Coverage Report

Created: 2026-08-31 06:22

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/work/vvenc/source/Lib/EncoderLib/CABACWriter.cpp
Line
Count
Source
1
/* -----------------------------------------------------------------------------
2
The copyright in this software is being made available under the Clear BSD
3
License, included below. No patent rights, trademark rights and/or 
4
other Intellectual Property Rights other than the copyrights concerning 
5
the Software are granted under this license.
6
7
The Clear BSD License
8
9
Copyright (c) 2019-2026, Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. & The VVenC Authors.
10
All rights reserved.
11
12
Redistribution and use in source and binary forms, with or without modification,
13
are permitted (subject to the limitations in the disclaimer below) provided that
14
the following conditions are met:
15
16
     * Redistributions of source code must retain the above copyright notice,
17
     this list of conditions and the following disclaimer.
18
19
     * Redistributions in binary form must reproduce the above copyright
20
     notice, this list of conditions and the following disclaimer in the
21
     documentation and/or other materials provided with the distribution.
22
23
     * Neither the name of the copyright holder nor the names of its
24
     contributors may be used to endorse or promote products derived from this
25
     software without specific prior written permission.
26
27
NO EXPRESS OR IMPLIED LICENSES TO ANY PARTY'S PATENT RIGHTS ARE GRANTED BY
28
THIS LICENSE. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND
29
CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
30
LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A
31
PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
32
CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
33
EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
34
PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
35
BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER
36
IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
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ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
38
POSSIBILITY OF SUCH DAMAGE.
39
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41
------------------------------------------------------------------------------------------- */
42
43
44
/** \file     CABACWriter.cpp
45
 *  \brief    Writer for low level syntax
46
 */
47
48
#include "CABACWriter.h"
49
#include "EncLib.h"
50
#include "CommonLib/Contexts.h"
51
#include "CommonLib/UnitTools.h"
52
#include "CommonLib/SampleAdaptiveOffset.h"
53
#include "CommonLib/dtrace_buffer.h"
54
55
#include <map>
56
#include <algorithm>
57
58
//! \ingroup EncoderLib
59
//! \{
60
61
namespace vvenc {
62
63
void CABACWriter::initCtxModels( const Slice& slice )
64
12.1k
{
65
12.1k
  int       qp                = slice.sliceQp;
66
12.1k
  SliceType sliceType         = slice.sliceType;
67
12.1k
  SliceType encCABACTableIdx  = slice.encCABACTableIdx;
68
12.1k
  if( !slice.isIntra() && (encCABACTableIdx==VVENC_B_SLICE || encCABACTableIdx==VVENC_P_SLICE) && slice.pps->cabacInitPresent )
69
0
  {
70
0
    sliceType = encCABACTableIdx;
71
0
  }
72
12.1k
  m_BinEncoder.reset( qp, (int)sliceType );
73
12.1k
}
74
75
76
77
SliceType xGetCtxInitId( const Slice& slice, const BinEncIf& binEncoder, Ctx& ctxTest )
78
0
{
79
0
  const CtxStore& ctxStoreTest = static_cast<const CtxStore&>( ctxTest );
80
0
  const CtxStore& ctxStoreRef  = static_cast<const CtxStore&>( binEncoder.getCtx() );
81
0
  int qp = slice.sliceQp;
82
0
  if( !slice.isIntra() )
83
0
  {
84
0
    SliceType aSliceTypeChoices[] = { VVENC_B_SLICE, VVENC_P_SLICE };
85
0
    uint64_t  bestCost                 = std::numeric_limits<uint64_t>::max();
86
0
    SliceType bestSliceType       = aSliceTypeChoices[0];
87
0
    for (uint32_t idx=0; idx<2; idx++)
88
0
    {
89
0
      uint64_t  curCost           = 0;
90
0
      SliceType curSliceType = aSliceTypeChoices[idx];
91
0
      ctxTest.init( qp, (int)curSliceType );
92
0
      for( int k = 0; k < Ctx::NumberOfContexts; k++ )
93
0
      {
94
0
        if( binEncoder.getNumBins(k) > 0 )
95
0
        {
96
0
          curCost += uint64_t( binEncoder.getNumBins(k) ) * ctxStoreRef[k].estFracExcessBits( ctxStoreTest[k] );
97
0
        }
98
0
      }
99
0
      if (curCost < bestCost)
100
0
      {
101
0
        bestSliceType = curSliceType;
102
0
        bestCost      = curCost;
103
0
      }
104
0
    }
105
0
    return bestSliceType;
106
0
  }
107
0
  else
108
0
  {
109
0
    return VVENC_I_SLICE;
110
0
  }
111
0
}
112
113
114
SliceType CABACWriter::getCtxInitId( const Slice& slice )
115
0
{
116
0
  return  xGetCtxInitId( slice, m_BinEncoder, m_TestCtx );
117
0
}
118
119
120
unsigned estBits( BinEncIf& binEnc, const std::vector<bool>& bins, const Ctx& ctx, const int ctxId, const uint8_t winSize )
121
0
{
122
0
  binEnc.initCtxAndWinSize( ctxId, ctx, winSize );
123
0
  binEnc.start();
124
0
  const std::size_t numBins   = bins.size();
125
0
  unsigned          startBits = binEnc.getNumWrittenBits();
126
0
  for( std::size_t binId = 0; binId < numBins; binId++ )
127
0
  {
128
0
    unsigned  bin = ( bins[binId] ? 1 : 0 );
129
0
    binEnc.encodeBin( bin, ctxId );
130
0
  }
131
0
  unsigned endBits    = binEnc.getNumWrittenBits();
132
0
  unsigned codedBits  = endBits - startBits;
133
0
  return   codedBits;
134
0
}
135
136
137
//================================================================================
138
//  clause 7.3.8.1
139
//--------------------------------------------------------------------------------
140
//    void  end_of_slice()
141
//================================================================================
142
143
void CABACWriter::end_of_slice()
144
1.20k
{
145
1.20k
  m_BinEncoder.encodeBinTrm ( 1 );
146
1.20k
  m_BinEncoder.finish       ();
147
1.20k
}
148
149
150
//================================================================================
151
//  clause 7.3.8.2
152
//--------------------------------------------------------------------------------
153
//    bool  coding_tree_unit( cs, area, qp, ctuRsAddr, skipSao, skipAlf )
154
//================================================================================
155
156
void CABACWriter::coding_tree_unit( CodingStructure& cs, const UnitArea& area, int (&qps)[2], unsigned ctuRsAddr, bool skipSao /* = false */, bool skipAlf /* = false */ )
157
7.53k
{
158
7.53k
  CUCtx cuCtx( qps[CH_L] );
159
7.53k
  Partitioner *partitioner = &m_partitioner[0];
160
161
7.53k
  partitioner->initCtu( area, CH_L, *cs.slice );
162
163
7.53k
  if( !skipSao )
164
3.76k
  {
165
3.76k
    sao( *cs.slice, ctuRsAddr );
166
3.76k
  }
167
168
7.53k
  if (!skipAlf)
169
3.76k
  {
170
15.0k
    for (int compIdx = 0; compIdx < MAX_NUM_COMP; compIdx++)
171
11.3k
    {
172
11.3k
      if(cs.slice->alfEnabled[compIdx])
173
0
      {
174
0
        codeAlfCtuEnabledFlag(cs, ctuRsAddr, compIdx);
175
0
        if (isLuma(ComponentID(compIdx)))
176
0
        {
177
0
          codeAlfCtuFilterIndex(cs, ctuRsAddr);
178
0
        }
179
0
        if (isChroma(ComponentID(compIdx)))
180
0
        {
181
0
          codeAlfCtuAlternative(cs, ctuRsAddr, compIdx, &cs.slice->alfAps[cs.slice->chromaApsId]->alfParam );
182
0
        }
183
0
      }
184
11.3k
    }
185
3.76k
  }
186
187
7.53k
  if ( !skipAlf )
188
3.76k
  {
189
11.3k
    for ( int compIdx = 1; compIdx < getNumberValidComponents( cs.pcv->chrFormat ); compIdx++ )
190
7.53k
    {
191
7.53k
      if (cs.slice->ccAlfFilterParam.ccAlfFilterEnabled[compIdx - 1])
192
0
      {
193
0
        const int filterCount   = cs.slice->ccAlfFilterParam.ccAlfFilterCount[compIdx - 1];
194
195
0
        const int      ry = ctuRsAddr / cs.pcv->widthInCtus;
196
0
        const int      rx = ctuRsAddr % cs.pcv->widthInCtus;
197
0
        const Position lumaPos(rx * cs.pcv->maxCUSize, ry * cs.pcv->maxCUSize);
198
199
0
        codeCcAlfFilterControlIdc(cs.slice->ccAlfFilterControl[compIdx - 1][ctuRsAddr], cs, ComponentID(compIdx),
200
0
                                  ctuRsAddr, cs.slice->ccAlfFilterControl[compIdx - 1], lumaPos, filterCount);
201
0
      }
202
7.53k
    }
203
3.76k
  }
204
205
7.53k
  if ( CS::isDualITree(cs) && cs.pcv->chrFormat != CHROMA_400 && cs.pcv->maxCUSize > 64 )
206
7.53k
  {
207
7.53k
    CUCtx chromaCuCtx(qps[CH_C]);
208
7.53k
    Partitioner *chromaPartitioner = &m_partitioner[1];
209
7.53k
    chromaPartitioner->initCtu(area, CH_C, *cs.slice);
210
7.53k
    coding_tree(cs, *partitioner, cuCtx, chromaPartitioner, &chromaCuCtx);
211
7.53k
    qps[CH_L] = cuCtx.qp;
212
7.53k
    qps[CH_C] = chromaCuCtx.qp;
213
7.53k
  }
214
0
  else
215
0
  {
216
0
    coding_tree( cs, *partitioner, cuCtx );
217
0
    qps[CH_L] = cuCtx.qp;
218
0
    if( CS::isDualITree( cs ) && cs.pcv->chrFormat != CHROMA_400 )
219
0
    {
220
0
      CUCtx cuCtxChroma( qps[CH_C] );
221
0
      partitioner->initCtu( area, CH_C, *cs.slice );
222
0
      coding_tree( cs, *partitioner, cuCtxChroma );
223
0
      qps[CH_C] = cuCtxChroma.qp;
224
0
    }
225
0
  }
226
7.53k
}
227
228
229
//================================================================================
230
//  clause 7.3.8.3
231
//--------------------------------------------------------------------------------
232
//    void  sao             ( slice, ctuRsAddr )
233
//    void  sao_block_pars  ( saoPars, bitDepths, sliceEnabled, leftMergeAvail, aboveMergeAvail, onlyEstMergeInfo )
234
//    void  sao_offset_pars ( ctbPars, compID, sliceEnabled, bitDepth )
235
//================================================================================
236
237
void CABACWriter::sao( const Slice& slice, unsigned ctuRsAddr )
238
3.76k
{
239
3.76k
  const SPS& sps = *slice.sps;
240
3.76k
  if( !sps.saoEnabled )
241
0
  {
242
0
    return;
243
0
  }
244
245
3.76k
  CodingStructure&     cs                     = *slice.pic->cs;
246
3.76k
  const PreCalcValues& pcv                    = *cs.pcv;
247
3.76k
  const SAOBlkParam&  sao_ctu_pars            = cs.picture->getSAO()[ctuRsAddr];
248
3.76k
  bool                slice_sao_luma_flag     = ( slice.saoEnabled[ CH_L ] );
249
3.76k
  bool                slice_sao_chroma_flag   = ( slice.saoEnabled[ CH_C ] && sps.chromaFormatIdc != CHROMA_400 );
250
3.76k
  if( !slice_sao_luma_flag && !slice_sao_chroma_flag )
251
0
  {
252
0
    return;
253
0
  }
254
255
3.76k
  bool                sliceEnabled[3]         = { slice_sao_luma_flag, slice_sao_chroma_flag, slice_sao_chroma_flag };
256
3.76k
  int                 frame_width_in_ctus     = pcv.widthInCtus;
257
3.76k
  int                 ry                      = ctuRsAddr      / frame_width_in_ctus;
258
3.76k
  int                 rx                      = ctuRsAddr - ry * frame_width_in_ctus;
259
3.76k
  const Position      pos                     ( rx * cs.pcv->maxCUSize, ry * cs.pcv->maxCUSize );
260
3.76k
  const unsigned      curSliceIdx             = slice.independentSliceIdx;
261
3.76k
  const unsigned      curTileIdx              = cs.pps->getTileIdx( pos );
262
3.76k
  bool                leftMergeAvail          = cs.getCURestricted( pos.offset( -(int)pcv.maxCUSize, 0  ), pos, curSliceIdx, curTileIdx, CH_L, TREE_D ) ? true : false;
263
3.76k
  bool                aboveMergeAvail         = cs.getCURestricted( pos.offset( 0, -(int)pcv.maxCUSize ), pos, curSliceIdx, curTileIdx, CH_L, TREE_D ) ? true : false;
264
3.76k
  sao_block_pars( sao_ctu_pars, sps.bitDepths, sliceEnabled, leftMergeAvail, aboveMergeAvail, false );
265
3.76k
}
266
267
268
void CABACWriter::sao_block_pars( const SAOBlkParam& saoPars, const BitDepths& bitDepths, const bool* sliceEnabled, bool leftMergeAvail, bool aboveMergeAvail, bool onlyEstMergeInfo )
269
14.6k
{
270
14.6k
  bool isLeftMerge  = false;
271
14.6k
  bool isAboveMerge = false;
272
14.6k
  if( leftMergeAvail )
273
7.27k
  {
274
    // sao_merge_left_flag
275
7.27k
    isLeftMerge   = ( saoPars[COMP_Y].modeIdc == SAO_MODE_MERGE && saoPars[COMP_Y].typeIdc == SAO_MERGE_LEFT );
276
7.27k
    m_BinEncoder.encodeBin( (isLeftMerge), Ctx::SaoMergeFlag() );
277
7.27k
  }
278
14.6k
  if( aboveMergeAvail && !isLeftMerge )
279
6.10k
  {
280
    // sao_merge_above_flag
281
6.10k
    isAboveMerge  = ( saoPars[COMP_Y].modeIdc == SAO_MODE_MERGE && saoPars[COMP_Y].typeIdc == SAO_MERGE_ABOVE );
282
6.10k
    m_BinEncoder.encodeBin( (isAboveMerge), Ctx::SaoMergeFlag() );
283
6.10k
  }
284
14.6k
  if( onlyEstMergeInfo )
285
3.76k
  {
286
3.76k
    return; //only for RDO
287
3.76k
  }
288
10.8k
  if( !isLeftMerge && !isAboveMerge )
289
4.97k
  {
290
    // explicit parameters
291
19.8k
    for( int compIdx=0; compIdx < MAX_NUM_COMP; compIdx++ )
292
14.9k
    {
293
14.9k
      sao_offset_pars( saoPars[compIdx], ComponentID(compIdx), sliceEnabled[compIdx], bitDepths[ toChannelType(ComponentID(compIdx)) ] );
294
14.9k
    }
295
4.97k
  }
296
10.8k
}
297
298
299
void CABACWriter::sao_offset_pars( const SAOOffset& ctbPars, ComponentID compID, bool sliceEnabled, int bitDepth )
300
82.7k
{
301
82.7k
  if( !sliceEnabled )
302
0
  {
303
0
    CHECK( ctbPars.modeIdc != SAO_MODE_OFF, "Sao must be off, if it is disabled on slice level" );
304
0
    return;
305
0
  }
306
82.7k
  const bool isFirstCompOfChType = ( getFirstComponentOfChannel( toChannelType(compID) ) == compID );
307
308
82.7k
  if( isFirstCompOfChType )
309
55.1k
  {
310
    // sao_type_idx_luma / sao_type_idx_chroma
311
55.1k
    if( ctbPars.modeIdc == SAO_MODE_OFF )
312
17.4k
    {
313
17.4k
      m_BinEncoder.encodeBin  ( 0, Ctx::SaoTypeIdx() );
314
17.4k
    }
315
37.7k
    else if( ctbPars.typeIdc == SAO_TYPE_BO )
316
7.57k
    {
317
7.57k
      m_BinEncoder.encodeBin  ( 1, Ctx::SaoTypeIdx() );
318
7.57k
      m_BinEncoder.encodeBinEP( 0 );
319
7.57k
    }
320
30.1k
    else
321
30.1k
    {
322
30.1k
      CHECK(!( ctbPars.typeIdc < SAO_TYPE_START_BO ), "Unspecified error");
323
30.1k
      m_BinEncoder.encodeBin  ( 1, Ctx::SaoTypeIdx() );
324
30.1k
      m_BinEncoder.encodeBinEP( 1 );
325
30.1k
    }
326
55.1k
  }
327
328
82.7k
  if( ctbPars.modeIdc == SAO_MODE_NEW )
329
56.5k
  {
330
56.5k
    const int maxOffsetQVal = SampleAdaptiveOffset::getMaxOffsetQVal( bitDepth );
331
56.5k
    int       numClasses    = ( ctbPars.typeIdc == SAO_TYPE_BO ? 4 : NUM_SAO_EO_CLASSES );
332
56.5k
    int       k             = 0;
333
56.5k
    int       offset[4];
334
327k
    for( int i = 0; i < numClasses; i++ )
335
271k
    {
336
271k
      if( ctbPars.typeIdc != SAO_TYPE_BO && i == SAO_CLASS_EO_PLAIN )
337
45.1k
      {
338
45.1k
        continue;
339
45.1k
      }
340
226k
      int classIdx = ( ctbPars.typeIdc == SAO_TYPE_BO ? ( ctbPars.typeAuxInfo + i ) % NUM_SAO_BO_CLASSES : i );
341
226k
      offset[k++]  = ctbPars.offset[classIdx];
342
226k
    }
343
344
    // sao_offset_abs
345
282k
    for( int i = 0; i < 4; i++ )
346
226k
    {
347
226k
      unsigned absOffset = ( offset[i] < 0 ? -offset[i] : offset[i] );
348
226k
      unary_max_eqprob( absOffset, maxOffsetQVal );
349
226k
    }
350
351
    // band offset mode
352
56.5k
    if( ctbPars.typeIdc == SAO_TYPE_BO )
353
11.3k
    {
354
      // sao_offset_sign
355
56.7k
      for( int i = 0; i < 4; i++ )
356
45.3k
      {
357
45.3k
        if( offset[i] )
358
308
        {
359
308
          m_BinEncoder.encodeBinEP( (offset[i] < 0) );
360
308
        }
361
