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}
}
size_t numAvaiCandInLUT = pu.cs->motionLut.lutIbc.size();
for (uint32_t cand = 0; cand < numAvaiCandInLUT && nbPred < IBC_NUM_CANDIDATES; cand++)
{
MotionInfo neibMi = pu.cs->motionLut.lutIbc[cand];
if (isAddNeighborMv(neibMi.bv, mvPred, nbPred))
{
mvPred[nbPred++] = neibMi.bv;
}
}

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bool isBvCandDerived[IBC_NUM_CANDIDATES];
::memset(isBvCandDerived, false, IBC_NUM_CANDIDATES);
int curNbPred = nbPred;
if (curNbPred < IBC_NUM_CANDIDATES)
{
do
{
curNbPred = nbPred;
for (uint32_t idx = 0; idx < curNbPred && nbPred < IBC_NUM_CANDIDATES; idx++)
{
if (!isBvCandDerived[idx])
{
Mv derivedBv;
if (getDerivedBV(pu, mvPred[idx], derivedBv))
{
if (isAddNeighborMv(derivedBv, mvPred, nbPred))
{
mvPred[nbPred++] = derivedBv;
}
}
isBvCandDerived[idx] = true;
}
}
} while (nbPred > curNbPred && nbPred < IBC_NUM_CANDIDATES);
}
}
bool PU::getDerivedBV(PredictionUnit &pu, const Mv& currentMv, Mv& derivedMv)
{
int cuPelX = pu.lumaPos().x;
int cuPelY = pu.lumaPos().y;
int rX = cuPelX + currentMv.getHor();
int rY = cuPelY + currentMv.getVer();
int offsetX = currentMv.getHor();
int offsetY = currentMv.getVer();
if (rX < 0 || rY < 0 || rX >= pu.cs->slice->getSPS()->getPicWidthInLumaSamples() || rY >= pu.cs->slice->getSPS()->getPicHeightInLumaSamples())
{
return false;
}
const PredictionUnit *neibRefPU = NULL;
neibRefPU = pu.cs->getPURestricted(pu.lumaPos().offset(offsetX, offsetY), pu, CHANNEL_TYPE_LUMA);
bool isIBC = (neibRefPU) ? CU::isIBC(*neibRefPU->cu) : 0;
{
derivedMv = neibRefPU->bv;
derivedMv += currentMv;
}
* Constructs a list of candidates for IBC AMVP (See specification, section "Derivation process for motion vector predictor candidates")
*/
void PU::fillIBCMvpCand(PredictionUnit &pu, AMVPInfo &amvpInfo)
{
AMVPInfo *pInfo = &amvpInfo;
pInfo->numCand = 0;
MergeCtx mergeCtx;
PU::getIBCMergeCandidates(pu, mergeCtx, AMVP_MAX_NUM_CANDS - 1);
int candIdx = 0;
while (pInfo->numCand < AMVP_MAX_NUM_CANDS)
{
pInfo->mvCand[pInfo->numCand] = mergeCtx.mvFieldNeighbours[(candIdx << 1) + 0].mv;;
pInfo->numCand++;
candIdx++;
}

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/** Constructs a list of candidates for AMVP (See specification, section "Derivation process for motion vector predictor candidates")
* \param uiPartIdx
* \param uiPartAddr
* \param eRefPicList
* \param iRefIdx
* \param pInfo
*/
void PU::fillMvpCand(PredictionUnit &pu, const RefPicList &eRefPicList, const int &refIdx, AMVPInfo &amvpInfo)
{
CodingStructure &cs = *pu.cs;
AMVPInfo *pInfo = &amvpInfo;
pInfo->numCand = 0;
if (refIdx < 0)
{
return;
}
//-- Get Spatial MV
Position posLT = pu.Y().topLeft();
Position posRT = pu.Y().topRight();
Position posLB = pu.Y().bottomLeft();
#if !JVET_O0164_REMOVE_AMVP_SPATIAL_SCALING

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bool isScaledFlagLX = false; /// variable name from specification; true when the PUs below left or left are available (availableA0 || availableA1).
{
const PredictionUnit* tmpPU = cs.getPURestricted( posLB.offset( -1, 1 ), pu, pu.chType ); // getPUBelowLeft(idx, partIdxLB);
isScaledFlagLX = tmpPU != NULL && CU::isInter( *tmpPU->cu );
if( !isScaledFlagLX )
{
tmpPU = cs.getPURestricted( posLB.offset( -1, 0 ), pu, pu.chType );
isScaledFlagLX = tmpPU != NULL && CU::isInter( *tmpPU->cu );
}
}
// Left predictor search
if( isScaledFlagLX )

