| 1 | SUBROUTINE UPDATE( HNEW,THCKHN,IPAS ) | 
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| 2 |  | 
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| 3 | C----------------------------------------------------------------------- | 
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| 4 | C  UPDATE(S PARTICLE PARAMETERS) | 
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| 5 | C | 
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| 6 | C  UPDATES PARTICLE PARAMETERS TO OBSERVATION LEVEL WITH NUMBER IPAS | 
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| 7 | C                           OR TO POINT OF INTERACTION OR DECAY (IPAS=0) | 
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| 8 | C  FOR CHARGED PARTICLES THE ENERGY LOSS IS COMPUTED FOR THE WHOLE STEP, | 
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| 9 | C  SUBDIVIDED BY THE BOUNDARIES OF THE ATMOSPHERIC LAYERS. | 
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| 10 | C  THE PARTICLE IS FLYING THE 1ST HALF (DH/2) WITH INITIAL ENERGY | 
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| 11 | C  AND ANGLE AND THE 2ND HALF WITH FINAL ENERGY AND ANGLE. | 
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| 12 | C  THE TIME CALCULATION FOLLOWS THIS SIMPLIFICATION. | 
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| 13 | C  CHARGED PARTICLES ARE DEFLECTED IN THE EARTH MAGNETIC FIELD. | 
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| 14 | C  THE ANGLE OF DEFLECTION BY MULTIPLE SCATTERING IS COMPUTED ONLY | 
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| 15 | C  FOR MUONS AND ONLY ONCE FOR THE WHOLE STEP. | 
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| 16 | C  IF PARTICLES COME TO REST BY STOPPING, THEIR PATH TO THE STOPPING | 
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| 17 | C  POINT IS CALCULATED. | 
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| 18 | C  CERENKOV RADIATION IS CALCULATED ONLY FOR LOWEST OBSERVATION LEVEL | 
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| 19 | C  THIS SUBROUTINE IS CALLED FROM MAIN, BOX3, AND MUTRAC | 
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| 20 | C  ARGUMENTS: | 
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| 21 | C   HNEW   = ALTITUDE OF PARTICLE AFTER UPDATE | 
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| 22 | C   THCKHN = THICKNESS OF HNEW | 
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| 23 | C   IPAS   = 0  TRANSPORT TO END OF RANGE OF PARTICLE | 
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| 24 | C       .NE. 0  TRANSPORT TO PASSAGE OF OBSERVATION LEVEL IPAS | 
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| 25 | C | 
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| 26 | C  REDESIGN: D. HECK    IK3  FZK KARLSRUHE | 
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| 27 | C----------------------------------------------------------------------- | 
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| 28 |  | 
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| 29 | IMPLICIT NONE | 
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| 30 | *KEEP,ATMOS2. | 
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| 31 | COMMON /ATMOS2/  HLAY,THICKL | 
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| 32 | DOUBLE PRECISION HLAY(5),THICKL(5) | 
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| 33 | *KEEP,CONST. | 
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| 34 | COMMON /CONST/   PI,PI2,OB3,TB3,ENEPER | 
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| 35 | DOUBLE PRECISION PI,PI2,OB3,TB3,ENEPER | 
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| 36 | *KEEP,ELABCT. | 
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| 37 | COMMON /ELABCT/  ELCUT | 
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| 38 | DOUBLE PRECISION ELCUT(4) | 
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| 39 | *KEEP,GENER. | 
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| 40 | COMMON /GENER/   GEN,ALEVEL | 
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| 41 | DOUBLE PRECISION GEN,ALEVEL | 
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| 42 | *KEEP,IRET. | 
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| 43 | COMMON /IRET/    IRET1,IRET2 | 
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| 44 | INTEGER          IRET1,IRET2 | 
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| 45 | *KEEP,MAGNET. | 
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| 46 | COMMON /MAGNET/  BX,BZ,BVAL,BNORMC,BNORM,COSB,SINB,BLIMIT | 
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| 47 | DOUBLE PRECISION BX,BZ,BVAL,BNORMC | 
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| 48 | REAL             BNORM,COSB,SINB,BLIMIT | 
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| 49 | *KEEP,MUMULT. | 
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| 50 | COMMON /MUMULT/  CHC,OMC,FMOLI | 
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| 51 | DOUBLE PRECISION CHC,OMC | 
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| 52 | LOGICAL          FMOLI | 
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| 53 | *KEEP,OBSPAR. | 
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| 54 | COMMON /OBSPAR/  OBSLEV,THCKOB,XOFF,YOFF,THETAP,PHIP, | 
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| 55 | *                 THETPR,PHIPR,NOBSLV | 
