186 lines
7.2 KiB
C++
186 lines
7.2 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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// This is the *BASIC* version of IORT, a Geant4-based application
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//
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// Main Authors: G.Russo(a,b), C.Casarino*(c), G.C. Candiano(c),
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// G.A.P. Cirrone(d), F.Romano(d)
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// Contributor Authors: S.Guatelli(e)
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// Past Authors: G.Arnetta(c), S.E.Mazzaglia(d)
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//
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// (a) Fondazione Istituto San Raffaele G.Giglio, Cefalù, Italy
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// (b) IBFM-CNR , Segrate (Milano), Italy
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// (c) LATO (Laboratorio di Tecnologie Oncologiche), Cefalù, Italy
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// (d) Laboratori Nazionali del Sud of the INFN, Catania, Italy
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// (e) University of Wallongong, Australia
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//
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// *Corresponding author, email to carlo.casarino@polooncologicocefalu.it
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//////////////////////////////////////////////////////////////////////////////////////////////
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#ifndef IORTTHERAPYANALYSISMANAGER_HH
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#define IORTTHERAPYANALYSISMANAGER_HH 1
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#include "globals.hh"
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#include "g4root.hh"
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/**
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* Messenger class for analysis-settings for HadronTherapyAnalysisManager
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*/
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class IORTAnalysisFileMessenger;
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/**
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* A class for connecting the simulation to an analysis package.
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*/
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class IORTAnalysisManager
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{
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private:
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/**
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* Analysis manager is a singleton object (there is only one instance).
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* The pointer to this object is available through the use of the method GetInstance();
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*
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* @see GetInstance
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*/
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IORTAnalysisManager();
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public:
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~IORTAnalysisManager();
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/**
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* Get the pointer to the analysis manager.
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*/
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static IORTAnalysisManager* GetInstance();
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/**
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* Book the histograms and ntuples.
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*/
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void book();
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/**
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* Set name for the analysis file .root (used by macro)
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*/
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void SetAnalysisFileName(G4String);
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/**
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* Fill the ntuple with the energy deposit in the phantom
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*/
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void FillEnergyDeposit(G4int voxelXId, G4int voxelYId, G4int voxelZId,
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G4double energyDeposit);
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void BraggPeak(G4int, G4double); ///< Fill 1D histogram with the Bragg peak in the phantom
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void SecondaryProtonEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary protons
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void SecondaryNeutronEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary neutrons
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void SecondaryAlphaEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary alpha particles
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void SecondaryGammaEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary gamma
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void SecondaryElectronEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary electrons
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void SecondaryTritonEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary tritons
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void SecondaryDeuteronEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary deuterons
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void SecondaryPionEnergyDeposit(G4int slice, G4double energy);
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///< Fill 1D histogram with the energy deposit of secondary pions
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void electronEnergyDistribution(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of secondary electrons originated in the phantom
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void gammaEnergyDistribution(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of secondary gamma originated in the phantom
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void deuteronEnergyDistribution(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of secondary deuterons originated in the phantom
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void tritonEnergyDistribution(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of secondary tritons originated in the phantom
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void alphaEnergyDistribution(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of secondary alpha originated in the phantom
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void heliumEnergy(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of the helium (He3 and alpha) particles after the phantom
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void hydrogenEnergy(G4double secondaryParticleKineticEnergy);
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///< Energy distribution of the hydrogen (proton, d, t) particles after the phantom
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//Kinetic energy by voxel, mass number A and atomic number Z.
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void FillKineticFragmentTuple(G4int i, G4int j, G4int k, G4int A, G4double Z, G4double kinEnergy);
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//Kinetic energy by voxel, mass number A and atomic number Z of only primary particles
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void FillKineticEnergyPrimaryNTuple(G4int i, G4int j, G4int k, G4double kinEnergy);
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///< Energy by voxel, mass number A and atomic number Z.
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void FillVoxelFragmentTuple(G4int i, G4int j, G4int k, G4int A, G4double Z, G4double energy, G4double fluence);
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void FillFragmentTuple(G4int A, G4double Z, G4double energy, G4double posX, G4double posY, G4double posZ);
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///< Energy ntuple
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void FillLetFragmentTuple(G4int i, G4int j, G4int k, G4int A, G4double Z, G4double letT, G4double letD);
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///< let ntuple
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void genericIonInformation(G4int, G4double, G4int, G4double);
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void ThintargetBeamDisp(G4double,G4double);
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void startNewEvent();
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///< Tell the analysis manager that a new event is starting
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void setGeometryMetaData(G4double, G4double, G4double);
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///< from the detector construction information about the geometry can be written as metadata
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void setBeamMetaData(G4double, G4double);
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///< metadata about the beam can be written this way
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void flush();
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///< Close the .hbk file with the histograms and the ntuples
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private:
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static IORTAnalysisManager* instance;
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IORTAnalysisFileMessenger* fMess;
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G4String analysisFileName;
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G4long eventCounter; // Simulation metadata
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G4double detectorDistance;
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G4double phantomDepth;
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G4double beamEnergy;
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G4double energyError;
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G4double phantomCenterDistance;
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};
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#endif
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