| 1 | SUBROUTINE START
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| 2 |
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| 3 | C-----------------------------------------------------------------------
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| 4 | C START
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| 5 | C
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| 6 | C PERFORMS INITIALISATIONS AND CHECKS AT THE BEGINNING OF RUN.
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| 7 | C CALLS DATAC TO READ IN DATA CARDS.
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| 8 | C CHECKS AND INITIALIZES SELECTED HADRONIC INTERACTION MODEL.
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| 9 | C THIS SUBROUTINE IS CALLED FROM MAIN
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| 10 | C
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| 11 | C REDESIGN: J. KNAPP IK1 FZK KARLSRUHE
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| 12 | C-----------------------------------------------------------------------
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| 13 |
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| 14 | IMPLICIT NONE
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| 15 | *KEEP,AIR.
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| 16 | COMMON /AIR/ COMPOS,PROBTA,AVERAW,AVOGAD
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| 17 | DOUBLE PRECISION COMPOS(3),PROBTA(3),AVERAW,AVOGAD
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| 18 | *KEEP,ANNI.
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| 19 | COMMON /ANNI/ CAN,CANN
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| 20 | DOUBLE PRECISION CAN(50),CANN(50)
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| 21 | *KEEP,ATMOS.
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| 22 | COMMON /ATMOS/ AATM,BATM,CATM,DATM
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| 23 | DOUBLE PRECISION AATM(5),BATM(5),CATM(5),DATM(5)
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| 24 | *KEEP,ATMOS2.
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| 25 | COMMON /ATMOS2/ HLAY,THICKL
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| 26 | DOUBLE PRECISION HLAY(5),THICKL(5)
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| 27 | *KEEP,BUFFS.
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| 28 | COMMON /BUFFS/ RUNH,RUNE,EVTH,EVTE,DATAB,LH
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| 29 | INTEGER MAXBUF,MAXLEN
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| 30 | PARAMETER (MAXBUF=39*7)
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| 31 | PARAMETER (MAXLEN=12)
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| 32 | REAL RUNH(MAXBUF),EVTH(MAXBUF),EVTE(MAXBUF),
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| 33 | * RUNE(MAXBUF),DATAB(MAXBUF)
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| 34 | INTEGER LH
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| 35 | CHARACTER*4 CRUNH,CRUNE,CEVTH,CEVTE
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| 36 | EQUIVALENCE (RUNH(1),CRUNH), (RUNE(1),CRUNE)
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| 37 | EQUIVALENCE (EVTH(1),CEVTH), (EVTE(1),CEVTE)
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| 38 | *KEEP,CONST.
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| 39 | COMMON /CONST/ PI,PI2,OB3,TB3,ENEPER
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| 40 | DOUBLE PRECISION PI,PI2,OB3,TB3,ENEPER
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| 41 | *KEEP,DPMFLG.
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| 42 | COMMON /DPMFLG/ NFLAIN,NFLDIF,NFLPI0,NFLCHE,NFLPIF,NFRAGM
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| 43 | INTEGER NFLAIN,NFLDIF,NFLPI0,NFLCHE,NFLPIF,NFRAGM
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| 44 | *KEEP,EDECAY.
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| 45 | COMMON /EDECAY/ CETA
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| 46 | DOUBLE PRECISION CETA(5)
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| 47 | *KEEP,ELABCT.
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| 48 | COMMON /ELABCT/ ELCUT
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| 49 | DOUBLE PRECISION ELCUT(4)
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| 50 | *KEEP,ETHMAP.
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| 51 | COMMON /ETHMAP/ ECTMAP,ELEFT
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| 52 | DOUBLE PRECISION ECTMAP,ELEFT
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| 53 | *KEEP,KAONS.
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| 54 | COMMON /KAONS/ CKA
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| 55 | DOUBLE PRECISION CKA(80)
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| 56 | *KEEP,MAGNET.
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| 57 | COMMON /MAGNET/ BX,BZ,BVAL,BNORMC,BNORM,COSB,SINB,BLIMIT
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| 58 | DOUBLE PRECISION BX,BZ,BVAL,BNORMC
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| 59 | REAL BNORM,COSB,SINB,BLIMIT
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| 60 | *KEEP,MUMULT.
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| 61 | COMMON /MUMULT/ CHC,OMC,FMOLI
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| 62 | DOUBLE PRECISION CHC,OMC
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| 63 | LOGICAL FMOLI
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| 64 | *KEEP,MUPART.
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| 65 | COMMON /MUPART/ AMUPAR,BCUT,CMUON,FMUBRM,FMUORG
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| 66 | DOUBLE PRECISION AMUPAR(14),BCUT,CMUON(11)
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| 67 | LOGICAL FMUBRM,FMUORG
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| 68 | *KEEP,NCSNCS.
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| 69 | COMMON /NCSNCS/ SIGN30,SIGN45,SIGN60,SIGO30,SIGO45,SIGO60,
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| 70 | * SIGA30,SIGA45,SIGA60,PNOA30,PNOA45,PNOA60,
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| 71 | * SIG30A,SIG45A,SIG60A
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| 72 | DOUBLE PRECISION SIGN30(56),SIGN45(56),SIGN60(56),
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| 73 | * SIGO30(56),SIGO45(56),SIGO60(56),
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| 74 | * SIGA30(56),SIGA45(56),SIGA60(56),
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| 75 | * PNOA30(1540,3),PNOA45(1540,3),PNOA60(1540,3),
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| 76 | * SIG30A(56),SIG45A(56),SIG60A(56)
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| 77 | *KEEP,NKGI.
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| 78 | COMMON /NKGI/ SEL,SELLG,STH,ZEL,ZELLG,ZSL,DIST,
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| 79 | * DISX,DISY,DISXY,DISYX,DLAX,DLAY,DLAXY,DLAYX,
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| 80 | * OBSATI,RADNKG,RMOL,TLEV,TLEVCM,IALT
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| 81 | DOUBLE PRECISION SEL(10),SELLG(10),STH(10),ZEL(10),ZELLG(10),
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| 82 | * ZSL(10),DIST(10),
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| 83 | * DISX(-10:10),DISY(-10:10),
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| 84 | * DISXY(-10:10,2),DISYX(-10:10,2),
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| 85 | * DLAX (-10:10,2),DLAY (-10:10,2),
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| 86 | * DLAXY(-10:10,2),DLAYX(-10:10,2),
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| 87 | * OBSATI(2),RADNKG,RMOL(2),TLEV(10),TLEVCM(10)
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| 88 | INTEGER IALT(2)
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| 89 | *KEEP,OBSPAR.
