435 SUBROUTINE cgbrfsx( TRANS, EQUED, N, KL, KU, NRHS, AB, LDAB, AFB,
436 $ LDAFB, IPIV, R, C, B, LDB, X, LDX, RCOND,
437 $ BERR, N_ERR_BNDS, ERR_BNDS_NORM,
438 $ ERR_BNDS_COMP, NPARAMS, PARAMS, WORK, RWORK,
446 CHARACTER TRANS, EQUED
447 INTEGER INFO, LDAB, LDAFB, LDB, LDX, N, KL, KU, NRHS,
448 $ nparams, n_err_bnds
453 COMPLEX AB( ldab, * ), AFB( ldafb, * ), B( ldb, * ),
454 $ x( ldx , * ),work( * )
455 REAL R( * ), C( * ), PARAMS( * ), BERR( * ),
456 $ err_bnds_norm( nrhs, * ),
457 $ err_bnds_comp( nrhs, * ), rwork( * )
464 parameter( zero = 0.0e+0, one = 1.0e+0 )
465 REAL ITREF_DEFAULT, ITHRESH_DEFAULT,
466 $ componentwise_default
467 REAL RTHRESH_DEFAULT, DZTHRESH_DEFAULT
468 parameter( itref_default = 1.0 )
469 parameter( ithresh_default = 10.0 )
470 parameter( componentwise_default = 1.0 )
471 parameter( rthresh_default = 0.5 )
472 parameter( dzthresh_default = 0.25 )
473 INTEGER LA_LINRX_ITREF_I, LA_LINRX_ITHRESH_I,
475 parameter( la_linrx_itref_i = 1,
476 $ la_linrx_ithresh_i = 2 )
477 parameter( la_linrx_cwise_i = 3 )
478 INTEGER LA_LINRX_TRUST_I, LA_LINRX_ERR_I,
480 parameter( la_linrx_trust_i = 1, la_linrx_err_i = 2 )
481 parameter( la_linrx_rcond_i = 3 )
485 LOGICAL ROWEQU, COLEQU, NOTRAN, IGNORE_CWISE
486 INTEGER J, TRANS_TYPE, PREC_TYPE, REF_TYPE, N_NORMS,
488 REAL ANORM, RCOND_TMP, ILLRCOND_THRESH, ERR_LBND,
489 $ cwise_wrong, rthresh, unstable_thresh
495 INTRINSIC max, sqrt, transfer
500 REAL SLAMCH, CLANGB, CLA_GBRCOND_X, CLA_GBRCOND_C
502 INTEGER ILATRANS, ILAPREC
509 trans_type = ilatrans( trans )
510 ref_type = int( itref_default )
511 IF ( nparams .GE. la_linrx_itref_i )
THEN 512 IF ( params( la_linrx_itref_i ) .LT. 0.0 )
THEN 513 params( la_linrx_itref_i ) = itref_default
515 ref_type = params( la_linrx_itref_i )
521 illrcond_thresh =
REAL( N ) * SLAMCH(
'Epsilon' )
522 ithresh = int( ithresh_default )
523 rthresh = rthresh_default
524 unstable_thresh = dzthresh_default
525 ignore_cwise = componentwise_default .EQ. 0.0
527 IF ( nparams.GE.la_linrx_ithresh_i )
THEN 528 IF ( params( la_linrx_ithresh_i ).LT.0.0 )
THEN 529 params( la_linrx_ithresh_i ) = ithresh
531 ithresh = int( params( la_linrx_ithresh_i ) )
534 IF ( nparams.GE.la_linrx_cwise_i )
THEN 535 IF ( params( la_linrx_cwise_i ).LT.0.0 )
THEN 536 IF ( ignore_cwise )
THEN 537 params( la_linrx_cwise_i ) = 0.0
539 params( la_linrx_cwise_i ) = 1.0
542 ignore_cwise = params( la_linrx_cwise_i ) .EQ. 0.0
545 IF ( ref_type .EQ. 0 .OR. n_err_bnds .EQ. 0 )
THEN 547 ELSE IF ( ignore_cwise )
THEN 553 notran = lsame( trans,
'N' )
554 rowequ = lsame( equed,
'R' ) .OR. lsame( equed,
'B' )
555 colequ = lsame( equed,
'C' ) .OR. lsame( equed,
'B' )
559 IF( trans_type.EQ.-1 )
THEN 561 ELSE IF( .NOT.rowequ .AND. .NOT.colequ .AND.