45.3k
      }
362
      // sao_band_position
363
11.3k
      m_BinEncoder.encodeBinsEP( ctbPars.typeAuxInfo, NUM_SAO_BO_CLASSES_LOG2 );
364
11.3k
    }
365
    // edge offset mode
366
45.1k
    else
367
45.1k
    {
368
45.1k
      if( isFirstCompOfChType )
369
30.1k
      {
370
        // sao_eo_class_luma / sao_eo_class_chroma
371
30.1k
        CHECK( ctbPars.typeIdc - SAO_TYPE_START_EO < 0, "sao edge offset class is outside valid range" );
372
30.1k
        m_BinEncoder.encodeBinsEP( ctbPars.typeIdc - SAO_TYPE_START_EO, NUM_SAO_EO_TYPES_LOG2 );
373
30.1k
      }
374
45.1k
    }
375
56.5k
  }
376
82.7k
}
377
378
379
//================================================================================
380
//  clause 7.3.8.4
381
//--------------------------------------------------------------------------------
382
//    void  coding_tree       ( cs, partitioner, cuCtx )
383
//    void  split_cu_flag     ( split, cs, partitioner )
384
//    void  split_cu_mode_mt  ( split, cs, partitioner )
385
//================================================================================
386
387
void CABACWriter::coding_tree(const CodingStructure& cs, Partitioner& partitioner, CUCtx& cuCtx, Partitioner* pPartitionerChroma, CUCtx* pCuCtxChroma)
388
163k
{
389
163k
  const PPS      &pps         = *cs.pps;
390
163k
  const UnitArea& currArea    = partitioner.currArea();
391
163k
  const CodingUnit &cu        = *cs.getCU( currArea.blocks[partitioner.chType], partitioner.chType, partitioner.treeType );
392
393
  // Reset delta QP coding flag and ChromaQPAdjustemt coding flag
394
  //Note: do not reset qg at chroma CU
395
163k
  if( pps.useDQP && partitioner.currQgEnable() && !isChroma( partitioner.chType ) )
396
14.3k
  {
397
14.3k
    cuCtx.qgStart    = true;
398
14.3k
    cuCtx.isDQPCoded          = false;
399
14.3k
  }
400
163k
  if( cs.slice->chromaQpAdjEnabled && partitioner.currQgChromaEnable() )
401
0
  {
402
0
    cuCtx.isChromaQpAdjCoded  = false;
403
0
  }
404
  // Reset delta QP coding flag and ChromaQPAdjustemt coding flag
405
163k
  if (CS::isDualITree(cs) && pPartitionerChroma != nullptr)
406
7.53k
  {
407
7.53k
    if (pps.useDQP && pPartitionerChroma->currQgEnable())
408
7.53k
    {
409
7.53k
      pCuCtxChroma->qgStart    = true;
410
7.53k
      pCuCtxChroma->isDQPCoded = false;
411
7.53k
    }
412
7.53k
    if (cs.slice->chromaQpAdjEnabled && pPartitionerChroma->currQgChromaEnable())
413
0
    {
414
0
      pCuCtxChroma->isChromaQpAdjCoded = false;
415
0
    }
416
7.53k
  }
417
418
163k
  determineNeighborCus( cs, partitioner.currArea(), partitioner.chType, partitioner.treeType );
419
420
163k
  const PartSplit splitMode = CU::getSplitAtDepth( cu, partitioner.currDepth );
421
422
163k
  split_cu_mode( splitMode, cs, partitioner );
423
424
163k
  CHECK( !partitioner.canSplit( splitMode, cs ), "The chosen split mode is invalid!" );
425
426
163k
  if( splitMode != CU_DONT_SPLIT )
427
84.1k
  {
428
84.1k
    if (CS::isDualITree(cs) && pPartitionerChroma != nullptr && (partitioner.currArea().lwidth() >= 64 || partitioner.currArea().lheight() >= 64))
429
7.53k
    {
430
7.53k
      partitioner.splitCurrArea(CU_QUAD_SPLIT, cs);
431
7.53k
      pPartitionerChroma->splitCurrArea(CU_QUAD_SPLIT, cs);
432
7.53k
      bool beContinue = true;
433
7.53k
      bool lumaContinue = true;
434
7.53k
      bool chromaContinue = true;
435
436
37.6k
      while (beContinue)
437
30.1k
      {
438
30.1k
        if (partitioner.currArea().lwidth() > 64 || partitioner.currArea().lheight() > 64)
439
0
        {
440
0
          if (cs.picture->blocks[partitioner.chType].contains(partitioner.currArea().blocks[partitioner.chType].pos()))
441
0
          {
442
0
            coding_tree(cs, partitioner, cuCtx, pPartitionerChroma, pCuCtxChroma);
443
0
          }
444
0
          lumaContinue = partitioner.nextPart(cs);
445
0
          chromaContinue = pPartitionerChroma->nextPart(cs);
446
0
          CHECK(lumaContinue != chromaContinue, "luma chroma partition should be matched");
447
0
          beContinue = lumaContinue;
448
0
        }
449
30.1k
        else
450
30.1k
        {
451
          //dual tree coding under 64x64 block
452
30.1k
          if (cs.picture->blocks[partitioner.chType].contains(partitioner.currArea().blocks[partitioner.chType].pos()))
453
20.0k
          {
454
20.0k
            coding_tree(cs, partitioner, cuCtx);
455
20.0k
          }
456
30.1k
          lumaContinue = partitioner.nextPart(cs);
457
30.1k
          if (cs.picture->blocks[pPartitionerChroma->chType].contains(pPartitionerChroma->currArea().blocks[pPartitionerChroma->chType].pos()))
458
20.0k
          {
459
20.0k
            coding_tree(cs, *pPartitionerChroma, *pCuCtxChroma);
460
20.0k
          }
461
30.1k
          chromaContinue = pPartitionerChroma->nextPart(cs);
462
30.1k
          CHECK(lumaContinue != chromaContinue, "luma chroma partition should be matched");
463
30.1k
          beContinue = lumaContinue;
464
30.1k
        }
465
30.1k
      }
466
7.53k
      partitioner.exitCurrSplit();
467
7.53k
      pPartitionerChroma->exitCurrSplit();
468
469
7.53k
    }
470
76.6k
    else
471
76.6k
    {
472
76.6k
      const ModeType modeTypeParent = partitioner.modeType;
473
76.6k
      const ModeType modeTypeChild = CU::getModeTypeAtDepth( cu, partitioner.currDepth );
474
76.6k
      mode_constraint( splitMode, cs, partitioner, modeTypeChild );
475
76.6k
      partitioner.modeType = modeTypeChild;
476
477
76.6k
      bool chromaNotSplit = modeTypeParent == MODE_TYPE_ALL && modeTypeChild == MODE_TYPE_INTRA ? true : false;
478
76.6k
      CHECK( chromaNotSplit && partitioner.chType != CH_L, "chType must be luma" );
479
76.6k
      if( partitioner.treeType == TREE_D )
480
76.6k
      {
481
76.6k
        partitioner.treeType = chromaNotSplit ? TREE_L : TREE_D;
482
76.6k
      }
483
76.6k
      partitioner.splitCurrArea( splitMode, cs );
484
485
76.6k
      do
486
189k
      {
487
189k
        if( cs.picture->blocks[partitioner.chType].contains( partitioner.currArea().blocks[partitioner.chType].pos() ) )
488
115k
        {
489
115k
          coding_tree( cs, partitioner, cuCtx );
490
115k
        }
491
189k
      } while( partitioner.nextPart( cs ) );
492
493
76.6k
      partitioner.exitCurrSplit();
494
76.6k
      if( chromaNotSplit )
495
0
      {
496
0
        if (isChromaEnabled(cs.pcv->chrFormat))
497
0
        {
498
0
          CHECK( partitioner.chType != CH_L, "must be luma status" );
499
0
          partitioner.chType = CH_C;
500
0
          partitioner.treeType = TREE_C;
501
502
0
          if( cs.picture->blocks[partitioner.chType].contains( partitioner.currArea().blocks[partitioner.chType].pos() ) )
503
0
          {
504
0
            coding_tree( cs, partitioner, cuCtx );
505
0
          }
506
0
        }
507
        //recover
508
0
        partitioner.chType = CH_L;
509
0
        partitioner.treeType = TREE_D;
510
0
      }
511
76.6k
      partitioner.modeType = modeTypeParent;
512
76.6k
    }
513
84.1k
    return;
514
84.1k
  }
515
516
  // Predict QP on start of quantization group
517
79.1k
  if( cuCtx.qgStart )
518
19.2k
  {
519
19.2k
    cuCtx.qgStart = false;
520
19.2k
    cuCtx.qp = CU::predictQP( cu, cuCtx.qp );
521
19.2k
  }
522
79.1k
  CHECK( cu.treeType != partitioner.treeType, "treeType mismatch" );
523
524
525
  // coding unit
526
79.1k
  coding_unit( cu, partitioner, cuCtx );
527
528
79.1k
  if( cu.chType == CH_C )
529
31.7k
  {
530
31.7k
    DTRACE_COND( (isEncoding()), g_trace_ctx, D_QP, "[chroma CU]x=%d, y=%d, w=%d, h=%d, qp=%d\n", cu.Cb().x, cu.Cb().y, cu.Cb().width, cu.Cb().height, cu.qp );
531
31.7k
  }
532
47.4k
  else
533
47.4k
  {
534
47.4k
    DTRACE_COND( ( isEncoding() ), g_trace_ctx, D_QP, "x=%d, y=%d, w=%d, h=%d, qp=%d\n", cu.Y().x, cu.Y().y, cu.Y().width, cu.Y().height, cu.qp );
535
47.4k
  }
536
79.1k
  DTRACE_BLOCK_REC_COND( ( !isEncoding() ), cs.picture->getRecoBuf( cu ), cu, cu.predMode );
537
79.1k
}
538
539
540
void CABACWriter::mode_constraint( const PartSplit split, const CodingStructure& cs, Partitioner& partitioner, const ModeType modeType )
541
255k
{
542
255k
  CHECK( split == CU_DONT_SPLIT, "splitMode shall not be no split" );
543
255k
  int val = CS::signalModeCons( cs, partitioner.currArea(), split, partitioner.modeType);
544
255k
  if( val == LDT_MODE_TYPE_SIGNAL )
545
0
  {
546
0
    CHECK( modeType == MODE_TYPE_ALL, "shall not be no constraint case" );
547
0
    bool flag = modeType == MODE_TYPE_INTRA;
548
0
    int ctxIdx = DeriveCtx::CtxModeConsFlag();
549
0
    m_BinEncoder.encodeBin( flag, Ctx::ModeConsFlag( ctxIdx ) );
550
0
    DTRACE( g_trace_ctx, D_SYNTAX, "mode_cons_flag() flag=%d\n", flag );
551
0
  }
552
255k
  else if( val == LDT_MODE_TYPE_INFER )
553
0
  {
554
0
    CHECK( modeType != MODE_TYPE_INTRA, "Wrong mode type" );
555
0
  }
556
255k
  else
557
255k
  {
558
255k
    CHECK( modeType != partitioner.modeType, "Wrong mode type" );
559
255k
  }
560
255k
}
561
562
563
void CABACWriter::split_cu_mode( const PartSplit split, const CodingStructure& cs, Partitioner& partitioner )
564
446k
{
565
446k
  bool canNo, canQt, canBh, canBv, canTh, canTv;
566
446k
  partitioner.canSplit( cs, canNo, canQt, canBh, canBv, canTh, canTv );
567
568
446k
  const bool canSpl[6] = { canNo, canQt, canBh, canBv, canTh, canTv };
569
570
446k
  unsigned ctxSplit = 0, ctxQtSplit = 0, ctxBttHV = 0, ctxBttH12 = 0, ctxBttV12;
571
446k
  DeriveCtx::CtxSplit( partitioner, ctxSplit, ctxQtSplit, ctxBttHV, ctxBttH12, ctxBttV12, canSpl );
572
573
446k
  const bool canSplit = canBh || canBv || canTh || canTv || canQt;
574
446k
  const bool isNo     = split == CU_DONT_SPLIT;
575
576
446k
  if( canNo && canSplit )
577
272k
  {
578
272k
    m_BinEncoder.encodeBin( !isNo, Ctx::SplitFlag( ctxSplit ) );
579
272k
  }
580
581
446k
  DTRACE( g_trace_ctx, D_SYNTAX, "split_cu_mode() ctx=%d split=%d\n", ctxSplit, !isNo );
582
583
446k
  if( isNo )
584
184k
  {
585
184k
    return;
586
184k
  }
587
588
262k
  const bool canBtt = canBh || canBv || canTh || canTv;
589
262k
  const bool isQt   = split == CU_QUAD_SPLIT;
590
591
262k
  if( canQt && canBtt )
592
102k
  {
593
102k
    m_BinEncoder.encodeBin( isQt, Ctx::SplitQtFlag( ctxQtSplit ) );
594
102k
  }
595
596
262k
  DTRACE( g_trace_ctx, D_SYNTAX, "split_cu_mode() ctx=%d qt=%d\n", ctxQtSplit, isQt );
597
598
262k
  if( isQt )
599
66.3k
  {
600
66.3k
    return;
601
66.3k
  }
602
603
196k
  const bool canHor = canBh || canTh;
604
196k
  const bool canVer = canBv || canTv;
605
196k
  const bool  isVer = split == CU_VERT_SPLIT || split == CU_TRIV_SPLIT;
606
607
196k
  if( canVer && canHor )
608
101k
  {
609
101k
    m_BinEncoder.encodeBin( isVer, Ctx::SplitHvFlag( ctxBttHV ) );
610
101k
  }
611
612
196k
  const bool can14 = isVer ? canTv : canTh;
613
196k
  const bool can12 = isVer ? canBv : canBh;
614
196k
  const bool  is12 = isVer ? ( split == CU_VERT_SPLIT ) : ( split == CU_HORZ_SPLIT );
615
616
196k
  if( can12 && can14 )
617
54.5k
  {
618
54.5k
    m_BinEncoder.encodeBin( is12, Ctx::Split12Flag( isVer ? ctxBttV12 : ctxBttH12 ) );
619
54.5k
  }
620
621
196k
  DTRACE( g_trace_ctx, D_SYNTAX, "split_cu_mode() ctxHv=%d ctx12=%d mode=%d\n", ctxBttHV, isVer ? ctxBttV12 : ctxBttH12, split );
622
196k
}
623
624
625
//================================================================================
626
//  clause 7.3.8.5
627
//--------------------------------------------------------------------------------
628
//    void  coding_unit               ( cu, partitioner, cuCtx )
629
//    void  cu_skip_flag              ( cu )
630
//    void  pred_mode                 ( cu )
631
//    void  part_mode                 ( cu )
632
//    void  cu_pred_data              ( pus )
633
//    void  cu_lic_flag               ( cu )
634
//    void  intra_luma_pred_modes     ( pus )
635
//    void  intra_chroma_pred_mode    ( cu )
636
//    void  cu_residual               ( cu, partitioner, cuCtx )
637
//    void  rqt_root_cbf              ( cu )
638
//    void  end_of_ctu                ( cu, cuCtx )
639
//================================================================================
640
641
void CABACWriter::coding_unit( const CodingUnit& cu, Partitioner& partitioner, CUCtx& cuCtx )
642
79.1k
{
643
79.1k
  DTRACE( g_trace_ctx, D_SYNTAX, "coding_unit() treeType=%d modeType=%d\n", cu.treeType, cu.modeType );
644
79.1k
  STAT_COUNT_CU_MODES( isEncoding() && partitioner.chType == CH_L, g_cuCounters1D[CU_CODED_FINALLY][0][!cu.slice->isIntra() + cu.slice->depth] );
645
79.1k
  STAT_COUNT_CU_MODES( isEncoding() && partitioner.chType == CH_L && !cu.slice->isIntra(), g_cuCounters2D[CU_CODED_FINALLY][Log2( cu.lheight() )][Log2( cu.lwidth() )] );
646
647
79.1k
  CodingStructure& cs = *cu.cs;
648
649
  // skip flag
650
79.1k
  if ((!cs.slice->isIntra() || cs.slice->sps->IBC) && cu.Y().valid())
651
47.4k
  {
652
47.4k
    cu_skip_flag( cu );
653
47.4k
  }
654
  
655
  // skip data
656
79.1k
  if( cu.skip )
657
0
  {
658
0
    CHECK( !cu.mergeFlag, "Merge flag has to be on!" );
659
0
    prediction_unit ( cu );
660
0
    CHECK(cu.colorTransform, "ACT should not be enabled for skip mode");
661
0
    end_of_ctu      ( cu, cuCtx );
662
0
    return;
663
0
  }
664
665
  // prediction mode and partitioning data
666
79.1k
  pred_mode ( cu );
667
79.1k
  if (CU::isIntra(cu))
668
79.1k
  {
669
79.1k
    adaptive_color_transform(cu);
670
79.1k
  }
671
79.1k
  if (CU::isPLT(cu))
672
0
  {
673
0
    THROW("no support");
674
0
    return;
675
0
  }
676
677
  // prediction data ( intra prediction modes / reference indexes + motion vectors )
678
79.1k
  cu_pred_data( cu );
679
680
  // residual data ( coded block flags + transform coefficient levels )
681
79.1k
  cu_residual( cu, partitioner, cuCtx );
682
683
  // end of cu
684
79.1k
  end_of_ctu( cu, cuCtx );
685
79.1k
}
686
687
688
void CABACWriter::cu_skip_flag( const CodingUnit& cu )
689
95.2k
{
690
95.2k
  unsigned ctxId = DeriveCtx::CtxSkipFlag();
691
692
95.2k
  if ((cu.slice->isIntra() || CU::isConsIntra(cu)) && cu.cs->slice->sps->IBC)
693
95.2k
  {
694
95.2k
    if (cu.lwidth() < 128 && cu.lheight() < 128) // disable IBC mode larger than 64x64
695
95.2k
    {
696
95.2k
      m_BinEncoder.encodeBin((cu.skip), Ctx::SkipFlag(ctxId));
697
95.2k
      DTRACE(g_trace_ctx, D_SYNTAX, "cu_skip_flag() ctx=%d skip=%d\n", ctxId, cu.skip ? 1 : 0);
698
95.2k
    }
699
95.2k
    return;
700
95.2k
  }
701
0
  if ( !cu.cs->slice->sps->IBC && cu.lwidth() == 4 && cu.lheight() == 4 )
702
0
  {
703
0
    return;
704
0
  }
705
0
  if( !cu.cs->slice->sps->IBC && CU::isConsIntra(cu) )
706
0
  {
707
0
    return;
708
0
  }
709
0
  m_BinEncoder.encodeBin( ( cu.skip ), Ctx::SkipFlag( ctxId ) );
710
711
0
  DTRACE( g_trace_ctx, D_SYNTAX, "cu_skip_flag() ctx=%d skip=%d\n", ctxId, cu.skip ? 1 : 0 );
712
0
  if (cu.skip && cu.cs->slice->sps->IBC)
713
0
  {
714
0
    if (cu.lwidth() < 128 && cu.lheight() < 128 && !CU::isConsInter(cu)) // disable IBC mode larger than 64x64 and disable IBC when only allowing inter mode
715
0
    {
716
0
      if ( cu.lwidth() == 4 && cu.lheight() == 4 )
717
0
      {
718
0
        return;
719
0
      }
720
0
      unsigned ctxidx = DeriveCtx::CtxIBCFlag(cu);
721
0
      m_BinEncoder.encodeBin(CU::isIBC(cu) ? 1 : 0, Ctx::IBCFlag(ctxidx));
722
0
      DTRACE(g_trace_ctx, D_SYNTAX, "ibc() ctx=%d cu.predMode=%d\n", ctxidx, cu.predMode);
723
0
    }
724
0
  }
725
0
}
726
727
728
