Coverage Report

Created: 2026-07-16 06:32

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/work/vvenc/source/Lib/CommonLib/Quant.cpp
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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
8
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,
13
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,
17
     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,
33
EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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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
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POSSIBILITY OF SUCH DAMAGE.
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------------------------------------------------------------------------------------------- */
42
43
44
/** \file     Quant.cpp
45
    \brief    transform and quantization class
46
*/
47
48
#include "Quant.h"
49
#include "UnitTools.h"
50
#include "ContextModelling.h"
51
#include "CodingStructure.h"
52
#include "dtrace_buffer.h"
53
54
#include <stdlib.h>
55
#include <memory.h>
56
57
//! \ingroup CommonLib
58
//! \{
59
60
namespace vvenc {
61
62
// ====================================================================================================================
63
// Constants
64
// ====================================================================================================================
65
66
67
// ====================================================================================================================
68
// QpParam constructor
69
// ====================================================================================================================
70
 
71
QpParam::QpParam(const TransformUnit& tu, const ComponentID &compID, const bool allowACTQpoffset)
72
6.47M
{
73
6.47M
  const ChannelType chType = toChannelType( compID );
74
6.47M
  const SPS        &sps    = *tu.cu->cs->sps;
75
6.47M
  const int     qpBdOffset = sps.qpBDOffset[chType];
76
6.47M
  const bool useJQP        = isChroma( compID ) && abs( TU::getICTMode( tu ) ) == 2;
77
6.47M
  const ComponentID jCbCr  = useJQP ? COMP_JOINT_CbCr : compID;
78
  
79
6.47M
        int chromaQpOffset = 0;
80
81
6.47M
  if( isChroma( compID ) )
82
6.25M
  {
83
6.25M
    const PPS &pps  = *tu.cu->slice->pps;
84
6.25M
    chromaQpOffset  = pps.chromaQpOffset              [jCbCr];
85
6.25M
    chromaQpOffset += tu.cu->slice->sliceChromaQpDelta[jCbCr];
86
6.25M
    chromaQpOffset += pps.getChromaQpOffsetListEntry( tu.cu->chromaQpAdj ).u.offset[int( jCbCr ) - 1];
87
6.25M
  }
88
  
89
6.47M
  int baseQp;
90
6.47M
  int qpy        = tu.cu->qp;
91
  //bool skip      = tu.mtsIdx[compID] == MTS_SKIP;
92
93
6.47M
  if( isLuma( compID ) )
94
220k
  {
95
220k
    baseQp = tu.cu->qp + qpBdOffset;
96
220k
  }
97
6.25M
  else
98
6.25M
  {
99
6.25M
    int qpi = Clip3( -qpBdOffset, MAX_QP, qpy );
100
6.25M
    baseQp  = sps.chromaQpMappingTable.getMappedChromaQpValue( jCbCr, qpi );
101
6.25M
    baseQp  = Clip3( -qpBdOffset, MAX_QP, baseQp + chromaQpOffset ) + qpBdOffset;
102
6.25M
  }
103
104
6.47M
  if( allowACTQpoffset && tu.cu->colorTransform )
105
0
  {
106
0
    baseQp += DELTA_QP_ACT[jCbCr];
107
0
  }
108
109
6.47M
  baseQp = Clip3( 0, MAX_QP + qpBdOffset, baseQp );
110
111
  //if( !skip )
112
6.47M
  {
113
6.47M
    Qps [0] = baseQp;
114
6.47M
    pers[0] = baseQp / 6;
115
6.47M
    rems[0] = baseQp % 6;
116
6.47M
  }
117
  //else
118
6.47M
  {
119
6.47M
    int internalMinusInputBitDepth = sps.internalMinusInputBitDepth[chType];
120
6.47M
    int baseQpTS           = std::max( baseQp, 4 + 6 * internalMinusInputBitDepth );
121
122
6.47M
    Qps [1] = baseQpTS;
123
6.47M
    pers[1] = baseQpTS / 6;
124
6.47M
    rems[1] = baseQpTS % 6;
125
6.47M
  }
126
6.47M
}
127
128
129
// ====================================================================================================================
130
// Quant class member functions
131
// ====================================================================================================================
132
static void QuantCore(const TransformUnit tu, const ComponentID compID, const CCoeffBuf& piCoef,CoeffSigBuf piQCoef,TCoeff &uiAbsSum, int &lastScanPos,TCoeff *deltaU,const int defaultQuantisationCoefficient,const int iQBits,const int64_t iAdd,const TCoeff entropyCodingMinimum,const TCoeff entropyCodingMaximum,const bool signHiding, const TCoeff m_thrVal)
133
6.04k
{
134
6.04k
  CoeffCodingContext cctx( tu, compID, signHiding );
135
136
6.04k
  const CompArea &rect      = tu.blocks[compID];
137
6.04k
  const uint32_t uiWidth    = rect.width;
