1 #include <petsc/private/matimpl.h> /*I "petscmat.h" I*/ 2 3 #include <../src/mat/impls/aij/seq/aij.h> 4 #include <../src/mat/impls/aij/mpi/mpiaij.h> 5 6 PetscErrorCode MatSetBlockSizes_Default(Mat mat, PetscInt rbs, PetscInt cbs) 7 { 8 PetscFunctionBegin; 9 if (!mat->preallocated) PetscFunctionReturn(PETSC_SUCCESS); 10 PetscCheck(mat->rmap->bs <= 0 || mat->rmap->bs == rbs, PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "Cannot change row block size %" PetscInt_FMT " to %" PetscInt_FMT, mat->rmap->bs, rbs); 11 PetscCheck(mat->cmap->bs <= 0 || mat->cmap->bs == cbs, PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "Cannot change column block size %" PetscInt_FMT " to %" PetscInt_FMT, mat->cmap->bs, cbs); 12 PetscFunctionReturn(PETSC_SUCCESS); 13 } 14 15 PetscErrorCode MatShift_Basic(Mat Y, PetscScalar a) 16 { 17 PetscInt i, start, end, oldValA = 0, oldValB = 0; 18 PetscScalar alpha = a; 19 PetscBool prevoption; 20 PetscBool isSeqAIJDerived, isMPIAIJDerived; // all classes sharing SEQAIJHEADER or MPIAIJHEADER 21 Mat A = NULL, B = NULL; 22 23 PetscFunctionBegin; 24 PetscCall(MatGetOption(Y, MAT_NO_OFF_PROC_ENTRIES, &prevoption)); 25 PetscCall(MatSetOption(Y, MAT_NO_OFF_PROC_ENTRIES, PETSC_TRUE)); 26 PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)Y, &isSeqAIJDerived, MATSEQAIJ, MATSEQBAIJ, MATSEQSBAIJ, "")); 27 PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)Y, &isMPIAIJDerived, MATMPIAIJ, MATMPIBAIJ, MATMPISBAIJ, "")); 28 29 if (isSeqAIJDerived) A = Y; 30 else if (isMPIAIJDerived) { 31 Mat_MPIAIJ *mpiaij = (Mat_MPIAIJ *)Y->data; 32 A = mpiaij->A; 33 B = mpiaij->B; 34 } 35 36 if (A) { 37 oldValA = ((Mat_SeqAIJ *)A->data)->nonew; 38 ((Mat_SeqAIJ *)A->data)->nonew = 0; // so that new nonzero locations are allowed 39 } 40 if (B) { 41 oldValB = ((Mat_SeqAIJ *)B->data)->nonew; 42 ((Mat_SeqAIJ *)B->data)->nonew = 0; 43 } 44 45 PetscCall(MatGetOwnershipRange(Y, &start, &end)); 46 for (i = start; i < end; i++) { 47 if (i < Y->cmap->N) PetscCall(MatSetValues(Y, 1, &i, 1, &i, &alpha, ADD_VALUES)); 48 } 49 PetscCall(MatAssemblyBegin(Y, MAT_FINAL_ASSEMBLY)); 50 PetscCall(MatAssemblyEnd(Y, MAT_FINAL_ASSEMBLY)); 51 PetscCall(MatSetOption(Y, MAT_NO_OFF_PROC_ENTRIES, prevoption)); 52 if (A) ((Mat_SeqAIJ *)A->data)->nonew = oldValA; 53 if (B) ((Mat_SeqAIJ *)B->data)->nonew = oldValB; 54 PetscFunctionReturn(PETSC_SUCCESS); 55 } 56 57 /*@ 58 MatCreate - Creates a matrix where the type is determined 59 from either a call to `MatSetType()` or from the options database 60 with a call to `MatSetFromOptions()`. 61 62 Collective 63 64 Input Parameter: 65 . comm - MPI communicator 66 67 Output Parameter: 68 . A - the matrix 69 70 Options Database Keys: 71 + -mat_type seqaij - `MATSEQAIJ` type, uses `MatCreateSeqAIJ()` 72 . -mat_type mpiaij - `MATMPIAIJ` type, uses `MatCreateAIJ()` 73 . -mat_type seqdense - `MATSEQDENSE`, uses `MatCreateSeqDense()` 74 . -mat_type mpidense - `MATMPIDENSE` type, uses `MatCreateDense()` 75 . -mat_type seqbaij - `MATSEQBAIJ` type, uses `MatCreateSeqBAIJ()` 76 - -mat_type mpibaij - `MATMPIBAIJ` type, uses `MatCreateBAIJ()` 77 78 See the manpages for particular formats (e.g., `MATSEQAIJ`) 79 for additional format-specific options. 80 81 Level: beginner 82 83 Notes: 84 The default matrix type is `MATAIJ`, using the routines `MatCreateSeqAIJ()` or 85 `MatCreateAIJ()` if you do not set a type in the options database. If you never call 86 `MatSetType()` or `MatSetFromOptions()` it will generate an error when you try to use the 87 matrix. 88 89 .seealso: [](ch_matrices), `Mat`, `MatCreateSeqAIJ()`, `MatCreateAIJ()`, 90 `MatCreateSeqDense()`, `MatCreateDense()`, 91 `MatCreateSeqBAIJ()`, `MatCreateBAIJ()`, 92 `MatCreateSeqSBAIJ()`, `MatCreateSBAIJ()`, 93 `MatConvert()` 94 @*/ 95 PetscErrorCode MatCreate(MPI_Comm comm, Mat *A) 96 { 97 Mat B; 98 99 PetscFunctionBegin; 100 PetscAssertPointer(A, 2); 101 PetscCall(MatInitializePackage()); 102 103 PetscCall(PetscHeaderCreate(B, MAT_CLASSID, "Mat", "Matrix", "Mat", comm, MatDestroy, MatView)); 104 PetscCall(PetscLayoutCreate(comm, &B->rmap)); 105 PetscCall(PetscLayoutCreate(comm, &B->cmap)); 106 PetscCall(PetscStrallocpy(VECSTANDARD, &B->defaultvectype)); 107 PetscCall(PetscStrallocpy(PETSCRANDER48, &B->defaultrandtype)); 108 109 B->symmetric = PETSC_BOOL3_UNKNOWN; 110 B->hermitian = PETSC_BOOL3_UNKNOWN; 111 B->structurally_symmetric = PETSC_BOOL3_UNKNOWN; 112 B->spd = PETSC_BOOL3_UNKNOWN; 113 B->symmetry_eternal = PETSC_FALSE; 114 B->structural_symmetry_eternal = PETSC_FALSE; 115 116 B->congruentlayouts = PETSC_DECIDE; 117 B->preallocated = PETSC_FALSE; 118 #if defined(PETSC_HAVE_DEVICE) 119 B->boundtocpu = PETSC_TRUE; 120 #endif 121 *A = B; 122 PetscFunctionReturn(PETSC_SUCCESS); 123 } 124 125 /*@ 126 MatCreateFromOptions - Creates a matrix whose type is set from the options