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ddrvls.f 31 kB

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  1. *> \brief \b DDRVLS
  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 DDRVLS( DOTYPE, NM, MVAL, NN, NVAL, NNS, NSVAL, NNB,
  12. * NBVAL, NXVAL, THRESH, TSTERR, A, COPYA, B,
  13. * COPYB, C, S, COPYS, NOUT )
  14. *
  15. * .. Scalar Arguments ..
  16. * LOGICAL TSTERR
  17. * INTEGER NM, NN, NNB, NNS, NOUT
  18. * DOUBLE PRECISION THRESH
  19. * ..
  20. * .. Array Arguments ..
  21. * LOGICAL DOTYPE( * )
  22. * INTEGER MVAL( * ), NBVAL( * ), NSVAL( * ),
  23. * $ NVAL( * ), NXVAL( * )
  24. * DOUBLE PRECISION A( * ), B( * ), C( * ), COPYA( * ), COPYB( * ),
  25. * $ COPYS( * ), S( * )
  26. * ..
  27. *
  28. *
  29. *> \par Purpose:
  30. * =============
  31. *>
  32. *> \verbatim
  33. *>
  34. *> DDRVLS tests the least squares driver routines DGELS, DGETSLS, DGELSS, DGELSY,
  35. *> and DGELSD.
  36. *> \endverbatim
  37. *
  38. * Arguments:
  39. * ==========
  40. *
  41. *> \param[in] DOTYPE
  42. *> \verbatim
  43. *> DOTYPE is LOGICAL array, dimension (NTYPES)
  44. *> The matrix types to be used for testing. Matrices of type j
  45. *> (for 1 <= j <= NTYPES) are used for testing if DOTYPE(j) =
  46. *> .TRUE.; if DOTYPE(j) = .FALSE., then type j is not used.
  47. *> The matrix of type j is generated as follows:
  48. *> j=1: A = U*D*V where U and V are random orthogonal matrices
  49. *> and D has random entries (> 0.1) taken from a uniform
  50. *> distribution (0,1). A is full rank.
  51. *> j=2: The same of 1, but A is scaled up.
  52. *> j=3: The same of 1, but A is scaled down.
  53. *> j=4: A = U*D*V where U and V are random orthogonal matrices
  54. *> and D has 3*min(M,N)/4 random entries (> 0.1) taken
  55. *> from a uniform distribution (0,1) and the remaining
  56. *> entries set to 0. A is rank-deficient.
  57. *> j=5: The same of 4, but A is scaled up.
  58. *> j=6: The same of 5, but A is scaled down.
  59. *> \endverbatim
  60. *>
  61. *> \param[in] NM
  62. *> \verbatim
  63. *> NM is INTEGER
  64. *> The number of values of M contained in the vector MVAL.
  65. *> \endverbatim
  66. *>
  67. *> \param[in] MVAL
  68. *> \verbatim
  69. *> MVAL is INTEGER array, dimension (NM)
  70. *> The values of the matrix row dimension M.
  71. *> \endverbatim
  72. *>
  73. *> \param[in] NN
  74. *> \verbatim
  75. *> NN is INTEGER
  76. *> The number of values of N contained in the vector NVAL.
  77. *> \endverbatim
  78. *>
  79. *> \param[in] NVAL
  80. *> \verbatim
  81. *> NVAL is INTEGER array, dimension (NN)
  82. *> The values of the matrix column dimension N.
  83. *> \endverbatim
  84. *>
  85. *> \param[in] NNS
  86. *> \verbatim
  87. *> NNS is INTEGER
  88. *> The number of values of NRHS contained in the vector NSVAL.
  89. *> \endverbatim
  90. *>
  91. *> \param[in] NSVAL
  92. *> \verbatim
  93. *> NSVAL is INTEGER array, dimension (NNS)
  94. *> The values of the number of right hand sides NRHS.
  95. *> \endverbatim
  96. *>
  97. *> \param[in] NNB
  98. *> \verbatim
  99. *> NNB is INTEGER
  100. *> The number of values of NB and NX contained in the
  101. *> vectors NBVAL and NXVAL. The blocking parameters are used
  102. *> in pairs (NB,NX).
  103. *> \endverbatim
  104. *>
  105. *> \param[in] NBVAL
  106. *> \verbatim
  107. *> NBVAL is INTEGER array, dimension (NNB)
  108. *> The values of the blocksize NB.
  109. *> \endverbatim
  110. *>
  111. *> \param[in] NXVAL
  112. *> \verbatim
  113. *> NXVAL is INTEGER array, dimension (NNB)
  114. *> The values of the crossover point NX.
