555 SUBROUTINE dgbsvxx( FACT, TRANS, N, KL, KU, NRHS, AB, LDAB, AFB,
556 $ LDAFB, IPIV, EQUED, R, C, B, LDB, X, LDX,
557 $ RCOND, RPVGRW, BERR, N_ERR_BNDS,
558 $ ERR_BNDS_NORM, ERR_BNDS_COMP, NPARAMS, PARAMS,
559 $ WORK, IWORK, INFO )
566 CHARACTER EQUED, FACT, TRANS
567 INTEGER INFO, LDAB, LDAFB, LDB, LDX, N, NRHS, NPARAMS,
569 DOUBLE PRECISION RCOND, RPVGRW
572 INTEGER IPIV( * ), IWORK( * )
573 DOUBLE PRECISION AB( ldab, * ), AFB( ldafb, * ), B( ldb, * ),
574 $ x( ldx , * ),work( * )
575 DOUBLE PRECISION R( * ), C( * ), PARAMS( * ), BERR( * ),
576 $ err_bnds_norm( nrhs, * ),
577 $ err_bnds_comp( nrhs, * )
583 DOUBLE PRECISION ZERO, ONE
584 parameter( zero = 0.0d+0, one = 1.0d+0 )
585 INTEGER FINAL_NRM_ERR_I, FINAL_CMP_ERR_I, BERR_I
586 INTEGER RCOND_I, NRM_RCOND_I, NRM_ERR_I, CMP_RCOND_I
587 INTEGER CMP_ERR_I, PIV_GROWTH_I
588 parameter( final_nrm_err_i = 1, final_cmp_err_i = 2,
590 parameter( rcond_i = 4, nrm_rcond_i = 5, nrm_err_i = 6 )
591 parameter( cmp_rcond_i = 7, cmp_err_i = 8,
595 LOGICAL COLEQU, EQUIL, NOFACT, NOTRAN, ROWEQU
597 DOUBLE PRECISION AMAX, BIGNUM, COLCND, RCMAX, RCMIN,
603 DOUBLE PRECISION DLAMCH, DLA_GBRPVGRW
615 nofact = lsame( fact,
'N' )
616 equil = lsame( fact,
'E' )
617 notran = lsame( trans,
'N' )
618 smlnum = dlamch(
'Safe minimum' )
619 bignum = one / smlnum
620 IF( nofact .OR. equil )
THEN 625 rowequ = lsame( equed,
'R' ) .OR. lsame( equed,
'B' )
626 colequ = lsame( equed,
'C' ) .OR. lsame( equed,
'B' )
637 IF( .NOT.nofact .AND. .NOT.equil .AND. .NOT.
638 $ lsame( fact,
'F' ) )
THEN 640 ELSE IF( .NOT.notran .AND. .NOT.lsame( trans,
'T' ) .AND. .NOT.
641 $ lsame( trans,
'C' ) )
THEN 643 ELSE IF( n.LT.0 )
THEN 645 ELSE IF( kl.LT.0 )
THEN 647 ELSE IF( ku.LT.0 )
THEN 649 ELSE IF( nrhs.LT.0 )
THEN 651 ELSE IF( ldab.LT.kl+ku+1 )
THEN 653 ELSE IF( ldafb.LT.2*kl+ku+1 )
THEN 655 ELSE IF( lsame( fact,
'F' ) .AND. .NOT.
