1 #ifndef lint 2 static char vcid[] = "$Id: aijfact.c,v 1.80 1997/05/23 15:56:59 balay Exp balay $"; 3 #endif 4 5 #include "src/mat/impls/aij/seq/aij.h" 6 #include "src/vec/vecimpl.h" 7 8 #undef __FUNC__ 9 #define __FUNC__ "MatOrder_Flow_SeqAIJ" /* ADIC Ignore */ 10 int MatOrder_Flow_SeqAIJ(Mat mat,MatReordering type,IS *irow,IS *icol) 11 { 12 SETERRQ(PETSC_ERR_SUP,0,"Code not written"); 13 } 14 15 /* 16 Factorization code for AIJ format. 17 */ 18 #undef __FUNC__ 19 #define __FUNC__ "MatLUFactorSymbolic_SeqAIJ" 20 int MatLUFactorSymbolic_SeqAIJ(Mat A,IS isrow,IS iscol,double f,Mat *B) 21 { 22 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data, *b; 23 IS isicol; 24 int *r,*ic, ierr, i, n = a->m, *ai = a->i, *aj = a->j; 25 int *ainew,*ajnew, jmax,*fill, *ajtmp, nz,shift = a->indexshift; 26 int *idnew, idx, row,m,fm, nnz, nzi, realloc = 0,nzbd,*im; 27 28 PetscValidHeaderSpecific(isrow,IS_COOKIE); 29 PetscValidHeaderSpecific(iscol,IS_COOKIE); 30 31 ierr = ISInvertPermutation(iscol,&isicol); CHKERRQ(ierr); 32 ISGetIndices(isrow,&r); ISGetIndices(isicol,&ic); 33 34 /* get new row pointers */ 35 ainew = (int *) PetscMalloc( (n+1)*sizeof(int) ); CHKPTRQ(ainew); 36 ainew[0] = -shift; 37 /* don't know how many column pointers are needed so estimate */ 38 jmax = (int) (f*ai[n]+(!shift)); 39 ajnew = (int *) PetscMalloc( (jmax)*sizeof(int) ); CHKPTRQ(ajnew); 40 /* fill is a linked list of nonzeros in active row */ 41 fill = (int *) PetscMalloc( (2*n+1)*sizeof(int)); CHKPTRQ(fill); 42 im = fill + n + 1; 43 /* idnew is location of diagonal in factor */ 44 idnew = (int *) PetscMalloc( (n+1)*sizeof(int)); CHKPTRQ(idnew); 45 idnew[0] = -shift; 46 47 for ( i=0; i<n; i++ ) { 48 /* first copy previous fill into linked list */ 49 nnz = nz = ai[r[i]+1] - ai[r[i]]; 50 if (!nz) SETERRQ(PETSC_ERR_MAT_LU_ZRPVT,1,"Empty row in matrix"); 51 ajtmp = aj + ai[r[i]] + shift; 52 fill[n] = n; 53 while (nz--) { 54 fm = n; 55 idx = ic[*ajtmp++ + shift]; 56 do { 57 m = fm; 58 fm = fill[m]; 59 } while (fm < idx); 60 fill[m] = idx; 61 fill[idx] = fm; 62 } 63 row = fill[n]; 64 while ( row < i ) { 65 ajtmp = ajnew + idnew[row] + (!shift); 66 nzbd = 1 + idnew[row] - ainew[row]; 67 nz = im[row] - nzbd; 68 fm = row; 69 while (nz-- > 0) { 70 idx = *ajtmp++ + shift; 71 nzbd++; 72 if (idx == i) im[row] = nzbd; 73 do { 74 m = fm; 75 fm = fill[m]; 76 } while (fm < idx); 77 if (fm != idx) { 78 fill[m] = idx; 79 fill[idx] = fm; 80 fm = idx; 81 nnz++; 82 } 83 } 84 row = fill[row]; 85 } 86 /* copy new filled row into permanent storage */ 87 ainew[i+1] = ainew[i] + nnz; 88 if (ainew[i+1] > jmax) { 89 /* allocate a longer ajnew */ 90 int maxadd; 91 maxadd = (int) ((f*(ai[n]+(!shift))*(n-i+5))/n); 92 if (maxadd < nnz) maxadd = (n-i)*(nnz+1); 93 jmax += maxadd; 94 ajtmp = (int *) PetscMalloc( jmax*sizeof(int) );CHKPTRQ(ajtmp); 