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https://git.planet-casio.com/Lephenixnoir/OpenLibm.git
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c977aa998f
Replace amos with slatec
353 lines
11 KiB
Fortran
353 lines
11 KiB
Fortran
*DECK CUNK1
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SUBROUTINE CUNK1 (Z, FNU, KODE, MR, N, Y, NZ, TOL, ELIM, ALIM)
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C***BEGIN PROLOGUE CUNK1
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C***SUBSIDIARY
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C***PURPOSE Subsidiary to CBESK
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C***LIBRARY SLATEC
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C***TYPE ALL (CUNK1-A, ZUNK1-A)
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C***AUTHOR Amos, D. E., (SNL)
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C***DESCRIPTION
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C
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C CUNK1 COMPUTES K(FNU,Z) AND ITS ANALYTIC CONTINUATION FROM THE
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C RIGHT HALF PLANE TO THE LEFT HALF PLANE BY MEANS OF THE
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C UNIFORM ASYMPTOTIC EXPANSION.
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C MR INDICATES THE DIRECTION OF ROTATION FOR ANALYTIC CONTINUATION.
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C NZ=-1 MEANS AN OVERFLOW WILL OCCUR
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C
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C***SEE ALSO CBESK
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C***ROUTINES CALLED CS1S2, CUCHK, CUNIK, R1MACH
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C***REVISION HISTORY (YYMMDD)
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C 830501 DATE WRITTEN
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C 910415 Prologue converted to Version 4.0 format. (BAB)
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C***END PROLOGUE CUNK1
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COMPLEX CFN, CK, CONE, CRSC, CS, CSCL, CSGN, CSPN, CSR, CSS,
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* CWRK, CY, CZERO, C1, C2, PHI, RZ, SUM, S1, S2, Y, Z,
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* ZETA1, ZETA2, ZR, PHID, ZETA1D, ZETA2D, SUMD
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REAL ALIM, ANG, APHI, ASC, ASCLE, BRY, CPN, C2I, C2M, C2R, ELIM,
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* FMR, FN, FNF, FNU, PI, RS1, SGN, SPN, TOL, X, R1MACH
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INTEGER I, IB, IFLAG, IFN, IL, INIT, INU, IUF, K, KDFLG, KFLAG,
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* KK, KODE, MR, N, NW, NZ, J, IPARD, INITD, IC, M
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DIMENSION BRY(3), INIT(2), Y(N), SUM(2), PHI(2), ZETA1(2),
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* ZETA2(2), CY(2), CWRK(16,3), CSS(3), CSR(3)
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DATA CZERO, CONE / (0.0E0,0.0E0) , (1.0E0,0.0E0) /
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DATA PI / 3.14159265358979324E0 /
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C***FIRST EXECUTABLE STATEMENT CUNK1
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KDFLG = 1
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NZ = 0
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C-----------------------------------------------------------------------
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C EXP(-ALIM)=EXP(-ELIM)/TOL=APPROX. ONE PRECISION GREATER THAN
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C THE UNDERFLOW LIMIT
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C-----------------------------------------------------------------------
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CSCL = CMPLX(1.0E0/TOL,0.0E0)
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CRSC = CMPLX(TOL,0.0E0)
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CSS(1) = CSCL
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CSS(2) = CONE
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CSS(3) = CRSC
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CSR(1) = CRSC
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CSR(2) = CONE
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CSR(3) = CSCL
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BRY(1) = 1.0E+3*R1MACH(1)/TOL
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BRY(2) = 1.0E0/BRY(1)
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BRY(3) = R1MACH(2)
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X = REAL(Z)
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ZR = Z
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IF (X.LT.0.0E0) ZR = -Z
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J=2
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DO 70 I=1,N
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C-----------------------------------------------------------------------
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C J FLIP FLOPS BETWEEN 1 AND 2 IN J = 3 - J
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C-----------------------------------------------------------------------
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J = 3 - J
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FN = FNU + (I-1)
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INIT(J) = 0
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CALL CUNIK(ZR, FN, 2, 0, TOL, INIT(J), PHI(J), ZETA1(J),
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* ZETA2(J), SUM(J), CWRK(1,J))
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IF (KODE.EQ.1) GO TO 20
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CFN = CMPLX(FN,0.0E0)
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S1 = ZETA1(J) - CFN*(CFN/(ZR+ZETA2(J)))
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GO TO 30
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20 CONTINUE
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S1 = ZETA1(J) - ZETA2(J)
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30 CONTINUE
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C-----------------------------------------------------------------------
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C TEST FOR UNDERFLOW AND OVERFLOW
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C-----------------------------------------------------------------------
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RS1 = REAL(S1)
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IF (ABS(RS1).GT.ELIM) GO TO 60
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IF (KDFLG.EQ.1) KFLAG = 2
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IF (ABS(RS1).LT.ALIM) GO TO 40
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C-----------------------------------------------------------------------
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C REFINE TEST AND SCALE
