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/EncSampleAdaptiveOffset.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)
37
ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
38
POSSIBILITY OF SUCH DAMAGE.
39
40
41
------------------------------------------------------------------------------------------- */
42
43
44
/**
45
 \file     EncSampleAdaptiveOffset.cpp
46
 \brief       estimation part of sample adaptive offset class
47
 */
48
49
#include "EncSampleAdaptiveOffset.h"
50
#include "CommonLib/UnitTools.h"
51
#include "CommonLib/dtrace_codingstruct.h"
52
#include "CommonLib/dtrace_buffer.h"
53
#include "CommonLib/CodingStructure.h"
54
#include <string.h>
55
#include <stdlib.h>
56
#include <math.h>
57
#include "vvenc/vvencCfg.h"
58
59
//! \ingroup EncoderLib
60
//! \{
61
62
namespace vvenc {
63
64
65
86.3k
#define SAOCtx(c) SubCtx( Ctx::Sao, c )
66
67
68
//! rounding with IBDI
69
inline double xRoundIbdi2(int bitDepth, double x)
70
0
{
71
0
  return ((x) >= 0 ? ((int)((x) + 0.5)) : ((int)((x) -0.5)));
72
0
}
73
74
inline double xRoundIbdi(int bitDepth, double x)
75
13.7k
{
76
13.7k
  return (bitDepth > 8 ? xRoundIbdi2(bitDepth, (x)) : ((x)>=0 ? ((int)((x)+0.5)) : ((int)((x)-0.5)))) ;
77
13.7k
}
78
79
80
EncSampleAdaptiveOffset::EncSampleAdaptiveOffset()
81
8.57k
  : m_CABACEstimator( nullptr )
82
8.57k
  , m_CtxCache      ( nullptr )
83
8.57k
{
84
8.57k
}
85
86
EncSampleAdaptiveOffset::~EncSampleAdaptiveOffset()
87
8.57k
{
88
8.57k
}
89
90
void EncSampleAdaptiveOffset::init( const VVEncCfg& encCfg )
91
8.57k
{
92
8.57k
  m_EncCfg = &encCfg;
93
94
8.57k
  if ( encCfg.m_bUseSAO )
95
8.57k
  {
96
8.57k
    SampleAdaptiveOffset::init( encCfg.m_internChromaFormat, encCfg.m_CTUSize, encCfg.m_CTUSize, encCfg.m_log2SaoOffsetScale[CH_L], encCfg.m_log2SaoOffsetScale[CH_C] );
97
8.57k
  }
98
8.57k
}
99
100
void EncSampleAdaptiveOffset::initSlice( const Slice* slice )
101
2.14k
{
102
2.14k
  memcpy( m_lambda, slice->getLambdas(), sizeof( m_lambda ) );
103
2.14k
}
104
105
void EncSampleAdaptiveOffset::setCtuEncRsrc( CABACWriter* cabacEstimator, CtxCache* ctxCache )
106
3.76k
{
107
3.76k
  m_CABACEstimator = cabacEstimator;
108
3.76k
  m_CtxCache       = ctxCache;
109
3.76k
}
110
111
void EncSampleAdaptiveOffset::disabledRate( CodingStructure& cs, double saoDisabledRate[ MAX_NUM_COMP ][ VVENC_MAX_TLAYER ], SAOBlkParam* reconParams, const double saoEncodingRate, const double saoEncodingRateChroma, const ChromaFormat& chromaFormat )
112
0
{
113
0
  if ( saoEncodingRate > 0.0 )
114
0
  {
115
0
    const PreCalcValues& pcv     = *cs.pcv;
116
0
    const int numberOfComponents = getNumberValidComponents( chromaFormat );
117
0
    const int picTempLayer       = cs.slice->TLayer;
118
0
    int numCtusForSAOOff[MAX_NUM_COMP];
119
120
0
    for (int compIdx = 0; compIdx < numberOfComponents; compIdx++)
121
0
    {
122
0
      numCtusForSAOOff[compIdx] = 0;
123
0
      for( int ctuRsAddr=0; ctuRsAddr< pcv.sizeInCtus; ctuRsAddr++)
124
0
      {
125
0
        if( reconParams[ctuRsAddr][compIdx].modeIdc == SAO_MODE_OFF)
126
0
        {
127
0
          numCtusForSAOOff[compIdx]++;
128
0
        }
129
0
      }
130
0
    }
131
0
    if (saoEncodingRateChroma > 0.0)
132
0
    {
133
0
      for (int compIdx = 0; compIdx < numberOfComponents; compIdx++)
134
0
      {
135
0
        saoDisabledRate[compIdx][picTempLayer] = (double)numCtusForSAOOff[compIdx]/(double)pcv.sizeInCtus;
136
0
      }
137
0
    }
138
0
    else if (picTempLayer == 0)
139
0
    {
140
0
      saoDisabledRate[COMP_Y][0] = (double)(numCtusForSAOOff[COMP_Y]+numCtusForSAOOff[COMP_Cb]+numCtusForSAOOff[COMP_Cr])/(double)(pcv.sizeInCtus *3);
141
0
    }
142
0
  }
143
0
}
144
145
void EncSampleAdaptiveOffset::decidePicParams( const CodingStructure& cs, double saoDisabledRate[ MAX_NUM_COMP ][ VVENC_MAX_TLAYER ], bool saoEnabled[ MAX_NUM_COMP ], const double saoEncodingRate, const double saoEncodingRateChroma, const ChromaFormat& chromaFormat )
146
1.20k
{
147
1.20k
  const Slice& slice           = *cs.slice;
148
1.20k
  const int numberOfComponents = getNumberValidComponents( chromaFormat );
149
150
  // reset
151
1.20k
  if( slice.pendingRasInit )
152
0
  {
153
0
    for( int compIdx = 0; compIdx < MAX_NUM_COMP; compIdx++ )
154
0
    {
155
0
      for( int tempLayer = 1; tempLayer < VVENC_MAX_TLAYER; tempLayer++ )
156
0
      {
157
0
        saoDisabledRate[ compIdx ][ tempLayer ] = 0.0;
158
0
      }
159
0
    }
160
0
  }
161
162
4.82k
  for( int compIdx = 0; compIdx < MAX_NUM_COMP; compIdx++ )
163
3.61k
  {
164
3.61k
    saoEnabled[ compIdx ] = false;
165
3.61k
  }
166
167
1.20k
  const int picTempLayer = slice.TLayer;
168
4.82k
  for( int compIdx = 0; compIdx < numberOfComponents; compIdx++ )
169
3.61k
  {
170
    // enable per default
171
3.61k
    saoEnabled[ compIdx ] = true;
172
173
3.61k
    if( saoEncodingRate > 0.0 )
174
0
    {
175
0
      if( saoEncodingRateChroma > 0.0 )
176
0
      {
177
        // decide slice-level on/off based on previous results
178
0
        if( ( picTempLayer > 0 )
179
0
          && ( saoDisabledRate[ compIdx ][ picTempLayer - 1 ] > ( ( compIdx == COMP_Y ) ? saoEncodingRate : saoEncodingRateChroma ) ) )
180
0
        {
181
0
          saoEnabled[ compIdx ] = false;
182
0
        }
183
0
      }
184
0
      else
185
0
      {
186
        // decide slice-level on/off based on previous results
187
0
        if( ( picTempLayer > 0 )
188
0
          && ( saoDisabledRate[ COMP_Y ][ 0 ] > saoEncodingRate ) )
189
0
        {
190
0
          saoEnabled[ compIdx ] = false;
191
0
        }
192
0
      }
193
0
    }
194
3.61k
  }
195
1.20k
}
196
197
void EncSampleAdaptiveOffset::storeCtuReco( CodingStructure& cs, const UnitArea& ctuArea, const int ctuX, const int ctuY )
198
3.76k
{
199
3.76k
  const int STORE_CTU_INCREASE = 8;
200
3.76k
  Position lPos( ctuArea.lx() + STORE_CTU_INCREASE, ctuArea.ly() + STORE_CTU_INCREASE );
