225 lines
9.0 KiB
C++
225 lines
9.0 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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#ifndef PRIMARYGENERATORACTION_HH
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#define PRIMARYGENERATORACTION_HH
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#include "G4String.hh"
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#include "G4VUserPrimaryGeneratorAction.hh"
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#include "CLHEP/Units/SystemOfUnits.h"
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class G4ParticleGun;
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class G4Event;
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class G4Box;
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class PrimaryGeneratorMessenger;
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#ifdef WITHROOT
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#include <RtypesCore.h>
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class TFile;
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class TTreeReader;
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template <typename T> class TTreeReaderValue;
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#endif
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/**
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* @brief Primary generator
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*
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* Primary generator action.
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*
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* By default particle gun is used. It can be controlled with standard UI
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* commands (/gun/) and with additional ones introduced by the messenger.
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* "/HGCalTestbeam/generator/momentumSpread <VALUE>" to change constant
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* particle energy to Gaussian distribution with sigma expressed in units of the
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* initial energy (e.g. value 0.05 means sigma of 0.05 * E).
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* By default it equals to 0 and constant energy value is used.
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* "/HGCalTestbeam/generator/beamSpread <none/Gaussian/flat>" to define type of
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* beam position spread. By default none is used.
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* "/HGCalTestbeam/generator/beamSpreadX <SIZE>" to define size of beam spread
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* along x axis. It is sigma of a Gaussian distribution, or half-width of a
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* flat distribution.
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* "/HGCalTestbeam/generator/beamSpreadY <SIZE>" to define size of beam spread
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* along y axis. It is sigma of a Gaussian distribution, or half-width of a
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* flat distribution.
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* "/HGCalTestbeam/generator/fBeamZ0 <POSITION>" to define beam position along z
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* axis. By default edge of the world volume is used.
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*
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* If installation was done with ROOT package (CMake was able to locate it),
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* an additional option of input read from the ROOT file is enabled.
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* It can be activated with "/HGCalTestbeam/generator/fReadInputFile true".
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* "/HGCalTestbeam/generator/fPathInputFile <FILE>" sets the path to the input
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* file.
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* "/HGCalTestbeam/generator/startFromEvent <N>" allows to start simulation from
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* Nth event.
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* Please note that in current implementation input from file needs to be
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* executed in a non-multithreaded mode (or with 1 thread).
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*
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*/
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class PrimaryGeneratorAction : public G4VUserPrimaryGeneratorAction {
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public:
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PrimaryGeneratorAction();
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virtual ~PrimaryGeneratorAction();
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virtual void GeneratePrimaries(G4Event *);
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const G4ParticleGun *GetParticleGun() const { return fParticleGun; }
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#ifdef WITHROOT
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/// Open input file with list of particles
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void OpenInput();
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/// Set flag indicating that particles should be read from file
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inline void SetIfUseInputFiles(G4bool aUseInputFiles) {
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fReadInputFile = aUseInputFiles;
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};
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/// Set the flag indicating that particles should be read from file
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inline G4bool GetIfUseInputFiles() { return fReadInputFile; }
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/// Set the path to the input file
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inline void SetInputFiles(G4String aInputFiles) {
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fPathInputFile = aInputFiles;
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};
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/// Get the path to the input file
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inline G4String GetInputFiles() const { return fPathInputFile; }
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/// Set ID of the first event to be read for the simulation
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inline void SetStartFromEvent(G4int aStartFromEvent) {
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fStartFromEvent = aStartFromEvent;
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};
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/// Get ID of the first event to be read for the simulation
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inline G4int GetStartFromEvent() const { return fStartFromEvent; }
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#endif
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/// Set sigma of the Gaussian distribution for the momentum spread
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/// @param[in] aMomentumSpread sigma of Gaussian distribution expressed in
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/// units of initial energy (e.g. 0.05 means sigma = 0.05 * E)
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inline void SetMomentumSpread(G4double aMomentumSpread) {
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fMomentumGaussianSpread = aMomentumSpread;
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};
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/// Get sigma of the Gaussian distribution for the momentum spread
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inline G4double GetMomentumSpread() const { return fMomentumGaussianSpread; }
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/// Set type of beam position spread
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/// @param[in] aType Type of beam position spread: "none", "Gaussian" or
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/// "flat". By default "none" is used.
