xref: /petsc/src/mat/utils/convert.c (revision 44ae05bd2aa003f27c6c943faaf6aac62e3c7f72)
156fe5c5cSLois Curfman McInnes #ifndef lint
2*44ae05bdSLois Curfman McInnes static char vcid[] = "$Id: convert.c,v 1.17 1995/05/18 22:46:31 bsmith Exp curfman $";
356fe5c5cSLois Curfman McInnes #endif
456fe5c5cSLois Curfman McInnes 
556fe5c5cSLois Curfman McInnes /* Matrix conversion routines.  For now, this supports only AIJ */
656fe5c5cSLois Curfman McInnes 
756fe5c5cSLois Curfman McInnes #include "mpiaij.h"
8edd2f0e1SBarry Smith #define  ABS(a) ((a > 0) ? a : -a)
956fe5c5cSLois Curfman McInnes 
10f3ba505bSLois Curfman McInnes /* Determines the block diagonals within a subset of a matrix */
11f3ba505bSLois Curfman McInnes /* For now this is just sequential -- not parallel */
12f3ba505bSLois Curfman McInnes 
13f3ba505bSLois Curfman McInnes /*
14f3ba505bSLois Curfman McInnes    MatDetermineDiagonals_Private - Determines the diagonal structure
15f3ba505bSLois Curfman McInnes    of a matrix.
16f3ba505bSLois Curfman McInnes 
17f3ba505bSLois Curfman McInnes    Input Parameters:
18f3ba505bSLois Curfman McInnes .  mat - the matrix
19f3ba505bSLois Curfman McInnes .  nb - block size
20f3ba505bSLois Curfman McInnes .  irows - rows to use
21f3ba505bSLois Curfman McInnes .  icols - columns to use
22f3ba505bSLois Curfman McInnes 
23f3ba505bSLois Curfman McInnes    Output Parameters:
24f3ba505bSLois Curfman McInnes .  ndiag - number of diagonals
25f3ba505bSLois Curfman McInnes .  diagonals - the diagonal numbers
26f3ba505bSLois Curfman McInnes 
27f3ba505bSLois Curfman McInnes    Note:  The user must free the diagonals array.
28f3ba505bSLois Curfman McInnes  */
29f3ba505bSLois Curfman McInnes 
30f3ba505bSLois Curfman McInnes int MatDetermineDiagonals_Private(Mat mat,int nb,int newr,int newc,
31f3ba505bSLois Curfman McInnes             int *rowrange, int *colrange,int *ndiag, int **diagonals)
32f3ba505bSLois Curfman McInnes {
33f3ba505bSLois Curfman McInnes   int    nd, clast, cfirst, ierr, nnc, maxd, nz, *col, *cwork, *diag;
34f3ba505bSLois Curfman McInnes   int    i, j, k, jdiag, cshift, row, dnew, temp;
35f3ba505bSLois Curfman McInnes   Scalar *v;
36f3ba505bSLois Curfman McInnes 
37f3ba505bSLois Curfman McInnes   VALIDHEADER(mat,MAT_COOKIE);
38f3ba505bSLois Curfman McInnes   if ((newr%nb) || (newc%nb)) SETERR(1,"Invalid block size.");
39f3ba505bSLois Curfman McInnes   cfirst = colrange[0];
40f3ba505bSLois Curfman McInnes   clast  = colrange[newc-1];
41f3ba505bSLois Curfman McInnes   nnc    = clast - cfirst + 1;
42f3ba505bSLois Curfman McInnes   cwork  = (int *) MALLOC( nnc * sizeof(int) );	CHKPTR(cwork);
43f3ba505bSLois Curfman McInnes   for (i=0; i<nnc; i++)  cwork[i] = -1;
44f3ba505bSLois Curfman McInnes   for (i=0; i<newc; i++) cwork[colrange[i]-cfirst] = i;
45f3ba505bSLois Curfman McInnes 
46f3ba505bSLois Curfman McInnes   /* Determine which diagonals exist:  compute nd, diag[]: */
47f3ba505bSLois Curfman McInnes   /* Temporarily ssume diag[0] = 0 (main diagonal) */
48f3ba505bSLois Curfman McInnes   maxd = newr + newc - 1;	/* maximum possible diagonals */
