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  1. *> \brief \b CCHKST
  2. *
  3. * =========== DOCUMENTATION ===========
  4. *
  5. * Online html documentation available at
  6. * http://www.netlib.org/lapack/explore-html/
  7. *
  8. * Definition:
  9. * ===========
  10. *
  11. * SUBROUTINE CCHKST( NSIZES, NN, NTYPES, DOTYPE, ISEED, THRESH,
  12. * NOUNIT, A, LDA, AP, SD, SE, D1, D2, D3, D4, D5,
  13. * WA1, WA2, WA3, WR, U, LDU, V, VP, TAU, Z, WORK,
  14. * LWORK, RWORK, LRWORK, IWORK, LIWORK, RESULT,
  15. * INFO )
  16. *
  17. * .. Scalar Arguments ..
  18. * INTEGER INFO, LDA, LDU, LIWORK, LRWORK, LWORK, NOUNIT,
  19. * $ NSIZES, NTYPES
  20. * REAL THRESH
  21. * ..
  22. * .. Array Arguments ..
  23. * LOGICAL DOTYPE( * )
  24. * INTEGER ISEED( 4 ), IWORK( * ), NN( * )
  25. * REAL D1( * ), D2( * ), D3( * ), D4( * ), D5( * ),
  26. * $ RESULT( * ), RWORK( * ), SD( * ), SE( * ),
  27. * $ WA1( * ), WA2( * ), WA3( * ), WR( * )
  28. * COMPLEX A( LDA, * ), AP( * ), TAU( * ), U( LDU, * ),
  29. * $ V( LDU, * ), VP( * ), WORK( * ), Z( LDU, * )
  30. * ..
  31. *
  32. *
  33. *> \par Purpose:
  34. * =============
  35. *>
  36. *> \verbatim
  37. *>
  38. *> CCHKST checks the Hermitian eigenvalue problem routines.
  39. *>
  40. *> CHETRD factors A as U S U* , where * means conjugate transpose,
  41. *> S is real symmetric tridiagonal, and U is unitary.
  42. *> CHETRD can use either just the lower or just the upper triangle
  43. *> of A; CCHKST checks both cases.
  44. *> U is represented as a product of Householder
  45. *> transformations, whose vectors are stored in the first
  46. *> n-1 columns of V, and whose scale factors are in TAU.
  47. *>
  48. *> CHPTRD does the same as CHETRD, except that A and V are stored
  49. *> in "packed" format.
  50. *>
  51. *> CUNGTR constructs the matrix U from the contents of V and TAU.
  52. *>
  53. *> CUPGTR constructs the matrix U from the contents of VP and TAU.
  54. *>
  55. *> CSTEQR factors S as Z D1 Z* , where Z is the unitary
  56. *> matrix of eigenvectors and D1 is a diagonal matrix with
  57. *> the eigenvalues on the diagonal. D2 is the matrix of
  58. *> eigenvalues computed when Z is not computed.
  59. *>
  60. *> SSTERF computes D3, the matrix of eigenvalues, by the
  61. *> PWK method, which does not yield eigenvectors.
  62. *>
  63. *> CPTEQR factors S as Z4 D4 Z4* , for a
  64. *> Hermitian positive definite tridiagonal matrix.
  65. *> D5 is the matrix of eigenvalues computed when Z is not
  66. *> computed.
  67. *>
  68. *> SSTEBZ computes selected eigenvalues. WA1, WA2, and
  69. *> WA3 will denote eigenvalues computed to high
  70. *> absolute accuracy, with different range options.
  71. *> WR will denote eigenvalues computed to high relative
  72. *> accuracy.
  73. *>
  74. *> CSTEIN computes Y, the eigenvectors of S, given the
  75. *> eigenvalues.
  76. *>
  77. *> CSTEDC factors S as Z D1 Z* , where Z is the unitary
  78. *> matrix of eigenvectors and D1 is a diagonal matrix with
  79. *> the eigenvalues on the diagonal ('I' option). It may also
  80. *> update an input unitary matrix, usually the output
  81. *> from CHETRD/CUNGTR or CHPTRD/CUPGTR ('V' option). It may
  82. *> also just compute eigenvalues ('N' option).
  83. *>
  84. *> CSTEMR factors S as Z D1 Z* , where Z is the unitary
  85. *> matrix of eigenvectors and D1 is a diagonal matrix with
  86. *> the eigenvalues on the diagonal ('I' option). CSTEMR
  87. *> uses the Relatively Robust Representation whenever possible.
  88. *>
  89. *> When CCHKST is called, a number of matrix "sizes" ("n's") and a
  90. *> number of matrix "types" are specified. For each size ("n")
  91. *> and each type of matrix, one matrix will be generated and used
  92. *> to test the Hermitian eigenroutines. For each matrix, a number
  93. *> of tests will be performed:
  94. *>
  95. *> (1) | A - V S V* | / ( |A| n ulp ) CHETRD( UPLO='U', ... )
  96. *>
  97. *> (2) | I - UV* | / ( n ulp ) CUNGTR( UPLO='U', ... )
  98. *>
  99. *> (3) | A - V S V* | / ( |A| n ulp ) CHETRD( UPLO='L', ... )
  100. *>
  101. *> (4) | I - UV* | / ( n ulp ) CUNGTR( UPLO='L', ... )
  102. *>
  103. *> (5-8) Same as 1-4, but for CHPTRD and CUPGTR.
  104. *>
  105. *> (9) | S - Z D Z* | / ( |S| n ulp ) CSTEQR('V',...)
  106. *>
  107. *> (10) | I - ZZ* | / ( n ulp ) CSTEQR('V',...)
  108. *>
  109. *> (11) | D1 - D2 | / ( |D1| ulp ) CSTEQR('N',...)
  110. *>
  111. *> (12) | D1 - D3 | / ( |D1| ulp ) SSTERF
  112. *>
  113. *> (13) 0 if the true eigenvalues (computed by sturm count)
  114. *> of S are within THRESH of
  115. *> those in D1. 2*THRESH if they are not. (Tested using
  116. *> SSTECH)
  117. *>
  118. *> For S positive definite,
  119. *>
  120. *> (14) | S - Z4 D4 Z4* | / ( |S| n ulp ) CPTEQR('V',...)
  121. *>
  122. *> (15) | I - Z4 Z4* | / ( n ulp ) CPTEQR('V',...)
  123. *>
  124. *> (16) | D4 - D5 | / ( 100 |D4| ulp ) CPTEQR('N',...)
  125. *>
  126. *> When S is also diagonally dominant by the factor gamma < 1,
  127. *>
  128. *> (17) max | D4(i) - WR(i) | / ( |D4(i)| omega ) ,
  129. *> i
  130. *> omega = 2 (2n-1) ULP (1 + 8 gamma**2) / (1 - gamma)**4
  131. *> SSTEBZ( 'A', 'E', ...)
  132. *>
  133. *> (18) | WA1 - D3 | / ( |D3| ulp ) SSTEBZ( 'A', 'E', ...)
  134. *>
  135. *> (19) ( max { min | WA2(i)-WA3(j) | } +
  136. *> i j
  137. *> max { min | WA3(i)-WA2(j) | } ) / ( |D3| ulp )
  138. *> i j
  139. *> SSTEBZ( 'I', 'E', ...)
  140. *>
  141. *> (20) | S - Y WA1 Y* | / ( |S| n ulp ) SSTEBZ, CSTEIN
  142. *>
  143. *> (21) | I - Y Y* | / ( n ulp ) SSTEBZ, CSTEIN
  144. *>
  145. *> (22) | S - Z D Z* | / ( |S| n ulp ) CSTEDC('I')
  146. *>
  147. *> (23) | I - ZZ* | / ( n ulp ) CSTEDC('I')
  148. *>
  149. *> (24) | S - Z D Z* | / ( |S| n ulp ) CSTEDC('V')
  150. *>
  151. *> (25) | I - ZZ* | / ( n ulp ) CSTEDC('V')
  152. *>
  153. *> (26) | D1 - D2 | / ( |D1| ulp ) CSTEDC('V') and
  154. *> CSTEDC('N')
  155. *>
  156. *> Test 27 is disabled at the moment because CSTEMR does not
  157. *> guarantee high relatvie accuracy.
  158. *>
  159. *> (27) max | D6(i) - WR(i) | / ( |D6(i)| omega ) ,
  160. *> i
  161. *> omega = 2 (2n-1) ULP (1 + 8 gamma**2) / (1 - gamma)**4
  162. *> CSTEMR('V', 'A')
  163. *>
  164. *> (28) max | D6(i) - WR(i) | / ( |D6(i)| omega ) ,
  165. *> i
  166. *> omega = 2 (2n-1) ULP (1 + 8 gamma**2) / (1 - gamma)**4
  167. *> CSTEMR('V', 'I')
  168. *>
  169. *> Tests 29 through 34 are disable at present because CSTEMR
  170. *> does not handle partial spectrum requests.
  171. *>
  172. *> (29) | S - Z D Z* | / ( |S| n ulp ) CSTEMR('V', 'I')
  173. *>
  174. *> (30) | I - ZZ* | / ( n ulp ) CSTEMR('V', 'I')
  175. *>
  176. *> (31) ( max { min | WA2(i)-WA3(j) | } +
  177. *> i j
  178. *> max { min | WA3(i)-WA2(j) | } ) / ( |D3| ulp )
  179. *> i j
  180. *> CSTEMR('N', 'I') vs. CSTEMR('V', 'I')
  181. *>
  182. *> (32) | S - Z D Z* | / ( |S| n ulp ) CSTEMR('V', 'V')
  183. *>
  184. *> (33) | I - ZZ* | / ( n ulp ) CSTEMR('V', 'V')
  185. *>
  186. *> (34) ( max { min | WA2(i)-WA3(j) | } +
  187. *> i j
  188. *> max { min | WA3(i)-WA2(j) | } ) / ( |D3| ulp )
  189. *> i j
  190. *> CSTEMR('N', 'V') vs. CSTEMR('V', 'V')
  191. *>
  192. *> (35) | S - Z D Z* | / ( |S| n ulp ) CSTEMR('V', 'A')
  193. *>
  194. *> (36) | I - ZZ* | / ( n ulp ) CSTEMR('V', 'A')
  195. *>
  196. *> (37) ( max { min | WA2(i)-WA3(j) | } +
  197. *> i j
  198. *> max { min | WA3(i)-WA2(j) | } ) / ( |D3| ulp )
  199. *> i j
  200. *> CSTEMR('N', 'A') vs. CSTEMR('V', 'A')
  201. *>
  202. *> The "sizes" are specified by an array NN(1:NSIZES); the value of
  203. *> each element NN(j) specifies one size.
  204. *> The "types" are specified by a logical array DOTYPE( 1:NTYPES );
  205. *> if DOTYPE(j) is .TRUE., then matrix type "j" will be generated.
  206. *> Currently, the list of possible types is:
  207. *>
  208. *> (1) The zero matrix.
  209. *> (2) The identity matrix.
  210. *>
  211. *> (3) A diagonal matrix with evenly spaced entries
  212. *> 1, ..., ULP and random signs.
  213. *> (ULP = (first number larger than 1) - 1 )
  214. *> (4) A diagonal matrix with geometrically spaced entries
  215. *> 1, ..., ULP and random signs.
  216. *> (5) A diagonal matrix with "clustered" entries 1, ULP, ..., ULP
  217. *> and random signs.
