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Arce, June-2014 Conversion neutron_hp to 27 // P. Arce, June-2014 Conversion neutron_hp to particle_hp 28 // 28 // 29 #ifndef G4ParticleHPLabAngularEnergy_h 29 #ifndef G4ParticleHPLabAngularEnergy_h 30 #define G4ParticleHPLabAngularEnergy_h 1 30 #define G4ParticleHPLabAngularEnergy_h 1 31 31 32 #include "G4InterpolationManager.hh" << 32 #include "G4ios.hh" >> 33 #include <fstream> >> 34 #include "globals.hh" 33 #include "G4Neutron.hh" 35 #include "G4Neutron.hh" 34 #include "G4ParticleHPInterpolator.hh" 36 #include "G4ParticleHPInterpolator.hh" 35 #include "G4ParticleHPVector.hh" 37 #include "G4ParticleHPVector.hh" 36 #include "G4ReactionProduct.hh" << 37 #include "G4VParticleHPEnergyAngular.hh" 38 #include "G4VParticleHPEnergyAngular.hh" 38 #include "G4ios.hh" << 39 #include "G4ReactionProduct.hh" 39 #include "globals.hh" << 40 #include "G4InterpolationManager.hh" 40 << 41 #include <fstream> << 42 41 43 class G4ParticleHPLabAngularEnergy : public G4 42 class G4ParticleHPLabAngularEnergy : public G4VParticleHPEnergyAngular 44 { 43 { 45 public: 44 public: 46 G4ParticleHPLabAngularEnergy() << 45 47 { << 46 G4ParticleHPLabAngularEnergy() 48 theEnergies = nullptr; << 47 { 49 theData = nullptr; << 48 theEnergies = 0; 50 nCosTh = nullptr; << 49 theData = 0; 51 theSecondManager = nullptr; << 50 nCosTh = 0; 52 nEnergies = -1; << 51 theSecondManager = 0; 53 currentMeanEnergy = -1.0; << 52 nEnergies = -1; 54 } << 53 currentMeanEnergy = -1.0; 55 ~G4ParticleHPLabAngularEnergy() override << 54 } >> 55 ~G4ParticleHPLabAngularEnergy() >> 56 { >> 57 if(theEnergies != 0) delete [] theEnergies; >> 58 if(nCosTh != 0) delete [] nCosTh; >> 59 if(theData != 0) 56 { 60 { 57 delete[] theEnergies; << 61 for(G4int i=0; i<nEnergies; i++) 58 delete[] nCosTh; << 62 delete [] theData[i]; 59 if (theData != nullptr) { << 63 delete [] theData; 60 for (G4int i = 0; i < nEnergies; i++) << 61 delete[] theData[i]; << 62 delete[] theData; << 63 } << 64 delete[] theSecondManager; << 65 } 64 } 66 << 65 if(theSecondManager != 0) delete [] theSecondManager; >> 66 } >> 67 67 public: 68 public: 68 void Init(std::istream& aDataFile) overrid << 69 69 G4ReactionProduct* Sample(G4double anEnerg << 70 void Init(std::istream & aDataFile); 70 G4double MeanEnergyOfThisInteraction() ove << 71 G4ReactionProduct * Sample(G4double anEnergy, G4double massCode, G4double mass); 71 << 72 G4double MeanEnergyOfThisInteraction() >> 73 { >> 74 return currentMeanEnergy; >> 75 } >> 76 >> 77 72 private: 78 private: 73 // number of incoming neutron energies << 79 74 G4int nEnergies; << 80 // number of incoming neutron energies 75 // Interpol between neutron energies << 81 G4int nEnergies; 76 G4InterpolationManager theManager; << 82 // Interpol between neutron energies 77 // Incoming neutron energies << 83 G4InterpolationManager theManager; 78 G4double* theEnergies; << 84 // Incoming neutron energies 79 // number of directioncosines; parallel to << 85 G4double * theEnergies; 80 G4int* nCosTh; << 86 // number of directioncosines; parallel to theEnergies 81 // knows the interpolation between these s << 87 G4int * nCosTh; 82 G4InterpolationManager* theSecondManager; << 88 // knows the interpolation between these stores 83 // vectors of secondary energy, haufigkeit << 89 G4InterpolationManager * theSecondManager; 84 G4ParticleHPVector** theData; << 90 // vectors of secondary energy, haufigkeit; parallel to theEnergies 85 << 91 G4ParticleHPVector ** theData; 86 // utility interpolator << 92 87 G4ParticleHPInterpolator theInt; << 93 // utility interpolator 88 << 94 G4ParticleHPInterpolator theInt; 89 // cashed value of mean secondary energy i << 95 90 G4double currentMeanEnergy; << 96 // cashed value of mean secondary energy in this event. >> 97 G4double currentMeanEnergy; 91 }; 98 }; 92 #endif 99 #endif 93 100