void CABACWriter::pred_mode( const CodingUnit& cu )
729
367k
{
730
367k
  if (cu.cs->slice->sps->IBC && cu.chType != CH_C)
731
278k
  {
732
278k
    if( CU::isConsInter(cu) )
733
0
    {
734
0
      assert( CU::isInter( cu ) );
735
0
      return;
736
0
    }
737
738
278k
    if ( cu.cs->slice->isIntra() || ( cu.lwidth() == 4 && cu.lheight() == 4 ) || CU::isConsIntra(cu) )
739
278k
    {
740
278k
      if (cu.lwidth() < 128 && cu.lheight() < 128) // disable IBC mode larger than 64x64
741
278k
      {
742
278k
        unsigned ctxidx = DeriveCtx::CtxIBCFlag(cu);
743
278k
        m_BinEncoder.encodeBin(CU::isIBC(cu), Ctx::IBCFlag(ctxidx));
744
278k
      }
745
278k
      if (!CU::isIBC(cu) && cu.cs->slice->sps->PLT && cu.lwidth() <= 64 && cu.lheight() <= 64 && (cu.lumaSize().width * cu.lumaSize().height > 16))
746
0
      {
747
0
        m_BinEncoder.encodeBin(CU::isPLT(cu), Ctx::PLTFlag(0));
748
0
      }
749
278k
    }
750
0
    else
751
0
    {
752
0
      if( CU::isConsInter(cu) )
753
0
      {
754
0
        return;
755
0
      }
756
0
      m_BinEncoder.encodeBin((CU::isIntra(cu) || CU::isPLT(cu)), Ctx::PredMode(DeriveCtx::CtxPredModeFlag()));
757
0
      if (CU::isIntra(cu) || CU::isPLT(cu))
758
0
      {
759
0
        if (cu.cs->slice->sps->PLT && cu.lwidth() <= 64 && cu.lheight() <= 64 && (cu.lumaSize().width * cu.lumaSize().height > 16))
760
0
        {
761
0
          m_BinEncoder.encodeBin(CU::isPLT(cu), Ctx::PLTFlag(0));
762
0
        }
763
0
      }
764
0
      else
765
0
      {
766
0
        if (cu.lwidth() < 128 && cu.lheight() < 128) // disable IBC mode larger than 64x64
767
0
        {
768
0
          unsigned ctxidx = DeriveCtx::CtxIBCFlag(cu);
769
0
          m_BinEncoder.encodeBin(CU::isIBC(cu), Ctx::IBCFlag(ctxidx));
770
0
        }
771
0
      }
772
0
    }
773
278k
  }
774
89.0k
  else
775
89.0k
  {
776
89.0k
    if( CU::isConsInter(cu) )
777
0
    {
778
0
      assert( CU::isInter( cu ) );
779
0
      return;
780
0
    }
781
782
89.0k
    if ( cu.cs->slice->isIntra() || ( cu.lwidth() == 4 && cu.lheight() == 4 ) || CU::isConsIntra(cu) )
783
89.0k
    {
784
89.0k
      if (cu.cs->slice->sps->PLT && cu.lwidth() <= 64 && cu.lheight() <= 64 && ( ( (!isLuma(cu.chType)) && (cu.chromaSize().width * cu.chromaSize().height > 16) ) || ((isLuma(cu.chType)) && ((cu.lumaSize().width * cu.lumaSize().height) > 16 ) ) ) && (!CU::isLocalSepTree(cu) || isLuma(cu.chType) ) )
785
0
      {
786
0
        m_BinEncoder.encodeBin((CU::isPLT(cu)), Ctx::PLTFlag(0));
787
0
      }
788
89.0k
      return;
789
89.0k
    }
790
18.4E
    m_BinEncoder.encodeBin((CU::isIntra(cu) || CU::isPLT(cu)), Ctx::PredMode(DeriveCtx::CtxPredModeFlag()));
791
18.4E
    if ((CU::isIntra(cu) || CU::isPLT(cu)) && cu.cs->slice->sps->PLT && cu.lwidth() <= 64 && cu.lheight() <= 64&& ( ( (!isLuma(cu.chType)) && (cu.chromaSize().width * cu.chromaSize().height > 16) ) || ((isLuma(cu.chType)) && ((cu.lumaSize().width * cu.lumaSize().height) > 16 ) ) ) && (!CU::isLocalSepTree(cu) || isLuma(cu.chType)  ) )
792
0
    {
793
0
      m_BinEncoder.encodeBin((CU::isPLT(cu)), Ctx::PLTFlag(0));
794
0
    }
795
18.4E
  }
796
367k
}
797
798
799
void CABACWriter::bdpcm_mode( const CodingUnit& cu, const ComponentID compID )
800
628k
{
801
628k
  if( !cu.cs->sps->BDPCM) return;
802
628k
  if( !CU::bdpcmAllowed( cu, compID ) ) return;
803
804
283k
  int bdpcmMode = cu.bdpcmM[toChannelType(compID)];
805
806
283k
  unsigned ctxId = isLuma(compID) ? 0 : 2; 
807
283k
  m_BinEncoder.encodeBin(bdpcmMode > 0 ? 1 : 0, Ctx::BDPCMMode(ctxId));
808
283k
  if (bdpcmMode)
809
50.9k
  {
810
50.9k
    m_BinEncoder.encodeBin(bdpcmMode > 1 ? 1 : 0, Ctx::BDPCMMode(ctxId+1));
811
50.9k
  }
812
283k
  if (isLuma(compID))
813
41.5k
  {
814
41.5k
    DTRACE(g_trace_ctx, D_SYNTAX, "bdpcm_mode(%d) x=%d, y=%d, w=%d, h=%d, bdpcm=%d\n", CH_L, cu.lumaPos().x, cu.lumaPos().y, cu.lwidth(), cu.lheight(), cu.bdpcmM[CH_L]);
815
41.5k
  }
816
242k
  else
817
242k
  {
818
242k
    DTRACE(g_trace_ctx, D_SYNTAX, "bdpcm_mode(%d) x=%d, y=%d, w=%d, h=%d, bdpcm=%d\n", CH_C, cu.chromaPos().x, cu.chromaPos().y, cu.chromaSize().width, cu.chromaSize().height, cu.bdpcmM[CH_C]);
819
242k
  }
820
283k
}
821
822
823
void CABACWriter::cu_pred_data( const CodingUnit& cu )
824
184k
{
825
184k
  if( CU::isIntra( cu ) )
826
161k
  {
827
161k
    if( cu.Y().valid() )
828
72.6k
    {
829
72.6k
      bdpcm_mode( cu, COMP_Y );
830
72.6k
    }
831
161k
    intra_luma_pred_modes  ( cu );
832
161k
    if( ( !cu.Y().valid() || ( !CU::isSepTree(cu) && cu.Y().valid() ) ) && isChromaEnabled(cu.chromaFormat) )
833
89.0k
    {
834
89.0k
      bdpcm_mode( cu, ComponentID(CH_C) );
835
89.0k
    } 
836
161k
    intra_chroma_pred_modes( cu );
837
161k
    return;
838
161k
  }
839
22.5k
  if (!cu.Y().valid()) // dual tree chroma CU
840
0
  {
841
0
    return;
842
0
  }
843
844
22.5k
  prediction_unit ( cu );
845
22.5k
  imv_mode        ( cu );
846
22.5k
  affine_amvr_mode( cu );
847
22.5k
  cu_bcw_flag     ( cu );
848
22.5k
}
849
850
851
void CABACWriter::cu_bcw_flag(const CodingUnit& cu)
852
22.5k
{
853
22.5k
  if(!CU::isBcwIdxCoded(cu))
854
22.5k
  {
855
22.5k
    return;
856
22.5k
  }
857
858
0
  CHECK(!(BCW_NUM > 1 && (BCW_NUM == 2 || (BCW_NUM & 0x01) == 1)), " !( BCW_NUM > 1 && ( BCW_NUM == 2 || ( BCW_NUM & 0x01 ) == 1 ) ) ");
859
0
  const uint8_t bcwCodingIdx = (uint8_t)g_BcwCodingOrder[CU::getValidBcwIdx(cu)];
860
861
0
  const int32_t numBcw = (cu.slice->checkLDC) ? 5 : 3;
862
0
  m_BinEncoder.encodeBin((bcwCodingIdx == 0 ? 0 : 1), Ctx::BcwIdx(0));
863
0
  if(numBcw > 2 && bcwCodingIdx != 0)
864
0
  {
865
0
    const uint32_t prefixNumBits = numBcw - 2;
866
0
    const uint32_t step = 1;
867
868
0
    uint8_t idx = 1;
869
0
    for(int ui = 0; ui < prefixNumBits; ++ui)
870
0
    {
871
0
      if (bcwCodingIdx == idx)
872
0
      {
873
0
        m_BinEncoder.encodeBinEP(0);
874
0
        break;
875
0
      }
876
0
      else
877
0
      {
878
0
        m_BinEncoder.encodeBinEP(1);
879
0
        idx += step;
880
0
      }
881
0
    }
882
0
  }
883
884
0
  DTRACE(g_trace_ctx, D_SYNTAX, "cu_bcw_flag() bcw_idx=%d\n", cu.BcwIdx ? 1 : 0);
885
0
}
886
887
888
void CABACWriter::xWriteTruncBinCode(uint32_t symbol, uint32_t maxSymbol)
889
841k
{
890
841k
  int thresh;
891
841k
  if (maxSymbol > 256)
892
0
  {
893
0
    int threshVal = 1 << 8;
894
0
    thresh = 8;
895
0
    while (threshVal <= maxSymbol)
896
0
    {
897
0
      thresh++;
898
0
      threshVal <<= 1;
899
0
    }
900
0
    thresh--;
901
0
  }
902
841k
  else
903
841k
  {
904
841k
    thresh = g_tbMax[maxSymbol];
905
841k
  }
906
907
841k
  int val = 1 << thresh;
908
841k
  assert(val <= maxSymbol);
909
841k
  assert((val << 1) > maxSymbol);
910
841k
  assert(symbol < maxSymbol);
911
841k
  int b = maxSymbol - val;
912
841k
  assert(b < val);
913
841k
  if (symbol < val - b)
914
262k
  {
915
262k
    m_BinEncoder.encodeBinsEP(symbol, thresh);
916
262k
  }
917
579k
  else
918
579k
  {
919
579k
    symbol += val - b;
920
579k
    assert(symbol < (val << 1));
921
579k
    assert((symbol >> 1) >= val - b);
922
579k
    m_BinEncoder.encodeBinsEP(symbol, thresh + 1);
923
579k
  }
924
841k
}
925
926
927
void CABACWriter::extend_ref_line(const CodingUnit& cu)
928
906k
{
929
906k
  if ( !cu.Y().valid() || cu.predMode != MODE_INTRA || !isLuma(cu.chType) || cu.bdpcmM[CH_L] )
930
0
  {
931
0
    return;
932
0
  }
933
906k
  if( !cu.cs->sps->MRL )
934
0
  {
935
0
    return;
936
0
  }
937
938
906k
  bool isFirstLineOfCtu = (((cu.block(COMP_Y).y)&((cu.cs->sps)->CTUSize - 1)) == 0);
939
906k
  if (isFirstLineOfCtu)
940
301k
  {
941
301k
    return;
942
301k
  }
943
604k
  int multiRefIdx = cu.multiRefIdx;
944
604k
  if (MRL_NUM_REF_LINES > 1)
945
605k
  {
946
605k
    m_BinEncoder.encodeBin(multiRefIdx != MULTI_REF_LINE_IDX[0], Ctx::MultiRefLineIdx(0));
947
605k
    if (MRL_NUM_REF_LINES > 2 && multiRefIdx != MULTI_REF_LINE_IDX[0])
948
165k
    {
949
165k
      m_BinEncoder.encodeBin(multiRefIdx != MULTI_REF_LINE_IDX[1], Ctx::MultiRefLineIdx(1));
950
165k
    }
951
605k
  }
952
604k
}
953
954
955
void CABACWriter::intra_luma_pred_modes( const CodingUnit& cu )
956
161k
{
957
161k
  if( !cu.Y().valid() || cu.bdpcmM[CH_L] )
958
94.1k
  {
959
94.1k
    return;
960
94.1k
  }
961
962
67.6k
  mip_flag(cu);
963
67.6k
  if (cu.mipFlag)
964
1.64k
  {
965
1.64k
    mip_pred_modes(cu);
966
1.64k
    return;
967
1.64k
  }
968
65.9k
  extend_ref_line( cu );
969
970
65.9k
  isp_mode( cu );
971
972
65.9k
  const int numMPMs   = NUM_MOST_PROBABLE_MODES;
973
65.9k
  unsigned  mpm_pred   [numMPMs];
974
65.9k
  unsigned  mpm_idx;
975
65.9k
  unsigned  ipred_mode ;
976
977
  // prev_intra_luma_pred_flag
978
65.9k
  {
979
65.9k
    CU::getIntraMPMs( cu, mpm_pred );
980
981
65.9k
    ipred_mode = cu.intraDir[0];
982
65.9k
    mpm_idx    = numMPMs;
983
66.0k
    for( unsigned idx = 0; idx < numMPMs; idx++ )
984
66.0k
    {
985
66.0k
      if( ipred_mode == mpm_pred[idx] )
986
65.9k
      {
987
65.9k
        mpm_idx = idx;
988
65.9k
        break;
989
65.9k
      }
990
66.0k
    }
991
65.9k
    if ( cu.multiRefIdx )
992
0
    {
993
0
      CHECK(mpm_idx >= numMPMs, "use of non-MPM");
994
0
    }
995
65.9k
    else
996
65.9k
    {
997
65.9k
      m_BinEncoder.encodeBin(mpm_idx < numMPMs, Ctx::IntraLumaMpmFlag());
998
65.9k
    }
999
65.9k
  }
1000
1001
  // mpm_idx / rem_intra_luma_pred_mode
1002
65.9k
  {
1003
65.9k
    if( mpm_idx < numMPMs )
1004
65.9k
    {
1005
65.9k
      {
1006
65.9k
        unsigned ctx = (cu.ispMode == NOT_INTRA_SUBPARTITIONS ? 1 : 0);
1007
65.9k
        if (cu.multiRefIdx == 0)
1008
65.9k
          m_BinEncoder.encodeBin(mpm_idx > 0, Ctx::IntraLumaPlanarFlag(ctx));
1009
65.9k
        if( mpm_idx )
1010
108
        {
1011
108
          m_BinEncoder.encodeBinEP( mpm_idx > 1 );
1012
108
        }
1013
65.9k
        if (mpm_idx > 1)
1014
0
        {
1015
0
          m_BinEncoder.encodeBinEP(mpm_idx > 2);
1016
0
        }
1017
65.9k
        if (mpm_idx > 2)
1018
0
        {
1019
0
          m_BinEncoder.encodeBinEP(mpm_idx > 3);
1020
0
        }
1021
65.9k
        if (mpm_idx > 3)
1022
0
        {
1023
0
          m_BinEncoder.encodeBinEP(mpm_idx > 4);
1024
0
        }
1025
65.9k
      }
1026
65.9k
    }
1027
18.4E
    else
1028
18.4E
    {
1029
      // sorting of MPMs
1030
18.4E
      std::sort( mpm_pred, mpm_pred + numMPMs );
1031
1032
18.4E
      {
1033
18.4E
        for (int idx = numMPMs - 1; idx >= 0; idx--)
1034
0
        {
1035
0
          if (ipred_mode > mpm_pred[idx])
1036
0
          {
1037
0
            ipred_mode--;
1038
0
          }
1039
0
        }
1040
18.4E
        CHECK(ipred_mode >= 64, "Incorrect mode");
1041
18.4E
        xWriteTruncBinCode(ipred_mode, NUM_LUMA_MODE - NUM_MOST_PROBABLE_MODES);  // Remaining mode is truncated binary coded
1042
18.4E
      }
1043
18.4E
    }
1044
1045
65.9k
    DTRACE( g_trace_ctx, D_SYNTAX, "intra_luma_pred_modes() idx=%d pos=(%d,%d) mode=%d\n", 0, cu.lumaPos().x, cu.lumaPos().y, cu.intraDir[0] );
1046
65.9k
  }
1047
65.9k
}
1048
1049
1050
void CABACWriter::intra_luma_pred_mode( const CodingUnit& cu, const unsigned *mpmLst )
1051
1.12M
{
1052
1.12M
  if( cu.bdpcmM[CH_L] ) 
1053
7.36k
  {
1054
7.36k
    return;
1055
7.36k
  }
1056
1057
1.11M
  mip_flag(cu);
1058
1.11M
  if (cu.mipFlag)
1059
275k
  {
1060
275k
    mip_pred_mode(cu);
1061
275k
    return;
1062
275k
  }
1063
840k
  extend_ref_line( cu );
1064
1065
840k
  isp_mode( cu );
1066
1067
  // prev_intra_luma_pred_flag
1068
840k
  unsigned ipred_mode = cu.intraDir[0];
1069
840k
  static constexpr int numMPMs = NUM_MOST_PROBABLE_MODES;
1070
840k
  unsigned mpm_idx = numMPMs;
1071
840k
  unsigned  mpm_pred[numMPMs];
1072
1073
840k
  if (mpmLst)
1074
709k
  {
1075
709k
    memcpy(mpm_pred, mpmLst, sizeof(unsigned) * numMPMs);
1076
709k
  }
1077
131k
  else
1078
131k
  {
1079
131k
    CU::getIntraMPMs(cu, mpm_pred);
1080
131k
  }
1081
1082
4.41M
  for (int idx = 0; idx < numMPMs; idx++)
1083
3.90M
  {
1084
3.90M
    if (ipred_mode == mpm_pred[idx])
1085
336k
    {
1086
336k
      mpm_idx = idx;
1087
336k
      break;
1088
336k
    }
1089
3.90M
  }
1090
840k
  if (cu.multiRefIdx)
1091
165k
  {
1092
165k
    CHECK(mpm_idx >= numMPMs, "use of non-MPM");
1093
165k
  }
1094
675k
  else
1095
675k
  {
1096
675k
    m_BinEncoder.encodeBin(mpm_idx < numMPMs, Ctx::IntraLumaMpmFlag());
1097
675k
  }
1098
1099
  // mpm_idx / rem_intra_luma_pred_mode
1100
840k
  if( mpm_idx < numMPMs )
1101
336k
  {
1102
336k
    unsigned ctx = (cu.ispMode == NOT_INTRA_SUBPARTITIONS ? 1 : 0);
1103
336k
    if (cu.multiRefIdx == 0)
1104
171k
      m_BinEncoder.encodeBin( mpm_idx > 0, Ctx::IntraLumaPlanarFlag(ctx) );
1105
336k
    if( mpm_idx )
1106
226k
    {
1107
226k
      m_BinEncoder.encodeBinEP( mpm_idx > 1 );
1108
226k
    }
1109
336k
    if (mpm_idx > 1)
1110
128k
    {
1111
128k
      m_BinEncoder.encodeBinEP(mpm_idx > 2);
1112
128k
    }
1113
336k
    if (mpm_idx > 2)
1114
95.1k
    {
1115
95.1k
      m_BinEncoder.encodeBinEP(mpm_idx > 3);
1116
95.1k
    }
1117
336k
    if (mpm_idx > 3)
1118
63.2k
    {
1119
63.2k
      m_BinEncoder.encodeBinEP(mpm_idx > 4);
1120
63.2k
    }
1121
336k
  }
1122
504k
  else
1123
504k
  {
1124
    // mpm_pred[0] is always 0, i.e. PLANAR, so its always first in the list
1125
504k
    std::sort( mpm_pred + 1, mpm_pred + numMPMs );
1126
1127
3.52M
    for (int idx = numMPMs - 1; idx >= 0; idx--)
1128
3.02M
    {
1129
3.02M
      if (ipred_mode > mpm_pred[idx])
1130
1.63M
      {
1131
1.63M
        ipred_mode--;
1132
1.63M
      }
1133
3.02M
    }
1134
1135
504k
    xWriteTruncBinCode(ipred_mode, NUM_LUMA_MODE - NUM_MOST_PROBABLE_MODES);  // Remaining mode is truncated binary coded
1136
504k
  }
1137
840k
}
1138
1139
1140
void CABACWriter::intra_chroma_pred_modes( const CodingUnit& cu )
1141
161k
{
1142
161k
  if( cu.chromaFormat == CHROMA_400 || ( CU::isSepTree(cu) && cu.chType == CH_L ) || cu.bdpcmM[CH_C] )
1143
72.6k
  {
1144
72.6k
    return;
1145
72.6k
  }
1146
1147
89.0k
  intra_chroma_pred_mode( cu );
1148
89.0k
}
1149
1150
1151
void CABACWriter::intra_chroma_lmc_mode(const CodingUnit& cu)
1152
34.5k
{
1153
34.5k
  const unsigned intraDir = cu.intraDir[1];
1154
34.5k
  int lmModeList[10];
1155
34.5k
  CU::getLMSymbolList(cu, lmModeList);
1156
34.5k
  int symbol = -1;
1157
34.5k
  for (int k = 0; k < LM_SYMBOL_NUM; k++)
1158
34.5k
  {
1159
34.5k
    if (lmModeList[k] == intraDir)
1160
34.5k
    {
1161
34.5k
      symbol = k;
1162
34.5k
      break;
1163
34.5k
    }
1164
34.5k
  }
1165
34.5k
  CHECK(symbol < 0, "invalid symbol found");
1166
1167
34.5k
  m_BinEncoder.encodeBin(symbol == 0 ? 0 : 1, Ctx::CclmModeIdx(0));
1168
1169
34.5k
  if (symbol > 0)
1170
0
  {
1171
0
    CHECK(symbol > 2, "invalid symbol for MMLM");
1172
0
    unsigned int symbol_minus_1 = symbol - 1;
1173
0
    m_BinEncoder.encodeBinEP(symbol_minus_1);
1174
0
  }
1175
34.5k
}
1176
1177
1178
void CABACWriter::intra_chroma_pred_mode(const CodingUnit& cu)
1179
373k
{
1180
373k
  if (cu.colorTransform)
1181
0
  {
1182
0
    CHECK(cu.intraDir[CH_C] != DM_CHROMA_IDX, "chroma should use DM for adaptive color transform");
1183
0
    return;
1184
0
  }
1185
1186
373k
  const unsigned intraDir = cu.intraDir[1];
1187
373k
  if (cu.cs->sps->LMChroma && CU::checkCCLMAllowed(cu))
1188
255k
  {
1189
255k
    m_BinEncoder.encodeBin(CU::isLMCMode(intraDir) ? 1 : 0, Ctx::CclmModeFlag(0));
1190
255k
    if (CU::isLMCMode(intraDir))
