1 #include <petsc/private/snesimpl.h> /*I "petscsnes.h" I*/ 2 #include <petscdmshell.h> 3 #include <petscdraw.h> 4 #include <petscds.h> 5 #include <petscdmadaptor.h> 6 #include <petscconvest.h> 7 8 PetscBool SNESRegisterAllCalled = PETSC_FALSE; 9 PetscFunctionList SNESList = NULL; 10 11 /* Logging support */ 12 PetscClassId SNES_CLASSID, DMSNES_CLASSID; 13 PetscLogEvent SNES_Solve, SNES_SetUp, SNES_FunctionEval, SNES_JacobianEval, SNES_NGSEval, SNES_NGSFuncEval, SNES_NPCSolve, SNES_ObjectiveEval; 14 15 /*@ 16 SNESSetErrorIfNotConverged - Causes `SNESSolve()` to generate an error immediately if the solver has not converged. 17 18 Logically Collective 19 20 Input Parameters: 21 + snes - iterative context obtained from `SNESCreate()` 22 - flg - `PETSC_TRUE` indicates you want the error generated 23 24 Options Database Key: 25 . -snes_error_if_not_converged <true,false> - cause an immediate error condition and stop the program if the solver does not converge 26 27 Level: intermediate 28 29 Note: 30 Normally PETSc continues if a solver fails to converge, you can call `SNESGetConvergedReason()` after a `SNESSolve()` 31 to determine if it has converged. Otherwise the solution may be inaccurate or wrong 32 33 .seealso: [](ch_snes), `SNES`, `SNESGetErrorIfNotConverged()`, `KSPGetErrorIfNotConverged()`, `KSPSetErrorIfNotConverged()` 34 @*/ 35 PetscErrorCode SNESSetErrorIfNotConverged(SNES snes, PetscBool flg) 36 { 37 PetscFunctionBegin; 38 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 39 PetscValidLogicalCollectiveBool(snes, flg, 2); 40 snes->errorifnotconverged = flg; 41 PetscFunctionReturn(PETSC_SUCCESS); 42 } 43 44 /*@ 45 SNESGetErrorIfNotConverged - Indicates if `SNESSolve()` will generate an error if the solver does not converge? 46 47 Not Collective 48 49 Input Parameter: 50 . snes - iterative context obtained from `SNESCreate()` 51 52 Output Parameter: 53 . flag - `PETSC_TRUE` if it will generate an error, else `PETSC_FALSE` 54 55 Level: intermediate 56 57 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetErrorIfNotConverged()`, `KSPGetErrorIfNotConverged()`, `KSPSetErrorIfNotConverged()` 58 @*/ 59 PetscErrorCode SNESGetErrorIfNotConverged(SNES snes, PetscBool *flag) 60 { 61 PetscFunctionBegin; 62 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 63 PetscAssertPointer(flag, 2); 64 *flag = snes->errorifnotconverged; 65 PetscFunctionReturn(PETSC_SUCCESS); 66 } 67 68 /*@ 69 SNESSetAlwaysComputesFinalResidual - tells the `SNES` to always compute the residual (nonlinear function value) at the final solution 70 71 Logically Collective 72 73 Input Parameters: 74 + snes - the shell `SNES` 75 - flg - `PETSC_TRUE` to always compute the residual 76 77 Level: advanced 78 79 Note: 80 Some solvers (such as smoothers in a `SNESFAS`) do not need the residual computed at the final solution so skip computing it 81 to save time. 82 83 .seealso: [](ch_snes), `SNES`, `SNESFAS`, `SNESSolve()`, `SNESGetAlwaysComputesFinalResidual()` 84 @*/ 85 PetscErrorCode SNESSetAlwaysComputesFinalResidual(SNES snes, PetscBool flg) 86 { 87 PetscFunctionBegin; 88 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 89 snes->alwayscomputesfinalresidual = flg; 90 PetscFunctionReturn(PETSC_SUCCESS); 91 } 92 93 /*@ 94 SNESGetAlwaysComputesFinalResidual - checks if the `SNES` always computes the residual at the final solution 95 96 Logically Collective 97 98 Input Parameter: 99 . snes - the `SNES` context 100 101 Output Parameter: 102 . flg - `PETSC_TRUE` if the residual is computed 103 104 Level: advanced 105 106 .seealso: [](ch_snes), `SNES`, `SNESFAS`, `SNESSolve()`, `SNESSetAlwaysComputesFinalResidual()` 107 @*/ 108 PetscErrorCode SNESGetAlwaysComputesFinalResidual(SNES snes, PetscBool *flg) 109 { 110 PetscFunctionBegin; 111 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 112 *flg = snes->alwayscomputesfinalresidual; 113 PetscFunctionReturn(PETSC_SUCCESS); 114 } 115 116 /*@ 117 SNESSetFunctionDomainError - tells `SNES` that the input vector, a proposed new solution, to your function you provided to `SNESSetFunction()` is not 118 in the functions domain. For example, a step with negative pressure. 119 120 Logically Collective 121 122 Input Parameter: 123 . snes - the `SNES` context 124 125 Level: advanced 126 127 Notes: 128 If this is called the `SNESSolve()` stops iterating and returns with a `SNESConvergedReason` of `SNES_DIVERGED_FUNCTION_DOMAIN` 129 130 You should always call `SNESGetConvergedReason()` after each `SNESSolve()` and verify if the iteration converged (positive result) or diverged (negative result). 131 132 You can direct `SNES` to avoid certain steps by using `SNESVISetVariableBounds()`, `SNESVISetComputeVariableBounds()` or 133 `SNESLineSearchSetPreCheck()`, `SNESLineSearchSetPostCheck()` 134 135 .seealso: [](ch_snes), `SNESCreate()`, `SNESSetFunction()`, `SNESFunction`, `SNESSetJacobianDomainError()`, `SNESVISetVariableBounds()`, 136 `SNESVISetComputeVariableBounds()`, `SNESLineSearchSetPreCheck()`, `SNESLineSearchSetPostCheck()`, `SNESConvergedReason`, `SNESGetConvergedReason()` 137 @*/ 138 PetscErrorCode SNESSetFunctionDomainError(SNES snes) 139 { 140 PetscFunctionBegin; 141 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 142 PetscCheck(!snes->errorifnotconverged, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "User code indicates input vector is not in the function domain"); 143 snes->domainerror = PETSC_TRUE; 144 PetscFunctionReturn(PETSC_SUCCESS); 145 } 146 147 /*@ 148 SNESSetJacobianDomainError - tells `SNES` that the function you provided to `SNESSetJacobian()` at the proposed step. For example there is a negative element transformation. 149 150 Logically Collective 151 152 Input Parameter: 153 . snes - the `SNES` context 154 155 Level: advanced 156 157 Notes: 158 If this is called the `SNESSolve()` stops iterating and returns with a `SNESConvergedReason` of `SNES_DIVERGED_FUNCTION_DOMAIN` 159 160 You should always call `SNESGetConvergedReason()` after each `SNESSolve()` and verify if the iteration converged (positive result) or diverged (negative result). 161 162 You can direct `SNES` to avoid certain steps by using `SNESVISetVariableBounds()`, `SNESVISetComputeVariableBounds()` or 163 `SNESLineSearchSetPreCheck()`, `SNESLineSearchSetPostCheck()` 164 165 .seealso: [](ch_snes), `SNESCreate()`, `SNESSetFunction()`, `SNESFunction()`, `SNESSetFunctionDomainError()`, `SNESVISetVariableBounds()`, 166 `SNESVISetComputeVariableBounds()`, `SNESLineSearchSetPreCheck()`, `SNESLineSearchSetPostCheck()`, `SNESConvergedReason`, `SNESGetConvergedReason()` 167 @*/ 168 PetscErrorCode SNESSetJacobianDomainError(SNES snes) 169 { 170 PetscFunctionBegin; 171 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 172 PetscCheck(!snes->errorifnotconverged, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "User code indicates computeJacobian does not make sense"); 173 snes->jacobiandomainerror = PETSC_TRUE; 174 PetscFunctionReturn(PETSC_SUCCESS); 175 } 176 177 /*@ 178 SNESSetCheckJacobianDomainError - tells `SNESSolve()` whether to check if the user called `SNESSetJacobianDomainError()` Jacobian domain error after 179 each Jacobian evaluation. By default, it checks for the Jacobian domain error in the debug mode, and does not check it in the optimized mode. 180 181 Logically Collective 182 183 Input Parameters: 184 + snes - the `SNES` context 185 - flg - indicates if or not to check Jacobian domain error after each Jacobian evaluation 186 187 Level: advanced 188 189 Note: 190 Checks require one extra parallel synchronization for each Jacobian evaluation 191 192 .seealso: [](ch_snes), `SNES`, `SNESConvergedReason`, `SNESCreate()`, `SNESSetFunction()`, `SNESFunction()`, `SNESSetFunctionDomainError()`, `SNESGetCheckJacobianDomainError()` 193 @*/ 194 PetscErrorCode SNESSetCheckJacobianDomainError(SNES snes, PetscBool flg) 195 { 196 PetscFunctionBegin; 197 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 198 snes->checkjacdomainerror = flg; 199 PetscFunctionReturn(PETSC_SUCCESS); 200 } 201 202 /*@ 203 SNESGetCheckJacobianDomainError - Get an indicator whether or not `SNES` is checking Jacobian domain errors after each Jacobian evaluation. 204 205 Logically Collective 206 207 Input Parameter: 208 . snes - the `SNES` context 209 210 Output Parameter: 211 . flg - `PETSC_FALSE` indicates that it is not checking Jacobian domain errors after each Jacobian evaluation 212 213 Level: advanced 214 215 .seealso: [](ch_snes), `SNES`, `SNESCreate()`, `SNESSetFunction()`, `SNESFunction()`, `SNESSetFunctionDomainError()`, `SNESSetCheckJacobianDomainError()` 216 @*/ 217 PetscErrorCode SNESGetCheckJacobianDomainError(SNES snes, PetscBool *flg) 218 { 219 PetscFunctionBegin; 220 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 221 PetscAssertPointer(flg, 2); 222 *flg = snes->checkjacdomainerror; 223 PetscFunctionReturn(PETSC_SUCCESS); 224 } 225 226 /*@ 227 SNESGetFunctionDomainError - Gets the status of the domain error after a call to `SNESComputeFunction()` 228 229 Logically Collective 230 231 Input Parameter: 232 . snes - the `SNES` context 233 234 Output Parameter: 235 . domainerror - Set to `PETSC_TRUE` if there's a domain error; `PETSC_FALSE` otherwise. 236 237 Level: developer 238 239 .seealso: [](ch_snes), `SNES`, `SNESSetFunctionDomainError()`, `SNESComputeFunction()` 240 @*/ 241 PetscErrorCode SNESGetFunctionDomainError(SNES snes, PetscBool *domainerror) 242 { 243 PetscFunctionBegin; 244 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 245 PetscAssertPointer(domainerror, 2); 246 *domainerror = snes->domainerror; 247 PetscFunctionReturn(PETSC_SUCCESS); 248 } 249 250 /*@ 251 SNESGetJacobianDomainError - Gets the status of the Jacobian domain error after a call to `SNESComputeJacobian()` 252 253 Logically Collective 254 255 Input Parameter: 256 . snes - the `SNES` context 257 258 Output Parameter: 259 . domainerror - Set to `PETSC_TRUE` if there's a Jacobian domain error; `PETSC_FALSE` otherwise. 260 261 Level: advanced 262 263 .seealso: [](ch_snes), `SNES`, `SNESSetFunctionDomainError()`, `SNESComputeFunction()`, `SNESGetFunctionDomainError()` 264 @*/ 265 PetscErrorCode SNESGetJacobianDomainError(SNES snes, PetscBool *domainerror) 266 { 267 PetscFunctionBegin; 268 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 269 PetscAssertPointer(domainerror, 2); 270 *domainerror = snes->jacobiandomainerror; 271 PetscFunctionReturn(PETSC_SUCCESS); 272 } 273 274 /*@C 275 SNESLoad - Loads a `SNES` that has been stored in `PETSCVIEWERBINARY` with `SNESView()`. 276 277 Collective 278 279 Input Parameters: 280 + snes - the newly loaded `SNES`, this needs to have been created with `SNESCreate()` or 281 some related function before a call to `SNESLoad()`. 282 - viewer - binary file viewer, obtained from `PetscViewerBinaryOpen()` 283 284 Level: intermediate 285 286 Note: 287 The `SNESType` is determined by the data in the file, any type set into the `SNES` before this call is ignored. 288 289 .seealso: [](ch_snes), `SNES`, `PetscViewer`, `SNESCreate()`, `SNESType`, `PetscViewerBinaryOpen()`, `SNESView()`, `MatLoad()`, `VecLoad()` 290 @*/ 291 PetscErrorCode SNESLoad(SNES snes, PetscViewer viewer) 292 { 293 PetscBool isbinary; 294 PetscInt classid; 295 char type[256]; 296 KSP ksp; 297 DM dm; 298 DMSNES dmsnes; 299 300 PetscFunctionBegin; 301 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 302 PetscValidHeaderSpecific(viewer, PETSC_VIEWER_CLASSID, 2); 303 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERBINARY, &isbinary)); 304 PetscCheck(isbinary, PETSC_COMM_SELF, PETSC_ERR_ARG_WRONG, "Invalid viewer; open viewer with PetscViewerBinaryOpen()"); 305 306 PetscCall(PetscViewerBinaryRead(viewer, &classid, 1, NULL, PETSC_INT)); 307 PetscCheck(classid == SNES_FILE_CLASSID, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_WRONG, "Not SNES next in file"); 308 PetscCall(PetscViewerBinaryRead(viewer, type, 256, NULL, PETSC_CHAR)); 309 PetscCall(SNESSetType(snes, type)); 310 PetscTryTypeMethod(snes, load, viewer); 311 PetscCall(SNESGetDM(snes, &dm)); 312 PetscCall(DMGetDMSNES(dm, &dmsnes)); 313 PetscCall(DMSNESLoad(dmsnes, viewer)); 314 PetscCall(SNESGetKSP(snes, &ksp)); 315 PetscCall(KSPLoad(ksp, viewer)); 316 PetscFunctionReturn(PETSC_SUCCESS); 317 } 318 319 #include <petscdraw.h> 320 #if defined(PETSC_HAVE_SAWS) 321 #include <petscviewersaws.h> 322 #endif 323 324 /*@C 325 SNESViewFromOptions - View a `SNES` based on values in the options database 326 327 Collective 328 329 Input Parameters: 330 + A - the `SNES` context 331 . obj - Optional object that provides the options prefix for the checks 332 - name - command line option 333 334 Level: intermediate 335 336 .seealso: [](ch_snes), `SNES`, `SNESView`, `PetscObjectViewFromOptions()`, `SNESCreate()` 337 @*/ 338 PetscErrorCode SNESViewFromOptions(SNES A, PetscObject obj, const char name[]) 339 { 340 PetscFunctionBegin; 341 PetscValidHeaderSpecific(A, SNES_CLASSID, 1); 342 PetscCall(PetscObjectViewFromOptions((PetscObject)A, obj, name)); 343 PetscFunctionReturn(PETSC_SUCCESS); 344 } 345 346 PETSC_EXTERN PetscErrorCode SNESComputeJacobian_DMDA(SNES, Vec, Mat, Mat, void *); 347 348 /*@C 349 SNESView - Prints or visualizes the `SNES` data structure. 350 351 Collective 352 353 Input Parameters: 354 + snes - the `SNES` context 355 - viewer - the `PetscViewer` 356 357 Options Database Key: 358 . -snes_view - Calls `SNESView()` at end of `SNESSolve()` 359 360 Level: beginner 361 362 Notes: 363 The available visualization contexts include 364 + `PETSC_VIEWER_STDOUT_SELF` - standard output (default) 365 - `PETSC_VIEWER_STDOUT_WORLD` - synchronized standard 366 output where only the first processor opens 367 the file. All other processors send their 368 data to the first processor to print. 369 370 The available formats include 371 + `PETSC_VIEWER_DEFAULT` - standard output (default) 372 - `PETSC_VIEWER_ASCII_INFO_DETAIL` - more verbose output for `SNESNASM` 373 374 The user can open an alternative visualization context with 375 `PetscViewerASCIIOpen()` - output to a specified file. 376 377 In the debugger you can do "call `SNESView`(snes,0)" to display the `SNES` solver. (The same holds for any PETSc object viewer). 378 379 .seealso: [](ch_snes), `SNES`, `SNESLoad()`, `SNESCreate()`, `PetscViewerASCIIOpen()` 380 @*/ 381 PetscErrorCode SNESView(SNES snes, PetscViewer viewer) 382 { 383 SNESKSPEW *kctx; 384 KSP ksp; 385 SNESLineSearch linesearch; 386 PetscBool iascii, isstring, isbinary, isdraw; 387 DMSNES dmsnes; 388 #if defined(PETSC_HAVE_SAWS) 389 PetscBool issaws; 390 #endif 391 392 PetscFunctionBegin; 393 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 394 if (!viewer) PetscCall(PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)snes), &viewer)); 395 PetscValidHeaderSpecific(viewer, PETSC_VIEWER_CLASSID, 2); 396 PetscCheckSameComm(snes, 1, viewer, 2); 397 398 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERASCII, &iascii)); 399 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERSTRING, &isstring)); 400 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERBINARY, &isbinary)); 401 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERDRAW, &isdraw)); 402 #if defined(PETSC_HAVE_SAWS) 403 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERSAWS, &issaws)); 404 #endif 405 if (iascii) { 406 SNESNormSchedule normschedule; 407 DM dm; 408 PetscErrorCode (*cJ)(SNES, Vec, Mat, Mat, void *); 409 void *ctx; 410 const char *pre = ""; 411 412 PetscCall(PetscObjectPrintClassNamePrefixType((PetscObject)snes, viewer)); 413 if (!snes->setupcalled) PetscCall(PetscViewerASCIIPrintf(viewer, " SNES has not been set up so information may be incomplete\n")); 414 if (snes->ops->view) { 415 PetscCall(PetscViewerASCIIPushTab(viewer)); 416 PetscUseTypeMethod(snes, view, viewer); 417 PetscCall(PetscViewerASCIIPopTab(viewer)); 418 } 419 PetscCall(PetscViewerASCIIPrintf(viewer, " maximum iterations=%" PetscInt_FMT ", maximum function evaluations=%" PetscInt_FMT "\n", snes->max_its, snes->max_funcs)); 420 PetscCall(PetscViewerASCIIPrintf(viewer, " tolerances: relative=%g, absolute=%g, solution=%g\n", (double)snes->rtol, (double)snes->abstol, (double)snes->stol)); 421 if (snes->usesksp) PetscCall(PetscViewerASCIIPrintf(viewer, " total number of linear solver iterations=%" PetscInt_FMT "\n", snes->linear_its)); 422 PetscCall(PetscViewerASCIIPrintf(viewer, " total number of function evaluations=%" PetscInt_FMT "\n", snes->nfuncs)); 423 PetscCall(SNESGetNormSchedule(snes, &normschedule)); 424 if (normschedule > 0) PetscCall(PetscViewerASCIIPrintf(viewer, " norm schedule %s\n", SNESNormSchedules[normschedule])); 425 if (snes->gridsequence) PetscCall(PetscViewerASCIIPrintf(viewer, " total number of grid sequence refinements=%" PetscInt_FMT "\n", snes->gridsequence)); 426 if (snes->ksp_ewconv) { 427 kctx = (SNESKSPEW *)snes->kspconvctx; 428 if (kctx) { 429 PetscCall(PetscViewerASCIIPrintf(viewer, " Eisenstat-Walker computation of KSP relative tolerance (version %" PetscInt_FMT ")\n", kctx->version)); 430 PetscCall(PetscViewerASCIIPrintf(viewer, " rtol_0=%g, rtol_max=%g, threshold=%g\n", (double)kctx->rtol_0, (double)kctx->rtol_max, (double)kctx->threshold)); 431 PetscCall(PetscViewerASCIIPrintf(viewer, " gamma=%g, alpha=%g, alpha2=%g\n", (double)kctx->gamma, (double)kctx->alpha, (double)kctx->alpha2)); 432 } 433 } 434 if (snes->lagpreconditioner == -1) { 435 PetscCall(PetscViewerASCIIPrintf(viewer, " Preconditioned is never rebuilt\n")); 436 } else if (snes->lagpreconditioner > 1) { 437 PetscCall(PetscViewerASCIIPrintf(viewer, " Preconditioned is rebuilt every %" PetscInt_FMT " new Jacobians\n", snes->lagpreconditioner)); 438 } 439 if (snes->lagjacobian == -1) { 440 PetscCall(PetscViewerASCIIPrintf(viewer, " Jacobian is never rebuilt\n")); 441 } else if (snes->lagjacobian > 1) { 442 PetscCall(PetscViewerASCIIPrintf(viewer, " Jacobian is rebuilt every %" PetscInt_FMT " SNES iterations\n", snes->lagjacobian)); 443 } 444 PetscCall(SNESGetDM(snes, &dm)); 445 PetscCall(DMSNESGetJacobian(dm, &cJ, &ctx)); 446 if (snes->mf_operator) { 447 PetscCall(PetscViewerASCIIPrintf(viewer, " Jacobian is applied matrix-free with differencing\n")); 448 pre = "Preconditioning "; 449 } 450 if (cJ == SNESComputeJacobianDefault) { 451 PetscCall(PetscViewerASCIIPrintf(viewer, " %sJacobian is built using finite differences one column at a time\n", pre)); 452 } else if (cJ == SNESComputeJacobianDefaultColor) { 453 PetscCall(PetscViewerASCIIPrintf(viewer, " %sJacobian is built using finite differences with coloring\n", pre)); 454 /* it slightly breaks data encapsulation for access the DMDA information directly */ 455 } else if (cJ == SNESComputeJacobian_DMDA) { 456 MatFDColoring fdcoloring; 457 PetscCall(PetscObjectQuery((PetscObject)dm, "DMDASNES_FDCOLORING", (PetscObject *)&fdcoloring)); 458 if (fdcoloring) { 459 PetscCall(PetscViewerASCIIPrintf(viewer, " %sJacobian is built using colored finite differences on a DMDA\n", pre)); 460 } else { 461 PetscCall(PetscViewerASCIIPrintf(viewer, " %sJacobian is built using a DMDA local Jacobian\n", pre)); 462 } 463 } else if (snes->mf && !snes->mf_operator) { 464 PetscCall(PetscViewerASCIIPrintf(viewer, " Jacobian is applied matrix-free with differencing, no explicit Jacobian\n")); 465 } 466 } else if (isstring) { 467 const char *type; 468 PetscCall(SNESGetType(snes, &type)); 469 PetscCall(PetscViewerStringSPrintf(viewer, " SNESType: %-7.7s", type)); 470 PetscTryTypeMethod(snes, view, viewer); 471 } else if (isbinary) { 472 PetscInt classid = SNES_FILE_CLASSID; 473 MPI_Comm comm; 474 PetscMPIInt rank; 475 char type[256]; 476 477 PetscCall(PetscObjectGetComm((PetscObject)snes, &comm)); 478 PetscCallMPI(MPI_Comm_rank(comm, &rank)); 479 if (rank == 0) { 480 PetscCall(PetscViewerBinaryWrite(viewer, &classid, 1, PETSC_INT)); 481 PetscCall(PetscStrncpy(type, ((PetscObject)snes)->type_name, sizeof(type))); 482 PetscCall(PetscViewerBinaryWrite(viewer, type, sizeof(type), PETSC_CHAR)); 483 } 484 PetscTryTypeMethod(snes, view, viewer); 485 } else if (isdraw) { 486 PetscDraw draw; 487 char str[36]; 488 PetscReal x, y, bottom, h; 489 490 PetscCall(PetscViewerDrawGetDraw(viewer, 0, &draw)); 491 PetscCall(PetscDrawGetCurrentPoint(draw, &x, &y)); 492 PetscCall(PetscStrncpy(str, "SNES: ", sizeof(str))); 493 PetscCall(PetscStrlcat(str, ((PetscObject)snes)->type_name, sizeof(str))); 494 PetscCall(PetscDrawStringBoxed(draw, x, y, PETSC_DRAW_BLUE, PETSC_DRAW_BLACK, str, NULL, &h)); 495 bottom = y - h; 496 PetscCall(PetscDrawPushCurrentPoint(draw, x, bottom)); 497 PetscTryTypeMethod(snes, view, viewer); 498 #if defined(PETSC_HAVE_SAWS) 499 } else if (issaws) { 500 PetscMPIInt rank; 501 const char *name; 502 503 PetscCall(PetscObjectGetName((PetscObject)snes, &name)); 504 PetscCallMPI(MPI_Comm_rank(PETSC_COMM_WORLD, &rank)); 505 if (!((PetscObject)snes)->amsmem && rank == 0) { 506 char dir[1024]; 507 508 PetscCall(PetscObjectViewSAWs((PetscObject)snes, viewer)); 509 PetscCall(PetscSNPrintf(dir, 1024, "/PETSc/Objects/%s/its", name)); 510 PetscCallSAWs(SAWs_Register, (dir, &snes->iter, 1, SAWs_READ, SAWs_INT)); 511 if (!snes->conv_hist) PetscCall(SNESSetConvergenceHistory(snes, NULL, NULL, PETSC_DECIDE, PETSC_TRUE)); 512 PetscCall(PetscSNPrintf(dir, 1024, "/PETSc/Objects/%s/conv_hist", name)); 513 PetscCallSAWs(SAWs_Register, (dir, snes->conv_hist, 10, SAWs_READ, SAWs_DOUBLE)); 514 } 515 #endif 516 } 517 if (snes->linesearch) { 518 PetscCall(SNESGetLineSearch(snes, &linesearch)); 519 PetscCall(PetscViewerASCIIPushTab(viewer)); 520 PetscCall(SNESLineSearchView(linesearch, viewer)); 521 PetscCall(PetscViewerASCIIPopTab(viewer)); 522 } 523 if (snes->npc && snes->usesnpc) { 524 PetscCall(PetscViewerASCIIPushTab(viewer)); 525 PetscCall(SNESView(snes->npc, viewer)); 526 PetscCall(PetscViewerASCIIPopTab(viewer)); 527 } 528 PetscCall(PetscViewerASCIIPushTab(viewer)); 529 PetscCall(DMGetDMSNES(snes->dm, &dmsnes)); 530 PetscCall(DMSNESView(dmsnes, viewer)); 531 PetscCall(PetscViewerASCIIPopTab(viewer)); 532 if (snes->usesksp) { 533 PetscCall(SNESGetKSP(snes, &ksp)); 534 PetscCall(PetscViewerASCIIPushTab(viewer)); 535 PetscCall(KSPView(ksp, viewer)); 536 PetscCall(PetscViewerASCIIPopTab(viewer)); 537 } 538 if (isdraw) { 539 PetscDraw draw; 540 PetscCall(PetscViewerDrawGetDraw(viewer, 0, &draw)); 541 PetscCall(PetscDrawPopCurrentPoint(draw)); 542 } 543 PetscFunctionReturn(PETSC_SUCCESS); 544 } 545 546 /* 547 We retain a list of functions that also take SNES command 548 line options. These are called at the end SNESSetFromOptions() 549 */ 550 #define MAXSETFROMOPTIONS 5 551 static PetscInt numberofsetfromoptions; 552 static PetscErrorCode (*othersetfromoptions[MAXSETFROMOPTIONS])(SNES); 553 554 /*@C 555 SNESAddOptionsChecker - Adds an additional function to check for `SNES` options. 556 557 Not Collective 558 559 Input Parameter: 560 . snescheck - function that checks for options 561 562 Calling sequence of `snescheck`: 563 . snes - the `SNES` object for which it is checking options 564 565 Level: developer 566 567 .seealso: [](ch_snes), `SNES`, `SNESSetFromOptions()` 568 @*/ 569 PetscErrorCode SNESAddOptionsChecker(PetscErrorCode (*snescheck)(SNES snes)) 570 { 571 PetscFunctionBegin; 572 PetscCheck(numberofsetfromoptions < MAXSETFROMOPTIONS, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Too many options checkers, only %d allowed", MAXSETFROMOPTIONS); 573 othersetfromoptions[numberofsetfromoptions++] = snescheck; 574 PetscFunctionReturn(PETSC_SUCCESS); 575 } 576 577 static PetscErrorCode SNESSetUpMatrixFree_Private(SNES snes, PetscBool hasOperator, PetscInt version) 578 { 579 Mat J; 580 MatNullSpace nullsp; 581 582 PetscFunctionBegin; 583 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 584 585 if (!snes->vec_func && (snes->jacobian || snes->jacobian_pre)) { 586 Mat A = snes->jacobian, B = snes->jacobian_pre; 587 PetscCall(MatCreateVecs(A ? A : B, NULL, &snes->vec_func)); 588 } 589 590 PetscCheck(version == 1 || version == 2, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "matrix-free operator routines, only version 1 and 2"); 591 if (version == 1) { 592 PetscCall(MatCreateSNESMF(snes, &J)); 593 PetscCall(MatMFFDSetOptionsPrefix(J, ((PetscObject)snes)->prefix)); 594 PetscCall(MatSetFromOptions(J)); 595 /* TODO: the version 2 code should be merged into the MatCreateSNESMF() and MatCreateMFFD() infrastructure and then removed */ 596 } else /* if (version == 2) */ { 597 PetscCheck(snes->vec_func, PETSC_COMM_SELF, PETSC_ERR_ARG_WRONGSTATE, "SNESSetFunction() must be called first"); 598 #if !defined(PETSC_USE_COMPLEX) && !defined(PETSC_USE_REAL_SINGLE) && !defined(PETSC_USE_REAL___FLOAT128) && !defined(PETSC_USE_REAL___FP16) 599 PetscCall(MatCreateSNESMFMore(snes, snes->vec_func, &J)); 600 #else 601 SETERRQ(PETSC_COMM_SELF, PETSC_ERR_SUP, "matrix-free operator routines (version 2)"); 602 #endif 603 } 604 605 /* attach any user provided null space that was on Amat to the newly created matrix-free matrix */ 606 if (snes->jacobian) { 607 PetscCall(MatGetNullSpace(snes->jacobian, &nullsp)); 608 if (nullsp) PetscCall(MatSetNullSpace(J, nullsp)); 609 } 610 611 PetscCall(PetscInfo(snes, "Setting default matrix-free operator routines (version %" PetscInt_FMT ")\n", version)); 612 if (hasOperator) { 613 /* This version replaces the user provided Jacobian matrix with a 614 matrix-free version but still employs the user-provided preconditioner matrix. */ 615 PetscCall(SNESSetJacobian(snes, J, NULL, NULL, NULL)); 616 } else { 617 /* This version replaces both the user-provided Jacobian and the user- 618 provided preconditioner Jacobian with the default matrix-free version. */ 619 if (snes->npcside == PC_LEFT && snes->npc) { 620 if (!snes->jacobian) PetscCall(SNESSetJacobian(snes, J, NULL, NULL, NULL)); 621 } else { 622 KSP ksp; 623 PC pc; 624 PetscBool match; 625 626 PetscCall(SNESSetJacobian(snes, J, J, MatMFFDComputeJacobian, NULL)); 627 /* Force no preconditioner */ 628 PetscCall(SNESGetKSP(snes, &ksp)); 629 PetscCall(KSPGetPC(ksp, &pc)); 630 PetscCall(PetscObjectTypeCompareAny((PetscObject)pc, &match, PCSHELL, PCH2OPUS, "")); 631 if (!match) { 632 PetscCall(PetscInfo(snes, "Setting default matrix-free preconditioner routines\nThat is no preconditioner is being used\n")); 633 PetscCall(PCSetType(pc, PCNONE)); 634 } 635 } 636 } 637 PetscCall(MatDestroy(&J)); 638 PetscFunctionReturn(PETSC_SUCCESS); 639 } 640 641 static PetscErrorCode DMRestrictHook_SNESVecSol(DM dmfine, Mat Restrict, Vec Rscale, Mat Inject, DM dmcoarse, void *ctx) 642 { 643 SNES snes = (SNES)ctx; 644 Vec Xfine, Xfine_named = NULL, Xcoarse; 645 646 PetscFunctionBegin; 647 if (PetscLogPrintInfo) { 648 PetscInt finelevel, coarselevel, fineclevel, coarseclevel; 649 PetscCall(DMGetRefineLevel(dmfine, &finelevel)); 650 PetscCall(DMGetCoarsenLevel(dmfine, &fineclevel)); 651 PetscCall(DMGetRefineLevel(dmcoarse, &coarselevel)); 652 PetscCall(DMGetCoarsenLevel(dmcoarse, &coarseclevel)); 653 PetscCall(PetscInfo(dmfine, "Restricting SNES solution vector from level %" PetscInt_FMT "-%" PetscInt_FMT " to level %" PetscInt_FMT "-%" PetscInt_FMT "\n", finelevel, fineclevel, coarselevel, coarseclevel)); 654 } 655 if (dmfine == snes->dm) Xfine = snes->vec_sol; 656 else { 657 PetscCall(DMGetNamedGlobalVector(dmfine, "SNESVecSol", &Xfine_named)); 658 Xfine = Xfine_named; 659 } 660 PetscCall(DMGetNamedGlobalVector(dmcoarse, "SNESVecSol", &Xcoarse)); 661 if (Inject) { 662 PetscCall(MatRestrict(Inject, Xfine, Xcoarse)); 663 } else { 664 PetscCall(MatRestrict(Restrict, Xfine, Xcoarse)); 665 PetscCall(VecPointwiseMult(Xcoarse, Xcoarse, Rscale)); 666 } 667 PetscCall(DMRestoreNamedGlobalVector(dmcoarse, "SNESVecSol", &Xcoarse)); 668 if (Xfine_named) PetscCall(DMRestoreNamedGlobalVector(dmfine, "SNESVecSol", &Xfine_named)); 669 PetscFunctionReturn(PETSC_SUCCESS); 670 } 671 672 static PetscErrorCode DMCoarsenHook_SNESVecSol(DM dm, DM dmc, void *ctx) 673 { 674 PetscFunctionBegin; 675 PetscCall(DMCoarsenHookAdd(dmc, DMCoarsenHook_SNESVecSol, DMRestrictHook_SNESVecSol, ctx)); 676 PetscFunctionReturn(PETSC_SUCCESS); 677 } 678 679 /* This may be called to rediscretize the operator on levels of linear multigrid. The DM shuffle is so the user can 680 * safely call SNESGetDM() in their residual evaluation routine. */ 681 static PetscErrorCode KSPComputeOperators_SNES(KSP ksp, Mat A, Mat B, void *ctx) 682 { 683 SNES snes = (SNES)ctx; 684 Vec X, Xnamed = NULL; 685 DM dmsave; 686 void *ctxsave; 687 PetscErrorCode (*jac)(SNES, Vec, Mat, Mat, void *) = NULL; 688 689 PetscFunctionBegin; 690 dmsave = snes->dm; 691 PetscCall(KSPGetDM(ksp, &snes->dm)); 692 if (dmsave == snes->dm) X = snes->vec_sol; /* We are on the finest level */ 693 else { /* We are on a coarser level, this vec was initialized using a DM restrict hook */ PetscCall(DMGetNamedGlobalVector(snes->dm, "SNESVecSol", &Xnamed)); 694 X = Xnamed; 695 PetscCall(SNESGetJacobian(snes, NULL, NULL, &jac, &ctxsave)); 696 /* If the DM's don't match up, the MatFDColoring context needed for the jacobian won't match up either -- fixit. */ 697 if (jac == SNESComputeJacobianDefaultColor) PetscCall(SNESSetJacobian(snes, NULL, NULL, SNESComputeJacobianDefaultColor, NULL)); 698 } 699 /* Make sure KSP DM has the Jacobian computation routine */ 700 { 701 DMSNES sdm; 702 703 PetscCall(DMGetDMSNES(snes->dm, &sdm)); 704 if (!sdm->ops->computejacobian) PetscCall(DMCopyDMSNES(dmsave, snes->dm)); 705 } 706 /* Compute the operators */ 707 PetscCall(SNESComputeJacobian(snes, X, A, B)); 708 /* Put the previous context back */ 709 if (snes->dm != dmsave && jac == SNESComputeJacobianDefaultColor) PetscCall(SNESSetJacobian(snes, NULL, NULL, jac, ctxsave)); 710 711 if (Xnamed) PetscCall(DMRestoreNamedGlobalVector(snes->dm, "SNESVecSol", &Xnamed)); 712 snes->dm = dmsave; 713 PetscFunctionReturn(PETSC_SUCCESS); 714 } 715 716 /*@ 717 SNESSetUpMatrices - ensures that matrices are available for `SNES` Newton-like methods, this is called by `SNESSetUp_XXX()` 718 719 Collective 720 721 Input Parameter: 722 . snes - `SNES` object to configure 723 724 Level: developer 725 726 Note: 727 If the matrices do not yet exist it attempts to create them based on options previously set for the `SNES` such as `-snes_mf` 728 729 .seealso: [](ch_snes), `SNES`, `SNESSetUp()` 730 @*/ 731 PetscErrorCode SNESSetUpMatrices(SNES snes) 732 { 733 DM dm; 734 DMSNES sdm; 735 736 PetscFunctionBegin; 737 PetscCall(SNESGetDM(snes, &dm)); 738 PetscCall(DMGetDMSNES(dm, &sdm)); 739 if (!snes->jacobian && snes->mf) { 740 Mat J; 741 void *functx; 742 