201
3.76k
  Size    lSize( ctuArea.lwidth(), ctuArea.lheight() );
202
203
3.76k
  const bool tileBdryClip = cs.pps->getNumTiles() > 1 && !cs.pps->loopFilterAcrossTilesEnabled;
204
3.76k
  int startX = 0;
205
3.76k
  int startY = 0;
206
3.76k
  if( tileBdryClip )  
207
0
  {
208
0
    startX = cs.pps->tileColBd[cs.pps->ctuToTileCol[ctuX]] << cs.pcv->maxCUSizeLog2;
209
0
    startY = cs.pps->tileRowBd[cs.pps->ctuToTileRow[ctuY]] << cs.pcv->maxCUSizeLog2;
210
0
  }
211
212
3.76k
  if ( ctuArea.lx() == startX )
213
2.14k
  {
214
2.14k
    lPos.x       = ctuArea.lx();
215
2.14k
    lSize.width += STORE_CTU_INCREASE;
216
2.14k
  }
217
3.76k
  if ( ctuArea.ly() == startY )
218
2.04k
  {
219
2.04k
    lPos.y        = ctuArea.ly();
220
2.04k
    lSize.height += STORE_CTU_INCREASE;
221
2.04k
  }
222
223
3.76k
  int clipX = cs.pcv->lumaWidth  - lPos.x;
224
3.76k
  int clipY = cs.pcv->lumaHeight - lPos.y;
225
3.76k
  if( tileBdryClip )  
226
0
  {
227
0
    clipX  = cs.pps->tileColBdRgt[cs.pps->ctuToTileCol[ctuX]] - lPos.x;
228
0
    clipY  = cs.pps->tileRowBdBot[cs.pps->ctuToTileRow[ctuY]] - lPos.y;
229
0
  }
230
3.76k
  lSize.clipSize( clipX, clipY );
231
232
3.76k
  const UnitArea relocArea( ctuArea.chromaFormat, Area( lPos, lSize ) );
233
3.76k
  Picture& pic       = *cs.picture;
234
3.76k
  PelUnitBuf recoYuv = pic.getRecoBuf().subBuf( relocArea );
235
3.76k
  PelUnitBuf tempYuv = pic.getSaoBuf().subBuf( relocArea );
236
3.76k
  tempYuv.copyFrom( recoYuv );
237
3.76k
}
238
239
void EncSampleAdaptiveOffset::getCtuStatistics( CodingStructure& cs, std::vector<SAOStatData**>& saoStatistics, const UnitArea& ctuArea, const int ctuRsAddr )
240
3.76k
{
241
3.76k
  const PreCalcValues& pcv     = *cs.pcv;
242
3.76k
  const int numberOfComponents = getNumberValidComponents( pcv.chrFormat );
243
3.76k
  bool isLeftAvail             = false;
244
3.76k
  bool isRightAvail            = false;
245
3.76k
  bool isAboveAvail            = false;
246
3.76k
  bool isBelowAvail            = false;
247
3.76k
  bool isAboveLeftAvail        = false;
248
3.76k
  bool isAboveRightAvail       = false;
249
250
3.76k
  deriveLoopFilterBoundaryAvailibility( cs, ctuArea.Y(), isLeftAvail, isAboveAvail, isAboveLeftAvail );
251
252
  // NOTE: The number of skipped lines during gathering CTU statistics depends on the slice boundary availabilities.
253
  // For simplicity, here only picture boundaries are considered.
254
255
3.76k
  isRightAvail      = ( ctuArea.Y().x + pcv.maxCUSize < pcv.lumaWidth  );
256
3.76k
  isBelowAvail      = ( ctuArea.Y().y + pcv.maxCUSize < pcv.lumaHeight );
257
3.76k
  isAboveRightAvail = ( ( ctuArea.Y().y > 0 ) && ( isRightAvail ) );
258
259
3.76k
  CHECK( !cs.pps->loopFilterAcrossSlicesEnabled, "Not implemented" );
260
3.76k
  if( cs.pps->getNumTiles() > 1 && !cs.pps->loopFilterAcrossTilesEnabled )
261
0
  {
262
0
    const int ctuX    = ctuArea.lx() >> cs.pcv->maxCUSizeLog2;
263
0
    const int ctuY    = ctuArea.ly() >> cs.pcv->maxCUSizeLog2;
264
0
    isRightAvail      = isRightAvail      && cs.pps->canFilterCtuBdry( ctuX, ctuY,  1, 0 );
265
0
    isBelowAvail      = isBelowAvail      && cs.pps->canFilterCtuBdry( ctuX, ctuY,  0, 1 );
266
0
    isAboveRightAvail = isAboveRightAvail && cs.pps->canFilterCtuBdry( ctuX, ctuY,  1,-1 );
267
0
  }
268
269
  //VirtualBoundaries vb;
270
  //bool isCtuCrossedByVirtualBoundaries = vb.isCrossedByVirtualBoundaries(xPos, yPos, width, height, cs.slice->pps);
271
272
15.0k
  for( int compIdx = 0; compIdx < numberOfComponents; compIdx++ )
273
11.3k
  {
274
11.3k
    const ComponentID compID = ComponentID( compIdx );
275
11.3k
    const CompArea& compArea = ctuArea.block( compID );
276
277
11.3k
    PelBuf srcBuf = cs.picture->getSaoBuf().get( compID );
278
11.3k
    PelBuf orgBuf = cs.picture->getOrigBuf().get( compID );
279
280
11.3k
    getBlkStats( compID,
281
11.3k
                 cs.sps->bitDepths[ toChannelType( compID ) ],
282
11.3k
                 saoStatistics[ ctuRsAddr ][ compID ],
283
11.3k
                 srcBuf.bufAt( compArea ),
284
11.3k
                 orgBuf.bufAt( compArea ),
285
11.3k
                 srcBuf.stride,
286
11.3k
                 orgBuf.stride,
287
11.3k
                 compArea.width,
288
11.3k
                 compArea.height,
289
11.3k
                 isLeftAvail, isRightAvail, isAboveAvail, isBelowAvail, isAboveLeftAvail, isAboveRightAvail
290
11.3k
               );
291
11.3k
  }
292
3.76k
}
293
294
void EncSampleAdaptiveOffset::getStatistics(std::vector<SAOStatData**>& blkStats, PelUnitBuf& orgYuv, PelUnitBuf& srcYuv, CodingStructure& cs )
295
0
{
296
0
  bool isLeftAvail, isRightAvail, isAboveAvail, isBelowAvail, isAboveLeftAvail, isAboveRightAvail;
297
298
0
  const PreCalcValues& pcv = *cs.pcv;
299
0
  const int numberOfComponents = getNumberValidComponents(pcv.chrFormat);
300
301
0
  size_t lineBufferSize = pcv.maxCUSize + 1;
302
0
  if (m_signLineBuf1.size() != lineBufferSize)
303
0
  {
304
0
    m_signLineBuf1.resize(lineBufferSize);
305
0
    m_signLineBuf2.resize(lineBufferSize);
306
0
  }
307
308
0
  int ctuRsAddr = 0;
309
0
  for( uint32_t yPos = 0; yPos < pcv.lumaHeight; yPos += pcv.maxCUSize )
310
0
  {
311
0
    for( uint32_t xPos = 0; xPos < pcv.lumaWidth; xPos += pcv.maxCUSize )
312
0
    {
313
0
      const uint32_t width  = (xPos + pcv.maxCUSize  > pcv.lumaWidth)  ? (pcv.lumaWidth - xPos)  : pcv.maxCUSize;
314
0
      const uint32_t height = (yPos + pcv.maxCUSize > pcv.lumaHeight) ? (pcv.lumaHeight - yPos) : pcv.maxCUSize;
315
0
      const UnitArea area( cs.area.chromaFormat, Area(xPos , yPos, width, height) );
316
317
0
      deriveLoopFilterBoundaryAvailibility(cs, area.Y(), isLeftAvail, isAboveAvail, isAboveLeftAvail );
318
319
      //NOTE: The number of skipped lines during gathering CTU statistics depends on the slice boundary availabilities.