1191
34.5k
    {
1192
34.5k
      intra_chroma_lmc_mode(cu);
1193
34.5k
      return;
1194
34.5k
    }
1195
255k
  }
1196
1197
338k
  const bool     isDerivedMode = intraDir == DM_CHROMA_IDX;
1198
338k
  m_BinEncoder.encodeBin(isDerivedMode ? 0 : 1, Ctx::IntraChromaPredMode(0));
1199
338k
  if (isDerivedMode)
1200
76.9k
  {
1201
76.9k
    return;
1202
76.9k
  }
1203
1204
  // chroma candidate index
1205
261k
  unsigned chromaCandModes[NUM_CHROMA_MODE];
1206
261k
  CU::getIntraChromaCandModes(cu, chromaCandModes);
1207
1208
261k
  int candId = 0;
1209
622k
  for (; candId < NUM_CHROMA_MODE; candId++)
1210
622k
  {
1211
622k
    if (intraDir == chromaCandModes[candId])
1212
261k
    {
1213
261k
      break;
1214
261k
    }
1215
622k
  }
1216
1217
261k
  CHECK(candId >= NUM_CHROMA_MODE, "Chroma prediction mode index out of bounds");
1218
261k
  CHECK(chromaCandModes[candId] == DM_CHROMA_IDX, "The intra dir cannot be DM_CHROMA for this path");
1219
261k
  {
1220
261k
    m_BinEncoder.encodeBinsEP(candId, 2);
1221
261k
  }
1222
261k
}
1223
1224
1225
void CABACWriter::cu_residual( const CodingUnit& cu, Partitioner& partitioner, CUCtx& cuCtx )
1226
184k
{
1227
184k
  if (!CU::isIntra(cu))
1228
22.5k
  {
1229
22.5k
    if( !cu.mergeFlag )
1230
22.5k
    {
1231
22.5k
      rqt_root_cbf( cu );
1232
22.5k
    }
1233
22.5k
    if( cu.rootCbf )
1234
121
    {
1235
121
      sbt_mode( cu );
1236
121
    }
1237
1238
22.5k
    if( !cu.rootCbf )
1239
22.3k
    {
1240
22.3k
      CHECK(cu.colorTransform, "ACT should not be enabled for root_cbf = 0");
1241
22.3k
      return;
1242
22.3k
    }
1243
22.5k
  }
1244
1245
161k
  if( CU::isInter( cu ) || CU::isIBC( cu ) )
1246
121
  {
1247
121
    adaptive_color_transform(cu);
1248
121
  }
1249
1250
161k
  cuCtx.violatesLfnstConstrained[CH_L] = false;
1251
161k
  cuCtx.violatesLfnstConstrained[CH_C] = false;
1252
161k
  cuCtx.lfnstLastScanPos               = false;
1253
161k
  cuCtx.violatesMtsCoeffConstraint     = false;
1254
161k
  cuCtx.mtsLastScanPos                                = false;
1255
1256
161k
  if( cu.ispMode && isLuma( partitioner.chType ) )
1257
38
  {
1258
38
    transform_tree( *cu.cs, partitioner, cuCtx, CU::getISPType( cu, getFirstComponentOfChannel( partitioner.chType ) ), 0 );
1259
38
  }
1260
161k
  else
1261
161k
  {
1262
161k
    transform_tree( *cu.cs, partitioner, cuCtx );
1263
161k
  }
1264
1265
161k
  residual_lfnst_mode( cu, cuCtx );
1266
161k
  mts_idx            ( cu, &cuCtx );
1267
161k
}
1268
1269
1270
void CABACWriter::rqt_root_cbf( const CodingUnit& cu )
1271
45.0k
{
1272
45.0k
  m_BinEncoder.encodeBin( cu.rootCbf, Ctx::QtRootCbf() );
1273
1274
45.0k
  DTRACE( g_trace_ctx, D_SYNTAX, "rqt_root_cbf() ctx=0 root_cbf=%d pos=(%d,%d)\n", cu.rootCbf ? 1 : 0, cu.lumaPos().x, cu.lumaPos().y );
1275
45.0k
}
1276
1277
1278
void CABACWriter::adaptive_color_transform(const CodingUnit& cu)
1279
79.3k
{
1280
79.3k
  if (!cu.slice->sps->useColorTrans )
1281
79.3k
  {
1282
79.3k
    return;
1283
79.3k
  }
1284
1285
0
  if (CU::isSepTree(cu))
1286
0
  {
1287
0
    CHECK(cu.colorTransform, "adaptive color transform should be disabled when dualtree and localtree are enabled");
1288
0
    return;
1289
0
  }
1290
1291
0
  if (CU::isInter(cu) || CU::isIBC(cu) || CU::isIntra(cu))
1292
0
  {
1293
0
    m_BinEncoder.encodeBin(cu.colorTransform, Ctx::ACTFlag());
1294
0
  }
1295
0
}
1296
1297
1298
void CABACWriter::sbt_mode( const CodingUnit& cu )
1299
121
{
1300
121
  uint8_t sbtAllowed = CU::checkAllowedSbt(cu);
1301
121
  if( !sbtAllowed )
1302
121
  {
1303
121
    return;
1304
121
  }
1305
1306
0
  SizeType cuWidth = cu.lwidth();
1307
0
  SizeType cuHeight = cu.lheight();
1308
0
  uint8_t sbtIdx = CU::getSbtIdx( cu.sbtInfo );
1309
0
  uint8_t sbtPos = CU::getSbtPos( cu.sbtInfo );
1310
1311
  //bin - flag
1312
0
  bool sbtFlag = cu.sbtInfo != 0;
1313
0
  uint8_t ctxIdx = ( cuWidth * cuHeight <= 256 ) ? 1 : 0;
1314
0
  m_BinEncoder.encodeBin( sbtFlag, Ctx::SbtFlag( ctxIdx ) );
1315
0
  if( !sbtFlag )
1316
0
  {
1317
0
    return;
1318
0
  }
1319
1320
0
  bool sbtQuadFlag = sbtIdx == SBT_HOR_QUAD || sbtIdx == SBT_VER_QUAD;
1321
0
  bool sbtHorFlag = sbtIdx == SBT_HOR_HALF || sbtIdx == SBT_HOR_QUAD;
1322
0
  bool sbtPosFlag = sbtPos == SBT_POS1;
1323
1324
0
  uint8_t sbtVerHalfAllow = CU::targetSbtAllowed( SBT_VER_HALF, sbtAllowed );
1325
0
  uint8_t sbtHorHalfAllow = CU::targetSbtAllowed( SBT_HOR_HALF, sbtAllowed );
1326
0
  uint8_t sbtVerQuadAllow = CU::targetSbtAllowed( SBT_VER_QUAD, sbtAllowed );
1327
0
  uint8_t sbtHorQuadAllow = CU::targetSbtAllowed( SBT_HOR_QUAD, sbtAllowed );
1328
  //bin - type
1329
0
  if( ( sbtHorHalfAllow || sbtVerHalfAllow ) && ( sbtHorQuadAllow || sbtVerQuadAllow ) )
1330
0
  {
1331
0
    m_BinEncoder.encodeBin( sbtQuadFlag, Ctx::SbtQuadFlag( 0 ) );
1332
0
  }
1333
0
  else
1334
0
  {
1335
0
    assert( sbtQuadFlag == 0 );
1336
0
  }
1337
1338
  //bin - dir
1339
0
  if( ( sbtQuadFlag && sbtVerQuadAllow && sbtHorQuadAllow ) || ( !sbtQuadFlag && sbtVerHalfAllow && sbtHorHalfAllow ) ) //both direction allowed
1340
0
  {
1341
0
    uint8_t ctxIdx = ( cuWidth == cuHeight ) ? 0 : ( cuWidth < cuHeight ? 1 : 2 );
1342
0
    m_BinEncoder.encodeBin( sbtHorFlag, Ctx::SbtHorFlag( ctxIdx ) );
1343
0
  }
1344
0
  else
1345
0
  {
1346
0
    assert( sbtHorFlag == ( ( sbtQuadFlag && sbtHorQuadAllow ) || ( !sbtQuadFlag && sbtHorHalfAllow ) ) );
1347
0
  }
1348
1349
  //bin - pos
1350
0
  m_BinEncoder.encodeBin( sbtPosFlag, Ctx::SbtPosFlag( 0 ) );
1351
1352
0
  DTRACE( g_trace_ctx, D_SYNTAX, "sbt_mode() pos=(%d,%d) sbtInfo=%d\n", cu.lx(), cu.ly(), (int)cu.sbtInfo );
1353
0
}
1354
1355
1356
void CABACWriter::end_of_ctu( const CodingUnit& cu, CUCtx& cuCtx )
1357
79.1k
{
1358
79.1k
  const bool    isLastSubCUOfCtu  = CU::isLastSubCUOfCtu( cu );
1359
1360
79.1k
  if ( isLastSubCUOfCtu
1361
15.0k
    && ( !CU::isSepTree(cu) || cu.chromaFormat == CHROMA_400 || isChroma( cu.chType ) )
1362
79.1k
      )
1363
7.53k
  {
1364
7.53k
    cuCtx.isDQPCoded = ( cu.cs->pps->useDQP && !cuCtx.isDQPCoded );
1365
1366
7.53k
  }
1367
79.1k
}
1368
1369
1370
void CABACWriter::cu_palette_info(const CodingUnit& cu, ComponentID compBegin, uint32_t numComp, CUCtx& cuCtx)
1371
0
{
1372
0
  THROW("no support");
1373
0
}
1374
1375
1376
//================================================================================
1377
//  clause 7.3.8.6
1378
//--------------------------------------------------------------------------------
1379
//    void  prediction_unit ( cu );
1380
//    void  merge_flag      ( cu );
1381
//    void  merge_idx       ( cu );
1382
//    void  inter_pred_idc  ( cu );
1383
//    void  ref_idx         ( cu, refList );
1384
//    void  mvp_flag        ( cu, refList );
1385
//================================================================================
1386
1387
void CABACWriter::prediction_unit( const CodingUnit& cu )
1388
22.5k
{
1389
22.5k
  CHECK( cu.treeType == TREE_C, "cannot be chroma CU" );
1390
22.5k
  if( cu.skip )
1391
0
  {
1392
0
    CHECK( !cu.mergeFlag, "merge_flag must be true for skipped CUs" );
1393
0
  }
1394
22.5k
  else
1395
22.5k
  {
1396
22.5k
    merge_flag( cu );
1397
22.5k
  }
1398
22.5k
  if( cu.mergeFlag )
1399
0
  {
1400
0
    merge_data(cu);
1401
0
  }
1402
22.5k
  else if (CU::isIBC(cu))
1403
22.5k
  {
1404
22.5k
    ref_idx(cu, REF_PIC_LIST_0);
1405
22.5k
    Mv mvd = cu.mvd[REF_PIC_LIST_0][0];
1406
22.5k
    mvd.changeIbcPrecInternal2Amvr(cu.imv);
1407
22.5k
    mvd_coding(mvd, 0); // already changed to signaling precision
1408
22.5k
    if ( cu.slice->sps->maxNumIBCMergeCand == 1 )
1409
0
    {
1410
0
      CHECK( cu.mvpIdx[REF_PIC_LIST_0], "mvpIdx for IBC mode should be 0" );
1411
0
    }
1412
22.5k
    else
1413
22.5k
    mvp_flag(cu, REF_PIC_LIST_0);
1414
22.5k
  }
1415
0
  else
1416
0
  {
1417
0
    inter_pred_idc( cu );
1418
0
    affine_flag   ( cu );
1419
0
    smvd_mode( cu );
1420
0
    if( cu.interDir != 2 /* PRED_L1 */ )
1421
0
    {
1422
0
      ref_idx     ( cu, REF_PIC_LIST_0 );
1423
0
      if ( cu.affine )
1424
0
      {
1425
0
        Mv mvd = cu.mvd[REF_PIC_LIST_0][0];
1426
0
        mvd.changeAffinePrecInternal2Amvr(cu.imv);
1427
0
        mvd_coding(mvd, 0); // already changed to signaling precision
1428
0
        mvd = cu.mvd[REF_PIC_LIST_0][1];
1429
0
        mvd.changeAffinePrecInternal2Amvr(cu.imv);
1430
0
        mvd_coding(mvd, 0); // already changed to signaling precision
1431
0
        if ( cu.affineType == AFFINEMODEL_6PARAM )
1432
0
        {
1433
0
          mvd = cu.mvd[REF_PIC_LIST_0][2];
1434
0
          mvd.changeAffinePrecInternal2Amvr(cu.imv);
1435
0
          mvd_coding(mvd, 0); // already changed to signaling precision
1436
0
        }
1437
0
      }
1438
0
      else
1439
0
      {
1440
0
        Mv mvd = cu.mvd[REF_PIC_LIST_0][0];
1441
0
        mvd.changeTransPrecInternal2Amvr(cu.imv);
1442
0
        mvd_coding(mvd, 0); // already changed to signaling precision
1443
0
      }
1444
0
      mvp_flag    ( cu, REF_PIC_LIST_0 );
1445
0
    }
1446
0
    if( cu.interDir != 1 /* PRED_L0 */ )
1447
0
    {
1448
0
      if ( cu.smvdMode != 1 )
1449
0
      {
1450
0
        ref_idx     ( cu, REF_PIC_LIST_1 );
1451
0
        if( !cu.cs->picHeader->mvdL1Zero || cu.interDir != 3 /* PRED_BI */ )
1452
0
        {
1453
0
          if ( cu.affine )
1454
0
          {
1455
0
            Mv mvd = cu.mvd[REF_PIC_LIST_1][0];
1456
0
            mvd.changeAffinePrecInternal2Amvr(cu.imv);
1457
0
            mvd_coding(mvd, 0); // already changed to signaling precision
1458
0
            mvd = cu.mvd[REF_PIC_LIST_1][1];
1459
0
            mvd.changeAffinePrecInternal2Amvr(cu.imv);
1460
0
            mvd_coding(mvd, 0); // already changed to signaling precision
1461
0
            if ( cu.affineType == AFFINEMODEL_6PARAM )
1462
0
            {
1463
0
              mvd = cu.mvd[REF_PIC_LIST_1][2];
1464
0
              mvd.changeAffinePrecInternal2Amvr(cu.imv);
1465
0
              mvd_coding(mvd, 0); // already changed to signaling precision
1466
0
            }
1467
0
          }
1468
0
          else
1469
0
          {
1470
0
            Mv mvd = cu.mvd[REF_PIC_LIST_1][0];
1471
0
            mvd.changeTransPrecInternal2Amvr(cu.imv);
1472
0
            mvd_coding(mvd, 0); // already changed to signaling precision
1473
0
          }
1474
0
        }
1475
0
      }
1476
0
      mvp_flag    ( cu, REF_PIC_LIST_1 );
1477
0
    }
1478
0
  }
1479
22.5k
}
1480
1481
1482
void CABACWriter::smvd_mode( const CodingUnit& cu )
1483
0
{
1484
0
  if ( cu.interDir != 3 || cu.affine )
1485
0
  {
1486
0
    return;
1487
0
  }
1488
1489
0
  if ( cu.cs->slice->biDirPred == false )
1490
0
  {
1491
0
    return;
1492
0
  }
1493
1494
0
  m_BinEncoder.encodeBin( cu.smvdMode ? 1 : 0, Ctx::SmvdFlag() );
1495
1496
0
  DTRACE( g_trace_ctx, D_SYNTAX, "symmvd_flag() symmvd=%d pos=(%d,%d) size=%dx%d\n", cu.smvdMode ? 1 : 0, cu.lumaPos().x, cu.lumaPos().y, cu.lumaSize().width, cu.lumaSize().height );
1497
0
}
1498
1499
1500
void CABACWriter::subblock_merge_flag( const CodingUnit& cu )
1501
0
{
1502
1503
0
  if ( !cu.cs->slice->isIntra() && (cu.slice->picHeader->maxNumAffineMergeCand > 0) && cu.lumaSize().width >= 8 && cu.lumaSize().height >= 8 )
1504
0
  {
1505
0
    unsigned ctxId = DeriveCtx::CtxAffineFlag();
1506
0
    m_BinEncoder.encodeBin( cu.affine, Ctx::SubblockMergeFlag( ctxId ) );
1507
0
    DTRACE( g_trace_ctx, D_SYNTAX, "subblock_merge_flag() subblock_merge_flag=%d ctx=%d pos=(%d,%d)\n", cu.affine ? 1 : 0, ctxId, cu.Y().x, cu.Y().y );
1508
0
  }
1509
0
}
1510
1511
1512
void CABACWriter::affine_flag( const CodingUnit& cu )
1513
0
{
1514
0
  if ( !cu.cs->slice->isIntra() && cu.cs->sps->Affine && cu.lumaSize().width > 8 && cu.lumaSize().height > 8 )
1515
0
  {
1516
0
    unsigned ctxId = DeriveCtx::CtxAffineFlag();
1517
0
    m_BinEncoder.encodeBin( cu.affine, Ctx::AffineFlag( ctxId ) );
1518
0
    DTRACE( g_trace_ctx, D_SYNTAX, "affine_flag() affine=%d ctx=%d pos=(%d,%d)\n", cu.affine ? 1 : 0, ctxId, cu.Y().x, cu.Y().y );
1519
1520
0
    if ( cu.affine && cu.cs->sps->AffineType )
1521
0
    {
1522
0
      unsigned ctxId = 0;
1523
0
      m_BinEncoder.encodeBin( cu.affineType, Ctx::AffineType( ctxId ) );
1524
0
      DTRACE( g_trace_ctx, D_SYNTAX, "affine_type() affine_type=%d ctx=%d pos=(%d,%d)\n", cu.affineType ? 1 : 0, ctxId, cu.Y().x, cu.Y().y );
1525
0
    }
1526
0
  }
1527
0
}
1528
1529
1530
void CABACWriter::merge_flag( const CodingUnit& cu )
1531
22.5k
{
1532
22.5k
  m_BinEncoder.encodeBin( cu.mergeFlag, Ctx::MergeFlag() );
1533
1534
22.5k
  DTRACE( g_trace_ctx, D_SYNTAX, "merge_flag() merge=%d pos=(%d,%d) size=%dx%d\n", cu.mergeFlag ? 1 : 0, cu.lumaPos().x, cu.lumaPos().y, cu.lumaSize().width, cu.lumaSize().height );
1535
22.5k
}
1536
1537
1538
void CABACWriter::merge_data(const CodingUnit& cu)
1539
0
{
1540
0
  if (CU::isIBC(cu))
1541
0
  {
1542
0
    merge_idx(cu);
1543
0
    return;
1544
0
  }
1545
0
  subblock_merge_flag(cu);
1546
0
  if (cu.affine)
1547
0
  {
1548
0
    merge_idx(cu);
1549
0
    return;
1550
0
  }
1551
1552
0
  const bool ciipAvailable = cu.cs->sps->CIIP && !cu.skip && cu.Y().maxDim() < MAX_CU_SIZE && cu.Y().area() >= 64;
1553
0
  const bool geoAvailable = cu.cs->slice->sps->GEO && cu.cs->slice->isInterB() && cu.cs->sps->maxNumGeoCand > 1
1554
0
                                                   && cu.Y().minDim() >= GEO_MIN_CU_SIZE && cu.Y().maxDim() <= GEO_MAX_CU_SIZE
1555
0
                                                   && cu.Y().maxDim() < 8 * cu.Y().minDim();
1556
1557
0
  if (geoAvailable || ciipAvailable)
1558
0
  {
1559
0
    m_BinEncoder.encodeBin(!cu.geo && !cu.ciip, Ctx::RegularMergeFlag(cu.skip ? 0 : 1));
1560
0
  }
1561
0
  if (!cu.geo && !cu.ciip)
1562
0
  {
1563
0
    if (cu.cs->sps->MMVD)
1564
0
    {
1565
0
      m_BinEncoder.encodeBin(cu.mmvdMergeFlag, Ctx::MmvdFlag(0));
1566
0
      DTRACE(g_trace_ctx, D_SYNTAX, "mmvd_merge_flag() mmvd_merge=%d pos=(%d,%d) size=%dx%d\n", cu.mmvdMergeFlag ? 1 : 0, cu.lumaPos().x, cu.lumaPos().y, cu.lumaSize().width, cu.lumaSize().height);
1567
0
    }
1568
0
    if (cu.mmvdMergeFlag || cu.mmvdSkip)
1569
0
    {
1570
0
      mmvd_merge_idx(cu);
1571
0
    }
1572
0
    else
1573
0
    {
1574
0
      merge_idx(cu);
1575
0
    }
1576
0
  }
1577
0
  else
1578
0
  {
1579
0
    if (geoAvailable && ciipAvailable)
1580
0
    {
1581
0
      ciip_flag(cu);
1582
0
    }
1583
0
    merge_idx(cu);
1584
0
  }
1585
0
}
1586
1587
1588
void CABACWriter::imv_mode( const CodingUnit& cu )
1589
22.5k
{
1590
22.5k
  const SPS *sps = cu.cs->sps;
1591
1592
22.5k
  if( !sps->AMVR )
1593
0
  {
1594
0
    return;
1595
0
  }
1596
22.5k
  if ( cu.affine )
1597
0
  {
1598
0
    return;
1599
0
  }
1600
1601
22.5k
  bool bNonZeroMvd = CU::hasSubCUNonZeroMVd( cu );
1602
22.5k
  if( !bNonZeroMvd )
1603
0
  {
1604
0
    return;
1605
0
  }
1606
1607
22.5k
  if (CU::isIBC(cu) == false)
1608
0
    m_BinEncoder.encodeBin( (cu.imv > 0), Ctx::ImvFlag( 0 ) );
1609
22.5k
  DTRACE( g_trace_ctx, D_SYNTAX, "imv_mode() value=%d ctx=%d\n", (cu.imv > 0), 0 );
1610
1611
22.5k
  if( sps->AMVR && cu.imv > 0 )
1612
22.5k
  {
1613
22.5k
    if (!CU::isIBC(cu))
1614
0
    {
1615
0
      m_BinEncoder.encodeBin(cu.imv < IMV_HPEL, Ctx::ImvFlag(4));
1616
0
      DTRACE(g_trace_ctx, D_SYNTAX, "imv_mode() value=%d ctx=%d\n", cu.imv < 3, 4);
1617
0
    }
1618
22.5k
    if (cu.imv < IMV_HPEL)
1619
22.5k
    {
1620
