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devel_jame
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23
.gitignore
vendored
23
.gitignore
vendored
|
|
@ -4,10 +4,29 @@ EventBuilder*
|
||||||
*.pcm
|
*.pcm
|
||||||
*.root
|
*.root
|
||||||
*.exe
|
*.exe
|
||||||
|
*.txt
|
||||||
|
*.err
|
||||||
|
*.seq
|
||||||
|
*.png
|
||||||
|
*.pdf
|
||||||
|
*.keras
|
||||||
Mapper
|
Mapper
|
||||||
AnasenMS
|
AnasenMS
|
||||||
|
Armory/anasenMS
|
||||||
|
|
||||||
data/
|
data/
|
||||||
data_proton/
|
data_proton/
|
||||||
root_data/
|
Sudarshan/
|
||||||
|
Analyzer_C_ACLiC_dict0713aaa966_dictContent.h
|
||||||
|
.gitignore
|
||||||
|
Analyzer_C_ACLiC_dict5411fecd5c_dictUmbrella.h
|
||||||
|
gainmatch.C
|
||||||
|
gainmatch.h
|
||||||
|
MakePlotsQQQ.C
|
||||||
|
MakePlotsQQQ.h
|
||||||
|
MakePlotsSX3.C
|
||||||
|
MakePlotsSX3.h
|
||||||
|
qqq_gains_det3.dat
|
||||||
|
qqq_relative_gains.dat
|
||||||
|
Armory/CorrelateQQQ.h
|
||||||
|
QQQStage2.C
|
||||||
|
|
|
||||||
27
.vscode/c_cpp_properties.json
vendored
27
.vscode/c_cpp_properties.json
vendored
|
|
@ -1,5 +1,18 @@
|
||||||
{
|
{
|
||||||
"configurations": [
|
"configurations": [
|
||||||
|
{
|
||||||
|
"name": "Linux",
|
||||||
|
"includePath": [
|
||||||
|
"${workspaceFolder}/**",
|
||||||
|
"/opt/root-6.36.06/include",
|
||||||
|
"/home/jamesszalkie/anasen/Armory"
|
||||||
|
],
|
||||||
|
"defines": [],
|
||||||
|
"compilerPath": "/usr/bin/g++",
|
||||||
|
"cStandard": "c11",
|
||||||
|
"cppStandard": "c++17",
|
||||||
|
"intelliSenseMode": "gcc-x64"
|
||||||
|
},
|
||||||
{
|
{
|
||||||
"name": "Hades",
|
"name": "Hades",
|
||||||
"includePath": [
|
"includePath": [
|
||||||
|
|
@ -59,7 +72,19 @@
|
||||||
"includePath": [
|
"includePath": [
|
||||||
"${workspaceFolder}/**",
|
"${workspaceFolder}/**",
|
||||||
"/usr/include/x86_64-linux-gnu/qt6/**",
|
"/usr/include/x86_64-linux-gnu/qt6/**",
|
||||||
"/usr/local/cern/root/include/**",
|
"/usr/local/cern/root/include/**"
|
||||||
|
],
|
||||||
|
"defines": [],
|
||||||
|
"compilerPath": "/usr/bin/gcc",
|
||||||
|
"cStandard": "c17",
|
||||||
|
"cppStandard": "gnu++17",
|
||||||
|
"intelliSenseMode": "linux-gcc-x64"
|
||||||
|
},
|
||||||
|
{
|
||||||
|
"name": "VigneshROG",
|
||||||
|
"includePath": [
|
||||||
|
"${workspaceFolder}/**",
|
||||||
|
"/home/vsitaraman/root/include/**"
|
||||||
],
|
],
|
||||||
"defines": [],
|
"defines": [],
|
||||||
"compilerPath": "/usr/bin/gcc",
|
"compilerPath": "/usr/bin/gcc",
|
||||||
|
|
|
||||||
29
.vscode/settings.json
vendored
29
.vscode/settings.json
vendored
|
|
@ -100,7 +100,32 @@
|
||||||
"PCPulser_All_new.C": "cpp",
|
"PCPulser_All_new.C": "cpp",
|
||||||
"PosCal_2.C": "cpp",
|
"PosCal_2.C": "cpp",
|
||||||
"AutoFit.C": "cpp",
|
"AutoFit.C": "cpp",
|
||||||
"Fitting.C": "cpp"
|
"Fitting.C": "cpp",
|
||||||
|
"PCGainMatch.C": "cpp",
|
||||||
|
"Analyzer1.C": "cpp",
|
||||||
|
"FitHistogramsWithTSpectrum_Sequential_Improved.C": "cpp",
|
||||||
|
"PlotAndFitCentroids.C": "cpp",
|
||||||
|
"MatchAndPlotCentroids.C": "cpp",
|
||||||
|
"GainMatch.C": "cpp",
|
||||||
|
"GainMatchSX3.C": "cpp",
|
||||||
|
"RelBack_Fix_new.C": "cpp",
|
||||||
|
"SiRelativeGains_Step1_new.C": "cpp",
|
||||||
|
"charconv": "cpp",
|
||||||
|
"format": "cpp",
|
||||||
|
"GainMatchSX3Front.C": "cpp",
|
||||||
|
"GainMatchSX3Front1.C": "cpp",
|
||||||
|
"Calibration.C": "cpp",
|
||||||
|
"GainMatchQQQ.C": "cpp",
|
||||||
|
"UTF-8gainmatch.C": "cpp",
|
||||||
|
"MakePlotsQQQ.C": "cpp",
|
||||||
|
"MakePlotsSX3.C": "cpp",
|
||||||
|
"QQQ_Calibcheck.C": "cpp",
|
||||||
|
"QQQ_Calcheck.C": "cpp",
|
||||||
|
"makeplots.C": "cpp",
|
||||||
|
"GlobalMinimizeQQQ.C": "cpp",
|
||||||
|
"QQQStage2.C": "cpp",
|
||||||
|
"inspect.C": "cpp"
|
||||||
},
|
},
|
||||||
"github-enterprise.uri": "https://fsunuc.physics.fsu.edu"
|
"github-enterprise.uri": "https://fsunuc.physics.fsu.edu",
|
||||||
|
"C_Cpp.default.compilerPath": "/usr/bin/gcc"
|
||||||
}
|
}
|
||||||
|
|
@ -16,5 +16,5 @@ void Analysis(int start, int end) {
|
||||||
|
|
||||||
// Define a macro with the same name as the script
|
// Define a macro with the same name as the script
|
||||||
void Analysis() {
|
void Analysis() {
|
||||||
Analysis(150, 194); // Adjust the range if needed
|
Analysis(72, 194); // Adjust the range if needed
|
||||||
}
|
}
|
||||||
866
Analyzer.C
866
Analyzer.C
File diff suppressed because it is too large
Load Diff
15
Analyzer.h
15
Analyzer.h
|
|
@ -18,6 +18,7 @@ public :
|
||||||
Det sx3;
|
Det sx3;
|
||||||
Det qqq;
|
Det qqq;
|
||||||
Det pc ;
|
Det pc ;
|
||||||
|
Det misc;
|
||||||
|
|
||||||
ULong64_t evID;
|
ULong64_t evID;
|
||||||
UInt_t run;
|
UInt_t run;
|
||||||
|
|
@ -40,6 +41,13 @@ public :
|
||||||
TBranch *b_pcCh; //!
|
TBranch *b_pcCh; //!
|
||||||
TBranch *b_pcE; //!
|
TBranch *b_pcE; //!
|
||||||
TBranch *b_pcT; //!
|
TBranch *b_pcT; //!
|
||||||
|
TBranch *b_miscMulti; //!
|
||||||
|
TBranch *b_miscID; //!
|
||||||
|
TBranch *b_miscCh; //!
|
||||||
|
TBranch *b_miscE; //!
|
||||||
|
TBranch *b_miscT; //!
|
||||||
|
TBranch *b_miscTf; //!
|
||||||
|
|
||||||
|
|
||||||
Analyzer(TTree * /*tree*/ =0) : fChain(0) { }
|
Analyzer(TTree * /*tree*/ =0) : fChain(0) { }
|
||||||
virtual ~Analyzer() { }
|
virtual ~Analyzer() { }
|
||||||
|
|
@ -92,6 +100,13 @@ void Analyzer::Init(TTree *tree){
|
||||||
fChain->SetBranchAddress("pcCh", &pc.ch, &b_pcCh);
|
fChain->SetBranchAddress("pcCh", &pc.ch, &b_pcCh);
|
||||||
fChain->SetBranchAddress("pcE", &pc.e, &b_pcE);
|
fChain->SetBranchAddress("pcE", &pc.e, &b_pcE);
|
||||||
fChain->SetBranchAddress("pcT", &pc.t, &b_pcT);
|
fChain->SetBranchAddress("pcT", &pc.t, &b_pcT);
|
||||||
|
fChain->SetBranchAddress("miscMulti", &misc.multi, &b_miscMulti);
|
||||||
|
fChain->SetBranchAddress("miscID", &misc.id, &b_miscID);
|
||||||
|
fChain->SetBranchAddress("miscCh", &misc.ch, &b_miscCh);
|
||||||
|
fChain->SetBranchAddress("miscE", &misc.e, &b_miscE);
|
||||||
|
fChain->SetBranchAddress("miscT", &misc.t, &b_miscT);
|
||||||
|
// fChain->SetBranchAddress("miscF", &misc.tf, &b_miscTf);
|
||||||
|
|
||||||
|
|
||||||
}
|
}
|
||||||
|
|
||||||
|
|
|
||||||
402
Analyzer1.C
Normal file
402
Analyzer1.C
Normal file
|
|
@ -0,0 +1,402 @@
|
||||||
|
#define Analyzer1_cxx
|
||||||
|
|
||||||
|
#include "Analyzer1.h"
|
||||||
|
#include <TH2.h>
|
||||||
|
#include <TStyle.h>
|
||||||
|
#include <TCanvas.h>
|
||||||
|
#include <TMath.h>
|
||||||
|
|
||||||
|
#include <utility>
|
||||||
|
#include <algorithm>
|
||||||
|
|
||||||
|
#include "Armory/ClassSX3.h"
|
||||||
|
#include "Armory/ClassPW.h"
|
||||||
|
|
||||||
|
#include "TVector3.h"
|
||||||
|
|
||||||
|
TH2F * hsx3IndexVE;
|
||||||
|
TH2F * hqqqIndexVE;
|
||||||
|
TH2F * hpcIndexVE;
|
||||||
|
|
||||||
|
TH2F * hsx3Coin;
|
||||||
|
TH2F * hqqqCoin;
|
||||||
|
TH2F * hpcCoin;
|
||||||
|
|
||||||
|
TH2F * hqqqPolar;
|
||||||
|
TH2F * hsx3VpcIndex;
|
||||||
|
TH2F * hqqqVpcIndex;
|
||||||
|
TH2F * hqqqVpcE;
|
||||||
|
TH2F * hsx3VpcE;
|
||||||
|
TH2F * hanVScatsum;
|
||||||
|
int padID = 0;
|
||||||
|
|
||||||
|
SX3 sx3_contr;
|
||||||
|
PW pw_contr;
|
||||||
|
TVector3 hitPos;
|
||||||
|
bool HitNonZero;
|
||||||
|
|
||||||
|
TH1F * hZProj;
|
||||||
|
|
||||||
|
void Analyzer1::Begin(TTree * /*tree*/){
|
||||||
|
TString option = GetOption();
|
||||||
|
|
||||||
|
hsx3IndexVE = new TH2F("hsx3IndexVE", "SX3 index vs Energy; sx3 index ; Energy", 24*12, 0, 24*12, 400, 0, 5000); hsx3IndexVE->SetNdivisions( -612, "x");
|
||||||
|
hqqqIndexVE = new TH2F("hqqqIndexVE", "QQQ index vs Energy; QQQ index ; Energy", 4*2*16, 0, 4*2*16, 400, 0, 5000); hqqqIndexVE->SetNdivisions( -1204, "x");
|
||||||
|
hpcIndexVE = new TH2F("hpcIndexVE", "PC index vs Energy; PC index ; Energy", 2*24, 0, 2*24, 400, 0, 4000); hpcIndexVE->SetNdivisions( -1204, "x");
|
||||||
|
|
||||||
|
|
||||||
|
hsx3Coin = new TH2F("hsx3Coin", "SX3 Coincident", 24*12, 0, 24*12, 24*12, 0, 24*12);
|
||||||
|
hqqqCoin = new TH2F("hqqqCoin", "QQQ Coincident", 4*2*16, 0, 4*2*16, 4*2*16, 0, 4*2*16);
|
||||||
|
hpcCoin = new TH2F("hpcCoin", "PC Coincident", 2*24, 0, 2*24, 2*24, 0, 2*24);
|
||||||
|
|
||||||
|
hqqqPolar = new TH2F("hqqqPolar", "QQQ Polar ID", 16*4, -TMath::Pi(), TMath::Pi(),16, 10, 50);
|
||||||
|
|
||||||
|
hsx3VpcIndex = new TH2F("hsx3Vpcindex", "sx3 vs pc; sx3 index; pc index", 24*12, 0, 24*12, 48, 0, 48);
|
||||||
|
hsx3VpcIndex->SetNdivisions( -612, "x");
|
||||||
|
hsx3VpcIndex->SetNdivisions( -12, "y");
|
||||||
|
hqqqVpcIndex = new TH2F("hqqqVpcindex", "qqq vs pc; qqq index; pc index", 4*2*16, 0, 4*2*16, 48, 0, 48);
|
||||||
|
hqqqVpcIndex->SetNdivisions( -612, "x");
|
||||||
|
hqqqVpcIndex->SetNdivisions( -12, "y");
|
||||||
|
|
||||||
|
hqqqVpcE = new TH2F("hqqqVpcEnergy", "qqq vs pc; qqq energy; pc energy", 400, 0, 5000, 400, 0, 5000);
|
||||||
|
hqqqVpcE->SetNdivisions( -612, "x");
|
||||||
|
hqqqVpcE->SetNdivisions( -12, "y");
|
||||||
|
|
||||||
|
hsx3VpcE = new TH2F("hsx3VpcEnergy", "sx3 vs pc; sx3 energy; pc energy", 400, 0, 5000, 400, 0, 5000);
|
||||||
|
hsx3VpcE->SetNdivisions( -612, "x");
|
||||||
|
hsx3VpcE->SetNdivisions( -12, "y");
|
||||||
|
|
||||||
|
hZProj = new TH1F("hZProj", "Z Projection", 1200, -600, 600);
|
||||||
|
|
||||||
|
hanVScatsum = new TH2F("hanVScatsum", "Anode vs Cathode Sum; Anode E; Cathode E", 400,0 , 10000, 400, 0 , 16000);
|
||||||
|
|
||||||
|
sx3_contr.ConstructGeo();
|
||||||
|
pw_contr.ConstructGeo();
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
Bool_t Analyzer1::Process(Long64_t entry){
|
||||||
|
|
||||||
|
// if ( entry > 100 ) return kTRUE;
|
||||||
|
|
||||||
|
hitPos.Clear();
|
||||||
|
HitNonZero = false;
|
||||||
|
|
||||||
|
// if( entry > 1) return kTRUE;
|
||||||
|
// printf("################### ev : %llu \n", entry);
|
||||||
|
|
||||||
|
b_sx3Multi->GetEntry(entry);
|
||||||
|
b_sx3ID->GetEntry(entry);
|
||||||
|
b_sx3Ch->GetEntry(entry);
|
||||||
|
b_sx3E->GetEntry(entry);
|
||||||
|
b_sx3T->GetEntry(entry);
|
||||||
|
b_qqqMulti->GetEntry(entry);
|
||||||
|
b_qqqID->GetEntry(entry);
|
||||||
|
b_qqqCh->GetEntry(entry);
|
||||||
|
b_qqqE->GetEntry(entry);
|
||||||
|
b_qqqT->GetEntry(entry);
|
||||||
|
b_pcMulti->GetEntry(entry);
|
||||||
|
b_pcID->GetEntry(entry);
|
||||||
|
b_pcCh->GetEntry(entry);
|
||||||
|
b_pcE->GetEntry(entry);
|
||||||
|
b_pcT->GetEntry(entry);
|
||||||
|
|
||||||
|
sx3.CalIndex();
|
||||||
|
qqq.CalIndex();
|
||||||
|
pc.CalIndex();
|
||||||
|
|
||||||
|
// sx3.Print();
|
||||||
|
|
||||||
|
//########################################################### Raw data
|
||||||
|
// //======================= SX3
|
||||||
|
|
||||||
|
std::vector<std::pair<int, int>> ID; // first = id, 2nd = index
|
||||||
|
for( int i = 0; i < sx3.multi; i ++){
|
||||||
|
ID.push_back(std::pair<int, int>(sx3.id[i], i));
|
||||||
|
|
||||||
|
hsx3IndexVE->Fill( sx3.index[i], sx3.e[i] );
|
||||||
|
|
||||||
|
for( int j = i+1; j < sx3.multi; j++){
|
||||||
|
hsx3Coin->Fill( sx3.index[i], sx3.index[j]);
|
||||||
|
}
|
||||||
|
|
||||||
|
for( int j = 0; j < pc.multi; j++){
|
||||||
|
hsx3VpcIndex->Fill( sx3.index[i], pc.index[j] );
|
||||||
|
// if( sx3.ch[index] > 8 ){
|
||||||
|
// hsx3VpcE->Fill( sx3.e[i], pc.e[j] );
|
||||||
|
// }
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
if( ID.size() > 0 ){
|
||||||
|
std::sort(ID.begin(), ID.end(), [](const std::pair<int, int> & a, const std::pair<int, int> & b) {
|
||||||
|
return a.first < b.first;
|
||||||
|
} );
|
||||||
|
// printf("##############################\n");
|
||||||
|
// for( size_t i = 0; i < ID.size(); i++) printf("%zu | %d %d \n", i, ID[i].first, ID[i].second );
|
||||||
|
|
||||||
|
std::vector<std::pair<int, int>> sx3ID;
|
||||||
|
sx3ID.push_back(ID[0]);
|
||||||
|
bool found = false;
|
||||||
|
for( size_t i = 1; i < ID.size(); i++){
|
||||||
|
if( ID[i].first == sx3ID.back().first) {
|
||||||
|
sx3ID.push_back(ID[i]);
|
||||||
|
if( sx3ID.size() >= 3) {
|
||||||
|
found = true;
|
||||||
|
}
|
||||||
|
}else{
|
||||||
|
if( !found ){
|
||||||
|
sx3ID.clear();
|
||||||
|
sx3ID.push_back(ID[i]);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
// printf("---------- sx3ID Multi : %zu \n", sx3ID.size());
|
||||||
|
|
||||||
|
if( found ){
|
||||||
|
int sx3ChUp, sx3ChDn, sx3ChBk;
|
||||||
|
float sx3EUp, sx3EDn;
|
||||||
|
// printf("------ sx3 ID : %d, multi: %zu\n", sx3ID[0].first, sx3ID.size());
|
||||||
|
for( size_t i = 0; i < sx3ID.size(); i++ ){
|
||||||
|
int index = sx3ID[i].second;
|
||||||
|
// printf(" %zu | index %d | ch : %d, energy : %d \n", i, index, sx3.ch[index], sx3.e[index]);
|
||||||
|
|
||||||
|
|
||||||
|
if( sx3.ch[index] < 8 ){
|
||||||
|
if( sx3.ch[index] % 2 == 0) {
|
||||||
|
sx3ChDn = sx3.ch[index];
|
||||||
|
sx3EDn = sx3.e[index];
|
||||||
|
}else{
|
||||||
|
sx3ChUp = sx3.ch[index];
|
||||||
|
sx3EUp = sx3.e[index];
|
||||||
|
}
|
||||||
|
}else{
|
||||||
|
sx3ChBk = sx3.ch[index];
|
||||||
|
}
|
||||||
|
for( int j = 0; j < pc.multi; j++){
|
||||||
|
// hsx3VpcIndex->Fill( sx3.index[i], pc.index[j] );
|
||||||
|
if( sx3.ch[index] > 8 ){
|
||||||
|
hsx3VpcE->Fill( sx3.e[i], pc.e[j] );
|
||||||
|
// hpcIndexVE->Fill( pc.index[i], pc.e[i] );
|
||||||
|
}
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
sx3_contr.CalSX3Pos(sx3ID[0].first, sx3ChUp, sx3ChDn, sx3ChBk, sx3EUp, sx3EDn);
|
||||||
|
hitPos = sx3_contr.GetHitPos();
|
||||||
|
HitNonZero = true;
|
||||||
|
// hitPos.Print();
|
||||||
|
}
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
// //======================= QQQ
|
||||||
|
for( int i = 0; i < qqq.multi; i ++){
|
||||||
|
// for( int j = 0; j < pc.multi; j++){
|
||||||
|
// if(pc.index[j]==4){
|
||||||
|
hqqqIndexVE->Fill( qqq.index[i], qqq.e[i] );
|
||||||
|
// }
|
||||||
|
// }
|
||||||
|
for( int j = 0; j < qqq.multi; j++){
|
||||||
|
if ( j == i ) continue;
|
||||||
|
hqqqCoin->Fill( qqq.index[i], qqq.index[j]);
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
for( int j = i + 1; j < qqq.multi; j++){
|
||||||
|
for( int k = 0; k < pc.multi; k++){
|
||||||
|
if(pc.index[k]<24 && pc.e[k]>50 ){
|
||||||
|
hqqqVpcE->Fill( qqq.e[i], pc.e[k] );
|
||||||
|
// hpcIndexVE->Fill( pc.index[i], pc.e[i] );
|
||||||
|
hqqqVpcIndex->Fill( qqq.index[i], pc.index[j] );
|
||||||
|
|
||||||
|
}
|
||||||
|
// }
|
||||||
|
}
|
||||||
|
// if( qqq.used[i] == true ) continue;
|
||||||
|
|
||||||
|
//if( qqq.id[i] == qqq.id[j] && (16 - qqq.ch[i]) * (16 - qqq.ch[j]) < 0 ){ // must be same detector and wedge and ring
|
||||||
|
if( qqq.id[i] == qqq.id[j] ){ // must be same detector
|
||||||
|
|
||||||
|
int chWedge = -1;
|
||||||
|
int chRing = -1;
|
||||||
|
if( qqq.ch[i] < qqq.ch[j]){
|
||||||
|
chRing = qqq.ch[j] - 16;
|
||||||
|
chWedge = qqq.ch[i];
|
||||||
|
}else{
|
||||||
|
chRing = qqq.ch[i];
|
||||||
|
chWedge = qqq.ch[j] - 16;
|
||||||
|
}
|
||||||
|
|
||||||
|
// printf(" ID : %d , chWedge : %d, chRing : %d \n", qqq.id[i], chWedge, chRing);
|
||||||
|
|
||||||
|
double theta = -TMath::Pi()/2 + 2*TMath::Pi()/16/4.*(qqq.id[i]*16 + chWedge +0.5);
|
||||||
|
double rho = 10.+40./16.*(chRing+0.5);
|
||||||
|
// if(qqq.e[i]>50){
|
||||||
|
hqqqPolar->Fill( theta, rho);
|
||||||
|
// }
|
||||||
|
// qqq.used[i] = true;
|
||||||
|
// qqq.used[j] = true;
|
||||||
|
|
||||||
|
if( !HitNonZero ){
|
||||||
|
double x = rho * TMath::Cos(theta);
|
||||||
|
double y = rho * TMath::Sin(theta);
|
||||||
|
hitPos.SetXYZ(x, y, 23 + 75 + 30);
|
||||||
|
HitNonZero = true;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
}
|
||||||
|
// //======================= PC
|
||||||
|
|
||||||
|
ID.clear();
|
||||||
|
int counter=0;
|
||||||
|
std::vector<std::pair<int, double>> E;
|
||||||
|
E.clear();
|
||||||
|
for( int i = 0; i < pc.multi; i ++){
|
||||||
|
|
||||||
|
if( pc.e[i] > 100 ) ID.push_back(std::pair<int, int>(pc.id[i], i));
|
||||||
|
if( pc.e[i] > 100 ) E.push_back(std::pair<int, double>(pc.index[i], pc.e[i]));
|
||||||
|
|
||||||
|
hpcIndexVE->Fill( pc.index[i], pc.e[i] );
|
||||||
|
|
||||||
|
for( int j = i+1; j < pc.multi; j++){
|
||||||
|
hpcCoin->Fill( pc.index[i], pc.index[j]);
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
}
|
||||||
|
// for( size_t i = 0; i < E.size(); i++) printf("%zu | %d %d \n", i, E[i].first, E[i].second );
|
||||||
|
|
||||||
|
if( E.size()>=3 ){
|
||||||
|
|
||||||
|
int aID = 0;
|
||||||
|
int cID = 0;
|
||||||
|
|
||||||
|
float aE = 0;
|
||||||
|
float cE = 0;
|
||||||
|
bool multi_an =false;
|
||||||
|
// if( ID[0].first < 1 ) {
|
||||||
|
// aID = pc.ch[ID[0].second];
|
||||||
|
// cID = pc.ch[ID[1].second];
|
||||||
|
// }else{
|
||||||
|
// cID = pc.ch[ID[0].second];
|
||||||
|
// aID = pc.ch[ID[1].second];
|
||||||
|
// }
|
||||||
|
// printf("anode= %d, cathode = %d\n", aID, cID);
|
||||||
|
|
||||||
|
// for( int k = 0; k < qqq.multi; k++){
|
||||||
|
// if(qqq.index[k]==75 && pc.index[k]==2 && pc.e[k]>100){
|
||||||
|
for(int l=0;l<E.size();l++){
|
||||||
|
if(E[l].first<24 ){
|
||||||
|
if(!multi_an){
|
||||||
|
aE = E[l].second;
|
||||||
|
}
|
||||||
|
multi_an=true;
|
||||||
|
}
|
||||||
|
else if (E[l].first>=24){
|
||||||
|
cE = E[l].second + cE;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
// }
|
||||||
|
// }
|
||||||
|
hanVScatsum->Fill(aE,cE);
|
||||||
|
|
||||||
|
if( ID[0].first < 1 ) {
|
||||||
|
aID = pc.ch[ID[0].second];
|
||||||
|
cID = pc.ch[ID[1].second];
|
||||||
|
}else{
|
||||||
|
cID = pc.ch[ID[0].second];
|
||||||
|
aID = pc.ch[ID[1].second];
|
||||||
|
}
|
||||||
|
|
||||||
|
if( HitNonZero){
|
||||||
|
pw_contr.CalTrack( hitPos, aID, cID);
|
||||||
|
hZProj->Fill(pw_contr.GetZ0());
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
//########################################################### Track constrcution
|
||||||
|
|
||||||
|
|
||||||
|
//############################## DO THE KINEMATICS
|
||||||
|
|
||||||
|
|
||||||
|
return kTRUE;
|
||||||
|
}
|
||||||
|
|
||||||
|
void Analyzer1::Terminate(){
|
||||||
|
|
||||||
|
gStyle->SetOptStat("neiou");
|
||||||
|
TCanvas * canvas = new TCanvas("cANASEN", "ANASEN", 2000, 2000);
|
||||||
|
canvas->Divide(3,3);
|
||||||
|
|
||||||
|
//hsx3VpcIndex->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-1
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
hsx3IndexVE->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-2
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
hqqqIndexVE->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-3
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
hpcIndexVE->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-4
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
hsx3Coin->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-5
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
canvas->cd(padID)->SetLogz(true);
|
||||||
|
|
||||||
|
hqqqCoin->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-6
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
hpcCoin->Draw("colz");
|
||||||
|
|
||||||
|
//=============================================== pad-7
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
// hsx3VpcIndex ->Draw("colz");
|
||||||
|
hsx3VpcE->Draw("colz") ;
|
||||||
|
|
||||||
|
//=============================================== pad-8
|
||||||
|
padID ++; canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
|
||||||
|
// hqqqVpcIndex ->Draw("colz");
|
||||||
|
|
||||||
|
hqqqVpcE ->Draw("colz");
|
||||||
|
//=============================================== pad-9
|
||||||
|
padID ++;
|
||||||
|
|
||||||
|
// canvas->cd(padID)->DrawFrame(-50, -50, 50, 50);
|
||||||
|
// hqqqPolar->Draw("same colz pol");
|
||||||
|
|
||||||
|
canvas->cd(padID); canvas->cd(padID)->SetGrid(1);
|
||||||
|
// hZProj->Draw();
|
||||||
|
hanVScatsum->Draw("colz");
|
||||||
|
|
||||||
|
}
|
||||||
|
|
@ -1,114 +1,114 @@
|
||||||
#ifndef gainmatch_h
|
#ifndef Analyzer1_h
|
||||||
#define gainmatch_h
|
#define Analyzer1_h
|
||||||
|
|
||||||
#include <TROOT.h>
|
#include <TROOT.h>
|
||||||
#include <TChain.h>
|
#include <TChain.h>
|
||||||
#include <TFile.h>
|
#include <TFile.h>
|
||||||
#include <TSelector.h>
|
#include <TSelector.h>
|
||||||
|
|
||||||
#include "Armory/ClassDet.h"
|
#include "Armory/ClassDet.h"
|
||||||
|
|
||||||
class gainmatch : public TSelector {
|
class Analyzer1 : public TSelector {
|
||||||
public :
|
public :
|
||||||
TTree *fChain; //!pointer to the analyzed TTree or TChain
|
TTree *fChain; //!pointer to the analyzed TTree or TChain
|
||||||
|
|
||||||
// Fixed size dimensions of array or collections stored in the TTree if any.
|
// Fixed size dimensions of array or collections stored in the TTree if any.
|
||||||
|
|
||||||
// Declaration of leaf types
|
// Declaration of leaf types
|
||||||
Det sx3;
|
Det sx3;
|
||||||
Det qqq;
|
Det qqq;
|
||||||
Det pc ;
|
Det pc ;
|
||||||
|
|
||||||
ULong64_t evID;
|
ULong64_t evID;
|
||||||
UInt_t run;
|
UInt_t run;
|
||||||
|
|
||||||
// List of branches
|
// List of branches
|
||||||
TBranch *b_eventID; //!
|
TBranch *b_eventID; //!
|
||||||
TBranch *b_run; //!
|
TBranch *b_run; //!
|
||||||
TBranch *b_sx3Multi; //!
|
TBranch *b_sx3Multi; //!
|
||||||
TBranch *b_sx3ID; //!
|
TBranch *b_sx3ID; //!
|
||||||
TBranch *b_sx3Ch; //!
|
TBranch *b_sx3Ch; //!
|
||||||
TBranch *b_sx3E; //!
|
TBranch *b_sx3E; //!
|
||||||
TBranch *b_sx3T; //!
|
TBranch *b_sx3T; //!
|
||||||
TBranch *b_qqqMulti; //!
|
TBranch *b_qqqMulti; //!
|
||||||
TBranch *b_qqqID; //!
|
TBranch *b_qqqID; //!
|
||||||
TBranch *b_qqqCh; //!
|
TBranch *b_qqqCh; //!
|
||||||
TBranch *b_qqqE; //!
|
TBranch *b_qqqE; //!
|
||||||
TBranch *b_qqqT; //!
|
TBranch *b_qqqT; //!
|
||||||
TBranch *b_pcMulti; //!
|
TBranch *b_pcMulti; //!
|
||||||
TBranch *b_pcID; //!
|
TBranch *b_pcID; //!
|
||||||
TBranch *b_pcCh; //!
|
TBranch *b_pcCh; //!
|
||||||
TBranch *b_pcE; //!
|
TBranch *b_pcE; //!
|
||||||
TBranch *b_pcT; //!
|
TBranch *b_pcT; //!
|
||||||
|
|
||||||
gainmatch(TTree * /*tree*/ =0) : fChain(0) { }
|
Analyzer1(TTree * /*tree*/ =0) : fChain(0) { }
|
||||||
virtual ~gainmatch() { }
|
virtual ~Analyzer1() { }
|
||||||
virtual Int_t Version() const { return 2; }
|
virtual Int_t Version() const { return 2; }
|
||||||
virtual void Begin(TTree *tree);
|
virtual void Begin(TTree *tree);
|
||||||
virtual void SlaveBegin(TTree *tree);
|
virtual void SlaveBegin(TTree *tree);
|
||||||
virtual void Init(TTree *tree);
|
virtual void Init(TTree *tree);
|
||||||
virtual Bool_t Notify();
|
virtual Bool_t Notify();
|
||||||
virtual Bool_t Process(Long64_t entry);
|
virtual Bool_t Process(Long64_t entry);
|
||||||
virtual Int_t GetEntry(Long64_t entry, Int_t getall = 0) { return fChain ? fChain->GetTree()->GetEntry(entry, getall) : 0; }
|
virtual Int_t GetEntry(Long64_t entry, Int_t getall = 0) { return fChain ? fChain->GetTree()->GetEntry(entry, getall) : 0; }
|
||||||
virtual void SetOption(const char *option) { fOption = option; }
|
virtual void SetOption(const char *option) { fOption = option; }
|
||||||
virtual void SetObject(TObject *obj) { fObject = obj; }
|
virtual void SetObject(TObject *obj) { fObject = obj; }
|
||||||
virtual void SetInputList(TList *input) { fInput = input; }
|
virtual void SetInputList(TList *input) { fInput = input; }
|
||||||
virtual TList *GetOutputList() const { return fOutput; }
|
virtual TList *GetOutputList() const { return fOutput; }
|
||||||
virtual void SlaveTerminate();
|
virtual void SlaveTerminate();
|
||||||
virtual void Terminate();
|
virtual void Terminate();
|
||||||
|
|
||||||
ClassDef(gainmatch,0);
|
ClassDef(Analyzer1,0);
|
||||||
};
|
};
|
||||||
|
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
#ifdef gainmatch_cxx
|
#ifdef Analyzer1_cxx
|
||||||
void gainmatch::Init(TTree *tree){
|
void Analyzer1::Init(TTree *tree){
|
||||||
|
|
||||||
// Set branch addresses and branch pointers
|
// Set branch addresses and branch pointers
|
||||||
if (!tree) return;
|
if (!tree) return;
|
||||||
fChain = tree;
|
fChain = tree;
|
||||||
fChain->SetMakeClass(1);
|
fChain->SetMakeClass(1);
|
||||||
|
|
||||||
fChain->SetBranchAddress("evID", &evID, &b_eventID);
|
fChain->SetBranchAddress("evID", &evID, &b_eventID);
|
||||||
fChain->SetBranchAddress("run", &run, &b_run);
|
fChain->SetBranchAddress("run", &run, &b_run);
|
||||||
|
|
||||||
sx3.SetDetDimension(24,12);
|
sx3.SetDetDimension(24,12);
|
||||||
qqq.SetDetDimension(4,32);
|
qqq.SetDetDimension(4,32);
|
||||||
pc.SetDetDimension(2,24);
|
pc.SetDetDimension(2,24);
|
||||||
|
|
||||||
fChain->SetBranchAddress("sx3Multi", &sx3.multi, &b_sx3Multi);
|
fChain->SetBranchAddress("sx3Multi", &sx3.multi, &b_sx3Multi);
|
||||||
fChain->SetBranchAddress("sx3ID", &sx3.id, &b_sx3ID);
|
fChain->SetBranchAddress("sx3ID", &sx3.id, &b_sx3ID);
|
||||||
fChain->SetBranchAddress("sx3Ch", &sx3.ch, &b_sx3Ch);
|
fChain->SetBranchAddress("sx3Ch", &sx3.ch, &b_sx3Ch);
|
||||||
fChain->SetBranchAddress("sx3E", &sx3.e, &b_sx3E);
|
fChain->SetBranchAddress("sx3E", &sx3.e, &b_sx3E);
|
||||||
fChain->SetBranchAddress("sx3T", &sx3.t, &b_sx3T);
|
fChain->SetBranchAddress("sx3T", &sx3.t, &b_sx3T);
|
||||||
fChain->SetBranchAddress("qqqMulti", &qqq.multi, &b_qqqMulti);
|
fChain->SetBranchAddress("qqqMulti", &qqq.multi, &b_qqqMulti);
|
||||||
fChain->SetBranchAddress("qqqID", &qqq.id, &b_qqqID);
|
fChain->SetBranchAddress("qqqID", &qqq.id, &b_qqqID);
|
||||||
fChain->SetBranchAddress("qqqCh", &qqq.ch, &b_qqqCh);
|
fChain->SetBranchAddress("qqqCh", &qqq.ch, &b_qqqCh);
|
||||||
fChain->SetBranchAddress("qqqE", &qqq.e, &b_qqqE);
|
fChain->SetBranchAddress("qqqE", &qqq.e, &b_qqqE);
|
||||||
fChain->SetBranchAddress("qqqT", &qqq.t, &b_qqqT);
|
fChain->SetBranchAddress("qqqT", &qqq.t, &b_qqqT);
|
||||||
fChain->SetBranchAddress("pcMulti", &pc.multi, &b_pcMulti);
|
fChain->SetBranchAddress("pcMulti", &pc.multi, &b_pcMulti);
|
||||||
fChain->SetBranchAddress("pcID", &pc.id, &b_pcID);
|
fChain->SetBranchAddress("pcID", &pc.id, &b_pcID);
|
||||||
fChain->SetBranchAddress("pcCh", &pc.ch, &b_pcCh);
|
fChain->SetBranchAddress("pcCh", &pc.ch, &b_pcCh);
|
||||||
fChain->SetBranchAddress("pcE", &pc.e, &b_pcE);
|
fChain->SetBranchAddress("pcE", &pc.e, &b_pcE);
|
||||||
fChain->SetBranchAddress("pcT", &pc.t, &b_pcT);
|
fChain->SetBranchAddress("pcT", &pc.t, &b_pcT);
|
||||||
|
|
||||||
}
|
}
|
||||||
|
|
||||||
Bool_t gainmatch::Notify(){
|
Bool_t Analyzer1::Notify(){
|
||||||
|
|
||||||
return kTRUE;
|
return kTRUE;
|
||||||
}
|
}
|
||||||
|
|
||||||
void gainmatch::SlaveBegin(TTree * /*tree*/){
|
void Analyzer1::SlaveBegin(TTree * /*tree*/){
|
||||||
|
|
||||||
TString option = GetOption();
|
TString option = GetOption();
|
||||||
|
|
||||||
}
|
}
|
||||||
|
|
||||||
void gainmatch::SlaveTerminate(){
|
void Analyzer1::SlaveTerminate(){
|
||||||
|
|
||||||
}
|
}
|
||||||
|
|
||||||
|
|
||||||
#endif // #ifdef gainmatch_cxx
|
#endif // #ifdef Analyzer_cxx
|
||||||
|
|
@ -1,283 +0,0 @@
|
||||||
#ifndef ClassPW_h
|
|
||||||
#define ClassPW_h
|
|
||||||
|
|
||||||
#include <cstdio>
|
|
||||||
#include <TMath.h>
|
|
||||||
#include <TVector3.h>
|
|
||||||
|
|
||||||
struct PWHitInfo{
|
|
||||||
std::pair<short, short> nearestWire; // anode, cathode
|
|
||||||
std::pair<double, double> nearestDist; // anode, cathode
|
|
||||||
|
|
||||||
std::pair<short, short> nextNearestWire; // anode, cathode
|
|
||||||
std::pair<double, double> nextNearestDist; // anode, cathode
|
|
||||||
|
|
||||||
void Clear(){
|
|
||||||
nearestWire.first = -1;
|
|
||||||
nearestWire.second = -1;
|
|
||||||
nearestDist.first = 999999999;
|
|
||||||
nearestDist.second = 999999999;
|
|
||||||
nextNearestWire.first = -1;
|
|
||||||
nextNearestWire.second = -1;
|
|
||||||
nextNearestDist.first = 999999999;
|
|
||||||
nextNearestDist.second = 999999999;
|
|
||||||
}
|
|
||||||
};
|
|
||||||
|
|
||||||
//!########################################################
|
|
||||||
class PW{ // proportional wire
|
|
||||||
public:
|
|
||||||
PW(){ ClearHitInfo();};
|
|
||||||
~PW(){};
|
|
||||||
|
|
||||||
PWHitInfo GetHitInfo() const {return hitInfo;}
|
|
||||||
std::pair<short, short> GetNearestID() const {return hitInfo.nearestWire;}
|
|
||||||
std::pair<double, double> GetNearestDistance() const {return hitInfo.nearestDist;}
|
|
||||||
std::pair<short, short> Get2ndNearestID() const {return hitInfo.nextNearestWire;}
|
|
||||||
std::pair<double, double> Get2ndNearestDistance() const {return hitInfo.nextNearestDist;}
|
|
||||||
|
|
||||||
TVector3 GetTrackPos() const {return trackPos;}
|
|
||||||
TVector3 GetTrackVec() const {return trackVec;}
|
|
||||||
double GetTrackTheta() const {return trackVec.Theta();}
|
|
||||||
double GetTrackPhi() const {return trackVec.Phi();}
|
|
||||||
double GetZ0();
|
|
||||||
|
|
||||||
int GetNumWire() const {return nWire;}
|
|
||||||
double GetDeltaAngle() const {return dAngle;}
|
|
||||||
double GetAnodeLength() const {return anodeLength;}
|
|
||||||
double GetCathodeLength() const {return cathodeLength;}
|
|
||||||
TVector3 GetAnodeDn(short id) const {return An[id].first;}
|
|
||||||
TVector3 GetAnodeUp(short id) const {return An[id].second;}
|
|
||||||
TVector3 GetCathodeDn(short id) const {return Ca[id].first;}
|
|
||||||
TVector3 GetCathodeUp(short id) const {return Ca[id].second;}
|
|
||||||
|
|
||||||
TVector3 GetAnodneMid(short id) const {return (An[id].first + An[id].second) * 0.5; }
|
|
||||||
double GetAnodeTheta(short id) const {return (An[id].first - An[id].second).Theta();}
|
|
||||||
double GetAnodePhi(short id) const {return (An[id].first - An[id].second).Phi();}
|
|
||||||
|
|
||||||
TVector3 GetCathodneMid(short id) const {return (Ca[id].first + Ca[id].second) * 0.5; }
|
|
||||||
double GetCathodeTheta(short id) const {return (Ca[id].first - Ca[id].second).Theta();}
|
|
||||||
double GetCathodePhi(short id) const {return (Ca[id].first - Ca[id].second).Phi();}
|
|
||||||
|
|
||||||
void ClearHitInfo();
|
|
||||||
void ConstructGeo();
|
|
||||||
void FindWireID(TVector3 pos, TVector3 direction, bool verbose = false);
|
|
||||||
void CalTrack(TVector3 sx3Pos, int anodeID, int cathodeID, bool verbose = false);
|
|
||||||
void CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA = 0, double sigmaC = 0, bool verbose = false);
|
|
||||||
|
|
||||||
void Print(){
|
|
||||||
printf(" The nearest | Anode: %2d(%5.2f) Cathode: %2d(%5.2f)\n", hitInfo.nearestWire.first,
|
|
||||||
hitInfo.nearestDist.first,
|
|
||||||
hitInfo.nearestWire.second,
|
|
||||||
hitInfo.nearestDist.second);
|
|
||||||
|
|
||||||
printf(" The 2nd nearest | Anode: %2d(%5.2f) Cathode: %2d(%5.2f)\n", hitInfo.nextNearestWire.first,
|
|
||||||
hitInfo.nextNearestDist.first,
|
|
||||||
hitInfo.nextNearestWire.second,
|
|
||||||
hitInfo.nextNearestDist.second);
|
|
||||||
}
|
|
||||||
|
|
||||||
private:
|
|
||||||
|
|
||||||
PWHitInfo hitInfo;
|
|
||||||
|
|
||||||
TVector3 trackPos;
|
|
||||||
TVector3 trackVec;
|
|
||||||
|
|
||||||
const int nWire = 24;
|
|
||||||
const int wireShift = 3;
|
|
||||||
const float zLen = 380; //mm
|
|
||||||
const float radiusA = 37;
|
|
||||||
const float radiusC = 43;
|
|
||||||
|
|
||||||
double dAngle;
|
|
||||||
double anodeLength;
|
|
||||||
double cathodeLength;
|
|
||||||
|
|
||||||
std::vector<std::pair<TVector3,TVector3>> An; // the anode wire position vector in space
|
|
||||||
std::vector<std::pair<TVector3,TVector3>> Ca; // the cathode wire position vector in space
|
|
||||||
|
|
||||||
double Distance(TVector3 a1, TVector3 a2, TVector3 b1, TVector3 b2){
|
|
||||||
TVector3 na = a1 - a2;
|
|
||||||
TVector3 nb = b1 - b2;
|
|
||||||
TVector3 nd = (na.Cross(nb)).Unit();
|
|
||||||
return TMath::Abs(nd.Dot(a1-b2));
|
|
||||||
}
|
|
||||||
|
|
||||||
};
|
|
||||||
|
|
||||||
inline void PW::ClearHitInfo(){
|
|
||||||
hitInfo.Clear();
|
|
||||||
}
|
|
||||||
|
|
||||||
inline void PW::ConstructGeo(){
|
|
||||||
|
|
||||||
An.clear();
|
|
||||||
Ca.clear();
|
|
||||||
|
|
||||||
std::pair<TVector3, TVector3> p1; // anode
|
|
||||||
std::pair<TVector3, TVector3> q1; // cathode
|
|
||||||
|
|
||||||
//anode and cathode start at pos-Y axis and count in right-Hand
|
|
||||||
//anode wire shift is right-hand.
|
|
||||||
//cathode wire shift is left-hand.
|
|
||||||
|
|
||||||
for(int i = 0; i < nWire; i++ ){
|
|
||||||
// Anode rotate right-hand
|
|
||||||
p1.first.SetXYZ( radiusA * TMath::Cos( TMath::TwoPi() / nWire * (i) + TMath::PiOver2()),
|
|
||||||
radiusA * TMath::Sin( TMath::TwoPi() / nWire * (i) + TMath::PiOver2()),
|
|
||||||
zLen/2);
|
|
||||||
p1.second.SetXYZ( radiusA * TMath::Cos( TMath::TwoPi() / nWire * (i + wireShift) + TMath::PiOver2()),
|
|
||||||
radiusA * TMath::Sin( TMath::TwoPi() / nWire * (i + wireShift) + TMath::PiOver2()),
|
|
||||||
-zLen/2);
|
|
||||||
An.push_back(p1);
|
|
||||||
|
|
||||||
// Cathod rotate left-hand
|
|
||||||
q1.first.SetXYZ( radiusC * TMath::Cos( TMath::TwoPi() / nWire * (i) + TMath::PiOver2()),
|
|
||||||
radiusC * TMath::Sin( TMath::TwoPi() / nWire * (i) + TMath::PiOver2()),
|
|
||||||
zLen/2);
|
|
||||||
q1.second.SetXYZ( radiusC * TMath::Cos( TMath::TwoPi() / nWire * (i - wireShift) + TMath::PiOver2()),
|
|
||||||
radiusC * TMath::Sin( TMath::TwoPi() / nWire * (i - wireShift) + TMath::PiOver2()),
|
|
||||||
-zLen/2);
|
|
||||||
Ca.push_back(q1);
|
|
||||||
}
|
|
||||||
|
|
||||||
dAngle = wireShift * TMath::TwoPi() / nWire;
|
|
||||||
anodeLength = TMath::Sqrt( zLen*zLen + TMath::Power(2* radiusA * TMath::Sin(dAngle/2),2) );
|
|
||||||
cathodeLength = TMath::Sqrt( zLen*zLen + TMath::Power(2* radiusC * TMath::Sin(dAngle/2),2) );
|
|
||||||
}
|
|
||||||
|
|
||||||
inline void PW::FindWireID(TVector3 pos, TVector3 direction, bool verbose ){
|
|
||||||
|
|
||||||
hitInfo.Clear();
|
|
||||||
double phi = direction.Phi();
|
|
||||||
|
|
||||||
for( int i = 0; i < nWire; i++){
|
|
||||||
|
|
||||||
double disA = 99999999;
|
|
||||||
double phiS = An[i].first.Phi() - TMath::PiOver4();
|
|
||||||
double phiL = An[i].second.Phi() + TMath::PiOver4();
|
|
||||||
// printf("A%2d: %f %f | %f\n", i, phiS * TMath::RadToDeg(), phiL * TMath::RadToDeg(), phi * TMath::RadToDeg());
|
|
||||||
if( phi > 0 && phiS > phiL ) phiL = phiL + TMath::TwoPi();
|
|
||||||
if( phi < 0 && phiS > phiL ) phiS = phiS - TMath::TwoPi();
|
|
||||||
|
|
||||||
if( phiS < phi && phi < phiL) {
|
|
||||||
disA = Distance( pos, pos + direction, An[i].first, An[i].second);
|
|
||||||
if( disA < hitInfo.nearestDist.first ){
|
|
||||||
hitInfo.nearestDist.first = disA;
|
|
||||||
hitInfo.nearestWire.first = i;
|
|
||||||
}
|
|
||||||
}
|
|
||||||
|
|
||||||
double disC = 99999999;
|
|
||||||
phiS = Ca[i].second.Phi()- TMath::PiOver4();
|
|
||||||
phiL = Ca[i].first.Phi() + TMath::PiOver4();
|
|
||||||
// printf("C%2d: %f %f\n", i, phiS * TMath::RadToDeg(), phiL * TMath::RadToDeg());
|
|
||||||
if( phi > 0 && phiS > phiL ) phiL = phiL + TMath::TwoPi();
|
|
||||||
if( phi < 0 && phiS > phiL ) phiS = phiS - TMath::TwoPi();
|
|
||||||
|
|
||||||
if(phiS < phi && phi < phiL) {
|
|
||||||
disC = Distance( pos, pos + direction, Ca[i].first, Ca[i].second);
|
|
||||||
if( disC < hitInfo.nearestDist.second ){
|
|
||||||
hitInfo.nearestDist.second = disC;
|
|
||||||
hitInfo.nearestWire.second = i;
|
|
||||||
}
|
|
||||||
}
|
|
||||||
|
|
||||||
if(verbose) printf(" %2d | %8.2f, %8.2f\n", i, disA, disC);
|
|
||||||
}
|
|
||||||
|
|
||||||
//==== find the 2nd nearest wire
|
|
||||||
short anode1 = hitInfo.nearestWire.first;
|
|
||||||
short aaa1 = anode1 - 1; if( aaa1 < 0 ) aaa1 += nWire;
|
|
||||||
short aaa2 = (anode1 + 1) % nWire;
|
|
||||||
|
|
||||||
double haha1 = Distance( pos, pos + direction, An[aaa1].first, An[aaa1].second);
|
|
||||||
double haha2 = Distance( pos, pos + direction, An[aaa2].first, An[aaa2].second);
|
|
||||||
if( haha1 < haha2){
|
|
||||||
hitInfo.nextNearestWire.first = aaa1;
|
|
||||||
hitInfo.nextNearestDist.first = haha1;
|
|
||||||
}else{
|
|
||||||
hitInfo.nextNearestWire.first = aaa2;
|
|
||||||
hitInfo.nextNearestDist.first = haha2;
|
|
||||||
}
|
|
||||||
|
|
||||||
short cathode1 = hitInfo.nearestWire.second;
|
|
||||||
short ccc1 = cathode1 - 1; if( ccc1 < 0 ) ccc1 += nWire;
|
|
||||||
short ccc2 = (cathode1 + 1) % nWire;
|
|
||||||
|
|
||||||
haha1 = Distance( pos, pos + direction, Ca[ccc1].first, Ca[ccc1].second);
|
|
||||||
haha2 = Distance( pos, pos + direction, Ca[ccc2].first, Ca[ccc2].second);
|
|
||||||
if( haha1 < haha2){
|
|
||||||
hitInfo.nextNearestWire.second = ccc1;
|
|
||||||
hitInfo.nextNearestDist.second = haha1;
|
|
||||||
}else{
|
|
||||||
hitInfo.nextNearestWire.second = ccc2;
|
|
||||||
hitInfo.nextNearestDist.second = haha2;
|
|
||||||
}
|
|
||||||
|
|
||||||
if( verbose ) Print();
|
|
||||||
}
|
|
||||||
|
|
||||||
inline void PW::CalTrack(TVector3 sx3Pos, int anodeID, int cathodeID, bool verbose){
|
|
||||||
|
|
||||||
trackPos = sx3Pos;
|
|
||||||
|
|
||||||
TVector3 n1 = (An[anodeID].first - An[anodeID].second).Cross((sx3Pos - An[anodeID].second)).Unit();
|
|
||||||
TVector3 n2 = (Ca[cathodeID].first - Ca[cathodeID].second).Cross((sx3Pos - Ca[cathodeID].second)).Unit();
|
|
||||||
|
|
||||||
// if the handiness of anode and cathode revered, it should be n2 cross n1
|
|
||||||
trackVec = (n2.Cross(n1)).Unit();
|
|
||||||
|
|
||||||
if( verbose ) printf("Theta, Phi = %f, %f \n", trackVec.Theta() *TMath::RadToDeg(), trackVec.Phi()*TMath::RadToDeg());
|
|
||||||
|
|
||||||
}
|
|
||||||
|
|
||||||
inline void PW::CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA, double sigmaC, bool verbose){
|
|
||||||
|
|
||||||
trackPos = sx3Pos;
|
|
||||||
|
|
||||||
double p1 = TMath::Abs(hitInfo.nearestDist.first + gRandom->Gaus(0, sigmaA));
|
|
||||||
double p2 = TMath::Abs(hitInfo.nextNearestDist.first + gRandom->Gaus(0, sigmaA));
|
|
||||||
double fracA = p1 / (p1 + p2);
|
|
||||||
short anodeID1 = hitInfo.nearestWire.first;
|
|
||||||
short anodeID2 = hitInfo.nextNearestWire.first;
|
|
||||||
TVector3 shiftA1 = (An[anodeID2].first - An[anodeID1].first) * fracA;
|
|
||||||
TVector3 shiftA2 = (An[anodeID2].second - An[anodeID1].second) * fracA;
|
|
||||||
|
|
||||||
double q1 = TMath::Abs(hitInfo.nearestDist.second + gRandom->Gaus(0, sigmaC));
|
|
||||||
double q2 = TMath::Abs(hitInfo.nextNearestDist.second + gRandom->Gaus(0, sigmaC));
|
|
||||||
double fracC = q1 / (q1 + q2);
|
|
||||||
short cathodeID1 = hitInfo.nearestWire.second;
|
|
||||||
short cathodeID2 = hitInfo.nextNearestWire.second;
|
|
||||||
TVector3 shiftC1 = (Ca[cathodeID2].first - Ca[cathodeID1].first) * fracC;
|
|
||||||
TVector3 shiftC2 = (Ca[cathodeID2].second - Ca[cathodeID1].second) * fracC;
|
|
||||||
|
|
||||||
TVector3 a1 = An[anodeID1].first + shiftA1;
|
|
||||||
TVector3 a2 = An[anodeID1].second + shiftA2;
|
|
||||||
|
|
||||||
TVector3 c1 = Ca[cathodeID1].first + shiftC1;
|
|
||||||
TVector3 c2 = Ca[cathodeID1].second + shiftC2;
|
|
||||||
|
|
||||||
TVector3 n1 = (a1 - a2).Cross((sx3Pos - a2)).Unit();
|
|
||||||
TVector3 n2 = (c1 - c2).Cross((sx3Pos - c2)).Unit();
|
|
||||||
|
|
||||||
// if the handiness of anode and cathode revered, it should be n2 cross n1
|
|
||||||
trackVec = (n2.Cross(n1)).Unit();
|
|
||||||
|
|
||||||
if( verbose ) printf("Theta, Phi = %f, %f \n", trackVec.Theta() *TMath::RadToDeg(), trackVec.Phi()*TMath::RadToDeg());
|
|
||||||
|
|
||||||
}
|
|
||||||
|
|
||||||
inline double PW::GetZ0(){
|
|
||||||
|
|
||||||
double x = trackPos.X();
|
|
||||||
double y = trackPos.Y();
|
|
||||||
double rho = TMath::Sqrt(x*x + y*y);
|
|
||||||
double theta = trackVec.Theta();
|
|
||||||
|
|
||||||
return trackPos.Z() - rho / TMath::Tan(theta);
|
|
||||||
|
|
||||||
}
|
|
||||||
|
|
||||||
#endif
|
|
||||||
BIN
Armory/.DS_Store
vendored
Normal file
BIN
Armory/.DS_Store
vendored
Normal file
Binary file not shown.