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| 90 | COMMON /OBSPAR/ OBSLEV,THCKOB,XOFF,YOFF,THETAP,PHIP,
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| 91 | * THETPR,PHIPR,NOBSLV
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| 92 | DOUBLE PRECISION OBSLEV(10),THCKOB(10),XOFF(10),YOFF(10),
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| 93 | * THETAP,THETPR(2),PHIP,PHIPR(2)
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| 94 | INTEGER NOBSLV
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| 95 | *KEEP,PAM.
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| 96 | COMMON /PAM/ PAMA,SIGNUM
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| 97 | DOUBLE PRECISION PAMA(6000),SIGNUM(6000)
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| 98 | *KEEP,PARPAR.
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| 99 | COMMON /PARPAR/ CURPAR,SECPAR,PRMPAR,OUTPAR,C,
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| 100 | * E00,E00PN,PTOT0,PTOT0N,THICKH,ITYPE,LEVL
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| 101 | DOUBLE PRECISION CURPAR(14),SECPAR(14),PRMPAR(14),OUTPAR(14),
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| 102 | * C(50),E00,E00PN,PTOT0,PTOT0N,THICKH
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| 103 | INTEGER ITYPE,LEVL
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| 104 | *KEEP,PARPAE.
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| 105 | DOUBLE PRECISION GAMMA,COSTHE,PHI,H,T,X,Y,CHI,BETA,GCM,ECM
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| 106 | EQUIVALENCE (CURPAR(2),GAMMA), (CURPAR(3),COSTHE),
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| 107 | * (CURPAR(4), PHI ), (CURPAR(5), H ),
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| 108 | * (CURPAR(6), T ), (CURPAR(7), X ),
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| 109 | * (CURPAR(8), Y ), (CURPAR(9), CHI ),
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| 110 | * (CURPAR(10),BETA), (CURPAR(11),GCM ),
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| 111 | * (CURPAR(12),ECM )
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| 112 | *KEEP,PRIMSP.
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| 113 | COMMON /PRIMSP/ PSLOPE,LLIMIT,ULIMIT,LL,UL,SLEX,ISPEC
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| 114 | DOUBLE PRECISION PSLOPE,LLIMIT,ULIMIT,LL,UL,SLEX
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| 115 | INTEGER ISPEC
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| 116 | *KEEP,RANDPA.
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| 117 | COMMON /RANDPA/ FAC,U1,U2,RD,NSEQ,ISEED,KNOR
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| 118 | DOUBLE PRECISION FAC,U1,U2
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| 119 | REAL RD(3000)
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| 120 | INTEGER ISEED(103,10),NSEQ
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| 121 | LOGICAL KNOR
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| 122 | *KEEP,RANGE.
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| 123 | COMMON /RANGE/ CC
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| 124 | DOUBLE PRECISION CC(20)
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| 125 | *KEEP,RECORD.
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| 126 | COMMON /RECORD/ IRECOR
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| 127 | INTEGER IRECOR
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| 128 | *KEEP,RUNPAR.
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| 129 | COMMON /RUNPAR/ FIXHEI,THICK0,HILOECM,HILOELB,
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| 130 | * STEPFC,NRRUN,NSHOW,PATAPE,MONIIN,
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| 131 | * MONIOU,MDEBUG,NUCNUC,
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| 132 | * CETAPE,
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| 133 | * SHOWNO,ISHW,NOPART,NRECS,NBLKS,MAXPRT,NDEBDL,
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| 134 | * N1STTR,MDBASE,
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| 135 | * DEBDEL,DEBUG,FDECAY,FEGS,FIRSTI,FIXINC,FIXTAR,
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| 136 | * FIX1I,FMUADD,FNKG,FPRINT,FDBASE
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| 137 | * ,GHEISH,GHESIG
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| 138 | COMMON /RUNPAC/ DSN,HOST,USER
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| 139 | DOUBLE PRECISION FIXHEI,THICK0,HILOECM,HILOELB
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| 140 | REAL STEPFC
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| 141 | INTEGER NRRUN,NSHOW,PATAPE,MONIIN,MONIOU,MDEBUG,NUCNUC,
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| 142 | * SHOWNO,ISHW,NOPART,NRECS,NBLKS,MAXPRT,NDEBDL,
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| 143 | * N1STTR,MDBASE
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| 144 | INTEGER CETAPE
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| 145 | CHARACTER*79 DSN
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| 146 | CHARACTER*20 HOST,USER
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| 147 |
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| 148 | LOGICAL DEBDEL,DEBUG,FDECAY,FEGS,FIRSTI,FIXINC,FIXTAR,
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| 149 | * FIX1I,FMUADD,FNKG,FPRINT,FDBASE
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| 150 | * ,GHEISH,GHESIG
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| 151 | *KEEP,STACKF.
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| 152 | COMMON /STACKF/ STACK,STACKP,EXST,NSHIFT,NOUREC,ICOUNT,NTO,NFROM
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| 153 | INTEGER MAXSTK
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| 154 | PARAMETER (MAXSTK = 12*340*2)
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| 155 | DOUBLE PRECISION STACK(MAXSTK)
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| 156 | INTEGER STACKP,EXST,NSHIFT,NOUREC,ICOUNT,NTO,NFROM
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| 157 | *KEEP,STRBAR.
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| 158 | COMMON /STRBAR/ CSTRBA
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| 159 | DOUBLE PRECISION CSTRBA(11)
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| 160 | *KEEP,VERS.
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| 161 | COMMON /VERS/ VERNUM,MVDATE,VERDAT
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| 162 | DOUBLE PRECISION VERNUM
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| 163 | INTEGER MVDATE
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| 164 | CHARACTER*18 VERDAT
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| 165 | *KEEP,VENUS.
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| 166 | COMMON /VENUS/ ISH0,IVERVN,MTAR99,FVENUS,FVENSG
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| 167 | INTEGER ISH0,IVERVN,MTAR99
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| 168 | LOGICAL FVENUS,FVENSG
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| 169 | *KEEP,CEREN3.
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| 170 | COMMON /CEREN3/ CERCNT,DATAB2,LHCER
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| 171 | INTEGER MAXBF2
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| 172 | PARAMETER (MAXBF2 = 39 * 7)
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| 173 | DOUBLE PRECISION CERCNT
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| 174 | REAL DATAB2(MAXBF2)
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| 175 | INTEGER LHCER
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| 176 | *KEND.
