Coverage Report

Created: 2026-07-25 07:52

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libvpx/vp9/encoder/vp9_rd.c
Line
Count
Source
1
/*
2
 *  Copyright (c) 2010 The WebM project authors. All Rights Reserved.
3
 *
4
 *  Use of this source code is governed by a BSD-style license
5
 *  that can be found in the LICENSE file in the root of the source
6
 *  tree. An additional intellectual property rights grant can be found
7
 *  in the file PATENTS.  All contributing project authors may
8
 *  be found in the AUTHORS file in the root of the source tree.
9
 */
10
11
#include <assert.h>
12
#include <math.h>
13
#include <stdio.h>
14
15
#include "./vp9_rtcd.h"
16
17
#include "vpx_dsp/vpx_dsp_common.h"
18
#include "vpx_mem/vpx_mem.h"
19
#include "vpx_ports/bitops.h"
20
#include "vpx_ports/mem.h"
21
#include "vpx_ports/system_state.h"
22
23
#include "vp9/common/vp9_common.h"
24
#include "vp9/common/vp9_entropy.h"
25
#include "vp9/common/vp9_entropymode.h"
26
#include "vp9/common/vp9_mvref_common.h"
27
#include "vp9/common/vp9_pred_common.h"
28
#include "vp9/common/vp9_quant_common.h"
29
#include "vp9/common/vp9_reconinter.h"
30
#include "vp9/common/vp9_reconintra.h"
31
#include "vp9/common/vp9_seg_common.h"
32
33
#include "vp9/encoder/vp9_cost.h"
34
#include "vp9/encoder/vp9_encodemb.h"
35
#include "vp9/encoder/vp9_encodemv.h"
36
#include "vp9/encoder/vp9_encoder.h"
37
#include "vp9/encoder/vp9_mcomp.h"
38
#include "vp9/encoder/vp9_quantize.h"
39
#include "vp9/encoder/vp9_ratectrl.h"
40
#include "vp9/encoder/vp9_rd.h"
41
#include "vp9/encoder/vp9_tokenize.h"
42
43
#define RD_THRESH_POW 1.25
44
45
// Factor to weigh the rate for switchable interp filters.
46
30.1M
#define SWITCHABLE_INTERP_RATE_FACTOR 1
47
48
3.97M
void vp9_rd_cost_reset(RD_COST *rd_cost) {
49
3.97M
  rd_cost->rate = INT_MAX;
50
3.97M
  rd_cost->dist = INT64_MAX;
51
3.97M
  rd_cost->rdcost = INT64_MAX;
52
3.97M
}
53
54
5.70M
void vp9_rd_cost_init(RD_COST *rd_cost) {
55
5.70M
  rd_cost->rate = 0;
56
5.70M
  rd_cost->dist = 0;
57
5.70M
  rd_cost->rdcost = 0;
58
5.70M
}
59
60
17.2M
int64_t vp9_calculate_rd_cost(int mult, int div, int rate, int64_t dist) {
61
17.2M
  assert(mult >= 0);
62
17.2M
  assert(div > 0);
63
17.2M
  if (rate >= 0 && dist >= 0) {
64
16.5M
    return RDCOST(mult, div, rate, dist);
65
16.5M
  }
66
628k
  if (rate >= 0 && dist < 0) {
67
102k
    return RDCOST_NEG_D(mult, div, rate, -dist);
68
102k
  }
69
525k
  if (rate < 0 && dist >= 0) {
70
525k
    return RDCOST_NEG_R(mult, div, -rate, dist);
71
525k
  }
72
104
  return -RDCOST(mult, div, -rate, -dist);
73
525k
}
74
75
10.7M
void vp9_rd_cost_update(int mult, int div, RD_COST *rd_cost) {
76
10.7M
  if (rd_cost->rate < INT_MAX && rd_cost->dist < INT64_MAX) {
77
10.2M
    rd_cost->rdcost =
78
10.2M
        vp9_calculate_rd_cost(mult, div, rd_cost->rate, rd_cost->dist);
79
10.2M
  } else {
80
544k
    vp9_rd_cost_reset(rd_cost);
81
544k
  }
82
10.7M
}
83
84
// The baseline rd thresholds for breaking out of the rd loop for
85
// certain modes are assumed to be based on 8x8 blocks.
86
// This table is used to correct for block size.
87
// The factors here are << 2 (2 = x0.5, 32 = x8 etc).