178
Armory/ANASEN_ML.py
Normal file
178
Armory/ANASEN_ML.py
Normal file
|
|
@ -0,0 +1,178 @@
|
||||||
|
#!/usr/bin/env python3
|
||||||
|
# -*- coding: utf-8 -*-
|
||||||
|
"""
|
||||||
|
Created on Wed Aug 5 15:52:39 2026
|
||||||
|
|
||||||
|
@author: jamesszalkie
|
||||||
|
"""
|
||||||
|
|
||||||
|
import uproot
|
||||||
|
import joblib
|
||||||
|
import numpy as np
|
||||||
|
import matplotlib.pyplot as plt
|
||||||
|
import tensorflow as tf
|
||||||
|
from sklearn.metrics import mean_absolute_error
|
||||||
|
|
||||||
|
# User settings
|
||||||
|
|
||||||
|
ROOT_FILE = "/Users/jamesszalkie/ANASEN_analysis/Armory/SimAnasen1.root"
|
||||||
|
TREE_NAME = "tree1"
|
||||||
|
|
||||||
|
MODEL = "beam_predictor.keras"
|
||||||
|
INPUT_SCALER = "input_scaler.pkl"
|
||||||
|
OUTPUT_SCALER = "output_scaler.pkl"
|
||||||
|
|
||||||
|
INPUT_BRANCHES = [
|
||||||
|
"Tb",
|
||||||
|
"thetab",
|
||||||
|
"vZ",
|
||||||
|
"MBeam",
|
||||||
|
"MTarget",
|
||||||
|
"MLight",
|
||||||
|
"MHeavy",
|
||||||
|
]
|
||||||
|
|
||||||
|
# Load model
|
||||||
|
|
||||||
|
model = tf.keras.models.load_model(MODEL)
|
||||||
|
|
||||||
|
input_scaler = joblib.load(INPUT_SCALER)
|
||||||
|
output_scaler = joblib.load(OUTPUT_SCALER)
|
||||||
|
|
||||||
|
# Read ROOT file
|
||||||
|
|
||||||
|
with uproot.open(ROOT_FILE) as f:
|
||||||
|
tree = f[TREE_NAME]
|
||||||
|
arrays = tree.arrays(INPUT_BRANCHES, library="np")
|
||||||
|
|
||||||
|
X = np.column_stack([arrays[b] for b in INPUT_BRANCHES])
|
||||||
|
|
||||||
|
# Remove NaN events
|
||||||
|
mask = np.all(np.isfinite(X), axis=1)
|
||||||
|
X = X[mask]
|
||||||
|
|
||||||
|
print(f"Predicting {len(X)} events")
|
||||||
|
|
||||||
|
# Predict
|
||||||
|
|
||||||
|
X_scaled = input_scaler.transform(X)
|
||||||
|
|
||||||
|
pred_scaled = model.predict(X_scaled, verbose=0)
|
||||||
|
|
||||||
|
pred = output_scaler.inverse_transform(pred_scaled)
|
||||||
|
|
||||||
|
beam = pred[:,0]
|
||||||
|
Ex = pred[:,1]
|
||||||
|
|
||||||
|
# See whether truth branches exist
|
||||||
|
|
||||||
|
truth_beam = None
|
||||||
|
truth_Ex = None
|
||||||
|
|
||||||
|
with uproot.open(ROOT_FILE) as f:
|
||||||
|
|
||||||
|
tree = f[TREE_NAME]
|
||||||
|
branches = tree.keys()
|
||||||
|
|
||||||
|
if "beamEnergy" in branches:
|
||||||
|
truth_beam = tree["beamEnergy"].array(library="np")[mask]
|
||||||
|
|
||||||
|
if "Ex" in branches:
|
||||||
|
truth_Ex = tree["Ex"].array(library="np")[mask]
|
||||||
|
|
||||||
|
print("\n============================")
|
||||||
|
print("Model Performance")
|
||||||
|
print("============================")
|
||||||
|
|
||||||
|
if truth_beam is not None:
|
||||||
|
beam_mae = mean_absolute_error(truth_beam, beam)
|
||||||
|
beam_rmse = np.sqrt(np.mean((truth_beam - beam)**2))
|
||||||
|
|
||||||
|
print(f"Beam Energy MAE : {beam_mae:.4f} MeV")
|
||||||
|
print(f"Beam Energy RMSE: {beam_rmse:.4f} MeV")
|
||||||
|
|
||||||
|
if truth_Ex is not None:
|
||||||
|
Ex_mae = mean_absolute_error(truth_Ex, Ex)
|
||||||
|
Ex_rmse = np.sqrt(np.mean((truth_Ex - Ex)**2))
|
||||||
|
|
||||||
|
print(f"Excitation MAE : {Ex_mae:.4f} MeV")
|
||||||
|
print(f"Excitation RMSE : {Ex_rmse:.4f} MeV")
|
||||||
|
|
||||||
|
# Plot Beam Energy
|
||||||
|
plt.figure(figsize=(8,6))
|
||||||
|
|
||||||
|
plt.hist(
|
||||||
|
beam,
|
||||||
|
bins=250,
|
||||||
|
histtype="step",
|
||||||
|
linewidth=2,
|
||||||
|
label="Predicted",
|
||||||
|
)
|
||||||
|
|
||||||
|
if truth_beam is not None:
|
||||||
|
plt.hist(
|
||||||
|
truth_beam,
|
||||||
|
bins=250,
|
||||||
|
histtype="step",
|
||||||
|
linewidth=2,
|
||||||
|
label="Truth",
|
||||||
|
)
|
||||||
|
|
||||||
|
plt.xlabel("Beam Energy (MeV)")
|
||||||
|
plt.ylabel("Counts")
|
||||||
|
plt.title("Beam Energy")
|
||||||
|
plt.legend()
|
||||||
|
plt.tight_layout()
|
||||||
|
|
||||||
|
# Plot Excitation Energy
|
||||||
|
|
||||||
|
plt.figure(figsize=(8,6))
|
||||||
|
|
||||||
|
plt.hist(
|
||||||
|
Ex,
|
||||||
|
bins=250,
|
||||||
|
histtype="step",
|
||||||
|
linewidth=2,
|
||||||
|
label="Predicted",
|
||||||
|
)
|
||||||
|
|
||||||
|
if truth_Ex is not None:
|
||||||
|
plt.hist(
|
||||||
|
truth_Ex,
|
||||||
|
bins=250,
|
||||||
|
histtype="step",
|
||||||
|
linewidth=2,
|
||||||
|
label="Truth",
|
||||||
|
)
|
||||||
|
|
||||||
|
plt.xlabel("Excitation Energy (MeV)")
|
||||||
|
plt.ylabel("Counts")
|
||||||
|
plt.title("Excitation Energy")
|
||||||
|
plt.legend()
|
||||||
|
plt.tight_layout()
|
||||||
|
|
||||||
|
plt.figure(figsize=(6,6))
|
||||||
|
|
||||||
|
plt.scatter(truth_beam, beam, s=2)
|
||||||
|
|
||||||
|
mn = min(truth_beam.min(), beam.min())
|
||||||
|
mx = max(truth_beam.max(), beam.max())
|
||||||
|
|
||||||
|
plt.plot([mn, mx], [mn, mx], 'k--')
|
||||||
|
|
||||||
|
plt.xlabel("True Beam Energy (MeV)")
|
||||||
|
plt.ylabel("Predicted Beam Energy (MeV)")
|
||||||
|
plt.title("Beam Energy Reconstruction")
|
||||||
|
|
||||||
|
plt.figure(figsize=(6,6))
|
||||||
|
|
||||||
|
plt.scatter(truth_Ex, Ex, s=2)
|
||||||
|
|
||||||
|
mn = min(truth_Ex.min(), Ex.min())
|
||||||
|
mx = max(truth_Ex.max(), Ex.max())
|
||||||
|
|
||||||
|
plt.plot([mn, mx], [mn, mx], 'k--')
|
||||||
|
|
||||||
|
plt.xlabel("True Excitation Energy (MeV)")
|
||||||
|
plt.ylabel("Predicted Excitation Energy (MeV)")
|
||||||
|
plt.title("Excitation Energy Reconstruction")
|
||||||
|
|
@ -26,23 +26,35 @@ void ANASEN_model(int anodeID1 = -1, int anodeID2 = -1, int cathodeID1 = -1, int
|
||||||
TGeoVolume *worldBox = geom->MakeBox("ROOT", Vacuum, worldx, worldy, worldz);
|
TGeoVolume *worldBox = geom->MakeBox("ROOT", Vacuum, worldx, worldy, worldz);
|
||||||
geom->SetTopVolume(worldBox);
|
geom->SetTopVolume(worldBox);
|
||||||
|
|
||||||
//--- making axis
|
//--- making axis (X=red, Y=green, Z=blue)
|
||||||
TGeoVolume *axisX = geom->MakeTube("axisX", Al, 0, 0.1, 5.);
|
Double_t axisLen = 100.;
|
||||||
axisX->SetLineColor(1);
|
TGeoVolume *axisX = geom->MakeTube("axisX", Al, 0, 0.1, axisLen/2);
|
||||||
worldBox->AddNode(axisX, 1, new TGeoCombiTrans(5, 0, 0., new TGeoRotation("rotA", 90., 90., 0.)));
|
axisX->SetLineColor(kRed);
|
||||||
|
worldBox->AddNode(axisX, 1, new TGeoCombiTrans(axisLen/2, 0, 0., new TGeoRotation("rotA", 90., 90., 0.)));
|
||||||
|
|
||||||
TGeoVolume *axisY = geom->MakeTube("axisY", Al, 0, 0.1, 5.);
|
TGeoVolume *axisY = geom->MakeTube("axisY", Al, 0, 0.1, axisLen/2);
|
||||||
axisY->SetLineColor(1);
|
axisY->SetLineColor(kGreen);
|
||||||
worldBox->AddNode(axisY, 1, new TGeoCombiTrans(0, 5, 0., new TGeoRotation("rotB", 0., 90., 0.)));
|
worldBox->AddNode(axisY, 1, new TGeoCombiTrans(0, axisLen/2, 0., new TGeoRotation("rotB", 0., 90., 0.)));
|
||||||
|
|
||||||
TGeoVolume *axisZ = geom->MakeTube("axisZ", Al, 0, 0.1, 5.);
|
TGeoVolume *axisZ = geom->MakeTube("axisZ", Al, 0, 0.1, axisLen/2);
|
||||||
axisZ->SetLineColor(1);
|
axisZ->SetLineColor(kBlue);
|
||||||
worldBox->AddNode(axisZ, 1, new TGeoTranslation(0, 0, 5));
|
worldBox->AddNode(axisZ, 1, new TGeoTranslation(0, 0, axisLen/2));
|
||||||
|
|
||||||
|
//--- axis labels (draw as TPolyMarker3D + text because TGeo does not label directly)
|
||||||
|
TPolyMarker3D *marker = new TPolyMarker3D();
|
||||||
|
marker->SetMarkerSize(1.2);
|
||||||
|
marker->SetMarkerColor(kRed);
|
||||||
|
marker->SetPoint(0, axisLen, 0, 0); // X
|
||||||
|
marker->SetMarkerColor(kGreen);
|
||||||
|
marker->SetPoint(1, 0, axisLen, 0); // Y
|
||||||
|
marker->SetMarkerColor(kBlue);
|
||||||
|
marker->SetPoint(2, 0, 0, axisLen); // Z
|
||||||
|
marker->Draw();
|
||||||
|
|
||||||
//--- making ANASEN
|
//--- making ANASEN
|
||||||
const int nWire = 24;
|
const int nWire = 24;
|
||||||
const int wireShift = 3;
|
const int wireShift = 3;
|
||||||
const int zLen = 300; //mm
|
const int zLen = 350; //mm
|
||||||
const int radiusA = 38;
|
const int radiusA = 38;
|
||||||
const int radiusC = 43;
|
const int radiusC = 43;
|
||||||
|
|
||||||
|
|
@ -103,8 +115,8 @@ void ANASEN_model(int anodeID1 = -1, int anodeID2 = -1, int cathodeID1 = -1, int
|
||||||
new TGeoRotation("rot1", 360/nSX3 * (i + 0.5), 0., 0.)));
|
new TGeoRotation("rot1", 360/nSX3 * (i + 0.5), 0., 0.)));
|
||||||
}
|
}
|
||||||
|
|
||||||
const int qqqR1 = 10;
|
const int qqqR1 = 50;
|
||||||
const int qqqR2 = 50;
|
const int qqqR2 = 100;
|
||||||
TGeoVolume *qqq = geom->MakeTubs("qqq", Al, qqqR1, qqqR2, 0.5, 5, 85);
|
TGeoVolume *qqq = geom->MakeTubs("qqq", Al, qqqR1, qqqR2, 0.5, 5, 85);
|
||||||
qqq->SetLineColor(7);
|
qqq->SetLineColor(7);
|
||||||
for( int i = 0; i < 4; i++){
|
for( int i = 0; i < 4; i++){
|
||||||
|
|
@ -119,3 +131,5 @@ void ANASEN_model(int anodeID1 = -1, int anodeID2 = -1, int cathodeID1 = -1, int
|
||||||
geom->SetVisLevel(4);
|
geom->SetVisLevel(4);
|
||||||
worldBox->Draw("ogle");
|
worldBox->Draw("ogle");
|
||||||
}
|
}
|
||||||
|
|
||||||
|
|
||||||
|
|
|
||||||
64
Armory/AnasenG4/G4History.macro
Normal file
64
Armory/AnasenG4/G4History.macro
Normal file
|
|
@ -0,0 +1,64 @@
|
||||||
|
/run/verbose 2
|
||||||
|
/event/verbose 0
|
||||||
|
/tracking/verbose 0
|
||||||
|
/run/initialize
|
||||||
|
/control/execute vis.mac
|
||||||
|
/vis/open
|
||||||
|
/vis/sceneHandler/create TSG
|
||||||
|
/vis/viewer/create ! ! 600x600-0+0
|
||||||
|
/vis/viewer/refresh
|
||||||
|
/vis/viewer/set/autoRefresh false
|
||||||
|
/vis/verbose errors
|
||||||
|
/vis/drawVolume
|
||||||
|
/vis/scene/create
|
||||||
|
/vis/scene/add/volume world -1 -1 none m 0 0 0 0 0 0
|
||||||
|
/vis/sceneHandler/attach
|
||||||
|
/vis/viewer/set/viewpointVector -1 0 0
|
||||||
|
/vis/viewer/set/lightsVector -1 0 0
|
||||||
|
/vis/viewer/set/style wireframe
|
||||||
|
/vis/viewer/set/auxiliaryEdge true
|
||||||
|
/vis/viewer/set/lineSegmentsPerCircle 100
|
||||||
|
/tracking/storeTrajectory 1
|
||||||
|
/vis/scene/add/trajectories smooth
|
||||||
|
/tracking/storeTrajectory 2
|
||||||
|
/vis/scene/notifyHandlers
|
||||||
|
/vis/modeling/trajectories/create/drawByParticleID
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/default/setDrawStepPts true
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/default/setStepPtsSize 2
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/set proton magenta
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/set alpha orange
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/vis/scene/endOfEventAction accumulate 20
|
||||||
|
/vis/geometry/set/visibility World 0 false
|
||||||
|
/vis/scene/notifyHandlers
|
||||||
|
/vis/scene/add/axes 0 0 0 20 mm
|
||||||
|
/vis/scene/notifyHandlers
|
||||||
|
/vis/viewer/set/background 0 0 0
|
||||||
|
/vis/viewer/set/style surface
|
||||||
|
/vis/viewer/set/hiddenMarker true
|
||||||
|
/vis/viewer/set/viewpointThetaPhi 120 150
|
||||||
|
/vis/viewer/set/autoRefresh true
|
||||||
|
/vis/viewer/refresh
|
||||||
|
/vis/verbose warnings
|
||||||
|
/vis/viewer/flush
|
||||||
|
/vis/viewer/refresh viewer-0
|
||||||
|
/vis/viewer/update viewer-0
|
||||||
|
/control/execute run.mac
|
||||||
|
/control/verbose 1
|
||||||
|
/run/verbose 1
|
||||||
|
/event/verbose 0
|
||||||
|
/tracking/verbose 0
|
||||||
|
/anasen/output/includeElectrons false
|
||||||
|
/run/initialize
|
||||||
|
/vis/filtering/trajectories/create/particleFilter
|
||||||
|
/vis/filtering/trajectories/particleFilter-0/add e-
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/vis/filtering/trajectories/particleFilter-0/add e+
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/vis/filtering/trajectories/particleFilter-0/invert true
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
|
/run/beamOn 1000
|
||||||
|
/vis/scene/notifyHandlers scene-0
|
||||||
34
Armory/AnasenG4/README.md
Normal file
34
Armory/AnasenG4/README.md
Normal file
|
|
@ -0,0 +1,34 @@
|
||||||
|
# AnasenG4 Geant4 Simulation
|
||||||
|
|
||||||
|
This folder contains a minimal Geant4 application that:
|
||||||
|
- builds the ANASEN detector geometry,
|
||||||
|
- adds a helium target volume,
|
||||||
|
- generates outgoing proton events from an `18Ne + 4He` alpha/p reaction using the external `ClassTransfer` reaction model,
|
||||||
|
- and propagates the particles with the Geant4 `FTFP_BERT` physics list.
|
||||||
|
|
||||||
|
## Build
|
||||||
|
|
||||||
|
```bash
|
||||||
|
cd /home/jamesszalkie/anasen/Armory/AnasenG4
|
||||||
|
rm -rf build
|
||||||
|
mkdir build
|
||||||
|
cd build
|
||||||
|
cmake ..
|
||||||
|
make -j4
|
||||||
|
```
|
||||||
|
|
||||||
|
## Run
|
||||||
|
|
||||||
|
```bash
|
||||||
|
cd /home/jamesszalkie/anasen/Armory/AnasenG4
|
||||||
|
./build/AnasenG4 macros/run.mac
|
||||||
|
```
|
||||||
|
|
||||||
|
## Notes
|
||||||
|
|
||||||
|
- The reaction generator uses `/home/jamesszalkie/anasen/Armory/mass20.txt` for isotope mass lookups.
|
||||||
|
- You can also run the interactive visualization macro:
|
||||||
|
|
||||||
|
```bash
|
||||||
|
./build/AnasenG4 macros/init_vis.mac
|
||||||
|
```
|
||||||
BIN
Armory/AnasenG4/build/AnasenG4
Executable file
BIN
Armory/AnasenG4/build/AnasenG4
Executable file
Binary file not shown.
|
|
@ -0,0 +1,83 @@
|
||||||
|
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|
|
||||||
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|
||||||
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|
||||||
|
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|
||||||
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|
||||||
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|
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|
|
||||||
|
|
||||||
|
|
||||||
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|
||||||
|
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|
||||||
|
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|
||||||
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|
||||||
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|
||||||
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|
||||||
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|
||||||
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|
||||||
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|
||||||
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|
||||||
|
|
||||||
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set(CMAKE_CXX_COMPILER_ENV_VAR "CXX")
|
||||||
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||||||
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|
||||||
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||||||
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||||||
|
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||||||
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||||||
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||||||
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||||||
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|
||||||
|
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|
||||||
|
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|
||||||
|
|
||||||
|
set(CMAKE_CXX_LINKER_PREFERENCE 30)
|
||||||
|
set(CMAKE_CXX_LINKER_PREFERENCE_PROPAGATES 1)
|
||||||
|
|
||||||
|
# Save compiler ABI information.
|
||||||
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|
||||||
|
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|
||||||
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|
||||||
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|
||||||
|
|
||||||
|
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|
||||||
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||||||
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|
||||||
|
|
||||||
|
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|
||||||
|
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||||||
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|
||||||
|
|
||||||
|
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|
||||||
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||||||
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|
||||||
|
|
||||||
|
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|
||||||
|
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|
||||||
|
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||||||
|
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|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
set(CMAKE_CXX_IMPLICIT_INCLUDE_DIRECTORIES "/usr/include/c++/11;/usr/include/x86_64-linux-gnu/c++/11;/usr/include/c++/11/backward;/usr/lib/gcc/x86_64-linux-gnu/11/include;/usr/local/include;/usr/include/x86_64-linux-gnu;/usr/include")
|
||||||
|
set(CMAKE_CXX_IMPLICIT_LINK_LIBRARIES "stdc++;m;gcc_s;gcc;c;gcc_s;gcc")
|
||||||
|
set(CMAKE_CXX_IMPLICIT_LINK_DIRECTORIES "/usr/lib/gcc/x86_64-linux-gnu/11;/usr/lib/x86_64-linux-gnu;/usr/lib;/lib/x86_64-linux-gnu;/lib")
|
||||||
|
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|
||||||
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|
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||||||
|
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||||||
|
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||||||
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||||||
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|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
set(CMAKE_SYSTEM "Linux-6.8.0-124-generic")
|
||||||
|
set(CMAKE_SYSTEM_NAME "Linux")
|
||||||
|
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|
||||||
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|
||||||
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|
||||||
|
|
||||||
|
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|
||||||
|
|
@ -0,0 +1,791 @@
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||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
|
||||||
|
#if !defined(__has_include)
|
||||||
|
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|
||||||
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|
||||||
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||||||
|
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||||||
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|
||||||
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|
||||||
|
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||||||
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||||||
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|
||||||
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|
||||||
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||||||
|
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|
||||||
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||||||
|
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||||||
|
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|
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||||||
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|
||||||
|
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||||||
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|
||||||
|
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|
||||||
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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||||||
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
# define SIMULATE_VERSION_MAJOR DEC(__GNUC__)
|
||||||
|
# elif defined(__GNUG__)
|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
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|
||||||
|
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|
||||||
|
# define SIMULATE_ID "GNU"
|
||||||
|
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|
||||||
|
/* __INTEL_LLVM_COMPILER = VVVVRP prior to 2021.2.0, VVVVRRPP for 2021.2.0 and
|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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||||||
|
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||||||
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||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
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||||||
|
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|
||||||
|
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|
||||||
|
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|
||||||
|
|
||||||
|
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|
||||||
|
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|
||||||
|
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||||||
|
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||||||
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|
|
||||||
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||||||
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|
|
||||||
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||||||
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||||||
|
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||||||
|
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||||||
|
# define COMPILER_VERSION_MINOR DEC((__WATCOMC__ / 10) % 10)
|
||||||
|
# if (__WATCOMC__ % 10) > 0
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__WATCOMC__ % 10)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__WATCOMC__)
|
||||||
|
# define COMPILER_ID "OpenWatcom"
|
||||||
|
/* __WATCOMC__ = VVRP + 1100 */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC((__WATCOMC__ - 1100) / 100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC((__WATCOMC__ / 10) % 10)
|
||||||
|
# if (__WATCOMC__ % 10) > 0
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__WATCOMC__ % 10)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__SUNPRO_CC)
|
||||||
|
# define COMPILER_ID "SunPro"
|
||||||
|
# if __SUNPRO_CC >= 0x5100
|
||||||
|
/* __SUNPRO_CC = 0xVRRP */
|
||||||
|
# define COMPILER_VERSION_MAJOR HEX(__SUNPRO_CC>>12)
|
||||||
|
# define COMPILER_VERSION_MINOR HEX(__SUNPRO_CC>>4 & 0xFF)
|
||||||
|
# define COMPILER_VERSION_PATCH HEX(__SUNPRO_CC & 0xF)
|
||||||
|
# else
|
||||||
|
/* __SUNPRO_CC = 0xVRP */
|
||||||
|
# define COMPILER_VERSION_MAJOR HEX(__SUNPRO_CC>>8)
|
||||||
|
# define COMPILER_VERSION_MINOR HEX(__SUNPRO_CC>>4 & 0xF)
|
||||||
|
# define COMPILER_VERSION_PATCH HEX(__SUNPRO_CC & 0xF)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__HP_aCC)
|
||||||
|
# define COMPILER_ID "HP"
|
||||||
|
/* __HP_aCC = VVRRPP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__HP_aCC/10000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__HP_aCC/100 % 100)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__HP_aCC % 100)
|
||||||
|
|
||||||
|
#elif defined(__DECCXX)
|
||||||
|
# define COMPILER_ID "Compaq"
|
||||||
|
/* __DECCXX_VER = VVRRTPPPP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__DECCXX_VER/10000000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__DECCXX_VER/100000 % 100)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__DECCXX_VER % 10000)
|
||||||
|
|
||||||
|
#elif defined(__IBMCPP__) && defined(__COMPILER_VER__)
|
||||||
|
# define COMPILER_ID "zOS"
|
||||||
|
/* __IBMCPP__ = VRP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__IBMCPP__/100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__IBMCPP__/10 % 10)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__IBMCPP__ % 10)
|
||||||
|
|
||||||
|
#elif defined(__ibmxl__) && defined(__clang__)
|
||||||
|
# define COMPILER_ID "XLClang"
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__ibmxl_version__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__ibmxl_release__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__ibmxl_modification__)
|
||||||
|
# define COMPILER_VERSION_TWEAK DEC(__ibmxl_ptf_fix_level__)
|
||||||
|
|
||||||
|
|
||||||
|
#elif defined(__IBMCPP__) && !defined(__COMPILER_VER__) && __IBMCPP__ >= 800
|
||||||
|
# define COMPILER_ID "XL"
|
||||||
|
/* __IBMCPP__ = VRP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__IBMCPP__/100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__IBMCPP__/10 % 10)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__IBMCPP__ % 10)
|
||||||
|
|
||||||
|
#elif defined(__IBMCPP__) && !defined(__COMPILER_VER__) && __IBMCPP__ < 800
|
||||||
|
# define COMPILER_ID "VisualAge"
|
||||||
|
/* __IBMCPP__ = VRP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__IBMCPP__/100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__IBMCPP__/10 % 10)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__IBMCPP__ % 10)
|
||||||
|
|
||||||
|
#elif defined(__NVCOMPILER)
|
||||||
|
# define COMPILER_ID "NVHPC"
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__NVCOMPILER_MAJOR__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__NVCOMPILER_MINOR__)
|
||||||
|
# if defined(__NVCOMPILER_PATCHLEVEL__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__NVCOMPILER_PATCHLEVEL__)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__PGI)
|
||||||
|
# define COMPILER_ID "PGI"
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__PGIC__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__PGIC_MINOR__)
|
||||||
|
# if defined(__PGIC_PATCHLEVEL__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__PGIC_PATCHLEVEL__)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(_CRAYC)
|
||||||
|
# define COMPILER_ID "Cray"
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(_RELEASE_MAJOR)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(_RELEASE_MINOR)
|
||||||
|
|
||||||
|
#elif defined(__TI_COMPILER_VERSION__)
|
||||||
|
# define COMPILER_ID "TI"
|
||||||
|
/* __TI_COMPILER_VERSION__ = VVVRRRPPP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__TI_COMPILER_VERSION__/1000000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__TI_COMPILER_VERSION__/1000 % 1000)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__TI_COMPILER_VERSION__ % 1000)
|
||||||
|
|
||||||
|
#elif defined(__CLANG_FUJITSU)
|
||||||
|
# define COMPILER_ID "FujitsuClang"
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__FCC_major__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__FCC_minor__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__FCC_patchlevel__)
|
||||||
|
# define COMPILER_VERSION_INTERNAL_STR __clang_version__
|
||||||
|
|
||||||
|
|
||||||
|
#elif defined(__FUJITSU)
|
||||||
|
# define COMPILER_ID "Fujitsu"
|
||||||
|
# if defined(__FCC_version__)
|
||||||
|
# define COMPILER_VERSION __FCC_version__
|
||||||
|
# elif defined(__FCC_major__)
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__FCC_major__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__FCC_minor__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__FCC_patchlevel__)
|
||||||
|
# endif
|
||||||
|
# if defined(__fcc_version)
|
||||||
|
# define COMPILER_VERSION_INTERNAL DEC(__fcc_version)
|
||||||
|
# elif defined(__FCC_VERSION)
|
||||||
|
# define COMPILER_VERSION_INTERNAL DEC(__FCC_VERSION)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
|
||||||
|
#elif defined(__ghs__)
|
||||||
|
# define COMPILER_ID "GHS"
|
||||||
|
/* __GHS_VERSION_NUMBER = VVVVRP */
|
||||||
|
# ifdef __GHS_VERSION_NUMBER
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__GHS_VERSION_NUMBER / 100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__GHS_VERSION_NUMBER / 10 % 10)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__GHS_VERSION_NUMBER % 10)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__SCO_VERSION__)
|
||||||
|
# define COMPILER_ID "SCO"
|
||||||
|
|
||||||
|
#elif defined(__ARMCC_VERSION) && !defined(__clang__)
|
||||||
|
# define COMPILER_ID "ARMCC"
|
||||||
|
#if __ARMCC_VERSION >= 1000000
|
||||||
|
/* __ARMCC_VERSION = VRRPPPP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__ARMCC_VERSION/1000000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__ARMCC_VERSION/10000 % 100)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__ARMCC_VERSION % 10000)
|
||||||
|
#else
|
||||||
|
/* __ARMCC_VERSION = VRPPPP */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__ARMCC_VERSION/100000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__ARMCC_VERSION/10000 % 10)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__ARMCC_VERSION % 10000)
|
||||||
|
#endif
|
||||||
|
|
||||||
|
|
||||||
|
#elif defined(__clang__) && defined(__apple_build_version__)
|
||||||
|
# define COMPILER_ID "AppleClang"
|
||||||
|
# if defined(_MSC_VER)
|
||||||
|
# define SIMULATE_ID "MSVC"
|
||||||
|
# endif
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__clang_major__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__clang_minor__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__clang_patchlevel__)
|
||||||
|
# if defined(_MSC_VER)
|
||||||
|
/* _MSC_VER = VVRR */
|
||||||
|
# define SIMULATE_VERSION_MAJOR DEC(_MSC_VER / 100)
|
||||||
|
# define SIMULATE_VERSION_MINOR DEC(_MSC_VER % 100)
|
||||||
|
# endif
|
||||||
|
# define COMPILER_VERSION_TWEAK DEC(__apple_build_version__)
|
||||||
|
|
||||||
|
#elif defined(__clang__) && defined(__ARMCOMPILER_VERSION)
|
||||||
|
# define COMPILER_ID "ARMClang"
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__ARMCOMPILER_VERSION/1000000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__ARMCOMPILER_VERSION/10000 % 100)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__ARMCOMPILER_VERSION % 10000)
|
||||||
|
# define COMPILER_VERSION_INTERNAL DEC(__ARMCOMPILER_VERSION)
|
||||||
|
|
||||||
|
#elif defined(__clang__)
|
||||||
|
# define COMPILER_ID "Clang"
|
||||||
|
# if defined(_MSC_VER)
|
||||||
|
# define SIMULATE_ID "MSVC"
|
||||||
|
# endif
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__clang_major__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__clang_minor__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__clang_patchlevel__)
|
||||||
|
# if defined(_MSC_VER)
|
||||||
|
/* _MSC_VER = VVRR */
|
||||||
|
# define SIMULATE_VERSION_MAJOR DEC(_MSC_VER / 100)
|
||||||
|
# define SIMULATE_VERSION_MINOR DEC(_MSC_VER % 100)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__GNUC__) || defined(__GNUG__)
|
||||||
|
# define COMPILER_ID "GNU"
|
||||||
|
# if defined(__GNUC__)
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__GNUC__)
|
||||||
|
# else
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(__GNUG__)
|
||||||
|
# endif
|
||||||
|
# if defined(__GNUC_MINOR__)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(__GNUC_MINOR__)
|
||||||
|
# endif
|
||||||
|
# if defined(__GNUC_PATCHLEVEL__)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__GNUC_PATCHLEVEL__)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(_MSC_VER)
|
||||||
|
# define COMPILER_ID "MSVC"
|
||||||
|
/* _MSC_VER = VVRR */
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC(_MSC_VER / 100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(_MSC_VER % 100)
|
||||||
|
# if defined(_MSC_FULL_VER)
|
||||||
|
# if _MSC_VER >= 1400
|
||||||
|
/* _MSC_FULL_VER = VVRRPPPPP */
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(_MSC_FULL_VER % 100000)
|
||||||
|
# else
|
||||||
|
/* _MSC_FULL_VER = VVRRPPPP */
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(_MSC_FULL_VER % 10000)
|
||||||
|
# endif
|
||||||
|
# endif
|
||||||
|
# if defined(_MSC_BUILD)
|
||||||
|
# define COMPILER_VERSION_TWEAK DEC(_MSC_BUILD)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
#elif defined(__VISUALDSPVERSION__) || defined(__ADSPBLACKFIN__) || defined(__ADSPTS__) || defined(__ADSP21000__)
|
||||||
|
# define COMPILER_ID "ADSP"
|
||||||
|
#if defined(__VISUALDSPVERSION__)
|
||||||
|
/* __VISUALDSPVERSION__ = 0xVVRRPP00 */
|
||||||
|
# define COMPILER_VERSION_MAJOR HEX(__VISUALDSPVERSION__>>24)
|
||||||
|
# define COMPILER_VERSION_MINOR HEX(__VISUALDSPVERSION__>>16 & 0xFF)
|
||||||
|
# define COMPILER_VERSION_PATCH HEX(__VISUALDSPVERSION__>>8 & 0xFF)
|
||||||
|
#endif
|
||||||
|
|
||||||
|
#elif defined(__IAR_SYSTEMS_ICC__) || defined(__IAR_SYSTEMS_ICC)
|
||||||
|
# define COMPILER_ID "IAR"
|
||||||
|
# if defined(__VER__) && defined(__ICCARM__)
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC((__VER__) / 1000000)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC(((__VER__) / 1000) % 1000)
|
||||||
|
# define COMPILER_VERSION_PATCH DEC((__VER__) % 1000)
|
||||||
|
# define COMPILER_VERSION_INTERNAL DEC(__IAR_SYSTEMS_ICC__)
|
||||||
|
# elif defined(__VER__) && (defined(__ICCAVR__) || defined(__ICCRX__) || defined(__ICCRH850__) || defined(__ICCRL78__) || defined(__ICC430__) || defined(__ICCRISCV__) || defined(__ICCV850__) || defined(__ICC8051__) || defined(__ICCSTM8__))
|
||||||
|
# define COMPILER_VERSION_MAJOR DEC((__VER__) / 100)
|
||||||
|
# define COMPILER_VERSION_MINOR DEC((__VER__) - (((__VER__) / 100)*100))
|
||||||
|
# define COMPILER_VERSION_PATCH DEC(__SUBVERSION__)
|
||||||
|
# define COMPILER_VERSION_INTERNAL DEC(__IAR_SYSTEMS_ICC__)
|
||||||
|
# endif
|
||||||
|
|
||||||
|
|
||||||
|
/* These compilers are either not known or too old to define an
|
||||||
|
identification macro. Try to identify the platform and guess that
|
||||||
|
it is the native compiler. */
|
||||||
|
#elif defined(__hpux) || defined(__hpua)
|
||||||
|
# define COMPILER_ID "HP"
|
||||||
|
|
||||||
|
#else /* unknown compiler */
|
||||||
|
# define COMPILER_ID ""
|
||||||
|
#endif
|
||||||
|
|
||||||
|
/* Construct the string literal in pieces to prevent the source from
|
||||||
|
getting matched. Store it in a pointer rather than an array
|
||||||
|
because some compilers will just produce instructions to fill the
|
||||||
|
array rather than assigning a pointer to a static array. */
|
||||||
|
char const* info_compiler = "INFO" ":" "compiler[" COMPILER_ID "]";
|
||||||
|
#ifdef SIMULATE_ID
|
||||||
|
char const* info_simulate = "INFO" ":" "simulate[" SIMULATE_ID "]";
|
||||||
|
#endif
|
||||||
|
|
||||||
|
#ifdef __QNXNTO__
|
||||||
|
char const* qnxnto = "INFO" ":" "qnxnto[]";
|
||||||
|
#endif
|
||||||
|
|
||||||
|
#if defined(__CRAYXT_COMPUTE_LINUX_TARGET)
|
||||||
|
char const *info_cray = "INFO" ":" "compiler_wrapper[CrayPrgEnv]";
|
||||||
|
#endif
|
||||||
|
|
||||||
|
#define STRINGIFY_HELPER(X) #X
|
||||||
|
#define STRINGIFY(X) STRINGIFY_HELPER(X)
|
||||||
|
|
||||||
|
/* Identify known platforms by name. */
|
||||||
|
#if defined(__linux) || defined(__linux__) || defined(linux)
|
||||||
|
# define PLATFORM_ID "Linux"
|
||||||
|
|
||||||
|
#elif defined(__MSYS__)
|
||||||
|
# define PLATFORM_ID "MSYS"
|
||||||
|
|
||||||
|
#elif defined(__CYGWIN__)
|
||||||
|
# define PLATFORM_ID "Cygwin"
|
||||||
|
|
||||||
|
#elif defined(__MINGW32__)
|
||||||
|
# define PLATFORM_ID "MinGW"
|
||||||
|
|
||||||
|
#elif defined(__APPLE__)
|
||||||
|
# define PLATFORM_ID "Darwin"
|
||||||
|
|
||||||
|
#elif defined(_WIN32) || defined(__WIN32__) || defined(WIN32)
|
||||||
|
# define PLATFORM_ID "Windows"
|
||||||
|
|
||||||
|
#elif defined(__FreeBSD__) || defined(__FreeBSD)
|
||||||
|
# define PLATFORM_ID "FreeBSD"
|
||||||
|
|
||||||
|
#elif defined(__NetBSD__) || defined(__NetBSD)
|
||||||
|
# define PLATFORM_ID "NetBSD"
|
||||||
|
|
||||||
|
#elif defined(__OpenBSD__) || defined(__OPENBSD)
|
||||||
|
# define PLATFORM_ID "OpenBSD"
|
||||||
|
|
||||||
|
#elif defined(__sun) || defined(sun)
|
||||||
|
# define PLATFORM_ID "SunOS"
|
||||||
|
|
||||||
|
#elif defined(_AIX) || defined(__AIX) || defined(__AIX__) || defined(__aix) || defined(__aix__)
|
||||||
|
# define PLATFORM_ID "AIX"
|
||||||
|
|
||||||
|
#elif defined(__hpux) || defined(__hpux__)
|
||||||
|
# define PLATFORM_ID "HP-UX"
|
||||||
|
|
||||||
|
#elif defined(__HAIKU__)
|
||||||
|
# define PLATFORM_ID "Haiku"
|
||||||
|
|
||||||
|
#elif defined(__BeOS) || defined(__BEOS__) || defined(_BEOS)
|
||||||
|
# define PLATFORM_ID "BeOS"
|
||||||
|
|
||||||
|
#elif defined(__QNX__) || defined(__QNXNTO__)
|
||||||
|
# define PLATFORM_ID "QNX"
|
||||||
|
|
||||||
|
#elif defined(__tru64) || defined(_tru64) || defined(__TRU64__)
|
||||||
|
# define PLATFORM_ID "Tru64"
|
||||||
|
|
||||||
|
#elif defined(__riscos) || defined(__riscos__)
|
||||||
|
# define PLATFORM_ID "RISCos"
|
||||||
|
|
||||||
|
#elif defined(__sinix) || defined(__sinix__) || defined(__SINIX__)
|
||||||
|
# define PLATFORM_ID "SINIX"
|
||||||
|
|
||||||
|
#elif defined(__UNIX_SV__)
|
||||||
|
# define PLATFORM_ID "UNIX_SV"
|
||||||
|
|
||||||
|
#elif defined(__bsdos__)
|
||||||
|
# define PLATFORM_ID "BSDOS"
|
||||||
|
|
||||||
|
#elif defined(_MPRAS) || defined(MPRAS)
|
||||||
|
# define PLATFORM_ID "MP-RAS"
|
||||||
|
|
||||||
|
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||||||
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||||||
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||||||
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||||||
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||||||
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||||||
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|
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||||||
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|
||||||
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|
||||||
|
the compilers do not have flags that can change the architecture,
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|
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*/
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('0' + (((n) / 10000000)%10)), \
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('0' + (((n) / 1000000)%10)), \
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|
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||||||
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'i','n','t','e','r','n','a','l','[',
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||||||
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||||||
|
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||||||
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||||||
|
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|
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||||||
|
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||||||
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||||||
|
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||||||
|
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||||||
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||||||
|
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||||||
|
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||||||
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|
because some compilers will just produce instructions to fill the
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||||||
|
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||||||
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char const* info_platform = "INFO" ":" "platform[" PLATFORM_ID "]";
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|
char const* info_arch = "INFO" ":" "arch[" ARCHITECTURE_ID "]";
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|
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||||||
|
|
||||||
|
|
||||||
|
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||||||
|
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|
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||||||
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||||||
|
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||||||
|
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||||||
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const char* info_language_standard_default = "INFO" ":" "standard_default["
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||||||
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||||||
|
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||||||
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const char* info_language_extensions_default = "INFO" ":" "extensions_default["
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|
||||||
|
#if (defined(__clang__) || defined(__GNUC__) || \
|
||||||
|
defined(__TI_COMPILER_VERSION__)) && \
|
||||||
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!defined(__STRICT_ANSI__) && !defined(_MSC_VER)
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"ON"
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"OFF"
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||||||
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||||||
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|
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||||||
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||||||
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||||||
|
int require = 0;
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||||||
|
require += info_compiler[argc];
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||||||
|
require += info_platform[argc];
|
||||||
|
#ifdef COMPILER_VERSION_MAJOR
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||||||
|
require += info_version[argc];
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||||||
|
#endif
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||||||
|
#ifdef COMPILER_VERSION_INTERNAL
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||||||
|
require += info_version_internal[argc];
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||||||
|
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||||||
|
#ifdef SIMULATE_ID
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||||||
|
require += info_simulate[argc];
|
||||||
|
#endif
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||||||
|
#ifdef SIMULATE_VERSION_MAJOR
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||||||
|
require += info_simulate_version[argc];
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|
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||||||
|
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|
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|
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|
require += info_language_standard_default[argc];
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|
require += info_language_extensions_default[argc];
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|
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|
||||||
|
src/ReactionGenerator.s: src/ReactionGenerator.cc.s
|
||||||
|
.PHONY : src/ReactionGenerator.s
|
||||||
|
|
||||||
|
# target to generate assembly for a file
|
||||||
|
src/ReactionGenerator.cc.s:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/ReactionGenerator.cc.s
|
||||||
|
.PHONY : src/ReactionGenerator.cc.s
|
||||||
|
|
||||||
|
src/RunAction.o: src/RunAction.cc.o
|
||||||
|
.PHONY : src/RunAction.o
|
||||||
|
|
||||||
|
# target to build an object file
|
||||||
|
src/RunAction.cc.o:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/RunAction.cc.o
|
||||||
|
.PHONY : src/RunAction.cc.o
|
||||||
|
|
||||||
|
src/RunAction.i: src/RunAction.cc.i
|
||||||
|
.PHONY : src/RunAction.i
|
||||||
|
|
||||||
|
# target to preprocess a source file
|
||||||
|
src/RunAction.cc.i:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/RunAction.cc.i
|
||||||
|
.PHONY : src/RunAction.cc.i
|
||||||
|
|
||||||
|
src/RunAction.s: src/RunAction.cc.s
|
||||||
|
.PHONY : src/RunAction.s
|
||||||
|
|
||||||
|
# target to generate assembly for a file
|
||||||
|
src/RunAction.cc.s:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/RunAction.cc.s
|
||||||
|
.PHONY : src/RunAction.cc.s
|
||||||
|
|
||||||
|
src/WireTrackingManager.o: src/WireTrackingManager.cc.o
|
||||||
|
.PHONY : src/WireTrackingManager.o
|
||||||
|
|
||||||
|
# target to build an object file
|
||||||
|
src/WireTrackingManager.cc.o:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/WireTrackingManager.cc.o
|
||||||
|
.PHONY : src/WireTrackingManager.cc.o
|
||||||
|
|
||||||
|
src/WireTrackingManager.i: src/WireTrackingManager.cc.i
|
||||||
|
.PHONY : src/WireTrackingManager.i
|
||||||
|
|
||||||
|
# target to preprocess a source file
|
||||||
|
src/WireTrackingManager.cc.i:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/WireTrackingManager.cc.i
|
||||||
|
.PHONY : src/WireTrackingManager.cc.i
|
||||||
|
|
||||||
|
src/WireTrackingManager.s: src/WireTrackingManager.cc.s
|
||||||
|
.PHONY : src/WireTrackingManager.s
|
||||||
|
|
||||||
|
# target to generate assembly for a file
|
||||||
|
src/WireTrackingManager.cc.s:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/WireTrackingManager.cc.s
|
||||||
|
.PHONY : src/WireTrackingManager.cc.s
|
||||||
|
|
||||||
|
src/main.o: src/main.cc.o
|
||||||
|
.PHONY : src/main.o
|
||||||
|
|
||||||
|
# target to build an object file
|
||||||
|
src/main.cc.o:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/main.cc.o
|
||||||
|
.PHONY : src/main.cc.o
|
||||||
|
|
||||||
|
src/main.i: src/main.cc.i
|
||||||
|
.PHONY : src/main.i
|
||||||
|
|
||||||
|
# target to preprocess a source file
|
||||||
|
src/main.cc.i:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/main.cc.i
|
||||||
|
.PHONY : src/main.cc.i
|
||||||
|
|
||||||
|
src/main.s: src/main.cc.s
|
||||||
|
.PHONY : src/main.s
|
||||||
|
|
||||||
|
# target to generate assembly for a file
|
||||||
|
src/main.cc.s:
|
||||||
|
$(MAKE) $(MAKESILENT) -f CMakeFiles/AnasenG4.dir/build.make CMakeFiles/AnasenG4.dir/src/main.cc.s
|
||||||
|
.PHONY : src/main.cc.s
|
||||||
|
|
||||||
|
# Help Target
|
||||||
|
help:
|
||||||
|
@echo "The following are some of the valid targets for this Makefile:"
|
||||||
|
@echo "... all (the default if no target is provided)"
|
||||||
|
@echo "... clean"
|
||||||
|
@echo "... depend"
|
||||||
|
@echo "... edit_cache"
|
||||||
|
@echo "... rebuild_cache"
|
||||||
|
@echo "... AnasenG4"
|
||||||
|
@echo "... src/ActionInitialization.o"
|
||||||
|
@echo "... src/ActionInitialization.i"
|
||||||
|
@echo "... src/ActionInitialization.s"
|
||||||
|
@echo "... src/BeamReactionSteppingAction.o"
|
||||||
|
@echo "... src/BeamReactionSteppingAction.i"
|
||||||
|
@echo "... src/BeamReactionSteppingAction.s"
|
||||||
|
@echo "... src/DetectorConstruction.o"
|
||||||
|
@echo "... src/DetectorConstruction.i"
|
||||||
|
@echo "... src/DetectorConstruction.s"
|
||||||
|
@echo "... src/DetectorSensitiveDetector.o"
|
||||||
|
@echo "... src/DetectorSensitiveDetector.i"
|
||||||
|
@echo "... src/DetectorSensitiveDetector.s"
|
||||||
|
@echo "... src/HitOutputManager.o"
|
||||||
|
@echo "... src/HitOutputManager.i"
|
||||||
|
@echo "... src/HitOutputManager.s"
|
||||||
|
@echo "... src/PrimaryGeneratorAction.o"
|
||||||
|
@echo "... src/PrimaryGeneratorAction.i"
|
||||||
|
@echo "... src/PrimaryGeneratorAction.s"
|
||||||
|
@echo "... src/ReactionGenerator.o"
|
||||||
|
@echo "... src/ReactionGenerator.i"
|
||||||
|
@echo "... src/ReactionGenerator.s"
|
||||||
|
@echo "... src/RunAction.o"
|
||||||
|
@echo "... src/RunAction.i"
|
||||||
|
@echo "... src/RunAction.s"
|
||||||
|
@echo "... src/WireTrackingManager.o"
|
||||||
|
@echo "... src/WireTrackingManager.i"
|
||||||
|
@echo "... src/WireTrackingManager.s"
|
||||||
|
@echo "... src/main.o"
|
||||||
|
@echo "... src/main.i"
|
||||||
|
@echo "... src/main.s"
|
||||||
|
.PHONY : help
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
#=============================================================================
|
||||||
|
# Special targets to cleanup operation of make.
|
||||||
|
|
||||||
|
# Special rule to run CMake to check the build system integrity.
|
||||||
|
# No rule that depends on this can have commands that come from listfiles
|
||||||
|
# because they might be regenerated.
|
||||||
|
cmake_check_build_system:
|
||||||
|
$(CMAKE_COMMAND) -S$(CMAKE_SOURCE_DIR) -B$(CMAKE_BINARY_DIR) --check-build-system CMakeFiles/Makefile.cmake 0
|
||||||
|
.PHONY : cmake_check_build_system
|
||||||
|
|
||||||
54
Armory/AnasenG4/build/cmake_install.cmake
Normal file
54
Armory/AnasenG4/build/cmake_install.cmake
Normal file
|
|
@ -0,0 +1,54 @@
|
||||||
|
# Install script for directory: /home/jamesszalkie/anasen/Armory/AnasenG4
|
||||||
|
|
||||||
|
# Set the install prefix
|
||||||
|
if(NOT DEFINED CMAKE_INSTALL_PREFIX)
|
||||||
|
set(CMAKE_INSTALL_PREFIX "/usr/local")
|
||||||
|
endif()
|
||||||
|
string(REGEX REPLACE "/$" "" CMAKE_INSTALL_PREFIX "${CMAKE_INSTALL_PREFIX}")
|
||||||
|
|
||||||
|
# Set the install configuration name.
|
||||||
|
if(NOT DEFINED CMAKE_INSTALL_CONFIG_NAME)
|
||||||
|
if(BUILD_TYPE)
|
||||||
|
string(REGEX REPLACE "^[^A-Za-z0-9_]+" ""
|
||||||
|
CMAKE_INSTALL_CONFIG_NAME "${BUILD_TYPE}")
|
||||||
|
else()
|
||||||
|
set(CMAKE_INSTALL_CONFIG_NAME "")
|
||||||
|
endif()
|
||||||
|
message(STATUS "Install configuration: \"${CMAKE_INSTALL_CONFIG_NAME}\"")
|
||||||
|
endif()
|
||||||
|
|
||||||
|
# Set the component getting installed.
|
||||||
|
if(NOT CMAKE_INSTALL_COMPONENT)
|
||||||
|
if(COMPONENT)
|
||||||
|
message(STATUS "Install component: \"${COMPONENT}\"")
|
||||||
|
set(CMAKE_INSTALL_COMPONENT "${COMPONENT}")
|
||||||
|
else()
|
||||||
|
set(CMAKE_INSTALL_COMPONENT)
|
||||||
|
endif()
|
||||||
|
endif()
|
||||||
|
|
||||||
|
# Install shared libraries without execute permission?
|
||||||
|
if(NOT DEFINED CMAKE_INSTALL_SO_NO_EXE)
|
||||||
|
set(CMAKE_INSTALL_SO_NO_EXE "1")
|
||||||
|
endif()
|
||||||
|
|
||||||
|
# Is this installation the result of a crosscompile?
|
||||||
|
if(NOT DEFINED CMAKE_CROSSCOMPILING)
|
||||||
|
set(CMAKE_CROSSCOMPILING "FALSE")
|
||||||
|
endif()