320
      //For simplicity, here only picture boundaries are considered.
321
322
0
      isRightAvail      = (xPos + pcv.maxCUSize  < pcv.lumaWidth );
323
0
      isBelowAvail      = (yPos + pcv.maxCUSize < pcv.lumaHeight);
324
0
      isAboveRightAvail = ((yPos > 0) && (isRightAvail));
325
326
0
      for(int compIdx = 0; compIdx < numberOfComponents; compIdx++)
327
0
      {
328
0
        const ComponentID compID = ComponentID(compIdx);
329
0
        const CompArea& compArea = area.block( compID );
330
331
0
        int  srcStride  = srcYuv.get(compID).stride;
332
0
        Pel* srcBlk     = srcYuv.get(compID).bufAt( compArea );
333
334
0
        int  orgStride  = orgYuv.get(compID).stride;
335
0
        Pel* orgBlk     = orgYuv.get(compID).bufAt( compArea );
336
337
0
        getBlkStats(compID, cs.sps->bitDepths[toChannelType(compID)], blkStats[ctuRsAddr][compID]
338
0
                  , srcBlk, orgBlk, srcStride, orgStride, compArea.width, compArea.height
339
0
                  , isLeftAvail,  isRightAvail, isAboveAvail, isBelowAvail, isAboveLeftAvail, isAboveRightAvail );
340
0
      }
341
0
      ctuRsAddr++;
342
0
    }
343
0
  }
344
0
}
345
346
void EncSampleAdaptiveOffset::decideCtuParams( CodingStructure& cs, const std::vector<SAOStatData**>& saoStatistics, const bool saoEnabled[ MAX_NUM_COMP ], const bool allBlksDisabled, const UnitArea& ctuArea, const int ctuRsAddr, SAOBlkParam* reconParams, SAOBlkParam* codedParams )
347
3.76k
{
348
3.76k
  const PreCalcValues& pcv = *cs.pcv;
349
3.76k
  const Slice& slice       = *cs.slice;
350
3.76k
  const int  ctuPosX       = ctuRsAddr % pcv.widthInCtus;
351
3.76k
  const int  ctuPosY       = ctuRsAddr / pcv.widthInCtus;
352
353
  // reset CABAC estimator
354
3.76k
  if( m_EncCfg->m_ensureWppBitEqual
355
3.76k
      && m_EncCfg->m_numThreads < 1
356
0
      && ctuPosX == 0
357
0
      && ctuPosY > 0 )
358
0
  {
359
0
    m_CABACEstimator->initCtxModels( slice );
360
0
  }
361
362
  // check disabled
363
3.76k
  if( allBlksDisabled )
364
0
  {
365
0
    codedParams[ ctuRsAddr ].reset();
366
0
    return;
367
0
  }
368
369
  // get merge list
370
3.76k
  SAOBlkParam* mergeList[ NUM_SAO_MERGE_TYPES ] = { NULL };
371
3.76k
  getMergeList( cs, ctuRsAddr, reconParams, mergeList );
372
373
3.76k
  const TempCtx ctxStart( m_CtxCache, SAOCtx( m_CABACEstimator->getCtx() ) );
374
3.76k
  TempCtx       ctxBest ( m_CtxCache );
375
376
3.76k
  SAOBlkParam modeParam;
377
3.76k
  double minCost  = MAX_DOUBLE;
378
3.76k
  double modeCost = MAX_DOUBLE;
379
11.3k
  for( int mode = 1; mode < NUM_SAO_MODES; mode++ )
380
7.53k
  {
381
7.53k
    if( mode > 1 )
382
3.76k
    {
383
3.76k
      m_CABACEstimator->getCtx() = SAOCtx( ctxStart );
384
3.76k
    }
385
7.53k
    switch( mode )
386
7.53k
    {
387
3.76k
    case SAO_MODE_NEW:
388
3.76k
      {
389
3.76k
        deriveModeNewRDO( cs.sps->bitDepths, ctuRsAddr, mergeList, saoEnabled, saoStatistics, modeParam, modeCost );
390
3.76k
      }
391
3.76k
      break;
392
3.76k
    case SAO_MODE_MERGE:
393
3.76k
      {
394
3.76k
        deriveModeMergeRDO( cs.sps->bitDepths, ctuRsAddr, mergeList, saoEnabled, saoStatistics, modeParam, modeCost );
395
3.76k
      }
396
3.76k
      break;
397
0
    default:
398
0
      {
399
0
        THROW( "Not a supported SAO mode." );
400
0
      }
401
7.53k
    }
402
403
7.53k
    if( modeCost < minCost )
404
6.32k
    {
405
6.32k
      minCost                  = modeCost;
406
6.32k
      codedParams[ ctuRsAddr ] = modeParam;
407
6.32k
      ctxBest                  = SAOCtx( m_CABACEstimator->getCtx() );
408
6.32k
    }
409
7.53k
  }
410
411
  // apply reconstructed offsets
412
3.76k
  m_CABACEstimator->getCtx() = SAOCtx( ctxBest );
413
3.76k
  reconParams[ ctuRsAddr ] = codedParams[ ctuRsAddr ];
414
415
3.76k
  reconstructBlkSAOParam( reconParams[ ctuRsAddr ], mergeList );
416
417
3.76k
  Picture& pic = *cs.picture;
418
3.76k
  offsetCTU( ctuArea, pic.getSaoBuf(), cs.getRecoBuf(), reconParams[ ctuRsAddr ], cs );
419
3.76k
}
420
421
int64_t EncSampleAdaptiveOffset::getDistortion(const int channelBitDepth, int typeIdc, int typeAuxInfo, int* invQuantOffset, SAOStatData& statData)
422
56.5k
{
423
56.5k
  int64_t dist        = 0;
424
56.5k
  int shift = 2 * DISTORTION_PRECISION_ADJUSTMENT(channelBitDepth);
425
426
56.5k
  switch(typeIdc)
427
56.5k
  {
428
11.2k
  case SAO_TYPE_EO_0:
429
22.5k
  case SAO_TYPE_EO_90:
430
33.8k
  case SAO_TYPE_EO_135:
431
45.1k
  case SAO_TYPE_EO_45:
432
45.1k
    {
433
271k
      for (int offsetIdx=0; offsetIdx<NUM_SAO_EO_CLASSES; offsetIdx++)
434
225k
      {
435
225k
        dist += estSaoDist( statData.count[offsetIdx], invQuantOffset[offsetIdx], statData.diff[offsetIdx], shift);
436
225k
      }
437
45.1k
    }
438
45.1k
    break;
439
11.3k
  case SAO_TYPE_BO:
440
11.3k
    {
441
56.5k
      for (int offsetIdx=typeAuxInfo; offsetIdx<typeAuxInfo+4; offsetIdx++)
442
45.2k
      {
443
45.2k
        int bandIdx = offsetIdx % NUM_SAO_BO_CLASSES ;
444
45.2k
        dist += estSaoDist( statData.count[bandIdx], invQuantOffset[bandIdx], statData.diff[bandIdx], shift);
445
45.2k
      }
446
11.3k
    }
447
11.3k
    break;
448
0
  default:
449
0
    {
450
0
      THROW("Not a supported type");
451
33.8k
    }
452