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| 56 | DOUBLE PRECISION OBSLEV(10),THCKOB(10),XOFF(10),YOFF(10), | 
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| 57 | *                 THETAP,THETPR(2),PHIP,PHIPR(2) | 
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| 58 | INTEGER          NOBSLV | 
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| 59 | *KEEP,PAM. | 
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| 60 | COMMON /PAM/     PAMA,SIGNUM | 
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| 61 | DOUBLE PRECISION PAMA(6000),SIGNUM(6000) | 
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| 62 | *KEEP,PARPAR. | 
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| 63 | COMMON /PARPAR/  CURPAR,SECPAR,PRMPAR,OUTPAR,C, | 
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| 64 | *                 E00,E00PN,PTOT0,PTOT0N,THICKH,ITYPE,LEVL | 
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| 65 | DOUBLE PRECISION CURPAR(14),SECPAR(14),PRMPAR(14),OUTPAR(14), | 
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| 66 | *                 C(50),E00,E00PN,PTOT0,PTOT0N,THICKH | 
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| 67 | INTEGER          ITYPE,LEVL | 
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| 68 | *KEEP,PARPAE. | 
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| 69 | DOUBLE PRECISION GAMMA,COSTHE,PHI,H,T,X,Y,CHI,BETA,GCM,ECM | 
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| 70 | EQUIVALENCE      (CURPAR(2),GAMMA),  (CURPAR(3),COSTHE), | 
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| 71 | *                 (CURPAR(4), PHI ),  (CURPAR(5), H    ), | 
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| 72 | *                 (CURPAR(6), T   ),  (CURPAR(7), X    ), | 
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| 73 | *                 (CURPAR(8), Y   ),  (CURPAR(9), CHI  ), | 
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| 74 | *                 (CURPAR(10),BETA),  (CURPAR(11),GCM  ), | 
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| 75 | *                 (CURPAR(12),ECM ) | 
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| 76 | *KEEP,RANDPA. | 
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| 77 | COMMON /RANDPA/  FAC,U1,U2,RD,NSEQ,ISEED,KNOR | 
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| 78 | DOUBLE PRECISION FAC,U1,U2 | 
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| 79 | REAL             RD(3000) | 
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| 80 | INTEGER          ISEED(103,10),NSEQ | 
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| 81 | LOGICAL          KNOR | 
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| 82 | *KEEP,RUNPAR. | 
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| 83 | COMMON /RUNPAR/  FIXHEI,THICK0,HILOECM,HILOELB, | 
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| 84 | *                 STEPFC,NRRUN,NSHOW,PATAPE,MONIIN, | 
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| 85 | *                 MONIOU,MDEBUG,NUCNUC, | 
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| 86 | *                 CETAPE, | 
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| 87 | *                 SHOWNO,ISHW,NOPART,NRECS,NBLKS,MAXPRT,NDEBDL, | 
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| 88 | *                 N1STTR,MDBASE, | 
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| 89 | *                 DEBDEL,DEBUG,FDECAY,FEGS,FIRSTI,FIXINC,FIXTAR, | 
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| 90 | *                 FIX1I,FMUADD,FNKG,FPRINT,FDBASE | 
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| 91 | *                ,GHEISH,GHESIG | 
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| 92 | COMMON /RUNPAC/  DSN,HOST,USER | 
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| 93 | DOUBLE PRECISION FIXHEI,THICK0,HILOECM,HILOELB | 
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| 94 | REAL             STEPFC | 
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| 95 | INTEGER          NRRUN,NSHOW,PATAPE,MONIIN,MONIOU,MDEBUG,NUCNUC, | 
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| 96 | *                 SHOWNO,ISHW,NOPART,NRECS,NBLKS,MAXPRT,NDEBDL, | 
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| 97 | *                 N1STTR,MDBASE | 
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| 98 | INTEGER          CETAPE | 
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| 99 | CHARACTER*79     DSN | 
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| 100 | CHARACTER*20     HOST,USER | 
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| 101 |  | 
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| 102 | LOGICAL          DEBDEL,DEBUG,FDECAY,FEGS,FIRSTI,FIXINC,FIXTAR, | 
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| 103 | *                 FIX1I,FMUADD,FNKG,FPRINT,FDBASE | 
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| 104 | *                ,GHEISH,GHESIG | 
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| 105 | *KEEP,CERHDR. | 
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| 106 | COMMON/CERHDR/   TPART,UPART,VPART,WPART,XPART,YPART,ZPART | 
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| 107 | DOUBLE PRECISION TPART,UPART,VPART,WPART,XPART,YPART,ZPART | 
