/[PAMELA software]/gpamela/history/v_100.txt
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Revision 3.12 - (hide annotations) (download)
Thu May 18 10:52:32 2006 UTC (18 years, 9 months ago) by pam-ba
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Changes since 3.11: +30 -1 lines
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TOF geometry completed and a new material, the polystyrene (density 35 g/l), added

1 cafagna 3.10
2 cafagna 3.1 #
3 pam-ba 3.12 # $Id: v_100.txt,v 3.11 2006/05/11 23:53:15 cafagna Exp $
4 pamela 3.2 #
5     # $Log: v_100.txt,v $
6 pam-ba 3.12 # Revision 3.11 2006/05/11 23:53:15 cafagna
7     # More bugs fixed in the CALO ntple structure filling
8     #
9 cafagna 3.11 # Revision 3.10 2006/04/10 11:07:43 cafagna
10     # GEN data card updated, ZDGEN added
11     #
12 cafagna 3.10 # Revision 3.9 2005/12/14 03:34:40 cafagna
13     # An update of the history and inform readme files.
14     #
15 cafagna 3.9 # Revision 3.8 2005/12/14 03:16:08 cafagna
16     # Neutron detector added. Geometry and GPCALOR package
17     #
18 cafagna 3.8 # Revision 3.7 2005/10/18 08:24:35 cafagna
19     # History updated
20     #
21 cafagna 3.7 # Revision 3.6 2005/07/25 11:53:21 cafagna
22     # Several updates. See history for details
23     #
24 cafagna 3.6 # Revision 3.5 2004/04/06 10:33:46 pamela
25     # NON-REPRODUCIBILITY problem of a GPAMELA RUN fixed; bug found and fixed filling in the hit structure of the calorimeter
26     #
27 pamela 3.5 # Revision 3.4 2003/12/17 11:32:50 pamela
28     # CALO SIMULATION COMPLETED: geometry and special tracking parameters updated and simulation checked by a comparison with the Trieste's standalone Monte Carlo simulation
29     #
30 pamela 3.4 # Revision 3.3 2002/12/05 17:27:59 pamela
31     # New GARFIELD.GAR file added and GPAMELA.FFR cleaned and updated
32     #
33 pamela 3.3 # Revision 3.2 2002/12/05 10:17:42 pamela
34     # Update CAS and CALO geometries and positions. Makefile updated as well
35     #
36 pamela 3.2 # Revision 3.1.1.1 2002/07/11 16:01:59 cafagna
37     # First GPAMELA release on CVS
38 cafagna 3.1 #
39     #
40     #CMZ : 3.00/00 11/02/2002 20.05.23 by Unknown
41     #CMZ : 2.03/00 06/11/2000 02.14.56 by Francesco Cafagna
42     #CMZ : 2.02/00 12/10/2000 19.22.54 by Francesco Cafagna
43     #CMZ : 2.01/01 05/04/2000 14.37.24 by Marialuigia Ambriola
44     #CMZU: 2.01/00 05/04/2000 09.51.04 by Unknown
45     #CMZ : 2.00/00 03/03/2000 15.22.27 by Francesco Cafagna
46     #CMZ : 1.02/00 15/02/2000 10.19.51 by Francesco Cafagna
47     #CMZ : 1.01/00 23/05/96 16.59.29 by Francesco Cafagna
48     #CMZ : 1.00/03 30/04/96 12.23.59 by Francesco Cafagna
49     #CMZ : 1.00/02 05/04/96 15.31.25 by Francesco Cafagna
50     #CMZ : 1.00/01 28/11/95 18.51.23 by Francesco Cafagna
51 pamela 3.5 #-- Author : Francesco Cafagna 28/11/95
52    
53 cafagna 3.11 May 2006, Bari & Florence
54    
55     CAL HIT STRUCTURE BUGS FIXED
56    
57     The maximum number of hit is now different for the two hit
58     structures: CALST and CALI. Vectors inizialization and HBOOK
59     ntple booking have been updated. The GPDCAL routine has been fixed
60     so to handle the case in wich hits stored are more than the maximum
61     number of hit.
62     In this case in the ntple up to the maximum number of hits will be stored.
63    
64 pam-ba 3.12 April 2006, Bari
65    
66     TOF GEOMETRY AND POSITIONS UPDATED AND NEW MIXTURES ADDED
67    
68     The TOF geometry has been modified. The following boxes have been
69     added: POL1, POL2 and POLY made of polystyrene, S11M, S12M, S21M,
70     S22M, S31M and S32M made of mylar, S1A, S2A and S3 made of air and
71     S1 and S2 made of aluminum. Each scintillator paddle has been put
72     in his mylar box and the other materials: air, polystyrene, and
73     aluminum have been added at their nominal positions. According to
74     Naples people the araldite glue has been simulated has an air
75     gap. For this work two new materials: the Mylar (MYLAR) and the
76     polystyrene (POLYSTYRENE) with a density of 35 g/l have been
77     defined as a mixture. The positions of the three bottom
78     scintillator planes that contain respectively the S12X, S22Y and
79     S32X paddles have been regulated according on their official
80     positions in PAMELA.
81    
82 cafagna 3.10 Mar 2006, Bari
83    
84     GEN DATA CARD UPDATED
85    
86     To enable generation on a surface perpendicular to the XY plane,
87     GEN gata card has been updated addingh a new parameter: ZDGEN. This is
88     the dimension, along Z axis , of the generation surface. The Z
89     position will be randomply chosen according to: Z= ZDGEN*RNDM_NUMBER +
90     ZGEN, i.e. Z= GEN(6)*RNDM_NOMBER + GEN(3).
91    
92 cafagna 3.8 Nov 2005, Bari
93    
94 cafagna 3.9 GUHADR AND GUPHAD UPDATED
95    
96     To use GCALOR package the hadronic routines have been updated. The
97     inizialization routine call CALSIG, while the other calls GCALOR.
98    
99     NEW GPKEY ADDED: GPCALOR
100    
101     This logical has been added to enable the GCALOR package. This flag
102     is set to true in GPDAT if the data card: HPAK, is set to
103     'GCAL'. The gpkey.inc has been update accordingly.
104    
105    
106 cafagna 3.8 NEUTRON DETECTOR ADDED. NEW DIR: GPND
107    
108     The neutron detector has been added. At the moment it is just the
109     geometry. The directory structure of the repository has been
110     updated as well. Dimensions has been taken from picture and
111     literature. A full upgrade to the drawing is needed.
112    
113     GCALOR PACKAGE ADDED. NEW DIRs: GPCALOR, GPCALORDES
114    
115     GCALOR package contins the CALOR simulation code and an interface
116     to use it in GEANT. The important feature for us is the usage of
117     the MICAP code. This is facused on the low energy neutron
118     simulation. for details see:
119     http://www.staff.uni-mainz.de/zeitnitz/Gcalor/gcalor.html
120     This package should be distributed with the GEANT library but is
121     not up to date. I did download the latest release and stored into
122     gpcalor directory of the gpamela tree.
123     Then I did clean up the code substituting the explicit inclusion of
124     the commons with a #include cpp directive. In parallel I did
125     extract the commons to include files having the same common name. I
126     did store the include files into a newly created directory:
127     gpcalordes.
128     The Makefile has been updated accordingly.
129     Please note that to avoid conflict with CRENLIB distribution the gcalor source file has been named gpcalor.F
130     NOTE: There are still problem due to different common sizes. In
131     particular the common MICFIL is maller in the geant library
132     libgeant.a . There the subroutines: gmorin, gmxsec, gmplxs, are
133     present and linked using a wrong version of the common. This still needs to be debuged.
134     NOTE2: The auxiliary files with the cross sections: chetc.dat.gz
135     and xsneut.dat.gz, have been added to the aux directory and moved
136     to the working directory, i.e. GPAMELA_BIN. The GCALOR routine will
137     look for CERN_ROOT environment variable. If found files are
138     searched there at first, then in the working directory. A fool
139     proof policy has to be implemented to avoid problem with
140     synchronization fo these files.
141    
142    
143     The GCALOR package
144 pam-ba 3.12
145     June 2005, Bari
146    
147     TOF SCINTILLATOR PADDLES UPDATED
148    
149     The dimensions and the number of the scintillator paddles for each
150     TOF planes have been updated.
151    
152 cafagna 3.6 May 2005, Bari
153    
154     Some updates on the latest modification done in the past year.
155    
156     NEW DATA CARD ADDED: HFSF
157    
158     To define a policy for the random number initial seeds
159     definition. Using this card is possible to override GEANT seeds
160     defined via NRDM card. The policy is selected according to the
161     values:
162    
163     - 1: The seeds are initialized to the initial values found in a user
164     defined file or the default file: INPUTSEED.DAT
165    
166     - 2: The seeds are initialized to the final values found in a user defined
167     file or the default file: INPUTSEED.DAT
168    
169     The case 1 must be used in case the user needs to reproduce the
170     random chain of a previous run. In this case the user can save the
171     initial seeds, used in the run he would like to reproduce, in a
172     binary file and pass the filename to the program using the *FLSF
173     data card. In case the user file is not specified the default
174     INPUTSEED.DAT will be used.
175    
176     The case 2 must be used in case the user needs to chain several
177     GPAMELA run and likes to be sure he is starting the random
178     generator using the right sequence. In this case the user must
179     specify an input binary file using the *FLSF data card, otherwise
180     the INPUTSEED.DAT file will be used.
181    
182     NEW DATA CARD ADDED: *FSFI
183    
184     Using this card the user can specify the logical unit and name of
185     the file storing the initial seeds to be used to initialize the
186     random number generator. This file must be a FORTRAN binary one
187     storing four integer numbers. The first two are the number to be
188     used in the case: HFSF=1, the other two will be used in the case:
189     HFSF=2. This file can be one created by GPAMELA or by the user
190     filled with his own seeds. For this purpose an utility program:
191     writeseeds.f, has been added in the aux directory. In case the
192     *FSFI card is not specified the default values: 24 and INPUTSEEDS.DAT, will
193     be used as LUN and file name respectively.
194    
195     NEW DATA CARD ADDED: *LSFI
196    
197     Using this card the user can specify the logical unit and name of
198     the file storing the first and last seeds used in the GPAMELA
199     run. This file is a FORTRAN binary one. This file can be used as
200     input one specifying it in the *FSFI data card of the next GPAMELA
201     run. In case the *LSFI card is not specified the default values: 26
202 cafagna 3.7 and HBOOKFILENAME.DAT (as sepified in *HFI), will be used as LUN
203     and file name respectively.
204 cafagna 3.6
205     NEW UTILITY PROGRAMS ADDED: writeseeds.f, readseeds.f
206    
207     These new programs have been added in the aux directory. Using these a
208     user defined seed file can be created and re-read.
209    
210     NEW VOLUMES ADDED: MSHE, BSPH; PRESSURIZED CONTAINER ADDED
211    
212     Alexey Bakaldin, in MEPHI, did add the PAMELA pressurized container to
213     the simulation. He did defined new volumes filled with aluminum and
214     placed inside the mother volume. Positions have been fine tuned by
215     Marialuigia Ambriola and compared to the CAD drawings.
216     Two new volumes have been added to simulate the container:
217     - MSHE, a tube simulating the middle part of the container
218     - BSPH, the spherical bottom part of the container
219    
220     To better simulate the upper part the SHEL volume has been modified
221     into a cone. Dimentions of the top cover: TSPH, have been modified
222     accordingly.
223    
224     DETECTOR POSITIONS REVIEWED
225    
226     All detector Z positions have been reviewd to fit into the
227     simulated pressurized container.
228    
229     TRD GEOMETRY AND CALIBRATION REVIEWD
230    
231     The TRD geometry has been deeply reviewed. Using the CAD drawings
232     the carbon fiber frames have been simulated and radiator dimentions
233     corrected. For this reason the calibration done on the beam tests
234     has been revied and new sets of calibration constants calculated
235     comparing the beam test data with the GPAMELA results. The new
236     constants are about 3% larger than the previous ones.
237    
238     TRACKER GEOMETRY REVIEWED. NEW VOLUME DEFINED: THBP, TPAS, TPAI
239    
240     Thanks to Lorenzo Bonechi for the drawings and explanations. Now the
241     hybrd cards have been put into the simulation and the geometry updated
242     considering the dead zones in the silicon detectors. The hybrid zone
243     has been simulated as well. At the moment the hybrid is simulated as
244     a G10 plates. The full height of the tracker magnet has been
245     reviewed as well.
246    
247     The tracker ladder is now simulated inside a nitrogen box: TPAS,
248     placed inside an aluminum frame: TRPB. Each silicon ladder has been
249     simulated using two silicon blocks: TRSL, into each of this block a
250     smaller silicon detector: TPAI, has been placed inside the larger
251     silicon block TRSL. In this way the subdivided silicon ladder can
252     be upgraded with an indipendend roto-translation for each sensor.
253    
254     The TRPB aluminum frame has been enlarged to fit the external
255     magnet canister frame.
256    
257     The last plane has been flipped with a 180 degree rotation around
258     the X axis.
259    
260     TRACKER HIT STRUCTURE REVIEWED
261    
262     Taking into account the new version of the tracker geometry, the hit
263     structure for this detector has been revied.
264    
265     CALORIMETER GEOMETRY REVIEWED
266    
267 cafagna 3.7 Marco Albi reviewed the calorimeter dimentions and positioning.