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C-----------------------------------------------------------------------
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APHI = ABS(PHI(J))
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RS1 = RS1 + ALOG(APHI)
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IF (ABS(RS1).GT.ELIM) GO TO 60
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IF (KDFLG.EQ.1) KFLAG = 1
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IF (RS1.LT.0.0E0) GO TO 40
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IF (KDFLG.EQ.1) KFLAG = 3
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40 CONTINUE
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C-----------------------------------------------------------------------
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C SCALE S1 TO KEEP INTERMEDIATE ARITHMETIC ON SCALE NEAR
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C EXPONENT EXTREMES
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C-----------------------------------------------------------------------
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S2 = PHI(J)*SUM(J)
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C2R = REAL(S1)
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C2I = AIMAG(S1)
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C2M = EXP(C2R)*REAL(CSS(KFLAG))
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S1 = CMPLX(C2M,0.0E0)*CMPLX(COS(C2I),SIN(C2I))
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S2 = S2*S1
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IF (KFLAG.NE.1) GO TO 50
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CALL CUCHK(S2, NW, BRY(1), TOL)
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IF (NW.NE.0) GO TO 60
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50 CONTINUE
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CY(KDFLG) = S2
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Y(I) = S2*CSR(KFLAG)
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IF (KDFLG.EQ.2) GO TO 75
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KDFLG = 2
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GO TO 70
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60 CONTINUE
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IF (RS1.GT.0.0E0) GO TO 290
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C-----------------------------------------------------------------------
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C FOR X.LT.0.0, THE I FUNCTION TO BE ADDED WILL OVERFLOW
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C-----------------------------------------------------------------------
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IF (X.LT.0.0E0) GO TO 290
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KDFLG = 1
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Y(I) = CZERO
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NZ=NZ+1
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IF (I.EQ.1) GO TO 70
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IF (Y(I-1).EQ.CZERO) GO TO 70
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Y(I-1) = CZERO
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NZ=NZ+1
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70 CONTINUE
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I=N
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75 CONTINUE
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RZ = CMPLX(2.0E0,0.0E0)/ZR
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CK = CMPLX(FN,0.0E0)*RZ
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IB = I+1
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IF (N.LT.IB) GO TO 160
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C-----------------------------------------------------------------------
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C TEST LAST MEMBER FOR UNDERFLOW AND OVERFLOW, SET SEQUENCE TO ZERO
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C ON UNDERFLOW
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C-----------------------------------------------------------------------
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FN = FNU+(N-1)
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IPARD = 1
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IF (MR.NE.0) IPARD = 0
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INITD = 0
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CALL CUNIK(ZR,FN,2,IPARD,TOL,INITD,PHID,ZETA1D,ZETA2D,SUMD,
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*CWRK(1,3))
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IF (KODE.EQ.1) GO TO 80
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CFN=CMPLX(FN,0.0E0)
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S1=ZETA1D-CFN*(CFN/(ZR+ZETA2D))
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GO TO 90
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80 CONTINUE
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S1=ZETA1D-ZETA2D
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90 CONTINUE
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RS1=REAL(S1)
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IF (ABS(RS1).GT.ELIM) GO TO 95
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IF (ABS(RS1).LT.ALIM) GO TO 100
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C-----------------------------------------------------------------------
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C REFINE ESTIMATE AND TEST
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C-----------------------------------------------------------------------
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APHI=ABS(PHID)
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RS1=RS1+ALOG(APHI)
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IF (ABS(RS1).LT.ELIM) GO TO 100
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95 CONTINUE
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IF (RS1.GT.0.0E0) GO TO 290
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C-----------------------------------------------------------------------
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C FOR X.LT.0.0, THE I FUNCTION TO BE ADDED WILL OVERFLOW
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C-----------------------------------------------------------------------
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IF (X.LT.0.0E0) GO TO 290
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NZ=N
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DO 96 I=1,N
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Y(I) = CZERO
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96 CONTINUE
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RETURN
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100 CONTINUE
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C-----------------------------------------------------------------------
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C RECUR FORWARD FOR REMAINDER OF THE SEQUENCE