95 PetscMemcpy(ajtmp,ajnew,(ainew[i]+shift)*sizeof(int)); 96 PetscFree(ajnew); 97 ajnew = ajtmp; 98 realloc++; /* count how many times we realloc */ 99 } 100 ajtmp = ajnew + ainew[i] + shift; 101 fm = fill[n]; 102 nzi = 0; 103 im[i] = nnz; 104 while (nnz--) { 105 if (fm < i) nzi++; 106 *ajtmp++ = fm - shift; 107 fm = fill[fm]; 108 } 109 idnew[i] = ainew[i] + nzi; 110 } 111 if (ai[n] != 0) { 112 double af = ((double)ainew[n])/((double)ai[n]); 113 PLogInfo(A,"Info:MatLUFactorSymbolic_SeqAIJ:Reallocs %d Fill ratio:given %g needed %g\n", 114 realloc,f,af); 115 af += .01; 116 PLogInfo(A,"Info:MatLUFactorSymbolic_SeqAIJ:Run with -pc_lu_fill %g or use \n",af); 117 PLogInfo(A,"Info:MatLUFactorSymbolic_SeqAIJ:PCLUSetFill(pc,%g);\n",af); 118 PLogInfo(A,"Info:MatLUFactorSymbolic_SeqAIJ:for best performance.\n"); 119 } else { 120 PLogInfo(A,"Info:MatLUFactorSymbolic_SeqAIJ: Empty matrix\n"); 121 } 122 123 ierr = ISRestoreIndices(isrow,&r); CHKERRQ(ierr); 124 ierr = ISRestoreIndices(isicol,&ic); CHKERRQ(ierr); 125 126 PetscFree(fill); 127 128 /* put together the new matrix */ 129 ierr = MatCreateSeqAIJ(A->comm,n,n,0,PETSC_NULL,B); CHKERRQ(ierr); 130 PLogObjectParent(*B,isicol); 131 ierr = ISDestroy(isicol); CHKERRQ(ierr); 132 b = (Mat_SeqAIJ *) (*B)->data; 133 PetscFree(b->imax); 134 b->singlemalloc = 0; 135 /* the next line frees the default space generated by the Create() */ 136 PetscFree(b->a); PetscFree(b->ilen); 137 b->a = (Scalar *) PetscMalloc((ainew[n]+shift+1)*sizeof(Scalar));CHKPTRQ(b->a); 138 b->j = ajnew; 139 b->i = ainew; 140 b->diag = idnew; 141 b->ilen = 0; 142 b->imax = 0; 143 b->row = isrow; 144 b->col = iscol; 145 b->solve_work = (Scalar *) PetscMalloc( (n+1)*sizeof(Scalar));CHKPTRQ(b->solve_work); 146 /* In b structure: Free imax, ilen, old a, old j. 147 Allocate idnew, solve_work, new a, new j */ 148 PLogObjectMemory(*B,(ainew[n]+shift-n)*(sizeof(int)+sizeof(Scalar))); 149 b->maxnz = b->nz = ainew[n] + shift; 150 151 (*B)->info.factor_mallocs = realloc; 152 (*B)->info.fill_ratio_given = f; 153 if (ai[i] != 0) { 154 (*B)->info.fill_ratio_needed = ((double)ainew[n])/((double)ai[i]); 155 } else { 156 (*B)->info.fill_ratio_needed = 0.0; 157 } 158 159 return 0; 160 } 161 /* ----------------------------------------------------------- */ 162 int Mat_AIJ_CheckInode(Mat); 163 164 #undef __FUNC__ 165 #define __FUNC__ "MatLUFactorNumeric_SeqAIJ" 166 int MatLUFactorNumeric_SeqAIJ(Mat A,Mat *B) 167 { 168 Mat C = *B; 169 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data, *b = (Mat_SeqAIJ *)C->data; 170 IS iscol = b->col, isrow = b->row, isicol; 171 int *r,*ic, ierr, i, j, n = a->m, *ai = b->i, *aj = b->j; 172 int *ajtmpold, *ajtmp, nz, row, *ics, shift = a->indexshift; 173 int *diag_offset = b->diag,diag,k; 174 int preserve_row_sums = (int) a->ilu_preserve_row_sums; 