536 lines
		
	
	
		
			16 KiB
		
	
	
	
		
			Fortran
		
	
	
	
			
		
		
	
	
			536 lines
		
	
	
		
			16 KiB
		
	
	
	
		
			Fortran
		
	
	
	
*> \brief \b DCHKPT
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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 DCHKPT( DOTYPE, NN, NVAL, NNS, NSVAL, THRESH, TSTERR,
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*                          A, D, E, B, X, XACT, WORK, RWORK, NOUT )
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* 
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*       .. Scalar Arguments ..
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*       LOGICAL            TSTERR
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*       INTEGER            NN, NNS, NOUT
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*       DOUBLE PRECISION   THRESH
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*       ..
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*       .. Array Arguments ..
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*       LOGICAL            DOTYPE( * )
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*       INTEGER            NSVAL( * ), NVAL( * )
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*       DOUBLE PRECISION   A( * ), B( * ), D( * ), E( * ), RWORK( * ),
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*      $                   WORK( * ), X( * ), XACT( * )
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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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*> DCHKPT tests DPTTRF, -TRS, -RFS, and -CON
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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] DOTYPE
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*> \verbatim
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*>          DOTYPE is LOGICAL array, dimension (NTYPES)
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*>          The matrix types to be used for testing.  Matrices of type j
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*>          (for 1 <= j <= NTYPES) are used for testing if DOTYPE(j) =
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*>          .TRUE.; if DOTYPE(j) = .FALSE., then type j is not used.
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*> \endverbatim
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*>
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*> \param[in] NN
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*> \verbatim
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*>          NN is INTEGER
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*>          The number of values of N contained in the vector NVAL.
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*> \endverbatim
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*>
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*> \param[in] NVAL
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*> \verbatim
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*>          NVAL is INTEGER array, dimension (NN)
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*>          The values of the matrix dimension N.
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*> \endverbatim
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*>
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*> \param[in] NNS
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*> \verbatim
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*>          NNS is INTEGER
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*>          The number of values of NRHS contained in the vector NSVAL.
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*> \endverbatim
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*>
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*> \param[in] NSVAL
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*> \verbatim
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*>          NSVAL is INTEGER array, dimension (NNS)
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*>          The values of the number of right hand sides NRHS.
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*> \endverbatim
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*>
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*> \param[in] THRESH
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*> \verbatim
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*>          THRESH is DOUBLE PRECISION
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*>          The threshold value for the test ratios.  A result is
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*>          included in the output file if RESULT >= THRESH.  To have
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*>          every test ratio printed, use THRESH = 0.
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*> \endverbatim
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*>
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*> \param[in] TSTERR
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*> \verbatim
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*>          TSTERR is LOGICAL
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*>          Flag that indicates whether error exits are to be tested.
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*> \endverbatim
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*>
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*> \param[out] A
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*> \verbatim
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*>          A is DOUBLE PRECISION array, dimension (NMAX*2)
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*> \endverbatim
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*>
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*> \param[out] D
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*> \verbatim
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*>          D is DOUBLE PRECISION array, dimension (NMAX*2)
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*> \endverbatim
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*>
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*> \param[out] E
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*> \verbatim
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*>          E is DOUBLE PRECISION array, dimension (NMAX*2)
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*> \endverbatim
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*>
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*> \param[out] B
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*> \verbatim
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*>          B is DOUBLE PRECISION array, dimension (NMAX*NSMAX)
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*>          where NSMAX is the largest entry in NSVAL.
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*> \endverbatim
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*>
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*> \param[out] X
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*> \verbatim
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*>          X is DOUBLE PRECISION array, dimension (NMAX*NSMAX)
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*> \endverbatim
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*>