138
6.04k
  const uint32_t uiHeight   = rect.height;
139
140
  /* for 422 chroma blocks, the effective scaling applied during transformation is not a power of 2, hence it cannot be
141
  * implemented as a bit-shift (the quantised result will be sqrt(2) * larger than required). Alternatively, adjust the
142
  * uiLog2TrSize applied in iTransformShift, such that the result is 1/sqrt(2) the required result (i.e. smaller)
143
  * Then a QP+3 (sqrt(2)) or QP-3 (1/sqrt(2)) method could be used to get the required result
144
  */
145
146
6.04k
  const uint32_t log2CGSize         = cctx.log2CGSize();
147
148
6.04k
  uiAbsSum = 0;
149
150
6.04k
  const int iCGSize   = 1 << log2CGSize;
151
152
6.04k
  const uint32_t lfnstIdx = tu.cu->lfnstIdx;
153
6.04k
  const int iCGNum   = lfnstIdx > 0 ? 1 : std::min<int>(JVET_C0024_ZERO_OUT_TH, uiWidth) * std::min<int>(JVET_C0024_ZERO_OUT_TH, uiHeight) >> cctx.log2CGSize();
154
6.04k
  int       iScanPos = ( iCGNum << log2CGSize ) - 1;
155
156
6.04k
  if( lfnstIdx > 0 && ( ( uiWidth == 4 && uiHeight == 4 ) || ( uiWidth == 8 && uiHeight == 8 ) ) )
157
0
  {
158
0
    iScanPos = 7;
159
0
  }
160
161
  // Find first non-zero coeff
162
34.6k
  for( ; iScanPos > 0; iScanPos-- )
163
33.1k
  {
164
33.1k
    uint32_t uiBlkPos = cctx.blockPos( iScanPos );
165
33.1k
    if( piCoef.buf[uiBlkPos] )
166
4.50k
      break;
167
33.1k
  }
168
169
  //////////////////////////////////////////////////////////////////////////
170
  //  Loop over sub-sets (coefficient groups)
171
  //////////////////////////////////////////////////////////////////////////
172
  
173
6.04k
  TCoeff thres = 0, useThres = 0;
174
  
175
6.04k
  if( iQBits )
176
6.04k
    thres = TCoeff( ( int64_t( m_thrVal ) << ( iQBits - 1 ) ) );
177
0
  else
178
0
    thres = TCoeff( ( int64_t( m_thrVal >> 1 ) << iQBits ) );
179
180
6.04k
  useThres = thres / ( defaultQuantisationCoefficient << 2 );
181
182
6.04k
  const bool is4x4sbb = log2CGSize == 4 && cctx.log2CGWidth() == 2;
183
184
6.04k
  int subSetId = iScanPos >> log2CGSize;
185
7.03k
  for( ; subSetId >= 1; subSetId-- )
186
987
  {
187
987
    if( is4x4sbb && iScanPos >= 16 )
188
0
    {
189
0
      int  iScanPosinCG = iScanPos & ( iCGSize - 1 );
190
0
      bool allSmaller   = true;
191
192
0
      for( int xScanPosinCG = iScanPosinCG, xScanPos = iScanPos; allSmaller && xScanPosinCG >= 0; xScanPosinCG--, xScanPos-- )
193
0
      {
194
0
        const uint32_t uiBlkPos = cctx.blockPos( xScanPos );
195
0
        allSmaller &= abs( piCoef.buf[uiBlkPos] ) <= useThres;
196
0
      }
197
198
0
      if( allSmaller )
199
0
      {
200
0
        iScanPos    -= iScanPosinCG + 1;
201
0
        continue;
202
0
      }
203
0
      else
204
0
      {
205
0
        break;
206
0
      }
207
0
    }
208
987
  }
209
210
6.04k
  const int qBits8 = iQBits - 8;
211
6.04k
  piQCoef.memset( 0 );
212
213
95.4k
  for( int currPos = 0; currPos <= iScanPos; currPos++ )
214
89.4k
  {
215
89.4k
    const int uiBlockPos  = cctx.blockPos( currPos );
216
89.4k
    const TCoeff iLevel   = piCoef.buf[uiBlockPos];
217
89.4k
    const TCoeff iSign    = (iLevel < 0 ? -1: 1);
218
219
89.4k
    const int64_t  tmpLevel = (int64_t)abs(iLevel) * defaultQuantisationCoefficient;
220
89.4k
    const TCoeff quantisedMagnitude = TCoeff((tmpLevel + iAdd ) >> iQBits);
221
89.4k
    deltaU[uiBlockPos] = (TCoeff)((tmpLevel - ((int64_t)quantisedMagnitude<<iQBits) )>> qBits8);
222
223
89.4k
    uiAbsSum += quantisedMagnitude;
224
89.4k
    const TCoeff quantisedCoefficient = quantisedMagnitude * iSign;
225
226
89.4k
    piQCoef.buf[uiBlockPos] = Clip3<TCoeff>( entropyCodingMinimum, entropyCodingMaximum, quantisedCoefficient );
227
89.4k
  } // for n
228
229
6.04k
  lastScanPos = iScanPos;
230
6.04k
}
231
232
static void DeQuantCore(const int maxX,const int maxY,const int scale,const TCoeffSig* const piQCoef,const size_t piQCfStride,TCoeff   *const piCoef,const int rightShift,const int inputMaximum,const TCoeff transformMaximum)
233
49.3k
{
234
49.3k
  const int inputMinimum = -(inputMaximum+1);
235
49.3k
  const TCoeff transformMinimum = -(transformMaximum+1);
236
49.3k
  if (rightShift>0)
237
39.6k
  {
238
39.6k
    const Intermediate_Int iAdd = (Intermediate_Int) 1 << (rightShift - 1);
239
376k
    for( int y = 0, n = 0; y <= maxY; y++)
240
336k
    {
241
3.61M
      for( int x = 0; x <= maxX; x++, n++ )
242
3.28M
      {
243
3.28M
        const TCoeff           clipQCoef = TCoeff(Clip3<Intermediate_Int>(inputMinimum, inputMaximum, piQCoef[x + y * piQCfStride]));
244
3.28M
        Intermediate_Int iCoeffQ   = (Intermediate_Int(clipQCoef) * scale + iAdd) >> rightShift;
