1 2 #include <petsc/private/tsimpl.h> /*I "petscts.h" I*/ 3 #include <petscdmshell.h> 4 #include <petscdmda.h> 5 #include <petscviewer.h> 6 #include <petscdraw.h> 7 8 /* Logging support */ 9 PetscClassId TS_CLASSID, DMTS_CLASSID; 10 PetscLogEvent TS_AdjointStep, TS_Step, TS_PseudoComputeTimeStep, TS_FunctionEval, TS_JacobianEval; 11 12 const char *const TSExactFinalTimeOptions[] = {"UNSPECIFIED","STEPOVER","INTERPOLATE","MATCHSTEP","TSExactFinalTimeOption","TS_EXACTFINALTIME_",0}; 13 14 struct _n_TSMonitorDrawCtx { 15 PetscViewer viewer; 16 Vec initialsolution; 17 PetscBool showinitial; 18 PetscInt howoften; /* when > 0 uses step % howoften, when negative only final solution plotted */ 19 PetscBool showtimestepandtime; 20 }; 21 22 #undef __FUNCT__ 23 #define __FUNCT__ "TSMonitorSetFromOptions" 24 /*@C 25 TSMonitorSetFromOptions - Sets a monitor function and viewer appropriate for the type indicated by the user 26 27 Collective on TS 28 29 Input Parameters: 30 + ts - TS object you wish to monitor 31 . name - the monitor type one is seeking 32 . help - message indicating what monitoring is done 33 . manual - manual page for the monitor 34 . monitor - the monitor function 35 - monitorsetup - a function that is called once ONLY if the user selected this monitor that may set additional features of the TS or PetscViewer objects 36 37 Level: developer 38 39 .seealso: PetscOptionsGetViewer(), PetscOptionsGetReal(), PetscOptionsHasName(), PetscOptionsGetString(), 40 PetscOptionsGetIntArray(), PetscOptionsGetRealArray(), PetscOptionsBool() 41 PetscOptionsInt(), PetscOptionsString(), PetscOptionsReal(), PetscOptionsBool(), 42 PetscOptionsName(), PetscOptionsBegin(), PetscOptionsEnd(), PetscOptionsHead(), 43 PetscOptionsStringArray(),PetscOptionsRealArray(), PetscOptionsScalar(), 44 PetscOptionsBoolGroupBegin(), PetscOptionsBoolGroup(), PetscOptionsBoolGroupEnd(), 45 PetscOptionsFList(), PetscOptionsEList() 46 @*/ 47 PetscErrorCode TSMonitorSetFromOptions(TS ts,const char name[],const char help[], const char manual[],PetscErrorCode (*monitor)(TS,PetscInt,PetscReal,Vec,void*),PetscErrorCode (*monitorsetup)(TS,PetscViewer)) 48 { 49 PetscErrorCode ierr; 50 PetscViewer viewer; 51 PetscViewerFormat format; 52 PetscBool flg; 53 54 PetscFunctionBegin; 55 ierr = PetscOptionsGetViewer(PetscObjectComm((PetscObject)ts),((PetscObject)ts)->prefix,name,&viewer,&format,&flg);CHKERRQ(ierr); 56 if (flg) { 57 ierr = PetscViewerPushFormat(viewer,format);CHKERRQ(ierr); 58 if (monitorsetup) { 59 ierr = (*monitorsetup)(ts,viewer);CHKERRQ(ierr); 60 } 61 ierr = TSMonitorSet(ts,monitor,viewer,(PetscErrorCode (*)(void**))PetscViewerDestroy);CHKERRQ(ierr); 62 } 63 PetscFunctionReturn(0); 64 } 65 66 #undef __FUNCT__ 67 #define __FUNCT__ "TSAdjointMonitorSetFromOptions" 68 /*@C 69 TSAdjointMonitorSetFromOptions - Sets a monitor function and viewer appropriate for the type indicated by the user 70 71 Collective on TS 72 73 Input Parameters: 74 + ts - TS object you wish to monitor 75 . name - the monitor type one is seeking 76 . help - message indicating what monitoring is done 77 . manual - manual page for the monitor 78 . monitor - the monitor function 79 - monitorsetup - a function that is called once ONLY if the user selected this monitor that may set additional features of the TS or PetscViewer objects 80 81 Level: developer 82 83 .seealso: PetscOptionsGetViewer(), PetscOptionsGetReal(), PetscOptionsHasName(), PetscOptionsGetString(), 84 PetscOptionsGetIntArray(), PetscOptionsGetRealArray(), PetscOptionsBool() 85 PetscOptionsInt(), PetscOptionsString(), PetscOptionsReal(), PetscOptionsBool(), 86 PetscOptionsName(), PetscOptionsBegin(), PetscOptionsEnd(), PetscOptionsHead(), 87 PetscOptionsStringArray(),PetscOptionsRealArray(), PetscOptionsScalar(), 88 PetscOptionsBoolGroupBegin(), PetscOptionsBoolGroup(), PetscOptionsBoolGroupEnd(), 89 PetscOptionsFList(), PetscOptionsEList() 90 @*/ 91 PetscErrorCode TSAdjointMonitorSetFromOptions(TS ts,const char name[],const char help[], const char manual[],PetscErrorCode (*monitor)(TS,PetscInt,PetscReal,Vec,PetscInt,Vec*,Vec*,void*),PetscErrorCode (*monitorsetup)(TS,PetscViewer)) 92 { 93 PetscErrorCode ierr; 94 PetscViewer viewer; 95 PetscViewerFormat format; 96 PetscBool flg; 97 98 PetscFunctionBegin; 99 ierr = PetscOptionsGetViewer(PetscObjectComm((PetscObject)ts),((PetscObject)ts)->prefix,name,&viewer,&format,&flg);CHKERRQ(ierr); 100 if (flg) { 101 ierr = PetscViewerPushFormat(viewer,format);CHKERRQ(ierr); 102 if (monitorsetup) { 103 ierr = (*monitorsetup)(ts,viewer);CHKERRQ(ierr); 104 } 105 ierr = TSAdjointMonitorSet(ts,monitor,viewer,(PetscErrorCode (*)(void**))PetscViewerDestroy);CHKERRQ(ierr); 106 } 107 PetscFunctionReturn(0); 108 } 109 110 #undef __FUNCT__ 111 #define __FUNCT__ "TSSetFromOptions" 112 /*@ 113 TSSetFromOptions - Sets various TS parameters from user options. 114 115 Collective on TS 116 117 Input Parameter: 118 . ts - the TS context obtained from TSCreate() 119 120 Options Database Keys: 121 + -ts_type <type> - TSEULER, TSBEULER, TSSUNDIALS, TSPSEUDO, TSCN, TSRK, TSTHETA, TSGL, TSSSP 122 . -ts_save_trajectory - checkpoint the solution at each time-step 123 . -ts_max_steps <maxsteps> - maximum number of time-steps to take 124 . -ts_final_time <time> - maximum time to compute to 125 . -ts_dt <dt> - initial time step 126 . -ts_exact_final_time <stepover,interpolate,matchstep> whether to stop at the exact given final time and how to compute the solution at that ti,e 127 . -ts_max_snes_failures <maxfailures> - Maximum number of nonlinear solve failures allowed 128 . -ts_max_reject <maxrejects> - Maximum number of step rejections before step fails 129 . -ts_error_if_step_fails <true,false> - Error if no step succeeds 130 . -ts_rtol <rtol> - relative tolerance for local truncation error 131 . -ts_atol <atol> Absolute tolerance for local truncation error 132 . -ts_adjoint_solve <yes,no> After solving the ODE/DAE solve the adjoint problem (requires -ts_save_trajectory) 133 . -ts_fd_color - Use finite differences with coloring to compute IJacobian 134 . -ts_monitor - print information at each timestep 135 . -ts_monitor_lg_solution - Monitor solution graphically 136 . -ts_monitor_lg_error - Monitor error graphically 137 . -ts_monitor_lg_timestep - Monitor timestep size graphically 138 . -ts_monitor_lg_snes_iterations - Monitor number nonlinear iterations for each timestep graphically 139 . -ts_monitor_lg_ksp_iterations - Monitor number nonlinear iterations for each timestep graphically 140 . -ts_monitor_sp_eig - Monitor eigenvalues of linearized operator graphically 141 . -ts_monitor_draw_solution - Monitor solution graphically 142 . -ts_monitor_draw_solution_phase <xleft,yleft,xright,yright> - Monitor solution graphically with phase diagram, requires problem with exactly 2 degrees of freedom 143 . -ts_monitor_draw_error - Monitor error graphically, requires use to have provided TSSetSolutionFunction() 144 . -ts_monitor_solution [ascii binary draw][:filename][:viewerformat] - monitors the solution at each timestep 145 . -ts_monitor_solution_vtk <filename.vts> - Save each time step to a binary file, use filename-%%03D.vts 146 . -ts_monitor_envelope - determine maximum and minimum value of each component of the solution over the solution time 147 . -ts_adjoint_monitor - print information at each adjoint time step 148 - -ts_adjoint_monitor_draw_sensi - monitor the sensitivity of the first cost function wrt initial conditions (lambda[0]) graphically 149 150 Developer Note: We should unify all the -ts_monitor options in the way that -xxx_view has been unified 151 152 Level: beginner 153 154 .keywords: TS, timestep, set, options, database 155 156 .seealso: TSGetType() 157 @*/ 158 PetscErrorCode TSSetFromOptions(TS ts) 159 { 160 PetscBool opt,flg,tflg; 161 PetscErrorCode ierr; 162 char monfilename[PETSC_MAX_PATH_LEN]; 163 SNES snes; 164 PetscReal time_step; 165 TSExactFinalTimeOption eftopt; 166 char dir[16]; 167 const char *defaultType; 168 char typeName[256]; 169 170 PetscFunctionBegin; 171 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 172 ierr = PetscObjectOptionsBegin((PetscObject)ts);CHKERRQ(ierr); 173 if (((PetscObject)ts)->type_name) defaultType = ((PetscObject)ts)->type_name; 174 else defaultType = TSEULER; 175 176 ierr = TSRegisterAll();CHKERRQ(ierr); 177 ierr = PetscOptionsFList("-ts_type", "TS method"," TSSetType", TSList, defaultType, typeName, 