497 lines
14 KiB
C++
497 lines
14 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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// Author: Mathieu Karamitros
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// The code is developed in the framework of the ESA AO7146
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//
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// We would be very happy hearing from you, send us your feedback! :)
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//
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// In order for Geant4-DNA to be maintained and still open-source,
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// article citations are crucial.
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// If you use Geant4-DNA chemistry and you publish papers about your software,
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// in addition to the general paper on Geant4-DNA:
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//
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// Int. J. Model. Simul. Sci. Comput. 1 (2010) 157–178
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//
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// we would be very happy if you could please also cite the following
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// reference papers on chemistry:
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//
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// J. Comput. Phys. 274 (2014) 841-882
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// Prog. Nucl. Sci. Tec. 2 (2011) 503-508
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#ifndef G4ITSTEPPROCESSOR_H
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#define G4ITSTEPPROCESSOR_H
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#include "G4ios.hh" // Include from 'system'
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#include "globals.hh" // Include from 'global'
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#include "Randomize.hh" // Include from 'global'
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#include "G4LogicalVolume.hh" // Include from 'geometry'
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#include "G4VPhysicalVolume.hh" // Include from 'geometry'
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#include "G4ProcessManager.hh" // Include from 'piim'
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#include "G4Track.hh" // Include from 'track'
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#include "G4TrackVector.hh" // Include from 'track'
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#include "G4TrackStatus.hh" // Include from 'track'
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#include "G4StepStatus.hh" // Include from 'track'
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//#include "G4UserSteppingAction.hh" // Include from 'tracking'
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//#include "G4UserTrackingAction.hh" // Include from 'tracking'
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#include "G4Step.hh" // Include from 'track'
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#include "G4StepPoint.hh" // Include from 'track'
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#include "G4TouchableHandle.hh" // Include from 'geometry'
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#include "G4TouchableHistoryHandle.hh" // Include from 'geometry'
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#include "G4ITStepProcessorState_Lock.hh"
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#include "G4ITLeadingTracks.hh"
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class G4ITNavigator;
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class G4ParticleDefinition;
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class G4ITTrackingManager;
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class G4IT;
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class G4TrackingInformation;
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class G4ITTransportation;
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class G4VITProcess;
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class G4VITSteppingVerbose;
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class G4ITTrackHolder;
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typedef class std::vector<int, std::allocator<int> > G4SelectedAtRestDoItVector;
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typedef class std::vector<int, std::allocator<int> > G4SelectedAlongStepDoItVector;
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typedef class std::vector<int, std::allocator<int> > G4SelectedPostStepDoItVector;
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//________________________________________________
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//
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// Members related to ParticleDefinition and not
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// proper to a track
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//________________________________________________
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struct ProcessGeneralInfo
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{
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G4ProcessVector* fpAtRestDoItVector;
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G4ProcessVector* fpAlongStepDoItVector;
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G4ProcessVector* fpPostStepDoItVector;
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G4ProcessVector* fpAtRestGetPhysIntVector;
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G4ProcessVector* fpAlongStepGetPhysIntVector;
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G4ProcessVector* fpPostStepGetPhysIntVector;
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//
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// Note: DoItVector has inverse order against GetPhysIntVector
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// and SelectedPostStepDoItVector.
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//
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// * Max number of processes
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size_t MAXofAtRestLoops;
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size_t MAXofAlongStepLoops;
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size_t MAXofPostStepLoops;
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// Maximum number of processes for each type of process
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// These depend on the G4ParticleDefinition, so on the track
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// * Transportation process
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G4ITTransportation* fpTransportation;
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};
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//________________________________________________
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//
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// Members proper to a track
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//________________________________________________
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class G4ITStepProcessorState : public G4ITStepProcessorState_Lock
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{
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public:
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G4ITStepProcessorState();
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virtual ~G4ITStepProcessorState();
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G4ITStepProcessorState(const G4ITStepProcessorState&);
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G4ITStepProcessorState& operator=(const G4ITStepProcessorState&);
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// * Max Number of Process
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G4SelectedAtRestDoItVector fSelectedAtRestDoItVector;
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G4SelectedPostStepDoItVector fSelectedPostStepDoItVector;
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G4double fPhysicalStep;
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G4double fPreviousStepSize;
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G4double fSafety;
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G4StepStatus fStepStatus;
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// * Safety
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G4double fProposedSafety;
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// This keeps the minimum safety value proposed by AlongStepGPILs.
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G4ThreeVector fEndpointSafOrigin;
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G4double fEndpointSafety;
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// To get the true safety value at the PostStepPoint, you have
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// to subtract the distance to 'endpointSafOrigin' from this value.
