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claqz3.f 16 kB

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  1. *> \brief \b CLAQZ3
  2. *
  3. * =========== DOCUMENTATION ===========
  4. *
  5. * Online html documentation available at
  6. * http://www.netlib.org/lapack/explore-html/
  7. *
  8. *> \htmlonly
  9. *> Download CLAQZ3 + dependencies
  10. *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.tgz?format=tgz&filename=/lapack/lapack_routine/CLAQZ3.f">
  11. *> [TGZ]</a>
  12. *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.zip?format=zip&filename=/lapack/lapack_routine/CLAQZ3.f">
  13. *> [ZIP]</a>
  14. *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.txt?format=txt&filename=/lapack/lapack_routine/CLAQZ3.f">
  15. *> [TXT]</a>
  16. *> \endhtmlonly
  17. *
  18. * Definition:
  19. * ===========
  20. *
  21. * SUBROUTINE CLAQZ3( ILSCHUR, ILQ, ILZ, N, ILO, IHI, NSHIFTS,
  22. * $ NBLOCK_DESIRED, ALPHA, BETA, A, LDA, B, LDB, Q, LDQ, Z, LDZ,
  23. * $ QC, LDQC, ZC, LDZC, WORK, LWORK, INFO )
  24. * IMPLICIT NONE
  25. *
  26. * Function arguments
  27. * LOGICAL, INTENT( IN ) :: ILSCHUR, ILQ, ILZ
  28. * INTEGER, INTENT( IN ) :: N, ILO, IHI, LDA, LDB, LDQ, LDZ, LWORK,
  29. * $ NSHIFTS, NBLOCK_DESIRED, LDQC, LDZC
  30. *
  31. * COMPLEX, INTENT( INOUT ) :: A( LDA, * ), B( LDB, * ), Q( LDQ, * ),
  32. * $ Z( LDZ, * ), QC( LDQC, * ), ZC( LDZC, * ), WORK( * ),
  33. * $ ALPHA( * ), BETA( * )
  34. *
  35. * INTEGER, INTENT( OUT ) :: INFO
  36. * ..
  37. *
  38. *
  39. *> \par Purpose:
  40. * =============
  41. *>
  42. *> \verbatim
  43. *>
  44. *> CLAQZ3 Executes a single multishift QZ sweep
  45. *> \endverbatim
  46. *
  47. * Arguments:
  48. * ==========
  49. *
  50. *> \param[in] ILSCHUR
  51. *> \verbatim
  52. *> ILSCHUR is LOGICAL
  53. *> Determines whether or not to update the full Schur form
  54. *> \endverbatim
  55. *> \param[in] ILQ
  56. *> \verbatim
  57. *> ILQ is LOGICAL
  58. *> Determines whether or not to update the matrix Q
  59. *> \endverbatim
  60. *>
  61. *> \param[in] ILZ
  62. *> \verbatim
  63. *> ILZ is LOGICAL
  64. *> Determines whether or not to update the matrix Z
  65. *> \endverbatim
  66. *>
  67. *> \param[in] N
  68. *> \verbatim
  69. *> N is INTEGER
  70. *> The order of the matrices A, B, Q, and Z. N >= 0.
  71. *> \endverbatim
  72. *>
  73. *> \param[in] ILO
  74. *> \verbatim
  75. *> ILO is INTEGER
  76. *> \endverbatim
  77. *>
  78. *> \param[in] IHI
  79. *> \verbatim
  80. *> IHI is INTEGER
  81. *> \endverbatim
  82. *>
  83. *> \param[in] NSHIFTS
  84. *> \verbatim
  85. *> NSHIFTS is INTEGER
  86. *> The desired number of shifts to use
  87. *> \endverbatim
  88. *>
  89. *> \param[in] NBLOCK_DESIRED
  90. *> \verbatim
  91. *> NBLOCK_DESIRED is INTEGER
  92. *> The desired size of the computational windows
  93. *> \endverbatim
  94. *>
  95. *> \param[in] ALPHA
  96. *> \verbatim
  97. *> ALPHA is COMPLEX array. SR contains
  98. *> the alpha parts of the shifts to use.