database 127 128 Collective 129 130 Input Parameters: 131 + comm - MPI communicator 132 . prefix - [optional] prefix for the options database 133 . bs - the blocksize (commonly 1) 134 . m - the local number of rows (or `PETSC_DECIDE`) 135 . n - the local number of columns (or `PETSC_DECIDE` or `PETSC_DETERMINE`) 136 . M - the global number of rows (or `PETSC_DETERMINE`) 137 - N - the global number of columns (or `PETSC_DETERMINE`) 138 139 Output Parameter: 140 . A - the matrix 141 142 Options Database Key: 143 . -mat_type - see `MatType`, for example `aij`, `aijcusparse`, `baij`, `sbaij`, dense, defaults to `aij` 144 145 Level: beginner 146 147 .seealso: [](ch_matrices), `Mat`, `MatCreateSeqAIJ()`, `MatCreateAIJ()`, 148 `MatCreateSeqDense()`, `MatCreateDense()`, 149 `MatCreateSeqBAIJ()`, `MatCreateBAIJ()`, 150 `MatCreateSeqSBAIJ()`, `MatCreateSBAIJ()`, 151 `MatConvert()`, `MatCreate()` 152 @*/ 153 PetscErrorCode MatCreateFromOptions(MPI_Comm comm, const char *prefix, PetscInt bs, PetscInt m, PetscInt n, PetscInt M, PetscInt N, Mat *A) 154 { 155 PetscFunctionBegin; 156 PetscAssertPointer(A, 8); 157 PetscCall(MatCreate(comm, A)); 158 if (prefix) PetscCall(MatSetOptionsPrefix(*A, prefix)); 159 PetscCall(MatSetBlockSize(*A, bs)); 160 PetscCall(MatSetSizes(*A, m, n, M, N)); 161 PetscCall(MatSetFromOptions(*A)); 162 PetscFunctionReturn(PETSC_SUCCESS); 163 } 164 165 /*@ 166 MatSetErrorIfFailure - Causes `Mat` to generate an immediate error, for example a zero pivot, is detected. 167 168 Logically Collective 169 170 Input Parameters: 171 + mat - matrix obtained from `MatCreate()` 172 - flg - `PETSC_TRUE` indicates you want the error generated 173 174 Level: advanced 175 176 Note: 177 If this flag is not set then the matrix operation will note the error and continue. The error may cause a later `PC` or `KSP` error 178 or result in a `KSPConvergedReason` indicating the method did not converge. 179 180 .seealso: [](ch_matrices), `Mat`, `PCSetErrorIfFailure()`, `KSPConvergedReason`, `SNESConvergedReason` 181 @*/ 182 PetscErrorCode MatSetErrorIfFailure(Mat mat, PetscBool flg) 183 { 184 PetscFunctionBegin; 185 PetscValidHeaderSpecific(mat, MAT_CLASSID, 1); 186 PetscValidLogicalCollectiveBool(mat, flg, 2); 187 mat->erroriffailure = flg; 188 PetscFunctionReturn(PETSC_SUCCESS); 189 } 190 191 /*@ 192 MatSetSizes - Sets the local and global sizes, and checks to determine compatibility 193 194 Collective 195 196 Input Parameters: 197 + A - the matrix 198 . m - number of local rows (or `PETSC_DECIDE`) 199 . n - number of local columns (or `PETSC_DECIDE`) 200 . M - number of global rows (or `PETSC_DETERMINE`) 201 - N - number of global columns (or `PETSC_DETERMINE`) 202 203 Level: beginner 204 205 Notes: 206 `m` (`n`) and `M` (`N`) cannot be both `PETSC_DECIDE` 207 If one processor calls this with `M` (`N`) of `PETSC_DECIDE` then all processors must, otherwise the program will hang. 208 209 If `PETSC_DECIDE` is not used for the arguments 'm' and 'n', then the 210 user must ensure that they are chosen to be compatible with the 211 vectors. To do this, one first considers the matrix-vector product 212 'y = A x'. The `m` that is used in the above routine must match the 213 local size of 'y'. Likewise, the `n` used must match the local size of 'x'. 214 215 If `m` and `n` are not `PETSC_DECIDE`, then the values determine the `PetscLayout` of the matrix and the ranges returned by 216 `MatGetOwnershipRange()`, `MatGetOwnershipRanges()`, `MatGetOwnershipRangeColumn()`, and `MatGetOwnershipRangesColumn()`. 217 218 You cannot change the sizes once they have been set. 219 220 The sizes must be set before `MatSetUp()` or MatXXXSetPreallocation() is called. 221 222 .seealso: [](ch_matrices), `Mat`, `MatGetSize()`, `PetscSplitOwnership()`, `MatGetOwnershipRange()`, `MatGetOwnershipRanges()`, 223 `MatGetOwnershipRangeColumn()`, `MatGetOwnershipRangesColumn()`, `PetscLayout`, `VecSetSizes()` 224 @*/ 225 PetscErrorCode MatSetSizes(Mat A, PetscInt m, PetscInt n, PetscInt M, PetscInt N) 226 { 227 PetscFunctionBegin; 228 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 229 PetscValidLogicalCollectiveInt(A, M, 4); 230 PetscValidLogicalCollectiveInt(A, N, 5); 231 PetscCheck(M <= 0 || m <= M, PETSC_COMM_SELF, PETSC_ERR_ARG_INCOMP, "Local row size %" PetscInt_FMT " cannot be larger than global row size %" PetscInt_FMT, m, M); 232 PetscCheck(N <= 0 || n <= N, PETSC_COMM_SELF, PETSC_ERR_ARG_INCOMP, "Local column size %" PetscInt_FMT " cannot be larger than global column size %" PetscInt_FMT, n, N); 233 PetscCheck((A->rmap->n < 0 || A->rmap->N < 0) || (A->rmap->n == m && (M <= 0 || A->rmap->N == M)), PETSC_COMM_SELF, PETSC_ERR_SUP, "Cannot change/reset row sizes to %" PetscInt_FMT " local %" PetscInt_FMT " global after previously setting them to %" PetscInt_FMT " local %" PetscInt_FMT " global", m, M, 234 A->rmap->n, A->rmap->N); 235 PetscCheck((A->cmap->n < 0 || A->cmap->N < 0) || (A->cmap->n == n && (N <= 0 || A->cmap->N == N)), PETSC_COMM_SELF, PETSC_ERR_SUP, "Cannot change/reset column sizes to %" PetscInt_FMT " local %" PetscInt_FMT " global after previously setting them to %" PetscInt_FMT " local %" PetscInt_FMT " global", n, N, 236 A->cmap->n, A->cmap->N); 237 A->rmap->n = m; 238 A->cmap->n = n; 239 A->rmap->N = M > -1 ? M : A->rmap->N; 240 A->cmap->N = N > -1 ? N : A->cmap->N; 241 PetscFunctionReturn(PETSC_SUCCESS); 242 } 243 244 /*@ 245 MatSetFromOptions - Creates a matrix where the type is determined 246 from the options database. 