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{
bool bAdded = addMVPCandUnscaled( pu, eRefPicList, refIdx, posLB, MD_BELOW_LEFT, *pInfo );
if( !bAdded )
{
bAdded = addMVPCandUnscaled( pu, eRefPicList, refIdx, posLB, MD_LEFT, *pInfo );
#if !JVET_O0164_REMOVE_AMVP_SPATIAL_SCALING

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if( !bAdded )
{
bAdded = addMVPCandWithScaling( pu, eRefPicList, refIdx, posLB, MD_BELOW_LEFT, *pInfo );
if( !bAdded )
{
addMVPCandWithScaling( pu, eRefPicList, refIdx, posLB, MD_LEFT, *pInfo );
}
}

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}
}
// Above predictor search
{
bool bAdded = addMVPCandUnscaled( pu, eRefPicList, refIdx, posRT, MD_ABOVE_RIGHT, *pInfo );
if( !bAdded )
{
bAdded = addMVPCandUnscaled( pu, eRefPicList, refIdx, posRT, MD_ABOVE, *pInfo );
if( !bAdded )
{
addMVPCandUnscaled( pu, eRefPicList, refIdx, posLT, MD_ABOVE_LEFT, *pInfo );
}
}
}
#if !JVET_O0164_REMOVE_AMVP_SPATIAL_SCALING

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if( !isScaledFlagLX )
{
bool bAdded = addMVPCandWithScaling( pu, eRefPicList, refIdx, posRT, MD_ABOVE_RIGHT, *pInfo );
if( !bAdded )
{
bAdded = addMVPCandWithScaling( pu, eRefPicList, refIdx, posRT, MD_ABOVE, *pInfo );
if( !bAdded )
{
addMVPCandWithScaling( pu, eRefPicList, refIdx, posLT, MD_ABOVE_LEFT, *pInfo );
}
}
}

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for( int i = 0; i < pInfo->numCand; i++ )
{
pInfo->mvCand[i].roundTransPrecInternal2Amvr(pu.cu->imv);
}

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if( pInfo->numCand == 2 )
{
if( pInfo->mvCand[0] == pInfo->mvCand[1] )
{
pInfo->numCand = 1;
}
}
if (cs.slice->getEnableTMVPFlag() && pInfo->numCand < AMVP_MAX_NUM_CANDS && (pu.lumaSize().width + pu.lumaSize().height > 12))

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{
// Get Temporal Motion Predictor
const int refIdx_Col = refIdx;
Position posRB = pu.Y().bottomRight().offset(-3, -3);
const PreCalcValues& pcv = *cs.pcv;
Position posC0;
bool C0Avail = false;
Position posC1 = pu.Y().center();
Mv cColMv;
if( ( ( posRB.x + pcv.minCUWidth ) < pcv.lumaWidth ) && ( ( posRB.y + pcv.minCUHeight ) < pcv.lumaHeight ) )
{
int posYInCtu = posRB.y & pcv.maxCUHeightMask;
if (posYInCtu + 4 < pcv.maxCUHeight)

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{
posC0 = posRB.offset(4, 4);
C0Avail = true;
}
}
if ( ( C0Avail && getColocatedMVP( pu, eRefPicList, posC0, cColMv, refIdx_Col ) ) || getColocatedMVP( pu, eRefPicList, posC1, cColMv, refIdx_Col ) )

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{
pInfo->mvCand[pInfo->numCand++] = cColMv;

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}
}
if (pInfo->numCand < AMVP_MAX_NUM_CANDS)
{
const int currRefPOC = cs.slice->getRefPic(eRefPicList, refIdx)->getPOC();
const RefPicList eRefPicList2nd = (eRefPicList == REF_PIC_LIST_0) ? REF_PIC_LIST_1 : REF_PIC_LIST_0;
addAMVPHMVPCand(pu, eRefPicList, eRefPicList2nd, currRefPOC, *pInfo, pu.cu->imv);
}

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if (pInfo->numCand > AMVP_MAX_NUM_CANDS)
{
pInfo->numCand = AMVP_MAX_NUM_CANDS;
}
while (pInfo->numCand < AMVP_MAX_NUM_CANDS)
{
pInfo->mvCand[pInfo->numCand] = Mv( 0, 0 );
pInfo->numCand++;
}

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{

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}
}
bool PU::addAffineMVPCandUnscaled( const PredictionUnit &pu, const RefPicList &refPicList, const int &refIdx, const Position &pos, const MvpDir &dir, AffineAMVPInfo &affiAMVPInfo )
{
CodingStructure &cs = *pu.cs;
const PredictionUnit *neibPU = NULL;
Position neibPos;