PetscCall(MatCreateSNESMF(snes, &J)); 743 PetscCall(MatMFFDSetOptionsPrefix(J, ((PetscObject)snes)->prefix)); 744 PetscCall(MatSetFromOptions(J)); 745 PetscCall(SNESGetFunction(snes, NULL, NULL, &functx)); 746 PetscCall(SNESSetJacobian(snes, J, J, NULL, NULL)); 747 PetscCall(MatDestroy(&J)); 748 } else if (snes->mf_operator && !snes->jacobian_pre && !snes->jacobian) { 749 Mat J, B; 750 PetscCall(MatCreateSNESMF(snes, &J)); 751 PetscCall(MatMFFDSetOptionsPrefix(J, ((PetscObject)snes)->prefix)); 752 PetscCall(MatSetFromOptions(J)); 753 PetscCall(DMCreateMatrix(snes->dm, &B)); 754 /* sdm->computejacobian was already set to reach here */ 755 PetscCall(SNESSetJacobian(snes, J, B, NULL, NULL)); 756 PetscCall(MatDestroy(&J)); 757 PetscCall(MatDestroy(&B)); 758 } else if (!snes->jacobian_pre) { 759 PetscDS prob; 760 Mat J, B; 761 PetscBool hasPrec = PETSC_FALSE; 762 763 J = snes->jacobian; 764 PetscCall(DMGetDS(dm, &prob)); 765 if (prob) PetscCall(PetscDSHasJacobianPreconditioner(prob, &hasPrec)); 766 if (J) PetscCall(PetscObjectReference((PetscObject)J)); 767 else if (hasPrec) PetscCall(DMCreateMatrix(snes->dm, &J)); 768 PetscCall(DMCreateMatrix(snes->dm, &B)); 769 PetscCall(SNESSetJacobian(snes, J ? J : B, B, NULL, NULL)); 770 PetscCall(MatDestroy(&J)); 771 PetscCall(MatDestroy(&B)); 772 } 773 { 774 KSP ksp; 775 PetscCall(SNESGetKSP(snes, &ksp)); 776 PetscCall(KSPSetComputeOperators(ksp, KSPComputeOperators_SNES, snes)); 777 PetscCall(DMCoarsenHookAdd(snes->dm, DMCoarsenHook_SNESVecSol, DMRestrictHook_SNESVecSol, snes)); 778 } 779 PetscFunctionReturn(PETSC_SUCCESS); 780 } 781 782 static PetscErrorCode SNESMonitorPauseFinal_Internal(SNES snes) 783 { 784 PetscInt i; 785 786 PetscFunctionBegin; 787 if (!snes->pauseFinal) PetscFunctionReturn(PETSC_SUCCESS); 788 for (i = 0; i < snes->numbermonitors; ++i) { 789 PetscViewerAndFormat *vf = (PetscViewerAndFormat *)snes->monitorcontext[i]; 790 PetscDraw draw; 791 PetscReal lpause; 792 793 if (!vf) continue; 794 if (vf->lg) { 795 if (!PetscCheckPointer(vf->lg, PETSC_OBJECT)) continue; 796 if (((PetscObject)vf->lg)->classid != PETSC_DRAWLG_CLASSID) continue; 797 PetscCall(PetscDrawLGGetDraw(vf->lg, &draw)); 798 PetscCall(PetscDrawGetPause(draw, &lpause)); 799 PetscCall(PetscDrawSetPause(draw, -1.0)); 800 PetscCall(PetscDrawPause(draw)); 801 PetscCall(PetscDrawSetPause(draw, lpause)); 802 } else { 803 PetscBool isdraw; 804 805 if (!PetscCheckPointer(vf->viewer, PETSC_OBJECT)) continue; 806 if (((PetscObject)vf->viewer)->classid != PETSC_VIEWER_CLASSID) continue; 807 PetscCall(PetscObjectTypeCompare((PetscObject)vf->viewer, PETSCVIEWERDRAW, &isdraw)); 808 if (!isdraw) continue; 809 PetscCall(PetscViewerDrawGetDraw(vf->viewer, 0, &draw)); 810 PetscCall(PetscDrawGetPause(draw, &lpause)); 811 PetscCall(PetscDrawSetPause(draw, -1.0)); 812 PetscCall(PetscDrawPause(draw)); 813 PetscCall(PetscDrawSetPause(draw, lpause)); 814 } 815 } 816 PetscFunctionReturn(PETSC_SUCCESS); 817 } 818 819 /*@C 820 SNESMonitorSetFromOptions - Sets a monitor function and viewer appropriate for the type indicated by the user 821 822 Collective 823 824 Input Parameters: 825 + snes - `SNES` object you wish to monitor 826 . name - the monitor type one is seeking 827 . help - message indicating what monitoring is done 828 . manual - manual page for the monitor 829 . monitor - the monitor function 830 - monitorsetup - a function that is called once ONLY if the user selected this monitor that may set additional features of the `SNES` or `PetscViewer` objects 831 832 Calling sequence of `monitor`: 833 + snes - the nonlinear solver context 834 . it - the current iteration 835 . r - the current function norm 836 - vf - a `PetscViewerAndFormat` struct that contains the `PetscViewer` and `PetscViewerFormat` to use 837 838 Calling sequence of `monitorsetup`: 839 + snes - the nonlinear solver context 840 - vf - a `PetscViewerAndFormat` struct that contains the `PetscViewer` and `PetscViewerFormat` to use 841 842 Options Database Key: 843 . -name - trigger the use of this monitor in `SNESSetFromOptions()` 844 845 Level: advanced 846 847 .seealso: [](ch_snes), `PetscOptionsGetViewer()`, `PetscOptionsGetReal()`, `PetscOptionsHasName()`, `PetscOptionsGetString()`, 848 `PetscOptionsGetIntArray()`, `PetscOptionsGetRealArray()`, `PetscOptionsBool()` 849 `PetscOptionsInt()`, `PetscOptionsString()`, `PetscOptionsReal()`, 850 `PetscOptionsName()`, `PetscOptionsBegin()`, `PetscOptionsEnd()`, `PetscOptionsHeadBegin()`, 851 `PetscOptionsStringArray()`, `PetscOptionsRealArray()`, `PetscOptionsScalar()`, 852 `PetscOptionsBoolGroupBegin()`, `PetscOptionsBoolGroup()`, `PetscOptionsBoolGroupEnd()`, 853 `PetscOptionsFList()`, `PetscOptionsEList()` 854 @*/ 855 PetscErrorCode SNESMonitorSetFromOptions(SNES snes, const char name[], const char help[], const char manual[], PetscErrorCode (*monitor)(SNES snes, PetscInt it, PetscReal r, PetscViewerAndFormat *vf), PetscErrorCode (*monitorsetup)(SNES snes, PetscViewerAndFormat *vf)) 856 { 857 PetscViewer viewer; 858 PetscViewerFormat format; 859 PetscBool flg; 860 861 PetscFunctionBegin; 862 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, name, &viewer, &format, &flg)); 863 if (flg) { 864 PetscViewerAndFormat *vf; 865 PetscCall(PetscViewerAndFormatCreate(viewer, format, &vf)); 866 PetscCall(PetscOptionsRestoreViewer(&viewer)); 867 if (monitorsetup) PetscCall((*monitorsetup)(snes, vf)); 868 PetscCall(SNESMonitorSet(snes, (PetscErrorCode(*)(SNES, PetscInt, PetscReal, void *))monitor, vf, (PetscErrorCode(*)(void **))PetscViewerAndFormatDestroy)); 869 } 870 PetscFunctionReturn(PETSC_SUCCESS); 871 } 872 873 PetscErrorCode SNESEWSetFromOptions_Private(SNESKSPEW *kctx, PetscBool print_api, MPI_Comm comm, const char *prefix) 874 { 875 const char *api = print_api ? "SNESKSPSetParametersEW" : NULL; 876 877 PetscFunctionBegin; 878 PetscOptionsBegin(comm, prefix, "Eisenstat and Walker type forcing options", "KSP"); 879 PetscCall(PetscOptionsInt("-ksp_ew_version", "Version 1, 2 or 3", api, kctx->version, &kctx->version, NULL)); 880 PetscCall(PetscOptionsReal("-ksp_ew_rtol0", "0 <= rtol0 < 1", api, kctx->rtol_0, &kctx->rtol_0, NULL)); 881 kctx->rtol_max = PetscMax(kctx->rtol_0, kctx->rtol_max); 882 PetscCall(PetscOptionsReal("-ksp_ew_rtolmax", "0 <= rtolmax < 1", api, kctx->rtol_max, &kctx->rtol_max, NULL)); 883 PetscCall(PetscOptionsReal("-ksp_ew_gamma", "0 <= gamma <= 1", api, kctx->gamma, &kctx->gamma, NULL)); 884 PetscCall(PetscOptionsReal("-ksp_ew_alpha", "1 < alpha <= 2", api, kctx->alpha, &kctx->alpha, NULL)); 885 PetscCall(PetscOptionsReal("-ksp_ew_alpha2", "alpha2", NULL, kctx->alpha2, &kctx->alpha2, NULL)); 886 PetscCall(PetscOptionsReal("-ksp_ew_threshold", "0 < threshold < 1", api, kctx->threshold, &kctx->threshold, NULL)); 887 PetscCall(PetscOptionsReal("-ksp_ew_v4_p1", "p1", NULL, kctx->v4_p1, &kctx->v4_p1, NULL)); 888 PetscCall(PetscOptionsReal("-ksp_ew_v4_p2", "p2", NULL, kctx->v4_p2, &kctx->v4_p2, NULL)); 889 PetscCall(PetscOptionsReal("-ksp_ew_v4_p3", "p3", NULL, kctx->v4_p3, &kctx->v4_p3, NULL)); 890 PetscCall(PetscOptionsReal("-ksp_ew_v4_m1", "Scaling when rk-1 in [p2,p3)", NULL, kctx->v4_m1, &kctx->v4_m1, NULL)); 891 PetscCall(PetscOptionsReal("-ksp_ew_v4_m2", "Scaling when rk-1 in [p3,+infty)", NULL, kctx->v4_m2, &kctx->v4_m2, NULL)); 892 PetscCall(PetscOptionsReal("-ksp_ew_v4_m3", "Threshold for successive rtol (0.1 in Eq.7)", NULL, kctx->v4_m3, &kctx->v4_m3, NULL)); 893 PetscCall(PetscOptionsReal("-ksp_ew_v4_m4", "Adaptation scaling (0.5 in Eq.7)", NULL, kctx->v4_m4, &kctx->v4_m4, NULL)); 894 PetscOptionsEnd(); 895 PetscFunctionReturn(PETSC_SUCCESS); 896 } 897 898 /*@ 899 SNESSetFromOptions - Sets various `SNES` and `KSP` parameters from user options. 900 901 Collective 902 903 Input Parameter: 904 . snes - the `SNES` context 905 906 Options Database Keys: 907 + -snes_type <type> - newtonls, newtontr, ngmres, ncg, nrichardson, qn, vi, fas, `SNESType` for complete list 908 . -snes_stol <stol> - convergence tolerance in terms of the norm of the change in the solution between steps 909 . -snes_atol <abstol> - absolute tolerance of residual norm 910 . -snes_rtol <rtol> - relative decrease in tolerance norm from initial 911 . -snes_divergence_tolerance <divtol> - if the residual goes above divtol*rnorm0, exit with divergence 912 . -snes_force_iteration <force> - force `SNESSolve()` to take at least one iteration 913 . -snes_max_it <max_it> - maximum number of iterations 914 . -snes_max_funcs <max_funcs> - maximum number of function evaluations 915 . -snes_max_fail <max_fail> - maximum number of line search failures allowed before stopping, default is none 916 . -snes_max_linear_solve_fail - number of linear solver failures before SNESSolve() stops 917 . -snes_lag_preconditioner <lag> - how often preconditioner is rebuilt (use -1 to never rebuild) 918 . -snes_lag_preconditioner_persists <true,false> - retains the -snes_lag_preconditioner information across multiple SNESSolve() 919 . -snes_lag_jacobian <lag> - how often Jacobian is rebuilt (use -1 to never rebuild) 920 . -snes_lag_jacobian_persists <true,false> - retains the -snes_lag_jacobian information across multiple SNESSolve() 921 . -snes_tr_tol <trtol> - trust region tolerance 922 . -snes_convergence_test <default,skip,correct_pressure> - convergence test in nonlinear solver. default `SNESConvergedDefault()`. skip `SNESConvergedSkip()` means continue iterating until max_it or some other criterion is reached, saving expense of convergence test. correct_pressure `SNESConvergedCorrectPressure()` has special handling of a pressure null space. 923 . -snes_monitor [ascii][:filename][:viewer format] - prints residual norm at each iteration. if no filename given prints to stdout 924 . -snes_monitor_solution [ascii binary draw][:filename][:viewer format] - plots solution at each iteration 925 . -snes_monitor_residual [ascii binary draw][:filename][:viewer format] - plots residual (not its norm) at each iteration 926 . -snes_monitor_solution_update [ascii binary draw][:filename][:viewer format] - plots update to solution at each iteration 927 . -snes_monitor_lg_residualnorm - plots residual norm at each iteration 928 . -snes_monitor_lg_range - plots residual norm at each iteration 929 . -snes_monitor_pause_final - Pauses all monitor drawing after the solver ends 930 . -snes_fd - use finite differences to compute Jacobian; very slow, only for testing 931 . -snes_fd_color - use finite differences with coloring to compute Jacobian 932 . -snes_mf_ksp_monitor - if using matrix-free multiply then print h at each `KSP` iteration 933 . -snes_converged_reason - print the reason for convergence/divergence after each solve 934 . -npc_snes_type <type> - the `SNES` type to use as a nonlinear preconditioner 935 . -snes_test_jacobian <optional threshold> - compare the user provided Jacobian with one computed via finite differences to check for errors. If a threshold is given, display only those entries whose difference is greater than the threshold. 936 - -snes_test_jacobian_view - display the user provided Jacobian, the finite difference Jacobian and the difference between them to help users detect the location of errors in the user provided Jacobian. 937 938 Options Database Keys for Eisenstat-Walker method: 939 + -snes_ksp_ew - use Eisenstat-Walker method for determining linear system convergence 940 . -snes_ksp_ew_version ver - version of Eisenstat-Walker method 941 . -snes_ksp_ew_rtol0 <rtol0> - Sets rtol0 942 . -snes_ksp_ew_rtolmax <rtolmax> - Sets rtolmax 943 . -snes_ksp_ew_gamma <gamma> - Sets gamma 944 . -snes_ksp_ew_alpha <alpha> - Sets alpha 945 . -snes_ksp_ew_alpha2 <alpha2> - Sets alpha2 946 - -snes_ksp_ew_threshold <threshold> - Sets threshold 947 948 Level: beginner 949 950 Notes: 951 To see all options, run your program with the -help option or consult the users manual 952 953 `SNES` supports three approaches for computing (approximate) Jacobians: user provided via `SNESSetJacobian()`, matrix-free using `MatCreateSNESMF()`, 954 and computing explicitly with 955 finite differences and coloring using `MatFDColoring`. It is also possible to use automatic differentiation and the `MatFDColoring` object. 956 957 .seealso: [](ch_snes), `SNESType`, `SNESSetOptionsPrefix()`, `SNESResetFromOptions()`, `SNES`, `SNESCreate()`, `MatCreateSNESMF()`, `MatFDColoring` 958 @*/ 959 PetscErrorCode SNESSetFromOptions(SNES snes) 960 { 961 PetscBool flg, pcset, persist, set; 962 PetscInt i, indx, lag, grids; 963 const char *deft = SNESNEWTONLS; 964 const char *convtests[] = {"default", "skip", "correct_pressure"}; 965 SNESKSPEW *kctx = NULL; 966 char type[256], monfilename[PETSC_MAX_PATH_LEN], ewprefix[256]; 967 PCSide pcside; 968 const char *optionsprefix; 969 970 PetscFunctionBegin; 971 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 972 PetscCall(SNESRegisterAll()); 973 PetscObjectOptionsBegin((PetscObject)snes); 974 if (((PetscObject)snes)->type_name) deft = ((PetscObject)snes)->type_name; 975 PetscCall(PetscOptionsFList("-snes_type", "Nonlinear solver method", "SNESSetType", SNESList, deft, type, 256, &flg)); 976 if (flg) { 977 PetscCall(SNESSetType(snes, type)); 978 } else if (!((PetscObject)snes)->type_name) { 979 PetscCall(SNESSetType(snes, deft)); 980 } 981 PetscCall(PetscOptionsReal("-snes_stol", "Stop if step length less than", "SNESSetTolerances", snes->stol, &snes->stol, NULL)); 982 PetscCall(PetscOptionsReal("-snes_atol", "Stop if function norm less than", "SNESSetTolerances", snes->abstol, &snes->abstol, NULL)); 983 984 PetscCall(PetscOptionsReal("-snes_rtol", "Stop if decrease in function norm less than", "SNESSetTolerances", snes->rtol, &snes->rtol, NULL)); 985 PetscCall(PetscOptionsReal("-snes_divergence_tolerance", "Stop if residual norm increases by this factor", "SNESSetDivergenceTolerance", snes->divtol, &snes->divtol, NULL)); 986 PetscCall(PetscOptionsInt("-snes_max_it", "Maximum iterations", "SNESSetTolerances", snes->max_its, &snes->max_its, NULL)); 987 PetscCall(PetscOptionsInt("-snes_max_funcs", "Maximum function evaluations", "SNESSetTolerances", snes->max_funcs, &snes->max_funcs, NULL)); 988 PetscCall(PetscOptionsInt("-snes_max_fail", "Maximum nonlinear step failures", "SNESSetMaxNonlinearStepFailures", snes->maxFailures, &snes->maxFailures, NULL)); 989 PetscCall(PetscOptionsInt("-snes_max_linear_solve_fail", "Maximum failures in linear solves allowed", "SNESSetMaxLinearSolveFailures", snes->maxLinearSolveFailures, &snes->maxLinearSolveFailures, NULL)); 990 PetscCall(PetscOptionsBool("-snes_error_if_not_converged", "Generate error if solver does not converge", "SNESSetErrorIfNotConverged", snes->errorifnotconverged, &snes->errorifnotconverged, NULL)); 991 PetscCall(PetscOptionsBool("-snes_force_iteration", "Force SNESSolve() to take at least one iteration", "SNESSetForceIteration", snes->forceiteration, &snes->forceiteration, NULL)); 992 PetscCall(PetscOptionsBool("-snes_check_jacobian_domain_error", "Check Jacobian domain error after Jacobian evaluation", "SNESCheckJacobianDomainError", snes->checkjacdomainerror, &snes->checkjacdomainerror, NULL)); 993 994 PetscCall(PetscOptionsInt("-snes_lag_preconditioner", "How often to rebuild preconditioner", "SNESSetLagPreconditioner", snes->lagpreconditioner, &lag, &flg)); 995 if (flg) { 996 PetscCheck(lag != -1, PetscObjectComm((PetscObject)snes), PETSC_ERR_USER, "Cannot set the lag to -1 from the command line since the preconditioner must be built as least once, perhaps you mean -2"); 997 PetscCall(SNESSetLagPreconditioner(snes, lag)); 998 } 999 PetscCall(PetscOptionsBool("-snes_lag_preconditioner_persists", "Preconditioner lagging through multiple SNES solves", "SNESSetLagPreconditionerPersists", snes->lagjac_persist, &persist, &flg)); 1000 if (flg) PetscCall(SNESSetLagPreconditionerPersists(snes, persist)); 1001 PetscCall(PetscOptionsInt("-snes_lag_jacobian", "How often to rebuild Jacobian", "SNESSetLagJacobian", snes->lagjacobian, &lag, &flg)); 1002 if (flg) { 1003 PetscCheck(lag != -1, PetscObjectComm((PetscObject)snes), PETSC_ERR_USER, "Cannot set the lag to -1 from the command line since the Jacobian must be built as least once, perhaps you mean -2"); 1004 PetscCall(SNESSetLagJacobian(snes, lag)); 1005 } 1006 PetscCall(PetscOptionsBool("-snes_lag_jacobian_persists", "Jacobian lagging through multiple SNES solves", "SNESSetLagJacobianPersists", snes->lagjac_persist, &persist, &flg)); 1007 if (flg) PetscCall(SNESSetLagJacobianPersists(snes, persist)); 1008 1009 PetscCall(PetscOptionsInt("-snes_grid_sequence", "Use grid sequencing to generate initial guess", "SNESSetGridSequence", snes->gridsequence, &grids, &flg)); 1010 if (flg) PetscCall(SNESSetGridSequence(snes, grids)); 1011 1012 PetscCall(PetscOptionsEList("-snes_convergence_test", "Convergence test", "SNESSetConvergenceTest", convtests, PETSC_STATIC_ARRAY_LENGTH(convtests), "default", &indx, &flg)); 1013 if (flg) { 1014 switch (indx) { 1015 case 0: 1016 PetscCall(SNESSetConvergenceTest(snes, SNESConvergedDefault, NULL, NULL)); 1017 break; 1018 case 1: 1019 PetscCall(SNESSetConvergenceTest(snes, SNESConvergedSkip, NULL, NULL)); 1020 break; 1021 case 2: 1022 PetscCall(SNESSetConvergenceTest(snes, SNESConvergedCorrectPressure, NULL, NULL)); 1023 break; 1024 } 1025 } 1026 1027 PetscCall(PetscOptionsEList("-snes_norm_schedule", "SNES Norm schedule", "SNESSetNormSchedule", SNESNormSchedules, 5, "function", &indx, &flg)); 1028 if (flg) PetscCall(SNESSetNormSchedule(snes, (SNESNormSchedule)indx)); 1029 1030 PetscCall(PetscOptionsEList("-snes_function_type", "SNES Norm schedule", "SNESSetFunctionType", SNESFunctionTypes, 2, "unpreconditioned", &indx, &flg)); 1031 if (flg) PetscCall(SNESSetFunctionType(snes, (SNESFunctionType)indx)); 1032 1033 kctx = (SNESKSPEW *)snes->kspconvctx; 1034 1035 PetscCall(PetscOptionsBool("-snes_ksp_ew", "Use Eisentat-Walker linear system convergence test", "SNESKSPSetUseEW", snes->ksp_ewconv, &snes->ksp_ewconv, NULL)); 1036 1037 PetscCall(SNESGetOptionsPrefix(snes, &optionsprefix)); 1038 PetscCall(PetscSNPrintf(ewprefix, sizeof(ewprefix), "%s%s", optionsprefix ? optionsprefix : "", "snes_")); 1039 PetscCall(SNESEWSetFromOptions_Private(kctx, PETSC_TRUE, PetscObjectComm((PetscObject)snes), ewprefix)); 1040 1041 flg = PETSC_FALSE; 1042 PetscCall(PetscOptionsBool("-snes_monitor_cancel", "Remove all monitors", "SNESMonitorCancel", flg, &flg, &set)); 1043 if (set && flg) PetscCall(SNESMonitorCancel(snes)); 1044 1045 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor", "Monitor norm of function", "SNESMonitorDefault", SNESMonitorDefault, SNESMonitorDefaultSetUp)); 1046 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_short", "Monitor norm of function with fewer digits", "SNESMonitorDefaultShort", SNESMonitorDefaultShort, NULL)); 1047 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_range", "Monitor range of elements of function", "SNESMonitorRange", SNESMonitorRange, NULL)); 1048 1049 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_ratio", "Monitor ratios of the norm of function for consecutive steps", "SNESMonitorRatio", SNESMonitorRatio, SNESMonitorRatioSetUp)); 1050 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_field", "Monitor norm of function (split into fields)", "SNESMonitorDefaultField", SNESMonitorDefaultField, NULL)); 1051 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_solution", "View solution at each iteration", "SNESMonitorSolution", SNESMonitorSolution, NULL)); 1052 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_solution_update", "View correction at each iteration", "SNESMonitorSolutionUpdate", SNESMonitorSolutionUpdate, NULL)); 1053 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_residual", "View residual at each iteration", "SNESMonitorResidual", SNESMonitorResidual, NULL)); 1054 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_jacupdate_spectrum", "Print the change in the spectrum of the Jacobian", "SNESMonitorJacUpdateSpectrum", SNESMonitorJacUpdateSpectrum, NULL)); 1055 PetscCall(SNESMonitorSetFromOptions(snes, "-snes_monitor_fields", "Monitor norm of function per field", "SNESMonitorSet", SNESMonitorFields, NULL)); 1056 PetscCall(PetscOptionsBool("-snes_monitor_pause_final", "Pauses all draw monitors at the final iterate", "SNESMonitorPauseFinal_Internal", PETSC_FALSE, &snes->pauseFinal, NULL)); 1057 1058 PetscCall(PetscOptionsString("-snes_monitor_python", "Use Python function", "SNESMonitorSet", NULL, monfilename, sizeof(monfilename), &flg)); 1059 if (flg) PetscCall(PetscPythonMonitorSet((PetscObject)snes, monfilename)); 1060 1061 flg = PETSC_FALSE; 1062 PetscCall(PetscOptionsBool("-snes_monitor_lg_range", "Plot function range at each iteration", "SNESMonitorLGRange", flg, &flg, NULL)); 1063 if (flg) { 1064 PetscViewer ctx; 1065 1066 PetscCall(PetscViewerDrawOpen(PetscObjectComm((PetscObject)snes), NULL, NULL, PETSC_DECIDE, PETSC_DECIDE, 400, 300, &ctx)); 1067 PetscCall(SNESMonitorSet(snes, SNESMonitorLGRange, ctx, (PetscErrorCode(*)(void **))PetscViewerDestroy)); 1068 } 1069 1070 flg = PETSC_FALSE; 1071 PetscCall(PetscOptionsBool("-snes_converged_reason_view_cancel", "Remove all converged reason viewers", "SNESConvergedReasonViewCancel", flg, &flg, &set)); 1072 if (set && flg) PetscCall(SNESConvergedReasonViewCancel(snes)); 1073 1074 flg = PETSC_FALSE; 1075 PetscCall(PetscOptionsBool("-snes_fd", "Use finite differences (slow) to compute Jacobian", "SNESComputeJacobianDefault", flg, &flg, NULL)); 1076 if (flg) { 1077 void *functx; 1078 DM dm; 1079 PetscCall(SNESGetDM(snes, &dm)); 1080 PetscCall(DMSNESUnsetJacobianContext_Internal(dm)); 1081 PetscCall(SNESGetFunction(snes, NULL, NULL, &functx)); 1082 PetscCall(SNESSetJacobian(snes, snes->jacobian, snes->jacobian_pre, SNESComputeJacobianDefault, functx)); 1083 PetscCall(PetscInfo(snes, "Setting default finite difference Jacobian matrix\n")); 1084 } 1085 1086 flg = PETSC_FALSE; 1087 PetscCall(PetscOptionsBool("-snes_fd_function", "Use finite differences (slow) to compute function from user objective", "SNESObjectiveComputeFunctionDefaultFD", flg, &flg, NULL)); 1088 if (flg) PetscCall(SNESSetFunction(snes, NULL, SNESObjectiveComputeFunctionDefaultFD, NULL)); 1089 1090 flg = PETSC_FALSE; 1091 PetscCall(PetscOptionsBool("-snes_fd_color", "Use finite differences with coloring to compute Jacobian", "SNESComputeJacobianDefaultColor", flg, &flg, NULL)); 1092 if (flg) { 1093 DM dm; 1094 PetscCall(SNESGetDM(snes, &dm)); 1095 PetscCall(DMSNESUnsetJacobianContext_Internal(dm)); 1096 PetscCall(SNESSetJacobian(snes, snes->jacobian, snes->jacobian_pre, SNESComputeJacobianDefaultColor, NULL)); 1097 PetscCall(PetscInfo(snes, "Setting default finite difference coloring Jacobian matrix\n")); 1098 } 1099 1100 flg = PETSC_FALSE; 1101 PetscCall(PetscOptionsBool("-snes_mf_operator", "Use a Matrix-Free Jacobian with user-provided preconditioner matrix", "SNESSetUseMatrixFree", PETSC_FALSE, &snes->mf_operator, &flg)); 1102 if (flg && snes->mf_operator) { 1103 snes->mf_operator = PETSC_TRUE; 1104 snes->mf = PETSC_TRUE; 1105 } 1106 flg = PETSC_FALSE; 1107 PetscCall(PetscOptionsBool("-snes_mf", "Use a Matrix-Free Jacobian with no preconditioner matrix", "SNESSetUseMatrixFree", PETSC_FALSE, &snes->mf, &flg)); 1108 if (!flg && snes->mf_operator) snes->mf = PETSC_TRUE; 1109 PetscCall(PetscOptionsInt("-snes_mf_version", "Matrix-Free routines version 1 or 2", "None", snes->mf_version, &snes->mf_version, NULL)); 1110 1111 flg = PETSC_FALSE; 1112 PetscCall(SNESGetNPCSide(snes, &pcside)); 1113 PetscCall(PetscOptionsEnum("-snes_npc_side", "SNES nonlinear preconditioner side", "SNESSetNPCSide", PCSides, (PetscEnum)pcside, (PetscEnum *)&pcside, &flg)); 1114 if (flg) PetscCall(SNESSetNPCSide(snes, pcside)); 1115 1116 #if defined(PETSC_HAVE_SAWS) 1117 /* 1118 Publish convergence information using SAWs 1119 */ 1120 flg = PETSC_FALSE; 1121 PetscCall(PetscOptionsBool("-snes_monitor_saws", "Publish SNES progress using SAWs", "SNESMonitorSet", flg, &flg, NULL)); 1122 if (flg) { 1123 void *ctx; 1124 PetscCall(SNESMonitorSAWsCreate(snes, &ctx)); 1125 PetscCall(SNESMonitorSet(snes, SNESMonitorSAWs, ctx, SNESMonitorSAWsDestroy)); 1126 } 1127 #endif 1128 #if defined(PETSC_HAVE_SAWS) 1129 { 1130 PetscBool set; 1131 flg = PETSC_FALSE; 1132 PetscCall(PetscOptionsBool("-snes_saws_block", "Block for SAWs at end of SNESSolve", "PetscObjectSAWsBlock", ((PetscObject)snes)->amspublishblock, &flg, &set)); 1133 if (set) PetscCall(PetscObjectSAWsSetBlock((PetscObject)snes, flg)); 1134 } 1135 #endif 1136 1137 for (i = 0; i < numberofsetfromoptions; i++) PetscCall((*othersetfromoptions[i])(snes)); 1138 1139 PetscTryTypeMethod(snes, setfromoptions, PetscOptionsObject); 1140 1141 /* process any options handlers added with PetscObjectAddOptionsHandler() */ 1142 PetscCall(PetscObjectProcessOptionsHandlers((PetscObject)snes, PetscOptionsObject)); 1143 PetscOptionsEnd(); 1144 1145 if (snes->linesearch) { 1146 PetscCall(SNESGetLineSearch(snes, &snes->linesearch)); 1147 PetscCall(SNESLineSearchSetFromOptions(snes->linesearch)); 1148 } 1149 1150 if (snes->usesksp) { 1151 if (!snes->ksp) PetscCall(SNESGetKSP(snes, &snes->ksp)); 1152 PetscCall(KSPSetOperators(snes->ksp, snes->jacobian, snes->jacobian_pre)); 1153 PetscCall(KSPSetFromOptions(snes->ksp)); 1154 } 1155 1156 /* if user has set the SNES NPC type via options database, create it. */ 1157 PetscCall(SNESGetOptionsPrefix(snes, &optionsprefix)); 1158 PetscCall(PetscOptionsHasName(((PetscObject)snes)->options, optionsprefix, "-npc_snes_type", &pcset)); 1159 if (pcset && (!snes->npc)) PetscCall(SNESGetNPC(snes, &snes->npc)); 1160 if (snes->npc) PetscCall(SNESSetFromOptions(snes->npc)); 1161 snes->setfromoptionscalled++; 1162 PetscFunctionReturn(PETSC_SUCCESS); 1163 } 1164 1165 /*@ 1166 SNESResetFromOptions - Sets various `SNES` and `KSP` parameters from user options ONLY if the `SNESSetFromOptions()` was previously called 1167 1168 Collective 1169 1170 Input Parameter: 1171 . snes - the `SNES` context 1172 1173 Level: advanced 1174 1175 .seealso: [](ch_snes), `SNES`, `SNESSetFromOptions()`, `SNESSetOptionsPrefix()` 1176 @*/ 1177 PetscErrorCode SNESResetFromOptions(SNES snes) 1178 { 1179 PetscFunctionBegin; 1180 if (snes->setfromoptionscalled) PetscCall(SNESSetFromOptions(snes)); 1181 PetscFunctionReturn(PETSC_SUCCESS); 1182 } 1183 1184 /*@C 1185 SNESSetComputeApplicationContext - Sets an optional function to compute a user-defined context for 1186 the nonlinear solvers. 1187 1188 Logically Collective; No Fortran Support 1189 1190 Input Parameters: 1191 + snes - the `SNES` context 1192 . compute - function to compute the context 1193 - destroy - function to destroy the context 1194 1195 Calling sequence of `compute`: 1196 + snes - the `SNES` context 1197 - ctx - context to be computed 1198 1199 Calling sequence of `destroy`: 1200 . ctx - context to be computed by `compute()` 1201 1202 Level: intermediate 1203 1204 Note: 1205 This routine is useful if you are performing grid sequencing or using `SNESFAS` and need the appropriate context generated for each level. 1206 1207 Use `SNESSetApplicationContext()` to see the context immediately 1208 1209 .seealso: [](ch_snes), `SNESGetApplicationContext()`, `SNESSetApplicationContext()` 1210 @*/ 1211 PetscErrorCode SNESSetComputeApplicationContext(SNES snes, PetscErrorCode (*compute)(SNES snes, void **ctx), PetscErrorCode (*destroy)(void **ctx)) 1212 { 1213 PetscFunctionBegin; 1214 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1215 snes->ops->usercompute = compute; 1216 snes->ops->userdestroy = destroy; 1217 PetscFunctionReturn(PETSC_SUCCESS); 1218 } 1219 1220 /*@ 1221 SNESSetApplicationContext - Sets the optional user-defined context for the nonlinear solvers. 1222 1223 Logically Collective 1224 1225 Input Parameters: 1226 + snes - the `SNES` context 1227 - usrP - optional user context 1228 1229 Level: intermediate 1230 1231 Notes: 1232 Users can provide a context when constructing the `SNES` options and then access it inside their function, Jacobian, or other evaluation function 1233 with `SNESGetApplicationContext()` 1234 1235 To provide a function that computes the context for you use `SNESSetComputeApplicationContext()` 1236 1237 Fortran Note: 1238 You must write a Fortran interface definition for this 1239 function that tells Fortran the Fortran derived data type that you are passing in as the `usrP` argument. 1240 1241 .seealso: [](ch_snes), `SNES`, `SNESSetComputeApplicationContext()`, `SNESGetApplicationContext()` 1242 @*/ 1243 PetscErrorCode SNESSetApplicationContext(SNES snes, void *usrP) 1244 { 1245 KSP ksp; 1246 1247 PetscFunctionBegin; 1248 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1249 PetscCall(SNESGetKSP(snes, &ksp)); 1250 PetscCall(KSPSetApplicationContext(ksp, usrP)); 1251 snes->user = usrP; 1252 PetscFunctionReturn(PETSC_SUCCESS); 1253 } 1254 1255 /*@ 1256 SNESGetApplicationContext - Gets the user-defined context for the 1257 nonlinear solvers set with `SNESGetApplicationContext()` or `SNESSetComputeApplicationContext()` 1258 1259 Not Collective 1260 1261 Input Parameter: 1262 . snes - `SNES` context 1263 1264 Output Parameter: 1265 . usrP - user context 1266 1267 Level: intermediate 1268 1269 Fortran Note: 1270 You must write a Fortran interface definition for this 1271 function that tells Fortran the Fortran derived data type that you are passing in as the `usrP` argument. 1272 1273 .seealso: [](ch_snes), `SNESSetApplicationContext()`, `SNESSetComputeApplicationContext()` 1274 @*/ 1275 PetscErrorCode SNESGetApplicationContext(SNES snes, void *usrP) 1276 { 1277 PetscFunctionBegin; 1278 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1279 *(void **)usrP = snes->user; 1280 PetscFunctionReturn(PETSC_SUCCESS); 1281 } 1282 1283 /*@ 1284 SNESSetUseMatrixFree - indicates that `SNES` should use matrix-free finite difference matrix-vector products to apply the Jacobian. 1285 1286 Logically Collective 1287 1288 Input Parameters: 1289 + snes - `SNES` context 1290 . mf_operator - use matrix-free only for the Amat used by `SNESSetJacobian()`, this means the user provided Pmat will continue to be used 1291 - mf - use matrix-free for both the Amat and Pmat used by `SNESSetJacobian()`, both the Amat and Pmat set in `SNESSetJacobian()` will be ignored. With 1292 this option no matrix-element based preconditioners can be used in the linear solve since the matrix won't be explicitly available 1293 1294 Options Database Keys: 1295 + -snes_mf_operator - use matrix-free only for the mat operator 1296 . -snes_mf - use matrix-free for both the mat and pmat operator 1297 . -snes_fd_color - compute the Jacobian via coloring and finite differences. 