Those are just cosmetic changes to update version number and various other minor change.
211 lines
6.2 KiB
FortranFixed
211 lines
6.2 KiB
FortranFixed
SUBROUTINE CTBCON( NORM, UPLO, DIAG, N, KD, AB, LDAB, RCOND, WORK,
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$ RWORK, INFO )
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*
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* -- LAPACK routine (version 3.2) --
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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 2006
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*
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* Modified to call CLACN2 in place of CLACON, 10 Feb 03, SJH.
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*
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* .. Scalar Arguments ..
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CHARACTER DIAG, NORM, UPLO
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INTEGER INFO, KD, LDAB, N
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REAL RCOND
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* ..
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* .. Array Arguments ..
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REAL RWORK( * )
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COMPLEX AB( LDAB, * ), 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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* CTBCON estimates the reciprocal of the condition number of a
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* triangular band matrix A, in either the 1-norm or the infinity-norm.
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*
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* The norm of A is computed and an estimate is obtained for
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* norm(inv(A)), then the reciprocal of the condition number is
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* computed as
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* RCOND = 1 / ( norm(A) * norm(inv(A)) ).
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*
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* Arguments
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* =========
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*
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* NORM (input) CHARACTER*1
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* Specifies whether the 1-norm condition number or the
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* infinity-norm condition number is required:
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* = '1' or 'O': 1-norm;
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* = 'I': Infinity-norm.
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*
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* UPLO (input) CHARACTER*1
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* = 'U': A is upper triangular;
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* = 'L': A is lower triangular.
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*
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* DIAG (input) CHARACTER*1
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* = 'N': A is non-unit triangular;
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* = 'U': A is unit triangular.
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*
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* N (input) INTEGER
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* The order of the matrix A. N >= 0.
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*
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* KD (input) INTEGER
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* The number of superdiagonals or subdiagonals of the
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* triangular band matrix A. KD >= 0.
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*
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* AB (input) COMPLEX array, dimension (LDAB,N)
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* The upper or lower triangular band matrix A, stored in the
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* first kd+1 rows of the array. The j-th column of A is stored
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* in the j-th column of the array AB as follows:
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* if UPLO = 'U', AB(kd+1+i-j,j) = A(i,j) for max(1,j-kd)<=i<=j;
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* if UPLO = 'L', AB(1+i-j,j) = A(i,j) for j<=i<=min(n,j+kd).
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* If DIAG = 'U', the diagonal elements of A are not referenced
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* and are assumed to be 1.
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*
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* LDAB (input) INTEGER
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* The leading dimension of the array AB. LDAB >= KD+1.
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*
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* RCOND (output) REAL
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* The reciprocal of the condition number of the matrix A,
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* computed as RCOND = 1/(norm(A) * norm(inv(A))).
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*
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* WORK (workspace) COMPLEX array, dimension (2*N)
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*
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* RWORK (workspace) REAL array, dimension (N)
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*
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* INFO (output) INTEGER
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* = 0: successful exit
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* < 0: if INFO = -i, the i-th argument had an illegal value
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*
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* =====================================================================
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*
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* .. Parameters ..
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REAL ONE, ZERO
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PARAMETER ( ONE = 1.0E+0, ZERO = 0.0E+0 )
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* ..
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* .. Local Scalars ..
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LOGICAL NOUNIT, ONENRM, UPPER
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CHARACTER NORMIN
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INTEGER IX, KASE, KASE1
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REAL AINVNM, ANORM, SCALE, SMLNUM, XNORM
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COMPLEX ZDUM
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* ..
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* .. Local Arrays ..
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INTEGER ISAVE( 3 )
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* ..
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* .. External Functions ..
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LOGICAL LSAME
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INTEGER ICAMAX
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REAL CLANTB, SLAMCH
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EXTERNAL LSAME, ICAMAX, CLANTB, SLAMCH
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* ..
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* .. External Subroutines ..
