615 lines
18 KiB
C++
615 lines
18 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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// $Id: G4HadronicProcessStore.cc,v 1.7 2008/10/22 07:58:20 vnivanch Exp $
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// GEANT4 tag $Name: geant4-09-02 $
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//
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// -------------------------------------------------------------------
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//
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// GEANT4 Class file
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//
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//
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// File name: G4HadronicProcessStore
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//
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// Author: Vladimir Ivanchenko
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//
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// Creation date: 09.05.2008
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//
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// Modifications:
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//
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//
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// Class Description:
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//
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// -------------------------------------------------------------------
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//
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo....
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo....
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#include "G4HadronicProcessStore.hh"
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#include "G4Element.hh"
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#include "G4ProcessManager.hh"
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#include "G4Electron.hh"
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#include "G4Proton.hh"
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G4HadronicProcessStore* G4HadronicProcessStore::theInstance = 0;
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4HadronicProcessStore* G4HadronicProcessStore::Instance()
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{
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if(0 == theInstance) {
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static G4HadronicProcessStore manager;
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theInstance = &manager;
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}
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return theInstance;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4HadronicProcessStore::~G4HadronicProcessStore()
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{
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/*
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for (G4int i=0; i<n_proc; i++) {
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if( process[i] ) delete process[i];
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}
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*/
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4HadronicProcessStore::G4HadronicProcessStore()
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{
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n_proc = 0;
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n_part = 0;
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n_model= 0;
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n_extra= 0;
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currentProcess = 0;
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currentParticle = 0;
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verbose = 1;
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buildTableStart = true;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetElasticCrossSectionPerVolume(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Material *material)
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{
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G4double cross = 0.0;
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const G4ElementVector* theElementVector = material->GetElementVector();
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const G4double* theAtomNumDensityVector = material->GetVecNbOfAtomsPerVolume();
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size_t nelm = material->GetNumberOfElements();
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for (size_t i=0; i<nelm; i++) {
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const G4Element* elm = (*theElementVector)[i];
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cross += theAtomNumDensityVector[i]*
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GetElasticCrossSectionPerAtom(aParticle,kineticEnergy,elm);
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}
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetElasticCrossSectionPerAtom(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Element *anElement)
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{
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G4HadronicProcess* hp = FindProcess(aParticle, fHadronElastic);
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localDP.SetKineticEnergy(kineticEnergy);
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G4double cross = 0.0;
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if(hp) cross = hp->GetMicroscopicCrossSection(&localDP,
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anElement,
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STP_Temperature);
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetElasticCrossSectionPerIsotope(
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const G4ParticleDefinition*,
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G4double,
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G4int, G4int)
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{
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return 0.0;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetInelasticCrossSectionPerVolume(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Material *material)
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{
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G4double cross = 0.0;
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const G4ElementVector* theElementVector = material->GetElementVector();
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const G4double* theAtomNumDensityVector = material->GetVecNbOfAtomsPerVolume();
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size_t nelm = material->GetNumberOfElements();
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for (size_t i=0; i<nelm; i++) {
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const G4Element* elm = (*theElementVector)[i];
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cross += theAtomNumDensityVector[i]*
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GetInelasticCrossSectionPerAtom(aParticle,kineticEnergy,elm);
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}
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetInelasticCrossSectionPerAtom(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Element *anElement)
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{
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G4HadronicProcess* hp = FindProcess(aParticle, fHadronInelastic);
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localDP.SetDefinition(const_cast<G4ParticleDefinition*>(aParticle));
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localDP.SetKineticEnergy(kineticEnergy);
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G4double cross = 0.0;
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if(hp) cross = hp->GetMicroscopicCrossSection(&localDP,
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anElement,
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STP_Temperature);
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetInelasticCrossSectionPerIsotope(
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const G4ParticleDefinition *,
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G4double,
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G4int, G4int)
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{
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return 0.0;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetCaptureCrossSectionPerVolume(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Material *material)