56.5k
  }
453
454
56.5k
  return dist;
455
56.5k
}
456
457
inline int64_t EncSampleAdaptiveOffset::estSaoDist(int64_t count, int64_t offset, int64_t diffSum, int shift)
458
272k
{
459
272k
  return (( count*offset*offset-diffSum*offset*2 ) >> shift);
460
272k
}
461
462
463
inline int EncSampleAdaptiveOffset::estIterOffset(int typeIdx, double lambda, int offsetInput, int64_t count, int64_t diffSum, int shift, int bitIncrease, int64_t& bestDist, double& bestCost, int offsetTh )
464
1.49k
{
465
1.49k
  int iterOffset, tempOffset;
466
1.49k
  int64_t tempDist, tempRate;
467
1.49k
  double tempCost, tempMinCost;
468
1.49k
  int offsetOutput = 0;
469
1.49k
  iterOffset = offsetInput;
470
  // Assuming sending quantized value 0 results in zero offset and sending the value zero needs 1 bit. entropy coder can be used to measure the exact rate here.
471
1.49k
  tempMinCost = lambda;
472
2.98k
  while (iterOffset != 0)
473
1.49k
  {
474
    // Calculate the bits required for signaling the offset
475
1.49k
    tempRate = (typeIdx == SAO_TYPE_BO) ? (abs((int)iterOffset)+2) : (abs((int)iterOffset)+1);
476
1.49k
    if (abs((int)iterOffset)==offsetTh) //inclusive
477
0
    {
478
0
      tempRate --;
479
0
    }
480
    // Do the dequantization before distortion calculation
481
1.49k
    tempOffset  = iterOffset * (1<< bitIncrease);
482
1.49k
    tempDist    = estSaoDist( count, tempOffset, diffSum, shift);
483
1.49k
    tempCost    = ((double)tempDist + lambda * (double) tempRate);
484
1.49k
    if(tempCost < tempMinCost)
485
315
    {
486
315
      tempMinCost = tempCost;
487
315
      offsetOutput = iterOffset;
488
315
      bestDist = tempDist;
489
315
      bestCost = tempCost;
490
315
    }
491
1.49k
    iterOffset = (iterOffset > 0) ? (iterOffset-1):(iterOffset+1);
492
1.49k
  }
493
1.49k
  return offsetOutput;
494
1.49k
}
495
496
void EncSampleAdaptiveOffset::deriveOffsets(ComponentID compIdx, const int channelBitDepth, int typeIdc, SAOStatData& statData, int* quantOffsets, int& typeAuxInfo)
497
56.4k
{
498
56.4k
  int bitDepth = channelBitDepth;
499
56.4k
  int shift = 2 * DISTORTION_PRECISION_ADJUSTMENT(bitDepth);
500
56.4k
  int offsetTh = SampleAdaptiveOffset::getMaxOffsetQVal(channelBitDepth);  //inclusive
501
502
56.4k
  ::memset(quantOffsets, 0, sizeof(int)*MAX_NUM_SAO_CLASSES);
503
504
  //derive initial offsets
505
56.4k
  int numClasses = (typeIdc == SAO_TYPE_BO)?((int)NUM_SAO_BO_CLASSES):((int)NUM_SAO_EO_CLASSES);
506
643k
  for(int classIdx=0; classIdx< numClasses; classIdx++)
507
587k
  {
508
587k
    if( (typeIdc != SAO_TYPE_BO) && (classIdx==SAO_CLASS_EO_PLAIN)  )
509
45.1k
    {
510
45.1k
      continue; //offset will be zero
511
45.1k
    }
512
513
542k
    if(statData.count[classIdx] == 0)
514
528k
    {
515
528k
      continue; //offset will be zero
516
528k
    }
517
13.7k
#if (  DISTORTION_PRECISION_ADJUSTMENT(x)  == 0 )
518
13.7k
    quantOffsets[classIdx] =
519
13.7k
       (int) xRoundIbdi(bitDepth, (double)(statData.diff[classIdx] ) / (double)(statData.count[classIdx] << m_offsetStepLog2[compIdx]));
520
13.7k
     quantOffsets[classIdx] = Clip3(-offsetTh, offsetTh, quantOffsets[classIdx]);
521
#else
522
      quantOffsets[classIdx] =
523
        (int) xRoundIbdi(bitDepth, (double)(statData.diff[classIdx] << DISTORTION_PRECISION_ADJUSTMENT(bitDepth))
524
                                     / (double)(statData.count[classIdx] << m_offsetStepLog2[compIdx]));
525
      quantOffsets[classIdx] = Clip3(-offsetTh, offsetTh, quantOffsets[classIdx]);
526
#endif
527
13.7k
  }
528
529
  // adjust offsets
530
56.4k
  switch(typeIdc)
531
56.4k
  {
532
11.2k
  case SAO_TYPE_EO_0:
533
22.5k
  case SAO_TYPE_EO_90:
534
33.8k
  case SAO_TYPE_EO_135:
535
45.1k
  case SAO_TYPE_EO_45:
536
45.1k
    {
537
45.1k
      int64_t classDist;
538
45.1k
      double classCost;
539
271k
      for(int classIdx=0; classIdx<NUM_SAO_EO_CLASSES; classIdx++)
540
225k
      {
541
225k
        if(classIdx==SAO_CLASS_EO_FULL_VALLEY && quantOffsets[classIdx] < 0)
542
0
        {
543
0
          quantOffsets[classIdx] =0;
544
0
        }
545
225k
        if(classIdx==SAO_CLASS_EO_HALF_VALLEY && quantOffsets[classIdx] < 0)
546
0
        {
547
0
          quantOffsets[classIdx] =0;
548
0
        }
549
225k
        if(classIdx==SAO_CLASS_EO_HALF_PEAK   && quantOffsets[classIdx] > 0)
550
0
        {
551
0
          quantOffsets[classIdx] =0;
552
0
        }
553
225k
        if(classIdx==SAO_CLASS_EO_FULL_PEAK   && quantOffsets[classIdx] > 0)
554
0
        {
555
0
          quantOffsets[classIdx] =0;
556
0
        }
557
558
225k
        if( quantOffsets[classIdx] != 0 ) //iterative adjustment only when derived offset is not zero
559
1.12k
        {
560
1.12k
          quantOffsets[classIdx] = estIterOffset( typeIdc, m_lambda[compIdx], quantOffsets[classIdx], statData.count[classIdx], statData.diff[classIdx], shift, m_offsetStepLog2[compIdx], classDist , classCost , offsetTh );
561
1.12k
        }
562
225k
      }
563
564
45.1k
      typeAuxInfo =0;
565
45.1k
    }
566
45.1k
    break;
567
11.3k
  case SAO_TYPE_BO:
568
11.3k
    {
569
11.3k
      int64_t  distBOClasses[NUM_SAO_BO_CLASSES];
570
11.3k
      double costBOClasses[NUM_SAO_BO_CLASSES];
571
11.3k