49f3ba505bSLois Curfman McInnes   diag = (int *)MALLOC( maxd * sizeof(int) );	CHKPTR(diag);
50f3ba505bSLois Curfman McInnes   nd = 1;
51f3ba505bSLois Curfman McInnes   for (i=0; i<maxd; i++) diag[i] = 0;
52f3ba505bSLois Curfman McInnes   for (i=0; i<newr; i++) {
53f3ba505bSLois Curfman McInnes     ierr = MatGetRow( mat, rowrange[i], &nz, &col, &v ); CHKERR(ierr);
54f3ba505bSLois Curfman McInnes     row = i;
55f3ba505bSLois Curfman McInnes     j   = 0;
56f3ba505bSLois Curfman McInnes     /* Skip values until we reach the first column */
57f3ba505bSLois Curfman McInnes     while (j < nz && col[j] < cfirst) j++;
58f3ba505bSLois Curfman McInnes     while (j < nz) {
59f3ba505bSLois Curfman McInnes       if (clast < col[j]) break;
60f3ba505bSLois Curfman McInnes       cshift = cwork[col[j] - cfirst];
61f3ba505bSLois Curfman McInnes       if (cshift >= 0) {
62f3ba505bSLois Curfman McInnes         /* Determine if diagonal block already exits for valid colum */
63f3ba505bSLois Curfman McInnes         dnew = 1;
64f3ba505bSLois Curfman McInnes         jdiag = row/nb - cshift/nb;
65f3ba505bSLois Curfman McInnes         for (k=0; k<nd; k++) {
66f3ba505bSLois Curfman McInnes           if (diag[k] == jdiag) {	/* diagonal exists */
67f3ba505bSLois Curfman McInnes             dnew = 0;	break;
68f3ba505bSLois Curfman McInnes           }
69f3ba505bSLois Curfman McInnes         }
70f3ba505bSLois Curfman McInnes         if (dnew) {
71f3ba505bSLois Curfman McInnes 	  diag[nd] = jdiag;
72f3ba505bSLois Curfman McInnes 	  nd++;
73edd2f0e1SBarry Smith           if (ABS(jdiag) > newr/nb)
74f3ba505bSLois Curfman McInnes              { printf("ERROR jdiag\n"); }
75f3ba505bSLois Curfman McInnes         }
76f3ba505bSLois Curfman McInnes       }
77f3ba505bSLois Curfman McInnes       j++;
78f3ba505bSLois Curfman McInnes     }
79f3ba505bSLois Curfman McInnes     ierr = MatRestoreRow( mat, rowrange[i], &nz, &col, &v ); CHKERR(ierr);
80f3ba505bSLois Curfman McInnes   }
81f3ba505bSLois Curfman McInnes   /* Sort diagonals in decreasing order. */
82f3ba505bSLois Curfman McInnes   for (k=0; k<nd; k++) {
83f3ba505bSLois Curfman McInnes     for (j=k+1; j<nd; j++) {
84f3ba505bSLois Curfman McInnes       if (diag[k] < diag[j]) {
85f3ba505bSLois Curfman McInnes         temp = diag[k];
86f3ba505bSLois Curfman McInnes         diag[k] = diag[j];
87f3ba505bSLois Curfman McInnes         diag[j] = temp;
88f3ba505bSLois Curfman McInnes       }
89f3ba505bSLois Curfman McInnes     }
90f3ba505bSLois Curfman McInnes   }
91f3ba505bSLois Curfman McInnes   FREE( cwork );
92f3ba505bSLois Curfman McInnes   *ndiag = nd;
93f3ba505bSLois Curfman McInnes   *diagonals = diag;
94f3ba505bSLois Curfman McInnes   return 0;
95f3ba505bSLois Curfman McInnes }
96f3ba505bSLois Curfman McInnes 
9756fe5c5cSLois Curfman McInnes /*
98*44ae05bdSLois Curfman McInnes   MatConvert_AIJ - Converts from MATAIJ format to another format. For
99*44ae05bdSLois Curfman McInnes   parallel formats, the new matrix distribution is determined by PETSc.
