Coverage Report

Created: 2026-07-16 06:32

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/work/x265/source/encoder/entropy.cpp
Line
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Source
1
/*****************************************************************************
2
* Copyright (C) 2013-2020 MulticoreWare, Inc
3
*
4
* Authors: Steve Borho <steve@borho.org>
5
*          Min Chen <chenm003@163.com>
6
*
7
* This program is free software; you can redistribute it and/or modify
8
* it under the terms of the GNU General Public License as published by
9
* the Free Software Foundation; either version 2 of the License, or
10
* (at your option) any later version.
11
*
12
* This program is distributed in the hope that it will be useful,
13
* but WITHOUT ANY WARRANTY; without even the implied warranty of
14
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
15
* GNU General Public License for more details.
16
*
17
* You should have received a copy of the GNU General Public License
18
* along with this program; if not, write to the Free Software
19
* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA  02111, USA.
20
*
21
* This program is also available under a commercial proprietary license.
22
* For more information, contact us at license @ x265.com.
23
*****************************************************************************/
24
25
#include "common.h"
26
#include "framedata.h"
27
#include "scalinglist.h"
28
#include "quant.h"
29
#include "contexts.h"
30
#include "picyuv.h"
31
32
#include "sao.h"
33
#include "entropy.h"
34
35
13.5k
#define CU_DQP_TU_CMAX 5 // max number bins for truncated unary
36
4.04k
#define CU_DQP_EG_k    0 // exp-golomb order
37
0
#define START_VALUE    8 // start value for dpcm mode
38
39
namespace X265_NS {
40
41
// initial probability for cu_transquant_bypass flag
42
static const uint8_t INIT_CU_TRANSQUANT_BYPASS_FLAG[3][NUM_TQUANT_BYPASS_FLAG_CTX] =
43
{
44
    { 154 },
45
    { 154 },
46
    { 154 },
47
};
48
49
// initial probability for split flag
50
static const uint8_t INIT_SPLIT_FLAG[3][NUM_SPLIT_FLAG_CTX] =
51
{
52
    { 107,  139,  126, },
53
    { 107,  139,  126, },
54
    { 139,  141,  157, },
55
};
56
57
static const uint8_t INIT_SKIP_FLAG[3][NUM_SKIP_FLAG_CTX] =
58
{
59
    { 197,  185,  201, },
60
    { 197,  185,  201, },
61
    { CNU,  CNU,  CNU, },
62
};
63
64
static const uint8_t INIT_MERGE_FLAG_EXT[3][NUM_MERGE_FLAG_EXT_CTX] =
65
{
66
    { 154, },
67
    { 110, },
68
    { CNU, },
69
};
70
71
static const uint8_t INIT_MERGE_IDX_EXT[3][NUM_MERGE_IDX_EXT_CTX] =
72
{
73
    { 137, },
74
    { 122, },
75
    { CNU, },
76
};
77
78
static const uint8_t INIT_PART_SIZE[3][NUM_PART_SIZE_CTX] =
79
{
80
    { 154,  139,  154, 154 },
81
    { 154,  139,  154, 154 },
82
    { 184,  CNU,  CNU, CNU },
83
};
84
85
static const uint8_t INIT_PRED_MODE[3][NUM_PRED_MODE_CTX] =
86
{
87
    { 134, },
88
    { 149, },
89
    { CNU, },
90
};
91
92
static const uint8_t INIT_INTRA_PRED_MODE[3][NUM_ADI_CTX] =
93
{
94
    { 183, },
95
    { 154, },
96
    { 184, },
97
};
98
99
static const uint8_t INIT_CHROMA_PRED_MODE[3][NUM_CHROMA_PRED_CTX] =
100
{
101
    { 152,  139, },
102
    { 152,  139, },
103
    {  63,  139, },
104
};
105
106
static const uint8_t INIT_INTER_DIR[3][NUM_INTER_DIR_CTX] =
107
{
108
    {  95,   79,   63,   31,  31, },
109
    {  95,   79,   63,   31,  31, },
110
    { CNU,  CNU,  CNU,  CNU, CNU, },
111
};
112
113
static const uint8_t INIT_MVD[3][NUM_MV_RES_CTX] =
114
{
115
    { 169,  198, },
116
    { 140,  198, },
117
    { CNU,  CNU, },
118
};
119
120
static const uint8_t INIT_REF_PIC[3][NUM_REF_NO_CTX] =
121
{
122
    { 153,  153 },
123
    { 153,  153 },
124
    { CNU,  CNU },
125
};
126
127
static const uint8_t INIT_DQP[3][NUM_DELTA_QP_CTX] =
128
{
129
    { 154,  154,  154, },
130
    { 154,  154,  154, },
131
    { 154,  154,  154, },
132
};
133
134
static const uint8_t INIT_QT_CBF[3][NUM_QT_CBF_CTX] =
135
{
136
    { 153,  111,  149,   92,  167,  154,  154 },
137
    { 153,  111,  149,  107,  167,  154,  154 },
138
    { 111,  141,   94,  138,  182,  154,  154 },
139
};
140
141
static const uint8_t INIT_QT_ROOT_CBF[3][NUM_QT_ROOT_CBF_CTX] =
142
{
143
    {  79, },
144
    {  79, },
145
    { CNU, },
146
};
147
148
static const uint8_t INIT_LAST[3][NUM_CTX_LAST_FLAG_XY] =
149
{
150
    { 125,  110,  124,  110,   95,   94,  125,  111,  111,   79,  125,  126,  111,  111,   79,
151
      108,  123,   93 },
152
    { 125,  110,   94,  110,   95,   79,  125,  111,  110,   78,  110,  111,  111,   95,   94,
153
      108,  123,  108 },
154
    { 110,  110,  124,  125,  140,  153,  125,  127,  140,  109,  111,  143,  127,  111,   79,
155
      108,  123,   63 },
156
};
157
158
static const uint8_t INIT_SIG_CG_FLAG[3][2 * NUM_SIG_CG_FLAG_CTX] =
159
{
160
    { 121,  140,
161
      61,  154, },
162
    { 121,  140,
163
      61,  154, },
164
    {  91,  171,
165
       134,  141, },
166
};
167
168
static const uint8_t INIT_SIG_FLAG[3][NUM_SIG_FLAG_CTX] =
169
{
170
    { 170,  154,  139,  153,  139,  123,  123,   63,  124,  166,  183,  140,  136,  153,  154,  166,  183,  140,  136,  153,  154,  166,  183,  140,  136,  153,  154,  170,  153,  138,  138,  122,  121,  122,  121,  167,  151,  183,  140,  151,  183,  140,  },
171
    { 155,  154,  139,  153,  139,  123,  123,   63,  153,  166,  183,  140,  136,  153,  154,  166,  183,  140,  136,  153,  154,  166,  183,  140,  136,  153,  154,  170,  153,  123,  123,  107,  121,  107,  121,  167,  151,  183,  140,  151,  183,  140,  },
172
    { 111,  111,  125,  110,  110,   94,  124,  108,  124,  107,  125,  141,  179,  153,  125,  107,  125,  141,  179,  153,  125,  107,  125,  141,  179,  153,  125,  140,  139,  182,  182,  152,  136,  152,  136,  153,  136,  139,  111,  136,  139,  111,  },
173
};
174
175
static const uint8_t INIT_ONE_FLAG[3][NUM_ONE_FLAG_CTX] =
176
{
177
    { 154,  196,  167,  167,  154,  152,  167,  182,  182,  134,  149,  136,  153,  121,  136,  122,  169,  208,  166,  167,  154,  152,  167,  182, },
178
    { 154,  196,  196,  167,  154,  152,  167,  182,  182,  134,  149,  136,  153,  121,  136,  137,  169,  194,  166,  167,  154,  167,  137,  182, },
179
    { 140,   92,  137,  138,  140,  152,  138,  139,  153,   74,  149,   92,  139,  107,  122,  152,  140,  179,  166,  182,  140,  227,  122,  197, },
180
};
181
182
static const uint8_t INIT_ABS_FLAG[3][NUM_ABS_FLAG_CTX] =
183
{
184
    { 107,  167,   91,  107,  107,  167, },
185
    { 107,  167,   91,  122,  107,  167, },
186
    { 138,  153,  136,  167,  152,  152, },
187
};
188
189
static const uint8_t INIT_MVP_IDX[3][NUM_MVP_IDX_CTX] =
190
{
191
    { 168 },
192
    { 168 },
193
    { CNU },
194
};
195
196
static const uint8_t INIT_SAO_MERGE_FLAG[3][NUM_SAO_MERGE_FLAG_CTX] =
197
{
198
    { 153,  },
199
    { 153,  },
200
    { 153,  },
201
};
202
203
static const uint8_t INIT_SAO_TYPE_IDX[3][NUM_SAO_TYPE_IDX_CTX] =
204
{
205
    { 160, },
206
    { 185, },
207
    { 200, },
208
};
209
210
static const uint8_t INIT_TRANS_SUBDIV_FLAG[3][NUM_TRANS_SUBDIV_FLAG_CTX] =
211
{
212
    { 224,  167,  122, },
213
    { 124,  138,   94, },
214
    { 153,  138,  138, },
215
};
216
217
static const uint8_t INIT_TRANSFORMSKIP_FLAG[3][2 * NUM_TRANSFORMSKIP_FLAG_CTX] =
218
{
219
    { 139,  139 },
220
    { 139,  139 },
221
    { 139,  139 },
222
};
223
224
Entropy::Entropy()
225
1.99M
{
226
1.99M
    markValid();
227
1.99M
    m_fracBits = 0;
228
1.99M
    m_pad = 0;
229
1.99M
    m_meanQP = 0;
230
1.99M
    X265_CHECK(sizeof(m_contextState) >= sizeof(m_contextState[0]) * MAX_OFF_CTX_MOD, "context state table is too small\n");
231
1.99M
}
232
233
#if ENABLE_ALPHA || ENABLE_MULTIVIEW
234
void Entropy::codeVPS(const VPS& vps, const SPS& sps)
235
#else
236
void Entropy::codeVPS(const VPS& vps)
237
#endif
238
628
{
239
628
    int maxLayers = (vps.m_numLayers > 1 || vps.m_numViews > 1) + 1;
240
628
    WRITE_CODE(0,       4, "vps_video_parameter_set_id");
241
628
    WRITE_CODE(3,       2, "vps_reserved_three_2bits");
242
628
    WRITE_CODE(maxLayers - 1, 6, "vps_reserved_zero_6bits");
243
628
    WRITE_CODE(vps.maxTempSubLayers - 1, 3, "vps_max_sub_layers_minus1");
244
628
    WRITE_FLAG(vps.maxTempSubLayers == 1,   "vps_temporal_id_nesting_flag");
245
628
    WRITE_CODE(0xffff, 16, "vps_reserved_ffff_16bits");
246
247
628
    codeProfileTier(vps.ptl, vps.maxTempSubLayers);
248
249
628
    WRITE_FLAG(true, "vps_sub_layer_ordering_info_present_flag");
250
251
1.25k
    for (uint32_t i = 0; i < vps.maxTempSubLayers; i++)
252
628
    {
253
628
        WRITE_UVLC(vps.maxDecPicBuffering[i] - 1, "vps_max_dec_pic_buffering_minus1[i]");
254
628
        WRITE_UVLC(vps.numReorderPics[i],         "vps_num_reorder_pics[i]");
255
628
        WRITE_UVLC(vps.maxLatencyIncrease[i] + 1, "vps_max_latency_increase_plus1[i]");
256
628
    }
257
258
#if ENABLE_ALPHA || ENABLE_MULTIVIEW
259
    if (vps.m_numLayers > 1 || vps.m_numViews > 1)
260
    {
261
        WRITE_CODE(maxLayers - 1, 6, "vps_max_nuh_reserved_zero_layer_id");
262
        WRITE_UVLC(vps.m_vpsNumLayerSetsMinus1, "vps_num_layer_sets_minus1");
263
        for (int i = 1; i <= vps.m_vpsNumLayerSetsMinus1; i++)
264
        {
265
#if ENABLE_MULTIVIEW
266
            if (vps.m_numViews > 1)
267
            {
268
                for (int j = 0; j < vps.m_numViews; j++)
269
                {
270
                    WRITE_FLAG(1, "layer_id_included_flag[opsIdx][i]");
271
                }
272
            }
273
#endif
274
#if ENABLE_ALPHA
275
            if (vps.m_numLayers > 1)
276
            {
277
                for (int j = 0; j < vps.m_numLayers; j++)
278
                {
279
                    WRITE_FLAG(1, "layer_id_included_flag[opsIdx][i]");
280
                }
281
            }
282
#endif
283
        }
284
    }
285
    else
286
    {
287
        WRITE_CODE(0, 6, "vps_max_nuh_reserved_zero_layer_id");
288
        WRITE_UVLC(0, "vps_max_op_sets_minus1");
289
    }
290
#else
291
628
    WRITE_CODE(0, 6, "vps_max_nuh_reserved_zero_layer_id");
292
628
    WRITE_UVLC(0, "vps_max_op_sets_minus1");
293
628
#endif
294
295
628
    WRITE_FLAG(0,    "vps_timing_info_present_flag"); /* we signal timing info in SPS-VUI */
296
297
#if ENABLE_ALPHA || ENABLE_MULTIVIEW
298
    if (vps.m_numLayers > 1 || vps.m_numViews > 1)
299
    {
300
        WRITE_FLAG(vps.vps_extension_flag, "vps_extension_flag");
301
302
        if (vps.vps_extension_flag)
303
        {
304
            while (m_bitIf->getNumberOfWrittenBits() % X265_BYTE != 0)
305
            {
306
                WRITE_FLAG(1, "vps_extension_alignment_bit_equal_to_one");
307
            }
308
309
            WRITE_CODE(vps.ptl.levelIdc, 8, "general_level_idc");
310
            if (vps.maxTempSubLayers > 1)
311
            {
312
                for (uint32_t i = 0; i < vps.maxTempSubLayers - 1; i++)
313
                {
314
                    WRITE_FLAG(0, "sub_layer_profile_present_flag[i]");
315
                    WRITE_FLAG(0, "sub_layer_level_present_flag[i]");
316
                }
317
                for (int i = vps.maxTempSubLayers - 1; i < 8; i++)
318
                    WRITE_CODE(0, 2, "reserved_zero_2bits");
319
            }
320
321
            WRITE_FLAG(vps.splitting_flag, "splitting flag");
322
            for (int i = 0; i < MAX_VPS_NUM_SCALABILITY_TYPES; i++)
323
            {
324
                WRITE_FLAG(vps.m_scalabilityMask[i], "scalability_mask[i]");
325
            }
326
            for (int i = 0; i < vps.scalabilityTypes - vps.splitting_flag; i++)
327
            {
328
                WRITE_CODE(vps.m_dimensionIdLen[i] - 1, 3, "dimension_id_len_minus1[i]");
329
            }
330
            WRITE_FLAG(vps.m_nuhLayerIdPresentFlag, "vps_nuh_layer_id_present_flag");
331
            for (int i = 1; i < maxLayers; i++)
332
            {
333
                if (vps.m_nuhLayerIdPresentFlag)
334
                    WRITE_CODE(vps.m_layerIdInNuh[i], 6, "layer_id_in_nuh[i]");
335
336
                if (!vps.splitting_flag)
337
                {
338
                    for (int j = 0; j < vps.scalabilityTypes; j++)
339
                    {
340
                        uint8_t bits = vps.m_dimensionIdLen[j];
341
                        WRITE_CODE(vps.m_dimensionId[i][j], bits, "dimension_id[i][j]");
342
                    }
343
                }
344
            }
345
            WRITE_CODE(vps.m_viewIdLen, 4, "view_id_len");
346
347
#if ENABLE_ALPHA
348
            if (vps.m_numLayers > 1)
349
            {
350
                WRITE_FLAG(0, "direct_dependency_flag[1][0]");
351
                WRITE_UVLC(0, "num_add_layer_sets");
352
                WRITE_FLAG(0, "vps_sub_layers_max_minus1_present_flag");
353
                WRITE_FLAG(0, "max_tid_ref_present_flag");
354
                WRITE_FLAG(0, "default_ref_layers_active_flag");
355
                WRITE_UVLC(2, "vps_num_profile_tier_level_minus1");
356
                WRITE_FLAG(1, "vps_profile_present_flag");
357
                codeProfileTier(vps.ptl, vps.maxTempSubLayers, 1);
358
359
                WRITE_UVLC(0, "num_add_olss");
360
                WRITE_CODE(0, 2, "default_output_layer_idc");
361
                WRITE_CODE(1, 2, "profile_tier_level_idx[ i ][ j ]");
362
                WRITE_CODE(2, 2, "profile_tier_level_idx[ i ][ j ]");
363
364
                WRITE_UVLC(0, "vps_num_rep_formats_minus1");
365
366
                WRITE_CODE(sps.picWidthInLumaSamples, 16, "pic_width_vps_in_luma_samples");
367
                WRITE_CODE(sps.picHeightInLumaSamples, 16, "pic_height_vps_in_luma_samples");
368
                WRITE_FLAG(1, "chroma_and_bit_depth_vps_present_flag");
369
370
                WRITE_CODE(sps.chromaFormatIdc, 2, "chroma_format_vps_idc");
371
372
                if (sps.chromaFormatIdc == X265_CSP_I444)
373
                    WRITE_FLAG(0, "separate_colour_plane_vps_flag");
374
375
                WRITE_CODE(X265_DEPTH - 8, 4, "bit_depth_vps_luma_minus8");
376
                WRITE_CODE(X265_DEPTH - 8, 4, "bit_depth_vps_chroma_minus8");
377
378
                const Window& conf = sps.conformanceWindow;
379
                WRITE_FLAG(conf.bEnabled, "conformance_window_vps_flag");
380
                if (conf.bEnabled)
381
                {
382
                    int hShift = CHROMA_H_SHIFT(sps.chromaFormatIdc), vShift = CHROMA_V_SHIFT(sps.chromaFormatIdc);
383
                    WRITE_UVLC(conf.leftOffset >> hShift, "conf_win_vps_left_offset");
384
                    WRITE_UVLC(conf.rightOffset >> hShift, "conf_win_vps_right_offset");
385
                    WRITE_UVLC(conf.topOffset >> vShift, "conf_win_vps_top_offset");
386
                    WRITE_UVLC(conf.bottomOffset >> vShift, "conf_win_vps_bottom_offset");
387
                }
388
389
                WRITE_FLAG(1, "max_one_active_ref_layer_flag");
390
                WRITE_FLAG(0, "vps_poc_lsb_aligned_flag");
391
                WRITE_FLAG(1, "poc_lsb_not_present_flag[");
392
393
                for (int i = 1; i < vps.m_vpsNumLayerSetsMinus1 + 1; i++)
394
                {
395
                    WRITE_FLAG(vps.maxTempSubLayers > 1, "sub_layer_flag_info_present_flag");
396
                    for (uint32_t j = 0; j < vps.maxTempSubLayers ; j++)
397
                    {
398
                        if(j > 0)
399
                        WRITE_FLAG(vps.maxTempSubLayers > 1, "sub_layer_dpb_info_present_flag");
400
401
                        for(int k = 0; k < vps.m_numLayersInIdList[i]; k++)
402
                            WRITE_UVLC(vps.maxDecPicBuffering[j] - 1, "vps_max_dec_pic_buffering_minus1[i]");
403
404
                        WRITE_UVLC(vps.numReorderPics[0], "vps_num_reorder_pics[i]");
405
                        WRITE_UVLC(vps.maxLatencyIncrease[0] + 1, "vps_max_latency_increase_plus1[i]");
406
                    }
407
                }
408
409
                WRITE_UVLC(0, "direct_dep_type_len_minus2");
410
411
                WRITE_FLAG(0, "default_direct_dependency_flag");
412
                WRITE_UVLC(0, "vps_non_vui_extension_length");
413
                WRITE_FLAG(0, "vps_vui_present_flag");
414
                WRITE_FLAG(0, "vps_extension2_flag");
415
        }
416
#endif
417
418
#if ENABLE_MULTIVIEW
419
            if (vps.m_numViews > 1)
420
            {
421
                for (uint8_t i = 0; i < vps.m_numViews; i++)
422
                    WRITE_CODE(i, vps.m_viewIdLen, "view_id_val[i]");
423
424
                for (int i = 1; i < vps.m_numViews; i++)
425
                {
426
                    for (int j = 0; j < i; j++)
427
                    {
428
                        if (j == 0)
429
                            WRITE_FLAG(1, "direct_dependency_flag[1][0]");
430
                        else
431
                            WRITE_FLAG(0, "direct_dependency_flag[1][0]");
432
                    }
433
                }
434
                WRITE_FLAG(0, "vps_sub_layers_max_minus1_present_flag");
435
                WRITE_FLAG(0, "max_tid_ref_present_flag");
436
                WRITE_FLAG(1, "default_ref_layers_active_flag");
437
                WRITE_UVLC(2, "vps_num_profile_tier_level_minus1");
438
                WRITE_FLAG(1, "vps_profile_present_flag[i]");
439
                codeProfileTier(vps.ptl, vps.maxTempSubLayers, 1);
440
                WRITE_UVLC(0, "num_add_olss");
441
                WRITE_CODE(0, 2, "default_output_layer_idc");
442
443
                for (int i = 1; i <= vps.m_vpsNumLayerSetsMinus1; i++)
444
                {
445
                    for (int j = 0; j < vps.m_numViews; j++)
446
                    {
447
                        WRITE_CODE((j == 0) ? 1 : 2, 2, "profile_tier_level_idx[ i ][ j ]");
448
                    }
449
                }
450
                WRITE_UVLC(0, "vps_num_rep_formats_minus1");
451
452
                WRITE_CODE(sps.picWidthInLumaSamples, 16, "pic_width_vps_in_luma_samples");
453
                WRITE_CODE(sps.picHeightInLumaSamples, 16, "pic_height_vps_in_luma_samples");
454
                WRITE_FLAG(1, "chroma_and_bit_depth_vps_present_flag");
455
456
                WRITE_CODE(sps.chromaFormatIdc, 2, "chroma_format_vps_idc");
457
458
                if (sps.chromaFormatIdc == X265_CSP_I444)
459
                    WRITE_FLAG(0, "separate_colour_plane_vps_flag");
460
461
                WRITE_CODE(X265_DEPTH - 8, 4, "bit_depth_vps_luma_minus8");
462
                WRITE_CODE(X265_DEPTH - 8, 4, "bit_depth_vps_chroma_minus8");
463
464
                const Window& conf = sps.conformanceWindow;
465
                WRITE_FLAG(conf.bEnabled, "conformance_window_vps_flag");
466
                if (conf.bEnabled)
467
                {
468
                    int hShift = CHROMA_H_SHIFT(sps.chromaFormatIdc), vShift = CHROMA_V_SHIFT(sps.chromaFormatIdc);
469
                    WRITE_UVLC(conf.leftOffset >> hShift, "conf_win_vps_left_offset");
470
                    WRITE_UVLC(conf.rightOffset >> hShift, "conf_win_vps_right_offset");
471
                    WRITE_UVLC(conf.topOffset >> vShift, "conf_win_vps_top_offset");
472
                    WRITE_UVLC(conf.bottomOffset >> vShift, "conf_win_vps_bottom_offset");
473
                }
474
475
                WRITE_FLAG(1, "max_one_active_ref_layer_flag");
476
                WRITE_FLAG(0, "vps_poc_lsb_aligned_flag");
477
478
                for (int i = 1; i < vps.m_vpsNumLayerSetsMinus1 + 1; i++)
479
                {
480