      ::memset(distBOClasses, 0, sizeof(int64_t)*NUM_SAO_BO_CLASSES);
572
372k
      for(int classIdx=0; classIdx< NUM_SAO_BO_CLASSES; classIdx++)
573
361k
      {
574
361k
        costBOClasses[classIdx]= m_lambda[compIdx];
575
361k
        if( quantOffsets[classIdx] != 0 ) //iterative adjustment only when derived offset is not zero
576
365
        {
577
365
          quantOffsets[classIdx] = estIterOffset( typeIdc, m_lambda[compIdx], quantOffsets[classIdx], statData.count[classIdx], statData.diff[classIdx], shift, m_offsetStepLog2[compIdx], distBOClasses[classIdx], costBOClasses[classIdx], offsetTh );
578
365
        }
579
361k
      }
580
581
      //decide the starting band index
582
11.3k
      double minCost = MAX_DOUBLE, cost;
583
372k
      for(int band=0; band< NUM_SAO_BO_CLASSES; band++)
584
361k
      {
585
361k
        cost  = costBOClasses[(band  )%NUM_SAO_BO_CLASSES];
586
361k
        cost += costBOClasses[(band+1)%NUM_SAO_BO_CLASSES];
587
361k
        cost += costBOClasses[(band+2)%NUM_SAO_BO_CLASSES];
588
361k
        cost += costBOClasses[(band+3)%NUM_SAO_BO_CLASSES];
589
590
361k
        if(cost < minCost)
591
11.4k
        {
592
11.4k
          minCost = cost;
593
11.4k
          typeAuxInfo = band;
594
11.4k
        }
595
361k
      }
596
      //clear those unused classes
597
11.3k
      int clearQuantOffset[NUM_SAO_BO_CLASSES];
598
11.3k
      ::memset(clearQuantOffset, 0, sizeof(int)*NUM_SAO_BO_CLASSES);
599
56.5k
      for(int i=0; i< 4; i++)
600
45.2k
      {
601
45.2k
        int band = (typeAuxInfo+i)%NUM_SAO_BO_CLASSES;
602
45.2k
        clearQuantOffset[band] = quantOffsets[band];
603
45.2k
      }
604
11.3k
      ::memcpy(quantOffsets, clearQuantOffset, sizeof(int)*NUM_SAO_BO_CLASSES);
605
11.3k
    }
606
11.3k
    break;
607
0
  default:
608
0
    {
609
0
      THROW("Not a supported type");
610
33.8k
    }
611
56.4k
  }
612
56.4k
}
613
614
void EncSampleAdaptiveOffset::deriveModeNewRDO(const BitDepths &bitDepths, int ctuRsAddr, SAOBlkParam* mergeList[NUM_SAO_MERGE_TYPES], const bool* sliceEnabled, const std::vector<SAOStatData**>& blkStats, SAOBlkParam& modeParam, double& modeNormCost )
615
3.76k
{
616
3.76k
  double minCost, cost;
617
3.76k
  uint64_t previousFracBits;
618
3.76k
  const int numberOfComponents = m_numberOfComponents;
619
620
3.76k
  int64_t dist[MAX_NUM_COMP], modeDist[MAX_NUM_COMP];
621
3.76k
  SAOOffset testOffset[MAX_NUM_COMP];
622
3.76k
  int invQuantOffset[MAX_NUM_SAO_CLASSES];
623
15.0k
  for(int comp=0; comp < MAX_NUM_COMP; comp++)
624
11.3k
  {
625
11.3k
    modeDist[comp] = 0;
626
11.3k
  }
627
628
  //pre-encode merge flags
629
3.76k
  modeParam[COMP_Y].modeIdc = SAO_MODE_OFF;
630
3.76k
  const TempCtx ctxStartBlk   ( m_CtxCache, SAOCtx( m_CABACEstimator->getCtx() ) );
631
3.76k
  m_CABACEstimator->sao_block_pars( modeParam, bitDepths, sliceEnabled, (mergeList[SAO_MERGE_LEFT]!= NULL), (mergeList[SAO_MERGE_ABOVE]!= NULL), true );
632
3.76k
  const TempCtx ctxStartLuma  ( m_CtxCache, SAOCtx( m_CABACEstimator->getCtx() ) );
633
3.76k
  TempCtx       ctxBestLuma   ( m_CtxCache );
634
635
    //------ luma --------//
636
3.76k
  {
637
3.76k
    const ComponentID compIdx = COMP_Y;
638
    //"off" case as initial cost
639
3.76k
    modeParam[compIdx].modeIdc = SAO_MODE_OFF;
640
3.76k
    m_CABACEstimator->resetBits();
641
3.76k
    m_CABACEstimator->sao_offset_pars( modeParam[compIdx], compIdx, sliceEnabled[compIdx], bitDepths[CH_L] );
642
3.76k
    modeDist[compIdx] = 0;
643
3.76k
    minCost           = m_lambda[compIdx] * (FRAC_BITS_SCALE * m_CABACEstimator->getEstFracBits());
644
3.76k
    ctxBestLuma = SAOCtx( m_CABACEstimator->getCtx() );
645
3.76k
    if(sliceEnabled[compIdx])
646
3.76k
    {
647
22.5k
      for(int typeIdc=0; typeIdc< NUM_SAO_NEW_TYPES; typeIdc++)
648
18.8k
      {
649
18.8k
        testOffset[compIdx].modeIdc = SAO_MODE_NEW;
650
18.8k
        testOffset[compIdx].typeIdc = typeIdc;
651
652
        //derive coded offset
653
18.8k
        deriveOffsets(compIdx, bitDepths[CH_L], typeIdc, blkStats[ctuRsAddr][compIdx][typeIdc], testOffset[compIdx].offset, testOffset[compIdx].typeAuxInfo);
654
655
        //inversed quantized offsets
656
18.8k
        invertQuantOffsets(compIdx, typeIdc, testOffset[compIdx].typeAuxInfo, invQuantOffset, testOffset[compIdx].offset);
657
658
        //get distortion
659
18.8k
        dist[compIdx] = getDistortion(bitDepths[CH_L], testOffset[compIdx].typeIdc, testOffset[compIdx].typeAuxInfo, invQuantOffset, blkStats[ctuRsAddr][compIdx][typeIdc]);
660
661
        //get rate
662
18.8k
        m_CABACEstimator->getCtx() = SAOCtx( ctxStartLuma );
663
18.8k
        m_CABACEstimator->resetBits();
664
18.8k
        m_CABACEstimator->sao_offset_pars( testOffset[compIdx], compIdx, sliceEnabled[compIdx], bitDepths[CH_L] );
665
18.8k
        double rate = FRAC_BITS_SCALE * m_CABACEstimator->getEstFracBits();
666
18.8k
        cost = (double)dist[compIdx] + m_lambda[compIdx]*rate;
667
18.8k
        if(cost < minCost)
668
25
        {
669
25
          minCost = cost;
670
25
          modeDist[compIdx] = dist[compIdx];
671
25
          modeParam[compIdx]= testOffset[compIdx];
672
25
          ctxBestLuma = SAOCtx( m_CABACEstimator->getCtx() );
673
25
        }
674
18.8k
      }
675
3.76k
    }
