391 $ LDA, AF, LDAF, IPIV, COLEQU, C, B,
392 $ LDB, Y, LDY, BERR_OUT, N_NORMS,
393 $ ERRS_N, ERRS_C, RES, AYB, DY,
394 $ Y_TAIL, RCOND, ITHRESH, RTHRESH,
395 $ DZ_UB, IGNORE_CWISE, INFO )
402 INTEGER INFO, LDA, LDAF, LDB, LDY, N, NRHS, PREC_TYPE,
403 $ trans_type, n_norms
404 LOGICAL COLEQU, IGNORE_CWISE
406 DOUBLE PRECISION RTHRESH, DZ_UB
410 COMPLEX*16 A( lda, * ), AF( ldaf, * ), B( ldb, * ),
411 $ y( ldy, * ), res( * ), dy( * ), y_tail( * )
412 DOUBLE PRECISION C( * ), AYB( * ), RCOND, BERR_OUT( * ),
413 $ errs_n( nrhs, * ), errs_c( nrhs, * )
420 INTEGER CNT, I, J, X_STATE, Z_STATE, Y_PREC_STATE
421 DOUBLE PRECISION YK, DYK, YMIN, NORMY, NORMX, NORMDX, DXRAT,
422 $ dzrat, prevnormdx, prev_dz_z, dxratmax,
423 $ dzratmax, dx_x, dz_z, final_dx_x, final_dz_z,
424 $ eps, hugeval, incr_thresh
429 INTEGER UNSTABLE_STATE, WORKING_STATE, CONV_STATE,
430 $ noprog_state, base_residual, extra_residual,
432 parameter( unstable_state = 0, working_state = 1,
435 parameter( base_residual = 0, extra_residual = 1,
437 INTEGER FINAL_NRM_ERR_I, FINAL_CMP_ERR_I, BERR_I
438 INTEGER RCOND_I, NRM_RCOND_I, NRM_ERR_I, CMP_RCOND_I
439 INTEGER CMP_ERR_I, PIV_GROWTH_I
440 parameter( final_nrm_err_i = 1, final_cmp_err_i = 2,
442 parameter( rcond_i = 4, nrm_rcond_i = 5, nrm_err_i = 6 )
443 parameter( cmp_rcond_i = 7, cmp_err_i = 8,
445 INTEGER LA_LINRX_ITREF_I, LA_LINRX_ITHRESH_I,
447 parameter( la_linrx_itref_i = 1,
448 $ la_linrx_ithresh_i = 2 )
449 parameter( la_linrx_cwise_i = 3 )
450 INTEGER LA_LINRX_TRUST_I, LA_LINRX_ERR_I,
452 parameter( la_linrx_trust_i = 1, la_linrx_err_i = 2 )
453 parameter( la_linrx_rcond_i = 3 )
459 DOUBLE PRECISION DLAMCH
460 CHARACTER CHLA_TRANSTYPE
463 INTRINSIC abs, max, min
466 DOUBLE PRECISION CABS1
469 cabs1( zdum ) = abs( dble( zdum ) ) + abs( dimag( zdum ) )
473 IF ( info.NE.0 )
RETURN 474 trans = chla_transtype(trans_type)
475 eps = dlamch(
'Epsilon' )
476 hugeval = dlamch(
'Overflow' )
478 hugeval = hugeval * hugeval
480 incr_thresh = dble( n ) * eps
483 y_prec_state = extra_residual
484 IF ( y_prec_state .EQ. extra_y )
THEN 501 x_state = working_state
502 z_state = unstable_state
510 CALL zcopy( n, b( 1, j ), 1, res, 1 )
511 IF ( y_prec_state .EQ. base_residual )
THEN 512 CALL zgemv( trans, n, n, (-1.0d+0,0.0d+0), a, lda,
513 $ y( 1, j ), 1, (1.0d+0,0.0d+0), res, 1)
514 ELSE IF (y_prec_state .EQ. extra_residual)
THEN 515 CALL blas_zgemv_x( trans_type, n, n, (-1.0d+0,0.0d+0), a,
516 $ lda, y( 1, j ), 1, (1.0d+0,0.0d+0),
517 $ res, 1, prec_type )
519 CALL blas_zgemv2_x( trans_type, n, n, (-1.0d+0,0.0d+0),
520 $ a, lda, y(1, j), y_tail, 1, (1.0d+0,0.0d+0), res, 1,
525 CALL zcopy( n, res, 1, dy, 1 )
526 CALL zgetrs( trans, n, 1, af, ldaf, ipiv, dy, n, info )
537 yk = cabs1( y( i, j ) )
538 dyk = cabs1( dy( i ) )
540 IF ( yk .NE. 0.0d+0 )
THEN 541 dz_z = max( dz_z, dyk / yk )
542 ELSE IF ( dyk .NE. 0.0d+0 )
THEN 546 ymin = min( ymin, yk )
548 normy = max( normy, yk )
551 normx = max( normx, yk * c( i ) )
552 normdx = max( normdx, dyk * c( i ) )
555 normdx = max(normdx, dyk)