268 cafagna 3.6
269    
270 pamela 3.5 29 March 2004, Bari
271    
272     NON-REPRODUCIBILITY PROBLEM OF A GPAMELA RUN FIXED.
273 cafagna 3.6 The non-reproducibility of a GPAMELA run was due to the random number
274     initialization in the GARFIELD code. In GARFIELD by default, the initial
275     seeds of the random number generators are always the same while the random
276     number generators are called a given number of times (determined by the
277     hour of the day) during the initialization phase (see init.f subroutine in
278     the GARFIELD code for details). Follows that different runs produce
279     different results without changing the initial seeds. To have identical
280     results in different runs, the GARFIELD program has to start typing the
281     noRNDM_initialisation switch. To avoid of specifying this switch
282     by the user,
283     the GARFIELD package has been upgraded with a patch. In this way the problem
284     is partially solved because, now, the initial seeds of the random generators
285     in GARFIELD will be always the same even if the RNDM GEANT data card is
286     activated by the user for changing the initial seeds in the GPAMELA program.
287     Work is in progress for a more general correction of this problem.
288     Please, use the updated GARFIELD code released with the CVS version v4r1
289     to fix this problem.
290 pamela 3.5
291    
292     RNDM ROUTINE REPLACED BY THE GRNDM ROUTINE IN GPXTR AND NPOISS.
293 cafagna 3.6 The obsolete RNDM random number generator has been replaced by the GEANT
294     GRNDN routine in the gpxtr.F subroutine and in the npoiss.F function.
295 pamela 3.5
296     BUG FOUND AND FIXED: the set and detector calorimeter addresses (ISCAL
297 cafagna 3.6 and IDCASI variables) used in GUTREV were respectively set to a fixed
298     values of 12 and 1. The correct values of these variables are stored in
299     the GPSED common when the set and the detector ZEBRA banks are filled
300     during a run. In general the values of the set and detector addresses
301     depend on the number of active detectors in a given run. ISCAL=12 and
302     IDCASI=1 are only right when all the detectors of GPAMELA are active.
303 pamela 3.2
304 pamela 3.4 9 December 2003, Bari
305    
306 cafagna 3.6 CALORIMETER SIMULATION completed! The update of the geometry and of the
307     special tracking parameters and the tuning of the calorimeter have been
308     successfully done. A great quantity of simulated data have been produced
309     in the calorimeter for different particles (muons, electrons and pions)
310     and momenta (5 and 40 GeV/c) and the output data have been analyzed. The
311     distributions of the total energy deposited in the calorimeter and the
312     total number of strips hit have been compared with the respective
313     distributions produced by the Trieste's tuned standalone Monte Carlo
314     simulation program of the PAMELA calorimeter. The accord between the
315     two simulations is excellent. Many thanks to Mirko for his collaboration.
316    
317     Working in progress on TRD. The GARFIELD interface to the HEED program is not
318     optimized to track particle with a charge greater than one and photons. The
319     program print a warning message to advise the user when it is the case.
320 pamela 3.4
321     18 April 2003, Bari
322    
323 cafagna 3.6 The buffer size of each column of the GPAMELA Ntuple has been increased to
324     4096 and set equal to the record length, defined by a call to the HROPEN
325     routine.
326     Also the length of the common /PAWC/ (parameter NWPAW) has been increased
327     to 1.34E8, according to the rule that it has to be larger than the number
328     of columns times the buffer size.
329 pamela 3.4
330     10 April 2003, Bari
331    
332 cafagna 3.6 The variables in the HIT STRUCTURE of the CALORIMETER and their way to be
333     filled have been changed according to the electronics system of the real
334     detector. In fact, because each silicon detector (module) consists of
335     32 strips and each strip is connected to those belonging to the two detectors
336     of the same row (or column) for forming 24 cm long strips, the sum of the
337     deposited energies in the strips forming a `long strip' is now calculated for
338     each event (gpucal.F subroutine) and it is stored in a hit only at the
339     end of the event (gutrev.F subroutine).
340     The output variables of the GPAMELA en-tuple are then filled in the vectors
341     ICAPLANE(NTHCAL), ICASTRIP(NTHCAL), ENESTRIP(NTHCAL) and ICAMOD(NTHCAL),
342     by a call to the GPDCAL subroutine:
343     -ICAPLANE(i) contains the number of hit plane;
344     -ICASTRIP(i) contains the number of hit strip;
345     -ICAMOD(i) can assume different values based on the number of times and
346     positions in which a `long strip' has been hit.
347     -ENESTRIP(i) contains the deposited energy in the hit strip;
348     where i is the number of hit (1<i<4224).
349     Note that in the calorimeter each hit is filled at the end of the event and
350     that there is a hit for each `long strip' hit from
351     the particle. This use of the hit structure is different for the other
352     detectors and it has been considered to avoid a too big number of hit in the
353     calorimeter due to the showers. Follows that NTHCAL, which is the
354     max number of hit in the calorimeter, is equal to 4224, the total
355     number of `long strips'. So, for each event, the real number of hit will
356     be less or equal to 4224.
357     ICAMOD(i) is an additional information that does not exist in the real
358     detector: if the strip i (i=1,32) of the module 1 or 2 or 3
359     is hit, the value of ICAMOD(i) is respectively incremented of 1, 100, 10000.
360     Analogously it is done, if it is the strip j (j=33,64) of the modules 4, 5
361     and 6 or if it is the strip k (k=65,96) of the modules 7, 8 and 9.
362     For example if we consider the hit 1 of an event, we could read:
363     ICASTRIP(1)=30, ICAPLANE(1)=21, ENESTRIP(1)=0.5E-03 and ICAMOD(1)=10001.
364     It means that the hit 1 contains the information that in the strip 30 of the
365     plane 21 has been deposited a total energy of 0.5E-03 GeV. In addition the
366     `long strip 30' has been hit two times, one in the first module and the
367     other in the third one.
368 pamela 3.4
369 cafagna 3.6 The energy deposited in the calorimeter is calculated in GeV.
370 pamela 3.4
371 cafagna 3.6 To store the hits in the calorimeter the subroutine GSAHIT is used instead of
372     GSCHIT.
373 pamela 3.4
374 cafagna 3.6 To retrieve the hit structure the call to the routine GPRHIT is done instead
375     of a call to the GFHITS subroutine.
376 pamela 3.4
377     25 February 2003, Bari
378    
379     BUG found:
380 cafagna 3.6 DCUTEAER, DCUTEAL, DCUTECE, DCUTECP, DCUTEFE, DCUTEG10C, DCUTEG10, DCUTEKAP,
381     DCUTEN2G, DCUTEROA, DCUTESCIN, DCUTESICA, DCUTETRAD, DCUTEW2,
382     DCUTEW, DCUTEXE variables missed in the commons: gpaer.inc, gpal.inc, gpce.inc,
383     gpcp.inc, gpfe.inc, gpg10c.inc, gpg10.inc, gpkap.inc, gpn2g.inc, gproa.inc,
384     gpscin.inc (obsolete), gpscint.inc, gpsica.inc, gptrad.inc, gpw2.inc, gpw.inc,
385     gpxe.inc, gpdaer.inc, gpdal.inc, gpdce.inc, gpdcp.inc, gpdfe.inc, gpdg10c.inc,
386     gpdg10.inc, gpdkap.inc, gpdn2g.inc, gpdroa.inc, gpdscin.inc, gpdsica.inc,
387     gpdtrad.inc, gpdw2.inc, gpdw.inc, gpdxe.inc.
388     They have been added in these commons and they have been initialized in the
389     GPSTM subroutine.
390    
391     Updated the special tracking parameters SICALO, TUNGA, KAOLINITE and G10C
392     in the subroutines gpsica.F, gpw2.F, gpw.F, gpce.F and gpg10c.F. They were
393     suggested by Mirko Boezio.
394    
395     Updated the value of the absorption length for silicon in the calorimeter
396     and tracker although this parameter is ignored by GEANT. For this reason
397     it was equal to the radiation length.
398    
399     Updated the relative positions of the calorimeter planes. The corrected
400     shifting are:
401    
402     first view: (Dxo,Dyo)=(0.10,0.05) cm
403     second view: (Dxo,Dyo)=(-0.05,0.10) cm
404     third view: (Dxo,Dyo)=(-0.10,-0.05) cm
405     fourth view: (Dxo,Dyo)=(0.05,-0.10) cm
406 pamela 3.4
407 pamela 3.2 4 November 2002, Bari
408    
409     CAS detectors distances modified
410    
411 cafagna 3.6 The distances between the CAS detectors have been modified based on the
412     latest CAD drawings.
413 pamela 3.2
414     2 November 2002, Bari
415    
416     CALORIMETER geometry upgrade
417    
418 cafagna 3.6 The volumes CAPD and CAAD have been taken off from the calorimeter.
419     In addition the logical tree has been slightly changed to make the shifts of
420     the silicon planes into the calorimeter box easier, i.e. the CAPL volume,
421     which was made of the CASI, CAKP, CAGL, C10C and CAKA volumes, has
422     been split up in the volumes CANS and CAPL. Now CANS is made of the CAKP,
423     CAGL, C10C and CAKA volumes while CAPL contains the CASI volume, that has to
424     be shifted as a function of the vertical position in the calorimeter. Also the
425     dimensions of some volumes have been upgraded, including the external ones:
426     CALB and CALS. CALS is an aluminum box of dimensions: 48.4*48.4*21.278 cm^3,
427     having side-walls 1 cm thick and a bottom of 1 mm. The real box is more
428     complicated and the configuration of the bottom should be upgraded if we want
429     a reliable description of the event in the S4 scintillator.
430 pamela 3.2
431     22 October 2002, Stockholm
432    
433     ANTICOINC. GEOMETRY UPGRADE
434    
435     The AC geometry has been updated. The top AC scintillator (CAT) now
436     consists of 1 single sheet of scintillator with a hole in the middle
437     and the correct geometry(*). The side AC scintillators (CAS) also
438     have the correct shape. The AC scintillators are placed in aluminum
439     boxes with plastic rims inside. For these rims a 'new' material, PLAS,
440     was defined. PLAS has all the characteristics of SCIN but is
441     non-sensitive. No PMTs or PMT holders have been modelled.
442     (*)-The interfaces on CAT where the PMTs should be located are
443     slightly different from the real case.
444    
445 cafagna 3.1 11 February 2002, Bari
446    
447     MACRO CLEAN-UP
448    
449     Before the new release a bit of macro clean-up. Both GPEXE and
450     GPXINT in the $KUMACS directory have been cleaned. Some commented
451     out code has been deleted and the g77 option flags and libraries
452     updated.
453    
454     LIBGARFIELD-7.A ADDED TO THE MACRO
455    
456     The libgarfield-7.a library has been permanently added to the GPEXE
457     and GPXINT macro. So the user doesn't need to pass it through the
458     uslib macro flag.
459    
460     8 February 2002, Bari
461    
462     SUBROUTINE cross.f renamed crossgar.f in the GARFIELD library.
463     To avoid a bad interference between GEANT and GARFIELD due
464     to the same name adopted for two different functions, one in
465     GEANT and the other in GARFIELD, the function cross.f, in the
466     GARFIELD library, named libgarfield-7.a, has been renamed
467     crossgar.f.
468    
469     5 February 2002, Bari
470    
471     HIT and CWN revised for TRD
472     The TRD HIT structure has been extended to include the infos about TR
473     process. The TRD structure is now:
474     # DATA (CHTRD(I),I=1,12)/'XIN ','YIN ','ZIN ','XOUT','YOUT','ZOUT',
475     # + 'EREL','PATH','IPAR','P0 ','ETR ','NTR '/
476     #+SELF,IF=GARFIELD
477     # DATA CHTRD(13),CHTRD(14)/'EGAR','NGAR'/
478     #+SELF.
479     where ETR and NTR are respectively the energy and the number of photons
480     converted in the gas mixture in the straw tube for TR, EREL is now the
481     energy released in the straw for ionization by GEANT, which must be zero
482     when GARFIELD is on.
483     The TRD CWN structure has been modified also:
484     -ELOSTRD is the energy released for ionization by GEANT (EREL in the HIT
485     structure),
486     -ETRTRD is the energy released for TR (ETR in the HIT structure),
487     -NTRTRD is the number of TR photons (NTR in the HIT structure),
488     -ERELTRD is now the the total energy released in a straw (the sum of
489     EGARTRD and ETRTRD).
490    
491     TRANSITION RADIATION PROCESS IMPLEMENTED IN THE GPAMELA CODE
492     A new subroutine, GPXTR (called by GUSTEP), has been written to
493     generate the transition radiation (TR) spectrum in the TRD carbon fibers
494     radiators for charged tracks with a Lorentz factor greater than 100
495     (standard GEANT3.21 does not). The emission of TR spectrum, depending
496     on the atomic number and the velocity of the particle and the length of
497     the track in the radiator, is simulated following analytical formulas
498     (see for example M.L. Cherry et al., Phys. Rev. D10 (1974), 3594).
499     Once a TR spectrum is produced, it is partially absorbed by dead
500     material (radiator itself and kapton walls of the straw tubes) before
501     reaching the Xe-C02 mixture inside the straw tubes where it is partially
502     absorbed and partially transmitted. The absorbed spectrum in Xe-C02
503     is finally converted in a suitable number of TR photons of suitable energy.
