226 lines
		
	
	
		
			5.8 KiB
		
	
	
	
		
			Fortran
		
	
	
	
			
		
		
	
	
			226 lines
		
	
	
		
			5.8 KiB
		
	
	
	
		
			Fortran
		
	
	
	
| *> \brief \b CPTTRF
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| *
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| *  =========== DOCUMENTATION ===========
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| *
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| * Online html documentation available at
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| *            http://www.netlib.org/lapack/explore-html/
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| *
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| *> \htmlonly
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| *> Download CPTTRF + dependencies
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| *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.tgz?format=tgz&filename=/lapack/lapack_routine/cpttrf.f">
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| *> [TGZ]</a>
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| *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.zip?format=zip&filename=/lapack/lapack_routine/cpttrf.f">
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| *> [ZIP]</a>
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| *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.txt?format=txt&filename=/lapack/lapack_routine/cpttrf.f">
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| *> [TXT]</a>
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| *> \endhtmlonly
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| *
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| *  Definition:
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| *  ===========
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| *
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| *       SUBROUTINE CPTTRF( N, D, E, INFO )
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| *
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| *       .. Scalar Arguments ..
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| *       INTEGER            INFO, N
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| *       ..
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| *       .. Array Arguments ..
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| *       REAL               D( * )
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| *       COMPLEX            E( * )
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| *       ..
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| *
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| *
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| *> \par Purpose:
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| *  =============
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| *>
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| *> \verbatim
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| *>
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| *> CPTTRF computes the L*D*L**H factorization of a complex Hermitian
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| *> positive definite tridiagonal matrix A.  The factorization may also
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| *> be regarded as having the form A = U**H *D*U.
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| *> \endverbatim
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| *
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| *  Arguments:
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| *  ==========
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| *
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| *> \param[in] N
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| *> \verbatim
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| *>          N is INTEGER
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| *>          The order of the matrix A.  N >= 0.
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| *> \endverbatim
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| *>
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| *> \param[in,out] D
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| *> \verbatim
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| *>          D is REAL array, dimension (N)
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| *>          On entry, the n diagonal elements of the tridiagonal matrix
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| *>          A.  On exit, the n diagonal elements of the diagonal matrix
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| *>          D from the L*D*L**H factorization of A.
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| *> \endverbatim
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| *>
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| *> \param[in,out] E
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| *> \verbatim
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| *>          E is COMPLEX array, dimension (N-1)
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| *>          On entry, the (n-1) subdiagonal elements of the tridiagonal
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| *>          matrix A.  On exit, the (n-1) subdiagonal elements of the
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| *>          unit bidiagonal factor L from the L*D*L**H factorization of A.
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| *>          E can also be regarded as the superdiagonal of the unit
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| *>          bidiagonal factor U from the U**H *D*U factorization of A.
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| *> \endverbatim
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| *>
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| *> \param[out] INFO
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| *> \verbatim
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| *>          INFO is INTEGER
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| *>          = 0: successful exit
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| *>          < 0: if INFO = -k, the k-th argument had an illegal value
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| *>          > 0: if INFO = k, the leading principal minor of order k
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| *>               is not positive; if k < N, the factorization could not
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| *>               be completed, while if k = N, the factorization was
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| *>               completed, but D(N) <= 0.
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| *> \endverbatim
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| *
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| *  Authors:
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| *  ========
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| *
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| *> \author Univ. of Tennessee
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| *> \author Univ. of California Berkeley
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| *> \author Univ. of Colorado Denver
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| *> \author NAG Ltd.
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| *
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| *> \ingroup complexPTcomputational
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| *
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| *  =====================================================================
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|       SUBROUTINE CPTTRF( N, D, E, INFO )
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| *
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| *  -- LAPACK computational routine --
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| *  -- LAPACK is a software package provided by Univ. of Tennessee,    --
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| *  -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..--
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| *
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| *     .. Scalar Arguments ..
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|       INTEGER            INFO, N
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| *     ..
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| *     .. Array Arguments ..
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|       REAL               D( * )
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|       COMPLEX            E( * )
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| *     ..
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| *
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| *  =====================================================================
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| *
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| *     .. Parameters ..