                    WRITE_FLAG(vps.maxTempSubLayers > 1, "sub_layer_flag_info_present_flag");
481
                    for (uint32_t j = 0; j < vps.maxTempSubLayers; j++)
482
                    {
483
                        if (j > 0)
484
                            WRITE_FLAG(vps.maxTempSubLayers > 1, "sub_layer_dpb_info_present_flag");
485
486
                        for (int k = 0; k < vps.m_numLayersInIdList[i]; k++)
487
                            WRITE_UVLC(vps.maxDecPicBuffering[j] - 1, "vps_max_dec_pic_buffering_minus1[i]");
488
489
                        WRITE_UVLC(vps.numReorderPics[0], "vps_num_reorder_pics[i]");
490
                        WRITE_UVLC(vps.maxLatencyIncrease[0] + 1, "vps_max_latency_increase_plus1[i]");
491
                    }
492
                }
493
494
                WRITE_UVLC(0, "direct_dep_type_len_minus2");
495
496
                WRITE_FLAG(1, "default_direct_dependency_flag");
497
                WRITE_CODE(2, 2, "default_direct_dependency_type");
498
                WRITE_UVLC(0, "vps_non_vui_extension_length");
499
                WRITE_FLAG(0, "vps_vui_present_flag");
500
                WRITE_FLAG(0, "vps_extension2_flag");
501
            }
502
#endif
503
        }
504
    }
505
    else
506
        WRITE_FLAG(0, "vps_extension_flag");
507
#else
508
628
    WRITE_FLAG(0, "vps_extension_flag");
509
628
#endif
510
628
}
511
512
void Entropy::codeSPS(const SPS& sps, const ScalingList& scalingList, const ProfileTierLevel& ptl, int layer)
513
628
{
514
628
    WRITE_CODE(0, 4, "sps_video_parameter_set_id");
515
#if ENABLE_MULTIVIEW
516
    if(layer != 0)
517
        WRITE_CODE(sps.setSpsExtOrMaxSubLayersMinus1, 3, "sps_ext_or_max_sub_layers_minus1");
518
    else
519
        WRITE_CODE(sps.maxTempSubLayers - 1, 3, "sps_max_sub_layers_minus1");
520
    if (!(layer != 0 && sps.setSpsExtOrMaxSubLayersMinus1 == 7))
521
#else
522
628
    WRITE_CODE(sps.maxTempSubLayers - 1, 3, "sps_max_sub_layers_minus1");
523
628
#endif
524
628
    {
525
628
        WRITE_FLAG(sps.maxTempSubLayers == 1, "sps_temporal_id_nesting_flag");
526
628
        codeProfileTier(ptl, sps.maxTempSubLayers);
527
628
    }
528
529
628
    WRITE_UVLC(layer, "sps_seq_parameter_set_id");
530
#if ENABLE_MULTIVIEW
531
    if (layer != 0 && sps.setSpsExtOrMaxSubLayersMinus1 == 7)
532
        WRITE_FLAG(0, "update_rep_format_flag");
533
    else
534
#endif
535
628
    {
536
628
        WRITE_UVLC(sps.chromaFormatIdc, "chroma_format_idc");
537
538
628
        if (sps.chromaFormatIdc == X265_CSP_I444)
539
0
            WRITE_FLAG(0,                       "separate_colour_plane_flag");
540
541
628
        WRITE_UVLC(sps.picWidthInLumaSamples,   "pic_width_in_luma_samples");
542
628
        WRITE_UVLC(sps.picHeightInLumaSamples,  "pic_height_in_luma_samples");
543
544
628
        const Window& conf = sps.conformanceWindow;
545
628
        WRITE_FLAG(conf.bEnabled, "conformance_window_flag");
546
628
        if (conf.bEnabled)
547
474
        {
548
474
            int hShift = CHROMA_H_SHIFT(sps.chromaFormatIdc), vShift = CHROMA_V_SHIFT(sps.chromaFormatIdc);
549
474
            WRITE_UVLC(conf.leftOffset   >> hShift, "conf_win_left_offset");
550
474
            WRITE_UVLC(conf.rightOffset  >> hShift, "conf_win_right_offset");
551
474
            WRITE_UVLC(conf.topOffset    >> vShift, "conf_win_top_offset");
552
474
            WRITE_UVLC(conf.bottomOffset >> vShift, "conf_win_bottom_offset");
553
474
        }
554
555
628
        WRITE_UVLC(X265_DEPTH - 8,   "bit_depth_luma_minus8");
556
628
        WRITE_UVLC(X265_DEPTH - 8,   "bit_depth_chroma_minus8");
557
628
    }
558
559
628
    WRITE_UVLC(sps.log2MaxPocLsb - 4, "log2_max_pic_order_cnt_lsb_minus4");
560
#if ENABLE_MULTIVIEW
561
    if (!(layer != 0 && sps.setSpsExtOrMaxSubLayersMinus1 == 7))
562
#endif
563
628
    {
564
628
        WRITE_FLAG(true,             "sps_sub_layer_ordering_info_present_flag");
565
566
1.25k
        for (uint32_t i = 0; i < sps.maxTempSubLayers; i++)
567
628
        {
568
628
            WRITE_UVLC(sps.maxDecPicBuffering[i] - 1, "sps_max_dec_pic_buffering_minus1[i]");
569
628
            WRITE_UVLC(sps.numReorderPics[i],         "sps_num_reorder_pics[i]");
570
628
            WRITE_UVLC(sps.maxLatencyIncrease[i] + 1, "sps_max_latency_increase_plus1[i]");
571
628
        }
572
628
    }
573
574
628
    WRITE_UVLC(sps.log2MinCodingBlockSize - 3,    "log2_min_coding_block_size_minus3");
575
628
    WRITE_UVLC(sps.log2DiffMaxMinCodingBlockSize, "log2_diff_max_min_coding_block_size");
576
628
    WRITE_UVLC(sps.quadtreeTULog2MinSize - 2,     "log2_min_transform_block_size_minus2");
577
628
    WRITE_UVLC(sps.quadtreeTULog2MaxSize - sps.quadtreeTULog2MinSize, "log2_diff_max_min_transform_block_size");
578
628
    WRITE_UVLC(sps.quadtreeTUMaxDepthInter - 1,   "max_transform_hierarchy_depth_inter");
579
628
    WRITE_UVLC(sps.quadtreeTUMaxDepthIntra - 1,   "max_transform_hierarchy_depth_intra");
580
628
    WRITE_FLAG(scalingList.m_bEnabled,            "scaling_list_enabled_flag");
581
628
    if (scalingList.m_bEnabled)
582
0
    {
583
#if ENABLE_MULTIVIEW
584
        if ((layer != 0 && sps.setSpsExtOrMaxSubLayersMinus1 == 7))
585
            WRITE_FLAG(sps.spsInferScalingListFlag, "sps_infer_scaling_list_flag");
586
        if(sps.spsInferScalingListFlag)
587
            WRITE_CODE(0, 6, "sps_scaling_list_ref_layer_id");
588
        else
589
#endif
590
0
        {
591
0
            WRITE_FLAG(scalingList.m_bDataPresent, "sps_scaling_list_data_present_flag");
592
0
            if (scalingList.m_bDataPresent)
593
0
                codeScalingList(scalingList);
594
0
        }
595
0
    }
596
628
    WRITE_FLAG(sps.bUseAMP, "amp_enabled_flag");
597
628
    WRITE_FLAG(sps.bUseSAO, "sample_adaptive_offset_enabled_flag");
598
599
628
    WRITE_FLAG(0, "pcm_enabled_flag");
600
628
    WRITE_UVLC(sps.spsrpsNum, "num_short_term_ref_pic_sets");
601
628
    for (int i = 0; i < sps.spsrpsNum; i++)
602
0
        codeShortTermRefPicSet(sps.spsrps[i], i);
603
628
    WRITE_FLAG(0, "long_term_ref_pics_present_flag");
604
605
628
    WRITE_FLAG(sps.bTemporalMVPEnabled, "sps_temporal_mvp_enable_flag");
606
628
    WRITE_FLAG(sps.bUseStrongIntraSmoothing, "sps_strong_intra_smoothing_enable_flag");
607
608
628
    WRITE_FLAG(1, "vui_parameters_present_flag");
609
628
    codeVUI(sps.vuiParameters, sps.maxTempSubLayers, sps.bEmitVUITimingInfo, sps.bEmitVUIHRDInfo, layer);
610
611
628
    WRITE_FLAG(sps.sps_extension_flag, "sps_extension_flag");
612
613
#if ENABLE_MULTIVIEW
614
    if (sps.sps_extension_flag && sps.maxViews > 1)
615
    {
616
        WRITE_FLAG(0, "sps_range_extensions_flag");
617
        WRITE_FLAG(sps.maxViews > 1, "sps_multilayer_extension_flag");
618
        WRITE_FLAG(0, "sps_3d_extension_flag");
619
        WRITE_CODE(0, 5, "sps_extension_5bits");
620
621
        if (layer == 0)
622
            WRITE_FLAG(0, "inter_view_mv_vert_constraint_flag");
623
        else
624
            WRITE_FLAG(1, "inter_view_mv_vert_constraint_flag");
625
    }
626
#endif
627
628
#if ENABLE_SCC_EXT
629
    if (ptl.profileIdc[0] == Profile::MAINSCC)
630
    {
631
        bool sps_extension_flags[NUM_EXTENSION_FLAGS] = { false };
632
        sps_extension_flags[SCC_EXT_IDX] = true;
633
        for (int i = 0; i < NUM_EXTENSION_FLAGS; i++)
634
            WRITE_FLAG(sps_extension_flags[i], "sps_extension_flag");
635
        WRITE_FLAG(1, "intra_block_copy_enabled_flag");
636
        WRITE_FLAG(0, "palette_mode_enabled_flag");
637
        WRITE_CODE(0, 2, "motion_vector_resolution_control_idc");
638
        WRITE_FLAG(0, "intra_boundary_filter_disabled_flag");
639
    }
640
#endif
641
628
}
642
643
void Entropy::codePPS( const PPS& pps, bool filerAcross, int iPPSInitQpMinus26, int layer)
644
628
{
645
628
    WRITE_UVLC(layer,                          "pps_pic_parameter_set_id");
646
628
    WRITE_UVLC(layer,                          "pps_seq_parameter_set_id");
647
628
    WRITE_FLAG(0,                          "dependent_slice_segments_enabled_flag");
648
628
    WRITE_FLAG(0,                          "output_flag_present_flag");
649
628
    WRITE_CODE(pps.maxViews > 1 ? 2 : 0, 3,"num_extra_slice_header_bits");
650
628
    WRITE_FLAG(pps.bSignHideEnabled,       "sign_data_hiding_flag");
651
628
    WRITE_FLAG(0,                          "cabac_init_present_flag");
652
628
    WRITE_UVLC(pps.numRefIdxDefault[0] - 1, "num_ref_idx_l0_default_active_minus1");
653
628
    WRITE_UVLC(pps.numRefIdxDefault[1] - 1, "num_ref_idx_l1_default_active_minus1");
654
655
628
    WRITE_SVLC(iPPSInitQpMinus26,         "init_qp_minus26");
656
628
    WRITE_FLAG(pps.bConstrainedIntraPred, "constrained_intra_pred_flag");
657
628
    WRITE_FLAG(pps.bTransformSkipEnabled, "transform_skip_enabled_flag");
658
659
628
    WRITE_FLAG(pps.bUseDQP,                "cu_qp_delta_enabled_flag");
660
628
    if (pps.bUseDQP)
661
478
        WRITE_UVLC(pps.maxCuDQPDepth,      "diff_cu_qp_delta_depth");
662
663
628
    WRITE_SVLC(pps.chromaQpOffset[0],      "pps_cb_qp_offset");
664
628
    WRITE_SVLC(pps.chromaQpOffset[1],      "pps_cr_qp_offset");
665
628
    WRITE_FLAG(pps.pps_slice_chroma_qp_offsets_present_flag, "pps_slice_chroma_qp_offsets_present_flag");
666
667
628
    WRITE_FLAG(layer ? 0 : pps.bUseWeightPred,            "weighted_pred_flag");
668
628
    WRITE_FLAG(layer ? 0 : pps.bUseWeightedBiPred,        "weighted_bipred_flag");
669
628
    WRITE_FLAG(pps.bTransquantBypassEnabled,  "transquant_bypass_enable_flag");
670
628
    WRITE_FLAG(0,                             "tiles_enabled_flag");
671
628
    WRITE_FLAG(pps.bEntropyCodingSyncEnabled, "entropy_coding_sync_enabled_flag");
672
628
    WRITE_FLAG(filerAcross,                   "loop_filter_across_slices_enabled_flag");
673
674
628
    WRITE_FLAG(pps.bDeblockingFilterControlPresent, "deblocking_filter_control_present_flag");
675
628
    if (pps.bDeblockingFilterControlPresent)
676
0
    {
677
0
        WRITE_FLAG(0,                               "deblocking_filter_override_enabled_flag");
678
0
        WRITE_FLAG(pps.bPicDisableDeblockingFilter, "pps_disable_deblocking_filter_flag");
679
0
        if (!pps.bPicDisableDeblockingFilter)
680
0
        {
681
0
            WRITE_SVLC(pps.deblockingFilterBetaOffsetDiv2, "pps_beta_offset_div2");
682
0
            WRITE_SVLC(pps.deblockingFilterTcOffsetDiv2,   "pps_tc_offset_div2");
683
0
        }
684
0
    }
685
686
628
    WRITE_FLAG(0, "pps_scaling_list_data_present_flag");
687
628
    WRITE_FLAG(0, "lists_modification_present_flag");
688
628
    WRITE_UVLC(0, "log2_parallel_merge_level_minus2");
689
628
    WRITE_FLAG(0, "slice_segment_header_extension_present_flag");
690
628
    WRITE_FLAG(pps.pps_extension_flag, "pps_extension_flag");
691
692
#if ENABLE_MULTIVIEW
693
    if (pps.pps_extension_flag && pps.maxViews > 1)
694
    {
695
        WRITE_FLAG(0, "pps_range_extensions_flag");
696
        WRITE_FLAG(pps.maxViews > 1, "pps_multilayer_extension_flag");
697
        WRITE_FLAG(0, "pps_3d_extension_flag");
698
        WRITE_CODE(0, 5, "pps_extension_5bits");
699
700
        if (pps.maxViews > 1)
701
        {
702
            WRITE_FLAG(0, "poc_reset_info_present_flag");
703
            WRITE_FLAG(0, "pps_infer_scaling_list_flag");
704
            WRITE_UVLC(0, "num_ref_loc_offsets");
705
            WRITE_FLAG(0, "colour_mapping_enabled_flag");
706
        }
707
    }
708
#endif
709
710
711
#if ENABLE_SCC_EXT
712
    if (pps.profileIdc == Profile::MAINSCC)
713
    {
714
        bool pps_extension_flags[NUM_EXTENSION_FLAGS] = { false };
715
        pps_extension_flags[SCC_EXT_IDX] = true;
716
        for (int i = 0; i < NUM_EXTENSION_FLAGS; i++)
717
            WRITE_FLAG(pps_extension_flags[i], "pps_extension_flag");
718
        WRITE_FLAG(1, "curr_pic_as_ref_enabled_pps_flag");
719
        WRITE_FLAG(0, "adaptive_colour_trans_flag");
720
        WRITE_FLAG(0, "palette_predictor_initializer_flag");
721
    }
722
#endif
723
628
}
724
725
void Entropy::codeProfileTier(const ProfileTierLevel& ptl, int maxTempSubLayers, int layer)
726
1.25k
{
727
1.25k
    WRITE_CODE(0, 2,                "XXX_profile_space[]");
728
1.25k
    WRITE_FLAG(ptl.tierFlag,        "XXX_tier_flag[]");
729
1.25k
    WRITE_CODE(ptl.profileIdc[layer], 5,   "XXX_profile_idc[]");
730
41.4k
    for (int j = 0; j < 32; j++)
731
40.1k
    {
732
40.1k
        if (layer)
733
0
            WRITE_FLAG(j == ptl.profileIdc[layer] ? 1 : 0, "XXX_profile_compatibility_flag[][j]");
734
40.1k
        else
735
40.1k
            WRITE_FLAG(ptl.profileCompatibilityFlag[j], "XXX_profile_compatibility_flag[][j]");
736
40.1k
    }
737
738
1.25k
    WRITE_FLAG(ptl.progressiveSourceFlag,   "general_progressive_source_flag");
739
1.25k
    WRITE_FLAG(ptl.interlacedSourceFlag,    "general_interlaced_source_flag");
740
1.25k
    WRITE_FLAG(ptl.nonPackedConstraintFlag, "general_non_packed_constraint_flag");
741
1.25k
    WRITE_FLAG(ptl.frameOnlyConstraintFlag, "general_frame_only_constraint_flag");
742
743
1.25k
    if (ptl.profileIdc[layer] == Profile::MAINREXT || ptl.profileIdc[layer] == Profile::HIGHTHROUGHPUTREXT || ptl.profileIdc[layer] == Profile::SCALABLEMAIN || ptl.profileIdc[layer] == Profile::SCALABLEMAIN10 || ptl.profileIdc[layer] == Profile::MULTIVIEWMAIN || ptl.profileIdc[layer] == Profile::MAINSCC)
744
0
    {
745
0
        uint32_t bitDepthConstraint = ptl.bitDepthConstraint;
746
0
        int csp = ptl.chromaFormatConstraint;
747
0
        WRITE_FLAG(bitDepthConstraint<=12, "general_max_12bit_constraint_flag");
748
0
        WRITE_FLAG(bitDepthConstraint<=10, "general_max_10bit_constraint_flag");
749
0
        WRITE_FLAG(bitDepthConstraint<= 8 && csp != X265_CSP_I422 , "general_max_8bit_constraint_flag");
750
0
        WRITE_FLAG(csp == X265_CSP_I422 || csp == X265_CSP_I420 || csp == X265_CSP_I400, "general_max_422chroma_constraint_flag");
751
0
        WRITE_FLAG(csp == X265_CSP_I420 || csp == X265_CSP_I400,                         "general_max_420chroma_constraint_flag");
752
0
        WRITE_FLAG(csp == X265_CSP_I400,                                                 "general_max_monochrome_constraint_flag");
753
0
        WRITE_FLAG(ptl.intraConstraintFlag,        "general_intra_constraint_flag");
754
0
        WRITE_FLAG(ptl.onePictureOnlyConstraintFlag,"general_one_picture_only_constraint_flag");
755
0
        WRITE_FLAG(ptl.lowerBitRateConstraintFlag, "general_lower_bit_rate_constraint_flag");
756
0
        if (ptl.profileIdc[layer] == Profile::MAINSCC)
757
0
        {
758
0
            WRITE_FLAG(bitDepthConstraint <= 14, "max_14bit_constraint_flag");
759
0
            WRITE_CODE(0, 16, "reserved_zero_33bits[0..15]");
760
0
            WRITE_CODE(0, 16, "reserved_zero_33bits[16..31]");
761
0
            WRITE_FLAG(0, "reserved_zero_33bits[32]");
762
0
        }
763
0
        else
764
0
        {
765
0
            WRITE_CODE(0, 16, "XXX_reserved_zero_35bits[0..15]");
766
0
            WRITE_CODE(0, 16, "XXX_reserved_zero_35bits[16..31]");
767
0
            WRITE_CODE(0, 3, "XXX_reserved_zero_35bits[32..34]");
768
0
        }
769
0
    }
770
1.25k
    else
771
1.25k
    {
772
1.25k
        WRITE_CODE(0, 16, "XXX_reserved_zero_44bits[0..15]");
773
1.25k
        WRITE_CODE(0, 16, "XXX_reserved_zero_44bits[16..31]");
774
1.25k
        WRITE_CODE(0, 12, "XXX_reserved_zero_44bits[32..43]");
775
1.25k
    }
776
1.25k
    if (ptl.profileIdc[layer] == Profile::MAINSCC)
777
0
        WRITE_FLAG(false, "inbld_flag");
778
779
1.25k
    WRITE_CODE(ptl.levelIdc, 8, "general_level_idc");
780
781
1.25k
    if (maxTempSubLayers > 1)
782
0
    {
783
0
        for(int i = 0; i < maxTempSubLayers - 1; i++)
784
0
        {
785
0
            WRITE_FLAG(0, "sub_layer_profile_present_flag[i]");
786
0
            WRITE_FLAG(0, "sub_layer_level_present_flag[i]");
787
0
        }
788
0
         for (int i = maxTempSubLayers - 1; i < 8 ; i++)
789
0
             WRITE_CODE(0, 2, "reserved_zero_2bits");
790
0
    }
791
1.25k
}
792
793
void Entropy::codeVUI(const VUI& vui, int maxSubTLayers, bool bEmitVUITimingInfo, bool bEmitVUIHRDInfo, int layer)
794
628
{
795
628
    WRITE_FLAG(vui.aspectRatioInfoPresentFlag, "aspect_ratio_info_present_flag");
796
628
    if (vui.aspectRatioInfoPresentFlag)
797
0
    {
798
0
        WRITE_CODE(vui.aspectRatioIdc, 8, "aspect_ratio_idc");
799
0
        if (vui.aspectRatioIdc == 255)
800
0
        {
801
0
            WRITE_CODE(vui.sarWidth, 16, "sar_width");
802
0
            WRITE_CODE(vui.sarHeight, 16, "sar_height");
803
0
        }
804
0
    }
805
806
628
    WRITE_FLAG(vui.overscanInfoPresentFlag, "overscan_info_present_flag");
807
628
    if (vui.overscanInfoPresentFlag)
808
0
        WRITE_FLAG(vui.overscanAppropriateFlag, "overscan_appropriate_flag");
809
810
628
    WRITE_FLAG(vui.videoSignalTypePresentFlag, "video_signal_type_present_flag");
811
628
    if (vui.videoSignalTypePresentFlag)
812
628
    {
813
628
        WRITE_CODE(vui.videoFormat, 3, "video_format");
814
628
        WRITE_FLAG(vui.videoFullRangeFlag, "video_full_range_flag");
815
628
        WRITE_FLAG(vui.colourDescriptionPresentFlag, "colour_description_present_flag");
816
628
        if (vui.colourDescriptionPresentFlag)
817
0
        {
818
0
            WRITE_CODE(vui.colourPrimaries, 8, "colour_primaries");
819
0
            WRITE_CODE(vui.transferCharacteristics, 8, "transfer_characteristics");
820
0
            WRITE_CODE(vui.matrixCoefficients, 8, "matrix_coefficients");
821
0
        }
822
628
    }
823
824
628
    WRITE_FLAG(vui.chromaLocInfoPresentFlag, "chroma_loc_info_present_flag");
825
628
    if (vui.chromaLocInfoPresentFlag)
826
0
    {
827
0
        WRITE_UVLC(vui.chromaSampleLocTypeTopField, "chroma_sample_loc_type_top_field");
828
0
        WRITE_UVLC(vui.chromaSampleLocTypeBottomField, "chroma_sample_loc_type_bottom_field");
829
0
    }
830
831
628
    WRITE_FLAG(0, "neutral_chroma_indication_flag");
832
628
    WRITE_FLAG(vui.fieldSeqFlag, "field_seq_flag");
833
628
    WRITE_FLAG(vui.frameFieldInfoPresentFlag, "frame_field_info_present_flag");
834
835
628
    WRITE_FLAG(vui.defaultDisplayWindow.bEnabled, "default_display_window_flag");
836
628
    if (vui.defaultDisplayWindow.bEnabled)
837
0
    {
838
0
        WRITE_UVLC(vui.defaultDisplayWindow.leftOffset, "def_disp_win_left_offset");
839
0
        WRITE_UVLC(vui.defaultDisplayWindow.rightOffset, "def_disp_win_right_offset");
840
0
        WRITE_UVLC(vui.defaultDisplayWindow.topOffset, "def_disp_win_top_offset");
841
0
        WRITE_UVLC(vui.defaultDisplayWindow.bottomOffset, "def_disp_win_bottom_offset");
842
0
    }
843
844
628
    if(layer)
845
0
        WRITE_FLAG(0, "vui_timing_info_present_flag");
846
628
    else
847
628
    {
848
628
        if (!bEmitVUITimingInfo)
849
0
            WRITE_FLAG(0, "vui_timing_info_present_flag");
850
628
        else
851
628
        {
852
628
            WRITE_FLAG(1, "vui_timing_info_present_flag");
853
628
            WRITE_CODE(vui.timingInfo.numUnitsInTick, 32, "vui_num_units_in_tick");
854
628
            WRITE_CODE(vui.timingInfo.timeScale, 32, "vui_time_scale");
855
628
            WRITE_FLAG(0, "vui_poc_proportional_to_timing_flag");
856
628
            if (!bEmitVUIHRDInfo)
857
0
                WRITE_FLAG(0, "vui_hrd_parameters_present_flag");
858
628
            else
859
628
            {
860
628
                WRITE_FLAG(vui.hrdParametersPresentFlag, "vui_hrd_parameters_present_flag");
861
628
                if (vui.hrdParametersPresentFlag)
862
