1be1d678aSKris Buschelman 2eb9c0419SKris Buschelman /* 342c57489SHong Zhang Defines projective product routines where A is a SeqAIJ matrix 4eb9c0419SKris Buschelman C = P^T * A * P 5eb9c0419SKris Buschelman */ 6eb9c0419SKris Buschelman 7c6db04a5SJed Brown #include <../src/mat/impls/aij/seq/aij.h> /*I "petscmat.h" I*/ 8c6db04a5SJed Brown #include <../src/mat/utils/freespace.h> 9c6db04a5SJed Brown #include <petscbt.h> 10eb9c0419SKris Buschelman 11ff134f7aSHong Zhang #undef __FUNCT__ 127ba1a0bfSKris Buschelman #define __FUNCT__ "MatPtAPSymbolic_SeqAIJ" 137ba1a0bfSKris Buschelman PetscErrorCode MatPtAPSymbolic_SeqAIJ(Mat A,Mat P,PetscReal fill,Mat *C) 147ba1a0bfSKris Buschelman { 157ba1a0bfSKris Buschelman PetscErrorCode ierr; 167ba1a0bfSKris Buschelman 177ba1a0bfSKris Buschelman PetscFunctionBegin; 1865e19b50SBarry Smith if (!P->ops->ptapsymbolic_seqaij) SETERRQ2(((PetscObject)A)->comm,PETSC_ERR_SUP,"Not implemented for A=%s and P=%s",((PetscObject)A)->type_name,((PetscObject)P)->type_name); 197ba1a0bfSKris Buschelman ierr = (*P->ops->ptapsymbolic_seqaij)(A,P,fill,C);CHKERRQ(ierr); 207ba1a0bfSKris Buschelman PetscFunctionReturn(0); 217ba1a0bfSKris Buschelman } 227ba1a0bfSKris Buschelman 237ba1a0bfSKris Buschelman #undef __FUNCT__ 247ba1a0bfSKris Buschelman #define __FUNCT__ "MatPtAPNumeric_SeqAIJ" 257ba1a0bfSKris Buschelman PetscErrorCode MatPtAPNumeric_SeqAIJ(Mat A,Mat P,Mat C) 267ba1a0bfSKris Buschelman { 277ba1a0bfSKris Buschelman PetscErrorCode ierr; 287ba1a0bfSKris Buschelman 297ba1a0bfSKris Buschelman PetscFunctionBegin; 3065e19b50SBarry Smith if (!P->ops->ptapnumeric_seqaij) SETERRQ2(((PetscObject)A)->comm,PETSC_ERR_SUP,"Not implemented for A=%s and P=%s",((PetscObject)A)->type_name,((PetscObject)P)->type_name); 317ba1a0bfSKris Buschelman ierr = (*P->ops->ptapnumeric_seqaij)(A,P,C);CHKERRQ(ierr); 327ba1a0bfSKris Buschelman PetscFunctionReturn(0); 337ba1a0bfSKris Buschelman } 347ba1a0bfSKris Buschelman 357ba1a0bfSKris Buschelman #undef __FUNCT__ 369af31e4aSHong Zhang #define __FUNCT__ "MatPtAPSymbolic_SeqAIJ_SeqAIJ" 3755a3bba9SHong Zhang PetscErrorCode MatPtAPSymbolic_SeqAIJ_SeqAIJ(Mat A,Mat P,PetscReal fill,Mat *C) 3855a3bba9SHong Zhang { 39dfbe8321SBarry Smith PetscErrorCode ierr; 40a1a86e44SBarry Smith PetscFreeSpaceList free_space=PETSC_NULL,current_space=PETSC_NULL; 41d20bfe6fSHong Zhang Mat_SeqAIJ *a = (Mat_SeqAIJ*)A->data,*p = (Mat_SeqAIJ*)P->data,*c; 4255a3bba9SHong Zhang PetscInt *pti,*ptj,*ptJ,*ai=a->i,*aj=a->j,*ajj,*pi=p->i,*pj=p->j,*pjj; 43f2b054eeSHong Zhang PetscInt *ci,*cj,*ptadenserow,*ptasparserow,*ptaj,nspacedouble=0; 44d0f46423SBarry Smith PetscInt an=A->cmap->N,am=A->rmap->N,pn=P->cmap->N; 45b8374ebeSBarry Smith PetscInt