  99. *> \endverbatim
  100. *>
  101. *> \param[in] BETA
  102. *> \verbatim
  103. *> BETA is COMPLEX array. SS contains
  104. *> the scale of the shifts to use.
  105. *> \endverbatim
  106. *>
  107. *> \param[in,out] A
  108. *> \verbatim
  109. *> A is COMPLEX array, dimension (LDA, N)
  110. *> \endverbatim
  111. *>
  112. *> \param[in] LDA
  113. *> \verbatim
  114. *> LDA is INTEGER
  115. *> The leading dimension of the array A. LDA >= max( 1, N ).
  116. *> \endverbatim
  117. *>
  118. *> \param[in,out] B
  119. *> \verbatim
  120. *> B is COMPLEX array, dimension (LDB, N)
  121. *> \endverbatim
  122. *>
  123. *> \param[in] LDB
  124. *> \verbatim
  125. *> LDB is INTEGER
  126. *> The leading dimension of the array B. LDB >= max( 1, N ).
  127. *> \endverbatim
  128. *>
  129. *> \param[in,out] Q
  130. *> \verbatim
  131. *> Q is COMPLEX array, dimension (LDQ, N)
  132. *> \endverbatim
  133. *>
  134. *> \param[in] LDQ
  135. *> \verbatim
  136. *> LDQ is INTEGER
  137. *> \endverbatim
  138. *>
  139. *> \param[in,out] Z
  140. *> \verbatim
  141. *> Z is COMPLEX array, dimension (LDZ, N)
  142. *> \endverbatim
  143. *>
  144. *> \param[in] LDZ
  145. *> \verbatim
  146. *> LDZ is INTEGER
  147. *> \endverbatim
  148. *>
  149. *> \param[in,out] QC
  150. *> \verbatim
  151. *> QC is COMPLEX array, dimension (LDQC, NBLOCK_DESIRED)
  152. *> \endverbatim
  153. *>
  154. *> \param[in] LDQC
  155. *> \verbatim
  156. *> LDQC is INTEGER
  157. *> \endverbatim
  158. *>
  159. *> \param[in,out] ZC
  160. *> \verbatim
  161. *> ZC is COMPLEX array, dimension (LDZC, NBLOCK_DESIRED)
  162. *> \endverbatim
  163. *>
  164. *> \param[in] LDZC
  165. *> \verbatim
  166. *> LDZ is INTEGER
  167. *> \endverbatim
  168. *>
  169. *> \param[out] WORK
  170. *> \verbatim
  171. *> WORK is COMPLEX array, dimension (MAX(1,LWORK))
  172. *> On exit, if INFO >= 0, WORK(1) returns the optimal LWORK.
  173. *> \endverbatim
  174. *>
  175. *> \param[in] LWORK
  176. *> \verbatim
  177. *> LWORK is INTEGER
  178. *> The dimension of the array WORK. LWORK >= max(1,N).
  179. *>
  180. *> If LWORK = -1, then a workspace query is assumed; the routine
  181. *> only calculates the optimal size of the WORK array, returns
  182. *> this value as the first entry of the WORK array, and no error
  183. *> message related to LWORK is issued by XERBLA.