247 248 Collective 249 250 Input Parameter: 251 . B - the matrix 252 253 Options Database Keys: 254 + -mat_type seqaij - `MATSEQAIJ` type, uses `MatCreateSeqAIJ()` 255 . -mat_type mpiaij - `MATMPIAIJ` type, uses `MatCreateAIJ()` 256 . -mat_type seqdense - `MATSEQDENSE` type, uses `MatCreateSeqDense()` 257 . -mat_type mpidense - `MATMPIDENSE`, uses `MatCreateDense()` 258 . -mat_type seqbaij - `MATSEQBAIJ`, uses `MatCreateSeqBAIJ()` 259 - -mat_type mpibaij - `MATMPIBAIJ`, uses `MatCreateBAIJ()` 260 261 See the manpages for particular formats (e.g., `MATSEQAIJ`) 262 for additional format-specific options. 263 264 Level: beginner 265 266 Notes: 267 Generates a parallel MPI matrix if the communicator has more than one processor. The default 268 matrix type is `MATAIJ`, using the routines `MatCreateSeqAIJ()` and `MatCreateAIJ()` if you 269 do not select a type in the options database. 270 271 .seealso: [](ch_matrices), `Mat`, `MatCreateSeqAIJ()`, `MatCreateAIJ()`, 272 `MatCreateSeqDense()`, `MatCreateDense()`, 273 `MatCreateSeqBAIJ()`, `MatCreateBAIJ()`, 274 `MatCreateSeqSBAIJ()`, `MatCreateSBAIJ()`, 275 `MatConvert()` 276 @*/ 277 PetscErrorCode MatSetFromOptions(Mat B) 278 { 279 const char *deft = MATAIJ; 280 char type[256]; 281 PetscBool flg, set; 282 PetscInt bind_below = 0; 283 284 PetscFunctionBegin; 285 PetscValidHeaderSpecific(B, MAT_CLASSID, 1); 286 287 PetscObjectOptionsBegin((PetscObject)B); 288 289 if (B->rmap->bs < 0) { 290 PetscInt newbs = -1; 291 PetscCall(PetscOptionsInt("-mat_block_size", "Set the blocksize used to store the matrix", "MatSetBlockSize", newbs, &newbs, &flg)); 292 if (flg) { 293 PetscCall(PetscLayoutSetBlockSize(B->rmap, newbs)); 294 PetscCall(PetscLayoutSetBlockSize(B->cmap, newbs)); 295 } 296 } 297 298 PetscCall(PetscOptionsFList("-mat_type", "Matrix type", "MatSetType", MatList, deft, type, 256, &flg)); 299 if (flg) { 300 PetscCall(MatSetType(B, type)); 301 } else if (!((PetscObject)B)->type_name) { 302 PetscCall(MatSetType(B, deft)); 303 } 304 305 PetscCall(PetscOptionsName("-mat_is_symmetric", "Checks if mat is symmetric on MatAssemblyEnd()", "MatIsSymmetric", &B->checksymmetryonassembly)); 306 PetscCall(PetscOptionsReal("-mat_is_symmetric", "Checks if mat is symmetric on MatAssemblyEnd()", "MatIsSymmetric", B->checksymmetrytol, &B->checksymmetrytol, NULL)); 307 PetscCall(PetscOptionsBool("-mat_null_space_test", "Checks if provided null space is correct in MatAssemblyEnd()", "MatSetNullSpaceTest", B->checknullspaceonassembly, &B->checknullspaceonassembly, NULL)); 308 PetscCall(PetscOptionsBool("-mat_error_if_failure", "Generate an error if an error occurs when factoring the matrix", "MatSetErrorIfFailure", B->erroriffailure, &B->erroriffailure, NULL)); 309 310 PetscTryTypeMethod(B, setfromoptions, PetscOptionsObject); 311 312 flg = PETSC_FALSE; 313 PetscCall(PetscOptionsBool("-mat_new_nonzero_location_err", "Generate an error if new nonzeros are created in the matrix nonzero structure (useful to test preallocation)", "MatSetOption", flg, &flg, &set)); 314 if (set) PetscCall(MatSetOption(B, MAT_NEW_NONZERO_LOCATION_ERR, flg)); 315 flg = PETSC_FALSE; 316 PetscCall(PetscOptionsBool("-mat_new_nonzero_allocation_err", "Generate an error if new nonzeros are allocated in the matrix nonzero structure (useful to test preallocation)", "MatSetOption", flg, &flg, &set)); 317 if (set) PetscCall(MatSetOption(B, MAT_NEW_NONZERO_ALLOCATION_ERR, flg)); 318 flg = PETSC_FALSE; 319 PetscCall(PetscOptionsBool("-mat_ignore_zero_entries", "For AIJ/IS matrices this will stop zero values from creating a zero location in the matrix", "MatSetOption", flg, &flg, &set)); 320 if (set) PetscCall(MatSetOption(B, MAT_IGNORE_ZERO_ENTRIES, flg)); 321 322 flg = PETSC_FALSE; 323 PetscCall(PetscOptionsBool("-mat_form_explicit_transpose", "Hint to form an explicit transpose for operations like MatMultTranspose", "MatSetOption", flg, &flg, &set)); 324 if (set) PetscCall(MatSetOption(B, MAT_FORM_EXPLICIT_TRANSPOSE, flg)); 325 326 /* Bind to CPU if below a user-specified size threshold. 