1 /* 2 This is the main PETSc include file (for C and C++). It is included by all 3 other PETSc include files, so it almost never has to be specifically included. 4 Portions of this code are under: 5 Copyright (c) 2022 Advanced Micro Devices, Inc. All rights reserved. 6 */ 7 #pragma once 8 9 /*MC 10 PeOP - indicates an argument to a PETSc function is optional and one can pass `NULL` instead. This is used by the Fortran API generator 11 12 Level: developer 13 14 Example: 15 .vb 16 PetscErrorCode XXXX(Vec v, PeOp PetscObject obj, PeOp PetscInt *idx, PeOp PetscInt *array[]) 17 .ve 18 19 Notes: 20 This is not part of the PETSc public API and should only be used in PETSc source code. 21 22 Put this in the function declaration in front of each variable that is optional 23 24 Developer Note: 25 Shortened form of PETSc optional 26 27 .seealso: `PeNS`, `PeNSS`, `PeCtx`, `PetscInitialize()` 28 M*/ 29 #define PeOp 30 31 /*MC 32 PeNS - indicates a function that does not use the PETSc standard arguments which make it easy to generate automatic language stubs for other languages 33 34 Level: developer 35 36 Notes: 37 This is not part of the PETSc public API and should only be used in PETSc source code. 38 39 Put this at the end of the function declaration closing parenthesis 40 41 Developer Note: 42 Shortened form of PETSc non-standard 43 44 .seealso: `PeOp`, `PeNSS`, `PeCtx`, `PetscInitialize()` 45 M*/ 46 #define PeNS 47 48 /*MC 49 PeNSS - indicates a function that needs a special treatment in the C-side stub when generating the binding for other languages 50 51 Level: developer 52 53 Notes: 54 This is not part of the PETSc public API and should only be used in PETSc source code. 55 56 Put this at the end of the function declaration closing parenthesis 57 58 It is similar to PeNS; in Fortran it will generate the Fortran interface definition automatically but not the C stub, which should be added manually under the appropriate `ftn-custom` directory 59 60 Developer Note: 61 Shortened form of PETSc non-standard stub 62 63 .seealso: `PeOp`, `PeNS`, `PeCtx`, `PetscInitialize()` 64 M*/ 65 #define PeNSS 66 67 /* ========================================================================== */ 68 /* 69 petscconf.h is contained in ${PETSC_ARCH}/include/petscconf.h it is 70 found automatically by the compiler due to the -I${PETSC_DIR}/${PETSC_ARCH}/include that 71 PETSc's makefiles add to the compiler rules. 72 For --prefix installs the directory ${PETSC_ARCH} does not exist and petscconf.h is in the same 73 directory as the other PETSc include files. 74 */ 75 #include <petscconf.h> 76 #include <petscpkg_version.h> 77 #include <petscconf_poison.h> 78 #include <petscfix.h> 79 #include <petscmacros.h> 80 81 /* SUBMANSEC = Sys */ 82 83 #if defined(PETSC_DESIRE_FEATURE_TEST_MACROS) 84 /* 85 Feature test macros must be included before headers defined by IEEE Std 1003.1-2001 86 We only turn these in PETSc source files that require them by setting PETSC_DESIRE_FEATURE_TEST_MACROS 87 */ 88 #if defined(PETSC__POSIX_C_SOURCE_200112L) && !defined(_POSIX_C_SOURCE) 89 #define _POSIX_C_SOURCE 200112L 90 #endif 91 #if defined(PETSC__BSD_SOURCE) && !defined(_BSD_SOURCE) 92 #define _BSD_SOURCE 93 #endif 94 #if defined(PETSC__DEFAULT_SOURCE) && !defined(_DEFAULT_SOURCE) 95 #define _DEFAULT_SOURCE 96 #endif 97 #if defined(PETSC__GNU_SOURCE) && !defined(_GNU_SOURCE) 98 #define _GNU_SOURCE 99 #endif 100 #endif 101 102 #include <petscsystypes.h> 103 104 /* ========================================================================== */ 105 106 /* 107 Defines the interface to MPI allowing the use of all MPI functions. 108 109 PETSc does not use the C++ binding of MPI at ALL. The following flag 110 makes sure the C++ bindings are not included. The C++ bindings REQUIRE 111 putting mpi.h before ANY C++ include files, we cannot control this 112 with all PETSc users. Users who want to use the MPI C++ bindings can include 113 mpicxx.h directly in their code 114 */ 115 #if !defined(MPICH_SKIP_MPICXX) 116 #define MPICH_SKIP_MPICXX 1 117 #endif 118 #if !defined(OMPI_SKIP_MPICXX) 119 #define OMPI_SKIP_MPICXX 1 120 #endif 121 #if defined(PETSC_HAVE_MPIUNI) 122 #include <petsc/mpiuni/mpi.h> 123 #else 124 #include <mpi.h> 125 #endif 126 127 /* 128 Perform various sanity checks that the correct mpi.h is being included at compile time. 129 This usually happens because 130 * either an unexpected mpi.h is in the default compiler path (i.e. in /usr/include) or 131 * an extra include path -I/something (which contains the unexpected mpi.h) is being passed to the compiler 132 Note: with MPICH and OpenMPI, accept versions [x.y.z, x+1.0.0) as compatible 133 */ 134 #if defined(PETSC_HAVE_MPIUNI) 135 #ifndef MPIUNI_H 136 #error "PETSc was configured with --with-mpi=0 but now appears to be compiling using a different mpi.h" 137 #endif 138 #elif defined(PETSC_HAVE_I_MPI) 139 #if !defined(I_MPI_NUMVERSION) 140 #error "PETSc was configured with I_MPI but now appears to be compiling using a non-I_MPI mpi.h" 141 #elif I_MPI_NUMVERSION != PETSC_PKG_I_MPI_NUMVERSION 142 #error "PETSc was configured with one I_MPI mpi.h version but now appears to be compiling using a different I_MPI mpi.h version" 143 #endif 144 #elif defined(PETSC_HAVE_MVAPICH2) 145 #if !defined(MVAPICH2_NUMVERSION) 146 #error "PETSc was configured with MVAPICH2 but now appears to be compiling using a non-MVAPICH2 mpi.h" 147 #elif MVAPICH2_NUMVERSION != PETSC_PKG_MVAPICH2_NUMVERSION 148 #error "PETSc was configured with one MVAPICH2 mpi.h version but now appears to be compiling using a different MVAPICH2 mpi.h version" 149 #endif 150 #elif defined(PETSC_HAVE_MPICH) 151 #if !defined(MPICH_NUMVERSION) || defined(MVAPICH2_NUMVERSION) || defined(I_MPI_NUMVERSION) 152 #error "PETSc was configured with MPICH but now appears to be compiling using a non-MPICH mpi.h" 153 #elif PETSC_PKG_MPICH_VERSION_GT(MPICH_NUMVERSION / 10000000, MPICH_NUMVERSION / 100000 % 100, MPICH_NUMVERSION / 1000 % 100) 154 #error "PETSc was configured with one MPICH mpi.h version but now appears to be compiling using an older MPICH mpi.h version" 155 #elif PETSC_PKG_MPICH_VERSION_LT(MPICH_NUMVERSION / 10000000, 0, 0) 156 #error "PETSc was configured with one MPICH mpi.h version but now appears to be compiling using a newer major MPICH mpi.h version" 157 #endif 158 #elif defined(PETSC_HAVE_OPENMPI) 159 #if !defined(OMPI_MAJOR_VERSION) 160 #error "PETSc was configured with Open MPI but now appears to be compiling using a non-Open MPI mpi.h" 161 #elif PETSC_PKG_OPENMPI_VERSION_GT(OMPI_MAJOR_VERSION, OMPI_MINOR_VERSION, OMPI_RELEASE_VERSION) 162 #error "PETSc was configured with one Open MPI mpi.h version but now appears to be compiling using an older Open MPI mpi.h version" 163 #elif PETSC_PKG_OPENMPI_VERSION_LT(OMPI_MAJOR_VERSION, 0, 0) 164 #error "PETSc was configured with one Open MPI mpi.h version but now appears to be compiling using a newer major Open MPI mpi.h version" 165 #endif 166 #elif defined(PETSC_HAVE_MSMPI_VERSION) 167 #if !defined(MSMPI_VER) 168 #error "PETSc was configured with MSMPI but now appears to be compiling using a non-MSMPI mpi.h" 169 #elif (MSMPI_VER != PETSC_HAVE_MSMPI_VERSION) 170 #error "PETSc was configured with one MSMPI mpi.h version but now appears to be compiling using a different MSMPI mpi.h version" 171 #endif 172 #elif defined(OMPI_MAJOR_VERSION) || defined(MPICH_NUMVERSION) || defined(MSMPI_VER) 173 #error "PETSc was configured with undetermined MPI - but now appears to be compiling using any of Open MPI, MS-MPI or a MPICH variant" 174 #endif 175 176 /* 177 Need to put stdio.h AFTER mpi.h for MPICH2 with C++ compiler 178 see the top of mpicxx.h in the MPICH2 distribution. 179 */ 180 #include <stdio.h> 181 182 /* MSMPI on 32-bit Microsoft Windows requires this yukky hack - that breaks MPI standard compliance */ 183 #if !defined(MPIAPI) 184 #define MPIAPI 185 #endif 186 187 PETSC_EXTERN MPI_Datatype MPIU_ENUM PETSC_ATTRIBUTE_MPI_TYPE_TAG(PetscEnum); 188 #define MPIU_BOOL MPI_C_BOOL PETSC_DEPRECATED_MACRO(3, 24, 0, "MPI_C_BOOL", ) 189 190 /*MC 191 MPIU_INT - Portable MPI datatype corresponding to `PetscInt` independent of the precision of `PetscInt` 192 193 Level: beginner 194 195 Note: 196 In MPI calls that require an MPI datatype that matches a `PetscInt` or array of `PetscInt` values, pass this value. 197 198 .seealso: `PetscReal`, `PetscScalar`, `PetscComplex`, `PetscInt`, `MPIU_COUNT`, `MPIU_REAL`, `MPIU_SCALAR`, `MPIU_COMPLEX` 199 M*/ 200 201 PETSC_EXTERN MPI_Datatype MPIU_FORTRANADDR; 202 203 #if defined(PETSC_USE_64BIT_INDICES) 204 #define MPIU_INT MPIU_INT64 205 #else 206 #define MPIU_INT MPI_INT 207 #endif 208 209 /*MC 210 MPIU_COUNT - Portable MPI datatype corresponding to `PetscCount` independent of the precision of `PetscCount` 211 212 Level: beginner 213 214 Note: 215 In MPI calls that require an MPI datatype that matches a `PetscCount` or array of `PetscCount` values, pass this value. 216 217 Developer Note: 218 It seems `MPI_AINT` is unsigned so this may be the wrong choice here since `PetscCount` is signed 219 220 .seealso: `PetscReal`, `PetscScalar`, `PetscComplex`, `PetscInt`, `MPIU_INT`, `MPIU_REAL`, `MPIU_SCALAR`, `MPIU_COMPLEX` 221 M*/ 222 #define MPIU_COUNT MPI_AINT 223 224 /* 225 For the rare cases when one needs to send a size_t object with MPI 226 */ 227 PETSC_EXTERN MPI_Datatype MPIU_SIZE_T PETSC_ATTRIBUTE_MPI_TYPE_TAG(size_t); 228 229 /* 230 You can use PETSC_STDOUT as a replacement of stdout. You can also change 231 the value of PETSC_STDOUT to redirect all standard output elsewhere 232 */ 233 PETSC_EXTERN FILE *PETSC_STDOUT; 234 235 /* 236 You can use PETSC_STDERR as a replacement of stderr. You can also change 237 the value of PETSC_STDERR to redirect all standard error elsewhere 238 */ 239 PETSC_EXTERN FILE *PETSC_STDERR; 240 241 /* 242 Handle inclusion when using clang compiler with CUDA support 243 __float128 is not available for the device 244 */ 245 #if defined(__clang__) && (defined(__CUDA_ARCH__) || defined(__HIPCC__)) 246 #define PETSC_SKIP_REAL___FLOAT128 247 #endif 248 249 /* 250 Declare extern C stuff after including external header files 251 */ 252 253 PETSC_EXTERN PetscBool PETSC_RUNNING_ON_VALGRIND; 254 /* 255 Defines elementary mathematics functions and constants. 256 */ 257 #include <petscmath.h> 258 259 /*MC 260 PETSC_IGNORE - same as `NULL`, means PETSc will ignore this argument 261 262 Level: beginner 263 264 Note: 265 Accepted by many PETSc functions to not set a parameter and instead use a default value 266 267 Fortran Note: 268 Use `PETSC_NULL_INTEGER`, `PETSC_NULL_SCALAR` etc 269 270 .seealso: `PETSC_DECIDE`, `PETSC_DEFAULT`, `PETSC_DETERMINE` 271 M*/ 272 #define PETSC_IGNORE PETSC_NULLPTR 273 #define PETSC_NULL PETSC_DEPRECATED_MACRO(3, 19, 0, "PETSC_NULLPTR", ) PETSC_NULLPTR 274 275 /*MC 276 PETSC_UNLIMITED - standard way of passing an integer or floating point parameter to indicate PETSc there is no bound on the value allowed 277 278 Level: beginner 279 280 Example Usage: 281 .vb 282 KSPSetTolerances(ksp, PETSC_CURRENT, PETSC_CURRENT, PETSC_UNLIMITED, PETSC_UNLIMITED); 283 .ve 284 indicates that the solver is allowed to take any number of iterations and will not stop early no matter how the residual gets. 285 286 Fortran Note: 287 Use `PETSC_UNLIMITED_INTEGER` or `PETSC_UNLIMITED_REAL`. 288 289 .seealso: `PETSC_DEFAULT`, `PETSC_IGNORE`, `PETSC_DETERMINE`, `PETSC_DECIDE` 290 M*/ 291 292 /*MC 293 PETSC_DECIDE - standard way of passing an integer or floating point parameter to indicate PETSc should determine an appropriate value 294 295 Level: beginner 296 297 Example Usage: 298 .vb 299 VecSetSizes(ksp, PETSC_DECIDE, 10); 300 .ve 301 indicates that the global size of the vector is 10 and the local size will be automatically determined so that the sum of the 302 local sizes is the global size, see `PetscSplitOwnership()`. 303 304 Fortran Note: 305 Use `PETSC_DECIDE_INTEGER` or `PETSC_DECIDE_REAL`. 306 307 .seealso: `PETSC_DEFAULT`, `PETSC_IGNORE`, `PETSC_DETERMINE`, `PETSC_UNLIMITED' 308 M*/ 309 310 /*MC 311 PETSC_DETERMINE - standard way of passing an integer or floating point parameter to indicate PETSc should determine an appropriate value 312 313 Level: beginner 314 315 Example Usage: 316 .vb 317 VecSetSizes(ksp, 10, PETSC_DETERMINE); 318 .ve 319 indicates that the local size of the vector is 10 and the global size will be automatically summing up all the local sizes. 320 321 Note: 322 Same as `PETSC_DECIDE` 323 324 Fortran Note: 325 Use `PETSC_DETERMINE_INTEGER` or `PETSC_DETERMINE_REAL`. 326 327 Developer Note: 328 I would like to use const `PetscInt` `PETSC_DETERMINE` = `PETSC_DECIDE`; but for 329 some reason this is not allowed by the standard even though `PETSC_DECIDE` is a constant value. 330 331 .seealso: `PETSC_DECIDE`, `PETSC_DEFAULT`, `PETSC_IGNORE`, `VecSetSizes()`, `PETSC_UNLIMITED' 332 M*/ 333 334 /*MC 335 PETSC_CURRENT - standard way of indicating to an object not to change the current value of the parameter in the object 336 337 Level: beginner 338 339 Note: 340 Use `PETSC_DECIDE` to use the value that was set by PETSc when the object's type was set 341 342 Fortran Note: 343 Use `PETSC_CURRENT_INTEGER` or `PETSC_CURRENT_REAL`. 344 345 .seealso: `PETSC_DECIDE`, `PETSC_IGNORE`, `PETSC_DETERMINE`, `PETSC_DEFAULT`, `PETSC_UNLIMITED' 346 M*/ 347 348 /*MC 349 PETSC_DEFAULT - deprecated, see `PETSC_CURRENT` and `PETSC_DETERMINE` 350 351 Level: beginner 352 353 Note: 354 The name is confusing since it tells the object to continue to use the value it is using, not the default value when the object's type was set. 355 356 Developer Note: 357 Unfortunately this was used for two different purposes in the past, to actually trigger the use of a default value or to continue the 358 use of currently set value (in, for example, `KSPSetTolerances()`. 359 360 .seealso: `PETSC_DECIDE`, `PETSC_IGNORE`, `PETSC_DETERMINE`, `PETSC_CURRENT`, `PETSC_UNLIMITED' 361 M*/ 362 363 /* These MUST be preprocessor defines! see https://gitlab.com/petsc/petsc/-/issues/1370 */ 364 #define PETSC_DECIDE (-1) 365 #define PETSC_DETERMINE PETSC_DECIDE 366 #define PETSC_CURRENT (-2) 367 #define PETSC_UNLIMITED (-3) 368 /* PETSC_DEFAULT is deprecated in favor of PETSC_CURRENT for use in KSPSetTolerances() and similar functions */ 369 #define PETSC_DEFAULT PETSC_CURRENT 370 371 /*MC 372 PETSC_COMM_WORLD - the equivalent of the `MPI_COMM_WORLD` communicator which represents all the processes that PETSc knows about. 373 374 Level: beginner 375 376 Notes: 377 By default `PETSC_COMM_WORLD` and `MPI_COMM_WORLD` are identical unless you wish to 378 run PETSc on ONLY a subset of `MPI_COMM_WORLD`. In that case create your new (smaller) 379 communicator, call it, say comm, and set `PETSC_COMM_WORLD` = comm BEFORE calling 380 `PetscInitialize()`, but after `MPI_Init()` has been called. 381 382 The value of `PETSC_COMM_WORLD` should never be used or accessed before `PetscInitialize()` 383 is called because it may not have a valid value yet. 384 385 .seealso: `PETSC_COMM_SELF` 386 M*/ 387 PETSC_EXTERN MPI_Comm PETSC_COMM_WORLD; 388 389 /*MC 390 PETSC_COMM_SELF - This is always `MPI_COMM_SELF` 391 392 Level: beginner 393 394 Note: 395 Do not USE/access or set this variable before `PetscInitialize()` has been called. 396 397 .seealso: `PETSC_COMM_WORLD` 398 M*/ 399 #define PETSC_COMM_SELF MPI_COMM_SELF 400 401 /*MC 402 PETSC_MPI_THREAD_REQUIRED - the required threading support used if PETSc initializes MPI with `MPI_Init_thread()`. 