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{
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G4double cross = 0.0;
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const G4ElementVector* theElementVector = material->GetElementVector();
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const G4double* theAtomNumDensityVector = material->GetVecNbOfAtomsPerVolume();
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size_t nelm = material->GetNumberOfElements();
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for (size_t i=0; i<nelm; i++) {
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const G4Element* elm = (*theElementVector)[i];
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cross += theAtomNumDensityVector[i]*
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GetCaptureCrossSectionPerAtom(aParticle,kineticEnergy,elm);
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}
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetCaptureCrossSectionPerAtom(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Element *anElement)
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{
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G4HadronicProcess* hp = FindProcess(aParticle, fCapture);
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localDP.SetDefinition(const_cast<G4ParticleDefinition*>(aParticle));
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localDP.SetKineticEnergy(kineticEnergy);
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G4double cross = 0.0;
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if(hp) cross = hp->GetMicroscopicCrossSection(&localDP,
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anElement,
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STP_Temperature);
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetCaptureCrossSectionPerIsotope(
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const G4ParticleDefinition *,
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G4double,
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G4int, G4int)
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{
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return 0.0;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetFissionCrossSectionPerVolume(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Material *material)
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{
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G4double cross = 0.0;
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const G4ElementVector* theElementVector = material->GetElementVector();
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const G4double* theAtomNumDensityVector = material->GetVecNbOfAtomsPerVolume();
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size_t nelm = material->GetNumberOfElements();
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for (size_t i=0; i<nelm; i++) {
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const G4Element* elm = (*theElementVector)[i];
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cross += theAtomNumDensityVector[i]*
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GetFissionCrossSectionPerAtom(aParticle,kineticEnergy,elm);
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}
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetFissionCrossSectionPerAtom(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Element *anElement)
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{
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G4HadronicProcess* hp = FindProcess(aParticle, fFission);
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localDP.SetDefinition(const_cast<G4ParticleDefinition*>(aParticle));
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localDP.SetKineticEnergy(kineticEnergy);
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G4double cross = 0.0;
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if(hp) cross = hp->GetMicroscopicCrossSection(&localDP,
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anElement,
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STP_Temperature);
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetFissionCrossSectionPerIsotope(
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const G4ParticleDefinition *,
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G4double,
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G4int, G4int)
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{
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return 0.0;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetChargeExchangeCrossSectionPerVolume(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Material *material)
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{
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G4double cross = 0.0;
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const G4ElementVector* theElementVector = material->GetElementVector();
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const G4double* theAtomNumDensityVector = material->GetVecNbOfAtomsPerVolume();
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size_t nelm = material->GetNumberOfElements();
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for (size_t i=0; i<nelm; i++) {
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const G4Element* elm = (*theElementVector)[i];
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cross += theAtomNumDensityVector[i]*
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GetChargeExchangeCrossSectionPerAtom(aParticle,kineticEnergy,elm);
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}
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetChargeExchangeCrossSectionPerAtom(
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const G4ParticleDefinition *aParticle,
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G4double kineticEnergy,
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const G4Element *anElement)
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{
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G4HadronicProcess* hp = FindProcess(aParticle, fChargeExchange);
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localDP.SetDefinition(const_cast<G4ParticleDefinition*>(aParticle));
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localDP.SetKineticEnergy(kineticEnergy);
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G4double cross = 0.0;
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if(hp) cross = hp->GetMicroscopicCrossSection(&localDP,
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anElement,
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STP_Temperature);
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return cross;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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G4double G4HadronicProcessStore::GetChargeExchangeCrossSectionPerIsotope(
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const G4ParticleDefinition *,
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G4double,
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G4int, G4int)
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{
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return 0.0;
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::Register(G4HadronicProcess* proc)
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{
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for(G4int i=0; i<n_proc; i++) {if(process[i] == proc) return;}
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n_proc++;
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process.push_back(proc);
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::RegisterParticle(G4HadronicProcess* proc,
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const G4ParticleDefinition* part)
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{
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G4int i=0;
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for(; i<n_proc; i++) {if(process[i] == proc) break;}
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G4int j=0;
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for(; j<n_part; j++) {if(particle[j] == part) break;}
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if(j == n_part) {
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n_part++;
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particle.push_back(part);
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wasPrinted.push_back(0);
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}
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// the pair should be added?