327 * This perhaps belongs in the options for the GPU Mat types, but MatBindToCPU() does nothing when called on non-GPU types, 328 * and putting it here makes is more maintainable than duplicating this for all. */ 329 PetscCall(PetscOptionsInt("-mat_bind_below", "Set the size threshold (in local rows) below which the Mat is bound to the CPU", "MatBindToCPU", bind_below, &bind_below, &flg)); 330 if (flg && B->rmap->n < bind_below) PetscCall(MatBindToCPU(B, PETSC_TRUE)); 331 332 /* process any options handlers added with PetscObjectAddOptionsHandler() */ 333 PetscCall(PetscObjectProcessOptionsHandlers((PetscObject)B, PetscOptionsObject)); 334 PetscOptionsEnd(); 335 PetscFunctionReturn(PETSC_SUCCESS); 336 } 337 338 /*@ 339 MatXAIJSetPreallocation - set preallocation for serial and parallel `MATAIJ`, `MATBAIJ`, and `MATSBAIJ` matrices and their unassembled versions. 340 341 Collective 342 343 Input Parameters: 344 + A - matrix being preallocated 345 . bs - block size 346 . dnnz - number of nonzero column blocks per block row of diagonal part of parallel matrix 347 . onnz - number of nonzero column blocks per block row of off-diagonal part of parallel matrix 348 . dnnzu - number of nonzero column blocks per block row of upper-triangular part of diagonal part of parallel matrix 349 - onnzu - number of nonzero column blocks per block row of upper-triangular part of off-diagonal part of parallel matrix 350 351 Level: beginner 352 353 .seealso: [](ch_matrices), `Mat`, `MatSeqAIJSetPreallocation()`, `MatMPIAIJSetPreallocation()`, `MatSeqBAIJSetPreallocation()`, `MatMPIBAIJSetPreallocation()`, 354 `MatSeqSBAIJSetPreallocation()`, `MatMPISBAIJSetPreallocation()`, 355 `PetscSplitOwnership()` 356 @*/ 357 PetscErrorCode MatXAIJSetPreallocation(Mat A, PetscInt bs, const PetscInt dnnz[], const PetscInt onnz[], const PetscInt dnnzu[], const PetscInt onnzu[]) 358 { 359 PetscInt cbs; 360 void (*aij)(void); 361 void (*is)(void); 362 void (*hyp)(void) = NULL; 363 364 PetscFunctionBegin; 365 if (bs != PETSC_DECIDE) { /* don't mess with an already set block size */ 366 PetscCall(MatSetBlockSize(A, bs)); 367 } 368 PetscCall(PetscLayoutSetUp(A->rmap)); 369 PetscCall(PetscLayoutSetUp(A->cmap)); 370 PetscCall(MatGetBlockSizes(A, &bs, &cbs)); 371 /* these routines assumes bs == cbs, this should be checked somehow */ 372 PetscCall(MatSeqBAIJSetPreallocation(A, bs, 0, dnnz)); 373 PetscCall(MatMPIBAIJSetPreallocation(A, bs, 0, dnnz, 0, onnz)); 374 PetscCall(MatSeqSBAIJSetPreallocation(A, bs, 0, dnnzu)); 375 PetscCall(MatMPISBAIJSetPreallocation(A, bs, 0, dnnzu, 0, onnzu)); 376 /* 377 In general, we have to do extra work to preallocate for scalar (AIJ) or unassembled (IS) matrices so we check whether it will do any 378 good before going on with it. 379 */ 380 PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatMPIAIJSetPreallocation_C", &aij)); 381 PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatISSetPreallocation_C", &is)); 382 #if defined(PETSC_HAVE_HYPRE) 383 PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatHYPRESetPreallocation_C", &hyp)); 384 #endif 385 if (!aij && !is && !hyp) PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatSeqAIJSetPreallocation_C", &aij)); 386 if (aij || is || hyp) { 387 if (bs == cbs && bs == 1) { 388 PetscCall(MatSeqAIJSetPreallocation(A, 0, dnnz)); 389 PetscCall(MatMPIAIJSetPreallocation(A, 0, dnnz, 0, onnz)); 390 PetscCall(MatISSetPreallocation(A, 0, dnnz, 0, onnz)); 391 #if defined(PETSC_HAVE_HYPRE) 392 PetscCall(MatHYPRESetPreallocation(A, 0, dnnz, 0, onnz)); 393 #endif 394 } else { /* Convert block-row precallocation to scalar-row */ 395 PetscInt i, m, *sdnnz, *sonnz; 396 PetscCall(MatGetLocalSize(A, &m, NULL)); 397 PetscCall(PetscMalloc2((!!dnnz) * m, &sdnnz, (!!onnz) * m, &sonnz)); 398 for (i = 0; i < m; i++) { 399 if (dnnz) sdnnz[i] = dnnz[i / bs] * cbs; 400 if (onnz) sonnz[i] = onnz[i / bs] * cbs; 401 } 402 PetscCall(MatSeqAIJSetPreallocation(A, 0, dnnz ? sdnnz : NULL)); 403 PetscCall(MatMPIAIJSetPreallocation(A, 0, dnnz ? sdnnz : NULL, 0, onnz ? sonnz : NULL)); 404 PetscCall(MatISSetPreallocation(A, 0, dnnz ? sdnnz : NULL, 0, onnz ? sonnz : NULL)); 405 #if defined(PETSC_HAVE_HYPRE) 406 PetscCall(MatHYPRESetPreallocation(A, 0, dnnz ? sdnnz : NULL, 0, onnz ? sonnz : NULL)); 407 #endif 408 PetscCall(PetscFree2(sdnnz, sonnz)); 409 } 410 } 411 PetscFunctionReturn(PETSC_SUCCESS); 412 } 413 414 /*@C 415 MatHeaderMerge - Merges some information from the header of `C` to `A`; the `C` object is then destroyed 416 417 Collective, No Fortran Support 418 419 Input Parameters: 420 + A - a `Mat` being merged into 421 - C - the `Mat` providing the merge information 422 423 Level: developer 424 425 Notes: 426 `A` and `C` must be of the same type. 427 The object list and query function list in `A` are retained, as well as the object name, and prefix. 428 The object state of `A` is increased by 1. 