88
static const uint8_t rd_thresh_block_size_factor[BLOCK_SIZES] = {
89
  2, 3, 3, 4, 6, 6, 8, 12, 12, 16, 24, 24, 32
90
};
91
92
55.8k
static void fill_mode_costs(VP9_COMP *cpi) {
93
55.8k
  const FRAME_CONTEXT *const fc = cpi->common.fc;
94
55.8k
  int i, j;
95
96
614k
  for (i = 0; i < INTRA_MODES; ++i) {
97
6.14M
    for (j = 0; j < INTRA_MODES; ++j) {
98
5.58M
      vp9_cost_tokens(cpi->y_mode_costs[i][j], vp9_kf_y_mode_prob[i][j],
99
5.58M
                      vp9_intra_mode_tree);
100
5.58M
    }
101
558k
  }
102
103
55.8k
  vp9_cost_tokens(cpi->mbmode_cost, fc->y_mode_prob[1], vp9_intra_mode_tree);
104
614k
  for (i = 0; i < INTRA_MODES; ++i) {
105
558k
    vp9_cost_tokens(cpi->intra_uv_mode_cost[KEY_FRAME][i],
106
558k
                    vp9_kf_uv_mode_prob[i], vp9_intra_mode_tree);
107
558k
    vp9_cost_tokens(cpi->intra_uv_mode_cost[INTER_FRAME][i],
108
558k
                    fc->uv_mode_prob[i], vp9_intra_mode_tree);
109
558k
  }
110
111
279k
  for (i = 0; i < SWITCHABLE_FILTER_CONTEXTS; ++i) {
112
223k
    vp9_cost_tokens(cpi->switchable_interp_costs[i],
113
223k
                    fc->switchable_interp_prob[i], vp9_switchable_interp_tree);
114
223k
  }
115
116
223k
  for (i = TX_8X8; i < TX_SIZES; ++i) {
117
502k
    for (j = 0; j < TX_SIZE_CONTEXTS; ++j) {
118
335k
      const vpx_prob *tx_probs = get_tx_probs(i, j, &fc->tx_probs);
119
335k
      int k;
120
1.34M
      for (k = 0; k <= i; ++k) {
121
1.00M
        int cost = 0;
122
1.00M
        int m;
123
2.79M
        for (m = 0; m <= k - (k == i); ++m) {
124
1.78M
          if (m == k)
125
670k
            cost += vp9_cost_zero(tx_probs[m]);
126
1.11M
          else
127
1.11M
            cost += vp9_cost_one(tx_probs[m]);
128
1.78M
        }
129
1.00M
        cpi->tx_size_cost[i - 1][j][k] = cost;
130
1.00M
      }
131
335k
    }
132
167k
  }
133
55.8k
}
134
135
static void fill_token_costs(vp9_coeff_cost *c,
136
55.8k
                             vp9_coeff_probs_model (*p)[PLANE_TYPES]) {
137
55.8k
  int i, j, k, l;
138
55.8k
  TX_SIZE t;
139
279k
  for (t = TX_4X4; t <= TX_32X32; ++t)
140
670k
    for (i = 0; i < PLANE_TYPES; ++i)
141
1.34M
      for (j = 0; j < REF_TYPES; ++j)
142
6.25M
        for (k = 0; k < COEF_BANDS; ++k)
143
34.8M
          for (l = 0; l < BAND_COEFF_CONTEXTS(k); ++l) {
144
29.5M
            vpx_prob probs[ENTROPY_NODES];
145
29.5M
            vp9_model_to_full_probs(p[t][i][j][k][l], probs);
146
29.5M
            vp9_cost_tokens((int *)c[t][i][j][k][0][l], probs, vp9_coef_tree);
147
29.5M
            vp9_cost_tokens_skip((int *)c[t][i][j][k][1][l], probs,
148
29.5M
                                 vp9_coef_tree);
149
29.5M
            assert(c[t][i][j][k][0][l][EOB_TOKEN] ==
150
29.5M
                   c[t][i][j][k][1][l][EOB_TOKEN]);
151
29.5M
          }
152
55.8k
}
153
154
// Values are now correlated to quantizer.
155
static int sad_per_bit16lut_8[QINDEX_RANGE];
156
static int sad_per_bit4lut_8[QINDEX_RANGE];
157
158
#if CONFIG_VP9_HIGHBITDEPTH
159
static int sad_per_bit16lut_10[QINDEX_RANGE];
160
static int sad_per_bit4lut_10[QINDEX_RANGE];
161
static int sad_per_bit16lut_12[QINDEX_RANGE];
162
static int sad_per_bit4lut_12[QINDEX_RANGE];
163
#endif
164
165
static void init_me_luts_bd(int *bit16lut, int *bit4lut, int range,
166
3
                            vpx_bit_depth_t bit_depth) {
167
3
  int i;
168
  // Initialize the sad lut tables using a formulaic calculation for now.
169
  // This is to make it easier to resolve the impact of experimental changes
170
  // to the quantizer tables.
171
771
  for (i = 0; i < range; i++) {
172
768
    const double q = vp9_convert_qindex_to_q(i, bit_depth);
173
768
    bit16lut[i] = (int)(0.0418 * q + 2.4107);
174
768
    bit4lut[i] = (int)(0.063 * q + 2.742);
175
768
  }
176
3
}
177
178
1
void vp9_init_me_luts(void) {
179
1
  init_me_luts_bd(sad_per_bit16lut_8, sad_per_bit4lut_8, QINDEX_RANGE,
180
1
                  VPX_BITS_8);
181
1
#if CONFIG_VP9_HIGHBITDEPTH
182
1
  init_me_luts_bd(sad_per_bit16lut_10, sad_per_bit4lut_10, QINDEX_RANGE,
183
1
                  VPX_BITS_10);
184
1
  init_me_luts_bd(sad_per_bit16lut_12, sad_per_bit4lut_12, QINDEX_RANGE,
185
1
                  VPX_BITS_12);
186
1
#endif
187
1
}
188
189
static const int rd_boost_factor[16] = { 64, 32, 32, 32, 24, 16, 12, 12,
190
                                         8,  8,  4,  4,  2,  2,  1,  0 };
191
192
// Note that the element below for frame type "USE_BUF_FRAME", which indicates
193
// that the show frame flag is set, should not be used as no real frame
194
// is encoded so we should not reach here. However, a dummy value
195
// is inserted here to make sure the data structure has the right number
196
// of values assigned.
197
static const int rd_frame_type_factor[FRAME_UPDATE_TYPES] = { 128, 144, 128,
198
                                                              128, 144, 144 };
199
200
// Configure Vizier RD parameters.
201
// Later this function will use passed in command line values.
202
3.16k
void vp9_init_rd_parameters(VP9_COMP *cpi) {
203
3.16k
  RD_CONTROL *const rdc = &cpi->rd_ctrl;
204
205
  // When |use_vizier_rc_params| is 1, we expect the rd parameters have been
206
  // initialized by the pass in values.
207
  // Be careful that parameters below are only initialized to 1, if we do not
208
  // pass values to them. It is desired to take care of each parameter when
209
  // using |use_vizier_rc_params|.
210
3.16k
  if (cpi->twopass.use_vizier_rc_params) return;
211
212
  // Make sure this function is floating point safe.
213
3.16k
  vpx_clear_system_state();
214
215
3.16k
  rdc->rd_mult_inter_qp_fac = 1.0;
216
3.16k
  rdc->rd_mult_arf_qp_fac = 1.0;
217
3.16k
  rdc->rd_mult_key_qp_fac = 1.0;
218
3.16k
}
219
220
// Returns the default rd multiplier for inter frames for a given qindex.
