SUBROUTINE DSDCG (N, B, X, NELT, IA, JA, A, ISYM, ITOL, TOL, + ITMAX, ITER, ERR, IERR, IUNIT, RWORK, LENW, IWORK, LENIW) C .. Parameters .. INTEGER LOCRB, LOCIB PARAMETER (LOCRB=1, LOCIB=11) C .. Scalar Arguments .. DOUBLE PRECISION ERR, TOL INTEGER IERR, ISYM, ITER, ITMAX, ITOL, IUNIT, LENIW, LENW, N, NELT C .. Array Arguments .. DOUBLE PRECISION A(NELT), B(N), RWORK(LENW), X(N) INTEGER IA(NELT), IWORK(LENIW), JA(NELT) C .. Local Scalars .. INTEGER LOCD, LOCDZ, LOCIW, LOCP, LOCR, LOCW, LOCZ C .. External Subroutines .. EXTERNAL DCG, DCHKW, DS2Y, DSDI, DSDS, DSMV C***FIRST EXECUTABLE STATEMENT DSDCG C IERR = 0 IF( N.LT.1 .OR. NELT.LT.1 ) THEN IERR = 3 RETURN ENDIF C C Modify the SLAP matrix data structure to YSMP-Column. CALL DS2Y( N, NELT, IA, JA, A, ISYM ) C C Set up the work arrays. LOCIW = LOCIB C LOCD = LOCRB LOCR = LOCD + N LOCZ = LOCR + N LOCP = LOCZ + N LOCDZ = LOCP + N LOCW = LOCDZ + N C C Check the workspace allocations. CALL DCHKW( 'DSDCG', LOCIW, LENIW, LOCW, LENW, IERR, ITER, ERR ) IF( IERR.NE.0 ) RETURN C IWORK(4) = LOCD IWORK(9) = LOCIW IWORK(10) = LOCW C C Compute the inverse of the diagonal of the matrix. This C will be used as the preconditioner. CALL DSDS(N, NELT, IA, JA, A, ISYM, RWORK(LOCD)) C C Do the Preconditioned Conjugate Gradient. CALL DCG(N, B, X, NELT, IA, JA, A, ISYM, DSMV, DSDI, $ ITOL, TOL, ITMAX, ITER, ERR, IERR, IUNIT, RWORK(LOCR), $ RWORK(LOCZ), RWORK(LOCP), RWORK(LOCDZ), RWORK, IWORK) RETURN C------------- LAST LINE OF DSDCG FOLLOWS ----------------------------- END