234 lines
8.4 KiB
C++
234 lines
8.4 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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//
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//---------------------------------------------------------------------------
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//
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// ClassName: G4HadronicParameters
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//
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// Author: 2018 Alberto Ribon
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//
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// Description: Singleton to keep global hadronic parameters.
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//
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// Modified:
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//
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//----------------------------------------------------------------------------
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//
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#ifndef G4HadronicParameters_h
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#define G4HadronicParameters_h 1
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#include "globals.hh"
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#include "G4Threading.hh"
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class G4HadronicParametersMessenger;
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class G4HadronicParameters {
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public:
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static G4HadronicParameters* Instance();
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~G4HadronicParameters();
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G4double GetMaxEnergy() const;
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void SetMaxEnergy( const G4double val );
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// Getter/Setter for the upper limit for Geant4 hadronic physics, for any application.
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// Any hadronic model, physics list builder and constructor should use this method
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// instead of putting an arbitrary value in the code.
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// Any application which tries to use hadronic physics for an energy higher than this limit
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// will get a run-time crash, because no model is found.
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G4double GetMinEnergyTransitionFTF_Cascade() const;
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G4double GetMaxEnergyTransitionFTF_Cascade() const;
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void SetMinEnergyTransitionFTF_Cascade( const G4double val );
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void SetMaxEnergyTransitionFTF_Cascade( const G4double val );
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// Getter/Setter of the recommended energy limits, for physics lists, of the
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// transition region between the Fritiof (FTF) string model and the
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// intranuclear cascade model, either Bertini (BERT) or Binary (BIC).
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G4double GetMinEnergyTransitionQGS_FTF() const;
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G4double GetMaxEnergyTransitionQGS_FTF() const;
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void SetMinEnergyTransitionQGS_FTF( const G4double val );
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void SetMaxEnergyTransitionQGS_FTF( const G4double val );
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// Getter/Setter of the recommended energy limits, for physics lists, of the
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// transition region between the two strings models - the Quark Gluon String (QGS)
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// model and the Fritiof (FTF) model.
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G4double EnergyThresholdForHeavyHadrons() const;
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void SetEnergyThresholdForHeavyHadrons( G4double val );
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// if max kinetic energy is below this limit EM and hadronic physics is not
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// instantiated for hyperons, anti-hyperons, anti light ions, b-, c- particles
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G4double XSFactorNucleonInelastic() const;
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void SetXSFactorNucleonInelastic( G4double val );
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G4double XSFactorNucleonElastic() const;
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void SetXSFactorNucleonElastic( G4double val );
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// cross section factor for protons and neutrons
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G4double XSFactorPionInelastic() const;
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void SetXSFactorPionInelastic( G4double val );
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G4double XSFactorPionElastic() const;
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void SetXSFactorPionElastic( G4double val );
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// cross section factor for pions
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G4double XSFactorHadronInelastic() const;
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void SetXSFactorHadronInelastic( G4double val );
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G4double XSFactorHadronElastic() const;
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void SetXSFactorHadronElastic( G4double val );
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// cross section factor for other hadrons and ions
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G4double XSFactorEM() const;
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void SetXSFactorEM( G4double val );
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// cross section factor for gamma and leptons
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G4bool EnableBCParticles() const;
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void SetEnableBCParticles( G4bool val );
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// Baryons and mesons with c- and b- quarks may be enabled/disabled
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// This flag is used both by EM and hadronic physics constructors
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G4bool EnableHyperNuclei() const;
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void SetEnableHyperNuclei( G4bool val );
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// Light hyper-nuclei may be enabled/disabled
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// This flag is used both by EM and hadronic physics constructors
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G4bool ApplyFactorXS() const;
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void SetApplyFactorXS( G4bool val );
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// Flag enabling cross section factor definition
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G4int GetVerboseLevel() const;
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void SetVerboseLevel( const G4int val );
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// Getter/Setter of the general verbosity level for hadronics.
