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extended/electromagnetic/TestEm3/src/TrackingAction.cc
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26 /// \file electromagnetic/TestEm3/src/TrackingAction.cc
27 /// \brief Implementation of the TrackingAction class
28 //
29 //
30 // $Id: TrackingAction.cc 73035 2013-08-15 09:27:10Z gcosmo $
31 //
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34 
35 #include "TrackingAction.hh"
36 
37 #include "DetectorConstruction.hh"
38 #include "RunAction.hh"
39 #include "EventAction.hh"
40 #include "HistoManager.hh"
41 
42 #include "G4Track.hh"
43 #include "G4Positron.hh"
44 #include "G4PhysicalConstants.hh"
45 
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47 
49 :G4UserTrackingAction(),fDetector(det), fRunAct(run)
50 { }
51 
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53 
55 {
56  // Energy flow initialisation for primary particle
57  //
58  if (track->GetTrackID() == 1) {
59  G4int Idnow = 1;
60  if (track->GetVolume() != fDetector->GetphysiWorld()) {
61  // unique identificator of layer+absorber
62  const G4VTouchable* touchable = track->GetTouchable();
63  G4int absorNum = touchable->GetCopyNumber();
64  G4int layerNum = touchable->GetReplicaNumber(1);
65  Idnow = (fDetector->GetNbOfAbsor())*layerNum + absorNum;
66  }
67 
68  G4double Eflow = track->GetKineticEnergy();
69  if (track->GetDefinition() == G4Positron::Positron())
70  Eflow += 2*electron_mass_c2;
71 
72  //flux artefact, if primary vertex is inside the calorimeter
73  for (G4int pl=1; pl<=Idnow; pl++) {fRunAct->SumEnergyFlow(pl, Eflow);}
74  } else {
75  fRunAct->AddSecondaryTrack(track);
76  }
77 }
78 
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80 
82 { }
83 
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85 
G4ParticleDefinition * GetDefinition() const
G4int GetCopyNumber(G4int depth=0) const
int G4int
Definition: G4Types.hh:78
G4double GetKineticEnergy() const
tuple pl
Definition: readPY.py:5
void PreUserTrackingAction(const G4Track *)
float electron_mass_c2
Definition: hepunit.py:274
G4int GetTrackID() const
void PostUserTrackingAction(const G4Track *)
static G4Positron * Positron()
Definition: G4Positron.cc:94
const G4VTouchable * GetTouchable() const
virtual G4int GetReplicaNumber(G4int depth=0) const
Definition: G4VTouchable.cc:58
G4VPhysicalVolume * GetVolume() const
double G4double
Definition: G4Types.hh:76