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LAPACK
3.4.0
LAPACK: Linear Algebra PACKage
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00001 *> \brief \b CUNMRQ 00002 * 00003 * =========== DOCUMENTATION =========== 00004 * 00005 * Online html documentation available at 00006 * http://www.netlib.org/lapack/explore-html/ 00007 * 00008 *> \htmlonly 00009 *> Download CUNMRQ + dependencies 00010 *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.tgz?format=tgz&filename=/lapack/lapack_routine/cunmrq.f"> 00011 *> [TGZ]</a> 00012 *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.zip?format=zip&filename=/lapack/lapack_routine/cunmrq.f"> 00013 *> [ZIP]</a> 00014 *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.txt?format=txt&filename=/lapack/lapack_routine/cunmrq.f"> 00015 *> [TXT]</a> 00016 *> \endhtmlonly 00017 * 00018 * Definition: 00019 * =========== 00020 * 00021 * SUBROUTINE CUNMRQ( SIDE, TRANS, M, N, K, A, LDA, TAU, C, LDC, 00022 * WORK, LWORK, INFO ) 00023 * 00024 * .. Scalar Arguments .. 00025 * CHARACTER SIDE, TRANS 00026 * INTEGER INFO, K, LDA, LDC, LWORK, M, N 00027 * .. 00028 * .. Array Arguments .. 00029 * COMPLEX A( LDA, * ), C( LDC, * ), TAU( * ), 00030 * $ WORK( * ) 00031 * .. 00032 * 00033 * 00034 *> \par Purpose: 00035 * ============= 00036 *> 00037 *> \verbatim 00038 *> 00039 *> CUNMRQ overwrites the general complex M-by-N matrix C with 00040 *> 00041 *> SIDE = 'L' SIDE = 'R' 00042 *> TRANS = 'N': Q * C C * Q 00043 *> TRANS = 'C': Q**H * C C * Q**H 00044 *> 00045 *> where Q is a complex unitary matrix defined as the product of k 00046 *> elementary reflectors 00047 *> 00048 *> Q = H(1)**H H(2)**H . . . H(k)**H 00049 *> 00050 *> as returned by CGERQF. Q is of order M if SIDE = 'L' and of order N 00051 *> if SIDE = 'R'. 00052 *> \endverbatim 00053 * 00054 * Arguments: 00055 * ========== 00056 * 00057 *> \param[in] SIDE 00058 *> \verbatim 00059 *> SIDE is CHARACTER*1 00060 *> = 'L': apply Q or Q**H from the Left; 00061 *> = 'R': apply Q or Q**H from the Right. 00062 *> \endverbatim 00063 *> 00064 *> \param[in] TRANS 00065 *> \verbatim 00066 *> TRANS is CHARACTER*1 00067 *> = 'N': No transpose, apply Q; 00068 *> = 'C': Transpose, apply Q**H. 00069 *> \endverbatim 00070 *> 00071 *> \param[in] M 00072 *> \verbatim 00073 *> M is INTEGER 00074 *> The number of rows of the matrix C. M >= 0. 00075 *> \endverbatim 00076 *> 00077 *> \param[in] N 00078 *> \verbatim 00079 *> N is INTEGER 00080 *> The number of columns of the matrix C. N >= 0. 00081 *> \endverbatim 00082 *> 00083 *> \param[in] K 00084 *> \verbatim 00085 *> K is INTEGER 00086 *> The number of elementary reflectors whose product defines 00087 *> the matrix Q. 00088 *> If SIDE = 'L', M >= K >= 0; 00089 *> if SIDE = 'R', N >= K >= 0. 00090 *> \endverbatim 00091 *> 00092 *> \param[in] A 00093 *> \verbatim 00094 *> A is COMPLEX array, dimension 00095 *> (LDA,M) if SIDE = 'L', 00096 *> (LDA,N) if SIDE = 'R' 00097 *> The i-th row must contain the vector which defines the 00098 *> elementary reflector H(i), for i = 1,2,...,k, as returned by 00099 *> CGERQF in the last k rows of its array argument A. 00100 *> A is modified by the routine but restored on exit. 00101 *> \endverbatim 00102 *> 00103 *> \param[in] LDA 00104 *> \verbatim 00105 *> LDA is INTEGER 00106 *> The leading dimension of the array A. LDA >= max(1,K). 