221
// The function here is a first pass estimate based on data from
222
// a previous Vizer run
223
4.13M
static double def_inter_rd_multiplier(int qindex) {
224
4.13M
  return 4.15 + (0.001 * (double)qindex);
225
4.13M
}
226
227
// Returns the default rd multiplier for ARF/Golden Frames for a given qindex.
228
// The function here is a first pass estimate based on data from
229
// a previous Vizer run
230
240k
static double def_arf_rd_multiplier(int qindex) {
231
240k
  return 4.25 + (0.001 * (double)qindex);
232
240k
}
233
234
// Returns the default rd multiplier for key frames for a given qindex.
235
// The function here is a first pass estimate based on data from
236
// a previous Vizer run
237
3.08M
static double def_kf_rd_multiplier(int qindex) {
238
3.08M
  return 4.35 + (0.001 * (double)qindex);
239
3.08M
}
240
241
7.45M
int vp9_compute_rd_mult_based_on_qindex(const VP9_COMP *cpi, int qindex) {
242
7.45M
  const RD_CONTROL *rdc = &cpi->rd_ctrl;
243
7.45M
  const int q = vp9_dc_quant(qindex, 0, cpi->common.bit_depth);
244
  // largest dc_quant is 21387, therefore rdmult should fit in int32_t
245
7.45M
  int rdmult = q * q;
246
247
7.45M
  if (cpi->ext_ratectrl.ready &&
248
0
      (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_RDMULT) != 0 &&
249
0
      cpi->ext_ratectrl.ext_rdmult != VPX_DEFAULT_RDMULT) {
250
0
    return cpi->ext_ratectrl.ext_rdmult;
251
0
  }
252
253
  // Make sure this function is floating point safe.
254
7.45M
  vpx_clear_system_state();
255
256
7.45M
  if (cpi->common.frame_type == KEY_FRAME) {
257
3.08M
    double def_rd_q_mult = def_kf_rd_multiplier(qindex);
258
3.08M
    rdmult = (int)((double)rdmult * def_rd_q_mult * rdc->rd_mult_key_qp_fac);
259
4.37M
  } else if (!cpi->rc.is_src_frame_alt_ref &&
260
4.37M
             (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame)) {
261
240k
    double def_rd_q_mult = def_arf_rd_multiplier(qindex);
262
240k
    rdmult = (int)((double)rdmult * def_rd_q_mult * rdc->rd_mult_arf_qp_fac);
263
4.13M
  } else {
264
4.13M
    double def_rd_q_mult = def_inter_rd_multiplier(qindex);
265
4.13M
    rdmult = (int)((double)rdmult * def_rd_q_mult * rdc->rd_mult_inter_qp_fac);
266
4.13M
  }
267
268
7.45M
#if CONFIG_VP9_HIGHBITDEPTH
269
7.45M
  switch (cpi->common.bit_depth) {
270
0
    case VPX_BITS_10: rdmult = ROUND_POWER_OF_TWO(rdmult, 4); break;
271
0
    case VPX_BITS_12: rdmult = ROUND_POWER_OF_TWO(rdmult, 8); break;
272
7.45M
    default: break;
273
7.45M
  }
274
7.45M
#endif  // CONFIG_VP9_HIGHBITDEPTH
275
7.45M
  return rdmult > 0 ? rdmult : 1;
276
7.45M
}
277
278
7.45M
static int modulate_rdmult(const VP9_COMP *cpi, int rdmult) {
279
7.45M
  int64_t rdmult_64 = rdmult;
280
7.45M
  if (cpi->oxcf.pass == 2 && (cpi->common.frame_type != KEY_FRAME)) {
281
0
    const GF_GROUP *const gf_group = &cpi->twopass.gf_group;
282
0
    const FRAME_UPDATE_TYPE frame_type = gf_group->update_type[gf_group->index];
283
0
    const int gfu_boost = cpi->multi_layer_arf
284
0
                              ? gf_group->gfu_boost[gf_group->index]
285
0
                              : cpi->rc.gfu_boost;
286
0
    const int boost_index = VPXMIN(15, (gfu_boost / 100));
287
288
0
    rdmult_64 = (rdmult_64 * rd_frame_type_factor[frame_type]) >> 7;
289
0
    rdmult_64 += ((rdmult_64 * rd_boost_factor[boost_index]) >> 7);
290
0
  }
291
7.45M
  return (int)rdmult_64;
292
7.45M
}
293
294
7.45M
int vp9_compute_rd_mult(const VP9_COMP *cpi, int qindex) {
295
7.45M
  int rdmult = vp9_compute_rd_mult_based_on_qindex(cpi, qindex);
296
7.45M
  if (cpi->ext_ratectrl.ready &&
297
0
      (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_RDMULT) != 0 &&
298
0
      cpi->ext_ratectrl.ext_rdmult != VPX_DEFAULT_RDMULT) {
299
0
    return cpi->ext_ratectrl.ext_rdmult;
300
0
  }
301
7.45M
  return modulate_rdmult(cpi, rdmult);
302
7.45M
}
303
304
0
int vp9_get_adaptive_rdmult(const VP9_COMP *cpi, double beta) {
305
0
  int rdmult =
306
0
      vp9_compute_rd_mult_based_on_qindex(cpi, cpi->common.base_qindex);
307
0
  rdmult = (int)((double)rdmult / beta);
308
0
  rdmult = rdmult > 0 ? rdmult : 1;
309
0
  return modulate_rdmult(cpi, rdmult);
310
0
}
311
312
447k
static int compute_rd_thresh_factor(int qindex, vpx_bit_depth_t bit_depth) {
313
447k
  double q;
314
447k
#if CONFIG_VP9_HIGHBITDEPTH
315
447k
  switch (bit_depth) {
316
447k
    case VPX_BITS_8: q = vp9_dc_quant(qindex, 0, VPX_BITS_8) / 4.0; break;
317
0
    case VPX_BITS_10: q = vp9_dc_quant(qindex, 0, VPX_BITS_10) / 16.0; break;
318
0
    default:
319
0
      assert(bit_depth == VPX_BITS_12);
320
0
      q = vp9_dc_quant(qindex, 0, VPX_BITS_12) / 64.0;
321
0
      break;
322
447k
  }
323
#else
324
  (void)bit_depth;
325
  q = vp9_dc_quant(qindex, 0, VPX_BITS_8) / 4.0;
326
#endif  // CONFIG_VP9_HIGHBITDEPTH
327
  // TODO(debargha): Adjust the function below.