  115. *> \endverbatim
  116. *>
  117. *> \param[in] THRESH
  118. *> \verbatim
  119. *> THRESH is DOUBLE PRECISION
  120. *> The threshold value for the test ratios. A result is
  121. *> included in the output file if RESULT >= THRESH. To have
  122. *> every test ratio printed, use THRESH = 0.
  123. *> \endverbatim
  124. *>
  125. *> \param[in] TSTERR
  126. *> \verbatim
  127. *> TSTERR is LOGICAL
  128. *> Flag that indicates whether error exits are to be tested.
  129. *> \endverbatim
  130. *>
  131. *> \param[out] A
  132. *> \verbatim
  133. *> A is DOUBLE PRECISION array, dimension (MMAX*NMAX)
  134. *> where MMAX is the maximum value of M in MVAL and NMAX is the
  135. *> maximum value of N in NVAL.
  136. *> \endverbatim
  137. *>
  138. *> \param[out] COPYA
  139. *> \verbatim
  140. *> COPYA is DOUBLE PRECISION array, dimension (MMAX*NMAX)
  141. *> \endverbatim
  142. *>
  143. *> \param[out] B
  144. *> \verbatim
  145. *> B is DOUBLE PRECISION array, dimension (MMAX*NSMAX)
  146. *> where MMAX is the maximum value of M in MVAL and NSMAX is the
  147. *> maximum value of NRHS in NSVAL.
  148. *> \endverbatim
  149. *>
  150. *> \param[out] COPYB
  151. *> \verbatim
  152. *> COPYB is DOUBLE PRECISION array, dimension (MMAX*NSMAX)
  153. *> \endverbatim
  154. *>
  155. *> \param[out] C
  156. *> \verbatim
  157. *> C is DOUBLE PRECISION array, dimension (MMAX*NSMAX)
  158. *> \endverbatim
  159. *>
  160. *> \param[out] S
  161. *> \verbatim
  162. *> S is DOUBLE PRECISION array, dimension
  163. *> (min(MMAX,NMAX))
  164. *> \endverbatim
  165. *>
  166. *> \param[out] COPYS
  167. *> \verbatim
  168. *> COPYS is DOUBLE PRECISION array, dimension
  169. *> (min(MMAX,NMAX))
  170. *> \endverbatim
  171. *>
  172. *> \param[in] NOUT
  173. *> \verbatim
  174. *> NOUT is INTEGER
  175. *> The unit number for output.
  176. *> \endverbatim
  177. *
  178. * Authors:
  179. * ========
  180. *
  181. *> \author Univ. of Tennessee
  182. *> \author Univ. of California Berkeley
  183. *> \author Univ. of Colorado Denver
  184. *> \author NAG Ltd.
  185. *
  186. *> \date December 2016
  187. *
  188. *> \ingroup double_lin
  189. *
  190. * =====================================================================
  191. SUBROUTINE DDRVLS( DOTYPE, NM, MVAL, NN, NVAL, NNS, NSVAL, NNB,
  192. $ NBVAL, NXVAL, THRESH, TSTERR, A, COPYA, B,
  193. $ COPYB, C, S, COPYS, NOUT )
  194. *
  195. * -- LAPACK test routine (version 3.7.0) --
  196. * -- LAPACK is a software package provided by Univ. of Tennessee, --
  197. * -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..--
  198. * December 2016
  199. *
  200. * .. Scalar Arguments ..
  201. LOGICAL TSTERR
  202. INTEGER NM, NN, NNB, NNS, NOUT
  203. DOUBLE PRECISION THRESH
  204. * ..
  205. * .. Array Arguments ..
  206. LOGICAL DOTYPE( * )
  207. INTEGER MVAL( * ), NBVAL( * ), NSVAL( * ),
  208. $ NVAL( * ), NXVAL( * )
  209. DOUBLE PRECISION A( * ), B( * ), C( * ), COPYA( * ), COPYB( * ),
  210. $ COPYS( * ), S( * )
  211. * ..
  212. *
  213. * =====================================================================
  214. *
  215. * .. Parameters ..
  216. INTEGER NTESTS
  217. PARAMETER ( NTESTS = 16 )
  218. INTEGER SMLSIZ
  219. PARAMETER ( SMLSIZ = 25 )
  220. DOUBLE PRECISION ONE, TWO, ZERO
  221. PARAMETER ( ONE = 1.0D0, TWO = 2.0D0, ZERO = 0.0D0 )
  222. * ..
  223. * .. Local Scalars ..
