Coverage Report

Created: 2025-11-16 07:20

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libvpx/vp9/encoder/vp9_encoder.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 <limits.h>
12
#include <math.h>
13
#include <stdint.h>
14
#include <stdio.h>
15
#include <stdlib.h>
16
#include <string.h>
17
18
#include "./vp9_rtcd.h"
19
#include "./vpx_config.h"
20
#include "./vpx_dsp_rtcd.h"
21
#include "./vpx_scale_rtcd.h"
22
#include "vpx/vpx_codec.h"
23
#include "vpx/vpx_ext_ratectrl.h"
24
#include "vpx_dsp/psnr.h"
25
#include "vpx_dsp/vpx_dsp_common.h"
26
#include "vpx_dsp/vpx_filter.h"
27
#if CONFIG_INTERNAL_STATS
28
#include "vpx_dsp/ssim.h"
29
#endif
30
#include "vpx_mem/vpx_mem.h"
31
#include "vpx_ports/mem.h"
32
#include "vpx_ports/system_state.h"
33
#include "vpx_ports/vpx_once.h"
34
#include "vpx_ports/vpx_timer.h"
35
#include "vpx_util/vpx_pthread.h"
36
#if CONFIG_BITSTREAM_DEBUG || CONFIG_MISMATCH_DEBUG
37
#include "vpx_util/vpx_debug_util.h"
38
#endif  // CONFIG_BITSTREAM_DEBUG || CONFIG_MISMATCH_DEBUG
39
40
#include "vp9/common/vp9_alloccommon.h"
41
#include "vp9/common/vp9_blockd.h"
42
#include "vp9/common/vp9_enums.h"
43
#include "vp9/common/vp9_filter.h"
44
#include "vp9/common/vp9_idct.h"
45
#if CONFIG_VP9_POSTPROC
46
#include "vp9/common/vp9_postproc.h"
47
#endif
48
#include "vp9/common/vp9_reconinter.h"
49
#include "vp9/common/vp9_reconintra.h"
50
#include "vp9/common/vp9_scale.h"
51
#include "vp9/common/vp9_tile_common.h"
52
53
#if !CONFIG_REALTIME_ONLY
54
#include "vp9/encoder/vp9_alt_ref_aq.h"
55
#include "vp9/encoder/vp9_aq_360.h"
56
#include "vp9/encoder/vp9_aq_complexity.h"
57
#endif
58
#include "vp9/encoder/vp9_aq_cyclicrefresh.h"
59
#if !CONFIG_REALTIME_ONLY
60
#include "vp9/encoder/vp9_aq_variance.h"
61
#endif
62
#include "vp9/encoder/vp9_bitstream.h"
63
#if CONFIG_INTERNAL_STATS
64
#include "vp9/encoder/vp9_blockiness.h"
65
#endif
66
#include "vp9/encoder/vp9_context_tree.h"
67
#include "vp9/encoder/vp9_encodeframe.h"
68
#include "vp9/encoder/vp9_encodemb.h"
69
#include "vp9/encoder/vp9_encodemv.h"
70
#include "vp9/encoder/vp9_encoder.h"
71
#include "vp9/encoder/vp9_ethread.h"
72
#include "vp9/encoder/vp9_extend.h"
73
#include "vp9/encoder/vp9_firstpass.h"
74
#include "vp9/encoder/vp9_mbgraph.h"
75
#if CONFIG_NON_GREEDY_MV
76
#include "vp9/encoder/vp9_mcomp.h"
77
#endif
78
#include "vp9/encoder/vp9_multi_thread.h"
79
#include "vp9/encoder/vp9_noise_estimate.h"
80
#include "vp9/encoder/vp9_picklpf.h"
81
#include "vp9/encoder/vp9_quantize.h"
82
#include "vp9/encoder/vp9_ratectrl.h"
83
#include "vp9/encoder/vp9_rd.h"
84
#include "vp9/encoder/vp9_resize.h"
85
#include "vp9/encoder/vp9_segmentation.h"
86
#include "vp9/encoder/vp9_skin_detection.h"
87
#include "vp9/encoder/vp9_speed_features.h"
88
#include "vp9/encoder/vp9_svc_layercontext.h"
89
#include "vp9/encoder/vp9_temporal_filter.h"
90
#include "vp9/encoder/vp9_tpl_model.h"
91
#include "vp9/vp9_cx_iface.h"
92
93
25.6k
#define AM_SEGMENT_ID_INACTIVE 7
94
0
#define AM_SEGMENT_ID_ACTIVE 0
95
96
// Whether to use high precision mv for altref computation.
97
136k
#define ALTREF_HIGH_PRECISION_MV 1
98
99
// Q threshold for high precision mv. Choose a very high value for now so that
100
// HIGH_PRECISION is always chosen.
101
41.3k
#define HIGH_PRECISION_MV_QTHRESH 200
102
103
0
#define FRAME_SIZE_FACTOR 128  // empirical params for context model threshold
104
0
#define FRAME_RATE_FACTOR 8
105
106
#ifdef OUTPUT_YUV_DENOISED
107
FILE *yuv_denoised_file = NULL;
108
#endif
109
#ifdef OUTPUT_YUV_SKINMAP
110
static FILE *yuv_skinmap_file = NULL;
111
#endif
112
#ifdef OUTPUT_YUV_REC
113
FILE *yuv_rec_file;
114
#endif
115
#ifdef OUTPUT_YUV_SVC_SRC
116
FILE *yuv_svc_src[3] = { NULL, NULL, NULL };
117
#endif
118
119
#if 0
120
FILE *framepsnr;
121
FILE *kf_list;
122
FILE *keyfile;
123
#endif
124
125
#ifdef ENABLE_KF_DENOISE
126
// Test condition for spatial denoise of source.
127
static int is_spatial_denoise_enabled(VP9_COMP *cpi) {
128
  VP9_COMMON *const cm = &cpi->common;
129
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
130
131
  return (oxcf->pass != 1) && !is_lossless_requested(&cpi->oxcf) &&
132
         frame_is_intra_only(cm);
133
}
134
#endif
135
136
#if !CONFIG_REALTIME_ONLY
137
// compute adaptive threshold for skip recoding
138
0
static int compute_context_model_thresh(const VP9_COMP *const cpi) {
139
0
  const VP9_COMMON *const cm = &cpi->common;
140
0
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
141
0
  const int frame_size = (cm->width * cm->height) >> 10;
142
0
  const int bitrate = (int)(oxcf->target_bandwidth >> 10);
143
0
  const int qindex_factor = cm->base_qindex + (MAXQ >> 1);
144
145
  // This equation makes the threshold adaptive to frame size.
146
  // Coding gain obtained by recoding comes from alternate frames of large
147
  // content change. We skip recoding if the difference of previous and current
148
  // frame context probability model is less than a certain threshold.
149
  // The first component is the most critical part to guarantee adaptivity.
150
  // Other parameters are estimated based on normal setting of hd resolution
151
  // parameters. e.g. frame_size = 1920x1080, bitrate = 8000, qindex_factor < 50
152
0
  const int thresh =
153
0
      ((FRAME_SIZE_FACTOR * frame_size - FRAME_RATE_FACTOR * bitrate) *
154
0
       qindex_factor) >>
155
0
      9;
156
157
0
  return thresh;
158
0
}
159
160
// compute the total cost difference between current
161
// and previous frame context prob model.
162
0
static int compute_context_model_diff(const VP9_COMMON *const cm) {
163
0
  const FRAME_CONTEXT *const pre_fc =
164
0
      &cm->frame_contexts[cm->frame_context_idx];
165
0
  const FRAME_CONTEXT *const cur_fc = cm->fc;
166
0
  const FRAME_COUNTS *counts = &cm->counts;
167
0
  vpx_prob pre_last_prob, cur_last_prob;
168
0
  int diff = 0;
169
0
  int i, j, k, l, m, n;
170
171
  // y_mode_prob
172
0
  for (i = 0; i < BLOCK_SIZE_GROUPS; ++i) {
173
0
    for (j = 0; j < INTRA_MODES - 1; ++j) {
174
0
      diff += (int)counts->y_mode[i][j] *
175
0
              (pre_fc->y_mode_prob[i][j] - cur_fc->y_mode_prob[i][j]);
176
0
    }
177
0
    pre_last_prob = MAX_PROB - pre_fc->y_mode_prob[i][INTRA_MODES - 2];
178
0
    cur_last_prob = MAX_PROB - cur_fc->y_mode_prob[i][INTRA_MODES - 2];
179
180
0
    diff += (int)counts->y_mode[i][INTRA_MODES - 1] *
181
0
            (pre_last_prob - cur_last_prob);
182
0
  }
183
184
  // uv_mode_prob
185
0
  for (i = 0; i < INTRA_MODES; ++i) {
186
0
    for (j = 0; j < INTRA_MODES - 1; ++j) {
187
0
      diff += (int)counts->uv_mode[i][j] *
188
0
              (pre_fc->uv_mode_prob[i][j] - cur_fc->uv_mode_prob[i][j]);
189
0
    }
190
0
    pre_last_prob = MAX_PROB - pre_fc->uv_mode_prob[i][INTRA_MODES - 2];
191
0
    cur_last_prob = MAX_PROB - cur_fc->uv_mode_prob[i][INTRA_MODES - 2];
192
193
0
    diff += (int)counts->uv_mode[i][INTRA_MODES - 1] *
194
0
            (pre_last_prob - cur_last_prob);
195
0
  }
196
197
  // partition_prob
198
0
  for (i = 0; i < PARTITION_CONTEXTS; ++i) {
199
0
    for (j = 0; j < PARTITION_TYPES - 1; ++j) {
200
0
      diff += (int)counts->partition[i][j] *
201
0
              (pre_fc->partition_prob[i][j] - cur_fc->partition_prob[i][j]);
202
0
    }
203
0
    pre_last_prob = MAX_PROB - pre_fc->partition_prob[i][PARTITION_TYPES - 2];
204
0
    cur_last_prob = MAX_PROB - cur_fc->partition_prob[i][PARTITION_TYPES - 2];
205
206
0
    diff += (int)counts->partition[i][PARTITION_TYPES - 1] *
207
0
            (pre_last_prob - cur_last_prob);
208
0
  }
209
210
  // coef_probs
211
0
  for (i = 0; i < TX_SIZES; ++i) {
212
0
    for (j = 0; j < PLANE_TYPES; ++j) {
213
0
      for (k = 0; k < REF_TYPES; ++k) {
214
0
        for (l = 0; l < COEF_BANDS; ++l) {
215
0
          for (m = 0; m < BAND_COEFF_CONTEXTS(l); ++m) {
216
0
            for (n = 0; n < UNCONSTRAINED_NODES; ++n) {
217
0
              diff += (int)counts->coef[i][j][k][l][m][n] *
218
0
                      (pre_fc->coef_probs[i][j][k][l][m][n] -
219
0
                       cur_fc->coef_probs[i][j][k][l][m][n]);
220
0
            }
221
222
0
            pre_last_prob =
223
0
                MAX_PROB -
224
0
                pre_fc->coef_probs[i][j][k][l][m][UNCONSTRAINED_NODES - 1];
225
0
            cur_last_prob =
226
0
                MAX_PROB -
227
0
                cur_fc->coef_probs[i][j][k][l][m][UNCONSTRAINED_NODES - 1];
228
229
0
            diff += (int)counts->coef[i][j][k][l][m][UNCONSTRAINED_NODES] *
230
0
                    (pre_last_prob - cur_last_prob);
231
0
          }
232
0
        }
233
0
      }
234
0
    }
235
0
  }
236
237
  // switchable_interp_prob
238
0
  for (i = 0; i < SWITCHABLE_FILTER_CONTEXTS; ++i) {
239
0
    for (j = 0; j < SWITCHABLE_FILTERS - 1; ++j) {
240
0
      diff += (int)counts->switchable_interp[i][j] *
241
0
              (pre_fc->switchable_interp_prob[i][j] -
242
0
               cur_fc->switchable_interp_prob[i][j]);
243
0
    }
244
0
    pre_last_prob =
245
0
        MAX_PROB - pre_fc->switchable_interp_prob[i][SWITCHABLE_FILTERS - 2];
246
0
    cur_last_prob =
247
0
        MAX_PROB - cur_fc->switchable_interp_prob[i][SWITCHABLE_FILTERS - 2];
248
249
0
    diff += (int)counts->switchable_interp[i][SWITCHABLE_FILTERS - 1] *
250
0
            (pre_last_prob - cur_last_prob);
251
0
  }
252
253
  // inter_mode_probs
254
0
  for (i = 0; i < INTER_MODE_CONTEXTS; ++i) {
255
0
    for (j = 0; j < INTER_MODES - 1; ++j) {
256
0
      diff += (int)counts->inter_mode[i][j] *
257
0
              (pre_fc->inter_mode_probs[i][j] - cur_fc->inter_mode_probs[i][j]);
258
0
    }
259
0
    pre_last_prob = MAX_PROB - pre_fc->inter_mode_probs[i][INTER_MODES - 2];
260
0
    cur_last_prob = MAX_PROB - cur_fc->inter_mode_probs[i][INTER_MODES - 2];
261
262
0
    diff += (int)counts->inter_mode[i][INTER_MODES - 1] *
263
0
            (pre_last_prob - cur_last_prob);
264
0
  }
265
266
  // intra_inter_prob
267
0
  for (i = 0; i < INTRA_INTER_CONTEXTS; ++i) {
268
0
    diff += (int)counts->intra_inter[i][0] *
269
0
            (pre_fc->intra_inter_prob[i] - cur_fc->intra_inter_prob[i]);
270
271
0
    pre_last_prob = MAX_PROB - pre_fc->intra_inter_prob[i];
272
0
    cur_last_prob = MAX_PROB - cur_fc->intra_inter_prob[i];
273
274
0
    diff += (int)counts->intra_inter[i][1] * (pre_last_prob - cur_last_prob);
275
0
  }
276
277
  // comp_inter_prob
278
0
  for (i = 0; i < COMP_INTER_CONTEXTS; ++i) {
279
0
    diff += (int)counts->comp_inter[i][0] *
280
0
            (pre_fc->comp_inter_prob[i] - cur_fc->comp_inter_prob[i]);
281
282
0
    pre_last_prob = MAX_PROB - pre_fc->comp_inter_prob[i];
283
0
    cur_last_prob = MAX_PROB - cur_fc->comp_inter_prob[i];
284
285
0
    diff += (int)counts->comp_inter[i][1] * (pre_last_prob - cur_last_prob);
286
0
  }
287
288
  // single_ref_prob
289
0
  for (i = 0; i < REF_CONTEXTS; ++i) {
290
0
    for (j = 0; j < 2; ++j) {
291
0
      diff += (int)counts->single_ref[i][j][0] *
292
0
              (pre_fc->single_ref_prob[i][j] - cur_fc->single_ref_prob[i][j]);
293
294
0
      pre_last_prob = MAX_PROB - pre_fc->single_ref_prob[i][j];
295
0
      cur_last_prob = MAX_PROB - cur_fc->single_ref_prob[i][j];
296
297
0
      diff +=
298
0
          (int)counts->single_ref[i][j][1] * (pre_last_prob - cur_last_prob);
299
0
    }
300
0
  }
301
302
  // comp_ref_prob
303
0
  for (i = 0; i < REF_CONTEXTS; ++i) {
304
0
    diff += (int)counts->comp_ref[i][0] *
305
0
            (pre_fc->comp_ref_prob[i] - cur_fc->comp_ref_prob[i]);
306
307
0
    pre_last_prob = MAX_PROB - pre_fc->comp_ref_prob[i];
308
0
    cur_last_prob = MAX_PROB - cur_fc->comp_ref_prob[i];
309
310
0
    diff += (int)counts->comp_ref[i][1] * (pre_last_prob - cur_last_prob);
311
0
  }
312
313
  // tx_probs
314
0
  for (i = 0; i < TX_SIZE_CONTEXTS; ++i) {
315
    // p32x32
316
0
    for (j = 0; j < TX_SIZES - 1; ++j) {
317
0
      diff += (int)counts->tx.p32x32[i][j] *
318
0
              (pre_fc->tx_probs.p32x32[i][j] - cur_fc->tx_probs.p32x32[i][j]);
319
0
    }
320
0
    pre_last_prob = MAX_PROB - pre_fc->tx_probs.p32x32[i][TX_SIZES - 2];
321
0
    cur_last_prob = MAX_PROB - cur_fc->tx_probs.p32x32[i][TX_SIZES - 2];
322
323
0
    diff += (int)counts->tx.p32x32[i][TX_SIZES - 1] *
324
0
            (pre_last_prob - cur_last_prob);
325
326
    // p16x16
327
0
    for (j = 0; j < TX_SIZES - 2; ++j) {
328
0
      diff += (int)counts->tx.p16x16[i][j] *
329
0
              (pre_fc->tx_probs.p16x16[i][j] - cur_fc->tx_probs.p16x16[i][j]);
330
0
    }
331
0
    pre_last_prob = MAX_PROB - pre_fc->tx_probs.p16x16[i][TX_SIZES - 3];
332
0
    cur_last_prob = MAX_PROB - cur_fc->tx_probs.p16x16[i][TX_SIZES - 3];
333
334
0
    diff += (int)counts->tx.p16x16[i][TX_SIZES - 2] *
335
0
            (pre_last_prob - cur_last_prob);
336
337
    // p8x8
338
0
    for (j = 0; j < TX_SIZES - 3; ++j) {
339
0
      diff += (int)counts->tx.p8x8[i][j] *
340
0
              (pre_fc->tx_probs.p8x8[i][j] - cur_fc->tx_probs.p8x8[i][j]);
341
0
    }
342
0
    pre_last_prob = MAX_PROB - pre_fc->tx_probs.p8x8[i][TX_SIZES - 4];
343
0
    cur_last_prob = MAX_PROB - cur_fc->tx_probs.p8x8[i][TX_SIZES - 4];
344
345
0
    diff +=
346
0
        (int)counts->tx.p8x8[i][TX_SIZES - 3] * (pre_last_prob - cur_last_prob);
347
0
  }
348
349
  // skip_probs
350
0
  for (i = 0; i < SKIP_CONTEXTS; ++i) {
351
0
    diff += (int)counts->skip[i][0] *
352
0
            (pre_fc->skip_probs[i] - cur_fc->skip_probs[i]);
353
354
0
    pre_last_prob = MAX_PROB - pre_fc->skip_probs[i];
355
0
    cur_last_prob = MAX_PROB - cur_fc->skip_probs[i];
356
357
0
    diff += (int)counts->skip[i][1] * (pre_last_prob - cur_last_prob);
358
0
  }
359
360
  // mv
361
0
  for (i = 0; i < MV_JOINTS - 1; ++i) {
362
0
    diff += (int)counts->mv.joints[i] *
363
0
            (pre_fc->nmvc.joints[i] - cur_fc->nmvc.joints[i]);
364
0
  }
365
0
  pre_last_prob = MAX_PROB - pre_fc->nmvc.joints[MV_JOINTS - 2];
366
0
  cur_last_prob = MAX_PROB - cur_fc->nmvc.joints[MV_JOINTS - 2];
367
368
0
  diff +=
369
0
      (int)counts->mv.joints[MV_JOINTS - 1] * (pre_last_prob - cur_last_prob);
370
371
0
  for (i = 0; i < 2; ++i) {
372
0
    const nmv_component_counts *nmv_count = &counts->mv.comps[i];
373
0
    const nmv_component *pre_nmv_prob = &pre_fc->nmvc.comps[i];
374
0
    const nmv_component *cur_nmv_prob = &cur_fc->nmvc.comps[i];
375
376
    // sign
377
0
    diff += (int)nmv_count->sign[0] * (pre_nmv_prob->sign - cur_nmv_prob->sign);
378
379
0
    pre_last_prob = MAX_PROB - pre_nmv_prob->sign;
380
0
    cur_last_prob = MAX_PROB - cur_nmv_prob->sign;
381
382
0
    diff += (int)nmv_count->sign[1] * (pre_last_prob - cur_last_prob);
383
384
    // classes
385
0
    for (j = 0; j < MV_CLASSES - 1; ++j) {
386
0
      diff += (int)nmv_count->classes[j] *
387
0
              (pre_nmv_prob->classes[j] - cur_nmv_prob->classes[j]);
388
0
    }
389
0
    pre_last_prob = MAX_PROB - pre_nmv_prob->classes[MV_CLASSES - 2];
390
0
    cur_last_prob = MAX_PROB - cur_nmv_prob->classes[MV_CLASSES - 2];
391
392
0
    diff += (int)nmv_count->classes[MV_CLASSES - 1] *
393
0
            (pre_last_prob - cur_last_prob);
394
395
    // class0
396
0
    for (j = 0; j < CLASS0_SIZE - 1; ++j) {
397
0
      diff += (int)nmv_count->class0[j] *
398
0
              (pre_nmv_prob->class0[j] - cur_nmv_prob->class0[j]);
399
0
    }
400
0
    pre_last_prob = MAX_PROB - pre_nmv_prob->class0[CLASS0_SIZE - 2];
401
0
    cur_last_prob = MAX_PROB - cur_nmv_prob->class0[CLASS0_SIZE - 2];
402
403
0
    diff += (int)nmv_count->class0[CLASS0_SIZE - 1] *
404
0
            (pre_last_prob - cur_last_prob);
405
406
    // bits
407
0
    for (j = 0; j < MV_OFFSET_BITS; ++j) {
408
0
      diff += (int)nmv_count->bits[j][0] *
409
0
              (pre_nmv_prob->bits[j] - cur_nmv_prob->bits[j]);
410
411
0
      pre_last_prob = MAX_PROB - pre_nmv_prob->bits[j];
412
0
      cur_last_prob = MAX_PROB - cur_nmv_prob->bits[j];
413
414
0
      diff += (int)nmv_count->bits[j][1] * (pre_last_prob - cur_last_prob);
415
0
    }
416
417
    // class0_fp
418
0
    for (j = 0; j < CLASS0_SIZE; ++j) {
419
0
      for (k = 0; k < MV_FP_SIZE - 1; ++k) {
420
0
        diff += (int)nmv_count->class0_fp[j][k] *
421
0
                (pre_nmv_prob->class0_fp[j][k] - cur_nmv_prob->class0_fp[j][k]);
422
0
      }
423
0
      pre_last_prob = MAX_PROB - pre_nmv_prob->class0_fp[j][MV_FP_SIZE - 2];
424
0
      cur_last_prob = MAX_PROB - cur_nmv_prob->class0_fp[j][MV_FP_SIZE - 2];
425
426
0
      diff += (int)nmv_count->class0_fp[j][MV_FP_SIZE - 1] *
427
0
              (pre_last_prob - cur_last_prob);
428
0
    }
429
430
    // fp
431
0
    for (j = 0; j < MV_FP_SIZE - 1; ++j) {
432
0
      diff +=
433
0
          (int)nmv_count->fp[j] * (pre_nmv_prob->fp[j] - cur_nmv_prob->fp[j]);
434
0
    }
435
0
    pre_last_prob = MAX_PROB - pre_nmv_prob->fp[MV_FP_SIZE - 2];
436
0
    cur_last_prob = MAX_PROB - cur_nmv_prob->fp[MV_FP_SIZE - 2];
437
438
0
    diff +=
439
0
        (int)nmv_count->fp[MV_FP_SIZE - 1] * (pre_last_prob - cur_last_prob);
440
441
    // class0_hp
442
0
    diff += (int)nmv_count->class0_hp[0] *
443
0
            (pre_nmv_prob->class0_hp - cur_nmv_prob->class0_hp);
444
445
0
    pre_last_prob = MAX_PROB - pre_nmv_prob->class0_hp;
446
0
    cur_last_prob = MAX_PROB - cur_nmv_prob->class0_hp;
447
448
0
    diff += (int)nmv_count->class0_hp[1] * (pre_last_prob - cur_last_prob);
449
450
    // hp
451
0
    diff += (int)nmv_count->hp[0] * (pre_nmv_prob->hp - cur_nmv_prob->hp);
452
453
0
    pre_last_prob = MAX_PROB - pre_nmv_prob->hp;
454
0
    cur_last_prob = MAX_PROB - cur_nmv_prob->hp;
455
456
0
    diff += (int)nmv_count->hp[1] * (pre_last_prob - cur_last_prob);
457
0
  }
458
459
0
  return -diff;
460
0
}
461
#endif  // !CONFIG_REALTIME_ONLY
462
463
// Test for whether to calculate metrics for the frame.
464
108k
static int is_psnr_calc_enabled(const VP9_COMP *cpi) {
465
108k
  const VP9_COMMON *const cm = &cpi->common;
466
108k
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
467
468
108k
  return cpi->b_calculate_psnr && (oxcf->pass != 1) && cm->show_frame;
469
108k
}
470
471
/* clang-format off */
472
const Vp9LevelSpec vp9_level_defs[VP9_LEVELS] = {
473
  //         sample rate    size   breadth  bitrate  cpb
474
  { LEVEL_1,   829440,      36864,    512,   200,    400,    2, 1,  4,  8 },
475
  { LEVEL_1_1, 2764800,     73728,    768,   800,    1000,   2, 1,  4,  8 },
476
  { LEVEL_2,   4608000,     122880,   960,   1800,   1500,   2, 1,  4,  8 },
477
  { LEVEL_2_1, 9216000,     245760,   1344,  3600,   2800,   2, 2,  4,  8 },
478
  { LEVEL_3,   20736000,    552960,   2048,  7200,   6000,   2, 4,  4,  8 },
479
  { LEVEL_3_1, 36864000,    983040,   2752,  12000,  10000,  2, 4,  4,  8 },
480
  { LEVEL_4,   83558400,    2228224,  4160,  18000,  16000,  4, 4,  4,  8 },
481
  { LEVEL_4_1, 160432128,   2228224,  4160,  30000,  18000,  4, 4,  5,  6 },
482
  { LEVEL_5,   311951360,   8912896,  8384,  60000,  36000,  6, 8,  6,  4 },
483
  { LEVEL_5_1, 588251136,   8912896,  8384,  120000, 46000,  8, 8,  10, 4 },
484
  // TODO(huisu): update max_cpb_size for level 5_2 ~ 6_2 when
485
  // they are finalized (currently tentative).
486
  { LEVEL_5_2, 1176502272,  8912896,  8384,  180000, 90000,  8, 8,  10, 4 },
487
  { LEVEL_6,   1176502272,  35651584, 16832, 180000, 90000,  8, 16, 10, 4 },
488
  { LEVEL_6_1, 2353004544u, 35651584, 16832, 240000, 180000, 8, 16, 10, 4 },
489
  { LEVEL_6_2, 4706009088u, 35651584, 16832, 480000, 360000, 8, 16, 10, 4 },
490
};
491
/* clang-format on */
492
493
static const char *level_fail_messages[TARGET_LEVEL_FAIL_IDS] = {
494
  "The average bit-rate is too high.",
495
  "The picture size is too large.",
496
  "The picture width/height is too large.",
497
  "The luma sample rate is too large.",
498
  "The CPB size is too large.",
499
  "The compression ratio is too small",
500
  "Too many column tiles are used.",
501
  "The alt-ref distance is too small.",
502
  "Too many reference buffers are used."
503
};
504
505
0
static INLINE void Scale2Ratio(VPX_SCALING_MODE mode, int *hr, int *hs) {
506
0
  switch (mode) {
507
0
    case VP8E_NORMAL:
508
0
      *hr = 1;
509
0
      *hs = 1;
510
0
      break;
511
0
    case VP8E_FOURFIVE:
512
0
      *hr = 4;
513
0
      *hs = 5;
514
0
      break;
515
0
    case VP8E_THREEFIVE:
516
0
      *hr = 3;
517
0
      *hs = 5;
518
0
      break;
519
0
    default:
520
0
      assert(mode == VP8E_ONETWO);
521
0
      *hr = 1;
522
0
      *hs = 2;
523
0
      break;
524
0
  }
525
0
}
526
527
// Mark all inactive blocks as active. Other segmentation features may be set
528
// so memset cannot be used, instead only inactive blocks should be reset.
529
54.1k
static void suppress_active_map(VP9_COMP *cpi) {
530
54.1k
  unsigned char *const seg_map = cpi->segmentation_map;
531
532
54.1k
  if (cpi->active_map.enabled || cpi->active_map.update) {
533
0
    const int rows = cpi->common.mi_rows;
534
0
    const int cols = cpi->common.mi_cols;
535
0
    int i;
536
537
0
    for (i = 0; i < rows * cols; ++i)
538
0
      if (seg_map[i] == AM_SEGMENT_ID_INACTIVE)
539
0
        seg_map[i] = AM_SEGMENT_ID_ACTIVE;
540
0
  }
541
54.1k
}
542
543
54.1k
static void apply_active_map(VP9_COMP *cpi) {
544
54.1k
  struct segmentation *const seg = &cpi->common.seg;
545
54.1k
  unsigned char *const seg_map = cpi->segmentation_map;
546
54.1k
  const unsigned char *const active_map = cpi->active_map.map;
547
54.1k
  int i;
548
549
54.1k
  assert(AM_SEGMENT_ID_ACTIVE == CR_SEGMENT_ID_BASE);
550
551
54.1k
  if (frame_is_intra_only(&cpi->common)) {
552
12.8k
    cpi->active_map.enabled = 0;
553
12.8k
    cpi->active_map.update = 1;
554
12.8k
  }
555
556
54.1k
  if (cpi->active_map.update) {
557
12.8k
    if (cpi->active_map.enabled) {
558
0
      for (i = 0; i < cpi->common.mi_rows * cpi->common.mi_cols; ++i)
559
0
        if (seg_map[i] == AM_SEGMENT_ID_ACTIVE) seg_map[i] = active_map[i];
560
0
      vp9_enable_segmentation(seg);
561
0
      vp9_enable_segfeature(seg, AM_SEGMENT_ID_INACTIVE, SEG_LVL_SKIP);
562
0
      vp9_enable_segfeature(seg, AM_SEGMENT_ID_INACTIVE, SEG_LVL_ALT_LF);
563
      // Setting the data to -MAX_LOOP_FILTER will result in the computed loop
564
      // filter level being zero regardless of the value of seg->abs_delta.
565
0
      vp9_set_segdata(seg, AM_SEGMENT_ID_INACTIVE, SEG_LVL_ALT_LF,
566
0
                      -MAX_LOOP_FILTER);
567
12.8k
    } else {
568
12.8k
      vp9_disable_segfeature(seg, AM_SEGMENT_ID_INACTIVE, SEG_LVL_SKIP);
569
12.8k
      vp9_disable_segfeature(seg, AM_SEGMENT_ID_INACTIVE, SEG_LVL_ALT_LF);
570
12.8k
      if (seg->enabled) {
571
0
        seg->update_data = 1;
572
0
        seg->update_map = 1;
573
0
      }
574
12.8k
    }
575
12.8k
    cpi->active_map.update = 0;
576
12.8k
  }
577
54.1k
}
578
579
0
static void apply_roi_map(VP9_COMP *cpi) {
580
0
  VP9_COMMON *cm = &cpi->common;
581
0
  struct segmentation *const seg = &cm->seg;
582
0
  vpx_roi_map_t *roi = &cpi->roi;
583
0
  const int *delta_q = roi->delta_q;
584
0
  const int *delta_lf = roi->delta_lf;
585
0
  const int *skip = roi->skip;
586
0
  int ref_frame[8];
587
0
  int internal_delta_q[MAX_SEGMENTS];
588
0
  int i;
589
590
  // TODO(jianj): Investigate why ROI not working in speed < 5 or in non
591
  // realtime mode.
592
0
  if (cpi->oxcf.mode != REALTIME || cpi->oxcf.speed < 5) return;
593
0
  if (!roi->enabled) return;
594
595
0
  memcpy(&ref_frame, roi->ref_frame, sizeof(ref_frame));
596
597
0
  vp9_enable_segmentation(seg);
598
0
  vp9_clearall_segfeatures(seg);
599
  // Select delta coding method;
600
0
  seg->abs_delta = SEGMENT_DELTADATA;
601
602
0
  memcpy(cpi->segmentation_map, roi->roi_map, (cm->mi_rows * cm->mi_cols));
603
604
0
  for (i = 0; i < MAX_SEGMENTS; ++i) {
605
    // Translate the external delta q values to internal values.
606
0
    internal_delta_q[i] = vp9_quantizer_to_qindex(abs(delta_q[i]));
607
0
    if (delta_q[i] < 0) internal_delta_q[i] = -internal_delta_q[i];
608
0
    vp9_disable_segfeature(seg, i, SEG_LVL_ALT_Q);
609
0
    vp9_disable_segfeature(seg, i, SEG_LVL_ALT_LF);
610
0
    if (internal_delta_q[i] != 0) {
611
0
      vp9_enable_segfeature(seg, i, SEG_LVL_ALT_Q);
612
0
      vp9_set_segdata(seg, i, SEG_LVL_ALT_Q, internal_delta_q[i]);
613
0
    }
614
0
    if (delta_lf[i] != 0) {
615
0
      vp9_enable_segfeature(seg, i, SEG_LVL_ALT_LF);
616
0
      vp9_set_segdata(seg, i, SEG_LVL_ALT_LF, delta_lf[i]);
617
0
    }
618
0
    if (skip[i] != 0) {
619
0
      vp9_enable_segfeature(seg, i, SEG_LVL_SKIP);
620
0
      vp9_set_segdata(seg, i, SEG_LVL_SKIP, 0);
621
0
    }
622
0
    if (ref_frame[i] >= 0) {
623
0
      int valid_ref = 1;
624
      // ALTREF is not used as reference for nonrd_pickmode with 0 lag.
625
0
      if (ref_frame[i] == ALTREF_FRAME && cpi->sf.use_nonrd_pick_mode)
626
0
        valid_ref = 0;
627
      // If GOLDEN is selected, make sure it's set as reference.
628
0
      if (ref_frame[i] == GOLDEN_FRAME &&
629
0
          !(cpi->ref_frame_flags & ref_frame_to_flag(ref_frame[i]))) {
630
0
        valid_ref = 0;
631
0
      }
632
      // GOLDEN was updated in previous encoded frame, so GOLDEN and LAST are
633
      // same reference.
634
0
      if (ref_frame[i] == GOLDEN_FRAME && cpi->rc.frames_since_golden == 0)
635
0
        ref_frame[i] = LAST_FRAME;
636
0
      if (valid_ref) {
637
0
        vp9_enable_segfeature(seg, i, SEG_LVL_REF_FRAME);
638
0
        vp9_set_segdata(seg, i, SEG_LVL_REF_FRAME, ref_frame[i]);
639
0
      }
640
0
    }
641
0
  }
642
0
  roi->enabled = 1;
643
0
}
644
645
4.01k
static void init_level_info(Vp9LevelInfo *level_info) {
646
4.01k
  Vp9LevelStats *const level_stats = &level_info->level_stats;
647
4.01k
  Vp9LevelSpec *const level_spec = &level_info->level_spec;
648
649
4.01k
  memset(level_stats, 0, sizeof(*level_stats));
650
4.01k
  memset(level_spec, 0, sizeof(*level_spec));
651
4.01k
  level_spec->level = LEVEL_UNKNOWN;
652
4.01k
  level_spec->min_altref_distance = INT_MAX;
653
4.01k
}
654
655
0
static int check_seg_range(int seg_data[8], int range) {
656
0
  int i;
657
0
  for (i = 0; i < 8; ++i) {
658
    // Note abs() alone can't be used as the behavior of abs(INT_MIN) is
659
    // undefined.
660
0
    if (seg_data[i] > range || seg_data[i] < -range) {
661
0
      return 0;
662
0
    }
663
0
  }
664
0
  return 1;
665
0
}
666
667
0
VP9_LEVEL vp9_get_level(const Vp9LevelSpec *const level_spec) {
668
0
  int i;
669
0
  const Vp9LevelSpec *this_level;
670
671
0
  vpx_clear_system_state();
672
673
0
  for (i = 0; i < VP9_LEVELS; ++i) {
674
0
    this_level = &vp9_level_defs[i];
675
0
    if ((double)level_spec->max_luma_sample_rate >
676
0
            (double)this_level->max_luma_sample_rate *
677
0
                (1 + SAMPLE_RATE_GRACE_P) ||
678
0
        level_spec->max_luma_picture_size > this_level->max_luma_picture_size ||
679
0
        level_spec->max_luma_picture_breadth >
680
0
            this_level->max_luma_picture_breadth ||
681
0
        level_spec->average_bitrate > this_level->average_bitrate ||
682
0
        level_spec->max_cpb_size > this_level->max_cpb_size ||
683
0
        level_spec->compression_ratio < this_level->compression_ratio ||
684
0
        level_spec->max_col_tiles > this_level->max_col_tiles ||
685
0
        level_spec->min_altref_distance < this_level->min_altref_distance ||
686
0
        level_spec->max_ref_frame_buffers > this_level->max_ref_frame_buffers)
687
0
      continue;
688
0
    break;
689
0
  }
690
0
  return (i == VP9_LEVELS) ? LEVEL_UNKNOWN : vp9_level_defs[i].level;
691
0
}
692
693
vpx_codec_err_t vp9_set_roi_map(VP9_COMP *cpi, unsigned char *map,
694
                                unsigned int rows, unsigned int cols,
695
                                int delta_q[8], int delta_lf[8], int skip[8],
696
0
                                int ref_frame[8]) {
697
0
  VP9_COMMON *cm = &cpi->common;
698
0
  vpx_roi_map_t *roi = &cpi->roi;
699
0
  const int range = 63;
700
0
  const int ref_frame_range = 3;  // Alt-ref
701
0
  const int skip_range = 1;
702
0
  const int frame_rows = cpi->common.mi_rows;
703
0
  const int frame_cols = cpi->common.mi_cols;
704
705
  // Check number of rows and columns match
706
0
  if (frame_rows != (int)rows || frame_cols != (int)cols) {
707
0
    return VPX_CODEC_INVALID_PARAM;
708
0
  }
709
710
0
  if (!check_seg_range(delta_q, range) || !check_seg_range(delta_lf, range) ||
711
0
      !check_seg_range(ref_frame, ref_frame_range) ||
712
0
      !check_seg_range(skip, skip_range))
713
0
    return VPX_CODEC_INVALID_PARAM;
714
715
  // Also disable segmentation if no deltas are specified.
716
0
  if (!map ||
717
0
      (!(delta_q[0] | delta_q[1] | delta_q[2] | delta_q[3] | delta_q[4] |
718
0
         delta_q[5] | delta_q[6] | delta_q[7] | delta_lf[0] | delta_lf[1] |
719
0
         delta_lf[2] | delta_lf[3] | delta_lf[4] | delta_lf[5] | delta_lf[6] |
720
0
         delta_lf[7] | skip[0] | skip[1] | skip[2] | skip[3] | skip[4] |
721
0
         skip[5] | skip[6] | skip[7]) &&
722
0
       (ref_frame[0] == -1 && ref_frame[1] == -1 && ref_frame[2] == -1 &&
723
0
        ref_frame[3] == -1 && ref_frame[4] == -1 && ref_frame[5] == -1 &&
724
0
        ref_frame[6] == -1 && ref_frame[7] == -1))) {
725
0
    vp9_disable_segmentation(&cm->seg);
726
0
    cpi->roi.enabled = 0;
727
0
    return VPX_CODEC_OK;
728
0
  }
729
730
0
  if (roi->roi_map) {
731
0
    vpx_free(roi->roi_map);
732
0
    roi->roi_map = NULL;
733
0
  }
734
0
  roi->roi_map = vpx_malloc(rows * cols);
735
0
  if (!roi->roi_map) return VPX_CODEC_MEM_ERROR;
736
737
  // Copy to ROI structure in the compressor.
738
0
  memcpy(roi->roi_map, map, rows * cols);
739
0
  memcpy(&roi->delta_q, delta_q, MAX_SEGMENTS * sizeof(delta_q[0]));
740
0
  memcpy(&roi->delta_lf, delta_lf, MAX_SEGMENTS * sizeof(delta_lf[0]));
741
0
  memcpy(&roi->skip, skip, MAX_SEGMENTS * sizeof(skip[0]));
742
0
  memcpy(&roi->ref_frame, ref_frame, MAX_SEGMENTS * sizeof(ref_frame[0]));
743
0
  roi->enabled = 1;
744
0
  roi->rows = rows;
745
0
  roi->cols = cols;
746
747
0
  return VPX_CODEC_OK;
748
0
}
749
750
int vp9_set_active_map(VP9_COMP *cpi, unsigned char *new_map_16x16, int rows,
751
0
                       int cols) {
752
0
  if (rows == cpi->common.mb_rows && cols == cpi->common.mb_cols) {
753
0
    unsigned char *const active_map_8x8 = cpi->active_map.map;
754
0
    const int mi_rows = cpi->common.mi_rows;
755
0
    const int mi_cols = cpi->common.mi_cols;
756
0
    cpi->active_map.update = 1;
757
0
    if (new_map_16x16) {
758
0
      int r, c;
759
0
      for (r = 0; r < mi_rows; ++r) {
760
0
        for (c = 0; c < mi_cols; ++c) {
761
0
          active_map_8x8[r * mi_cols + c] =
762
0
              new_map_16x16[(r >> 1) * cols + (c >> 1)]
763
0
                  ? AM_SEGMENT_ID_ACTIVE
764
0
                  : AM_SEGMENT_ID_INACTIVE;
765
0
        }
766
0
      }
767
0
      cpi->active_map.enabled = 1;
768
0
    } else {
769
0
      cpi->active_map.enabled = 0;
770
0
    }
771
0
    return 0;
772
0
  } else {
773
0
    return -1;
774
0
  }
775
0
}
776
777
int vp9_get_active_map(VP9_COMP *cpi, unsigned char *new_map_16x16, int rows,
778
0
                       int cols) {
779
0
  if (rows == cpi->common.mb_rows && cols == cpi->common.mb_cols &&
780
0
      new_map_16x16) {
781
0
    unsigned char *const seg_map_8x8 = cpi->segmentation_map;
782
0
    const int mi_rows = cpi->common.mi_rows;
783
0
    const int mi_cols = cpi->common.mi_cols;
784
0
    memset(new_map_16x16, !cpi->active_map.enabled, rows * cols);
785
0
    if (cpi->active_map.enabled) {
786
0
      int r, c;
787
0
      for (r = 0; r < mi_rows; ++r) {
788
0
        for (c = 0; c < mi_cols; ++c) {
789
          // Cyclic refresh segments are considered active despite not having
790
          // AM_SEGMENT_ID_ACTIVE
791
0
          new_map_16x16[(r >> 1) * cols + (c >> 1)] |=
792
0
              seg_map_8x8[r * mi_cols + c] != AM_SEGMENT_ID_INACTIVE;
793
0
        }
794
0
      }
795
0
    }
796
0
    return 0;
797
0
  } else {
798
0
    return -1;
799
0
  }
800
0
}
801
802
212k
void vp9_set_high_precision_mv(VP9_COMP *cpi, int allow_high_precision_mv) {
803
212k
  MACROBLOCK *const mb = &cpi->td.mb;
804
212k
  cpi->common.allow_high_precision_mv = allow_high_precision_mv;
805
212k
  if (cpi->common.allow_high_precision_mv) {
806
168k
    mb->mvcost = mb->nmvcost_hp;
807
168k
    mb->mvsadcost = mb->nmvsadcost_hp;
808
168k
  } else {
809
44.0k
    mb->mvcost = mb->nmvcost;
810
44.0k
    mb->mvsadcost = mb->nmvsadcost;
811
44.0k
  }
812
212k
}
813
814
54.1k
static void setup_frame(VP9_COMP *cpi) {
815
54.1k
  VP9_COMMON *const cm = &cpi->common;
816
  // Set up entropy context depending on frame type. The decoder mandates
817
  // the use of the default context, index 0, for keyframes and inter
818
  // frames where the error_resilient_mode or intra_only flag is set. For
819
  // other inter-frames the encoder currently uses only two contexts;
820
  // context 1 for ALTREF frames and context 0 for the others.
821
54.1k
  if (frame_is_intra_only(cm) || cm->error_resilient_mode) {
822
12.8k
    vp9_setup_past_independence(cm);
823
41.3k
  } else {
824
41.3k
    if (!cpi->use_svc) cm->frame_context_idx = cpi->refresh_alt_ref_frame;
825
41.3k
  }
826
827
  // TODO(jingning): Overwrite the frame_context_idx index in multi-layer ARF
828
  // case. Need some further investigation on if we could apply this to single
829
  // layer ARF case as well.
830
54.1k
  if (cpi->multi_layer_arf && !cpi->use_svc) {
831
0
    GF_GROUP *const gf_group = &cpi->twopass.gf_group;
832
0
    const int gf_group_index = gf_group->index;
833
0
    const int boost_frame =
834
0
        !cpi->rc.is_src_frame_alt_ref &&
835
0
        (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame);
836
837
    // frame_context_idx           Frame Type
838
    //        0              Intra only frame, base layer ARF
839
    //        1              ARFs with layer depth = 2,3
840
    //        2              ARFs with layer depth > 3
841
    //        3              Non-boosted frames
842
0
    if (frame_is_intra_only(cm)) {
843
0
      cm->frame_context_idx = 0;
844
0
    } else if (boost_frame) {
845
0
      if (gf_group->rf_level[gf_group_index] == GF_ARF_STD)
846
0
        cm->frame_context_idx = 0;
847
0
      else if (gf_group->layer_depth[gf_group_index] <= 3)
848
0
        cm->frame_context_idx = 1;
849
0
      else
850
0
        cm->frame_context_idx = 2;
851
0
    } else {
852
0
      cm->frame_context_idx = 3;
853
0
    }
854
0
  }
855
856
54.1k
  if (cm->frame_type == KEY_FRAME) {
857
12.8k
    cpi->refresh_golden_frame = 1;
858
12.8k
    cpi->refresh_alt_ref_frame = 1;
859
12.8k
    vp9_zero(cpi->interp_filter_selected);
860
41.3k
  } else {
861
41.3k
    *cm->fc = cm->frame_contexts[cm->frame_context_idx];
862
41.3k
    vp9_zero(cpi->interp_filter_selected[0]);
863
41.3k
  }
864
54.1k
}
865
866
34.7k
static void vp9_enc_setup_mi(VP9_COMMON *cm) {
867
34.7k
  int i;
868
34.7k
  cm->mi = cm->mip + cm->mi_stride + 1;
869
34.7k
  memset(cm->mip, 0, cm->mi_stride * (cm->mi_rows + 1) * sizeof(*cm->mip));
870
34.7k
  cm->prev_mi = cm->prev_mip + cm->mi_stride + 1;
871
  // Clear top border row
872
34.7k
  memset(cm->prev_mip, 0, sizeof(*cm->prev_mip) * cm->mi_stride);
873
  // Clear left border column
874
2.34M
  for (i = 1; i < cm->mi_rows + 1; ++i)
875
2.30M
    memset(&cm->prev_mip[i * cm->mi_stride], 0, sizeof(*cm->prev_mip));
876
877
34.7k
  cm->mi_grid_visible = cm->mi_grid_base + cm->mi_stride + 1;
878
34.7k
  cm->prev_mi_grid_visible = cm->prev_mi_grid_base + cm->mi_stride + 1;
879
880
34.7k
  memset(cm->mi_grid_base, 0,
881
34.7k
         cm->mi_stride * (cm->mi_rows + 1) * sizeof(*cm->mi_grid_base));
882
34.7k
}
883
884
4.01k
static int vp9_enc_alloc_mi(VP9_COMMON *cm, int mi_size) {
885
4.01k
  cm->mip = vpx_calloc(mi_size, sizeof(*cm->mip));
886
4.01k
  if (!cm->mip) return 1;
887
4.01k
  cm->prev_mip = vpx_calloc(mi_size, sizeof(*cm->prev_mip));
888
4.01k
  if (!cm->prev_mip) return 1;
889
4.01k
  cm->mi_alloc_size = mi_size;
890
891
4.01k
  cm->mi_grid_base =
892
4.01k
      (MODE_INFO **)vpx_calloc(mi_size, sizeof(*cm->mi_grid_base));
893
4.01k
  if (!cm->mi_grid_base) return 1;
894
4.01k
  cm->prev_mi_grid_base =
895
4.01k
      (MODE_INFO **)vpx_calloc(mi_size, sizeof(*cm->prev_mi_grid_base));
896
4.01k
  if (!cm->prev_mi_grid_base) return 1;
897
898
4.01k
  return 0;
899
4.01k
}
900
901
12.0k
static void vp9_enc_free_mi(VP9_COMMON *cm) {
902
12.0k
  vpx_free(cm->mip);
903
12.0k
  cm->mip = NULL;
904
12.0k
  vpx_free(cm->prev_mip);
905
12.0k
  cm->prev_mip = NULL;
906
12.0k
  vpx_free(cm->mi_grid_base);
907
12.0k
  cm->mi_grid_base = NULL;
908
12.0k
  vpx_free(cm->prev_mi_grid_base);
909
12.0k
  cm->prev_mi_grid_base = NULL;
910
12.0k
  cm->mi_alloc_size = 0;
911
12.0k
}
912
913
54.0k
static void vp9_swap_mi_and_prev_mi(VP9_COMMON *cm) {
914
  // Current mip will be the prev_mip for the next frame.