256, &opt);CHKERRQ(ierr); 178 if (opt) { 179 ierr = TSSetType(ts, typeName);CHKERRQ(ierr); 180 } else { 181 ierr = TSSetType(ts, defaultType);CHKERRQ(ierr); 182 } 183 184 /* Handle generic TS options */ 185 ierr = PetscOptionsInt("-ts_max_steps","Maximum number of time steps","TSSetDuration",ts->max_steps,&ts->max_steps,NULL);CHKERRQ(ierr); 186 ierr = PetscOptionsReal("-ts_final_time","Time to run to","TSSetDuration",ts->max_time,&ts->max_time,NULL);CHKERRQ(ierr); 187 ierr = PetscOptionsReal("-ts_init_time","Initial time","TSSetTime",ts->ptime,&ts->ptime,NULL);CHKERRQ(ierr); 188 ierr = PetscOptionsReal("-ts_dt","Initial time step","TSSetTimeStep",ts->time_step,&time_step,&flg);CHKERRQ(ierr); 189 if (flg) { 190 ierr = TSSetTimeStep(ts,time_step);CHKERRQ(ierr); 191 } 192 ierr = PetscOptionsEnum("-ts_exact_final_time","Option for handling of final time step","TSSetExactFinalTime",TSExactFinalTimeOptions,(PetscEnum)ts->exact_final_time,(PetscEnum*)&eftopt,&flg);CHKERRQ(ierr); 193 if (flg) {ierr = TSSetExactFinalTime(ts,eftopt);CHKERRQ(ierr);} 194 ierr = PetscOptionsInt("-ts_max_snes_failures","Maximum number of nonlinear solve failures","TSSetMaxSNESFailures",ts->max_snes_failures,&ts->max_snes_failures,NULL);CHKERRQ(ierr); 195 ierr = PetscOptionsInt("-ts_max_reject","Maximum number of step rejections before step fails","TSSetMaxStepRejections",ts->max_reject,&ts->max_reject,NULL);CHKERRQ(ierr); 196 ierr = PetscOptionsBool("-ts_error_if_step_fails","Error if no step succeeds","TSSetErrorIfStepFails",ts->errorifstepfailed,&ts->errorifstepfailed,NULL);CHKERRQ(ierr); 197 ierr = PetscOptionsReal("-ts_rtol","Relative tolerance for local truncation error","TSSetTolerances",ts->rtol,&ts->rtol,NULL);CHKERRQ(ierr); 198 ierr = PetscOptionsReal("-ts_atol","Absolute tolerance for local truncation error","TSSetTolerances",ts->atol,&ts->atol,NULL);CHKERRQ(ierr); 199 200 #if defined(PETSC_HAVE_SAWS) 201 { 202 PetscBool set; 203 flg = PETSC_FALSE; 204 ierr = PetscOptionsBool("-ts_saws_block","Block for SAWs memory snooper at end of TSSolve","PetscObjectSAWsBlock",((PetscObject)ts)->amspublishblock,&flg,&set);CHKERRQ(ierr); 205 if (set) { 206 ierr = PetscObjectSAWsSetBlock((PetscObject)ts,flg);CHKERRQ(ierr); 207 } 208 } 209 #endif 210 211 /* Monitor options */ 212 ierr = TSMonitorSetFromOptions(ts,"-ts_monitor","Monitor timestep size","TSMonitorDefault",TSMonitorDefault,NULL);CHKERRQ(ierr); 213 ierr = TSMonitorSetFromOptions(ts,"-ts_monitor_solution","View the solution at each timestep","TSMonitorSolution",TSMonitorSolution,NULL);CHKERRQ(ierr); 214 ierr = TSAdjointMonitorSetFromOptions(ts,"-ts_adjoint_monitor","Monitor adjoint timestep size","TSAdjointMonitorDefault",TSAdjointMonitorDefault,NULL);CHKERRQ(ierr); 215 216 ierr = PetscOptionsString("-ts_monitor_python","Use Python function","TSMonitorSet",0,monfilename,PETSC_MAX_PATH_LEN,&flg);CHKERRQ(ierr); 217 if (flg) {ierr = PetscPythonMonitorSet((PetscObject)ts,monfilename);CHKERRQ(ierr);} 218 219 ierr = PetscOptionsName("-ts_monitor_lg_solution","Monitor solution graphically","TSMonitorLGSolution",&opt);CHKERRQ(ierr); 220 if (opt) { 221 TSMonitorLGCtx ctx; 222 PetscInt howoften = 1; 223 224 ierr = PetscOptionsInt("-ts_monitor_lg_solution","Monitor solution graphically","TSMonitorLGSolution",howoften,&howoften,NULL);CHKERRQ(ierr); 225 ierr = TSMonitorLGCtxCreate(PETSC_COMM_SELF,0,0,PETSC_DECIDE,PETSC_DECIDE,400,300,howoften,&ctx);CHKERRQ(ierr); 226 ierr = TSMonitorSet(ts,TSMonitorLGSolution,ctx,(PetscErrorCode (*)(void**))TSMonitorLGCtxDestroy);CHKERRQ(ierr); 227 } 228 229 ierr = PetscOptionsName("-ts_monitor_lg_error","Monitor error graphically","TSMonitorLGError",&opt);CHKERRQ(ierr); 230 if (opt) { 231 TSMonitorLGCtx ctx; 232 PetscInt howoften = 1; 233 234 ierr = PetscOptionsInt("-ts_monitor_lg_error","Monitor error graphically","TSMonitorLGError",howoften,&howoften,NULL);CHKERRQ(ierr); 235 ierr = TSMonitorLGCtxCreate(PETSC_COMM_SELF,0,0,PETSC_DECIDE,PETSC_DECIDE,400,300,howoften,&ctx);CHKERRQ(ierr); 236 ierr = TSMonitorSet(ts,TSMonitorLGError,ctx,(PetscErrorCode (*)(void**))TSMonitorLGCtxDestroy);CHKERRQ(ierr); 237 } 238 239 ierr = PetscOptionsName("-ts_monitor_lg_timestep","Monitor timestep size graphically","TSMonitorLGTimeStep",&opt);CHKERRQ(ierr); 240 if (opt) { 241 TSMonitorLGCtx ctx; 242 PetscInt howoften = 1; 243 244 ierr = PetscOptionsInt("-ts_monitor_lg_timestep","Monitor timestep size graphically","TSMonitorLGTimeStep",howoften,&howoften,NULL);CHKERRQ(ierr); 245 ierr = TSMonitorLGCtxCreate(PetscObjectComm((PetscObject)ts),NULL,NULL,PETSC_DECIDE,PETSC_DECIDE,400,300,howoften,&ctx);CHKERRQ(ierr); 246 ierr = TSMonitorSet(ts,TSMonitorLGTimeStep,ctx,(PetscErrorCode (*)(void**))TSMonitorLGCtxDestroy);CHKERRQ(ierr); 247 } 248 ierr = PetscOptionsName("-ts_monitor_lg_snes_iterations","Monitor number nonlinear iterations for each timestep graphically","TSMonitorLGSNESIterations",&opt);CHKERRQ(ierr); 249 if (opt) { 250 TSMonitorLGCtx ctx; 251 PetscInt howoften = 1; 252 253 ierr = PetscOptionsInt("-ts_monitor_lg_snes_iterations","Monitor number nonlinear iterations for each timestep graphically","TSMonitorLGSNESIterations",howoften,&howoften,NULL);CHKERRQ(ierr); 254 ierr = TSMonitorLGCtxCreate(PetscObjectComm((PetscObject)ts),NULL,NULL,PETSC_DECIDE,PETSC_DECIDE,400,300,howoften,&ctx);CHKERRQ(ierr); 255 ierr = TSMonitorSet(ts,TSMonitorLGSNESIterations,ctx,(PetscErrorCode (*)(void**))TSMonitorLGCtxDestroy);CHKERRQ(ierr); 256 } 257 ierr = PetscOptionsName("-ts_monitor_lg_ksp_iterations","Monitor number nonlinear iterations for each timestep graphically","TSMonitorLGKSPIterations",&opt);CHKERRQ(ierr); 258 if (opt) { 259 TSMonitorLGCtx ctx; 260 PetscInt howoften = 1; 261 262 ierr = PetscOptionsInt("-ts_monitor_lg_ksp_iterations","Monitor number nonlinear iterations for each timestep graphically","TSMonitorLGKSPIterations",howoften,&howoften,NULL);CHKERRQ(ierr); 263 ierr = TSMonitorLGCtxCreate(PetscObjectComm((PetscObject)ts),NULL,NULL,PETSC_DECIDE,PETSC_DECIDE,400,300,howoften,&ctx);CHKERRQ(ierr); 264 ierr = TSMonitorSet(ts,TSMonitorLGKSPIterations,ctx,(PetscErrorCode (*)(void**))TSMonitorLGCtxDestroy);CHKERRQ(ierr); 265 } 266 ierr = PetscOptionsName("-ts_monitor_sp_eig","Monitor eigenvalues of linearized operator graphically","TSMonitorSPEig",&opt);CHKERRQ(ierr); 267 if (opt) { 268 TSMonitorSPEigCtx ctx; 269 PetscInt howoften = 1; 270 271 ierr = PetscOptionsInt("-ts_monitor_sp_eig","Monitor eigenvalues of linearized operator graphically","TSMonitorSPEig",howoften,&howoften,NULL);CHKERRQ(ierr); 272 ierr = TSMonitorSPEigCtxCreate(PETSC_COMM_SELF,0,0,PETSC_DECIDE,PETSC_DECIDE,300,300,howoften,&ctx);CHKERRQ(ierr); 273 ierr = TSMonitorSet(ts,TSMonitorSPEig,ctx,(PetscErrorCode (*)(void**))TSMonitorSPEigCtxDestroy);CHKERRQ(ierr); 274 } 275 opt = PETSC_FALSE; 276 ierr = PetscOptionsName("-ts_monitor_draw_solution","Monitor solution graphically","TSMonitorDrawSolution",&opt);CHKERRQ(ierr); 277 if (opt) { 278 TSMonitorDrawCtx ctx; 279 PetscInt howoften = 1; 280 281 ierr = PetscOptionsInt("-ts_monitor_draw_solution","Monitor solution graphically","TSMonitorDrawSolution",howoften,&howoften,NULL);CHKERRQ(ierr); 282 ierr = TSMonitorDrawCtxCreate(PetscObjectComm((PetscObject)ts),0,0,PETSC_DECIDE,PETSC_DECIDE,300,300,howoften,&ctx);CHKERRQ(ierr); 283 ierr = TSMonitorSet(ts,TSMonitorDrawSolution,ctx,(PetscErrorCode (*)(void**))TSMonitorDrawCtxDestroy);CHKERRQ(ierr); 284 } 285 opt = PETSC_FALSE; 286 ierr = PetscOptionsName("-ts_adjoint_monitor_draw_sensi","Monitor adjoint sensitivities (lambda only) graphically","TSAdjointMonitorDrawSensi",&opt);CHKERRQ(ierr); 287 if (opt) { 288 TSMonitorDrawCtx ctx; 289 PetscInt howoften = 1; 290 291 ierr = PetscOptionsInt("-ts_adjoint_monitor_draw_sensi","Monitor adjoint sensitivities (lambda only) graphically","TSAdjointMonitorDrawSensi",howoften,&howoften,NULL);CHKERRQ(ierr); 292 ierr = TSMonitorDrawCtxCreate(PetscObjectComm((PetscObject)ts),0,0,PETSC_DECIDE,PETSC_DECIDE,300,300,howoften,&ctx);CHKERRQ(ierr); 293 ierr = TSAdjointMonitorSet(ts,TSAdjointMonitorDrawSensi,ctx,(PetscErrorCode (*)(void**))TSMonitorDrawCtxDestroy);CHKERRQ(ierr); 294 } 295 opt = PETSC_FALSE; 296 ierr = PetscOptionsName("-ts_monitor_draw_solution_phase","Monitor solution graphically","TSMonitorDrawSolutionPhase",&opt);CHKERRQ(ierr); 297 if (opt) { 298 TSMonitorDrawCtx ctx; 299 PetscReal bounds[4]; 300 PetscInt n = 4; 301 PetscDraw draw; 302 