Coverage Report

Created: 2026-07-16 06:32

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/work/vvenc/source/Lib/CommonLib/UnitPartitioner.cpp
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Count
Source
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/* -----------------------------------------------------------------------------
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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
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9
Copyright (c) 2019-2026, Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. & The VVenC Authors.
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All rights reserved.
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Redistribution and use in source and binary forms, with or without modification,
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are permitted (subject to the limitations in the disclaimer below) provided that
14
the following conditions are met:
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16
     * Redistributions of source code must retain the above copyright notice,
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     this list of conditions and the following disclaimer.
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19
     * Redistributions in binary form must reproduce the above copyright
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     notice, this list of conditions and the following disclaimer in the
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     documentation and/or other materials provided with the distribution.
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     * 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.
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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,
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EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
34
PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
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BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER
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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.
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------------------------------------------------------------------------------------------- */
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/** \file     UnitPartitioner.h
45
 *  \brief    Provides a class for partitioning management
46
 */
47
48
#include "UnitPartitioner.h"
49
#include "CodingStructure.h"
50
#include "Unit.h"
51
#include "Slice.h"
52
#include "UnitTools.h"
53
#include "Picture.h"
54
55
//! \ingroup CommonLib
56
//! \{
57
58
namespace vvenc {
59
60
PartLevel::PartLevel()
61
2.22M
: split               ( CU_DONT_SPLIT )
62
, parts               (               )
63
2.22M
, idx                 ( 0u            )
64
2.22M
, checkdIfImplicit    ( false         )
65
2.22M
, isImplicit          ( false         )
66
2.22M
, implicitSplit       ( CU_DONT_SPLIT )
67
2.22M
, firstSubPartSplit   ( CU_DONT_SPLIT )
68
2.22M
, canQtSplit          ( true          )
69
2.22M
, qgEnable            ( true          )
70
2.22M
, qgChromaEnable      ( true          )
71
2.22M
, modeType            ( MODE_TYPE_ALL )
72
2.22M
{
73
2.22M
}
74
75
void PartLevel::init()
76
203k
{
77
203k
  split               = CU_DONT_SPLIT;
78
203k
  idx                 = 0u;
79
203k
  checkdIfImplicit    = false;
80
203k
  isImplicit          = false;
81
203k
  implicitSplit       = CU_DONT_SPLIT;
82
203k
  firstSubPartSplit   = CU_DONT_SPLIT;
83
203k
  canQtSplit          = true;
84
203k
  qgEnable            = true;
85
203k
  qgChromaEnable      = true;
86
203k
  modeType            = MODE_TYPE_ALL;
87
203k
  numParts            = 0;
88
203k
}
89
90
//////////////////////////////////////////////////////////////////////////
91
// Partitioner class
92
//////////////////////////////////////////////////////////////////////////
93
94
SplitSeries Partitioner::getSplitSeries() const
95
134k
{
96
134k
  SplitSeries splitSeries = 0;
97
134k
  SplitSeries depth = 0;
98
99
134k
  for( const auto &level : m_partStack )
100
542k
  {
101
542k
    if( level.split == CTU_LEVEL ) continue;
102
408k
    else splitSeries += static_cast< SplitSeries >( level.split ) << ( depth * SPLIT_DMULT );
103
104
408k
    depth++;
105
408k
  }
106
107
134k
  return splitSeries;
108
134k
}
109
110
ModeTypeSeries Partitioner::getModeTypeSeries() const
111
134k
{
112
134k
  ModeTypeSeries modeTypeSeries = 0;
113
134k
  int depth = 0;
114
115
134k
  for( const auto &level : m_partStack )
116
542k
  {
117
542k
    if( level.split == CTU_LEVEL ) continue;
118
408k
    else modeTypeSeries += static_cast<int>(level.modeType) << (depth * 3);
119
120
408k
    depth++;
121
408k
  }
122
123
134k
  return modeTypeSeries;
124
134k
}
125
126
bool Partitioner::isSepTree( const CodingStructure &cs )
127
742k
{
128
742k
  return treeType != TREE_D || CS::isDualITree( cs );
129
742k
}
130
131
void Partitioner::setCUData( CodingUnit& cu )
132
134k