  224. CHARACTER TRANS
  225. CHARACTER*3 PATH
  226. INTEGER CRANK, I, IM, IMB, IN, INB, INFO, INS, IRANK,
  227. $ ISCALE, ITRAN, ITYPE, J, K, LDA, LDB, LDWORK,
  228. $ LWLSY, LWORK, M, MNMIN, N, NB, NCOLS, NERRS,
  229. $ NFAIL, NRHS, NROWS, NRUN, RANK, MB,
  230. $ MMAX, NMAX, NSMAX, LIWORK,
  231. $ LWORK_DGELS, LWORK_DGETSLS, LWORK_DGELSS,
  232. $ LWORK_DGELSY, LWORK_DGELSD
  233. DOUBLE PRECISION EPS, NORMA, NORMB, RCOND
  234. * ..
  235. * .. Local Arrays ..
  236. INTEGER ISEED( 4 ), ISEEDY( 4 ), IWORKQUERY
  237. DOUBLE PRECISION RESULT( NTESTS ), WORKQUERY
  238. * ..
  239. * .. Allocatable Arrays ..
  240. DOUBLE PRECISION, ALLOCATABLE :: WORK (:)
  241. INTEGER, ALLOCATABLE :: IWORK (:)
  242. * ..
  243. * .. External Functions ..
  244. DOUBLE PRECISION DASUM, DLAMCH, DQRT12, DQRT14, DQRT17
  245. EXTERNAL DASUM, DLAMCH, DQRT12, DQRT14, DQRT17
  246. * ..
  247. * .. External Subroutines ..
  248. EXTERNAL ALAERH, ALAHD, ALASVM, DAXPY, DERRLS, DGELS,
  249. $ DGELSD, DGELSS, DGELSY, DGEMM, DLACPY,
  250. $ DLARNV, DLASRT, DQRT13, DQRT15, DQRT16, DSCAL,
  251. $ XLAENV
  252. * ..
  253. * .. Intrinsic Functions ..
  254. INTRINSIC DBLE, INT, LOG, MAX, MIN, SQRT
  255. * ..
  256. * .. Scalars in Common ..
  257. LOGICAL LERR, OK
  258. CHARACTER*32 SRNAMT
  259. INTEGER INFOT, IOUNIT
  260. * ..
  261. * .. Common blocks ..
  262. COMMON / INFOC / INFOT, IOUNIT, OK, LERR
  263. COMMON / SRNAMC / SRNAMT
  264. * ..
  265. * .. Data statements ..
  266. DATA ISEEDY / 1988, 1989, 1990, 1991 /
  267. * ..
  268. * .. Executable Statements ..
  269. *
  270. * Initialize constants and the random number seed.
  271. *
  272. PATH( 1: 1 ) = 'Double precision'
  273. PATH( 2: 3 ) = 'LS'
  274. NRUN = 0
  275. NFAIL = 0
  276. NERRS = 0
  277. DO 10 I = 1, 4
  278. ISEED( I ) = ISEEDY( I )
  279. 10 CONTINUE
  280. EPS = DLAMCH( 'Epsilon' )
  281. *
  282. * Threshold for rank estimation
  283. *
  284. RCOND = SQRT( EPS ) - ( SQRT( EPS )-EPS ) / 2
  285. *
  286. * Test the error exits
  287. *
  288. CALL XLAENV( 2, 2 )
  289. CALL XLAENV( 9, SMLSIZ )
  290. IF( TSTERR )
  291. $ CALL DERRLS( PATH, NOUT )
  292. *
  293. * Print the header if NM = 0 or NN = 0 and THRESH = 0.