403 404 No Fortran Support 405 406 Level: beginner 407 408 Note: 409 By default `PETSC_MPI_THREAD_REQUIRED` equals `MPI_THREAD_FUNNELED` when the MPI implementation provides `MPI_Init_thread()`, otherwise it equals `MPI_THREAD_SINGLE` 410 411 .seealso: `PetscInitialize()` 412 M*/ 413 PETSC_EXTERN PetscMPIInt PETSC_MPI_THREAD_REQUIRED; 414 415 /*MC 416 PetscBeganMPI - indicates if PETSc initialized MPI using `MPI_Init()` during `PetscInitialize()` or if MPI was already initialized with `MPI_Init()` 417 418 Synopsis: 419 #include <petscsys.h> 420 PetscBool PetscBeganMPI; 421 422 No Fortran Support 423 424 Level: developer 425 426 Note: 427 `MPI_Init()` can never be called after `PetscInitialize()` 428 429 .seealso: `PetscInitialize()`, `PetscInitializeCalled` 430 M*/ 431 PETSC_EXTERN PetscBool PetscBeganMPI; 432 433 PETSC_EXTERN PetscBool PetscErrorHandlingInitialized; 434 PETSC_EXTERN PetscBool PetscInitializeCalled; 435 PETSC_EXTERN PetscBool PetscFinalizeCalled; 436 PETSC_EXTERN PetscBool PetscViennaCLSynchronize; 437 438 PETSC_EXTERN PetscErrorCode PetscSetHelpVersionFunctions(PetscErrorCode (*)(MPI_Comm), PetscErrorCode (*)(MPI_Comm)); 439 PETSC_EXTERN PetscErrorCode PetscCommDuplicate(MPI_Comm, MPI_Comm *, int *); 440 PETSC_EXTERN PetscErrorCode PetscCommDestroy(MPI_Comm *); 441 PETSC_EXTERN PetscErrorCode PetscCommGetComm(MPI_Comm, MPI_Comm *); 442 PETSC_EXTERN PetscErrorCode PetscCommRestoreComm(MPI_Comm, MPI_Comm *); 443 444 #if defined(PETSC_HAVE_KOKKOS) 445 PETSC_EXTERN PetscErrorCode PetscKokkosInitializeCheck(void); /* Initialize Kokkos if not yet. */ 446 #endif 447 448 #if defined(PETSC_HAVE_NVSHMEM) 449 PETSC_EXTERN PetscBool PetscBeganNvshmem; 450 PETSC_EXTERN PetscBool PetscNvshmemInitialized; 451 PETSC_EXTERN PetscErrorCode PetscNvshmemFinalize(void); 452 #endif 453 454 #if defined(PETSC_HAVE_ELEMENTAL) 455 PETSC_EXTERN PetscErrorCode PetscElementalInitializePackage(void); 456 PETSC_EXTERN PetscErrorCode PetscElementalInitialized(PetscBool *); 457 PETSC_EXTERN PetscErrorCode PetscElementalFinalizePackage(void); 458 #endif 459 460 /*MC 461 PetscMalloc - Allocates memory for use with PETSc. One should use `PetscNew()`, `PetscMalloc1()` or `PetscCalloc1()` usually instead of `PetscMalloc()` 462 463 Synopsis: 464 #include <petscsys.h> 465 PetscErrorCode PetscMalloc(size_t m,void **result) 466 467 Not Collective 468 469 Input Parameter: 470 . m - number of bytes to allocate 471 472 Output Parameter: 473 . result - memory allocated 474 475 Level: beginner 476 477 Notes: 478 Memory is always allocated at least double aligned 479 480 It is safe to allocate with an m of 0 and pass the resulting pointer to `PetscFree()`. 481 However, the pointer should never be dereferenced or the program will crash. 482 483 Developer Note: 484 All the `PetscMallocN()` routines actually call `PetscMalloc()` behind the scenes. 485 486 Except for data structures that store information about the PETSc options database all memory allocated by PETSc is 487 obtained with `PetscMalloc()` or `PetscCalloc()` 488 489 .seealso: `PetscFree()`, `PetscNew()`, `PetscCalloc()` 490 M*/ 491 #define PetscMalloc(a, b) ((*PetscTrMalloc)((a), PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, (void **)(b))) 492 493 /*MC 494 PetscRealloc - Reallocates memory 495 496 Synopsis: 497 #include <petscsys.h> 498 PetscErrorCode PetscRealloc(size_t m,void **result) 499 500 Not Collective 501 502 Input Parameters: 503 + m - number of bytes to allocate 504 - result - previous memory 505 506 Output Parameter: 507 . result - new memory allocated 508 509 Level: developer 510 511 Notes: 512 `results` must have already been obtained with `PetscMalloc()` 513 514 Memory is always allocated at least double aligned 515 516 .seealso: `PetscMalloc()`, `PetscFree()`, `PetscNew()` 517 M*/ 518 #define PetscRealloc(a, b) ((*PetscTrRealloc)((a), __LINE__, PETSC_FUNCTION_NAME, __FILE__, (void **)(b))) 519 520 /*MC 521 PetscAddrAlign - Rounds up an address to `PETSC_MEMALIGN` alignment 522 523 Synopsis: 524 #include <petscsys.h> 525 void *PetscAddrAlign(void *addr) 526 527 Not Collective 528 529 Input Parameter: 530 . addr - address to align (any pointer type) 531 532 Level: developer 533 534 .seealso: `PetscMallocAlign()` 535 M*/ 536 #define PetscAddrAlign(a) ((void *)((((PETSC_UINTPTR_T)(a)) + (PETSC_MEMALIGN - 1)) & ~(PETSC_MEMALIGN - 1))) 537 538 /*MC 539 PetscCalloc - Allocates a cleared (zeroed) memory region aligned to `PETSC_MEMALIGN`, similar to `PetscMalloc()` 540 541 Synopsis: 542 #include <petscsys.h> 543 PetscErrorCode PetscCalloc(size_t m,void **result) 544 545 Not Collective 546 547 Input Parameter: 548 . m - number of bytes to allocate 549 550 Output Parameter: 551 . result - memory allocated 552 553 Level: beginner 554 555 Notes: 556 Memory is always allocated at least double aligned. This macro is useful in allocating memory pointed by void pointers 557 558 It is safe to allocate with an m of 0 and pass the resulting pointer to `PetscFree()`. 559 560 However, the pointer should never be dereferenced or the program will crash. 561 562 Developer Note: 563 All `PetscCallocN()` routines call `PetscCalloc()` behind the scenes. 564 565 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()` 566 M*/ 567 #define PetscCalloc(m, result) PetscMallocA(1, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)m), (result)) 568 569 /*MC 570 PetscMalloc1 - Allocates an array of memory aligned to `PETSC_MEMALIGN` 571 572 Synopsis: 573 #include <petscsys.h> 574 PetscErrorCode PetscMalloc1(size_t m1,type **r1) 575 576 Not Collective 577 578 Input Parameter: 579 . m1 - number of elements to allocate (may be zero) 580 581 Output Parameter: 582 . r1 - memory allocated 583 584 Level: beginner 585 586 Note: 587 This uses `sizeof()` of the memory type requested to determine the total memory to be allocated; therefore, you should not 588 multiply the number of elements requested by the `sizeof()` the type. For example, use 589 .vb 590 PetscInt *id; 591 PetscMalloc1(10,&id); 592 .ve 593 not 594 .vb 595 PetscInt *id; 596 PetscMalloc1(10*sizeof(PetscInt),&id); 597 .ve 598 599 Does not zero the memory allocated, use `PetscCalloc1()` to obtain memory that has been zeroed. 600 601 The `PetscMalloc[N]()` and `PetscCalloc[N]()` take an argument of type `size_t`! However, most codes use `value`, computed via `int` or `PetscInt` variables. This can overflow in 602 32bit `int` computation - while computation in 64bit `size_t` would not overflow! 603 It's best if any arithmetic that is done for size computations is done with `size_t` type - avoiding arithmetic overflow! 604 605 `PetscMalloc[N]()` and `PetscCalloc[N]()` attempt to work-around this by casting the first variable to `size_t`. 606 This works for most expressions, but not all, such as 607 .vb 608 PetscInt *id, a, b; 609 PetscMalloc1(use_a_squared ? a * a * b : a * b, &id); // use_a_squared is cast to size_t, but a and b are still PetscInt 610 PetscMalloc1(a + b * b, &id); // a is cast to size_t, but b * b is performed at PetscInt precision first due to order-of-operations 611 .ve 612 613 These expressions should either be avoided, or appropriately cast variables to `size_t`: 614 .vb 615 PetscInt *id, a, b; 616 PetscMalloc1(use_a_squared ? (size_t)a * a * b : (size_t)a * b, &id); // Cast a to size_t before multiplication 617 PetscMalloc1(b * b + a, &id); // b is automatically cast to size_t and order-of-operations ensures size_t precision is maintained 618 .ve 619 620 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscCalloc1()`, `PetscMalloc2()` 621 M*/ 622 #define PetscMalloc1(m1, r1) PetscMallocA(1, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1)) 623 624 /*MC 625 PetscCalloc1 - Allocates a cleared (zeroed) array of memory aligned to `PETSC_MEMALIGN` 626 627 Synopsis: 628 #include <petscsys.h> 629 PetscErrorCode PetscCalloc1(size_t m1,type **r1) 630 631 Not Collective 632 633 Input Parameter: 634 . m1 - number of elements to allocate in 1st chunk (may be zero) 635 636 Output Parameter: 637 . r1 - memory allocated 638 639 Level: beginner 640 641 Note: 642 See `PetscMalloc1()` for more details on usage. 643 644 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc1()`, `PetscCalloc2()` 645 M*/ 646 #define PetscCalloc1(m1, r1) PetscMallocA(1, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1)) 647 648 /*MC 649 PetscMalloc2 - Allocates 2 arrays of memory both aligned to `PETSC_MEMALIGN` 650 651 Synopsis: 652 #include <petscsys.h> 653 PetscErrorCode PetscMalloc2(size_t m1,type **r1,size_t m2,type **r2) 654 655 Not Collective 656 657 Input Parameters: 658 + m1 - number of elements to allocate in 1st chunk (may be zero) 659 - m2 - number of elements to allocate in 2nd chunk (may be zero) 660 661 Output Parameters: 662 + r1 - memory allocated in first chunk 663 - r2 - memory allocated in second chunk 664 665 Level: developer 666 667 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc1()`, `PetscCalloc2()` 668 M*/ 669 #define PetscMalloc2(m1, r1, m2, r2) PetscMallocA(2, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2)) 670 671 /*MC 672 PetscCalloc2 - Allocates 2 cleared (zeroed) arrays of memory both aligned to `PETSC_MEMALIGN` 673 674 Synopsis: 675 #include <petscsys.h> 676 PetscErrorCode PetscCalloc2(size_t m1,type **r1,size_t m2,type **r2) 677 678 Not Collective 679 680 Input Parameters: 681 + m1 - number of elements to allocate in 1st chunk (may be zero) 682 - m2 - number of elements to allocate in 2nd chunk (may be zero) 683 684 Output Parameters: 685 + r1 - memory allocated in first chunk 686 - r2 - memory allocated in second chunk 687 688 Level: developer 689 690 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscCalloc1()`, `PetscMalloc2()` 691 M*/ 692 #define PetscCalloc2(m1, r1, m2, r2) PetscMallocA(2, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2)) 693 694 /*MC 695 PetscMalloc3 - Allocates 3 arrays of memory, all aligned to `PETSC_MEMALIGN` 696 697 Synopsis: 698 #include <petscsys.h> 699 PetscErrorCode PetscMalloc3(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3) 700 701 Not Collective 702 703 Input Parameters: 704 + m1 - number of elements to allocate in 1st chunk (may be zero) 705 . m2 - number of elements to allocate in 2nd chunk (may be zero) 706 - m3 - number of elements to allocate in 3rd chunk (may be zero) 707 708 Output Parameters: 709 + r1 - memory allocated in first chunk 710 . r2 - memory allocated in second chunk 711 - r3 - memory allocated in third chunk 712 713 Level: developer 714 715 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscCalloc3()`, `PetscFree3()` 716 M*/ 717 #define PetscMalloc3(m1, r1, m2, r2, m3, r3) \ 718 PetscMallocA(3, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3)) 719 720 /*MC 721 PetscCalloc3 - Allocates 3 cleared (zeroed) arrays of memory, all aligned to `PETSC_MEMALIGN` 722 723 Synopsis: 724 #include <petscsys.h> 725 PetscErrorCode PetscCalloc3(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3) 726 727 Not Collective 728 729 Input Parameters: 730 + m1 - number of elements to allocate in 1st chunk (may be zero) 731 . m2 - number of elements to allocate in 2nd chunk (may be zero) 732 - m3 - number of elements to allocate in 3rd chunk (may be zero) 733 734 Output Parameters: 735 + r1 - memory allocated in first chunk 736 . r2 - memory allocated in second chunk 737 - r3 - memory allocated in third chunk 738 739 Level: developer 740 741 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscCalloc2()`, `PetscMalloc3()`, `PetscFree3()` 742 M*/ 743 #define PetscCalloc3(m1, r1, m2, r2, m3, r3) \ 744 PetscMallocA(3, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3)) 745 746 /*MC 747 PetscMalloc4 - Allocates 4 arrays of memory, all aligned to `PETSC_MEMALIGN` 748 749 Synopsis: 750 #include <petscsys.h> 751 PetscErrorCode PetscMalloc4(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4) 752 753 Not Collective 754 755 Input Parameters: 756 + m1 - number of elements to allocate in 1st chunk (may be zero) 757 . m2 - number of elements to allocate in 2nd chunk (may be zero) 758 . m3 - number of elements to allocate in 3rd chunk (may be zero) 759 - m4 - number of elements to allocate in 4th chunk (may be zero) 760 761 Output Parameters: 762 + r1 - memory allocated in first chunk 763 . r2 - memory allocated in second chunk 764 . r3 - memory allocated in third chunk 765 - r4 - memory allocated in fourth chunk 766 767 Level: developer 768 769 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscCalloc4()`, `PetscFree4()` 770 M*/ 771 #define PetscMalloc4(m1, r1, m2, r2, m3, r3, m4, r4) \ 772 PetscMallocA(4, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4)) 773 774 /*MC 775 PetscCalloc4 - Allocates 4 cleared (zeroed) arrays of memory, all aligned to `PETSC_MEMALIGN` 776 777 Synopsis: 778 #include <petscsys.h> 779 PetscErrorCode PetscCalloc4(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4) 780 781 Not Collective 782 783 Input Parameters: 784 + m1 - number of elements to allocate in 1st chunk (may be zero) 785 . m2 - number of elements to allocate in 2nd chunk (may be zero) 786 . m3 - number of elements to allocate in 3rd chunk (may be zero) 787 - m4 - number of elements to allocate in 4th chunk (may be zero) 788 789 Output Parameters: 790 + r1 - memory allocated in first chunk 791 . r2 - memory allocated in second chunk 792 . r3 - memory allocated in third chunk 793 - r4 - memory allocated in fourth chunk 794 795 Level: developer 796 797 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscCalloc4()`, `PetscFree4()` 798 M*/ 799 #define PetscCalloc4(m1, r1, m2, r2, m3, r3, m4, r4) \ 800 PetscMallocA(4, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4)) 801 802 /*MC 803 PetscMalloc5 - Allocates 5 arrays of memory, all aligned to `PETSC_MEMALIGN` 804 805 Synopsis: 806 #include <petscsys.h> 807 PetscErrorCode PetscMalloc5(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4,size_t m5,type **r5) 808 809 Not Collective 810 811 Input Parameters: 812 + m1 - number of elements to allocate in 1st chunk (may be zero) 813 . m2 - number of elements to allocate in 2nd chunk (may be zero) 814 . m3 - number of elements to allocate in 3rd chunk (may be zero) 815 . m4 - number of elements to allocate in 4th chunk (may be zero) 816 - m5 - number of elements to allocate in 5th chunk (may be zero) 817 818 Output Parameters: 819 + r1 - memory allocated in first chunk 820 . r2 - memory allocated in second chunk 821 . r3 - memory allocated in third chunk 822 . r4 - memory allocated in fourth chunk 823 - r5 - memory allocated in fifth chunk 824 825 Level: developer 826 827 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscCalloc5()`, `PetscFree5()` 828 M*/ 829 #define PetscMalloc5(m1, r1, m2, r2, m3, r3, m4, r4, m5, r5) \ 830 PetscMallocA(5, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4), ((size_t)((size_t)m5) * sizeof(**(r5))), (r5)) 831 832 /*MC 833 PetscCalloc5 - Allocates 5 cleared (zeroed) arrays of memory, all aligned to `PETSC_MEMALIGN` 834 835 Synopsis: 836 #include <petscsys.h> 837 PetscErrorCode PetscCalloc5(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4,size_t m5,type **r5) 838 839 Not Collective 840 841 Input Parameters: 842 + m1 - number of elements to allocate in 1st chunk (may be zero) 843 . m2 - number of elements to allocate in 2nd chunk (may be zero) 844 . m3 - number of elements to allocate in 3rd chunk (may be zero) 845 . m4 - number of elements to allocate in 4th chunk (may be zero) 846 - m5 - number of elements to allocate in 5th chunk (may be zero) 847 848 Output Parameters: 849 + r1 - memory allocated in first chunk 850 . r2 - memory allocated in second chunk 851 . r3 - memory allocated in third chunk 852 . r4 - memory allocated in fourth chunk 853 - r5 - memory allocated in fifth chunk 854 855 Level: developer 856 857 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc5()`, `PetscFree5()` 858 M*/ 859 #define PetscCalloc5(m1, r1, m2, r2, m3, r3, m4, r4, m5, r5) \ 860 PetscMallocA(5, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4), ((size_t)((size_t)m5) * sizeof(**(r5))), (r5)) 861 862 /*MC 863 PetscMalloc6 - Allocates 6 arrays of memory, all aligned to `PETSC_MEMALIGN` 864 865 Synopsis: 866 #include <petscsys.h> 867 PetscErrorCode PetscMalloc6(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4,size_t m5,type **r5,size_t m6,type **r6) 868 869 Not Collective 870 871 Input Parameters: 872 + m1 - number of elements to allocate in 1st chunk (may be zero) 873 . m2 - number of elements to allocate in 2nd chunk (may be zero) 874 . m3 - number of elements to allocate in 3rd chunk (may be zero) 875 . m4 - number of elements to allocate in 4th chunk (may be zero) 876 . m5 - number of elements to allocate in 5th chunk (may be zero) 877 - m6 - number of elements to allocate in 6th chunk (may be zero) 878 879 Output Parameteasr: 880 + r1 - memory allocated in first chunk 881 . r2 - memory allocated in second chunk 882 . r3 - memory allocated in third chunk 883 . r4 - memory allocated in fourth chunk 884 . r5 - memory allocated in fifth chunk 885 - r6 - memory allocated in sixth chunk 886 887 Level: developer 888 889 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscCalloc6()`, `PetscFree3()`, `PetscFree4()`, `PetscFree5()`, `PetscFree6()` 890 M*/ 891 #define PetscMalloc6(m1, r1, m2, r2, m3, r3, m4, r4, m5, r5, m6, r6) \ 892 PetscMallocA(6, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4), ((size_t)((size_t)m5) * sizeof(**(r5))), (r5), ((size_t)((size_t)m6) * sizeof(**(r6))), (r6)) 893 894 /*MC 895 PetscCalloc6 - Allocates 6 cleared (zeroed) arrays of memory, all aligned to `PETSC_MEMALIGN` 896 897 Synopsis: 898 #include <petscsys.h> 899 PetscErrorCode PetscCalloc6(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4,size_t m5,type **r5,size_t m6,type **r6) 900 901 Not Collective 902 903 Input Parameters: 904 + m1 - number of elements to allocate in 1st chunk (may be zero) 905 . m2 - number of elements to allocate in 2nd chunk (may be zero) 906 . m3 - number of elements to allocate in 