{
133
134k
  cu.depth       = currDepth;
134
134k
  cu.btDepth     = currBtDepth;
135
134k
  cu.mtDepth     = currMtDepth;
136
134k
  cu.qtDepth     = currQtDepth;
137
134k
  cu.splitSeries = getSplitSeries();
138
134k
  cu.modeTypeSeries = getModeTypeSeries();
139
134k
  cu.treeType    = treeType; 
140
134k
  cu.modeType    = modeType; 
141
142
134k
}
143
144
void Partitioner::copyState( const Partitioner& other )
145
0
{
146
0
  m_partStack = other.m_partStack;
147
0
  currBtDepth = other.currBtDepth;
148
0
  currQtDepth = other.currQtDepth;
149
0
  currDepth   = other.currDepth;
150
0
  currMtDepth = other.currMtDepth;
151
0
  currTrDepth = other.currTrDepth;
152
0
  currSubdiv  = other.currSubdiv;
153
0
  currQgPos   = other.currQgPos;
154
0
  currQgChromaPos = other.currQgChromaPos;
155
0
  currImplicitBtDepth
156
0
              = other.currImplicitBtDepth;
157
0
  chType      = other.chType;
158
0
#ifdef _DEBUG
159
0
  m_currArea  = other.m_currArea;
160
0
#endif
161
0
}
162
163
void Partitioner::setMaxMinDepth( unsigned& minDepth, unsigned& maxDepth, const CodingStructure& cs, int QtbttSpeedUp, bool MergeFlag) const
164
131k
{
165
131k
  unsigned          stdMinDepth = 0;
166
131k
  unsigned          stdMaxDepth = cs.pcv->getMaxDepth( cs.slice->sliceType, chType );
167
131k
  const Position    pos         = currArea().blocks[chType].pos();
168
131k
  const unsigned    curSliceIdx = cs.slice->independentSliceIdx;
169
131k
  const unsigned    curTileIdx  = cs.pps->getTileIdx( currArea().lumaPos() );
170
171
131k
  const CodingUnit* cuLeft        = cs.getCURestricted( pos.offset( -1,                               0 ), pos, curSliceIdx, curTileIdx, chType, treeType );
172
131k
  const CodingUnit* cuBelowLeft   = cs.getCURestricted( pos.offset( -1, currArea().blocks[chType].height), pos, curSliceIdx, curTileIdx, chType, treeType );
173
131k
  const CodingUnit* cuAbove       = cs.getCURestricted( pos.offset(  0,                              -1 ), pos, curSliceIdx, curTileIdx, chType, treeType );
174
131k
  const CodingUnit* cuAboveRight  = cs.getCURestricted( pos.offset( currArea().blocks[chType].width, -1 ), pos, curSliceIdx, curTileIdx, chType, treeType );
175
176
131k
  minDepth = stdMaxDepth;
177
131k
  maxDepth = stdMinDepth;
178
179
131k
  if( cuLeft )
180
76.9k
  {
181
76.9k
    minDepth = std::min<unsigned>( minDepth, cuLeft->qtDepth );
182
76.9k
    maxDepth = std::max<unsigned>( maxDepth, cuLeft->qtDepth );
183
76.9k
  }
184
54.4k
  else
185
54.4k
  {
186
54.4k
    minDepth = stdMinDepth;
187
54.4k
    maxDepth = stdMaxDepth;
188
54.4k
  }
189
190
131k
  if( cuBelowLeft )
191
11.3k
  {
192
11.3k
    minDepth = std::min<unsigned>( minDepth, cuBelowLeft->qtDepth );
193
11.3k
    maxDepth = std::max<unsigned>( maxDepth, cuBelowLeft->qtDepth );
194
11.3k
  }
195
120k
  else
196
120k
  {
197
120k
    minDepth = stdMinDepth;
198
120k
    maxDepth = stdMaxDepth;
199
120k
  }
200
201
131k
  if( cuAbove )
202
79.6k
  {
203
79.6k
    minDepth = std::min<unsigned>( minDepth, cuAbove->qtDepth );
204
79.6k
    maxDepth = std::max<unsigned>( maxDepth, cuAbove->qtDepth );
205
79.6k
  }
206
51.7k
  else
207
51.7k
  {
208
51.7k
    minDepth = stdMinDepth;
209
51.7k
    maxDepth = stdMaxDepth;
210
51.7k
  }
211
212
131k
  if( cuAboveRight )
213
27.4k
  {
214
27.4k
    minDepth = std::min<unsigned>( minDepth, cuAboveRight->qtDepth );
215
27.4k
    maxDepth = std::max<unsigned>( maxDepth, cuAboveRight->qtDepth );
216
27.4k
  }
217
103k
  else
218
103k
  {
219
103k
    minDepth = stdMinDepth;
220
103k
    maxDepth = stdMaxDepth;
221
103k
  }
222
223
131k
  minDepth = ( minDepth >= 1 ? minDepth - 1 : 0 );
224
131k
  maxDepth = std::min<unsigned>( stdMaxDepth, maxDepth + 1 );
225
131k
  if((QtbttSpeedUp >> 2) && (cs.slice->TLayer > 0) && ((cs.area.Y().width >= 8) || (cs.area.Y().height >= 8)))
226
0
  {
227
0
    int minDepthCur = stdMaxDepth;
228
0
    int maxDepthCur = stdMinDepth;
229
0
    int amountN = 0;
230
0
    for (int n = 0; n < 3; n++)
231
0
    {
232
0
      const CodingUnit* cuNeigh = (n==0)?cs.getCURestricted(pos.offset(-1, -1), pos, curSliceIdx, curTileIdx, chType, treeType): (n==1)? cuAbove : cuLeft;
233
0
      if (cuNeigh)
234
0
      {
235
0
        amountN++;
236
0
        minDepthCur = std::min<unsigned>(minDepthCur, cuNeigh->qtDepth);
237
0
        maxDepthCur = std::max<unsigned>(maxDepthCur, cuNeigh->qtDepth);
238
0
      }
239
0
    }
240
0
    if (amountN)
241
0
    {
242
0
      minDepthCur = (minDepthCur >= 1 ? minDepthCur - 1 : 0);
243
0
      maxDepthCur = std::min<unsigned>(stdMaxDepth, maxDepthCur + 1);
244
0
      maxDepth = std::min<unsigned>(maxDepthCur, maxDepth);
245
0
      minDepth = std::max<unsigned>(minDepthCur, minDepth);
246
0
    }
247
0
  }
248
249
131k
  if (!cs.slice->isIntra() && (QtbttSpeedUp & 3))
250
0
  {
251
0
    bool doMin_SCC = !(((QtbttSpeedUp & 3) == 2) && (cs.area.Y().width < cs.pcv->maxCUSize));
252
0
    bool LimitDepths = (QtbttSpeedUp & 2) ? (MergeFlag == 0) : (cs.area.Y().width >= cs.pcv->maxCUSize);
253
0
    if (LimitDepths && cuAbove && cuLeft && (cuLeft->qtDepth == cuAbove->qtDepth))