22.5k
    m_BinEncoder.encodeBin( (cu.imv > 1), Ctx::ImvFlag( 1 ) );
1621
22.5k
    DTRACE( g_trace_ctx, D_SYNTAX, "imv_mode() value=%d ctx=%d\n", (cu.imv > 1), 1 );
1622
22.5k
    }
1623
22.5k
  }
1624
1625
22.5k
  DTRACE( g_trace_ctx, D_SYNTAX, "imv_mode() IMVFlag=%d\n", cu.imv );
1626
22.5k
}
1627
1628
1629
void CABACWriter::affine_amvr_mode( const CodingUnit& cu )
1630
22.5k
{
1631
22.5k
  const SPS* sps = cu.slice->sps;
1632
1633
22.5k
  if( !sps->AffineAmvr || !cu.affine )
1634
22.5k
  {
1635
22.5k
    return;
1636
22.5k
  }
1637
1638
0
  if ( !CU::hasSubCUNonZeroAffineMVd( cu ) )
1639
0
  {
1640
0
    return;
1641
0
  }
1642
1643
0
  m_BinEncoder.encodeBin( (cu.imv > 0), Ctx::ImvFlag( 2 ) );
1644
0
  DTRACE( g_trace_ctx, D_SYNTAX, "affine_amvr_mode() value=%d ctx=%d\n", (cu.imv > 0), 2 );
1645
1646
0
  if( cu.imv > 0 )
1647
0
  {
1648
0
    m_BinEncoder.encodeBin( (cu.imv > 1), Ctx::ImvFlag( 3 ) );
1649
0
    DTRACE( g_trace_ctx, D_SYNTAX, "affine_amvr_mode() value=%d ctx=%d\n", (cu.imv > 1), 3 );
1650
0
  }
1651
0
  DTRACE( g_trace_ctx, D_SYNTAX, "affine_amvr_mode() IMVFlag=%d\n", cu.imv );
1652
0
}
1653
1654
1655
void CABACWriter::merge_idx( const CodingUnit& cu )
1656
0
{
1657
0
  if ( cu.affine )
1658
0
  {
1659
0
    int numCandminus1 = int( cu.cs->picHeader->maxNumAffineMergeCand ) - 1;
1660
0
    if ( numCandminus1 > 0 )
1661
0
    {
1662
0
      if ( cu.mergeIdx == 0 )
1663
0
      {
1664
0
        m_BinEncoder.encodeBin( 0, Ctx::AffMergeIdx() );
1665
0
        DTRACE( g_trace_ctx, D_SYNTAX, "aff_merge_idx() aff_merge_idx=%d\n", cu.mergeIdx );
1666
0
        return;
1667
0
      }
1668
0
      else
1669
0
      {
1670
0
        m_BinEncoder.encodeBin( 1, Ctx::AffMergeIdx() );
1671
0
        for ( unsigned idx = 1; idx < numCandminus1; idx++ )
1672
0
        {
1673
0
            m_BinEncoder.encodeBinEP( cu.mergeIdx == idx ? 0 : 1 );
1674
0
          if ( cu.mergeIdx == idx )
1675
0
          {
1676
0
            break;
1677
0
          }
1678
0
        }
1679
0
      }
1680
0
    }
1681
0
    DTRACE( g_trace_ctx, D_SYNTAX, "aff_merge_idx() aff_merge_idx=%d\n", cu.mergeIdx );
1682
0
  }
1683
0
  else
1684
0
  {
1685
0
    if( cu.geo )
1686
0
    {
1687
0
      uint8_t splitDir = cu.geoSplitDir;
1688
0
      uint8_t candIdx0 = cu.geoMergeIdx[0];
1689
0
      uint8_t candIdx1 = cu.geoMergeIdx[1];
1690
0
      DTRACE( g_trace_ctx, D_SYNTAX, "merge_idx() geo_split_dir=%d\n", splitDir );
1691
0
      DTRACE( g_trace_ctx, D_SYNTAX, "merge_idx() geo_idx0=%d\n", candIdx0 );
1692
0
      DTRACE( g_trace_ctx, D_SYNTAX, "merge_idx() geo_idx1=%d\n", candIdx1 );
1693
0
      xWriteTruncBinCode(splitDir, GEO_NUM_PARTITION_MODE);
1694
0
      candIdx1 -= candIdx1 < candIdx0 ? 0 : 1;
1695
0
      const int maxNumGeoCand = cu.cs->sps->maxNumGeoCand;
1696
0
      CHECK(maxNumGeoCand < 2, "Incorrect max number of geo candidates");
1697
0
      CHECK(candIdx0 >= maxNumGeoCand, "Incorrect candIdx0");
1698
0
      CHECK(candIdx1 >= maxNumGeoCand, "Incorrect candIdx1");
1699
0
      int numCandminus2 = maxNumGeoCand - 2;
1700
0
      m_BinEncoder.encodeBin( candIdx0 == 0 ? 0 : 1, Ctx::MergeIdx() );
1701
0
      if( candIdx0 > 0 )
1702
0
      {
1703
0
        unary_max_eqprob(candIdx0 - 1, numCandminus2);
1704
0
      }
1705
0
      if (numCandminus2 > 0)
1706
0
      {
1707
0
        m_BinEncoder.encodeBin(candIdx1 == 0 ? 0 : 1, Ctx::MergeIdx());
1708
0
        if (candIdx1 > 0)
1709
0
        {
1710
0
          unary_max_eqprob(candIdx1 - 1, numCandminus2 - 1);
1711
0
        }
1712
0
      }
1713
0
      return;
1714
0
    }
1715
0
    int numCandminus1 = (cu.predMode == MODE_IBC) ? (int(cu.cs->sps->maxNumIBCMergeCand) - 1) : (int(cu.cs->sps->maxNumMergeCand) - 1);
1716
0
    if( numCandminus1 > 0 )
1717
0
    {
1718
0
      if( cu.mergeIdx == 0 )
1719
0
      {
1720
0
        m_BinEncoder.encodeBin( 0, Ctx::MergeIdx() );
1721
0
        DTRACE( g_trace_ctx, D_SYNTAX, "merge_idx() merge_idx=%d\n", cu.mergeIdx );
1722
0
        return;
1723
0
      }
1724
0
      else
1725
0
      {
1726
0
        m_BinEncoder.encodeBin( 1, Ctx::MergeIdx() );
1727
0
        for( unsigned idx = 1; idx < numCandminus1; idx++ )
1728
0
        {
1729
0
          m_BinEncoder.encodeBinEP( cu.mergeIdx == idx ? 0 : 1 );
1730
0
          if( cu.mergeIdx == idx )
1731
0
          {
1732
0
            break;
1733
0
          }
1734
0
        }
1735
0
      }
1736
0
    }
1737
0
    DTRACE( g_trace_ctx, D_SYNTAX, "merge_idx() merge_idx=%d\n", cu.mergeIdx );
1738
0
  }
1739
0
}
1740
1741
1742
void CABACWriter::mmvd_merge_idx( const CodingUnit &cu )
1743
0
{
1744
0
  const int mvdBaseIdx  = cu.mmvdMergeIdx.pos.baseIdx;
1745
0
  const int mvdStep     = cu.mmvdMergeIdx.pos.step;
1746
0
  const int mvdPosition = cu.mmvdMergeIdx.pos.position;
1747
1748
0
  if( cu.cs->sps->maxNumMergeCand > 1 )
1749
0
  {
1750
0
    static_assert( MMVD_BASE_MV_NUM == 2, "" );
1751
0
    CHECK( mvdBaseIdx >= 2, "Invalid mvdBaseIdx" );
1752
0
    m_BinEncoder.encodeBin( mvdBaseIdx, Ctx::MmvdMergeIdx() );
1753
0
  }
1754
0
  DTRACE( g_trace_ctx, D_SYNTAX, "base_mvp_idx() base_mvp_idx=%d\n", mvdBaseIdx );
1755
1756
0
  int numCandminus1_step = MMVD_REFINE_STEP - 1;
1757
0
  if( numCandminus1_step > 0 )
1758
0
  {
1759
0
    if( mvdStep == 0 )
1760
0
    {
1761
0
      m_BinEncoder.encodeBin( 0, Ctx::MmvdStepMvpIdx() );
1762
0
    }
1763
0
    else
1764
0
    {
1765
0
      m_BinEncoder.encodeBin( 1, Ctx::MmvdStepMvpIdx() );
1766
0
      for( unsigned idx = 1; idx < numCandminus1_step; idx++ )
1767
0
      {
1768
0
        m_BinEncoder.encodeBinEP( mvdStep == idx ? 0 : 1 );
1769
0
        if( mvdStep == idx )
1770
0
        {
1771
0
          break;
1772
0
        }
1773
0
      }
1774
0
    }
1775
0
  }
1776
0
  DTRACE( g_trace_ctx, D_SYNTAX, "MmvdStepMvpIdx() MmvdStepMvpIdx=%d\n", mvdStep );
1777
1778
0
  m_BinEncoder.encodeBinsEP( mvdPosition, 2 );
1779
1780
0
  DTRACE( g_trace_ctx, D_SYNTAX, "pos() pos=%d\n", mvdPosition );
1781
0
  DTRACE( g_trace_ctx, D_SYNTAX, "mmvd_merge_idx() mmvd_merge_idx=%d\n", cu.mmvdMergeIdx.val );
1782
0
}
1783
1784
1785
void CABACWriter::inter_pred_idc( const CodingUnit& cu )
1786
0
{
1787
0
  if( !cu.cs->slice->isInterB() )
1788
0
  {
1789
0
    return;
1790
0
  }
1791
0
  if( !(CU::isBipredRestriction(cu)) )
1792
0
  {
1793
0
    unsigned ctxId = DeriveCtx::CtxInterDir(cu);
1794
0
    if( cu.interDir == 3 )
1795
0
    {
1796
0
      m_BinEncoder.encodeBin( 1, Ctx::InterDir(ctxId) );
1797
0
      DTRACE( g_trace_ctx, D_SYNTAX, "inter_pred_idc() ctx=%d value=%d pos=(%d,%d)\n", ctxId, cu.interDir, cu.lumaPos().x, cu.lumaPos().y );
1798
0
      return;
1799
0
    }
1800
0
    else
1801
0
    {
1802
0
      m_BinEncoder.encodeBin( 0, Ctx::InterDir(ctxId) );
1803
0
    }
1804
0
  }
1805
0
  m_BinEncoder.encodeBin( ( cu.interDir == 2 ), Ctx::InterDir( 5 ) );
1806
0
  DTRACE( g_trace_ctx, D_SYNTAX, "inter_pred_idc() ctx=5 value=%d pos=(%d,%d)\n", cu.interDir, cu.lumaPos().x, cu.lumaPos().y );
1807
0
}
1808
1809
1810
void CABACWriter::ref_idx( const CodingUnit& cu, RefPicList eRefList )
1811
22.5k
{
1812
22.5k
  if ( cu.smvdMode )
1813
0
  {
1814
0
    CHECK( cu.refIdx[eRefList] != cu.cs->slice->symRefIdx[ eRefList ], "Invalid reference index!\n" );
1815
0
    return;
1816
0
  }
1817
1818
22.5k
  int numRef  = cu.cs->slice->numRefIdx[eRefList];
1819
1820
22.5k
  if (eRefList == REF_PIC_LIST_0 && cu.cs->sps->IBC)
1821
22.5k
  {
1822
22.5k
    if (CU::isIBC(cu))
1823
22.5k
      return;
1824
22.5k
  }
1825
1826
0
  if( numRef <= 1 )
1827
0
  {
1828
0
    return;
1829
0
  }
1830
0
  int refIdx  = cu.refIdx[eRefList];
1831
0
  m_BinEncoder.encodeBin( (refIdx > 0), Ctx::RefPic() );
1832
0
  if( numRef <= 2 || refIdx == 0 )
1833
0
  {
1834
0
    DTRACE( g_trace_ctx, D_SYNTAX, "ref_idx() value=%d pos=(%d,%d)\n", refIdx, cu.lumaPos().x, cu.lumaPos().y );
1835
0
    return;
1836
0
  }
1837
0
  m_BinEncoder.encodeBin( (refIdx > 1), Ctx::RefPic(1) );
1838
0
  if( numRef <= 3 || refIdx == 1 )
1839
0
  {
1840
0
    DTRACE( g_trace_ctx, D_SYNTAX, "ref_idx() value=%d pos=(%d,%d)\n", refIdx, cu.lumaPos().x, cu.lumaPos().y );
1841
0
    return;
1842
0
  }
1843
0
  for( int idx = 3; idx < numRef; idx++ )
1844
0
  {
1845
0
    if( refIdx > idx - 1 )
1846
0
    {
1847
0
      m_BinEncoder.encodeBinEP( 1 );
1848
0
    }
1849
0
    else
1850
0
    {
1851
0
      m_BinEncoder.encodeBinEP( 0 );
1852
0
      break;
1853
0
    }
1854
0
  }
1855
0
  DTRACE( g_trace_ctx, D_SYNTAX, "ref_idx() value=%d pos=(%d,%d)\n", refIdx, cu.lumaPos().x, cu.lumaPos().y );
1856
0
}
1857
1858
1859
void CABACWriter::mvp_flag( const CodingUnit& cu, RefPicList eRefList )
1860
22.5k
{
1861
22.5k
  m_BinEncoder.encodeBin( cu.mvpIdx[eRefList], Ctx::MVPIdx() );
1862
22.5k
  DTRACE( g_trace_ctx, D_SYNTAX, "mvp_flag() value=%d pos=(%d,%d)\n", cu.mvpIdx[eRefList], cu.lumaPos().x, cu.lumaPos().y );
1863
22.5k
  DTRACE( g_trace_ctx, D_SYNTAX, "mvpIdx(refList:%d)=%d\n", eRefList, cu.mvpIdx[eRefList] );
1864
22.5k
}
1865
1866
1867
void CABACWriter::ciip_flag(const CodingUnit& cu)
1868
0
{
1869
0
  if (!cu.cs->sps->CIIP)
1870
0
  {
1871
0
    CHECK(cu.ciip == true, "invalid Ciip SPS");
1872
0
    return;
1873
0
  }
1874
0
  if (cu.skip)
1875
0
  {
1876
0
    CHECK(cu.ciip == true, "invalid Ciip and skip");
1877
0
    return;
1878
0
  }
1879
0
  m_BinEncoder.encodeBin(cu.ciip, Ctx::CiipFlag());
1880
0
  DTRACE(g_trace_ctx, D_SYNTAX, "Ciip_flag() Ciip=%d pos=(%d,%d) size=%dx%d\n", cu.ciip ? 1 : 0, cu.lumaPos().x, cu.lumaPos().y, cu.lumaSize().width, cu.lumaSize().height);
1881
0
}
1882
1883
1884
//================================================================================
1885
//  clause 7.3.8.8
1886
//--------------------------------------------------------------------------------
1887
//    void  transform_tree      ( cs, area, cuCtx, chromaCbfs )
1888
//    bool  split_transform_flag( split, depth )
1889
//    bool  cbf_comp            ( cbf, area, depth )
1890
//================================================================================
1891
1892
void CABACWriter::transform_tree( const CodingStructure& cs, Partitioner& partitioner, CUCtx& cuCtx, const PartSplit ispType, const int subTuIdx )
1893
161k
{
1894
161k
  const UnitArea&       area = partitioner.currArea();
1895
161k
  int             subTuCounter = subTuIdx;
1896
161k
  const TransformUnit&  tu = *cs.getTU(area.blocks[partitioner.chType].pos(), partitioner.chType, subTuIdx);
1897
161k
  const CodingUnit&     cu = *tu.cu;
1898
161k
  const unsigned        trDepth = partitioner.currTrDepth;
1899
161k
  const bool            split = (tu.depth > trDepth);
1900
161k
  if( split )
1901
38
  {
1902
38
    PartSplit partSplit;
1903
1904
38
    if( partitioner.canSplit( TU_MAX_TR_SPLIT, cs ) )
1905
0
    {
1906
#if ENABLE_TRACING
1907
      const CompArea& tuArea = partitioner.currArea().blocks[partitioner.chType];
1908
      DTRACE( g_trace_ctx, D_SYNTAX, "transform_tree() maxTrSplit chType=%d pos=(%d,%d) size=%dx%d\n", partitioner.chType, tuArea.x, tuArea.y, tuArea.width, tuArea.height );
1909
1910
#endif
1911
0
      partitioner.splitCurrArea( TU_MAX_TR_SPLIT, cs );
1912
0
    }
1913
38
    else if( cu.ispMode )
1914
38
    {
1915
38
      partitioner.splitCurrArea( ispType, cs );
1916
38
    }
1917
0
    else if( cu.sbtInfo && partitioner.canSplit( partSplit = CU::getSbtTuSplit( cu.sbtInfo ), cs ) )
1918
0
    {
1919
0
      partitioner.splitCurrArea( partSplit, cs );
1920
0
    }
1921
0
    else
1922
0
      THROW( "Implicit TU split not available" );
1923
1924
38
    do
1925
152
    {
1926
152
      transform_tree( cs, partitioner, cuCtx,                ispType, subTuCounter );
1927
152
      subTuCounter += subTuCounter != -1 ? 1 : 0;
1928
152
    } while( partitioner.nextPart( cs ) );
1929
1930
38
    partitioner.exitCurrSplit();
1931
38
  }
1932
161k
  else
1933
161k
  {
1934
    // split_transform_flag
1935
161k
    CHECK( partitioner.canSplit( TU_MAX_TR_SPLIT, cs ) || (cu.sbtInfo && partitioner.canSplit( CU::getSbtTuSplit( cu.sbtInfo ), cs)),  "transform split implied" );
1936
161k
    DTRACE( g_trace_ctx, D_SYNTAX, "transform_unit() pos=(%d,%d) size=%dx%d depth=%d trDepth=%d\n", tu.blocks[tu.chType].x, tu.blocks[tu.chType].y, tu.blocks[tu.chType].width, tu.blocks[tu.chType].height, cu.depth, partitioner.currTrDepth );
1937
1938
161k
    transform_unit( tu, cuCtx, partitioner, subTuCounter);
1939
161k
  }
1940
161k
}
1941
1942
1943
void CABACWriter::cbf_comp( const CodingUnit& cu, bool cbf, const CompArea& area, unsigned depth, const bool prevCbf, const bool useISP )
1944
3.09M
{
1945
3.09M
  const CtxSet&   ctxSet  = Ctx::QtCbf[ area.compID ];
1946
3.09M
  unsigned  ctxId;
1947
3.09M
  if( cu.bdpcmM[toChannelType(area.compID)] )
1948
198k
  {
1949
198k
    ctxId = (area.compID != COMP_Cr) ? 1 : 2;
1950
198k
    m_BinEncoder.encodeBin(cbf, ctxSet(ctxId));
1951
198k
  }
1952
2.89M
  else
1953
2.89M
  {
1954
2.89M
    ctxId = DeriveCtx::CtxQtCbf(area.compID, prevCbf, useISP && isLuma(area.compID));
1955
2.89M
    m_BinEncoder.encodeBin( cbf, ctxSet( ctxId ) );
1956
2.89M
  }
1957
3.09M
  DTRACE( g_trace_ctx, D_SYNTAX, "cbf_comp() etype=%d pos=(%d,%d) ctx=%d cbf=%d\n", area.compID, area.x, area.y, ctxId, cbf );
1958
3.09M
}
1959
1960
1961
1962
//================================================================================
1963
//  clause 7.3.8.9
1964
//--------------------------------------------------------------------------------
1965
//    void  mvd_coding( cu, refList )
1966
//================================================================================
1967
void CABACWriter::mvd_coding( const Mv &rMvd, int8_t imv )
1968
22.5k
{
1969
22.5k
  int       horMvd = rMvd.hor;
1970
22.5k
  int       verMvd = rMvd.ver;
1971
22.5k
  if ( imv > 0 )
1972
0
  {
1973
0
    int shift = 1;
1974
0
    if (imv < IMV_HPEL)
1975
0
    {
1976
0
      shift = 2;
1977
0
      if (imv == IMV_4PEL)
1978
0
      {
1979
0
        shift = 4;
1980
0
      }
1981
0
    }
1982
1983
0
    CHECK((horMvd % (1<<shift)) != 0 && (verMvd % (4<<shift)) != 0, "IMV: MVD is not a multiple of 2^N ");
1984
0
    horMvd >>= shift;
1985
0
    verMvd >>= shift;
1986
0
  }
1987
22.5k
  unsigned  horAbs  = unsigned( horMvd < 0 ? -horMvd : horMvd );
1988
22.5k
  unsigned  verAbs  = unsigned( verMvd < 0 ? -verMvd : verMvd );
1989
1990
1991
  // abs_mvd_greater0_flag[ 0 | 1 ]
1992
22.5k
  m_BinEncoder.encodeBin( (horAbs > 0), Ctx::Mvd() );
1993
22.5k
  m_BinEncoder.encodeBin( (verAbs > 0), Ctx::Mvd() );
1994
1995
  // abs_mvd_greater1_flag[ 0 | 1 ]
1996
22.5k
  if( horAbs > 0 )
1997
14.0k
  {
1998
14.0k
    m_BinEncoder.encodeBin( (horAbs > 1), Ctx::Mvd(1) );
1999
14.0k
  }
2000
22.5k
  if( verAbs > 0 )
2001
8.42k
  {
2002
8.42k
    m_BinEncoder.encodeBin( (verAbs > 1), Ctx::Mvd(1) );
2003
8.42k
  }
2004
2005
  // abs_mvd_minus2[ 0 | 1 ] and mvd_sign_flag[ 0 | 1 ]
2006
22.5k
  if( horAbs > 0 )
2007
14.0k
  {
2008
14.0k
    if( horAbs > 1 )
2009
14.0k
    {
2010
14.0k
      m_BinEncoder.encodeRemAbsEP(horAbs - 2, 1, 0, MV_BITS - 1);
2011
14.0k
    }
2012
14.0k
    m_BinEncoder.encodeBinEP( (horMvd < 0) );
2013
14.0k
  }
2014
22.5k
  if( verAbs > 0 )
2015
8.42k
  {
2016
8.42k
    if( verAbs > 1 )
2017
8.35k
    {
2018
8.35k
      m_BinEncoder.encodeRemAbsEP(verAbs - 2, 1, 0, MV_BITS - 1);
2019
8.35k
    }
2020
8.42k
    m_BinEncoder.encodeBinEP( (verMvd < 0) );
2021
8.42k
  }
