Import Geant4 7.1.0 source tree

This commit is contained in:
Gabriele Cosmo
2016-06-09 12:11:21 +02:00
parent 516dbf1a58
commit d93e1e39a9
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//
// ********************************************************************
// * DISCLAIMER *
// * *
// * The following disclaimer summarizes all the specific disclaimers *
// * of contributors to this software. The specific disclaimers,which *
// * govern, are listed with their locations in: *
// * http://cern.ch/geant4/license *
// * *
// * 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. *
// * *
// * This code implementation is the intellectual property of the *
// * GEANT4 collaboration. *
// * By copying, distributing or modifying the Program (or any work *
// * based on the Program) you indicate your acceptance of this *
// * statement, and all its terms. *
// ********************************************************************
// $Id: HadrontherapyPhantomSD.cc; May 2005
// ----------------------------------------------------------------------------
// GEANT 4 - Hadrontherapy example
// ----------------------------------------------------------------------------
// Code developed by:
//
// G.A.P. Cirrone(a)*, F. Di Rosa(a), S. Guatelli(b), G. Russo(a)
//
// (a) Laboratori Nazionali del Sud
// of the National Institute for Nuclear Physics, Catania, Italy
// (b) National Institute for Nuclear Physics Section of Genova, genova, Italy
//
// * cirrone@lns.infn.it
// ----------------------------------------------------------------------------
#include "HadrontherapyMatrix.hh"
#include "HadrontherapyAnalysisManager.hh"
#include "globals.hh"
HadrontherapyMatrix::HadrontherapyMatrix()
{
// Number of the voxels of the phantom
numberVoxelX = 80;
numberVoxelY = 80;
numberVoxelZ = 80;
// Create the matrix
matrix = new G4double[numberVoxelX*numberVoxelY*numberVoxelZ];
}
HadrontherapyMatrix::~HadrontherapyMatrix()
{
delete[] matrix;
}
void HadrontherapyMatrix::Initialize()
{
// Initialise the elemnts of the matrix to zero
for(G4int i = 0; i < numberVoxelX; i++)
{
for(G4int j = 0; j < numberVoxelY; j++)
{
for(G4int k = 0; k < numberVoxelZ; k++)
matrix[(i*numberVoxelY+j)*numberVoxelZ+k] = 0.;
}
}
}
void HadrontherapyMatrix::Fill(G4int i, G4int j, G4int k,
G4double energyDeposit)
{
if (matrix)
matrix[(i*numberVoxelY+j)*numberVoxelZ+k] += energyDeposit;
// Store the energy deposit in the matrix elemnt corresponding
// to the phantom voxel
}
void HadrontherapyMatrix::TotalEnergyDeposit()
{
// Store the information of the matrix in a ntuple and in
// a 1D Histogram
G4int k;
G4int j;
G4int i;
if (matrix)
{
for(G4int l = 0; l < numberVoxelZ; l++)
{
k = l;
for(G4int m = 0; m < numberVoxelY; m++)
{
j = m * numberVoxelZ + k;
for(G4int n = 0; n < numberVoxelX; n++)
{
i = n* numberVoxelZ * numberVoxelY + j;
if(matrix[i] != 0)
{
#ifdef G4ANALYSIS_USE
HadrontherapyAnalysisManager* analysis =
HadrontherapyAnalysisManager::getInstance();
analysis -> FillEnergyDeposit(n, m, k, matrix[i]);
analysis -> BraggPeak(n, matrix[i]);
#endif
}
}
}
}
}
}