175 Scalar *rtmp,*v, *pc, multiplier,sum,inner_sum,*rowsums = 0; 176 double ssum; 177 /* These declarations are for optimizations. They reduce the number of 178 memory references that are made by locally storing information; the 179 word "register" used here with pointers can be viewed as "private" or 180 "known only to me" 181 */ 182 register Scalar *pv, *rtmps,*u_values; 183 register int *pj; 184 185 ierr = ISInvertPermutation(iscol,&isicol); CHKERRQ(ierr); 186 PLogObjectParent(*B,isicol); 187 ierr = ISGetIndices(isrow,&r); CHKERRQ(ierr); 188 ierr = ISGetIndices(isicol,&ic); CHKERRQ(ierr); 189 rtmp = (Scalar *) PetscMalloc( (n+1)*sizeof(Scalar) ); CHKPTRQ(rtmp); 190 PetscMemzero(rtmp,(n+1)*sizeof(Scalar)); 191 rtmps = rtmp + shift; ics = ic + shift; 192 193 /* precalcuate row sums */ 194 if (preserve_row_sums) { 195 rowsums = (Scalar *) PetscMalloc( n*sizeof(Scalar) ); CHKPTRQ(rowsums); 196 for ( i=0; i<n; i++ ) { 197 nz = a->i[r[i]+1] - a->i[r[i]]; 198 v = a->a + a->i[r[i]] + shift; 199 sum = 0.0; 200 for ( j=0; j<nz; j++ ) sum += v[j]; 201 rowsums[i] = sum; 202 } 203 } 204 205 for ( i=0; i<n; i++ ) { 206 nz = ai[i+1] - ai[i]; 207 ajtmp = aj + ai[i] + shift; 208 for ( j=0; j<nz; j++ ) rtmps[ajtmp[j]] = 0.0; 209 210 /* load in initial (unfactored row) */ 211 nz = a->i[r[i]+1] - a->i[r[i]]; 212 ajtmpold = a->j + a->i[r[i]] + shift; 213 v = a->a + a->i[r[i]] + shift; 214 for ( j=0; j<nz; j++ ) rtmp[ics[ajtmpold[j]]] = v[j]; 215 216 row = *ajtmp++ + shift; 217 while (row < i ) { 218 pc = rtmp + row; 219 if (*pc != 0.0) { 220 pv = b->a + diag_offset[row] + shift; 221 pj = b->j + diag_offset[row] + (!shift); 222 multiplier = *pc / *pv++; 223 *pc = multiplier; 224 nz = ai[row+1] - diag_offset[row] - 1; 225 for (j=0; j<nz; j++) rtmps[pj[j]] -= multiplier * pv[j]; 226 PLogFlops(2*nz); 227 } 228 row = *ajtmp++ + shift; 229 } 230 /* finished row so stick it into b->a */ 231 pv = b->a + ai[i] + shift; 232 pj = b->j + ai[i] + shift; 233 nz = ai[i+1] - ai[i]; 234 for ( j=0; j<nz; j++ ) {pv[j] = rtmps[pj[j]];} 235 diag = diag_offset[i] - ai[i]; 236 /* 237 Possibly adjust diagonal entry on current row to force 238 LU matrix to have same row sum as initial matrix. 239 */ 240 if (preserve_row_sums) { 241 pj = b->j + ai[i] + shift; 242 sum = rowsums[i]; 243 for ( j=0; j<diag; j++ ) { 244 u_values = b->a + diag_offset[pj[j]] + shift; 245 nz = ai[pj[j]+1] - diag_offset[pj[j]]; 246 inner_sum = 0.0; 247 for ( k=0; k<nz; k++ ) { 248 inner_sum += u_values[k]; 249 } 250 sum -= pv[j]*inner_sum; 251 252 } 253 nz = ai[i+1] - diag_offset[i] - 1; 254 u_values = b->a + diag_offset[i] + 1 + shift; 255 for ( k=0; k<nz; k++ ) { 256 sum -= u_values[k]; 257 } 258 ssum = PetscAbsScalar(sum/pv[diag]); 259 if (ssum < 1000. && ssum > .001) pv[diag] = sum; 260 } 261 /* check pivot entry for current row */ 262 if (pv[diag] == 0.0) { 263 SETERRQ(PETSC_ERR_MAT_LU_ZRPVT,0,"Zero pivot"); 264 } 265 } 266 267 /* invert diagonal entries for simplier triangular solves */ 268 for ( i=0; i<n; i++ ) { 269 b->a[diag_offset[i]+shift] = 1.0/b->a[diag_offset[i]+shift]; 270 } 271 272 if (preserve_row_sums) PetscFree(rowsums); 273 PetscFree(rtmp); 274 ierr = ISRestoreIndices(isicol,&ic); CHKERRQ(ierr); 275 ierr = ISRestoreIndices(isrow,&r); CHKERRQ(ierr); 276 ierr = ISDestroy(isicol); CHKERRQ(ierr); 277 C->factor = FACTOR_LU; 278 ierr = Mat_AIJ_CheckInode(C); CHKERRQ(ierr); 279 C->assembled = PETSC_TRUE; 280 PLogFlops(b->n); 281 return 0; 282 } 283 /* ----------------------------------------------------------- */ 284 #undef __FUNC__ 285 #define __FUNC__ "MatLUFactor_SeqAIJ" 286 int MatLUFactor_SeqAIJ(Mat A,IS row,IS col,double f) 287 { 288 Mat_SeqAIJ *mat = (Mat_SeqAIJ *) A->data; 289 int ierr; 290 Mat C; 291 292 ierr = MatLUFactorSymbolic(A,row,col,f,&C); CHKERRQ(ierr); 293 ierr = MatLUFactorNumeric(A,&C); CHKERRQ(ierr); 294 295 /* free all the data structures from mat */ 296 PetscFree(mat->a); 297 if (!mat->singlemalloc) {PetscFree(mat->i); PetscFree(mat->j);} 298 if (mat->diag) PetscFree(mat->diag); 299 if (mat->ilen) PetscFree(mat->ilen); 300 if (mat->imax) PetscFree(mat->imax); 301 if (mat->solve_work) PetscFree(mat->solve_work); 302 if (mat->inode.size) PetscFree(mat->inode.size); 303 PetscFree(mat); 304 305 PetscMemcpy(A,C,sizeof(struct _Mat)); 306 PetscHeaderDestroy(C); 307 return 0; 308 } 309 /* ----------------------------------------------------------- */ 310 #undef __FUNC__ 311 #define __FUNC__ "MatSolve_SeqAIJ" 312 int MatSolve_SeqAIJ(Mat A,Vec bb, Vec xx) 313 { 314 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data; 315 IS iscol = a->col, isrow = a->row; 316 int *r,*c, ierr, i, n = a->m, *vi, *ai = a->i, *aj = a->j; 317 int nz,shift = a->indexshift,*rout,*cout; 318 Scalar *x,*b,*tmp, *tmps, *aa = a->a, sum, *v; 319 320 if (!n) return 0; 321 322 VecGetArray_Fast(bb,b); 323 VecGetArray_Fast(xx,x); 324 tmp = a->solve_work; 325 326 ierr = ISGetIndices(isrow,&rout);CHKERRQ(ierr); r = rout; 327 ierr = ISGetIndices(iscol,&cout);CHKERRQ(ierr); c = cout + (n-1); 328 329 /* forward solve the lower triangular */ 330 tmp[0] = b[*r++]; 331 tmps = tmp + shift; 332 for ( i=1; i<n; i++ ) { 333 v = aa + ai[i] + shift; 334 vi = aj + ai[i] + shift; 335 nz = a->diag[i] - ai[i]; 336 sum = b[*r++]; 337 while (nz--) sum -= *v++ * tmps[*vi++]; 338 tmp[i] = sum; 339 } 340 341 /* backward solve the upper triangular */ 342 for ( i=n-1; i>=0; i-- ){ 343 v = aa + a->diag[i] + (!shift); 344 vi = aj + a->diag[i] + (!shift); 345 nz = ai[i+1] - a->diag[i] - 1; 346 sum = tmp[i]; 347 while (nz--) sum -= *v++ * tmps[*vi++]; 348 x[*c--] = tmp[i] = sum*aa[a->diag[i]+shift]; 349 } 350 351 ierr = ISRestoreIndices(isrow,&rout); CHKERRQ(ierr); 352 ierr = ISRestoreIndices(iscol,&cout); CHKERRQ(ierr); 353 PLogFlops(2*a->nz - a->n); 354 return 0; 355 } 356 357 #undef __FUNC__ 358 #define __FUNC__ "MatSolveAdd_SeqAIJ" 359 int MatSolveAdd_SeqAIJ(Mat A,Vec bb, Vec yy, Vec xx) 360 { 361 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data; 362 IS iscol = a->col, isrow = a->row; 363 int *r,*c, ierr, i, n = a->m, *vi, *ai = a->i, *aj = a->j; 364 int nz, shift = a->indexshift,*rout,*cout; 365 Scalar *x,*b,*tmp, *aa = a->a, sum, *v; 366 367 if (yy != xx) {ierr = VecCopy(yy,xx); CHKERRQ(ierr);} 368 369 VecGetArray_Fast(bb,b); 370 VecGetArray_Fast(xx,x); 371 tmp = a->solve_work; 372 373 ierr = ISGetIndices(isrow,&rout); CHKERRQ(ierr); r = rout; 374 ierr = ISGetIndices(iscol,&cout); CHKERRQ(ierr); c = cout + (n-1); 375 376 /* forward solve the lower triangular */ 377 tmp[0] = b[*r++]; 378 for ( i=1; i<n; i++ ) { 379 v = aa + ai[i] + shift; 380 vi = aj + ai[i] + shift; 381 nz = a->diag[i] - ai[i]; 382 sum = b[*r++]; 383 while (nz--) sum -= *v++ * tmp[*vi++ + shift]; 384 tmp[i] = sum; 385 } 386 387 /* backward solve the upper triangular */ 388 for ( i=n-1; i>=0; i-- ){ 389 v = aa + a->diag[i] + (!shift); 390 vi = aj + a->diag[i] + (!shift); 391 nz = ai[i+1] - a->diag[i] - 1; 392 sum = tmp[i]; 393 while (nz--) sum -= *v++ * tmp[*vi++ + shift]; 394 tmp[i] = sum*aa[a->diag[i]+shift]; 395 x[*c--] += tmp[i]; 396 } 397 398 ierr = ISRestoreIndices(isrow,&rout); CHKERRQ(ierr); 399 ierr = ISRestoreIndices(iscol,&cout); CHKERRQ(ierr); 400 PLogFlops(2*a->nz); 401 402 return 0; 403 } 404 /* -------------------------------------------------------------------*/ 405 #undef __FUNC__ 406 #define __FUNC__ "MatSolveTrans_SeqAIJ" 407 int MatSolveTrans_SeqAIJ(Mat A,Vec bb, Vec xx) 408 { 409 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data; 410 IS iscol = a->col, isrow = a->row, invisrow,inviscol; 411 int *r,*c, ierr, i, n = a->m, *vi, *ai = a->i, *aj = a->j; 412 int nz,shift = a->indexshift,*rout,*cout; 413 Scalar *x,*b,*tmp, *aa = a->a, *v; 414 415 VecGetArray_Fast(bb,b); 416 VecGetArray_Fast(xx,x); 417 tmp = a->solve_work; 418 419 /* invert the permutations */ 420 ierr = ISInvertPermutation(isrow,&invisrow); CHKERRQ(ierr); 421 ierr = ISInvertPermutation(iscol,&inviscol); CHKERRQ(ierr); 422 423 ierr = ISGetIndices(invisrow,&rout); CHKERRQ(ierr); r = rout; 424 ierr = ISGetIndices(inviscol,&cout); CHKERRQ(ierr); c = cout; 425 426 /* copy the b into temp work space according to permutation */ 427 for ( i=0; i<n; i++ ) tmp[c[i]] = b[i]; 428 429 /* forward solve the U^T */ 430 for ( i=0; i<n; i++ ) { 431 v = aa + a->diag[i] + shift; 432 vi = aj + a->diag[i] + (!shift); 433 nz = ai[i+1] - a->diag[i] - 1; 434 tmp[i] *= *v++; 435 while (nz--) { 436 tmp[*vi++ + shift] -= (*v++)*tmp[i]; 437 } 438 } 439 