429 430 Developer Note: 431 This is somewhat different from `MatHeaderReplace()`, it would be nice to merge the code 432 433 .seealso: `Mat`, `MatHeaderReplace()` 434 @*/ 435 PetscErrorCode MatHeaderMerge(Mat A, Mat *C) 436 { 437 PetscInt refct; 438 PetscOps Abops; 439 struct _MatOps Aops; 440 char *mtype, *mname, *mprefix; 441 Mat_Product *product; 442 Mat_Redundant *redundant; 443 PetscObjectState state; 444 PetscObjectList olist; 445 PetscFunctionList qlist; 446 447 PetscFunctionBegin; 448 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 449 PetscValidHeaderSpecific(*C, MAT_CLASSID, 2); 450 if (A == *C) PetscFunctionReturn(PETSC_SUCCESS); 451 PetscCheckSameTypeAndComm(A, 1, *C, 2); 452 /* save the parts of A we need */ 453 Abops = ((PetscObject)A)->bops[0]; 454 Aops = A->ops[0]; 455 refct = ((PetscObject)A)->refct; 456 mtype = ((PetscObject)A)->type_name; 457 mname = ((PetscObject)A)->name; 458 state = ((PetscObject)A)->state; 459 mprefix = ((PetscObject)A)->prefix; 460 product = A->product; 461 redundant = A->redundant; 462 qlist = ((PetscObject)A)->qlist; 463 olist = ((PetscObject)A)->olist; 464 465 /* zero these so the destroy below does not free them */ 466 ((PetscObject)A)->type_name = NULL; 467 ((PetscObject)A)->name = NULL; 468 ((PetscObject)A)->qlist = NULL; 469 ((PetscObject)A)->olist = NULL; 470 471 /* 472 free all the interior data structures from mat 473 cannot use PetscUseTypeMethod(A,destroy); because compiler 474 thinks it may print NULL type_name and name 475 */ 476 PetscTryTypeMethod(A, destroy); 477 478 PetscCall(PetscFree(A->defaultvectype)); 479 PetscCall(PetscFree(A->defaultrandtype)); 480 PetscCall(PetscLayoutDestroy(&A->rmap)); 481 PetscCall(PetscLayoutDestroy(&A->cmap)); 482 PetscCall(PetscComposedQuantitiesDestroy((PetscObject)A)); 483 484 /* copy C over to A */ 485 PetscCall(PetscFree(A->factorprefix)); 486 PetscCall(PetscMemcpy(A, *C, sizeof(struct _p_Mat))); 487 488 /* return the parts of A we saved */ 489 ((PetscObject)A)->bops[0] = Abops; 490 A->ops[0] = Aops; 491 ((PetscObject)A)->refct = refct; 492 ((PetscObject)A)->type_name = mtype; 493 ((PetscObject)A)->name = mname; 494 ((PetscObject)A)->prefix = mprefix; 495 ((PetscObject)A)->state = state + 1; 496 A->product = product; 497 A->redundant = redundant; 498 499 /* Append the saved lists */ 500 PetscCall(PetscFunctionListDuplicate(qlist, &((PetscObject)A)->qlist)); 501 PetscCall(PetscObjectListDuplicate(olist, &((PetscObject)A)->olist)); 502 PetscCall(PetscFunctionListDestroy(&qlist)); 503 PetscCall(PetscObjectListDestroy(&olist)); 504 505 /* since these two are copied into A we do not want them destroyed in C */ 506 ((PetscObject)*C)->qlist = NULL; 507 ((PetscObject)*C)->olist = NULL; 508 PetscCall(PetscHeaderDestroy(C)); 509 PetscFunctionReturn(PETSC_SUCCESS); 510 } 511 512 /*@ 513 MatHeaderReplace - Replaces the internal data of matrix `A` by the internal data of matrix `C` while deleting the outer wrapper of `C` 514 515 Input Parameters: 516 + A - a `Mat` whose internal data is to be replaced 517 - C - the `Mat` providing new internal data for `A` 518 519 Level: advanced 520 521 Example Usage\: 522 .vb 523 Mat C; 524 MatCreateSeqAIJWithArrays(..., &C); 525 MatHeaderReplace(A, &C); 526 // C has been destroyed and A contains the matrix entries of C 527 .ve 528 529 Note: 530 This can be used inside a function provided to `SNESSetJacobian()`, `TSSetRHSJacobian()`, or `TSSetIJacobian()` in cases where the user code 531 computes an entirely new sparse matrix (generally with a different matrix nonzero structure/pattern) for each Newton update. 532 It is usually better to reuse the matrix nonzero structure of `A` instead of constructing an entirely new one. 533 534 Developer Note: 535 This is somewhat different from `MatHeaderMerge()` it would be nice to merge the code 536 537 .seealso: `Mat`, `MatHeaderMerge()` 538 @*/ 539 PetscErrorCode MatHeaderReplace(Mat A, Mat *C) 540 { 541 PetscInt refct; 542 PetscObjectState state; 543 struct _p_Mat buffer; 544 MatStencilInfo stencil; 545 546 PetscFunctionBegin; 547 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 548 PetscValidHeaderSpecific(*C, MAT_CLASSID, 2); 549 if (A == *C) PetscFunctionReturn(PETSC_SUCCESS); 550 PetscCheckSameComm(A, 1, *C, 2); 551 PetscCheck(((PetscObject)*C)->refct == 1, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Object C has refct %" PetscInt_FMT " > 1, would leave hanging reference", ((PetscObject)*C)->refct); 552 553 /* swap C and A */ 554 refct = ((PetscObject)A)->refct; 555 state = ((PetscObject)A)->state; 556 stencil = A->stencil; 557 PetscCall(PetscMemcpy(&buffer, A, sizeof(struct _p_Mat))); 558 PetscCall(PetscMemcpy(A, *C, sizeof(struct _p_Mat))); 559 PetscCall(PetscMemcpy(*C, &buffer, sizeof(struct _p_Mat))); 560 ((PetscObject)A)->refct = refct; 561 ((PetscObject)A)->state = state + 1; 562 A->stencil = stencil; 