Project

General

Profile

Documentation of libsbsdig » History » Version 18

Eric Fuchey, 07/09/2020 11:39 AM

1 1 Eric Fuchey
h1. Documentation of libsbsdig
2
3
h2. Overview
4
5
This page is maintained by the UConn group (Eric Fuchey + Andrew Puckett) and as of February 14, 2020 is specific to the '''''master''''' branch of libsbsdig on github.
6
7
h2. Purpose
8
9
This page documents the libsbsdig code, which purpose is to transform the output data from [https://hallaweb.jlab.org/wiki/index.php/Documentation_of_g4sbs G4SBS] to digital values such as ADCs or TDCs.
10
These produce files which can be analyzed with [https://hallaweb.jlab.org/wiki/index.php/Documentation_of_SBS-offline SBS-offline].
11
12
h2. Getting the code and building the program
13
14
h3. Prerequisites
15
16
*Working [https://root.cern.ch/drupal/ ROOT] installation. '''libsbsdig is compatible with ROOT version 5 and ROOT version 6'''. '''''ROOT 6 is strongly recommended'''''
17
*Working [https://redmine.jlab.org/projects/podd/wiki analyzer] installation. '''libsbsdig is compatible with analyzer versions 1.6 and beyond'''.
18
*Working [https://hallaweb.jlab.org/wiki/index.php/Documentation_of_SBS-offline SBS-offline] installation.
19
20
h3. Downloading the repository
21
22
The code is hosted on a github repository owned by JLab. To clone via ssh (preferred method on JLab batch farm), do: 
23
24 5 Eric Fuchey
bq. git clone git@github.com:JeffersonLab/libsbsdig.git
25 1 Eric Fuchey
26
For this method to work, the ssh public key on the machine where you want to get the code must be added to your github account (see [https://help.github.com/articles/generating-ssh-keys/ Guide] to generating ssh keys and adding to your github.com account.)
27
28
Cloning the repository defaults to the "master" branch.
29
30
h3. Building and installing the library
31
32 2 Eric Fuchey
Create a "build" directory that is parallel to the "libsbsdig" source directory (this is not strictly required, but the build directory must be separate from the "SBS-offline" directory in any case). 
33
You also need to have setup an installation path e.g. /path/to/libsbsdig-install
34
*NB*: similarly to the build directory, the /path/to/libsbsdig-install directory shall '''not''' be the same as the source directory!
35
_The following instructions assume that "build" is parallel to "libsbsdig":_
36 9 Eric Fuchey
If successful, the libsbsdig library and several other files and folders will be created in the "build" and the "install" directory.
37 1 Eric Fuchey
38 2 Eric Fuchey
To build and install, the procedure needs to be completed. From scratch:
39
40
bq. mkdir build
41
cd build
42
cmake -DCMAKE_INSTALL_PREFIX=/path/to/libsbsdig-install ../libsbsdig
43
make install
44 1 Eric Fuchey
45 3 Eric Fuchey
Then, the following line should be added in the OS login configuration file to take advantage of this functionality:
46
* source /path/to/libsbsdig-install/bin/sbsdigenv.sh (or source /path/to/g4sbs_install/bin/sbsdigenv.csh on the batch farm)
47 1 Eric Fuchey
48 13 Eric Fuchey
h2. digitization library use
49 1 Eric Fuchey
50 13 Eric Fuchey
h3. how to use the digitization library
51
52 9 Eric Fuchey
A working example script of using the digitization library is available in the libsbsdig repository at
53
example/digi_gmn.C 
54
The input arguments for this scripts are explained in the script comments. 
55
It has to be executed with the Hall A analyzer:
56 10 Eric Fuchey
> analyzer
57
> > .L digi_gmn.C
58
> > digi_gmn("simdig_outfile.root", 1000, "gmn13.5_elastic_prod.txt")
59 1 Eric Fuchey
60 13 Eric Fuchey
h3. Root output documentation
61 1 Eric Fuchey
62 15 Eric Fuchey
For each detector, several structures are stored under the form of an ensemble of vectors of integers and doubles.
63
There are three types of structures:
64
- the "trackmchits" storing the information of the Monte Carlo track intercepting the detector; 
65
- the "simhits" storing the true energy deposits and corresponding number of photoelectrons for each g4sbs hit processed by libsbsdig;
66
- the "hits", storing the adc and tdc information;
67
68 17 Eric Fuchey
h4. "trackmchit" structure
69 16 Eric Fuchey
70 15 Eric Fuchey
nhits (int): number of entries for this structure and this detector
71
source (std::vector<short>): type of file where the MC track comes from (0 if signal, >0 if background)
72
trid (std::vector<short>): track ID in G4SBS (mostly useful to distinguish primary tracks)
73
pid  (std::vector<int>): track PDG PID
74
xhit (std::vector<double>) estimated point of intercept of the track at the detector surface, in the dispersive direction (transport coordinates)
75
yhit (std::vector<double>) estimated point of intercept of the track at the detector surface, in the non-dispersive direction (transport coordinate)
76
thit (std::vector<double>) estimated time of intercept of the track at the detector surface
77
e (std::vector<double>) track total energy
78
weight (std::vector<double>) weight of the event from which the track is issued (not implemented yet)
79
80 18 Eric Fuchey
h4. "simhit" structure
81
82
nhits (int)
83
src (std::vector<short>): type of file where the sim hit comes from (0 if signal, >0 if background)
84
trid (std::vector<short>): ID of track responsible of hit in G4SBS (n. i. y.)
85
pid (std::vector<int>): PDG PID of track responsible of hit in G4SBS (n. i. y.)
86
chan (std::vector<short>): channel number in which the hit is recorded
87
edep (std::vector<double>): energy deposit recorded in g4sbs (in GeV)
88
npe (std::vector<int>): recorded or estimated number of photoelectrons detected
89
time (std::vector<double>): time of hit as recorded by g4sbs or estimated by libsbsdig (if photons are estimated)
90
t_lead(std::vector<double>): estimated time when the pulse rises over threshold (for detectors with TDCs) 
91
t_trail(std::vector<double>): estimated time when the pulse falls under threshold (for detectors with TDCs) 
92
93
Note: 
94
for calorimeters without TDCs, t_lead and t_trail are not applicable and will not be stored;
95
for cherenkov detectors, edep is not applicable and will not be stored;
96
97
h4. "hit" structure