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| 177 |
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| 178 | DOUBLE PRECISION COAN,SE,TEMP1,TEMP2,TEMP3,THICK,TTIME,ZE,ZS,ZX
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| 179 | INTEGER I,IA,J,L,N
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| 180 | EXTERNAL THICK
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| 181 | CHARACTER*1 MARK
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| 182 | C-----------------------------------------------------------------------
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| 183 |
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| 184 | C SAY HELLO
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| 185 | WRITE(MONIOU,112)
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| 186 | 112 FORMAT(/' ',120('A')//
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| 187 | *' OOO OOO OOOO OOOO OO O O O '/
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| 188 | *' O O O O O O O O OO O O O O '/
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| 189 | *' O O O O O O OO O O O O '/
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| 190 | *' O O O O O OOOO OO OO O O'/
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| 191 | *' O O O OOOO O OO O O OOOOOOO'/
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| 192 | *' O O O O O O O O OO O O O O'/
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| 193 | *' OOO OOO O O OOOO OO O O O O'//
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| 194 | *' COSMIC RAY SIMULATION FOR KASCADE'///
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| 195 | *' A PROGRAM TO SIMULATE EXTENSIVE AIR SHOWERS IN ATMOSPHERE'//
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| 196 | *' BASED ON A PROGRAM OF P.K.F. GRIEDER, UNIVERSITY BERN,',
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| 197 | *' SWITZERLAND'/
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| 198 | *' HDPM MODEL ACCORDING TO J.N. CAPDEVIELLE, COLLEGE DE FRANCE,',
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| 199 | *' PARIS, FRANCE'/
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| 200 | *' VENUS MODEL ACCORDING TO K. WERNER, UNIVERSITY NANTES, FRANCE'/
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| 201 | *' GHEISHA ROUTINES ACCORDING TO H. FESEFELDT, RWTH. AACHEN,',
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| 202 | *' GERMANY'/
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| 203 | *' EGS4 AND NKG FORMULAS FOR SIMULATION OF EL.MAG. PARTICLES'//)
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| 204 |
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| 205 | MARK = '1'
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| 206 |
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| 207 | WRITE(MONIOU,912) VERNUM,MARK,VERDAT
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| 208 | 912 FORMAT(' INSTITUT FUER KERNPHYSIK '/
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| 209 | * ' FORSCHUNGSZENTRUM UND UNIVERSITAET KARLSRUHE'/
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| 210 | * ' POSTFACH 3640'/
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| 211 | * ' D-76021 KARLSRUHE'/
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| 212 | * ' GERMANY'//
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| 213 | * ' IN CASE OF PROBLEMS CONTACT:'/
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| 214 | * ' DIETER HECK JOHANNES KNAPP'/
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| 215 | * ' E-MAIL: HECK@IK3.FZK.DE KNAPP@IK1.FZK.DE'/
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| 216 | * ' FAX: (49) 7247-82-4075 (49) 7247-82-3548'/
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| 217 | * ' TEL: (49) 7247-82-3777 (49) 7247-82-3549'//
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| 218 | * ' NUMBER OF VERSION : ',F6.3,A1/
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| 219 | * ' DATE OF VERSION : ',A18 /)
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| 220 |
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| 221 | WRITE(MONIOU,141)
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| 222 | 141 FORMAT(//' CERENKOV RADIATION IS GENERATED'/
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| 223 | * ' ==============================='//)
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| 224 |
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| 225 | C INITIALIZE FIELD WITH PARTICLE MASSES
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| 226 | CALL PAMAF
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| 227 |
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| 228 |
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| 229 | C READ RUN STEERING DATA CARDS
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| 230 | CALL DATAC
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| 231 |
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| 232 | C CLEARS BUFFERS FOR HEADER AND FILLS IN PERMANENT INFORMATION
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| 233 | DO 889 L = 1,MAXBUF
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| 234 | EVTH(L) = 0.
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| 235 | EVTE(L) = 0.
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| 236 | RUNH(L) = 0.
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| 237 | RUNE(L) = 0.
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| 238 | DATAB(L) = 0.
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| 239 | DATAB2(L) = 0.
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| 240 | 889 CONTINUE
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| 241 |
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| 242 |
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| 243 | C PERMANENT INFORMATION
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| 244 | C CHARACTER STRINGS
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| 245 | CRUNH = 'RUNH'
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| 246 | CRUNE = 'RUNE'
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| 247 | CEVTH = 'EVTH'
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| 248 | CEVTE = 'EVTE'
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| 249 |
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| 250 | RUNH(2) = NRRUN
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| 251 | RUNE(2) = NRRUN
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| 252 | EVTH(44) = NRRUN
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| 253 |
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| 254 | C DATE OF RUN
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| 255 | WRITE(MONIOU,101)
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| 256 | 101 FORMAT(//' ',10('='),' START OF RUN ',55('='))
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| 257 | CALL PRTIME(TTIME)
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| 258 | RUNH(3) = TTIME
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| 259 | EVTH(45) = TTIME
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| 260 |
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| 261 | C VERSION OF PROGRAM
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| 262 | RUNH(4) = VERNUM
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| 263 | EVTH(46) = VERNUM
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| 264 |
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| 265 | C-----------------------------------------------------------------------
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| 266 | C INITIALISATION FOR RANDOM NUMBER GENERATOR
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| 267 | IF ( FEGS .AND. NSEQ .LT. 2 ) NSEQ = 2
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| 268 | C CERENKOV SELECTION DEMANDS ALWAYS EGS CALCULATION
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| 269 | FEGS = .TRUE.
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| 270 | C IN CASE OF CERENKOV CALCULATIONS THE 3. RANDOM SEQUENCE IS NEEDED
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| 271 | IF ( NSEQ .LT. 3 ) NSEQ = 3
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| 272 | DO 281 I = 1,NSEQ
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| 273 | IF ( .NOT. DEBUG .AND. .NOT. DEBDEL .AND.
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| 274 | * (ISEED(2,I) .GT. 1000 .OR. ISEED(3,I) .GT. 0) ) THEN
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| 275 | WRITE(MONIOU,2811) I
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| 276 | 2811 FORMAT(/' #########################################'/
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| 277 | * ' ## IMPROPER INITIALIZATION OF RANDOM ##'/
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| 278 | * ' ## NUMBER GENERATOR SEQUENCE ',I6,' ##'/
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| 279 | * ' ## IS EXTREMELY TIME CONSUMING ##'/
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| 280 | * ' ## PLEASE READ THE MANUALS ##'/
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| 281 | * ' #########################################'/)
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| 282 | ENDIF
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| 283 | CALL RMMAQ( ISEED(1,I), I, 'S' )
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| 284 | 281 CONTINUE
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| 285 | KNOR = .TRUE.