1298 - -snes_fd - compute the Jacobian via finite differences (slow) 1299 1300 Level: intermediate 1301 1302 Note: 1303 `SNES` supports three approaches for computing (approximate) Jacobians: user provided via `SNESSetJacobian()`, matrix-free using `MatCreateSNESMF()`, 1304 and computing explicitly with 1305 finite differences and coloring using `MatFDColoring`. It is also possible to use automatic differentiation and the `MatFDColoring` object. 1306 1307 .seealso: [](ch_snes), `SNES`, `SNESGetUseMatrixFree()`, `MatCreateSNESMF()`, `SNESComputeJacobianDefaultColor()`, `MatFDColoring` 1308 @*/ 1309 PetscErrorCode SNESSetUseMatrixFree(SNES snes, PetscBool mf_operator, PetscBool mf) 1310 { 1311 PetscFunctionBegin; 1312 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1313 PetscValidLogicalCollectiveBool(snes, mf_operator, 2); 1314 PetscValidLogicalCollectiveBool(snes, mf, 3); 1315 snes->mf = mf_operator ? PETSC_TRUE : mf; 1316 snes->mf_operator = mf_operator; 1317 PetscFunctionReturn(PETSC_SUCCESS); 1318 } 1319 1320 /*@ 1321 SNESGetUseMatrixFree - indicates if the `SNES` uses matrix-free finite difference matrix vector products to apply the Jacobian. 1322 1323 Not Collective, but the resulting flags will be the same on all MPI processes 1324 1325 Input Parameter: 1326 . snes - `SNES` context 1327 1328 Output Parameters: 1329 + mf_operator - use matrix-free only for the Amat used by `SNESSetJacobian()`, this means the user provided Pmat will continue to be used 1330 - mf - use matrix-free for both the Amat and Pmat used by `SNESSetJacobian()`, both the Amat and Pmat set in `SNESSetJacobian()` will be ignored 1331 1332 Level: intermediate 1333 1334 .seealso: [](ch_snes), `SNES`, `SNESSetUseMatrixFree()`, `MatCreateSNESMF()` 1335 @*/ 1336 PetscErrorCode SNESGetUseMatrixFree(SNES snes, PetscBool *mf_operator, PetscBool *mf) 1337 { 1338 PetscFunctionBegin; 1339 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1340 if (mf) *mf = snes->mf; 1341 if (mf_operator) *mf_operator = snes->mf_operator; 1342 PetscFunctionReturn(PETSC_SUCCESS); 1343 } 1344 1345 /*@ 1346 SNESGetIterationNumber - Gets the number of nonlinear iterations completed in the current or most recent `SNESSolve()` 1347 1348 Not Collective 1349 1350 Input Parameter: 1351 . snes - `SNES` context 1352 1353 Output Parameter: 1354 . iter - iteration number 1355 1356 Level: intermediate 1357 1358 Notes: 1359 For example, during the computation of iteration 2 this would return 1. 1360 1361 This is useful for using lagged Jacobians (where one does not recompute the 1362 Jacobian at each `SNES` iteration). For example, the code 1363 .vb 1364 ierr = SNESGetIterationNumber(snes,&it); 1365 if (!(it % 2)) { 1366 [compute Jacobian here] 1367 } 1368 .ve 1369 can be used in your function that computes the Jacobian to cause the Jacobian to be 1370 recomputed every second `SNES` iteration. See also `SNESSetLagJacobian()` 1371 1372 After the `SNES` solve is complete this will return the number of nonlinear iterations used. 1373 1374 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetLagJacobian()`, `SNESGetLinearSolveIterations()`, `SNESSetMonitor()` 1375 @*/ 1376 PetscErrorCode SNESGetIterationNumber(SNES snes, PetscInt *iter) 1377 { 1378 PetscFunctionBegin; 1379 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1380 PetscAssertPointer(iter, 2); 1381 *iter = snes->iter; 1382 PetscFunctionReturn(PETSC_SUCCESS); 1383 } 1384 1385 /*@ 1386 SNESSetIterationNumber - Sets the current iteration number. 1387 1388 Not Collective 1389 1390 Input Parameters: 1391 + snes - `SNES` context 1392 - iter - iteration number 1393 1394 Level: developer 1395 1396 Note: 1397 This should only be called inside a `SNES` nonlinear solver. 1398 1399 .seealso: [](ch_snes), `SNESGetLinearSolveIterations()` 1400 @*/ 1401 PetscErrorCode SNESSetIterationNumber(SNES snes, PetscInt iter) 1402 { 1403 PetscFunctionBegin; 1404 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1405 PetscCall(PetscObjectSAWsTakeAccess((PetscObject)snes)); 1406 snes->iter = iter; 1407 PetscCall(PetscObjectSAWsGrantAccess((PetscObject)snes)); 1408 PetscFunctionReturn(PETSC_SUCCESS); 1409 } 1410 1411 /*@ 1412 SNESGetNonlinearStepFailures - Gets the number of unsuccessful steps 1413 attempted by the nonlinear solver in the current or most recent `SNESSolve()` . 1414 1415 Not Collective 1416 1417 Input Parameter: 1418 . snes - `SNES` context 1419 1420 Output Parameter: 1421 . nfails - number of unsuccessful steps attempted 1422 1423 Level: intermediate 1424 1425 Note: 1426 This counter is reset to zero for each successive call to `SNESSolve()`. 1427 1428 .seealso: [](ch_snes), `SNES`, `SNESGetMaxLinearSolveFailures()`, `SNESGetLinearSolveIterations()`, `SNESSetMaxLinearSolveFailures()`, `SNESGetLinearSolveFailures()`, 1429 `SNESSetMaxNonlinearStepFailures()`, `SNESGetMaxNonlinearStepFailures()` 1430 @*/ 1431 PetscErrorCode SNESGetNonlinearStepFailures(SNES snes, PetscInt *nfails) 1432 { 1433 PetscFunctionBegin; 1434 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1435 PetscAssertPointer(nfails, 2); 1436 *nfails = snes->numFailures; 1437 PetscFunctionReturn(PETSC_SUCCESS); 1438 } 1439 1440 /*@ 1441 SNESSetMaxNonlinearStepFailures - Sets the maximum number of unsuccessful steps 1442 attempted by the nonlinear solver before it gives up and returns unconverged or generates an error 1443 1444 Not Collective 1445 1446 Input Parameters: 1447 + snes - `SNES` context 1448 - maxFails - maximum of unsuccessful steps 1449 1450 Options Database Key: 1451 . -snes_max_fail <n> - maximum number of unsuccessful steps allowed 1452 1453 Level: intermediate 1454 1455 Developer Note: 1456 The options database key is wrong for this function name 1457 1458 .seealso: [](ch_snes), `SNESSetErrorIfNotConverged()`, `SNESGetMaxLinearSolveFailures()`, `SNESGetLinearSolveIterations()`, `SNESSetMaxLinearSolveFailures()`, `SNESGetLinearSolveFailures()`, 1459 `SNESGetMaxNonlinearStepFailures()`, `SNESGetNonlinearStepFailures()` 1460 @*/ 1461 PetscErrorCode SNESSetMaxNonlinearStepFailures(SNES snes, PetscInt maxFails) 1462 { 1463 PetscFunctionBegin; 1464 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1465 snes->maxFailures = maxFails; 1466 PetscFunctionReturn(PETSC_SUCCESS); 1467 } 1468 1469 /*@ 1470 SNESGetMaxNonlinearStepFailures - Gets the maximum number of unsuccessful steps 1471 attempted by the nonlinear solver before it gives up and returns unconverged or generates an error 1472 1473 Not Collective 1474 1475 Input Parameter: 1476 . snes - `SNES` context 1477 1478 Output Parameter: 1479 . maxFails - maximum of unsuccessful steps 1480 1481 Level: intermediate 1482 1483 .seealso: [](ch_snes), `SNESSetErrorIfNotConverged()`, `SNESGetMaxLinearSolveFailures()`, `SNESGetLinearSolveIterations()`, `SNESSetMaxLinearSolveFailures()`, `SNESGetLinearSolveFailures()`, 1484 `SNESSetMaxNonlinearStepFailures()`, `SNESGetNonlinearStepFailures()` 1485 @*/ 1486 PetscErrorCode SNESGetMaxNonlinearStepFailures(SNES snes, PetscInt *maxFails) 1487 { 1488 PetscFunctionBegin; 1489 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1490 PetscAssertPointer(maxFails, 2); 1491 *maxFails = snes->maxFailures; 1492 PetscFunctionReturn(PETSC_SUCCESS); 1493 } 1494 1495 /*@ 1496 SNESGetNumberFunctionEvals - Gets the number of user provided function evaluations 1497 done by the `SNES` object in the current or most recent `SNESSolve()` 1498 1499 Not Collective 1500 1501 Input Parameter: 1502 . snes - `SNES` context 1503 1504 Output Parameter: 1505 . nfuncs - number of evaluations 1506 1507 Level: intermediate 1508 1509 Note: 1510 Reset every time `SNESSolve()` is called unless `SNESSetCountersReset()` is used. 1511 1512 .seealso: [](ch_snes), `SNES`, `SNESGetMaxLinearSolveFailures()`, `SNESGetLinearSolveIterations()`, `SNESSetMaxLinearSolveFailures()`, `SNESGetLinearSolveFailures()`, `SNESSetCountersReset()` 1513 @*/ 1514 PetscErrorCode SNESGetNumberFunctionEvals(SNES snes, PetscInt *nfuncs) 1515 { 1516 PetscFunctionBegin; 1517 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1518 PetscAssertPointer(nfuncs, 2); 1519 *nfuncs = snes->nfuncs; 1520 PetscFunctionReturn(PETSC_SUCCESS); 1521 } 1522 1523 /*@ 1524 SNESGetLinearSolveFailures - Gets the number of failed (non-converged) 1525 linear solvers in the current or most recent `SNESSolve()` 1526 1527 Not Collective 1528 1529 Input Parameter: 1530 . snes - `SNES` context 1531 1532 Output Parameter: 1533 . nfails - number of failed solves 1534 1535 Options Database Key: 1536 . -snes_max_linear_solve_fail <num> - The number of failures before the solve is terminated 1537 1538 Level: intermediate 1539 1540 Note: 1541 This counter is reset to zero for each successive call to `SNESSolve()`. 1542 1543 .seealso: [](ch_snes), `SNESGetMaxLinearSolveFailures()`, `SNESGetLinearSolveIterations()`, `SNESSetMaxLinearSolveFailures()` 1544 @*/ 1545 PetscErrorCode SNESGetLinearSolveFailures(SNES snes, PetscInt *nfails) 1546 { 1547 PetscFunctionBegin; 1548 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1549 PetscAssertPointer(nfails, 2); 1550 *nfails = snes->numLinearSolveFailures; 1551 PetscFunctionReturn(PETSC_SUCCESS); 1552 } 1553 1554 /*@ 1555 SNESSetMaxLinearSolveFailures - the number of failed linear solve attempts 1556 allowed before `SNES` returns with a diverged reason of `SNES_DIVERGED_LINEAR_SOLVE` 1557 1558 Logically Collective 1559 1560 Input Parameters: 1561 + snes - `SNES` context 1562 - maxFails - maximum allowed linear solve failures 1563 1564 Options Database Key: 1565 . -snes_max_linear_solve_fail <num> - The number of failures before the solve is terminated 1566 1567 Level: intermediate 1568 1569 Note: 1570 By default this is 0; that is `SNES` returns on the first failed linear solve 1571 1572 Developer Note: 1573 The options database key is wrong for this function name 1574 1575 .seealso: [](ch_snes), `SNESSetErrorIfNotConverged()`, `SNESGetLinearSolveFailures()`, `SNESGetMaxLinearSolveFailures()`, `SNESGetLinearSolveIterations()` 1576 @*/ 1577 PetscErrorCode SNESSetMaxLinearSolveFailures(SNES snes, PetscInt maxFails) 1578 { 1579 PetscFunctionBegin; 1580 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1581 PetscValidLogicalCollectiveInt(snes, maxFails, 2); 1582 snes->maxLinearSolveFailures = maxFails; 1583 PetscFunctionReturn(PETSC_SUCCESS); 1584 } 1585 1586 /*@ 1587 SNESGetMaxLinearSolveFailures - gets the maximum number of linear solve failures that 1588 are allowed before `SNES` returns as unsuccessful 1589 1590 Not Collective 1591 1592 Input Parameter: 1593 . snes - `SNES` context 1594 1595 Output Parameter: 1596 . maxFails - maximum of unsuccessful solves allowed 1597 1598 Level: intermediate 1599 1600 Note: 1601 By default this is 1; that is `SNES` returns on the first failed linear solve 1602 1603 .seealso: [](ch_snes), `SNESSetErrorIfNotConverged()`, `SNESGetLinearSolveFailures()`, `SNESGetLinearSolveIterations()`, `SNESSetMaxLinearSolveFailures()`, 1604 @*/ 1605 PetscErrorCode SNESGetMaxLinearSolveFailures(SNES snes, PetscInt *maxFails) 1606 { 1607 PetscFunctionBegin; 1608 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1609 PetscAssertPointer(maxFails, 2); 1610 *maxFails = snes->maxLinearSolveFailures; 1611 PetscFunctionReturn(PETSC_SUCCESS); 1612 } 1613 1614 /*@ 1615 SNESGetLinearSolveIterations - Gets the total number of linear iterations 1616 used by the nonlinear solver in the most recent `SNESSolve()` 1617 1618 Not Collective 1619 1620 Input Parameter: 1621 . snes - `SNES` context 1622 1623 Output Parameter: 1624 . lits - number of linear iterations 1625 1626 Level: intermediate 1627 1628 Notes: 1629 This counter is reset to zero for each successive call to `SNESSolve()` unless `SNESSetCountersReset()` is used. 1630 1631 If the linear solver fails inside the `SNESSolve()` the iterations for that call to the linear solver are not included. If you wish to count them 1632 then call `KSPGetIterationNumber()` after the failed solve. 1633 1634 .seealso: [](ch_snes), `SNES`, `SNESGetIterationNumber()`, `SNESGetLinearSolveFailures()`, `SNESGetMaxLinearSolveFailures()`, `SNESSetCountersReset()` 1635 @*/ 1636 PetscErrorCode SNESGetLinearSolveIterations(SNES snes, PetscInt *lits) 1637 { 1638 PetscFunctionBegin; 1639 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1640 PetscAssertPointer(lits, 2); 1641 *lits = snes->linear_its; 1642 PetscFunctionReturn(PETSC_SUCCESS); 1643 } 1644 1645 /*@ 1646 SNESSetCountersReset - Sets whether or not the counters for linear iterations and function evaluations 1647 are reset every time `SNESSolve()` is called. 1648 1649 Logically Collective 1650 1651 Input Parameters: 1652 + snes - `SNES` context 1653 - reset - whether to reset the counters or not, defaults to `PETSC_TRUE` 1654 1655 Level: developer 1656 1657 .seealso: [](ch_snes), `SNESGetNumberFunctionEvals()`, `SNESGetLinearSolveIterations()`, `SNESGetNPC()` 1658 @*/ 1659 PetscErrorCode SNESSetCountersReset(SNES snes, PetscBool reset) 1660 { 1661 PetscFunctionBegin; 1662 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1663 PetscValidLogicalCollectiveBool(snes, reset, 2); 1664 snes->counters_reset = reset; 1665 PetscFunctionReturn(PETSC_SUCCESS); 1666 } 1667 1668 /*@ 1669 SNESSetKSP - Sets a `KSP` context for the `SNES` object to use 1670 1671 Not Collective, but the `SNES` and `KSP` objects must live on the same `MPI_Comm` 1672 1673 Input Parameters: 1674 + snes - the `SNES` context 1675 - ksp - the `KSP` context 1676 1677 Level: developer 1678 1679 Notes: 1680 The `SNES` object already has its `KSP` object, you can obtain with `SNESGetKSP()` 1681 so this routine is rarely needed. 1682 1683 The `KSP` object that is already in the `SNES` object has its reference count 1684 decreased by one when this is called. 1685 1686 .seealso: [](ch_snes), `SNES`, `KSP`, `KSPGetPC()`, `SNESCreate()`, `KSPCreate()` 1687 @*/ 1688 PetscErrorCode SNESSetKSP(SNES snes, KSP ksp) 1689 { 1690 PetscFunctionBegin; 1691 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1692 PetscValidHeaderSpecific(ksp, KSP_CLASSID, 2); 1693 PetscCheckSameComm(snes, 1, ksp, 2); 1694 PetscCall(PetscObjectReference((PetscObject)ksp)); 1695 if (snes->ksp) PetscCall(PetscObjectDereference((PetscObject)snes->ksp)); 1696 snes->ksp = ksp; 1697 PetscFunctionReturn(PETSC_SUCCESS); 1698 } 1699 1700 /*@ 1701 SNESCreate - Creates a nonlinear solver context used to manage a set of nonlinear solves 1702 1703 Collective 1704 1705 Input Parameter: 1706 . comm - MPI communicator 1707 1708 Output Parameter: 1709 . outsnes - the new `SNES` context 1710 1711 Options Database Keys: 1712 + -snes_mf - Activates default matrix-free Jacobian-vector products, and no preconditioning matrix 1713 . -snes_mf_operator - Activates default matrix-free Jacobian-vector products, and a user-provided preconditioning matrix 1714 as set by `SNESSetJacobian()` 1715 . -snes_fd_coloring - uses a relative fast computation of the Jacobian using finite differences and a graph coloring 1716 - -snes_fd - Uses (slow!) finite differences to compute Jacobian 1717 1718 Level: beginner 1719 1720 Developer Notes: 1721 `SNES` always creates a `KSP` object even though many `SNES` methods do not use it. This is 1722 unfortunate and should be fixed at some point. The flag snes->usesksp indicates if the 1723 particular method does use `KSP` and regulates if the information about the `KSP` is printed 1724 in `SNESView()`. 1725 1726 `TSSetFromOptions()` does call `SNESSetFromOptions()` which can lead to users being confused 1727 by help messages about meaningless `SNES` options. 1728 1729 `SNES` always creates the snes->kspconvctx even though it is used by only one type. This should be fixed. 1730 1731 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESDestroy()`, `SNESSetLagPreconditioner()`, `SNESSetLagJacobian()` 1732 @*/ 1733 PetscErrorCode SNESCreate(MPI_Comm comm, SNES *outsnes) 1734 { 1735 SNES snes; 1736 SNESKSPEW *kctx; 1737 1738 PetscFunctionBegin; 1739 PetscAssertPointer(outsnes, 2); 1740 *outsnes = NULL; 1741 PetscCall(SNESInitializePackage()); 1742 1743 PetscCall(PetscHeaderCreate(snes, SNES_CLASSID, "SNES", "Nonlinear solver", "SNES", comm, SNESDestroy, SNESView)); 1744 1745 snes->ops->converged = SNESConvergedDefault; 1746 snes->usesksp = PETSC_TRUE; 1747 snes->tolerancesset = PETSC_FALSE; 1748 snes->max_its = 50; 1749 snes->max_funcs = 10000; 1750 snes->norm = 0.0; 1751 snes->xnorm = 0.0; 1752 snes->ynorm = 0.0; 1753 snes->normschedule = SNES_NORM_ALWAYS; 1754 snes->functype = SNES_FUNCTION_DEFAULT; 1755 snes->rtol = PetscDefined(USE_REAL_SINGLE) ? 1.e-5 : 1.e-8; 1756 snes->ttol = 0.0; 1757 snes->abstol = PetscDefined(USE_REAL_SINGLE) ? 1.e-25 : 1.e-50; 1758 snes->stol = PetscDefined(USE_REAL_SINGLE) ? 1.e-5 : 1.e-8; 1759 snes->deltatol = PetscDefined(USE_REAL_SINGLE) ? 1.e-6 : 1.e-12; 1760 snes->divtol = 1.e4; 1761 snes->rnorm0 = 0; 1762 snes->nfuncs = 0; 1763 snes->numFailures = 0; 1764 snes->maxFailures = 1; 1765 snes->linear_its = 0; 1766 snes->lagjacobian = 1; 1767 snes->jac_iter = 0; 1768 snes->lagjac_persist = PETSC_FALSE; 1769 snes->lagpreconditioner = 1; 1770 snes->pre_iter = 0; 1771 snes->lagpre_persist = PETSC_FALSE; 1772 snes->numbermonitors = 0; 1773 snes->numberreasonviews = 0; 1774 snes->data = NULL; 1775 snes->setupcalled = PETSC_FALSE; 1776 snes->ksp_ewconv = PETSC_FALSE; 1777 snes->nwork = 0; 1778 snes->work = NULL; 1779 snes->nvwork = 0; 1780 snes->vwork = NULL; 1781 snes->conv_hist_len = 0; 1782 snes->conv_hist_max = 0; 1783 snes->conv_hist = NULL; 1784 snes->conv_hist_its = NULL; 1785 snes->conv_hist_reset = PETSC_TRUE; 1786 snes->counters_reset = PETSC_TRUE; 1787 snes->vec_func_init_set = PETSC_FALSE; 1788 snes->reason = SNES_CONVERGED_ITERATING; 1789 snes->npcside = PC_RIGHT; 1790 snes->setfromoptionscalled = 0; 1791 1792 snes->mf = PETSC_FALSE; 1793 snes->mf_operator = PETSC_FALSE; 1794 snes->mf_version = 1; 1795 1796 snes->numLinearSolveFailures = 0; 1797 snes->maxLinearSolveFailures = 1; 1798 1799 snes->vizerotolerance = 1.e-8; 1800 snes->checkjacdomainerror = PetscDefined(USE_DEBUG) ? PETSC_TRUE : PETSC_FALSE; 1801 1802 /* Set this to true if the implementation of SNESSolve_XXX does compute the residual at the final solution. */ 1803 snes->alwayscomputesfinalresidual = PETSC_FALSE; 1804 1805 /* Create context to compute Eisenstat-Walker relative tolerance for KSP */ 1806 PetscCall(PetscNew(&kctx)); 1807 1808 snes->kspconvctx = (void *)kctx; 1809 kctx->version = 2; 1810 kctx->rtol_0 = 0.3; /* Eisenstat and Walker suggest rtol_0=.5, but 1811 this was too large for some test cases */ 1812 kctx->rtol_last = 0.0; 1813 kctx->rtol_max = 0.9; 1814 kctx->gamma = 1.0; 1815 kctx->alpha = 0.5 * (1.0 + PetscSqrtReal(5.0)); 1816 kctx->alpha2 = kctx->alpha; 1817 kctx->threshold = 0.1; 1818 kctx->lresid_last = 0.0; 1819 kctx->norm_last = 0.0; 1820 1821 kctx->rk_last = 0.0; 1822 kctx->rk_last_2 = 0.0; 1823 kctx->rtol_last_2 = 0.0; 1824 kctx->v4_p1 = 0.1; 1825 kctx->v4_p2 = 0.4; 1826 kctx->v4_p3 = 0.7; 1827 kctx->v4_m1 = 0.8; 1828 kctx->v4_m2 = 0.5; 1829 kctx->v4_m3 = 0.1; 1830 kctx->v4_m4 = 0.5; 1831 1832 *outsnes = snes; 1833 PetscFunctionReturn(PETSC_SUCCESS); 1834 } 1835 1836 /*MC 1837 SNESFunction - Functional form used to convey the nonlinear function to `SNES` in `SNESSetFunction()` 1838 1839 Synopsis: 1840 #include "petscsnes.h" 1841 PetscErrorCode SNESFunction(SNES snes,Vec x,Vec f,void *ctx); 1842 1843 Collective 1844 1845 Input Parameters: 1846 + snes - the `SNES` context 1847 . x - state at which to evaluate residual 1848 - ctx - optional user-defined function context, passed in with `SNESSetFunction()` 1849 1850 Output Parameter: 1851 . f - vector to put residual (function value) 1852 1853 Level: intermediate 1854 1855 .seealso: [](ch_snes), `SNESSetFunction()`, `SNESGetFunction()` 1856 M*/ 1857 1858 /*@C 1859 SNESSetFunction - Sets the function evaluation routine and function 1860 vector for use by the `SNES` routines in solving systems of nonlinear 1861 equations. 1862 1863 Logically Collective 1864 1865 Input Parameters: 1866 + snes - the `SNES` context 1867 . r - vector to store function values, may be `NULL` 1868 . f - function evaluation routine; for calling sequence see `SNESFunction` 1869 - ctx - [optional] user-defined context for private data for the 1870 function evaluation routine (may be `NULL`) 1871 1872 Level: beginner 1873 1874 .seealso: [](ch_snes), `SNES`, `SNESGetFunction()`, `SNESComputeFunction()`, `SNESSetJacobian()`, `SNESSetPicard()`, `SNESFunction` 1875 @*/ 1876 PetscErrorCode SNESSetFunction(SNES snes, Vec r, PetscErrorCode (*f)(SNES, Vec, Vec, void *), void *ctx) 1877 { 1878 DM dm; 1879 1880 PetscFunctionBegin; 1881 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1882 if (r) { 1883 PetscValidHeaderSpecific(r, VEC_CLASSID, 2); 1884 PetscCheckSameComm(snes, 1, r, 2); 1885 PetscCall(PetscObjectReference((PetscObject)r)); 1886 PetscCall(VecDestroy(&snes->vec_func)); 1887 snes->vec_func = r; 1888 } 1889 PetscCall(SNESGetDM(snes, &dm)); 1890 PetscCall(DMSNESSetFunction(dm, f, ctx)); 1891 if (f == SNESPicardComputeFunction) PetscCall(DMSNESSetMFFunction(dm, SNESPicardComputeMFFunction, ctx)); 1892 PetscFunctionReturn(PETSC_SUCCESS); 1893 } 1894 1895 /*@C 1896 SNESSetInitialFunction - Set an already computed function evaluation at the initial guess to be reused by `SNESSolve()`. 1897 1898 Logically Collective 1899 1900 Input Parameters: 1901 + snes - the `SNES` context 1902 - f - vector to store function value 1903 1904 Level: developer 1905 1906 Notes: 1907 This should not be modified during the solution procedure. 1908 1909 This is used extensively in the `SNESFAS` hierarchy and in nonlinear preconditioning. 1910 1911 .seealso: [](ch_snes), `SNES`, `SNESFAS`, `SNESSetFunction()`, `SNESComputeFunction()`, `SNESSetInitialFunctionNorm()` 1912 @*/ 1913 PetscErrorCode SNESSetInitialFunction(SNES snes, Vec f) 1914 { 1915 Vec vec_func; 1916 1917 PetscFunctionBegin; 1918 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1919 PetscValidHeaderSpecific(f, VEC_CLASSID, 2); 1920 PetscCheckSameComm(snes, 1, f, 2); 1921 if (snes->npcside == PC_LEFT && snes->functype == SNES_FUNCTION_PRECONDITIONED) { 1922 snes->vec_func_init_set = PETSC_FALSE; 1923 PetscFunctionReturn(PETSC_SUCCESS); 1924 } 1925 PetscCall(SNESGetFunction(snes, &vec_func, NULL, NULL)); 1926 PetscCall(VecCopy(f, vec_func)); 1927 1928 snes->vec_func_init_set = PETSC_TRUE; 1929 PetscFunctionReturn(PETSC_SUCCESS); 1930 } 1931 1932 /*@ 1933 SNESSetNormSchedule - Sets the `SNESNormSchedule` used in convergence and monitoring 1934 of the `SNES` method, when norms are computed in the solving process 1935 1936 Logically Collective 1937 1938 Input Parameters: 1939 + snes - the `SNES` context 1940 - normschedule - the frequency of norm computation 1941 1942 Options Database Key: 1943 . -snes_norm_schedule <none, always, initialonly, finalonly, initialfinalonly> - set the schedule 1944 1945 Level: advanced 1946 1947 Notes: 1948 Only certain `SNES` methods support certain `SNESNormSchedules`. Most require evaluation 1949 of the nonlinear function and the taking of its norm at every iteration to 1950 even ensure convergence at all. However, methods such as custom Gauss-Seidel methods 1951 `SNESNGS` and the like do not require the norm of the function to be computed, and therefore 1952 may either be monitored for convergence or not. As these are often used as nonlinear 1953 preconditioners, monitoring the norm of their error is not a useful enterprise within 1954 their solution. 1955 1956 .seealso: [](ch_snes), `SNESNormSchedule`, `SNESGetNormSchedule()`, `SNESComputeFunction()`, `VecNorm()`, `SNESSetFunction()`, `SNESSetInitialFunction()` 1957 @*/ 1958 PetscErrorCode SNESSetNormSchedule(SNES snes, SNESNormSchedule normschedule) 1959 { 1960 PetscFunctionBegin; 1961 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1962 snes->normschedule = normschedule; 1963 PetscFunctionReturn(PETSC_SUCCESS); 1964 } 1965 1966 /*@ 1967 SNESGetNormSchedule - Gets the `SNESNormSchedule` used in convergence and monitoring 1968 of the `SNES` method. 1969 1970 Logically Collective 1971 1972 Input Parameters: 1973 + snes - the `SNES` context 1974 - normschedule - the type of the norm used 1975 1976 Level: advanced 1977 1978 .seealso: [](ch_snes), `SNES`, `SNESSetNormSchedule()`, `SNESComputeFunction()`, `VecNorm()`, `SNESSetFunction()`, `SNESSetInitialFunction()`, `SNESNormSchedule` 1979 @*/ 1980 PetscErrorCode SNESGetNormSchedule(SNES snes, SNESNormSchedule *normschedule) 1981 { 1982 PetscFunctionBegin; 1983 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 1984 *normschedule = snes->normschedule; 1985 PetscFunctionReturn(PETSC_SUCCESS); 1986 } 1987 1988 /*@ 1989 SNESSetFunctionNorm - Sets the last computed residual norm. 1990 1991 Logically Collective 1992 1993 Input Parameters: 1994 + snes - the `SNES` context 1995 - norm - the value of the norm 1996 1997 Level: developer 1998 1999 .seealso: [](ch_snes), `SNES`, `SNESGetNormSchedule()`, `SNESComputeFunction()`, `VecNorm()`, `SNESSetFunction()`, `SNESSetInitialFunction()`, `SNESNormSchedule` 2000 @*/ 2001 PetscErrorCode SNESSetFunctionNorm(SNES snes, PetscReal norm) 2002 { 2003 PetscFunctionBegin; 2004 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2005 snes->norm = norm; 2006 PetscFunctionReturn(PETSC_SUCCESS); 2007 } 2008 2009 /*@ 2010 SNESGetFunctionNorm - Gets the last computed norm of the residual 2011 2012 Not Collective 2013 2014 Input Parameter: 2015 . snes - the `SNES` context 2016 2017 Output Parameter: 2018 . norm - the last computed residual norm 2019 2020 Level: developer 2021 2022 .seealso: [](ch_snes), `SNES`, `SNESSetNormSchedule()`, `SNESComputeFunction()`, `VecNorm()`, `SNESSetFunction()`, `SNESSetInitialFunction()`, `SNESNormSchedule` 2023 @*/ 2024 PetscErrorCode SNESGetFunctionNorm(SNES snes, PetscReal *norm) 2025 { 2026 PetscFunctionBegin; 2027 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2028 PetscAssertPointer(norm, 2); 2029 *norm = snes->norm; 2030 PetscFunctionReturn(PETSC_SUCCESS); 2031 } 2032 2033 /*@ 2034 SNESGetUpdateNorm - Gets the last computed norm of the solution update 2035 2036 Not Collective 2037 2038 Input Parameter: 2039 . snes - the `SNES` context 2040 2041 Output Parameter: 2042 . ynorm - the last computed update norm 2043 2044 Level: developer 2045 2046 Note: 2047 The new solution is the current solution plus the update, so this norm is an indication of the size of the update 2048 2049 .seealso: [](ch_snes), `SNES`, `SNESSetNormSchedule()`, `SNESComputeFunction()`, `SNESGetFunctionNorm()` 2050 @*/ 2051 PetscErrorCode SNESGetUpdateNorm(SNES snes, PetscReal *ynorm) 2052 { 2053 PetscFunctionBegin; 2054 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2055 PetscAssertPointer(ynorm, 2); 2056 *ynorm = snes->ynorm; 2057 PetscFunctionReturn(PETSC_SUCCESS); 2058 } 2059 2060 /*@ 2061 SNESGetSolutionNorm - Gets the last computed norm of the solution 2062 2063 Not Collective 2064 2065 Input Parameter: 2066 . snes - the `SNES` context 2067 2068 Output Parameter: 2069 . xnorm - the last computed solution norm 2070 2071 Level: developer 2072 2073 .seealso: [](ch_snes), `SNES`, `SNESSetNormSchedule()`, `SNESComputeFunction()`, `SNESGetFunctionNorm()`, `SNESGetUpdateNorm()` 2074 @*/ 2075 PetscErrorCode SNESGetSolutionNorm(SNES snes, PetscReal *xnorm) 2076 { 2077 PetscFunctionBegin; 2078 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2079 PetscAssertPointer(xnorm, 2); 2080 *xnorm = snes->xnorm; 2081 PetscFunctionReturn(PETSC_SUCCESS); 2082 } 2083 2084 /*@C 2085 SNESSetFunctionType - Sets the `SNESFunctionType` 2086 of the `SNES` method. 2087 2088 Logically Collective 2089 2090 Input Parameters: 2091 + snes - the `SNES` context 2092 - type - the function type 2093 2094 Level: developer 2095 2096 Values of the function type\: 2097 + `SNES_FUNCTION_DEFAULT` - the default for the given `SNESType` 2098 . `SNES_FUNCTION_UNPRECONDITIONED` - an unpreconditioned function evaluation (this is the function provided with `SNESSetFunction()` 2099 - `SNES_FUNCTION_PRECONDITIONED` - a transformation of the function provided with `SNESSetFunction()` 2100 2101 Note: 2102 Different `SNESType`s use this value in different ways 2103 2104 .seealso: [](ch_snes), `SNES`, `SNESFunctionType`, `SNESGetNormSchedule()`, `SNESComputeFunction()`, `VecNorm()`, `SNESSetFunction()`, `SNESSetInitialFunction()`, `SNESNormSchedule` 2105 @*/ 2106 PetscErrorCode SNESSetFunctionType(SNES snes, SNESFunctionType type) 2107 { 2108 PetscFunctionBegin; 2109 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2110 snes->functype = type; 2111 PetscFunctionReturn(PETSC_SUCCESS); 2112 } 2113 2114 /*@C 2115 SNESGetFunctionType - Gets the `SNESFunctionType` used in convergence and monitoring set with `SNESSetFunctionType()` 2116 of the SNES method. 2117 2118 Logically Collective 2119 2120 Input Parameters: 2121 + snes - the `SNES` context 2122 - type - the type of the function evaluation, see `SNESSetFunctionType()` 2123 2124 Level: advanced 2125 2126 .seealso: [](ch_snes), `SNESSetFunctionType()`, `SNESFunctionType`, `SNESSetNormSchedule()`, `SNESComputeFunction()`, `VecNorm()`, `SNESSetFunction()`, `SNESSetInitialFunction()`, `SNESNormSchedule` 2127 @*/ 2128 PetscErrorCode SNESGetFunctionType(SNES snes, SNESFunctionType *type) 2129 { 2130 PetscFunctionBegin; 2131 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2132 *type = snes->functype; 2133 PetscFunctionReturn(PETSC_SUCCESS); 2134 } 2135 2136 /*@C 2137 SNESSetNGS - Sets the user nonlinear Gauss-Seidel routine for 2138 use with composed nonlinear solvers. 2139 2140 Input Parameters: 2141 + snes - the `SNES` context 2142 . f - function evaluation routine to apply Gauss-Seidel 2143 - ctx - [optional] user-defined context for private data for the 2144 smoother evaluation routine (may be `NULL`) 2145 2146 Calling sequence of `f`: 2147 + snes - the `SNES` context 2148 . X - the current solution 2149 . B - the right hand side vector (which may be `NULL`) 2150 - ctx - a user provided context 2151 2152 Level: intermediate 2153 2154 Note: 2155 The `SNESNGS` routines are used by the composed nonlinear solver to generate 2156 a problem appropriate update to the solution, particularly `SNESFAS`. 