245
3.28M
        piCoef[n] = TCoeff(Clip3<Intermediate_Int>(transformMinimum,transformMaximum,iCoeffQ));
246
3.28M
      }
247
336k
    }
248
39.6k
  }
249
9.71k
  else  // rightshift <0
250
9.71k
  {
251
9.71k
    int leftShift = -rightShift;
252
114k
    for( int y = 0, n = 0; y <= maxY; y++)
253
104k
    {
254
1.26M
      for( int x = 0; x <= maxX; x++, n++ )
255
1.15M
      {
256
1.15M
        const TCoeff           clipQCoef = TCoeff(Clip3<Intermediate_Int>(inputMinimum, inputMaximum, piQCoef[x + y * piQCfStride]));
257
1.15M
        const Intermediate_Int iCoeffQ   = (Intermediate_Int(clipQCoef) * scale) * (1 << leftShift);
258
1.15M
        piCoef[n] = TCoeff(Clip3<Intermediate_Int>(transformMinimum,transformMaximum,iCoeffQ));
259
1.15M
      }
260
104k
    }
261
9.71k
  }
262
49.3k
}
263
264
static bool needRdoqCore( const TCoeff* pCoeff, size_t numCoeff, int quantCoeff, int64_t offset, int shift )
265
0
{
266
0
  for( int uiBlockPos = 0; uiBlockPos < numCoeff; uiBlockPos++ )
267
0
  {
268
0
    const TCoeff   iLevel = pCoeff[uiBlockPos];
269
0
    const int64_t  tmpLevel = ( int64_t ) std::abs( iLevel ) * quantCoeff;
270
0
    const TCoeff quantisedMagnitude = TCoeff( ( tmpLevel + offset ) >> shift );
271
272
0
    if( quantisedMagnitude != 0 )
273
0
    {
274
0
      return true;
275
0
    }
276
0
  } // for n
277
0
  return false;
278
0
}
279
280
281
19.4k
Quant::Quant( const Quant* other, bool useScalingLists ) : m_RDOQ( 0 ), m_useRDOQTS( false ), m_dLambda( 0.0 )
282
19.4k
{
283
19.4k
  xInitScalingList( other, useScalingLists );
284
19.4k
  xDeQuant  = DeQuantCore;
285
19.4k
  xQuant    = QuantCore;
286
19.4k
  xNeedRdoq = needRdoqCore;
287
#if defined( TARGET_SIMD_X86 ) && ENABLE_SIMD_OPT_QUANT
288
  initQuantX86();
289
#endif
290
291
19.4k
}
292
293
Quant::~Quant()
294
19.4k
{
295
19.4k
  xDestroyScalingList();
296
19.4k
}
297
298
void invResDPCM( const TransformUnit& tu, const ComponentID compID, CoeffSigBuf& dstBuf )
299
49.3k
{
300
49.3k
  const CompArea&    rect   = tu.blocks[compID];
301
49.3k
  const int          wdt    = rect.width;
302
49.3k
  const int          hgt    = rect.height;
303
49.3k
  const CCoeffSigBuf coeffs = tu.getCoeffs(compID);
304
305
49.3k
  const int      maxLog2TrDynamicRange = tu.cs->sps->getMaxLog2TrDynamicRange();
306
49.3k
  const TCoeff   inputMinimum          = -(1 << maxLog2TrDynamicRange);
307
49.3k
  const TCoeff   inputMaximum          =  (1 << maxLog2TrDynamicRange) - 1;
308
309
49.3k
  const TCoeffSig* coef = &coeffs.buf[0];
310
49.3k
        TCoeffSig* dst  = &dstBuf.buf[0];
311
312
49.3k
  if ( tu.cu->bdpcmM[toChannelType(compID)] == 1)
313
563
  {
314
8.05k
    for( int y = 0; y < hgt; y++ )
315
7.49k
    {
316
7.49k
      dst[0] = coef[0];
317
119k
      for( int x = 1; x < wdt; x++ )
318
112k
      {
319
112k
        dst[x] = Clip3(inputMinimum, inputMaximum, TCoeff( dst[x - 1] ) + TCoeff( coef[x] ));
320
112k
      }
321
7.49k
      coef += coeffs.stride;
322
7.49k
      dst += dstBuf.stride;
323
7.49k
    }
324
563
  }
325
48.8k
  else
326
48.8k
  {
327
514k
    for( int x = 0; x < wdt; x++ )
328
465k
    {
329
465k
      dst[x] = coef[x];
330
465k
    }
331
434k
    for( int y = 0; y < hgt - 1; y++ )
332
385k
    {
333
4.23M
      for( int x = 0; x < wdt; x++ )
334
3.85M
      {
335
3.85M
        dst[dstBuf.stride + x] = Clip3(inputMinimum, inputMaximum, TCoeff( dst[x] ) + TCoeff( coef[coeffs.stride + x] ));
336
3.85M
      }
337
385k
      coef += coeffs.stride;
338
385k
      dst += dstBuf.stride;
339
385k
    }
340
48.8k
  }
341
49.3k
}
342
343
void fwdResDPCM( TransformUnit& tu, const ComponentID compID )
344
6.04k
{
345
6.04k
  const CompArea& rect   = tu.blocks[compID];
346
6.04k
  const int       wdt    = rect.width;
347
6.04k
  const int       hgt    = rect.height;
348
6.04k
  CoeffSigBuf     coeffs = tu.getCoeffs(compID);
349
350
6.04k
  TCoeffSig* coef = &coeffs.buf[0];
351
6.04k
  if (tu.cu->bdpcmM[toChannelType(compID)] == 1)
352
0
  {
353
0
    for( int y = 0; y < hgt; y++ )
354
0
    {
355
0
      for( int x = wdt - 1; x > 0; x-- )
356
0
      {
357
0
        coef[x] -= coef[x - 1];
358
0
      }
359
0
      coef += coeffs.stride;
360
0
    }
361
0
  }
362
6.04k
  else
363
6.04k
  {
364
6.04k
    coef += coeffs.stride * (hgt - 1);
365
12.0k
    for( int y = 0; y < hgt - 1; y++ )
366
6.04k
    {
367
65.0k
      for ( int x = 0; x < wdt; x++ )
368
59.0k
      {
369
59.0k
        coef[x] -= coef[x - coeffs.stride];
370
59.0k
      }
371
6.04k
      coef -= coeffs.stride;
372
6.04k
    }
373
6.04k
  }
374
6.04k
}
375
376
// To minimize the distortion only. No rate is considered.