  218. *>
  219. *> (6) Same as (4), but multiplied by SQRT( overflow threshold )
  220. *> (7) Same as (4), but multiplied by SQRT( underflow threshold )
  221. *>
  222. *> (8) A matrix of the form U* D U, where U is unitary and
  223. *> D has evenly spaced entries 1, ..., ULP with random signs
  224. *> on the diagonal.
  225. *>
  226. *> (9) A matrix of the form U* D U, where U is unitary and
  227. *> D has geometrically spaced entries 1, ..., ULP with random
  228. *> signs on the diagonal.
  229. *>
  230. *> (10) A matrix of the form U* D U, where U is unitary and
  231. *> D has "clustered" entries 1, ULP,..., ULP with random
  232. *> signs on the diagonal.
  233. *>
  234. *> (11) Same as (8), but multiplied by SQRT( overflow threshold )
  235. *> (12) Same as (8), but multiplied by SQRT( underflow threshold )
  236. *>
  237. *> (13) Hermitian matrix with random entries chosen from (-1,1).
  238. *> (14) Same as (13), but multiplied by SQRT( overflow threshold )
  239. *> (15) Same as (13), but multiplied by SQRT( underflow threshold )
  240. *> (16) Same as (8), but diagonal elements are all positive.
  241. *> (17) Same as (9), but diagonal elements are all positive.
  242. *> (18) Same as (10), but diagonal elements are all positive.
  243. *> (19) Same as (16), but multiplied by SQRT( overflow threshold )
  244. *> (20) Same as (16), but multiplied by SQRT( underflow threshold )
  245. *> (21) A diagonally dominant tridiagonal matrix with geometrically
  246. *> spaced diagonal entries 1, ..., ULP.
  247. *> \endverbatim
  248. *
  249. * Arguments:
  250. * ==========
  251. *
  252. *> \param[in] NSIZES
  253. *> \verbatim
  254. *> NSIZES is INTEGER
  255. *> The number of sizes of matrices to use. If it is zero,
  256. *> CCHKST does nothing. It must be at least zero.
  257. *> \endverbatim
  258. *>
  259. *> \param[in] NN
  260. *> \verbatim
  261. *> NN is INTEGER array, dimension (NSIZES)
  262. *> An array containing the sizes to be used for the matrices.
  263. *> Zero values will be skipped. The values must be at least
  264. *> zero.
  265. *> \endverbatim
  266. *>
  267. *> \param[in] NTYPES
  268. *> \verbatim
  269. *> NTYPES is INTEGER
  270. *> The number of elements in DOTYPE. If it is zero, CCHKST
  271. *> does nothing. It must be at least zero. If it is MAXTYP+1
  272. *> and NSIZES is 1, then an additional type, MAXTYP+1 is
  273. *> defined, which is to use whatever matrix is in A. This
  274. *> is only useful if DOTYPE(1:MAXTYP) is .FALSE. and
  275. *> DOTYPE(MAXTYP+1) is .TRUE. .
  276. *> \endverbatim
  277. *>
  278. *> \param[in] DOTYPE
  279. *> \verbatim
  280. *> DOTYPE is LOGICAL array, dimension (NTYPES)
  281. *> If DOTYPE(j) is .TRUE., then for each size in NN a
  282. *> matrix of that size and of type j will be generated.
  283. *> If NTYPES is smaller than the maximum number of types
  284. *> defined (PARAMETER MAXTYP), then types NTYPES+1 through
  285. *> MAXTYP will not be generated. If NTYPES is larger
  286. *> than MAXTYP, DOTYPE(MAXTYP+1) through DOTYPE(NTYPES)
  287. *> will be ignored.
  288. *> \endverbatim
  289. *>
  290. *> \param[in,out] ISEED
  291. *> \verbatim
  292. *> ISEED is INTEGER array, dimension (4)
  293. *> On entry ISEED specifies the seed of the random number
  294. *> generator. The array elements should be between 0 and 4095;
  295. *> if not they will be reduced mod 4096. Also, ISEED(4) must
  296. *> be odd. The random number generator uses a linear
  297. *> congruential sequence limited to small integers, and so
  298. *> should produce machine independent random numbers. The
  299. *> values of ISEED are changed on exit, and can be used in the
  300. *> next call to CCHKST to continue the same random number
  301. *> sequence.
  302. *> \endverbatim
  303. *>
  304. *> \param[in] THRESH
  305. *> \verbatim
  306. *> THRESH is REAL
  307. *> A test will count as "failed" if the "error", computed as
  308. *> described above, exceeds THRESH. Note that the error
  309. *> is scaled to be O(1), so THRESH should be a reasonably
  310. *> small multiple of 1, e.g., 10 or 100. In particular,
  311. *> it should not depend on the precision (single vs. double)
  312. *> or the size of the matrix. It must be at least zero.
  313. *> \endverbatim
  314. *>
  315. *> \param[in] NOUNIT
  316. *> \verbatim
  317. *> NOUNIT is INTEGER
  318. *> The FORTRAN unit number for printing out error messages
  319. *> (e.g., if a routine returns IINFO not equal to 0.)
  320. *> \endverbatim
  321. *>
  322. *> \param[in,out] A
  323. *> \verbatim
  324. *> A is COMPLEX array of
  325. *> dimension ( LDA , max(NN) )
  326. *> Used to hold the matrix whose eigenvalues are to be
  327. *> computed. On exit, A contains the last matrix actually
  328. *> used.
  329. *> \endverbatim
  330. *>
  331. *> \param[in] LDA
  332. *> \verbatim
  333. *> LDA is INTEGER
  334. *> The leading dimension of A. It must be at
  335. *> least 1 and at least max( NN ).
  336. *> \endverbatim
  337. *>
  338. *> \param[out] AP
  339. *> \verbatim
  340. *> AP is COMPLEX array of
  341. *> dimension( max(NN)*max(NN+1)/2 )
  342. *> The matrix A stored in packed format.
  343. *> \endverbatim
  344. *>
  345. *> \param[out] SD
  346. *> \verbatim
  347. *> SD is REAL array of
  348. *> dimension( max(NN) )
  349. *> The diagonal of the tridiagonal matrix computed by CHETRD.
  350. *> On exit, SD and SE contain the tridiagonal form of the
  351. *> matrix in A.
  352. *> \endverbatim
  353. *>
  354. *> \param[out] SE
  355. *> \verbatim
  356. *> SE is REAL array of
  357. *> dimension( max(NN) )
  358. *> The off-diagonal of the tridiagonal matrix computed by
  359. *> CHETRD. On exit, SD and SE contain the tridiagonal form of
  360. *> the matrix in A.
  361. *> \endverbatim
  362. *>
  363. *> \param[out] D1
  364. *> \verbatim
  365. *> D1 is REAL array of
  366. *> dimension( max(NN) )
  367. *> The eigenvalues of A, as computed by CSTEQR simlutaneously
  368. *> with Z. On exit, the eigenvalues in D1 correspond with the
  369. *> matrix in A.
  370. *> \endverbatim
  371. *>
  372. *> \param[out] D2
  373. *> \verbatim
  374. *> D2 is REAL array of
  375. *> dimension( max(NN) )
  376. *> The eigenvalues of A, as computed by CSTEQR if Z is not
  377. *> computed. On exit, the eigenvalues in D2 correspond with
  378. *> the matrix in A.
  379. *> \endverbatim
  380. *>
  381. *> \param[out] D3
  382. *> \verbatim
  383. *> D3 is REAL array of
  384. *> dimension( max(NN) )
  385. *> The eigenvalues of A, as computed by SSTERF. On exit, the
  386. *> eigenvalues in D3 correspond with the matrix in A.
  387. *> \endverbatim
  388. *>
  389. *> \param[out] D4
  390. *> \verbatim
  391. *> D4 is REAL array of
  392. *> dimension( max(NN) )
  393. *> The eigenvalues of A, as computed by CPTEQR(V).
  394. *> ZPTEQR factors S as Z4 D4 Z4*
  395. *> On exit, the eigenvalues in D4 correspond with the matrix in A.
  396. *> \endverbatim
  397. *>
  398. *> \param[out] D5
  399. *> \verbatim
  400. *> D5 is REAL array of
  401. *> dimension( max(NN) )
  402. *> The eigenvalues of A, as computed by ZPTEQR(N)
  403. *> when Z is not computed. On exit, the
  404. *> eigenvalues in D4 correspond with the matrix in A.
  405. *> \endverbatim
  406. *>
  407. *> \param[out] WA1
  408. *> \verbatim
  409. *> WA1 is REAL array of
  410. *> dimension( max(NN) )
  411. *> All eigenvalues of A, computed to high
  412. *> absolute accuracy, with different range options.
  413. *> as computed by SSTEBZ.
  414. *> \endverbatim
  415. *>
  416. *> \param[out] WA2
  417. *> \verbatim
  418. *> WA2 is REAL array of
  419. *> dimension( max(NN) )
  420. *> Selected eigenvalues of A, computed to high
  421. *> absolute accuracy, with different range options.
  422. *> as computed by SSTEBZ.
  423. *> Choose random values for IL and IU, and ask for the
  424. *> IL-th through IU-th eigenvalues.
  425. *> \endverbatim
  426. *>
  427. *> \param[out] WA3
  428. *> \verbatim
  429. *> WA3 is REAL array of
  430. *> dimension( max(NN) )
  431. *> Selected eigenvalues of A, computed to high
  432. *> absolute accuracy, with different range options.
  433. *> as computed by SSTEBZ.
  434. *> Determine the values VL and VU of the IL-th and IU-th
  435. *> eigenvalues and ask for all eigenvalues in this range.
  436. *> \endverbatim
  437. *>
  438. *> \param[out] WR
  439. *> \verbatim
  440. *> WR is DOUBLE PRECISION array of
  441. *> dimension( max(NN) )
  442. *> All eigenvalues of A, computed to high
  443. *> absolute accuracy, with different options.
  444. *> as computed by DSTEBZ.
  445. *> \endverbatim
  446. *>
  447. *> \param[out] U
  448. *> \verbatim
  449. *> U is COMPLEX array of
  450. *> dimension( LDU, max(NN) ).
  451. *> The unitary matrix computed by CHETRD + CUNGTR.
  452. *> \endverbatim
  453. *>
  454. *> \param[in] LDU
  455. *> \verbatim
  456. *> LDU is INTEGER
  457. *> The leading dimension of U, Z, and V. It must be at least 1
  458. *> and at least max( NN ).
  459. *> \endverbatim
  460. *>
  461. *> \param[out] V
  462. *> \verbatim
  463. *> V is COMPLEX array of
  464. *> dimension( LDU, max(NN) ).
  465. *> The Housholder vectors computed by CHETRD in reducing A to
  466. *> tridiagonal form. The vectors computed with UPLO='U' are
  467. *> in the upper triangle, and the vectors computed with UPLO='L'
  468. *> are in the lower triangle. (As described in CHETRD, the
  469. *> sub- and superdiagonal are not set to 1, although the
  470. *> true Householder vector has a 1 in that position. The
  471. *> routines that use V, such as CUNGTR, set those entries to
  472. *> 1 before using them, and then restore them later.)
  473. *> \endverbatim
  474. *>
  475. *> \param[out] VP
  476. *> \verbatim
  477. *> VP is COMPLEX array of
  478. *> dimension( max(NN)*max(NN+1)/2 )
  479. *> The matrix V stored in packed format.
  480. *> \endverbatim
  481. *>
  482. *> \param[out] TAU
  483. *> \verbatim
  484. *> TAU is COMPLEX array of
  485. *> dimension( max(NN) )
  486. *> The Householder factors computed by CHETRD in reducing A
  487. *> to tridiagonal form.