2157 2158 .seealso: [](ch_snes), `SNESGetNGS()`, `SNESNCG`, `SNESGetFunction()`, `SNESComputeNGS()` 2159 @*/ 2160 PetscErrorCode SNESSetNGS(SNES snes, PetscErrorCode (*f)(SNES snes, Vec X, Vec B, void *ctx), void *ctx) 2161 { 2162 DM dm; 2163 2164 PetscFunctionBegin; 2165 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2166 PetscCall(SNESGetDM(snes, &dm)); 2167 PetscCall(DMSNESSetNGS(dm, f, ctx)); 2168 PetscFunctionReturn(PETSC_SUCCESS); 2169 } 2170 2171 /* 2172 This is used for -snes_mf_operator; it uses a duplicate of snes->jacobian_pre because snes->jacobian_pre cannot be 2173 changed during the KSPSolve() 2174 */ 2175 PetscErrorCode SNESPicardComputeMFFunction(SNES snes, Vec x, Vec f, void *ctx) 2176 { 2177 DM dm; 2178 DMSNES sdm; 2179 2180 PetscFunctionBegin; 2181 PetscCall(SNESGetDM(snes, &dm)); 2182 PetscCall(DMGetDMSNES(dm, &sdm)); 2183 /* A(x)*x - b(x) */ 2184 if (sdm->ops->computepfunction) { 2185 PetscCallBack("SNES Picard callback function", (*sdm->ops->computepfunction)(snes, x, f, sdm->pctx)); 2186 PetscCall(VecScale(f, -1.0)); 2187 /* Cannot share nonzero pattern because of the possible use of SNESComputeJacobianDefault() */ 2188 if (!snes->picard) PetscCall(MatDuplicate(snes->jacobian_pre, MAT_DO_NOT_COPY_VALUES, &snes->picard)); 2189 PetscCallBack("SNES Picard callback Jacobian", (*sdm->ops->computepjacobian)(snes, x, snes->picard, snes->picard, sdm->pctx)); 2190 PetscCall(MatMultAdd(snes->picard, x, f, f)); 2191 } else { 2192 PetscCallBack("SNES Picard callback Jacobian", (*sdm->ops->computepjacobian)(snes, x, snes->picard, snes->picard, sdm->pctx)); 2193 PetscCall(MatMult(snes->picard, x, f)); 2194 } 2195 PetscFunctionReturn(PETSC_SUCCESS); 2196 } 2197 2198 PetscErrorCode SNESPicardComputeFunction(SNES snes, Vec x, Vec f, void *ctx) 2199 { 2200 DM dm; 2201 DMSNES sdm; 2202 2203 PetscFunctionBegin; 2204 PetscCall(SNESGetDM(snes, &dm)); 2205 PetscCall(DMGetDMSNES(dm, &sdm)); 2206 /* A(x)*x - b(x) */ 2207 if (sdm->ops->computepfunction) { 2208 PetscCallBack("SNES Picard callback function", (*sdm->ops->computepfunction)(snes, x, f, sdm->pctx)); 2209 PetscCall(VecScale(f, -1.0)); 2210 PetscCallBack("SNES Picard callback Jacobian", (*sdm->ops->computepjacobian)(snes, x, snes->jacobian, snes->jacobian_pre, sdm->pctx)); 2211 PetscCall(MatMultAdd(snes->jacobian_pre, x, f, f)); 2212 } else { 2213 PetscCallBack("SNES Picard callback Jacobian", (*sdm->ops->computepjacobian)(snes, x, snes->jacobian, snes->jacobian_pre, sdm->pctx)); 2214 PetscCall(MatMult(snes->jacobian_pre, x, f)); 2215 } 2216 PetscFunctionReturn(PETSC_SUCCESS); 2217 } 2218 2219 PetscErrorCode SNESPicardComputeJacobian(SNES snes, Vec x1, Mat J, Mat B, void *ctx) 2220 { 2221 PetscFunctionBegin; 2222 /* the jacobian matrix should be pre-filled in SNESPicardComputeFunction */ 2223 /* must assembly if matrix-free to get the last SNES solution */ 2224 PetscCall(MatAssemblyBegin(J, MAT_FINAL_ASSEMBLY)); 2225 PetscCall(MatAssemblyEnd(J, MAT_FINAL_ASSEMBLY)); 2226 PetscFunctionReturn(PETSC_SUCCESS); 2227 } 2228 2229 /*@C 2230 SNESSetPicard - Use `SNES` to solve the system $A(x) x = bp(x) + b $ via a Picard type iteration (Picard linearization) 2231 2232 Logically Collective 2233 2234 Input Parameters: 2235 + snes - the `SNES` context 2236 . r - vector to store function values, may be `NULL` 2237 . bp - function evaluation routine, may be `NULL`, for the calling sequence see `SNESJacobianFunction` 2238 . Amat - matrix with which A(x) x - bp(x) - b is to be computed 2239 . Pmat - matrix from which preconditioner is computed (usually the same as `Amat`) 2240 . J - function to compute matrix values, for the calling sequence see `SNESJacobianFunction` 2241 - ctx - [optional] user-defined context for private data for the function evaluation routine (may be `NULL`) 2242 2243 Level: intermediate 2244 2245 Notes: 2246 It is often better to provide the nonlinear function F() and some approximation to its Jacobian directly and use 2247 an approximate Newton solver. This interface is provided to allow porting/testing a previous Picard based code in PETSc before converting it to approximate Newton. 2248 2249 One can call `SNESSetPicard()` or `SNESSetFunction()` (and possibly `SNESSetJacobian()`) but cannot call both 2250 2251 Solves the equation $A(x) x = bp(x) - b$ via the defect correction algorithm $A(x^{n}) (x^{n+1} - x^{n}) = bp(x^{n}) + b - A(x^{n})x^{n}$. 2252 When an exact solver is used this corresponds to the "classic" Picard $A(x^{n}) x^{n+1} = bp(x^{n}) + b$ iteration. 2253 2254 Run with `-snes_mf_operator` to solve the system with Newton's method using A(x^{n}) to construct the preconditioner. 2255 2256 We implement the defect correction form of the Picard iteration because it converges much more generally when inexact linear solvers are used then 2257 the direct Picard iteration $A(x^n) x^{n+1} = bp(x^n) + b$ 2258 2259 There is some controversity over the definition of a Picard iteration for nonlinear systems but almost everyone agrees that it involves a linear solve and some 2260 believe it is the iteration $A(x^{n}) x^{n+1} = b(x^{n})$ hence we use the name Picard. If anyone has an authoritative reference that defines the Picard iteration 2261 different please contact us at petsc-dev@mcs.anl.gov and we'll have an entirely new argument \:-). 2262 2263 When used with `-snes_mf_operator` this will run matrix-free Newton's method where the matrix-vector product is of the true Jacobian of $A(x)x - bp(x) - b$ and 2264 A(x^{n}) is used to build the preconditioner 2265 2266 When used with `-snes_fd` this will compute the true Jacobian (very slowly one column at at time) and thus represent Newton's method. 2267 2268 When used with `-snes_fd_coloring` this will compute the Jacobian via coloring and thus represent a faster implementation of Newton's method. But the 2269 the nonzero structure of the Jacobian is, in general larger than that of the Picard matrix A so you must provide in A the needed nonzero structure for the correct 2270 coloring. When using `DMDA` this may mean creating the matrix A with `DMCreateMatrix()` using a wider stencil than strictly needed for A or with a `DMDA_STENCIL_BOX`. 2271 See the comment in src/snes/tutorials/ex15.c. 2272 2273 .seealso: [](ch_snes), `SNES`, `SNESGetFunction()`, `SNESSetFunction()`, `SNESComputeFunction()`, `SNESSetJacobian()`, `SNESGetPicard()`, `SNESLineSearchPreCheckPicard()`, `SNESJacobianFunction` 2274 @*/ 2275 PetscErrorCode SNESSetPicard(SNES snes, Vec r, PetscErrorCode (*bp)(SNES, Vec, Vec, void *), Mat Amat, Mat Pmat, PetscErrorCode (*J)(SNES, Vec, Mat, Mat, void *), void *ctx) 2276 { 2277 DM dm; 2278 2279 PetscFunctionBegin; 2280 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2281 PetscCall(SNESGetDM(snes, &dm)); 2282 PetscCall(DMSNESSetPicard(dm, bp, J, ctx)); 2283 PetscCall(DMSNESSetMFFunction(dm, SNESPicardComputeMFFunction, ctx)); 2284 PetscCall(SNESSetFunction(snes, r, SNESPicardComputeFunction, ctx)); 2285 PetscCall(SNESSetJacobian(snes, Amat, Pmat, SNESPicardComputeJacobian, ctx)); 2286 PetscFunctionReturn(PETSC_SUCCESS); 2287 } 2288 2289 /*@C 2290 SNESGetPicard - Returns the context for the Picard iteration 2291 2292 Not Collective, but `Vec` is parallel if `SNES` is parallel. Collective if `Vec` is requested, but has not been created yet. 2293 2294 Input Parameter: 2295 . snes - the `SNES` context 2296 2297 Output Parameters: 2298 + r - the function (or `NULL`) 2299 . f - the function (or `NULL`); for calling sequence see `SNESFunction` 2300 . Amat - the matrix used to defined the operation A(x) x - b(x) (or `NULL`) 2301 . Pmat - the matrix from which the preconditioner will be constructed (or `NULL`) 2302 . J - the function for matrix evaluation (or `NULL`); for calling sequence see `SNESJacobianFunction` 2303 - ctx - the function context (or `NULL`) 2304 2305 Level: advanced 2306 2307 .seealso: [](ch_snes), `SNESSetFunction()`, `SNESSetPicard()`, `SNESGetFunction()`, `SNESGetJacobian()`, `SNESGetDM()`, `SNESFunction`, `SNESJacobianFunction` 2308 @*/ 2309 PetscErrorCode SNESGetPicard(SNES snes, Vec *r, PetscErrorCode (**f)(SNES, Vec, Vec, void *), Mat *Amat, Mat *Pmat, PetscErrorCode (**J)(SNES, Vec, Mat, Mat, void *), void **ctx) 2310 { 2311 DM dm; 2312 2313 PetscFunctionBegin; 2314 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2315 PetscCall(SNESGetFunction(snes, r, NULL, NULL)); 2316 PetscCall(SNESGetJacobian(snes, Amat, Pmat, NULL, NULL)); 2317 PetscCall(SNESGetDM(snes, &dm)); 2318 PetscCall(DMSNESGetPicard(dm, f, J, ctx)); 2319 PetscFunctionReturn(PETSC_SUCCESS); 2320 } 2321 2322 /*@C 2323 SNESSetComputeInitialGuess - Sets a routine used to compute an initial guess for the nonlinear problem 2324 2325 Logically Collective 2326 2327 Input Parameters: 2328 + snes - the `SNES` context 2329 . func - function evaluation routine 2330 - ctx - [optional] user-defined context for private data for the 2331 function evaluation routine (may be `NULL`) 2332 2333 Calling sequence of `func`: 2334 + snes - the `SNES` solver 2335 . x - vector to put initial guess 2336 - ctx - optional user-defined function context 2337 2338 Level: intermediate 2339 2340 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetFunction()`, `SNESGetFunction()`, `SNESComputeFunction()`, `SNESSetJacobian()` 2341 @*/ 2342 PetscErrorCode SNESSetComputeInitialGuess(SNES snes, PetscErrorCode (*func)(SNES snes, Vec x, void *ctx), void *ctx) 2343 { 2344 PetscFunctionBegin; 2345 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2346 if (func) snes->ops->computeinitialguess = func; 2347 if (ctx) snes->initialguessP = ctx; 2348 PetscFunctionReturn(PETSC_SUCCESS); 2349 } 2350 2351 /*@C 2352 SNESGetRhs - Gets the vector for solving F(x) = `rhs`. If `rhs` is not set 2353 it assumes a zero right hand side. 2354 2355 Logically Collective 2356 2357 Input Parameter: 2358 . snes - the `SNES` context 2359 2360 Output Parameter: 2361 . rhs - the right hand side vector or `NULL` if there is no right-hand side vector 2362 2363 Level: intermediate 2364 2365 .seealso: [](ch_snes), `SNES`, `SNESGetSolution()`, `SNESGetFunction()`, `SNESComputeFunction()`, `SNESSetJacobian()`, `SNESSetFunction()` 2366 @*/ 2367 PetscErrorCode SNESGetRhs(SNES snes, Vec *rhs) 2368 { 2369 PetscFunctionBegin; 2370 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2371 PetscAssertPointer(rhs, 2); 2372 *rhs = snes->vec_rhs; 2373 PetscFunctionReturn(PETSC_SUCCESS); 2374 } 2375 2376 /*@ 2377 SNESComputeFunction - Calls the function that has been set with `SNESSetFunction()`. 2378 2379 Collective 2380 2381 Input Parameters: 2382 + snes - the `SNES` context 2383 - x - input vector 2384 2385 Output Parameter: 2386 . y - function vector, as set by `SNESSetFunction()` 2387 2388 Level: developer 2389 2390 Notes: 2391 `SNESComputeFunction()` is typically used within nonlinear solvers 2392 implementations, so users would not generally call this routine themselves. 2393 2394 When solving for $F(x) = b$, this routine computes $y = F(x) - b$. 2395 2396 .seealso: [](ch_snes), `SNES`, `SNESSetFunction()`, `SNESGetFunction()`, `SNESComputeMFFunction()` 2397 @*/ 2398 PetscErrorCode SNESComputeFunction(SNES snes, Vec x, Vec y) 2399 { 2400 DM dm; 2401 DMSNES sdm; 2402 2403 PetscFunctionBegin; 2404 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2405 PetscValidHeaderSpecific(x, VEC_CLASSID, 2); 2406 PetscValidHeaderSpecific(y, VEC_CLASSID, 3); 2407 PetscCheckSameComm(snes, 1, x, 2); 2408 PetscCheckSameComm(snes, 1, y, 3); 2409 PetscCall(VecValidValues_Internal(x, 2, PETSC_TRUE)); 2410 2411 PetscCall(SNESGetDM(snes, &dm)); 2412 PetscCall(DMGetDMSNES(dm, &sdm)); 2413 PetscCheck(sdm->ops->computefunction || snes->vec_rhs, PETSC_COMM_SELF, PETSC_ERR_ARG_WRONGSTATE, "Must call SNESSetFunction() or SNESSetDM() before SNESComputeFunction(), likely called from SNESSolve()."); 2414 if (sdm->ops->computefunction) { 2415 if (sdm->ops->computefunction != SNESObjectiveComputeFunctionDefaultFD) PetscCall(PetscLogEventBegin(SNES_FunctionEval, snes, x, y, 0)); 2416 PetscCall(VecLockReadPush(x)); 2417 /* ensure domainerror is false prior to computefunction evaluation (may not have been reset) */ 2418 snes->domainerror = PETSC_FALSE; 2419 { 2420 void *ctx; 2421 PetscErrorCode (*computefunction)(SNES, Vec, Vec, void *); 2422 PetscCall(DMSNESGetFunction(dm, &computefunction, &ctx)); 2423 PetscCallBack("SNES callback function", (*computefunction)(snes, x, y, ctx)); 2424 } 2425 PetscCall(VecLockReadPop(x)); 2426 if (sdm->ops->computefunction != SNESObjectiveComputeFunctionDefaultFD) PetscCall(PetscLogEventEnd(SNES_FunctionEval, snes, x, y, 0)); 2427 } else /* if (snes->vec_rhs) */ { 2428 PetscCall(MatMult(snes->jacobian, x, y)); 2429 } 2430 if (snes->vec_rhs) PetscCall(VecAXPY(y, -1.0, snes->vec_rhs)); 2431 snes->nfuncs++; 2432 /* 2433 domainerror might not be set on all processes; so we tag vector locally with Inf and the next inner product or norm will 2434 propagate the value to all processes 2435 */ 2436 if (snes->domainerror) PetscCall(VecSetInf(y)); 2437 PetscFunctionReturn(PETSC_SUCCESS); 2438 } 2439 2440 /*@ 2441 SNESComputeMFFunction - Calls the function that has been set with `SNESSetMFFunction()`. 2442 2443 Collective 2444 2445 Input Parameters: 2446 + snes - the `SNES` context 2447 - x - input vector 2448 2449 Output Parameter: 2450 . y - function vector, as set by `SNESSetMFFunction()` 2451 2452 Level: developer 2453 2454 Notes: 2455 `SNESComputeMFFunction()` is used within the matrix-vector products called by the matrix created with `MatCreateSNESMF()` 2456 so users would not generally call this routine themselves. 2457 2458 Since this function is intended for use with finite differencing it does not subtract the right hand side vector provided with `SNESSolve()` 2459 while `SNESComputeFunction()` does. As such, this routine cannot be used with `MatMFFDSetBase()` with a provided F function value even if it applies the 2460 same function as `SNESComputeFunction()` if a `SNESSolve()` right hand side vector is use because the two functions difference would include this right hand side function. 2461 2462 .seealso: [](ch_snes), `SNES`, `SNESSetFunction()`, `SNESGetFunction()`, `SNESComputeFunction()`, `MatCreateSNESMF` 2463 @*/ 2464 PetscErrorCode SNESComputeMFFunction(SNES snes, Vec x, Vec y) 2465 { 2466 DM dm; 2467 DMSNES sdm; 2468 2469 PetscFunctionBegin; 2470 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2471 PetscValidHeaderSpecific(x, VEC_CLASSID, 2); 2472 PetscValidHeaderSpecific(y, VEC_CLASSID, 3); 2473 PetscCheckSameComm(snes, 1, x, 2); 2474 PetscCheckSameComm(snes, 1, y, 3); 2475 PetscCall(VecValidValues_Internal(x, 2, PETSC_TRUE)); 2476 2477 PetscCall(SNESGetDM(snes, &dm)); 2478 PetscCall(DMGetDMSNES(dm, &sdm)); 2479 PetscCall(PetscLogEventBegin(SNES_FunctionEval, snes, x, y, 0)); 2480 PetscCall(VecLockReadPush(x)); 2481 /* ensure domainerror is false prior to computefunction evaluation (may not have been reset) */ 2482 snes->domainerror = PETSC_FALSE; 2483 PetscCallBack("SNES callback function", (*sdm->ops->computemffunction)(snes, x, y, sdm->mffunctionctx)); 2484 PetscCall(VecLockReadPop(x)); 2485 PetscCall(PetscLogEventEnd(SNES_FunctionEval, snes, x, y, 0)); 2486 snes->nfuncs++; 2487 /* 2488 domainerror might not be set on all processes; so we tag vector locally with Inf and the next inner product or norm will 2489 propagate the value to all processes 2490 */ 2491 if (snes->domainerror) PetscCall(VecSetInf(y)); 2492 PetscFunctionReturn(PETSC_SUCCESS); 2493 } 2494 2495 /*@ 2496 SNESComputeNGS - Calls the Gauss-Seidel function that has been set with `SNESSetNGS()`. 2497 2498 Collective 2499 2500 Input Parameters: 2501 + snes - the `SNES` context 2502 . x - input vector 2503 - b - rhs vector 2504 2505 Output Parameter: 2506 . x - new solution vector 2507 2508 Level: developer 2509 2510 Note: 2511 `SNESComputeNGS()` is typically used within composed nonlinear solver 2512 implementations, so most users would not generally call this routine 2513 themselves. 2514 2515 .seealso: [](ch_snes), `SNESNGS`, `SNESSetNGS()`, `SNESComputeFunction()` 2516 @*/ 2517 PetscErrorCode SNESComputeNGS(SNES snes, Vec b, Vec x) 2518 { 2519 DM dm; 2520 DMSNES sdm; 2521 2522 PetscFunctionBegin; 2523 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2524 PetscValidHeaderSpecific(x, VEC_CLASSID, 3); 2525 if (b) PetscValidHeaderSpecific(b, VEC_CLASSID, 2); 2526 PetscCheckSameComm(snes, 1, x, 3); 2527 if (b) PetscCheckSameComm(snes, 1, b, 2); 2528 if (b) PetscCall(VecValidValues_Internal(b, 2, PETSC_TRUE)); 2529 PetscCall(PetscLogEventBegin(SNES_NGSEval, snes, x, b, 0)); 2530 PetscCall(SNESGetDM(snes, &dm)); 2531 PetscCall(DMGetDMSNES(dm, &sdm)); 2532 PetscCheck(sdm->ops->computegs, PETSC_COMM_SELF, PETSC_ERR_ARG_WRONGSTATE, "Must call SNESSetNGS() before SNESComputeNGS(), likely called from SNESSolve()."); 2533 if (b) PetscCall(VecLockReadPush(b)); 2534 PetscCallBack("SNES callback NGS", (*sdm->ops->computegs)(snes, x, b, sdm->gsctx)); 2535 if (b) PetscCall(VecLockReadPop(b)); 2536 PetscCall(PetscLogEventEnd(SNES_NGSEval, snes, x, b, 0)); 2537 PetscFunctionReturn(PETSC_SUCCESS); 2538 } 2539 2540 static PetscErrorCode SNESComputeFunction_FD(SNES snes, Vec Xin, Vec G) 2541 { 2542 Vec X; 2543 PetscScalar *g; 2544 PetscReal f, f2; 2545 PetscInt low, high, N, i; 2546 PetscBool flg; 2547 PetscReal h = .5 * PETSC_SQRT_MACHINE_EPSILON; 2548 2549 PetscFunctionBegin; 2550 PetscCall(PetscOptionsGetReal(((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_fd_delta", &h, &flg)); 2551 PetscCall(VecDuplicate(Xin, &X)); 2552 PetscCall(VecCopy(Xin, X)); 2553 PetscCall(VecGetSize(X, &N)); 2554 PetscCall(VecGetOwnershipRange(X, &low, &high)); 2555 PetscCall(VecSetOption(X, VEC_IGNORE_OFF_PROC_ENTRIES, PETSC_TRUE)); 2556 PetscCall(VecGetArray(G, &g)); 2557 for (i = 0; i < N; i++) { 2558 PetscCall(VecSetValue(X, i, -h, ADD_VALUES)); 2559 PetscCall(VecAssemblyBegin(X)); 2560 PetscCall(VecAssemblyEnd(X)); 2561 PetscCall(SNESComputeObjective(snes, X, &f)); 2562 PetscCall(VecSetValue(X, i, 2.0 * h, ADD_VALUES)); 2563 PetscCall(VecAssemblyBegin(X)); 2564 PetscCall(VecAssemblyEnd(X)); 2565 PetscCall(SNESComputeObjective(snes, X, &f2)); 2566 PetscCall(VecSetValue(X, i, -h, ADD_VALUES)); 2567 PetscCall(VecAssemblyBegin(X)); 2568 PetscCall(VecAssemblyEnd(X)); 2569 if (i >= low && i < high) g[i - low] = (f2 - f) / (2.0 * h); 2570 } 2571 PetscCall(VecRestoreArray(G, &g)); 2572 PetscCall(VecDestroy(&X)); 2573 PetscFunctionReturn(PETSC_SUCCESS); 2574 } 2575 2576 PetscErrorCode SNESTestFunction(SNES snes) 2577 { 2578 Vec x, g1, g2, g3; 2579 PetscBool complete_print = PETSC_FALSE, test = PETSC_FALSE; 2580 PetscReal hcnorm, fdnorm, hcmax, fdmax, diffmax, diffnorm; 2581 PetscScalar dot; 2582 MPI_Comm comm; 2583 PetscViewer viewer, mviewer; 2584 PetscViewerFormat format; 2585 PetscInt tabs; 2586 static PetscBool directionsprinted = PETSC_FALSE; 2587 PetscErrorCode (*objective)(SNES, Vec, PetscReal *, void *); 2588 2589 PetscFunctionBegin; 2590 PetscCall(SNESGetObjective(snes, &objective, NULL)); 2591 if (!objective) PetscFunctionReturn(PETSC_SUCCESS); 2592 2593 PetscObjectOptionsBegin((PetscObject)snes); 2594 PetscCall(PetscOptionsName("-snes_test_function", "Compare hand-coded and finite difference function", "None", &test)); 2595 PetscCall(PetscOptionsViewer("-snes_test_function_view", "View difference between hand-coded and finite difference function element entries", "None", &mviewer, &format, &complete_print)); 2596 PetscOptionsEnd(); 2597 if (!test) { 2598 if (complete_print) PetscCall(PetscViewerDestroy(&mviewer)); 2599 PetscFunctionReturn(PETSC_SUCCESS); 2600 } 2601 2602 PetscCall(PetscObjectGetComm((PetscObject)snes, &comm)); 2603 PetscCall(PetscViewerASCIIGetStdout(comm, &viewer)); 2604 PetscCall(PetscViewerASCIIGetTab(viewer, &tabs)); 2605 PetscCall(PetscViewerASCIISetTab(viewer, ((PetscObject)snes)->tablevel)); 2606 PetscCall(PetscViewerASCIIPrintf(viewer, " ---------- Testing Function -------------\n")); 2607 if (!complete_print && !directionsprinted) { 2608 PetscCall(PetscViewerASCIIPrintf(viewer, " Run with -snes_test_function_view and optionally -snes_test_function <threshold> to show difference\n")); 2609 PetscCall(PetscViewerASCIIPrintf(viewer, " of hand-coded and finite difference function entries greater than <threshold>.\n")); 2610 } 2611 if (!directionsprinted) { 2612 PetscCall(PetscViewerASCIIPrintf(viewer, " Testing hand-coded Function, if (for double precision runs) ||F - Ffd||/||F|| is\n")); 2613 PetscCall(PetscViewerASCIIPrintf(viewer, " O(1.e-8), the hand-coded Function is probably correct.\n")); 2614 directionsprinted = PETSC_TRUE; 2615 } 2616 if (complete_print) PetscCall(PetscViewerPushFormat(mviewer, format)); 2617 2618 PetscCall(SNESGetSolution(snes, &x)); 2619 PetscCall(VecDuplicate(x, &g1)); 2620 PetscCall(VecDuplicate(x, &g2)); 2621 PetscCall(VecDuplicate(x, &g3)); 2622 PetscCall(SNESComputeFunction(snes, x, g1)); 2623 PetscCall(SNESComputeFunction_FD(snes, x, g2)); 2624 2625 PetscCall(VecNorm(g2, NORM_2, &fdnorm)); 2626 PetscCall(VecNorm(g1, NORM_2, &hcnorm)); 2627 PetscCall(VecNorm(g2, NORM_INFINITY, &fdmax)); 2628 PetscCall(VecNorm(g1, NORM_INFINITY, &hcmax)); 2629 PetscCall(VecDot(g1, g2, &dot)); 2630 PetscCall(VecCopy(g1, g3)); 2631 PetscCall(VecAXPY(g3, -1.0, g2)); 2632 PetscCall(VecNorm(g3, NORM_2, &diffnorm)); 2633 PetscCall(VecNorm(g3, NORM_INFINITY, &diffmax)); 2634 PetscCall(PetscViewerASCIIPrintf(viewer, " ||Ffd|| %g, ||F|| = %g, angle cosine = (Ffd'F)/||Ffd||||F|| = %g\n", (double)fdnorm, (double)hcnorm, (double)(PetscRealPart(dot) / (fdnorm * hcnorm)))); 2635 PetscCall(PetscViewerASCIIPrintf(viewer, " 2-norm ||F - Ffd||/||F|| = %g, ||F - Ffd|| = %g\n", (double)(diffnorm / PetscMax(hcnorm, fdnorm)), (double)diffnorm)); 2636 PetscCall(PetscViewerASCIIPrintf(viewer, " max-norm ||F - Ffd||/||F|| = %g, ||F - Ffd|| = %g\n", (double)(diffmax / PetscMax(hcmax, fdmax)), (double)diffmax)); 2637 2638 if (complete_print) { 2639 PetscCall(PetscViewerASCIIPrintf(viewer, " Hand-coded function ----------\n")); 2640 PetscCall(VecView(g1, mviewer)); 2641 PetscCall(PetscViewerASCIIPrintf(viewer, " Finite difference function ----------\n")); 2642 PetscCall(VecView(g2, mviewer)); 2643 PetscCall(PetscViewerASCIIPrintf(viewer, " Hand-coded minus finite-difference function ----------\n")); 2644 PetscCall(VecView(g3, mviewer)); 2645 } 2646 PetscCall(VecDestroy(&g1)); 2647 PetscCall(VecDestroy(&g2)); 2648 PetscCall(VecDestroy(&g3)); 2649 2650 if (complete_print) { 2651 PetscCall(PetscViewerPopFormat(mviewer)); 2652 PetscCall(PetscViewerDestroy(&mviewer)); 2653 } 2654 PetscCall(PetscViewerASCIISetTab(viewer, tabs)); 2655 PetscFunctionReturn(PETSC_SUCCESS); 2656 } 2657 2658 PetscErrorCode SNESTestJacobian(SNES snes) 2659 { 2660 Mat A, B, C, D, jacobian; 2661 Vec x = snes->vec_sol, f; 2662 PetscReal nrm, gnorm; 2663 PetscReal threshold = 1.e-5; 2664 MatType mattype; 2665 PetscInt m, n, M, N; 2666 void *functx; 2667 PetscBool complete_print = PETSC_FALSE, threshold_print = PETSC_FALSE, test = PETSC_FALSE, flg, istranspose; 2668 PetscViewer viewer, mviewer; 2669 MPI_Comm comm; 2670 PetscInt tabs; 2671 static PetscBool directionsprinted = PETSC_FALSE; 2672 PetscViewerFormat format; 2673 2674 PetscFunctionBegin; 2675 PetscObjectOptionsBegin((PetscObject)snes); 2676 PetscCall(PetscOptionsName("-snes_test_jacobian", "Compare hand-coded and finite difference Jacobians", "None", &test)); 2677 PetscCall(PetscOptionsReal("-snes_test_jacobian", "Threshold for element difference between hand-coded and finite difference being meaningful", "None", threshold, &threshold, NULL)); 2678 PetscCall(PetscOptionsDeprecated("-snes_test_jacobian_display", "-snes_test_jacobian_view", "3.13", NULL)); 2679 PetscCall(PetscOptionsViewer("-snes_test_jacobian_view", "View difference between hand-coded and finite difference Jacobians element entries", "None", &mviewer, &format, &complete_print)); 2680 PetscCall(PetscOptionsDeprecated("-snes_test_jacobian_display_threshold", "-snes_test_jacobian", "3.13", "-snes_test_jacobian accepts an optional threshold (since v3.10)")); 2681 PetscCall(PetscOptionsReal("-snes_test_jacobian_display_threshold", "Display difference between hand-coded and finite difference Jacobians which exceed input threshold", "None", threshold, &threshold, &threshold_print)); 2682 PetscOptionsEnd(); 2683 if (!test) PetscFunctionReturn(PETSC_SUCCESS); 2684 2685 PetscCall(PetscObjectGetComm((PetscObject)snes, &comm)); 2686 PetscCall(PetscViewerASCIIGetStdout(comm, &viewer)); 2687 PetscCall(PetscViewerASCIIGetTab(viewer, &tabs)); 2688 PetscCall(PetscViewerASCIISetTab(viewer, ((PetscObject)snes)->tablevel)); 2689 PetscCall(PetscViewerASCIIPrintf(viewer, " ---------- Testing Jacobian -------------\n")); 2690 if (!complete_print && !directionsprinted) { 2691 PetscCall(PetscViewerASCIIPrintf(viewer, " Run with -snes_test_jacobian_view and optionally -snes_test_jacobian <threshold> to show difference\n")); 2692 PetscCall(PetscViewerASCIIPrintf(viewer, " of hand-coded and finite difference Jacobian entries greater than <threshold>.\n")); 2693 } 2694 if (!directionsprinted) { 2695 PetscCall(PetscViewerASCIIPrintf(viewer, " Testing hand-coded Jacobian, if (for double precision runs) ||J - Jfd||_F/||J||_F is\n")); 2696 PetscCall(PetscViewerASCIIPrintf(viewer, " O(1.e-8), the hand-coded Jacobian is probably correct.\n")); 2697 directionsprinted = PETSC_TRUE; 2698 } 2699 if (complete_print) PetscCall(PetscViewerPushFormat(mviewer, format)); 2700 2701 PetscCall(PetscObjectTypeCompare((PetscObject)snes->jacobian, MATMFFD, &flg)); 2702 if (!flg) jacobian = snes->jacobian; 2703 else jacobian = snes->jacobian_pre; 2704 2705 if (!x) PetscCall(MatCreateVecs(jacobian, &x, NULL)); 2706 else PetscCall(PetscObjectReference((PetscObject)x)); 2707 PetscCall(VecDuplicate(x, &f)); 2708 2709 /* evaluate the function at this point because SNESComputeJacobianDefault() assumes that the function has been evaluated and put into snes->vec_func */ 2710 PetscCall(SNESComputeFunction(snes, x, f)); 2711 PetscCall(VecDestroy(&f)); 2712 PetscCall(PetscObjectTypeCompare((PetscObject)snes, SNESKSPTRANSPOSEONLY, &istranspose)); 2713 while (jacobian) { 2714 Mat JT = NULL, Jsave = NULL; 2715 2716 if (istranspose) { 2717 PetscCall(MatCreateTranspose(jacobian, &JT)); 2718 Jsave = jacobian; 2719 jacobian = JT; 2720 } 2721 PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)jacobian, &flg, MATSEQAIJ, MATMPIAIJ, MATSEQDENSE, MATMPIDENSE, MATSEQBAIJ, MATMPIBAIJ, MATSEQSBAIJ, MATMPISBAIJ, "")); 2722 if (flg) { 2723 A = jacobian; 2724 PetscCall(PetscObjectReference((PetscObject)A)); 2725 } else { 2726 PetscCall(MatComputeOperator(jacobian, MATAIJ, &A)); 2727 } 2728 2729 PetscCall(MatGetType(A, &mattype)); 2730 PetscCall(MatGetSize(A, &M, &N)); 2731 PetscCall(MatGetLocalSize(A, &m, &n)); 2732 PetscCall(MatCreate(PetscObjectComm((PetscObject)A), &B)); 2733 PetscCall(MatSetType(B, mattype)); 2734 PetscCall(MatSetSizes(B, m, n, M, N)); 2735 PetscCall(MatSetBlockSizesFromMats(B, A, A)); 2736 PetscCall(MatSetUp(B)); 2737 PetscCall(MatSetOption(B, MAT_NEW_NONZERO_ALLOCATION_ERR, PETSC_FALSE)); 2738 2739 PetscCall(SNESGetFunction(snes, NULL, NULL, &functx)); 2740 PetscCall(SNESComputeJacobianDefault(snes, x, B, B, functx)); 2741 2742 PetscCall(MatDuplicate(B, MAT_COPY_VALUES, &D)); 2743 PetscCall(MatAYPX(D, -1.0, A, DIFFERENT_NONZERO_PATTERN)); 2744 PetscCall(MatNorm(D, NORM_FROBENIUS, &nrm)); 2745 PetscCall(MatNorm(A, NORM_FROBENIUS, &gnorm)); 2746 PetscCall(MatDestroy(&D)); 2747 if (!gnorm) gnorm = 1; /* just in case */ 2748 PetscCall(PetscViewerASCIIPrintf(viewer, " ||J - Jfd||_F/||J||_F = %g, ||J - Jfd||_F = %g\n", (double)(nrm / gnorm), (double)nrm)); 2749 2750 if (complete_print) { 2751 PetscCall(PetscViewerASCIIPrintf(viewer, " Hand-coded Jacobian ----------\n")); 2752 PetscCall(MatView(A, mviewer)); 2753 PetscCall(PetscViewerASCIIPrintf(viewer, " Finite difference Jacobian ----------\n")); 2754 PetscCall(MatView(B, mviewer)); 2755 } 2756 2757 if (threshold_print || complete_print) { 2758 PetscInt Istart, Iend, *ccols, bncols, cncols, j, row; 2759 PetscScalar *cvals; 2760 const PetscInt *bcols; 2761 const PetscScalar *bvals; 2762 2763 PetscCall(MatCreate(PetscObjectComm((PetscObject)A), &C)); 2764 PetscCall(MatSetType(C, mattype)); 2765 PetscCall(MatSetSizes(C, m, n, M, N)); 2766 PetscCall(MatSetBlockSizesFromMats(C, A, A)); 2767 PetscCall(MatSetUp(C)); 2768 PetscCall(MatSetOption(C, MAT_NEW_NONZERO_ALLOCATION_ERR, PETSC_FALSE)); 2769 2770 PetscCall(MatAYPX(B, -1.0, A, DIFFERENT_NONZERO_PATTERN)); 2771 PetscCall(MatGetOwnershipRange(B, &Istart, &Iend)); 2772 2773 for (row = Istart; row < Iend; row++) { 2774 PetscCall(MatGetRow(B, row, &bncols, &bcols, &bvals)); 2775 PetscCall(PetscMalloc2(bncols, &ccols, bncols, &cvals)); 2776 for (j = 0, cncols = 0; j < bncols; j++) { 2777 if (PetscAbsScalar(bvals[j]) > threshold) { 2778 ccols[cncols] = bcols[j]; 2779 cvals[cncols] = bvals[j]; 2780 cncols += 1; 2781 } 2782 } 2783 if (cncols) PetscCall(MatSetValues(C, 1, &row, cncols, ccols, cvals, INSERT_VALUES)); 2784 PetscCall(MatRestoreRow(B, row, &bncols, &bcols, &bvals)); 2785 PetscCall(PetscFree2(ccols, cvals)); 2786 } 2787 PetscCall(MatAssemblyBegin(C, MAT_FINAL_ASSEMBLY)); 2788 PetscCall(MatAssemblyEnd(C, MAT_FINAL_ASSEMBLY)); 2789 PetscCall(PetscViewerASCIIPrintf(viewer, " Hand-coded minus finite-difference Jacobian with tolerance %g ----------\n", (double)threshold)); 2790 PetscCall(MatView(C, complete_print ? mviewer : viewer)); 2791 PetscCall(MatDestroy(&C)); 2792 } 2793 PetscCall(MatDestroy(&A)); 2794 PetscCall(MatDestroy(&B)); 2795 PetscCall(MatDestroy(&JT)); 2796 if (Jsave) jacobian = Jsave; 2797 if (jacobian != snes->jacobian_pre) { 2798 jacobian = snes->jacobian_pre; 2799 PetscCall(PetscViewerASCIIPrintf(viewer, " ---------- Testing Jacobian for preconditioner -------------\n")); 2800 } else jacobian = NULL; 2801 } 2802 PetscCall(VecDestroy(&x)); 2803 if (complete_print) PetscCall(PetscViewerPopFormat(mviewer)); 2804 if (mviewer) PetscCall(PetscOptionsRestoreViewer(&mviewer)); 2805 PetscCall(PetscViewerASCIISetTab(viewer, tabs)); 2806 PetscFunctionReturn(PETSC_SUCCESS); 2807 } 2808 2809 /*@ 2810 SNESComputeJacobian - Computes the Jacobian matrix that has been set with `SNESSetJacobian()`. 2811 2812 Collective 2813 2814 Input Parameters: 2815 + snes - the `SNES` context 2816 - X - input vector 2817 2818 Output Parameters: 2819 + A - Jacobian matrix 2820 - B - optional matrix for building the preconditioner, usually the same as `A` 2821 2822 Options Database Keys: 2823 + -snes_lag_preconditioner <lag> - how often to rebuild preconditioner 2824 . -snes_lag_jacobian <lag> - how often to rebuild Jacobian 2825 . -snes_test_jacobian <optional threshold> - compare the user provided Jacobian with one compute via finite differences to check for errors. If a threshold is given, display only those entries whose difference is greater than the threshold. 