0
                    codeHrdParameters(vui.hrdParameters, maxSubTLayers);
863
628
            }
864
628
        }
865
628
    }
866
867
628
    WRITE_FLAG(0, "bitstream_restriction_flag");
868
628
}
869
870
void Entropy::codeScalingList(const ScalingList& scalingList)
871
0
{
872
0
    for (int sizeId = 0; sizeId < ScalingList::NUM_SIZES; sizeId++)
873
0
    {
874
0
        for (int listId = 0; listId < ScalingList::NUM_LISTS; listId += (sizeId == 3) ? 3 : 1)
875
0
        {
876
0
            int predList = scalingList.checkPredMode(sizeId, listId);
877
0
            WRITE_FLAG(predList < 0, "scaling_list_pred_mode_flag");
878
0
            if (predList >= 0)
879
0
                WRITE_UVLC(listId - predList, "scaling_list_pred_matrix_id_delta");
880
0
            else // DPCM Mode
881
0
                codeScalingList(scalingList, sizeId, listId);
882
0
        }
883
0
    }
884
0
}
885
886
void Entropy::codeScalingList(const ScalingList& scalingList, uint32_t sizeId, uint32_t listId)
887
0
{
888
0
    int coefNum = X265_MIN(ScalingList::MAX_MATRIX_COEF_NUM, (int)ScalingList::s_numCoefPerSize[sizeId]);
889
0
    const uint16_t* scan = (sizeId == 0 ? g_scan4x4[SCAN_DIAG] : g_scan8x8diag);
890
0
    int nextCoef = START_VALUE;
891
0
    int32_t *src = scalingList.m_scalingListCoef[sizeId][listId];
892
0
    int data;
893
894
0
    if (sizeId > BLOCK_8x8)
895
0
    {
896
0
        WRITE_SVLC(scalingList.m_scalingListDC[sizeId][listId] - 8, "scaling_list_dc_coef_minus8");
897
0
        nextCoef = scalingList.m_scalingListDC[sizeId][listId];
898
0
    }
899
0
    for (int i = 0; i < coefNum; i++)
900
0
    {
901
0
        data = src[scan[i]] - nextCoef;
902
0
        if (data < -128)
903
0
            data += 256;
904
0
        if (data > 127)
905
0
            data -= 256;
906
0
        nextCoef = (nextCoef + data + 256) % 256;
907
0
        WRITE_SVLC(data,  "scaling_list_delta_coef");
908
0
    }
909
0
}
910
911
void Entropy::codeHrdParameters(const HRDInfo& hrd, int maxSubTLayers)
912
0
{
913
0
    WRITE_FLAG(1, "nal_hrd_parameters_present_flag");
914
0
    WRITE_FLAG(0, "vcl_hrd_parameters_present_flag");
915
0
    WRITE_FLAG(0, "sub_pic_hrd_params_present_flag");
916
917
0
    WRITE_CODE(hrd.bitRateScale, 4, "bit_rate_scale");
918
0
    WRITE_CODE(hrd.cpbSizeScale, 4, "cpb_size_scale");
919
920
0
    WRITE_CODE(hrd.initialCpbRemovalDelayLength - 1, 5, "initial_cpb_removal_delay_length_minus1");
921
0
    WRITE_CODE(hrd.cpbRemovalDelayLength - 1,        5, "au_cpb_removal_delay_length_minus1");
922
0
    WRITE_CODE(hrd.dpbOutputDelayLength - 1,         5, "dpb_output_delay_length_minus1");
923
924
0
    for (int i = 0; i < maxSubTLayers; i++)
925
0
    {
926
0
        WRITE_FLAG(1, "fixed_pic_rate_general_flag");
927
0
        WRITE_UVLC(0, "elemental_duration_in_tc_minus1");
928
0
        WRITE_UVLC(0, "cpb_cnt_minus1");
929
930
0
        WRITE_UVLC(hrd.bitRateValue - 1, "bit_rate_value_minus1");
931
0
        WRITE_UVLC(hrd.cpbSizeValue - 1, "cpb_size_value_minus1");
932
0
        WRITE_FLAG(hrd.cbrFlag, "cbr_flag");
933
0
    }
934
0
}
935
936
void Entropy::codeAUD(const Slice& slice)
937
0
{
938
0
    int picType;
939
940
0
    switch (slice.m_sliceType)
941
0
    {
942
0
    case I_SLICE:
943
0
        picType = 0;
944
0
        break;
945
0
    case P_SLICE:
946
0
        picType = 1;
947
0
        break;
948
0
    case B_SLICE:
949
0
        picType = 2;
950
0
        break;
951
0
    default:
952
0
        picType = 7;
953
0
        break;
954
0
    }
955
956
0
    WRITE_CODE(picType, 3, "pic_type");
957
0
}
958
959
void Entropy::codeSliceHeader(const Slice& slice, FrameData& encData, uint32_t slice_addr, uint32_t slice_addr_bits, int sliceQp, int layer)
960
628
{
961
628
    WRITE_FLAG((slice_addr == 0 ? 1 : 0), "first_slice_segment_in_pic_flag");
962
628
    if (slice.getRapPicFlag())
963
628
        WRITE_FLAG(0, "no_output_of_prior_pics_flag");
964
965
628
    WRITE_UVLC(layer, "slice_pic_parameter_set_id");
966
967
    /* x265 does not use dependent slices, so always write all this data */
968
628
    if (slice_addr)
969
0
    {
970
        // if( dependent_slice_segments_enabled_flag )
971
        //     dependent_slice_segment_flag             u(1)
972
0
        WRITE_CODE(slice_addr, slice_addr_bits, "slice_segment_address");
973
0
    }
974
975
#if ENABLE_MULTIVIEW
976
    if (encData.m_param->numViews > 1)
977
    {
978
        int esb = 0;
979
        if (2 > esb)
980
        {
981
            esb++;
982
            WRITE_FLAG(0, "discardable_flag");
983
        }
984
        if (2 > esb)
985
        {
986
            esb++;
987
            WRITE_FLAG(0, "cross_layer_bla_flag");
988
        }
989
    }
990
#endif
991
992
628
    WRITE_UVLC(slice.m_sliceType, "slice_type");
993
994
628
    if ((slice.m_param->numViews > 1 && layer > 0) || !slice.getIdrPicFlag())
995
0
    {
996
0
        int picOrderCntLSB = (slice.m_poc - slice.m_lastIDR + (1 << slice.m_sps->log2MaxPocLsb)) % (1 << slice.m_sps->log2MaxPocLsb);
997
0
        WRITE_CODE(picOrderCntLSB, slice.m_sps->log2MaxPocLsb, "pic_order_cnt_lsb");
998
0
    }
999
628
    if (!slice.getIdrPicFlag())
1000
0
    {
1001
#if _DEBUG || CHECKED_BUILD
1002
        // check for bitstream restriction stating that:
1003
        // If the current picture is a BLA or CRA picture, the value of NumPocTotalCurr shall be equal to 0.
1004
        // Ideally this process should not be repeated for each slice in a picture
1005
        if (slice.isIRAP())
1006
            for (int picIdx = 0; picIdx < slice.m_rps.numberOfPictures; picIdx++)
1007
            {
1008
                X265_CHECK(!slice.m_rps.bUsed[picIdx], "pic unused failure\n");
1009
            }
1010
#endif
1011
1012
0
        if (slice.m_rpsIdx < 0)
1013
0
        {
1014
0
            WRITE_FLAG(0, "short_term_ref_pic_set_sps_flag");
1015
0
            codeShortTermRefPicSet(slice.m_rps, slice.m_sps->spsrpsNum);
1016
0
        }
1017
0
        else
1018
0
        {
1019
0
            WRITE_FLAG(1, "short_term_ref_pic_set_sps_flag");
1020
0
            int numBits = 0;
1021
0
            while ((1 << numBits) < slice.m_iNumRPSInSPS)
1022
0
                numBits++;
1023
1024
0
            if (numBits > 0)
1025
0
                WRITE_CODE(slice.m_rpsIdx, numBits, "short_term_ref_pic_set_idx");
1026
0
        }
1027
1028
0
        if (slice.m_sps->bTemporalMVPEnabled)
1029
#if ENABLE_SCC_EXT
1030
            WRITE_FLAG(slice.m_bTemporalMvp, "slice_temporal_mvp_enable_flag");
1031
#else
1032
0
            WRITE_FLAG(1, "slice_temporal_mvp_enable_flag");
1033
0
#endif
1034
0
    }
1035
628
    const SAOParam *saoParam = encData.m_saoParam;
1036
628
    if (slice.m_bUseSao)
1037
628
    {
1038
628
        WRITE_FLAG(saoParam->bSaoFlag[0], "slice_sao_luma_flag");
1039
628
        if (encData.m_param->internalCsp != X265_CSP_I400)
1040
628
            WRITE_FLAG(saoParam->bSaoFlag[1], "slice_sao_chroma_flag");
1041
628
    }
1042
0
    else if(encData.m_param->selectiveSAO)
1043
0
    {
1044
0
        WRITE_FLAG(0, "slice_sao_luma_flag");
1045
0
        if (encData.m_param->internalCsp != X265_CSP_I400)
1046
0
            WRITE_FLAG(0, "slice_sao_chroma_flag");
1047
0
    }
1048
1049
    // check if numRefIdx match the defaults (1, hard-coded in PPS). If not, override
1050
    // TODO: this might be a place to optimize a few bits per slice, by using param->refs for L0 default
1051
1052
628
    if (!slice.isIntra())
1053
0
    {
1054
0
        bool overrideFlag = (slice.m_numRefIdx[0] != slice.numRefIdxDefault[0] || (slice.isInterB() && slice.m_numRefIdx[1] != slice.numRefIdxDefault[1]));
1055
0
        WRITE_FLAG(overrideFlag, "num_ref_idx_active_override_flag");
1056
0
        if (overrideFlag)
1057
0
        {
1058
0
            WRITE_UVLC(slice.m_numRefIdx[0] - 1, "num_ref_idx_l0_active_minus1");
1059
0
            if (slice.isInterB())
1060
0
                WRITE_UVLC(slice.m_numRefIdx[1] - 1, "num_ref_idx_l1_active_minus1");
1061
0
            else
1062
0
            {
1063
0
                X265_CHECK(slice.m_numRefIdx[1] == 0, "expected no L1 references for P slice\n");
1064
0
            }
1065
0
        }
1066
0
    }
1067
628
    else
1068
628
    {
1069
628
        X265_CHECK(!slice.m_numRefIdx[0] && !slice.m_numRefIdx[1], "expected no references for I slice\n");
1070
628
    }
1071
1072
628
    if (slice.isInterB())
1073
0
        WRITE_FLAG(0, "mvd_l1_zero_flag");
1074
1075
#if ENABLE_SCC_EXT
1076
    if (slice.m_bTemporalMvp)
1077
#else
1078
628
    if (slice.m_sps->bTemporalMVPEnabled)
1079
628
#endif
1080
628
    {
1081
628
        if (slice.m_sliceType == B_SLICE)
1082
0
            WRITE_FLAG(slice.m_colFromL0Flag, "collocated_from_l0_flag");
1083
1084
628
        if (slice.m_sliceType != I_SLICE &&
1085
0
            ((slice.m_colFromL0Flag && slice.m_numRefIdx[0] > 1) ||
1086
0
            (!slice.m_colFromL0Flag && slice.m_numRefIdx[1] > 1)))
1087
0
        {
1088
0
            WRITE_UVLC(slice.m_colRefIdx, "collocated_ref_idx");
1089
0
        }
1090
628
    }
1091
628
    if (((slice.m_pps->bUseWeightPred && slice.m_sliceType == P_SLICE) || (slice.m_pps->bUseWeightedBiPred && slice.m_sliceType == B_SLICE)) && !layer)
1092
0
        codePredWeightTable(slice);
1093
1094
628
    X265_CHECK(slice.m_maxNumMergeCand <= MRG_MAX_NUM_CANDS, "too many merge candidates\n");
1095
628
    if (!slice.isIntra())
1096
0
        WRITE_UVLC(MRG_MAX_NUM_CANDS - slice.m_maxNumMergeCand, "five_minus_max_num_merge_cand");
1097
1098
628
    int code = sliceQp - (slice.m_iPPSQpMinus26 + 26);
1099
628
    WRITE_SVLC(code, "slice_qp_delta");
1100
1101
628
    if (slice.m_pps->pps_slice_chroma_qp_offsets_present_flag)
1102
0
    {
1103
0
        WRITE_SVLC(slice.m_chromaQpOffset[0], "slice_cb_qp_offset");
1104
0
        WRITE_SVLC(slice.m_chromaQpOffset[1], "slice_cr_qp_offset");
1105
0
    }
1106
    // TODO: Enable when pps_loop_filter_across_slices_enabled_flag==1
1107
    //       We didn't support filter across slice board, so disable it now
1108
1109
628
    if (encData.m_param->maxSlices <= 1)
1110
628
    {
1111
628
        bool isSAOEnabled = slice.m_sps->bUseSAO && slice.m_bUseSao ? saoParam->bSaoFlag[0] || saoParam->bSaoFlag[1] : false;
1112
628
        bool isDBFEnabled = !slice.m_pps->bPicDisableDeblockingFilter;
1113
1114
628
        if (isSAOEnabled || isDBFEnabled)
1115
628
            WRITE_FLAG(slice.m_sLFaseFlag, "slice_loop_filter_across_slices_enabled_flag");
1116
628
    }
1117
628
}
1118
1119
/** write wavefront substreams sizes for the slice header */
1120
void Entropy::codeSliceHeaderWPPEntryPoints(const uint32_t *substreamSizes, uint32_t numSubStreams, uint32_t maxOffset)
1121
505
{
1122
505
    uint32_t offsetLen = 1;
1123
2.87k
    while (maxOffset >= (1U << offsetLen))
1124
2.37k
    {
1125
2.37k
        offsetLen++;
1126
2.37k
        X265_CHECK(offsetLen < 32, "offsetLen is too large\n");
1127
2.37k
    }
1128
1129
505
    WRITE_UVLC(numSubStreams, "num_entry_point_offsets");
1130
505
    if (numSubStreams > 0)
1131
505
        WRITE_UVLC(offsetLen - 1, "offset_len_minus1");
1132
1133
2.70k
    for (uint32_t i = 0; i < numSubStreams; i++)
1134
2.20k
        WRITE_CODE(substreamSizes[i] - 1, offsetLen, "entry_point_offset_minus1");
1135
505
}
1136
1137
void Entropy::codeShortTermRefPicSet(const RPS& rps, int idx)
1138
0
{
1139
0
    if (idx > 0)
1140
0
        WRITE_FLAG(0, "inter_ref_pic_set_prediction_flag");
1141
1142
0
    WRITE_UVLC(rps.numberOfNegativePictures, "num_negative_pics");
1143
0
    WRITE_UVLC(rps.numberOfPositivePictures, "num_positive_pics");
1144
0
    int prev = 0;
1145
0
    for (int j = 0; j < rps.numberOfNegativePictures; j++)
1146
0
    {
1147
0
        WRITE_UVLC(prev - rps.deltaPOC[j] - 1, "delta_poc_s0_minus1");
1148
0
        prev = rps.deltaPOC[j];
1149
0
        WRITE_FLAG(rps.bUsed[j], "used_by_curr_pic_s0_flag");
1150
0
    }
1151
1152
0
    prev = 0;
1153
0
    for (int j = rps.numberOfNegativePictures; j < rps.numberOfNegativePictures + rps.numberOfPositivePictures; j++)
1154
0
    {
1155
0
        WRITE_UVLC(rps.deltaPOC[j] - prev - 1, "delta_poc_s1_minus1");
1156
0
        prev = rps.deltaPOC[j];
1157
0
        WRITE_FLAG(rps.bUsed[j], "used_by_curr_pic_s1_flag");
1158
0
    }
1159
0
}
1160
1161
void Entropy::encodeCTU(const CUData& ctu, const CUGeom& cuGeom)
1162
26.3k
{
1163
26.3k
    bool bEncodeDQP = ctu.m_slice->m_pps->bUseDQP;
1164
26.3k
    encodeCU(ctu, cuGeom, 0, 0, bEncodeDQP);
1165
26.3k
}
1166
1167
/* encode a CU block recursively */
1168
void Entropy::encodeCU(const CUData& ctu, const CUGeom& cuGeom, uint32_t absPartIdx, uint32_t depth, bool& bEncodeDQP)
1169
109k
{
1170
109k
    const Slice* slice = ctu.m_slice;
1171
1172
109k
    int cuSplitFlag = !(cuGeom.flags & CUGeom::LEAF);
1173
109k
    int cuUnsplitFlag = !(cuGeom.flags & CUGeom::SPLIT_MANDATORY);
1174
1175
109k
    if (!cuUnsplitFlag)
1176
24.0k
    {
1177
24.0k
        uint32_t qNumParts = cuGeom.numPartitions >> 2;
1178
24.0k
        if (depth == slice->m_pps->maxCuDQPDepth && slice->m_pps->bUseDQP)
1179
6.61k
            bEncodeDQP = true;
1180
120k
        for (uint32_t qIdx = 0; qIdx < 4; ++qIdx, absPartIdx += qNumParts)
1181
96.2k
        {
1182
96.2k
            const CUGeom& childGeom = *(&cuGeom + cuGeom.childOffset + qIdx);
1183
96.2k
            if (childGeom.flags & CUGeom::PRESENT)
1184
54.6k
                encodeCU(ctu, childGeom, absPartIdx, depth + 1, bEncodeDQP);
1185
96.2k
        }
1186
24.0k
        return;
1187
24.0k
    }
1188
1189
85.5k
    if (cuSplitFlag) 
1190
61.4k
        codeSplitFlag(ctu, absPartIdx, depth);
1191
1192
85.5k
    if (depth < ctu.m_cuDepth[absPartIdx] && depth < ctu.m_encData->m_param->maxCUDepth)
1193
7.16k
    {
1194
7.16k
        uint32_t qNumParts = cuGeom.numPartitions >> 2;
1195
7.16k
        if (depth == slice->m_pps->maxCuDQPDepth && slice->m_pps->bUseDQP)
1196
280
            bEncodeDQP = true;
1197
35.7k
        for (uint32_t qIdx = 0; qIdx < 4; ++qIdx, absPartIdx += qNumParts)
1198
28.6k
        {
1199
28.6k
            const CUGeom& childGeom = *(&cuGeom + cuGeom.childOffset + qIdx);
1200
28.6k
            encodeCU(ctu, childGeom, absPartIdx, depth + 1, bEncodeDQP);
1201
28.6k
        }
1202
7.16k
        return;
1203
7.16k
    }
1204
1205
78.3k
    if (depth <= slice->m_pps->maxCuDQPDepth && slice->m_pps->bUseDQP)
1206
32.9k
        bEncodeDQP = true;
1207
1208
78.3k
    if (slice->m_pps->bTransquantBypassEnabled)
1209
21.5k
        codeCUTransquantBypassFlag(ctu.m_tqBypass[absPartIdx]);
1210
1211
78.3k
    if (!slice->isIntra())
1212
0
    {
1213
0
        codeSkipFlag(ctu, absPartIdx);
1214
0
        if (ctu.isSkipped(absPartIdx))
1215
0
        {
1216
0
            codeMergeIndex(ctu, absPartIdx);
1217
0
            finishCU(ctu, absPartIdx, depth, bEncodeDQP);
1218
0
            return;
1219
0
        }
1220
0
        codePredMode(ctu.m_predMode[absPartIdx]);
1221
0
    }
1222
1223
78.3k
    codePartSize(ctu, absPartIdx, depth);
1224
1225
    // prediction Info ( Intra : direction mode, Inter : Mv, reference idx )
1226
78.3k
    codePredInfo(ctu, absPartIdx);
1227
1228
78.3k
    uint32_t tuDepthRange[2];
1229
78.3k
    if (ctu.isIntra(absPartIdx))
1230
78.3k
        ctu.getIntraTUQtDepthRange(tuDepthRange, absPartIdx);
1231
3
    else
1232
3
        ctu.getInterTUQtDepthRange(tuDepthRange, absPartIdx);
1233
1234
    // Encode Coefficients, allow codeCoeff() to modify bEncodeDQP
1235
78.3k
    codeCoeff(ctu, absPartIdx, bEncodeDQP, tuDepthRange);
1236
1237
    // --- write terminating bit ---
1238
78.3k
    finishCU(ctu, absPartIdx, depth, bEncodeDQP);
1239
78.3k
}
1240
1241
/* Return bit count of signaling inter mode */
1242
uint32_t Entropy::bitsInterMode(const CUData& cu, uint32_t absPartIdx, uint32_t depth) const
1243
0
{
1244
0
    uint32_t bits;
1245
0
    bits = bitsCodeBin(0, m_contextState[OFF_SKIP_FLAG_CTX + cu.getCtxSkipFlag(absPartIdx)]); /* not skip */
1246
0
    bits += bitsCodeBin(0, m_contextState[OFF_PRED_MODE_CTX]); /* inter */
1247
0
    PartSize partSize = (PartSize)cu.m_partSize[absPartIdx];
1248
0
    switch (partSize)
1249
0
    {
1250
0
    case SIZE_2Nx2N:
1251
0
        bits += bitsCodeBin(1, m_contextState[OFF_PART_SIZE_CTX]);
1252
0
        break;
1253
1254
0
    case SIZE_2NxN:
1255
0
    case SIZE_2NxnU:
1256
0
    case SIZE_2NxnD:
1257
0
        bits += bitsCodeBin(0, m_contextState[OFF_PART_SIZE_CTX + 0]);
1258
0
        bits += bitsCodeBin(1, m_contextState[OFF_PART_SIZE_CTX + 1]);
1259
0
        if (cu.m_slice->m_sps->maxAMPDepth > depth)
1260
0
        {
1261
0
            bits += bitsCodeBin((partSize == SIZE_2NxN) ? 1 : 0, m_contextState[OFF_PART_SIZE_CTX + 3]);
1262
0
            if (partSize != SIZE_2NxN)
1263
0
                bits++; // encodeBinEP((partSize == SIZE_2NxnU ? 0 : 1));
1264
0
        }
1265
0
        break;
1266
1267
0
    case SIZE_Nx2N:
1268
0
    case SIZE_nLx2N:
1269
0
    case SIZE_nRx2N:
1270
0
        bits += bitsCodeBin(0, m_contextState[OFF_PART_SIZE_CTX + 0]);
1271
0
        bits += bitsCodeBin(0, m_contextState[OFF_PART_SIZE_CTX + 1]);
1272
0
        if (depth == cu.m_encData->m_param->maxCUDepth && !(cu.m_log2CUSize[absPartIdx] == 3))
1273
0
            bits += bitsCodeBin(1, m_contextState[OFF_PART_SIZE_CTX + 2]);
1274
0
        if (cu.m_slice->m_sps->maxAMPDepth > depth)
1275
0
        {
1276
0
            bits += bitsCodeBin((partSize == SIZE_Nx2N) ? 1 : 0, m_contextState[OFF_PART_SIZE_CTX + 3]);
1277
0
            if (partSize != SIZE_Nx2N)
1278
0
                bits++; // encodeBinEP((partSize == SIZE_nLx2N ? 0 : 1));
1279
0
        }
1280
0
        break;
1281
0
    default:
1282
0
        X265_CHECK(0, "invalid CU partition\n");
1283
0
        break;
1284
0
    }
1285
1286
0
    return bits;
1287
0
}
1288
1289
/* finish encoding a cu and handle end-of-slice conditions */
1290
void Entropy::finishCU(const CUData& ctu, uint32_t absPartIdx, uint32_t depth, bool bCodeDQP)
1291
78.3k
{
1292
78.3k
    const Slice* slice = ctu.m_slice;
1293
78.3k
    uint32_t realEndAddress = slice->m_endCUAddr;
1294
78.3k
    uint32_t cuAddr = ctu.getSCUAddr() + absPartIdx;
1295
78.3k
    X265_CHECK(realEndAddress == slice->realEndAddress(slice->m_endCUAddr), "real end address expected\n");
1296
1297
78.3k
    uint32_t granularityMask = ctu.m_encData->m_param->maxCUSize - 1;
1298
78.3k
    uint32_t cuSize = 1 << ctu.m_log2CUSize[absPartIdx];
1299
78.3k
    uint32_t rpelx = ctu.m_cuPelX + g_zscanToPelX[absPartIdx] + cuSize;
1300
78.3k
    uint32_t bpely = ctu.m_cuPelY + g_zscanToPelY[absPartIdx] + cuSize;
1301
78.3k
    bool granularityBoundary = (((rpelx & granularityMask) == 0 || (rpelx == slice->m_sps->picWidthInLumaSamples )) &&
1302
45.3k
                                ((bpely & granularityMask) == 0 || (bpely == slice->m_sps->picHeightInLumaSamples)));
1303
1304
78.3k
    if (slice->m_pps->bUseDQP)
1305
56.8k
        const_cast<CUData&>(ctu).setQPSubParts(bCodeDQP ? ctu.getRefQP(absPartIdx) : ctu.m_qp[absPartIdx], absPartIdx, depth);
1306
1307
78.3k
    if (granularityBoundary)
1308
26.3k
    {
1309
        // Encode slice finish
1310
26.3k
        uint32_t bTerminateSlice = ctu.m_bLastCuInSlice;
1311
26.3k
        if (cuAddr + (slice->m_param->num4x4Partitions >> (depth << 1)) == realEndAddress)
1312
1.25k
            bTerminateSlice = 1;
1313
1314
        // The 1-terminating bit is added to all streams, so don't add it here when it's 1.