2022
22.5k
}
2023
2024
2025
//================================================================================
2026
//  clause 7.3.8.10
2027
//--------------------------------------------------------------------------------
2028
//    void  transform_unit      ( tu, cuCtx, chromaCbfs )
2029
//    void  cu_qp_delta         ( cu )
2030
//    void  cu_chroma_qp_offset ( cu )
2031
//================================================================================
2032
void CABACWriter::transform_unit( const TransformUnit& tu, CUCtx& cuCtx, Partitioner& partitioner, const int subTuCounter)
2033
161k
{
2034
161k
  const CodingUnit&       cu = *tu.cu;
2035
161k
  const UnitArea&         area = partitioner.currArea();
2036
161k
  const unsigned          trDepth = partitioner.currTrDepth;
2037
161k
  ChromaCbfs              chromaCbfs;
2038
161k
  CHECK(tu.depth != trDepth, " transform unit should be not be futher partitioned");
2039
2040
  // cbf_cb & cbf_cr
2041
161k
  if (area.chromaFormat != CHROMA_400)
2042
161k
  {
2043
161k
    const bool              chromaCbfISP = area.blocks[COMP_Cb].valid() && cu.ispMode;
2044
161k
    if (area.blocks[COMP_Cb].valid() && (!CU::isSepTree(cu) || partitioner.chType == CH_C) && (!cu.ispMode || chromaCbfISP))
2045
89.0k
    {
2046
89.0k
      unsigned cbfDepth = chromaCbfISP ? trDepth - 1 : trDepth;
2047
89.0k
      {
2048
89.0k
        chromaCbfs.Cb = TU::getCbfAtDepth(tu, COMP_Cb, trDepth);
2049
        //if (!(cu.sbtInfo && trDepth == 1))
2050
89.0k
        if (!(cu.sbtInfo && tu.noResidual))
2051
89.0k
          cbf_comp(*tu.cu, chromaCbfs.Cb, area.blocks[COMP_Cb], cbfDepth);
2052
89.0k
      }
2053
2054
89.0k
      {
2055
89.0k
        chromaCbfs.Cr = TU::getCbfAtDepth(tu, COMP_Cr, trDepth);
2056
        //if (!(cu.sbtInfo && trDepth == 1))
2057
89.0k
        if (!(cu.sbtInfo && tu.noResidual))
2058
89.0k
          cbf_comp(*tu.cu, chromaCbfs.Cr, area.blocks[COMP_Cr], cbfDepth, chromaCbfs.Cb);
2059
89.0k
      }
2060
89.0k
    }
2061
72.9k
    else if (CU::isSepTree(cu))
2062
72.9k
    {
2063
72.9k
      chromaCbfs = ChromaCbfs(false);
2064
72.9k
    }
2065
161k
  }
2066
0
  else if (CU::isSepTree(cu))
2067
0
  {
2068
0
    chromaCbfs = ChromaCbfs(false);
2069
0
  }
2070
2071
161k
  if (!isChroma(partitioner.chType))
2072
72.9k
  {
2073
72.9k
    if (!CU::isIntra(cu) && trDepth == 0 && !chromaCbfs.sigChroma(area.chromaFormat))
2074
121
    {
2075
121
      CHECK(!TU::getCbfAtDepth(tu, COMP_Y, trDepth), "Luma cbf must be true for inter units with no chroma coeffs");
2076
121
    }
2077
72.8k
    else if (cu.sbtInfo && tu.noResidual)
2078
0
    {
2079
0
      CHECK(TU::getCbfAtDepth(tu, COMP_Y, trDepth), "Luma cbf must be false for inter sbt no-residual tu");
2080
0
    }
2081
72.8k
    else if (cu.sbtInfo && !chromaCbfs.sigChroma(area.chromaFormat))
2082
0
    {
2083
0
      assert(!tu.noResidual);
2084
0
      CHECK(!TU::getCbfAtDepth(tu, COMP_Y, trDepth), "Luma cbf must be true for inter sbt residual tu");
2085
0
    }
2086
72.8k
    else
2087
72.8k
    {
2088
72.8k
      bool previousCbf = false;
2089
72.8k
      bool rootCbfSoFar = false;
2090
72.8k
      bool lumaCbfIsInferredACT = (cu.colorTransform && cu.predMode == MODE_INTRA && trDepth == 0 && !chromaCbfs.sigChroma(area.chromaFormat));
2091
72.8k
      CHECK(lumaCbfIsInferredACT && !TU::getCbfAtDepth(tu, COMP_Y, trDepth), "adaptive color transform cannot have all zero coefficients");
2092
72.8k
      bool lastCbfIsInferred    = lumaCbfIsInferredACT; // ISP and ACT are mutually exclusive
2093
72.8k
      if (cu.ispMode)
2094
152
      {
2095
152
        uint32_t nTus = cu.ispMode == HOR_INTRA_SUBPARTITIONS ? cu.lheight() >> Log2(tu.lheight()) : cu.lwidth() >> Log2(tu.lwidth());
2096
152
        if (subTuCounter == nTus - 1)
2097
38
        {
2098
38
          TransformUnit* tuPointer = cu.firstTU;
2099
152
          for (int tuIdx = 0; tuIdx < subTuCounter; tuIdx++)
2100
114
          {
2101
114
            rootCbfSoFar |= TU::getCbfAtDepth(*tuPointer, COMP_Y, trDepth);
2102
114
            tuPointer = tuPointer->next;
2103
114
          }
2104
38
          if (!rootCbfSoFar)
2105
0
          {
2106
0
            lastCbfIsInferred = true;
2107
0
          }
2108
38
        }
2109
152
        if (!lastCbfIsInferred)
2110
152
        {
2111
152
          previousCbf = TU::getPrevTuCbfAtDepth(tu, COMP_Y, partitioner.currTrDepth);
2112
152
        }
2113
152
      }
2114
72.8k
      if (!lastCbfIsInferred)
2115
72.8k
      {
2116
72.8k
        cbf_comp(*tu.cu, TU::getCbfAtDepth(tu, COMP_Y, trDepth), tu.Y(), trDepth, previousCbf, cu.ispMode);
2117
72.8k
      }
2118
72.8k
    }
2119
72.9k
  }
2120
161k
  bool        lumaOnly  = ( cu.chromaFormat == CHROMA_400 || !tu.blocks[COMP_Cb].valid() );
2121
161k
  bool        cbf[3]    = { TU::getCbf( tu, COMP_Y ), chromaCbfs.Cb, chromaCbfs.Cr };
2122
161k
  bool        cbfLuma   = ( cbf[ COMP_Y ] != 0 );
2123
161k
  bool        cbfChroma = false;
2124
2125
161k
  if( !lumaOnly )
2126
89.0k
  {
2127
89.0k
    if( tu.blocks[COMP_Cb].valid() )
2128
89.0k
    {
2129
89.0k
      cbf   [ COMP_Cb  ] = TU::getCbf( tu, COMP_Cb );
2130
89.0k
      cbf   [ COMP_Cr  ] = TU::getCbf( tu, COMP_Cr );
2131
89.0k
    }
2132
89.0k
    cbfChroma = ( cbf[ COMP_Cb ] || cbf[ COMP_Cr ] );
2133
89.0k
  }
2134
2135
161k
  if( ( cu.lwidth() > 64 || cu.lheight() > 64 || cbfLuma || cbfChroma ) &&
2136
27.9k
    (!CU::isSepTree(*tu.cu) || isLuma(tu.chType)) )
2137
4.94k
  {
2138
4.94k
    if( cu.cs->pps->useDQP && !cuCtx.isDQPCoded )
2139
2.42k
    {
2140
2.42k
      cu_qp_delta(cu, cuCtx.qp, cu.qp);
2141
2.42k
      cuCtx.qp = cu.qp;
2142
2.42k
      cuCtx.isDQPCoded = true;
2143
2.42k
    }
2144
4.94k
  }
2145
161k
  if (cu.cs->slice->chromaQpAdjEnabled && cbfChroma && !cuCtx.isChromaQpAdjCoded)
2146
0
  {
2147
0
    cu_chroma_qp_offset( cu );
2148
0
    cuCtx.isChromaQpAdjCoded = true;
2149
0
  }
2150
2151
161k
  if( !lumaOnly )
2152
89.0k
  {
2153
89.0k
    joint_cb_cr( tu, ( cbf[COMP_Cb] ? 2 : 0 ) + ( cbf[COMP_Cr] ? 1 : 0 ) );
2154
89.0k
  }
2155
2156
161k
  if( cbfLuma )
2157
4.94k
  {
2158
4.94k
    residual_coding( tu, COMP_Y, &cuCtx );
2159
4.94k
  }
2160
161k
  if( !lumaOnly )
2161
89.0k
  {
2162
267k
    for( ComponentID compID = COMP_Cb; compID <= COMP_Cr; compID = ComponentID( compID + 1 ) )
2163
178k
    {
2164
178k
      if( cbf[ compID ] )
2165
45.5k
      {
2166
45.5k
        residual_coding( tu, compID, &cuCtx );
2167
45.5k
      }
2168
178k
    }
2169
89.0k
  }
2170
161k
}
2171
2172
2173
void CABACWriter::cu_qp_delta( const CodingUnit& cu, int predQP, const int8_t qp )
2174
3.63k
{
2175
3.63k
  CHECK(!( predQP != std::numeric_limits<int>::max()), "Unspecified error");
2176
3.63k
  int       DQp         = qp - predQP;
2177
3.63k
  int       qpBdOffsetY = cu.cs->sps->qpBDOffset[ CH_L ];
2178
3.63k
  DQp                   = ( DQp + (MAX_QP + 1) + (MAX_QP + 1) / 2 + qpBdOffsetY + (qpBdOffsetY / 2)) % ((MAX_QP + 1) + qpBdOffsetY) - (MAX_QP + 1) / 2 - (qpBdOffsetY / 2);
2179
3.63k
  unsigned  absDQP      = unsigned( DQp < 0 ? -DQp : DQp );
2180
3.63k
  unsigned  unaryDQP    = std::min<unsigned>( absDQP, CU_DQP_TU_CMAX );
2181
2182
3.63k
  unary_max_symbol( unaryDQP, Ctx::DeltaQP(), Ctx::DeltaQP(1), CU_DQP_TU_CMAX );
2183
3.63k
  if( absDQP >= CU_DQP_TU_CMAX )
2184
0
  {
2185
0
    exp_golomb_eqprob( absDQP - CU_DQP_TU_CMAX, CU_DQP_EG_k );
2186
0
  }
2187
3.63k
  if( absDQP > 0 )
2188
0
  {
2189
0
    m_BinEncoder.encodeBinEP( DQp < 0 );
2190
0
  }
2191
2192
3.63k
  DTRACE_COND( ( isEncoding() ), g_trace_ctx, D_DQP, "x=%d, y=%d, d=%d, pred_qp=%d, DQp=%d, qp=%d\n", cu.blocks[cu.chType].lumaPos().x, cu.blocks[cu.chType].lumaPos().y, cu.qtDepth, predQP, DQp, qp );
2193
3.63k
}
2194
2195
2196
void CABACWriter::cu_chroma_qp_offset( const CodingUnit& cu )
2197
0
{
2198
  // cu_chroma_qp_offset_flag
2199
0
  unsigned qpAdj = cu.chromaQpAdj;
2200
0
  if( qpAdj == 0 )
2201
0
  {
2202
0
    m_BinEncoder.encodeBin( 0, Ctx::ChromaQpAdjFlag() );
2203
0
  }
2204
0
  else
2205
0
  {
2206
0
    m_BinEncoder.encodeBin( 1, Ctx::ChromaQpAdjFlag() );
2207
0
    int length = cu.cs->pps->chromaQpOffsetListLen;
2208
0
    if( length > 1 )
2209
0
    {
2210
0
      unary_max_symbol( qpAdj-1, Ctx::ChromaQpAdjIdc(), Ctx::ChromaQpAdjIdc(), length-1 );
2211
0
    }
2212
0
  }
2213
0
}
2214
2215
2216
//================================================================================
2217
//  clause 7.3.8.11
2218
//--------------------------------------------------------------------------------
2219
//    void        residual_coding         ( tu, compID )
2220
//    void        transform_skip_flag     ( tu, compID )
2221
//    void        last_sig_coeff          ( coeffCtx )
2222
//    void        residual_coding_subblock( coeffCtx )
2223
//================================================================================
2224
2225
void CABACWriter::joint_cb_cr( const TransformUnit& tu, const int cbfMask )
2226
1.39M
{
2227
1.39M
  if ( !tu.cu->slice->sps->jointCbCr )
2228
0
  {
2229
0
    return;
2230
0
  }
2231
2232
1.39M
  CHECK( tu.jointCbCr && tu.jointCbCr != cbfMask, "wrong value of jointCbCr (" << (int)tu.jointCbCr << " vs " << (int)cbfMask << ")" );
2233
1.39M
  if( ( CU::isIntra( *tu.cu ) && cbfMask ) || ( cbfMask == 3 ) )
2234
657k
  {
2235
657k
    m_BinEncoder.encodeBin( tu.jointCbCr ? 1 : 0, Ctx::JointCbCrFlag( cbfMask - 1 ) );
2236
657k
  }
2237
1.39M
}
2238
2239
2240
void CABACWriter::residual_coding( const TransformUnit& tu, ComponentID compID, CUCtx* cuCtx )
2241
1.34M
{
2242
1.34M
  const CodingUnit& cu = *tu.cu;
2243
1.34M
  DTRACE( g_trace_ctx, D_SYNTAX, "residual_coding() etype=%d pos=(%d,%d) size=%dx%d predMode=%d\n", tu.blocks[compID].compID, tu.blocks[compID].x, tu.blocks[compID].y, tu.blocks[compID].width, tu.blocks[compID].height, cu.predMode );
2244
2245
1.34M
  if( compID == COMP_Cr && tu.jointCbCr == 3 )
2246
384k
  {
2247
384k
    return;
2248
384k
  }
2249
2250
957k
  ts_flag            ( tu, compID );
2251
2252
957k
  if( tu.mtsIdx[compID] == MTS_SKIP && !tu.cs->slice->tsResidualCodingDisabled )
2253
66.9k
  {
2254
66.9k
    residual_codingTS( tu, compID );
2255
66.9k
    return;
2256
66.9k
  }
2257
2258
  // determine sign hiding
2259
890k
  bool signHiding  = cu.cs->slice->signDataHidingEnabled;
2260
2261
  // init coeff coding context
2262
890k
  CoeffCodingContext  cctx    ( tu, compID, signHiding, false, m_tplBuf );
2263
890k
  const TCoeffSig*    coeff   = tu.getCoeffs( compID ).buf;
2264
2265
  // determine and set last coeff position and sig group flags
2266
890k
  int                      scanPosLast = tu.lastPos[compID];
2267
890k
  std::bitset<MLS_GRP_NUM> sigGroupFlags;
2268
2269
1.80M
  for( int subSetId = 0; subSetId <= ( scanPosLast >> cctx.log2CGSize() ); subSetId++ )
2270
916k
  {
2271
916k
    const int scanPosStart = subSetId << cctx.log2CGSize();
2272
916k
    const int scanPosEnd   = scanPosStart + ( 1 << cctx.log2CGSize() ) - 1;
2273
2274
8.33M
    for( int scanPos = scanPosEnd; scanPos >= scanPosStart; scanPos-- )
2275
8.32M
    {
2276
8.32M
      unsigned blkPos = cctx.blockPos( scanPos );
2277
2278
8.32M
      if( coeff[blkPos] )
2279
908k
      {
2280
908k
        sigGroupFlags.set( subSetId );
2281
908k
        break;
2282
908k
      }
2283
8.32M
    }
2284
916k
  }
2285
890k
  CHECK( scanPosLast < 0, "Coefficient coding called for empty TU" );
2286
890k
  cctx.setScanPosLast(scanPosLast);
2287
2288
890k
  if( cuCtx && tu.mtsIdx[compID] != MTS_SKIP && tu.blocks[ compID ].height >= 4 && tu.blocks[ compID ].width >= 4 )
2289
782k
  {
2290
782k
    const int maxLfnstPos = ((tu.blocks[compID].height == 4 && tu.blocks[compID].width == 4) || (tu.blocks[compID].height == 8 && tu.blocks[compID].width == 8)) ? 7 : 15;
2291
782k
    cuCtx->violatesLfnstConstrained[ toChannelType(compID) ] |= cctx.scanPosLast() > maxLfnstPos;
2292
782k
  }
2293
890k
  if( cuCtx && tu.mtsIdx[compID] != MTS_SKIP && tu.blocks[ compID ].height >= 4 && tu.blocks[ compID ].width >= 4 )
2294
782k
  {
2295
782k
    const int lfnstLastScanPosTh = isLuma( compID ) ? LFNST_LAST_SIG_LUMA : LFNST_LAST_SIG_CHROMA;
2296
782k
    cuCtx->lfnstLastScanPos |= cctx.scanPosLast() >= lfnstLastScanPosTh;
2297
782k
  }
2298
890k
  if (cuCtx && isLuma(compID) && tu.mtsIdx[compID] != MTS_SKIP)
2299
27.9k
  {
2300
27.9k
    cuCtx->mtsLastScanPos |= cctx.scanPosLast() >= 1;
2301
27.9k
  }
2302
  
2303
  // code last coeff position
2304
890k
  last_sig_coeff( cctx, tu, compID );
2305
2306
  // code subblocks
2307
890k
  const int stateTab  = ( tu.cs->slice->depQuantEnabled ? 32040 : 0 );
2308
890k
  int       state     = 0;
2309
2310
890k
  int ctxBinSampleRatio = MAX_TU_LEVEL_CTX_CODED_BIN_CONSTRAINT;
2311
890k
  cctx.remRegBins = (tu.getTbAreaAfterCoefZeroOut(compID) * ctxBinSampleRatio) >> 4;
2312
2313
890k
  const bool zeroOutCheck  = isLuma( compID ) && tu.cs->sps->MTS && tu.cu->sbtInfo != 0 && tu.blocks[compID].height <= 32 && tu.blocks[compID].width <= 32;
2314
890k
  const bool zeroOutWidth  = tu.blocks[compID].width;
2315
890k
  const bool zeroOutHeight = tu.blocks[compID].height;
2316
2317
1.80M
  for( int subSetId = ( cctx.scanPosLast() >> cctx.log2CGSize() ); subSetId >= 0; subSetId--)
2318
916k
  {
2319
916k
    cctx.initSubblock( subSetId, sigGroupFlags[subSetId] );
2320
2321
916k
    if( zeroOutCheck )
2322
0
    {
2323
0
      if( ( zeroOutHeight && cctx.cgPosY() >= ( 16 >> cctx.log2CGHeight() ) ) || ( zeroOutWidth  && cctx.cgPosX() >= ( 16 >> cctx.log2CGWidth() ) ) )
2324
0
      {
2325
0
        continue;
2326
0
      }
2327
0
    }
2328
2329
916k
    residual_coding_subblock( cctx, coeff, stateTab, state );
2330
916k
    if ( cuCtx && isLuma(compID) && cctx.isSigGroup() && ( cctx.cgPosY() > 3 || cctx.cgPosX() > 3 ) )
2331
0
    {
2332
0
      cuCtx->violatesMtsCoeffConstraint = true;
2333
0
    }
2334
916k
  }
2335
890k
}
2336
2337
2338
void CABACWriter::ts_flag( const TransformUnit& tu, ComponentID compID )
2339
957k
{
2340
957k
  int tsFlag = tu.mtsIdx[compID] == MTS_SKIP ? 1 : 0;
2341
957k
  int ctxIdx = isLuma(compID) ? 0 : 1;
2342
  
2343
957k
  if( TU::isTSAllowed ( tu, compID ) )
2344
660k
  {
2345
660k
    m_BinEncoder.encodeBin( tsFlag, Ctx::TransformSkipFlag(ctxIdx));
2346
660k
  }
2347
957k
  DTRACE( g_trace_ctx, D_SYNTAX, "ts_flag() etype=%d pos=(%d,%d) mtsIdx=%d\n", COMP_Y, tu.cu->lx(), tu.cu->ly(), tsFlag );
2348
957k
}
2349
2350
2351
void CABACWriter::mts_idx( const CodingUnit& cu, CUCtx* cuCtx )
2352
187k
{
2353
187k
  TransformUnit &tu = *cu.firstTU;
2354
187k
  int        mtsIdx = tu.mtsIdx[COMP_Y];
2355
  
2356
187k
  if( CU::isMTSAllowed( cu, COMP_Y ) && cuCtx && !cuCtx->violatesMtsCoeffConstraint &&
2357
0
      cuCtx->mtsLastScanPos && cu.lfnstIdx == 0 && mtsIdx != MTS_SKIP)
2358
0
  {
2359
0
    int symbol = mtsIdx != MTS_DCT2_DCT2 ? 1 : 0;
2360
0
    int ctxIdx = 0;
2361
    
2362
0
    m_BinEncoder.encodeBin( symbol, Ctx::MTSIdx(ctxIdx));
2363
    
2364
0
    if( symbol )
2365
0
    {
2366
0
      ctxIdx = 1;
2367
0
      for( int i = 0; i < 3; i++, ctxIdx++ )
2368
0
      {
2369
0
        symbol = mtsIdx > i + MTS_DST7_DST7 ? 1 : 0;
2370
0
        m_BinEncoder.encodeBin( symbol, Ctx::MTSIdx(ctxIdx));
2371
        
2372
0
        if( !symbol )
2373
0
        {
2374
0
          break;
2375
0
        }
2376
0
      }
2377
0
    }
2378
0
  }
2379
187k