915
54.0k
  MODE_INFO **temp_base = cm->prev_mi_grid_base;
916
54.0k
  MODE_INFO *temp = cm->prev_mip;
917
918
  // Skip update prev_mi frame in show_existing_frame mode.
919
54.0k
  if (cm->show_existing_frame) return;
920
921
54.0k
  cm->prev_mip = cm->mip;
922
54.0k
  cm->mip = temp;
923
924
  // Update the upper left visible macroblock ptrs.
925
54.0k
  cm->mi = cm->mip + cm->mi_stride + 1;
926
54.0k
  cm->prev_mi = cm->prev_mip + cm->mi_stride + 1;
927
928
54.0k
  cm->prev_mi_grid_base = cm->mi_grid_base;
929
54.0k
  cm->mi_grid_base = temp_base;
930
54.0k
  cm->mi_grid_visible = cm->mi_grid_base + cm->mi_stride + 1;
931
54.0k
  cm->prev_mi_grid_visible = cm->prev_mi_grid_base + cm->mi_stride + 1;
932
54.0k
}
933
934
1
static void initialize_enc(void) {
935
1
  vp9_rtcd();
936
1
  vpx_dsp_rtcd();
937
1
  vpx_scale_rtcd();
938
1
  vp9_init_intra_predictors();
939
1
  vp9_init_me_luts();
940
1
  vp9_rc_init_minq_luts();
941
1
  vp9_entropy_mv_init();
942
1
#if !CONFIG_REALTIME_ONLY
943
1
  vp9_temporal_filter_init();
944
1
#endif
945
1
}
946
947
4.06k
void vp9_initialize_enc(void) { once(initialize_enc); }
948
949
4.01k
static void dealloc_compressor_data(VP9_COMP *cpi) {
950
4.01k
  VP9_COMMON *const cm = &cpi->common;
951
4.01k
  int i;
952
953
4.01k
  vpx_free(cpi->mbmi_ext_base);
954
4.01k
  cpi->mbmi_ext_base = NULL;
955
956
4.01k
  vpx_free(cpi->tile_data);
957
4.01k
  cpi->tile_data = NULL;
958
959
4.01k
  vpx_free(cpi->segmentation_map);
960
4.01k
  cpi->segmentation_map = NULL;
961
4.01k
  vpx_free(cpi->coding_context.last_frame_seg_map_copy);
962
4.01k
  cpi->coding_context.last_frame_seg_map_copy = NULL;
963
964
4.01k
  vpx_free(cpi->nmvcosts[0]);
965
4.01k
  vpx_free(cpi->nmvcosts[1]);
966
4.01k
  cpi->nmvcosts[0] = NULL;
967
4.01k
  cpi->nmvcosts[1] = NULL;
968
969
4.01k
  vpx_free(cpi->nmvcosts_hp[0]);
970
4.01k
  vpx_free(cpi->nmvcosts_hp[1]);
971
4.01k
  cpi->nmvcosts_hp[0] = NULL;
972
4.01k
  cpi->nmvcosts_hp[1] = NULL;
973
974
4.01k
  vpx_free(cpi->nmvsadcosts[0]);
975
4.01k
  vpx_free(cpi->nmvsadcosts[1]);
976
4.01k
  cpi->nmvsadcosts[0] = NULL;
977
4.01k
  cpi->nmvsadcosts[1] = NULL;
978
979
4.01k
  vpx_free(cpi->nmvsadcosts_hp[0]);
980
4.01k
  vpx_free(cpi->nmvsadcosts_hp[1]);
981
4.01k
  cpi->nmvsadcosts_hp[0] = NULL;
982
4.01k
  cpi->nmvsadcosts_hp[1] = NULL;
983
984
4.01k
  vpx_free(cpi->skin_map);
985
4.01k
  cpi->skin_map = NULL;
986
987
4.01k
  vpx_free(cpi->prev_partition);
988
4.01k
  cpi->prev_partition = NULL;
989
990
4.01k
  vpx_free(cpi->svc.prev_partition_svc);
991
4.01k
  cpi->svc.prev_partition_svc = NULL;
992
993
4.01k
  vpx_free(cpi->prev_segment_id);
994
4.01k
  cpi->prev_segment_id = NULL;
995
996
4.01k
  vpx_free(cpi->prev_variance_low);
997
4.01k
  cpi->prev_variance_low = NULL;
998
999
4.01k
  vpx_free(cpi->copied_frame_cnt);
1000
4.01k
  cpi->copied_frame_cnt = NULL;
1001
1002
4.01k
  vpx_free(cpi->content_state_sb_fd);
1003
4.01k
  cpi->content_state_sb_fd = NULL;
1004
1005
4.01k
  vpx_free(cpi->count_arf_frame_usage);
1006
4.01k
  cpi->count_arf_frame_usage = NULL;
1007
4.01k
  vpx_free(cpi->count_lastgolden_frame_usage);
1008
4.01k
  cpi->count_lastgolden_frame_usage = NULL;
1009
1010
4.01k
  vp9_cyclic_refresh_free(cpi->cyclic_refresh);
1011
4.01k
  cpi->cyclic_refresh = NULL;
1012
1013
4.01k
  vpx_free(cpi->active_map.map);
1014
4.01k
  cpi->active_map.map = NULL;
1015
1016
4.01k
  vpx_free(cpi->roi.roi_map);
1017
4.01k
  cpi->roi.roi_map = NULL;
1018
1019
4.01k
  vpx_free(cpi->consec_zero_mv);
1020
4.01k
  cpi->consec_zero_mv = NULL;
1021
1022
4.01k
  vpx_free(cpi->mb_wiener_variance);
1023
4.01k
  cpi->mb_wiener_variance = NULL;
1024
1025
4.01k
  vpx_free(cpi->sb_mul_scale);
1026
4.01k
  cpi->sb_mul_scale = NULL;
1027
1028
4.01k
  vpx_free(cpi->mi_ssim_rdmult_scaling_factors);
1029
4.01k
  cpi->mi_ssim_rdmult_scaling_factors = NULL;
1030
1031
4.01k
  vp9_free_ref_frame_buffers(cm->buffer_pool);
1032
#if CONFIG_VP9_POSTPROC
1033
  vp9_free_postproc_buffers(cm);
1034
#endif
1035
4.01k
  vp9_free_context_buffers(cm);
1036
1037
4.01k
  vpx_free_frame_buffer(&cpi->last_frame_uf);
1038
4.01k
  vpx_free_frame_buffer(&cpi->scaled_source);
1039
4.01k
  vpx_free_frame_buffer(&cpi->scaled_last_source);
1040
4.01k
  vpx_free_frame_buffer(&cpi->tf_buffer);
1041
#ifdef ENABLE_KF_DENOISE
1042
  vpx_free_frame_buffer(&cpi->raw_unscaled_source);
1043
  vpx_free_frame_buffer(&cpi->raw_scaled_source);
1044
#endif
1045
1046
4.01k
  vp9_lookahead_destroy(cpi->lookahead);
1047
1048
4.01k
  vpx_free(cpi->tile_tok[0][0]);
1049
4.01k
  cpi->tile_tok[0][0] = 0;
1050
1051
4.01k
  vpx_free(cpi->tplist[0][0]);
1052
4.01k
  cpi->tplist[0][0] = NULL;
1053
1054
4.01k
  vp9_free_pc_tree(&cpi->td);
1055
1056
8.03k
  for (i = 0; i < cpi->svc.number_spatial_layers; ++i) {
1057
4.01k
    LAYER_CONTEXT *const lc = &cpi->svc.layer_context[i];
1058
4.01k
    vpx_free(lc->rc_twopass_stats_in.buf);
1059
4.01k
    lc->rc_twopass_stats_in.buf = NULL;
1060
4.01k
    lc->rc_twopass_stats_in.sz = 0;
1061
4.01k
  }
1062
1063
104k
  for (i = 0; i < MAX_LAG_BUFFERS; ++i) {
1064
100k
    vpx_free_frame_buffer(&cpi->svc.scaled_frames[i]);
1065
100k
  }
1066
4.01k
  memset(&cpi->svc.scaled_frames[0], 0,
1067
4.01k
         MAX_LAG_BUFFERS * sizeof(cpi->svc.scaled_frames[0]));
1068
1069
4.01k
  vpx_free_frame_buffer(&cpi->svc.scaled_temp);
1070
4.01k
  memset(&cpi->svc.scaled_temp, 0, sizeof(cpi->svc.scaled_temp));
1071
1072
4.01k
  vpx_free_frame_buffer(&cpi->svc.empty_frame.img);
1073
4.01k
  memset(&cpi->svc.empty_frame, 0, sizeof(cpi->svc.empty_frame));
1074
1075
4.01k
  vp9_free_svc_cyclic_refresh(cpi);
1076
4.01k
}
1077
1078
0
static void save_coding_context(VP9_COMP *cpi) {
1079
0
  CODING_CONTEXT *const cc = &cpi->coding_context;
1080
0
  VP9_COMMON *cm = &cpi->common;
1081
1082
  // Stores a snapshot of key state variables which can subsequently be
1083
  // restored with a call to vp9_restore_coding_context. These functions are
1084
  // intended for use in a re-code loop in vp9_compress_frame where the
1085
  // quantizer value is adjusted between loop iterations.
1086
0
  vp9_copy(cc->nmvjointcost, cpi->td.mb.nmvjointcost);
1087
1088
0
  memcpy(cc->nmvcosts[0], cpi->nmvcosts[0],
1089
0
         MV_VALS * sizeof(*cpi->nmvcosts[0]));
1090
0
  memcpy(cc->nmvcosts[1], cpi->nmvcosts[1],
1091
0
         MV_VALS * sizeof(*cpi->nmvcosts[1]));
1092
0
  memcpy(cc->nmvcosts_hp[0], cpi->nmvcosts_hp[0],
1093
0
         MV_VALS * sizeof(*cpi->nmvcosts_hp[0]));
1094
0
  memcpy(cc->nmvcosts_hp[1], cpi->nmvcosts_hp[1],
1095
0
         MV_VALS * sizeof(*cpi->nmvcosts_hp[1]));
1096
1097
0
  vp9_copy(cc->segment_pred_probs, cm->seg.pred_probs);
1098
1099
0
  memcpy(cpi->coding_context.last_frame_seg_map_copy, cm->last_frame_seg_map,
1100
0
         (cm->mi_rows * cm->mi_cols));
1101
1102
0
  vp9_copy(cc->last_ref_lf_deltas, cm->lf.last_ref_deltas);
1103
0
  vp9_copy(cc->last_mode_lf_deltas, cm->lf.last_mode_deltas);
1104
1105
0
  cc->fc = *cm->fc;
1106
0
}
1107
1108
0
static void restore_coding_context(VP9_COMP *cpi) {
1109
0
  CODING_CONTEXT *const cc = &cpi->coding_context;
1110
0
  VP9_COMMON *cm = &cpi->common;
1111
1112
  // Restore key state variables to the snapshot state stored in the
1113
  // previous call to vp9_save_coding_context.
1114
0
  vp9_copy(cpi->td.mb.nmvjointcost, cc->nmvjointcost);
1115
1116
0
  memcpy(cpi->nmvcosts[0], cc->nmvcosts[0], MV_VALS * sizeof(*cc->nmvcosts[0]));
1117
0
  memcpy(cpi->nmvcosts[1], cc->nmvcosts[1], MV_VALS * sizeof(*cc->nmvcosts[1]));
1118
0
  memcpy(cpi->nmvcosts_hp[0], cc->nmvcosts_hp[0],
1119
0
         MV_VALS * sizeof(*cc->nmvcosts_hp[0]));
1120
0
  memcpy(cpi->nmvcosts_hp[1], cc->nmvcosts_hp[1],
1121
0
         MV_VALS * sizeof(*cc->nmvcosts_hp[1]));
1122
1123
0
  vp9_copy(cm->seg.pred_probs, cc->segment_pred_probs);
1124
1125
0
  memcpy(cm->last_frame_seg_map, cpi->coding_context.last_frame_seg_map_copy,
1126
0
         (cm->mi_rows * cm->mi_cols));
1127
1128
0
  vp9_copy(cm->lf.last_ref_deltas, cc->last_ref_lf_deltas);
1129
0
  vp9_copy(cm->lf.last_mode_deltas, cc->last_mode_lf_deltas);
1130
1131
0
  *cm->fc = cc->fc;
1132
0
}
1133
1134
#if !CONFIG_REALTIME_ONLY
1135
0
static void configure_static_seg_features(VP9_COMP *cpi) {
1136
0
  VP9_COMMON *const cm = &cpi->common;
1137
0
  const RATE_CONTROL *const rc = &cpi->rc;
1138
0
  struct segmentation *const seg = &cm->seg;
1139
1140
0
  int high_q = (int)(rc->avg_q > 48.0);
1141
0
  int qi_delta;
1142
1143
  // Disable and clear down for KF
1144
0
  if (cm->frame_type == KEY_FRAME) {
1145
    // Clear down the global segmentation map
1146
0
    memset(cpi->segmentation_map, 0, cm->mi_rows * cm->mi_cols);
1147
0
    seg->update_map = 0;
1148
0
    seg->update_data = 0;
1149
0
    cpi->static_mb_pct = 0;
1150
1151
    // Disable segmentation
1152
0
    vp9_disable_segmentation(seg);
1153
1154
    // Clear down the segment features.
1155
0
    vp9_clearall_segfeatures(seg);
1156
0
  } else if (cpi->refresh_alt_ref_frame) {
1157
    // If this is an alt ref frame
1158
    // Clear down the global segmentation map
1159
0
    memset(cpi->segmentation_map, 0, cm->mi_rows * cm->mi_cols);
1160
0
    seg->update_map = 0;
1161
0
    seg->update_data = 0;
1162
0
    cpi->static_mb_pct = 0;
1163
1164
    // Disable segmentation and individual segment features by default
1165
0
    vp9_disable_segmentation(seg);
1166
0
    vp9_clearall_segfeatures(seg);
1167
1168
    // Scan frames from current to arf frame.
1169
    // This function re-enables segmentation if appropriate.
1170
0
    vp9_update_mbgraph_stats(cpi);
1171
1172
    // If segmentation was enabled set those features needed for the
1173
    // arf itself.
1174
0
    if (seg->enabled) {
1175
0
      seg->update_map = 1;
1176
0
      seg->update_data = 1;
1177
1178
0
      qi_delta =
1179
0
          vp9_compute_qdelta(rc, rc->avg_q, rc->avg_q * 0.875, cm->bit_depth);
1180
0
      vp9_set_segdata(seg, 1, SEG_LVL_ALT_Q, qi_delta - 2);
1181
0
      vp9_set_segdata(seg, 1, SEG_LVL_ALT_LF, -2);
1182
1183
0
      vp9_enable_segfeature(seg, 1, SEG_LVL_ALT_Q);
1184
0
      vp9_enable_segfeature(seg, 1, SEG_LVL_ALT_LF);
1185
1186
      // Where relevant assume segment data is delta data
1187
0
      seg->abs_delta = SEGMENT_DELTADATA;
1188
0
    }
1189
0
  } else if (seg->enabled) {
1190
    // All other frames if segmentation has been enabled
1191
1192
    // First normal frame in a valid gf or alt ref group
1193
0
    if (rc->frames_since_golden == 0) {
1194
      // Set up segment features for normal frames in an arf group
1195
0
      if (rc->source_alt_ref_active) {
1196
0
        seg->update_map = 0;
1197
0
        seg->update_data = 1;
1198
0
        seg->abs_delta = SEGMENT_DELTADATA;
1199
1200
0
        qi_delta =
1201
0
            vp9_compute_qdelta(rc, rc->avg_q, rc->avg_q * 1.125, cm->bit_depth);
1202
0
        vp9_set_segdata(seg, 1, SEG_LVL_ALT_Q, qi_delta + 2);
1203
0
        vp9_enable_segfeature(seg, 1, SEG_LVL_ALT_Q);
1204
1205
0
        vp9_set_segdata(seg, 1, SEG_LVL_ALT_LF, -2);
1206
0
        vp9_enable_segfeature(seg, 1, SEG_LVL_ALT_LF);
1207
1208
        // Segment coding disabled for compred testing
1209
0
        if (high_q || (cpi->static_mb_pct == 100)) {
1210
0
          vp9_set_segdata(seg, 1, SEG_LVL_REF_FRAME, ALTREF_FRAME);
1211
0
          vp9_enable_segfeature(seg, 1, SEG_LVL_REF_FRAME);
1212
0
          vp9_enable_segfeature(seg, 1, SEG_LVL_SKIP);
1213
0
        }
1214
0
      } else {
1215
        // Disable segmentation and clear down features if alt ref
1216
        // is not active for this group
1217
1218
0
        vp9_disable_segmentation(seg);
1219
1220
0
        memset(cpi->segmentation_map, 0, cm->mi_rows * cm->mi_cols);
1221
1222
0
        seg->update_map = 0;
1223
0
        seg->update_data = 0;
1224
1225
0
        vp9_clearall_segfeatures(seg);
1226
0
      }
1227
0
    } else if (rc->is_src_frame_alt_ref) {
1228
      // Special case where we are coding over the top of a previous
1229
      // alt ref frame.
1230
      // Segment coding disabled for compred testing
1231
1232
      // Enable ref frame features for segment 0 as well
1233
0
      vp9_enable_segfeature(seg, 0, SEG_LVL_REF_FRAME);
1234
0
      vp9_enable_segfeature(seg, 1, SEG_LVL_REF_FRAME);
1235
1236
      // All mbs should use ALTREF_FRAME
1237
0
      vp9_clear_segdata(seg, 0, SEG_LVL_REF_FRAME);
1238
0
      vp9_set_segdata(seg, 0, SEG_LVL_REF_FRAME, ALTREF_FRAME);
1239
0
      vp9_clear_segdata(seg, 1, SEG_LVL_REF_FRAME);
1240
0
      vp9_set_segdata(seg, 1, SEG_LVL_REF_FRAME, ALTREF_FRAME);
1241
1242
      // Skip all MBs if high Q (0,0 mv and skip coeffs)
1243
0
      if (high_q) {
1244
0
        vp9_enable_segfeature(seg, 0, SEG_LVL_SKIP);
1245
0
        vp9_enable_segfeature(seg, 1, SEG_LVL_SKIP);
1246
0
      }
1247
      // Enable data update
1248
0
      seg->update_data = 1;
1249
0
    } else {
1250
      // All other frames.
1251
1252
      // No updates.. leave things as they are.
1253
0
      seg->update_map = 0;
1254
0
      seg->update_data = 0;
1255
0
    }
1256
0
  }
1257
0
}
1258
#endif  // !CONFIG_REALTIME_ONLY
1259
1260
0
static void update_reference_segmentation_map(VP9_COMP *cpi) {
1261
0
  VP9_COMMON *const cm = &cpi->common;
1262
0
  MODE_INFO **mi_8x8_ptr = cm->mi_grid_visible;
1263
0
  uint8_t *cache_ptr = cm->last_frame_seg_map;
1264
0
  int row, col;
1265
1266
0
  for (row = 0; row < cm->mi_rows; row++) {
1267
0
    MODE_INFO **mi_8x8 = mi_8x8_ptr;
1268
0
    uint8_t *cache = cache_ptr;
1269
0
    for (col = 0; col < cm->mi_cols; col++, mi_8x8++, cache++)
1270
0
      cache[0] = mi_8x8[0]->segment_id;
1271
0
    mi_8x8_ptr += cm->mi_stride;
1272
0
    cache_ptr += cm->mi_cols;
1273
0
  }
1274
0
}
1275
1276
54.8k
static void alloc_raw_frame_buffers(VP9_COMP *cpi) {
1277
54.8k
  VP9_COMMON *cm = &cpi->common;
1278
54.8k
  const VP9EncoderConfig *oxcf = &cpi->oxcf;
1279
1280
54.8k
  if (!cpi->lookahead)
1281
3.88k
    cpi->lookahead = vp9_lookahead_init(oxcf->width, oxcf->height,
1282
3.88k
                                        cm->subsampling_x, cm->subsampling_y,
1283
3.88k
#if CONFIG_VP9_HIGHBITDEPTH
1284
3.88k
                                        cm->use_highbitdepth,
1285
3.88k
#endif
1286
3.88k
                                        oxcf->lag_in_frames);
1287
54.8k
  if (!cpi->lookahead)
1288
0
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1289
0
                       "Failed to allocate lag buffers");
1290
1291
  // TODO(agrange) Check if ARF is enabled and skip allocation if not.
1292
54.8k
  if (vpx_realloc_frame_buffer(&cpi->tf_buffer, oxcf->width, oxcf->height,
1293
54.8k
                               cm->subsampling_x, cm->subsampling_y,
1294
54.8k
#if CONFIG_VP9_HIGHBITDEPTH
1295
54.8k
                               cm->use_highbitdepth,
1296
54.8k
#endif
1297
54.8k
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
1298
54.8k
                               NULL, NULL, NULL))
1299
0
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1300
0
                       "Failed to allocate temporal filter buffer");
1301
54.8k
}
1302
1303
58.0k
static void alloc_util_frame_buffers(VP9_COMP *cpi) {
1304
58.0k
  VP9_COMMON *const cm = &cpi->common;
1305
58.0k
  if (vpx_realloc_frame_buffer(&cpi->last_frame_uf, cm->width, cm->height,
1306
58.0k
                               cm->subsampling_x, cm->subsampling_y,
1307
58.0k
#if CONFIG_VP9_HIGHBITDEPTH
1308
58.0k
                               cm->use_highbitdepth,
1309
58.0k
#endif
1310
58.0k
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
1311
58.0k
                               NULL, NULL, NULL))
1312
30
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1313
30
                       "Failed to allocate last frame buffer");
1314
1315
58.0k
  if (vpx_realloc_frame_buffer(&cpi->scaled_source, cm->width, cm->height,
1316
58.0k
                               cm->subsampling_x, cm->subsampling_y,
1317
58.0k
#if CONFIG_VP9_HIGHBITDEPTH
1318
58.0k
                               cm->use_highbitdepth,
1319
58.0k
#endif
1320
58.0k
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
1321
58.0k
                               NULL, NULL, NULL))
1322
0
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1323
0
                       "Failed to allocate scaled source buffer");
1324
1325
  // For 1 pass cbr: allocate scaled_frame that may be used as an intermediate
1326
  // buffer for a 2 stage down-sampling: two stages of 1:2 down-sampling for a
1327
  // target of 1/4x1/4. number_spatial_layers must be greater than 2.
1328
58.0k
  if (is_one_pass_svc(cpi) && !cpi->svc.scaled_temp_is_alloc &&
1329
0
      cpi->svc.number_spatial_layers > 2) {
1330
0
    cpi->svc.scaled_temp_is_alloc = 1;
1331
0
    if (vpx_realloc_frame_buffer(
1332
0
            &cpi->svc.scaled_temp, cm->width >> 1, cm->height >> 1,
1333
0
            cm->subsampling_x, cm->subsampling_y,
1334
0
#if CONFIG_VP9_HIGHBITDEPTH
1335
0
            cm->use_highbitdepth,
1336
0
#endif
1337
0
            VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment, NULL, NULL, NULL))
1338
0
      vpx_internal_error(&cpi->common.error, VPX_CODEC_MEM_ERROR,
1339
0
                         "Failed to allocate scaled_frame for svc ");
1340
0
  }
1341
1342
58.0k
  if (vpx_realloc_frame_buffer(&cpi->scaled_last_source, cm->width, cm->height,
1343
58.0k
                               cm->subsampling_x, cm->subsampling_y,
1344
58.0k
#if CONFIG_VP9_HIGHBITDEPTH
1345
58.0k
                               cm->use_highbitdepth,
1346
58.0k
#endif
1347
58.0k
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
1348
58.0k
                               NULL, NULL, NULL))
1349
0
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1350
0
                       "Failed to allocate scaled last source buffer");
1351
#ifdef ENABLE_KF_DENOISE
1352
  if (vpx_realloc_frame_buffer(&cpi->raw_unscaled_source, cm->width, cm->height,
1353
                               cm->subsampling_x, cm->subsampling_y,
1354
#if CONFIG_VP9_HIGHBITDEPTH
1355
                               cm->use_highbitdepth,
1356
#endif
1357
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
1358
                               NULL, NULL, NULL))
1359
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1360
                       "Failed to allocate unscaled raw source frame buffer");
1361
1362
  if (vpx_realloc_frame_buffer(&cpi->raw_scaled_source, cm->width, cm->height,
1363
                               cm->subsampling_x, cm->subsampling_y,
1364
#if CONFIG_VP9_HIGHBITDEPTH
1365
                               cm->use_highbitdepth,
1366
#endif
1367
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
1368
                               NULL, NULL, NULL))
1369
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1370
                       "Failed to allocate scaled raw source frame buffer");
1371
#endif
1372
58.0k
}
1373
1374
4.01k
static void alloc_context_buffers_ext(VP9_COMP *cpi) {
1375
4.01k
  VP9_COMMON *cm = &cpi->common;
1376
4.01k
  int mi_size = cm->mi_cols * cm->mi_rows;
1377
1378
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->mbmi_ext_base,
1379
4.01k
                  vpx_calloc(mi_size, sizeof(*cpi->mbmi_ext_base)));
1380
4.01k
}
1381
1382
4.01k
static void alloc_compressor_data(VP9_COMP *cpi) {
1383
4.01k
  VP9_COMMON *cm = &cpi->common;
1384
4.01k
  int sb_rows;
1385
1386
4.01k
  if (vp9_alloc_context_buffers(cm, cm->width, cm->height)) {
1387
0
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
1388
0
                       "Failed to allocate context buffers");
1389
0
  }
1390
1391
4.01k
  alloc_context_buffers_ext(cpi);
1392
1393
4.01k
  vpx_free(cpi->tile_tok[0][0]);
1394
1395
4.01k
  {
1396
4.01k
    unsigned int tokens = get_token_alloc(cm->mb_rows, cm->mb_cols);
1397
4.01k
    CHECK_MEM_ERROR(&cm->error, cpi->tile_tok[0][0],
1398
4.01k
                    vpx_calloc(tokens, sizeof(*cpi->tile_tok[0][0])));
1399
4.01k
  }
1400
1401
4.01k
  sb_rows = mi_cols_aligned_to_sb(cm->mi_rows) >> MI_BLOCK_SIZE_LOG2;
1402
4.01k
  vpx_free(cpi->tplist[0][0]);
1403
4.01k
  CHECK_MEM_ERROR(
1404
4.01k
      &cm->error, cpi->tplist[0][0],
1405
4.01k
      vpx_calloc(sb_rows * 4 * (1 << 6), sizeof(*cpi->tplist[0][0])));
1406
1407
4.01k
  vp9_setup_pc_tree(&cpi->common, &cpi->td);
1408
4.01k
}
1409
1410
88.4k
void vp9_new_framerate(VP9_COMP *cpi, double framerate) {
1411
88.4k
  cpi->framerate = framerate < 0.1 ? 30 : framerate;
1412
88.4k
  vp9_rc_update_framerate(cpi);
1413
88.4k
}
1414
1415
69.4k
static void set_tile_limits(VP9_COMP *cpi) {
1416
69.4k
  VP9_COMMON *const cm = &cpi->common;
1417
1418
69.4k
  int min_log2_tile_cols, max_log2_tile_cols;
1419
69.4k
  vp9_get_tile_n_bits(cm->mi_cols, &min_log2_tile_cols, &max_log2_tile_cols);
1420
1421
69.4k
  cm->log2_tile_cols =
1422
69.4k
      clamp(cpi->oxcf.tile_columns, min_log2_tile_cols, max_log2_tile_cols);
1423
1424
  // Max allowed number of tile_rows is 4 (so log2_tile_rows = 2), and each
1425
  // tile_row contains a multiple of superblocks.
1426
69.4k
  const int sb64_rows = mi_cols_aligned_to_sb(cm->mi_rows) >> 3;
1427
69.4k
  const int max_log2_tile_rows = (sb64_rows >= 4)   ? 2
1428
69.4k
                                 : (sb64_rows >= 2) ? 1
1429
61.7k
                                                    : 0;
1430
69.4k
  cm->log2_tile_rows = VPXMIN(cpi->oxcf.tile_rows, max_log2_tile_rows);
1431
1432
69.4k
  if (cpi->oxcf.target_level == LEVEL_AUTO) {
1433
0
    const int level_tile_cols =
1434
0
        log_tile_cols_from_picsize_level(cpi->common.width, cpi->common.height);
1435
0
    if (cm->log2_tile_cols > level_tile_cols) {
1436
0
      cm->log2_tile_cols = VPXMAX(level_tile_cols, min_log2_tile_cols);
1437
0
    }
1438
0
  }
1439
69.4k
}
1440
1441
34.7k
static void update_frame_size(VP9_COMP *cpi) {
1442
34.7k
  VP9_COMMON *const cm = &cpi->common;
1443
34.7k
  MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
1444
1445
34.7k
  vp9_set_mb_mi(cm, cm->width, cm->height);
1446
34.7k
  vp9_init_context_buffers(cm);
1447
34.7k
  vp9_init_macroblockd(cm, xd, NULL);
1448
34.7k
  cpi->td.mb.mbmi_ext_base = cpi->mbmi_ext_base;
1449
34.7k
  memset(cpi->mbmi_ext_base, 0,
1450
34.7k
         cm->mi_rows * cm->mi_cols * sizeof(*cpi->mbmi_ext_base));
1451
1452
34.7k
  set_tile_limits(cpi);
1453
34.7k
}
1454
1455
4.01k
static void init_buffer_indices(VP9_COMP *cpi) {
1456
4.01k
  int ref_frame;
1457
1458
36.1k
  for (ref_frame = 0; ref_frame < REF_FRAMES; ++ref_frame)
1459
32.1k
    cpi->ref_fb_idx[ref_frame] = ref_frame;
1460
1461
4.01k
  cpi->lst_fb_idx = cpi->ref_fb_idx[LAST_FRAME - 1];
1462
4.01k
  cpi->gld_fb_idx = cpi->ref_fb_idx[GOLDEN_FRAME - 1];
1463
4.01k
  cpi->alt_fb_idx = cpi->ref_fb_idx[ALTREF_FRAME - 1];
1464
4.01k
}
1465
1466
4.01k
static void init_level_constraint(LevelConstraint *lc) {
1467
4.01k
  lc->level_index = -1;
1468
4.01k
  lc->max_cpb_size = INT_MAX;
1469
4.01k
  lc->max_frame_size = INT_MAX;
1470
4.01k
  lc->fail_flag = 0;
1471
4.01k
}
1472
1473
38.7k
static void set_level_constraint(LevelConstraint *ls, int8_t level_index) {
1474
38.7k
  vpx_clear_system_state();
1475
38.7k
  ls->level_index = level_index;
1476
38.7k
  if (level_index >= 0) {
1477
0
    ls->max_cpb_size = vp9_level_defs[level_index].max_cpb_size * (double)1000;
1478
0
  }
1479
38.7k
}
1480
1481
4.01k
static void init_config(struct VP9_COMP *cpi, const VP9EncoderConfig *oxcf) {
1482
4.01k
  VP9_COMMON *const cm = &cpi->common;
1483
1484
4.01k
  cpi->oxcf = *oxcf;
1485
4.01k
  cpi->framerate = oxcf->init_framerate;
1486
4.01k
  cm->profile = oxcf->profile;
1487
4.01k
  cm->bit_depth = oxcf->bit_depth;
1488
4.01k
#if CONFIG_VP9_HIGHBITDEPTH
1489
4.01k
  cm->use_highbitdepth = oxcf->use_highbitdepth;
1490
4.01k
#endif
1491
4.01k
  cm->color_space = oxcf->color_space;
1492
4.01k
  cm->color_range = oxcf->color_range;
1493
1494
4.01k
  cpi->target_level = oxcf->target_level;
1495
4.01k
  cpi->keep_level_stats = oxcf->target_level != LEVEL_MAX;
1496
4.01k
  set_level_constraint(&cpi->level_constraint,
1497
4.01k
                       get_level_index(cpi->target_level));
1498
1499
4.01k
  cm->width = oxcf->width;
1500
4.01k
  cm->height = oxcf->height;
1501
4.01k
  alloc_compressor_data(cpi);
1502
1503
4.01k
  cpi->svc.temporal_layering_mode = oxcf->temporal_layering_mode;
1504
1505
  // Single thread case: use counts in common.
1506
4.01k
  cpi->td.counts = &cm->counts;
1507
1508
  // Spatial scalability.
1509
4.01k
  cpi->svc.number_spatial_layers = oxcf->ss_number_layers;
1510
  // Temporal scalability.
1511
4.01k
  cpi->svc.number_temporal_layers = oxcf->ts_number_layers;
1512
1513
4.01k
  if ((cpi->svc.number_temporal_layers > 1) ||
1514
4.01k
      ((cpi->svc.number_temporal_layers > 1 ||
1515
4.01k
        cpi->svc.number_spatial_layers > 1) &&
1516
0
       cpi->oxcf.pass != 1)) {
1517
0
    vp9_init_layer_context(cpi);
1518
0
  }
1519
1520
  // change includes all joint functionality
1521
4.01k
  vp9_change_config(cpi, oxcf);
1522
1523
4.01k
  cpi->static_mb_pct = 0;
1524
4.01k
  cpi->ref_frame_flags = 0;
1525
1526
4.01k
  init_buffer_indices(cpi);
1527
1528
4.01k
  vp9_noise_estimate_init(&cpi->noise_estimate, cm->width, cm->height);
1529
4.01k
  cpi->fixed_qp_onepass = 0;
1530
4.01k
}
1531
1532
34.7k
void vp9_check_reset_rc_flag(VP9_COMP *cpi) {
1533
34.7k
  RATE_CONTROL *rc = &cpi->rc;
1534
1535
34.7k
  if (cpi->common.current_video_frame >
1536
34.7k
      (unsigned int)cpi->svc.number_spatial_layers) {
1537
0
    if (cpi->use_svc) {
1538
0
      vp9_svc_check_reset_layer_rc_flag(cpi);
1539
0
    } else {
1540
0
      if (rc->avg_frame_bandwidth / 3 > (rc->last_avg_frame_bandwidth >> 1) ||
1541
0
          rc->avg_frame_bandwidth < (rc->last_avg_frame_bandwidth >> 1)) {
1542
0
        rc->rc_1_frame = 0;
1543
0
        rc->rc_2_frame = 0;
1544
0
        rc->bits_off_target = rc->optimal_buffer_level;
1545
0
        rc->buffer_level = rc->optimal_buffer_level;
1546
0
      }
1547
0
    }
1548
0
  }
1549
34.7k
}
1550
1551
34.7k
void vp9_set_rc_buffer_sizes(VP9_COMP *cpi) {
1552
34.7k
  RATE_CONTROL *rc = &cpi->rc;
1553
34.7k
  const VP9EncoderConfig *oxcf = &cpi->oxcf;
1554
1555
34.7k
  const int64_t bandwidth = oxcf->target_bandwidth;
1556
34.7k
  const int64_t starting = oxcf->starting_buffer_level_ms;
1557
34.7k
  const int64_t optimal = oxcf->optimal_buffer_level_ms;
1558
34.7k
  const int64_t maximum = oxcf->maximum_buffer_size_ms;
1559
1560
34.7k
  rc->starting_buffer_level = starting * bandwidth / 1000;
1561
34.7k
  rc->optimal_buffer_level =
1562
34.7k
      (optimal == 0) ? bandwidth / 8 : optimal * bandwidth / 1000;
1563
34.7k
  rc->maximum_buffer_size =
1564
34.7k
      (maximum == 0) ? bandwidth / 8 : maximum * bandwidth / 1000;
1565
1566
  // Under a configuration change, where maximum_buffer_size may change,
1567
  // keep buffer level clipped to the maximum allowed buffer size.
