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dsytrs_aa.f 8.9 kB

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  1. *> \brief \b DSYTRS_AA
  2. *
  3. * =========== DOCUMENTATION ===========
  4. *
  5. * Online html documentation available at
  6. * http://www.netlib.org/lapack/explore-html/
  7. *
  8. *> \htmlonly
  9. *> Download DSYTRS_AA + dependencies
  10. *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.tgz?format=tgz&filename=/lapack/lapack_routine/dsytrs_aa.f">
  11. *> [TGZ]</a>
  12. *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.zip?format=zip&filename=/lapack/lapack_routine/dsytrs_aa.f">
  13. *> [ZIP]</a>
  14. *> <a href="http://www.netlib.org/cgi-bin/netlibfiles.txt?format=txt&filename=/lapack/lapack_routine/dsytrs_aa.f">
  15. *> [TXT]</a>
  16. *> \endhtmlonly
  17. *
  18. * Definition:
  19. * ===========
  20. *
  21. * SUBROUTINE DSYTRS_AA( UPLO, N, NRHS, A, LDA, IPIV, B, LDB,
  22. * WORK, LWORK, INFO )
  23. *
  24. * .. Scalar Arguments ..
  25. * CHARACTER UPLO
  26. * INTEGER N, NRHS, LDA, LDB, LWORK, INFO
  27. * ..
  28. * .. Array Arguments ..
  29. * INTEGER IPIV( * )
  30. * DOUBLE PRECISION A( LDA, * ), B( LDB, * ), WORK( * )
  31. * ..
  32. *
  33. *
  34. *> \par Purpose:
  35. * =============
  36. *>
  37. *> \verbatim
  38. *>
  39. *> DSYTRS_AA solves a system of linear equations A*X = B with a real
  40. *> symmetric matrix A using the factorization A = U**T*T*U or
  41. *> A = L*T*L**T computed by DSYTRF_AA.
  42. *> \endverbatim
  43. *
  44. * Arguments:
  45. * ==========
  46. *
  47. *> \param[in] UPLO
  48. *> \verbatim
  49. *> UPLO is CHARACTER*1
  50. *> Specifies whether the details of the factorization are stored
  51. *> as an upper or lower triangular matrix.
  52. *> = 'U': Upper triangular, form is A = U**T*T*U;
  53. *> = 'L': Lower triangular, form is A = L*T*L**T.
  54. *> \endverbatim
  55. *>
  56. *> \param[in] N
  57. *> \verbatim
  58. *> N is INTEGER
  59. *> The order of the matrix A. N >= 0.
  60. *> \endverbatim
  61. *>
  62. *> \param[in] NRHS
  63. *> \verbatim
  64. *> NRHS is INTEGER
  65. *> The number of right hand sides, i.e., the number of columns
  66. *> of the matrix B. NRHS >= 0.
  67. *> \endverbatim
  68. *>
  69. *> \param[in] A
  70. *> \verbatim
  71. *> A is DOUBLE PRECISION array, dimension (LDA,N)
  72. *> Details of factors computed by DSYTRF_AA.
  73. *> \endverbatim
  74. *>
  75. *> \param[in] LDA
  76. *> \verbatim
  77. *> LDA is INTEGER
  78. *> The leading dimension of the array A. LDA >= max(1,N).
  79. *> \endverbatim
  80. *>
  81. *> \param[in] IPIV
  82. *> \verbatim
  83. *> IPIV is INTEGER array, dimension (N)
  84. *> Details of the interchanges as computed by DSYTRF_AA.
  85. *> \endverbatim
  86. *>
  87. *> \param[in,out] B
  88. *> \verbatim
  89. *> B is DOUBLE PRECISION array, dimension (LDB,NRHS)
  90. *> On entry, the right hand side matrix B.
  91. *> On exit, the solution matrix X.
  92. *> \endverbatim
  93. *>
  94. *> \param[in] LDB
  95. *> \verbatim
  96. *> LDB is INTEGER
  97. *> The leading dimension of the array B. LDB >= max(1,N).
  98. *> \endverbatim
  99. *>
  100. *> \param[out] WORK
  101. *> \verbatim
  102. *> WORK is DOUBLE PRECISION array, dimension (MAX(1,LWORK))
  103. *> \endverbatim
  104. *>
  105. *> \param[in] LWORK
  106. *> \verbatim
  107. *> LWORK is INTEGER
  108. *> The dimension of the array WORK.
  109. *> If MIN(N,NRHS) = 0, LWORK >= 1, else LWORK >= 3*N-2.
