160 $ LDAB, AFB, LDAFB, IPIV,
161 $ C, CAPPLY, INFO, WORK,
171 INTEGER n, kl, ku, kd, ke, ldab, ldafb, info
175 COMPLEX*16 ab( ldab, * ), afb( ldafb, * ), work( * )
176 DOUBLE PRECISION c( * ), rwork( * )
184 DOUBLE PRECISION ainvnm, anorm, tmp
201 DOUBLE PRECISION cabs1
204 cabs1( zdum ) = abs( dble( zdum ) ) + abs( dimag( zdum ) )
210 notrans =
lsame( trans,
'N' )
211 IF ( .NOT. notrans .AND. .NOT.
lsame( trans,
'T' ) .AND. .NOT.
212 $
lsame( trans,
'C' ) )
THEN
214 ELSE IF( n.LT.0 )
THEN
216 ELSE IF( kl.LT.0 .OR. kl.GT.n-1 )
THEN
218 ELSE IF( ku.LT.0 .OR. ku.GT.n-1 )
THEN
220 ELSE IF( ldab.LT.kl+ku+1 )
THEN
222 ELSE IF( ldafb.LT.2*kl+ku+1 )
THEN
226 CALL xerbla(
'ZLA_GBRCOND_C', -info )
239 DO j =
max( i-kl, 1 ),
min( i+ku, n )
240 tmp = tmp + cabs1( ab( kd+i-j, j ) ) / c( j )
243 DO j =
max( i-kl, 1 ),
min( i+ku, n )
244 tmp = tmp + cabs1( ab( kd+i-j, j ) )
248 anorm =
max( anorm, tmp )
254 DO j =
max( i-kl, 1 ),
min( i+ku, n )
255 tmp = tmp + cabs1( ab( ke-i+j, i ) ) / c( j )
258 DO j =
max( i-kl, 1 ),
min( i+ku, n )
259 tmp = tmp + cabs1( ab( ke-i+j, i ) )
263 anorm =
max( anorm, tmp )
272 ELSE IF( anorm .EQ. 0.0d+0 )
THEN
282 CALL zlacn2( n, work( n+1 ), work, ainvnm, kase, isave )
289 work( i ) = work( i ) * rwork( i )
293 CALL zgbtrs(
'No transpose', n, kl, ku, 1, afb, ldafb,
294 $ ipiv, work, n, info )
296 CALL zgbtrs( 'conjugate transpose
', N, KL, KU, 1, AFB,
297 $ LDAFB, IPIV, WORK, N, INFO )
304 WORK( I ) = WORK( I ) * C( I )
313 WORK( I ) = WORK( I ) * C( I )
318 CALL ZGBTRS( 'conjugate transpose
', N, KL, KU, 1, AFB,
319 $ LDAFB, IPIV, WORK, N, INFO )
321 CALL ZGBTRS( 'no transpose
', N, KL, KU, 1, AFB, LDAFB,
322 $ IPIV, WORK, N, INFO )
328 WORK( I ) = WORK( I ) * RWORK( I )
336.NE.
IF( AINVNM 0.0D+0 )
337 $ ZLA_GBRCOND_C = 1.0D+0 / AINVNM
subroutine zgbtrs(trans, n, kl, ku, nrhs, ab, ldab, ipiv, b, ldb, info)
ZGBTRS
double precision function zla_gbrcond_c(trans, n, kl, ku, ab, ldab, afb, ldafb, ipiv, c, capply, info, work, rwork)
ZLA_GBRCOND_C computes the infinity norm condition number of op(A)*inv(diag(c)) for general banded ma...
subroutine zlacn2(n, v, x, est, kase, isave)
ZLACN2 estimates the 1-norm of a square matrix, using reverse communication for evaluating matrix-vec...