45{
48
50 JLimit_t& numberOfEvents = inputFile.getLimit();
54
55 try {
56
57 JParser<> zap(
"Example program to verify generator data.");
58
64
65 zap(argc, argv);
66 }
67 catch(const exception &error) {
68 FATAL(error.what() << endl);
69 }
70
71
73
75
77
79
80 TH1D h0 ("h0", "Energy conservation",
81 2000, -100.0, 100.0);
82
83 TH1D h1 ("h1", "Momentum conservation",
84 1000, 0.0, 100.0);
85
86 TH1D job ("job", "Particle types",
87 10001, -5000.5, +5000.5);
88 TH2D hv ("hv", "Logarithmic visible energy as function of logarithmic initial state energy",
91 TH1D ha ("ha", "Angle between neutrino-direction and visible-energy-weighted direction",
92 200, -1.0, 1.0);
93
94 TH1D hn ("hn", "Number of muons per event",
95 2001, -0.5, +2000.5);
96 TH1D he ("he", "Muon energies",
97 1000, 0.0, 10.0);
98 TH2D hp ("hp", "Muon positions",
99 100, 0.0, 2.0e5,
100 200, 0.0, 1.5e3);
101
103
105
106 const Evt*
event = inputFile.
next();
107
108 for (vector<Trk>::const_iterator track = event->mc_trks.begin(); track != event->mc_trks.end(); ++track) {
109 job.Fill((double) track->type);
110 }
111
113
114 const Trk& neutrino =
event->mc_trks[0];
115
118
119 const double E0 =
getE0(*event);
120 const double E1 =
getE1(*event);
121
124
125 if (!range((E0 - E1)/E0) || !range((P0 - P1).len()/P0.
len()) ||
debug >=
debug_t) {
126
128 NOTICE(
"event: " <<
RIGHT(8) << event->mc_id <<
RIGHT(67) <<
"energy [GeV] momentum (x, y, z) [GeV] distance [m]" << endl);
129
130 for (size_t i = 0; i != event->mc_trks.size(); ++i) {
131
132 const Trk& track =
event->mc_trks[i];
133
137
138 NOTICE(
LEFT(32) << showpos << name <<
' ' <<
FIXED(7,3) << track.
E <<
" " <<
FIXED(7,3) << track.
E * track.
dir <<
" " <<
FIXED(7,3) << (track.
pos - neutrino.
pos).len() << endl);
139 }
140 NOTICE(
LEFT(32) <<
"balance:" <<
' ' <<
FIXED(7,3) << E0 - E1 <<
" " <<
FIXED(7,3) << P0 - P1 << endl);
141 }
142
143 h0.Fill( E0 - E1 );
144 h1.Fill((P0 - P1).len());
145
146 hv.Fill(log10(E0), log10(Evis));
148 }
149
150
152
153 for (vector<Trk>::const_iterator track = event->mc_trks.begin(); track != event->mc_trks.end(); ++track) {
154
157 he.Fill(log10(track->
E));
159 }
160 }
161
162 hn.Fill((Double_t)
n);
163 }
164
166
167 out.Write();
168 out.Close();
169
170 return 0;
171}
#define DEBUG(A)
Message macros.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
#define MAKE_STRING(A)
Make string.
Utility class to parse command line options.
General purpose class for object reading from a list of file names.
virtual bool hasNext() override
Check availability of next element.
counter_type getCounter() const
Get counter.
virtual const pointer_type & next() override
Get next element.
JDirection3D getDirection(const Vec &dir)
Get direction.
Vec getP0(const Evt &evt)
Get momentum vector of the initial state of a neutrino interaction.
JCylinder3D getCylinder(const JHead &header)
Get cylinder corresponding to the positions of generated tracks (i.e.
bool has_neutrino(const Evt &evt)
Test whether given event has an incoming neutrino.
bool is_neutrino(const Trk &track)
Test whether given track is a neutrino.
double getE1(const Evt &evt)
Get final state energy of a neutrino interaction.
double getE0(const Evt &evt)
Get initial state energy of a neutrino interaction.
bool is_muon(const Trk &track)
Test whether given track is a (anti-)muon.
Vec getP1(const Evt &evt)
Get momentum vector of the final state of a neutrino interaction.
double getDot(const JNeutrinoDirection &first, const JNeutrinoDirection &second)
Dot product.
This name space includes all other name spaces (except KM3NETDAQ, KM3NET and ANTARES).
double getVisibleEnergy(const Trk &, const JCylinder3D &)
Get the visible energy of a track.
Vec getVisibleEnergyVector(const Trk &track, const JCylinder3D &can=getMaximumContainmentVolume())
Get the visible energy vector of a track.
Head getHeader(const JMultipleFileScanner_t &file_list)
Get Monte Carlo header.
The Evt class respresent a Monte Carlo (MC) event as well as an offline event.
Auxiliary data structure for sequence of same character.
Auxiliary data structure for floating point format specification.
static const JPDB & getInstance()
Get particle data book.
bool hasPDG(const int pdg) const
Check if PDB has particle corresponding to given PDG code.
const JParticle & getPDG(const int pdg) const
Get particle corresponding to given PDG code.
std::string name
name of particle
The cylinder used for photon tracking.
JRange_t E
Energy range [GeV].
Auxiliary class for defining the range of iterations of objects.
static counter_type max()
Get maximum counter value.
Auxiliary data structure for alignment of data.
The Trk class represents a Monte Carlo (MC) particle as well as a reconstructed track/shower.
int type
MC: particle type in PDG encoding.
double E
Energy [GeV] (either MC truth or reconstructed)
Vec pos
postion [m] of the track at time t
The Vec class is a straightforward 3-d vector, which also works in pyroot.
double len() const
Get length.