10056fe5c5cSLois Curfman McInnes  */
1015c378462SLois Curfman McInnes int MatConvert_AIJ(Mat mat, MatType newtype, Mat *newmat)
10256fe5c5cSLois Curfman McInnes {
1031fb19edaSLois Curfman McInnes   Mat_AIJ *aij = (Mat_AIJ *) mat->data;
10456fe5c5cSLois Curfman McInnes   Scalar  *vwork;
105*44ae05bdSLois Curfman McInnes   int     i, ierr, nz, m = aij->m, n = aij->n, *cwork, rstart, rend;
10656fe5c5cSLois Curfman McInnes 
1071fb19edaSLois Curfman McInnes   if (mat->type != MATAIJ) SETERR(1,"Input matrix must be MATAIJ.");
10856fe5c5cSLois Curfman McInnes   switch (newtype) {
1091fb19edaSLois Curfman McInnes     case MATROW:
1106b5873e3SBarry Smith       ierr = MatCreateSequentialRow(mat->comm,m,n,0,aij->ilen,newmat);
11156fe5c5cSLois Curfman McInnes       CHKERR(ierr); break;
112*44ae05bdSLois Curfman McInnes     case MATMPIROW:
113*44ae05bdSLois Curfman McInnes       ierr = MatCreateMPIRow(MPI_COMM_WORLD,PETSC_DECIDE,PETSC_DECIDE,
114*44ae05bdSLois Curfman McInnes              m,n,0,0,0,0,newmat); /* Could do smarter memory allocation */
115*44ae05bdSLois Curfman McInnes       CHKERR(ierr); break;
116*44ae05bdSLois Curfman McInnes     case MATMPIAIJ:
117*44ae05bdSLois Curfman McInnes       ierr = MatCreateMPIAIJ(MPI_COMM_WORLD,PETSC_DECIDE,PETSC_DECIDE,
118*44ae05bdSLois Curfman McInnes              m,n,0,0,0,0,newmat); /* Could do smarter memory allocation */
119*44ae05bdSLois Curfman McInnes       CHKERR(ierr); break;
1201fb19edaSLois Curfman McInnes     case MATDENSE:
1216b5873e3SBarry Smith       ierr = MatCreateSequentialDense(mat->comm,m,n,newmat);
12256fe5c5cSLois Curfman McInnes       CHKERR(ierr); break;
123f3ba505bSLois Curfman McInnes     case MATBDIAG:
124f3ba505bSLois Curfman McInnes     { int nb = 1; /* Default block size = 1 */
125f3ba505bSLois Curfman McInnes       int ndiag, *diag, *rr, *cr;
126f3ba505bSLois Curfman McInnes       rr = (int *) MALLOC( (m+n) * sizeof(int) ); CHKPTR(rr);
127f3ba505bSLois Curfman McInnes       cr = rr + m;
128f3ba505bSLois Curfman McInnes       for (i=0; i<m; i++) rr[i] = i;
129f3ba505bSLois Curfman McInnes       for (i=0; i<n; i++) cr[i] = i;
130df60cc22SBarry Smith       OptionsGetInt(0,"-mat_bdiag_bsize",&nb);
131f3ba505bSLois Curfman McInnes       ierr = MatDetermineDiagonals_Private(mat,nb,m,n,rr,cr,&ndiag,&diag);
132*44ae05bdSLois Curfman McInnes       CHKERR(ierr);
133f3ba505bSLois Curfman McInnes       ierr = MatCreateSequentialBDiag(mat->comm,m,n,ndiag,nb,diag,0,newmat);
134*44ae05bdSLois Curfman McInnes       CHKERR(ierr);
135*44ae05bdSLois Curfman McInnes       FREE(rr), FREE(diag);
136*44ae05bdSLois Curfman McInnes       break;
137*44ae05bdSLois Curfman McInnes     }
138*44ae05bdSLois Curfman McInnes     case MATMPIBDIAG:
139*44ae05bdSLois Curfman McInnes     { int nb = 1; /* Default block size = 1 */
140*44ae05bdSLois Curfman McInnes       int ndiag, *diag, *rr, *cr;
141*44ae05bdSLois Curfman McInnes       rr = (int *) MALLOC( (m+n) * sizeof(int) ); CHKPTR(rr);
142*44ae05bdSLois Curfman McInnes       cr = rr + m;
143*44ae05bdSLois Curfman McInnes       for (i=0; i<m; i++) rr[i] = i;
144*44ae05bdSLois Curfman McInnes       for (i=0; i<n; i++) cr[i] = i;
145*44ae05bdSLois Curfman McInnes       OptionsGetInt(0,"-mat_bdiag_bsize",&nb);
146*44ae05bdSLois Curfman McInnes       ierr = MatDetermineDiagonals_Private(mat,nb,m,n,rr,cr,&ndiag,&diag);
147*44ae05bdSLois Curfman McInnes       CHKERR(ierr);
148*44ae05bdSLois Curfman McInnes       ierr = MatCreateMPIBDiag(MPI_COMM_WORLD,PETSC_DECIDE,m,n,ndiag,nb,