  294. *
  295. IF( ( NM.EQ.0 .OR. NN.EQ.0 ) .AND. THRESH.EQ.ZERO )
  296. $ CALL ALAHD( NOUT, PATH )
  297. INFOT = 0
  298. CALL XLAENV( 2, 2 )
  299. CALL XLAENV( 9, SMLSIZ )
  300. *
  301. * Compute maximal workspace needed for all routines
  302. *
  303. NMAX = 0
  304. MMAX = 0
  305. NSMAX = 0
  306. DO I = 1, NM
  307. IF ( MVAL( I ).GT.MMAX ) THEN
  308. MMAX = MVAL( I )
  309. END IF
  310. ENDDO
  311. DO I = 1, NN
  312. IF ( NVAL( I ).GT.NMAX ) THEN
  313. NMAX = NVAL( I )
  314. END IF
  315. ENDDO
  316. DO I = 1, NNS
  317. IF ( NSVAL( I ).GT.NSMAX ) THEN
  318. NSMAX = NSVAL( I )
  319. END IF
  320. ENDDO
  321. M = MMAX
  322. N = NMAX
  323. NRHS = NSMAX
  324. LDA = MAX( 1, M )
  325. LDB = MAX( 1, M, N )
  326. MNMIN = MAX( MIN( M, N ), 1 )
  327. *
  328. * Compute workspace needed for routines
  329. * DQRT14, DQRT17 (two side cases), DQRT15 and DQRT12
  330. *
  331. LWORK = MAX( ( M+N )*NRHS,
  332. $ ( N+NRHS )*( M+2 ), ( M+NRHS )*( N+2 ),
  333. $ MAX( M+MNMIN, NRHS*MNMIN,2*N+M ),
  334. $ MAX( M*N+4*MNMIN+MAX(M,N), M*N+2*MNMIN+4*N ) )
  335. *
  336. * Compute workspace needed for DGELS
  337. CALL DGELS( 'N', M, N, NRHS, A, LDA, B, LDB,
  338. $ WORKQUERY, -1, INFO )
  339. LWORK_DGELS = INT ( WORKQUERY )
  340. * Compute workspace needed for DGETSLS
  341. CALL DGETSLS( 'N', M, N, NRHS, A, LDA, B, LDB,
  342. $ WORKQUERY, -1, INFO )
  343. LWORK_DGETSLS = INT( WORKQUERY )
  344. * Compute workspace needed for DGELSY
  345. CALL DGELSY( M, N, NRHS, A, LDA, B, LDB, IWORKQUERY,
  346. $ RCOND, CRANK, WORKQUERY, -1, INFO )
  347. LWORK_DGELSY = INT( WORKQUERY )
  348. * Compute workspace needed for DGELSS
  349. CALL DGELSS( M, N, NRHS, A, LDA, B, LDB, S,
  350. $ RCOND, CRANK, WORKQUERY, -1 , INFO )
  351. LWORK_DGELSS = INT( WORKQUERY )
  352. * Compute workspace needed for DGELSD
  353. CALL DGELSD( M, N, NRHS, A, LDA, B, LDB, S,
  354. $ RCOND, CRANK, WORKQUERY, -1, IWORKQUERY, INFO )
  355. LWORK_DGELSD = INT( WORKQUERY )
  356. * Compute LIWORK workspace needed for DGELSY and DGELSD
  357. LIWORK = MAX( 1, N, IWORKQUERY )
  358. * Compute LWORK workspace needed for all functions
  359. LWORK = MAX( 1, LWORK, LWORK_DGELS, LWORK_DGETSLS, LWORK_DGELSY,
  360. $ LWORK_DGELSS, LWORK_DGELSD )
  361. LWLSY = LWORK
  362. *
  363. ALLOCATE( WORK( LWORK ) )
  364. ALLOCATE( IWORK( LIWORK ) )
  365. *
  366. DO 150 IM = 1, NM
  367. M = MVAL( IM )
  368. LDA = MAX( 1, M )
  369. *
  370. DO 140 IN = 1, NN
  371. N = NVAL( IN )
  372. MNMIN = MAX(MIN( M, N ),1)
  373. LDB = MAX( 1, M, N )
  374. MB = (MNMIN+1)
  375. *
  376. DO 130 INS = 1, NNS
  377. NRHS = NSVAL( INS )
  378. *
  379. DO 120 IRANK = 1, 2
  380. DO 110 ISCALE = 1, 3
  381. ITYPE = ( IRANK-1 )*3 + ISCALE
  382. IF( .NOT.DOTYPE( ITYPE ) )
  383. $ GO TO 110
  384. *
  385. IF( IRANK.EQ.1 ) THEN
  386. *
  387. * Test DGELS
  388. *
  389. * Generate a matrix of scaling type ISCALE
  390. *
  391. CALL DQRT13( ISCALE, M, N, COPYA, LDA, NORMA,
  392. $ ISEED )