1315
26.3k
        if (!bTerminateSlice)
1316
25.0k
            encodeBinTrm(0);    // end_of_slice_segment_flag
1317
1318
26.3k
        if (!m_bitIf)
1319
13.1k
            resetBits(); // TODO: most likely unnecessary
1320
26.3k
    }
1321
78.3k
}
1322
1323
void Entropy::encodeTransform(const CUData& cu, uint32_t absPartIdx, uint32_t curDepth, uint32_t log2CurSize,
1324
                              bool& bCodeDQP, const uint32_t depthRange[2])
1325
1.96M
{
1326
1.96M
    const bool subdiv = cu.m_tuDepth[absPartIdx] > curDepth;
1327
1328
    /* in each of these conditions, the subdiv flag is implied and not signaled,
1329
     * so we have checks to make sure the implied value matches our intentions */
1330
1.96M
    if (cu.isIntra(absPartIdx) && cu.m_partSize[absPartIdx] != SIZE_2Nx2N && log2CurSize == MIN_LOG2_CU_SIZE)
1331
299k
    {
1332
299k
        X265_CHECK(subdiv, "intra NxN requires TU depth below CU depth\n");
1333
299k
    }
1334
1.66M
    else if (cu.isInter(absPartIdx) && cu.m_partSize[absPartIdx] != SIZE_2Nx2N &&
1335
0
             !curDepth && cu.m_slice->m_sps->quadtreeTUMaxDepthInter == 1)
1336
0
    {
1337
0
        X265_CHECK(subdiv, "inter TU must be smaller than CU when not 2Nx2N part size: log2CurSize %d, depthRange[0] %d\n", log2CurSize, depthRange[0]);
1338
0
    }
1339
1.66M
    else if (log2CurSize > depthRange[1])
1340
0
    {
1341
0
        X265_CHECK(subdiv, "TU is larger than the max allowed, it should have been split\n");
1342
0
    }
1343
1.66M
    else if (log2CurSize == cu.m_slice->m_sps->quadtreeTULog2MinSize || log2CurSize == depthRange[0])
1344
1.20M
    {
1345
1.20M
        X265_CHECK(!subdiv, "min sized TU cannot be subdivided\n");
1346
1.20M
    }
1347
465k
    else
1348
465k
    {
1349
465k
        X265_CHECK(log2CurSize > depthRange[0], "transform size failure\n");
1350
465k
        codeTransformSubdivFlag(subdiv, 5 - log2CurSize);
1351
465k
    }
1352
1353
1.96M
    uint32_t hChromaShift = cu.m_hChromaShift;
1354
1.96M
    uint32_t vChromaShift = cu.m_vChromaShift;
1355
1.96M
    bool bSmallChroma = (log2CurSize - hChromaShift) < 2;
1356
1.96M
    if (!curDepth || !bSmallChroma)
1357
766k
    {
1358
766k
        uint32_t parentIdx = absPartIdx & (0xFF << (log2CurSize + 1 - LOG2_UNIT_SIZE) * 2);
1359
766k
        if (!curDepth || cu.getCbf(parentIdx, TEXT_CHROMA_U, curDepth - 1))
1360
766k
            codeQtCbfChroma(cu, absPartIdx, TEXT_CHROMA_U, curDepth, !subdiv);
1361
766k
        if (!curDepth || cu.getCbf(parentIdx, TEXT_CHROMA_V, curDepth - 1))
1362
766k
            codeQtCbfChroma(cu, absPartIdx, TEXT_CHROMA_V, curDepth, !subdiv);
1363
766k
    }
1364
1365
1.96M
    if (subdiv)
1366
300k
    {
1367
300k
        --log2CurSize;
1368
300k
        ++curDepth;
1369
1370
300k
        uint32_t qNumParts = 1 << (log2CurSize - LOG2_UNIT_SIZE) * 2;
1371
1372
300k
        encodeTransform(cu, absPartIdx + 0 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1373
300k
        encodeTransform(cu, absPartIdx + 1 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1374
300k
        encodeTransform(cu, absPartIdx + 2 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1375
300k
        encodeTransform(cu, absPartIdx + 3 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1376
300k
        return;
1377
300k
    }
1378
1379
1.66M
    uint32_t absPartIdxC = bSmallChroma ? absPartIdx & 0xFC : absPartIdx;
1380
1381
1.66M
    if (cu.isInter(absPartIdxC) && !curDepth && !cu.getCbf(absPartIdxC, TEXT_CHROMA_U, 0) && !cu.getCbf(absPartIdxC, TEXT_CHROMA_V, 0))
1382
0
    {
1383
0
        X265_CHECK(cu.getCbf(absPartIdxC, TEXT_LUMA, 0), "CBF should have been set\n");
1384
0
    }
1385
1.66M
    else
1386
1.66M
        codeQtCbfLuma(cu.getCbf(absPartIdx, TEXT_LUMA, curDepth), curDepth);
1387
1388
1.66M
    uint32_t cbfY = cu.getCbf(absPartIdx, TEXT_LUMA, curDepth);
1389
1.66M
    uint32_t cbfU = cu.getCbf(absPartIdxC, TEXT_CHROMA_U, curDepth);
1390
1.66M
    uint32_t cbfV = cu.getCbf(absPartIdxC, TEXT_CHROMA_V, curDepth);
1391
1.66M
    if (!(cbfY || cbfU || cbfV))
1392
1.65M
        return;
1393
1394
    // dQP: only for CTU once
1395
7.55k
    if (cu.m_slice->m_pps->bUseDQP && bCodeDQP)
1396
3.56k
    {
1397
3.56k
        uint32_t log2CUSize = cu.m_log2CUSize[absPartIdx];
1398
3.56k
        uint32_t absPartIdxLT = absPartIdx & (0xFF << (log2CUSize - LOG2_UNIT_SIZE) * 2);
1399
3.56k
        codeDeltaQP(cu, absPartIdxLT);
1400
3.56k
        bCodeDQP = false;
1401
3.56k
    }
1402
1403
7.55k
    if (cbfY)
1404
4.44k
    {
1405
4.44k
        uint32_t coeffOffset = absPartIdx << (LOG2_UNIT_SIZE * 2);
1406
4.44k
        codeCoeffNxN(cu, cu.m_trCoeff[0] + coeffOffset, absPartIdx, log2CurSize, TEXT_LUMA);
1407
4.44k
        if (!(cbfU || cbfV))
1408
580
            return;
1409
4.44k
    }
1410
1411
6.97k
    if (bSmallChroma)
1412
4.36k
    {
1413
4.36k
        if ((absPartIdx & 3) != 3)
1414
3.27k
            return;
1415
1416
1.09k
        const uint32_t log2CurSizeC = 2;
1417
1.09k
        const bool splitIntoSubTUs = (cu.m_chromaFormat == X265_CSP_I422);
1418
1.09k
        const uint32_t curPartNum = 4;
1419
1.09k
        uint32_t coeffOffsetC  = absPartIdxC << (LOG2_UNIT_SIZE * 2 - (hChromaShift + vChromaShift));
1420
3.27k
        for (uint32_t chromaId = TEXT_CHROMA_U; chromaId <= TEXT_CHROMA_V; chromaId++)
1421
2.18k
        {
1422
2.18k
            TURecurse tuIterator(splitIntoSubTUs ? VERTICAL_SPLIT : DONT_SPLIT, curPartNum, absPartIdxC);
1423
2.18k
            const coeff_t* coeffChroma = cu.m_trCoeff[chromaId];
1424
2.18k
            do
1425
2.18k
            {
1426
2.18k
                if (cu.getCbf(tuIterator.absPartIdxTURelCU, (TextType)chromaId, curDepth + splitIntoSubTUs))
1427
2.18k
                {
1428
2.18k
                    uint32_t subTUOffset = tuIterator.section << (log2CurSizeC * 2);
1429
2.18k
                    codeCoeffNxN(cu, coeffChroma + coeffOffsetC + subTUOffset, tuIterator.absPartIdxTURelCU, log2CurSizeC, (TextType)chromaId);
1430
2.18k
                }
1431
2.18k
            }
1432
2.18k
            while (tuIterator.isNextSection());
1433
2.18k
        }
1434
1.09k
    }
1435
2.61k
    else
1436
2.61k
    {
1437
2.61k
        uint32_t log2CurSizeC = log2CurSize - hChromaShift;
1438
2.61k
        const bool splitIntoSubTUs = (cu.m_chromaFormat == X265_CSP_I422);
1439
2.61k
        uint32_t curPartNum = 1 << (log2CurSize - LOG2_UNIT_SIZE) * 2;
1440
2.61k
        uint32_t coeffOffsetC  = absPartIdxC << (LOG2_UNIT_SIZE * 2 - (hChromaShift + vChromaShift));
1441
8.15k
        for (uint32_t chromaId = TEXT_CHROMA_U; chromaId <= TEXT_CHROMA_V; chromaId++)
1442
5.54k
        {
1443
5.54k
            TURecurse tuIterator(splitIntoSubTUs ? VERTICAL_SPLIT : DONT_SPLIT, curPartNum, absPartIdxC);
1444
5.54k
            const coeff_t* coeffChroma = cu.m_trCoeff[chromaId];
1445
5.54k
            do
1446
5.54k
            {
1447
5.54k
                if (cu.getCbf(tuIterator.absPartIdxTURelCU, (TextType)chromaId, curDepth + splitIntoSubTUs))
1448
5.54k
                {
1449
5.54k
                    uint32_t subTUOffset = tuIterator.section << (log2CurSizeC * 2);
1450
5.54k
                    codeCoeffNxN(cu, coeffChroma + coeffOffsetC + subTUOffset, tuIterator.absPartIdxTURelCU, log2CurSizeC, (TextType)chromaId);
1451
5.54k
                }
1452
5.54k
            }
1453
5.54k
            while (tuIterator.isNextSection());
1454
5.54k
        }
1455
2.61k
    }
1456
6.97k
}
1457
1458
void Entropy::encodeTransformLuma(const CUData& cu, uint32_t absPartIdx, uint32_t curDepth, uint32_t log2CurSize,
1459
                              bool& bCodeDQP, const uint32_t depthRange[2])
1460
0
{
1461
0
    const bool subdiv = cu.m_tuDepth[absPartIdx] > curDepth;
1462
1463
    /* in each of these conditions, the subdiv flag is implied and not signaled,
1464
     * so we have checks to make sure the implied value matches our intentions */
1465
0
    if (cu.isIntra(absPartIdx) && cu.m_partSize[absPartIdx] != SIZE_2Nx2N && log2CurSize == MIN_LOG2_CU_SIZE)
1466
0
    {
1467
0
        X265_CHECK(subdiv, "intra NxN requires TU depth below CU depth\n");
1468
0
    }
1469
0
    else if (cu.isInter(absPartIdx) && cu.m_partSize[absPartIdx] != SIZE_2Nx2N &&
1470
0
             !curDepth && cu.m_slice->m_sps->quadtreeTUMaxDepthInter == 1)
1471
0
    {
1472
0
        X265_CHECK(subdiv, "inter TU must be smaller than CU when not 2Nx2N part size: log2CurSize %d, depthRange[0] %d\n", log2CurSize, depthRange[0]);
1473
0
    }
1474
0
    else if (log2CurSize > depthRange[1])
1475
0
    {
1476
0
        X265_CHECK(subdiv, "TU is larger than the max allowed, it should have been split\n");
1477
0
    }
1478
0
    else if (log2CurSize == cu.m_slice->m_sps->quadtreeTULog2MinSize || log2CurSize == depthRange[0])
1479
0
    {
1480
0
        X265_CHECK(!subdiv, "min sized TU cannot be subdivided\n");
1481
0
    }
1482
0
    else
1483
0
    {
1484
0
        X265_CHECK(log2CurSize > depthRange[0], "transform size failure\n");
1485
0
        codeTransformSubdivFlag(subdiv, 5 - log2CurSize);
1486
0
    }
1487
1488
0
    if (subdiv)
1489
0
    {
1490
0
        --log2CurSize;
1491
0
        ++curDepth;
1492
1493
0
        uint32_t qNumParts = 1 << (log2CurSize - LOG2_UNIT_SIZE) * 2;
1494
1495
0
        encodeTransformLuma(cu, absPartIdx + 0 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1496
0
        encodeTransformLuma(cu, absPartIdx + 1 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1497
0
        encodeTransformLuma(cu, absPartIdx + 2 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1498
0
        encodeTransformLuma(cu, absPartIdx + 3 * qNumParts, curDepth, log2CurSize, bCodeDQP, depthRange);
1499
0
        return;
1500
0
    }
1501
1502
0
    if (!cu.isIntra(absPartIdx) && !curDepth)
1503
0
    {
1504
0
        X265_CHECK(cu.getCbf(absPartIdx, TEXT_LUMA, 0), "CBF should have been set\n");
1505
0
    }
1506
0
    else
1507
0
        codeQtCbfLuma(cu.getCbf(absPartIdx, TEXT_LUMA, curDepth), curDepth);
1508
1509
0
    uint32_t cbfY = cu.getCbf(absPartIdx, TEXT_LUMA, curDepth);
1510
1511
0
    if (!cbfY)
1512
0
        return;
1513
1514
    // dQP: only for CTU once
1515
0
    if (cu.m_slice->m_pps->bUseDQP && bCodeDQP)
1516
0
    {
1517
0
        uint32_t log2CUSize = cu.m_log2CUSize[absPartIdx];
1518
0
        uint32_t absPartIdxLT = absPartIdx & (0xFF << (log2CUSize - LOG2_UNIT_SIZE) * 2);
1519
0
        codeDeltaQP(cu, absPartIdxLT);
1520
0
        bCodeDQP = false;
1521
0
    }
1522
1523
0
    if (cbfY)
1524
0
    {
1525
0
        uint32_t coeffOffset = absPartIdx << (LOG2_UNIT_SIZE * 2);
1526
0
        codeCoeffNxN(cu, cu.m_trCoeff[0] + coeffOffset, absPartIdx, log2CurSize, TEXT_LUMA);
1527
0
    }
1528
0
}
1529
1530
1531
void Entropy::codePredInfo(const CUData& cu, uint32_t absPartIdx)
1532
765k
{
1533
765k
    if (cu.isIntra(absPartIdx)) // If it is intra mode, encode intra prediction mode.