  184. *> \endverbatim
  185. *>
  186. *> \param[out] INFO
  187. *> \verbatim
  188. *> INFO is INTEGER
  189. *> = 0: successful exit
  190. *> < 0: if INFO = -i, the i-th argument had an illegal value
  191. *> \endverbatim
  192. *
  193. * Authors:
  194. * ========
  195. *
  196. *> \author Thijs Steel, KU Leuven
  197. *
  198. *> \date May 2020
  199. *
  200. *> \ingroup complexGEcomputational
  201. *>
  202. * =====================================================================
  203. SUBROUTINE CLAQZ3( ILSCHUR, ILQ, ILZ, N, ILO, IHI, NSHIFTS,
  204. $ NBLOCK_DESIRED, ALPHA, BETA, A, LDA, B, LDB,
  205. $ Q, LDQ, Z, LDZ, QC, LDQC, ZC, LDZC, WORK,
  206. $ LWORK, INFO )
  207. IMPLICIT NONE
  208. * Function arguments
  209. LOGICAL, INTENT( IN ) :: ILSCHUR, ILQ, ILZ
  210. INTEGER, INTENT( IN ) :: N, ILO, IHI, LDA, LDB, LDQ, LDZ, LWORK,
  211. $ NSHIFTS, NBLOCK_DESIRED, LDQC, LDZC
  212. COMPLEX, INTENT( INOUT ) :: A( LDA, * ), B( LDB, * ), Q( LDQ, * ),
  213. $ Z( LDZ, * ), QC( LDQC, * ), ZC( LDZC, * ), WORK( * ),
  214. $ ALPHA( * ), BETA( * )
  215. INTEGER, INTENT( OUT ) :: INFO
  216. * Parameters
  217. COMPLEX CZERO, CONE
  218. PARAMETER ( CZERO = ( 0.0, 0.0 ), CONE = ( 1.0, 0.0 ) )
  219. REAL :: ZERO, ONE, HALF
  220. PARAMETER( ZERO = 0.0, ONE = 1.0, HALF = 0.5 )
  221. * Local scalars
  222. INTEGER :: I, J, NS, ISTARTM, ISTOPM, SHEIGHT, SWIDTH, K, NP,
  223. $ ISTARTB, ISTOPB, ISHIFT, NBLOCK, NPOS
  224. REAL :: SAFMIN, SAFMAX, C, SCALE
  225. COMPLEX :: TEMP, TEMP2, TEMP3, S
  226. * External Functions
  227. EXTERNAL :: XERBLA, SLABAD, CLASET, CLARTG, CROT, CLAQZ1, CGEMM,
  228. $ CLACPY
  229. REAL, EXTERNAL :: SLAMCH
  230. INFO = 0
  231. IF ( NBLOCK_DESIRED .LT. NSHIFTS+1 ) THEN
  232. INFO = -8
  233. END IF
  234. IF ( LWORK .EQ.-1 ) THEN
  235. * workspace query, quick return
  236. WORK( 1 ) = N*NBLOCK_DESIRED
  237. RETURN
  238. ELSE IF ( LWORK .LT. N*NBLOCK_DESIRED ) THEN
  239. INFO = -25
  240. END IF
  241. IF( INFO.NE.0 ) THEN
  242. CALL XERBLA( 'CLAQZ3', -INFO )
  243. RETURN
  244. END IF
  245. *
  246. * Executable statements
  247. *
  248. * Get machine constants
  249. SAFMIN = SLAMCH( 'SAFE MINIMUM' )
  250. SAFMAX = ONE/SAFMIN
  251. CALL SLABAD( SAFMIN, SAFMAX )
  252. IF ( ILO .GE. IHI ) THEN
  253. RETURN
  254. END IF
  255. IF ( ILSCHUR ) THEN
  256. ISTARTM = 1
  257. ISTOPM = N
  258. ELSE
  259. ISTARTM = ILO
  260. ISTOPM = IHI
  261. END IF
  262. NS = NSHIFTS
  263. NPOS = MAX( NBLOCK_DESIRED-NS, 1 )
  264. * The following block introduces the shifts and chases
  265. * them down one by one just enough to make space for
  266. * the other shifts. The near-the-diagonal block is
  267. * of size (ns+1) x ns.