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*> \param[out] XACT
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*> \verbatim
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*>          XACT is DOUBLE PRECISION array, dimension (NMAX*NSMAX)
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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 DOUBLE PRECISION array, dimension
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*>                      (NMAX*max(3,NSMAX))
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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
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*>                      (max(NMAX,2*NSMAX))
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*> \endverbatim
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*>
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*> \param[in] NOUT
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*> \verbatim
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*>          NOUT is INTEGER
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*>          The unit number for 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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*> \date November 2011
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*
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*> \ingroup double_lin
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*
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*  =====================================================================
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      SUBROUTINE DCHKPT( DOTYPE, NN, NVAL, NNS, NSVAL, THRESH, TSTERR,
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     $                   A, D, E, B, X, XACT, WORK, RWORK, NOUT )
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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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      LOGICAL            TSTERR
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      INTEGER            NN, NNS, NOUT
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      DOUBLE PRECISION   THRESH
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*     ..
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*     .. Array Arguments ..
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      LOGICAL            DOTYPE( * )
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      INTEGER            NSVAL( * ), NVAL( * )
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      DOUBLE PRECISION   A( * ), B( * ), D( * ), E( * ), RWORK( * ),
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     $                   WORK( * ), X( * ), XACT( * )
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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   ONE, ZERO
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      PARAMETER          ( ONE = 1.0D+0, ZERO = 0.0D+0 )
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      INTEGER            NTYPES
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      PARAMETER          ( NTYPES = 12 )
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      INTEGER            NTESTS
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      PARAMETER          ( NTESTS = 7 )
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*     ..
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*     .. Local Scalars ..
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      LOGICAL            ZEROT
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      CHARACTER          DIST, TYPE
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      CHARACTER*3        PATH
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      INTEGER            I, IA, IMAT, IN, INFO, IRHS, IX, IZERO, J, K,
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     $                   KL, KU, LDA, MODE, N, NERRS, NFAIL, NIMAT,
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     $                   NRHS, NRUN
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      DOUBLE PRECISION   AINVNM, ANORM, COND, DMAX, RCOND, RCONDC
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*     ..
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*     .. Local Arrays ..
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      INTEGER            ISEED( 4 ), ISEEDY( 4 )
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      DOUBLE PRECISION   RESULT( NTESTS ), Z( 3 )
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*     ..
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*     .. External Functions ..
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      INTEGER            IDAMAX
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      DOUBLE PRECISION   DASUM, DGET06, DLANST
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      EXTERNAL           IDAMAX, DASUM, DGET06, DLANST
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*     ..
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*     .. External Subroutines ..
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      EXTERNAL           ALAERH, ALAHD, ALASUM, DCOPY, DERRGT, DGET04,
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     $                   DLACPY, DLAPTM, DLARNV, DLATB4, DLATMS, DPTCON,
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     $                   DPTRFS, DPTT01, DPTT02, DPTT05, DPTTRF, DPTTRS,
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     $                   DSCAL
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*     ..
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*     .. Intrinsic Functions ..
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      INTRINSIC          ABS, MAX
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*     ..
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*     .. Scalars in Common ..
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      LOGICAL            LERR, OK
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      CHARACTER*32       SRNAMT
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      INTEGER            INFOT, NUNIT
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*     ..
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*     .. Common blocks ..
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      COMMON             / INFOC / INFOT, NUNIT, OK, LERR
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      COMMON             / SRNAMC / SRNAMT
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*     ..
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*     .. Data statements ..
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      DATA               ISEEDY / 0, 0, 0, 1 /
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*     ..
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*     .. Executable Statements ..
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*
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      PATH( 1: 1 ) = 'Double precision'
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      PATH( 2: 3 ) = 'PT'
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      NRUN = 0
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      NFAIL = 0
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      NERRS = 0
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      DO 10 I = 1, 4