PetscDrawAxis axis; 303 304 ierr = PetscOptionsRealArray("-ts_monitor_draw_solution_phase","Monitor solution graphically","TSMonitorDrawSolutionPhase",bounds,&n,NULL);CHKERRQ(ierr); 305 if (n != 4) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_WRONG,"Must provide bounding box of phase field"); 306 ierr = TSMonitorDrawCtxCreate(PetscObjectComm((PetscObject)ts),0,0,PETSC_DECIDE,PETSC_DECIDE,300,300,1,&ctx);CHKERRQ(ierr); 307 ierr = PetscViewerDrawGetDraw(ctx->viewer,0,&draw);CHKERRQ(ierr); 308 ierr = PetscViewerDrawGetDrawAxis(ctx->viewer,0,&axis);CHKERRQ(ierr); 309 ierr = PetscDrawAxisSetLimits(axis,bounds[0],bounds[2],bounds[1],bounds[3]);CHKERRQ(ierr); 310 ierr = PetscDrawAxisSetLabels(axis,"Phase Diagram","Variable 1","Variable 2");CHKERRQ(ierr); 311 ierr = TSMonitorSet(ts,TSMonitorDrawSolutionPhase,ctx,(PetscErrorCode (*)(void**))TSMonitorDrawCtxDestroy);CHKERRQ(ierr); 312 } 313 opt = PETSC_FALSE; 314 ierr = PetscOptionsName("-ts_monitor_draw_error","Monitor error graphically","TSMonitorDrawError",&opt);CHKERRQ(ierr); 315 if (opt) { 316 TSMonitorDrawCtx ctx; 317 PetscInt howoften = 1; 318 319 ierr = PetscOptionsInt("-ts_monitor_draw_error","Monitor error graphically","TSMonitorDrawError",howoften,&howoften,NULL);CHKERRQ(ierr); 320 ierr = TSMonitorDrawCtxCreate(PetscObjectComm((PetscObject)ts),0,0,PETSC_DECIDE,PETSC_DECIDE,300,300,howoften,&ctx);CHKERRQ(ierr); 321 ierr = TSMonitorSet(ts,TSMonitorDrawError,ctx,(PetscErrorCode (*)(void**))TSMonitorDrawCtxDestroy);CHKERRQ(ierr); 322 } 323 324 opt = PETSC_FALSE; 325 ierr = PetscOptionsString("-ts_monitor_solution_vtk","Save each time step to a binary file, use filename-%%03D.vts","TSMonitorSolutionVTK",0,monfilename,PETSC_MAX_PATH_LEN,&flg);CHKERRQ(ierr); 326 if (flg) { 327 const char *ptr,*ptr2; 328 char *filetemplate; 329 if (!monfilename[0]) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"-ts_monitor_solution_vtk requires a file template, e.g. filename-%%03D.vts"); 330 /* Do some cursory validation of the input. */ 331 ierr = PetscStrstr(monfilename,"%",(char**)&ptr);CHKERRQ(ierr); 332 if (!ptr) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"-ts_monitor_solution_vtk requires a file template, e.g. filename-%%03D.vts"); 333 for (ptr++; ptr && *ptr; ptr++) { 334 ierr = PetscStrchr("DdiouxX",*ptr,(char**)&ptr2);CHKERRQ(ierr); 335 if (!ptr2 && (*ptr < '0' || '9' < *ptr)) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"Invalid file template argument to -ts_monitor_solution_vtk, should look like filename-%%03D.vts"); 336 if (ptr2) break; 337 } 338 ierr = PetscStrallocpy(monfilename,&filetemplate);CHKERRQ(ierr); 339 ierr = TSMonitorSet(ts,TSMonitorSolutionVTK,filetemplate,(PetscErrorCode (*)(void**))TSMonitorSolutionVTKDestroy);CHKERRQ(ierr); 340 } 341 342 ierr = PetscOptionsString("-ts_monitor_dmda_ray","Display a ray of the solution","None","y=0",dir,16,&flg);CHKERRQ(ierr); 343 if (flg) { 344 TSMonitorDMDARayCtx *rayctx; 345 int ray = 0; 346 DMDADirection ddir; 347 DM da; 348 PetscMPIInt rank; 349 350 if (dir[1] != '=') SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_WRONG,"Unknown ray %s",dir); 351 if (dir[0] == 'x') ddir = DMDA_X; 352 else if (dir[0] == 'y') ddir = DMDA_Y; 353 else SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_WRONG,"Unknown ray %s",dir); 354 sscanf(dir+2,"%d",&ray); 355 356 ierr = PetscInfo2(((PetscObject)ts),"Displaying DMDA ray %c = %D\n",dir[0],ray);CHKERRQ(ierr); 357 ierr = PetscNew(&rayctx);CHKERRQ(ierr); 358 ierr = TSGetDM(ts,&da);CHKERRQ(ierr); 359 ierr = DMDAGetRay(da,ddir,ray,&rayctx->ray,&rayctx->scatter);CHKERRQ(ierr); 360 ierr = MPI_Comm_rank(PetscObjectComm((PetscObject)ts),&rank);CHKERRQ(ierr); 361 if (!rank) { 362 ierr = PetscViewerDrawOpen(PETSC_COMM_SELF,0,0,0,0,600,300,&rayctx->viewer);CHKERRQ(ierr); 363 } 364 rayctx->lgctx = NULL; 365 ierr = TSMonitorSet(ts,TSMonitorDMDARay,rayctx,TSMonitorDMDARayDestroy);CHKERRQ(ierr); 366 } 367 ierr = PetscOptionsString("-ts_monitor_lg_dmda_ray","Display a ray of the solution","None","x=0",dir,16,&flg);CHKERRQ(ierr); 368 if (flg) { 369 TSMonitorDMDARayCtx *rayctx; 370 int ray = 0; 371 DMDADirection ddir; 372 DM da; 373 PetscInt howoften = 1; 374 375 if (dir[1] != '=') SETERRQ1(PetscObjectComm((PetscObject) ts), PETSC_ERR_ARG_WRONG, "Malformed ray %s", dir); 376 if (dir[0] == 'x') ddir = DMDA_X; 377 else if (dir[0] == 'y') ddir = DMDA_Y; 378 else SETERRQ1(PetscObjectComm((PetscObject) ts), PETSC_ERR_ARG_WRONG, "Unknown ray direction %s", dir); 379 sscanf(dir+2, "%d", &ray); 380 381 ierr = PetscInfo2(((PetscObject) ts),"Displaying LG DMDA ray %c = %D\n", dir[0], ray);CHKERRQ(ierr); 382 ierr = PetscNew(&rayctx);CHKERRQ(ierr); 383 ierr = TSGetDM(ts, &da);CHKERRQ(ierr); 384 ierr = DMDAGetRay(da, ddir, ray, &rayctx->ray, &rayctx->scatter);CHKERRQ(ierr); 385 ierr = TSMonitorLGCtxCreate(PETSC_COMM_SELF,0,0,PETSC_DECIDE,PETSC_DECIDE,600,400,howoften,&rayctx->lgctx);CHKERRQ(ierr); 386 ierr = TSMonitorSet(ts, TSMonitorLGDMDARay, rayctx, TSMonitorDMDARayDestroy);CHKERRQ(ierr); 387 } 388 389 ierr = PetscOptionsName("-ts_monitor_envelope","Monitor maximum and minimum value of each component of the solution","TSMonitorEnvelope",&opt);CHKERRQ(ierr); 390 if (opt) { 391 TSMonitorEnvelopeCtx ctx; 392 393 ierr = TSMonitorEnvelopeCtxCreate(ts,&ctx);CHKERRQ(ierr); 394 ierr = TSMonitorSet(ts,TSMonitorEnvelope,ctx,(PetscErrorCode (*)(void**))TSMonitorEnvelopeCtxDestroy);CHKERRQ(ierr); 395 } 396 397 flg = PETSC_FALSE; 398 ierr = PetscOptionsBool("-ts_fd_color", "Use finite differences with coloring to compute IJacobian", "TSComputeJacobianDefaultColor", flg, &flg, NULL);CHKERRQ(ierr); 399 if (flg) { 400 DM dm; 401 DMTS tdm; 402 403 ierr = TSGetDM(ts, &dm);CHKERRQ(ierr); 404 ierr = DMGetDMTS(dm, &tdm);CHKERRQ(ierr); 405 tdm->ijacobianctx = NULL; 406 ierr = TSSetIJacobian(ts, NULL, NULL, TSComputeIJacobianDefaultColor, 0);CHKERRQ(ierr); 407 ierr = PetscInfo(ts, "Setting default finite difference coloring Jacobian matrix\n");CHKERRQ(ierr); 408 } 409 410 if (ts->adapt) { 411 ierr = TSAdaptSetFromOptions(PetscOptionsObject,ts->adapt);CHKERRQ(ierr); 412 } 413 414 /* Handle specific TS options */ 415 if (ts->ops->setfromoptions) { 416 ierr = (*ts->ops->setfromoptions)(PetscOptionsObject,ts);CHKERRQ(ierr); 417 } 418 419 /* TS trajectory must be set after TS, since it may use some TS options above */ 420 if (ts->trajectory) tflg = PETSC_TRUE; 421 else tflg = PETSC_FALSE; 422 ierr = PetscOptionsBool("-ts_save_trajectory","Save the solution at each timestep","TSSetSaveTrajectory",tflg,&tflg,NULL);CHKERRQ(ierr); 423 if (tflg) { 424 ierr = TSSetSaveTrajectory(ts);CHKERRQ(ierr); 425 } 426 if (ts->adjoint_solve) tflg = PETSC_TRUE; 427 else tflg = PETSC_FALSE; 428 ierr = PetscOptionsBool("-ts_adjoint_solve","Solve the adjoint problem immediately after solving the forward problem","",tflg,&tflg,&flg);CHKERRQ(ierr); 429 if (flg) { 430 ierr = TSSetSaveTrajectory(ts);CHKERRQ(ierr); 431 ts->adjoint_solve = tflg; 432 } 433 if (ts->trajectory) { 434 ierr = TSTrajectorySetFromOptions(ts->trajectory,ts);CHKERRQ(ierr); 435 } 436 437 /* process any options handlers added with PetscObjectAddOptionsHandler() */ 438 ierr = PetscObjectProcessOptionsHandlers(PetscOptionsObject,(PetscObject)ts);CHKERRQ(ierr); 439 ierr = PetscOptionsEnd();CHKERRQ(ierr); 440 441 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 442 if (snes) { 443 if (ts->problem_type == TS_LINEAR) {ierr = SNESSetType(snes,SNESKSPONLY);CHKERRQ(ierr);} 444 ierr = SNESSetFromOptions(snes);CHKERRQ(ierr); 445 } 446 447 PetscFunctionReturn(0); 448 } 449 450 #undef __FUNCT__ 451 #define __FUNCT__ "TSSetSaveTrajectory" 452 /*@ 453 TSSetSaveTrajectory - Causes the TS to save its solutions as it iterates forward in time in a TSTrajectory object 454 455 Collective on TS 456 457 Input Parameters: 458 . ts - the TS context obtained from TSCreate() 459 460 Note: This routine should be called after all TS options have been set 461 462 Level: intermediate 463 464 .seealso: TSGetTrajectory(), TSAdjointSolve() 465 466 .keywords: TS, set, checkpoint, 467 @*/ 468 PetscErrorCode TSSetSaveTrajectory(TS ts) 469 { 470 PetscErrorCode ierr; 471 472 PetscFunctionBegin; 473 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 474 if (!ts->trajectory) { 475 ierr = TSTrajectoryCreate(PetscObjectComm((PetscObject)ts),&ts->trajectory);CHKERRQ(ierr); 476 ierr = TSTrajectorySetFromOptions(ts->trajectory,ts);CHKERRQ(ierr); 477 } 478 PetscFunctionReturn(0); 479 } 480 481 #undef __FUNCT__ 482 #define __FUNCT__ "TSComputeRHSJacobian" 483 /*@ 484 TSComputeRHSJacobian - Computes the Jacobian matrix that has been 485 set with TSSetRHSJacobian(). 