563 564 ((PetscObject)*C)->refct = 1; 565 PetscCall(MatDestroy(C)); 566 PetscFunctionReturn(PETSC_SUCCESS); 567 } 568 569 /*@ 570 MatBindToCPU - marks a matrix to temporarily stay on the CPU and perform computations on the CPU 571 572 Logically Collective 573 574 Input Parameters: 575 + A - the matrix 576 - flg - bind to the CPU if value of `PETSC_TRUE` 577 578 Level: intermediate 579 580 .seealso: [](ch_matrices), `Mat`, `MatBoundToCPU()` 581 @*/ 582 PetscErrorCode MatBindToCPU(Mat A, PetscBool flg) 583 { 584 PetscFunctionBegin; 585 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 586 PetscValidLogicalCollectiveBool(A, flg, 2); 587 #if defined(PETSC_HAVE_DEVICE) 588 if (A->boundtocpu == flg) PetscFunctionReturn(PETSC_SUCCESS); 589 A->boundtocpu = flg; 590 PetscTryTypeMethod(A, bindtocpu, flg); 591 #endif 592 PetscFunctionReturn(PETSC_SUCCESS); 593 } 594 595 /*@ 596 MatBoundToCPU - query if a matrix is bound to the CPU 597 598 Input Parameter: 599 . A - the matrix 600 601 Output Parameter: 602 . flg - the logical flag 603 604 Level: intermediate 605 606 .seealso: [](ch_matrices), `Mat`, `MatBindToCPU()` 607 @*/ 608 PetscErrorCode MatBoundToCPU(Mat A, PetscBool *flg) 609 { 610 PetscFunctionBegin; 611 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 612 PetscAssertPointer(flg, 2); 613 #if defined(PETSC_HAVE_DEVICE) 614 *flg = A->boundtocpu; 615 #else 616 *flg = PETSC_TRUE; 617 #endif 618 PetscFunctionReturn(PETSC_SUCCESS); 619 } 620 621 PetscErrorCode MatSetValuesCOO_Basic(Mat A, const PetscScalar coo_v[], InsertMode imode) 622 { 623 IS is_coo_i, is_coo_j; 624 const PetscInt *coo_i, *coo_j; 625 PetscInt n, n_i, n_j; 626 PetscScalar zero = 0.; 627 628 PetscFunctionBegin; 629 PetscCall(PetscObjectQuery((PetscObject)A, "__PETSc_coo_i", (PetscObject *)&is_coo_i)); 630 PetscCall(PetscObjectQuery((PetscObject)A, "__PETSc_coo_j", (PetscObject *)&is_coo_j)); 631 PetscCheck(is_coo_i, PetscObjectComm((PetscObject)A), PETSC_ERR_COR, "Missing coo_i IS"); 632 PetscCheck(is_coo_j, PetscObjectComm((PetscObject)A), PETSC_ERR_COR, "Missing coo_j IS"); 633 PetscCall(ISGetLocalSize(is_coo_i, &n_i)); 634 PetscCall(ISGetLocalSize(is_coo_j, &n_j)); 635 PetscCheck(n_i == n_j, PETSC_COMM_SELF, PETSC_ERR_COR, "Wrong local size %" PetscInt_FMT " != %" PetscInt_FMT, n_i, n_j); 636 PetscCall(ISGetIndices(is_coo_i, &coo_i)); 637 PetscCall(ISGetIndices(is_coo_j, &coo_j)); 638 if (imode != ADD_VALUES) PetscCall(MatZeroEntries(A)); 639 for (n = 0; n < n_i; n++) PetscCall(MatSetValue(A, coo_i[n], coo_j[n], coo_v ? coo_v[n] : zero, ADD_VALUES)); 640 PetscCall(ISRestoreIndices(is_coo_i, &coo_i)); 641 PetscCall(ISRestoreIndices(is_coo_j, &coo_j)); 642 PetscFunctionReturn(PETSC_SUCCESS); 643 } 644 645 PetscErrorCode MatSetPreallocationCOO_Basic(Mat A, PetscCount ncoo, PetscInt coo_i[], PetscInt coo_j[]) 646 { 647 Mat preallocator; 648 IS is_coo_i, is_coo_j; 649 PetscScalar zero = 0.0; 650 651 PetscFunctionBegin; 652 PetscCheck(ncoo <= PETSC_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "ncoo %" PetscCount_FMT " overflowed PetscInt; configure --with-64-bit-indices or request support", ncoo); 653 PetscCall(PetscLayoutSetUp(A->rmap)); 654 PetscCall(PetscLayoutSetUp(A->cmap)); 655 PetscCall(MatCreate(PetscObjectComm((PetscObject)A), &preallocator)); 656 PetscCall(MatSetType(preallocator, MATPREALLOCATOR)); 657 PetscCall(MatSetSizes(preallocator, A->rmap->n, A->cmap->n, A->rmap->N, A->cmap->N)); 658 PetscCall(MatSetLayouts(preallocator, A->rmap, A->cmap)); 659 PetscCall(MatSetUp(preallocator)); 660 for (PetscCount n = 0; n < ncoo; n++) PetscCall(MatSetValue(preallocator, coo_i[n], coo_j[n], zero, INSERT_VALUES)); 661 PetscCall(MatAssemblyBegin(preallocator, MAT_FINAL_ASSEMBLY)); 662 PetscCall(MatAssemblyEnd(preallocator, MAT_FINAL_ASSEMBLY)); 663 PetscCall(MatPreallocatorPreallocate(preallocator, PETSC_TRUE, A)); 664 PetscCall(MatDestroy(&preallocator)); 665 PetscCall(ISCreateGeneral(PETSC_COMM_SELF, (PetscInt)ncoo, coo_i, PETSC_COPY_VALUES, &is_coo_i)); 666 PetscCall(ISCreateGeneral(PETSC_COMM_SELF, (PetscInt)ncoo, coo_j, PETSC_COPY_VALUES, &is_coo_j)); 667 PetscCall(PetscObjectCompose((PetscObject)A, "__PETSc_coo_i", (PetscObject)is_coo_i)); 668 PetscCall(PetscObjectCompose((PetscObject)A, "__PETSc_coo_j", (PetscObject)is_coo_j)); 669 PetscCall(ISDestroy(&is_coo_i)); 670 PetscCall(ISDestroy(&is_coo_j)); 671 PetscFunctionReturn(PETSC_SUCCESS); 672 } 673 674 /*@C 675 MatSetPreallocationCOO - set preallocation for matrices using a coordinate format of the entries with global indices 676 677 Collective 678 679 Input Parameters: 680 + A - matrix being preallocated 681 . ncoo - number of entries 682 . coo_i - row indices 683 - coo_j - column indices 684 685 Level: beginner 686 687 Notes: 688 The indices within `coo_i` and `coo_j` may be modified within this function. The caller should not rely on them 689 having any specific value after this function returns. The arrays can be freed or reused immediately 690 after this function returns. 