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         ISEED( I ) = ISEEDY( I )
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   10 CONTINUE
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*
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*     Test the error exits
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*
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      IF( TSTERR )
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     $   CALL DERRGT( PATH, NOUT )
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      INFOT = 0
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*
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      DO 110 IN = 1, NN
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*
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*        Do for each value of N in NVAL.
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*
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         N = NVAL( IN )
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         LDA = MAX( 1, N )
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         NIMAT = NTYPES
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         IF( N.LE.0 )
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     $      NIMAT = 1
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*
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         DO 100 IMAT = 1, NIMAT
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*
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*           Do the tests only if DOTYPE( IMAT ) is true.
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*
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            IF( N.GT.0 .AND. .NOT.DOTYPE( IMAT ) )
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     $         GO TO 100
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*
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*           Set up parameters with DLATB4.
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*
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            CALL DLATB4( PATH, IMAT, N, N, TYPE, KL, KU, ANORM, MODE,
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     $                   COND, DIST )
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*
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            ZEROT = IMAT.GE.8 .AND. IMAT.LE.10
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            IF( IMAT.LE.6 ) THEN
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*
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*              Type 1-6:  generate a symmetric tridiagonal matrix of
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*              known condition number in lower triangular band storage.
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*
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               SRNAMT = 'DLATMS'
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               CALL DLATMS( N, N, DIST, ISEED, TYPE, RWORK, MODE, COND,
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     $                      ANORM, KL, KU, 'B', A, 2, WORK, INFO )
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*
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*              Check the error code from DLATMS.
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*
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               IF( INFO.NE.0 ) THEN
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                  CALL ALAERH( PATH, 'DLATMS', INFO, 0, ' ', N, N, KL,
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     $                         KU, -1, IMAT, NFAIL, NERRS, NOUT )
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                  GO TO 100
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               END IF
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               IZERO = 0
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*
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*              Copy the matrix to D and E.
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*
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               IA = 1
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               DO 20 I = 1, N - 1
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                  D( I ) = A( IA )
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                  E( I ) = A( IA+1 )
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                  IA = IA + 2
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   20          CONTINUE
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               IF( N.GT.0 )
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     $            D( N ) = A( IA )
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            ELSE
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*
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*              Type 7-12:  generate a diagonally dominant matrix with
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*              unknown condition number in the vectors D and E.
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*
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               IF( .NOT.ZEROT .OR. .NOT.DOTYPE( 7 ) ) THEN
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*
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*                 Let D and E have values from [-1,1].
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*
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                  CALL DLARNV( 2, ISEED, N, D )
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                  CALL DLARNV( 2, ISEED, N-1, E )
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*
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*                 Make the tridiagonal matrix diagonally dominant.
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*
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                  IF( N.EQ.1 ) THEN
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                     D( 1 ) = ABS( D( 1 ) )
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                  ELSE
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                     D( 1 ) = ABS( D( 1 ) ) + ABS( E( 1 ) )
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                     D( N ) = ABS( D( N ) ) + ABS( E( N-1 ) )
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                     DO 30 I = 2, N - 1
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                        D( I ) = ABS( D( I ) ) + ABS( E( I ) ) +
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     $                           ABS( E( I-1 ) )
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   30                CONTINUE
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                  END IF
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*
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*                 Scale D and E so the maximum element is ANORM.
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*
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                  IX = IDAMAX( N, D, 1 )
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                  DMAX = D( IX )