|
||||||
|
|
||||||
|
# Set default install directory permissions.
|
||||||
|
if(NOT DEFINED CMAKE_OBJDUMP)
|
||||||
|
set(CMAKE_OBJDUMP "/usr/bin/objdump")
|
||||||
|
endif()
|
||||||
|
|
||||||
|
if(CMAKE_INSTALL_COMPONENT)
|
||||||
|
set(CMAKE_INSTALL_MANIFEST "install_manifest_${CMAKE_INSTALL_COMPONENT}.txt")
|
||||||
|
else()
|
||||||
|
set(CMAKE_INSTALL_MANIFEST "install_manifest.txt")
|
||||||
|
endif()
|
||||||
|
|
||||||
|
string(REPLACE ";" "\n" CMAKE_INSTALL_MANIFEST_CONTENT
|
||||||
|
"${CMAKE_INSTALL_MANIFEST_FILES}")
|
||||||
|
file(WRITE "/home/jamesszalkie/anasen/Armory/AnasenG4/build/${CMAKE_INSTALL_MANIFEST}"
|
||||||
|
"${CMAKE_INSTALL_MANIFEST_CONTENT}")
|
||||||
15
Armory/AnasenG4/include/ActionInitialization.hh
Normal file
15
Armory/AnasenG4/include/ActionInitialization.hh
Normal file
|
|
@ -0,0 +1,15 @@
|
||||||
|
#ifndef ActionInitialization_h
|
||||||
|
#define ActionInitialization_h 1
|
||||||
|
|
||||||
|
#include "G4VUserActionInitialization.hh"
|
||||||
|
|
||||||
|
class ActionInitialization : public G4VUserActionInitialization
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
ActionInitialization();
|
||||||
|
virtual ~ActionInitialization();
|
||||||
|
|
||||||
|
virtual void Build() const override;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
17
Armory/AnasenG4/include/BeamConfig.hh
Normal file
17
Armory/AnasenG4/include/BeamConfig.hh
Normal file
|
|
@ -0,0 +1,17 @@
|
||||||
|
#ifndef BeamConfig_h
|
||||||
|
#define BeamConfig_h 1
|
||||||
|
|
||||||
|
#include "globals.hh"
|
||||||
|
#include "G4SystemOfUnits.hh"
|
||||||
|
|
||||||
|
namespace BeamConfig {
|
||||||
|
inline constexpr G4int kAtomicNumber = 13;
|
||||||
|
inline constexpr G4int kAtomicMass = 27;
|
||||||
|
inline constexpr G4double kRadius = 5.0 * mm;
|
||||||
|
inline constexpr G4double kStartZ = -190.0 * mm;
|
||||||
|
inline constexpr G4double kTotalBeamEnergy = 72.0 * MeV;
|
||||||
|
inline constexpr G4double kEnergyPerU = kTotalBeamEnergy / kAtomicMass; // Approximately 2.67 MeV/u for 27Al
|
||||||
|
inline constexpr char kTargetVolumeName[] = "Target";
|
||||||
|
} // namespace BeamConfig
|
||||||
|
|
||||||
|
#endif
|
||||||
21
Armory/AnasenG4/include/BeamReactionSteppingAction.hh
Normal file
21
Armory/AnasenG4/include/BeamReactionSteppingAction.hh
Normal file
|
|
@ -0,0 +1,21 @@
|
||||||
|
#ifndef BeamReactionSteppingAction_h
|
||||||
|
#define BeamReactionSteppingAction_h 1
|
||||||
|
|
||||||
|
#include "G4UserSteppingAction.hh"
|
||||||
|
|
||||||
|
class G4Step;
|
||||||
|
class ReactionGenerator;
|
||||||
|
|
||||||
|
class BeamReactionSteppingAction : public G4UserSteppingAction
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
BeamReactionSteppingAction();
|
||||||
|
virtual ~BeamReactionSteppingAction();
|
||||||
|
|
||||||
|
virtual void UserSteppingAction(const G4Step* step) override;
|
||||||
|
|
||||||
|
private:
|
||||||
|
ReactionGenerator* fReaction;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
27
Armory/AnasenG4/include/DetectorConstruction.hh
Normal file
27
Armory/AnasenG4/include/DetectorConstruction.hh
Normal file
|
|
@ -0,0 +1,27 @@
|
||||||
|
#ifndef DetectorConstruction_h
|
||||||
|
#define DetectorConstruction_h 1
|
||||||
|
|
||||||
|
#include "G4VUserDetectorConstruction.hh"
|
||||||
|
|
||||||
|
class G4LogicalVolume;
|
||||||
|
|
||||||
|
class DetectorConstruction : public G4VUserDetectorConstruction
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
DetectorConstruction();
|
||||||
|
virtual ~DetectorConstruction();
|
||||||
|
|
||||||
|
virtual G4VPhysicalVolume* Construct() override;
|
||||||
|
virtual void ConstructSDandField() override;
|
||||||
|
|
||||||
|
G4LogicalVolume* GetScoringVolume() const { return fScoringVolume; }
|
||||||
|
|
||||||
|
private:
|
||||||
|
G4LogicalVolume* fScoringVolume;
|
||||||
|
G4LogicalVolume* fAnodeLogical;
|
||||||
|
G4LogicalVolume* fCathodeLogical;
|
||||||
|
G4LogicalVolume* fSX3Logical;
|
||||||
|
G4LogicalVolume* fQQQLogical;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
18
Armory/AnasenG4/include/DetectorSensitiveDetector.hh
Normal file
18
Armory/AnasenG4/include/DetectorSensitiveDetector.hh
Normal file
|
|
@ -0,0 +1,18 @@
|
||||||
|
#ifndef DetectorSensitiveDetector_h
|
||||||
|
#define DetectorSensitiveDetector_h 1
|
||||||
|
|
||||||
|
#include "G4VSensitiveDetector.hh"
|
||||||
|
|
||||||
|
class G4Step;
|
||||||
|
class G4TouchableHistory;
|
||||||
|
|
||||||
|
class DetectorSensitiveDetector : public G4VSensitiveDetector
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
explicit DetectorSensitiveDetector(const G4String& name);
|
||||||
|
virtual ~DetectorSensitiveDetector();
|
||||||
|
|
||||||
|
virtual G4bool ProcessHits(G4Step* step, G4TouchableHistory* history) override;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
83
Armory/AnasenG4/include/HitOutputManager.hh
Normal file
83
Armory/AnasenG4/include/HitOutputManager.hh
Normal file
|
|
@ -0,0 +1,83 @@
|
||||||
|
#ifndef HitOutputManager_h
|
||||||
|
#define HitOutputManager_h 1
|
||||||
|
|
||||||
|
#include "G4ThreeVector.hh"
|
||||||
|
|
||||||
|
#include <fstream>
|
||||||
|
#include <string>
|
||||||
|
|
||||||
|
class TFile;
|
||||||
|
class TTree;
|
||||||
|
class TH1D;
|
||||||
|
class TH2D;
|
||||||
|
|
||||||
|
class HitOutputManager
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
static HitOutputManager& Instance();
|
||||||
|
|
||||||
|
void Open();
|
||||||
|
void Close();
|
||||||
|
void SetIncludeElectrons(bool includeElectrons);
|
||||||
|
bool GetIncludeElectrons() const;
|
||||||
|
bool ShouldRecordParticle(const std::string& particleType) const;
|
||||||
|
void RecordHit(int eventId,
|
||||||
|
const std::string& particleType,
|
||||||
|
double kineticEnergy,
|
||||||
|
double energyDeposit,
|
||||||
|
double wireDeltaESinTheta,
|
||||||
|
const std::string& detectorType,
|
||||||
|
int detectorId,
|
||||||
|
int anodeId,
|
||||||
|
int cathodeId,
|
||||||
|
double anodeEnergy,
|
||||||
|
double cathodeEnergy,
|
||||||
|
double wireDeltaE,
|
||||||
|
const std::string& volumeName,
|
||||||
|
const G4ThreeVector& position,
|
||||||
|
const G4ThreeVector& vertexPosition);
|
||||||
|
|
||||||
|
private:
|
||||||
|
HitOutputManager();
|
||||||
|
~HitOutputManager();
|
||||||
|
|
||||||
|
HitOutputManager(const HitOutputManager&) = delete;
|
||||||
|
HitOutputManager& operator=(const HitOutputManager&) = delete;
|
||||||
|
|
||||||
|
void ResetBuffers();
|
||||||
|
|
||||||
|
TFile* fRootFile;
|
||||||
|
TTree* fTree;
|
||||||
|
std::ofstream fTextFile;
|
||||||
|
int fEventId;
|
||||||
|
int fDetectorId;
|
||||||
|
int fAnodeId;
|
||||||
|
int fCathodeId;
|
||||||
|
double fKineticEnergy;
|
||||||
|
double fEnergyDeposit;
|
||||||
|
double fWireDeltaESinTheta;
|
||||||
|
double fAnodeEnergy;
|
||||||
|
double fCathodeEnergy;
|
||||||
|
double fWireDeltaE;
|
||||||
|
double fX;
|
||||||
|
double fY;
|
||||||
|
double fZ;
|
||||||
|
double fVertexX;
|
||||||
|
double fVertexY;
|
||||||
|
double fVertexZ;
|
||||||
|
char fParticleType[64];
|
||||||
|
char fDetectorType[32];
|
||||||
|
char fVolumeName[32];
|
||||||
|
TH1D* fKineticEnergyHist;
|
||||||
|
TH1D* fEnergyDepositHist;
|
||||||
|
TH1D* fWireDeltaEHist;
|
||||||
|
TH2D* fWireDeltaESinThetaVsDetEHist;
|
||||||
|
TH1D* fHitZHist;
|
||||||
|
TH1D* fVertexZHist;
|
||||||
|
TH1D* fDetectorIdHist;
|
||||||
|
TH2D* fHitXYHist;
|
||||||
|
TH2D* fVertexXYHist;
|
||||||
|
bool fIncludeElectrons;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
24
Armory/AnasenG4/include/PrimaryGeneratorAction.hh
Normal file
24
Armory/AnasenG4/include/PrimaryGeneratorAction.hh
Normal file
|
|
@ -0,0 +1,24 @@
|
||||||
|
#ifndef PrimaryGeneratorAction_h
|
||||||
|
#define PrimaryGeneratorAction_h 1
|
||||||
|
|
||||||
|
#include "G4VUserPrimaryGeneratorAction.hh"
|
||||||
|
#include "G4ThreeVector.hh"
|
||||||
|
|
||||||
|
class G4ParticleGun;
|
||||||
|
class G4Event;
|
||||||
|
|
||||||
|
class PrimaryGeneratorAction : public G4VUserPrimaryGeneratorAction
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
PrimaryGeneratorAction();
|
||||||
|
virtual ~PrimaryGeneratorAction();
|
||||||
|
|
||||||
|
virtual void GeneratePrimaries(G4Event* event) override;
|
||||||
|
|
||||||
|
private:
|
||||||
|
G4ParticleGun* fParticleGun;
|
||||||
|
G4double fBeamRadius;
|
||||||
|
G4double fBeamStartZ;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
33
Armory/AnasenG4/include/ReactionGenerator.hh
Normal file
33
Armory/AnasenG4/include/ReactionGenerator.hh
Normal file
|
|
@ -0,0 +1,33 @@
|
||||||
|
#ifndef ReactionGenerator_h
|
||||||
|
#define ReactionGenerator_h 1
|
||||||
|
|
||||||
|
#include "G4ThreeVector.hh"
|
||||||
|
|
||||||
|
enum class ReactionChannel {
|
||||||
|
Proton,
|
||||||
|
Alpha
|
||||||
|
};
|
||||||
|
|
||||||
|
struct ReactionOutput {
|
||||||
|
ReactionChannel channel;
|
||||||
|
double kineticEnergy;
|
||||||
|
double px;
|
||||||
|
double py;
|
||||||
|
double pz;
|
||||||
|
};
|
||||||
|
|
||||||
|
class ReactionGenerator {
|
||||||
|
public:
|
||||||
|
ReactionGenerator();
|
||||||
|
~ReactionGenerator();
|
||||||
|
|
||||||
|
ReactionOutput SampleEvent(double beamKineticEnergy, const G4ThreeVector& beamDirection);
|
||||||
|
double GetEffectiveCrossSection() const;
|
||||||
|
|
||||||
|
private:
|
||||||
|
class Impl;
|
||||||
|
Impl* fImpl;
|
||||||
|
double fEffectiveSigma;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
25
Armory/AnasenG4/include/RunAction.hh
Normal file
25
Armory/AnasenG4/include/RunAction.hh
Normal file
|
|
@ -0,0 +1,25 @@
|
||||||
|
#ifndef RunAction_h
|
||||||
|
#define RunAction_h 1
|
||||||
|
|
||||||
|
#include "G4UserRunAction.hh"
|
||||||
|
|
||||||
|
class G4Run;
|
||||||
|
class G4GenericMessenger;
|
||||||
|
|
||||||
|
class RunAction : public G4UserRunAction
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
RunAction();
|
||||||
|
virtual ~RunAction();
|
||||||
|
|
||||||
|
virtual void BeginOfRunAction(const G4Run* run) override;
|
||||||
|
virtual void EndOfRunAction(const G4Run* run) override;
|
||||||
|
|
||||||
|
private:
|
||||||
|
void DefineCommands();
|
||||||
|
|
||||||
|
G4GenericMessenger* fMessenger;
|
||||||
|
bool fIncludeElectrons;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
45
Armory/AnasenG4/include/WireTrackingManager.hh
Normal file
45
Armory/AnasenG4/include/WireTrackingManager.hh
Normal file
|
|
@ -0,0 +1,45 @@
|
||||||
|
#ifndef WireTrackingManager_h
|
||||||
|
#define WireTrackingManager_h 1
|
||||||
|
|
||||||
|
#include "G4ThreeVector.hh"
|
||||||
|
|
||||||
|
#include <unordered_map>
|
||||||
|
|
||||||
|
class G4Step;
|
||||||
|
class G4Track;
|
||||||
|
class G4StepPoint;
|
||||||
|
|
||||||
|
struct WireCrossingInfo
|
||||||
|
{
|
||||||
|
int anodeId = -1;
|
||||||
|
int cathodeId = -1;
|
||||||
|
double anodeEnergy = 0.0;
|
||||||
|
double cathodeEnergy = 0.0;
|
||||||
|
double deltaE = 0.0;
|
||||||
|
bool sawAnode = false;
|
||||||
|
bool sawCathode = false;
|
||||||
|
};
|
||||||
|
|
||||||
|
class WireTrackingManager
|
||||||
|
{
|
||||||
|
public:
|
||||||
|
static WireTrackingManager& Instance();
|
||||||
|
|
||||||
|
void UpdateForStep(const G4Step* step);
|
||||||
|
bool GetInfo(int eventId, int trackId, WireCrossingInfo& info);
|
||||||
|
WireCrossingInfo InferFromTrackGeometry(const G4Track* track, const G4StepPoint* hitPoint);
|
||||||
|
|
||||||
|
private:
|
||||||
|
WireTrackingManager();
|
||||||
|
~WireTrackingManager();
|
||||||
|
|
||||||
|
WireTrackingManager(const WireTrackingManager&) = delete;
|
||||||
|
WireTrackingManager& operator=(const WireTrackingManager&) = delete;
|
||||||
|
|
||||||
|
void EnsureEvent(int eventId);
|
||||||
|
|
||||||
|
int fCurrentEventId;
|
||||||
|
std::unordered_map<int, WireCrossingInfo> fTrackInfo;
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
7
Armory/AnasenG4/init_vis.mac
Normal file
7
Armory/AnasenG4/init_vis.mac
Normal file
|
|
@ -0,0 +1,7 @@
|
||||||
|
/control/verbose 2
|
||||||
|
/control/saveHistory
|
||||||
|
/run/verbose 2
|
||||||
|
/event/verbose 0
|
||||||
|
/tracking/verbose 0
|
||||||
|
/run/initialize
|
||||||
|
/control/execute vis.mac
|
||||||
14
Armory/AnasenG4/run.mac
Normal file
14
Armory/AnasenG4/run.mac
Normal file
|
|
@ -0,0 +1,14 @@
|
||||||
|
/control/verbose 1
|
||||||
|
/run/verbose 1
|
||||||
|
/event/verbose 0
|
||||||
|
/tracking/verbose 0
|
||||||
|
/anasen/output/includeElectrons false
|
||||||
|
/run/initialize
|
||||||
|
|
||||||
|
/vis/filtering/trajectories/create/particleFilter
|
||||||
|
/vis/filtering/trajectories/particleFilter-0/add e-
|
||||||
|
/vis/filtering/trajectories/particleFilter-0/add e+
|
||||||
|
/vis/filtering/trajectories/particleFilter-0/invert true
|
||||||
|
|
||||||
|
/run/beamOn 1000000
|
||||||
|
#/run/beamOn 1000
|
||||||
17
Armory/AnasenG4/src/ActionInitialization.cc
Normal file
17
Armory/AnasenG4/src/ActionInitialization.cc
Normal file
|
|
@ -0,0 +1,17 @@
|
||||||
|
#include "ActionInitialization.hh"
|
||||||
|
#include "PrimaryGeneratorAction.hh"
|
||||||
|
#include "BeamReactionSteppingAction.hh"
|
||||||
|
#include "RunAction.hh"
|
||||||
|
|
||||||
|
ActionInitialization::ActionInitialization()
|
||||||
|
: G4VUserActionInitialization()
|
||||||
|
{}
|
||||||
|
|
||||||
|
ActionInitialization::~ActionInitialization() {}
|
||||||
|
|
||||||
|
void ActionInitialization::Build() const
|
||||||
|
{
|
||||||
|
SetUserAction(new RunAction());
|
||||||
|
SetUserAction(new PrimaryGeneratorAction());
|
||||||
|
SetUserAction(new BeamReactionSteppingAction());
|
||||||
|
}
|
||||||
106
Armory/AnasenG4/src/BeamReactionSteppingAction.cc
Normal file
106
Armory/AnasenG4/src/BeamReactionSteppingAction.cc
Normal file
|
|
@ -0,0 +1,106 @@
|
||||||
|
#include "BeamReactionSteppingAction.hh"
|
||||||
|
|
||||||
|
#include "BeamConfig.hh"
|
||||||
|
|
||||||
|
#include "ReactionGenerator.hh"
|
||||||
|
#include "WireTrackingManager.hh"
|
||||||
|
|
||||||
|
#include "G4Step.hh"
|
||||||
|
#include "G4Track.hh"
|
||||||
|
#include "G4DynamicParticle.hh"
|
||||||
|
#include "G4EventManager.hh"
|
||||||
|
#include "G4StackManager.hh"
|
||||||
|
#include "G4ParticleDefinition.hh"
|
||||||
|
#include "G4Proton.hh"
|
||||||
|
#include "G4Alpha.hh"
|
||||||
|
#include "G4SystemOfUnits.hh"
|
||||||
|
#include "G4RandomTools.hh"
|
||||||
|
|
||||||
|
#include <cmath>
|
||||||
|
|
||||||
|
BeamReactionSteppingAction::BeamReactionSteppingAction()
|
||||||
|
: G4UserSteppingAction(),
|
||||||
|
fReaction(new ReactionGenerator())
|
||||||
|
{}
|
||||||
|
|
||||||
|
BeamReactionSteppingAction::~BeamReactionSteppingAction()
|
||||||
|
{
|
||||||
|
delete fReaction;
|
||||||
|
}
|
||||||
|
|
||||||
|
void BeamReactionSteppingAction::UserSteppingAction(const G4Step* step)
|
||||||
|
{
|
||||||
|
WireTrackingManager::Instance().UpdateForStep(step);
|
||||||
|
|
||||||
|
const G4Track* track = step->GetTrack();
|
||||||
|
if (track->GetTrackStatus() != fAlive) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4ParticleDefinition* particle = track->GetDefinition();
|
||||||
|
if (particle->GetParticleType() != "nucleus") {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (particle->GetAtomicNumber() != BeamConfig::kAtomicNumber ||
|
||||||
|
particle->GetAtomicMass() != BeamConfig::kAtomicMass) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const auto* prePoint = step->GetPreStepPoint();
|
||||||
|
if (!prePoint || !prePoint->GetPhysicalVolume()) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (prePoint->GetPhysicalVolume()->GetName() != BeamConfig::kTargetVolumeName) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4double stepLength = step->GetStepLength();
|
||||||
|
if (stepLength <= 0.0) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const auto* material = prePoint->GetMaterial();
|
||||||
|
if (!material) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4double atomDensity = material->GetTotNbOfAtomsPerVolume();
|
||||||
|
const G4double sigma = fReaction->GetEffectiveCrossSection();
|
||||||
|
const G4double probability = 1.0 - std::exp(-atomDensity * sigma * stepLength);
|
||||||
|
|
||||||
|
if (G4UniformRand() > probability) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
ReactionOutput output = fReaction->SampleEvent(track->GetKineticEnergy(), track->GetMomentumDirection());
|
||||||
|
if (output.kineticEnergy <= 0.0) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4ThreeVector momentum(output.px, output.py, output.pz);
|
||||||
|
G4ThreeVector direction = momentum;
|
||||||
|
if (direction.mag2() > 0.0) {
|
||||||
|
direction = direction.unit();
|
||||||
|
} else {
|
||||||
|
direction = G4ThreeVector(0.0, 0.0, 1.0);
|
||||||
|
}
|
||||||
|
|
||||||
|
G4ParticleDefinition* product = nullptr;
|
||||||
|
if (output.channel == ReactionChannel::Proton) {
|
||||||
|
product = G4Proton::ProtonDefinition();
|
||||||
|
} else {
|
||||||
|
product = G4Alpha::AlphaDefinition();
|
||||||
|
}
|
||||||
|
|
||||||
|
auto* dynamicParticle = new G4DynamicParticle(product, direction, output.kineticEnergy);
|
||||||
|
auto* secondaryTrack = new G4Track(dynamicParticle, track->GetGlobalTime(), prePoint->GetPosition());
|
||||||
|
secondaryTrack->SetParentID(track->GetTrackID());
|
||||||
|
secondaryTrack->SetTouchableHandle(track->GetTouchableHandle());
|
||||||
|
|
||||||
|
G4EventManager::GetEventManager()->GetStackManager()->PushOneTrack(secondaryTrack, nullptr);
|
||||||
|
|
||||||
|
G4Track* mutableTrack = const_cast<G4Track*>(track);
|
||||||
|
mutableTrack->SetTrackStatus(fStopAndKill);
|
||||||
|
}
|
||||||
185
Armory/AnasenG4/src/DetectorConstruction.cc
Normal file
185
Armory/AnasenG4/src/DetectorConstruction.cc
Normal file
|
|
@ -0,0 +1,185 @@
|
||||||
|
#include "DetectorConstruction.hh"
|
||||||
|
|
||||||
|
#include "DetectorSensitiveDetector.hh"
|
||||||
|
|
||||||
|
#include "G4RunManager.hh"
|
||||||
|
#include "G4SDManager.hh"
|
||||||
|
#include "G4NistManager.hh"
|
||||||
|
#include "G4Box.hh"
|
||||||
|
#include "G4Tubs.hh"
|
||||||
|
#include "G4LogicalVolume.hh"
|
||||||
|
#include "G4PVPlacement.hh"
|
||||||
|
#include "G4SystemOfUnits.hh"
|
||||||
|
#include "G4RotationMatrix.hh"
|
||||||
|
#include "G4ThreeVector.hh"
|
||||||
|
#include "G4VisAttributes.hh"
|
||||||
|
|
||||||
|
DetectorConstruction::DetectorConstruction()
|
||||||
|
: G4VUserDetectorConstruction(),
|
||||||
|
fScoringVolume(nullptr),
|
||||||
|
fAnodeLogical(nullptr),
|
||||||
|
fCathodeLogical(nullptr),
|
||||||
|
fSX3Logical(nullptr),
|
||||||
|
fQQQLogical(nullptr)
|
||||||
|
{}
|
||||||
|
|
||||||
|
DetectorConstruction::~DetectorConstruction()
|
||||||
|
{}
|
||||||
|
|
||||||
|
G4VPhysicalVolume* DetectorConstruction::Construct()
|
||||||
|
{
|
||||||
|
// Get nist material manager
|
||||||
|
G4NistManager* nist = G4NistManager::Instance();
|
||||||
|
|
||||||
|
// Materials
|
||||||
|
G4Material* vacuum = nist->FindOrBuildMaterial("G4_Galactic");
|
||||||
|
G4Material* al = nist->FindOrBuildMaterial("G4_Al");
|
||||||
|
|
||||||
|
// World
|
||||||
|
G4double worldx = 200.*mm;
|
||||||
|
G4double worldy = 200.*mm;
|
||||||
|
G4double worldz = 200.*mm;
|
||||||
|
G4Box* solidWorld = new G4Box("World", worldx, worldy, worldz);
|
||||||
|
G4LogicalVolume* logicWorld = new G4LogicalVolume(solidWorld, vacuum, "World");
|
||||||
|
G4VPhysicalVolume* physWorld = new G4PVPlacement(0, G4ThreeVector(), logicWorld, "World", 0, false, 0, true);
|
||||||
|
|
||||||
|
// Helium target
|
||||||
|
|
||||||
|
G4double pressure = 379.0 * 133.322368 * pascal;
|
||||||
|
G4double temperature = 293.15 * kelvin;
|
||||||
|
G4double density = 8.29e-5 * g/cm3;
|
||||||
|
|
||||||
|
G4Material* HeGas =
|
||||||
|
new G4Material("HeGas",
|
||||||
|
density,
|
||||||
|
1,
|
||||||
|
kStateGas,
|
||||||
|
temperature,
|
||||||
|
pressure);
|
||||||
|
|
||||||
|
HeGas->AddElement(nist->FindOrBuildElement("He"), 1);
|
||||||
|
const G4double targetRadius = 37.0*mm;
|
||||||
|
const G4double targetHalfLength = 175.*mm;
|
||||||
|
G4Tubs* solidTarget = new G4Tubs("Target", 0, targetRadius, targetHalfLength, 0, 360*deg);
|
||||||
|
G4LogicalVolume* logicTarget =
|
||||||
|
new G4LogicalVolume(solidTarget, HeGas, "Target");
|
||||||
|
new G4PVPlacement(0, G4ThreeVector(), logicTarget, "Target", logicWorld, false, 0, true);
|
||||||
|
logicTarget->SetVisAttributes(G4VisAttributes::GetInvisible());
|
||||||
|
fScoringVolume = logicTarget;
|
||||||
|
|
||||||
|
// Axes (optional, for visualization)
|
||||||
|
G4Tubs* solidAxis = new G4Tubs("Axis", 0, 0.1*mm, 5.*mm, 0, 360*deg);
|
||||||
|
G4LogicalVolume* logicAxisX = new G4LogicalVolume(solidAxis, al, "AxisX");
|
||||||
|
G4LogicalVolume* logicAxisY = new G4LogicalVolume(solidAxis, al, "AxisY");
|
||||||
|
G4LogicalVolume* logicAxisZ = new G4LogicalVolume(solidAxis, al, "AxisZ");
|
||||||
|
|
||||||
|
G4RotationMatrix* rotX = new G4RotationMatrix();
|
||||||
|
rotX->rotateY(90*deg);
|
||||||
|
rotX->rotateZ(90*deg);
|
||||||
|
new G4PVPlacement(rotX, G4ThreeVector(5*mm, 0, 0), logicAxisX, "AxisX", logicWorld, false, 0);
|
||||||
|
|
||||||
|
G4RotationMatrix* rotY = new G4RotationMatrix();
|
||||||
|
rotY->rotateX(90*deg);
|
||||||
|
new G4PVPlacement(rotY, G4ThreeVector(0, 5*mm, 0), logicAxisY, "AxisY", logicWorld, false, 0);
|
||||||
|
|
||||||
|
new G4PVPlacement(0, G4ThreeVector(0, 0, 5*mm), logicAxisZ, "AxisZ", logicWorld, false, 0);
|
||||||
|
|
||||||
|
// ANASEN geometry
|
||||||
|
const int nWire = 24;
|
||||||
|
const int wireShift = 4;
|
||||||
|
const G4double zLen = 350.*mm;
|
||||||
|
const G4double radiusA = 38.*mm;
|
||||||
|
const G4double radiusC = 43.*mm;
|
||||||
|
|
||||||
|
G4double dAngle = wireShift * 2 * CLHEP::pi / nWire;
|
||||||
|
G4double radiusAnew = radiusA * cos(dAngle / 2.);
|
||||||
|
G4double wireALength = sqrt(zLen*zLen + pow(2 * radiusA * sin(dAngle/2.), 2));
|
||||||
|
G4double wireATheta = atan2(2 * radiusA * sin(dAngle / 2.), zLen);
|
||||||
|
|
||||||
|
G4Tubs* solidPC_A = new G4Tubs("PC_A", 0, .1*mm, wireALength/2., 0, 360*deg);
|
||||||
|
G4LogicalVolume* logicPC_A = new G4LogicalVolume(solidPC_A, al, "PC_A");
|
||||||
|
fAnodeLogical = logicPC_A;
|
||||||
|
|
||||||
|
for(int i = 0; i < nWire; i++){
|
||||||
|
G4double phi = 2 * CLHEP::pi / nWire * i + dAngle / 2.;
|
||||||
|
G4ThreeVector pos(radiusAnew * cos(phi), radiusAnew * sin(phi), 0);
|
||||||
|
// Euler angles: phi (Z), theta (Y), psi (Z)
|
||||||
|
G4double phi_euler = 360./nWire * (i + wireShift/2.) * deg;
|
||||||
|
G4double theta_euler = wireATheta;
|
||||||
|
G4double psi_euler = 0;
|
||||||
|
G4RotationMatrix* rot = new G4RotationMatrix(phi_euler, theta_euler, psi_euler);
|
||||||
|
new G4PVPlacement(rot, pos, logicPC_A, "PC_A", logicWorld, false, i);
|
||||||
|
}
|
||||||
|
|
||||||
|
G4double radiusCnew = radiusC * cos(dAngle / 2.);
|
||||||
|
G4double wireCLength = sqrt(zLen*zLen + pow(2 * radiusC * sin(dAngle/2.), 2));
|
||||||
|
G4double wireCTheta = atan2(2 * radiusC * sin(dAngle / 2.), zLen);
|
||||||
|
|
||||||
|
G4Tubs* solidPC_C = new G4Tubs("PC_C", 0, .1*mm, wireCLength/2., 0, 360*deg);
|
||||||
|
G4LogicalVolume* logicPC_C = new G4LogicalVolume(solidPC_C, al, "PC_C");
|
||||||
|
fCathodeLogical = logicPC_C;
|
||||||
|
|
||||||
|
for(int i = 0; i < nWire; i++){
|
||||||
|
G4double phi = 2 * CLHEP::pi / nWire * i - dAngle/2.;
|
||||||
|
G4ThreeVector pos(radiusCnew * cos(phi), radiusCnew * sin(phi), 0);
|
||||||
|
// Euler angles: phi (Z), theta (Y), psi (Z)
|
||||||
|
G4double phi_euler = 360./nWire * (i - wireShift/2.) * deg;
|
||||||
|
G4double theta_euler = -wireCTheta;
|
||||||
|
G4double psi_euler = 0;
|
||||||
|
G4RotationMatrix* rot = new G4RotationMatrix(phi_euler, theta_euler, psi_euler);
|
||||||
|
new G4PVPlacement(rot, pos, logicPC_C, "PC_C", logicWorld, false, i);
|
||||||
|
}
|
||||||
|
|
||||||
|
const int nSX3 = 12;
|
||||||
|
const G4double sx3Radius = 88.*mm;
|
||||||
|
const G4double sx3Width = 40.*mm;
|
||||||
|
const G4double sx3Length = 75.*mm;
|
||||||
|
const G4double sx3Gap = 5.*mm;
|
||||||
|
|
||||||
|
G4Box* solidSX3 = new G4Box("SX3", 0.1*mm, sx3Width/2., sx3Length/2.);
|
||||||
|
G4LogicalVolume* logicSX3 = new G4LogicalVolume(solidSX3, al, "SX3");
|
||||||
|
fSX3Logical = logicSX3;
|
||||||
|
fScoringVolume = logicSX3;
|
||||||
|
|
||||||
|
for(int i = 0; i < nSX3; i++){
|
||||||
|
G4double phi = 2 * CLHEP::pi / nSX3 * (i + 0.5);
|
||||||
|
G4ThreeVector pos1(sx3Radius * cos(phi), sx3Radius * sin(phi), sx3Length/2. + sx3Gap);
|
||||||
|
// Euler angles: phi (Z), theta (Y), psi (Z)
|
||||||
|
G4double phi_euler = 360./nSX3 * (i + 0.5) * deg;
|
||||||
|
G4RotationMatrix* rot1 = new G4RotationMatrix(phi_euler, 0, 0);
|
||||||
|
new G4PVPlacement(rot1, pos1, logicSX3, "SX3_front", logicWorld, false, 2*i);
|
||||||
|
|
||||||
|
G4ThreeVector pos2(sx3Radius * cos(phi), sx3Radius * sin(phi), -sx3Length/2. - sx3Gap);
|
||||||
|
G4RotationMatrix* rot2 = new G4RotationMatrix(phi_euler, 0, 0);
|
||||||
|
new G4PVPlacement(rot2, pos2, logicSX3, "SX3_back", logicWorld, false, 2*i+1);
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4double qqqR1 = 50.*mm;
|
||||||
|
const G4double qqqR2 = 100.*mm;
|
||||||
|
G4Tubs* solidQQQ = new G4Tubs("QQQ", qqqR1, qqqR2, 0.5*mm, 5*deg, 85*deg);
|
||||||
|
G4LogicalVolume* logicQQQ = new G4LogicalVolume(solidQQQ, al, "QQQ");
|
||||||
|
fQQQLogical = logicQQQ;
|
||||||
|
|
||||||
|
for(int i = 0; i < 4; i++){
|
||||||
|
G4ThreeVector pos(0, 0, 100.*mm);
|
||||||
|
// Euler angles: phi (Z), theta (Y), psi (Z)
|
||||||
|
G4double phi_euler = 360./4 * i * deg;
|
||||||
|
G4RotationMatrix* rot = new G4RotationMatrix(phi_euler, 0, 0);
|
||||||
|
new G4PVPlacement(rot, pos, logicQQQ, "QQQ", logicWorld, false, i);
|
||||||
|
}
|
||||||
|
|
||||||
|
return physWorld;
|
||||||
|
}
|
||||||
|
|
||||||
|
void DetectorConstruction::ConstructSDandField()
|
||||||
|
{
|
||||||
|
auto* detectorSD = new DetectorSensitiveDetector("AnasenSensitiveDetector");
|
||||||
|
G4SDManager::GetSDMpointer()->AddNewDetector(detectorSD);
|
||||||
|
|
||||||
|
if (fSX3Logical != nullptr) {
|
||||||
|
SetSensitiveDetector(fSX3Logical, detectorSD);
|
||||||
|
}
|
||||||
|
if (fQQQLogical != nullptr) {
|
||||||
|
SetSensitiveDetector(fQQQLogical, detectorSD);
|
||||||
|
}
|
||||||
|
}
|
||||||
105
Armory/AnasenG4/src/DetectorSensitiveDetector.cc
Normal file
105
Armory/AnasenG4/src/DetectorSensitiveDetector.cc
Normal file
|
|
@ -0,0 +1,105 @@
|
||||||
|
#include "DetectorSensitiveDetector.hh"
|
||||||
|
|
||||||
|
#include "HitOutputManager.hh"
|
||||||
|
#include "WireTrackingManager.hh"
|
||||||
|
|
||||||
|
#include "G4RunManager.hh"
|
||||||
|
#include "G4Step.hh"
|
||||||
|
#include "G4Track.hh"
|
||||||
|
#include "G4TouchableHistory.hh"
|
||||||
|
#include "G4VPhysicalVolume.hh"
|
||||||
|
#include "G4StepPoint.hh"
|
||||||
|
|
||||||
|
#include <cmath>
|
||||||
|
#include <string>
|
||||||
|
|
||||||
|
namespace {
|
||||||
|
std::string ClassifyDetectorType(const std::string& volumeName)
|
||||||
|
{
|
||||||
|
if (volumeName == "PC_A") {
|
||||||
|
return "Anode";
|
||||||
|
}
|
||||||
|
if (volumeName == "PC_C") {
|
||||||
|
return "Cathode";
|
||||||
|
}
|
||||||
|
if (volumeName == "QQQ") {
|
||||||
|
return "QQQ";
|
||||||
|
}
|
||||||
|
if (volumeName.rfind("SX3", 0) == 0) {
|
||||||
|
return "SX3";
|
||||||
|
}
|
||||||
|
return volumeName;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
DetectorSensitiveDetector::DetectorSensitiveDetector(const G4String& name)
|
||||||
|
: G4VSensitiveDetector(name)
|
||||||
|
{}
|
||||||
|
|
||||||
|
DetectorSensitiveDetector::~DetectorSensitiveDetector() {}
|
||||||
|
|
||||||
|
G4bool DetectorSensitiveDetector::ProcessHits(G4Step* step, G4TouchableHistory*)
|
||||||
|
{
|
||||||
|
if (step == nullptr) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
G4StepPoint* preStepPoint = step->GetPreStepPoint();
|
||||||
|
if (preStepPoint == nullptr) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
G4VPhysicalVolume* volume = preStepPoint->GetPhysicalVolume();
|
||||||
|
if (volume == nullptr) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4double kineticEnergy = preStepPoint->GetKineticEnergy();
|
||||||
|
const G4double energyDeposit = step->GetTotalEnergyDeposit();
|
||||||
|
if (kineticEnergy <= 0.0 && energyDeposit <= 0.0) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4Event* currentEvent = G4RunManager::GetRunManager()->GetCurrentEvent();
|
||||||
|
if (currentEvent == nullptr) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
const std::string particleName = step->GetTrack()->GetParticleDefinition()->GetParticleName();
|
||||||
|
if (!HitOutputManager::Instance().ShouldRecordParticle(particleName)) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
const std::string volumeName = volume->GetName();
|
||||||
|
const std::string detectorType = ClassifyDetectorType(volumeName);
|
||||||
|
if (detectorType != "SX3" && detectorType != "QQQ") {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
WireCrossingInfo wireInfo;
|
||||||
|
WireTrackingManager::Instance().GetInfo(currentEvent->GetEventID(), step->GetTrack()->GetTrackID(), wireInfo);
|
||||||
|
if (wireInfo.anodeId < 0 || wireInfo.cathodeId < 0) {
|
||||||
|
wireInfo = WireTrackingManager::Instance().InferFromTrackGeometry(step->GetTrack(), preStepPoint);
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4ThreeVector trackDirection = step->GetTrack()->GetMomentumDirection();
|
||||||
|
const double sinThetaZ = std::sin(trackDirection.theta());
|
||||||
|
const double wireDeltaESinTheta = wireInfo.deltaE * sinThetaZ;
|
||||||
|
|
||||||
|
HitOutputManager::Instance().RecordHit(currentEvent->GetEventID(),
|
||||||
|
particleName,
|
||||||
|
kineticEnergy,
|
||||||
|
energyDeposit,
|
||||||
|
wireDeltaESinTheta,
|
||||||
|
detectorType,
|
||||||
|
volume->GetCopyNo(),
|
||||||
|
wireInfo.anodeId,
|
||||||
|
wireInfo.cathodeId,
|
||||||
|
wireInfo.anodeEnergy,
|
||||||
|
wireInfo.cathodeEnergy,
|
||||||
|
wireInfo.deltaE,
|
||||||
|
volumeName,
|
||||||
|
preStepPoint->GetPosition(),
|
||||||
|
step->GetTrack()->GetVertexPosition());
|
||||||
|
return true;
|
||||||
|
}
|
||||||
279
Armory/AnasenG4/src/HitOutputManager.cc
Normal file
279
Armory/AnasenG4/src/HitOutputManager.cc
Normal file
|
|
@ -0,0 +1,279 @@
|
||||||
|
#include "HitOutputManager.hh"
|
||||||
|
|
||||||
|
#include "TFile.h"
|
||||||
|
#include "TH1D.h"
|
||||||
|
#include "TH2D.h"
|
||||||
|
#include "TTree.h"
|
||||||
|
|
||||||
|
#include <cstring>
|
||||||
|
#include <iomanip>
|
||||||
|
|
||||||
|
namespace {
|
||||||
|
const char* kRootOutputName = ANASENG4_DATA_DIR "/hits.root";
|
||||||
|
const char* kTextOutputName = ANASENG4_DATA_DIR "/hits.txt";
|
||||||
|
}
|
||||||
|
|
||||||
|
HitOutputManager& HitOutputManager::Instance()
|
||||||
|
{
|
||||||
|
static HitOutputManager instance;
|
||||||
|
return instance;
|
||||||
|
}
|
||||||
|
|
||||||
|
HitOutputManager::HitOutputManager()
|
||||||
|
: fRootFile(nullptr),
|
||||||
|
fTree(nullptr),
|
||||||
|
fEventId(0),
|
||||||
|
fDetectorId(0),
|
||||||
|
fAnodeId(-1),
|
||||||
|
fCathodeId(-1),
|
||||||
|
fKineticEnergy(0.0),
|
||||||
|
fEnergyDeposit(0.0),
|
||||||
|
fWireDeltaESinTheta(0.0),
|
||||||
|
fAnodeEnergy(0.0),
|
||||||
|
fCathodeEnergy(0.0),
|
||||||
|
fWireDeltaE(0.0),
|
||||||
|
fX(0.0),
|
||||||
|
fY(0.0),
|
||||||
|
fZ(0.0),
|
||||||
|
fVertexX(0.0),
|
||||||
|
fVertexY(0.0),
|
||||||
|
fVertexZ(0.0),
|
||||||
|
fKineticEnergyHist(nullptr),
|
||||||
|
fEnergyDepositHist(nullptr),
|
||||||
|
fWireDeltaEHist(nullptr),
|
||||||
|
fWireDeltaESinThetaVsDetEHist(nullptr),
|
||||||
|
fHitZHist(nullptr),
|
||||||
|
fVertexZHist(nullptr),
|
||||||
|
fDetectorIdHist(nullptr),
|
||||||
|
fHitXYHist(nullptr),
|
||||||
|
fVertexXYHist(nullptr),
|
||||||
|
fIncludeElectrons(true)
|
||||||
|
{
|
||||||
|
ResetBuffers();
|
||||||
|
}
|
||||||
|
|
||||||
|
HitOutputManager::~HitOutputManager()
|
||||||
|
{
|
||||||
|
Close();
|
||||||
|
}
|
||||||
|
|
||||||
|
void HitOutputManager::Open()
|
||||||
|
{
|
||||||
|
Close();
|
||||||
|
|
||||||
|
fRootFile = TFile::Open(kRootOutputName, "RECREATE");
|
||||||
|
fTree = new TTree("hits", "Sensitive detector hits");
|
||||||
|
fTree->Branch("eventID", &fEventId, "eventID/I");
|
||||||
|
fTree->Branch("particleType", fParticleType, "particleType/C");
|
||||||
|
fTree->Branch("kineticEnergy", &fKineticEnergy, "kineticEnergy/D");
|
||||||
|
fTree->Branch("energyDeposit", &fEnergyDeposit, "energyDeposit/D");
|
||||||
|
fTree->Branch("wireDeltaESinTheta", &fWireDeltaESinTheta, "wireDeltaESinTheta/D");
|
||||||
|
fTree->Branch("detectorType", fDetectorType, "detectorType/C");
|
||||||
|
fTree->Branch("detectorID", &fDetectorId, "detectorID/I");
|
||||||
|
fTree->Branch("anodeID", &fAnodeId, "anodeID/I");
|
||||||
|
fTree->Branch("cathodeID", &fCathodeId, "cathodeID/I");
|
||||||
|
fTree->Branch("anodeEnergy", &fAnodeEnergy, "anodeEnergy/D");
|
||||||
|
fTree->Branch("cathodeEnergy", &fCathodeEnergy, "cathodeEnergy/D");
|
||||||
|
fTree->Branch("wireDeltaE", &fWireDeltaE, "wireDeltaE/D");
|
||||||
|
fTree->Branch("volumeName", fVolumeName, "volumeName/C");
|
||||||
|
fTree->Branch("x", &fX, "x/D");
|
||||||
|
fTree->Branch("y", &fY, "y/D");
|
||||||
|
fTree->Branch("z", &fZ, "z/D");
|
||||||
|
fTree->Branch("vertexX", &fVertexX, "vertexX/D");
|
||||||
|
fTree->Branch("vertexY", &fVertexY, "vertexY/D");
|
||||||
|
fTree->Branch("vertexZ", &fVertexZ, "vertexZ/D");
|
||||||
|
|
||||||
|
fKineticEnergyHist = new TH1D("hKineticEnergy", "Hit kinetic energy;Kinetic energy [MeV];Counts", 200, 0.0, 200.0);
|
||||||
|
fEnergyDepositHist = new TH1D("hEnergyDeposit", "Step energy deposit;Energy deposit [MeV];Counts", 200, 0.0, 50.0);
|
||||||
|
fWireDeltaEHist = new TH1D("hWireDeltaE", "Energy loss between anode and cathode crossings;#DeltaE [MeV];Counts", 200, 0.0, 20.0);
|
||||||
|
fWireDeltaESinThetaVsDetEHist =
|
||||||
|
new TH2D("hWireDeltaESinThetaVsDetE",
|
||||||
|
"PC #DeltaE #times sin(#theta_{z}) vs detector deposited energy;Detector deposited energy [MeV];#DeltaE_{PC} #times sin(#theta_{z}) [MeV]",
|
||||||
|
200,
|
||||||
|
0.0,
|
||||||
|
14.0,
|
||||||
|
200,
|
||||||
|
0.0,
|
||||||
|
20.0);
|
||||||
|
fHitZHist = new TH1D("hHitZ", "Hit z position;z [mm];Counts", 200, -200.0, 200.0);
|
||||||
|
fVertexZHist = new TH1D("hVertexZ", "Track vertex z position;z_{vertex} [mm];Counts", 200, -250.0, 250.0);
|
||||||
|
fDetectorIdHist = new TH1D("hDetectorID", "Detector ID occupancy;Detector ID;Counts", 64, -0.5, 63.5);
|
||||||
|
fHitXYHist = new TH2D("hHitXY", "Hit position;x [mm];y [mm]", 200, -200.0, 200.0, 200, -200.0, 200.0);
|
||||||
|
fVertexXYHist = new TH2D("hVertexXY", "Track vertex position;x_{vertex} [mm];y_{vertex} [mm]", 200, -200.0, 200.0, 200, -200.0, 200.0);
|
||||||
|
|
||||||
|
fTextFile.open(kTextOutputName, std::ios::out | std::ios::trunc);
|
||||||
|
fTextFile << "eventID,particleType,kineticEnergy,energyDeposit,wireDeltaESinTheta,detectorType,detectorID,anodeID,cathodeID,anodeEnergy,cathodeEnergy,wireDeltaE,volumeName,x,y,z,vertexX,vertexY,vertexZ\n";
|
||||||
|
}
|
||||||
|
|
||||||
|
void HitOutputManager::Close()
|
||||||
|
{
|
||||||
|
if (fRootFile != nullptr) {
|
||||||
|
fRootFile->cd();
|
||||||
|
if (fTree != nullptr) {
|
||||||
|
fTree->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fKineticEnergyHist != nullptr) {
|
||||||
|
fKineticEnergyHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fEnergyDepositHist != nullptr) {
|
||||||
|
fEnergyDepositHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fWireDeltaEHist != nullptr) {
|
||||||
|
fWireDeltaEHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fWireDeltaESinThetaVsDetEHist != nullptr) {
|
||||||
|
fWireDeltaESinThetaVsDetEHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fHitZHist != nullptr) {
|
||||||
|
fHitZHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fVertexZHist != nullptr) {
|
||||||
|
fVertexZHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fDetectorIdHist != nullptr) {
|
||||||
|
fDetectorIdHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fHitXYHist != nullptr) {
|
||||||
|
fHitXYHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
if (fVertexXYHist != nullptr) {
|
||||||
|
fVertexXYHist->Write("", TObject::kOverwrite);
|
||||||
|
}
|
||||||
|
fRootFile->Close();
|
||||||
|
delete fRootFile;
|
||||||
|
fRootFile = nullptr;
|
||||||
|
fTree = nullptr;
|
||||||
|
fKineticEnergyHist = nullptr;
|
||||||
|
fEnergyDepositHist = nullptr;
|
||||||
|
fWireDeltaEHist = nullptr;
|
||||||
|
fWireDeltaESinThetaVsDetEHist = nullptr;
|
||||||
|
fHitZHist = nullptr;
|
||||||
|
fVertexZHist = nullptr;
|
||||||
|
fDetectorIdHist = nullptr;
|
||||||
|
fHitXYHist = nullptr;
|
||||||
|
fVertexXYHist = nullptr;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (fTextFile.is_open()) {
|
||||||
|
fTextFile.close();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
void HitOutputManager::SetIncludeElectrons(bool includeElectrons)
|
||||||
|
{
|
||||||
|
fIncludeElectrons = includeElectrons;
|
||||||
|
}
|
||||||
|
|
||||||
|
bool HitOutputManager::GetIncludeElectrons() const
|
||||||
|
{
|
||||||
|
return fIncludeElectrons;
|
||||||
|
}
|
||||||
|
|
||||||
|
bool HitOutputManager::ShouldRecordParticle(const std::string& particleType) const
|
||||||
|
{
|
||||||
|
if (fIncludeElectrons) {
|
||||||
|
return true;
|
||||||
|
}
|
||||||
|
|
||||||
|
return particleType != "e-" && particleType != "e+";
|
||||||
|
}
|
||||||
|
|
||||||
|
void HitOutputManager::RecordHit(int eventId,
|
||||||
|
const std::string& particleType,
|
||||||
|
double kineticEnergy,
|
||||||
|
double energyDeposit,
|
||||||
|
double wireDeltaESinTheta,
|
||||||
|
const std::string& detectorType,
|
||||||
|
int detectorId,
|
||||||
|
int anodeId,
|
||||||
|
int cathodeId,
|
||||||
|
double anodeEnergy,
|
||||||
|
double cathodeEnergy,
|
||||||
|
double wireDeltaE,
|
||||||
|
const std::string& volumeName,
|
||||||
|
const G4ThreeVector& position,
|
||||||
|
const G4ThreeVector& vertexPosition)
|
||||||
|
{
|
||||||
|
if (fRootFile == nullptr || fTree == nullptr || !fTextFile.is_open()) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
ResetBuffers();
|
||||||
|
|
||||||
|
fEventId = eventId;
|
||||||
|
fDetectorId = detectorId;
|
||||||
|
fAnodeId = anodeId;
|
||||||
|
fCathodeId = cathodeId;
|
||||||
|
fKineticEnergy = kineticEnergy;
|
||||||
|
fEnergyDeposit = energyDeposit;
|
||||||
|
fWireDeltaESinTheta = wireDeltaESinTheta;
|
||||||
|
fAnodeEnergy = anodeEnergy;
|
||||||
|
fCathodeEnergy = cathodeEnergy;
|
||||||
|
fWireDeltaE = wireDeltaE;
|
||||||
|
fX = position.x();
|
||||||
|
fY = position.y();
|
||||||
|
fZ = position.z();
|
||||||
|
fVertexX = vertexPosition.x();
|
||||||
|
fVertexY = vertexPosition.y();
|
||||||
|
fVertexZ = vertexPosition.z();
|
||||||
|
|
||||||
|
std::strncpy(fParticleType, particleType.c_str(), sizeof(fParticleType) - 1);
|
||||||
|
std::strncpy(fDetectorType, detectorType.c_str(), sizeof(fDetectorType) - 1);
|
||||||
|
std::strncpy(fVolumeName, volumeName.c_str(), sizeof(fVolumeName) - 1);
|
||||||
|
|
||||||
|
fTree->Fill();
|
||||||
|
if (fKineticEnergyHist != nullptr) {
|
||||||
|
fKineticEnergyHist->Fill(fKineticEnergy);
|
||||||
|
}
|
||||||
|
if (fEnergyDepositHist != nullptr) {
|
||||||
|
fEnergyDepositHist->Fill(fEnergyDeposit);
|
||||||
|
}
|
||||||
|
if (fWireDeltaEHist != nullptr && fAnodeId >= 0 && fCathodeId >= 0) {
|
||||||
|
fWireDeltaEHist->Fill(fWireDeltaE);
|
||||||
|
}
|
||||||
|
if (fWireDeltaESinThetaVsDetEHist != nullptr && fAnodeId >= 0 && fCathodeId >= 0) {
|
||||||
|
fWireDeltaESinThetaVsDetEHist->Fill(fEnergyDeposit, 100.0 * fWireDeltaESinTheta); //2D histogram programmed
|
||||||
|
}
|
||||||
|
if (fHitZHist != nullptr) {
|
||||||
|
fHitZHist->Fill(fZ);
|
||||||
|
}
|
||||||
|
if (fVertexZHist != nullptr) {
|
||||||
|
fVertexZHist->Fill(fVertexZ);
|
||||||
|
}
|
||||||
|
if (fDetectorIdHist != nullptr) {
|
||||||
|
fDetectorIdHist->Fill(fDetectorId);
|
||||||
|
}
|
||||||
|
if (fHitXYHist != nullptr) {
|
||||||
|
fHitXYHist->Fill(fX, fY);
|
||||||
|
}
|
||||||
|
if (fVertexXYHist != nullptr) {
|
||||||
|
fVertexXYHist->Fill(fVertexX, fVertexY);
|
||||||
|
}
|
||||||
|
|
||||||
|
fTextFile << fEventId << ','
|
||||||
|
<< fParticleType << ','
|
||||||
|
<< std::setprecision(12) << fKineticEnergy << ','
|
||||||
|
<< fEnergyDeposit << ','
|
||||||
|
<< fWireDeltaESinTheta << ','
|
||||||
|
<< fDetectorType << ','
|
||||||
|
<< fDetectorId << ','
|
||||||
|
<< fAnodeId << ','
|
||||||
|
<< fCathodeId << ','
|
||||||
|
<< fAnodeEnergy << ','
|
||||||
|
<< fCathodeEnergy << ','
|
||||||
|
<< fWireDeltaE << ','
|
||||||
|
<< fVolumeName << ','
|
||||||
|
<< fX << ','
|
||||||
|
<< fY << ','
|
||||||
|
<< fZ << ','
|
||||||
|
<< fVertexX << ','
|
||||||
|
<< fVertexY << ','
|
||||||
|
<< fVertexZ << '\n';
|
||||||
|
}
|
||||||
|
|
||||||
|
void HitOutputManager::ResetBuffers()
|
||||||
|
{
|
||||||
|
fParticleType[0] = '\0';
|
||||||
|
fDetectorType[0] = '\0';
|
||||||
|
fVolumeName[0] = '\0';
|
||||||
|
}
|
||||||
50
Armory/AnasenG4/src/PrimaryGeneratorAction.cc
Normal file
50
Armory/AnasenG4/src/PrimaryGeneratorAction.cc
Normal file
|
|
@ -0,0 +1,50 @@
|
||||||
|
#include "PrimaryGeneratorAction.hh"
|
||||||
|
#include "BeamConfig.hh"
|
||||||
|
#include "G4ParticleGun.hh"
|
||||||
|
#include "G4ParticleTable.hh"
|
||||||
|
#include "G4IonTable.hh"
|
||||||
|
#include "G4Proton.hh"
|
||||||
|
#include "G4SystemOfUnits.hh"
|
||||||
|
#include "G4Event.hh"
|
||||||
|
#include "G4PhysicalConstants.hh"
|
||||||
|
#include "G4RandomTools.hh"
|
||||||
|
#include "G4UnitsTable.hh"
|
||||||
|
|
||||||
|
#include <cmath>
|
||||||
|
|
||||||
|
PrimaryGeneratorAction::PrimaryGeneratorAction()
|
||||||
|
: G4VUserPrimaryGeneratorAction(),
|
||||||
|
fParticleGun(nullptr),
|
||||||
|
fBeamRadius(BeamConfig::kRadius),
|
||||||
|
fBeamStartZ(BeamConfig::kStartZ)
|
||||||
|
{
|
||||||
|
G4int nParticle = 1;
|
||||||
|
fParticleGun = new G4ParticleGun(nParticle);
|
||||||
|
fParticleGun->SetParticleDefinition(G4Proton::ProtonDefinition());
|
||||||
|
fParticleGun->SetParticleMomentumDirection(G4ThreeVector(0., 0., 1.));
|
||||||
|
fParticleGun->SetParticleEnergy(BeamConfig::kTotalBeamEnergy);
|
||||||
|
}
|
||||||
|
|
||||||
|
PrimaryGeneratorAction::~PrimaryGeneratorAction()
|
||||||
|
{
|
||||||
|
delete fParticleGun;
|
||||||
|
}
|
||||||
|
|
||||||
|
void PrimaryGeneratorAction::GeneratePrimaries(G4Event* event)
|
||||||
|
{
|
||||||
|
auto* ion = G4IonTable::GetIonTable()->GetIon(BeamConfig::kAtomicNumber, BeamConfig::kAtomicMass, 0.0);
|
||||||
|
if (ion) {
|
||||||
|
fParticleGun->SetParticleDefinition(ion);
|
||||||
|
}
|
||||||
|
|
||||||
|
G4double r = fBeamRadius * std::sqrt(G4UniformRand());
|
||||||
|
G4double phi = twopi * G4UniformRand();
|
||||||
|
G4double x = r * std::cos(phi);
|
||||||
|
G4double y = r * std::sin(phi);
|
||||||
|
G4double z = fBeamStartZ;
|
||||||
|
|
||||||
|
fParticleGun->SetParticlePosition(G4ThreeVector(x, y, z));
|
||||||
|
fParticleGun->SetParticleMomentumDirection(G4ThreeVector(0., 0., 1.));
|
||||||
|
fParticleGun->SetParticleEnergy(BeamConfig::kTotalBeamEnergy);
|
||||||
|
fParticleGun->GeneratePrimaryVertex(event);
|
||||||
|
}
|
||||||
83
Armory/AnasenG4/src/ReactionGenerator.cc
Normal file
83
Armory/AnasenG4/src/ReactionGenerator.cc
Normal file
|
|
@ -0,0 +1,83 @@
|
||||||
|
#include "ReactionGenerator.hh"
|
||||||
|
#include "BeamConfig.hh"
|
||||||
|
#include "ClassTransfer.h"
|
||||||
|
#include "G4SystemOfUnits.hh"
|
||||||
|
#include "TRandom.h"
|
||||||
|
#include "TVector3.h"
|
||||||
|
#include "TLorentzVector.h"
|
||||||
|
#include <cmath>
|
||||||
|
|
||||||
|
struct ReactionGenerator::Impl {
|
||||||
|
TransferReaction transferP;
|
||||||
|
TransferReaction transferAlpha;
|
||||||
|
};
|
||||||
|
|
||||||
|
ReactionGenerator::ReactionGenerator()
|
||||||
|
: fImpl(nullptr),
|
||||||
|
fEffectiveSigma(5e5 * barn) //originally 5e6
|
||||||
|
{
|
||||||
|
// Ensure the isotope mass table is found when running from the AnasenG4 folder.
|
||||||
|
massData = "/home/jamesszalkie/anasen/Armory/mass20.txt";
|
||||||
|
fImpl = new Impl();
|
||||||
|
|
||||||
|
// p-channel: 27Al + 4He -> p + 30Si
|
||||||
|
fImpl->transferP.SetA(BeamConfig::kAtomicMass, BeamConfig::kAtomicNumber, 0);
|
||||||
|
fImpl->transferP.Seta(4, 2);
|
||||||
|
fImpl->transferP.Setb(1, 1);
|
||||||
|
fImpl->transferP.SetB(30, 14, 0);
|
||||||
|
|
||||||
|
// alpha-channel: 27Al + 4He -> alpha + 27Al
|
||||||
|
fImpl->transferAlpha.SetA(BeamConfig::kAtomicMass, BeamConfig::kAtomicNumber, 0);
|
||||||
|
fImpl->transferAlpha.Seta(4, 2);
|
||||||
|
fImpl->transferAlpha.Setb(4, 2);
|
||||||
|
fImpl->transferAlpha.SetB(BeamConfig::kAtomicMass, BeamConfig::kAtomicNumber, 0);
|
||||||
|
}
|
||||||
|
|
||||||
|
ReactionGenerator::~ReactionGenerator()
|
||||||
|
{
|
||||||
|
delete fImpl;
|
||||||
|
}
|
||||||
|
|
||||||
|
ReactionOutput ReactionGenerator::SampleEvent(double beamKineticEnergy, const G4ThreeVector& beamDirection)
|
||||||
|
{
|
||||||
|
// Forward-peaked sampling gives the expected inverse E(theta)-like trend in lab observables.
|
||||||
|
double thetaCM = 0.0;
|
||||||
|
while (true) {
|
||||||
|
const double trial = gRandom->Rndm() * M_PI;
|
||||||
|
const double weight = 1.0 / (1.0 + 20.0 * trial * trial);
|
||||||
|
if (gRandom->Rndm() < weight) {
|
||||||
|
thetaCM = trial;
|
||||||
|
break;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
const double phiCM = gRandom->Rndm() * 2.0 * M_PI;
|
||||||
|
|
||||||
|
const double beamEnergyPerU = beamKineticEnergy / (BeamConfig::kAtomicMass * MeV);
|
||||||
|
const double beamThetaDeg = beamDirection.theta() / deg;
|
||||||
|
const double beamPhiDeg = beamDirection.phi() / deg;
|
||||||
|
|
||||||
|
// Use a mild energy-dependent branching to mix p and alpha events.