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switch ( dir )
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{
case MD_LEFT:
neibPos = pos.offset( -1, 0 );
break;
case MD_ABOVE:
neibPos = pos.offset( 0, -1 );
break;
case MD_ABOVE_RIGHT:
neibPos = pos.offset( 1, -1 );
break;
case MD_BELOW_LEFT:
neibPos = pos.offset( -1, 1 );
break;
case MD_ABOVE_LEFT:
neibPos = pos.offset( -1, -1 );
break;
default:
break;
}
neibPU = cs.getPURestricted( neibPos, pu, pu.chType );
if ( neibPU == NULL || !CU::isInter( *neibPU->cu ) || !neibPU->cu->affine
|| neibPU->mergeType != MRG_TYPE_DEFAULT_N
)
{
return false;
}
Mv outputAffineMv[3];
const MotionInfo& neibMi = neibPU->getMotionInfo( neibPos );
const int currRefPOC = cs.slice->getRefPic( refPicList, refIdx )->getPOC();
const RefPicList refPicList2nd = (refPicList == REF_PIC_LIST_0) ? REF_PIC_LIST_1 : REF_PIC_LIST_0;
for ( int predictorSource = 0; predictorSource < 2; predictorSource++ ) // examine the indicated reference picture list, then if not available, examine the other list.
{
const RefPicList eRefPicListIndex = (predictorSource == 0) ? refPicList : refPicList2nd;
const int neibRefIdx = neibMi.refIdx[eRefPicListIndex];
if ( ((neibPU->interDir & (eRefPicListIndex + 1)) == 0) || pu.cu->slice->getRefPOC( eRefPicListIndex, neibRefIdx ) != currRefPOC )
{
continue;
}
xInheritedAffineMv( pu, neibPU, eRefPicListIndex, outputAffineMv );
outputAffineMv[0].roundAffinePrecInternal2Amvr(pu.cu->imv);
outputAffineMv[1].roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandLT[affiAMVPInfo.numCand] = outputAffineMv[0];
affiAMVPInfo.mvCandRT[affiAMVPInfo.numCand] = outputAffineMv[1];
if ( pu.cu->affineType == AFFINEMODEL_6PARAM )
{
outputAffineMv[2].roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandLB[affiAMVPInfo.numCand] = outputAffineMv[2];
}
affiAMVPInfo.numCand++;
return true;
}
return false;
}

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void PU::xInheritedAffineMv( const PredictionUnit &pu, const PredictionUnit* puNeighbour, RefPicList eRefPicList, Mv rcMv[3] )
{
int posNeiX = puNeighbour->Y().pos().x;
int posNeiY = puNeighbour->Y().pos().y;
int posCurX = pu.Y().pos().x;
int posCurY = pu.Y().pos().y;
int neiW = puNeighbour->Y().width;
int curW = pu.Y().width;
int neiH = puNeighbour->Y().height;
int curH = pu.Y().height;

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Mv mvLT, mvRT, mvLB;
mvLT = puNeighbour->mvAffi[eRefPicList][0];
mvRT = puNeighbour->mvAffi[eRefPicList][1];
mvLB = puNeighbour->mvAffi[eRefPicList][2];
bool isTopCtuBoundary = false;
if ( (posNeiY + neiH) % pu.cs->sps->getCTUSize() == 0 && (posNeiY + neiH) == posCurY )
{
// use bottom-left and bottom-right sub-block MVs for inheritance
const Position posRB = puNeighbour->Y().bottomRight();
const Position posLB = puNeighbour->Y().bottomLeft();
mvLT = puNeighbour->getMotionInfo( posLB ).mv[eRefPicList];
mvRT = puNeighbour->getMotionInfo( posRB ).mv[eRefPicList];
posNeiY += neiH;
isTopCtuBoundary = true;

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int shift = MAX_CU_DEPTH;
int iDMvHorX, iDMvHorY, iDMvVerX, iDMvVerY;
iDMvHorX = (mvRT - mvLT).getHor() << (shift - g_aucLog2[neiW]);
iDMvHorY = (mvRT - mvLT).getVer() << (shift - g_aucLog2[neiW]);
if ( puNeighbour->cu->affineType == AFFINEMODEL_6PARAM && !isTopCtuBoundary )

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{
iDMvVerX = (mvLB - mvLT).getHor() << (shift - g_aucLog2[neiH]);
iDMvVerY = (mvLB - mvLT).getVer() << (shift - g_aucLog2[neiH]);
}
else
{
iDMvVerX = -iDMvHorY;
iDMvVerY = iDMvHorX;
}
int iMvScaleHor = mvLT.getHor() << shift;
int iMvScaleVer = mvLT.getVer() << shift;
int horTmp, verTmp;
// v0
horTmp = iMvScaleHor + iDMvHorX * (posCurX - posNeiX) + iDMvVerX * (posCurY - posNeiY);
verTmp = iMvScaleVer + iDMvHorY * (posCurX - posNeiX) + iDMvVerY * (posCurY - posNeiY);
roundAffineMv( horTmp, verTmp, shift );
rcMv[0].hor = horTmp;
rcMv[0].ver = verTmp;