3rd chunk (may be zero) 907 . m4 - number of elements to allocate in 4th chunk (may be zero) 908 . m5 - number of elements to allocate in 5th chunk (may be zero) 909 - m6 - number of elements to allocate in 6th chunk (may be zero) 910 911 Output Parameters: 912 + r1 - memory allocated in first chunk 913 . r2 - memory allocated in second chunk 914 . r3 - memory allocated in third chunk 915 . r4 - memory allocated in fourth chunk 916 . r5 - memory allocated in fifth chunk 917 - r6 - memory allocated in sixth chunk 918 919 Level: developer 920 921 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscMalloc6()`, `PetscFree6()` 922 M*/ 923 #define PetscCalloc6(m1, r1, m2, r2, m3, r3, m4, r4, m5, r5, m6, r6) \ 924 PetscMallocA(6, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4), ((size_t)((size_t)m5) * sizeof(**(r5))), (r5), ((size_t)((size_t)m6) * sizeof(**(r6))), (r6)) 925 926 /*MC 927 PetscMalloc7 - Allocates 7 arrays of memory, all aligned to `PETSC_MEMALIGN` 928 929 Synopsis: 930 #include <petscsys.h> 931 PetscErrorCode PetscMalloc7(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4,size_t m5,type **r5,size_t m6,type **r6,size_t m7,type **r7) 932 933 Not Collective 934 935 Input Parameters: 936 + m1 - number of elements to allocate in 1st chunk (may be zero) 937 . m2 - number of elements to allocate in 2nd chunk (may be zero) 938 . m3 - number of elements to allocate in 3rd chunk (may be zero) 939 . m4 - number of elements to allocate in 4th chunk (may be zero) 940 . m5 - number of elements to allocate in 5th chunk (may be zero) 941 . m6 - number of elements to allocate in 6th chunk (may be zero) 942 - m7 - number of elements to allocate in 7th chunk (may be zero) 943 944 Output Parameters: 945 + r1 - memory allocated in first chunk 946 . r2 - memory allocated in second chunk 947 . r3 - memory allocated in third chunk 948 . r4 - memory allocated in fourth chunk 949 . r5 - memory allocated in fifth chunk 950 . r6 - memory allocated in sixth chunk 951 - r7 - memory allocated in seventh chunk 952 953 Level: developer 954 955 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscCalloc7()`, `PetscFree7()` 956 M*/ 957 #define PetscMalloc7(m1, r1, m2, r2, m3, r3, m4, r4, m5, r5, m6, r6, m7, r7) \ 958 PetscMallocA(7, PETSC_FALSE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4), ((size_t)((size_t)m5) * sizeof(**(r5))), (r5), ((size_t)((size_t)m6) * sizeof(**(r6))), (r6), ((size_t)((size_t)m7) * sizeof(**(r7))), (r7)) 959 960 /*MC 961 PetscCalloc7 - Allocates 7 cleared (zeroed) arrays of memory, all aligned to `PETSC_MEMALIGN` 962 963 Synopsis: 964 #include <petscsys.h> 965 PetscErrorCode PetscCalloc7(size_t m1,type **r1,size_t m2,type **r2,size_t m3,type **r3,size_t m4,type **r4,size_t m5,type **r5,size_t m6,type **r6,size_t m7,type **r7) 966 967 Not Collective 968 969 Input Parameters: 970 + m1 - number of elements to allocate in 1st chunk (may be zero) 971 . m2 - number of elements to allocate in 2nd chunk (may be zero) 972 . m3 - number of elements to allocate in 3rd chunk (may be zero) 973 . m4 - number of elements to allocate in 4th chunk (may be zero) 974 . m5 - number of elements to allocate in 5th chunk (may be zero) 975 . m6 - number of elements to allocate in 6th chunk (may be zero) 976 - m7 - number of elements to allocate in 7th chunk (may be zero) 977 978 Output Parameters: 979 + r1 - memory allocated in first chunk 980 . r2 - memory allocated in second chunk 981 . r3 - memory allocated in third chunk 982 . r4 - memory allocated in fourth chunk 983 . r5 - memory allocated in fifth chunk 984 . r6 - memory allocated in sixth chunk 985 - r7 - memory allocated in seventh chunk 986 987 Level: developer 988 989 .seealso: `PetscFree()`, `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscMalloc7()`, `PetscFree7()` 990 M*/ 991 #define PetscCalloc7(m1, r1, m2, r2, m3, r3, m4, r4, m5, r5, m6, r6, m7, r7) \ 992 PetscMallocA(7, PETSC_TRUE, __LINE__, PETSC_FUNCTION_NAME, __FILE__, ((size_t)((size_t)m1) * sizeof(**(r1))), (r1), ((size_t)((size_t)m2) * sizeof(**(r2))), (r2), ((size_t)((size_t)m3) * sizeof(**(r3))), (r3), ((size_t)((size_t)m4) * sizeof(**(r4))), (r4), ((size_t)((size_t)m5) * sizeof(**(r5))), (r5), ((size_t)((size_t)m6) * sizeof(**(r6))), (r6), ((size_t)((size_t)m7) * sizeof(**(r7))), (r7)) 993 994 /*MC 995 PetscNew - Allocates memory of a particular type, zeros the memory! Aligned to `PETSC_MEMALIGN` 996 997 Synopsis: 998 #include <petscsys.h> 999 PetscErrorCode PetscNew(type **result) 1000 1001 Not Collective 1002 1003 Output Parameter: 1004 . result - memory allocated, sized to match pointer `type` 1005 1006 Level: beginner 1007 1008 Developer Note: 1009 Calls `PetscCalloc()` with the appropriate memory size obtained from `type` 1010 1011 .seealso: `PetscFree()`, `PetscMalloc()`, `PetscCall()`, `PetscCalloc1()`, `PetscMalloc1()` 1012 M*/ 1013 #define PetscNew(b) PetscCalloc1(1, (b)) 1014 1015 #define PetscNewLog(o, b) PETSC_DEPRECATED_MACRO(3, 18, 0, "PetscNew()", ) PetscNew(b) 1016 1017 /*MC 1018 PetscFree - Frees memory 1019 1020 Synopsis: 1021 #include <petscsys.h> 1022 PetscErrorCode PetscFree(void *memory) 1023 1024 Not Collective 1025 1026 Input Parameter: 1027 . memory - memory to free (the pointer is ALWAYS set to `NULL` upon success) 1028 1029 Level: beginner 1030 1031 Notes: 1032 Do not free memory obtained with `PetscMalloc2()`, `PetscCalloc2()` etc, they must be freed with `PetscFree2()` etc. 1033 1034 It is safe to call `PetscFree()` on a `NULL` pointer. 1035 1036 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc1()`, `PetscCalloc1()` 1037 M*/ 1038 #define PetscFree(a) ((PetscErrorCode)((*PetscTrFree)((void *)(a), __LINE__, PETSC_FUNCTION_NAME, __FILE__) || ((a) = PETSC_NULLPTR, PETSC_SUCCESS))) 1039 1040 /*MC 1041 PetscFree2 - Frees 2 chunks of memory obtained with `PetscMalloc2()` 1042 1043 Synopsis: 1044 #include <petscsys.h> 1045 PetscErrorCode PetscFree2(void *memory1,void *memory2) 1046 1047 Not Collective 1048 1049 Input Parameters: 1050 + memory1 - memory to free 1051 - memory2 - 2nd memory to free 1052 1053 Level: developer 1054 1055 Notes: 1056 Memory must have been obtained with `PetscMalloc2()` 1057 1058 The arguments need to be in the same order as they were in the call to `PetscMalloc2()` 1059 1060 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscFree()` 1061 M*/ 1062 #define PetscFree2(m1, m2) PetscFreeA(2, __LINE__, PETSC_FUNCTION_NAME, __FILE__, &(m1), &(m2)) 1063 1064 /*MC 1065 PetscFree3 - Frees 3 chunks of memory obtained with `PetscMalloc3()` 1066 1067 Synopsis: 1068 #include <petscsys.h> 1069 PetscErrorCode PetscFree3(void *memory1,void *memory2,void *memory3) 1070 1071 Not Collective 1072 1073 Input Parameters: 1074 + memory1 - memory to free 1075 . memory2 - 2nd memory to free 1076 - memory3 - 3rd memory to free 1077 1078 Level: developer 1079 1080 Notes: 1081 Memory must have been obtained with `PetscMalloc3()` 1082 1083 The arguments need to be in the same order as they were in the call to `PetscMalloc3()` 1084 1085 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscFree()`, `PetscMalloc3()` 1086 M*/ 1087 #define PetscFree3(m1, m2, m3) PetscFreeA(3, __LINE__, PETSC_FUNCTION_NAME, __FILE__, &(m1), &(m2), &(m3)) 1088 1089 /*MC 1090 PetscFree4 - Frees 4 chunks of memory obtained with `PetscMalloc4()` 1091 1092 Synopsis: 1093 #include <petscsys.h> 1094 PetscErrorCode PetscFree4(void *m1,void *m2,void *m3,void *m4) 1095 1096 Not Collective 1097 1098 Input Parameters: 1099 + m1 - memory to free 1100 . m2 - 2nd memory to free 1101 . m3 - 3rd memory to free 1102 - m4 - 4th memory to free 1103 1104 Level: developer 1105 1106 Notes: 1107 Memory must have been obtained with `PetscMalloc4()` 1108 1109 The arguments need to be in the same order as they were in the call to `PetscMalloc4()` 1110 1111 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscFree()`, `PetscMalloc3()`, `PetscMalloc4()` 1112 M*/ 1113 #define PetscFree4(m1, m2, m3, m4) PetscFreeA(4, __LINE__, PETSC_FUNCTION_NAME, __FILE__, &(m1), &(m2), &(m3), &(m4)) 1114 1115 /*MC 1116 PetscFree5 - Frees 5 chunks of memory obtained with `PetscMalloc5()` 1117 1118 Synopsis: 1119 #include <petscsys.h> 1120 PetscErrorCode PetscFree5(void *m1,void *m2,void *m3,void *m4,void *m5) 1121 1122 Not Collective 1123 1124 Input Parameters: 1125 + m1 - memory to free 1126 . m2 - 2nd memory to free 1127 . m3 - 3rd memory to free 1128 . m4 - 4th memory to free 1129 - m5 - 5th memory to free 1130 1131 Level: developer 1132 1133 Notes: 1134 Memory must have been obtained with `PetscMalloc5()` 1135 1136 The arguments need to be in the same order as they were in the call to `PetscMalloc5()` 1137 1138 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscFree()`, `PetscMalloc3()`, `PetscMalloc4()`, `PetscMalloc5()` 1139 M*/ 1140 #define PetscFree5(m1, m2, m3, m4, m5) PetscFreeA(5, __LINE__, PETSC_FUNCTION_NAME, __FILE__, &(m1), &(m2), &(m3), &(m4), &(m5)) 1141 1142 /*MC 1143 PetscFree6 - Frees 6 chunks of memory obtained with `PetscMalloc6()` 1144 1145 Synopsis: 1146 #include <petscsys.h> 1147 PetscErrorCode PetscFree6(void *m1,void *m2,void *m3,void *m4,void *m5,void *m6) 1148 1149 Not Collective 1150 1151 Input Parameters: 1152 + m1 - memory to free 1153 . m2 - 2nd memory to free 1154 . m3 - 3rd memory to free 1155 . m4 - 4th memory to free 1156 . m5 - 5th memory to free 1157 - m6 - 6th memory to free 1158 1159 Level: developer 1160 1161 Notes: 1162 Memory must have been obtained with `PetscMalloc6()` 1163 1164 The arguments need to be in the same order as they were in the call to `PetscMalloc6()` 1165 1166 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscFree()`, `PetscMalloc3()`, `PetscMalloc4()`, `PetscMalloc5()`, `PetscMalloc6()` 1167 M*/ 1168 #define PetscFree6(m1, m2, m3, m4, m5, m6) PetscFreeA(6, __LINE__, PETSC_FUNCTION_NAME, __FILE__, &(m1), &(m2), &(m3), &(m4), &(m5), &(m6)) 1169 1170 /*MC 1171 PetscFree7 - Frees 7 chunks of memory obtained with `PetscMalloc7()` 1172 1173 Synopsis: 1174 #include <petscsys.h> 1175 PetscErrorCode PetscFree7(void *m1,void *m2,void *m3,void *m4,void *m5,void *m6,void *m7) 1176 1177 Not Collective 1178 1179 Input Parameters: 1180 + m1 - memory to free 1181 . m2 - 2nd memory to free 1182 . m3 - 3rd memory to free 1183 . m4 - 4th memory to free 1184 . m5 - 5th memory to free 1185 . m6 - 6th memory to free 1186 - m7 - 7th memory to free 1187 1188 Level: developer 1189 1190 Notes: 1191 Memory must have been obtained with `PetscMalloc7()` 1192 1193 The arguments need to be in the same order as they were in the call to `PetscMalloc7()` 1194 1195 .seealso: `PetscNew()`, `PetscMalloc()`, `PetscMalloc2()`, `PetscFree()`, `PetscMalloc3()`, `PetscMalloc4()`, `PetscMalloc5()`, `PetscMalloc6()`, 1196 `PetscMalloc7()` 1197 M*/ 1198 #define PetscFree7(m1, m2, m3, m4, m5, m6, m7) PetscFreeA(7, __LINE__, PETSC_FUNCTION_NAME, __FILE__, &(m1), &(m2), &(m3), &(m4), &(m5), &(m6), &(m7)) 1199 1200 PETSC_EXTERN PetscErrorCode PetscMallocA(int, PetscBool, int, const char *, const char *, size_t, void *, ...); 1201 PETSC_EXTERN PetscErrorCode PetscFreeA(int, int, const char *, const char *, void *, ...); 1202 PETSC_EXTERN PetscErrorCode (*PetscTrMalloc)(size_t, PetscBool, int, const char[], const char[], void **); 1203 PETSC_EXTERN PetscErrorCode (*PetscTrFree)(void *, int, const char[], const char[]); 1204 PETSC_EXTERN PetscErrorCode (*PetscTrRealloc)(size_t, int, const char[], const char[], void **); 1205 PETSC_EXTERN PetscErrorCode PetscMallocSetCoalesce(PetscBool); 1206 PETSC_EXTERN PetscErrorCode PetscMallocSet(PetscErrorCode (*)(size_t, PetscBool, int, const char[], const char[], void **), PetscErrorCode (*)(void *, int, const char[], const char[]), PetscErrorCode (*)(size_t, int, const char[], const char[], void **)); 1207 PETSC_EXTERN PetscErrorCode PetscMallocClear(void); 1208 1209 /* 1210 Unlike PetscMallocSet and PetscMallocClear which overwrite the existing settings, these two functions save the previous choice of allocator, and should be used in pair. 1211 */ 1212 PETSC_EXTERN PetscErrorCode PetscMallocSetDRAM(void); 1213 PETSC_EXTERN PetscErrorCode PetscMallocResetDRAM(void); 1214 #if defined(PETSC_HAVE_CUDA) 1215 PETSC_EXTERN PetscErrorCode PetscMallocSetCUDAHost(void); 1216 PETSC_EXTERN PetscErrorCode PetscMallocResetCUDAHost(void); 1217 #endif 1218 #if defined(PETSC_HAVE_HIP) 1219 PETSC_EXTERN PetscErrorCode PetscMallocSetHIPHost(void); 1220 PETSC_EXTERN PetscErrorCode PetscMallocResetHIPHost(void); 1221 #endif 1222 1223 #define MPIU_PETSCLOGDOUBLE MPI_DOUBLE 1224 #define MPIU_2PETSCLOGDOUBLE MPI_2DOUBLE_PRECISION 1225 1226 /* 1227 Routines for tracing memory corruption/bleeding with default PETSc memory allocation 1228 */ 1229 PETSC_EXTERN PetscErrorCode PetscMallocDump(FILE *); 1230 PETSC_EXTERN PetscErrorCode PetscMallocView(FILE *); 1231 PETSC_EXTERN PetscErrorCode PetscMallocGetCurrentUsage(PetscLogDouble *); 1232 PETSC_EXTERN PetscErrorCode PetscMallocGetMaximumUsage(PetscLogDouble *); 1233 PETSC_EXTERN PetscErrorCode PetscMallocPushMaximumUsage(int); 1234 PETSC_EXTERN PetscErrorCode PetscMallocPopMaximumUsage(int, PetscLogDouble *); 1235 PETSC_EXTERN PetscErrorCode PetscMallocSetDebug(PetscBool, PetscBool); 1236 PETSC_EXTERN PetscErrorCode PetscMallocGetDebug(PetscBool *, PetscBool *, PetscBool *); 1237 PETSC_EXTERN PetscErrorCode PetscMallocValidate(int, const char[], const char[]); 1238 PETSC_EXTERN PetscErrorCode PetscMallocViewSet(PetscLogDouble); 1239 PETSC_EXTERN PetscErrorCode PetscMallocViewGet(PetscBool *); 1240 PETSC_EXTERN PetscErrorCode PetscMallocLogRequestedSizeSet(PetscBool); 1241 PETSC_EXTERN PetscErrorCode PetscMallocLogRequestedSizeGet(PetscBool *); 1242 1243 PETSC_EXTERN PetscErrorCode PetscDataTypeToMPIDataType(PetscDataType, MPI_Datatype *); 1244 PETSC_EXTERN PetscErrorCode PetscMPIDataTypeToPetscDataType(MPI_Datatype, PetscDataType *); 1245 PETSC_EXTERN PetscErrorCode PetscDataTypeGetSize(PetscDataType, size_t *); 1246 PETSC_EXTERN PetscErrorCode PetscDataTypeFromString(const char *, PetscDataType *, PetscBool *); 1247 1248 /* 1249 These are MPI operations for MPI_Allreduce() etc 1250 */ 1251 PETSC_EXTERN MPI_Op MPIU_MAXSUM_OP; 1252 #if defined(PETSC_USE_REAL___FLOAT128) || defined(PETSC_USE_REAL___FP16) 1253 PETSC_EXTERN MPI_Op MPIU_SUM; 1254 PETSC_EXTERN MPI_Op MPIU_MAX; 1255 PETSC_EXTERN MPI_Op MPIU_MIN; 1256 #else 1257 #define MPIU_SUM MPI_SUM 1258 #define MPIU_MAX MPI_MAX 1259 #define MPIU_MIN MPI_MIN 1260 #endif 1261 PETSC_EXTERN MPI_Op Petsc_Garbage_SetIntersectOp; 1262 PETSC_EXTERN PetscErrorCode PetscMaxSum(MPI_Comm, const PetscInt[], PetscInt *, PetscInt *); 1263 1264 #if (defined(PETSC_HAVE_REAL___FLOAT128) && !defined(PETSC_SKIP_REAL___FLOAT128)) || (defined(PETSC_HAVE_REAL___FP16) && !defined(PETSC_SKIP_REAL___FP16)) 1265 /*MC 1266 MPIU_SUM___FP16___FLOAT128 - MPI_Op that acts as a replacement for `MPI_SUM` with 1267 custom `MPI_Datatype` `MPIU___FLOAT128`, `MPIU___COMPLEX128`, and `MPIU___FP16`. 1268 1269 Level: advanced 1270 1271 Developer Note: 1272 This should be unified with `MPIU_SUM` 1273 1274 .seealso: `MPIU_REAL`, `MPIU_SCALAR`, `MPIU_COMPLEX` 1275 M*/ 1276 PETSC_EXTERN MPI_Op MPIU_SUM___FP16___FLOAT128; 1277 #endif 1278 1279 /* 1280 These are so that in extern C code we can cast function pointers to non-extern C 1281 function pointers. Since the regular C++ code expects its function pointers to be C++ 1282 */ 1283 1284 /*S 1285 PetscVoidFn - A prototype of a `void fn(void)` function 1286 1287 Level: advanced 1288 1289 Notes: 1290 `PetscVoidFn *` plays the role of `void *` for function pointers in the PETSc API that do not return an error code. 1291 It is used where a function pointer is needed but it is not possible to use the full prototype of the function. 1292 1293 `PetscErrorCodeFn` is similar to `PetscVoidFn` but should be used when the function returns a `PetscErrorCode` 1294 1295 The deprecated `PetscVoidFunction` works as a replacement for `PetscVoidFn` *. 1296 1297 The deprecated `PetscVoidStarFunction` works as a replacement for `PetscVoidFn` **. 1298 1299 .seealso: `PetscErrorCodeFn`, `PetscObject`, `PetscObjectDestroy()` 1300 S*/ 1301 PETSC_EXTERN_TYPEDEF typedef void PetscVoidFn(void); 1302 1303 PETSC_EXTERN_TYPEDEF typedef PetscVoidFn *PetscVoidFunction; 1304 PETSC_EXTERN_TYPEDEF typedef PetscVoidFn **PetscVoidStarFunction; 1305 1306 /*S 1307 PetscErrorCodeFn - a function typedef that represents abstractly a function that returns a PETSc error code 1308 and takes any number of arguments. Since C/C++ has no way to express this concept, it is implemented as `void (fn)(void)`. 1309 1310 Level: advanced 1311 1312 Notes: 1313 `PetscErrorCodeFn *` plays the role of `void *` for function pointers in the PETSc API that return an error code. 1314 It is used where a function pointer is needed but it is not possible to use the full prototype of the function, 1315 for example `VecSetOperation()`. 