691 692 Entries can be repeated, see `MatSetValuesCOO()`. Entries with negative row or column indices are allowed 693 but will be ignored. The corresponding entries in `MatSetValuesCOO()` will be ignored too. Remote entries 694 are allowed and will be properly added or inserted to the matrix, unless the matrix option `MAT_IGNORE_OFF_PROC_ENTRIES` 695 is set, in which case remote entries are ignored, or `MAT_NO_OFF_PROC_ENTRIES` is set, in which case an error will be generated. 696 697 If you just want to create a sequential AIJ matrix (`MATSEQAIJ`), and your matrix entries in COO format are unique, you can also use 698 `MatCreateSeqAIJFromTriple()`. But that is not recommended for iterative applications. 699 700 .seealso: [](ch_matrices), `Mat`, `MatSetValuesCOO()`, `MatSeqAIJSetPreallocation()`, `MatMPIAIJSetPreallocation()`, `MatSeqBAIJSetPreallocation()`, 701 `MatMPIBAIJSetPreallocation()`, `MatSeqSBAIJSetPreallocation()`, `MatMPISBAIJSetPreallocation()`, `MatSetPreallocationCOOLocal()`, 702 `DMSetMatrixPreallocateSkip()`, `MatCreateSeqAIJFromTriple()` 703 @*/ 704 PetscErrorCode MatSetPreallocationCOO(Mat A, PetscCount ncoo, PetscInt coo_i[], PetscInt coo_j[]) 705 { 706 PetscErrorCode (*f)(Mat, PetscCount, PetscInt[], PetscInt[]) = NULL; 707 708 PetscFunctionBegin; 709 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 710 PetscValidType(A, 1); 711 if (ncoo) PetscAssertPointer(coo_i, 3); 712 if (ncoo) PetscAssertPointer(coo_j, 4); 713 PetscCall(PetscLayoutSetUp(A->rmap)); 714 PetscCall(PetscLayoutSetUp(A->cmap)); 715 PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatSetPreallocationCOO_C", &f)); 716 717 PetscCall(PetscLogEventBegin(MAT_PreallCOO, A, 0, 0, 0)); 718 if (f) { 719 PetscCall((*f)(A, ncoo, coo_i, coo_j)); 720 } else { /* allow fallback, very slow */ 721 PetscCall(MatSetPreallocationCOO_Basic(A, ncoo, coo_i, coo_j)); 722 } 723 PetscCall(PetscLogEventEnd(MAT_PreallCOO, A, 0, 0, 0)); 724 A->preallocated = PETSC_TRUE; 725 A->nonzerostate++; 726 PetscFunctionReturn(PETSC_SUCCESS); 727 } 728 729 /*@C 730 MatSetPreallocationCOOLocal - set preallocation for matrices using a coordinate format of the entries with local indices 731 732 Collective 733 734 Input Parameters: 735 + A - matrix being preallocated 736 . ncoo - number of entries 737 . coo_i - row indices (local numbering; may be modified) 738 - coo_j - column indices (local numbering; may be modified) 739 740 Level: beginner 741 742 Notes: 743 The local indices are translated using the local to global mapping, thus `MatSetLocalToGlobalMapping()` must have been 744 called prior to this function. For matrices created with `DMCreateMatrix()` the local to global mapping is often already provided. 745 746 The indices `coo_i` and `coo_j` may be modified within this function. They might be translated to corresponding global 747 indices, but the caller should not rely on them having any specific value after this function returns. The arrays 748 can be freed or reused immediately after this function returns. 749 750 Entries can be repeated, see `MatSetValuesCOO()`. Entries with negative row or column indices are allowed 751 but will be ignored. The corresponding entries in `MatSetValuesCOO()` will be ignored too. Remote entries 752 are allowed and will be properly added or inserted to the matrix. 753 754 .seealso: [](ch_matrices), `Mat`, `MatSetValuesCOO()`, `MatSeqAIJSetPreallocation()`, `MatMPIAIJSetPreallocation()`, `MatSeqBAIJSetPreallocation()`, 755 `MatMPIBAIJSetPreallocation()`, `MatSeqSBAIJSetPreallocation()`, `MatMPISBAIJSetPreallocation()`, `MatSetPreallocationCOO()`, 756 `DMSetMatrixPreallocateSkip()` 757 @*/ 758 PetscErrorCode MatSetPreallocationCOOLocal(Mat A, PetscCount ncoo, PetscInt coo_i[], PetscInt coo_j[]) 759 { 760 PetscErrorCode (*f)(Mat, PetscCount, PetscInt[], PetscInt[]) = NULL; 761 762 PetscFunctionBegin; 763 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 764 PetscValidType(A, 1); 765 if (ncoo) PetscAssertPointer(coo_i, 3); 766 if (ncoo) PetscAssertPointer(coo_j, 4); 767 PetscCheck(ncoo <= PETSC_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "ncoo %" PetscCount_FMT " overflowed PetscInt; configure --with-64-bit-indices or request support", ncoo); 768 PetscCall(PetscLayoutSetUp(A->rmap)); 769 PetscCall(PetscLayoutSetUp(A->cmap)); 770 771 PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatSetPreallocationCOOLocal_C", &f)); 772 if (f) { 773 PetscCall((*f)(A, ncoo, coo_i, coo_j)); 774 A->nonzerostate++; 775 } else { 776 ISLocalToGlobalMapping ltog_row, ltog_col; 777 778 PetscCall(MatGetLocalToGlobalMapping(A, <og_row, <og_col)); 779 if (ltog_row) PetscCall(ISLocalToGlobalMappingApply(ltog_row, (PetscInt)ncoo, coo_i, coo_i)); 780 if (ltog_col) PetscCall(ISLocalToGlobalMappingApply(ltog_col, (PetscInt)ncoo, coo_j, coo_j)); 781 PetscCall(MatSetPreallocationCOO(A, ncoo, coo_i, coo_j)); 782 } 783 A->preallocated = PETSC_TRUE; 784 PetscFunctionReturn(PETSC_SUCCESS); 785 } 786 787 /*@ 788 MatSetValuesCOO - set values at once in a matrix preallocated using `MatSetPreallocationCOO()` 789 790 Collective 791 792 Input Parameters: 793 + A - matrix being preallocated 794 . coo_v - the matrix values (can be `NULL`) 795 - imode - the insert mode 796 797 Level: beginner 798 799 Notes: 800 The values must follow the order of the indices prescribed with `MatSetPreallocationCOO()` or `MatSetPreallocationCOOLocal()`. 801 802 When repeated entries are specified in the COO indices the `coo_v` values are first properly summed, regardless of the value of imode. 803 The imode flag indicates if coo_v must be added to the current values of the matrix (`ADD_VALUES`) or overwritten (`INSERT_VALUES`). 804 805 `MatAssemblyBegin()` and `MatAssemblyEnd()` do not need to be called after this routine. It automatically handles the assembly process. 806 807 .seealso: [](ch_matrices), `Mat`, `MatSetPreallocationCOO()`, `MatSetPreallocationCOOLocal()`, `InsertMode`, `INSERT_VALUES`, `ADD_VALUES` 808 @*/ 809 PetscErrorCode MatSetValuesCOO(Mat A, const PetscScalar coo_v[], InsertMode imode) 810 { 811 PetscErrorCode (*f)(Mat, const PetscScalar[], InsertMode) = NULL; 812 PetscBool oldFlg; 813 814 PetscFunctionBegin; 815 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 816 PetscValidType(A, 1); 817 MatCheckPreallocated(A, 1); 818 PetscValidLogicalCollectiveEnum(A, imode, 3); 819 PetscCall(PetscObjectQueryFunction((PetscObject)A, "MatSetValuesCOO_C", &f)); 820 PetscCall(PetscLogEventBegin(MAT_SetVCOO, A, 0, 0, 0)); 821 if (f) { 822 PetscCall((*f)(A, coo_v, imode)); // all known COO implementations do not use MatStash. They do their own off-proc communication 823 PetscCall(MatGetOption(A, MAT_NO_OFF_PROC_ENTRIES, &oldFlg)); 824 PetscCall(MatSetOption(A, MAT_NO_OFF_PROC_ENTRIES, PETSC_TRUE)); // set A->nooffprocentries to avoid costly MatStash scatter in MatAssembly 825 } else { 826 PetscCall(MatSetValuesCOO_Basic(A, coo_v, imode)); // fall back to MatSetValues, which might use MatStash 827 } 828 PetscCall(MatAssemblyBegin(A, MAT_FINAL_ASSEMBLY)); 829 PetscCall(MatAssemblyEnd(A, MAT_FINAL_ASSEMBLY)); 830 if (f) PetscCall(MatSetOption(A, MAT_NO_OFF_PROC_ENTRIES, oldFlg)); 831 PetscCall(PetscLogEventEnd(MAT_SetVCOO, A, 0, 0, 0)); 832 PetscFunctionReturn(PETSC_SUCCESS); 833 } 834 835 /*@ 836 MatSetBindingPropagates - Sets whether the state of being bound to the CPU for a GPU matrix type propagates to child and some other associated objects 837 838 Input Parameters: 839 + A - the matrix 840 - flg - flag indicating whether the boundtocpu flag should be propagated 841 842 Level: developer 843 844 Notes: 845 If the value of flg is set to true, the following will occur 846 + `MatCreateSubMatrices()` and `MatCreateRedundantMatrix()` - bind created matrices to CPU if the input matrix is bound to the CPU. 847 - `MatCreateVecs()` - bind created vectors to CPU if the input matrix is bound to the CPU. 848 849 The bindingpropagates flag itself is also propagated by the above routines. 850 851 Developer Notes: 852 If the fine-scale `DMDA` has the `-dm_bind_below` option set to true, then `DMCreateInterpolationScale()` calls `MatSetBindingPropagates()` 853 on the restriction/interpolation operator to set the bindingpropagates flag to true. 854 855 .seealso: [](ch_matrices), `Mat`, `VecSetBindingPropagates()`, `MatGetBindingPropagates()` 856 @*/ 857 PetscErrorCode MatSetBindingPropagates(Mat A, PetscBool flg) 858 { 859 PetscFunctionBegin; 860 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 861 #if defined(PETSC_HAVE_VIENNACL) || defined(PETSC_HAVE_CUDA) || defined(PETSC_HAVE_HIP) 862 A->bindingpropagates = flg; 863 #endif 864 PetscFunctionReturn(PETSC_SUCCESS); 865 } 866 867 /*@ 868 MatGetBindingPropagates - Gets whether the state of being bound to the CPU for a GPU matrix type propagates to child and some other associated objects 869 870 Input Parameter: 871 . A - the matrix 872 873 Output Parameter: 874 . flg - flag indicating whether the boundtocpu flag will be propagated 875 876 Level: developer 877 878 .seealso: [](ch_matrices), `Mat`, `MatSetBindingPropagates()` 879 @*/ 880 PetscErrorCode MatGetBindingPropagates(Mat A, PetscBool *flg) 881 { 882 PetscFunctionBegin; 883 PetscValidHeaderSpecific(A, MAT_CLASSID, 1); 884 PetscAssertPointer(flg, 2); 885 #if defined(PETSC_HAVE_VIENNACL) || defined(PETSC_HAVE_CUDA) || defined(PETSC_HAVE_HIP) 886 *flg = A->bindingpropagates; 887 #else 888 *flg = PETSC_FALSE; 889 #endif 890 PetscFunctionReturn(PETSC_SUCCESS); 891 } 892