337 lines
		
	
	
		
			9.7 KiB
		
	
	
	
		
			Fortran
		
	
	
	
			
		
		
	
	
			337 lines
		
	
	
		
			9.7 KiB
		
	
	
	
		
			Fortran
		
	
	
	
| *> \brief \b ZGQRTS
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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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| *  Definition:
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| *  ===========
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| *
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| *       SUBROUTINE ZGQRTS( N, M, P, A, AF, Q, R, LDA, TAUA, B, BF, Z, T,
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| *                          BWK, LDB, TAUB, WORK, LWORK, RWORK, RESULT )
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| * 
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| *       .. Scalar Arguments ..
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| *       INTEGER            LDA, LDB, LWORK, M, N, P
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| *       ..
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| *       .. Array Arguments ..
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| *       DOUBLE PRECISION   RESULT( 4 ), RWORK( * )
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| *       COMPLEX*16         A( LDA, * ), AF( LDA, * ), B( LDB, * ),
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| *      $                   BF( LDB, * ), BWK( LDB, * ), Q( LDA, * ),
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| *      $                   R( LDA, * ), T( LDB, * ), TAUA( * ), TAUB( * ),
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| *      $                   WORK( LWORK ), Z( LDB, * )
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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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| *> ZGQRTS tests ZGGQRF, which computes the GQR factorization of an
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| *> N-by-M matrix A and a N-by-P matrix B: A = Q*R and B = Q*T*Z.
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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 number of rows of the matrices A and B.  N >= 0.
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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 columns of the matrix A.  M >= 0.
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| *> \endverbatim
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| *>
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| *> \param[in] P
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| *> \verbatim
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| *>          P is INTEGER
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| *>          The number of columns of the matrix B.  P >= 0.
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| *> \endverbatim
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| *>
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| *> \param[in] A
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| *> \verbatim
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| *>          A is COMPLEX*16 array, dimension (LDA,M)
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| *>          The N-by-M matrix A.
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| *> \endverbatim
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| *>
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| *> \param[out] AF
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| *> \verbatim
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| *>          AF is COMPLEX*16 array, dimension (LDA,N)
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| *>          Details of the GQR factorization of A and B, as returned
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| *>          by ZGGQRF, see CGGQRF for further details.
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| *> \endverbatim
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| *>
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| *> \param[out] Q
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| *> \verbatim
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| *>          Q is COMPLEX*16 array, dimension (LDA,N)
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| *>          The M-by-M unitary matrix Q.
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| *> \endverbatim
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| *>
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| *> \param[out] R
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| *> \verbatim
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| *>          R is COMPLEX*16 array, dimension (LDA,MAX(M,N))
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| *> \endverbatim
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| *>
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| *> \param[in] LDA
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| *> \verbatim
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| *>          LDA is INTEGER
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| *>          The leading dimension of the arrays A, AF, R and Q.
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| *>          LDA >= max(M,N).
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| *> \endverbatim
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| *>
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| *> \param[out] TAUA
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| *> \verbatim
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| *>          TAUA is COMPLEX*16 array, dimension (min(M,N))
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| *>          The scalar factors of the elementary reflectors, as returned
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| *>          by ZGGQRF.
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| *> \endverbatim
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| *>
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| *> \param[in] B
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| *> \verbatim
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| *>          B is COMPLEX*16 array, dimension (LDB,P)
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| *>          On entry, the N-by-P matrix A.
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| *> \endverbatim
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| *>
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| *> \param[out] BF
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| *> \verbatim
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| *>          BF is COMPLEX*16 array, dimension (LDB,N)
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| *>          Details of the GQR factorization of A and B, as returned
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| *>          by ZGGQRF, see CGGQRF for further details.
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| *> \endverbatim
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| *>
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| *> \param[out] Z
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| *> \verbatim
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| *>          Z is COMPLEX*16 array, dimension (LDB,P)
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| *>          The P-by-P unitary matrix Z.
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| *> \endverbatim
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| *>
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| *> \param[out] T
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| *> \verbatim
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| *>          T is COMPLEX*16 array, dimension (LDB,max(P,N))
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| *> \endverbatim
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| *>
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| *> \param[out] BWK
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| *> \verbatim
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| *>          BWK is COMPLEX*16 array, dimension (LDB,N)
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| *> \endverbatim
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| *>
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| *> \param[in] LDB
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| *> \verbatim
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| *>          LDB is INTEGER