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// v1
horTmp = iMvScaleHor + iDMvHorX * (posCurX + curW - posNeiX) + iDMvVerX * (posCurY - posNeiY);
verTmp = iMvScaleVer + iDMvHorY * (posCurX + curW - posNeiX) + iDMvVerY * (posCurY - posNeiY);
roundAffineMv( horTmp, verTmp, shift );
rcMv[1].hor = horTmp;
rcMv[1].ver = verTmp;

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// v2
if ( pu.cu->affineType == AFFINEMODEL_6PARAM )
{
horTmp = iMvScaleHor + iDMvHorX * (posCurX - posNeiX) + iDMvVerX * (posCurY + curH - posNeiY);
verTmp = iMvScaleVer + iDMvHorY * (posCurX - posNeiX) + iDMvVerY * (posCurY + curH - posNeiY);
roundAffineMv( horTmp, verTmp, shift );
rcMv[2].hor = horTmp;
rcMv[2].ver = verTmp;

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}
}
void PU::fillAffineMvpCand(PredictionUnit &pu, const RefPicList &eRefPicList, const int &refIdx, AffineAMVPInfo &affiAMVPInfo)
{
affiAMVPInfo.numCand = 0;
if (refIdx < 0)
{
return;
}
// insert inherited affine candidates
Mv outputAffineMv[3];
Position posLT = pu.Y().topLeft();
Position posRT = pu.Y().topRight();
Position posLB = pu.Y().bottomLeft();
if ( !addAffineMVPCandUnscaled( pu, eRefPicList, refIdx, posLB, MD_BELOW_LEFT, affiAMVPInfo ) )
{
addAffineMVPCandUnscaled( pu, eRefPicList, refIdx, posLB, MD_LEFT, affiAMVPInfo );
}
// check above neighbor
if ( !addAffineMVPCandUnscaled( pu, eRefPicList, refIdx, posRT, MD_ABOVE_RIGHT, affiAMVPInfo ) )
{
if ( !addAffineMVPCandUnscaled( pu, eRefPicList, refIdx, posRT, MD_ABOVE, affiAMVPInfo ) )
{
addAffineMVPCandUnscaled( pu, eRefPicList, refIdx, posLT, MD_ABOVE_LEFT, affiAMVPInfo );
}
}

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if ( affiAMVPInfo.numCand >= AMVP_MAX_NUM_CANDS )
{
for (int i = 0; i < affiAMVPInfo.numCand; i++)
{
affiAMVPInfo.mvCandLT[i].roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandRT[i].roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandLB[i].roundAffinePrecInternal2Amvr(pu.cu->imv);

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return;
}
// insert constructed affine candidates
int cornerMVPattern = 0;
//------------------- V0 (START) -------------------//
AMVPInfo amvpInfo0;
amvpInfo0.numCand = 0;
// A->C: Above Left, Above, Left
addMVPCandUnscaled( pu, eRefPicList, refIdx, posLT, MD_ABOVE_LEFT, amvpInfo0 );

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if ( amvpInfo0.numCand < 1 )
{
addMVPCandUnscaled( pu, eRefPicList, refIdx, posLT, MD_ABOVE, amvpInfo0 );

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}
if ( amvpInfo0.numCand < 1 )
{
addMVPCandUnscaled( pu, eRefPicList, refIdx, posLT, MD_LEFT, amvpInfo0 );

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}
cornerMVPattern = cornerMVPattern | amvpInfo0.numCand;
//------------------- V1 (START) -------------------//
AMVPInfo amvpInfo1;
amvpInfo1.numCand = 0;
// D->E: Above, Above Right
addMVPCandUnscaled( pu, eRefPicList, refIdx, posRT, MD_ABOVE, amvpInfo1 );

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if ( amvpInfo1.numCand < 1 )
{
addMVPCandUnscaled( pu, eRefPicList, refIdx, posRT, MD_ABOVE_RIGHT, amvpInfo1 );

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}
cornerMVPattern = cornerMVPattern | (amvpInfo1.numCand << 1);
//------------------- V2 (START) -------------------//
AMVPInfo amvpInfo2;
amvpInfo2.numCand = 0;
// F->G: Left, Below Left
addMVPCandUnscaled( pu, eRefPicList, refIdx, posLB, MD_LEFT, amvpInfo2 );

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if ( amvpInfo2.numCand < 1 )
{
addMVPCandUnscaled( pu, eRefPicList, refIdx, posLB, MD_BELOW_LEFT, amvpInfo2 );