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C-----------------------------------------------------------------------
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S1 = CY(1)
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S2 = CY(2)
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C1 = CSR(KFLAG)
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ASCLE = BRY(KFLAG)
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DO 120 I=IB,N
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C2 = S2
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S2 = CK*S2 + S1
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S1 = C2
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CK = CK + RZ
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C2 = S2*C1
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Y(I) = C2
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IF (KFLAG.GE.3) GO TO 120
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C2R = REAL(C2)
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C2I = AIMAG(C2)
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C2R = ABS(C2R)
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C2I = ABS(C2I)
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C2M = MAX(C2R,C2I)
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IF (C2M.LE.ASCLE) GO TO 120
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KFLAG = KFLAG + 1
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ASCLE = BRY(KFLAG)
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S1 = S1*C1
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S2 = C2
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S1 = S1*CSS(KFLAG)
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S2 = S2*CSS(KFLAG)
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C1 = CSR(KFLAG)
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120 CONTINUE
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160 CONTINUE
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IF (MR.EQ.0) RETURN
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C-----------------------------------------------------------------------
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C ANALYTIC CONTINUATION FOR RE(Z).LT.0.0E0
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C-----------------------------------------------------------------------
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NZ = 0
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FMR = MR
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SGN = -SIGN(PI,FMR)
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C-----------------------------------------------------------------------
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C CSPN AND CSGN ARE COEFF OF K AND I FUNCTIONS RESP.
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C-----------------------------------------------------------------------
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CSGN = CMPLX(0.0E0,SGN)
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INU = FNU
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FNF = FNU - INU
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IFN = INU + N - 1
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ANG = FNF*SGN
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CPN = COS(ANG)
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SPN = SIN(ANG)
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CSPN = CMPLX(CPN,SPN)
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IF (MOD(IFN,2).EQ.1) CSPN = -CSPN
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ASC = BRY(1)
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KK = N
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IUF = 0
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KDFLG = 1
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IB = IB-1
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IC = IB-1
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DO 260 K=1,N
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FN = FNU + (KK-1)
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C-----------------------------------------------------------------------
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C LOGIC TO SORT OUT CASES WHOSE PARAMETERS WERE SET FOR THE K
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C FUNCTION ABOVE
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C-----------------------------------------------------------------------
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M=3
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IF (N.GT.2) GO TO 175
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170 CONTINUE
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INITD = INIT(J)
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PHID = PHI(J)
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ZETA1D = ZETA1(J)
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ZETA2D = ZETA2(J)
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SUMD = SUM(J)
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M = J
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J = 3 - J
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GO TO 180
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175 CONTINUE
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IF ((KK.EQ.N).AND.(IB.LT.N)) GO TO 180
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IF ((KK.EQ.IB).OR.(KK.EQ.IC)) GO TO 170
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INITD = 0
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180 CONTINUE
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CALL CUNIK(ZR, FN, 1, 0, TOL, INITD, PHID, ZETA1D,
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* ZETA2D, SUMD, CWRK(1,M))
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IF (KODE.EQ.1) GO TO 190
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CFN = CMPLX(FN,0.0E0)
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S1 = -ZETA1D + CFN*(CFN/(ZR+ZETA2D))
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GO TO 200
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190 CONTINUE
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S1 = -ZETA1D + ZETA2D
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200 CONTINUE
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C-----------------------------------------------------------------------
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C TEST FOR UNDERFLOW AND OVERFLOW
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C-----------------------------------------------------------------------
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RS1 = REAL(S1)
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IF (ABS(RS1).GT.ELIM) GO TO 250
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IF (KDFLG.EQ.1) IFLAG = 2
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IF (ABS(RS1).LT.ALIM) GO TO 210
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C-----------------------------------------------------------------------