328
447k
  return VPXMAX((int)(pow(q, RD_THRESH_POW) * 5.12), 8);
329
447k
}
330
331
7.45M
void vp9_initialize_me_consts(VP9_COMP *cpi, MACROBLOCK *x, int qindex) {
332
7.45M
#if CONFIG_VP9_HIGHBITDEPTH
333
7.45M
  switch (cpi->common.bit_depth) {
334
7.45M
    case VPX_BITS_8:
335
7.45M
      x->sadperbit16 = sad_per_bit16lut_8[qindex];
336
7.45M
      x->sadperbit4 = sad_per_bit4lut_8[qindex];
337
7.45M
      break;
338
0
    case VPX_BITS_10:
339
0
      x->sadperbit16 = sad_per_bit16lut_10[qindex];
340
0
      x->sadperbit4 = sad_per_bit4lut_10[qindex];
341
0
      break;
342
0
    default:
343
0
      assert(cpi->common.bit_depth == VPX_BITS_12);
344
0
      x->sadperbit16 = sad_per_bit16lut_12[qindex];
345
0
      x->sadperbit4 = sad_per_bit4lut_12[qindex];
346
0
      break;
347
7.45M
  }
348
#else
349
  (void)cpi;
350
  x->sadperbit16 = sad_per_bit16lut_8[qindex];
351
  x->sadperbit4 = sad_per_bit4lut_8[qindex];
352
#endif  // CONFIG_VP9_HIGHBITDEPTH
353
7.45M
}
354
355
55.8k
static void set_block_thresholds(const VP9_COMMON *cm, RD_OPT *rd) {
356
55.8k
  int i, bsize, segment_id;
357
358
502k
  for (segment_id = 0; segment_id < MAX_SEGMENTS; ++segment_id) {
359
447k
    const int qindex =
360
447k
        clamp(vp9_get_qindex(&cm->seg, segment_id, cm->base_qindex) +
361
447k
                  cm->y_dc_delta_q,
362
447k
              0, MAXQ);
363
447k
    const int q = compute_rd_thresh_factor(qindex, cm->bit_depth);
364
365
6.25M
    for (bsize = 0; bsize < BLOCK_SIZES; ++bsize) {
366
      // Threshold here seems unnecessarily harsh but fine given actual
367
      // range of values used for cpi->sf.thresh_mult[].
368
5.81M
      const int t = q * rd_thresh_block_size_factor[bsize];
369
5.81M
      const int thresh_max = INT_MAX / t;
370
371
5.81M
      if (bsize >= BLOCK_8X8) {
372
138M
        for (i = 0; i < MAX_MODES; ++i)
373
134M
          rd->threshes[segment_id][bsize][i] = rd->thresh_mult[i] < thresh_max
374
134M
                                                   ? rd->thresh_mult[i] * t / 4
375
134M
                                                   : INT_MAX;
376
4.47M
      } else {
377
9.38M
        for (i = 0; i < MAX_REFS; ++i)
378
8.04M
          rd->threshes[segment_id][bsize][i] =
379
8.04M
              rd->thresh_mult_sub8x8[i] < thresh_max
380
8.04M
                  ? rd->thresh_mult_sub8x8[i] * t / 4
381
8.04M
                  : INT_MAX;
382
1.34M
      }
383
5.81M
    }
384
447k
  }
385
55.8k
}
386
387
43.7k
void vp9_build_inter_mode_cost(VP9_COMP *cpi) {
388
43.7k
  const VP9_COMMON *const cm = &cpi->common;
389
43.7k
  int i;
390
349k
  for (i = 0; i < INTER_MODE_CONTEXTS; ++i) {
391
306k
    vp9_cost_tokens((int *)cpi->inter_mode_cost[i], cm->fc->inter_mode_probs[i],
392
306k
                    vp9_inter_mode_tree);
393
306k
  }
394
43.7k
}
395
396
55.8k
void vp9_initialize_rd_consts(VP9_COMP *cpi) {
397
55.8k
  VP9_COMMON *const cm = &cpi->common;
398
55.8k
  MACROBLOCK *const x = &cpi->td.mb;
399
55.8k
  MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
400
55.8k
  RD_OPT *const rd = &cpi->rd;
401
55.8k
  int i;
402
403
55.8k
  vpx_clear_system_state();
404
405
55.8k
  rd->RDDIV = RDDIV_BITS;  // In bits (to multiply D by 128).