562 $ .NOT.lsame( equed,
'N' ) )
THEN 564 ELSE IF( n.LT.0 )
THEN 566 ELSE IF( kl.LT.0 )
THEN 568 ELSE IF( ku.LT.0 )
THEN 570 ELSE IF( nrhs.LT.0 )
THEN 572 ELSE IF( ldab.LT.kl+ku+1 )
THEN 574 ELSE IF( ldafb.LT.2*kl+ku+1 )
THEN 576 ELSE IF( ldb.LT.max( 1, n ) )
THEN 578 ELSE IF( ldx.LT.max( 1, n ) )
THEN 582 CALL xerbla(
'CGBRFSX', -info )
588 IF( n.EQ.0 .OR. nrhs.EQ.0 )
THEN 592 IF ( n_err_bnds .GE. 1 )
THEN 593 err_bnds_norm( j, la_linrx_trust_i ) = 1.0
594 err_bnds_comp( j, la_linrx_trust_i ) = 1.0
596 IF ( n_err_bnds .GE. 2 )
THEN 597 err_bnds_norm( j, la_linrx_err_i ) = 0.0
598 err_bnds_comp( j, la_linrx_err_i ) = 0.0
600 IF ( n_err_bnds .GE. 3 )
THEN 601 err_bnds_norm( j, la_linrx_rcond_i ) = 1.0
602 err_bnds_comp( j, la_linrx_rcond_i ) = 1.0
613 IF ( n_err_bnds .GE. 1 )
THEN 614 err_bnds_norm( j, la_linrx_trust_i ) = 1.0
615 err_bnds_comp( j, la_linrx_trust_i ) = 1.0
617 IF ( n_err_bnds .GE. 2 )
THEN 618 err_bnds_norm( j, la_linrx_err_i ) = 1.0
619 err_bnds_comp( j, la_linrx_err_i ) = 1.0
621 IF ( n_err_bnds .GE. 3 )
THEN 622 err_bnds_norm( j, la_linrx_rcond_i ) = 0.0
623 err_bnds_comp( j, la_linrx_rcond_i ) = 0.0
635 anorm = clangb( norm, n, kl, ku, ab, ldab, rwork )
636 CALL cgbcon( norm, n, kl, ku, afb, ldafb, ipiv, anorm, rcond,
637 $ work, rwork, info )
641 IF ( ref_type .NE. 0 .AND. info .EQ. 0 )
THEN 643 prec_type = ilaprec(
'D' )
647 $ nrhs, ab, ldab, afb, ldafb, ipiv, colequ, c, b,
648 $ ldb, x, ldx, berr, n_norms, err_bnds_norm,
649 $ err_bnds_comp, work, rwork, work(n+1),
650 $ transfer(rwork(1:2*n), (/ (zero, zero) /), n),
651 $ rcond, ithresh, rthresh, unstable_thresh, ignore_cwise,
655 $ nrhs, ab, ldab, afb, ldafb, ipiv, rowequ, r, b,
656 $ ldb, x, ldx, berr, n_norms, err_bnds_norm,
657 $ err_bnds_comp, work, rwork, work(n+1),
658 $ transfer(rwork(1:2*n), (/ (zero, zero) /), n),
659 $ rcond, ithresh, rthresh, unstable_thresh, ignore_cwise,
664 err_lbnd = max( 10.0, sqrt(
REAL( N ) ) ) * slamch(
'Epsilon' )
665 IF (n_err_bnds .GE. 1 .AND. n_norms .GE. 1)
THEN 669 IF ( colequ .AND. notran )
THEN 670 rcond_tmp = cla_gbrcond_c( trans, n, kl, ku, ab, ldab, afb,
671 $ ldafb, ipiv, c, .true., info, work, rwork )
672 ELSE IF ( rowequ .AND. .NOT. notran )
THEN 673 rcond_tmp = cla_gbrcond_c( trans, n, kl, ku, ab, ldab, afb,
674 $ ldafb, ipiv, r, .true., info, work, rwork )
676 rcond_tmp = cla_gbrcond_c( trans, n, kl, ku, ab, ldab, afb,
677 $ ldafb, ipiv, c, .false., info, work, rwork )
683 IF ( n_err_bnds .GE. la_linrx_err_i
684 $ .AND. err_bnds_norm( j, la_linrx_err_i ) .GT. 1.0)
685 $ err_bnds_norm( j, la_linrx_err_i ) = 1.0
689 IF ( rcond_tmp .LT. illrcond_thresh )