254
0
    {
255
0
      int minDepthCur = cuAbove->qtDepth;
256
0
      int maxDepthCur = cuAbove->qtDepth;
257
0
      minDepthCur = (minDepthCur > 0) ? (minDepthCur - 1) : 0;
258
0
      maxDepthCur = (maxDepthCur < stdMaxDepth) ? (maxDepthCur + 1) : maxDepthCur;
259
0
      maxDepth = std::min<unsigned>(maxDepthCur, maxDepth);
260
0
      minDepth = std::max<unsigned>(minDepthCur, minDepth);
261
0
    }
262
0
    else if (doMin_SCC && LimitDepths && cuAbove && cuLeft)
263
0
    {
264
0
      int minDepthCur = cuAbove->qtDepth;
265
0
      int maxDepthCur = cuAbove->qtDepth;
266
0
      minDepthCur = (minDepthCur > 0) ? (minDepthCur - 1) : 0;
267
0
      maxDepthCur = (maxDepthCur < stdMaxDepth) ? (maxDepthCur + 1) : maxDepthCur;
268
0
      if ((cuLeft->qtDepth > maxDepthCur) && ((cuLeft->qtDepth - 1) >= maxDepthCur))
269
0
      {
270
0
        minDepthCur += 1;
271
0
        maxDepthCur += 1;
272
0
      }
273
0
      else if ((cuLeft->qtDepth < minDepthCur) && ((cuLeft->qtDepth + 1) <= minDepthCur))
274
0
      {
275
0
        maxDepthCur -= 1;
276
0
        minDepthCur -= 1;
277
0
      }
278
0
      maxDepth = std::min<unsigned>(maxDepthCur, maxDepth);
279
0
      minDepth = std::max<unsigned>(minDepthCur, minDepth);
280
0
    }
281
0
    if ((QtbttSpeedUp & 2) && MergeFlag && (maxDepth == 4) && (cs.area.Y().width <= 16))
282
0
    {
283
0
      maxDepth = 3;
284
0
      minDepth = (minDepth == 3)? 2: minDepth;
285
0
    }
286
0
  }
287
131k
}
288
289
void Partitioner::initCtu( const UnitArea& ctuArea, const ChannelType _chType, const Slice& slice )
290
22.7k
{
291
22.7k
#if _DEBUG
292
22.7k
  m_currArea = ctuArea;
293
22.7k
#endif
294
22.7k
  currDepth   = 0;
295
22.7k
  currTrDepth = 0;
296
22.7k
  currBtDepth = 0;
297
22.7k
  currMtDepth = 0;
298
22.7k
  currQtDepth = 0;
299
22.7k
  currSubdiv  = 0;
300
22.7k
  currQgPos   = ctuArea.lumaPos();
301
22.7k
  currQgChromaPos = ctuArea.chromaFormat != CHROMA_400 ? ctuArea.chromaPos() : Position();
302
22.7k
  currImplicitBtDepth = 0;
303
22.7k
  chType      = _chType;
304
305
22.7k
  const PreCalcValues& pcv = *slice.pps->pcv;
306
  
307
22.7k
  maxBTD      = pcv.getMaxMTTDepth( slice, chType );
308
22.7k
  maxBtSize   = pcv.getMaxBtSize  ( slice, chType );
309
22.7k
  minTSize    = pcv.getMinTSize   ( slice, chType );
310
22.7k
  maxTtSize   = pcv.getMaxTtSize  ( slice, chType );
311
22.7k
  minQtSize   = pcv.getMinQtSize  ( slice, chType );
312
  
313
22.7k
  m_partBufIdx = 1;
314
22.7k
  m_partStack.resize_noinit( 1 );
315
22.7k
  m_partStack.back().init();
316
22.7k
  m_partStack.back().split = CTU_LEVEL;
317
22.7k
  m_partStack.back().parts = m_partBuf;
318
22.7k
  m_partStack.back().parts[0] = ctuArea;
319
22.7k
  m_partStack.back().numParts = 1;
320
321
22.7k
  treeType = TREE_D;
322
22.7k
  modeType = MODE_TYPE_ALL;
323
22.7k
}
324
325
void Partitioner::splitCurrArea( const PartSplit split, const CodingStructure& cs )
326
180k
{
327
180k
  if ((split != TU_1D_HORZ_SPLIT) && (split != TU_1D_VERT_SPLIT))
328
159k
  {
329
159k
    CHECKD(!canSplit(split, cs), "Trying to apply a prohibited split!");
330
159k
  }
331
332
180k
  bool isImplicit = isSplitImplicit( split, cs );
333
180k
  bool canQtSplit = canSplit( CU_QUAD_SPLIT, cs );
334
180k
  bool qgEnable = currQgEnable();
335
180k
  bool qgChromaEnable = currQgChromaEnable();
336
337
180k
  const UnitArea& area = currArea();
338
180k
  m_partStack.resize_noinit( m_partStack.size() + 1 );
339
180k
  PartLevel& back = m_partStack.back();
340
180k
  back.init();
341
180k
  back.split = split;
342
180k
  back.parts = &m_partBuf[m_partBufIdx];
343
180k
  int numParts;
344
345
180k
  CHECK( m_partBufIdx > partBufSize, "Partition buffer overflow" );
346
347
180k
  switch( split )
348
180k
  {
349
52.4k
  case CU_QUAD_SPLIT:
350
52.4k
    numParts = PartitionerImpl::getCUSubPartitions( back.parts, area, cs, split );
351
52.4k
    back.modeType = modeType;
352
52.4k
    break;
353
53.0k
  case CU_HORZ_SPLIT:
354
106k
  case CU_VERT_SPLIT:
355
106k
    numParts = PartitionerImpl::getCUSubPartitions( back.parts, area, cs, split );
356
106k
    back.modeType = modeType;
357
106k
    break;
358
343
  case CU_TRIH_SPLIT:
359
399
  case CU_TRIV_SPLIT:
360
399
    numParts = PartitionerImpl::getCUSubPartitions( back.parts, area, cs, split );
361
399
    back.modeType = modeType;
362
399
    break;
363
0
  case TU_MAX_TR_SPLIT:
364
0
    numParts = PartitionerImpl::getMaxTuTiling( back.parts, area, cs );
365
0
    break;
366
0
  case SBT_VER_HALF_POS0_SPLIT:
367
0
  case SBT_VER_HALF_POS1_SPLIT:
368
0
  case SBT_HOR_HALF_POS0_SPLIT:
369
0
  case SBT_HOR_HALF_POS1_SPLIT:
370
0
  case SBT_VER_QUAD_POS0_SPLIT:
371
0
  case SBT_VER_QUAD_POS1_SPLIT:
372
0
  case SBT_HOR_QUAD_POS0_SPLIT:
373
0
  case SBT_HOR_QUAD_POS1_SPLIT:
374
0
    numParts = PartitionerImpl::getSbtTuTiling( back.parts, area, cs, split );
375
0
    break;
376
10.0k
  case TU_1D_HORZ_SPLIT:
377
20.9k
  case TU_1D_VERT_SPLIT:
378
20.9k
  {
379
20.9k
    numParts = PartitionerImpl::getTUIntraSubPartitions(back.parts, area, cs, split, TREE_D);