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}
cornerMVPattern = cornerMVPattern | (amvpInfo2.numCand << 2);
outputAffineMv[0] = amvpInfo0.mvCand[0];
outputAffineMv[1] = amvpInfo1.mvCand[0];
outputAffineMv[2] = amvpInfo2.mvCand[0];
outputAffineMv[0].roundAffinePrecInternal2Amvr(pu.cu->imv);
outputAffineMv[1].roundAffinePrecInternal2Amvr(pu.cu->imv);
outputAffineMv[2].roundAffinePrecInternal2Amvr(pu.cu->imv);

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if ( cornerMVPattern == 7 || (cornerMVPattern == 3 && pu.cu->affineType == AFFINEMODEL_4PARAM) )
{
affiAMVPInfo.mvCandLT[affiAMVPInfo.numCand] = outputAffineMv[0];
affiAMVPInfo.mvCandRT[affiAMVPInfo.numCand] = outputAffineMv[1];
affiAMVPInfo.mvCandLB[affiAMVPInfo.numCand] = outputAffineMv[2];
affiAMVPInfo.numCand++;
}
if ( affiAMVPInfo.numCand < 2 )
{
// check corner MVs
for ( int i = 2; i >= 0 && affiAMVPInfo.numCand < AMVP_MAX_NUM_CANDS; i-- )
{
if ( cornerMVPattern & (1 << i) ) // MV i exist
{
affiAMVPInfo.mvCandLT[affiAMVPInfo.numCand] = outputAffineMv[i];
affiAMVPInfo.mvCandRT[affiAMVPInfo.numCand] = outputAffineMv[i];
affiAMVPInfo.mvCandLB[affiAMVPInfo.numCand] = outputAffineMv[i];
affiAMVPInfo.numCand++;
}
}
// Get Temporal Motion Predictor
if ( affiAMVPInfo.numCand < 2 && pu.cs->slice->getEnableTMVPFlag() )
{
const int refIdxCol = refIdx;
Position posRB = pu.Y().bottomRight().offset( -3, -3 );
const PreCalcValues& pcv = *pu.cs->pcv;
Position posC0;
bool C0Avail = false;
Position posC1 = pu.Y().center();
Mv cColMv;
if ( ((posRB.x + pcv.minCUWidth) < pcv.lumaWidth) && ((posRB.y + pcv.minCUHeight) < pcv.lumaHeight) )
{
int posYInCtu = posRB.y & pcv.maxCUHeightMask;
if (posYInCtu + 4 < pcv.maxCUHeight)
posC0 = posRB.offset(4, 4);
C0Avail = true;
}
}
if ( ( C0Avail && getColocatedMVP( pu, eRefPicList, posC0, cColMv, refIdxCol ) ) || getColocatedMVP( pu, eRefPicList, posC1, cColMv, refIdxCol ) )
cColMv.roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandLT[affiAMVPInfo.numCand] = cColMv;
affiAMVPInfo.mvCandRT[affiAMVPInfo.numCand] = cColMv;
affiAMVPInfo.mvCandLB[affiAMVPInfo.numCand] = cColMv;
affiAMVPInfo.numCand++;
}
}
if ( affiAMVPInfo.numCand < 2 )
{
// add zero MV
for ( int i = affiAMVPInfo.numCand; i < AMVP_MAX_NUM_CANDS; i++ )
{
affiAMVPInfo.mvCandLT[affiAMVPInfo.numCand].setZero();
affiAMVPInfo.mvCandRT[affiAMVPInfo.numCand].setZero();
affiAMVPInfo.mvCandLB[affiAMVPInfo.numCand].setZero();
affiAMVPInfo.numCand++;
}
}
}
for (int i = 0; i < affiAMVPInfo.numCand; i++)
{
affiAMVPInfo.mvCandLT[i].roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandRT[i].roundAffinePrecInternal2Amvr(pu.cu->imv);
affiAMVPInfo.mvCandLB[i].roundAffinePrecInternal2Amvr(pu.cu->imv);

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}
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bool PU::addIBCMVPCand(const PredictionUnit &pu, const Position &pos, const MvpDir &eDir, AMVPInfo &info)
{
CodingStructure &cs = *pu.cs;
const PredictionUnit *neibPU = NULL;
Position neibPos;
switch (eDir)
{
case MD_LEFT:
neibPos = pos.offset(-1, 0);
break;
case MD_ABOVE:
neibPos = pos.offset(0, -1);
break;
case MD_ABOVE_RIGHT:
neibPos = pos.offset(1, -1);
break;
case MD_BELOW_LEFT:
neibPos = pos.offset(-1, 1);
break;
case MD_ABOVE_LEFT:
neibPos = pos.offset(-1, -1);
break;
default:
break;
}
neibPU = cs.getPURestricted(neibPos, pu, pu.chType);
if (neibPU == NULL || CU::isIBC(*neibPU->cu)==false)
{
return false;
}
const MotionInfo& neibMi = neibPU->getMotionInfo(neibPos);
info.mvCand[info.numCand++] = neibMi.mv[REF_PIC_LIST_0];
return true;
}
bool PU::addMVPCandUnscaled( const PredictionUnit &pu, const RefPicList &eRefPicList, const int &iRefIdx, const Position &pos, const MvpDir &eDir, AMVPInfo &info )