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| *>          The leading dimension of the arrays B, BF, Z and T.
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| *>          LDB >= max(P,N).
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| *> \endverbatim
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| *>
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| *> \param[out] TAUB
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| *> \verbatim
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| *>          TAUB is COMPLEX*16 array, dimension (min(P,N))
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| *>          The scalar factors of the elementary reflectors, as returned
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| *>          by DGGRQF.
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| *> \endverbatim
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| *>
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| *> \param[out] WORK
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| *> \verbatim
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| *>          WORK is COMPLEX*16 array, dimension (LWORK)
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| *> \endverbatim
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| *>
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| *> \param[in] LWORK
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| *> \verbatim
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| *>          LWORK is INTEGER
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| *>          The dimension of the array WORK, LWORK >= max(N,M,P)**2.
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| *> \endverbatim
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| *>
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| *> \param[out] RWORK
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| *> \verbatim
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| *>          RWORK is DOUBLE PRECISION array, dimension (max(N,M,P))
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| *> \endverbatim
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| *>
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| *> \param[out] RESULT
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| *> \verbatim
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| *>          RESULT is DOUBLE PRECISION array, dimension (4)
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| *>          The test ratios:
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| *>            RESULT(1) = norm( R - Q'*A ) / ( MAX(M,N)*norm(A)*ULP)
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| *>            RESULT(2) = norm( T*Z - Q'*B ) / (MAX(P,N)*norm(B)*ULP)
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| *>            RESULT(3) = norm( I - Q'*Q ) / ( M*ULP )
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| *>            RESULT(4) = norm( I - Z'*Z ) / ( P*ULP )
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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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| *> \date November 2011
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| *
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| *> \ingroup complex16_eig
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| *
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| *  =====================================================================
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|       SUBROUTINE ZGQRTS( N, M, P, A, AF, Q, R, LDA, TAUA, B, BF, Z, T,
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|      $                   BWK, LDB, TAUB, WORK, LWORK, RWORK, RESULT )
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| *
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| *  -- LAPACK test routine (version 3.4.0) --
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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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| *     November 2011
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| *
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| *     .. Scalar Arguments ..
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|       INTEGER            LDA, LDB, LWORK, M, N, P
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| *     ..
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| *     .. Array Arguments ..
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|       DOUBLE PRECISION   RESULT( 4 ), RWORK( * )
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|       COMPLEX*16         A( LDA, * ), AF( LDA, * ), B( LDB, * ),
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|      $                   BF( LDB, * ), BWK( LDB, * ), Q( LDA, * ),
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|      $                   R( LDA, * ), T( LDB, * ), TAUA( * ), TAUB( * ),
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|      $                   WORK( LWORK ), Z( LDB, * )
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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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|       DOUBLE PRECISION   ZERO, ONE
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|       PARAMETER          ( ZERO = 0.0D+0, ONE = 1.0D+0 )
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|       COMPLEX*16         CZERO, CONE
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|       PARAMETER          ( CZERO = ( 0.0D+0, 0.0D+0 ),
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|      $                   CONE = ( 1.0D+0, 0.0D+0 ) )
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|       COMPLEX*16         CROGUE
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|       PARAMETER          ( CROGUE = ( -1.0D+10, 0.0D+0 ) )
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| *     ..
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| *     .. Local Scalars ..
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|       INTEGER            INFO
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|       DOUBLE PRECISION   ANORM, BNORM, RESID, ULP, UNFL
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| *     ..
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| *     .. External Functions ..
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|       DOUBLE PRECISION   DLAMCH, ZLANGE, ZLANHE
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|       EXTERNAL           DLAMCH, ZLANGE, ZLANHE
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| *     ..
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| *     .. External Subroutines ..
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|       EXTERNAL           ZGEMM, ZGGQRF, ZHERK, ZLACPY, ZLASET, ZUNGQR,
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|      $                   ZUNGRQ
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| *     ..
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| *     .. Intrinsic Functions ..
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|       INTRINSIC          DBLE, MAX, MIN
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| *     ..
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| *     .. Executable Statements ..
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| *
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|       ULP = DLAMCH( 'Precision' )
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|       UNFL = DLAMCH( 'Safe minimum' )
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| *
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| *     Copy the matrix A to the array AF.
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| *
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|       CALL ZLACPY( 'Full', N, M, A, LDA, AF, LDA )
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|       CALL ZLACPY( 'Full', N, P, B, LDB, BF, LDB )
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| *
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|       ANORM = MAX( ZLANGE( '1', N, M, A, LDA, RWORK ), UNFL )
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|       BNORM = MAX( ZLANGE( '1', N, P, B, LDB, RWORK ), UNFL )
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| *
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| *     Factorize the matrices A and B in the arrays AF and BF.
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| *
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|       CALL ZGGQRF( N, M, P, AF, LDA, TAUA, BF, LDB, TAUB, WORK, LWORK,