380
20.9k
    break;
381
10.0k
  }
382
0
  default:
383
0
    THROW( "Unknown split mode" );
384
0
    break;
385
180k
  }
386
387
180k
  back.numParts = numParts;
388
180k
  m_partBufIdx += numParts;
389
390
180k
  CHECK( m_partBufIdx > partBufSize, "Partition buffer overflow" );
391
392
180k
  currDepth++;
393
180k
  currSubdiv++;
394
180k
#if _DEBUG
395
180k
  m_currArea = m_partStack.back().parts[0];
396
180k
#endif
397
398
180k
  if ((split == TU_MAX_TR_SPLIT) || (split == TU_1D_HORZ_SPLIT) || (split == TU_1D_VERT_SPLIT))
399
20.9k
  {
400
20.9k
    currTrDepth++;
401
20.9k
  }
402
159k
  else if( split >= SBT_VER_HALF_POS0_SPLIT && split <= SBT_HOR_QUAD_POS1_SPLIT )
403
0
  {
404
0
    currTrDepth++;
405
0
  }
406
159k
  else
407
159k
  {
408
159k
    currTrDepth = 0;
409
159k
  }
410
411
180k
  if( split == CU_HORZ_SPLIT || split == CU_VERT_SPLIT || split == CU_TRIH_SPLIT || split == CU_TRIV_SPLIT )
412
107k
  {
413
107k
    currBtDepth++;
414
107k
    if( isImplicit ) currImplicitBtDepth++;
415
107k
    currMtDepth++;
416
417
107k
    if( split == CU_TRIH_SPLIT || split == CU_TRIV_SPLIT )
418
399
    {
419
      // first and last part of triple split are equivalent to double bt split
420
399
      currBtDepth++;
421
399
      currSubdiv++;
422
399
    }
423
107k
    m_partStack.back().canQtSplit = canQtSplit;
424
107k
  }
425
73.4k
  else if( split == CU_QUAD_SPLIT )
426
52.4k
  {
427
52.4k
    CHECK( currBtDepth > 0, "Cannot split a non-square area other than with a binary split" );
428
52.4k
    CHECK( currMtDepth > 0, "Cannot split a non-square area other than with a binary split" );
429
52.4k
    currMtDepth = 0;
430
52.4k
    currBtDepth = 0;
431
52.4k
    currQtDepth++;
432
52.4k
    currSubdiv++;
433
52.4k
  }
434
435
180k
  qgEnable       &= (currSubdiv <= (cs.slice->isIntra() ? cs.slice->picHeader->cuQpDeltaSubdivIntra : cs.slice->picHeader->cuQpDeltaSubdivInter ));
436
180k
  qgChromaEnable &= (currSubdiv <= (cs.slice->isIntra() ? cs.slice->picHeader->cuChromaQpOffsetSubdivIntra : cs.slice->picHeader->cuChromaQpOffsetSubdivInter ));
437
180k
  m_partStack.back().qgEnable       = qgEnable;
438
180k
  m_partStack.back().qgChromaEnable = qgChromaEnable;
439
180k
  if (qgEnable)
440
8.72k
    currQgPos = currArea().lumaPos();
441
180k
  if (qgChromaEnable)
442
0
    currQgChromaPos = currArea().chromaPos();
443
180k
}
444
445
void Partitioner::canSplit( const CodingStructure &cs, bool& canNo, bool& canQt, bool& canBh, bool& canBv, bool& canTh, bool& canTv )
446
2.29M
{
447
2.29M
  const PartSplit implicitSplit = m_partStack.back().checkdIfImplicit ? m_partStack.back().implicitSplit : getImplicitSplit( cs );
448
449
2.29M
  canNo = canQt = canBh = canTh = canBv = canTv = true;
450
2.29M
  bool canBtt = currMtDepth < (maxBTD + currImplicitBtDepth);
451
452
  // the minimal and maximal sizes are given in luma samples
453
2.29M
  const CompArea&  area  = currArea().Y();
454
2.29M
  const CompArea  *areaC = (chType == CH_C) ? &(currArea().Cb()) : nullptr;
455
2.29M
        PartLevel& level = m_partStack.back();
456
457
2.29M
  const PartSplit lastSplit = level.split;
458
2.29M
  const PartSplit parlSplit = lastSplit == CU_TRIH_SPLIT ? CU_HORZ_SPLIT : CU_VERT_SPLIT;
459
460
  // don't allow QT-splitting below a BT split
461
2.29M
  if( lastSplit != CTU_LEVEL && lastSplit != CU_QUAD_SPLIT ) canQt = false;
462
  // minQtSize is in luma samples unit
463
2.29M
  const unsigned minQTThreshold = minQtSize >> ((area.chromaFormat == CHROMA_400) ? 0 : ((int) getChannelTypeScaleX(CH_C, area.chromaFormat) - (int) getChannelTypeScaleY(CH_C, area.chromaFormat)));
464
2.29M
  if( area.width <= minQTThreshold )                         canQt = false;
465
2.29M
  if( areaC && areaC->width <= MIN_DUALTREE_CHROMA_WIDTH ) canQt = false;
466
2.29M
  if( treeType == TREE_C )
467
0
  {
468
0
    canQt = canBh = canTh = canBv = canTv = false;
469
0
    return;
470
0
  }
471
2.29M
  if( implicitSplit != CU_DONT_SPLIT )
472
851k
  {
473
851k
    canNo = canTh = canTv = false;
474
475
851k
    canBh = implicitSplit == CU_HORZ_SPLIT;
476
851k
    canBv = implicitSplit == CU_VERT_SPLIT;
477
851k
    if (areaC && areaC->width == 4) canBv = false;
478
851k
    if( !canBh && !canBv && !canQt ) canQt = true;
479
851k
    return;
480
851k
  }
481
482
1.44M
  if( ( lastSplit == CU_TRIH_SPLIT || lastSplit == CU_TRIV_SPLIT ) && currPartIdx() == 1 )
483
4.41k
  {
484
4.41k
    canBh = parlSplit != CU_HORZ_SPLIT;
485
4.41k
    canBv = parlSplit != CU_VERT_SPLIT;
486
4.41k
  }
487
488
1.44M
  if( canBtt && ( area.width <= minTSize && area.height <= minTSize ) )
489
0
  {
490
0
    canBtt = false;
491
0
  }
492
1.44M
  if( canBtt && ( area.width > maxBtSize || area.height > maxBtSize )
493
97.1k
      && ( ( area.width > maxTtSize || area.height > maxTtSize ) ) )
494
97.1k
  {
495
97.1k
    canBtt = false;
496
97.1k
  }
497
498
1.44M
  if( !canBtt )
499
327k
  {
500
327k
    canBh = canTh = canBv = canTv = false;
501
502
327k
    return;
503
327k
  }
504
505
1.11M
  if( area.width > maxBtSize || area.height > maxBtSize )
506
0
  {
507
0