00107 *> \endverbatim 00108 *> 00109 *> \param[in] TAU 00110 *> \verbatim 00111 *> TAU is COMPLEX array, dimension (K) 00112 *> TAU(i) must contain the scalar factor of the elementary 00113 *> reflector H(i), as returned by CGERQF. 00114 *> \endverbatim 00115 *> 00116 *> \param[in,out] C 00117 *> \verbatim 00118 *> C is COMPLEX array, dimension (LDC,N) 00119 *> On entry, the M-by-N matrix C. 00120 *> On exit, C is overwritten by Q*C or Q**H*C or C*Q**H or C*Q. 00121 *> \endverbatim 00122 *> 00123 *> \param[in] LDC 00124 *> \verbatim 00125 *> LDC is INTEGER 00126 *> The leading dimension of the array C. LDC >= max(1,M). 00127 *> \endverbatim 00128 *> 00129 *> \param[out] WORK 00130 *> \verbatim 00131 *> WORK is COMPLEX array, dimension (MAX(1,LWORK)) 00132 *> On exit, if INFO = 0, WORK(1) returns the optimal LWORK. 00133 *> \endverbatim 00134 *> 00135 *> \param[in] LWORK 00136 *> \verbatim 00137 *> LWORK is INTEGER 00138 *> The dimension of the array WORK. 00139 *> If SIDE = 'L', LWORK >= max(1,N); 00140 *> if SIDE = 'R', LWORK >= max(1,M). 00141 *> For optimum performance LWORK >= N*NB if SIDE = 'L', and 00142 *> LWORK >= M*NB if SIDE = 'R', where NB is the optimal 00143 *> blocksize. 00144 *> 00145 *> If LWORK = -1, then a workspace query is assumed; the routine 00146 *> only calculates the optimal size of the WORK array, returns 00147 *> this value as the first entry of the WORK array, and no error 00148 *> message related to LWORK is issued by XERBLA. 00149 *> \endverbatim 00150 *> 00151 *> \param[out] INFO 00152 *> \verbatim 00153 *> INFO is INTEGER 00154 *> = 0: successful exit 00155 *> < 0: if INFO = -i, the i-th argument had an illegal value 00156 *> \endverbatim 00157 * 00158 * Authors: 00159 * ======== 00160 * 00161 *> \author Univ. of Tennessee 00162 *> \author Univ. of California Berkeley 00163 *> \author Univ. of Colorado Denver 00164 *> \author NAG Ltd. 00165 * 00166 *> \date November 2011 00167 * 00168 *> \ingroup complexOTHERcomputational 00169 * 00170 * ===================================================================== 00171 SUBROUTINE CUNMRQ( SIDE, TRANS, M, N, K, A, LDA, TAU, C, LDC, 00172 $ WORK, LWORK, INFO ) 00173 * 00174 * -- LAPACK computational routine (version 3.4.0) -- 00175 * -- LAPACK is a software package provided by Univ. of Tennessee, -- 00176 * -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..-- 00177 * November 2011 00178 * 00179 * .. Scalar Arguments .. 00180 CHARACTER SIDE, TRANS 00181 INTEGER INFO, K, LDA, LDC, LWORK, M, N 00182 * .. 00183 * .. Array Arguments .. 00184 COMPLEX A( LDA, * ), C( LDC, * ), TAU( * ), 00185 $ WORK( * ) 00186 * .. 00187 * 00188 * ===================================================================== 00189 * 00190 * .. Parameters .. 00191 INTEGER NBMAX, LDT 00192 PARAMETER ( NBMAX = 64, LDT = NBMAX+1 ) 00193 * .. 00194 * .. Local Scalars .. 00195 LOGICAL LEFT, LQUERY, NOTRAN 00196 CHARACTER TRANST 00197 INTEGER I, I1, I2, I3, IB, IINFO, IWS, LDWORK, LWKOPT, 00198 $ MI, NB, NBMIN, NI, NQ, NW 00199 * .. 00200 * .. Local Arrays .. 00201 COMPLEX T( LDT, NBMAX ) 00202 * .. 00203 * .. External Functions .. 00204 LOGICAL LSAME 00205 INTEGER ILAENV 00206 EXTERNAL LSAME, ILAENV 00207 * .. 00208 * .. External Subroutines .. 00209 EXTERNAL CLARFB, CLARFT, CUNMR2, XERBLA 00210 * .. 