486 487 Collective on TS and Vec 488 489 Input Parameters: 490 + ts - the TS context 491 . t - current timestep 492 - U - input vector 493 494 Output Parameters: 495 + A - Jacobian matrix 496 . B - optional preconditioning matrix 497 - flag - flag indicating matrix structure 498 499 Notes: 500 Most users should not need to explicitly call this routine, as it 501 is used internally within the nonlinear solvers. 502 503 See KSPSetOperators() for important information about setting the 504 flag parameter. 505 506 Level: developer 507 508 .keywords: SNES, compute, Jacobian, matrix 509 510 .seealso: TSSetRHSJacobian(), KSPSetOperators() 511 @*/ 512 PetscErrorCode TSComputeRHSJacobian(TS ts,PetscReal t,Vec U,Mat A,Mat B) 513 { 514 PetscErrorCode ierr; 515 PetscObjectState Ustate; 516 DM dm; 517 DMTS tsdm; 518 TSRHSJacobian rhsjacobianfunc; 519 void *ctx; 520 TSIJacobian ijacobianfunc; 521 TSRHSFunction rhsfunction; 522 523 PetscFunctionBegin; 524 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 525 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 526 PetscCheckSameComm(ts,1,U,3); 527 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 528 ierr = DMGetDMTS(dm,&tsdm);CHKERRQ(ierr); 529 ierr = DMTSGetRHSJacobian(dm,&rhsjacobianfunc,&ctx);CHKERRQ(ierr); 530 ierr = DMTSGetIJacobian(dm,&ijacobianfunc,NULL);CHKERRQ(ierr); 531 ierr = DMTSGetRHSFunction(dm,&rhsfunction,&ctx);CHKERRQ(ierr); 532 ierr = PetscObjectStateGet((PetscObject)U,&Ustate);CHKERRQ(ierr); 533 if (ts->rhsjacobian.time == t && (ts->problem_type == TS_LINEAR || (ts->rhsjacobian.X == U && ts->rhsjacobian.Xstate == Ustate)) && (rhsfunction != TSComputeRHSFunctionLinear)) { 534 PetscFunctionReturn(0); 535 } 536 537 if (!rhsjacobianfunc && !ijacobianfunc) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"Must call TSSetRHSJacobian() and / or TSSetIJacobian()"); 538 539 if (ts->rhsjacobian.reuse) { 540 ierr = MatShift(A,-ts->rhsjacobian.shift);CHKERRQ(ierr); 541 ierr = MatScale(A,1./ts->rhsjacobian.scale);CHKERRQ(ierr); 542 if (A != B) { 543 ierr = MatShift(B,-ts->rhsjacobian.shift);CHKERRQ(ierr); 544 ierr = MatScale(B,1./ts->rhsjacobian.scale);CHKERRQ(ierr); 545 } 546 ts->rhsjacobian.shift = 0; 547 ts->rhsjacobian.scale = 1.; 548 } 549 550 if (rhsjacobianfunc) { 551 PetscBool missing; 552 ierr = PetscLogEventBegin(TS_JacobianEval,ts,U,A,B);CHKERRQ(ierr); 553 PetscStackPush("TS user Jacobian function"); 554 ierr = (*rhsjacobianfunc)(ts,t,U,A,B,ctx);CHKERRQ(ierr); 555 PetscStackPop; 556 ierr = PetscLogEventEnd(TS_JacobianEval,ts,U,A,B);CHKERRQ(ierr); 557 if (A) { 558 ierr = MatMissingDiagonal(A,&missing,NULL);CHKERRQ(ierr); 559 if (missing) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Amat passed to TSSetRHSJacobian() must have all diagonal entries set, if they are zero you must still set them with a zero value"); 560 } 561 if (B && B != A) { 562 ierr = MatMissingDiagonal(B,&missing,NULL);CHKERRQ(ierr); 563 if (missing) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Bmat passed to TSSetRHSJacobian() must have all diagonal entries set, if they are zero you must still set them with a zero value"); 564 } 565 } else { 566 ierr = MatZeroEntries(A);CHKERRQ(ierr); 567 if (A != B) {ierr = MatZeroEntries(B);CHKERRQ(ierr);} 568 } 569 ts->rhsjacobian.time = t; 570 ts->rhsjacobian.X = U; 571 ierr = PetscObjectStateGet((PetscObject)U,&ts->rhsjacobian.Xstate);CHKERRQ(ierr); 572 PetscFunctionReturn(0); 573 } 574 575 #undef __FUNCT__ 576 #define __FUNCT__ "TSComputeRHSFunction" 577 /*@ 578 TSComputeRHSFunction - Evaluates the right-hand-side function. 579 580 Collective on TS and Vec 581 582 Input Parameters: 583 + ts - the TS context 584 . t - current time 585 - U - state vector 586 587 Output Parameter: 588 . y - right hand side 589 590 Note: 591 Most users should not need to explicitly call this routine, as it 592 is used internally within the nonlinear solvers. 593 594 Level: developer 595 596 .keywords: TS, compute 597 598 .seealso: TSSetRHSFunction(), TSComputeIFunction() 599 @*/ 600 PetscErrorCode TSComputeRHSFunction(TS ts,PetscReal t,Vec U,Vec y) 601 { 602 PetscErrorCode ierr; 603 TSRHSFunction rhsfunction; 604 TSIFunction ifunction; 605 void *ctx; 606 DM dm; 607 608 PetscFunctionBegin; 609 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 610 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 611 PetscValidHeaderSpecific(y,VEC_CLASSID,4); 612 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 613 ierr = DMTSGetRHSFunction(dm,&rhsfunction,&ctx);CHKERRQ(ierr); 614 ierr = DMTSGetIFunction(dm,&ifunction,NULL);CHKERRQ(ierr); 615 616 if (!rhsfunction && !ifunction) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"Must call TSSetRHSFunction() and / or TSSetIFunction()"); 617 618 ierr = PetscLogEventBegin(TS_FunctionEval,ts,U,y,0);CHKERRQ(ierr); 619 if (rhsfunction) { 620 PetscStackPush("TS user right-hand-side function"); 621 ierr = (*rhsfunction)(ts,t,U,y,ctx);CHKERRQ(ierr); 622 PetscStackPop; 623 } else { 624 ierr = VecZeroEntries(y);CHKERRQ(ierr); 625 } 626 627 ierr = PetscLogEventEnd(TS_FunctionEval,ts,U,y,0);CHKERRQ(ierr); 628 PetscFunctionReturn(0); 629 } 630 631 #undef __FUNCT__ 632 #define __FUNCT__ "TSComputeSolutionFunction" 633 /*@ 634 TSComputeSolutionFunction - Evaluates the solution function. 635 636 Collective on TS and Vec 637 638 Input Parameters: 639 + ts - the TS context 640 - t - current time 641 642 Output Parameter: 643 . U - the solution 644 645 Note: 646 Most users should not need to explicitly call this routine, as it 647 is used internally within the nonlinear solvers. 648 649 Level: developer 650 651 .keywords: TS, compute 652 653 .seealso: TSSetSolutionFunction(), TSSetRHSFunction(), TSComputeIFunction() 654 @*/ 655 PetscErrorCode TSComputeSolutionFunction(TS ts,PetscReal t,Vec U) 656 { 657 PetscErrorCode ierr; 658 TSSolutionFunction solutionfunction; 659 void *ctx; 660 DM dm; 661 662 PetscFunctionBegin; 663 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 664 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 665 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 666 ierr = DMTSGetSolutionFunction(dm,&solutionfunction,&ctx);CHKERRQ(ierr); 667 668 if (solutionfunction) { 669 PetscStackPush("TS user solution function"); 670 ierr = (*solutionfunction)(ts,t,U,ctx);CHKERRQ(ierr); 671 PetscStackPop; 672 } 673 PetscFunctionReturn(0); 674 } 675 #undef __FUNCT__ 676 #define __FUNCT__ "TSComputeForcingFunction" 677 /*@ 678 TSComputeForcingFunction - Evaluates the forcing function. 679 680 Collective on TS and Vec 681 682 Input Parameters: 683 + ts - the TS context 684 - t - current time 685 686 Output Parameter: 687 . U - the function value 688 689 Note: 690 Most users should not need to explicitly call this routine, as it 691 is used internally within the nonlinear solvers. 692 693 Level: developer 694 695 .keywords: TS, compute 696 697 .seealso: TSSetSolutionFunction(), TSSetRHSFunction(), TSComputeIFunction() 698 @*/ 699 PetscErrorCode TSComputeForcingFunction(TS ts,PetscReal t,Vec U) 700 { 701 PetscErrorCode ierr, (*forcing)(TS,PetscReal,Vec,void*); 702 void *ctx; 703 DM dm; 704 705 PetscFunctionBegin; 706 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 707 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 708 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 709 ierr = DMTSGetForcingFunction(dm,&forcing,&ctx);CHKERRQ(ierr); 710 711 if (forcing) { 712 PetscStackPush("TS user forcing function"); 713 ierr = (*forcing)(ts,t,U,ctx);CHKERRQ(ierr); 714 PetscStackPop; 715 } 716 PetscFunctionReturn(0); 717 } 718 719 #undef __FUNCT__ 720 #define __FUNCT__ "TSGetRHSVec_Private" 721 static PetscErrorCode TSGetRHSVec_Private(TS ts,Vec *Frhs) 722 { 723 Vec F; 724 PetscErrorCode ierr; 725 726 PetscFunctionBegin; 727 *Frhs = NULL; 728 ierr = TSGetIFunction(ts,&F,NULL,NULL);CHKERRQ(ierr); 729 if (!ts->Frhs) { 730 ierr = VecDuplicate(F,&ts->Frhs);CHKERRQ(ierr); 731 } 732 *Frhs = ts->Frhs; 733 PetscFunctionReturn(0); 734 } 735 736 #undef __FUNCT__ 737 #define __FUNCT__ "TSGetRHSMats_Private" 738 static PetscErrorCode TSGetRHSMats_Private(TS ts,Mat *Arhs,Mat *Brhs) 739 { 740 Mat A,B; 741 PetscErrorCode ierr; 742 743 PetscFunctionBegin; 744 if (Arhs) *Arhs = NULL; 745 if (Brhs) *Brhs = NULL; 746 ierr = TSGetIJacobian(ts,&A,&B,NULL,NULL);CHKERRQ(ierr); 747 if (Arhs) { 748 if (!ts->Arhs) { 749 ierr = MatDuplicate(A,MAT_DO_NOT_COPY_VALUES,&ts->Arhs);CHKERRQ(ierr); 750 } 751 *Arhs = ts->Arhs; 752 } 753 if (Brhs) { 754 if (!ts->Brhs) { 755 if (A != B) { 756 ierr = MatDuplicate(B,MAT_DO_NOT_COPY_VALUES,&ts->Brhs);CHKERRQ(ierr); 757 } else { 758 ts->Brhs = ts->Arhs; 759 ierr = PetscObjectReference((PetscObject)ts->Arhs);CHKERRQ(ierr); 760 } 761 } 762 *Brhs = ts->Brhs; 763 } 764 PetscFunctionReturn(0); 765 } 766 767 #undef __FUNCT__ 768 #define __FUNCT__ "TSComputeIFunction" 769 /*@ 770 TSComputeIFunction - Evaluates the DAE residual written in implicit form F(t,U,Udot)=0 771 772 Collective on TS and Vec 773 774 Input Parameters: 775 + ts - the TS context 776 . t - current time 777 . U - state vector 778 . Udot - time derivative of state vector 779 - imex - flag indicates if the method is IMEX so that the RHSFunction should be kept separate 780 781 Output Parameter: 782 . Y - right hand side 783 784 Note: 785 Most users should not need to explicitly call this routine, as it 786 is used internally within the nonlinear solvers. 