377
void Quant::xSignBitHidingHDQ( TCoeffSig* pQCoef, const TCoeff* pCoef, TCoeff* deltaU, const CoeffCodingContext& cctx, int& lastScanPos, const int maxLog2TrDynamicRange )
378
0
{
379
0
  const uint32_t groupSize = 1 << cctx.log2CGSize();
380
381
0
  const TCoeff entropyCodingMinimum = -(1 << maxLog2TrDynamicRange);
382
0
  const TCoeff entropyCodingMaximum =  (1 << maxLog2TrDynamicRange) - 1;
383
384
0
  int lastCG = -1;
385
0
  int absSum = 0 ;
386
0
  int n ;
387
388
0
  for( int subSet = lastScanPos >> cctx.log2CGSize(); subSet >= 0; subSet-- )
389
0
  {
390
0
    int  subPos = subSet << cctx.log2CGSize();
391
0
    int  firstNZPosInCG=groupSize , lastNZPosInCG=-1 ;
392
0
    absSum = 0 ;
393
394
0
    for(n = groupSize-1; n >= 0; --n )
395
0
    {
396
0
      if( pQCoef[ cctx.blockPos( n + subPos ) ] )
397
0
      {
398
0
        lastNZPosInCG = n;
399
0
        break;
400
0
      }
401
0
    }
402
403
0
    for(n = 0; n <groupSize; n++ )
404
0
    {
405
0
      if( pQCoef[ cctx.blockPos( n + subPos ) ] )
406
0
      {
407
0
        firstNZPosInCG = n;
408
0
        break;
409
0
      }
410
0
    }
411
412
0
    for(n = firstNZPosInCG; n <=lastNZPosInCG; n++ )
413
0
    {
414
0
      absSum += int(pQCoef[ cctx.blockPos( n + subPos ) ]);
415
0
    }
416
417
0
    if(lastNZPosInCG>=0 && lastCG==-1)
418
0
    {
419
0
      lastCG = 1 ;
420
0
    }
421
422
0
    if( lastNZPosInCG-firstNZPosInCG>=SBH_THRESHOLD )
423
0
    {
424
0
      uint32_t signbit = (pQCoef[cctx.blockPos(subPos+firstNZPosInCG)]>0?0:1) ;
425
0
      if( signbit!=(absSum&0x1) )  //compare signbit with sum_parity
426
0
      {
427
0
        TCoeff curCost    = std::numeric_limits<TCoeff>::max();
428
0
        TCoeff minCostInc = std::numeric_limits<TCoeff>::max();
429
0
        int minPos =-1, finalChange=0, curChange=0, minScanPos = -1;
430
431
0
        for( n = (lastCG==1?lastNZPosInCG:groupSize-1) ; n >= 0; --n )
432
0
        {
433
0
          uint32_t blkPos   = cctx.blockPos( n+subPos );
434
0
          if(pQCoef[ blkPos ] != 0 )
435
0
          {
436
0
            if(deltaU[blkPos]>0)
437
0
            {
438
0
              curCost = - deltaU[blkPos];
439
0
              curChange=1 ;
440
0
            }
441
0
            else
442
0
            {
443
              //curChange =-1;
444
0
              if(n==firstNZPosInCG && abs(pQCoef[blkPos])==1)
445
0
              {
446
0
                curCost = std::numeric_limits<TCoeff>::max();
447
0
              }
448
0
              else
449
0
              {
450
0
                curCost = deltaU[blkPos];
451
0
                curChange =-1;
452
0
              }
453
0
            }
454
0
          }
455
0
          else
456
0
          {
457
0
            if(n<firstNZPosInCG)
458
0
            {
459
0
              uint32_t thisSignBit = (pCoef[blkPos]>=0?0:1);
460
0
              if(thisSignBit != signbit )
461
0
              {
462
0
                curCost = std::numeric_limits<TCoeff>::max();
463
0
              }
464
0
              else
465
0
              {
466
0
                curCost = - (deltaU[blkPos])  ;
467
0
                curChange = 1 ;
468
0
              }
469
0
            }
470
0
            else
471
0
            {
472
0
              curCost = - (deltaU[blkPos])  ;
473
0
              curChange = 1 ;
474
0
            }
475
0
          }
476
477
0
          if( curCost<minCostInc)
478
0
          {
479
0
            minCostInc = curCost ;
480
0
            finalChange = curChange ;
481
0
            minPos = blkPos;
482
0
            minScanPos = n + subPos;
483
0
          }
484
0
        } //CG loop
485
486
0
        if(pQCoef[minPos] == entropyCodingMaximum || pQCoef[minPos] == entropyCodingMinimum)
487
0
        {
488
0
          finalChange = -1;
489
0
        }
490
491
0
        if(pCoef[minPos]>=0)
492
0
        {
493
0
          pQCoef[minPos] += finalChange ;
494
0
        }
495
0
        else
496
0
        {
497
0
          pQCoef[minPos] -= finalChange ;
498
0
        }
499
500
        // if changing lastScanPos element to 0, move the pointer to the new lastScanPos element
501
0
        if( minScanPos == lastScanPos && pQCoef[minPos] == 0 )
502
0
        {
503
0
          for( ; lastScanPos >= 0 && pQCoef[cctx.blockPos( lastScanPos )] == 0; lastScanPos-- );
504
0
        }
505
0
        else if( minScanPos > lastScanPos && pQCoef[minPos] != 0 )
506
0
        {
507
0
          lastScanPos = minPos;
508
0
        }
509
0
      } // Hide
510
0
    }
511
0
    if(lastCG==1)
512
0
    {
513
0
      lastCG=0 ;
514
0
    }
515
0
  } // TU loop
516
517
0
  return;
518
0
}
519
520