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G4TouchableHandle fTouchableHandle;
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};
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/**
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* Its role is the same as G4StepManager :
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* - Find the minimum physical length and corresponding time step
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* - Step one track BUT on a given time step.
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*/
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class G4ITStepProcessor
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{
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friend class G4Scheduler;
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public:
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G4ITStepProcessor();
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virtual ~G4ITStepProcessor();
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inline void SetPreviousStepTime(G4double);
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inline G4Track* GetTrack()
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{
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return fpTrack;
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}
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inline G4Step* GetStep()
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{
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return fpStep;
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}
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inline const G4Step* GetStep() const
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{
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return fpStep;
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}
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inline void SetStep(G4Step* val)
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{
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fpStep = val;
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}
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inline G4TrackVector* GetSecondaries() const
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{
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return fpSecondary;
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}
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inline void SetTrackingManager(G4ITTrackingManager* trackMan)
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{
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fpTrackingManager = trackMan;
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}
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inline G4ITTrackingManager* GetTrackingManager()
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{
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return fpTrackingManager;
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}
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//___________________________________
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virtual void Initialize();
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void ForceReInitialization();
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void ResetLeadingTracks();
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void PrepareLeadingTracks();
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//___________________________________
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G4double ComputeInteractionLength(double previousTimeStep);
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void DefinePhysicalStepLength(G4Track*);
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G4double GetILTimeStep()
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{
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return fILTimeStep;
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}
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//___________________________________
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// DoIt
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void DoIt(double timeStep);
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void ExtractDoItData();
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void Stepping(G4Track*, const double&);
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void FindTransportationStep();
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//___________________________________
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inline double GetInteractionTime();
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inline const G4Track* GetTrack() const;
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inline void CleanProcessor();
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size_t GetAtRestDoItProcTriggered() const
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{
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return fAtRestDoItProcTriggered;
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}
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G4GPILSelection GetGPILSelection() const
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{
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return fGPILSelection;
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}
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G4int GetN2ndariesAlongStepDoIt() const
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{
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return fN2ndariesAlongStepDoIt;
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}
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G4int GetN2ndariesAtRestDoIt() const
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{
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return fN2ndariesAtRestDoIt;
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}
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G4int GetN2ndariesPostStepDoIt() const
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{
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return fN2ndariesPostStepDoIt;
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}
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const G4VITProcess* GetCurrentProcess() const
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{
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return fpCurrentProcess;
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}
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G4double GetPhysIntLength() const
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{
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return fPhysIntLength;
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}
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size_t GetPostStepAtTimeDoItProcTriggered() const
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{
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return fPostStepAtTimeDoItProcTriggered;
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}
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size_t GetPostStepDoItProcTriggered() const
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{
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return fPostStepDoItProcTriggered;
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}
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const ProcessGeneralInfo* GetCurrentProcessInfo() const
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{
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return fpProcessInfo;
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}
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const G4ITStepProcessorState* GetProcessorState() const
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{
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return fpState;
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}
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const G4VParticleChange* GetParticleChange() const
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{
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return fpParticleChange;
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}
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const G4VPhysicalVolume* GetCurrentVolume() const
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{
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return fpCurrentVolume;
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}
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G4ForceCondition GetCondition() const
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{
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return fCondition;
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}
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protected:
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void ExtractILData();
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void SetupGeneralProcessInfo(G4ParticleDefinition*, G4ProcessManager*);
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void ClearProcessInfo();
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void SetTrack(G4Track*);
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void GetProcessInfo();
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void SetupMembers();
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void ResetSecondaries();
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void InitDefineStep();
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void SetInitialStep();
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void GetAtRestIL();
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void DoDefinePhysicalStepLength();
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void DoStepping();
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void PushSecondaries();
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// void CalculateStep();
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// void DoCalculateStep();
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// void CloneProcesses();
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void ActiveOnlyITProcess();
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void ActiveOnlyITProcess(G4ProcessManager*);
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void DealWithSecondaries(G4int&);
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void InvokeAtRestDoItProcs();
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void InvokeAlongStepDoItProcs();
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void InvokePostStepDoItProcs();
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void InvokePSDIP(size_t); //
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void InvokeTransportationProc();
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void SetNavigator(G4ITNavigator *value);
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G4double CalculateSafety();
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// Return the estimated safety value at the PostStepPoint
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void ApplyProductionCut(G4Track*);
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G4ITStepProcessor(const G4ITStepProcessor& other);
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G4ITStepProcessor& operator=(const G4ITStepProcessor& other);
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private:
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//________________________________________________
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//
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// General members
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//________________________________________________
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G4bool fInitialized;
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G4ITTrackingManager* fpTrackingManager;
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G4double kCarTolerance;
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// Cached geometrical tolerance on surface
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G4ITNavigator* fpNavigator;
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G4int fStoreTrajectory;
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G4VITSteppingVerbose* fpVerbose;
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G4ITTrackHolder* fpTrackContainer;
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G4ITLeadingTracks fLeadingTracks;
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//________________________________________________
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//
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// Members used as temporaries (= not proper to a track)
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//________________________________________________
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G4double fTimeStep; // not proper to a track
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G4double fILTimeStep; // proper to a track ensemble
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G4double fPreviousTimeStep;
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G4TrackVector* fpSecondary; // get from fpStep at every configuration setup
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G4VParticleChange* fpParticleChange;
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G4VITProcess* fpCurrentProcess;
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// The pointer to the process of which DoIt or
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// GetPhysicalInteractionLength has been just executed
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// * Secondaries
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G4int fN2ndariesAtRestDoIt;
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G4int fN2ndariesAlongStepDoIt;
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G4int fN2ndariesPostStepDoIt;
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// These are the numbers of secondaries generated by the process
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// just executed.