|
||||||
|
const double protonFraction = (beamEnergyPerU > 8.0) ? 0.65 : 0.45;
|
||||||
|
const bool isProtonChannel = (gRandom->Rndm() < protonFraction);
|
||||||
|
|
||||||
|
TransferReaction* transfer = isProtonChannel ? &fImpl->transferP : &fImpl->transferAlpha;
|
||||||
|
transfer->SetIncidentEnergyAngle(beamEnergyPerU, beamThetaDeg, beamPhiDeg);
|
||||||
|
transfer->CalReactionConstant();
|
||||||
|
|
||||||
|
TLorentzVector* reactionOutput = transfer->Event(thetaCM, phiCM);
|
||||||
|
TLorentzVector light = reactionOutput[2];
|
||||||
|
delete[] reactionOutput;
|
||||||
|
|
||||||
|
ReactionOutput output;
|
||||||
|
output.channel = isProtonChannel ? ReactionChannel::Proton : ReactionChannel::Alpha;
|
||||||
|
output.kineticEnergy = light.E() - light.M();
|
||||||
|
output.px = light.Px();
|
||||||
|
output.py = light.Py();
|
||||||
|
output.pz = light.Pz();
|
||||||
|
return output;
|
||||||
|
}
|
||||||
|
|
||||||
|
double ReactionGenerator::GetEffectiveCrossSection() const
|
||||||
|
{
|
||||||
|
return fEffectiveSigma;
|
||||||
|
}
|
||||||
40
Armory/AnasenG4/src/RunAction.cc
Normal file
40
Armory/AnasenG4/src/RunAction.cc
Normal file
|
|
@ -0,0 +1,40 @@
|
||||||
|
#include "RunAction.hh"
|
||||||
|
|
||||||
|
#include "HitOutputManager.hh"
|
||||||
|
#include "G4GenericMessenger.hh"
|
||||||
|
|
||||||
|
RunAction::RunAction()
|
||||||
|
: G4UserRunAction(),
|
||||||
|
fMessenger(nullptr),
|
||||||
|
fIncludeElectrons(false)
|
||||||
|
{
|
||||||
|
DefineCommands();
|
||||||
|
}
|
||||||
|
|
||||||
|
RunAction::~RunAction()
|
||||||
|
{
|
||||||
|
delete fMessenger;
|
||||||
|
}
|
||||||
|
|
||||||
|
void RunAction::DefineCommands()
|
||||||
|
{
|
||||||
|
fMessenger = new G4GenericMessenger(this, "/anasen/output/", "ANASEN output controls");
|
||||||
|
|
||||||
|
auto& includeElectronsCmd =
|
||||||
|
fMessenger->DeclareProperty("includeElectrons",
|
||||||
|
fIncludeElectrons,
|
||||||
|
"Enable or disable recording electron and positron hits.");
|
||||||
|
includeElectronsCmd.SetParameterName("includeElectrons", false);
|
||||||
|
includeElectronsCmd.SetDefaultValue("false");
|
||||||
|
}
|
||||||
|
|
||||||
|
void RunAction::BeginOfRunAction(const G4Run*)
|
||||||
|
{
|
||||||
|
HitOutputManager::Instance().SetIncludeElectrons(fIncludeElectrons);
|
||||||
|
HitOutputManager::Instance().Open();
|
||||||
|
}
|
||||||
|
|
||||||
|
void RunAction::EndOfRunAction(const G4Run*)
|
||||||
|
{
|
||||||
|
HitOutputManager::Instance().Close();
|
||||||
|
}
|
||||||
205
Armory/AnasenG4/src/WireTrackingManager.cc
Normal file
205
Armory/AnasenG4/src/WireTrackingManager.cc
Normal file
|
|
@ -0,0 +1,205 @@
|
||||||
|
#include "WireTrackingManager.hh"
|
||||||
|
|
||||||
|
#include "ClassPW.h"
|
||||||
|
|
||||||
|
#include "G4Event.hh"
|
||||||
|
#include "G4RunManager.hh"
|
||||||
|
#include "G4Step.hh"
|
||||||
|
#include "G4StepPoint.hh"
|
||||||
|
#include "G4Track.hh"
|
||||||
|
#include "G4SystemOfUnits.hh"
|
||||||
|
|
||||||
|
#include <algorithm>
|
||||||
|
#include <cmath>
|
||||||
|
|
||||||
|
namespace {
|
||||||
|
constexpr double kAnodeRadius = 37.0 * mm;
|
||||||
|
constexpr double kCathodeRadius = 43.0 * mm;
|
||||||
|
|
||||||
|
bool CrossesRadius(double preR, double postR, double targetR)
|
||||||
|
{
|
||||||
|
return (preR - targetR) * (postR - targetR) <= 0.0 && std::abs(postR - preR) > 1e-12;
|
||||||
|
}
|
||||||
|
|
||||||
|
TVector3 ToTVector3(const G4ThreeVector& value)
|
||||||
|
{
|
||||||
|
return TVector3(value.x(), value.y(), value.z());
|
||||||
|
}
|
||||||
|
|
||||||
|
bool SolveRadiusIntersection(const G4ThreeVector& origin,
|
||||||
|
const G4ThreeVector& direction,
|
||||||
|
double radius,
|
||||||
|
double& distance)
|
||||||
|
{
|
||||||
|
const double a = direction.x() * direction.x() + direction.y() * direction.y();
|
||||||
|
if (a <= 0.0) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
const double b = 2.0 * (origin.x() * direction.x() + origin.y() * direction.y());
|
||||||
|
const double c = origin.x() * origin.x() + origin.y() * origin.y() - radius * radius;
|
||||||
|
const double discriminant = b * b - 4.0 * a * c;
|
||||||
|
if (discriminant < 0.0) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
|
||||||
|
const double sqrtDiscriminant = std::sqrt(discriminant);
|
||||||
|
const double t1 = (-b - sqrtDiscriminant) / (2.0 * a);
|
||||||
|
const double t2 = (-b + sqrtDiscriminant) / (2.0 * a);
|
||||||
|
|
||||||
|
distance = -1.0;
|
||||||
|
if (t1 >= 0.0 && t2 >= 0.0) {
|
||||||
|
distance = std::min(t1, t2);
|
||||||
|
} else if (t1 >= 0.0) {
|
||||||
|
distance = t1;
|
||||||
|
} else if (t2 >= 0.0) {
|
||||||
|
distance = t2;
|
||||||
|
}
|
||||||
|
|
||||||
|
return distance >= 0.0;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
WireTrackingManager& WireTrackingManager::Instance()
|
||||||
|
{
|
||||||
|
static WireTrackingManager instance;
|
||||||
|
return instance;
|
||||||
|
}
|
||||||
|
|
||||||
|
WireTrackingManager::WireTrackingManager()
|
||||||
|
: fCurrentEventId(-1)
|
||||||
|
{}
|
||||||
|
|
||||||
|
WireTrackingManager::~WireTrackingManager() {}
|
||||||
|
|
||||||
|
void WireTrackingManager::EnsureEvent(int eventId)
|
||||||
|
{
|
||||||
|
if (eventId != fCurrentEventId) {
|
||||||
|
fCurrentEventId = eventId;
|
||||||
|
fTrackInfo.clear();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
void WireTrackingManager::UpdateForStep(const G4Step* step)
|
||||||
|
{
|
||||||
|
if (step == nullptr) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4Track* track = step->GetTrack();
|
||||||
|
if (track == nullptr) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4Event* event = G4RunManager::GetRunManager()->GetCurrentEvent();
|
||||||
|
if (event == nullptr) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
EnsureEvent(event->GetEventID());
|
||||||
|
|
||||||
|
const G4StepPoint* prePoint = step->GetPreStepPoint();
|
||||||
|
const G4StepPoint* postPoint = step->GetPostStepPoint();
|
||||||
|
if (prePoint == nullptr || postPoint == nullptr) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (prePoint->GetPhysicalVolume() == nullptr || prePoint->GetPhysicalVolume()->GetName() != "Target") {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (track->GetDefinition()->GetParticleType() == "nucleus") {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4ThreeVector& prePos = prePoint->GetPosition();
|
||||||
|
const G4ThreeVector& postPos = postPoint->GetPosition();
|
||||||
|
const double preR = prePos.perp();
|
||||||
|
const double postR = postPos.perp();
|
||||||
|
|
||||||
|
if (!CrossesRadius(preR, postR, kAnodeRadius) && !CrossesRadius(preR, postR, kCathodeRadius)) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
PW pw;
|
||||||
|
pw.ConstructGeo();
|
||||||
|
pw.FindWireID(ToTVector3(track->GetVertexPosition()), ToTVector3(track->GetMomentumDirection()), false);
|
||||||
|
|
||||||
|
auto& info = fTrackInfo[track->GetTrackID()];
|
||||||
|
|
||||||
|
auto interpolateEnergy = [&](double targetR) {
|
||||||
|
const double fraction = (targetR - preR) / (postR - preR);
|
||||||
|
return prePoint->GetKineticEnergy() + fraction * (postPoint->GetKineticEnergy() - prePoint->GetKineticEnergy());
|
||||||
|
};
|
||||||
|
|
||||||
|
if (!info.sawAnode && CrossesRadius(preR, postR, kAnodeRadius)) {
|
||||||
|
info.sawAnode = true;
|
||||||
|
info.anodeId = pw.GetNearestID().first;
|
||||||
|
info.anodeEnergy = interpolateEnergy(kAnodeRadius);
|
||||||
|
}
|
||||||
|
|
||||||
|
if (!info.sawCathode && CrossesRadius(preR, postR, kCathodeRadius)) {
|
||||||
|
info.sawCathode = true;
|
||||||
|
info.cathodeId = pw.GetNearestID().second;
|
||||||
|
info.cathodeEnergy = interpolateEnergy(kCathodeRadius);
|
||||||
|
}
|
||||||
|
|
||||||
|
if (info.sawAnode && info.sawCathode) {
|
||||||
|
info.deltaE = std::abs(info.anodeEnergy - info.cathodeEnergy);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
bool WireTrackingManager::GetInfo(int eventId, int trackId, WireCrossingInfo& info)
|
||||||
|
{
|
||||||
|
EnsureEvent(eventId);
|
||||||
|
auto iterator = fTrackInfo.find(trackId);
|
||||||
|
if (iterator == fTrackInfo.end()) {
|
||||||
|
return false;
|
||||||
|
}
|
||||||
|
info = iterator->second;
|
||||||
|
return true;
|
||||||
|
}
|
||||||
|
|
||||||
|
WireCrossingInfo WireTrackingManager::InferFromTrackGeometry(const G4Track* track, const G4StepPoint* hitPoint)
|
||||||
|
{
|
||||||
|
WireCrossingInfo info;
|
||||||
|
if (track == nullptr || hitPoint == nullptr) {
|
||||||
|
return info;
|
||||||
|
}
|
||||||
|
|
||||||
|
const G4ThreeVector origin = track->GetVertexPosition();
|
||||||
|
G4ThreeVector direction = hitPoint->GetPosition() - origin;
|
||||||
|
const double totalPath = direction.mag();
|
||||||
|
if (totalPath <= 0.0) {
|
||||||
|
return info;
|
||||||
|
}
|
||||||
|
direction = direction.unit();
|
||||||
|
|
||||||
|
PW pw;
|
||||||
|
pw.ConstructGeo();
|
||||||
|
pw.FindWireID(ToTVector3(origin), ToTVector3(direction), false);
|
||||||
|
info.anodeId = pw.GetNearestID().first;
|
||||||
|
info.cathodeId = pw.GetNearestID().second;
|
||||||
|
|
||||||
|
const double vertexEnergy = track->GetVertexKineticEnergy();
|
||||||
|
const double hitEnergy = hitPoint->GetKineticEnergy();
|
||||||
|
double anodeDistance = 0.0;
|
||||||
|
double cathodeDistance = 0.0;
|
||||||
|
|
||||||
|
if (SolveRadiusIntersection(origin, direction, 37.0 * mm, anodeDistance)) {
|
||||||
|
const double fraction = std::clamp(anodeDistance / totalPath, 0.0, 1.0);
|
||||||
|
info.anodeEnergy = vertexEnergy + fraction * (hitEnergy - vertexEnergy);
|
||||||
|
info.sawAnode = true;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (SolveRadiusIntersection(origin, direction, 43.0 * mm, cathodeDistance)) {
|
||||||
|
const double fraction = std::clamp(cathodeDistance / totalPath, 0.0, 1.0);
|
||||||
|
info.cathodeEnergy = vertexEnergy + fraction * (hitEnergy - vertexEnergy);
|
||||||
|
info.sawCathode = true;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (info.sawAnode && info.sawCathode) {
|
||||||
|
info.deltaE = std::abs(info.anodeEnergy - info.cathodeEnergy);
|
||||||
|
}
|
||||||
|
|
||||||
|
return info;
|
||||||
|
}
|
||||||
44
Armory/AnasenG4/src/main.cc
Normal file
44
Armory/AnasenG4/src/main.cc
Normal file
|
|
@ -0,0 +1,44 @@
|
||||||
|
#include "DetectorConstruction.hh"
|
||||||
|
#include "ActionInitialization.hh"
|
||||||
|
|
||||||
|
#include "G4RunManagerFactory.hh"
|
||||||
|
#include "G4UImanager.hh"
|
||||||
|
#include "G4VisExecutive.hh"
|
||||||
|
#include "G4UIExecutive.hh"
|
||||||
|
#include "G4PhysListFactory.hh"
|
||||||
|
|
||||||
|
int main(int argc, char** argv)
|
||||||
|
{
|
||||||
|
G4UIExecutive* ui = nullptr;
|
||||||
|
if (argc == 1) {
|
||||||
|
ui = new G4UIExecutive(argc, argv);
|
||||||
|
}
|
||||||
|
|
||||||
|
auto* runManager = G4RunManagerFactory::CreateRunManager(G4RunManagerType::SerialOnly);
|
||||||
|
|
||||||
|
runManager->SetUserInitialization(new DetectorConstruction());
|
||||||
|
|
||||||
|
G4PhysListFactory physListFactory;
|
||||||
|
runManager->SetUserInitialization(physListFactory.GetReferencePhysList("FTFP_BERT"));
|
||||||
|
|
||||||
|
runManager->SetUserInitialization(new ActionInitialization());
|
||||||
|
|
||||||
|
auto* visManager = new G4VisExecutive(argc, argv);
|
||||||
|
visManager->Initialize();
|
||||||
|
|
||||||
|
auto* uiManager = G4UImanager::GetUIpointer();
|
||||||
|
|
||||||
|
if (ui) {
|
||||||
|
uiManager->ApplyCommand("/control/execute init_vis.mac");
|
||||||
|
ui->SessionStart();
|
||||||
|
delete ui;
|
||||||
|
} else {
|
||||||
|
G4String command = "/control/execute ";
|
||||||
|
G4String fileName = argv[1];
|
||||||
|
uiManager->ApplyCommand(command + fileName);
|
||||||
|
}
|
||||||
|
|
||||||
|
delete visManager;
|
||||||
|
delete runManager;
|
||||||
|
return 0;
|
||||||
|
}
|
||||||
31
Armory/AnasenG4/vis.mac
Normal file
31
Armory/AnasenG4/vis.mac
Normal file
|
|
@ -0,0 +1,31 @@
|
||||||
|
|
||||||
|
/vis/open
|
||||||
|
/vis/viewer/set/autoRefresh false
|
||||||
|
/vis/verbose errors
|
||||||
|
|
||||||
|
/vis/drawVolume
|
||||||
|
/vis/viewer/set/viewpointVector -1 0 0
|
||||||
|
/vis/viewer/set/lightsVector -1 0 0
|
||||||
|
/vis/viewer/set/style wireframe
|
||||||
|
/vis/viewer/set/auxiliaryEdge true
|
||||||
|
/vis/viewer/set/lineSegmentsPerCircle 100
|
||||||
|
|
||||||
|
/tracking/storeTrajectory 1
|
||||||
|
/vis/scene/add/trajectories smooth
|
||||||
|
/vis/modeling/trajectories/create/drawByParticleID
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/default/setDrawStepPts true
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/default/setStepPtsSize 2
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/set proton magenta
|
||||||
|
/vis/modeling/trajectories/drawByParticleID-0/set alpha orange
|
||||||
|
|
||||||
|
/vis/scene/endOfEventAction accumulate 20
|
||||||
|
/vis/geometry/set/visibility World 0 false
|
||||||
|
/vis/scene/add/axes 0 0 0 20 mm
|
||||||
|
/vis/viewer/set/background 0 0 0
|
||||||
|
/vis/viewer/set/style surface
|
||||||
|
/vis/viewer/set/hiddenMarker true
|
||||||
|
/vis/viewer/set/viewpointThetaPhi 120 150
|
||||||
|
|
||||||
|
/vis/viewer/set/autoRefresh true
|
||||||
|
/vis/verbose warnings
|
||||||
|
/vis/viewer/flush
|
||||||
20
Armory/AnasenMS.dSYM/Contents/Info.plist
Normal file
20
Armory/AnasenMS.dSYM/Contents/Info.plist
Normal file
|
|
@ -0,0 +1,20 @@
|
||||||
|
<?xml version="1.0" encoding="UTF-8"?>
|
||||||
|
<!DOCTYPE plist PUBLIC "-//Apple Computer//DTD PLIST 1.0//EN" "http://www.apple.com/DTDs/PropertyList-1.0.dtd">
|
||||||
|
<plist version="1.0">
|
||||||
|
<dict>
|
||||||
|
<key>CFBundleDevelopmentRegion</key>
|
||||||
|
<string>English</string>
|
||||||
|
<key>CFBundleIdentifier</key>
|
||||||
|
<string>com.apple.xcode.dsym.AnasenMS</string>
|
||||||
|
<key>CFBundleInfoDictionaryVersion</key>
|
||||||
|
<string>6.0</string>
|
||||||
|
<key>CFBundlePackageType</key>
|
||||||
|
<string>dSYM</string>
|
||||||
|
<key>CFBundleSignature</key>
|
||||||
|
<string>????</string>
|
||||||
|
<key>CFBundleShortVersionString</key>
|
||||||
|
<string>1.0</string>
|
||||||
|
<key>CFBundleVersion</key>
|
||||||
|
<string>1</string>
|
||||||
|
</dict>
|
||||||
|
</plist>
|
||||||
|
|
@ -0,0 +1,5 @@
|
||||||
|
---
|
||||||
|
triple: 'arm64-apple-darwin'
|
||||||
|
binary-path: AnasenMS
|
||||||
|
relocations: []
|
||||||
|
...
|
||||||
|
|
@ -15,6 +15,9 @@
|
||||||
|
|
||||||
#include "ClassSX3.h"
|
#include "ClassSX3.h"
|
||||||
#include "ClassPW.h"
|
#include "ClassPW.h"
|
||||||
|
#include "ClassQQQ.h"
|
||||||
|
|
||||||
|
//to not include certain wires in the simulation, pass the anode and cathode IDs to the constructor, e.g. for anode wires 5-10, pass anodeID1 = 5, anodeID2 = 10, and for cathode wires 20-25, pass cathodeID1 = 20, cathodeID2 = 25. To include all wires, pass -1 for all IDs.
|
||||||
|
|
||||||
class ANASEN{
|
class ANASEN{
|
||||||
public:
|
public:
|
||||||
|
|
@ -41,11 +44,15 @@ public:
|
||||||
|
|
||||||
PW * GetPW() {return pw;}
|
PW * GetPW() {return pw;}
|
||||||
SX3 * GetSX3() {return sx3;}
|
SX3 * GetSX3() {return sx3;}
|
||||||
|
QQQ * GetQQQ() {return qqq;}
|
||||||
|
TGeoManager * GetGeoManager() {return geom;}
|
||||||
|
TGeoVolume * GetWorldBox() {return worldBox;}
|
||||||
|
|
||||||
private:
|
private:
|
||||||
|
|
||||||
PW * pw;
|
PW * pw;
|
||||||
SX3 * sx3;
|
SX3 * sx3;
|
||||||
|
QQQ * qqq;
|
||||||
|
|
||||||
double sigmaA, sigmaC; // pw
|
double sigmaA, sigmaC; // pw
|
||||||
double sigmaW, sigmaL; // sx3
|
double sigmaW, sigmaL; // sx3
|
||||||
|
|
@ -73,7 +80,7 @@ inline ANASEN::ANASEN(){
|
||||||
|
|
||||||
pw = new PW();
|
pw = new PW();
|
||||||
sx3 = new SX3();
|
sx3 = new SX3();
|
||||||
|
qqq = new QQQ();
|
||||||
CalGeometry();
|
CalGeometry();
|
||||||
|
|
||||||
geom = nullptr;
|
geom = nullptr;
|
||||||
|
|
@ -106,17 +113,21 @@ inline void ANASEN::Construct3DModel(int anodeID1, int anodeID2, int cathodeID1,
|
||||||
geom = new TGeoManager("Detector", "ANASEN");
|
geom = new TGeoManager("Detector", "ANASEN");
|
||||||
|
|
||||||
//--- define some materials
|
//--- define some materials
|
||||||
TGeoMaterial *matVacuum = new TGeoMaterial("Vacuum", 0,0,0);
|
//TGeoMaterial *matVacuum = new TGeoMaterial("Vacuum", 0,0,0); //name, A, Z, density
|
||||||
|
TGeoMaterial *matHe = new TGeoMaterial("He", 4.0026, 2, 0.000861);
|
||||||
TGeoMaterial *matAl = new TGeoMaterial("Al", 26.98,13,2.7);
|
TGeoMaterial *matAl = new TGeoMaterial("Al", 26.98,13,2.7);
|
||||||
|
TGeoMaterial *matSi = new TGeoMaterial("Si", 28.085,14,2.33);
|
||||||
//--- define some media
|
//--- define some media
|
||||||
TGeoMedium *Vacuum = new TGeoMedium("Vacuum",1, matVacuum);
|
//TGeoMedium *Vacuum = new TGeoMedium("Vacuum",1, matVacuum); //name, number of materials, material
|
||||||
|
TGeoMedium *He = new TGeoMedium("He",2, matHe);
|
||||||
TGeoMedium *Al = new TGeoMedium("Root Material",2, matAl);
|
TGeoMedium *Al = new TGeoMedium("Root Material",2, matAl);
|
||||||
|
TGeoMedium *Si = new TGeoMedium("Si",3, matSi);
|
||||||
|
|
||||||
//--- make the top container volume
|
//--- make the top container volume
|
||||||
Double_t worldx = 200.; //mm
|
Double_t worldx = 200.; //mm
|
||||||
Double_t worldy = 200.; //mm
|
Double_t worldy = 200.; //mm
|
||||||
Double_t worldz = 200.; //mm
|
Double_t worldz = 200.; //mm
|
||||||
worldBox = geom->MakeBox("ROOT", Vacuum, worldx, worldy, worldz);
|
worldBox = geom->MakeBox("ROOT", He, worldx, worldy, worldz); // name, medium, x half-length, y half-length, z half-length
|
||||||
geom->SetTopVolume(worldBox);
|
geom->SetTopVolume(worldBox);
|
||||||
|
|
||||||
//--- making axis
|
//--- making axis
|
||||||
|
|
@ -181,7 +192,8 @@ inline void ANASEN::Construct3DModel(int anodeID1, int anodeID2, int cathodeID1,
|
||||||
new TGeoRotation("rot1", wirePhi , wireTheta, 0.)));
|
new TGeoRotation("rot1", wirePhi , wireTheta, 0.)));
|
||||||
}
|
}
|
||||||
|
|
||||||
TGeoVolume * sx3Det = geom->MakeBox("box", Al, 0.1, sx3->GetWidth()/2, sx3->GetLength()/2);
|
// Half-thickness is 0.5 mm so full Si thickness is 1.0 mm (0.1 cm).
|
||||||
|
TGeoVolume * sx3Det = geom->MakeBox("box", Si, 0.5, sx3->GetWidth()/2, sx3->GetLength()/2);
|
||||||
sx3Det->SetLineColor(kGreen+3);
|
sx3Det->SetLineColor(kGreen+3);
|
||||||
|
|
||||||
for( int i = 0; i < sx3->GetNumDet(); i++){
|
for( int i = 0; i < sx3->GetNumDet(); i++){
|
||||||
|
|
@ -228,6 +240,7 @@ inline void ANASEN::DrawTrack(TVector3 pos, TVector3 direction, bool drawEstima
|
||||||
|
|
||||||
pw->FindWireID(pos, direction);
|
pw->FindWireID(pos, direction);
|
||||||
sx3->FindSX3Pos(pos, direction);
|
sx3->FindSX3Pos(pos, direction);
|
||||||
|
qqq->FindQQQPos(pos, direction);
|
||||||
|
|
||||||
std::pair<short, short> wireID = pw->GetNearestID();
|
std::pair<short, short> wireID = pw->GetNearestID();
|
||||||
|
|
||||||
|
|
@ -241,7 +254,7 @@ inline void ANASEN::DrawTrack(TVector3 pos, TVector3 direction, bool drawEstima
|
||||||
Track->SetLineColor(kRed);
|
Track->SetLineColor(kRed);
|
||||||
worldBox->AddNode(Track, 1, new TGeoCombiTrans( pos.X(), pos.Y(), pos.Z(), new TGeoRotation("rotA", phi + 90, theta, 0.)));
|
worldBox->AddNode(Track, 1, new TGeoCombiTrans( pos.X(), pos.Y(), pos.Z(), new TGeoRotation("rotA", phi + 90, theta, 0.)));
|
||||||
|
|
||||||
TGeoVolume * startPos = geom->MakeSphere("startPos", 0, 0, 3);
|
TGeoVolume * startPos = geom->MakeSphere("startPos", 0, 0, 3);
|
||||||
startPos->SetLineColor(kBlack);
|
startPos->SetLineColor(kBlack);
|
||||||
worldBox->AddNode(startPos, 3, new TGeoCombiTrans( pos.X(), pos.Y(), pos.Z(), new TGeoRotation("rotA", 0, 0, 0.)));
|
worldBox->AddNode(startPos, 3, new TGeoCombiTrans( pos.X(), pos.Y(), pos.Z(), new TGeoRotation("rotA", 0, 0, 0.)));
|
||||||
|
|
||||||
|
|
|
||||||
1270
Armory/ClassData.h
Normal file
1270
Armory/ClassData.h
Normal file
File diff suppressed because it is too large
Load Diff
225
Armory/ClassPW.h
Normal file → Executable file
225
Armory/ClassPW.h
Normal file → Executable file
|
|
@ -2,10 +2,14 @@
|
||||||
#define ClassPW_h
|
#define ClassPW_h
|
||||||
|
|
||||||
#include <cstdio>
|
#include <cstdio>
|
||||||
|
#include <iostream>
|
||||||
#include <TMath.h>
|
#include <TMath.h>
|
||||||
#include <TVector3.h>
|
#include <TVector3.h>
|
||||||
#include <TRandom.h>
|
#include <TRandom.h>
|
||||||
|
|
||||||
|
std::vector<int> skipAnodes = {};
|
||||||
|
std::vector<int> skipCathodes = {};
|
||||||
|
|
||||||
struct PWHitInfo
|
struct PWHitInfo
|
||||||
{
|
{
|
||||||
std::pair<short, short> nearestWire; // anode, cathode
|
std::pair<short, short> nearestWire; // anode, cathode
|
||||||
|
|
@ -61,6 +65,14 @@ public:
|
||||||
double GetTrackPhi() const { return trackVec.Phi(); }
|
double GetTrackPhi() const { return trackVec.Phi(); }
|
||||||
double GetZ0();
|
double GetZ0();
|
||||||
|
|
||||||
|
inline std::tuple<std::pair<TVector3, TVector3>, double, double, double> GetPseudoWire(const std::vector<std::tuple<int,double,double>>& cluster, std::string type);
|
||||||
|
|
||||||
|
inline std::tuple<TVector3,double,double,double,double,double,double,double>
|
||||||
|
FindCrossoverProperties(const std::vector<std::tuple<int,double,double>>& a_cluster, const std::vector<std::tuple<int,double,double>>& c_cluster);
|
||||||
|
|
||||||
|
inline std::vector<std::vector<std::tuple<int,double,double>>>
|
||||||
|
Make_Clusters(std::unordered_map<int,std::tuple<int,double,double>> wireEvents);
|
||||||
|
|
||||||
int GetNumWire() const { return nWire; }
|
int GetNumWire() const { return nWire; }
|
||||||
double GetDeltaAngle() const { return dAngle; }
|
double GetDeltaAngle() const { return dAngle; }
|
||||||
double GetAnodeLength() const { return anodeLength; }
|
double GetAnodeLength() const { return anodeLength; }
|
||||||
|
|
@ -82,7 +94,8 @@ public:
|
||||||
void ConstructGeo();
|
void ConstructGeo();
|
||||||
void FindWireID(TVector3 pos, TVector3 direction, bool verbose = false);
|
void FindWireID(TVector3 pos, TVector3 direction, bool verbose = false);
|
||||||
void CalTrack(TVector3 sx3Pos, int anodeID, int cathodeID, bool verbose = false);
|
void CalTrack(TVector3 sx3Pos, int anodeID, int cathodeID, bool verbose = false);
|
||||||
void CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA = 0, double sigmaC = 0, bool verbose = false);
|
//void CalTrack2(TVector3 sx3Pos, TVector3 anodeInt, bool verbose = false);
|
||||||
|
void CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA, double sigmaC, bool verbose);
|
||||||
|
|
||||||
void Print()
|
void Print()
|
||||||
{
|
{
|
||||||
|
|
@ -105,7 +118,8 @@ private:
|
||||||
|
|
||||||
const int nWire = 24;
|
const int nWire = 24;
|
||||||
const int wireShift = 3;
|
const int wireShift = 3;
|
||||||
const float zLen = 380; // mm
|
//const float zLen = 380; // mm
|
||||||
|
const float zLen = 348.6; // mm
|
||||||
const float radiusA = 37;
|
const float radiusA = 37;
|
||||||
const float radiusC = 43;
|
const float radiusC = 43;
|
||||||
|
|
||||||
|
|
@ -154,24 +168,183 @@ inline void PW::ConstructGeo()
|
||||||
-zLen / 2);
|
-zLen / 2);
|
||||||
An.push_back(p1);
|
An.push_back(p1);
|
||||||
|
|
||||||
// Cathod rotate left-hand
|
// Cathod rotate left-hand with the 3 wire offset accounted for (+1 from the calculated offset from the PC coincidence spectrum)
|
||||||
q1.first.SetXYZ(radiusC * TMath::Cos(TMath::TwoPi() / nWire * (i) + TMath::PiOver2()),
|
q1.first.SetXYZ(radiusC * TMath::Cos(TMath::TwoPi() / nWire * (i + wireShift + 1) + TMath::PiOver2()),
|
||||||
radiusC * TMath::Sin(TMath::TwoPi() / nWire * (i) + TMath::PiOver2()),
|
radiusC * TMath::Sin(TMath::TwoPi() / nWire * (i + wireShift + 1) + TMath::PiOver2()),
|
||||||
zLen / 2);
|
zLen / 2);
|
||||||
q1.second.SetXYZ(radiusC * TMath::Cos(TMath::TwoPi() / nWire * (i - wireShift) + TMath::PiOver2()),
|
q1.second.SetXYZ(radiusC * TMath::Cos(TMath::TwoPi() / nWire * (i + 1) + TMath::PiOver2()),
|
||||||
radiusC * TMath::Sin(TMath::TwoPi() / nWire * (i - wireShift) + TMath::PiOver2()),
|
radiusC * TMath::Sin(TMath::TwoPi() / nWire * (i + 1) + TMath::PiOver2()),
|
||||||
-zLen / 2);
|
-zLen / 2);
|
||||||
Ca.push_back(q1);
|
Ca.push_back(q1);
|
||||||
}
|
}
|
||||||
|
// correcting for the fact that the order of the cathode wires is reversed
|
||||||
|
std::reverse(Ca.begin(), Ca.end());
|
||||||
|
// adjusting for the 3 wire offset, the rbegin and rend are used as the rotation of the wires is done in the opposite direction i.e. 1,2,3 -> 3,1,2
|
||||||
|
// NOT NECESSARY ANY MORE, HAS BEEN IMCORPORATED INTO THE WIREOFFSET IN THE BEGINNING
|
||||||
|
// std::rotate(Ca.rbegin(), Ca.rbegin() + 4, Ca.rend());
|
||||||
|
|
||||||
dAngle = wireShift * TMath::TwoPi() / nWire;
|
dAngle = wireShift * TMath::TwoPi() / nWire;
|
||||||
anodeLength = TMath::Sqrt(zLen * zLen + TMath::Power(2 * radiusA * TMath::Sin(dAngle / 2), 2));
|
anodeLength = TMath::Sqrt(zLen * zLen + TMath::Power(2 * radiusA * TMath::Sin(dAngle / 2), 2));
|
||||||
cathodeLength = TMath::Sqrt(zLen * zLen + TMath::Power(2 * radiusC * TMath::Sin(dAngle / 2), 2));
|
cathodeLength = TMath::Sqrt(zLen * zLen + TMath::Power(2 * radiusC * TMath::Sin(dAngle / 2), 2)); //chord length subtending an angle alpha is 2rsin(alpha/2)
|
||||||
|
}
|
||||||
|
|
||||||
|
inline std::vector<std::vector<std::tuple<int,double,double>>>
|
||||||
|
PW::Make_Clusters(std::unordered_map<int,std::tuple<int,double,double>> wireEvents) {
|
||||||
|
std::vector<std::vector<std::tuple<int,double,double>>> wireClusters;
|
||||||
|
std::vector<std::tuple<int,double,double>> wireCluster;
|
||||||
|
//TODO: Write a macro once, call it twice
|
||||||
|
int wirecount=0;
|
||||||
|
while(wirecount < 24) {
|
||||||
|
if(wireEvents.find(wirecount)==wireEvents.end()) {
|
||||||
|
wirecount++;
|
||||||
|
continue;
|
||||||
|
}
|
||||||
|
wireCluster.clear();
|
||||||
|
int ctr2=wirecount;
|
||||||
|
do {
|
||||||
|
wireCluster.emplace_back(wireEvents[ctr2]);
|
||||||
|
ctr2+=1;
|
||||||
|
if(ctr2==24 || ctr2-wirecount == 7) break; //loose logic, needs to be looked at.
|
||||||
|
} while(wireEvents.find(ctr2)!=wireEvents.end());
|
||||||
|
wireClusters.push_back(std::move(wireCluster));
|
||||||
|
wirecount = ctr2; //we already dealt with wires until the last value of ctr2
|
||||||
|
}
|
||||||
|
|
||||||
|
if(wireClusters.size() > 1) { //Deal with wraparound if required
|
||||||
|
auto first_cluster = wireClusters.front(); //front and back provide references to the elements themselves. less copy, can modify etc
|
||||||
|
auto last_cluster = wireClusters.back();
|
||||||
|
if(std::get<0>(last_cluster.back())==23 && std::get<0>(first_cluster.front())==0) {
|
||||||
|
last_cluster.insert(last_cluster.end(),first_cluster.begin(),first_cluster.end());
|
||||||
|
}
|
||||||
|
wireClusters.erase(wireClusters.begin()); //canonically, erase() needs an iterator, hence begin() not front()
|
||||||
|
//TODO: Can also deal with 'gaps' of missing wires similarly. end of one segment and beginning of another segment will be separated by missing wire --> combine the two
|
||||||
|
//TODO: Also needs some development regarding the time-correlation. Don't put wires in the same cluster if they aren't time coincident
|
||||||
|
}
|
||||||
|
return wireClusters;
|
||||||
|
|
||||||
|
/*if(aClusters.size()>1 || cClusters.size() > 1) {
|
||||||
|
std::cout << " ============== " << std::endl;
|
||||||
|
}
|
||||||
|
if(aClusters.size()>1 && cClusters.size() >=1) {
|
||||||
|
std::cout << aClusters.size() << " new anode clusters ----> " << std::endl;
|
||||||
|
int cc=1;
|
||||||
|
for(auto ac : aClusters) {
|
||||||
|
std::cout << " Cluster " << cc << std::endl;
|
||||||
|
double first_ts = std::get<2>(ac.at(0));
|
||||||
|
for(auto item : ac) {
|
||||||
|
std::cout << " \t" << std::get<0>(item) << " " << std::get<1>(item) << " " << std::get<2>(item)-first_ts << std::endl;
|
||||||
|
}
|
||||||
|
std::cout << " ------" << std::endl;
|
||||||
|
cc++;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
if(cClusters.size()>=1 ) {
|
||||||
|
std::cout << cClusters.size() << " new cathode clusters ----> " << std::endl;
|
||||||
|
int cc=1;
|
||||||
|
for(auto ac : cClusters) {
|
||||||
|
std::cout << " Cluster " << cc << std::endl;
|
||||||
|
double first_ts = std::get<2>(ac.at(0));
|
||||||
|
for(auto item : ac) {
|
||||||
|
std::cout << " \t" << std::get<0>(item) << " " << std::get<1>(item) << " " << std::get<2>(item)-first_ts << std::endl;
|
||||||
|
}
|
||||||
|
std::cout << " ------" << std::endl;
|
||||||
|
cc++;
|
||||||
|
}
|
||||||
|
} */
|
||||||
|
}
|
||||||
|
|
||||||
|
inline std::tuple<std::pair<TVector3, TVector3>, double, double, double>
|
||||||
|
PW::GetPseudoWire(const std::vector<std::tuple<int,double,double>>& cluster, std::string type) {
|
||||||
|
std::pair<TVector3,TVector3> avgvec = std::pair(TVector3(0,0,0),TVector3(0,0,0));
|
||||||
|
double sumEnergy = 0;
|
||||||
|
double maxEnergy = 0;
|
||||||
|
double tsMaxEnergy = 0;
|
||||||
|
if(type=="ANODE") {
|
||||||
|
//if(cluster.size()>1) std::cout << " -------anodes" << std::endl;
|
||||||
|
for( auto wire : cluster) {
|
||||||
|
avgvec.first += std::get<1>(wire)*TVector3(An.at(std::get<0>(wire)).first.X(), An.at(std::get<0>(wire)).first.Y(), 0) ;
|
||||||
|
avgvec.second += std::get<1>(wire)*TVector3(An.at(std::get<0>(wire)).second.X(), An.at(std::get<0>(wire)).second.Y(), 0);
|
||||||
|
sumEnergy += std::get<1>(wire);
|
||||||
|
if(std::get<1>(wire) > maxEnergy) {
|
||||||
|
maxEnergy = std::get<1>(wire);
|
||||||
|
tsMaxEnergy = std::get<2>(wire);
|
||||||
|
}
|
||||||
|
/*if(cluster.size()>1) {
|
||||||
|
std::cout << "\t\t ch:" << std::get<0>(wire) << " " << std::get<1>(wire) << " " << std::get<2>(wire) << std::endl;
|
||||||
|
std::cout << "\t\t w1(r,phi,z):" << An.at(std::get<0>(wire)).first.Perp() << " " << An.at(std::get<0>(wire)).first.Phi()*180/M_PI << " " << An.at(std::get<0>(wire)).first.Z() << std::endl;
|
||||||
|
std::cout << "\t\t w2(r,phi,z):" << An.at(std::get<0>(wire)).second.Perp() << " " << An.at(std::get<0>(wire)).second.Phi()*180/M_PI << " " << An.at(std::get<0>(wire)).second.Z() << std::endl;
|
||||||
|
}*/
|
||||||
|
}
|
||||||
|
avgvec.first = avgvec.first*(1.0/sumEnergy);
|
||||||
|
avgvec.second = avgvec.second*(1.0/sumEnergy);
|
||||||
|
double phi1 = avgvec.first.Phi();
|
||||||
|
double phi2 = avgvec.second.Phi();
|
||||||
|
avgvec.first.SetXYZ(radiusA*TMath::Cos(phi1), radiusA*TMath::Sin(phi1), zLen/2);
|
||||||
|
avgvec.second.SetXYZ(radiusA*TMath::Cos(phi2), radiusA*TMath::Sin(phi2), -zLen/2);
|
||||||
|
/*if(cluster.size()>1) {
|
||||||
|
std::cout << "\t\t avg1(r,phi,z):" << avgvec.first.Perp() << " " << avgvec.first.Phi()*180/M_PI << " " << avgvec.first.Z() << std::endl;
|
||||||
|
std::cout << "\t\t avg2(r,phi,z):" << avgvec.second.Perp() << " " << avgvec.second.Phi()*180/M_PI << " " << avgvec.second.Z() << std::endl;
|
||||||
|
}*/
|
||||||
|
} else if(type =="CATHODE") {
|
||||||
|
for( auto wire : cluster) {
|
||||||
|
avgvec.first += std::get<1>(wire)*TVector3(Ca.at(std::get<0>(wire)).first.X(), Ca.at(std::get<0>(wire)).first.Y(), 0) ;
|
||||||
|
avgvec.second += std::get<1>(wire)*TVector3(Ca.at(std::get<0>(wire)).second.X(), Ca.at(std::get<0>(wire)).second.Y(), 0);
|
||||||
|
sumEnergy += std::get<1>(wire);
|
||||||
|
if(std::get<1>(wire) > maxEnergy) {
|
||||||
|
maxEnergy = std::get<1>(wire);
|
||||||
|
tsMaxEnergy = std::get<2>(wire);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
avgvec.first = avgvec.first*(1.0/sumEnergy);
|
||||||
|
avgvec.second = avgvec.second*(1.0/sumEnergy);
|
||||||
|
double phi1 = avgvec.first.Phi();
|
||||||
|
double phi2 = avgvec.second.Phi();
|
||||||
|
avgvec.first.SetXYZ(radiusC*TMath::Cos(phi1), radiusC*TMath::Sin(phi1), zLen/2);
|
||||||
|
avgvec.second.SetXYZ(radiusC*TMath::Cos(phi2), radiusC*TMath::Sin(phi2), -zLen/2);
|
||||||
|
}
|
||||||
|
return std::tuple(avgvec, sumEnergy, maxEnergy, tsMaxEnergy);
|
||||||
|
}
|
||||||
|
|
||||||
|
inline std::tuple<TVector3,double,double,double,double,double,double,double> PW::FindCrossoverProperties(const std::vector<std::tuple<int,double,double>>& a_cluster,
|
||||||
|
const std::vector<std::tuple<int,double,double>>& c_cluster) {
|
||||||
|
//std::pair<TVector3, TVector3> apwire = GetPseudoWire(a_cluster,"ANODE",anodeSumE);
|
||||||
|
//std::pair<TVector3, TVector3> cpwire = GetPseudoWire(c_cluster,"CATHODE",cathodeSumE);
|
||||||
|
auto [apwire, apSumE, apMaxE, apTSMaxE] = GetPseudoWire(a_cluster,"ANODE");
|
||||||
|
auto [cpwire, cpSumE, cpMaxE, cpTSMaxE] = GetPseudoWire(c_cluster,"CATHODE");
|
||||||
|
|
||||||
|
TVector3 crossover;
|
||||||
|
crossover.Clear();
|
||||||
|
TVector3 a, c, diff;
|
||||||
|
double a2, ac, c2, adiff, cdiff, denom, alpha=0;
|
||||||
|
|
||||||
|
if(apSumE && cpSumE) {
|
||||||
|
a = apwire.first - apwire.second;
|
||||||
|
c = cpwire.first - cpwire.second;
|
||||||
|
diff = apwire.first - cpwire.first;
|
||||||
|
a2 = a.Dot(a);
|
||||||
|
c2 = c.Dot(c);
|
||||||
|
ac = a.Dot(c);
|
||||||
|
adiff = a.Dot(diff);
|
||||||
|
cdiff = c.Dot(diff);
|
||||||
|
denom = a2 * c2 - ac * ac;
|
||||||
|
alpha = (ac * cdiff - c2 * adiff) / denom;
|
||||||
|
crossover = apwire.first + alpha*a;
|
||||||
|
if(crossover.z() < -190 || crossover.Z() > 190 ) {
|
||||||
|
alpha = 9999999;
|
||||||
|
apSumE=-1; cpSumE=-1;
|
||||||
|
apMaxE=-1; cpMaxE=-1;
|
||||||
|
apTSMaxE=-1; cpTSMaxE=-1;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
//std::cout << apSumE << " " << cpSumE << " " << " " << crossover.Perp() << std::endl;
|
||||||
|
return std::tuple(crossover,alpha,apSumE,cpSumE,apMaxE,cpMaxE,apTSMaxE,cpTSMaxE);
|
||||||
}
|
}
|
||||||
|
|
||||||
inline void PW::FindWireID(TVector3 pos, TVector3 direction, bool verbose)
|
inline void PW::FindWireID(TVector3 pos, TVector3 direction, bool verbose)
|
||||||
{
|
{
|
||||||
|
//to skip certain wires, add their IDs to the skipAnodes and skipCathodes vectors above, then in this function, add a check to set the distance to a large number if the wire ID is in the skip list, e.g. if(std::find(skipAnodes.begin(), skipAnodes.end(), i) != skipAnodes.end()) { disA = 99999999; } to skip anode wire i, and if(std::find(skipCathodes.begin(), skipCathodes.end(), i) != skipCathodes.end()) { disC = 99999999; } to skip cathode wire i.
|
||||||
|
//do this on the line before the line "if (phiS < phi && phi < phiL)" in the anode and cathode loops below, respectively, so that the wires will be marked as invalid and not used in track reconstruction
|
||||||
hitInfo.Clear();
|
hitInfo.Clear();
|
||||||
double phi = direction.Phi();
|
double phi = direction.Phi();
|
||||||
|
|
||||||
|
|
@ -186,8 +359,10 @@ inline void PW::FindWireID(TVector3 pos, TVector3 direction, bool verbose)
|
||||||
phiL = phiL + TMath::TwoPi();
|
phiL = phiL + TMath::TwoPi();
|
||||||
if (phi < 0 && phiS > phiL)
|
if (phi < 0 && phiS > phiL)
|
||||||
phiS = phiS - TMath::TwoPi();
|
phiS = phiS - TMath::TwoPi();
|
||||||
|
if(std::find(skipAnodes.begin(), skipAnodes.end(), i) != skipAnodes.end()) { // check if the current anode wire ID is in the skipAnodes vector
|
||||||
if (phiS < phi && phi < phiL)
|
disA = 99999999;
|
||||||
|
}
|
||||||
|
if (phiS < phi && phi < phiL) // check if the track direction is within the angular range of the wire
|
||||||
{
|
{
|
||||||
disA = Distance(pos, pos + direction, An[i].first, An[i].second);
|
disA = Distance(pos, pos + direction, An[i].first, An[i].second);
|
||||||
if (disA < hitInfo.nearestDist.first)
|
if (disA < hitInfo.nearestDist.first)
|
||||||
|
|
@ -201,6 +376,9 @@ inline void PW::FindWireID(TVector3 pos, TVector3 direction, bool verbose)
|
||||||
phiS = Ca[i].second.Phi() - TMath::PiOver4();
|
phiS = Ca[i].second.Phi() - TMath::PiOver4();
|
||||||
phiL = Ca[i].first.Phi() + TMath::PiOver4();
|
phiL = Ca[i].first.Phi() + TMath::PiOver4();
|
||||||
// printf("C%2d: %f %f\n", i, phiS * TMath::RadToDeg(), phiL * TMath::RadToDeg());
|
// printf("C%2d: %f %f\n", i, phiS * TMath::RadToDeg(), phiL * TMath::RadToDeg());
|
||||||
|
if(std::find(skipCathodes.begin(), skipCathodes.end(), i) != skipCathodes.end()) { // check if the current cathode wire ID is in the skipCathodes vector
|
||||||
|
disC = 99999999;
|
||||||
|
}
|
||||||
if (phi > 0 && phiS > phiL)
|
if (phi > 0 && phiS > phiL)
|
||||||
phiL = phiL + TMath::TwoPi();
|
phiL = phiL + TMath::TwoPi();
|
||||||
if (phi < 0 && phiS > phiL)
|
if (phi < 0 && phiS > phiL)
|
||||||
|
|
@ -278,6 +456,7 @@ inline void PW::CalTrack(TVector3 sx3Pos, int anodeID, int cathodeID, bool verbo
|
||||||
printf("Theta, Phi = %f, %f \n", trackVec.Theta() * TMath::RadToDeg(), trackVec.Phi() * TMath::RadToDeg());
|
printf("Theta, Phi = %f, %f \n", trackVec.Theta() * TMath::RadToDeg(), trackVec.Phi() * TMath::RadToDeg());
|
||||||
}
|
}
|
||||||
|
|
||||||
|
|
||||||
inline void PW::CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA, double sigmaC, bool verbose)
|
inline void PW::CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA, double sigmaC, bool verbose)
|
||||||
{
|
{
|
||||||
|
|
||||||
|
|
@ -315,15 +494,27 @@ inline void PW::CalTrack2(TVector3 sx3Pos, PWHitInfo hitInfo, double sigmaA, dou
|
||||||
printf("Theta, Phi = %f, %f \n", trackVec.Theta() * TMath::RadToDeg(), trackVec.Phi() * TMath::RadToDeg());
|
printf("Theta, Phi = %f, %f \n", trackVec.Theta() * TMath::RadToDeg(), trackVec.Phi() * TMath::RadToDeg());
|
||||||
}
|
}
|
||||||
|
|
||||||
|
/*inline TVector3 PW::CalTrack3(TVector3 siPos, TVector3 anodeInt, bool verbose)
|
||||||
|
{
|
||||||
|
|
||||||
|
TVector3 v = anodeInt-siPos;
|
||||||
|
double t_minimum = -1.0*(siPos.X()*v.X()+siPos.Y()*v.Y())/(v.X()*v.X()+v.Y()*v.Y());
|
||||||
|
TVector3 vector_closest_to_z = siPos + t_minimum*v;
|
||||||
|
|
||||||
|
return vector_closest_to_z;
|
||||||
|
if (verbose)
|
||||||
|
printf("X slope = %f and Y slope = %f \n", mx, my);
|
||||||
|
}*/
|
||||||
|
|
||||||
inline double PW::GetZ0()
|
inline double PW::GetZ0()
|
||||||
{
|
{
|
||||||
|
|
||||||
double x = trackPos.X();
|
[[maybe_unused]]double x = trackPos.X();
|
||||||
double y = trackPos.Y();
|
[[maybe_unused]]double y = trackPos.Y();
|
||||||
double rho = TMath::Sqrt(x * x + y * y);
|
[[maybe_unused]]double rho = TMath::Sqrt(x * x + y * y);
|
||||||
double theta = trackVec.Theta();
|
[[maybe_unused]]double theta = trackVec.Theta();
|
||||||
|
|
||||||
return trackPos.Z() - rho / TMath::Tan(theta);
|
return trackVec.Z();
|
||||||
}
|
}
|
||||||
|
|
||||||
#endif
|
#endif
|
||||||
|
|
|
||||||
280
Armory/ClassQQQ.h
Normal file
280
Armory/ClassQQQ.h
Normal file
|
|
@ -0,0 +1,280 @@
|
||||||
|
#ifndef ClassQQQ_h
|
||||||
|
#define ClassQQQ_h
|
||||||
|
|
||||||
|
#include <cstdio>
|
||||||
|
#include <TMath.h>
|
||||||
|
#include <TVector3.h>
|
||||||
|
#include <TRandom.h>
|
||||||
|
#include "TGeoManager.h"
|
||||||
|
#include "TGeoVolume.h"
|
||||||
|
#include "TGeoBBox.h"
|
||||||
|
|
||||||
|
class QQQ{
|
||||||
|
public:
|
||||||
|
QQQ(){Clear();};
|
||||||
|
~QQQ(){}
|
||||||
|
|
||||||
|
short GetID() const {return id;}
|
||||||
|
short GetChUp() const {return chUp;}
|
||||||
|
short GetChDn() const {return chDn;}
|
||||||
|
short GetChBk() const {return chBk;}
|
||||||
|
|
||||||
|
TVector3 GetHitPos() const {return hitPos;}
|
||||||
|
TVector3 GetHitPosWithSigma(double sigmaY_mm, double sigmaZ_mm);
|
||||||
|
|
||||||
|
double GetZFrac() const {return zFrac;} // range from -0.5 to 0.5
|
||||||
|
|
||||||
|
void Clear();
|
||||||
|
void ConstructGeo();
|
||||||
|
void FindQQQPos(TVector3 pos, TVector3 direction, bool verbose = false);
|
||||||
|
void CalQQQPos(unsigned short ID, unsigned short chUp, unsigned short chDown, unsigned short chBack, float eUp, float eDown);
|
||||||
|
|
||||||
|
double GetNumDet() const {return numDet;}
|
||||||
|
|
||||||
|
void Print(){
|
||||||
|
if( id == -1 ){
|
||||||
|
printf("Did not hit any QQQ.\n");
|
||||||
|
}else{
|
||||||
|
printf("ID: %d, U,D,B: %d %d %d| zFrac : %.2f\n", id, chUp, chDn, chBk, zFrac);
|
||||||
|
printf("Hit Pos: %.2f, %.2f, %.2f\n", hitPos.X(), hitPos.Y(), hitPos.Z());
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
// void CalZFrac(){
|
||||||
|
// zFrac = (eUp - eDn)/(eUp + eDn);
|
||||||
|
// }
|
||||||
|
|
||||||
|
private:
|
||||||
|
|
||||||
|
const int numDet = 4;
|
||||||
|
const float qqqR1 = 50;
|
||||||
|
const float qqqR2 = 100;
|
||||||
|
const float qqqZPos = 23 + 75 + 30;
|
||||||
|
|
||||||
|
short id; // -1 when no hit
|
||||||
|
short chUp;
|
||||||
|
short chDn;
|
||||||
|
short chBk;
|
||||||
|
|
||||||
|
double zFrac; // from +1 (downstream) to -1 (upstream)
|
||||||
|
|
||||||
|
double eUp;
|
||||||
|
double eDn;
|
||||||
|
double eBk;
|
||||||
|
|
||||||
|
TVector3 hitPos;
|
||||||
|
|
||||||
|
TGeoManager *geom;
|
||||||
|
TGeoVolume *worldBox;
|
||||||
|
TGeoMedium *Al;
|
||||||
|
|
||||||
|
// helper function to calculate intersection between line segments, return pair of (fraction along line1, fraction along line2) where the intersection occurs. If no intersection, return (0, -1).
|
||||||
|
std::pair<double, double> Intersect(TVector3 p1, TVector3 p2, TVector3 q1, TVector3 q2, bool verbose){
|
||||||
|
|
||||||
|
//see https://nukephysik101.wordpress.com/2023/12/30/intersect-between-2-line-segments/
|
||||||
|
//zero all z-component
|
||||||
|
TVector3 a0 = p1; a0.SetZ(0);
|
||||||
|
TVector3 a1 = p2; a1.SetZ(0);
|
||||||
|
|
||||||
|
TVector3 b0 = q1; b0.SetZ(0);
|
||||||
|
TVector3 b1 = q2; b1.SetZ(0);
|
||||||
|
|
||||||
|
double h = 0, k = 0; // placeholder values, implementation of intersection logic
|
||||||
|
if( verbose ) printf(" ----h, k : %f, %f\n", h, k);
|
||||||
|
|
||||||
|
return std::pair<double,double>(h,k);
|
||||||
|
}
|
||||||
|
|
||||||
|
};
|
||||||
|
|
||||||
|
inline void QQQ::Clear(){
|
||||||
|
id = -1;
|
||||||
|
chUp = -1;
|
||||||
|
chDn = -1;
|
||||||
|
chBk = -1;
|
||||||
|
zFrac = TMath::QuietNaN();
|
||||||
|
|
||||||
|
eUp = TMath::QuietNaN();
|
||||||
|
eDn = TMath::QuietNaN();
|
||||||
|
eBk = TMath::QuietNaN();
|
||||||
|
}
|
||||||
|
|
||||||
|
inline void QQQ::ConstructGeo(){
|
||||||
|
TGeoVolume *qqq = geom->MakeTubs("qqq", Al, qqqR1, qqqR2, 0.5, 5, 85); // thickness 0.5 mm, phi from 5 to 90 deg in each quadrant
|
||||||
|
qqq->SetLineColor(7);
|
||||||
|
for( int i = 0; i < 4; i++){
|
||||||
|
worldBox->AddNode(qqq, i+1, new TGeoCombiTrans( 0,
|
||||||
|
0,
|
||||||
|
qqqZPos,
|
||||||
|
new TGeoRotation("rot1", 360/4 * (i), 0., 0.))); //arguments are (name, material, inner radius, outer radius, half length in z, start phi, delta phi
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
inline void QQQ::FindQQQPos(TVector3 pos,
|
||||||
|
TVector3 direction,
|
||||||
|
bool verbose){
|
||||||
|
|
||||||
|
id = -1;
|
||||||
|
chUp = -1;
|
||||||
|
chDn = -1;
|
||||||
|
chBk = -1;
|
||||||
|
|
||||||
|
if( TMath::Abs(direction.Z()) < 1e-10 ) return;
|
||||||
|
|
||||||
|
double t = (qqqZPos - pos.Z()) / direction.Z();
|
||||||
|
|
||||||
|
if( t <= 0 ) return;
|
||||||
|
|
||||||
|
hitPos = pos + t * direction;
|
||||||
|
|
||||||
|
//--------------------------------------------
|
||||||
|
// Cylindrical coordinates
|
||||||
|
//--------------------------------------------
|
||||||
|
|
||||||
|
double x = hitPos.X();
|
||||||
|
double y = hitPos.Y();
|
||||||
|
|
||||||
|
double r = TMath::Sqrt(x*x + y*y);
|
||||||
|
|
||||||
|
if( r < qqqR1 || r > qqqR2 ) return;
|
||||||
|
|
||||||
|
double phi = hitPos.Phi() * TMath::RadToDeg();
|
||||||
|
|
||||||
|
if( phi < 0 ) phi += 360.0;
|
||||||
|
|
||||||
|
//--------------------------------------------
|
||||||
|
// Determine detector ID
|
||||||
|
//--------------------------------------------
|
||||||
|
|
||||||
|
id = -1;
|
||||||
|
|
||||||
|
for(int det = 0; det < 4; det++){
|
||||||
|
|
||||||
|
double phiMin = det*90.0 + 5.0;
|
||||||
|
double phiMax = phiMin + 85.0;
|
||||||
|
|
||||||
|
if( phi >= phiMin && phi <= phiMax ){
|
||||||
|
id = det;
|
||||||
|
break;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
if( id < 0 ) return;
|
||||||
|
|
||||||
|
const double ringWidth =
|
||||||
|
(qqqR2 - qqqR1)/32.0;
|
||||||
|
|
||||||
|
int ring =
|
||||||
|
(int)((r - qqqR1)/ringWidth);
|
||||||
|
|
||||||
|
if( ring < 0 ) ring = 0;
|
||||||
|
if( ring > 31 ) ring = 31;
|
||||||
|
|
||||||
|
//--------------------------------------------
|
||||||
|
// Sector number (4 strips)
|
||||||
|
//--------------------------------------------
|
||||||
|
|
||||||
|
double localPhi =
|
||||||
|
phi - (id*90.0 + 5.0);
|
||||||
|
|
||||||
|
int sector =
|
||||||
|
(int)(localPhi/(85.0/4.0));
|
||||||
|
|
||||||
|
if( sector < 0 ) sector = 0;
|
||||||
|
if( sector > 3 ) sector = 3;
|
||||||
|
|
||||||
|
chBk = ring;
|
||||||
|
chDn = sector;
|
||||||
|
chUp = sector;
|
||||||
|
|
||||||
|
zFrac = 0.0;
|
||||||
|
|
||||||
|
if(verbose){
|
||||||
|
|
||||||
|
printf("\nQQQ Hit\n");
|
||||||
|
printf(" ID = %d\n", id);
|
||||||
|
printf(" Ring = %d\n", ring);
|
||||||
|
printf(" Sector = %d\n", sector);
|
||||||
|
printf(" r = %.2f mm\n", r);
|
||||||
|
printf(" phi = %.2f deg\n", phi);
|
||||||
|
|
||||||
|
hitPos.Print();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
/*s
|
||||||
|
inline TVector3 QQQ::GetHitPosWithSigma(double sigmaY_mm, double sigmaZ_mm){
|
||||||
|
|
||||||
|
double phi = SNorml[id%numDet].Phi();
|
||||||
|
|
||||||
|
TVector3 haha = hitPos;
|
||||||
|
haha.RotateZ(-phi);
|
||||||
|
|
||||||
|
double y = haha.Y() + gRandom->Gaus(0, sigmaY_mm);
|
||||||
|
if( sigmaY_mm < 0 ){
|
||||||
|
double deltaW = width/4;
|
||||||
|
y = TMath::Floor((haha.Y()-deltaW)/deltaW)*deltaW + deltaW*1.5; // when ever land on each strip, set the position to be center of the strip.