676
3.76k
    m_CABACEstimator->getCtx() = SAOCtx( ctxBestLuma );
677
3.76k
  }
678
679
  //------ chroma --------//
680
//"off" case as initial cost
681
3.76k
  cost = 0;
682
3.76k
  previousFracBits = 0;
683
3.76k
  m_CABACEstimator->resetBits();
684
11.2k
  for(uint32_t componentIndex = COMP_Cb; componentIndex < numberOfComponents; componentIndex++)
685
7.53k
  {
686
7.53k
    const ComponentID component = ComponentID(componentIndex);
687
688
7.53k
    modeParam[component].modeIdc = SAO_MODE_OFF;
689
7.53k
    modeDist [component]         = 0;
690
7.53k
    m_CABACEstimator->sao_offset_pars( modeParam[component], component, sliceEnabled[component], bitDepths[CH_C] );
691
7.53k
    const uint64_t currentFracBits = m_CABACEstimator->getEstFracBits();
692
7.53k
    cost += m_lambda[component] * FRAC_BITS_SCALE * (currentFracBits - previousFracBits);
693
7.53k
    previousFracBits = currentFracBits;
694
7.53k
  }
695
696
3.76k
  minCost = cost;
697
698
  //doesn't need to store cabac status here since the whole CTU parameters will be re-encoded at the end of this function
699
700
22.5k
  for(int typeIdc=0; typeIdc< NUM_SAO_NEW_TYPES; typeIdc++)
701
18.8k
  {
702
18.8k
    m_CABACEstimator->getCtx() = SAOCtx( ctxBestLuma );
703
18.8k
    m_CABACEstimator->resetBits();
704
18.8k
    previousFracBits = 0;
705
18.8k
    cost = 0;
706
707
56.4k
    for(uint32_t componentIndex = COMP_Cb; componentIndex < numberOfComponents; componentIndex++)
708
37.6k
    {
709
37.6k
      const ComponentID component = ComponentID(componentIndex);
710
37.6k
      if(!sliceEnabled[component])
711
0
      {
712
0
        testOffset[component].modeIdc = SAO_MODE_OFF;
713
0
        dist[component]= 0;
714
0
        continue;
715
0
      }
716
37.6k
      testOffset[component].modeIdc = SAO_MODE_NEW;
717
37.6k
      testOffset[component].typeIdc = typeIdc;
718
719
      //derive offset & get distortion
720
37.6k
      deriveOffsets(component, bitDepths[CH_C], typeIdc, blkStats[ctuRsAddr][component][typeIdc], testOffset[component].offset, testOffset[component].typeAuxInfo);
721
37.6k
      invertQuantOffsets(component, typeIdc, testOffset[component].typeAuxInfo, invQuantOffset, testOffset[component].offset);
722
37.6k
      dist[component] = getDistortion(bitDepths[CH_C], typeIdc, testOffset[component].typeAuxInfo, invQuantOffset, blkStats[ctuRsAddr][component][typeIdc]);
723
37.6k
      m_CABACEstimator->sao_offset_pars( testOffset[component], component, sliceEnabled[component], bitDepths[CH_C] );
724
37.6k
      const uint64_t currentFracBits = m_CABACEstimator->getEstFracBits();
725
37.6k
      cost += dist[component] + (m_lambda[component] * FRAC_BITS_SCALE * (currentFracBits - previousFracBits));
726
37.6k
      previousFracBits = currentFracBits;
727
37.6k
    }
728
729
18.8k
    if(cost < minCost)
730
1
    {
731
1
      minCost = cost;
732
3
      for(uint32_t componentIndex = COMP_Cb; componentIndex < numberOfComponents; componentIndex++)
733
2
      {
734
2
        modeDist[componentIndex]  = dist[componentIndex];
735
2
        modeParam[componentIndex] = testOffset[componentIndex];
736
2
      }
737
1
    }
738
739
18.8k
  } // SAO_TYPE loop
740
741
  //----- re-gen rate & normalized cost----//
742
3.76k
  modeNormCost = 0;
743
15.0k
  for(uint32_t componentIndex = COMP_Y; componentIndex < numberOfComponents; componentIndex++)
744
11.3k
  {
745
11.3k
    modeNormCost += (double)modeDist[componentIndex] / m_lambda[componentIndex];
746
11.3k
  }
747
748
3.76k
  m_CABACEstimator->getCtx() = SAOCtx( ctxStartBlk );
749
3.76k
  m_CABACEstimator->resetBits();
750
3.76k
  m_CABACEstimator->sao_block_pars( modeParam, bitDepths, sliceEnabled, (mergeList[SAO_MERGE_LEFT]!= NULL), (mergeList[SAO_MERGE_ABOVE]!= NULL), false );
751
3.76k
  modeNormCost += FRAC_BITS_SCALE * m_CABACEstimator->getEstFracBits();
752
3.76k
}
753
754
void EncSampleAdaptiveOffset::deriveModeMergeRDO(const BitDepths &bitDepths, int ctuRsAddr, SAOBlkParam* mergeList[NUM_SAO_MERGE_TYPES], const bool* sliceEnabled, const std::vector<SAOStatData**>& blkStats, SAOBlkParam& modeParam, double& modeNormCost )
755
3.76k
{
756
3.76k
  modeNormCost = MAX_DOUBLE;
757
758
3.76k
  double cost;
759
3.76k
  SAOBlkParam testBlkParam;
760
3.76k
  const int numberOfComponents = m_numberOfComponents;
761
762
3.76k
  const TempCtx ctxStart  ( m_CtxCache, SAOCtx( m_CABACEstimator->getCtx() ) );
763
3.76k
  TempCtx       ctxBest   ( m_CtxCache );
764
765
11.2k
  for(int mergeType=0; mergeType< NUM_SAO_MERGE_TYPES; mergeType++)
766
7.53k
  {
767
7.53k
    if(mergeList[mergeType] == NULL)
768
4.19k
    {
769
4.19k
      continue;
770
4.19k
    }
771
772
3.34k
    testBlkParam = *(mergeList[mergeType]);
773
    //normalized distortion
774
3.34k
    double normDist=0;
775
13.3k
    for(int compIdx = 0; compIdx < numberOfComponents; compIdx++)
776
10.0k
    {
777
10.0k
      testBlkParam[compIdx].modeIdc = SAO_MODE_MERGE;
778
10.0k
      testBlkParam[compIdx].typeIdc = mergeType;
779
780
10.0k
      SAOOffset& mergedOffsetParam = (*(mergeList[mergeType]))[compIdx];
781
782
10.0k
      if( mergedOffsetParam.modeIdc != SAO_MODE_OFF)
783
11
      {
784
        //offsets have been reconstructed. Don't call inversed quantization function.