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| 108 | *KEND. | 
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| 109 |  | 
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| 110 | DOUBLE PRECISION ALPHA1,ALPHA2,BETAN,DENS,DH,DR,DTHICK,ELOSS, | 
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| 111 | *                 FNORM1,FNORM2,F1COS1,F1COS2,F1SIN1,F1SIN2, | 
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| 112 | *                 GAMMAN,GAMSQ,GLCUT,GMSQM1,GAM0,HMIDDL,HNEW,OMEGA, | 
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| 113 | *                 PHISCT,PHI1,RADINV,RANNOR,RHOF, | 
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| 114 | *                 SINTH1,SINTH2,SN,SN1,SN2,SN3,SN4, | 
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| 115 | *                 THCKHN,TH0,U10,U12,U20,U22,V,VSCAT,VVV, | 
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| 116 | *                 V10,V12,V20,V22,W10,W12,W20,W22 | 
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| 117 | INTEGER          I,IL,ILAY,IPAS | 
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| 118 | LOGICAL          MUS | 
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| 119 | SAVE             VSCAT,PHISCT | 
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| 120 | EXTERNAL         RANNOR,RHOF | 
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| 121 | DOUBLE PRECISION CHIT,DT,GAMK,HEIGH,HNEWC,RATIO,THCKHC | 
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| 122 | INTEGER          ICRNKV | 
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| 123 | LOGICAL          TFLAG | 
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| 124 | EXTERNAL         HEIGH | 
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| 125 | C----------------------------------------------------------------------- | 
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| 126 |  | 
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| 127 | IF (DEBUG) WRITE(MDEBUG,457) (CURPAR(I),I=1,9),HNEW | 
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| 128 | 457 FORMAT(' UPDATE: CURPAR=',1P,9E10.3/ | 
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| 129 | *       '         TO HEIGHT ',0P,F11.1) | 
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| 130 |  | 
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| 131 | IRET2  = 1 | 
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| 132 | C  TOTAL HEIGHT DIFFERENCE | 
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| 133 | DH     = MAX( H - HNEW, 1.D-10 ) | 
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| 134 | C  ATMOSPHERE THICKNESS TRAVERSED | 
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| 135 | DTHICK = (THCKHN - THICKH) / COSTHE | 
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| 136 | C  TOTAL PATH FOR UNDEFLECTED PARTICLE | 
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| 137 | SN     = DH / COSTHE | 
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| 138 | SN1    = 0.25D0 * SN | 
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| 139 |  | 
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| 140 |  | 
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| 141 | C  CALCULATE KINETIC ENERGY CUT | 
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| 142 | IF ( ITYPE .EQ. 5 .OR. ITYPE .EQ. 6 ) THEN | 
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| 143 | MUS   = .TRUE. | 
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| 144 | GLCUT = ELCUT(2) / PAMA(ITYPE) + 1.D0 | 
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| 145 | ELSE | 
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| 146 | MUS   = .FALSE. | 
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| 147 | GLCUT = ELCUT(1) / PAMA(ITYPE) + 1.D0 | 
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| 148 | ENDIF | 
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| 149 |  | 
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| 150 | C  CALCULATE THE ENERGY LOSS FOR CHARGED PARTICLES | 
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| 151 | IF ( SIGNUM(ITYPE) .NE. 0.D0 ) THEN | 
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| 152 | C  LOOK WITHIN WHICH LAYER THE PARTICLE STARTS | 
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| 153 | IF     ( H .LE. HLAY(2) ) THEN | 
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| 154 | ILAY = 1 | 
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| 155 | TH0  = THICKH | 
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| 156 | ELSEIF ( H .LE. HLAY(3) ) THEN | 
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| 157 | ILAY = 2 | 
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| 158 | TH0  = THICKH | 
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| 159 | ELSEIF ( H .LE. HLAY(4) ) THEN | 
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| 160 | ILAY = 3 | 
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| 161 | TH0  = THICKH | 
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| 162 | ELSE | 
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| 163 | ILAY = 4 | 
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| 164 | TH0    = MAX( THICKH, 2.D-4 ) | 
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| 165 | ENDIF | 
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| 166 | C  SET START VALUES FOR ITERATION | 
