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revision 3.5 by pamela, Tue Apr 6 10:33:46 2004 UTC revision 3.13 by pamela, Mon Jun 5 13:56:17 2006 UTC
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1  #  #
2  # $Id: v_100.txt,v 3.4 2003/12/17 11:32:50 pamela Exp $  # $Id: v_100.txt,v 3.12 2006/05/18 10:52:32 pam-ba Exp $
3  #  #
4  # $Log: v_100.txt,v $  # $Log: v_100.txt,v $
5    # Revision 3.12  2006/05/18 10:52:32  pam-ba
6    # TOF geometry completed and a new material, the polystyrene (density 35 g/l), added
7    #
8    # Revision 3.11  2006/05/11 23:53:15  cafagna
9    # More bugs fixed in the CALO ntple structure filling
10    #
11    # Revision 3.10  2006/04/10 11:07:43  cafagna
12    # GEN data card updated, ZDGEN added
13    #
14    # Revision 3.9  2005/12/14 03:34:40  cafagna
15    # An update of the history and inform readme files.
16    #
17    # Revision 3.8  2005/12/14 03:16:08  cafagna
18    # Neutron detector added. Geometry and GPCALOR package
19    #
20    # Revision 3.7  2005/10/18 08:24:35  cafagna
21    # History updated
22    #
23    # Revision 3.6  2005/07/25 11:53:21  cafagna
24    # Several updates. See history for details
25    #
26    # Revision 3.5  2004/04/06 10:33:46  pamela
27    # NON-REPRODUCIBILITY problem of a GPAMELA RUN fixed; bug found and fixed filling in the hit structure of the calorimeter
28    #
29  # Revision 3.4  2003/12/17 11:32:50  pamela  # Revision 3.4  2003/12/17 11:32:50  pamela
30  # CALO SIMULATION COMPLETED: geometry and special tracking parameters updated and simulation checked by a comparison with the Trieste's standalone Monte Carlo simulation  # CALO SIMULATION COMPLETED: geometry and special tracking parameters updated and simulation checked by a comparison with the Trieste's standalone Monte Carlo simulation
31  #  #
# Line 28  Line 52 
52  #CMZ :  1.00/01 28/11/95  18.51.23  by  Francesco Cafagna  #CMZ :  1.00/01 28/11/95  18.51.23  by  Francesco Cafagna
53  #-- Author :    Francesco Cafagna   28/11/95  #-- Author :    Francesco Cafagna   28/11/95
54    
55    May 2006, Bari & Tor Vergata
56    
57    GIGANTIC RESONANCE FOR NEUTRON DETECTOR ADDED
58    
59       Routines to simulate the gigantic resonance of gammas in Tungsten
60       have been added.  The GPGIG routine is called in GUSTEP if a gamma
61       enter the calorimeter absorber.  This is the steering routine to
62       simulate the production of neutrons from gigantic resonance.  It
63       does checks on STEP lenght. If the range is smaller than the other
64       selected for that step, it does generate the neutron and stops the
65       gamma. Please note that the neutron has now a new particle
66       number. This is to tag the gigantic resonance neutrons.
67    
68    
69    May 2006, Bari & Florence
70    
71    CAL HIT STRUCTURE BUGS FIXED
72    
73       The maximum number of hit is now different for the two hit
74       structures: CALST and CALI. Vectors inizialization and HBOOK
75       ntple booking have been updated. The GPDCAL routine has been fixed
76       so to handle the case in wich hits stored are more than the maximum
77       number of hit.
78       In this case in the ntple up to the maximum number of hits will be stored.
79    
80    April 2006, Bari
81    
82    TOF GEOMETRY AND POSITIONS UPDATED AND NEW MIXTURES ADDED
83    
84       The TOF geometry has been modified. The following boxes have been
85       added: POL1, POL2 and POLY made of polystyrene, S11M, S12M, S21M,
86       S22M, S31M and S32M made of mylar, S1A, S2A and S3 made of air and
87       S1 and S2 made of aluminum. Each scintillator paddle has been put
88       in his mylar box and the other materials: air, polystyrene, and
89       aluminum have been added at their nominal positions.  According to
90       Naples people the araldite glue has been simulated has an air
91       gap. For this work two new materials: the Mylar (MYLAR) and the
92       polystyrene (POLYSTYRENE) with a density of 35 g/l have been
93       defined as a mixture.  The positions of the three bottom
94       scintillator planes that contain respectively the S12X, S22Y and
95       S32X paddles have been regulated according on their official
96       positions in PAMELA.