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                  CALL DSCAL( N, ANORM / DMAX, D, 1 )
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                  CALL DSCAL( N-1, ANORM / DMAX, E, 1 )
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*
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               ELSE IF( IZERO.GT.0 ) THEN
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*
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*                 Reuse the last matrix by copying back the zeroed out
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*                 elements.
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*
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                  IF( IZERO.EQ.1 ) THEN
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                     D( 1 ) = Z( 2 )
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                     IF( N.GT.1 )
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     $                  E( 1 ) = Z( 3 )
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                  ELSE IF( IZERO.EQ.N ) THEN
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                     E( N-1 ) = Z( 1 )
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                     D( N ) = Z( 2 )
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                  ELSE
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                     E( IZERO-1 ) = Z( 1 )
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                     D( IZERO ) = Z( 2 )
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                     E( IZERO ) = Z( 3 )
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                  END IF
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               END IF
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*
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*              For types 8-10, set one row and column of the matrix to
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*              zero.
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*
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               IZERO = 0
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               IF( IMAT.EQ.8 ) THEN
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                  IZERO = 1
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                  Z( 2 ) = D( 1 )
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                  D( 1 ) = ZERO
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                  IF( N.GT.1 ) THEN
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                     Z( 3 ) = E( 1 )
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                     E( 1 ) = ZERO
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                  END IF
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               ELSE IF( IMAT.EQ.9 ) THEN
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                  IZERO = N
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                  IF( N.GT.1 ) THEN
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                     Z( 1 ) = E( N-1 )
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                     E( N-1 ) = ZERO
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                  END IF
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                  Z( 2 ) = D( N )
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                  D( N ) = ZERO
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               ELSE IF( IMAT.EQ.10 ) THEN
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                  IZERO = ( N+1 ) / 2
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                  IF( IZERO.GT.1 ) THEN
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                     Z( 1 ) = E( IZERO-1 )
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                     E( IZERO-1 ) = ZERO
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                     Z( 3 ) = E( IZERO )
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                     E( IZERO ) = ZERO
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                  END IF
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                  Z( 2 ) = D( IZERO )
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                  D( IZERO ) = ZERO
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               END IF
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            END IF
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*
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            CALL DCOPY( N, D, 1, D( N+1 ), 1 )
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            IF( N.GT.1 )
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     $         CALL DCOPY( N-1, E, 1, E( N+1 ), 1 )
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*
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*+    TEST 1
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*           Factor A as L*D*L' and compute the ratio
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*              norm(L*D*L' - A) / (n * norm(A) * EPS )
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*
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            CALL DPTTRF( N, D( N+1 ), E( N+1 ), INFO )
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*
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*           Check error code from DPTTRF.
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*
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            IF( INFO.NE.IZERO ) THEN
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               CALL ALAERH( PATH, 'DPTTRF', INFO, IZERO, ' ', N, N, -1,
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     $                      -1, -1, IMAT, NFAIL, NERRS, NOUT )
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               GO TO 100
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            END IF
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*
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            IF( INFO.GT.0 ) THEN
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               RCONDC = ZERO
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               GO TO 90
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            END IF
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*
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            CALL DPTT01( N, D, E, D( N+1 ), E( N+1 ), WORK,
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     $                   RESULT( 1 ) )
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*
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*           Print the test ratio if greater than or equal to THRESH.
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*
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            IF( RESULT( 1 ).GE.THRESH ) THEN
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               IF( NFAIL.EQ.0 .AND. NERRS.EQ.0 )
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     $            CALL ALAHD( NOUT, PATH )
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               WRITE( NOUT, FMT = 9999 )N, IMAT, 1, RESULT( 1 )