787 788 If the user did did not write their equations in implicit form, this 789 function recasts them in implicit form. 790 791 Level: developer 792 793 .keywords: TS, compute 794 795 .seealso: TSSetIFunction(), TSComputeRHSFunction() 796 @*/ 797 PetscErrorCode TSComputeIFunction(TS ts,PetscReal t,Vec U,Vec Udot,Vec Y,PetscBool imex) 798 { 799 PetscErrorCode ierr; 800 TSIFunction ifunction; 801 TSRHSFunction rhsfunction; 802 void *ctx; 803 DM dm; 804 805 PetscFunctionBegin; 806 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 807 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 808 PetscValidHeaderSpecific(Udot,VEC_CLASSID,4); 809 PetscValidHeaderSpecific(Y,VEC_CLASSID,5); 810 811 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 812 ierr = DMTSGetIFunction(dm,&ifunction,&ctx);CHKERRQ(ierr); 813 ierr = DMTSGetRHSFunction(dm,&rhsfunction,NULL);CHKERRQ(ierr); 814 815 if (!rhsfunction && !ifunction) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"Must call TSSetRHSFunction() and / or TSSetIFunction()"); 816 817 ierr = PetscLogEventBegin(TS_FunctionEval,ts,U,Udot,Y);CHKERRQ(ierr); 818 if (ifunction) { 819 PetscStackPush("TS user implicit function"); 820 ierr = (*ifunction)(ts,t,U,Udot,Y,ctx);CHKERRQ(ierr); 821 PetscStackPop; 822 } 823 if (imex) { 824 if (!ifunction) { 825 ierr = VecCopy(Udot,Y);CHKERRQ(ierr); 826 } 827 } else if (rhsfunction) { 828 if (ifunction) { 829 Vec Frhs; 830 ierr = TSGetRHSVec_Private(ts,&Frhs);CHKERRQ(ierr); 831 ierr = TSComputeRHSFunction(ts,t,U,Frhs);CHKERRQ(ierr); 832 ierr = VecAXPY(Y,-1,Frhs);CHKERRQ(ierr); 833 } else { 834 ierr = TSComputeRHSFunction(ts,t,U,Y);CHKERRQ(ierr); 835 ierr = VecAYPX(Y,-1,Udot);CHKERRQ(ierr); 836 } 837 } 838 ierr = PetscLogEventEnd(TS_FunctionEval,ts,U,Udot,Y);CHKERRQ(ierr); 839 PetscFunctionReturn(0); 840 } 841 842 #undef __FUNCT__ 843 #define __FUNCT__ "TSComputeIJacobian" 844 /*@ 845 TSComputeIJacobian - Evaluates the Jacobian of the DAE 846 847 Collective on TS and Vec 848 849 Input 850 Input Parameters: 851 + ts - the TS context 852 . t - current timestep 853 . U - state vector 854 . Udot - time derivative of state vector 855 . shift - shift to apply, see note below 856 - imex - flag indicates if the method is IMEX so that the RHSJacobian should be kept separate 857 858 Output Parameters: 859 + A - Jacobian matrix 860 . B - optional preconditioning matrix 861 - flag - flag indicating matrix structure 862 863 Notes: 864 If F(t,U,Udot)=0 is the DAE, the required Jacobian is 865 866 dF/dU + shift*dF/dUdot 867 868 Most users should not need to explicitly call this routine, as it 869 is used internally within the nonlinear solvers. 870 871 Level: developer 872 873 .keywords: TS, compute, Jacobian, matrix 874 875 .seealso: TSSetIJacobian() 876 @*/ 877 PetscErrorCode TSComputeIJacobian(TS ts,PetscReal t,Vec U,Vec Udot,PetscReal shift,Mat A,Mat B,PetscBool imex) 878 { 879 PetscErrorCode ierr; 880 TSIJacobian ijacobian; 881 TSRHSJacobian rhsjacobian; 882 DM dm; 883 void *ctx; 884 885 PetscFunctionBegin; 886 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 887 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 888 PetscValidHeaderSpecific(Udot,VEC_CLASSID,4); 889 PetscValidPointer(A,6); 890 PetscValidHeaderSpecific(A,MAT_CLASSID,6); 891 PetscValidPointer(B,7); 892 PetscValidHeaderSpecific(B,MAT_CLASSID,7); 893 894 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 895 ierr = DMTSGetIJacobian(dm,&ijacobian,&ctx);CHKERRQ(ierr); 896 ierr = DMTSGetRHSJacobian(dm,&rhsjacobian,NULL);CHKERRQ(ierr); 897 898 if (!rhsjacobian && !ijacobian) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"Must call TSSetRHSJacobian() and / or TSSetIJacobian()"); 899 900 ierr = PetscLogEventBegin(TS_JacobianEval,ts,U,A,B);CHKERRQ(ierr); 901 if (ijacobian) { 902 PetscBool missing; 903 PetscStackPush("TS user implicit Jacobian"); 904 ierr = (*ijacobian)(ts,t,U,Udot,shift,A,B,ctx);CHKERRQ(ierr); 905 PetscStackPop; 906 if (A) { 907 ierr = MatMissingDiagonal(A,&missing,NULL);CHKERRQ(ierr); 908 if (missing) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Amat passed to TSSetIJacobian() must have all diagonal entries set, if they are zero you must still set them with a zero value"); 909 } 910 if (B && B != A) { 911 ierr = MatMissingDiagonal(B,&missing,NULL);CHKERRQ(ierr); 912 if (missing) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Bmat passed to TSSetIJacobian() must have all diagonal entries set, if they are zero you must still set them with a zero value"); 913 } 914 } 915 if (imex) { 916 if (!ijacobian) { /* system was written as Udot = G(t,U) */ 917 ierr = MatZeroEntries(A);CHKERRQ(ierr); 918 ierr = MatShift(A,shift);CHKERRQ(ierr); 919 if (A != B) { 920 ierr = MatZeroEntries(B);CHKERRQ(ierr); 921 ierr = MatShift(B,shift);CHKERRQ(ierr); 922 } 923 } 924 } else { 925 Mat Arhs = NULL,Brhs = NULL; 926 if (rhsjacobian) { 927 if (ijacobian) { 928 ierr = TSGetRHSMats_Private(ts,&Arhs,&Brhs);CHKERRQ(ierr); 929 } else { 930 ierr = TSGetIJacobian(ts,&Arhs,&Brhs,NULL,NULL);CHKERRQ(ierr); 931 } 932 ierr = TSComputeRHSJacobian(ts,t,U,Arhs,Brhs);CHKERRQ(ierr); 933 } 934 if (Arhs == A) { /* No IJacobian, so we only have the RHS matrix */ 935 ts->rhsjacobian.scale = -1; 936 ts->rhsjacobian.shift = shift; 937 ierr = MatScale(A,-1);CHKERRQ(ierr); 938 ierr = MatShift(A,shift);CHKERRQ(ierr); 939 if (A != B) { 940 ierr = MatScale(B,-1);CHKERRQ(ierr); 941 ierr = MatShift(B,shift);CHKERRQ(ierr); 942 } 943 } else if (Arhs) { /* Both IJacobian and RHSJacobian */ 944 MatStructure axpy = DIFFERENT_NONZERO_PATTERN; 945 if (!ijacobian) { /* No IJacobian provided, but we have a separate RHS matrix */ 946 ierr = MatZeroEntries(A);CHKERRQ(ierr); 947 ierr = MatShift(A,shift);CHKERRQ(ierr); 948 if (A != B) { 949 ierr = MatZeroEntries(B);CHKERRQ(ierr); 950 ierr = MatShift(B,shift);CHKERRQ(ierr); 951 } 952 } 953 ierr = MatAXPY(A,-1,Arhs,axpy);CHKERRQ(ierr); 954 if (A != B) { 955 ierr = MatAXPY(B,-1,Brhs,axpy);CHKERRQ(ierr); 956 } 957 } 958 } 959 ierr = PetscLogEventEnd(TS_JacobianEval,ts,U,A,B);CHKERRQ(ierr); 960 PetscFunctionReturn(0); 961 } 962 963 #undef __FUNCT__ 964 #define __FUNCT__ "TSSetRHSFunction" 965 /*@C 966 TSSetRHSFunction - Sets the routine for evaluating the function, 967 where U_t = G(t,u). 