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| 286 |
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| 287 | WRITE(MONIOU,158) (L,(ISEED(J,L),J=1,3),L=1,NSEQ)
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| 288 | 158 FORMAT (/' RANDOM NUMBER GENERATOR AT BEGIN OF RUN :'/
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| 289 | * (' SEQUENCE = ',I2,' SEED = ',I9,' CALLS = ',I9,
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| 290 | * ' BILLIONS = ',I9))
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| 291 |
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| 292 | C-----------------------------------------------------------------------
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| 293 | C READ CROSS SECTIONS AND PROBABILITIES FOR NUCLEUS-NUCLEUS COLLISIONS
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| 294 | OPEN(UNIT=NUCNUC,FILE='NUCNUCCS',STATUS='OLD')
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| 295 | READ(NUCNUC,500) SIGN30,SIGN45,SIGN60,SIGO30,SIGO45,SIGO60,
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| 296 | * SIGA30,SIGA45,SIGA60
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| 297 | READ(NUCNUC,500) (PNOA30(I,1),I=1,1540),(PNOA45(I,1),I=1,1540),
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| 298 | * (PNOA60(I,1),I=1,1540),(PNOA30(I,2),I=1,1540),
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| 299 | * (PNOA45(I,2),I=1,1540),(PNOA60(I,2),I=1,1540),
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| 300 | * (PNOA30(I,3),I=1,1540),(PNOA45(I,3),I=1,1540),
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| 301 | * (PNOA60(I,3),I=1,1540)
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| 302 | 500 FORMAT( 5E16.10 )
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| 303 | CLOSE(UNIT=NUCNUC)
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| 304 |
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| 305 | C INELASTIC CROSS SECTIONS FOR PROJECTICLE WITH MASS NUMBER IA
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| 306 | DO 501 IA = 1,56
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| 307 | SIG30A(IA) = COMPOS(1)*SIGN30(IA) + COMPOS(2)*SIGO30(IA)
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| 308 | * + COMPOS(3)*SIGA30(IA)
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| 309 | SIG45A(IA) = COMPOS(1)*SIGN45(IA) + COMPOS(2)*SIGO45(IA)
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| 310 | * + COMPOS(3)*SIGA45(IA)
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| 311 | SIG60A(IA) = COMPOS(1)*SIGN60(IA) + COMPOS(2)*SIGO60(IA)
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| 312 | * + COMPOS(3)*SIGA60(IA)
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| 313 |
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| 314 | IF (DEBUG) WRITE(MDEBUG,544) IA,SIG30A(IA),SIG45A(IA),SIG60A(IA)
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| 315 | 544 FORMAT(' START : CROSS SECTIONS A-AIR : A=',I2,1P,3E14.6)
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| 316 | 501 CONTINUE
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| 317 |
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| 318 | WRITE(MONIOU,503)
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| 319 | 503 FORMAT (//' ',10('='),' INTERACTION MODELS ',49('='))
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| 320 | C HIGH ENERGY HADRONIC INTERACTION MODEL
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| 321 | IF ( FVENUS ) THEN
|
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| 322 | WRITE(MONIOU,*) 'VENUS TREATS HIGH ENERGY HADRONIC INTERACTIONS'
|
|---|
| 323 | CALL VENINI
|
|---|
| 324 | IF ( .NOT. GHEISH ) THEN
|
|---|
| 325 | GHEISH = .TRUE.
|
|---|
| 326 | WRITE(MONIOU,*)'GHEISHA OPTION NOT SELECTED, BUT SWITCHED ON'
|
|---|
| 327 | ENDIF
|
|---|
| 328 | IF ( NFRAGM .EQ. 0 ) THEN
|
|---|
| 329 | WRITE(MONIOU,*)
|
|---|