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               NFAIL = NFAIL + 1
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            END IF
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            NRUN = NRUN + 1
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*
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*           Compute RCONDC = 1 / (norm(A) * norm(inv(A))
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*
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*           Compute norm(A).
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*
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            ANORM = DLANST( '1', N, D, E )
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*
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*           Use DPTTRS to solve for one column at a time of inv(A),
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*           computing the maximum column sum as we go.
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*
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            AINVNM = ZERO
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            DO 50 I = 1, N
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               DO 40 J = 1, N
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                  X( J ) = ZERO
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   40          CONTINUE
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               X( I ) = ONE
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               CALL DPTTRS( N, 1, D( N+1 ), E( N+1 ), X, LDA, INFO )
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               AINVNM = MAX( AINVNM, DASUM( N, X, 1 ) )
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   50       CONTINUE
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            RCONDC = ONE / MAX( ONE, ANORM*AINVNM )
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*
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            DO 80 IRHS = 1, NNS
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               NRHS = NSVAL( IRHS )
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*
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*           Generate NRHS random solution vectors.
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*
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               IX = 1
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               DO 60 J = 1, NRHS
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                  CALL DLARNV( 2, ISEED, N, XACT( IX ) )
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                  IX = IX + LDA
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   60          CONTINUE
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						|
*
 | 
						|
*           Set the right hand side.
 | 
						|
*
 | 
						|
               CALL DLAPTM( N, NRHS, ONE, D, E, XACT, LDA, ZERO, B,
 | 
						|
     $                      LDA )
 | 
						|
*
 | 
						|
*+    TEST 2
 | 
						|
*           Solve A*x = b and compute the residual.
 | 
						|
*
 | 
						|
               CALL DLACPY( 'Full', N, NRHS, B, LDA, X, LDA )
 | 
						|
               CALL DPTTRS( N, NRHS, D( N+1 ), E( N+1 ), X, LDA, INFO )
 | 
						|
*
 | 
						|
*           Check error code from DPTTRS.
 | 
						|
*
 | 
						|
               IF( INFO.NE.0 )
 | 
						|
     $            CALL ALAERH( PATH, 'DPTTRS', INFO, 0, ' ', N, N, -1,
 | 
						|
     $                         -1, NRHS, IMAT, NFAIL, NERRS, NOUT )
 | 
						|
*
 | 
						|
               CALL DLACPY( 'Full', N, NRHS, B, LDA, WORK, LDA )
 | 
						|
               CALL DPTT02( N, NRHS, D, E, X, LDA, WORK, LDA,
 | 
						|
     $                      RESULT( 2 ) )
 | 
						|
*
 | 
						|
*+    TEST 3
 | 
						|
*           Check solution from generated exact solution.
 | 
						|
*
 | 
						|
               CALL DGET04( N, NRHS, X, LDA, XACT, LDA, RCONDC,
 | 
						|
     $                      RESULT( 3 ) )
 | 
						|
*
 | 
						|
*+    TESTS 4, 5, and 6
 | 
						|
*           Use iterative refinement to improve the solution.
 | 
						|
*
 | 
						|
               SRNAMT = 'DPTRFS'
 | 
						|
               CALL DPTRFS( N, NRHS, D, E, D( N+1 ), E( N+1 ), B, LDA,
 | 
						|
     $                      X, LDA, RWORK, RWORK( NRHS+1 ), WORK, INFO )
 | 
						|
*
 | 
						|
*           Check error code from DPTRFS.
 | 
						|
*
 | 
						|
               IF( INFO.NE.0 )
 | 
						|
     $            CALL ALAERH( PATH, 'DPTRFS', INFO, 0, ' ', N, N, -1,
 | 
						|
     $                         -1, NRHS, IMAT, NFAIL, NERRS, NOUT )
 | 
						|
*
 | 
						|
               CALL DGET04( N, NRHS, X, LDA, XACT, LDA, RCONDC,
 | 
						|
     $                      RESULT( 4 ) )
 | 
						|
               CALL DPTT05( N, NRHS, D, E, B, LDA, X, LDA, XACT, LDA,
 | 
						|
     $                      RWORK, RWORK( NRHS+1 ), RESULT( 5 ) )
 | 
						|
*
 | 
						|
*           Print information about the tests that did not pass the
 | 
						|
*           threshold.
 | 
						|
*
 | 
						|
               DO 70 K = 2, 6
 | 
						|
                  IF( RESULT( K ).GE.THRESH ) THEN
 | 
						|
                     IF( NFAIL.EQ.0 .AND. NERRS.EQ.0 )
 | 
						|
     $                  CALL ALAHD( NOUT, PATH )
 | 
						|
                     WRITE( NOUT, FMT = 9998 )N, NRHS, IMAT, K,
 | 
						|
     $                  RESULT( K )
 | 
						|
                     NFAIL = NFAIL + 1
 | 
						|
                  END IF
 | 
						|
   70          CONTINUE
 | 
						|
               NRUN = NRUN + 5
 | 
						|
   80       CONTINUE
 | 
						|
*
 | 
						|
*+    TEST 7
 | 
						|
*           Estimate the reciprocal of the condition number of the
 | 
						|
*           matrix.
 | 
						|
*
 | 
						|
   90       CONTINUE
 | 
						|
            SRNAMT = 'DPTCON'
 | 
						|
            CALL DPTCON( N, D( N+1 ), E( N+1 ), ANORM, RCOND, RWORK,
 | 
						|
     $                   INFO )
 | 
						|
*
 | 
						|
*           Check error code from DPTCON.
 | 
						|
*
 | 
						|
            IF( INFO.NE.0 )
 | 
						|
     $         CALL ALAERH( PATH, 'DPTCON', INFO, 0, ' ', N, N, -1, -1,
 | 
						|
     $                      -1, IMAT, NFAIL, NERRS, NOUT )
 | 
						|
*
 | 
						|
            RESULT( 7 ) = DGET06( RCOND, RCONDC )
 | 
						|
*
 | 
						|
*           Print the test ratio if greater than or equal to THRESH.
 | 
						|
*
 | 
						|
            IF( RESULT( 7 ).GE.THRESH ) THEN
 | 
						|
               IF( NFAIL.EQ.0 .AND. NERRS.EQ.0 )
 | 
						|
     $            CALL ALAHD( NOUT, PATH )
 | 
						|
               WRITE( NOUT, FMT = 9999 )N, IMAT, 7, RESULT( 7 )
 | 
						|
               NFAIL = NFAIL + 1
 | 
						|
            END IF
 | 
						|
            NRUN = NRUN + 1
 | 
						|
  100    CONTINUE
 | 
						|
  110 CONTINUE
 | 
						|
*
 | 
						|
*     Print a summary of the results.
 | 
						|
*
 | 
						|
      CALL ALASUM( PATH, NOUT, NFAIL, NRUN, NERRS )
 | 
						|
*
 | 
						|
 9999 FORMAT( ' N =', I5, ', type ', I2, ', test ', I2, ', ratio = ',
 | 
						|
     $      G12.5 )
 | 
						|
 9998 FORMAT( ' N =', I5, ', NRHS=', I3, ', type ', I2, ', test(', I2,
 | 
						|
     $      ') = ', G12.5 )
 | 
						|
      RETURN
 | 
						|
*
 | 
						|
*     End of DCHKPT
 | 
						|
*
 | 
						|
      END
 |