|
||||||
|
if( y >= 25 ) y = 15;
|
||||||
|
}
|
||||||
|
|
||||||
|
double z = haha.Z() + gRandom->Gaus(0, sigmaZ_mm);
|
||||||
|
if( sigmaZ_mm < 0 ){
|
||||||
|
haha.Z();
|
||||||
|
double delta = length/4;
|
||||||
|
int sign = z > 0 ? 1 : -1;
|
||||||
|
z = TMath::Floor( (abs(z)-gap/2)/delta )*delta + 0.5 * delta + gap/2;
|
||||||
|
if( z >= 107.375 ) z = 88.625;
|
||||||
|
z = sign * z;
|
||||||
|
}
|
||||||
|
|
||||||
|
haha.SetY(y);
|
||||||
|
haha.SetZ(z);
|
||||||
|
haha.RotateZ(phi);
|
||||||
|
|
||||||
|
return haha;
|
||||||
|
|
||||||
|
}*/
|
||||||
|
|
||||||
|
|
||||||
|
inline void QQQ::CalQQQPos(unsigned short ID,
|
||||||
|
unsigned short chUp,
|
||||||
|
unsigned short chDown,
|
||||||
|
unsigned short chBack,
|
||||||
|
float eUp,
|
||||||
|
float eDown){
|
||||||
|
|
||||||
|
hitPos.Clear();
|
||||||
|
|
||||||
|
if( ID > 3 ) return;
|
||||||
|
if( chBack > 31 ) return;
|
||||||
|
if( chDown > 3 ) return;
|
||||||
|
|
||||||
|
const double ringWidth =
|
||||||
|
(qqqR2 - qqqR1)/32.0;
|
||||||
|
|
||||||
|
double r =
|
||||||
|
qqqR1 + (chBack + 0.5)*ringWidth;
|
||||||
|
|
||||||
|
const double sectorWidth =
|
||||||
|
85.0/4.0;
|
||||||
|
|
||||||
|
double phiDeg =
|
||||||
|
ID*90.0 + 5.0 +
|
||||||
|
(chDown + 0.5)*sectorWidth;
|
||||||
|
|
||||||
|
double phi =
|
||||||
|
phiDeg * TMath::DegToRad();
|
||||||
|
|
||||||
|
hitPos.SetXYZ(
|
||||||
|
r*TMath::Cos(phi),
|
||||||
|
r*TMath::Sin(phi),
|
||||||
|
qqqZPos
|
||||||
|
);
|
||||||
|
|
||||||
|
id = ID;
|
||||||
|
chBk = chBack;
|
||||||
|
chDn = chDown;
|
||||||
|
chUp = chUp;
|
||||||
|
}
|
||||||
|
|
||||||
|
#endif
|
||||||
|
|
@ -57,8 +57,8 @@ private:
|
||||||
const int numDet = 12;
|
const int numDet = 12;
|
||||||
const float radius = 88;
|
const float radius = 88;
|
||||||
const float width = 40;
|
const float width = 40;
|
||||||
const float length = 75;
|
const float length = 75; // 75
|
||||||
const float gap = 46;
|
const float gap = 46; // 46
|
||||||
|
|
||||||
short id; // -1 when no hit
|
short id; // -1 when no hit
|
||||||
short chUp;
|
short chUp;
|
||||||
|
|
|
||||||
|
|
@ -16,7 +16,6 @@
|
||||||
#include "Isotope.h"
|
#include "Isotope.h"
|
||||||
|
|
||||||
class ReactionConfig{
|
class ReactionConfig{
|
||||||
|
|
||||||
public:
|
public:
|
||||||
|
|
||||||
ReactionConfig(){}
|
ReactionConfig(){}
|
||||||
|
|
@ -47,9 +46,9 @@ public:
|
||||||
std::vector<float> beamEx; ///excitation_energy_of_A[MeV]
|
std::vector<float> beamEx; ///excitation_energy_of_A[MeV]
|
||||||
|
|
||||||
|
|
||||||
void SetReaction(int beamA, int beamZ,
|
void SetReaction(int beamA, int beamZ, // projectile
|
||||||
int targetA, int targetZ,
|
int targetA, int targetZ, // target
|
||||||
int recoilA, int recoilZ, float beamEnergy_AMeV){
|
int recoilA, int recoilZ, float beamEnergy_AMeV){ // light recoil, e.g. alpha
|
||||||
this->beamA = beamA;
|
this->beamA = beamA;
|
||||||
this->beamZ = beamZ;
|
this->beamZ = beamZ;
|
||||||
this->targetA = targetA;
|
this->targetA = targetA;
|
||||||
|
|
@ -176,10 +175,10 @@ public:
|
||||||
void SetA(int A, int Z, double Ex);
|
void SetA(int A, int Z, double Ex);
|
||||||
void Seta(int A, int Z);
|
void Seta(int A, int Z);
|
||||||
void Setb(int A, int Z);
|
void Setb(int A, int Z);
|
||||||
void SetB(int A, int Z);
|
void SetB(int A, int Z, double Ex);
|
||||||
void SetIncidentEnergyAngle(double KEA, double theta, double phi);
|
void SetIncidentEnergyAngle(double KEA, double theta, double phi);
|
||||||
void SetExA(double Ex);
|
void SetExA(double Ex); // excitation energy of A in MeV
|
||||||
void SetExB(double Ex);
|
void SetExB(double Ex); // excitation energy of B in MeV
|
||||||
void SetReactionFromFile(string settingFile);
|
void SetReactionFromFile(string settingFile);
|
||||||
|
|
||||||
TString GetReactionName();
|
TString GetReactionName();
|
||||||
|
|
@ -246,8 +245,8 @@ TransferReaction::TransferReaction(){
|
||||||
SetA(24, 12, 0);
|
SetA(24, 12, 0);
|
||||||
Seta(4,2);
|
Seta(4,2);
|
||||||
Setb(1,1);
|
Setb(1,1);
|
||||||
SetB(27,13);
|
SetB(27,13, 0);
|
||||||
TA = 2.5;
|
TA = 2.5; // MeV/u
|
||||||
T = TA * reaction.beamA;
|
T = TA * reaction.beamA;
|
||||||
|
|
||||||
ExA = 0;
|
ExA = 0;
|
||||||
|
|
@ -301,17 +300,19 @@ void TransferReaction::Setb(int A, int Z){
|
||||||
isReady = false;
|
isReady = false;
|
||||||
isBSet = false;
|
isBSet = false;
|
||||||
}
|
}
|
||||||
void TransferReaction::SetB(int A, int Z){
|
void TransferReaction::SetB(int A, int Z, double Ex = 0){
|
||||||
Isotope temp (A, Z);
|
Isotope temp (A, Z);
|
||||||
mB = temp.Mass;
|
double mB0 = temp.Mass; // ground state mass
|
||||||
|
mB = mB0;
|
||||||
reaction.recoilHeavyA = A;
|
reaction.recoilHeavyA = A;
|
||||||
reaction.recoilHeavyZ = Z;
|
reaction.recoilHeavyZ = Z;
|
||||||
nameB = temp.Name;
|
nameB = temp.Name;
|
||||||
|
ExB = Ex;
|
||||||
isReady = false;
|
isReady = false;
|
||||||
isBSet = true;
|
isBSet = true;
|
||||||
}
|
}
|
||||||
|
|
||||||
void TransferReaction::SetIncidentEnergyAngle(double KEA, double theta, double phi){
|
void TransferReaction::SetIncidentEnergyAngle(double KEA, double theta, double phi){ // KEA in MeV/u, theta and phi in degree
|
||||||
this->TA = KEA;
|
this->TA = KEA;
|
||||||
this->T = TA * reaction.beamA;
|
this->T = TA * reaction.beamA;
|
||||||
this->thetaIN = theta;
|
this->thetaIN = theta;
|
||||||
|
|
@ -390,7 +391,8 @@ void TransferReaction::CalReactionConstant(){
|
||||||
beta = k / (mA + ExA + ma + T);
|
beta = k / (mA + ExA + ma + T);
|
||||||
gamma = 1 / TMath::Sqrt(1- beta * beta);
|
gamma = 1 / TMath::Sqrt(1- beta * beta);
|
||||||
Etot = TMath::Sqrt(TMath::Power(mA + ExA + ma + T,2) - k * k);
|
Etot = TMath::Sqrt(TMath::Power(mA + ExA + ma + T,2) - k * k);
|
||||||
p = TMath::Sqrt( (Etot*Etot - TMath::Power(mb + mB + ExB,2)) * (Etot*Etot - TMath::Power(mb - mB - ExB,2)) ) / 2 / Etot;
|
double mBtot = mB + ExB;
|
||||||
|
p = TMath::Sqrt( (Etot*Etot - TMath::Power(mb + mBtot,2)) * (Etot*Etot - TMath::Power(mb - mBtot,2)) ) / 2 / Etot;
|
||||||
|
|
||||||
PA.SetXYZM(0, 0, k, mA + ExA);
|
PA.SetXYZM(0, 0, k, mA + ExA);
|
||||||
PA.RotateY(thetaIN);
|
PA.RotateY(thetaIN);
|
||||||
|
|
|
||||||
414
Armory/HistPlotter.h
Normal file
414
Armory/HistPlotter.h
Normal file
|
|
@ -0,0 +1,414 @@
|
||||||
|
#ifndef HISTPLOTTER_H
|
||||||
|
#define HISTPLOTTER_H
|
||||||
|
#include <TCanvas.h>
|
||||||
|
#include <TROOT.h>
|
||||||
|
#include <TSystem.h>
|
||||||
|
#include <TStyle.h>
|
||||||
|
#include <iostream>
|
||||||
|
#include <TFile.h>
|
||||||
|
#include <TMemFile.h>
|
||||||
|
#include <TH1.h>
|
||||||
|
#include <TH2.h>
|
||||||
|
#include <TCutG.h>
|
||||||
|
#include <signal.h>
|
||||||
|
#include <cstdlib>
|
||||||
|
#include <utility>
|
||||||
|
#include <fstream>
|
||||||
|
#include <sstream>
|
||||||
|
#include <unordered_map>
|
||||||
|
#include <set>
|
||||||
|
#include <TGraphErrors.h>
|
||||||
|
|
||||||
|
class HistPlotter {
|
||||||
|
private:
|
||||||
|
long long barrier_count, barrier_limit; //meant to keep track of how often to call FillN() on histograms
|
||||||
|
enum {TFILE, TMEMFILE} filetype;
|
||||||
|
std::unordered_map<std::string,TObject*> oMap; //!< Maps std::string to all TH1, TH2 objects in the class
|
||||||
|
std::unordered_map<std::string,TObject*> cutsMap; //!< Maps std::string to TCutG objects held by the class
|
||||||
|
std::set<std::string> folderList; //!< List of all folder names used to nest objects
|
||||||
|
std::unordered_map<TObject*,std::string> foldersForObjects; //!< Map that returns the folder corresponding to the object whose pointer is specified
|
||||||
|
TFile *ofile=nullptr; //!< TFile pointer for the output file
|
||||||
|
TMemFile *omfile=nullptr; //!< TFile pointer for the output memfile
|
||||||
|
|
||||||
|
//Caches to permit FillN() calls
|
||||||
|
std::unordered_map<std::string, std::vector<double>> onedimcache;
|
||||||
|
std::unordered_map<std::string, std::pair<std::vector<double>, std::vector<double>>> twodimcache;
|
||||||
|
inline void FillN_All_Histograms();
|
||||||
|
public:
|
||||||
|
HistPlotter(std::string outfile, std::string type);
|
||||||
|
inline void FlushToDisk(); //!< Writes all objects to file before closing, nesting objects in folders as is found necessary
|
||||||
|
inline void PrintObjects(); //!< Dump objects to std::cout for inspection
|
||||||
|
inline void ReadCuts(std::string);
|
||||||
|
inline TCutG* FindCut(std::string cut) {
|
||||||
|
return static_cast<TCutG*>(cutsMap.at(cut));
|
||||||
|
}
|
||||||
|
inline void set_barrier_limit(long long limit) { barrier_limit = limit; }
|
||||||
|
inline void barrier_increment() {
|
||||||
|
barrier_count++;
|
||||||
|
if(barrier_count == barrier_limit) {
|
||||||
|
FillN_All_Histograms();
|
||||||
|
barrier_count=0;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
/*! \fn void FindCut()
|
||||||
|
\brief
|
||||||
|
- Searches for a cut by name 'cut' in the internal list of cuts 'cutsMap'. Ugly fails (via unresolved at()) if such a cut isn't found.
|
||||||
|
\param filename - name of the plainxtext file containing the cut file locations and identifiers
|
||||||
|
\return Pointer to the TCutG object that matches the name. Very useful to use this as plotter.FindCut("protonbarrelpid")->IsInside(deltaE, E) for instance.
|
||||||
|
*/
|
||||||
|
|
||||||
|
inline void SetNewTitle(std::string name, std::string title) {
|
||||||
|
auto result = oMap.find(name); //result is an iterator
|
||||||
|
if(result==oMap.end()) return; //no warnings, could be changed in future
|
||||||
|
else
|
||||||
|
static_cast<TNamed*>(oMap.at(name))->SetTitle(title.c_str()); // set new title
|
||||||
|
}
|
||||||
|
|
||||||
|
//Smart functions that create a new histogram if it doesn't exist.
|
||||||
|
inline void FillGraph(const std::string &name, float valuex, float valuey, float errx=0, float erry=0);
|
||||||
|
inline void Fill1D(const std::string& name,int nbinsx, float xlow, float xhigh, float value);
|
||||||
|
inline void Fill2D(const std::string& name,int nbinsx, float xlow, float xhigh
|
||||||
|
,int nbinsy, float ylow, float yhigh, float valuex, float valuey);
|
||||||
|
inline void Fill1D(const std::string& name,int nbinsx, float xlow, float xhigh, float value, const std::string& folder);
|
||||||
|
inline void Fill2D(const std::string& name,int nbinsx, float xlow, float xhigh
|
||||||
|
,int nbinsy, float ylow, float yhigh, float valuex, float valuey, const std::string& folder);
|
||||||
|
//TObject* findObject(std::string key);
|
||||||
|
};
|
||||||
|
|
||||||
|
HistPlotter::HistPlotter(std::string outfile, std::string type="") {
|
||||||
|
/*!
|
||||||
|
\brief Constructor. Opens a TFile instance with the specified filename
|
||||||
|
\param outfile : std::string that holds the desired output ROOT filename
|
||||||
|
\return None
|
||||||
|
*/
|
||||||
|
if(type=="" || type == "TFILE") {
|
||||||
|
ofile = new TFile(outfile.c_str(),"recreate");
|
||||||
|
filetype = TFILE;
|
||||||
|
} else if(type =="TMEMFILE") {
|
||||||
|
omfile = new TMemFile(outfile.c_str(),"recreate");
|
||||||
|
filetype=TMEMFILE;
|
||||||
|
} else {
|
||||||
|
std::cout << "Unknown type "<< type << " specified for HistPlotter (use \"TFILE\" or \"TMEMFILE\"), using default \"TFILE\" " << std::endl;
|
||||||
|
ofile = new TFile(outfile.c_str(),"recreate");
|
||||||
|
filetype = TFILE;
|
||||||
|
}
|
||||||
|
barrier_count=0;
|
||||||
|
barrier_limit=1000;
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::FillN_All_Histograms() {
|
||||||
|
for(auto it=oMap.begin(); it!=oMap.end(); it++ ) {
|
||||||
|
//it->first is std::string 'name', it->second is the TObject
|
||||||
|
if(it->second->InheritsFrom("TH1F")) {
|
||||||
|
//FillN(size, array-of-doubles, array-of-weights); //we set array-of-weights to (1,1,1,.. (size)
|
||||||
|
static_cast<TH1F*>(it->second)->FillN(onedimcache[it->first].size(), //size
|
||||||
|
onedimcache[it->first].data(), //array
|
||||||
|
std::vector<double>(onedimcache[it->first].size(),1.0).data()); //weight of ones
|
||||||
|
onedimcache[it->first].clear();
|
||||||
|
} else if(it->second->InheritsFrom("TH2F")) {
|
||||||
|
//FillN(size, array-of-doubles, array-of-weights); //we set array-of-weights to (1,1,1,.. (size))
|
||||||
|
static_cast<TH2F*>(it->second)->FillN(twodimcache[it->first].first.size(), //size
|
||||||
|
twodimcache[it->first].first.data(), //x array
|
||||||
|
twodimcache[it->first].second.data(), //y array
|
||||||
|
std::vector<double>(twodimcache[it->first].first.size(),1.0).data()); //weight of ones
|
||||||
|
twodimcache[it->first].first.clear();
|
||||||
|
twodimcache[it->first].second.clear();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
std::cout << "." << std::endl;
|
||||||
|
}
|
||||||
|
void HistPlotter::FlushToDisk() {
|
||||||
|
/*! \fn void FlushToDisk()
|
||||||
|
\brief Function that can be used at any point to exit smoothly by saving all ROOT objects in memory
|
||||||
|
to the output file before closing it. Obeys the binding of histograms to separate folders, if so specified.
|
||||||
|
\return No return -- void
|
||||||
|
*/
|
||||||
|
if(filetype==TMEMFILE && omfile) {
|
||||||
|
std::cout << "Not flushing a TMemfile .. exiting .." << std::endl;
|
||||||
|
delete omfile;
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
if(ofile->IsZombie() || !ofile) {
|
||||||
|
std::cerr << "Output file is zombie, finishing up without writing to disk!" << std::endl;
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
FillN_All_Histograms();
|
||||||
|
for(auto it=oMap.begin(); it!=oMap.end(); it++ ) {
|
||||||
|
//omap maps: name(first) to object address(second).
|
||||||
|
// foldersForObjects maps: object address(first) to foldername(second)
|
||||||
|
auto result = foldersForObjects.find(it->second); //returns <TObject* histogram,std::string foldername> pair if found
|
||||||
|
if(result!=foldersForObjects.end()) { //we try to create folder if needed and cd to it
|
||||||
|
ofile->mkdir(result->second.c_str(),"",kTRUE); // args: name, title, returnExistingDirectory
|
||||||
|
ofile->cd(result->second.c_str());
|
||||||
|
} else {
|
||||||
|
ofile->cd(); //toplevel for all default histograms. Default setting
|
||||||
|
}
|
||||||
|
it->second->Write();
|
||||||
|
}
|
||||||
|
|
||||||
|
//Create a directory for all cuts, and save all cuts in them
|
||||||
|
ofile->mkdir("gCUTS","",kTRUE);
|
||||||
|
ofile->cd("gCUTS");
|
||||||
|
for(auto it=cutsMap.begin(); it!=cutsMap.end(); it++) {
|
||||||
|
(static_cast<TNamed*>(it->second))->SetName(it->first.c_str());
|
||||||
|
it->second->Write();
|
||||||
|
}
|
||||||
|
ofile->Close();
|
||||||
|
std::cout << "Wrote " << oMap.size() << " histograms to TFile " << std::string(ofile->GetName()) << std::endl;
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::FillGraph(const std::string& name, float valuex, float valuey, float errx, float erry) {
|
||||||
|
/*! \fn void FillGraph()
|
||||||
|
\brief
|
||||||
|
- Creates a TGraphError in memory with name 'name' if it doesn't exist, and fills it with valuex, valuey
|
||||||
|
- Writes present state to disk and fails with return value -1 if the name clashes with another object that's not of type TGraph*
|
||||||
|
|
||||||
|
\param name name of the TGraph
|
||||||
|
\param valuex The xvalue
|
||||||
|
\param valuey The yvalue
|
||||||
|
\param errx The x error
|
||||||
|
\param erry The y error
|
||||||
|
\return No return void
|
||||||
|
*/
|
||||||
|
auto result = oMap.find(name);
|
||||||
|
if(result==oMap.end()) {
|
||||||
|
TGraphErrors *tempG = new TGraphErrors();
|
||||||
|
tempG->SetName(name.c_str());
|
||||||
|
oMap.insert(std::make_pair(name,static_cast<TObject*>(tempG)));
|
||||||
|
}
|
||||||
|
if(!oMap.at(name)->InheritsFrom("TGraphErrors")) {
|
||||||
|
std::cerr << "Object " << name << " refers to something other than a TGraph*, not filling it hence!" << std::endl;
|
||||||
|
std::cerr << "Abort.." << std::endl;
|
||||||
|
FlushToDisk();
|
||||||
|
exit(-1);
|
||||||
|
}
|
||||||
|
// static_cast<TGraphErrors*>(oMap.at(name))->AddPointError(valuex,valuey,errx,erry);
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::Fill1D(const std::string& name, int nbinsx, float xlow, float xhigh, float value) {
|
||||||
|
/*! \fn void Fill1D()
|
||||||
|
\brief
|
||||||
|
- Creates a TH1F in memory with name 'name' if it doesn't exist, and fills it with valuex, valuey
|
||||||
|
- Writes present state to disk and fails with return value -1 if the name clashes with another object that's not of type TH1*
|
||||||
|
|
||||||
|
\param name name of the TH1F histogram
|
||||||
|
\param nbinsx Number of bins in the histogram
|
||||||
|
\param xlow Lower limit on x-axis
|
||||||
|
\param xhigh Upper limit on x-axis
|
||||||
|
\param value The bin corresponding to value in (nbinsx, xlow, xhigh) is incremented by 1
|
||||||
|
\return No return void
|
||||||
|
*/
|
||||||
|
auto result = oMap.find(name); //result is an iterator
|
||||||
|
if(result==oMap.end()) {
|
||||||
|
TH1F* temp1D = new TH1F(name.c_str(), name.c_str(), nbinsx, xlow, xhigh);
|
||||||
|
oMap.insert(std::make_pair(name,static_cast<TObject*>(temp1D)));
|
||||||
|
onedimcache.insert(std::make_pair(name, std::vector<double>()));
|
||||||
|
onedimcache[name].reserve(16384);
|
||||||
|
} else if(foldersForObjects.find(oMap.at(name))!=foldersForObjects.end()) { //shouldn't have a folder associated with it
|
||||||
|
std::cerr << "Object " << name << " already registered at " << foldersForObjects[oMap[name]] << ", choose a different name for the histogram to be stored in toplevel .." << std::endl;
|
||||||
|
}
|
||||||
|
|
||||||
|
//Check if the string 'name' maps to a 1D hist. If there's any other object by this name raise issue
|
||||||
|
if(!oMap.at(name)->InheritsFrom("TH1F")) {
|
||||||
|
std::cerr << "Object " << name << " refers to something other than a TH1*, not filling it hence!" << std::endl;
|
||||||
|
std::cerr << "Abort.." << std::endl;
|
||||||
|
FlushToDisk();
|
||||||
|
exit(-1);
|
||||||
|
}
|
||||||
|
onedimcache[name].emplace_back(value);
|
||||||
|
//static_cast<TH1F*>(oMap.at(name))->Fill(value);
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::Fill1D(const std::string& name, int nbinsx, float xlow, float xhigh, float value, const std::string& foldername) {
|
||||||
|
/*! \fn void Fill1D()
|
||||||
|
\brief
|
||||||
|
- Creates a TH1F in memory with name 'name' if it doesn't exist, and fills it with valuex, valuey
|
||||||
|
- Writes present state to disk and fails with return value -1 if the name clashes with another object that's not of type TH1*
|
||||||
|
- Remembers the foldername this particular histogram maps to, if provided. If not, defaults to toplevel.
|
||||||
|
|
||||||
|
\param name name of the TH1F histogram
|
||||||
|
\param nbinsx Number of bins in the histogram
|
||||||
|
\param xlow Lower limit on x-axis
|
||||||
|
\param xhigh Upper limit on x-axis
|
||||||
|
\param value The bin corresponding to value in (nbinsx, xlow, xhigh) is incremented by 1
|
||||||
|
\param foldername Name of the folder to put this histogram into. Defaults to toplevel if left empty
|
||||||
|
\return No return -- void
|
||||||
|
*/
|
||||||
|
|
||||||
|
auto result = oMap.find(name); //result is an iterator
|
||||||
|
if(result==oMap.end()) {
|
||||||
|
TH1F* temp1D = new TH1F(name.c_str(), name.c_str(), nbinsx, xlow, xhigh);
|
||||||
|
oMap.insert(std::make_pair(name,static_cast<TObject*>(temp1D)));
|
||||||
|
onedimcache.insert(std::make_pair(name, std::vector<double>()));
|
||||||
|
onedimcache[name].reserve(16384);
|
||||||
|
if(foldername!="") {
|
||||||
|
if(folderList.find(foldername)==folderList.end()) {
|
||||||
|
folderList.insert(foldername);
|
||||||
|
}
|
||||||
|
foldersForObjects.insert(std::make_pair(static_cast<TObject*>(temp1D),foldername));
|
||||||
|
}
|
||||||
|
} else {
|
||||||
|
//object is present in map, but we enforce unique names
|
||||||
|
//it must already have a folder attached to it
|
||||||
|
if(foldersForObjects.find(oMap.at(name))==foldersForObjects.end()) {
|
||||||
|
std::cerr << "Object " << name << " already registered at toplevel, choose a different name for the histogram to be stored in " << foldername << " folder .." << std::endl;
|
||||||
|
} else if(foldersForObjects[oMap[name]]!=foldername) {
|
||||||
|
std::cerr << "Object " << name << " already registered at " << foldersForObjects[oMap[name]] << ", choose a different name for the histogram to be stored in " << foldername << " folder .." << std::endl;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
//Check if the string 'name' maps to a 1D hist. If there's any other object by this name raise issue
|
||||||
|
if(!oMap.at(name)->InheritsFrom("TH1F")) {
|
||||||
|
std::cerr << "Object " << name << " refers to something other than a TH1*, not filling it hence!" << std::endl;
|
||||||
|
std::cerr << "Abort.." << std::endl;
|
||||||
|
FlushToDisk();
|
||||||
|
exit(-1);
|
||||||
|
}
|
||||||
|
onedimcache[name].emplace_back(value);
|
||||||
|
//static_cast<TH1F*>(oMap.at(name))->Fill(value);
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::Fill2D(const std::string& name, int nbinsx, float xlow, float xhigh, int nbinsy, float ylow, float yhigh, float valuex, float valuey) {
|
||||||
|
/*! \fn void Fill2D()
|
||||||
|
\brief
|
||||||
|
- Creates a TH2F in memory with name 'name' if it doesn't exist, and fills it with valuex, valuey
|
||||||
|
- Writes present state to disk and fails with return value -1 if the name clashes with another object that's not of type TH2*
|
||||||
|
\param name name of the TH1F histogram
|
||||||
|
\param nbinsx Number of xbins in the histogram
|
||||||
|
\param xlow Lower limit on x-axis
|
||||||
|
\param xhigh Upper limit on x-axis
|
||||||
|
\param nbinsy Number of ybins in the histogram
|
||||||
|
\param ylow Lower limit on y-axis
|
||||||
|
\param yhigh Upper limit on y-axis
|
||||||
|
\param valuex
|
||||||
|
\param valuey The bin corresponding to (valuex, valuey) in (nbinsx, xlow, xhigh, ybinsx, ylow, yhigh) is incremented by 1
|
||||||
|
\return No return -- void
|
||||||
|
*/
|
||||||
|
|
||||||
|
auto result = oMap.find(name); //result is an iterator
|
||||||
|
if(result==oMap.end()) {
|
||||||
|
TH2F* temp2D = new TH2F(name.c_str(), name.c_str(), nbinsx, xlow, xhigh, nbinsy, ylow, yhigh);
|
||||||
|
oMap.insert(std::make_pair(name,static_cast<TObject*>(temp2D)));
|
||||||
|
twodimcache.insert(std::make_pair(name, std::make_pair(std::vector<double>(),std::vector<double>())));
|
||||||
|
twodimcache[name].first.reserve(16384);
|
||||||
|
twodimcache[name].second.reserve(16384);
|
||||||
|
} else if(foldersForObjects.find(oMap.at(name))!=foldersForObjects.end()) { //shouldn't have a folder associated with it
|
||||||
|
std::cerr << "Object " << name << " already registered at " << foldersForObjects[oMap[name]] << ", choose a different name for the histogram to be stored in toplevel .." << std::endl;
|
||||||
|
}
|
||||||
|
|
||||||
|
//Check if the string 'name' maps to a 1D hist. If there's any other object by this name raise issue
|
||||||
|
if(!oMap.at(name)->InheritsFrom("TH2F")) {
|
||||||
|
std::cerr << "Object " << name << " refers to something other than a TH2*, not filling it hence!" << std::endl;
|
||||||
|
std::cerr << "Abort.." << std::endl;
|
||||||
|
FlushToDisk();
|
||||||
|
exit(-1);
|
||||||
|
}
|
||||||
|
twodimcache[name].first.emplace_back(valuex);
|
||||||
|
twodimcache[name].second.emplace_back(valuey);
|
||||||
|
//static_cast<TH2F*>(oMap.at(name))->Fill(valuex,valuey);
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::Fill2D(const std::string& name, int nbinsx, float xlow, float xhigh, int nbinsy, float ylow, float yhigh, float valuex, float valuey, const std::string& foldername) {
|
||||||
|
/*! \fn void Fill2D()
|
||||||
|
\brief
|
||||||
|
- Creates a TH2F in memory with name 'name' if it doesn't exist, and fills it with valuex, valuey
|
||||||
|
- Writes present state to disk and fails with return value -1 if the name clashes with another object that's not of type TH2*
|
||||||
|
- Remembers the foldername this particular histogram maps to, if provided. If not defaults to toplevel
|
||||||
|
|
||||||
|
\param name name of the TH1F histogram
|
||||||
|
\param nbinsx Number of xbins in the histogram
|
||||||
|
\param xlow Lower limit on x-axis
|
||||||
|
\param xhigh Upper limit on x-axis
|
||||||
|
\param nbinsy Number of ybins in the histogram
|
||||||
|
\param ylow Lower limit on y-axis
|
||||||
|
\param yhigh Upper limit on y-axis
|
||||||
|
\param valuex
|
||||||
|
\param valuey The bin corresponding to (valuex, valuey) in (nbinsx, xlow, xhigh, ybinsx, ylow, yhigh) is incremented by 1
|
||||||
|
\param foldername Name of the folder to put this histogram into. Defaults to toplevel if left empty
|
||||||
|
\return No return -- void
|
||||||
|
*/
|
||||||
|
|
||||||
|
auto result = oMap.find(name); //result is an iterator
|
||||||
|
if(result==oMap.end()) {
|
||||||
|
TH2F* temp2D = new TH2F(name.c_str(), name.c_str(), nbinsx, xlow, xhigh, nbinsy, ylow, yhigh);
|
||||||
|
oMap.insert(std::make_pair(name,static_cast<TObject*>(temp2D)));
|
||||||
|
twodimcache.insert(std::make_pair(name, std::make_pair(std::vector<double>(),std::vector<double>())));
|
||||||
|
twodimcache[name].first.reserve(16384);
|
||||||
|
twodimcache[name].second.reserve(16384);
|
||||||
|
if(foldername!="") {
|
||||||
|
if(folderList.find(foldername)==folderList.end()) {
|
||||||
|
folderList.insert(foldername);
|
||||||
|
}
|
||||||
|
foldersForObjects.insert(std::make_pair(static_cast<TObject*>(temp2D),foldername));
|
||||||
|
}
|
||||||
|
} else {
|
||||||
|
//object is present in map, but we enforce unique names
|
||||||
|
//it must already have a folder attached to it
|
||||||
|
if(foldersForObjects.find(oMap.at(name))==foldersForObjects.end()) {
|
||||||
|
std::cerr << "Object " << name << " already registered at toplevel, choose a different name for the histogram to be stored in " << foldername << " folder .." << std::endl;
|
||||||
|
} else if(foldersForObjects[oMap.at(name)]!=foldername) {
|
||||||
|
std::cerr << "Object " << name << " already registered at " << foldersForObjects[oMap[name]] << ", choose a different name for the histogram to be stored in " << foldername << " folder .." << std::endl;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
//Check if the string 'name' maps to a 1D hist. If there's any other object by this name raise issue
|
||||||
|
if(!oMap.at(name)->InheritsFrom("TH2F")) {
|
||||||
|
std::cerr << "Object " << name << " refers to something other than a TH2*, not filling it hence!" << std::endl;
|
||||||
|
std::cerr << "Abort.." << std::endl;
|
||||||
|
FlushToDisk();
|
||||||
|
exit(-1);
|
||||||
|
}
|
||||||
|
twodimcache[name].first.emplace_back(valuex);
|
||||||
|
twodimcache[name].second.emplace_back(valuey);
|
||||||
|
//static_cast<TH2F*>(oMap.at(name))->Fill(valuex,valuey);
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::ReadCuts(std::string filename) {
|
||||||
|
/*! \fn void ReadCuts()
|
||||||
|
\brief Reads a list of cuts from a file. The file must have the format below, two columns
|
||||||
|
- Column#1 - path to a file that contains a single TCutG object named "CUTG", the default name in ROOT.
|
||||||
|
- Column#2 - The identifier name you plan to use in the code, like 'protonbarrelpid' or something, that will be searched by FindCut()
|
||||||
|
\param filename name of the plainxtext file containing the cut file locations and identifiers
|
||||||
|
\return No return -- void
|
||||||
|
*/
|
||||||
|
|
||||||
|
std::ifstream infile;
|
||||||
|
infile.open(filename);
|
||||||
|
std::string cutfilename, cutname;
|
||||||
|
for(std::string line; std::getline(infile, line); ) {
|
||||||
|
if(line.size()!=0 && line[0]=='#')
|
||||||
|
; //don't do anything with '#' lines
|
||||||
|
else {
|
||||||
|
std::stringstream ss(line);
|
||||||
|
ss>>cutfilename>>cutname;
|
||||||
|
|
||||||
|
TFile f(cutfilename.c_str());
|
||||||
|
if(f.IsZombie()) {
|
||||||
|
std::cerr << "Cannot open cutfile " << cutfilename << " .. skipping.." << std::endl;
|
||||||
|
continue;
|
||||||
|
}
|
||||||
|
TCutG *cut = (TCutG*)(f.Get("CUTG"));
|
||||||
|
cutsMap.insert(std::make_pair(cutname,static_cast<TObject*>(cut)));
|
||||||
|
f.Close();
|
||||||
|
} //else
|
||||||
|
}//for loop
|
||||||
|
infile.close();
|
||||||
|
}
|
||||||
|
|
||||||
|
void HistPlotter::PrintObjects() {
|
||||||
|
/*
|
||||||
|
void PrintObjects()
|
||||||
|
Prints the contents of the unordered_maps oMap and cutsMap to facilitate debugging
|
||||||
|
|
||||||
|
*/
|
||||||
|
std::cout << "Type | Name " << std::endl;
|
||||||
|
std::cout << "---- | --------------------- " << std::endl;
|
||||||
|
for(auto it=oMap.begin(); it!=oMap.end(); it++ ) {
|
||||||
|
std::cout << it->second->ClassName() << " | "<< it->first << std::endl;
|
||||||
|
}
|
||||||
|
for(auto it=cutsMap.begin(); it!=cutsMap.end(); it++ ) {
|
||||||
|
std::cout << it->second->ClassName() << " | "<< it->first << std::endl;
|
||||||
|
}
|
||||||
|
std::cout << "---- | --------------------- " << std::endl;
|
||||||
|
}
|
||||||
|
|
||||||
|
#endif
|
||||||
52
Armory/Hit.h
Normal file
52
Armory/Hit.h
Normal file
|
|
@ -0,0 +1,52 @@
|
||||||
|
#ifndef Hit_H
|
||||||
|
#define Hit_H
|
||||||
|
|
||||||
|
#include <vector>
|
||||||
|
|
||||||
|
class Hit{
|
||||||
|
public:
|
||||||
|
unsigned short sn;
|
||||||
|
uint8_t ch;
|
||||||
|
unsigned short energy;
|
||||||
|
unsigned short energy2;
|
||||||
|
unsigned long long timestamp;
|
||||||
|
unsigned short fineTime;
|
||||||
|
bool pileUp;
|
||||||
|
|
||||||
|
unsigned short traceLength;
|
||||||
|
std::vector<short> trace;
|
||||||
|
|
||||||
|
Hit(){
|
||||||
|
Clear();
|
||||||
|
}
|
||||||
|
|
||||||
|
void Clear(){
|
||||||
|
sn = 0;
|
||||||
|
ch = 0;
|
||||||
|
energy = 0;
|
||||||
|
energy2 = 0;
|
||||||
|
timestamp = 0;
|
||||||
|
fineTime = 0;
|
||||||
|
traceLength = 0;
|
||||||
|
pileUp = false;
|
||||||
|
trace.clear();
|
||||||
|
}
|
||||||
|
|
||||||
|
void Print(){
|
||||||
|
printf("(%5d, %2d) %6d %16llu, %6d, %d, %5ld\n", sn, ch, energy, timestamp, fineTime, pileUp, trace.size());
|
||||||
|
}
|
||||||
|
|
||||||
|
void PrintTrace(){
|
||||||
|
for( unsigned short i = 0; i < traceLength; i++){
|
||||||
|
printf("%3u | %6d \n", i, trace[i]);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
// Define operator< for sorting
|
||||||
|
bool operator<(const Hit& other) const {
|
||||||
|
return timestamp < other.timestamp;
|
||||||
|
}
|
||||||
|
|
||||||
|
};
|
||||||
|
|
||||||
|
#endif
|
||||||
674
Armory/LICENSE
Normal file
674
Armory/LICENSE
Normal file
|
|
@ -0,0 +1,674 @@
|
||||||
|
GNU GENERAL PUBLIC LICENSE
|
||||||
|
Version 3, 29 June 2007
|
||||||
|
|
||||||
|
Copyright (C) 2007 Free Software Foundation, Inc. <https://fsf.org/>
|
||||||
|
Everyone is permitted to copy and distribute verbatim copies
|
||||||
|
of this license document, but changing it is not allowed.
|
||||||
|
|
||||||
|
Preamble
|
||||||
|
|
||||||
|
The GNU General Public License is a free, copyleft license for
|
||||||
|
software and other kinds of works.
|
||||||
|
|
||||||
|
The licenses for most software and other practical works are designed
|
||||||
|
to take away your freedom to share and change the works. By contrast,
|
||||||
|
the GNU General Public License is intended to guarantee your freedom to
|
||||||
|
share and change all versions of a program--to make sure it remains free
|
||||||
|
software for all its users. We, the Free Software Foundation, use the
|
||||||
|
GNU General Public License for most of our software; it applies also to
|
||||||
|
any other work released this way by its authors. You can apply it to
|
||||||
|
your programs, too.
|
||||||
|
|
||||||
|
When we speak of free software, we are referring to freedom, not
|
||||||
|
price. Our General Public Licenses are designed to make sure that you
|
||||||
|
have the freedom to distribute copies of free software (and charge for
|
||||||
|
them if you wish), that you receive source code or can get it if you
|
||||||
|
want it, that you can change the software or use pieces of it in new
|
||||||
|
free programs, and that you know you can do these things.
|
||||||
|
|
||||||
|
To protect your rights, we need to prevent others from denying you
|
||||||
|
these rights or asking you to surrender the rights. Therefore, you have
|
||||||
|
certain responsibilities if you distribute copies of the software, or if
|
||||||
|
you modify it: responsibilities to respect the freedom of others.
|
||||||
|
|
||||||
|
For example, if you distribute copies of such a program, whether
|
||||||
|
gratis or for a fee, you must pass on to the recipients the same
|
||||||
|
freedoms that you received. You must make sure that they, too, receive
|
||||||
|
or can get the source code. And you must show them these terms so they
|
||||||
|
know their rights.
|
||||||
|
|
||||||
|
Developers that use the GNU GPL protect your rights with two steps:
|
||||||
|
(1) assert copyright on the software, and (2) offer you this License
|
||||||
|
giving you legal permission to copy, distribute and/or modify it.
|
||||||
|
|
||||||
|
For the developers' and authors' protection, the GPL clearly explains
|
||||||
|
that there is no warranty for this free software. For both users' and
|
||||||
|
authors' sake, the GPL requires that modified versions be marked as
|
||||||
|
changed, so that their problems will not be attributed erroneously to
|
||||||
|
authors of previous versions.
|
||||||
|
|
||||||
|
Some devices are designed to deny users access to install or run
|
||||||
|
modified versions of the software inside them, although the manufacturer
|
||||||
|
can do so. This is fundamentally incompatible with the aim of
|
||||||
|
protecting users' freedom to change the software. The systematic
|
||||||
|
pattern of such abuse occurs in the area of products for individuals to
|
||||||
|
use, which is precisely where it is most unacceptable. Therefore, we
|
||||||
|
have designed this version of the GPL to prohibit the practice for those
|
||||||
|
products. If such problems arise substantially in other domains, we
|
||||||
|
stand ready to extend this provision to those domains in future versions
|
||||||
|
of the GPL, as needed to protect the freedom of users.
|
||||||
|
|
||||||
|
Finally, every program is threatened constantly by software patents.
|
||||||
|
States should not allow patents to restrict development and use of
|
||||||
|
software on general-purpose computers, but in those that do, we wish to
|
||||||
|
avoid the special danger that patents applied to a free program could
|
||||||
|
make it effectively proprietary. To prevent this, the GPL assures that
|
||||||
|
patents cannot be used to render the program non-free.
|
||||||
|
|
||||||
|
The precise terms and conditions for copying, distribution and
|
||||||
|
modification follow.
|
||||||
|
|
||||||
|
TERMS AND CONDITIONS
|
||||||
|
|
||||||
|
0. Definitions.
|
||||||
|
|
||||||
|
"This License" refers to version 3 of the GNU General Public License.
|
||||||
|
|
||||||
|
"Copyright" also means copyright-like laws that apply to other kinds of
|
||||||
|
works, such as semiconductor masks.
|
||||||
|
|
||||||
|
"The Program" refers to any copyrightable work licensed under this
|
||||||
|
License. Each licensee is addressed as "you". "Licensees" and
|
||||||
|
"recipients" may be individuals or organizations.
|
||||||
|
|
||||||
|
To "modify" a work means to copy from or adapt all or part of the work
|
||||||
|
in a fashion requiring copyright permission, other than the making of an
|
||||||
|
exact copy. The resulting work is called a "modified version" of the
|
||||||
|
earlier work or a work "based on" the earlier work.
|
||||||
|
|
||||||
|
A "covered work" means either the unmodified Program or a work based
|
||||||
|
on the Program.
|
||||||
|
|
||||||
|
To "propagate" a work means to do anything with it that, without
|
||||||
|
permission, would make you directly or secondarily liable for
|
||||||
|
infringement under applicable copyright law, except executing it on a
|
||||||
|
computer or modifying a private copy. Propagation includes copying,
|
||||||
|
distribution (with or without modification), making available to the
|
||||||
|
public, and in some countries other activities as well.
|
||||||
|
|
||||||
|
To "convey" a work means any kind of propagation that enables other
|
||||||
|
parties to make or receive copies. Mere interaction with a user through
|
||||||
|
a computer network, with no transfer of a copy, is not conveying.
|
||||||
|
|
||||||
|
An interactive user interface displays "Appropriate Legal Notices"
|
||||||
|
to the extent that it includes a convenient and prominently visible
|
||||||
|
feature that (1) displays an appropriate copyright notice, and (2)
|
||||||
|
tells the user that there is no warranty for the work (except to the
|
||||||
|
extent that warranties are provided), that licensees may convey the
|
||||||
|
work under this License, and how to view a copy of this License. If
|
||||||
|
the interface presents a list of user commands or options, such as a
|
||||||
|
menu, a prominent item in the list meets this criterion.
|
||||||
|
|
||||||
|
1. Source Code.
|
||||||
|
|
||||||
|
The "source code" for a work means the preferred form of the work
|
||||||
|
for making modifications to it. "Object code" means any non-source
|
||||||
|
form of a work.
|
||||||
|
|
||||||
|
A "Standard Interface" means an interface that either is an official
|
||||||
|
standard defined by a recognized standards body, or, in the case of
|
||||||
|
interfaces specified for a particular programming language, one that
|
||||||
|
is widely used among developers working in that language.
|
||||||
|
|
||||||
|
The "System Libraries" of an executable work include anything, other
|
||||||
|
than the work as a whole, that (a) is included in the normal form of
|
||||||
|
packaging a Major Component, but which is not part of that Major
|
||||||
|
Component, and (b) serves only to enable use of the work with that
|
||||||
|
Major Component, or to implement a Standard Interface for which an
|
||||||
|
implementation is available to the public in source code form. A
|
||||||
|
"Major Component", in this context, means a major essential component
|
||||||
|
(kernel, window system, and so on) of the specific operating system
|
||||||
|
(if any) on which the executable work runs, or a compiler used to
|
||||||
|
produce the work, or an object code interpreter used to run it.
|
||||||
|
|
||||||
|
The "Corresponding Source" for a work in object code form means all
|
||||||
|
the source code needed to generate, install, and (for an executable
|
||||||
|
work) run the object code and to modify the work, including scripts to
|
||||||
|
control those activities. However, it does not include the work's
|
||||||
|
System Libraries, or general-purpose tools or generally available free
|
||||||
|
programs which are used unmodified in performing those activities but
|
||||||
|
which are not part of the work. For example, Corresponding Source
|
||||||
|
includes interface definition files associated with source files for
|
||||||
|
the work, and the source code for shared libraries and dynamically
|
||||||
|
linked subprograms that the work is specifically designed to require,
|
||||||
|
such as by intimate data communication or control flow between those
|
||||||
|
subprograms and other parts of the work.
|
||||||
|
|
||||||
|
The Corresponding Source need not include anything that users
|
||||||
|
can regenerate automatically from other parts of the Corresponding
|
||||||
|
Source.
|
||||||
|
|
||||||
|
The Corresponding Source for a work in source code form is that
|
||||||
|
same work.
|
||||||
|
|
||||||
|
2. Basic Permissions.
|
||||||
|
|
||||||
|
All rights granted under this License are granted for the term of
|
||||||
|
copyright on the Program, and are irrevocable provided the stated
|
||||||
|
conditions are met. This License explicitly affirms your unlimited
|
||||||
|
permission to run the unmodified Program. The output from running a
|
||||||
|
covered work is covered by this License only if the output, given its
|
||||||
|
content, constitutes a covered work. This License acknowledges your
|
||||||
|
rights of fair use or other equivalent, as provided by copyright law.
|
||||||
|
|
||||||
|
You may make, run and propagate covered works that you do not
|
||||||
|
convey, without conditions so long as your license otherwise remains
|
||||||
|
in force. You may convey covered works to others for the sole purpose
|
||||||
|
of having them make modifications exclusively for you, or provide you
|
||||||
|
with facilities for running those works, provided that you comply with
|
||||||
|
the terms of this License in conveying all material for which you do
|
||||||
|
not control copyright. Those thus making or running the covered works
|
||||||
|
for you must do so exclusively on your behalf, under your direction
|
||||||
|
and control, on terms that prohibit them from making any copies of
|
||||||
|
your copyrighted material outside their relationship with you.
|
||||||
|
|
||||||
|
Conveying under any other circumstances is permitted solely under
|
||||||
|
the conditions stated below. Sublicensing is not allowed; section 10
|
||||||
|
makes it unnecessary.
|
||||||
|
|
||||||
|
3. Protecting Users' Legal Rights From Anti-Circumvention Law.
|
||||||
|
|
||||||
|
No covered work shall be deemed part of an effective technological
|
||||||
|
measure under any applicable law fulfilling obligations under article
|
||||||
|
11 of the WIPO copyright treaty adopted on 20 December 1996, or
|
||||||
|
similar laws prohibiting or restricting circumvention of such
|
||||||
|
measures.
|
||||||
|
|
||||||
|
When you convey a covered work, you waive any legal power to forbid
|
||||||
|
circumvention of technological measures to the extent such circumvention
|
||||||
|
is effected by exercising rights under this License with respect to
|
||||||
|
the covered work, and you disclaim any intention to limit operation or
|
||||||
|
modification of the work as a means of enforcing, against the work's
|
||||||
|
users, your or third parties' legal rights to forbid circumvention of
|
||||||
|
technological measures.
|
||||||
|
|
||||||
|
4. Conveying Verbatim Copies.
|
||||||
|
|
||||||
|
You may convey verbatim copies of the Program's source code as you
|
||||||
|
receive it, in any medium, provided that you conspicuously and
|
||||||
|
appropriately publish on each copy an appropriate copyright notice;
|
||||||
|
keep intact all notices stating that this License and any
|
||||||
|
non-permissive terms added in accord with section 7 apply to the code;
|
||||||
|
keep intact all notices of the absence of any warranty; and give all
|
||||||
|
recipients a copy of this License along with the Program.
|
||||||
|
|
||||||
|
You may charge any price or no price for each copy that you convey,
|
||||||
|
and you may offer support or warranty protection for a fee.
|
||||||
|
|
||||||
|
5. Conveying Modified Source Versions.
|
||||||
|
|
||||||
|
You may convey a work based on the Program, or the modifications to
|
||||||
|
produce it from the Program, in the form of source code under the
|
||||||
|
terms of section 4, provided that you also meet all of these conditions:
|
||||||
|
|
||||||
|
a) The work must carry prominent notices stating that you modified
|
||||||
|
it, and giving a relevant date.
|
||||||
|
|
||||||
|
b) The work must carry prominent notices stating that it is
|
||||||
|
released under this License and any conditions added under section
|
||||||
|
7. This requirement modifies the requirement in section 4 to
|
||||||
|
"keep intact all notices".
|
||||||
|
|
||||||
|
c) You must license the entire work, as a whole, under this
|
||||||
|
License to anyone who comes into possession of a copy. This
|
||||||
|
License will therefore apply, along with any applicable section 7
|
||||||
|
additional terms, to the whole of the work, and all its parts,
|
||||||
|
regardless of how they are packaged. This License gives no
|
||||||
|
permission to license the work in any other way, but it does not
|
||||||
|
invalidate such permission if you have separately received it.
|
||||||
|
|
||||||
|
d) If the work has interactive user interfaces, each must display
|
||||||
|
Appropriate Legal Notices; however, if the Program has interactive
|
||||||
|
interfaces that do not display Appropriate Legal Notices, your
|
||||||
|
work need not make them do so.
|
||||||
|
|
||||||
|
A compilation of a covered work with other separate and independent
|
||||||
|
works, which are not by their nature extensions of the covered work,
|
||||||
|
and which are not combined with it such as to form a larger program,
|
||||||
|
in or on a volume of a storage or distribution medium, is called an
|
||||||
|
"aggregate" if the compilation and its resulting copyright are not
|
||||||
|
used to limit the access or legal rights of the compilation's users
|
||||||
|
beyond what the individual works permit. Inclusion of a covered work
|
||||||
|
in an aggregate does not cause this License to apply to the other
|
||||||
|
parts of the aggregate.
|
||||||
|
|
||||||
|
6. Conveying Non-Source Forms.
|
||||||
|
|
||||||
|
You may convey a covered work in object code form under the terms
|
||||||
|
of sections 4 and 5, provided that you also convey the
|
||||||
|
machine-readable Corresponding Source under the terms of this License,
|
||||||
|
in one of these ways:
|
||||||
|
|
||||||
|
a) Convey the object code in, or embodied in, a physical product
|
||||||
|
(including a physical distribution medium), accompanied by the
|
||||||
|
Corresponding Source fixed on a durable physical medium
|
||||||
|
customarily used for software interchange.
|
||||||
|
|
||||||
|
b) Convey the object code in, or embodied in, a physical product
|
||||||
|
(including a physical distribution medium), accompanied by a
|
||||||
|
written offer, valid for at least three years and valid for as
|
||||||
|
long as you offer spare parts or customer support for that product
|
||||||
|
model, to give anyone who possesses the object code either (1) a
|
||||||
|
copy of the Corresponding Source for all the software in the
|
||||||
|
product that is covered by this License, on a durable physical
|
||||||
|
medium customarily used for software interchange, for a price no
|
||||||
|
more than your reasonable cost of physically performing this
|
||||||
|
conveying of source, or (2) access to copy the
|
||||||
|
Corresponding Source from a network server at no charge.
|
||||||
|
|
||||||
|
c) Convey individual copies of the object code with a copy of the
|
||||||
|
written offer to provide the Corresponding Source. This
|
||||||
|
alternative is allowed only occasionally and noncommercially, and
|
||||||
|
only if you received the object code with such an offer, in accord
|
||||||
|
with subsection 6b.
|
||||||
|
|
||||||
|
d) Convey the object code by offering access from a designated
|
||||||
|
place (gratis or for a charge), and offer equivalent access to the
|
||||||
|
Corresponding Source in the same way through the same place at no
|
||||||
|
further charge. You need not require recipients to copy the
|
||||||
|
Corresponding Source along with the object code. If the place to
|
||||||
|
copy the object code is a network server, the Corresponding Source
|
||||||
|
may be on a different server (operated by you or a third party)
|
||||||
|
that supports equivalent copying facilities, provided you maintain
|
||||||
|
clear directions next to the object code saying where to find the
|
||||||
|
Corresponding Source. Regardless of what server hosts the
|
||||||
|
Corresponding Source, you remain obligated to ensure that it is
|
||||||
|
available for as long as needed to satisfy these requirements.
|
||||||
|
|
||||||
|
e) Convey the object code using peer-to-peer transmission, provided
|
||||||
|
you inform other peers where the object code and Corresponding
|
||||||
|
Source of the work are being offered to the general public at no
|
||||||
|
charge under subsection 6d.
|
||||||
|
|
||||||
|
A separable portion of the object code, whose source code is excluded
|
||||||
|
from the Corresponding Source as a System Library, need not be
|
||||||
|
included in conveying the object code work.
|
||||||
|
|
||||||
|
A "User Product" is either (1) a "consumer product", which means any
|
||||||
|
tangible personal property which is normally used for personal, family,
|
||||||
|
or household purposes, or (2) anything designed or sold for incorporation
|
||||||
|
into a dwelling. In determining whether a product is a consumer product,
|
||||||
|
doubtful cases shall be resolved in favor of coverage. For a particular
|
||||||
|
product received by a particular user, "normally used" refers to a
|
||||||
|
typical or common use of that class of product, regardless of the status
|
||||||
|
of the particular user or of the way in which the particular user
|
||||||
|
actually uses, or expects or is expected to use, the product. A product
|
||||||
|
is a consumer product regardless of whether the product has substantial
|
||||||
|
commercial, industrial or non-consumer uses, unless such uses represent
|
||||||
|
the only significant mode of use of the product.
|
||||||
|
|
||||||
|
"Installation Information" for a User Product means any methods,
|
||||||
|
procedures, authorization keys, or other information required to install
|
||||||
|
and execute modified versions of a covered work in that User Product from
|
||||||
|
a modified version of its Corresponding Source. The information must
|
||||||
|
suffice to ensure that the continued functioning of the modified object
|
||||||
|
code is in no case prevented or interfered with solely because
|
||||||
|
modification has been made.
|
||||||
|
|
||||||
|
If you convey an object code work under this section in, or with, or
|
||||||
|
specifically for use in, a User Product, and the conveying occurs as
|
||||||
|
part of a transaction in which the right of possession and use of the
|
||||||
|
User Product is transferred to the recipient in perpetuity or for a
|
||||||
|
fixed term (regardless of how the transaction is characterized), the
|
||||||
|
Corresponding Source conveyed under this section must be accompanied
|
||||||
|
by the Installation Information. But this requirement does not apply
|
||||||
|
if neither you nor any third party retains the ability to install
|
||||||
|
modified object code on the User Product (for example, the work has
|
||||||
|
been installed in ROM).
|
||||||
|
|
||||||
|
The requirement to provide Installation Information does not include a
|
||||||
|
requirement to continue to provide support service, warranty, or updates
|
||||||
|
for a work that has been modified or installed by the recipient, or for
|
||||||
|
the User Product in which it has been modified or installed. Access to a
|
||||||
|
network may be denied when the modification itself materially and
|
||||||
|
adversely affects the operation of the network or violates the rules and
|
||||||
|
protocols for communication across the network.
|
||||||
|
|
||||||
|
Corresponding Source conveyed, and Installation Information provided,
|
||||||
|
in accord with this section must be in a format that is publicly
|
||||||
|
documented (and with an implementation available to the public in
|
||||||
|
source code form), and must require no special password or key for
|
||||||
|
unpacking, reading or copying.
|
||||||
|
|
||||||
|
7. Additional Terms.
|
||||||
|
|
||||||
|
"Additional permissions" are terms that supplement the terms of this
|
||||||
|
License by making exceptions from one or more of its conditions.
|
||||||
|
Additional permissions that are applicable to the entire Program shall
|
||||||
|
be treated as though they were included in this License, to the extent
|
||||||
|
that they are valid under applicable law. If additional permissions
|
||||||
|
apply only to part of the Program, that part may be used separately
|
||||||
|
under those permissions, but the entire Program remains governed by
|
||||||
|
this License without regard to the additional permissions.
|
||||||
|
|
||||||
|
When you convey a copy of a covered work, you may at your option
|
||||||
|
remove any additional permissions from that copy, or from any part of
|
||||||
|
it. (Additional permissions may be written to require their own
|
||||||
|
removal in certain cases when you modify the work.) You may place
|
||||||
|
additional permissions on material, added by you to a covered work,
|
||||||
|
for which you have or can give appropriate copyright permission.
|
||||||
|
|
||||||
|
Notwithstanding any other provision of this License, for material you
|
||||||
|
add to a covered work, you may (if authorized by the copyright holders of
|
||||||
|
that material) supplement the terms of this License with terms:
|
||||||
|
|
||||||
|
a) Disclaiming warranty or limiting liability differently from the
|
||||||
|
terms of sections 15 and 16 of this License; or
|
||||||
|
|
||||||
|
b) Requiring preservation of specified reasonable legal notices or
|
||||||
|
author attributions in that material or in the Appropriate Legal
|
||||||
|
Notices displayed by works containing it; or
|
||||||
|
|
||||||
|
c) Prohibiting misrepresentation of the origin of that material, or
|
||||||
|
requiring that modified versions of such material be marked in
|
||||||
|
reasonable ways as different from the original version; or
|
||||||
|
|
||||||
|
d) Limiting the use for publicity purposes of names of licensors or
|
||||||
|
authors of the material; or
|
||||||
|
|
||||||
|
e) Declining to grant rights under trademark law for use of some
|
||||||
|
trade names, trademarks, or service marks; or
|
||||||
|
|
||||||
|
f) Requiring indemnification of licensors and authors of that
|
||||||
|
material by anyone who conveys the material (or modified versions of
|
||||||
|
it) with contractual assumptions of liability to the recipient, for
|
||||||
|
any liability that these contractual assumptions directly impose on
|
||||||
|
those licensors and authors.
|
||||||
|
|
||||||
|
All other non-permissive additional terms are considered "further
|
||||||
|
restrictions" within the meaning of section 10. If the Program as you
|
||||||
|
received it, or any part of it, contains a notice stating that it is
|
||||||
|
governed by this License along with a term that is a further
|
||||||
|
restriction, you may remove that term. If a license document contains
|
||||||
|
a further restriction but permits relicensing or conveying under this
|
||||||
|
License, you may add to a covered work material governed by the terms
|
||||||
|
of that license document, provided that the further restriction does
|
||||||
|
not survive such relicensing or conveying.
|
||||||
|
|
||||||
|
If you add terms to a covered work in accord with this section, you
|
||||||
|
must place, in the relevant source files, a statement of the
|
||||||
|
additional terms that apply to those files, or a notice indicating
|
||||||
|
where to find the applicable terms.
|
||||||
|
|
||||||
|
Additional terms, permissive or non-permissive, may be stated in the
|
||||||
|
form of a separately written license, or stated as exceptions;
|
||||||
|
the above requirements apply either way.
|
||||||
|
|
||||||
|
8. Termination.
|
||||||
|
|
||||||
|
You may not propagate or modify a covered work except as expressly
|
||||||
|
provided under this License. Any attempt otherwise to propagate or
|
||||||
|
modify it is void, and will automatically terminate your rights under
|
||||||
|
this License (including any patent licenses granted under the third
|
||||||
|
paragraph of section 11).
|
||||||
|
|
||||||
|
However, if you cease all violation of this License, then your
|
||||||
|
license from a particular copyright holder is reinstated (a)
|
||||||
|
provisionally, unless and until the copyright holder explicitly and
|
||||||
|
finally terminates your license, and (b) permanently, if the copyright
|
||||||
|
holder fails to notify you of the violation by some reasonable means
|
||||||
|
prior to 60 days after the cessation.
|
||||||
|
|
||||||
|
Moreover, your license from a particular copyright holder is
|
||||||
|
reinstated permanently if the copyright holder notifies you of the
|
||||||
|
violation by some reasonable means, this is the first time you have
|
||||||
|
received notice of violation of this License (for any work) from that
|
||||||
|
copyright holder, and you cure the violation prior to 30 days after
|
||||||
|
your receipt of the notice.