97    
98    Mar 2006, Bari
99    
100    GEN DATA CARD UPDATED
101    
102       To enable generation on a surface perpendicular to the XY plane,
103       GEN gata card has been updated addingh a new parameter: ZDGEN. This is
104       the dimension, along Z axis , of the generation surface. The Z
105       position will be randomply chosen according to: Z= ZDGEN*RNDM_NUMBER +
106       ZGEN, i.e. Z= GEN(6)*RNDM_NOMBER + GEN(3).
107    
108    Nov 2005, Bari
109    
110    GUHADR AND GUPHAD UPDATED
111    
112       To use GCALOR package the hadronic routines have been updated. The
113       inizialization routine call CALSIG, while the other calls GCALOR.
114    
115    NEW GPKEY ADDED: GPCALOR
116    
117       This logical has been added to enable the GCALOR package. This flag
118       is set to true in GPDAT if the data card: HPAK, is set to
119       'GCAL'. The gpkey.inc has been update accordingly.
120    
121      
122    NEUTRON DETECTOR ADDED. NEW DIR: GPND
123    
124       The neutron detector has been added. At the moment it is just the
125       geometry. The directory structure of the repository has been
126       updated as well. Dimensions has been taken from picture and
127       literature. A full upgrade to the drawing is needed.
128    
129    GCALOR PACKAGE ADDED. NEW DIRs: GPCALOR, GPCALORDES
130    
131       GCALOR package contins the CALOR simulation code and an interface
132       to use it in GEANT. The important feature for us is the usage of
133       the MICAP code. This is facused on the low energy neutron
134       simulation. for details see:
135       http://www.staff.uni-mainz.de/zeitnitz/Gcalor/gcalor.html
136       This package should be distributed with the GEANT library but is
137       not up to date. I did download the latest release and stored into
138       gpcalor directory of the gpamela tree.
139       Then I did clean up the code substituting the explicit inclusion of
140       the commons with a #include cpp directive. In parallel I did
141       extract the commons to include files having the same common name. I
142       did store the include files into a newly created directory:
143       gpcalordes.
144       The Makefile has been updated accordingly.
145       Please note that to avoid conflict with CRENLIB distribution the gcalor source file has been named gpcalor.F
146       NOTE: There are still problem due to different common sizes. In
147       particular the common MICFIL is maller in the geant library
148       libgeant.a . There the subroutines: gmorin, gmxsec, gmplxs, are
149       present and linked using a wrong version of the common. This still needs to be debuged.
150       NOTE2: The auxiliary files with the cross sections: chetc.dat.gz
151       and xsneut.dat.gz, have been added to the aux directory and moved
152       to the working directory, i.e. GPAMELA_BIN. The GCALOR routine will
153       look for CERN_ROOT environment variable. If found files are
154       searched there at first, then in the working directory. A fool
155       proof policy has to be implemented to avoid problem with
156       synchronization fo these files.
157      
158    
159    The GCALOR package
160    
161    June 2005, Bari
162    
163    TOF SCINTILLATOR PADDLES UPDATED
164    
165       The dimensions and the number of the scintillator paddles for each
166       TOF planes have been updated.
167    
168    May 2005, Bari
169    
170    Some updates on the latest modification done in the past year.
171    
172    NEW DATA CARD ADDED: HFSF
173    
174       To define a policy for the random number initial seeds
175       definition. Using this card is possible to override GEANT seeds
176       defined via NRDM card. The policy is selected according to the
177       values:
178    
179       - 1: The seeds are initialized to the initial values found in a user
180            defined file or the default file: INPUTSEED.DAT
181      
182       - 2: The seeds are initialized to the final values found in a user defined
183            file or the default file: INPUTSEED.DAT
184    
185       The case 1 must be used in case the user needs to reproduce the
186       random chain of a previous run. In this case the user can save the
187       initial seeds, used in the run he would like to reproduce, in a
188       binary file and pass the filename to the program using the *FLSF
189       data card. In case the user file is not specified the default
190       INPUTSEED.DAT will be used.
191      
192       The case 2 must be used in case the user needs to chain several
193       GPAMELA run and likes to be sure he is starting the random
194       generator using the right sequence. In this case the user must
195       specify an input binary file using the *FLSF data card, otherwise
196       the INPUTSEED.DAT file will be used.