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EXTERNAL CLACN2, CLATBS, CSRSCL, XERBLA
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* ..
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* .. Intrinsic Functions ..
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INTRINSIC ABS, AIMAG, MAX, REAL
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* ..
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* .. Statement Functions ..
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REAL CABS1
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* ..
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* .. Statement Function definitions ..
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CABS1( ZDUM ) = ABS( REAL( ZDUM ) ) + ABS( AIMAG( ZDUM ) )
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* ..
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* .. Executable Statements ..
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*
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* Test the input parameters.
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*
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INFO = 0
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UPPER = LSAME( UPLO, 'U' )
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ONENRM = NORM.EQ.'1' .OR. LSAME( NORM, 'O' )
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NOUNIT = LSAME( DIAG, 'N' )
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*
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IF( .NOT.ONENRM .AND. .NOT.LSAME( NORM, 'I' ) ) THEN
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INFO = -1
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ELSE IF( .NOT.UPPER .AND. .NOT.LSAME( UPLO, 'L' ) ) THEN
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INFO = -2
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ELSE IF( .NOT.NOUNIT .AND. .NOT.LSAME( DIAG, 'U' ) ) THEN
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INFO = -3
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ELSE IF( N.LT.0 ) THEN
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INFO = -4
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ELSE IF( KD.LT.0 ) THEN
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INFO = -5
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ELSE IF( LDAB.LT.KD+1 ) THEN
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INFO = -7
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END IF
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IF( INFO.NE.0 ) THEN
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CALL XERBLA( 'CTBCON', -INFO )
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RETURN
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END IF
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*
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* Quick return if possible
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*
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IF( N.EQ.0 ) THEN
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RCOND = ONE
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RETURN
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END IF
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*
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RCOND = ZERO
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SMLNUM = SLAMCH( 'Safe minimum' )*REAL( MAX( N, 1 ) )
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*
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* Compute the 1-norm of the triangular matrix A or A'.
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*
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ANORM = CLANTB( NORM, UPLO, DIAG, N, KD, AB, LDAB, RWORK )
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*
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* Continue only if ANORM > 0.
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*
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IF( ANORM.GT.ZERO ) THEN
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*
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* Estimate the 1-norm of the inverse of A.
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*
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AINVNM = ZERO
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NORMIN = 'N'
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IF( ONENRM ) THEN
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KASE1 = 1
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ELSE
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KASE1 = 2
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END IF
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KASE = 0
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10 CONTINUE
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CALL CLACN2( N, WORK( N+1 ), WORK, AINVNM, KASE, ISAVE )
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IF( KASE.NE.0 ) THEN
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IF( KASE.EQ.KASE1 ) THEN
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*
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* Multiply by inv(A).
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*
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CALL CLATBS( UPLO, 'No transpose', DIAG, NORMIN, N, KD,
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$ AB, LDAB, WORK, SCALE, RWORK, INFO )
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ELSE
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*
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* Multiply by inv(A').
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*
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CALL CLATBS( UPLO, 'Conjugate transpose', DIAG, NORMIN,
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$ N, KD, AB, LDAB, WORK, SCALE, RWORK, INFO )
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END IF
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NORMIN = 'Y'
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*
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* Multiply by 1/SCALE if doing so will not cause overflow.
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*
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IF( SCALE.NE.ONE ) THEN
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IX = ICAMAX( N, WORK, 1 )
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XNORM = CABS1( WORK( IX ) )
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IF( SCALE.LT.XNORM*SMLNUM .OR. SCALE.EQ.ZERO )
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$ GO TO 20
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CALL CSRSCL( N, SCALE, WORK, 1 )
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END IF
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GO TO 10
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END IF
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*
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* Compute the estimate of the reciprocal condition number.
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*
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IF( AINVNM.NE.ZERO )
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$ RCOND = ( ONE / ANORM ) / AINVNM
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END IF
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*
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20 CONTINUE
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RETURN
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*
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* End of CTBCON
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*
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END
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