257 lines
8.0 KiB
FortranFixed
257 lines
8.0 KiB
FortranFixed
SUBROUTINE DCHKQP( DOTYPE, NM, MVAL, NN, NVAL, THRESH, TSTERR, A,
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$ COPYA, S, COPYS, TAU, WORK, IWORK, NOUT )
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*
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* -- LAPACK test routine (version 3.1.1) --
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* Univ. of Tennessee, Univ. of California Berkeley and NAG Ltd..
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* January 2007
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*
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* .. Scalar Arguments ..
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LOGICAL TSTERR
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INTEGER NM, NN, 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 IWORK( * ), MVAL( * ), NVAL( * )
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DOUBLE PRECISION A( * ), COPYA( * ), COPYS( * ), S( * ),
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$ TAU( * ), WORK( * )
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* ..
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*
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* Purpose
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* =======
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*
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* DCHKQP tests DGEQPF.
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*
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* Arguments
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* =========
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*
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* DOTYPE (input) 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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*
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* NM (input) INTEGER
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* The number of values of M contained in the vector MVAL.
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*
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* MVAL (input) INTEGER array, dimension (NM)
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* The values of the matrix row dimension M.
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*
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* NN (input) INTEGER
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* The number of values of N contained in the vector NVAL.
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*
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* NVAL (input) INTEGER array, dimension (NN)
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* The values of the matrix column dimension N.
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*
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* THRESH (input) 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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*
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* TSTERR (input) LOGICAL
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* Flag that indicates whether error exits are to be tested.
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*
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* A (workspace) DOUBLE PRECISION array, dimension (MMAX*NMAX)
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* where MMAX is the maximum value of M in MVAL and NMAX is the
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* maximum value of N in NVAL.
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*
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* COPYA (workspace) DOUBLE PRECISION array, dimension (MMAX*NMAX)
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*
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* S (workspace) DOUBLE PRECISION array, dimension
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* (min(MMAX,NMAX))
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*
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* COPYS (workspace) DOUBLE PRECISION array, dimension
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* (min(MMAX,NMAX))
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*
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* TAU (workspace) DOUBLE PRECISION array, dimension (MMAX)
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*
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* WORK (workspace) DOUBLE PRECISION array, dimension
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* (MMAX*NMAX + 4*NMAX + MMAX)
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*
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* IWORK (workspace) INTEGER array, dimension (NMAX)
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*
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* NOUT (input) INTEGER
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* The unit number for output.
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*
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* =====================================================================
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*
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* .. Parameters ..
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INTEGER NTYPES
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PARAMETER ( NTYPES = 6 )
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INTEGER NTESTS
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PARAMETER ( NTESTS = 3 )
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DOUBLE PRECISION ONE, ZERO
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PARAMETER ( ONE = 1.0D0, ZERO = 0.0D0 )
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* ..
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* .. Local Scalars ..
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CHARACTER*3 PATH
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INTEGER I, IHIGH, ILOW, IM, IMODE, IN, INFO, ISTEP, K,
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$ LDA, LWORK, M, MNMIN, MODE, N, NERRS, NFAIL,
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$ NRUN
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DOUBLE PRECISION EPS
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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 )
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* ..
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* .. External Functions ..
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DOUBLE PRECISION DLAMCH, DQPT01, DQRT11, DQRT12
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EXTERNAL DLAMCH, DQPT01, DQRT11, DQRT12
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* ..
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* .. External Subroutines ..
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EXTERNAL ALAHD, ALASUM, DERRQP, DGEQPF, DLACPY, DLAORD,
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$ DLASET, DLATMS
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* ..
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* .. Intrinsic Functions ..
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INTRINSIC MAX, MIN
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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, IOUNIT
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* ..
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* .. Common blocks ..
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COMMON / INFOC / INFOT, IOUNIT, 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 / 1988, 1989, 1990, 1991 /
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* ..
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* .. Executable Statements ..
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*
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* Initialize constants and the random number seed.