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| 167 | GAM0   = GAMMA | 
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| 168 | IL     = ILAY | 
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| 169 | 1      CONTINUE | 
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| 170 | GAM0   = MAX( GAM0, 1.0001D0 ) | 
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| 171 | GAMSQ  = GAM0**2 | 
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| 172 | GMSQM1 = GAMSQ - 1.D0 | 
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| 173 | C  ENERGY LOSS BY IONIZATION | 
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| 174 | ELOSS  = SIGNUM(ITYPE)**2 * C(22) * | 
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| 175 | *              ( GAMSQ * (LOG(GMSQM1) + C(23)) / GMSQM1 - 1.D0 ) | 
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| 176 | C  LOOK WETHER PARTICLE PENETRATES LAYER BOUNDARY | 
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| 177 | IF ( THICKL(IL) .LT. THCKHN  .AND.  IL .GT. 1 ) THEN | 
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| 178 | C  CALCULATE NEW START VALUES AT LAYER BOUNDARY | 
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| 179 | GAM0 = GAM0 - ELOSS * (THICKL(IL) - TH0) | 
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| 180 | *                              / (PAMA(ITYPE)*COSTHE) | 
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| 181 | IF ( GAM0 .LE. 1.D0 ) THEN | 
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| 182 | GAMMAN = 1.0001D0 | 
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| 183 | GOTO 3 | 
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| 184 | ENDIF | 
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| 185 | TH0  = THICKL(IL) | 
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| 186 | IL   = IL - 1 | 
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| 187 | GOTO 1 | 
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| 188 | ENDIF | 
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| 189 | C  GAMMA VALUE FOR CHARGED PARTICLES AT END OF STEP | 
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| 190 | GAMMAN = GAM0 - ELOSS * (THCKHN-TH0) / (PAMA(ITYPE)*COSTHE) | 
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| 191 | 3      CONTINUE | 
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| 192 |  | 
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| 193 | ELSE | 
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| 194 | C  NO LOSS FOR NEUTRAL PARTICLES | 
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| 195 | GAMMAN = GAMMA | 
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| 196 | ENDIF | 
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| 197 |  | 
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| 198 | C  PARTICLE HAS TO BE TRACKED TO THE CUTOFF ENERGY FOR CERENKOV PHOTONS | 
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| 199 | C  (AS NEUTRAL DO NOT LOOSE ENERGY IN UPDATE, THIS CONDITION IS | 
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| 200 | C  FULFILLED BY CHARGED PARTICLES ONLY) | 
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| 201 | C  (AS CERENKOV RUNS NOT WITH HORIZONT, NO PROGRAMMING FOR HORIZONT) | 
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| 202 | IF ( GAMMAN .LT. GLCUT ) THEN | 
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| 203 | GAMMAN = 0.9D0 + GLCUT * 0.1D0 | 
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| 204 |  | 
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| 205 | C  SET START VALUES FOR ITERATION | 
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| 206 | IL     = ILAY | 
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| 207 | CHIT   = 0.D0 | 
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| 208 | GAM0   = GAMMA | 
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| 209 | TH0    = MAX( THICKH, 2.D-4 ) | 
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| 210 | 2      CONTINUE | 
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| 211 | GAM0   = MAX( GAM0, 1.0001D0 ) | 
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| 212 | GAMSQ  = GAM0**2 | 
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| 213 | GMSQM1 = GAMSQ - 1.D0 | 
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| 214 | C  ENERGY LOSS BY IONIZATION | 
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| 215 | ELOSS  = SIGNUM(ITYPE)**2 * C(22) * | 
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| 216 | *             ( GAMSQ * (LOG(GMSQM1) + C(23)) / GMSQM1 -1.D0 ) | 
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| 217 | ELOSS  =  ELOSS / (PAMA(ITYPE) * COSTHE) | 
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| 218 | GAMK   = GAM0 - ELOSS * (THICKL(ILAY) - TH0) | 
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| 219 | C  LOOK WETHER PARTICLE PENETRATES LAYER BOUNDARY | 
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| 220 | IF (GAMMAN .LT. GAMK .AND. IL. GT. 1 ) THEN | 
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| 221 | C  CALCULATE PORTION OF RANGE AND NEW START VALUES AT LAYER BOUNDARY | 
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| 222 | CHIT = CHIT + (THICKL(IL) - TH0) / COSTHE | 
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| 223 | GAM0 = GAMK | 
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| 224 | TH0  = THICKL(IL) | 
