Statistiques
| Révision :

root / src / blas / strsv.f @ 10

Historique | Voir | Annoter | Télécharger (8,54 ko)

1 1 pfleura2
      SUBROUTINE STRSV(UPLO,TRANS,DIAG,N,A,LDA,X,INCX)
2 1 pfleura2
*     .. Scalar Arguments ..
3 1 pfleura2
      INTEGER INCX,LDA,N
4 1 pfleura2
      CHARACTER DIAG,TRANS,UPLO
5 1 pfleura2
*     ..
6 1 pfleura2
*     .. Array Arguments ..
7 1 pfleura2
      REAL A(LDA,*),X(*)
8 1 pfleura2
*     ..
9 1 pfleura2
*
10 1 pfleura2
*  Purpose
11 1 pfleura2
*  =======
12 1 pfleura2
*
13 1 pfleura2
*  STRSV  solves one of the systems of equations
14 1 pfleura2
*
15 1 pfleura2
*     A*x = b,   or   A'*x = b,
16 1 pfleura2
*
17 1 pfleura2
*  where b and x are n element vectors and A is an n by n unit, or
18 1 pfleura2
*  non-unit, upper or lower triangular matrix.
19 1 pfleura2
*
20 1 pfleura2
*  No test for singularity or near-singularity is included in this
21 1 pfleura2
*  routine. Such tests must be performed before calling this routine.
22 1 pfleura2
*
23 1 pfleura2
*  Arguments
24 1 pfleura2
*  ==========
25 1 pfleura2
*
26 1 pfleura2
*  UPLO   - CHARACTER*1.
27 1 pfleura2
*           On entry, UPLO specifies whether the matrix is an upper or
28 1 pfleura2
*           lower triangular matrix as follows:
29 1 pfleura2
*
30 1 pfleura2
*              UPLO = 'U' or 'u'   A is an upper triangular matrix.
31 1 pfleura2
*
32 1 pfleura2
*              UPLO = 'L' or 'l'   A is a lower triangular matrix.
33 1 pfleura2
*
34 1 pfleura2
*           Unchanged on exit.
35 1 pfleura2
*
36 1 pfleura2
*  TRANS  - CHARACTER*1.
37 1 pfleura2
*           On entry, TRANS specifies the equations to be solved as
38 1 pfleura2
*           follows:
39 1 pfleura2
*
40 1 pfleura2
*              TRANS = 'N' or 'n'   A*x = b.
41 1 pfleura2
*
42 1 pfleura2
*              TRANS = 'T' or 't'   A'*x = b.
43 1 pfleura2
*
44 1 pfleura2
*              TRANS = 'C' or 'c'   A'*x = b.
45 1 pfleura2
*
46 1 pfleura2
*           Unchanged on exit.
47 1 pfleura2
*
48 1 pfleura2
*  DIAG   - CHARACTER*1.
49 1 pfleura2
*           On entry, DIAG specifies whether or not A is unit
50 1 pfleura2
*           triangular as follows:
51 1 pfleura2
*
52 1 pfleura2
*              DIAG = 'U' or 'u'   A is assumed to be unit triangular.
53 1 pfleura2
*
54 1 pfleura2
*              DIAG = 'N' or 'n'   A is not assumed to be unit
55 1 pfleura2
*                                  triangular.
56 1 pfleura2
*
57 1 pfleura2
*           Unchanged on exit.
58 1 pfleura2
*
59 1 pfleura2
*  N      - INTEGER.
60 1 pfleura2
*           On entry, N specifies the order of the matrix A.
61 1 pfleura2
*           N must be at least zero.
62 1 pfleura2
*           Unchanged on exit.
63 1 pfleura2
*
64 1 pfleura2
*  A      - REAL             array of DIMENSION ( LDA, n ).
65 1 pfleura2
*           Before entry with  UPLO = 'U' or 'u', the leading n by n
66 1 pfleura2
*           upper triangular part of the array A must contain the upper
67 1 pfleura2
*           triangular matrix and the strictly lower triangular part of
68 1 pfleura2
*           A is not referenced.