197    
198    NEW DATA CARD ADDED: *FSFI
199    
200       Using this card the user can specify the logical unit and name of
201       the file storing the initial seeds to be used to initialize the
202       random number generator. This file must be a FORTRAN binary one
203       storing four integer numbers. The first two are the number to be
204       used in the case: HFSF=1, the other two will be used in the case:
205       HFSF=2. This file can be one created by GPAMELA or by the user
206       filled with his own seeds. For this purpose an utility program:
207       writeseeds.f, has been added in the aux directory.  In case the
208       *FSFI card is not specified the default values: 24 and INPUTSEEDS.DAT, will
209       be used as LUN and file name respectively.
210      
211    NEW DATA CARD ADDED: *LSFI
212    
213       Using this card the user can specify the logical unit and name of
214       the file storing the first and last seeds used in the GPAMELA
215       run. This file is a FORTRAN binary one. This file can be used as
216       input one specifying it in the *FSFI data card of the next GPAMELA
217       run.  In case the *LSFI card is not specified the default values: 26
218       and HBOOKFILENAME.DAT (as sepified in *HFI), will be used as LUN
219       and file name respectively.
220      
221    NEW UTILITY PROGRAMS ADDED: writeseeds.f, readseeds.f
222    
223       These new programs have been added in the aux directory. Using these a
224       user defined seed file can be created and re-read.
225    
226    NEW VOLUMES ADDED: MSHE, BSPH; PRESSURIZED CONTAINER ADDED
227    
228       Alexey Bakaldin, in MEPHI, did add the PAMELA pressurized container to
229       the simulation. He did defined new volumes filled with aluminum and
230       placed inside the mother volume. Positions have been fine tuned by
231       Marialuigia Ambriola and compared to the CAD drawings.
232       Two new volumes have been added to simulate the container:
233       - MSHE, a tube simulating the middle part of the container
234       - BSPH, the spherical bottom part of the container
235    
236       To better simulate the upper part the SHEL volume has been modified
237       into a cone. Dimentions of the top cover: TSPH, have been modified
238       accordingly.
239    
240    DETECTOR POSITIONS REVIEWED
241    
242       All detector Z positions have been reviewd to fit into the
243       simulated pressurized container.
244    
245    TRD GEOMETRY AND CALIBRATION REVIEWD
246    
247       The TRD geometry has been deeply reviewed. Using the CAD drawings
248       the carbon fiber frames have been simulated and radiator dimentions
249       corrected. For this reason the calibration done on the beam tests
250       has been revied and new sets of calibration constants calculated
251       comparing the beam test data with the GPAMELA results. The new
252       constants are about 3% larger than the previous ones.
253      
254    TRACKER GEOMETRY REVIEWED. NEW VOLUME DEFINED: THBP, TPAS, TPAI
255      
256       Thanks to Lorenzo Bonechi for the drawings and explanations. Now the
257       hybrd cards have been put into the simulation and the geometry updated
258       considering the dead zones in the silicon detectors. The hybrid zone
259       has been simulated as well. At the moment the hybrid is simulated as
260       a G10 plates. The full height of the tracker magnet has been
261       reviewed as well.
262    
263       The tracker ladder is now simulated inside a nitrogen box: TPAS,
264       placed inside an aluminum frame: TRPB. Each silicon ladder has been
265       simulated using two silicon blocks: TRSL, into each of this block a
266       smaller silicon detector: TPAI, has been placed inside the larger
267       silicon block TRSL. In this way the subdivided silicon ladder can
268       be upgraded with an indipendend roto-translation for each sensor.
269      
270       The TRPB aluminum frame has been enlarged to fit the external
271       magnet canister frame.
272      
273       The last plane has been flipped with a 180 degree rotation around
274       the X axis.
275      
276    TRACKER HIT STRUCTURE REVIEWED
277    
278       Taking into account the new version of the tracker geometry, the hit
279       structure for this detector has been revied.
