336 lines
13 KiB
C++
336 lines
13 KiB
C++
//
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// ********************************************************************
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// * License and Disclaimer *
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// * *
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// * The Geant4 software is copyright of the Copyright Holders of *
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// * the Geant4 Collaboration. It is provided under the terms and *
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// * conditions of the Geant4 Software License, included in the file *
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// * LICENSE and available at http://cern.ch/geant4/license . These *
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// * include a list of copyright holders. *
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// * *
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// * Neither the authors of this software system, nor their employing *
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// * institutes,nor the agencies providing financial support for this *
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// * work make any representation or warranty, express or implied, *
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// * regarding this software system or assume any liability for its *
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// * use. Please see the license in the file LICENSE and URL above *
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// * for the full disclaimer and the limitation of liability. *
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// * *
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// * This code implementation is the result of the scientific and *
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// * technical work of the GEANT4 collaboration. *
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// * By using, copying, modifying or distributing the software (or *
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// * any work based on the software) you agree to acknowledge its *
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// * use in resulting scientific publications, and indicate your *
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// * acceptance of all terms of the Geant4 Software license. *
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// ********************************************************************
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//
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#include "G4EnergySplitter.hh"
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#include "G4VSolid.hh"
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#include "G4UnitsTable.hh"
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#include "G4RegularNavigationHelper.hh"
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#include "G4EnergyLossForExtrapolator.hh"
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#include "G4EmCalculator.hh"
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#include "G4PhysicalVolumeStore.hh"
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#include "G4Step.hh"
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#include "G4PVParameterised.hh"
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////////////////////////////////////////////////////////////////////////////////
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// (Description)
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//
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// Created:
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//
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///////////////////////////////////////////////////////////////////////////////
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G4EnergySplitter::G4EnergySplitter()
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{
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theElossExt = new G4EnergyLossForExtrapolator(0);
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thePhantomParam = 0;
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theNIterations = 2;
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}
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G4EnergySplitter::~G4EnergySplitter()
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{
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delete theElossExt;
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}
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G4int G4EnergySplitter::SplitEnergyInVolumes(const G4Step* aStep )
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{
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theEnergies.clear();
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G4double edep = aStep->GetTotalEnergyDeposit();
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#ifdef VERBOSE_ENERSPLIT
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G4bool verbose = 1;
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if( verbose ) G4cout << "G4EnergySplitter::SplitEnergyInVolumes totalEdepo " << aStep->GetTotalEnergyDeposit()
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<< " Nsteps " << G4RegularNavigationHelper::Instance()->GetStepLengths().size() << G4endl;
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#endif
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if( G4RegularNavigationHelper::Instance()->GetStepLengths().size() == 0 ||
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aStep->GetTrack()->GetDefinition()->GetPDGCharge() == 0) { // we are only counting dose deposit
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return theEnergies.size();
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}
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if( G4RegularNavigationHelper::Instance()->GetStepLengths().size() == 1 ) {
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theEnergies.push_back(edep);
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return theEnergies.size();
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}
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if( !thePhantomParam ) GetPhantomParam(TRUE);
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if( aStep == 0 ) return FALSE; // it is 0 when called by GmScoringMgr after last event
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//----- Distribute energy deposited in voxels
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std::vector< std::pair<G4int,G4double> > rnsl = G4RegularNavigationHelper::Instance()->GetStepLengths();
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const G4ParticleDefinition* part = aStep->GetTrack()->GetDefinition();
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G4double kinEnergyPreOrig = aStep->GetPreStepPoint()->GetKineticEnergy();
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G4double kinEnergyPre = kinEnergyPreOrig;
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G4double stepLength = aStep->GetStepLength();
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G4double slSum = 0.;
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unsigned int ii;
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for( ii = 0; ii < rnsl.size(); ii++ ){
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G4double sl = rnsl[ii].second;
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slSum += sl;
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii << " RN: iter1 step length geom " << sl << G4endl;
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#endif
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}
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#ifdef VERBOSE_ENERSPLIT
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if( verbose )
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G4cout << "G4EnergySplitter RN: step length geom TOTAL " << slSum
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<< " true TOTAL " << stepLength
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<< " ratio " << stepLength/slSum
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<< " Energy " << aStep->GetPreStepPoint()->GetKineticEnergy()
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<< " Material " << aStep->GetPreStepPoint()->GetMaterial()->GetName()
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<< " Number of geom steps " << rnsl.size() << G4endl;
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#endif