504     The model of TR emission is referred to a regular radiator. Also, but not
505     only for this reason, this model of simulation was carefully tuned with TRD
506     test-beam measurements (PS and SPS at CERN).
507    
508     ZEBRA MEMORY PROBLEM SOLVED IN THE JVERTX DATA STRUCTURE
509     To record the initial kinematic of a track and save it till the end
510     of the event, the elements of the vector IFLGK(IG) were put to 1 in
511     GUSTEP, where IG is the particle number in the current step. In this
512     way, the vertixes of all particles, except neutrinos, were stored in
513     the permanent data structure JVERTEX. Due to the limit in the ZEBRA
514     structural links, fixed to 64K links, the data structure JVERTEX was
515     easily exceeded in memory giving a fatal error with a crash of the
516     GPAMELA program. For this reason the IFLGK(IG) is now put to 0 for
517     each secondary particle and the particle is stored only on the
518     temporary stack JSTAK to be transported.
519    
520     14 may 2001, Bari
521    
522     SCALE FACTOR TO PACK THE HIT VALUE OF MOMENTUM IN TRD INCREASED
523     The FHTRD(10) scale factor applied before packing the hit value of
524     momentum in TRD has been increased from 1.E3 to 1.E7 in the GPDHIT
525     data common. With this value an accuracy of 1/10 of keV can be estimated.
526    
527     9 may 2001, Bari
528    
529     IONIZATION IN TRD'S STRAW TUBES SWITCHED OFF IN GEANT
530     The ILOSS,(IMULS) and IDRAY variables have been set to zero in the
531     GPXE routine (variable LOSSXE, DRAYXE (and MULSXE)). In this way the
532     energy loss for ionization in the straw tubes is generated only from
533     GARFIELD. To store the energy loss by GARFIELD in the hit structure
534     of TRD (routine GPUTRD), the IMEC control flag, which controls the
535     presence of the ionization by GEANT, has been eliminate in GPUTRD.
536     To avoid to store photons in the hit structure of the TRD it has
537     been added a control on the charge of the particle.
538    
539     TRACK COMMAND CALLED BY GPGARIN
540     The track command of GARFIELD is now initialized in GPGARIN and
541     passed by user with the GAFI key.
542     With this command the options for the cluster generation can be set.
543    
544     TRD IONIZATION ENERGY LOSS GENERATED NOW BY GARFIELD
545     To generate the ionization in the TRD straw tubes the HEED program
546 pamela 3.4 interfaced by GARFIELD is used (GEANT does not correctly simulate
547     the ionization in thin layer and in the gas). The idea is that GEANT
548     tracks the particle in the gas and then passes the coordinates,
549     translated in the DRS, to GARFIELD. The GARFIELD subroutines are
550     called by GPUTRD. The energy loss and the number of clusters in TRD
551     are stored in the variables EGARTRD and NGARTRD of the CWN-tplu.
552 cafagna 3.1
553     1 May 2001, Bari
554    
555     GPGARIN CALLED BY UGINIT
556     The call to GPGARIN has been added in UGINIT
557    
558     NEW KEY ADDED: GAFI
559    
560     A new key has been added to pass the file name and logical unit to
561     be used by GARFIELD in reading in the &GAS and &CELL definition. To
562     implement the key as usual a 21 words long integer vector has been
563     added to $GPKEY and init in $GPDKEY: NGARFILE.
564    
565     GAFI keyword has been defined in FFKEY routine.
566    
567     As usual in FFUSER routine an action has been defined in case of
568     the *GAFI call. Simply the first word of NGARFILE is passed into
569     LUGAR variable and the remaining words converted to carachter into
570     CHGAR variable. Both LUGAR and CHGAR have been added to the GPUNIT
571     common.
572    
573     GARFIELD COMMONS ADDED: $XINPUT, $INPUT
574     These sequences has been added into the GPGAR patch.
575    
576     GARFIELD FILE READOUT ADDED
577     GPGAIN has been modified to add the file readout. The file logical
578     unit and name are passed to the GARFIELD routine DSNOPN to open
579     it. The LUN variable in the INPUT common is set to the LUGAR value
580     as well.
581    
582     Both GARFIELD, $INPUT, and GPAMELA, $GPUNIT, sequences containing
583     the above variables have been added to the deck.
584    
585     NEW FLAG ADDED: GARFIELD
586     To select all the GARFIELD code the flag GARFIELD must be used !
587    
588     GPEXE AND GPXINT KUMACS UPDATED
589     To enable the use of and user flag and libraries both kumacs have
590     been updated adding the USFLAG and USLIB input variables.
591    
592     ALL GARFIELD COMMONS COPIED to GPGAR
593     All the commons (sequences) from //garfield-7/commons have been
594     copied to the gPGAR patchy.
595    
596     DIMENSIONS SEQUENCE ADDED TO GPGARIN
597     To avoid confusions in the PARAMETER settings, i.s. max value of
598     something, the common DIMENSIONS has been added.
599    
600     30 April 2001, Bari
601    
602     NEW PATCH CREATED: GPGAR
603     A new Patch has been created in the main file: GPGAR. This patch
604     should contain all the subroutines (deck) related to the
605     GPAMELA-GARFIELD (HEED) interface.
606    
607     NEW DECK ADDED: GPGAIN
608     This subroutine (deck) should contain the GARFIELD initialization
609     and the readout of the init file. This file has the same structure
610     of the "macro" file used by garfield.
611     This routine has been adapted from the original GARFIELD main.
612     Several sections (Headers in the GARFIELD jargon) have been skipped.
613    
614     NEW SEQUENCES ADDED: $XPRINTPLOT,$PRINTPLOT
615    
616     These are used ($PRINTPLOT mainly) by GPGAIN. These have been added
617     to the GPGAR patch for the moment. Will see later if an "ad hoc"
618     patch should be created for the GARFIELD commons.
619    
620     6 april 2001, Bari
621    
622     A new common block, GPTOTR, has been created to store the Transition
623     Radiation (TR) informations useful for the user. The variables of this
624     common block are initialized to zero in GPUTRE, filled in the subroutine
625     GPUSTEP and declared in GPHBK for booking in the Ntuple.
626    
627     The definition of the ITRSO detector has been changed in the GPSED routine:
628     NVTRD has been forced to 2 for compatibility with GPDTRD.
629    
630     28 march 2001, Bari
631    
632     ITRSO has been defined as a sensitive detector in GSTMED routine and it has
633     been assigned as a detector in the JSET data structure by the GSDET routine.
634     It is because the information of the path in the kapton is needed for the
635     the transition radiation simulation. The hit parameters for this
636     detector are not defined and the hit structure is not filled by the routine
637     GPUTRD because it is not of physical interest.
638    
639     20 march 2001, Bari
640    
641     BUG FOUND: ISVOL, FIELDM, TMAXFD, STEMAX, EPSIL, STMIN were declared in
642     two different common blocks: GPMED and GCTMED. These variables have been
643     respectively renamed FIELDMGP, TMAXFDGP, STEMAXGP, EPSILGP, STMINGP in the
644     GPMED common block.
645    
646     23 December 2000, Bari
647    
648     BUG FOUND: Radiation length for nitrogen had the value for nitrogen
649     liquid instead of the nitrogen gas. It has been changed for the
650     nitrogen gas.
651    
652     14 November 2000, Trieste
653    
654     KAOL volume name changed into CAKA
655     GLUE volume name changed into CAGL
656     KAPT volume name changed into CAKP
657     All the subroutines referring to these volumes have been changed
658     accordingly. Now all the calorimeter's name are in the gpamela standard.
659    
660     BUG FOUND: volume CG10C had a name longer than 4 letters and was confused
661     with volume CG10; fixed, CG10C volume name changed into C10C and variable
662     CG10C into C10C, all the subroutines referring to this volume and this
663     variable have been changed accordingly.
664    
665     BUG FOUND: with the data card "SPTM 'W2 '" enabled gpamela crash due memory
666     fault in the case of electrons with energy greater than ~15 GeV.
667     NOT ALREADY FIXED!!! A temporary solution is to disable "SPTM 'W2 '".
668    
669     ANTICOINCIDENCE UPDATED.
670     Dimension of CAS and dimension and shape of CAT changed following
671     Jens indication.
672     Added the aluminum anti-coincidence cradles.
673    
674     NEW VOLUMES ADDED: CSSX, CSSY, CATH, CATF, CATO, CATP.
675     To take account of the cradles and of the new shape of CAT.
676     To allow the correct disposition of CAS two variable (CASXD,CASYD)
677     has been added.
678     The sequences: $GPGEO and $GPDGEO, as well as the routines:
679     GPCASV, GPCATV and GPDAT has been modified to take account of changement.
680     CAS quote is now different from the SPEC one: ZCAS=51.25 (ZSPEC=50.6)
681    
682     6 November 2000, Trieste
683    
684     NEW MACRO ADDED: GPCONDOR.KUMAC
685     The macro condor.kumac has been added to compile a non interactive
686     version of gpamela to be run under condor.
687    
688     SPTM for G10C upgraded.
689     Now it is important to enable ALWAYS the SPTM 'CE ' 'SICA' 'G10C' 'W2 '
690     to obtain the correct data from calorimeter.
691    
692     6 November 2000, LNGS
693     ::::::::> VERSION NUMBER UPDATED <::::::::
694     The version number has been updated to: 2.03/00.
695    
696     NEW DATA CARDS ADDED: CAS, CAT, TOF, TRD, SPE, CAL, S4
697     To allow the simulation of a detector geometry without the physics,
698     i.e. hits, and/or the n-tple, new data cards have been added: CAS,
699     CAT, TOF, TRD, SPE, CAL, S4. All of them work in the same way. The
700     user can define NVOL, NPHY, NHBK for each card. These user options
701     perform:
702     - NVOL, similar to the NDET actions, the whole detector is NOT
703     simulated
704     - NPHY, just the physics is not simulated. SET, DETECTOR
705     and HITS definitions are skipped and the n-tple as well.
706     - NHBK, just the n-tple is disabled
707    
708     The NVOL option does automatically set the other two, while the NPHY
709     option does set the NHBK one. The old NDET card is kept for
710     compatibility but does still have the priority on these cards,
711     i.e. if the user does requires a detector cancellation via NDET the
712     action is considered as the NVOL option and the card content is not
713     even checked. For example:
714     NDET 'TOF '
715     TOF 'NHBK'
716     Is considered as a request for TOF cancellation, the program does
717     not disable just the TOF n-tple.
718    
719     As usual the $GPDKEY, $GPKEY, GPFFR and GPDAT banks and routines
720     have been modified. A new logical variable for each detector has
721     been introduced to control the NPHY action: PCAS, PCAT, PTOF, PTRD,
722     PSPE, PCAL, PS4. These variables are now controlling the definition
723     of SETS, DETECTORS and HITS into GPSED and GPHIT routines. With
724     these also the GUDIGI has been modified and the detector
725     digitization is performed if the Pxxx variable is TRUE for each
726     detector.
727    
728     NOTE: S4 is not jet separated from the TOF !!!!!! So the TOF data
729     card does eliminate S4. S4 data card does nothing
730    
731     30 October 2000, Trieste
732    
733     CHANGED MISURE UNIT FOR CALORIMETER ENERGY
734     The energy is now stored in MIP in the entuple. 1 MIP = 108.5200 KeV obtained
735     from the Landau distribution fo the energy in the strips in the case of a
736     run of muons of 40 GeV.
737     To take account of this change $GPUCAL and $GPDHIT has been modified.
738     IMPORTANT: to obtain the correct energy value for the calorimeter the
739     Special Tracking Parameter "SICA" MUST be enabled!!
740    
741     12 October 2000, LNGS
742     ::::::::> VERSION NUMBER UPDATED <::::::::
743     The version number has been updated to: 2.02/00.
744    
745     NEW VOLUMES ADDED: CAPD, CAAD
746     Actually the calorimeter last plane has been substituted by the
747     read-out cards. So the plane will be replaced by two aluminum
748     support for the g10 electronics cards. So to account for this
749     modification two new volumes have been created: CAPD, CAAD. CAPD is
750     exactly the same as CAPL but it doesn't contain the glue, kapton and
751     silicon sandwich. CAAD is the absorber, CAAB, but with the tungsten
752     replaced by the aluminum.
753    
754     To allow changes in the number of dummy planes the variable NCAPLD
755     has been added, it has the same function of the NCAPL one. So a
756     general loop on the number of this dummy planes has been implemented
757     in GPCALV to position them into CALB.
758    
759     The sequences: $GPGEO and $GPDGEO, as well as the routines: GPDAT,
760     GPCALV, has been modified to account for the dimension calculation,
761     the definition and positioning of these new volumes respectively.
