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geant4/examples/extended/hadronic/Hadr05/src/TrackingAction.cc
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2023-12-08 10:43:34 +01:00

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//
// ********************************************************************
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//
/// \file TrackingAction.cc
/// \brief Implementation of the TrackingAction class
//
//
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#include "TrackingAction.hh"
#include "DetectorConstruction.hh"
#include "Run.hh"
#include "EventAction.hh"
#include "G4RunManager.hh"
#include "G4StepStatus.hh"
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TrackingAction::TrackingAction(DetectorConstruction* det, EventAction* evt)
:fDetector(det),fEventAct(evt)
{ }
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void TrackingAction::PreUserTrackingAction(const G4Track* track )
{
//get Run
Run* run = static_cast<Run*>(
G4RunManager::GetRunManager()->GetNonConstCurrentRun());
// Energy flow initialisation for primary particle
//
if (track->GetTrackID() == 1) {
G4int Idnow = 1;
if (track->GetVolume() != fDetector->GetphysiWorld()) {
// unique identificator of layer+absorber
const G4VTouchable* touchable = track->GetTouchable();
G4int absorNum = touchable->GetCopyNumber();
G4int layerNum = touchable->GetReplicaNumber(1);
Idnow = (fDetector->GetNbOfAbsor())*layerNum + absorNum;
}
G4double Eflow = track->GetKineticEnergy();
///if (track->GetDefinition() == G4Positron::Positron()) {
/// Eflow += 2*electron_mass_c2;
///}
//flux artefact, if primary vertex is inside the calorimeter
for (G4int pl=1; pl<=Idnow; ++pl) {run->SumEnergyFlow(pl, Eflow);}
}
}
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void TrackingAction::PostUserTrackingAction(const G4Track* aTrack)
{
// energy leakage
G4StepStatus status = aTrack->GetStep()->GetPostStepPoint()->GetStepStatus();
if (status == fWorldBoundary) {
G4int parentID = aTrack->GetParentID();
G4int index = 0; if (parentID > 0) index = 1; //primary=0, secondaries=1
G4double eleak = aTrack->GetKineticEnergy();
fEventAct->SumEnergyLeak(eleak,index);
}
}
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