1316 1317 `PetscVoidFn` is similar to `PetscErrorCodeFn` but should be used when the function does not return a `PetscErrorCode`. 1318 1319 The deprecated `PetscErrorCodeFunction` works as a replacement for `PetscErrorCodeFn` *. 1320 1321 Developer Notes: 1322 This function type is equivalent to `PetscVoidFn`*. 1323 1324 At the C/C++ syntax level this construct adds nothing of value to the PETSc source code. It provides a way, at the abstract 1325 PETSc API level, to indicate specifically functions that return PETSc error codes as opposed to any C/C++ function. 1326 1327 .seealso: `PetscVoidFn`, `PetscObject`, `PetscObjectDestroy()`, `VecSetOperation()` 1328 S*/ 1329 PETSC_EXTERN_TYPEDEF typedef void PetscErrorCodeFn(void); 1330 1331 PETSC_EXTERN_TYPEDEF typedef PetscErrorCodeFn *PetscErrorCodeFunction; 1332 1333 /*S 1334 PetscCtxDestroyFn - A prototype of a `PetscErrorCode (*)(void **)` function that is used to free user contexts 1335 1336 Level: intermediate 1337 1338 Notes: 1339 Used in the prototype of functions such as `DMSetApplicationContextDestroy()` 1340 1341 The function argument is a `void **` meaning that this function is called with a pointer to the application context (which is itself a pointer) 1342 thus the destroy implementation must first reference the context via, for example, `*(AppCtx **)arg` 1343 1344 .seealso: `PetscObject`, `PetscCtxDestroyDefault()`, `PetscObjectDestroy()`, `DMSetApplicationContextDestroy()` 1345 S*/ 1346 PETSC_EXTERN_TYPEDEF typedef PetscErrorCode PetscCtxDestroyFn(void **); 1347 1348 PETSC_EXTERN PetscCtxDestroyFn PetscCtxDestroyDefault; 1349 1350 /* 1351 Defines PETSc error handling. 1352 */ 1353 #include <petscerror.h> // IWYU pragma: export 1354 1355 PETSC_EXTERN PetscBool PetscCIEnabled; /* code is running in the PETSc test harness CI */ 1356 PETSC_EXTERN PetscBool PetscCIEnabledPortableErrorOutput; /* error output is stripped to ensure portability of error messages across systems */ 1357 PETSC_EXTERN const char *PetscCIFilename(const char *); 1358 PETSC_EXTERN int PetscCILinenumber(int); 1359 1360 #define PETSC_SMALLEST_CLASSID 1211211 1361 PETSC_EXTERN PetscClassId PETSC_LARGEST_CLASSID; 1362 PETSC_EXTERN PetscClassId PETSC_OBJECT_CLASSID; 1363 PETSC_EXTERN PetscErrorCode PetscClassIdRegister(const char[], PetscClassId *); 1364 PETSC_EXTERN PetscErrorCode PetscObjectGetId(PetscObject, PetscObjectId *); 1365 PETSC_EXTERN PetscErrorCode PetscObjectCompareId(PetscObject, PetscObjectId, PetscBool *); 1366 1367 /* 1368 Routines that get memory usage information from the OS 1369 */ 1370 PETSC_EXTERN PetscErrorCode PetscMemoryGetCurrentUsage(PetscLogDouble *); 1371 PETSC_EXTERN PetscErrorCode PetscMemoryGetMaximumUsage(PetscLogDouble *); 1372 PETSC_EXTERN PetscErrorCode PetscMemorySetGetMaximumUsage(void); 1373 PETSC_EXTERN PetscErrorCode PetscMemoryTrace(const char[]); 1374 1375 PETSC_EXTERN PetscErrorCode PetscSleep(PetscReal); 1376 1377 /* 1378 Initialization of PETSc 1379 */ 1380 PETSC_EXTERN PetscErrorCode PetscInitialize(int *, char ***, const char[], const char[]); 1381 PETSC_EXTERN PetscErrorCode PetscInitializeNoPointers(int, char *[], const char[], const char[]); 1382 PETSC_EXTERN PetscErrorCode PetscInitializeNoArguments(void); 1383 PETSC_EXTERN PetscErrorCode PetscInitialized(PetscBool *); 1384 PETSC_EXTERN PetscErrorCode PetscFinalized(PetscBool *); 1385 PETSC_EXTERN PetscErrorCode PetscFinalize(void); 1386 PETSC_EXTERN PetscErrorCode PetscInitializeFortran(void); 1387 PETSC_EXTERN PetscErrorCode PetscGetArgs(int *, char ***); 1388 PETSC_EXTERN PetscErrorCode PetscGetArguments(char ***); 1389 PETSC_EXTERN PetscErrorCode PetscFreeArguments(char **); 1390 1391 PETSC_EXTERN PetscErrorCode PetscEnd(void); 1392 PETSC_EXTERN PetscErrorCode PetscSysInitializePackage(void); 1393 PETSC_EXTERN PetscErrorCode PetscSysFinalizePackage(void); 1394 1395 PETSC_EXTERN PetscErrorCode PetscPythonInitialize(const char[], const char[]); 1396 PETSC_EXTERN PetscErrorCode PetscPythonFinalize(void); 1397 PETSC_EXTERN PetscErrorCode PetscPythonPrintError(void); 1398 PETSC_EXTERN PetscErrorCode PetscPythonMonitorSet(PetscObject, const char[]); 1399 1400 PETSC_EXTERN PetscErrorCode PetscMonitorCompare(PetscErrorCode (*)(void), void *, PetscCtxDestroyFn *, PetscErrorCode (*)(void), void *, PetscCtxDestroyFn *, PetscBool *); 1401 1402 /* 1403 Functions that can act on any PETSc object. 1404 */ 1405 PETSC_EXTERN PetscErrorCode PetscObjectDestroy(PetscObject *); 1406 PETSC_EXTERN PetscErrorCode PetscObjectGetComm(PetscObject, MPI_Comm *); 1407 PETSC_EXTERN PetscErrorCode PetscObjectGetClassId(PetscObject, PetscClassId *); 1408 PETSC_EXTERN PetscErrorCode PetscObjectGetClassName(PetscObject, const char *[]); 1409 PETSC_EXTERN PetscErrorCode PetscObjectGetType(PetscObject, const char *[]); 1410 PETSC_EXTERN PetscErrorCode PetscObjectSetName(PetscObject, const char[]); 1411 PETSC_EXTERN PetscErrorCode PetscObjectGetName(PetscObject, const char *[]); 1412 PETSC_EXTERN PetscErrorCode PetscObjectSetTabLevel(PetscObject, PetscInt); 1413 PETSC_EXTERN PetscErrorCode PetscObjectGetTabLevel(PetscObject, PetscInt *); 1414 PETSC_EXTERN PetscErrorCode PetscObjectIncrementTabLevel(PetscObject, PetscObject, PetscInt); 1415 PETSC_EXTERN PetscErrorCode PetscObjectReference(PetscObject); 1416 PETSC_EXTERN PetscErrorCode PetscObjectGetReference(PetscObject, PetscInt *); 1417 PETSC_EXTERN PetscErrorCode PetscObjectDereference(PetscObject); 1418 PETSC_EXTERN PetscErrorCode PetscObjectGetNewTag(PetscObject, PetscMPIInt *); 1419 PETSC_EXTERN PetscErrorCode PetscObjectCompose(PetscObject, const char[], PetscObject); 1420 PETSC_EXTERN PetscErrorCode PetscObjectRemoveReference(PetscObject, const char[]); 1421 PETSC_EXTERN PetscErrorCode PetscObjectQuery(PetscObject, const char[], PetscObject *); 1422 PETSC_EXTERN PetscErrorCode PetscObjectComposeFunction_Private(PetscObject, const char[], PetscErrorCodeFn *); 1423 #define PetscObjectComposeFunction(a, b, ...) PetscObjectComposeFunction_Private((a), (b), (PetscErrorCodeFn *)(__VA_ARGS__)) 1424 PETSC_EXTERN PetscErrorCode PetscObjectSetFromOptions(PetscObject); 1425 PETSC_EXTERN PetscErrorCode PetscObjectSetUp(PetscObject); 1426 PETSC_EXTERN PetscErrorCode PetscObjectSetPrintedOptions(PetscObject); 1427 PETSC_EXTERN PetscErrorCode PetscObjectInheritPrintedOptions(PetscObject, PetscObject); 1428 PETSC_EXTERN PetscErrorCode PetscCommGetNewTag(MPI_Comm, PetscMPIInt *); 1429 1430 /*MC 1431 PetscObjectParameterSetDefault - sets a parameter default value in a `PetscObject` to a new default value. 1432 If the current value matches the old default value, then the current value is also set to the new value. 1433 1434 No Fortran Support 1435 1436 Synopsis: 1437 #include <petscsys.h> 1438 PetscBool PetscObjectParameterSetDefault(PetscObject obj, char* NAME, PetscReal value); 1439 1440 Input Parameters: 1441 + obj - the `PetscObject` 1442 . NAME - the name of the parameter, unquoted 1443 - value - the new value 1444 1445 Level: developer 1446 1447 Notes: 1448 The defaults for an object are the values set when the object's type is set. 1449 1450 This should only be used in object constructors, such as, `SNESCreate_NGS()`. 1451 1452 This only works for parameters that are declared in the struct with `PetscObjectParameterDeclare()` 1453 1454 .seealso: `PetscObjectParameterDeclare()`, `PetscInitialize()`, `PetscFinalize()`, `PetscObject`, `SNESParametersInitialize()` 1455 M*/ 1456 #define PetscObjectParameterSetDefault(obj, NAME, value) \ 1457 do { \ 1458 if (obj->NAME == obj->default_##NAME) obj->NAME = value; \ 1459 obj->default_##NAME = value; \ 1460 } while (0) 1461 1462 /*MC 1463 PetscObjectParameterDeclare - declares a parameter in a `PetscObject` and a location to store its default 1464 1465 No Fortran Support 1466 1467 Synopsis: 1468 #include <petscsys.h> 1469 PetscBool PetscObjectParameterDeclare(type, char* NAME) 1470 1471 Input Parameters: 1472 + type - the type of the parameter, for example `PetscInt` 1473 - NAME - the name of the parameter, unquoted 1474 1475 Level: developer. 1476 1477 .seealso: `PetscObjectParameterSetDefault()`, `PetscInitialize()`, `PetscFinalize()`, `PetscObject`, `SNESParametersInitialize()` 1478 M*/ 1479 #define PetscObjectParameterDeclare(type, NAME) type NAME, default_##NAME 1480 #define PetscObjectParameterDeclarePtr(type, NAME) type *NAME, *default_##NAME 1481 1482 #include <petscviewertypes.h> 1483 #include <petscoptions.h> 1484 1485 PETSC_EXTERN PetscErrorCode PetscMallocTraceSet(PetscViewer, PetscBool, PetscLogDouble); 1486 PETSC_EXTERN PetscErrorCode PetscMallocTraceGet(PetscBool *); 1487 1488 PETSC_EXTERN PetscErrorCode PetscObjectsListGetGlobalNumbering(MPI_Comm, PetscInt, PetscObject[], PetscInt *, PetscInt *); 1489 1490 PETSC_EXTERN PetscErrorCode PetscMemoryView(PetscViewer, const char[]); 1491 PETSC_EXTERN PetscErrorCode PetscObjectPrintClassNamePrefixType(PetscObject, PetscViewer); 1492 PETSC_EXTERN PetscErrorCode PetscObjectView(PetscObject, PetscViewer); 1493 #define PetscObjectQueryFunction(obj, name, fptr) PetscObjectQueryFunction_Private((obj), (name), (PetscErrorCodeFn **)(fptr)) 1494 PETSC_EXTERN PetscErrorCode PetscObjectHasFunction(PetscObject, const char[], PetscBool *); 1495 PETSC_EXTERN PetscErrorCode PetscObjectQueryFunction_Private(PetscObject, const char[], PetscErrorCodeFn **); 1496 PETSC_EXTERN PetscErrorCode PetscObjectSetOptionsPrefix(PetscObject, const char[]); 1497 PETSC_EXTERN PetscErrorCode PetscObjectAppendOptionsPrefix(PetscObject, const char[]); 1498 PETSC_EXTERN PetscErrorCode PetscObjectPrependOptionsPrefix(PetscObject, const char[]); 1499 PETSC_EXTERN PetscErrorCode PetscObjectGetOptionsPrefix(PetscObject, const char *[]); 1500 PETSC_EXTERN PetscErrorCode PetscObjectChangeTypeName(PetscObject, const char[]); 1501 PETSC_EXTERN PetscErrorCode PetscObjectRegisterDestroy(PetscObject); 1502 PETSC_EXTERN PetscErrorCode PetscObjectRegisterDestroyAll(void); 1503 PETSC_EXTERN PetscErrorCode PetscObjectViewFromOptions(PetscObject, PetscObject, const char[]); 1504 PETSC_EXTERN PetscErrorCode PetscObjectName(PetscObject); 1505 PETSC_EXTERN PetscErrorCode PetscObjectTypeCompare(PetscObject, const char[], PetscBool *); 1506 PETSC_EXTERN PetscErrorCode PetscObjectObjectTypeCompare(PetscObject, PetscObject, PetscBool *); 1507 PETSC_EXTERN PetscErrorCode PetscObjectBaseTypeCompare(PetscObject, const char[], PetscBool *); 1508 PETSC_EXTERN PetscErrorCode PetscObjectTypeCompareAny(PetscObject, PetscBool *, const char[], ...); 1509 PETSC_EXTERN PetscErrorCode PetscObjectBaseTypeCompareAny(PetscObject, PetscBool *, const char[], ...); 1510 PETSC_EXTERN PetscErrorCode PetscRegisterFinalize(PetscErrorCode (*)(void)); 1511 PETSC_EXTERN PetscErrorCode PetscRegisterFinalizeAll(void); 1512 1513 #if defined(PETSC_HAVE_SAWS) 1514 PETSC_EXTERN PetscErrorCode PetscSAWsBlock(void); 1515 PETSC_EXTERN PetscErrorCode PetscObjectSAWsViewOff(PetscObject); 1516 PETSC_EXTERN PetscErrorCode PetscObjectSAWsSetBlock(PetscObject, PetscBool); 1517 PETSC_EXTERN PetscErrorCode PetscObjectSAWsBlock(PetscObject); 1518 PETSC_EXTERN PetscErrorCode PetscObjectSAWsGrantAccess(PetscObject); 1519 PETSC_EXTERN PetscErrorCode PetscObjectSAWsTakeAccess(PetscObject); 1520 PETSC_EXTERN void PetscStackSAWsGrantAccess(void); 1521 PETSC_EXTERN void PetscStackSAWsTakeAccess(void); 1522 PETSC_EXTERN PetscErrorCode PetscStackViewSAWs(void); 1523 PETSC_EXTERN PetscErrorCode PetscStackSAWsViewOff(void); 1524 1525 #else 1526 #define PetscSAWsBlock() PETSC_SUCCESS 1527 #define PetscObjectSAWsViewOff(obj) PETSC_SUCCESS 1528 #define PetscObjectSAWsSetBlock(obj, flg) PETSC_SUCCESS 1529 #define PetscObjectSAWsBlock(obj) PETSC_SUCCESS 1530 #define PetscObjectSAWsGrantAccess(obj) PETSC_SUCCESS 1531 #define PetscObjectSAWsTakeAccess(obj) PETSC_SUCCESS 1532 #define PetscStackViewSAWs() PETSC_SUCCESS 1533 #define PetscStackSAWsViewOff() PETSC_SUCCESS 1534 #define PetscStackSAWsTakeAccess() 1535 #define PetscStackSAWsGrantAccess() 1536 1537 #endif 1538 1539 PETSC_EXTERN PetscErrorCode PetscDLOpen(const char[], PetscDLMode, PetscDLHandle *); 1540 PETSC_EXTERN PetscErrorCode PetscDLClose(PetscDLHandle *); 1541 PETSC_EXTERN PetscErrorCode PetscDLSym(PetscDLHandle, const char[], void **); 1542 PETSC_EXTERN PetscErrorCode PetscDLAddr(PetscVoidFn *, char *[]); 1543 PETSC_EXTERN PetscErrorCode PetscDemangleSymbol(const char *, char *[]); 1544 1545 PETSC_EXTERN PetscErrorCode PetscMallocGetStack(void *, PetscStack **); 1546 1547 PETSC_EXTERN PetscErrorCode PetscObjectsDump(FILE *, PetscBool); 1548 PETSC_EXTERN PetscErrorCode PetscObjectsView(PetscViewer); 1549 PETSC_EXTERN PetscErrorCode PetscObjectsGetObject(const char *, PetscObject *, const char *[]); 1550 PETSC_EXTERN PetscErrorCode PetscObjectListDestroy(PetscObjectList *); 1551 PETSC_EXTERN PetscErrorCode PetscObjectListFind(PetscObjectList, const char[], PetscObject *); 1552 PETSC_EXTERN PetscErrorCode PetscObjectListReverseFind(PetscObjectList, PetscObject, const char *[], PetscBool *); 1553 PETSC_EXTERN PetscErrorCode PetscObjectListAdd(PetscObjectList *, const char[], PetscObject); 1554 PETSC_EXTERN PetscErrorCode PetscObjectListRemoveReference(PetscObjectList *, const char[]); 1555 PETSC_EXTERN PetscErrorCode PetscObjectListDuplicate(PetscObjectList, PetscObjectList *); 1556 1557 /* 1558 Dynamic library lists. Lists of names of routines in objects or in dynamic 1559 link libraries that will be loaded as needed. 1560 */ 1561 1562 #define PetscFunctionListAdd(list, name, fptr) PetscFunctionListAdd_Private((list), (name), (PetscErrorCodeFn *)(fptr)) 1563 PETSC_EXTERN PetscErrorCode PetscFunctionListAdd_Private(PetscFunctionList *, const char[], PetscErrorCodeFn *); 1564 PETSC_EXTERN PetscErrorCode PetscFunctionListDestroy(PetscFunctionList *); 1565 PETSC_EXTERN PetscErrorCode PetscFunctionListClear(PetscFunctionList); 1566 #define PetscFunctionListFind(list, name, fptr) PetscFunctionListFind_Private((list), (name), (PetscErrorCodeFn **)(fptr)) 1567 PETSC_EXTERN PetscErrorCode PetscFunctionListFind_Private(PetscFunctionList, const char[], PetscErrorCodeFn **); 1568 PETSC_EXTERN PetscErrorCode PetscFunctionListPrintTypes(MPI_Comm, FILE *, const char[], const char[], const char[], const char[], PetscFunctionList, const char[], const char[]); 1569 PETSC_EXTERN PetscErrorCode PetscFunctionListDuplicate(PetscFunctionList, PetscFunctionList *); 1570 PETSC_EXTERN PetscErrorCode PetscFunctionListView(PetscFunctionList, PetscViewer); 1571 PETSC_EXTERN PetscErrorCode PetscFunctionListGet(PetscFunctionList, const char ***, int *); 1572 PETSC_EXTERN PetscErrorCode PetscFunctionListPrintNonEmpty(PetscFunctionList); 1573 PETSC_EXTERN PetscErrorCode PetscFunctionListPrintAll(void); 1574 1575 PETSC_EXTERN PetscDLLibrary PetscDLLibrariesLoaded; 1576 PETSC_EXTERN PetscErrorCode PetscDLLibraryAppend(MPI_Comm, PetscDLLibrary *, const char[]); 1577 PETSC_EXTERN PetscErrorCode PetscDLLibraryPrepend(MPI_Comm, PetscDLLibrary *, const char[]); 1578 PETSC_EXTERN PetscErrorCode PetscDLLibrarySym(MPI_Comm, PetscDLLibrary *, const char[], const char[], void **); 1579 PETSC_EXTERN PetscErrorCode PetscDLLibraryPrintPath(PetscDLLibrary); 1580 PETSC_EXTERN PetscErrorCode PetscDLLibraryRetrieve(MPI_Comm, const char[], char *, size_t, PetscBool *); 1581 PETSC_EXTERN PetscErrorCode PetscDLLibraryOpen(MPI_Comm, const char[], PetscDLLibrary *); 1582 PETSC_EXTERN PetscErrorCode PetscDLLibraryClose(PetscDLLibrary); 1583 1584 /* 1585 Useful utility routines 1586 */ 1587 PETSC_EXTERN PetscErrorCode PetscSplitOwnership(MPI_Comm, PetscInt *, PetscInt *); 1588 PETSC_EXTERN PetscErrorCode PetscSplitOwnershipBlock(MPI_Comm, PetscInt, PetscInt *, PetscInt *); 1589 PETSC_EXTERN PetscErrorCode PetscSplitOwnershipEqual(MPI_Comm, PetscInt *, PetscInt *); 1590 PETSC_EXTERN PetscErrorCode PetscSequentialPhaseBegin(MPI_Comm, PetscMPIInt); 1591 PETSC_EXTERN PetscErrorCode PetscSequentialPhaseEnd(MPI_Comm, PetscMPIInt); 1592 PETSC_EXTERN PetscErrorCode PetscBarrier(PetscObject); 1593 PETSC_EXTERN PetscErrorCode PetscMPIDump(FILE *); 1594 PETSC_EXTERN PetscErrorCode PetscGlobalMinMaxInt(MPI_Comm, const PetscInt[2], PetscInt[2]); 1595 PETSC_EXTERN PetscErrorCode PetscGlobalMinMaxReal(MPI_Comm, const PetscReal[2], PetscReal[2]); 1596 1597 /*MC 1598 PetscNot - negates a logical type value and returns result as a `PetscBool` 1599 1600 Level: beginner 1601 1602 Note: 1603 This is useful in cases like 1604 .vb 1605 int *a; 1606 PetscBool flag = PetscNot(a) 1607 .ve 1608 where !a would not return a `PetscBool` because we cannot provide a cast from int to `PetscBool` in C. 1609 1610 .seealso: `PetscBool`, `PETSC_TRUE`, `PETSC_FALSE` 1611 M*/ 1612 #define PetscNot(a) ((a) ? PETSC_FALSE : PETSC_TRUE) 1613 1614 /*MC 1615 PetscHelpPrintf - Prints help messages. 