762    
763     NEW DATA CARD ADDED: NCPL
764     To exclude from the simulation any calorimeter silicon plane a new
765     data card has been added: NCPL. This is an array of 44 integer, one
766     for each calorimeter plane. The user can enter the plane number
767     corresponding to the excluded one in any of this 44
768     location. Please note that the original numbering will be kept for
769     compatibility, i.e. the remaining plane will be numbered as there
770     was the full calorimeter simulation. The correspondence between the
771     random 44 data card and the plane to be excluded is done in the
772     GPDAT routine.
773     The sequences $GPKEY and $GPDKEY has been modified, routines:
774     GPDAT, GPFFR, GPCALV as well.
775    
776     NEW DATA CARD ADDED: NCSI
777     To exclude from the simulation any of the 9 silicon detector in any
778     silicon calorimeter plane a new data card has been added: NCSI. It
779     works like the NCPL but having to specify 9 integer instead of
780     44. Also in this case the original numbering in the plane is
781     preserved. The same routines and sequences as for NCPL have been
782     modified
783    
784     NEW DATA CARD ADDED: NCAB
785     To exclude from the simulation any of the 22 calorimeter absorber
786     planes a new data card has been added: NCAB. It works like the
787     previous two but using 22 integers. The original numbering is
788     preserved as well. The same routines and sequences as for NCPL and
789     NCSI have been modified.
790    
791     11 October 2000, LNGS
792    
793     Bug found in $GPMAT
794     The new material number for the detector were declared but not
795     included in the common. Fixed.
796    
797     GPEXE kumac updated
798     Has been dofied to account for the ALPHA UNIX case.
799     libcrypt library has been disabled and the f77 compiler has been used as
800     default one.
801    
802     10 October 2000, LNGS
803    
804     GPXINT kumac updated
805     Some modification done in GPXINT. It does now consider the case ALPHA
806     UNIX and define f77 as compiler and does not use the libcrypt.
807    
808     9 October 2000, Trieste
809    
810     NEW VOLUMES ADDED: KAOL, KAPT, GLUE
811     An upgrade of the calorimeter structure is done; it's introduced the fine
812     structure of the plane with Kaolinita (an insulator), Kapton and Glue.
813     So to account for this modification three new volumes have been created:
814     CAKA, CAKP and CAGL.
815    
816     NEW MIXTURE ADDED: W2, CERA, G10C
817     W2 is the correct tungsten/nichel/copper mixture that compose an absorber
818     plane of the calorimeter
819     CERA is Kaolinite, an electric insulator for the calorimeter
820     G10C is the mixture of the electronic cards of the calorimeter; this
821     mixture is used instead of G10 in the old volume CG10.
822    
823     To implement these cards the following routines and commons have
824     been modified: GPMAT, GPMED.
825    
826     3 NEW DATA CARDS added to tag tracking parameters of these new materials
827    
828     With these cards is now possible to set any of the five tracking
829     parameters: TMAXFD, STEMAX, DEEMAX, EPSIL and STMIN; for each of
830     the new 3 tracking media. Every data card is a real vector of 5
831     elements, that store respectively TMAXFD, STEMAX, DEEMAX, EPSIL and
832     STMIN. These elements are passed to the GSTMED routine call in the
833     GPMED procedure.
834    
835     To implement these cards the following routines and commons have
836     been modified: $GPKEY, $GPDKEY, GPDAT, GPMED, GPFFR. Each data card
837     value is initialized to -1111. in $GPDKEY. These cards are checked
838     for selection in GPMED. If these cards have been set these values
839     override the ones set by the global data cards: TMAX, STMA, DEEM,
840     EPSI, STMI; or the defaults set in GPDAT.
841    
842     CHANGED DIMENSIONS OF VOLUMES FOR CALORIMETER
843     The following routines and data set are changed to take account of the
844     correct dimensions of the calorimeter: GPGEO, GPCALV, GPDAT.
845    
846     6 April 2000, Bari
847     ::::::::> VERSION NUMBER UPDATED <::::::::
848     The version number has been updated to: 2.01/01.
849    
850     5 April 2000, Bari
851     ::::::::> VERSION NUMBER UPDATED <::::::::
852     The version number has been set to: 2.01/00, updating all the decks.
853    
854     5 April 2000, Bari
855     14 NEW DATA CARDS added to tag tracking parameters of each material.
856    
857     With these cards is now possible to set any of the five tracking
858     parameters: TMAXFD, STEMAX, DEEMAX, EPSIL and STMIN; for each of
859     the fourteen tracking media. Every data card is a real vector of 5
860     elements, that store respectively TMAXFD, STEMAX, DEEMAX, EPSIL and
861     STMIN. These elements are passed to the GSTMED routine call in the
862     GPMED procedure.
863    
864     To implement these cards the following routines and commons have
865     been modified: $GPKEY, $GPDKEY, GPDAT, GPMED, GPFFR. Each data card
866     value is initialized to -1111. in $GPDKEY. These cards are checked
867     for selection in GPMED. If these cards have been set these values
868     override the ones set by the global data cards: TMAX, STMA, DEEM,
869     EPSI, STMI; or the defaults set in GPDAT.
870    
871    
872     6 March 2000, Bari
873     PAW MEMORY incremented in GPCDES:
874     The paw memory has been set to 36.65E6 words, because of the
875     incremented maximum number of hits in the TRD (from 100 to 200).
876    
877     TRD hits increased in GPCDES:
878     The maximum number of hits has been set equal to 200 instead of 100.
879     Like calorimeter, for TRD is no more necessary to modify both the
880     maximum number of hits, in sequence $GPPHIT, and the HBNAME call
881     in GPHBK routine. The CWN block is now booked directly using the
882     maximum number of hit found in the $GPPHIT parameters. If the number
883     of hits is greater than 200, the GPDTRD sets the last hit equal to 201
884     and exit. In this way all the CWN variables corresponding to this hit
885     are null for the TRD.
886    
887     3 March 2000, Bari
888     GPXINT macro modified
889     This macro now save gpamela[grap].f code file instead of a simple
890     gpamela.f . This is to avoid conflicts with the GPEXE macro that
891     create the executable to be used in batch mode. Please note that
892     [grap] is tipically, 99.999% of the time, set to X11.
893    
894     1 March 2000, Bari
895     New DATA CARDS PHI and THETA added:
896     These data cards have been introduced to select a range for
897     the zenith (THETA) and the azimuth (PHI).
898     With these cards the user can override the default values: [0,90]
899     and [0.360] degree, respectively for THETA and PHI, choosing its own
900     maximum and minimum values.
901     If these values are equal the generation is performed at a fixed
902     angle for all the events.
903    
904     No more flat generation on cos**2(THETA)
905     The flat generation on cos**2(THETA) has been deleted in GUKINE.
906    
907     29 feb 2000, Bari
908     HBOOK Filename corrected.
909     The HBOOK user filename, passed via *HBFI card, was
910     incorrect. Unwanted character were added at the end of the
911     string. It has been fixed initializing the data card variable to
912     the null string.
913    
914     MEMORY incremented in GPCDES:
915     The memory of paw and geant have been increased to process
916     electrons of 200 GeV, both for interactive and not-interactive
917     case. In particular, the geant memory is set now to 3500000 words
918     and the paw memory to 35.42E6 words. This increment is taking into
919     account the augmented number of hits for the calorimeter (It is now
920     possible to store an hit for each of the 4224 calorimeter
921     channels).
922    
923     Calorimeter hits increased in GPCDES:
924     To store all hits produced in the calorimeter, its maximum number
925     of hits has been set equal to its number of channels (4224). For
926     this detector is no more necessary to modify both the maximum
927     number of hits, in sequence $GPPHIT, and the HBNAME call in GPHBK
928     routine. The CWN block is now booked directly using the maximum
929     number of hit found in the $GPPHIT parameters.
930    
931     Insufficient number of bits for variable CASI in GPSED:
932     The number of bits in which to pack the copy number of volume CASI is
933     now 4 instead of 3.
934    
935     S4 hit structure modified.
936     Because of its position S4 was overwhelmed by particles produced in
937     the calorimeter. This caused an abnormal use of memory, for this
938     detector, having to store a number of hits larger than the
939     maximum. Now S4 hits are stored in a calorimeter-like fashion using
940     the GSCHIT routine instead of the GSAHIT one. This forces the
941     number of hit to one and sums up just the energy released into the
942     scintillator. For this purpose also the position of the energy
943     released variable has been changed placing it at the end of the hit
944     record.
945     24 FEB 2000, BARI
946     Paolo "bachetto" fixed
947     In GPDTRD the "filling" index INDEX has been substituted with I.
948    
949     IRUN and IEVNT increment
950     These variables were not incremented. Now they are set initially in
951     GPDAT; initial value is the one set by RUNG GEANT general data
952     card. IEVNT is then incremented into GUTREV at the beginning of
953     each new event. IRUN is left untouched.
954    
955     23 Feb 2000, Bari
956     New data card GEN enabled.
957     Data card GEN was implemented but not enabled ..... (See 20
958     Mar. 1997 notes) It has been enabled now setting XYZGEN vector to
959     -1111 in the $GPDKEY data declaration sequence for $GPKEY
960     common. In GPDAT it will check if these values have been
961     overwritten by the GEN data card and take appropriate action in
962     GUKINE.
963    
964     15 Feb 2000, Bari
965     ::::::::> VERSION NUMBER UPDATED <::::::::
966     The version number has been updated in its release part: 1.02/00, is the
967     actual version.
968    
969     11 Feb 2000, Bari
970     Changes in TRD geometry. GPTRDV modified.
971    
972     1. Now TRSO is inside TRSI. For this, the external radius of
973     TRSI has been set equal to the external radius of TRSO. Data
974     assignment in GPGEO modified.
975     2. Each TRBS volume (the Trd Boxes for Sraw Tubes) has been shifted
976     to avoid dead spaces between two adjacent modules.
977     For this, the two lateral TRBS boxes of the planes with 3 modules have
978     been shifted of one TRSI radius, the central boxes of the planes with
979     4 modules have been shifted of an half radius while the lateral
980     boxes have been shifted of 3/2 radius.
981    
982     Subroutine GSCHIT modified in GPUCAL
983     There was an error. All the quantities were cumulatively summed up
984     instead of just the energy. This caused a missalignment of the hits.
985     Now just the energy is summed up.
986    
987     19 Gen. 1999, Bari
988     Paolo "bachetto" fixed
989     In GPDSPE the "filling" index INDEX has been substituted with I.
990     31 Dec. 1999, Barletta
991     TRD dimensions reviewed
992     The angular pieces have been reviewed. In the actual design they
993     are "L" shaped. Here they are simulated as square piaces 3.5x3.5 cm^2,
994     2mm thick.
995     The TRD virtual box TRDB has been reviewd as well. It is now tall:
996     10 frames plus 11 angular pieces plus one top piece.
997    
998    
999     30 Dec. 1999, Barletta
1000     TRD dimensions reviewed
1001     Based on the original Aereostudi drawings the TRFR volume dimenions
1002     have been reviewd. The frame is 350mm in length, 380mm width, 4mm
1003     tick. The frame itself is 35mm width.
1004     The 32 straw module as an overall length of 361mm, for placement
1005     easiness 360mm has been used.
1006     WARNING: The angle piece is .5mm taller than the module!
1007     Once again 2cm has been used instead of 2.05mm, for easiness.
1008    
1009     5 Nov. 1999, LNGS
1010     GPHBK Modified
1011     The strip number is now 32 instead of 22, the CWN has been modified
1012     accordingly on both long an short version.
1013    
1014     TRD Frames added.
1015     Two new volumes added: TRFR, TRFI. TRFR is the carbon fiber frame,
1016     TRFI is the internal volume. These frames have been added into the
1017     $GPGEO, $GPDGEO definitions and into GPTRDV routine as well.
1018    
1019     22 Oct. 1999, Bari
1020     NEW magnetic field read-out
1021     Instead of a raw binary file the magnetic field has been saved into a
1022     CWN-tplu stored in a RZ file. This guarantees portability between
1023     different OS. In GPDAT the FIELD is read-out from the CWN.
1024    
1025     CWN booking and filling reviewd.
1026     CWN-tplue structure reviewed. All the variable names have been unified
1027     and updated accordingly to the new hit structure.
1028     The CWN fill has been reviewed as well.
1029    
1030     HLON Data card introduced.
1031     To select a more detailed, let's say verbose, CWN-tple a new
1032     card has been introduced. Setting HLON 1, the long version will be
1033     selected.
1034    
1035     PAOLO flag declared OBSOLETE !!!
1036     See the next entry.
1037    
1038     SPE DIGI structure OBSOLETE !!!
1039     The spectrometer DIGI structure has been declared obolete by the author.
1040     Dr. Papini forced Dr. Cafagna to move all the routines: GPSPEHD and GPSDINI,
1041     from the directory GPSPE to the newly created GPOBSOLETE one.
1042     The GPDSPE common has been commented out as well.
1043    
1044     HIT structure reviewed.
1045     Hit structure has been reviewed. For all detectors the volume PAME
1046     and the detector container have been deleted. So the detector
1047     identifier has been reduced by two numbers.
1048     Besides the SPE hit structure has been enlarged adding the IPAR
1049     hit, storing the particle number.
1050     The CALO hit structure has been reduced eliminating the IPA0 and
1051     PA0 hits from the structure.
1052     All the routines and commons pertaning to the hit structure has
1053     been reviewd and updated.
1054    
1055     21 Oct. 1999, Bari
1056     DZSH data card added
1057     A new data card DZSH has been added to adjust the height of the external
1058     shel : SHEL.
1059    
1060     NDET flag changed. SPHE instead of SPHI
1061     The data card NDET 'SPHI' is now obsolete.
1062     The data card NDET 'SPHE' is now used to select spherical or flat
1063     top. Using NDET 'SPHE' one automatically delete the spherical top
1064     and substituted it with a flat one.