void Quant::dequant(const TransformUnit& tu,
521
                          CoeffBuf&      dstCoeff,
522
                    const ComponentID    compID,
523
                    const QpParam&       cQP)
524
49.3k
{
525
49.3k
  const SPS       *sps                  = tu.cs->sps;
526
49.3k
  const CompArea  &area                 = tu.blocks[compID];
527
49.3k
  const uint32_t  uiWidth               = area.width;
528
49.3k
  const uint32_t  uiHeight              = area.height;
529
49.3k
  TCoeff *const   piCoef                = dstCoeff.buf;
530
49.3k
  const uint32_t  numSamplesInBlock     = uiWidth * uiHeight;
531
49.3k
  const int       maxLog2TrDynamicRange = sps->getMaxLog2TrDynamicRange();
532
49.3k
  const TCoeff    transformMinimum      = -(1 << maxLog2TrDynamicRange);
533
49.3k
  const TCoeff    transformMaximum      =  (1 << maxLog2TrDynamicRange) - 1;
534
49.3k
  const bool      isTransformSkip       = tu.mtsIdx[compID] == MTS_SKIP;
535
49.3k
  const bool      isLfnstApplied        = tu.cu->lfnstIdx > 0 && (CU::isSepTree(*tu.cu) ? true : isLuma(compID));
536
49.3k
  const bool      enableScalingLists    = getUseScalingList(uiWidth, uiHeight, isTransformSkip, isLfnstApplied);
537
49.3k
  const int       scalingListType       = getScalingListType(tu.cu->predMode, compID);
538
49.3k
  const int       channelBitDepth       = sps->bitDepths[toChannelType(compID)];
539
540
49.3k
  const TCoeffSig *coef     = tu.getCoeffs( compID ).buf;
541
49.3k
  const ptrdiff_t  piStride = tu.getCoeffs( compID ).stride;
542
543
49.3k
  if( tu.cu->bdpcmM[toChannelType( compID )] )
544
49.3k
  {
545
49.3k
    CoeffSigBuf coefBuf( m_tmpBdpcm, uiWidth, uiHeight );
546
49.3k
    invResDPCM( tu, compID, coefBuf );
547
49.3k
    coef      = m_tmpBdpcm;
548
49.3k
  }
549
550
49.3k
  const TCoeffSig  *const piQCoef = coef;
551
49.3k
  CHECK(scalingListType >= SCALING_LIST_NUM, "Invalid scaling list");
552
553
  // Represents scaling through forward transform
554
49.3k
  const int  originalTransformShift = getTransformShift(channelBitDepth, area.size(), maxLog2TrDynamicRange);
555
49.3k
  const bool needSqrtAdjustment     = TU::needsSqrt2Scale( tu, compID );
556
49.3k
  const int  iTransformShift        = originalTransformShift + (needSqrtAdjustment?-1:0);
557
558
49.3k
  const int QP_per = cQP.per(isTransformSkip);
559
49.3k
  const int QP_rem = cQP.rem(isTransformSkip);
560
561
49.3k
  const int  rightShift = (IQUANT_SHIFT - ((isTransformSkip ? 0 : iTransformShift) + QP_per)) + (enableScalingLists ? LOG2_SCALING_LIST_NEUTRAL_VALUE : 0);
562
563
49.3k
  if(enableScalingLists)
564
0
  {
565
    //from the dequantization equation:
566
    //iCoeffQ                         = ((Intermediate_Int(clipQCoef) * piDequantCoef[deQuantIdx]) + iAdd ) >> rightShift
567
    //(sizeof(Intermediate_Int) * 8)  =              inputBitDepth    +    dequantCoefBits                   - rightShift
568
0
    const uint32_t             dequantCoefBits     = 1 + IQUANT_SHIFT + SCALING_LIST_BITS;
569
0
    const uint32_t             targetInputBitDepth = std::min<uint32_t>((maxLog2TrDynamicRange + 1), (((sizeof(Intermediate_Int) * 8) + rightShift) - dequantCoefBits));
570
571
0
    const Intermediate_Int inputMinimum        = -(1 << (targetInputBitDepth - 1));
572
0
    const Intermediate_Int inputMaximum        =  (1 << (targetInputBitDepth - 1)) - 1;
573
574
0
    const uint32_t uiLog2TrWidth  = Log2(uiWidth);
575
0
    const uint32_t uiLog2TrHeight = Log2(uiHeight);
576
0
    int* piDequantCoef            = getDequantCoeff(scalingListType, QP_rem, uiLog2TrWidth, uiLog2TrHeight);
577
578
0
    if(rightShift > 0)
579
0
    {
580
0
      const Intermediate_Int iAdd = (Intermediate_Int) 1 << (rightShift - 1);
581
0
      for( int n = 0; n < numSamplesInBlock; n++ )
582
0
      {
583
0
        const TCoeff           clipQCoef = TCoeff(Clip3<Intermediate_Int>(inputMinimum, inputMaximum, piQCoef[n]));
584
0
        const Intermediate_Int iCoeffQ   = ((Intermediate_Int(clipQCoef) * piDequantCoef[n]) + iAdd ) >> rightShift;
585
0
        piCoef[n] = TCoeff(Clip3<Intermediate_Int>(transformMinimum,transformMaximum,iCoeffQ));
586
0
      }
587
0
    }
588
0
    else
589
0
    {
590
0
      const int leftShift = -rightShift;
591
0
      for( int n = 0; n < numSamplesInBlock; n++ )
592
0
      {
593
0
        const TCoeff           clipQCoef = TCoeff(Clip3<Intermediate_Int>(inputMinimum, inputMaximum, piQCoef[n]));
594
0
        const Intermediate_Int iCoeffQ   = (Intermediate_Int(clipQCoef) * piDequantCoef[n]) << leftShift;
595
0
        piCoef[n] = TCoeff(Clip3<Intermediate_Int>(transformMinimum,transformMaximum,iCoeffQ));