    canBh = canBv = false;
508
0
  }
509
510
  // specific check for BT splits
511
1.11M
  if( area.height <= minTSize )                            canBh = false;
512
1.11M
  if( area.width > MAX_TB_SIZEY && area.height <= MAX_TB_SIZEY ) canBh = false;
513
1.11M
  if( areaC && areaC->width * areaC->height <= MIN_DUALTREE_CHROMA_SIZE )     canBh = false;
514
1.11M
  if( area.width <= minTSize )                              canBv = false;
515
1.11M
  if( area.width <= MAX_TB_SIZEY && area.height > MAX_TB_SIZEY ) canBv = false;
516
1.11M
  if (areaC && (areaC->width * areaC->height <= MIN_DUALTREE_CHROMA_SIZE || areaC->width == 4))     canBv = false;
517
1.11M
  if( modeType == MODE_TYPE_INTER && area.width * area.height == 32 )  canBv = canBh = false;
518
1.11M
  if( area.height <= 2 * minTSize || area.height > maxTtSize || area.width > maxTtSize )
519
467k
                                                                                       canTh = false;
520
1.11M
  if( area.width > MAX_TB_SIZEY || area.height > MAX_TB_SIZEY )  canTh = false;
521
1.11M
  if( areaC && areaC->width * areaC->height <= MIN_DUALTREE_CHROMA_SIZE*2 )     canTh = false;
522
1.11M
  if( area.width <= 2 * minTSize || area.width > maxTtSize || area.height > maxTtSize )
523
454k
                                                                                       canTv = false;
524
1.11M
  if( area.width > MAX_TB_SIZEY || area.height > MAX_TB_SIZEY )  canTv = false;
525
1.11M
  if (areaC && (areaC->width * areaC->height <= MIN_DUALTREE_CHROMA_SIZE * 2 || areaC->width == 8))     canTv = false;
526
1.11M
  if( modeType == MODE_TYPE_INTER && area.width * area.height == 64 )  canTv = canTh = false;
527
1.11M
}
528
529
bool Partitioner::canSplit( const PartSplit split, const CodingStructure &cs )
530
1.84M
{
531
1.84M
  const CompArea area       = currArea().Y();
532
1.84M
  const unsigned maxTrSize  = cs.sps->getMaxTbSize();
533
534
1.84M
  bool canNo, canQt, canBh, canTh, canBv, canTv;
535
536
1.84M
  canSplit( cs, canNo, canQt, canBh, canBv, canTh, canTv );
537
538
1.84M
  switch( split )
539
1.84M
  {
540
0
  case CTU_LEVEL:
541
0
    THROW( "Checking if top level split is possible" );
542
0
    return true;
543
0
    break;
544
266k
  case TU_MAX_TR_SPLIT:
545
266k
    return area.width > maxTrSize || area.height > maxTrSize;
546
0
    break;
547
0
  case SBT_VER_HALF_POS0_SPLIT:
548
0
  case SBT_VER_HALF_POS1_SPLIT:
549
0
  case SBT_HOR_HALF_POS0_SPLIT:
550
0
  case SBT_HOR_HALF_POS1_SPLIT:
551
0
  case SBT_VER_QUAD_POS0_SPLIT:
552
0
  case SBT_VER_QUAD_POS1_SPLIT:
553
0
  case SBT_HOR_QUAD_POS0_SPLIT:
554
0
  case SBT_HOR_QUAD_POS1_SPLIT:
555
0
    return currTrDepth == 0;
556
0
    break;
557
388k
  case CU_QUAD_SPLIT:
558
388k
    return canQt;
559
79.6k
  case CU_DONT_SPLIT:
560
79.6k
    return canNo;
561
398k
  case CU_HORZ_SPLIT:
562
398k
    return canBh;
563
396k
  case CU_VERT_SPLIT:
564
396k
    return canBv;
565
160k
  case CU_TRIH_SPLIT:
566
160k
    return canTh;
567
154k
  case CU_TRIV_SPLIT:
568
154k
    return canTv;
569
0
  case CU_MT_SPLIT:
570
0
    return ( canBh || canTh || canBv || canTv );
571
0
  case CU_BT_SPLIT:
572
0
    return ( canBh || canBv );
573
0
  break;
574
0
  default:
575
0
    THROW( "Unknown split mode" );
576
0
    return false;
577
0
    break;
578
1.84M
  }
579
580
0
  return true;
581
1.84M
}
582
583
bool Partitioner::canSplitISP(const PartSplit split, const CodingStructure& cs, CodingUnit& cu)
584
0
{
585
  // const PartSplit implicitSplit = getImplicitSplit(cs);
586
0
  const UnitArea& area = currArea();
587
588
0
  switch (split)
589
0
  {
590
0
  case TU_1D_HORZ_SPLIT:
591
0
  {
592
0
    return area.lheight() == cu.lheight();
593
0
  }
594
0
  case TU_1D_VERT_SPLIT:
595
0
  {
596
0
    return area.lwidth() == cu.lwidth();
597
0
  }
598
0
  case TU_MAX_TR_SPLIT:
599
0
  {
600
    // this split is performed implicitly with the other splits
601
0
    return false;
602
0
  }
603
0
  default: THROW("Unknown 1-D split mode"); break;
604
0
  }
605
0
}
606
607
bool Partitioner::isSplitImplicit( const PartSplit split, const CodingStructure &cs )
608
180k
{
609
180k
  return split == getImplicitSplit( cs );
610
180k
}
611
612
PartSplit Partitioner::getImplicitSplit( const CodingStructure &cs )
613
934k
{
614
934k
  if( m_partStack.back().checkdIfImplicit )
615
631k
  {
616
631k
    return m_partStack.back().implicitSplit;
617
631k
  }
618
619
302k
  PartSplit split = CU_DONT_SPLIT;
620
621
302k
  if( split == CU_DONT_SPLIT )
622
302k
  {
623
302k
    const bool isBlInPic = cs.picture->Y().contains( currArea().Y().bottomLeft() );
624
302k
    const bool isTrInPic = cs.picture->Y().contains( currArea().Y().topRight() );
625
626
302k
    const CompArea& area      = currArea().Y();
627
302k
    const bool isBtAllowed    = area.width <= maxBtSize && area.height <= maxBtSize && currMtDepth < (maxBTD + currImplicitBtDepth);
628
    // minQtSize is in luma samples unit
629
302k
    const unsigned minQTThreshold = minQtSize >> ((area.chromaFormat == CHROMA_400) ? 0 : ((int) getChannelTypeScaleX(CH_C, area.chromaFormat) - (int) getChannelTypeScaleY(CH_C, area.chromaFormat)));