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{
CodingStructure &cs = *pu.cs;
const PredictionUnit *neibPU = NULL;
Position neibPos;
switch (eDir)
{
case MD_LEFT:
neibPos = pos.offset( -1, 0 );
break;
case MD_ABOVE:
neibPos = pos.offset( 0, -1 );
break;
case MD_ABOVE_RIGHT:
neibPos = pos.offset( 1, -1 );
break;
case MD_BELOW_LEFT:
neibPos = pos.offset( -1, 1 );
break;
case MD_ABOVE_LEFT:
neibPos = pos.offset( -1, -1 );
break;
default:
break;
}
neibPU = cs.getPURestricted( neibPos, pu, pu.chType );
if( neibPU == NULL || !CU::isInter( *neibPU->cu ) )
{
return false;
}
const MotionInfo& neibMi = neibPU->getMotionInfo( neibPos );
const int currRefPOC = cs.slice->getRefPic( eRefPicList, iRefIdx )->getPOC();
const RefPicList eRefPicList2nd = ( eRefPicList == REF_PIC_LIST_0 ) ? REF_PIC_LIST_1 : REF_PIC_LIST_0;
for( int predictorSource = 0; predictorSource < 2; predictorSource++ ) // examine the indicated reference picture list, then if not available, examine the other list.
{
const RefPicList eRefPicListIndex = ( predictorSource == 0 ) ? eRefPicList : eRefPicList2nd;
const int neibRefIdx = neibMi.refIdx[eRefPicListIndex];
if( neibRefIdx >= 0 && currRefPOC == cs.slice->getRefPOC( eRefPicListIndex, neibRefIdx ) )
{
info.mvCand[info.numCand++] = neibMi.mv[eRefPicListIndex];
return true;

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}
}
return false;
}
#if !JVET_O0164_REMOVE_AMVP_SPATIAL_SCALING

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/**
* \param pInfo
* \param eRefPicList
* \param iRefIdx
* \param uiPartUnitIdx
* \param eDir
* \returns bool
*/
bool PU::addMVPCandWithScaling( const PredictionUnit &pu, const RefPicList &eRefPicList, const int &iRefIdx, const Position &pos, const MvpDir &eDir, AMVPInfo &info )

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{
CodingStructure &cs = *pu.cs;
const Slice &slice = *cs.slice;
const PredictionUnit *neibPU = NULL;
Position neibPos;
switch( eDir )
{
case MD_LEFT:
neibPos = pos.offset( -1, 0 );
break;
case MD_ABOVE:
neibPos = pos.offset( 0, -1 );
break;
case MD_ABOVE_RIGHT:
neibPos = pos.offset( 1, -1 );
break;
case MD_BELOW_LEFT:
neibPos = pos.offset( -1, 1 );
break;
case MD_ABOVE_LEFT:
neibPos = pos.offset( -1, -1 );
break;
default:
break;
}
neibPU = cs.getPURestricted( neibPos, pu, pu.chType );
if (neibPU == NULL || !CU::isInter(*neibPU->cu) || !CU::isInter(*pu.cu))

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{
return false;
}
const MotionInfo& neibMi = neibPU->getMotionInfo( neibPos );
const RefPicList eRefPicList2nd = ( eRefPicList == REF_PIC_LIST_0 ) ? REF_PIC_LIST_1 : REF_PIC_LIST_0;
const int currPOC = slice.getPOC();
const int currRefPOC = slice.getRefPic( eRefPicList, iRefIdx )->poc;
const bool bIsCurrRefLongTerm = slice.getRefPic( eRefPicList, iRefIdx )->longTerm;
const int neibPOC = currPOC;
for( int predictorSource = 0; predictorSource < 2; predictorSource++ ) // examine the indicated reference picture list, then if not available, examine the other list.
{
const RefPicList eRefPicListIndex = (predictorSource == 0) ? eRefPicList : eRefPicList2nd;
const int neibRefIdx = neibMi.refIdx[eRefPicListIndex];
if( neibRefIdx >= 0 )
{
const bool bIsNeibRefLongTerm = slice.getRefPic(eRefPicListIndex, neibRefIdx)->longTerm;
if (bIsCurrRefLongTerm == bIsNeibRefLongTerm)
{
Mv cMv = neibMi.mv[eRefPicListIndex];
if( !( bIsCurrRefLongTerm /* || bIsNeibRefLongTerm*/) )
{
const int neibRefPOC = slice.getRefPOC( eRefPicListIndex, neibRefIdx );
const int scale = xGetDistScaleFactor( currPOC, currRefPOC, neibPOC, neibRefPOC );
if( scale != 4096 )
{
cMv = cMv.scaleMv( scale );
}
}
info.mvCand[info.numCand++] = cMv;
return true;