968 969 Logically Collective on TS 970 971 Input Parameters: 972 + ts - the TS context obtained from TSCreate() 973 . r - vector to put the computed right hand side (or NULL to have it created) 974 . f - routine for evaluating the right-hand-side function 975 - ctx - [optional] user-defined context for private data for the 976 function evaluation routine (may be NULL) 977 978 Calling sequence of func: 979 $ func (TS ts,PetscReal t,Vec u,Vec F,void *ctx); 980 981 + t - current timestep 982 . u - input vector 983 . F - function vector 984 - ctx - [optional] user-defined function context 985 986 Level: beginner 987 988 Notes: You must call this function or TSSetIFunction() to define your ODE. You cannot use this function when solving a DAE. 989 990 .keywords: TS, timestep, set, right-hand-side, function 991 992 .seealso: TSSetRHSJacobian(), TSSetIJacobian(), TSSetIFunction() 993 @*/ 994 PetscErrorCode TSSetRHSFunction(TS ts,Vec r,PetscErrorCode (*f)(TS,PetscReal,Vec,Vec,void*),void *ctx) 995 { 996 PetscErrorCode ierr; 997 SNES snes; 998 Vec ralloc = NULL; 999 DM dm; 1000 1001 PetscFunctionBegin; 1002 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1003 if (r) PetscValidHeaderSpecific(r,VEC_CLASSID,2); 1004 1005 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1006 ierr = DMTSSetRHSFunction(dm,f,ctx);CHKERRQ(ierr); 1007 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1008 if (!r && !ts->dm && ts->vec_sol) { 1009 ierr = VecDuplicate(ts->vec_sol,&ralloc);CHKERRQ(ierr); 1010 r = ralloc; 1011 } 1012 ierr = SNESSetFunction(snes,r,SNESTSFormFunction,ts);CHKERRQ(ierr); 1013 ierr = VecDestroy(&ralloc);CHKERRQ(ierr); 1014 PetscFunctionReturn(0); 1015 } 1016 1017 #undef __FUNCT__ 1018 #define __FUNCT__ "TSSetSolutionFunction" 1019 /*@C 1020 TSSetSolutionFunction - Provide a function that computes the solution of the ODE or DAE 1021 1022 Logically Collective on TS 1023 1024 Input Parameters: 1025 + ts - the TS context obtained from TSCreate() 1026 . f - routine for evaluating the solution 1027 - ctx - [optional] user-defined context for private data for the 1028 function evaluation routine (may be NULL) 1029 1030 Calling sequence of func: 1031 $ func (TS ts,PetscReal t,Vec u,void *ctx); 1032 1033 + t - current timestep 1034 . u - output vector 1035 - ctx - [optional] user-defined function context 1036 1037 Notes: 1038 This routine is used for testing accuracy of time integration schemes when you already know the solution. 1039 If analytic solutions are not known for your system, consider using the Method of Manufactured Solutions to 1040 create closed-form solutions with non-physical forcing terms. 1041 1042 For low-dimensional problems solved in serial, such as small discrete systems, TSMonitorLGError() can be used to monitor the error history. 1043 1044 Level: beginner 1045 1046 .keywords: TS, timestep, set, right-hand-side, function 1047 1048 .seealso: TSSetRHSJacobian(), TSSetIJacobian(), TSComputeSolutionFunction(), TSSetForcingFunction() 1049 @*/ 1050 PetscErrorCode TSSetSolutionFunction(TS ts,PetscErrorCode (*f)(TS,PetscReal,Vec,void*),void *ctx) 1051 { 1052 PetscErrorCode ierr; 1053 DM dm; 1054 1055 PetscFunctionBegin; 1056 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1057 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1058 ierr = DMTSSetSolutionFunction(dm,f,ctx);CHKERRQ(ierr); 1059 PetscFunctionReturn(0); 1060 } 1061 1062 #undef __FUNCT__ 1063 #define __FUNCT__ "TSSetForcingFunction" 1064 /*@C 1065 TSSetForcingFunction - Provide a function that computes a forcing term for a ODE or PDE 1066 1067 Logically Collective on TS 1068 1069 Input Parameters: 1070 + ts - the TS context obtained from TSCreate() 1071 . f - routine for evaluating the forcing function 1072 - ctx - [optional] user-defined context for private data for the 1073 function evaluation routine (may be NULL) 1074 1075 Calling sequence of func: 1076 $ func (TS ts,PetscReal t,Vec u,void *ctx); 1077 1078 + t - current timestep 1079 . u - output vector 1080 - ctx - [optional] user-defined function context 1081 1082 Notes: 1083 This routine is useful for testing accuracy of time integration schemes when using the Method of Manufactured Solutions to 1084 create closed-form solutions with a non-physical forcing term. 1085 1086 For low-dimensional problems solved in serial, such as small discrete systems, TSMonitorLGError() can be used to monitor the error history. 1087 1088 Level: beginner 1089 1090 .keywords: TS, timestep, set, right-hand-side, function 1091 1092 .seealso: TSSetRHSJacobian(), TSSetIJacobian(), TSComputeSolutionFunction(), TSSetSolutionFunction() 1093 @*/ 1094 PetscErrorCode TSSetForcingFunction(TS ts,PetscErrorCode (*f)(TS,PetscReal,Vec,void*),void *ctx) 1095 { 1096 PetscErrorCode ierr; 1097 DM dm; 1098 1099 PetscFunctionBegin; 1100 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1101 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1102 ierr = DMTSSetForcingFunction(dm,f,ctx);CHKERRQ(ierr); 1103 PetscFunctionReturn(0); 1104 } 1105 1106 #undef __FUNCT__ 1107 #define __FUNCT__ "TSSetRHSJacobian" 1108 /*@C 1109 TSSetRHSJacobian - Sets the function to compute the Jacobian of G, 1110 where U_t = G(U,t), as well as the location to store the matrix. 1111 1112 Logically Collective on TS 1113 1114 Input Parameters: 1115 + ts - the TS context obtained from TSCreate() 1116 . Amat - (approximate) Jacobian matrix 1117 . Pmat - matrix from which preconditioner is to be constructed (usually the same as Amat) 1118 . f - the Jacobian evaluation routine 1119 - ctx - [optional] user-defined context for private data for the 1120 Jacobian evaluation routine (may be NULL) 1121 1122 Calling sequence of f: 1123 $ func (TS ts,PetscReal t,Vec u,Mat A,Mat B,void *ctx); 1124 1125 + t - current timestep 1126 . u - input vector 1127 . Amat - (approximate) Jacobian matrix 1128 . Pmat - matrix from which preconditioner is to be constructed (usually the same as Amat) 1129 - ctx - [optional] user-defined context for matrix evaluation routine 1130 1131 Notes: 1132 You must set all the diagonal entries of the matrices, if they are zero you must still set them with a zero value 1133 1134 The TS solver may modify the nonzero structure and the entries of the matrices Amat and Pmat between the calls to f() 1135 You should not assume the values are the same in the next call to f() as you set them in the previous call. 1136 1137 Level: beginner 1138 1139 .keywords: TS, timestep, set, right-hand-side, Jacobian 1140 1141 .seealso: SNESComputeJacobianDefaultColor(), TSSetRHSFunction(), TSRHSJacobianSetReuse(), TSSetIJacobian() 1142 1143 @*/ 1144 PetscErrorCode TSSetRHSJacobian(TS ts,Mat Amat,Mat Pmat,TSRHSJacobian f,void *ctx) 1145 { 1146 PetscErrorCode ierr; 1147 SNES snes; 1148 DM dm; 1149 TSIJacobian ijacobian; 1150 1151 PetscFunctionBegin; 1152 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1153 if (Amat) PetscValidHeaderSpecific(Amat,MAT_CLASSID,2); 1154 if (Pmat) PetscValidHeaderSpecific(Pmat,MAT_CLASSID,3); 1155 if (Amat) PetscCheckSameComm(ts,1,Amat,2); 1156 if (Pmat) PetscCheckSameComm(ts,1,Pmat,3); 1157 1158 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1159 ierr = DMTSSetRHSJacobian(dm,f,ctx);CHKERRQ(ierr); 1160 if (f == TSComputeRHSJacobianConstant) { 1161 /* Handle this case automatically for the user; otherwise user should call themselves. */ 1162 ierr = TSRHSJacobianSetReuse(ts,PETSC_TRUE);CHKERRQ(ierr); 1163 } 1164 ierr = DMTSGetIJacobian(dm,&ijacobian,NULL);CHKERRQ(ierr); 1165 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1166 if (!ijacobian) { 1167 ierr = SNESSetJacobian(snes,Amat,Pmat,SNESTSFormJacobian,ts);CHKERRQ(ierr); 1168 } 1169 if (Amat) { 1170 ierr = PetscObjectReference((PetscObject)Amat);CHKERRQ(ierr); 1171 ierr = MatDestroy(&ts->Arhs);CHKERRQ(ierr); 1172 1173 ts->Arhs = Amat; 1174 } 1175 if (Pmat) { 1176 ierr = PetscObjectReference((PetscObject)Pmat);CHKERRQ(ierr); 1177 ierr = MatDestroy(&ts->Brhs);CHKERRQ(ierr); 1178 1179 ts->Brhs = Pmat; 1180 } 1181 PetscFunctionReturn(0); 1182 } 1183 1184 1185 #undef __FUNCT__ 1186 #define __FUNCT__ "TSSetIFunction" 1187 /*@C 1188 TSSetIFunction - Set the function to compute F(t,U,U_t) where F() = 0 is the DAE to be solved. 1189 1190 Logically Collective on TS 1191 1192 Input Parameters: 1193 + ts - the TS context obtained from TSCreate() 1194 . r - vector to hold the residual (or NULL to have it created internally) 1195 . f - the function evaluation routine 1196 - ctx - user-defined context for private data for the function evaluation routine (may be NULL) 1197 1198 Calling sequence of f: 1199 $ f(TS ts,PetscReal t,Vec u,Vec u_t,Vec F,ctx); 1200 1201 + t - time at step/stage being solved 1202 . u - state vector 1203 . u_t - time derivative of state vector 1204 . F - function vector 1205 - ctx - [optional] user-defined context for matrix evaluation routine 1206 1207 Important: 1208 The user MUST call either this routine or TSSetRHSFunction() to define the ODE. When solving DAEs you must use this function. 