1534
765k
    {
1535
765k
        codeIntraDirLumaAng(cu, absPartIdx, true);
1536
765k
        if (cu.m_chromaFormat != X265_CSP_I400)
1537
765k
        {
1538
765k
            uint32_t chromaDirMode[NUM_CHROMA_MODE];
1539
765k
            cu.getAllowedChromaDir(absPartIdx, chromaDirMode);
1540
1541
765k
            codeIntraDirChroma(cu, absPartIdx, chromaDirMode);
1542
1543
765k
            if (cu.m_chromaFormat == X265_CSP_I444 && cu.m_partSize[absPartIdx] != SIZE_2Nx2N)
1544
0
            {
1545
0
                uint32_t qNumParts = 1 << (cu.m_log2CUSize[absPartIdx] - 1 - LOG2_UNIT_SIZE) * 2;
1546
0
                for (uint32_t qIdx = 1; qIdx < 4; ++qIdx)
1547
0
                {
1548
0
                    absPartIdx += qNumParts;
1549
0
                    cu.getAllowedChromaDir(absPartIdx, chromaDirMode);
1550
0
                    codeIntraDirChroma(cu, absPartIdx, chromaDirMode);
1551
0
                }
1552
0
            }
1553
765k
        }
1554
765k
    }
1555
18.4E
    else // if it is inter mode, encode motion vector and reference index
1556
18.4E
        codePUWise(cu, absPartIdx);
1557
765k
}
1558
1559
/** encode motion information for every PU block */
1560
void Entropy::codePUWise(const CUData& cu, uint32_t absPartIdx)
1561
0
{
1562
0
    X265_CHECK(!cu.isIntra(absPartIdx), "intra block not expected\n");
1563
0
    uint32_t numPU = cu.getNumPartInter(absPartIdx);
1564
1565
0
    for (uint32_t puIdx = 0, subPartIdx = absPartIdx; puIdx < numPU; puIdx++, subPartIdx += cu.getPUOffset(puIdx, absPartIdx))
1566
0
    {
1567
0
        codeMergeFlag(cu, subPartIdx);
1568
0
        if (cu.m_mergeFlag[subPartIdx])
1569
0
            codeMergeIndex(cu, subPartIdx);
1570
0
        else
1571
0
        {
1572
0
            if (cu.m_slice->isInterB())
1573
0
                codeInterDir(cu, subPartIdx);
1574
1575
0
            uint32_t interDir = cu.m_interDir[subPartIdx];
1576
0
            for (uint32_t list = 0; list < 2; list++)
1577
0
            {
1578
0
                if (interDir & (1 << list))
1579
0
                {
1580
0
                    X265_CHECK(cu.m_slice->m_numRefIdx[list] > 0, "numRefs should have been > 0\n");
1581
1582
0
                    codeRefFrmIdxPU(cu, subPartIdx, list);
1583
0
                    codeMvd(cu, subPartIdx, list);
1584
0
                    codeMVPIdx(cu.m_mvpIdx[list][subPartIdx]);
1585
0
                }
1586
0
            }
1587
0
        }
1588
0
    }
1589
0
}
1590
1591
/** encode reference frame index for a PU block */
1592
void Entropy::codeRefFrmIdxPU(const CUData& cu, uint32_t absPartIdx, int list)
1593
0
{
1594
0
    X265_CHECK(!cu.isIntra(absPartIdx), "intra block not expected\n");
1595
1596
0
    if (cu.m_slice->m_numRefIdx[list] > 1)
1597
0
        codeRefFrmIdx(cu, absPartIdx, list);
1598
0
}
1599
1600
void Entropy::codeCoeff(const CUData& cu, uint32_t absPartIdx, bool& bCodeDQP, const uint32_t depthRange[2])
1601
765k
{
1602
765k
    if (!cu.isIntra(absPartIdx))
1603
0
    {
1604
0
        if (!(cu.m_mergeFlag[absPartIdx] && cu.m_partSize[absPartIdx] == SIZE_2Nx2N))
1605
0
            codeQtRootCbf(cu.getQtRootCbf(absPartIdx));
1606
0
        if (!cu.getQtRootCbf(absPartIdx))
1607
0
            return;
1608
0
    }
1609
1610
765k
    uint32_t log2CUSize = cu.m_log2CUSize[absPartIdx];
1611
765k
    if (cu.m_chromaFormat == X265_CSP_I400)
1612
0
        encodeTransformLuma(cu, absPartIdx, 0, log2CUSize, bCodeDQP, depthRange);
1613
765k
    else
1614
765k
        encodeTransform(cu, absPartIdx, 0, log2CUSize, bCodeDQP, depthRange);
1615
765k
}
1616
1617
void Entropy::codeSaoOffset(const SaoCtuParam& ctuParam, int plane)
1618
52.4k
{
1619
52.4k
    int typeIdx = ctuParam.typeIdx;
1620
1621
52.4k
    if (plane != 2)
1622
34.9k
    {
1623
34.9k
        encodeBin(typeIdx >= 0, m_contextState[OFF_SAO_TYPE_IDX_CTX]);
1624
34.9k
        if (typeIdx >= 0)
1625
0
            encodeBinEP(typeIdx < SAO_BO ? 1 : 0);
1626
34.9k
    }
1627
1628
52.4k
    if (typeIdx >= 0)
1629
0
    {
1630
0
        enum { OFFSET_THRESH = 1 << X265_MIN(X265_DEPTH - 5, 5) };
1631
0
        if (typeIdx == SAO_BO)
1632
0
        {
1633
0
            for (int i = 0; i < SAO_NUM_OFFSET; i++)
1634
0
                codeSaoMaxUvlc(abs(ctuParam.offset[i]), OFFSET_THRESH - 1);
1635
1636
0
            for (int i = 0; i < SAO_NUM_OFFSET; i++)
1637
0
                if (ctuParam.offset[i] != 0)
1638
0
                    encodeBinEP(ctuParam.offset[i] < 0);
1639
1640
0
            encodeBinsEP(ctuParam.bandPos, 5);
1641
0
        }
1642
0
        else // if (typeIdx < SAO_BO)
1643
0
        {
1644
0
            codeSaoMaxUvlc(ctuParam.offset[0], OFFSET_THRESH - 1);
1645
0
            codeSaoMaxUvlc(ctuParam.offset[1], OFFSET_THRESH - 1);
1646
0
            codeSaoMaxUvlc(-ctuParam.offset[2], OFFSET_THRESH - 1);
1647
0
            codeSaoMaxUvlc(-ctuParam.offset[3], OFFSET_THRESH - 1);
1648
0
            if (plane != 2)
1649
0
                encodeBinsEP((uint32_t)(typeIdx), 2);
1650
0
        }
1651
0
    }
1652
52.4k
}
1653
1654
void Entropy::codeSaoOffsetEO(int *offset, int typeIdx, int plane)
1655
158k
{
1656
158k
    if (plane != 2)
1657
105k
    {
1658
105k
        encodeBin(1, m_contextState[OFF_SAO_TYPE_IDX_CTX]);
1659
105k
        encodeBinEP(1);
1660
105k
    }
1661
1662
158k
    enum { OFFSET_THRESH = 1 << X265_MIN(X265_DEPTH - 5, 5) };
1663
1664
158k
    codeSaoMaxUvlc(offset[0], OFFSET_THRESH - 1);
1665
158k
    codeSaoMaxUvlc(offset[1], OFFSET_THRESH - 1);
1666
158k
    codeSaoMaxUvlc(-offset[2], OFFSET_THRESH - 1);
1667
158k
    codeSaoMaxUvlc(-offset[3], OFFSET_THRESH - 1);
1668
158k
    if (plane != 2)
1669
105k
        encodeBinsEP((uint32_t)(typeIdx), 2);
1670
158k
}
1671
1672
void Entropy::codeSaoOffsetBO(int *offset, int bandPos, int plane)
1673
39.5k
{
1674
39.5k
    if (plane != 2)
1675
26.3k
    {
1676
26.3k
        encodeBin(1, m_contextState[OFF_SAO_TYPE_IDX_CTX]);
1677
26.3k
        encodeBinEP(0);
1678
26.3k
    }
1679
1680
39.5k
    enum { OFFSET_THRESH = 1 << X265_MIN(X265_DEPTH - 5, 5) };
1681
1682
197k
    for (int i = 0; i < SAO_NUM_OFFSET; i++)
1683
158k
        codeSaoMaxUvlc(abs(offset[i]), OFFSET_THRESH - 1);
1684
1685
197k
    for (int i = 0; i < SAO_NUM_OFFSET; i++)
1686
158k
        if (offset[i] != 0)
1687
89
            encodeBinEP(offset[i] < 0);
1688
1689
39.5k
    encodeBinsEP(bandPos, 5);
1690
39.5k
}
1691
1692
/** initialize context model with respect to QP and initialization value */
1693
uint8_t sbacInit(int qp, int initValue)
1694
98.5k
{
1695
98.5k
    qp = x265_clip3(QP_MIN, QP_MAX_SPEC, qp);
1696
1697
98.5k
    int  slope      = (initValue >> 4) * 5 - 45;
1698
98.5k
    int  offset     = ((initValue & 15) << 3) - 16;
1699
98.5k
    int  initState  =  X265_MIN(X265_MAX(1, (((slope * qp) >> 4) + offset)), 126);
1700
98.5k
    uint32_t mpState = (initState >= 64);
1701
98.5k
    uint32_t state = ((mpState ? (initState - 64) : (63 - initState)) << 1) + mpState;
1702
1703
98.5k
    return (uint8_t)state;
1704
98.5k
}
1705
1706
static void initBuffer(uint8_t* contextModel, SliceType sliceType, int qp, uint8_t* ctxModel, int size)
1707
16.3k
{
1708
16.3k
    ctxModel += sliceType * size;
1709
1710
114k
    for (int n = 0; n < size; n++)
1711
98.5k
        contextModel[n] = sbacInit(qp, ctxModel[n]);
1712
16.3k
}
1713
1714
void Entropy::resetEntropy(const Slice& slice)
1715
628
{
1716
628
    int  qp              = slice.m_sliceQp;
1717
628
    SliceType sliceType  = slice.m_sliceType;
1718
1719
628
    initBuffer(&m_contextState[OFF_SPLIT_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_SPLIT_FLAG, NUM_SPLIT_FLAG_CTX);
1720
628
    initBuffer(&m_contextState[OFF_SKIP_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_SKIP_FLAG, NUM_SKIP_FLAG_CTX);
1721
628
    initBuffer(&m_contextState[OFF_MERGE_FLAG_EXT_CTX], sliceType, qp, (uint8_t*)INIT_MERGE_FLAG_EXT, NUM_MERGE_FLAG_EXT_CTX);
1722
628
    initBuffer(&m_contextState[OFF_MERGE_IDX_EXT_CTX], sliceType, qp, (uint8_t*)INIT_MERGE_IDX_EXT, NUM_MERGE_IDX_EXT_CTX);
1723
628
    initBuffer(&m_contextState[OFF_PART_SIZE_CTX], sliceType, qp, (uint8_t*)INIT_PART_SIZE, NUM_PART_SIZE_CTX);
1724
628
    initBuffer(&m_contextState[OFF_PRED_MODE_CTX], sliceType, qp, (uint8_t*)INIT_PRED_MODE, NUM_PRED_MODE_CTX);
1725
628
    initBuffer(&m_contextState[OFF_ADI_CTX], sliceType, qp, (uint8_t*)INIT_INTRA_PRED_MODE, NUM_ADI_CTX);
1726
628
    initBuffer(&m_contextState[OFF_CHROMA_PRED_CTX], sliceType, qp, (uint8_t*)INIT_CHROMA_PRED_MODE, NUM_CHROMA_PRED_CTX);
1727
628
    initBuffer(&m_contextState[OFF_DELTA_QP_CTX], sliceType, qp, (uint8_t*)INIT_DQP, NUM_DELTA_QP_CTX);
1728
628
    initBuffer(&m_contextState[OFF_INTER_DIR_CTX], sliceType, qp, (uint8_t*)INIT_INTER_DIR, NUM_INTER_DIR_CTX);
1729
628
    initBuffer(&m_contextState[OFF_REF_NO_CTX], sliceType, qp, (uint8_t*)INIT_REF_PIC, NUM_REF_NO_CTX);
1730
628
    initBuffer(&m_contextState[OFF_MV_RES_CTX], sliceType, qp, (uint8_t*)INIT_MVD, NUM_MV_RES_CTX);
1731
628
    initBuffer(&m_contextState[OFF_QT_CBF_CTX], sliceType, qp, (uint8_t*)INIT_QT_CBF, NUM_QT_CBF_CTX);
1732
628
    initBuffer(&m_contextState[OFF_TRANS_SUBDIV_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_TRANS_SUBDIV_FLAG, NUM_TRANS_SUBDIV_FLAG_CTX);
1733
628
    initBuffer(&m_contextState[OFF_QT_ROOT_CBF_CTX], sliceType, qp, (uint8_t*)INIT_QT_ROOT_CBF, NUM_QT_ROOT_CBF_CTX);
1734
628
    initBuffer(&m_contextState[OFF_SIG_CG_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_SIG_CG_FLAG, 2 * NUM_SIG_CG_FLAG_CTX);
1735
628
    initBuffer(&m_contextState[OFF_SIG_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_SIG_FLAG, NUM_SIG_FLAG_CTX);
1736
628
    initBuffer(&m_contextState[OFF_CTX_LAST_FLAG_X], sliceType, qp, (uint8_t*)INIT_LAST, NUM_CTX_LAST_FLAG_XY);
1737
628
    initBuffer(&m_contextState[OFF_CTX_LAST_FLAG_Y], sliceType, qp, (uint8_t*)INIT_LAST, NUM_CTX_LAST_FLAG_XY);
1738
628
    initBuffer(&m_contextState[OFF_ONE_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_ONE_FLAG, NUM_ONE_FLAG_CTX);
1739
628
    initBuffer(&m_contextState[OFF_ABS_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_ABS_FLAG, NUM_ABS_FLAG_CTX);
1740
628
    initBuffer(&m_contextState[OFF_MVP_IDX_CTX], sliceType, qp, (uint8_t*)INIT_MVP_IDX, NUM_MVP_IDX_CTX);
1741
628
    initBuffer(&m_contextState[OFF_SAO_MERGE_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_SAO_MERGE_FLAG, NUM_SAO_MERGE_FLAG_CTX);
1742
628
    initBuffer(&m_contextState[OFF_SAO_TYPE_IDX_CTX], sliceType, qp, (uint8_t*)INIT_SAO_TYPE_IDX, NUM_SAO_TYPE_IDX_CTX);
1743
628
    initBuffer(&m_contextState[OFF_TRANSFORMSKIP_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_TRANSFORMSKIP_FLAG, 2 * NUM_TRANSFORMSKIP_FLAG_CTX);
1744
628
    initBuffer(&m_contextState[OFF_TQUANT_BYPASS_FLAG_CTX], sliceType, qp, (uint8_t*)INIT_CU_TRANSQUANT_BYPASS_FLAG, NUM_TQUANT_BYPASS_FLAG_CTX);
1745
    // new structure
1746
1747
628
    start();
1748
628
}
1749
1750
/* code explicit wp tables */
1751
void Entropy::codePredWeightTable(const Slice& slice)
1752
0
{
1753
0
    const WeightParam *wp;
1754
0
    bool            bChroma = slice.m_sps->chromaFormatIdc != X265_CSP_I400;
1755
0
    bool            bDenomCoded  = false;
1756
0
    int             numRefDirs   = slice.m_sliceType == B_SLICE ? 2 : 1;
1757
0
    uint32_t        totalSignalledWeightFlags = 0;
1758
1759
0
    if ((slice.m_sliceType == P_SLICE && slice.m_pps->bUseWeightPred) ||
1760
0
        (slice.m_sliceType == B_SLICE && slice.m_pps->bUseWeightedBiPred))
1761
0
    {
1762
0
        for (int list = 0; list < numRefDirs; list++)
1763
0
        {
1764
0
            for (int ref = 0; ref < slice.m_numRefIdx[list]; ref++)
1765
0
            {
1766
0
                wp = slice.m_weightPredTable[list][ref];
1767
0
                if (!bDenomCoded)
1768
0
                {
1769
0
                    WRITE_UVLC(wp[0].log2WeightDenom, "luma_log2_weight_denom");
1770
1771
0
                    if (bChroma)
1772
0
                    {
1773
0
                        int deltaDenom = wp[1].log2WeightDenom - wp[0].log2WeightDenom;
1774
0
                        WRITE_SVLC(deltaDenom, "delta_chroma_log2_weight_denom");
1775
0
                    }
1776
0
                    bDenomCoded = true;
1777
0
                }
1778
#if ENABLE_SCC_EXT
1779
                if (slice.m_poc == slice.m_refPOCList[list][ref])
1780
                    assert(!wp[0].wtPresent);
1781
                else
1782
#endif
1783
0
                    WRITE_FLAG(!!wp[0].wtPresent, "luma_weight_lX_flag");
1784
0
                totalSignalledWeightFlags = totalSignalledWeightFlags + wp[0].wtPresent;
1785
0
            }
1786
1787
0
            if (bChroma)
1788
0
            {
1789
0
                for (int ref = 0; ref < slice.m_numRefIdx[list]; ref++)
1790
0
                {
1791
0
                    wp = slice.m_weightPredTable[list][ref];
1792
#if ENABLE_SCC_EXT
1793
                    if (slice.m_poc == slice.m_refPOCList[list][ref])
1794
                        assert(!wp[1].wtPresent);
1795
                    else
1796
#endif
1797
0
                        WRITE_FLAG(!!wp[1].wtPresent, "chroma_weight_lX_flag");
1798
0
                    totalSignalledWeightFlags = totalSignalledWeightFlags + 2 * wp[1].wtPresent;
1799
0
                }
1800
0
            }
1801
1802
0
            for (int ref = 0; ref < slice.m_numRefIdx[list]; ref++)
1803
0
            {
1804
0
                wp = slice.m_weightPredTable[list][ref];
1805
0
                if (wp[0].wtPresent)
1806
0
                {
1807
0
                    int deltaWeight = (wp[0].inputWeight - (1 << wp[0].log2WeightDenom));
1808
0
                    WRITE_SVLC(deltaWeight, "delta_luma_weight_lX");
1809
0
                    WRITE_SVLC(wp[0].inputOffset, "luma_offset_lX");
1810
0
                }
1811
1812
0
                if (bChroma)
1813
0
                {
1814
0
                    if (wp[1].wtPresent)
1815
0
                    {
1816
0
                        for (int plane = 1; plane < 3; plane++)
1817
0
                        {
1818
0
                            int deltaWeight = (wp[plane].inputWeight - (1 << wp[1].log2WeightDenom));
1819
0
                            WRITE_SVLC(deltaWeight, "delta_chroma_weight_lX");
1820
1821
0
                            int pred = (128 - ((128 * wp[plane].inputWeight) >> (wp[plane].log2WeightDenom)));
1822
0
                            int deltaChroma = (wp[plane].inputOffset - pred);
1823
0
                            WRITE_SVLC(deltaChroma, "delta_chroma_offset_lX");
1824
0
                        }
1825
0
                    }
1826
0
                }
1827
0
            }
1828
0
        }
1829
1830
0
        X265_CHECK(totalSignalledWeightFlags <= 24, "total weights must be <= 24\n");
1831
0
    }
1832
0
}
1833
1834
void Entropy::writeUnaryMaxSymbol(uint32_t symbol, uint8_t* scmModel, int offset, uint32_t maxSymbol)
1835
4.76k
{
1836
4.76k
    X265_CHECK(maxSymbol > 0, "maxSymbol too small\n");
1837
1838
4.76k
    encodeBin(symbol ? 1 : 0, scmModel[0]);
1839
1840
4.76k
    if (!symbol)
1841
486
        return;
1842
1843
4.27k
    bool bCodeLast = (maxSymbol > symbol);
1844
1845
20.6k
    while (--symbol)
1846
16.4k
        encodeBin(1, scmModel[offset]);
1847
1848
4.27k
    if (bCodeLast)
1849
226
        encodeBin(0, scmModel[offset]);
1850
4.27k
}
1851
1852
void Entropy::writeEpExGolomb(uint32_t symbol, uint32_t count)
1853
4.04k
{
1854
4.04k
    uint32_t bins = 0;
1855
4.04k
    int numBins = 0;
1856
1857
15.9k
    while (symbol >= (uint32_t)(1 << count))
1858
11.8k
    {
1859
11.8k
        bins = 2 * bins + 1;
1860
11.8k
        numBins++;
1861
11.8k
        symbol -= 1 << count;
1862
11.8k
        count++;
1863
11.8k
    }
1864
1865
4.04k
    bins = 2 * bins + 0;
1866
4.04k
    numBins++;
1867
1868
4.04k
    bins = (bins << count) | symbol;
1869
4.04k
    numBins += count;
1870
1871
4.04k
    X265_CHECK(numBins <= 32, "numBins too large\n");
1872
4.04k
    encodeBinsEP(bins, numBins);
1873
4.04k
}
1874
1875
/** Coding of coeff_abs_level_minus3 */
1876
void Entropy::writeCoefRemainExGolomb(uint32_t codeNumber, uint32_t absGoRice)
1877
8.63k
{
1878
8.63k
    uint32_t length;
1879
8.63k
    const uint32_t codeRemain = codeNumber & ((1 << absGoRice) - 1);
1880
1881
8.63k
    if ((codeNumber >> absGoRice) < COEF_REMAIN_BIN_REDUCTION)
1882
0
    {
1883
0
        length = codeNumber >> absGoRice;
1884
1885
0
        X265_CHECK(codeNumber - (length << absGoRice) == (codeNumber & ((1 << absGoRice) - 1)), "codeNumber failure\n");
1886
0
        X265_CHECK(length + 1 + absGoRice < 32, "length failure\n");
1887
0