406
55.8k
  rd->RDMULT = vp9_compute_rd_mult(cpi, cm->base_qindex + cm->y_dc_delta_q);
407
408
55.8k
  set_error_per_bit(x, rd->RDMULT);
409
410
55.8k
  x->select_tx_size = (cpi->sf.tx_size_search_method == USE_LARGESTALL &&
411
24.4k
                       cm->frame_type != KEY_FRAME)
412
55.8k
                          ? 0
413
55.8k
                          : 1;
414
415
55.8k
  set_block_thresholds(cm, rd);
416
55.8k
  set_partition_probs(cm, xd);
417
418
55.8k
  if (cpi->oxcf.pass == 1) {
419
0
    if (!frame_is_intra_only(cm))
420
0
      vp9_build_nmv_cost_table(
421
0
          x->nmvjointcost,
422
0
          cm->allow_high_precision_mv ? x->nmvcost_hp : x->nmvcost,
423
0
          &cm->fc->nmvc, cm->allow_high_precision_mv);
424
55.8k
  } else {
425
55.8k
    if (!cpi->sf.use_nonrd_pick_mode || cm->frame_type == KEY_FRAME)
426
55.8k
      fill_token_costs(x->token_costs, cm->fc->coef_probs);
427
428
55.8k
    if (cpi->sf.partition_search_type != VAR_BASED_PARTITION ||
429
55.8k
        cm->frame_type == KEY_FRAME) {
430
949k
      for (i = 0; i < PARTITION_CONTEXTS; ++i)
431
894k
        vp9_cost_tokens(cpi->partition_cost[i], get_partition_probs(xd, i),
432
894k
                        vp9_partition_tree);
433
55.8k
    }
434
435
55.8k
    if (!cpi->sf.use_nonrd_pick_mode || (cm->current_video_frame & 0x07) == 1 ||
436
55.8k
        cm->frame_type == KEY_FRAME) {
437
55.8k
      fill_mode_costs(cpi);
438
439
55.8k
      if (!frame_is_intra_only(cm)) {
440
43.7k
        vp9_build_nmv_cost_table(
441
43.7k
            x->nmvjointcost,
442
43.7k
            cm->allow_high_precision_mv ? x->nmvcost_hp : x->nmvcost,
443
43.7k
            &cm->fc->nmvc, cm->allow_high_precision_mv);
444
43.7k
        vp9_build_inter_mode_cost(cpi);
445
43.7k
      }
446
55.8k
    }
447
55.8k
  }
448
55.8k
}
449
450
// NOTE: The tables below must be of the same size.
451
452
// The functions described below are sampled at the four most significant
453
// bits of x^2 + 8 / 256.
454
455
// Normalized rate:
456
// This table models the rate for a Laplacian source with given variance
457
// when quantized with a uniform quantizer with given stepsize. The
458
// closed form expression is:
459
// Rn(x) = H(sqrt(r)) + sqrt(r)*[1 + H(r)/(1 - r)],
460
// where r = exp(-sqrt(2) * x) and x = qpstep / sqrt(variance),
461
// and H(x) is the binary entropy function.
462
static const int rate_tab_q10[] = {
463
  65536, 6086, 5574, 5275, 5063, 4899, 4764, 4651, 4553, 4389, 4255, 4142, 4044,
464
  3958,  3881, 3811, 3748, 3635, 3538, 3453, 3376, 3307, 3244, 3186, 3133, 3037,
465
  2952,  2877, 2809, 2747, 2690, 2638, 2589, 2501, 2423, 2353, 2290, 2232, 2179,
466
  2130,  2084, 2001, 1928, 1862, 1802, 1748, 1698, 1651, 1608, 1530, 1460, 1398,
467
  1342,  1290, 1243, 1199, 1159, 1086, 1021, 963,  911,  864,  821,  781,  745,
468
  680,   623,  574,  530,  490,  455,  424,  395,  345,  304,  269,  239,  213,
469
  190,   171,  154,  126,  104,  87,   73,   61,   52,   44,   38,   28,   21,
470
  16,    12,   10,   8,    6,    5,    3,    2,    1,    1,    1,    0,    0,
471
};
472
473
// Normalized distortion:
474
// This table models the normalized distortion for a Laplacian source
475
// with given variance when quantized with a uniform quantizer
476
// with given stepsize. The closed form expression is:
477
// Dn(x) = 1 - 1/sqrt(2) * x / sinh(x/sqrt(2))
478
// where x = qpstep / sqrt(variance).
479
// Note the actual distortion is Dn * variance.
480
static const int dist_tab_q10[] = {
481
  0,    0,    1,    1,    1,    2,    2,    2,    3,    3,    4,    5,    5,
482
  6,    7,    7,    8,    9,    11,   12,   13,   15,   16,   17,   18,   21,
483
  24,   26,   29,   31,   34,   36,   39,   44,   49,   54,   59,   64,   69,
484
  73,   78,   88,   97,   106,  115,  124,  133,  142,  151,  167,  184,  200,
485
  215,  231,  245,  260,  274,  301,  327,  351,  375,  397,  418,  439,  458,
486
  495,  528,  559,  587,  613,  637,  659,  680,  717,  749,  777,  801,  823,
487
  842,  859,  874,  899,  919,  936,  949,  960,  969,  977,  983,  994,  1001,
488
  1006, 1010, 1013, 1015, 1017, 1018, 1020, 1022, 1022, 1023, 1023, 1023, 1024,
489
};
490
static const int xsq_iq_q10[] = {
491
  0,      4,      8,      12,     16,     20,     24,     28,     32,
492
  40,     48,     56,     64,     72,     80,     88,     96,     112,
493
  128,    144,    160,    176,    192,    208,    224,    256,    288,
494
  320,    352,    384,    416,    448,    480,    544,    608,    672,
495
  736,    800,    864,    928,    992,    1120,   1248,   1376,   1504,
496
  1632,   1760,   1888,   2016,   2272,   2528,   2784,   3040,   3296,
497
  3552,   3808,   4064,   4576,   5088,   5600,   6112,   6624,   7136,
498
  7648,   8160,   9184,   10208,  11232,  12256,  13280,  14304,  15328,
499
  16352,  18400,  20448,  22496,  24544,  26592,  28640,  30688,  32736,
500
  36832,  40928,  45024,  49120,  53216,  57312,  61408,  65504,  73696,
501
  81888,  90080,  98272,  106464, 114656, 122848, 131040, 147424, 163808,
502
  180192, 196576, 212960, 229344, 245728,
503
};
504
505
55.5M
static void model_rd_norm(int xsq_q10, int *r_q10, int *d_q10) {
506
55.5M
  const int tmp = (xsq_q10 >> 2) + 8;
507
55.5M
  const int k = get_msb(tmp) - 3;
508
55.5M
  const int xq = (k << 3) + ((tmp >> k) & 0x7);
509
55.5M
  const int one_q10 = 1 << 10;
510
55.5M
  const int a_q10 = ((xsq_q10 - xsq_iq_q10[xq]) << 10) >> (2 + k);
511
55.5M
  const int b_q10 = one_q10 - a_q10;
512
55.5M
  *r_q10 = (rate_tab_q10[xq] * b_q10 + rate_tab_q10[xq + 1] * a_q10) >> 10;
513
55.5M
  *d_q10 = (dist_tab_q10[xq] * b_q10 + dist_tab_q10[xq + 1] * a_q10) >> 10;
514
55.5M
}
515
516
static const uint32_t MAX_XSQ_Q10 = 245727;
517
518
void vp9_model_rd_from_var_lapndz(unsigned int var, unsigned int n_log2,
519
                                  unsigned int qstep, int *rate,
520
58.6M
                                  int64_t *dist) {
521
  // This function models the rate and distortion for a Laplacian
522
  // source with given variance when quantized with a uniform quantizer
523
  // with given stepsize. The closed form expressions are in:
524
  // Hang and Chen, "Source Model for transform video coder and its
525
  // application - Part I: Fundamental Theory", IEEE Trans. Circ.
