Randomized energy fix
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@ -99,13 +99,13 @@ int main(int argc, char **argv){
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//To set beam energy loss, use energy loss app, and create table with target isotope, set Initial beam energy as max energy
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transfer.SetA(18, 9, 0); // 18Ne projectile
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TGraph* elossBeam = LoadELoss("../ELoss/HeLoss/E_vs_x_Na-21.dat");
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//TGraph* elossBeam = LoadELoss("../ELoss/HeLoss/E_vs_x_Na-21.dat");
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transfer.Seta(4, 2); // 4He target
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transfer.Setb(1, 1); // outgoing proton from the primary transfer
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transfer.SetB(21, 11); // 21Na* heavy product
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const ReactionConfig reactionConfig = transfer.GetRectionConfig();
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const double beamA = reactionConfig.beamA; // mass number of 14N beam
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const double beamE = 42.82 / beamA; // beam energy in MeV
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const double beamE = 3; // maximum beam energy in MeV/u
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const int kMBeam = reactionConfig.beamA; // mass number of beam
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const int kMTarget = reactionConfig.targetA; // mass number of target
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@ -388,10 +388,12 @@ int main(int argc, char **argv){
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// compute beam energy at the event vertex from the gas path length
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beamPath_cm = TVector3(vertexZ - beamEntranceZ, vertexX, vertexY).Mag() * 0.1;
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if( beamPath_cm < 0 ) beamPath_cm = 0;
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beamEnergy = elossBeam->Eval(beamPath_cm); // MeV
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beamEnergyLoss = elossBeam->Eval(0.0) - beamEnergy;
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KEA = beamEnergy / beamA;
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//KEA = gRandom->Uniform(0, beamE);
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//beamEnergy = elossBeam->Eval(beamPath_cm); // MeV
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//beamEnergyLoss = elossBeam->Eval(0.0) - beamEnergy;
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//KEA = beamEnergy / beamA;
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KEA = gRandom->Uniform(0, beamE);
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beamEnergy = KEA * beamA;
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beamEnergyLoss = 0;
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transfer.SetIncidentEnergyAngle(KEA, 0, 0);
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transfer.CalReactionConstant();
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