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// * Process selection
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size_t fAtRestDoItProcTriggered;
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size_t fPostStepDoItProcTriggered;
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size_t fPostStepAtTimeDoItProcTriggered;
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// Record the selected process
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G4ForceCondition fCondition;
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G4GPILSelection fGPILSelection;
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// Above three variables are for the method
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// DefinePhysicalStepLength(). To pass these information to
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// the method Verbose, they are kept at here. Need a more
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// elegant mechanism.
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G4double fPhysIntLength;
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// The minimum physical interaction length over all possible processes
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// * Sensitive detector
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// G4SteppingControl StepControlFlag;
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// G4VSensitiveDetector* fpSensitive;
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G4VPhysicalVolume* fpCurrentVolume;
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// Get from fpStep or touchable, keep as member for user interface
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//________________________________________________
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//
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// Members related to ParticleDefinition and not
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// proper to a track
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//________________________________________________
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std::map<const G4ParticleDefinition*, ProcessGeneralInfo*> fProcessGeneralInfoMap;
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ProcessGeneralInfo* fpProcessInfo;
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G4ITTransportation* fpTransportation;
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//________________________________________________
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//
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// Members used for setting up the processor
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//________________________________________________
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G4Track* fpTrack; // Set track
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G4IT* fpITrack; // Set track
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G4TrackingInformation* fpTrackingInfo; // Set track
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G4ITStepProcessorState* fpState; // SetupMembers or InitDefineStep
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G4Step* fpStep; // Set track or InitDefineStep
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G4StepPoint* fpPreStepPoint; // SetupMembers
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G4StepPoint* fpPostStepPoint; // SetupMembers
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};
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//______________________________________________________________________________
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inline void G4ITStepProcessor::SetPreviousStepTime(G4double previousTimeStep)
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{
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fPreviousTimeStep = previousTimeStep;
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}
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//______________________________________________________________________________
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inline const G4Track* G4ITStepProcessor::GetTrack() const
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{
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return fpTrack;
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}
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//______________________________________________________________________________
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inline G4double G4ITStepProcessor::CalculateSafety()
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{
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return std::max(fpState->fEndpointSafety - (fpState->fEndpointSafOrigin
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- fpPostStepPoint->GetPosition()).mag(),
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kCarTolerance);
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}
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//______________________________________________________________________________
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inline void G4ITStepProcessor::SetNavigator(G4ITNavigator *value)
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{
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fpNavigator = value;
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}
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//______________________________________________________________________________
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inline void G4ITStepProcessor::CleanProcessor()
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{
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fTimeStep = DBL_MAX;
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fPhysIntLength = DBL_MAX;
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fpState = 0;
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fpTrack = 0;
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fpTrackingInfo = 0;
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fpITrack = 0;
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fpStep = 0;
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fpPreStepPoint = 0;
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fpPostStepPoint = 0;
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fpParticleChange = 0;
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fpCurrentVolume = 0;
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// fpSensitive = 0;
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fpSecondary = 0;
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fpTransportation = 0;
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fpCurrentProcess= 0;
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fpProcessInfo = 0;
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fAtRestDoItProcTriggered = INT_MAX;
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fPostStepDoItProcTriggered = INT_MAX;
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fPostStepAtTimeDoItProcTriggered = INT_MAX;
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fGPILSelection = NotCandidateForSelection;
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fCondition = NotForced;
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}
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//______________________________________________________________________________
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inline double G4ITStepProcessor::GetInteractionTime()
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{
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return fTimeStep;
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}
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#endif // G4ITSTEPPROCESSOR_H
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