656 $ ( rowequ .OR. colequ .OR. lsame( equed,
'N' ) ) )
THEN 663 rcmin = min( rcmin, r( j ) )
664 rcmax = max( rcmax, r( j ) )
666 IF( rcmin.LE.zero )
THEN 668 ELSE IF( n.GT.0 )
THEN 669 rowcnd = max( rcmin, smlnum ) / min( rcmax, bignum )
674 IF( colequ .AND. info.EQ.0 )
THEN 678 rcmin = min( rcmin, c( j ) )
679 rcmax = max( rcmax, c( j ) )
681 IF( rcmin.LE.zero )
THEN 683 ELSE IF( n.GT.0 )
THEN 684 colcnd = max( rcmin, smlnum ) / min( rcmax, bignum )
690 IF( ldb.LT.max( 1, n ) )
THEN 692 ELSE IF( ldx.LT.max( 1, n ) )
THEN 699 CALL xerbla(
'DGBSVXX', -info )
707 CALL dgbequb( n, n, kl, ku, ab, ldab, r, c, rowcnd, colcnd,
709 IF( infequ.EQ.0 )
THEN 713 CALL dlaqgb( n, n, kl, ku, ab, ldab, r, c, rowcnd, colcnd,
715 rowequ = lsame( equed,
'R' ) .OR. lsame( equed,
'B' )
716 colequ = lsame( equed,
'C' ) .OR. lsame( equed,
'B' )
721 IF ( .NOT.rowequ )
THEN 726 IF ( .NOT.colequ )
THEN 736 IF( rowequ )
CALL dlascl2(n, nrhs, r, b, ldb)
738 IF( colequ )
CALL dlascl2(n, nrhs, c, b, ldb)
741 IF( nofact .OR. equil )
THEN 746 DO 30, i = kl+1, 2*kl+ku+1
747 afb( i, j ) = ab( i-kl, j )
750 CALL dgbtrf( n, n, kl, ku, afb, ldafb, ipiv, info )
760 rpvgrw = dla_gbrpvgrw( n, kl, ku, info, ab, ldab, afb,
768 rpvgrw = dla_gbrpvgrw( n, kl, ku, n, ab, ldab, afb, ldafb )
772 CALL dlacpy(
'Full', n, nrhs, b, ldb, x, ldx )
773 CALL dgbtrs( trans, n, kl, ku, nrhs, afb, ldafb, ipiv, x, ldx,
779 CALL dgbrfsx( trans, equed, n, kl, ku, nrhs, ab, ldab, afb, ldafb,
780 $ ipiv, r, c, b, ldb, x, ldx, rcond, berr,
781 $ n_err_bnds, err_bnds_norm, err_bnds_comp, nparams, params,
782 $ work, iwork, info )
786 IF ( colequ .AND. notran )
THEN 787 CALL dlascl2 ( n, nrhs, c, x, ldx )
788 ELSE IF ( rowequ .AND. .NOT.notran )
THEN 789 CALL dlascl2 ( n, nrhs, r, x, ldx )
subroutine dgbsvxx(FACT, TRANS, N, KL, KU, NRHS, AB, LDAB, AFB, LDAFB, IPIV, EQUED, R, C, B, LDB, X, LDX, RCOND, RPVGRW, BERR, N_ERR_BNDS, ERR_BNDS_NORM, ERR_BNDS_COMP, NPARAMS, PARAMS, WORK, IWORK, INFO)
DGBSVXX computes the solution to system of linear equations A * X = B for GB matrices ...
logical function lsame(CA, CB)
LSAME
subroutine dlascl2(M, N, D, X, LDX)
DLASCL2 performs diagonal scaling on a matrix.
subroutine xerbla(SRNAME, INFO)
XERBLA
subroutine dlacpy(UPLO, M, N, A, LDA, B, LDB)
DLACPY copies all or part of one two-dimensional array to another.
double precision function dlamch(CMACH)
DLAMCH
subroutine dgbequb(M, N, KL, KU, AB, LDAB, R, C, ROWCND, COLCND, AMAX, INFO)
DGBEQUB
subroutine dlaqgb(M, N, KL, KU, AB, LDAB, R, C, ROWCND, COLCND, AMAX, EQUED)
DLAQGB scales a general band matrix, using row and column scaling factors computed by sgbequ...
double precision function dla_gbrpvgrw(N, KL, KU, NCOLS, AB, LDAB, AFB, LDAFB)
DLA_GBRPVGRW computes the reciprocal pivot growth factor norm(A)/norm(U) for a general banded matrix...
subroutine dgbrfsx(TRANS, EQUED, N, KL, KU, NRHS, AB, LDAB, AFB, LDAFB, IPIV, R, C, B, LDB, X, LDX, RCOND, BERR, N_ERR_BNDS, ERR_BNDS_NORM, ERR_BNDS_COMP, NPARAMS, PARAMS, WORK, IWORK, INFO)
DGBRFSX
subroutine dgbtrs(TRANS, N, KL, KU, NRHS, AB, LDAB, IPIV, B, LDB, INFO)
DGBTRS
subroutine dgbtrf(M, N, KL, KU, AB, LDAB, IPIV, INFO)
DGBTRF