280    
281    CALORIMETER GEOMETRY REVIEWED
282    
283       Marco Albi reviewed the calorimeter dimentions and positioning.
284    
285    
286  29 March 2004, Bari  29 March 2004, Bari
287    
288  NON-REPRODUCIBILITY PROBLEM OF A GPAMELA RUN FIXED.  NON-REPRODUCIBILITY PROBLEM OF A GPAMELA RUN FIXED.
289  The non-reproducibility of a GPAMELA run was due to the random number     The non-reproducibility of a GPAMELA run was due to the random number
290  initialization in the GARFIELD code. In GARFIELD by default, the initial     initialization in the GARFIELD code. In GARFIELD by default, the initial
291  seeds of the random number generators are always the same while the random     seeds of the random number generators are always the same while the random
292  number generators are called a given number of times (determined by the     number generators are called a given number of times (determined by the
293  hour of the day) during the initialization phase (see init.f subroutine in     hour of the day) during the initialization phase (see init.f subroutine in
294  the GARFIELD code for details). Follows that different runs produce     the GARFIELD code for details). Follows that different runs produce
295  different results without changing the initial seeds. To have identical     different results without changing the initial seeds. To have identical
296  results in different runs, the GARFIELD program has to start typing the     results in different runs, the GARFIELD program has to start typing the
297  noRNDM_initialisation switch. To avoid of specifying this switch by the user,     noRNDM_initialisation switch. To avoid of specifying this switch
298  the GARFIELD package has been upgraded with a patch. In this way the problem     by the user,
299  is partially solved because, now, the initial seeds of the random generators     the GARFIELD package has been upgraded with a patch. In this way the problem
300  in GARFIELD will be always the same even if the RNDM GEANT data card is     is partially solved because, now, the initial seeds of the random generators
301  activated by the user for changing the initial seeds in the GPAMELA program.     in GARFIELD will be always the same even if the RNDM GEANT data card is
302  Work is in progress for a more general correction of this problem.     activated by the user for changing the initial seeds in the GPAMELA program.
303  Please, use the updated GARFIELD code released with the CVS version v4r1     Work is in progress for a more general correction of this problem.
304  to fix this problem.       Please, use the updated GARFIELD code released with the CVS version v4r1
305       to fix this problem.  
306    
307    
308  RNDM ROUTINE REPLACED BY THE GRNDM ROUTINE IN GPXTR AND NPOISS.  RNDM ROUTINE REPLACED BY THE GRNDM ROUTINE IN GPXTR AND NPOISS.
309  The obsolete RNDM random number generator has been replaced by the GEANT     The obsolete RNDM random number generator has been replaced by the GEANT
310  GRNDN routine in the gpxtr.F subroutine and in the npoiss.F function.     GRNDN routine in the gpxtr.F subroutine and in the npoiss.F function.
311    
312  BUG FOUND AND FIXED: the set and detector calorimeter addresses (ISCAL  BUG FOUND AND FIXED: the set and detector calorimeter addresses (ISCAL
313  and IDCASI variables) used in GUTREV were respectively set to a fixed     and IDCASI variables) used in GUTREV were respectively set to a fixed
314  values of 12 and 1. The correct values of these variables are stored in     values of 12 and 1. The correct values of these variables are stored in
315  the GPSED common when the set and the detector ZEBRA banks are filled     the GPSED common when the set and the detector ZEBRA banks are filled
316  during a run. In general the values of the set and detector addresses     during a run. In general the values of the set and detector addresses
317  depend on the number of active detectors in a given run. ISCAL=12 and     depend on the number of active detectors in a given run. ISCAL=12 and
318  IDCASI=1 are only right when all the detectors of GPAMELA are active.     IDCASI=1 are only right when all the detectors of GPAMELA are active.
319    
320  9 December 2003, Bari  9 December 2003, Bari
321    
322  CALORIMETER SIMULATION completed! The update of the geometry and of the     CALORIMETER SIMULATION completed! The update of the geometry and of the
323  special tracking parameters and the tuning of the calorimeter have been     special tracking parameters and the tuning of the calorimeter have been
324  successfully done. A great quantity of simulated data have been produced     successfully done. A great quantity of simulated data have been produced
325  in the calorimeter for different particles (muons, electrons and pions)     in the calorimeter for different particles (muons, electrons and pions)
326  and momenta (5 and 40 GeV/c) and the output data have been analyzed. The     and momenta (5 and 40 GeV/c) and the output data have been analyzed. The
327  distributions of the total energy deposited in the calorimeter and the     distributions of the total energy deposited in the calorimeter and the
328  total number of strips hit have been compared with the respective     total number of strips hit have been compared with the respective
329  distributions produced by the Trieste's tuned standalone Monte Carlo     distributions produced by the Trieste's tuned standalone Monte Carlo
330  simulation program of the PAMELA calorimeter. The accord between the     simulation program of the PAMELA calorimeter. The accord between the
331  two simulations is excellent. Many thanks to Mirko for his collaboration.     two simulations is excellent. Many thanks to Mirko for his collaboration.