THEN 690 err_bnds_norm( j, la_linrx_err_i ) = 1.0
691 err_bnds_norm( j, la_linrx_trust_i ) = 0.0
692 IF ( info .LE. n ) info = n + j
693 ELSE IF ( err_bnds_norm( j, la_linrx_err_i ) .LT. err_lbnd )
695 err_bnds_norm( j, la_linrx_err_i ) = err_lbnd
696 err_bnds_norm( j, la_linrx_trust_i ) = 1.0
701 IF ( n_err_bnds .GE. la_linrx_rcond_i )
THEN 702 err_bnds_norm( j, la_linrx_rcond_i ) = rcond_tmp
708 IF (n_err_bnds .GE. 1 .AND. n_norms .GE. 2)
THEN 718 cwise_wrong = sqrt( slamch(
'Epsilon' ) )
720 IF (err_bnds_comp( j, la_linrx_err_i ) .LT. cwise_wrong )
722 rcond_tmp = cla_gbrcond_x( trans, n, kl, ku, ab, ldab,
723 $ afb, ldafb, ipiv, x( 1, j ), info, work, rwork )
730 IF ( n_err_bnds .GE. la_linrx_err_i
731 $ .AND. err_bnds_comp( j, la_linrx_err_i ) .GT. 1.0 )
732 $ err_bnds_comp( j, la_linrx_err_i ) = 1.0
736 IF ( rcond_tmp .LT. illrcond_thresh )
THEN 737 err_bnds_comp( j, la_linrx_err_i ) = 1.0
738 err_bnds_comp( j, la_linrx_trust_i ) = 0.0
739 IF ( params( la_linrx_cwise_i ) .EQ. 1.0
740 $ .AND. info.LT.n + j ) info = n + j
741 ELSE IF ( err_bnds_comp( j, la_linrx_err_i )
742 $ .LT. err_lbnd )
THEN 743 err_bnds_comp( j, la_linrx_err_i ) = err_lbnd
744 err_bnds_comp( j, la_linrx_trust_i ) = 1.0
749 IF ( n_err_bnds .GE. la_linrx_rcond_i )
THEN 750 err_bnds_comp( j, la_linrx_rcond_i ) = rcond_tmp
logical function lsame(CA, CB)
LSAME
subroutine cla_gbrfsx_extended(PREC_TYPE, TRANS_TYPE, N, KL, KU, NRHS, AB, LDAB, AFB, LDAFB, IPIV, COLEQU, C, B, LDB, Y, LDY, BERR_OUT, N_NORMS, ERR_BNDS_NORM, ERR_BNDS_COMP, RES, AYB, DY, Y_TAIL, RCOND, ITHRESH, RTHRESH, DZ_UB, IGNORE_CWISE, INFO)
CLA_GBRFSX_EXTENDED improves the computed solution to a system of linear equations for general banded...
integer function ilatrans(TRANS)
ILATRANS
subroutine xerbla(SRNAME, INFO)
XERBLA
real function cla_gbrcond_x(TRANS, N, KL, KU, AB, LDAB, AFB, LDAFB, IPIV, X, INFO, WORK, RWORK)
CLA_GBRCOND_X computes the infinity norm condition number of op(A)*diag(x) for general banded matrice...
subroutine cgbrfsx(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, RWORK, INFO)
CGBRFSX
subroutine cgbcon(NORM, N, KL, KU, AB, LDAB, IPIV, ANORM, RCOND, WORK, RWORK, INFO)
CGBCON
real function slamch(CMACH)
SLAMCH
integer function ilaprec(PREC)
ILAPREC
real function cla_gbrcond_c(TRANS, N, KL, KU, AB, LDAB, AFB, LDAFB, IPIV, C, CAPPLY, INFO, WORK, RWORK)
CLA_GBRCOND_C computes the infinity norm condition number of op(A)*inv(diag(c)) for general banded ma...
real function clangb(NORM, N, KL, KU, AB, LDAB, WORK)
CLANGB returns the value of the 1-norm, Frobenius norm, infinity-norm, or the largest absolute value ...