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C REFINE TEST AND SCALE
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C-----------------------------------------------------------------------
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APHI = ABS(PHID)
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RS1 = RS1 + ALOG(APHI)
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IF (ABS(RS1).GT.ELIM) GO TO 250
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IF (KDFLG.EQ.1) IFLAG = 1
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IF (RS1.LT.0.0E0) GO TO 210
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IF (KDFLG.EQ.1) IFLAG = 3
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210 CONTINUE
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S2 = CSGN*PHID*SUMD
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C2R = REAL(S1)
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C2I = AIMAG(S1)
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C2M = EXP(C2R)*REAL(CSS(IFLAG))
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S1 = CMPLX(C2M,0.0E0)*CMPLX(COS(C2I),SIN(C2I))
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S2 = S2*S1
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IF (IFLAG.NE.1) GO TO 220
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CALL CUCHK(S2, NW, BRY(1), TOL)
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IF (NW.NE.0) S2 = CMPLX(0.0E0,0.0E0)
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220 CONTINUE
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CY(KDFLG) = S2
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C2 = S2
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S2 = S2*CSR(IFLAG)
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C-----------------------------------------------------------------------
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C ADD I AND K FUNCTIONS, K SEQUENCE IN Y(I), I=1,N
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C-----------------------------------------------------------------------
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S1 = Y(KK)
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IF (KODE.EQ.1) GO TO 240
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CALL CS1S2(ZR, S1, S2, NW, ASC, ALIM, IUF)
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NZ = NZ + NW
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240 CONTINUE
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Y(KK) = S1*CSPN + S2
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KK = KK - 1
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CSPN = -CSPN
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IF (C2.NE.CZERO) GO TO 245
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KDFLG = 1
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GO TO 260
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245 CONTINUE
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IF (KDFLG.EQ.2) GO TO 265
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KDFLG = 2
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GO TO 260
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250 CONTINUE
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IF (RS1.GT.0.0E0) GO TO 290
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S2 = CZERO
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GO TO 220
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260 CONTINUE
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K = N
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265 CONTINUE
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IL = N - K
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IF (IL.EQ.0) RETURN
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C-----------------------------------------------------------------------
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C RECUR BACKWARD FOR REMAINDER OF I SEQUENCE AND ADD IN THE
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C K FUNCTIONS, SCALING THE I SEQUENCE DURING RECURRENCE TO KEEP
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C INTERMEDIATE ARITHMETIC ON SCALE NEAR EXPONENT EXTREMES.
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C-----------------------------------------------------------------------
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S1 = CY(1)
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S2 = CY(2)
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CS = CSR(IFLAG)
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ASCLE = BRY(IFLAG)
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FN = (INU+IL)
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DO 280 I=1,IL
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C2 = S2
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S2 = S1 + CMPLX(FN+FNF,0.0E0)*RZ*S2
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S1 = C2
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FN = FN - 1.0E0
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C2 = S2*CS
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CK = C2
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C1 = Y(KK)
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IF (KODE.EQ.1) GO TO 270
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CALL CS1S2(ZR, C1, C2, NW, ASC, ALIM, IUF)
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NZ = NZ + NW
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270 CONTINUE
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Y(KK) = C1*CSPN + C2
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KK = KK - 1
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CSPN = -CSPN
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IF (IFLAG.GE.3) GO TO 280
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C2R = REAL(CK)
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C2I = AIMAG(CK)
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C2R = ABS(C2R)
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C2I = ABS(C2I)
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C2M = MAX(C2R,C2I)
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IF (C2M.LE.ASCLE) GO TO 280
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IFLAG = IFLAG + 1
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ASCLE = BRY(IFLAG)
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S1 = S1*CS
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S2 = CK
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S1 = S1*CSS(IFLAG)
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S2 = S2*CSS(IFLAG)
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CS = CSR(IFLAG)
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280 CONTINUE
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RETURN
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290 CONTINUE
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NZ = -1
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RETURN
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END
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