  488. *> \endverbatim
  489. *>
  490. *> \param[out] Z
  491. *> \verbatim
  492. *> Z is COMPLEX array of
  493. *> dimension( LDU, max(NN) ).
  494. *> The unitary matrix of eigenvectors computed by CSTEQR,
  495. *> CPTEQR, and CSTEIN.
  496. *> \endverbatim
  497. *>
  498. *> \param[out] WORK
  499. *> \verbatim
  500. *> WORK is COMPLEX array of
  501. *> dimension( LWORK )
  502. *> \endverbatim
  503. *>
  504. *> \param[in] LWORK
  505. *> \verbatim
  506. *> LWORK is INTEGER
  507. *> The number of entries in WORK. This must be at least
  508. *> 1 + 4 * Nmax + 2 * Nmax * lg Nmax + 3 * Nmax**2
  509. *> where Nmax = max( NN(j), 2 ) and lg = log base 2.
  510. *> \endverbatim
  511. *>
  512. *> \param[out] IWORK
  513. *> \verbatim
  514. *> IWORK is INTEGER array,
  515. *> Workspace.
  516. *> \endverbatim
  517. *>
  518. *> \param[out] LIWORK
  519. *> \verbatim
  520. *> LIWORK is INTEGER
  521. *> The number of entries in IWORK. This must be at least
  522. *> 6 + 6*Nmax + 5 * Nmax * lg Nmax
  523. *> where Nmax = max( NN(j), 2 ) and lg = log base 2.
  524. *> \endverbatim
  525. *>
  526. *> \param[out] RWORK
  527. *> \verbatim
  528. *> RWORK is REAL array
  529. *> \endverbatim
  530. *>
  531. *> \param[in] LRWORK
  532. *> \verbatim
  533. *> LRWORK is INTEGER
  534. *> The number of entries in LRWORK (dimension( ??? )
  535. *> \endverbatim
  536. *>
  537. *> \param[out] RESULT
  538. *> \verbatim
  539. *> RESULT is REAL array, dimension (26)
  540. *> The values computed by the tests described above.
  541. *> The values are currently limited to 1/ulp, to avoid
  542. *> overflow.
  543. *> \endverbatim
  544. *>
  545. *> \param[out] INFO
  546. *> \verbatim
  547. *> INFO is INTEGER
  548. *> If 0, then everything ran OK.
  549. *> -1: NSIZES < 0
  550. *> -2: Some NN(j) < 0
  551. *> -3: NTYPES < 0
  552. *> -5: THRESH < 0
  553. *> -9: LDA < 1 or LDA < NMAX, where NMAX is max( NN(j) ).
  554. *> -23: LDU < 1 or LDU < NMAX.
  555. *> -29: LWORK too small.
  556. *> If CLATMR, CLATMS, CHETRD, CUNGTR, CSTEQR, SSTERF,
  557. *> or CUNMC2 returns an error code, the
  558. *> absolute value of it is returned.
  559. *>
  560. *>-----------------------------------------------------------------------
  561. *>
  562. *> Some Local Variables and Parameters:
  563. *> ---- ----- --------- --- ----------
  564. *> ZERO, ONE Real 0 and 1.
  565. *> MAXTYP The number of types defined.
  566. *> NTEST The number of tests performed, or which can
  567. *> be performed so far, for the current matrix.
  568. *> NTESTT The total number of tests performed so far.
  569. *> NBLOCK Blocksize as returned by ENVIR.
  570. *> NMAX Largest value in NN.
  571. *> NMATS The number of matrices generated so far.
  572. *> NERRS The number of tests which have exceeded THRESH
  573. *> so far.
  574. *> COND, IMODE Values to be passed to the matrix generators.
  575. *> ANORM Norm of A; passed to matrix generators.
  576. *>
  577. *> OVFL, UNFL Overflow and underflow thresholds.
  578. *> ULP, ULPINV Finest relative precision and its inverse.
  579. *> RTOVFL, RTUNFL Square roots of the previous 2 values.
  580. *> The following four arrays decode JTYPE:
  581. *> KTYPE(j) The general type (1-10) for type "j".
  582. *> KMODE(j) The MODE value to be passed to the matrix
  583. *> generator for type "j".
  584. *> KMAGN(j) The order of magnitude ( O(1),
  585. *> O(overflow^(1/2) ), O(underflow^(1/2) )
  586. *> \endverbatim
  587. *
  588. * Authors:
  589. * ========
  590. *
  591. *> \author Univ. of Tennessee
  592. *> \author Univ. of California Berkeley
  593. *> \author Univ. of Colorado Denver
  594. *> \author NAG Ltd.
  595. *
  596. *> \ingroup complex_eig
  597. *
  598. * =====================================================================
  599. SUBROUTINE CCHKST( NSIZES, NN, NTYPES, DOTYPE, ISEED, THRESH,
  600. $ NOUNIT, A, LDA, AP, SD, SE, D1, D2, D3, D4, D5,
  601. $ WA1, WA2, WA3, WR, U, LDU, V, VP, TAU, Z, WORK,
  602. $ LWORK, RWORK, LRWORK, IWORK, LIWORK, RESULT,
  603. $ INFO )
  604. *
  605. * -- LAPACK test routine --
  606. * -- LAPACK is a software package provided by Univ. of Tennessee, --
  607. * -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..--
  608. *
  609. * .. Scalar Arguments ..
  610. INTEGER INFO, LDA, LDU, LIWORK, LRWORK, LWORK, NOUNIT,
  611. $ NSIZES, NTYPES
  612. REAL THRESH
  613. * ..
  614. * .. Array Arguments ..
  615. LOGICAL DOTYPE( * )
  616. INTEGER ISEED( 4 ), IWORK( * ), NN( * )
  617. REAL D1( * ), D2( * ), D3( * ), D4( * ), D5( * ),
  618. $ RESULT( * ), RWORK( * ), SD( * ), SE( * ),
  619. $ WA1( * ), WA2( * ), WA3( * ), WR( * )
  620. COMPLEX A( LDA, * ), AP( * ), TAU( * ), U( LDU, * ),
  621. $ V( LDU, * ), VP( * ), WORK( * ), Z( LDU, * )
  622. * ..
  623. *
  624. * =====================================================================
  625. *
  626. * .. Parameters ..
  627. REAL ZERO, ONE, TWO, EIGHT, TEN, HUN
  628. PARAMETER ( ZERO = 0.0E0, ONE = 1.0E0, TWO = 2.0E0,
  629. $ EIGHT = 8.0E0, TEN = 10.0E0, HUN = 100.0E0 )
  630. COMPLEX CZERO, CONE
  631. PARAMETER ( CZERO = ( 0.0E+0, 0.0E+0 ),
  632. $ CONE = ( 1.0E+0, 0.0E+0 ) )
  633. REAL HALF
  634. PARAMETER ( HALF = ONE / TWO )
  635. INTEGER MAXTYP
  636. PARAMETER ( MAXTYP = 21 )
  637. LOGICAL CRANGE
  638. PARAMETER ( CRANGE = .FALSE. )
  639. LOGICAL CREL
  640. PARAMETER ( CREL = .FALSE. )
  641. * ..
  642. * .. Local Scalars ..
  643. LOGICAL BADNN, TRYRAC
  644. INTEGER I, IINFO, IL, IMODE, INDE, INDRWK, ITEMP,
  645. $ ITYPE, IU, J, JC, JR, JSIZE, JTYPE, LGN,
  646. $ LIWEDC, LOG2UI, LRWEDC, LWEDC, M, M2, M3,
  647. $ MTYPES, N, NAP, NBLOCK, NERRS, NMATS, NMAX,
  648. $ NSPLIT, NTEST, NTESTT
  649. REAL ABSTOL, ANINV, ANORM, COND, OVFL, RTOVFL,
  650. $ RTUNFL, TEMP1, TEMP2, TEMP3, TEMP4, ULP,
  651. $ ULPINV, UNFL, VL, VU
  652. * ..
  653. * .. Local Arrays ..
  654. INTEGER IDUMMA( 1 ), IOLDSD( 4 ), ISEED2( 4 ),
  655. $ KMAGN( MAXTYP ), KMODE( MAXTYP ),
  656. $ KTYPE( MAXTYP )
  657. REAL DUMMA( 1 )
  658. * ..
  659. * .. External Functions ..
  660. INTEGER ILAENV
  661. REAL SLAMCH, SLARND, SSXT1
  662. EXTERNAL ILAENV, SLAMCH, SLARND, SSXT1
  663. * ..
  664. * .. External Subroutines ..
  665. EXTERNAL CCOPY, CHET21, CHETRD, CHPT21, CHPTRD, CLACPY,
  666. $ CLASET, CLATMR, CLATMS, CPTEQR, CSTEDC, CSTEMR,
  667. $ CSTEIN, CSTEQR, CSTT21, CSTT22, CUNGTR, CUPGTR,
  668. $ SCOPY, SLABAD, SLASUM, SSTEBZ, SSTECH, SSTERF,
  669. $ XERBLA
  670. * ..
  671. * .. Intrinsic Functions ..
  672. INTRINSIC ABS, CONJG, INT, LOG, MAX, MIN, REAL, SQRT
  673. * ..
  674. * .. Data statements ..
  675. DATA KTYPE / 1, 2, 4, 4, 4, 4, 4, 5, 5, 5, 5, 5, 8,
  676. $ 8, 8, 9, 9, 9, 9, 9, 10 /
  677. DATA KMAGN / 1, 1, 1, 1, 1, 2, 3, 1, 1, 1, 2, 3, 1,
  678. $ 2, 3, 1, 1, 1, 2, 3, 1 /
  679. DATA KMODE / 0, 0, 4, 3, 1, 4, 4, 4, 3, 1, 4, 4, 0,
  680. $ 0, 0, 4, 3, 1, 4, 4, 3 /
  681. * ..
  682. * .. Executable Statements ..
  683. *
  684. * Keep ftnchek happy
  685. IDUMMA( 1 ) = 1
  686. *
  687. * Check for errors
  688. *
  689. NTESTT = 0
  690. INFO = 0
  691. *
  692. * Important constants
  693. *
  694. BADNN = .FALSE.
  695. TRYRAC = .TRUE.
  696. NMAX = 1
  697. DO 10 J = 1, NSIZES
  698. NMAX = MAX( NMAX, NN( J ) )
  699. IF( NN( J ).LT.0 )
  700. $ BADNN = .TRUE.