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inline void SetBeamSpreadType(G4String aType) {
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if (aType == "none")
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fBeamType = eNone;
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if (aType == "Gaussian")
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fBeamType = eGaussian;
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if (aType == "flat")
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fBeamType = eFlat;
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}
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/// Get type of beam position spread
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inline G4String GetBeamSpreadType() const {
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switch (fBeamType) {
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case eNone:
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return "none";
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break;
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case eGaussian:
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return "Gaussian";
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break;
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case eFlat:
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return "flat";
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break;
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}
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return "";
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}
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/// Set size of beam position spread along X axis
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/// @param[in] aBeamSpreadX Size of beam position spread. Sigma for Gaussian
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/// distribution or half-width of flat distribution.
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inline void SetBeamSpreadX(G4double aBeamSpreadX) {
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fSigmaBeamX = aBeamSpreadX;
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}
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/// Get size of beam position spread along X axis
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inline G4double GetBeamSpreadX() const { return fSigmaBeamX; }
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/// Set size of beam position spread along Y axis
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/// @param[in] aBeamSpreadY Size of beam position spread. Sigma for Gaussian
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/// distribution or half-width of flat distribution.
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inline void SetBeamSpreadY(G4double aBeamSpreadY) {
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fSigmaBeamY = aBeamSpreadY;
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}
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/// Get size of beam position spread along Y axis
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inline G4double GetBeamSpreadY() const { return fSigmaBeamY; }
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/// Set initial beam position along Z axis
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/// By default edge of world volume is used
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inline void SetBeamZ0(G4double aBeamZ0) { fBeamZ0 = aBeamZ0; }
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/// Get initial beam position along Z axis
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inline G4double GetBeamZ0() const { return fBeamZ0; }
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private:
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/// Pointer to the particle gun
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G4ParticleGun *fParticleGun;
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/// Pointer to the world volume for initial beam position
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G4Box *fEnvelopeBox;
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/// Pointer to the messenger with custom UI commands
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PrimaryGeneratorMessenger *fMessenger;
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/// enum describing the beam position spread in transverse plane
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enum eBeamType { eNone, eGaussian, eFlat };
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/// Type of beam position spread in transverse dimension
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eBeamType fBeamType = eBeamType::eNone;
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/// Size of beam position spread along X axis
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/// Sigma for Gaussian, and half-width for flat distribution
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G4double fSigmaBeamX = 0;
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/// Size of beam position spread along Y axis
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/// Sigma for Gaussian, and half-width for flat distribution
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G4double fSigmaBeamY = 0;
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/// Initial beam position along Z axis
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G4double fBeamZ0 = -999 * CLHEP::m;
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/// Sigma of Gaussian momentum spread
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G4double fMomentumGaussianSpread = 0;
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#ifdef WITHROOT
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/// Flag indicating if primaries should be read from file instead of using
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/// the particle gun
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G4bool fReadInputFile = false;
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/// Path to the input file
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G4String fPathInputFile = "";
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/// ID of the first event in the file to be used in this simulation
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G4int fStartFromEvent = 0;
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/// Counter of event
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G4int fEventCounter = -1;
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/// Pointer to the input file
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TFile *fInputFile = nullptr;
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/// Pointer to the tree containing particles
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TTreeReader *fHgcalReader = nullptr;
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/// Reader of event ID
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TTreeReaderValue<Float_t> *fHgcalEventId;
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/// Reader of particle PDG
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TTreeReaderValue<Float_t> *fHgcalPdgId;
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/// Reader of particle X position (in mm)
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TTreeReaderValue<Float_t> *fHgcalPosX;
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/// Reader of particle Y position (in mm)
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TTreeReaderValue<Float_t> *fHgcalPosY;
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/// Reader of particle Z position (in mm)
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// TTreeReaderValue<Float_t> *fHgcalPosZ;
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/// Reader of particle X momentum (in MeV)
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TTreeReaderValue<Float_t> *fHgcalMomX;
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/// Reader of particle Y momentum (in MeV)
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TTreeReaderValue<Float_t> *fHgcalMomY;
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/// Reader of particle Z momentum (in MeV)
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TTreeReaderValue<Float_t> *fHgcalMomZ;
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#endif
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};
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
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#endif
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