2826 . -snes_test_jacobian_view - display the user provided Jacobian, the finite difference Jacobian and the difference between them to help users detect the location of errors in the user provided Jacobian 2827 . -snes_compare_explicit - Compare the computed Jacobian to the finite difference Jacobian and output the differences 2828 . -snes_compare_explicit_draw - Compare the computed Jacobian to the finite difference Jacobian and draw the result 2829 . -snes_compare_explicit_contour - Compare the computed Jacobian to the finite difference Jacobian and draw a contour plot with the result 2830 . -snes_compare_operator - Make the comparison options above use the operator instead of the preconditioning matrix 2831 . -snes_compare_coloring - Compute the finite difference Jacobian using coloring and display norms of difference 2832 . -snes_compare_coloring_display - Compute the finite difference Jacobian using coloring and display verbose differences 2833 . -snes_compare_coloring_threshold - Display only those matrix entries that differ by more than a given threshold 2834 . -snes_compare_coloring_threshold_atol - Absolute tolerance for difference in matrix entries to be displayed by `-snes_compare_coloring_threshold` 2835 . -snes_compare_coloring_threshold_rtol - Relative tolerance for difference in matrix entries to be displayed by `-snes_compare_coloring_threshold` 2836 . -snes_compare_coloring_draw - Compute the finite difference Jacobian using coloring and draw differences 2837 - -snes_compare_coloring_draw_contour - Compute the finite difference Jacobian using coloring and show contours of matrices and differences 2838 2839 Level: developer 2840 2841 Note: 2842 Most users should not need to explicitly call this routine, as it 2843 is used internally within the nonlinear solvers. 2844 2845 Developer Note: 2846 This has duplicative ways of checking the accuracy of the user provided Jacobian (see the options above). This is for historical reasons, the routine `SNESTestJacobian()` use to used 2847 with the `SNESType` of test that has been removed. 2848 2849 .seealso: [](ch_snes), `SNESSetJacobian()`, `KSPSetOperators()`, `MatStructure`, `SNESSetLagPreconditioner()`, `SNESSetLagJacobian()` 2850 @*/ 2851 PetscErrorCode SNESComputeJacobian(SNES snes, Vec X, Mat A, Mat B) 2852 { 2853 PetscBool flag; 2854 DM dm; 2855 DMSNES sdm; 2856 KSP ksp; 2857 2858 PetscFunctionBegin; 2859 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 2860 PetscValidHeaderSpecific(X, VEC_CLASSID, 2); 2861 PetscCheckSameComm(snes, 1, X, 2); 2862 PetscCall(VecValidValues_Internal(X, 2, PETSC_TRUE)); 2863 PetscCall(SNESGetDM(snes, &dm)); 2864 PetscCall(DMGetDMSNES(dm, &sdm)); 2865 2866 /* make sure that MatAssemblyBegin/End() is called on A matrix if it is matrix-free */ 2867 if (snes->lagjacobian == -2) { 2868 snes->lagjacobian = -1; 2869 2870 PetscCall(PetscInfo(snes, "Recomputing Jacobian/preconditioner because lag is -2 (means compute Jacobian, but then never again) \n")); 2871 } else if (snes->lagjacobian == -1) { 2872 PetscCall(PetscInfo(snes, "Reusing Jacobian/preconditioner because lag is -1\n")); 2873 PetscCall(PetscObjectTypeCompare((PetscObject)A, MATMFFD, &flag)); 2874 if (flag) { 2875 PetscCall(MatAssemblyBegin(A, MAT_FINAL_ASSEMBLY)); 2876 PetscCall(MatAssemblyEnd(A, MAT_FINAL_ASSEMBLY)); 2877 } 2878 PetscFunctionReturn(PETSC_SUCCESS); 2879 } else if (snes->lagjacobian > 1 && (snes->iter + snes->jac_iter) % snes->lagjacobian) { 2880 PetscCall(PetscInfo(snes, "Reusing Jacobian/preconditioner because lag is %" PetscInt_FMT " and SNES iteration is %" PetscInt_FMT "\n", snes->lagjacobian, snes->iter)); 2881 PetscCall(PetscObjectTypeCompare((PetscObject)A, MATMFFD, &flag)); 2882 if (flag) { 2883 PetscCall(MatAssemblyBegin(A, MAT_FINAL_ASSEMBLY)); 2884 PetscCall(MatAssemblyEnd(A, MAT_FINAL_ASSEMBLY)); 2885 } 2886 PetscFunctionReturn(PETSC_SUCCESS); 2887 } 2888 if (snes->npc && snes->npcside == PC_LEFT) { 2889 PetscCall(MatAssemblyBegin(A, MAT_FINAL_ASSEMBLY)); 2890 PetscCall(MatAssemblyEnd(A, MAT_FINAL_ASSEMBLY)); 2891 PetscFunctionReturn(PETSC_SUCCESS); 2892 } 2893 2894 PetscCall(PetscLogEventBegin(SNES_JacobianEval, snes, X, A, B)); 2895 PetscCall(VecLockReadPush(X)); 2896 { 2897 void *ctx; 2898 PetscErrorCode (*J)(SNES, Vec, Mat, Mat, void *); 2899 PetscCall(DMSNESGetJacobian(dm, &J, &ctx)); 2900 PetscCallBack("SNES callback Jacobian", (*J)(snes, X, A, B, ctx)); 2901 } 2902 PetscCall(VecLockReadPop(X)); 2903 PetscCall(PetscLogEventEnd(SNES_JacobianEval, snes, X, A, B)); 2904 2905 /* attach latest linearization point to the preconditioning matrix */ 2906 PetscCall(PetscObjectCompose((PetscObject)B, "__SNES_latest_X", (PetscObject)X)); 2907 2908 /* the next line ensures that snes->ksp exists */ 2909 PetscCall(SNESGetKSP(snes, &ksp)); 2910 if (snes->lagpreconditioner == -2) { 2911 PetscCall(PetscInfo(snes, "Rebuilding preconditioner exactly once since lag is -2\n")); 2912 PetscCall(KSPSetReusePreconditioner(snes->ksp, PETSC_FALSE)); 2913 snes->lagpreconditioner = -1; 2914 } else if (snes->lagpreconditioner == -1) { 2915 PetscCall(PetscInfo(snes, "Reusing preconditioner because lag is -1\n")); 2916 PetscCall(KSPSetReusePreconditioner(snes->ksp, PETSC_TRUE)); 2917 } else if (snes->lagpreconditioner > 1 && (snes->iter + snes->pre_iter) % snes->lagpreconditioner) { 2918 PetscCall(PetscInfo(snes, "Reusing preconditioner because lag is %" PetscInt_FMT " and SNES iteration is %" PetscInt_FMT "\n", snes->lagpreconditioner, snes->iter)); 2919 PetscCall(KSPSetReusePreconditioner(snes->ksp, PETSC_TRUE)); 2920 } else { 2921 PetscCall(PetscInfo(snes, "Rebuilding preconditioner\n")); 2922 PetscCall(KSPSetReusePreconditioner(snes->ksp, PETSC_FALSE)); 2923 } 2924 2925 /* monkey business to allow testing Jacobians in multilevel solvers. 2926 This is needed because the SNESTestXXX interface does not accept vectors and matrices */ 2927 { 2928 Vec xsave = snes->vec_sol; 2929 Mat jacobiansave = snes->jacobian; 2930 Mat jacobian_presave = snes->jacobian_pre; 2931 2932 snes->vec_sol = X; 2933 snes->jacobian = A; 2934 snes->jacobian_pre = B; 2935 PetscCall(SNESTestFunction(snes)); 2936 PetscCall(SNESTestJacobian(snes)); 2937 2938 snes->vec_sol = xsave; 2939 snes->jacobian = jacobiansave; 2940 snes->jacobian_pre = jacobian_presave; 2941 } 2942 2943 { 2944 PetscBool flag = PETSC_FALSE, flag_draw = PETSC_FALSE, flag_contour = PETSC_FALSE, flag_operator = PETSC_FALSE; 2945 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_explicit", NULL, NULL, &flag)); 2946 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_explicit_draw", NULL, NULL, &flag_draw)); 2947 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_explicit_draw_contour", NULL, NULL, &flag_contour)); 2948 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_operator", NULL, NULL, &flag_operator)); 2949 if (flag || flag_draw || flag_contour) { 2950 Mat Bexp_mine = NULL, Bexp, FDexp; 2951 PetscViewer vdraw, vstdout; 2952 PetscBool flg; 2953 if (flag_operator) { 2954 PetscCall(MatComputeOperator(A, MATAIJ, &Bexp_mine)); 2955 Bexp = Bexp_mine; 2956 } else { 2957 /* See if the preconditioning matrix can be viewed and added directly */ 2958 PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)B, &flg, MATSEQAIJ, MATMPIAIJ, MATSEQDENSE, MATMPIDENSE, MATSEQBAIJ, MATMPIBAIJ, MATSEQSBAIJ, MATMPIBAIJ, "")); 2959 if (flg) Bexp = B; 2960 else { 2961 /* If the "preconditioning" matrix is itself MATSHELL or some other type without direct support */ 2962 PetscCall(MatComputeOperator(B, MATAIJ, &Bexp_mine)); 2963 Bexp = Bexp_mine; 2964 } 2965 } 2966 PetscCall(MatConvert(Bexp, MATSAME, MAT_INITIAL_MATRIX, &FDexp)); 2967 PetscCall(SNESComputeJacobianDefault(snes, X, FDexp, FDexp, NULL)); 2968 PetscCall(PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)snes), &vstdout)); 2969 if (flag_draw || flag_contour) { 2970 PetscCall(PetscViewerDrawOpen(PetscObjectComm((PetscObject)snes), NULL, "Explicit Jacobians", PETSC_DECIDE, PETSC_DECIDE, 300, 300, &vdraw)); 2971 if (flag_contour) PetscCall(PetscViewerPushFormat(vdraw, PETSC_VIEWER_DRAW_CONTOUR)); 2972 } else vdraw = NULL; 2973 PetscCall(PetscViewerASCIIPrintf(vstdout, "Explicit %s\n", flag_operator ? "Jacobian" : "preconditioning Jacobian")); 2974 if (flag) PetscCall(MatView(Bexp, vstdout)); 2975 if (vdraw) PetscCall(MatView(Bexp, vdraw)); 2976 PetscCall(PetscViewerASCIIPrintf(vstdout, "Finite difference Jacobian\n")); 2977 if (flag) PetscCall(MatView(FDexp, vstdout)); 2978 if (vdraw) PetscCall(MatView(FDexp, vdraw)); 2979 PetscCall(MatAYPX(FDexp, -1.0, Bexp, SAME_NONZERO_PATTERN)); 2980 PetscCall(PetscViewerASCIIPrintf(vstdout, "User-provided matrix minus finite difference Jacobian\n")); 2981 if (flag) PetscCall(MatView(FDexp, vstdout)); 2982 if (vdraw) { /* Always use contour for the difference */ 2983 PetscCall(PetscViewerPushFormat(vdraw, PETSC_VIEWER_DRAW_CONTOUR)); 2984 PetscCall(MatView(FDexp, vdraw)); 2985 PetscCall(PetscViewerPopFormat(vdraw)); 2986 } 2987 if (flag_contour) PetscCall(PetscViewerPopFormat(vdraw)); 2988 PetscCall(PetscViewerDestroy(&vdraw)); 2989 PetscCall(MatDestroy(&Bexp_mine)); 2990 PetscCall(MatDestroy(&FDexp)); 2991 } 2992 } 2993 { 2994 PetscBool flag = PETSC_FALSE, flag_display = PETSC_FALSE, flag_draw = PETSC_FALSE, flag_contour = PETSC_FALSE, flag_threshold = PETSC_FALSE; 2995 PetscReal threshold_atol = PETSC_SQRT_MACHINE_EPSILON, threshold_rtol = 10 * PETSC_SQRT_MACHINE_EPSILON; 2996 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring", NULL, NULL, &flag)); 2997 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring_display", NULL, NULL, &flag_display)); 2998 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring_draw", NULL, NULL, &flag_draw)); 2999 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring_draw_contour", NULL, NULL, &flag_contour)); 3000 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring_threshold", NULL, NULL, &flag_threshold)); 3001 if (flag_threshold) { 3002 PetscCall(PetscOptionsGetReal(((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring_threshold_rtol", &threshold_rtol, NULL)); 3003 PetscCall(PetscOptionsGetReal(((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_compare_coloring_threshold_atol", &threshold_atol, NULL)); 3004 } 3005 if (flag || flag_display || flag_draw || flag_contour || flag_threshold) { 3006 Mat Bfd; 3007 PetscViewer vdraw, vstdout; 3008 MatColoring coloring; 3009 ISColoring iscoloring; 3010 MatFDColoring matfdcoloring; 3011 PetscErrorCode (*func)(SNES, Vec, Vec, void *); 3012 void *funcctx; 3013 PetscReal norm1, norm2, normmax; 3014 3015 PetscCall(MatDuplicate(B, MAT_DO_NOT_COPY_VALUES, &Bfd)); 3016 PetscCall(MatColoringCreate(Bfd, &coloring)); 3017 PetscCall(MatColoringSetType(coloring, MATCOLORINGSL)); 3018 PetscCall(MatColoringSetFromOptions(coloring)); 3019 PetscCall(MatColoringApply(coloring, &iscoloring)); 3020 PetscCall(MatColoringDestroy(&coloring)); 3021 PetscCall(MatFDColoringCreate(Bfd, iscoloring, &matfdcoloring)); 3022 PetscCall(MatFDColoringSetFromOptions(matfdcoloring)); 3023 PetscCall(MatFDColoringSetUp(Bfd, iscoloring, matfdcoloring)); 3024 PetscCall(ISColoringDestroy(&iscoloring)); 3025 3026 /* This method of getting the function is currently unreliable since it doesn't work for DM local functions. */ 3027 PetscCall(SNESGetFunction(snes, NULL, &func, &funcctx)); 3028 PetscCall(MatFDColoringSetFunction(matfdcoloring, (PetscErrorCode(*)(void))func, funcctx)); 3029 PetscCall(PetscObjectSetOptionsPrefix((PetscObject)matfdcoloring, ((PetscObject)snes)->prefix)); 3030 PetscCall(PetscObjectAppendOptionsPrefix((PetscObject)matfdcoloring, "coloring_")); 3031 PetscCall(MatFDColoringSetFromOptions(matfdcoloring)); 3032 PetscCall(MatFDColoringApply(Bfd, matfdcoloring, X, snes)); 3033 PetscCall(MatFDColoringDestroy(&matfdcoloring)); 3034 3035 PetscCall(PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)snes), &vstdout)); 3036 if (flag_draw || flag_contour) { 3037 PetscCall(PetscViewerDrawOpen(PetscObjectComm((PetscObject)snes), NULL, "Colored Jacobians", PETSC_DECIDE, PETSC_DECIDE, 300, 300, &vdraw)); 3038 if (flag_contour) PetscCall(PetscViewerPushFormat(vdraw, PETSC_VIEWER_DRAW_CONTOUR)); 3039 } else vdraw = NULL; 3040 PetscCall(PetscViewerASCIIPrintf(vstdout, "Explicit preconditioning Jacobian\n")); 3041 if (flag_display) PetscCall(MatView(B, vstdout)); 3042 if (vdraw) PetscCall(MatView(B, vdraw)); 3043 PetscCall(PetscViewerASCIIPrintf(vstdout, "Colored Finite difference Jacobian\n")); 3044 if (flag_display) PetscCall(MatView(Bfd, vstdout)); 3045 if (vdraw) PetscCall(MatView(Bfd, vdraw)); 3046 PetscCall(MatAYPX(Bfd, -1.0, B, SAME_NONZERO_PATTERN)); 3047 PetscCall(MatNorm(Bfd, NORM_1, &norm1)); 3048 PetscCall(MatNorm(Bfd, NORM_FROBENIUS, &norm2)); 3049 PetscCall(MatNorm(Bfd, NORM_MAX, &normmax)); 3050 PetscCall(PetscViewerASCIIPrintf(vstdout, "User-provided matrix minus finite difference Jacobian, norm1=%g normFrob=%g normmax=%g\n", (double)norm1, (double)norm2, (double)normmax)); 3051 if (flag_display) PetscCall(MatView(Bfd, vstdout)); 3052 if (vdraw) { /* Always use contour for the difference */ 3053 PetscCall(PetscViewerPushFormat(vdraw, PETSC_VIEWER_DRAW_CONTOUR)); 3054 PetscCall(MatView(Bfd, vdraw)); 3055 PetscCall(PetscViewerPopFormat(vdraw)); 3056 } 3057 if (flag_contour) PetscCall(PetscViewerPopFormat(vdraw)); 3058 3059 if (flag_threshold) { 3060 PetscInt bs, rstart, rend, i; 3061 PetscCall(MatGetBlockSize(B, &bs)); 3062 PetscCall(MatGetOwnershipRange(B, &rstart, &rend)); 3063 for (i = rstart; i < rend; i++) { 3064 const PetscScalar *ba, *ca; 3065 const PetscInt *bj, *cj; 3066 PetscInt bn, cn, j, maxentrycol = -1, maxdiffcol = -1, maxrdiffcol = -1; 3067 PetscReal maxentry = 0, maxdiff = 0, maxrdiff = 0; 3068 PetscCall(MatGetRow(B, i, &bn, &bj, &ba)); 3069 PetscCall(MatGetRow(Bfd, i, &cn, &cj, &ca)); 3070 PetscCheck(bn == cn, ((PetscObject)A)->comm, PETSC_ERR_PLIB, "Unexpected different nonzero pattern in -snes_compare_coloring_threshold"); 3071 for (j = 0; j < bn; j++) { 3072 PetscReal rdiff = PetscAbsScalar(ca[j]) / (threshold_atol + threshold_rtol * PetscAbsScalar(ba[j])); 3073 if (PetscAbsScalar(ba[j]) > PetscAbs(maxentry)) { 3074 maxentrycol = bj[j]; 3075 maxentry = PetscRealPart(ba[j]); 3076 } 3077 if (PetscAbsScalar(ca[j]) > PetscAbs(maxdiff)) { 3078 maxdiffcol = bj[j]; 3079 maxdiff = PetscRealPart(ca[j]); 3080 } 3081 if (rdiff > maxrdiff) { 3082 maxrdiffcol = bj[j]; 3083 maxrdiff = rdiff; 3084 } 3085 } 3086 if (maxrdiff > 1) { 3087 PetscCall(PetscViewerASCIIPrintf(vstdout, "row %" PetscInt_FMT " (maxentry=%g at %" PetscInt_FMT ", maxdiff=%g at %" PetscInt_FMT ", maxrdiff=%g at %" PetscInt_FMT "):", i, (double)maxentry, maxentrycol, (double)maxdiff, maxdiffcol, (double)maxrdiff, maxrdiffcol)); 3088 for (j = 0; j < bn; j++) { 3089 PetscReal rdiff; 3090 rdiff = PetscAbsScalar(ca[j]) / (threshold_atol + threshold_rtol * PetscAbsScalar(ba[j])); 3091 if (rdiff > 1) PetscCall(PetscViewerASCIIPrintf(vstdout, " (%" PetscInt_FMT ",%g:%g)", bj[j], (double)PetscRealPart(ba[j]), (double)PetscRealPart(ca[j]))); 3092 } 3093 PetscCall(PetscViewerASCIIPrintf(vstdout, "\n")); 3094 } 3095 PetscCall(MatRestoreRow(B, i, &bn, &bj, &ba)); 3096 PetscCall(MatRestoreRow(Bfd, i, &cn, &cj, &ca)); 3097 } 3098 } 3099 PetscCall(PetscViewerDestroy(&vdraw)); 3100 PetscCall(MatDestroy(&Bfd)); 3101 } 3102 } 3103 PetscFunctionReturn(PETSC_SUCCESS); 3104 } 3105 3106 /*MC 3107 SNESJacobianFunction - Functional form used by `SNES` to compute the nonlinear Jacobian of the function to be solved by `SNES` 3108 3109 Synopsis: 3110 #include "petscsnes.h" 3111 PetscErrorCode SNESJacobianFunction(SNES snes,Vec x,Mat Amat,Mat Pmat,void *ctx); 3112 3113 Collective 3114 3115 Input Parameters: 3116 + x - input vector, the Jacobian is to be computed at this value 3117 - ctx - [optional] user-defined Jacobian context 3118 3119 Output Parameters: 3120 + Amat - the matrix that defines the (approximate) Jacobian 3121 - Pmat - the matrix to be used in constructing the preconditioner, usually the same as `Amat`. 3122 3123 Level: intermediate 3124 3125 .seealso: [](ch_snes), `SNES`, `SNESSetFunction()`, `SNESGetFunction()`, `SNESSetJacobian()`, `SNESGetJacobian()` 3126 M*/ 3127 3128 /*@C 3129 SNESSetJacobian - Sets the function to compute Jacobian as well as the 3130 location to store the matrix. 3131 3132 Logically Collective 3133 3134 Input Parameters: 3135 + snes - the `SNES` context 3136 . Amat - the matrix that defines the (approximate) Jacobian 3137 . Pmat - the matrix to be used in constructing the preconditioner, usually the same as `Amat`. 3138 . J - Jacobian evaluation routine (if `NULL` then `SNES` retains any previously set value), see `SNESJacobianFunction` for details 3139 - ctx - [optional] user-defined context for private data for the 3140 Jacobian evaluation routine (may be `NULL`) (if `NULL` then `SNES` retains any previously set value) 3141 3142 Level: beginner 3143 3144 Notes: 3145 If the `Amat` matrix and `Pmat` matrix are different you must call `MatAssemblyBegin()`/`MatAssemblyEnd()` on 3146 each matrix. 3147 3148 If you know the operator `Amat` has a null space you can use `MatSetNullSpace()` and `MatSetTransposeNullSpace()` to supply the null 3149 space to `Amat` and the `KSP` solvers will automatically use that null space as needed during the solution process. 3150 3151 If using `SNESComputeJacobianDefaultColor()` to assemble a Jacobian, the `ctx` argument 3152 must be a `MatFDColoring`. 3153 3154 Other defect-correction schemes can be used by computing a different matrix in place of the Jacobian. One common 3155 example is to use the "Picard linearization" which only differentiates through the highest order parts of each term using `SNESSetPicard()` 3156 3157 .seealso: [](ch_snes), `SNES`, `KSPSetOperators()`, `SNESSetFunction()`, `MatMFFDComputeJacobian()`, `SNESComputeJacobianDefaultColor()`, `MatStructure`, 3158 `SNESSetPicard()`, `SNESJacobianFunction` 3159 @*/ 3160 PetscErrorCode SNESSetJacobian(SNES snes, Mat Amat, Mat Pmat, PetscErrorCode (*J)(SNES, Vec, Mat, Mat, void *), void *ctx) 3161 { 3162 DM dm; 3163 3164 PetscFunctionBegin; 3165 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3166 if (Amat) PetscValidHeaderSpecific(Amat, MAT_CLASSID, 2); 3167 if (Pmat) PetscValidHeaderSpecific(Pmat, MAT_CLASSID, 3); 3168 if (Amat) PetscCheckSameComm(snes, 1, Amat, 2); 3169 if (Pmat) PetscCheckSameComm(snes, 1, Pmat, 3); 3170 PetscCall(SNESGetDM(snes, &dm)); 3171 PetscCall(DMSNESSetJacobian(dm, J, ctx)); 3172 if (Amat) { 3173 PetscCall(PetscObjectReference((PetscObject)Amat)); 3174 PetscCall(MatDestroy(&snes->jacobian)); 3175 3176 snes->jacobian = Amat; 3177 } 3178 if (Pmat) { 3179 PetscCall(PetscObjectReference((PetscObject)Pmat)); 3180 PetscCall(MatDestroy(&snes->jacobian_pre)); 3181 3182 snes->jacobian_pre = Pmat; 3183 } 3184 PetscFunctionReturn(PETSC_SUCCESS); 3185 } 3186 3187 /*@C 3188 SNESGetJacobian - Returns the Jacobian matrix and optionally the user 3189 provided context for evaluating the Jacobian. 3190 3191 Not Collective, but `Mat` object will be parallel if `SNES` is 3192 3193 Input Parameter: 3194 . snes - the nonlinear solver context 3195 3196 Output Parameters: 3197 + Amat - location to stash (approximate) Jacobian matrix (or `NULL`) 3198 . Pmat - location to stash matrix used to compute the preconditioner (or `NULL`) 3199 . J - location to put Jacobian function (or `NULL`), for calling sequence see `SNESJacobianFunction` 3200 - ctx - location to stash Jacobian ctx (or `NULL`) 3201 3202 Level: advanced 3203 3204 .seealso: [](ch_snes), `SNES`, `Mat`, `SNESSetJacobian()`, `SNESComputeJacobian()`, `SNESJacobianFunction`, `SNESGetFunction()` 3205 @*/ 3206 PetscErrorCode SNESGetJacobian(SNES snes, Mat *Amat, Mat *Pmat, PetscErrorCode (**J)(SNES, Vec, Mat, Mat, void *), void **ctx) 3207 { 3208 DM dm; 3209 3210 PetscFunctionBegin; 3211 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3212 if (Amat) *Amat = snes->jacobian; 3213 if (Pmat) *Pmat = snes->jacobian_pre; 3214 PetscCall(SNESGetDM(snes, &dm)); 3215 PetscCall(DMSNESGetJacobian(dm, J, ctx)); 3216 PetscFunctionReturn(PETSC_SUCCESS); 3217 } 3218 3219 static PetscErrorCode SNESSetDefaultComputeJacobian(SNES snes) 3220 { 3221 DM dm; 3222 DMSNES sdm; 3223 3224 PetscFunctionBegin; 3225 PetscCall(SNESGetDM(snes, &dm)); 3226 PetscCall(DMGetDMSNES(dm, &sdm)); 3227 if (!sdm->ops->computejacobian && snes->jacobian_pre) { 3228 DM dm; 3229 PetscBool isdense, ismf; 3230 3231 PetscCall(SNESGetDM(snes, &dm)); 3232 PetscCall(PetscObjectTypeCompareAny((PetscObject)snes->jacobian_pre, &isdense, MATSEQDENSE, MATMPIDENSE, MATDENSE, NULL)); 3233 PetscCall(PetscObjectTypeCompareAny((PetscObject)snes->jacobian_pre, &ismf, MATMFFD, MATSHELL, NULL)); 3234 if (isdense) { 3235 PetscCall(DMSNESSetJacobian(dm, SNESComputeJacobianDefault, NULL)); 3236 } else if (!ismf) { 3237 PetscCall(DMSNESSetJacobian(dm, SNESComputeJacobianDefaultColor, NULL)); 3238 } 3239 } 3240 PetscFunctionReturn(PETSC_SUCCESS); 3241 } 3242 3243 /*@ 3244 SNESSetUp - Sets up the internal data structures for the later use 3245 of a nonlinear solver. 3246 3247 Collective 3248 3249 Input Parameter: 3250 . snes - the `SNES` context 3251 3252 Level: advanced 3253 3254 Note: 3255 For basic use of the `SNES` solvers the user need not explicitly call 3256 `SNESSetUp()`, since these actions will automatically occur during 3257 the call to `SNESSolve()`. However, if one wishes to control this 3258 phase separately, `SNESSetUp()` should be called after `SNESCreate()` 3259 and optional routines of the form SNESSetXXX(), but before `SNESSolve()`. 3260 3261 .seealso: [](ch_snes), `SNES`, `SNESCreate()`, `SNESSolve()`, `SNESDestroy()` 3262 @*/ 3263 PetscErrorCode SNESSetUp(SNES snes) 3264 { 3265 DM dm; 3266 DMSNES sdm; 3267 SNESLineSearch linesearch, pclinesearch; 3268 void *lsprectx, *lspostctx; 3269 PetscBool mf_operator, mf; 3270 Vec f, fpc; 3271 void *funcctx; 3272 void *jacctx, *appctx; 3273 Mat j, jpre; 3274 PetscErrorCode (*precheck)(SNESLineSearch, Vec, Vec, PetscBool *, void *); 3275 PetscErrorCode (*postcheck)(SNESLineSearch, Vec, Vec, Vec, PetscBool *, PetscBool *, void *); 3276 PetscErrorCode (*func)(SNES, Vec, Vec, void *); 3277 PetscErrorCode (*jac)(SNES, Vec, Mat, Mat, void *); 3278 3279 PetscFunctionBegin; 3280 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3281 if (snes->setupcalled) PetscFunctionReturn(PETSC_SUCCESS); 3282 PetscCall(PetscLogEventBegin(SNES_SetUp, snes, 0, 0, 0)); 3283 3284 if (!((PetscObject)snes)->type_name) PetscCall(SNESSetType(snes, SNESNEWTONLS)); 3285 3286 PetscCall(SNESGetFunction(snes, &snes->vec_func, NULL, NULL)); 3287 3288 PetscCall(SNESGetDM(snes, &dm)); 3289 PetscCall(DMGetDMSNES(dm, &sdm)); 3290 PetscCall(SNESSetDefaultComputeJacobian(snes)); 3291 3292 if (!snes->vec_func) PetscCall(DMCreateGlobalVector(dm, &snes->vec_func)); 3293 3294 if (!snes->ksp) PetscCall(SNESGetKSP(snes, &snes->ksp)); 3295 3296 if (snes->linesearch) { 3297 PetscCall(SNESGetLineSearch(snes, &snes->linesearch)); 3298 PetscCall(SNESLineSearchSetFunction(snes->linesearch, SNESComputeFunction)); 3299 } 3300 3301 PetscCall(SNESGetUseMatrixFree(snes, &mf_operator, &mf)); 3302 if (snes->npc && snes->npcside == PC_LEFT) { 3303 snes->mf = PETSC_TRUE; 3304 snes->mf_operator = PETSC_FALSE; 3305 } 3306 3307 if (snes->npc) { 3308 /* copy the DM over */ 3309 PetscCall(SNESGetDM(snes, &dm)); 3310 PetscCall(SNESSetDM(snes->npc, dm)); 3311 3312 PetscCall(SNESGetFunction(snes, &f, &func, &funcctx)); 3313 PetscCall(VecDuplicate(f, &fpc)); 3314 PetscCall(SNESSetFunction(snes->npc, fpc, func, funcctx)); 3315 PetscCall(SNESGetJacobian(snes, &j, &jpre, &jac, &jacctx)); 3316 PetscCall(SNESSetJacobian(snes->npc, j, jpre, jac, jacctx)); 3317 PetscCall(SNESGetApplicationContext(snes, &appctx)); 3318 PetscCall(SNESSetApplicationContext(snes->npc, appctx)); 3319 PetscCall(SNESSetUseMatrixFree(snes->npc, mf_operator, mf)); 3320 PetscCall(VecDestroy(&fpc)); 3321 3322 /* copy the function pointers over */ 3323 PetscCall(PetscObjectCopyFortranFunctionPointers((PetscObject)snes, (PetscObject)snes->npc)); 3324 3325 /* default to 1 iteration */ 3326 PetscCall(SNESSetTolerances(snes->npc, 0.0, 0.0, 0.0, 1, snes->npc->max_funcs)); 3327 if (snes->npcside == PC_RIGHT) { 3328 PetscCall(SNESSetNormSchedule(snes->npc, SNES_NORM_FINAL_ONLY)); 3329 } else { 3330 PetscCall(SNESSetNormSchedule(snes->npc, SNES_NORM_NONE)); 3331 } 3332 PetscCall(SNESSetFromOptions(snes->npc)); 3333 3334 /* copy the line search context over */ 3335 if (snes->linesearch && snes->npc->linesearch) { 3336 PetscCall(SNESGetLineSearch(snes, &linesearch)); 3337 PetscCall(SNESGetLineSearch(snes->npc, &pclinesearch)); 3338 PetscCall(SNESLineSearchGetPreCheck(linesearch, &precheck, &lsprectx)); 3339 PetscCall(SNESLineSearchGetPostCheck(linesearch, &postcheck, &lspostctx)); 3340 PetscCall(SNESLineSearchSetPreCheck(pclinesearch, precheck, lsprectx)); 3341 PetscCall(SNESLineSearchSetPostCheck(pclinesearch, postcheck, lspostctx)); 3342 PetscCall(PetscObjectCopyFortranFunctionPointers((PetscObject)linesearch, (PetscObject)pclinesearch)); 3343 } 3344 } 3345 if (snes->mf) PetscCall(SNESSetUpMatrixFree_Private(snes, snes->mf_operator, snes->mf_version)); 3346 if (snes->ops->usercompute && !snes->user) PetscCall((*snes->ops->usercompute)(snes, (void **)&snes->user)); 3347 3348 snes->jac_iter = 0; 3349 snes->pre_iter = 0; 3350 3351 PetscTryTypeMethod(snes, setup); 3352 3353 PetscCall(SNESSetDefaultComputeJacobian(snes)); 3354 3355 if (snes->npc && snes->npcside == PC_LEFT) { 3356 if (snes->functype == SNES_FUNCTION_PRECONDITIONED) { 3357 if (snes->linesearch) { 3358 PetscCall(SNESGetLineSearch(snes, &linesearch)); 3359 PetscCall(SNESLineSearchSetFunction(linesearch, SNESComputeFunctionDefaultNPC)); 3360 } 3361 } 3362 } 3363 PetscCall(PetscLogEventEnd(SNES_SetUp, snes, 0, 0, 0)); 3364 snes->setupcalled = PETSC_TRUE; 3365 PetscFunctionReturn(PETSC_SUCCESS); 3366 } 3367 3368 /*@ 3369 SNESReset - Resets a `SNES` context to the snessetupcalled = 0 state and removes any allocated `Vec`s and `Mat`s 3370 3371 Collective 3372 3373 Input Parameter: 3374 . snes - iterative context obtained from `SNESCreate()` 3375 3376 Level: intermediate 3377 3378 Notes: 3379 Call this if you wish to reuse a `SNES` but with different size vectors 3380 3381 Also calls the application context destroy routine set with `SNESSetComputeApplicationContext()` 3382 3383 .seealso: [](ch_snes), `SNES`, `SNESDestroy()`, `SNESCreate()`, `SNESSetUp()`, `SNESSolve()` 3384 @*/ 3385 PetscErrorCode SNESReset(SNES snes) 3386 { 3387 PetscFunctionBegin; 3388 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3389 if (snes->ops->userdestroy && snes->user) { 3390 PetscCall((*snes->ops->userdestroy)((void **)&snes->user)); 3391 snes->user = NULL; 3392 } 3393 if (snes->npc) PetscCall(SNESReset(snes->npc)); 3394 3395 PetscTryTypeMethod(snes, reset); 3396 if (snes->ksp) PetscCall(KSPReset(snes->ksp)); 3397 3398 if (snes->linesearch) PetscCall(SNESLineSearchReset(snes->linesearch)); 3399 3400 PetscCall(VecDestroy(&snes->vec_rhs)); 3401 PetscCall(VecDestroy(&snes->vec_sol)); 3402 PetscCall(VecDestroy(&snes->vec_sol_update)); 3403 PetscCall(VecDestroy(&snes->vec_func)); 3404 PetscCall(MatDestroy(&snes->jacobian)); 3405 PetscCall(MatDestroy(&snes->jacobian_pre)); 3406 PetscCall(MatDestroy(&snes->picard)); 3407 PetscCall(VecDestroyVecs(snes->nwork, &snes->work)); 3408 PetscCall(VecDestroyVecs(snes->nvwork, &snes->vwork)); 3409 3410 snes->alwayscomputesfinalresidual = PETSC_FALSE; 3411 3412 snes->nwork = snes->nvwork = 0; 3413 snes->setupcalled = PETSC_FALSE; 3414 PetscFunctionReturn(PETSC_SUCCESS); 3415 } 3416 3417 /*@ 3418 SNESConvergedReasonViewCancel - Clears all the reason view functions for a `SNES` object provided with `SNESConvergedReasonViewSet()` 3419 3420 Collective 3421 3422 Input Parameter: 3423 . snes - iterative context obtained from `SNESCreate()` 3424 3425 Level: intermediate 3426 3427 .seealso: [](ch_snes), `SNES`, `SNESCreate()`, `SNESDestroy()`, `SNESReset()`, `SNESConvergedReasonViewSet()` 3428 @*/ 3429 PetscErrorCode SNESConvergedReasonViewCancel(SNES snes) 3430 { 3431 PetscInt i; 3432 3433 PetscFunctionBegin; 3434 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3435 for (i = 0; i < snes->numberreasonviews; i++) { 3436 if (snes->reasonviewdestroy[i]) PetscCall((*snes->reasonviewdestroy[i])(&snes->reasonviewcontext[i])); 3437 } 3438 snes->numberreasonviews = 0; 3439 PetscFunctionReturn(PETSC_SUCCESS); 3440 } 3441 3442 /*@C 3443 SNESDestroy - Destroys the nonlinear solver context that was created 3444 with `SNESCreate()`. 3445 3446 Collective 3447 3448 Input Parameter: 3449 . snes - the `SNES` context 3450 3451 Level: beginner 3452 3453 .seealso: [](ch_snes), `SNES`, `SNESCreate()`, `SNESSolve()` 3454 @*/ 3455 PetscErrorCode SNESDestroy(SNES *snes) 3456 { 3457 PetscFunctionBegin; 3458 if (!*snes) PetscFunctionReturn(PETSC_SUCCESS); 3459 PetscValidHeaderSpecific((*snes), SNES_CLASSID, 1); 3460 if (--((PetscObject)(*snes))->refct > 0) { 3461 *snes = NULL; 3462 PetscFunctionReturn(PETSC_SUCCESS); 3463 } 3464 3465 PetscCall(SNESReset((*snes))); 3466 PetscCall(SNESDestroy(&(*snes)->npc)); 3467 3468 /* if memory was published with SAWs then destroy it */ 3469 PetscCall(PetscObjectSAWsViewOff((PetscObject)*snes)); 3470 PetscTryTypeMethod((*snes), destroy); 3471 3472 if ((*snes)->dm) PetscCall(DMCoarsenHookRemove((*snes)->dm, DMCoarsenHook_SNESVecSol, DMRestrictHook_SNESVecSol, *snes)); 3473 PetscCall(DMDestroy(&(*snes)->dm)); 3474 PetscCall(KSPDestroy(&(*snes)->ksp)); 3475 PetscCall(SNESLineSearchDestroy(&(*snes)->linesearch)); 3476 3477 PetscCall(PetscFree((*snes)->kspconvctx)); 3478 if ((*snes)->ops->convergeddestroy) PetscCall((*(*snes)->ops->convergeddestroy)((*snes)->cnvP)); 3479 if ((*snes)->conv_hist_alloc) PetscCall(PetscFree2((*snes)->conv_hist, (*snes)->conv_hist_its)); 3480 PetscCall(SNESMonitorCancel((*snes))); 3481 PetscCall(SNESConvergedReasonViewCancel((*snes))); 3482 PetscCall(PetscHeaderDestroy(snes)); 3483 PetscFunctionReturn(PETSC_SUCCESS); 3484 } 3485 3486 /* ----------- Routines to set solver parameters ---------- */ 3487 3488 /*@ 3489 SNESSetLagPreconditioner - Determines when the preconditioner is rebuilt in the nonlinear solve. 