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}
}
}
return false;
}

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void PU::addAMVPHMVPCand(const PredictionUnit &pu, const RefPicList eRefPicList, const RefPicList eRefPicList2nd, const int currRefPOC, AMVPInfo &info, uint8_t imv)
{
const Slice &slice = *(*pu.cs).slice;
MotionInfo neibMi;
auto &lut = CU::isIBC(*pu.cu) ? pu.cs->motionLut.lutIbc : pu.cs->motionLut.lut;
int num_avai_candInLUT = (int) lut.size();
int num_allowedCand = std::min(MAX_NUM_HMVP_AVMPCANDS, num_avai_candInLUT);
for (int mrgIdx = 1; mrgIdx <= num_allowedCand; mrgIdx++)
{
if (info.numCand >= AMVP_MAX_NUM_CANDS)
{
return;
}
for (int predictorSource = 0; predictorSource < 2; predictorSource++)
{
const RefPicList eRefPicListIndex = (predictorSource == 0) ? eRefPicList : eRefPicList2nd;
const int neibRefIdx = neibMi.refIdx[eRefPicListIndex];
if (neibRefIdx >= 0 && (CU::isIBC(*pu.cu) || (currRefPOC == slice.getRefPOC(eRefPicListIndex, neibRefIdx))))
{
Mv pmv = neibMi.mv[eRefPicListIndex];
info.mvCand[info.numCand++] = pmv;
if (info.numCand >= AMVP_MAX_NUM_CANDS)
{
return;
}

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bool PU::isBipredRestriction(const PredictionUnit &pu)
{
if(pu.cu->lumaSize().width == 4 && pu.cu->lumaSize().height ==4 )
{
return true;
}
/* disable bi-prediction for 4x8/8x4 */
if ( pu.cu->lumaSize().width + pu.cu->lumaSize().height == 12 )
{
return true;
}

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return false;
}
#if JVET_O0366_AFFINE_BCW
void PU::getAffineControlPointCand(const PredictionUnit &pu, MotionInfo mi[4], bool isAvailable[4], int verIdx[4], int8_t gbiIdx, int modelIdx, int verNum, AffineMergeCtx& affMrgType)
#else
void PU::getAffineControlPointCand(const PredictionUnit &pu, MotionInfo mi[4], int8_t neighGbi[4], bool isAvailable[4], int verIdx[4], int modelIdx, int verNum, AffineMergeCtx& affMrgType)
{
int cuW = pu.Y().width;
int cuH = pu.Y().height;
int vx, vy;
int shift = MAX_CU_DEPTH;
int shiftHtoW = shift + g_aucLog2[cuW] - g_aucLog2[cuH];
// motion info
Mv cMv[2][4];
int refIdx[2] = { -1, -1 };
int dir = 0;
#if !JVET_O0366_AFFINE_BCW
int8_t gbiIdx = GBI_DEFAULT;
EAffineModel curType = (verNum == 2) ? AFFINEMODEL_4PARAM : AFFINEMODEL_6PARAM;