332    
333  Working in progress on TRD. The GARFIELD interface to the HEED program is not     Working in progress on TRD. The GARFIELD interface to the HEED program is not
334  optimized to track particle with a charge greater than one and photons. The     optimized to track particle with a charge greater than one and photons. The
335  program print a warning message to advise the user when it is the case.     program print a warning message to advise the user when it is the case.
336    
337  18 April 2003, Bari  18 April 2003, Bari
338    
339  The buffer size of each column of the GPAMELA Ntuple has been increased to     The buffer size of each column of the GPAMELA Ntuple has been increased to
340  4096 and set equal to the record length, defined by a call to the HROPEN     4096 and set equal to the record length, defined by a call to the HROPEN
341  routine.     routine.
342  Also the length of the common /PAWC/ (parameter NWPAW) has been increased     Also the length of the common /PAWC/ (parameter NWPAW) has been increased
343  to 1.34E8, according to the rule that it has to be larger than the number     to 1.34E8, according to the rule that it has to be larger than the number
344  of columns times the buffer size.     of columns times the buffer size.
345    
346  10 April 2003, Bari  10 April 2003, Bari
347    
348  The variables in the HIT STRUCTURE of the CALORIMETER and their way to be     The variables in the HIT STRUCTURE of the CALORIMETER and their way to be
349  filled have been changed according to the electronics system of the real     filled have been changed according to the electronics system of the real
350  detector. In fact, because each silicon detector (module) consists of     detector. In fact, because each silicon detector (module) consists of
351  32 strips and each strip is connected to those belonging to the two detectors     32 strips and each strip is connected to those belonging to the two detectors
352  of the same row (or column) for forming 24 cm long strips, the sum of the     of the same row (or column) for forming 24 cm long strips, the sum of the
353  deposited energies in the strips forming a `long strip' is now calculated for     deposited energies in the strips forming a `long strip' is now calculated for
354  each event (gpucal.F subroutine) and it is stored in a hit only at the     each event (gpucal.F subroutine) and it is stored in a hit only at the
355  end of the event (gutrev.F subroutine).     end of the event (gutrev.F subroutine).
356  The output variables of the GPAMELA en-tuple are then filled in the vectors     The output variables of the GPAMELA en-tuple are then filled in the vectors
357  ICAPLANE(NTHCAL), ICASTRIP(NTHCAL), ENESTRIP(NTHCAL) and ICAMOD(NTHCAL),     ICAPLANE(NTHCAL), ICASTRIP(NTHCAL), ENESTRIP(NTHCAL) and ICAMOD(NTHCAL),
358  by a call to the GPDCAL subroutine:     by a call to the GPDCAL subroutine:
359  -ICAPLANE(i) contains the number of hit plane;     -ICAPLANE(i) contains the number of hit plane;
360  -ICASTRIP(i) contains the number of hit strip;     -ICASTRIP(i) contains the number of hit strip;
361  -ICAMOD(i) can assume different values based on the number of times and     -ICAMOD(i) can assume different values based on the number of times and
362             positions in which a `long strip' has been hit.                positions in which a `long strip' has been hit.
363  -ENESTRIP(i) contains the deposited energy in the hit strip;     -ENESTRIP(i) contains the deposited energy in the hit strip;
364  where i is the number of hit (1<i<4224).     where i is the number of hit (1<i<4224).
365  Note that in the calorimeter each hit is filled at the end of the event and     Note that in the calorimeter each hit is filled at the end of the event and
366  that there is a hit for each `long strip' hit from     that there is a hit for each `long strip' hit from
367  the particle. This use of the hit structure is different for the other     the particle. This use of the hit structure is different for the other
368  detectors and it has been considered to avoid a too big number of hit in the     detectors and it has been considered to avoid a too big number of hit in the
369  calorimeter due to the showers. Follows that NTHCAL, which is the     calorimeter due to the showers. Follows that NTHCAL, which is the
370  max number of hit in the calorimeter, is equal to 4224, the total     max number of hit in the calorimeter, is equal to 4224, the total
371  number of `long strips'. So, for each event, the real number of hit will     number of `long strips'. So, for each event, the real number of hit will
372  be less or equal to 4224.     be less or equal to 4224.