440 /* backward solve the L^T */ 441 for ( i=n-1; i>=0; i-- ){ 442 v = aa + a->diag[i] - 1 + shift; 443 vi = aj + a->diag[i] - 1 + shift; 444 nz = a->diag[i] - ai[i]; 445 while (nz--) { 446 tmp[*vi-- + shift] -= (*v--)*tmp[i]; 447 } 448 } 449 450 /* copy tmp into x according to permutation */ 451 for ( i=0; i<n; i++ ) x[r[i]] = tmp[i]; 452 453 ierr = ISRestoreIndices(invisrow,&rout); CHKERRQ(ierr); 454 ierr = ISRestoreIndices(inviscol,&cout); CHKERRQ(ierr); 455 ierr = ISDestroy(invisrow); CHKERRQ(ierr); 456 ierr = ISDestroy(inviscol); CHKERRQ(ierr); 457 458 PLogFlops(2*a->nz-a->n); 459 return 0; 460 } 461 462 #undef __FUNC__ 463 #define __FUNC__ "MatSolveTransAdd_SeqAIJ" 464 int MatSolveTransAdd_SeqAIJ(Mat A,Vec bb, Vec zz,Vec xx) 465 { 466 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data; 467 IS iscol = a->col, isrow = a->row, invisrow,inviscol; 468 int *r,*c, ierr, i, n = a->m, *vi, *ai = a->i, *aj = a->j; 469 int nz,shift = a->indexshift, *rout, *cout; 470 Scalar *x,*b,*tmp, *aa = a->a, *v; 471 472 if (zz != xx) VecCopy(zz,xx); 473 474 VecGetArray_Fast(bb,b); 475 VecGetArray_Fast(xx,x); 476 tmp = a->solve_work; 477 478 /* invert the permutations */ 479 ierr = ISInvertPermutation(isrow,&invisrow); CHKERRQ(ierr); 480 ierr = ISInvertPermutation(iscol,&inviscol); CHKERRQ(ierr); 481 ierr = ISGetIndices(invisrow,&rout); CHKERRQ(ierr); r = rout; 482 ierr = ISGetIndices(inviscol,&cout); CHKERRQ(ierr); c = cout; 483 484 /* copy the b into temp work space according to permutation */ 485 for ( i=0; i<n; i++ ) tmp[c[i]] = b[i]; 486 487 /* forward solve the U^T */ 488 for ( i=0; i<n; i++ ) { 489 v = aa + a->diag[i] + shift; 490 vi = aj + a->diag[i] + (!shift); 491 nz = ai[i+1] - a->diag[i] - 1; 492 tmp[i] *= *v++; 493 while (nz--) { 494 tmp[*vi++ + shift] -= (*v++)*tmp[i]; 495 } 496 } 497 498 /* backward solve the L^T */ 499 for ( i=n-1; i>=0; i-- ){ 500 v = aa + a->diag[i] - 1 + shift; 501 vi = aj + a->diag[i] - 1 + shift; 502 nz = a->diag[i] - ai[i]; 503 while (nz--) { 504 tmp[*vi-- + shift] -= (*v--)*tmp[i]; 505 } 506 } 507 508 /* copy tmp into x according to permutation */ 509 for ( i=0; i<n; i++ ) x[r[i]] += tmp[i]; 510 511 ierr = ISRestoreIndices(invisrow,&rout); CHKERRQ(ierr); 512 ierr = ISRestoreIndices(inviscol,&cout); CHKERRQ(ierr); 513 ierr = ISDestroy(invisrow); CHKERRQ(ierr); 514 ierr = ISDestroy(inviscol); CHKERRQ(ierr); 515 516 PLogFlops(2*a->nz); 517 return 0; 518 } 519 /* ----------------------------------------------------------------*/ 520 521 #undef __FUNC__ 522 #define __FUNC__ "MatILUFactorSymbolic_SeqAIJ" 523 int MatILUFactorSymbolic_SeqAIJ(Mat A,IS isrow,IS iscol,double f,int levels,Mat *fact) 524 { 525 Mat_SeqAIJ *a = (Mat_SeqAIJ *) A->data, *b; 526 IS isicol; 527 int *r,*ic, ierr, prow, n = a->m, *ai = a->i, *aj = a->j; 528 int *ainew,*ajnew, jmax,*fill, *xi, nz, *im,*ajfill,*flev; 529 int *dloc, idx, row,m,fm, nzf, nzi,len, realloc = 0; 530 int incrlev,nnz,i,shift = a->indexshift; 531 PetscTruth col_identity, row_identity; 532 533 /* special case that simply copies fill pattern */ 534 ISIdentity(isrow,&row_identity); ISIdentity(iscol,&col_identity); 535 if (levels == 0 && row_identity && col_identity) { 536 ierr = MatConvertSameType_SeqAIJ(A,fact,DO_NOT_COPY_VALUES); CHKERRQ(ierr); 537 (*fact)->factor = FACTOR_LU; 538 b = (Mat_SeqAIJ *) (*fact)->data; 539 if (!b->diag) { 540 ierr = MatMarkDiag_SeqAIJ(*fact); CHKERRQ(ierr); 541 } 542 b->row = isrow; 543 b->col = iscol; 544 b->solve_work = (Scalar *) PetscMalloc((b->m+1)*sizeof(Scalar));CHKPTRQ(b->solve_work); 545 return 0; 546 } 547 548 ierr = ISInvertPermutation(iscol,&isicol); CHKERRQ(ierr); 549 ierr = ISGetIndices(isrow,&r); CHKERRQ(ierr); 550 ierr = ISGetIndices(isicol,&ic); CHKERRQ(ierr); 551 552 /* get new row pointers */ 553 ainew = (int *) PetscMalloc( (n+1)*sizeof(int) ); CHKPTRQ(ainew); 554 ainew[0] = -shift; 555 /* don't know how many column pointers are needed so estimate */ 556 jmax = (int) (f*(ai[n]+!shift)); 557 ajnew = (int *) PetscMalloc( (jmax)*sizeof(int) ); CHKPTRQ(ajnew); 558 /* ajfill is level of fill for each fill entry */ 559 ajfill = (int *) PetscMalloc( (jmax)*sizeof(int) ); CHKPTRQ(ajfill); 560 /* fill is a linked list of nonzeros in active row */ 561 fill = (int *) PetscMalloc( (n+1)*sizeof(int)); CHKPTRQ(fill); 562 /* im is level for each filled value */ 563 im = (int *) PetscMalloc( (n+1)*sizeof(int)); CHKPTRQ(im); 564 /* dloc is location of diagonal in factor */ 565 dloc = (int *) PetscMalloc( (n+1)*sizeof(int)); CHKPTRQ(dloc); 566 dloc[0] = 0; 567 for ( prow=0; prow<n; prow++ ) { 568 /* first copy previous fill into linked list */ 569 nzf = nz = ai[r[prow]+1] - ai[r[prow]]; 570 if (!nz) SETERRQ(PETSC_ERR_MAT_LU_ZRPVT,1,"Empty row in matrix"); 571 xi = aj + ai[r[prow]] + shift; 572 fill[n] = n; 573 while (nz--) { 574 fm = n; 575 idx = ic[*xi++ + shift]; 576 do { 577 m = fm; 578 fm = fill[m]; 579 } while (fm < idx); 580 fill[m] = idx; 581 fill[idx] = fm; 582 im[idx] = 0; 583 } 584 nzi = 0; 585 row = fill[n]; 586 while ( row < prow ) { 587 incrlev = im[row] + 1; 588 nz = dloc[row]; 589 xi = ajnew + ainew[row] + shift + nz; 590 flev = ajfill + ainew[row] + shift + nz + 1; 591 nnz = ainew[row+1] - ainew[row] - nz - 1; 592 if (*xi++ + shift != row) { 593 SETERRQ(PETSC_ERR_MAT_LU_ZRPVT,0,"zero pivot"); 594 } 595 fm = row; 596 while (nnz-- > 0) { 597 idx = *xi++ + shift; 598 if (*flev + incrlev > levels) { 599 flev++; 600 continue; 601 } 602 do { 603 m = fm; 604 fm = fill[m]; 605 } while (fm < idx); 606 if (fm != idx) { 607 im[idx] = *flev + incrlev; 608 fill[m] = idx; 609 fill[idx] = fm; 610 fm = idx; 611 nzf++; 612 } 613 else { 614 if (im[idx] > *flev + incrlev) im[idx] = *flev+incrlev; 615 } 616 flev++; 617 } 618 row = fill[row]; 619 nzi++; 620 } 621 /* copy new filled row into permanent storage */ 622 ainew[prow+1] = ainew[prow] + nzf; 623 if (ainew[prow+1] > jmax-shift) { 624 /* allocate a longer ajnew */ 625 int maxadd; 626 maxadd = (int) ((f*(ai[n]+!shift)*(n-prow+5))/n); 627 if (maxadd < nzf) maxadd = (n-prow)*(nzf+1); 628 jmax += maxadd; 629 xi = (int *) PetscMalloc( jmax*sizeof(int) );CHKPTRQ(xi); 630 PetscMemcpy(xi,ajnew,(ainew[prow]+shift)*sizeof(int)); 631 PetscFree(ajnew); 632 ajnew = xi; 633 /* allocate a longer ajfill */ 634 xi = (int *) PetscMalloc( jmax*sizeof(int) );CHKPTRQ(xi); 635 PetscMemcpy(xi,ajfill,(ainew[prow]+shift)*sizeof(int)); 636 PetscFree(ajfill); 637 ajfill = xi; 638 realloc++; 639 } 640 xi = ajnew + ainew[prow] + shift; 641 flev = ajfill + ainew[prow] + shift; 642 dloc[prow] = nzi; 643 fm = fill[n]; 644 while (nzf--) { 645 *xi++ = fm - shift; 646 *flev++ = im[fm]; 647 fm = fill[fm]; 648 } 649 } 650 PetscFree(ajfill); 651 ierr = ISRestoreIndices(isrow,&r); CHKERRQ(ierr); 652 ierr = ISRestoreIndices(isicol,&ic); CHKERRQ(ierr); 653 ierr = ISDestroy(isicol); CHKERRQ(ierr); 654 PetscFree(fill); PetscFree(im); 655 656 { 657 double af = ((double)ainew[n])/((double)ai[n]); 658 PLogInfo(A,"Info:MatILUFactorSymbolic_SeqAIJ:Reallocs %d Fill ratio:given %g needed %g\n", 659 realloc,f,af); 660 af += .01; 661 PLogInfo(A,"Info:MatILUFactorSymbolic_SeqAIJ:Run with -pc_ilu_fill %g or use \n",af); 662 PLogInfo(A,"Info:MatILUFactorSymbolic_SeqAIJ:PCILUSetFill(pc,%g);\n",af); 663 PLogInfo(A,"Info:MatILUFactorSymbolic_SeqAIJ:for best performance.\n"); 664 } 665 666 /* put together the new matrix */ 667 ierr = MatCreateSeqAIJ(A->comm,n,n,0,PETSC_NULL,fact); CHKERRQ(ierr); 668 b = (Mat_SeqAIJ *) (*fact)->data; 669 PetscFree(b->imax); 670 b->singlemalloc = 0; 671 len = (ainew[n] + shift)*sizeof(Scalar); 672 /* the next line frees the default space generated by the Create() */ 673 PetscFree(b->a); PetscFree(b->ilen); 674 b->a = (Scalar *) PetscMalloc( len+1 ); CHKPTRQ(b->a); 675 b->j = ajnew; 676 b->i = ainew; 677 for ( i=0; i<n; i++ ) dloc[i] += ainew[i]; 678 b->diag = dloc; 679 b->ilen = 0; 680 b->imax = 0; 681 b->row = isrow; 682 b->col = iscol; 683 b->solve_work = (Scalar *) PetscMalloc( (n+1)*sizeof(Scalar)); 684 CHKPTRQ(b->solve_work); 685 /* In b structure: Free imax, ilen, old a, old j. 686 Allocate dloc, solve_work, new a, new j */ 687 PLogObjectMemory(*fact,(ainew[n]+shift-n) * (sizeof(int)+sizeof(Scalar))); 688 b->maxnz = b->nz = ainew[n] + shift; 689 (*fact)->factor = FACTOR_LU; 690 691 (*fact)->info.factor_mallocs = realloc; 692 (*fact)->info.fill_ratio_given = f; 693 (*fact)->info.fill_ratio_needed = ((double)ainew[n])/((double)ai[prow]); 694 695 return 0; 696 } 697 698 699 700 701