1568
34.7k
  rc->bits_off_target = VPXMIN(rc->bits_off_target, rc->maximum_buffer_size);
1569
34.7k
  rc->buffer_level = VPXMIN(rc->buffer_level, rc->maximum_buffer_size);
1570
34.7k
}
1571
1572
#if CONFIG_VP9_HIGHBITDEPTH
1573
#define HIGHBD_BFP(BT, SDF, SDSF, SDAF, VF, SVF, SVAF, SDX4DF, SDSX4DF) \
1574
0
  cpi->fn_ptr[BT].sdf = SDF;                                            \
1575
0
  cpi->fn_ptr[BT].sdsf = SDSF;                                          \
1576
0
  cpi->fn_ptr[BT].sdaf = SDAF;                                          \
1577
0
  cpi->fn_ptr[BT].vf = VF;                                              \
1578
0
  cpi->fn_ptr[BT].svf = SVF;                                            \
1579
0
  cpi->fn_ptr[BT].svaf = SVAF;                                          \
1580
0
  cpi->fn_ptr[BT].sdx4df = SDX4DF;                                      \
1581
0
  cpi->fn_ptr[BT].sdsx4df = SDSX4DF;
1582
1583
#define MAKE_BFP_SAD_WRAPPER(fnname)                                           \
1584
  static unsigned int fnname##_bits8(const uint8_t *src_ptr,                   \
1585
                                     int source_stride,                        \
1586
0
                                     const uint8_t *ref_ptr, int ref_stride) { \
1587
0
    return fnname(src_ptr, source_stride, ref_ptr, ref_stride);                \
1588
0
  }                                                                            \
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x16_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x32_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x32_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x64_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x32_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x64_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x16_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x8_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x16_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x8_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x4_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x8_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x4_bits8
1589
  static unsigned int fnname##_bits10(                                         \
1590
      const uint8_t *src_ptr, int source_stride, const uint8_t *ref_ptr,       \
1591
0
      int ref_stride) {                                                        \
1592
0
    return fnname(src_ptr, source_stride, ref_ptr, ref_stride) >> 2;           \
1593
0
  }                                                                            \
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x16_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x32_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x32_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x64_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x32_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x64_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x16_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x8_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x16_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x8_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x4_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x8_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x4_bits10
1594
  static unsigned int fnname##_bits12(                                         \
1595
      const uint8_t *src_ptr, int source_stride, const uint8_t *ref_ptr,       \
1596
0
      int ref_stride) {                                                        \
1597
0
    return fnname(src_ptr, source_stride, ref_ptr, ref_stride) >> 4;           \
1598
0
  }
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x16_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x32_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x32_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x64_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x32_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x64_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x16_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x8_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x16_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x8_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x4_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x8_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x4_bits12
1599
1600
#define MAKE_BFP_SADAVG_WRAPPER(fnname)                                        \
1601
  static unsigned int fnname##_bits8(                                          \
1602
      const uint8_t *src_ptr, int source_stride, const uint8_t *ref_ptr,       \
1603
0
      int ref_stride, const uint8_t *second_pred) {                            \
1604
0
    return fnname(src_ptr, source_stride, ref_ptr, ref_stride, second_pred);   \
1605
0
  }                                                                            \
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8_avg_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4_avg_bits8
1606
  static unsigned int fnname##_bits10(                                         \
1607
      const uint8_t *src_ptr, int source_stride, const uint8_t *ref_ptr,       \
1608
0
      int ref_stride, const uint8_t *second_pred) {                            \
1609
0
    return fnname(src_ptr, source_stride, ref_ptr, ref_stride, second_pred) >> \
1610
0
           2;                                                                  \
1611
0
  }                                                                            \
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8_avg_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4_avg_bits10
1612
  static unsigned int fnname##_bits12(                                         \
1613
      const uint8_t *src_ptr, int source_stride, const uint8_t *ref_ptr,       \
1614
0
      int ref_stride, const uint8_t *second_pred) {                            \
1615
0
    return fnname(src_ptr, source_stride, ref_ptr, ref_stride, second_pred) >> \
1616
0
           4;                                                                  \
1617
0
  }
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8_avg_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4_avg_bits12
1618
1619
#define MAKE_BFP_SAD4D_WRAPPER(fnname)                                        \
1620
  static void fnname##_bits8(const uint8_t *src_ptr, int source_stride,       \
1621
                             const uint8_t *const ref_ptr[], int ref_stride,  \
1622
0
                             unsigned int *sad_array) {                       \
1623
0
    fnname(src_ptr, source_stride, ref_ptr, ref_stride, sad_array);           \
1624
0
  }                                                                           \
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x16x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x32x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x32x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x64x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x32x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x64x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x16x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x8x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x16x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x8x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x4x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x8x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4x4d_bits8
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x4x4d_bits8
1625
  static void fnname##_bits10(const uint8_t *src_ptr, int source_stride,      \
1626
                              const uint8_t *const ref_ptr[], int ref_stride, \
1627
0
                              unsigned int *sad_array) {                      \
1628
0
    int i;                                                                    \
1629
0
    fnname(src_ptr, source_stride, ref_ptr, ref_stride, sad_array);           \
1630
0
    for (i = 0; i < 4; i++) sad_array[i] >>= 2;                               \
1631
0
  }                                                                           \
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x16x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x32x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x32x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x64x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x32x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x64x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x16x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x8x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x16x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x8x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x4x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x8x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4x4d_bits10
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x4x4d_bits10
1632
  static void fnname##_bits12(const uint8_t *src_ptr, int source_stride,      \
1633
                              const uint8_t *const ref_ptr[], int ref_stride, \
1634
0
                              unsigned int *sad_array) {                      \
1635
0
    int i;                                                                    \
1636
0
    fnname(src_ptr, source_stride, ref_ptr, ref_stride, sad_array);           \
1637
0
    for (i = 0; i < 4; i++) sad_array[i] >>= 4;                               \
1638
0
  }
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x16x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x16x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x32x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x32x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x32x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x32x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x64x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x64x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad32x32x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_32x32x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad64x64x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_64x64x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x16x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x16x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad16x8x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_16x8x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x16x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x16x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x8x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x8x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad8x4x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_8x4x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x8x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x8x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad4x4x4d_bits12
Unexecuted instantiation: vp9_encoder.c:vpx_highbd_sad_skip_4x4x4d_bits12
1639
1640
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad32x16)
1641
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_32x16)
1642
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad32x16_avg)
1643
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad32x16x4d)
1644
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_32x16x4d)
1645
1646
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad16x32)
1647
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_16x32)
1648
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad16x32_avg)
1649
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad16x32x4d)
1650
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_16x32x4d)
1651
1652
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad64x32)
1653
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_64x32)
1654
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad64x32_avg)
1655
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad64x32x4d)
1656
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_64x32x4d)
1657
1658
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad32x64)
1659
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_32x64)
1660
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad32x64_avg)
1661
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad32x64x4d)
1662
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_32x64x4d)
1663
1664
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad32x32)
1665
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_32x32)
1666
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad32x32_avg)
1667
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad32x32x4d)
1668
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_32x32x4d)
1669
1670
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad64x64)
1671
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_64x64)
1672
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad64x64_avg)
1673
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad64x64x4d)
1674
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_64x64x4d)
1675
1676
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad16x16)
1677
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_16x16)
1678
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad16x16_avg)
1679
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad16x16x4d)
1680
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_16x16x4d)
1681
1682
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad16x8)
1683
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_16x8)
1684
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad16x8_avg)
1685
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad16x8x4d)
1686
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_16x8x4d)
1687
1688
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad8x16)
1689
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_8x16)
1690
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad8x16_avg)
1691
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad8x16x4d)
1692
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_8x16x4d)
1693
1694
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad8x8)
1695
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_8x8)
1696
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad8x8_avg)
1697
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad8x8x4d)
1698
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_8x8x4d)
1699
1700
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad8x4)
1701
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_8x4)
1702
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad8x4_avg)
1703
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad8x4x4d)
1704
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_8x4x4d)
1705
1706
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad4x8)
1707
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_4x8)
1708
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad4x8_avg)
1709
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad4x8x4d)
1710
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_4x8x4d)
1711
1712
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad4x4)
1713
MAKE_BFP_SAD_WRAPPER(vpx_highbd_sad_skip_4x4)
1714
MAKE_BFP_SADAVG_WRAPPER(vpx_highbd_sad4x4_avg)
1715
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad4x4x4d)
1716
MAKE_BFP_SAD4D_WRAPPER(vpx_highbd_sad_skip_4x4x4d)
1717
1718
38.7k
static void highbd_set_var_fns(VP9_COMP *const cpi) {
1719
38.7k
  VP9_COMMON *const cm = &cpi->common;
1720
38.7k
  if (cm->use_highbitdepth) {
1721
0
    switch (cm->bit_depth) {
1722
0
      case VPX_BITS_8:
1723
0
        HIGHBD_BFP(
1724
0
            BLOCK_32X16, vpx_highbd_sad32x16_bits8,
1725
0
            vpx_highbd_sad_skip_32x16_bits8, vpx_highbd_sad32x16_avg_bits8,
1726
0
            vpx_highbd_8_variance32x16, vpx_highbd_8_sub_pixel_variance32x16,
1727
0
            vpx_highbd_8_sub_pixel_avg_variance32x16,
1728
0
            vpx_highbd_sad32x16x4d_bits8, vpx_highbd_sad_skip_32x16x4d_bits8)
1729
1730
0
        HIGHBD_BFP(
1731
0
            BLOCK_16X32, vpx_highbd_sad16x32_bits8,
1732
0
            vpx_highbd_sad_skip_16x32_bits8, vpx_highbd_sad16x32_avg_bits8,
1733
0
            vpx_highbd_8_variance16x32, vpx_highbd_8_sub_pixel_variance16x32,
1734
0
            vpx_highbd_8_sub_pixel_avg_variance16x32,
1735
0
            vpx_highbd_sad16x32x4d_bits8, vpx_highbd_sad_skip_16x32x4d_bits8)
1736
1737
0
        HIGHBD_BFP(
1738
0
            BLOCK_64X32, vpx_highbd_sad64x32_bits8,
1739
0
            vpx_highbd_sad_skip_64x32_bits8, vpx_highbd_sad64x32_avg_bits8,
1740
0
            vpx_highbd_8_variance64x32, vpx_highbd_8_sub_pixel_variance64x32,
1741
0
            vpx_highbd_8_sub_pixel_avg_variance64x32,
1742
0
            vpx_highbd_sad64x32x4d_bits8, vpx_highbd_sad_skip_64x32x4d_bits8)
1743
1744
0
        HIGHBD_BFP(
1745
0
            BLOCK_32X64, vpx_highbd_sad32x64_bits8,
1746
0
            vpx_highbd_sad_skip_32x64_bits8, vpx_highbd_sad32x64_avg_bits8,
1747
0
            vpx_highbd_8_variance32x64, vpx_highbd_8_sub_pixel_variance32x64,
1748
0
            vpx_highbd_8_sub_pixel_avg_variance32x64,
1749
0
            vpx_highbd_sad32x64x4d_bits8, vpx_highbd_sad_skip_32x64x4d_bits8)
1750
1751
0
        HIGHBD_BFP(
1752
0
            BLOCK_32X32, vpx_highbd_sad32x32_bits8,
1753
0
            vpx_highbd_sad_skip_32x32_bits8, vpx_highbd_sad32x32_avg_bits8,
1754
0
            vpx_highbd_8_variance32x32, vpx_highbd_8_sub_pixel_variance32x32,
1755
0
            vpx_highbd_8_sub_pixel_avg_variance32x32,
1756
0
            vpx_highbd_sad32x32x4d_bits8, vpx_highbd_sad_skip_32x32x4d_bits8)
1757
1758
0
        HIGHBD_BFP(
1759
0
            BLOCK_64X64, vpx_highbd_sad64x64_bits8,
1760
0
            vpx_highbd_sad_skip_64x64_bits8, vpx_highbd_sad64x64_avg_bits8,
1761
0
            vpx_highbd_8_variance64x64, vpx_highbd_8_sub_pixel_variance64x64,
1762
0
            vpx_highbd_8_sub_pixel_avg_variance64x64,
1763
0
            vpx_highbd_sad64x64x4d_bits8, vpx_highbd_sad_skip_64x64x4d_bits8)
1764
1765
0
        HIGHBD_BFP(
1766
0
            BLOCK_16X16, vpx_highbd_sad16x16_bits8,
1767
0
            vpx_highbd_sad_skip_16x16_bits8, vpx_highbd_sad16x16_avg_bits8,
1768
0
            vpx_highbd_8_variance16x16, vpx_highbd_8_sub_pixel_variance16x16,
1769
0
            vpx_highbd_8_sub_pixel_avg_variance16x16,
1770
0
            vpx_highbd_sad16x16x4d_bits8, vpx_highbd_sad_skip_16x16x4d_bits8)
1771
1772
0
        HIGHBD_BFP(
1773
0
            BLOCK_16X8, vpx_highbd_sad16x8_bits8,
1774
0
            vpx_highbd_sad_skip_16x8_bits8, vpx_highbd_sad16x8_avg_bits8,
1775
0
            vpx_highbd_8_variance16x8, vpx_highbd_8_sub_pixel_variance16x8,
1776
0
            vpx_highbd_8_sub_pixel_avg_variance16x8,
1777
0
            vpx_highbd_sad16x8x4d_bits8, vpx_highbd_sad_skip_16x8x4d_bits8)
1778
1779
0
        HIGHBD_BFP(
1780
0
            BLOCK_8X16, vpx_highbd_sad8x16_bits8,
1781
0
            vpx_highbd_sad_skip_8x16_bits8, vpx_highbd_sad8x16_avg_bits8,
1782
0
            vpx_highbd_8_variance8x16, vpx_highbd_8_sub_pixel_variance8x16,
1783
0
            vpx_highbd_8_sub_pixel_avg_variance8x16,
1784
0
            vpx_highbd_sad8x16x4d_bits8, vpx_highbd_sad_skip_8x16x4d_bits8)
1785
1786
0
        HIGHBD_BFP(BLOCK_8X8, vpx_highbd_sad8x8_bits8,
1787
0
                   vpx_highbd_sad_skip_8x8_bits8, vpx_highbd_sad8x8_avg_bits8,
1788
0
                   vpx_highbd_8_variance8x8, vpx_highbd_8_sub_pixel_variance8x8,
1789
0
                   vpx_highbd_8_sub_pixel_avg_variance8x8,
1790
0
                   vpx_highbd_sad8x8x4d_bits8, vpx_highbd_sad_skip_8x8x4d_bits8)
1791
1792
0
        HIGHBD_BFP(BLOCK_8X4, vpx_highbd_sad8x4_bits8,
1793
0
                   vpx_highbd_sad_skip_8x4_bits8, vpx_highbd_sad8x4_avg_bits8,
1794
0
                   vpx_highbd_8_variance8x4, vpx_highbd_8_sub_pixel_variance8x4,
1795
0
                   vpx_highbd_8_sub_pixel_avg_variance8x4,
1796
0
                   vpx_highbd_sad8x4x4d_bits8, vpx_highbd_sad_skip_8x4x4d_bits8)
1797
1798
0
        HIGHBD_BFP(BLOCK_4X8, vpx_highbd_sad4x8_bits8,
1799
0
                   vpx_highbd_sad_skip_4x8_bits8, vpx_highbd_sad4x8_avg_bits8,
1800
0
                   vpx_highbd_8_variance4x8, vpx_highbd_8_sub_pixel_variance4x8,
1801
0
                   vpx_highbd_8_sub_pixel_avg_variance4x8,
1802
0
                   vpx_highbd_sad4x8x4d_bits8, vpx_highbd_sad_skip_4x8x4d_bits8)
1803
1804
0
        HIGHBD_BFP(BLOCK_4X4, vpx_highbd_sad4x4_bits8,
1805
0
                   vpx_highbd_sad_skip_4x4_bits8, vpx_highbd_sad4x4_avg_bits8,
1806
0
                   vpx_highbd_8_variance4x4, vpx_highbd_8_sub_pixel_variance4x4,
1807
0
                   vpx_highbd_8_sub_pixel_avg_variance4x4,
1808
0
                   vpx_highbd_sad4x4x4d_bits8, vpx_highbd_sad_skip_4x4x4d_bits8)
1809
0
        break;
1810
1811
0
      case VPX_BITS_10:
1812
0
        HIGHBD_BFP(
1813
0
            BLOCK_32X16, vpx_highbd_sad32x16_bits10,
1814
0
            vpx_highbd_sad_skip_32x16_bits10, vpx_highbd_sad32x16_avg_bits10,
1815
0
            vpx_highbd_10_variance32x16, vpx_highbd_10_sub_pixel_variance32x16,
1816
0
            vpx_highbd_10_sub_pixel_avg_variance32x16,
1817
0
            vpx_highbd_sad32x16x4d_bits10, vpx_highbd_sad_skip_32x16x4d_bits10)
1818
1819
0
        HIGHBD_BFP(
1820
0
            BLOCK_16X32, vpx_highbd_sad16x32_bits10,
1821
0
            vpx_highbd_sad_skip_16x32_bits10, vpx_highbd_sad16x32_avg_bits10,
1822
0
            vpx_highbd_10_variance16x32, vpx_highbd_10_sub_pixel_variance16x32,
1823
0
            vpx_highbd_10_sub_pixel_avg_variance16x32,
1824
0
            vpx_highbd_sad16x32x4d_bits10, vpx_highbd_sad_skip_16x32x4d_bits10)
1825
1826
0
        HIGHBD_BFP(
1827
0
            BLOCK_64X32, vpx_highbd_sad64x32_bits10,
1828
0
            vpx_highbd_sad_skip_64x32_bits10, vpx_highbd_sad64x32_avg_bits10,
1829
0
            vpx_highbd_10_variance64x32, vpx_highbd_10_sub_pixel_variance64x32,
1830
0
            vpx_highbd_10_sub_pixel_avg_variance64x32,
1831
0
            vpx_highbd_sad64x32x4d_bits10, vpx_highbd_sad_skip_64x32x4d_bits10)
1832
1833
0
        HIGHBD_BFP(
1834
0
            BLOCK_32X64, vpx_highbd_sad32x64_bits10,
1835
0
            vpx_highbd_sad_skip_32x64_bits10, vpx_highbd_sad32x64_avg_bits10,
1836
0
            vpx_highbd_10_variance32x64, vpx_highbd_10_sub_pixel_variance32x64,
1837
0
            vpx_highbd_10_sub_pixel_avg_variance32x64,
1838
0
            vpx_highbd_sad32x64x4d_bits10, vpx_highbd_sad_skip_32x64x4d_bits10)
1839
1840
0
        HIGHBD_BFP(
1841
0
            BLOCK_32X32, vpx_highbd_sad32x32_bits10,
1842
0
            vpx_highbd_sad_skip_32x32_bits10, vpx_highbd_sad32x32_avg_bits10,
1843
0
            vpx_highbd_10_variance32x32, vpx_highbd_10_sub_pixel_variance32x32,
1844
0
            vpx_highbd_10_sub_pixel_avg_variance32x32,
1845
0
            vpx_highbd_sad32x32x4d_bits10, vpx_highbd_sad_skip_32x32x4d_bits10)
1846
1847
0
        HIGHBD_BFP(
1848
0
            BLOCK_64X64, vpx_highbd_sad64x64_bits10,
1849
0
            vpx_highbd_sad_skip_64x64_bits10, vpx_highbd_sad64x64_avg_bits10,
1850
0
            vpx_highbd_10_variance64x64, vpx_highbd_10_sub_pixel_variance64x64,
1851
0
            vpx_highbd_10_sub_pixel_avg_variance64x64,
1852
0
            vpx_highbd_sad64x64x4d_bits10, vpx_highbd_sad_skip_64x64x4d_bits10)
1853
1854
0
        HIGHBD_BFP(
1855
0
            BLOCK_16X16, vpx_highbd_sad16x16_bits10,
1856
0
            vpx_highbd_sad_skip_16x16_bits10, vpx_highbd_sad16x16_avg_bits10,
1857
0
            vpx_highbd_10_variance16x16, vpx_highbd_10_sub_pixel_variance16x16,
1858
0
            vpx_highbd_10_sub_pixel_avg_variance16x16,
1859
0
            vpx_highbd_sad16x16x4d_bits10, vpx_highbd_sad_skip_16x16x4d_bits10)
1860
1861
0
        HIGHBD_BFP(
1862
0
            BLOCK_16X8, vpx_highbd_sad16x8_bits10,
1863
0
            vpx_highbd_sad_skip_16x8_bits10, vpx_highbd_sad16x8_avg_bits10,
1864
0
            vpx_highbd_10_variance16x8, vpx_highbd_10_sub_pixel_variance16x8,
1865
0
            vpx_highbd_10_sub_pixel_avg_variance16x8,
1866
0
            vpx_highbd_sad16x8x4d_bits10, vpx_highbd_sad_skip_16x8x4d_bits10)
1867
1868
0
        HIGHBD_BFP(
1869
0
            BLOCK_8X16, vpx_highbd_sad8x16_bits10,
1870
0
            vpx_highbd_sad_skip_8x16_bits10, vpx_highbd_sad8x16_avg_bits10,
1871
0
            vpx_highbd_10_variance8x16, vpx_highbd_10_sub_pixel_variance8x16,
1872
0
            vpx_highbd_10_sub_pixel_avg_variance8x16,
1873
0
            vpx_highbd_sad8x16x4d_bits10, vpx_highbd_sad_skip_8x16x4d_bits10)
1874
1875
0
        HIGHBD_BFP(
1876
0
            BLOCK_8X8, vpx_highbd_sad8x8_bits10, vpx_highbd_sad_skip_8x8_bits10,
1877
0
            vpx_highbd_sad8x8_avg_bits10, vpx_highbd_10_variance8x8,
1878
0
            vpx_highbd_10_sub_pixel_variance8x8,
1879
0
            vpx_highbd_10_sub_pixel_avg_variance8x8,
1880
0
            vpx_highbd_sad8x8x4d_bits10, vpx_highbd_sad_skip_8x8x4d_bits10)
1881
1882
0
        HIGHBD_BFP(
1883
0
            BLOCK_8X4, vpx_highbd_sad8x4_bits10, vpx_highbd_sad_skip_8x4_bits10,
1884
0
            vpx_highbd_sad8x4_avg_bits10, vpx_highbd_10_variance8x4,
1885
0
            vpx_highbd_10_sub_pixel_variance8x4,
1886
0
            vpx_highbd_10_sub_pixel_avg_variance8x4,
1887
0
            vpx_highbd_sad8x4x4d_bits10, vpx_highbd_sad_skip_8x4x4d_bits10)
1888
1889
0
        HIGHBD_BFP(
1890
0
            BLOCK_4X8, vpx_highbd_sad4x8_bits10, vpx_highbd_sad_skip_4x8_bits10,
1891
0
            vpx_highbd_sad4x8_avg_bits10, vpx_highbd_10_variance4x8,
1892
0
            vpx_highbd_10_sub_pixel_variance4x8,
1893
0
            vpx_highbd_10_sub_pixel_avg_variance4x8,
1894
0
            vpx_highbd_sad4x8x4d_bits10, vpx_highbd_sad_skip_4x8x4d_bits10)
1895
1896
0
        HIGHBD_BFP(
1897
0
            BLOCK_4X4, vpx_highbd_sad4x4_bits10, vpx_highbd_sad_skip_4x4_bits10,
1898
0
            vpx_highbd_sad4x4_avg_bits10, vpx_highbd_10_variance4x4,
1899
0
            vpx_highbd_10_sub_pixel_variance4x4,
1900
0
            vpx_highbd_10_sub_pixel_avg_variance4x4,
1901
0
            vpx_highbd_sad4x4x4d_bits10, vpx_highbd_sad_skip_4x4x4d_bits10)
1902
0
        break;
1903
1904
0
      default:
1905
0
        assert(cm->bit_depth == VPX_BITS_12);
1906
0
        HIGHBD_BFP(
1907
0
            BLOCK_32X16, vpx_highbd_sad32x16_bits12,
1908
0
            vpx_highbd_sad_skip_32x16_bits12, vpx_highbd_sad32x16_avg_bits12,
1909
0
            vpx_highbd_12_variance32x16, vpx_highbd_12_sub_pixel_variance32x16,
1910
0
            vpx_highbd_12_sub_pixel_avg_variance32x16,
1911
0
            vpx_highbd_sad32x16x4d_bits12, vpx_highbd_sad_skip_32x16x4d_bits12)
1912
1913
0
        HIGHBD_BFP(
1914
0
            BLOCK_16X32, vpx_highbd_sad16x32_bits12,
1915
0
            vpx_highbd_sad_skip_16x32_bits12, vpx_highbd_sad16x32_avg_bits12,
1916
0
            vpx_highbd_12_variance16x32, vpx_highbd_12_sub_pixel_variance16x32,
1917
0
            vpx_highbd_12_sub_pixel_avg_variance16x32,
1918
0
            vpx_highbd_sad16x32x4d_bits12, vpx_highbd_sad_skip_16x32x4d_bits12)
1919
1920
0
        HIGHBD_BFP(
1921
0
            BLOCK_64X32, vpx_highbd_sad64x32_bits12,
1922
0
            vpx_highbd_sad_skip_64x32_bits12, vpx_highbd_sad64x32_avg_bits12,
1923
0
            vpx_highbd_12_variance64x32, vpx_highbd_12_sub_pixel_variance64x32,
1924
0
            vpx_highbd_12_sub_pixel_avg_variance64x32,
1925
0
            vpx_highbd_sad64x32x4d_bits12, vpx_highbd_sad_skip_64x32x4d_bits12)
1926
1927
0
        HIGHBD_BFP(
1928
0
            BLOCK_32X64, vpx_highbd_sad32x64_bits12,
1929
0
            vpx_highbd_sad_skip_32x64_bits12, vpx_highbd_sad32x64_avg_bits12,
1930
0
            vpx_highbd_12_variance32x64, vpx_highbd_12_sub_pixel_variance32x64,
1931
0
            vpx_highbd_12_sub_pixel_avg_variance32x64,
1932
0
            vpx_highbd_sad32x64x4d_bits12, vpx_highbd_sad_skip_32x64x4d_bits12)
1933
1934
0
        HIGHBD_BFP(
1935
0
            BLOCK_32X32, vpx_highbd_sad32x32_bits12,
1936
0
            vpx_highbd_sad_skip_32x32_bits12, vpx_highbd_sad32x32_avg_bits12,
1937
0
            vpx_highbd_12_variance32x32, vpx_highbd_12_sub_pixel_variance32x32,
1938
0
            vpx_highbd_12_sub_pixel_avg_variance32x32,
1939
0
            vpx_highbd_sad32x32x4d_bits12, vpx_highbd_sad_skip_32x32x4d_bits12)
1940
1941
0
        HIGHBD_BFP(
1942
0
            BLOCK_64X64, vpx_highbd_sad64x64_bits12,
1943
0
            vpx_highbd_sad_skip_64x64_bits12, vpx_highbd_sad64x64_avg_bits12,
1944
0
            vpx_highbd_12_variance64x64, vpx_highbd_12_sub_pixel_variance64x64,
1945
0
            vpx_highbd_12_sub_pixel_avg_variance64x64,
1946
0
            vpx_highbd_sad64x64x4d_bits12, vpx_highbd_sad_skip_64x64x4d_bits12)
1947
1948
0
        HIGHBD_BFP(
1949
0
            BLOCK_16X16, vpx_highbd_sad16x16_bits12,
1950
0
            vpx_highbd_sad_skip_16x16_bits12, vpx_highbd_sad16x16_avg_bits12,
1951
0
            vpx_highbd_12_variance16x16, vpx_highbd_12_sub_pixel_variance16x16,
1952
0
            vpx_highbd_12_sub_pixel_avg_variance16x16,
1953
0
            vpx_highbd_sad16x16x4d_bits12, vpx_highbd_sad_skip_16x16x4d_bits12)
1954
1955
0
        HIGHBD_BFP(
1956
0
            BLOCK_16X8, vpx_highbd_sad16x8_bits12,
1957
0
            vpx_highbd_sad_skip_16x8_bits12, vpx_highbd_sad16x8_avg_bits12,
1958
0
            vpx_highbd_12_variance16x8, vpx_highbd_12_sub_pixel_variance16x8,
1959
0
            vpx_highbd_12_sub_pixel_avg_variance16x8,
1960
0
            vpx_highbd_sad16x8x4d_bits12, vpx_highbd_sad_skip_16x8x4d_bits12)
1961
1962
0
        HIGHBD_BFP(
1963
0
            BLOCK_8X16, vpx_highbd_sad8x16_bits12,
1964
0
            vpx_highbd_sad_skip_8x16_bits12, vpx_highbd_sad8x16_avg_bits12,
1965
0
            vpx_highbd_12_variance8x16, vpx_highbd_12_sub_pixel_variance8x16,
1966
0
            vpx_highbd_12_sub_pixel_avg_variance8x16,
1967
0
            vpx_highbd_sad8x16x4d_bits12, vpx_highbd_sad_skip_8x16x4d_bits12)
1968
1969
0
        HIGHBD_BFP(
1970
0
            BLOCK_8X8, vpx_highbd_sad8x8_bits12, vpx_highbd_sad_skip_8x8_bits12,
1971
0
            vpx_highbd_sad8x8_avg_bits12, vpx_highbd_12_variance8x8,
1972
0
            vpx_highbd_12_sub_pixel_variance8x8,
1973
0
            vpx_highbd_12_sub_pixel_avg_variance8x8,
1974
0
            vpx_highbd_sad8x8x4d_bits12, vpx_highbd_sad_skip_8x8x4d_bits12)
1975
1976
0
        HIGHBD_BFP(
1977
0
            BLOCK_8X4, vpx_highbd_sad8x4_bits12, vpx_highbd_sad_skip_8x4_bits12,
1978
0
            vpx_highbd_sad8x4_avg_bits12, vpx_highbd_12_variance8x4,
1979
0
            vpx_highbd_12_sub_pixel_variance8x4,
1980
0
            vpx_highbd_12_sub_pixel_avg_variance8x4,
1981
0
            vpx_highbd_sad8x4x4d_bits12, vpx_highbd_sad_skip_8x4x4d_bits12)
1982
1983
0
        HIGHBD_BFP(
1984
0
            BLOCK_4X8, vpx_highbd_sad4x8_bits12, vpx_highbd_sad_skip_4x8_bits12,
1985
0
            vpx_highbd_sad4x8_avg_bits12, vpx_highbd_12_variance4x8,
1986
0
            vpx_highbd_12_sub_pixel_variance4x8,
1987
0
            vpx_highbd_12_sub_pixel_avg_variance4x8,
1988
0
            vpx_highbd_sad4x8x4d_bits12, vpx_highbd_sad_skip_4x8x4d_bits12)
1989
1990
0
        HIGHBD_BFP(
1991
0
            BLOCK_4X4, vpx_highbd_sad4x4_bits12, vpx_highbd_sad_skip_4x4_bits12,
1992
0
            vpx_highbd_sad4x4_avg_bits12, vpx_highbd_12_variance4x4,
1993
0
            vpx_highbd_12_sub_pixel_variance4x4,
1994
0
            vpx_highbd_12_sub_pixel_avg_variance4x4,
1995
0
            vpx_highbd_sad4x4x4d_bits12, vpx_highbd_sad_skip_4x4x4d_bits12)
1996
0
        break;
1997
0
    }
1998
0
  }
1999
38.7k
}
2000
#endif  // CONFIG_VP9_HIGHBITDEPTH
2001
2002
4.01k
static void realloc_segmentation_maps(VP9_COMP *cpi) {
2003
4.01k
  VP9_COMMON *const cm = &cpi->common;
2004
2005
  // Create the encoder segmentation map and set all entries to 0
2006
4.01k
  vpx_free(cpi->segmentation_map);
2007
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->segmentation_map,
2008
4.01k
                  vpx_calloc(cm->mi_rows * cm->mi_cols, 1));
2009
2010
  // Create a map used for cyclic background refresh.
2011
4.01k
  if (cpi->cyclic_refresh) vp9_cyclic_refresh_free(cpi->cyclic_refresh);
2012
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->cyclic_refresh,
2013
4.01k
                  vp9_cyclic_refresh_alloc(cm->mi_rows, cm->mi_cols));
2014
2015
  // Create a map used to mark inactive areas.
2016
4.01k
  vpx_free(cpi->active_map.map);
2017
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->active_map.map,
2018
4.01k
                  vpx_calloc(cm->mi_rows * cm->mi_cols, 1));
2019
2020
  // And a place holder structure is the coding context
2021
  // for use if we want to save and restore it
2022
4.01k
  vpx_free(cpi->coding_context.last_frame_seg_map_copy);
2023
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->coding_context.last_frame_seg_map_copy,
2024
4.01k
                  vpx_calloc(cm->mi_rows * cm->mi_cols, 1));
2025
4.01k
}
2026
2027
0
static void alloc_copy_partition_data(VP9_COMP *cpi) {
2028
0
  VP9_COMMON *const cm = &cpi->common;
2029
0
  if (cpi->prev_partition == NULL) {
2030
0
    CHECK_MEM_ERROR(&cm->error, cpi->prev_partition,
2031
0
                    (BLOCK_SIZE *)vpx_calloc(cm->mi_stride * cm->mi_rows,
2032
0
                                             sizeof(*cpi->prev_partition)));
2033
0
  }
2034
0
  if (cpi->prev_segment_id == NULL) {
2035
0
    CHECK_MEM_ERROR(
2036
0
        &cm->error, cpi->prev_segment_id,
2037
0
        (int8_t *)vpx_calloc((cm->mi_stride >> 3) * ((cm->mi_rows >> 3) + 1),
2038
0
                             sizeof(*cpi->prev_segment_id)));
2039
0
  }
2040
0
  if (cpi->prev_variance_low == NULL) {
2041
0
    CHECK_MEM_ERROR(&cm->error, cpi->prev_variance_low,
2042
0
                    (uint8_t *)vpx_calloc(
2043
0
                        (cm->mi_stride >> 3) * ((cm->mi_rows >> 3) + 1) * 25,
2044
0
                        sizeof(*cpi->prev_variance_low)));
2045
0
  }
2046
0
  if (cpi->copied_frame_cnt == NULL) {
2047
0
    CHECK_MEM_ERROR(
2048
0
        &cm->error, cpi->copied_frame_cnt,
2049
0
        (uint8_t *)vpx_calloc((cm->mi_stride >> 3) * ((cm->mi_rows >> 3) + 1),
2050
0
                              sizeof(*cpi->copied_frame_cnt)));
2051
0
  }
2052
0
}
2053
2054
0
static void free_copy_partition_data(VP9_COMP *cpi) {
2055
0
  vpx_free(cpi->prev_partition);
2056
0
  cpi->prev_partition = NULL;
2057
0
  vpx_free(cpi->prev_segment_id);
2058
0
  cpi->prev_segment_id = NULL;
2059
0
  vpx_free(cpi->prev_variance_low);
2060
0
  cpi->prev_variance_low = NULL;
2061
0
  vpx_free(cpi->copied_frame_cnt);
2062
0
  cpi->copied_frame_cnt = NULL;
2063
0
}
2064
2065
#if CONFIG_VP9_TEMPORAL_DENOISING
2066
static void setup_denoiser_buffer(VP9_COMP *cpi) {
2067
  VP9_COMMON *const cm = &cpi->common;
2068
  if (cpi->oxcf.noise_sensitivity > 0 &&
2069
      !cpi->denoiser.frame_buffer_initialized) {
2070
    if (vp9_denoiser_alloc(cm, &cpi->svc, &cpi->denoiser, cpi->use_svc,
2071
                           cpi->oxcf.noise_sensitivity, cm->width, cm->height,
2072
                           cm->subsampling_x, cm->subsampling_y,
2073
#if CONFIG_VP9_HIGHBITDEPTH
2074
                           cm->use_highbitdepth,
2075
#endif
2076
                           VP9_ENC_BORDER_IN_PIXELS))
2077
      vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
2078
                         "Failed to allocate denoiser");
2079
  }
2080
}
2081
#endif
2082
2083
34.7k
void vp9_change_config(struct VP9_COMP *cpi, const VP9EncoderConfig *oxcf) {
2084
34.7k
  VP9_COMMON *const cm = &cpi->common;
2085
34.7k
  RATE_CONTROL *const rc = &cpi->rc;
2086
34.7k
  int last_w = cpi->oxcf.width;
2087
34.7k
  int last_h = cpi->oxcf.height;
2088
2089
34.7k
  vp9_init_quantizer(cpi);
2090
34.7k
  if (cm->profile != oxcf->profile) cm->profile = oxcf->profile;
2091
34.7k
  cm->bit_depth = oxcf->bit_depth;
2092
34.7k
  cm->color_space = oxcf->color_space;
2093
34.7k
  cm->color_range = oxcf->color_range;
2094
2095
34.7k
  cpi->target_level = oxcf->target_level;
2096
34.7k
  cpi->keep_level_stats = oxcf->target_level != LEVEL_MAX;
2097
34.7k
  set_level_constraint(&cpi->level_constraint,
2098
34.7k
                       get_level_index(cpi->target_level));
2099
2100
34.7k
  if (cm->profile <= PROFILE_1)
2101
34.7k
    assert(cm->bit_depth == VPX_BITS_8);
2102
0
  else
2103
34.7k
    assert(cm->bit_depth > VPX_BITS_8);
2104
2105
34.7k
  cpi->oxcf = *oxcf;
2106
34.7k
#if CONFIG_VP9_HIGHBITDEPTH
2107
34.7k
  cpi->td.mb.e_mbd.bd = (int)cm->bit_depth;
2108
34.7k
#endif  // CONFIG_VP9_HIGHBITDEPTH
2109
2110
34.7k
  if ((oxcf->pass == 0) && (oxcf->rc_mode == VPX_Q)) {
2111
1.78k
    rc->baseline_gf_interval = FIXED_GF_INTERVAL;
2112
32.9k
  } else {
2113
32.9k
    rc->baseline_gf_interval = (MIN_GF_INTERVAL + MAX_GF_INTERVAL) / 2;
2114
32.9k
  }
2115
2116
34.7k
  cpi->refresh_golden_frame = 0;
2117
34.7k
  cpi->refresh_last_frame = 1;
2118
34.7k
  cm->refresh_frame_context = 1;
2119
34.7k
  cm->reset_frame_context = 0;
2120
2121
34.7k
  vp9_reset_segment_features(&cm->seg);
2122
34.7k
  vp9_set_high_precision_mv(cpi, 0);
2123
2124
34.7k
  {
2125
34.7k
    int i;
2126
2127
312k
    for (i = 0; i < MAX_SEGMENTS; i++)
2128
277k
      cpi->segment_encode_breakout[i] = cpi->oxcf.encode_breakout;
2129
34.7k
  }
2130
34.7k
  cpi->encode_breakout = cpi->oxcf.encode_breakout;
2131
2132
34.7k
  vp9_set_rc_buffer_sizes(cpi);
2133
2134
  // Set up frame rate and related parameters rate control values.
2135
34.7k
  vp9_new_framerate(cpi, cpi->framerate);
2136
2137
  // Set absolute upper and lower quality limits
2138
34.7k
  rc->worst_quality = cpi->oxcf.worst_allowed_q;
2139
34.7k
  rc->best_quality = cpi->oxcf.best_allowed_q;
2140
2141
34.7k
  cm->interp_filter = cpi->sf.default_interp_filter;
2142
2143
34.7k
  if (cpi->oxcf.render_width > 0 && cpi->oxcf.render_height > 0) {
2144
0
    cm->render_width = cpi->oxcf.render_width;
2145
0
    cm->render_height = cpi->oxcf.render_height;
2146
34.7k
  } else {
2147
34.7k
    cm->render_width = cpi->oxcf.width;
2148
34.7k
    cm->render_height = cpi->oxcf.height;
2149
34.7k
  }
2150
34.7k
  if (last_w != cpi->oxcf.width || last_h != cpi->oxcf.height) {
2151
0
    cm->width = cpi->oxcf.width;
2152
0
    cm->height = cpi->oxcf.height;
2153
0
    cpi->external_resize = 1;
2154
0
  }
2155
2156
34.7k
  int new_mi_size = 0;
2157
34.7k
  vp9_set_mb_mi(cm, cm->width, cm->height);
2158
34.7k
  new_mi_size = cm->mi_stride * calc_mi_size(cm->mi_rows);
2159
34.7k
  if (cm->mi_alloc_size < new_mi_size) {
2160
0
    vp9_free_context_buffers(cm);
2161
0
    vp9_free_pc_tree(&cpi->td);
2162
0
    vpx_free(cpi->mbmi_ext_base);
2163
0
    alloc_compressor_data(cpi);
2164
0
    realloc_segmentation_maps(cpi);
2165
0
    cpi->initial_width = cpi->initial_height = 0;
2166
0
    cpi->external_resize = 0;
2167
34.7k
  } else if (cm->mi_alloc_size == new_mi_size &&
2168
34.7k
             (cpi->oxcf.width > last_w || cpi->oxcf.height > last_h)) {
2169
0
    if (vp9_alloc_loop_filter(cm)) {
2170
0
      vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
2171
0
                         "Failed to allocate loop filter data");
2172
0
    }
2173
0
  }
2174
2175
34.7k
  if (cm->current_video_frame == 0 || last_w != cpi->oxcf.width ||
2176
0
      last_h != cpi->oxcf.height)
2177
34.7k
    update_frame_size(cpi);
2178
2179
34.7k
  if (last_w != cpi->oxcf.width || last_h != cpi->oxcf.height) {
2180
0
    vpx_free(cpi->consec_zero_mv);
2181
0
    CHECK_MEM_ERROR(
2182
0
        &cm->error, cpi->consec_zero_mv,
2183
0
        vpx_calloc(cm->mi_rows * cm->mi_cols, sizeof(*cpi->consec_zero_mv)));
2184
2185
0
    vpx_free(cpi->skin_map);
2186
0
    CHECK_MEM_ERROR(
2187
0
        &cm->error, cpi->skin_map,
2188
0
        vpx_calloc(cm->mi_rows * cm->mi_cols, sizeof(*cpi->skin_map)));
2189
2190
0
    if (cpi->svc.number_spatial_layers > 1) {
2191
#if CONFIG_VP9_TEMPORAL_DENOISING
2192
      // Reset the denoiser for svc on the resize change.
2193
      if (cpi->oxcf.noise_sensitivity > 0) {
2194
        vp9_denoiser_free(&cpi->denoiser);
2195
        setup_denoiser_buffer(cpi);
2196
      }
2197
#endif
2198
0
      if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ) {
2199
0
        for (int sl = 0; sl < cpi->svc.number_spatial_layers; ++sl) {
2200
0
          const int layer =
2201
0
              LAYER_IDS_TO_IDX(sl, 0, cpi->svc.number_temporal_layers);
2202
0
          LAYER_CONTEXT *const lc = &cpi->svc.layer_context[layer];
2203
0
          lc->sb_index = 0;
2204
0
          lc->actual_num_seg1_blocks = 0;
2205
0
          lc->actual_num_seg2_blocks = 0;
2206
0
          lc->counter_encode_maxq_scene_change = 0;
2207
0
          vpx_free(lc->map);
2208
0
          CHECK_MEM_ERROR(
2209
0
              &cm->error, lc->map,
2210
0
              vpx_calloc(cm->mi_rows * cm->mi_cols, sizeof(*lc->map)));
2211
0
          vpx_free(lc->last_coded_q_map);
2212
0
          CHECK_MEM_ERROR(&cm->error, lc->last_coded_q_map,
2213
0
                          vpx_malloc(cm->mi_rows * cm->mi_cols *
2214
0
                                     sizeof(*lc->last_coded_q_map)));
2215
0
          memset(lc->last_coded_q_map, MAXQ, cm->mi_rows * cm->mi_cols);
2216
0
          vpx_free(lc->consec_zero_mv);
2217
0
          CHECK_MEM_ERROR(&cm->error, lc->consec_zero_mv,
2218
0
                          vpx_calloc(cm->mi_rows * cm->mi_cols,
2219
0
                                     sizeof(*lc->consec_zero_mv)));
2220
0
        }
2221
0
        cpi->refresh_golden_frame = 1;
2222
0
        cpi->refresh_alt_ref_frame = 1;
2223
0
      }
2224
0
    }
2225
2226
0
    free_copy_partition_data(cpi);
2227
0
    alloc_copy_partition_data(cpi);
2228
0
    if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ &&
2229
0
        cpi->svc.number_spatial_layers == 1)
2230
0
      vp9_cyclic_refresh_reset_resize(cpi);
2231
0
    rc->rc_1_frame = 0;
2232
0
    rc->rc_2_frame = 0;
2233
0
  }
2234
2235
34.7k
  if ((cpi->svc.number_temporal_layers > 1) ||
2236
34.7k
      ((cpi->svc.number_temporal_layers > 1 ||
2237
34.7k
        cpi->svc.number_spatial_layers > 1) &&
2238
0
       cpi->oxcf.pass != 1)) {
2239
0
    vp9_update_layer_context_change_config(cpi,
2240
0
                                           (int)cpi->oxcf.target_bandwidth);
2241
0
  }
2242
2243
34.7k
  vp9_check_reset_rc_flag(cpi);
2244
2245
34.7k
  cpi->alt_ref_source = NULL;
2246
34.7k
  rc->is_src_frame_alt_ref = 0;
2247
2248
#if 0
2249
  // Experimental RD Code
2250
  cpi->frame_distortion = 0;
2251
  cpi->last_frame_distortion = 0;
2252
#endif
2253
2254
34.7k
  set_tile_limits(cpi);
2255
2256
34.7k
  cpi->ext_refresh_frame_flags_pending = 0;
2257
34.7k
  cpi->ext_refresh_frame_context_pending = 0;
2258
2259
34.7k
#if CONFIG_VP9_HIGHBITDEPTH
2260
34.7k
  highbd_set_var_fns(cpi);
2261
34.7k
#endif
2262
2263
34.7k
  vp9_set_row_mt(cpi);
2264
34.7k
}
2265
2266
/***********************************************************************
2267
 * Read before modifying 'cal_nmvjointsadcost' or 'cal_nmvsadcosts'    *
2268
 ***********************************************************************
2269
 * The following 2 functions ('cal_nmvjointsadcost' and                *
2270
 * 'cal_nmvsadcosts') are used to calculate cost lookup tables         *
2271
 * used by 'vp9_diamond_search_sad'. The C implementation of the       *
2272
 * function is generic, but the NEON intrinsics optimised version      *
2273
 * relies on the following properties of the computed tables:          *
2274
 * For cal_nmvjointsadcost:                                            *
2275
 *   - mvjointsadcost[1] == mvjointsadcost[2] == mvjointsadcost[3]     *
2276
 * For cal_nmvsadcosts:                                                *
2277
 *   - For all i: mvsadcost[0][i] == mvsadcost[1][i]                   *
2278
 *         (Equal costs for both components)                           *
2279
 *   - For all i: mvsadcost[0][i] == mvsadcost[0][-i]                  *
2280
 *         (Cost function is even)                                     *
2281
 * If these do not hold, then the NEON optimised version of the        *
2282
 * 'vp9_diamond_search_sad' function cannot be used as it is, in which *
2283
 * case you can revert to using the C function instead.                *
2284
 ***********************************************************************/
2285
2286
4.01k
static void cal_nmvjointsadcost(int *mvjointsadcost) {
2287
  /*********************************************************************
2288
   * Warning: Read the comments above before modifying this function   *
2289
   *********************************************************************/
2290
4.01k
  mvjointsadcost[0] = 600;
2291
4.01k
  mvjointsadcost[1] = 300;
2292
4.01k
  mvjointsadcost[2] = 300;
2293
4.01k
  mvjointsadcost[3] = 300;
2294
4.01k
}
2295
2296
4.01k
static void cal_nmvsadcosts(int *mvsadcost[2]) {
2297
  /*********************************************************************
2298
   * Warning: Read the comments above before modifying this function   *
2299
   *********************************************************************/
2300
4.01k
  int i = 1;
2301
2302
4.01k
  mvsadcost[0][0] = 0;
2303
4.01k
  mvsadcost[1][0] = 0;
2304
2305
65.7M
  do {
2306
65.7M
    double z = 256 * (2 * (log2f(8 * i) + .6));
2307
65.7M
    mvsadcost[0][i] = (int)z;
2308
65.7M
    mvsadcost[1][i] = (int)z;
2309
65.7M
    mvsadcost[0][-i] = (int)z;
2310
65.7M
    mvsadcost[1][-i] = (int)z;
2311
65.7M
  } while (++i <= MV_MAX);
2312
4.01k
}
2313
2314
4.01k
static void cal_nmvsadcosts_hp(int *mvsadcost[2]) {
2315
4.01k
  int i = 1;
2316
2317
4.01k
  mvsadcost[0][0] = 0;
2318
4.01k
  mvsadcost[1][0] = 0;
2319
2320
65.7M
  do {
2321
65.7M
    double z = 256 * (2 * (log2f(8 * i) + .6));
2322
65.7M
    mvsadcost[0][i] = (int)z;
2323
65.7M
    mvsadcost[1][i] = (int)z;
2324
65.7M
    mvsadcost[0][-i] = (int)z;
2325
65.7M
    mvsadcost[1][-i] = (int)z;
2326
65.7M
  } while (++i <= MV_MAX);
2327
4.01k
}
2328
2329
4.01k
static void init_ref_frame_bufs(VP9_COMMON *cm) {
2330
4.01k
  int i;
2331
4.01k
  BufferPool *const pool = cm->buffer_pool;
2332
4.01k
  cm->new_fb_idx = INVALID_IDX;
2333
36.1k
  for (i = 0; i < REF_FRAMES; ++i) {
2334
32.1k
    cm->ref_frame_map[i] = INVALID_IDX;
2335
32.1k
  }
2336
52.2k
  for (i = 0; i < FRAME_BUFFERS; ++i) {
2337
48.1k
    pool->frame_bufs[i].ref_count = 0;
2338
48.1k
  }
2339
4.01k
}
2340
2341
static void update_initial_width(VP9_COMP *cpi, int use_highbitdepth,
2342
54.8k
                                 int subsampling_x, int subsampling_y) {
2343
54.8k
  VP9_COMMON *const cm = &cpi->common;
2344
#if !CONFIG_VP9_HIGHBITDEPTH
2345
  (void)use_highbitdepth;
2346
  assert(use_highbitdepth == 0);
2347
#endif
2348
2349
54.8k
  if (!cpi->initial_width ||
2350
54.8k
#if CONFIG_VP9_HIGHBITDEPTH
2351
54.8k
      cm->use_highbitdepth != use_highbitdepth ||
2352
54.8k
#endif
2353
54.8k
      cm->subsampling_x != subsampling_x ||
2354
50.9k
      cm->subsampling_y != subsampling_y) {
2355
3.91k
    cm->subsampling_x = subsampling_x;
2356
3.91k
    cm->subsampling_y = subsampling_y;
2357
3.91k
#if CONFIG_VP9_HIGHBITDEPTH
2358
3.91k
    cm->use_highbitdepth = use_highbitdepth;
2359
3.91k
#endif
2360
3.91k
    alloc_util_frame_buffers(cpi);
2361
    // The initial_width/height is used to clamp the encoding width/height in
2362
    // vp9_set_size_literal(). The check below is added to avoid setting the
2363
    // initial_width/height to a smaller resolution than the one configured.
2364
    // This can happen when the user passes in a lower resolution on the very
2365
    // first frame (after creating the encoder with a larger resolution). For
2366
    // spatial layers this will prevent user from going back up in resolution
2367
    // (i.e., the top layer will get stuck at the lower resolution).