1616 1617 Synopsis: 1618 #include <petscsys.h> 1619 PetscErrorCode (*PetscHelpPrintf)(MPI_Comm comm, const char format[],args); 1620 1621 Not Collective, only applies on MPI rank 0; No Fortran Support 1622 1623 Input Parameters: 1624 + comm - the MPI communicator over which the help message is printed 1625 . format - the usual printf() format string 1626 - args - arguments to be printed 1627 1628 Level: developer 1629 1630 Notes: 1631 You can change how help messages are printed by replacing the function pointer with a function that does not simply write to stdout. 1632 1633 To use, write your own function, for example, 1634 .vb 1635 PetscErrorCode mypetschelpprintf(MPI_Comm comm,const char format[],....) 1636 { 1637 PetscFunctionReturn(PETSC_SUCCESS); 1638 } 1639 .ve 1640 then do the assignment 1641 .vb 1642 PetscHelpPrintf = mypetschelpprintf; 1643 .ve 1644 1645 You can do the assignment before `PetscInitialize()`. 1646 1647 The default routine used is called `PetscHelpPrintfDefault()`. 1648 1649 .seealso: `PetscFPrintf()`, `PetscSynchronizedPrintf()`, `PetscErrorPrintf()`, `PetscHelpPrintfDefault()` 1650 M*/ 1651 PETSC_EXTERN PetscErrorCode (*PetscHelpPrintf)(MPI_Comm, const char[], ...) PETSC_ATTRIBUTE_FORMAT(2, 3); 1652 1653 /* 1654 Defines PETSc profiling. 1655 */ 1656 #include <petsclog.h> 1657 1658 /* 1659 Simple PETSc parallel IO for ASCII printing 1660 */ 1661 PETSC_EXTERN PetscErrorCode PetscFixFilename(const char[], char[]); 1662 PETSC_EXTERN PetscErrorCode PetscFOpen(MPI_Comm, const char[], const char[], FILE **); 1663 PETSC_EXTERN PetscErrorCode PetscFClose(MPI_Comm, FILE *); 1664 PETSC_EXTERN PetscErrorCode PetscFPrintf(MPI_Comm, FILE *, const char[], ...) PETSC_ATTRIBUTE_FORMAT(3, 4); 1665 PETSC_EXTERN PetscErrorCode PetscFFlush(FILE *); 1666 PETSC_EXTERN PetscErrorCode PetscPrintf(MPI_Comm, const char[], ...) PETSC_ATTRIBUTE_FORMAT(2, 3); 1667 PETSC_EXTERN PetscErrorCode PetscSNPrintf(char *, size_t, const char[], ...) PETSC_ATTRIBUTE_FORMAT(3, 4); 1668 PETSC_EXTERN PetscErrorCode PetscSNPrintfCount(char *, size_t, const char[], size_t *, ...) PETSC_ATTRIBUTE_FORMAT(3, 5); 1669 PETSC_EXTERN PetscErrorCode PetscFormatRealArray(char[], size_t, const char *, PetscInt, const PetscReal[]); 1670 1671 PETSC_EXTERN PetscErrorCode PetscErrorPrintfDefault(const char[], ...) PETSC_ATTRIBUTE_FORMAT(1, 2); 1672 PETSC_EXTERN PetscErrorCode PetscErrorPrintfNone(const char[], ...) PETSC_ATTRIBUTE_FORMAT(1, 2); 1673 PETSC_EXTERN PetscErrorCode PetscHelpPrintfDefault(MPI_Comm, const char[], ...) PETSC_ATTRIBUTE_FORMAT(2, 3); 1674 1675 PETSC_EXTERN PetscErrorCode PetscFormatConvertGetSize(const char *, size_t *); 1676 PETSC_EXTERN PetscErrorCode PetscFormatConvert(const char *, char *); 1677 1678 PETSC_EXTERN PetscErrorCode PetscPOpen(MPI_Comm, const char[], const char[], const char[], FILE **); 1679 PETSC_EXTERN PetscErrorCode PetscPClose(MPI_Comm, FILE *); 1680 PETSC_EXTERN PetscErrorCode PetscPOpenSetMachine(const char[]); 1681 1682 PETSC_EXTERN PetscErrorCode PetscSynchronizedPrintf(MPI_Comm, const char[], ...) PETSC_ATTRIBUTE_FORMAT(2, 3); 1683 PETSC_EXTERN PetscErrorCode PetscSynchronizedFPrintf(MPI_Comm, FILE *, const char[], ...) PETSC_ATTRIBUTE_FORMAT(3, 4); 1684 PETSC_EXTERN PetscErrorCode PetscSynchronizedFlush(MPI_Comm, FILE *); 1685 PETSC_EXTERN PetscErrorCode PetscSynchronizedFGets(MPI_Comm, FILE *, size_t, char[]); 1686 PETSC_EXTERN PetscErrorCode PetscStartMatlab(MPI_Comm, const char[], const char[], FILE **); 1687 PETSC_EXTERN PetscErrorCode PetscGetPetscDir(const char *[]); 1688 1689 /*MC 1690 PeCtx - indicates an argument that returns a pointer to a user defined C struct (or Fortran derived type) 1691 1692 Level: developer 1693 1694 Notes: 1695 This is not part of the PETSc public API and should only be used in PETSc source code. 1696 1697 This should not be used for functions that return PETSc objects, or pointers to arrays of unknown type. Thus it is used for, for example, 1698 `KSPGetApplicationContext()` but not used for `DMNetworkGetComponent()` 1699 1700 For pointers to arrays of unknown type and for functions that return PETSc internal objects that are opaque to users, such 1701 as `KSPMonitorDynamicToleranceCreate()` a `void **` should be used. 1702 1703 Fortran Note: 1704 Should only be used with user defined Fortran datatypes 1705 .vb 1706 type(tUserType), pointer :: ctx 1707 .ve 1708 1709 Developer Note: 1710 Put this in function declaration for the argument type instead of `void *`, or `void **`. 1711 1712 C compilers generate a warning or error if one passes a pointer to a pointer to a specific type (instead of `void`), for example, 1713 .vb 1714 extern calledfunction(void **); 1715 SomeCtx *ctx; 1716 calledfunction(&ctx); << warning that it is passing a pointer to a pointer to a SomeCtx instead of a void ** 1717 .ve 1718 By using the common practice of prototyping the function as 1719 .vb 1720 extern calledfunction(void *); 1721 .ve 1722 the warning message is averted. `PeCtx` is used in PETSc source code so that the getAPI() code processor knows the argument is 1723 actually handled internally as `void **` so it can generate correct bindings for other languages. 1724 1725 .seealso: `PeOp`, `PeNS`, `PetscInitialize()` 1726 M*/ 1727 typedef void *PeCtx; 1728 1729 PETSC_EXTERN PetscClassId PETSC_CONTAINER_CLASSID; 1730 PETSC_EXTERN PetscErrorCode PetscContainerGetPointer(PetscContainer, void *); 1731 PETSC_EXTERN PetscErrorCode PetscContainerSetPointer(PetscContainer, void *); 1732 PETSC_EXTERN PetscErrorCode PetscContainerDestroy(PetscContainer *); 1733 PETSC_EXTERN PetscErrorCode PetscContainerCreate(MPI_Comm, PetscContainer *); 1734 PETSC_EXTERN PetscErrorCode PetscContainerSetCtxDestroy(PetscContainer, PetscCtxDestroyFn *); 1735 PETSC_EXTERN PETSC_DEPRECATED_FUNCTION(3, 23, 0, "PetscContainerSetCtxDestroy()", ) PetscErrorCode PetscContainerSetUserDestroy(PetscContainer, PetscErrorCode (*)(void *)); 1736 PETSC_EXTERN PetscErrorCode PetscObjectContainerCompose(PetscObject, const char *name, void *, PetscCtxDestroyFn *); 1737 PETSC_EXTERN PetscErrorCode PetscObjectContainerQuery(PetscObject, const char *, PeCtx); 1738 1739 PETSC_DEPRECATED_FUNCTION(3, 23, 0, "PetscCtxDestroyDefault()", ) static inline PetscErrorCode PetscContainerCtxDestroyDefault(void **a) 1740 { 1741 return PetscCtxDestroyDefault(a); 1742 } 1743 1744 /* 1745 For use in debuggers 1746 */ 1747 PETSC_EXTERN PetscMPIInt PetscGlobalRank; 1748 PETSC_EXTERN PetscMPIInt PetscGlobalSize; 1749 PETSC_EXTERN PetscErrorCode PetscIntViewNumColumns(PetscInt, PetscInt, const PetscInt[], PetscViewer); 1750 PETSC_EXTERN PetscErrorCode PetscRealViewNumColumns(PetscInt, PetscInt, const PetscReal[], PetscViewer); 1751 PETSC_EXTERN PetscErrorCode PetscScalarViewNumColumns(PetscInt, PetscInt, const PetscScalar[], PetscViewer); 1752 PETSC_EXTERN PetscErrorCode PetscIntView(PetscInt, const PetscInt[], PetscViewer); 1753 PETSC_EXTERN PetscErrorCode PetscRealView(PetscInt, const PetscReal[], PetscViewer); 1754 PETSC_EXTERN PetscErrorCode PetscScalarView(PetscInt, const PetscScalar[], PetscViewer); 1755 1756 /* 1757 Basic memory and string operations. These are usually simple wrappers 1758 around the basic Unix system calls, but a few of them have additional 1759 functionality and/or error checking. 1760 */ 1761 #include <petscstring.h> 1762 1763 #include <stddef.h> 1764 #include <stdlib.h> 1765 1766 #if defined(PETSC_CLANG_STATIC_ANALYZER) 1767 #define PetscPrefetchBlock(a, b, c, d) 1768 #else 1769 /*MC 1770 PetscPrefetchBlock - Prefetches a block of memory 1771 1772 Synopsis: 1773 #include <petscsys.h> 1774 void PetscPrefetchBlock(const anytype *a,size_t n,int rw,int t) 1775 1776 Not Collective 1777 1778 Input Parameters: 1779 + a - pointer to first element to fetch (any type but usually `PetscInt` or `PetscScalar`) 1780 . n - number of elements to fetch 1781 . rw - 1 if the memory will be written to, otherwise 0 (ignored by many processors) 1782 - t - temporal locality (PETSC_PREFETCH_HINT_{NTA,T0,T1,T2}), see note 1783 1784 Level: developer 1785 1786 Notes: 1787 The last two arguments (`rw` and `t`) must be compile-time constants. 1788 1789 Adopting Intel's x86/x86-64 conventions, there are four levels of temporal locality. Not all architectures offer 1790 equivalent locality hints, but the following macros are always defined to their closest analogue. 1791 + `PETSC_PREFETCH_HINT_NTA` - Non-temporal. Prefetches directly to L1, evicts to memory (skips higher level cache unless it was already there when prefetched). 1792 . `PETSC_PREFETCH_HINT_T0` - Fetch to all levels of cache and evict to the closest level. Use this when the memory will be reused regularly despite necessary eviction from L1. 1793 . `PETSC_PREFETCH_HINT_T1` - Fetch to level 2 and higher (not L1). 1794 - `PETSC_PREFETCH_HINT_T2` - Fetch to high-level cache only. (On many systems, T0 and T1 are equivalent.) 1795 1796 This function does nothing on architectures that do not support prefetch and never errors (even if passed an invalid 1797 address). 1798 1799 M*/ 1800 #define PetscPrefetchBlock(a, n, rw, t) \ 1801 do { \ 1802 const char *_p = (const char *)(a), *_end = (const char *)((a) + (n)); \ 1803 for (; _p < _end; _p += PETSC_LEVEL1_DCACHE_LINESIZE) PETSC_Prefetch(_p, (rw), (t)); \ 1804 } while (0) 1805 #endif 1806 /* 1807 Determine if some of the kernel computation routines use 1808 Fortran (rather than C) for the numerical calculations. On some machines 1809 and compilers (like complex numbers) the Fortran version of the routines 1810 is faster than the C/C++ versions. The flag --with-fortran-kernels 1811 should be used with ./configure to turn these on. 1812 */ 1813 #if defined(PETSC_USE_FORTRAN_KERNELS) 1814 1815 #if !defined(PETSC_USE_FORTRAN_KERNEL_MULTCRL) 1816 #define PETSC_USE_FORTRAN_KERNEL_MULTCRL 1817 #endif 1818 1819 #if !defined(PETSC_USE_FORTRAN_KERNEL_MULTAIJ) 1820 #define PETSC_USE_FORTRAN_KERNEL_MULTAIJ 1821 #endif 1822 1823 #if !defined(PETSC_USE_FORTRAN_KERNEL_MULTTRANSPOSEAIJ) 1824 #define PETSC_USE_FORTRAN_KERNEL_MULTTRANSPOSEAIJ 1825 #endif 1826 1827 #if !defined(PETSC_USE_FORTRAN_KERNEL_MAXPY) 1828 #define PETSC_USE_FORTRAN_KERNEL_MAXPY 1829 #endif 1830 1831 #if !defined(PETSC_USE_FORTRAN_KERNEL_SOLVEAIJ) 1832 #define PETSC_USE_FORTRAN_KERNEL_SOLVEAIJ 1833 #endif 1834 1835 #if !defined(PETSC_USE_FORTRAN_KERNEL_SOLVEBAIJ) 1836 #define PETSC_USE_FORTRAN_KERNEL_SOLVEBAIJ 1837 #endif 1838 1839 #if !defined(PETSC_USE_FORTRAN_KERNEL_MULTADDAIJ) 1840 #define PETSC_USE_FORTRAN_KERNEL_MULTADDAIJ 1841 #endif 1842 1843 #if !defined(PETSC_USE_FORTRAN_KERNEL_MDOT) 1844 #define PETSC_USE_FORTRAN_KERNEL_MDOT 1845 #endif 1846 1847 #if !defined(PETSC_USE_FORTRAN_KERNEL_XTIMESY) 1848 #define PETSC_USE_FORTRAN_KERNEL_XTIMESY 1849 #endif 1850 1851 #if !defined(PETSC_USE_FORTRAN_KERNEL_AYPX) 1852 #define PETSC_USE_FORTRAN_KERNEL_AYPX 1853 #endif 1854 1855 #if !defined(PETSC_USE_FORTRAN_KERNEL_WAXPY) 1856 #define PETSC_USE_FORTRAN_KERNEL_WAXPY 1857 #endif 1858 1859 #endif 1860 1861 /* 1862 Macros for indicating code that should be compiled with a C interface, 1863 rather than a C++ interface. Any routines that are dynamically loaded 1864 (such as the PCCreate_XXX() routines) must be wrapped so that the name 1865 mangler does not change the functions symbol name. This just hides the 1866 ugly extern "C" {} wrappers. 1867 */ 1868 #if defined(__cplusplus) 1869 #define EXTERN_C_BEGIN extern "C" { 1870 #define EXTERN_C_END } 1871 #else 1872 #define EXTERN_C_BEGIN 1873 #define EXTERN_C_END 1874 #endif 1875 1876 /*MC 1877 MPI_Comm - the basic object used by MPI to determine which processes are involved in a 1878 communication 1879 1880 Level: beginner 1881 1882 Note: 1883 This manual page is a place-holder because MPICH does not have a manual page for `MPI_Comm` 1884 1885 .seealso: `PETSC_COMM_WORLD`, `PETSC_COMM_SELF` 1886 M*/ 1887 1888 #if defined(PETSC_HAVE_MPIIO) 1889 PETSC_EXTERN PetscErrorCode MPIU_File_write_all(MPI_File, void *, PetscMPIInt, MPI_Datatype, MPI_Status *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(2, 4); 1890 PETSC_EXTERN PetscErrorCode MPIU_File_read_all(MPI_File, void *, PetscMPIInt, MPI_Datatype, MPI_Status *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(2, 4); 1891 PETSC_EXTERN PetscErrorCode MPIU_File_write_at(MPI_File, MPI_Offset, void *, PetscMPIInt, MPI_Datatype, MPI_Status *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(3, 5); 1892 PETSC_EXTERN PetscErrorCode MPIU_File_read_at(MPI_File, MPI_Offset, void *, PetscMPIInt, MPI_Datatype, MPI_Status *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(3, 5); 1893 PETSC_EXTERN PetscErrorCode MPIU_File_write_at_all(MPI_File, MPI_Offset, void *, PetscMPIInt, MPI_Datatype, MPI_Status *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(3, 5); 1894 PETSC_EXTERN PetscErrorCode MPIU_File_read_at_all(MPI_File, MPI_Offset, void *, PetscMPIInt, MPI_Datatype, MPI_Status *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(3, 5); 1895 #endif 1896 1897 #if defined(PETSC_HAVE_MPI_COUNT) 1898 typedef MPI_Count MPIU_Count; 1899 #else 1900 typedef PetscInt64 MPIU_Count; 1901 #endif 1902 1903 /*@C 1904 PetscIntCast - casts a `MPI_Count`, `PetscInt64`, `PetscCount`, or `size_t` to a `PetscInt` (which may be 32-bits in size), generates an 1905 error if the `PetscInt` is not large enough to hold the number. 1906 1907 Not Collective; No Fortran Support 1908 1909 Input Parameter: 1910 . a - the `PetscInt64` value 1911 1912 Output Parameter: 1913 . b - the resulting `PetscInt` value, or `NULL` if the result is not needed 1914 1915 Level: advanced 1916 1917 Note: 1918 If integers needed for the applications are too large to fit in 32-bit ints you can ./configure using `--with-64-bit-indices` to make `PetscInt` use 64-bit integers 1919 1920 .seealso: `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscMPIIntCast()`, `PetscBLASIntCast()`, `PetscCIntCast()`, `PetscIntMultError()`, `PetscIntSumError()` 1921 @*/ 1922 static inline PetscErrorCode PetscIntCast(MPIU_Count a, PetscInt *b) 1923 { 1924 PetscFunctionBegin; 1925 if (b) *b = 0; /* to prevent compilers erroneously suggesting uninitialized variable */ 1926 PetscCheck(sizeof(MPIU_Count) <= sizeof(PetscInt) || (a <= (MPIU_Count)PETSC_INT_MAX && a >= (MPIU_Count)PETSC_INT_MIN), PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "%" PetscInt64_FMT " is too big for PetscInt, you may need to ./configure using --with-64-bit-indices", (PetscInt64)a); 1927 if (b) *b = (PetscInt)a; 1928 PetscFunctionReturn(PETSC_SUCCESS); 1929 } 1930 1931 /*@C 1932 PetscBLASIntCast - casts a `MPI_Count`, `PetscInt`, `PetscCount` or `PetscInt64` to a `PetscBLASInt` (which may be 32-bits in size), generates an 1933 error if the `PetscBLASInt` is not large enough to hold the number. 1934 1935 Not Collective; No Fortran Support 1936 1937 Input Parameter: 1938 . a - the `PetscInt` value 1939 1940 Output Parameter: 1941 . b - the resulting `PetscBLASInt` value, or `NULL` if the result is not needed 1942 1943 Level: advanced 1944 1945 Note: 1946 Errors if the integer is negative since PETSc calls to BLAS/LAPACK never need to cast negative integer inputs 1947 1948 .seealso: `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscMPIIntCast()`, `PetscCIntCast()`, `PetscIntCast()` 1949 @*/ 1950 static inline PetscErrorCode PetscBLASIntCast(MPIU_Count a, PetscBLASInt *b) 1951 { 1952 PetscFunctionBegin; 1953 if (b) *b = 0; /* to prevent compilers erroneously suggesting uninitialized variable */ 1954 PetscCheck(sizeof(MPIU_Count) <= sizeof(PetscBLASInt) || a <= (MPIU_Count)PETSC_BLAS_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "%" PetscInt64_FMT " is too big for BLAS/LAPACK, which is restricted to 32-bit integers. Either you have an invalidly large integer error in your code or you must ./configure PETSc with --with-64-bit-blas-indices for the case you are running", (PetscInt64)a); 1955 PetscCheck(a >= 0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Passing negative integer to BLAS/LAPACK routine"); 1956 if (b) *b = (PetscBLASInt)a; 1957 PetscFunctionReturn(PETSC_SUCCESS); 1958 } 1959 1960 /*@C 1961 PetscCuBLASIntCast - like `PetscBLASIntCast()`, but for `PetscCuBLASInt`. 