strmv.f 9.2 KB

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  1. *DECK STRMV
  2. SUBROUTINE STRMV (UPLO, TRANS, DIAG, N, A, LDA, X, INCX)
  3. C***BEGIN PROLOGUE STRMV
  4. C***PURPOSE Multiply a real vector by a real triangular matrix.
  5. C***LIBRARY SLATEC (BLAS)
  6. C***CATEGORY D1B4
  7. C***TYPE SINGLE PRECISION (STRMV-S, DTRMV-D, CTRMV-C)
  8. C***KEYWORDS LEVEL 2 BLAS, LINEAR ALGEBRA
  9. C***AUTHOR Dongarra, J. J., (ANL)
  10. C Du Croz, J., (NAG)
  11. C Hammarling, S., (NAG)
  12. C Hanson, R. J., (SNLA)
  13. C***DESCRIPTION
  14. C
  15. C STRMV performs one of the matrix-vector operations
  16. C
  17. C x := A*x, or x := A'*x,
  18. C
  19. C where x is an n element vector and A is an n by n unit, or non-unit,
  20. C upper or lower triangular matrix.
  21. C
  22. C Parameters
  23. C ==========
  24. C
  25. C UPLO - CHARACTER*1.
  26. C On entry, UPLO specifies whether the matrix is an upper or
  27. C lower triangular matrix as follows:
  28. C
  29. C UPLO = 'U' or 'u' A is an upper triangular matrix.
  30. C
  31. C UPLO = 'L' or 'l' A is a lower triangular matrix.
  32. C
  33. C Unchanged on exit.
  34. C
  35. C TRANS - CHARACTER*1.
  36. C On entry, TRANS specifies the operation to be performed as
  37. C follows:
  38. C
  39. C TRANS = 'N' or 'n' x := A*x.
  40. C
  41. C TRANS = 'T' or 't' x := A'*x.
  42. C
  43. C TRANS = 'C' or 'c' x := A'*x.
  44. C
  45. C Unchanged on exit.
  46. C
  47. C DIAG - CHARACTER*1.
  48. C On entry, DIAG specifies whether or not A is unit
  49. C triangular as follows:
  50. C
  51. C DIAG = 'U' or 'u' A is assumed to be unit triangular.
  52. C
  53. C DIAG = 'N' or 'n' A is not assumed to be unit
  54. C triangular.
  55. C
  56. C Unchanged on exit.
  57. C
  58. C N - INTEGER.
  59. C On entry, N specifies the order of the matrix A.
  60. C N must be at least zero.
  61. C Unchanged on exit.
  62. C
  63. C A - REAL array of DIMENSION ( LDA, n).
  64. C Before entry with UPLO = 'U' or 'u', the leading n by n
  65. C upper triangular part of the array A must contain the upper
  66. C triangular matrix and the strictly lower triangular part of
  67. C A is not referenced.
  68. C Before entry with UPLO = 'L' or 'l', the leading n by n
  69. C lower triangular part of the array A must contain the lower
  70. C triangular matrix and the strictly upper triangular part of
  71. C A is not referenced.
  72. C Note that when DIAG = 'U' or 'u', the diagonal elements of
  73. C A are not referenced either, but are assumed to be unity.
  74. C Unchanged on exit.
  75. C
  76. C LDA - INTEGER.
  77. C On entry, LDA specifies the first dimension of A as declared
  78. C in the calling (sub) program. LDA must be at least
  79. C max( 1, n ).
  80. C Unchanged on exit.
  81. C
  82. C X - REAL array of dimension at least
  83. C ( 1 + ( n - 1 )*abs( INCX ) ).
  84. C Before entry, the incremented array X must contain the n
  85. C element vector x. On exit, X is overwritten with the
  86. C transformed vector x.
  87. C
  88. C INCX - INTEGER.
  89. C On entry, INCX specifies the increment for the elements of
  90. C X. INCX must not be zero.
  91. C Unchanged on exit.
  92. C
  93. C***REFERENCES Dongarra, J. J., Du Croz, J., Hammarling, S., and
  94. C Hanson, R. J. An extended set of Fortran basic linear
  95. C algebra subprograms. ACM TOMS, Vol. 14, No. 1,
  96. C pp. 1-17, March 1988.
  97. C***ROUTINES CALLED LSAME, XERBLA
  98. C***REVISION HISTORY (YYMMDD)
  99. C 861022 DATE WRITTEN
  100. C 910605 Modified to meet SLATEC prologue standards. Only comment
  101. C lines were modified. (BKS)
  102. C***END PROLOGUE STRMV
  103. C .. Scalar Arguments ..
  104. INTEGER INCX, LDA, N
  105. CHARACTER*1 DIAG, TRANS, UPLO
  106. C .. Array Arguments ..
  107. REAL A( LDA, * ), X( * )
  108. C .. Parameters ..
  109. REAL ZERO
  110. PARAMETER ( ZERO = 0.0E+0 )
  111. C .. Local Scalars ..
  112. REAL TEMP
  113. INTEGER I, INFO, IX, J, JX, KX
  114. LOGICAL NOUNIT
  115. C .. External Functions ..
  116. LOGICAL LSAME
  117. EXTERNAL LSAME
  118. C .. External Subroutines ..
  119. EXTERNAL XERBLA
  120. C .. Intrinsic Functions ..
  121. INTRINSIC MAX
  122. C***FIRST EXECUTABLE STATEMENT STRMV
  123. C
  124. C Test the input parameters.
  125. C
  126. INFO = 0
  127. IF ( .NOT.LSAME( UPLO , 'U' ).AND.
  128. $ .NOT.LSAME( UPLO , 'L' ) )THEN
  129. INFO = 1
  130. ELSE IF( .NOT.LSAME( TRANS, 'N' ).AND.
  131. $ .NOT.LSAME( TRANS, 'T' ).AND.