785
11
        normDist += (((double)getDistortion(bitDepths[toChannelType(ComponentID(compIdx))], mergedOffsetParam.typeIdc, mergedOffsetParam.typeAuxInfo, mergedOffsetParam.offset, blkStats[ctuRsAddr][compIdx][mergedOffsetParam.typeIdc]))
786
11
                       /m_lambda[compIdx] );
787
11
      }
788
10.0k
    }
789
790
    //rate
791
3.34k
    m_CABACEstimator->getCtx() = SAOCtx( ctxStart );
792
3.34k
    m_CABACEstimator->resetBits();
793
3.34k
    m_CABACEstimator->sao_block_pars( testBlkParam, bitDepths, sliceEnabled, (mergeList[SAO_MERGE_LEFT]!= NULL), (mergeList[SAO_MERGE_ABOVE]!= NULL), false );
794
3.34k
    double rate = FRAC_BITS_SCALE * m_CABACEstimator->getEstFracBits();
795
3.34k
    cost = normDist+rate;
796
797
3.34k
    if(cost < modeNormCost)
798
2.56k
    {
799
2.56k
      modeNormCost = cost;
800
2.56k
      modeParam    = testBlkParam;
801
2.56k
      ctxBest      = SAOCtx( m_CABACEstimator->getCtx() );
802
2.56k
    }
803
3.34k
  }
804
3.76k
  if( modeNormCost < MAX_DOUBLE )
805
2.56k
  {
806
2.56k
    m_CABACEstimator->getCtx() = SAOCtx( ctxBest );
807
2.56k
  }
808
3.76k
}
809
810
void EncSampleAdaptiveOffset::getBlkStats(const ComponentID compIdx, const int channelBitDepth, SAOStatData* statsDataTypes
811
                        , Pel* srcBlk, Pel* orgBlk, int srcStride, int orgStride, int width, int height
812
                        , bool isLeftAvail,  bool isRightAvail, bool isAboveAvail, bool isBelowAvail, bool isAboveLeftAvail, bool isAboveRightAvail )
813
11.3k
{
814
11.3k
  int x, startX, startY, endX, endY, edgeType, firstLineStartX, firstLineEndX;
815
11.3k
  int64_t *diff, *count;
816
11.3k
  Pel* srcLine, *orgLine;
817
11.3k
  const int skipLinesR = compIdx == COMP_Y ? 5 : 3;
818
11.3k
  const int skipLinesB = compIdx == COMP_Y ? 4 : 2;
819
820
67.7k
  for(int typeIdx=0; typeIdx< NUM_SAO_NEW_TYPES; typeIdx++)
821
56.4k
  {
822
56.4k
    SAOStatData& statsData= statsDataTypes[typeIdx];
823
56.4k
    statsData.reset();
824
56.4k
    srcLine = srcBlk;
825
56.4k
    orgLine = orgBlk;
826
56.4k
    diff    = statsData.diff;
827
56.4k
    count   = statsData.count;
828
56.4k
    switch(typeIdx)
829
56.4k
    {
830
11.3k
    case SAO_TYPE_EO_0:
831
11.3k
      {
832
11.3k
        endY   =  isBelowAvail ? (height - skipLinesB) : height;
833
11.3k
        startX = (isLeftAvail  ? 0 : 1);
834
11.3k
        endX   = (isRightAvail ? (width - skipLinesR) : (width - 1));
835
11.3k
        calcSaoStatisticsEo0(width,startX,endX,endY,srcLine,orgLine,srcStride,orgStride,count,diff);
836
11.3k
      }
837
11.3k
      break;
838
11.3k
    case SAO_TYPE_EO_90:
839
11.3k
      {
840
11.3k
        int8_t *signUpLine = &m_signLineBuf1[0];
841
11.3k
        startX = 0;
842
11.3k
        startY = isAboveAvail ? 0 : 1;
843
11.3k
        endX   = (isRightAvail ? (width - skipLinesR) : width);
844
11.3k
        endY   = isBelowAvail ? (height - skipLinesB) : (height - 1);
845
11.3k
        if (!isAboveAvail)
846
6.13k
        {
847
6.13k
          srcLine += srcStride;
848
6.13k
          orgLine += orgStride;
849
6.13k
        }
850
11.3k
        calcSaoStatisticsEo90(width,endX,startY,endY,srcLine,orgLine,srcStride,orgStride,count,diff,signUpLine);
851
11.3k
      }
852
11.3k
      break;
853
11.3k
    case SAO_TYPE_EO_135:
854
11.3k
      {
855
11.3k
        diff +=2;
856
11.3k
        count+=2;
857
11.3k
        int8_t *signUpLine, *signDownLine;
858
11.3k
        signUpLine  = &m_signLineBuf1[0];
859
11.3k
        signDownLine= &m_signLineBuf2[0];
860
11.3k
        startX = isLeftAvail  ? 0 : 1;
861
11.3k
        endX   = isRightAvail ? (width - skipLinesR): (width - 1);
862
11.3k
        endY   = isBelowAvail ? (height - skipLinesB) : (height - 1);
863
        //prepare 2nd line's upper sign
864
11.3k
        Pel* srcLineBelow = srcLine + srcStride;
865
640k
        for (x=startX; x<endX+1; x++)
866
629k
        {
867
629k
          signUpLine[x] = (int8_t)sgn(srcLineBelow[x] - srcLine[x-1]);
868
629k
        }
869
        //1st line
870
11.3k
        Pel* srcLineAbove = srcLine - srcStride;
871
11.3k
        firstLineStartX = isAboveLeftAvail ? 0    : 1;
872
11.3k
        firstLineEndX   = isAboveAvail     ? endX : 1;
873
298k
        for(x=firstLineStartX; x<firstLineEndX; x++)
874
286k
        {
875
286k
          edgeType = sgn(srcLine[x] - srcLineAbove[x-1]) - signUpLine[x+1];
876
286k
          diff [edgeType] += (orgLine[x] - srcLine[x]);
877
286k
          count[edgeType] ++;
878
286k
        }
879
11.3k
        srcLine  += srcStride;
880
11.3k
        orgLine  += orgStride;
881
11.3k
        calcSaoStatisticsEo135(width,startX,endX,endY,srcLine,orgLine,srcStride,orgStride,count,diff,signUpLine,signDownLine);