| 330 | * ' TOTAL FRAGMENTATION OF PRIMARY NUCLEUS IN FIRST INTERACTION'
|
|---|
| 331 | ELSEIF ( NFRAGM .EQ. 1 ) THEN
|
|---|
| 332 | WRITE(MONIOU,*)
|
|---|
| 333 | * ' NO FRAGMENTATION, NO EVAPORATION OF REMAINDER'
|
|---|
| 334 | ELSEIF ( NFRAGM .EQ. 2 ) THEN
|
|---|
| 335 | WRITE(MONIOU,1504)
|
|---|
| 336 | ELSEIF ( NFRAGM .EQ. 3 ) THEN
|
|---|
| 337 | WRITE(MONIOU,1505)
|
|---|
| 338 | ELSE
|
|---|
| 339 | NFRAGM = 4
|
|---|
| 340 | WRITE(MONIOU,1507)
|
|---|
| 341 | ENDIF
|
|---|
| 342 | WRITE(MONIOU,*)
|
|---|
| 343 | ELSE
|
|---|
| 344 | WRITE(MONIOU,1506)
|
|---|
| 345 | ENDIF
|
|---|
| 346 | 1506 FORMAT(' HDPM ROUTINES TREAT HIGH ENERGY HADRONIC INTERACTIONS')
|
|---|
| 347 |
|
|---|
| 348 |
|
|---|
| 349 | IF ( .NOT. FVENUS ) THEN
|
|---|
| 350 | C INPUT FLAGS FOR HDPM OPTIONS
|
|---|
| 351 | WRITE(MONIOU,*)'HDPM GENERATOR SPECIFICATIONS ARE:'
|
|---|
| 352 | IF ( NFLAIN .EQ. 0 ) THEN
|
|---|
| 353 | WRITE(MONIOU,*) ' RANDOM NUMBER OF INTERACTIONS IN AIR TARGET'
|
|---|
| 354 | IF ( NFLDIF .EQ. 0 ) THEN
|
|---|
| 355 | WRITE(MONIOU,*) ' NO DIFFRACTIVE SECOND INTERACTIONS'
|
|---|
| 356 | ELSE
|
|---|
| 357 | WRITE(MONIOU,*) ' DIFFRACTIVE SECOND INTERACTIONS'
|
|---|
| 358 | ENDIF
|
|---|
| 359 | ELSE
|
|---|
| 360 | WRITE(MONIOU,*) ' FIXED NUMBER OF INTERACTIONS IN AIR TARGET'
|
|---|
| 361 | ENDIF
|
|---|
| 362 | IF ( NFLPI0 .EQ. 0 ) THEN
|
|---|
| 363 | WRITE(MONIOU,*) ' RAPIDITY OF PI0 ACCORDING TO COLLIDER DATA'
|
|---|
| 364 | ELSE
|
|---|
| 365 | WRITE(MONIOU,*) ' RAPIDITY OF PI0 SAME AS THAT OF CHARGED'
|
|---|
| 366 | ENDIF
|
|---|
| 367 | IF ( NFLPIF .EQ. 0 ) THEN
|
|---|
| 368 | WRITE(MONIOU,*) ' NO FLUCTUATIONS OF NUMBER OF PI0'
|
|---|
| 369 | ELSE
|
|---|
| 370 | WRITE(MONIOU,*)' FLUCTUATIONS OF NUMBER OF PI0 AS MEASURED ',
|
|---|
| 371 | * 'AT THE COLLIDER'
|
|---|
| 372 | ENDIF
|
|---|
| 373 | IF ( NFLCHE .EQ. 0 ) THEN
|
|---|
| 374 | WRITE(MONIOU,*) ' CHARGE EXCHANGE INTERACTION POSSIBLE '
|
|---|
| 375 | ELSE
|
|---|
| 376 | WRITE(MONIOU,*) ' NO CHARGE EXCHANGE INTERACTION POSSIBLE '
|
|---|
| 377 | ENDIF
|
|---|
| 378 | IF ( NFRAGM .EQ. 0 ) THEN
|
|---|
| 379 | WRITE(MONIOU,*)' TOTAL FRAGMENTION OF PRIMARY NUCLEUS IN ',
|
|---|
| 380 | * 'FIRST INTERACTION'
|
|---|
| 381 | ELSEIF ( NFRAGM .EQ. 1 ) THEN
|
|---|
| 382 | WRITE(MONIOU,*) ' NO FRAGMENTATION, NO EVAPORATION OF REMAINDER'
|
|---|
| 383 | ELSEIF ( NFRAGM .EQ. 2 ) THEN
|
|---|
| 384 | WRITE(MONIOU,1504)
|
|---|
| 385 | 1504 FORMAT(' NO FRAGMENTATION, EVAPORATION OF REMAINDER ',
|
|---|
| 386 | * ' (PT AFTER JACEE)')
|
|---|
| 387 | ELSEIF ( NFRAGM .EQ. 3 ) THEN
|
|---|
| 388 | WRITE(MONIOU,1505)
|
|---|
| 389 | 1505 FORMAT(' NO FRAGMENTATION, EVAPORATION OF REMAINDER ',
|
|---|
| 390 | * ' (PT AFTER GOLDHABER)')
|
|---|
| 391 | ELSE
|
|---|
| 392 | NFRAGM = 4
|
|---|
| 393 | WRITE(MONIOU,1507)
|
|---|
| 394 | 1507 FORMAT(' NO FRAGMENTATION, EVAPORATION OF REMAINDER ',
|
|---|
| 395 | * ' (WITH PT = 0.)')
|
|---|
| 396 | ENDIF
|
|---|
| 397 | ENDIF
|
|---|
| 398 | WRITE(MONIOU,*)
|
|---|
| 399 |
|
|---|
| 400 | C LOW ENERGY HADRONIC INTERACTION MODEL
|
|---|
| 401 | IF ( GHEISH ) THEN
|
|---|
| 402 | WRITE(MONIOU,*) 'GHEISHA TREATS LOW ENERGY HADRONIC ',
|
|---|
| 403 | * 'INTERACTIONS'
|
|---|
| 404 | CALL CGHINI
|
|---|
| 405 | ELSE
|
|---|
| 406 | WRITE(MONIOU,*) 'ISOBAR ROUTINES TREAT LOW ENERGY HADRONIC ',
|
|---|
| 407 | * 'INTERACTIONS'
|
|---|
| 408 | HILOELB = 53.D0
|
|---|
| 409 | ENDIF
|
|---|
| 410 |
|
|---|
| 411 | C WRITE HADRONIC STEERING FLAGS TO RUNHEADER
|
|---|
| 412 | RUNH(270) = NFLAIN
|
|---|
| 413 | RUNH(271) = NFLDIF
|
|---|
| 414 | RUNH(272) = NFLPI0 + 100. * NFLPIF
|
|---|
| 415 | RUNH(273) = NFLCHE + 100. * NFRAGM
|
|---|
| 416 |
|
|---|
| 417 | EVTH(65) = NFLAIN
|
|---|
| 418 | EVTH(66) = NFLDIF
|
|---|
| 419 | EVTH(67) = NFLPI0
|
|---|
| 420 | EVTH(68) = NFLPIF
|
|---|
| 421 | EVTH(69) = NFLCHE
|
|---|
| 422 | EVTH(70) = NFRAGM
|
|---|
| 423 |
|
|---|