596
0
      }
597
0
    }
598
0
  }
599
49.3k
  else
600
49.3k
  {
601
49.3k
    const int scale     = g_invQuantScales[needSqrtAdjustment?1:0][QP_rem];
602
49.3k
    const int scaleBits = ( IQUANT_SHIFT + 1 );
603
    //from the dequantisation equation:
604
    //iCoeffQ                         = Intermediate_Int((int64_t(clipQCoef) * scale + iAdd) >> rightShift);
605
    //(sizeof(Intermediate_Int) * 8)  =                    inputBitDepth   + scaleBits      - rightShift
606
49.3k
    const uint32_t             targetInputBitDepth = std::min<uint32_t>((maxLog2TrDynamicRange + 1), (((sizeof(Intermediate_Int) * 8) + rightShift) - scaleBits));
607
49.3k
    const Intermediate_Int inputMaximum        =  (1 << (targetInputBitDepth - 1)) - 1;
608
49.3k
    xDeQuant(uiWidth-1,uiHeight-1,scale,piQCoef,piStride,piCoef,rightShift,inputMaximum,transformMaximum);
609
49.3k
  }
610
49.3k
}
611
612
void Quant::init( int rdoq, bool bUseRDOQTS, int thrVal )
613
19.4k
{
614
615
  // TODO: pass to init() a single variable containing (quantization) flags,
616
  //       instead of variables that don't have to do with this class
617
618
19.4k
  m_RDOQ             = rdoq;
619
19.4k
  m_useRDOQTS        = bUseRDOQTS;
620
19.4k
  m_thrVal           = thrVal;
621
19.4k
}
622
623
/** set flat matrix value to quantized coefficient
624
 */
625
void Quant::setFlatScalingList(const int maxLog2TrDynamicRange[MAX_NUM_CH], const BitDepths &bitDepths )
626
19.4k
{
627
19.4k
  if( !m_scalingListEnabled ) return;
628
629
0
  const int minimumQp = 0;
630
0
  const int maximumQp = SCALING_LIST_REM_NUM;
631
632
0
  for(uint32_t sizeX = 0; sizeX < SCALING_LIST_SIZE_NUM; sizeX++)
633
0
  {
634
0
    for(uint32_t sizeY = 0; sizeY < SCALING_LIST_SIZE_NUM; sizeY++)
635
0
    {
636
0
      for(uint32_t list = 0; list < SCALING_LIST_NUM; list++)
637
0
      {
638
0
        for(int qp = minimumQp; qp < maximumQp; qp++)
639
0
        {
640
0
          xSetFlatScalingList( list, sizeX, sizeY, qp );
641
0
        }
642
0
      }
643
0
    }
644
0
  }
645
0
}
646
647
/** set flat matrix value to quantized coefficient
648
 * \param list List ID
649
 * \param size size index
650
 * \param qp Quantization parameter
651
 * \param format chroma format
652
 */
653
void Quant::xSetFlatScalingList(uint32_t list, uint32_t sizeX, uint32_t sizeY, int qp )
654
0
{
655
0
  uint32_t i,num = g_scalingListSizeX[sizeX]*g_scalingListSizeX[sizeY];
656
0
  int *quantcoeff;
657
0
  int *dequantcoeff;
658
659
0
  const bool blockIsNotPowerOf4 = ((Log2(g_scalingListSizeX[sizeX] * g_scalingListSizeX[sizeY])) & 1) == 1;
660
0
  int quantScales    = g_quantScales   [blockIsNotPowerOf4?1:0][qp];
661
0
  int invQuantScales = g_invQuantScales[blockIsNotPowerOf4?1:0][qp] << 4;
662
663
0
  quantcoeff   = getQuantCoeff(list, qp, sizeX, sizeY);
664
0
  dequantcoeff = getDequantCoeff(list, qp, sizeX, sizeY);
665
666
0
  for(i=0;i<num;i++)
667
0
  {
668
0
    *quantcoeff++ = quantScales;
669
0
    *dequantcoeff++ = invQuantScales;
670
0
  }
671
0
}
672
673
674
/** initialization process of scaling list array
675
 */
676
void Quant::xInitScalingList( const Quant* other, bool useScalingLists )
677
19.4k
{
678
19.4k
  m_isScalingListOwner = other == nullptr;
679
19.4k
  m_scalingListEnabled = useScalingLists;
680
681
155k
  for(uint32_t sizeIdX = 0; sizeIdX < SCALING_LIST_SIZE_NUM; sizeIdX++)
682
136k
  {
683
1.08M
    for(uint32_t sizeIdY = 0; sizeIdY < SCALING_LIST_SIZE_NUM; sizeIdY++)
684
953k
    {
685
6.67M
      for(uint32_t qp = 0; qp < SCALING_LIST_REM_NUM; qp++)
686
5.72M
      {
687
40.0M
        for(uint32_t listId = 0; listId < SCALING_LIST_NUM; listId++)
688
34.3M
        {
689
34.3M
          if( m_isScalingListOwner )
690
34.3M
          {
691
34.3M
            const size_t scalingListSize = g_scalingListSizeX[sizeIdX] * g_scalingListSizeX[sizeIdY];
692
693
34.3M
            m_quantCoef   [sizeIdX][sizeIdY][listId][qp] = useScalingLists ? new int[scalingListSize] : nullptr;
694
34.3M
            m_dequantCoef [sizeIdX][sizeIdY][listId][qp] = useScalingLists ? new int[scalingListSize] : nullptr;
695
34.3M
          }
696
0
          else
697
0
          {
698
0
            m_quantCoef   [sizeIdX][sizeIdY][listId][qp] = other->m_quantCoef   [sizeIdX][sizeIdY][listId][qp];
699
0
            m_dequantCoef [sizeIdX][sizeIdY][listId][qp] = other->m_dequantCoef [sizeIdX][sizeIdY][listId][qp];
700
0
          }
701
34.3M
        } // listID loop
702
5.72M
      }
703
953k
    }
704
136k
  }
705
19.4k
}
706
707
/** destroy quantization matrix array
708
 */
709
void Quant::xDestroyScalingList()
710
19.4k
{
