37{
40
43 string detectorFile;
44
46
47 bool useBoost;
48
49 bool useWeights;
51
53
54 try {
55
56 JParser<> zap(
"Auxiliary program to test event shape variables.");
57
67
68 zap(argc, argv);
69 }
70 catch(const exception &error) {
71 FATAL(error.what() << endl);
72 }
73
74 if (useWeights && numberOfEvents !=
JLimit::max()) {
75 FATAL(
"Cannot apply weighting to limited number of events.");
76 }
77
78
79
80
82
83 if (!detectorFile.empty()) {
84 try {
86 }
89 }
90 }
91
93
96 }
97
98
99
100
102
103 if (scanners.setFlux(fluxMap) == 0) {
104 WARNING(
"No flux function set." << endl);
105 }
106
107
108
109
111
112 TH1D hT("hT", "thrust", 50, 0.5, 1.0);
113
114 TH1D hA("hA", "aplanarity", 50, 0.0, 0.5);
115 TH1D hS("hS", "sphericity", 100, 0.0, 1.0);
116 TH1D hc("hc", "circularity", 100, 0.0, 1.0);
117 TH1D hp("hp", "planar flow", 100, 0.0, 1.0);
118
119 TH1D hC("hC", "C-variable", 100, 0.0, 1.0);
120 TH1D hD("hD", "D-variable", 100, 0.0, 1.0);
121
122 TH1D hH10("hH10", "H10", 100, 0.0, 1.0);
123 TH1D hH20("hH20", "H20", 100, 0.0, 1.0);
124 TH1D hH30("hH30", "H30", 100, 0.0, 1.0);
125 TH1D hH40("hH40", "H40", 100, 0.0, 1.0);
126
127 TH1D hq("hq", "Logarithmic eigenvalue ratio hit inertia tensor", 200, -20.0, 0.0);
128
129
130
131
133
135
136 scanner->setLimit(numberOfEvents);
137
139
142 }
143
144 while (scanner->hasNext()) {
145
146 Evt*
event = scanner->next();
147
148 const double weight = (useWeights ? scanner->getWeight(*event) : 1.0);
149
151 RIGHT (15) << scanner->getCounter() <<
153
155
157
160
162
164
166
167 const double aplanarity = S2.getAplanarity();
168 const double sphericity = S2.getSphericity();
169 const double circularity = S2.getCircularity();
170 const double planarflow = S2.getPlanarFlow();
171
172 const double C =
S1.getC();
173 const double D =
S1.getD();
174
175 const double q = Q.getEigenvalueRatio();
176
177 hT.Fill(thrust, weight);
178
179 hA.Fill(aplanarity, weight);
180 hS.Fill(sphericity, weight);
181 hc.Fill(circularity, weight);
182 hp.Fill(planarflow, weight);
183
184 hC.Fill(C, weight);
185 hD.Fill(D, weight);
186
187 hH10.Fill(
H[1]/
H[0], weight);
188 hH20.Fill(
H[2]/
H[0], weight);
189 hH30.Fill(
H[3]/
H[0], weight);
190 hH40.Fill(
H[4]/
H[0], weight);
191
192 hq.Fill(log10(q), weight);
193 }
194 }
195
197
198 out.Write();
199 out.Close();
200
201 return 0;
202}
#define DEBUG(A)
Message macros.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
std::vector< T >::difference_type distance(typename std::vector< T >::const_iterator first, typename PhysicsEvent::const_iterator< T > second)
Specialisation of STL distance.
Template specialisation for a map between event categories and flux factors.
const JHead & getHeader() const
Get header.
void set(const JVector2D &p0, const JVector2D &p1)
Set circle.
Utility class to parse command line options.
void boostToCOM(Evt &event)
Boost event to the Center of Mass (COM) frame.
JCylinder3D getCylinder(const JHead &header)
Get cylinder corresponding to the positions of generated tracks (i.e.
JVertex3D getVertex(const Trk &track)
Get vertex.
void load(const std::string &file_name, JDetector &detector)
Load detector from input file.
static const double H
Planck constant [eV s].
This name space includes all other name spaces (except KM3NETDAQ, KM3NET and ANTARES).
double getThrust(const std::vector< Trk >::const_iterator __begin, const std::vector< Trk >::const_iterator __end)
Compute thrust for a given range of tracks.
The Evt class respresent a Monte Carlo (MC) event as well as an offline event.
Empty structure for specification of parser element that is initialised (i.e. does not require input)...
Class for computing Fox-Wolfram moments.
Class for hit inertia tensor calculations.
Class for sphericity tensor calculations.
Auxiliary class for organising Monte Carlo file scanners associated with event weighters.
std::vector< filescanner_type >::iterator iterator
Auxiliary class for defining the range of iterations of objects.
static counter_type max()
Get maximum counter value.
Auxiliary base class for list of file names.
Auxiliary data structure for alignment of data.
Auxiliary data structure for floating point format specification.