202 lines
		
	
	
		
			4.6 KiB
		
	
	
	
		
			Fortran
		
	
	
	
			
		
		
	
	
			202 lines
		
	
	
		
			4.6 KiB
		
	
	
	
		
			Fortran
		
	
	
	
| *> \brief \b ZLAPMR rearranges rows of a matrix as specified by a permutation vector.
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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 ZLAPMR + dependencies
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| *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.tgz?format=tgz&filename=/lapack/lapack_routine/zlapmr.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/zlapmr.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/zlapmr.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 ZLAPMR( FORWRD, M, N, X, LDX, K )
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| *
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| *       .. Scalar Arguments ..
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| *       LOGICAL            FORWRD
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| *       INTEGER            LDX, M, N
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| *       ..
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| *       .. Array Arguments ..
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| *       INTEGER            K( * )
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| *       COMPLEX*16         X( LDX, * )
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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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| *> ZLAPMR rearranges the rows of the M by N matrix X as specified
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| *> by the permutation K(1),K(2),...,K(M) of the integers 1,...,M.
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| *> If FORWRD = .TRUE.,  forward permutation:
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| *>
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| *>      X(K(I),*) is moved X(I,*) for I = 1,2,...,M.
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| *>
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| *> If FORWRD = .FALSE., backward permutation:
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| *>
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| *>      X(I,*) is moved to X(K(I),*) for I = 1,2,...,M.
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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] FORWRD
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| *> \verbatim
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| *>          FORWRD is LOGICAL
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| *>          = .TRUE., forward permutation
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| *>          = .FALSE., backward permutation
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| *> \endverbatim
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| *>
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| *> \param[in] M
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| *> \verbatim
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| *>          M is INTEGER
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| *>          The number of rows of the matrix X. M >= 0.
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| *> \endverbatim
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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 number of columns of the matrix X. N >= 0.
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| *> \endverbatim
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| *>
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| *> \param[in,out] X
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| *> \verbatim
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| *>          X is COMPLEX*16 array, dimension (LDX,N)
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| *>          On entry, the M by N matrix X.
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| *>          On exit, X contains the permuted matrix X.
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| *> \endverbatim
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| *>
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| *> \param[in] LDX
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| *> \verbatim
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| *>          LDX is INTEGER
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| *>          The leading dimension of the array X, LDX >= MAX(1,M).
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| *> \endverbatim
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| *>
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| *> \param[in,out] K
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| *> \verbatim
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| *>          K is INTEGER array, dimension (M)
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| *>          On entry, K contains the permutation vector. K is used as
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| *>          internal workspace, but reset to its original value on
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| *>          output.
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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 complex16OTHERauxiliary
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| *
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| *  =====================================================================
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|       SUBROUTINE ZLAPMR( FORWRD, M, N, X, LDX, K )
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| *
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| *  -- LAPACK auxiliary 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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|       LOGICAL            FORWRD
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|       INTEGER            LDX, M, N
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| *     ..
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| *     .. Array Arguments ..
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|       INTEGER            K( * )
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|       COMPLEX*16         X( LDX, * )
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| *     ..
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| *
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| *  =====================================================================
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| *
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| *     .. Local Scalars ..
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|       INTEGER            I, IN, J, JJ
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|       COMPLEX*16         TEMP
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| *     ..
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| *     .. Executable Statements ..
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| *
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|       IF( M.LE.1 )
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|      $   RETURN
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| *
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|       DO 10 I = 1, M
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|          K( I ) = -K( I )
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|    10 CONTINUE
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| *
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|       IF( FORWRD ) THEN
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| *
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| *        Forward permutation
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| *
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|          DO 50 I = 1, M
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| *
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|             IF( K( I ).GT.0 )
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|      $         GO TO 40
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| *
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|             J = I
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|             K( J ) = -K( J )
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|             IN = K( J )
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| *
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|    20       CONTINUE
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|             IF( K( IN ).GT.0 )
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|      $         GO TO 40
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| *
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|             DO 30 JJ = 1, N
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|                TEMP = X( J, JJ )
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|                X( J, JJ ) = X( IN, JJ )
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|                X( IN, JJ ) = TEMP
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|    30       CONTINUE
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| *
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|             K( IN ) = -K( IN )
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|             J = IN
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|             IN = K( IN )
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|             GO TO 20
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| *
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|    40       CONTINUE
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| *
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|    50    CONTINUE
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| *
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|       ELSE
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| *
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| *        Backward permutation
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| *
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|          DO 90 I = 1, M
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| *
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|             IF( K( I ).GT.0 )
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|      $         GO TO 80
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| *
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|             K( I ) = -K( I )
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|             J = K( I )
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|    60       CONTINUE
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|             IF( J.EQ.I )
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|      $         GO TO 80
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| *
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|             DO 70 JJ = 1, N
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|                TEMP = X( I, JJ )
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|                X( I, JJ ) = X( J, JJ )
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|                X( J, JJ ) = TEMP
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|    70       CONTINUE
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| *
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|             K( J ) = -K( J )
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|             J = K( J )
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|             GO TO 60
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| *
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|    80       CONTINUE
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| *
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|    90    CONTINUE
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| *
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|       END IF
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| *
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|       RETURN
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| *
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| *     End of ZLAPMR
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| *
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|       END
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| 
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