Files
geant4/examples/extended/biasing/ReverseMC01/include/RMC01AnalysisManager.hh
T
2016-06-09 16:46:55 +02:00

199 lines
6.7 KiB
C++

//
// ********************************************************************
// * License and Disclaimer *
// * *
// * The Geant4 software is copyright of the Copyright Holders of *
// * the Geant4 Collaboration. It is provided under the terms and *
// * conditions of the Geant4 Software License, included in the file *
// * LICENSE and available at http://cern.ch/geant4/license . These *
// * include a list of copyright holders. *
// * *
// * Neither the authors of this software system, nor their employing *
// * institutes,nor the agencies providing financial support for this *
// * work make any representation or warranty, express or implied, *
// * regarding this software system or assume any liability for its *
// * use. Please see the license in the file LICENSE and URL above *
// * for the full disclaimer and the limitation of liability. *
// * *
// * This code implementation is the result of the scientific and *
// * technical work of the GEANT4 collaboration. *
// * By using, copying, modifying or distributing the software (or *
// * any work based on the software) you agree to acknowledge its *
// * use in resulting scientific publications, and indicate your *
// * acceptance of all terms of the Geant4 Software license. *
// ********************************************************************
//
// $Id: RMC01AnalysisManager.hh,v 1.2 2009-11-27 14:43:25 ldesorgh Exp $
// GEANT4 tag $Name: not supported by cvs2svn $
//
//////////////////////////////////////////////////////////////
// Class Name: RMC01AnalysisManager
// Author: L. Desorgher
// Organisation: SpaceIT GmbH
// Contract: ESA contract 21435/08/NL/AT
// Customer: ESA/ESTEC
//////////////////////////////////////////////////////////////
// CHANGE HISTORY
//--------------
// ChangeHistory:
// 17-11-2009 creation by L. Desorgher
// 24-11-2009 L.Desorgher,
// - registering in Conv* ASCII files every 5000 events the computed edep with precision.
// -Correction of the adjoint computed current and answer matrices by a factor n_asked/n_processed for the case
// where a run is aborted because the user expected precision on e_dep has been reached.
//
//-------------------------------------------------------------
/////////////////////////////////////////////////////////////////////////////////
// Class Name: RMC01AnalysisManager
// Author: L. Desorgher
// Organisation: SpaceIT GmbH
// Contract: ESA contract 21435/08/NL/AT
// Customer: ESA/ESTEC
/////////////////////////////////////////////////////////////////////////////////
//
// CHANGE HISTORY
// --------------
// ChangeHistory:
// 17-11-2009 creation by L. Desorgher
//
//-------------------------------------------------------------
#ifndef RMC01AnalysisManager_HH
#define RMC01AnalysisManager_HH
#include"G4ios.hh"
#include"G4strstreambuf.hh"
#include <vector>
#include"globals.hh"
#include <fstream>
#include"G4ThreeVector.hh"
#include"G4Event.hh"
#include"G4Run.hh"
class Histo1DVar;
class Histo2DVar;
class G4Timer;
class RMC01AnalysisManagerMessenger;
enum PRIM_SPECTRUM_TYPE{EXPO,POWER};
class G4Step;
class RMC01AnalysisManager
{
public:
~RMC01AnalysisManager();
static RMC01AnalysisManager* GetInstance();
public:
void BeginOfRun(const G4Run*);
void EndOfRun(const G4Run*);
void BeginOfEvent(const G4Event*);
void EndOfEvent(const G4Event*);
void SetPrimaryExponentialSpectrumForAdjointSim(const G4String& particle_name, G4double fluence,G4double E0, G4double Emin,G4double Emax);
void SetPrimaryPowerLawSpectrumForAdjointSim(const G4String& particle_name,G4double fluence, G4double alpha, G4double Emin,G4double Emax);
inline void SetPrecision(G4double precision){precision_to_reach =precision/100.;}; //precision of the simulation results is given in % by the user
private:
static RMC01AnalysisManager* instance;
private:
RMC01AnalysisManager();
private:
void EndOfEventForForwardSimulation(const G4Event* anEvent);
void EndOfEventForAdjointSimulation(const G4Event* anEvent);
G4double PrimDiffAndDirectionalFluxForAdjointSim(G4double prim_energy);
void WriteHisto(Histo1DVar* anHisto, G4double scaling_factor, G4String fileName, G4String header_lines);
void WriteHisto(Histo2DVar* anHisto, G4double scaling_factor, G4String fileName, G4String header_lines);
void ResetHistograms();
void ComputeMeanEdepAndError(const G4Event* anEvent,G4double& mean,G4double& error);
private:
RMC01AnalysisManagerMessenger* theMsg;
//Histos for fwd simulation
//--------------
Histo1DVar* edep_vs_prim_ekin;
Histo1DVar* electron_current;
Histo1DVar* proton_current;
Histo1DVar* gamma_current;
//Fluence
//------------
G4double omni_fluence_for_fwd_sim;
//Variable to check the convergence of the energy deposited for both fwd and adjoint simulation
//---------------------------------------------------------
G4double accumulated_edep;
G4double accumulated_edep2;
G4double mean_edep;
G4double error_mean_edep;
G4double relative_error;
G4double elapsed_time;
G4double precision_to_reach;
G4bool stop_run_if_precision_reached;
G4int nb_evt_modulo_for_convergence_test;
//Histos for adjoint simulation
//-----------------------------
Histo1DVar* edep_answer_matrix_vs_electron_prim_energy;
Histo2DVar* electron_current_answer_matrix_vs_electron_prim_energy;
Histo2DVar* gamma_current_answer_matrix_vs_electron_prim_energy;
Histo1DVar* edep_answer_matrix_vs_gamma_prim_energy;
Histo2DVar* electron_current_answer_matrix_vs_gamma_prim_energy;
Histo2DVar* gamma_current_answer_matrix_vs_gamma_prim_energy;
Histo1DVar* edep_answer_matrix_vs_proton_prim_energy;
Histo2DVar* electron_current_answer_matrix_vs_proton_prim_energy;
Histo2DVar* proton_current_answer_matrix_vs_proton_prim_energy;
Histo2DVar* gamma_current_answer_matrix_vs_proton_prim_energy;
//Prim spectrum to which the adjoint simulation will be normalised
//Answer matrices will be also registered for post processing normalisation
//--------------------------------------------------------
PRIM_SPECTRUM_TYPE the_prim_spectrum_type;
G4int thePrimPDG_ID;
G4double alpha_or_E0;
G4double amplitude_prim_spectrum;
G4double emin_prim_spectrum;
G4double emax_prim_spectrum;
G4bool adjoint_sim_mode;
G4int nb_evt_per_adj_evt;
//Timer
//------
G4Timer* theTimer;
std::fstream ConvergenceFileOutput;
};
#endif