|
||||||
|
|
||||||
|
Termination of your rights under this section does not terminate the
|
||||||
|
licenses of parties who have received copies or rights from you under
|
||||||
|
this License. If your rights have been terminated and not permanently
|
||||||
|
reinstated, you do not qualify to receive new licenses for the same
|
||||||
|
material under section 10.
|
||||||
|
|
||||||
|
9. Acceptance Not Required for Having Copies.
|
||||||
|
|
||||||
|
You are not required to accept this License in order to receive or
|
||||||
|
run a copy of the Program. Ancillary propagation of a covered work
|
||||||
|
occurring solely as a consequence of using peer-to-peer transmission
|
||||||
|
to receive a copy likewise does not require acceptance. However,
|
||||||
|
nothing other than this License grants you permission to propagate or
|
||||||
|
modify any covered work. These actions infringe copyright if you do
|
||||||
|
not accept this License. Therefore, by modifying or propagating a
|
||||||
|
covered work, you indicate your acceptance of this License to do so.
|
||||||
|
|
||||||
|
10. Automatic Licensing of Downstream Recipients.
|
||||||
|
|
||||||
|
Each time you convey a covered work, the recipient automatically
|
||||||
|
receives a license from the original licensors, to run, modify and
|
||||||
|
propagate that work, subject to this License. You are not responsible
|
||||||
|
for enforcing compliance by third parties with this License.
|
||||||
|
|
||||||
|
An "entity transaction" is a transaction transferring control of an
|
||||||
|
organization, or substantially all assets of one, or subdividing an
|
||||||
|
organization, or merging organizations. If propagation of a covered
|
||||||
|
work results from an entity transaction, each party to that
|
||||||
|
transaction who receives a copy of the work also receives whatever
|
||||||
|
licenses to the work the party's predecessor in interest had or could
|
||||||
|
give under the previous paragraph, plus a right to possession of the
|
||||||
|
Corresponding Source of the work from the predecessor in interest, if
|
||||||
|
the predecessor has it or can get it with reasonable efforts.
|
||||||
|
|
||||||
|
You may not impose any further restrictions on the exercise of the
|
||||||
|
rights granted or affirmed under this License. For example, you may
|
||||||
|
not impose a license fee, royalty, or other charge for exercise of
|
||||||
|
rights granted under this License, and you may not initiate litigation
|
||||||
|
(including a cross-claim or counterclaim in a lawsuit) alleging that
|
||||||
|
any patent claim is infringed by making, using, selling, offering for
|
||||||
|
sale, or importing the Program or any portion of it.
|
||||||
|
|
||||||
|
11. Patents.
|
||||||
|
|
||||||
|
A "contributor" is a copyright holder who authorizes use under this
|
||||||
|
License of the Program or a work on which the Program is based. The
|
||||||
|
work thus licensed is called the contributor's "contributor version".
|
||||||
|
|
||||||
|
A contributor's "essential patent claims" are all patent claims
|
||||||
|
owned or controlled by the contributor, whether already acquired or
|
||||||
|
hereafter acquired, that would be infringed by some manner, permitted
|
||||||
|
by this License, of making, using, or selling its contributor version,
|
||||||
|
but do not include claims that would be infringed only as a
|
||||||
|
consequence of further modification of the contributor version. For
|
||||||
|
purposes of this definition, "control" includes the right to grant
|
||||||
|
patent sublicenses in a manner consistent with the requirements of
|
||||||
|
this License.
|
||||||
|
|
||||||
|
Each contributor grants you a non-exclusive, worldwide, royalty-free
|
||||||
|
patent license under the contributor's essential patent claims, to
|
||||||
|
make, use, sell, offer for sale, import and otherwise run, modify and
|
||||||
|
propagate the contents of its contributor version.
|
||||||
|
|
||||||
|
In the following three paragraphs, a "patent license" is any express
|
||||||
|
agreement or commitment, however denominated, not to enforce a patent
|
||||||
|
(such as an express permission to practice a patent or covenant not to
|
||||||
|
sue for patent infringement). To "grant" such a patent license to a
|
||||||
|
party means to make such an agreement or commitment not to enforce a
|
||||||
|
patent against the party.
|
||||||
|
|
||||||
|
If you convey a covered work, knowingly relying on a patent license,
|
||||||
|
and the Corresponding Source of the work is not available for anyone
|
||||||
|
to copy, free of charge and under the terms of this License, through a
|
||||||
|
publicly available network server or other readily accessible means,
|
||||||
|
then you must either (1) cause the Corresponding Source to be so
|
||||||
|
available, or (2) arrange to deprive yourself of the benefit of the
|
||||||
|
patent license for this particular work, or (3) arrange, in a manner
|
||||||
|
consistent with the requirements of this License, to extend the patent
|
||||||
|
license to downstream recipients. "Knowingly relying" means you have
|
||||||
|
actual knowledge that, but for the patent license, your conveying the
|
||||||
|
covered work in a country, or your recipient's use of the covered work
|
||||||
|
in a country, would infringe one or more identifiable patents in that
|
||||||
|
country that you have reason to believe are valid.
|
||||||
|
|
||||||
|
If, pursuant to or in connection with a single transaction or
|
||||||
|
arrangement, you convey, or propagate by procuring conveyance of, a
|
||||||
|
covered work, and grant a patent license to some of the parties
|
||||||
|
receiving the covered work authorizing them to use, propagate, modify
|
||||||
|
or convey a specific copy of the covered work, then the patent license
|
||||||
|
you grant is automatically extended to all recipients of the covered
|
||||||
|
work and works based on it.
|
||||||
|
|
||||||
|
A patent license is "discriminatory" if it does not include within
|
||||||
|
the scope of its coverage, prohibits the exercise of, or is
|
||||||
|
conditioned on the non-exercise of one or more of the rights that are
|
||||||
|
specifically granted under this License. You may not convey a covered
|
||||||
|
work if you are a party to an arrangement with a third party that is
|
||||||
|
in the business of distributing software, under which you make payment
|
||||||
|
to the third party based on the extent of your activity of conveying
|
||||||
|
the work, and under which the third party grants, to any of the
|
||||||
|
parties who would receive the covered work from you, a discriminatory
|
||||||
|
patent license (a) in connection with copies of the covered work
|
||||||
|
conveyed by you (or copies made from those copies), or (b) primarily
|
||||||
|
for and in connection with specific products or compilations that
|
||||||
|
contain the covered work, unless you entered into that arrangement,
|
||||||
|
or that patent license was granted, prior to 28 March 2007.
|
||||||
|
|
||||||
|
Nothing in this License shall be construed as excluding or limiting
|
||||||
|
any implied license or other defenses to infringement that may
|
||||||
|
otherwise be available to you under applicable patent law.
|
||||||
|
|
||||||
|
12. No Surrender of Others' Freedom.
|
||||||
|
|
||||||
|
If conditions are imposed on you (whether by court order, agreement or
|
||||||
|
otherwise) that contradict the conditions of this License, they do not
|
||||||
|
excuse you from the conditions of this License. If you cannot convey a
|
||||||
|
covered work so as to satisfy simultaneously your obligations under this
|
||||||
|
License and any other pertinent obligations, then as a consequence you may
|
||||||
|
not convey it at all. For example, if you agree to terms that obligate you
|
||||||
|
to collect a royalty for further conveying from those to whom you convey
|
||||||
|
the Program, the only way you could satisfy both those terms and this
|
||||||
|
License would be to refrain entirely from conveying the Program.
|
||||||
|
|
||||||
|
13. Use with the GNU Affero General Public License.
|
||||||
|
|
||||||
|
Notwithstanding any other provision of this License, you have
|
||||||
|
permission to link or combine any covered work with a work licensed
|
||||||
|
under version 3 of the GNU Affero General Public License into a single
|
||||||
|
combined work, and to convey the resulting work. The terms of this
|
||||||
|
License will continue to apply to the part which is the covered work,
|
||||||
|
but the special requirements of the GNU Affero General Public License,
|
||||||
|
section 13, concerning interaction through a network will apply to the
|
||||||
|
combination as such.
|
||||||
|
|
||||||
|
14. Revised Versions of this License.
|
||||||
|
|
||||||
|
The Free Software Foundation may publish revised and/or new versions of
|
||||||
|
the GNU General Public License from time to time. Such new versions will
|
||||||
|
be similar in spirit to the present version, but may differ in detail to
|
||||||
|
address new problems or concerns.
|
||||||
|
|
||||||
|
Each version is given a distinguishing version number. If the
|
||||||
|
Program specifies that a certain numbered version of the GNU General
|
||||||
|
Public License "or any later version" applies to it, you have the
|
||||||
|
option of following the terms and conditions either of that numbered
|
||||||
|
version or of any later version published by the Free Software
|
||||||
|
Foundation. If the Program does not specify a version number of the
|
||||||
|
GNU General Public License, you may choose any version ever published
|
||||||
|
by the Free Software Foundation.
|
||||||
|
|
||||||
|
If the Program specifies that a proxy can decide which future
|
||||||
|
versions of the GNU General Public License can be used, that proxy's
|
||||||
|
public statement of acceptance of a version permanently authorizes you
|
||||||
|
to choose that version for the Program.
|
||||||
|
|
||||||
|
Later license versions may give you additional or different
|
||||||
|
permissions. However, no additional obligations are imposed on any
|
||||||
|
author or copyright holder as a result of your choosing to follow a
|
||||||
|
later version.
|
||||||
|
|
||||||
|
15. Disclaimer of Warranty.
|
||||||
|
|
||||||
|
THERE IS NO WARRANTY FOR THE PROGRAM, TO THE EXTENT PERMITTED BY
|
||||||
|
APPLICABLE LAW. EXCEPT WHEN OTHERWISE STATED IN WRITING THE COPYRIGHT
|
||||||
|
HOLDERS AND/OR OTHER PARTIES PROVIDE THE PROGRAM "AS IS" WITHOUT WARRANTY
|
||||||
|
OF ANY KIND, EITHER EXPRESSED OR IMPLIED, INCLUDING, BUT NOT LIMITED TO,
|
||||||
|
THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
|
||||||
|
PURPOSE. THE ENTIRE RISK AS TO THE QUALITY AND PERFORMANCE OF THE PROGRAM
|
||||||
|
IS WITH YOU. SHOULD THE PROGRAM PROVE DEFECTIVE, YOU ASSUME THE COST OF
|
||||||
|
ALL NECESSARY SERVICING, REPAIR OR CORRECTION.
|
||||||
|
|
||||||
|
16. Limitation of Liability.
|
||||||
|
|
||||||
|
IN NO EVENT UNLESS REQUIRED BY APPLICABLE LAW OR AGREED TO IN WRITING
|
||||||
|
WILL ANY COPYRIGHT HOLDER, OR ANY OTHER PARTY WHO MODIFIES AND/OR CONVEYS
|
||||||
|
THE PROGRAM AS PERMITTED ABOVE, BE LIABLE TO YOU FOR DAMAGES, INCLUDING ANY
|
||||||
|
GENERAL, SPECIAL, INCIDENTAL OR CONSEQUENTIAL DAMAGES ARISING OUT OF THE
|
||||||
|
USE OR INABILITY TO USE THE PROGRAM (INCLUDING BUT NOT LIMITED TO LOSS OF
|
||||||
|
DATA OR DATA BEING RENDERED INACCURATE OR LOSSES SUSTAINED BY YOU OR THIRD
|
||||||
|
PARTIES OR A FAILURE OF THE PROGRAM TO OPERATE WITH ANY OTHER PROGRAMS),
|
||||||
|
EVEN IF SUCH HOLDER OR OTHER PARTY HAS BEEN ADVISED OF THE POSSIBILITY OF
|
||||||
|
SUCH DAMAGES.
|
||||||
|
|
||||||
|
17. Interpretation of Sections 15 and 16.
|
||||||
|
|
||||||
|
If the disclaimer of warranty and limitation of liability provided
|
||||||
|
above cannot be given local legal effect according to their terms,
|
||||||
|
reviewing courts shall apply local law that most closely approximates
|
||||||
|
an absolute waiver of all civil liability in connection with the
|
||||||
|
Program, unless a warranty or assumption of liability accompanies a
|
||||||
|
copy of the Program in return for a fee.
|
||||||
|
|
||||||
|
END OF TERMS AND CONDITIONS
|
||||||
|
|
||||||
|
How to Apply These Terms to Your New Programs
|
||||||
|
|
||||||
|
If you develop a new program, and you want it to be of the greatest
|
||||||
|
possible use to the public, the best way to achieve this is to make it
|
||||||
|
free software which everyone can redistribute and change under these terms.
|
||||||
|
|
||||||
|
To do so, attach the following notices to the program. It is safest
|
||||||
|
to attach them to the start of each source file to most effectively
|
||||||
|
state the exclusion of warranty; and each file should have at least
|
||||||
|
the "copyright" line and a pointer to where the full notice is found.
|
||||||
|
|
||||||
|
<one line to give the program's name and a brief idea of what it does.>
|
||||||
|
Copyright (C) <year> <name of author>
|
||||||
|
|
||||||
|
This program is free software: you can redistribute it and/or modify
|
||||||
|
it under the terms of the GNU General Public License as published by
|
||||||
|
the Free Software Foundation, either version 3 of the License, or
|
||||||
|
(at your option) any later version.
|
||||||
|
|
||||||
|
This program is distributed in the hope that it will be useful,
|
||||||
|
but WITHOUT ANY WARRANTY; without even the implied warranty of
|
||||||
|
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
|
||||||
|
GNU General Public License for more details.
|
||||||
|
|
||||||
|
You should have received a copy of the GNU General Public License
|
||||||
|
along with this program. If not, see <https://www.gnu.org/licenses/>.
|
||||||
|
|
||||||
|
Also add information on how to contact you by electronic and paper mail.
|
||||||
|
|
||||||
|
If the program does terminal interaction, make it output a short
|
||||||
|
notice like this when it starts in an interactive mode:
|
||||||
|
|
||||||
|
<program> Copyright (C) <year> <name of author>
|
||||||
|
This program comes with ABSOLUTELY NO WARRANTY; for details type `show w'.
|
||||||
|
This is free software, and you are welcome to redistribute it
|
||||||
|
under certain conditions; type `show c' for details.
|
||||||
|
|
||||||
|
The hypothetical commands `show w' and `show c' should show the appropriate
|
||||||
|
parts of the General Public License. Of course, your program's commands
|
||||||
|
might be different; for a GUI interface, you would use an "about box".
|
||||||
|
|
||||||
|
You should also get your employer (if you work as a programmer) or school,
|
||||||
|
if any, to sign a "copyright disclaimer" for the program, if necessary.
|
||||||
|
For more information on this, and how to apply and follow the GNU GPL, see
|
||||||
|
<https://www.gnu.org/licenses/>.
|
||||||
|
|
||||||
|
The GNU General Public License does not permit incorporating your program
|
||||||
|
into proprietary programs. If your program is a subroutine library, you
|
||||||
|
may consider it more useful to permit linking proprietary applications with
|
||||||
|
the library. If this is what you want to do, use the GNU Lesser General
|
||||||
|
Public License instead of this License. But first, please read
|
||||||
|
<https://www.gnu.org/licenses/why-not-lgpl.html>.
|
||||||
|
|
@ -1,28 +1,74 @@
|
||||||
########################################################################
|
########################################################################
|
||||||
#
|
# Cross-platform Makefile (macOS + Linux)
|
||||||
#
|
########################################################################
|
||||||
#########################################################################
|
|
||||||
|
|
||||||
CC = g++
|
UNAME_S := $(shell uname -s)
|
||||||
|
|
||||||
#COPTS = -fPIC -DLINUX -O2 -std=c++17 -lpthread
|
########################################################################
|
||||||
COPTS = -fPIC -DLINUX -g -O0 -Wall -std=c++17 -lpthread
|
# Defaults
|
||||||
|
########################################################################
|
||||||
|
|
||||||
ROOTLIBS = `root-config --cflags --glibs`
|
ifeq ($(UNAME_S),Darwin)
|
||||||
|
|
||||||
ALL = Mapper AnasenMS
|
########################################################################
|
||||||
|
# macOS (Homebrew + Apple Clang)
|
||||||
|
########################################################################
|
||||||
|
|
||||||
#########################################################################
|
SDKROOT := $(shell xcrun --show-sdk-path)
|
||||||
|
|
||||||
all : $(ALL)
|
CXX := clang++
|
||||||
|
|
||||||
clean :
|
ROOTCFLAGS := $(shell root-config --cflags | sed 's/-stdlib=libc++//g')
|
||||||
/bin/rm -f $(OBJS) $(ALL)
|
ROOTLIBS := $(shell root-config --libs | sed 's/-stdlib=libc++//g')
|
||||||
|
|
||||||
Mapper : Mapper.cpp ../mapping.h ClassDet.h
|
CXXFLAGS := -g -O0 -Wall -std=c++17 -fPIC
|
||||||
@echo "--------- making Mapper"
|
CXXFLAGS += $(ROOTCFLAGS)
|
||||||
$(CC) $(COPTS) -o Mapper Mapper.cpp $(ROOTLIBS)
|
CXXFLAGS += -isysroot $(SDKROOT)
|
||||||
|
CXXFLAGS += -I$(SDKROOT)/usr/include/c++/v1
|
||||||
|
|
||||||
AnasenMS : constant.h Isotope.h ClassTransfer.h ClassSX3.h ClassPW.h ClassAnasen.h anasenMS.cpp
|
LDFLAGS := $(shell root-config --glibs) -lGeom -lEve -lGui
|
||||||
@echo "--------- making ANASEN Monte Carlo"
|
|
||||||
$(CC) $(COPTS) -o AnasenMS anasenMS.cpp $(ROOTLIBS)
|
else
|
||||||
|
|
||||||
|
########################################################################
|
||||||
|
# Linux (system g++)
|
||||||
|
########################################################################
|
||||||
|
|
||||||
|
CXX := g++
|
||||||
|
|
||||||
|
COPTS := -fPIC -DLINUX -g -O0 -Wall -std=c++17 -pthread
|
||||||
|
|
||||||
|
ROOTCFLAGS := $(shell root-config --cflags)
|
||||||
|
ROOTLIBS := $(shell root-config --libs)
|
||||||
|
|
||||||
|
CXXFLAGS := $(COPTS) $(ROOTCFLAGS)
|
||||||
|
LDFLAGS := $(ROOTLIBS) -lGeom -lEve -lGui
|
||||||
|
|
||||||
|
endif
|
||||||
|
|
||||||
|
########################################################################
|
||||||
|
# Targets
|
||||||
|
########################################################################
|
||||||
|
|
||||||
|
ALL = Mapper EventBuilder AnasenMS
|
||||||
|
|
||||||
|
all: $(ALL)
|
||||||
|
|
||||||
|
clean:
|
||||||
|
/bin/rm -f $(ALL)
|
||||||
|
|
||||||
|
########################################################################
|
||||||
|
# Build rules
|
||||||
|
########################################################################
|
||||||
|
|
||||||
|
Mapper: Mapper.cpp ../mapping.h ClassDet.h
|
||||||
|
@echo "--------- making Mapper"
|
||||||
|
$(CXX) $(CXXFLAGS) Mapper.cpp -o Mapper $(LDFLAGS)
|
||||||
|
|
||||||
|
EventBuilder: EventBuilder.cpp ClassData.h fsuReader.h Hit.h
|
||||||
|
@echo "--------- making EventBuilder"
|
||||||
|
$(CXX) $(CXXFLAGS) EventBuilder.cpp -o EventBuilder $(LDFLAGS)
|
||||||
|
|
||||||
|
AnasenMS: anasenMS.cpp constant.h Isotope.h ClassTransfer.h ClassSX3.h ClassPW.h ClassAnasen.h
|
||||||
|
@echo "--------- making ANASEN Monte Carlo"
|
||||||
|
$(CXX) $(CXXFLAGS) anasenMS.cpp -o AnasenMS $(LDFLAGS)
|
||||||
20
Armory/Mapper.dSYM/Contents/Info.plist
Normal file
20
Armory/Mapper.dSYM/Contents/Info.plist
Normal file
|
|
@ -0,0 +1,20 @@
|
||||||
|
<?xml version="1.0" encoding="UTF-8"?>
|
||||||
|
<!DOCTYPE plist PUBLIC "-//Apple Computer//DTD PLIST 1.0//EN" "http://www.apple.com/DTDs/PropertyList-1.0.dtd">
|
||||||
|
<plist version="1.0">
|
||||||
|
<dict>
|
||||||
|
<key>CFBundleDevelopmentRegion</key>
|
||||||
|
<string>English</string>
|
||||||
|
<key>CFBundleIdentifier</key>
|
||||||
|
<string>com.apple.xcode.dsym.Mapper</string>
|
||||||
|
<key>CFBundleInfoDictionaryVersion</key>
|
||||||
|
<string>6.0</string>
|
||||||
|
<key>CFBundlePackageType</key>
|
||||||
|
<string>dSYM</string>
|
||||||
|
<key>CFBundleSignature</key>
|
||||||
|
<string>????</string>
|
||||||
|
<key>CFBundleShortVersionString</key>
|
||||||
|
<string>1.0</string>
|
||||||
|
<key>CFBundleVersion</key>
|
||||||
|
<string>1</string>
|
||||||
|
</dict>
|
||||||
|
</plist>
|
||||||
|
|
@ -0,0 +1,5 @@
|
||||||
|
---
|
||||||
|
triple: 'arm64-apple-darwin'
|
||||||
|
binary-path: Mapper
|
||||||
|
relocations: []
|
||||||
|
...
|
||||||
98
Armory/README_anasenMS.md
Normal file
98
Armory/README_anasenMS.md
Normal file
|
|
@ -0,0 +1,98 @@
|
||||||
|
# ANASEN Monte Carlo (anasenMS.cpp)
|
||||||
|
|
||||||
|
## Overview
|
||||||
|
|
||||||
|
`anasenMS.cpp` is a standalone Monte Carlo simulation for an ANASEN-style detector setup. It generates transfer reaction kinematics, propagates products to a wire chamber (PW) and a silicon array (SX3), reconstructs tracks, and writes output to a ROOT tree.
|
||||||
|
|
||||||
|
## Requirements
|
||||||
|
|
||||||
|
- ROOT (e.g. `root-config` for compile flags)
|
||||||
|
- C++ compiler (gcc/g++)
|
||||||
|
- Project includes: `ClassTransfer.h`, `ClassAnasen.h`, plus their dependent implementation files.
|
||||||
|
|
||||||
|
## Build
|
||||||
|
|
||||||
|
In `Armory` directory:
|
||||||
|
|
||||||
|
the directory contains a make file
|
||||||
|
|
||||||
|
Run `make AnasenMS` and it will automatically run
|
||||||
|
|
||||||
|
```bash
|
||||||
|
g++ -O2 -o anasenMS anasenMS.cpp ClassTransfer.cpp ClassAnasen.cpp ... `root-config --cflags --libs`
|
||||||
|
```
|
||||||
|
|
||||||
|
(Adjust source file list based on actual project layout.)
|
||||||
|
|
||||||
|
## Run
|
||||||
|
|
||||||
|
```bash
|
||||||
|
./anasenMS [numEvents] vis(optional)
|
||||||
|
```
|
||||||
|
|
||||||
|
- `numEvents`: optional integer, default `1000000`
|
||||||
|
- Outputs: `SimAnasen1.root` containing `tree1` and `tree2`
|
||||||
|
tree1 contains pre-energy loss calculations
|
||||||
|
tree2 contains post-energy loss calculations (subject to change)
|
||||||
|
|
||||||
|
## What the code does
|
||||||
|
|
||||||
|
- Detector geometry is built within ClassAnasen.h
|
||||||
|
|
||||||
|
-To assign dead channels (anode/cathode/SX3), add ID's to IsDead<detector> boolean functions at top of simulation,
|
||||||
|
inside the set
|
||||||
|
|
||||||
|
- Initializes reaction: `TransferReaction transfer`
|
||||||
|
- `SetA(24,12,0)` target
|
||||||
|
- `SetIncidentEnergyAngle(10,0,0)` beam energy and direction
|
||||||
|
- `Seta`, `Setb` reaction fragment indices
|
||||||
|
- Sets excitation lists: `ExAList`, `ExList`
|
||||||
|
- Vertex and resolution settings:
|
||||||
|
- `vertexX/Y/Z` ranges
|
||||||
|
- `sigmaSX3_W`, `sigmaSX3_L`, `sigmaPW_A`, `sigmaPW_C`
|
||||||
|
- Loads energy loss tables from `../ELoss/` using `TGraph` for interpolation
|
||||||
|
- Prepares ROOT output tree and branches for truth/reconstructed
|
||||||
|
- Loop over events:
|
||||||
|
- Sample excitation and CM direction
|
||||||
|
- `transfer.Event(thetaCM, phiCM)` outputs `TLorentzVector` products
|
||||||
|
- Compute lab angles/energies
|
||||||
|
- Random vertex inside target volume
|
||||||
|
- Run detector response:
|
||||||
|
- `pw->FindWireID(...)`
|
||||||
|
- `sx3->FindSX3Pos(...)`
|
||||||
|
- Read out wire hits and SX3 channel + depth
|
||||||
|
- Apply position smearing for SX3
|
||||||
|
- **Apply energy loss** to light particle using interpolated dE/dx from table, based on path length from vertex to hit
|
||||||
|
- Reconstruct track via `pw->CalTrack` and `pw->CalTrack2`
|
||||||
|
- Fill ROOT tree
|
||||||
|
- At end: write tree, close file, clean up
|
||||||
|
|
||||||
|
## Notes
|
||||||
|
|
||||||
|
- Important methods are from:
|
||||||
|
- `ClassTransfer` (`SetA`, `SetIncidentEnergyAngle`, `Seta`, `Setb`, `SetExA`, `SetExB`, `CalReactionConstant`, `Event`)
|
||||||
|
- `ClassAnasen` / `SX3` / `PW` (`FindWireID`, `FindSX3Pos`, `GetHitInfo`, `CalTrack`, `CalTrack2`, `GetTrackTheta`, `GetTrackPhi`, `GetZ0`, `GetHitPosWithSigma`, `GetID`, etc.)
|
||||||
|
- Optional: change excitation lists, vertex spread, and sigma values to mimic different beam/target conditions.
|
||||||
|
|
||||||
|
## Example Workflow
|
||||||
|
|
||||||
|
- Say you want to do a beam of Al27 through standard pressure gas.
|
||||||
|
- If using the random energy scan route, determine the depth your beam travels in the detector, and set the appropriate window in the .cpp file in <<vertexZRange>>.
|
||||||
|
- If you want to track it's energy loss through the detector, create a lookup table with PCEnergyAnalysis.py in the helium and import it using <<elossbeam>>. When making the table, set the initial energy of the beam as the 'max energy' of the table.
|
||||||
|
To take into account things like the kapton window and other materials, make lookup tables for them and map their energy loss through them one after another, and use the final energy from that as the maximum beam energy.
|
||||||
|
|
||||||
|
- For there you need to run a simulation for each reaction you want to measure. Declare their components in the transfer.Set(A,a,b,B). A is your beam, a is the helium target, b is your proton, alpha, deuterium, etc, and B is the daughter nuclei.
|
||||||
|
|
||||||
|
- Run 'make AnasenMS' in the build directory and let it compile. From there, run the excecutable './AnasenMS'. The simulation will run and automatically load all the data into the root file 'SimAnasen1.root'. This is the file that gets read into PCEnergyAnalysis.py.
|
||||||
|
|
||||||
|
- Once the simulation is complete, start the analysis script. Do not start it while the simulation is still running, or you will miss data. The simulation will automatically open the file SimAnasen1.root, and with that you can run 'make_plots'. If it's proton data, it will assume that automatically, but if it is alpha data, you need to pass 'alpha' as an additional argument.
|
||||||
|
|
||||||
|
- If you have two reactions to analyze, you can use 'dual_plotter'. Renaming them 'SimAnasenProton.root' and 'SimAnasenAlpha.root' will allow you to run the function with no additional arguments. However, for any other names or additional reactions, you will need to add the file names manually as additional arguments. The program assumes them to be in the Armory directory, so if they are in a subfile, include the subfile in the argument.
|
||||||
|
|
||||||
|
- Plots and histograms will automatically get saved to the ELoss folder. By default reactions are on tree1, and are sorted by particle
|
||||||
|
|
||||||
|
- Tree2 is used for secondary decay channels, and simulating double-proton decays. The secondary decay data is stored in tree2. Dual plotter will combine trees automatically, but make_plots assumes to use tree1. This can be switched using set_tree in the program, and then running make_plots
|
||||||
|
- Secondary reactions can be turned off and on with a boolean <<enableSequentialDecay>>
|
||||||
|
- Fill in relevant data about the decay in the lines following
|
||||||
|
|
||||||
|
- Additional features include terminal energy loss calculations using initial energy, final energy and distance travelled. Using two of these three there are three different functions to find the third variable. For range, use energy_distance, declare the particle, medium, the initial energy, and set final energy to 0. This will give you the range of the given particle.
|
||||||
183
Armory/SX3Geom.h
Executable file
183
Armory/SX3Geom.h
Executable file
|
|
@ -0,0 +1,183 @@
|
||||||
|
#ifndef SX3Geom_h
|
||||||
|
#define SX3Geom_h
|
||||||
|
#include <vector>
|
||||||
|
|
||||||
|
const double DEFAULT_NULL=-987654321.;
|
||||||
|
|
||||||
|
class sx3_geometry_scalefactors {
|
||||||
|
public:
|
||||||
|
//If sx3 has L, R being the left and right extremities, we choose add, stretch here such that
|
||||||
|
// x_mm = (x_raw+add)*stretch; so add=abs(L), stretch=75/(abs(L)+R)
|
||||||
|
float add[4];
|
||||||
|
float stretch[4];
|
||||||
|
};
|
||||||
|
|
||||||
|
class qqq5_finegains {
|
||||||
|
public:
|
||||||
|
std::array<std::pair<float,float>,32> front;
|
||||||
|
//front.at(30).first = slope at clkpos 0, ring 30 for E front layer
|
||||||
|
//front.at(30).second = intercept for the same as above
|
||||||
|
std::array<std::pair<float,float>,4> back;
|
||||||
|
};
|
||||||
|
class sx3_fbgains {
|
||||||
|
public:
|
||||||
|
//Order of indices is [pad][strip]
|
||||||
|
float padoffsets[4][4];
|
||||||
|
float padgains[4][4];
|
||||||
|
|
||||||
|
float stripLoffsets[4][4];
|
||||||
|
float stripLgains[4][4];
|
||||||
|
|
||||||
|
float stripRoffsets[4][4];
|
||||||
|
float stripRgains[4][4];
|
||||||
|
};
|
||||||
|
|
||||||
|
std::array<sx3_fbgains,24> sx3_xtalk_gains; //every sx3 needs to be gainmatched as a frontL-back, frontR-back pair (pad strip pair)
|
||||||
|
std::array<sx3_geometry_scalefactors,24> sx3gs;
|
||||||
|
|
||||||
|
class sx3 {
|
||||||
|
public:
|
||||||
|
//TODO: Convert to std::array
|
||||||
|
//Holds all information in an event, including ped subtraction+scaling. back[2].at(0) will have the largest energy seen in ch2, if any
|
||||||
|
std::vector<float> back[4];
|
||||||
|
std::vector<float> frontL[4];
|
||||||
|
std::vector<float> frontR[4];
|
||||||
|
|
||||||
|
double ts = DEFAULT_NULL;
|
||||||
|
//Easy lookup of final calibrated event. Only filled for valid cases, assumed for now to be 1L, 1R, 1B
|
||||||
|
float frontX=DEFAULT_NULL;
|
||||||
|
float frontXmm=DEFAULT_NULL;
|
||||||
|
float frontE=DEFAULT_NULL;
|
||||||
|
float backE=DEFAULT_NULL;
|
||||||
|
int stripF=DEFAULT_NULL;
|
||||||
|
int stripB=DEFAULT_NULL;
|
||||||
|
float frontEL=DEFAULT_NULL;
|
||||||
|
float frontER=DEFAULT_NULL;
|
||||||
|
|
||||||
|
float phi=DEFAULT_NULL; //
|
||||||
|
|
||||||
|
std::set<int> valid_front_chans;
|
||||||
|
std::set<int> valid_back_chans;
|
||||||
|
std::set<int> unmatched_front_chans; //every front channel is unmatched and invalid at first. when it gets matched, it gets removed and sent to valid
|
||||||
|
|
||||||
|
bool foundevent=false;
|
||||||
|
bool valid=false;//valid will be set to false in all cases where we have ambiguity
|
||||||
|
int flags=-1;//flags settable to different types of values to indicate different invalid situations
|
||||||
|
|
||||||
|
void fillevent(const std::string& position, const int subchannel, const float value); //make 'const' what functions don't need to change, helps with performance
|
||||||
|
void validate(const sx3_fbgains&, const sx3_geometry_scalefactors&);
|
||||||
|
void validate();
|
||||||
|
};
|
||||||
|
|
||||||
|
|
||||||
|
void sx3::fillevent(const std::string& positionstring, const int subchannel, const float value) {
|
||||||
|
assert(subchannel>=0 && subchannel<4);
|
||||||
|
if(positionstring=="FRONT_L") {
|
||||||
|
frontL[subchannel].push_back(value);
|
||||||
|
unmatched_front_chans.insert(subchannel);
|
||||||
|
} else if(positionstring=="FRONT_R") {
|
||||||
|
frontR[subchannel].push_back(value);
|
||||||
|
unmatched_front_chans.insert(subchannel);
|
||||||
|
} else if(positionstring=="BACK") {
|
||||||
|
back[subchannel].push_back(value);
|
||||||
|
valid_back_chans.insert(subchannel);
|
||||||
|
} else {
|
||||||
|
std::cout << "Unknown string "+positionstring+" encountered in sx3::fillevent \n" << std::endl;
|
||||||
|
}
|
||||||
|
if(frontL[subchannel].size()!=0 && frontR[subchannel].size()!=0 ) {
|
||||||
|
unmatched_front_chans.erase(subchannel);
|
||||||
|
valid_front_chans.insert(subchannel); //std::set, so no duplication will happen
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
//void sx3::validate(const sx3_fbgains& fbgains, const sx3_geometry_scalefactors& sx3gs) {
|
||||||
|
void sx3::validate() {
|
||||||
|
if(valid_front_chans.size()!=0 && valid_back_chans.size()!=0) {
|
||||||
|
valid=true;
|
||||||
|
float maxFE=0;
|
||||||
|
float maxBE=0;
|
||||||
|
//float zpos=0;
|
||||||
|
int bchan=-1;
|
||||||
|
int fchan=-1;
|
||||||
|
/* for(auto cc: valid_front_chans) {
|
||||||
|
std::cout << "fc" << cc << std::endl;// " " << frontL[cc].at(0) << " " << frontR[cc].at(0) << std::endl;
|
||||||
|
}
|
||||||
|
for(auto cc: valid_back_chans) {
|
||||||
|
std::cout << "bc" << cc << std::endl; //" " << back[cc].at(0) << std::endl;
|
||||||
|
}
|
||||||
|
*/
|
||||||
|
for(auto chan: valid_front_chans) {
|
||||||
|
if(frontL[chan].size()>1) {
|
||||||
|
printf("\nmultihit sx3 at Lsubchan:%d, ts:%1.13g\n",chan,ts);
|
||||||
|
for(const auto& e: frontL[chan]) printf("e: %f\t",e);
|
||||||
|
std::sort(frontL[chan].begin(), frontL[chan].end(), std::greater<float>());
|
||||||
|
flags += (-1000);
|
||||||
|
}
|
||||||
|
if(frontR[chan].size()>1) {
|
||||||
|
printf("\nmultihit sx3 at Rsubchan:%d, ts:%1.13g\n",chan,ts);
|
||||||
|
for(const auto& e: frontR[chan]) printf("e: %f\t",e);
|
||||||
|
std::sort(frontR[chan].begin(), frontR[chan].end(), std::greater<float>());
|
||||||
|
flags += (-2000);
|
||||||
|
}
|
||||||
|
//assign position using max L+R value
|
||||||
|
/*printf("chan:%d sizeL: %d sizeR: %d\n",chan, frontL[chan].size(), frontR[chan].size()); fflush(stdout);
|
||||||
|
printf("foo\n");
|
||||||
|
std::cout << "\nL:" << std::endl;
|
||||||
|
for(auto thing: frontL[chan]) std::cout << thing << " " << std::flush;
|
||||||
|
std::cout << "\nR:" << std::endl;
|
||||||
|
for(auto thing: frontR[chan]) std::cout << thing << " " << std::flush;*/
|
||||||
|
if(frontL[chan].at(0) + frontR[chan].at(0)> maxFE) {
|
||||||
|
maxFE = frontL[chan].at(0) + frontR[chan].at(0);
|
||||||
|
//zpos = (frontL[chan].at(0)-frontR[chan].at(0))/maxFE;
|
||||||
|
fchan = chan;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
for(auto chan: valid_back_chans) {
|
||||||
|
if(back[chan].size()>1) {
|
||||||
|
printf("\nmultihit sx3 at Bsubchan:%d, ts:%1.13g\n",chan,ts);
|
||||||
|
for(const auto& e: back[chan]) printf("e: %f\t",e);
|
||||||
|
std::sort(back[chan].begin(), back[chan].end(), std::greater<float>());
|
||||||
|
flags += (-3000);
|
||||||
|
}
|
||||||
|
if(back[chan].size() ==0 ) {
|
||||||
|
printf("foo\n");
|
||||||
|
//continue;
|
||||||
|
}
|
||||||
|
if(back[chan].at(0) > maxBE) {
|
||||||
|
maxBE = back[chan].at(0);
|
||||||
|
bchan = chan;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
/*
|
||||||
|
Cross-talk corrections are important when evaluating 'energy' signals from strips/pads.
|
||||||
|
They can cause unexpected behavior when used universally for all EL, ER cases, so we split scenarios in two.
|
||||||
|
- Positions along each strip (frontX) *are not* corrected for crosstalk.
|
||||||
|
- Total F and B energies (frontE, backE) *are*.
|
||||||
|
Sudarsan B, 31 Oct 2024
|
||||||
|
*/
|
||||||
|
float Eleft = frontL[fchan].at(0);
|
||||||
|
float Eright = frontR[fchan].at(0);
|
||||||
|
frontEL = Eleft;
|
||||||
|
frontER = Eright;
|
||||||
|
frontX = (Eleft-Eright)/(Eleft+Eright);
|
||||||
|
//frontXmm = (frontX+sx3gs.add[fchan])*sx3gs.stretch[fchan]; //convert to mm
|
||||||
|
|
||||||
|
//frontE = Eleft*fbgains.stripLgains[bchan][fchan] + fbgains.stripLoffsets[bchan][fchan]
|
||||||
|
// + Eright*fbgains.stripRgains[bchan][fchan] + fbgains.stripRoffsets[bchan][fchan];
|
||||||
|
//backE = back[bchan].at(0)*fbgains.padgains[bchan][fchan]+fbgains.padoffsets[bchan][fchan];
|
||||||
|
frontE = Eleft+Eright;
|
||||||
|
backE = maxBE;
|
||||||
|
stripF=fchan;
|
||||||
|
stripB=bchan;
|
||||||
|
|
||||||
|
flags = 0;
|
||||||
|
} else if(valid_front_chans.size()!=0 && valid_back_chans.size()==0) {
|
||||||
|
flags = -10;
|
||||||
|
} else if(valid_front_chans.size()==0 && valid_back_chans.size()!=0) {
|
||||||
|
flags = -20;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
typedef sx3 sx3det;
|
||||||
|
#endif
|
||||||
180
Armory/TrainingBuilder.py
Normal file
180
Armory/TrainingBuilder.py
Normal file
|
|
@ -0,0 +1,180 @@
|
||||||
|
#!/usr/bin/env python3
|
||||||
|
# -*- coding: utf-8 -*-
|
||||||
|
|
||||||
|
"""
|
||||||
|
Train a TensorFlow model from a directory of ROOT files.
|
||||||
|
|
||||||
|
Inputs:
|
||||||
|
Tb
|
||||||
|
thetab
|
||||||
|
vZ
|
||||||
|
MBeam
|
||||||
|
MTarget
|
||||||
|
MLight
|
||||||
|
MHeavy
|
||||||
|
|
||||||
|
Outputs:
|
||||||
|
beamEnergy
|
||||||
|
Ex
|
||||||
|
"""
|
||||||
|
import numpy as np
|
||||||
|
from pathlib import Path
|
||||||
|
|
||||||
|
import joblib
|
||||||
|
import pandas as pd
|
||||||
|
import uproot
|
||||||
|
|
||||||
|
from sklearn.model_selection import train_test_split
|
||||||
|
from sklearn.preprocessing import StandardScaler
|
||||||
|
|
||||||
|
import tensorflow as tf
|
||||||
|
from tensorflow.keras import Sequential
|
||||||
|
from tensorflow.keras.layers import Dense
|
||||||
|
from tensorflow.keras.callbacks import EarlyStopping
|
||||||
|
|
||||||
|
ROOT_FOLDER = Path("/Users/jamesszalkie/ANASEN_analysis/Armory/Training_Data_Ne/")
|
||||||
|
|
||||||
|
TREE_NAME = "tree1"
|
||||||
|
|
||||||
|
INPUT_BRANCHES = [
|
||||||
|
"Tb",
|
||||||
|
"thetab",
|
||||||
|
"vZ",
|
||||||
|
"MBeam",
|
||||||
|
"MTarget",
|
||||||
|
"MLight",
|
||||||
|
"MHeavy",
|
||||||
|
]
|
||||||
|
|
||||||
|
OUTPUT_BRANCHES = [
|
||||||
|
"beamEnergy",
|
||||||
|
"Ex",
|
||||||
|
]
|
||||||
|
|
||||||
|
MODEL_NAME = "beam_predictor.keras"
|
||||||
|
|
||||||
|
print("Reading ROOT files...")
|
||||||
|
|
||||||
|
dfs = []
|
||||||
|
|
||||||
|
for root_file in sorted(ROOT_FOLDER.glob("*.root")):
|
||||||
|
|
||||||
|
print(f" {root_file.name}")
|
||||||
|
|
||||||
|
with uproot.open(root_file) as f:
|
||||||
|
|
||||||
|
tree = f[TREE_NAME]
|
||||||
|
|
||||||
|
arrays = tree.arrays(
|
||||||
|
INPUT_BRANCHES + OUTPUT_BRANCHES,
|
||||||
|
library="np"
|
||||||
|
)
|
||||||
|
|
||||||
|
dfs.append(pd.DataFrame(arrays))
|
||||||
|
|
||||||
|
dataset = pd.concat(dfs, ignore_index=True)
|
||||||
|
|
||||||
|
# Remove events with missing or invalid values
|
||||||
|
dataset = dataset.replace([np.inf, -np.inf], np.nan)
|
||||||
|
dataset = dataset.dropna()
|
||||||
|
|
||||||
|
print(f"Training on {len(dataset)} complete events.")
|
||||||
|
|
||||||
|
print(dataset.describe())
|
||||||
|
|
||||||
|
print()
|
||||||
|
|
||||||
|
print(dataset.isna().sum())
|
||||||
|
|
||||||
|
print()
|
||||||
|
|
||||||
|
print(np.isinf(dataset).sum())
|
||||||
|
|
||||||
|
print()
|
||||||
|
print("Total events:", len(dataset))
|
||||||
|
|
||||||
|
X = dataset[INPUT_BRANCHES].values
|
||||||
|
Y = dataset[OUTPUT_BRANCHES].values
|
||||||
|
|
||||||
|
X_train, X_test, Y_train, Y_test = train_test_split(
|
||||||
|
X,
|
||||||
|
Y,
|
||||||
|
test_size=0.20,
|
||||||
|
random_state=42,
|
||||||
|
)
|
||||||
|
|
||||||
|
input_scaler = StandardScaler()
|
||||||
|
output_scaler = StandardScaler()
|
||||||
|
|
||||||
|
X_train = input_scaler.fit_transform(X_train)
|
||||||
|
X_test = input_scaler.transform(X_test)
|
||||||
|
|
||||||
|
Y_train = output_scaler.fit_transform(Y_train)
|
||||||
|
Y_test = output_scaler.transform(Y_test)
|
||||||
|
|
||||||
|
model = Sequential([
|
||||||
|
Dense(128, activation="relu"),
|
||||||
|
Dense(128, activation="relu"),
|
||||||
|
Dense(64, activation="relu"),
|
||||||
|
Dense(32, activation="relu"),
|
||||||
|
Dense(2)
|
||||||
|
])
|
||||||
|
|
||||||
|
model.build((None, len(INPUT_BRANCHES)))
|
||||||
|
|
||||||
|
model.compile(
|
||||||
|
optimizer="adam",
|
||||||
|
loss="mse",
|
||||||
|
metrics=["mae"]
|
||||||
|
)
|
||||||
|
|
||||||
|
model.summary()
|
||||||
|
|
||||||
|
early_stop = EarlyStopping(
|
||||||
|
monitor="val_loss",
|
||||||
|
patience=20,
|
||||||
|
restore_best_weights=True
|
||||||
|
)
|
||||||
|
|
||||||
|
history = model.fit(
|
||||||
|
X_train,
|
||||||
|
Y_train,
|
||||||
|
epochs=25,
|
||||||
|
batch_size=512,
|
||||||
|
validation_split=0.20,
|
||||||
|
callbacks=[early_stop],
|
||||||
|
verbose=1,
|
||||||
|
)
|
||||||
|
|
||||||
|
loss, mae = model.evaluate(
|
||||||
|
X_test,
|
||||||
|
Y_test,
|
||||||
|
verbose=0,
|
||||||
|
)
|
||||||
|
|
||||||
|
pred_scaled = model.predict(X_test, verbose=0)
|
||||||
|
|
||||||
|
pred = output_scaler.inverse_transform(pred_scaled)
|
||||||
|
truth = output_scaler.inverse_transform(Y_test)
|
||||||
|
|
||||||
|
print()
|
||||||
|
print(f"Test Loss : {loss:.6f}")
|
||||||
|
print(f"Test MAE : {mae:.6f}")
|
||||||
|
|
||||||
|
beam_error = np.mean(np.abs(pred[:,0] - truth[:,0]))
|
||||||
|
Ex_error = np.mean(np.abs(pred[:,1] - truth[:,1]))
|
||||||
|
|
||||||
|
print(f"Beam Energy MAE: {beam_error:.6f} MeV")
|
||||||
|
print(f"Ex MAE: {Ex_error:.6f} MeV")
|
||||||
|
|
||||||
|
model.save(MODEL_NAME)
|
||||||
|
|
||||||
|
joblib.dump(input_scaler, "input_scaler.pkl")
|
||||||
|
joblib.dump(output_scaler, "output_scaler.pkl")
|
||||||
|
|
||||||
|
print()
|
||||||
|
print("Training complete.")
|
||||||
|
print("Saved:")
|
||||||
|
print(" ", MODEL_NAME)
|
||||||
|
print(" input_scaler.pkl")
|
||||||
|
print(" output_scaler.pkl")
|
||||||
134
Armory/aarootscript.C
Normal file
134
Armory/aarootscript.C
Normal file
|
|
@ -0,0 +1,134 @@
|
||||||
|
#include "TFile.h"
|
||||||
|
#include "TTree.h"
|
||||||
|
#include "TGraph.h"
|
||||||
|
#include "TLegend.h"
|
||||||
|
#include "TCanvas.h"
|
||||||
|
#include "TH1D.h"
|
||||||
|
#include "TObjArray.h"
|
||||||
|
#include "TBranch.h"
|
||||||
|
#include <iostream>
|
||||||
|
#include <fstream>
|
||||||
|
|
||||||
|
void aarootscript(int argument = 0) {
|
||||||
|
std::cout << "\n\n\n";
|
||||||
|
std::cout << "=========================================\n";
|
||||||
|
std::cout << "========= ANASEN Root Script =========\n";
|
||||||
|
std::cout << "=========================================\n";
|
||||||
|
|
||||||
|
TFile *f = new TFile("SimAnasen1.root");
|
||||||
|
TTree *tree1 = (TTree*)f->Get("tree");
|
||||||
|
if (!tree1) {
|
||||||
|
std::cerr << "Error: tree1 not found in the file!" << std::endl;
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
TTree *tree2 = (TTree*)f->Get("tree2");
|
||||||
|
|
||||||
|
TTreeReader reader("tree");
|
||||||
|
TTreeReaderValue<double> Tb1(reader, "Tb"); // this line will read the "Tb" branch from the tree and save it as
|
||||||
|
TTreeReaderValue<double> TB1(reader, "TB"); // this line will read the "TB" branch from the tree and save it as Tb1
|
||||||
|
//add Tb1 and TB1 together
|
||||||
|
|
||||||
|
double totalSum = 0;
|
||||||
|
while (reader.Next()) {
|
||||||
|
totalSum += *Tb1;
|
||||||
|
}
|
||||||
|
std::cout << "Total Sum: " << totalSum << std::endl;
|
||||||
|
|
||||||
|
TTreeReader reader2("tree2");
|
||||||
|
TTreeReaderValue<double> Tb2(reader2, "Tb");
|
||||||
|
double totalSum2 = 0;
|
||||||
|
int zeroCount = 0;
|
||||||
|
while (reader2.Next()) {
|
||||||
|
totalSum2 += *Tb2;
|
||||||
|
if (*Tb2 == 0) {
|
||||||
|
zeroCount++;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
std::cout << "Total Sum: " << totalSum2 << std::endl;
|
||||||
|
|
||||||
|
std::cout << "Difference: " << totalSum - totalSum2 << std::endl;
|
||||||
|
|
||||||
|
std::cout << "Zero Count: " << zeroCount << std::endl;
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
//std::cout << "Making histograms..." << std::endl;
|
||||||
|
|
||||||
|
gErrorIgnoreLevel = 2001;
|
||||||
|
gROOT->ProcessLine(".x histcomp.C");
|
||||||
|
|
||||||
|
std::cout << "=========================================\n";
|
||||||
|
|
||||||
|
if (argument == 1) {
|
||||||
|
if (tree1) {
|
||||||
|
gROOT->ProcessLine("tree->Print();");
|
||||||
|
} else {
|
||||||
|
std::cout << "Tree1 not found!" << std::endl;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
if (argument == 2) {
|
||||||
|
if (tree2) {
|
||||||
|
gROOT->ProcessLine("tree2->Print();");
|
||||||
|
} else {
|
||||||
|
std::cout << "Tree2 not found!" << std::endl;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
std::cout << "Creating Tb vs dEb plot..." << std::endl;
|
||||||
|
|
||||||
|
// Readers for both trees
|
||||||
|
TTreeReader r1(tree1);
|
||||||
|
TTreeReader r2(tree2);
|
||||||
|
|
||||||
|
TTreeReaderValue<double> Tb_val(r1, "Tb");
|
||||||
|
TTreeReaderValue<double> TB_val(r2, "TB");
|
||||||
|
TTreeReaderValue<double> dEb_val(r2, "dEb");
|
||||||
|
|
||||||
|
std::vector<double> x; // Tb (tree1)
|
||||||
|
std::vector<double> y; // dEb (tree2)
|
||||||
|
|
||||||
|
|
||||||
|
// Loop over both trees simultaneously
|
||||||
|
while (r1.Next() && r2.Next()) {
|
||||||
|
x.push_back(*Tb_val);
|
||||||
|
y.push_back(*dEb_val);
|
||||||
|
}
|
||||||
|
std::cout << "x length: " << x.size() << ", y length: " << y.size() << std::endl;
|
||||||
|
|
||||||
|
std::ofstream outfile("Tb_dEb_data.txt");
|
||||||
|
|
||||||
|
if (!outfile.is_open()) {
|
||||||
|
std::cerr << "Error: Could not open output file!" << std::endl;
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
for (size_t i = 0; i < x.size(); i++) {
|
||||||
|
outfile << x[i] << " " << y[i] << "\n";
|
||||||
|
}
|
||||||
|
|
||||||
|
outfile.close();
|
||||||
|
|
||||||
|
std::cout << "Data written to Tb_dEb_data.txt" << std::endl;
|
||||||
|
/*
|
||||||
|
// Create graph
|
||||||
|
TGraph *gr = new TGraph(x.size(), &x[0], &y[0]);
|
||||||
|
gr->SetTitle("Tb (tree1) vs dEb (tree2);Tb;dEb");
|
||||||
|
gr->SetMarkerStyle(20);
|
||||||
|
|
||||||
|
// Draw
|
||||||
|
TCanvas *c1 = new TCanvas("c1", "Tb vs dEb", 800, 600);
|
||||||
|
gr->Draw("AP");
|
||||||
|
c1->Update();
|
||||||
|
c1->SaveAs("Tb_vs_dEb.png");
|
||||||
|
std::cout << "Plot saved as Tb_vs_dEb.pdf" << std::endl;
|
||||||
|
std::cout << "\n\n\n";
|
||||||
|
|
||||||
|
delete c1;
|
||||||
|
delete gr;*/
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
111
Armory/analyze.C
Normal file
111
Armory/analyze.C
Normal file
|
|
@ -0,0 +1,111 @@
|
||||||
|
#include "TFile.h"
|
||||||
|
#include "TTree.h"
|
||||||
|
#include "TCanvas.h"
|
||||||
|
#include "TH1D.h"
|
||||||
|
#include "TLegend.h"
|
||||||
|
#include "TString.h"
|
||||||
|
#include "TStyle.h"
|
||||||
|
#include <iostream>
|
||||||
|
|
||||||
|
void analyze(const char* filename = "SimAnasen1.root")
|
||||||
|
{
|
||||||
|
gStyle->SetOptStat(1);
|
||||||
|
|
||||||
|
TFile *f = TFile::Open(filename);
|
||||||
|
if (!f || f->IsZombie()) {
|
||||||
|
std::cerr << "ERROR: cannot open file " << filename << std::endl;
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
TTree *tree = (TTree*)f->Get("tree");
|
||||||
|
TTree *tree2 = (TTree*)f->Get("tree2");
|
||||||
|
|
||||||
|
if (!tree) {
|
||||||
|
std::cerr << "ERROR: tree not found\n";
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
std::cout << "\n===== BASIC TREE INFO =====\n";
|
||||||
|
tree->Print();
|
||||||
|
|
||||||
|
// Event inspection tools
|
||||||
|
std::cout << "\n===== FIRST 10 EVENTS =====\n";
|
||||||
|
tree->Scan("Tb:TB:anodeID[0]:cathodeID[0]:sx3ID", "", "", 10);
|
||||||
|
|
||||||
|
std::cout << "\n===== SINGLE EVENT EXAMPLE (0) =====\n";
|
||||||
|
tree->Show(0);
|
||||||
|
|
||||||
|
// Quick detector gating examples
|
||||||
|
std::cout << "\n===== GATED STATS =====\n";
|
||||||
|
std::cout << "Events with anodeID[0]==5: "
|
||||||
|
<< tree->GetEntries("anodeID[0]==5") << std::endl;
|
||||||
|
|
||||||
|
std::cout << "Events with sx3ID>=0: "
|
||||||
|
<< tree->GetEntries("sx3ID>=0") << std::endl;
|
||||||
|
|
||||||
|
// Tb vs TB comparison histogram
|
||||||
|
|
||||||
|
TCanvas *c1 = new TCanvas("c1","Tb vs TB",800,600);
|
||||||
|
//set min and max from tree values
|
||||||
|
double min = tree->GetMinimum("Tb");
|
||||||
|
double max = tree->GetMaximum("TB");
|
||||||
|
min = min - max*0.1;
|
||||||
|
max = max * 1.1;
|
||||||
|
TH1D *hTb = new TH1D("hTb","Tb and TB;Energy (MeV);Counts",200,min,max); //arguments are name, title (with axis labels), number of bins, x-min, x-max
|
||||||
|
TH1D *hTB = new TH1D("hTB","",200,min,max);
|
||||||
|
|
||||||
|
tree->Draw("Tb>>hTb","","goff");
|
||||||
|
tree->Draw("TB>>hTB","","goff");
|
||||||
|
|
||||||
|
hTb->SetLineColor(kRed);
|
||||||
|
hTB->SetLineColor(kBlue);
|
||||||
|
|
||||||
|
hTb->Draw("HIST");
|
||||||
|
hTB->Draw("HIST SAME");
|
||||||
|
|
||||||
|
TLegend *leg = new TLegend(0.65,0.75,0.88,0.88);
|
||||||
|
leg->AddEntry(hTb,"Tb (light)","l");
|
||||||
|
leg->AddEntry(hTB,"TB (heavy)","l");
|
||||||
|
leg->Draw();
|
||||||
|
|
||||||
|
c1->SaveAs("Tb_TB_compare.png");
|
||||||
|
|
||||||
|
// 4. Detector-gated histogram
|
||||||
|
|
||||||
|
TCanvas *c2 = new TCanvas("c2","Anode gated Tb",800,600);
|
||||||
|
double min2 = tree->GetMinimum("Tb");
|
||||||
|
double max2 = tree->GetMaximum("Tb");
|
||||||
|
min2 = min2 - max2*0.1;
|
||||||
|
max2 = max2 * 1.1;
|
||||||
|
TH1D *hGate = new TH1D("hGate","Tb (anodeID[0]==5);Energy;Counts",200,min2,max2);
|
||||||
|
|
||||||
|
tree->Draw("Tb>>hGate","anodeID[0]==5","goff");
|
||||||
|
|
||||||
|
hGate->SetLineColor(kGreen+2);
|
||||||
|
hGate->Draw("HIST");
|
||||||
|
|
||||||
|
c2->SaveAs("Tb_anode5.png");
|
||||||
|
|
||||||
|
// Tb vs TB correlation (with gate)
|
||||||
|
|
||||||
|
TCanvas *c3 = new TCanvas("c3","dEb vs SX3z",800,600);
|
||||||
|
|
||||||
|
tree->Draw("TB:Tb>>h2(200,min,max,200,min,max)","","COLZ"); //arguments are "y:x>>histogram(bins,xmin,xmax,bins,ymin,ymax)", "selection", "options"
|
||||||
|
|
||||||
|
c3->SaveAs("Tb_vs_TB.png");
|
||||||
|
|
||||||
|
// Make gated trees
|
||||||
|
|
||||||
|
TFile *out = new TFile("gated_output.root","RECREATE");
|
||||||
|
|
||||||
|
TTree *t_anode5 = tree->CopyTree("anodeID[0]==5");
|
||||||
|
t_anode5->Write("tree_anode5");
|
||||||
|
|
||||||
|
TTree *t_sx3valid = tree->CopyTree("sx3ID>=0");
|
||||||
|
t_sx3valid->Write("tree_sx3valid");
|
||||||
|
|
||||||
|
out->Close();
|
||||||
|
|
||||||
|
std::cout << "\n===== DONE =====\n";
|
||||||
|
std::cout << "Saved plots + gated trees in gated_output.root\n";
|
||||||
|
}
|
||||||
632
Armory/anasenMS Decay Version.cpp
Normal file
632
Armory/anasenMS Decay Version.cpp
Normal file
|
|
@ -0,0 +1,632 @@
|
||||||
|
#include "TRandom.h" // ROOT random number generators, gRandom
|
||||||
|
#include "TFile.h" // ROOT file I/O
|
||||||
|
#include "TTree.h" // ROOT tree storage
|
||||||
|
#include "TH1.h" // 1D histograms
|
||||||
|
#include "TH2.h" // 2D histograms
|
||||||
|
#include "TStyle.h" // ROOT plotting style controls
|
||||||
|
#include "TCanvas.h" // ROOT canvas drawing
|
||||||
|
#include "TBenchmark.h" // timing measurement
|
||||||
|
#include "TGraph.h" // for energy loss interpolation
|
||||||
|
#include <cstring>
|
||||||
|
#include "TApplication.h" // ROOT app loop
|
||||||
|
#include "ClassTransfer.h" // Reaction kinematics and MC event generation
|
||||||
|
#include "ClassAnasen.h" // ANASEN detector model classes (SX3, PW, etc.)