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| 225 | IL   = IL - 1 | 
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| 226 | GOTO 2 | 
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| 227 | ENDIF | 
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| 228 | C  PENETRATED MATTER THICKNESS | 
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| 229 | CHI    = CHIT + (GAM0 - GAMMAN) / (ELOSS*COSTHE) | 
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| 230 | IF ( DEBUG ) WRITE(MDEBUG,*)'UPDATE: GAMMAN,CHI=', | 
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| 231 | *                                  SNGL(GAMMAN),SNGL(CHI) | 
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| 232 | C  CALCULATE CORRECTED PATH PARAMETERS | 
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| 233 | THCKHC = THICKH + COSTHE * CHI | 
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| 234 | HNEWC  = HEIGH(THCKHC) | 
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| 235 | DT     = SN / (C(25) * BETA * GAMMA) | 
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| 236 | RATIO  = .5D0 * (H-HNEWC) / DH | 
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| 237 | DH     = H - HNEWC | 
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| 238 | SN     = DH / COSTHE | 
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| 239 | SN1    = 0.25D0 * SN | 
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| 240 | TFLAG  = .TRUE. | 
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| 241 | ELSE | 
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| 242 | TFLAG  = .FALSE. | 
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| 243 | ENDIF | 
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| 244 |  | 
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| 245 | C----------------------------------------------------------------------- | 
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| 246 | IF ( IPAS .EQ. 0 ) THEN | 
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| 247 | C  UPDATE TO THE END POINT OF THE TRACK | 
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| 248 |  | 
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| 249 | IF ( MUS ) THEN | 
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| 250 | C  COULOMB SCATTERING ANGLE (FOR MUONS ONLY) | 
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| 251 | IF ( FMOLI) THEN | 
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| 252 | C  TREAT MUON MULTIPLE SCATTERING BY MOLIERE THEORY (SEE GEANT) | 
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| 253 | C  CALCULATE AVERAGE DENSITY AND NUMBER OF SCATTERING (OMEGA) | 
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| 254 | DENS   = CHI/DH * COSTHE | 
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| 255 | OMEGA  = OMC * CHI /  BETA**2 | 
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| 256 | IF ( OMEGA .LE. 20.D0 ) THEN | 
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| 257 | C  FEW SCATTERING EVENTS, APPLY PLURAL COULOMB SCATTERING | 
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| 258 | CALL MUCOUL(OMEGA,DENS,VSCAT) | 
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| 259 | ELSE | 
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| 260 | C  ENOUGH SCATTERING EVENTS, APPLY MOLIERE'S THEORY | 
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| 261 | CALL MMOLIE(OMEGA,DENS,VSCAT) | 
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| 262 | ENDIF | 
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| 263 | ELSE | 
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| 264 | C  TREAT MUON MULTIPLE SCATTERING BY GAUSS DISTRIBUTION | 
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| 265 | VSCAT = RANNOR( 0.D0, C(30) * SQRT( CHI/C(21) ) | 
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| 266 | *                          / (PAMA(5) * GAMMA * BETA**2) ) | 
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| 267 | ENDIF | 
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| 268 | V = VSCAT | 
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| 269 | CALL RMMAR( RD,1,1 ) | 
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| 270 | PHISCT = RD(1) * PI2 | 
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| 271 | IF(DEBUG)WRITE(MDEBUG,*)'UPDATE: VSCAT=',SNGL(VSCAT), | 
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| 272 | *                                  ' PHISCT=',SNGL(PHISCT) | 
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| 273 | ENDIF | 
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| 274 |  | 
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| 275 | C  CERENKOV RADIATION: LOOK, WHETHER PATH ENDS ABOVE LOWEST OBSERV.LEVEL | 
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| 276 | IF ( TFLAG ) THEN | 
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| 277 | HNEW   = HNEWC | 
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| 278 | THCKHN = THCKHC | 
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| 279 | IF (DEBUG) WRITE(MDEBUG,*)'UPDATE: CHANGED HNEW =',SNGL(HNEW) | 
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| 280 | ENDIF | 
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| 281 | IF ( HNEW .GT. OBSLEV(NOBSLV) ) THEN | 
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| 282 | ICRNKV = 1 | 