  393. DO 40 INB = 1, NNB
  394. NB = NBVAL( INB )
  395. CALL XLAENV( 1, NB )
  396. CALL XLAENV( 3, NXVAL( INB ) )
  397. *
  398. DO 30 ITRAN = 1, 2
  399. IF( ITRAN.EQ.1 ) THEN
  400. TRANS = 'N'
  401. NROWS = M
  402. NCOLS = N
  403. ELSE
  404. TRANS = 'T'
  405. NROWS = N
  406. NCOLS = M
  407. END IF
  408. LDWORK = MAX( 1, NCOLS )
  409. *
  410. * Set up a consistent rhs
  411. *
  412. IF( NCOLS.GT.0 ) THEN
  413. CALL DLARNV( 2, ISEED, NCOLS*NRHS,
  414. $ WORK )
  415. CALL DSCAL( NCOLS*NRHS,
  416. $ ONE / DBLE( NCOLS ), WORK,
  417. $ 1 )
  418. END IF
  419. CALL DGEMM( TRANS, 'No transpose', NROWS,
  420. $ NRHS, NCOLS, ONE, COPYA, LDA,
  421. $ WORK, LDWORK, ZERO, B, LDB )
  422. CALL DLACPY( 'Full', NROWS, NRHS, B, LDB,
  423. $ COPYB, LDB )
  424. *
  425. * Solve LS or overdetermined system
  426. *
  427. IF( M.GT.0 .AND. N.GT.0 ) THEN
  428. CALL DLACPY( 'Full', M, N, COPYA, LDA,
  429. $ A, LDA )
  430. CALL DLACPY( 'Full', NROWS, NRHS,
  431. $ COPYB, LDB, B, LDB )
  432. END IF
  433. SRNAMT = 'DGELS '
  434. CALL DGELS( TRANS, M, N, NRHS, A, LDA, B,
  435. $ LDB, WORK, LWORK, INFO )
  436. IF( INFO.NE.0 )
  437. $ CALL ALAERH( PATH, 'DGELS ', INFO, 0,
  438. $ TRANS, M, N, NRHS, -1, NB,
  439. $ ITYPE, NFAIL, NERRS,
  440. $ NOUT )
  441. *
  442. * Check correctness of results
  443. *
  444. LDWORK = MAX( 1, NROWS )
  445. IF( NROWS.GT.0 .AND. NRHS.GT.0 )
  446. $ CALL DLACPY( 'Full', NROWS, NRHS,
  447. $ COPYB, LDB, C, LDB )
  448. CALL DQRT16( TRANS, M, N, NRHS, COPYA,
  449. $ LDA, B, LDB, C, LDB, WORK,
  450. $ RESULT( 1 ) )
  451. *
  452. IF( ( ITRAN.EQ.1 .AND. M.GE.N ) .OR.
  453. $ ( ITRAN.EQ.2 .AND. M.LT.N ) ) THEN
  454. *
  455. * Solving LS system
  456. *
  457. RESULT( 2 ) = DQRT17( TRANS, 1, M, N,
  458. $ NRHS, COPYA, LDA, B, LDB,
  459. $ COPYB, LDB, C, WORK,
  460. $ LWORK )
  461. ELSE
  462. *
  463. * Solving overdetermined system
  464. *
  465. RESULT( 2 ) = DQRT14( TRANS, M, N,
  466. $ NRHS, COPYA, LDA, B, LDB,
  467. $ WORK, LWORK )
  468. END IF
  469. *
  470. * Print information about the tests that
  471. * did not pass the threshold.
  472. *
  473. DO 20 K = 1, 2
  474. IF( RESULT( K ).GE.THRESH ) THEN
  475. IF( NFAIL.EQ.0 .AND. NERRS.EQ.0 )
  476. $ CALL ALAHD( NOUT, PATH )
  477. WRITE( NOUT, FMT = 9999 )TRANS, M,
  478. $ N, NRHS, NB, ITYPE, K,
  479. $ RESULT( K )
  480. NFAIL = NFAIL + 1
  481. END IF
  482. 20 CONTINUE
  483. NRUN = NRUN + 2
  484. 30 CONTINUE
  485. 40 CONTINUE
  486. *
  487. *
  488. * Test DGETSLS
  489. *
  490. * Generate a matrix of scaling type ISCALE
  491. *
  492. CALL DQRT13( ISCALE, M, N, COPYA, LDA, NORMA,
  493. $ ISEED )
  494. DO 65 INB = 1, NNB
  495. MB = NBVAL( INB )
  496. CALL XLAENV( 1, MB )
  497. DO 62 IMB = 1, NNB
  498. NB = NBVAL( IMB )
  499. CALL XLAENV( 2, NB )
  500. *
  501. DO 60 ITRAN = 1, 2
  502. IF( ITRAN.EQ.1 ) THEN
  503. TRANS = 'N'
  504. NROWS = M
  505. NCOLS = N
  506. ELSE
  507. TRANS = 'T'
  508. NROWS = N
  509. NCOLS = M