69 1 pfleura2
*           Before entry with UPLO = 'L' or 'l', the leading n by n
70 1 pfleura2
*           lower triangular part of the array A must contain the lower
71 1 pfleura2
*           triangular matrix and the strictly upper triangular part of
72 1 pfleura2
*           A is not referenced.
73 1 pfleura2
*           Note that when  DIAG = 'U' or 'u', the diagonal elements of
74 1 pfleura2
*           A are not referenced either, but are assumed to be unity.
75 1 pfleura2
*           Unchanged on exit.
76 1 pfleura2
*
77 1 pfleura2
*  LDA    - INTEGER.
78 1 pfleura2
*           On entry, LDA specifies the first dimension of A as declared
79 1 pfleura2
*           in the calling (sub) program. LDA must be at least
80 1 pfleura2
*           max( 1, n ).
81 1 pfleura2
*           Unchanged on exit.
82 1 pfleura2
*
83 1 pfleura2
*  X      - REAL             array of dimension at least
84 1 pfleura2
*           ( 1 + ( n - 1 )*abs( INCX ) ).
85 1 pfleura2
*           Before entry, the incremented array X must contain the n
86 1 pfleura2
*           element right-hand side vector b. On exit, X is overwritten
87 1 pfleura2
*           with the solution vector x.
88 1 pfleura2
*
89 1 pfleura2
*  INCX   - INTEGER.
90 1 pfleura2
*           On entry, INCX specifies the increment for the elements of
91 1 pfleura2
*           X. INCX must not be zero.
92 1 pfleura2
*           Unchanged on exit.
93 1 pfleura2
*
94 1 pfleura2
*
95 1 pfleura2
*  Level 2 Blas routine.
96 1 pfleura2
*
97 1 pfleura2
*  -- Written on 22-October-1986.
98 1 pfleura2
*     Jack Dongarra, Argonne National Lab.
99 1 pfleura2
*     Jeremy Du Croz, Nag Central Office.
100 1 pfleura2
*     Sven Hammarling, Nag Central Office.
101 1 pfleura2
*     Richard Hanson, Sandia National Labs.
102 1 pfleura2
*
103 1 pfleura2
*
104 1 pfleura2
*     .. Parameters ..
105 1 pfleura2
      REAL ZERO
106 1 pfleura2
      PARAMETER (ZERO=0.0E+0)
107 1 pfleura2
*     ..
108 1 pfleura2
*     .. Local Scalars ..
109 1 pfleura2
      REAL TEMP
110 1 pfleura2
      INTEGER I,INFO,IX,J,JX,KX
111 1 pfleura2
      LOGICAL NOUNIT
112 1 pfleura2
*     ..
113 1 pfleura2
*     .. External Functions ..
114 1 pfleura2
      LOGICAL LSAME
115 1 pfleura2
      EXTERNAL LSAME
116 1 pfleura2
*     ..
117 1 pfleura2
*     .. External Subroutines ..
118 1 pfleura2
      EXTERNAL XERBLA
119 1 pfleura2
*     ..
120 1 pfleura2
*     .. Intrinsic Functions ..
121 1 pfleura2
      INTRINSIC MAX
122 1 pfleura2
*     ..
123 1 pfleura2
*
124 1 pfleura2
*     Test the input parameters.
125 1 pfleura2
*
126 1 pfleura2
      INFO = 0
127 1 pfleura2
      IF (.NOT.LSAME(UPLO,'U') .AND. .NOT.LSAME(UPLO,'L')) THEN
128 1 pfleura2
          INFO = 1
129 1 pfleura2
      ELSE IF (.NOT.LSAME(TRANS,'N') .AND. .NOT.LSAME(TRANS,'T') .AND.
130 1 pfleura2
     +         .NOT.LSAME(TRANS,'C')) THEN
131 1 pfleura2
          INFO = 2
132 1 pfleura2
      ELSE IF (.NOT.LSAME(DIAG,'U') .AND. .NOT.LSAME(DIAG,'N')) THEN
133 1 pfleura2
          INFO = 3
134 1 pfleura2
      ELSE IF (N.LT.0) THEN
135 1 pfleura2
          INFO = 4
136 1 pfleura2
      ELSE IF (LDA.LT.MAX(1,N)) THEN
137 1 pfleura2
          INFO = 6
138 1 pfleura2
      ELSE IF (INCX.EQ.0) THEN
139 1 pfleura2
          INFO = 8
140 1 pfleura2
      END IF
141 1 pfleura2
      IF (INFO.NE.0) THEN
142 1 pfleura2
          CALL XERBLA('STRSV ',INFO)
143 1 pfleura2
          RETURN
144 1 pfleura2
      END IF
145 1 pfleura2
*
146 1 pfleura2
*     Quick return if possible.