  701. 10 CONTINUE
  702. *
  703. NBLOCK = ILAENV( 1, 'CHETRD', 'L', NMAX, -1, -1, -1 )
  704. NBLOCK = MIN( NMAX, MAX( 1, NBLOCK ) )
  705. *
  706. * Check for errors
  707. *
  708. IF( NSIZES.LT.0 ) THEN
  709. INFO = -1
  710. ELSE IF( BADNN ) THEN
  711. INFO = -2
  712. ELSE IF( NTYPES.LT.0 ) THEN
  713. INFO = -3
  714. ELSE IF( LDA.LT.NMAX ) THEN
  715. INFO = -9
  716. ELSE IF( LDU.LT.NMAX ) THEN
  717. INFO = -23
  718. ELSE IF( 2*MAX( 2, NMAX )**2.GT.LWORK ) THEN
  719. INFO = -29
  720. END IF
  721. *
  722. IF( INFO.NE.0 ) THEN
  723. CALL XERBLA( 'CCHKST', -INFO )
  724. RETURN
  725. END IF
  726. *
  727. * Quick return if possible
  728. *
  729. IF( NSIZES.EQ.0 .OR. NTYPES.EQ.0 )
  730. $ RETURN
  731. *
  732. * More Important constants
  733. *
  734. UNFL = SLAMCH( 'Safe minimum' )
  735. OVFL = ONE / UNFL
  736. CALL SLABAD( UNFL, OVFL )
  737. ULP = SLAMCH( 'Epsilon' )*SLAMCH( 'Base' )
  738. ULPINV = ONE / ULP
  739. LOG2UI = INT( LOG( ULPINV ) / LOG( TWO ) )
  740. RTUNFL = SQRT( UNFL )
  741. RTOVFL = SQRT( OVFL )
  742. *
  743. * Loop over sizes, types
  744. *
  745. DO 20 I = 1, 4
  746. ISEED2( I ) = ISEED( I )
  747. 20 CONTINUE
  748. NERRS = 0
  749. NMATS = 0
  750. *
  751. DO 310 JSIZE = 1, NSIZES
  752. N = NN( JSIZE )
  753. IF( N.GT.0 ) THEN
  754. LGN = INT( LOG( REAL( N ) ) / LOG( TWO ) )
  755. IF( 2**LGN.LT.N )
  756. $ LGN = LGN + 1
  757. IF( 2**LGN.LT.N )
  758. $ LGN = LGN + 1
  759. LWEDC = 1 + 4*N + 2*N*LGN + 4*N**2
  760. LRWEDC = 1 + 3*N + 2*N*LGN + 4*N**2
  761. LIWEDC = 6 + 6*N + 5*N*LGN
  762. ELSE
  763. LWEDC = 8
  764. LRWEDC = 7
  765. LIWEDC = 12
  766. END IF
  767. NAP = ( N*( N+1 ) ) / 2
  768. ANINV = ONE / REAL( MAX( 1, N ) )
  769. *
  770. IF( NSIZES.NE.1 ) THEN
  771. MTYPES = MIN( MAXTYP, NTYPES )
  772. ELSE
  773. MTYPES = MIN( MAXTYP+1, NTYPES )
  774. END IF
  775. *
  776. DO 300 JTYPE = 1, MTYPES
  777. IF( .NOT.DOTYPE( JTYPE ) )
  778. $ GO TO 300
  779. NMATS = NMATS + 1
  780. NTEST = 0
  781. *
  782. DO 30 J = 1, 4
  783. IOLDSD( J ) = ISEED( J )
  784. 30 CONTINUE
  785. *
  786. * Compute "A"
  787. *
  788. * Control parameters:
  789. *
  790. * KMAGN KMODE KTYPE
  791. * =1 O(1) clustered 1 zero
  792. * =2 large clustered 2 identity
  793. * =3 small exponential (none)
  794. * =4 arithmetic diagonal, (w/ eigenvalues)
  795. * =5 random log Hermitian, w/ eigenvalues
  796. * =6 random (none)
  797. * =7 random diagonal
  798. * =8 random Hermitian
  799. * =9 positive definite
  800. * =10 diagonally dominant tridiagonal
  801. *
  802. IF( MTYPES.GT.MAXTYP )
  803. $ GO TO 100
  804. *
  805. ITYPE = KTYPE( JTYPE )
  806. IMODE = KMODE( JTYPE )
  807. *
  808. * Compute norm
  809. *
  810. GO TO ( 40, 50, 60 )KMAGN( JTYPE )
  811. *
  812. 40 CONTINUE
  813. ANORM = ONE
  814. GO TO 70
  815. *
  816. 50 CONTINUE
  817. ANORM = ( RTOVFL*ULP )*ANINV
  818. GO TO 70
  819. *
  820. 60 CONTINUE
  821. ANORM = RTUNFL*N*ULPINV
  822. GO TO 70
  823. *
  824. 70 CONTINUE
  825. *
  826. CALL CLASET( 'Full', LDA, N, CZERO, CZERO, A, LDA )
  827. IINFO = 0
  828. IF( JTYPE.LE.15 ) THEN
  829. COND = ULPINV
  830. ELSE
  831. COND = ULPINV*ANINV / TEN
  832. END IF
  833. *
  834. * Special Matrices -- Identity & Jordan block
  835. *
  836. * Zero
  837. *
  838. IF( ITYPE.EQ.1 ) THEN
  839. IINFO = 0
  840. *
  841. ELSE IF( ITYPE.EQ.2 ) THEN
  842. *
  843. * Identity
  844. *
  845. DO 80 JC = 1, N
  846. A( JC, JC ) = ANORM
  847. 80 CONTINUE
  848. *
  849. ELSE IF( ITYPE.EQ.4 ) THEN
  850. *
  851. * Diagonal Matrix, [Eigen]values Specified
  852. *
  853. CALL CLATMS( N, N, 'S', ISEED, 'H', RWORK, IMODE, COND,
  854. $ ANORM, 0, 0, 'N', A, LDA, WORK, IINFO )
  855. *
  856. *
  857. ELSE IF( ITYPE.EQ.5 ) THEN
  858. *
  859. * Hermitian, eigenvalues specified
  860. *
  861. CALL CLATMS( N, N, 'S', ISEED, 'H', RWORK, IMODE, COND,
  862. $ ANORM, N, N, 'N', A, LDA, WORK, IINFO )
  863. *
  864. ELSE IF( ITYPE.EQ.7 ) THEN
  865. *
  866. * Diagonal, random eigenvalues
  867. *
  868. CALL CLATMR( N, N, 'S', ISEED, 'H', WORK, 6, ONE, CONE,
  869. $ 'T', 'N', WORK( N+1 ), 1, ONE,
  870. $ WORK( 2*N+1 ), 1, ONE, 'N', IDUMMA, 0, 0,
  871. $ ZERO, ANORM, 'NO', A, LDA, IWORK, IINFO )
  872. *
  873. ELSE IF( ITYPE.EQ.8 ) THEN
  874. *
  875. * Hermitian, random eigenvalues
  876. *
  877. CALL CLATMR( N, N, 'S', ISEED, 'H', WORK, 6, ONE, CONE,
  878. $ 'T', 'N', WORK( N+1 ), 1, ONE,
  879. $ WORK( 2*N+1 ), 1, ONE, 'N', IDUMMA, N, N,
  880. $ ZERO, ANORM, 'NO', A, LDA, IWORK, IINFO )
  881. *
  882. ELSE IF( ITYPE.EQ.9 ) THEN
  883. *
  884. * Positive definite, eigenvalues specified.
  885. *
  886. CALL CLATMS( N, N, 'S', ISEED, 'P', RWORK, IMODE, COND,
  887. $ ANORM, N, N, 'N', A, LDA, WORK, IINFO )
  888. *
  889. ELSE IF( ITYPE.EQ.10 ) THEN
  890. *
  891. * Positive definite tridiagonal, eigenvalues specified.
  892. *
  893. CALL CLATMS( N, N, 'S', ISEED, 'P', RWORK, IMODE, COND,
  894. $ ANORM, 1, 1, 'N', A, LDA, WORK, IINFO )
  895. DO 90 I = 2, N
  896. TEMP1 = ABS( A( I-1, I ) )
  897. TEMP2 = SQRT( ABS( A( I-1, I-1 )*A( I, I ) ) )
  898. IF( TEMP1.GT.HALF*TEMP2 ) THEN
  899. A( I-1, I ) = A( I-1, I )*
  900. $ ( HALF*TEMP2 / ( UNFL+TEMP1 ) )
  901. A( I, I-1 ) = CONJG( A( I-1, I ) )
  902. END IF
  903. 90 CONTINUE
  904. *
  905. ELSE
  906. *
  907. IINFO = 1
  908. END IF
  909. *
  910. IF( IINFO.NE.0 ) THEN
  911. WRITE( NOUNIT, FMT = 9999 )'Generator', IINFO, N, JTYPE,
  912. $ IOLDSD
  913. INFO = ABS( IINFO )
  914. RETURN
  915. END IF
  916. *
  917. 100 CONTINUE
  918. *
  919. * Call CHETRD and CUNGTR to compute S and U from
  920. * upper triangle.
  921. *
  922. CALL CLACPY( 'U', N, N, A, LDA, V, LDU )
  923. *
  924. NTEST = 1
  925. CALL CHETRD( 'U', N, V, LDU, SD, SE, TAU, WORK, LWORK,
  926. $ IINFO )
  927. *
  928. IF( IINFO.NE.0 ) THEN
  929. WRITE( NOUNIT, FMT = 9999 )'CHETRD(U)', IINFO, N, JTYPE,
  930. $ IOLDSD
  931. INFO = ABS( IINFO )
  932. IF( IINFO.LT.0 ) THEN
  933. RETURN
  934. ELSE
  935. RESULT( 1 ) = ULPINV
  936. GO TO 280
  937. END IF
  938. END IF
  939. *
  940. CALL CLACPY( 'U', N, N, V, LDU, U, LDU )
  941. *
  942. NTEST = 2
  943. CALL CUNGTR( 'U', N, U, LDU, TAU, WORK, LWORK, IINFO )
  944. IF( IINFO.NE.0 ) THEN
  945. WRITE( NOUNIT, FMT = 9999 )'CUNGTR(U)', IINFO, N, JTYPE,
  946. $ IOLDSD
  947. INFO = ABS( IINFO )
  948. IF( IINFO.LT.0 ) THEN
  949. RETURN
  950. ELSE
  951. RESULT( 2 ) = ULPINV
  952. GO TO 280
  953. END IF
  954. END IF
  955. *
  956. * Do tests 1 and 2
  957. *
  958. CALL CHET21( 2, 'Upper', N, 1, A, LDA, SD, SE, U, LDU, V,
  959. $ LDU, TAU, WORK, RWORK, RESULT( 1 ) )
  960. CALL CHET21( 3, 'Upper', N, 1, A, LDA, SD, SE, U, LDU, V,
  961. $ LDU, TAU, WORK, RWORK, RESULT( 2 ) )
  962. *
  963. * Call CHETRD and CUNGTR to compute S and U from
  964. * lower triangle, do tests.