1962 1963 Not Collective; No Fortran Support 1964 1965 Input Parameter: 1966 . a - the `PetscInt` value 1967 1968 Output Parameter: 1969 . b - the resulting `PetscCuBLASInt` value, or `NULL` if the result is not needed 1970 1971 Level: advanced 1972 1973 Note: 1974 Errors if the integer is negative since PETSc calls to cuBLAS and friends never need to cast negative integer inputs 1975 1976 .seealso: `PetscCuBLASInt`, `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscMPIIntCast()`, `PetscCIntCast()`, `PetscIntCast()` 1977 @*/ 1978 static inline PetscErrorCode PetscCuBLASIntCast(MPIU_Count a, PetscCuBLASInt *b) 1979 { 1980 PetscFunctionBegin; 1981 if (b) *b = 0; /* to prevent compilers erroneously suggesting uninitialized variable */ 1982 PetscCheck(sizeof(MPIU_Count) <= sizeof(PetscCuBLASInt) || a <= (MPIU_Count)PETSC_CUBLAS_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "%" PetscInt64_FMT " is too big for cuBLAS, which is restricted to 32-bit integers.", (PetscInt64)a); 1983 PetscCheck(a >= 0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Passing negative integer %" PetscInt64_FMT "to cuBLAS routine", (PetscInt64)a); 1984 if (b) *b = (PetscCuBLASInt)a; 1985 PetscFunctionReturn(PETSC_SUCCESS); 1986 } 1987 1988 /*@C 1989 PetscHipBLASIntCast - like `PetscBLASIntCast()`, but for `PetscHipBLASInt`. 1990 1991 Not Collective; No Fortran Support 1992 1993 Input Parameter: 1994 . a - the `PetscInt` value 1995 1996 Output Parameter: 1997 . b - the resulting `PetscHipBLASInt` value, or `NULL` if the result is not needed 1998 1999 Level: advanced 2000 2001 Note: 2002 Errors if the integer is negative since PETSc calls to hipBLAS and friends never need to cast negative integer inputs 2003 2004 .seealso: `PetscHipBLASInt`, `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscMPIIntCast()`, `PetscCIntCast()`, `PetscIntCast()` 2005 @*/ 2006 static inline PetscErrorCode PetscHipBLASIntCast(MPIU_Count a, PetscHipBLASInt *b) 2007 { 2008 PetscFunctionBegin; 2009 if (b) *b = 0; /* to prevent compilers erroneously suggesting uninitialized variable */ 2010 PetscCheck(sizeof(MPIU_Count) <= sizeof(PetscHipBLASInt) || a <= (MPIU_Count)PETSC_HIPBLAS_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "%" PetscInt64_FMT " is too big for hipBLAS, which is restricted to 32-bit integers.", (PetscInt64)a); 2011 PetscCheck(a >= 0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Passing negative integer %" PetscInt64_FMT "to hipBLAS routine", (PetscInt64)a); 2012 if (b) *b = (PetscHipBLASInt)a; 2013 PetscFunctionReturn(PETSC_SUCCESS); 2014 } 2015 2016 /*@C 2017 PetscMPIIntCast - casts a `MPI_Count`, `PetscInt`, `PetscCount`, or `PetscInt64` to a `PetscMPIInt` (which is always 32-bits in size), generates an 2018 error if the `PetscMPIInt` is not large enough to hold the number. 2019 2020 Not Collective; No Fortran Support 2021 2022 Input Parameter: 2023 . a - the `PetscInt` value 2024 2025 Output Parameter: 2026 . b - the resulting `PetscMPIInt` value, or `NULL` if the result is not needed 2027 2028 Level: advanced 2029 2030 .seealso: [](stylePetscCount), `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscIntCast()` 2031 @*/ 2032 static inline PetscErrorCode PetscMPIIntCast(MPIU_Count a, PetscMPIInt *b) 2033 { 2034 PetscFunctionBegin; 2035 if (b) *b = 0; /* to prevent compilers erroneously suggesting uninitialized variable */ 2036 PetscCheck(a <= (MPIU_Count)PETSC_MPI_INT_MAX && a >= (MPIU_Count)PETSC_MPI_INT_MIN, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "%" PetscInt64_FMT " is too big for MPI buffer length. Maximum supported value is %d", (PetscInt64)a, PETSC_MPI_INT_MAX); 2037 if (b) *b = (PetscMPIInt)a; 2038 PetscFunctionReturn(PETSC_SUCCESS); 2039 } 2040 2041 /*@C 2042 PetscCIntCast - casts a `MPI_Count`, `PetscInt`, `PetscCount`, or `PetscInt64` to a `int`, generates an error if the `int` is not large enough to hold the number. 2043 2044 Not Collective; No Fortran Support 2045 2046 Input Parameter: 2047 . a - the `PetscInt` value 2048 2049 Output Parameter: 2050 . b - the resulting `int` value, or `NULL` if the result is not needed 2051 2052 Level: advanced 2053 2054 .seealso: [](stylePetscCount), `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscMPIIntCast()`, `PetscBLASIntCast()`, `PetscIntCast()` 2055 @*/ 2056 static inline PetscErrorCode PetscCIntCast(MPIU_Count a, int *b) 2057 { 2058 PetscFunctionBegin; 2059 if (b) *b = 0; /* to prevent compilers erroneously suggesting uninitialized variable */ 2060 PetscCheck(a <= INT_MAX && a >= INT_MIN, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "%" PetscInt64_FMT " is too big to be casted to an int. Maximum supported value is %d", (PetscInt64)a, INT_MAX); 2061 if (b) *b = (int)a; 2062 PetscFunctionReturn(PETSC_SUCCESS); 2063 } 2064 2065 /*MC 2066 PetscInt64Mult - Computes the product of two variables after casting them to `PetscInt64`. 2067 2068 Not Collective; No Fortran Support 2069 2070 Input Parameters: 2071 + a - the first variable 2072 - b - the second variable 2073 2074 Level: advanced 2075 2076 .seealso: [](stylePetscCount), `PetscIntMultError()`, `PetscIntMultTruncate()` 2077 M*/ 2078 #if defined(PETSC_USE_64BIT_INDICES) 2079 #define PetscInt64Mult(a, b) ((a) * (b)) 2080 #else 2081 #define PetscInt64Mult(a, b) (((PetscInt64)(a)) * ((PetscInt64)(b))) 2082 #endif 2083 2084 /*@C 2085 PetscRealIntMultTruncate - Computes the product of a positive `PetscReal` and a positive 2086 `PetscInt` and truncates the value to slightly less than the maximal possible value. 2087 2088 Not Collective; No Fortran Support 2089 2090 Input Parameters: 2091 + a - The `PetscReal` value 2092 - b - The `PetscInt` value 2093 2094 Level: advanced 2095 2096 Notes: 2097 Returns the result as a `PetscInt` value. 2098 2099 Use `PetscInt64Mult()` to compute the product of two `PetscInt` as a `PetscInt64`. 2100 2101 Use `PetscIntMultTruncate()` to compute the product of two positive `PetscInt` and truncate 2102 to fit a `PetscInt`. 2103 2104 Use `PetscIntMultError()` to compute the product of two `PetscInt` if you wish to generate an 2105 error if the result will not fit in a `PetscInt`. 2106 2107 Developer Notes: 2108 We currently assume that `PetscInt` addition can never overflow, this is obviously wrong but 2109 requires many more checks. 2110 2111 This is used where we compute approximate sizes for workspace and need to insure the 2112 workspace is index-able. 2113 2114 .seealso: `PetscReal`, `PetscInt`, `PetscInt64Mult()`, `PetscIntMultError()`, `PetscIntSumError()` 2115 @*/ 2116 static inline PetscInt PetscRealIntMultTruncate(PetscReal a, PetscInt b) 2117 { 2118 PetscInt64 r = (PetscInt64)(a * (PetscReal)b); 2119 if (r > PETSC_INT_MAX - 100) r = PETSC_INT_MAX - 100; 2120 #if defined(PETSC_USE_64BIT_INDICES) 2121 return r; 2122 #else 2123 return (PetscInt)r; 2124 #endif 2125 } 2126 2127 /*@C 2128 PetscIntMultTruncate - Computes the product of two positive `PetscInt` and truncates the value to slightly less than the maximal possible value 2129 2130 Not Collective; No Fortran Support 2131 2132 Input Parameters: 2133 + a - the `PetscInt` value 2134 - b - the second value 2135 2136 Returns: 2137 The result as a `PetscInt` value 2138 2139 Level: advanced 2140 2141 Notes: 2142 Use `PetscInt64Mult()` to compute the product of two `PetscInt` as a `PetscInt64` 2143 2144 Use `PetscRealIntMultTruncate()` to compute the product of a `PetscReal` and a `PetscInt` and truncate to fit a `PetscInt` 2145 2146 Use `PetscIntMultError()` to compute the product of two `PetscInt` if you wish to generate an error if the result will not fit in a `PetscInt` 2147 2148 Developer Notes: 2149 We currently assume that `PetscInt` addition can never overflow, this is obviously wrong but requires many more checks. 2150 2151 This is used where we compute approximate sizes for workspace and need to insure the workspace is index-able. 2152 2153 .seealso: `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscInt64Mult()`, `PetscIntMultError()`, `PetscIntSumError()`, 2154 `PetscIntSumTruncate()` 2155 @*/ 2156 static inline PetscInt PetscIntMultTruncate(PetscInt a, PetscInt b) 2157 { 2158 PetscInt64 r = PetscInt64Mult(a, b); 2159 if (r > PETSC_INT_MAX - 100) r = PETSC_INT_MAX - 100; 2160 #if defined(PETSC_USE_64BIT_INDICES) 2161 return r; 2162 #else 2163 return (PetscInt)r; 2164 #endif 2165 } 2166 2167 /*@C 2168 PetscIntSumTruncate - Computes the sum of two positive `PetscInt` and truncates the value to slightly less than the maximal possible value 2169 2170 Not Collective; No Fortran Support 2171 2172 Input Parameters: 2173 + a - the `PetscInt` value 2174 - b - the second value 2175 2176 Returns: 2177 The result as a `PetscInt` value 2178 2179 Level: advanced 2180 2181 Notes: 2182 Use `PetscInt64Mult()` to compute the product of two `PetscInt` as a `PetscInt64` 2183 2184 Use `PetscRealIntMultTruncate()` to compute the product of a `PetscReal` and a `PetscInt` and truncate to fit a `PetscInt` 2185 2186 Use `PetscIntMultError()` to compute the product of two `PetscInt` if you wish to generate an error if the result will not fit in a `PetscInt` 2187 2188 Developer Note: 2189 This is used where we compute approximate sizes for workspace and need to insure the workspace is index-able. 2190 2191 .seealso: `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscInt64Mult()`, `PetscIntMultError()` 2192 @*/ 2193 static inline PetscInt PetscIntSumTruncate(PetscInt a, PetscInt b) 2194 { 2195 PetscInt64 r = a; 2196 2197 r += b; 2198 if (r > PETSC_INT_MAX - 100) r = PETSC_INT_MAX - 100; 2199 #if defined(PETSC_USE_64BIT_INDICES) 2200 return r; 2201 #else 2202 return (PetscInt)r; 2203 #endif 2204 } 2205 2206 /*@C 2207 PetscIntMultError - Computes the product of two positive `PetscInt` and generates an error with overflow. 2208 2209 Not Collective; No Fortran Support 2210 2211 Input Parameters: 2212 + a - the `PetscInt` value 2213 - b - the second value 2214 2215 Output Parameter: 2216 . result - the result as a `PetscInt` value, or `NULL` if you do not want the result, you just want to check if it overflows 2217 2218 Level: advanced 2219 2220 Notes: 2221 Use `PetscInt64Mult()` to compute the product of two `PetscInt` and store in a `PetscInt64` 2222 2223 Use `PetscIntMultTruncate()` to compute the product of two `PetscInt` and truncate it to fit in a `PetscInt` 2224 2225 Developer Note: 2226 In most places in the source code we currently assume that `PetscInt` addition does not overflow, this is obviously wrong but requires many more checks. 2227 `PetscIntSumError()` can be used to check for this situation. 2228 2229 .seealso: `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscInt64Mult()`, `PetscIntSumError()` 2230 @*/ 2231 static inline PetscErrorCode PetscIntMultError(PetscInt a, PetscInt b, PetscInt *result) 2232 { 2233 PetscInt64 r = PetscInt64Mult(a, b); 2234 2235 PetscFunctionBegin; 2236 #if defined(PETSC_USE_64BIT_INDICES) 2237 if (result) *result = r; 2238 #else 2239 if (result) *result = (PetscInt)r; 2240 #endif 2241 if (!PetscDefined(USE_64BIT_INDICES)) { 2242 PetscCheck(r <= PETSC_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_SUP, "Product of two integers %" PetscInt_FMT " %" PetscInt_FMT " overflow, either you have an invalidly large integer error in your code or you must ./configure PETSc with --with-64-bit-indices for the case you are running", a, b); 2243 } 2244 PetscFunctionReturn(PETSC_SUCCESS); 2245 } 2246 2247 /*@C 2248 2249 PetscIntSumError - Computes the sum of two positive `PetscInt` and generates an error with overflow. 2250 2251 Not Collective; No Fortran Support 2252 2253 Input Parameters: 2254 + a - the `PetscInt` value 2255 - b - the second value 2256 2257 Output Parameter: 2258 . c - the result as a `PetscInt` value, or `NULL` if you do not want the result, you just want to check if it overflows 2259 2260 Level: advanced 2261 2262 Notes: 2263 Use `PetscInt64Mult()` to compute the product of two 32-bit `PetscInt` and store in a `PetscInt64` 2264 2265 Use `PetscIntMultTruncate()` to compute the product of two `PetscInt` and truncate it to fit in a `PetscInt` 2266 2267 .seealso: `PetscBLASInt`, `PetscMPIInt`, `PetscInt`, `PetscBLASIntCast()`, `PetscInt64Mult()`, `PetscIntMultError()` 2268 @*/ 2269 static inline PetscErrorCode PetscIntSumError(PetscInt a, PetscInt b, PetscInt *result) 2270 { 2271 PetscInt64 r = a; 2272 2273 PetscFunctionBegin; 2274 r += b; 2275 #if defined(PETSC_USE_64BIT_INDICES) 2276 if (result) *result = r; 2277 #else 2278 if (result) *result = (PetscInt)r; 2279 #endif 2280 if (!PetscDefined(USE_64BIT_INDICES)) { 2281 PetscCheck(r <= PETSC_INT_MAX, PETSC_COMM_SELF, PETSC_ERR_SUP, "Sum of two integers %" PetscInt_FMT " %" PetscInt_FMT " overflow, either you have an invalidly large integer error in your code or you must ./configure PETSc with --with-64-bit-indices for the case you are running", a, b); 2282 } 2283 PetscFunctionReturn(PETSC_SUCCESS); 2284 } 2285 2286 /* 2287 The IBM include files define hz, here we hide it so that it may be used as a regular user variable. 2288 */ 2289 #if defined(hz) 2290 #undef hz 2291 #endif 2292 2293 #if defined(PETSC_HAVE_SYS_TYPES_H) 2294 #include <sys/types.h> 2295 #endif 2296 2297 /*MC 2298 2299 PETSC_VERSION - This manual page provides information about how PETSc documents and uses its version information. This information is available to both C/C++ 2300 and Fortran compilers when `petscsys.h` is included. 2301 2302 The current PETSc version and the API for accessing it are defined in <A HREF="PETSC_DOC_OUT_ROOT_PLACEHOLDER/include/petscversion.h.html">include/petscversion.html</A> 2303 2304 The complete version number is given as the triple PETSC_VERSION_MAJOR.PETSC_VERSION_MINOR.PETSC_VERSION_SUBMINOR (in short hand x.y.z) 2305 2306 A change in the minor version number (y) indicates possible/likely changes in the PETSc API. Note this is different than with the semantic versioning convention 2307 where only a change in the major version number (x) indicates a change in the API. 2308 2309 A subminor greater than zero indicates a patch release. Version x.y.z maintains source and binary compatibility with version x.y.w for all z and w 2310 2311 Use the macros PETSC_VERSION_EQ(x,y,z), PETSC_VERSION_LT(x,y,z), PETSC_VERSION_LE(x,y,z), PETSC_VERSION_GT(x,y,z), 2312 PETSC_VERSION_GE(x,y,z) to determine if the current version is equal to, less than, less than or equal to, greater than or greater than or equal to a given 2313 version number (x.y.z). 2314 2315 `PETSC_RELEASE_DATE` is the date the x.y version was released (i.e. the version before any patch releases) 2316 2317 `PETSC_VERSION_DATE` is the date the x.y.z version was released 2318 2319 `PETSC_VERSION_GIT` is the last git commit to the repository given in the form vx.y.z-wwwww 2320 2321 `PETSC_VERSION_DATE_GIT` is the date of the last git commit to the repository 2322 2323 `PETSC_VERSION_()` is deprecated and will eventually be removed. 