1065     TSHE name changed into TFLA
1066     TSHE volume has been named into TFLA. All the subroutines
1067     referring to this volume have been changed accordingly.
1068    
1069     TSHI name changed into TSPH
1070     TSHI volume has been named into TSPH. All the subroutines
1071     referring to this volume have been changed accordingly.
1072    
1073     SHEI deleted
1074     SHEI is no more created neither positioned inside PAMELA.
1075     GPGEO has been modified accordingly, besides the dimensions are
1076     left into the $GPGEO common.
1077    
1078     S4 quote changed
1079     S4 is now automatically positioned underneath the calorimeter box.
1080     ZS4 is calclulated in GPDAT
1081    
1082     CAS dimensions and positions modified
1083     CAS is now a single counter instead of Five.
1084     CAS dimensions modified after PAOLO simulation and Tom design. Here
1085     are the new dimensions:
1086     DATA CASX/15.25,0.55,5*4.6/
1087     DATA CASY/0.55,14.75,5*4.6/
1088     CAS position inside PAMELA has been modified accordingly in GPGEO.
1089    
1090     CAT dimension modified
1091     CAT dimensions modified after PAOLO simulation and Tom design. Here
1092     are the new dimensions:
1093     DATA CATB/22.05,21.05,0.55/
1094     DATA CATL/15.75,6.675,0.55/
1095     DATA CATT/6.3,14.375,0.55/
1096     DATA ZCAT/75.75/
1097    
1098     SC13/4 name modified in SC21/2
1099     SC13/4 name have been changed. So all the occurences of SC13/4 string have
1100     been changed accordingly. This means that also the name of the
1101     volumes, detectos, hits etc. etc. referring to SC13/4 have been changed
1102     in SC21/2
1103    
1104     SC2n name modified in SC3n
1105     SC2n name have been changed. So all the occurences of SC2 string have
1106     been changed accordingly. This means that also the name of the
1107     volumes, detectos, hits etc. etc. referring to SC2n have been changed
1108     in SC2n
1109     .
1110     S14 name modified in S22
1111     S14 name have been changed. So all the occurences of S14 string have
1112     been changed accordingly. This means that also the name of the
1113     volumes, detectos, hits etc. etc. referring to S14 have been changed
1114     to S22.
1115    
1116     S13 name modified in S21
1117     S13 name have been changed. So all the occurences of S13 string have
1118     been changed accordingly. This means that also the name of the
1119     volumes, detectos, hits etc. etc. referring to S13 have been changed
1120     to S21.
1121    
1122     S2n name modified in S3n
1123     S2n name have been changed. So all the occurences of S2 string have
1124     been changed accordingly. This means that also the name of the
1125     volumes, detectos, hits etc. etc. referring to S2n have been changed
1126     to S3n.
1127    
1128     S3 name modified in S4
1129     S3 name have been changed. So all the occurences of S3 string have
1130     been changed accordingly. This means that also the name of the
1131     volumes, detectos, hits etc. etc. referring to S3 have been changed
1132     to S4.
1133    
1134     CALO modified
1135     .....
1136     $GPDGEO modified
1137     Magnet dimensions where wrong !!!!! Internal not bending half
1138     dimension is 6.55cm. External not bending half dimension is
1139     11.4cm. So now:
1140     DATA MGPL/12.,11.4,4.05/
1141     DATA MGPI/8.05,6.55,4.05/
1142     GPGEO mod.
1143     GPGEO has been modified. The TRD doesn't have an external box
1144     anymore. So, volume definitions for TRDS & TRDT have been left in
1145     GPTRDV but they are no more placed into PAME mother volume.
1146     20 Mar. 1997, Bari
1147     GPXINT update
1148     Using an UNIX machine I have update GPXINT to create executable on a
1149     UNIX machine. To be used on alboot I created the WORK kumac.
1150    
1151     #GPAMELA updated
1152     The pilot patchy, *GPAMELA, was updated inserting the GPHYS patchy.
1153    
1154     GPDTOFx routien deleted
1155     The old digitization routine GPDTOFx, x being 'T' 'M' 'B', has been
1156     deleted in the patchy GPTOF.
1157    
1158     CHERENKOV detector deleted
1159     All the GPCHE patchy containing CHERENKOV specific code has been deleted.
1160     All the other routines containing code specific for the Cherenkov
1161     has been updated and the cherenkov code deleted.
1162     Please note that the AEROGEL definitio are still in place.
1163    
1164     NEW GENERATION SURFACE DEFINITION
1165     The generation surface is now definited in GPDAT using the S11
1166     dimentions. New variables have been added to the GPGEO common: XGEN,
1167     YGEN, ZGEN, XDGEN, YDGEN; representing the origin, quote and
1168     dimentions of the generation surface.
1169    
1170     NEW DATA CARD ADDED GEN
1171     With this data card the user can pass all the five above mentioned
1172     geneeration surface variables.
1173    
1174     19 Mar. 1997, Bari
1175     CASD and NCAS data card gone.
1176     This card are no more needed for the calorimeter.
1177    
1178     GPDAT UPDATE
1179     GPDAT has been updated checking the SSTR new data card to look for
1180     new DELTA2 parameter passed.
1181    
1182     CALO user division removed.
1183     It's no more possible to choose between a whole silicon plane or
1184     smaller block.
1185    
1186     18 Mar. 1997, Bari
1187     New PATCH added GPHYS
1188     A new patch has been added GPHYS to store the PHYSICS related routines.
1189    
1190     GFLUCT routine copied from GEANT code
1191     The GFLUCT routine has been copied from the GEANT code. This routine
1192     takes care of the energy fluctuations inside each "physics" routine
1193     in GEANT.
1194    
1195     Gaussian straggling added to the GFLUCT routine
1196     The gaussian straggling has been adedd to the GFLUVT routine. This
1197     routine has been modified adding at the end the Paolo Paini code to
1198     calculate the straggling into the silicons detectors. The DELTA2
1199     parameters needed for the calculation has been retrived from the
1200     JMATE structure.
1201    
1202     NEW CMZ flag added: NOGFLUCT
1203     This new flag select the place in wich the straggling is
1204     calculating. The default is into GFLUCT routine, a GEANT routine
1205     miodified for us. Using this flag the straggling will be selected
1206     into the GPUSPE and GPUCAL routine. This means that is calulated
1207     after each step in a given detector.
1208    
1209     User words added to JMATE structure
1210     The variables needed for the gaussian straggling have been added to
1211     the Silicon material definition for both calorimeter and tracking.
1212    
1213     New data card added: SSTR
1214     SSTR data card added. This word controls the gaussian straggling in
1215     silicon. The first word is the straggling flag, the other two are
1216     the DELTA2 for calorimeter and tracker. See $INFORM for details.
1217    
1218     17 Mar. 1997, Bari
1219     GAUSSIAN straggling added to the calorimeter
1220     The gaussian straggling after the ionization losses has been adedd
1221     to the calorimeter too. Before saving an hit into GPUCAL the
1222     gaussian straggling has been added. This depend on the path in the
1223     silicon also, the PATH variable is stored entering the volume and
1224     the PATH calculated before adding the straggling.
1225    
1226    
1227     Adjusting the DIGI spectrometer structure
1228     The gaussian straggling has been added into the GPUSPE routine when
1229     the particle is leaving the detector: IACT = 3.
1230    
1231     15 Mar. 1997, Bari
1232     NEW hits for CAS and CAT
1233     CAT and CAS hits are now the same as the TOF.
1234     TIME and P0 has been added to the hit structure.
1235     All the routine involved, GPDCAS and CAT, GPUCAS and CAT, GPHBK and
1236     the commons $GPCAS, $GPCAT have been modified, as well.
1237    
1238    
1239    
1240     6-7 Mar. 1997, Bari
1241    
1242     NEW geometry for TRD
1243     TRD geometry has been reviewed. There are no more three different
1244     sets of straw tube, depending on the lenght, but just one
1245     lenght. Besides the box containing the straws and radiator has been
1246     changed. Here is the new geometrical tree:
1247    
1248     MOTHER SUBVOLUME NAME DESCRIPTION
1249     TRDS No subvolume TRD external aluminum shell
1250     TRDT No subvolume TRD TOP and BOTTOM aluminum cover
1251     TRDB TRD Box, internal gas volume
1252     TRBS TRd Box for Sraw, contains the 32
1253     straws and a radiator "pillow" on
1254     top
1255     TRRA TRd RAdiator, just one extra plane
1256     on top of the TRD straw pyramid
1257     TRBD TRSO TRd Straw Out, external mylar straw
1258     tube, 32 volumes placed on two
1259     shifted line
1260     TRRA TRd RAdiator, placed on top of
1261     these two straw layers
1262     TRSO TRSI TRd Straw Internal, internal gas
1263     volume
1264     Please note that the TRBS geometry is now totally changed. The two
1265     straw layers aren't placed on the middle of the volume anymore. They are
1266     placed on the bottom of the TRBS, this to accomodate more easly a
1267     geometry with a double radiator layer on top and no radiator on bottom.
1268    
1269     Sets and detectors definition have been updated with the new structure.
1270    
1271     NEW geometry for the MAGNET
1272     The magnet geometry has been reviewed diminuishing the internal window.
1273    
1274     NEW geometry for CALORIMETER
1275     The calorimeter structure has been "rationalized". All the different
1276     possibilities of having a block or a full plane structure and the
1277     division inside each block, have been thrown away. There is now a
1278     basic block consituted of a 8x12 cm^2 silicon paddle, divided in 22
1279     stripes. This because the three 8x8cm^2 silicon blocks will be bound
1280     with stripes having one and an half lenght of the basic block.
1281    
1282     Besides there are no more X & Y planes but a single plane type that,
1283     once rotated and turned over, plays the role of the Y view plane. This
1284     configuration is more easy to handle for the PAMELA calorimeter case,
1285     where the first plane is just a Y one and the last one a X.
1286    
1287     In detail, the way in wich the geometry for the calorimeter is
1288     calculated and definited:
1289     - The box height is subdivided in NPLAN division
1290     - This height is reduced by the height of the absorber
1291     - The result is divided by two, this represent the height of an active
1292     plane: CAPL
1293     - The calorimeter silicon paddles, CASI are placed into
1294     CAPL.
1295     - The calorimeter box is filled with CASI, rotated and flipped
1296     for Y view, interleaved with the absorber.
1297    
1298     NEW hit added for the calorimeter
1299     The momemtum module has been added as hit for the calorimeter too.
1300     All the routines have been changed consequently.
1301    
1302     NEW geometry for the TRACKER.
1303     The tracker geometry has been changed. In particular the ladder
1304     supports are now two carbon fiber rods placed on the left and right
1305     sided of each ladder. The roacell and kapton plane have been
1306     eliminated.
1307    
1308     NEW parameter for the TRACKER digitization
1309     Paolo updated the tracker DIGIt parameter using the ones calculated on
1310     the basis of the PSI test beam.
1311     Some small bugs in the digitization routines have been fixed as well.
1312    
1313     NEW detectors quote.
1314     Each detector has now the quote from the mechanical drawings. There is
1315     no more autocalculation of these position. In particulare the quotes are:
1316     ZS11 =107.8
1317     ZS12 =106.8
1318     ZS13 =74.9
1319     ZS14 =74.1
1320     ZS21 =27.1
1321     ZS22 =26.3
1322     ZS3 =2.3
1323     ZCAT =75.75
1324     ZTRD =90.55
1325     ZSPEC=50.6
1326     ZCAL =13.05
1327     These are the quote of the MARS of each detectors, means that half
1328     detector height has been added to each quote.
1329    
1330     NEW top shell
1331     The top shell is no more a sphere but is a flat cylinidrical plane.
1332    
1333     NEW variables usefull for the geometry definition
1334     In particular the gep between the top shell and the TRD box is user
1335     definited in the variable GAPTOP.
1336     Is also possible to define the gap between the bottom TRD plane and
1337     the TRD box: GAPTRD.
1338     To keep into count the dead zone at the edge of the calorimeter paddle
1339     is it possible to start subdividing the calorimeter paddle into NCASTR
1340     stripes starting from CASIOFF centimeters from the paddle edge.
1341     Is it also possible to define the number of calo stripes to be used:
1342     NCASTR; and their width:CALSTWID.
1343    
1344     NEW CAS and CAT geometry
1345     The CAT geometry has been reviewed. Just smaller paddle has been used.
1346     The CAS are now placed horizontally.
1347    
1348     NEW Magnetic field map
1349     The new magnet definition has also a new magnetic field that Paolo calculated
1350    
1351     6 Mar. 1997, Bari
1352    
1353     NEW geometry for TOF
1354     The TOF geometry has been updated. The volume name are the same of
1355     the proposal. Besides the paddle structure has been considered with the
1356     carbon fiber planes that should consitute the mechanical structure
1357     of the plane. Each plane but S3 should be composed of N paddle along X
1358     or Y and a top and bottom layer of carbon fiber to stiffen the
1359     structure. For the name we have used the proposal name for the mother box,
1360     the subvolume are named as follow:
1361     MOTHER SUBVOLUME NAME
1362     S11 S11X , Scint paddle
1363     SC11 , Carbon fiber plane
1364     S12 S12Y , Scint paddle
1365     SC12 , Carbon fiber plane
1366     S13 S13X , Scint paddle
1367     SC13 , Carbon fiber plane
1368     S14 S14Y , Scint paddle
1369     SC14 , Carbon fiber plane
1370     S21 S21Y , Scint paddle
1371     SC21 , Carbon fiber plane
1372     S22 S22X , Scint paddle
1373     SC22 , Carbon fiber plane
1374     S3 No subvolumes
1375    
1376     Please note that we saved the direction of measurement for the paddle name.
1377     The S3 is leaved as a big scint paddle without any segmentation.
1378     The number of paddle for each plane has been added into the common. So the
1379     variables: NS11X,NS12Y,NS13X,NS14Y,NS21Y,NS22X; contain the number of each
1380     Snnd (nn: number, d: direction) detector for each plane.
1381     The $GPGEO sequence has been changed accordingly.
1382     Please note that the Snnd volume dimention are automatically calculated
1383     using the Snn, SCnn dimentions and the number of paddle to be positioned
1384     inside the Snn. As usual these calculation are preformed in GPDAT.