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if(i < n_proc) {
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std::multimap<PD,HP,std::less<PD> >::iterator it;
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for(it=p_map.lower_bound(part); it!=p_map.upper_bound(part); ++it) {
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if(it->first == part) {
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HP process = (it->second);
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if(proc == process) return;
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}
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}
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}
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p_map.insert(std::multimap<PD,HP>::value_type(part,proc));
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::RegisterInteraction(G4HadronicProcess* proc,
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G4HadronicInteraction* mod)
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{
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G4int i=0;
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for(; i<n_proc; i++) {if(process[i] == proc) break;}
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G4int k=0;
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for(; k<n_model; k++) {if(model[k] == mod) break;}
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m_map.insert(std::multimap<HP,HI>::value_type(proc,mod));
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if(k == n_model) {
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n_model++;
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model.push_back(mod);
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modelName.push_back(mod->GetModelName());
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}
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::DeRegister(G4HadronicProcess* proc)
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{
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for(G4int i=0; i<n_proc; i++) {
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if(process[i] == proc) {
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process[i] = 0;
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break;
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}
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}
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::RegisterExtraProcess(G4VProcess* proc)
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{
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for(G4int i=0; i<n_extra; i++) {if(extraProcess[i] == proc) return;}
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n_extra++;
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extraProcess.push_back(proc);
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::RegisterParticleForExtraProcess(
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G4VProcess* proc,
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const G4ParticleDefinition* part)
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{
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G4int i=0;
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for(; i<n_extra; i++) {if(extraProcess[i] == proc) break;}
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G4int j=0;
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for(; j<n_part; j++) {if(particle[j] == part) break;}
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if(j == n_part) {
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n_part++;
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particle.push_back(part);
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wasPrinted.push_back(0);
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}
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// the pair should be added?
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if(i < n_extra) {
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std::multimap<PD,G4VProcess*,std::less<PD> >::iterator it;
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for(it=ep_map.lower_bound(part); it!=ep_map.upper_bound(part); ++it) {
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if(it->first == part) {
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G4VProcess* process = (it->second);
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if(proc == process) return;
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}
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}
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}
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ep_map.insert(std::multimap<PD,G4VProcess*>::value_type(part,proc));
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::DeRegisterExtraProcess(G4VProcess* proc)
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{
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for(G4int i=0; i<n_extra; i++) {
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if(extraProcess[i] == proc) {
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extraProcess[i] = 0;
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break;
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}
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}
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::PrintInfo(const G4ParticleDefinition* part)
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{
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if(buildTableStart && part == particle[n_part - 1]) {
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buildTableStart = false;
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Dump(verbose);
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}
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}
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