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//----- No iterations to correct elost and msc => distribute energy deposited according to geometrical step length in each voxel
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if( theNIterations == 0 ) {
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for( ii = 0; ii < rnsl.size(); ii++ ){
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G4double sl = rnsl[ii].second;
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G4double edepStep = edep * sl/slSum; //divide edep along steps, proportional to step length
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii
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<< " edep " << edepStep << G4endl;
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#endif
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theEnergies.push_back(edepStep);
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}
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} else { // 1 or more iterations demanded
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#ifdef VERBOSE_ENERSPLIT
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// print corrected energy at iteration 0
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if(verbose) {
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G4double slSum = 0.;
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for( ii = 0; ii < rnsl.size(); ii++ ){
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G4double sl = rnsl[ii].second;
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slSum += sl;
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}
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for( ii = 0; ii < rnsl.size(); ii++ ){
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G4cout << "G4EnergySplitter::SplitEnergyInVolumes "<< ii
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<< " RN: iter0 corrected energy lost " << edep*rnsl[ii].second/slSum
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<< G4endl;
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}
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}
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#endif
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G4double slRatio = stepLength/slSum;
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes RN: iter 0, step ratio " << slRatio << G4endl;
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#endif
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//--- energy at each interaction
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G4EmCalculator emcalc;
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G4double totalELost = 0.;
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std::vector<G4double> stepLengths;
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for( int iiter = 1; iiter <= theNIterations; iiter++ ) {
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//--- iter1: distribute true step length in each voxel: geom SL in each voxel is multiplied by a constant so that the sum gives the total true step length
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if( iiter == 1 ) {
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for( ii = 0; ii < rnsl.size(); ii++ ){
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G4double sl = rnsl[ii].second;
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stepLengths.push_back( sl * slRatio );
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii << " RN: iter" << iiter << " corrected step length " << sl*slRatio << G4endl;
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#endif
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}
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for( ii = 0; ii < rnsl.size(); ii++ ){
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const G4Material* mate = thePhantomParam->GetMaterial( rnsl[ii].first );
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G4double dEdx = 0.;
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if( kinEnergyPre > 0. ) { //t check this
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dEdx = emcalc.GetDEDX(kinEnergyPre, part, mate);
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}
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G4double elost = stepLengths[ii] * dEdx;
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii << " RN: iter1 energy lost " << elost
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<< " energy at interaction " << kinEnergyPre
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<< " = stepLength " << stepLengths[ii]
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<< " * dEdx " << dEdx << G4endl;
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#endif
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kinEnergyPre -= elost;
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theEnergies.push_back( elost );
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totalELost += elost;
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}
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} else{
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//------ 2nd and other iterations
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//----- Get step lengths corrected by changing geom2true correction
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//-- Get ratios for each energy
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slSum = 0.;
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kinEnergyPre = kinEnergyPreOrig;
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for( ii = 0; ii < rnsl.size(); ii++ ){
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const G4Material* mate = thePhantomParam->GetMaterial( rnsl[ii].first );
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stepLengths[ii] = theElossExt->TrueStepLength( kinEnergyPre, rnsl[ii].second , mate, part );
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kinEnergyPre -= theEnergies[ii];
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes" << ii
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<< " RN: iter" << iiter << " step length geom " << stepLengths[ii]
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<< " geom2true " << rnsl[ii].second / stepLengths[ii] << G4endl;
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#endif
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slSum += stepLengths[ii];
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}
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//Correct step lengths so that they sum the total step length
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G4double slratio = aStep->GetStepLength()/slSum;
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes" << ii << " RN: iter" << iiter << " step ratio " << slRatio << G4endl;
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#endif
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for( ii = 0; ii < rnsl.size(); ii++ ){
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stepLengths[ii] *= slratio;
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii << " RN: iter" << iiter << " corrected step length " << stepLengths[ii] << G4endl;
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#endif
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}
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//---- Recalculate energy lost with this new step lengths
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kinEnergyPre = aStep->GetPreStepPoint()->GetKineticEnergy();
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totalELost = 0.;
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for( ii = 0; ii < rnsl.size(); ii++ ){
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const G4Material* mate = thePhantomParam->GetMaterial( rnsl[ii].first );
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G4double dEdx = 0.;
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if( kinEnergyPre > 0. ) {
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dEdx = emcalc.GetDEDX(kinEnergyPre, part, mate);
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}
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G4double elost = stepLengths[ii] * dEdx;
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii << " RN: iter" << iiter << " energy lost " << elost
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<< " energy at interaction " << kinEnergyPre
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<< " = stepLength " << stepLengths[ii]
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<< " * dEdx " << dEdx << G4endl;
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#endif
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kinEnergyPre -= elost;
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theEnergies[ii] = elost;