630
302k
    const bool isQtAllowed    = area.width > minQTThreshold && currBtDepth == 0;
631
632
302k
    if( !isBlInPic && !isTrInPic && isQtAllowed )
633
20.8k
    {
634
20.8k
      split = CU_QUAD_SPLIT;
635
20.8k
    }
636
282k
    else if( !isBlInPic && isBtAllowed && area.width <= MAX_TB_SIZEY )
637
43.9k
    {
638
43.9k
      split = CU_HORZ_SPLIT;
639
43.9k
    }
640
238k
    else if( !isTrInPic && isBtAllowed && area.height <= MAX_TB_SIZEY )
641
45.8k
    {
642
45.8k
      split = CU_VERT_SPLIT;
643
45.8k
    }
644
192k
    else if( !isBlInPic || !isTrInPic )
645
23.6k
    {
646
23.6k
      split = CU_QUAD_SPLIT;
647
23.6k
    }
648
302k
    if (CS::isDualITree(cs) && (currArea().Y().width > 64 || currArea().Y().height > 64))
649
22.7k
    {
650
22.7k
      split = CU_QUAD_SPLIT;
651
22.7k
    }
652
302k
    if( (!isBlInPic || !isTrInPic) && split == CU_DONT_SPLIT )
653
0
    {
654
0
      split = CU_QUAD_SPLIT;
655
0
    }
656
302k
  }
657
658
302k
  m_partStack.back().checkdIfImplicit = true;
659
302k
  m_partStack.back().isImplicit = split != CU_DONT_SPLIT;
660
302k
  m_partStack.back().implicitSplit = split;
661
662
302k
  return split;
663
934k
}
664
665
void Partitioner::exitCurrSplit()
666
180k
{
667
180k
  const PartSplit currSplit = m_partStack.back().split;
668
180k
  const int       currIndex = m_partStack.back().idx;
669
180k
  const int       numParts  = m_partStack.back().numParts;
670
671
180k
  m_partStack.pop_back();
672
180k
  m_partBufIdx -= numParts;
673
674
180k
  CHECK( currDepth == 0, "depth is '0', although a split was performed" );
675
180k
  currDepth--;
676
180k
  currSubdiv--;
677
180k
  if( currQgEnable() )
678
38.4k
    currQgPos = currArea().lumaPos();
679
180k
  if( currArea().chromaFormat != CHROMA_400 && currQgChromaEnable() )
680
22.7k
    currQgChromaPos = currArea().chromaPos();
681
180k
#if _DEBUG
682
180k
  m_currArea = m_partStack.back().parts[m_partStack.back().idx];
683
180k
#endif
684
685
180k
  if( currSplit == CU_HORZ_SPLIT || currSplit == CU_VERT_SPLIT || currSplit == CU_TRIH_SPLIT || currSplit == CU_TRIV_SPLIT )
686
107k
  {
687
107k
    CHECK( !m_partStack.back().checkdIfImplicit, "Didn't check if the current split is implicit" );
688
107k
    CHECK( currBtDepth == 0, "BT depth is '0', athough a BT split was performed" );
689
107k
    CHECK( currMtDepth == 0, "MT depth is '0', athough a BT split was performed" );
690
107k
    currMtDepth--;
691
107k
    if( m_partStack.back().isImplicit ) currImplicitBtDepth--;
692
107k
    currBtDepth--;
693
107k
    if( ( currSplit == CU_TRIH_SPLIT || currSplit == CU_TRIV_SPLIT ) && currIndex != 1 )
694
399
    {
695
399
      CHECK( currBtDepth == 0, "BT depth is '0', athough a TT split was performed" );
696
399
      currBtDepth--;
697
399
      currSubdiv--;
698
399
    }
699
107k
  }
700
73.4k
  else if( currSplit == TU_MAX_TR_SPLIT )
701
0
  {
702
0
    CHECK( currTrDepth == 0, "TR depth is '0', although a TU split was performed" );
703
0
    currTrDepth--;
704
0
  }
705
73.4k
  else if( currSplit >= SBT_VER_HALF_POS0_SPLIT && currSplit <= SBT_HOR_QUAD_POS1_SPLIT )
706
0
  {
707
0
    CHECK( currTrDepth == 0, "TR depth is '0', although a TU split was performed" );
708
0
    currTrDepth--;
709
0
  }
710
73.4k
  else if ((currSplit == TU_1D_HORZ_SPLIT) || (currSplit == TU_1D_VERT_SPLIT))
711
20.9k
  {
712
20.9k
    CHECK(currTrDepth == 0, "TR depth is '0', although a TU split was performed");
713
20.9k
    currTrDepth--;
714
20.9k
  }
715
52.4k
  else
716
52.4k
  {
717
52.4k
    CHECK( currTrDepth > 0, "RQT found with QTBT partitioner" );
718
719
52.4k
    CHECK( currQtDepth == 0, "QT depth is '0', although a QT split was performed" );
720
52.4k
    currQtDepth--;
721
52.4k
    currSubdiv--;
722
52.4k
  }
723
180k
}
724
725
bool Partitioner::nextPart( const CodingStructure &cs, bool autoPop /*= false*/ )
726
451k
{
727
451k
  const Position& prevPos = currArea().blocks[chType].pos();
728
729
451k
  unsigned currIdx = ++m_partStack.back().idx;
730
731
451k
  m_partStack.back().checkdIfImplicit = false;
732
451k
  m_partStack.back().isImplicit = false;
733
734
451k
  if( currIdx == 1 )
735
166k
  {
736
166k
    const CodingUnit* prevCU = cs.getCU( prevPos, chType, treeType );
737
166k
    m_partStack.back().firstSubPartSplit = prevCU ? CU::getSplitAtDepth( *prevCU, currDepth ) : CU_DONT_SPLIT;
738
166k
  }
739
740
451k
  if( currIdx < m_partStack.back().numParts )
741
285k
  {
742
285k
    if( m_partStack.back().split == CU_TRIH_SPLIT || m_partStack.back().split == CU_TRIV_SPLIT )
743
798
    {
744
      // adapt the current bt depth
745
798
      if( currIdx == 1 ) currBtDepth--;
746
399
      else               currBtDepth++;
747
798
      if( currIdx == 1 ) currSubdiv--;
748
399
      else               currSubdiv++;
749
798
    }
750
285k
  if( currQgEnable() )
751
26.1k
    currQgPos = currArea().lumaPos();
752
285k
  if( currQgChromaEnable() )
753
0
    currQgChromaPos = currArea().chromaPos();
754
285k
#if _DEBUG
755
285k
    m_currArea = m_partStack.back().parts[currIdx];