  110. *>
  111. *> If LWORK = -1, then a workspace query is assumed; the routine
  112. *> only calculates the minimal size of the WORK array, returns
  113. *> this value as the first entry of the WORK array, and no error
  114. *> message related to LWORK is issued by XERBLA.
  115. *> \endverbatim
  116. *>
  117. *> \param[out] INFO
  118. *> \verbatim
  119. *> INFO is INTEGER
  120. *> = 0: successful exit
  121. *> < 0: if INFO = -i, the i-th argument had an illegal value
  122. *> \endverbatim
  123. *
  124. * Authors:
  125. * ========
  126. *
  127. *> \author Univ. of Tennessee
  128. *> \author Univ. of California Berkeley
  129. *> \author Univ. of Colorado Denver
  130. *> \author NAG Ltd.
  131. *
  132. *> \ingroup hetrs_aa
  133. *
  134. * =====================================================================
  135. SUBROUTINE DSYTRS_AA( UPLO, N, NRHS, A, LDA, IPIV, B, LDB,
  136. $ WORK, LWORK, INFO )
  137. *
  138. * -- LAPACK computational routine --
  139. * -- LAPACK is a software package provided by Univ. of Tennessee, --
  140. * -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..--
  141. *
  142. IMPLICIT NONE
  143. *
  144. * .. Scalar Arguments ..
  145. CHARACTER UPLO
  146. INTEGER N, NRHS, LDA, LDB, LWORK, INFO
  147. * ..
  148. * .. Array Arguments ..
  149. INTEGER IPIV( * )
  150. DOUBLE PRECISION A( LDA, * ), B( LDB, * ), WORK( * )
  151. * ..
  152. *
  153. * =====================================================================
  154. *
  155. DOUBLE PRECISION ONE
  156. PARAMETER ( ONE = 1.0D+0 )
  157. * ..
  158. * .. Local Scalars ..
  159. LOGICAL LQUERY, UPPER
  160. INTEGER K, KP, LWKMIN
  161. * ..
  162. * .. External Functions ..
  163. LOGICAL LSAME
  164. EXTERNAL LSAME
  165. * ..
  166. * .. External Subroutines ..
  167. EXTERNAL DLACPY, DGTSV, DSWAP, DTRSM, XERBLA
  168. * ..
  169. * .. Intrinsic Functions ..
  170. INTRINSIC MIN, MAX
  171. * ..
  172. * .. Executable Statements ..
  173. *
  174. INFO = 0
  175. UPPER = LSAME( UPLO, 'U' )
  176. LQUERY = ( LWORK.EQ.-1 )
  177. IF( MIN( N, NRHS ).EQ.0 ) THEN
  178. LWKMIN = 1
  179. ELSE
  180. LWKMIN = 3*N-2
  181. END IF
  182. *
  183. IF( .NOT.UPPER .AND. .NOT.LSAME( UPLO, 'L' ) ) THEN
  184. INFO = -1
  185. ELSE IF( N.LT.0 ) THEN
  186. INFO = -2
  187. ELSE IF( NRHS.LT.0 ) THEN
  188. INFO = -3
  189. ELSE IF( LDA.LT.MAX( 1, N ) ) THEN
  190. INFO = -5
  191. ELSE IF( LDB.LT.MAX( 1, N ) ) THEN
  192. INFO = -8
  193. ELSE IF( LWORK.LT.LWKMIN .AND. .NOT.LQUERY ) THEN
  194. INFO = -10
  195. END IF
  196. IF( INFO.NE.0 ) THEN
  197. CALL XERBLA( 'DSYTRS_AA', -INFO )
  198. RETURN
  199. ELSE IF( LQUERY ) THEN
  200. WORK( 1 ) = LWKMIN
  201. RETURN
  202. END IF
  203. *
  204. * Quick return if possible
  205. *
  206. IF( MIN( N, NRHS ).EQ.0 )
  207. $ RETURN
  208. *
  209. IF( UPPER ) THEN
  210. *
  211. * Solve A*X = B, where A = U**T*T*U.