1385     The quote for each Snn has been added into the GPGEO common as well.
1386    
1387     HIT and CWN revised for TOF
1388     The time of flight and momentum infos for the tracking particles have
1389     been added. The routine GPUTOF has a new input variable with the
1390     time-of-flight, this quantities has been added as hit no. 8. The module
1391     of the momentum has been added as hit no. 10. This is taken directly
1392     from the VECT array in GPUTOF. The TOF structure is now:
1393     DATA CHTOF/'XAVE','YAVE','ZAVE','XOUT','YOUT','ZOUT',
1394     + 'EREL','TIME','PATH','IPAR','P0 '/
1395    
1396     The CWN booking and filling has been revised as well. In particulare
1397     the CWN variables for TOF block have been merged into a big vector
1398     contining all the TOF hits infos.
1399    
1400     The GPDTOF routine has been created from the previous separated
1401     routine used for TOFT, TOFM, TOFB. This routine is now just filling in
1402     the CWN variables.
1403    
1404     28 May. 1996, Bari
1405     BUG FIXED IN GPUSED
1406     The Paolo's stragling was not activated because the code checked on IFL
1407     variable instead of IMEC one. Fixed.
1408    
1409     27 May. 1996, Bari
1410     ::::::::> VERSION NUMBER UPDATED <::::::::
1411     The version number has been updated in its level part: 1.01/01, is the
1412     actual version.
1413     22 May. 1996, Bari
1414     ::::::::> VERSION NUMBER UPDATED <::::::::
1415     The version number has been updated in its release part: 1.01/00, is the
1416     actual version.
1417     2 May - 22 May 1996, Bari
1418     BUG FIXED IN CREAGPXINT.COM
1419     The CREATE command in this OPEN-VMS command file was used after an IF
1420     statements on a new line, this caused the command to wait for a Ctrl-Z to
1421     exit, hunging up all the procedure.
1422     TWO NEW KUMACS ADDED
1423     To facilitate the GPAMELA executable build up two new MACROS have been
1424     added: GPLIB, GPEXE.
1425     The first one creates a GPLIB.OLB file containing all the GPAMELA routines
1426     but GPMAIN.
1427     The second create a GPAMELA.FOR with GPMAIN and all the routines stored in
1428     the CMZ decklist buffer. If you specify the option USER=Y at the GPEXE
1429     macro it will add all the user's action routines to your buffer. Please note
1430     that this last macro, will create the CREAGP.COM file containing all the dcl
1431     procedures to link GPAMELA, in particular the /INCLUDE option is mandatory in
1432     the link command to avoid the dummy GEANT user routines, i.e. GUKINE, to be
1433     linked instead of the GPAMELA ones.
1434    
1435     CUSTOM STRAGLING ADDED TO GEANT CODE
1436     After a number of test and an "official" confirmation we reach the conclusion
1437     that the GEANT code is not fine tuned for energy stragling in silicon.
1438     Following some references (in particular see: Hall, NIM 220 (1984) 356) Paolo
1439     developed a routine to add ad hoc stragling to the energy released in silicon.
1440     This is at the moment performed in the GPUSPE routine at the hit level.
1441     Before storing the his the routines uses the path length to calculate the
1442     gaussian spread to be used to convolve the usual Landau-like energy loss
1443     distribution.
1444    
1445     SPECTROMETER DIGITIZATION ADDED
1446     Paolo Papini digitization for the spectrometer has been added.
1447     In GPDSPE a call to GPSPEHD performs the digitization of the HIT.
1448     GPSPEHD calculates the charge read out from each strip in both views.
1449     NOTE: Respect to the original Paolo's code the GEANT capability in storing
1450     and retriving the geometrical informations for each detector has been
1451     used. In this way one can change the geometrical definition for the
1452     spectrometer having small or no changes on the digitization code.
1453     You can select the original Paolo's code slecting the option PAOLO.
1454    
1455     GPSTSPE SUBROUTINE UPDATED
1456     For the digitization routine we need to set up special tracking parameters.
1457     The specific routine has been updated with the parameters needed.
1458    
1459     DCUTESITR VARIABLE ADDED TO $GPSITR COMMON
1460     DCUTESITR variable was miss in $GPSITR common added.
1461    
1462     SUBROUTINE GPRHIT UPDATE
1463     GPRHIT routine update to use GPRSHT. The first hit to be red has been added.
1464     All the calls to the GPRHIT routines have been updated as well.
1465    
1466     SUBROUTINE GPRSHT ADDED
1467     This routine allows a hit retrival starting from a specific hit. Basically it
1468     is a modified version of GFHITS with an extra parameter, the first hit to be
1469     started with. It is useful if one needs to retrive the structure hit by hit.
1470    
1471     INTEGER FUNCTION GPNHIT ADDED
1472     An integer function GPNHIT has been added to count the number of hits
1473     stored in the HITS structure for CSET set and CDET detector.
1474    
1475     UGINIT ROUTINE UPDATED
1476     UGINIT routine has been updated to call GPADIGI.
1477    
1478     $GPSPE COMMON AND GPHBK UPDATED
1479     The common /GPSPE/ containing the spectrometer infos passed to the CWN has
1480     been updated with the DIGIT data.
1481     The booking touyine, GPHBK, has been updated as well.
1482    
1483     GPSDINI UPDATED
1484     The GPSDINI routine has been update to use the newly creted commons.
1485     Besides the UDSPE vector contining the digitization user's parameters has
1486     been added, The vector length NUDSPE, i.e. the number of digitzation user's
1487     parameters, has been added as parameter in $GPPDIGI sequence.
1488    
1489     COMMONS $GPDIGI, $GPDDIGI, $GPPDIGI, $GPDSPE, $GPDDSPE, ADDED
1490     The commons $GPDIGI, $GPDDIGI, $GPPDIGI, $GPDSPE, $GPDDSPE have been added.
1491     They contains the DIGI definition and bit length, for each instruments (only
1492     spectrometer filled at the moment), the DATA statements for the GPDIGI
1493     common, the parameters for the DIGI part, the DIGI parameters and quantities
1494     for the spectrometer, the DATA statements for the GPDSPE common.
1495    
1496     USER'S PARAMETERS STORED IN DIGI STRUCTURE
1497     At the moment the following 19 user's parameter have been stored in the DIGI
1498     structure, please note that the conversion factors are store at first, in
1499     this way you can retrive them more easily with GFDETU:
1500     ADCX , Conversion factor charge to ADC channels for X view
1501     ADCY , Conversion factor charge to ADC channels for X view
1502     PIEDX , Pedestal for X view, in ADC channels
1503     PIEDY , Pedestal for Y view, in ADC channels
1504     ENOISX, Noise for X view, in electrons
1505     ENOISY, Noise for Y view, in electrons
1506     NPCHXY, Number of point along X and Y for integeration
1507     NPCHZ , Number of point along Z for integeration
1508     WXSTR , Strip width in X view
1509     WYSTR , Strip width in Y view
1510     D , Silicon height
1511     TVX , Diffusion temperature (Volt), X view
1512     TVY , Diffusion temperature (Volt), Y view
1513     UD , Volt (junction)
1514     UU , Volt (external)
1515     PX1 , C1-x
1516     PX2 , C2-X
1517     PY1 , C1-Y
1518     PY2 , C2-Y
1519    
1520     NEW SUBROUTINE GPSDINI ADDED
1521     GPSDINI routine calculates all the qunatities needed for the spectrometer
1522     digitization routines. It calculates the capacitive coupling integrals and
1523     stores all the digitization constant, 19 at the moment, in the user reserved
1524     bank area in JSET bank.
1525    
1526     NEW SUBROUTINE GPUDIGI ADDED
1527     To manage the user's action in GPADIGI the GPUDIGI subroutine has been
1528     created. It's called at the end of GPADIGI.
1529    
1530     NEW SUBROUTINE GPADIGI ADDED
1531     To manage the DIGI definition for each instrument a new subroutine GPADIGI
1532     has been added. It is similar to GPHIT.
1533     Please note that the name is anomalus, it started with GPA, this is because a
1534     GPDIGI routine is used in GEANT code.
1535    
1536     NEW FUNCTION GPGAUS ADDED
1537     A new real function GPGAUS have been added to generate normal distributed
1538     random number, with unitary standard deviation and centered on zero.
1539    
1540     2 May. 1996, Bari
1541     GPFIL CALL MOVED IN UGINIT SUBROUTINE AND GPDUNIT ADDED
1542     To enable the user file name and LUNIT to be used opening the HBOOK file, the
1543     GPFIL call has been moved after the GFFGO one.
1544     To avoid the user filename to be overwritten, the sequence GPDUNIT has been
1545     moved from GPDAT to UGINIT.
1546    
1547     NEW DATA CARD ADDED. TO MANAGE HBOOK FILE NAME
1548     To define a user HBOOK file name a new data card has been added: HBFI.
1549     The card must be used with an '*' preceding it. The user must specifies the
1550     Logical Unit number to be used.
1551     Please note that the max string length for file name is 80 characters.
1552     This card overwrites the default GPAMELA.HIS name on LUNIT=34. See $INFORM
1553     for card usage.
1554    
1555     30 Apr. 1996, Bari
1556     BUG FIXED IN GUFLD
1557     A bug in GUFLD cause the magnetic filed to be interbolated with steps of 0.5
1558     cm instead of 2cm, along the Z axis. Fixed.
1559    
1560     30 Apr. 1996, Bari
1561     ::::::::> VERSION NUMBER UPDATED <::::::::
1562     The version number has been updated in its level part: 1.00/03, is the actual
1563     version.
1564    
1565     30 Apr. 1996, Bari
1566     USER ACTION IN SOME ROUTINES
1567     A user action has been enabled in several routine via user's dummy routines.
1568     The new routines added are: GPUDAT, GPUFFR, GPUFIL, GPUGEO, GPUHBK, GPUHIT,
1569     GPUINI, GPUKIN, GPULAS, GPUMAT, GPUMED, GPUOUT, GPUSED, GPUSTEP, GPUTRA,
1570     GPUTRE.
1571     The control is passed from the following routines: GPDAT, GPFFR, GPFIL,
1572     GPGEO, GPHBK, GPHIT, UGINIT, GUKINE, UGLAST, GPMAT, GPMED, GUOUT, GPSED,
1573     GUSTEP, GUTRAK, GUTREV.
1574     Routines: GPUKIN, GPUSTEP, GPUTRA, GPUTRE, are called twice in the main
1575     routine. A flag is passed with value 1 or 2 depending on the call sequence.
1576     More detailes in the routines' comment.
1577    
1578     29 Apr. 1996, Bari
1579     GSCIN ROUTINE RENAMED
1580     The GSCIN routine, to set the special tracking parameter for scintilators,
1581     has the same name of an inner GEANT routine, not reported in the manual (!).
1582     This routine has been renamed to GPSCINT now.
1583    
1584     BUG FIXED IN GUSTEP
1585     Sometimes a particle is stopped by GEANT having an energy released in the
1586     step. In GUSTEP the mechanisms LOSS and STOP were looked for in a
1587     complementary way causing mainly a delta ray stopped having an energy release
1588     to not be counted in the hit.
1589     Now a particle is considered for the hit filling if:
1590     1. Ionization present
1591     2. Particle stopped for Electrons (Delta)
1592     3. Ionization present and particle stopped for Electrons (Delta).
1593    
1594     BUG FIXED IN GPHBK
1595     The IMTPAR and IBTPAR were mistyped in defining TOFM and TOFB blocks.
1596    
1597     BUG FIXED IN GPMED
1598     The tracking parameters were not backuped for each material separately.
1599     So if a parameter was changed once the changed one was used in the folowing
1600     calls to GPMED.
1601     Now each parameter has is own tracking parameter set.
1602    
1603     MODS IN GPMED
1604     Now only parameters selected with the AUTM data cards are passed as negative.
1605    
1606     NEW DATA CARDS ADDED
1607     To manage the tracking parameter 6 new data cards have been added:
1608     AUTM, TMAX, STMA, DEMA, EPDI, STMI.
1609     With AUTM is possible to tag tracking parameter for automatic calculation in
1610     GEANT regardless of AUTO value, i.e. they are passed negative to GSTMED.
1611     With the cards TMAX, STMAX, DEMA, EPDI, STMI is possible to pass the value
1612     for the respective tracking parameter: TMAXFD, STEMAX, DEEMAX, EPSIL, STMIN.
1613     (See GEANT manual at CONS200-1).