3490 3491 Logically Collective 3492 3493 Input Parameters: 3494 + snes - the `SNES` context 3495 - lag - 1 means rebuild every time the Jacobian is computed within a single nonlinear solve, 2 means every second time 3496 the Jacobian is built etc. -2 indicates rebuild preconditioner at next chance but then never rebuild after that 3497 3498 Options Database Keys: 3499 + -snes_lag_jacobian_persists <true,false> - sets the persistence through multiple `SNESSolve()` 3500 . -snes_lag_jacobian <-2,1,2,...> - sets the lag 3501 . -snes_lag_preconditioner_persists <true,false> - sets the persistence through multiple `SNESSolve()` 3502 - -snes_lag_preconditioner <-2,1,2,...> - sets the lag 3503 3504 Level: intermediate 3505 3506 Notes: 3507 The default is 1 3508 3509 The preconditioner is ALWAYS built in the first iteration of a nonlinear solve unless lag is -1 or `SNESSetLagPreconditionerPersists()` was called 3510 3511 `SNESSetLagPreconditionerPersists()` allows using the same uniform lagging (for example every second linear solve) across multiple nonlinear solves. 3512 3513 .seealso: [](ch_snes), `SNESSetTrustRegionTolerance()`, `SNESGetLagPreconditioner()`, `SNESSetLagJacobian()`, `SNESGetLagJacobian()`, `SNESSetLagPreconditionerPersists()`, 3514 `SNESSetLagJacobianPersists()`, `SNES`, `SNESSolve()` 3515 @*/ 3516 PetscErrorCode SNESSetLagPreconditioner(SNES snes, PetscInt lag) 3517 { 3518 PetscFunctionBegin; 3519 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3520 PetscCheck(lag >= -2, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Lag must be -2, -1, 1 or greater"); 3521 PetscCheck(lag, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Lag cannot be 0"); 3522 PetscValidLogicalCollectiveInt(snes, lag, 2); 3523 snes->lagpreconditioner = lag; 3524 PetscFunctionReturn(PETSC_SUCCESS); 3525 } 3526 3527 /*@ 3528 SNESSetGridSequence - sets the number of steps of grid sequencing that `SNES` will do 3529 3530 Logically Collective 3531 3532 Input Parameters: 3533 + snes - the `SNES` context 3534 - steps - the number of refinements to do, defaults to 0 3535 3536 Options Database Key: 3537 . -snes_grid_sequence <steps> - Use grid sequencing to generate initial guess 3538 3539 Level: intermediate 3540 3541 Note: 3542 Use `SNESGetSolution()` to extract the fine grid solution after grid sequencing. 3543 3544 .seealso: [](ch_snes), `SNES`, `SNESSetTrustRegionTolerance()`, `SNESGetLagPreconditioner()`, `SNESSetLagJacobian()`, `SNESGetLagJacobian()`, `SNESGetGridSequence()`, 3545 `SNESetDM()` 3546 @*/ 3547 PetscErrorCode SNESSetGridSequence(SNES snes, PetscInt steps) 3548 { 3549 PetscFunctionBegin; 3550 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3551 PetscValidLogicalCollectiveInt(snes, steps, 2); 3552 snes->gridsequence = steps; 3553 PetscFunctionReturn(PETSC_SUCCESS); 3554 } 3555 3556 /*@ 3557 SNESGetGridSequence - gets the number of steps of grid sequencing that `SNES` will do 3558 3559 Logically Collective 3560 3561 Input Parameter: 3562 . snes - the `SNES` context 3563 3564 Output Parameter: 3565 . steps - the number of refinements to do, defaults to 0 3566 3567 Level: intermediate 3568 3569 .seealso: [](ch_snes), `SNESSetTrustRegionTolerance()`, `SNESGetLagPreconditioner()`, `SNESSetLagJacobian()`, `SNESGetLagJacobian()`, `SNESSetGridSequence()` 3570 @*/ 3571 PetscErrorCode SNESGetGridSequence(SNES snes, PetscInt *steps) 3572 { 3573 PetscFunctionBegin; 3574 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3575 *steps = snes->gridsequence; 3576 PetscFunctionReturn(PETSC_SUCCESS); 3577 } 3578 3579 /*@ 3580 SNESGetLagPreconditioner - Return how often the preconditioner is rebuilt 3581 3582 Not Collective 3583 3584 Input Parameter: 3585 . snes - the `SNES` context 3586 3587 Output Parameter: 3588 . lag - -1 indicates NEVER rebuild, 1 means rebuild every time the Jacobian is computed within a single nonlinear solve, 2 means every second time 3589 the Jacobian is built etc. -2 indicates rebuild preconditioner at next chance but then never rebuild after that 3590 3591 Level: intermediate 3592 3593 Notes: 3594 The default is 1 3595 3596 The preconditioner is ALWAYS built in the first iteration of a nonlinear solve unless lag is -1 3597 3598 .seealso: [](ch_snes), `SNES`, `SNESSetTrustRegionTolerance()`, `SNESSetLagPreconditioner()`, `SNESSetLagJacobianPersists()`, `SNESSetLagPreconditionerPersists()` 3599 @*/ 3600 PetscErrorCode SNESGetLagPreconditioner(SNES snes, PetscInt *lag) 3601 { 3602 PetscFunctionBegin; 3603 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3604 *lag = snes->lagpreconditioner; 3605 PetscFunctionReturn(PETSC_SUCCESS); 3606 } 3607 3608 /*@ 3609 SNESSetLagJacobian - Set when the Jacobian is rebuilt in the nonlinear solve. See `SNESSetLagPreconditioner()` for determining how 3610 often the preconditioner is rebuilt. 3611 3612 Logically Collective 3613 3614 Input Parameters: 3615 + snes - the `SNES` context 3616 - lag - -1 indicates NEVER rebuild, 1 means rebuild every time the Jacobian is computed within a single nonlinear solve, 2 means every second time 3617 the Jacobian is built etc. -2 means rebuild at next chance but then never again 3618 3619 Options Database Keys: 3620 + -snes_lag_jacobian_persists <true,false> - sets the persistence through multiple SNES solves 3621 . -snes_lag_jacobian <-2,1,2,...> - sets the lag 3622 . -snes_lag_preconditioner_persists <true,false> - sets the persistence through multiple SNES solves 3623 - -snes_lag_preconditioner <-2,1,2,...> - sets the lag. 3624 3625 Level: intermediate 3626 3627 Notes: 3628 The default is 1 3629 3630 The Jacobian is ALWAYS built in the first iteration of a nonlinear solve unless lag is -1 3631 3632 If -1 is used before the very first nonlinear solve the CODE WILL FAIL! because no Jacobian is used, use -2 to indicate you want it recomputed 3633 at the next Newton step but never again (unless it is reset to another value) 3634 3635 .seealso: [](ch_snes), `SNES`, `SNESSetTrustRegionTolerance()`, `SNESGetLagPreconditioner()`, `SNESSetLagPreconditioner()`, `SNESGetLagJacobianPersists()`, `SNESSetLagPreconditionerPersists()` 3636 @*/ 3637 PetscErrorCode SNESSetLagJacobian(SNES snes, PetscInt lag) 3638 { 3639 PetscFunctionBegin; 3640 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3641 PetscCheck(lag >= -2, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Lag must be -2, -1, 1 or greater"); 3642 PetscCheck(lag, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Lag cannot be 0"); 3643 PetscValidLogicalCollectiveInt(snes, lag, 2); 3644 snes->lagjacobian = lag; 3645 PetscFunctionReturn(PETSC_SUCCESS); 3646 } 3647 3648 /*@ 3649 SNESGetLagJacobian - Get how often the Jacobian is rebuilt. See `SNESGetLagPreconditioner()` to determine when the preconditioner is rebuilt 3650 3651 Not Collective 3652 3653 Input Parameter: 3654 . snes - the `SNES` context 3655 3656 Output Parameter: 3657 . lag - -1 indicates NEVER rebuild, 1 means rebuild every time the Jacobian is computed within a single nonlinear solve, 2 means every second time 3658 the Jacobian is built etc. 3659 3660 Level: intermediate 3661 3662 Notes: 3663 The default is 1 3664 3665 The jacobian is ALWAYS built in the first iteration of a nonlinear solve unless lag is -1 or `SNESSetLagJacobianPersists()` was called. 3666 3667 .seealso: [](ch_snes), `SNES`, `SNESSetTrustRegionTolerance()`, `SNESSetLagJacobian()`, `SNESSetLagPreconditioner()`, `SNESGetLagPreconditioner()`, `SNESSetLagJacobianPersists()`, `SNESSetLagPreconditionerPersists()` 3668 3669 @*/ 3670 PetscErrorCode SNESGetLagJacobian(SNES snes, PetscInt *lag) 3671 { 3672 PetscFunctionBegin; 3673 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3674 *lag = snes->lagjacobian; 3675 PetscFunctionReturn(PETSC_SUCCESS); 3676 } 3677 3678 /*@ 3679 SNESSetLagJacobianPersists - Set whether or not the Jacobian lagging persists through multiple nonlinear solves 3680 3681 Logically collective 3682 3683 Input Parameters: 3684 + snes - the `SNES` context 3685 - flg - jacobian lagging persists if true 3686 3687 Options Database Keys: 3688 + -snes_lag_jacobian_persists <true,false> - sets the persistence through multiple SNES solves 3689 . -snes_lag_jacobian <-2,1,2,...> - sets the lag 3690 . -snes_lag_preconditioner_persists <true,false> - sets the persistence through multiple SNES solves 3691 - -snes_lag_preconditioner <-2,1,2,...> - sets the lag 3692 3693 Level: advanced 3694 3695 Notes: 3696 Normally when `SNESSetLagJacobian()` is used, the Jacobian is always rebuilt at the beginning of each new nonlinear solve, this removes that behavior 3697 3698 This is useful both for nonlinear preconditioning, where it's appropriate to have the Jacobian be stale by 3699 several solves, and for implicit time-stepping, where Jacobian lagging in the inner nonlinear solve over several 3700 timesteps may present huge efficiency gains. 3701 3702 .seealso: [](ch_snes), `SNES`, `SNESSetLagPreconditionerPersists()`, `SNESSetLagJacobian()`, `SNESGetLagJacobian()`, `SNESGetNPC()` 3703 @*/ 3704 PetscErrorCode SNESSetLagJacobianPersists(SNES snes, PetscBool flg) 3705 { 3706 PetscFunctionBegin; 3707 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3708 PetscValidLogicalCollectiveBool(snes, flg, 2); 3709 snes->lagjac_persist = flg; 3710 PetscFunctionReturn(PETSC_SUCCESS); 3711 } 3712 3713 /*@ 3714 SNESSetLagPreconditionerPersists - Set whether or not the preconditioner lagging persists through multiple nonlinear solves 3715 3716 Logically Collective 3717 3718 Input Parameters: 3719 + snes - the `SNES` context 3720 - flg - preconditioner lagging persists if true 3721 3722 Options Database Keys: 3723 + -snes_lag_jacobian_persists <true,false> - sets the persistence through multiple SNES solves 3724 . -snes_lag_jacobian <-2,1,2,...> - sets the lag 3725 . -snes_lag_preconditioner_persists <true,false> - sets the persistence through multiple SNES solves 3726 - -snes_lag_preconditioner <-2,1,2,...> - sets the lag 3727 3728 Level: developer 3729 3730 Notes: 3731 Normally when `SNESSetLagPreconditioner()` is used, the preconditioner is always rebuilt at the beginning of each new nonlinear solve, this removes that behavior 3732 3733 This is useful both for nonlinear preconditioning, where it's appropriate to have the preconditioner be stale 3734 by several solves, and for implicit time-stepping, where preconditioner lagging in the inner nonlinear solve over 3735 several timesteps may present huge efficiency gains. 3736 3737 .seealso: [](ch_snes), `SNES`, `SNESSetLagJacobianPersists()`, `SNESSetLagJacobian()`, `SNESGetLagJacobian()`, `SNESGetNPC()`, `SNESSetLagPreconditioner()` 3738 @*/ 3739 PetscErrorCode SNESSetLagPreconditionerPersists(SNES snes, PetscBool flg) 3740 { 3741 PetscFunctionBegin; 3742 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3743 PetscValidLogicalCollectiveBool(snes, flg, 2); 3744 snes->lagpre_persist = flg; 3745 PetscFunctionReturn(PETSC_SUCCESS); 3746 } 3747 3748 /*@ 3749 SNESSetForceIteration - force `SNESSolve()` to take at least one iteration regardless of the initial residual norm 3750 3751 Logically Collective 3752 3753 Input Parameters: 3754 + snes - the `SNES` context 3755 - force - `PETSC_TRUE` require at least one iteration 3756 3757 Options Database Key: 3758 . -snes_force_iteration <force> - Sets forcing an iteration 3759 3760 Level: intermediate 3761 3762 Note: 3763 This is used sometimes with `TS` to prevent `TS` from detecting a false steady state solution 3764 3765 .seealso: [](ch_snes), `SNES`, `TS`, `SNESSetTrustRegionTolerance()`, `SNESSetDivergenceTolerance()` 3766 @*/ 3767 PetscErrorCode SNESSetForceIteration(SNES snes, PetscBool force) 3768 { 3769 PetscFunctionBegin; 3770 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3771 snes->forceiteration = force; 3772 PetscFunctionReturn(PETSC_SUCCESS); 3773 } 3774 3775 /*@ 3776 SNESGetForceIteration - Check whether or not `SNESSolve()` take at least one iteration regardless of the initial residual norm 3777 3778 Logically Collective 3779 3780 Input Parameter: 3781 . snes - the `SNES` context 3782 3783 Output Parameter: 3784 . force - `PETSC_TRUE` requires at least one iteration. 3785 3786 Level: intermediate 3787 3788 .seealso: [](ch_snes), `SNES`, `SNESSetForceIteration()`, `SNESSetTrustRegionTolerance()`, `SNESSetDivergenceTolerance()` 3789 @*/ 3790 PetscErrorCode SNESGetForceIteration(SNES snes, PetscBool *force) 3791 { 3792 PetscFunctionBegin; 3793 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3794 *force = snes->forceiteration; 3795 PetscFunctionReturn(PETSC_SUCCESS); 3796 } 3797 3798 /*@ 3799 SNESSetTolerances - Sets `SNES` various parameters used in convergence tests. 3800 3801 Logically Collective 3802 3803 Input Parameters: 3804 + snes - the `SNES` context 3805 . abstol - absolute convergence tolerance 3806 . rtol - relative convergence tolerance 3807 . stol - convergence tolerance in terms of the norm of the change in the solution between steps, || delta x || < stol*|| x || 3808 . maxit - maximum number of iterations, default 50. 3809 - maxf - maximum number of function evaluations (-1 indicates no limit), default 1000 3810 3811 Options Database Keys: 3812 + -snes_atol <abstol> - Sets abstol 3813 . -snes_rtol <rtol> - Sets rtol 3814 . -snes_stol <stol> - Sets stol 3815 . -snes_max_it <maxit> - Sets maxit 3816 - -snes_max_funcs <maxf> - Sets maxf 3817 3818 Level: intermediate 3819 3820 .seealso: [](ch_snes), `SNESSolve()`, `SNES`, `SNESSetTrustRegionTolerance()`, `SNESSetDivergenceTolerance()`, `SNESSetForceIteration()` 3821 @*/ 3822 PetscErrorCode SNESSetTolerances(SNES snes, PetscReal abstol, PetscReal rtol, PetscReal stol, PetscInt maxit, PetscInt maxf) 3823 { 3824 PetscFunctionBegin; 3825 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3826 PetscValidLogicalCollectiveReal(snes, abstol, 2); 3827 PetscValidLogicalCollectiveReal(snes, rtol, 3); 3828 PetscValidLogicalCollectiveReal(snes, stol, 4); 3829 PetscValidLogicalCollectiveInt(snes, maxit, 5); 3830 PetscValidLogicalCollectiveInt(snes, maxf, 6); 3831 3832 if (abstol != (PetscReal)PETSC_DEFAULT) { 3833 PetscCheck(abstol >= 0.0, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_OUTOFRANGE, "Absolute tolerance %g must be non-negative", (double)abstol); 3834 snes->abstol = abstol; 3835 } 3836 if (rtol != (PetscReal)PETSC_DEFAULT) { 3837 PetscCheck(rtol >= 0.0 && 1.0 > rtol, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_OUTOFRANGE, "Relative tolerance %g must be non-negative and less than 1.0", (double)rtol); 3838 snes->rtol = rtol; 3839 } 3840 if (stol != (PetscReal)PETSC_DEFAULT) { 3841 PetscCheck(stol >= 0.0, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_OUTOFRANGE, "Step tolerance %g must be non-negative", (double)stol); 3842 snes->stol = stol; 3843 } 3844 if (maxit != PETSC_DEFAULT) { 3845 PetscCheck(maxit >= 0, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_OUTOFRANGE, "Maximum number of iterations %" PetscInt_FMT " must be non-negative", maxit); 3846 snes->max_its = maxit; 3847 } 3848 if (maxf != PETSC_DEFAULT) { 3849 PetscCheck(maxf >= -1, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_OUTOFRANGE, "Maximum number of function evaluations %" PetscInt_FMT " must be -1 or nonnegative", maxf); 3850 snes->max_funcs = maxf; 3851 } 3852 snes->tolerancesset = PETSC_TRUE; 3853 PetscFunctionReturn(PETSC_SUCCESS); 3854 } 3855 3856 /*@ 3857 SNESSetDivergenceTolerance - Sets the divergence tolerance used for the `SNES` divergence test. 3858 3859 Logically Collective 3860 3861 Input Parameters: 3862 + snes - the `SNES` context 3863 - divtol - the divergence tolerance. Use -1 to deactivate the test, default is 1e4 3864 3865 Options Database Key: 3866 . -snes_divergence_tolerance <divtol> - Sets `divtol` 3867 3868 Level: intermediate 3869 3870 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetTolerances()`, `SNESGetDivergenceTolerance` 3871 @*/ 3872 PetscErrorCode SNESSetDivergenceTolerance(SNES snes, PetscReal divtol) 3873 { 3874 PetscFunctionBegin; 3875 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3876 PetscValidLogicalCollectiveReal(snes, divtol, 2); 3877 3878 if (divtol != (PetscReal)PETSC_DEFAULT) { 3879 snes->divtol = divtol; 3880 } else { 3881 snes->divtol = 1.0e4; 3882 } 3883 PetscFunctionReturn(PETSC_SUCCESS); 3884 } 3885 3886 /*@ 3887 SNESGetTolerances - Gets various parameters used in convergence tests. 3888 3889 Not Collective 3890 3891 Input Parameters: 3892 + snes - the `SNES` context 3893 . atol - absolute convergence tolerance 3894 . rtol - relative convergence tolerance 3895 . stol - convergence tolerance in terms of the norm 3896 of the change in the solution between steps 3897 . maxit - maximum number of iterations 3898 - maxf - maximum number of function evaluations 3899 3900 Level: intermediate 3901 3902 Note: 3903 The user can specify `NULL` for any parameter that is not needed. 3904 3905 .seealso: [](ch_snes), `SNES`, `SNESSetTolerances()` 3906 @*/ 3907 PetscErrorCode SNESGetTolerances(SNES snes, PetscReal *atol, PetscReal *rtol, PetscReal *stol, PetscInt *maxit, PetscInt *maxf) 3908 { 3909 PetscFunctionBegin; 3910 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3911 if (atol) *atol = snes->abstol; 3912 if (rtol) *rtol = snes->rtol; 3913 if (stol) *stol = snes->stol; 3914 if (maxit) *maxit = snes->max_its; 3915 if (maxf) *maxf = snes->max_funcs; 3916 PetscFunctionReturn(PETSC_SUCCESS); 3917 } 3918 3919 /*@ 3920 SNESGetDivergenceTolerance - Gets divergence tolerance used in divergence test. 3921 3922 Not Collective 3923 3924 Input Parameters: 3925 + snes - the `SNES` context 3926 - divtol - divergence tolerance 3927 3928 Level: intermediate 3929 3930 .seealso: [](ch_snes), `SNES`, `SNESSetDivergenceTolerance()` 3931 @*/ 3932 PetscErrorCode SNESGetDivergenceTolerance(SNES snes, PetscReal *divtol) 3933 { 3934 PetscFunctionBegin; 3935 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3936 if (divtol) *divtol = snes->divtol; 3937 PetscFunctionReturn(PETSC_SUCCESS); 3938 } 3939 3940 /*@ 3941 SNESSetTrustRegionTolerance - Sets the trust region parameter tolerance. 3942 3943 Logically Collective 3944 3945 Input Parameters: 3946 + snes - the `SNES` context 3947 - tol - tolerance 3948 3949 Options Database Key: 3950 . -snes_tr_tol <tol> - Sets tol 3951 3952 Level: intermediate 3953 3954 .seealso: [](ch_snes), `SNES`, `SNESNEWTONTR`, `SNESSetTolerances()` 3955 @*/ 3956 PetscErrorCode SNESSetTrustRegionTolerance(SNES snes, PetscReal tol) 3957 { 3958 PetscFunctionBegin; 3959 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 3960 PetscValidLogicalCollectiveReal(snes, tol, 2); 3961 snes->deltatol = tol; 3962 PetscFunctionReturn(PETSC_SUCCESS); 3963 } 3964 3965 PETSC_INTERN PetscErrorCode SNESMonitorRange_Private(SNES, PetscInt, PetscReal *); 3966 3967 PetscErrorCode SNESMonitorLGRange(SNES snes, PetscInt n, PetscReal rnorm, void *monctx) 3968 { 3969 PetscDrawLG lg; 3970 PetscReal x, y, per; 3971 PetscViewer v = (PetscViewer)monctx; 3972 static PetscReal prev; /* should be in the context */ 3973 PetscDraw draw; 3974 3975 PetscFunctionBegin; 3976 PetscValidHeaderSpecific(v, PETSC_VIEWER_CLASSID, 4); 3977 PetscCall(PetscViewerDrawGetDrawLG(v, 0, &lg)); 3978 if (!n) PetscCall(PetscDrawLGReset(lg)); 3979 PetscCall(PetscDrawLGGetDraw(lg, &draw)); 3980 PetscCall(PetscDrawSetTitle(draw, "Residual norm")); 3981 x = (PetscReal)n; 3982 if (rnorm > 0.0) y = PetscLog10Real(rnorm); 3983 else y = -15.0; 3984 PetscCall(PetscDrawLGAddPoint(lg, &x, &y)); 3985 if (n < 20 || !(n % 5) || snes->reason) { 3986 PetscCall(PetscDrawLGDraw(lg)); 3987 PetscCall(PetscDrawLGSave(lg)); 3988 } 3989 3990 PetscCall(PetscViewerDrawGetDrawLG(v, 1, &lg)); 3991 if (!n) PetscCall(PetscDrawLGReset(lg)); 3992 PetscCall(PetscDrawLGGetDraw(lg, &draw)); 3993 PetscCall(PetscDrawSetTitle(draw, "% elements > .2*max element")); 3994 PetscCall(SNESMonitorRange_Private(snes, n, &per)); 3995 x = (PetscReal)n; 3996 y = 100.0 * per; 3997 PetscCall(PetscDrawLGAddPoint(lg, &x, &y)); 3998 if (n < 20 || !(n % 5) || snes->reason) { 3999 PetscCall(PetscDrawLGDraw(lg)); 4000 PetscCall(PetscDrawLGSave(lg)); 4001 } 4002 4003 PetscCall(PetscViewerDrawGetDrawLG(v, 2, &lg)); 4004 if (!n) { 4005 prev = rnorm; 4006 PetscCall(PetscDrawLGReset(lg)); 4007 } 4008 PetscCall(PetscDrawLGGetDraw(lg, &draw)); 4009 PetscCall(PetscDrawSetTitle(draw, "(norm -oldnorm)/oldnorm")); 4010 x = (PetscReal)n; 4011 y = (prev - rnorm) / prev; 4012 PetscCall(PetscDrawLGAddPoint(lg, &x, &y)); 4013 if (n < 20 || !(n % 5) || snes->reason) { 4014 PetscCall(PetscDrawLGDraw(lg)); 4015 PetscCall(PetscDrawLGSave(lg)); 4016 } 4017 4018 PetscCall(PetscViewerDrawGetDrawLG(v, 3, &lg)); 4019 if (!n) PetscCall(PetscDrawLGReset(lg)); 4020 PetscCall(PetscDrawLGGetDraw(lg, &draw)); 4021 PetscCall(PetscDrawSetTitle(draw, "(norm -oldnorm)/oldnorm*(% > .2 max)")); 4022 x = (PetscReal)n; 4023 y = (prev - rnorm) / (prev * per); 4024 if (n > 2) { /*skip initial crazy value */ 4025 PetscCall(PetscDrawLGAddPoint(lg, &x, &y)); 4026 } 4027 if (n < 20 || !(n % 5) || snes->reason) { 4028 PetscCall(PetscDrawLGDraw(lg)); 4029 PetscCall(PetscDrawLGSave(lg)); 4030 } 4031 prev = rnorm; 4032 PetscFunctionReturn(PETSC_SUCCESS); 4033 } 4034 4035 /*@ 4036 SNESConverged - Run the convergence test and update the `SNESConvergedReason`. 4037 4038 Collective 4039 4040 Input Parameters: 4041 + snes - the `SNES` context 4042 . it - current iteration 4043 . xnorm - 2-norm of current iterate 4044 . snorm - 2-norm of current step 4045 - fnorm - 2-norm of function 4046 4047 Level: developer 4048 4049 Note: 4050 This routine is called by the `SNESSolve()` implementations. 4051 It does not typically need to be called by the user. 4052 4053 .seealso: [](ch_snes), `SNES`, `SNESSolve`, `SNESSetConvergenceTest()`, `SNESGetConvergenceTest()` 4054 @*/ 4055 PetscErrorCode SNESConverged(SNES snes, PetscInt it, PetscReal xnorm, PetscReal snorm, PetscReal fnorm) 4056 { 4057 PetscFunctionBegin; 4058 if (!snes->reason) { 4059 if (snes->normschedule == SNES_NORM_ALWAYS) PetscUseTypeMethod(snes, converged, it, xnorm, snorm, fnorm, &snes->reason, snes->cnvP); 4060 if (it == snes->max_its && !snes->reason) { 4061 if (snes->normschedule == SNES_NORM_ALWAYS) { 4062 PetscCall(PetscInfo(snes, "Maximum number of iterations has been reached: %" PetscInt_FMT "\n", snes->max_its)); 4063 snes->reason = SNES_DIVERGED_MAX_IT; 4064 } else snes->reason = SNES_CONVERGED_ITS; 4065 } 4066 } 4067 PetscFunctionReturn(PETSC_SUCCESS); 4068 } 4069 4070 /*@ 4071 SNESMonitor - runs the user provided monitor routines, if they exist 4072 4073 Collective 4074 4075 Input Parameters: 4076 + snes - nonlinear solver context obtained from `SNESCreate()` 4077 . iter - iteration number 4078 - rnorm - relative norm of the residual 4079 4080 Level: developer 4081 4082 Note: 4083 This routine is called by the `SNESSolve()` implementations. 4084 It does not typically need to be called by the user. 4085 4086 .seealso: [](ch_snes), `SNES`, `SNESMonitorSet()` 4087 @*/ 4088 PetscErrorCode SNESMonitor(SNES snes, PetscInt iter, PetscReal rnorm) 4089 { 4090 PetscInt i, n = snes->numbermonitors; 4091 4092 PetscFunctionBegin; 4093 if (n > 0) SNESCheckFunctionNorm(snes, rnorm); 4094 PetscCall(VecLockReadPush(snes->vec_sol)); 4095 for (i = 0; i < n; i++) PetscCall((*snes->monitor[i])(snes, iter, rnorm, snes->monitorcontext[i])); 4096 PetscCall(VecLockReadPop(snes->vec_sol)); 4097 PetscFunctionReturn(PETSC_SUCCESS); 4098 } 4099 4100 /* ------------ Routines to set performance monitoring options ----------- */ 4101 4102 /*MC 4103 SNESMonitorFunction - functional form passed to `SNESMonitorSet()` to monitor convergence of nonlinear solver 4104 4105 Synopsis: 4106 #include <petscsnes.h> 4107 PetscErrorCode SNESMonitorFunction(SNES snes, PetscInt its, PetscReal norm, void *mctx) 4108 4109 Collective 4110 4111 Input Parameters: 4112 + snes - the `SNES` context 4113 . its - iteration number 4114 . norm - 2-norm function value (may be estimated) 4115 - mctx - [optional] monitoring context 4116 4117 Level: advanced 4118 4119 .seealso: [](ch_snes), `SNESMonitorSet()`, `SNESMonitorSet()`, `SNESMonitorGet()` 4120 M*/ 4121 4122 /*@C 4123 SNESMonitorSet - Sets an ADDITIONAL function that is to be used at every 4124 iteration of the nonlinear solver to display the iteration's 4125 progress. 4126 4127 Logically Collective 4128 4129 Input Parameters: 4130 + snes - the `SNES` context 4131 . f - the monitor function, for the calling sequence see `SNESMonitorFunction` 4132 . mctx - [optional] user-defined context for private data for the monitor routine (use `NULL` if no context is desired) 4133 - monitordestroy - [optional] routine that frees monitor context (may be `NULL`) 4134 4135 Options Database Keys: 4136 + -snes_monitor - sets `SNESMonitorDefault()` 4137 . -snes_monitor draw::draw_lg - sets line graph monitor, 4138 - -snes_monitor_cancel - cancels all monitors that have been hardwired into a code by calls to `SNESMonitorSet()`, but does not cancel those set via 4139 the options database. 4140 4141 Level: intermediate 4142 4143 Note: 4144 Several different monitoring routines may be set by calling 4145 `SNESMonitorSet()` multiple times; all will be called in the 4146 order in which they were set. 4147 4148 Fortran Note: 4149 Only a single monitor function can be set for each `SNES` object 4150 4151 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESMonitorDefault()`, `SNESMonitorCancel()`, `SNESMonitorFunction` 4152 @*/ 4153 PetscErrorCode SNESMonitorSet(SNES snes, PetscErrorCode (*f)(SNES, PetscInt, PetscReal, void *), void *mctx, PetscErrorCode (*monitordestroy)(void **)) 4154 { 4155 PetscInt i; 4156 PetscBool identical; 4157 4158 PetscFunctionBegin; 4159 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4160 for (i = 0; i < snes->numbermonitors; i++) { 4161 PetscCall(PetscMonitorCompare((PetscErrorCode(*)(void))f, mctx, monitordestroy, (PetscErrorCode(*)(void))snes->monitor[i], snes->monitorcontext[i], snes->monitordestroy[i], &identical)); 4162 if (identical) PetscFunctionReturn(PETSC_SUCCESS); 4163 } 4164 PetscCheck(snes->numbermonitors < MAXSNESMONITORS, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Too many monitors set"); 4165 snes->monitor[snes->numbermonitors] = f; 4166 snes->monitordestroy[snes->numbermonitors] = monitordestroy; 4167 snes->monitorcontext[snes->numbermonitors++] = (void *)mctx; 4168 PetscFunctionReturn(PETSC_SUCCESS); 4169 } 4170 4171 /*@ 4172 SNESMonitorCancel - Clears all the monitor functions for a `SNES` object. 4173 4174 Logically Collective 4175 4176 Input Parameter: 4177 . snes - the `SNES` context 4178 4179 Options Database Key: 4180 . -snes_monitor_cancel - cancels all monitors that have been hardwired 4181 into a code by calls to `SNESMonitorSet()`, but does not cancel those 4182 set via the options database 4183 4184 Level: intermediate 4185 4186 Note: 4187 There is no way to clear one specific monitor from a `SNES` object. 4188 4189 .seealso: [](ch_snes), `SNES`, `SNESMonitorGet()`, `SNESMonitorDefault()`, `SNESMonitorSet()` 4190 @*/ 4191 PetscErrorCode SNESMonitorCancel(SNES snes) 4192 { 4193 PetscInt i; 4194 4195 PetscFunctionBegin; 4196 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4197 for (i = 0; i < snes->numbermonitors; i++) { 4198 if (snes->monitordestroy[i]) PetscCall((*snes->monitordestroy[i])(&snes->monitorcontext[i])); 4199 } 4200 snes->numbermonitors = 0; 4201 PetscFunctionReturn(PETSC_SUCCESS); 4202 } 4203 4204 /*MC 4205 SNESConvergenceTestFunction - functional form used for testing of convergence of nonlinear solver 4206 4207 Synopsis: 4208 #include <petscsnes.h> 4209 PetscErrorCode SNESConvergenceTest(SNES snes, PetscInt it, PetscReal xnorm, PetscReal gnorm, PetscReal f, SNESConvergedReason *reason, void *cctx) 4210 4211 Collective 4212 4213 Input Parameters: 4214 + snes - the `SNES` context 4215 . it - current iteration (0 is the first and is before any Newton step) 4216 . xnorm - 2-norm of current iterate 4217 . gnorm - 2-norm of current step 4218 . f - 2-norm of function 4219 - cctx - [optional] convergence context 4220 4221 Output Parameter: 4222 . reason - reason for convergence/divergence, only needs to be set when convergence or divergence is detected 4223 4224 Level: intermediate 4225 4226 .seealso: [](ch_snes), `SNES`, `SNESSolve`, `SNESSetConvergenceTest()`, `SNESGetConvergenceTest()` 4227 M*/ 4228 4229 /*@C 4230 SNESSetConvergenceTest - Sets the function that is to be used 4231 to test for convergence of the nonlinear iterative solution. 4232 4233 Logically Collective 4234 4235 Input Parameters: 4236 + snes - the `SNES` context 4237 . SNESConvergenceTestFunction - routine to test for convergence 4238 . cctx - [optional] context for private data for the convergence routine (may be `NULL`) 4239 - destroy - [optional] destructor for the context (may be `NULL`; `PETSC_NULL_FUNCTION` in Fortran) 4240 4241 Level: advanced 4242 4243 .seealso: [](ch_snes), `SNES`, `SNESConvergedDefault()`, `SNESConvergedSkip()`, `SNESConvergenceTestFunction` 4244 @*/ 4245 PetscErrorCode SNESSetConvergenceTest(SNES snes, PetscErrorCode (*SNESConvergenceTestFunction)(SNES, PetscInt, PetscReal, PetscReal, PetscReal, SNESConvergedReason *, void *), void *cctx, PetscErrorCode (*destroy)(void *)) 4246 { 4247 PetscFunctionBegin; 4248 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4249 if (!SNESConvergenceTestFunction) SNESConvergenceTestFunction = SNESConvergedSkip; 4250 if (snes->ops->convergeddestroy) PetscCall((*snes->ops->convergeddestroy)(snes->cnvP)); 4251 snes->ops->converged = SNESConvergenceTestFunction; 4252 snes->ops->convergeddestroy = destroy; 4253 snes->cnvP = cctx; 4254 PetscFunctionReturn(PETSC_SUCCESS); 4255 } 4256 4257 /*@ 4258 SNESGetConvergedReason - Gets the reason the `SNES` iteration was stopped. 4259 4260 Not Collective 4261 4262 Input Parameter: 4263 . snes - the `SNES` context 4264 4265 Output Parameter: 4266 . reason - negative value indicates diverged, positive value converged, see `SNESConvergedReason` for the individual convergence tests for complete lists 4267 4268 Options Database Key: 4269 . -snes_converged_reason - prints the reason to standard out 4270 4271 Level: intermediate 4272 4273 Note: 4274 Should only be called after the call the `SNESSolve()` is complete, if it is called earlier it returns the value `SNES__CONVERGED_ITERATING`. 