  965. *
  966. CALL CLACPY( 'L', N, N, A, LDA, V, LDU )
  967. *
  968. NTEST = 3
  969. CALL CHETRD( 'L', N, V, LDU, SD, SE, TAU, WORK, LWORK,
  970. $ IINFO )
  971. *
  972. IF( IINFO.NE.0 ) THEN
  973. WRITE( NOUNIT, FMT = 9999 )'CHETRD(L)', IINFO, N, JTYPE,
  974. $ IOLDSD
  975. INFO = ABS( IINFO )
  976. IF( IINFO.LT.0 ) THEN
  977. RETURN
  978. ELSE
  979. RESULT( 3 ) = ULPINV
  980. GO TO 280
  981. END IF
  982. END IF
  983. *
  984. CALL CLACPY( 'L', N, N, V, LDU, U, LDU )
  985. *
  986. NTEST = 4
  987. CALL CUNGTR( 'L', N, U, LDU, TAU, WORK, LWORK, IINFO )
  988. IF( IINFO.NE.0 ) THEN
  989. WRITE( NOUNIT, FMT = 9999 )'CUNGTR(L)', IINFO, N, JTYPE,
  990. $ IOLDSD
  991. INFO = ABS( IINFO )
  992. IF( IINFO.LT.0 ) THEN
  993. RETURN
  994. ELSE
  995. RESULT( 4 ) = ULPINV
  996. GO TO 280
  997. END IF
  998. END IF
  999. *
  1000. CALL CHET21( 2, 'Lower', N, 1, A, LDA, SD, SE, U, LDU, V,
  1001. $ LDU, TAU, WORK, RWORK, RESULT( 3 ) )
  1002. CALL CHET21( 3, 'Lower', N, 1, A, LDA, SD, SE, U, LDU, V,
  1003. $ LDU, TAU, WORK, RWORK, RESULT( 4 ) )
  1004. *
  1005. * Store the upper triangle of A in AP
  1006. *
  1007. I = 0
  1008. DO 120 JC = 1, N
  1009. DO 110 JR = 1, JC
  1010. I = I + 1
  1011. AP( I ) = A( JR, JC )
  1012. 110 CONTINUE
  1013. 120 CONTINUE
  1014. *
  1015. * Call CHPTRD and CUPGTR to compute S and U from AP
  1016. *
  1017. CALL CCOPY( NAP, AP, 1, VP, 1 )
  1018. *
  1019. NTEST = 5
  1020. CALL CHPTRD( 'U', N, VP, SD, SE, TAU, IINFO )
  1021. *
  1022. IF( IINFO.NE.0 ) THEN
  1023. WRITE( NOUNIT, FMT = 9999 )'CHPTRD(U)', IINFO, N, JTYPE,
  1024. $ IOLDSD
  1025. INFO = ABS( IINFO )
  1026. IF( IINFO.LT.0 ) THEN
  1027. RETURN
  1028. ELSE
  1029. RESULT( 5 ) = ULPINV
  1030. GO TO 280
  1031. END IF
  1032. END IF
  1033. *
  1034. NTEST = 6
  1035. CALL CUPGTR( 'U', N, VP, TAU, U, LDU, WORK, IINFO )
  1036. IF( IINFO.NE.0 ) THEN
  1037. WRITE( NOUNIT, FMT = 9999 )'CUPGTR(U)', IINFO, N, JTYPE,
  1038. $ IOLDSD
  1039. INFO = ABS( IINFO )
  1040. IF( IINFO.LT.0 ) THEN
  1041. RETURN
  1042. ELSE
  1043. RESULT( 6 ) = ULPINV
  1044. GO TO 280
  1045. END IF
  1046. END IF
  1047. *
  1048. * Do tests 5 and 6
  1049. *
  1050. CALL CHPT21( 2, 'Upper', N, 1, AP, SD, SE, U, LDU, VP, TAU,
  1051. $ WORK, RWORK, RESULT( 5 ) )
  1052. CALL CHPT21( 3, 'Upper', N, 1, AP, SD, SE, U, LDU, VP, TAU,
  1053. $ WORK, RWORK, RESULT( 6 ) )
  1054. *
  1055. * Store the lower triangle of A in AP
  1056. *
  1057. I = 0
  1058. DO 140 JC = 1, N
  1059. DO 130 JR = JC, N
  1060. I = I + 1
  1061. AP( I ) = A( JR, JC )
  1062. 130 CONTINUE
  1063. 140 CONTINUE
  1064. *
  1065. * Call CHPTRD and CUPGTR to compute S and U from AP
  1066. *
  1067. CALL CCOPY( NAP, AP, 1, VP, 1 )
  1068. *
  1069. NTEST = 7
  1070. CALL CHPTRD( 'L', N, VP, SD, SE, TAU, IINFO )
  1071. *
  1072. IF( IINFO.NE.0 ) THEN
  1073. WRITE( NOUNIT, FMT = 9999 )'CHPTRD(L)', IINFO, N, JTYPE,
  1074. $ IOLDSD
  1075. INFO = ABS( IINFO )
  1076. IF( IINFO.LT.0 ) THEN
  1077. RETURN
  1078. ELSE
  1079. RESULT( 7 ) = ULPINV
  1080. GO TO 280
  1081. END IF
  1082. END IF
  1083. *
  1084. NTEST = 8
  1085. CALL CUPGTR( 'L', N, VP, TAU, U, LDU, WORK, IINFO )
  1086. IF( IINFO.NE.0 ) THEN
  1087. WRITE( NOUNIT, FMT = 9999 )'CUPGTR(L)', IINFO, N, JTYPE,
  1088. $ IOLDSD
  1089. INFO = ABS( IINFO )
  1090. IF( IINFO.LT.0 ) THEN
  1091. RETURN
  1092. ELSE
  1093. RESULT( 8 ) = ULPINV
  1094. GO TO 280
  1095. END IF
  1096. END IF
  1097. *
  1098. CALL CHPT21( 2, 'Lower', N, 1, AP, SD, SE, U, LDU, VP, TAU,
  1099. $ WORK, RWORK, RESULT( 7 ) )
  1100. CALL CHPT21( 3, 'Lower', N, 1, AP, SD, SE, U, LDU, VP, TAU,
  1101. $ WORK, RWORK, RESULT( 8 ) )
  1102. *
  1103. * Call CSTEQR to compute D1, D2, and Z, do tests.
  1104. *
  1105. * Compute D1 and Z
  1106. *
  1107. CALL SCOPY( N, SD, 1, D1, 1 )
  1108. IF( N.GT.0 )
  1109. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1110. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1111. *
  1112. NTEST = 9
  1113. CALL CSTEQR( 'V', N, D1, RWORK, Z, LDU, RWORK( N+1 ),
  1114. $ IINFO )
  1115. IF( IINFO.NE.0 ) THEN
  1116. WRITE( NOUNIT, FMT = 9999 )'CSTEQR(V)', IINFO, N, JTYPE,
  1117. $ IOLDSD
  1118. INFO = ABS( IINFO )
  1119. IF( IINFO.LT.0 ) THEN
  1120. RETURN
  1121. ELSE
  1122. RESULT( 9 ) = ULPINV
  1123. GO TO 280
  1124. END IF
  1125. END IF
  1126. *
  1127. * Compute D2
  1128. *
  1129. CALL SCOPY( N, SD, 1, D2, 1 )
  1130. IF( N.GT.0 )
  1131. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1132. *
  1133. NTEST = 11
  1134. CALL CSTEQR( 'N', N, D2, RWORK, WORK, LDU, RWORK( N+1 ),
  1135. $ IINFO )
  1136. IF( IINFO.NE.0 ) THEN
  1137. WRITE( NOUNIT, FMT = 9999 )'CSTEQR(N)', IINFO, N, JTYPE,
  1138. $ IOLDSD
  1139. INFO = ABS( IINFO )
  1140. IF( IINFO.LT.0 ) THEN
  1141. RETURN
  1142. ELSE
  1143. RESULT( 11 ) = ULPINV
  1144. GO TO 280
  1145. END IF
  1146. END IF
  1147. *
  1148. * Compute D3 (using PWK method)
  1149. *
  1150. CALL SCOPY( N, SD, 1, D3, 1 )
  1151. IF( N.GT.0 )
  1152. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1153. *
  1154. NTEST = 12
  1155. CALL SSTERF( N, D3, RWORK, IINFO )
  1156. IF( IINFO.NE.0 ) THEN
  1157. WRITE( NOUNIT, FMT = 9999 )'SSTERF', IINFO, N, JTYPE,
  1158. $ IOLDSD
  1159. INFO = ABS( IINFO )
  1160. IF( IINFO.LT.0 ) THEN
  1161. RETURN
  1162. ELSE
  1163. RESULT( 12 ) = ULPINV
  1164. GO TO 280
  1165. END IF
  1166. END IF
  1167. *
  1168. * Do Tests 9 and 10
  1169. *
  1170. CALL CSTT21( N, 0, SD, SE, D1, DUMMA, Z, LDU, WORK, RWORK,
  1171. $ RESULT( 9 ) )
  1172. *
  1173. * Do Tests 11 and 12
  1174. *
  1175. TEMP1 = ZERO
  1176. TEMP2 = ZERO
  1177. TEMP3 = ZERO
  1178. TEMP4 = ZERO
  1179. *
  1180. DO 150 J = 1, N
  1181. TEMP1 = MAX( TEMP1, ABS( D1( J ) ), ABS( D2( J ) ) )
  1182. TEMP2 = MAX( TEMP2, ABS( D1( J )-D2( J ) ) )
  1183. TEMP3 = MAX( TEMP3, ABS( D1( J ) ), ABS( D3( J ) ) )
  1184. TEMP4 = MAX( TEMP4, ABS( D1( J )-D3( J ) ) )
  1185. 150 CONTINUE
  1186. *
  1187. RESULT( 11 ) = TEMP2 / MAX( UNFL, ULP*MAX( TEMP1, TEMP2 ) )
  1188. RESULT( 12 ) = TEMP4 / MAX( UNFL, ULP*MAX( TEMP3, TEMP4 ) )
  1189. *
  1190. * Do Test 13 -- Sturm Sequence Test of Eigenvalues
  1191. * Go up by factors of two until it succeeds
  1192. *
  1193. NTEST = 13
  1194. TEMP1 = THRESH*( HALF-ULP )
  1195. *
  1196. DO 160 J = 0, LOG2UI
  1197. CALL SSTECH( N, SD, SE, D1, TEMP1, RWORK, IINFO )
  1198. IF( IINFO.EQ.0 )
  1199. $ GO TO 170
  1200. TEMP1 = TEMP1*TWO
  1201. 160 CONTINUE
  1202. *
  1203. 170 CONTINUE
  1204. RESULT( 13 ) = TEMP1
  1205. *
  1206. * For positive definite matrices ( JTYPE.GT.15 ) call CPTEQR
  1207. * and do tests 14, 15, and 16 .
  1208. *
  1209. IF( JTYPE.GT.15 ) THEN
  1210. *
  1211. * Compute D4 and Z4
  1212. *
  1213. CALL SCOPY( N, SD, 1, D4, 1 )
  1214. IF( N.GT.0 )
  1215. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1216. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1217. *
  1218. NTEST = 14
  1219. CALL CPTEQR( 'V', N, D4, RWORK, Z, LDU, RWORK( N+1 ),
  1220. $ IINFO )
  1221. IF( IINFO.NE.0 ) THEN
  1222. WRITE( NOUNIT, FMT = 9999 )'CPTEQR(V)', IINFO, N,
  1223. $ JTYPE, IOLDSD
  1224. INFO = ABS( IINFO )
  1225. IF( IINFO.LT.0 ) THEN
  1226. RETURN
  1227. ELSE
  1228. RESULT( 14 ) = ULPINV
  1229. GO TO 280
  1230. END IF
  1231. END IF
  1232. *
  1233. * Do Tests 14 and 15
  1234. *
  1235. CALL CSTT21( N, 0, SD, SE, D4, DUMMA, Z, LDU, WORK,
  1236. $ RWORK, RESULT( 14 ) )
  1237. *
  1238. * Compute D5
  1239. *
  1240. CALL SCOPY( N, SD, 1, D5, 1 )
  1241. IF( N.GT.0 )
  1242. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1243. *
  1244. NTEST = 16
  1245. CALL CPTEQR( 'N', N, D5, RWORK, Z, LDU, RWORK( N+1 ),
  1246. $ IINFO )
  1247. IF( IINFO.NE.0 ) THEN
  1248. WRITE( NOUNIT, FMT = 9999 )'CPTEQR(N)', IINFO, N,
  1249. $ JTYPE, IOLDSD
  1250. INFO = ABS( IINFO )
  1251. IF( IINFO.LT.0 ) THEN
  1252. RETURN
  1253. ELSE
  1254. RESULT( 16 ) = ULPINV
  1255. GO TO 280
  1256. END IF
  1257. END IF
  1258. *
  1259. * Do Test 16
  1260. *
  1261. TEMP1 = ZERO
  1262. TEMP2 = ZERO
  1263. DO 180 J = 1, N
  1264. TEMP1 = MAX( TEMP1, ABS( D4( J ) ), ABS( D5( J ) ) )
  1265. TEMP2 = MAX( TEMP2, ABS( D4( J )-D5( J ) ) )
  1266. 180 CONTINUE
  1267. *
  1268. RESULT( 16 ) = TEMP2 / MAX( UNFL,
  1269. $ HUN*ULP*MAX( TEMP1, TEMP2 ) )
  1270. ELSE
  1271. RESULT( 14 ) = ZERO
  1272. RESULT( 15 ) = ZERO
  1273. RESULT( 16 ) = ZERO
  1274. END IF
  1275. *
  1276. * Call SSTEBZ with different options and do tests 17-18.
