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[807]1$Id: README,v 1.6 2007/11/13 12:13:32 maire Exp $
2-------------------------------------------------------------------
3
4 =========================================================
5 Geant4 - an Object-Oriented Toolkit for Simulation in HEP
6 =========================================================
7
8 TestEm14
9 --------
10
11 How to compute cross sections from the direct evaluation of the mean
12 free path ( see below, item Physics).
13 How to plot final state of a process.
14
15 1- GEOMETRY DEFINITION
16
17 It is a single box representing a 'semi infinite' homogeneous medium.
18 Two parameters define the geometry :
19 - the material of the box,
20 - the (full) size of the box.
21
22 The default geometry (100 m of water) is constructed in
23 DetectorConstruction, but the above parameters can be changed
24 interactively via the commands defined in DetectorMessenger.
25
26 2- PHYSICS LIST
27
28 The physics list contains the standard electromagnetic processes.
29 In order not to introduce 'artificial' constraints on the step size, the
30 multiple scattering is not instanciated, and there is no limitation from
31 the maximum energy lost per step.
32
33 3- AN EVENT : THE PRIMARY GENERATOR
34
35 The primary kinematic consists of a single particle starting at the edge
36 of the box. The type of the particle and its energy are set in
37 PrimaryGeneratorAction (1 MeV gamma), and can be changed via the G4
38 build-in commands of ParticleGun class (see the macros provided with
39 this example).
40
41 4- PHYSICS
42
43 An event is killed at the first interaction of the incident paticle.
44 The absorption length, also called mean free path, is computed as
45 the mean value of the track length of the incident particle.
46 This is why the medium must be 'infinite' : to be sure that interaction
47 occurs at any events.
48
49 The result is compared with the 'input' data, i.e. with the cross
50 sections stored in the PhysicsTables and used by Geant4.
51
52 The energy spectrum and the angular distribution of the scattered
53 particle (if any) and of the created secondaries are plotted (see
54 SteppingAction).
55
56 A set of macros defining various run conditions are provided.
57 The processes are actived/inactived in order to survey the processes
58 individually.
59
60 5- HISTOGRAMS
61
62 The test contains 6 built-in 1D histograms, which are managed by the
63 HistoManager class and its Messenger. The histos can be individually
64 activated with the command :
65 /testem/histo/setHisto id nbBins valMin valMax unit
66 where unit is the desired unit for the histo (MeV or keV, etc..)
67 (see the macros xxxx.mac).
68
69 1 "scattered primary particle: energy spectrum"
70 2 "scattered primary particle: costheta distribution"
71 3 "charged secondaries: energy spectrum"
72 4 "charged secondaries: costheta distribution"
73 5 "neutral secondaries: energy spectrum"
74 6 "neutral secondaries: costheta distribution"
75
76 See below the note on histogram tools.
77
78 One can control the name and the type of the histograms file with
79 the commands:
80 /testem/histo/setFileName name (default testem14)
81 /testem/histo/setFileType name (default hbook)
82
83 It is also possible to print selected histograms on an ascii file:
84 /testem/histo/printHisto id
85 All selected histos will be written on a file name.ascii
86 (default testem14)
87
88 Note that, by default, histograms are disabled. To activate them,
89 uncomment the flag G4ANALYSIS_USE in GNUmakefile.
90
91 6- VISUALIZATION
92
93 The Visualization Manager is set in the main().
94 The initialisation of the drawing is done via the commands
95 /vis/... in the macro vis.mac. To get visualisation:
96 > /control/execute vis.mac
97
98 The detector has a default view which is a longitudinal view of the
99 box.
100
101 The tracks are drawn at the end of event, and erased at the end of run.
102
103 7- HOW TO START ?
104
105 compile and link to generate an executable
106 % cd geant4/examples/extended/electromagnetic/TestEm14
107 % gmake
108
109 execute TestEm14 in 'batch' mode from macro files :
110 % TestEm14 compt.mac
111
112 execute TestEm14 in 'interactive mode' with visualization :
113 % TestEm14
114 Idle> control/execute vis.mac
115 ....
116 Idle> type your commands
117 ....
118 Idle> exit
119
120
121 8- USING HISTOGRAMS
122
123 By default the histograms are not activated. To activate histograms
124 the environment variable G4ANALYSIS_USE should be defined. For instance
125 uncomment the flag G4ANALYSIS_USE in GNUmakefile.
126
127 Before compilation of the example it is optimal to clean up old files:
128 gmake histclean
129 gmake
130
131 To use histograms, at least one of the AIDA implementations should be
132 available (see http://aida.freehep.org).
133
134 8a - PI
135
136 A package including AIDA and extended interfaces also using Python is PI,
137 available from: http://cern.ch/pi
138
139 Once installed PI or PI-Lite in a specified local area $MYPY, it is required
140 to add the installation path to $PATH, i.e. for example, for release 1.2.1 of
141 PI:
142 setenv PATH ${PATH}:$MYPI/1.2.1/app/releases/PI/PI_1_2_1/rh73_gcc32/bin
143
144 CERN users can use the PATH to the LCG area on AFS.
145 Before running the example the command should be issued:
146 eval `aida-config --runtime csh`
147
148 8b - OpenScientist
149
150 OpenScientist is available at http://OpenScientist.lal.in2p3.fr.
151
152 You have to "setup" the OpenScientist AIDA implementation before compiling
153 (then with G4ANALYSIS_USE set) and running your Geant4 application.
154
155 On UNIX you setup, with a csh flavoured shell :
156 csh> source <<OpenScientist install path>/aida-setup.csh
157 or with a sh flavoured shell :
158 sh> . <<OpenScientist install path>/aida-setup.sh
159 On Windows :
160 DOS> call <<OpenScientist install path>/aida-setup.bat
161
162 You can use various file formats for writing (AIDA-XML, hbook, root).
163 These formats are readable by the Lab onx interactive program
164 or the OpenPAW application. See the web pages.
165
166
167 With OpenPAW, on a run.hbook file, one can view the histograms
168 with something like :
169 OS> opaw
170 opaw> h/file 1 run.hbook ( or opaw> h/file 1 run.aida or run.root)
171 opaw> zone 2 2
172 opaw> h/plot 1
173 opaw> h/plot 2
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