  510. END IF
  511. LDWORK = MAX( 1, NCOLS )
  512. *
  513. * Set up a consistent rhs
  514. *
  515. IF( NCOLS.GT.0 ) THEN
  516. CALL DLARNV( 2, ISEED, NCOLS*NRHS,
  517. $ WORK )
  518. CALL DSCAL( NCOLS*NRHS,
  519. $ ONE / DBLE( NCOLS ), WORK,
  520. $ 1 )
  521. END IF
  522. CALL DGEMM( TRANS, 'No transpose', NROWS,
  523. $ NRHS, NCOLS, ONE, COPYA, LDA,
  524. $ WORK, LDWORK, ZERO, B, LDB )
  525. CALL DLACPY( 'Full', NROWS, NRHS, B, LDB,
  526. $ COPYB, LDB )
  527. *
  528. * Solve LS or overdetermined system
  529. *
  530. IF( M.GT.0 .AND. N.GT.0 ) THEN
  531. CALL DLACPY( 'Full', M, N, COPYA, LDA,
  532. $ A, LDA )
  533. CALL DLACPY( 'Full', NROWS, NRHS,
  534. $ COPYB, LDB, B, LDB )
  535. END IF
  536. SRNAMT = 'DGETSLS '
  537. CALL DGETSLS( TRANS, M, N, NRHS, A,
  538. $ LDA, B, LDB, WORK, LWORK, INFO )
  539. IF( INFO.NE.0 )
  540. $ CALL ALAERH( PATH, 'DGETSLS ', INFO, 0,
  541. $ TRANS, M, N, NRHS, -1, NB,
  542. $ ITYPE, NFAIL, NERRS,
  543. $ NOUT )
  544. *
  545. * Check correctness of results
  546. *
  547. LDWORK = MAX( 1, NROWS )
  548. IF( NROWS.GT.0 .AND. NRHS.GT.0 )
  549. $ CALL DLACPY( 'Full', NROWS, NRHS,
  550. $ COPYB, LDB, C, LDB )
  551. CALL DQRT16( TRANS, M, N, NRHS, COPYA,
  552. $ LDA, B, LDB, C, LDB, WORK,
  553. $ RESULT( 15 ) )
  554. *
  555. IF( ( ITRAN.EQ.1 .AND. M.GE.N ) .OR.
  556. $ ( ITRAN.EQ.2 .AND. M.LT.N ) ) THEN
  557. *
  558. * Solving LS system
  559. *
  560. RESULT( 16 ) = DQRT17( TRANS, 1, M, N,
  561. $ NRHS, COPYA, LDA, B, LDB,
  562. $ COPYB, LDB, C, WORK,
  563. $ LWORK )
  564. ELSE
  565. *
  566. * Solving overdetermined system
  567. *
  568. RESULT( 16 ) = DQRT14( TRANS, M, N,
  569. $ NRHS, COPYA, LDA, B, LDB,
  570. $ WORK, LWORK )
  571. END IF
  572. *
  573. * Print information about the tests that
  574. * did not pass the threshold.
  575. *
  576. DO 50 K = 15, 16
  577. IF( RESULT( K ).GE.THRESH ) THEN
  578. IF( NFAIL.EQ.0 .AND. NERRS.EQ.0 )
  579. $ CALL ALAHD( NOUT, PATH )
  580. WRITE( NOUT, FMT = 9997 )TRANS, M,
  581. $ N, NRHS, MB, NB, ITYPE, K,
  582. $ RESULT( K )
  583. NFAIL = NFAIL + 1
  584. END IF
  585. 50 CONTINUE
  586. NRUN = NRUN + 2
  587. 60 CONTINUE
  588. 62 CONTINUE
  589. 65 CONTINUE
  590. END IF
  591. *
  592. * Generate a matrix of scaling type ISCALE and rank
  593. * type IRANK.
  594. *
  595. CALL DQRT15( ISCALE, IRANK, M, N, NRHS, COPYA, LDA,
  596. $ COPYB, LDB, COPYS, RANK, NORMA, NORMB,
  597. $ ISEED, WORK, LWORK )
  598. *
  599. * workspace used: MAX(M+MIN(M,N),NRHS*MIN(M,N),2*N+M)
  600. *
  601. LDWORK = MAX( 1, M )
  602. *
  603. * Loop for testing different block sizes.
  604. *
  605. DO 100 INB = 1, NNB
  606. NB = NBVAL( INB )
  607. CALL XLAENV( 1, NB )
  608. CALL XLAENV( 3, NXVAL( INB ) )
  609. *
  610. * Test DGELSY
  611. *
  612. * DGELSY: Compute the minimum-norm solution X
  613. * to min( norm( A * X - B ) )
  614. * using the rank-revealing orthogonal
  615. * factorization.
  616. *
  617. * Initialize vector IWORK.