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|       REAL               ZERO
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|       PARAMETER          ( ZERO = 0.0E+0 )
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| *     ..
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| *     .. Local Scalars ..
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|       INTEGER            I, I4
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|       REAL               EII, EIR, F, G
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| *     ..
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| *     .. External Subroutines ..
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|       EXTERNAL           XERBLA
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| *     ..
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| *     .. Intrinsic Functions ..
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|       INTRINSIC          AIMAG, CMPLX, MOD, REAL
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| *     ..
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| *     .. Executable Statements ..
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| *
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| *     Test the input parameters.
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| *
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|       INFO = 0
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|       IF( N.LT.0 ) THEN
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|          INFO = -1
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|          CALL XERBLA( 'CPTTRF', -INFO )
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|          RETURN
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|       END IF
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| *
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| *     Quick return if possible
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| *
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|       IF( N.EQ.0 )
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|      $   RETURN
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| *
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| *     Compute the L*D*L**H (or U**H *D*U) factorization of A.
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| *
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|       I4 = MOD( N-1, 4 )
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|       DO 10 I = 1, I4
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|          IF( D( I ).LE.ZERO ) THEN
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|             INFO = I
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|             GO TO 20
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|          END IF
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|          EIR = REAL( E( I ) )
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|          EII = AIMAG( E( I ) )
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|          F = EIR / D( I )
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|          G = EII / D( I )
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|          E( I ) = CMPLX( F, G )
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|          D( I+1 ) = D( I+1 ) - F*EIR - G*EII
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|    10 CONTINUE
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| *
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|       DO 110 I = I4+1, N - 4, 4
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| *
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| *        Drop out of the loop if d(i) <= 0: the matrix is not positive
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| *        definite.
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| *
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|          IF( D( I ).LE.ZERO ) THEN
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|             INFO = I
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|             GO TO 20
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|          END IF
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| *
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| *        Solve for e(i) and d(i+1).
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| *
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|          EIR = REAL( E( I ) )
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|          EII = AIMAG( E( I ) )
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|          F = EIR / D( I )
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|          G = EII / D( I )
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|          E( I ) = CMPLX( F, G )
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|          D( I+1 ) = D( I+1 ) - F*EIR - G*EII
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| *
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|          IF( D( I+1 ).LE.ZERO ) THEN
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|             INFO = I+1
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|             GO TO 20
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|          END IF
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| *
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| *        Solve for e(i+1) and d(i+2).
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| *
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|          EIR = REAL( E( I+1 ) )
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|          EII = AIMAG( E( I+1 ) )
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|          F = EIR / D( I+1 )
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|          G = EII / D( I+1 )
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|          E( I+1 ) = CMPLX( F, G )
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|          D( I+2 ) = D( I+2 ) - F*EIR - G*EII
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| *
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|          IF( D( I+2 ).LE.ZERO ) THEN
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|             INFO = I+2
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|             GO TO 20
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|          END IF
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| *
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| *        Solve for e(i+2) and d(i+3).
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| *
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|          EIR = REAL( E( I+2 ) )
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|          EII = AIMAG( E( I+2 ) )
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|          F = EIR / D( I+2 )
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|          G = EII / D( I+2 )
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|          E( I+2 ) = CMPLX( F, G )
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|          D( I+3 ) = D( I+3 ) - F*EIR - G*EII
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| *
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|          IF( D( I+3 ).LE.ZERO ) THEN
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|             INFO = I+3
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|             GO TO 20
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|          END IF
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| *
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| *        Solve for e(i+3) and d(i+4).
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| *
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|          EIR = REAL( E( I+3 ) )
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|          EII = AIMAG( E( I+3 ) )
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|          F = EIR / D( I+3 )
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|          G = EII / D( I+3 )
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|          E( I+3 ) = CMPLX( F, G )
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|          D( I+4 ) = D( I+4 ) - F*EIR - G*EII
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|   110 CONTINUE
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| *
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| *     Check d(n) for positive definiteness.
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| *
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|       IF( D( N ).LE.ZERO )
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|      $   INFO = N
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| *
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|    20 CONTINUE
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|       RETURN
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| *
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| *     End of CPTTRF
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| *
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|       END
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