2368
3.91k
    if (cm->width > cpi->initial_width || cm->height > cpi->initial_height) {
2369
0
      cpi->initial_width = cm->width;
2370
0
      cpi->initial_height = cm->height;
2371
0
    }
2372
3.91k
    cpi->initial_mbs = cm->MBs;
2373
3.91k
  }
2374
54.8k
}
2375
2376
VP9_COMP *vp9_create_compressor(const VP9EncoderConfig *oxcf,
2377
4.01k
                                BufferPool *const pool) {
2378
4.01k
  unsigned int i;
2379
4.01k
  VP9_COMP *volatile const cpi = vpx_memalign(32, sizeof(*cpi));
2380
4.01k
  VP9_COMMON *volatile const cm = cpi != NULL ? &cpi->common : NULL;
2381
2382
4.01k
  if (!cm) return NULL;
2383
2384
4.01k
  vp9_zero(*cpi);
2385
2386
4.01k
  if (setjmp(cm->error.jmp)) {
2387
0
    cm->error.setjmp = 0;
2388
0
    vp9_remove_compressor(cpi);
2389
0
    return 0;
2390
0
  }
2391
2392
4.01k
  cm->error.setjmp = 1;
2393
4.01k
  cm->alloc_mi = vp9_enc_alloc_mi;
2394
4.01k
  cm->free_mi = vp9_enc_free_mi;
2395
4.01k
  cm->setup_mi = vp9_enc_setup_mi;
2396
2397
4.01k
  CHECK_MEM_ERROR(&cm->error, cm->fc,
2398
4.01k
                  (FRAME_CONTEXT *)vpx_calloc(1, sizeof(*cm->fc)));
2399
4.01k
  CHECK_MEM_ERROR(
2400
4.01k
      &cm->error, cm->frame_contexts,
2401
4.01k
      (FRAME_CONTEXT *)vpx_calloc(FRAME_CONTEXTS, sizeof(*cm->frame_contexts)));
2402
2403
4.01k
  cpi->compute_frame_low_motion_onepass = 1;
2404
4.01k
  cpi->use_svc = 0;
2405
4.01k
  cpi->resize_state = ORIG;
2406
4.01k
  cpi->external_resize = 0;
2407
4.01k
  cpi->resize_avg_qp = 0;
2408
4.01k
  cpi->resize_buffer_underflow = 0;
2409
4.01k
  cpi->use_skin_detection = 0;
2410
4.01k
  cpi->common.buffer_pool = pool;
2411
4.01k
  init_ref_frame_bufs(cm);
2412
2413
4.01k
  cpi->force_update_segmentation = 0;
2414
2415
4.01k
  init_config(cpi, oxcf);
2416
4.01k
  cpi->frame_info = vp9_get_frame_info(oxcf);
2417
2418
4.01k
  vp9_rc_init(&cpi->oxcf, oxcf->pass, &cpi->rc);
2419
4.01k
  vp9_init_rd_parameters(cpi);
2420
2421
4.01k
  init_frame_indexes(cm);
2422
4.01k
  cpi->initial_width = cpi->oxcf.width;
2423
4.01k
  cpi->initial_height = cpi->oxcf.height;
2424
4.01k
  cpi->tile_data = NULL;
2425
2426
4.01k
  realloc_segmentation_maps(cpi);
2427
2428
4.01k
  CHECK_MEM_ERROR(
2429
4.01k
      &cm->error, cpi->skin_map,
2430
4.01k
      vpx_calloc(cm->mi_rows * cm->mi_cols, sizeof(*cpi->skin_map)));
2431
2432
4.01k
#if !CONFIG_REALTIME_ONLY
2433
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->alt_ref_aq, vp9_alt_ref_aq_create());
2434
4.01k
#endif
2435
2436
4.01k
  CHECK_MEM_ERROR(
2437
4.01k
      &cm->error, cpi->consec_zero_mv,
2438
4.01k
      vpx_calloc(cm->mi_rows * cm->mi_cols, sizeof(*cpi->consec_zero_mv)));
2439
2440
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvcosts[0],
2441
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvcosts[0])));
2442
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvcosts[1],
2443
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvcosts[1])));
2444
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvcosts_hp[0],
2445
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvcosts_hp[0])));
2446
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvcosts_hp[1],
2447
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvcosts_hp[1])));
2448
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvsadcosts[0],
2449
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvsadcosts[0])));
2450
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvsadcosts[1],
2451
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvsadcosts[1])));
2452
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvsadcosts_hp[0],
2453
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvsadcosts_hp[0])));
2454
4.01k
  CHECK_MEM_ERROR(&cm->error, cpi->nmvsadcosts_hp[1],
2455
4.01k
                  vpx_calloc(MV_VALS, sizeof(*cpi->nmvsadcosts_hp[1])));
2456
2457
104k
  for (i = 0; i < (sizeof(cpi->mbgraph_stats) / sizeof(cpi->mbgraph_stats[0]));
2458
100k
       i++) {
2459
100k
    CHECK_MEM_ERROR(
2460
100k
        &cm->error, cpi->mbgraph_stats[i].mb_stats,
2461
100k
        vpx_calloc(cm->MBs * sizeof(*cpi->mbgraph_stats[i].mb_stats), 1));
2462
100k
  }
2463
2464
4.01k
  cpi->refresh_alt_ref_frame = 0;
2465
4.01k
  cpi->b_calculate_psnr = CONFIG_INTERNAL_STATS;
2466
2467
4.01k
  init_level_info(&cpi->level_info);
2468
4.01k
  init_level_constraint(&cpi->level_constraint);
2469
2470
#if CONFIG_INTERNAL_STATS
2471
  cpi->b_calculate_blockiness = 1;
2472
  cpi->b_calculate_consistency = 1;
2473
  cpi->total_inconsistency = 0;
2474
  cpi->psnr.worst = 100.0;
2475
  cpi->worst_ssim = 100.0;
2476
2477
  cpi->count = 0;
2478
  cpi->bytes = 0;
2479
2480
  if (cpi->b_calculate_psnr) {
2481
    cpi->total_sq_error = 0;
2482
    cpi->total_samples = 0;
2483
2484
    cpi->totalp_sq_error = 0;
2485
    cpi->totalp_samples = 0;
2486
2487
    cpi->tot_recode_hits = 0;
2488
    cpi->summed_quality = 0;
2489
    cpi->summed_weights = 0;
2490
    cpi->summedp_quality = 0;
2491
    cpi->summedp_weights = 0;
2492
  }
2493
2494
  cpi->fastssim.worst = 100.0;
2495
2496
  cpi->psnrhvs.worst = 100.0;
2497
2498
  if (cpi->b_calculate_blockiness) {
2499
    cpi->total_blockiness = 0;
2500
    cpi->worst_blockiness = 0.0;
2501
  }
2502
2503
  if (cpi->b_calculate_consistency) {
2504
    CHECK_MEM_ERROR(&cm->error, cpi->ssim_vars,
2505
                    vpx_calloc(cpi->common.mi_rows * cpi->common.mi_cols,
2506
                               sizeof(*cpi->ssim_vars) * 4));
2507
    cpi->worst_consistency = 100.0;
2508
  } else {
2509
    cpi->ssim_vars = NULL;
2510
  }
2511
2512
#endif
2513
2514
4.01k
  cpi->first_time_stamp_ever = INT64_MAX;
2515
2516
  /*********************************************************************
2517
   * Warning: Read the comments around 'cal_nmvjointsadcost' and       *
2518
   * 'cal_nmvsadcosts' before modifying how these tables are computed. *
2519
   *********************************************************************/
2520
4.01k
  cal_nmvjointsadcost(cpi->td.mb.nmvjointsadcost);
2521
4.01k
  cpi->td.mb.nmvcost[0] = &cpi->nmvcosts[0][MV_MAX];
2522
4.01k
  cpi->td.mb.nmvcost[1] = &cpi->nmvcosts[1][MV_MAX];
2523
4.01k
  cpi->td.mb.nmvsadcost[0] = &cpi->nmvsadcosts[0][MV_MAX];
2524
4.01k
  cpi->td.mb.nmvsadcost[1] = &cpi->nmvsadcosts[1][MV_MAX];
2525
4.01k
  cal_nmvsadcosts(cpi->td.mb.nmvsadcost);
2526
2527
4.01k
  cpi->td.mb.nmvcost_hp[0] = &cpi->nmvcosts_hp[0][MV_MAX];
2528
4.01k
  cpi->td.mb.nmvcost_hp[1] = &cpi->nmvcosts_hp[1][MV_MAX];
2529
4.01k
  cpi->td.mb.nmvsadcost_hp[0] = &cpi->nmvsadcosts_hp[0][MV_MAX];
2530
4.01k
  cpi->td.mb.nmvsadcost_hp[1] = &cpi->nmvsadcosts_hp[1][MV_MAX];
2531
4.01k
  cal_nmvsadcosts_hp(cpi->td.mb.nmvsadcost_hp);
2532
2533
#if CONFIG_VP9_TEMPORAL_DENOISING
2534
#ifdef OUTPUT_YUV_DENOISED
2535
  yuv_denoised_file = fopen("denoised.yuv", "ab");
2536
#endif
2537
#endif
2538
#ifdef OUTPUT_YUV_SKINMAP
2539
  yuv_skinmap_file = fopen("skinmap.yuv", "wb");
2540
#endif
2541
#ifdef OUTPUT_YUV_REC
2542
  yuv_rec_file = fopen("rec.yuv", "wb");
2543
#endif
2544
#ifdef OUTPUT_YUV_SVC_SRC
2545
  yuv_svc_src[0] = fopen("svc_src_0.yuv", "wb");
2546
  yuv_svc_src[1] = fopen("svc_src_1.yuv", "wb");
2547
  yuv_svc_src[2] = fopen("svc_src_2.yuv", "wb");
2548
#endif
2549
2550
#if 0
2551
  framepsnr = fopen("framepsnr.stt", "a");
2552
  kf_list = fopen("kf_list.stt", "w");
2553
#endif
2554
2555
4.01k
  cpi->allow_encode_breakout = ENCODE_BREAKOUT_ENABLED;
2556
2557
4.01k
  {
2558
4.01k
    vpx_codec_err_t codec_status = vp9_extrc_init(&cpi->ext_ratectrl);
2559
4.01k
    if (codec_status != VPX_CODEC_OK) {
2560
0
      vpx_internal_error(&cm->error, codec_status, "vp9_extrc_init() failed");
2561
0
    }
2562
4.01k
  }
2563
2564
4.01k
#if !CONFIG_REALTIME_ONLY
2565
4.01k
  if (oxcf->pass == 1) {
2566
0
    vp9_init_first_pass(cpi);
2567
4.01k
  } else if (oxcf->pass == 2) {
2568
0
    const size_t packet_sz = sizeof(FIRSTPASS_STATS);
2569
0
    const int packets = (int)(oxcf->two_pass_stats_in.sz / packet_sz);
2570
2571
0
    if (cpi->svc.number_spatial_layers > 1 ||
2572
0
        cpi->svc.number_temporal_layers > 1) {
2573
0
      FIRSTPASS_STATS *const stats = oxcf->two_pass_stats_in.buf;
2574
0
      FIRSTPASS_STATS *stats_copy[VPX_SS_MAX_LAYERS] = { 0 };
2575
0
      int n;
2576
2577
0
      for (n = 0; n < oxcf->ss_number_layers; ++n) {
2578
0
        FIRSTPASS_STATS *const last_packet_for_layer =
2579
0
            &stats[packets - oxcf->ss_number_layers + n];
2580
0
        const int layer_id = (int)last_packet_for_layer->spatial_layer_id;
2581
0
        const int packets_in_layer = (int)last_packet_for_layer->count + 1;
2582
0
        if (layer_id >= 0 && layer_id < oxcf->ss_number_layers) {
2583
0
          int num_frames;
2584
0
          LAYER_CONTEXT *const lc = &cpi->svc.layer_context[layer_id];
2585
2586
0
          vpx_free(lc->rc_twopass_stats_in.buf);
2587
2588
0
          lc->rc_twopass_stats_in.sz = packets_in_layer * packet_sz;
2589
0
          CHECK_MEM_ERROR(&cm->error, lc->rc_twopass_stats_in.buf,
2590
0
                          vpx_malloc(lc->rc_twopass_stats_in.sz));
2591
0
          lc->twopass.stats_in_start = lc->rc_twopass_stats_in.buf;
2592
0
          lc->twopass.stats_in = lc->twopass.stats_in_start;
2593
0
          lc->twopass.stats_in_end =
2594
0
              lc->twopass.stats_in_start + packets_in_layer - 1;
2595
          // Note the last packet is cumulative first pass stats.
2596
          // So the number of frames is packet number minus one
2597
0
          num_frames = packets_in_layer - 1;
2598
0
          fps_init_first_pass_info(&lc->twopass.first_pass_info,
2599
0
                                   lc->rc_twopass_stats_in.buf, num_frames);
2600
0
          stats_copy[layer_id] = lc->rc_twopass_stats_in.buf;
2601
0
        }
2602
0
      }
2603
2604
0
      for (n = 0; n < packets; ++n) {
2605
0
        const int layer_id = (int)stats[n].spatial_layer_id;
2606
0
        if (layer_id >= 0 && layer_id < oxcf->ss_number_layers &&
2607
0
            stats_copy[layer_id] != NULL) {
2608
0
          *stats_copy[layer_id] = stats[n];
2609
0
          ++stats_copy[layer_id];
2610
0
        }
2611
0
      }
2612
2613
0
      vp9_init_second_pass_spatial_svc(cpi);
2614
0
    } else {
2615
0
      int num_frames;
2616
2617
0
      cpi->twopass.stats_in_start = oxcf->two_pass_stats_in.buf;
2618
0
      cpi->twopass.stats_in = cpi->twopass.stats_in_start;
2619
0
      cpi->twopass.stats_in_end = &cpi->twopass.stats_in[packets - 1];
2620
      // Note the last packet is cumulative first pass stats.
2621
      // So the number of frames is packet number minus one
2622
0
      num_frames = packets - 1;
2623
0
      fps_init_first_pass_info(&cpi->twopass.first_pass_info,
2624
0
                               oxcf->two_pass_stats_in.buf, num_frames);
2625
2626
0
      vp9_init_second_pass(cpi);
2627
0
    }
2628
0
  }
2629
4.01k
#endif  // !CONFIG_REALTIME_ONLY
2630
2631
4.01k
  cpi->mb_wiener_var_cols = 0;
2632
4.01k
  cpi->mb_wiener_var_rows = 0;
2633
4.01k
  cpi->mb_wiener_variance = NULL;
2634
2635
4.01k
  vp9_set_speed_features_framesize_independent(cpi, oxcf->speed);
2636
4.01k
  vp9_set_speed_features_framesize_dependent(cpi, oxcf->speed);
2637
2638
4.01k
  {
2639
4.01k
    const int bsize = BLOCK_16X16;
2640
4.01k
    const int w = num_8x8_blocks_wide_lookup[bsize];
2641
4.01k
    const int h = num_8x8_blocks_high_lookup[bsize];
2642
4.01k
    const int num_cols = (cm->mi_cols + w - 1) / w;
2643
4.01k
    const int num_rows = (cm->mi_rows + h - 1) / h;
2644
4.01k
    CHECK_MEM_ERROR(&cm->error, cpi->mi_ssim_rdmult_scaling_factors,
2645
4.01k
                    vpx_calloc(num_rows * num_cols,
2646
4.01k
                               sizeof(*cpi->mi_ssim_rdmult_scaling_factors)));
2647
4.01k
  }
2648
2649
4.01k
  cpi->kmeans_data_arr_alloc = 0;
2650
#if CONFIG_NON_GREEDY_MV
2651
  cpi->tpl_ready = 0;
2652
#endif  // CONFIG_NON_GREEDY_MV
2653
204k
  for (i = 0; i < MAX_ARF_GOP_SIZE; ++i) {
2654
200k
    cpi->tpl_stats[i].tpl_stats_ptr = NULL;
2655
200k
  }
2656
2657
4.01k
#define BFP(BT, SDF, SDSF, SDAF, VF, SVF, SVAF, SDX4DF, SDSX4DF) \
2658
52.2k
  cpi->fn_ptr[BT].sdf = SDF;                                     \
2659
52.2k
  cpi->fn_ptr[BT].sdsf = SDSF;                                   \
2660
52.2k
  cpi->fn_ptr[BT].sdaf = SDAF;                                   \
2661
52.2k
  cpi->fn_ptr[BT].vf = VF;                                       \
2662
52.2k
  cpi->fn_ptr[BT].svf = SVF;                                     \
2663
52.2k
  cpi->fn_ptr[BT].svaf = SVAF;                                   \
2664
52.2k
  cpi->fn_ptr[BT].sdx4df = SDX4DF;                               \
2665
52.2k
  cpi->fn_ptr[BT].sdsx4df = SDSX4DF;
2666
2667
4.01k
  BFP(BLOCK_32X16, vpx_sad32x16, vpx_sad_skip_32x16, vpx_sad32x16_avg,
2668
4.01k
      vpx_variance32x16, vpx_sub_pixel_variance32x16,
2669
4.01k
      vpx_sub_pixel_avg_variance32x16, vpx_sad32x16x4d, vpx_sad_skip_32x16x4d)
2670
2671
4.01k
  BFP(BLOCK_16X32, vpx_sad16x32, vpx_sad_skip_16x32, vpx_sad16x32_avg,
2672
4.01k
      vpx_variance16x32, vpx_sub_pixel_variance16x32,
2673
4.01k
      vpx_sub_pixel_avg_variance16x32, vpx_sad16x32x4d, vpx_sad_skip_16x32x4d)
2674
2675
4.01k
  BFP(BLOCK_64X32, vpx_sad64x32, vpx_sad_skip_64x32, vpx_sad64x32_avg,
2676
4.01k
      vpx_variance64x32, vpx_sub_pixel_variance64x32,
2677
4.01k
      vpx_sub_pixel_avg_variance64x32, vpx_sad64x32x4d, vpx_sad_skip_64x32x4d)
2678
2679
4.01k
  BFP(BLOCK_32X64, vpx_sad32x64, vpx_sad_skip_32x64, vpx_sad32x64_avg,
2680
4.01k
      vpx_variance32x64, vpx_sub_pixel_variance32x64,
2681
4.01k
      vpx_sub_pixel_avg_variance32x64, vpx_sad32x64x4d, vpx_sad_skip_32x64x4d)
2682
2683
4.01k
  BFP(BLOCK_32X32, vpx_sad32x32, vpx_sad_skip_32x32, vpx_sad32x32_avg,
2684
4.01k
      vpx_variance32x32, vpx_sub_pixel_variance32x32,
2685
4.01k
      vpx_sub_pixel_avg_variance32x32, vpx_sad32x32x4d, vpx_sad_skip_32x32x4d)
2686
2687
4.01k
  BFP(BLOCK_64X64, vpx_sad64x64, vpx_sad_skip_64x64, vpx_sad64x64_avg,
2688
4.01k
      vpx_variance64x64, vpx_sub_pixel_variance64x64,
2689
4.01k
      vpx_sub_pixel_avg_variance64x64, vpx_sad64x64x4d, vpx_sad_skip_64x64x4d)
2690
2691
4.01k
  BFP(BLOCK_16X16, vpx_sad16x16, vpx_sad_skip_16x16, vpx_sad16x16_avg,
2692
4.01k
      vpx_variance16x16, vpx_sub_pixel_variance16x16,
2693
4.01k
      vpx_sub_pixel_avg_variance16x16, vpx_sad16x16x4d, vpx_sad_skip_16x16x4d)
2694
2695
4.01k
  BFP(BLOCK_16X8, vpx_sad16x8, vpx_sad_skip_16x8, vpx_sad16x8_avg,
2696
4.01k
      vpx_variance16x8, vpx_sub_pixel_variance16x8,
2697
4.01k
      vpx_sub_pixel_avg_variance16x8, vpx_sad16x8x4d, vpx_sad_skip_16x8x4d)
2698
2699
4.01k
  BFP(BLOCK_8X16, vpx_sad8x16, vpx_sad_skip_8x16, vpx_sad8x16_avg,
2700
4.01k
      vpx_variance8x16, vpx_sub_pixel_variance8x16,
2701
4.01k
      vpx_sub_pixel_avg_variance8x16, vpx_sad8x16x4d, vpx_sad_skip_8x16x4d)
2702
2703
4.01k
  BFP(BLOCK_8X8, vpx_sad8x8, vpx_sad_skip_8x8, vpx_sad8x8_avg, vpx_variance8x8,
2704
4.01k
      vpx_sub_pixel_variance8x8, vpx_sub_pixel_avg_variance8x8, vpx_sad8x8x4d,
2705
4.01k
      vpx_sad_skip_8x8x4d)
2706
2707
4.01k
  BFP(BLOCK_8X4, vpx_sad8x4, vpx_sad_skip_8x4, vpx_sad8x4_avg, vpx_variance8x4,
2708
4.01k
      vpx_sub_pixel_variance8x4, vpx_sub_pixel_avg_variance8x4, vpx_sad8x4x4d,
2709
4.01k
      vpx_sad_skip_8x4x4d)
2710
2711
4.01k
  BFP(BLOCK_4X8, vpx_sad4x8, vpx_sad_skip_4x8, vpx_sad4x8_avg, vpx_variance4x8,
2712
4.01k
      vpx_sub_pixel_variance4x8, vpx_sub_pixel_avg_variance4x8, vpx_sad4x8x4d,
2713
4.01k
      vpx_sad_skip_4x8x4d)
2714
2715
4.01k
  BFP(BLOCK_4X4, vpx_sad4x4, vpx_sad_skip_4x4, vpx_sad4x4_avg, vpx_variance4x4,
2716
4.01k
      vpx_sub_pixel_variance4x4, vpx_sub_pixel_avg_variance4x4, vpx_sad4x4x4d,
2717
4.01k
      vpx_sad_skip_4x4x4d)
2718
2719
4.01k
#if CONFIG_VP9_HIGHBITDEPTH
2720
4.01k
  highbd_set_var_fns(cpi);
2721
4.01k
#endif
2722
2723
  /* vp9_init_quantizer() is first called here. Add check in
2724
   * vp9_frame_init_quantizer() so that vp9_init_quantizer is only
2725
   * called later when needed. This will avoid unnecessary calls of
2726
   * vp9_init_quantizer() for every frame.
2727
   */
2728
4.01k
  vp9_init_quantizer(cpi);
2729
2730
4.01k
  vp9_loop_filter_init(cm);
2731
2732
  // Set up the unit scaling factor used during motion search.
2733
4.01k
#if CONFIG_VP9_HIGHBITDEPTH
2734
4.01k
  vp9_setup_scale_factors_for_frame(&cpi->me_sf, cm->width, cm->height,
2735
4.01k
                                    cm->width, cm->height,
2736
4.01k
                                    cm->use_highbitdepth);
2737
#else
2738
  vp9_setup_scale_factors_for_frame(&cpi->me_sf, cm->width, cm->height,
2739
                                    cm->width, cm->height);
2740
#endif  // CONFIG_VP9_HIGHBITDEPTH
2741
4.01k
  cpi->td.mb.me_sf = &cpi->me_sf;
2742
2743
4.01k
  cm->error.setjmp = 0;
2744
2745
4.01k
  return cpi;
2746
4.01k
}
2747
2748
#if CONFIG_INTERNAL_STATS
2749
#define SNPRINT(H, T) snprintf((H) + strlen(H), sizeof(H) - strlen(H), (T))
2750
2751
#define SNPRINT2(H, T, V) \
2752
  snprintf((H) + strlen(H), sizeof(H) - strlen(H), (T), (V))
2753
#endif  // CONFIG_INTERNAL_STATS
2754
2755
4.06k
void vp9_remove_compressor(VP9_COMP *cpi) {
2756
4.06k
  VP9_COMMON *cm;
2757
4.06k
  unsigned int i;
2758
2759
4.06k
  if (!cpi) return;
2760
2761
#if CONFIG_INTERNAL_STATS
2762
  vpx_free(cpi->ssim_vars);
2763
#endif
2764
2765
4.01k
  cm = &cpi->common;
2766
4.01k
  if (cm->current_video_frame > 0) {
2767
#if CONFIG_INTERNAL_STATS
2768
    vpx_clear_system_state();
2769
2770
    if (cpi->oxcf.pass != 1) {
2771
      char headings[512] = { 0 };
2772
      char results[512] = { 0 };
2773
      FILE *f = fopen("opsnr.stt", "a");
2774
      double time_encoded =
2775
          (cpi->last_end_time_stamp_seen - cpi->first_time_stamp_ever) /
2776
          10000000.000;
2777
      double total_encode_time =
2778
          (cpi->time_receive_data + cpi->time_compress_data) / 1000.000;
2779
      const double dr =
2780
          (double)cpi->bytes * (double)8 / (double)1000 / time_encoded;
2781
      const double peak = (double)((1 << cpi->oxcf.input_bit_depth) - 1);
2782
      const double target_rate = (double)cpi->oxcf.target_bandwidth / 1000;
2783
      const double rate_err = ((100.0 * (dr - target_rate)) / target_rate);
2784
2785
      if (cpi->b_calculate_psnr) {
2786
        const double total_psnr = vpx_sse_to_psnr(
2787
            (double)cpi->total_samples, peak, (double)cpi->total_sq_error);
2788
        const double totalp_psnr = vpx_sse_to_psnr(
2789
            (double)cpi->totalp_samples, peak, (double)cpi->totalp_sq_error);
2790
        const double total_ssim =
2791
            100 * pow(cpi->summed_quality / cpi->summed_weights, 8.0);
2792
        const double totalp_ssim =
2793
            100 * pow(cpi->summedp_quality / cpi->summedp_weights, 8.0);
2794
2795
        snprintf(headings, sizeof(headings),
2796
                 "Bitrate\tAVGPsnr\tGLBPsnr\tAVPsnrP\tGLPsnrP\t"
2797
                 "VPXSSIM\tVPSSIMP\tFASTSIM\tPSNRHVS\t"
2798
                 "WstPsnr\tWstSsim\tWstFast\tWstHVS\t"
2799
                 "AVPsnrY\tAPsnrCb\tAPsnrCr");
2800
        snprintf(results, sizeof(results),
2801
                 "%7.2f\t%7.3f\t%7.3f\t%7.3f\t%7.3f\t"
2802
                 "%7.3f\t%7.3f\t%7.3f\t%7.3f\t"
2803
                 "%7.3f\t%7.3f\t%7.3f\t%7.3f\t"
2804
                 "%7.3f\t%7.3f\t%7.3f",
2805
                 dr, cpi->psnr.stat[ALL] / cpi->count, total_psnr,
2806
                 cpi->psnrp.stat[ALL] / cpi->count, totalp_psnr, total_ssim,
2807
                 totalp_ssim, cpi->fastssim.stat[ALL] / cpi->count,
2808
                 cpi->psnrhvs.stat[ALL] / cpi->count, cpi->psnr.worst,
2809
                 cpi->worst_ssim, cpi->fastssim.worst, cpi->psnrhvs.worst,
2810
                 cpi->psnr.stat[Y] / cpi->count, cpi->psnr.stat[U] / cpi->count,
2811
                 cpi->psnr.stat[V] / cpi->count);
2812
2813
        if (cpi->b_calculate_blockiness) {
2814
          SNPRINT(headings, "\t  Block\tWstBlck");
2815
          SNPRINT2(results, "\t%7.3f", cpi->total_blockiness / cpi->count);
2816
          SNPRINT2(results, "\t%7.3f", cpi->worst_blockiness);
2817
        }
2818
2819
        if (cpi->b_calculate_consistency) {
2820
          double consistency =
2821
              vpx_sse_to_psnr((double)cpi->totalp_samples, peak,
2822
                              (double)cpi->total_inconsistency);
2823
2824
          SNPRINT(headings, "\tConsist\tWstCons");
2825
          SNPRINT2(results, "\t%7.3f", consistency);
2826
          SNPRINT2(results, "\t%7.3f", cpi->worst_consistency);
2827
        }
2828
2829
        SNPRINT(headings, "\t    Time\tRcErr\tAbsErr");
2830
        SNPRINT2(results, "\t%8.0f", total_encode_time);
2831
        SNPRINT2(results, "\t%7.2f", rate_err);
2832
        SNPRINT2(results, "\t%7.2f", fabs(rate_err));
2833
2834
        fprintf(f, "%s\tAPsnr611\n", headings);
2835
        fprintf(
2836
            f, "%s\t%7.3f\n", results,
2837
            (6 * cpi->psnr.stat[Y] + cpi->psnr.stat[U] + cpi->psnr.stat[V]) /
2838
                (cpi->count * 8));
2839
      }
2840
2841
      fclose(f);
2842
    }
2843
#endif
2844
2845
#if 0
2846
    {
2847
      printf("\n_pick_loop_filter_level:%d\n", cpi->time_pick_lpf / 1000);
2848
      printf("\n_frames receive_data encod_mb_row compress_frame  Total\n");
2849
      printf("%6d %10ld %10ld %10ld %10ld\n", cpi->common.current_video_frame,
2850
             cpi->time_receive_data / 1000, cpi->time_encode_sb_row / 1000,
2851
             cpi->time_compress_data / 1000,
2852
             (cpi->time_receive_data + cpi->time_compress_data) / 1000);
2853
    }
2854
#endif
2855
3.88k
  }
2856
2857
#if CONFIG_VP9_TEMPORAL_DENOISING
2858
  vp9_denoiser_free(&(cpi->denoiser));
2859
#endif
2860
2861
4.01k
  if (cpi->kmeans_data_arr_alloc) {
2862
3.88k
#if CONFIG_MULTITHREAD
2863
3.88k
    pthread_mutex_destroy(&cpi->kmeans_mutex);
2864
3.88k
#endif
2865
3.88k
    vpx_free(cpi->kmeans_data_arr);
2866
3.88k
  }
2867
2868
4.01k
  vp9_free_tpl_buffer(cpi);
2869
2870
4.01k
  vp9_loop_filter_dealloc(&cpi->lf_row_sync);
2871
4.01k
  vp9_bitstream_encode_tiles_buffer_dealloc(cpi);
2872
4.01k
  vp9_row_mt_mem_dealloc(cpi);
2873
4.01k
  vp9_encode_free_mt_data(cpi);
2874
2875
4.01k
#if !CONFIG_REALTIME_ONLY
2876
4.01k
  vp9_alt_ref_aq_destroy(cpi->alt_ref_aq);
2877
4.01k
#endif
2878
2879
4.01k
  dealloc_compressor_data(cpi);
2880
2881
104k
  for (i = 0; i < sizeof(cpi->mbgraph_stats) / sizeof(cpi->mbgraph_stats[0]);
2882
100k
       ++i) {
2883
100k
    vpx_free(cpi->mbgraph_stats[i].mb_stats);
2884
100k
  }
2885
2886
4.01k
  vp9_extrc_delete(&cpi->ext_ratectrl);
2887
2888
  // Help detect use after free of the error detail string.
2889
4.01k
  memset(cm->error.detail, 'A', sizeof(cm->error.detail) - 1);
2890
4.01k
  cm->error.detail[sizeof(cm->error.detail) - 1] = '\0';
2891
2892
4.01k
  vp9_remove_common(cm);
2893
4.01k
  vp9_free_ref_frame_buffers(cm->buffer_pool);
2894
#if CONFIG_VP9_POSTPROC
2895
  vp9_free_postproc_buffers(cm);
2896
#endif
2897
4.01k
  vpx_free(cpi);
2898
2899
#if CONFIG_VP9_TEMPORAL_DENOISING
2900
#ifdef OUTPUT_YUV_DENOISED
2901
  fclose(yuv_denoised_file);
2902
#endif
2903
#endif
2904
#ifdef OUTPUT_YUV_SKINMAP
2905
  fclose(yuv_skinmap_file);
2906
#endif
2907
#ifdef OUTPUT_YUV_REC
2908
  fclose(yuv_rec_file);
2909
#endif
2910
#ifdef OUTPUT_YUV_SVC_SRC
2911
  fclose(yuv_svc_src[0]);
2912
  fclose(yuv_svc_src[1]);
2913
  fclose(yuv_svc_src[2]);
2914
#endif
2915
2916
#if 0
2917
2918
  if (keyfile)
2919
    fclose(keyfile);
2920
2921
  if (framepsnr)
2922
    fclose(framepsnr);
2923
2924
  if (kf_list)
2925
    fclose(kf_list);
2926
2927
#endif
2928
4.01k
}
2929
2930
54.0k
int vp9_get_psnr(const VP9_COMP *cpi, PSNR_STATS *psnr) {
2931
54.0k
  if (is_psnr_calc_enabled(cpi)) {
2932
0
#if CONFIG_VP9_HIGHBITDEPTH
2933
0
    vpx_calc_highbd_psnr(cpi->raw_source_frame, cpi->common.frame_to_show, psnr,
2934
0
                         cpi->td.mb.e_mbd.bd, cpi->oxcf.input_bit_depth,
2935
0
                         cpi->svc.spatial_layer_id);
2936
#else
2937
    vpx_calc_psnr(cpi->raw_source_frame, cpi->common.frame_to_show, psnr,
2938
                  cpi->svc.spatial_layer_id);
2939
#endif
2940
0
    return 1;
2941
54.0k
  } else {
2942
54.0k
    vp9_zero(*psnr);
2943
54.0k
    return 0;
2944
54.0k
  }
2945
54.0k
}
2946
2947
0
int vp9_use_as_reference(VP9_COMP *cpi, int ref_frame_flags) {
2948
0
  if (ref_frame_flags > 7) return -1;
2949
2950
0
  cpi->ref_frame_flags = ref_frame_flags;
2951
0
  return 0;
2952
0
}
2953
2954
0
void vp9_update_reference(VP9_COMP *cpi, int ref_frame_flags) {
2955
0
  cpi->ext_refresh_golden_frame = (ref_frame_flags & VP9_GOLD_FLAG) != 0;
2956
0
  cpi->ext_refresh_alt_ref_frame = (ref_frame_flags & VP9_ALT_FLAG) != 0;
2957
0
  cpi->ext_refresh_last_frame = (ref_frame_flags & VP9_LAST_FLAG) != 0;
2958
0
  cpi->ext_refresh_frame_flags_pending = 1;
2959
0
}
2960
2961
static YV12_BUFFER_CONFIG *get_vp9_ref_frame_buffer(
2962
0
    VP9_COMP *cpi, VP9_REFFRAME ref_frame_flag) {
2963
0
  MV_REFERENCE_FRAME ref_frame = NO_REF_FRAME;
2964
0
  if (ref_frame_flag == VP9_LAST_FLAG)
2965
0
    ref_frame = LAST_FRAME;
2966
0
  else if (ref_frame_flag == VP9_GOLD_FLAG)
2967
0
    ref_frame = GOLDEN_FRAME;
2968
0
  else if (ref_frame_flag == VP9_ALT_FLAG)
2969
0
    ref_frame = ALTREF_FRAME;
2970
2971
0
  return ref_frame == NO_REF_FRAME ? NULL
2972
0
                                   : get_ref_frame_buffer(cpi, ref_frame);
2973
0
}
2974
2975
int vp9_copy_reference_enc(VP9_COMP *cpi, VP9_REFFRAME ref_frame_flag,
2976
0
                           YV12_BUFFER_CONFIG *sd) {
2977
0
  YV12_BUFFER_CONFIG *cfg = get_vp9_ref_frame_buffer(cpi, ref_frame_flag);
2978
0
  if (cfg) {
2979
0
    vpx_yv12_copy_frame(cfg, sd);
2980
0
    return 0;
2981
0
  } else {
2982
0
    return -1;
2983
0
  }
2984
0
}
2985
2986
int vp9_set_reference_enc(VP9_COMP *cpi, VP9_REFFRAME ref_frame_flag,
2987
0
                          YV12_BUFFER_CONFIG *sd) {
2988
0
  YV12_BUFFER_CONFIG *cfg = get_vp9_ref_frame_buffer(cpi, ref_frame_flag);
2989
0
  if (cfg) {
2990
0
    vpx_yv12_copy_frame(sd, cfg);
2991
0
    return 0;
2992
0
  } else {
2993
0
    return -1;
2994
0
  }
2995
0
}
2996
2997
0
int vp9_update_entropy(VP9_COMP *cpi, int update) {
2998
0
  cpi->ext_refresh_frame_context = update;
2999
0
  cpi->ext_refresh_frame_context_pending = 1;
3000
0
  return 0;
3001
0
}
3002
3003
#ifdef OUTPUT_YUV_REC
3004
void vp9_write_yuv_rec_frame(VP9_COMMON *cm) {
3005
  YV12_BUFFER_CONFIG *s = cm->frame_to_show;
3006
  uint8_t *src = s->y_buffer;
3007
  int h = cm->height;
3008
3009
#if CONFIG_VP9_HIGHBITDEPTH
3010
  if (s->flags & YV12_FLAG_HIGHBITDEPTH) {
3011
    uint16_t *src16 = CONVERT_TO_SHORTPTR(s->y_buffer);
3012
3013
    do {
3014
      fwrite(src16, s->y_width, 2, yuv_rec_file);
3015
      src16 += s->y_stride;
3016
    } while (--h);
3017
3018
    src16 = CONVERT_TO_SHORTPTR(s->u_buffer);
3019
    h = s->uv_height;
3020
3021
    do {
3022
      fwrite(src16, s->uv_width, 2, yuv_rec_file);
3023
      src16 += s->uv_stride;
3024
    } while (--h);
3025
3026
    src16 = CONVERT_TO_SHORTPTR(s->v_buffer);
3027
    h = s->uv_height;
3028
3029
    do {
3030
      fwrite(src16, s->uv_width, 2, yuv_rec_file);
3031
      src16 += s->uv_stride;
3032
    } while (--h);
3033
3034
    fflush(yuv_rec_file);
3035
    return;
3036
  }
3037
#endif  // CONFIG_VP9_HIGHBITDEPTH
3038
3039
  do {
3040
    fwrite(src, s->y_width, 1, yuv_rec_file);
3041
    src += s->y_stride;
3042
  } while (--h);
3043
3044
  src = s->u_buffer;
3045
  h = s->uv_height;
3046
3047
  do {
3048
    fwrite(src, s->uv_width, 1, yuv_rec_file);
3049
    src += s->uv_stride;
3050
  } while (--h);
3051
3052
  src = s->v_buffer;
3053
  h = s->uv_height;
3054
3055
  do {
3056
    fwrite(src, s->uv_width, 1, yuv_rec_file);
3057
    src += s->uv_stride;
3058
  } while (--h);
3059
3060
  fflush(yuv_rec_file);
3061
}
3062
#endif
3063
3064
#if CONFIG_VP9_HIGHBITDEPTH
3065
void vp9_scale_and_extend_frame_nonnormative(const YV12_BUFFER_CONFIG *src,
3066
0
                                             YV12_BUFFER_CONFIG *dst, int bd) {
3067
#else
3068
void vp9_scale_and_extend_frame_nonnormative(const YV12_BUFFER_CONFIG *src,
3069
                                             YV12_BUFFER_CONFIG *dst) {
3070
#endif  // CONFIG_VP9_HIGHBITDEPTH
3071
  // TODO(dkovalev): replace YV12_BUFFER_CONFIG with vpx_image_t
3072
0
  int i;
3073
0
  const uint8_t *const srcs[3] = { src->y_buffer, src->u_buffer,
3074
0
                                   src->v_buffer };
3075
0
  const int src_strides[3] = { src->y_stride, src->uv_stride, src->uv_stride };
3076
0
  const int src_widths[3] = { src->y_crop_width, src->uv_crop_width,
3077
0
                              src->uv_crop_width };
3078
0
  const int src_heights[3] = { src->y_crop_height, src->uv_crop_height,
3079
0
                               src->uv_crop_height };
3080
0
  uint8_t *const dsts[3] = { dst->y_buffer, dst->u_buffer, dst->v_buffer };
3081
0
  const int dst_strides[3] = { dst->y_stride, dst->uv_stride, dst->uv_stride };
3082
0
  const int dst_widths[3] = { dst->y_crop_width, dst->uv_crop_width,
3083
0
                              dst->uv_crop_width };
3084
0
  const int dst_heights[3] = { dst->y_crop_height, dst->uv_crop_height,
3085
0
                               dst->uv_crop_height };
3086
3087
0
  for (i = 0; i < MAX_MB_PLANE; ++i) {
3088
0
#if CONFIG_VP9_HIGHBITDEPTH
3089
0
    if (src->flags & YV12_FLAG_HIGHBITDEPTH) {
3090
0
      vp9_highbd_resize_plane(srcs[i], src_heights[i], src_widths[i],
3091
0
                              src_strides[i], dsts[i], dst_heights[i],
3092
0
                              dst_widths[i], dst_strides[i], bd);
3093
0
    } else {
3094
0
      vp9_resize_plane(srcs[i], src_heights[i], src_widths[i], src_strides[i],
3095
0
                       dsts[i], dst_heights[i], dst_widths[i], dst_strides[i]);
3096
0
    }
3097
#else
3098
    vp9_resize_plane(srcs[i], src_heights[i], src_widths[i], src_strides[i],
3099
                     dsts[i], dst_heights[i], dst_widths[i], dst_strides[i]);
3100
#endif  // CONFIG_VP9_HIGHBITDEPTH
3101
0
  }
3102
0
  vpx_extend_frame_borders(dst);
3103
0
}
3104
3105
#if CONFIG_VP9_HIGHBITDEPTH
3106
static void scale_and_extend_frame(const YV12_BUFFER_CONFIG *src,
3107
                                   YV12_BUFFER_CONFIG *dst, int bd,
3108
                                   INTERP_FILTER filter_type,
3109
0
                                   int phase_scaler) {
3110
0
  const int src_w = src->y_crop_width;
3111
0
  const int src_h = src->y_crop_height;
3112
0
  const int dst_w = dst->y_crop_width;
3113
0
  const int dst_h = dst->y_crop_height;
3114
3115
  // The issue b/311394513 reveals a corner case bug.
3116
  // For bd = 8, vpx_scaled_2d() requires both x_step_q4 and y_step_q4 are less
3117
  // than or equal to 64. For bd >= 10, vpx_highbd_convolve8() requires both
3118
  // x_step_q4 and y_step_q4 are less than or equal to 32. If this condition
3119
  // isn't met, it needs to call vp9_scale_and_extend_frame_nonnormative() that
3120
  // supports arbitrary scaling.
3121
0
  const int x_step_q4 = 16 * src_w / dst_w;
3122
0
  const int y_step_q4 = 16 * src_h / dst_h;
3123
0
  const int is_arbitrary_scaling =
3124
0
      (bd == 8 && (x_step_q4 > 64 || y_step_q4 > 64)) ||
3125
0
      (bd >= 10 && (x_step_q4 > 32 || y_step_q4 > 32));
3126
0
  if (is_arbitrary_scaling) {
3127
0
    vp9_scale_and_extend_frame_nonnormative(src, dst, bd);
3128
0
    return;
3129
0
  }
3130
3131
0
  const uint8_t *const srcs[3] = { src->y_buffer, src->u_buffer,
3132
0
                                   src->v_buffer };
3133
0
  const int src_strides[3] = { src->y_stride, src->uv_stride, src->uv_stride };
3134
0
  uint8_t *const dsts[3] = { dst->y_buffer, dst->u_buffer, dst->v_buffer };
3135
0
  const int dst_strides[3] = { dst->y_stride, dst->uv_stride, dst->uv_stride };
3136
0
  const InterpKernel *const kernel = vp9_filter_kernels[filter_type];
3137
0
  int x, y, i;
3138
3139
0
  for (i = 0; i < MAX_MB_PLANE; ++i) {
3140
0
    const int factor = (i == 0 || i == 3 ? 1 : 2);
3141
0
    const int src_stride = src_strides[i];
3142
0
    const int dst_stride = dst_strides[i];
3143
0
    for (y = 0; y < dst_h; y += 16) {
3144
0
      const int y_q4 = y * (16 / factor) * src_h / dst_h + phase_scaler;
3145
0
      for (x = 0; x < dst_w; x += 16) {
3146
0
        const int x_q4 = x * (16 / factor) * src_w / dst_w + phase_scaler;
3147
0
        const uint8_t *src_ptr = srcs[i] +
3148
0
                                 (y / factor) * src_h / dst_h * src_stride +
3149
0
                                 (x / factor) * src_w / dst_w;
3150
0
        uint8_t *dst_ptr = dsts[i] + (y / factor) * dst_stride + (x / factor);
3151
3152
0
        if (src->flags & YV12_FLAG_HIGHBITDEPTH) {
3153
0
          vpx_highbd_convolve8(CONVERT_TO_SHORTPTR(src_ptr), src_stride,
3154
0
                               CONVERT_TO_SHORTPTR(dst_ptr), dst_stride, kernel,
3155
0
                               x_q4 & 0xf, 16 * src_w / dst_w, y_q4 & 0xf,
3156
0
                               16 * src_h / dst_h, 16 / factor, 16 / factor,
3157
0
                               bd);
3158
0
        } else {
3159
0
          vpx_scaled_2d(src_ptr, src_stride, dst_ptr, dst_stride, kernel,
3160
0
                        x_q4 & 0xf, 16 * src_w / dst_w, y_q4 & 0xf,
3161
0
                        16 * src_h / dst_h, 16 / factor, 16 / factor);
3162
0
        }
3163
0
      }
3164
0
    }
3165
0
  }
3166
3167
0
  vpx_extend_frame_borders(dst);
3168
0
}
3169
#endif  // CONFIG_VP9_HIGHBITDEPTH
3170
3171
#if !CONFIG_REALTIME_ONLY
3172
0
static int scale_down(VP9_COMP *cpi, int q) {
3173
0
  RATE_CONTROL *const rc = &cpi->rc;
3174
0
  GF_GROUP *const gf_group = &cpi->twopass.gf_group;
3175
0
  int scale = 0;
3176
0
  assert(frame_is_kf_gf_arf(cpi));
3177
3178
0
  if (rc->frame_size_selector == UNSCALED &&
3179
0
      q >= rc->rf_level_maxq[gf_group->rf_level[gf_group->index]]) {
3180
0
    const int max_size_thresh =
3181
0
        (int)(rate_thresh_mult[SCALE_STEP1] *
3182
0
              VPXMAX(rc->this_frame_target, rc->avg_frame_bandwidth));
3183
0
    scale = rc->projected_frame_size > max_size_thresh ? 1 : 0;
3184
0
  }
3185
0
  return scale;
3186
0
}
3187
3188
0
static int big_rate_miss_high_threshold(VP9_COMP *cpi) {
3189
0
  const RATE_CONTROL *const rc = &cpi->rc;
3190
0
  int big_miss_high;
3191
3192
0
  if (frame_is_kf_gf_arf(cpi))
3193
0
    big_miss_high = rc->this_frame_target * 3 / 2;
3194
0
  else
3195
0
    big_miss_high = rc->this_frame_target * 2;
3196
3197
0
  return big_miss_high;
3198
0
}
3199
3200
0
static int big_rate_miss(VP9_COMP *cpi) {
3201
0
  const RATE_CONTROL *const rc = &cpi->rc;
3202
0
  int big_miss_high;
3203
0
  int big_miss_low;
3204
3205
  // Ignore for overlay frames
3206
0
  if (rc->is_src_frame_alt_ref) {
3207
0
    return 0;
3208
0
  } else {
3209
0
    big_miss_low = (rc->this_frame_target / 2);
3210
0
    big_miss_high = big_rate_miss_high_threshold(cpi);
3211
3212
0
    return (rc->projected_frame_size > big_miss_high) ||
3213
0
           (rc->projected_frame_size < big_miss_low);
3214
0
  }
3215
0
}
3216
3217
// test in two pass for the first
3218
0
static int two_pass_first_group_inter(VP9_COMP *cpi) {
3219
0
  if (cpi->oxcf.pass == 2) {
3220
0
    TWO_PASS *const twopass = &cpi->twopass;
3221
0
    GF_GROUP *const gf_group = &twopass->gf_group;
3222
0
    const int gfg_index = gf_group->index;
3223
3224
0
    if (gfg_index == 0) return gf_group->update_type[gfg_index] == LF_UPDATE;
3225
0
    return gf_group->update_type[gfg_index - 1] != LF_UPDATE &&
3226
0
           gf_group->update_type[gfg_index] == LF_UPDATE;
3227
0
  } else {
3228
0
    return 0;
3229
0
  }
3230
0
}
3231
3232
// Function to test for conditions that indicate we should loop
3233
// back and recode a frame.
3234
static int recode_loop_test(VP9_COMP *cpi, int high_limit, int low_limit, int q,
3235
0
                            int maxq, int minq) {
3236
0
  const RATE_CONTROL *const rc = &cpi->rc;
3237
0
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
3238
0
  const int frame_is_kfgfarf = frame_is_kf_gf_arf(cpi);
3239
0
  int force_recode = 0;
3240
3241
0
  if ((rc->projected_frame_size >= rc->max_frame_bandwidth) ||
3242
0
      big_rate_miss(cpi) || (cpi->sf.recode_loop == ALLOW_RECODE) ||
3243
0
      (two_pass_first_group_inter(cpi) &&
3244
0
       (cpi->sf.recode_loop == ALLOW_RECODE_FIRST)) ||
3245
0
      (frame_is_kfgfarf && (cpi->sf.recode_loop >= ALLOW_RECODE_KFARFGF))) {
3246
0
    if (frame_is_kfgfarf && (oxcf->resize_mode == RESIZE_DYNAMIC) &&
3247
0
        scale_down(cpi, q)) {
3248
      // Code this group at a lower resolution.
3249
0
      cpi->resize_pending = 1;
3250
0
      return 1;
3251
0
    }
3252
3253
    // Force recode for extreme overshoot.
3254
0
    if ((rc->projected_frame_size >= rc->max_frame_bandwidth) ||
3255
0
        (cpi->sf.recode_loop >= ALLOW_RECODE_KFARFGF &&
3256
0
         rc->projected_frame_size >= big_rate_miss_high_threshold(cpi))) {
3257
0
      return 1;
3258
0
    }
3259
3260
    // TODO(agrange) high_limit could be greater than the scale-down threshold.
3261
0
    if ((rc->projected_frame_size > high_limit && q < maxq) ||
3262
0
        (rc->projected_frame_size < low_limit && q > minq)) {
3263
0
      force_recode = 1;
3264
0
    } else if (cpi->oxcf.rc_mode == VPX_CQ) {
3265
      // Deal with frame undershoot and whether or not we are
3266
      // below the automatically set cq level.
3267
0
      if (q > oxcf->cq_level &&
3268
0
          rc->projected_frame_size < ((rc->this_frame_target * 7) >> 3)) {
3269
0
        force_recode = 1;
3270
0
      }
3271
0
    }
3272
0
  }
3273
0
  return force_recode;
3274
0
}
3275
#endif  // !CONFIG_REALTIME_ONLY
3276
3277
54.0k
static void update_ref_frames(VP9_COMP *cpi) {
3278
54.0k
  VP9_COMMON *const cm = &cpi->common;
3279
54.0k
  BufferPool *const pool = cm->buffer_pool;
3280
54.0k
  GF_GROUP *const gf_group = &cpi->twopass.gf_group;
3281
3282
54.0k
  if (cpi->ext_ratectrl.ready &&
3283
0
      (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_GOP) != 0 &&
3284
0
      cpi->ext_ratectrl.funcs.get_gop_decision != NULL) {
3285
0
    const int this_gf_index = gf_group->index;
3286
0
    const int update_ref_idx = gf_group->update_ref_idx[this_gf_index];
3287
0
    if (gf_group->update_type[this_gf_index] == KF_UPDATE) {
3288
0
      ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[0], cm->new_fb_idx);
3289
0
      ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[1], cm->new_fb_idx);
3290
0
      ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[2], cm->new_fb_idx);
3291
0
    } else if (update_ref_idx != INVALID_IDX) {
3292
0
      ref_cnt_fb(pool->frame_bufs,
3293
0
                 &cm->ref_frame_map[gf_group->update_ref_idx[this_gf_index]],
3294
0
                 cm->new_fb_idx);
3295
0
    }
3296
3297
0
    const int next_gf_index = gf_group->index + 1;
3298
3299
    // Overlay frame should ideally look at the colocated ref frame from rc lib.
3300
    // Here temporarily just don't update the indices.
3301
0
    if (next_gf_index < gf_group->gf_group_size) {
3302
0
      cpi->lst_fb_idx = gf_group->ext_rc_ref[next_gf_index].last_index;
3303
0
      cpi->gld_fb_idx = gf_group->ext_rc_ref[next_gf_index].golden_index;
3304
0
      cpi->alt_fb_idx = gf_group->ext_rc_ref[next_gf_index].altref_index;
3305
0
    }
3306
3307
0
    return;
3308
0
  }
3309
3310
54.0k
  if (cpi->rc.show_arf_as_gld) {
3311
0
    int tmp = cpi->alt_fb_idx;
3312
0
    cpi->alt_fb_idx = cpi->gld_fb_idx;
3313
0
    cpi->gld_fb_idx = tmp;
3314
54.0k
  } else if (cm->show_existing_frame) {
3315
    // Pop ARF.
3316
0
    cpi->lst_fb_idx = cpi->alt_fb_idx;
3317
0
    cpi->alt_fb_idx =
3318
0
        stack_pop(gf_group->arf_index_stack, gf_group->stack_size);
3319
0
    --gf_group->stack_size;
3320
0
  }
3321
3322
  // At this point the new frame has been encoded.
3323
  // If any buffer copy / swapping is signaled it should be done here.