1209 1210 Level: beginner 1211 1212 .keywords: TS, timestep, set, DAE, Jacobian 1213 1214 .seealso: TSSetRHSJacobian(), TSSetRHSFunction(), TSSetIJacobian() 1215 @*/ 1216 PetscErrorCode TSSetIFunction(TS ts,Vec res,TSIFunction f,void *ctx) 1217 { 1218 PetscErrorCode ierr; 1219 SNES snes; 1220 Vec resalloc = NULL; 1221 DM dm; 1222 1223 PetscFunctionBegin; 1224 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1225 if (res) PetscValidHeaderSpecific(res,VEC_CLASSID,2); 1226 1227 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1228 ierr = DMTSSetIFunction(dm,f,ctx);CHKERRQ(ierr); 1229 1230 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1231 if (!res && !ts->dm && ts->vec_sol) { 1232 ierr = VecDuplicate(ts->vec_sol,&resalloc);CHKERRQ(ierr); 1233 res = resalloc; 1234 } 1235 ierr = SNESSetFunction(snes,res,SNESTSFormFunction,ts);CHKERRQ(ierr); 1236 ierr = VecDestroy(&resalloc);CHKERRQ(ierr); 1237 PetscFunctionReturn(0); 1238 } 1239 1240 #undef __FUNCT__ 1241 #define __FUNCT__ "TSGetIFunction" 1242 /*@C 1243 TSGetIFunction - Returns the vector where the implicit residual is stored and the function/contex to compute it. 1244 1245 Not Collective 1246 1247 Input Parameter: 1248 . ts - the TS context 1249 1250 Output Parameter: 1251 + r - vector to hold residual (or NULL) 1252 . func - the function to compute residual (or NULL) 1253 - ctx - the function context (or NULL) 1254 1255 Level: advanced 1256 1257 .keywords: TS, nonlinear, get, function 1258 1259 .seealso: TSSetIFunction(), SNESGetFunction() 1260 @*/ 1261 PetscErrorCode TSGetIFunction(TS ts,Vec *r,TSIFunction *func,void **ctx) 1262 { 1263 PetscErrorCode ierr; 1264 SNES snes; 1265 DM dm; 1266 1267 PetscFunctionBegin; 1268 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1269 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1270 ierr = SNESGetFunction(snes,r,NULL,NULL);CHKERRQ(ierr); 1271 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1272 ierr = DMTSGetIFunction(dm,func,ctx);CHKERRQ(ierr); 1273 PetscFunctionReturn(0); 1274 } 1275 1276 #undef __FUNCT__ 1277 #define __FUNCT__ "TSGetRHSFunction" 1278 /*@C 1279 TSGetRHSFunction - Returns the vector where the right hand side is stored and the function/context to compute it. 1280 1281 Not Collective 1282 1283 Input Parameter: 1284 . ts - the TS context 1285 1286 Output Parameter: 1287 + r - vector to hold computed right hand side (or NULL) 1288 . func - the function to compute right hand side (or NULL) 1289 - ctx - the function context (or NULL) 1290 1291 Level: advanced 1292 1293 .keywords: TS, nonlinear, get, function 1294 1295 .seealso: TSSetRHSFunction(), SNESGetFunction() 1296 @*/ 1297 PetscErrorCode TSGetRHSFunction(TS ts,Vec *r,TSRHSFunction *func,void **ctx) 1298 { 1299 PetscErrorCode ierr; 1300 SNES snes; 1301 DM dm; 1302 1303 PetscFunctionBegin; 1304 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1305 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1306 ierr = SNESGetFunction(snes,r,NULL,NULL);CHKERRQ(ierr); 1307 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1308 ierr = DMTSGetRHSFunction(dm,func,ctx);CHKERRQ(ierr); 1309 PetscFunctionReturn(0); 1310 } 1311 1312 #undef __FUNCT__ 1313 #define __FUNCT__ "TSSetIJacobian" 1314 /*@C 1315 TSSetIJacobian - Set the function to compute the matrix dF/dU + a*dF/dU_t where F(t,U,U_t) is the function 1316 provided with TSSetIFunction(). 1317 1318 Logically Collective on TS 1319 1320 Input Parameters: 1321 + ts - the TS context obtained from TSCreate() 1322 . Amat - (approximate) Jacobian matrix 1323 . Pmat - matrix used to compute preconditioner (usually the same as Amat) 1324 . f - the Jacobian evaluation routine 1325 - ctx - user-defined context for private data for the Jacobian evaluation routine (may be NULL) 1326 1327 Calling sequence of f: 1328 $ f(TS ts,PetscReal t,Vec U,Vec U_t,PetscReal a,Mat Amat,Mat Pmat,void *ctx); 1329 1330 + t - time at step/stage being solved 1331 . U - state vector 1332 . U_t - time derivative of state vector 1333 . a - shift 1334 . Amat - (approximate) Jacobian of F(t,U,W+a*U), equivalent to dF/dU + a*dF/dU_t 1335 . Pmat - matrix used for constructing preconditioner, usually the same as Amat 1336 - ctx - [optional] user-defined context for matrix evaluation routine 1337 1338 Notes: 1339 The matrices Amat and Pmat are exactly the matrices that are used by SNES for the nonlinear solve. 1340 1341 If you know the operator Amat has a null space you can use MatSetNullSpace() and MatSetTransposeNullSpace() to supply the null 1342 space to Amat and the KSP solvers will automatically use that null space as needed during the solution process. 1343 1344 The matrix dF/dU + a*dF/dU_t you provide turns out to be 1345 the Jacobian of F(t,U,W+a*U) where F(t,U,U_t) = 0 is the DAE to be solved. 1346 The time integrator internally approximates U_t by W+a*U where the positive "shift" 1347 a and vector W depend on the integration method, step size, and past states. For example with 1348 the backward Euler method a = 1/dt and W = -a*U(previous timestep) so 1349 W + a*U = a*(U - U(previous timestep)) = (U - U(previous timestep))/dt 1350 1351 You must set all the diagonal entries of the matrices, if they are zero you must still set them with a zero value 1352 1353 The TS solver may modify the nonzero structure and the entries of the matrices Amat and Pmat between the calls to f() 1354 You should not assume the values are the same in the next call to f() as you set them in the previous call. 1355 1356 Level: beginner 1357 1358 .keywords: TS, timestep, DAE, Jacobian 1359 1360 .seealso: TSSetIFunction(), TSSetRHSJacobian(), SNESComputeJacobianDefaultColor(), SNESComputeJacobianDefault(), TSSetRHSFunction() 1361 1362 @*/ 1363 PetscErrorCode TSSetIJacobian(TS ts,Mat Amat,Mat Pmat,TSIJacobian f,void *ctx) 1364 { 1365 PetscErrorCode ierr; 1366 SNES snes; 1367 DM dm; 1368 1369 PetscFunctionBegin; 1370 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1371 if (Amat) PetscValidHeaderSpecific(Amat,MAT_CLASSID,2); 1372 if (Pmat) PetscValidHeaderSpecific(Pmat,MAT_CLASSID,3); 1373 if (Amat) PetscCheckSameComm(ts,1,Amat,2); 1374 if (Pmat) PetscCheckSameComm(ts,1,Pmat,3); 1375 1376 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 1377 ierr = DMTSSetIJacobian(dm,f,ctx);CHKERRQ(ierr); 1378 1379 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1380 ierr = SNESSetJacobian(snes,Amat,Pmat,SNESTSFormJacobian,ts);CHKERRQ(ierr); 1381 PetscFunctionReturn(0); 1382 } 1383 1384 #undef __FUNCT__ 1385 #define __FUNCT__ "TSRHSJacobianSetReuse" 1386 /*@ 1387 TSRHSJacobianSetReuse - restore RHS Jacobian before re-evaluating. Without this flag, TS will change the sign and 1388 shift the RHS Jacobian for a finite-time-step implicit solve, in which case the user function will need to recompute 1389 the entire Jacobian. The reuse flag must be set if the evaluation function will assume that the matrix entries have 1390 not been changed by the TS. 1391 1392 Logically Collective 1393 1394 Input Arguments: 1395 + ts - TS context obtained from TSCreate() 1396 - reuse - PETSC_TRUE if the RHS Jacobian 1397 1398 Level: intermediate 1399 1400 .seealso: TSSetRHSJacobian(), TSComputeRHSJacobianConstant() 1401 @*/ 1402 PetscErrorCode TSRHSJacobianSetReuse(TS ts,PetscBool reuse) 1403 { 1404 PetscFunctionBegin; 1405 ts->rhsjacobian.reuse = reuse; 1406 PetscFunctionReturn(0); 1407 } 1408 1409 #undef __FUNCT__ 1410 #define __FUNCT__ "TSLoad" 1411 /*@C 1412 TSLoad - Loads a KSP that has been stored in binary with KSPView(). 1413 1414 Collective on PetscViewer 1415 1416 Input Parameters: 1417 + newdm - the newly loaded TS, this needs to have been created with TSCreate() or 1418 some related function before a call to TSLoad(). 1419 - viewer - binary file viewer, obtained from PetscViewerBinaryOpen() 1420 1421 Level: intermediate 1422 1423 Notes: 1424 The type is determined by the data in the file, any type set into the TS before this call is ignored. 1425 1426 Notes for advanced users: 1427 Most users should not need to know the details of the binary storage 1428 format, since TSLoad() and TSView() completely hide these details. 