  DTRACE( g_trace_ctx, D_SYNTAX, "mts_idx() etype=%d pos=(%d,%d) mtsIdx=%d\n", COMP_Y, tu.cu->lx(), tu.cu->ly(), mtsIdx);
2380
187k
}
2381
2382
2383
void CABACWriter::isp_mode( const CodingUnit& cu )
2384
906k
{
2385
906k
  if( !CU::isIntra( cu ) || !isLuma( cu.chType ) || cu.multiRefIdx || !cu.cs->sps->ISP || cu.bdpcmM[CH_L] || !CU::canUseISP( cu, getFirstComponentOfChannel( cu.chType ) )  || cu.colorTransform)
2386
165k
  {
2387
165k
    CHECK( cu.ispMode != NOT_INTRA_SUBPARTITIONS, "cu.ispMode != 0" );
2388
165k
    return;
2389
165k
  }
2390
741k
  if ( cu.ispMode == NOT_INTRA_SUBPARTITIONS )
2391
731k
  {
2392
731k
    m_BinEncoder.encodeBin( 0, Ctx::ISPMode( 0 ) );
2393
731k
  }
2394
10.3k
  else
2395
10.3k
  {
2396
10.3k
    m_BinEncoder.encodeBin( 1, Ctx::ISPMode( 0 ) );
2397
10.3k
    m_BinEncoder.encodeBin( cu.ispMode - 1, Ctx::ISPMode( 1 ) );
2398
10.3k
  }
2399
741k
  DTRACE( g_trace_ctx, D_SYNTAX, "intra_subPartitions() etype=%d pos=(%d,%d) ispIdx=%d\n", cu.chType, cu.blocks[cu.chType].x, cu.blocks[cu.chType].y, (int)cu.ispMode );
2400
741k
}
2401
2402
2403
void CABACWriter::residual_lfnst_mode( const CodingUnit& cu, CUCtx& cuCtx )
2404
272k
{
2405
272k
  int chIdx = CS::isDualITree( *cu.cs ) && cu.chType == CH_C ? 1 : 0;
2406
272k
  if( ( cu.ispMode && !CU::canUseLfnstWithISP( cu, cu.chType ) ) ||
2407
272k
      (cu.cs->sps->LFNST && CU::isIntra(cu) && cu.mipFlag && !allowLfnstWithMip(cu.lumaSize())) ||
2408
269k
    ( CU::isSepTree(cu) && cu.chType == CH_C && std::min( cu.blocks[ 1 ].width, cu.blocks[ 1 ].height ) < 4 )
2409
267k
    || ( cu.blocks[ chIdx ].lumaSize().width > cu.cs->sps->getMaxTbSize() || cu.blocks[ chIdx ].lumaSize().height > cu.cs->sps->getMaxTbSize() )
2410
272k
    )
2411
4.91k
  {
2412
4.91k
    return;
2413
4.91k
  }
2414
2415
267k
  if( cu.cs->sps->LFNST && CU::isIntra( cu )  )
2416
267k
  {
2417
267k
    const bool lumaFlag                   = CU::isSepTree(cu) ? (   isLuma( cu.chType ) ? true : false ) : true;
2418
267k
    const bool chromaFlag                 = CU::isSepTree(cu) ? ( isChroma( cu.chType ) ? true : false ) : true;
2419
267k
          bool nonZeroCoeffNonTsCorner8x8 = ( lumaFlag && cuCtx.violatesLfnstConstrained[CH_L] ) || (chromaFlag && cuCtx.violatesLfnstConstrained[CH_C] );
2420
2421
267k
    bool isTrSkip = false;
2422
2423
267k
    for( const auto& currTU : cTUTraverser( cu.firstTU, cu.lastTU->next ) )
2424
272k
    {
2425
272k
      const uint32_t numValidComp = getNumberValidComponents(cu.chromaFormat);
2426
1.09M
      for (uint32_t compID = COMP_Y; compID < numValidComp; compID++)
2427
817k
      {
2428
817k
        if (currTU.blocks[compID].valid() && TU::getCbf(currTU, (ComponentID)compID) && currTU.mtsIdx[compID] == MTS_SKIP)
2429
63
        {
2430
63
          isTrSkip = true;
2431
63
          break;
2432
63
        }
2433
817k
      }
2434
272k
    }
2435
2436
267k
    if( (!cuCtx.lfnstLastScanPos && !cu.ispMode) || nonZeroCoeffNonTsCorner8x8 || isTrSkip )
2437
251k
    {
2438
251k
      return;
2439
251k
    }
2440
267k
  }
2441
122
  else
2442
122
  {
2443
122
    return;
2444
122
  }
2445
  
2446
15.8k
  unsigned cctx = 0;
2447
15.8k
  if ( CU::isSepTree(cu) ) cctx++;
2448
2449
15.8k
  const uint32_t idxLFNST = cu.lfnstIdx;
2450
15.8k
  assert( idxLFNST < 3 );
2451
15.8k
  m_BinEncoder.encodeBin( idxLFNST ? 1 : 0, Ctx::LFNSTIdx( cctx ) );
2452
2453
15.8k
  if( idxLFNST )
2454
15.4k
  {
2455
15.4k
    m_BinEncoder.encodeBin( (idxLFNST - 1) ? 1 : 0, Ctx::LFNSTIdx(2));
2456
15.4k
  }
2457
2458
15.8k
  DTRACE( g_trace_ctx, D_SYNTAX, "residual_lfnst_mode() etype=%d pos=(%d,%d) mode=%d\n", COMP_Y, cu.lx(), cu.ly(), ( int ) cu.lfnstIdx );
2459
15.8k
}
2460
2461
2462
void CABACWriter::last_sig_coeff( CoeffCodingContext& cctx, const TransformUnit& tu, ComponentID compID )
2463
890k
{
2464
890k
  unsigned blkPos = cctx.blockPos( cctx.scanPosLast() );
2465
890k
  unsigned posX, posY;
2466
890k
  {
2467
890k
    posY  = blkPos / cctx.width();
2468
890k
    posX  = blkPos - ( posY * cctx.width() );
2469
890k
  }
2470
2471
890k
  unsigned CtxLast;
2472
890k
  unsigned GroupIdxX = g_uiGroupIdx[ posX ];
2473
890k
  unsigned GroupIdxY = g_uiGroupIdx[ posY ];
2474
2475
890k
  unsigned maxLastPosX = cctx.maxLastPosX();
2476
890k
  unsigned maxLastPosY = cctx.maxLastPosY();
2477
2478
890k
  if( tu.cs->sps->MTS && tu.cu->sbtInfo != 0 && tu.blocks[ compID ].width <= 32 && tu.blocks[ compID ].height <= 32 && compID == COMP_Y )
2479
0
  {
2480
0
    maxLastPosX = ( tu.blocks[compID].width  == 32 ) ? g_uiGroupIdx[ 15 ] : maxLastPosX;
2481
0
    maxLastPosY = ( tu.blocks[compID].height == 32 ) ? g_uiGroupIdx[ 15 ] : maxLastPosY;
2482
0
  }
2483
2484
2.06M
  for( CtxLast = 0; CtxLast < GroupIdxX; CtxLast++ )
2485
1.17M
  {
2486
1.17M
    m_BinEncoder.encodeBin( 1, cctx.lastXCtxId( CtxLast ) );
2487
1.17M
  }
2488
890k
  if( GroupIdxX < maxLastPosX )
2489
851k
  {
2490
851k
    m_BinEncoder.encodeBin( 0, cctx.lastXCtxId( CtxLast ) );
2491
851k
  }
2492
2.13M
  for( CtxLast = 0; CtxLast < GroupIdxY; CtxLast++ )
2493
1.24M
  {
2494
1.24M
    m_BinEncoder.encodeBin( 1, cctx.lastYCtxId( CtxLast ) );
2495
1.24M
  }
2496
890k
  if( GroupIdxY < maxLastPosY )
2497
844k
  {
2498
844k
    m_BinEncoder.encodeBin( 0, cctx.lastYCtxId( CtxLast ) );
2499
844k
  }
2500
890k
  if( GroupIdxX > 3 )
2501
2.95k
  {
2502
2.95k
    posX -= g_uiMinInGroup[ GroupIdxX ];
2503
8.52k
    for (int i = ( ( GroupIdxX - 2 ) >> 1 ) - 1 ; i >= 0; i-- )
2504
5.57k
    {
2505
5.57k
      m_BinEncoder.encodeBinEP( ( posX >> i ) & 1 );
2506
5.57k
    }
2507
2.95k
  }
2508
890k
  if( GroupIdxY > 3 )
2509
2.26k
  {
2510
2.26k
    posY -= g_uiMinInGroup[ GroupIdxY ];
2511
6.09k
    for ( int i = ( ( GroupIdxY - 2 ) >> 1 ) - 1 ; i >= 0; i-- )
2512
3.83k
    {
2513
3.83k
      m_BinEncoder.encodeBinEP( ( posY >> i ) & 1 );
2514
3.83k
    }
2515
2.26k
  }
2516
890k
}
2517
2518
2519
void CABACWriter::residual_coding_subblock( CoeffCodingContext& cctx, const TCoeffSig* coeff, const int stateTransTable, int& state )
2520
916k
{
2521
  //===== init =====
2522
916k
  const int   minSubPos   = cctx.minSubPos();
2523
916k
  const bool  isLast      = cctx.isLast();
2524
916k
  int         firstSigPos = ( isLast ? cctx.scanPosLast() : cctx.maxSubPos() );
2525
916k
  int         nextSigPos  = firstSigPos;
2526
2527
  //===== encode significant_coeffgroup_flag =====
2528
916k
  if( !isLast && cctx.isNotFirst() )
2529
22.2k
  {
2530
22.2k
    if( cctx.isSigGroup() )
2531
13.7k
    {
2532
13.7k
      m_BinEncoder.encodeBin( 1, cctx.sigGroupCtxId() );
2533
13.7k
    }
2534
8.49k
    else
2535
8.49k
    {
2536
8.49k
      m_BinEncoder.encodeBin( 0, cctx.sigGroupCtxId() );
2537
8.49k
      return;
2538
8.49k
    }
2539
22.2k
  }
2540
2541
  //===== encode absolute values =====
2542
908k
  const int inferSigPos   = nextSigPos != cctx.scanPosLast() ? ( cctx.isNotFirst() ? minSubPos : -1 ) : nextSigPos;
2543
908k
  int       firstNZPos    = nextSigPos;
2544
908k
  int       lastNZPos     = -1;
2545
908k
  int       remAbsLevel   = -1;
2546
908k
  int       numNonZero    =  0;
2547
908k
  unsigned  signPattern   =  0;
2548
908k
  int       remRegBins    = cctx.remRegBins;
2549
908k
  int       firstPosMode2 = minSubPos - 1;
2550
2551
8.11M
  for( ; nextSigPos >= minSubPos && remRegBins >= 4; nextSigPos-- )
2552
7.21M
  {
2553
7.21M
    const int blkPos     = cctx.blockPos( nextSigPos );
2554
7.21M
    TCoeff    Coeff      = coeff[ blkPos ];
2555
7.21M
    unsigned  sigFlag    = ( Coeff != 0 );
2556
7.21M
    if( numNonZero || nextSigPos != inferSigPos )
2557
6.32M
    {
2558
6.32M
      const unsigned sigCtxId = cctx.sigCtxIdAbsWithAcc( nextSigPos, state );
2559
6.32M
      m_BinEncoder.encodeBin( sigFlag, sigCtxId );
2560
6.32M
      DTRACE( g_trace_ctx, D_SYNTAX_RESI, "sig_bin() bin=%d ctx=%d\n", sigFlag, sigCtxId );
2561
6.32M
      remRegBins--;
2562
6.32M
    }
2563
890k
    else if( nextSigPos != cctx.scanPosLast() )
2564
50
    {
2565
50
      cctx.sigCtxIdAbsWithAcc( nextSigPos, state ); // required for setting variables that are needed for gtx/par context selection
2566
50
    }
2567
2568
7.21M
    if( sigFlag )
2569
6.65M
    {
2570
6.65M
      uint8_t ctxOff = cctx.ctxOffsetAbs();
2571
6.65M
      numNonZero++;
2572
6.65M
      firstNZPos  = nextSigPos;
2573
6.65M
      lastNZPos   = std::max<int>( lastNZPos, nextSigPos );
2574
6.65M
      int absLevel= abs( Coeff );
2575
6.65M
      remAbsLevel = absLevel - 1;
2576
2577
6.65M
      if( nextSigPos != cctx.scanPosLast() ) signPattern <<= 1;
2578
6.65M
      if( Coeff < 0 )                        signPattern++;
2579
2580
6.65M
      unsigned gt1 = !!remAbsLevel;
2581
6.65M
      m_BinEncoder.encodeBin( gt1, cctx.greater1CtxIdAbs(ctxOff) );
2582
6.65M
      DTRACE( g_trace_ctx, D_SYNTAX_RESI, "gt1_flag() bin=%d ctx=%d\n", gt1, cctx.greater1CtxIdAbs(ctxOff) );
2583
6.65M
      remRegBins--;
2584
2585
6.65M
      if( gt1 )
2586
5.76M
      {
2587
5.76M
        remAbsLevel  -= 1;
2588
5.76M
        m_BinEncoder.encodeBin( remAbsLevel&1, cctx.parityCtxIdAbs( ctxOff ) );
2589
5.76M
        DTRACE( g_trace_ctx, D_SYNTAX_RESI, "par_flag() bin=%d ctx=%d\n", remAbsLevel&1, cctx.parityCtxIdAbs( ctxOff ) );
2590
5.76M
        remAbsLevel >>= 1;
2591
2592
5.76M
        remRegBins--;
2593
5.76M
        unsigned gt2 = !!remAbsLevel;
2594
5.76M
        m_BinEncoder.encodeBin(gt2, cctx.greater2CtxIdAbs(ctxOff));
2595
5.76M
        DTRACE(g_trace_ctx, D_SYNTAX_RESI, "gt2_flag() bin=%d ctx=%d\n", gt2, cctx.greater2CtxIdAbs(ctxOff));
2596
5.76M
        remRegBins--;
2597
5.76M
      }
2598
2599
6.65M
      cctx.absVal1stPass( nextSigPos, std::min<TCoeff>( 4 + ( absLevel & 1 ), absLevel ) );
2600
6.65M
    }
2601
2602
7.21M
    state = ( stateTransTable >> ((state<<2)+((Coeff&1)<<1)) ) & 3;
2603
7.21M
  }
2604
908k
  firstPosMode2 = nextSigPos;
2605
908k
  cctx.remRegBins = remRegBins;
2606
2607
2608
  //===== 2nd PASS: Go-rice codes =====
2609
8.11M
  for( int scanPos = firstSigPos; scanPos > firstPosMode2; scanPos-- )
2610
7.21M
  {
2611
7.21M
    unsigned absLevel = abs( coeff[cctx.blockPos( scanPos )] );
2612
2613
7.21M
    if( absLevel >= 4 )
2614
4.60M
    {
2615
4.60M
      int      sumAll   = cctx.templateAbsSum( scanPos, coeff, 4 );
2616
4.60M
      unsigned ricePar  = g_auiGoRiceParsCoeff[sumAll];
2617
4.60M
      unsigned rem      = ( absLevel - 4 ) >> 1;
2618
4.60M
      m_BinEncoder.encodeRemAbsEP( rem, ricePar, COEF_REMAIN_BIN_REDUCTION, cctx.maxLog2TrDRange() );
2619
4.60M
      DTRACE( g_trace_ctx, D_SYNTAX_RESI, "rem_val() bin=%d ctx=%d\n", rem, ricePar );
2620
4.60M
    }
2621
7.21M
  }
2622
2623
  //===== coeff bypass ====
2624
1.01M
  for( int scanPos = firstPosMode2; scanPos >= minSubPos; scanPos-- )
2625
105k
  {
2626
105k
    TCoeff    Coeff     = coeff[ cctx.blockPos( scanPos ) ];
2627
105k
    unsigned  absLevel  = abs( Coeff );
2628
105k
    int       sumAll    = cctx.templateAbsSum(scanPos, coeff, 0);
2629
105k
    int       rice      = g_auiGoRiceParsCoeff[sumAll];
2630
105k
    int       pos0      = g_auiGoRicePosCoeff0(state, rice);
2631
105k
    unsigned  rem       = ( absLevel == 0 ? pos0 : absLevel <= pos0 ? absLevel-1 : absLevel );
2632
105k
    m_BinEncoder.encodeRemAbsEP( rem, rice, COEF_REMAIN_BIN_REDUCTION, cctx.maxLog2TrDRange() );
2633
105k
    DTRACE( g_trace_ctx, D_SYNTAX_RESI, "rem_val() bin=%d ctx=%d\n", rem, rice );
2634
105k
    state = ( stateTransTable >> ((state<<2)+((absLevel&1)<<1)) ) & 3;
2635
105k
    if( absLevel )
2636
105k
    {
2637
105k
      numNonZero++;
2638
105k
      firstNZPos = scanPos;
2639
105k
      lastNZPos   = std::max<int>( lastNZPos, scanPos );
2640
105k
      signPattern <<= 1;
2641
105k
      if( Coeff < 0 ) signPattern++;
2642
105k
    }
2643
105k
  }
2644
2645
  //===== encode sign's =====
2646
908k
  unsigned numSigns = numNonZero;
2647
908k
  if( cctx.hideSign( firstNZPos, lastNZPos ) )
2648
0
  {
2649
0
    numSigns    --;
2650
0
    signPattern >>= 1;
2651
0
  }
2652
908k
  m_BinEncoder.encodeBinsEP( signPattern, numSigns );
2653
908k
}
2654
2655
2656
void CABACWriter::residual_codingTS( const TransformUnit& tu, ComponentID compID )
2657
66.9k
{
2658
66.9k
  DTRACE( g_trace_ctx, D_SYNTAX, "residual_codingTS() etype=%d pos=(%d,%d) size=%dx%d\n", tu.blocks[compID].compID, tu.blocks[compID].x, tu.blocks[compID].y, tu.blocks[compID].width, tu.blocks[compID].height );
2659
2660
  // init coeff coding context
2661
66.9k
  CoeffCodingContext  cctx    ( tu, compID, false, tu.cu->bdpcmM[toChannelType(compID)] );
2662
66.9k
  const TCoeffSig*    coeff   = tu.getCoeffs( compID ).buf;
2663
66.9k
  int maxCtxBins = (cctx.maxNumCoeff() * 7) >> 2;
2664
66.9k
  cctx.remRegBins = maxCtxBins;
2665
2666
  // determine and set last coeff position and sig group flags
2667
66.9k
  std::bitset<MLS_GRP_NUM> sigGroupFlags;
2668
6.14M
  for( int scanPos = 0; scanPos < cctx.maxNumCoeff(); scanPos++)
2669
6.07M
  {
2670
6.07M
    unsigned blkPos = cctx.blockPos( scanPos );
2671
6.07M
    if( coeff[blkPos] )
2672
656k
    {
2673
656k
      sigGroupFlags.set( scanPos >> cctx.log2CGSize() );
2674
656k
    }
2675
6.07M
  }
2676
2677
  // code subblocks
2678
446k
  for( int subSetId = 0; subSetId <= ( cctx.maxNumCoeff() - 1 ) >> cctx.log2CGSize(); subSetId++ )
2679
379k
  {
2680
379k
    cctx.initSubblock         ( subSetId, sigGroupFlags[subSetId] );
2681
379k
    residual_coding_subblockTS( cctx, coeff );
2682
379k
  }
2683
66.9k
}
2684
2685
2686
void CABACWriter::residual_coding_subblockTS( CoeffCodingContext& cctx, const TCoeffSig* coeff )
2687
379k
{
2688
  //===== init =====
2689
379k
  const int   minSubPos   = cctx.maxSubPos();
2690
379k
  int         firstSigPos = cctx.minSubPos();
2691
379k
  int         nextSigPos  = firstSigPos;
2692
2693
  //===== encode significant_coeffgroup_flag =====
2694
379k
  if( !cctx.isLastSubSet() || !cctx.only1stSigGroup() )
2695
369k
  {
2696
369k
    if( cctx.isSigGroup() )
2697
144k
    {
2698
144k
        m_BinEncoder.encodeBin( 1, cctx.sigGroupCtxId( true ) );
2699
144k
        DTRACE( g_trace_ctx, D_SYNTAX_RESI, "ts_sigGroup() bin=%d ctx=%d\n", 1, cctx.sigGroupCtxId() );
2700
144k
    }
2701
225k
    else
2702
225k
    {
2703
225k
        m_BinEncoder.encodeBin( 0, cctx.sigGroupCtxId( true ) );
2704
225k
        DTRACE( g_trace_ctx, D_SYNTAX_RESI, "ts_sigGroup() bin=%d ctx=%d\n", 0, cctx.sigGroupCtxId() );
2705
225k
      return;
2706
225k
    }
2707
369k
  }
2708
2709
  //===== encode absolute values =====
2710
154k
  const int inferSigPos   = minSubPos;
2711
154k
  int       remAbsLevel   = -1;
2712
154k
  int       numNonZero    =  0;
2713
2714
154k
  int rightPixel, belowPixel, modAbsCoeff;
2715
2716
154k
  int lastScanPosPass1 = -1;
2717
154k
  int lastScanPosPass2 = -1;
2718
2.41M
  for (; nextSigPos <= minSubPos && cctx.remRegBins >= 4; nextSigPos++)
2719
2.25M
  {
2720
2.25M
    TCoeff    Coeff      = coeff[ cctx.blockPos( nextSigPos ) ];
2721
2.25M
    unsigned  sigFlag    = ( Coeff != 0 );
2722
2.25M
    if( numNonZero || nextSigPos != inferSigPos )
2723
2.25M
    {
2724
2.25M
      const unsigned sigCtxId = cctx.sigCtxIdAbsTS( nextSigPos, coeff );
2725
2.25M
      m_BinEncoder.encodeBin( sigFlag, sigCtxId );
2726
2.25M
      DTRACE( g_trace_ctx, D_SYNTAX_RESI, "ts_sig_bin() bin=%d ctx=%d\n", sigFlag, sigCtxId );
2727
2.25M
      cctx.remRegBins--;
2728
2.25M
    }
2729
2730
2.25M
    if( sigFlag )
2731
607k
    {
2732