3324
54.0k
  if (cm->frame_type == KEY_FRAME) {
3325
12.7k
    ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[cpi->gld_fb_idx],
3326
12.7k
               cm->new_fb_idx);
3327
12.7k
    ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[cpi->alt_fb_idx],
3328
12.7k
               cm->new_fb_idx);
3329
41.3k
  } else if (vp9_preserve_existing_gf(cpi)) {
3330
    // We have decided to preserve the previously existing golden frame as our
3331
    // new ARF frame. However, in the short term in function
3332
    // vp9_get_refresh_mask() we left it in the GF slot and, if
3333
    // we're updating the GF with the current decoded frame, we save it to the
3334
    // ARF slot instead.
3335
    // We now have to update the ARF with the current frame and swap gld_fb_idx
3336
    // and alt_fb_idx so that, overall, we've stored the old GF in the new ARF
3337
    // slot and, if we're updating the GF, the current frame becomes the new GF.
3338
0
    int tmp;
3339
3340
0
    ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[cpi->alt_fb_idx],
3341
0
               cm->new_fb_idx);
3342
3343
0
    tmp = cpi->alt_fb_idx;
3344
0
    cpi->alt_fb_idx = cpi->gld_fb_idx;
3345
0
    cpi->gld_fb_idx = tmp;
3346
41.3k
  } else { /* For non key/golden frames */
3347
41.3k
    if (cpi->refresh_alt_ref_frame) {
3348
0
      int arf_idx = gf_group->top_arf_idx;
3349
3350
      // Push new ARF into stack.
3351
0
      stack_push(gf_group->arf_index_stack, cpi->alt_fb_idx,
3352
0
                 gf_group->stack_size);
3353
0
      ++gf_group->stack_size;
3354
3355
0
      assert(arf_idx < REF_FRAMES);
3356
3357
0
      ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[arf_idx], cm->new_fb_idx);
3358
0
      memcpy(cpi->interp_filter_selected[ALTREF_FRAME],
3359
0
             cpi->interp_filter_selected[0],
3360
0
             sizeof(cpi->interp_filter_selected[0]));
3361
3362
0
      cpi->alt_fb_idx = arf_idx;
3363
0
    }
3364
3365
41.3k
    if (cpi->refresh_golden_frame) {
3366
2.81k
      ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[cpi->gld_fb_idx],
3367
2.81k
                 cm->new_fb_idx);
3368
2.81k
      if (!cpi->rc.is_src_frame_alt_ref)
3369
2.81k
        memcpy(cpi->interp_filter_selected[GOLDEN_FRAME],
3370
2.81k
               cpi->interp_filter_selected[0],
3371
2.81k
               sizeof(cpi->interp_filter_selected[0]));
3372
0
      else
3373
0
        memcpy(cpi->interp_filter_selected[GOLDEN_FRAME],
3374
0
               cpi->interp_filter_selected[ALTREF_FRAME],
3375
0
               sizeof(cpi->interp_filter_selected[ALTREF_FRAME]));
3376
2.81k
    }
3377
41.3k
  }
3378
3379
54.0k
  if (cpi->refresh_last_frame) {
3380
54.0k
    ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[cpi->lst_fb_idx],
3381
54.0k
               cm->new_fb_idx);
3382
54.0k
    if (!cpi->rc.is_src_frame_alt_ref)
3383
54.0k
      memcpy(cpi->interp_filter_selected[LAST_FRAME],
3384
54.0k
             cpi->interp_filter_selected[0],
3385
54.0k
             sizeof(cpi->interp_filter_selected[0]));
3386
54.0k
  }
3387
3388
54.0k
  if (gf_group->update_type[gf_group->index] == MID_OVERLAY_UPDATE) {
3389
0
    cpi->alt_fb_idx =
3390
0
        stack_pop(gf_group->arf_index_stack, gf_group->stack_size);
3391
0
    --gf_group->stack_size;
3392
0
  }
3393
54.0k
}
3394
3395
54.0k
void vp9_update_reference_frames(VP9_COMP *cpi) {
3396
54.0k
  update_ref_frames(cpi);
3397
3398
#if CONFIG_VP9_TEMPORAL_DENOISING
3399
  vp9_denoiser_update_ref_frame(cpi);
3400
#endif
3401
3402
54.0k
  if (is_one_pass_svc(cpi)) vp9_svc_update_ref_frame(cpi);
3403
54.0k
}
3404
3405
54.1k
static void loopfilter_frame(VP9_COMP *cpi, VP9_COMMON *cm) {
3406
54.1k
  MACROBLOCKD *xd = &cpi->td.mb.e_mbd;
3407
54.1k
  struct loopfilter *lf = &cm->lf;
3408
54.1k
  int is_reference_frame =
3409
54.1k
      (cm->frame_type == KEY_FRAME || cpi->refresh_last_frame ||
3410
0
       cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame);
3411
54.1k
  if (cpi->use_svc &&
3412
0
      cpi->svc.temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_BYPASS)
3413
0
    is_reference_frame = !cpi->svc.non_reference_frame;
3414
3415
  // Skip loop filter in show_existing_frame mode.
3416
54.1k
  if (cm->show_existing_frame) {
3417
0
    lf->filter_level = 0;
3418
0
    return;
3419
0
  }
3420
3421
54.1k
  if (cpi->loopfilter_ctrl == NO_LOOPFILTER ||
3422
54.1k
      (!is_reference_frame && cpi->loopfilter_ctrl == LOOPFILTER_REFERENCE)) {
3423
0
    lf->filter_level = 0;
3424
0
    vpx_extend_frame_inner_borders(cm->frame_to_show);
3425
0
    return;
3426
0
  }
3427
3428
54.1k
  if (xd->lossless) {
3429
7.44k
    lf->filter_level = 0;
3430
7.44k
    lf->last_filt_level = 0;
3431
46.7k
  } else {
3432
#if CONFIG_INTERNAL_STATS
3433
    struct vpx_usec_timer timer;
3434
#endif
3435
3436
46.7k
    vpx_clear_system_state();
3437
3438
#if CONFIG_INTERNAL_STATS
3439
    vpx_usec_timer_start(&timer);
3440
#endif
3441
3442
46.7k
    if (!cpi->rc.is_src_frame_alt_ref) {
3443
46.7k
      if ((cpi->common.frame_type == KEY_FRAME) &&
3444
11.7k
          (!cpi->rc.this_key_frame_forced)) {
3445
9.27k
        lf->last_filt_level = 0;
3446
9.27k
      }
3447
46.7k
      vp9_pick_filter_level(cpi->Source, cpi, cpi->sf.lpf_pick);
3448
46.7k
      lf->last_filt_level = lf->filter_level;
3449
46.7k
    } else {
3450
0
      lf->filter_level = 0;
3451
0
    }
3452
3453
#if CONFIG_INTERNAL_STATS
3454
    vpx_usec_timer_mark(&timer);
3455
    cpi->time_pick_lpf += vpx_usec_timer_elapsed(&timer);
3456
#endif
3457
46.7k
  }
3458
3459
54.1k
  if (lf->filter_level > 0 && is_reference_frame) {
3460
32.2k
    vp9_build_mask_frame(cm, lf->filter_level, 0);
3461
3462
32.2k
    if (cpi->num_workers > 1)
3463
0
      vp9_loop_filter_frame_mt(cm->frame_to_show, cm, xd->plane,
3464
0
                               lf->filter_level, 0, 0, cpi->workers,
3465
0
                               cpi->num_workers, &cpi->lf_row_sync);
3466
32.2k
    else
3467
32.2k
      vp9_loop_filter_frame(cm->frame_to_show, cm, xd, lf->filter_level, 0, 0);
3468
32.2k
  }
3469
3470
54.1k
  vpx_extend_frame_inner_borders(cm->frame_to_show);
3471
54.1k
}
3472
3473
41.3k
void vp9_scale_references(VP9_COMP *cpi) {
3474
41.3k
  VP9_COMMON *cm = &cpi->common;
3475
41.3k
  MV_REFERENCE_FRAME ref_frame;
3476
41.3k
  const VP9_REFFRAME ref_mask[3] = { VP9_LAST_FLAG, VP9_GOLD_FLAG,
3477
41.3k
                                     VP9_ALT_FLAG };
3478
3479
165k
  for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
3480
    // Need to convert from VP9_REFFRAME to index into ref_mask (subtract 1).
3481
124k
    if (cpi->ref_frame_flags & ref_mask[ref_frame - 1]) {
3482
100k
      BufferPool *const pool = cm->buffer_pool;
3483
100k
      const YV12_BUFFER_CONFIG *const ref =
3484
100k
          get_ref_frame_buffer(cpi, ref_frame);
3485
3486
100k
      if (ref == NULL) {
3487
0
        cpi->scaled_ref_idx[ref_frame - 1] = INVALID_IDX;
3488
0
        continue;
3489
0
      }
3490
3491
100k
      if (ref->y_crop_width != cm->width || ref->y_crop_height != cm->height) {
3492
0
        RefCntBuffer *new_fb_ptr = NULL;
3493
0
        int force_scaling = 0;
3494
0
        int new_fb = cpi->scaled_ref_idx[ref_frame - 1];
3495
0
        if (new_fb == INVALID_IDX) {
3496
0
          new_fb = get_free_fb(cm);
3497
0
          force_scaling = 1;
3498
0
        }
3499
0
        if (new_fb == INVALID_IDX) return;
3500
0
        new_fb_ptr = &pool->frame_bufs[new_fb];
3501
0
        if (force_scaling || new_fb_ptr->buf.y_crop_width != cm->width ||
3502
0
            new_fb_ptr->buf.y_crop_height != cm->height) {
3503
0
#if CONFIG_VP9_HIGHBITDEPTH
3504
0
          if (vpx_realloc_frame_buffer(&new_fb_ptr->buf, cm->width, cm->height,
3505
0
                                       cm->subsampling_x, cm->subsampling_y,
3506
0
                                       cm->use_highbitdepth,
3507
0
                                       VP9_ENC_BORDER_IN_PIXELS,
3508
0
                                       cm->byte_alignment, NULL, NULL, NULL))
3509
0
            vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
3510
0
                               "Failed to allocate frame buffer");
3511
0
          scale_and_extend_frame(ref, &new_fb_ptr->buf, (int)cm->bit_depth,
3512
0
                                 EIGHTTAP, 0);
3513
#else
3514
          if (vpx_realloc_frame_buffer(&new_fb_ptr->buf, cm->width, cm->height,
3515
                                       cm->subsampling_x, cm->subsampling_y,
3516
                                       VP9_ENC_BORDER_IN_PIXELS,
3517
                                       cm->byte_alignment, NULL, NULL, NULL))
3518
            vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
3519
                               "Failed to allocate frame buffer");
3520
          vp9_scale_and_extend_frame(ref, &new_fb_ptr->buf, EIGHTTAP, 0);
3521
#endif  // CONFIG_VP9_HIGHBITDEPTH
3522
0
          cpi->scaled_ref_idx[ref_frame - 1] = new_fb;
3523
0
          alloc_frame_mvs(cm, new_fb);
3524
0
        }
3525
100k
      } else {
3526
100k
        int buf_idx;
3527
100k
        RefCntBuffer *buf = NULL;
3528
100k
        if (cpi->oxcf.pass == 0 && !cpi->use_svc) {
3529
          // Check for release of scaled reference.
3530
100k
          buf_idx = cpi->scaled_ref_idx[ref_frame - 1];
3531
100k
          if (buf_idx != INVALID_IDX) {
3532
0
            buf = &pool->frame_bufs[buf_idx];
3533
0
            --buf->ref_count;
3534
0
            cpi->scaled_ref_idx[ref_frame - 1] = INVALID_IDX;
3535
0
          }
3536
100k
        }
3537
100k
        buf_idx = get_ref_frame_buf_idx(cpi, ref_frame);
3538
100k
        buf = &pool->frame_bufs[buf_idx];
3539
100k
        buf->buf.y_crop_width = ref->y_crop_width;
3540
100k
        buf->buf.y_crop_height = ref->y_crop_height;
3541
100k
        cpi->scaled_ref_idx[ref_frame - 1] = buf_idx;
3542
100k
        ++buf->ref_count;
3543
100k
      }
3544
100k
    } else {
3545
23.2k
      if (cpi->oxcf.pass != 0 || cpi->use_svc)
3546
0
        cpi->scaled_ref_idx[ref_frame - 1] = INVALID_IDX;
3547
23.2k
    }
3548
124k
  }
3549
41.3k
}
3550
3551
41.3k
static void release_scaled_references(VP9_COMP *cpi) {
3552
41.3k
  VP9_COMMON *cm = &cpi->common;
3553
41.3k
  int i;
3554
41.3k
  if (cpi->oxcf.pass == 0 && !cpi->use_svc) {
3555
    // Only release scaled references under certain conditions:
3556
    // if reference will be updated, or if scaled reference has same resolution.
3557
41.3k
    int refresh[3];
3558
41.3k
    refresh[0] = (cpi->refresh_last_frame) ? 1 : 0;
3559
41.3k
    refresh[1] = (cpi->refresh_golden_frame) ? 1 : 0;
3560
41.3k
    refresh[2] = (cpi->refresh_alt_ref_frame) ? 1 : 0;
3561
165k
    for (i = LAST_FRAME; i <= ALTREF_FRAME; ++i) {
3562
123k
      const int idx = cpi->scaled_ref_idx[i - 1];
3563
123k
      if (idx != INVALID_IDX) {
3564
100k
        RefCntBuffer *const buf = &cm->buffer_pool->frame_bufs[idx];
3565
100k
        const YV12_BUFFER_CONFIG *const ref = get_ref_frame_buffer(cpi, i);
3566
100k
        if (refresh[i - 1] || (buf->buf.y_crop_width == ref->y_crop_width &&
3567
100k
                               buf->buf.y_crop_height == ref->y_crop_height)) {
3568
100k
          --buf->ref_count;
3569
100k
          cpi->scaled_ref_idx[i - 1] = INVALID_IDX;
3570
100k
        }
3571
100k
      }
3572
123k
    }
3573
41.3k
  } else {
3574
0
    for (i = 0; i < REFS_PER_FRAME; ++i) {
3575
0
      const int idx = cpi->scaled_ref_idx[i];
3576
0
      if (idx != INVALID_IDX) {
3577
0
        RefCntBuffer *const buf = &cm->buffer_pool->frame_bufs[idx];
3578
0
        --buf->ref_count;
3579
0
        cpi->scaled_ref_idx[i] = INVALID_IDX;
3580
0
      }
3581
0
    }
3582
0
  }
3583
41.3k
}
3584
3585
static void full_to_model_count(unsigned int *model_count,
3586
28.5M
                                unsigned int *full_count) {
3587
28.5M
  int n;
3588
28.5M
  model_count[ZERO_TOKEN] = full_count[ZERO_TOKEN];
3589
28.5M
  model_count[ONE_TOKEN] = full_count[ONE_TOKEN];
3590
28.5M
  model_count[TWO_TOKEN] = full_count[TWO_TOKEN];
3591
257M
  for (n = THREE_TOKEN; n < EOB_TOKEN; ++n)
3592
228M
    model_count[TWO_TOKEN] += full_count[n];
3593
28.5M
  model_count[EOB_MODEL_TOKEN] = full_count[EOB_TOKEN];
3594
28.5M
}
3595
3596
static void full_to_model_counts(vp9_coeff_count_model *model_count,
3597
216k
                                 vp9_coeff_count *full_count) {
3598
216k
  int i, j, k, l;
3599
3600
649k
  for (i = 0; i < PLANE_TYPES; ++i)
3601
1.29M
    for (j = 0; j < REF_TYPES; ++j)
3602
6.05M
      for (k = 0; k < COEF_BANDS; ++k)
3603
33.7M
        for (l = 0; l < BAND_COEFF_CONTEXTS(k); ++l)
3604
28.5M
          full_to_model_count(model_count[i][j][k][l], full_count[i][j][k][l]);
3605
216k
}
3606
3607
#if 0 && CONFIG_INTERNAL_STATS
3608
static void output_frame_level_debug_stats(VP9_COMP *cpi) {
3609
  VP9_COMMON *const cm = &cpi->common;
3610
  FILE *const f = fopen("tmp.stt", cm->current_video_frame ? "a" : "w");
3611
  int64_t recon_err;
3612
3613
  vpx_clear_system_state();
3614
3615
#if CONFIG_VP9_HIGHBITDEPTH
3616
  if (cm->use_highbitdepth) {
3617
    recon_err = vpx_highbd_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
3618
  } else {
3619
    recon_err = vpx_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
3620
  }
3621
#else
3622
  recon_err = vpx_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
3623
#endif  // CONFIG_VP9_HIGHBITDEPTH
3624
3625
3626
  if (cpi->twopass.total_left_stats.coded_error != 0.0) {
3627
    double dc_quant_devisor;
3628
#if CONFIG_VP9_HIGHBITDEPTH
3629
    switch (cm->bit_depth) {
3630
      case VPX_BITS_8:
3631
        dc_quant_devisor = 4.0;
3632
        break;
3633
      case VPX_BITS_10:
3634
        dc_quant_devisor = 16.0;
3635
        break;
3636
      default:
3637
        assert(cm->bit_depth == VPX_BITS_12);
3638
        dc_quant_devisor = 64.0;
3639
        break;
3640
    }
3641
#else
3642
    dc_quant_devisor = 4.0;
3643
#endif
3644
3645
    if (!cm->current_video_frame) {
3646
      fprintf(f, "frame, width, height, last ts, last end ts, "
3647
          "source_alt_ref_pending, source_alt_ref_active, "
3648
          "this_frame_target, projected_frame_size, "
3649
          "projected_frame_size / MBs, "
3650
          "projected_frame_size - this_frame_target, "
3651
          "vbr_bits_off_target, vbr_bits_off_target_fast, "
3652
          "twopass.extend_minq, twopass.extend_minq_fast, "
3653
          "total_target_vs_actual, "
3654
          "starting_buffer_level - bits_off_target, "
3655
          "total_actual_bits, base_qindex, q for base_qindex, "
3656
          "dc quant, q for active_worst_quality, avg_q, q for oxcf.cq_level, "
3657
          "refresh_last_frame, refresh_golden_frame, refresh_alt_ref_frame, "
3658
          "frame_type, gfu_boost, "
3659
          "twopass.bits_left, "
3660
          "twopass.total_left_stats.coded_error, "
3661
          "twopass.bits_left / (1 + twopass.total_left_stats.coded_error), "
3662
          "tot_recode_hits, recon_err, kf_boost, "
3663
          "twopass.kf_zeromotion_pct, twopass.fr_content_type, "
3664
          "filter_level, seg.aq_av_offset\n");
3665
    }
3666
3667
    fprintf(f, "%10u, %d, %d, %10"PRId64", %10"PRId64", %d, %d, %10d, %10d, "
3668
        "%10d, %10d, %10"PRId64", %10"PRId64", %5d, %5d, %10"PRId64", "
3669
        "%10"PRId64", %10"PRId64", %10d, %7.2lf, %7.2lf, %7.2lf, %7.2lf, "
3670
        "%7.2lf, %6d, %6d, %5d, %5d, %5d, %10"PRId64", %10.3lf, %10lf, %8u, "
3671
        "%10"PRId64", %10d, %10d, %10d, %10d, %10d\n",
3672
        cpi->common.current_video_frame,
3673
        cm->width, cm->height,
3674
        cpi->last_time_stamp_seen,
3675
        cpi->last_end_time_stamp_seen,
3676
        cpi->rc.source_alt_ref_pending,
3677
        cpi->rc.source_alt_ref_active,
3678
        cpi->rc.this_frame_target,
3679
        cpi->rc.projected_frame_size,
3680
        cpi->rc.projected_frame_size / cpi->common.MBs,
3681
        (cpi->rc.projected_frame_size - cpi->rc.this_frame_target),
3682
        cpi->rc.vbr_bits_off_target,
3683
        cpi->rc.vbr_bits_off_target_fast,
3684
        cpi->twopass.extend_minq,
3685
        cpi->twopass.extend_minq_fast,
3686
        cpi->rc.total_target_vs_actual,
3687
        (cpi->rc.starting_buffer_level - cpi->rc.bits_off_target),
3688
        cpi->rc.total_actual_bits, cm->base_qindex,
3689
        vp9_convert_qindex_to_q(cm->base_qindex, cm->bit_depth),
3690
        (double)vp9_dc_quant(cm->base_qindex, 0, cm->bit_depth) /
3691
            dc_quant_devisor,
3692
        vp9_convert_qindex_to_q(cpi->twopass.active_worst_quality,
3693
                                cm->bit_depth),
3694
        cpi->rc.avg_q,
3695
        vp9_convert_qindex_to_q(cpi->oxcf.cq_level, cm->bit_depth),
3696
        cpi->refresh_last_frame, cpi->refresh_golden_frame,
3697
        cpi->refresh_alt_ref_frame, cm->frame_type, cpi->rc.gfu_boost,
3698
        cpi->twopass.bits_left,
3699
        cpi->twopass.total_left_stats.coded_error,
3700
        cpi->twopass.bits_left /
3701
            (1 + cpi->twopass.total_left_stats.coded_error),
3702
        cpi->tot_recode_hits, recon_err, cpi->rc.kf_boost,
3703
        cpi->twopass.kf_zeromotion_pct,
3704
        cpi->twopass.fr_content_type,
3705
        cm->lf.filter_level,
3706
        cm->seg.aq_av_offset);
3707
  }
3708
  fclose(f);
3709
3710
  if (0) {
3711
    FILE *const fmodes = fopen("Modes.stt", "a");
3712
    int i;
3713
3714
    fprintf(fmodes, "%6d:%1d:%1d:%1d ", cpi->common.current_video_frame,
3715
            cm->frame_type, cpi->refresh_golden_frame,
3716
            cpi->refresh_alt_ref_frame);
3717
3718
    for (i = 0; i < MAX_MODES; ++i)
3719
      fprintf(fmodes, "%5d ", cpi->mode_chosen_counts[i]);
3720
3721
    fprintf(fmodes, "\n");
3722
3723
    fclose(fmodes);
3724
  }
3725
}
3726
#endif
3727
3728
0
static void set_mv_search_params(VP9_COMP *cpi) {
3729
0
  const VP9_COMMON *const cm = &cpi->common;
3730
0
  const unsigned int max_mv_def = VPXMIN(cm->width, cm->height);
3731
3732
  // Default based on max resolution.
3733
0
  cpi->mv_step_param = vp9_init_search_range(max_mv_def);
3734
3735
0
  if (cpi->sf.mv.auto_mv_step_size) {
3736
0
    if (frame_is_intra_only(cm)) {
3737
      // Initialize max_mv_magnitude for use in the first INTER frame
3738
      // after a key/intra-only frame.
3739
0
      cpi->max_mv_magnitude = max_mv_def;
3740
0
    } else {
3741
0
      if (cm->show_frame) {
3742
        // Allow mv_steps to correspond to twice the max mv magnitude found
3743
        // in the previous frame, capped by the default max_mv_magnitude based
3744
        // on resolution.
3745
0
        cpi->mv_step_param = vp9_init_search_range(
3746
0
            VPXMIN(max_mv_def, 2 * cpi->max_mv_magnitude));
3747
0
      }
3748
0
      cpi->max_mv_magnitude = 0;
3749
0
    }
3750
0
  }
3751
0
}
3752
3753
54.1k
static void set_size_independent_vars(VP9_COMP *cpi) {
3754
54.1k
  vp9_set_speed_features_framesize_independent(cpi, cpi->oxcf.speed);
3755
54.1k
  vp9_set_rd_speed_thresholds(cpi);
3756
54.1k
  vp9_set_rd_speed_thresholds_sub8x8(cpi);
3757
54.1k
  cpi->common.interp_filter = cpi->sf.default_interp_filter;
3758
54.1k
}
3759
3760
static void set_size_dependent_vars(VP9_COMP *cpi, int *q, int *bottom_index,
3761
54.1k
                                    int *top_index) {
3762
54.1k
  VP9_COMMON *const cm = &cpi->common;
3763
3764
  // Setup variables that depend on the dimensions of the frame.
3765
54.1k
  vp9_set_speed_features_framesize_dependent(cpi, cpi->oxcf.speed);
3766
3767
  // Decide q and q bounds.
3768
54.1k
  *q = vp9_rc_pick_q_and_bounds(cpi, bottom_index, top_index);
3769
3770
54.1k
  if (cpi->oxcf.rc_mode == VPX_CBR && cpi->rc.force_max_q) {
3771
0
    *q = cpi->rc.worst_quality;
3772
0
    cpi->rc.force_max_q = 0;
3773
0
  }
3774
3775
54.1k
  if (cpi->use_svc) {
3776
0
    cpi->svc.base_qindex[cpi->svc.spatial_layer_id] = *q;
3777
0
  }
3778
3779
54.1k
  if (!frame_is_intra_only(cm)) {
3780
41.3k
    vp9_set_high_precision_mv(cpi, (*q) < HIGH_PRECISION_MV_QTHRESH);
3781
41.3k
  }
3782
3783
54.1k
#if !CONFIG_REALTIME_ONLY
3784
  // Configure experimental use of segmentation for enhanced coding of
3785
  // static regions if indicated.
3786
  // Only allowed in the second pass of a two pass encode, as it requires
3787
  // lagged coding, and if the relevant speed feature flag is set.
3788
54.1k
  if (cpi->oxcf.pass == 2 && cpi->sf.static_segmentation)
3789
0
    configure_static_seg_features(cpi);
3790
54.1k
#endif  // !CONFIG_REALTIME_ONLY
3791
3792
#if CONFIG_VP9_POSTPROC && !(CONFIG_VP9_TEMPORAL_DENOISING)
3793
  if (cpi->oxcf.noise_sensitivity > 0) {
3794
    int l = 0;
3795
    switch (cpi->oxcf.noise_sensitivity) {
3796
      case 1: l = 20; break;
3797
      case 2: l = 40; break;
3798
      case 3: l = 60; break;
3799
      case 4:
3800
      case 5: l = 100; break;
3801
      case 6: l = 150; break;
3802
    }
3803
    if (!cpi->common.postproc_state.limits) {
3804
      CHECK_MEM_ERROR(&cm->error, cpi->common.postproc_state.limits,
3805
                      vpx_calloc(cpi->un_scaled_source->y_width,
3806
                                 sizeof(*cpi->common.postproc_state.limits)));
3807
    }
3808
    vp9_denoise(&cpi->common, cpi->Source, cpi->Source, l,
3809
                cpi->common.postproc_state.limits);
3810
  }
3811
#endif  // CONFIG_VP9_POSTPROC
3812
54.1k
}
3813
3814
108k
static void init_motion_estimation(VP9_COMP *cpi) {
3815
108k
  int y_stride = cpi->scaled_source.y_stride;
3816
3817
108k
  if (cpi->sf.mv.search_method == NSTEP) {
3818
108k
    vp9_init3smotion_compensation(&cpi->ss_cfg, y_stride);
3819
108k
  } else if (cpi->sf.mv.search_method == DIAMOND) {
3820
0
    vp9_init_dsmotion_compensation(&cpi->ss_cfg, y_stride);
3821
0
  }
3822
108k
}
3823
3824
54.1k
static void set_frame_size(VP9_COMP *cpi) {
3825
54.1k
  int ref_frame;
3826
54.1k
  VP9_COMMON *const cm = &cpi->common;
3827
54.1k
  VP9EncoderConfig *const oxcf = &cpi->oxcf;
3828
54.1k
  MACROBLOCKD *const xd = &cpi->td.mb.e_mbd;
3829
3830
54.1k
#if !CONFIG_REALTIME_ONLY
3831
54.1k
  if (oxcf->pass == 2 && oxcf->rc_mode == VPX_VBR &&
3832
0
      ((oxcf->resize_mode == RESIZE_FIXED && cm->current_video_frame == 0) ||
3833
0
       (oxcf->resize_mode == RESIZE_DYNAMIC && cpi->resize_pending))) {
3834
0
    calculate_coded_size(cpi, &oxcf->scaled_frame_width,
3835
0
                         &oxcf->scaled_frame_height);
3836
3837
    // There has been a change in frame size.
3838
0
    vp9_set_size_literal(cpi, oxcf->scaled_frame_width,
3839
0
                         oxcf->scaled_frame_height);
3840
0
  }
3841
54.1k
#endif  // !CONFIG_REALTIME_ONLY
3842
3843
54.1k
  if (oxcf->pass == 0 && oxcf->rc_mode == VPX_CBR &&
3844
0
      oxcf->resize_mode == RESIZE_DYNAMIC && cpi->resize_pending != 0) {
3845
    // For SVC scaled width/height will have been set (svc->resize_set=1)
3846
    // in get_svc_params based on the layer width/height.
3847
0
    if (!cpi->use_svc || !cpi->svc.resize_set) {
3848
0
      oxcf->scaled_frame_width =
3849
0
          (oxcf->width * cpi->resize_scale_num) / cpi->resize_scale_den;
3850
0
      oxcf->scaled_frame_height =
3851
0
          (oxcf->height * cpi->resize_scale_num) / cpi->resize_scale_den;
3852
      // There has been a change in frame size.
3853
0
      vp9_set_size_literal(cpi, oxcf->scaled_frame_width,
3854
0
                           oxcf->scaled_frame_height);
3855
0
    }
3856
3857
    // TODO(agrange) Scale cpi->max_mv_magnitude if frame-size has changed.
3858
0
    set_mv_search_params(cpi);
3859
3860
0
    vp9_noise_estimate_init(&cpi->noise_estimate, cm->width, cm->height);
3861
#if CONFIG_VP9_TEMPORAL_DENOISING
3862
    // Reset the denoiser on the resized frame.
3863
    if (cpi->oxcf.noise_sensitivity > 0) {
3864
      vp9_denoiser_free(&(cpi->denoiser));
3865
      setup_denoiser_buffer(cpi);
3866
      // Dynamic resize is only triggered for non-SVC, so we can force
3867
      // golden frame update here as temporary fix to denoiser.
3868
      cpi->refresh_golden_frame = 1;
3869
    }
3870
#endif
3871
0
  }
3872
3873
54.1k
  if ((oxcf->pass == 2) && !cpi->use_svc) {
3874
0
    vp9_set_target_rate(cpi);
3875
0
  }
3876
3877
54.1k
  alloc_frame_mvs(cm, cm->new_fb_idx);
3878
3879
  // Reset the frame pointers to the current frame size.
3880
54.1k
  if (vpx_realloc_frame_buffer(get_frame_new_buffer(cm), cm->width, cm->height,
3881
54.1k
                               cm->subsampling_x, cm->subsampling_y,
3882
54.1k
#if CONFIG_VP9_HIGHBITDEPTH
3883
54.1k
                               cm->use_highbitdepth,
3884
54.1k
#endif
3885
54.1k
                               VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment,
3886
54.1k
                               NULL, NULL, NULL))
3887
0
    vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
3888
0
                       "Failed to allocate frame buffer");
3889
3890
54.1k
  alloc_util_frame_buffers(cpi);
3891
54.1k
  init_motion_estimation(cpi);
3892
3893
54.1k
  int has_valid_ref_frame = 0;
3894
216k
  for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
3895
162k
    RefBuffer *const ref_buf = &cm->frame_refs[ref_frame - 1];
3896
162k
    const int buf_idx = get_ref_frame_buf_idx(cpi, ref_frame);
3897
3898
162k
    ref_buf->idx = buf_idx;
3899
3900
162k
    if (buf_idx != INVALID_IDX) {
3901
150k
      YV12_BUFFER_CONFIG *const buf = &cm->buffer_pool->frame_bufs[buf_idx].buf;
3902
150k
      ref_buf->buf = buf;
3903
150k
#if CONFIG_VP9_HIGHBITDEPTH
3904
150k
      vp9_setup_scale_factors_for_frame(
3905
150k
          &ref_buf->sf, buf->y_crop_width, buf->y_crop_height, cm->width,
3906
150k
          cm->height, (buf->flags & YV12_FLAG_HIGHBITDEPTH) ? 1 : 0);
3907
#else
3908
      vp9_setup_scale_factors_for_frame(&ref_buf->sf, buf->y_crop_width,
3909
                                        buf->y_crop_height, cm->width,
3910
                                        cm->height);
3911
#endif  // CONFIG_VP9_HIGHBITDEPTH
3912
150k
      has_valid_ref_frame |= vp9_is_valid_scale(&ref_buf->sf);
3913
150k
      if (vp9_is_scaled(&ref_buf->sf)) vpx_extend_frame_borders(buf);
3914
150k
    } else {
3915
11.6k
      ref_buf->buf = NULL;
3916
11.6k
    }
3917
162k
  }
3918
54.1k
  if (!frame_is_intra_only(cm) && !has_valid_ref_frame) {
3919
0
    vpx_internal_error(
3920
0
        &cm->error, VPX_CODEC_ERROR,
3921
0
        "Can't find at least one reference frame with valid size");
3922
0
  }
3923
3924
54.1k
  set_ref_ptrs(cm, xd, LAST_FRAME, LAST_FRAME);
3925
54.1k
}
3926
3927
54.1k
static void save_encode_params(VP9_COMP *cpi) {
3928
54.1k
  int tile_idx;
3929
54.1k
  int i, j;
3930
54.1k
  TileDataEnc *tile_data;
3931
54.1k
  RD_OPT *rd_opt = &cpi->rd;
3932
270k
  for (i = 0; i < MAX_REF_FRAMES; i++) {
3933
866k
    for (j = 0; j < REFERENCE_MODES; j++)
3934
650k
      rd_opt->prediction_type_threshes_prev[i][j] =
3935
650k
          rd_opt->prediction_type_threshes[i][j];
3936
3937
1.08M
    for (j = 0; j < SWITCHABLE_FILTER_CONTEXTS; j++)
3938
866k
      rd_opt->filter_threshes_prev[i][j] = rd_opt->filter_threshes[i][j];
3939
216k
  }
3940
3941
105k
  for (tile_idx = 0; tile_idx < cpi->allocated_tiles; tile_idx++) {
3942
51.4k
    assert(cpi->tile_data);
3943
51.4k
    tile_data = &cpi->tile_data[tile_idx];
3944
51.4k
    vp9_copy(tile_data->thresh_freq_fact_prev, tile_data->thresh_freq_fact);
3945
51.4k
  }
3946
54.1k
}
3947
3948
0
static INLINE void set_raw_source_frame(VP9_COMP *cpi) {
3949
#ifdef ENABLE_KF_DENOISE
3950
  if (is_spatial_denoise_enabled(cpi)) {
3951
    cpi->raw_source_frame = vp9_scale_if_required(
3952
        cm, &cpi->raw_unscaled_source, &cpi->raw_scaled_source,
3953
        (oxcf->pass == 0), EIGHTTAP, 0);
3954
  } else {
3955
    cpi->raw_source_frame = cpi->Source;
3956
  }
3957
#else
3958
0
  cpi->raw_source_frame = cpi->Source;
3959
0
#endif
3960
0
}
3961
3962
static YV12_BUFFER_CONFIG *svc_twostage_scale(
3963
    VP9_COMMON *cm, YV12_BUFFER_CONFIG *unscaled, YV12_BUFFER_CONFIG *scaled,
3964
    YV12_BUFFER_CONFIG *scaled_temp, INTERP_FILTER filter_type,
3965
0
    int phase_scaler, INTERP_FILTER filter_type2, int phase_scaler2) {
3966
0
  if (cm->mi_cols * MI_SIZE != unscaled->y_width ||
3967
0
      cm->mi_rows * MI_SIZE != unscaled->y_height) {
3968
0
#if CONFIG_VP9_HIGHBITDEPTH
3969
0
    if (cm->bit_depth == VPX_BITS_8) {
3970
0
      vp9_scale_and_extend_frame(unscaled, scaled_temp, filter_type2,
3971
0
                                 phase_scaler2);
3972
0
      vp9_scale_and_extend_frame(scaled_temp, scaled, filter_type,
3973
0
                                 phase_scaler);
3974
0
    } else {
3975
0
      scale_and_extend_frame(unscaled, scaled_temp, (int)cm->bit_depth,
3976
0
                             filter_type2, phase_scaler2);
3977
0
      scale_and_extend_frame(scaled_temp, scaled, (int)cm->bit_depth,
3978
0
                             filter_type, phase_scaler);
3979
0
    }
3980
#else
3981
    vp9_scale_and_extend_frame(unscaled, scaled_temp, filter_type2,
3982
                               phase_scaler2);
3983
    vp9_scale_and_extend_frame(scaled_temp, scaled, filter_type, phase_scaler);
3984
#endif  // CONFIG_VP9_HIGHBITDEPTH
3985
0
    return scaled;
3986
0
  } else {
3987
0
    return unscaled;
3988
0
  }
3989
0
}
3990
3991
static int encode_without_recode_loop(VP9_COMP *cpi, size_t *size,
3992
54.1k
                                      uint8_t *dest, size_t dest_size) {
3993
54.1k
  VP9_COMMON *const cm = &cpi->common;
3994
54.1k
  SVC *const svc = &cpi->svc;
3995
54.1k
  int q = 0, bottom_index = 0, top_index = 0;
3996
54.1k
  int no_drop_scene_change = 0;
3997
54.1k
  const INTERP_FILTER filter_scaler =
3998
54.1k
      (is_one_pass_svc(cpi))
3999
54.1k
          ? svc->downsample_filter_type[svc->spatial_layer_id]
4000
54.1k
          : EIGHTTAP;
4001
54.1k
  const int phase_scaler =
4002
54.1k
      (is_one_pass_svc(cpi))
4003
54.1k
          ? svc->downsample_filter_phase[svc->spatial_layer_id]
4004
54.1k
          : 0;
4005
4006
54.1k
  if (cm->show_existing_frame) {
4007
0
    cpi->rc.this_frame_target = 0;
4008
0
    if (is_psnr_calc_enabled(cpi)) set_raw_source_frame(cpi);
4009
0
    return 1;
4010
0
  }
4011
4012
54.1k
  svc->time_stamp_prev[svc->spatial_layer_id] = svc->time_stamp_superframe;
4013
4014
  // Flag to check if its valid to compute the source sad (used for
4015
  // scene detection and for superblock content state in CBR mode).
4016
  // The flag may get reset below based on SVC or resizing state.
4017
54.1k
  cpi->compute_source_sad_onepass = cpi->oxcf.mode == REALTIME;
4018
4019
54.1k
  vpx_clear_system_state();
4020
4021
54.1k
  set_frame_size(cpi);
4022
4023
54.1k
  if (is_one_pass_svc(cpi) &&
4024
0
      cpi->un_scaled_source->y_width == cm->width << 2 &&
4025
0
      cpi->un_scaled_source->y_height == cm->height << 2 &&
4026
0
      svc->scaled_temp.y_width == cm->width << 1 &&
4027
0
      svc->scaled_temp.y_height == cm->height << 1) {
4028
    // For svc, if it is a 1/4x1/4 downscaling, do a two-stage scaling to take
4029
    // advantage of the 1:2 optimized scaler. In the process, the 1/2x1/2
4030
    // result will be saved in scaled_temp and might be used later.
4031
0
    const INTERP_FILTER filter_scaler2 = svc->downsample_filter_type[1];
4032
0
    const int phase_scaler2 = svc->downsample_filter_phase[1];
4033
0
    cpi->Source = svc_twostage_scale(
4034
0
        cm, cpi->un_scaled_source, &cpi->scaled_source, &svc->scaled_temp,
4035
0
        filter_scaler, phase_scaler, filter_scaler2, phase_scaler2);
4036
0
    svc->scaled_one_half = 1;
4037
54.1k
  } else if (is_one_pass_svc(cpi) &&
4038
0
             cpi->un_scaled_source->y_width == cm->width << 1 &&
4039
0
             cpi->un_scaled_source->y_height == cm->height << 1 &&
4040
0
             svc->scaled_one_half) {
4041
    // If the spatial layer is 1/2x1/2 and the scaling is already done in the
4042
    // two-stage scaling, use the result directly.
4043
0
    cpi->Source = &svc->scaled_temp;
4044
0
    svc->scaled_one_half = 0;
4045
54.1k
  } else {
4046
54.1k
    cpi->Source = vp9_scale_if_required(
4047
54.1k
        cm, cpi->un_scaled_source, &cpi->scaled_source, (cpi->oxcf.pass == 0),
4048
54.1k
        filter_scaler, phase_scaler);
4049
54.1k
  }
4050
#ifdef OUTPUT_YUV_SVC_SRC
4051
  // Write out at most 3 spatial layers.
4052
  if (is_one_pass_svc(cpi) && svc->spatial_layer_id < 3) {
4053
    vpx_write_yuv_frame(yuv_svc_src[svc->spatial_layer_id], cpi->Source);
4054
  }
4055
#endif
4056
  // Unfiltered raw source used in metrics calculation if the source
4057
  // has been filtered.
4058
54.1k
  if (is_psnr_calc_enabled(cpi)) {
4059
#ifdef ENABLE_KF_DENOISE
4060
    if (is_spatial_denoise_enabled(cpi)) {
4061
      cpi->raw_source_frame = vp9_scale_if_required(
4062
          cm, &cpi->raw_unscaled_source, &cpi->raw_scaled_source,
4063
          (cpi->oxcf.pass == 0), EIGHTTAP, phase_scaler);
4064
    } else {
4065
      cpi->raw_source_frame = cpi->Source;
4066
    }
4067
#else
4068
0
    cpi->raw_source_frame = cpi->Source;
4069
0
#endif
4070
0
  }
4071
4072
54.1k
  if ((cpi->use_svc &&
4073
0
       (svc->spatial_layer_id < svc->number_spatial_layers - 1 ||
4074
0
        svc->temporal_layer_id < svc->number_temporal_layers - 1 ||
4075
0
        svc->current_superframe < 1)) ||
4076
54.1k
      cpi->resize_pending || cpi->resize_state || cpi->external_resize ||
4077
54.1k
      cpi->resize_state != ORIG) {
4078
0
    cpi->compute_source_sad_onepass = 0;
4079
0
    if (cpi->content_state_sb_fd != NULL)
4080
0
      memset(cpi->content_state_sb_fd, 0,
4081
0
             (cm->mi_stride >> 3) * ((cm->mi_rows >> 3) + 1) *
4082
0
                 sizeof(*cpi->content_state_sb_fd));
4083
0
  }
4084
4085
  // Avoid scaling last_source unless its needed.
4086
  // Last source is needed if avg_source_sad() is used, or if noise estimation
4087
  // is enabled.
4088
54.1k
  if (cpi->unscaled_last_source != NULL &&
4089
50.3k
      (cpi->oxcf.content == VP9E_CONTENT_SCREEN ||
4090
50.3k
       (cpi->oxcf.pass == 0 && cpi->oxcf.rc_mode == VPX_VBR &&
4091
47.4k
        cpi->oxcf.mode == REALTIME && cpi->oxcf.speed >= 5) ||
4092
50.3k
       (cpi->noise_estimate.enabled && !cpi->oxcf.noise_sensitivity) ||
4093
50.3k
       cpi->compute_source_sad_onepass))
4094
30.3k
    cpi->Last_Source = vp9_scale_if_required(
4095
30.3k
        cm, cpi->unscaled_last_source, &cpi->scaled_last_source,
4096
30.3k
        (cpi->oxcf.pass == 0), EIGHTTAP, 0);
4097
4098
54.1k
  if (cpi->Last_Source == NULL ||
4099
30.3k
      cpi->Last_Source->y_width != cpi->Source->y_width ||
4100
30.3k
      cpi->Last_Source->y_height != cpi->Source->y_height)
4101
23.8k
    cpi->compute_source_sad_onepass = 0;
4102
4103
54.1k
  if (frame_is_intra_only(cm) || cpi->resize_pending != 0) {
4104
12.8k
    memset(cpi->consec_zero_mv, 0,
4105
12.8k
           cm->mi_rows * cm->mi_cols * sizeof(*cpi->consec_zero_mv));
4106
12.8k
  }
4107
4108
#if CONFIG_VP9_TEMPORAL_DENOISING
4109
  if (cpi->oxcf.noise_sensitivity > 0 && cpi->use_svc)
4110
    vp9_denoiser_reset_on_first_frame(cpi);
4111
#endif
4112
4113
  // Scene detection is always used for VBR mode or screen-content case.
4114
  // For other cases (e.g., CBR mode) use it for 5 <= speed.
4115
54.1k
  cpi->rc.high_source_sad = 0;
4116
54.1k
  cpi->rc.hybrid_intra_scene_change = 0;
4117
54.1k
  cpi->rc.re_encode_maxq_scene_change = 0;
4118
54.1k
  if (cm->show_frame && cpi->oxcf.mode == REALTIME &&
4119
32.7k
      !cpi->disable_scene_detection_rtc_ratectrl &&
4120
32.7k
      (cpi->oxcf.rc_mode == VPX_VBR ||
4121
2.59k
       cpi->oxcf.content == VP9E_CONTENT_SCREEN || cpi->oxcf.speed >= 5))
4122
30.1k
    vp9_scene_detection_onepass(cpi);
4123
4124
54.1k
  if (svc->spatial_layer_id == svc->first_spatial_layer_to_encode) {
4125
54.1k
    svc->high_source_sad_superframe = cpi->rc.high_source_sad;
4126
54.1k
    svc->high_num_blocks_with_motion = cpi->rc.high_num_blocks_with_motion;
4127
    // On scene change reset temporal layer pattern to TL0.
4128
    // Note that if the base/lower spatial layers are skipped: instead of
4129
    // inserting base layer here, we force max-q for the next superframe
4130
    // with lower spatial layers: this is done in vp9_encodedframe_overshoot()
4131
    // when max-q is decided for the current layer.
4132
    // Only do this reset for bypass/flexible mode.
4133
54.1k
    if (svc->high_source_sad_superframe && svc->temporal_layer_id > 0 &&
4134
0
        svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_BYPASS) {
4135
      // rc->high_source_sad will get reset so copy it to restore it.
4136
0
      int tmp_high_source_sad = cpi->rc.high_source_sad;
4137
0
      vp9_svc_reset_temporal_layers(cpi, cm->frame_type == KEY_FRAME);
4138
0
      cpi->rc.high_source_sad = tmp_high_source_sad;
4139
0
    }
4140
54.1k
  }
4141
4142
54.1k
  vp9_update_noise_estimate(cpi);
4143
4144
  // For 1 pass CBR, check if we are dropping this frame.
4145
  // Never drop on key frame, if base layer is key for svc,
4146
  // on scene change, or if superframe has layer sync.
4147
54.1k
  if ((cpi->rc.high_source_sad || svc->high_source_sad_superframe) &&
4148
0
      !(cpi->rc.use_post_encode_drop && svc->last_layer_dropped[0]))
4149
0
    no_drop_scene_change = 1;
4150
54.1k
  if (cpi->oxcf.pass == 0 && cpi->oxcf.rc_mode == VPX_CBR &&
4151
0
      !frame_is_intra_only(cm) && !no_drop_scene_change &&
4152
0
      !svc->superframe_has_layer_sync &&
4153
0
      (!cpi->use_svc ||
4154
0
       !svc->layer_context[svc->temporal_layer_id].is_key_frame)) {
4155
0
    if (vp9_rc_drop_frame(cpi)) return 0;
4156
0
  }
4157
4158
  // For 1 pass SVC, only ZEROMV is allowed for spatial reference frame
4159
  // when svc->force_zero_mode_spatial_ref = 1. Under those conditions we can
4160
  // avoid this frame-level upsampling (for non intra_only frames).
4161
  // For SVC single_layer mode, dynamic resize is allowed and we need to
4162
  // scale references for this case.