711
19.4k
  if( !m_isScalingListOwner ) return;
712
713
155k
  for(uint32_t sizeIdX = 0; sizeIdX < SCALING_LIST_SIZE_NUM; sizeIdX++)
714
136k
  {
715
1.08M
    for(uint32_t sizeIdY = 0; sizeIdY < SCALING_LIST_SIZE_NUM; sizeIdY++)
716
953k
    {
717
6.67M
      for(uint32_t listId = 0; listId < SCALING_LIST_NUM; listId++)
718
5.72M
      {
719
40.0M
        for(uint32_t qp = 0; qp < SCALING_LIST_REM_NUM; qp++)
720
34.3M
        {
721
34.3M
          if(m_quantCoef[sizeIdX][sizeIdY][listId][qp])
722
0
          {
723
0
            delete [] m_quantCoef[sizeIdX][sizeIdY][listId][qp];
724
0
          }
725
34.3M
          if(m_dequantCoef[sizeIdX][sizeIdY][listId][qp])
726
0
          {
727
0
            delete [] m_dequantCoef[sizeIdX][sizeIdY][listId][qp];
728
0
          }
729
34.3M
        }
730
5.72M
      }
731
953k
    }
732
136k
  }
733
19.4k
}
734
735
void Quant::quant(TransformUnit& tu, const ComponentID compID, const CCoeffBuf& pSrc, TCoeff &uiAbsSum, const QpParam& cQP, const Ctx& ctx)
736
6.04k
{
737
6.04k
  const SPS &sps            = *tu.cs->sps;
738
6.04k
  const CompArea& rect      = tu.blocks[compID];
739
6.04k
  const uint32_t uiWidth    = rect.width;
740
6.04k
  const uint32_t uiHeight   = rect.height;
741
6.04k
  const int channelBitDepth = sps.bitDepths[toChannelType(compID)];
742
743
6.04k
  const CCoeffBuf&  piCoef  = pSrc;
744
6.04k
        CoeffSigBuf piQCoef = tu.getCoeffs(compID);
745
746
6.04k
  const bool useTransformSkip = tu.mtsIdx[compID] == MTS_SKIP;
747
6.04k
  const int  maxLog2TrDynamicRange = sps.getMaxLog2TrDynamicRange();
748
749
6.04k
  {
750
6.04k
    CoeffCodingContext cctx(tu, compID, tu.cs->slice->signDataHidingEnabled);
751
752
6.04k
    const TCoeff entropyCodingMinimum = -(1 << maxLog2TrDynamicRange);
753
6.04k
    const TCoeff entropyCodingMaximum =  (1 << maxLog2TrDynamicRange) - 1;
754
755
6.04k
    TCoeff deltaU[MAX_TB_SIZEY * MAX_TB_SIZEY];
756
6.04k
    int scalingListType           = getScalingListType(tu.cu->predMode, compID);
757
6.04k
    CHECK(scalingListType >= SCALING_LIST_NUM, "Invalid scaling list");
758
6.04k
    const uint32_t uiLog2TrWidth  = Log2(uiWidth);
759
6.04k
    const uint32_t uiLog2TrHeight = Log2(uiHeight);
760
6.04k
    int *piQuantCoeff             = getQuantCoeff(scalingListType, cQP.rem(useTransformSkip), uiLog2TrWidth, uiLog2TrHeight);
761
762
6.04k
    const bool isLfnstApplied     = tu.cu->lfnstIdx > 0 && (CU::isSepTree(*tu.cu) ? true : isLuma(compID));
763
6.04k
    const bool enableScalingLists = getUseScalingList(uiWidth, uiHeight, useTransformSkip, isLfnstApplied);
764
765
    // for blocks that where width*height != 4^N, the effective scaling applied during transformation cannot be
766
    // compensated by a bit-shift (the quantised result will be sqrt(2) * larger than required).
767
    // The quantScale table and shift is used to compensate for this.
768
6.04k
    const bool needSqrtAdjustment= TU::needsSqrt2Scale( tu, compID );
769
6.04k
    const int defaultQuantisationCoefficient    = g_quantScales[needSqrtAdjustment?1:0][cQP.rem(useTransformSkip)];
770
6.04k
    const int iTransformShift = getTransformShift(channelBitDepth, rect.size(), maxLog2TrDynamicRange) + ( needSqrtAdjustment?-1:0);
771
772
6.04k
    const int iQBits = QUANT_SHIFT + cQP.per(useTransformSkip) + (useTransformSkip ? 0 : iTransformShift);
773
    // QBits will be OK for any internal bit depth as the reduction in transform shift is balanced by an increase in Qp_per due to QpBDOffset
774
775
6.04k
    const int64_t iAdd = int64_t(tu.cs->slice->isIRAP() ? 171 : 85) << int64_t(iQBits - 9);
776
6.04k
    const int qBits8 = iQBits - 8;
777
778
6.04k
    int lastScanPos = -1;
779
780
6.04k
    if (!enableScalingLists)
781
6.04k
      xQuant(tu,compID,piCoef,piQCoef,uiAbsSum,lastScanPos,deltaU,defaultQuantisationCoefficient,iQBits,iAdd,entropyCodingMinimum,entropyCodingMaximum,cctx.signHiding(),m_thrVal);
782
0
    else
783
0
    {
784
0
      const uint32_t lfnstIdx = tu.cu->lfnstIdx;
785
0
      const int maxNumberOfCoeffs = lfnstIdx > 0 ? ( ( ( uiWidth == 4 && uiHeight == 4 ) || ( uiWidth == 8 && uiHeight == 8 ) ) ? 8 : 16 ) : piQCoef.area();
786
787
0
      piQCoef.memset( 0 );
788
0
      for (int uiScanPos = 0; uiScanPos < maxNumberOfCoeffs; uiScanPos++ )
789
0
      {
790
0
        const int uiBlockPos  = cctx.blockPos( uiScanPos );
791
0
        const TCoeff iLevel   = piCoef.buf[uiBlockPos];
792
0
        const TCoeff iSign    = (iLevel < 0 ? -1: 1);
793
794
0
        const int64_t  tmpLevel = (int64_t)abs(iLevel) * (enableScalingLists ? piQuantCoeff[uiBlockPos] : defaultQuantisationCoefficient);
