54 JParser<> zap(
"Program to verify generation of arrival times of Cherenkov photons from a shower using tabulated CDF.");
58 zap[
'E'] =
make_field(E,
"muon energy [GeV]") = 1.0;
60 zap[
'c'] =
make_field(cd,
"cosine emission angle");
61 zap[
'D'] =
make_field(dir,
"(theta, phi) of PMT [rad]");
68 catch(
const exception& error) {
69 FATAL(error.what() << endl);
82 const int N = inputFile.size();
88 for (
int i = 0; i != N; ++i) {
90 NOTICE(
"loading input from file " << inputFile[i] <<
"... " << flush);
92 cdf [i].load(inputFile[i].c_str());
108 cout <<
"> " << flush;
113 for (
int i = 0; i != N; ++i) {
117 const double npe = cdf[i].getNPE (D, cd, dir.
getTheta(), dir.
getPhi()) * E;
118 const double t = cdf[i].getTime(D, cd, dir.
getTheta(), dir.
getPhi(),
x);
120 cout <<
' ' <<
FIXED(6,2) << t <<
' ' <<
FIXED(5,2) << npe;
122 catch(
const exception& error) {
123 ERROR(error.what() << endl);
143 const double t0 = 0.0;
152 for ( ;
x < -10.0;
x += 5.0) { X.push_back(t0 +
x); }
153 for ( ;
x < +20.0;
x += 1.0) { X.push_back(t0 +
x); }
154 for ( ;
x < +50.0;
x += 2.0) { X.push_back(t0 +
x); }
157 for ( ;
x < +100.0;
x += 5.0) { X.push_back(t0 +
x); }
158 for ( ;
x < +250.0;
x += 10.0) { X.push_back(t0 +
x); }
159 for ( ;
x < +500.0;
x += 25.0) { X.push_back(t0 +
x); }
160 for ( ;
x < +900.0;
x += 50.0) { X.push_back(t0 +
x); }
163 h0 =
new TH1D(
"h0", NULL, X.size() - 1, X.data());
174 for (
int i = 0; i != N; ++i) {
176 for (
int j = 1;
j <= H1->GetNbinsX(); ++
j) {
180 const double x = H1->GetBinCenter(
j);
181 const double t = cdf[i].getTime(D, cd, dir.
getTheta(), dir.
getPhi(),
x);
183 H1[i]->SetBinContent(
j, t);
185 catch(
const exception& error) {
186 ERROR(error.what() << endl);
191 if (numberOfEvents > 0) {
197 for (
int counter = 0; counter != numberOfEvents; ++counter) {
199 if (counter%1000== 0) {
205 for (
int i = 0; i != N; ++i) {
209 const double npe = cdf[i].getNPE(D, cd, dir.
getTheta(), dir.
getPhi()) * E;
211 for (
int j = gRandom->Poisson(npe);
j != 0; --
j) {
213 const double x = gRandom->Rndm();
214 const double t = cdf[i].getTime(D, cd, dir.
getTheta(), dir.
getPhi(),
x);
219 catch(
const exception& error) {
220 NOTICE(error.what() << endl);
228 const double W = 1.0 / (double) numberOfEvents;
231 timer.
print(cout, W);
#define DEBUG(A)
Message macros.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
Auxiliary class for CPU timing and usage.
void print(std::ostream &out, const JScale_t scale=milli_t) const
Print timer data.
Data structure for angles in three dimensions.
double getTheta() const
Get theta angle.
double getPhi() const
Get phi angle.
virtual const char * what() const override
Get error message.
Utility class to parse command line options.
Multi-dimensional CDF table for arrival time of Cherenkov light.
Auxiliary class to manage set of compatible ROOT objects (e.g. histograms) using unique keys.
JAbstractHistogram< double > JHistogram_t
Type definition for scan along axis.
void convertToPDF(TH1 &h1, const std::string &option="NW", const double factor=1.0)
Convert 1D histogram to PDF.
@ DIRECT_LIGHT_FROM_EMSHOWER
direct light from EM shower
int getPDFType(const std::string &file_name)
Get PDF type.
This name space includes all other name spaces (except KM3NETDAQ, KM3NET and ANTARES).
Auxiliary data structure for floating point format specification.