127 SUBROUTINE dorgqr( M, N, K, A, LDA, TAU, WORK, LWORK, INFO )
134 INTEGER INFO, K, LDA, LWORK, M, N
137 DOUBLE PRECISION A( LDA, * ), TAU( * ), WORK( * )
143 DOUBLE PRECISION ZERO
144 parameter( zero = 0.0d+0 )
148 INTEGER I, IB, IINFO, IWS, J, KI, KK, , LDWORK,
149 $ LWKOPT, NB, NBMIN, NX
166 nb = ilaenv( 1, '
dorgqr', ' ', M, N, K, -1 )
167 LWKOPT = MAX( 1, N )*NB
169.EQ.
LQUERY = ( LWORK-1 )
172.LT..OR..GT.
ELSE IF( N0 NM ) THEN
174.LT..OR..GT.
ELSE IF( K0 KN ) THEN
176.LT.
ELSE IF( LDAMAX( 1, M ) ) THEN
178.LT..AND..NOT.
ELSE IF( LWORKMAX( 1, N ) LQUERY ) THEN
182 CALL XERBLA( 'dorgqr', -INFO )
184 ELSE IF( LQUERY ) THEN
198.GT..AND..LT.
IF( NB1 NBK ) THEN
202 NX = MAX( 0, ILAENV( 3, 'dorgqr', ' ', M, N, K, -1 ) )
209.LT.
IF( LWORKIWS ) THEN
215 NBMIN = MAX( 2, ILAENV( 2, 'dorgqr', ' ', M, N, K, -1 ) )
220.GE..AND..LT..AND..LT.
IF( NBNBMIN NBK NXK ) THEN
225 KI = ( ( K-NX-1 ) / NB )*NB
242 $ CALL DORG2R( M-KK, N-KK, K-KK, A( KK+1, KK+1 ), LDA,
243 $ TAU( KK+1 ), WORK, IINFO )
249 DO 50 I = KI + 1, 1, -NB
250 IB = MIN( NB, K-I+1 )
256 CALL DLARFT( 'forward
', 'columnwise
', M-I+1, IB,
257 $ A( I, I ), LDA, TAU( I ), WORK, LDWORK )
261 CALL DLARFB( 'left
', 'no transpose
', 'forward
',
262 $ 'columnwise
', M-I+1, N-I-IB+1, IB,
263 $ A( I, I ), LDA, WORK, LDWORK, A( I, I+IB ),
264 $ LDA, WORK( IB+1 ), LDWORK )
269 CALL DORG2R( M-I+1, IB, IB, A( I, I ), LDA, TAU( I ), WORK,
274 DO 40 J = I, I + IB - 1
subroutine xerbla(srname, info)
XERBLA
subroutine dlarft(direct, storev, n, k, v, ldv, tau, t, ldt)
DLARFT forms the triangular factor T of a block reflector H = I - vtvH
subroutine dlarfb(side, trans, direct, storev, m, n, k, v, ldv, t, ldt, c, ldc, work, ldwork)
DLARFB applies a block reflector or its transpose to a general rectangular matrix.
subroutine dorg2r(m, n, k, a, lda, tau, work, info)
DORG2R generates all or part of the orthogonal matrix Q from a QR factorization determined by sgeqrf ...
subroutine dorgqr(m, n, k, a, lda, tau, work, lwork, info)
DORGQR