795
0
        const TCoeff quantisedMagnitude = TCoeff((tmpLevel + iAdd ) >> iQBits);
796
0
        deltaU[uiBlockPos] = (TCoeff)((tmpLevel - ((int64_t)quantisedMagnitude<<iQBits) )>> qBits8);
797
798
0
        uiAbsSum += quantisedMagnitude;
799
0
        const TCoeff quantisedCoefficient = quantisedMagnitude * iSign;
800
801
0
        piQCoef.buf[uiBlockPos] = Clip3<TCoeff>( entropyCodingMinimum, entropyCodingMaximum, quantisedCoefficient );
802
0
      } // for n
803
0
    }
804
6.04k
    if (tu.cu->bdpcmM[toChannelType(compID)])
805
6.04k
    {
806
6.04k
      fwdResDPCM( tu, compID );
807
6.04k
    }
808
809
6.04k
    if( uiAbsSum )
810
3.62k
    {
811
7.25k
      for( int scanPos = lastScanPos; scanPos >= 0; scanPos-- )
812
7.25k
      {
813
7.25k
        unsigned blkPos = cctx.blockPos( scanPos );
814
7.25k
        if( piQCoef.buf[blkPos] )
815
3.62k
        {
816
3.62k
          lastScanPos = scanPos;
817
3.62k
          break;
818
3.62k
        }
819
7.25k
      }
820
821
3.62k
      if( cctx.signHiding() )
822
0
      {
823
0
        if( uiAbsSum >= 2 ) //this prevents TUs with only one coefficient of value 1 from being tested
824
0
        {
825
0
          xSignBitHidingHDQ( piQCoef.buf, piCoef.buf, deltaU, cctx, lastScanPos, maxLog2TrDynamicRange );
826
0
        }
827
0
      }
828
3.62k
    }
829
830
6.04k
    tu.lastPos[compID] = lastScanPos;
831
6.04k
  } //if RDOQ
832
  //return;
833
6.04k
}
834
835
bool Quant::xNeedRDOQ(TransformUnit& tu, const ComponentID compID, const CCoeffBuf& pSrc, const QpParam& cQP)
836
0
{
837
0
  const SPS &sps            = *tu.cs->sps;
838
0
  const CompArea& rect      = tu.blocks[compID];
839
0
  const uint32_t uiWidth    = rect.width;
840
0
  const uint32_t uiHeight   = rect.height;
841
0
  const uint32_t efHeight   = std::min<unsigned>( uiHeight, JVET_C0024_ZERO_OUT_TH );
842
0
  const uint32_t efArea     = uiWidth * efHeight;
843
0
  const int channelBitDepth = sps.bitDepths[toChannelType(compID)];
844
0
  const CCoeffBuf piCoef    = pSrc;
845
846
0
  const bool useTransformSkip      = tu.mtsIdx[compID] == MTS_SKIP;
847
0
  const int  maxLog2TrDynamicRange = sps.getMaxLog2TrDynamicRange();
848
849
0
  const int scalingListType     = getScalingListType( tu.cu->predMode, compID );
850
0
  CHECK( scalingListType >= SCALING_LIST_NUM, "Invalid scaling list" );
851
852
0
  const bool        isDq        = tu.cs->slice->depQuantEnabled && !useTransformSkip;
853
0
  const int         qpDQ        = isDq ? cQP.Qp( false ) + 1 : cQP.Qp( useTransformSkip );
854
0
  const int         qpPer       = isDq ? qpDQ / 6 : cQP.per( useTransformSkip );
855
0
  const int         qpRem       = isDq ? qpDQ - 6 * qpPer : cQP.rem( useTransformSkip );
856
857
0
  const uint32_t uiLog2TrWidth  = Log2( uiWidth );
858
0
  const uint32_t uiLog2TrHeight = Log2( uiHeight );
859
0
  int *piQuantCoeff             = getQuantCoeff( scalingListType, qpRem, uiLog2TrWidth, uiLog2TrHeight );
860
861
0
  const bool isLfnstApplied     = tu.cu->lfnstIdx > 0 && ( CU::isSepTree( *tu.cu ) ? true : isLuma( compID ) );
862
0
  const bool enableScalingLists = getUseScalingList( uiWidth, uiHeight, ( useTransformSkip != 0 ), isLfnstApplied );
863
864
0
  const bool needSqrtAdjustment = TU::needsSqrt2Scale( tu, compID );
865
0
  const int defaultQuantisationCoefficient
866
0
                                = g_quantScales[needSqrtAdjustment?1:0][qpRem];
867
0
  const int iTransformShift     = getTransformShift( channelBitDepth, rect.size(), maxLog2TrDynamicRange ) + ( needSqrtAdjustment ? -1 : 0 );
868
869
870
0
  const int iQBits              = QUANT_SHIFT + qpPer + iTransformShift;
871
872
  // QBits will be OK for any internal bit depth as the reduction in transform shift is balanced by an increase in Qp_per due to QpBDOffset
873
  // iAdd is different from the iAdd used in normal quantization
874
0
  const int64_t iAdd = int64_t( compID == COMP_Y ? 171 : 256 ) << ( iQBits - 9 );
875
876
0
  if( !enableScalingLists )
877
0
    return xNeedRdoq( piCoef.buf, efArea, defaultQuantisationCoefficient, iAdd, iQBits );
878
879
0
  for( int uiBlockPos = 0; uiBlockPos < efArea; uiBlockPos++ )
880
0
  {
881
0
    const TCoeff   iLevel           = piCoef.buf[uiBlockPos];
882
0
    const int64_t  tmpLevel         = ( int64_t ) std::abs( iLevel ) * piQuantCoeff[uiBlockPos];
883
0
    const TCoeff quantisedMagnitude = TCoeff( ( tmpLevel + iAdd ) >> iQBits );
884
885
0
    if( quantisedMagnitude != 0 )
886
0
    {
887
0
      return true;
888
0
    }
889
0
  } // for n
890
0
  return false;
891
0
}
892
893
} // namespace vvenc
894
895
//! \}
896