        encodeBinsEP((((1 << (length + 1)) - 2) << absGoRice) + codeRemain, length + 1 + absGoRice);
1888
0
    }
1889
8.63k
    else
1890
8.63k
    {
1891
8.63k
        length = 0;
1892
8.63k
        codeNumber = (codeNumber >> absGoRice) - COEF_REMAIN_BIN_REDUCTION;
1893
8.63k
        {
1894
8.63k
            unsigned long idx;
1895
8.63k
            BSR(idx, codeNumber + 1);
1896
8.63k
            length = idx;
1897
8.63k
            X265_CHECK((codeNumber != 0) || (length == 0), "length check failure\n");
1898
8.63k
            codeNumber -= (1 << idx) - 1;
1899
8.63k
        }
1900
8.63k
        codeNumber = (codeNumber << absGoRice) + codeRemain;
1901
1902
8.63k
        encodeBinsEP((1 << (COEF_REMAIN_BIN_REDUCTION + length + 1)) - 2, COEF_REMAIN_BIN_REDUCTION + length + 1);
1903
8.63k
        encodeBinsEP(codeNumber, length + absGoRice);
1904
8.63k
    }
1905
8.63k
}
1906
1907
// SBAC RD
1908
void Entropy::loadIntraDirModeLuma(const Entropy& src)
1909
1.58M
{
1910
1.58M
    X265_CHECK(src.m_valid, "invalid copy source context\n");
1911
1.58M
    m_fracBits = src.m_fracBits;
1912
1.58M
    m_contextState[OFF_ADI_CTX] = src.m_contextState[OFF_ADI_CTX];
1913
1.58M
}
1914
1915
void Entropy::copyFrom(const Entropy& src)
1916
11.0M
{
1917
11.0M
    X265_CHECK(src.m_valid, "invalid copy source context\n");
1918
1919
11.0M
    copyState(src);
1920
1921
11.0M
    memcpy(m_contextState, src.m_contextState, MAX_OFF_CTX_MOD * sizeof(uint8_t));
1922
11.0M
    markValid();
1923
11.0M
}
1924
1925
void Entropy::codePartSize(const CUData& cu, uint32_t absPartIdx, uint32_t depth)
1926
2.54M
{
1927
2.54M
    PartSize partSize = (PartSize)cu.m_partSize[absPartIdx];
1928
1929
2.54M
    if (cu.isIntra(absPartIdx))
1930
2.54M
    {
1931
2.54M
        if (depth == cu.m_encData->m_param->maxCUDepth)
1932
2.13M
            encodeBin(partSize == SIZE_2Nx2N ? 1 : 0, m_contextState[OFF_PART_SIZE_CTX]);
1933
2.54M
        return;
1934
2.54M
    }
1935
1936
18.4E
    switch (partSize)
1937
18.4E
    {
1938
0
    case SIZE_2Nx2N:
1939
0
        encodeBin(1, m_contextState[OFF_PART_SIZE_CTX]);
1940
0
        break;
1941
1942
0
    case SIZE_2NxN:
1943
0
    case SIZE_2NxnU:
1944
0
    case SIZE_2NxnD:
1945
0
        encodeBin(0, m_contextState[OFF_PART_SIZE_CTX + 0]);
1946
0
        encodeBin(1, m_contextState[OFF_PART_SIZE_CTX + 1]);
1947
0
        if (cu.m_slice->m_sps->maxAMPDepth > depth)
1948
0
        {
1949
0
            encodeBin((partSize == SIZE_2NxN) ? 1 : 0, m_contextState[OFF_PART_SIZE_CTX + 3]);
1950
0
            if (partSize != SIZE_2NxN)
1951
0
                encodeBinEP((partSize == SIZE_2NxnU ? 0 : 1));
1952
0
        }
1953
0
        break;
1954
1955
0
    case SIZE_Nx2N:
1956
0
    case SIZE_nLx2N:
1957
0
    case SIZE_nRx2N:
1958
0
        encodeBin(0, m_contextState[OFF_PART_SIZE_CTX + 0]);
1959
0
        encodeBin(0, m_contextState[OFF_PART_SIZE_CTX + 1]);
1960
0
        if (depth == cu.m_encData->m_param->maxCUDepth && !(cu.m_log2CUSize[absPartIdx] == 3))
1961
0
            encodeBin(1, m_contextState[OFF_PART_SIZE_CTX + 2]);
1962
0
        if (cu.m_slice->m_sps->maxAMPDepth > depth)
1963
0
        {
1964
0
            encodeBin((partSize == SIZE_Nx2N) ? 1 : 0, m_contextState[OFF_PART_SIZE_CTX + 3]);
1965
0
            if (partSize != SIZE_Nx2N)
1966
0
                encodeBinEP((partSize == SIZE_nLx2N ? 0 : 1));
1967
0
        }
1968
0
        break;
1969
0
    default:
1970
0
        X265_CHECK(0, "invalid CU partition\n");
1971
0
        break;
1972
18.4E
    }
1973
18.4E
}
1974
1975
void Entropy::codeMergeIndex(const CUData& cu, uint32_t absPartIdx)
1976
0
{
1977
0
    uint32_t numCand = cu.m_slice->m_maxNumMergeCand;
1978
1979
0
    if (numCand > 1)
1980
0
    {
1981
0
        uint32_t unaryIdx = cu.m_mvpIdx[0][absPartIdx]; // merge candidate index was stored in L0 MVP idx 
1982
0
        encodeBin((unaryIdx != 0), m_contextState[OFF_MERGE_IDX_EXT_CTX]);
1983
1984
0
        X265_CHECK(unaryIdx < numCand, "unaryIdx out of range\n");
1985
1986
0
        if (unaryIdx != 0)
1987
0
        {
1988
0
            uint32_t mask = (1 << unaryIdx) - 2;
1989
0
            mask >>= (unaryIdx == numCand - 1) ? 1 : 0;
1990
0
            encodeBinsEP(mask, unaryIdx - (unaryIdx == numCand - 1));
1991
0
        }
1992
0
    }
1993
0
}
1994
1995
void Entropy::codeIntraDirLumaAng(const CUData& cu, uint32_t absPartIdx, bool isMultiple)
1996
4.34M
{
1997
4.34M
    uint32_t dir[4], j;
1998
4.34M
    uint32_t preds[4][3];
1999
4.34M
    int predIdx[4];
2000
4.34M
    uint32_t partNum = isMultiple && cu.m_partSize[absPartIdx] != SIZE_2Nx2N ? 4 : 1;
2001
4.34M
    uint32_t qNumParts = 1 << (cu.m_log2CUSize[absPartIdx] - 1 - LOG2_UNIT_SIZE) * 2;
2002
2003
9.58M
    for (j = 0; j < partNum; j++, absPartIdx += qNumParts)
2004
5.24M
    {
2005
5.24M
        dir[j] = cu.m_lumaIntraDir[absPartIdx];
2006
5.24M
        cu.getIntraDirLumaPredictor(absPartIdx, preds[j]);
2007
5.24M
        predIdx[j] = -1;
2008
20.9M
        for (uint32_t i = 0; i < 3; i++)
2009
15.7M
            if (dir[j] == preds[j][i])
2010
5.22M
                predIdx[j] = i;
2011
2012
5.24M
        encodeBin((predIdx[j] != -1) ? 1 : 0, m_contextState[OFF_ADI_CTX]);
2013
5.24M
    }
2014
2015
9.58M
    for (j = 0; j < partNum; j++)
2016
5.23M
    {
2017
5.23M
        if (predIdx[j] != -1)
2018
5.22M
        {
2019
5.22M
            X265_CHECK((predIdx[j] >= 0) && (predIdx[j] <= 2), "predIdx out of range\n");
2020
            // NOTE: Mapping
2021
            //       0 = 0
2022
            //       1 = 10
2023
            //       2 = 11
2024
5.22M
            int nonzero = (!!predIdx[j]);
2025
5.22M
            encodeBinsEP(predIdx[j] + nonzero, 1 + nonzero);
2026
5.22M
        }
2027
10.4k
        else
2028
10.4k
        {
2029
10.4k
            if (preds[j][0] > preds[j][1])
2030
453
                std::swap(preds[j][0], preds[j][1]);
2031
2032
10.4k
            if (preds[j][0] > preds[j][2])
2033
0
                std::swap(preds[j][0], preds[j][2]);
2034
2035
10.4k
            if (preds[j][1] > preds[j][2])
2036
0
                std::swap(preds[j][1], preds[j][2]);
2037
2038
10.4k
            dir[j] += (dir[j] > preds[j][2]) ? -1 : 0;
2039
18.4E
            dir[j] += (dir[j] > preds[j][1]) ? -1 : 0;
2040
18.4E
            dir[j] += (dir[j] > preds[j][0]) ? -1 : 0;
2041
2042
10.4k
            encodeBinsEP(dir[j], 5);
2043
10.4k
        }
2044
5.23M
    }
2045
4.34M
}
2046
2047
void Entropy::codeIntraDirChroma(const CUData& cu, uint32_t absPartIdx, uint32_t *chromaDirMode)
2048
4.19M
{
2049
4.19M
    uint32_t intraDirChroma = cu.m_chromaIntraDir[absPartIdx];
2050
2051
4.19M
    if (intraDirChroma == DM_CHROMA_IDX)
2052
1.09M
        encodeBin(0, m_contextState[OFF_CHROMA_PRED_CTX]);
2053
3.10M
    else
2054
3.10M
    {
2055
7.22M
        for (int i = 0; i < NUM_CHROMA_MODE - 1; i++)
2056
7.22M
        {
2057
7.22M
            if (intraDirChroma == chromaDirMode[i])
2058
3.10M
            {
2059
3.10M
                intraDirChroma = i;
2060
3.10M
                break;
2061
3.10M
            }
2062
7.22M
        }
2063
2064
3.10M
        encodeBin(1, m_contextState[OFF_CHROMA_PRED_CTX]);
2065
3.10M
        encodeBinsEP(intraDirChroma, 2);
2066
3.10M
    }
2067
4.19M
}
2068
2069
void Entropy::codeInterDir(const CUData& cu, uint32_t absPartIdx)
2070
0
{
2071
0
    const uint32_t interDir = cu.m_interDir[absPartIdx] - 1;
2072
0
    const uint32_t ctx      = cu.m_cuDepth[absPartIdx]; // the context of the inter dir is the depth of the CU
2073
2074
0
    if (cu.m_partSize[absPartIdx] == SIZE_2Nx2N || cu.m_log2CUSize[absPartIdx] != 3)
2075
0
        encodeBin(interDir == 2 ? 1 : 0, m_contextState[OFF_INTER_DIR_CTX + ctx]);
2076
0
    if (interDir < 2)
2077
0
        encodeBin(interDir, m_contextState[OFF_INTER_DIR_CTX + 4]);
2078
0
}
2079
2080
void Entropy::codeRefFrmIdx(const CUData& cu, uint32_t absPartIdx, int list)
2081
0
{
2082
0
    uint32_t refFrame = cu.m_refIdx[list][absPartIdx];
2083
2084
0
    encodeBin(refFrame > 0, m_contextState[OFF_REF_NO_CTX]);
2085
2086
0
    if (refFrame > 0)
2087
0
    {
2088
0
        uint32_t refNum = cu.m_slice->m_numRefIdx[list] - 2;
2089
0
        if (refNum == 0)
2090
0
            return;
2091
2092
0
        refFrame--;
2093
0
        encodeBin(refFrame > 0, m_contextState[OFF_REF_NO_CTX + 1]);
2094
0
        if (refFrame > 0)
2095
0
        {
2096
0
            uint32_t mask = (1 << refFrame) - 2;
2097
0
            mask >>= (refFrame == refNum) ? 1 : 0;
2098
0
            encodeBinsEP(mask, refFrame - (refFrame == refNum));
2099
0
        }
2100
0
    }
2101
0
}
2102
2103
void Entropy::codeMvd(const CUData& cu, uint32_t absPartIdx, int list)
2104
0
{
2105
0
    const MV& mvd = cu.m_mvd[list][absPartIdx];
2106
0
    const int hor = mvd.x;
2107
0
    const int ver = mvd.y;
2108
2109
0
    encodeBin(hor != 0 ? 1 : 0, m_contextState[OFF_MV_RES_CTX]);
2110
0
    encodeBin(ver != 0 ? 1 : 0, m_contextState[OFF_MV_RES_CTX]);
2111
2112
0
    const bool bHorAbsGr0 = hor != 0;
2113
0
    const bool bVerAbsGr0 = ver != 0;
2114
0
    const uint32_t horAbs   = 0 > hor ? -hor : hor;
2115
0
    const uint32_t verAbs   = 0 > ver ? -ver : ver;
2116
2117
0
    if (bHorAbsGr0)
2118
0
        encodeBin(horAbs > 1 ? 1 : 0, m_contextState[OFF_MV_RES_CTX + 1]);
2119
2120
0
    if (bVerAbsGr0)
2121
0
        encodeBin(verAbs > 1 ? 1 : 0, m_contextState[OFF_MV_RES_CTX + 1]);
2122
2123
0
    if (bHorAbsGr0)
2124
0
    {
2125
0
        if (horAbs > 1)
2126
0
            writeEpExGolomb(horAbs - 2, 1);
2127
2128
0
        encodeBinEP(0 > hor ? 1 : 0);
2129
0
    }
2130
2131
0
    if (bVerAbsGr0)
2132
0
    {
2133
0
        if (verAbs > 1)
2134
0
            writeEpExGolomb(verAbs - 2, 1);
2135
2136
0
        encodeBinEP(0 > ver ? 1 : 0);
2137
0
    }
2138
0
}
2139
2140
void Entropy::codeDeltaQP(const CUData& cu, uint32_t absPartIdx)
2141
4.76k
{
2142
4.76k
    int dqp = cu.m_qp[absPartIdx] - cu.getRefQP(absPartIdx);
2143
2144
4.76k
    int qpBdOffsetY = QP_BD_OFFSET;
2145
2146
4.76k
    dqp = (dqp + 78 + qpBdOffsetY + (qpBdOffsetY / 2)) % (52 + qpBdOffsetY) - 26 - (qpBdOffsetY / 2);
2147
2148
4.76k
    uint32_t absDQp = (uint32_t)((dqp > 0) ? dqp  : (-dqp));
2149
4.76k
    uint32_t TUValue = X265_MIN((int)absDQp, CU_DQP_TU_CMAX);
2150
4.76k
    writeUnaryMaxSymbol(TUValue, &m_contextState[OFF_DELTA_QP_CTX], 1, CU_DQP_TU_CMAX);
2151
4.76k
    if (absDQp >= CU_DQP_TU_CMAX)
2152
4.04k
        writeEpExGolomb(absDQp - CU_DQP_TU_CMAX, CU_DQP_EG_k);
2153
2154
4.76k
    if (absDQp > 0)
2155
4.27k
    {
2156
4.27k
        uint32_t sign = (dqp > 0 ? 0 : 1);
2157
4.27k
        encodeBinEP(sign);
2158
4.27k
    }
2159
4.76k
}
2160
2161
void Entropy::codeQtCbfChroma(const CUData& cu, uint32_t absPartIdx, TextType ttype, uint32_t tuDepth, bool lowestLevel)
2162
8.40M
{
2163
8.40M
    uint32_t ctx = tuDepth + 2;
2164
2165
8.40M
    uint32_t log2TrSize = cu.m_log2CUSize[absPartIdx] - tuDepth;
2166
8.40M
    bool canQuadSplit       = (log2TrSize - cu.m_hChromaShift > 2);
2167
8.40M
    uint32_t lowestTUDepth  = tuDepth + ((!lowestLevel && !canQuadSplit) ? 1 : 0); // unsplittable TUs inherit their parent's CBF
2168
2169
8.40M
    if (cu.m_chromaFormat == X265_CSP_I422 && (lowestLevel || !canQuadSplit)) // if sub-TUs are present
2170
0
    {
2171
0
        uint32_t subTUDepth        = lowestTUDepth + 1;   // if this is the lowest level of the TU-tree, the sub-TUs are directly below.
2172
                                                          // Otherwise, this must be the level above the lowest level (as specified above)
2173
0
        uint32_t tuNumParts = 1 << ((log2TrSize - LOG2_UNIT_SIZE) * 2 - 1);
2174
2175
0
        encodeBin(cu.getCbf(absPartIdx             , ttype, subTUDepth), m_contextState[OFF_QT_CBF_CTX + ctx]);
2176
0
        encodeBin(cu.getCbf(absPartIdx + tuNumParts, ttype, subTUDepth), m_contextState[OFF_QT_CBF_CTX + ctx]);
2177
0
    }
2178
8.40M
    else
2179
8.40M
        encodeBin(cu.getCbf(absPartIdx, ttype, lowestTUDepth), m_contextState[OFF_QT_CBF_CTX + ctx]);
2180
8.40M
}
2181
2182
#if CHECKED_BUILD || _DEBUG
2183
uint32_t costCoeffRemain_c0(uint16_t *absCoeff, int numNonZero)
2184
{
2185
    uint32_t goRiceParam = 0;
2186
    int firstCoeff2 = 1;
2187
    uint32_t baseLevelN = 0x5555AAAA; // 2-bits encode format baseLevel
2188
2189
    uint32_t sum = 0;
2190
    int idx = 0;
2191
    do
2192
    {
2193
        int baseLevel = (baseLevelN & 3) | firstCoeff2;
2194
        X265_CHECK(baseLevel == ((idx < C1FLAG_NUMBER) ? (2 + firstCoeff2) : 1), "baseLevel check failurr\n");
2195
        baseLevelN >>= 2;
2196
        int codeNumber = absCoeff[idx] - baseLevel;
2197
2198
        if (codeNumber >= 0)
2199
        {
2200
            //writeCoefRemainExGolomb(absCoeff[idx] - baseLevel, goRiceParam);
2201
            uint32_t length = 0;
2202
2203
            codeNumber = ((uint32_t)codeNumber >> goRiceParam) - COEF_REMAIN_BIN_REDUCTION;
2204
            if (codeNumber >= 0)
2205
            {
2206
                {
2207
                    unsigned long cidx;
2208
                    BSR(cidx, codeNumber + 1);
2209
                    length = cidx;
2210
                }
2211
                X265_CHECK((codeNumber != 0) || (length == 0), "length check failure\n");
2212
2213
                codeNumber = (length + length);
2214
            }
2215
            sum += (COEF_REMAIN_BIN_REDUCTION + 1 + goRiceParam + codeNumber);
2216
2217
            if (absCoeff[idx] > (COEF_REMAIN_BIN_REDUCTION << goRiceParam))
2218
                goRiceParam = (goRiceParam + 1) - (goRiceParam >> 2);
2219
            X265_CHECK(goRiceParam <= 4, "goRiceParam check failure\n");
2220
        }
2221
        if (absCoeff[idx] >= 2)
2222
            firstCoeff2 = 0;
2223
        idx++;
2224
    }
2225
    while(idx < numNonZero);
2226
2227
    return sum;
2228
}
2229
#endif // debug only code
2230
2231
void Entropy::codeCoeffNxN(const CUData& cu, const coeff_t* coeff, uint32_t absPartIdx, uint32_t log2TrSize, TextType ttype)
2232
60.1k
{
2233
60.1k
    uint32_t trSize = 1 << log2TrSize;
2234
60.1k
    uint32_t tqBypass = cu.m_tqBypass[absPartIdx];
2235
    // compute number of significant coefficients
2236
60.1k
    uint32_t numSig = primitives.cu[log2TrSize - 2].count_nonzero(coeff);
2237
60.1k
    X265_CHECK(numSig > 0, "cbf check fail\n");
2238
60.1k
    bool bHideFirstSign = cu.m_slice->m_pps->bSignHideEnabled & !tqBypass;
2239
2240
60.1k
    if (log2TrSize <= MAX_LOG2_TS_SIZE && !tqBypass && cu.m_slice->m_pps->bTransformSkipEnabled)
2241
0
        codeTransformSkipFlags(cu.m_transformSkip[ttype][absPartIdx], ttype);
2242
2243
60.1k
    bool bIsLuma = ttype == TEXT_LUMA;
2244
2245
    // select scans
2246
60.1k
    TUEntropyCodingParameters codingParameters;
2247
60.1k
    cu.getTUEntropyCodingParameters(codingParameters, absPartIdx, log2TrSize, bIsLuma);
2248
2249
60.1k
    uint8_t coeffNum[MLS_GRP_NUM];      // value range[0, 16]
2250
60.1k
    uint16_t coeffSign[MLS_GRP_NUM];    // bit mask map for non-zero coeff sign
2251
60.1k
    uint16_t coeffFlag[MLS_GRP_NUM];    // bit mask map for non-zero coeff
2252
2253
    //----- encode significance map -----
2254
2255
    // Find position of last coefficient
2256
60.1k
    int scanPosLast = 0;
2257
60.1k
    uint32_t posLast;
2258
60.1k
    uint64_t sigCoeffGroupFlag64 = 0;
2259
    //const uint32_t maskPosXY = ((uint32_t)~0 >> (31 - log2TrSize + MLS_CG_LOG2_SIZE)) >> 1;
2260
60.1k
    X265_CHECK((uint32_t)((1 << (log2TrSize - MLS_CG_LOG2_SIZE)) - 1) == (((uint32_t)~0 >> (31 - log2TrSize + MLS_CG_LOG2_SIZE)) >> 1), "maskPosXY fault\n");
2261
2262
60.1k
    scanPosLast = primitives.scanPosLast(codingParameters.scan, coeff, coeffSign, coeffFlag, coeffNum, numSig, g_scan4x4[codingParameters.scanType], trSize);
2263
60.1k
    posLast = codingParameters.scan[scanPosLast];
2264
2265
60.1k
    const int lastScanSet = scanPosLast >> MLS_CG_SIZE;
2266
2267
    // Calculate CG block non-zero mask, the latest CG always flag as non-zero in CG scan loop
2268
144k
    for(int idx = 0; idx < lastScanSet; idx++)
2269
84.7k
    {
2270
84.7k
        const uint8_t subSet = (uint8_t)codingParameters.scanCG[idx];
2271
84.7k
        const uint8_t nonZero = (coeffNum[idx] != 0);
2272
84.7k
        sigCoeffGroupFlag64 |= ((nonZero ? (uint64_t)1 : 0) << subSet);
2273
84.7k
    }
2274
2275
2276
    // Code position of last coefficient
2277
60.1k
    {
2278
        // The last position is composed of a prefix and suffix.
2279
        // The prefix is context coded truncated unary bins. The suffix is bypass coded fixed length bins.
2280
        // The bypass coded bins for both the x and y components are grouped together.