526
  // Sys. for Video Tech., April 1997.
527
58.6M
  if (var == 0) {
528
3.09M
    *rate = 0;
529
3.09M
    *dist = 0;
530
55.5M
  } else {
531
55.5M
    int d_q10, r_q10;
532
55.5M
    const uint64_t xsq_q10_64 =
533
55.5M
        (((uint64_t)qstep * qstep << (n_log2 + 10)) + (var >> 1)) / var;
534
55.5M
    const int xsq_q10 = (int)VPXMIN(xsq_q10_64, MAX_XSQ_Q10);
535
55.5M
    model_rd_norm(xsq_q10, &r_q10, &d_q10);
536
55.5M
    *rate = ROUND_POWER_OF_TWO(r_q10 << n_log2, 10 - VP9_PROB_COST_SHIFT);
537
55.5M
    *dist = (var * (int64_t)d_q10 + 512) >> 10;
538
55.5M
  }
539
58.6M
}
540
541
// Disable gcc 12.2 false positive warning.
542
// warning: writing 1 byte into a region of size 0 [-Wstringop-overflow=]
543
#if defined(__GNUC__) && !defined(__clang__)
544
#pragma GCC diagnostic push
545
#pragma GCC diagnostic ignored "-Wstringop-overflow"
546
#endif
547
void vp9_get_entropy_contexts(BLOCK_SIZE bsize, TX_SIZE tx_size,
548
                              const struct macroblockd_plane *pd,
549
                              ENTROPY_CONTEXT t_above[16],
550
158M
                              ENTROPY_CONTEXT t_left[16]) {
551
158M
  const BLOCK_SIZE plane_bsize = get_plane_block_size(bsize, pd);
552
158M
  const int num_4x4_w = num_4x4_blocks_wide_lookup[plane_bsize];
553
158M
  const int num_4x4_h = num_4x4_blocks_high_lookup[plane_bsize];
554
158M
  const ENTROPY_CONTEXT *const above = pd->above_context;
555
158M
  const ENTROPY_CONTEXT *const left = pd->left_context;
556
557
158M
  int i;
558
158M
  switch (tx_size) {
559
105M
    case TX_4X4:
560
105M
      memcpy(t_above, above, sizeof(ENTROPY_CONTEXT) * num_4x4_w);
561
105M
      memcpy(t_left, left, sizeof(ENTROPY_CONTEXT) * num_4x4_h);
562
105M
      break;
563
42.1M
    case TX_8X8:
564
93.4M
      for (i = 0; i < num_4x4_w; i += 2)
565
51.3M
        t_above[i] = !!*(const uint16_t *)&above[i];
566
93.3M
      for (i = 0; i < num_4x4_h; i += 2)
567
51.1M
        t_left[i] = !!*(const uint16_t *)&left[i];
568
42.1M
      break;
569
9.09M
    case TX_16X16:
570
20.3M
      for (i = 0; i < num_4x4_w; i += 4)
571
11.2M
        t_above[i] = !!*(const uint32_t *)&above[i];
572
20.2M
      for (i = 0; i < num_4x4_h; i += 4)
573
11.1M
        t_left[i] = !!*(const uint32_t *)&left[i];
574
9.09M
      break;
575
2.39M
    default:
576
2.39M
      assert(tx_size == TX_32X32);
577
5.51M
      for (i = 0; i < num_4x4_w; i += 8)
578
3.11M
        t_above[i] = !!*(const uint64_t *)&above[i];
579
5.42M
      for (i = 0; i < num_4x4_h; i += 8)
580
3.02M
        t_left[i] = !!*(const uint64_t *)&left[i];
581
2.39M
      break;
582
158M
  }
583
158M
}
584
#if defined(__GNUC__) && !defined(__clang__)
585
#pragma GCC diagnostic pop
586
#endif
587
588
void vp9_mv_pred(VP9_COMP *cpi, MACROBLOCK *x, uint8_t *ref_y_buffer,
589
4.89M
                 int ref_y_stride, int ref_frame, BLOCK_SIZE block_size) {
590
4.89M
  int i;
591
4.89M
  int zero_seen = 0;
592
4.89M
  int best_index = 0;
593
4.89M
  int best_sad = INT_MAX;
594
4.89M
  int this_sad = INT_MAX;
595
4.89M
  int max_mv = 0;
596
4.89M
  int near_same_nearest;
597
4.89M
  uint8_t *src_y_ptr = x->plane[0].src.buf;
598
4.89M
  uint8_t *ref_y_ptr;
599
4.89M
  const int num_mv_refs =
600
4.89M
      MAX_MV_REF_CANDIDATES + (block_size < x->max_partition_size);
601
602
4.89M
  MV pred_mv[3];
603
4.89M
  pred_mv[0] = x->mbmi_ext->ref_mvs[ref_frame][0].as_mv;
604
4.89M
  pred_mv[1] = x->mbmi_ext->ref_mvs[ref_frame][1].as_mv;
605
4.89M
  pred_mv[2] = x->pred_mv[ref_frame];
606
4.89M
  assert(num_mv_refs <= (int)(sizeof(pred_mv) / sizeof(pred_mv[0])));
607
608
4.89M
  near_same_nearest = x->mbmi_ext->ref_mvs[ref_frame][0].as_int ==
609
4.89M
                      x->mbmi_ext->ref_mvs[ref_frame][1].as_int;
610
611
  // Get the sad for each candidate reference mv.