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| 283 | ELSE | 
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| 284 | ICRNKV = 0 | 
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| 285 | ENDIF | 
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| 286 |  | 
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| 287 | C  UPDATE TO THE OBSERVATION LEVELS | 
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| 288 | ELSE | 
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| 289 | IF ( MUS ) THEN | 
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| 290 | C  COULOMB SCATTERING ANGLE (FOR MUONS ONLY) | 
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| 291 | V = VSCAT * SQRT( DTHICK / CHI ) | 
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| 292 | ENDIF | 
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| 293 |  | 
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| 294 | C  CERENKOV RADIATION: LOOK, WHETHER LOWEST OBSERVATION LEVEL | 
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| 295 | IF ( IPAS .EQ. NOBSLV ) THEN | 
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| 296 | ICRNKV = 1 | 
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| 297 | ELSE | 
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| 298 | ICRNKV = 0 | 
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| 299 | ENDIF | 
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| 300 | ENDIF | 
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| 301 |  | 
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| 302 | C  REJECT ALL PARTICLES IF BELOW KINETIC ENERGY CUT | 
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| 303 | IF ( GAMMAN .LT. GLCUT .AND. ICRNKV .EQ. 0 ) THEN | 
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| 304 | IF (DEBUG) | 
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| 305 | *    WRITE(MDEBUG,*) 'UPDATE: PARTICLE ',ITYPE,' BELOW ENERGY CUT' | 
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| 306 | *                   ,' CERENKOV LIGHT NOT CALCULATED' | 
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| 307 | RETURN | 
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| 308 | ENDIF | 
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| 309 |  | 
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| 310 | C----------------------------------------------------------------------- | 
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| 311 | C  CHARGED PARTICLES SUFFER IONIZATION LOSS, DEFLECTION IN MAGNETIC | 
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| 312 | C  FIELD AND MUONS IN ADDITION DO MULTIPLE COULOMB SCATTERING | 
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| 313 |  | 
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| 314 | IF ( SIGNUM(ITYPE) .NE. 0.D0 ) THEN | 
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| 315 | C  DEFLECTION IN EARTH MAGNETIC FIELD ON FIRST HALF OF STEP | 
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| 316 | ALPHA1 = SIGNUM(ITYPE) * | 
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| 317 | *         MIN( 1.D0, 2.D0*SN1*BNORMC /(PAMA(ITYPE)*BETA*GAMMA) ) | 
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| 318 | SINTH1 = SQRT( 1.D0 - COSTHE**2 ) | 
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| 319 | U10    = SINTH1 * COS(-PHI) | 
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| 320 | V10    = SINTH1 * SIN(-PHI) | 
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| 321 | W10    = COSTHE | 
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| 322 | FNORM1 = 1.D0 - 0.5D0*ALPHA1**2 * (1.D0 - 0.75D0*ALPHA1**2) | 
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| 323 | F1COS1 = ( 1.D0 - FNORM1 ) * COSB | 
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| 324 | F1SIN1 = ( 1.D0 - FNORM1 ) * SINB | 
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| 325 | VVV = V10 * ALPHA1 * FNORM1 | 
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| 326 | U12 = U10 * (1.D0 - F1SIN1*SINB) + W10*F1SIN1*COSB + VVV*SINB | 
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| 327 | V12 = FNORM1 * ( V10 - ALPHA1 * (U10 * SINB - W10 * COSB) ) | 
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| 328 | W12 = W10 * (1.D0 - F1COS1*COSB) + U10*F1COS1*SINB - VVV*COSB | 
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| 329 | RADINV = 1.5D0 - 0.5D0 * ( U12**2 + V12**2 + W12**2 ) | 
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| 330 | W12 = MIN( 1.D0, RADINV * W12 ) | 
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| 331 | IF ( W12 .LE. C(29) ) THEN | 
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| 332 | IF (DEBUG) | 
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| 333 | *    WRITE(MDEBUG,*) 'UPDATE: PARTICLE ',ITYPE,' BELOW ANGLE CUT 1' | 
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| 334 | RETURN | 
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| 335 | ENDIF | 
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| 336 | SN2 = 0.25D0 * DH / W12 | 
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| 337 | U12 = RADINV * U12 | 
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| 338 | V12 = RADINV * V12 | 
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| 339 | IF ( U12**2 + V12**2 .GT. 3.D-38 ) THEN | 
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| 340 | PHI1 = -ATAN2( V12, U12 ) | 