2281
60.1k
        uint32_t packedSuffixBits = 0, packedSuffixLen = 0;
2282
60.1k
        uint32_t pos[2] = { (posLast & (trSize - 1)), (posLast >> log2TrSize) };
2283
        // swap
2284
60.1k
        if (codingParameters.scanType == SCAN_VER)
2285
4.42k
            std::swap(pos[0], pos[1]);
2286
2287
60.1k
        int ctxIdx = bIsLuma ? (3 * (log2TrSize - 2) + (log2TrSize == 5)) : NUM_CTX_LAST_FLAG_XY_LUMA;
2288
60.1k
        int ctxShift = (bIsLuma ? (log2TrSize > 2) : (log2TrSize - 2));
2289
60.1k
        uint32_t maxGroupIdx = (log2TrSize << 1) - 1;
2290
60.1k
        X265_CHECK(((log2TrSize - 1) >> 2) == (uint32_t)(log2TrSize == 5), "ctxIdx check failure\n");
2291
60.1k
        X265_CHECK((uint32_t)ctxShift == (bIsLuma ? ((log2TrSize + 1) >> 2) : log2TrSize - 2), "ctxShift check failure\n");
2292
2293
60.1k
        uint8_t *ctx = &m_contextState[OFF_CTX_LAST_FLAG_X];
2294
180k
        for (uint32_t i = 0; i < 2; i++, ctxIdx += NUM_CTX_LAST_FLAG_XY)
2295
120k
        {
2296
120k
            uint32_t temp = g_lastCoeffTable[pos[i]];
2297
120k
            uint32_t prefixOnes = temp & 15;
2298
120k
            uint32_t suffixLen = temp >> 4;
2299
2300
256k
            for (uint32_t ctxLast = 0; ctxLast < prefixOnes; ctxLast++)
2301
135k
                encodeBin(1, *(ctx + ctxIdx + (ctxLast >> ctxShift)));
2302
2303
120k
            if (prefixOnes < maxGroupIdx)
2304
87.2k
                encodeBin(0, *(ctx + ctxIdx + (prefixOnes >> ctxShift)));
2305
2306
120k
            packedSuffixBits <<= suffixLen;
2307
120k
            packedSuffixBits |= (pos[i] & ((1 << suffixLen) - 1));
2308
120k
            packedSuffixLen += suffixLen;
2309
120k
        }
2310
2311
60.1k
        encodeBinsEP(packedSuffixBits, packedSuffixLen);
2312
60.1k
    }
2313
2314
    // code significance flag
2315
60.1k
    uint8_t * const baseCoeffGroupCtx = &m_contextState[OFF_SIG_CG_FLAG_CTX + (bIsLuma ? 0 : NUM_SIG_CG_FLAG_CTX)];
2316
60.1k
    uint8_t * const baseCtx = bIsLuma ? &m_contextState[OFF_SIG_FLAG_CTX] : &m_contextState[OFF_SIG_FLAG_CTX + NUM_SIG_FLAG_CTX_LUMA];
2317
60.1k
    uint32_t c1 = 1;
2318
60.1k
    int scanPosSigOff = scanPosLast - (lastScanSet << MLS_CG_SIZE) - 1;
2319
60.1k
    ALIGN_VAR_32(uint16_t, absCoeff[(1 << MLS_CG_SIZE) + 1]);   // extra 2 bytes(+1) space for AVX2 assembly, +1 because (numNonZero<=1) in costCoeffNxN path
2320
60.1k
    uint32_t numNonZero = 1;
2321
60.1k
    unsigned long lastNZPosInCG = 0;
2322
60.1k
    unsigned long firstNZPosInCG = 0;
2323
2324
#if _DEBUG
2325
    // Unnecessary, for Valgrind-3.10.0 only
2326
    memset(absCoeff, 0, sizeof(absCoeff));
2327
#endif
2328
2329
60.1k
    absCoeff[0] = (uint16_t)abs(coeff[posLast]);
2330
2331
205k
    for (int subSet = lastScanSet; subSet >= 0; subSet--)
2332
144k
    {
2333
144k
        const uint32_t subCoeffFlag = coeffFlag[subSet];
2334
144k
        uint32_t scanFlagMask = subCoeffFlag;
2335
144k
        int subPosBase = subSet << MLS_CG_SIZE;
2336
        
2337
144k
        if (subSet == lastScanSet)
2338
60.1k
        {
2339
60.1k
            X265_CHECK(scanPosSigOff == scanPosLast - (lastScanSet << MLS_CG_SIZE) - 1, "scanPos mistake\n");
2340
60.1k
            scanFlagMask >>= 1;
2341
60.1k
        }
2342
2343
        // encode significant_coeffgroup_flag
2344
144k
        const int cgBlkPos = codingParameters.scanCG[subSet];
2345
144k
        const int cgPosY   = (uint32_t)cgBlkPos >> (log2TrSize - MLS_CG_LOG2_SIZE);
2346
144k
        const int cgPosX   = cgBlkPos & ((1 << (log2TrSize - MLS_CG_LOG2_SIZE)) - 1);
2347
144k
        const uint64_t cgBlkPosMask = ((uint64_t)1 << cgBlkPos);
2348
2349
144k
        if (subSet == lastScanSet || !subSet)
2350
65.4k
            sigCoeffGroupFlag64 |= cgBlkPosMask;
2351
79.4k
        else
2352
79.4k
        {
2353
79.4k
            uint32_t sigCoeffGroup = ((sigCoeffGroupFlag64 & cgBlkPosMask) != 0);
2354
79.4k
            uint32_t ctxSig = Quant::getSigCoeffGroupCtxInc(sigCoeffGroupFlag64, cgPosX, cgPosY, cgBlkPos, (trSize >> MLS_CG_LOG2_SIZE));
2355
79.4k
            encodeBin(sigCoeffGroup, baseCoeffGroupCtx[ctxSig]);
2356
79.4k
        }
2357
2358
        // encode significant_coeff_flag
2359
144k
        if ((scanPosSigOff >= 0) && (sigCoeffGroupFlag64 & cgBlkPosMask))
2360
103k
        {
2361
103k
            X265_CHECK((log2TrSize != 2) || (log2TrSize == 2 && subSet == 0), "log2TrSize and subSet mistake!\n");
2362
103k
            const int patternSigCtx = Quant::calcPatternSigCtx(sigCoeffGroupFlag64, cgPosX, cgPosY, cgBlkPos, (trSize >> MLS_CG_LOG2_SIZE));
2363
103k
            const uint32_t posOffset = (bIsLuma && subSet) ? 3 : 0;
2364
2365
            // NOTE: [patternSigCtx][posXinSubset][posYinSubset]
2366
103k
            static const uint8_t table_cnt[5][SCAN_SET_SIZE] =
2367
103k
            {
2368
                // patternSigCtx = 0
2369
103k
                {
2370
103k
                    2, 1, 1, 0,
2371
103k
                    1, 1, 0, 0,
2372
103k
                    1, 0, 0, 0,
2373
103k
                    0, 0, 0, 0,
2374
103k
                },
2375
                // patternSigCtx = 1
2376
103k
                {
2377
103k
                    2, 2, 2, 2,
2378
103k
                    1, 1, 1, 1,
2379
103k
                    0, 0, 0, 0,
2380
103k
                    0, 0, 0, 0,
2381
103k
                },
2382
                // patternSigCtx = 2
2383
103k
                {
2384
103k
                    2, 1, 0, 0,
2385
103k
                    2, 1, 0, 0,
2386
103k
                    2, 1, 0, 0,
2387
103k
                    2, 1, 0, 0,
2388
103k
                },
2389
                // patternSigCtx = 3
2390
103k
                {
2391
103k
                    2, 2, 2, 2,
2392
103k
                    2, 2, 2, 2,
2393
103k
                    2, 2, 2, 2,
2394
103k
                    2, 2, 2, 2,
2395
103k
                },
2396
                // 4x4
2397
103k
                {
2398
103k
                    0, 1, 4, 5,
2399
103k
                    2, 3, 4, 5,
2400
103k
                    6, 6, 8, 8,
2401
103k
                    7, 7, 8, 8
2402
103k
                }
2403
103k
            };
2404
2405
103k
            const int offset = codingParameters.firstSignificanceMapContext;
2406
103k
            const uint32_t blkPosBase  = codingParameters.scan[subPosBase];
2407
2408
103k
            X265_CHECK(scanPosSigOff >= 0, "scanPosSigOff check failure\n");
2409
103k
            if (m_bitIf)
2410
450
            {
2411
450
                ALIGN_VAR_32(uint16_t, tmpCoeff[SCAN_SET_SIZE]);
2412
450
                memset(tmpCoeff, 0, sizeof(tmpCoeff));
2413
2414
                // TODO: accelerate by PABSW
2415
2.25k
                for (int i = 0; i < MLS_CG_SIZE; i++)
2416
1.80k
                {
2417
1.80k
                    tmpCoeff[i * MLS_CG_SIZE + 0] = (uint16_t)abs(coeff[blkPosBase + i * trSize + 0]);
2418
1.80k
                    tmpCoeff[i * MLS_CG_SIZE + 1] = (uint16_t)abs(coeff[blkPosBase + i * trSize + 1]);
2419
1.80k
                    tmpCoeff[i * MLS_CG_SIZE + 2] = (uint16_t)abs(coeff[blkPosBase + i * trSize + 2]);
2420
1.80k
                    tmpCoeff[i * MLS_CG_SIZE + 3] = (uint16_t)abs(coeff[blkPosBase + i * trSize + 3]);
2421
1.80k
                }
2422
2423
450
                if (log2TrSize == 2)
2424
450
                {
2425
450
                    do
2426
6.75k
                    {
2427
6.75k
                        uint32_t blkPos, sig, ctxSig;
2428
6.75k
                        blkPos = g_scan4x4[codingParameters.scanType][scanPosSigOff];
2429
6.75k
                        sig     = scanFlagMask & 1;
2430
6.75k
                        scanFlagMask >>= 1;
2431
6.75k
                        X265_CHECK((uint32_t)(tmpCoeff[blkPos] != 0) == sig, "sign bit mistake\n");
2432
6.75k
                        {
2433
6.75k
                            ctxSig = table_cnt[4][blkPos];
2434
6.75k
                            X265_CHECK(ctxSig == Quant::getSigCtxInc(patternSigCtx, log2TrSize, trSize, blkPos, bIsLuma, codingParameters.firstSignificanceMapContext), "sigCtx mistake!\n");;
2435
6.75k
                            encodeBin(sig, baseCtx[ctxSig]);
2436
6.75k
                        }
2437
6.75k
                        absCoeff[numNonZero] = tmpCoeff[blkPos];
2438
6.75k
                        numNonZero += sig;
2439
6.75k
                        scanPosSigOff--;
2440
6.75k
                    }
2441
6.75k
                    while(scanPosSigOff >= 0);
2442
450
                }
2443
0
                else
2444
0
                {
2445
0
                    X265_CHECK((log2TrSize > 2), "log2TrSize must be more than 2 in this path!\n");
2446
2447
0
                    const uint8_t *tabSigCtx = table_cnt[(uint32_t)patternSigCtx];
2448
0
                    do
2449
0
                    {
2450
0
                        uint32_t blkPos, sig, ctxSig;
2451
0
                        blkPos = g_scan4x4[codingParameters.scanType][scanPosSigOff];
2452
0
                        const uint32_t posZeroMask = (subPosBase + scanPosSigOff) ? ~0 : 0;
2453
0
                        sig     = scanFlagMask & 1;
2454
0
                        scanFlagMask >>= 1;
2455
0
                        X265_CHECK((uint32_t)(tmpCoeff[blkPos] != 0) == sig, "sign bit mistake\n");
2456
0
                        if (scanPosSigOff != 0 || subSet == 0 || numNonZero)
2457
0
                        {
2458
0
                            const uint32_t cnt = tabSigCtx[blkPos] + offset;
2459
0
                            ctxSig = (cnt + posOffset) & posZeroMask;
2460
2461
0
                            X265_CHECK(ctxSig == Quant::getSigCtxInc(patternSigCtx, log2TrSize, trSize, codingParameters.scan[subPosBase + scanPosSigOff], bIsLuma, codingParameters.firstSignificanceMapContext), "sigCtx mistake!\n");;
2462
0
                            encodeBin(sig, baseCtx[ctxSig]);
2463
0
                        }
2464
0
                        absCoeff[numNonZero] = tmpCoeff[blkPos];
2465
0
                        numNonZero += sig;
2466
0
                        scanPosSigOff--;
2467
0
                    }
2468
0
                    while(scanPosSigOff >= 0);
2469
0
                }
2470
450
            }
2471
102k
            else // fast RD path
2472
102k
            {
2473
                // maximum g_entropyBits are 18-bits and maximum of count are 16, so intermedia of sum are 22-bits
2474
102k
                const uint8_t *tabSigCtx = table_cnt[(log2TrSize == 2) ? 4 : (uint32_t)patternSigCtx];
2475
102k
                X265_CHECK(numNonZero <= 1, "numNonZero check failure");
2476
102k
                uint32_t sum = primitives.costCoeffNxN(g_scan4x4[codingParameters.scanType], &coeff[blkPosBase], (intptr_t)trSize, absCoeff + numNonZero, tabSigCtx, scanFlagMask, baseCtx, offset + posOffset, scanPosSigOff, subPosBase);
2477
2478
#if CHECKED_BUILD || _DEBUG
2479
                numNonZero = coeffNum[subSet];
2480
#endif
2481
                // update RD cost
2482
102k
                m_fracBits += sum;
2483
102k
            } // end of fast RD path -- !m_bitIf
2484
103k
        }
2485
144k
        X265_CHECK(coeffNum[subSet] == numNonZero, "coefNum mistake\n");
2486
2487
144k
        uint32_t coeffSigns = coeffSign[subSet];
2488
144k
        numNonZero = coeffNum[subSet];
2489
144k
        if (numNonZero > 0)
2490
144k
        {
2491
144k
            uint32_t idx = 0;
2492
144k
            X265_CHECK(subCoeffFlag > 0, "subCoeffFlag is zero\n");
2493
144k
            BSR(lastNZPosInCG, subCoeffFlag);
2494
144k
            BSF(firstNZPosInCG, subCoeffFlag);
2495
2496
144k
            bool signHidden = (lastNZPosInCG - firstNZPosInCG >= SBH_THRESHOLD);
2497
144k
            const uint8_t ctxSet = (((subSet > 0) + bIsLuma) & 2) + !(c1 & 3);
2498
144k
            X265_CHECK((((subSet > 0) & bIsLuma) ? 2 : 0) + !(c1 & 3) == ctxSet, "ctxSet check failure\n");
2499
2500
144k
            c1 = 1;
2501
144k
            uint8_t *baseCtxMod = &m_contextState[(bIsLuma ? 0 : NUM_ONE_FLAG_CTX_LUMA) + OFF_ONE_FLAG_CTX + 4 * ctxSet];
2502
2503
144k
            uint32_t numC1Flag = X265_MIN(numNonZero, C1FLAG_NUMBER);
2504
144k
            X265_CHECK(numC1Flag > 0, "numC1Flag check failure\n");
2505
2506
144k
            if (!m_bitIf)
2507
142k
            {
2508
142k
                uint32_t sum = primitives.costC1C2Flag(absCoeff, numC1Flag, baseCtxMod, (bIsLuma ? 0 : NUM_ABS_FLAG_CTX_LUMA - NUM_ONE_FLAG_CTX_LUMA) + (OFF_ABS_FLAG_CTX - OFF_ONE_FLAG_CTX) - 3 * ctxSet);
2509
142k
                uint32_t firstC2Idx = (sum >> 28);
2510
142k
                c1 = ((sum >> 26) & 3);
2511
142k
                m_fracBits += sum & 0x00FFFFFF;
2512
2513
142k
                const int hiddenShift = (bHideFirstSign & signHidden) ? -1 : 0;
2514
                //encodeBinsEP((coeffSigns >> hiddenShift), numNonZero - hiddenShift);
2515
142k
                m_fracBits += (numNonZero + hiddenShift) << 15;
2516
2517
142k
                if (numNonZero > firstC2Idx)
2518
137k
                {
2519
137k
                    sum = primitives.costCoeffRemain(absCoeff, numNonZero, firstC2Idx);
2520
137k
                    X265_CHECK(sum == costCoeffRemain_c0(absCoeff, numNonZero), "costCoeffRemain check failure\n");
2521
137k
                    m_fracBits += ((uint64_t)sum << 15);
2522
137k
                }
2523
142k
            }
2524
            // Standard path
2525
2.03k
            else
2526
2.03k
            {
2527
2.03k
                uint32_t firstC2Idx = 8;
2528
2.03k
                uint32_t firstC2Flag = 2;
2529
2.03k
                uint32_t c1Next = 0xFFFFFFFE;
2530
2531
2.03k
                idx = 0;
2532
2.03k
                do
2533
5.18k
                {
2534
5.18k
                    const uint32_t symbol1 = absCoeff[idx] > 1;
2535
5.18k
                    const uint32_t symbol2 = absCoeff[idx] > 2;
2536
5.18k
                    encodeBin(symbol1, baseCtxMod[c1]);
2537
2538
5.18k
                    if (symbol1)
2539
5.03k
                        c1Next = 0;
2540
2541
5.18k
                    firstC2Flag = (symbol1 + firstC2Flag == 3) ? symbol2 : firstC2Flag;
2542
5.18k
                    firstC2Idx  = (symbol1 + firstC2Idx == 9) ? idx : firstC2Idx;
2543
2544
5.18k
                    c1 = (c1Next & 3);
2545
5.18k
                    c1Next >>= 2;
2546
5.18k
                    X265_CHECK(c1 <= 3, "c1 check failure\n");
2547
5.18k
                    idx++;
2548
5.18k
                }
2549
5.18k
                while(idx < numC1Flag);
2550
2551
2.03k
                if (!c1)
2552
1.88k
                {
2553
1.88k
                    baseCtxMod = &m_contextState[(bIsLuma ? 0 : NUM_ABS_FLAG_CTX_LUMA) + OFF_ABS_FLAG_CTX + ctxSet];
2554
2555
1.88k
                    X265_CHECK((firstC2Flag <= 1), "firstC2FlagIdx check failure\n");
2556
1.88k
                    encodeBin(firstC2Flag, baseCtxMod[0]);
2557
1.88k
                }
2558
2559
2.03k
                const int hiddenShift = (bHideFirstSign && signHidden) ? 1 : 0;
2560
2.03k
                encodeBinsEP((coeffSigns >> hiddenShift), numNonZero - hiddenShift);
2561
2562
2.03k
                if (!c1 || numNonZero > C1FLAG_NUMBER)
2563
1.88k
                {
2564
                    // Standard path
2565
1.88k
                    uint32_t goRiceParam = 0;
2566
1.88k
                    int baseLevel = 3;
2567
1.88k
                    uint32_t threshold = COEF_REMAIN_BIN_REDUCTION;
2568
#if CHECKED_BUILD || _DEBUG
2569
                    int firstCoeff2 = 1;
2570
#endif
2571
1.88k
                    idx = firstC2Idx;
2572
1.88k
                    do
2573
8.63k
                    {
2574
8.63k
                        if (idx >= C1FLAG_NUMBER)
2575
3.60k
                            baseLevel = 1;
2576
                        // TODO: fast algorithm maybe broken this check logic
2577
8.63k
                        X265_CHECK(baseLevel == ((idx < C1FLAG_NUMBER) ? (2 + firstCoeff2) : 1), "baseLevel check failurr\n");
2578
2579
8.63k
                        if (absCoeff[idx] >= baseLevel)
2580
8.63k
                        {
2581
8.63k
                            writeCoefRemainExGolomb(absCoeff[idx] - baseLevel, goRiceParam);
2582
8.63k
                            X265_CHECK(threshold == (uint32_t)(COEF_REMAIN_BIN_REDUCTION << goRiceParam), "COEF_REMAIN_BIN_REDUCTION check failure\n");
2583
8.63k
                            const int adjust = (absCoeff[idx] > threshold) & (goRiceParam <= 3);
2584
8.63k
                            goRiceParam += adjust;
2585
8.63k
                            threshold += (adjust) ? threshold : 0;
2586
8.63k
                            X265_CHECK(goRiceParam <= 4, "goRiceParam check failure\n");
2587
8.63k
                        }
2588
#if CHECKED_BUILD || _DEBUG
2589
                        firstCoeff2 = 0;
2590
#endif
2591
8.63k
                        baseLevel = 2;
2592
8.63k
                        idx++;
2593
8.63k
                    }
2594
8.63k
                    while(idx < numNonZero);
2595
1.88k
                }
2596
2.03k
            } // end of !bitIf
2597
144k
        } // end of (numNonZero > 0)
2598
2599
        // Initialize value for next loop
2600
144k
        numNonZero = 0;
2601
144k
        scanPosSigOff = (1 << MLS_CG_SIZE) - 1;
2602
144k
    }
2603
60.1k
}
2604
2605
void Entropy::codeSaoMaxUvlc(uint32_t code, uint32_t maxSymbol)
2606
790k
{
2607
790k
    X265_CHECK(maxSymbol > 0, "maxSymbol too small\n");
2608
2609
790k
    uint32_t isCodeNonZero = !!code;
2610
2611
790k
    encodeBinEP(isCodeNonZero);
2612
790k
    if (isCodeNonZero)
2613
89
    {
2614
89
        uint32_t isCodeLast = (maxSymbol > code);
2615
89
        uint32_t mask = (1 << (code - 1)) - 1;
2616
89
        uint32_t len = code - 1 + isCodeLast;
2617
89
        mask <<= isCodeLast;
2618
2619
89
        encodeBinsEP(mask, len);
2620
89
    }
2621
790k
}
2622
2623
/* estimate bit cost for CBP, significant map and significant coefficients */
2624
void Entropy::estBit(EstBitsSbac& estBitsSbac, uint32_t log2TrSize, bool bIsLuma) const
2625
8.16M
{
2626
8.16M
    estCBFBit(estBitsSbac);
2627
2628
8.16M
    estSignificantCoeffGroupMapBit(estBitsSbac, bIsLuma);
2629
2630
    // encode significance map
2631
8.16M
    estSignificantMapBit(estBitsSbac, log2TrSize, bIsLuma);
2632
2633
    // encode significant coefficients
2634
8.16M
    estSignificantCoefficientsBit(estBitsSbac, bIsLuma);
2635
8.16M
}
2636
2637
/* estimate bit cost for each CBP bit */
2638
void Entropy::estCBFBit(EstBitsSbac& estBitsSbac) const
2639
8.16M
{
2640
8.16M
    const uint8_t *ctx = &m_contextState[OFF_QT_CBF_CTX];
2641
2642
65.3M
    for (uint32_t ctxInc = 0; ctxInc < NUM_QT_CBF_CTX; ctxInc++)
2643
57.1M
    {
2644
57.1M
        estBitsSbac.blockCbpBits[ctxInc][0] = sbacGetEntropyBits(ctx[ctxInc], 0);
2645
57.1M
        estBitsSbac.blockCbpBits[ctxInc][1] = sbacGetEntropyBits(ctx[ctxInc], 1);
2646
57.1M
    }
2647
2648
8.16M
    ctx = &m_contextState[OFF_QT_ROOT_CBF_CTX];
2649
2650
8.16M
    estBitsSbac.blockRootCbpBits[0] = sbacGetEntropyBits(ctx[0], 0);
2651