  268. CALL CLASET( 'FULL', NS+1, NS+1, CZERO, CONE, QC, LDQC )
  269. CALL CLASET( 'FULL', NS, NS, CZERO, CONE, ZC, LDZC )
  270. DO I = 1, NS
  271. * Introduce the shift
  272. SCALE = SQRT( ABS( ALPHA( I ) ) ) * SQRT( ABS( BETA( I ) ) )
  273. IF( SCALE .GE. SAFMIN .AND. SCALE .LE. SAFMAX ) THEN
  274. ALPHA( I ) = ALPHA( I )/SCALE
  275. BETA( I ) = BETA( I )/SCALE
  276. END IF
  277. TEMP2 = BETA( I )*A( ILO, ILO )-ALPHA( I )*B( ILO, ILO )
  278. TEMP3 = BETA( I )*A( ILO+1, ILO )
  279. IF ( ABS( TEMP2 ) .GT. SAFMAX .OR.
  280. $ ABS( TEMP3 ) .GT. SAFMAX ) THEN
  281. TEMP2 = CONE
  282. TEMP3 = CZERO
  283. END IF
  284. CALL CLARTG( TEMP2, TEMP3, C, S, TEMP )
  285. CALL CROT( NS, A( ILO, ILO ), LDA, A( ILO+1, ILO ), LDA, C,
  286. $ S )
  287. CALL CROT( NS, B( ILO, ILO ), LDB, B( ILO+1, ILO ), LDB, C,
  288. $ S )
  289. CALL CROT( NS+1, QC( 1, 1 ), 1, QC( 1, 2 ), 1, C, CONJG( S ) )
  290. * Chase the shift down
  291. DO J = 1, NS-I
  292. CALL CLAQZ1( .TRUE., .TRUE., J, 1, NS, IHI-ILO+1, A( ILO,
  293. $ ILO ), LDA, B( ILO, ILO ), LDB, NS+1, 1, QC,
  294. $ LDQC, NS, 1, ZC, LDZC )
  295. END DO
  296. END DO
  297. * Update the rest of the pencil
  298. * Update A(ilo:ilo+ns,ilo+ns:istopm) and B(ilo:ilo+ns,ilo+ns:istopm)
  299. * from the left with Qc(1:ns+1,1:ns+1)'
  300. SHEIGHT = NS+1
  301. SWIDTH = ISTOPM-( ILO+NS )+1
  302. IF ( SWIDTH > 0 ) THEN
  303. CALL CGEMM( 'C', 'N', SHEIGHT, SWIDTH, SHEIGHT, CONE, QC, LDQC,
  304. $ A( ILO, ILO+NS ), LDA, CZERO, WORK, SHEIGHT )
  305. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, A( ILO,
  306. $ ILO+NS ), LDA )
  307. CALL CGEMM( 'C', 'N', SHEIGHT, SWIDTH, SHEIGHT, CONE, QC, LDQC,
  308. $ B( ILO, ILO+NS ), LDB, CZERO, WORK, SHEIGHT )
  309. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, B( ILO,
  310. $ ILO+NS ), LDB )
  311. END IF
  312. IF ( ILQ ) THEN
  313. CALL CGEMM( 'N', 'N', N, SHEIGHT, SHEIGHT, CONE, Q( 1, ILO ),
  314. $ LDQ, QC, LDQC, CZERO, WORK, N )
  315. CALL CLACPY( 'ALL', N, SHEIGHT, WORK, N, Q( 1, ILO ), LDQ )
  316. END IF
  317. * Update A(istartm:ilo-1,ilo:ilo+ns-1) and B(istartm:ilo-1,ilo:ilo+ns-1)
  318. * from the right with Zc(1:ns,1:ns)
  319. SHEIGHT = ILO-1-ISTARTM+1
  320. SWIDTH = NS
  321. IF ( SHEIGHT > 0 ) THEN
  322. CALL CGEMM( 'N', 'N', SHEIGHT, SWIDTH, SWIDTH, CONE,
  323. $ A( ISTARTM, ILO ), LDA, ZC, LDZC, CZERO, WORK,
  324. $ SHEIGHT )
  325. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, A( ISTARTM,
  326. $ ILO ), LDA )
  327. CALL CGEMM( 'N', 'N', SHEIGHT, SWIDTH, SWIDTH, CONE,
  328. $ B( ISTARTM, ILO ), LDB, ZC, LDZC, CZERO, WORK,
  329. $ SHEIGHT )
  330. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, B( ISTARTM,
  331. $ ILO ), LDB )
  332. END IF
  333. IF ( ILZ ) THEN
  334. CALL CGEMM( 'N', 'N', N, SWIDTH, SWIDTH, CONE, Z( 1, ILO ),
  335. $ LDZ, ZC, LDZC, CZERO, WORK, N )
  336. CALL CLACPY( 'ALL', N, SWIDTH, WORK, N, Z( 1, ILO ), LDZ )
  337. END IF