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| 341 | ELSE | 
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| 342 | PHI1 = 0.D0 | 
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| 343 | ENDIF | 
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| 344 | C  CERENKOV RADIATION: FILL PARTICLE COORDINATES INTO COMMON CERHDR | 
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| 345 | IF ( ICRNKV .EQ. 1 ) THEN | 
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| 346 | XPART = X + SN1 * U10 + SN2 * U12 | 
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| 347 | YPART = Y - SN1 * V10 - SN2 * V12 | 
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| 348 | TPART = T + ( SN1 + SN2 ) / ( C(25) * BETA ) | 
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| 349 | ZPART = H - DH * 0.5D0 | 
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| 350 | WPART = W12 | 
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| 351 | UPART = U12 | 
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| 352 | VPART = -V12 | 
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| 353 | CALL CERENH( SN1+SN2, BETA ) | 
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| 354 | ENDIF | 
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| 355 |  | 
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| 356 | C  CHANGE DIRECTION BY COULOMB SCATTERING (FOR MUONS ONLY) | 
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| 357 | C  BEFORE SCATTERING : DIRECTION COSINES ARE U12,V12,W12 | 
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| 358 | C  AFTER  SCATTERING : DIRECTION COSINES ARE U20,V20,W20 | 
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| 359 | IF ( MUS ) THEN | 
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| 360 | CALL ADDANG( W12,PHI1, COS(V),PHISCT, W20,PHI1 ) | 
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| 361 | IF ( W20 .LT. C(29) ) THEN | 
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| 362 | IF (DEBUG) WRITE(MDEBUG,*) 'UPDATE: MUON BELOW ANGLE CUT' | 
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| 363 | RETURN | 
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| 364 | ENDIF | 
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| 365 | SINTH2 = SQRT( 1.D0 - W20**2 ) | 
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| 366 | U20    = SINTH2 * COS( -PHI1 ) | 
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| 367 | V20    = SINTH2 * SIN( -PHI1 ) | 
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| 368 | ELSE | 
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| 369 | U20    = U12 | 
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| 370 | V20    = V12 | 
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| 371 | W20    = W12 | 
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| 372 | ENDIF | 
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| 373 |  | 
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| 374 | C  NEW PATH LENGTH, NEW BETA VALUE BECAUSE OF IONIZATION ENERGY LOSS | 
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| 375 | SN3    = 0.25D0 * DH / W20 | 
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| 376 | BETAN  = SQRT( GAMMAN**2 - 1.D0 ) / GAMMAN | 
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| 377 | C  DEFLECTION IN EARTH MAGNETIC FIELD ON SECOND HALF OF STEP | 
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| 378 | ALPHA2 = SIGNUM(ITYPE) * | 
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| 379 | *           MIN(1.D0,2.D0*SN3*BNORMC / (PAMA(ITYPE)*BETAN*GAMMAN)) | 
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| 380 | FNORM2 = 1.D0 - 0.5D0*ALPHA2**2 * (1.D0 - 0.75D0*ALPHA2**2) | 
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| 381 | F1SIN2 = ( 1.D0 - FNORM2 ) * SINB | 
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| 382 | F1COS2 = ( 1.D0 - FNORM2 ) * COSB | 
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| 383 | VVV = V20 * ALPHA2 * FNORM2 | 
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| 384 | U22 = U20*(1.D0 - F1SIN2*SINB) + W20*F1SIN2*COSB + VVV*SINB | 
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| 385 | V22 = FNORM2 * ( V20 - ALPHA2 * (U20 * SINB - W20 * COSB) ) | 
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| 386 | W22 = W20*(1.D0 - F1COS2*COSB) + U20*F1COS2*SINB - VVV*COSB | 
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| 387 | RADINV = 1.5D0 - 0.5D0 * ( U22**2 + V22**2 + W22**2 ) | 
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| 388 | W22 = MIN( 1.D0, RADINV * W22 ) | 
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| 389 | IF ( W22 .LT. C(29) ) THEN | 
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| 390 | IF (DEBUG) | 
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| 391 | *    WRITE(MDEBUG,*) 'UPDATE: PARTICLE ',ITYPE,' BELOW ANGLE CUT 2' | 
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| 392 | RETURN | 
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| 393 | ENDIF | 
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| 394 | SN4 = 0.25D0 * DH / W22 | 
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| 395 | U22 = RADINV * U22 | 
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| 396 | V22 = RADINV * V22 | 
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| 397 | OUTPAR(3) = W22 | 
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| 398 | IF ( U22**2 + V22**2 .GT. 3.D-38 ) THEN | 