147 1 pfleura2
*
148 1 pfleura2
      IF (N.EQ.0) RETURN
149 1 pfleura2
*
150 1 pfleura2
      NOUNIT = LSAME(DIAG,'N')
151 1 pfleura2
*
152 1 pfleura2
*     Set up the start point in X if the increment is not unity. This
153 1 pfleura2
*     will be  ( N - 1 )*INCX  too small for descending loops.
154 1 pfleura2
*
155 1 pfleura2
      IF (INCX.LE.0) THEN
156 1 pfleura2
          KX = 1 - (N-1)*INCX
157 1 pfleura2
      ELSE IF (INCX.NE.1) THEN
158 1 pfleura2
          KX = 1
159 1 pfleura2
      END IF
160 1 pfleura2
*
161 1 pfleura2
*     Start the operations. In this version the elements of A are
162 1 pfleura2
*     accessed sequentially with one pass through A.
163 1 pfleura2
*
164 1 pfleura2
      IF (LSAME(TRANS,'N')) THEN
165 1 pfleura2
*
166 1 pfleura2
*        Form  x := inv( A )*x.
167 1 pfleura2
*
168 1 pfleura2
          IF (LSAME(UPLO,'U')) THEN
169 1 pfleura2
              IF (INCX.EQ.1) THEN
170 1 pfleura2
                  DO 20 J = N,1,-1
171 1 pfleura2
                      IF (X(J).NE.ZERO) THEN
172 1 pfleura2
                          IF (NOUNIT) X(J) = X(J)/A(J,J)
173 1 pfleura2
                          TEMP = X(J)
174 1 pfleura2
                          DO 10 I = J - 1,1,-1
175 1 pfleura2
                              X(I) = X(I) - TEMP*A(I,J)
176 1 pfleura2
   10                     CONTINUE
177 1 pfleura2
                      END IF
178 1 pfleura2
   20             CONTINUE
179 1 pfleura2
              ELSE
180 1 pfleura2
                  JX = KX + (N-1)*INCX
181 1 pfleura2
                  DO 40 J = N,1,-1
182 1 pfleura2
                      IF (X(JX).NE.ZERO) THEN
183 1 pfleura2
                          IF (NOUNIT) X(JX) = X(JX)/A(J,J)
184 1 pfleura2
                          TEMP = X(JX)
185 1 pfleura2
                          IX = JX
186 1 pfleura2
                          DO 30 I = J - 1,1,-1
187 1 pfleura2
                              IX = IX - INCX
188 1 pfleura2
                              X(IX) = X(IX) - TEMP*A(I,J)
189 1 pfleura2
   30                     CONTINUE
190 1 pfleura2
                      END IF
191 1 pfleura2
                      JX = JX - INCX
192 1 pfleura2
   40             CONTINUE
193 1 pfleura2
              END IF
194 1 pfleura2
          ELSE
195 1 pfleura2
              IF (INCX.EQ.1) THEN
196 1 pfleura2
                  DO 60 J = 1,N
197 1 pfleura2
                      IF (X(J).NE.ZERO) THEN
198 1 pfleura2
                          IF (NOUNIT) X(J) = X(J)/A(J,J)
199 1 pfleura2
                          TEMP = X(J)
200 1 pfleura2
                          DO 50 I = J + 1,N
201 1 pfleura2
                              X(I) = X(I) - TEMP*A(I,J)
202 1 pfleura2
   50                     CONTINUE
203 1 pfleura2
                      END IF
204 1 pfleura2
   60             CONTINUE
205 1 pfleura2
              ELSE
206 1 pfleura2
                  JX = KX
207 1 pfleura2
                  DO 80 J = 1,N
208 1 pfleura2
                      IF (X(JX).NE.ZERO) THEN
209 1 pfleura2
                          IF (NOUNIT) X(JX) = X(JX)/A(J,J)
210 1 pfleura2
                          TEMP = X(JX)
211 1 pfleura2
                          IX = JX
212 1 pfleura2
                          DO 70 I = J + 1,N
213 1 pfleura2
                              IX = IX + INCX
214 1 pfleura2
                              X(IX) = X(IX) - TEMP*A(I,J)
215 1 pfleura2
   70                     CONTINUE
216 1 pfleura2
                      END IF
217 1 pfleura2
                      JX = JX + INCX
218 1 pfleura2
   80             CONTINUE
219 1 pfleura2
              END IF
220 1 pfleura2
          END IF
221 1 pfleura2
      ELSE
222 1 pfleura2
*
223 1 pfleura2
*        Form  x := inv( A' )*x.