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void G4HadronicProcessStore::Dump(G4int level)
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{
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if(level > 0) {
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G4cout << "=============================================================="
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<< "=============================="
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<< G4endl;
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G4cout << " HADRONIC PROCESSES SUMMARY (verbose level " << level
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<< ")" << G4endl;
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}
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for(G4int i=0; i<n_part; i++) {
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PD part = particle[i];
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G4String pname = part->GetParticleName();
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G4bool yes = false;
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if(level >= 2) yes = true;
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else if(level == 1 && (pname == "proton" ||
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pname == "neutron" ||
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pname == "pi+" ||
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pname == "pi-" ||
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pname == "gamma" ||
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pname == "e-" ||
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pname == "mu-" ||
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pname == "kaon+" ||
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pname == "kaon-" ||
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pname == "lambda" ||
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pname == "anti_neutron" ||
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pname == "anti_proton")) yes = true;
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if(yes) {
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// main processes
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std::multimap<PD,HP,std::less<PD> >::iterator it;
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for(it=p_map.lower_bound(part); it!=p_map.upper_bound(part); ++it) {
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if(it->first == part) {
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HP proc = (it->second);
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|
G4int j=0;
|
|
for(; j<n_proc; j++) {
|
|
if(process[j] == proc) {
|
|
Print(j, i);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
// extra processes
|
|
std::multimap<PD,G4VProcess*,std::less<PD> >::iterator itp;
|
|
for(itp=ep_map.lower_bound(part); itp!=ep_map.upper_bound(part); ++itp) {
|
|
if(itp->first == part) {
|
|
G4VProcess* proc = (itp->second);
|
|
if(wasPrinted[i] == 0) {
|
|
wasPrinted[i] = 1;
|
|
G4cout<<G4endl;
|
|
G4cout << " Hadronic Processes for <"
|
|
<<part->GetParticleName() << ">" << G4endl;
|
|
}
|
|
G4cout << " " << proc->GetProcessName() << G4endl;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
if(level > 0) {
|
|
G4cout << "=============================================================="
|
|
<< "=============================="
|
|
<< G4endl;
|
|
}
|
|
}
|
|
|
|
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
|
|
|
|
void G4HadronicProcessStore::Print(G4int idxProc, G4int idxPart)
|
|
{
|
|
G4HadronicProcess* proc = process[idxProc];
|
|
const G4ParticleDefinition* part = particle[idxPart];
|
|
if(wasPrinted[idxPart] == 0) {
|
|
wasPrinted[idxPart] = 1;
|
|
G4cout<<G4endl;
|
|
G4cout << " Hadronic Processes for <"
|
|
<<part->GetParticleName() << ">" << G4endl;
|
|
}
|
|
HI hi = 0;
|
|
G4bool first;
|
|
std::multimap<HP,HI,std::less<HP> >::iterator ih;
|
|
G4cout << std::setw(20) << proc->GetProcessName()
|
|
<< " Models: ";
|
|
first = true;
|
|
for(ih=m_map.lower_bound(proc); ih!=m_map.upper_bound(proc); ++ih) {
|
|
if(ih->first == proc) {
|
|
hi = ih->second;
|
|
G4int i=0;
|
|
for(; i<n_model; i++) {
|
|
if(model[i] == hi) break;
|
|
}
|
|
if(!first) G4cout << " ";
|
|
first = false;
|
|
G4cout << std::setw(25) << modelName[i]
|
|
<< ": Emin(GeV)= "
|
|
<< std::setw(5) << hi->GetMinEnergy()/GeV
|
|
<< " Emax(GeV)= "
|
|
<< hi->GetMaxEnergy()/GeV
|
|
<< G4endl;
|
|
}
|
|
}
|
|
}
|
|
|
|
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
|
|
|
|
void G4HadronicProcessStore::SetVerbose(G4int val)
|
|
{
|
|
verbose = val;
|
|
G4int i;
|
|
for(i=0; i<n_proc; i++) {
|
|
if(process[i]) process[i]->SetVerboseLevel(val);
|
|
}
|
|
for(i=0; i<n_model; i++) {
|
|
if(model[i]) model[i]->SetVerboseLevel(val);
|
|
}
|
|
}
|
|
|
|
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
|
|
|
|
G4int G4HadronicProcessStore::GetVerbose()
|
|
{
|
|
return verbose;
|
|
}
|
|
|
|
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
|
|
|
|
G4HadronicProcess* G4HadronicProcessStore::FindProcess(
|
|
const G4ParticleDefinition* part, G4HadronicProcessType subType)
|
|
{
|
|
bool isNew = false;
|
|
G4HadronicProcess* hp = 0;
|
|
|
|
if(part != currentParticle) {
|
|
isNew = true;
|
|
currentParticle = part;
|
|
localDP.SetDefinition(const_cast<G4ParticleDefinition*>(part));
|
|
} else if(!currentProcess) {
|
|
isNew = true;
|
|
} else if(subType == currentProcess->GetProcessSubType()) {
|
|
hp = currentProcess;
|
|
} else {
|
|
isNew = true;
|
|
}
|
|
|
|
if(isNew) {
|
|
std::multimap<PD,HP,std::less<PD> >::iterator it;
|
|
for(it=p_map.lower_bound(part); it!=p_map.upper_bound(part); ++it) {
|
|
if(it->first == part && subType == (it->second)->GetProcessSubType()) {
|
|
hp = it->second;
|
|
break;
|
|
}
|
|
}
|
|
currentProcess = hp;
|
|
}
|
|
|
|
return hp;
|
|
}
|
|
|
|
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.....
|