559 IF ( normx .NE. 0.0d+0 )
THEN 560 dx_x = normdx / normx
561 ELSE IF ( normdx .EQ. 0.0d+0 )
THEN 567 dxrat = normdx / prevnormdx
568 dzrat = dz_z / prev_dz_z
572 IF (.NOT.ignore_cwise
573 $ .AND. ymin*rcond .LT. incr_thresh*normy
574 $ .AND. y_prec_state .LT. extra_y )
577 IF ( x_state .EQ. noprog_state .AND. dxrat .LE. rthresh )
578 $ x_state = working_state
579 IF ( x_state .EQ. working_state )
THEN 580 IF (dx_x .LE. eps)
THEN 582 ELSE IF ( dxrat .GT. rthresh )
THEN 583 IF ( y_prec_state .NE. extra_y )
THEN 586 x_state = noprog_state
589 IF ( dxrat .GT. dxratmax ) dxratmax = dxrat
591 IF ( x_state .GT. working_state ) final_dx_x = dx_x
594 IF ( z_state .EQ. unstable_state .AND. dz_z .LE. dz_ub )
595 $ z_state = working_state
596 IF ( z_state .EQ. noprog_state .AND. dzrat .LE. rthresh )
597 $ z_state = working_state
598 IF ( z_state .EQ. working_state )
THEN 599 IF ( dz_z .LE. eps )
THEN 601 ELSE IF ( dz_z .GT. dz_ub )
THEN 602 z_state = unstable_state
605 ELSE IF ( dzrat .GT. rthresh )
THEN 606 IF ( y_prec_state .NE. extra_y )
THEN 609 z_state = noprog_state
612 IF ( dzrat .GT. dzratmax ) dzratmax = dzrat
614 IF ( z_state .GT. working_state ) final_dz_z = dz_z
621 IF ( x_state.NE.working_state )
THEN 622 IF ( ignore_cwise )
GOTO 666
623 IF ( z_state.EQ.noprog_state .OR. z_state.EQ.conv_state )
625 IF ( z_state.EQ.unstable_state .AND. cnt.GT.1 )
GOTO 666
628 IF ( incr_prec )
THEN 630 y_prec_state = y_prec_state + 1
641 IF ( y_prec_state .LT. extra_y )
THEN 642 CALL zaxpy( n, (1.0d+0,0.0d+0), dy, 1, y(1,j), 1 )
653 IF ( x_state .EQ. working_state ) final_dx_x = dx_x
654 IF ( z_state .EQ. working_state ) final_dz_z = dz_z
658 IF (n_norms .GE. 1)
THEN 659 errs_n( j, la_linrx_err_i ) = final_dx_x / (1 - dxratmax)
662 IF ( n_norms .GE. 2 )
THEN 663 errs_c( j, la_linrx_err_i ) = final_dz_z / (1 - dzratmax)
674 CALL zcopy( n, b( 1, j ), 1, res, 1 )
675 CALL zgemv( trans, n, n, (-1.0d+0,0.0d+0), a, lda, y(1,j), 1,
676 $ (1.0d+0,0.0d+0), res, 1 )
679 ayb( i ) = cabs1( b( i, j ) )
684 CALL zla_geamv ( trans_type, n, n, 1.0d+0,
685 $ a, lda, y(1, j), 1, 1.0d+0, ayb, 1 )
character *1 function chla_transtype(TRANS)
CHLA_TRANSTYPE
subroutine zaxpy(N, ZA, ZX, INCX, ZY, INCY)
ZAXPY
subroutine zla_geamv(TRANS, M, N, ALPHA, A, LDA, X, INCX, BETA, Y, INCY)
ZLA_GEAMV computes a matrix-vector product using a general matrix to calculate error bounds...
subroutine zla_gerfsx_extended(PREC_TYPE, TRANS_TYPE, N, NRHS, A, LDA, AF, LDAF, IPIV, COLEQU, C, B, LDB, Y, LDY, BERR_OUT, N_NORMS, ERRS_N, ERRS_C, RES, AYB, DY, Y_TAIL, RCOND, ITHRESH, RTHRESH, DZ_UB, IGNORE_CWISE, INFO)
ZLA_GERFSX_EXTENDED
subroutine zla_wwaddw(N, X, Y, W)
ZLA_WWADDW adds a vector into a doubled-single vector.
subroutine zcopy(N, ZX, INCX, ZY, INCY)
ZCOPY
double precision function dlamch(CMACH)
DLAMCH
subroutine zla_lin_berr(N, NZ, NRHS, RES, AYB, BERR)
ZLA_LIN_BERR computes a component-wise relative backward error.
subroutine zgetrs(TRANS, N, NRHS, A, LDA, IPIV, B, LDB, INFO)
ZGETRS
subroutine zgemv(TRANS, M, N, ALPHA, A, LDA, X, INCX, BETA, Y, INCY)
ZGEMV