1614     See $INFO patchy for usage examples.
1615     15 Apr. 1996, Bari
1616     ::::::::> VERSION NUMBER UPDATED <::::::::
1617     The version number has been updated in its level part: 1.00/02, is the actual
1618     version.
1619    
1620     5 Apr. 1996, Bari
1621    
1622     NEW DATA CARD ADDED: HPAK
1623     To select a specific hadronic intercation program a new data card ha been
1624     added: HPAK. Specifing: HPAK 'FLUK'; in your .FFR file, you will select the
1625     FLUKA package for the hadronic interaction.
1626    
1627     USER HADRONIC ROUTINES ADDED
1628     The routines: GUPHAD, GUHADR; have been added into /GPAMELA directory.
1629     These routine are called every time there is an hadronic intercation. Action
1630     to control hadronic process can be performed in these routines.
1631    
1632     BUGS FIXED IN GUKINE
1633     The two +SELF statement required to select the non interactive or debug state
1634     had a bad logic. Fixed.
1635    
1636     BUG FIXED IN GPDCAL
1637     The NUMD1 and NUMV1 vectors, required in case of the NO stripes division,
1638     were declared REAL instead of INTEGER.
1639    
1640     4 Apr. 1996, Bari
1641    
1642     GPDAT UPDATED
1643     The GPDAT routines has been upadate to use the GPLOOK function and the
1644     routines to manage the special tracking parameters. I hope is more clean now.
1645    
1646     NEW SUBROUTINES ADDED.
1647     The following desks have been added: GPAMELA/GPAL,GPAMELA/GPN2G,GPCAL/GPG10,
1648     GPCAL/GPW,GPCAL/GPSICA,GPSPE/GPFE,GPSPE/GPKAP,GPSPE/GPROA,GPSPE/GPCP,
1649     GPSPE/GPSITR,GPTRD/GPTRAD,GPTRD/GPXE,GPTOF/GPSCIN,GPCHE/GPAER.
1650     These to manage the Special tracking parameter for each detector. The user
1651     have to change the parameter in these routines now.
1652    
1653     NEW FUNCTION GPLOOK ADDED
1654     This function is TRUE if a 4 letter string is found into an integer
1655     vector. Is a mask on GLOOK.
1656    
1657     NEW HIT ADDED, PARTICLE NUMBER
1658     To help in studing the interaction inside the TOF, the anticoincidence
1659     detectors and the delta rays productions inside the TRD a new word in the
1660     HITS structures for this detector. It is the particle number.
1661     It is added at the end of the structure. No compression have been requested.
1662    
1663     GPUxxx AND GPDxxx ROUTINES REVIEWED
1664     To accomodate the enlarged hit structure for some detectros the GPUxxx
1665     routines are now called with and extra input word. The CALL sequnece and
1666     the SUBROUTINEs definition have been changed. The change being implemented
1667     on all the GPUxxx routines foreseeing a possible use of the particle numbers
1668     for the other detectors.
1669     Just the GPDxxx routines corresponding to the detector with the new hits
1670     structure have been changerd.
1671    
1672     GPHBK ROUTINE AND $GPTOF, $GPTRD, $GPCAS AND $GPCAT COMMONS UPDATED
1673     The CWN structure has been updated including the id number of the particle
1674     producing the hit. This has been done for TOF, CAT, CAS and TRD detectors.
1675     The common storing the CWN variables have been updated as well.
1676    
1677     3 Apr. 1996, Bari
1678     NEW VOLUME CONTROL ADDED TO NDET DATA CARD
1679     With NDET data card is now possible to eliminate the inner shell, SHEI.
1680     As usual NDET 'SHEI', will cancel the SHEI and TSHI volumes from the
1681     simulation. The $INFORM patchy has been updated as well.
1682    
1683     INNER SHELL ADDED
1684     To simulate the inner shell, to vent PAMELA, proposed by russian guys two
1685     volumes have been added: TSHI, SHEI.
1686     The latter being a tube, having the same height of the external one but
1687     a radius 2cm smaller. The former being a dome sector having the same radius
1688     of the external one but the lower opening angle of just 5degree.
1689     The shells thickness have been set to 0.1cm. As for TSHE case the maximum
1690     theta angle of the spherical sector and its position inside PAME is
1691     calculated on the base of SHEI dimention.
1692    
1693     GEOMETRY REVIEWED
1694     The shell thickness was 1cm, corrected to 0.1cm.
1695     The CAS X&Y positions were calculated on the base of CATB dimentions; they
1696     are now calculated on the base of the CAS dimentions. In this way the
1697     anticoincidence counters are placed around the spectrometer and there is no
1698     uncovered space between them.
1699     The quote of the top tof is now calculated not counting the cherenkov if
1700     this ddetector is not requested.
1701    
1702     2 Apr. 1996, Bari
1703     NEW VOLUME ADDED
1704     The TSHE volume has been added. It's the satellite dome.
1705     At the moment the radius is 130mm. The opening angle is calculated on the
1706     base of SHEL volume dimentions.
1707    
1708     UPDATED GDRAWS ROUTINE ADDED
1709     To draw a spherical sector an updated GDRAWS routine to draw SPHE volume have
1710     been added into /GPAMELA directory. Respect to the standard routine is able
1711     to draw spherical segment.
1712    
1713     28 Mar. 1996, Bari
1714     BUG FIXED IN GPSED
1715     In defining the TRD detectors the TRSn volume mane were used instead of the
1716     actual TBSn to specify the TrdBoxStraw
1717    
1718     BUGS FIXED IN GPDTOFx
1719     In these routines the NTHTPADx variables have been substituted by NTHTOFx.
1720     The latter being the actual variables use to book the CWN-tple.
1721    
1722     BUGS FIXED IN GPHBK
1723     The ERCAT & ERCAS variables where mistyped in ERRCAT & ERRCAS. Bugs fixed.
1724    
1725     BUG FIXED IN GPSED
1726     The bin to be used to store the detector number CASI and CSNW were calculate
1727     from the NCASIX*NCASIY number. The actual number is twice the latter because
1728     we have X & Y view. Now the number of bins is calculated from 2*NCASIX*NCASIY
1729    
1730     27 Mar. 1996, Bari
1731     BUGS FIXED IN GPDxxx
1732     In the GPD routines referring to set zith multiple detector a bug was
1733     found. The hits were read shifted by the number of hits of the previous
1734     detector. This end-up with an abnormal number of zeros, and to the absence
1735     of certain detector numbers.
1736    
1737     25 Mar. 1996, Bari
1738     BUG FIXED IN GUFLD
1739     The GUFLD routine calculate the magnetic field in a volume with all the
1740     coordinates positive, then calculate the actual field mirroing the field
1741     component. To actual position is compared to a grid of not decimal value.
1742     This comparison were made using the actual position value not the absolute
1743     value. This have been fixed now.
1744    
1745     WARNING PRINTOUT IN GPDxxx AND GPRHIT
1746     The warning printouts have been update adding the run and event number, in
1747     the GPDxxx and GPRHIT routine.
1748    
1749     20 Mar. 1996, Bari
1750     COMPILATION WARNING REDUCED
1751     The GPDxxx routine have been modified to avoid IF acting on parameter.
1752     The IF is used to check a remote error on SET and DET definition.
1753     The IF acts on two integer now. This will avoid the compilation warnings.
1754     LINK WARNING REDUCED
1755     More dummy routine added in CRAGPXINT to simulate some MULTINET routines.
1756     The errors now are reducet to one warning linking the no-MULTINET case.
1757    
1758     19 Mar. 1996, Bari
1759     LINK WARNING REDUCED
1760     The CREAGPXINT VMS script has been modified.
1761     The CERNLIB command parameter sequence has been modified and the undefined
1762     symbols errors on PACKLIB reduced to 1 for MULTINET case, and to the MULTINET
1763     related routine to the non multinet one.
1764    
1765     BUG FIND IN GUSTEP IN LOOKING FOR THE MECHANISM ACTIVE
1766     The NAMEC vector in GCTRAK common doesn't contain the "list of the mechanism
1767     name for the current step", as they say, besides just the list of the names.
1768     So you need to look at LMEC vector to have the correct mechanisms active in
1769     the step.
1770    
1771     MANAGMENT OF DELTA RAYS IN GUSTEP
1772     The delta ray were not collected in GUSTE. This because in GUSTEP we look for
1773     an ioniwation only. The energy of the delta is so low that they survive for
1774     justr a couple of step. The first one being a NULL one ( just entering the
1775     volume), in the second one the particle energy falling below threshold so
1776     having just the STOP mechanism active.
1777     Now if there is an electron and a positron and the STOP mechanism is present
1778     the IN varible is set to 2 to force the hit storage.
1779    
1780     BUGS FOUND IN GPDCAL & GPUCAL
1781     In GPDCAL the last hit was retrived from the seventhn word of the vector VHIT
1782     Instead of the fourth.
1783     In GPUCAL the GSCHIT was called with 4 as latest hits to be summed up. This
1784     caused all the 4 hits to be summed up, the correct value for this is 1.
1785    
1786     NEW MATERIAL DEFINITED: SILICON CA
1787     Due to the fact that we can select special parameter in GEANT for each
1788     tracking media, more tracking media cannot refer to the same material.
1789     Infact GEANT will append the special parameter to the material structure. Due
1790     to this two materials have been definited for the tracker and the calorimeter
1791     silicon: SILICON CA, SILICON TR.
1792     The SILICON TR has the number 21 and 22 the other. The tracking media
1793     corresponding to this materials now point to each material separately.
1794     The new material numbers are:
1795     17. Plast. sci: H 50%, C 50% , Rho=1.032 g/cm**3 from P.D.Book
1796     18. G10 : SiO2 60%, Epoxy 40%, Rho=1.7 g/cm**3 from P.D.Book
1797     Epoxy from CRC handbook (Raw estimation)
1798     19. N2 (Gas) : A=14.01, Z=7, Rho=1.25 g/l
1799     20. Silicon TR: A=28.09, Z=14,Rho=2.33 g/cm**3, X0=9.36 from P.D.Book
1800     21. Silicon CA: A=28.09, Z=14,Rho=2.33 g/cm**3, X0=9.36 from P.D.Book
1801     22. Xenon : A=131.29, Z=54,Rho=5.858 g/l, X0=1447.6cm from P.D.Book
1802     23. TRD rad. : Carbon fiber with density 0.060 g/cm**3, used in TS93
1803     24. Aerogel : A=96.11, Z=54 (Comp. n(SiO2)+2n(H2O)), Rho=.2g/cm**3 (Ave.),
1804     X0=150 cm, from P.D.Book
1805    
1806     CALO HITS STRUCTURE CHANGED AGAIN
1807     The calorimeter set 'CAL ' have been definited and two detector in it:
1808     'CAST', 'CASN'. Corresponding to the strip in the plane with and without
1809     tungsten respectively.
1810     The routine GPSED, GPHIT, GUSTEP, GPDCAL have been updated.
1811    
1812     TRD GEOMETRY UPDATED
1813     The TRD has a new geometry. There are three different straw lenghts.
1814     Besides the 32 straws set are 6x4, 5x4, 4x4, starting from the top.
1815     So the volume TRBS, TRSO, TRSI, TRRA have been deleted and the TBSx, TSOx,
1816     TSIx, TRAx (x being 1,2,3 respectively) have been created.
1817     The set structure has been revised as well. The set 'TRD ' has been left
1818     but tree detector have been definited for this set.
1819     The corresponding identifier in /GPSED/ common have been created.
1820     The routines GPTRDV, GPDTRD, GPSED, GPHIT have been updated to the new
1821     geometry.
1822    
1823     14 Mar. 1996, Bari
1824     TRACKING MEDIA PARAMETER UPDATED FOR SICA, W AND G10 MEDIA
1825     The tracking media parameter STEMAX has been set to .5 for SICA and .15 for W
1826     and G10 following the M. Masini & M.P. De PAscale suggestion.
1827    
1828     CHANGES IN GPTMED ROUTINE
1829     To allow the automatic calculation of non critical parameters for tracking
1830     media, the tracking media default value, initialized in GPDAT, have been
1831     turned to negative value. In this way they are automatically calculated by
1832     GEANT also if you select AUTO 0.
1833    
1834     DATA CARD SPTM ADDED TO MANAGE SPECIAL TRACKING PARAMETER
1835     To manage the special tracking parameter definition the SPTM card have been
1836     added. As usual specifying a tracking material as data card argument will
1837     force an action in GPDAT. Here the SPTM data words are scanned and the
1838     parameter for the selected medium are changed.
1839     SPTM option are: 'AL ', 'G10 ', 'N2G ', 'W ', 'FE ', 'KAP ', 'TRAD',
1840     'ROA ', 'CP ', 'SCIN', 'SICA', 'SITR', 'XE ', 'AER '.
1841     NOTE: The parameter must been CHARACTER*4
1842    
1843     SPECIAL TRACKING PARAMETER MANAGEMENT
1844     To manage different settings of tracking parameter specialized for each
1845     tracking media a routine has been added: GPSPTM; and a common as
1846     well:/GPSPTM/. (In //GPAMELA/GPAMELA and //GPAMELA/GPCDES respectivelly)
1847     In the sequence $GPDSPTM all the available GEANT tracking media parameter are
1848     initializated to -111., for all the 14 media definited in GPAMELA.