|
||||||
|
#include <stdio.h>
|
||||||
|
#include <stdlib.h>
|
||||||
|
#include <set>
|
||||||
|
#include "TLegend.h"
|
||||||
|
#include "TH1D.h"
|
||||||
|
#include "TObjArray.h"
|
||||||
|
#include "TBranch.h"
|
||||||
|
#include <iostream>
|
||||||
|
#include <fstream>
|
||||||
|
|
||||||
|
//======== Generate light particle based on reaction
|
||||||
|
// calculate real and reconstructed tracks and Q-value uncertainty
|
||||||
|
|
||||||
|
// Function to load energy loss table from file
|
||||||
|
TGraph* LoadELoss(const char* filename) {
|
||||||
|
TGraph* g = new TGraph(filename, "%lg %lg");
|
||||||
|
return g;
|
||||||
|
}
|
||||||
|
|
||||||
|
bool IsDeadAnode(int id){
|
||||||
|
static std::set<int> dead = {}; // add dead anode IDs here, 0-23
|
||||||
|
return dead.count(id);
|
||||||
|
}
|
||||||
|
|
||||||
|
bool IsDeadCathode(int id){
|
||||||
|
static std::set<int> dead = {}; // add dead cathode IDs here, 0-23
|
||||||
|
return dead.count(id);
|
||||||
|
}
|
||||||
|
|
||||||
|
bool IsDeadSX3(int id){
|
||||||
|
static std::set<int> dead = {}; // add dead SX3 IDs here, 0-23 1,7,9,3
|
||||||
|
return dead.count(id);
|
||||||
|
}
|
||||||
|
|
||||||
|
// Simulate sequential two-body decay of an unstable parent in its rest frame.
|
||||||
|
// The parent is boosted from the lab frame, the daughter (A1,Z1) is returned in lab frame,
|
||||||
|
// and the emitted ejectile (A2,Z2) is written to ejectileOut.
|
||||||
|
TLorentzVector SimulateSequentialDecay(const TLorentzVector &parent,
|
||||||
|
int daughterA, int daughterZ,
|
||||||
|
int ejectA, int ejectZ,
|
||||||
|
TLorentzVector &ejectileOut){
|
||||||
|
Isotope daughter(daughterA, daughterZ);
|
||||||
|
Isotope ejectile(ejectA, ejectZ);
|
||||||
|
|
||||||
|
double M = parent.M();
|
||||||
|
double mD = daughter.Mass;
|
||||||
|
double mE = ejectile.Mass;
|
||||||
|
|
||||||
|
double sqM = M * M;
|
||||||
|
double sum = mD + mE;
|
||||||
|
double diff = mD - mE;
|
||||||
|
double p2 = (sqM - sum*sum) * (sqM - diff*diff) / (4.0 * sqM);
|
||||||
|
if( p2 < 0 ) p2 = 0;
|
||||||
|
double p = TMath::Sqrt(p2);
|
||||||
|
|
||||||
|
double cosTheta = 2.0 * gRandom->Rndm() - 1.0;
|
||||||
|
double theta = TMath::ACos(cosTheta);
|
||||||
|
double phi = gRandom->Rndm() * TMath::TwoPi();
|
||||||
|
|
||||||
|
TVector3 v;
|
||||||
|
v.SetMagThetaPhi(p, theta, phi);
|
||||||
|
|
||||||
|
TLorentzVector daughterLab;
|
||||||
|
daughterLab.SetVectM(v, mD);
|
||||||
|
|
||||||
|
TLorentzVector ejectileLab;
|
||||||
|
ejectileLab.SetVectM(-v, mE);
|
||||||
|
|
||||||
|
TVector3 boost = parent.BoostVector();
|
||||||
|
daughterLab.Boost(boost);
|
||||||
|
ejectileLab.Boost(boost);
|
||||||
|
|
||||||
|
ejectileOut = ejectileLab;
|
||||||
|
return daughterLab;
|
||||||
|
}
|
||||||
|
|
||||||
|
int main(int argc, char **argv){
|
||||||
|
|
||||||
|
printf("=========================================\n");
|
||||||
|
printf("=== ANASEN Monte Carlo ===\n");
|
||||||
|
printf("=========================================\n");
|
||||||
|
|
||||||
|
// number of events can be overridden from command line
|
||||||
|
int numEvent = 1000000;
|
||||||
|
if( argc >= 2 ) numEvent = atoi(argv[1]);
|
||||||
|
|
||||||
|
// Reaction setup for 18Ne + 4He -> p + 21Na*.
|
||||||
|
// The heavy product 21Na* is then decayed to 20Ne + p in the simulation.
|
||||||
|
TransferReaction transfer;
|
||||||
|
|
||||||
|
transfer.SetA(18, 10, 0); // 18Ne
|
||||||
|
transfer.SetIncidentEnergyAngle(4.4, 0, 0); // KEA in MeV/u, theta and phi in degree
|
||||||
|
transfer.Seta(4, 2); // 4He target
|
||||||
|
transfer.Setb(1, 1); // outgoing proton from the primary transfer
|
||||||
|
transfer.SetB(21, 11); // 21Na* heavy product
|
||||||
|
|
||||||
|
bool enableSequentialDecay = true;
|
||||||
|
const int decayDaughterA = 20;
|
||||||
|
const int decayDaughterZ = 10;
|
||||||
|
const int decayEjectA = 1;
|
||||||
|
const int decayEjectZ = 1;
|
||||||
|
|
||||||
|
// Excited state lists (projectile and heavy-product excitation states)
|
||||||
|
std::vector<float> ExAList = {0}; // 18Ne projectile excitations in MeV
|
||||||
|
std::vector<float> ExList = {2.5}; // 21Na* excitation in MeV (above proton separation threshold)
|
||||||
|
|
||||||
|
// define vertex position uniform distribution ranges (mm)
|
||||||
|
double vertexXRange[2] = { -5, 5}; // mm
|
||||||
|
double vertexYRange[2] = { -5, 5};
|
||||||
|
double vertexZRange[2] = { -100, 100};
|
||||||
|
|
||||||
|
// detector resolution / uncertainty parameters
|
||||||
|
double sigmaSX3_W = -1; // mm, if < 0 use mid-point (no spread in SX3 horizontal dimension)
|
||||||
|
double sigmaSX3_L = 3; // mm, vertical spread for SX3
|
||||||
|
double sigmaPW_A = 0; // normalized anode uncertainty term (0-1)
|
||||||
|
double sigmaPW_C = 0; // normalized cathode uncertainty term (0-1)
|
||||||
|
|
||||||
|
// status printout
|
||||||
|
printf("------------ Vertex :\n");
|
||||||
|
printf("X : %7.2f - %7.2f mm\n", vertexXRange[0], vertexXRange[1]);
|
||||||
|
printf("Y : %7.2f - %7.2f mm\n", vertexYRange[0], vertexYRange[1]);
|
||||||
|
printf("Z : %7.2f - %7.2f mm\n", vertexZRange[0], vertexZRange[1]);
|
||||||
|
printf("------------ Uncertainty :\n");
|
||||||
|
printf(" SX3 horizontal : %.1f\n", sigmaSX3_W);
|
||||||
|
printf(" SX3 vertical : %.1f\n", sigmaSX3_L);
|
||||||
|
printf(" Anode : %.1f mm\n", sigmaPW_A);
|
||||||
|
printf(" Cathode : %.1f mm\n", sigmaPW_C);
|
||||||
|
printf(" num_eve : %d \n",numEvent);
|
||||||
|
|
||||||
|
// calculates energy/momentum/kinematics constants for transfer reaction
|
||||||
|
transfer.CalReactionConstant();
|
||||||
|
printf("Primary reaction: %s at %.2f MeV/u\n", transfer.GetReactionName().Data(), 4.4);
|
||||||
|
printf("Sequential decay enabled: %s\n", enableSequentialDecay ? "yes" : "no");
|
||||||
|
|
||||||
|
int nExA = ExAList.size();
|
||||||
|
int nEx = ExList.size();
|
||||||
|
|
||||||
|
// optional visualization control: pass "vis" as 3rd arg
|
||||||
|
bool enableVis = (argc >= 3 && strcmp(argv[2], "vis") == 0);
|
||||||
|
TApplication *app = nullptr;
|
||||||
|
if(enableVis){
|
||||||
|
app = new TApplication("anasenVis", &argc, argv);
|
||||||
|
}
|
||||||
|
|
||||||
|
// storage for tracks during simulation (for visualization)
|
||||||
|
std::vector<TVector3> visTrackVertex, visTrackDir, visTrackHitPos;
|
||||||
|
std::vector<std::pair<int,int>> visTrackWires; // {anodeID, cathodeID}
|
||||||
|
|
||||||
|
// create detector representation in memory
|
||||||
|
ANASEN * anasen = new ANASEN(); // top-level detector object
|
||||||
|
SX3 * sx3 = anasen->GetSX3(); // silicon array part
|
||||||
|
PW * pw = anasen->GetPW(); // proportional wire chamber part
|
||||||
|
|
||||||
|
// output file + trees
|
||||||
|
TString saveFileName = "SimAnasen1.root";
|
||||||
|
printf("\e[32m#################################### building Tree in %s\e[0m\n", saveFileName.Data());
|
||||||
|
TFile * saveFile = new TFile(saveFileName, "recreate");
|
||||||
|
TTree * tree1 = new TTree("tree1", "tree1");
|
||||||
|
TTree * tree2 = new TTree("tree2", "tree2");
|
||||||
|
|
||||||
|
// beam and CM variables saved in tree
|
||||||
|
double KEA;
|
||||||
|
double KEA2;
|
||||||
|
tree1->Branch("beamKEA", &KEA, "beamKEA/D");
|
||||||
|
tree2->Branch("beamKEA", &KEA2, "beamKEA/D");
|
||||||
|
|
||||||
|
double thetaCM, phiCM;
|
||||||
|
double thetaCM2, phiCM2;
|
||||||
|
tree1->Branch("thetaCM", &thetaCM, "thetaCM/D");
|
||||||
|
tree1->Branch("phiCM", &phiCM, "phiCM/D");
|
||||||
|
tree2->Branch("thetaCM", &thetaCM2, "thetaCM/D");
|
||||||
|
tree2->Branch("phiCM", &phiCM2, "phiCM/D");
|
||||||
|
|
||||||
|
// outgoing particles in lab frame (light/heavy)
|
||||||
|
double thetab, phib;
|
||||||
|
double Tb;
|
||||||
|
double thetaB, phiB, TB;
|
||||||
|
std::array<double, 2> T;
|
||||||
|
tree1->Branch("thetab", &thetab, "thetab/D"); // polar angle of light particle in lab frame
|
||||||
|
tree1->Branch("phib", &phib, "phib/D"); // azimuthal angle of light particle in lab frame
|
||||||
|
tree1->Branch("Tb", &Tb, "Tb/D"); // kinetic energy of light particle at vertex (before energy loss)
|
||||||
|
tree1->Branch("thetaB", &thetaB, "thetaB/D");
|
||||||
|
tree1->Branch("phiB", &phiB, "phiB/D");
|
||||||
|
tree1->Branch("TB", &TB, "TB/D"); // kinetic energy of heavy particle at vertex
|
||||||
|
tree1->Branch("T", &T, "T/D"); // placeholder for true Q-value, currently set to 0 for simplicity
|
||||||
|
|
||||||
|
double thetab2, phib2;
|
||||||
|
double Tb2;
|
||||||
|
double thetaB2, phiB2, TB2;
|
||||||
|
std::array<double, 2> T2;
|
||||||
|
tree2->Branch("thetab", &thetab2, "thetab/D");
|
||||||
|
tree2->Branch("phib", &phib2, "phib/D");
|
||||||
|
tree2->Branch("Tb", &Tb2, "Tb/D");
|
||||||
|
tree2->Branch("thetaB", &thetaB2, "thetaB/D");
|
||||||
|
tree2->Branch("phiB", &phiB2, "phiB/D");
|
||||||
|
tree2->Branch("TB", &TB2, "TB/D");
|
||||||
|
tree2->Branch("T", &T2, "T/D");
|
||||||
|
|
||||||
|
// excitation state identifiers
|
||||||
|
int ExAID;
|
||||||
|
double ExA;
|
||||||
|
tree1->Branch("ExAID", &ExAID, "ExAID/I"); // projectile excitation state ID
|
||||||
|
tree1->Branch("ExA", &ExA, "ExA/D"); // projectile excitation energy in MeV
|
||||||
|
|
||||||
|
int ExAID2;
|
||||||
|
double ExA2;
|
||||||
|
tree2->Branch("ExAID", &ExAID2, "ExAID/I");
|
||||||
|
tree2->Branch("ExA", &ExA2, "ExA/D");
|
||||||
|
|
||||||
|
int ExID;
|
||||||
|
double Ex;
|
||||||
|
tree1->Branch("ExID", &ExID, "ExID/I"); // target excitation state ID
|
||||||
|
tree1->Branch("Ex", &Ex, "Ex/D"); // target excitation energy in MeV
|
||||||
|
|
||||||
|
int ExID2;
|
||||||
|
double Ex2;
|
||||||
|
tree2->Branch("ExID", &ExID2, "ExID/I");
|
||||||
|
tree2->Branch("Ex", &Ex2, "Ex/D");
|
||||||
|
|
||||||
|
// true vertex position in target volume
|
||||||
|
double vertexX, vertexY, vertexZ;
|
||||||
|
tree1->Branch("vX", &vertexX, "VertexX/D"); // true vertex X position in mm
|
||||||
|
tree1->Branch("vY", &vertexY, "VertexY/D"); // true vertex Y position in mm
|
||||||
|
tree1->Branch("vZ", &vertexZ, "VertexZ/D"); // true vertex Z position in mm
|
||||||
|
|
||||||
|
double vertexX2, vertexY2, vertexZ2;
|
||||||
|
tree2->Branch("vX", &vertexX2, "VertexX/D");
|
||||||
|
tree2->Branch("vY", &vertexY2, "VertexY/D");
|
||||||
|
tree2->Branch("vZ", &vertexZ2, "VertexZ/D");
|
||||||
|
|
||||||
|
// reconstructed SX3 hit position
|
||||||
|
double sx3X, sx3Y, sx3Z;
|
||||||
|
tree1->Branch("sx3X", &sx3X, "sx3X/D"); // reconstructed X position from SX3 (with optional smearing)
|
||||||
|
tree1->Branch("sx3Y", &sx3Y, "sx3Y/D"); // reconstructed Y position from SX3 (with optional smearing)
|
||||||
|
tree1->Branch("sx3Z", &sx3Z, "sx3Z/D"); // reconstructed Z position from SX3 (with optional smearing)
|
||||||
|
|
||||||
|
double sx3X2, sx3Y2, sx3Z2;
|
||||||
|
tree2->Branch("sx3X", &sx3X2, "sx3X/D");
|
||||||
|
tree2->Branch("sx3Y", &sx3Y2, "sx3Y/D");
|
||||||
|
tree2->Branch("sx3Z", &sx3Z2, "sx3Z/D");
|
||||||
|
|
||||||
|
// PW nearest and next nearest wires
|
||||||
|
int anodeID[2], cathodeID[2];
|
||||||
|
int anodeID2[2], cathodeID2[2];
|
||||||
|
tree1->Branch("aID", anodeID, "anodeID/I"); // anodeID[0] is nearest anode wire, anodeID[1] is next nearest anode wire
|
||||||
|
tree1->Branch("cID", cathodeID, "cathodeID/I"); // cathodeID[0] is nearest cathode wire, cathodeID[1] is next nearest cathode wire
|
||||||
|
tree2->Branch("aID", anodeID2, "anodeID/I");
|
||||||
|
tree2->Branch("cID", cathodeID2, "cathodeID/I");
|
||||||
|
|
||||||
|
// distances to nearest wires
|
||||||
|
double anodeDist[2], cathodeDist[2];
|
||||||
|
double anodeDist2[2], cathodeDist2[2];
|
||||||
|
tree1->Branch("aDist", anodeDist, "anodeDist/D");
|
||||||
|
tree1->Branch("cDist", cathodeDist, "cathodeDist/D");
|
||||||
|
tree2->Branch("aDist", anodeDist2, "anodeDist/D");
|
||||||
|
tree2->Branch("cDist", cathodeDist2, "cathodeDist/D");
|
||||||
|
|
||||||
|
// SX3 channel assignment and Z fraction (depth) information
|
||||||
|
int sx3ID, sx3Up, sx3Dn, sx3Bk;
|
||||||
|
double sx3ZFrac;
|
||||||
|
int sx3ID2, sx3Up2, sx3Dn2, sx3Bk2;
|
||||||
|
double sx3ZFrac2;
|
||||||
|
tree1->Branch("sx3ID", &sx3ID, "sx3ID/I");
|
||||||
|
tree1->Branch("sx3Up", &sx3Up, "sx3Up/I");
|
||||||
|
tree1->Branch("sx3Dn", &sx3Dn, "sx3Dn/I");
|
||||||
|
tree1->Branch("sx3Bk", &sx3Bk, "sx3Bk/I");
|
||||||
|
tree1->Branch("sx3ZFrac", &sx3ZFrac, "sx3ZFrac/D");
|
||||||
|
tree2->Branch("sx3ID", &sx3ID2, "sx3ID/I");
|
||||||
|
tree2->Branch("sx3Up", &sx3Up2, "sx3Up/I");
|
||||||
|
tree2->Branch("sx3Dn", &sx3Dn2, "sx3Dn/I");
|
||||||
|
tree2->Branch("sx3Bk", &sx3Bk2, "sx3Bk/I");
|
||||||
|
tree2->Branch("sx3ZFrac", &sx3ZFrac2, "sx3ZFrac/D");
|
||||||
|
|
||||||
|
// reconstructed angles from PW track fit, method 1 and 2
|
||||||
|
double reTheta, rePhi;
|
||||||
|
double reTheta2, rePhi2;
|
||||||
|
tree1->Branch("reTheta", &reTheta, "reconstucted_theta/D");
|
||||||
|
tree1->Branch("rePhi", &rePhi, "reconstucted_phi/D");
|
||||||
|
tree2->Branch("reTheta", &reTheta2, "reconstucted_theta/D");
|
||||||
|
tree2->Branch("rePhi", &rePhi2, "reconstucted_phi/D");
|
||||||
|
|
||||||
|
double reTheta1, rePhi1;
|
||||||
|
double reTheta12, rePhi12;
|
||||||
|
tree1->Branch("reTheta1", &reTheta1, "reconstucted_theta1/D");
|
||||||
|
tree1->Branch("rePhi1", &rePhi1, "reconstucted_phi1/D");
|
||||||
|
tree2->Branch("reTheta1", &reTheta12, "reconstucted_theta1/D");
|
||||||
|
tree2->Branch("rePhi1", &rePhi12, "reconstucted_phi1/D");
|
||||||
|
|
||||||
|
// reconstructed vertex Z from PW fit
|
||||||
|
double z0;
|
||||||
|
double z02;
|
||||||
|
tree1->Branch("z0", &z0, "reconstucted_Z/D");
|
||||||
|
tree2->Branch("z0", &z02, "reconstucted_Z/D");
|
||||||
|
|
||||||
|
//========timer
|
||||||
|
TBenchmark clock;
|
||||||
|
bool shown ;
|
||||||
|
clock.Reset();
|
||||||
|
clock.Start("timer");
|
||||||
|
shown = false;
|
||||||
|
|
||||||
|
//================================= Calculate event loop
|
||||||
|
for( int i = 0; i < numEvent ; i++){
|
||||||
|
|
||||||
|
// randomly sample target/projectile excitations
|
||||||
|
ExAID = gRandom->Integer(nExA);
|
||||||
|
ExA = ExAList[ExAID];
|
||||||
|
transfer.SetExA(ExA);
|
||||||
|
|
||||||
|
ExID = gRandom->Integer(nEx);
|
||||||
|
Ex = ExList[ExID];
|
||||||
|
transfer.SetExB(Ex);
|
||||||
|
|
||||||
|
// recalc kinematic constants for chosen states
|
||||||
|
transfer.CalReactionConstant();
|
||||||
|
|
||||||
|
// isotropic CM direction
|
||||||
|
thetaCM = TMath::ACos(2 * gRandom->Rndm() - 1) ;
|
||||||
|
phiCM = (gRandom->Rndm() - 0.5) * TMath::TwoPi();
|
||||||
|
|
||||||
|
//==== Calculate reaction kinematics in lab frame for the primary transfer
|
||||||
|
TLorentzVector * output = transfer.Event(thetaCM, phiCM); // returns array of outputs
|
||||||
|
TLorentzVector Pb = output[2]; // primary proton from transfer
|
||||||
|
TLorentzVector PB = output[3]; // excited 21Na* heavy product
|
||||||
|
|
||||||
|
thetab = Pb.Theta() * TMath::RadToDeg();
|
||||||
|
Tb = (Pb.E() - Pb.M()); // kinetic energy of the light proton from the primary transfer
|
||||||
|
thetaB = PB.Theta() * TMath::RadToDeg();
|
||||||
|
TB = (PB.E() - PB.M());
|
||||||
|
phib = Pb.Phi() * TMath::RadToDeg();
|
||||||
|
phiB = PB.Phi() * TMath::RadToDeg();
|
||||||
|
T[0] = Tb;
|
||||||
|
T[1] = TB;
|
||||||
|
|
||||||
|
// prepare secondary proton from 21Na* sequential decay
|
||||||
|
TLorentzVector decayProton;
|
||||||
|
TLorentzVector heavy20;
|
||||||
|
if(enableSequentialDecay){
|
||||||
|
heavy20 = SimulateSequentialDecay(PB, decayDaughterA, decayDaughterZ,
|
||||||
|
decayEjectA, decayEjectZ, decayProton);
|
||||||
|
thetab2 = decayProton.Theta() * TMath::RadToDeg();
|
||||||
|
phib2 = decayProton.Phi() * TMath::RadToDeg();
|
||||||
|
Tb2 = decayProton.E() - decayProton.M();
|
||||||
|
thetaB2 = heavy20.Theta() * TMath::RadToDeg();
|
||||||
|
phiB2 = heavy20.Phi() * TMath::RadToDeg();
|
||||||
|
TB2 = heavy20.E() - heavy20.M();
|
||||||
|
T2[0] = Tb2;
|
||||||
|
T2[1] = TB2;
|
||||||
|
} else {
|
||||||
|
thetab2 = TMath::QuietNaN();
|
||||||
|
phib2 = TMath::QuietNaN();
|
||||||
|
Tb2 = TMath::QuietNaN();
|
||||||
|
thetaB2 = TMath::QuietNaN();
|
||||||
|
phiB2 = TMath::QuietNaN();
|
||||||
|
TB2 = TMath::QuietNaN();
|
||||||
|
T2[0] = TMath::QuietNaN();
|
||||||
|
T2[1] = TMath::QuietNaN();
|
||||||
|
}
|
||||||
|
|
||||||
|
delete [] output;
|
||||||
|
|
||||||
|
// vertex position in target volume
|
||||||
|
vertexX = (vertexXRange[1]- vertexXRange[0])*gRandom->Rndm() + vertexXRange[0];
|
||||||
|
vertexY = (vertexYRange[1]- vertexYRange[0])*gRandom->Rndm() + vertexYRange[0];
|
||||||
|
vertexZ = (vertexZRange[1]- vertexZRange[0])*gRandom->Rndm() + vertexZRange[0];
|
||||||
|
|
||||||
|
TVector3 vertex(vertexX, vertexY, vertexZ);
|
||||||
|
|
||||||
|
// set direction vector from lab angle
|
||||||
|
TVector3 dir(1, 0, 0);
|
||||||
|
dir.SetTheta(thetab * TMath::DegToRad());
|
||||||
|
dir.SetPhi(phib * TMath::DegToRad());
|
||||||
|
|
||||||
|
// run detector response models for PW and SX3
|
||||||
|
pw->FindWireID(vertex, dir, false);
|
||||||
|
sx3->FindSX3Pos(vertex, dir, false);
|
||||||
|
|
||||||
|
PWHitInfo hitInfo = pw->GetHitInfo();
|
||||||
|
|
||||||
|
anodeID[0] = hitInfo.nearestWire.first; // nearest anode wire ID
|
||||||
|
cathodeID[0] = hitInfo.nearestWire.second; // nearest cathode wire ID
|
||||||
|
anodeID[1] = hitInfo.nextNearestWire.first; // next nearest anode wire ID
|
||||||
|
cathodeID[1] = hitInfo.nextNearestWire.second; // next nearest cathode wire ID
|
||||||
|
|
||||||
|
anodeDist[1] = hitInfo.nextNearestDist.first; // distance to next nearest anode wire
|
||||||
|
cathodeDist[1] = hitInfo.nextNearestDist.second; // distance to next nearest cathode wire
|
||||||
|
|
||||||
|
if(IsDeadAnode(anodeID[0])) continue;
|
||||||
|
if(IsDeadCathode(cathodeID[0])) continue;
|
||||||
|
|
||||||
|
// SX3 hit channel info and depth fraction
|
||||||
|
sx3ID = sx3->GetID();
|
||||||
|
|
||||||
|
if(IsDeadSX3(sx3ID)) continue;
|
||||||
|
|
||||||
|
anodeDist[0] = hitInfo.nearestDist.first; // distance to nearest anode wire
|
||||||
|
cathodeDist[0] = hitInfo.nearestDist.second; // distance to nearest cathode wire
|
||||||
|
|
||||||
|
if( sx3ID >= 0 ){
|
||||||
|
sx3Up = sx3->GetChUp();
|
||||||
|
sx3Dn = sx3->GetChDn();
|
||||||
|
sx3Bk = sx3->GetChBk();
|
||||||
|
sx3ZFrac = sx3->GetZFrac();
|
||||||
|
|
||||||
|
// apply intrinsic detector resolution to true SX3 hit position
|
||||||
|
// for no smearing comment out and use GetHitPos();
|
||||||
|
TVector3 hitPos = sx3->GetHitPosWithSigma(sigmaSX3_W, sigmaSX3_L);
|
||||||
|
|
||||||
|
sx3X = hitPos.X();
|
||||||
|
sx3Y = hitPos.Y();
|
||||||
|
sx3Z = hitPos.Z();
|
||||||
|
|
||||||
|
// store track data for visualization if enabled
|
||||||
|
if(enableVis){
|
||||||
|
visTrackVertex.push_back(vertex);
|
||||||
|
visTrackDir.push_back(dir);
|
||||||
|
visTrackHitPos.push_back(hitPos);
|
||||||
|
visTrackWires.push_back({anodeID[0], cathodeID[0]});
|
||||||
|
}
|
||||||
|
// reconstruct track from PW readings + SX3 hit
|
||||||
|
pw->CalTrack(hitPos, anodeID[0], cathodeID[0], false);
|
||||||
|
reTheta = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
|
rePhi = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
|
||||||
|
// alternative track algorithm with uncertainty parameters
|
||||||
|
pw->CalTrack2(hitPos, hitInfo, sigmaPW_A, sigmaPW_C, false);
|
||||||
|
reTheta1 = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
|
rePhi1 = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
|
||||||
|
z0 = pw->GetZ0();
|
||||||
|
tree1->Fill();
|
||||||
|
|
||||||
|
// fill tree2 using the secondary proton (proton 2) track
|
||||||
|
TVector3 dir2(1, 0, 0);
|
||||||
|
dir2.SetTheta(thetab2 * TMath::DegToRad());
|
||||||
|
dir2.SetPhi(phib2 * TMath::DegToRad());
|
||||||
|
|
||||||
|
pw->FindWireID(vertex, dir2, false);
|
||||||
|
sx3->FindSX3Pos(vertex, dir2, false);
|
||||||
|
PWHitInfo hitInfo2 = pw->GetHitInfo();
|
||||||
|
|
||||||
|
anodeID2[0] = hitInfo2.nearestWire.first;
|
||||||
|
cathodeID2[0] = hitInfo2.nearestWire.second;
|
||||||
|
anodeID2[1] = hitInfo2.nextNearestWire.first;
|
||||||
|
cathodeID2[1] = hitInfo2.nextNearestWire.second;
|
||||||
|
|
||||||
|
anodeDist2[1] = hitInfo2.nextNearestDist.first;
|
||||||
|
cathodeDist2[1] = hitInfo2.nextNearestDist.second;
|
||||||
|
|
||||||
|
if(IsDeadAnode(anodeID2[0]) || IsDeadCathode(cathodeID2[0])){
|
||||||
|
sx3ID2 = -1;
|
||||||
|
} else {
|
||||||
|
sx3ID2 = sx3->GetID();
|
||||||
|
}
|
||||||
|
|
||||||
|
if(sx3ID2 < 0 || IsDeadSX3(sx3ID2)){
|
||||||
|
sx3ID2 = -1;
|
||||||
|
sx3Up2 = -1;
|
||||||
|
sx3Dn2 = -1;
|
||||||
|
sx3Bk2 = -1;
|
||||||
|
sx3ZFrac2 = TMath::QuietNaN();
|
||||||
|
sx3X2 = TMath::QuietNaN();
|
||||||
|
sx3Y2 = TMath::QuietNaN();
|
||||||
|
sx3Z2 = TMath::QuietNaN();
|
||||||
|
anodeDist2[0] = TMath::QuietNaN();
|
||||||
|
cathodeDist2[0] = TMath::QuietNaN();
|
||||||
|
reTheta2 = TMath::QuietNaN();
|
||||||
|
rePhi2 = TMath::QuietNaN();
|
||||||
|
reTheta12 = TMath::QuietNaN();
|
||||||
|
rePhi12 = TMath::QuietNaN();
|
||||||
|
z02 = TMath::QuietNaN();
|
||||||
|
} else {
|
||||||
|
anodeDist2[0] = hitInfo2.nearestDist.first;
|
||||||
|
cathodeDist2[0] = hitInfo2.nearestDist.second;
|
||||||
|
sx3Up2 = sx3->GetChUp();
|
||||||
|
sx3Dn2 = sx3->GetChDn();
|
||||||
|
sx3Bk2 = sx3->GetChBk();
|
||||||
|
sx3ZFrac2 = sx3->GetZFrac();
|
||||||
|
TVector3 hitPos2 = sx3->GetHitPosWithSigma(sigmaSX3_W, sigmaSX3_L);
|
||||||
|
sx3X2 = hitPos2.X();
|
||||||
|
sx3Y2 = hitPos2.Y();
|
||||||
|
sx3Z2 = hitPos2.Z();
|
||||||
|
pw->CalTrack(hitPos2, anodeID2[0], cathodeID2[0], false);
|
||||||
|
reTheta2 = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
|
rePhi2 = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
pw->CalTrack2(hitPos2, hitInfo2, sigmaPW_A, sigmaPW_C, false);
|
||||||
|
reTheta12 = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
|
rePhi12 = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
z02 = pw->GetZ0();
|
||||||
|
}
|
||||||
|
|
||||||
|
// copy common event info to tree2
|
||||||
|
KEA2 = KEA;
|
||||||
|
thetaCM2 = thetaCM;
|
||||||
|
phiCM2 = phiCM;
|
||||||
|
ExAID2 = ExAID;
|
||||||
|
ExA2 = ExA;
|
||||||
|
ExID2 = ExID;
|
||||||
|
Ex2 = Ex;
|
||||||
|
vertexX2 = vertexX;
|
||||||
|
vertexY2 = vertexY;
|
||||||
|
vertexZ2 = vertexZ;
|
||||||
|
|
||||||
|
tree2->Fill();
|
||||||
|
|
||||||
|
}else{
|
||||||
|
// no valid SX3 hit: mark clearly invalid
|
||||||
|
sx3Up = -1;
|
||||||
|
sx3Dn = -1;
|
||||||
|
sx3Bk = -1;
|
||||||
|
sx3ZFrac = TMath::QuietNaN();
|
||||||
|
|
||||||
|
sx3X = TMath::QuietNaN();
|
||||||
|
sx3Y = TMath::QuietNaN();
|
||||||
|
sx3Z = TMath::QuietNaN();
|
||||||
|
|
||||||
|
reTheta = TMath::QuietNaN();
|
||||||
|
rePhi = TMath::QuietNaN();
|
||||||
|
reTheta1 = TMath::QuietNaN();
|
||||||
|
rePhi1 = TMath::QuietNaN();
|
||||||
|
z0 = TMath::QuietNaN();
|
||||||
|
//Tb = -12354567; // mark kinetic energy as invalid for no hit case
|
||||||
|
// fill tree with original data (no energy loss for these events)
|
||||||
|
//comment out tree fill for no hit case
|
||||||
|
//tree->Fill();
|
||||||
|
}
|
||||||
|
|
||||||
|
//#################################################################### Timer
|
||||||
|
// measure elapsed real time and print progress roughly every 10 sec
|
||||||
|
clock.Stop("timer");
|
||||||
|
Double_t time = clock.GetRealTime("timer");
|
||||||
|
clock.Start("timer");
|
||||||
|
|
||||||
|
if ( !shown ) {
|
||||||
|
if (fmod(time, 10) < 1 ){
|
||||||
|
printf( "%10d[%2d%%]| %8.2f sec | expect: %5.1f min \n", i, TMath::Nint((i+1)*100./numEvent), time , numEvent*time/(i+1)/60);
|
||||||
|
shown = 1;
|
||||||
|
}
|
||||||
|
} else {
|
||||||
|
if (fmod(time, 10) > 9 ){
|
||||||
|
shown = 0;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
// write results to ROOT file and close
|
||||||
|
tree1->Write("", TObject::kOverwrite);
|
||||||
|
tree2->Write("", TObject::kOverwrite);
|
||||||
|
int count1 = tree1->GetEntries();
|
||||||
|
int count2 = tree2->GetEntries();
|
||||||
|
saveFile->Close();
|
||||||
|
|
||||||
|
printf("=============== done. saved as %s. tree1 entries: %d, tree2 entries: %d\n", saveFileName.Data(), count1, count2);
|
||||||
|
|
||||||
|
if(enableVis){ // to enable visualization, run with 3rd argument "vis", e.g. "./anasenMC 1000 vis"
|
||||||
|
printf("Displaying geometry with %zu tracks from simulation\n", visTrackVertex.size());
|
||||||
|
|
||||||
|
// Build full geometry with all wires
|
||||||
|
anasen->DrawAnasen(0, 23, 0, 23, -1, true);
|
||||||
|
|
||||||
|
// Add all stored tracks to the geometry
|
||||||
|
TGeoManager *geom = anasen->GetGeoManager();
|
||||||
|
TGeoVolume *worldBox = anasen->GetWorldBox();
|
||||||
|
|
||||||
|
if(geom && worldBox && visTrackVertex.size() > 0){
|
||||||
|
int trackNodeID = 500; // start node IDs for tracks
|
||||||
|
|
||||||
|
for(size_t iTrack = 0; iTrack < visTrackVertex.size(); ++iTrack){
|
||||||
|
TVector3 vertex = visTrackVertex[iTrack];
|
||||||
|
TVector3 dir = visTrackDir[iTrack];
|
||||||
|
TVector3 hitPos = visTrackHitPos[iTrack];
|
||||||
|
|
||||||
|
double theta = dir.Theta() * TMath::RadToDeg();
|
||||||
|
double phi = dir.Phi() * TMath::RadToDeg();
|
||||||
|
|
||||||
|
// Add a line marker at the vertex
|
||||||
|
TGeoVolume *startMarker = geom->MakeSphere("startMarker", 0, 0, 2.0);
|
||||||
|
startMarker->SetLineColor(kBlack);
|
||||||
|
worldBox->AddNode(startMarker, trackNodeID,
|
||||||
|
new TGeoCombiTrans(vertex.X(), vertex.Y(), vertex.Z(),
|
||||||
|
new TGeoRotation("rot", 0, 0, 0)));
|
||||||
|
trackNodeID++;
|
||||||
|
|
||||||
|
// Add track line from vertex toward hit position
|
||||||
|
TGeoVolume *trackLine = geom->MakeTube("trackLine", 0, 0, 0.08, 150.0);
|
||||||
|
trackLine->SetLineColor(kBlue);
|
||||||
|
worldBox->AddNode(trackLine, trackNodeID,
|
||||||
|
new TGeoCombiTrans(vertex.X(), vertex.Y(), vertex.Z(),
|
||||||
|
new TGeoRotation("rotTrack", phi + 90, theta, 0)));
|
||||||
|
trackNodeID++;
|
||||||
|
|
||||||
|
// Add hit position marker
|
||||||
|
TGeoVolume *hitMarker = geom->MakeSphere("hitMarker", 0, 0, 2.0);
|
||||||
|
hitMarker->SetLineColor(kRed);
|
||||||
|
worldBox->AddNode(hitMarker, trackNodeID,
|
||||||
|
new TGeoCombiTrans(hitPos.X(), hitPos.Y(), hitPos.Z(),
|
||||||
|
new TGeoRotation("rotHit", 0, 0, 0)));
|
||||||
|
trackNodeID++;
|
||||||
|
}
|
||||||
|
|
||||||
|
// Redraw geometry with all tracks
|
||||||
|
geom->CloseGeometry();
|
||||||
|
geom->SetVisLevel(4);
|
||||||
|
worldBox->Draw("ogle");
|
||||||
|
}
|
||||||
|
|
||||||
|
if(app){
|
||||||
|
printf("Entering ROOT event loop\n");
|
||||||
|
app->Run();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
delete anasen;
|
||||||
|
|
||||||
|
|
||||||
|
return 0;
|
||||||
|
|
||||||
|
}
|
||||||
|
|
@ -1,52 +1,140 @@
|
||||||
#include "TRandom.h"
|
#include "TRandom.h" // ROOT random number generators, gRandom
|
||||||
#include "TFile.h"
|
#include "TFile.h" // ROOT file I/O
|
||||||
#include "TTree.h"
|
#include "TTree.h" // ROOT tree storage
|
||||||
#include "TH1.h"
|
#include "TH1.h" // 1D histograms
|
||||||
#include "TH2.h"
|
#include "TH2.h" // 2D histograms
|
||||||
#include "TStyle.h"
|
#include "TStyle.h" // ROOT plotting style controls
|
||||||
#include "TCanvas.h"
|
#include "TCanvas.h" // ROOT canvas drawing
|
||||||
#include "TBenchmark.h"
|
#include "TBenchmark.h" // timing measurement
|
||||||
|
#include "TGraph.h" // for energy loss interpolation
|
||||||
|
#include <cstring>
|
||||||
|
#include "TApplication.h" // ROOT app loop
|
||||||
|
#include "ClassTransfer.h" // Reaction kinematics and MC event generation
|
||||||
|
#include "ClassAnasen.h" // ANASEN detector model classes (SX3, PW, etc.)
|
||||||
|
#include "ClassQQQ.h" // QQQ detector model class
|
||||||
|
#include <stdio.h>
|
||||||
|
#include <stdlib.h>
|
||||||
|
#include <set>
|
||||||
|
#include "TLegend.h"
|
||||||
|
#include "TH1D.h"
|
||||||
|
#include "TObjArray.h"
|
||||||
|
#include "TBranch.h"
|
||||||
|
#include <iostream>
|
||||||
|
#include <fstream>
|
||||||
|
|
||||||
#include "ClassTransfer.h"
|
//======== Generate light particle based on reaction
|
||||||
#include "ClassAnasen.h"
|
// calculate real and reconstructed tracks and Q-value uncertainty
|
||||||
|
|
||||||
//======== Gerneate light particle based on reaction
|
// Function to load energy loss table from file
|
||||||
// find out the CalTrack and the real track
|
TGraph* LoadELoss(const char* filename) {
|
||||||
// find out the Q-value uncertaintly
|
TGraph* g = new TGraph(filename, "%lg %lg");
|
||||||
|
return g;
|
||||||
|
}
|
||||||
|
|
||||||
|
bool IsDeadAnode(int id){
|
||||||
|
static std::set<int> dead = {}; // add dead anode IDs here, 0-23
|
||||||
|
return dead.count(id);
|
||||||
|
}
|
||||||
|
|
||||||
|
bool IsDeadCathode(int id){
|
||||||
|
static std::set<int> dead = {}; // add dead cathode IDs here, 0-23
|
||||||
|
return dead.count(id);
|
||||||
|
}
|
||||||
|
|
||||||
|
bool IsDeadSX3(int id){
|
||||||
|
static std::set<int> dead = {}; // add dead SX3 IDs here, 0-23 1,7,9,3
|
||||||
|
return dead.count(id);
|
||||||
|
}
|
||||||
|
|
||||||
|
// Simulate sequential two-body decay of an unstable parent in its rest frame.
|
||||||
|
TLorentzVector SimulateSequentialDecay(const TLorentzVector &parent,
|
||||||
|
int daughterA, int daughterZ,
|
||||||
|
int ejectA, int ejectZ,
|
||||||
|
TLorentzVector &ejectileOut){
|
||||||
|
Isotope daughter(daughterA, daughterZ);
|
||||||
|
Isotope ejectile(ejectA, ejectZ);
|
||||||
|
|
||||||
|
double M = parent.M();
|
||||||
|
double mD = daughter.Mass;
|
||||||
|
double mE = ejectile.Mass;
|
||||||
|
|
||||||
|
double sqM = M * M;
|
||||||
|
double sum = mD + mE;
|
||||||
|
double diff = mD - mE;
|
||||||
|
double p2 = (sqM - sum*sum) * (sqM - diff*diff) / (4.0 * sqM); // two-body decay momentum squared
|
||||||
|
if( p2 < 0 ) p2 = 0; // handle unphysical case where parent mass is less than sum of daughter and ejectile masses
|
||||||
|
double p = TMath::Sqrt(p2); // two-body decay momentum
|
||||||
|
|
||||||
|
double cosTheta = 2.0 * gRandom->Rndm() - 1.0; // isotropic decay in parent rest frame
|
||||||
|
double theta = TMath::ACos(cosTheta); // polar angle of daughter in parent rest frame
|
||||||
|
double phi = gRandom->Rndm() * TMath::TwoPi(); // azimuthal angle of daughter in parent rest frame
|
||||||
|
|
||||||
|
TVector3 v; // momentum vector of daughter in parent rest frame
|
||||||
|
v.SetMagThetaPhi(p, theta, phi); // daughter momentum in parent rest frame
|
||||||
|
|
||||||
|
TLorentzVector daughterLab; // daughter 4-vector in lab frame, initialized with momentum from decay and mass of daughter
|
||||||
|
daughterLab.SetVectM(v, mD); // set daughter 4-vector in parent rest frame, then boost to lab frame
|
||||||
|
|
||||||
|
TLorentzVector ejectileLab; // ejectile 4-vector in lab frame, initialized with momentum opposite to daughter and mass of ejectile
|
||||||
|
ejectileLab.SetVectM(-v, mE); // set ejectile 4-vector in parent rest frame, then boost to lab frame
|
||||||
|
|
||||||
|
TVector3 boost = parent.BoostVector(); // boost vector to go from parent rest frame to lab frame
|
||||||
|
daughterLab.Boost(boost); // boost daughter to lab frame
|
||||||
|
ejectileLab.Boost(boost); // boost ejectile to lab frame
|
||||||
|
|
||||||
|
ejectileOut = ejectileLab; // return ejectile in lab frame
|
||||||
|
return daughterLab;
|
||||||
|
}
|
||||||
|
|
||||||
int main(int argc, char **argv){
|
int main(int argc, char **argv){
|
||||||
|
|
||||||
printf("=========================================\n");
|
printf("=========================================\n");
|
||||||
printf("=== ANASEN Monte Carlo ===\n");
|
printf("=== ANASEN Monte Carlo ===\n");
|
||||||
printf("=========================================\n");
|
printf("=========================================\n");
|
||||||
|
|
||||||
|
// number of events can be overridden from command line
|
||||||
int numEvent = 1000000;
|
int numEvent = 1000000;
|
||||||
if( argc >= 2 ) numEvent = atoi(argv[1]);
|
if( argc >= 2 ) numEvent = atoi(argv[1]);
|
||||||
|
|
||||||
//Reaction
|
|
||||||
TransferReaction transfer;
|
TransferReaction transfer;
|
||||||
|
|
||||||
transfer.SetA(24,12, 0);
|
//To set beam energy loss, use energy loss app, and create table with target isotope, set Initial beam energy as max energy
|
||||||
transfer.SetIncidentEnergyAngle(10, 0, 0);
|
transfer.SetA(18, 9, 0); // 18Ne projectile
|
||||||
transfer.Seta( 4, 2);
|
//TGraph* elossBeam = LoadELoss("../ELoss/HeLoss/E_vs_x_Na-21.dat");
|
||||||
transfer.Setb( 1, 1);
|
transfer.Seta(4, 2); // 4He target
|
||||||
|
transfer.Setb(1, 1); // outgoing proton from the primary transfer
|
||||||
|
transfer.SetB(21, 11); // 21Na* heavy product
|
||||||
|
const ReactionConfig reactionConfig = transfer.GetRectionConfig();
|
||||||
|
const double beamA = reactionConfig.beamA; // mass number of 14N beam
|
||||||
|
const double beamE = 3; // maximum beam energy in MeV/u
|
||||||
|
|
||||||
//TODO add alpha source
|
const int kMBeam = reactionConfig.beamA; // mass number of beam
|
||||||
|
const int kMTarget = reactionConfig.targetA; // mass number of target
|
||||||
|
const int kMLight = reactionConfig.recoilLightA; // mass number of light ejectile
|
||||||
|
const int kMHeavy = reactionConfig.recoilHeavyA; // mass number of heavy product
|
||||||
|
bool enableSequentialDecay = false; // turning to false to disable sequential decay for now, can be set to true to enable
|
||||||
|
const int decayDaughterA = 20;
|
||||||
|
const int decayDaughterZ = 10;
|
||||||
|
const int decayEjectA = 1;
|
||||||
|
const int decayEjectZ = 1;
|
||||||
|
|
||||||
std::vector<float> ExAList = {0};
|
// Excited state lists (projectile and heavy-product excitation states)
|
||||||
std::vector<float> ExList = {0, 1, 2};
|
std::vector<float> ExAList = {0}; // Beam excited energy
|
||||||
|
std::vector<float> ExList = {0, .3, 1.7, 2.4, 2.8, 3.5, 3.9, 4, 4.3, 4.5}; // Heavy product excited energy
|
||||||
|
|
||||||
double vertexXRange[2] = { -5, 5}; // mm
|
// define vertex position uniform distribution ranges (mm)
|
||||||
double vertexYRange[2] = { -5, 5};
|
double vertexXRange[2] = { -5, 5}; // mm - 5, 5
|
||||||
double vertexZRange[2] = { -100, 100};
|
double vertexYRange[2] = { -5, 5}; // -5, 5
|
||||||
|
double vertexZRange[2] = { -174.3, 174.3}; // -174.3, 174.3 (full length of gas volume, centered at 0)
|
||||||
|
const double beamEntranceZ = -280; //vertexZRange[0]; // mm, assumed beam entrance into the gas
|
||||||
|
|
||||||
double sigmaSX3_W = -1; // mm, < 0 use mid-point
|
|
||||||
double sigmaSX3_L = 3; // mm, < 0 use mid-point
|
|
||||||
double sigmaPW_A = 0; // from 0 to 1.
|
|
||||||
double sigmaPW_C = 0; // from 0 to 1.