  338. * The following block chases the shifts down to the bottom
  339. * right block. If possible, a shift is moved down npos
  340. * positions at a time
  341. K = ILO
  342. DO WHILE ( K < IHI-NS )
  343. NP = MIN( IHI-NS-K, NPOS )
  344. * Size of the near-the-diagonal block
  345. NBLOCK = NS+NP
  346. * istartb points to the first row we will be updating
  347. ISTARTB = K+1
  348. * istopb points to the last column we will be updating
  349. ISTOPB = K+NBLOCK-1
  350. CALL CLASET( 'FULL', NS+NP, NS+NP, CZERO, CONE, QC, LDQC )
  351. CALL CLASET( 'FULL', NS+NP, NS+NP, CZERO, CONE, ZC, LDZC )
  352. * Near the diagonal shift chase
  353. DO I = NS-1, 0, -1
  354. DO J = 0, NP-1
  355. * Move down the block with index k+i+j, updating
  356. * the (ns+np x ns+np) block:
  357. * (k:k+ns+np,k:k+ns+np-1)
  358. CALL CLAQZ1( .TRUE., .TRUE., K+I+J, ISTARTB, ISTOPB, IHI,
  359. $ A, LDA, B, LDB, NBLOCK, K+1, QC, LDQC,
  360. $ NBLOCK, K, ZC, LDZC )
  361. END DO
  362. END DO
  363. * Update rest of the pencil
  364. * Update A(k+1:k+ns+np, k+ns+np:istopm) and
  365. * B(k+1:k+ns+np, k+ns+np:istopm)
  366. * from the left with Qc(1:ns+np,1:ns+np)'
  367. SHEIGHT = NS+NP
  368. SWIDTH = ISTOPM-( K+NS+NP )+1
  369. IF ( SWIDTH > 0 ) THEN
  370. CALL CGEMM( 'C', 'N', SHEIGHT, SWIDTH, SHEIGHT, CONE, QC,
  371. $ LDQC, A( K+1, K+NS+NP ), LDA, CZERO, WORK,
  372. $ SHEIGHT )
  373. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, A( K+1,
  374. $ K+NS+NP ), LDA )
  375. CALL CGEMM( 'C', 'N', SHEIGHT, SWIDTH, SHEIGHT, CONE, QC,
  376. $ LDQC, B( K+1, K+NS+NP ), LDB, CZERO, WORK,
  377. $ SHEIGHT )
  378. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, B( K+1,
  379. $ K+NS+NP ), LDB )
  380. END IF
  381. IF ( ILQ ) THEN
  382. CALL CGEMM( 'N', 'N', N, NBLOCK, NBLOCK, CONE, Q( 1, K+1 ),
  383. $ LDQ, QC, LDQC, CZERO, WORK, N )
  384. CALL CLACPY( 'ALL', N, NBLOCK, WORK, N, Q( 1, K+1 ), LDQ )
  385. END IF
  386. * Update A(istartm:k,k:k+ns+npos-1) and B(istartm:k,k:k+ns+npos-1)
  387. * from the right with Zc(1:ns+np,1:ns+np)
  388. SHEIGHT = K-ISTARTM+1
  389. SWIDTH = NBLOCK
  390. IF ( SHEIGHT > 0 ) THEN
  391. CALL CGEMM( 'N', 'N', SHEIGHT, SWIDTH, SWIDTH, CONE,
  392. $ A( ISTARTM, K ), LDA, ZC, LDZC, CZERO, WORK,
  393. $ SHEIGHT )
  394. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT,
  395. $ A( ISTARTM, K ), LDA )
  396. CALL CGEMM( 'N', 'N', SHEIGHT, SWIDTH, SWIDTH, CONE,
  397. $ B( ISTARTM, K ), LDB, ZC, LDZC, CZERO, WORK,
  398. $ SHEIGHT )
  399. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT,
  400. $ B( ISTARTM, K ), LDB )
  401. END IF
  402. IF ( ILZ ) THEN
  403. CALL CGEMM( 'N', 'N', N, NBLOCK, NBLOCK, CONE, Z( 1, K ),
  404. $ LDZ, ZC, LDZC, CZERO, WORK, N )
  405. CALL CLACPY( 'ALL', N, NBLOCK, WORK, N, Z( 1, K ), LDZ )
  406. END IF
  407. K = K+NP
  408. END DO
  409. * The following block removes the shifts from the bottom right corner
  410. * one by one. Updates are initially applied to A(ihi-ns+1:ihi,ihi-ns:ihi).