373  ICAMOD(i) is an additional information that does not exist in the real     ICAMOD(i) is an additional information that does not exist in the real
374  detector: if the strip i (i=1,32) of the module 1 or 2 or 3     detector: if the strip i (i=1,32) of the module 1 or 2 or 3
375  is hit, the value of ICAMOD(i) is respectively incremented of 1, 100, 10000.     is hit, the value of ICAMOD(i) is respectively incremented of 1, 100, 10000.
376  Analogously it is done, if it is the strip j (j=33,64) of the modules 4, 5     Analogously it is done, if it is the strip j (j=33,64) of the modules 4, 5
377  and 6 or if it is the strip k (k=65,96) of the modules 7, 8 and 9.     and 6 or if it is the strip k (k=65,96) of the modules 7, 8 and 9.
378  For example if we consider the hit 1 of an event, we could read:     For example if we consider the hit 1 of an event, we could read:
379  ICASTRIP(1)=30, ICAPLANE(1)=21, ENESTRIP(1)=0.5E-03 and ICAMOD(1)=10001.     ICASTRIP(1)=30, ICAPLANE(1)=21, ENESTRIP(1)=0.5E-03 and ICAMOD(1)=10001.
380  It means that the hit 1 contains the information that in the strip 30 of the     It means that the hit 1 contains the information that in the strip 30 of the
381  plane 21 has been deposited a total energy of 0.5E-03 GeV. In addition the     plane 21 has been deposited a total energy of 0.5E-03 GeV. In addition the
382  `long strip 30' has been hit two times, one in the first module and the     `long strip 30' has been hit two times, one in the first module and the
383  other in the third one.     other in the third one.
384    
385  The energy deposited in the calorimeter is calculated in GeV.     The energy deposited in the calorimeter is calculated in GeV.
386    
387  To store the hits in the calorimeter the subroutine GSAHIT is used instead of     To store the hits in the calorimeter the subroutine GSAHIT is used instead of
388  GSCHIT.     GSCHIT.
389    
390  To retrieve the hit structure the call to the routine GPRHIT is done instead     To retrieve the hit structure the call to the routine GPRHIT is done instead
391  of a call to the GFHITS subroutine.     of a call to the GFHITS subroutine.
392    
393  25 February 2003, Bari  25 February 2003, Bari
394    
395  BUG found:  BUG found:
396  DCUTEAER, DCUTEAL, DCUTECE, DCUTECP, DCUTEFE, DCUTEG10C, DCUTEG10, DCUTEKAP,     DCUTEAER, DCUTEAL, DCUTECE, DCUTECP, DCUTEFE, DCUTEG10C, DCUTEG10, DCUTEKAP,
397  DCUTEN2G, DCUTEROA, DCUTESCIN, DCUTESICA, DCUTETRAD, DCUTEW2,     DCUTEN2G, DCUTEROA, DCUTESCIN, DCUTESICA, DCUTETRAD, DCUTEW2,
398  DCUTEW, DCUTEXE variables missed in the commons: gpaer.inc, gpal.inc, gpce.inc,     DCUTEW, DCUTEXE variables missed in the commons: gpaer.inc, gpal.inc, gpce.inc,
399  gpcp.inc, gpfe.inc, gpg10c.inc, gpg10.inc, gpkap.inc, gpn2g.inc, gproa.inc,     gpcp.inc, gpfe.inc, gpg10c.inc, gpg10.inc, gpkap.inc, gpn2g.inc, gproa.inc,
400  gpscin.inc (obsolete), gpscint.inc, gpsica.inc, gptrad.inc, gpw2.inc, gpw.inc,     gpscin.inc (obsolete), gpscint.inc, gpsica.inc, gptrad.inc, gpw2.inc, gpw.inc,
401  gpxe.inc, gpdaer.inc, gpdal.inc, gpdce.inc, gpdcp.inc, gpdfe.inc, gpdg10c.inc,     gpxe.inc, gpdaer.inc, gpdal.inc, gpdce.inc, gpdcp.inc, gpdfe.inc, gpdg10c.inc,
402  gpdg10.inc, gpdkap.inc, gpdn2g.inc, gpdroa.inc, gpdscin.inc, gpdsica.inc,     gpdg10.inc, gpdkap.inc, gpdn2g.inc, gpdroa.inc, gpdscin.inc, gpdsica.inc,
403  gpdtrad.inc, gpdw2.inc, gpdw.inc, gpdxe.inc.     gpdtrad.inc, gpdw2.inc, gpdw.inc, gpdxe.inc.