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totalELost += elost;
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}
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}
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//correct energies so that they reproduce the real step energy lost
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G4double enerRatio = (edep/totalELost);
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#ifdef VERBOSE_ENERSPLIT
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes"<< ii << " RN: iter" << iiter << " energy ratio " << enerRatio << G4endl;
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#endif
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#ifdef VERBOSE_ENERSPLIT
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G4double elostTot = 0.;
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#endif
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for( ii = 0; ii < theEnergies.size(); ii++ ){
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theEnergies[ii] *= enerRatio;
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#ifdef VERBOSE_ENERSPLIT
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elostTot += theEnergies[ii];
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if(verbose) G4cout << "G4EnergySplitter::SplitEnergyInVolumes "<< ii << " RN: iter" << iiter << " corrected energy lost " << theEnergies[ii]
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<< " orig elost " << theEnergies[ii]/enerRatio
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<< " energy before interaction " << kinEnergyPreOrig-elostTot+theEnergies[ii]
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<< " energy after interaction " << kinEnergyPreOrig-elostTot
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<< G4endl;
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#endif
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}
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}
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}
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return theEnergies.size();
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}
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//-----------------------------------------------------------------------
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void G4EnergySplitter::GetPhantomParam(G4bool mustExist)
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{
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G4PhysicalVolumeStore* pvs = G4PhysicalVolumeStore::GetInstance();
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std::vector<G4VPhysicalVolume*>::iterator cite;
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for( cite = pvs->begin(); cite != pvs->end(); cite++ ) {
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// G4cout << " PV " << (*cite)->GetName() << " " << (*cite)->GetTranslation() << G4endl;
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if( IsPhantomVolume( *cite ) ) {
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const G4PVParameterised* pvparam = static_cast<const G4PVParameterised*>(*cite);
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G4VPVParameterisation* param = pvparam->GetParameterisation();
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// if( static_cast<const G4PhantomParameterisation*>(param) ){
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// if( static_cast<const G4PhantomParameterisation*>(param) ){
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// G4cout << "G4PhantomParameterisation volume found " << (*cite)->GetName() << G4endl;
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thePhantomParam = static_cast<G4PhantomParameterisation*>(param);
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}
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}
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if( !thePhantomParam && mustExist )
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G4Exception("G4EnergySplitter::GetPhantomParam",
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"PhantomParamError", FatalException,
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"No G4PhantomParameterisation found !");
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}
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//-----------------------------------------------------------------------
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G4bool G4EnergySplitter::IsPhantomVolume( G4VPhysicalVolume* pv )
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{
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EAxis axis;
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G4int nReplicas;
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G4double width,offset;
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G4bool consuming;
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pv->GetReplicationData(axis,nReplicas,width,offset,consuming);
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EVolume type = (consuming) ? kReplica : kParameterised;
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if( type == kParameterised && pv->GetRegularStructureId() == 1 ) {
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return TRUE;
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} else {
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return FALSE;
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}
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}
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//-----------------------------------------------------------------------
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void G4EnergySplitter::GetLastVoxelID( G4int& voxelID)
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{
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voxelID = (*(G4RegularNavigationHelper::Instance()->GetStepLengths().begin())).first;
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}
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//-----------------------------------------------------------------------
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void G4EnergySplitter::GetFirstVoxelID( G4int& voxelID)
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{
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voxelID = (*(G4RegularNavigationHelper::Instance()->GetStepLengths().rbegin())).first;
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}
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//-----------------------------------------------------------------------
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void G4EnergySplitter::GetVoxelID( G4int stepNo, G4int& voxelID )
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{
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if( stepNo < 0 || stepNo >= G4int(G4RegularNavigationHelper::Instance()->GetStepLengths().size()) ) {
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G4Exception("G4EnergySplitter::GetVoxelID",
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"Invalid stepNo, smaller than 0 or bigger or equal to number of voxels traversed",
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FatalErrorInArgument,
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G4String("stepNo = " + G4UIcommand::ConvertToString(stepNo) + ", number of voxels = " + G4UIcommand::ConvertToString(G4int(G4RegularNavigationHelper::Instance()->GetStepLengths().size())) ).c_str());
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}
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std::vector< std::pair<G4int,G4double> >::const_iterator ite = G4RegularNavigationHelper::Instance()->GetStepLengths().begin();
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advance( ite, stepNo );
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voxelID = (*ite).first;
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}
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//-----------------------------------------------------------------------
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void G4EnergySplitter::GetStepLength( G4int stepNo, G4double& stepLength )
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{
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std::vector< std::pair<G4int,G4double> >::const_iterator ite = G4RegularNavigationHelper::Instance()->GetStepLengths().begin();
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advance( ite, stepNo );
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stepLength = (*ite).second;
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}
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