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geant4/source/geometry/volumes/include/G4ReplicaNavigation.icc
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//
// ********************************************************************
// * DISCLAIMER *
// * *
// * The following disclaimer summarizes all the specific disclaimers *
// * of contributors to this software. The specific disclaimers,which *
// * govern, are listed with their locations in: *
// * http://cern.ch/geant4/license *
// * *
// * Neither the authors of this software system, nor their employing *
// * institutes,nor the agencies providing financial support for this *
// * work make any representation or warranty, express or implied, *
// * regarding this software system or assume any liability for its *
// * use. *
// * *
// * This code implementation is the intellectual property of the *
// * GEANT4 collaboration. *
// * By copying, distributing or modifying the Program (or any work *
// * based on the Program) you indicate your acceptance of this *
// * statement, and all its terms. *
// ********************************************************************
//
//
// $Id: G4ReplicaNavigation.icc,v 1.6 2002/05/15 10:21:48 gcosmo Exp $
// GEANT4 tag $Name: geant4-05-00 $
//
//
// class G4ReplicaNavigation Inline implementation
// ********************************************************************
// ********************************************************************
// VoxelLocate
// ********************************************************************
//
inline
G4int
G4ReplicaNavigation::VoxelLocate( const G4SmartVoxelHeader* pHead,
const G4ThreeVector& localPoint,
const G4int blocked ) const
{
EAxis targetHeaderAxis;
G4double coord=0.;
G4double targetHeaderMin, targetHeaderMax;
G4double targetHeaderNodeWidth, targetNodePos;
G4int targetHeaderNoSlices, targetNodeNo;
targetHeaderAxis = pHead->GetAxis();
targetHeaderNoSlices = pHead->GetNoSlices();
targetHeaderMin = pHead->GetMinExtent();
targetHeaderMax = pHead->GetMaxExtent();
targetHeaderNodeWidth = ( targetHeaderMax-targetHeaderMin )
/ targetHeaderNoSlices;
switch (targetHeaderAxis)
{
case kXAxis:
coord = localPoint.x();
break;
case kYAxis:
coord = localPoint.y();
break;
case kZAxis:
coord = localPoint.z();
break;
case kRho:
coord = localPoint.perp();
break;
case kPhi:
coord = localPoint.phi();
if ( (coord<0) && (coord<targetHeaderMin) ) coord += 2.0*M_PI;
break;
case kRadial3D:
default:
break;
}
targetNodePos = (coord-targetHeaderMin)/targetHeaderNodeWidth;
targetNodeNo = (G4int) targetNodePos;
if ( targetNodeNo==blocked )
{
targetNodeNo = (targetNodePos-targetNodeNo<0.5)
? targetNodeNo-1 : targetNodeNo+1;
// Do not need to check range: If on outer edge of zeroth
// voxel & it is blocked => should have exited mother
// (or similar) P.Kent
// assert(targetNodeNo>=0&&targetNodeNo<targetHeaderNoSlices);
//
// The assert above fails for simulation of high energy electrons
// It is not clear what is the cause for this failure.
// The code below attempts to rectify this problem until a
// complete resolution is possible.
// J.Apostolakis, June 12, 1998
if( (targetNodeNo<0) || (targetNodeNo>=targetHeaderNoSlices) )
{
#ifdef G4DEBUG_NAVIGATION
G4cerr << " WARNING: assert in G4ReplicaNavigation::VoxelLocate "
<< " has failed : " << G4endl <<
<< " (targetNodeNo>=0&&targetNodeNo<targetHeaderNoSlices) "
<< " targetNodeNo= " << targetNodeNo
<< " Number of Slices = " << targetHeaderNoSlices << G4endl;
#endif
// In the case of rotational symmetry and an extent over the
// whole 360 degrees, the above is not true and you can go from
// the last voxel to the zeroth and vice versa
// H.Boie, April 30, 2001
if ( (targetHeaderAxis==kPhi)
&& (targetHeaderMin==0) && (targetHeaderMax==2*M_PI) )
{
if ( targetNodeNo<0 )
targetNodeNo = targetHeaderNoSlices-1;
else if ( targetNodeNo>=targetHeaderNoSlices )
targetNodeNo=0;
}
else
{
if( targetNodeNo<0 )
targetNodeNo = 0;
else if ( targetNodeNo>=targetHeaderNoSlices )
targetNodeNo = targetHeaderNoSlices-1;
}
}
}
else
{
// Rounding protection
//
if ( targetNodeNo<0 )
{
targetNodeNo = 0;
}
else if ( targetNodeNo>=targetHeaderNoSlices )
{
targetNodeNo = targetHeaderNoSlices-1;
}
}
return targetNodeNo;
}
// ********************************************************************
// LevelLocate
// ********************************************************************
//
inline
G4bool
G4ReplicaNavigation::LevelLocate( G4NavigationHistory& history,
const G4VPhysicalVolume* blockedVol,
const G4int blockedNum,
const G4ThreeVector&,
const G4ThreeVector* globalDirection,
const G4bool pLocatedOnEdge,
G4ThreeVector& localPoint )
{
G4VPhysicalVolume *motherPhysical, *pPhysical;
G4LogicalVolume *motherLogical;
G4SmartVoxelHeader *motherVoxelHeader;
G4int nodeNo;
motherPhysical = history.GetTopVolume();
motherLogical = motherPhysical->GetLogicalVolume();
motherVoxelHeader = motherLogical->GetVoxelHeader();
pPhysical = motherLogical->GetDaughter(0);
if ( blockedVol==pPhysical )
{
nodeNo = VoxelLocate(motherVoxelHeader, localPoint, blockedNum);
}
else
{
nodeNo = VoxelLocate(motherVoxelHeader, localPoint);
}
ComputeTransformation(nodeNo, pPhysical, localPoint);
pPhysical->Setup(motherPhysical);
history.NewLevel(pPhysical, kReplica, nodeNo);
pPhysical->SetCopyNo(nodeNo);
return true;
}
// ********************************************************************
// SetPhiTransformation
// ********************************************************************
//
inline
void
G4ReplicaNavigation::SetPhiTransformation( const G4double ang,
G4VPhysicalVolume* pVol ) const
{
G4RotationMatrix rm;
rm.rotateZ(ang);
if ( pVol )
*pVol->GetRotation() = rm;
}