404  They have been added in these commons and they have been initialized in the     They have been added in these commons and they have been initialized in the
405  GPSTM subroutine.     GPSTM subroutine.
406    
407  Updated the special tracking parameters SICALO, TUNGA, KAOLINITE and G10C     Updated the special tracking parameters SICALO, TUNGA, KAOLINITE and G10C
408  in the subroutines gpsica.F, gpw2.F, gpw.F, gpce.F and gpg10c.F. They were     in the subroutines gpsica.F, gpw2.F, gpw.F, gpce.F and gpg10c.F. They were
409  suggested by Mirko Boezio.     suggested by Mirko Boezio.
410    
411  Updated the value of the absorption length for silicon in the calorimeter     Updated the value of the absorption length for silicon in the calorimeter
412  and tracker although this parameter is ignored by GEANT. For this reason     and tracker although this parameter is ignored by GEANT. For this reason
413  it was equal to the radiation length.     it was equal to the radiation length.
414    
415  Updated the relative positions of the calorimeter planes. The corrected     Updated the relative positions of the calorimeter planes. The corrected
416  shifting are:     shifting are:
417    
418  first view: (Dxo,Dyo)=(0.10,0.05) cm     first view: (Dxo,Dyo)=(0.10,0.05) cm
419  second view: (Dxo,Dyo)=(-0.05,0.10) cm     second view: (Dxo,Dyo)=(-0.05,0.10) cm
420  third view: (Dxo,Dyo)=(-0.10,-0.05) cm     third view: (Dxo,Dyo)=(-0.10,-0.05) cm
421  fourth view: (Dxo,Dyo)=(0.05,-0.10) cm     fourth view: (Dxo,Dyo)=(0.05,-0.10) cm
422    
423  4 November 2002, Bari  4 November 2002, Bari
424    
425  CAS detectors distances modified  CAS detectors distances modified
426    
427  The distances between the CAS detectors have been modified based on the     The distances between the CAS detectors have been modified based on the
428  latest CAD drawings.     latest CAD drawings.
429    
430  2 November 2002, Bari  2 November 2002, Bari
431    
432  CALORIMETER geometry upgrade  CALORIMETER geometry upgrade
433    
434  The volumes CAPD and CAAD have been taken off from the calorimeter.     The volumes CAPD and CAAD have been taken off from the calorimeter.
435  In addition the logical tree has been slightly changed to make the shifts of     In addition the logical tree has been slightly changed to make the shifts of
436  the silicon planes into the calorimeter box easier, i.e. the CAPL volume,     the silicon planes into the calorimeter box easier, i.e. the CAPL volume,
437  which was made of the CASI, CAKP, CAGL, C10C and CAKA volumes, has     which was made of the CASI, CAKP, CAGL, C10C and CAKA volumes, has
438  been split up in the volumes CANS and CAPL. Now CANS is made of the CAKP,     been split up in the volumes CANS and CAPL. Now CANS is made of the CAKP,
439  CAGL, C10C and CAKA volumes while CAPL contains the CASI volume, that has to     CAGL, C10C and CAKA volumes while CAPL contains the CASI volume, that has to
440  be shifted as a function of the vertical position in the calorimeter. Also the     be shifted as a function of the vertical position in the calorimeter. Also the
441  dimensions of some volumes have been upgraded, including the external ones:     dimensions of some volumes have been upgraded, including the external ones:
442  CALB and CALS. CALS is an aluminum box of dimensions: 48.4*48.4*21.278 cm^3,     CALB and CALS. CALS is an aluminum box of dimensions: 48.4*48.4*21.278 cm^3,
443  having side-walls 1 cm thick and a bottom of 1 mm. The real box is more     having side-walls 1 cm thick and a bottom of 1 mm. The real box is more
444  complicated and the configuration of the bottom should be upgraded if we want     complicated and the configuration of the bottom should be upgraded if we want
445  a reliable description of the event in the S4 scintillator.     a reliable description of the event in the S4 scintillator.
446    
447  22 October 2002, Stockholm  22 October 2002, Stockholm
448    

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