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if ( verNum == 2 )
{
int idx0 = verIdx[0], idx1 = verIdx[1];
if ( !isAvailable[idx0] || !isAvailable[idx1] )
{
return;
}
for ( int l = 0; l < 2; l++ )
{
if ( mi[idx0].refIdx[l] >= 0 && mi[idx1].refIdx[l] >= 0 )
{
// check same refidx and different mv
if ( mi[idx0].refIdx[l] == mi[idx1].refIdx[l])
{
dir |= (l + 1);
refIdx[l] = mi[idx0].refIdx[l];
}
}
}
#if !JVET_O0366_AFFINE_BCW
if (dir == 3)
{
if (neighGbi[idx0] == neighGbi[idx1])
{
gbiIdx = neighGbi[idx0];
}
}
}
else if ( verNum == 3 )
{
int idx0 = verIdx[0], idx1 = verIdx[1], idx2 = verIdx[2];
if ( !isAvailable[idx0] || !isAvailable[idx1] || !isAvailable[idx2] )
{
return;
}
for ( int l = 0; l < 2; l++ )
{
if ( mi[idx0].refIdx[l] >= 0 && mi[idx1].refIdx[l] >= 0 && mi[idx2].refIdx[l] >= 0 )
{
// check same refidx and different mv
if ( mi[idx0].refIdx[l] == mi[idx1].refIdx[l] && mi[idx0].refIdx[l] == mi[idx2].refIdx[l])
{
dir |= (l + 1);
refIdx[l] = mi[idx0].refIdx[l];
}
}
}
#if !JVET_O0366_AFFINE_BCW
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int gbiClass[5] = { -1,0,0,0,1 };
if (dir == 3)
{
if (neighGbi[idx0] == neighGbi[idx1] && gbiClass[neighGbi[idx0]] == gbiClass[neighGbi[idx2]])
{
gbiIdx = neighGbi[idx0];
}
else if (neighGbi[idx0] == neighGbi[idx2] && gbiClass[neighGbi[idx0]] == gbiClass[neighGbi[idx1]])
{
gbiIdx = neighGbi[idx0];
}
else if (neighGbi[idx1] == neighGbi[idx2] && gbiClass[neighGbi[idx0]] == gbiClass[neighGbi[idx1]])
{
gbiIdx = neighGbi[idx1];
}
else
{
gbiIdx = GBI_DEFAULT;
}
}
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}
if ( dir == 0 )
{
return;
}
for ( int l = 0; l < 2; l++ )
{
if ( dir & (l + 1) )
{
for ( int i = 0; i < verNum; i++ )
{
cMv[l][verIdx[i]] = mi[verIdx[i]].mv[l];
}
// convert to LT, RT[, [LB]]
switch ( modelIdx )
{
case 0: // 0 : LT, RT, LB
break;
case 1: // 1 : LT, RT, RB
cMv[l][2].hor = cMv[l][3].hor + cMv[l][0].hor - cMv[l][1].hor;
cMv[l][2].ver = cMv[l][3].ver + cMv[l][0].ver - cMv[l][1].ver;
break;
case 2: // 2 : LT, LB, RB
cMv[l][1].hor = cMv[l][3].hor + cMv[l][0].hor - cMv[l][2].hor;
cMv[l][1].ver = cMv[l][3].ver + cMv[l][0].ver - cMv[l][2].ver;
break;
case 3: // 3 : RT, LB, RB
cMv[l][0].hor = cMv[l][1].hor + cMv[l][2].hor - cMv[l][3].hor;
cMv[l][0].ver = cMv[l][1].ver + cMv[l][2].ver - cMv[l][3].ver;
break;
case 4: // 4 : LT, RT
break;
case 5: // 5 : LT, LB
vx = (cMv[l][0].hor << shift) + ((cMv[l][2].ver - cMv[l][0].ver) << shiftHtoW);
vy = (cMv[l][0].ver << shift) - ((cMv[l][2].hor - cMv[l][0].hor) << shiftHtoW);
roundAffineMv( vx, vy, shift );
cMv[l][1].set( vx, vy );
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break;
default:
CHECK( 1, "Invalid model index!\n" );
break;
}
}
else
{
for ( int i = 0; i < 4; i++ )
{
cMv[l][i].hor = 0;
cMv[l][i].ver = 0;
}
}
}
for ( int i = 0; i < 3; i++ )
{
affMrgType.mvFieldNeighbours[(affMrgType.numValidMergeCand << 1) + 0][i].mv = cMv[0][i];
affMrgType.mvFieldNeighbours[(affMrgType.numValidMergeCand << 1) + 0][i].refIdx = refIdx[0];
affMrgType.mvFieldNeighbours[(affMrgType.numValidMergeCand << 1) + 1][i].mv = cMv[1][i];
affMrgType.mvFieldNeighbours[(affMrgType.numValidMergeCand << 1) + 1][i].refIdx = refIdx[1];
}
affMrgType.interDirNeighbours[affMrgType.numValidMergeCand] = dir;
affMrgType.affineType[affMrgType.numValidMergeCand] = curType;
affMrgType.GBiIdx[affMrgType.numValidMergeCand] = gbiIdx;
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affMrgType.numValidMergeCand++;
return;
}
const int getAvailableAffineNeighboursForLeftPredictor( const PredictionUnit &pu, const PredictionUnit* npu[] )
{
const Position posLB = pu.Y().bottomLeft();
int num = 0;
const PredictionUnit *puLeftBottom = pu.cs->getPURestricted( posLB.offset( -1, 1 ), pu, pu.chType );
if ( puLeftBottom && puLeftBottom->cu->affine
&& puLeftBottom->mergeType == MRG_TYPE_DEFAULT_N
)
{
npu[num++] = puLeftBottom;
return num;
}
const PredictionUnit* puLeft = pu.cs->getPURestricted( posLB.offset( -1, 0 ), pu, pu.chType );
if ( puLeft && puLeft->cu->affine