144 SUBROUTINE zgeqrf( M, N, A, LDA, TAU, WORK, LWORK, INFO )
151 INTEGER INFO, LDA, LWORK, M, N
154 COMPLEX*16 A( LDA, * ), TAU( * ), WORK( * )
161 INTEGER I, IB, IINFO, IWS, K, LDWORK, LWKOPT, NB,
179 nb = ilaenv( 1,
'ZGEQRF',
' ', m, n, -1, -1 )
182 lquery = ( lwork.EQ.-1 )
185 ELSE IF( n.LT.0 )
THEN
187 ELSE IF( lda.LT.max( 1, m ) )
THEN
189 ELSE IF( lwork.LT.max( 1, n ) .AND. .NOT.lquery )
THEN
193 CALL xerbla(
'ZGEQRF', -info )
195 ELSE IF( lquery )
THEN
210 IF( nb.GT.1 .AND. nb.LT.k )
THEN
214 nx = max( 0, ilaenv( 3,
'ZGEQRF',
' ', m, n, -1, -1 ) )
221 IF( lwork.LT.iws )
THEN
227 nbmin = max( 2, ilaenv( 2,
'ZGEQRF',
' ', m, n, -1,
233 IF( nb.GE.nbmin .AND. nb.LT.k .AND. nx.LT.k )
THEN
237 DO 10 i = 1, k - nx, nb
238 ib = min( k-i+1, nb )
243 CALL zgeqr2( m-i+1, ib, a( i, i ), lda, tau( i ), work,
250 CALL zlarft(
'Forward',
'Columnwise', m-i+1, ib,
251 $ a( i, i ), lda, tau( i ), work, ldwork )
255 CALL zlarfb(
'Left',
'Conjugate transpose',
'Forward',
256 $
'Columnwise', m-i+1, n-i-ib+1, ib,
257 $ a( i, i ), lda, work, ldwork, a( i, i+ib ),
258 $ lda, work( ib+1 ), ldwork )
268 $
CALL zgeqr2( m-i+1, n-i+1, a( i, i ), lda, tau( i ), work,
subroutine xerbla(SRNAME, INFO)
XERBLA
subroutine zgeqr2(M, N, A, LDA, TAU, WORK, INFO)
ZGEQR2 computes the QR factorization of a general rectangular matrix using an unblocked algorithm.
subroutine zlarfb(SIDE, TRANS, DIRECT, STOREV, M, N, K, V, LDV, T, LDT, C, LDC, WORK, LDWORK)
ZLARFB applies a block reflector or its conjugate-transpose to a general rectangular matrix.
subroutine zlarft(DIRECT, STOREV, N, K, V, LDV, TAU, T, LDT)
ZLARFT forms the triangular factor T of a block reflector H = I - vtvH
subroutine zgeqrf(M, N, A, LDA, TAU, WORK, LWORK, INFO)
ZGEQRF VARIANT: left-looking Level 3 BLAS of the algorithm.