| 424 | HILOECM = SQRT(2.D0*PAMA(14)*(PAMA(14) + HILOELB))
|
|---|
| 425 | WRITE(MONIOU,*) 'START: HIGH ENERGY INTERACTION MODEL USED ABOVE'
|
|---|
| 426 | WRITE(MONIOU,*) ' ',HILOELB,' GEV LAB ENERGY OR'
|
|---|
| 427 | WRITE(MONIOU,*) ' ',HILOECM,' GEV CM ENERGY'
|
|---|
| 428 |
|
|---|
| 429 | C INPUT STEERING FLAGS FOR ELECTROMAGNETIC PART
|
|---|
| 430 | WRITE(MONIOU,*)
|
|---|
| 431 | IF ( FNKG ) THEN
|
|---|
| 432 | WRITE(MONIOU,*)'ELECTROMAGNETIC COMPONENT SIMULATED WITH NKG'
|
|---|
| 433 | IF ( ULIMIT .GT. 2.D7 ) THEN
|
|---|
| 434 | WRITE(MONIOU,*)'#############################################'
|
|---|
| 435 | WRITE(MONIOU,*)'# W A R N I N G NKG IS WITHOUT LPM EFFECT #'
|
|---|
| 436 | WRITE(MONIOU,*)'#############################################'
|
|---|
| 437 | ENDIF
|
|---|
| 438 | WRITE(MONIOU,*)
|
|---|
| 439 | ENDIF
|
|---|
| 440 | IF ( FEGS ) THEN
|
|---|
| 441 | WRITE(MONIOU,*)'ELECTROMAGNETIC COMPONENT SIMULATED WITH EGS4'
|
|---|
| 442 | WRITE(MONIOU,*)
|
|---|
| 443 | ENDIF
|
|---|
| 444 | IF ( .NOT. (FNKG .OR. FEGS) ) WRITE(MONIOU,*)
|
|---|
| 445 | * 'ELECTROMAGNETIC COMPONENT IS NOT SIMULATED'
|
|---|
| 446 | IF ( FEGS ) THEN
|
|---|
| 447 | IF ( STEPFC .GT. 10. .OR. STEPFC .LE. 0. ) THEN
|
|---|
| 448 | WRITE(MONIOU,*)'STEP LENGTH FACTOR FOR ELECTRON MULTIPLE ',
|
|---|
| 449 | * 'SCATTERING =',STEPFC,' NOT CORRECT'
|
|---|
| 450 | WRITE(MONIOU,*)'PLEASE READ THE MANUALS'
|
|---|
| 451 | STOP
|
|---|
| 452 | ENDIF
|
|---|
| 453 | IF ( STEPFC .LT. 10. ) WRITE(MONIOU,*)'STEP LENGTH ',
|
|---|
| 454 | * 'FACTOR FOR ELECTRON MULTIPLE SCATTERING =',STEPFC
|
|---|
| 455 | C INITIALIZE EGS4 PACKAGE
|
|---|
| 456 | CALL EGSINI
|
|---|
| 457 | IF ( ULIMIT .GT. 2.D7 ) THEN
|
|---|
| 458 | WRITE(MONIOU,*)'#############################################'
|
|---|
| 459 | WRITE(MONIOU,*)'# W A R N I N G EGS IS WITHOUT LPM EFFECT #'
|
|---|
| 460 | WRITE(MONIOU,*)'#############################################'
|
|---|
| 461 | ENDIF
|
|---|
| 462 | ENDIF
|
|---|
| 463 | C WRITE STEERING FLAGS FOR ELECTROMAGNETIC PART AS REAL TO HEADER
|
|---|
| 464 | IF ( FNKG ) THEN
|
|---|
| 465 | RUNH(20) = 1.
|
|---|
| 466 | EVTH(74) = 1.
|
|---|
| 467 | ELSE
|
|---|
| 468 | RUNH(20) = 0.
|
|---|
| 469 | EVTH(74) = 0.
|
|---|
| 470 | ENDIF
|
|---|
| 471 | IF ( FEGS ) THEN
|
|---|
| 472 | RUNH(19) = 1.
|
|---|
| 473 | EVTH(73) = 1.
|
|---|
| 474 | ELSE
|
|---|
| 475 | RUNH(19) = 0.
|
|---|
| 476 | EVTH(73) = 0.
|
|---|
| 477 | ENDIF
|
|---|
| 478 |
|
|---|
| 479 | EVTH(95) = STEPFC
|
|---|
| 480 |
|
|---|
| 481 | C PROGRAM CONFIGURATIONS FOR EVENT HEADER
|
|---|
| 482 | IF ( GHEISH ) THEN
|
|---|
| 483 | EVTH(75) = 1.
|
|---|
| 484 | ELSE
|
|---|
| 485 | EVTH(75) = 0.
|
|---|
| 486 | ENDIF
|
|---|
| 487 | IF ( FVENUS ) THEN
|
|---|
| 488 | EVTH(76) = 1.
|
|---|
| 489 | ELSE
|
|---|
| 490 | EVTH(76) = 0.
|
|---|
| 491 | ENDIF
|
|---|
| 492 | EVTH(139) = 0.
|
|---|
| 493 | EVTH(140) = 0.
|
|---|
| 494 | EVTH(141) = 0.
|
|---|
| 495 | EVTH(142) = 0.
|
|---|
| 496 | EVTH(143) = 0.
|
|---|
| 497 | EVTH(144) = 0.
|
|---|
| 498 | EVTH(145) = 0.
|
|---|
| 499 | EVTH(77) = 1.
|
|---|
| 500 | EVTH(78) = 0.
|
|---|
| 501 | EVTH(79) = 0.
|
|---|
| 502 | EVTH(80) = 3.
|
|---|
| 503 |
|
|---|
| 504 | C-----------------------------------------------------------------------
|
|---|
| 505 | C BEGIN OF TAPE FOR IBM, FOR TRANSPUTER SEE BEGIN OF EVT
|
|---|
| 506 |
|
|---|
| 507 | C-----------------------------------------------------------------------
|
|---|
| 508 | C PHYSICAL CONSTANTS
|
|---|
| 509 | ENEPER = EXP(1.D0)
|
|---|
| 510 | C(6) = ( PAMA(5) / PAMA(11) )**2
|
|---|
| 511 | C(7) = ( PAMA(5) / PAMA(8) )**2
|
|---|
| 512 | C(8) = ( PAMA(5)**2 + PAMA(2)**2 ) * 0.5D0 / PAMA(5)
|
|---|
| 513 | C(20) = 10.D0 * C(21)
|
|---|
| 514 | C(27) = COS( C(26) )
|
|---|
| 515 | C(29) = COS( C(28) )
|
|---|
| 516 | C(44) = MAX( PAMA(8)+C(4), PAMA(14)+C(5) )
|
|---|
| 517 | C(45) = PAMA(8) * PAMA(14) * 2.D0
|