2324 2325 Level: intermediate 2326 M*/ 2327 2328 PETSC_EXTERN PetscErrorCode PetscGetArchType(char[], size_t); 2329 PETSC_EXTERN PetscErrorCode PetscGetHostName(char[], size_t); 2330 PETSC_EXTERN PetscErrorCode PetscGetUserName(char[], size_t); 2331 PETSC_EXTERN PetscErrorCode PetscGetProgramName(char[], size_t); 2332 PETSC_EXTERN PetscErrorCode PetscSetProgramName(const char[]); 2333 PETSC_EXTERN PetscErrorCode PetscGetDate(char[], size_t); 2334 PETSC_EXTERN PetscErrorCode PetscGetVersion(char[], size_t); 2335 PETSC_EXTERN PetscErrorCode PetscGetVersionNumber(PetscInt *, PetscInt *, PetscInt *, PetscInt *); 2336 2337 PETSC_EXTERN PetscErrorCode PetscSortedInt(PetscCount, const PetscInt[], PetscBool *); 2338 PETSC_EXTERN PetscErrorCode PetscSortedInt64(PetscCount, const PetscInt64[], PetscBool *); 2339 PETSC_EXTERN PetscErrorCode PetscSortedMPIInt(PetscCount, const PetscMPIInt[], PetscBool *); 2340 PETSC_EXTERN PetscErrorCode PetscSortedReal(PetscCount, const PetscReal[], PetscBool *); 2341 PETSC_EXTERN PetscErrorCode PetscSortInt(PetscCount, PetscInt[]); 2342 PETSC_EXTERN PetscErrorCode PetscSortInt64(PetscCount, PetscInt64[]); 2343 PETSC_EXTERN PetscErrorCode PetscSortCount(PetscCount, PetscCount[]); 2344 PETSC_EXTERN PetscErrorCode PetscSortReverseInt(PetscCount, PetscInt[]); 2345 PETSC_EXTERN PetscErrorCode PetscSortedRemoveDupsInt(PetscInt *, PetscInt[]); 2346 PETSC_EXTERN PetscErrorCode PetscSortedCheckDupsInt(PetscCount, const PetscInt[], PetscBool *); 2347 PETSC_EXTERN PetscErrorCode PetscSortedCheckDupsCount(PetscCount, const PetscCount[], PetscBool *); 2348 PETSC_EXTERN PetscErrorCode PetscSortRemoveDupsInt(PetscInt *, PetscInt[]); 2349 PETSC_EXTERN PetscErrorCode PetscCheckDupsInt(PetscInt, const PetscInt[], PetscBool *); 2350 PETSC_EXTERN PetscErrorCode PetscFindInt(PetscInt, PetscCount, const PetscInt[], PetscInt *); 2351 PETSC_EXTERN PetscErrorCode PetscFindMPIInt(PetscMPIInt, PetscCount, const PetscMPIInt[], PetscInt *); 2352 PETSC_EXTERN PetscErrorCode PetscFindCount(PetscCount, PetscCount, const PetscCount[], PetscCount *); 2353 PETSC_EXTERN PetscErrorCode PetscSortIntWithPermutation(PetscInt, const PetscInt[], PetscInt[]); 2354 PETSC_EXTERN PetscErrorCode PetscSortStrWithPermutation(PetscInt, const char *[], PetscInt[]); 2355 PETSC_EXTERN PetscErrorCode PetscSortIntWithArray(PetscCount, PetscInt[], PetscInt[]); 2356 PETSC_EXTERN PetscErrorCode PetscSortIntWithCountArray(PetscCount, PetscInt[], PetscCount[]); 2357 PETSC_EXTERN PetscErrorCode PetscSortIntWithMPIIntArray(PetscCount, PetscInt[], PetscMPIInt[]); 2358 PETSC_EXTERN PetscErrorCode PetscSortIntWithArrayPair(PetscCount, PetscInt[], PetscInt[], PetscInt[]); 2359 PETSC_EXTERN PetscErrorCode PetscSortIntWithIntCountArrayPair(PetscCount, PetscInt[], PetscInt[], PetscCount[]); 2360 PETSC_EXTERN PetscErrorCode PetscSortMPIInt(PetscCount, PetscMPIInt[]); 2361 PETSC_EXTERN PetscErrorCode PetscSortRemoveDupsMPIInt(PetscInt *, PetscMPIInt[]); 2362 PETSC_EXTERN PetscErrorCode PetscSortMPIIntWithArray(PetscCount, PetscMPIInt[], PetscMPIInt[]); 2363 PETSC_EXTERN PetscErrorCode PetscSortMPIIntWithIntArray(PetscCount, PetscMPIInt[], PetscInt[]); 2364 PETSC_EXTERN PetscErrorCode PetscSortIntWithScalarArray(PetscCount, PetscInt[], PetscScalar[]); 2365 PETSC_EXTERN PetscErrorCode PetscSortIntWithDataArray(PetscCount, PetscInt[], void *, size_t, void *); 2366 PETSC_EXTERN PetscErrorCode PetscSortReal(PetscCount, PetscReal[]); 2367 PETSC_EXTERN PetscErrorCode PetscSortRealWithArrayInt(PetscCount, PetscReal[], PetscInt[]); 2368 PETSC_EXTERN PetscErrorCode PetscSortRealWithPermutation(PetscInt, const PetscReal[], PetscInt[]); 2369 PETSC_EXTERN PetscErrorCode PetscSortRemoveDupsReal(PetscInt *, PetscReal[]); 2370 PETSC_EXTERN PetscErrorCode PetscFindReal(PetscReal, PetscCount, const PetscReal[], PetscReal, PetscInt *); 2371 PETSC_EXTERN PetscErrorCode PetscSortSplit(PetscInt, PetscInt, PetscScalar[], PetscInt[]); 2372 PETSC_EXTERN PetscErrorCode PetscSortSplitReal(PetscInt, PetscInt, PetscReal[], PetscInt[]); 2373 PETSC_EXTERN PetscErrorCode PetscProcessTree(PetscInt, const PetscBool[], const PetscInt[], PetscInt *, PetscInt *[], PetscInt *[], PetscInt *[], PetscInt *[]); 2374 PETSC_EXTERN PetscErrorCode PetscMergeIntArrayPair(PetscInt, const PetscInt[], const PetscInt[], PetscInt, const PetscInt[], const PetscInt[], PetscInt *, PetscInt *[], PetscInt *[]); 2375 PETSC_EXTERN PetscErrorCode PetscMergeIntArray(PetscInt, const PetscInt[], PetscInt, const PetscInt[], PetscInt *, PetscInt *[]); 2376 PETSC_EXTERN PetscErrorCode PetscMergeMPIIntArray(PetscInt, const PetscMPIInt[], PetscInt, const PetscMPIInt[], PetscInt *, PetscMPIInt *[]); 2377 PETSC_EXTERN PetscErrorCode PetscParallelSortedInt(MPI_Comm, PetscInt, const PetscInt[], PetscBool *); 2378 2379 PETSC_EXTERN PetscErrorCode PetscTimSort(PetscInt, void *, size_t, int (*)(const void *, const void *, void *), void *); 2380 PETSC_EXTERN PetscErrorCode PetscIntSortSemiOrdered(PetscInt, PetscInt[]); 2381 PETSC_EXTERN PetscErrorCode PetscMPIIntSortSemiOrdered(PetscInt, PetscMPIInt[]); 2382 PETSC_EXTERN PetscErrorCode PetscRealSortSemiOrdered(PetscInt, PetscReal[]); 2383 PETSC_EXTERN PetscErrorCode PetscTimSortWithArray(PetscInt, void *, size_t, void *, size_t, int (*)(const void *, const void *, void *), void *); 2384 PETSC_EXTERN PetscErrorCode PetscIntSortSemiOrderedWithArray(PetscInt, PetscInt[], PetscInt[]); 2385 PETSC_EXTERN PetscErrorCode PetscMPIIntSortSemiOrderedWithArray(PetscInt, PetscMPIInt[], PetscMPIInt[]); 2386 PETSC_EXTERN PetscErrorCode PetscRealSortSemiOrderedWithArrayInt(PetscInt, PetscReal[], PetscInt[]); 2387 2388 PETSC_EXTERN PetscErrorCode PetscSetDisplay(void); 2389 PETSC_EXTERN PetscErrorCode PetscGetDisplay(char[], size_t); 2390 2391 /*J 2392 PetscRandomType - String with the name of a PETSc randomizer 2393 2394 Level: beginner 2395 2396 Note: 2397 To use `PETSCSPRNG` or `PETSCRANDOM123` you must have ./configure PETSc 2398 with the option `--download-sprng` or `--download-random123`. We recommend the default provided with PETSc. 2399 2400 .seealso: `PetscRandomSetType()`, `PetscRandom`, `PetscRandomCreate()` 2401 J*/ 2402 typedef const char *PetscRandomType; 2403 #define PETSCRAND "rand" 2404 #define PETSCRAND48 "rand48" 2405 #define PETSCSPRNG "sprng" 2406 #define PETSCRANDER48 "rander48" 2407 #define PETSCRANDOM123 "random123" 2408 #define PETSCCURAND "curand" 2409 2410 /* Logging support */ 2411 PETSC_EXTERN PetscClassId PETSC_RANDOM_CLASSID; 2412 2413 PETSC_EXTERN PetscErrorCode PetscRandomInitializePackage(void); 2414 PETSC_EXTERN PetscErrorCode PetscRandomFinalizePackage(void); 2415 2416 /* Dynamic creation and loading functions */ 2417 PETSC_EXTERN PetscFunctionList PetscRandomList; 2418 2419 PETSC_EXTERN PetscErrorCode PetscRandomRegister(const char[], PetscErrorCode (*)(PetscRandom)); 2420 PETSC_EXTERN PetscErrorCode PetscRandomSetType(PetscRandom, PetscRandomType); 2421 PETSC_EXTERN PetscErrorCode PetscRandomSetOptionsPrefix(PetscRandom, const char[]); 2422 PETSC_EXTERN PetscErrorCode PetscRandomSetFromOptions(PetscRandom); 2423 PETSC_EXTERN PetscErrorCode PetscRandomGetType(PetscRandom, PetscRandomType *); 2424 PETSC_EXTERN PetscErrorCode PetscRandomViewFromOptions(PetscRandom, PetscObject, const char[]); 2425 PETSC_EXTERN PetscErrorCode PetscRandomView(PetscRandom, PetscViewer); 2426 2427 PETSC_EXTERN PetscErrorCode PetscRandomCreate(MPI_Comm, PetscRandom *); 2428 PETSC_EXTERN PetscErrorCode PetscRandomGetValue(PetscRandom, PetscScalar *); 2429 PETSC_EXTERN PetscErrorCode PetscRandomGetValueReal(PetscRandom, PetscReal *); 2430 PETSC_EXTERN PetscErrorCode PetscRandomGetValues(PetscRandom, PetscInt, PetscScalar *); 2431 PETSC_EXTERN PetscErrorCode PetscRandomGetValuesReal(PetscRandom, PetscInt, PetscReal *); 2432 PETSC_EXTERN PetscErrorCode PetscRandomGetInterval(PetscRandom, PetscScalar *, PetscScalar *); 2433 PETSC_EXTERN PetscErrorCode PetscRandomSetInterval(PetscRandom, PetscScalar, PetscScalar); 2434 PETSC_EXTERN PetscErrorCode PetscRandomSetSeed(PetscRandom, PetscInt64); 2435 PETSC_EXTERN PetscErrorCode PetscRandomGetSeed(PetscRandom, PetscInt64 *); 2436 PETSC_EXTERN PetscErrorCode PetscRandomSeed(PetscRandom); 2437 PETSC_EXTERN PetscErrorCode PetscRandomDestroy(PetscRandom *); 2438 2439 PETSC_EXTERN PetscErrorCode PetscGetFullPath(const char[], char[], size_t); 2440 PETSC_EXTERN PetscErrorCode PetscGetRelativePath(const char[], char[], size_t); 2441 PETSC_EXTERN PetscErrorCode PetscGetWorkingDirectory(char[], size_t); 2442 PETSC_EXTERN PetscErrorCode PetscGetRealPath(const char[], char[]); 2443 PETSC_EXTERN PetscErrorCode PetscGetHomeDirectory(char[], size_t); 2444 PETSC_EXTERN PetscErrorCode PetscTestFile(const char[], char, PetscBool *); 2445 PETSC_EXTERN PetscErrorCode PetscTestDirectory(const char[], char, PetscBool *); 2446 PETSC_EXTERN PetscErrorCode PetscMkdir(const char[]); 2447 PETSC_EXTERN PetscErrorCode PetscMkdtemp(char[]); 2448 PETSC_EXTERN PetscErrorCode PetscRMTree(const char[]); 2449 2450 /*MC 2451 PetscBinaryBigEndian - indicates if values in memory are stored with big endian format 2452 2453 Synopsis: 2454 #include <petscsys.h> 2455 PetscBool PetscBinaryBigEndian(void); 2456 2457 No Fortran Support 2458 2459 Level: developer 2460 2461 .seealso: `PetscInitialize()`, `PetscFinalize()`, `PetscInitializeCalled` 2462 M*/ 2463 static inline PetscBool PetscBinaryBigEndian(void) 2464 { 2465 long _petsc_v = 1; 2466 return ((char *)&_petsc_v)[0] ? PETSC_FALSE : PETSC_TRUE; 2467 } 2468 2469 PETSC_EXTERN PetscErrorCode PetscBinaryRead(int, void *, PetscCount, PetscInt *, PetscDataType); 2470 PETSC_EXTERN PetscErrorCode PetscBinarySynchronizedRead(MPI_Comm, int, void *, PetscInt, PetscInt *, PetscDataType); 2471 PETSC_EXTERN PetscErrorCode PetscBinaryWrite(int, const void *, PetscCount, PetscDataType); 2472 PETSC_EXTERN PetscErrorCode PetscBinarySynchronizedWrite(MPI_Comm, int, const void *, PetscInt, PetscDataType); 2473 PETSC_EXTERN PetscErrorCode PetscBinaryOpen(const char[], PetscFileMode, int *); 2474 PETSC_EXTERN PetscErrorCode PetscBinaryClose(int); 2475 PETSC_EXTERN PetscErrorCode PetscSharedTmp(MPI_Comm, PetscBool *); 2476 PETSC_EXTERN PetscErrorCode PetscSharedWorkingDirectory(MPI_Comm, PetscBool *); 2477 PETSC_EXTERN PetscErrorCode PetscGetTmp(MPI_Comm, char[], size_t); 2478 PETSC_EXTERN PetscErrorCode PetscFileRetrieve(MPI_Comm, const char[], char[], size_t, PetscBool *); 2479 PETSC_EXTERN PetscErrorCode PetscLs(MPI_Comm, const char[], char[], size_t, PetscBool *); 2480 #if defined(PETSC_USE_SOCKET_VIEWER) 2481 PETSC_EXTERN PetscErrorCode PetscOpenSocket(const char[], int, int *); 2482 #endif 2483 2484 PETSC_EXTERN PetscErrorCode PetscBinarySeek(int, off_t, PetscBinarySeekType, off_t *); 2485 PETSC_EXTERN PetscErrorCode PetscBinarySynchronizedSeek(MPI_Comm, int, off_t, PetscBinarySeekType, off_t *); 2486 PETSC_EXTERN PetscErrorCode PetscByteSwap(void *, PetscDataType, PetscCount); 2487 2488 PETSC_EXTERN PetscErrorCode PetscSetDebugTerminal(const char[]); 2489 PETSC_EXTERN PetscErrorCode PetscSetDebugger(const char[], PetscBool); 2490 PETSC_EXTERN PetscErrorCode PetscSetDefaultDebugger(void); 2491 PETSC_EXTERN PetscErrorCode PetscSetDebuggerFromString(const char *); 2492 PETSC_EXTERN PetscErrorCode PetscAttachDebugger(void); 2493 PETSC_EXTERN PetscErrorCode PetscStopForDebugger(void); 2494 PETSC_EXTERN PetscErrorCode PetscWaitOnError(void); 2495 2496 PETSC_EXTERN PetscErrorCode PetscGatherNumberOfMessages(MPI_Comm, const PetscMPIInt[], const PetscMPIInt[], PetscMPIInt *); 2497 PETSC_EXTERN PetscErrorCode PetscGatherMessageLengths(MPI_Comm, PetscMPIInt, PetscMPIInt, const PetscMPIInt[], PetscMPIInt *[], PetscMPIInt *[]); 2498 PETSC_EXTERN PetscErrorCode PetscGatherMessageLengths2(MPI_Comm, PetscMPIInt, PetscMPIInt, const PetscMPIInt[], const PetscMPIInt[], PetscMPIInt *[], PetscMPIInt *[], PetscMPIInt *[]); 2499 PETSC_EXTERN PetscErrorCode PetscPostIrecvInt(MPI_Comm, PetscMPIInt, PetscMPIInt, const PetscMPIInt[], const PetscMPIInt[], PetscInt ***, MPI_Request **); 2500 PETSC_EXTERN PetscErrorCode PetscPostIrecvScalar(MPI_Comm, PetscMPIInt, PetscMPIInt, const PetscMPIInt[], const PetscMPIInt[], PetscScalar ***, MPI_Request **); 2501 PETSC_EXTERN PetscErrorCode PetscCommBuildTwoSided(MPI_Comm, PetscMPIInt, MPI_Datatype, PetscMPIInt, const PetscMPIInt[], const void *, PetscMPIInt *, PetscMPIInt *[], void *) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(6, 3); 2502 PETSC_EXTERN PetscErrorCode PetscCommBuildTwoSidedF(MPI_Comm, PetscMPIInt, MPI_Datatype, PetscMPIInt, const PetscMPIInt[], const void *, PetscMPIInt *, PetscMPIInt **, void *, PetscMPIInt, PetscErrorCode (*send)(MPI_Comm, const PetscMPIInt[], PetscMPIInt, PetscMPIInt, void *, MPI_Request[], void *), PetscErrorCode (*recv)(MPI_Comm, const PetscMPIInt[], PetscMPIInt, void *, MPI_Request[], void *), void *ctx) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(6, 3); 2503 PETSC_EXTERN PetscErrorCode PetscCommBuildTwoSidedFReq(MPI_Comm, PetscMPIInt, MPI_Datatype, PetscMPIInt, const PetscMPIInt[], const void *, PetscMPIInt *, PetscMPIInt **, void *, PetscMPIInt, MPI_Request **, MPI_Request **, PetscErrorCode (*send)(MPI_Comm, const PetscMPIInt[], PetscMPIInt, PetscMPIInt, void *, MPI_Request[], void *), PetscErrorCode (*recv)(MPI_Comm, const PetscMPIInt[], PetscMPIInt, void *, MPI_Request[], void *), void *ctx) PETSC_ATTRIBUTE_MPI_POINTER_WITH_TYPE(6, 3); 2504 2505 PETSC_EXTERN PetscErrorCode PetscCommBuildTwoSidedSetType(MPI_Comm, PetscBuildTwoSidedType); 2506 PETSC_EXTERN PetscErrorCode PetscCommBuildTwoSidedGetType(MPI_Comm, PetscBuildTwoSidedType *); 2507 2508 PETSC_DEPRECATED_FUNCTION(3, 24, 0, "PetscSSEIsEnabled()", ) static inline PetscErrorCode PetscSSEIsEnabled(PETSC_UNUSED MPI_Comm comm, PetscBool *lflag, PetscBool *gflag) 2509 { 2510 if (lflag) *lflag = PETSC_FALSE; 2511 if (gflag) *gflag = PETSC_FALSE; 2512 return PETSC_SUCCESS; 2513 } 2514 2515 PETSC_EXTERN MPI_Comm PetscObjectComm(PetscObject); 2516 2517 struct _n_PetscSubcomm { 2518 MPI_Comm parent; /* parent communicator */ 2519 MPI_Comm dupparent; /* duplicate parent communicator, under which the processors of this subcomm have contiguous rank */ 2520 MPI_Comm child; /* the sub-communicator */ 2521 PetscMPIInt n; /* num of subcommunicators under the parent communicator */ 2522 PetscMPIInt color; /* color of processors belong to this communicator */ 2523 PetscMPIInt *subsize; /* size of subcommunicator[color] */ 2524 PetscSubcommType type; 2525 char *subcommprefix; 2526 }; 2527 2528 static inline MPI_Comm PetscSubcommParent(PetscSubcomm scomm) 2529 { 2530 return scomm->parent; 2531 } 2532 static inline MPI_Comm PetscSubcommChild(PetscSubcomm scomm) 2533 { 2534 return scomm->child; 2535 } 2536 static inline MPI_Comm PetscSubcommContiguousParent(PetscSubcomm scomm) 2537 { 2538 return scomm->dupparent; 2539 } 2540 PETSC_EXTERN PetscErrorCode PetscSubcommCreate(MPI_Comm, PetscSubcomm *); 2541 PETSC_EXTERN PetscErrorCode PetscSubcommDestroy(PetscSubcomm *); 2542 PETSC_EXTERN PetscErrorCode PetscSubcommSetNumber(PetscSubcomm, PetscInt); 2543 PETSC_EXTERN PetscErrorCode PetscSubcommSetType(PetscSubcomm, PetscSubcommType); 2544 PETSC_EXTERN PetscErrorCode PetscSubcommSetTypeGeneral(PetscSubcomm, PetscMPIInt, PetscMPIInt); 2545 PETSC_EXTERN PetscErrorCode PetscSubcommView(PetscSubcomm, PetscViewer); 2546 PETSC_EXTERN PetscErrorCode PetscSubcommSetFromOptions(PetscSubcomm); 2547 PETSC_EXTERN PetscErrorCode PetscSubcommSetOptionsPrefix(PetscSubcomm, const char[]); 2548 PETSC_EXTERN PetscErrorCode PetscSubcommGetParent(PetscSubcomm, MPI_Comm *); 2549 PETSC_EXTERN PetscErrorCode PetscSubcommGetContiguousParent(PetscSubcomm, MPI_Comm *); 2550 PETSC_EXTERN PetscErrorCode PetscSubcommGetChild(PetscSubcomm, MPI_Comm *); 2551 2552 PETSC_EXTERN PetscErrorCode PetscHeapCreate(PetscInt, PetscHeap *); 2553 PETSC_EXTERN PetscErrorCode PetscHeapAdd(PetscHeap, PetscInt, PetscInt); 2554 PETSC_EXTERN PetscErrorCode PetscHeapPop(PetscHeap, PetscInt *, PetscInt *); 2555 PETSC_EXTERN PetscErrorCode PetscHeapPeek(PetscHeap, PetscInt *, PetscInt *); 2556 PETSC_EXTERN PetscErrorCode PetscHeapStash(PetscHeap, PetscInt, PetscInt); 2557 PETSC_EXTERN PetscErrorCode PetscHeapUnstash(PetscHeap); 2558 PETSC_EXTERN PetscErrorCode PetscHeapDestroy(PetscHeap *); 2559 PETSC_EXTERN PetscErrorCode PetscHeapView(PetscHeap, PetscViewer); 2560 2561 PETSC_EXTERN PetscErrorCode PetscProcessPlacementView(PetscViewer); 2562 PETSC_EXTERN PetscErrorCode PetscShmCommGet(MPI_Comm, PetscShmComm *); 2563 PETSC_EXTERN PetscErrorCode PetscShmCommGlobalToLocal(PetscShmComm, PetscMPIInt, PetscMPIInt *); 2564 PETSC_EXTERN PetscErrorCode PetscShmCommLocalToGlobal(PetscShmComm, PetscMPIInt, PetscMPIInt *); 2565 PETSC_EXTERN PetscErrorCode PetscShmCommGetMpiShmComm(PetscShmComm, MPI_Comm *); 2566 2567 /* routines to better support OpenMP multithreading needs of some PETSc third party libraries */ 2568 PETSC_EXTERN PetscErrorCode PetscOmpCtrlCreate(MPI_Comm, PetscInt, PetscOmpCtrl *); 2569 PETSC_EXTERN PetscErrorCode PetscOmpCtrlGetOmpComms(PetscOmpCtrl, MPI_Comm *, MPI_Comm *, PetscBool *); 2570 PETSC_EXTERN PetscErrorCode PetscOmpCtrlDestroy(PetscOmpCtrl *); 2571 PETSC_EXTERN PetscErrorCode PetscOmpCtrlBarrier(PetscOmpCtrl); 2572 PETSC_EXTERN PetscErrorCode PetscOmpCtrlOmpRegionOnMasterBegin(PetscOmpCtrl); 2573 PETSC_EXTERN PetscErrorCode PetscOmpCtrlOmpRegionOnMasterEnd(PetscOmpCtrl); 2574 2575 PETSC_EXTERN PetscErrorCode PetscSegBufferCreate(size_t, PetscCount, PetscSegBuffer *); 2576 PETSC_EXTERN PetscErrorCode PetscSegBufferDestroy(PetscSegBuffer *); 2577 PETSC_EXTERN PetscErrorCode PetscSegBufferGet(PetscSegBuffer, PetscCount, void *); 2578 PETSC_EXTERN PetscErrorCode PetscSegBufferExtractAlloc(PetscSegBuffer, void *); 2579 PETSC_EXTERN PetscErrorCode PetscSegBufferExtractTo(PetscSegBuffer, void *); 2580 PETSC_EXTERN PetscErrorCode PetscSegBufferExtractInPlace(PetscSegBuffer, void *); 2581 PETSC_EXTERN PetscErrorCode PetscSegBufferGetSize(PetscSegBuffer, PetscCount *); 2582 PETSC_EXTERN PetscErrorCode PetscSegBufferUnuse(PetscSegBuffer, PetscCount); 2583 2584 /*MC 2585 PetscSegBufferGetInts - access an array of `PetscInt` from a `PetscSegBuffer` 2586 2587 Synopsis: 2588 #include <petscsys.h> 2589 PetscErrorCode PetscSegBufferGetInts(PetscSegBuffer seg, size_t count, PetscInt *PETSC_RESTRICT *slot); 2590 2591 No Fortran Support 2592 2593 Input Parameters: 2594 + seg - `PetscSegBuffer` buffer 2595 - count - number of entries needed 2596 2597 Output Parameter: 2598 . buf - address of new buffer for contiguous data 2599 2600 Level: intermediate 2601 2602 Developer Note: 2603 Type-safe wrapper to encourage use of PETSC_RESTRICT. Does not use PetscFunctionBegin because the error handling 2604 prevents the compiler from completely erasing the stub. This is called in inner loops so it has to be as fast as 2605 possible. 