258 $ WORK, LWORK, RWORK, LRWORK, IWORK,
269 INTEGER INFO, KD, LDAB, LDZ, LIWORK, LRWORK, LWORK, N
273 REAL RWORK( * ), W( * )
274 COMPLEX AB( LDAB, * ), WORK( * ), Z( LDZ, * )
281 PARAMETER ( ZERO = 0.0e0, one = 1.0e0 )
283 parameter( czero = ( 0.0e0, 0.0e0 ),
284 $ cone = ( 1.0e0, 0.0e0 ) )
287 LOGICAL LOWER, LQUERY, WANTZ
288 INTEGER IINFO, IMAX, INDE, INDWK2, INDRWK, ISCALE,
289 $ llwork, indwk, lhtrd, lwtrd, ib, indhous,
290 $ liwmin, llrwk, llwk2, lrwmin, lwmin
291 REAL ANRM, BIGNUM, EPS, RMAX, RMIN, SAFMIN, SIGMA,
298 EXTERNAL lsame, slamch, clanhb, ilaenv2stage
311 wantz = lsame( jobz,
'V' )
312 lower = lsame( uplo,
'L' )
313 lquery = ( lwork.EQ.-1 .OR. liwork.EQ.-1 .OR. lrwork.EQ.-1 )
321 ib = ilaenv2stage( 2,
'CHETRD_HB2ST', jobz, n, kd, -1, -1 )
322 lhtrd = ilaenv2stage( 3,
'CHETRD_HB2ST', jobz, n, kd, ib, -1 )
323 lwtrd = ilaenv2stage( 4,
'CHETRD_HB2ST', jobz, n, kd, ib, -1 )
326 lrwmin = 1 + 5*n + 2*n**2
329 lwmin =
max( n, lhtrd + lwtrd )
334 IF( .NOT.( lsame( jobz,
'N' ) ) )
THEN
336 ELSE IF( .NOT.( lower .OR. lsame( uplo,
'U' ) ) )
THEN
338 ELSE IF( n.LT.0 )
THEN
340 ELSE IF( kd.LT.0 )
THEN
342 ELSE IF( ldab.LT.kd+1 )
THEN
344 ELSE IF( ldz.LT.1 .OR. ( wantz .AND. ldz.LT.n ) )
THEN
353 IF( lwork.LT.lwmin .AND. .NOT.lquery )
THEN
355 ELSE IF( lrwork.LT.lrwmin .AND. .NOT.lquery )
THEN
357 ELSE IF( liwork.LT.liwmin .AND. .NOT.lquery )
THEN
363 CALL xerbla(
'CHBEVD_2STAGE', -info )
365 ELSE IF( lquery )
THEN
375 w( 1 ) = real( ab( 1, 1 ) )
383 safmin = slamch(
'Safe minimum' )
384 eps = slamch(
'Precision' )
385 smlnum = safmin / eps
386 bignum = one / smlnum
387 rmin = sqrt( smlnum )
388 rmax = sqrt( bignum )
392 anrm = clanhb(
'M', uplo, n, kd, ab, ldab, rwork )
394 IF( anrm.GT.zero .AND. anrm.LT.rmin )
THEN
397 ELSE IF( anrm.GT.rmax )
THEN
401 IF( iscale.EQ.1 )
THEN
403 CALL clascl(
'B', kd, kd, one, sigma, n, n, ab, ldab, info )
405 CALL clascl(
'Q', kd, kd, one, sigma, n, n, ab, ldab, info )
413 llrwk = lrwork - indrwk + 1
415 indwk = indhous + lhtrd
416 llwork = lwork - indwk + 1
418 llwk2 = lwork - indwk2 + 1
421 $ rwork( inde ), work( indhous ), lhtrd,
422 $ work( indwk ), llwork, iinfo )
426 IF( .NOT.wantz )
THEN
427 CALL ssterf( n, w, rwork( inde ), info )
429 CALL cstedc(
'I', n, w, rwork( inde ), work, n, work( indwk2 ),
430 $ llwk2, rwork( indrwk ), llrwk, iwork, liwork,
432 CALL cgemm(
'N',
'N', n, n, n, cone, z, ldz, work, n, czero,
433 $ work( indwk2 ), n )
434 CALL clacpy(
'A', n, n, work( indwk2 ), n, z, ldz )
439 IF( iscale.EQ.1 )
THEN
445 CALL sscal( imax, one / sigma, w, 1 )
subroutine chetrd_hb2st(stage1, vect, uplo, n, kd, ab, ldab, d, e, hous, lhous, work, lwork, info)
CHETRD_HB2ST reduces a complex Hermitian band matrix A to real symmetric tridiagonal form T
subroutine chbevd_2stage(jobz, uplo, n, kd, ab, ldab, w, z, ldz, work, lwork, rwork, lrwork, iwork, liwork, info)
CHBEVD_2STAGE computes the eigenvalues and, optionally, the left and/or right eigenvectors for OTHER ...