224 1 pfleura2
*
225 1 pfleura2
          IF (LSAME(UPLO,'U')) THEN
226 1 pfleura2
              IF (INCX.EQ.1) THEN
227 1 pfleura2
                  DO 100 J = 1,N
228 1 pfleura2
                      TEMP = X(J)
229 1 pfleura2
                      DO 90 I = 1,J - 1
230 1 pfleura2
                          TEMP = TEMP - A(I,J)*X(I)
231 1 pfleura2
   90                 CONTINUE
232 1 pfleura2
                      IF (NOUNIT) TEMP = TEMP/A(J,J)
233 1 pfleura2
                      X(J) = TEMP
234 1 pfleura2
  100             CONTINUE
235 1 pfleura2
              ELSE
236 1 pfleura2
                  JX = KX
237 1 pfleura2
                  DO 120 J = 1,N
238 1 pfleura2
                      TEMP = X(JX)
239 1 pfleura2
                      IX = KX
240 1 pfleura2
                      DO 110 I = 1,J - 1
241 1 pfleura2
                          TEMP = TEMP - A(I,J)*X(IX)
242 1 pfleura2
                          IX = IX + INCX
243 1 pfleura2
  110                 CONTINUE
244 1 pfleura2
                      IF (NOUNIT) TEMP = TEMP/A(J,J)
245 1 pfleura2
                      X(JX) = TEMP
246 1 pfleura2
                      JX = JX + INCX
247 1 pfleura2
  120             CONTINUE
248 1 pfleura2
              END IF
249 1 pfleura2
          ELSE
250 1 pfleura2
              IF (INCX.EQ.1) THEN
251 1 pfleura2
                  DO 140 J = N,1,-1
252 1 pfleura2
                      TEMP = X(J)
253 1 pfleura2
                      DO 130 I = N,J + 1,-1
254 1 pfleura2
                          TEMP = TEMP - A(I,J)*X(I)
255 1 pfleura2
  130                 CONTINUE
256 1 pfleura2
                      IF (NOUNIT) TEMP = TEMP/A(J,J)
257 1 pfleura2
                      X(J) = TEMP
258 1 pfleura2
  140             CONTINUE
259 1 pfleura2
              ELSE
260 1 pfleura2
                  KX = KX + (N-1)*INCX
261 1 pfleura2
                  JX = KX
262 1 pfleura2
                  DO 160 J = N,1,-1
263 1 pfleura2
                      TEMP = X(JX)
264 1 pfleura2
                      IX = KX
265 1 pfleura2
                      DO 150 I = N,J + 1,-1
266 1 pfleura2
                          TEMP = TEMP - A(I,J)*X(IX)
267 1 pfleura2
                          IX = IX - INCX
268 1 pfleura2
  150                 CONTINUE
269 1 pfleura2
                      IF (NOUNIT) TEMP = TEMP/A(J,J)
270 1 pfleura2
                      X(JX) = TEMP
271 1 pfleura2
                      JX = JX - INCX
272 1 pfleura2
  160             CONTINUE
273 1 pfleura2
              END IF
274 1 pfleura2
          END IF
275 1 pfleura2
      END IF
276 1 pfleura2
*
277 1 pfleura2
      RETURN
278 1 pfleura2
*
279 1 pfleura2
*     End of STRSV .
280 1 pfleura2
*
281 1 pfleura2
      END