1 /* 2 Routines for matrix products. Calling procedure: 3 4 MatProductCreate(A,B,C,&D); or MatProductCreateWithMat(A,B,C,D) 5 MatProductSetType(D, MATPRODUCT_AB/AtB/ABt/PtAP/RARt/ABC) 6 MatProductSetAlgorithm(D, alg) 7 MatProductSetFill(D,fill) 8 MatProductSetFromOptions(D) 9 -> MatProductSetFromOptions_Private(D) 10 # Check matrix global sizes 11 if the matrices have the same setfromoptions routine, use it 12 if not, try: 13 -> Query MatProductSetFromOptions_Atype_Btype_Ctype_C(D) from A, B and C (in order) 14 if found -> run the specific setup that must set the symbolic operation (these callbacks should never fail) 15 if callback not found or no symbolic operation set 16 -> Query MatProductSetFromOptions_anytype_C(D) from A, B and C (in order) (e.g, matrices may have inner matrices like MATTRANSPOSEVIRTUAL) 17 if dispatch found but combination still not present do 18 -> check if B is dense and product type AtB or AB -> if true, basic looping of dense columns 19 -> check if triple product (PtAP, RARt or ABC) -> if true, set the Basic routines 20 21 # The setfromoptions calls MatProductSetFromOptions_Atype_Btype_Ctype should 22 # Check matrix local sizes for mpi matrices 23 # Set default algorithm 24 # Get runtime option 25 # Set D->ops->productsymbolic = MatProductSymbolic_productype_Atype_Btype_Ctype if found 26 27 MatProductSymbolic(D) 28 # Call MatProductSymbolic_productype_Atype_Btype_Ctype() 29 the callback must set the numeric phase D->ops->productnumeric = MatProductNumeric_productype_Atype_Btype_Ctype 30 31 MatProductNumeric(D) 32 # Call the numeric phase 33 34 # The symbolic phases are allowed to set extra data structures and attach those to the product 35 # this additional data can be reused between multiple numeric phases with the same matrices 36 # if not needed, call 37 MatProductClear(D) 38 */ 39 40 #include <petsc/private/matimpl.h> /*I "petscmat.h" I*/ 41 42 const char *const MatProductTypes[] = {"UNSPECIFIED", "AB", "AtB", "ABt", "PtAP", "RARt", "ABC"}; 43 44 /* these are basic implementations relying on the old function pointers 45 * they are dangerous and should be removed in the future */ 46 static PetscErrorCode MatProductNumeric_PtAP_Unsafe(Mat C) 47 { 48 Mat_Product *product = C->product; 49 Mat P = product->B, AP = product->Dwork; 50 51 PetscFunctionBegin; 52 /* AP = A*P */ 53 PetscCall(MatProductNumeric(AP)); 54 /* C = P^T*AP */ 55 PetscCall((*C->ops->transposematmultnumeric)(P, AP, C)); 56 PetscFunctionReturn(PETSC_SUCCESS); 57 } 58 59 static PetscErrorCode MatProductSymbolic_PtAP_Unsafe(Mat C) 60 { 61 Mat_Product *product = C->product; 62 Mat A = product->A, P = product->B, AP; 63 PetscReal fill = product->fill; 64 65 PetscFunctionBegin; 66 PetscCall(PetscInfo((PetscObject)C, "for A %s, P %s is used\n", ((PetscObject)product->A)->type_name, ((PetscObject)product->B)->type_name)); 67 /* AP = A*P */ 68 PetscCall(MatProductCreate(A, P, NULL, &AP)); 69 PetscCall(MatProductSetType(AP, MATPRODUCT_AB)); 70 PetscCall(MatProductSetAlgorithm(AP, MATPRODUCTALGORITHMDEFAULT)); 71 PetscCall(MatProductSetFill(AP, fill)); 72 PetscCall(MatProductSetFromOptions(AP)); 73 PetscCall(MatProductSymbolic(AP)); 74 75 /* C = P^T*AP */ 76 PetscCall(MatProductSetType(C, MATPRODUCT_AtB)); 77 PetscCall(MatProductSetAlgorithm(C, MATPRODUCTALGORITHMDEFAULT)); 78 product->A = P; 79 product->B = AP; 80 PetscCall(MatProductSetFromOptions(C)); 81 PetscCall(MatProductSymbolic(C)); 82 83 /* resume user's original input matrix setting for A and B */ 84 product->A = A; 85 product->B = P; 86 product->Dwork = AP; 87 88 C->ops->productnumeric = MatProductNumeric_PtAP_Unsafe; 89 PetscFunctionReturn(PETSC_SUCCESS); 90 } 91 92 static PetscErrorCode MatProductNumeric_RARt_Unsafe(Mat C) 93 { 94 Mat_Product *product = C->product; 95 Mat R = product->B, RA = product->Dwork; 96 97 PetscFunctionBegin; 98 /* RA = R*A */ 99 PetscCall(MatProductNumeric(RA)); 100 /* C = RA*R^T */ 101 PetscCall((*C->ops->mattransposemultnumeric)(RA, R, C)); 102 PetscFunctionReturn(PETSC_SUCCESS); 103 } 104 105 static PetscErrorCode MatProductSymbolic_RARt_Unsafe(Mat C) 106 { 107 Mat_Product *product = C->product; 108 Mat A = product->A, R = product->B, RA; 109 PetscReal fill = product->fill; 110 111 PetscFunctionBegin; 112 PetscCall(PetscInfo((PetscObject)C, "for A %s, R %s is used\n", ((PetscObject)product->A)->type_name, ((PetscObject)product->B)->type_name)); 113 /* RA = R*A */ 114 PetscCall(MatProductCreate(R, A, NULL, &RA)); 115 PetscCall(MatProductSetType(RA, MATPRODUCT_AB)); 116 PetscCall(MatProductSetAlgorithm(RA, MATPRODUCTALGORITHMDEFAULT)); 117 PetscCall(MatProductSetFill(RA, fill)); 118 PetscCall(MatProductSetFromOptions(RA)); 119 PetscCall(MatProductSymbolic(RA)); 120 121 /* C = RA*R^T */ 122 PetscCall(MatProductSetType(C, MATPRODUCT_ABt)); 123 PetscCall(MatProductSetAlgorithm(C, MATPRODUCTALGORITHMDEFAULT)); 124 product->A = RA; 125 PetscCall(MatProductSetFromOptions(C)); 126 PetscCall(MatProductSymbolic(C)); 127 128 /* resume user's original input matrix setting for A */ 129 product->A = A; 130 product->Dwork = RA; /* save here so it will be destroyed with product C */ 131 C->ops->productnumeric = MatProductNumeric_RARt_Unsafe; 132 PetscFunctionReturn(PETSC_SUCCESS); 133 } 134 135 static PetscErrorCode MatProductNumeric_ABC_Unsafe(Mat mat) 136 { 137 Mat_Product *product = mat->product; 138 Mat A = product->A, BC = product->Dwork; 139 140 PetscFunctionBegin; 141 /* Numeric BC = B*C */ 142 PetscCall(MatProductNumeric(BC)); 143 /* Numeric mat = A*BC */ 144 PetscCall((*mat->ops->matmultnumeric)(A, BC, mat)); 145 PetscFunctionReturn(PETSC_SUCCESS); 146 } 147 148 static PetscErrorCode MatProductSymbolic_ABC_Unsafe(Mat mat) 149 { 150 Mat_Product *product = mat->product; 151 Mat B = product->B, C = product->C, BC; 152 PetscReal fill = product->fill; 153 154 PetscFunctionBegin; 155 PetscCall(PetscInfo((PetscObject)mat, "for A %s, B %s, C %s is used\n", ((PetscObject)product->A)->type_name, ((PetscObject)product->B)->type_name, ((PetscObject)product->C)->type_name)); 156 /* Symbolic BC = B*C */ 157 PetscCall(MatProductCreate(B, C, NULL, &BC)); 158 PetscCall(MatProductSetType(BC, MATPRODUCT_AB)); 159 PetscCall(MatProductSetAlgorithm(BC, MATPRODUCTALGORITHMDEFAULT)); 160 PetscCall(MatProductSetFill(BC, fill)); 161 PetscCall(MatProductSetFromOptions(BC)); 162 PetscCall(MatProductSymbolic(BC)); 