdcosty =
3768
0
      RDCOST(x->rdmult, rd_stats->rate + skip_txfm_cost[0], rd_stats->dist);
3769
0
  const int64_t skip_txfm_rdcosty =
3770
0
      RDCOST(x->rdmult, mode_rate + skip_txfm_cost[1], rd_stats->sse);
3771
0
  const int64_t min_rdcosty = AOMMIN(non_skip_txfm_rdcosty, skip_txfm_rdcosty);
3772
0
  if (min_rdcosty > ref_best_rd) return 0;
3773
3774
0
  av1_init_rd_stats(rd_stats_uv);
3775
0
  const int num_planes = av1_num_planes(cm);
3776
0
  if (num_planes > 1) {
3777
0
    int64_t ref_best_chroma_rd = ref_best_rd;
3778
    // Calculate best rd cost possible for chroma
3779
0
    if (cpi->sf.inter_sf.perform_best_rd_based_gating_for_chroma &&
3780
0
        (ref_best_chroma_rd != INT64_MAX)) {
3781
0
      ref_best_chroma_rd = (ref_best_chroma_rd -
3782
0
                            AOMMIN(non_skip_txfm_rdcosty, skip_txfm_rdcosty));
3783
0
    }
3784
0
    const int is_cost_valid_uv =
3785
0
        av1_txfm_uvrd(cpi, x, rd_stats_uv, bsize, ref_best_chroma_rd);
3786
0
    if (!is_cost_valid_uv) return 0;
3787
0
    av1_merge_rd_stats(rd_stats, rd_stats_uv);
3788
0
  }
3789
3790
0
  int choose_skip_txfm = rd_stats->skip_txfm;
3791
0
  if (!choose_skip_txfm && !xd->lossless[mbmi->segment_id]) {
3792
0
    const int64_t rdcost_no_skip_txfm = RDCOST(
3793
0
        x->rdmult, rd_stats_y->rate + rd_stats_uv->rate + skip_txfm_cost[0],
3794
0
        rd_stats->dist);
3795
0
    const int64_t rdcost_skip_txfm =
3796
0
        RDCOST(x->rdmult, skip_txfm_cost[1], rd_stats->sse);
3797
0
    if (rdcost_no_skip_txfm >= rdcost_skip_txfm) choose_skip_txfm = 1;
3798
0
  }
3799
0
  if (choose_skip_txfm) {
3800
0
    rd_stats_y->rate = 0;
3801
0
    rd_stats_uv->rate = 0;
3802
0
    rd_stats->rate = mode_rate + skip_txfm_cost[1];
3803
0
    rd_stats->dist = rd_stats->sse;
3804
0
    rd_stats_y->dist = rd_stats_y->sse;
3805
0
    rd_stats_uv->dist = rd_stats_uv->sse;
3806
0
    mbmi->skip_txfm = 1;
3807
0
    if (rd_stats->skip_txfm) {
3808
0
      const int64_t tmprd = RDCOST(x->rdmult, rd_stats->rate, rd_stats->dist);
3809
0
      if (tmprd > ref_best_rd) return 0;
3810
0
    }
3811
0
  } else {
3812
0
    rd_stats->rate += skip_txfm_cost[0];
3813
0
    mbmi->skip_txfm = 0;
3814
0
  }
3815
3816
0
  return 1;
3817
0
}