4275 4276 .seealso: [](ch_snes), `SNESSolve()`, `SNESSetConvergenceTest()`, `SNESSetConvergedReason()`, `SNESConvergedReason`, `SNESGetConvergedReasonString()` 4277 @*/ 4278 PetscErrorCode SNESGetConvergedReason(SNES snes, SNESConvergedReason *reason) 4279 { 4280 PetscFunctionBegin; 4281 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4282 PetscAssertPointer(reason, 2); 4283 *reason = snes->reason; 4284 PetscFunctionReturn(PETSC_SUCCESS); 4285 } 4286 4287 /*@C 4288 SNESGetConvergedReasonString - Return a human readable string for `SNESConvergedReason` 4289 4290 Not Collective 4291 4292 Input Parameter: 4293 . snes - the `SNES` context 4294 4295 Output Parameter: 4296 . strreason - a human readable string that describes `SNES` converged reason 4297 4298 Level: beginner 4299 4300 .seealso: [](ch_snes), `SNES`, `SNESGetConvergedReason()` 4301 @*/ 4302 PetscErrorCode SNESGetConvergedReasonString(SNES snes, const char **strreason) 4303 { 4304 PetscFunctionBegin; 4305 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4306 PetscAssertPointer(strreason, 2); 4307 *strreason = SNESConvergedReasons[snes->reason]; 4308 PetscFunctionReturn(PETSC_SUCCESS); 4309 } 4310 4311 /*@ 4312 SNESSetConvergedReason - Sets the reason the `SNES` iteration was stopped. 4313 4314 Not Collective 4315 4316 Input Parameters: 4317 + snes - the `SNES` context 4318 - reason - negative value indicates diverged, positive value converged, see `SNESConvergedReason` or the 4319 manual pages for the individual convergence tests for complete lists 4320 4321 Level: developer 4322 4323 Developer Note: 4324 Called inside the various `SNESSolve()` implementations 4325 4326 .seealso: [](ch_snes), `SNESGetConvergedReason()`, `SNESSetConvergenceTest()`, `SNESConvergedReason` 4327 @*/ 4328 PetscErrorCode SNESSetConvergedReason(SNES snes, SNESConvergedReason reason) 4329 { 4330 PetscFunctionBegin; 4331 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4332 PetscCheck(!snes->errorifnotconverged || reason > 0, PetscObjectComm((PetscObject)snes), PETSC_ERR_PLIB, "SNES code should have previously errored due to negative reason"); 4333 snes->reason = reason; 4334 PetscFunctionReturn(PETSC_SUCCESS); 4335 } 4336 4337 /*@ 4338 SNESSetConvergenceHistory - Sets the arrays used to hold the convergence history. 4339 4340 Logically Collective 4341 4342 Input Parameters: 4343 + snes - iterative context obtained from `SNESCreate()` 4344 . a - array to hold history, this array will contain the function norms computed at each step 4345 . its - integer array holds the number of linear iterations for each solve. 4346 . na - size of `a` and `its` 4347 - reset - `PETSC_TRUE` indicates each new nonlinear solve resets the history counter to zero, 4348 else it continues storing new values for new nonlinear solves after the old ones 4349 4350 Level: intermediate 4351 4352 Notes: 4353 If 'a' and 'its' are `NULL` then space is allocated for the history. If 'na' `PETSC_DECIDE` or `PETSC_DEFAULT` then a 4354 default array of length 10000 is allocated. 4355 4356 This routine is useful, e.g., when running a code for purposes 4357 of accurate performance monitoring, when no I/O should be done 4358 during the section of code that is being timed. 4359 4360 If the arrays run out of space after a number of iterations then the later values are not saved in the history 4361 4362 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESGetConvergenceHistory()` 4363 @*/ 4364 PetscErrorCode SNESSetConvergenceHistory(SNES snes, PetscReal a[], PetscInt its[], PetscInt na, PetscBool reset) 4365 { 4366 PetscFunctionBegin; 4367 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4368 if (a) PetscAssertPointer(a, 2); 4369 if (its) PetscAssertPointer(its, 3); 4370 if (!a) { 4371 if (na == PETSC_DECIDE || na == PETSC_DEFAULT) na = 1000; 4372 PetscCall(PetscCalloc2(na, &a, na, &its)); 4373 snes->conv_hist_alloc = PETSC_TRUE; 4374 } 4375 snes->conv_hist = a; 4376 snes->conv_hist_its = its; 4377 snes->conv_hist_max = (size_t)na; 4378 snes->conv_hist_len = 0; 4379 snes->conv_hist_reset = reset; 4380 PetscFunctionReturn(PETSC_SUCCESS); 4381 } 4382 4383 #if defined(PETSC_HAVE_MATLAB) 4384 #include <engine.h> /* MATLAB include file */ 4385 #include <mex.h> /* MATLAB include file */ 4386 4387 PETSC_EXTERN mxArray *SNESGetConvergenceHistoryMatlab(SNES snes) 4388 { 4389 mxArray *mat; 4390 PetscInt i; 4391 PetscReal *ar; 4392 4393 mat = mxCreateDoubleMatrix(snes->conv_hist_len, 1, mxREAL); 4394 ar = (PetscReal *)mxGetData(mat); 4395 for (i = 0; i < snes->conv_hist_len; i++) ar[i] = snes->conv_hist[i]; 4396 return mat; 4397 } 4398 #endif 4399 4400 /*@C 4401 SNESGetConvergenceHistory - Gets the arrays used to hold the convergence history. 4402 4403 Not Collective 4404 4405 Input Parameter: 4406 . snes - iterative context obtained from `SNESCreate()` 4407 4408 Output Parameters: 4409 + a - array to hold history, usually was set with `SNESSetConvergenceHistory()` 4410 . its - integer array holds the number of linear iterations (or 4411 negative if not converged) for each solve. 4412 - na - size of `a` and `its` 4413 4414 Level: intermediate 4415 4416 Note: 4417 This routine is useful, e.g., when running a code for purposes 4418 of accurate performance monitoring, when no I/O should be done 4419 during the section of code that is being timed. 4420 4421 Fortran Note: 4422 The calling sequence for this routine in Fortran is 4423 .vb 4424 call SNESGetConvergenceHistory(SNES snes, integer na, integer ierr) 4425 .ve 4426 4427 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetConvergenceHistory()` 4428 @*/ 4429 PetscErrorCode SNESGetConvergenceHistory(SNES snes, PetscReal *a[], PetscInt *its[], PetscInt *na) 4430 { 4431 PetscFunctionBegin; 4432 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4433 if (a) *a = snes->conv_hist; 4434 if (its) *its = snes->conv_hist_its; 4435 if (na) *na = (PetscInt)snes->conv_hist_len; 4436 PetscFunctionReturn(PETSC_SUCCESS); 4437 } 4438 4439 /*@C 4440 SNESSetUpdate - Sets the general-purpose update function called 4441 at the beginning of every iteration of the nonlinear solve. Specifically 4442 it is called just before the Jacobian is "evaluated". 4443 4444 Logically Collective 4445 4446 Input Parameters: 4447 + snes - The nonlinear solver context 4448 - func - The function 4449 4450 Calling sequence of `func`: 4451 + snes - the nonlinear solver context 4452 - step - The current step of the iteration 4453 4454 Level: advanced 4455 4456 Notes: 4457 This is NOT what one uses to update the ghost points before a function evaluation, that should be done at the beginning of your function provided 4458 to `SNESSetFunction()`, or `SNESSetPicard()` 4459 This is not used by most users. 4460 4461 There are a variety of function hooks one many set that are called at different stages of the nonlinear solution process, see the functions listed below. 4462 4463 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetJacobian()`, `SNESLineSearchSetPreCheck()`, `SNESLineSearchSetPostCheck()`, `SNESNewtonTRSetPreCheck()`, `SNESNewtonTRSetPostCheck()`, 4464 `SNESMonitorSet()`, `SNESSetDivergenceTest()` 4465 @*/ 4466 PetscErrorCode SNESSetUpdate(SNES snes, PetscErrorCode (*func)(SNES snes, PetscInt step)) 4467 { 4468 PetscFunctionBegin; 4469 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4470 snes->ops->update = func; 4471 PetscFunctionReturn(PETSC_SUCCESS); 4472 } 4473 4474 /*@C 4475 SNESConvergedReasonView - Displays the reason a `SNES` solve converged or diverged to a viewer 4476 4477 Collective 4478 4479 Input Parameters: 4480 + snes - iterative context obtained from `SNESCreate()` 4481 - viewer - the viewer to display the reason 4482 4483 Options Database Keys: 4484 + -snes_converged_reason - print reason for converged or diverged, also prints number of iterations 4485 - -snes_converged_reason ::failed - only print reason and number of iterations when diverged 4486 4487 Level: beginner 4488 4489 Note: 4490 To change the format of the output call `PetscViewerPushFormat`(viewer,format) before this call. Use `PETSC_VIEWER_DEFAULT` for the default, 4491 use `PETSC_VIEWER_FAILED` to only display a reason if it fails. 4492 4493 .seealso: [](ch_snes), `SNESConvergedReason`, `PetscViewer`, `SNES`, 4494 `SNESCreate()`, `SNESSetUp()`, `SNESDestroy()`, `SNESSetTolerances()`, `SNESConvergedDefault()`, `SNESGetConvergedReason()`, 4495 `SNESConvergedReasonViewFromOptions()`, 4496 `PetscViewerPushFormat()`, `PetscViewerPopFormat()` 4497 @*/ 4498 PetscErrorCode SNESConvergedReasonView(SNES snes, PetscViewer viewer) 4499 { 4500 PetscViewerFormat format; 4501 PetscBool isAscii; 4502 4503 PetscFunctionBegin; 4504 if (!viewer) viewer = PETSC_VIEWER_STDOUT_(PetscObjectComm((PetscObject)snes)); 4505 PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERASCII, &isAscii)); 4506 if (isAscii) { 4507 PetscCall(PetscViewerGetFormat(viewer, &format)); 4508 PetscCall(PetscViewerASCIIAddTab(viewer, ((PetscObject)snes)->tablevel)); 4509 if (format == PETSC_VIEWER_ASCII_INFO_DETAIL) { 4510 DM dm; 4511 Vec u; 4512 PetscDS prob; 4513 PetscInt Nf, f; 4514 PetscErrorCode (**exactSol)(PetscInt, PetscReal, const PetscReal[], PetscInt, PetscScalar[], void *); 4515 void **exactCtx; 4516 PetscReal error; 4517 4518 PetscCall(SNESGetDM(snes, &dm)); 4519 PetscCall(SNESGetSolution(snes, &u)); 4520 PetscCall(DMGetDS(dm, &prob)); 4521 PetscCall(PetscDSGetNumFields(prob, &Nf)); 4522 PetscCall(PetscMalloc2(Nf, &exactSol, Nf, &exactCtx)); 4523 for (f = 0; f < Nf; ++f) PetscCall(PetscDSGetExactSolution(prob, f, &exactSol[f], &exactCtx[f])); 4524 PetscCall(DMComputeL2Diff(dm, 0.0, exactSol, exactCtx, u, &error)); 4525 PetscCall(PetscFree2(exactSol, exactCtx)); 4526 if (error < 1.0e-11) PetscCall(PetscViewerASCIIPrintf(viewer, "L_2 Error: < 1.0e-11\n")); 4527 else PetscCall(PetscViewerASCIIPrintf(viewer, "L_2 Error: %g\n", (double)error)); 4528 } 4529 if (snes->reason > 0 && format != PETSC_VIEWER_FAILED) { 4530 if (((PetscObject)snes)->prefix) { 4531 PetscCall(PetscViewerASCIIPrintf(viewer, "Nonlinear %s solve converged due to %s iterations %" PetscInt_FMT "\n", ((PetscObject)snes)->prefix, SNESConvergedReasons[snes->reason], snes->iter)); 4532 } else { 4533 PetscCall(PetscViewerASCIIPrintf(viewer, "Nonlinear solve converged due to %s iterations %" PetscInt_FMT "\n", SNESConvergedReasons[snes->reason], snes->iter)); 4534 } 4535 } else if (snes->reason <= 0) { 4536 if (((PetscObject)snes)->prefix) { 4537 PetscCall(PetscViewerASCIIPrintf(viewer, "Nonlinear %s solve did not converge due to %s iterations %" PetscInt_FMT "\n", ((PetscObject)snes)->prefix, SNESConvergedReasons[snes->reason], snes->iter)); 4538 } else { 4539 PetscCall(PetscViewerASCIIPrintf(viewer, "Nonlinear solve did not converge due to %s iterations %" PetscInt_FMT "\n", SNESConvergedReasons[snes->reason], snes->iter)); 4540 } 4541 } 4542 PetscCall(PetscViewerASCIISubtractTab(viewer, ((PetscObject)snes)->tablevel)); 4543 } 4544 PetscFunctionReturn(PETSC_SUCCESS); 4545 } 4546 4547 /*@C 4548 SNESConvergedReasonViewSet - Sets an ADDITIONAL function that is to be used at the 4549 end of the nonlinear solver to display the convergence reason of the nonlinear solver. 4550 4551 Logically Collective 4552 4553 Input Parameters: 4554 + snes - the `SNES` context 4555 . f - the `SNESConvergedReason` view function 4556 . vctx - [optional] user-defined context for private data for the `SNESConvergedReason` view function (use `NULL` if no context is desired) 4557 - reasonviewdestroy - [optional] routine that frees the context (may be `NULL`) 4558 4559 Calling sequence of `f`: 4560 + snes - the `SNES` context 4561 - vctx - [optional] user-defined context for private data for the function 4562 4563 Calling sequence of `reasonviewerdestroy`: 4564 . vctx - [optional] user-defined context for private data for the function 4565 4566 Options Database Keys: 4567 + -snes_converged_reason - sets a default `SNESConvergedReasonView()` 4568 - -snes_converged_reason_view_cancel - cancels all converged reason viewers that have been hardwired into a code by 4569 calls to `SNESConvergedReasonViewSet()`, but does not cancel those set via the options database. 4570 4571 Level: intermediate 4572 4573 Note: 4574 Several different converged reason view routines may be set by calling 4575 `SNESConvergedReasonViewSet()` multiple times; all will be called in the 4576 order in which they were set. 4577 4578 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESConvergedReason`, `SNESGetConvergedReason()`, `SNESConvergedReasonView()`, `SNESConvergedReasonViewCancel()` 4579 @*/ 4580 PetscErrorCode SNESConvergedReasonViewSet(SNES snes, PetscErrorCode (*f)(SNES snes, void *vctx), void *vctx, PetscErrorCode (*reasonviewdestroy)(void **vctx)) 4581 { 4582 PetscInt i; 4583 PetscBool identical; 4584 4585 PetscFunctionBegin; 4586 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4587 for (i = 0; i < snes->numberreasonviews; i++) { 4588 PetscCall(PetscMonitorCompare((PetscErrorCode(*)(void))f, vctx, reasonviewdestroy, (PetscErrorCode(*)(void))snes->reasonview[i], snes->reasonviewcontext[i], snes->reasonviewdestroy[i], &identical)); 4589 if (identical) PetscFunctionReturn(PETSC_SUCCESS); 4590 } 4591 PetscCheck(snes->numberreasonviews < MAXSNESREASONVIEWS, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Too many SNES reasonview set"); 4592 snes->reasonview[snes->numberreasonviews] = f; 4593 snes->reasonviewdestroy[snes->numberreasonviews] = reasonviewdestroy; 4594 snes->reasonviewcontext[snes->numberreasonviews++] = (void *)vctx; 4595 PetscFunctionReturn(PETSC_SUCCESS); 4596 } 4597 4598 /*@ 4599 SNESConvergedReasonViewFromOptions - Processes command line options to determine if/how a `SNESConvergedReason` is to be viewed at the end of `SNESSolve()` 4600 All the user-provided convergedReasonView routines will be involved as well, if they exist. 4601 4602 Collective 4603 4604 Input Parameter: 4605 . snes - the `SNES` object 4606 4607 Level: advanced 4608 4609 .seealso: [](ch_snes), `SNES`, `SNESConvergedReason`, `SNESConvergedReasonViewSet()`, `SNESCreate()`, `SNESSetUp()`, `SNESDestroy()`, 4610 `SNESSetTolerances()`, `SNESConvergedDefault()`, `SNESGetConvergedReason()`, `SNESConvergedReasonView()` 4611 @*/ 4612 PetscErrorCode SNESConvergedReasonViewFromOptions(SNES snes) 4613 { 4614 PetscViewer viewer; 4615 PetscBool flg; 4616 static PetscBool incall = PETSC_FALSE; 4617 PetscViewerFormat format; 4618 PetscInt i; 4619 4620 PetscFunctionBegin; 4621 if (incall) PetscFunctionReturn(PETSC_SUCCESS); 4622 incall = PETSC_TRUE; 4623 4624 /* All user-provided viewers are called first, if they exist. */ 4625 for (i = 0; i < snes->numberreasonviews; i++) PetscCall((*snes->reasonview[i])(snes, snes->reasonviewcontext[i])); 4626 4627 /* Call PETSc default routine if users ask for it */ 4628 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_converged_reason", &viewer, &format, &flg)); 4629 if (flg) { 4630 PetscCall(PetscViewerPushFormat(viewer, format)); 4631 PetscCall(SNESConvergedReasonView(snes, viewer)); 4632 PetscCall(PetscViewerPopFormat(viewer)); 4633 PetscCall(PetscOptionsRestoreViewer(&viewer)); 4634 } 4635 incall = PETSC_FALSE; 4636 PetscFunctionReturn(PETSC_SUCCESS); 4637 } 4638 4639 /*@ 4640 SNESSolve - Solves a nonlinear system F(x) = b. 4641 4642 Collective 4643 4644 Input Parameters: 4645 + snes - the `SNES` context 4646 . b - the constant part of the equation F(x) = b, or `NULL` to use zero. 4647 - x - the solution vector. 4648 4649 Level: beginner 4650 4651 Note: 4652 The user should initialize the vector, `x`, with the initial guess 4653 for the nonlinear solve prior to calling `SNESSolve()` or use `SNESSetInitialSolution()`. In particular, 4654 to employ an initial guess of zero, the user should explicitly set 4655 this vector to zero by calling `VecSet()`. 4656 4657 .seealso: [](ch_snes), `SNES`, `SNESCreate()`, `SNESDestroy()`, `SNESSetFunction()`, `SNESSetJacobian()`, `SNESSetGridSequence()`, `SNESGetSolution()`, 4658 `SNESNewtonTRSetPreCheck()`, `SNESNewtonTRGetPreCheck()`, `SNESNewtonTRSetPostCheck()`, `SNESNewtonTRGetPostCheck()`, 4659 `SNESLineSearchSetPostCheck()`, `SNESLineSearchGetPostCheck()`, `SNESLineSearchSetPreCheck()`, `SNESLineSearchGetPreCheck()`, `SNESSetInitialSolution()` 4660 @*/ 4661 PetscErrorCode SNESSolve(SNES snes, Vec b, Vec x) 4662 { 4663 PetscBool flg; 4664 PetscInt grid; 4665 Vec xcreated = NULL; 4666 DM dm; 4667 4668 PetscFunctionBegin; 4669 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4670 if (x) PetscValidHeaderSpecific(x, VEC_CLASSID, 3); 4671 if (x) PetscCheckSameComm(snes, 1, x, 3); 4672 if (b) PetscValidHeaderSpecific(b, VEC_CLASSID, 2); 4673 if (b) PetscCheckSameComm(snes, 1, b, 2); 4674 4675 /* High level operations using the nonlinear solver */ 4676 { 4677 PetscViewer viewer; 4678 PetscViewerFormat format; 4679 PetscInt num; 4680 PetscBool flg; 4681 static PetscBool incall = PETSC_FALSE; 4682 4683 if (!incall) { 4684 /* Estimate the convergence rate of the discretization */ 4685 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_convergence_estimate", &viewer, &format, &flg)); 4686 if (flg) { 4687 PetscConvEst conv; 4688 DM dm; 4689 PetscReal *alpha; /* Convergence rate of the solution error for each field in the L_2 norm */ 4690 PetscInt Nf; 4691 4692 incall = PETSC_TRUE; 4693 PetscCall(SNESGetDM(snes, &dm)); 4694 PetscCall(DMGetNumFields(dm, &Nf)); 4695 PetscCall(PetscCalloc1(Nf, &alpha)); 4696 PetscCall(PetscConvEstCreate(PetscObjectComm((PetscObject)snes), &conv)); 4697 PetscCall(PetscConvEstSetSolver(conv, (PetscObject)snes)); 4698 PetscCall(PetscConvEstSetFromOptions(conv)); 4699 PetscCall(PetscConvEstSetUp(conv)); 4700 PetscCall(PetscConvEstGetConvRate(conv, alpha)); 4701 PetscCall(PetscViewerPushFormat(viewer, format)); 4702 PetscCall(PetscConvEstRateView(conv, alpha, viewer)); 4703 PetscCall(PetscViewerPopFormat(viewer)); 4704 PetscCall(PetscOptionsRestoreViewer(&viewer)); 4705 PetscCall(PetscConvEstDestroy(&conv)); 4706 PetscCall(PetscFree(alpha)); 4707 incall = PETSC_FALSE; 4708 } 4709 /* Adaptively refine the initial grid */ 4710 num = 1; 4711 PetscCall(PetscOptionsGetInt(NULL, ((PetscObject)snes)->prefix, "-snes_adapt_initial", &num, &flg)); 4712 if (flg) { 4713 DMAdaptor adaptor; 4714 4715 incall = PETSC_TRUE; 4716 PetscCall(DMAdaptorCreate(PetscObjectComm((PetscObject)snes), &adaptor)); 4717 PetscCall(DMAdaptorSetSolver(adaptor, snes)); 4718 PetscCall(DMAdaptorSetSequenceLength(adaptor, num)); 4719 PetscCall(DMAdaptorSetFromOptions(adaptor)); 4720 PetscCall(DMAdaptorSetUp(adaptor)); 4721 PetscCall(DMAdaptorAdapt(adaptor, x, DM_ADAPTATION_INITIAL, &dm, &x)); 4722 PetscCall(DMAdaptorDestroy(&adaptor)); 4723 incall = PETSC_FALSE; 4724 } 4725 /* Use grid sequencing to adapt */ 4726 num = 0; 4727 PetscCall(PetscOptionsGetInt(NULL, ((PetscObject)snes)->prefix, "-snes_adapt_sequence", &num, NULL)); 4728 if (num) { 4729 DMAdaptor adaptor; 4730 4731 incall = PETSC_TRUE; 4732 PetscCall(DMAdaptorCreate(PetscObjectComm((PetscObject)snes), &adaptor)); 4733 PetscCall(DMAdaptorSetSolver(adaptor, snes)); 4734 PetscCall(DMAdaptorSetSequenceLength(adaptor, num)); 4735 PetscCall(DMAdaptorSetFromOptions(adaptor)); 4736 PetscCall(DMAdaptorSetUp(adaptor)); 4737 PetscCall(DMAdaptorAdapt(adaptor, x, DM_ADAPTATION_SEQUENTIAL, &dm, &x)); 4738 PetscCall(DMAdaptorDestroy(&adaptor)); 4739 incall = PETSC_FALSE; 4740 } 4741 } 4742 } 4743 if (!x) x = snes->vec_sol; 4744 if (!x) { 4745 PetscCall(SNESGetDM(snes, &dm)); 4746 PetscCall(DMCreateGlobalVector(dm, &xcreated)); 4747 x = xcreated; 4748 } 4749 PetscCall(SNESViewFromOptions(snes, NULL, "-snes_view_pre")); 4750 4751 for (grid = 0; grid < snes->gridsequence; grid++) PetscCall(PetscViewerASCIIPushTab(PETSC_VIEWER_STDOUT_(PetscObjectComm((PetscObject)snes)))); 4752 for (grid = 0; grid < snes->gridsequence + 1; grid++) { 4753 /* set solution vector */ 4754 if (!grid) PetscCall(PetscObjectReference((PetscObject)x)); 4755 PetscCall(VecDestroy(&snes->vec_sol)); 4756 snes->vec_sol = x; 4757 PetscCall(SNESGetDM(snes, &dm)); 4758 4759 /* set affine vector if provided */ 4760 if (b) PetscCall(PetscObjectReference((PetscObject)b)); 4761 PetscCall(VecDestroy(&snes->vec_rhs)); 4762 snes->vec_rhs = b; 4763 4764 if (snes->vec_rhs) PetscCheck(snes->vec_func != snes->vec_rhs, PETSC_COMM_SELF, PETSC_ERR_ARG_IDN, "Right hand side vector cannot be function vector"); 4765 PetscCheck(snes->vec_func != snes->vec_sol, PETSC_COMM_SELF, PETSC_ERR_ARG_IDN, "Solution vector cannot be function vector"); 4766 PetscCheck(snes->vec_rhs != snes->vec_sol, PETSC_COMM_SELF, PETSC_ERR_ARG_IDN, "Solution vector cannot be right hand side vector"); 4767 if (!snes->vec_sol_update /* && snes->vec_sol */) PetscCall(VecDuplicate(snes->vec_sol, &snes->vec_sol_update)); 4768 PetscCall(DMShellSetGlobalVector(dm, snes->vec_sol)); 4769 PetscCall(SNESSetUp(snes)); 4770 4771 if (!grid) { 4772 if (snes->ops->computeinitialguess) PetscCallBack("SNES callback initial guess", (*snes->ops->computeinitialguess)(snes, snes->vec_sol, snes->initialguessP)); 4773 } 4774 4775 if (snes->conv_hist_reset) snes->conv_hist_len = 0; 4776 if (snes->counters_reset) { 4777 snes->nfuncs = 0; 4778 snes->linear_its = 0; 4779 snes->numFailures = 0; 4780 } 4781 4782 snes->reason = SNES_CONVERGED_ITERATING; 4783 PetscCall(PetscLogEventBegin(SNES_Solve, snes, 0, 0, 0)); 4784 PetscUseTypeMethod(snes, solve); 4785 PetscCall(PetscLogEventEnd(SNES_Solve, snes, 0, 0, 0)); 4786 PetscCheck(snes->reason, PETSC_COMM_SELF, PETSC_ERR_PLIB, "Internal error, solver %s returned without setting converged reason", ((PetscObject)snes)->type_name); 4787 snes->domainerror = PETSC_FALSE; /* clear the flag if it has been set */ 4788 4789 if (snes->lagjac_persist) snes->jac_iter += snes->iter; 4790 if (snes->lagpre_persist) snes->pre_iter += snes->iter; 4791 4792 PetscCall(PetscOptionsGetViewer(PetscObjectComm((PetscObject)snes), ((PetscObject)snes)->options, ((PetscObject)snes)->prefix, "-snes_test_local_min", NULL, NULL, &flg)); 4793 if (flg && !PetscPreLoadingOn) PetscCall(SNESTestLocalMin(snes)); 4794 /* Call converged reason views. This may involve user-provided viewers as well */ 4795 PetscCall(SNESConvergedReasonViewFromOptions(snes)); 4796 4797 if (snes->errorifnotconverged) PetscCheck(snes->reason >= 0, PetscObjectComm((PetscObject)snes), PETSC_ERR_NOT_CONVERGED, "SNESSolve has not converged"); 4798 if (snes->reason < 0) break; 4799 if (grid < snes->gridsequence) { 4800 DM fine; 4801 Vec xnew; 4802 Mat interp; 4803 4804 PetscCall(DMRefine(snes->dm, PetscObjectComm((PetscObject)snes), &fine)); 4805 PetscCheck(fine, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_INCOMP, "DMRefine() did not perform any refinement, cannot continue grid sequencing"); 4806 PetscCall(DMCreateInterpolation(snes->dm, fine, &interp, NULL)); 4807 PetscCall(DMCreateGlobalVector(fine, &xnew)); 4808 PetscCall(MatInterpolate(interp, x, xnew)); 4809 PetscCall(DMInterpolate(snes->dm, interp, fine)); 4810 PetscCall(MatDestroy(&interp)); 4811 x = xnew; 4812 4813 PetscCall(SNESReset(snes)); 4814 PetscCall(SNESSetDM(snes, fine)); 4815 PetscCall(SNESResetFromOptions(snes)); 4816 PetscCall(DMDestroy(&fine)); 4817 PetscCall(PetscViewerASCIIPopTab(PETSC_VIEWER_STDOUT_(PetscObjectComm((PetscObject)snes)))); 4818 } 4819 } 4820 PetscCall(SNESViewFromOptions(snes, NULL, "-snes_view")); 4821 PetscCall(VecViewFromOptions(snes->vec_sol, (PetscObject)snes, "-snes_view_solution")); 4822 PetscCall(DMMonitor(snes->dm)); 4823 PetscCall(SNESMonitorPauseFinal_Internal(snes)); 4824 4825 PetscCall(VecDestroy(&xcreated)); 4826 PetscCall(PetscObjectSAWsBlock((PetscObject)snes)); 4827 PetscFunctionReturn(PETSC_SUCCESS); 4828 } 4829 4830 /* --------- Internal routines for SNES Package --------- */ 4831 4832 /*@C 4833 SNESSetType - Sets the method for the nonlinear solver. 4834 4835 Collective 4836 4837 Input Parameters: 4838 + snes - the `SNES` context 4839 - type - a known method 4840 4841 Options Database Key: 4842 . -snes_type <type> - Sets the method; use -help for a list 4843 of available methods (for instance, newtonls or newtontr) 4844 4845 Level: intermediate 4846 4847 Notes: 4848 See "petsc/include/petscsnes.h" for available methods (for instance) 4849 + `SNESNEWTONLS` - Newton's method with line search 4850 (systems of nonlinear equations) 4851 - `SNESNEWTONTR` - Newton's method with trust region 4852 (systems of nonlinear equations) 4853 4854 Normally, it is best to use the `SNESSetFromOptions()` command and then 4855 set the `SNES` solver type from the options database rather than by using 4856 this routine. Using the options database provides the user with 4857 maximum flexibility in evaluating the many nonlinear solvers. 4858 The `SNESSetType()` routine is provided for those situations where it 4859 is necessary to set the nonlinear solver independently of the command 4860 line or options database. This might be the case, for example, when 4861 the choice of solver changes during the execution of the program, 4862 and the user's application is taking responsibility for choosing the 4863 appropriate method. 4864 4865 Developer Note: 4866 `SNESRegister()` adds a constructor for a new `SNESType` to `SNESList`, `SNESSetType()` locates 4867 the constructor in that list and calls it to create the specific object. 4868 4869 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESType`, `SNESCreate()`, `SNESDestroy()`, `SNESGetType()`, `SNESSetFromOptions()` 4870 @*/ 4871 PetscErrorCode SNESSetType(SNES snes, SNESType type) 4872 { 4873 PetscBool match; 4874 PetscErrorCode (*r)(SNES); 4875 4876 PetscFunctionBegin; 4877 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4878 PetscAssertPointer(type, 2); 4879 4880 PetscCall(PetscObjectTypeCompare((PetscObject)snes, type, &match)); 4881 if (match) PetscFunctionReturn(PETSC_SUCCESS); 4882 4883 PetscCall(PetscFunctionListFind(SNESList, type, &r)); 4884 PetscCheck(r, PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_UNKNOWN_TYPE, "Unable to find requested SNES type %s", type); 4885 /* Destroy the previous private SNES context */ 4886 PetscTryTypeMethod(snes, destroy); 4887 /* Reinitialize function pointers in SNESOps structure */ 4888 snes->ops->setup = NULL; 4889 snes->ops->solve = NULL; 4890 snes->ops->view = NULL; 4891 snes->ops->setfromoptions = NULL; 4892 snes->ops->destroy = NULL; 4893 4894 /* It may happen the user has customized the line search before calling SNESSetType */ 4895 if (((PetscObject)snes)->type_name) PetscCall(SNESLineSearchDestroy(&snes->linesearch)); 4896 4897 /* Call the SNESCreate_XXX routine for this particular Nonlinear solver */ 4898 snes->setupcalled = PETSC_FALSE; 4899 4900 PetscCall(PetscObjectChangeTypeName((PetscObject)snes, type)); 4901 PetscCall((*r)(snes)); 4902 PetscFunctionReturn(PETSC_SUCCESS); 4903 } 4904 4905 /*@C 4906 SNESGetType - Gets the `SNES` method type and name (as a string). 4907 4908 Not Collective 4909 4910 Input Parameter: 4911 . snes - nonlinear solver context 4912 4913 Output Parameter: 4914 . type - `SNES` method (a character string) 4915 4916 Level: intermediate 4917 4918 .seealso: [](ch_snes), `SNESSetType()`, `SNESType`, `SNESSetFromOptions()`, `SNES` 4919 @*/ 4920 PetscErrorCode SNESGetType(SNES snes, SNESType *type) 4921 { 4922 PetscFunctionBegin; 4923 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4924 PetscAssertPointer(type, 2); 4925 *type = ((PetscObject)snes)->type_name; 4926 PetscFunctionReturn(PETSC_SUCCESS); 4927 } 4928 4929 /*@ 4930 SNESSetSolution - Sets the solution vector for use by the `SNES` routines. 4931 4932 Logically Collective 4933 4934 Input Parameters: 4935 + snes - the `SNES` context obtained from `SNESCreate()` 4936 - u - the solution vector 4937 4938 Level: beginner 4939 4940 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESGetSolution()`, `Vec` 4941 @*/ 4942 PetscErrorCode SNESSetSolution(SNES snes, Vec u) 4943 { 4944 DM dm; 4945 4946 PetscFunctionBegin; 4947 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4948 PetscValidHeaderSpecific(u, VEC_CLASSID, 2); 4949 PetscCall(PetscObjectReference((PetscObject)u)); 4950 PetscCall(VecDestroy(&snes->vec_sol)); 4951 4952 snes->vec_sol = u; 4953 4954 PetscCall(SNESGetDM(snes, &dm)); 4955 PetscCall(DMShellSetGlobalVector(dm, u)); 4956 PetscFunctionReturn(PETSC_SUCCESS); 4957 } 4958 4959 /*@ 4960 SNESGetSolution - Returns the vector where the approximate solution is 4961 stored. This is the fine grid solution when using `SNESSetGridSequence()`. 4962 4963 Not Collective, but `x` is parallel if `snes` is parallel 4964 4965 Input Parameter: 4966 . snes - the `SNES` context 4967 4968 Output Parameter: 4969 . x - the solution 4970 4971 Level: intermediate 4972 4973 .seealso: [](ch_snes), `SNESSetSolution()`, `SNESSolve()`, `SNES`, `SNESGetSolutionUpdate()`, `SNESGetFunction()` 4974 @*/ 4975 PetscErrorCode SNESGetSolution(SNES snes, Vec *x) 4976 { 4977 PetscFunctionBegin; 4978 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 4979 PetscAssertPointer(x, 2); 4980 *x = snes->vec_sol; 4981 PetscFunctionReturn(PETSC_SUCCESS); 4982 } 4983 4984 /*@ 4985 SNESGetSolutionUpdate - Returns the vector where the solution update is 4986 stored. 