163 164 /* Symbolic mat = A*BC */ 165 PetscCall(MatProductSetType(mat, MATPRODUCT_AB)); 166 PetscCall(MatProductSetAlgorithm(mat, MATPRODUCTALGORITHMDEFAULT)); 167 product->B = BC; 168 product->Dwork = BC; 169 PetscCall(MatProductSetFromOptions(mat)); 170 PetscCall(MatProductSymbolic(mat)); 171 172 /* resume user's original input matrix setting for B */ 173 product->B = B; 174 mat->ops->productnumeric = MatProductNumeric_ABC_Unsafe; 175 PetscFunctionReturn(PETSC_SUCCESS); 176 } 177 178 static PetscErrorCode MatProductSymbolic_Unsafe(Mat mat) 179 { 180 Mat_Product *product = mat->product; 181 182 PetscFunctionBegin; 183 switch (product->type) { 184 case MATPRODUCT_PtAP: 185 PetscCall(MatProductSymbolic_PtAP_Unsafe(mat)); 186 break; 187 case MATPRODUCT_RARt: 188 PetscCall(MatProductSymbolic_RARt_Unsafe(mat)); 189 break; 190 case MATPRODUCT_ABC: 191 PetscCall(MatProductSymbolic_ABC_Unsafe(mat)); 192 break; 193 default: 194 SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "ProductType %s is not supported", MatProductTypes[product->type]); 195 } 196 PetscFunctionReturn(PETSC_SUCCESS); 197 } 198 199 /*@C 200 MatProductReplaceMats - Replace the input matrices for the matrix-matrix product operation inside the computed matrix 201 202 Collective 203 204 Input Parameters: 205 + A - the matrix or `NULL` if not being replaced 206 . B - the matrix or `NULL` if not being replaced 207 . C - the matrix or `NULL` if not being replaced 208 - D - the matrix whose values are computed via a matrix-matrix product operation 209 210 Level: intermediate 211 212 Note: 213 To reuse the symbolic phase, the input matrices must have exactly the same data structure as the replaced one. 214 If the type of any of the input matrices is different than what was previously used, or their symmetry flag changed but 215 the symbolic phase took advantage of their symmetry, the product is cleared and `MatProductSetFromOptions()` 216 and `MatProductSymbolic()` are invoked again. 217 218 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreate()`, `MatProductSetFromOptions()`, `MatProductSymbolic().` `MatProductClear()` 219 @*/ 220 PetscErrorCode MatProductReplaceMats(Mat A, Mat B, Mat C, Mat D) 221 { 222 Mat_Product *product; 223 PetscBool flgA = PETSC_TRUE, flgB = PETSC_TRUE, flgC = PETSC_TRUE, isset, issym; 224 225 PetscFunctionBegin; 226 PetscValidHeaderSpecific(D, MAT_CLASSID, 4); 227 MatCheckProduct(D, 4); 228 product = D->product; 229 if (A) { 230 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 231 PetscCall(PetscObjectReference((PetscObject)A)); 232 PetscCall(PetscObjectTypeCompare((PetscObject)product->A, ((PetscObject)A)->type_name, &flgA)); 233 PetscCall(MatIsSymmetricKnown(A, &isset, &issym)); 234 if (product->symbolic_used_the_fact_A_is_symmetric && isset && !issym) { /* symbolic was built around a symmetric A, but the new A is not anymore */ 235 flgA = PETSC_FALSE; 236 product->symbolic_used_the_fact_A_is_symmetric = PETSC_FALSE; /* reinit */ 237 } 238 PetscCall(MatDestroy(&product->A)); 239 product->A = A; 240 } 241 if (B) { 242 PetscValidHeaderSpecific(B, MAT_CLASSID, 2); 243 PetscCall(PetscObjectReference((PetscObject)B)); 244 PetscCall(PetscObjectTypeCompare((PetscObject)product->B, ((PetscObject)B)->type_name, &flgB)); 245 PetscCall(MatIsSymmetricKnown(B, &isset, &issym)); 246 if (product->symbolic_used_the_fact_B_is_symmetric && isset && !issym) { 247 flgB = PETSC_FALSE; 248 product->symbolic_used_the_fact_B_is_symmetric = PETSC_FALSE; /* reinit */ 249 } 250 PetscCall(MatDestroy(&product->B)); 251 product->B = B; 252 } 253 if (C) { 254 PetscValidHeaderSpecific(C, MAT_CLASSID, 3); 255 PetscCall(PetscObjectReference((PetscObject)C)); 256 PetscCall(PetscObjectTypeCompare((PetscObject)product->C, ((PetscObject)C)->type_name, &flgC)); 257 PetscCall(MatIsSymmetricKnown(C, &isset, &issym)); 258 if (product->symbolic_used_the_fact_C_is_symmetric && isset && !issym) { 259 flgC = PETSC_FALSE; 260 product->symbolic_used_the_fact_C_is_symmetric = PETSC_FALSE; /* reinit */ 261 } 262 PetscCall(MatDestroy(&product->C)); 263 product->C = C; 264 } 265 /* Any of the replaced mats is of a different type, reset */ 266 if (!flgA || !flgB || !flgC) { 267 if (D->product->destroy) PetscCall((*D->product->destroy)(D->product->data)); 268 D->product->destroy = NULL; 269 D->product->data = NULL; 270 if (D->ops->productnumeric || D->ops->productsymbolic) { 271 PetscCall(MatProductSetFromOptions(D)); 272 PetscCall(MatProductSymbolic(D)); 273 } 274 } 275 PetscFunctionReturn(PETSC_SUCCESS); 276 } 277 278 static PetscErrorCode MatProductNumeric_X_Dense(Mat C) 279 { 280 Mat_Product *product = C->product; 281 Mat A = product->A, B = product->B; 282 PetscInt k, K = B->cmap->N; 283 PetscBool t = PETSC_TRUE, iscuda = PETSC_FALSE; 284 PetscBool Bcpu = PETSC_TRUE, Ccpu = PETSC_TRUE; 285 char *Btype = NULL, *Ctype = NULL; 286 287 PetscFunctionBegin; 288 switch (product->type) { 289 case MATPRODUCT_AB: 290 t = PETSC_FALSE; 291 case MATPRODUCT_AtB: 292 break; 293 default: 294 SETERRQ(PetscObjectComm((PetscObject)C), PETSC_ERR_SUP, "MatProductNumeric type %s not supported for %s and %s matrices", MatProductTypes[product->type], ((PetscObject)A)->type_name, ((PetscObject)B)->type_name); 295 } 296 if (PetscDefined(HAVE_CUDA)) { 297 VecType vtype; 298 299 PetscCall(MatGetVecType(A, &vtype)); 300 PetscCall(PetscStrcmp(vtype, VECCUDA, &iscuda)); 301 if (!iscuda) PetscCall(PetscStrcmp(vtype, VECSEQCUDA, &iscuda)); 302 if (!iscuda) PetscCall(PetscStrcmp(vtype, VECMPICUDA, &iscuda)); 303 if (iscuda) { /* Make sure we have up-to-date data on the GPU */ 304 PetscCall(PetscStrallocpy(((PetscObject)B)->type_name, &Btype)); 305 PetscCall(PetscStrallocpy(((PetscObject)C)->type_name, &Ctype)); 306 PetscCall(MatConvert(B, MATDENSECUDA, MAT_INPLACE_MATRIX, &B)); 307 if (!C->assembled) { /* need to flag the matrix as assembled, otherwise MatConvert will complain */ 308 PetscCall(MatAssemblyBegin(C, MAT_FINAL_ASSEMBLY)); 309 PetscCall(MatAssemblyEnd(C, MAT_FINAL_ASSEMBLY)); 310 } 311 PetscCall(MatConvert(C, MATDENSECUDA, MAT_INPLACE_MATRIX, &C)); 312 } else { /* Make sure we have up-to-date data on the CPU */ 313 #if defined(PETSC_HAVE_CUDA) || defined(PETSC_HAVE_VIENNACL) 314 Bcpu = B->boundtocpu; 315 Ccpu = C->boundtocpu; 316 #endif 317 PetscCall(MatBindToCPU(B, PETSC_TRUE)); 318 PetscCall(MatBindToCPU(C, PETSC_TRUE)); 