      //===== encode sign's =====
2733
607k
      int sign = Coeff < 0;
2734
607k
      const unsigned signCtxId = cctx.signCtxIdAbsTS(nextSigPos, coeff, cctx.bdpcm());
2735
607k
      m_BinEncoder.encodeBin(sign, signCtxId);
2736
607k
      cctx.remRegBins--;
2737
607k
      numNonZero++;
2738
607k
      cctx.neighTS(rightPixel, belowPixel, nextSigPos, coeff);
2739
607k
      modAbsCoeff = cctx.deriveModCoeff(rightPixel, belowPixel, abs(Coeff), cctx.bdpcm());
2740
607k
      remAbsLevel = modAbsCoeff - 1;
2741
2742
607k
      unsigned gt1 = !!remAbsLevel;
2743
607k
      const unsigned gt1CtxId = cctx.lrg1CtxIdAbsTS(nextSigPos, coeff, cctx.bdpcm());
2744
607k
      m_BinEncoder.encodeBin(gt1, gt1CtxId);
2745
607k
      DTRACE(g_trace_ctx, D_SYNTAX_RESI, "ts_gt1_flag() bin=%d ctx=%d\n", gt1, gt1CtxId);
2746
607k
      cctx.remRegBins--;
2747
2748
607k
      if( gt1 )
2749
596k
      {
2750
596k
        remAbsLevel  -= 1;
2751
596k
        m_BinEncoder.encodeBin( remAbsLevel&1, cctx.parityCtxIdAbsTS() );
2752
596k
        DTRACE( g_trace_ctx, D_SYNTAX_RESI, "ts_par_flag() bin=%d ctx=%d\n", remAbsLevel&1, cctx.parityCtxIdAbsTS() );
2753
596k
        cctx.remRegBins--;
2754
596k
      }
2755
607k
    }
2756
2.25M
    lastScanPosPass1 = nextSigPos;
2757
2.25M
  }
2758
2759
154k
  int cutoffVal = 2;
2760
154k
  int numGtBins = 4;
2761
2762
2.21M
  for (int scanPos = firstSigPos; scanPos <= minSubPos && cctx.remRegBins >= 4; scanPos++)
2763
2.05M
  {
2764
2.05M
    unsigned absLevel;
2765
2.05M
    cctx.neighTS(rightPixel, belowPixel, scanPos, coeff);
2766
2.05M
    absLevel = cctx.deriveModCoeff(rightPixel, belowPixel, abs(coeff[cctx.blockPos(scanPos)]), cctx.bdpcm());
2767
2.05M
    cutoffVal = 2;
2768
10.2M
    for (int i = 0; i < numGtBins; i++)
2769
8.22M
    {
2770
8.22M
      if (absLevel >= cutoffVal)
2771
1.45M
      {
2772
1.45M
        unsigned gt2 = (absLevel >= (cutoffVal + 2));
2773
1.45M
        m_BinEncoder.encodeBin(gt2, cctx.greaterXCtxIdAbsTS(cutoffVal >> 1));
2774
1.45M
        DTRACE(g_trace_ctx, D_SYNTAX_RESI, "ts_gt%d_flag() bin=%d ctx=%d sp=%d coeff=%d\n", i, gt2, cctx.greaterXCtxIdAbsTS(cutoffVal >> 1), scanPos, std::min<int>(absLevel, cutoffVal + 2));
2775
1.45M
        cctx.remRegBins--;
2776
1.45M
      }
2777
8.22M
      cutoffVal += 2;
2778
8.22M
    }
2779
2.05M
    lastScanPosPass2 = scanPos;
2780
2.05M
  }
2781
2782
  //===== coeff bypass ====
2783
2.62M
  for( int scanPos = firstSigPos; scanPos <= minSubPos; scanPos++ )
2784
2.47M
  {
2785
2.47M
    unsigned absLevel;
2786
2.47M
    cctx.neighTS(rightPixel, belowPixel, scanPos, coeff);
2787
2.47M
    cutoffVal = (scanPos <= lastScanPosPass2 ? 10 : (scanPos <= lastScanPosPass1 ? 2 : 0));
2788
2.47M
    absLevel = cctx.deriveModCoeff(rightPixel, belowPixel, abs(coeff[cctx.blockPos(scanPos)]), cctx.bdpcm()||!cutoffVal);
2789
2.47M
    if( absLevel >= cutoffVal )
2790
528k
    {
2791
      //int       rice = cctx.templateAbsSumTS( scanPos, coeff );
2792
528k
      int       rice = 1;
2793
528k
      unsigned  rem = scanPos <= lastScanPosPass1 ? (absLevel - cutoffVal) >> 1 : absLevel;
2794
528k
      m_BinEncoder.encodeRemAbsEP( rem, rice, COEF_REMAIN_BIN_REDUCTION, cctx.maxLog2TrDRange() );
2795
528k
      DTRACE( g_trace_ctx, D_SYNTAX_RESI, "ts_rem_val() bin=%d ctx=%d sp=%d\n", rem, rice, scanPos );
2796
2797
528k
      if (absLevel && scanPos > lastScanPosPass1)
2798
48.9k
      {
2799
48.9k
        int sign = coeff[cctx.blockPos(scanPos)] < 0;
2800
48.9k
        m_BinEncoder.encodeBinEP(sign);
2801
48.9k
      }
2802
528k
    }
2803
2.47M
  }
2804
154k
}
2805
2806
2807
//================================================================================
2808
//  helper functions
2809
//--------------------------------------------------------------------------------
2810
//    void  unary_max_symbol  ( symbol, ctxId0, ctxIdN, maxSymbol )
2811
//    void  unary_max_eqprob  ( symbol,                 maxSymbol )
2812
//    void  exp_golomb_eqprob ( symbol, count )
2813
//================================================================================
2814
2815
void CABACWriter::unary_max_symbol( unsigned symbol, unsigned ctxId0, unsigned ctxIdN, unsigned maxSymbol )
2816
3.63k
{
2817
3.63k
  CHECK( symbol > maxSymbol, "symbol > maxSymbol" );
2818
3.63k
  const unsigned totalBinsToWrite = std::min( symbol + 1, maxSymbol );
2819
7.27k
  for( unsigned binsWritten = 0; binsWritten < totalBinsToWrite; ++binsWritten )
2820
3.63k
  {
2821
3.63k
    const unsigned nextBin = symbol > binsWritten;
2822
3.63k
    m_BinEncoder.encodeBin( nextBin, binsWritten == 0 ? ctxId0 : ctxIdN );
2823
3.63k
  }
2824
3.63k
}
2825
2826
2827
void CABACWriter::unary_max_eqprob( unsigned symbol, unsigned maxSymbol )
2828
226k
{
2829
226k
  if( maxSymbol == 0 )
2830
0
  {
2831
0
    return;
2832
0
  }
2833
226k
  bool     codeLast = ( maxSymbol > symbol );
2834
226k
  unsigned bins     = 0;
2835
226k
  unsigned numBins  = 0;
2836
226k
  while( symbol-- )
2837
360
  {
2838
360
    bins   <<= 1;
2839
360
    bins   ++;
2840
360
    numBins++;
2841
360
  }
2842
226k
  if( codeLast )
2843
226k
  {
2844
226k
    bins  <<= 1;
2845
226k
    numBins++;
2846
226k
  }
2847
226k
  CHECK(!( numBins <= 32 ), "Unspecified error");
2848
226k
  m_BinEncoder.encodeBinsEP( bins, numBins );
2849
226k
}
2850
2851
2852
void CABACWriter::exp_golomb_eqprob( unsigned symbol, unsigned count )
2853
0
{
2854
0
  unsigned bins    = 0;
2855
0
  unsigned numBins = 0;
2856
0
  while( symbol >= (unsigned)(1<<count) )
2857
0
  {
2858
0
    bins <<= 1;
2859
0
    bins++;
2860
0
    numBins++;
2861
0
    symbol -= 1 << count;
2862
0
    count++;
2863
0
  }
2864
0
  bins <<= 1;
2865
0
  numBins++;
2866
0
  bins = (bins << count) | symbol;
2867
0
  numBins += count;
2868
0
  CHECK(!( numBins <= 32 ), "Unspecified error");
2869
0
  m_BinEncoder.encodeBinsEP( bins, numBins );
2870
0
}
2871
2872
2873
void CABACWriter::codeAlfCtuEnabled( CodingStructure& cs, ChannelType channel, AlfParam* alfParam, const int numCtus )
2874
14.9k
{
2875
14.9k
  if( isLuma( channel ) )
2876
2.41k
  {
2877
2.41k
    if (alfParam->alfEnabled[COMP_Y])
2878
2.41k
      codeAlfCtuEnabled( cs, COMP_Y, alfParam, numCtus );
2879
2.41k
  }
2880
12.4k
  else
2881
12.4k
  {
2882
12.4k
    if (alfParam->alfEnabled[COMP_Cb])
2883
12.4k
      codeAlfCtuEnabled( cs, COMP_Cb, alfParam, numCtus );
2884
12.4k
    if (alfParam->alfEnabled[COMP_Cr])
2885
12.4k
      codeAlfCtuEnabled( cs, COMP_Cr, alfParam, numCtus );
2886
12.4k
  }
2887
14.9k
}
2888
2889
2890
void CABACWriter::codeAlfCtuEnabled( CodingStructure& cs, ComponentID compID, AlfParam* alfParam, const int numCtus )
2891
27.3k
{
2892
133k
  for( int ctuIdx = 0; ctuIdx < numCtus; ctuIdx++ )
2893
106k
  {
2894
106k
    codeAlfCtuEnabledFlag( cs, ctuIdx, compID );
2895
106k
  }
2896
27.3k
}
2897
2898
2899
void CABACWriter::codeAlfCtuEnabledFlag( CodingStructure& cs, uint32_t ctuRsAddr, const int compIdx)
2900
382k
{
2901
382k
  CHECKD( !cs.sps->alfEnabled, "ALF is disabled in SPS" ); 
2902
2903
382k
  const PreCalcValues& pcv = *cs.pcv;
2904
382k
  int                 frame_width_in_ctus = pcv.widthInCtus;
2905
382k
  int                 ry = ctuRsAddr / frame_width_in_ctus;
2906
382k
  int                 rx = ctuRsAddr - ry * frame_width_in_ctus;
2907
382k
  const Position      pos( rx * cs.pcv->maxCUSize, ry * cs.pcv->maxCUSize );
2908
382k
  const uint32_t      curSliceIdx = cs.slice->independentSliceIdx;
2909
382k
  const uint32_t      curTileIdx  = cs.pps->getTileIdx( pos );
2910
382k
  bool                leftAvail   = cs.getCURestricted( pos.offset( -(int)pcv.maxCUSize, 0 ), pos, curSliceIdx, curTileIdx, CH_L, TREE_D ) ? true : false;
2911
382k
  bool                aboveAvail  = cs.getCURestricted( pos.offset( 0, -(int)pcv.maxCUSize ), pos, curSliceIdx, curTileIdx, CH_L, TREE_D ) ? true : false;
2912
2913
382k
  int leftCTUAddr = leftAvail ? ctuRsAddr - 1 : -1;
2914
382k
  int aboveCTUAddr = aboveAvail ? ctuRsAddr - frame_width_in_ctus : -1;
2915
2916
382k
  const uint8_t* ctbAlfFlag = cs.slice->pic->m_alfCtuEnabled[ compIdx ].data();
2917
382k
  int ctx = 0;
2918
382k
  ctx += leftCTUAddr > -1 ? ( ctbAlfFlag[leftCTUAddr] ? 1 : 0 ) : 0;
2919
382k
  ctx += aboveCTUAddr > -1 ? ( ctbAlfFlag[aboveCTUAddr] ? 1 : 0 ) : 0;
2920
382k
  m_BinEncoder.encodeBin( ctbAlfFlag[ctuRsAddr], Ctx::ctbAlfFlag( compIdx * 3 + ctx ) );
2921
382k
}
2922
2923
2924
void CABACWriter::codeCcAlfFilterControlIdc(uint8_t idcVal, CodingStructure &cs, const ComponentID compID,
2925
                                            const int curIdx, const uint8_t *filterControlIdc, Position lumaPos,
2926
                                            const int filterCount)
2927
0
{
2928
0
  CHECK(idcVal > filterCount, "Filter index is too large");
2929
2930
0
  const uint32_t curSliceIdx    = cs.slice->independentSliceIdx;
2931
0
  const uint32_t curTileIdx     = cs.pps->getTileIdx( lumaPos );
2932
0
  Position       leftLumaPos    = lumaPos.offset(-(int)cs.pcv->maxCUSize, 0);
2933
0
  Position       aboveLumaPos   = lumaPos.offset(0, -(int)cs.pcv->maxCUSize);
2934
0
  bool           leftAvail      = cs.getCURestricted( leftLumaPos,  lumaPos, curSliceIdx, curTileIdx, CH_L, TREE_D ) ? true : false;
2935
0
  bool           aboveAvail     = cs.getCURestricted( aboveLumaPos, lumaPos, curSliceIdx, curTileIdx, CH_L, TREE_D ) ? true : false;
2936
0
  int            ctxt           = 0;
2937
2938
0
  if (leftAvail)
2939
0
  {
2940
0
    ctxt += ( filterControlIdc[curIdx - 1]) ? 1 : 0;
2941
0
  }
2942
0
  if (aboveAvail)
2943
0
  {
2944
0
    ctxt += (filterControlIdc[curIdx - cs.pcv->widthInCtus]) ? 1 : 0;
2945
0
  }
2946
0
  ctxt += ( compID == COMP_Cr ) ? 3 : 0;
2947
2948
0
  m_BinEncoder.encodeBin( ( idcVal == 0 ) ? 0 : 1, Ctx::CcAlfFilterControlFlag( ctxt ) ); // ON/OFF flag is context coded
2949
0
  if ( idcVal > 0 )
2950
0
  {
2951
0
    int val = (idcVal - 1);
2952
0
    while ( val )
2953
0
    {
2954
0
      m_BinEncoder.encodeBinEP( 1 );
2955
0
      val--;
2956
0
    }
2957
0
    if ( idcVal < filterCount )
2958
0
    {
2959
0
      m_BinEncoder.encodeBinEP( 0 );
2960
0
    }
2961
0
  }
2962
0
  DTRACE( g_trace_ctx, D_SYNTAX, "ccAlfFilterControlIdc() compID=%d pos=(%d,%d) ctxt=%d, filterCount=%d, idcVal=%d\n", compID, lumaPos.x, lumaPos.y, ctxt, filterCount, idcVal );
2963
0
}
2964
2965
2966
void CABACWriter::mip_flag( const CodingUnit& cu )
2967
1.18M
{
2968
1.18M
  if( !cu.Y().valid() )
2969
0
  {
2970
0
    return;
2971
0
  }
2972
1.18M
  if( !cu.cs->sps->MIP )
2973
0
  {
2974
0
    return;
2975
0
  }
2976
2977
1.18M
  unsigned ctxId = DeriveCtx::CtxMipFlag( cu );
2978
1.18M
  m_BinEncoder.encodeBin( cu.mipFlag, Ctx::MipFlag( ctxId ) );
2979
1.18M
  DTRACE( g_trace_ctx, D_SYNTAX, "mip_flag() pos=(%d,%d) mode=%d\n", cu.lumaPos().x, cu.lumaPos().y, cu.mipFlag ? 1 : 0 );
2980
1.18M
}
2981
2982
2983
void CABACWriter::mip_pred_modes( const CodingUnit& cu )
2984
1.64k
{
2985
1.64k
  if( !cu.Y().valid() )
2986
0
  {
2987
0
    return;
2988
0
  }
2989
2990
1.64k
  mip_pred_mode( cu );
2991
1.64k
}
2992
2993
2994
void CABACWriter::mip_pred_mode( const CodingUnit& cu )
2995
276k
{
2996
276k
  m_BinEncoder.encodeBinEP( (cu.mipTransposedFlag ? 1 : 0) );
2997
2998
276k
  const int numModes = getNumModesMip( cu.Y() );
2999
276k
  CHECKD( cu.intraDir[CH_L] < 0 || cu.intraDir[CH_L] >= numModes, "Invalid MIP mode" );
3000
276k
  xWriteTruncBinCode( cu.intraDir[CH_L], numModes );
3001
3002
276k
  DTRACE( g_trace_ctx, D_SYNTAX, "mip_pred_mode() pos=(%d,%d) mode=%d transposed=%d\n", cu.lumaPos().x, cu.lumaPos().y, cu.intraDir[CH_L], cu.mipTransposedFlag ? 1 : 0 );
3003
276k
}
3004
3005
3006
void CABACWriter::codeAlfCtuFilterIndex(CodingStructure& cs, uint32_t ctuRsAddr)
3007
75.3k
{
3008
75.3k
  const uint8_t* ctbAlfFlag = cs.slice->pic->m_alfCtuEnabled[ COMP_Y ].data();
3009
75.3k
  if (!ctbAlfFlag[ctuRsAddr])
3010
0
  {
3011
0
    return;
3012
0
  }
3013
3014
75.3k
  const short* alfCtbFilterIndex = cs.slice->pic->m_alfCtbFilterIndex.data();
3015
75.3k
  const unsigned filterSetIdx = alfCtbFilterIndex[ctuRsAddr];
3016
75.3k
  unsigned numAps = cs.slice->numAps;
3017
75.3k
  unsigned numAvailableFiltSets = numAps + NUM_FIXED_FILTER_SETS;
3018
75.3k
  if (numAvailableFiltSets > NUM_FIXED_FILTER_SETS)
3019
15.0k
  {
3020
15.0k
    int useTemporalFilt = (filterSetIdx >= NUM_FIXED_FILTER_SETS) ? 1 : 0;
3021
15.0k
    m_BinEncoder.encodeBin(useTemporalFilt, Ctx::AlfUseTemporalFilt());
3022
15.0k
    if (useTemporalFilt)
3023
15.0k
    {
3024
15.0k
      CHECK((filterSetIdx - NUM_FIXED_FILTER_SETS) >= (numAvailableFiltSets - NUM_FIXED_FILTER_SETS), "temporal non-latest set");
3025
15.0k
      if (numAps > 1)
3026
0
      {
3027
0
        xWriteTruncBinCode(filterSetIdx - NUM_FIXED_FILTER_SETS, numAvailableFiltSets - NUM_FIXED_FILTER_SETS);
3028
0
      }
3029
15.0k
    }
3030
0
    else
3031
0
    {
3032
0
      CHECK(filterSetIdx >= NUM_FIXED_FILTER_SETS, "fixed set larger than temporal");
3033
0
      xWriteTruncBinCode(filterSetIdx, NUM_FIXED_FILTER_SETS);
3034
0
    }
3035
15.0k
  }
3036
60.2k
  else
3037
60.2k
  {
3038
60.2k
    CHECK(filterSetIdx >= NUM_FIXED_FILTER_SETS, "fixed set numavail < num_fixed");
3039
60.2k
    xWriteTruncBinCode(filterSetIdx, NUM_FIXED_FILTER_SETS);
3040
60.2k
  }
3041
75.3k
}
3042
3043
3044
void CABACWriter::codeAlfCtuAlternatives( CodingStructure& cs, ChannelType channel, AlfParam* alfParam, const int numCtus )
3045
14.9k
{
3046
14.9k
  if( isChroma( channel ) )
3047
12.4k
  {
3048
12.4k
    if (alfParam->alfEnabled[COMP_Cb])
3049
12.4k
      codeAlfCtuAlternatives( cs, COMP_Cb, alfParam, numCtus );
3050
12.4k
    if (alfParam->alfEnabled[COMP_Cr])
3051
12.4k
      codeAlfCtuAlternatives( cs, COMP_Cr, alfParam, numCtus );
3052
12.4k
  }
3053
14.9k
}
3054
3055
3056
void CABACWriter::codeAlfCtuAlternatives( CodingStructure& cs, ComponentID compID, AlfParam* alfParam, const int numCtus)
3057
24.9k
{
3058
24.9k
  if( compID == COMP_Y )
3059
0
    return;
3060
24.9k
  const uint8_t* ctbAlfFlag = cs.slice->pic->m_alfCtuEnabled[ compID ].data();
3061
3062
123k
  for( int ctuIdx = 0; ctuIdx < numCtus; ctuIdx++ )
3063
98.7k
  {
3064
98.7k
    if( ctbAlfFlag[ctuIdx] )
3065
98.7k
    {
3066
98.7k
      codeAlfCtuAlternative( cs, ctuIdx, compID, alfParam );
3067
98.7k
    }
3068
98.7k
  }
3069
24.9k
}
3070
3071
3072
void CABACWriter::codeAlfCtuAlternative( CodingStructure& cs, uint32_t ctuRsAddr, const int compIdx, const AlfParam* alfParam)
3073
503k
{
3074
503k
  if( compIdx == COMP_Y )
3075
0
    return;
3076
3077
503k
  {
3078
503k
    const uint8_t* ctbAlfFlag = cs.slice->pic->m_alfCtuEnabled[ compIdx ].data();
3079
3080
503k
    if( ctbAlfFlag[ctuRsAddr] )
3081
503k
    {
3082
503k
      const int numAlts = alfParam->numAlternativesChroma;
3083
503k
      const uint8_t* ctbAlfAlternative = cs.slice->pic->m_alfCtuAlternative[compIdx].data();
3084
503k
      unsigned numOnes = ctbAlfAlternative[ctuRsAddr];
3085
503k
      assert( ctbAlfAlternative[ctuRsAddr] < numAlts );
3086
1.43M
      for( int i = 0; i < numOnes; ++i )
3087
935k
        m_BinEncoder.encodeBin( 1, Ctx::ctbAlfAlternative( compIdx-1 ) );
3088
503k
      if( numOnes < numAlts-1 )
3089
379k
        m_BinEncoder.encodeBin( 0, Ctx::ctbAlfAlternative( compIdx-1 ) );
3090
503k
    }
3091
503k
  }
3092
503k
}
3093
3094
} // namespace vvenc
3095
3096
//! \}
3097