4163
54.1k
  if (frame_is_intra_only(cm) == 0 &&
4164
41.3k
      ((svc->single_layer_svc && cpi->oxcf.resize_mode == RESIZE_DYNAMIC) ||
4165
41.3k
       !(is_one_pass_svc(cpi) && svc->force_zero_mode_spatial_ref))) {
4166
41.3k
    vp9_scale_references(cpi);
4167
41.3k
  }
4168
4169
54.1k
  set_size_independent_vars(cpi);
4170
54.1k
  set_size_dependent_vars(cpi, &q, &bottom_index, &top_index);
4171
4172
  // search method and step parameter might be changed in speed settings.
4173
54.1k
  init_motion_estimation(cpi);
4174
4175
54.1k
  if (cpi->sf.copy_partition_flag) alloc_copy_partition_data(cpi);
4176
4177
54.1k
  if (cpi->sf.svc_use_lowres_part &&
4178
0
      svc->spatial_layer_id == svc->number_spatial_layers - 2) {
4179
0
    if (svc->prev_partition_svc == NULL) {
4180
0
      CHECK_MEM_ERROR(
4181
0
          &cm->error, svc->prev_partition_svc,
4182
0
          (BLOCK_SIZE *)vpx_calloc(cm->mi_stride * cm->mi_rows,
4183
0
                                   sizeof(*svc->prev_partition_svc)));
4184
0
    }
4185
0
  }
4186
4187
  // TODO(jianj): Look into issue of skin detection with high bitdepth.
4188
54.1k
  if (cm->bit_depth == 8 && cpi->oxcf.speed >= 5 && cpi->oxcf.pass == 0 &&
4189
0
      cpi->oxcf.rc_mode == VPX_CBR &&
4190
0
      cpi->oxcf.content != VP9E_CONTENT_SCREEN &&
4191
0
      cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ) {
4192
0
    cpi->use_skin_detection = 1;
4193
0
  }
4194
4195
  // Enable post encode frame dropping for CBR on non key frame, when
4196
  // ext_use_post_encode_drop is specified by user.
4197
54.1k
  cpi->rc.use_post_encode_drop = cpi->rc.ext_use_post_encode_drop &&
4198
0
                                 cpi->oxcf.rc_mode == VPX_CBR &&
4199
0
                                 cm->frame_type != KEY_FRAME;
4200
4201
54.1k
  vp9_set_quantizer(cpi, q, 0);
4202
54.1k
  vp9_set_variance_partition_thresholds(cpi, q, 0);
4203
4204
54.1k
  setup_frame(cpi);
4205
4206
54.1k
  suppress_active_map(cpi);
4207
4208
54.1k
  if (cpi->use_svc) {
4209
    // On non-zero spatial layer, check for disabling inter-layer
4210
    // prediction.
4211
0
    if (svc->spatial_layer_id > 0) vp9_svc_constrain_inter_layer_pred(cpi);
4212
0
    vp9_svc_assert_constraints_pattern(cpi);
4213
0
  }
4214
4215
54.1k
  if (cpi->rc.last_post_encode_dropped_scene_change) {
4216
0
    cpi->rc.high_source_sad = 1;
4217
0
    svc->high_source_sad_superframe = 1;
4218
    // For now disable use_source_sad since Last_Source will not be the previous
4219
    // encoded but the dropped one.
4220
0
    cpi->sf.use_source_sad = 0;
4221
0
    cpi->rc.last_post_encode_dropped_scene_change = 0;
4222
0
  }
4223
  // Check if this high_source_sad (scene/slide change) frame should be
4224
  // encoded at high/max QP, and if so, set the q and adjust some rate
4225
  // control parameters.
4226
54.1k
  if (cpi->sf.overshoot_detection_cbr_rt == FAST_DETECTION_MAXQ &&
4227
0
      (cpi->rc.high_source_sad ||
4228
0
       (cpi->use_svc && svc->high_source_sad_superframe))) {
4229
0
    if (vp9_encodedframe_overshoot(cpi, -1, &q)) {
4230
0
      vp9_set_quantizer(cpi, q, 0);
4231
0
      vp9_set_variance_partition_thresholds(cpi, q, 0);
4232
0
    }
4233
0
  }
4234
4235
54.1k
#if !CONFIG_REALTIME_ONLY
4236
  // Variance adaptive and in frame q adjustment experiments are mutually
4237
  // exclusive.
4238
54.1k
  if (cpi->oxcf.aq_mode == VARIANCE_AQ) {
4239
0
    vp9_vaq_frame_setup(cpi);
4240
54.1k
  } else if (cpi->oxcf.aq_mode == EQUATOR360_AQ) {
4241
0
    vp9_360aq_frame_setup(cpi);
4242
54.1k
  } else if (cpi->oxcf.aq_mode == COMPLEXITY_AQ) {
4243
0
    vp9_setup_in_frame_q_adj(cpi);
4244
54.1k
  } else if (cpi->oxcf.aq_mode == LOOKAHEAD_AQ) {
4245
    // it may be pretty bad for rate-control,
4246
    // and I should handle it somehow
4247
0
    vp9_alt_ref_aq_setup_map(cpi->alt_ref_aq, cpi);
4248
54.1k
  } else {
4249
54.1k
#endif
4250
    // If ROI is enabled and skip feature is used for segmentation, apply cyclic
4251
    // refresh but not apply ROI for skip for the first 20 frames (defined by
4252
    // FRAMES_NO_SKIPPING_AFTER_KEY) after key frame to improve quality.
4253
54.1k
    if (cpi->roi.enabled && !frame_is_intra_only(cm)) {
4254
0
      if (cpi->roi.skip[BACKGROUND_SEG_SKIP_ID]) {
4255
0
        if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ)
4256
0
          vp9_cyclic_refresh_setup(cpi);
4257
0
        if (cpi->rc.frames_since_key > FRAMES_NO_SKIPPING_AFTER_KEY)
4258
0
          apply_roi_map(cpi);
4259
0
      } else {
4260
0
        apply_roi_map(cpi);
4261
0
      }
4262
54.1k
    } else if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ) {
4263
0
      vp9_cyclic_refresh_setup(cpi);
4264
0
    }
4265
4266
54.1k
#if !CONFIG_REALTIME_ONLY
4267
54.1k
  }
4268
54.1k
#endif
4269
4270
54.1k
  apply_active_map(cpi);
4271
4272
54.1k
  vp9_encode_frame(cpi);
4273
4274
  // Check if we should re-encode this frame at high Q because of high
4275
  // overshoot based on the encoded frame size. Only for frames where
4276
  // high temporal-source SAD is detected.
4277
  // For SVC: all spatial layers are checked for re-encoding.
4278
54.1k
  if (cpi->sf.overshoot_detection_cbr_rt == RE_ENCODE_MAXQ &&
4279
0
      (cpi->rc.high_source_sad ||
4280
0
       (cpi->use_svc && svc->high_source_sad_superframe))) {
4281
0
    int frame_size = 0;
4282
    // Get an estimate of the encoded frame size.
4283
0
    save_coding_context(cpi);
4284
0
    vp9_pack_bitstream(cpi, dest, dest_size, size);
4285
0
    restore_coding_context(cpi);
4286
0
    frame_size = (int)(*size) << 3;
4287
    // Check if encoded frame will overshoot too much, and if so, set the q and
4288
    // adjust some rate control parameters, and return to re-encode the frame.
4289
0
    if (vp9_encodedframe_overshoot(cpi, frame_size, &q)) {
4290
0
      vpx_clear_system_state();
4291
0
      vp9_set_quantizer(cpi, q, 0);
4292
0
      vp9_set_variance_partition_thresholds(cpi, q, 0);
4293
0
      suppress_active_map(cpi);
4294
      // Turn-off cyclic refresh for re-encoded frame.
4295
0
      if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ) {
4296
0
        CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
4297
0
        unsigned char *const seg_map = cpi->segmentation_map;
4298
0
        memset(seg_map, 0, cm->mi_rows * cm->mi_cols);
4299
0
        memset(cr->last_coded_q_map, MAXQ,
4300
0
               cm->mi_rows * cm->mi_cols * sizeof(*cr->last_coded_q_map));
4301
0
        cr->sb_index = 0;
4302
0
        vp9_disable_segmentation(&cm->seg);
4303
0
      }
4304
0
      apply_active_map(cpi);
4305
0
      vp9_encode_frame(cpi);
4306
0
    }
4307
0
  }
4308
4309
  // Update some stats from cyclic refresh, and check for golden frame update.
4310
54.1k
  if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && cm->seg.enabled &&
4311
0
      !frame_is_intra_only(cm) && cpi->cyclic_refresh->content_mode)
4312
0
    vp9_cyclic_refresh_postencode(cpi);
4313
4314
  // Update the skip mb flag probabilities based on the distribution
4315
  // seen in the last encoder iteration.
4316
  // update_base_skip_probs(cpi);
4317
54.1k
  vpx_clear_system_state();
4318
54.1k
  return 1;
4319
54.1k
}
4320
4321
54.0k
static int get_ref_frame_flags(const VP9_COMP *cpi) {
4322
54.0k
  const int *const map = cpi->common.ref_frame_map;
4323
54.0k
  const int gold_is_last = map[cpi->gld_fb_idx] == map[cpi->lst_fb_idx];
4324
54.0k
  const int alt_is_last = map[cpi->alt_fb_idx] == map[cpi->lst_fb_idx];
4325
54.0k
  const int gold_is_alt = map[cpi->gld_fb_idx] == map[cpi->alt_fb_idx];
4326
54.0k
  int flags = VP9_ALT_FLAG | VP9_GOLD_FLAG | VP9_LAST_FLAG;
4327
4328
54.0k
  if (gold_is_last) flags &= ~VP9_GOLD_FLAG;
4329
4330
54.0k
  if (cpi->rc.frames_till_gf_update_due == INT_MAX &&
4331
0
      (cpi->svc.number_temporal_layers == 1 &&
4332
0
       cpi->svc.number_spatial_layers == 1))
4333
0
    flags &= ~VP9_GOLD_FLAG;
4334
4335
54.0k
  if (alt_is_last) flags &= ~VP9_ALT_FLAG;
4336
4337
54.0k
  if (gold_is_alt) flags &= ~VP9_ALT_FLAG;
4338
4339
54.0k
  return flags;
4340
54.0k
}
4341
4342
#if !CONFIG_REALTIME_ONLY
4343
#define MAX_QSTEP_ADJ 4
4344
0
static int get_qstep_adj(int rate_excess, int rate_limit) {
4345
0
  int qstep =
4346
0
      rate_limit ? ((rate_excess + rate_limit / 2) / rate_limit) : INT_MAX;
4347
0
  return VPXMIN(qstep, MAX_QSTEP_ADJ);
4348
0
}
4349
4350
static void encode_with_recode_loop(VP9_COMP *cpi, size_t *size, uint8_t *dest,
4351
0
                                    size_t dest_size) {
4352
0
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
4353
0
  VP9_COMMON *const cm = &cpi->common;
4354
0
  RATE_CONTROL *const rc = &cpi->rc;
4355
0
  int bottom_index, top_index;
4356
0
  int loop_count = 0;
4357
0
  int loop_at_this_size = 0;
4358
0
  int loop = 0;
4359
0
  int overshoot_seen = 0;
4360
0
  int undershoot_seen = 0;
4361
0
  int frame_over_shoot_limit;
4362
0
  int frame_under_shoot_limit;
4363
0
  int q = 0, q_low = 0, q_high = 0;
4364
0
  int enable_acl;
4365
#ifdef AGGRESSIVE_VBR
4366
  int qrange_adj = 1;
4367
#endif
4368
4369
0
  const int orig_rc_max_frame_bandwidth = rc->max_frame_bandwidth;
4370
4371
0
  if (cm->show_existing_frame) {
4372
0
    rc->this_frame_target = 0;
4373
0
    if (is_psnr_calc_enabled(cpi)) set_raw_source_frame(cpi);
4374
0
    return;
4375
0
  }
4376
4377
0
  set_size_independent_vars(cpi);
4378
4379
0
  enable_acl = cpi->sf.allow_acl ? (cm->frame_type == KEY_FRAME) ||
4380
0
                                       (cpi->twopass.gf_group.index == 1)
4381
0
                                 : 0;
4382
4383
#if CONFIG_COLLECT_COMPONENT_TIMING
4384
  printf("\n Encoding a frame: \n");
4385
#endif
4386
0
  do {
4387
0
    vpx_clear_system_state();
4388
4389
0
    set_frame_size(cpi);
4390
4391
0
    if (loop_count == 0 || cpi->resize_pending != 0) {
4392
0
      set_size_dependent_vars(cpi, &q, &bottom_index, &top_index);
4393
4394
#ifdef AGGRESSIVE_VBR
4395
      if (two_pass_first_group_inter(cpi)) {
4396
        // Adjustment limits for min and max q
4397
        qrange_adj = VPXMAX(1, (top_index - bottom_index) / 2);
4398
4399
        bottom_index =
4400
            VPXMAX(bottom_index - qrange_adj / 2, oxcf->best_allowed_q);
4401
        top_index = VPXMIN(oxcf->worst_allowed_q, top_index + qrange_adj / 2);
4402
      }
4403
#endif
4404
      // TODO(agrange) Scale cpi->max_mv_magnitude if frame-size has changed.
4405
0
      set_mv_search_params(cpi);
4406
4407
      // Reset the loop state for new frame size.
4408
0
      overshoot_seen = 0;
4409
0
      undershoot_seen = 0;
4410
4411
      // Reconfiguration for change in frame size has concluded.
4412
0
      cpi->resize_pending = 0;
4413
4414
0
      q_low = bottom_index;
4415
0
      q_high = top_index;
4416
4417
0
      loop_at_this_size = 0;
4418
0
    }
4419
4420
    // Decide frame size bounds first time through.
4421
0
    if (loop_count == 0) {
4422
0
      vp9_rc_compute_frame_size_bounds(cpi, rc->this_frame_target,
4423
0
                                       &frame_under_shoot_limit,
4424
0
                                       &frame_over_shoot_limit);
4425
0
    }
4426
4427
0
    cpi->Source =
4428
0
        vp9_scale_if_required(cm, cpi->un_scaled_source, &cpi->scaled_source,
4429
0
                              (oxcf->pass == 0), EIGHTTAP, 0);
4430
4431
    // Unfiltered raw source used in metrics calculation if the source
4432
    // has been filtered.
4433
0
    if (is_psnr_calc_enabled(cpi)) {
4434
#ifdef ENABLE_KF_DENOISE
4435
      if (is_spatial_denoise_enabled(cpi)) {
4436
        cpi->raw_source_frame = vp9_scale_if_required(
4437
            cm, &cpi->raw_unscaled_source, &cpi->raw_scaled_source,
4438
            (oxcf->pass == 0), EIGHTTAP, 0);
4439
      } else {
4440
        cpi->raw_source_frame = cpi->Source;
4441
      }
4442
#else
4443
0
      cpi->raw_source_frame = cpi->Source;
4444
0
#endif
4445
0
    }
4446
4447
0
    if (cpi->unscaled_last_source != NULL)
4448
0
      cpi->Last_Source = vp9_scale_if_required(cm, cpi->unscaled_last_source,
4449
0
                                               &cpi->scaled_last_source,
4450
0
                                               (oxcf->pass == 0), EIGHTTAP, 0);
4451
4452
0
    if (frame_is_intra_only(cm) == 0) {
4453
0
      if (loop_count > 0) {
4454
0
        release_scaled_references(cpi);
4455
0
      }
4456
0
      vp9_scale_references(cpi);
4457
0
    }
4458
4459
0
    const GF_GROUP *gf_group = &cpi->twopass.gf_group;
4460
0
    int ext_rc_delta_q_uv = 0;
4461
0
    if (cpi->ext_ratectrl.ready &&
4462
0
        (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_QP) != 0 &&
4463
0
        cpi->ext_ratectrl.funcs.get_encodeframe_decision != NULL) {
4464
0
      vpx_codec_err_t codec_status;
4465
0
      vpx_rc_encodeframe_decision_t encode_frame_decision;
4466
0
      int sb_size = num_8x8_blocks_wide_lookup[BLOCK_64X64] * MI_SIZE;
4467
0
      int frame_height_sb = (cm->height + sb_size - 1) / sb_size;
4468
0
      int frame_width_sb = (cm->width + sb_size - 1) / sb_size;
4469
0
      CHECK_MEM_ERROR(&cm->error, encode_frame_decision.sb_params_list,
4470
0
                      (sb_params *)vpx_calloc(
4471
0
                          frame_height_sb * frame_width_sb,
4472
0
                          sizeof(*encode_frame_decision.sb_params_list)));
4473
0
      codec_status = vp9_extrc_get_encodeframe_decision(
4474
0
          &cpi->ext_ratectrl, gf_group->index, &encode_frame_decision);
4475
0
      if (codec_status != VPX_CODEC_OK) {
4476
0
        vpx_internal_error(&cm->error, codec_status,
4477
0
                           "vp9_extrc_get_encodeframe_decision() failed");
4478
0
      }
4479
0
      for (int idx = 0; idx < frame_height_sb * frame_width_sb; ++idx) {
4480
0
        cpi->sb_mul_scale[idx] =
4481
0
            (((int64_t)encode_frame_decision.sb_params_list[idx].rdmult * 256) /
4482
0
             (encode_frame_decision.rdmult + 1));
4483
0
      }
4484
0
      vpx_free(encode_frame_decision.sb_params_list);
4485
      // If the external model recommends a reserved value, we use
4486
      // libvpx's default q.
4487
0
      if (encode_frame_decision.q_index != VPX_DEFAULT_Q) {
4488
0
        q = encode_frame_decision.q_index;
4489
0
      }
4490
0
      ext_rc_delta_q_uv = encode_frame_decision.delta_q_uv;
4491
0
    }
4492
4493
0
    if (cpi->ext_ratectrl.ready && cpi->ext_ratectrl.log_file) {
4494
0
      fprintf(cpi->ext_ratectrl.log_file,
4495
0
              "ENCODE_FRAME_INFO gop_index %d update_type %d q %d\n",
4496
0
              gf_group->index, gf_group->update_type[gf_group->index], q);
4497
0
    }
4498
4499
0
    vp9_set_quantizer(cpi, q, ext_rc_delta_q_uv);
4500
4501
0
    if (loop_count == 0) setup_frame(cpi);
4502
4503
    // Variance adaptive and in frame q adjustment experiments are mutually
4504
    // exclusive.
4505
0
    if (oxcf->aq_mode == VARIANCE_AQ) {
4506
0
      vp9_vaq_frame_setup(cpi);
4507
0
    } else if (oxcf->aq_mode == EQUATOR360_AQ) {
4508
0
      vp9_360aq_frame_setup(cpi);
4509
0
    } else if (oxcf->aq_mode == COMPLEXITY_AQ) {
4510
0
      vp9_setup_in_frame_q_adj(cpi);
4511
0
    } else if (oxcf->aq_mode == LOOKAHEAD_AQ) {
4512
0
      vp9_alt_ref_aq_setup_map(cpi->alt_ref_aq, cpi);
4513
0
    } else if (oxcf->aq_mode == PSNR_AQ) {
4514
0
      vp9_psnr_aq_mode_setup(&cm->seg);
4515
0
    }
4516
4517
0
    vp9_encode_frame(cpi);
4518
4519
    // Update the skip mb flag probabilities based on the distribution
4520
    // seen in the last encoder iteration.
4521
    // update_base_skip_probs(cpi);
4522
4523
0
    vpx_clear_system_state();
4524
4525
    // Dummy pack of the bitstream using up to date stats to get an
4526
    // accurate estimate of output frame size to determine if we need
4527
    // to recode.
4528
0
    if (cpi->sf.recode_loop >= ALLOW_RECODE_KFARFGF) {
4529
0
      save_coding_context(cpi);
4530
0
      if (!cpi->sf.use_nonrd_pick_mode)
4531
0
        vp9_pack_bitstream(cpi, dest, dest_size, size);
4532
4533
0
      rc->projected_frame_size = (int)(*size) << 3;
4534
4535
0
      if (frame_over_shoot_limit == 0) frame_over_shoot_limit = 1;
4536
0
    }
4537
4538
0
    if (cpi->ext_ratectrl.ready &&
4539
0
        (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_QP) != 0) {
4540
0
      break;
4541
0
    }
4542
4543
0
    if (oxcf->rc_mode == VPX_Q) {
4544
0
      loop = 0;
4545
0
    } else {
4546
0
      if ((cm->frame_type == KEY_FRAME) && rc->this_key_frame_forced &&
4547
0
          (rc->projected_frame_size < rc->max_frame_bandwidth)) {
4548
0
        int last_q = q;
4549
0
        int64_t kf_err;
4550
4551
0
        int64_t high_err_target = cpi->ambient_err;
4552
0
        int64_t low_err_target = cpi->ambient_err >> 1;
4553
4554
0
#if CONFIG_VP9_HIGHBITDEPTH
4555
0
        if (cm->use_highbitdepth) {
4556
0
          kf_err = vpx_highbd_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
4557
0
        } else {
4558
0
          kf_err = vpx_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
4559
0
        }
4560
#else
4561
        kf_err = vpx_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
4562
#endif  // CONFIG_VP9_HIGHBITDEPTH
4563
4564
        // Prevent possible divide by zero error below for perfect KF
4565
0
        kf_err += !kf_err;
4566
4567
        // The key frame is not good enough or we can afford
4568
        // to make it better without undue risk of popping.
4569
0
        if ((kf_err > high_err_target &&
4570
0
             rc->projected_frame_size <= frame_over_shoot_limit) ||
4571
0
            (kf_err > low_err_target &&
4572
0
             rc->projected_frame_size <= frame_under_shoot_limit)) {
4573
          // Lower q_high
4574
0
          q_high = q > q_low ? q - 1 : q_low;
4575
4576
          // Adjust Q
4577
0
          q = (int)((q * high_err_target) / kf_err);
4578
0
          q = VPXMIN(q, (q_high + q_low) >> 1);
4579
0
        } else if (kf_err < low_err_target &&
4580
0
                   rc->projected_frame_size >= frame_under_shoot_limit) {
4581
          // The key frame is much better than the previous frame
4582
          // Raise q_low
4583
0
          q_low = q < q_high ? q + 1 : q_high;
4584
4585
          // Adjust Q
4586
0
          q = (int)((q * low_err_target) / kf_err);
4587
0
          q = VPXMIN(q, (q_high + q_low + 1) >> 1);
4588
0
        }
4589
4590
        // Clamp Q to upper and lower limits:
4591
0
        q = clamp(q, q_low, q_high);
4592
4593
0
        loop = q != last_q;
4594
0
      } else if (recode_loop_test(cpi, frame_over_shoot_limit,
4595
0
                                  frame_under_shoot_limit, q,
4596
0
                                  VPXMAX(q_high, top_index), bottom_index)) {
4597
        // Is the projected frame size out of range and are we allowed
4598
        // to attempt to recode.
4599
0
        int last_q = q;
4600
0
        int retries = 0;
4601
0
        int qstep;
4602
4603
0
        if (cpi->resize_pending == 1) {
4604
          // Change in frame size so go back around the recode loop.
4605
0
          cpi->rc.frame_size_selector =
4606
0
              SCALE_STEP1 - cpi->rc.frame_size_selector;
4607
0
          cpi->rc.next_frame_size_selector = cpi->rc.frame_size_selector;
4608
4609
#if CONFIG_INTERNAL_STATS
4610
          ++cpi->tot_recode_hits;
4611
#endif
4612
0
          ++loop_count;
4613
0
          loop = 1;
4614
0
          continue;
4615
0
        }
4616
4617
        // Frame size out of permitted range:
4618
        // Update correction factor & compute new Q to try...
4619
4620
        // Frame is too large
4621
0
        if (rc->projected_frame_size > rc->this_frame_target) {
4622
          // Special case if the projected size is > the max allowed.
4623
0
          if ((q == q_high) &&
4624
0
              ((rc->projected_frame_size >= rc->max_frame_bandwidth) ||
4625
0
               (!rc->is_src_frame_alt_ref &&
4626
0
                (rc->projected_frame_size >=
4627
0
                 big_rate_miss_high_threshold(cpi))))) {
4628
0
            int max_rate = VPXMAX(1, VPXMIN(rc->max_frame_bandwidth,
4629
0
                                            big_rate_miss_high_threshold(cpi)));
4630
0
            double q_val_high;
4631
0
            q_val_high = vp9_convert_qindex_to_q(q_high, cm->bit_depth);
4632
0
            q_val_high =
4633
0
                q_val_high * ((double)rc->projected_frame_size / max_rate);
4634
0
            q_high = vp9_convert_q_to_qindex(q_val_high, cm->bit_depth);
4635
0
            q_high = clamp(q_high, rc->best_quality, rc->worst_quality);
4636
0
          }
4637
4638
          // Raise Qlow as to at least the current value
4639
0
          qstep =
4640
0
              get_qstep_adj(rc->projected_frame_size, rc->this_frame_target);
4641
0
          q_low = VPXMIN(q + qstep, q_high);
4642
4643
0
          if (undershoot_seen || loop_at_this_size > 1) {
4644
            // Update rate_correction_factor unless
4645
0
            vp9_rc_update_rate_correction_factors(cpi);
4646
4647
0
            q = (q_high + q_low + 1) / 2;
4648
0
          } else {
4649
            // Update rate_correction_factor unless
4650
0
            vp9_rc_update_rate_correction_factors(cpi);
4651
4652
0
            q = vp9_rc_regulate_q(cpi, rc->this_frame_target, bottom_index,
4653
0
                                  VPXMAX(q_high, top_index));
4654
4655
0
            while (q < q_low && retries < 10) {
4656
0
              vp9_rc_update_rate_correction_factors(cpi);
4657
0
              q = vp9_rc_regulate_q(cpi, rc->this_frame_target, bottom_index,
4658
0
                                    VPXMAX(q_high, top_index));
4659
0
              retries++;
4660
0
            }
4661
0
          }
4662
4663
0
          overshoot_seen = 1;
4664
0
        } else {
4665
          // Frame is too small
4666
0
          qstep =
4667
0
              get_qstep_adj(rc->this_frame_target, rc->projected_frame_size);
4668
0
          q_high = VPXMAX(q - qstep, q_low);
4669
4670
0
          if (overshoot_seen || loop_at_this_size > 1) {
4671
0
            vp9_rc_update_rate_correction_factors(cpi);
4672
0
            q = (q_high + q_low) / 2;
4673
0
          } else {
4674
0
            vp9_rc_update_rate_correction_factors(cpi);
4675
0
            q = vp9_rc_regulate_q(cpi, rc->this_frame_target,
4676
0
                                  VPXMIN(q_low, bottom_index), top_index);
4677
            // Special case reset for qlow for constrained quality.
4678
            // This should only trigger where there is very substantial
4679
            // undershoot on a frame and the auto cq level is above
4680
            // the user passed in value.
4681
0
            if (oxcf->rc_mode == VPX_CQ && q < q_low) {
4682
0
              q_low = q;
4683
0
            }
4684
4685
0
            while (q > q_high && retries < 10) {
4686
0
              vp9_rc_update_rate_correction_factors(cpi);
4687
0
              q = vp9_rc_regulate_q(cpi, rc->this_frame_target,
4688
0
                                    VPXMIN(q_low, bottom_index), top_index);
4689
0
              retries++;
4690
0
            }
4691
0
          }
4692
0
          undershoot_seen = 1;
4693
0
        }
4694
4695
        // Clamp Q to upper and lower limits:
4696
0
        q = clamp(q, q_low, q_high);
4697
4698
0
        loop = (q != last_q);
4699
0
      } else {
4700
0
        loop = 0;
4701
0
      }
4702
0
    }
4703
4704
    // Special case for overlay frame.
4705
0
    if (rc->is_src_frame_alt_ref &&
4706
0
        rc->projected_frame_size < rc->max_frame_bandwidth)
4707
0
      loop = 0;
4708
4709
0
    if (loop) {
4710
0
      ++loop_count;
4711
0
      ++loop_at_this_size;
4712
4713
#if CONFIG_INTERNAL_STATS
4714
      ++cpi->tot_recode_hits;
4715
#endif
4716
0
    }
4717
4718
0
    if (cpi->sf.recode_loop >= ALLOW_RECODE_KFARFGF)
4719
0
      if (loop) restore_coding_context(cpi);
4720
#if CONFIG_COLLECT_COMPONENT_TIMING
4721
    if (loop) printf("\n Recoding:");
4722
#endif
4723
0
  } while (loop);
4724
4725
0
  rc->max_frame_bandwidth = orig_rc_max_frame_bandwidth;
4726
4727
#ifdef AGGRESSIVE_VBR
4728
  if (two_pass_first_group_inter(cpi)) {
4729
    cpi->twopass.active_worst_quality =
4730
        VPXMIN(q + qrange_adj, oxcf->worst_allowed_q);
4731
  } else if (!frame_is_kf_gf_arf(cpi)) {
4732
#else
4733
0
  if (!frame_is_kf_gf_arf(cpi)) {
4734
0
#endif
4735
    // Have we been forced to adapt Q outside the expected range by an extreme
4736
    // rate miss. If so adjust the active maxQ for the subsequent frames.
4737
0
    if (!rc->is_src_frame_alt_ref && (q > cpi->twopass.active_worst_quality)) {
4738
0
      cpi->twopass.active_worst_quality = q;
4739
0
    } else if (oxcf->vbr_corpus_complexity && q == q_low &&
4740
0
               rc->projected_frame_size < rc->this_frame_target) {
4741
0
      cpi->twopass.active_worst_quality =
4742
0
          VPXMAX(q, cpi->twopass.active_worst_quality - 1);
4743
0
    }
4744
0
  }
4745
4746
0
  if (enable_acl) {
4747
    // Skip recoding, if model diff is below threshold
4748
0
    const int thresh = compute_context_model_thresh(cpi);
4749
0
    const int diff = compute_context_model_diff(cm);
4750
0
    if (diff >= thresh) {
4751
0
      vp9_encode_frame(cpi);
4752
0
    }
4753
0
  }
4754
0
  if (cpi->sf.recode_loop >= ALLOW_RECODE_KFARFGF) {
4755
0
    vpx_clear_system_state();
4756
0
    restore_coding_context(cpi);
4757
0
  }
4758
0
}
4759
#endif  // !CONFIG_REALTIME_ONLY
4760
4761
54.1k
static void set_ext_overrides(VP9_COMP *cpi) {
4762
  // Overrides the defaults with the externally supplied values with
4763
  // vp9_update_reference() and vp9_update_entropy() calls
4764
  // Note: The overrides are valid only for the next frame passed
4765
  // to encode_frame_to_data_rate() function
4766
54.1k
  if (cpi->ext_refresh_frame_context_pending) {
4767
0
    cpi->common.refresh_frame_context = cpi->ext_refresh_frame_context;
4768
0
    cpi->ext_refresh_frame_context_pending = 0;
4769
0
  }
4770
54.1k
  if (cpi->ext_refresh_frame_flags_pending) {
4771
0
    cpi->refresh_last_frame = cpi->ext_refresh_last_frame;
4772
0
    cpi->refresh_golden_frame = cpi->ext_refresh_golden_frame;
4773
0
    cpi->refresh_alt_ref_frame = cpi->ext_refresh_alt_ref_frame;
4774
0
  }
4775
54.1k
}
4776
4777
YV12_BUFFER_CONFIG *vp9_scale_if_required(
4778
    VP9_COMMON *cm, YV12_BUFFER_CONFIG *unscaled, YV12_BUFFER_CONFIG *scaled,
4779
84.5k
    int use_normative_scaler, INTERP_FILTER filter_type, int phase_scaler) {
4780
84.5k
  if (cm->mi_cols * MI_SIZE != unscaled->y_width ||
4781
84.5k
      cm->mi_rows * MI_SIZE != unscaled->y_height) {
4782
0
#if CONFIG_VP9_HIGHBITDEPTH
4783
0
    if (use_normative_scaler && unscaled->y_width <= (scaled->y_width << 1) &&
4784
0
        unscaled->y_height <= (scaled->y_height << 1))
4785
0
      if (cm->bit_depth == VPX_BITS_8)
4786
0
        vp9_scale_and_extend_frame(unscaled, scaled, filter_type, phase_scaler);
4787
0
      else
4788
0
        scale_and_extend_frame(unscaled, scaled, (int)cm->bit_depth,
4789
0
                               filter_type, phase_scaler);
4790
0
    else
4791
0
      vp9_scale_and_extend_frame_nonnormative(unscaled, scaled,
4792
0
                                              (int)cm->bit_depth);
4793
#else
4794
    if (use_normative_scaler && unscaled->y_width <= (scaled->y_width << 1) &&
4795
        unscaled->y_height <= (scaled->y_height << 1))
4796
      vp9_scale_and_extend_frame(unscaled, scaled, filter_type, phase_scaler);
4797
    else
4798
      vp9_scale_and_extend_frame_nonnormative(unscaled, scaled);
4799
#endif  // CONFIG_VP9_HIGHBITDEPTH
4800
0
    return scaled;
4801
84.5k
  } else {
4802
84.5k
    return unscaled;
4803
84.5k
  }
4804
84.5k
}
4805
4806
54.1k
static void set_ref_sign_bias(VP9_COMP *cpi) {
4807
54.1k
  VP9_COMMON *const cm = &cpi->common;
4808
54.1k
  RefCntBuffer *const ref_buffer = get_ref_cnt_buffer(cm, cm->new_fb_idx);
4809
54.1k
  const int cur_frame_index = ref_buffer->frame_index;
4810
54.1k
  MV_REFERENCE_FRAME ref_frame;
4811
4812
216k
  for (ref_frame = LAST_FRAME; ref_frame < MAX_REF_FRAMES; ++ref_frame) {
4813
162k
    const int buf_idx = get_ref_frame_buf_idx(cpi, ref_frame);
4814
162k
    const RefCntBuffer *const ref_cnt_buf =
4815
162k
        get_ref_cnt_buffer(&cpi->common, buf_idx);
4816
162k
    if (ref_cnt_buf) {
4817
150k
      cm->ref_frame_sign_bias[ref_frame] =
4818
150k
          cur_frame_index < ref_cnt_buf->frame_index;
4819
150k
    }
4820
162k
  }
4821
54.1k
}
4822
4823
0
static int setup_interp_filter_search_mask(VP9_COMP *cpi) {
4824
0
  INTERP_FILTER ifilter;
4825
0
  int ref_total[MAX_REF_FRAMES] = { 0 };
4826
0
  MV_REFERENCE_FRAME ref;
4827
0
  int mask = 0;
4828
0
  if (cpi->common.last_frame_type == KEY_FRAME || cpi->refresh_alt_ref_frame)
4829
0
    return mask;
4830
0
  for (ref = LAST_FRAME; ref <= ALTREF_FRAME; ++ref)
4831
0
    for (ifilter = EIGHTTAP; ifilter <= EIGHTTAP_SHARP; ++ifilter)
4832
0
      ref_total[ref] += cpi->interp_filter_selected[ref][ifilter];
4833
4834
0
  for (ifilter = EIGHTTAP; ifilter <= EIGHTTAP_SHARP; ++ifilter) {
4835
0
    if ((ref_total[LAST_FRAME] &&
4836
0
         cpi->interp_filter_selected[LAST_FRAME][ifilter] == 0) &&
4837
0
        (ref_total[GOLDEN_FRAME] == 0 ||
4838
0
         cpi->interp_filter_selected[GOLDEN_FRAME][ifilter] * 50 <
4839
0
             ref_total[GOLDEN_FRAME]) &&
4840
0
        (ref_total[ALTREF_FRAME] == 0 ||
4841
0
         cpi->interp_filter_selected[ALTREF_FRAME][ifilter] * 50 <
4842
0
             ref_total[ALTREF_FRAME]))
4843
0
      mask |= 1 << ifilter;
4844
0
  }
4845
0
  return mask;
4846
0
}
4847
4848
#ifdef ENABLE_KF_DENOISE
4849
// Baseline kernel weights for denoise
4850
static uint8_t dn_kernel_3[9] = { 1, 2, 1, 2, 4, 2, 1, 2, 1 };
4851
static uint8_t dn_kernel_5[25] = { 1, 1, 1, 1, 1, 1, 1, 2, 1, 1, 1, 2, 4,
4852
                                   2, 1, 1, 1, 2, 1, 1, 1, 1, 1, 1, 1 };
4853
4854
static INLINE void add_denoise_point(int centre_val, int data_val, int thresh,
4855
                                     uint8_t point_weight, int *sum_val,
4856
                                     int *sum_weight) {
4857
  if (abs(centre_val - data_val) <= thresh) {
4858
    *sum_weight += point_weight;
4859
    *sum_val += (int)data_val * (int)point_weight;
4860
  }
4861
}
4862
4863
static void spatial_denoise_point(uint8_t *src_ptr, const int stride,
4864
                                  const int strength) {
4865
  int sum_weight = 0;
4866
  int sum_val = 0;
4867
  int thresh = strength;
4868
  int kernel_size = 5;
4869
  int half_k_size = 2;
4870
  int i, j;
4871
  int max_diff = 0;
4872
  uint8_t *tmp_ptr;
4873
  uint8_t *kernel_ptr;
4874
4875
  // Find the maximum deviation from the source point in the locale.
4876
  tmp_ptr = src_ptr - (stride * (half_k_size + 1)) - (half_k_size + 1);
4877
  for (i = 0; i < kernel_size + 2; ++i) {
4878
    for (j = 0; j < kernel_size + 2; ++j) {
4879
      max_diff = VPXMAX(max_diff, abs((int)*src_ptr - (int)tmp_ptr[j]));
4880
    }
4881
    tmp_ptr += stride;
4882
  }
4883
4884
  // Select the kernel size.
4885
  if (max_diff > (strength + (strength >> 1))) {
4886
    kernel_size = 3;
4887
    half_k_size = 1;
4888
    thresh = thresh >> 1;
4889
  }
4890
  kernel_ptr = (kernel_size == 3) ? dn_kernel_3 : dn_kernel_5;
4891
4892
  // Apply the kernel
4893
  tmp_ptr = src_ptr - (stride * half_k_size) - half_k_size;
4894
  for (i = 0; i < kernel_size; ++i) {
4895
    for (j = 0; j < kernel_size; ++j) {
4896
      add_denoise_point((int)*src_ptr, (int)tmp_ptr[j], thresh, *kernel_ptr,
4897
                        &sum_val, &sum_weight);
4898
      ++kernel_ptr;
4899
    }
4900
    tmp_ptr += stride;
4901
  }
4902
4903
  // Update the source value with the new filtered value
4904
  *src_ptr = (uint8_t)((sum_val + (sum_weight >> 1)) / sum_weight);
4905
}
4906
4907
#if CONFIG_VP9_HIGHBITDEPTH
4908
static void highbd_spatial_denoise_point(uint16_t *src_ptr, const int stride,
4909
                                         const int strength) {
4910
  int sum_weight = 0;
4911
  int sum_val = 0;
4912
  int thresh = strength;
4913
  int kernel_size = 5;
4914
  int half_k_size = 2;
4915
  int i, j;
4916
  int max_diff = 0;
4917
  uint16_t *tmp_ptr;
4918
  uint8_t *kernel_ptr;
4919
4920
  // Find the maximum deviation from the source point in the locale.
4921
  tmp_ptr = src_ptr - (stride * (half_k_size + 1)) - (half_k_size + 1);
4922
  for (i = 0; i < kernel_size + 2; ++i) {
4923
    for (j = 0; j < kernel_size + 2; ++j) {
4924
      max_diff = VPXMAX(max_diff, abs((int)src_ptr - (int)tmp_ptr[j]));
4925
    }
4926
    tmp_ptr += stride;
4927
  }
4928
4929
  // Select the kernel size.
4930
  if (max_diff > (strength + (strength >> 1))) {
4931
    kernel_size = 3;
4932
    half_k_size = 1;
4933
    thresh = thresh >> 1;
4934
  }
4935
  kernel_ptr = (kernel_size == 3) ? dn_kernel_3 : dn_kernel_5;
4936
4937
  // Apply the kernel
4938
  tmp_ptr = src_ptr - (stride * half_k_size) - half_k_size;
4939
  for (i = 0; i < kernel_size; ++i) {
4940
    for (j = 0; j < kernel_size; ++j) {
4941
      add_denoise_point((int)*src_ptr, (int)tmp_ptr[j], thresh, *kernel_ptr,
4942
                        &sum_val, &sum_weight);
4943
      ++kernel_ptr;
4944
    }
4945
    tmp_ptr += stride;
4946
  }
4947
4948
  // Update the source value with the new filtered value
4949
  *src_ptr = (uint16_t)((sum_val + (sum_weight >> 1)) / sum_weight);
4950
}
4951
#endif  // CONFIG_VP9_HIGHBITDEPTH
4952
4953
// Apply thresholded spatial noise suppression to a given buffer.
4954
static void spatial_denoise_buffer(VP9_COMP *cpi, uint8_t *buffer,
4955
                                   const int stride, const int width,
4956
                                   const int height, const int strength) {
4957
  VP9_COMMON *const cm = &cpi->common;
4958
  uint8_t *src_ptr = buffer;
4959
  int row;
4960
  int col;
4961
4962
  for (row = 0; row < height; ++row) {
4963
    for (col = 0; col < width; ++col) {
4964
#if CONFIG_VP9_HIGHBITDEPTH
4965
      if (cm->use_highbitdepth)
4966
        highbd_spatial_denoise_point(CONVERT_TO_SHORTPTR(&src_ptr[col]), stride,
4967
                                     strength);
4968
      else
4969
        spatial_denoise_point(&src_ptr[col], stride, strength);
4970
#else
4971
      spatial_denoise_point(&src_ptr[col], stride, strength);
4972
#endif  // CONFIG_VP9_HIGHBITDEPTH
4973
    }
4974
    src_ptr += stride;
4975
  }
4976
}
4977
4978
// Apply thresholded spatial noise suppression to source.
4979
static void spatial_denoise_frame(VP9_COMP *cpi) {
4980
  YV12_BUFFER_CONFIG *src = cpi->Source;
4981
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
4982
  TWO_PASS *const twopass = &cpi->twopass;
4983
  VP9_COMMON *const cm = &cpi->common;
4984
4985
  // Base the filter strength on the current active max Q.
4986
  const int q = (int)(vp9_convert_qindex_to_q(twopass->active_worst_quality,
4987
                                              cm->bit_depth));
4988
  int strength = clamp(q >> 4, oxcf->arnr_strength >> 2, oxcf->arnr_strength);
4989
4990
  // Denoise each of Y,U and V buffers.
4991
  spatial_denoise_buffer(cpi, src->y_buffer, src->y_stride, src->y_width,
4992
                         src->y_height, strength);
4993
4994
  strength += (strength >> 1);
4995
  spatial_denoise_buffer(cpi, src->u_buffer, src->uv_stride, src->uv_width,
4996
                         src->uv_height, strength << 1);
4997
4998
  spatial_denoise_buffer(cpi, src->v_buffer, src->uv_stride, src->uv_width,
4999
                         src->uv_height, strength << 1);
5000
}
5001
#endif  // ENABLE_KF_DENOISE
5002
5003
#if !CONFIG_REALTIME_ONLY
5004
static void vp9_try_disable_lookahead_aq(VP9_COMP *cpi, size_t *size,
5005
0
                                         uint8_t *dest, size_t dest_size) {
5006
0
  if (cpi->common.seg.enabled)
5007
0
    if (ALT_REF_AQ_PROTECT_GAIN) {
5008
0
      size_t nsize = *size;
5009
0
      int overhead;
5010
5011
      // TODO(yuryg): optimize this, as
5012
      // we don't really need to repack
5013
5014
0
      save_coding_context(cpi);
5015
0
      vp9_disable_segmentation(&cpi->common.seg);
5016
0
      vp9_pack_bitstream(cpi, dest, dest_size, &nsize);
5017
0
      restore_coding_context(cpi);
5018
5019
0
      overhead = (int)*size - (int)nsize;
5020
5021
0
      if (vp9_alt_ref_aq_disable_if(cpi->alt_ref_aq, overhead, (int)*size))
5022
0
        vp9_encode_frame(cpi);
5023
0
      else
5024
0
        vp9_enable_segmentation(&cpi->common.seg);
5025
0
    }
5026
0
}
5027
#endif
5028
5029
54.1k
static void set_frame_index(VP9_COMP *cpi, VP9_COMMON *cm) {
5030
54.1k
  RefCntBuffer *const ref_buffer = get_ref_cnt_buffer(cm, cm->new_fb_idx);
5031
5032
54.1k
  if (ref_buffer) {
5033
54.1k
    const GF_GROUP *const gf_group = &cpi->twopass.gf_group;
5034
54.1k
    ref_buffer->frame_index =
5035
54.1k
        cm->current_video_frame + gf_group->arf_src_offset[gf_group->index];
5036
54.1k
    ref_buffer->frame_coding_index = cm->current_frame_coding_index;
5037
54.1k
  }
5038
54.1k
}
5039
5040
0
static void set_mb_ssim_rdmult_scaling(VP9_COMP *cpi) {
5041
0
  VP9_COMMON *cm = &cpi->common;
5042
0
  ThreadData *td = &cpi->td;
5043
0
  MACROBLOCK *x = &td->mb;
5044
0
  MACROBLOCKD *xd = &x->e_mbd;
5045
0
  uint8_t *y_buffer = cpi->Source->y_buffer;
5046
0
  const int y_stride = cpi->Source->y_stride;
5047
0
  const int block_size = BLOCK_16X16;
5048
5049
0
  const int num_8x8_w = num_8x8_blocks_wide_lookup[block_size];
5050
0
  const int num_8x8_h = num_8x8_blocks_high_lookup[block_size];
5051
0
  const int num_cols = (cm->mi_cols + num_8x8_w - 1) / num_8x8_w;
5052
0
  const int num_rows = (cm->mi_rows + num_8x8_h - 1) / num_8x8_h;
5053
0
  double log_sum = 0.0;
5054
0
  int row, col;
5055
5056
  // Loop through each 64x64 block.
5057
0
  for (row = 0; row < num_rows; ++row) {
5058
0
    for (col = 0; col < num_cols; ++col) {
5059
0
      int mi_row, mi_col;
5060
0
      double var = 0.0, num_of_var = 0.0;
5061
0
      const int index = row * num_cols + col;
5062
5063
0
      for (mi_row = row * num_8x8_h;
5064
0
           mi_row < cm->mi_rows && mi_row < (row + 1) * num_8x8_h; ++mi_row) {
5065
0
        for (mi_col = col * num_8x8_w;
5066
0
             mi_col < cm->mi_cols && mi_col < (col + 1) * num_8x8_w; ++mi_col) {
5067
0
          struct buf_2d buf;
5068
0
          const int row_offset_y = mi_row << 3;
5069
0
          const int col_offset_y = mi_col << 3;
5070
5071
0
          buf.buf = y_buffer + row_offset_y * y_stride + col_offset_y;
5072
0
          buf.stride = y_stride;
5073
5074
          // In order to make SSIM_VAR_SCALE in a same scale for both 8 bit
5075
          // and high bit videos, the variance needs to be divided by 2.0 or
5076
          // 64.0 separately.
5077
          // TODO(sdeng): need to tune for 12bit videos.
5078
0
#if CONFIG_VP9_HIGHBITDEPTH
5079
0
          if (cpi->Source->flags & YV12_FLAG_HIGHBITDEPTH)
5080
0
            var += vp9_high_get_sby_variance(cpi, &buf, BLOCK_8X8, xd->bd);
5081
0
          else
5082
0
#endif
5083
0
            var += vp9_get_sby_variance(cpi, &buf, BLOCK_8X8);
5084
5085
0
          num_of_var += 1.0;
5086
0
        }
5087
0
      }
5088
0
      var = var / num_of_var / 64.0;
5089
5090
      // Curve fitting with an exponential model on all 16x16 blocks from the
5091
      // Midres dataset.