319 } 320 } 321 for (k = 0; k < K; k++) { 322 Vec x, y; 323 324 PetscCall(MatDenseGetColumnVecRead(B, k, &x)); 325 PetscCall(MatDenseGetColumnVecWrite(C, k, &y)); 326 if (t) { 327 PetscCall(MatMultTranspose(A, x, y)); 328 } else { 329 PetscCall(MatMult(A, x, y)); 330 } 331 PetscCall(MatDenseRestoreColumnVecRead(B, k, &x)); 332 PetscCall(MatDenseRestoreColumnVecWrite(C, k, &y)); 333 } 334 PetscCall(MatAssemblyBegin(C, MAT_FINAL_ASSEMBLY)); 335 PetscCall(MatAssemblyEnd(C, MAT_FINAL_ASSEMBLY)); 336 if (PetscDefined(HAVE_CUDA)) { 337 if (iscuda) { 338 PetscCall(MatConvert(B, Btype, MAT_INPLACE_MATRIX, &B)); 339 PetscCall(MatConvert(C, Ctype, MAT_INPLACE_MATRIX, &C)); 340 } else { 341 PetscCall(MatBindToCPU(B, Bcpu)); 342 PetscCall(MatBindToCPU(C, Ccpu)); 343 } 344 } 345 PetscCall(PetscFree(Btype)); 346 PetscCall(PetscFree(Ctype)); 347 PetscFunctionReturn(PETSC_SUCCESS); 348 } 349 350 static PetscErrorCode MatProductSymbolic_X_Dense(Mat C) 351 { 352 Mat_Product *product = C->product; 353 Mat A = product->A, B = product->B; 354 PetscBool isdense; 355 356 PetscFunctionBegin; 357 switch (product->type) { 358 case MATPRODUCT_AB: 359 PetscCall(MatSetSizes(C, A->rmap->n, B->cmap->n, A->rmap->N, B->cmap->N)); 360 break; 361 case MATPRODUCT_AtB: 362 PetscCall(MatSetSizes(C, A->cmap->n, B->cmap->n, A->cmap->N, B->cmap->N)); 363 break; 364 default: 365 SETERRQ(PetscObjectComm((PetscObject)C), PETSC_ERR_SUP, "MatProductSymbolic type %s not supported for %s and %s matrices", MatProductTypes[product->type], ((PetscObject)A)->type_name, ((PetscObject)B)->type_name); 366 } 367 PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)C, &isdense, MATSEQDENSE, MATMPIDENSE, "")); 368 if (!isdense) { 369 PetscCall(MatSetType(C, ((PetscObject)B)->type_name)); 370 /* If matrix type of C was not set or not dense, we need to reset the pointer */ 371 C->ops->productsymbolic = MatProductSymbolic_X_Dense; 372 } 373 C->ops->productnumeric = MatProductNumeric_X_Dense; 374 PetscCall(MatSetUp(C)); 375 PetscFunctionReturn(PETSC_SUCCESS); 376 } 377 378 /* a single driver to query the dispatching */ 379 static PetscErrorCode MatProductSetFromOptions_Private(Mat mat) 380 { 381 Mat_Product *product = mat->product; 382 PetscInt Am, An, Bm, Bn, Cm, Cn; 383 Mat A = product->A, B = product->B, C = product->C; 384 const char *const Bnames[] = {"B", "R", "P"}; 385 const char *bname; 386 PetscErrorCode (*fA)(Mat); 387 PetscErrorCode (*fB)(Mat); 388 PetscErrorCode (*fC)(Mat); 389 PetscErrorCode (*f)(Mat) = NULL; 390 391 PetscFunctionBegin; 392 mat->ops->productsymbolic = NULL; 393 mat->ops->productnumeric = NULL; 394 if (product->type == MATPRODUCT_UNSPECIFIED) PetscFunctionReturn(PETSC_SUCCESS); 395 PetscCheck(A, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing A mat"); 396 PetscCheck(B, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing B mat"); 397 PetscCheck(product->type != MATPRODUCT_ABC || C, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing C mat"); 398 if (product->type != MATPRODUCT_ABC) C = NULL; /* do not use C if not needed */ 399 if (product->type == MATPRODUCT_RARt) bname = Bnames[1]; 400 else if (product->type == MATPRODUCT_PtAP) bname = Bnames[2]; 401 else bname = Bnames[0]; 402 403 /* Check matrices sizes */ 404 Am = A->rmap->N; 405 An = A->cmap->N; 406 Bm = B->rmap->N; 407 Bn = B->cmap->N; 408 Cm = C ? C->rmap->N : 0; 409 Cn = C ? C->cmap->N : 0; 410 if (product->type == MATPRODUCT_RARt || product->type == MATPRODUCT_ABt) { 411 PetscInt t = Bn; 412 Bn = Bm; 413 Bm = t; 414 } 415 if (product->type == MATPRODUCT_AtB) { 416 PetscInt t = An; 417 An = Am; 418 Am = t; 419 } 420 PetscCheck(An == Bm, PetscObjectComm((PetscObject)mat), PETSC_ERR_ARG_SIZ, "Matrix dimensions of A and %s are incompatible for MatProductType %s: A %" PetscInt_FMT "x%" PetscInt_FMT ", %s %" PetscInt_FMT "x%" PetscInt_FMT, bname, 421 MatProductTypes[product->type], A->rmap->N, A->cmap->N, bname, B->rmap->N, B->cmap->N); 422 PetscCheck(!Cm || Cm == Bn, PetscObjectComm((PetscObject)mat), PETSC_ERR_ARG_SIZ, "Matrix dimensions of B and C are incompatible for MatProductType %s: B %" PetscInt_FMT "x%" PetscInt_FMT ", C %" PetscInt_FMT "x%" PetscInt_FMT, 423 MatProductTypes[product->type], B->rmap->N, B->cmap->N, Cm, Cn); 424 425 fA = A->ops->productsetfromoptions; 426 fB = B->ops->productsetfromoptions; 427 fC = C ? C->ops->productsetfromoptions : fA; 428 if (C) { 429 PetscCall(PetscInfo(mat, "MatProductType %s for A %s, %s %s, C %s\n", MatProductTypes[product->type], ((PetscObject)A)->type_name, bname, ((PetscObject)B)->type_name, ((PetscObject)C)->type_name)); 430 } else { 431 PetscCall(PetscInfo(mat, "MatProductType %s for A %s, %s %s\n", MatProductTypes[product->type], ((PetscObject)A)->type_name, bname, ((PetscObject)B)->type_name)); 432 } 433 if (fA == fB && fA == fC && fA) { 434 PetscCall(PetscInfo(mat, " matching op\n")); 435 PetscCall((*fA)(mat)); 436 } 437 /* We may have found f but it did not succeed */ 438 if (!mat->ops->productsymbolic) { /* query MatProductSetFromOptions_Atype_Btype_Ctype */ 439 char mtypes[256]; 440 PetscCall(PetscStrncpy(mtypes, "MatProductSetFromOptions_", sizeof(mtypes))); 441 PetscCall(PetscStrlcat(mtypes, ((PetscObject)A)->type_name, sizeof(mtypes))); 442 PetscCall(PetscStrlcat(mtypes, "_", sizeof(mtypes))); 443 PetscCall(PetscStrlcat(mtypes, ((PetscObject)B)->type_name, sizeof(mtypes))); 444 if (C) { 445 PetscCall(PetscStrlcat(mtypes, "_", sizeof(mtypes))); 446 PetscCall(PetscStrlcat(mtypes, ((PetscObject)C)->type_name, sizeof(mtypes))); 447 } 448 PetscCall(PetscStrlcat(mtypes, "_C", sizeof(mtypes))); 449 #if defined(__clang__) 450 PETSC_PRAGMA_DIAGNOSTIC_IGNORED_BEGIN("-Wformat-pedantic"); 451 #elif defined(__GNUC__) || defined(__GNUG__) 452 PETSC_PRAGMA_DIAGNOSTIC_IGNORED_BEGIN("-Wformat"); 453 #endif 454 PetscCall(PetscObjectQueryFunction((PetscObject)A, mtypes, &f)); 455 PetscCall(PetscInfo(mat, " querying %s from A? %p\n", mtypes, f)); 456 if (!f) { 457 PetscCall(PetscObjectQueryFunction((PetscObject)B, mtypes, &f)); 458 PetscCall(PetscInfo(mat, " querying %s from %s? %p\n", mtypes, bname, f)); 459 } 460 if (!f && C) { 461 PetscCall(PetscObjectQueryFunction((PetscObject)C, mtypes, &f)); 462 PetscCall(PetscInfo(mat, " querying %s from C? %p\n", mtypes, f)); 463 } 464 if (f) PetscCall((*f)(mat)); 465 466 /* We may have found f but it did not succeed */ 467 /* some