  132. $ .NOT.LSAME( TRANS, 'C' ) )THEN
  133. INFO = 2
  134. ELSE IF( .NOT.LSAME( DIAG , 'U' ).AND.
  135. $ .NOT.LSAME( DIAG , 'N' ) )THEN
  136. INFO = 3
  137. ELSE IF( N.LT.0 )THEN
  138. INFO = 4
  139. ELSE IF( LDA.LT.MAX( 1, N ) )THEN
  140. INFO = 6
  141. ELSE IF( INCX.EQ.0 )THEN
  142. INFO = 8
  143. END IF
  144. IF( INFO.NE.0 )THEN
  145. CALL XERBLA( 'STRMV ', INFO )
  146. RETURN
  147. END IF
  148. C
  149. C Quick return if possible.
  150. C
  151. IF( N.EQ.0 )
  152. $ RETURN
  153. C
  154. NOUNIT = LSAME( DIAG, 'N' )
  155. C
  156. C Set up the start point in X if the increment is not unity. This
  157. C will be ( N - 1 )*INCX too small for descending loops.
  158. C
  159. IF( INCX.LE.0 )THEN
  160. KX = 1 - ( N - 1 )*INCX
  161. ELSE IF( INCX.NE.1 )THEN
  162. KX = 1
  163. END IF
  164. C
  165. C Start the operations. In this version the elements of A are
  166. C accessed sequentially with one pass through A.
  167. C
  168. IF( LSAME( TRANS, 'N' ) )THEN
  169. C
  170. C Form x := A*x.
  171. C
  172. IF( LSAME( UPLO, 'U' ) )THEN
  173. IF( INCX.EQ.1 )THEN
  174. DO 20, J = 1, N
  175. IF( X( J ).NE.ZERO )THEN
  176. TEMP = X( J )
  177. DO 10, I = 1, J - 1
  178. X( I ) = X( I ) + TEMP*A( I, J )
  179. 10 CONTINUE
  180. IF( NOUNIT )
  181. $ X( J ) = X( J )*A( J, J )
  182. END IF
  183. 20 CONTINUE
  184. ELSE
  185. JX = KX
  186. DO 40, J = 1, N
  187. IF( X( JX ).NE.ZERO )THEN
  188. TEMP = X( JX )
  189. IX = KX
  190. DO 30, I = 1, J - 1
  191. X( IX ) = X( IX ) + TEMP*A( I, J )
  192. IX = IX + INCX
  193. 30 CONTINUE
  194. IF( NOUNIT )
  195. $ X( JX ) = X( JX )*A( J, J )
  196. END IF
  197. JX = JX + INCX
  198. 40 CONTINUE
  199. END IF
  200. ELSE
  201. IF( INCX.EQ.1 )THEN
  202. DO 60, J = N, 1, -1
  203. IF( X( J ).NE.ZERO )THEN
  204. TEMP = X( J )
  205. DO 50, I = N, J + 1, -1
  206. X( I ) = X( I ) + TEMP*A( I, J )