2606 2607 .seealso: `PetscSegBuffer`, `PetscSegBufferGet()`, `PetscInitialize()`, `PetscFinalize()`, `PetscInitializeCalled` 2608 M*/ 2609 static inline PetscErrorCode PetscSegBufferGetInts(PetscSegBuffer seg, PetscCount count, PetscInt *PETSC_RESTRICT *slot) 2610 { 2611 return PetscSegBufferGet(seg, count, (void **)slot); 2612 } 2613 2614 extern PetscOptionsHelpPrinted PetscOptionsHelpPrintedSingleton; 2615 PETSC_EXTERN PetscErrorCode PetscOptionsHelpPrintedDestroy(PetscOptionsHelpPrinted *); 2616 PETSC_EXTERN PetscErrorCode PetscOptionsHelpPrintedCreate(PetscOptionsHelpPrinted *); 2617 PETSC_EXTERN PetscErrorCode PetscOptionsHelpPrintedCheck(PetscOptionsHelpPrinted, const char *, const char *, PetscBool *); 2618 2619 #include <stdarg.h> 2620 PETSC_EXTERN PetscErrorCode PetscVSNPrintf(char *, size_t, const char[], size_t *, va_list); 2621 PETSC_EXTERN PetscErrorCode (*PetscVFPrintf)(FILE *, const char[], va_list); 2622 2623 PETSC_EXTERN PetscSegBuffer PetscCitationsList; 2624 2625 /*@ 2626 PetscCitationsRegister - Register a bibtex item to obtain credit for an implemented algorithm used in the code. 2627 2628 Not Collective; No Fortran Support 2629 2630 Input Parameters: 2631 + cite - the bibtex item, formatted to displayed on multiple lines nicely 2632 - set - a boolean variable initially set to `PETSC_FALSE`; this is used to insure only a single registration of the citation 2633 2634 Options Database Key: 2635 . -citations [filename] - print out the bibtex entries for the given computation 2636 2637 Level: intermediate 2638 @*/ 2639 static inline PetscErrorCode PetscCitationsRegister(const char cit[], PetscBool *set) 2640 { 2641 size_t len; 2642 char *vstring; 2643 2644 PetscFunctionBegin; 2645 if (set && *set) PetscFunctionReturn(PETSC_SUCCESS); 2646 PetscCall(PetscStrlen(cit, &len)); 2647 PetscCall(PetscSegBufferGet(PetscCitationsList, (PetscCount)len, &vstring)); 2648 PetscCall(PetscArraycpy(vstring, cit, len)); 2649 if (set) *set = PETSC_TRUE; 2650 PetscFunctionReturn(PETSC_SUCCESS); 2651 } 2652 2653 PETSC_EXTERN PetscErrorCode PetscGoogleDriveAuthorize(MPI_Comm, char[], char[], size_t); 2654 PETSC_EXTERN PetscErrorCode PetscGoogleDriveRefresh(MPI_Comm, const char[], char[], size_t); 2655 PETSC_EXTERN PetscErrorCode PetscGoogleDriveUpload(MPI_Comm, const char[], const char[]); 2656 2657 PETSC_EXTERN PetscErrorCode PetscBoxAuthorize(MPI_Comm, char[], char[], size_t); 2658 PETSC_EXTERN PetscErrorCode PetscBoxRefresh(MPI_Comm, const char[], char[], char[], size_t); 2659 PETSC_EXTERN PetscErrorCode PetscBoxUpload(MPI_Comm, const char[], const char[]); 2660 2661 PETSC_EXTERN PetscErrorCode PetscGlobusGetTransfers(MPI_Comm, const char[], char[], size_t); 2662 PETSC_EXTERN PetscErrorCode PetscGlobusAuthorize(MPI_Comm, char[], size_t); 2663 PETSC_EXTERN PetscErrorCode PetscGlobusUpload(MPI_Comm, const char[], const char[]); 2664 2665 PETSC_EXTERN PetscErrorCode PetscPullJSONValue(const char[], const char[], char[], size_t, PetscBool *); 2666 PETSC_EXTERN PetscErrorCode PetscPushJSONValue(char[], const char[], const char[], size_t); 2667 2668 #if !defined(PETSC_HAVE_MPI_LARGE_COUNT) 2669 /* 2670 Cast PetscCount <a> to PetscMPIInt <b>, where <a> is likely used for the 'count' argument in MPI routines. 2671 It is similar to PetscMPIIntCast() except that here it returns an MPI error code. 2672 */ 2673 #define PetscMPIIntCast_Internal(a, b) \ 2674 do { \ 2675 *b = 0; \ 2676 if (PetscUnlikely(a > (MPIU_Count)PETSC_MPI_INT_MAX)) return MPI_ERR_COUNT; \ 2677 *b = (PetscMPIInt)a; \ 2678 } while (0) 2679 2680 static inline PetscMPIInt MPIU_Get_count(MPI_Status *status, MPI_Datatype dtype, PetscCount *count) 2681 { 2682 PetscMPIInt count2, err; 2683 2684 *count = 0; /* to prevent incorrect warnings of uninitialized variables */ 2685 err = MPI_Get_count(status, dtype, &count2); 2686 *count = count2; 2687 return err; 2688 } 2689 2690 static inline PetscMPIInt MPIU_Send(const void *buf, MPIU_Count count, MPI_Datatype dtype, PetscMPIInt dest, PetscMPIInt tag, MPI_Comm comm) 2691 { 2692 PetscMPIInt count2, err; 2693 2694 PetscMPIIntCast_Internal(count, &count2); 2695 err = MPI_Send((void *)buf, count2, dtype, dest, tag, comm); 2696 return err; 2697 } 2698 2699 static inline PetscMPIInt MPIU_Send_init(const void *buf, MPIU_Count count, MPI_Datatype dtype, PetscMPIInt dest, PetscMPIInt tag, MPI_Comm comm, MPI_Request *request) 2700 { 2701 PetscMPIInt count2, err; 2702 2703 PetscMPIIntCast_Internal(count, &count2); 2704 err = MPI_Send_init((void *)buf, count2, dtype, dest, tag, comm, request); 2705 return err; 2706 } 2707 2708 static inline PetscMPIInt MPIU_Isend(const void *buf, MPIU_Count count, MPI_Datatype dtype, PetscMPIInt dest, PetscMPIInt tag, MPI_Comm comm, MPI_Request *request) 2709 { 2710 PetscMPIInt count2, err; 2711 2712 PetscMPIIntCast_Internal(count, &count2); 2713 err = MPI_Isend((void *)buf, count2, dtype, dest, tag, comm, request); 2714 return err; 2715 } 2716 2717 static inline PetscMPIInt MPIU_Recv(const void *buf, MPIU_Count count, MPI_Datatype dtype, PetscMPIInt source, PetscMPIInt tag, MPI_Comm comm, MPI_Status *status) 2718 { 2719 PetscMPIInt count2, err; 2720 2721 PetscMPIIntCast_Internal(count, &count2); 2722 err = MPI_Recv((void *)buf, count2, dtype, source, tag, comm, status); 2723 return err; 2724 } 2725 2726 static inline PetscMPIInt MPIU_Recv_init(const void *buf, MPIU_Count count, MPI_Datatype dtype, PetscMPIInt source, PetscMPIInt tag, MPI_Comm comm, MPI_Request *request) 2727 { 2728 PetscMPIInt count2, err; 2729 2730 PetscMPIIntCast_Internal(count, &count2); 2731 err = MPI_Recv_init((void *)buf, count2, dtype, source, tag, comm, request); 2732 return err; 2733 } 2734 2735 static inline PetscMPIInt MPIU_Irecv(const void *buf, MPIU_Count count, MPI_Datatype dtype, PetscMPIInt source, PetscMPIInt tag, MPI_Comm comm, MPI_Request *request) 2736 { 2737 PetscMPIInt count2, err; 2738 2739 PetscMPIIntCast_Internal(count, &count2); 2740 err = MPI_Irecv((void *)buf, count2, dtype, source, tag, comm, request); 2741 return err; 2742 } 2743 2744 static inline PetscMPIInt MPIU_Reduce(const void *inbuf, void *outbuf, MPIU_Count count, MPI_Datatype dtype, MPI_Op op, PetscMPIInt root, MPI_Comm comm) 2745 { 2746 PetscMPIInt count2, err; 2747 2748 PetscMPIIntCast_Internal(count, &count2); 2749 err = MPI_Reduce((void *)inbuf, outbuf, count2, dtype, op, root, comm); 2750 return err; 2751 } 2752 2753 #if defined(PETSC_HAVE_MPI_REDUCE_LOCAL) 2754 static inline PetscMPIInt MPIU_Reduce_local(const void *inbuf, void *inoutbuf, MPIU_Count count, MPI_Datatype dtype, MPI_Op op) 2755 { 2756 PetscMPIInt count2, err; 2757 2758 PetscMPIIntCast_Internal(count, &count2); 2759 err = MPI_Reduce_local((void *)inbuf, inoutbuf, count2, dtype, op); 2760 return err; 2761 } 2762 #endif 2763 2764 #if !defined(PETSC_USE_64BIT_INDICES) 2765 #define MPIU_Scatterv(sendbuf, sendcounts, displs, sendtype, recvbuf, recvcount, recvtype, root, comm) MPI_Scatterv(sendbuf, sendcounts, displs, sendtype, recvbuf, recvcount, recvtype, root, comm) 2766 #define MPIU_Gatherv(sendbuf, sendcount, sendtype, recvbuf, recvcounts, displs, recvtype, root, comm) MPI_Gatherv(sendbuf, sendcount, sendtype, recvbuf, recvcounts, displs, recvtype, root, comm) 2767 #else 2768 #define MPIU_Scatterv(sendbuf, sendcount, displs, sendtype, recvbuf, recvcount, recvtype, root, comm) \ 2769 ((void)PetscError(comm, __LINE__, PETSC_FUNCTION_NAME, __FILE__, PETSC_ERR_SUP, PETSC_ERROR_INITIAL, "Must have MPI 4 support for MPI_Scatterv_c() for this functionality, upgrade your MPI"), MPI_ERR_COUNT) 2770 #define MPIU_Gatherv(sendbuf, sendcount, sendtype, recvbuf, recvcounts, displs, recvtype, root, comm) \ 2771 ((void)PetscError(comm, __LINE__, PETSC_FUNCTION_NAME, __FILE__, PETSC_ERR_SUP, PETSC_ERROR_INITIAL, "Must have MPI 4 support for MPI_Scatterv_c() for this functionality, upgrade your MPI"), MPI_ERR_COUNT) 2772 #endif 2773 2774 #else 2775 2776 /* on 32 bit systems MPI_Count maybe 64-bit while PetscCount is 32-bit */ 2777 #define PetscCountCast_Internal(a, b) \ 2778 do { \ 2779 *b = 0; \ 2780 if (PetscUnlikely(a > (MPI_Count)PETSC_COUNT_MAX)) return MPI_ERR_COUNT; \ 2781 *b = (PetscMPIInt)a; \ 2782 } while (0) 2783 2784 static inline PetscMPIInt MPIU_Get_count(MPI_Status *status, MPI_Datatype dtype, PetscCount *count) 2785 { 2786 MPI_Count count2; 2787 PetscMPIInt err; 2788 2789 *count = 0; /* to prevent incorrect warnings of uninitialized variables */ 2790 err = MPI_Get_count_c(status, dtype, &count2); 2791 if (err) return err; 2792 PetscCountCast_Internal(count2, count); 2793 return MPI_SUCCESS; 2794 } 2795 2796 #define MPIU_Reduce(inbuf, outbuf, count, dtype, op, root, comm) MPI_Reduce_c(inbuf, outbuf, (MPI_Count)(count), dtype, op, root, comm) 2797 #define MPIU_Send(buf, count, dtype, dest, tag, comm) MPI_Send_c(buf, (MPI_Count)(count), dtype, dest, tag, comm) 2798 #define MPIU_Send_init(buf, count, dtype, dest, tag, comm, request) MPI_Send_init_c(buf, (MPI_Count)(count), dtype, dest, tag, comm, request) 2799 #define MPIU_Isend(buf, count, dtype, dest, tag, comm, request) MPI_Isend_c(buf, (MPI_Count)(count), dtype, dest, tag, comm, request) 2800 #define MPIU_Recv(buf, count, dtype, source, tag, comm, status) MPI_Recv_c(buf, (MPI_Count)(count), dtype, source, tag, comm, status) 2801 #define MPIU_Recv_init(buf, count, dtype, source, tag, comm, request) MPI_Recv_init_c(buf, (MPI_Count)(count), dtype, source, tag, comm, request) 2802 #define MPIU_Irecv(buf, count, dtype, source, tag, comm, request) MPI_Irecv_c(buf, (MPI_Count)(count), dtype, source, tag, comm, request) 2803 #if defined(PETSC_HAVE_MPI_REDUCE_LOCAL) 2804 #define MPIU_Reduce_local(inbuf, inoutbuf, count, dtype, op) MPI_Reduce_local_c(inbuf, inoutbuf, (MPI_Count)(count), dtype, op) 2805 #endif 2806 2807 /*MC 2808 MPIU_Scatterv - A replacement for `MPI_Scatterv()` that can be called with `PetscInt` types when PETSc is built for either 32-bit indices or 64-bit indices. 2809 2810 Synopsis: 2811 #include <petscsys.h> 2812 PetscMPIInt MPIU_Scatterv(const void *sendbuf, const PetscInt sendcounts[], const PetscInt displs[], MPI_Datatype sendtype, void *recvbuf, PetscInt recvcount, MPI_Datatype recvtype, PetscMPIInt root, MPI_Comm comm) 2813 2814 Collective 2815 2816 Input Parameters: 2817 + sendbuf - address of send buffer 2818 . sendcounts - non-negative `PetscInt` array (of length `comm` group size) specifying the number of elements to send to each MPI process 2819 . displs - `PetscInt` array (of length `comm` group size). Entry i specifies the displacement (relative to `sendbuf`) from which to take the outgoing data to process i 2820 . sendtype - data type of `sendbuf` elements 2821 . recvcount - number of elements in `recvbuf` (non-negative integer) 2822 . recvtype - data type of `recvbuf` elements 2823 . root - Rank of the MPI root process, which will dispatch the data to scatter 2824 - comm - `MPI_Comm` communicator 2825 2826 Output Parameter: 2827 . recvbuf - the resulting scattered values on this MPI process 2828 2829 Level: developer 2830 2831 Notes: 2832 Should be wrapped with `PetscCallMPI()` for error checking 2833 2834 This is different than most of the `MPIU_` wrappers in that all the count arguments are in `PetscInt` 2835 2836 .seealso: [](stylePetscCount), `MPI_Allreduce()`, `MPIU_Gatherv()` 2837 M*/ 2838 2839 #if !defined(PETSC_USE_64BIT_INDICES) 2840 #define MPIU_Scatterv(sendbuf, sendcounts, displs, sendtype, recvbuf, recvcount, recvtype, root, comm) MPI_Scatterv(sendbuf, sendcounts, displs, sendtype, recvbuf, recvcount, recvtype, root, comm) 2841 #define MPIU_Gatherv(sendbuf, sendcount, sendtype, recvbuf, recvcounts, displs, recvtype, root, comm) MPI_Gatherv(sendbuf, sendcount, sendtype, recvbuf, recvcounts, displs, recvtype, root, comm) 2842 #else 2843 #define MPIU_Scatterv(sendbuf, sendcounts, displs, sendtype, recvbuf, recvcount, recvtype, root, comm) MPI_Scatterv_c(sendbuf, (const MPI_Count *)(sendcounts), (const MPI_Aint *)(displs), sendtype, recvbuf, recvcount, recvtype, root, comm) 2844 #define MPIU_Gatherv(sendbuf, sendcount, sendtype, recvbuf, recvcounts, displs, recvtype, root, comm) MPI_Gatherv_c(sendbuf, sendcount, sendtype, recvbuf, (const MPI_Count *)(recvcounts), (const MPI_Aint *)(displs), recvtype, root, comm) 2845 #endif 2846 2847 #endif 2848 2849 PETSC_EXTERN PetscMPIInt MPIU_Allreduce_Private(const void *, void *, MPIU_Count, MPI_Datatype, MPI_Op, MPI_Comm); 2850 PETSC_EXTERN PetscErrorCode PetscCheckAllreduceSameLineAndCount_Private(MPI_Comm, const char *, PetscMPIInt, PetscMPIInt); 2851 2852 #if defined(PETSC_USE_DEBUG) 2853 static inline unsigned int PetscStrHash(const char *str) 2854 { 2855 unsigned int c, hash = 5381; 2856 2857 while ((c = (unsigned int)*str++)) hash = ((hash << 5) + hash) + c; /* hash * 33 + c */ 2858 return hash; 2859 } 2860 #endif 2861 2862 /*MC 2863 MPIU_Allreduce - A replacement for `MPI_Allreduce()` that (1) performs single-count `MPIU_INT` operations in `PetscInt64` to detect 2864 integer overflows and (2) tries to determine if the call from all the MPI ranks occur in the 2865 same place in the PETSc code. This helps to detect bugs where different MPI ranks follow different code paths 2866 resulting in inconsistent and incorrect calls to `MPI_Allreduce()`. 2867 2868 Synopsis: 2869 #include <petscsys.h> 2870 PetscMPIInt MPIU_Allreduce(void *indata,void *outdata,PetscCount count,MPI_Datatype dtype, MPI_Op op, MPI_Comm comm); 2871 2872 Collective 2873 2874 Input Parameters: 2875 + a - pointer to the input data to be reduced 2876 . count - the number of MPI data items in `a` and `b` 2877 . dtype - the MPI datatype, for example `MPI_INT` 2878 . op - the MPI operation, for example `MPI_SUM` 2879 - comm - the MPI communicator on which the operation occurs 2880 2881 Output Parameter: 2882 . b - the reduced values 2883 2884 Level: developer 2885 2886 Note: 2887 Should be wrapped with `PetscCallMPI()` for error checking 2888 2889 .seealso: [](stylePetscCount), `MPI_Allreduce()` 2890 M*/ 2891 #if defined(PETSC_USE_DEBUG) 2892 #define MPIU_Allreduce(a, b, count, dtype, op, comm) \ 2893 PetscMacroReturnStandard( \ 2894 PetscCall(PetscCheckAllreduceSameLineAndCount_Private((comm), __FILE__, (PetscMPIInt)__LINE__, (PetscMPIInt)(count))); \ 2895 PetscCallMPI(MPIU_Allreduce_Private((a), (b), (count), (dtype), (op), (comm)));) 2896 #else 2897 #define MPIU_Allreduce(a, b, count, dtype, op, comm) MPIU_Allreduce_Private((a), (b), (count), (dtype), (op), (comm)) 2898 #endif 2899 2900 /* this is a vile hack */ 2901 #if defined(PETSC_HAVE_NECMPI) 2902 #if !defined(PETSC_NECMPI_VERSION_MAJOR) || !defined(PETSC_NECMPI_VERSION_MINOR) || PETSC_NECMPI_VERSION_MAJOR < 2 || (PETSC_NECMPI_VERSION_MAJOR == 2 && PETSC_NECMPI_VERSION_MINOR < 18) 2903 #define MPI_Type_free(a) (*(a) = MPI_DATATYPE_NULL, 0); 2904 #endif 2905 #endif 2906 2907 /* 2908 List of external packages and queries on it 2909 */ 2910 PETSC_EXTERN PetscErrorCode PetscHasExternalPackage(const char[], PetscBool *); 2911 2912 /* this cannot go here because it may be in a different shared library */ 2913 PETSC_EXTERN PetscErrorCode PCMPIServerBegin(void); 2914 PETSC_EXTERN PetscErrorCode PCMPIServerEnd(void); 2915 PETSC_EXTERN PetscBool PCMPIServerActive; 2916 PETSC_EXTERN PetscBool PCMPIServerInSolve; 2917 PETSC_EXTERN PetscBool PCMPIServerUseShmget; 2918 PETSC_EXTERN PetscErrorCode PetscShmgetAllocateArray(size_t, size_t, void **); 2919 PETSC_EXTERN PetscErrorCode PetscShmgetDeallocateArray(void **); 2920 PETSC_EXTERN PetscErrorCode PetscShmgetMapAddresses(MPI_Comm, PetscInt, const void **, void **); 2921 PETSC_EXTERN PetscErrorCode PetscShmgetUnmapAddresses(PetscInt, void **); 2922 PETSC_EXTERN PetscErrorCode PetscShmgetAddressesFinalize(void); 2923 2924 typedef struct { 2925 PetscInt n; 2926 void *addr[3]; 2927 } PCMPIServerAddresses; 2928 PETSC_EXTERN PetscCtxDestroyFn PCMPIServerAddressesDestroy; 2929 2930 #define PETSC_HAVE_FORTRAN PETSC_DEPRECATED_MACRO(3, 20, 0, "PETSC_USE_FORTRAN_BINDINGS", ) PETSC_USE_FORTRAN_BINDINGS 2931 2932 PETSC_EXTERN PetscErrorCode PetscBLASSetNumThreads(PetscInt); 2933 PETSC_EXTERN PetscErrorCode PetscBLASGetNumThreads(PetscInt *); 2934 2935 /*MC 2936 PetscSafePointerPlusOffset - Checks that a pointer is not `NULL` before applying an offset 2937 2938 Level: beginner 2939 2940 Note: 2941 This is needed to avoid errors with undefined-behavior sanitizers such as 2942 UBSan, assuming PETSc has been configured with `-fsanitize=undefined` as part of the compiler flags 2943 M*/ 2944 #define PetscSafePointerPlusOffset(ptr, offset) ((ptr) ? (ptr) + (offset) : NULL) 2945 2946 /* this is required to force PetscDevice to be visible at the system level for the Fortran interface */ 2947 #include <petscdevicetypes.h> 2948 2949 #if PetscDefined(USE_DEBUG) && !PetscDefined(HAVE_THREADSAFETY) 2950 PETSC_EXTERN PetscErrorCode PetscStackView(FILE *); 2951 #else 2952 #define PetscStackView(file) PETSC_SUCCESS 2953 #endif 2954