756
285k
#endif
757
285k
    return true;
758
285k
  }
759
166k
  else
760
166k
  {
761
166k
    if( autoPop ) exitCurrSplit();
762
166k
    return false;
763
166k
  }
764
451k
}
765
766
bool Partitioner::hasNextPart()
767
123k
{
768
123k
  return ( ( m_partStack.back().idx + 1 ) < m_partStack.back().numParts );
769
123k
}
770
771
//////////////////////////////////////////////////////////////////////////
772
// Partitioner methods describing the actual partitioning logic
773
//////////////////////////////////////////////////////////////////////////
774
775
int PartitionerImpl::getCUSubPartitions( Partitioning& dst, const UnitArea &cuArea, const CodingStructure &cs, const PartSplit _splitType )
776
159k
{
777
159k
  const PartSplit splitType = _splitType;
778
779
159k
  if( splitType == CU_QUAD_SPLIT )
780
52.4k
  {
781
52.4k
    Partitioning& sub = dst;
782
783
262k
    for( uint32_t i = 0; i < 4; i++ )
784
209k
    {
785
209k
      sub[i] = cuArea;
786
787
209k
      for( auto &blk : sub[i].blocks )
788
629k
      {
789
629k
        blk.height >>= 1;
790
629k
        blk.width  >>= 1;
791
629k
        if( i >= 2 ) blk.y += blk.height;
792
629k
        if( i &  1 ) blk.x += blk.width;
793
629k
      }
794
209k
    }
795
796
52.4k
    return 4;
797
52.4k
  }
798
107k
  else if( splitType == CU_HORZ_SPLIT )
799
53.0k
  {
800
53.0k
    Partitioning& sub = dst;
801
802
159k
    for (uint32_t i = 0; i < 2; i++)
803
106k
    {
804
106k
      sub[i] = cuArea;
805
806
106k
      for (auto &blk : sub[i].blocks)
807
318k
      {
808
318k
        blk.height >>= 1;
809
318k
        if (i == 1) blk.y += blk.height;
810
318k
      }
811
106k
    }
812
813
53.0k
    return 2;
814
53.0k
  }
815
54.1k
  else if( splitType == CU_VERT_SPLIT )
816
53.7k
  {
817
53.7k
    Partitioning& sub = dst;
818
819
161k
    for( uint32_t i = 0; i < 2; i++ )
820
107k
    {
821
107k
      sub[i] = cuArea;
822
823
107k
      for( auto &blk : sub[i].blocks )
824
322k
      {
825
322k
        blk.width >>= 1;
826
322k
        if( i == 1 ) blk.x += blk.width;
827
322k
      }
828
107k
    }
829
830
53.7k
    return 2;
831
53.7k
  }
832
399
  else if( splitType == CU_TRIH_SPLIT )
833
343
  {
834
343
    Partitioning& sub = dst;
835
836
1.37k
    for( int i = 0; i < 3; i++ )
837
1.02k
    {
838
1.02k
      sub[i] = cuArea;
839
840
1.02k
      for( auto &blk : sub[i].blocks )
841
3.08k
      {
842
3.08k
        blk.height >>= 1;
843
3.08k
        if( ( i + 1 ) & 1 ) blk.height >>= 1;
844
3.08k
        if( i == 1 )        blk.y       +=     blk.height / 2;
845
3.08k
        if( i == 2 )        blk.y       += 3 * blk.height;
846
3.08k
      }
847
1.02k
    }
848
849
343
    return 3;
850
343
  }
851
56
  else if( splitType == CU_TRIV_SPLIT )
852
56
  {
853
56
    Partitioning& sub = dst;
854
855
224
    for( int i = 0; i < 3; i++ )
856
168
    {
857
168
      sub[i] = cuArea;
858
859
168
      for( auto &blk : sub[i].blocks )
860
504
      {
861
504
        blk.width >>= 1;
862
863
504
        if( ( i + 1 ) & 1 ) blk.width >>= 1;
864
504
        if( i == 1 )        blk.x      +=     blk.width / 2;
865
504
        if( i == 2 )        blk.x      += 3 * blk.width;
866
504
      }
867
168
    }
868
869
56
    return 3;
870
56
  }
871
0
  else
872
0
  {
873
0
    THROW( "Unknown CU sub-partitioning" );
874
0
  }
875
159k
}
876
877
int PartitionerImpl::getTUIntraSubPartitions( Partitioning& sub, const UnitArea &tuArea, const CodingStructure &cs, const PartSplit splitType, const TreeType treeType )
878
20.9k
{
879
20.9k
  uint32_t nPartitions;
880
20.9k
  uint32_t splitDimensionSize = CU::getISPSplitDim( tuArea.lumaSize().width, tuArea.lumaSize().height, splitType );
881
882
20.9k
  bool isDualTree = CS::isDualITree( cs ) || treeType != TREE_D;
883
884
20.9k
  if( splitType == TU_1D_HORZ_SPLIT )
885
10.0k
  {
886
10.0k
    nPartitions = tuArea.lumaSize().height >> Log2(splitDimensionSize);
887
888
50.0k
    for( uint32_t i = 0; i < nPartitions; i++ )
889
40.0k
    {
890
40.0k
      sub[i] = tuArea;
891
40.0k
      CompArea& blkY = sub[i].blocks[COMP_Y];
892
893
40.0k
      blkY.height = splitDimensionSize;
894
40.0k
      blkY.y = i > 0 ? sub[i - 1].blocks[COMP_Y].y + splitDimensionSize : blkY.y;
895
896
40.0k
      CHECK( sub[i].lumaSize().height < 1, "the cs split causes the block to be smaller than the minimal TU size" );
897
40.0k
    }
898
10.0k
  }
899
10.9k
  else if( splitType == TU_1D_VERT_SPLIT )
900
10.9k
  {
901
10.9k
    nPartitions = tuArea.lumaSize().width >> Log2(splitDimensionSize);
902
903
54.9k
    for( uint32_t i = 0; i < nPartitions; i++ )
904
43.9k
    {
905
43.9k
      sub[i] = tuArea;
906
43.9k
      CompArea& blkY = sub[i].blocks[COMP_Y];
907
908
43.9k
      blkY.width = splitDimensionSize;
909
43.9k
      blkY.x = i > 0 ? sub[i - 1].blocks[COMP_Y].x + splitDimensionSize : blkY.x;
910
43.9k
      CHECK( sub[i].lumaSize().width < 1, "the split causes the block to be smaller than the minimal TU size" );
911
43.9k
    }
912
10.9k
  }
913
0
  else
914
0
  {
915
0
    THROW( "Unknown TU sub-partitioning" );
916
0
  }
917