  618. *
  619. DO 70 J = 1, N
  620. IWORK( J ) = 0
  621. 70 CONTINUE
  622. *
  623. CALL DLACPY( 'Full', M, N, COPYA, LDA, A, LDA )
  624. CALL DLACPY( 'Full', M, NRHS, COPYB, LDB, B,
  625. $ LDB )
  626. *
  627. SRNAMT = 'DGELSY'
  628. CALL DGELSY( M, N, NRHS, A, LDA, B, LDB, IWORK,
  629. $ RCOND, CRANK, WORK, LWLSY, INFO )
  630. IF( INFO.NE.0 )
  631. $ CALL ALAERH( PATH, 'DGELSY', INFO, 0, ' ', M,
  632. $ N, NRHS, -1, NB, ITYPE, NFAIL,
  633. $ NERRS, NOUT )
  634. *
  635. * Test 3: Compute relative error in svd
  636. * workspace: M*N + 4*MIN(M,N) + MAX(M,N)
  637. *
  638. RESULT( 3 ) = DQRT12( CRANK, CRANK, A, LDA,
  639. $ COPYS, WORK, LWORK )
  640. *
  641. * Test 4: Compute error in solution
  642. * workspace: M*NRHS + M
  643. *
  644. CALL DLACPY( 'Full', M, NRHS, COPYB, LDB, WORK,
  645. $ LDWORK )
  646. CALL DQRT16( 'No transpose', M, N, NRHS, COPYA,
  647. $ LDA, B, LDB, WORK, LDWORK,
  648. $ WORK( M*NRHS+1 ), RESULT( 4 ) )
  649. *
  650. * Test 5: Check norm of r'*A
  651. * workspace: NRHS*(M+N)
  652. *
  653. RESULT( 5 ) = ZERO
  654. IF( M.GT.CRANK )
  655. $ RESULT( 5 ) = DQRT17( 'No transpose', 1, M,
  656. $ N, NRHS, COPYA, LDA, B, LDB,
  657. $ COPYB, LDB, C, WORK, LWORK )
  658. *
  659. * Test 6: Check if x is in the rowspace of A
  660. * workspace: (M+NRHS)*(N+2)
  661. *
  662. RESULT( 6 ) = ZERO
  663. *
  664. IF( N.GT.CRANK )
  665. $ RESULT( 6 ) = DQRT14( 'No transpose', M, N,
  666. $ NRHS, COPYA, LDA, B, LDB,
  667. $ WORK, LWORK )
  668. *
  669. * Test DGELSS
  670. *
  671. * DGELSS: Compute the minimum-norm solution X
  672. * to min( norm( A * X - B ) )
  673. * using the SVD.
  674. *
  675. CALL DLACPY( 'Full', M, N, COPYA, LDA, A, LDA )
  676. CALL DLACPY( 'Full', M, NRHS, COPYB, LDB, B,
  677. $ LDB )
  678. SRNAMT = 'DGELSS'
  679. CALL DGELSS( M, N, NRHS, A, LDA, B, LDB, S,
  680. $ RCOND, CRANK, WORK, LWORK, INFO )
  681. IF( INFO.NE.0 )
  682. $ CALL ALAERH( PATH, 'DGELSS', INFO, 0, ' ', M,
  683. $ N, NRHS, -1, NB, ITYPE, NFAIL,
  684. $ NERRS, NOUT )
  685. *
  686. * workspace used: 3*min(m,n) +
  687. * max(2*min(m,n),nrhs,max(m,n))
  688. *
  689. * Test 7: Compute relative error in svd
  690. *
  691. IF( RANK.GT.0 ) THEN
  692. CALL DAXPY( MNMIN, -ONE, COPYS, 1, S, 1 )
  693. RESULT( 7 ) = DASUM( MNMIN, S, 1 ) /
  694. $ DASUM( MNMIN, COPYS, 1 ) /
  695. $ ( EPS*DBLE( MNMIN ) )
  696. ELSE
  697. RESULT( 7 ) = ZERO
  698. END IF
  699. *
  700. * Test 8: Compute error in solution
  701. *
  702. CALL DLACPY( 'Full', M, NRHS, COPYB, LDB, WORK,
  703. $ LDWORK )
  704. CALL DQRT16( 'No transpose', M, N, NRHS, COPYA,
  705. $ LDA, B, LDB, WORK, LDWORK,
  706. $ WORK( M*NRHS+1 ), RESULT( 8 ) )
  707. *
  708. * Test 9: Check norm of r'*A
  709. *
  710. RESULT( 9 ) = ZERO
  711. IF( M.GT.CRANK )
  712. $ RESULT( 9 ) = DQRT17( 'No transpose', 1, M,
  713. $ N, NRHS, COPYA, LDA, B, LDB,
  714. $ COPYB, LDB, C, WORK, LWORK )
  715. *
  716. * Test 10: Check if x is in the rowspace of A
  717. *
  718. RESULT( 10 ) = ZERO
  719. IF( N.GT.CRANK )
  720. $ RESULT( 10 ) = DQRT14( 'No transpose', M, N,
  721. $ NRHS, COPYA, LDA, B, LDB,
  722. $ WORK, LWORK )
  723. *
  724. * Test DGELSD
  725. *
  726. * DGELSD: Compute the minimum-norm solution X
  727. * to min( norm( A * X - B ) ) using a
  728. * divide and conquer SVD.