612
19.5M
  for (i = 0; i < num_mv_refs; ++i) {
613
14.6M
    const MV *this_mv = &pred_mv[i];
614
14.6M
    int fp_row, fp_col;
615
14.6M
    if (this_mv->row == INT16_MAX || this_mv->col == INT16_MAX) continue;
616
14.1M
    if (i == 1 && near_same_nearest) continue;
617
12.3M
    fp_row = (this_mv->row + 3 + (this_mv->row >= 0)) >> 3;
618
12.3M
    fp_col = (this_mv->col + 3 + (this_mv->col >= 0)) >> 3;
619
12.3M
    max_mv = VPXMAX(max_mv, VPXMAX(abs(this_mv->row), abs(this_mv->col)) >> 3);
620
621
12.3M
    if (fp_row == 0 && fp_col == 0 && zero_seen) continue;
622
12.0M
    zero_seen |= (fp_row == 0 && fp_col == 0);
623
624
12.0M
    ref_y_ptr = &ref_y_buffer[ref_y_stride * fp_row + fp_col];
625
    // Find sad for current vector.
626
12.0M
    this_sad = cpi->fn_ptr[block_size].sdf(src_y_ptr, x->plane[0].src.stride,
627
12.0M
                                           ref_y_ptr, ref_y_stride);
628
    // Note if it is the best so far.
629
12.0M
    if (this_sad < best_sad) {
630
8.20M
      best_sad = this_sad;
631
8.20M
      best_index = i;
632
8.20M
    }
633
12.0M
  }
634
635
  // Note the index of the mv that worked best in the reference list.
636
4.89M
  x->mv_best_ref_index[ref_frame] = best_index;
637
4.89M
  x->max_mv_context[ref_frame] = max_mv;
638
4.89M
  x->pred_mv_sad[ref_frame] = best_sad;
639
4.89M
}
640
641
void vp9_setup_pred_block(const MACROBLOCKD *xd,
642
                          struct buf_2d dst[MAX_MB_PLANE],
643
                          const YV12_BUFFER_CONFIG *src, int mi_row, int mi_col,
644
                          const struct scale_factors *scale,
645
8.95M
                          const struct scale_factors *scale_uv) {
646
8.95M
  int i;
647
648
8.95M
  dst[0].buf = src->y_buffer;
649
8.95M
  dst[0].stride = src->y_stride;
650
8.95M
  dst[1].buf = src->u_buffer;
651
8.95M
  dst[2].buf = src->v_buffer;
652
8.95M
  dst[1].stride = dst[2].stride = src->uv_stride;
653
654
35.8M
  for (i = 0; i < MAX_MB_PLANE; ++i) {
655
26.8M
    setup_pred_plane(dst + i, dst[i].buf, dst[i].stride, mi_row, mi_col,
656
26.8M
                     i ? scale_uv : scale, xd->plane[i].subsampling_x,
657
26.8M
                     xd->plane[i].subsampling_y);
658
26.8M
  }
659
8.95M
}
660
661
int vp9_raster_block_offset(BLOCK_SIZE plane_bsize, int raster_block,
662
268M
                            int stride) {
663
268M
  const int bw = b_width_log2_lookup[plane_bsize];
664
268M
  const int y = 4 * (raster_block >> bw);
665
268M
  const int x = 4 * (raster_block & ((1 << bw) - 1));
666
268M
  return y * stride + x;
667
268M
}
668
669
int16_t *vp9_raster_block_offset_int16(BLOCK_SIZE plane_bsize, int raster_block,
670
185M
                                       int16_t *base) {
671
185M
  const int stride = 4 * num_4x4_blocks_wide_lookup[plane_bsize];
672
185M
  return base + vp9_raster_block_offset(plane_bsize, raster_block, stride);
673
185M
}
674
675
YV12_BUFFER_CONFIG *vp9_get_scaled_ref_frame(const VP9_COMP *cpi,
676
9.03M
                                             int ref_frame) {
677
9.03M
  const VP9_COMMON *const cm = &cpi->common;
678
9.03M
  const int scaled_idx = cpi->scaled_ref_idx[ref_frame - 1];
679
9.03M
  const int ref_idx = get_ref_frame_buf_idx(cpi, ref_frame);
680
9.03M
  assert(ref_frame >= LAST_FRAME && ref_frame <= ALTREF_FRAME);
681
9.03M
  return (scaled_idx != ref_idx && scaled_idx != INVALID_IDX)
682
9.03M
             ? &cm->buffer_pool->frame_bufs[scaled_idx].buf
683
9.03M
             : NULL;
684
9.03M
}
685
686
30.1M
int vp9_get_switchable_rate(const VP9_COMP *cpi, const MACROBLOCKD *const xd) {
687
30.1M
  const MODE_INFO *const mi = xd->mi[0];
688
30.1M
  const int ctx = get_pred_context_switchable_interp(xd);
689
30.1M
  return SWITCHABLE_INTERP_RATE_FACTOR *
690
30.1M
         cpi->switchable_interp_costs[ctx][mi->interp_filter];
691
30.1M
}
692
693
55.8k
void vp9_set_rd_speed_thresholds(VP9_COMP *cpi) {
694
55.8k
  int i;
695
55.8k
  RD_OPT *const rd = &cpi->rd;
696
55.8k
  SPEED_FEATURES *const sf = &cpi->sf;
697
698
  // Set baseline threshold values.