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G4bool EnableCRCoalescence() const;
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void SetEnableCRCoalescence( G4bool val );
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// Boolean switch that allows to apply the Cosmic Ray (CR) coalescence algorithm
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// to the secondaries produced by a string model. By default it is disabled.
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private:
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G4HadronicParameters();
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G4bool IsLocked() const;
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static G4HadronicParameters* sInstance;
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#ifdef G4MULTITHREADED
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static G4Mutex paramMutex;
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#endif
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G4HadronicParametersMessenger* fMessenger;
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G4double fMaxEnergy;
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G4double fMinEnergyTransitionFTF_Cascade;
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G4double fMaxEnergyTransitionFTF_Cascade;
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G4double fMinEnergyTransitionQGS_FTF;
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G4double fMaxEnergyTransitionQGS_FTF;
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G4double fEnergyThresholdForHeavyHadrons;
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G4double fXSFactorNucleonInelastic = 1.0;
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G4double fXSFactorPionInelastic = 1.0;
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G4double fXSFactorHadronInelastic = 1.0;
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G4double fXSFactorNucleonElastic = 1.0;
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G4double fXSFactorPionElastic = 1.0;
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G4double fXSFactorHadronElastic = 1.0;
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G4double fXSFactorEM = 1.0;
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G4double fXSFactorLimit = 0.2;
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G4int fVerboseLevel = 1;
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G4bool fEnableBC = false;
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G4bool fEnableHyperNuclei = false;
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G4bool fApplyFactorXS = false;
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G4bool fEnableCRCoalescence = false;
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};
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inline G4double G4HadronicParameters::GetMaxEnergy() const {
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return fMaxEnergy;
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}
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inline G4double G4HadronicParameters::GetMinEnergyTransitionFTF_Cascade() const {
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return fMinEnergyTransitionFTF_Cascade;
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}
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inline G4double G4HadronicParameters::GetMaxEnergyTransitionFTF_Cascade() const {
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return fMaxEnergyTransitionFTF_Cascade;
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}
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inline G4double G4HadronicParameters::GetMinEnergyTransitionQGS_FTF() const {
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return fMinEnergyTransitionQGS_FTF;
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}
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inline G4double G4HadronicParameters::GetMaxEnergyTransitionQGS_FTF() const {
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return fMaxEnergyTransitionQGS_FTF;
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}
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inline G4double G4HadronicParameters::EnergyThresholdForHeavyHadrons() const {
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return fEnergyThresholdForHeavyHadrons;
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}
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inline G4double G4HadronicParameters::XSFactorNucleonInelastic() const {
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return fXSFactorNucleonInelastic;
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}
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inline G4double G4HadronicParameters::XSFactorNucleonElastic() const {
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return fXSFactorNucleonElastic;
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}
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inline G4double G4HadronicParameters::XSFactorPionInelastic() const {
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return fXSFactorPionInelastic;
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}
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inline G4double G4HadronicParameters::XSFactorPionElastic() const {
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return fXSFactorPionElastic;
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}
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inline G4double G4HadronicParameters::XSFactorHadronInelastic() const {
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return fXSFactorHadronInelastic;
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}
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inline G4double G4HadronicParameters::XSFactorHadronElastic() const {
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return fXSFactorHadronElastic;
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}
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inline G4double G4HadronicParameters::XSFactorEM() const {
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return fXSFactorEM;
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}
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inline G4int G4HadronicParameters::GetVerboseLevel() const {
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return fVerboseLevel;
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}
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inline G4bool G4HadronicParameters::EnableBCParticles() const {
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return fEnableBC;
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}
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inline G4bool G4HadronicParameters::EnableHyperNuclei() const {
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return fEnableHyperNuclei;
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}
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inline G4bool G4HadronicParameters::ApplyFactorXS() const {
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return fApplyFactorXS;
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}
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inline G4bool G4HadronicParameters::EnableCRCoalescence() const {
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return fEnableCRCoalescence;
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}
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#endif
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