  729. *
  730. * Initialize vector IWORK.
  731. *
  732. DO 80 J = 1, N
  733. IWORK( J ) = 0
  734. 80 CONTINUE
  735. *
  736. CALL DLACPY( 'Full', M, N, COPYA, LDA, A, LDA )
  737. CALL DLACPY( 'Full', M, NRHS, COPYB, LDB, B,
  738. $ LDB )
  739. *
  740. SRNAMT = 'DGELSD'
  741. CALL DGELSD( M, N, NRHS, A, LDA, B, LDB, S,
  742. $ RCOND, CRANK, WORK, LWORK, IWORK,
  743. $ INFO )
  744. IF( INFO.NE.0 )
  745. $ CALL ALAERH( PATH, 'DGELSD', INFO, 0, ' ', M,
  746. $ N, NRHS, -1, NB, ITYPE, NFAIL,
  747. $ NERRS, NOUT )
  748. *
  749. * Test 11: Compute relative error in svd
  750. *
  751. IF( RANK.GT.0 ) THEN
  752. CALL DAXPY( MNMIN, -ONE, COPYS, 1, S, 1 )
  753. RESULT( 11 ) = DASUM( MNMIN, S, 1 ) /
  754. $ DASUM( MNMIN, COPYS, 1 ) /
  755. $ ( EPS*DBLE( MNMIN ) )
  756. ELSE
  757. RESULT( 11 ) = ZERO
  758. END IF
  759. *
  760. * Test 12: Compute error in solution
  761. *
  762. CALL DLACPY( 'Full', M, NRHS, COPYB, LDB, WORK,
  763. $ LDWORK )
  764. CALL DQRT16( 'No transpose', M, N, NRHS, COPYA,
  765. $ LDA, B, LDB, WORK, LDWORK,
  766. $ WORK( M*NRHS+1 ), RESULT( 12 ) )
  767. *
  768. * Test 13: Check norm of r'*A
  769. *
  770. RESULT( 13 ) = ZERO
  771. IF( M.GT.CRANK )
  772. $ RESULT( 13 ) = DQRT17( 'No transpose', 1, M,
  773. $ N, NRHS, COPYA, LDA, B, LDB,
  774. $ COPYB, LDB, C, WORK, LWORK )
  775. *
  776. * Test 14: Check if x is in the rowspace of A
  777. *
  778. RESULT( 14 ) = ZERO
  779. IF( N.GT.CRANK )
  780. $ RESULT( 14 ) = DQRT14( 'No transpose', M, N,
  781. $ NRHS, COPYA, LDA, B, LDB,
  782. $ WORK, LWORK )
  783. *
  784. * Print information about the tests that did not
  785. * pass the threshold.
  786. *
  787. DO 90 K = 3, 14
  788. IF( RESULT( K ).GE.THRESH ) THEN
  789. IF( NFAIL.EQ.0 .AND. NERRS.EQ.0 )
  790. $ CALL ALAHD( NOUT, PATH )
  791. WRITE( NOUT, FMT = 9998 )M, N, NRHS, NB,
  792. $ ITYPE, K, RESULT( K )
  793. NFAIL = NFAIL + 1
  794. END IF
  795. 90 CONTINUE
  796. NRUN = NRUN + 12
  797. *
  798. 100 CONTINUE
  799. 110 CONTINUE
  800. 120 CONTINUE
  801. 130 CONTINUE
  802. 140 CONTINUE
  803. 150 CONTINUE
  804. *
  805. * Print a summary of the results.
  806. *
  807. CALL ALASVM( PATH, NOUT, NFAIL, NRUN, NERRS )
  808. *
  809. 9999 FORMAT( ' TRANS=''', A1, ''', M=', I5, ', N=', I5, ', NRHS=', I4,
  810. $ ', NB=', I4, ', type', I2, ', test(', I2, ')=', G12.5 )
  811. 9998 FORMAT( ' M=', I5, ', N=', I5, ', NRHS=', I4, ', NB=', I4,
  812. $ ', type', I2, ', test(', I2, ')=', G12.5 )
  813. 9997 FORMAT( ' TRANS=''', A1,' M=', I5, ', N=', I5, ', NRHS=', I4,
  814. $ ', MB=', I4,', NB=', I4,', type', I2,
  815. $ ', test(', I2, ')=', G12.5 )
  816. *
  817. DEALLOCATE( WORK )
  818. DEALLOCATE( IWORK )
  819. RETURN
  820. *
  821. * End of DDRVLS
  822. *
  823. END