882
11.3k
      }
883
11.3k
      break;
884
11.3k
    case SAO_TYPE_EO_45:
885
11.3k
      {
886
11.3k
        diff +=2;
887
11.3k
        count+=2;
888
11.3k
        int8_t *signUpLine = &m_signLineBuf1[1];
889
890
11.3k
        startX = isLeftAvail  ? 0 : 1;
891
11.3k
        endX   = isRightAvail ? (width - skipLinesR) : (width - 1);
892
11.3k
        endY   = isBelowAvail ? (height - skipLinesB) : (height - 1);
893
894
        //prepare 2nd line upper sign
895
11.3k
        Pel* srcLineBelow = srcLine + srcStride;
896
640k
        for (x=startX-1; x<endX; x++)
897
629k
        {
898
629k
          signUpLine[x] = (int8_t)sgn(srcLineBelow[x] - srcLine[x+1]);
899
629k
        }
900
        //first line
901
11.3k
        Pel* srcLineAbove = srcLine - srcStride;
902
11.3k
        firstLineStartX = isAboveAvail ? startX : endX;
903
11.3k
        firstLineEndX   = (!isRightAvail && isAboveRightAvail) ? width : endX;
904
298k
        for(x=firstLineStartX; x<firstLineEndX; x++)
905
286k
        {
906
286k
          edgeType = sgn(srcLine[x] - srcLineAbove[x+1]) - signUpLine[x-1];
907
286k
          diff [edgeType] += (orgLine[x] - srcLine[x]);
908
286k
          count[edgeType] ++;
909
286k
        }
910
11.3k
        srcLine += srcStride;
911
11.3k
        orgLine += orgStride;
912
11.3k
        calcSaoStatisticsEo45(width,startX,endX,endY,srcLine,orgLine,srcStride,orgStride,count,diff,signUpLine);
913
11.3k
      }
914
11.3k
      break;
915
11.3k
    case SAO_TYPE_BO:
916
11.3k
      {
917
11.3k
        startX = 0;
918
11.3k
        endX   = isRightAvail ? (width - skipLinesR) : width;
919
11.3k
        endY   = isBelowAvail ? (height- skipLinesB) : height;
920
11.3k
        calcSaoStatisticsBo(width,endX,endY,srcLine,orgLine,srcStride,orgStride,channelBitDepth,count,diff);
921
11.3k
      }
922
11.3k
      break;
923
0
    default:
924
0
      {
925
0
        THROW("Not a supported SAO type");
926
0
      }
927
56.4k
    }
928
56.4k
  }
929
11.3k
}
930
931
void EncSampleAdaptiveOffset::deriveLoopFilterBoundaryAvailibility(CodingStructure& cs, const Position& pos, bool& isLeftAvail, bool& isAboveAvail, bool& isAboveLeftAvail) const
932
3.76k
{
933
3.76k
  const bool isLoopFiltAcrossSlicePPS = cs.pps->loopFilterAcrossSlicesEnabled;
934
3.76k
  const bool isLoopFiltAcrossTilePPS = cs.pps->loopFilterAcrossTilesEnabled;
935
936
3.76k
  const int width = cs.pcv->maxCUSize;
937
3.76k
  const int height = cs.pcv->maxCUSize;
938
3.76k
  const CodingUnit* cuCurr = cs.getCU(pos, CH_L, TREE_D);
939
3.76k
  const int ctuX = pos.x >> cs.pcv->maxCUSizeLog2;
940
3.76k
  const int ctuY = pos.y >> cs.pcv->maxCUSizeLog2;
941
3.76k
  const PPS* pps = cs.slice->pps;
942
3.76k
  const CodingUnit* cuLeft      = ctuX > 0 &&             pps->canFilterCtuBdry( ctuX, ctuY, -1, 0 ) ? cs.getCU(pos.offset(-width, 0), CH_L, TREE_D): nullptr;
943
3.76k
  const CodingUnit* cuAbove     = ctuY > 0 &&             pps->canFilterCtuBdry( ctuX, ctuY, 0, -1 ) ? cs.getCU(pos.offset(0, -height), CH_L, TREE_D): nullptr;
944
3.76k
  const CodingUnit* cuAboveLeft = ctuY > 0 && ctuX > 0 && pps->canFilterCtuBdry( ctuX, ctuY, -1,-1 ) ? cs.getCU(pos.offset(-width, -height), CH_L, TREE_D): nullptr;
945
946
3.76k
  if (!isLoopFiltAcrossSlicePPS)
947
0
  {
948
0
    isLeftAvail      = (cuLeft == NULL)      ? false : CU::isSameSlice(*cuCurr, *cuLeft);
949
0
    isAboveAvail     = (cuAbove == NULL)     ? false : CU::isSameSlice(*cuCurr, *cuAbove);
950
0
    isAboveLeftAvail = (cuAboveLeft == NULL) ? false : CU::isSameSlice(*cuCurr, *cuAboveLeft);
951
0
  }
952
3.76k
  else
953
3.76k
  {
954
3.76k
    isLeftAvail      = (cuLeft != NULL);
955
3.76k
    isAboveAvail     = (cuAbove != NULL);
956
3.76k
    isAboveLeftAvail = (cuAboveLeft != NULL);
957
3.76k
  }
958
959
3.76k
  if (!isLoopFiltAcrossTilePPS)
960
0
  {
961
0
    isLeftAvail      = (!isLeftAvail)      ? false : CU::isSameTile(*cuCurr, *cuLeft);
962
0
    isAboveAvail     = (!isAboveAvail)     ? false : CU::isSameTile(*cuCurr, *cuAbove);
963
0
    isAboveLeftAvail = (!isAboveLeftAvail) ? false : CU::isSameTile(*cuCurr, *cuAboveLeft);
964
0
  }
965
966
967
3.76k
  SubPic curSubPic = cs.pps->getSubPicFromCU(*cuCurr);
968
3.76k
  if (!curSubPic.loopFilterAcrossSubPicEnabled )
969
0
  {
970
0
    isLeftAvail      = (!isLeftAvail)      ? false : CU::isSameSubPic(*cuCurr, *cuLeft);
971
0
    isAboveAvail     = (!isAboveAvail)     ? false : CU::isSameSubPic(*cuCurr, *cuAbove);
972
0
    isAboveLeftAvail = (!isAboveLeftAvail) ? false : CU::isSameSubPic(*cuCurr, *cuAboveLeft);
973
0
  }
974
975
3.76k
}
976
977
} // namespace vvenc
978
979
//! \}
980