|---|
| 518 | C(46) = PAMA(8)**2 + PAMA(14)**2
|
|---|
| 519 | C(48) = (PAMA(8)**2 + PAMA(5)**2) / (2.D0*PAMA(8)*PAMA(5))
|
|---|
| 520 | C(49) = SQRT(C(48)**2 - 1.D0) / C(48)
|
|---|
| 521 |
|
|---|
| 522 | CKA(13) = 2.D0 * PAMA(11) * PAMA(14)
|
|---|
| 523 | CKA(14) = PAMA(11)**2 + PAMA(14)**2
|
|---|
| 524 | CKA(17) = SQRT( ( (PAMA(11)**2 + PAMA(5)**2)
|
|---|
| 525 | * / (2.D0*PAMA(11)) )**2 - PAMA(5)**2 )
|
|---|
| 526 | CKA(18) = SQRT( ( (PAMA(11)**2 + PAMA(8)**2 - PAMA(7)**2)
|
|---|
| 527 | * / (2.D0*PAMA(11)) )**2 - PAMA(8)**2 )
|
|---|
| 528 | CKA(22) = MAX( C(5)+PAMA(14), PAMA(11)+C(4) )
|
|---|
| 529 | CKA(28) = SQRT(1.D0 + CKA(17)**2/PAMA(5)**2)
|
|---|
| 530 | CKA(29) = SQRT(1.D0 - 1.D0/CKA(28)**2)
|
|---|
| 531 | CKA(30) = SQRT(1.D0 + CKA(18)**2/PAMA(8)**2)
|
|---|
| 532 | CKA(31) = SQRT(1.D0 - 1.D0/CKA(30)**2)
|
|---|
| 533 | CKA(41) = PAMA(16)
|
|---|
| 534 | CKA(42) = (PAMA(11)**2 + PAMA(7)**2 - PAMA(8)**2) /
|
|---|
| 535 | * (2.D0*PAMA(11)*PAMA(7))
|
|---|
| 536 | CKA(43) = CKA(41) / (2.D0*PAMA(7))
|
|---|
| 537 | CKA(44) = SQRT(1.D0 - 1.D0/CKA(43)**2)
|
|---|
| 538 | CKA(45) = CKA(41) / (2.D0*PAMA(8))
|
|---|
| 539 | CKA(46) = SQRT(1.D0 - 1.D0/CKA(45)**2)
|
|---|
| 540 |
|
|---|
| 541 | C SET CONSTANTS FOR MUON BREMSSTRAHLUNG
|
|---|
| 542 | CMUON(3) = 7.D0**OB3
|
|---|
| 543 | CMUON(6) = 8.D0**OB3
|
|---|
| 544 | CMUON(9) = 18.D0**OB3
|
|---|
| 545 | CMUON(1) = LOG( 189.D0 * PAMA(5) / (CMUON(3)*PAMA(2)) )
|
|---|
| 546 | CMUON(4) = LOG( 189.D0 * PAMA(5) / (CMUON(6)*PAMA(2)) )
|
|---|
| 547 | CMUON(7) = LOG( 189.D0 * PAMA(5) / (CMUON(9)*PAMA(2)) )
|
|---|
| 548 | * + LOG( TB3/CMUON(9) )
|
|---|
| 549 | SE = SQRT(EXP(1.D0))
|
|---|
| 550 | CMUON(2) = 189.D0 * SE*PAMA(5)**2/(2.D0*PAMA(2)*CMUON(3))
|
|---|
| 551 | CMUON(5) = 189.D0 * SE*PAMA(5)**2/(2.D0*PAMA(2)*CMUON(6))
|
|---|
| 552 | CMUON(8) = 189.D0 * SE*PAMA(5)**2/(2.D0*PAMA(2)*CMUON(9))
|
|---|
| 553 | CMUON(10) = 0.75D0 * PAMA(5) * SE
|
|---|
| 554 | CMUON(3) = CMUON(3) * CMUON(10)
|
|---|
| 555 | CMUON(6) = CMUON(6) * CMUON(10)
|
|---|
| 556 | CMUON(9) = CMUON(9) * CMUON(10)
|
|---|
| 557 | CMUON(11) = LOG( BCUT/PAMA(5) )
|
|---|
| 558 |
|
|---|
| 559 | DO 1 I = 1,50
|
|---|
| 560 | CANN(I) = 0.D0
|
|---|
| 561 | 1 CONTINUE
|
|---|
| 562 | COAN = 0.D0
|
|---|
| 563 | DO 25 N = 1,12
|
|---|
| 564 | COAN = COAN + CAN(N)
|
|---|
| 565 | CANN(N) = COAN
|
|---|
| 566 | 25 CONTINUE
|
|---|
| 567 | COAN = 0.D0
|
|---|
| 568 | DO 26 N = 13,26
|
|---|
| 569 | COAN = COAN + CAN(N)
|
|---|
| 570 | CANN(N) = COAN
|
|---|
| 571 | 26 CONTINUE
|
|---|
| 572 |
|
|---|
| 573 | C-----------------------------------------------------------------------
|
|---|
| 574 | C INITIALIZE CONSTANTS FOR MUON MULTIPLE SCATTERING (MOLIERE)
|
|---|
| 575 | C SEE SUBROUTINE GMOLI OF GEANT321 (CERN)
|
|---|
| 576 | IF (FMOLI) THEN
|
|---|
| 577 | TEMP1 = COMPOS(1) * 7.D0 * 8.D0 / 14.D0
|
|---|
| 578 | TEMP2 = COMPOS(2) * 8.D0 * 9.D0 / 16.D0
|
|---|
| 579 | TEMP3 = COMPOS(3) * 18.D0 * 19.D0 / 40.D0
|
|---|
| 580 | ZS = TEMP1 + TEMP2 + TEMP3
|
|---|
| 581 | ZE = -TB3*(TEMP1*LOG(7.D0) +TEMP2*LOG(8.D0) +TEMP3*LOG(18.D0))
|
|---|
| 582 | ZX = TEMP1*LOG(1.D0 + 3.34D0 * ( 7.D0/C(50))**2)
|
|---|
| 583 | * +TEMP2*LOG(1.D0 + 3.34D0 * ( 8.D0/C(50))**2)
|
|---|
| 584 | * +TEMP3*LOG(1.D0 + 3.34D0 * (18.D0/C(50))**2)
|
|---|
| 585 | C NOTE: CHC IS DEFINED DIFFERENT FROM GEANT WITHOUT DENSITY
|
|---|
| 586 | CHC = 0.39612D-3 * SQRT(ZS)
|
|---|
| 587 | C NOTE: OMC IS DEFINED DIFFERENT FROM GEANT WITHOUT DENSITY
|
|---|
| 588 | OMC = 6702.33D0 * ZS * EXP( (ZE-ZX)/ZS )
|
|---|
| 589 | EVTH(146) = 1.
|
|---|
| 590 | ELSE
|
|---|
| 591 | EVTH(146) = 0.
|
|---|
| 592 | ENDIF
|
|---|
| 593 |
|
|---|
| 594 | C-----------------------------------------------------------------------
|
|---|
| 595 | C TEST ON INPUT VALUES
|
|---|
| 596 |
|
|---|
| 597 | C PRINT CONTROL OUTPUT
|
|---|
| 598 | IF ( CC(1) .GE. CC(2) .OR.
|
|---|
| 599 | * CC(2) .GE. CC(3) .OR.