  1277. *
  1278. * If S is positive definite and diagonally dominant,
  1279. * ask for all eigenvalues with high relative accuracy.
  1280. *
  1281. VL = ZERO
  1282. VU = ZERO
  1283. IL = 0
  1284. IU = 0
  1285. IF( JTYPE.EQ.21 ) THEN
  1286. NTEST = 17
  1287. ABSTOL = UNFL + UNFL
  1288. CALL SSTEBZ( 'A', 'E', N, VL, VU, IL, IU, ABSTOL, SD, SE,
  1289. $ M, NSPLIT, WR, IWORK( 1 ), IWORK( N+1 ),
  1290. $ RWORK, IWORK( 2*N+1 ), IINFO )
  1291. IF( IINFO.NE.0 ) THEN
  1292. WRITE( NOUNIT, FMT = 9999 )'SSTEBZ(A,rel)', IINFO, N,
  1293. $ JTYPE, IOLDSD
  1294. INFO = ABS( IINFO )
  1295. IF( IINFO.LT.0 ) THEN
  1296. RETURN
  1297. ELSE
  1298. RESULT( 17 ) = ULPINV
  1299. GO TO 280
  1300. END IF
  1301. END IF
  1302. *
  1303. * Do test 17
  1304. *
  1305. TEMP2 = TWO*( TWO*N-ONE )*ULP*( ONE+EIGHT*HALF**2 ) /
  1306. $ ( ONE-HALF )**4
  1307. *
  1308. TEMP1 = ZERO
  1309. DO 190 J = 1, N
  1310. TEMP1 = MAX( TEMP1, ABS( D4( J )-WR( N-J+1 ) ) /
  1311. $ ( ABSTOL+ABS( D4( J ) ) ) )
  1312. 190 CONTINUE
  1313. *
  1314. RESULT( 17 ) = TEMP1 / TEMP2
  1315. ELSE
  1316. RESULT( 17 ) = ZERO
  1317. END IF
  1318. *
  1319. * Now ask for all eigenvalues with high absolute accuracy.
  1320. *
  1321. NTEST = 18
  1322. ABSTOL = UNFL + UNFL
  1323. CALL SSTEBZ( 'A', 'E', N, VL, VU, IL, IU, ABSTOL, SD, SE, M,
  1324. $ NSPLIT, WA1, IWORK( 1 ), IWORK( N+1 ), RWORK,
  1325. $ IWORK( 2*N+1 ), IINFO )
  1326. IF( IINFO.NE.0 ) THEN
  1327. WRITE( NOUNIT, FMT = 9999 )'SSTEBZ(A)', IINFO, N, JTYPE,
  1328. $ IOLDSD
  1329. INFO = ABS( IINFO )
  1330. IF( IINFO.LT.0 ) THEN
  1331. RETURN
  1332. ELSE
  1333. RESULT( 18 ) = ULPINV
  1334. GO TO 280
  1335. END IF
  1336. END IF
  1337. *
  1338. * Do test 18
  1339. *
  1340. TEMP1 = ZERO
  1341. TEMP2 = ZERO
  1342. DO 200 J = 1, N
  1343. TEMP1 = MAX( TEMP1, ABS( D3( J ) ), ABS( WA1( J ) ) )
  1344. TEMP2 = MAX( TEMP2, ABS( D3( J )-WA1( J ) ) )
  1345. 200 CONTINUE
  1346. *
  1347. RESULT( 18 ) = TEMP2 / MAX( UNFL, ULP*MAX( TEMP1, TEMP2 ) )
  1348. *
  1349. * Choose random values for IL and IU, and ask for the
  1350. * IL-th through IU-th eigenvalues.
  1351. *
  1352. NTEST = 19
  1353. IF( N.LE.1 ) THEN
  1354. IL = 1
  1355. IU = N
  1356. ELSE
  1357. IL = 1 + ( N-1 )*INT( SLARND( 1, ISEED2 ) )
  1358. IU = 1 + ( N-1 )*INT( SLARND( 1, ISEED2 ) )
  1359. IF( IU.LT.IL ) THEN
  1360. ITEMP = IU
  1361. IU = IL
  1362. IL = ITEMP
  1363. END IF
  1364. END IF
  1365. *
  1366. CALL SSTEBZ( 'I', 'E', N, VL, VU, IL, IU, ABSTOL, SD, SE,
  1367. $ M2, NSPLIT, WA2, IWORK( 1 ), IWORK( N+1 ),
  1368. $ RWORK, IWORK( 2*N+1 ), IINFO )
  1369. IF( IINFO.NE.0 ) THEN
  1370. WRITE( NOUNIT, FMT = 9999 )'SSTEBZ(I)', IINFO, N, JTYPE,
  1371. $ IOLDSD
  1372. INFO = ABS( IINFO )
  1373. IF( IINFO.LT.0 ) THEN
  1374. RETURN
  1375. ELSE
  1376. RESULT( 19 ) = ULPINV
  1377. GO TO 280
  1378. END IF
  1379. END IF
  1380. *
  1381. * Determine the values VL and VU of the IL-th and IU-th
  1382. * eigenvalues and ask for all eigenvalues in this range.
  1383. *
  1384. IF( N.GT.0 ) THEN
  1385. IF( IL.NE.1 ) THEN
  1386. VL = WA1( IL ) - MAX( HALF*( WA1( IL )-WA1( IL-1 ) ),
  1387. $ ULP*ANORM, TWO*RTUNFL )
  1388. ELSE
  1389. VL = WA1( 1 ) - MAX( HALF*( WA1( N )-WA1( 1 ) ),
  1390. $ ULP*ANORM, TWO*RTUNFL )
  1391. END IF
  1392. IF( IU.NE.N ) THEN
  1393. VU = WA1( IU ) + MAX( HALF*( WA1( IU+1 )-WA1( IU ) ),
  1394. $ ULP*ANORM, TWO*RTUNFL )
  1395. ELSE
  1396. VU = WA1( N ) + MAX( HALF*( WA1( N )-WA1( 1 ) ),
  1397. $ ULP*ANORM, TWO*RTUNFL )
  1398. END IF
  1399. ELSE
  1400. VL = ZERO
  1401. VU = ONE
  1402. END IF
  1403. *
  1404. CALL SSTEBZ( 'V', 'E', N, VL, VU, IL, IU, ABSTOL, SD, SE,
  1405. $ M3, NSPLIT, WA3, IWORK( 1 ), IWORK( N+1 ),
  1406. $ RWORK, IWORK( 2*N+1 ), IINFO )
  1407. IF( IINFO.NE.0 ) THEN
  1408. WRITE( NOUNIT, FMT = 9999 )'SSTEBZ(V)', IINFO, N, JTYPE,
  1409. $ IOLDSD
  1410. INFO = ABS( IINFO )
  1411. IF( IINFO.LT.0 ) THEN
  1412. RETURN
  1413. ELSE
  1414. RESULT( 19 ) = ULPINV
  1415. GO TO 280
  1416. END IF
  1417. END IF
  1418. *
  1419. IF( M3.EQ.0 .AND. N.NE.0 ) THEN
  1420. RESULT( 19 ) = ULPINV
  1421. GO TO 280
  1422. END IF
  1423. *
  1424. * Do test 19
  1425. *
  1426. TEMP1 = SSXT1( 1, WA2, M2, WA3, M3, ABSTOL, ULP, UNFL )
  1427. TEMP2 = SSXT1( 1, WA3, M3, WA2, M2, ABSTOL, ULP, UNFL )
  1428. IF( N.GT.0 ) THEN
  1429. TEMP3 = MAX( ABS( WA1( N ) ), ABS( WA1( 1 ) ) )
  1430. ELSE
  1431. TEMP3 = ZERO
  1432. END IF
  1433. *
  1434. RESULT( 19 ) = ( TEMP1+TEMP2 ) / MAX( UNFL, TEMP3*ULP )
  1435. *
  1436. * Call CSTEIN to compute eigenvectors corresponding to
  1437. * eigenvalues in WA1. (First call SSTEBZ again, to make sure
  1438. * it returns these eigenvalues in the correct order.)
  1439. *
  1440. NTEST = 21
  1441. CALL SSTEBZ( 'A', 'B', N, VL, VU, IL, IU, ABSTOL, SD, SE, M,
  1442. $ NSPLIT, WA1, IWORK( 1 ), IWORK( N+1 ), RWORK,
  1443. $ IWORK( 2*N+1 ), IINFO )
  1444. IF( IINFO.NE.0 ) THEN
  1445. WRITE( NOUNIT, FMT = 9999 )'SSTEBZ(A,B)', IINFO, N,
  1446. $ JTYPE, IOLDSD
  1447. INFO = ABS( IINFO )
  1448. IF( IINFO.LT.0 ) THEN
  1449. RETURN
  1450. ELSE
  1451. RESULT( 20 ) = ULPINV
  1452. RESULT( 21 ) = ULPINV
  1453. GO TO 280
  1454. END IF
  1455. END IF
  1456. *
  1457. CALL CSTEIN( N, SD, SE, M, WA1, IWORK( 1 ), IWORK( N+1 ), Z,
  1458. $ LDU, RWORK, IWORK( 2*N+1 ), IWORK( 3*N+1 ),
  1459. $ IINFO )
  1460. IF( IINFO.NE.0 ) THEN
  1461. WRITE( NOUNIT, FMT = 9999 )'CSTEIN', IINFO, N, JTYPE,
  1462. $ IOLDSD
  1463. INFO = ABS( IINFO )
  1464. IF( IINFO.LT.0 ) THEN
  1465. RETURN
  1466. ELSE
  1467. RESULT( 20 ) = ULPINV
  1468. RESULT( 21 ) = ULPINV
  1469. GO TO 280
  1470. END IF
  1471. END IF
  1472. *
  1473. * Do tests 20 and 21
  1474. *
  1475. CALL CSTT21( N, 0, SD, SE, WA1, DUMMA, Z, LDU, WORK, RWORK,
  1476. $ RESULT( 20 ) )
  1477. *
  1478. * Call CSTEDC(I) to compute D1 and Z, do tests.
  1479. *
  1480. * Compute D1 and Z
  1481. *
  1482. INDE = 1
  1483. INDRWK = INDE + N
  1484. CALL SCOPY( N, SD, 1, D1, 1 )
  1485. IF( N.GT.0 )
  1486. $ CALL SCOPY( N-1, SE, 1, RWORK( INDE ), 1 )
  1487. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1488. *
  1489. NTEST = 22
  1490. CALL CSTEDC( 'I', N, D1, RWORK( INDE ), Z, LDU, WORK, LWEDC,
  1491. $ RWORK( INDRWK ), LRWEDC, IWORK, LIWEDC, IINFO )
  1492. IF( IINFO.NE.0 ) THEN
  1493. WRITE( NOUNIT, FMT = 9999 )'CSTEDC(I)', IINFO, N, JTYPE,
  1494. $ IOLDSD
  1495. INFO = ABS( IINFO )
  1496. IF( IINFO.LT.0 ) THEN
  1497. RETURN
  1498. ELSE
  1499. RESULT( 22 ) = ULPINV
  1500. GO TO 280
  1501. END IF
  1502. END IF
  1503. *
  1504. * Do Tests 22 and 23
  1505. *
  1506. CALL CSTT21( N, 0, SD, SE, D1, DUMMA, Z, LDU, WORK, RWORK,
  1507. $ RESULT( 22 ) )
  1508. *
  1509. * Call CSTEDC(V) to compute D1 and Z, do tests.