5092
0
      var = 67.035434 * (1 - exp(-0.0021489 * var)) + 17.492222;
5093
0
      cpi->mi_ssim_rdmult_scaling_factors[index] = var;
5094
0
      log_sum += log(var);
5095
0
    }
5096
0
  }
5097
0
  log_sum = exp(log_sum / (double)(num_rows * num_cols));
5098
5099
0
  for (row = 0; row < num_rows; ++row) {
5100
0
    for (col = 0; col < num_cols; ++col) {
5101
0
      const int index = row * num_cols + col;
5102
0
      cpi->mi_ssim_rdmult_scaling_factors[index] /= log_sum;
5103
0
    }
5104
0
  }
5105
5106
0
  (void)xd;
5107
0
}
5108
5109
// Process the wiener variance in 16x16 block basis.
5110
0
static int qsort_comp(const void *elem1, const void *elem2) {
5111
0
  int a = *((const int *)elem1);
5112
0
  int b = *((const int *)elem2);
5113
0
  if (a > b) return 1;
5114
0
  if (a < b) return -1;
5115
0
  return 0;
5116
0
}
5117
5118
0
static void init_mb_wiener_var_buffer(VP9_COMP *cpi) {
5119
0
  VP9_COMMON *cm = &cpi->common;
5120
5121
0
  if (cpi->mb_wiener_variance && cpi->mb_wiener_var_rows >= cm->mb_rows &&
5122
0
      cpi->mb_wiener_var_cols >= cm->mb_cols)
5123
0
    return;
5124
5125
0
  vpx_free(cpi->mb_wiener_variance);
5126
0
  cpi->mb_wiener_variance = NULL;
5127
5128
0
  CHECK_MEM_ERROR(
5129
0
      &cm->error, cpi->mb_wiener_variance,
5130
0
      vpx_calloc(cm->mb_rows * cm->mb_cols, sizeof(*cpi->mb_wiener_variance)));
5131
0
  cpi->mb_wiener_var_rows = cm->mb_rows;
5132
0
  cpi->mb_wiener_var_cols = cm->mb_cols;
5133
0
}
5134
5135
54.1k
static void init_sb_mul_scale_buffer(VP9_COMP *cpi) {
5136
54.1k
  VP9_COMMON *cm = &cpi->common;
5137
5138
54.1k
  if (cpi->mb_wiener_var_rows >= cm->mb_rows &&
5139
50.3k
      cpi->mb_wiener_var_cols >= cm->mb_cols)
5140
50.3k
    return;
5141
5142
3.88k
  vpx_free(cpi->sb_mul_scale);
5143
3.88k
  cpi->sb_mul_scale = NULL;
5144
5145
3.88k
  CHECK_MEM_ERROR(
5146
3.88k
      &cm->error, cpi->sb_mul_scale,
5147
3.88k
      vpx_calloc(cm->mb_rows * cm->mb_cols, sizeof(*cpi->sb_mul_scale)));
5148
3.88k
  cpi->mb_wiener_var_rows = cm->mb_rows;
5149
3.88k
  cpi->mb_wiener_var_cols = cm->mb_cols;
5150
3.88k
}
5151
5152
0
static void set_mb_wiener_variance(VP9_COMP *cpi) {
5153
0
  VP9_COMMON *cm = &cpi->common;
5154
0
  uint8_t *buffer = cpi->Source->y_buffer;
5155
0
  int buf_stride = cpi->Source->y_stride;
5156
5157
0
#if CONFIG_VP9_HIGHBITDEPTH
5158
0
  ThreadData *td = &cpi->td;
5159
0
  MACROBLOCK *x = &td->mb;
5160
0
  MACROBLOCKD *xd = &x->e_mbd;
5161
0
  DECLARE_ALIGNED(16, uint16_t, zero_pred16[32 * 32]);
5162
0
  DECLARE_ALIGNED(16, uint8_t, zero_pred8[32 * 32]);
5163
0
  uint8_t *zero_pred;
5164
#else
5165
  DECLARE_ALIGNED(16, uint8_t, zero_pred[32 * 32]);
5166
#endif
5167
5168
0
  DECLARE_ALIGNED(16, int16_t, src_diff[32 * 32]);
5169
0
  DECLARE_ALIGNED(16, tran_low_t, coeff[32 * 32]);
5170
5171
0
  int mb_row, mb_col, count = 0;
5172
  // Hard coded operating block size
5173
0
  const int block_size = 16;
5174
0
  const int coeff_count = block_size * block_size;
5175
0
  const TX_SIZE tx_size = TX_16X16;
5176
5177
0
#if CONFIG_VP9_HIGHBITDEPTH
5178
0
  xd->cur_buf = cpi->Source;
5179
0
  if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
5180
0
    zero_pred = CONVERT_TO_BYTEPTR(zero_pred16);
5181
0
    memset(zero_pred16, 0, sizeof(*zero_pred16) * coeff_count);
5182
0
  } else {
5183
0
    zero_pred = zero_pred8;
5184
0
    memset(zero_pred8, 0, sizeof(*zero_pred8) * coeff_count);
5185
0
  }
5186
#else
5187
  memset(zero_pred, 0, sizeof(*zero_pred) * coeff_count);
5188
#endif
5189
5190
0
  cpi->norm_wiener_variance = 0;
5191
5192
0
  for (mb_row = 0; mb_row < cm->mb_rows; ++mb_row) {
5193
0
    for (mb_col = 0; mb_col < cm->mb_cols; ++mb_col) {
5194
0
      int idx;
5195
0
      int16_t median_val = 0;
5196
0
      uint8_t *mb_buffer =
5197
0
          buffer + mb_row * block_size * buf_stride + mb_col * block_size;
5198
0
      int64_t wiener_variance = 0;
5199
5200
0
#if CONFIG_VP9_HIGHBITDEPTH
5201
0
      if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
5202
0
        vpx_highbd_subtract_block(block_size, block_size, src_diff, block_size,
5203
0
                                  mb_buffer, buf_stride, zero_pred, block_size,
5204
0
                                  xd->bd);
5205
0
        vp9_highbd_wht_fwd_txfm(src_diff, block_size, coeff, tx_size);
5206
0
      } else {
5207
0
        vpx_subtract_block(block_size, block_size, src_diff, block_size,
5208
0
                           mb_buffer, buf_stride, zero_pred, block_size);
5209
0
        vp9_wht_fwd_txfm(src_diff, block_size, coeff, tx_size);
5210
0
      }
5211
#else
5212
      vpx_subtract_block(block_size, block_size, src_diff, block_size,
5213
                         mb_buffer, buf_stride, zero_pred, block_size);
5214
      vp9_wht_fwd_txfm(src_diff, block_size, coeff, tx_size);
5215
#endif  // CONFIG_VP9_HIGHBITDEPTH
5216
5217
0
      coeff[0] = 0;
5218
0
      for (idx = 1; idx < coeff_count; ++idx) coeff[idx] = abs(coeff[idx]);
5219
5220
0
      qsort(coeff, coeff_count - 1, sizeof(*coeff), qsort_comp);
5221
5222
      // Noise level estimation
5223
0
      median_val = coeff[coeff_count / 2];
5224
5225
      // Wiener filter
5226
0
      for (idx = 1; idx < coeff_count; ++idx) {
5227
0
        int64_t sqr_coeff = (int64_t)coeff[idx] * coeff[idx];
5228
0
        int64_t tmp_coeff = (int64_t)coeff[idx];
5229
0
        if (median_val) {
5230
0
          tmp_coeff = (sqr_coeff * coeff[idx]) /
5231
0
                      (sqr_coeff + (int64_t)median_val * median_val);
5232
0
        }
5233
0
        wiener_variance += tmp_coeff * tmp_coeff;
5234
0
      }
5235
0
      cpi->mb_wiener_variance[mb_row * cm->mb_cols + mb_col] =
5236
0
          wiener_variance / coeff_count;
5237
0
      cpi->norm_wiener_variance +=
5238
0
          cpi->mb_wiener_variance[mb_row * cm->mb_cols + mb_col];
5239
0
      ++count;
5240
0
    }
5241
0
  }
5242
5243
0
  if (count) cpi->norm_wiener_variance /= count;
5244
0
  cpi->norm_wiener_variance = VPXMAX(1, cpi->norm_wiener_variance);
5245
0
}
5246
5247
#if !CONFIG_REALTIME_ONLY
5248
static PSNR_STATS compute_psnr_stats(const YV12_BUFFER_CONFIG *source_frame,
5249
                                     const YV12_BUFFER_CONFIG *coded_frame,
5250
                                     uint32_t bit_depth,
5251
                                     uint32_t input_bit_depth,
5252
0
                                     int spatial_layer_id) {
5253
0
  PSNR_STATS psnr;
5254
0
#if CONFIG_VP9_HIGHBITDEPTH
5255
0
  vpx_calc_highbd_psnr(source_frame, coded_frame, &psnr, bit_depth,
5256
0
                       input_bit_depth, spatial_layer_id);
5257
#else   // CONFIG_VP9_HIGHBITDEPTH
5258
  (void)bit_depth;
5259
  (void)input_bit_depth;
5260
  vpx_calc_psnr(source_frame, coded_frame, &psnr, spatial_layer_id);
5261
#endif  // CONFIG_VP9_HIGHBITDEPTH
5262
0
  return psnr;
5263
0
}
5264
5265
static void update_encode_frame_result_basic(
5266
    FRAME_UPDATE_TYPE update_type, int show_idx, int quantize_index,
5267
0
    ENCODE_FRAME_RESULT *encode_frame_result) {
5268
0
  encode_frame_result->show_idx = show_idx;
5269
0
  encode_frame_result->update_type = update_type;
5270
0
  encode_frame_result->quantize_index = quantize_index;
5271
0
}
5272
#endif  // !CONFIG_REALTIME_ONLY
5273
5274
static void encode_frame_to_data_rate(
5275
    VP9_COMP *cpi, size_t *size, uint8_t *dest, size_t dest_size,
5276
54.1k
    unsigned int *frame_flags, ENCODE_FRAME_RESULT *encode_frame_result) {
5277
54.1k
  VP9_COMMON *const cm = &cpi->common;
5278
54.1k
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
5279
54.1k
  struct segmentation *const seg = &cm->seg;
5280
54.1k
  TX_SIZE t;
5281
5282
54.1k
  if (vp9_svc_check_skip_enhancement_layer(cpi)) return;
5283
5284
54.1k
  set_ext_overrides(cpi);
5285
54.1k
  vpx_clear_system_state();
5286
5287
#ifdef ENABLE_KF_DENOISE
5288
  // Spatial denoise of key frame.
5289
  if (is_spatial_denoise_enabled(cpi)) spatial_denoise_frame(cpi);
5290
#endif
5291
5292
54.1k
  if (cm->show_existing_frame == 0) {
5293
    // Update frame index
5294
54.1k
    set_frame_index(cpi, cm);
5295
5296
    // Set the arf sign bias for this frame.
5297
54.1k
    set_ref_sign_bias(cpi);
5298
54.1k
  }
5299
5300
  // On the very first frame set the deadline_mode_previous_frame to
5301
  // the current mode.
5302
54.1k
  if (cpi->common.current_video_frame == 0)
5303
3.88k
    cpi->deadline_mode_previous_frame = cpi->oxcf.mode;
5304
5305
  // Set default state for segment based loop filter update flags.
5306
54.1k
  cm->lf.mode_ref_delta_update = 0;
5307
5308
54.1k
  if (cpi->oxcf.pass == 2 && cpi->sf.adaptive_interp_filter_search)
5309
0
    cpi->sf.interp_filter_search_mask = setup_interp_filter_search_mask(cpi);
5310
5311
  // Set various flags etc to special state if it is a key frame.
5312
54.1k
  if (frame_is_intra_only(cm)) {
5313
    // Reset the loop filter deltas and segmentation map.
5314
12.8k
    vp9_reset_segment_features(&cm->seg);
5315
5316
    // If segmentation is enabled force a map update for key frames.
5317
12.8k
    if (seg->enabled) {
5318
0
      seg->update_map = 1;
5319
0
      seg->update_data = 1;
5320
0
    }
5321
5322
    // The alternate reference frame cannot be active for a key frame.
5323
12.8k
    cpi->rc.source_alt_ref_active = 0;
5324
5325
12.8k
    cm->error_resilient_mode = oxcf->error_resilient_mode;
5326
12.8k
    cm->frame_parallel_decoding_mode = oxcf->frame_parallel_decoding_mode;
5327
5328
    // By default, encoder assumes decoder can use prev_mi.
5329
12.8k
    if (cm->error_resilient_mode) {
5330
0
      cm->frame_parallel_decoding_mode = 1;
5331
0
      cm->reset_frame_context = 0;
5332
0
      cm->refresh_frame_context = 0;
5333
12.8k
    } else if (cm->intra_only) {
5334
      // Only reset the current context.
5335
0
      cm->reset_frame_context = 2;
5336
0
    }
5337
12.8k
  }
5338
5339
54.1k
  if (oxcf->tuning == VP8_TUNE_SSIM) set_mb_ssim_rdmult_scaling(cpi);
5340
5341
54.1k
  if (oxcf->aq_mode == PERCEPTUAL_AQ) {
5342
0
    init_mb_wiener_var_buffer(cpi);
5343
0
    set_mb_wiener_variance(cpi);
5344
0
  }
5345
5346
54.1k
  init_sb_mul_scale_buffer(cpi);
5347
5348
54.1k
  vpx_clear_system_state();
5349
5350
#if CONFIG_INTERNAL_STATS
5351
  memset(cpi->mode_chosen_counts, 0,
5352
         MAX_MODES * sizeof(*cpi->mode_chosen_counts));
5353
#endif
5354
  // Backup to ensure consistency between recodes
5355
54.1k
  save_encode_params(cpi);
5356
54.1k
  if (cpi->ext_ratectrl.ready &&
5357
0
      (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_RDMULT) != 0 &&
5358
0
      cpi->ext_ratectrl.funcs.get_frame_rdmult != NULL) {
5359
0
    vpx_codec_err_t codec_status;
5360
0
    const GF_GROUP *gf_group = &cpi->twopass.gf_group;
5361
0
    FRAME_UPDATE_TYPE update_type = gf_group->update_type[gf_group->index];
5362
0
    const int ref_frame_flags = get_ref_frame_flags(cpi);
5363
0
    RefCntBuffer *ref_frame_bufs[MAX_INTER_REF_FRAMES];
5364
0
    const RefCntBuffer *curr_frame_buf = get_ref_cnt_buffer(cm, cm->new_fb_idx);
5365
    // index 0 of a gf group is always KEY/OVERLAY/GOLDEN.
5366
    // index 1 refers to the first encoding frame in a gf group.
5367
    // Therefore if it is ARF_UPDATE, it means this gf group uses alt ref.
5368
    // See function define_gf_group_structure().
5369
0
    const int use_alt_ref = gf_group->update_type[1] == ARF_UPDATE;
5370
0
    int ext_rdmult = VPX_DEFAULT_RDMULT;
5371
0
    get_ref_frame_bufs(cpi, ref_frame_bufs);
5372
0
    codec_status = vp9_extrc_get_frame_rdmult(
5373
0
        &cpi->ext_ratectrl, curr_frame_buf->frame_index,
5374
0
        cm->current_frame_coding_index, gf_group->index, update_type,
5375
0
        gf_group->gf_group_size, use_alt_ref, ref_frame_bufs, ref_frame_flags,
5376
0
        &ext_rdmult);
5377
0
    if (codec_status != VPX_CODEC_OK) {
5378
0
      vpx_internal_error(&cm->error, codec_status,
5379
0
                         "vp9_extrc_get_frame_rdmult() failed");
5380
0
    }
5381
0
    cpi->ext_ratectrl.ext_rdmult = ext_rdmult;
5382
0
  }
5383
5384
54.1k
  if (cpi->sf.recode_loop == DISALLOW_RECODE) {
5385
54.1k
    if (!encode_without_recode_loop(cpi, size, dest, dest_size)) return;
5386
54.1k
  } else {
5387
0
#if !CONFIG_REALTIME_ONLY
5388
#if CONFIG_COLLECT_COMPONENT_TIMING
5389
    start_timing(cpi, encode_with_recode_loop_time);
5390
#endif
5391
0
    encode_with_recode_loop(cpi, size, dest, dest_size);
5392
#if CONFIG_COLLECT_COMPONENT_TIMING
5393
    end_timing(cpi, encode_with_recode_loop_time);
5394
#endif
5395
0
#endif  // !CONFIG_REALTIME_ONLY
5396
0
  }
5397
5398
  // TODO(jingning): When using show existing frame mode, we assume that the
5399
  // current ARF will be directly used as the final reconstructed frame. This is
5400
  // an encoder control scheme. One could in principle explore other
5401
  // possibilities to arrange the reference frame buffer and their coding order.
5402
54.1k
  if (cm->show_existing_frame) {
5403
0
    ref_cnt_fb(cm->buffer_pool->frame_bufs, &cm->new_fb_idx,
5404
0
               cm->ref_frame_map[cpi->alt_fb_idx]);
5405
0
  }
5406
5407
54.1k
#if !CONFIG_REALTIME_ONLY
5408
  // Disable segmentation if it decrease rate/distortion ratio
5409
54.1k
  if (cpi->oxcf.aq_mode == LOOKAHEAD_AQ)
5410
0
    vp9_try_disable_lookahead_aq(cpi, size, dest, dest_size);
5411
54.1k
#endif
5412
5413
#if CONFIG_VP9_TEMPORAL_DENOISING
5414
#ifdef OUTPUT_YUV_DENOISED
5415
  if (oxcf->noise_sensitivity > 0 && denoise_svc(cpi)) {
5416
    vpx_write_yuv_frame(yuv_denoised_file,
5417
                        &cpi->denoiser.running_avg_y[INTRA_FRAME]);
5418
  }
5419
#endif
5420
#endif
5421
#ifdef OUTPUT_YUV_SKINMAP
5422
  if (cpi->common.current_video_frame > 1) {
5423
    vp9_output_skin_map(cpi, yuv_skinmap_file);
5424
  }
5425
#endif
5426
5427
  // Special case code to reduce pulsing when key frames are forced at a
5428
  // fixed interval. Note the reconstruction error if it is the frame before
5429
  // the force key frame
5430
54.1k
  if (cpi->rc.next_key_frame_forced && cpi->rc.frames_to_key == 1) {
5431
0
#if CONFIG_VP9_HIGHBITDEPTH
5432
0
    if (cm->use_highbitdepth) {
5433
0
      cpi->ambient_err =
5434
0
          vpx_highbd_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
5435
0
    } else {
5436
0
      cpi->ambient_err = vpx_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
5437
0
    }
5438
#else
5439
    cpi->ambient_err = vpx_get_y_sse(cpi->Source, get_frame_new_buffer(cm));
5440
#endif  // CONFIG_VP9_HIGHBITDEPTH
5441
0
  }
5442
5443
  // If the encoder forced a KEY_FRAME decision
5444
54.1k
  if (cm->frame_type == KEY_FRAME) cpi->refresh_last_frame = 1;
5445
5446
54.1k
  cm->frame_to_show = get_frame_new_buffer(cm);
5447
54.1k
  cm->frame_to_show->color_space = cm->color_space;
5448
54.1k
  cm->frame_to_show->color_range = cm->color_range;
5449
54.1k
  cm->frame_to_show->render_width = cm->render_width;
5450
54.1k
  cm->frame_to_show->render_height = cm->render_height;
5451
5452
#if CONFIG_COLLECT_COMPONENT_TIMING
5453
  start_timing(cpi, loopfilter_frame_time);
5454
#endif
5455
  // Pick the loop filter level for the frame.
5456
54.1k
  loopfilter_frame(cpi, cm);
5457
#if CONFIG_COLLECT_COMPONENT_TIMING
5458
  end_timing(cpi, loopfilter_frame_time);
5459
#endif
5460
5461
54.1k
  if (cpi->rc.use_post_encode_drop) save_coding_context(cpi);
5462
5463
#if CONFIG_COLLECT_COMPONENT_TIMING
5464
  start_timing(cpi, vp9_pack_bitstream_time);
5465
#endif
5466
  // build the bitstream
5467
54.1k
  vp9_pack_bitstream(cpi, dest, dest_size, size);
5468
#if CONFIG_COLLECT_COMPONENT_TIMING
5469
  end_timing(cpi, vp9_pack_bitstream_time);
5470
#endif
5471
5472
54.1k
  if (cpi->ext_ratectrl.ready &&
5473
0
      cpi->ext_ratectrl.funcs.update_encodeframe_result != NULL) {
5474
0
    vpx_codec_err_t codec_status = vp9_extrc_update_encodeframe_result(
5475
0
        &cpi->ext_ratectrl, (*size) << 3, cm->base_qindex);
5476
0
    if (codec_status != VPX_CODEC_OK) {
5477
0
      vpx_internal_error(&cm->error, codec_status,
5478
0
                         "vp9_extrc_update_encodeframe_result() failed");
5479
0
    }
5480
0
  }
5481
#if CONFIG_REALTIME_ONLY
5482
  (void)encode_frame_result;
5483
  assert(encode_frame_result == NULL);
5484
#else   // CONFIG_REALTIME_ONLY
5485
54.1k
  if (encode_frame_result != NULL) {
5486
0
    const RefCntBuffer *coded_frame_buf =
5487
0
        get_ref_cnt_buffer(cm, cm->new_fb_idx);
5488
0
    RefCntBuffer *ref_frame_bufs[MAX_INTER_REF_FRAMES];
5489
0
    FRAME_UPDATE_TYPE update_type =
5490
0
        cpi->twopass.gf_group.update_type[cpi->twopass.gf_group.index];
5491
0
    int quantize_index = vp9_get_quantizer(cpi);
5492
0
    get_ref_frame_bufs(cpi, ref_frame_bufs);
5493
    // update_encode_frame_result() depends on twopass.gf_group.index and
5494
    // cm->new_fb_idx, cpi->Source, cpi->lst_fb_idx, cpi->gld_fb_idx and
5495
    // cpi->alt_fb_idx are updated for current frame and have
5496
    // not been updated for the next frame yet.
5497
    // The update locations are as follows.
5498
    // 1) twopass.gf_group.index is initialized at define_gf_group by vp9_zero()
5499
    // for the first frame in the gf_group and is updated for the next frame at
5500
    // vp9_twopass_postencode_update().
5501
    // 2) cpi->Source is updated at the beginning of vp9_get_compressed_data()
5502
    // 3) cm->new_fb_idx is updated at the beginning of
5503
    // vp9_get_compressed_data() by get_free_fb(cm).
5504
    // 4) cpi->lst_fb_idx/gld_fb_idx/alt_fb_idx will be updated for the next
5505
    // frame at vp9_update_reference_frames().
5506
    // This function needs to be called before vp9_update_reference_frames().
5507
    // TODO(angiebird): Improve the codebase to make the update of frame
5508
    // dependent variables more robust.
5509
5510
0
    update_encode_frame_result_basic(update_type, coded_frame_buf->frame_index,
5511
0
                                     quantize_index, encode_frame_result);
5512
0
    if (cpi->ext_ratectrl.ready && cpi->ext_ratectrl.log_file) {
5513
0
      PSNR_STATS psnr = compute_psnr_stats(
5514
0
          cpi->Source, &coded_frame_buf->buf, cm->bit_depth,
5515
0
          cpi->oxcf.input_bit_depth, cpi->svc.spatial_layer_id);
5516
0
      fprintf(cpi->ext_ratectrl.log_file,
5517
0
              "ENCODE_FRAME_RESULT gop_index %d psnr %f bits %zu\n",
5518
0
              cpi->twopass.gf_group.index, psnr.psnr[0], (*size) << 3);
5519
0
    }
5520
0
  }
5521
54.1k
#endif  // CONFIG_REALTIME_ONLY
5522
5523
54.1k
  if (cpi->rc.use_post_encode_drop && cm->base_qindex < cpi->rc.worst_quality &&
5524
0
      cpi->svc.spatial_layer_id == 0 && post_encode_drop_cbr(cpi, size)) {
5525
0
    restore_coding_context(cpi);
5526
0
    return;
5527
0
  }
5528
5529
54.1k
  cpi->last_frame_dropped = 0;
5530
54.1k
  cpi->svc.last_layer_dropped[cpi->svc.spatial_layer_id] = 0;
5531
54.1k
  if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1)
5532
54.0k
    cpi->svc.num_encoded_top_layer++;
5533
5534
  // Keep track of the frame buffer index updated/refreshed for the
5535
  // current encoded TL0 superframe.
5536
54.1k
  if (cpi->svc.temporal_layer_id == 0) {
5537
54.0k
    if (cpi->refresh_last_frame)
5538
54.0k
      cpi->svc.fb_idx_upd_tl0[cpi->svc.spatial_layer_id] = cpi->lst_fb_idx;
5539
0
    else if (cpi->refresh_golden_frame)
5540
0
      cpi->svc.fb_idx_upd_tl0[cpi->svc.spatial_layer_id] = cpi->gld_fb_idx;
5541
0
    else if (cpi->refresh_alt_ref_frame)
5542
0
      cpi->svc.fb_idx_upd_tl0[cpi->svc.spatial_layer_id] = cpi->alt_fb_idx;
5543
54.0k
  }
5544
5545
54.1k
  if (cm->seg.update_map) update_reference_segmentation_map(cpi);
5546
5547
54.1k
  if (frame_is_intra_only(cm) == 0) {
5548
41.3k
    release_scaled_references(cpi);
5549
41.3k
  }
5550
54.1k
  vp9_update_reference_frames(cpi);
5551
5552
54.1k
  if (!cm->show_existing_frame) {
5553
270k
    for (t = TX_4X4; t <= TX_32X32; ++t) {
5554
216k
      full_to_model_counts(cpi->td.counts->coef[t],
5555
216k
                           cpi->td.rd_counts.coef_counts[t]);
5556
216k
    }
5557
5558
54.0k
    if (!cm->error_resilient_mode && !cm->frame_parallel_decoding_mode) {
5559
0
      if (!frame_is_intra_only(cm)) {
5560
0
        vp9_adapt_mode_probs(cm);
5561
0
        vp9_adapt_mv_probs(cm, cm->allow_high_precision_mv);
5562
0
      }
5563
0
      vp9_adapt_coef_probs(cm);
5564
0
    }
5565
54.0k
  }
5566
5567
54.1k
  cpi->ext_refresh_frame_flags_pending = 0;
5568
5569
54.1k
  if (cpi->refresh_golden_frame == 1)
5570
15.5k
    cpi->frame_flags |= FRAMEFLAGS_GOLDEN;
5571
38.6k
  else
5572
38.6k
    cpi->frame_flags &= ~FRAMEFLAGS_GOLDEN;
5573
5574
54.1k
  if (cpi->refresh_alt_ref_frame == 1)
5575
12.7k
    cpi->frame_flags |= FRAMEFLAGS_ALTREF;
5576
41.4k
  else
5577
41.4k
    cpi->frame_flags &= ~FRAMEFLAGS_ALTREF;
5578
5579
54.1k
  cpi->ref_frame_flags = get_ref_frame_flags(cpi);
5580
5581
54.1k
  cm->last_frame_type = cm->frame_type;
5582
5583
54.1k
  vp9_rc_postencode_update(cpi, *size);
5584
5585
54.1k
  if (cpi->compute_frame_low_motion_onepass && oxcf->pass == 0 &&
5586
54.0k
      !frame_is_intra_only(cm) &&
5587
41.3k
      (!cpi->use_svc ||
5588
0
       (cpi->use_svc &&
5589
0
        !cpi->svc.layer_context[cpi->svc.temporal_layer_id].is_key_frame &&
5590
41.3k
        cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1))) {
5591
41.3k
    vp9_compute_frame_low_motion(cpi);
5592
41.3k
  }
5593
5594
54.1k
  *size = VPXMAX(1, *size);
5595
5596
#if 0
5597
  output_frame_level_debug_stats(cpi);
5598
#endif
5599
5600
54.1k
  if (cm->frame_type == KEY_FRAME) {
5601
    // Tell the caller that the frame was coded as a key frame
5602
12.7k
    *frame_flags = cpi->frame_flags | FRAMEFLAGS_KEY;
5603
41.4k
  } else {
5604
41.4k
    *frame_flags = cpi->frame_flags & ~FRAMEFLAGS_KEY;
5605
41.4k
  }
5606
5607
  // Clear the one shot update flags for segmentation map and mode/ref loop
5608
  // filter deltas.
5609
54.1k
  cm->seg.update_map = 0;
5610
54.1k
  cm->seg.update_data = 0;
5611
54.1k
  cm->lf.mode_ref_delta_update = 0;
5612
5613
  // keep track of the last coded dimensions
5614
54.1k
  cm->last_width = cm->width;
5615
54.1k
  cm->last_height = cm->height;
5616
5617
  // reset to normal state now that we are done.
5618
54.1k
  if (!cm->show_existing_frame) {
5619
54.0k
    cm->last_show_frame = cm->show_frame;
5620
54.0k
    cm->prev_frame = cm->cur_frame;
5621
54.0k
  }
5622
5623
54.1k
  if (cm->show_frame) {
5624
54.0k
    vp9_swap_mi_and_prev_mi(cm);
5625
54.0k
    if (cpi->use_svc) vp9_inc_frame_in_layer(cpi);
5626
54.0k
  }
5627
54.1k
  update_frame_indexes(cm, cm->show_frame);
5628
5629
54.1k
  if (cpi->use_svc) {
5630
0
    cpi->svc
5631
0
        .layer_context[cpi->svc.spatial_layer_id *
5632
0
                           cpi->svc.number_temporal_layers +
5633
0
                       cpi->svc.temporal_layer_id]
5634
0
        .last_frame_type = cm->frame_type;
5635
    // Reset layer_sync back to 0 for next frame.
5636
0
    cpi->svc.spatial_layer_sync[cpi->svc.spatial_layer_id] = 0;
5637
0
  }
5638
5639
54.1k
  cpi->force_update_segmentation = 0;
5640
5641
54.1k
#if !CONFIG_REALTIME_ONLY
5642
54.1k
  if (cpi->oxcf.aq_mode == LOOKAHEAD_AQ)
5643
0
    vp9_alt_ref_aq_unset_all(cpi->alt_ref_aq, cpi);
5644
54.1k
#endif
5645
5646
54.1k
  cpi->svc.previous_frame_is_intra_only = cm->intra_only;
5647
54.1k
  cpi->svc.set_intra_only_frame = 0;
5648
54.1k
}
5649
5650
static void SvcEncode(VP9_COMP *cpi, size_t *size, uint8_t *dest,
5651
0
                      size_t dest_size, unsigned int *frame_flags) {
5652
0
  vp9_rc_get_svc_params(cpi);
5653
0
  encode_frame_to_data_rate(cpi, size, dest, dest_size, frame_flags,
5654
0
                            /*encode_frame_result = */ NULL);
5655
0
}
5656
5657
static void Pass0Encode(VP9_COMP *cpi, size_t *size, uint8_t *dest,
5658
54.1k
                        size_t dest_size, unsigned int *frame_flags) {
5659
54.1k
  if (cpi->oxcf.rc_mode == VPX_CBR) {
5660
0
    vp9_rc_get_one_pass_cbr_params(cpi);
5661
54.1k
  } else {
5662
54.1k
    vp9_rc_get_one_pass_vbr_params(cpi);
5663
54.1k
  }
5664
54.1k
  encode_frame_to_data_rate(cpi, size, dest, dest_size, frame_flags,
5665
54.1k
                            /*encode_frame_result = */ NULL);
5666
54.1k
}
5667
5668
#if !CONFIG_REALTIME_ONLY
5669
static void Pass2Encode(VP9_COMP *cpi, size_t *size, uint8_t *dest,
5670
                        size_t dest_size, unsigned int *frame_flags,
5671
0
                        ENCODE_FRAME_RESULT *encode_frame_result) {
5672
0
  cpi->allow_encode_breakout = ENCODE_BREAKOUT_ENABLED;
5673
#if CONFIG_MISMATCH_DEBUG
5674
  mismatch_move_frame_idx_w();
5675
#endif
5676
0
  encode_frame_to_data_rate(cpi, size, dest, dest_size, frame_flags,
5677
0
                            encode_frame_result);
5678
0
}
5679
#endif  // !CONFIG_REALTIME_ONLY
5680
5681
int vp9_receive_raw_frame(VP9_COMP *cpi, vpx_enc_frame_flags_t frame_flags,
5682
                          YV12_BUFFER_CONFIG *sd, int64_t time_stamp,
5683
54.8k
                          int64_t end_time) {
5684
54.8k
  VP9_COMMON *const cm = &cpi->common;
5685
#if CONFIG_INTERNAL_STATS
5686
  struct vpx_usec_timer timer;
5687
#endif
5688
54.8k
  int res = 0;
5689
54.8k
  const int subsampling_x = sd->subsampling_x;
5690
54.8k
  const int subsampling_y = sd->subsampling_y;
5691
54.8k
#if CONFIG_VP9_HIGHBITDEPTH
5692
54.8k
  const int use_highbitdepth = (sd->flags & YV12_FLAG_HIGHBITDEPTH) != 0;
5693
#else
5694
  const int use_highbitdepth = 0;
5695
#endif
5696
5697
54.8k
  if ((cm->profile == PROFILE_0 || cm->profile == PROFILE_2) &&
5698
54.8k
      (subsampling_x != 1 || subsampling_y != 1)) {
5699
0
    vpx_internal_error(&cm->error, VPX_CODEC_INVALID_PARAM,
5700
0
                       "Non-4:2:0 color format requires profile 1 or 3");
5701
0
    return -1;
5702
0
  }
5703
54.8k
  if ((cm->profile == PROFILE_1 || cm->profile == PROFILE_3) &&
5704
0
      (subsampling_x == 1 && subsampling_y == 1)) {
5705
0
    vpx_internal_error(&cm->error, VPX_CODEC_INVALID_PARAM,
5706
0
                       "4:2:0 color format requires profile 0 or 2");
5707
0
    return -1;
5708
0
  }
5709
54.8k
  if (cm->color_space == VPX_CS_SRGB) {
5710
0
    if (cm->profile == PROFILE_0 || cm->profile == PROFILE_2) {
5711
0
      vpx_internal_error(&cm->error, VPX_CODEC_INVALID_PARAM,
5712
0
                         "SRGB color space requires profile 1 or 3");
5713
0
      return -1;
5714
0
    }
5715
0
    if (subsampling_x != 0 || subsampling_y != 0) {
5716
0
      vpx_internal_error(&cm->error, VPX_CODEC_INVALID_PARAM,
5717
0
                         "SRGB color space requires 4:4:4");
5718
0
      return -1;
5719
0
    }
5720
0
  }
5721
5722
54.8k
  update_initial_width(cpi, use_highbitdepth, subsampling_x, subsampling_y);
5723
#if CONFIG_VP9_TEMPORAL_DENOISING
5724
  setup_denoiser_buffer(cpi);
5725
#endif
5726
5727
54.8k
  alloc_raw_frame_buffers(cpi);
5728
5729
#if CONFIG_INTERNAL_STATS
5730
  vpx_usec_timer_start(&timer);
5731
#endif
5732
5733
54.8k
  if (vp9_lookahead_push(cpi->lookahead, sd, time_stamp, end_time,
5734
54.8k
                         use_highbitdepth, frame_flags))
5735
0
    res = -1;
5736
#if CONFIG_INTERNAL_STATS
5737
  vpx_usec_timer_mark(&timer);
5738
  cpi->time_receive_data += vpx_usec_timer_elapsed(&timer);
5739
#endif
5740
5741
54.8k
  return res;
5742
54.8k
}
5743
5744
54.0k
static int frame_is_reference(const VP9_COMP *cpi) {
5745
54.0k
  const VP9_COMMON *cm = &cpi->common;
5746
5747
54.0k
  return cm->frame_type == KEY_FRAME || cpi->refresh_last_frame ||
5748
0
         cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame ||
5749
0
         cm->refresh_frame_context || cm->lf.mode_ref_delta_update ||
5750
0
         cm->seg.update_map || cm->seg.update_data;
5751
54.0k
}
5752
5753
static void adjust_frame_rate(VP9_COMP *cpi,
5754
54.1k
                              const struct lookahead_entry *source) {
5755
54.1k
  int64_t this_duration;
5756
54.1k
  int step = 0;
5757
5758
54.1k
  if (source->ts_start == cpi->first_time_stamp_ever) {
5759
54.1k
    this_duration = source->ts_end - source->ts_start;
5760
54.1k
    step = 1;
5761
54.1k
  } else {
5762
0
    int64_t last_duration =
5763
0
        cpi->last_end_time_stamp_seen - cpi->last_time_stamp_seen;
5764
5765
0
    this_duration = source->ts_end - cpi->last_end_time_stamp_seen;
5766
5767
    // do a step update if the duration changes by 10%
5768
0
    if (last_duration)
5769
0
      step = (int)((this_duration - last_duration) * 10 / last_duration);
5770
0
  }
5771
5772
54.1k
  if (this_duration) {
5773
53.7k
    if (step) {
5774
53.7k
      vp9_new_framerate(cpi, 10000000.0 / this_duration);
5775
53.7k
    } else {
5776
      // Average this frame's rate into the last second's average
5777
      // frame rate. If we haven't seen 1 second yet, then average
5778
      // over the whole interval seen.
5779
0
      const double interval = VPXMIN(
5780
0
          (double)(source->ts_end - cpi->first_time_stamp_ever), 10000000.0);
5781
0
      double avg_duration = 10000000.0 / cpi->framerate;
5782
0
      avg_duration *= (interval - avg_duration + this_duration);
5783
0
      avg_duration /= interval;
5784
5785
0
      vp9_new_framerate(cpi, 10000000.0 / avg_duration);
5786
0
    }
5787
53.7k
  }
5788
54.1k
  cpi->last_time_stamp_seen = source->ts_start;
5789
54.1k
  cpi->last_end_time_stamp_seen = source->ts_end;
5790
54.1k
}
5791
5792
// Returns 0 if this is not an alt ref else the offset of the source frame
5793
// used as the arf midpoint.
5794
136k
static int get_arf_src_index(VP9_COMP *cpi) {
5795
136k
  RATE_CONTROL *const rc = &cpi->rc;
5796
136k
  int arf_src_index = 0;
5797
136k
  if (is_altref_enabled(cpi)) {
5798
136k
    if (cpi->oxcf.pass == 2) {
5799
0
      const GF_GROUP *const gf_group = &cpi->twopass.gf_group;
5800
0
      if (gf_group->update_type[gf_group->index] == ARF_UPDATE) {
5801
0
        arf_src_index = gf_group->arf_src_offset[gf_group->index];
5802
0
      }
5803
136k
    } else if (rc->source_alt_ref_pending) {
5804
0
      arf_src_index = rc->frames_till_gf_update_due;
5805
0
    }
5806
136k
  }
5807
136k
  return arf_src_index;
5808
136k
}
5809
5810
static void check_src_altref(VP9_COMP *cpi,
5811
54.1k
                             const struct lookahead_entry *source) {
5812
54.1k
  RATE_CONTROL *const rc = &cpi->rc;
5813
5814
54.1k
  if (cpi->oxcf.pass == 2) {
5815
0
    const GF_GROUP *const gf_group = &cpi->twopass.gf_group;
5816
0
    rc->is_src_frame_alt_ref =
5817
0
        (gf_group->update_type[gf_group->index] == OVERLAY_UPDATE);
5818
54.1k
  } else {
5819
54.1k
    rc->is_src_frame_alt_ref =
5820
54.1k
        cpi->alt_ref_source && (source == cpi->alt_ref_source);
5821
54.1k
  }
5822
5823
54.1k
  if (rc->is_src_frame_alt_ref) {
5824
    // Current frame is an ARF overlay frame.
5825
0
    cpi->alt_ref_source = NULL;
5826
5827
    // Don't refresh the last buffer for an ARF overlay frame. It will
5828
    // become the GF so preserve last as an alternative prediction option.
5829
0
    cpi->refresh_last_frame = 0;
5830
0
  }
5831
54.1k
}
5832
5833
#if CONFIG_INTERNAL_STATS
5834
static void adjust_image_stat(double y, double u, double v, double all,
5835
                              ImageStat *s) {
5836
  s->stat[Y] += y;
5837
  s->stat[U] += u;
5838
  s->stat[V] += v;
5839
  s->stat[ALL] += all;
5840
  s->worst = VPXMIN(s->worst, all);
5841
}
5842
#endif  // CONFIG_INTERNAL_STATS
5843
5844
// Adjust the maximum allowable frame size for the target level.
5845
0
static void level_rc_framerate(VP9_COMP *cpi, int arf_src_index) {
5846
0
  RATE_CONTROL *const rc = &cpi->rc;
5847
0
  LevelConstraint *const ls = &cpi->level_constraint;
5848
0
  VP9_COMMON *const cm = &cpi->common;
5849
0
  const double max_cpb_size = ls->max_cpb_size;
5850
0
  vpx_clear_system_state();
5851
0
  rc->max_frame_bandwidth = VPXMIN(rc->max_frame_bandwidth, ls->max_frame_size);
5852
0
  if (frame_is_intra_only(cm)) {
5853
0
    rc->max_frame_bandwidth =
5854
0
        VPXMIN(rc->max_frame_bandwidth, (int)(max_cpb_size * 0.5));
5855
0
  } else if (arf_src_index > 0) {
5856
0
    rc->max_frame_bandwidth =
5857
0
        VPXMIN(rc->max_frame_bandwidth, (int)(max_cpb_size * 0.4));
5858
0
  } else {
5859
0
    rc->max_frame_bandwidth =
5860
0
        VPXMIN(rc->max_frame_bandwidth, (int)(max_cpb_size * 0.2));
5861
0
  }
5862
0
}
5863
5864
0
static void update_level_info(VP9_COMP *cpi, size_t *size, int arf_src_index) {
5865
0
  VP9_COMMON *const cm = &cpi->common;
5866
0
  Vp9LevelInfo *const level_info = &cpi->level_info;
5867
0
  Vp9LevelSpec *const level_spec = &level_info->level_spec;
5868
0
  Vp9LevelStats *const level_stats = &level_info->level_stats;
5869
0
  int i, idx;
5870
0
  uint64_t luma_samples, dur_end;
5871
0
  const uint32_t luma_pic_size = cm->width * cm->height;
5872
0
  const uint32_t luma_pic_breadth = VPXMAX(cm->width, cm->height);
5873
0
  LevelConstraint *const level_constraint = &cpi->level_constraint;
5874
0
  const int8_t level_index = level_constraint->level_index;
5875
0
  double cpb_data_size;
5876
5877
0
  vpx_clear_system_state();
5878
5879
  // update level_stats
5880
0
  level_stats->total_compressed_size += *size;
5881
0
  if (cm->show_frame) {
5882
0
    level_stats->total_uncompressed_size +=
5883
0
        luma_pic_size +
5884
0
        2 * (luma_pic_size >> (cm->subsampling_x + cm->subsampling_y));
5885
0
    level_stats->time_encoded =
5886
0
        (cpi->last_end_time_stamp_seen - cpi->first_time_stamp_ever) /
5887
0
        (double)TICKS_PER_SEC;
5888
0
  }
5889
5890
0
  if (arf_src_index > 0) {
5891
0
    if (!level_stats->seen_first_altref) {
5892
0
      level_stats->seen_first_altref = 1;
5893
0
    } else if (level_stats->frames_since_last_altref <
5894
0
               level_spec->min_altref_distance) {
5895
0
      level_spec->min_altref_distance = level_stats->frames_since_last_altref;
5896
0
    }
5897
0
    level_stats->frames_since_last_altref = 0;
5898
0
  } else {
5899
0
    ++level_stats->frames_since_last_altref;
5900
0
  }
5901
5902
0
  if (level_stats->frame_window_buffer.len < FRAME_WINDOW_SIZE - 1) {
5903
0
    idx = (level_stats->frame_window_buffer.start +
5904
0
           level_stats->frame_window_buffer.len++) %
5905
0
          FRAME_WINDOW_SIZE;
5906
0
  } else {
5907
0
    idx = level_stats->frame_window_buffer.start;
5908
0
    level_stats->frame_window_buffer.start = (idx + 1) % FRAME_WINDOW_SIZE;
5909
0
  }
5910
0
  level_stats->frame_window_buffer.buf[idx].ts = cpi->last_time_stamp_seen;
5911
0
  level_stats->frame_window_buffer.buf[idx].size = (uint32_t)(*size);
5912
0
  level_stats->frame_window_buffer.buf[idx].luma_samples = luma_pic_size;
5913
5914
0
  if (cm->frame_type == KEY_FRAME) {
5915
0
    level_stats->ref_refresh_map = 0;
5916
0
  } else {
5917
0
    int count = 0;
5918
0
    level_stats->ref_refresh_map |= vp9_get_refresh_mask(cpi);
5919
    // Also need to consider the case where the encoder refers to a buffer
5920
    // that has been implicitly refreshed after encoding a keyframe.