4987 4988 Not Collective, but `x` is parallel if `snes` is parallel 4989 4990 Input Parameter: 4991 . snes - the `SNES` context 4992 4993 Output Parameter: 4994 . x - the solution update 4995 4996 Level: advanced 4997 4998 .seealso: [](ch_snes), `SNES`, `SNESGetSolution()`, `SNESGetFunction()` 4999 @*/ 5000 PetscErrorCode SNESGetSolutionUpdate(SNES snes, Vec *x) 5001 { 5002 PetscFunctionBegin; 5003 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5004 PetscAssertPointer(x, 2); 5005 *x = snes->vec_sol_update; 5006 PetscFunctionReturn(PETSC_SUCCESS); 5007 } 5008 5009 /*@C 5010 SNESGetFunction - Returns the function that defines the nonlinear system set with `SNESSetFunction()` 5011 5012 Not Collective, but `r` is parallel if `snes` is parallel. Collective if `r` is requested, but has not been created yet. 5013 5014 Input Parameter: 5015 . snes - the `SNES` context 5016 5017 Output Parameters: 5018 + r - the vector that is used to store residuals (or `NULL` if you don't want it) 5019 . f - the function (or `NULL` if you don't want it); for calling sequence see `SNESFunction` 5020 - ctx - the function context (or `NULL` if you don't want it) 5021 5022 Level: advanced 5023 5024 Note: 5025 The vector `r` DOES NOT, in general, contain the current value of the `SNES` nonlinear function 5026 5027 .seealso: [](ch_snes), `SNES`, `SNESSolve()`, `SNESSetFunction()`, `SNESGetSolution()`, `SNESFunction` 5028 @*/ 5029 PetscErrorCode SNESGetFunction(SNES snes, Vec *r, PetscErrorCode (**f)(SNES, Vec, Vec, void *), void **ctx) 5030 { 5031 DM dm; 5032 5033 PetscFunctionBegin; 5034 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5035 if (r) { 5036 if (!snes->vec_func) { 5037 if (snes->vec_rhs) { 5038 PetscCall(VecDuplicate(snes->vec_rhs, &snes->vec_func)); 5039 } else if (snes->vec_sol) { 5040 PetscCall(VecDuplicate(snes->vec_sol, &snes->vec_func)); 5041 } else if (snes->dm) { 5042 PetscCall(DMCreateGlobalVector(snes->dm, &snes->vec_func)); 5043 } 5044 } 5045 *r = snes->vec_func; 5046 } 5047 PetscCall(SNESGetDM(snes, &dm)); 5048 PetscCall(DMSNESGetFunction(dm, f, ctx)); 5049 PetscFunctionReturn(PETSC_SUCCESS); 5050 } 5051 5052 /*@C 5053 SNESGetNGS - Returns the function and context set with `SNESSetNGS()` 5054 5055 Input Parameter: 5056 . snes - the `SNES` context 5057 5058 Output Parameters: 5059 + f - the function (or `NULL`) see `SNESSetNGS()` for details 5060 - ctx - the function context (or `NULL`) 5061 5062 Level: advanced 5063 5064 .seealso: [](ch_snes), `SNESSetNGS()`, `SNESGetFunction()` 5065 @*/ 5066 PetscErrorCode SNESGetNGS(SNES snes, PetscErrorCode (**f)(SNES, Vec, Vec, void *), void **ctx) 5067 { 5068 DM dm; 5069 5070 PetscFunctionBegin; 5071 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5072 PetscCall(SNESGetDM(snes, &dm)); 5073 PetscCall(DMSNESGetNGS(dm, f, ctx)); 5074 PetscFunctionReturn(PETSC_SUCCESS); 5075 } 5076 5077 /*@C 5078 SNESSetOptionsPrefix - Sets the prefix used for searching for all 5079 `SNES` options in the database. 5080 5081 Logically Collective 5082 5083 Input Parameters: 5084 + snes - the `SNES` context 5085 - prefix - the prefix to prepend to all option names 5086 5087 Level: advanced 5088 5089 Note: 5090 A hyphen (-) must NOT be given at the beginning of the prefix name. 5091 The first character of all runtime options is AUTOMATICALLY the hyphen. 5092 5093 .seealso: [](ch_snes), `SNES`, `SNESSetFromOptions()`, `SNESAppendOptionsPrefix()` 5094 @*/ 5095 PetscErrorCode SNESSetOptionsPrefix(SNES snes, const char prefix[]) 5096 { 5097 PetscFunctionBegin; 5098 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5099 PetscCall(PetscObjectSetOptionsPrefix((PetscObject)snes, prefix)); 5100 if (!snes->ksp) PetscCall(SNESGetKSP(snes, &snes->ksp)); 5101 if (snes->linesearch) { 5102 PetscCall(SNESGetLineSearch(snes, &snes->linesearch)); 5103 PetscCall(PetscObjectSetOptionsPrefix((PetscObject)snes->linesearch, prefix)); 5104 } 5105 PetscCall(KSPSetOptionsPrefix(snes->ksp, prefix)); 5106 PetscFunctionReturn(PETSC_SUCCESS); 5107 } 5108 5109 /*@C 5110 SNESAppendOptionsPrefix - Appends to the prefix used for searching for all 5111 `SNES` options in the database. 5112 5113 Logically Collective 5114 5115 Input Parameters: 5116 + snes - the `SNES` context 5117 - prefix - the prefix to prepend to all option names 5118 5119 Level: advanced 5120 5121 Note: 5122 A hyphen (-) must NOT be given at the beginning of the prefix name. 5123 The first character of all runtime options is AUTOMATICALLY the hyphen. 5124 5125 .seealso: [](ch_snes), `SNESGetOptionsPrefix()`, `SNESSetOptionsPrefix()` 5126 @*/ 5127 PetscErrorCode SNESAppendOptionsPrefix(SNES snes, const char prefix[]) 5128 { 5129 PetscFunctionBegin; 5130 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5131 PetscCall(PetscObjectAppendOptionsPrefix((PetscObject)snes, prefix)); 5132 if (!snes->ksp) PetscCall(SNESGetKSP(snes, &snes->ksp)); 5133 if (snes->linesearch) { 5134 PetscCall(SNESGetLineSearch(snes, &snes->linesearch)); 5135 PetscCall(PetscObjectAppendOptionsPrefix((PetscObject)snes->linesearch, prefix)); 5136 } 5137 PetscCall(KSPAppendOptionsPrefix(snes->ksp, prefix)); 5138 PetscFunctionReturn(PETSC_SUCCESS); 5139 } 5140 5141 /*@C 5142 SNESGetOptionsPrefix - Gets the prefix used for searching for all 5143 `SNES` options in the database. 5144 5145 Not Collective 5146 5147 Input Parameter: 5148 . snes - the `SNES` context 5149 5150 Output Parameter: 5151 . prefix - pointer to the prefix string used 5152 5153 Level: advanced 5154 5155 Fortran Note: 5156 The user should pass in a string 'prefix' of 5157 sufficient length to hold the prefix. 5158 5159 .seealso: [](ch_snes), `SNES`, `SNESSetOptionsPrefix()`, `SNESAppendOptionsPrefix()` 5160 @*/ 5161 PetscErrorCode SNESGetOptionsPrefix(SNES snes, const char *prefix[]) 5162 { 5163 PetscFunctionBegin; 5164 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5165 PetscCall(PetscObjectGetOptionsPrefix((PetscObject)snes, prefix)); 5166 PetscFunctionReturn(PETSC_SUCCESS); 5167 } 5168 5169 /*@C 5170 SNESRegister - Adds a method to the nonlinear solver package. 5171 5172 Not Collective 5173 5174 Input Parameters: 5175 + sname - name of a new user-defined solver 5176 - function - routine to create method context 5177 5178 Level: advanced 5179 5180 Note: 5181 `SNESRegister()` may be called multiple times to add several user-defined solvers. 5182 5183 Example Usage: 5184 .vb 5185 SNESRegister("my_solver", MySolverCreate); 5186 .ve 5187 5188 Then, your solver can be chosen with the procedural interface via 5189 $ SNESSetType(snes, "my_solver") 5190 or at runtime via the option 5191 $ -snes_type my_solver 5192 5193 .seealso: [](ch_snes), `SNESRegisterAll()`, `SNESRegisterDestroy()` 5194 @*/ 5195 PetscErrorCode SNESRegister(const char sname[], PetscErrorCode (*function)(SNES)) 5196 { 5197 PetscFunctionBegin; 5198 PetscCall(SNESInitializePackage()); 5199 PetscCall(PetscFunctionListAdd(&SNESList, sname, function)); 5200 PetscFunctionReturn(PETSC_SUCCESS); 5201 } 5202 5203 PetscErrorCode SNESTestLocalMin(SNES snes) 5204 { 5205 PetscInt N, i, j; 5206 Vec u, uh, fh; 5207 PetscScalar value; 5208 PetscReal norm; 5209 5210 PetscFunctionBegin; 5211 PetscCall(SNESGetSolution(snes, &u)); 5212 PetscCall(VecDuplicate(u, &uh)); 5213 PetscCall(VecDuplicate(u, &fh)); 5214 5215 /* currently only works for sequential */ 5216 PetscCall(PetscPrintf(PetscObjectComm((PetscObject)snes), "Testing FormFunction() for local min\n")); 5217 PetscCall(VecGetSize(u, &N)); 5218 for (i = 0; i < N; i++) { 5219 PetscCall(VecCopy(u, uh)); 5220 PetscCall(PetscPrintf(PetscObjectComm((PetscObject)snes), "i = %" PetscInt_FMT "\n", i)); 5221 for (j = -10; j < 11; j++) { 5222 value = PetscSign(j) * PetscExpReal(PetscAbs(j) - 10.0); 5223 PetscCall(VecSetValue(uh, i, value, ADD_VALUES)); 5224 PetscCall(SNESComputeFunction(snes, uh, fh)); 5225 PetscCall(VecNorm(fh, NORM_2, &norm)); 5226 PetscCall(PetscPrintf(PetscObjectComm((PetscObject)snes), " j norm %" PetscInt_FMT " %18.16e\n", j, (double)norm)); 5227 value = -value; 5228 PetscCall(VecSetValue(uh, i, value, ADD_VALUES)); 5229 } 5230 } 5231 PetscCall(VecDestroy(&uh)); 5232 PetscCall(VecDestroy(&fh)); 5233 PetscFunctionReturn(PETSC_SUCCESS); 5234 } 5235 5236 /*@ 5237 SNESKSPSetUseEW - Sets `SNES` to the use Eisenstat-Walker method for 5238 computing relative tolerance for linear solvers within an inexact 5239 Newton method. 5240 5241 Logically Collective 5242 5243 Input Parameters: 5244 + snes - `SNES` context 5245 - flag - `PETSC_TRUE` or `PETSC_FALSE` 5246 5247 Options Database Keys: 5248 + -snes_ksp_ew - use Eisenstat-Walker method for determining linear system convergence 5249 . -snes_ksp_ew_version ver - version of Eisenstat-Walker method 5250 . -snes_ksp_ew_rtol0 <rtol0> - Sets rtol0 5251 . -snes_ksp_ew_rtolmax <rtolmax> - Sets rtolmax 5252 . -snes_ksp_ew_gamma <gamma> - Sets gamma 5253 . -snes_ksp_ew_alpha <alpha> - Sets alpha 5254 . -snes_ksp_ew_alpha2 <alpha2> - Sets alpha2 5255 - -snes_ksp_ew_threshold <threshold> - Sets threshold 5256 5257 Level: advanced 5258 5259 Note: 5260 The default is to use a constant relative tolerance for 5261 the inner linear solvers. Alternatively, one can use the 5262 Eisenstat-Walker method {cite}`ew96`, where the relative convergence tolerance 5263 is reset at each Newton iteration according progress of the nonlinear 5264 solver. 5265 5266 .seealso: [](ch_snes), `KSP`, `SNES`, `SNESKSPGetUseEW()`, `SNESKSPGetParametersEW()`, `SNESKSPSetParametersEW()` 5267 @*/ 5268 PetscErrorCode SNESKSPSetUseEW(SNES snes, PetscBool flag) 5269 { 5270 PetscFunctionBegin; 5271 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5272 PetscValidLogicalCollectiveBool(snes, flag, 2); 5273 snes->ksp_ewconv = flag; 5274 PetscFunctionReturn(PETSC_SUCCESS); 5275 } 5276 5277 /*@ 5278 SNESKSPGetUseEW - Gets if `SNES` is using Eisenstat-Walker method 5279 for computing relative tolerance for linear solvers within an 5280 inexact Newton method. 5281 5282 Not Collective 5283 5284 Input Parameter: 5285 . snes - `SNES` context 5286 5287 Output Parameter: 5288 . flag - `PETSC_TRUE` or `PETSC_FALSE` 5289 5290 Level: advanced 5291 5292 .seealso: [](ch_snes), `SNESKSPSetUseEW()`, `SNESKSPGetParametersEW()`, `SNESKSPSetParametersEW()` 5293 @*/ 5294 PetscErrorCode SNESKSPGetUseEW(SNES snes, PetscBool *flag) 5295 { 5296 PetscFunctionBegin; 5297 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5298 PetscAssertPointer(flag, 2); 5299 *flag = snes->ksp_ewconv; 5300 PetscFunctionReturn(PETSC_SUCCESS); 5301 } 5302 5303 /*@ 5304 SNESKSPSetParametersEW - Sets parameters for Eisenstat-Walker 5305 convergence criteria for the linear solvers within an inexact 5306 Newton method. 5307 5308 Logically Collective 5309 5310 Input Parameters: 5311 + snes - `SNES` context 5312 . version - version 1, 2 (default is 2), 3 or 4 5313 . rtol_0 - initial relative tolerance (0 <= rtol_0 < 1) 5314 . rtol_max - maximum relative tolerance (0 <= rtol_max < 1) 5315 . gamma - multiplicative factor for version 2 rtol computation 5316 (0 <= gamma2 <= 1) 5317 . alpha - power for version 2 rtol computation (1 < alpha <= 2) 5318 . alpha2 - power for safeguard 5319 - threshold - threshold for imposing safeguard (0 < threshold < 1) 5320 5321 Level: advanced 5322 5323 Notes: 5324 Version 3 was contributed by Luis Chacon, June 2006. 5325 5326 Use `PETSC_DEFAULT` to retain the default for any of the parameters. 5327 5328 .seealso: [](ch_snes), `SNES`, `SNESKSPSetUseEW()`, `SNESKSPGetUseEW()`, `SNESKSPGetParametersEW()` 5329 @*/ 5330 PetscErrorCode SNESKSPSetParametersEW(SNES snes, PetscInt version, PetscReal rtol_0, PetscReal rtol_max, PetscReal gamma, PetscReal alpha, PetscReal alpha2, PetscReal threshold) 5331 { 5332 SNESKSPEW *kctx; 5333 5334 PetscFunctionBegin; 5335 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5336 kctx = (SNESKSPEW *)snes->kspconvctx; 5337 PetscCheck(kctx, PETSC_COMM_SELF, PETSC_ERR_ARG_WRONGSTATE, "No Eisenstat-Walker context existing"); 5338 PetscValidLogicalCollectiveInt(snes, version, 2); 5339 PetscValidLogicalCollectiveReal(snes, rtol_0, 3); 5340 PetscValidLogicalCollectiveReal(snes, rtol_max, 4); 5341 PetscValidLogicalCollectiveReal(snes, gamma, 5); 5342 PetscValidLogicalCollectiveReal(snes, alpha, 6); 5343 PetscValidLogicalCollectiveReal(snes, alpha2, 7); 5344 PetscValidLogicalCollectiveReal(snes, threshold, 8); 5345 5346 if (version != PETSC_DEFAULT) kctx->version = version; 5347 if (rtol_0 != (PetscReal)PETSC_DEFAULT) kctx->rtol_0 = rtol_0; 5348 if (rtol_max != (PetscReal)PETSC_DEFAULT) kctx->rtol_max = rtol_max; 5349 if (gamma != (PetscReal)PETSC_DEFAULT) kctx->gamma = gamma; 5350 if (alpha != (PetscReal)PETSC_DEFAULT) kctx->alpha = alpha; 5351 if (alpha2 != (PetscReal)PETSC_DEFAULT) kctx->alpha2 = alpha2; 5352 if (threshold != (PetscReal)PETSC_DEFAULT) kctx->threshold = threshold; 5353 5354 PetscCheck(kctx->version >= 1 && kctx->version <= 4, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Only versions 1 to 4 are supported: %" PetscInt_FMT, kctx->version); 5355 PetscCheck(kctx->rtol_0 >= 0.0 && kctx->rtol_0 < 1.0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "0.0 <= rtol_0 < 1.0: %g", (double)kctx->rtol_0); 5356 PetscCheck(kctx->rtol_max >= 0.0 && kctx->rtol_max < 1.0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "0.0 <= rtol_max (%g) < 1.0", (double)kctx->rtol_max); 5357 PetscCheck(kctx->gamma >= 0.0 && kctx->gamma <= 1.0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "0.0 <= gamma (%g) <= 1.0", (double)kctx->gamma); 5358 PetscCheck(kctx->alpha > 1.0 && kctx->alpha <= 2.0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "1.0 < alpha (%g) <= 2.0", (double)kctx->alpha); 5359 PetscCheck(kctx->threshold > 0.0 && kctx->threshold < 1.0, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "0.0 < threshold (%g) < 1.0", (double)kctx->threshold); 5360 PetscFunctionReturn(PETSC_SUCCESS); 5361 } 5362 5363 /*@ 5364 SNESKSPGetParametersEW - Gets parameters for Eisenstat-Walker 5365 convergence criteria for the linear solvers within an inexact 5366 Newton method. 5367 5368 Not Collective 5369 5370 Input Parameter: 5371 . snes - `SNES` context 5372 5373 Output Parameters: 5374 + version - version 1, 2 (default is 2), 3 or 4 5375 . rtol_0 - initial relative tolerance (0 <= rtol_0 < 1) 5376 . rtol_max - maximum relative tolerance (0 <= rtol_max < 1) 5377 . gamma - multiplicative factor for version 2 rtol computation (0 <= gamma2 <= 1) 5378 . alpha - power for version 2 rtol computation (1 < alpha <= 2) 5379 . alpha2 - power for safeguard 5380 - threshold - threshold for imposing safeguard (0 < threshold < 1) 5381 5382 Level: advanced 5383 5384 .seealso: [](ch_snes), `SNES`, `SNESKSPSetUseEW()`, `SNESKSPGetUseEW()`, `SNESKSPSetParametersEW()` 5385 @*/ 5386 PetscErrorCode SNESKSPGetParametersEW(SNES snes, PetscInt *version, PetscReal *rtol_0, PetscReal *rtol_max, PetscReal *gamma, PetscReal *alpha, PetscReal *alpha2, PetscReal *threshold) 5387 { 5388 SNESKSPEW *kctx; 5389 5390 PetscFunctionBegin; 5391 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5392 kctx = (SNESKSPEW *)snes->kspconvctx; 5393 PetscCheck(kctx, PETSC_COMM_SELF, PETSC_ERR_ARG_WRONGSTATE, "No Eisenstat-Walker context existing"); 5394 if (version) *version = kctx->version; 5395 if (rtol_0) *rtol_0 = kctx->rtol_0; 5396 if (rtol_max) *rtol_max = kctx->rtol_max; 5397 if (gamma) *gamma = kctx->gamma; 5398 if (alpha) *alpha = kctx->alpha; 5399 if (alpha2) *alpha2 = kctx->alpha2; 5400 if (threshold) *threshold = kctx->threshold; 5401 PetscFunctionReturn(PETSC_SUCCESS); 5402 } 5403 5404 PetscErrorCode KSPPreSolve_SNESEW(KSP ksp, Vec b, Vec x, void *ctx) 5405 { 5406 SNES snes = (SNES)ctx; 5407 SNESKSPEW *kctx = (SNESKSPEW *)snes->kspconvctx; 5408 PetscReal rtol = PETSC_DEFAULT, stol; 5409 5410 PetscFunctionBegin; 5411 if (!snes->ksp_ewconv) PetscFunctionReturn(PETSC_SUCCESS); 5412 if (!snes->iter) { 5413 rtol = kctx->rtol_0; /* first time in, so use the original user rtol */ 5414 PetscCall(VecNorm(snes->vec_func, NORM_2, &kctx->norm_first)); 5415 } else { 5416 PetscCheck(kctx->version >= 1 && kctx->version <= 4, PETSC_COMM_SELF, PETSC_ERR_ARG_OUTOFRANGE, "Only versions 1-4 are supported: %" PetscInt_FMT, kctx->version); 5417 if (kctx->version == 1) { 5418 rtol = PetscAbsReal(snes->norm - kctx->lresid_last) / kctx->norm_last; 5419 stol = PetscPowReal(kctx->rtol_last, kctx->alpha2); 5420 if (stol > kctx->threshold) rtol = PetscMax(rtol, stol); 5421 } else if (kctx->version == 2) { 5422 rtol = kctx->gamma * PetscPowReal(snes->norm / kctx->norm_last, kctx->alpha); 5423 stol = kctx->gamma * PetscPowReal(kctx->rtol_last, kctx->alpha); 5424 if (stol > kctx->threshold) rtol = PetscMax(rtol, stol); 5425 } else if (kctx->version == 3) { /* contributed by Luis Chacon, June 2006. */ 5426 rtol = kctx->gamma * PetscPowReal(snes->norm / kctx->norm_last, kctx->alpha); 5427 /* safeguard: avoid sharp decrease of rtol */ 5428 stol = kctx->gamma * PetscPowReal(kctx->rtol_last, kctx->alpha); 5429 stol = PetscMax(rtol, stol); 5430 rtol = PetscMin(kctx->rtol_0, stol); 5431 /* safeguard: avoid oversolving */ 5432 stol = kctx->gamma * (kctx->norm_first * snes->rtol) / snes->norm; 5433 stol = PetscMax(rtol, stol); 5434 rtol = PetscMin(kctx->rtol_0, stol); 5435 } else /* if (kctx->version == 4) */ { 5436 /* H.-B. An et al. Journal of Computational and Applied Mathematics 200 (2007) 47-60 */ 5437 PetscReal ared = PetscAbsReal(kctx->norm_last - snes->norm); 5438 PetscReal pred = PetscAbsReal(kctx->norm_last - kctx->lresid_last); 5439 PetscReal rk = ared / pred; 5440 if (rk < kctx->v4_p1) rtol = 1. - 2. * kctx->v4_p1; 5441 else if (rk < kctx->v4_p2) rtol = kctx->rtol_last; 5442 else if (rk < kctx->v4_p3) rtol = kctx->v4_m1 * kctx->rtol_last; 5443 else rtol = kctx->v4_m2 * kctx->rtol_last; 5444 5445 if (kctx->rtol_last_2 > kctx->v4_m3 && kctx->rtol_last > kctx->v4_m3 && kctx->rk_last_2 < kctx->v4_p1 && kctx->rk_last < kctx->v4_p1) rtol = kctx->v4_m4 * kctx->rtol_last; 5446 kctx->rtol_last_2 = kctx->rtol_last; 5447 kctx->rk_last_2 = kctx->rk_last; 5448 kctx->rk_last = rk; 5449 } 5450 } 5451 /* safeguard: avoid rtol greater than rtol_max */ 5452 rtol = PetscMin(rtol, kctx->rtol_max); 5453 PetscCall(KSPSetTolerances(ksp, rtol, PETSC_DEFAULT, PETSC_DEFAULT, PETSC_DEFAULT)); 5454 PetscCall(PetscInfo(snes, "iter %" PetscInt_FMT ", Eisenstat-Walker (version %" PetscInt_FMT ") KSP rtol=%g\n", snes->iter, kctx->version, (double)rtol)); 5455 PetscFunctionReturn(PETSC_SUCCESS); 5456 } 5457 5458 PetscErrorCode KSPPostSolve_SNESEW(KSP ksp, Vec b, Vec x, void *ctx) 5459 { 5460 SNES snes = (SNES)ctx; 5461 SNESKSPEW *kctx = (SNESKSPEW *)snes->kspconvctx; 5462 PCSide pcside; 5463 Vec lres; 5464 5465 PetscFunctionBegin; 5466 if (!snes->ksp_ewconv) PetscFunctionReturn(PETSC_SUCCESS); 5467 PetscCall(KSPGetTolerances(ksp, &kctx->rtol_last, NULL, NULL, NULL)); 5468 kctx->norm_last = snes->norm; 5469 if (kctx->version == 1 || kctx->version == 4) { 5470 PC pc; 5471 PetscBool getRes; 5472 5473 PetscCall(KSPGetPC(ksp, &pc)); 5474 PetscCall(PetscObjectTypeCompare((PetscObject)pc, PCNONE, &getRes)); 5475 if (!getRes) { 5476 KSPNormType normtype; 5477 5478 PetscCall(KSPGetNormType(ksp, &normtype)); 5479 getRes = (PetscBool)(normtype == KSP_NORM_UNPRECONDITIONED); 5480 } 5481 PetscCall(KSPGetPCSide(ksp, &pcside)); 5482 if (pcside == PC_RIGHT || getRes) { /* KSP residual is true linear residual */ 5483 PetscCall(KSPGetResidualNorm(ksp, &kctx->lresid_last)); 5484 } else { 5485 /* KSP residual is preconditioned residual */ 5486 /* compute true linear residual norm */ 5487 Mat J; 5488 PetscCall(KSPGetOperators(ksp, &J, NULL)); 5489 PetscCall(VecDuplicate(b, &lres)); 5490 PetscCall(MatMult(J, x, lres)); 5491 PetscCall(VecAYPX(lres, -1.0, b)); 5492 PetscCall(VecNorm(lres, NORM_2, &kctx->lresid_last)); 5493 PetscCall(VecDestroy(&lres)); 5494 } 5495 } 5496 PetscFunctionReturn(PETSC_SUCCESS); 5497 } 5498 5499 /*@ 5500 SNESGetKSP - Returns the `KSP` context for a `SNES` solver. 5501 5502 Not Collective, but if `snes` is parallel, then `ksp` is parallel 5503 5504 Input Parameter: 5505 . snes - the `SNES` context 5506 5507 Output Parameter: 5508 . ksp - the `KSP` context 5509 5510 Level: beginner 5511 5512 Notes: 5513 The user can then directly manipulate the `KSP` context to set various 5514 options, etc. Likewise, the user can then extract and manipulate the 5515 `PC` contexts as well. 5516 5517 Some `SNESType`s do not use a `KSP` but a `KSP` is still returned by this function 5518 5519 .seealso: [](ch_snes), `SNES`, `KSP`, `PC`, `KSPGetPC()`, `SNESCreate()`, `KSPCreate()`, `SNESSetKSP()` 5520 @*/ 5521 PetscErrorCode SNESGetKSP(SNES snes, KSP *ksp) 5522 { 5523 PetscFunctionBegin; 5524 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5525 PetscAssertPointer(ksp, 2); 5526 5527 if (!snes->ksp) { 5528 PetscCall(KSPCreate(PetscObjectComm((PetscObject)snes), &snes->ksp)); 5529 PetscCall(PetscObjectIncrementTabLevel((PetscObject)snes->ksp, (PetscObject)snes, 1)); 5530 5531 PetscCall(KSPSetPreSolve(snes->ksp, KSPPreSolve_SNESEW, snes)); 5532 PetscCall(KSPSetPostSolve(snes->ksp, KSPPostSolve_SNESEW, snes)); 5533 5534 PetscCall(KSPMonitorSetFromOptions(snes->ksp, "-snes_monitor_ksp", "snes_preconditioned_residual", snes)); 5535 PetscCall(PetscObjectSetOptions((PetscObject)snes->ksp, ((PetscObject)snes)->options)); 5536 } 5537 *ksp = snes->ksp; 5538 PetscFunctionReturn(PETSC_SUCCESS); 5539 } 5540 5541 #include <petsc/private/dmimpl.h> 5542 /*@ 5543 SNESSetDM - Sets the `DM` that may be used by some nonlinear solvers or their underlying preconditioners 5544 5545 Logically Collective 5546 5547 Input Parameters: 5548 + snes - the nonlinear solver context 5549 - dm - the `DM`, cannot be `NULL` 5550 5551 Level: intermediate 5552 5553 Note: 5554 A `DM` can only be used for solving one problem at a time because information about the problem is stored on the `DM`, 5555 even when not using interfaces like `DMSNESSetFunction()`. Use `DMClone()` to get a distinct `DM` when solving different 5556 problems using the same function space. 5557 5558 .seealso: [](ch_snes), `DM`, `SNES`, `SNESGetDM()`, `KSPSetDM()`, `KSPGetDM()` 5559 @*/ 5560 PetscErrorCode SNESSetDM(SNES snes, DM dm) 5561 { 5562 KSP ksp; 5563 DMSNES sdm; 5564 5565 PetscFunctionBegin; 5566 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5567 PetscValidHeaderSpecific(dm, DM_CLASSID, 2); 5568 PetscCall(PetscObjectReference((PetscObject)dm)); 5569 if (snes->dm) { /* Move the DMSNES context over to the new DM unless the new DM already has one */ 5570 if (snes->dm->dmsnes && !dm->dmsnes) { 5571 PetscCall(DMCopyDMSNES(snes->dm, dm)); 5572 PetscCall(DMGetDMSNES(snes->dm, &sdm)); 5573 if (sdm->originaldm == snes->dm) sdm->originaldm = dm; /* Grant write privileges to the replacement DM */ 5574 } 5575 PetscCall(DMCoarsenHookRemove(snes->dm, DMCoarsenHook_SNESVecSol, DMRestrictHook_SNESVecSol, snes)); 5576 PetscCall(DMDestroy(&snes->dm)); 5577 } 5578 snes->dm = dm; 5579 snes->dmAuto = PETSC_FALSE; 5580 5581 PetscCall(SNESGetKSP(snes, &ksp)); 5582 PetscCall(KSPSetDM(ksp, dm)); 5583 PetscCall(KSPSetDMActive(ksp, PETSC_FALSE)); 5584 if (snes->npc) { 5585 PetscCall(SNESSetDM(snes->npc, snes->dm)); 5586 PetscCall(SNESSetNPCSide(snes, snes->npcside)); 5587 } 5588 PetscFunctionReturn(PETSC_SUCCESS); 5589 } 5590 5591 /*@ 5592 SNESGetDM - Gets the `DM` that may be used by some solvers/preconditioners 5593 5594 Not Collective but dm obtained is parallel on snes 5595 5596 Input Parameter: 5597 . snes - the `SNES` context 5598 5599 Output Parameter: 5600 . dm - the `DM` 5601 5602 Level: intermediate 5603 5604 .seealso: [](ch_snes), `DM`, `SNES`, `SNESSetDM()`, `KSPSetDM()`, `KSPGetDM()` 5605 @*/ 5606 PetscErrorCode SNESGetDM(SNES snes, DM *dm) 5607 { 5608 PetscFunctionBegin; 5609 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5610 if (!snes->dm) { 5611 PetscCall(DMShellCreate(PetscObjectComm((PetscObject)snes), &snes->dm)); 5612 snes->dmAuto = PETSC_TRUE; 5613 } 5614 *dm = snes->dm; 5615 PetscFunctionReturn(PETSC_SUCCESS); 5616 } 5617 5618 /*@ 5619 SNESSetNPC - Sets the nonlinear preconditioner to be used. 5620 5621 Collective 5622 5623 Input Parameters: 5624 + snes - iterative context obtained from `SNESCreate()` 5625 - npc - the nonlinear preconditioner object 5626 5627 Level: developer 5628 5629 Notes: 5630 Use `SNESGetNPC()` to retrieve the preconditioner context (for example, 5631 to configure it using the API). 5632 5633 Only some `SNESType` can use a nonlinear preconditioner 5634 5635 .seealso: [](ch_snes), `SNES`, `SNESNGS`, `SNESFAS`, `SNESGetNPC()`, `SNESHasNPC()` 5636 @*/ 5637 PetscErrorCode SNESSetNPC(SNES snes, SNES npc) 5638 { 5639 PetscFunctionBegin; 5640 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5641 PetscValidHeaderSpecific(npc, SNES_CLASSID, 2); 5642 PetscCheckSameComm(snes, 1, npc, 2); 5643 PetscCall(PetscObjectReference((PetscObject)npc)); 5644 PetscCall(SNESDestroy(&snes->npc)); 5645 snes->npc = npc; 5646 PetscFunctionReturn(PETSC_SUCCESS); 5647 } 5648 5649 /*@ 5650 SNESGetNPC - Gets a nonlinear preconditioning solver SNES` to be used to precondition the original nonlinear solver. 5651 5652 Not Collective; but any changes to the obtained the npc object must be applied collectively 5653 5654 Input Parameter: 5655 . snes - iterative context obtained from `SNESCreate()` 5656 5657 Output Parameter: 5658 . pc - preconditioner context 5659 5660 Options Database Key: 5661 . -npc_snes_type <type> - set the type of the `SNES` to use as the nonlinear preconditioner 5662 5663 Level: developer 5664 5665 Notes: 5666 If a `SNES` was previously set with `SNESSetNPC()` then that value is returned, otherwise a new `SNES` object is created. 5667 5668 The (preconditioner) `SNES` returned automatically inherits the same nonlinear function and Jacobian supplied to the original 5669 `SNES` 5670 5671 .seealso: [](ch_snes), `SNESSetNPC()`, `SNESHasNPC()`, `SNES`, `SNESCreate()` 5672 @*/ 5673 PetscErrorCode SNESGetNPC(SNES snes, SNES *pc) 5674 { 5675 const char *optionsprefix; 5676 5677 PetscFunctionBegin; 5678 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5679 PetscAssertPointer(pc, 2); 5680 if (!snes->npc) { 5681 void *ctx; 5682 5683 PetscCall(SNESCreate(PetscObjectComm((PetscObject)snes), &snes->npc)); 5684 PetscCall(PetscObjectIncrementTabLevel((PetscObject)snes->npc, (PetscObject)snes, 1)); 5685 PetscCall(SNESGetOptionsPrefix(snes, &optionsprefix)); 5686 PetscCall(SNESSetOptionsPrefix(snes->npc, optionsprefix)); 5687 PetscCall(SNESAppendOptionsPrefix(snes->npc, "npc_")); 5688 if (snes->ops->usercompute) { 5689 PetscCall(SNESSetComputeApplicationContext(snes, snes->ops->usercompute, snes->ops->userdestroy)); 5690 } else { 5691 PetscCall(SNESGetApplicationContext(snes, &ctx)); 5692 PetscCall(SNESSetApplicationContext(snes->npc, ctx)); 5693 } 5694 PetscCall(SNESSetCountersReset(snes->npc, PETSC_FALSE)); 5695 } 5696 *pc = snes->npc; 5697 PetscFunctionReturn(PETSC_SUCCESS); 5698 } 5699 5700 /*@ 5701 SNESHasNPC - Returns whether a nonlinear preconditioner exists 5702 5703 Not Collective 5704 5705 Input Parameter: 5706 . snes - iterative context obtained from `SNESCreate()` 5707 5708 Output Parameter: 5709 . has_npc - whether the `SNES` has a nonlinear preconditioner or not 5710 5711 Level: developer 5712 5713 .seealso: [](ch_snes), `SNESSetNPC()`, `SNESGetNPC()` 5714 @*/ 5715 PetscErrorCode SNESHasNPC(SNES snes, PetscBool *has_npc) 5716 { 5717 PetscFunctionBegin; 5718 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5719 *has_npc = (PetscBool)(snes->npc ? PETSC_TRUE : PETSC_FALSE); 5720 PetscFunctionReturn(PETSC_SUCCESS); 5721 } 5722 5723 /*@ 5724 SNESSetNPCSide - Sets the nonlinear preconditioning side. 5725 5726 Logically Collective 5727 5728 Input Parameter: 5729 . snes - iterative context obtained from `SNESCreate()` 5730 5731 Output Parameter: 5732 . side - the preconditioning side, where side is one of 5733 .vb 5734 PC_LEFT - left preconditioning 5735 PC_RIGHT - right preconditioning (default for most nonlinear solvers) 5736 .ve 5737 5738 Options Database Key: 5739 . -snes_npc_side <right,left> - nonlinear preconditioner side 5740 5741 Level: intermediate 5742 5743 Note: 5744 `SNESNRICHARDSON` and `SNESNCG` only support left preconditioning. 5745 5746 .seealso: [](ch_snes), `SNES`, `SNESNRICHARDSON`, `SNESNCG`, `SNESType`, `SNESGetNPCSide()`, `KSPSetPCSide()`, `PC_LEFT`, `PC_RIGHT`, `PCSide` 5747 @*/ 5748 PetscErrorCode SNESSetNPCSide(SNES snes, PCSide side) 5749 { 5750 PetscFunctionBegin; 5751 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5752 PetscValidLogicalCollectiveEnum(snes, side, 2); 5753 if (side == PC_SIDE_DEFAULT) side = PC_RIGHT; 5754 PetscCheck((side == PC_LEFT) || (side == PC_RIGHT), PetscObjectComm((PetscObject)snes), PETSC_ERR_ARG_WRONG, "Only PC_LEFT and PC_RIGHT are supported"); 5755 snes->npcside = side; 5756 PetscFunctionReturn(PETSC_SUCCESS); 5757 } 5758 5759 /*@ 5760 SNESGetNPCSide - Gets the preconditioning side. 5761 5762 Not Collective 5763 5764 Input Parameter: 5765 . snes - iterative context obtained from `SNESCreate()` 5766 5767 Output Parameter: 5768 . side - the preconditioning side, where side is one of 5769 .vb 5770 `PC_LEFT` - left preconditioning 5771 `PC_RIGHT` - right preconditioning (default for most nonlinear solvers) 5772 .ve 5773 5774 Level: intermediate 5775 5776 .seealso: [](ch_snes), `SNES`, `SNESSetNPCSide()`, `KSPGetPCSide()`, `PC_LEFT`, `PC_RIGHT`, `PCSide` 5777 @*/ 5778 PetscErrorCode SNESGetNPCSide(SNES snes, PCSide *side) 5779 { 5780 PetscFunctionBegin; 5781 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5782 PetscAssertPointer(side, 2); 5783 *side = snes->npcside; 5784 PetscFunctionReturn(PETSC_SUCCESS); 5785 } 5786 5787 /*@ 5788 SNESSetLineSearch - Sets the linesearch to be used for `SNES` 5789 5790 Collective 5791 5792 Input Parameters: 5793 + snes - iterative context obtained from `SNESCreate()` 5794 - linesearch - the linesearch object 5795 5796 Level: developer 5797 5798 Note: 5799 This is almost never used, rather one uses `SNESGetLineSearch()` to retrieve the line search and set options on it 5800 to configure it using the API). 5801 5802 .seealso: [](ch_snes), `SNES`, `SNESLineSearch`, `SNESGetLineSearch()` 5803 @*/ 5804 PetscErrorCode SNESSetLineSearch(SNES snes, SNESLineSearch linesearch) 5805 { 5806 PetscFunctionBegin; 5807 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5808 PetscValidHeaderSpecific(linesearch, SNESLINESEARCH_CLASSID, 2); 5809 PetscCheckSameComm(snes, 1, linesearch, 2); 5810 PetscCall(PetscObjectReference((PetscObject)linesearch)); 5811 PetscCall(SNESLineSearchDestroy(&snes->linesearch)); 5812 5813 snes->linesearch = linesearch; 5814 5815 PetscFunctionReturn(PETSC_SUCCESS); 5816 } 5817 5818 /*@ 5819 SNESGetLineSearch - Returns the line search context possibly set with `SNESSetLineSearch()` 5820 or creates a default line search instance associated with the `SNES` and returns it. 5821 5822 Not Collective 5823 5824 Input Parameter: 5825 . snes - iterative context obtained from `SNESCreate()` 5826 5827 Output Parameter: 5828 . linesearch - linesearch context 5829 5830 Level: beginner 5831 5832 .seealso: [](ch_snes), `SNESLineSearch`, `SNESSetLineSearch()`, `SNESLineSearchCreate()` 5833 @*/ 5834 PetscErrorCode SNESGetLineSearch(SNES snes, SNESLineSearch *linesearch) 5835 { 5836 const char *optionsprefix; 5837 5838 PetscFunctionBegin; 5839 PetscValidHeaderSpecific(snes, SNES_CLASSID, 1); 5840 PetscAssertPointer(linesearch, 2); 5841 if (!snes->linesearch) { 5842 PetscCall(SNESGetOptionsPrefix(snes, &optionsprefix)); 5843 PetscCall(SNESLineSearchCreate(PetscObjectComm((PetscObject)snes), &snes->linesearch)); 5844 PetscCall(SNESLineSearchSetSNES(snes->linesearch, snes)); 5845 PetscCall(SNESLineSearchAppendOptionsPrefix(snes->linesearch, optionsprefix)); 5846 PetscCall(PetscObjectIncrementTabLevel((PetscObject)snes->linesearch, (PetscObject)snes, 1)); 5847 } 5848 *linesearch = snes->linesearch; 5849 PetscFunctionReturn(PETSC_SUCCESS); 5850 } 5851