i,j,k,ptnzi,arow,anzj,ptanzi,prow,pnzj,cnzi,nlnk,*lnk; 46d20bfe6fSHong Zhang MatScalar *ca; 4755a3bba9SHong Zhang PetscBT lnkbt; 48eb9c0419SKris Buschelman 49eb9c0419SKris Buschelman PetscFunctionBegin; 50d20bfe6fSHong Zhang /* Get ij structure of P^T */ 51eb9c0419SKris Buschelman ierr = MatGetSymbolicTranspose_SeqAIJ(P,&pti,&ptj);CHKERRQ(ierr); 52d20bfe6fSHong Zhang ptJ=ptj; 53eb9c0419SKris Buschelman 54d20bfe6fSHong Zhang /* Allocate ci array, arrays for fill computation and */ 55d20bfe6fSHong Zhang /* free space for accumulating nonzero column info */ 5655a3bba9SHong Zhang ierr = PetscMalloc((pn+1)*sizeof(PetscInt),&ci);CHKERRQ(ierr); 57d20bfe6fSHong Zhang ci[0] = 0; 58eb9c0419SKris Buschelman 5955a3bba9SHong Zhang ierr = PetscMalloc((2*an+1)*sizeof(PetscInt),&ptadenserow);CHKERRQ(ierr); 6055a3bba9SHong Zhang ierr = PetscMemzero(ptadenserow,(2*an+1)*sizeof(PetscInt));CHKERRQ(ierr); 61d20bfe6fSHong Zhang ptasparserow = ptadenserow + an; 6255a3bba9SHong Zhang 6355a3bba9SHong Zhang /* create and initialize a linked list */ 6455a3bba9SHong Zhang nlnk = pn+1; 6555a3bba9SHong Zhang ierr = PetscLLCreate(pn,pn,nlnk,lnk,lnkbt);CHKERRQ(ierr); 66eb9c0419SKris Buschelman 67f2b054eeSHong Zhang /* Set initial free space to be fill*nnz(A). */ 68d20bfe6fSHong Zhang /* This should be reasonable if sparsity of PtAP is similar to that of A. */ 69f2b054eeSHong Zhang ierr = PetscFreeSpaceGet((PetscInt)(fill*ai[am]),&free_space); 70d20bfe6fSHong Zhang current_space = free_space; 71d20bfe6fSHong Zhang 72d20bfe6fSHong Zhang /* Determine symbolic info for each row of C: */ 73d20bfe6fSHong Zhang for (i=0;i<pn;i++) { 74d20bfe6fSHong Zhang ptnzi = pti[i+1] - pti[i]; 75d20bfe6fSHong Zhang ptanzi = 0; 76d20bfe6fSHong Zhang /* Determine symbolic row of PtA: */ 77d20bfe6fSHong Zhang for (j=0;j<ptnzi;j++) { 78d20bfe6fSHong Zhang arow = *ptJ++; 79d20bfe6fSHong Zhang anzj = ai[arow+1] - ai[arow]; 80d20bfe6fSHong Zhang ajj = aj + ai[arow]; 81d20bfe6fSHong Zhang for (k=0;k<anzj;k++) { 82d20bfe6fSHong Zhang if (!ptadenserow[ajj[k]]) { 83d20bfe6fSHong Zhang ptadenserow[ajj[k]] = -1; 84d20bfe6fSHong Zhang ptasparserow[ptanzi++] = ajj[k]; 85d20bfe6fSHong Zhang } 86d20bfe6fSHong Zhang } 87d20bfe6fSHong Zhang } 88d20bfe6fSHong Zhang /* Using symbolic info for row of PtA, determine symbolic info for row of C: */ 89d20bfe6fSHong Zhang ptaj = ptasparserow; 90d20bfe6fSHong Zhang cnzi = 0; 91d20bfe6fSHong Zhang for (j=0;j<ptanzi;j++) { 92d20bfe6fSHong Zhang prow = *ptaj++; 93d20bfe6fSHong Zhang pnzj = pi[prow+1] - pi[prow]; 94d20bfe6fSHong Zhang pjj = pj + pi[prow]; 9555a3bba9SHong Zhang /* add non-zero cols of P into the sorted linked list lnk */ 9655a3bba9SHong Zhang ierr = PetscLLAdd(pnzj,pjj,pn,nlnk,lnk,lnkbt);CHKERRQ(ierr); 