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| 399 | OUTPAR(4) = -ATAN2( V22, U22 ) | 
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| 400 | ELSE | 
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| 401 | OUTPAR(4) = 0.D0 | 
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| 402 | ENDIF | 
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| 403 | C  UPDATE COORDINATES AND TIME TO THE END OF DISTANCE | 
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| 404 | IF ( TFLAG ) THEN | 
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| 405 | OUTPAR(6) = T + DT* ( RATIO*GAMMA + (1.D0-RATIO)*GAMMAN) | 
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| 406 | ELSE | 
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| 407 | OUTPAR(6) = T + (SN1 + SN2)/(BETA *C(25)) + | 
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| 408 | *                    (SN3 + SN4)/(BETAN*C(25)) | 
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| 409 | ENDIF | 
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| 410 | OUTPAR(7) = X + SN1*U10 + SN2*U12 + SN3*U20 + SN4*U22 | 
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| 411 | OUTPAR(8) = Y - SN1*V10 - SN2*V12 - SN3*V20 - SN4*V22 | 
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| 412 | C  CERENKOV RADIATION: FILL PARTICLE COORDINATES INTO COMMON CERHDR | 
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| 413 | IF ( ICRNKV .EQ. 1 ) THEN | 
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| 414 | XPART = OUTPAR(7) | 
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| 415 | YPART = OUTPAR(8) | 
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| 416 | ZPART = HNEW | 
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| 417 | TPART = OUTPAR(6) | 
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| 418 | WPART = W22 | 
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| 419 | UPART = U22 | 
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| 420 | VPART = -V22 | 
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| 421 | CALL CERENH( SN3+SN4, BETAN ) | 
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| 422 | C  REJECT PARTICLES AFTER PRODUCTION OF CERENKOV LIGHT | 
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| 423 | IF ( GAMMAN .LT. GLCUT ) THEN | 
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| 424 | IF (DEBUG) WRITE(MDEBUG,*) 'UPDATE: PARTICLE ',ITYPE, | 
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| 425 | *           ' BELOW ENERGY CUT AFTER CREATION OF CERENKOV LIGHT' | 
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| 426 | RETURN | 
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| 427 | ENDIF | 
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| 428 | ENDIF | 
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| 429 | ELSE | 
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| 430 |  | 
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| 431 | C----------------------------------------------------------------------- | 
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| 432 | C  NEUTRAL PARTICLES | 
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| 433 | C  NO COULOMB SCATTERING, NO DEFLECTION IN MAGNETIC FIELD | 
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| 434 |  | 
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| 435 | C  HORIZONTAL PATH LENGTH | 
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| 436 | DR        = SN * SQRT( 1.D0 - COSTHE**2 ) | 
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| 437 | C  UPDATE COORDINATES AND TIME | 
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| 438 | OUTPAR(3) = COSTHE | 
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| 439 | OUTPAR(4) = PHI | 
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| 440 | OUTPAR(6) = T + SN / ( C(25) * BETA ) | 
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| 441 | OUTPAR(7) = X + DR * COS(PHI) | 
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| 442 | OUTPAR(8) = Y + DR * SIN(PHI) | 
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| 443 | ENDIF | 
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| 444 |  | 
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| 445 | C----------------------------------------------------------------------- | 
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| 446 | OUTPAR( 1) = CURPAR(1) | 
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| 447 | OUTPAR( 2) = GAMMAN | 
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| 448 | OUTPAR( 5) = HNEW | 
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| 449 | OUTPAR( 9) = GEN | 
|---|
| 450 | OUTPAR(10) = ALEVEL | 
|---|
| 451 |  | 
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| 452 | C  REGULAR END OF UPDATE | 
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| 453 | IRET2 = 0 | 
|---|
| 454 |  | 
|---|
| 455 |  | 
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| 456 | IF (DEBUG) WRITE(MDEBUG,458) (OUTPAR(I),I=1,9) | 
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| 457 | 458 FORMAT(' UPDATE: OUTPAR=',1P,9E10.3) | 
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| 458 |  | 
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| 459 | RETURN | 
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| 460 | END | 
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