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|      $             INFO )
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| *
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| *     Generate the N-by-N matrix Q
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| *
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|       CALL ZLASET( 'Full', N, N, CROGUE, CROGUE, Q, LDA )
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|       CALL ZLACPY( 'Lower', N-1, M, AF( 2, 1 ), LDA, Q( 2, 1 ), LDA )
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|       CALL ZUNGQR( N, N, MIN( N, M ), Q, LDA, TAUA, WORK, LWORK, INFO )
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| *
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| *     Generate the P-by-P matrix Z
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| *
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|       CALL ZLASET( 'Full', P, P, CROGUE, CROGUE, Z, LDB )
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|       IF( N.LE.P ) THEN
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|          IF( N.GT.0 .AND. N.LT.P )
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|      $      CALL ZLACPY( 'Full', N, P-N, BF, LDB, Z( P-N+1, 1 ), LDB )
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|          IF( N.GT.1 )
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|      $      CALL ZLACPY( 'Lower', N-1, N-1, BF( 2, P-N+1 ), LDB,
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|      $                   Z( P-N+2, P-N+1 ), LDB )
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|       ELSE
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|          IF( P.GT.1 )
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|      $      CALL ZLACPY( 'Lower', P-1, P-1, BF( N-P+2, 1 ), LDB,
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|      $                   Z( 2, 1 ), LDB )
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|       END IF
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|       CALL ZUNGRQ( P, P, MIN( N, P ), Z, LDB, TAUB, WORK, LWORK, INFO )
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| *
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| *     Copy R
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| *
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|       CALL ZLASET( 'Full', N, M, CZERO, CZERO, R, LDA )
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|       CALL ZLACPY( 'Upper', N, M, AF, LDA, R, LDA )
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| *
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| *     Copy T
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| *
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|       CALL ZLASET( 'Full', N, P, CZERO, CZERO, T, LDB )
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|       IF( N.LE.P ) THEN
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|          CALL ZLACPY( 'Upper', N, N, BF( 1, P-N+1 ), LDB, T( 1, P-N+1 ),
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|      $                LDB )
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|       ELSE
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|          CALL ZLACPY( 'Full', N-P, P, BF, LDB, T, LDB )
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|          CALL ZLACPY( 'Upper', P, P, BF( N-P+1, 1 ), LDB, T( N-P+1, 1 ),
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|      $                LDB )
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|       END IF
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| *
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| *     Compute R - Q'*A
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| *
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|       CALL ZGEMM( 'Conjugate transpose', 'No transpose', N, M, N, -CONE,
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|      $            Q, LDA, A, LDA, CONE, R, LDA )
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| *
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| *     Compute norm( R - Q'*A ) / ( MAX(M,N)*norm(A)*ULP ) .
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| *
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|       RESID = ZLANGE( '1', N, M, R, LDA, RWORK )
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|       IF( ANORM.GT.ZERO ) THEN
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|          RESULT( 1 ) = ( ( RESID / DBLE( MAX( 1, M, N ) ) ) / ANORM ) /
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|      $                 ULP
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|       ELSE
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|          RESULT( 1 ) = ZERO
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|       END IF
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| *
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| *     Compute T*Z - Q'*B
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| *
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|       CALL ZGEMM( 'No Transpose', 'No transpose', N, P, P, CONE, T, LDB,
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|      $            Z, LDB, CZERO, BWK, LDB )
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|       CALL ZGEMM( 'Conjugate transpose', 'No transpose', N, P, N, -CONE,
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|      $            Q, LDA, B, LDB, CONE, BWK, LDB )
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| *
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| *     Compute norm( T*Z - Q'*B ) / ( MAX(P,N)*norm(A)*ULP ) .
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| *
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|       RESID = ZLANGE( '1', N, P, BWK, LDB, RWORK )
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|       IF( BNORM.GT.ZERO ) THEN
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|          RESULT( 2 ) = ( ( RESID / DBLE( MAX( 1, P, N ) ) ) / BNORM ) /
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|      $                 ULP
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|       ELSE
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|          RESULT( 2 ) = ZERO
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|       END IF
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| *
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| *     Compute I - Q'*Q
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| *
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|       CALL ZLASET( 'Full', N, N, CZERO, CONE, R, LDA )
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|       CALL ZHERK( 'Upper', 'Conjugate transpose', N, N, -ONE, Q, LDA,
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|      $            ONE, R, LDA )
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| *
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| *     Compute norm( I - Q'*Q ) / ( N * ULP ) .
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| *
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|       RESID = ZLANHE( '1', 'Upper', N, R, LDA, RWORK )
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|       RESULT( 3 ) = ( RESID / DBLE( MAX( 1, N ) ) ) / ULP
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| *
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| *     Compute I - Z'*Z
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| *
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|       CALL ZLASET( 'Full', P, P, CZERO, CONE, T, LDB )
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|       CALL ZHERK( 'Upper', 'Conjugate transpose', P, P, -ONE, Z, LDB,
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|      $            ONE, T, LDB )
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| *
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| *     Compute norm( I - Z'*Z ) / ( P*ULP ) .
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| *
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|       RESID = ZLANHE( '1', 'Upper', P, T, LDB, RWORK )
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|       RESULT( 4 ) = ( RESID / DBLE( MAX( 1, P ) ) ) / ULP
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| *
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|       RETURN
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| *
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| *     End of ZGQRTS
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| *
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|       END
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