5921
0
    if (!cm->intra_only) {
5922
0
      level_stats->ref_refresh_map |= (1 << cpi->lst_fb_idx);
5923
0
      level_stats->ref_refresh_map |= (1 << cpi->gld_fb_idx);
5924
0
      level_stats->ref_refresh_map |= (1 << cpi->alt_fb_idx);
5925
0
    }
5926
0
    for (i = 0; i < REF_FRAMES; ++i) {
5927
0
      count += (level_stats->ref_refresh_map >> i) & 1;
5928
0
    }
5929
0
    if (count > level_spec->max_ref_frame_buffers) {
5930
0
      level_spec->max_ref_frame_buffers = count;
5931
0
    }
5932
0
  }
5933
5934
  // update average_bitrate
5935
0
  level_spec->average_bitrate = (double)level_stats->total_compressed_size /
5936
0
                                125.0 / level_stats->time_encoded;
5937
5938
  // update max_luma_sample_rate
5939
0
  luma_samples = 0;
5940
0
  for (i = 0; i < level_stats->frame_window_buffer.len; ++i) {
5941
0
    idx = (level_stats->frame_window_buffer.start +
5942
0
           level_stats->frame_window_buffer.len - 1 - i) %
5943
0
          FRAME_WINDOW_SIZE;
5944
0
    if (i == 0) {
5945
0
      dur_end = level_stats->frame_window_buffer.buf[idx].ts;
5946
0
    }
5947
0
    if (dur_end - level_stats->frame_window_buffer.buf[idx].ts >=
5948
0
        TICKS_PER_SEC) {
5949
0
      break;
5950
0
    }
5951
0
    luma_samples += level_stats->frame_window_buffer.buf[idx].luma_samples;
5952
0
  }
5953
0
  if (luma_samples > level_spec->max_luma_sample_rate) {
5954
0
    level_spec->max_luma_sample_rate = luma_samples;
5955
0
  }
5956
5957
  // update max_cpb_size
5958
0
  cpb_data_size = 0;
5959
0
  for (i = 0; i < CPB_WINDOW_SIZE; ++i) {
5960
0
    if (i >= level_stats->frame_window_buffer.len) break;
5961
0
    idx = (level_stats->frame_window_buffer.start +
5962
0
           level_stats->frame_window_buffer.len - 1 - i) %
5963
0
          FRAME_WINDOW_SIZE;
5964
0
    cpb_data_size += level_stats->frame_window_buffer.buf[idx].size;
5965
0
  }
5966
0
  cpb_data_size = cpb_data_size / 125.0;
5967
0
  if (cpb_data_size > level_spec->max_cpb_size) {
5968
0
    level_spec->max_cpb_size = cpb_data_size;
5969
0
  }
5970
5971
  // update max_luma_picture_size
5972
0
  if (luma_pic_size > level_spec->max_luma_picture_size) {
5973
0
    level_spec->max_luma_picture_size = luma_pic_size;
5974
0
  }
5975
5976
  // update max_luma_picture_breadth
5977
0
  if (luma_pic_breadth > level_spec->max_luma_picture_breadth) {
5978
0
    level_spec->max_luma_picture_breadth = luma_pic_breadth;
5979
0
  }
5980
5981
  // update compression_ratio
5982
0
  level_spec->compression_ratio = (double)level_stats->total_uncompressed_size *
5983
0
                                  cm->bit_depth /
5984
0
                                  level_stats->total_compressed_size / 8.0;
5985
5986
  // update max_col_tiles
5987
0
  if (level_spec->max_col_tiles < (1 << cm->log2_tile_cols)) {
5988
0
    level_spec->max_col_tiles = (1 << cm->log2_tile_cols);
5989
0
  }
5990
5991
0
  if (level_index >= 0 && level_constraint->fail_flag == 0) {
5992
0
    if (level_spec->max_luma_picture_size >
5993
0
        vp9_level_defs[level_index].max_luma_picture_size) {
5994
0
      level_constraint->fail_flag |= (1 << LUMA_PIC_SIZE_TOO_LARGE);
5995
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
5996
0
                         "Failed to encode to the target level %d. %s",
5997
0
                         vp9_level_defs[level_index].level,
5998
0
                         level_fail_messages[LUMA_PIC_SIZE_TOO_LARGE]);
5999
0
    }
6000
6001
0
    if (level_spec->max_luma_picture_breadth >
6002
0
        vp9_level_defs[level_index].max_luma_picture_breadth) {
6003
0
      level_constraint->fail_flag |= (1 << LUMA_PIC_BREADTH_TOO_LARGE);
6004
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
6005
0
                         "Failed to encode to the target level %d. %s",
6006
0
                         vp9_level_defs[level_index].level,
6007
0
                         level_fail_messages[LUMA_PIC_BREADTH_TOO_LARGE]);
6008
0
    }
6009
6010
0
    if ((double)level_spec->max_luma_sample_rate >
6011
0
        (double)vp9_level_defs[level_index].max_luma_sample_rate *
6012
0
            (1 + SAMPLE_RATE_GRACE_P)) {
6013
0
      level_constraint->fail_flag |= (1 << LUMA_SAMPLE_RATE_TOO_LARGE);
6014
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
6015
0
                         "Failed to encode to the target level %d. %s",
6016
0
                         vp9_level_defs[level_index].level,
6017
0
                         level_fail_messages[LUMA_SAMPLE_RATE_TOO_LARGE]);
6018
0
    }
6019
6020
0
    if (level_spec->max_col_tiles > vp9_level_defs[level_index].max_col_tiles) {
6021
0
      level_constraint->fail_flag |= (1 << TOO_MANY_COLUMN_TILE);
6022
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
6023
0
                         "Failed to encode to the target level %d. %s",
6024
0
                         vp9_level_defs[level_index].level,
6025
0
                         level_fail_messages[TOO_MANY_COLUMN_TILE]);
6026
0
    }
6027
6028
0
    if (level_spec->min_altref_distance <
6029
0
        vp9_level_defs[level_index].min_altref_distance) {
6030
0
      level_constraint->fail_flag |= (1 << ALTREF_DIST_TOO_SMALL);
6031
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
6032
0
                         "Failed to encode to the target level %d. %s",
6033
0
                         vp9_level_defs[level_index].level,
6034
0
                         level_fail_messages[ALTREF_DIST_TOO_SMALL]);
6035
0
    }
6036
6037
0
    if (level_spec->max_ref_frame_buffers >
6038
0
        vp9_level_defs[level_index].max_ref_frame_buffers) {
6039
0
      level_constraint->fail_flag |= (1 << TOO_MANY_REF_BUFFER);
6040
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
6041
0
                         "Failed to encode to the target level %d. %s",
6042
0
                         vp9_level_defs[level_index].level,
6043
0
                         level_fail_messages[TOO_MANY_REF_BUFFER]);
6044
0
    }
6045
6046
0
    if (level_spec->max_cpb_size > vp9_level_defs[level_index].max_cpb_size) {
6047
0
      level_constraint->fail_flag |= (1 << CPB_TOO_LARGE);
6048
0
      vpx_internal_error(&cm->error, VPX_CODEC_ERROR,
6049
0
                         "Failed to encode to the target level %d. %s",
6050
0
                         vp9_level_defs[level_index].level,
6051
0
                         level_fail_messages[CPB_TOO_LARGE]);
6052
0
    }
6053
6054
    // Set an upper bound for the next frame size. It will be used in
6055
    // level_rc_framerate() before encoding the next frame.
6056
0
    cpb_data_size = 0;
6057
0
    for (i = 0; i < CPB_WINDOW_SIZE - 1; ++i) {
6058
0
      if (i >= level_stats->frame_window_buffer.len) break;
6059
0
      idx = (level_stats->frame_window_buffer.start +
6060
0
             level_stats->frame_window_buffer.len - 1 - i) %
6061
0
            FRAME_WINDOW_SIZE;
6062
0
      cpb_data_size += level_stats->frame_window_buffer.buf[idx].size;
6063
0
    }
6064
0
    cpb_data_size = cpb_data_size / 125.0;
6065
0
    level_constraint->max_frame_size =
6066
0
        (int)((vp9_level_defs[level_index].max_cpb_size - cpb_data_size) *
6067
0
              1000.0);
6068
0
    if (level_stats->frame_window_buffer.len < CPB_WINDOW_SIZE - 1)
6069
0
      level_constraint->max_frame_size >>= 1;
6070
0
  }
6071
0
}
6072
6073
void vp9_get_ref_frame_info(FRAME_UPDATE_TYPE update_type, int ref_frame_flags,
6074
                            RefCntBuffer *ref_frame_bufs[MAX_INTER_REF_FRAMES],
6075
                            int *ref_frame_coding_indexes,
6076
0
                            int *ref_frame_valid_list) {
6077
0
  if (update_type != KF_UPDATE) {
6078
0
    const VP9_REFFRAME inter_ref_flags[MAX_INTER_REF_FRAMES] = { VP9_LAST_FLAG,
6079
0
                                                                 VP9_GOLD_FLAG,
6080
0
                                                                 VP9_ALT_FLAG };
6081
0
    int i;
6082
0
    for (i = 0; i < MAX_INTER_REF_FRAMES; ++i) {
6083
0
      assert(ref_frame_bufs[i] != NULL);
6084
0
      ref_frame_coding_indexes[i] = ref_frame_bufs[i]->frame_coding_index;
6085
0
      ref_frame_valid_list[i] = (ref_frame_flags & inter_ref_flags[i]) != 0;
6086
0
    }
6087
0
  } else {
6088
    // No reference frame is available when this is a key frame.
6089
0
    int i;
6090
0
    for (i = 0; i < MAX_INTER_REF_FRAMES; ++i) {
6091
0
      ref_frame_coding_indexes[i] = -1;
6092
0
      ref_frame_valid_list[i] = 0;
6093
0
    }
6094
0
  }
6095
0
}
6096
6097
86.7k
void vp9_init_encode_frame_result(ENCODE_FRAME_RESULT *encode_frame_result) {
6098
86.7k
  encode_frame_result->show_idx = -1;  // Actual encoding doesn't happen.
6099
86.7k
}
6100
6101
// Returns if TPL stats need to be calculated.
6102
54.1k
static INLINE int should_run_tpl(VP9_COMP *cpi, int gf_group_index) {
6103
54.1k
  RATE_CONTROL *const rc = &cpi->rc;
6104
54.1k
  if (!cpi->sf.enable_tpl_model) return 0;
6105
  // If there is an ARF for this GOP, TPL stats is always calculated.
6106
23.8k
  if (gf_group_index == 1 &&
6107
0
      cpi->twopass.gf_group.update_type[gf_group_index] == ARF_UPDATE)
6108
0
    return 1;
6109
  // If this GOP doesn't have an ARF, TPL stats is still calculated, only when
6110
  // external rate control is used.
6111
23.8k
  if (cpi->ext_ratectrl.ready &&
6112
0
      cpi->ext_ratectrl.funcs.send_tpl_gop_stats != NULL &&
6113
0
      rc->frames_till_gf_update_due == rc->baseline_gf_interval &&
6114
0
      cpi->twopass.gf_group.update_type[1] != ARF_UPDATE) {
6115
0
    return 1;
6116
0
  }
6117
23.8k
  return 0;
6118
23.8k
}
6119
6120
int vp9_get_compressed_data(VP9_COMP *cpi, unsigned int *frame_flags,
6121
                            size_t *size, uint8_t *dest, size_t dest_size,
6122
                            int64_t *time_stamp, int64_t *time_end, int flush,
6123
136k
                            ENCODE_FRAME_RESULT *encode_frame_result) {
6124
136k
  const VP9EncoderConfig *const oxcf = &cpi->oxcf;
6125
136k
  VP9_COMMON *const cm = &cpi->common;
6126
136k
  BufferPool *const pool = cm->buffer_pool;
6127
136k
  RATE_CONTROL *const rc = &cpi->rc;
6128
#if CONFIG_INTERNAL_STATS
6129
  struct vpx_usec_timer cmptimer;
6130
#endif
6131
136k
  YV12_BUFFER_CONFIG *force_src_buffer = NULL;
6132
136k
  struct lookahead_entry *last_source = NULL;
6133
136k
  struct lookahead_entry *source = NULL;
6134
136k
  int arf_src_index;
6135
136k
  const int gf_group_index = cpi->twopass.gf_group.index;
6136
136k
  int i;
6137
6138
#if CONFIG_COLLECT_COMPONENT_TIMING
6139
  if (oxcf->pass == 2) start_timing(cpi, vp9_get_compressed_data_time);
6140
#endif
6141
6142
136k
  if (is_one_pass_svc(cpi)) {
6143
0
    vp9_one_pass_svc_start_layer(cpi);
6144
0
  }
6145
6146
#if CONFIG_INTERNAL_STATS
6147
  vpx_usec_timer_start(&cmptimer);
6148
#endif
6149
6150
136k
  vp9_set_high_precision_mv(cpi, ALTREF_HIGH_PRECISION_MV);
6151
6152
  // Is multi-arf enabled.
6153
  // Note that at the moment multi_arf is only configured for 2 pass VBR and
6154
  // will not work properly with svc.
6155
  // Enable the Jingning's new "multi_layer_arf" code if "enable_auto_arf"
6156
  // is greater than or equal to 2.
6157
136k
  if ((oxcf->pass == 2) && !cpi->use_svc && (cpi->oxcf.enable_auto_arf >= 2))
6158
0
    cpi->multi_layer_arf = 1;
6159
136k
  else
6160
136k
    cpi->multi_layer_arf = 0;
6161
6162
  // Normal defaults
6163
136k
  cm->reset_frame_context = 0;
6164
136k
  cm->refresh_frame_context = 1;
6165
136k
  if (!is_one_pass_svc(cpi)) {
6166
136k
    cpi->refresh_last_frame = 1;
6167
136k
    cpi->refresh_golden_frame = 0;
6168
136k
    cpi->refresh_alt_ref_frame = 0;
6169
136k
  }
6170
6171
  // Should we encode an arf frame.
6172
136k
  arf_src_index = get_arf_src_index(cpi);
6173
6174
136k
  if (arf_src_index) {
6175
0
    for (i = 0; i <= arf_src_index; ++i) {
6176
0
      struct lookahead_entry *e = vp9_lookahead_peek(cpi->lookahead, i);
6177
      // Avoid creating an alt-ref if there's a forced keyframe pending.
6178
0
      if (e == NULL) {
6179
0
        break;
6180
0
      } else if (e->flags == VPX_EFLAG_FORCE_KF) {
6181
0
        arf_src_index = 0;
6182
0
        flush = 1;
6183
0
        break;
6184
0
      }
6185
0
    }
6186
0
  }
6187
6188
  // Clear arf index stack before group of pictures processing starts.
6189
136k
  if (gf_group_index == 1) {
6190
0
    stack_init(cpi->twopass.gf_group.arf_index_stack, MAX_LAG_BUFFERS * 2);
6191
0
    cpi->twopass.gf_group.stack_size = 0;
6192
0
  }
6193
6194
136k
  if (arf_src_index) {
6195
0
    if (!(cpi->ext_ratectrl.ready &&
6196
0
          (cpi->ext_ratectrl.funcs.rc_type & VPX_RC_GOP) != 0 &&
6197
0
          cpi->ext_ratectrl.funcs.get_gop_decision != NULL)) {
6198
      // This assert only makes sense when not using external RC.
6199
0
      assert(arf_src_index <= rc->frames_to_key);
6200
0
    }
6201
0
    if ((source = vp9_lookahead_peek(cpi->lookahead, arf_src_index)) != NULL) {
6202
0
      cpi->alt_ref_source = source;
6203
6204
0
#if !CONFIG_REALTIME_ONLY
6205
0
      if ((oxcf->mode != REALTIME) && (oxcf->arnr_max_frames > 0) &&
6206
0
          (oxcf->arnr_strength > 0)) {
6207
0
        int bitrate = cpi->rc.avg_frame_bandwidth / 40;
6208
0
        int not_low_bitrate = bitrate > ALT_REF_AQ_LOW_BITRATE_BOUNDARY;
6209
6210
0
        int not_last_frame = (cpi->lookahead->sz - arf_src_index > 1);
6211
0
        not_last_frame |= ALT_REF_AQ_APPLY_TO_LAST_FRAME;
6212
6213
#if CONFIG_COLLECT_COMPONENT_TIMING
6214
        start_timing(cpi, vp9_temporal_filter_time);
6215
#endif
6216
        // Produce the filtered ARF frame.
6217
0
        vp9_temporal_filter(cpi, arf_src_index);
6218
0
        vpx_extend_frame_borders(&cpi->tf_buffer);
6219
#if CONFIG_COLLECT_COMPONENT_TIMING
6220
        end_timing(cpi, vp9_temporal_filter_time);
6221
#endif
6222
6223
        // for small bitrates segmentation overhead usually
6224
        // eats all bitrate gain from enabling delta quantizers
6225
0
        if (cpi->oxcf.alt_ref_aq != 0 && not_low_bitrate && not_last_frame)
6226
0
          vp9_alt_ref_aq_setup_mode(cpi->alt_ref_aq, cpi);
6227
6228
0
        force_src_buffer = &cpi->tf_buffer;
6229
0
      }
6230
0
#endif
6231
0
      cm->show_frame = 0;
6232
0
      cm->intra_only = 0;
6233
0
      cpi->refresh_alt_ref_frame = 1;
6234
0
      cpi->refresh_golden_frame = 0;
6235
0
      cpi->refresh_last_frame = 0;
6236
0
      rc->is_src_frame_alt_ref = 0;
6237
0
      rc->source_alt_ref_pending = 0;
6238
0
    } else {
6239
0
      rc->source_alt_ref_pending = 0;
6240
0
    }
6241
0
  }
6242
6243
136k
  if (!source) {
6244
    // Get last frame source.
6245
136k
    if (cm->current_video_frame > 0) {
6246
103k
      if ((last_source = vp9_lookahead_peek(cpi->lookahead, -1)) == NULL)
6247
0
        return -1;
6248
103k
    }
6249
6250
    // Read in the source frame.
6251
136k
    if (cpi->use_svc || cpi->svc.set_intra_only_frame)
6252
0
      source = vp9_svc_lookahead_pop(cpi, cpi->lookahead, flush);
6253
136k
    else
6254
136k
      source = vp9_lookahead_pop(cpi->lookahead, flush);
6255
6256
136k
    if (source != NULL) {
6257
54.1k
      cm->show_frame = 1;
6258
54.1k
      cm->intra_only = 0;
6259
      // If the flags indicate intra frame, but if the current picture is for
6260
      // spatial layer above first_spatial_layer_to_encode, it should not be an
6261
      // intra picture.
6262
54.1k
      if ((source->flags & VPX_EFLAG_FORCE_KF) && cpi->use_svc &&
6263
0
          cpi->svc.spatial_layer_id > cpi->svc.first_spatial_layer_to_encode) {
6264
0
        source->flags &= ~(unsigned int)(VPX_EFLAG_FORCE_KF);
6265
0
      }
6266
6267
      // Check to see if the frame should be encoded as an arf overlay.
6268
54.1k
      check_src_altref(cpi, source);
6269
54.1k
    }
6270
136k
  }
6271
6272
136k
  if (source) {
6273
54.1k
    cpi->un_scaled_source = cpi->Source =
6274
54.1k
        force_src_buffer ? force_src_buffer : &source->img;
6275
6276
#ifdef ENABLE_KF_DENOISE
6277
    // Copy of raw source for metrics calculation.
6278
    if (is_psnr_calc_enabled(cpi))
6279
      vp9_copy_and_extend_frame(cpi->Source, &cpi->raw_unscaled_source);
6280
#endif
6281
6282
54.1k
    cpi->unscaled_last_source = last_source != NULL ? &last_source->img : NULL;
6283
6284
54.1k
    *time_stamp = source->ts_start;
6285
54.1k
    *time_end = source->ts_end;
6286
54.1k
    *frame_flags = (source->flags & VPX_EFLAG_FORCE_KF) ? FRAMEFLAGS_KEY : 0;
6287
82.0k
  } else {
6288
82.0k
    *size = 0;
6289
82.0k
    return -1;
6290
82.0k
  }
6291
6292
54.1k
  if (source->ts_start < cpi->first_time_stamp_ever) {
6293
3.88k
    cpi->first_time_stamp_ever = source->ts_start;
6294
3.88k
    cpi->last_end_time_stamp_seen = source->ts_start;
6295
3.88k
  }
6296
6297
  // Clear down mmx registers
6298
54.1k
  vpx_clear_system_state();
6299
6300
  // adjust frame rates based on timestamps given
6301
54.1k
  if (cm->show_frame) {
6302
54.1k
    if (cpi->use_svc && cpi->svc.use_set_ref_frame_config &&
6303
0
        cpi->svc.duration[cpi->svc.spatial_layer_id] > 0)
6304
0
      vp9_svc_adjust_frame_rate(cpi);
6305
54.1k
    else
6306
54.1k
      adjust_frame_rate(cpi, source);
6307
54.1k
  }
6308
6309
54.1k
  if (is_one_pass_svc(cpi)) {
6310
0
    vp9_update_temporal_layer_framerate(cpi);
6311
0
    vp9_restore_layer_context(cpi);
6312
0
  }
6313
6314
  // Find a free buffer for the new frame, releasing the reference previously
6315
  // held.
6316
54.1k
  if (cm->new_fb_idx != INVALID_IDX) {
6317
50.3k
    --pool->frame_bufs[cm->new_fb_idx].ref_count;
6318
50.3k
  }
6319
54.1k
  cm->new_fb_idx = get_free_fb(cm);
6320
6321
54.1k
  if (cm->new_fb_idx == INVALID_IDX) return -1;
6322
54.1k
  cm->cur_frame = &pool->frame_bufs[cm->new_fb_idx];
6323
  // If the frame buffer for current frame is the same as previous frame, MV in
6324
  // the base layer shouldn't be used as it'll cause data race.
6325
54.1k
  if (cpi->svc.spatial_layer_id > 0 && cm->cur_frame == cm->prev_frame) {
6326
0
    cpi->svc.use_base_mv = 0;
6327
0
  }
6328
  // Start with a 0 size frame.
6329
54.1k
  *size = 0;
6330
6331
54.1k
  cpi->frame_flags = *frame_flags;
6332
6333
54.1k
#if !CONFIG_REALTIME_ONLY
6334
54.1k
  if ((oxcf->pass == 2) && !cpi->use_svc) {
6335
#if CONFIG_COLLECT_COMPONENT_TIMING
6336
    start_timing(cpi, vp9_rc_get_second_pass_params_time);
6337
#endif
6338
0
    vp9_rc_get_second_pass_params(cpi);
6339
#if CONFIG_COLLECT_COMPONENT_TIMING
6340
    end_timing(cpi, vp9_rc_get_second_pass_params_time);
6341
#endif
6342
54.1k
  } else if (oxcf->pass == 1) {
6343
0
    set_frame_size(cpi);
6344
0
  }
6345
6346
  // Key frame temporal filtering
6347
54.1k
  const int is_key_temporal_filter_enabled =
6348
54.1k
      oxcf->enable_keyframe_filtering && cpi->oxcf.mode != REALTIME &&
6349
0
      (oxcf->pass != 1) && !cpi->use_svc &&
6350
0
      !is_lossless_requested(&cpi->oxcf) && cm->frame_type == KEY_FRAME &&
6351
0
      (oxcf->arnr_max_frames > 0) && (oxcf->arnr_strength > 0) &&
6352
0
      cpi->oxcf.speed < 2;
6353
  // Save the pointer to the original source image.
6354
54.1k
  YV12_BUFFER_CONFIG *source_buffer = cpi->un_scaled_source;
6355
6356
54.1k
  if (is_key_temporal_filter_enabled && source != NULL) {
6357
    // Produce the filtered Key frame. Set distance to -1 since the key frame
6358
    // is already popped out.
6359
0
    vp9_temporal_filter(cpi, -1);
6360
0
    vpx_extend_frame_borders(&cpi->tf_buffer);
6361
0
    force_src_buffer = &cpi->tf_buffer;
6362
0
    cpi->un_scaled_source = cpi->Source =
6363
0
        force_src_buffer ? force_src_buffer : &source->img;
6364
0
  }
6365
54.1k
#endif  // !CONFIG_REALTIME_ONLY
6366
6367
54.1k
  if (oxcf->pass != 1 && cpi->level_constraint.level_index >= 0 &&
6368
0
      cpi->level_constraint.fail_flag == 0)
6369
0
    level_rc_framerate(cpi, arf_src_index);
6370
6371
54.1k
  if (cpi->oxcf.pass != 0 || cpi->use_svc || frame_is_intra_only(cm) == 1) {
6372
60.2k
    for (i = 0; i < REFS_PER_FRAME; ++i) cpi->scaled_ref_idx[i] = INVALID_IDX;
6373
15.0k
  }
6374
6375
54.1k
  if (cpi->kmeans_data_arr_alloc == 0) {
6376
3.88k
    const int mi_cols = mi_cols_aligned_to_sb(cm->mi_cols);
6377
3.88k
    const int mi_rows = mi_cols_aligned_to_sb(cm->mi_rows);
6378
3.88k
#if CONFIG_MULTITHREAD
6379
3.88k
    pthread_mutex_init(&cpi->kmeans_mutex, NULL);
6380
3.88k
#endif
6381
3.88k
    CHECK_MEM_ERROR(
6382
3.88k
        &cm->error, cpi->kmeans_data_arr,
6383
3.88k
        vpx_calloc(mi_rows * mi_cols, sizeof(*cpi->kmeans_data_arr)));
6384
3.88k
    cpi->kmeans_data_stride = mi_cols;
6385
3.88k
    cpi->kmeans_data_arr_alloc = 1;
6386
3.88k
  }
6387
6388
#if CONFIG_NON_GREEDY_MV
6389
  {
6390
    const int mi_cols = mi_cols_aligned_to_sb(cm->mi_cols);
6391
    const int mi_rows = mi_cols_aligned_to_sb(cm->mi_rows);
6392
    Status status = vp9_alloc_motion_field_info(
6393
        &cpi->motion_field_info, MAX_ARF_GOP_SIZE, mi_rows, mi_cols);
6394
    if (status == STATUS_FAILED) {
6395
      vpx_internal_error(&(cm)->error, VPX_CODEC_MEM_ERROR,
6396
                         "vp9_alloc_motion_field_info failed");
6397
    }
6398
  }
6399
#endif  // CONFIG_NON_GREEDY_MV
6400
6401
#if CONFIG_COLLECT_COMPONENT_TIMING
6402
  start_timing(cpi, setup_tpl_stats_time);
6403
#endif
6404
54.1k
  if (should_run_tpl(cpi, cpi->twopass.gf_group.index)) {
6405
0
    vp9_init_tpl_buffer(cpi);
6406
0
    vp9_estimate_tpl_qp_gop(cpi);
6407
0
    vp9_setup_tpl_stats(cpi);
6408
0
  }
6409
#if CONFIG_COLLECT_COMPONENT_TIMING
6410
  end_timing(cpi, setup_tpl_stats_time);
6411
#endif
6412
6413
#if CONFIG_BITSTREAM_DEBUG
6414
  assert(cpi->oxcf.max_threads == 0 &&
6415
         "bitstream debug tool does not support multithreading");
6416
  bitstream_queue_record_write();
6417
#endif
6418
#if CONFIG_BITSTREAM_DEBUG || CONFIG_MISMATCH_DEBUG
6419
  bitstream_queue_set_frame_write(cm->current_video_frame * 2 + cm->show_frame);
6420
#endif
6421
6422
54.1k
  cpi->td.mb.fp_src_pred = 0;
6423
#if CONFIG_REALTIME_ONLY
6424
  (void)encode_frame_result;
6425
  if (cpi->use_svc) {
6426
    SvcEncode(cpi, size, dest, dest_size, frame_flags);
6427
  } else {
6428
    // One pass encode
6429
    Pass0Encode(cpi, size, dest, dest_size, frame_flags);
6430
  }
6431
#else  // !CONFIG_REALTIME_ONLY
6432
54.1k
  if (oxcf->pass == 1 && !cpi->use_svc) {
6433
0
    const int lossless = is_lossless_requested(oxcf);
6434
0
#if CONFIG_VP9_HIGHBITDEPTH
6435
0
    if (cpi->oxcf.use_highbitdepth)
6436
0
      cpi->td.mb.fwd_txfm4x4 =
6437
0
          lossless ? vp9_highbd_fwht4x4 : vpx_highbd_fdct4x4;
6438
0
    else
6439
0
      cpi->td.mb.fwd_txfm4x4 = lossless ? vp9_fwht4x4 : vpx_fdct4x4;
6440
0
    cpi->td.mb.highbd_inv_txfm_add =
6441
0
        lossless ? vp9_highbd_iwht4x4_add : vp9_highbd_idct4x4_add;
6442
#else
6443
    cpi->td.mb.fwd_txfm4x4 = lossless ? vp9_fwht4x4 : vpx_fdct4x4;
6444
#endif  // CONFIG_VP9_HIGHBITDEPTH
6445
0
    cpi->td.mb.inv_txfm_add = lossless ? vp9_iwht4x4_add : vp9_idct4x4_add;
6446
0
    vp9_first_pass(cpi, source);
6447
54.1k
  } else if (oxcf->pass == 2 && !cpi->use_svc) {
6448
#if CONFIG_COLLECT_COMPONENT_TIMING
6449
    // Accumulate 2nd pass time in 2-pass case.
6450
    start_timing(cpi, Pass2Encode_time);
6451
#endif
6452
0
    Pass2Encode(cpi, size, dest, dest_size, frame_flags, encode_frame_result);
6453
0
    vp9_twopass_postencode_update(cpi);
6454
#if CONFIG_COLLECT_COMPONENT_TIMING
6455
    end_timing(cpi, Pass2Encode_time);
6456
#endif
6457
54.1k
  } else if (cpi->use_svc) {
6458
0
    SvcEncode(cpi, size, dest, dest_size, frame_flags);
6459
54.1k
  } else {
6460
    // One pass encode
6461
54.1k
    Pass0Encode(cpi, size, dest, dest_size, frame_flags);
6462
54.1k
  }
6463
54.1k
#endif  // CONFIG_REALTIME_ONLY
6464
6465
54.1k
  if (cm->show_frame) cm->cur_show_frame_fb_idx = cm->new_fb_idx;
6466
6467
54.1k
  if (cm->refresh_frame_context)
6468
54.0k
    cm->frame_contexts[cm->frame_context_idx] = *cm->fc;
6469
6470
  // No frame encoded, or frame was dropped, release scaled references.
6471
54.1k
  if ((*size == 0) && (frame_is_intra_only(cm) == 0)) {
6472
0
    release_scaled_references(cpi);
6473
0
  }
6474
6475
54.1k
  if (*size > 0) {
6476
54.0k
    cpi->droppable = !frame_is_reference(cpi);
6477
54.0k
  }
6478
6479
  // Save layer specific state.
6480
54.1k
  if (is_one_pass_svc(cpi) || ((cpi->svc.number_temporal_layers > 1 ||
6481
54.0k
                                cpi->svc.number_spatial_layers > 1) &&
6482
0
                               oxcf->pass == 2)) {
6483
0
    vp9_save_layer_context(cpi);
6484
0
  }
6485
6486
54.1k
  if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1)
6487
54.0k
    cpi->fixed_qp_onepass = 0;
6488
6489
#if CONFIG_INTERNAL_STATS
6490
  vpx_usec_timer_mark(&cmptimer);
6491
  cpi->time_compress_data += vpx_usec_timer_elapsed(&cmptimer);
6492
#endif
6493
6494
54.1k
  if (cpi->keep_level_stats && oxcf->pass != 1)
6495
0
    update_level_info(cpi, size, arf_src_index);
6496
6497
54.1k
#if !CONFIG_REALTIME_ONLY
6498
54.1k
  if (is_key_temporal_filter_enabled && cpi->b_calculate_psnr) {
6499
0
    cpi->raw_source_frame = vp9_scale_if_required(
6500
0
        cm, source_buffer, &cpi->scaled_source, (oxcf->pass == 0), EIGHTTAP, 0);
6501
0
  }
6502
54.1k
#endif  // !CONFIG_REALTIME_ONLY
6503
6504
#if CONFIG_INTERNAL_STATS
6505
6506
  if (oxcf->pass != 1 && !cpi->last_frame_dropped) {
6507
    double samples = 0.0;
6508
    cpi->bytes += *size;
6509
6510
    if (cm->show_frame) {
6511
      uint32_t bit_depth = 8;
6512
      uint32_t in_bit_depth = 8;
6513
      cpi->count++;
6514
#if CONFIG_VP9_HIGHBITDEPTH
6515
      if (cm->use_highbitdepth) {
6516
        in_bit_depth = cpi->oxcf.input_bit_depth;
6517
        bit_depth = cm->bit_depth;
6518
      }
6519
#endif
6520
6521
      if (cpi->b_calculate_psnr) {
6522
        YV12_BUFFER_CONFIG *orig = cpi->raw_source_frame;
6523
        YV12_BUFFER_CONFIG *recon = cpi->common.frame_to_show;
6524
        YV12_BUFFER_CONFIG *pp = &cm->post_proc_buffer;
6525
        PSNR_STATS psnr;
6526
#if CONFIG_VP9_HIGHBITDEPTH
6527
        vpx_calc_highbd_psnr(orig, recon, &psnr, cpi->td.mb.e_mbd.bd,
6528
                             in_bit_depth, cpi->svc.spatial_layer_id);
6529
#else
6530
        vpx_calc_psnr(orig, recon, &psnr, cpi->svc.spatial_layer_id);
6531
#endif  // CONFIG_VP9_HIGHBITDEPTH
6532
6533
        adjust_image_stat(psnr.psnr[1], psnr.psnr[2], psnr.psnr[3],
6534
                          psnr.psnr[0], &cpi->psnr);
6535
        cpi->total_sq_error += psnr.sse[0];
6536
        cpi->total_samples += psnr.samples[0];
6537
        samples = psnr.samples[0];
6538
6539
        {
6540
          PSNR_STATS psnr2;
6541
          double frame_ssim2 = 0, weight = 0;
6542
#if CONFIG_VP9_POSTPROC
6543
          if (vpx_alloc_frame_buffer(
6544
                  pp, recon->y_crop_width, recon->y_crop_height,
6545
                  cm->subsampling_x, cm->subsampling_y,
6546
#if CONFIG_VP9_HIGHBITDEPTH
6547
                  cm->use_highbitdepth,
6548
#endif
6549
                  VP9_ENC_BORDER_IN_PIXELS, cm->byte_alignment) < 0) {
6550
            vpx_internal_error(&cm->error, VPX_CODEC_MEM_ERROR,
6551
                               "Failed to allocate post processing buffer");
6552
          }
6553
          {
6554
            vp9_ppflags_t ppflags;
6555
            ppflags.post_proc_flag = VP9D_DEBLOCK;
6556
            ppflags.deblocking_level = 0;  // not used in vp9_post_proc_frame()
6557
            ppflags.noise_level = 0;       // not used in vp9_post_proc_frame()
6558
            vp9_post_proc_frame(cm, pp, &ppflags,
6559
                                cpi->un_scaled_source->y_width);
6560
          }
6561
#endif
6562
          vpx_clear_system_state();
6563
6564
#if CONFIG_VP9_HIGHBITDEPTH
6565
          vpx_calc_highbd_psnr(orig, pp, &psnr2, cpi->td.mb.e_mbd.bd,
6566
                               cpi->oxcf.input_bit_depth,
6567
                               cpi->svc.spatial_layer_id);
6568
#else
6569
          vpx_calc_psnr(orig, pp, &psnr2, cpi->svc.spatial_layer_id);
6570
#endif  // CONFIG_VP9_HIGHBITDEPTH
6571
6572
          cpi->totalp_sq_error += psnr2.sse[0];
6573
          cpi->totalp_samples += psnr2.samples[0];
6574
          adjust_image_stat(psnr2.psnr[1], psnr2.psnr[2], psnr2.psnr[3],
6575
                            psnr2.psnr[0], &cpi->psnrp);
6576
6577
#if CONFIG_VP9_HIGHBITDEPTH
6578
          if (cm->use_highbitdepth) {
6579
            frame_ssim2 = vpx_highbd_calc_ssim(orig, recon, &weight, bit_depth,
6580
                                               in_bit_depth);
6581
          } else {
6582
            frame_ssim2 = vpx_calc_ssim(orig, recon, &weight);
6583
          }
6584
#else
6585
          frame_ssim2 = vpx_calc_ssim(orig, recon, &weight);
6586
#endif  // CONFIG_VP9_HIGHBITDEPTH
6587
6588
          cpi->worst_ssim = VPXMIN(cpi->worst_ssim, frame_ssim2);
6589
          cpi->summed_quality += frame_ssim2 * weight;
6590
          cpi->summed_weights += weight;
6591
6592
#if CONFIG_VP9_HIGHBITDEPTH
6593
          if (cm->use_highbitdepth) {
6594
            frame_ssim2 = vpx_highbd_calc_ssim(orig, pp, &weight, bit_depth,
6595
                                               in_bit_depth);
6596
          } else {
6597
            frame_ssim2 = vpx_calc_ssim(orig, pp, &weight);
6598
          }
6599
#else
6600
          frame_ssim2 = vpx_calc_ssim(orig, pp, &weight);
6601
#endif  // CONFIG_VP9_HIGHBITDEPTH
6602
6603
          cpi->summedp_quality += frame_ssim2 * weight;
6604
          cpi->summedp_weights += weight;
6605
#if 0
6606
          if (cm->show_frame) {
6607
            FILE *f = fopen("q_used.stt", "a");
6608
            fprintf(f, "%5d : Y%f7.3:U%f7.3:V%f7.3:F%f7.3:S%7.3f\n",
6609
                    cpi->common.current_video_frame, psnr2.psnr[1],
6610
                    psnr2.psnr[2], psnr2.psnr[3], psnr2.psnr[0], frame_ssim2);
6611
            fclose(f);
6612
          }
6613
#endif
6614
        }
6615
      }
6616
      if (cpi->b_calculate_blockiness) {
6617
#if CONFIG_VP9_HIGHBITDEPTH
6618
        if (!cm->use_highbitdepth)
6619
#endif
6620
        {
6621
          double frame_blockiness = vp9_get_blockiness(
6622
              cpi->Source->y_buffer, cpi->Source->y_stride,
6623
              cm->frame_to_show->y_buffer, cm->frame_to_show->y_stride,
6624
              cpi->Source->y_width, cpi->Source->y_height);
6625
          cpi->worst_blockiness =
6626
              VPXMAX(cpi->worst_blockiness, frame_blockiness);
6627
          cpi->total_blockiness += frame_blockiness;
6628
        }
6629
      }
6630
6631
      if (cpi->b_calculate_consistency) {
6632
#if CONFIG_VP9_HIGHBITDEPTH
6633
        if (!cm->use_highbitdepth)
6634
#endif
6635
        {
6636
          double this_inconsistency = vpx_get_ssim_metrics(
6637
              cpi->Source->y_buffer, cpi->Source->y_stride,
6638
              cm->frame_to_show->y_buffer, cm->frame_to_show->y_stride,
6639
              cpi->Source->y_width, cpi->Source->y_height, cpi->ssim_vars,
6640
              &cpi->metrics, 1);
6641
6642
          const double peak = (double)((1 << cpi->oxcf.input_bit_depth) - 1);
6643
          double consistency =
6644
              vpx_sse_to_psnr(samples, peak, (double)cpi->total_inconsistency);
6645
          if (consistency > 0.0)
6646
            cpi->worst_consistency =
6647
                VPXMIN(cpi->worst_consistency, consistency);
6648
          cpi->total_inconsistency += this_inconsistency;
6649
        }
6650
      }
6651
6652
      {
6653
        double y, u, v, frame_all;
6654
        frame_all = vpx_calc_fastssim(cpi->Source, cm->frame_to_show, &y, &u,
6655
                                      &v, bit_depth, in_bit_depth);
6656
        adjust_image_stat(y, u, v, frame_all, &cpi->fastssim);
6657
      }
6658
      {
6659
        double y, u, v, frame_all;
6660
        frame_all = vpx_psnrhvs(cpi->Source, cm->frame_to_show, &y, &u, &v,
6661
                                bit_depth, in_bit_depth);
6662
        adjust_image_stat(y, u, v, frame_all, &cpi->psnrhvs);
6663
      }
6664
    }
6665
  }
6666
6667
#endif
6668
6669
#if CONFIG_COLLECT_COMPONENT_TIMING
6670
  if (oxcf->pass == 2) end_timing(cpi, vp9_get_compressed_data_time);
6671
6672
  // Print out timing information.
6673
  // Note: Use "cpi->frame_component_time[0] > 100 us" to avoid showing of
6674
  // show_existing_frame and lag-in-frames.
6675
  //  if (cpi->frame_component_time[0] > 100)
6676
  if (oxcf->pass == 2) {
6677
    uint64_t frame_total = 0, total = 0;
6678
    int i;
6679
6680
    fprintf(stderr,
6681
            "\n Frame number: %d, Frame type: %s, Show Frame: %d, Q: %d\n",
6682
            cm->current_video_frame, get_frame_type_enum(cm->frame_type),
6683
            cm->show_frame, cm->base_qindex);
6684
    for (i = 0; i < kTimingComponents; i++) {
6685
      cpi->component_time[i] += cpi->frame_component_time[i];
6686
      // Use vp9_get_compressed_data_time (i = 0) as the total time.
6687
      if (i == 0) {
6688
        frame_total = cpi->frame_component_time[0];
6689
        total = cpi->component_time[0];
6690
      }
6691
      fprintf(stderr,
6692
              " %50s:  %15" PRId64 " us [%6.2f%%] (total: %15" PRId64
6693
              " us [%6.2f%%])\n",
6694
              get_component_name(i), cpi->frame_component_time[i],
6695
              (float)((float)cpi->frame_component_time[i] * 100.0 /
6696
                      (float)frame_total),
6697
              cpi->component_time[i],
6698
              (float)((float)cpi->component_time[i] * 100.0 / (float)total));
6699
      cpi->frame_component_time[i] = 0;
6700
    }
6701
  }
6702
#endif
6703
6704
54.1k
  if (is_one_pass_svc(cpi)) {
6705
0
    if (cm->show_frame) {
6706
0
      ++cpi->svc.spatial_layer_to_encode;
6707
0
      if (cpi->svc.spatial_layer_to_encode >= cpi->svc.number_spatial_layers)
6708
0
        cpi->svc.spatial_layer_to_encode = 0;
6709
0
    }
6710
0
  }
6711
6712
54.1k
  vpx_clear_system_state();
6713
54.1k
  return 0;
6714
54.1k
}
6715
6716
int vp9_get_preview_raw_frame(VP9_COMP *cpi, YV12_BUFFER_CONFIG *dest,
6717
0
                              vp9_ppflags_t *flags) {
6718
0
  VP9_COMMON *cm = &cpi->common;
6719
0
#if !CONFIG_VP9_POSTPROC
6720
0
  (void)flags;
6721
0
#endif
6722
6723
0
  if (!cm->show_frame) {
6724
0
    return -1;
6725
0
  } else {
6726
0
    int ret;
6727
#if CONFIG_VP9_POSTPROC
6728
    ret = vp9_post_proc_frame(cm, dest, flags, cpi->un_scaled_source->y_width);
6729
#else
6730
0
    if (cm->frame_to_show) {
6731
0
      *dest = *cm->frame_to_show;
6732
0
      dest->y_width = cm->width;
6733
0
      dest->y_height = cm->height;
6734
0
      dest->uv_width = cm->width >> cm->subsampling_x;
6735
0
      dest->uv_height = cm->height >> cm->subsampling_y;
6736
0
      ret = 0;
6737
0
    } else {
6738
0
      ret = -1;
6739
0
    }
6740
0
#endif  // !CONFIG_VP9_POSTPROC
6741
0
    vpx_clear_system_state();
6742
0
    return ret;
6743
0
  }
6744
0
}
6745
6746
int vp9_set_internal_size(VP9_COMP *cpi, VPX_SCALING_MODE horiz_mode,
6747
0
                          VPX_SCALING_MODE vert_mode) {
6748
0
  VP9_COMMON *cm = &cpi->common;
6749
0
  int hr = 0, hs = 0, vr = 0, vs = 0;
6750
6751
0
  if (horiz_mode > VP8E_ONETWO || vert_mode > VP8E_ONETWO) return -1;
6752
6753
0
  Scale2Ratio(horiz_mode, &hr, &hs);
6754
0
  Scale2Ratio(vert_mode, &vr, &vs);
6755
6756
  // always go to the next whole number
6757
0
  cm->width = (hs - 1 + cpi->oxcf.width * hr) / hs;
6758
0
  cm->height = (vs - 1 + cpi->oxcf.height * vr) / vs;
6759
0
  if (cm->current_video_frame) {
6760
0
    assert(cm->width <= cpi->initial_width);
6761
0
    assert(cm->height <= cpi->initial_height);
6762
0
  }
6763
6764
0
  update_frame_size(cpi);
6765
6766
0
  return 0;
6767
0
}
6768
6769
int vp9_set_size_literal(VP9_COMP *cpi, unsigned int width,
6770
0
                         unsigned int height) {
6771
0
  VP9_COMMON *cm = &cpi->common;
6772
0
#if CONFIG_VP9_HIGHBITDEPTH
6773
0
  update_initial_width(cpi, cm->use_highbitdepth, cpi->common.subsampling_x,
6774
0
                       cpi->common.subsampling_y);
6775
#else
6776
  update_initial_width(cpi, 0, cpi->common.subsampling_x,
6777
                       cpi->common.subsampling_y);
6778
#endif  // CONFIG_VP9_HIGHBITDEPTH
6779
6780
#if CONFIG_VP9_TEMPORAL_DENOISING
6781
  setup_denoiser_buffer(cpi);
6782
#endif
6783
0
  alloc_raw_frame_buffers(cpi);
6784
0
  if (width) {
6785
0
    cm->width = width;
6786
0
    if (cm->width > cpi->initial_width) {
6787
0
      cm->width = cpi->initial_width;
6788
0
    }
6789
0
  }
6790
6791
0
  if (height) {
6792
0
    cm->height = height;
6793
0
    if (cm->height > cpi->initial_height) {
6794
0
      cm->height = cpi->initial_height;
6795
0
    }
6796
0
  }
6797
0
  assert(cm->width <= cpi->initial_width);
6798
0
  assert(cm->height <= cpi->initial_height);
6799
6800
0
  update_frame_size(cpi);
6801
6802
0
  return 0;
6803
0
}
6804
6805
0
void vp9_set_svc(VP9_COMP *cpi, int use_svc) {
6806
0
  cpi->use_svc = use_svc;
6807
0
  return;
6808
0
}
6809
6810
53.7k
int vp9_get_quantizer(const VP9_COMP *cpi) { return cpi->common.base_qindex; }
6811
6812
86.8k
void vp9_apply_encoding_flags(VP9_COMP *cpi, vpx_enc_frame_flags_t flags) {
6813
86.8k
  if (flags &
6814
86.8k
      (VP8_EFLAG_NO_REF_LAST | VP8_EFLAG_NO_REF_GF | VP8_EFLAG_NO_REF_ARF)) {
6815
0
    int ref = 7;
6816
6817
0
    if (flags & VP8_EFLAG_NO_REF_LAST) ref ^= VP9_LAST_FLAG;
6818
6819
0
    if (flags & VP8_EFLAG_NO_REF_GF) ref ^= VP9_GOLD_FLAG;
6820
6821
0
    if (flags & VP8_EFLAG_NO_REF_ARF) ref ^= VP9_ALT_FLAG;
6822
6823
0
    vp9_use_as_reference(cpi, ref);
6824
0
  }
6825
6826
86.8k
  if (flags &
6827
86.8k
      (VP8_EFLAG_NO_UPD_LAST | VP8_EFLAG_NO_UPD_GF | VP8_EFLAG_NO_UPD_ARF |
6828
86.8k
       VP8_EFLAG_FORCE_GF | VP8_EFLAG_FORCE_ARF)) {
6829
0
    int upd = 7;
6830
6831
0
    if (flags & VP8_EFLAG_NO_UPD_LAST) upd ^= VP9_LAST_FLAG;
6832
6833
0
    if (flags & VP8_EFLAG_NO_UPD_GF) upd ^= VP9_GOLD_FLAG;
6834
6835
0
    if (flags & VP8_EFLAG_NO_UPD_ARF) upd ^= VP9_ALT_FLAG;
6836
6837
0
    vp9_update_reference(cpi, upd);
6838
0
  }
6839
6840
86.8k
  if (flags & VP8_EFLAG_NO_UPD_ENTROPY) {
6841
0
    vp9_update_entropy(cpi, 0);
6842
0
  }
6843
86.8k
}
6844
6845
34.7k
void vp9_set_row_mt(VP9_COMP *cpi) {
6846
  // Enable row based multi-threading for supported modes of encoding
6847
34.7k
  cpi->row_mt = 0;
6848
34.7k
  if (((cpi->oxcf.mode == GOOD || cpi->oxcf.mode == BEST) &&
6849
32.3k
       cpi->oxcf.speed < 5 && cpi->oxcf.pass == 1) &&
6850
0
      cpi->oxcf.row_mt && !cpi->use_svc)
6851
0
    cpi->row_mt = 1;
6852
6853
34.7k
  if (cpi->oxcf.mode == GOOD && cpi->oxcf.speed < 5 &&
6854
32.3k
      (cpi->oxcf.pass == 0 || cpi->oxcf.pass == 2) && cpi->oxcf.row_mt &&
6855
0
      !cpi->use_svc)
6856
0
    cpi->row_mt = 1;
6857
6858
  // In realtime mode, enable row based multi-threading for all the speed levels
6859
  // where non-rd path is used.
6860
34.7k
  if (cpi->oxcf.mode == REALTIME && cpi->oxcf.speed >= 5 && cpi->oxcf.row_mt) {
6861
0
    cpi->row_mt = 1;
6862
0
  }
6863
6864
34.7k
  if (cpi->row_mt)
6865
0
    cpi->row_mt_bit_exact = 1;
6866
34.7k
  else
6867
34.7k
    cpi->row_mt_bit_exact = 0;
6868
34.7k
}