  1510. *
  1511. * Compute D1 and Z
  1512. *
  1513. CALL SCOPY( N, SD, 1, D1, 1 )
  1514. IF( N.GT.0 )
  1515. $ CALL SCOPY( N-1, SE, 1, RWORK( INDE ), 1 )
  1516. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1517. *
  1518. NTEST = 24
  1519. CALL CSTEDC( 'V', N, D1, RWORK( INDE ), Z, LDU, WORK, LWEDC,
  1520. $ RWORK( INDRWK ), LRWEDC, IWORK, LIWEDC, IINFO )
  1521. IF( IINFO.NE.0 ) THEN
  1522. WRITE( NOUNIT, FMT = 9999 )'CSTEDC(V)', IINFO, N, JTYPE,
  1523. $ IOLDSD
  1524. INFO = ABS( IINFO )
  1525. IF( IINFO.LT.0 ) THEN
  1526. RETURN
  1527. ELSE
  1528. RESULT( 24 ) = ULPINV
  1529. GO TO 280
  1530. END IF
  1531. END IF
  1532. *
  1533. * Do Tests 24 and 25
  1534. *
  1535. CALL CSTT21( N, 0, SD, SE, D1, DUMMA, Z, LDU, WORK, RWORK,
  1536. $ RESULT( 24 ) )
  1537. *
  1538. * Call CSTEDC(N) to compute D2, do tests.
  1539. *
  1540. * Compute D2
  1541. *
  1542. CALL SCOPY( N, SD, 1, D2, 1 )
  1543. IF( N.GT.0 )
  1544. $ CALL SCOPY( N-1, SE, 1, RWORK( INDE ), 1 )
  1545. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1546. *
  1547. NTEST = 26
  1548. CALL CSTEDC( 'N', N, D2, RWORK( INDE ), Z, LDU, WORK, LWEDC,
  1549. $ RWORK( INDRWK ), LRWEDC, IWORK, LIWEDC, IINFO )
  1550. IF( IINFO.NE.0 ) THEN
  1551. WRITE( NOUNIT, FMT = 9999 )'CSTEDC(N)', IINFO, N, JTYPE,
  1552. $ IOLDSD
  1553. INFO = ABS( IINFO )
  1554. IF( IINFO.LT.0 ) THEN
  1555. RETURN
  1556. ELSE
  1557. RESULT( 26 ) = ULPINV
  1558. GO TO 280
  1559. END IF
  1560. END IF
  1561. *
  1562. * Do Test 26
  1563. *
  1564. TEMP1 = ZERO
  1565. TEMP2 = ZERO
  1566. *
  1567. DO 210 J = 1, N
  1568. TEMP1 = MAX( TEMP1, ABS( D1( J ) ), ABS( D2( J ) ) )
  1569. TEMP2 = MAX( TEMP2, ABS( D1( J )-D2( J ) ) )
  1570. 210 CONTINUE
  1571. *
  1572. RESULT( 26 ) = TEMP2 / MAX( UNFL, ULP*MAX( TEMP1, TEMP2 ) )
  1573. *
  1574. * Only test CSTEMR if IEEE compliant
  1575. *
  1576. IF( ILAENV( 10, 'CSTEMR', 'VA', 1, 0, 0, 0 ).EQ.1 .AND.
  1577. $ ILAENV( 11, 'CSTEMR', 'VA', 1, 0, 0, 0 ).EQ.1 ) THEN
  1578. *
  1579. * Call CSTEMR, do test 27 (relative eigenvalue accuracy)
  1580. *
  1581. * If S is positive definite and diagonally dominant,
  1582. * ask for all eigenvalues with high relative accuracy.
  1583. *
  1584. VL = ZERO
  1585. VU = ZERO
  1586. IL = 0
  1587. IU = 0
  1588. IF( JTYPE.EQ.21 .AND. CREL ) THEN
  1589. NTEST = 27
  1590. ABSTOL = UNFL + UNFL
  1591. CALL CSTEMR( 'V', 'A', N, SD, SE, VL, VU, IL, IU,
  1592. $ M, WR, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1593. $ RWORK, LRWORK, IWORK( 2*N+1 ), LWORK-2*N,
  1594. $ IINFO )
  1595. IF( IINFO.NE.0 ) THEN
  1596. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(V,A,rel)',
  1597. $ IINFO, N, JTYPE, IOLDSD
  1598. INFO = ABS( IINFO )
  1599. IF( IINFO.LT.0 ) THEN
  1600. RETURN
  1601. ELSE
  1602. RESULT( 27 ) = ULPINV
  1603. GO TO 270
  1604. END IF
  1605. END IF
  1606. *
  1607. * Do test 27
  1608. *
  1609. TEMP2 = TWO*( TWO*N-ONE )*ULP*( ONE+EIGHT*HALF**2 ) /
  1610. $ ( ONE-HALF )**4
  1611. *
  1612. TEMP1 = ZERO
  1613. DO 220 J = 1, N
  1614. TEMP1 = MAX( TEMP1, ABS( D4( J )-WR( N-J+1 ) ) /
  1615. $ ( ABSTOL+ABS( D4( J ) ) ) )
  1616. 220 CONTINUE
  1617. *
  1618. RESULT( 27 ) = TEMP1 / TEMP2
  1619. *
  1620. IL = 1 + ( N-1 )*INT( SLARND( 1, ISEED2 ) )
  1621. IU = 1 + ( N-1 )*INT( SLARND( 1, ISEED2 ) )
  1622. IF( IU.LT.IL ) THEN
  1623. ITEMP = IU
  1624. IU = IL
  1625. IL = ITEMP
  1626. END IF
  1627. *
  1628. IF( CRANGE ) THEN
  1629. NTEST = 28
  1630. ABSTOL = UNFL + UNFL
  1631. CALL CSTEMR( 'V', 'I', N, SD, SE, VL, VU, IL, IU,
  1632. $ M, WR, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1633. $ RWORK, LRWORK, IWORK( 2*N+1 ),
  1634. $ LWORK-2*N, IINFO )
  1635. *
  1636. IF( IINFO.NE.0 ) THEN
  1637. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(V,I,rel)',
  1638. $ IINFO, N, JTYPE, IOLDSD
  1639. INFO = ABS( IINFO )
  1640. IF( IINFO.LT.0 ) THEN
  1641. RETURN
  1642. ELSE
  1643. RESULT( 28 ) = ULPINV
  1644. GO TO 270
  1645. END IF
  1646. END IF
  1647. *
  1648. *
  1649. * Do test 28
  1650. *
  1651. TEMP2 = TWO*( TWO*N-ONE )*ULP*
  1652. $ ( ONE+EIGHT*HALF**2 ) / ( ONE-HALF )**4
  1653. *
  1654. TEMP1 = ZERO
  1655. DO 230 J = IL, IU
  1656. TEMP1 = MAX( TEMP1, ABS( WR( J-IL+1 )-D4( N-J+
  1657. $ 1 ) ) / ( ABSTOL+ABS( WR( J-IL+1 ) ) ) )
  1658. 230 CONTINUE
  1659. *
  1660. RESULT( 28 ) = TEMP1 / TEMP2
  1661. ELSE
  1662. RESULT( 28 ) = ZERO
  1663. END IF
  1664. ELSE
  1665. RESULT( 27 ) = ZERO
  1666. RESULT( 28 ) = ZERO
  1667. END IF
  1668. *
  1669. * Call CSTEMR(V,I) to compute D1 and Z, do tests.
  1670. *
  1671. * Compute D1 and Z
  1672. *
  1673. CALL SCOPY( N, SD, 1, D5, 1 )
  1674. IF( N.GT.0 )
  1675. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1676. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1677. *
  1678. IF( CRANGE ) THEN
  1679. NTEST = 29
  1680. IL = 1 + ( N-1 )*INT( SLARND( 1, ISEED2 ) )
  1681. IU = 1 + ( N-1 )*INT( SLARND( 1, ISEED2 ) )
  1682. IF( IU.LT.IL ) THEN
  1683. ITEMP = IU
  1684. IU = IL
  1685. IL = ITEMP
  1686. END IF
  1687. CALL CSTEMR( 'V', 'I', N, D5, RWORK, VL, VU, IL, IU,
  1688. $ M, D1, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1689. $ RWORK( N+1 ), LRWORK-N, IWORK( 2*N+1 ),
  1690. $ LIWORK-2*N, IINFO )
  1691. IF( IINFO.NE.0 ) THEN
  1692. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(V,I)', IINFO,
  1693. $ N, JTYPE, IOLDSD
  1694. INFO = ABS( IINFO )
  1695. IF( IINFO.LT.0 ) THEN
  1696. RETURN
  1697. ELSE
  1698. RESULT( 29 ) = ULPINV
  1699. GO TO 280
  1700. END IF
  1701. END IF
  1702. *
  1703. * Do Tests 29 and 30
  1704. *
  1705. *
  1706. * Call CSTEMR to compute D2, do tests.
  1707. *
  1708. * Compute D2
  1709. *
  1710. CALL SCOPY( N, SD, 1, D5, 1 )
  1711. IF( N.GT.0 )
  1712. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1713. *
  1714. NTEST = 31
  1715. CALL CSTEMR( 'N', 'I', N, D5, RWORK, VL, VU, IL, IU,
  1716. $ M, D2, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1717. $ RWORK( N+1 ), LRWORK-N, IWORK( 2*N+1 ),
  1718. $ LIWORK-2*N, IINFO )
  1719. IF( IINFO.NE.0 ) THEN
  1720. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(N,I)', IINFO,
  1721. $ N, JTYPE, IOLDSD
  1722. INFO = ABS( IINFO )
  1723. IF( IINFO.LT.0 ) THEN
  1724. RETURN
  1725. ELSE
  1726. RESULT( 31 ) = ULPINV
  1727. GO TO 280
  1728. END IF
  1729. END IF
  1730. *
  1731. * Do Test 31
  1732. *
  1733. TEMP1 = ZERO
  1734. TEMP2 = ZERO
  1735. *
  1736. DO 240 J = 1, IU - IL + 1
  1737. TEMP1 = MAX( TEMP1, ABS( D1( J ) ),
  1738. $ ABS( D2( J ) ) )
  1739. TEMP2 = MAX( TEMP2, ABS( D1( J )-D2( J ) ) )
  1740. 240 CONTINUE
  1741. *
  1742. RESULT( 31 ) = TEMP2 / MAX( UNFL,
  1743. $ ULP*MAX( TEMP1, TEMP2 ) )
  1744. *
  1745. *
  1746. * Call CSTEMR(V,V) to compute D1 and Z, do tests.
