228 SUBROUTINE zhpt21( ITYPE, UPLO, N, KBAND, AP, D, E, U, LDU, VP,
229 $ TAU, WORK, RWORK, RESULT )
238 INTEGER ITYPE, KBAND, LDU, N
241 DOUBLE PRECISION D( * ), E( * ), RESULT( 2 ), RWORK( * )
242 COMPLEX*16 AP( * ), TAU( * ), U( LDU, * ), VP( * ),
249 DOUBLE PRECISION ZERO, ONE, TEN
250 parameter( zero = 0.0d+0, one = 1.0d+0, ten = 10.0d+0 )
251 DOUBLE PRECISION HALF
252 parameter( half = 1.0d+0 / 2.0d+0 )
253 COMPLEX*16 CZERO, CONE
254 parameter( czero = ( 0.0d+0, 0.0d+0 ),
255 $ cone = ( 1.0d+0, 0.0d+0 ) )
260 INTEGER IINFO, J, JP, JP1, JR, LAP
261 DOUBLE PRECISION ANORM, ULP, UNFL, WNORM
262 COMPLEX*16 TEMP, VSAVE
266 DOUBLE PRECISION DLAMCH, ZLANGE, ZLANHP
268 EXTERNAL lsame, dlamch, zlange, zlanhp, zdotc
275 INTRINSIC dble, dcmplx, max, min
287 lap = ( n*( n+1 ) ) / 2
289 IF( lsame( uplo,
'U' ) )
THEN
297 unfl = dlamch(
'Safe minimum' )
298 ulp = dlamch(
'Epsilon' )*dlamch(
'Base' )
302 IF( itype.LT.1 .OR. itype.GT.3 )
THEN
303 result( 1 ) = ten / ulp
311 IF( itype.EQ.3 )
THEN
314 anorm = max( zlanhp(
'1', cuplo, n, ap, rwork ), unfl )
319 IF( itype.EQ.1 )
THEN
323 CALL zlaset(
'Full', n, n, czero, czero, work, n )
324 CALL zcopy( lap, ap, 1, work, 1 )
327 CALL zhpr( cuplo, n, -d( j ), u( 1, j ), 1, work )
330 IF( n.GT.1 .AND. kband.EQ.1 )
THEN
332 CALL zhpr2( cuplo, n, -dcmplx( e( j ) ), u( 1, j ), 1,
333 $ u( 1, j-1 ), 1, work )
336 wnorm = zlanhp(
'1', cuplo, n, work, rwork )
338 ELSE IF( itype.EQ.2 )
THEN
342 CALL zlaset(
'Full', n, n, czero, czero, work, n )
346 DO 40 j = n - 1, 1, -1
347 jp = ( ( 2*n-j )*( j-1 ) ) / 2
349 IF( kband.EQ.1 )
THEN
350 work( jp+j+1 ) = ( cone-tau( j ) )*e( j )
352 work( jp+jr ) = -tau( j )*e( j )*vp( jp+jr )
356 IF( tau( j ).NE.czero )
THEN
359 CALL zhpmv(
'L', n-j, cone, work( jp1+j+1 ),
360 $ vp( jp+j+1 ), 1, czero, work( lap+1 ), 1 )
361 temp = -half*tau( j )*zdotc( n-j, work( lap+1 ), 1,
363 CALL zaxpy( n-j, temp, vp( jp+j+1 ), 1, work( lap+1 ),
365 CALL zhpr2(
'L', n-j, -tau( j ), vp( jp+j+1 ), 1,
366 $ work( lap+1 ), 1, work( jp1+j+1 ) )
370 work( jp+j ) = d( j )
375 jp = ( j*( j-1 ) ) / 2
377 IF( kband.EQ.1 )
THEN
378 work( jp1+j ) = ( cone-tau( j ) )*e( j )
380 work( jp1+jr ) = -tau( j )*e( j )*vp( jp1+jr )
384 IF( tau( j ).NE.czero )
THEN
387 CALL zhpmv(
'U', j, cone, work, vp( jp1+1 ), 1, czero,
389 temp = -half*tau( j )*zdotc( j, work( lap+1 ), 1,
391 CALL zaxpy( j, temp, vp( jp1+1 ), 1, work( lap+1 ),
393 CALL zhpr2(
'U', j, -tau( j ), vp( jp1+1 ), 1,
394 $ work( lap+1 ), 1, work )
397 work( jp1+j+1 ) = d( j+1 )
402 work( j ) = work( j ) - ap( j )
404 wnorm = zlanhp(
'1', cuplo, n, work, rwork )
406 ELSE IF( itype.EQ.3 )
THEN
412 CALL zlacpy(
' ', n, n, u, ldu, work, n )
413 CALL zupmtr(
'R', cuplo,
'C', n, n, vp, tau, work, n,
414 $ work( n**2+1 ), iinfo )
415 IF( iinfo.NE.0 )
THEN
416 result( 1 ) = ten / ulp
421 work( ( n+1 )*( j-1 )+1 ) = work( ( n+1 )*( j-1 )+1 ) - cone
424 wnorm = zlange(
'1', n, n, work, n, rwork )
427 IF( anorm.GT.wnorm )
THEN
428 result( 1 ) = ( wnorm / anorm ) / ( n*ulp )
430 IF( anorm.LT.one )
THEN
431 result( 1 ) = ( min( wnorm, n*anorm ) / anorm ) / ( n*ulp )
433 result( 1 ) = min( wnorm / anorm, dble( n ) ) / ( n*ulp )
441 IF( itype.EQ.1 )
THEN
442 CALL zgemm(
'N',
'C', n, n, n, cone, u, ldu, u, ldu, czero,
446 work( ( n+1 )*( j-1 )+1 ) = work( ( n+1 )*( j-1 )+1 ) - cone
449 result( 2 ) = min( zlange(
'1', n, n, work, n, rwork ),
450 $ dble( n ) ) / ( n*ulp )