matrices (i.e. MATTRANSPOSEVIRTUAL, MATSHELL constructed from MatConvert), knows what to do with their inner matrices */ 468 if (!mat->ops->productsymbolic) { 469 PetscCall(PetscStrncpy(mtypes, "MatProductSetFromOptions_anytype_C", sizeof(mtypes))); 470 PetscCall(PetscObjectQueryFunction((PetscObject)A, mtypes, &f)); 471 PetscCall(PetscInfo(mat, " querying %s from A? %p\n", mtypes, f)); 472 if (!f) { 473 PetscCall(PetscObjectQueryFunction((PetscObject)B, mtypes, &f)); 474 PetscCall(PetscInfo(mat, " querying %s from %s? %p\n", mtypes, bname, f)); 475 } 476 if (!f && C) { 477 PetscCall(PetscObjectQueryFunction((PetscObject)C, mtypes, &f)); 478 PetscCall(PetscInfo(mat, " querying %s from C? %p\n", mtypes, f)); 479 } 480 } 481 if (f) PetscCall((*f)(mat)); 482 } 483 PETSC_PRAGMA_DIAGNOSTIC_IGNORED_END(); 484 /* We may have found f but it did not succeed */ 485 if (!mat->ops->productsymbolic) { 486 /* we can still compute the product if B is of type dense */ 487 if (product->type == MATPRODUCT_AB || product->type == MATPRODUCT_AtB) { 488 PetscBool isdense; 489 490 PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)B, &isdense, MATSEQDENSE, MATMPIDENSE, "")); 491 if (isdense) { 492 mat->ops->productsymbolic = MatProductSymbolic_X_Dense; 493 PetscCall(PetscInfo(mat, " using basic looping over columns of a dense matrix\n")); 494 } 495 } else if (product->type != MATPRODUCT_ABt) { /* use MatProductSymbolic/Numeric_Unsafe() for triple products only */ 496 /* 497 TODO: this should be changed to a proper setfromoptions, not setting the symbolic pointer here, because we do not know if 498 the combination will succeed. In order to be sure, we need MatProductGetProductType to return the type of the result 499 before computing the symbolic phase 500 */ 501 PetscCall(PetscInfo(mat, " symbolic product not supported, using MatProductSymbolic_Unsafe() implementation\n")); 502 mat->ops->productsymbolic = MatProductSymbolic_Unsafe; 503 } 504 } 505 if (!mat->ops->productsymbolic) PetscCall(PetscInfo(mat, " symbolic product is not supported\n")); 506 PetscFunctionReturn(PETSC_SUCCESS); 507 } 508 509 /*@C 510 MatProductSetFromOptions - Sets the options for the computation of a matrix-matrix product operation where the type, 511 the algorithm etc are determined from the options database. 512 513 Logically Collective 514 515 Input Parameter: 516 . mat - the matrix whose values are computed via a matrix-matrix product operation 517 518 Options Database Keys: 519 + -mat_product_clear - Clear intermediate data structures after `MatProductNumeric()` has been called 520 . -mat_product_algorithm <algorithm> - Sets the algorithm, see `MatProductAlgorithm` for possible values 521 - -mat_product_algorithm_backend_cpu - Use the CPU to perform the computation even if the matrix is a GPU matrix 522 523 Level: intermediate 524 525 Note: 526 The `-mat_product_clear` option reduces memory usage but means that the matrix cannot be re-used for a matrix-matrix product operation 527 528 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatSetFromOptions()`, `MatProductCreate()`, `MatProductCreateWithMat()`, `MatProductNumeric()`, 529 `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductAlgorithm` 530 @*/ 531 PetscErrorCode MatProductSetFromOptions(Mat mat) 532 { 533 PetscFunctionBegin; 534 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 535 MatCheckProduct(mat, 1); 536 PetscCheck(!mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_ORDER, "Cannot call MatProductSetFromOptions with already present data"); 537 PetscObjectOptionsBegin((PetscObject)mat); 538 PetscCall(PetscOptionsBool("-mat_product_clear", "Clear intermediate data structures after MatProductNumeric() has been called", "MatProductClear", mat->product->clear, &mat->product->clear, NULL)); 539 PetscCall(PetscOptionsDeprecated("-mat_freeintermediatedatastructures", "-mat_product_clear", "3.13", "Or call MatProductClear() after MatProductNumeric()")); 540 PetscOptionsEnd(); 541 PetscCall(MatProductSetFromOptions_Private(mat)); 542 PetscCheck(mat->product, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing product after setup phase"); 543 PetscFunctionReturn(PETSC_SUCCESS); 544 } 545 546 /*@C 547 MatProductView - View the private matrix-matrix algorithm object within a matrix 548 549 Logically Collective 550 551 Input Parameters: 552 + mat - the matrix obtained with `MatProductCreate()` or `MatProductCreateWithMat()` 553 - viewer - where the information on the matrix-matrix algorithm of `mat` should be reviewed 554 555 Level: intermediate 556 557 .seealso: [](chapter_matrices), `MatProductType`, `Mat`, `MatProductSetFromOptions()`, `MatView()`, `MatProductCreate()`, `MatProductCreateWithMat()` 558 @*/ 559 PetscErrorCode MatProductView(Mat mat, PetscViewer viewer) 560 { 561 PetscFunctionBegin; 562 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 563 if (!mat->product) PetscFunctionReturn(PETSC_SUCCESS); 564 if (!viewer) PetscCall(PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)mat), &viewer)); 565 PetscValidHeaderSpecific(viewer, PETSC_VIEWER_CLASSID, 2); 566 PetscCheckSameComm(mat, 1, viewer, 2); 567 if (mat->product->view) PetscCall((*mat->product->view)(mat, viewer)); 568 PetscFunctionReturn(PETSC_SUCCESS); 569 } 570 571 /* these are basic implementations relying on the old function pointers 572 * they are dangerous and should be removed in the future */ 573 PetscErrorCode MatProductNumeric_AB(Mat mat) 574 { 575 Mat_Product *product = mat->product; 576 Mat A = product->A, B = product->B; 577 578 PetscFunctionBegin; 579 PetscCall((*mat->ops->matmultnumeric)(A, B, mat)); 580 PetscFunctionReturn(PETSC_SUCCESS); 581 } 582 583 PetscErrorCode MatProductNumeric_AtB(Mat mat) 584 { 585 Mat_Product *product = mat->product; 586 Mat A = product->A, B = product->B; 587 588 PetscFunctionBegin; 589 PetscCall((*mat->ops->transposematmultnumeric)(A, B, mat)); 590 PetscFunctionReturn(PETSC_SUCCESS); 591 } 592 593 PetscErrorCode MatProductNumeric_ABt(Mat mat) 594 { 595 Mat_Product *product = mat->product; 596 Mat A = product->A, B = product->B; 597 598 PetscFunctionBegin; 599 PetscCall((*mat->ops->mattransposemultnumeric)(A, B, mat)); 600 PetscFunctionReturn(PETSC_SUCCESS); 601 } 602 603 PetscErrorCode MatProductNumeric_PtAP(Mat mat) 604 { 605 Mat_Product *product = mat->product; 606 Mat A = product->A, B = product->B; 