00211 * .. Intrinsic Functions .. 00212 INTRINSIC MAX, MIN 00213 * .. 00214 * .. Executable Statements .. 00215 * 00216 * Test the input arguments 00217 * 00218 INFO = 0 00219 LEFT = LSAME( SIDE, 'L' ) 00220 NOTRAN = LSAME( TRANS, 'N' ) 00221 LQUERY = ( LWORK.EQ.-1 ) 00222 * 00223 * NQ is the order of Q and NW is the minimum dimension of WORK 00224 * 00225 IF( LEFT ) THEN 00226 NQ = M 00227 NW = MAX( 1, N ) 00228 ELSE 00229 NQ = N 00230 NW = MAX( 1, M ) 00231 END IF 00232 IF( .NOT.LEFT .AND. .NOT.LSAME( SIDE, 'R' ) ) THEN 00233 INFO = -1 00234 ELSE IF( .NOT.NOTRAN .AND. .NOT.LSAME( TRANS, 'C' ) ) THEN 00235 INFO = -2 00236 ELSE IF( M.LT.0 ) THEN 00237 INFO = -3 00238 ELSE IF( N.LT.0 ) THEN 00239 INFO = -4 00240 ELSE IF( K.LT.0 .OR. K.GT.NQ ) THEN 00241 INFO = -5 00242 ELSE IF( LDA.LT.MAX( 1, K ) ) THEN 00243 INFO = -7 00244 ELSE IF( LDC.LT.MAX( 1, M ) ) THEN 00245 INFO = -10 00246 END IF 00247 * 00248 IF( INFO.EQ.0 ) THEN 00249 IF( M.EQ.0 .OR. N.EQ.0 ) THEN 00250 LWKOPT = 1 00251 ELSE 00252 * 00253 * Determine the block size. NB may be at most NBMAX, where 00254 * NBMAX is used to define the local array T. 00255 * 00256 NB = MIN( NBMAX, ILAENV( 1, 'CUNMRQ', SIDE // TRANS, M, N, 00257 $ K, -1 ) ) 00258 LWKOPT = NW*NB 00259 END IF 00260 WORK( 1 ) = LWKOPT 00261 * 00262 IF( LWORK.LT.NW .AND. .NOT.LQUERY ) THEN 00263 INFO = -12 00264 END IF 00265 END IF 00266 * 00267 IF( INFO.NE.0 ) THEN 00268 CALL XERBLA( 'CUNMRQ', -INFO ) 00269 RETURN 00270 ELSE IF( LQUERY ) THEN 00271 RETURN 00272 END IF 00273 * 00274 * Quick return if possible 00275 * 00276 IF( M.EQ.0 .OR. N.EQ.0 ) THEN 00277 RETURN 00278 END IF 00279 * 00280 NBMIN = 2 00281 LDWORK = NW 00282 IF( NB.GT.1 .AND. NB.LT.K ) THEN 00283 IWS = NW*NB 00284 IF( LWORK.LT.IWS ) THEN 00285 NB = LWORK / LDWORK 00286 NBMIN = MAX( 2, ILAENV( 2, 'CUNMRQ', SIDE // TRANS, M, N, K, 00287 $ -1 ) ) 00288 END IF 00289 ELSE 00290 IWS = NW 00291 END IF 00292 * 00293 IF( NB.LT.NBMIN .OR. NB.GE.K ) THEN 00294 * 00295 * Use unblocked code 00296 * 00297 CALL CUNMR2( SIDE, TRANS, M, N, K, A, LDA, TAU, C, LDC, WORK, 00298 $ IINFO ) 00299 ELSE 00300 * 00301 * Use blocked code 00302 * 00303 IF( ( LEFT .AND. .NOT.NOTRAN ) .OR. 00304 $ ( .NOT.LEFT .AND. NOTRAN ) ) THEN 00305 I1 = 1 00306 I2 = K 00307 I3 = NB 00308 ELSE 00309 I1 = ( ( K-1 ) / NB )*NB + 1 00310 I2 = 1 00311 I3 = -NB 00312 END IF 00313 * 00314 IF( LEFT ) THEN 00315 NI = N 00316 ELSE 00317 MI = M 00318 END IF 00319 * 00320 IF( NOTRAN ) THEN 00321 TRANST = 'C' 00322 ELSE 00323 TRANST = 'N' 00324 END IF 00325 * 00326 DO 10 I = I1, I2, I3 00327 IB = MIN( NB, K-I+1 ) 00328 * 00329 * Form the triangular factor of the block reflector 00330 * H = H(i+ib-1) . . . H(i+1) H(i) 00331 * 00332 CALL CLARFT( 'Backward', 'Rowwise', NQ-K+I+IB-1, IB, 00333 $ A( I, 1 ), LDA, TAU( I ), T, LDT ) 00334 IF( LEFT ) THEN 00335 * 00336 * H or H**H is applied to C(1:m-k+i+ib-1,1:n) 00337 * 00338 MI = M - K + I + IB - 1 00339 ELSE 00340 * 00341 * H or H**H is applied to C(1:m,1:n-k+i+ib-1) 00342 * 00343 NI = N - K + I + IB - 1 00344 END IF 00345 * 00346 * Apply H or H**H 00347 * 00348 CALL CLARFB( SIDE, TRANST, 'Backward', 'Rowwise', MI, NI, 00349 $ IB, A( I, 1 ), LDA, T, LDT, C, LDC, WORK, 00350 $ LDWORK ) 00351 10 CONTINUE 00352 END IF 00353 WORK( 1 ) = LWKOPT 00354 RETURN 00355 * 00356 * End of CUNMRQ 00357 * 00358 END