  207. 50 CONTINUE
  208. IF( NOUNIT )
  209. $ X( J ) = X( J )*A( J, J )
  210. END IF
  211. 60 CONTINUE
  212. ELSE
  213. KX = KX + ( N - 1 )*INCX
  214. JX = KX
  215. DO 80, J = N, 1, -1
  216. IF( X( JX ).NE.ZERO )THEN
  217. TEMP = X( JX )
  218. IX = KX
  219. DO 70, I = N, J + 1, -1
  220. X( IX ) = X( IX ) + TEMP*A( I, J )
  221. IX = IX - INCX
  222. 70 CONTINUE
  223. IF( NOUNIT )
  224. $ X( JX ) = X( JX )*A( J, J )
  225. END IF
  226. JX = JX - INCX
  227. 80 CONTINUE
  228. END IF
  229. END IF
  230. ELSE
  231. C
  232. C Form x := A'*x.
  233. C
  234. IF( LSAME( UPLO, 'U' ) )THEN
  235. IF( INCX.EQ.1 )THEN
  236. DO 100, J = N, 1, -1
  237. TEMP = X( J )
  238. IF( NOUNIT )
  239. $ TEMP = TEMP*A( J, J )
  240. DO 90, I = J - 1, 1, -1
  241. TEMP = TEMP + A( I, J )*X( I )
  242. 90 CONTINUE
  243. X( J ) = TEMP
  244. 100 CONTINUE
  245. ELSE
  246. JX = KX + ( N - 1 )*INCX
  247. DO 120, J = N, 1, -1
  248. TEMP = X( JX )
  249. IX = JX
  250. IF( NOUNIT )
  251. $ TEMP = TEMP*A( J, J )
  252. DO 110, I = J - 1, 1, -1
  253. IX = IX - INCX
  254. TEMP = TEMP + A( I, J )*X( IX )
  255. 110 CONTINUE
  256. X( JX ) = TEMP
  257. JX = JX - INCX
  258. 120 CONTINUE
  259. END IF
  260. ELSE
  261. IF( INCX.EQ.1 )THEN
  262. DO 140, J = 1, N
  263. TEMP = X( J )
  264. IF( NOUNIT )
  265. $ TEMP = TEMP*A( J, J )
  266. DO 130, I = J + 1, N
  267. TEMP = TEMP + A( I, J )*X( I )
  268. 130 CONTINUE
  269. X( J ) = TEMP
  270. 140 CONTINUE
  271. ELSE
  272. JX = KX
  273. DO 160, J = 1, N
  274. TEMP = X( JX )
  275. IX = JX
  276. IF( NOUNIT )
  277. $ TEMP = TEMP*A( J, J )
  278. DO 150, I = J + 1, N
  279. IX = IX + INCX
  280. TEMP = TEMP + A( I, J )*X( IX )
  281. 150 CONTINUE
  282. X( JX ) = TEMP
  283. JX = JX + INCX
  284. 160 CONTINUE
  285. END IF
  286. END IF
  287. END IF
  288. C
  289. RETURN
  290. C
  291. C End of STRMV .
  292. C
  293. END