  //we only partition luma, so there is going to be only one chroma tu at the end (unless it is dual tree, in which case there won't be any chroma components)
918
20.9k
  uint32_t partitionsWithoutChroma = (cs.area.chromaFormat == CHROMA_400) ? 0 : (isDualTree ? nPartitions : nPartitions - 1);
919
104k
  for( uint32_t i = 0; i < partitionsWithoutChroma; i++ )
920
83.9k
  {
921
83.9k
    CompArea& blkCb = sub[i].blocks[COMP_Cb];
922
83.9k
    CompArea& blkCr = sub[i].blocks[COMP_Cr];
923
83.9k
    blkCb = CompArea();
924
83.9k
    blkCr = CompArea();
925
83.9k
  }
926
927
20.9k
  return nPartitions;
928
20.9k
}
929
930
931
static const int g_rsScanToZ_w4[16] =
932
{
933
   0,  1,  4,  5, // wouldn't work for 128x32 blocks, but those are forbidden bcs of VPDU constraints
934
   2,  3,  6,  7, // correct ordering for 128x64 (TU32)
935
   8,  9, 12, 13,
936
  10, 11, 14, 15, // correct ordering for 128x128 (TU32)
937
};
938
939
static const int g_rsScanToZ_w2[8] =
940
{
941
   0,  1, // correct ordering for 64x32 (TU32) and 128x64 (TU64)
942
   2,  3, // correct ordering for 64x64 (TU32) and 128x128 (TU64)
943
   4,  5,
944
   6,  7, // correct ordering for 32x64 (TU32) and 64x128 (TU64)
945
};
946
947
static const int g_rsScanToZ_w1[4] =
948
{
949
   0, // no tiling, never used
950
   1, // correct ordering for 64x32 (TU32) and 128x64 (TU64)
951
   2,
952
   3, // correct ordering for 128x32 (TU32)
953
};
954
955
static const int* g_rsScanToZ[3] = { g_rsScanToZ_w1, g_rsScanToZ_w2, g_rsScanToZ_w4 };
956
957
int PartitionerImpl::getMaxTuTiling( Partitioning& dst, const UnitArea& cuArea, const CodingStructure& cs )
958
0
{
959
0
  const Size area = cuArea.lumaSize();
960
0
  const int maxTrSize = cs.sps->getMaxTbSize();
961
0
  const int numTilesH = std::max<int>( 1, area.width / maxTrSize );
962
0
  const int numTilesV = std::max<int>( 1, area.height / maxTrSize );
963
0
  const int numTiles  = numTilesH * numTilesV;
964
0
  const int numLog2H  = Log2( numTilesH );
965
0
  const int* rsScanToZ = g_rsScanToZ[numLog2H];
966
967
0
  Partitioning& ret = dst;
968
969
0
  for( int i = 0; i < numTiles; i++ )
970
0
  {
971
0
    ret[i] = cuArea;
972
973
0
    const int zid = rsScanToZ[i];
974
975
0
    const int y = zid >> numLog2H;
976
0
    const int x = zid & ( ( 1 << numLog2H ) - 1 );
977
978
0
    UnitArea& tile = ret[i];
979
980
0
    for( CompArea& comp : tile.blocks )
981
0
    {
982
0
      if( !comp.valid() ) continue;
983
984
0
      comp.width  /= numTilesH;
985
0
      comp.height /= numTilesV;
986
987
0
      comp.x += comp.width  * x;
988
0
      comp.y += comp.height * y;
989
0
    }
990
0
  }
991
992
0
  return numTiles;
993
0
}
994
995
int PartitionerImpl::getSbtTuTiling( Partitioning& dst, const UnitArea& cuArea, const CodingStructure &cs, const PartSplit splitType )
996
0
{
997
0
  Partitioning& ret = dst;
998
0
  int numTiles      = 2;
999
0
  int widthFactor, heightFactor, xOffsetFactor, yOffsetFactor;
1000
1001
0
  CHECK( !(splitType >= SBT_VER_HALF_POS0_SPLIT && splitType <= SBT_HOR_QUAD_POS1_SPLIT), "wrong" );
1002
1003
0
  for( int i = 0; i < numTiles; i++ )
1004
0
  {
1005
0
    ret[i] = cuArea;
1006
1007
0
    if( splitType >= SBT_VER_QUAD_POS0_SPLIT )
1008
0
    {
1009
0
      if( splitType == SBT_HOR_QUAD_POS0_SPLIT || splitType == SBT_HOR_QUAD_POS1_SPLIT )
1010
0
      {
1011
0
        widthFactor   = 4;
1012
0
        xOffsetFactor = 0;
1013
0
        heightFactor  = ( ( i == 0 &&        splitType == SBT_HOR_QUAD_POS0_SPLIT ) || ( i == 1 && splitType == SBT_HOR_QUAD_POS1_SPLIT ) ) ? 1 : 3;
1014
0
        yOffsetFactor =   ( i == 0 ) ? 0 : ( splitType == SBT_HOR_QUAD_POS0_SPLIT ? 1 : 3 );
1015
0
      }
1016
0
      else
1017
0
      {
1018
0
        widthFactor   = ( ( i == 0 &&        splitType == SBT_VER_QUAD_POS0_SPLIT ) || ( i == 1 && splitType == SBT_VER_QUAD_POS1_SPLIT ) ) ? 1 : 3;
1019
0
        xOffsetFactor =   ( i == 0 ) ? 0 : ( splitType == SBT_VER_QUAD_POS0_SPLIT ? 1 : 3 );
1020
0
        heightFactor  = 4;
1021
0
        yOffsetFactor = 0;
1022
0
      }
1023
0
    }
1024
0
    else
1025
0
    {
1026
0
      if( splitType == SBT_HOR_HALF_POS0_SPLIT || splitType == SBT_HOR_HALF_POS1_SPLIT )
1027
0
      {
1028
0
        widthFactor   = 4;
1029
0
        xOffsetFactor = 0;
1030
0
        heightFactor  = 2;
1031
0
        yOffsetFactor = ( i == 0 ) ? 0 : 2;
1032
0
      }
1033
0
      else
1034
0
      {
1035
0
        widthFactor   = 2;
1036
0
        xOffsetFactor = ( i == 0 ) ? 0 : 2;
1037
0
        heightFactor  = 4;
1038
0
        yOffsetFactor = 0;
1039
0
      }
1040
0
    }
1041
1042
0
    UnitArea& tile = ret[i];
1043
1044
0
    for( CompArea &comp : tile.blocks )
1045
0
    {
1046
0
      if( !comp.valid() ) continue;
1047
1048
0
      comp.x     += ( comp.width  * xOffsetFactor ) >> 2;
1049
0
      comp.y     += ( comp.height * yOffsetFactor ) >> 2;
1050
0
      comp.width  = ( comp.width  * widthFactor   ) >> 2;
1051
0
      comp.height = ( comp.height * heightFactor  ) >> 2;
1052
0
    }
1053
0
  }
1054
1055
0
  return numTiles;
1056
0
}
1057
1058
1059
} // namespace vvenc
1060
1061
//! \}
1062