136 lines
5.1 KiB
C++
136 lines
5.1 KiB
C++
#include "Riostream.h"
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#include "TSystem.h"
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#include "TInterpreter.h"
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#include "TROOT.h"
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#include "TApplication.h"
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#include "TFile.h"
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#include "TNtuple.h"
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#include "TCanvas.h"
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#include "TH1F.h"
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#include "TCut.h"
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#include "TString.h"
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#include "TMath.h"
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/**
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* Macro for checking beam FWHM
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*
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* Usage:
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* root -l RootScripts/iaeaBenchmark/fragmentEnergy.C++
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*/
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void checkBeam() {
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////////////////////////////////////////
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////// Importing data /////////
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////////////////////////////////////////
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TString dir = gSystem->UnixPathName(gInterpreter->GetCurrentMacroName());
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dir.ReplaceAll("fragmentEnergy.C","");
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dir.ReplaceAll("/./","/");
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TString macroPath(gROOT->GetMacroPath());
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gROOT->SetMacroPath(macroPath + ":RootScripts/iaeaBenchmark");
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//gROOT->LoadMacro("rootlogon.C");
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//gROOT->SetStyle("clearRetro"); //For stylesheet
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ifstream in;
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in.open(Form("experimentalData/iaeaBenchmark/fragmentEnergySpctra279mmWater0deg.dat",dir.Data()));
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Float_t f1,f2,f3, f4,f5,f6;
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Int_t nlines = 0;
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TFile *f = new TFile("fragmentEnergy.root","RECREATE");
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TNtuple *ntuple = new TNtuple("ntuple","Data from ascii file","Energy:He:B:H:Li:Be");
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Char_t DATAFLAG[4];
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Int_t NDATA;
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Char_t n1[6], n2[2], n3[2], n4[2], n5[2], n6[2];
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in >> DATAFLAG >> NDATA ; // Read EXFOR line: 'DATA 6'
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in >> n1 >> n2 >> n3 >> n4 >> n5 >> n6; // Read column titles: 'Energy He B [...]'
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cout <<n1<<" "<<n2<<" "<<n3<<" "<<n4<<" "<<n5<<" "<<n6<<"\n";
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while (1) {
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in >> f1 >> f2 >> f3 >>f4 >> f5 >> f6;
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if (!in.good()) break;
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if (nlines < 500 ) printf("%f %0.2f %0.2f %0.2f %0.2f %0.2f \n",f1,f2,f3,f4,f5,f6);
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ntuple->Fill(f1,f2,f3,f4,f5,f6);
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nlines++;
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}
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printf(" found %d points\n",nlines);
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//Let's pull in the monte carlo simulation results
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TFile *MCData = TFile::Open("IAEA_15.9.root");
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TH1F* MC_helium = (TH1F*)MCData->Get("heliumEnergyAfterPhantom");
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TH1F* MC_hydrogen = (TH1F*)MCData->Get("hydrogenEnergyAfterPhantom");
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//scale and plot
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TNtuple *fragments = (TNtuple*) MCData->Get("fragmentNtuple");
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//Block bellow pulls out the simulation's metadata from the metadata ntuple.
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TNtuple *metadata = (TNtuple*) MCData->Get("metaData");
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Float_t events, detectorDistance,waterThickness,beamEnergy,energyError,phantomCenterDistance;
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metadata->SetBranchAddress("events",&events);
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metadata->SetBranchAddress("waterThickness",&waterThickness);
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metadata->SetBranchAddress("detectorDistance",&detectorDistance);
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metadata->SetBranchAddress("beamEnergy",&beamEnergy);
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metadata->SetBranchAddress("energyError",&energyError);
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metadata->SetBranchAddress("phantomCenterDistance",&phantomCenterDistance);
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metadata->GetEntry(0); //there is just one row to consider.
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//analysis numbers based on metadata
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Double_t scatteringDistance = detectorDistance - phantomCenterDistance;
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Double_t detectorSideLength = 4; //hardcoded, we have a zero angle square detector
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//good to keep for ref. G4 might give weird units due to change.
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metadata->Scan();
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//TCanvas* c3 = new TCanvas();
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fragments->SetLineColor(kRed);
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fragments->SetMarkerStyle(22);
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//fragments->Draw("posY:posZ", "abs(posZ) < 2 && abs(posY) < 2");
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TH1F* posYHisto = new TH1F("vertical","Vertical distribution of beam",200,-2.,2.);
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TH1F* posZHisto = new TH1F("horizontal","horizontal distribution of beam",200,-2.,2.);
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TH2F* posHisto = new TH2F("posHisto","Distribution of beam",200,-2.,2.,200,-2.,2.);
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//fragments->Project("posHisto","posY:posZ","abs(posZ) < 2 && abs(posY) < 2");
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fragments->Project("vertical","posZ","abs(posZ) < 2 && abs(posY) < 2 && Z == 6");
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fragments->Project("horizontal","posY","abs(posZ) < 2 && abs(posY) < 2 && Z == 6");
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Float_t maxVal = posYHisto->GetMaximum();
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std::cout << "maximum: " << maxVal << endl;
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//fragments->Scan("posY:posZ","abs(posZ) < 2 && abs(posY) < 2");
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//posYHisto->Draw();
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// posZHisto->Draw("same");
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Float_t fwhm = 0.0, middle = 0.0, curVal;
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int fwhmBin;
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//So these dots have been binned and a fwhm is calculated.
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for(int i = 0; i < posYHisto->GetNbinsX(); i++){
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curVal = posYHisto->GetBinContent(i);
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if(pow(maxVal/2 - middle, 2.0) > pow(maxVal/2 - curVal, 2.0)){
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fwhm = 2*TMath::Abs(posYHisto->GetBinCenter(i));
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middle = curVal;
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fwhmBin = i;
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}else{
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}
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}
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//posYHisto->SetBinContent(fwhmBin, 0);
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/*
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TNtuple* where = new TNtuple("where","where","x:y");
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where->Fill(fwhmBin*posYHisto->GetBinWidth(0), 0);
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where->Fill((200-fwhmBin)*posYHisto->GetBinWidth(0), 0);
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where->->SetMarkerStyle(22); //triangle
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where->SetMarkerColor(kRed);
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*/
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TF1* fitgaus = new TF1("fitgaus","gaus");
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fitgaus->SetLineColor(2);
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posYHisto->Fit(fitgaus,"");
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posYHisto->Draw();
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std::cout << "fitted FWHM from normal distribution is: " << fitgaus->GetParameter(2)*10*2.35482 << endl;
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//where->Draw("x:y","same");
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//posYHisto->Smooth(150);
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//posYHisto->Draw();
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//posHisto->Draw();
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std::cout << "Calculated (closest point) FWHM of Monte-Carlo simulation to be: " << fwhm*10 << " mm" << endl;
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std::cout << "beam contained " << fragments->GetEntries("Z == 6") << " carbon nuclei." << endl;
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//c3->SaveAs("checkBeam.png");
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}
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