149*44ae05bdSLois Curfman McInnes              diag,0,newmat); CHKERR(ierr);
150f3ba505bSLois Curfman McInnes       FREE(rr), FREE(diag);
151f3ba505bSLois Curfman McInnes       CHKERR(ierr); break;
15256fe5c5cSLois Curfman McInnes     }
153f3ba505bSLois Curfman McInnes     default:
154*44ae05bdSLois Curfman McInnes       SETERR(1,"Matrix type is not currently supported.");
155f3ba505bSLois Curfman McInnes   }
156*44ae05bdSLois Curfman McInnes   ierr = MatGetOwnershipRange(*newmat,&rstart,&rend); CHKERR(ierr);
157*44ae05bdSLois Curfman McInnes   for (i=rstart; i<rend; i++) {
15856fe5c5cSLois Curfman McInnes     ierr = MatGetRow(mat,i,&nz,&cwork,&vwork); CHKERR(ierr);
159edae2e7dSBarry Smith     ierr = MatSetValues(*newmat,1,&i,nz,cwork,vwork,INSERTVALUES);
160350bdbd6SLois Curfman McInnes            CHKERR(ierr);
16156fe5c5cSLois Curfman McInnes     ierr = MatRestoreRow(mat,i,&nz,&cwork,&vwork); CHKERR(ierr);
16256fe5c5cSLois Curfman McInnes   }
1635c378462SLois Curfman McInnes   ierr = MatAssemblyBegin(*newmat,FINAL_ASSEMBLY); CHKERR(ierr);
164ee50ffe9SBarry Smith   ierr = MatAssemblyEnd(*newmat,FINAL_ASSEMBLY); CHKERR(ierr);
16556fe5c5cSLois Curfman McInnes   return 0;
16656fe5c5cSLois Curfman McInnes }
16756fe5c5cSLois Curfman McInnes /* ------------------------------------------------------------------ */
16856fe5c5cSLois Curfman McInnes /*
1691fb19edaSLois Curfman McInnes   MatConvert_MPIAIJ - Converts from MATMPIAIJ format to another
17056fe5c5cSLois Curfman McInnes   parallel format.
17156fe5c5cSLois Curfman McInnes  */
1725c378462SLois Curfman McInnes int MatConvert_MPIAIJ(Mat mat, MatType newtype, Mat *newmat)
17356fe5c5cSLois Curfman McInnes {
1741fb19edaSLois Curfman McInnes   Mat_MPIAIJ *aij = (Mat_MPIAIJ *) mat->data;
175abc0e9e4SLois Curfman McInnes   Mat_AIJ    *Ad = (Mat_AIJ *)(aij->A->data), *Bd = (Mat_AIJ *)(aij->B->data);
176abc0e9e4SLois Curfman McInnes   int        ierr, nz, i, ig,rstart = aij->rstart, m = aij->m, *cwork;
17756fe5c5cSLois Curfman McInnes   Scalar     *vwork;
17856fe5c5cSLois Curfman McInnes 
1791fb19edaSLois Curfman McInnes   if (mat->type != MATMPIAIJ) SETERR(1,"Input matrix must be MATMPIAIJ.");
18056fe5c5cSLois Curfman McInnes   switch (newtype) {
1811fb19edaSLois Curfman McInnes     case MATMPIROW:
18256fe5c5cSLois Curfman McInnes       for (i=0; i<m; i++)
1832eb8c8abSBarry Smith         {ierr = MatCreateMPIRow(mat->comm,m,aij->n,aij->M,aij->N,0,Ad->ilen,
1842eb8c8abSBarry Smith 			0,Bd->ilen,newmat); CHKERR(ierr); }
185abc0e9e4SLois Curfman McInnes       break;
18656fe5c5cSLois Curfman McInnes     default:
1871fb19edaSLois Curfman McInnes       SETERR(1,"Only MATMPIROW is currently suported.");
18856fe5c5cSLois Curfman McInnes   }
189abc0e9e4SLois Curfman McInnes   /* Each processor converts its local rows */
19056fe5c5cSLois Curfman McInnes   for (i=0; i<m; i++) {
19156fe5c5cSLois Curfman McInnes     ig   = i + rstart;
192abc0e9e4SLois Curfman McInnes     ierr = MatGetRow(mat,ig,&nz,&cwork,&vwork);	CHKERR(ierr);
19356fe5c5cSLois Curfman McInnes     ierr = MatSetValues(*newmat,1,&ig,nz,cwork,vwork,
194edae2e7dSBarry Smith 		INSERTVALUES); CHKERR(ierr);
195abc0e9e4SLois Curfman McInnes     ierr = MatRestoreRow(mat,ig,&nz,&cwork,&vwork); CHKERR(ierr);
19656fe5c5cSLois Curfman McInnes   }
197eb067ba9SBarry Smith   ierr = MatAssemblyBegin(*newmat,FINAL_ASSEMBLY); CHKERR(ierr);
198ee50ffe9SBarry Smith   ierr = MatAssemblyEnd(*newmat,FINAL_ASSEMBLY); CHKERR(ierr);
19956fe5c5cSLois Curfman McInnes   return 0;
20056fe5c5cSLois Curfman McInnes }
201