|
|---|
| 600 | * CC(3) .GE. CC(4) .OR.
|
|---|
| 601 | * CC(5) .GE. CC(6) .OR.
|
|---|
| 602 | * CC(6) .GE. CC(7) .OR.
|
|---|
| 603 | * CC(7) .GE. CC(8) .OR.
|
|---|
| 604 | * CC(9) .GE. CC(10) .OR.
|
|---|
| 605 | * CC(10) .GE. CC(11) .OR.
|
|---|
| 606 | * CC(11) .GE. CC(12) .OR.
|
|---|
| 607 | * PAMA(14)+C(3) .GT. CC(1) .OR.
|
|---|
| 608 | * PAMA(14)+C(4) .GT. CC(2) .OR.
|
|---|
| 609 | * C(4)*2. .GT. CC(3) .OR.
|
|---|
| 610 | * C(3)+PAMA(8) .GT. CC(5) .OR.
|
|---|
| 611 | * C(44) .GT. CC(6) .OR.
|
|---|
| 612 | * C(4)+C(5) .GT. CC(7) .OR.
|
|---|
| 613 | * PAMA(14)+C(4) .GE. C(4)*2. .OR.
|
|---|
| 614 | * C(44) .GE. C(4)+C(5) ) THEN
|
|---|
| 615 | WRITE(MONIOU,106)
|
|---|
| 616 | 106 FORMAT (' ERROR OR INCOMPATIBILITY IN CONSTANTS')
|
|---|
| 617 | C PRINT CONTROL OUTPUT
|
|---|
| 618 | WRITE(MONIOU,103) (C(I),I=1,50)
|
|---|
| 619 | 103 FORMAT (//' ',10('='),' CONSTANTS AND PARAMETERS ',43('=')
|
|---|
| 620 | * //' PHYSICAL CONSTANTS (C)' // (1P,4(E15.8,1X),E15.8) )
|
|---|
| 621 | WRITE(MONIOU,110) (CKA(I),I=1,80)
|
|---|
| 622 | 110 FORMAT (//' CONSTANTS FOR KAONS CKA(1) TO CKA(40)'
|
|---|
| 623 | * // (1P,4(E15.8,1X),E15.8) )
|
|---|
| 624 | WRITE(MONIOU,114) (CETA(I),I=1,5)
|
|---|
| 625 | 114 FORMAT (//' CONSTANTS FOR ETAS CETA(1) TO CETA(5)'
|
|---|
| 626 | * // (1P,4(E15.8,1X),E15.8) )
|
|---|
| 627 | WRITE(MONIOU,115) (CSTRBA(I),I=1,11)
|
|---|
| 628 | 115 FORMAT (//' CONSTANTS FOR STRANGE BARYONS CSTRBA(1) TO ',
|
|---|
| 629 | * 'CSTRBA(11)'// (1P,4(E15.8,1X),E15.8) )
|
|---|
| 630 | WRITE(MONIOU,206) (CAN(I),I=1,30)
|
|---|
| 631 | 206 FORMAT (//' ANNIHILATION PARAMETERS, SET 1 (CAN)'
|
|---|
| 632 | * // (1P,4(E15.8,1X),E15.8) )
|
|---|
| 633 | WRITE(MONIOU,209) (CANN(I),I=1,30)
|
|---|
| 634 | 209 FORMAT (//' ANNIHILATION PARAMETERS, SET 2 (CANN)'
|
|---|
| 635 | * // (1P,4(E15.8,1X),E15.8) )
|
|---|
| 636 | WRITE(MONIOU,60) (CC(I),I=1,12)
|
|---|
| 637 | 60 FORMAT (//' THRESHOLD ENERGIES OF INTERACTION INTERVALS IN GEV',
|
|---|
| 638 | * ' (CC)'// (1P,4(E15.8,1X),E15.8) )
|
|---|
| 639 | WRITE(MONIOU,106)
|
|---|
| 640 | STOP
|
|---|
| 641 | ENDIF
|
|---|
| 642 |
|
|---|
| 643 | C FILL CONSTANTS IN RUN HEADER
|
|---|
| 644 | DO 3001 L = 1,50
|
|---|
| 645 | RUNH(24+L) = C(L)
|
|---|
| 646 | RUNH(154+L) = CAN(L)
|
|---|
| 647 | RUNH(204+L) = CANN(L)
|
|---|
| 648 | 3001 CONTINUE
|
|---|
| 649 | DO 3002 L = 1,20
|
|---|
| 650 | RUNH(74+L) = CC(L)
|
|---|
| 651 | 3002 CONTINUE
|
|---|
| 652 | DO 3003 L = 1,40
|
|---|
| 653 | RUNH(94+L) = CKA(L)
|
|---|
| 654 | 3003 CONTINUE
|
|---|
| 655 | DO 3004 L = 1,5
|
|---|
| 656 | RUNH(134+L) = CETA(L)
|
|---|
| 657 | 3004 CONTINUE
|
|---|
| 658 | DO 3005 L = 1,11
|
|---|
| 659 | RUNH(139+L) = CSTRBA(L)
|
|---|
| 660 | 3005 CONTINUE
|
|---|
| 661 | DO 3007 L = 1,5
|
|---|
| 662 | RUNH(254+L) = AATM(L)
|
|---|
| 663 | RUNH(259+L) = BATM(L)
|
|---|
| 664 | RUNH(264+L) = CATM(L)
|
|---|
| 665 | DATM(L) = 1.D0 / CATM(L)
|
|---|
| 666 | 3007 CONTINUE
|
|---|
| 667 |
|
|---|
| 668 | C SET LOWER BOUNDARIES OF THE AIR LAYERS
|
|---|
| 669 | HLAY(1) = 0.D0
|
|---|
| 670 | HLAY(2) = 4.D5
|
|---|
| 671 | HLAY(3) = 1.D6
|
|---|
| 672 | HLAY(4) = 4.D6
|
|---|
| 673 | HLAY(5) = 1.D7
|
|---|
| 674 | C CALCULATE THICKNESS AT LOWER BOUNDARIES OF AIR LAYERS
|
|---|
| 675 | DO 100 L= 1,5
|
|---|
| 676 | THICKL(L) = THICK(HLAY(L))
|
|---|
| 677 | 100 CONTINUE
|
|---|
| 678 |
|
|---|
| 679 | CALL STAEND
|
|---|
| 680 |
|
|---|
| 681 | RETURN
|
|---|
| 682 | END
|
|---|