607 608 PetscFunctionBegin; 609 PetscCall((*mat->ops->ptapnumeric)(A, B, mat)); 610 PetscFunctionReturn(PETSC_SUCCESS); 611 } 612 613 PetscErrorCode MatProductNumeric_RARt(Mat mat) 614 { 615 Mat_Product *product = mat->product; 616 Mat A = product->A, B = product->B; 617 618 PetscFunctionBegin; 619 PetscCall((*mat->ops->rartnumeric)(A, B, mat)); 620 PetscFunctionReturn(PETSC_SUCCESS); 621 } 622 623 PetscErrorCode MatProductNumeric_ABC(Mat mat) 624 { 625 Mat_Product *product = mat->product; 626 Mat A = product->A, B = product->B, C = product->C; 627 628 PetscFunctionBegin; 629 PetscCall((*mat->ops->matmatmultnumeric)(A, B, C, mat)); 630 PetscFunctionReturn(PETSC_SUCCESS); 631 } 632 633 /*@ 634 MatProductNumeric - Compute a matrix-matrix product operation with the numerical values 635 636 Collective 637 638 Input/Output Parameter: 639 . mat - the matrix whose values are computed via a matrix-matrix product operation 640 641 Level: intermediate 642 643 Note: 644 `MatProductSymbolic()` must have been called on `mat` before calling this function 645 646 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductSetAlgorithm()`, `MatProductSetType()`, `MatProductCreate()`, `MatSetType()`, `MatProductSymbolic()` 647 @*/ 648 PetscErrorCode MatProductNumeric(Mat mat) 649 { 650 #if defined(PETSC_USE_LOG) 651 PetscLogEvent eventtype = -1; 652 #endif 653 PetscBool missing = PETSC_FALSE; 654 655 PetscFunctionBegin; 656 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 657 MatCheckProduct(mat, 1); 658 #if defined(PETSC_USE_LOG) 659 switch (mat->product->type) { 660 case MATPRODUCT_AB: 661 eventtype = MAT_MatMultNumeric; 662 break; 663 case MATPRODUCT_AtB: 664 eventtype = MAT_TransposeMatMultNumeric; 665 break; 666 case MATPRODUCT_ABt: 667 eventtype = MAT_MatTransposeMultNumeric; 668 break; 669 case MATPRODUCT_PtAP: 670 eventtype = MAT_PtAPNumeric; 671 break; 672 case MATPRODUCT_RARt: 673 eventtype = MAT_RARtNumeric; 674 break; 675 case MATPRODUCT_ABC: 676 eventtype = MAT_MatMatMultNumeric; 677 break; 678 default: 679 SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "ProductType %s is not supported", MatProductTypes[mat->product->type]); 680 } 681 #endif 682 683 if (mat->ops->productnumeric) { 684 PetscCall(PetscLogEventBegin(eventtype, mat, 0, 0, 0)); 685 PetscUseTypeMethod(mat, productnumeric); 686 PetscCall(PetscLogEventEnd(eventtype, mat, 0, 0, 0)); 687 } else missing = PETSC_TRUE; 688 689 if (missing || !mat->product) { 690 char errstr[256]; 691 692 if (mat->product->type == MATPRODUCT_ABC) { 693 PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s, C %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name, ((PetscObject)mat->product->C)->type_name)); 694 } else { 695 PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name)); 696 } 697 PetscCheck(!missing, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Unspecified numeric phase for product %s", errstr); 698 PetscCheck(mat->product, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing struct after symbolic phase for product %s", errstr); 699 } 700 701 if (mat->product->clear) PetscCall(MatProductClear(mat)); 702 PetscCall(PetscObjectStateIncrease((PetscObject)mat)); 703 PetscFunctionReturn(PETSC_SUCCESS); 704 } 705 706 /* these are basic implementations relying on the old function pointers 707 * they are dangerous and should be removed in the future */ 708 PetscErrorCode MatProductSymbolic_AB(Mat mat) 709 { 710 Mat_Product *product = mat->product; 711 Mat A = product->A, B = product->B; 712 713 PetscFunctionBegin; 714 PetscCall((*mat->ops->matmultsymbolic)(A, B, product->fill, mat)); 715 mat->ops->productnumeric = MatProductNumeric_AB; 716 PetscFunctionReturn(PETSC_SUCCESS); 717 } 718 719 PetscErrorCode MatProductSymbolic_AtB(Mat mat) 720 { 721 Mat_Product *product = mat->product; 722 Mat A = product->A, B = product->B; 723 724 PetscFunctionBegin; 725 PetscCall((*mat->ops->transposematmultsymbolic)(A, B, product->fill, mat)); 726 mat->ops->productnumeric = MatProductNumeric_AtB; 727 PetscFunctionReturn(PETSC_SUCCESS); 728 } 729 730 PetscErrorCode MatProductSymbolic_ABt(Mat mat) 731 { 732 Mat_Product *product = mat->product; 733 Mat A = product->A, B = product->B; 734 735 PetscFunctionBegin; 736 PetscCall((*mat->ops->mattransposemultsymbolic)(A, B, product->fill, mat)); 737 mat->ops->productnumeric = MatProductNumeric_ABt; 738 PetscFunctionReturn(PETSC_SUCCESS); 739 } 740 741 PetscErrorCode MatProductSymbolic_ABC(Mat mat) 742 { 743 Mat_Product *product = mat->product; 744 Mat A = product->A, B = product->B, C = product->C; 745 746 PetscFunctionBegin; 747 PetscCall((*mat->ops->matmatmultsymbolic)(A, B, C, product->fill, mat)); 748 mat->ops->productnumeric = MatProductNumeric_ABC; 749 PetscFunctionReturn(PETSC_SUCCESS); 750 } 751 752 /*@ 753 MatProductSymbolic - Perform the symbolic portion of a matrix-matrix product operation, this creates a data structure for use with the numerical 754 product to be done with `MatProductNumeric()` 755 756 Collective 757 758 Input/Output Parameter: 759 . mat - the matrix whose values are to be computed via a matrix-matrix product operation 760 761 Level: intermediate 762 763 Note: 764 `MatProductSetFromOptions()` must have been called on `mat` before calling this function 765 766 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreate()`, `MatProductCreateWithMat()`, `MatProductSetFromOptions()`, `MatProductNumeric()`, `MatProductSetType()`, `MatProductSetAlgorithm()` 767 @*/ 768 PetscErrorCode MatProductSymbolic(Mat mat) 769 { 770 #if defined(PETSC_USE_LOG) 771 PetscLogEvent eventtype = -1; 772 #endif 773 PetscBool missing = PETSC_FALSE; 774 775 PetscFunctionBegin; 776 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 777 MatCheckProduct(mat, 1); 778 PetscCheck(!mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_ORDER, "Cannot run symbolic phase. Product data not empty"); 779 #if defined(PETSC_USE_LOG) 780 switch (mat->product->type) { 781 case MATPRODUCT_AB: 782 eventtype = MAT_MatMultSymbolic; 783 break; 784 case MATPRODUCT_AtB: 785 eventtype = MAT_TransposeMatMultSymbolic; 786 break; 787 case MATPRODUCT_ABt: 788 eventtype = MAT_MatTransposeMultSymbolic; 789 break; 790 case MATPRODUCT_PtAP: 791 eventtype = MAT_PtAPSymbolic; 792 break; 793 case MATPRODUCT_RARt: 794 eventtype = MAT_RARtSymbolic; 795 break; 796 case MATPRODUCT_ABC: 797 eventtype = MAT_MatMatMultSymbolic; 798 break; 799 default: 800 SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "ProductType %s is not supported", MatProductTypes[mat->product->type]); 801 } 802 #endif 803 mat->ops->productnumeric = NULL; 804 if (mat->ops->productsymbolic) { 805 PetscCall(PetscLogEventBegin(eventtype, mat, 0, 0, 0)); 806 PetscUseTypeMethod(mat, productsymbolic); 807 PetscCall(PetscLogEventEnd(eventtype, mat, 0, 0, 0)); 808 } else missing = PETSC_TRUE; 809 810 if (missing || !mat->product || !mat->ops->productnumeric) { 811 char errstr[256]; 812 813 if (mat->product->type == MATPRODUCT_ABC) { 814 PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s, C %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name, ((PetscObject)mat->product->C)->type_name)); 815 } else { 816 PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name)); 817 } 818 PetscCheck(!missing, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Unspecified symbolic phase for product %s. Call MatProductSetFromOptions() first", errstr); 819 PetscCheck(mat->product, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing struct after symbolic phase for product %s", errstr); 820 } 821 PetscFunctionReturn(PETSC_SUCCESS); 822 } 823 824 /*@ 825 MatProductSetFill - Set an expected fill of the matrix whose values are computed via a matrix-matrix product operation 826 827 Collective 828 829 Input Parameters: 830 + mat - the matrix whose values are to be computed via a matrix-matrix product operation 831 - fill - expected fill as ratio of nnz(mat)/(nnz(A) + nnz(B) + nnz(C)); use `PETSC_DEFAULT` if you do not have a good estimate. 832 If the product is a dense matrix, this value is not used. 833 834 Level: intermediate 835 836 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductSetFromOptions()`, `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductCreate()` 837 @*/ 838 PetscErrorCode MatProductSetFill(Mat mat, PetscReal fill) 839 { 840 PetscFunctionBegin; 841 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 842 MatCheckProduct(mat, 1); 843 if (fill == (PetscReal)PETSC_DEFAULT || fill == (PetscReal)PETSC_DECIDE) mat->product->fill = 2.0; 844 else mat->product->fill = fill; 845 PetscFunctionReturn(PETSC_SUCCESS); 846 } 847 848 /*@ 849 MatProductSetAlgorithm - Requests a particular algorithm for a matrix-matrix product operation that will perform to compute the given matrix 850 851 Collective 852 853 Input Parameters: 854 + mat - the matrix whose values are computed via a matrix-matrix product operation 855 - alg - particular implementation algorithm of the matrix product, e.g., `MATPRODUCTALGORITHMDEFAULT`. 856 857 Options Database Key: 858 . -mat_product_algorithm <algorithm> - Sets the algorithm, see `MatProductAlgorithm` 859 860 Level: intermediate 861 862 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductClear()`, `MatProductSetType()`, `MatProductSetFill()`, `MatProductCreate()`, `MatProductAlgorithm`, `MatProductType` 863 @*/ 864 PetscErrorCode MatProductSetAlgorithm(Mat mat, MatProductAlgorithm alg) 865 { 866 PetscFunctionBegin; 867 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 868 MatCheckProduct(mat, 1); 869 PetscCall(PetscFree(mat->product->alg)); 870 PetscCall(PetscStrallocpy(alg, &mat->product->alg)); 871 PetscFunctionReturn(PETSC_SUCCESS); 872 } 873 874 /*@ 875 MatProductSetType - Sets a particular matrix-matrix product operation to be used to compute the values of the given matrix 876 877 Collective 878 879 Input Parameters: 880 + mat - the matrix whose values are computed via a matrix-matrix product operation 881 - productype - matrix product type, e.g., `MATPRODUCT_AB`,`MATPRODUCT_AtB`,`MATPRODUCT_ABt`,`MATPRODUCT_PtAP`,`MATPRODUCT_RARt`,`MATPRODUCT_ABC`, 882 see `MatProductType` 883 884 Level: intermediate 885 886 Note: 887 The small t represents the transpose operation. 888 889 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreate()`, `MatProductType`, `MatProductType`, 890 `MATPRODUCT_AB`, `MATPRODUCT_AtB`, `MATPRODUCT_ABt`, `MATPRODUCT_PtAP`, `MATPRODUCT_RARt`, `MATPRODUCT_ABC` 891 @*/ 892 PetscErrorCode MatProductSetType(Mat mat, MatProductType productype) 893 { 894 PetscFunctionBegin; 895 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 896 MatCheckProduct(mat, 1); 897 PetscValidLogicalCollectiveEnum(mat, productype, 2); 898 if (productype != mat->product->type) { 899 if (mat->product->destroy) PetscCall((*mat->product->destroy)(mat->product->data)); 900 mat->product->destroy = NULL; 901 mat->product->data = NULL; 902 mat->ops->productsymbolic = NULL; 903 mat->ops->productnumeric = NULL; 904 } 905 mat->product->type = productype; 906 PetscFunctionReturn(PETSC_SUCCESS); 907 } 908 909 /*@ 910 MatProductClear - Clears from the matrix any internal data structures related to the computation of the values of the matrix from matrix-matrix product operations 911 912 Collective 913 914 Input Parameters: 915 . mat - the matrix whose values are to be computed via a matrix-matrix product operation 916 917 Options Database Key: 918 . -mat_product_clear - Clear intermediate data structures after `MatProductNumeric()` has been called 919 920 Level: intermediate 921 922 Notes: 923 This function should be called to remove any intermediate data used to compute the matrix to free up memory. 924 925 After having called this function, matrix-matrix product operations can no longer be used on `mat` 926 927 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreate()` 928 @*/ 929 PetscErrorCode MatProductClear(Mat mat) 930 { 931 Mat_Product *product = mat->product; 932 933 PetscFunctionBegin; 934 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 935 if (product) { 936 PetscCall(MatDestroy(&product->A)); 937 PetscCall(MatDestroy(&product->B)); 938 PetscCall(MatDestroy(&product->C)); 939 PetscCall(PetscFree(product->alg)); 940 PetscCall(MatDestroy(&product->Dwork)); 941 if (product->destroy) PetscCall((*product->destroy)(product->data)); 942 } 943 PetscCall(PetscFree(mat->product)); 944 mat->ops->productsymbolic = NULL; 945 mat->ops->productnumeric = NULL; 946 PetscFunctionReturn(PETSC_SUCCESS); 947 } 948 949 /* Create a supporting struct and attach it to the matrix product */ 950 PetscErrorCode MatProductCreate_Private(Mat A, Mat B, Mat C, Mat D) 951 { 952 Mat_Product *product = NULL; 953 954 PetscFunctionBegin; 955 PetscValidHeaderSpecific(D, MAT_CLASSID, 4); 956 PetscCheck(!D->product, PetscObjectComm((PetscObject)D), PETSC_ERR_PLIB, "Product already present"); 957 PetscCall(PetscNew(&product)); 958 product->A = A; 959 product->B = B; 960 product->C = C; 961 product->type = MATPRODUCT_UNSPECIFIED; 962 product->Dwork = NULL; 963 product->api_user = PETSC_FALSE; 964 product->clear = PETSC_FALSE; 965 D->product = product; 966 967 PetscCall(MatProductSetAlgorithm(D, MATPRODUCTALGORITHMDEFAULT)); 968 PetscCall(MatProductSetFill(D, PETSC_DEFAULT)); 969 970 PetscCall(PetscObjectReference((PetscObject)A)); 971 PetscCall(PetscObjectReference((PetscObject)B)); 972 PetscCall(PetscObjectReference((PetscObject)C)); 973 PetscFunctionReturn(PETSC_SUCCESS); 974 } 975 976 /*@ 977 MatProductCreateWithMat - Set a given matrix to have its values computed via matrix-matrix operations on other matrices. 