9755a3bba9SHong Zhang cnzi += nlnk; 98d20bfe6fSHong Zhang } 99d20bfe6fSHong Zhang 100d20bfe6fSHong Zhang /* If free space is not available, make more free space */ 101d20bfe6fSHong Zhang /* Double the amount of total space in the list */ 102d20bfe6fSHong Zhang if (current_space->local_remaining<cnzi) { 1034238b7adSHong Zhang ierr = PetscFreeSpaceGet(cnzi+current_space->total_array_size,¤t_space);CHKERRQ(ierr); 104f2b054eeSHong Zhang nspacedouble++; 105d20bfe6fSHong Zhang } 106d20bfe6fSHong Zhang 107d20bfe6fSHong Zhang /* Copy data into free space, and zero out denserows */ 10855a3bba9SHong Zhang ierr = PetscLLClean(pn,pn,cnzi,lnk,current_space->array,lnkbt);CHKERRQ(ierr); 109d20bfe6fSHong Zhang current_space->array += cnzi; 110d20bfe6fSHong Zhang current_space->local_used += cnzi; 111d20bfe6fSHong Zhang current_space->local_remaining -= cnzi; 112d20bfe6fSHong Zhang 113d20bfe6fSHong Zhang for (j=0;j<ptanzi;j++) { 114d20bfe6fSHong Zhang ptadenserow[ptasparserow[j]] = 0; 115d20bfe6fSHong Zhang } 116d20bfe6fSHong Zhang /* Aside: Perhaps we should save the pta info for the numerical factorization. */ 117d20bfe6fSHong Zhang /* For now, we will recompute what is needed. */ 118d20bfe6fSHong Zhang ci[i+1] = ci[i] + cnzi; 119d20bfe6fSHong Zhang } 120d20bfe6fSHong Zhang /* nnz is now stored in ci[ptm], column indices are in the list of free space */ 121d20bfe6fSHong Zhang /* Allocate space for cj, initialize cj, and */ 122d20bfe6fSHong Zhang /* destroy list of free space and other temporary array(s) */ 12355a3bba9SHong Zhang ierr = PetscMalloc((ci[pn]+1)*sizeof(PetscInt),&cj);CHKERRQ(ierr); 124a1a86e44SBarry Smith ierr = PetscFreeSpaceContiguous(&free_space,cj);CHKERRQ(ierr); 125d20bfe6fSHong Zhang ierr = PetscFree(ptadenserow);CHKERRQ(ierr); 12655a3bba9SHong Zhang ierr = PetscLLDestroy(lnk,lnkbt);CHKERRQ(ierr); 127d20bfe6fSHong Zhang 128d20bfe6fSHong Zhang /* Allocate space for ca */ 129d20bfe6fSHong Zhang ierr = PetscMalloc((ci[pn]+1)*sizeof(MatScalar),&ca);CHKERRQ(ierr); 130d20bfe6fSHong Zhang ierr = PetscMemzero(ca,(ci[pn]+1)*sizeof(MatScalar));CHKERRQ(ierr); 131d20bfe6fSHong Zhang 132d20bfe6fSHong Zhang /* put together the new matrix */ 1337adad957SLisandro Dalcin ierr = MatCreateSeqAIJWithArrays(((PetscObject)A)->comm,pn,pn,ci,cj,ca,C);CHKERRQ(ierr); 134d20bfe6fSHong Zhang 135d20bfe6fSHong Zhang /* MatCreateSeqAIJWithArrays flags matrix so PETSc doesn't free the user's arrays. */ 136d20bfe6fSHong Zhang /* Since these are PETSc arrays, change flags to free them as necessary. */ 137d20bfe6fSHong Zhang c = (Mat_SeqAIJ *)((*C)->data); 138e6b907acSBarry Smith c->free_a = PETSC_TRUE; 139e6b907acSBarry Smith c->free_ij = PETSC_TRUE; 140d20bfe6fSHong Zhang c->nonew = 0; 141d20bfe6fSHong Zhang 142d20bfe6fSHong Zhang /* Clean up. */ 143d20bfe6fSHong Zhang ierr = MatRestoreSymbolicTranspose_SeqAIJ(P,&pti,&ptj);CHKERRQ(ierr); 144f2b054eeSHong Zhang #if defined(PETSC_USE_INFO) 145f2b054eeSHong Zhang if (ci[pn] != 0) { 146f2b054eeSHong Zhang PetscReal afill = ((PetscReal)ci[pn])/ai[am]; 147f2b054eeSHong Zhang if (afill < 1.0) afill = 1.0; 148f2b054eeSHong Zhang ierr = PetscInfo3((*C),"Reallocs %D; Fill ratio: given %G needed %G.\n",nspacedouble,fill,afill);CHKERRQ(ierr); 149f2b054eeSHong Zhang ierr = PetscInfo1((*C),"Use MatPtAP(A,P,MatReuse,%G,&C) for best performance.\n",afill);CHKERRQ(ierr); 150f2b054eeSHong Zhang } else { 151f2b054eeSHong Zhang ierr = PetscInfo((*C),"Empty matrix product\n");CHKERRQ(ierr); 152f2b054eeSHong Zhang } 153f2b054eeSHong Zhang #endif 154eb9c0419SKris Buschelman PetscFunctionReturn(0); 155eb9c0419SKris Buschelman } 156eb9c0419SKris Buschelman 157eb9c0419SKris Buschelman #undef __FUNCT__ 1589af31e4aSHong Zhang #define __FUNCT__ "MatPtAPNumeric_SeqAIJ_SeqAIJ" 159dfbe8321SBarry Smith PetscErrorCode MatPtAPNumeric_SeqAIJ_SeqAIJ(Mat A,Mat P,Mat C) 160dfbe8321SBarry Smith { 161dfbe8321SBarry Smith PetscErrorCode ierr; 162*7dca3203SBarry Smith PetscLogDouble flops=0.0; 163d20bfe6fSHong Zhang Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data; 164d20bfe6fSHong Zhang Mat_SeqAIJ *p = (Mat_SeqAIJ *) P->data; 165d20bfe6fSHong Zhang Mat_SeqAIJ *c = (Mat_SeqAIJ *) C->data; 166*7dca3203SBarry Smith PetscInt *ai=a->i,*aj=a->j,*apj,*apjdense,*pi=p->i,*pj=p->j,*pJ=p->j,*pjj; 167*7dca3203SBarry Smith PetscInt *ci=c->i,*cj=c->j,*cjj; 168*7dca3203SBarry Smith PetscInt am=A->rmap->N,cn=C->cmap->N,cm=C->rmap->N; 169b1d57f15SBarry Smith PetscInt i,j,k,anzi,pnzi,apnzj,nextap,pnzj,prow,crow; 170*7dca3203SBarry Smith MatScalar *aa=a->a,*apa,*pa=p->a,*pA=p->a,*paj,*ca=c->a,*caj; 171eb9c0419SKris Buschelman 172eb9c0419SKris Buschelman PetscFunctionBegin; 173d20bfe6fSHong Zhang /* Allocate temporary array for storage of one row of A*P */ 174b1d57f15SBarry Smith ierr = PetscMalloc(cn*(sizeof(MatScalar)+2*sizeof(PetscInt)),&apa);CHKERRQ(ierr); 175b1d57f15SBarry Smith ierr = PetscMemzero(apa,cn*(sizeof(MatScalar)+2*sizeof(PetscInt)));CHKERRQ(ierr); 176eb9c0419SKris Buschelman 177b1d57f15SBarry Smith apj = (PetscInt *)(apa + cn); 178d20bfe6fSHong Zhang apjdense = apj + cn; 179d20bfe6fSHong Zhang 180d20bfe6fSHong Zhang /* Clear old values in C */ 181d20bfe6fSHong Zhang ierr = PetscMemzero(ca,ci[cm]*sizeof(MatScalar));CHKERRQ(ierr); 182d20bfe6fSHong Zhang 183d20bfe6fSHong Zhang for (i=0;i<am;i++) { 184d20bfe6fSHong Zhang /* Form sparse row of A*P */ 185d20bfe6fSHong Zhang anzi = ai[i+1] - ai[i]; 186d20bfe6fSHong Zhang apnzj = 0; 187d20bfe6fSHong Zhang for (j=0;j<anzi;j++) { 188d20bfe6fSHong Zhang prow = *aj++; 189d20bfe6fSHong Zhang pnzj = pi[prow+1] - pi[prow]; 190d20bfe6fSHong Zhang pjj = pj + pi[prow]; 191d20bfe6fSHong Zhang paj = pa + pi[prow]; 192d20bfe6fSHong Zhang for (k=0;k<pnzj;k++) { 193d20bfe6fSHong Zhang if (!apjdense[pjj[k]]) { 194d20bfe6fSHong Zhang apjdense[pjj[k]] = -1; 195d20bfe6fSHong Zhang apj[apnzj++] = pjj[k]; 196d20bfe6fSHong Zhang } 197*7dca3203SBarry Smith apa[pjj[k]] += (*aa)*paj[k]; 198d20bfe6fSHong Zhang } 199*7dca3203SBarry Smith flops += 2.0*pnzj; 200*7dca3203SBarry Smith aa++; 201d20bfe6fSHong Zhang } 202d20bfe6fSHong Zhang 203d20bfe6fSHong Zhang /* Sort the j index array for quick sparse axpy. */ 204d6509036SKris Buschelman /* Note: a array does not need sorting as it is in dense storage locations. */ 205d20bfe6fSHong Zhang ierr = PetscSortInt(apnzj,apj);CHKERRQ(ierr); 206d20bfe6fSHong Zhang 207d20bfe6fSHong Zhang /* Compute P^T*A*P using outer product (P^T)[:,j]*(A*P)[j,:]. */ 208d20bfe6fSHong Zhang pnzi = pi[i+1] - pi[i]; 209d20bfe6fSHong Zhang for (j=0;j<pnzi;j++) { 210d20bfe6fSHong Zhang nextap = 0; 211d20bfe6fSHong Zhang crow = *pJ++; 212d20bfe6fSHong Zhang cjj = cj + ci[crow]; 213d20bfe6fSHong Zhang caj = ca + ci[crow]; 214d20bfe6fSHong Zhang /* Perform sparse axpy operation. Note cjj includes apj. */ 215d20bfe6fSHong Zhang for (k=0;nextap<apnzj;k++) { 216f9f3b1caSBarry Smith #if defined(PETSC_USE_DEBUG) 217*7dca3203SBarry Smith if (k >= ci[crow+1] - ci[crow]) { 218*7dca3203SBarry Smith SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_PLIB,"k too large k %d, crow %d",k,crow); 219*7dca3203SBarry Smith } 220f9f3b1caSBarry Smith #endif 221d20bfe6fSHong Zhang if (cjj[k]==apj[nextap]) { 222*7dca3203SBarry Smith caj[k] += (*pA)*apa[apj[nextap++]]; 223d20bfe6fSHong Zhang } 224d20bfe6fSHong Zhang } 225*7dca3203SBarry Smith flops += 2.0*apnzj; 226*7dca3203SBarry Smith pA++; 227d20bfe6fSHong Zhang } 228d20bfe6fSHong Zhang 229d20bfe6fSHong Zhang /* Zero the current row info for A*P */ 230d20bfe6fSHong Zhang for (j=0;j<apnzj;j++) { 231d20bfe6fSHong Zhang apa[apj[j]] = 0.; 232d20bfe6fSHong Zhang apjdense[apj[j]] = 0; 233d20bfe6fSHong Zhang } 234d20bfe6fSHong Zhang } 235d20bfe6fSHong Zhang 236d20bfe6fSHong Zhang /* Assemble the final matrix and clean up */ 237d20bfe6fSHong Zhang ierr = MatAssemblyBegin(C,MAT_FINAL_ASSEMBLY);CHKERRQ(ierr); 238d20bfe6fSHong Zhang ierr = MatAssemblyEnd(C,MAT_FINAL_ASSEMBLY);CHKERRQ(ierr); 239d20bfe6fSHong Zhang ierr = PetscFree(apa);CHKERRQ(ierr); 240*7dca3203SBarry Smith ierr = PetscLogFlops(flops);CHKERRQ(ierr); 241d20bfe6fSHong Zhang 242eb9c0419SKris Buschelman PetscFunctionReturn(0); 243eb9c0419SKris Buschelman } 244