8.16M
    estBitsSbac.blockRootCbpBits[1] = sbacGetEntropyBits(ctx[0], 1);
2652
8.16M
}
2653
2654
/* estimate SAMBAC bit cost for significant coefficient group map */
2655
void Entropy::estSignificantCoeffGroupMapBit(EstBitsSbac& estBitsSbac, bool bIsLuma) const
2656
8.16M
{
2657
8.16M
    int firstCtx = 0, numCtx = NUM_SIG_CG_FLAG_CTX;
2658
2659
24.4M
    for (int ctxIdx = firstCtx; ctxIdx < firstCtx + numCtx; ctxIdx++)
2660
48.9M
        for (uint32_t bin = 0; bin < 2; bin++)
2661
32.6M
            estBitsSbac.significantCoeffGroupBits[ctxIdx][bin] = sbacGetEntropyBits(m_contextState[OFF_SIG_CG_FLAG_CTX + ((bIsLuma ? 0 : NUM_SIG_CG_FLAG_CTX) + ctxIdx)], bin);
2662
8.16M
}
2663
2664
/* estimate SAMBAC bit cost for significant coefficient map */
2665
void Entropy::estSignificantMapBit(EstBitsSbac& estBitsSbac, uint32_t log2TrSize, bool bIsLuma) const
2666
8.16M
{
2667
8.16M
    int firstCtx = 1, numCtx = 8;
2668
2669
8.16M
    if (log2TrSize >= 4)
2670
316k
    {
2671
316k
        firstCtx = bIsLuma ? 21 : 12;
2672
316k
        numCtx = bIsLuma ? 6 : 3;
2673
316k
    }
2674
7.85M
    else if (log2TrSize == 3)
2675
1.25M
    {
2676
1.25M
        firstCtx = 9;
2677
1.25M
        numCtx = bIsLuma ? 12 : 3;
2678
1.25M
    }
2679
2680
8.16M
    const int ctxSigOffset = OFF_SIG_FLAG_CTX + (bIsLuma ? 0 : NUM_SIG_FLAG_CTX_LUMA);
2681
2682
8.16M
    estBitsSbac.significantBits[0][0] = sbacGetEntropyBits(m_contextState[ctxSigOffset], 0);
2683
8.16M
    estBitsSbac.significantBits[1][0] = sbacGetEntropyBits(m_contextState[ctxSigOffset], 1);
2684
2685
74.3M
    for (int ctxIdx = firstCtx; ctxIdx < firstCtx + numCtx; ctxIdx++)
2686
66.2M
    {
2687
66.2M
        estBitsSbac.significantBits[0][ctxIdx] = sbacGetEntropyBits(m_contextState[ctxSigOffset + ctxIdx], 0);
2688
66.2M
        estBitsSbac.significantBits[1][ctxIdx] = sbacGetEntropyBits(m_contextState[ctxSigOffset + ctxIdx], 1);
2689
66.2M
    }
2690
2691
8.16M
    const uint32_t maxGroupIdx = log2TrSize * 2 - 1;
2692
8.16M
    if (bIsLuma)
2693
4.73M
    {
2694
4.73M
        if (log2TrSize == 2)
2695
3.60M
        {
2696
10.8M
            for (int i = 0, ctxIdx = 0; i < 2; i++, ctxIdx += NUM_CTX_LAST_FLAG_XY)
2697
7.20M
            {
2698
7.20M
                int bits = 0;
2699
7.20M
                const uint8_t *ctxState = &m_contextState[OFF_CTX_LAST_FLAG_X + ctxIdx];
2700
2701
28.8M
                for (uint32_t ctx = 0; ctx < 3; ctx++)
2702
21.6M
                {
2703
21.6M
                    estBitsSbac.lastBits[i][ctx] = bits + sbacGetEntropyBits(ctxState[ctx], 0);
2704
21.6M
                    bits += sbacGetEntropyBits(ctxState[ctx], 1);
2705
21.6M
                }
2706
2707
7.20M
                estBitsSbac.lastBits[i][maxGroupIdx] = bits;
2708
7.20M
            }
2709
3.60M
        }
2710
1.13M
        else
2711
1.13M
        {
2712
1.13M
            const int blkSizeOffset = ((log2TrSize - 2) * 3 + (log2TrSize == 5));
2713
2714
3.40M
            for (int i = 0, ctxIdx = 0; i < 2; i++, ctxIdx += NUM_CTX_LAST_FLAG_XY)
2715
2.26M
            {
2716
2.26M
                int bits = 0;
2717
2.26M
                const uint8_t *ctxState = &m_contextState[OFF_CTX_LAST_FLAG_X + ctxIdx];
2718
2.26M
                X265_CHECK(maxGroupIdx & 1, "maxGroupIdx check failure\n");
2719
2720
9.62M
                for (uint32_t ctx = 0; ctx < (maxGroupIdx >> 1) + 1; ctx++)
2721
7.35M
                {
2722
7.35M
                    const int cost0 = sbacGetEntropyBits(ctxState[blkSizeOffset + ctx], 0);
2723
7.35M
                    const int cost1 = sbacGetEntropyBits(ctxState[blkSizeOffset + ctx], 1);
2724
7.35M
                    estBitsSbac.lastBits[i][ctx * 2 + 0] = bits + cost0;
2725
7.35M
                    estBitsSbac.lastBits[i][ctx * 2 + 1] = bits + cost1 + cost0;
2726
7.35M
                    bits += 2 * cost1;
2727
7.35M
                }
2728
                // correct latest bit cost, it didn't include cost0
2729
2.26M
                estBitsSbac.lastBits[i][maxGroupIdx] -= sbacGetEntropyBits(ctxState[blkSizeOffset + (maxGroupIdx >> 1)], 0);
2730
2.26M
            }
2731
1.13M
        }
2732
4.73M
    }
2733
3.43M
    else
2734
3.43M
    {
2735
3.43M
        const int blkSizeOffset = NUM_CTX_LAST_FLAG_XY_LUMA;
2736
3.43M
        const int ctxShift = log2TrSize - 2;
2737
2738
10.2M
        for (int i = 0, ctxIdx = 0; i < 2; i++, ctxIdx += NUM_CTX_LAST_FLAG_XY)
2739
6.86M
        {
2740
6.86M
            int bits = 0;
2741
6.86M
            const uint8_t *ctxState = &m_contextState[OFF_CTX_LAST_FLAG_X + ctxIdx];
2742
2743
29.5M
            for (uint32_t ctx = 0; ctx < maxGroupIdx; ctx++)
2744
22.6M
            {
2745
22.6M
                int ctxOffset = blkSizeOffset + (ctx >> ctxShift);
2746
22.6M
                estBitsSbac.lastBits[i][ctx] = bits + sbacGetEntropyBits(ctxState[ctxOffset], 0);
2747
22.6M
                bits += sbacGetEntropyBits(ctxState[ctxOffset], 1);
2748
22.6M
            }
2749
2750
6.86M
            estBitsSbac.lastBits[i][maxGroupIdx] = bits;
2751
6.86M
        }
2752
3.43M
    }
2753
8.16M
}
2754
2755
/* estimate bit cost of significant coefficient */
2756
void Entropy::estSignificantCoefficientsBit(EstBitsSbac& estBitsSbac, bool bIsLuma) const
2757
8.16M
{
2758
8.16M
    if (bIsLuma)
2759
4.73M
    {
2760
4.73M
        const uint8_t *ctxOne = &m_contextState[OFF_ONE_FLAG_CTX];
2761
4.73M
        const uint8_t *ctxAbs = &m_contextState[OFF_ABS_FLAG_CTX];
2762
2763
80.5M
        for (int ctxIdx = 0; ctxIdx < NUM_ONE_FLAG_CTX_LUMA; ctxIdx++)
2764
75.7M
        {
2765
75.7M
            estBitsSbac.greaterOneBits[ctxIdx][0] = sbacGetEntropyBits(ctxOne[ctxIdx], 0);
2766
75.7M
            estBitsSbac.greaterOneBits[ctxIdx][1] = sbacGetEntropyBits(ctxOne[ctxIdx], 1);
2767
75.7M
        }
2768
2769
23.6M
        for (int ctxIdx = 0; ctxIdx < NUM_ABS_FLAG_CTX_LUMA; ctxIdx++)
2770
18.9M
        {
2771
18.9M
            estBitsSbac.levelAbsBits[ctxIdx][0] = sbacGetEntropyBits(ctxAbs[ctxIdx], 0);
2772
18.9M
            estBitsSbac.levelAbsBits[ctxIdx][1] = sbacGetEntropyBits(ctxAbs[ctxIdx], 1);
2773
18.9M
        }
2774
4.73M
    }
2775
3.42M
    else
2776
3.42M
    {
2777
3.42M
        const uint8_t *ctxOne = &m_contextState[OFF_ONE_FLAG_CTX + NUM_ONE_FLAG_CTX_LUMA];
2778
3.42M
        const uint8_t *ctxAbs = &m_contextState[OFF_ABS_FLAG_CTX + NUM_ABS_FLAG_CTX_LUMA];
2779
2780
30.9M
        for (int ctxIdx = 0; ctxIdx < NUM_ONE_FLAG_CTX_CHROMA; ctxIdx++)
2781
27.4M
        {
2782
27.4M
            estBitsSbac.greaterOneBits[ctxIdx][0] = sbacGetEntropyBits(ctxOne[ctxIdx], 0);
2783
27.4M
            estBitsSbac.greaterOneBits[ctxIdx][1] = sbacGetEntropyBits(ctxOne[ctxIdx], 1);
2784
27.4M
        }
2785
2786
10.2M
        for (int ctxIdx = 0; ctxIdx < NUM_ABS_FLAG_CTX_CHROMA; ctxIdx++)
2787
6.86M
        {
2788
6.86M
            estBitsSbac.levelAbsBits[ctxIdx][0] = sbacGetEntropyBits(ctxAbs[ctxIdx], 0);
2789
6.86M
            estBitsSbac.levelAbsBits[ctxIdx][1] = sbacGetEntropyBits(ctxAbs[ctxIdx], 1);
2790
6.86M
        }
2791
3.42M
    }
2792
8.16M
}
2793
2794
/* Initialize our context information from the nominated source */
2795
void Entropy::copyContextsFrom(const Entropy& src)
2796
9.81k
{
2797
9.81k
    X265_CHECK(src.m_valid, "invalid copy source context\n");
2798
2799
9.81k
    memcpy(m_contextState, src.m_contextState, MAX_OFF_CTX_MOD * sizeof(m_contextState[0]));
2800
9.81k
    markValid();
2801
9.81k
}
2802
2803
void Entropy::start()
2804
628
{
2805
628
    m_low = 0;
2806
628
    m_range = 510;
2807
628
    m_bitsLeft = -12;
2808
628
    m_numBufferedBytes = 0;
2809
628
    m_bufferedByte = 0xff;
2810
628
}
2811
2812
void Entropy::finish()
2813
2.82k
{
2814
2.82k
    if (m_low >> (21 + m_bitsLeft))
2815
9
    {
2816
9
        m_bitIf->writeByte(m_bufferedByte + 1);
2817
10
        while (m_numBufferedBytes > 1)
2818
1
        {
2819
1
            m_bitIf->writeByte(0x00);
2820
1
            m_numBufferedBytes--;
2821
1
        }
2822
2823
9
        m_low -= 1 << (21 + m_bitsLeft);
2824
9
    }
2825
2.81k
    else
2826
2.81k
    {
2827
2.81k
        if (m_numBufferedBytes > 0)
2828
2.81k
            m_bitIf->writeByte(m_bufferedByte);
2829
2830
2.82k
        while (m_numBufferedBytes > 1)
2831
4
        {
2832
4
            m_bitIf->writeByte(0xff);
2833
4
            m_numBufferedBytes--;
2834
4
        }
2835
2.81k
    }
2836
2.82k
    m_bitIf->write(m_low >> 8, 13 + m_bitsLeft);
2837
2.82k
}
2838
2839
void Entropy::copyState(const Entropy& other)
2840
11.0M
{
2841
11.0M
    m_low = other.m_low;
2842
11.0M
    m_range = other.m_range;
2843
11.0M
    m_bitsLeft = other.m_bitsLeft;
2844
11.0M
    m_bufferedByte = other.m_bufferedByte;
2845
11.0M
    m_numBufferedBytes = other.m_numBufferedBytes;
2846
11.0M
    m_fracBits = other.m_fracBits;
2847
11.0M
}
2848
2849
void Entropy::resetBits()
2850
9.62M
{
2851
9.62M
    m_low = 0;
2852
9.62M
    m_bitsLeft = -12;
2853
9.62M
    m_numBufferedBytes = 0;
2854
9.62M
    m_bufferedByte = 0xff;
2855
9.62M
    m_fracBits &= 32767;
2856
9.62M
    if (m_bitIf)
2857
0
        m_bitIf->resetBits();
2858
9.62M
}
2859
2860
/** Encode bin */
2861
void Entropy::encodeBin(uint32_t binValue, uint8_t &ctxModel)
2862
29.0M
{
2863
29.0M
    uint32_t mstate = ctxModel;
2864
2865
29.0M
    ctxModel = sbacNext(mstate, binValue);
2866
2867
29.0M
    if (!m_bitIf)
2868
28.6M
    {
2869
28.6M
        m_fracBits += sbacGetEntropyBits(mstate, binValue);
2870
28.6M
        return;
2871
28.6M
    }
2872
2873
331k
    uint32_t range = m_range;
2874
331k
    uint32_t state = sbacGetState(mstate);
2875
331k
    uint32_t lps = g_lpsTable[state][((uint8_t)range >> 6)];
2876
331k
    range -= lps;
2877
2878
331k
    X265_CHECK(lps >= 2, "lps is too small\n");
2879
2880
331k
    int numBits = (uint32_t)(range - 256) >> 31;
2881
331k
    uint32_t low = m_low;
2882
2883
    // NOTE: MPS must be LOWEST bit in mstate
2884
331k
    X265_CHECK((uint32_t)((binValue ^ mstate) & 1) == (uint32_t)(binValue != sbacGetMps(mstate)), "binValue failure\n");
2885
331k
    if ((binValue ^ mstate) & 1)
2886
34.3k
    {
2887
        // NOTE: lps is non-zero and the maximum of idx is 8 because lps less than 256
2888
        //numBits = g_renormTable[lps >> 3];
2889
34.3k
        unsigned long idx;
2890
34.3k
        BSR(idx, lps);
2891
34.3k
        X265_CHECK(state != 63 || idx == 1, "state failure\n");
2892
2893
34.3k
        numBits = 8 - idx;
2894
34.3k
        if (state >= 63)
2895
0
            numBits = 6;
2896
34.3k
        X265_CHECK(numBits <= 6, "numBits failure\n");
2897
2898
34.3k
        low += range;
2899
34.3k
        range = lps;
2900
34.3k
    }
2901
331k
    m_low = (low << numBits);
2902
331k
    m_range = (range << numBits);
2903
331k
    m_bitsLeft += numBits;
2904
2905
331k
    if (m_bitsLeft >= 0)
2906
15.5k
        writeOut();
2907
331k
}
2908
2909
/** Encode equiprobable bin */
2910
void Entropy::encodeBinEP(uint32_t binValue)
2911
926k
{
2912
926k
    if (!m_bitIf)
2913
926k
    {
2914
926k
        m_fracBits += 32768;
2915
926k
        return;
2916
926k
    }
2917
468
    m_low <<= 1;
2918
468
    if (binValue)
2919
468
        m_low += m_range;
2920
468
    m_bitsLeft++;
2921
2922
468
    if (m_bitsLeft >= 0)
2923
93
        writeOut();
2924
468
}
2925
2926
/** Encode equiprobable bins */
2927
void Entropy::encodeBinsEP(uint32_t binValues, int numBins)
2928
8.57M
{
2929
8.57M
    if (!m_bitIf)
2930
8.49M
    {
2931
8.49M
        m_fracBits += 32768 * numBins;
2932
8.49M
        return;
2933
8.49M
    }
2934
2935
82.5k
    while (numBins > 8)
2936
3.32k
    {
2937
3.32k
        numBins -= 8;
2938
3.32k
        uint32_t pattern = binValues >> numBins;
2939
3.32k
        m_low <<= 8;
2940
3.32k
        m_low += m_range * pattern;
2941
3.32k
        binValues -= pattern << numBins;
2942
3.32k
        m_bitsLeft += 8;
2943
2944
3.32k
        if (m_bitsLeft >= 0)
2945
3.32k
            writeOut();
2946
3.32k
    }
2947
2948
79.2k
    m_low <<= numBins;
2949
79.2k
    m_low += m_range * binValues;
2950
79.2k
    m_bitsLeft += numBins;
2951
2952
79.2k
    if (m_bitsLeft >= 0)
2953
21.9k
        writeOut();
2954
79.2k
}
2955
2956
/** Encode terminating bin */
2957
void Entropy::encodeBinTrm(uint32_t binValue)
2958
27.9k
{
2959
27.9k
    if (!m_bitIf)
2960
12.5k
    {
2961
12.5k
        m_fracBits += sbacGetEntropyBitsTrm(binValue);
2962
12.5k
        return;
2963
12.5k
    }
2964
2965
15.3k
    m_range -= 2;
2966
15.3k
    if (binValue)
2967
2.82k
    {
2968
2.82k
        m_low += m_range;
2969
2.82k
        m_low <<= 7;
2970
2.82k
        m_range = 2 << 7;
2971
2.82k
        m_bitsLeft += 7;
2972
2.82k
    }
2973
12.5k
    else if (m_range >= 256)
2974
11.8k
        return;
2975
685
    else
2976
685
    {
2977
685
        m_low <<= 1;
2978
685
        m_range <<= 1;
2979
685
        m_bitsLeft++;
2980
685
    }
2981
2982
3.51k
    if (m_bitsLeft >= 0)
2983
2.61k
        writeOut();
2984
3.51k
}
2985
2986
/** Move bits from register into bitstream */
2987
void Entropy::writeOut()
2988
43.5k
{
2989
43.5k
    uint32_t leadByte = m_low >> (13 + m_bitsLeft);
2990
43.5k
    uint32_t low_mask = (uint32_t)(~0) >> (11 + 8 - m_bitsLeft);
2991
2992
43.5k
    m_bitsLeft -= 8;
2993
43.5k
    m_low &= low_mask;
2994
2995
43.5k
    if (leadByte == 0xff)
2996
3.34k
        m_numBufferedBytes++;
2997
40.2k
    else
2998
40.2k
    {
2999
40.2k
        uint32_t numBufferedBytes = m_numBufferedBytes;
3000
40.2k
        if (numBufferedBytes > 0)
3001
37.4k
        {
3002
37.4k
            uint32_t carry = leadByte >> 8;
3003
37.4k
            uint32_t byteTowrite = m_bufferedByte + carry;
3004
37.4k
            m_bitIf->writeByte(byteTowrite);
3005
3006
37.4k
            byteTowrite = (0xff + carry) & 0xff;
3007
40.7k
            while (numBufferedBytes > 1)
3008
3.33k
            {
3009
3.33k
                m_bitIf->writeByte(byteTowrite);
3010
3.33k
                numBufferedBytes--;
3011
3.33k
            }
3012
37.4k
        }
3013
40.2k
        m_numBufferedBytes = 1;
3014
40.2k
        m_bufferedByte = (uint8_t)leadByte;
3015
40.2k
    }
3016
43.5k
}
3017
3018
const uint32_t g_entropyBits[128] =
3019
{
3020
    // Corrected table, most notably for last state
3021
    0x07b23, 0x085f9, 0x074a0, 0x08cbc, 0x06ee4, 0x09354, 0x067f4, 0x09c1b, 0x060b0, 0x0a62a, 0x05a9c, 0x0af5b, 0x0548d, 0x0b955, 0x04f56, 0x0c2a9,
3022
    0x04a87, 0x0cbf7, 0x045d6, 0x0d5c3, 0x04144, 0x0e01b, 0x03d88, 0x0e937, 0x039e0, 0x0f2cd, 0x03663, 0x0fc9e, 0x03347, 0x10600, 0x03050, 0x10f95,
3023
    0x02d4d, 0x11a02, 0x02ad3, 0x12333, 0x0286e, 0x12cad, 0x02604, 0x136df, 0x02425, 0x13f48, 0x021f4, 0x149c4, 0x0203e, 0x1527b, 0x01e4d, 0x15d00,
3024
    0x01c99, 0x166de, 0x01b18, 0x17017, 0x019a5, 0x17988, 0x01841, 0x18327, 0x016df, 0x18d50, 0x015d9, 0x19547, 0x0147c, 0x1a083, 0x0138e, 0x1a8a3,
3025
    0x01251, 0x1b418, 0x01166, 0x1bd27, 0x01068, 0x1c77b, 0x00f7f, 0x1d18e, 0x00eda, 0x1d91a, 0x00e19, 0x1e254, 0x00d4f, 0x1ec9a, 0x00c90, 0x1f6e0,
3026
    0x00c01, 0x1fef8, 0x00b5f, 0x208b1, 0x00ab6, 0x21362, 0x00a15, 0x21e46, 0x00988, 0x2285d, 0x00934, 0x22ea8, 0x008a8, 0x239b2, 0x0081d, 0x24577,
3027
    0x007c9, 0x24ce6, 0x00763, 0x25663, 0x00710, 0x25e8f, 0x006a0, 0x26a26, 0x00672, 0x26f23, 0x005e8, 0x27ef8, 0x005ba, 0x284b5, 0x0055e, 0x29057,
3028
    0x0050c, 0x29bab, 0x004c1, 0x2a674, 0x004a7, 0x2aa5e, 0x0046f, 0x2b32f, 0x0041f, 0x2c0ad, 0x003e7, 0x2ca8d, 0x003ba, 0x2d323, 0x0010c, 0x3bfbb
3029
};
3030
3031
const uint8_t g_nextState[128][2] =
3032
{
3033
    { 2, 1 }, { 0, 3 }, { 4, 0 }, { 1, 5 }, { 6, 2 }, { 3, 7 }, { 8, 4 }, { 5, 9 },
3034
    { 10, 4 }, { 5, 11 }, { 12, 8 }, { 9, 13 }, { 14, 8 }, { 9, 15 }, { 16, 10 }, { 11, 17 },
3035
    { 18, 12 }, { 13, 19 }, { 20, 14 }, { 15, 21 }, { 22, 16 }, { 17, 23 }, { 24, 18 }, { 19, 25 },
3036
    { 26, 18 }, { 19, 27 }, { 28, 22 }, { 23, 29 }, { 30, 22 }, { 23, 31 }, { 32, 24 }, { 25, 33 },
3037
    { 34, 26 }, { 27, 35 }, { 36, 26 }, { 27, 37 }, { 38, 30 }, { 31, 39 }, { 40, 30 }, { 31, 41 },
3038
    { 42, 32 }, { 33, 43 }, { 44, 32 }, { 33, 45 }, { 46, 36 }, { 37, 47 }, { 48, 36 }, { 37, 49 },
3039
    { 50, 38 }, { 39, 51 }, { 52, 38 }, { 39, 53 }, { 54, 42 }, { 43, 55 }, { 56, 42 }, { 43, 57 },
3040
    { 58, 44 }, { 45, 59 }, { 60, 44 }, { 45, 61 }, { 62, 46 }, { 47, 63 }, { 64, 48 }, { 49, 65 },
3041
    { 66, 48 }, { 49, 67 }, { 68, 50 }, { 51, 69 }, { 70, 52 }, { 53, 71 }, { 72, 52 }, { 53, 73 },
3042
    { 74, 54 }, { 55, 75 }, { 76, 54 }, { 55, 77 }, { 78, 56 }, { 57, 79 }, { 80, 58 }, { 59, 81 },
3043
    { 82, 58 }, { 59, 83 }, { 84, 60 }, { 61, 85 }, { 86, 60 }, { 61, 87 }, { 88, 60 }, { 61, 89 },
3044
    { 90, 62 }, { 63, 91 }, { 92, 64 }, { 65, 93 }, { 94, 64 }, { 65, 95 }, { 96, 66 }, { 67, 97 },
3045
    { 98, 66 }, { 67, 99 }, { 100, 66 }, { 67, 101 }, { 102, 68 }, { 69, 103 }, { 104, 68 }, { 69, 105 },
3046
    { 106, 70 }, { 71, 107 }, { 108, 70 }, { 71, 109 }, { 110, 70 }, { 71, 111 }, { 112, 72 }, { 73, 113 },
3047
    { 114, 72 }, { 73, 115 }, { 116, 72 }, { 73, 117 }, { 118, 74 }, { 75, 119 }, { 120, 74 }, { 75, 121 },
3048
    { 122, 74 }, { 75, 123 }, { 124, 76 }, { 77, 125 }, { 124, 76 }, { 77, 125 }, { 126, 126 }, { 127, 127 }
3049
};
3050
3051
}
3052
3053
// [8 24] --> [stateMPS BitCost], [stateLPS BitCost]
3054
extern "C" const uint32_t PFX(entropyStateBits)[128] =
3055
{
3056
    // Corrected table, most notably for last state
3057
    0x02007B23, 0x000085F9, 0x040074A0, 0x00008CBC, 0x06006EE4, 0x02009354, 0x080067F4, 0x04009C1B,
3058
    0x0A0060B0, 0x0400A62A, 0x0C005A9C, 0x0800AF5B, 0x0E00548D, 0x0800B955, 0x10004F56, 0x0A00C2A9,
3059
    0x12004A87, 0x0C00CBF7, 0x140045D6, 0x0E00D5C3, 0x16004144, 0x1000E01B, 0x18003D88, 0x1200E937,
3060
    0x1A0039E0, 0x1200F2CD, 0x1C003663, 0x1600FC9E, 0x1E003347, 0x16010600, 0x20003050, 0x18010F95,
3061
    0x22002D4D, 0x1A011A02, 0x24002AD3, 0x1A012333, 0x2600286E, 0x1E012CAD, 0x28002604, 0x1E0136DF,
3062
    0x2A002425, 0x20013F48, 0x2C0021F4, 0x200149C4, 0x2E00203E, 0x2401527B, 0x30001E4D, 0x24015D00,
3063
    0x32001C99, 0x260166DE, 0x34001B18, 0x26017017, 0x360019A5, 0x2A017988, 0x38001841, 0x2A018327,
3064
    0x3A0016DF, 0x2C018D50, 0x3C0015D9, 0x2C019547, 0x3E00147C, 0x2E01A083, 0x4000138E, 0x3001A8A3,
3065
    0x42001251, 0x3001B418, 0x44001166, 0x3201BD27, 0x46001068, 0x3401C77B, 0x48000F7F, 0x3401D18E,
3066
    0x4A000EDA, 0x3601D91A, 0x4C000E19, 0x3601E254, 0x4E000D4F, 0x3801EC9A, 0x50000C90, 0x3A01F6E0,
3067
    0x52000C01, 0x3A01FEF8, 0x54000B5F, 0x3C0208B1, 0x56000AB6, 0x3C021362, 0x58000A15, 0x3C021E46,
3068
    0x5A000988, 0x3E02285D, 0x5C000934, 0x40022EA8, 0x5E0008A8, 0x400239B2, 0x6000081D, 0x42024577,
3069
    0x620007C9, 0x42024CE6, 0x64000763, 0x42025663, 0x66000710, 0x44025E8F, 0x680006A0, 0x44026A26,
3070
    0x6A000672, 0x46026F23, 0x6C0005E8, 0x46027EF8, 0x6E0005BA, 0x460284B5, 0x7000055E, 0x48029057,
3071
    0x7200050C, 0x48029BAB, 0x740004C1, 0x4802A674, 0x760004A7, 0x4A02AA5E, 0x7800046F, 0x4A02B32F,
3072
    0x7A00041F, 0x4A02C0AD, 0x7C0003E7, 0x4C02CA8D, 0x7C0003BA, 0x4C02D323, 0x7E00010C, 0x7E03BFBB,
3073
};
3074