978 979 Collective 980 981 Input Parameters: 982 + A - the first matrix 983 . B - the second matrix 984 . C - the third matrix (optional, use `NULL` if not needed) 985 - D - the matrix whose values are to be computed via a matrix-matrix product operation 986 987 Level: intermediate 988 989 Notes: 990 Use `MatProductCreate()` if the matrix you wish computed (the `D` matrix) does not already exist 991 992 See `MatProductCreate()` for details on the usage of the matrix-matrix product operations 993 994 Any product data currently attached to `D` will be cleared 995 996 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductType`, `MatProductSetType()`, `MatProductAlgorithm`, 997 `MatProductSetAlgorithm`, `MatProductCreate()`, `MatProductClear()` 998 @*/ 999 PetscErrorCode MatProductCreateWithMat(Mat A, Mat B, Mat C, Mat D) 1000 { 1001 PetscFunctionBegin; 1002 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 1003 PetscValidType(A, 1); 1004 MatCheckPreallocated(A, 1); 1005 PetscCheck(A->assembled, PetscObjectComm((PetscObject)A), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix"); 1006 PetscCheck(!A->factortype, PetscObjectComm((PetscObject)A), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix"); 1007 1008 PetscValidHeaderSpecific(B, MAT_CLASSID, 2); 1009 PetscValidType(B, 2); 1010 MatCheckPreallocated(B, 2); 1011 PetscCheck(B->assembled, PetscObjectComm((PetscObject)B), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix"); 1012 PetscCheck(!B->factortype, PetscObjectComm((PetscObject)B), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix"); 1013 1014 if (C) { 1015 PetscValidHeaderSpecific(C, MAT_CLASSID, 3); 1016 PetscValidType(C, 3); 1017 MatCheckPreallocated(C, 3); 1018 PetscCheck(C->assembled, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix"); 1019 PetscCheck(!C->factortype, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix"); 1020 } 1021 1022 PetscValidHeaderSpecific(D, MAT_CLASSID, 4); 1023 PetscValidType(D, 4); 1024 MatCheckPreallocated(D, 4); 1025 PetscCheck(D->assembled, PetscObjectComm((PetscObject)D), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix"); 1026 PetscCheck(!D->factortype, PetscObjectComm((PetscObject)D), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix"); 1027 1028 /* Create a supporting struct and attach it to D */ 1029 PetscCall(MatProductClear(D)); 1030 PetscCall(MatProductCreate_Private(A, B, C, D)); 1031 PetscFunctionReturn(PETSC_SUCCESS); 1032 } 1033 1034 /*@ 1035 MatProductCreate - create a matrix to hold the result of a matrix-matrix product operation 1036 1037 Collective 1038 1039 Input Parameters: 1040 + A - the first matrix 1041 . B - the second matrix 1042 - C - the third matrix (or `NULL`) 1043 1044 Output Parameters: 1045 . D - the matrix whose values are to be computed via a matrix-matrix product operation 1046 1047 Level: intermediate 1048 1049 Example: 1050 .vb 1051 MatProductCreate(A,B,C,&D); or MatProductCreateWithMat(A,B,C,D) 1052 MatProductSetType(D, MATPRODUCT_AB or MATPRODUCT_AtB or MATPRODUCT_ABt or MATPRODUCT_PtAP or MATPRODUCT_RARt or MATPRODUCT_ABC) 1053 MatProductSetAlgorithm(D, alg) 1054 MatProductSetFill(D,fill) 1055 MatProductSetFromOptions(D) 1056 MatProductSymbolic(D) 1057 MatProductNumeric(D) 1058 Change numerical values in some of the matrices 1059 MatProductNumeric(D) 1060 .ve 1061 1062 Notes: 1063 Use `MatProductCreateWithMat()` if the matrix you wish computed, the `D` matrix, already exists. 1064 1065 The information computed during the symbolic stage can be reused for new numerical computations with the same non-zero structure 1066 1067 Developer Note: 1068 It is undocumented what happens if the nonzero structure of the input matrices changes. Is the symbolic stage automatically redone? Does it crash? 1069 Is there error checking for it? 1070 1071 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreateWithMat()`, `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductClear()` 1072 @*/ 1073 PetscErrorCode MatProductCreate(Mat A, Mat B, Mat C, Mat *D) 1074 { 1075 PetscFunctionBegin; 1076 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 1077 PetscValidType(A, 1); 1078 PetscValidHeaderSpecific(B, MAT_CLASSID, 2); 1079 PetscValidType(B, 2); 1080 PetscCheck(!A->factortype, PetscObjectComm((PetscObject)A), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix A"); 1081 PetscCheck(!B->factortype, PetscObjectComm((PetscObject)B), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix B"); 1082 1083 if (C) { 1084 PetscValidHeaderSpecific(C, MAT_CLASSID, 3); 1085 PetscValidType(C, 3); 1086 PetscCheck(!C->factortype, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix C"); 1087 } 1088 1089 PetscValidPointer(D, 4); 1090 PetscCall(MatCreate(PetscObjectComm((PetscObject)A), D)); 1091 /* Delay setting type of D to the MatProduct symbolic phase, as we allow sparse A and dense B */ 1092 PetscCall(MatProductCreate_Private(A, B, C, *D)); 1093 PetscFunctionReturn(PETSC_SUCCESS); 1094 } 1095 1096 /* 1097 These are safe basic implementations of ABC, RARt and PtAP 1098 that do not rely on mat->ops->matmatop function pointers. 