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13 INTEGER IC, INFO, IQ, JC, JQ, LWORK, MS, NV, RES
14 REAL QTQNRM, THRESH
15
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18 INTEGER DESCC( * ), DESCQ( * ), ICLUSTR( * ),
19 $ PROCDIST( * )
20 REAL GAP( * ), WORK( * )
21 COMPLEX C( * ), Q( * )
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175 INTEGER BLOCK_CYCLIC_2D, DLEN_, DTYPE_, CTXT_, M_, N_,
176 $ MB_, NB_, RSRC_, CSRC_, LLD_
177 parameter( block_cyclic_2d = 1, dlen_ = 9, dtype_ = 1,
178 $ ctxt_ = 2, m_ = 3, n_ = 4, mb_ = 5, nb_ = 6,
179 $ rsrc_ = 7, csrc_ = 8, lld_ = 9 )
180 COMPLEX ZERO, ONE, NEGONE
181 parameter( zero = 0.0e+0, one = 1.0e+0,
182 $ negone = -1.0e+0 )
183
184
185
187
188
189 INTEGER CLUSTER, FIRSTP, IMAX, IMIN, JMAX, JMIN, LWMIN,
190 $ MQ0, MYCOL, MYROW, NEXTP, NP0, NPCOL, NPROW
191 REAL NORM, QTQNRM2, ULP
192
193
194 INTEGER NUMROC
195 REAL PCLANGE, PSLAMCH
197
198
201
202
203
204 IF( block_cyclic_2d*csrc_*ctxt_*dlen_*dtype_*lld_*mb_*m_*nb_*n_*
205 $ rsrc_.LT.0 )RETURN
206
207
208 res = 0
209 ulp =
pslamch( descc( ctxt_ ),
'P' )
210
211 CALL blacs_gridinfo( descc( ctxt_ ), nprow, npcol, myrow, mycol )
212 info = 0
213 CALL chk1mat( ms, 1, ms, 2, iq, jq, descq, 7, info )
214 CALL chk1mat( nv, 1, ms, 2, ic, jc, descc, 11, info )
215
216 IF( info.EQ.0 ) THEN
217 np0 =
numroc( nv, descc( mb_ ), 0, 0, nprow )
218 mq0 =
numroc( nv, descc( nb_ ), 0, 0, npcol )
219
220 lwmin = 2 +
max( descc( mb_ ), 2 )*( 2*np0+mq0 )
221
222 IF( iq.NE.1 ) THEN
223 info = -5
224 ELSE IF( jq.NE.1 ) THEN
225 info = -6
226 ELSE IF( ic.NE.1 ) THEN
227 info = -9
228 ELSE IF( jc.NE.1 ) THEN
229 info = -10
230 ELSE IF( lwork.LT.lwmin ) THEN
231 info = -16
232 END IF
233 END IF
234
235 IF( info.NE.0 ) THEN
236 CALL pxerbla( descc( ctxt_ ),
'PCSEPQTQ', -info )
237 RETURN
238 END IF
239
240
241
242 CALL pclaset(
'A', nv, nv, zero, one, c, ic, jc, descc )
243
244
245
246 IF( nv*ms.GT.0 ) THEN
247 CALL pcgemm( 'Conjugate transpose', 'N', nv, nv, ms, negone, q,
248 $ 1, 1, descq, q, 1, 1, descq, one, c, 1, 1, descc )
249 END IF
250
251
252
253 norm =
pclange(
'1', nv, nv, c, 1, 1, descc, work )
254 qtqnrm = norm / ( real(
max( ms, 1 ) )*ulp )
255
256 cluster = 1
257 10 CONTINUE
258 DO 20 firstp = 1, nprow*npcol
259 IF( procdist( firstp ).GE.iclustr( 2*( cluster-1 )+1 ) )
260 $ GO TO 30
261 20 CONTINUE
262 30 CONTINUE
263
264 imin = iclustr( 2*cluster-1 )
265 jmax = iclustr( 2*cluster )
266
267
268 IF( imin.EQ.0 )
269 $ GO TO 60
270
271 DO 40 nextp = firstp, nprow*npcol
272 imax = procdist( nextp )
273 jmin = imax + 1
274
275
276 CALL pcmatadd( imax-imin+1, jmax-jmin+1, zero, c, imin, jmin,
277 $ descc,
cmplx( gap( cluster ) / 0.01e+0 ), c,
278 $ imin, jmin, descc )
279 CALL pcmatadd( jmax-jmin+1, imax-imin+1, zero, c, jmin, imin,
280 $ descc,
cmplx( gap( cluster ) / 0.01e+0 ), c,
281 $ jmin, imin, descc )
282 imin = imax
283
284 IF( iclustr( 2*cluster ).LT.procdist( nextp+1 ) )
285 $ GO TO 50
286 40 CONTINUE
287 50 CONTINUE
288
289 cluster = cluster + 1
290 GO TO 10
291 60 CONTINUE
292
293
294
295 norm =
pclange(
'1', nv, nv, c, 1, 1, descc, work )
296
297 qtqnrm2 = norm / ( real(
max( ms, 1 ) )*ulp )
298
299 IF( qtqnrm2.GT.thresh ) THEN
300 res = 1
301 qtqnrm = qtqnrm2
302 END IF
303 RETURN
304
305
306
subroutine chk1mat(ma, mapos0, na, napos0, ia, ja, desca, descapos0, info)
integer function numroc(n, nb, iproc, isrcproc, nprocs)
subroutine pclaset(uplo, m, n, alpha, beta, a, ia, ja, desca)
real function pslamch(ictxt, cmach)
real function pclange(norm, m, n, a, ia, ja, desca, work)
subroutine pcmatadd(m, n, alpha, a, ia, ja, desca, beta, c, ic, jc, descc)
subroutine pxerbla(ictxt, srname, info)