699
1.73M
  for (i = 0; i < MAX_MODES; ++i)
700
1.67M
    rd->thresh_mult[i] = cpi->oxcf.mode == BEST ? -500 : 0;
701
702
55.8k
  if (sf->adaptive_rd_thresh) {
703
55.8k
    rd->thresh_mult[THR_NEARESTMV] = 300;
704
55.8k
    rd->thresh_mult[THR_NEARESTG] = 300;
705
55.8k
    rd->thresh_mult[THR_NEARESTA] = 300;
706
55.8k
  } else {
707
0
    rd->thresh_mult[THR_NEARESTMV] = 0;
708
0
    rd->thresh_mult[THR_NEARESTG] = 0;
709
0
    rd->thresh_mult[THR_NEARESTA] = 0;
710
0
  }
711
712
55.8k
  rd->thresh_mult[THR_DC] += 1000;
713
714
55.8k
  rd->thresh_mult[THR_NEWMV] += 1000;
715
55.8k
  rd->thresh_mult[THR_NEWA] += 1000;
716
55.8k
  rd->thresh_mult[THR_NEWG] += 1000;
717
718
55.8k
  rd->thresh_mult[THR_NEARMV] += 1000;
719
55.8k
  rd->thresh_mult[THR_NEARA] += 1000;
720
55.8k
  rd->thresh_mult[THR_COMP_NEARESTLA] += 1000;
721
55.8k
  rd->thresh_mult[THR_COMP_NEARESTGA] += 1000;
722
723
55.8k
  rd->thresh_mult[THR_TM] += 1000;
724
725
55.8k
  rd->thresh_mult[THR_COMP_NEARLA] += 1500;
726
55.8k
  rd->thresh_mult[THR_COMP_NEWLA] += 2000;
727
55.8k
  rd->thresh_mult[THR_NEARG] += 1000;
728
55.8k
  rd->thresh_mult[THR_COMP_NEARGA] += 1500;
729
55.8k
  rd->thresh_mult[THR_COMP_NEWGA] += 2000;
730
731
55.8k
  rd->thresh_mult[THR_ZEROMV] += 2000;
732
55.8k
  rd->thresh_mult[THR_ZEROG] += 2000;
733
55.8k
  rd->thresh_mult[THR_ZEROA] += 2000;
734
55.8k
  rd->thresh_mult[THR_COMP_ZEROLA] += 2500;
735
55.8k
  rd->thresh_mult[THR_COMP_ZEROGA] += 2500;
736
737
55.8k
  rd->thresh_mult[THR_H_PRED] += 2000;
738
55.8k
  rd->thresh_mult[THR_V_PRED] += 2000;
739
55.8k
  rd->thresh_mult[THR_D45_PRED] += 2500;
740
55.8k
  rd->thresh_mult[THR_D135_PRED] += 2500;
741
55.8k
  rd->thresh_mult[THR_D117_PRED] += 2500;
742
55.8k
  rd->thresh_mult[THR_D153_PRED] += 2500;
743
55.8k
  rd->thresh_mult[THR_D207_PRED] += 2500;
744
55.8k
  rd->thresh_mult[THR_D63_PRED] += 2500;
745
55.8k
}
746
747
55.8k
void vp9_set_rd_speed_thresholds_sub8x8(VP9_COMP *cpi) {
748
55.8k
  static const int thresh_mult[2][MAX_REFS] = {
749
55.8k
    { 2500, 2500, 2500, 4500, 4500, 2500 },
750
55.8k
    { 2000, 2000, 2000, 4000, 4000, 2000 }
751
55.8k
  };
752
55.8k
  RD_OPT *const rd = &cpi->rd;
753
55.8k
  const int idx = cpi->oxcf.mode == BEST;
754
55.8k
  memcpy(rd->thresh_mult_sub8x8, thresh_mult[idx], sizeof(thresh_mult[idx]));
755
55.8k
}
756
757
void vp9_update_rd_thresh_fact(int (*factor_buf)[MAX_MODES], int rd_thresh,
758
2.53M
                               int bsize, int best_mode_index) {
759
2.53M
  if (rd_thresh > 0) {
760
2.53M
    const int top_mode = bsize < BLOCK_8X8 ? MAX_REFS : MAX_MODES;
761
2.53M
    int mode;
762
61.7M
    for (mode = 0; mode < top_mode; ++mode) {
763
59.2M
      const BLOCK_SIZE min_size = VPXMAX(bsize - 1, BLOCK_4X4);
764
59.2M
      const BLOCK_SIZE max_size = VPXMIN(bsize + 2, BLOCK_64X64);
765
59.2M
      BLOCK_SIZE bs;
766
291M
      for (bs = min_size; bs <= max_size; ++bs) {
767
232M
        int *const fact = &factor_buf[bs][mode];
768
232M
        if (mode == best_mode_index) {
769
9.60M
          *fact -= (*fact >> 4);
770
223M
        } else {
771
223M
          *fact = VPXMIN(*fact + RD_THRESH_INC, rd_thresh * RD_THRESH_MAX_FACT);
772
223M
        }
773
232M
      }
774
59.2M
    }
775
2.53M
  }
776
2.53M
}
777
778
int vp9_get_intra_cost_penalty(const VP9_COMP *const cpi, BLOCK_SIZE bsize,
779
4.28M
                               int qindex, int qdelta) {
780
  // Reduce the intra cost penalty for small blocks (<=16x16).
781
4.28M
  int reduction_fac =
782
4.28M
      (bsize <= BLOCK_16X16) ? ((bsize <= BLOCK_8X8) ? 4 : 2) : 0;
783
784
4.28M
  if (cpi->noise_estimate.enabled && cpi->noise_estimate.level == kHigh)
785
    // Don't reduce intra cost penalty if estimated noise level is high.
786
0
    reduction_fac = 0;
787
788
  // Always use VPX_BITS_8 as input here because the penalty is applied
789
  // to rate not distortion so we want a consistent penalty for all bit
790
  // depths. If the actual bit depth were passed in here then the value
791
  // retured by vp9_dc_quant() would scale with the bit depth and we would
792
  // then need to apply inverse scaling to correct back to a bit depth
793
  // independent rate penalty.
794
4.28M
  return (20 * vp9_dc_quant(qindex, qdelta, VPX_BITS_8)) >> reduction_fac;
795
4.28M
}