1099 They only use the MatProduct API and are currently used by 1100 cuSPARSE and KOKKOS-KERNELS backends 1101 */ 1102 typedef struct { 1103 Mat BC; 1104 Mat ABC; 1105 } MatMatMatPrivate; 1106 1107 static PetscErrorCode MatDestroy_MatMatMatPrivate(void *data) 1108 { 1109 MatMatMatPrivate *mmdata = (MatMatMatPrivate *)data; 1110 1111 PetscFunctionBegin; 1112 PetscCall(MatDestroy(&mmdata->BC)); 1113 PetscCall(MatDestroy(&mmdata->ABC)); 1114 PetscCall(PetscFree(data)); 1115 PetscFunctionReturn(PETSC_SUCCESS); 1116 } 1117 1118 static PetscErrorCode MatProductNumeric_ABC_Basic(Mat mat) 1119 { 1120 Mat_Product *product = mat->product; 1121 MatMatMatPrivate *mmabc; 1122 1123 PetscFunctionBegin; 1124 MatCheckProduct(mat, 1); 1125 PetscCheck(mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Product data empty"); 1126 mmabc = (MatMatMatPrivate *)mat->product->data; 1127 PetscCheck(mmabc->BC->ops->productnumeric, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing numeric stage"); 1128 /* use function pointer directly to prevent logging */ 1129 PetscCall((*mmabc->BC->ops->productnumeric)(mmabc->BC)); 1130 /* swap ABC product stuff with that of ABC for the numeric phase on mat */ 1131 mat->product = mmabc->ABC->product; 1132 mat->ops->productnumeric = mmabc->ABC->ops->productnumeric; 1133 /* use function pointer directly to prevent logging */ 1134 PetscUseTypeMethod(mat, productnumeric); 1135 mat->ops->productnumeric = MatProductNumeric_ABC_Basic; 1136 mat->product = product; 1137 PetscFunctionReturn(PETSC_SUCCESS); 1138 } 1139 1140 PetscErrorCode MatProductSymbolic_ABC_Basic(Mat mat) 1141 { 1142 Mat_Product *product = mat->product; 1143 Mat A, B, C; 1144 MatProductType p1, p2; 1145 MatMatMatPrivate *mmabc; 1146 const char *prefix; 1147 1148 PetscFunctionBegin; 1149 MatCheckProduct(mat, 1); 1150 PetscCheck(!mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Product data not empty"); 1151 PetscCall(MatGetOptionsPrefix(mat, &prefix)); 1152 PetscCall(PetscNew(&mmabc)); 1153 product->data = mmabc; 1154 product->destroy = MatDestroy_MatMatMatPrivate; 1155 switch (product->type) { 1156 case MATPRODUCT_PtAP: 1157 p1 = MATPRODUCT_AB; 1158 p2 = MATPRODUCT_AtB; 1159 A = product->B; 1160 B = product->A; 1161 C = product->B; 1162 break; 1163 case MATPRODUCT_RARt: 1164 p1 = MATPRODUCT_ABt; 1165 p2 = MATPRODUCT_AB; 1166 A = product->B; 1167 B = product->A; 1168 C = product->B; 1169 break; 1170 case MATPRODUCT_ABC: 1171 p1 = MATPRODUCT_AB; 1172 p2 = MATPRODUCT_AB; 1173 A = product->A; 1174 B = product->B; 1175 C = product->C; 1176 break; 1177 default: 1178 SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Not for ProductType %s", MatProductTypes[product->type]); 1179 } 1180 PetscCall(MatProductCreate(B, C, NULL, &mmabc->BC)); 1181 PetscCall(MatSetOptionsPrefix(mmabc->BC, prefix)); 1182 PetscCall(MatAppendOptionsPrefix(mmabc->BC, "P1_")); 1183 PetscCall(MatProductSetType(mmabc->BC, p1)); 1184 PetscCall(MatProductSetAlgorithm(mmabc->BC, MATPRODUCTALGORITHMDEFAULT)); 1185 PetscCall(MatProductSetFill(mmabc->BC, product->fill)); 1186 mmabc->BC->product->api_user = product->api_user; 1187 PetscCall(MatProductSetFromOptions(mmabc->BC)); 1188 PetscCheck(mmabc->BC->ops->productsymbolic, PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "Symbolic ProductType %s not supported with %s and %s", MatProductTypes[p1], ((PetscObject)B)->type_name, ((PetscObject)C)->type_name); 1189 /* use function pointer directly to prevent logging */ 1190 PetscCall((*mmabc->BC->ops->productsymbolic)(mmabc->BC)); 1191 1192 PetscCall(MatProductCreate(A, mmabc->BC, NULL, &mmabc->ABC)); 1193 PetscCall(MatSetOptionsPrefix(mmabc->ABC, prefix)); 1194 PetscCall(MatAppendOptionsPrefix(mmabc->ABC, "P2_")); 1195 PetscCall(MatProductSetType(mmabc->ABC, p2)); 1196 PetscCall(MatProductSetAlgorithm(mmabc->ABC, MATPRODUCTALGORITHMDEFAULT)); 1197 PetscCall(MatProductSetFill(mmabc->ABC, product->fill)); 1198 mmabc->ABC->product->api_user = product->api_user; 1199 PetscCall(MatProductSetFromOptions(mmabc->ABC)); 1200 PetscCheck(mmabc->ABC->ops->productsymbolic, PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "Symbolic ProductType %s not supported with %s and %s", MatProductTypes[p2], ((PetscObject)A)->type_name, ((PetscObject)mmabc->BC)->type_name); 1201 /* swap ABC product stuff with that of ABC for the symbolic phase on mat */ 1202 mat->product = mmabc->ABC->product; 1203 mat->ops->productsymbolic = mmabc->ABC->ops->productsymbolic; 1204 /* use function pointer directly to prevent logging */ 1205 PetscUseTypeMethod(mat, productsymbolic); 1206 mmabc->ABC->ops->productnumeric = mat->ops->productnumeric; 1207 mat->ops->productsymbolic = MatProductSymbolic_ABC_Basic; 1208 mat->ops->productnumeric = MatProductNumeric_ABC_Basic; 1209 mat->product = product; 1210 PetscFunctionReturn(PETSC_SUCCESS); 1211 } 1212 1213 /*@ 1214 MatProductGetType - Returns the type of matrix-matrix product associated with computing values for the given matrix 1215 1216 Not Collective 1217 1218 Input Parameter: 1219 . mat - the matrix whose values are to be computed via a matrix-matrix product operation 1220 1221 Output Parameter: 1222 . mtype - the `MatProductType` 1223 1224 Level: intermediate 1225 1226 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreateWithMat()`, `MatProductSetType()`, `MatProductCreate()`, `MatProductType`, `MatProductAlgorithm` 1227 @*/ 1228 PetscErrorCode MatProductGetType(Mat mat, MatProductType *mtype) 1229 { 1230 PetscFunctionBegin; 1231 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 1232 PetscValidPointer(mtype, 2); 1233 *mtype = MATPRODUCT_UNSPECIFIED; 1234 if (mat->product) *mtype = mat->product->type; 1235 PetscFunctionReturn(PETSC_SUCCESS); 1236 } 1237 1238 /*@ 1239 MatProductGetMats - Returns the matrices associated with the matrix-matrix product associated with computing values for the given matrix 1240 1241 Not Collective 1242 1243 Input Parameter: 1244 . mat - the matrix whose values are to be computed via a matrix-matrix product operation 1245 1246 Output Parameters: 1247 + A - the first matrix 1248 . B - the second matrix 1249 - C - the third matrix (may be `NULL` for some `MatProductType`) 1250 1251 Level: intermediate 1252 1253 .seealso: [](chapter_matrices), `MatProduct`, `Mat`, `MatProductCreateWithMat()`, `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductCreate()` 1254 @*/ 1255 PetscErrorCode MatProductGetMats(Mat mat, Mat *A, Mat *B, Mat *C) 1256 { 1257 PetscFunctionBegin; 1258 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 1259 if (A) *A = mat->product ? mat->product->A : NULL; 1260 if (B) *B = mat->product ? mat->product->B : NULL; 1261 if (C) *C = mat->product ? mat->product->C : NULL; 1262 PetscFunctionReturn(PETSC_SUCCESS); 1263 } 1264