  411. CALL CLASET( 'FULL', NS, NS, CZERO, CONE, QC, LDQC )
  412. CALL CLASET( 'FULL', NS+1, NS+1, CZERO, CONE, ZC, LDZC )
  413. * istartb points to the first row we will be updating
  414. ISTARTB = IHI-NS+1
  415. * istopb points to the last column we will be updating
  416. ISTOPB = IHI
  417. DO I = 1, NS
  418. * Chase the shift down to the bottom right corner
  419. DO ISHIFT = IHI-I, IHI-1
  420. CALL CLAQZ1( .TRUE., .TRUE., ISHIFT, ISTARTB, ISTOPB, IHI,
  421. $ A, LDA, B, LDB, NS, IHI-NS+1, QC, LDQC, NS+1,
  422. $ IHI-NS, ZC, LDZC )
  423. END DO
  424. END DO
  425. * Update rest of the pencil
  426. * Update A(ihi-ns+1:ihi, ihi+1:istopm)
  427. * from the left with Qc(1:ns,1:ns)'
  428. SHEIGHT = NS
  429. SWIDTH = ISTOPM-( IHI+1 )+1
  430. IF ( SWIDTH > 0 ) THEN
  431. CALL CGEMM( 'C', 'N', SHEIGHT, SWIDTH, SHEIGHT, CONE, QC, LDQC,
  432. $ A( IHI-NS+1, IHI+1 ), LDA, CZERO, WORK, SHEIGHT )
  433. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT,
  434. $ A( IHI-NS+1, IHI+1 ), LDA )
  435. CALL CGEMM( 'C', 'N', SHEIGHT, SWIDTH, SHEIGHT, CONE, QC, LDQC,
  436. $ B( IHI-NS+1, IHI+1 ), LDB, CZERO, WORK, SHEIGHT )
  437. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT,
  438. $ B( IHI-NS+1, IHI+1 ), LDB )
  439. END IF
  440. IF ( ILQ ) THEN
  441. CALL CGEMM( 'N', 'N', N, NS, NS, CONE, Q( 1, IHI-NS+1 ), LDQ,
  442. $ QC, LDQC, CZERO, WORK, N )
  443. CALL CLACPY( 'ALL', N, NS, WORK, N, Q( 1, IHI-NS+1 ), LDQ )
  444. END IF
  445. * Update A(istartm:ihi-ns,ihi-ns:ihi)
  446. * from the right with Zc(1:ns+1,1:ns+1)
  447. SHEIGHT = IHI-NS-ISTARTM+1
  448. SWIDTH = NS+1
  449. IF ( SHEIGHT > 0 ) THEN
  450. CALL CGEMM( 'N', 'N', SHEIGHT, SWIDTH, SWIDTH, CONE,
  451. $ A( ISTARTM, IHI-NS ), LDA, ZC, LDZC, CZERO, WORK,
  452. $ SHEIGHT )
  453. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, A( ISTARTM,
  454. $ IHI-NS ), LDA )
  455. CALL CGEMM( 'N', 'N', SHEIGHT, SWIDTH, SWIDTH, CONE,
  456. $ B( ISTARTM, IHI-NS ), LDB, ZC, LDZC, CZERO, WORK,
  457. $ SHEIGHT )
  458. CALL CLACPY( 'ALL', SHEIGHT, SWIDTH, WORK, SHEIGHT, B( ISTARTM,
  459. $ IHI-NS ), LDB )
  460. END IF
  461. IF ( ILZ ) THEN
  462. CALL CGEMM( 'N', 'N', N, NS+1, NS+1, CONE, Z( 1, IHI-NS ), LDZ,
  463. $ ZC, LDZC, CZERO, WORK, N )
  464. CALL CLACPY( 'ALL', N, NS+1, WORK, N, Z( 1, IHI-NS ), LDZ )
  465. END IF
  466. END SUBROUTINE