  1747. *
  1748. * Compute D1 and Z
  1749. *
  1750. CALL SCOPY( N, SD, 1, D5, 1 )
  1751. IF( N.GT.0 )
  1752. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1753. CALL CLASET( 'Full', N, N, CZERO, CONE, Z, LDU )
  1754. *
  1755. NTEST = 32
  1756. *
  1757. IF( N.GT.0 ) THEN
  1758. IF( IL.NE.1 ) THEN
  1759. VL = D2( IL ) - MAX( HALF*
  1760. $ ( D2( IL )-D2( IL-1 ) ), ULP*ANORM,
  1761. $ TWO*RTUNFL )
  1762. ELSE
  1763. VL = D2( 1 ) - MAX( HALF*( D2( N )-D2( 1 ) ),
  1764. $ ULP*ANORM, TWO*RTUNFL )
  1765. END IF
  1766. IF( IU.NE.N ) THEN
  1767. VU = D2( IU ) + MAX( HALF*
  1768. $ ( D2( IU+1 )-D2( IU ) ), ULP*ANORM,
  1769. $ TWO*RTUNFL )
  1770. ELSE
  1771. VU = D2( N ) + MAX( HALF*( D2( N )-D2( 1 ) ),
  1772. $ ULP*ANORM, TWO*RTUNFL )
  1773. END IF
  1774. ELSE
  1775. VL = ZERO
  1776. VU = ONE
  1777. END IF
  1778. *
  1779. CALL CSTEMR( 'V', 'V', N, D5, RWORK, VL, VU, IL, IU,
  1780. $ M, D1, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1781. $ RWORK( N+1 ), LRWORK-N, IWORK( 2*N+1 ),
  1782. $ LIWORK-2*N, IINFO )
  1783. IF( IINFO.NE.0 ) THEN
  1784. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(V,V)', IINFO,
  1785. $ N, JTYPE, IOLDSD
  1786. INFO = ABS( IINFO )
  1787. IF( IINFO.LT.0 ) THEN
  1788. RETURN
  1789. ELSE
  1790. RESULT( 32 ) = ULPINV
  1791. GO TO 280
  1792. END IF
  1793. END IF
  1794. *
  1795. * Do Tests 32 and 33
  1796. *
  1797. CALL CSTT22( N, M, 0, SD, SE, D1, DUMMA, Z, LDU, WORK,
  1798. $ M, RWORK, RESULT( 32 ) )
  1799. *
  1800. * Call CSTEMR to compute D2, do tests.
  1801. *
  1802. * Compute D2
  1803. *
  1804. CALL SCOPY( N, SD, 1, D5, 1 )
  1805. IF( N.GT.0 )
  1806. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1807. *
  1808. NTEST = 34
  1809. CALL CSTEMR( 'N', 'V', N, D5, RWORK, VL, VU, IL, IU,
  1810. $ M, D2, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1811. $ RWORK( N+1 ), LRWORK-N, IWORK( 2*N+1 ),
  1812. $ LIWORK-2*N, IINFO )
  1813. IF( IINFO.NE.0 ) THEN
  1814. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(N,V)', IINFO,
  1815. $ N, JTYPE, IOLDSD
  1816. INFO = ABS( IINFO )
  1817. IF( IINFO.LT.0 ) THEN
  1818. RETURN
  1819. ELSE
  1820. RESULT( 34 ) = ULPINV
  1821. GO TO 280
  1822. END IF
  1823. END IF
  1824. *
  1825. * Do Test 34
  1826. *
  1827. TEMP1 = ZERO
  1828. TEMP2 = ZERO
  1829. *
  1830. DO 250 J = 1, IU - IL + 1
  1831. TEMP1 = MAX( TEMP1, ABS( D1( J ) ),
  1832. $ ABS( D2( J ) ) )
  1833. TEMP2 = MAX( TEMP2, ABS( D1( J )-D2( J ) ) )
  1834. 250 CONTINUE
  1835. *
  1836. RESULT( 34 ) = TEMP2 / MAX( UNFL,
  1837. $ ULP*MAX( TEMP1, TEMP2 ) )
  1838. ELSE
  1839. RESULT( 29 ) = ZERO
  1840. RESULT( 30 ) = ZERO
  1841. RESULT( 31 ) = ZERO
  1842. RESULT( 32 ) = ZERO
  1843. RESULT( 33 ) = ZERO
  1844. RESULT( 34 ) = ZERO
  1845. END IF
  1846. *
  1847. *
  1848. * Call CSTEMR(V,A) to compute D1 and Z, do tests.
  1849. *
  1850. * Compute D1 and Z
  1851. *
  1852. CALL SCOPY( N, SD, 1, D5, 1 )
  1853. IF( N.GT.0 )
  1854. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1855. *
  1856. NTEST = 35
  1857. *
  1858. CALL CSTEMR( 'V', 'A', N, D5, RWORK, VL, VU, IL, IU,
  1859. $ M, D1, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1860. $ RWORK( N+1 ), LRWORK-N, IWORK( 2*N+1 ),
  1861. $ LIWORK-2*N, IINFO )
  1862. IF( IINFO.NE.0 ) THEN
  1863. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(V,A)', IINFO, N,
  1864. $ JTYPE, IOLDSD
  1865. INFO = ABS( IINFO )
  1866. IF( IINFO.LT.0 ) THEN
  1867. RETURN
  1868. ELSE
  1869. RESULT( 35 ) = ULPINV
  1870. GO TO 280
  1871. END IF
  1872. END IF
  1873. *
  1874. * Do Tests 35 and 36
  1875. *
  1876. CALL CSTT22( N, M, 0, SD, SE, D1, DUMMA, Z, LDU, WORK, M,
  1877. $ RWORK, RESULT( 35 ) )
  1878. *
  1879. * Call CSTEMR to compute D2, do tests.
  1880. *
  1881. * Compute D2
  1882. *
  1883. CALL SCOPY( N, SD, 1, D5, 1 )
  1884. IF( N.GT.0 )
  1885. $ CALL SCOPY( N-1, SE, 1, RWORK, 1 )
  1886. *
  1887. NTEST = 37
  1888. CALL CSTEMR( 'N', 'A', N, D5, RWORK, VL, VU, IL, IU,
  1889. $ M, D2, Z, LDU, N, IWORK( 1 ), TRYRAC,
  1890. $ RWORK( N+1 ), LRWORK-N, IWORK( 2*N+1 ),
  1891. $ LIWORK-2*N, IINFO )
  1892. IF( IINFO.NE.0 ) THEN
  1893. WRITE( NOUNIT, FMT = 9999 )'CSTEMR(N,A)', IINFO, N,
  1894. $ JTYPE, IOLDSD
  1895. INFO = ABS( IINFO )
  1896. IF( IINFO.LT.0 ) THEN
  1897. RETURN
  1898. ELSE
  1899. RESULT( 37 ) = ULPINV
  1900. GO TO 280
  1901. END IF
  1902. END IF
  1903. *
  1904. * Do Test 34
  1905. *
  1906. TEMP1 = ZERO
  1907. TEMP2 = ZERO
  1908. *
  1909. DO 260 J = 1, N
  1910. TEMP1 = MAX( TEMP1, ABS( D1( J ) ), ABS( D2( J ) ) )
  1911. TEMP2 = MAX( TEMP2, ABS( D1( J )-D2( J ) ) )
  1912. 260 CONTINUE
  1913. *
  1914. RESULT( 37 ) = TEMP2 / MAX( UNFL,
  1915. $ ULP*MAX( TEMP1, TEMP2 ) )
  1916. END IF
  1917. 270 CONTINUE
  1918. 280 CONTINUE
  1919. NTESTT = NTESTT + NTEST
  1920. *
  1921. * End of Loop -- Check for RESULT(j) > THRESH
  1922. *
  1923. *
  1924. * Print out tests which fail.
  1925. *
  1926. DO 290 JR = 1, NTEST
  1927. IF( RESULT( JR ).GE.THRESH ) THEN
  1928. *
  1929. * If this is the first test to fail,
  1930. * print a header to the data file.
  1931. *
  1932. IF( NERRS.EQ.0 ) THEN
  1933. WRITE( NOUNIT, FMT = 9998 )'CST'
  1934. WRITE( NOUNIT, FMT = 9997 )
  1935. WRITE( NOUNIT, FMT = 9996 )
  1936. WRITE( NOUNIT, FMT = 9995 )'Hermitian'
  1937. WRITE( NOUNIT, FMT = 9994 )
  1938. *
  1939. * Tests performed
  1940. *
  1941. WRITE( NOUNIT, FMT = 9987 )
  1942. END IF
  1943. NERRS = NERRS + 1
  1944. IF( RESULT( JR ).LT.10000.0E0 ) THEN
  1945. WRITE( NOUNIT, FMT = 9989 )N, JTYPE, IOLDSD, JR,
  1946. $ RESULT( JR )
  1947. ELSE
  1948. WRITE( NOUNIT, FMT = 9988 )N, JTYPE, IOLDSD, JR,
  1949. $ RESULT( JR )
  1950. END IF
  1951. END IF
  1952. 290 CONTINUE
  1953. 300 CONTINUE
  1954. 310 CONTINUE
  1955. *
  1956. * Summary
  1957. *
  1958. CALL SLASUM( 'CST', NOUNIT, NERRS, NTESTT )
  1959. RETURN
  1960. *
  1961. 9999 FORMAT( ' CCHKST: ', A, ' returned INFO=', I6, '.', / 9X, 'N=',
  1962. $ I6, ', JTYPE=', I6, ', ISEED=(', 3( I5, ',' ), I5, ')' )
  1963. *
  1964. 9998 FORMAT( / 1X, A3, ' -- Complex Hermitian eigenvalue problem' )
  1965. 9997 FORMAT( ' Matrix types (see CCHKST for details): ' )
  1966. *
  1967. 9996 FORMAT( / ' Special Matrices:',
  1968. $ / ' 1=Zero matrix. ',
  1969. $ ' 5=Diagonal: clustered entries.',
  1970. $ / ' 2=Identity matrix. ',
  1971. $ ' 6=Diagonal: large, evenly spaced.',
  1972. $ / ' 3=Diagonal: evenly spaced entries. ',
  1973. $ ' 7=Diagonal: small, evenly spaced.',
  1974. $ / ' 4=Diagonal: geometr. spaced entries.' )
  1975. 9995 FORMAT( ' Dense ', A, ' Matrices:',
  1976. $ / ' 8=Evenly spaced eigenvals. ',
  1977. $ ' 12=Small, evenly spaced eigenvals.',
  1978. $ / ' 9=Geometrically spaced eigenvals. ',
  1979. $ ' 13=Matrix with random O(1) entries.',
  1980. $ / ' 10=Clustered eigenvalues. ',
  1981. $ ' 14=Matrix with large random entries.',
  1982. $ / ' 11=Large, evenly spaced eigenvals. ',
  1983. $ ' 15=Matrix with small random entries.' )
  1984. 9994 FORMAT( ' 16=Positive definite, evenly spaced eigenvalues',
  1985. $ / ' 17=Positive definite, geometrically spaced eigenvlaues',
  1986. $ / ' 18=Positive definite, clustered eigenvalues',
  1987. $ / ' 19=Positive definite, small evenly spaced eigenvalues',
  1988. $ / ' 20=Positive definite, large evenly spaced eigenvalues',
  1989. $ / ' 21=Diagonally dominant tridiagonal, geometrically',
  1990. $ ' spaced eigenvalues' )
  1991. *
  1992. 9989 FORMAT( ' Matrix order=', I5, ', type=', I2, ', seed=',
  1993. $ 4( I4, ',' ), ' result ', I3, ' is', 0P, F8.2 )
  1994. 9988 FORMAT( ' Matrix order=', I5, ', type=', I2, ', seed=',
  1995. $ 4( I4, ',' ), ' result ', I3, ' is', 1P, E10.3 )
  1996. *
  1997. 9987 FORMAT( / 'Test performed: see CCHKST for details.', / )
  1998. * End of CCHKST
  1999. *
  2000. END