145 lines
5.8 KiB
C++
145 lines
5.8 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 "THStack.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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* Root script that produces the yield calculations for fragments
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* below the angle of 10 degrees.
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* Then plots the data oin comparison to Haettner
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*
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* There is no fit here yet.
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*
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* @author Gillis Danielsen
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* **************************/
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void fragmentYieldsPlot() {
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gStyle->SetOptStat(0000000000); //remove the for this graphs totally redundant statbox
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int ZNumGiven;
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cout << "Enter fragment Z-number (eg. 1): ";
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cin >> ZNumGiven;
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TCanvas *c1 = new TCanvas("fragmentYieldsPlot", "Total yield of fragments zero to ten degrees as function of depth");
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TString fragmentNameChoices[6] = {"H","He","Li","Be","B","C"};
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TString fragmentName = fragmentNameChoices[ZNumGiven-1];
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std::cout << fragmentName << endl;
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TH1F* dummyHisto = new TH1F("dummyHisto", fragmentName + " yields 0-10 degrees" ,100, 0.0,40); //Dummyhisto fix for missing TNtuple methods.
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dummyHisto->SetXTitle("Depth (cm)");
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dummyHisto->SetYTitle("N/N0");
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ifstream in;
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TString experimentalDataPath = "experimentalData/iaeaBenchmark/yields/TDK" + fragmentName + ".dat";
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ifstream in;
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//Pull in ascii/exfor-style data
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in.open(experimentalDataPath);
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Float_t f1,f2;
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Int_t nlines = 0;
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TFile *f = new TFile("fragmentAngularDistribution.root","RECREATE");
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TNtuple *ntuple = new TNtuple("ntuple","Data from ascii file","x:y");
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Char_t DATAFLAG[4];
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Int_t NDATA;
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Char_t n1[15], n2[15];
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in >> DATAFLAG >> NDATA ; // Read EXFOR line: 'DATA 6'
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in >> n1 >> n2; // Read column titles: 'Energy He B [...]'
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cout <<n1<<" "<<n2<<"\n";
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while (1) {
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in >> f1 >> f2;
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if (!in.good()) break;
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if (nlines < 500 ) printf("%f %f\n",f1,f2);
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ntuple->Fill(f1,f2);
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nlines++;
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}
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std::cout << "Imported " << nlines << " lines from data-file" << endl;
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TNtuple *simData = new TNtuple("ntuple","Data from ascii file","depth:H:He:Li:Be:B:C");
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// gROOT->SetStyle("clearRetro");
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//this will be used as base for pulling the experimental data
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TString dir = gSystem->UnixPathName(gInterpreter->GetCurrentMacroName());
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dir.ReplaceAll("fragmentAngularDistribution.C","");
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dir.ReplaceAll("/./","/");
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ifstream in;
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simData->Fill(0.0,0.0,0.0,0.0,0.0,0.0,1.0);
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for(int j = 1; j <= 40;j=j=j+1){
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TString pDepth, fragment, Znum, normToOneAtZeroAngle;
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pDepth = Form("%i",j);
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/*
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cout << "Enter phantom depth (eg. 27.9, see experimentalData directory for choices): ";
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cin >> pDepth;
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*/
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TString simulationDataPath = "IAEA_" + pDepth + ".root";
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//Let's pull in the simulation-data
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//TFile *MCData = TFile::Open("IAEA_" + pDepth + ".root");
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TFile *MCData = TFile::Open(simulationDataPath);
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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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//ALL UNITS ARE cm!
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Double_t scatteringDistance = detectorDistance - phantomCenterDistance; //temporarily hard-coded, should be distance from target-center to detector
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Double_t degrees = 10.0;
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Double_t r, rMin, rMax, graphMaximum = 0.0;
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Double_t norming = events*.999;
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TString rMinString;
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TString rMaxString;
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rMinString = "0.00";
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rMaxString = Form("%f", scatteringDistance*TMath::ATan(degrees*TMath::DegToRad()));
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Double_t H = ((Double_t*) fragments->GetEntries("(Z == " + TString::Format("%i",1) + " && sqrt(posY^2 + posZ^2) < " + rMaxString + "&& sqrt(posY*posY + posZ*posZ) > " + rMinString + ")")) / norming;
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Double_t He = ((Double_t*) fragments->GetEntries("(Z == " + TString::Format("%i",2) + " && sqrt(posY^2 + posZ^2) < " + rMaxString + "&& sqrt(posY*posY + posZ*posZ) > " + rMinString + ")")) / norming;
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Double_t Li = ((Double_t*) fragments->GetEntries("(Z == " + TString::Format("%i",3) + " && sqrt(posY^2 + posZ^2) < " + rMaxString + "&& sqrt(posY*posY + posZ*posZ) > " + rMinString + ")")) / norming;
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Double_t Be = ((Double_t*) fragments->GetEntries("(Z == " + TString::Format("%i",4) + " && sqrt(posY^2 + posZ^2) < " + rMaxString + "&& sqrt(posY*posY + posZ*posZ) > " + rMinString + ")")) / norming;
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Double_t B = ((Double_t*) fragments->GetEntries("(Z == " + TString::Format("%i",5) + " && sqrt(posY^2 + posZ^2) < " + rMaxString + "&& sqrt(posY*posY + posZ*posZ) > " + rMinString + ")")) / norming;
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Double_t C = ((Double_t*) fragments->GetEntries("(Z == " + TString::Format("%i",6) + " && sqrt(posY^2 + posZ^2) < " + rMaxString + "&& sqrt(posY*posY + posZ*posZ) > " + rMinString + ")")) / norming;
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simData->Fill(waterThickness,H,He,Li,Be,B,C);
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}
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simData->Scan();
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simData->SetMarkerStyle(2); //filled dot
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simData->SetMarkerColor(kBlue);
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graphMaximum = TMath::Max(graphMaximum, simData->GetMaximum(fragmentName));
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graphMaximum = TMath::Max(graphMaximum, ntuple->GetMaximum("y"));
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dummyHisto->SetMaximum(graphMaximum + .05*graphMaximum);
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dummyHisto->Draw();
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simData->Draw(fragmentName + ":depth","","p,same");
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ntuple->SetMarkerStyle(22); //triangle
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ntuple->SetMarkerColor(kRed);
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ntuple->Draw("y:x","","p,same");
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c1->SaveAs("fragmentYieldsFor" + fragmentName + ".png");
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}
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