  212. *
  213. * 1) Forward substitution with U**T
  214. *
  215. IF( N.GT.1 ) THEN
  216. *
  217. * Pivot, P**T * B -> B
  218. *
  219. DO K = 1, N
  220. KP = IPIV( K )
  221. IF( KP.NE.K )
  222. $ CALL DSWAP( NRHS, B( K, 1 ), LDB, B( KP, 1 ), LDB )
  223. END DO
  224. *
  225. * Compute U**T \ B -> B [ (U**T \P**T * B) ]
  226. *
  227. CALL DTRSM('L', 'U', 'T', 'U', N-1, NRHS, ONE, A( 1, 2 ),
  228. $ LDA, B( 2, 1 ), LDB)
  229. END IF
  230. *
  231. * 2) Solve with triangular matrix T
  232. *
  233. * Compute T \ B -> B [ T \ (U**T \P**T * B) ]
  234. *
  235. CALL DLACPY( 'F', 1, N, A( 1, 1 ), LDA+1, WORK( N ), 1)
  236. IF( N.GT.1 ) THEN
  237. CALL DLACPY( 'F', 1, N-1, A( 1, 2 ), LDA+1, WORK( 1 ), 1 )
  238. CALL DLACPY( 'F', 1, N-1, A( 1, 2 ), LDA+1, WORK( 2*N ), 1 )
  239. END IF
  240. CALL DGTSV( N, NRHS, WORK( 1 ), WORK( N ), WORK( 2*N ), B, LDB,
  241. $ INFO )
  242. *
  243. * 3) Backward substitution with U
  244. *
  245. IF( N.GT.1 ) THEN
  246. *
  247. * Compute U \ B -> B [ U \ (T \ (U**T \P**T * B) ) ]
  248. *
  249. CALL DTRSM( 'L', 'U', 'N', 'U', N-1, NRHS, ONE, A( 1, 2 ),
  250. $ LDA, B( 2, 1 ), LDB)
  251. *
  252. * Pivot, P * B -> B [ P * (U \ (T \ (U**T \P**T * B) )) ]
  253. *
  254. DO K = N, 1, -1
  255. KP = IPIV( K )
  256. IF( KP.NE.K )
  257. $ CALL DSWAP( NRHS, B( K, 1 ), LDB, B( KP, 1 ), LDB )
  258. END DO
  259. END IF
  260. *
  261. ELSE
  262. *
  263. * Solve A*X = B, where A = L*T*L**T.
  264. *
  265. * 1) Forward substitution with L
  266. *
  267. IF( N.GT.1 ) THEN
  268. *
  269. * Pivot, P**T * B -> B
  270. *
  271. DO K = 1, N
  272. KP = IPIV( K )
  273. IF( KP.NE.K )
  274. $ CALL DSWAP( NRHS, B( K, 1 ), LDB, B( KP, 1 ), LDB )
  275. END DO
  276. *
  277. * Compute L \ B -> B [ (L \P**T * B) ]
  278. *
  279. CALL DTRSM( 'L', 'L', 'N', 'U', N-1, NRHS, ONE, A( 2, 1 ),
  280. $ LDA, B( 2, 1 ), LDB)
  281. END IF
  282. *
  283. * 2) Solve with triangular matrix T
  284. *
  285. * Compute T \ B -> B [ T \ (L \P**T * B) ]
  286. *
  287. CALL DLACPY( 'F', 1, N, A(1, 1), LDA+1, WORK(N), 1)
  288. IF( N.GT.1 ) THEN
  289. CALL DLACPY( 'F', 1, N-1, A( 2, 1 ), LDA+1, WORK( 1 ), 1 )
  290. CALL DLACPY( 'F', 1, N-1, A( 2, 1 ), LDA+1, WORK( 2*N ), 1 )
  291. END IF
  292. CALL DGTSV( N, NRHS, WORK( 1 ), WORK(N), WORK( 2*N ), B, LDB,
  293. $ INFO)
  294. *
  295. * 3) Backward substitution with L**T
  296. *
  297. IF( N.GT.1 ) THEN
  298. *
  299. * Compute (L**T \ B) -> B [ L**T \ (T \ (L \P**T * B) ) ]
  300. *
  301. CALL DTRSM( 'L', 'L', 'T', 'U', N-1, NRHS, ONE, A( 2, 1 ),
  302. $ LDA, B( 2, 1 ), LDB)
  303. *
  304. * Pivot, P * B -> B [ P * (L**T \ (T \ (L \P**T * B) )) ]
  305. *
  306. DO K = N, 1, -1
  307. KP = IPIV( K )
  308. IF( KP.NE.K )
  309. $ CALL DSWAP( NRHS, B( K, 1 ), LDB, B( KP, 1 ), LDB )
  310. END DO
  311. END IF
  312. *
  313. END IF
  314. *
  315. RETURN
  316. *
  317. * End of DSYTRS_AA
  318. *
  319. END