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*
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PATH( 1: 1 ) = 'Double precision'
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PATH( 2: 3 ) = 'QP'
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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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EPS = DLAMCH( 'Epsilon' )
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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 DERRQP( PATH, NOUT )
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INFOT = 0
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*
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DO 80 IM = 1, NM
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*
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* Do for each value of M in MVAL.
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*
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M = MVAL( IM )
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LDA = MAX( 1, M )
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*
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DO 70 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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MNMIN = MIN( M, N )
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LWORK = MAX( 1, M*MAX( M, N ) + 4*MNMIN + MAX( M, N ),
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$ M*N + 2*MNMIN + 4*N )
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*
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DO 60 IMODE = 1, NTYPES
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IF( .NOT.DOTYPE( IMODE ) )
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$ GO TO 60
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*
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* Do for each type of matrix
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* 1: zero matrix
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* 2: one small singular value
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* 3: geometric distribution of singular values
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* 4: first n/2 columns fixed
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* 5: last n/2 columns fixed
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* 6: every second column fixed
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*
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MODE = IMODE
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IF( IMODE.GT.3 )
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$ MODE = 1
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*
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* Generate test matrix of size m by n using
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* singular value distribution indicated by `mode'.
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*
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DO 20 I = 1, N
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IWORK( I ) = 0
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20 CONTINUE
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IF( IMODE.EQ.1 ) THEN
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CALL DLASET( 'Full', M, N, ZERO, ZERO, COPYA, LDA )
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DO 30 I = 1, MNMIN
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COPYS( I ) = ZERO
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30 CONTINUE
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ELSE
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CALL DLATMS( M, N, 'Uniform', ISEED, 'Nonsymm', COPYS,
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$ MODE, ONE / EPS, ONE, M, N, 'No packing',
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$ COPYA, LDA, WORK, INFO )
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IF( IMODE.GE.4 ) THEN
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IF( IMODE.EQ.4 ) THEN
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ILOW = 1
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ISTEP = 1
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IHIGH = MAX( 1, N / 2 )
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ELSE IF( IMODE.EQ.5 ) THEN
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ILOW = MAX( 1, N / 2 )
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ISTEP = 1
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IHIGH = N
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ELSE IF( IMODE.EQ.6 ) THEN
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ILOW = 1
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ISTEP = 2
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IHIGH = N
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END IF
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DO 40 I = ILOW, IHIGH, ISTEP
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IWORK( I ) = 1
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40 CONTINUE
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END IF
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CALL DLAORD( 'Decreasing', MNMIN, COPYS, 1 )
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END IF
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*
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* Save A and its singular values
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*
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CALL DLACPY( 'All', M, N, COPYA, LDA, A, LDA )
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*
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* Compute the QR factorization with pivoting of A
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*
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SRNAMT = 'DGEQPF'
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CALL DGEQPF( M, N, A, LDA, IWORK, TAU, WORK, INFO )
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*
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* Compute norm(svd(a) - svd(r))
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*
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RESULT( 1 ) = DQRT12( M, N, A, LDA, COPYS, WORK, LWORK )
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*
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* Compute norm( A*P - Q*R )
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*
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RESULT( 2 ) = DQPT01( M, N, MNMIN, COPYA, A, LDA, TAU,
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$ IWORK, WORK, LWORK )
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*
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* Compute Q'*Q
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*
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RESULT( 3 ) = DQRT11( M, MNMIN, A, LDA, TAU, WORK,
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$ LWORK )
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*
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* Print information about the tests that did not pass
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* the threshold.
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*
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DO 50 K = 1, 3
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IF( RESULT( K ).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 )M, N, IMODE, K,
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$ RESULT( K )
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NFAIL = NFAIL + 1
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END IF
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50 CONTINUE
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NRUN = NRUN + 3
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60 CONTINUE
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70 CONTINUE
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80 CONTINUE
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*
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* Print a summary of the results.
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*
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CALL ALASUM( PATH, NOUT, NFAIL, NRUN, NERRS )
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*
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9999 FORMAT( ' M =', I5, ', N =', I5, ', type ', I2, ', test ', I2,
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$ ', ratio =', G12.5 )
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*
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* End of DCHKQP
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*
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END
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