1849     In GPDAT these parameter are changed. In GPSPTM the GSTPAR GEANT routine is
1850     called only if the corrisponding parameter to be changed is different from
1851     -111.
1852     For the moment only the SICA and W media has been changed following M. Masini
1853     & M.P. De Pascale suggestions.
1854    
1855     13 Mar. 1996, Bari
1856     HOUSEKEEPING OF CALO ROUTINES
1857     Some bugs were found into GPCALV. The Y view plane is now rotated,
1858     wasn't before.
1859    
1860     CHERENKOV DETECTOR MOVED
1861     The CHE variable has been forced to FALSE in GPDAT. This will cause
1862     the skiping of all the CHE definition.
1863    
1864     MAX NUMBER OF HITS CHANGED
1865     The max number of hits to be retrived for each detector is changed.
1866     It's no more the same but the calorimeter, now the GPPHIT sequence
1867     contains the NHMxxx parameter, xxx being the detector name. Thie paremeter
1868     is used in the corresponding GPDxxx routine and stored into the generic NHM
1869     variable.
1870     The CWN definition in GPHBK routine has been changed accordingly.
1871    
1872     CALO HITS STRUCTURE CHANGED
1873     GEANT doesn't understand if two detector with the same name depend from
1874     sets. It just doesn't consider them detectors. This is the case for CASI or
1875     CAST in CAL and CANW.
1876     Now a new detector has been introduced CANW to describe the NO tungsten
1877     calorimeter plane case.
1878    
1879     12 Mar. 1996, Bari
1880     HCNW DATA CARD ADDED
1881     A data card to control the CWN booking and filling has been added.
1882     HCWN 1
1883     will enable the CWN booking and filling of the group corresponding to the
1884     detector in use.
1885     This measn that the CWN will not be enable for the detector deleted with the
1886     NDET card.
1887     The DATA card check is performed in GPDAT. The UGINIT, GPHB, GUOUT, UGLAST
1888     routines has been updated considering this new data card.
1889    
1890     THE NCWN PARAMETER ADDED.
1891     The CWN number is now passed into a parameter filled up in the sequence
1892     GPPNTP. This sequence contains the record size and the number of the standard
1893     n-tple. The routine the n-tpla is called from are been updated as well, i.e.
1894     GPHBK, GPOUT.
1895    
1896     SPETCROMETER DIMENTIONS CHANGED
1897     Following Paolo I have changed some magnet and tracker ladders dimentions.
1898     Here follow the changes:
1899     SPEB/12.1,11.6,0./,MGPL/12.1,11.6,4./,MGPI/8.1,7.1,4./,TRPB/12.1,11.6,0.4/
1900     TRPL/8.,7.,0.4/,TRSL/0.,7.,0./,TSPA/0.,3.5,0.015/,TSKP/2.6666,7.,0.0025/
1901     TRCP/8.,7.,0.015/,TRRP/8.,7.,0.25/,NTRSL/3/
1902    
1903     11 Mar. 1996, Bari
1904     HITS STRUCTURE FILL UP CHANGED
1905     The HIT structure is now filled only if there is an ionization loss into the
1906     corresponding detector.
1907     The SAVE logical ha been added to all the GPUxxx routines. This is switched
1908     TRUE if an ionization has been encountered.
1909     This action to avoid the gamma to be counted.
1910    
1911     MAGNET DIMENTIONS UPDATED
1912     The magnet dimentions have been updated following Paolo Papini update.
1913     Here are the new dimentions: SPEB/12.1,11.6,0./,MGPL/12.1,11.6,4./,
1914     MGPI/8.1,7.1,4./,TRPB/12.1,11.6,0.35/
1915    
1916     28 Feb. 1996, Bari-Rome
1917     REVIEW OF THE HITS RETRIVAL PROCEDURE
1918     The GIUDIGI routine has been created. There is a call for each instrument.
1919     The corresponding routines are named GPDxxx, xxx being the detector name.
1920     Each routine simply call GPRHIT, a genral pourpuse routine that retrives the
1921     hit structure corresponding to the IS-th and ID-th set and detector.
1922     Each routine needs the GPRHIT sequence containing the arrays to be passed to
1923     the GPRHIT routine.
1924     The GPPHIT sequence has been updated adding new parameter to fiw the maximum
1925     number of hits to be read for each detector.
1926     The GPHBK routine has been changed accordingly.
1927    
1928     21 Feb. 1996, Bari
1929     CHANGE IN CAL HIT STRUCTURE
1930     After the GPAMELA meeting in Bari, the CAL hist structure have been reduced.
1931     Due to the great number of tracks we will be deling with following an e.m.
1932     shower, is it convinient to have just the XYZ coordinates of the origin of
1933     the detector, i.e. the strip, instead of the IN and OUT coord.
1934     The Path lenght is meaningless as well.
1935    
1936     GPHBK UPDATES & HBOOK CWN SEQUENCE ADDED
1937     The GPTOFT, GPTOFM, GPTOFB, GPCHE, GPTRD, GPCAT, GPCAS, GPSPE, GPCAL
1938     sequences have been added. These commons conting the variable to be stored
1939     into the standard CWN ntple filled by GPAMELA.
1940     The GPHBK routine have been updated accordling, both INTER and -INTER cases
1941     have been considered.
1942    
1943     20 Feb. 1996, Bari
1944     NEW SEQUENCES ADDED.
1945     THE GPCDES/$GPUNIT & $GPDUNIT, have been added.
1946     The commons contining the logical unit numbers and the file name for all the
1947     files open from GPAMELA have been stored.
1948    
1949     16 Feb. 1996, Bari
1950     MAGNETIC FIELD ADDED
1951     The GPFIELD patchy has been added. The GUFLD routine as well.
1952     This routine call FIN3 to interpolated the mangetic field value red from the
1953     GPFIELD.MAP. This file is red into GPDAT routine, it's opened into GPFIL and
1954     closed in GULAST.
1955    
1956     13 Feb. 1996, Bari
1957     CALO DIVISION AND CONTROL CARD ADDED
1958     To create calorimeter divisions a DATA CARD word is checked. Using:
1959     GEOM 'DCAL'
1960     will force the CALDIV variable in /GPKEY/ to TRUE and the CASI detector,
1961     CAlorimeter SIlicon paddle, will be divided into NCALSTR division along X
1962     axis.
1963     The new volume will be called CAST, CAlorimeter STrip.
1964    
1965     12 Feb. 1996, Bari
1966     NEW VOLUME ADDED
1967     To correctly simulate the aluminium shell the SHEL volume has been added with
1968     the previous PAME dimention. The PAME volume is now a full tube filled uo
1969     with nitrogen.
1970    
1971     8 Feb. 1996, Bari
1972     NEW CALORIMETER GEOMETRY
1973     After the PAMELA week in Dec. 95 the calorimeter geometry has been changend.
1974     No more two silicon layer glued back to back and place into a ceramic support
1975     but a sandwich of two G10 planes interleaved with a radiator, tungsten, plate
1976     supports two planes of silicon "chips". The Y view is place on the top of
1977     this layer and the X on the back. This simplifies the calorimeter geometry
1978     gratly. It is now definited just one volume, CASI, for the silicon 6x6 cm^2
1979     chip. These volumes are place on the top and back sandwich plane into che
1980     CAPL volume that simulate a clorimeter plane.
1981     Due to the still indefined number of chips for each plane two variable, NCISX
1982     and NCISY, have been definited to fix the number of si chips along X and Y
1983     dimentions respectively. The CAPL, CALB volume dimentions are calculate
1984     accordling. Besides the variable DCASIX & DCASIY have been introduced to take
1985     care of the distance between two chip along X and Y view.
1986    
1987     CAS VARIABLE NAME CHANGED
1988     The name of the vector with the side anticoincidence counters, CAS, have been
1989     changed from CAS to CASP
1990    
1991     NEW ROUTINES FOR CAS AND CAT GEOMETRY DEFINITION
1992     The CAT and CAS, anticoincidence counters, volume definition have been moved
1993     from GPTOFV routine to GPCATV and GPCASV, brand new routines. In this way is
1994     much more easy to exclude these detectors from the simulation (see NEW KEY
1995     "NDET" DEFINITED note).
1996    
1997     NEW KEY "NDET" DEFINITED
1998     A new user data card has been definited: NDET.
1999     Its action is to exclude single detector from the simulation.
2000     It has 7 values: TOF, CHE, TRD, CAT, CAS, SPE, CAL.
2001     NOTE. This has to be character*4 !!!!!!
2002     Usage:
2003     NDET 'TOF ' 'SPE '
2004     the previous line in the DATA CAD file, will exclude from the simulation the
2005     TOF, TOP, MIDDLE and BOTTOM ones, and the whole spectrometer, i.e. silicon
2006     ladders and magnet planes.
2007     Please note, for the SPE case the magnetic field is not excluded, the MAGN
2008     data card is responsible for switching on or off the magnetic field.
2009    
2010     7 Feb. 1996, Bari
2011     MATERIAL AND TRACKING MEDIA ADDENDUM
2012     More material definited and tracking media correspondly.
2013     For general comment see the 6th of Feb. HISTORY.
2014     Please note, for the moment the KAPTON, ROACELL and CARBON FIBER materials
2015     are substituted by scintillator.
2016     Here follows the updated list:
2017    
2018     17. Plast. sci: H 50%, C 50% , Rho=1.032 g/cm**3 from P.D.Book
2019     18. G10 : SiO2 60%, Epoxy 40%, Rho=1.7 g/cm**3 from P.D.Book
2020     Epoxy from CRC handbook (Raw estimation)
2021     19. N2 (Gas) : A=14.01, Z=7, Rho=1.25 g/l
2022     20. Silicon : A=28.09, Z=14,Rho=2.33 g/cm**3, X0=9.36 from P.D.Book
2023     21. Xenon : A=131.29, Z=54,Rho=5.858 g/l, X0=1447.6cm from P.D.Book
2024     22. TRD rad. : Carbon fiber with density 0.060 g/cm**3, used in TS93
2025     23. Aerogel : A=96.11, Z=54 (Comp. n(SiO2)+2n(H2O)), Rho=.2g/cm**3 (Ave.),
2026     X0=150 cm, from P.D.Book
2027    
2028     The left numbers are the materiale namber has declared to GEANT.
2029    
2030     Tracking media:
2031     Not sensitive:
2032     1. ALUMINIUM
2033     2. G10
2034     3. N2 GAS
2035     4. TUNGSTEN
2036     5. IRON
2037     6. KAPTON
2038     7. TRD RADIATOR
2039     8. ROACELL
2040     9. CARBON FIBER
2041    
2042     Sensitive:
2043     10. SCINTILLATOR
2044     11. SICALO
2045     12. SITRACKER
2046     13. XENON
2047     14. AEROGEL
2048    
2049     6 Feb. 1996, Bari
2050     NEW GEOMETRY DEFINITION
2051     After the PAMELA week the geometrical structure of the tracker has been
2052     modified. Is now possible to select the number of silicon paddle to be placed
2053     into a silicon ladder. The dimentions are scaled accordling. Change the
2054     NTRSL variable initialization into the deck //GPAMELA/GPCDES/GPDGEO,
2055     containing DATA statement for the geometry.
2056    
2057     MATERIAL AND TRACKING MEDIA DEFINITION
2058     Some material has been definited, namely:
2059    
2060     17. Plast. sci: H 50%, C 50% , Rho=1.032 g/cm**3 from P.D.Book
2061     18. G10 : SiO2 60%, Epoxy 40%, Rho=1.7 g/cm**3 from P.D.Book
2062     Epoxy from CRC handbook (Raw estimation)
2063     19. N2 (Gas) : A=14.01, Z=7, Rho=1.25 g/l
2064     20. Silicon : A=28.09, Z=14,Rho=2.33 g/cm**3, X0=9.36 from P.D.Book
2065     21. Xenon : A=131.29, Z=54,Rho=5.858 g/l, X0=1447.6cm from P.D.Book
2066    
2067     The left numbers are the materiale namber has declared to GEANT.
2068     Tracking media have been definited as well:
2069     Not sensitive:
2070     1. ALUMINIUM
2071     2. G10
2072     3. N2 GAS
2073     4. TUNGSTEN
2074     5. IRON
2075     Sensitive:
2076     6. SCINTILLATOR
2077     7. SICALO
2078     8. SITRACKER
2079     9. XENON
2080    
2081     The numbers are the tracking media ones.
2082     The tracking media parameter has been initialized into GPDAT routine but
2083     EPSIL. This is a critical parameter and define the tracking precision. M.
2084     Boezio suggested to set it as 1% of the volume thickness. This is way this
2085     parameter is set directly into GPMED routine, where the tracking media are
2086     definited. Please note that for the aluminium the value of 10 microns have
2087     been used.
2088     Here there are the tracking parameter used as user default:
2089     FIELDM = 40.
2090     TMAXFD = 1.
2091     STEMAX = 100.
2092     DEEMAX = 0.05
2093     STMIN = 0.0005
2094     The FFIELD variable, switching ON or OFF the magnetic field, is definited via
2095     the DATA card MAGN
2096    
2097     28 Nov. 1995, Gran Sasso
2098     FILE ORGANIZATION
2099     The CMZ file GPAMELA has been created. The overall structure of $HISTORY,
2100     $INFORM, $VERSION and the pilot patchy *GPAMELA has been created.

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