|
|
||||||
|
|
||||||
//###################################################
|
// detector resolution / uncertainty parameters
|
||||||
|
double sigmaSX3_W = 0; // mm, if < 0 use mid-point (no spread in SX3 horizontal dimension)
|
||||||
|
double sigmaSX3_L = 0; // mm, vertical spread for SX3
|
||||||
|
double sigmaPW_A = 0; // normalized anode uncertainty term (0-1)
|
||||||
|
double sigmaPW_C = 0; // normalized cathode uncertainty term (0-1)
|
||||||
|
|
||||||
|
// status printout
|
||||||
printf("------------ Vertex :\n");
|
printf("------------ Vertex :\n");
|
||||||
printf("X : %7.2f - %7.2f mm\n", vertexXRange[0], vertexXRange[1]);
|
printf("X : %7.2f - %7.2f mm\n", vertexXRange[0], vertexXRange[1]);
|
||||||
printf("Y : %7.2f - %7.2f mm\n", vertexYRange[0], vertexYRange[1]);
|
printf("Y : %7.2f - %7.2f mm\n", vertexYRange[0], vertexYRange[1]);
|
||||||
|
|
@ -57,94 +145,228 @@ int main(int argc, char **argv){
|
||||||
printf(" Anode : %.1f mm\n", sigmaPW_A);
|
printf(" Anode : %.1f mm\n", sigmaPW_A);
|
||||||
printf(" Cathode : %.1f mm\n", sigmaPW_C);
|
printf(" Cathode : %.1f mm\n", sigmaPW_C);
|
||||||
printf(" num_eve : %d \n",numEvent);
|
printf(" num_eve : %d \n",numEvent);
|
||||||
|
|
||||||
|
// calculates energy/momentum/kinematics constants for transfer reaction
|
||||||
transfer.CalReactionConstant();
|
transfer.CalReactionConstant();
|
||||||
|
|
||||||
int nExA = ExAList.size();
|
int nExA = ExAList.size();
|
||||||
int nEx = ExList.size();
|
int nEx = ExList.size();
|
||||||
|
|
||||||
ANASEN * anasen = new ANASEN();
|
// optional visualization control: pass "vis" as 3rd arg
|
||||||
SX3 * sx3 = anasen->GetSX3();
|
bool enableVis = (argc >= 3 && strcmp(argv[2], "vis") == 0);
|
||||||
PW * pw = anasen->GetPW();
|
TApplication *app = nullptr;
|
||||||
|
if(enableVis){
|
||||||
|
app = new TApplication("anasenVis", &argc, argv);
|
||||||
|
}
|
||||||
|
|
||||||
|
// storage for tracks during simulation (for visualization)
|
||||||
|
std::vector<TVector3> visTrackVertex, visTrackDir, visTrackHitPos;
|
||||||
|
std::vector<std::pair<int,int>> visTrackWires; // {anodeID, cathodeID}
|
||||||
|
|
||||||
|
// create detector representation in memory
|
||||||
|
ANASEN * anasen = new ANASEN(); // top-level detector object
|
||||||
|
SX3 * sx3 = anasen->GetSX3(); // silicon array part
|
||||||
|
PW * pw = anasen->GetPW(); // proportional wire chamber part
|
||||||
|
QQQ * qqq = anasen->GetQQQ(); // optional QQQ detector part, not used in this simulation but can be enabled for visualization
|
||||||
|
|
||||||
|
// output file + trees
|
||||||
TString saveFileName = "SimAnasen1.root";
|
TString saveFileName = "SimAnasen1.root";
|
||||||
printf("\e[32m#################################### building Tree in %s\e[0m\n", saveFileName.Data());
|
printf("\e[32m#################################### building Tree in %s\e[0m\n", saveFileName.Data());
|
||||||
TFile * saveFile = new TFile(saveFileName, "recreate");
|
TFile * saveFile = new TFile(saveFileName, "recreate");
|
||||||
TTree * tree = new TTree("tree", "tree");
|
//TFile * saveFile2 = new TFile("SimAnasen2.root", "recreate");
|
||||||
|
TTree * tree1 = new TTree("tree1", "tree1");
|
||||||
|
TTree * tree2 = new TTree("tree2", "tree2");
|
||||||
|
//TTree * tree3 = new TTree("tree3", "tree3"); // only includes Tb and thetab
|
||||||
|
|
||||||
|
// beam and CM variables saved in tree
|
||||||
double KEA;
|
double KEA;
|
||||||
tree->Branch("beamKEA", &KEA, "beamKEA/D");
|
double KEA2;
|
||||||
|
double beamPath_cm;
|
||||||
|
double beamEnergy;
|
||||||
|
double beamEnergyLoss;
|
||||||
|
int MBeamOut;
|
||||||
|
int MTargetOut;
|
||||||
|
int MLightOut;
|
||||||
|
int MHeavyOut;
|
||||||
|
tree1->Branch("beamKEA", &KEA, "beamKEA/D");
|
||||||
|
tree2->Branch("beamKEA", &KEA2, "beamKEA/D");
|
||||||
|
tree1->Branch("beamPath_cm", &beamPath_cm, "beamPath_cm/D");
|
||||||
|
tree2->Branch("beamPath_cm", &beamPath_cm, "beamPath_cm/D");
|
||||||
|
tree1->Branch("beamEnergy", &beamEnergy, "beamEnergy/D");
|
||||||
|
tree2->Branch("beamEnergy", &beamEnergy, "beamEnergy/D");
|
||||||
|
tree1->Branch("beamEnergyLoss", &beamEnergyLoss, "beamEnergyLoss/D");
|
||||||
|
tree2->Branch("beamEnergyLoss", &beamEnergyLoss, "beamEnergyLoss/D");
|
||||||
|
tree1->Branch("MBeam", &MBeamOut, "MBeam/I");
|
||||||
|
tree1->Branch("MTarget", &MTargetOut, "MTarget/I");
|
||||||
|
tree1->Branch("MLight", &MLightOut, "MLight/I");
|
||||||
|
tree1->Branch("MHeavy", &MHeavyOut, "MHeavy/I");
|
||||||
|
tree2->Branch("MBeam", &MBeamOut, "MBeam/I");
|
||||||
|
tree2->Branch("MTarget", &MTargetOut, "MTarget/I");
|
||||||
|
tree2->Branch("MLight", &MLightOut, "MLight/I");
|
||||||
|
tree2->Branch("MHeavy", &MHeavyOut, "MHeavy/I");
|
||||||
|
|
||||||
|
// constant reaction mass numbers stored in every event entry
|
||||||
|
MBeamOut = kMBeam;
|
||||||
|
MTargetOut = kMTarget;
|
||||||
|
MLightOut = kMLight;
|
||||||
|
MHeavyOut = kMHeavy;
|
||||||
|
|
||||||
double thetaCM, phiCM;
|
double thetaCM, phiCM;
|
||||||
tree->Branch("thetaCM", &thetaCM, "thetaCM/D");
|
double thetaCM2, phiCM2;
|
||||||
tree->Branch("phiCM", &phiCM, "phiCM/D");
|
tree1->Branch("thetaCM", &thetaCM, "thetaCM/D");
|
||||||
|
tree1->Branch("phiCM", &phiCM, "phiCM/D");
|
||||||
|
tree2->Branch("thetaCM", &thetaCM2, "thetaCM/D");
|
||||||
|
tree2->Branch("phiCM", &phiCM2, "phiCM/D");
|
||||||
|
|
||||||
double thetab, phib, Tb;
|
// outgoing particles in lab frame (light/heavy)
|
||||||
double thetaB, phiB, TB;
|
double thetab, phib, Tb, qqqTb;
|
||||||
tree->Branch("thetab", &thetab, "thetab/D");
|
double thetaB, phiB, TB, qqqTB;
|
||||||
tree->Branch("phib", &phib, "phib/D");
|
std::array<double, 2> T;
|
||||||
tree->Branch("Tb", &Tb, "Tb/D");
|
tree1->Branch("thetab", &thetab, "thetab/D"); // polar angle of light particle in lab frame
|
||||||
tree->Branch("thetaB", &thetaB, "thetaB/D");
|
tree1->Branch("phib", &phib, "phib/D"); // azimuthal angle of light particle in lab frame
|
||||||
tree->Branch("phiB", &phiB, "phiB/D");
|
tree1->Branch("Tb", &Tb, "Tb/D"); // kinetic energy of light particle at vertex (before energy loss)
|
||||||
tree->Branch("TB", &TB, "TB/D");
|
tree1->Branch("thetaB", &thetaB, "thetaB/D");
|
||||||
|
tree1->Branch("phiB", &phiB, "phiB/D");
|
||||||
|
tree1->Branch("TB", &TB, "TB/D"); // kinetic energy of heavy particle at vertex (before energy loss)
|
||||||
|
tree1->Branch("T", &T, "T/D"); // placeholder for true Q-value, currently set to 0 for simplicity
|
||||||
|
tree1->Branch("qqqTb", &qqqTb, "qqqTb/D"); // kinetic energy of light particle at vertex (before energy loss) for events where the light particle hits the QQQ, currently set to 0 for simplicity
|
||||||
|
tree1->Branch("qqqTB", &qqqTB, "qqqTB/D"); // kinetic energy of heavy particle at vertex (before energy loss) for events where the light
|
||||||
|
|
||||||
|
double thetab2, phib2, Tb2, qqqTb2;
|
||||||
|
double thetaB2, phiB2, TB2, qqqTB2;
|
||||||
|
std::array<double, 2> T2;
|
||||||
|
tree2->Branch("thetab", &thetab2, "thetab/D");
|
||||||
|
tree2->Branch("phib", &phib2, "phib/D");
|
||||||
|
tree2->Branch("Tb", &Tb2, "Tb/D");
|
||||||
|
tree2->Branch("thetaB", &thetaB2, "thetaB/D");
|
||||||
|
tree2->Branch("phiB", &phiB2, "phiB/D");
|
||||||
|
tree2->Branch("TB", &TB2, "TB/D");
|
||||||
|
tree2->Branch("T", &T2, "T/D");
|
||||||
|
tree2->Branch("qqqTb", &qqqTb2, "qqqTb/D");
|
||||||
|
tree2->Branch("qqqTB", &qqqTB2, "qqqTB/D");
|
||||||
|
|
||||||
|
//tree3->Branch("Tb", &Tb, "Tb/D");
|
||||||
|
//tree3->Branch("thetab", &thetab, "thetab/D");
|
||||||
|
|
||||||
|
// excitation state identifiers
|
||||||
int ExAID;
|
int ExAID;
|
||||||
double ExA;
|
double ExA;
|
||||||
tree->Branch("ExAID", &ExAID, "ExAID/I");
|
tree1->Branch("ExAID", &ExAID, "ExAID/I"); // projectile excitation state ID
|
||||||
tree->Branch("ExA", &ExA, "ExA/D");
|
tree1->Branch("ExA", &ExA, "ExA/D"); // projectile excitation energy in MeV
|
||||||
|
|
||||||
|
int ExAID2;
|
||||||
|
double ExA2;
|
||||||
|
tree2->Branch("ExAID", &ExAID2, "ExAID/I");
|
||||||
|
tree2->Branch("ExA", &ExA2, "ExA/D");
|
||||||
|
|
||||||
int ExID;
|
int ExID;
|
||||||
double Ex;
|
double Ex;
|
||||||
tree->Branch("ExID", &ExID, "ExID/I");
|
tree1->Branch("ExID", &ExID, "ExID/I"); // target excitation state ID
|
||||||
tree->Branch("Ex", &Ex, "Ex/D");
|
tree1->Branch("Ex", &Ex, "Ex/D"); // target excitation energy in MeV
|
||||||
|
|
||||||
|
int ExID2;
|
||||||
|
double Ex2;
|
||||||
|
tree2->Branch("ExID", &ExID2, "ExID/I");
|
||||||
|
tree2->Branch("Ex", &Ex2, "Ex/D");
|
||||||
|
|
||||||
|
// true vertex position in target volume
|
||||||
double vertexX, vertexY, vertexZ;
|
double vertexX, vertexY, vertexZ;
|
||||||
tree->Branch("vX", &vertexX, "VertexX/D");
|
tree1->Branch("vX", &vertexX, "VertexX/D"); // true vertex X position in mm
|
||||||
tree->Branch("vY", &vertexY, "VertexY/D");
|
tree1->Branch("vY", &vertexY, "VertexY/D"); // true vertex Y position in mm
|
||||||
tree->Branch("vZ", &vertexZ, "VertexZ/D");
|
tree1->Branch("vZ", &vertexZ, "VertexZ/D"); // true vertex Z position in mm
|
||||||
|
|
||||||
|
double vertexX2, vertexY2, vertexZ2;
|
||||||
|
tree2->Branch("vX", &vertexX2, "VertexX/D");
|
||||||
|
tree2->Branch("vY", &vertexY2, "VertexY/D");
|
||||||
|
tree2->Branch("vZ", &vertexZ2, "VertexZ/D");
|
||||||
|
|
||||||
|
// reconstructed SX3 hit position
|
||||||
double sx3X, sx3Y, sx3Z;
|
double sx3X, sx3Y, sx3Z;
|
||||||
tree->Branch("sx3X", &sx3X, "sx3X/D");
|
tree1->Branch("sx3X", &sx3X, "sx3X/D"); // reconstructed X position from SX3 (with optional smearing) in mm
|
||||||
tree->Branch("sx3Y", &sx3Y, "sx3Y/D");
|
tree1->Branch("sx3Y", &sx3Y, "sx3Y/D"); // reconstructed Y position from SX3 (with optional smearing)
|
||||||
tree->Branch("sx3Z", &sx3Z, "sx3Z/D");
|
tree1->Branch("sx3Z", &sx3Z, "sx3Z/D"); // reconstructed Z position from SX3 (with optional smearing)
|
||||||
|
|
||||||
|
double sx3X2, sx3Y2, sx3Z2;
|
||||||
|
tree2->Branch("sx3X", &sx3X2, "sx3X/D");
|
||||||
|
tree2->Branch("sx3Y", &sx3Y2, "sx3Y/D");
|
||||||
|
tree2->Branch("sx3Z", &sx3Z2, "sx3Z/D");
|
||||||
|
|
||||||
|
double qqqX, qqqY, qqqZ;
|
||||||
|
tree1->Branch("qqqX", &qqqX, "qqqX/D"); // reconstructed X position from QQQ (with optional smearing) in mm
|
||||||
|
tree1->Branch("qqqY", &qqqY, "qqqY/D"); // reconstructed Y position from QQQ (with optional smearing)
|
||||||
|
tree1->Branch("qqqZ", &qqqZ, "qqqZ/D"); // reconstructed Z position from QQQ (with optional smearing)
|
||||||
|
|
||||||
|
double qqqX2, qqqY2, qqqZ2;
|
||||||
|
tree2->Branch("qqqX", &qqqX2, "qqqX/D");
|
||||||
|
tree2->Branch("qqqY", &qqqY2, "qqqY/D");
|
||||||
|
tree2->Branch("qqqZ", &qqqZ2, "qqqZ/D");
|
||||||
|
|
||||||
|
// PW nearest and next nearest wires
|
||||||
int anodeID[2], cathodeID[2];
|
int anodeID[2], cathodeID[2];
|
||||||
tree->Branch("aID", anodeID, "anodeID/I");
|
int anodeID2[2], cathodeID2[2];
|
||||||
tree->Branch("cID", cathodeID, "cathodeID/I");
|
tree1->Branch("aID", anodeID, "anodeID/I"); // anodeID[0] is nearest anode wire, anodeID[1] is next nearest anode wire
|
||||||
|
tree1->Branch("cID", cathodeID, "cathodeID/I"); // cathodeID[0] is nearest cathode wire, cathodeID[1] is next nearest cathode wire
|
||||||
|
tree2->Branch("aID", anodeID2, "anodeID/I");
|
||||||
|
tree2->Branch("cID", cathodeID2, "cathodeID/I");
|
||||||
|
|
||||||
|
// distances to nearest wires
|
||||||
double anodeDist[2], cathodeDist[2];
|
double anodeDist[2], cathodeDist[2];
|
||||||
tree->Branch("aDist", anodeDist, "anodeDist/D");
|
double anodeDist2[2], cathodeDist2[2];
|
||||||
tree->Branch("cDist", cathodeDist, "cathodeDist/D");
|
tree1->Branch("aDist", anodeDist, "anodeDist/D");
|
||||||
|
tree1->Branch("cDist", cathodeDist, "cathodeDist/D");
|
||||||
|
tree2->Branch("aDist", anodeDist2, "anodeDist/D");
|
||||||
|
tree2->Branch("cDist", cathodeDist2, "cathodeDist/D");
|
||||||
|
|
||||||
int sx3ID, sx3Up, sx3Dn, sx3Bk;
|
// SX3 channel assignment and Z fraction (depth) information
|
||||||
|
int sx3ID, sx3Up, sx3Dn, sx3Bk, qqqID;
|
||||||
double sx3ZFrac;
|
double sx3ZFrac;
|
||||||
tree->Branch("sx3ID", &sx3ID, "sx3ID/I");
|
int sx3ID2, sx3Up2, sx3Dn2, sx3Bk2, qqqID2;
|
||||||
tree->Branch("sx3Up", &sx3Up, "sx3Up/I");
|
double sx3ZFrac2;
|
||||||
tree->Branch("sx3Dn", &sx3Dn, "sx3Dn/I");
|
tree1->Branch("sx3ID", &sx3ID, "sx3ID/I");
|
||||||
tree->Branch("sx3Bk", &sx3Bk, "sx3Bk/I");
|
tree1->Branch("qqqID", &qqqID, "qqqID/I");
|
||||||
tree->Branch("sx3ZFrac", &sx3ZFrac, "sx3ZFrac/D");
|
tree1->Branch("sx3Up", &sx3Up, "sx3Up/I");
|
||||||
|
tree1->Branch("sx3Dn", &sx3Dn, "sx3Dn/I");
|
||||||
|
tree1->Branch("sx3Bk", &sx3Bk, "sx3Bk/I");
|
||||||
|
tree1->Branch("sx3ZFrac", &sx3ZFrac, "sx3ZFrac/D");
|
||||||
|
tree2->Branch("sx3ID", &sx3ID2, "sx3ID/I");
|
||||||
|
tree2->Branch("qqqID", &qqqID2, "qqqID/I");
|
||||||
|
tree2->Branch("sx3Up", &sx3Up2, "sx3Up/I");
|
||||||
|
tree2->Branch("sx3Dn", &sx3Dn2, "sx3Dn/I");
|
||||||
|
tree2->Branch("sx3Bk", &sx3Bk2, "sx3Bk/I");
|
||||||
|
tree2->Branch("sx3ZFrac", &sx3ZFrac2, "sx3ZFrac/D");
|
||||||
|
|
||||||
|
// reconstructed angles from PW track fit, method 1 and 2
|
||||||
double reTheta, rePhi;
|
double reTheta, rePhi;
|
||||||
tree->Branch("reTheta", &reTheta, "reconstucted_theta/D");
|
double reTheta2, rePhi2;
|
||||||
tree->Branch("rePhi", &rePhi, "reconstucted_phi/D");
|
tree1->Branch("reTheta", &reTheta, "reconstucted_theta/D");
|
||||||
|
tree1->Branch("rePhi", &rePhi, "reconstucted_phi/D");
|
||||||
|
tree2->Branch("reTheta", &reTheta2, "reconstucted_theta/D");
|
||||||
|
tree2->Branch("rePhi", &rePhi2, "reconstucted_phi/D");
|
||||||
|
|
||||||
double reTheta1, rePhi1;
|
double reTheta1, rePhi1;
|
||||||
tree->Branch("reTheta1", &reTheta1, "reconstucted_theta1/D");
|
double reTheta12, rePhi12;
|
||||||
tree->Branch("rePhi1", &rePhi1, "reconstucted_phi1/D");
|
tree1->Branch("reTheta1", &reTheta1, "reconstucted_theta1/D");
|
||||||
|
tree1->Branch("rePhi1", &rePhi1, "reconstucted_phi1/D");
|
||||||
|
tree2->Branch("reTheta1", &reTheta12, "reconstucted_theta1/D");
|
||||||
|
tree2->Branch("rePhi1", &rePhi12, "reconstucted_phi1/D");
|
||||||
|
|
||||||
|
// reconstructed vertex Z from PW fit
|
||||||
double z0;
|
double z0;
|
||||||
tree->Branch("z0", &z0, "reconstucted_Z/D");
|
double z02;
|
||||||
|
tree1->Branch("z0", &z0, "reconstucted_Z/D");
|
||||||
|
tree2->Branch("z0", &z02, "reconstucted_Z/D");
|
||||||
|
|
||||||
//========timer
|
//========timer
|
||||||
TBenchmark clock;
|
TBenchmark clock;
|
||||||
bool shown ;
|
bool shown ;
|
||||||
clock.Reset();
|
clock.Reset();
|
||||||
clock.Start("timer");
|
clock.Start("timer");
|
||||||
shown = false;
|
shown = false;
|
||||||
|
|
||||||
//================================= Calculate event
|
//================================= Calculate event loop
|
||||||
for( int i = 0; i < numEvent ; i++){
|
for( int i = 0; i < numEvent ; i++){
|
||||||
|
|
||||||
|
// randomly sample target/projectile excitations
|
||||||
ExAID = gRandom->Integer(nExA);
|
ExAID = gRandom->Integer(nExA);
|
||||||
ExA = ExAList[ExAID];
|
ExA = ExAList[ExAID];
|
||||||
transfer.SetExA(ExA);
|
transfer.SetExA(ExA);
|
||||||
|
|
@ -153,103 +375,318 @@ int main(int argc, char **argv){
|
||||||
Ex = ExList[ExID];
|
Ex = ExList[ExID];
|
||||||
transfer.SetExB(Ex);
|
transfer.SetExB(Ex);
|
||||||
|
|
||||||
|
// recalc kinematic constants for chosen states
|
||||||
transfer.CalReactionConstant();
|
transfer.CalReactionConstant();
|
||||||
|
|
||||||
thetaCM = TMath::ACos(2 * gRandom->Rndm() - 1) ;
|
// vertex position in target volume
|
||||||
phiCM = (gRandom->Rndm() - 0.5) * TMath::TwoPi();
|
|
||||||
|
|
||||||
//==== Calculate reaction
|
|
||||||
TLorentzVector * output = transfer.Event(thetaCM, phiCM);
|
|
||||||
TLorentzVector Pb = output[2];
|
|
||||||
TLorentzVector PB = output[3];
|
|
||||||
|
|
||||||
thetab = Pb.Theta() * TMath::RadToDeg();
|
|
||||||
thetaB = PB.Theta() * TMath::RadToDeg();
|
|
||||||
|
|
||||||
Tb = Pb.E() - Pb.M();
|
|
||||||
TB = PB.E() - PB.M();
|
|
||||||
|
|
||||||
phib = Pb.Phi() * TMath::RadToDeg();
|
|
||||||
phiB = PB.Phi() * TMath::RadToDeg();
|
|
||||||
|
|
||||||
vertexX = (vertexXRange[1]- vertexXRange[0])*gRandom->Rndm() + vertexXRange[0];
|
vertexX = (vertexXRange[1]- vertexXRange[0])*gRandom->Rndm() + vertexXRange[0];
|
||||||
vertexY = (vertexYRange[1]- vertexYRange[0])*gRandom->Rndm() + vertexYRange[0];
|
vertexY = (vertexYRange[1]- vertexYRange[0])*gRandom->Rndm() + vertexYRange[0];
|
||||||
vertexZ = (vertexZRange[1]- vertexZRange[0])*gRandom->Rndm() + vertexZRange[0];
|
vertexZ = (vertexZRange[1]- vertexZRange[0])*gRandom->Rndm() + vertexZRange[0];
|
||||||
|
|
||||||
TVector3 vertex(vertexX, vertexY, vertexZ);
|
TVector3 vertex(vertexX, vertexY, vertexZ);
|
||||||
|
|
||||||
|
// compute beam energy at the event vertex from the gas path length
|
||||||
|
beamPath_cm = TVector3(vertexZ - beamEntranceZ, vertexX, vertexY).Mag() * 0.1;
|
||||||
|
if( beamPath_cm < 0 ) beamPath_cm = 0;
|
||||||
|
//beamEnergy = elossBeam->Eval(beamPath_cm); // MeV
|
||||||
|
//beamEnergyLoss = elossBeam->Eval(0.0) - beamEnergy;
|
||||||
|
//KEA = beamEnergy / beamA;
|
||||||
|
KEA = gRandom->Uniform(0, beamE);
|
||||||
|
beamEnergy = KEA * beamA;
|
||||||
|
beamEnergyLoss = 0;
|
||||||
|
transfer.SetIncidentEnergyAngle(KEA, 0, 0);
|
||||||
|
transfer.CalReactionConstant();
|
||||||
|
|
||||||
|
// isotropic CM direction
|
||||||
|
thetaCM = TMath::ACos(2 * gRandom->Rndm() - 1) ; // polar angle in CM frame
|
||||||
|
phiCM = (gRandom->Rndm() - 0.5) * TMath::TwoPi();
|
||||||
|
|
||||||
|
//==== Calculate reaction kinematics in lab frame for the primary transfer
|
||||||
|
TLorentzVector * output = transfer.Event(thetaCM, phiCM); // returns array of outputs
|
||||||
|
TLorentzVector Pb = output[2]; // primary proton from transfer
|
||||||
|
TLorentzVector PB = output[3]; // excited 21Na* heavy product
|
||||||
|
|
||||||
|
thetab = Pb.Theta() * TMath::RadToDeg();
|
||||||
|
Tb = (Pb.E() - Pb.M()); // kinetic energy of the light proton from the primary transfer
|
||||||
|
thetaB = PB.Theta() * TMath::RadToDeg();
|
||||||
|
TB = (PB.E() - PB.M());
|
||||||
|
phib = Pb.Phi() * TMath::RadToDeg();
|
||||||
|
phiB = PB.Phi() * TMath::RadToDeg();
|
||||||
|
T[0] = Tb;
|
||||||
|
T[1] = TB;
|
||||||
|
|
||||||
|
//secondary decay
|
||||||
|
TLorentzVector decayProton;
|
||||||
|
TLorentzVector heavy20;
|
||||||
|
if(enableSequentialDecay){
|
||||||
|
heavy20 = SimulateSequentialDecay(PB, decayDaughterA, decayDaughterZ,
|
||||||
|
decayEjectA, decayEjectZ, decayProton);
|
||||||
|
thetab2 = decayProton.Theta() * TMath::RadToDeg();
|
||||||
|
phib2 = decayProton.Phi() * TMath::RadToDeg();
|
||||||
|
Tb2 = decayProton.E() - decayProton.M();
|
||||||
|
thetaB2 = heavy20.Theta() * TMath::RadToDeg();
|
||||||
|
phiB2 = heavy20.Phi() * TMath::RadToDeg();
|
||||||
|
TB2 = heavy20.E() - heavy20.M();
|
||||||
|
T2[0] = Tb2;
|
||||||
|
T2[1] = TB2;
|
||||||
|
} else {
|
||||||
|
thetab2 = TMath::QuietNaN();
|
||||||
|
phib2 = TMath::QuietNaN();
|
||||||
|
Tb2 = TMath::QuietNaN();
|
||||||
|
thetaB2 = TMath::QuietNaN();
|
||||||
|
phiB2 = TMath::QuietNaN();
|
||||||
|
TB2 = TMath::QuietNaN();
|
||||||
|
T2[0] = TMath::QuietNaN();
|
||||||
|
T2[1] = TMath::QuietNaN();
|
||||||
|
}
|
||||||
|
|
||||||
|
delete [] output;
|
||||||
|
|
||||||
|
// set direction vector from lab angle
|
||||||
TVector3 dir(1, 0, 0);
|
TVector3 dir(1, 0, 0);
|
||||||
dir.SetTheta(thetab * TMath::DegToRad());
|
dir.SetTheta(thetab * TMath::DegToRad());
|
||||||
dir.SetPhi(phib * TMath::DegToRad());
|
dir.SetPhi(phib * TMath::DegToRad());
|
||||||
|
|
||||||
|
// run detector response models for PW and SX3
|
||||||
pw->FindWireID(vertex, dir, false);
|
pw->FindWireID(vertex, dir, false);
|
||||||
sx3->FindSX3Pos(vertex, dir, false);
|
sx3->FindSX3Pos(vertex, dir, false);
|
||||||
|
qqq->FindQQQPos(vertex, dir, false);
|
||||||
|
|
||||||
PWHitInfo hitInfo = pw->GetHitInfo();
|
PWHitInfo hitInfo = pw->GetHitInfo();
|
||||||
|
|
||||||
anodeID[0] = hitInfo.nearestWire.first;
|
anodeID[0] = hitInfo.nearestWire.first; // nearest anode wire ID
|
||||||
cathodeID[0] = hitInfo.nearestWire.second;
|
cathodeID[0] = hitInfo.nearestWire.second; // nearest cathode wire ID
|
||||||
anodeID[1] = hitInfo.nextNearestWire.first;
|
anodeID[1] = hitInfo.nextNearestWire.first; // next nearest anode wire ID
|
||||||
cathodeID[1] = hitInfo.nextNearestWire.second;
|
cathodeID[1] = hitInfo.nextNearestWire.second; // next nearest cathode wire ID
|
||||||
|
|
||||||
anodeDist[0] = hitInfo.nearestDist.first;
|
anodeDist[1] = hitInfo.nextNearestDist.first; // distance to next nearest anode wire
|
||||||
cathodeDist[0] = hitInfo.nearestDist.second;
|
cathodeDist[1] = hitInfo.nextNearestDist.second; // distance to next nearest cathode wire
|
||||||
anodeDist[1] = hitInfo.nextNearestDist.first;
|
|
||||||
cathodeDist[1] = hitInfo.nextNearestDist.second;
|
|
||||||
|
|
||||||
|
if(IsDeadAnode(anodeID[0])) continue;
|
||||||
|
if(IsDeadCathode(cathodeID[0])) continue;
|
||||||
|
|
||||||
|
// SX3 hit channel info and depth fraction
|
||||||
sx3ID = sx3->GetID();
|
sx3ID = sx3->GetID();
|
||||||
|
qqqID = qqq->GetID();
|
||||||
|
|
||||||
|
if(IsDeadSX3(sx3ID)) continue;
|
||||||
|
|
||||||
|
anodeDist[0] = hitInfo.nearestDist.first; // distance to nearest anode wire
|
||||||
|
cathodeDist[0] = hitInfo.nearestDist.second; // distance to nearest cathode wire
|
||||||
|
|
||||||
|
//start HERE
|
||||||
if( sx3ID >= 0 ){
|
if( sx3ID >= 0 ){
|
||||||
sx3Up = sx3->GetChUp();
|
sx3Up = sx3->GetChUp();
|
||||||
sx3Dn = sx3->GetChDn();
|
sx3Dn = sx3->GetChDn();
|
||||||
sx3Bk = sx3->GetChBk();
|
sx3Bk = sx3->GetChBk();
|
||||||
sx3ZFrac = sx3->GetZFrac();
|
sx3ZFrac = sx3->GetZFrac();
|
||||||
|
|
||||||
//Introduce uncertaity
|
// apply intrinsic detector resolution to true SX3 hit position
|
||||||
// TVector3 hitPos = sx3->GetHitPos();
|
// for no smearing comment out and use GetHitPos();
|
||||||
TVector3 hitPos = sx3->GetHitPosWithSigma(sigmaSX3_W, sigmaSX3_L);
|
TVector3 hitPos = sx3->GetHitPosWithSigma(sigmaSX3_W, sigmaSX3_L);
|
||||||
|
|
||||||
sx3X = hitPos.X();
|
sx3X = hitPos.X();
|
||||||
sx3Y = hitPos.Y();
|
sx3Y = hitPos.Y();
|
||||||
sx3Z = hitPos.Z();
|
sx3Z = hitPos.Z();
|
||||||
|
|
||||||
|
// store track data for visualization if enabled
|
||||||
|
if(enableVis){
|
||||||
|
visTrackVertex.push_back(vertex);
|
||||||
|
visTrackDir.push_back(dir);
|
||||||
|
visTrackHitPos.push_back(hitPos);
|
||||||
|
visTrackWires.push_back({anodeID[0], cathodeID[0]});
|
||||||
|
}
|
||||||
|
// reconstruct track from PW readings + SX3 hit
|
||||||
pw->CalTrack(hitPos, anodeID[0], cathodeID[0], false);
|
pw->CalTrack(hitPos, anodeID[0], cathodeID[0], false);
|
||||||
reTheta = pw->GetTrackTheta() * TMath::RadToDeg();
|
reTheta = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
rePhi = pw->GetTrackPhi() * TMath::RadToDeg();
|
rePhi = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
|
||||||
|
// alternative track algorithm with uncertainty parameters
|
||||||
pw->CalTrack2(hitPos, hitInfo, sigmaPW_A, sigmaPW_C, false);
|
pw->CalTrack2(hitPos, hitInfo, sigmaPW_A, sigmaPW_C, false);
|
||||||
reTheta1 = pw->GetTrackTheta() * TMath::RadToDeg();
|
reTheta1 = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
rePhi1 = pw->GetTrackPhi() * TMath::RadToDeg();
|
rePhi1 = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
|
||||||
z0 = pw->GetZ0();
|
z0 = pw->GetZ0();
|
||||||
|
tree1->Fill();
|
||||||
|
//tree3->Fill();
|
||||||
|
|
||||||
}else{
|
// fill tree2 using the secondary proton from 21Na* decay
|
||||||
|
TVector3 dir2(1, 0, 0);
|
||||||
|
dir2.SetTheta(thetab2 * TMath::DegToRad());
|
||||||
|
dir2.SetPhi(phib2 * TMath::DegToRad());
|
||||||
|
|
||||||
|
pw->FindWireID(vertex, dir2, false);
|
||||||
|
sx3->FindSX3Pos(vertex, dir2, false);
|
||||||
|
PWHitInfo hitInfo2 = pw->GetHitInfo();
|
||||||
|
|
||||||
|
anodeID2[0] = hitInfo2.nearestWire.first;
|
||||||
|
cathodeID2[0] = hitInfo2.nearestWire.second;
|
||||||
|
anodeID2[1] = hitInfo2.nextNearestWire.first;
|
||||||
|
cathodeID2[1] = hitInfo2.nextNearestWire.second;
|
||||||
|
|
||||||
|
anodeDist2[1] = hitInfo2.nextNearestDist.first;
|
||||||
|
cathodeDist2[1] = hitInfo2.nextNearestDist.second;
|
||||||
|
|
||||||
|
if(IsDeadAnode(anodeID2[0]) || IsDeadCathode(cathodeID2[0])){
|
||||||
|
sx3ID2 = -1;
|
||||||
|
} else {
|
||||||
|
sx3ID2 = sx3->GetID();
|
||||||
|
}
|
||||||
|
|
||||||
|
if(sx3ID2 < 0 || IsDeadSX3(sx3ID2)){
|
||||||
|
sx3ID2 = -1;
|
||||||
|
sx3Up2 = -1;
|
||||||
|
sx3Dn2 = -1;
|
||||||
|
sx3Bk2 = -1;
|
||||||
|
sx3ZFrac2 = TMath::QuietNaN();
|
||||||
|
sx3X2 = TMath::QuietNaN();
|
||||||
|
sx3Y2 = TMath::QuietNaN();
|
||||||
|
sx3Z2 = TMath::QuietNaN();
|
||||||
|
anodeDist2[0] = TMath::QuietNaN();
|
||||||
|
cathodeDist2[0] = TMath::QuietNaN();
|
||||||
|
reTheta2 = TMath::QuietNaN();
|
||||||
|
rePhi2 = TMath::QuietNaN();
|
||||||
|
reTheta12 = TMath::QuietNaN();
|
||||||
|
rePhi12 = TMath::QuietNaN();
|
||||||
|
z02 = TMath::QuietNaN();
|
||||||
|
} else {
|
||||||
|
anodeDist2[0] = hitInfo2.nearestDist.first;
|
||||||
|
cathodeDist2[0] = hitInfo2.nearestDist.second;
|
||||||
|
sx3Up2 = sx3->GetChUp();
|
||||||
|
sx3Dn2 = sx3->GetChDn();
|
||||||
|
sx3Bk2 = sx3->GetChBk();
|
||||||
|
sx3ZFrac2 = sx3->GetZFrac();
|
||||||
|
TVector3 hitPos2 = sx3->GetHitPosWithSigma(sigmaSX3_W, sigmaSX3_L);
|
||||||
|
sx3X2 = hitPos2.X();
|
||||||
|
sx3Y2 = hitPos2.Y();
|
||||||
|
sx3Z2 = hitPos2.Z();
|
||||||
|
pw->CalTrack(hitPos2, anodeID2[0], cathodeID2[0], false);
|
||||||
|
reTheta2 = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
|
rePhi2 = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
pw->CalTrack2(hitPos2, hitInfo2, sigmaPW_A, sigmaPW_C, false);
|
||||||
|
reTheta12 = pw->GetTrackTheta() * TMath::RadToDeg();
|
||||||
|
rePhi12 = pw->GetTrackPhi() * TMath::RadToDeg();
|
||||||
|
z02 = pw->GetZ0();
|
||||||
|
}
|
||||||
|
|
||||||
|
KEA2 = KEA;
|
||||||
|
thetaCM2 = thetaCM;
|
||||||
|
phiCM2 = phiCM;
|
||||||
|
ExAID2 = ExAID;
|
||||||
|
ExA2 = ExA;
|
||||||
|
ExID2 = ExID;
|
||||||
|
Ex2 = Ex;
|
||||||
|
vertexX2 = vertexX;
|
||||||
|
vertexY2 = vertexY;
|
||||||
|
vertexZ2 = vertexZ;
|
||||||
|
qqqX = TMath::QuietNaN();
|
||||||
|
qqqY = TMath::QuietNaN();
|
||||||
|
qqqZ = TMath::QuietNaN();
|
||||||
|
|
||||||
|
tree2->Fill();
|
||||||
|
|
||||||
|
}else if (qqqID >= 0){
|
||||||
|
// handle QQQ hit case
|
||||||
sx3Up = -1;
|
sx3Up = -1;
|
||||||
sx3Dn = -1;
|
sx3Dn = -1;
|
||||||
sx3Bk = -1;
|
sx3Bk = -1;
|
||||||
sx3ZFrac = TMath::QuietNaN();
|
sx3ZFrac = TMath::QuietNaN();
|
||||||
|
|
||||||
sx3X = TMath::QuietNaN();
|
sx3X = TMath::QuietNaN();
|
||||||
sx3Y = TMath::QuietNaN();
|
sx3Y = TMath::QuietNaN();
|
||||||
sx3Z = TMath::QuietNaN();
|
sx3Z = TMath::QuietNaN();
|
||||||
|
|
||||||
// for( int i = 0; i < 12; i++){
|
reTheta = TMath::QuietNaN();
|
||||||
// sx3Index[i] = -1;
|
rePhi = TMath::QuietNaN();
|
||||||
// }
|
|
||||||
|
|
||||||
reTheta = TMath::QuietNaN();
|
|
||||||
rePhi = TMath::QuietNaN();
|
|
||||||
|
|
||||||
reTheta1 = TMath::QuietNaN();
|
reTheta1 = TMath::QuietNaN();
|
||||||
rePhi1 = TMath::QuietNaN();
|
rePhi1 = TMath::QuietNaN();
|
||||||
|
z0 = TMath::QuietNaN();
|
||||||
|
|
||||||
z0 = TMath::QuietNaN();
|
qqqTb = Tb; // for simplicity, using the same kinetic energy for QQQ hit events, can be modified to simulate energy loss if desired
|
||||||
|
qqqTB = TB;
|
||||||
|
|
||||||
|
Tb = TMath::QuietNaN(); // mark kinetic energy as invalid for SX3 hit case
|
||||||
|
TB = TMath::QuietNaN();
|
||||||
|
|
||||||
|
TVector3 hitPos = qqq->GetHitPos();
|
||||||
|
|
||||||
|
qqqX = hitPos.X();
|
||||||
|
qqqY = hitPos.Y();
|
||||||
|
qqqZ = hitPos.Z();
|
||||||
|
|
||||||
|
if(enableVis){
|
||||||
|
visTrackVertex.push_back(vertex);
|
||||||
|
visTrackDir.push_back(dir);
|
||||||
|
visTrackHitPos.push_back(hitPos);
|
||||||
|
//visTrackWires.push_back({anodeID[0], cathodeID[0]});
|
||||||
|
}
|
||||||
|
|
||||||
|
tree1->Fill();
|
||||||
|
//tree3->Fill();
|
||||||
|
|
||||||
|
TVector3 dir2(1, 0, 0);
|
||||||
|
dir2.SetTheta(thetab2 * TMath::DegToRad());
|
||||||
|
dir2.SetPhi(phib2 * TMath::DegToRad());
|
||||||
|
|
||||||
|
qqq->FindQQQPos(vertex, dir2, false);
|
||||||
|
|
||||||
|
if(qqqID2 < 0){
|
||||||
|
qqqID2 = -1;
|
||||||
|
qqqX2 = TMath::QuietNaN();
|
||||||
|
qqqY2 = TMath::QuietNaN();
|
||||||
|
qqqZ2 = TMath::QuietNaN();
|
||||||
|
anodeDist2[0] = TMath::QuietNaN();
|
||||||
|
cathodeDist2[0] = TMath::QuietNaN();
|
||||||
|
reTheta2 = TMath::QuietNaN();
|
||||||
|
rePhi2 = TMath::QuietNaN();
|
||||||
|
reTheta12 = TMath::QuietNaN();
|
||||||
|
rePhi12 = TMath::QuietNaN();
|
||||||
|
z02 = TMath::QuietNaN();
|
||||||
|
anodeID2[0] = TMath::QuietNaN(); // no valid anode wire for QQQ hit case
|
||||||
|
cathodeID2[0] = TMath::QuietNaN(); // no valid cathode wire for QQQ hit case
|
||||||
|
anodeID2[1] = TMath::QuietNaN(); // no valid next nearest anode wire for QQQ hit case
|
||||||
|
cathodeID2[1] = TMath::QuietNaN(); // no valid next nearest cathode wire for QQQ hit case
|
||||||
|
anodeDist2[1] = TMath::QuietNaN();
|
||||||
|
cathodeDist2[1] = TMath::QuietNaN();
|
||||||
|
}
|
||||||
|
|
||||||
|
KEA2 = KEA;
|
||||||
|
thetaCM2 = thetaCM;
|
||||||
|
phiCM2 = phiCM;
|
||||||
|
ExAID2 = ExAID;
|
||||||
|
ExA2 = ExA;
|
||||||
|
ExID2 = ExID;
|
||||||
|
Ex2 = Ex;
|
||||||
|
vertexX2 = vertexX;
|
||||||
|
vertexY2 = vertexY;
|
||||||
|
vertexZ2 = vertexZ;
|
||||||
|
|
||||||
|
tree2->Fill();
|
||||||
|
}else{
|
||||||
|
// no valid SX3 hit: mark clearly invalid
|
||||||
|
sx3Up = -1;
|
||||||
|
sx3Dn = -1;
|
||||||
|
sx3Bk = -1;
|
||||||
|
sx3ZFrac = TMath::QuietNaN();
|
||||||
|
|
||||||
|
sx3X = TMath::QuietNaN();
|
||||||
|
sx3Y = TMath::QuietNaN();
|
||||||
|
sx3Z = TMath::QuietNaN();
|
||||||
|
|
||||||
|
reTheta = TMath::QuietNaN();
|
||||||
|
rePhi = TMath::QuietNaN();
|
||||||
|
reTheta1 = TMath::QuietNaN();
|
||||||
|
rePhi1 = TMath::QuietNaN();
|
||||||
|
z0 = TMath::QuietNaN();
|
||||||
|
Tb = TMath::QuietNaN(); // mark kinetic energy as invalid for no hit case
|
||||||
|
TB = TMath::QuietNaN();
|
||||||
|
// fill tree with original data (no energy loss for these events)
|
||||||
|
//comment out tree fill for no hit case
|
||||||
|
//tree1->Fill();
|
||||||
}
|
}
|
||||||
|
|
||||||
tree->Fill();
|
//#################################################################### Timer
|
||||||
|
// measure elapsed real time and print progress roughly every 10 sec
|
||||||
//#################################################################### Timer
|
|
||||||
clock.Stop("timer");
|
clock.Stop("timer");
|
||||||
Double_t time = clock.GetRealTime("timer");
|
Double_t time = clock.GetRealTime("timer");
|
||||||
clock.Start("timer");
|
clock.Start("timer");
|
||||||
|
|
@ -259,7 +696,7 @@ int main(int argc, char **argv){
|
||||||
printf( "%10d[%2d%%]| %8.2f sec | expect: %5.1f min \n", i, TMath::Nint((i+1)*100./numEvent), time , numEvent*time/(i+1)/60);
|
printf( "%10d[%2d%%]| %8.2f sec | expect: %5.1f min \n", i, TMath::Nint((i+1)*100./numEvent), time , numEvent*time/(i+1)/60);
|
||||||
shown = 1;
|
shown = 1;
|
||||||
}
|
}
|
||||||
}else{
|
} else {
|
||||||
if (fmod(time, 10) > 9 ){
|
if (fmod(time, 10) > 9 ){
|
||||||
shown = 0;
|
shown = 0;
|
||||||
}
|
}
|
||||||
|
|
@ -267,14 +704,78 @@ int main(int argc, char **argv){
|
||||||
|
|
||||||
}
|
}
|
||||||
|
|
||||||
tree->Write();
|
// write results to ROOT file and close
|
||||||
int count = tree->GetEntries();
|
tree1->Write("", TObject::kOverwrite);
|
||||||
|
tree2->Write("", TObject::kOverwrite);
|
||||||
|
//tree3->Write("", TObject::kOverwrite);
|
||||||
|
int count1 = tree1->GetEntries();
|
||||||
|
int count2 = tree2->GetEntries();
|
||||||
|
//int count3 = tree3->GetEntries();
|
||||||
saveFile->Close();
|
saveFile->Close();
|
||||||
|
|
||||||
printf("=============== done. saved as %s. count(hit==1) : %d\n", saveFileName.Data(), count);
|
printf("=============== done. saved as %s. tree1 entries: %d, tree2 entries: %d\n", saveFileName.Data(), count1, count2);
|
||||||
|
|
||||||
|
if(enableVis){ // to enable visualization, run with 3rd argument "vis", e.g. "./anasenMC 1000 vis"
|
||||||
|
printf("Displaying geometry with %zu tracks from simulation\n", visTrackVertex.size());
|
||||||
|
|
||||||
|
// Build full geometry with all wires
|
||||||
|
anasen->DrawAnasen(0, 23, 0, 23, -1, true);
|
||||||
|
|
||||||
|
// Add all stored tracks to the geometry
|
||||||
|
TGeoManager *geom = anasen->GetGeoManager();
|
||||||
|
TGeoVolume *worldBox = anasen->GetWorldBox();
|
||||||
|
|
||||||
|
if(geom && worldBox && visTrackVertex.size() > 0){
|
||||||
|
int trackNodeID = 500; // start node IDs for tracks
|
||||||
|
|
||||||
|
for(size_t iTrack = 0; iTrack < visTrackVertex.size(); ++iTrack){
|
||||||
|
TVector3 vertex = visTrackVertex[iTrack];
|
||||||
|
TVector3 dir = visTrackDir[iTrack];
|
||||||
|
TVector3 hitPos = visTrackHitPos[iTrack];
|
||||||
|
|
||||||
|
double theta = dir.Theta() * TMath::RadToDeg();
|
||||||
|
double phi = dir.Phi() * TMath::RadToDeg();
|
||||||
|
|
||||||
|
// Add a line marker at the vertex
|
||||||
|
TGeoVolume *startMarker = geom->MakeSphere("startMarker", 0, 0, 2.0);
|
||||||
|
startMarker->SetLineColor(kBlack);
|
||||||
|
worldBox->AddNode(startMarker, trackNodeID,
|
||||||
|
new TGeoCombiTrans(vertex.X(), vertex.Y(), vertex.Z(),
|
||||||
|
new TGeoRotation("rot", 0, 0, 0)));
|
||||||
|
trackNodeID++;
|
||||||
|
|
||||||
|
// Add track line from vertex toward hit position
|
||||||
|
TGeoVolume *trackLine = geom->MakeTube("trackLine", 0, 0, 0.08, 150.0);
|
||||||
|
trackLine->SetLineColor(kBlue);
|
||||||
|
worldBox->AddNode(trackLine, trackNodeID,
|
||||||
|
new TGeoCombiTrans(vertex.X(), vertex.Y(), vertex.Z(),
|
||||||
|
new TGeoRotation("rotTrack", phi + 90, theta, 0)));
|
||||||
|
trackNodeID++;
|
||||||
|
|
||||||
|
// Add hit position marker
|
||||||
|
TGeoVolume *hitMarker = geom->MakeSphere("hitMarker", 0, 0, 2.0);
|
||||||
|
hitMarker->SetLineColor(kRed);
|
||||||
|
worldBox->AddNode(hitMarker, trackNodeID,
|
||||||
|
new TGeoCombiTrans(hitPos.X(), hitPos.Y(), hitPos.Z(),
|
||||||
|
new TGeoRotation("rotHit", 0, 0, 0)));
|
||||||
|
trackNodeID++;
|
||||||
|
}
|
||||||
|
|
||||||
|
// Redraw geometry with all tracks
|
||||||
|
geom->CloseGeometry();
|
||||||
|
geom->SetVisLevel(4);
|
||||||
|
worldBox->Draw("ogle");
|
||||||
|
}
|
||||||
|
|
||||||
|
if(app){
|
||||||
|
printf("Entering ROOT event loop\n");
|
||||||
|
app->Run();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
delete anasen;
|
delete anasen;
|
||||||
|
|
||||||
|
|
||||||
return 0;
|
return 0;
|
||||||
|
|
||||||
}
|
}
|
||||||
178
Armory/histcomp.C
Normal file
178
Armory/histcomp.C
Normal file
|
|
@ -0,0 +1,178 @@
|
||||||
|
void histcomp() {
|
||||||
|
gROOT->SetBatch(kTRUE);
|
||||||
|
|
||||||
|
// Open file
|
||||||
|
TFile *f = new TFile("SimAnasen1.root");
|
||||||
|
|
||||||
|
// Get trees (MAKE SURE names are correct)
|
||||||
|
TTree *tree1 = (TTree*)f->Get("tree");
|
||||||
|
TTree *tree2 = (TTree*)f->Get("tree2");
|
||||||
|
|
||||||
|
if (!tree1 || !tree2) {
|
||||||
|
printf("Error: could not find trees. Check names!\n");
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
// Create output directory (overwrite-safe)
|
||||||
|
gSystem->Exec("mkdir -p plots");
|
||||||
|
|
||||||
|
// Get list of branches
|
||||||
|
TObjArray *branches = tree1->GetListOfBranches();
|
||||||
|
int nBranches = branches->GetEntries();
|
||||||
|
//int nBranches = 1;
|
||||||
|
|
||||||
|
// Loop over branches
|
||||||
|
for (int i = 0; i < nBranches; i++) {
|
||||||
|
TBranch *br = (TBranch*)branches->At(i);
|
||||||
|
TString name = br->GetName();
|
||||||
|
|
||||||
|
//printf("Processing branch: %s\n", name.Data());
|
||||||
|
|
||||||
|
// Create histograms (auto-range using Draw first)
|
||||||
|
TString h1name = "h1_" + name;
|
||||||
|
TString h2name = "h2_" + name;
|
||||||
|
|
||||||
|
// Temporary draw to get range
|
||||||
|
double min, max;
|
||||||
|
|
||||||
|
if(name == "T"){
|
||||||
|
//Get minimum value of T[0] and use as min
|
||||||
|
min = tree2->GetMinimum("Tb");
|
||||||
|
max = tree1->GetMaximum("TB");
|
||||||
|
}else{
|
||||||
|
|
||||||
|
tree1->Draw(name, "", "goff");
|
||||||
|
|
||||||
|
min = fmin(tree1->GetMinimum(name),
|
||||||
|
tree2->GetMinimum(name));
|
||||||
|
|
||||||
|
max = fmax(tree1->GetMaximum(name),
|
||||||
|
tree2->GetMaximum(name));
|
||||||
|
}
|
||||||
|
|
||||||
|
//if (min == max) continue; // skip constant branches
|
||||||
|
|
||||||
|
// Expand range slightly
|
||||||
|
double margin = 0.1 * (max - min);
|
||||||
|
min -= margin;
|
||||||
|
max += margin;
|
||||||
|
|
||||||
|
TH1D *h1 = new TH1D(h1name, name, 100, min, max);
|
||||||
|
TH1D *h2 = new TH1D(h2name, name, 100, min, max);
|
||||||
|
|
||||||
|
// Fill histograms
|
||||||
|
if(name == "T"){
|
||||||
|
|
||||||
|
// Fill both array elements into same histogram
|
||||||
|
tree1->Draw("Tb>>+" + h1name, "", "goff");
|
||||||
|
tree1->Draw("TB>>+" + h1name, "", "goff");
|
||||||
|
|
||||||
|
tree2->Draw("Tb>>+" + h2name, "", "goff");
|
||||||
|
tree2->Draw("TB>>+" + h2name, "", "goff");
|
||||||
|
|
||||||
|
}else{
|
||||||
|
|
||||||
|
tree1->Draw(name + ">>" + h1name, "", "goff");
|
||||||
|
tree2->Draw(name + ">>" + h2name, "", "goff");
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
// Style
|
||||||
|
h1->SetLineColor(kRed);
|
||||||
|
h1->SetLineWidth(2);
|
||||||
|
|
||||||
|
h2->SetLineColor(kBlue);
|
||||||
|
h2->SetLineWidth(2);
|
||||||
|
|
||||||
|
// Normalize (optional but useful)
|
||||||
|
//if (h1->GetEntries() > 0) h1->Scale(1.0 / h1->GetEntries());
|
||||||
|
//if (h2->GetEntries() > 0) h2->Scale(1.0 / h2->GetEntries());
|
||||||
|
|
||||||
|
// Canvas
|
||||||
|
TCanvas *c = new TCanvas("c", name, 900, 600); //arguments are (name, title, width, height)
|
||||||
|
|
||||||
|
c->SetRightMargin(0.18);
|
||||||
|
c->Modified();
|
||||||
|
c->Update();
|
||||||
|
|
||||||
|
h1->SetTitle(name + ";"+name+";Counts");
|
||||||
|
h1->Draw("HIST");
|
||||||
|
h2->Draw("HIST SAME");
|
||||||
|
|
||||||
|
gPad->Update();
|
||||||
|
|
||||||
|
TPaveStats *st = (TPaveStats*)h1->FindObject("stats");
|
||||||
|
|
||||||
|
st->SetX1NDC(0.85); // New X start (left)
|
||||||
|
st->SetY1NDC(0.5); // New Y start (bottom)
|
||||||
|
st->SetX2NDC(0.98); // New X end (right)
|
||||||
|
st->SetY2NDC(0.8); // New Y end (top)
|
||||||
|
st->Draw();
|
||||||
|
gPad->Modified();
|
||||||
|
gPad->Update();
|
||||||
|
|
||||||
|
|
||||||
|
// Legend
|
||||||
|
TLegend *leg = new TLegend(0.65 + .2,0.75 + .1,0.88 + .1,0.88 + .1);
|
||||||
|
leg->AddEntry(h1, "tree1", "l");
|
||||||
|
leg->AddEntry(h2, "tree2", "l");
|
||||||
|
leg->Draw();
|
||||||
|
//to plot both as one histogram in root, can use tree2->Draw("T(0)"); for light particle and tree2->Draw("T(1)") for heavy particle
|
||||||
|
// Save plot (overwrite each run)
|
||||||
|
TString filename = "plots/" + name + ".png";
|
||||||
|
c->SaveAs(filename);
|
||||||
|
// Optional: save log plots as well
|
||||||
|
|
||||||
|
if (false) { // set to True to also save log plots
|
||||||
|
c->SetLogy(1);
|
||||||
|
h1->SetTitle(name + " (log);"+name+";Counts");
|
||||||
|
c->SaveAs("plots/" + name + "_logy.png");
|
||||||
|
|
||||||
|
c->SetLogy(0);
|
||||||
|
c->SetLogx(1);
|
||||||
|
h1->SetTitle(name + " (log);"+name+";Counts");
|
||||||
|
c->SaveAs("plots/" + name + "_logx.png");
|
||||||
|
|
||||||
|
// Clean up
|
||||||
|
delete c;
|
||||||
|
delete h1;
|
||||||
|
delete h2;
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
|
||||||
|
}
|
||||||
|
|
||||||
|
// dEb on y, SX3z on x
|
||||||
|
TH2D *h2d = new TH2D("h2d", "dEb vs SX3z;SX3z (cm);dEb (MeV)", 500, tree2->GetMinimum("sx3Z"), tree2->GetMaximum("sx3Z"), 500, tree2->GetMinimum("dEb"), tree2->GetMaximum("dEb")); //arguments are (name, title, xbins, xlow, xup, ybins, ylow, yup)
|
||||||
|
tree2->Draw("dEb:sx3Z>>h2d", "", "goff"); // arguments are "y:x>>histogram", "selection", "options"
|
||||||
|
TCanvas *c2d = new TCanvas("c2d", "dEb vs SX3z", 900, 600);
|
||||||
|
h2d->Draw("COLZ");
|
||||||
|
c2d->SaveAs("plots/dEb_vs_SX3z.png");
|
||||||
|
|
||||||
|
TH2D *h2z = new TH2D("h2z", "dEb vs z0", 500, tree2->GetMinimum("z0"), tree2->GetMaximum("z0"), 500, tree2->GetMinimum("dEb"), tree2->GetMaximum("dEb"));
|
||||||
|
tree2->Draw("dEb:z0>>h2z", "", "goff"); // arguments are "y:x>>histogram", "selection", "options"
|
||||||
|
TCanvas *c2z = new TCanvas("c2z", "dEb vs z0", 900, 600);
|
||||||
|
h2z->Draw("COLZ");
|
||||||
|
c2z->SaveAs("plots/dEb_vs_z0.png");
|
||||||
|
|
||||||
|
TH2D *h2theta = new TH2D("h2theta", "dEb vs reTheta", 500, tree2->GetMinimum("reTheta"), tree2->GetMaximum("reTheta"), 500, tree2->GetMinimum("dEb"), tree2->GetMaximum("dEb"));
|
||||||
|
tree2->Draw("dEb:reTheta>>h2theta", "", "goff"); // arguments are "y:x>>histogram", "selection", "options"
|
||||||
|
TCanvas *c2theta = new TCanvas("c2theta", "dEb vs reTheta", 900, 600);
|
||||||
|
h2theta->Draw("COLZ");
|
||||||
|
c2theta->SaveAs("plots/dEb_vs_reTheta.png");
|
||||||
|
|
||||||
|
TH2D *h2phi = new TH2D("h2phi", "dEb vs rePhi", 500, tree2->GetMinimum("rePhi"), tree2->GetMaximum("rePhi"), 500, tree2->GetMinimum("dEb"), tree2->GetMaximum("dEb"));
|
||||||
|
tree2->Draw("dEb:rePhi>>h2phi", "", "goff"); // arguments are "y:x>>histogram", "selection", "options"
|
||||||
|
TCanvas *c2phi = new TCanvas("c2phi", "dEb vs rePhi", 900, 600);
|
||||||
|
h2phi->Draw("COLZ");
|
||||||
|
c2phi->SaveAs("plots/dEb_vs_rePhi.png");
|
||||||
|
|
||||||
|
TH2D *h2dE = new TH2D("h2dE", "dEb vs Tb", 500, tree2->GetMinimum("Tb"), tree2->GetMaximum("Tb"), 500, tree2->GetMinimum("dEb"), tree2->GetMaximum("dEb"));
|
||||||
|
tree2->Draw("dEb:Tb>>h2dE", "", "goff"); // arguments are "y:x>>histogram", "selection", "options"
|
||||||
|
TCanvas *c2dE = new TCanvas("c2dE", "dEb vs Tb", 900, 600);
|
||||||
|
h2dE->Draw("COLZ");
|
||||||
|
c2dE->SaveAs("plots/dEb_vs_Tb.png");
|
||||||
|
|
||||||
|
printf("Done! Plots saved in ./plots/\n");
|
||||||
|
}
|
||||||
56
Armory/macro.h
Normal file
56
Armory/macro.h
Normal file
|
|
@ -0,0 +1,56 @@
|
||||||
|
#ifndef MACRO_H
|
||||||
|
#define MACRO_H
|
||||||
|
|
||||||
|
#define MaxNPorts 4 //for optical link
|
||||||
|
#define MaxNBoards 4 //for both optical link and usb
|
||||||
|
|
||||||
|
#define MaxNDigitizer MaxNPorts * MaxNBoards
|
||||||
|
|
||||||
|
#define MaxRegChannel 16
|
||||||
|
#define MaxNChannels 64
|
||||||
|
#define MaxRecordLength 0x3fff * 8
|
||||||
|
#define MaxSaveFileSize 1024 * 1024 * 1024 * 2
|
||||||
|
|
||||||
|
#define MaxDisplayTraceTimeLength 20000 //ns
|
||||||
|
#define ScopeUpdateMiliSec 200 // msec
|
||||||
|
#define MaxNumberOfTrace 5 // in an event
|
||||||
|
|
||||||
|
#define SETTINGSIZE 2048
|
||||||
|
|
||||||
|
#define DAQLockFile "DAQLock.dat"
|
||||||
|
#define PIDFile "pid.dat"
|
||||||
|
|
||||||
|
#include <sys/time.h> /** struct timeval, select() */
|
||||||
|
|
||||||
|
inline unsigned int getTime_us(){
|
||||||
|
unsigned int time_us;
|
||||||
|
struct timeval t1;
|
||||||
|
struct timezone tz;
|
||||||
|
gettimeofday(&t1, &tz);
|
||||||
|
time_us = (t1.tv_sec) * 1000 * 1000 + t1.tv_usec;
|
||||||
|
return time_us;
|
||||||
|
}
|
||||||
|
|
||||||
|
#include <chrono>
|
||||||
|
inline unsigned long long getTime_ns(){
|
||||||
|
std::chrono::high_resolution_clock::time_point currentTime = std::chrono::high_resolution_clock::now();
|
||||||
|
std::chrono::nanoseconds nanoseconds = std::chrono::duration_cast<std::chrono::nanoseconds>(currentTime.time_since_epoch());
|
||||||
|
return nanoseconds.count();
|
||||||
|
}
|
||||||
|
|
||||||
|
typedef unsigned short uShort;
|
||||||
|
typedef unsigned int uInt;
|
||||||
|
typedef unsigned long uLong;
|
||||||
|
typedef unsigned long long ullong;
|
||||||
|
|
||||||
|
#define DebugMode 0 //process check, when 1, print out all function call
|
||||||
|
|
||||||
|
// if DebugMode is 1, define DebugPrint() to be printf(), else, DebugPrint() define nothing
|
||||||
|
#if DebugMode
|
||||||
|
#define DebugPrint(fmt, ...) printf(fmt "::%s\n",##__VA_ARGS__, __func__);
|
||||||
|
#else
|
||||||
|
#define DebugPrint(fmt, ...)
|
||||||
|
#endif
|
||||||
|
|
||||||
|
|
||||||
|
#endif
|
||||||
3594
Armory/mass20.txt
3594
Armory/mass20.txt
File diff suppressed because it is too large
Load Diff
4
Armory/run_script.C
Normal file
4
Armory/run_script.C
Normal file
|
|
@ -0,0 +1,4 @@
|
||||||
|
.L ANASEN_model.C
|
||||||
|
.L anasenMS_root.cpp+
|
||||||
|
ANASEN_model();
|
||||||
|
Run(10);
|
||||||
61
Armory/vis_helpers.h
Normal file
61
Armory/vis_helpers.h
Normal file
|
|
@ -0,0 +1,61 @@
|
||||||
|
#ifndef VIS_HELPERS_H
|
||||||
|
#define VIS_HELPERS_H
|
||||||
|
|
||||||
|
#include <TSystem.h>
|
||||||
|
#include <TEvePointSet.h>
|
||||||
|
#include <TTree.h>
|
||||||
|
#include <vector>
|
||||||
|
#include <mutex>
|
||||||
|
|
||||||
|
static TEvePointSet* gVisPts = nullptr;
|
||||||
|
static std::mutex gVisMutex;
|
||||||
|
|
||||||
|
// Recommended: call once after opening TEve and adding a point set to gEve
|
||||||
|
inline void SetVisPointSet(TEvePointSet* pts) { gVisPts = pts; }
|
||||||
|
|
||||||
|
inline void UpdateVisPointSet(const std::vector<double>& x,
|
||||||
|
const std::vector<double>& y,
|
||||||
|
const std::vector<double>& z)
|
||||||
|
{
|
||||||
|
if(!gVisPts) return;
|
||||||
|
std::lock_guard<std::mutex> lk(gVisMutex);
|
||||||
|
gVisPts->Reset();
|
||||||
|
size_t n = std::min({x.size(), y.size(), z.size()});
|
||||||
|
for(size_t i=0; i<n; ++i) gVisPts->SetNextPoint(x[i], y[i], z[i]);
|
||||||
|
if(gEve) {
|
||||||
|
gEve->Redraw3D();
|
||||||
|
gSystem->ProcessEvents();
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
// Fill a tree with pointlists (one entry per event); must have branches defined once by caller
|
||||||
|
inline void RecordTreeXYZ(TTree* outTree,
|
||||||
|
const std::vector<double>& x,
|
||||||
|
const std::vector<double>& y,
|
||||||
|
const std::vector<double>& z)
|
||||||
|
{
|
||||||
|
if(!outTree) return;
|
||||||
|
static std::vector<double> tx, ty, tz;
|
||||||
|
tx = x;
|
||||||
|
ty = y;
|
||||||
|
tz = z;
|
||||||
|
|
||||||
|
if(outTree->GetBranch("x") == nullptr) outTree->Branch("x", &tx);
|
||||||
|
if(outTree->GetBranch("y") == nullptr) outTree->Branch("y", &ty);
|
||||||
|
if(outTree->GetBranch("z") == nullptr) outTree->Branch("z", &tz);
|
||||||
|
|
||||||
|
// Do NOT call SetBranchAddress() for the branch we are filling.
|
||||||
|
outTree->Fill();
|
||||||
|
outTree->GetCurrentFile()->Flush();
|
||||||
|
}
|
||||||
|
|
||||||
|
inline void PushEventAndRecord(const std::vector<double>& x,
|
||||||
|
const std::vector<double>& y,
|
||||||
|
const std::vector<double>& z,
|
||||||
|
TTree* outTree = nullptr)
|
||||||
|
{
|
||||||
|
if(outTree) RecordTreeXYZ(outTree, x, y, z);
|
||||||
|
UpdateVisPointSet(x,y,z);
|
||||||
|
}
|
||||||
|
|
||||||
|
#endif // VIS_HELPERS_H
|
||||||
BIN
Armory/vis_inproc
Executable file
BIN
Armory/vis_inproc
Executable file
Binary file not shown.
Some files were not shown because too many files have changed in this diff Show More
Loading…
Reference in New Issue
Block a user