1429 But for anyone who's interested, the standard binary matrix storage 1430 format is 1431 .vb 1432 has not yet been determined 1433 .ve 1434 1435 .seealso: PetscViewerBinaryOpen(), TSView(), MatLoad(), VecLoad() 1436 @*/ 1437 PetscErrorCode TSLoad(TS ts, PetscViewer viewer) 1438 { 1439 PetscErrorCode ierr; 1440 PetscBool isbinary; 1441 PetscInt classid; 1442 char type[256]; 1443 DMTS sdm; 1444 DM dm; 1445 1446 PetscFunctionBegin; 1447 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1448 PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,2); 1449 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERBINARY,&isbinary);CHKERRQ(ierr); 1450 if (!isbinary) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"Invalid viewer; open viewer with PetscViewerBinaryOpen()"); 1451 1452 ierr = PetscViewerBinaryRead(viewer,&classid,1,NULL,PETSC_INT);CHKERRQ(ierr); 1453 if (classid != TS_FILE_CLASSID) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_WRONG,"Not TS next in file"); 1454 ierr = PetscViewerBinaryRead(viewer,type,256,NULL,PETSC_CHAR);CHKERRQ(ierr); 1455 ierr = TSSetType(ts, type);CHKERRQ(ierr); 1456 if (ts->ops->load) { 1457 ierr = (*ts->ops->load)(ts,viewer);CHKERRQ(ierr); 1458 } 1459 ierr = DMCreate(PetscObjectComm((PetscObject)ts),&dm);CHKERRQ(ierr); 1460 ierr = DMLoad(dm,viewer);CHKERRQ(ierr); 1461 ierr = TSSetDM(ts,dm);CHKERRQ(ierr); 1462 ierr = DMCreateGlobalVector(ts->dm,&ts->vec_sol);CHKERRQ(ierr); 1463 ierr = VecLoad(ts->vec_sol,viewer);CHKERRQ(ierr); 1464 ierr = DMGetDMTS(ts->dm,&sdm);CHKERRQ(ierr); 1465 ierr = DMTSLoad(sdm,viewer);CHKERRQ(ierr); 1466 PetscFunctionReturn(0); 1467 } 1468 1469 #include <petscdraw.h> 1470 #if defined(PETSC_HAVE_SAWS) 1471 #include <petscviewersaws.h> 1472 #endif 1473 #undef __FUNCT__ 1474 #define __FUNCT__ "TSView" 1475 /*@C 1476 TSView - Prints the TS data structure. 1477 1478 Collective on TS 1479 1480 Input Parameters: 1481 + ts - the TS context obtained from TSCreate() 1482 - viewer - visualization context 1483 1484 Options Database Key: 1485 . -ts_view - calls TSView() at end of TSStep() 1486 1487 Notes: 1488 The available visualization contexts include 1489 + PETSC_VIEWER_STDOUT_SELF - standard output (default) 1490 - PETSC_VIEWER_STDOUT_WORLD - synchronized standard 1491 output where only the first processor opens 1492 the file. All other processors send their 1493 data to the first processor to print. 1494 1495 The user can open an alternative visualization context with 1496 PetscViewerASCIIOpen() - output to a specified file. 1497 1498 Level: beginner 1499 1500 .keywords: TS, timestep, view 1501 1502 .seealso: PetscViewerASCIIOpen() 1503 @*/ 1504 PetscErrorCode TSView(TS ts,PetscViewer viewer) 1505 { 1506 PetscErrorCode ierr; 1507 TSType type; 1508 PetscBool iascii,isstring,isundials,isbinary,isdraw; 1509 DMTS sdm; 1510 #if defined(PETSC_HAVE_SAWS) 1511 PetscBool issaws; 1512 #endif 1513 1514 PetscFunctionBegin; 1515 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1516 if (!viewer) { 1517 ierr = PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)ts),&viewer);CHKERRQ(ierr); 1518 } 1519 PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,2); 1520 PetscCheckSameComm(ts,1,viewer,2); 1521 1522 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERASCII,&iascii);CHKERRQ(ierr); 1523 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERSTRING,&isstring);CHKERRQ(ierr); 1524 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERBINARY,&isbinary);CHKERRQ(ierr); 1525 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERDRAW,&isdraw);CHKERRQ(ierr); 1526 #if defined(PETSC_HAVE_SAWS) 1527 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERSAWS,&issaws);CHKERRQ(ierr); 1528 #endif 1529 if (iascii) { 1530 ierr = PetscObjectPrintClassNamePrefixType((PetscObject)ts,viewer);CHKERRQ(ierr); 1531 ierr = PetscViewerASCIIPrintf(viewer," maximum steps=%D\n",ts->max_steps);CHKERRQ(ierr); 1532 ierr = PetscViewerASCIIPrintf(viewer," maximum time=%g\n",(double)ts->max_time);CHKERRQ(ierr); 1533 if (ts->problem_type == TS_NONLINEAR) { 1534 ierr = PetscViewerASCIIPrintf(viewer," total number of nonlinear solver iterations=%D\n",ts->snes_its);CHKERRQ(ierr); 1535 ierr = PetscViewerASCIIPrintf(viewer," total number of nonlinear solve failures=%D\n",ts->num_snes_failures);CHKERRQ(ierr); 1536 } 1537 ierr = PetscViewerASCIIPrintf(viewer," total number of linear solver iterations=%D\n",ts->ksp_its);CHKERRQ(ierr); 1538 ierr = PetscViewerASCIIPrintf(viewer," total number of rejected steps=%D\n",ts->reject);CHKERRQ(ierr); 1539 ierr = DMGetDMTS(ts->dm,&sdm);CHKERRQ(ierr); 1540 ierr = DMTSView(sdm,viewer);CHKERRQ(ierr); 1541 if (ts->ops->view) { 1542 ierr = PetscViewerASCIIPushTab(viewer);CHKERRQ(ierr); 1543 ierr = (*ts->ops->view)(ts,viewer);CHKERRQ(ierr); 1544 ierr = PetscViewerASCIIPopTab(viewer);CHKERRQ(ierr); 1545 } 1546 } else if (isstring) { 1547 ierr = TSGetType(ts,&type);CHKERRQ(ierr); 1548 ierr = PetscViewerStringSPrintf(viewer," %-7.7s",type);CHKERRQ(ierr); 1549 } else if (isbinary) { 1550 PetscInt classid = TS_FILE_CLASSID; 1551 MPI_Comm comm; 1552 PetscMPIInt rank; 1553 char type[256]; 1554 1555 ierr = PetscObjectGetComm((PetscObject)ts,&comm);CHKERRQ(ierr); 1556 ierr = MPI_Comm_rank(comm,&rank);CHKERRQ(ierr); 1557 if (!rank) { 1558 ierr = PetscViewerBinaryWrite(viewer,&classid,1,PETSC_INT,PETSC_FALSE);CHKERRQ(ierr); 1559 ierr = PetscStrncpy(type,((PetscObject)ts)->type_name,256);CHKERRQ(ierr); 1560 ierr = PetscViewerBinaryWrite(viewer,type,256,PETSC_CHAR,PETSC_FALSE);CHKERRQ(ierr); 1561 } 1562 if (ts->ops->view) { 1563 ierr = (*ts->ops->view)(ts,viewer);CHKERRQ(ierr); 1564 } 1565 ierr = DMView(ts->dm,viewer);CHKERRQ(ierr); 1566 ierr = VecView(ts->vec_sol,viewer);CHKERRQ(ierr); 1567 ierr = DMGetDMTS(ts->dm,&sdm);CHKERRQ(ierr); 1568 ierr = DMTSView(sdm,viewer);CHKERRQ(ierr); 1569 } else if (isdraw) { 1570 PetscDraw draw; 1571 char str[36]; 1572 PetscReal x,y,bottom,h; 1573 1574 ierr = PetscViewerDrawGetDraw(viewer,0,&draw);CHKERRQ(ierr); 1575 ierr = PetscDrawGetCurrentPoint(draw,&x,&y);CHKERRQ(ierr); 1576 ierr = PetscStrcpy(str,"TS: ");CHKERRQ(ierr); 1577 ierr = PetscStrcat(str,((PetscObject)ts)->type_name);CHKERRQ(ierr); 1578 ierr = PetscDrawStringBoxed(draw,x,y,PETSC_DRAW_BLACK,PETSC_DRAW_BLACK,str,NULL,&h);CHKERRQ(ierr); 1579 bottom = y - h; 1580 ierr = PetscDrawPushCurrentPoint(draw,x,bottom);CHKERRQ(ierr); 1581 if (ts->ops->view) { 1582 ierr = (*ts->ops->view)(ts,viewer);CHKERRQ(ierr); 1583 } 1584 ierr = PetscDrawPopCurrentPoint(draw);CHKERRQ(ierr); 1585 #if defined(PETSC_HAVE_SAWS) 1586 } else if (issaws) { 1587 PetscMPIInt rank; 1588 const char *name; 1589 1590 ierr = PetscObjectGetName((PetscObject)ts,&name);CHKERRQ(ierr); 1591 ierr = MPI_Comm_rank(PETSC_COMM_WORLD,&rank);CHKERRQ(ierr); 1592 if (!((PetscObject)ts)->amsmem && !rank) { 1593 char dir[1024]; 1594 1595 ierr = PetscObjectViewSAWs((PetscObject)ts,viewer);CHKERRQ(ierr); 1596 ierr = PetscSNPrintf(dir,1024,"/PETSc/Objects/%s/time_step",name);CHKERRQ(ierr); 1597 PetscStackCallSAWs(SAWs_Register,(dir,&ts->steps,1,SAWs_READ,SAWs_INT)); 1598 ierr = PetscSNPrintf(dir,1024,"/PETSc/Objects/%s/time",name);CHKERRQ(ierr); 1599 PetscStackCallSAWs(SAWs_Register,(dir,&ts->ptime,1,SAWs_READ,SAWs_DOUBLE)); 1600 } 1601 if (ts->ops->view) { 1602 ierr = (*ts->ops->view)(ts,viewer);CHKERRQ(ierr); 1603 } 1604 #endif 1605 } 1606 1607 ierr = PetscViewerASCIIPushTab(viewer);CHKERRQ(ierr); 1608 ierr = PetscObjectTypeCompare((PetscObject)ts,TSSUNDIALS,&isundials);CHKERRQ(ierr); 1609 ierr = PetscViewerASCIIPopTab(viewer);CHKERRQ(ierr); 1610 PetscFunctionReturn(0); 1611 } 1612 1613 1614 #undef __FUNCT__ 1615 #define __FUNCT__ "TSSetApplicationContext" 1616 /*@ 1617 TSSetApplicationContext - Sets an optional user-defined context for 1618 the timesteppers. 1619 1620 Logically Collective on TS 1621 1622 Input Parameters: 1623 + ts - the TS context obtained from TSCreate() 1624 - usrP - optional user context 1625 1626 Fortran Notes: To use this from Fortran you must write a Fortran interface definition for this 1627 function that tells Fortran the Fortran derived data type that you are passing in as the ctx argument. 1628 1629 Level: intermediate 1630 1631 .keywords: TS, timestep, set, application, context 1632 1633 .seealso: TSGetApplicationContext() 1634 @*/ 1635 PetscErrorCode TSSetApplicationContext(TS ts,void *usrP) 1636 { 1637 PetscFunctionBegin; 1638 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1639 ts->user = usrP; 1640 PetscFunctionReturn(0); 1641 } 1642 1643 #undef __FUNCT__ 1644 #define __FUNCT__ "TSGetApplicationContext" 1645 /*@ 1646 TSGetApplicationContext - Gets the user-defined context for the 1647 timestepper. 1648 1649 Not Collective 1650 1651 Input Parameter: 1652 . ts - the TS context obtained from TSCreate() 1653 1654 Output Parameter: 1655 . usrP - user context 1656 1657 Fortran Notes: To use this from Fortran you must write a Fortran interface definition for this 1658 function that tells Fortran the Fortran derived data type that you are passing in as the ctx argument. 1659 1660 Level: intermediate 1661 1662 .keywords: TS, timestep, get, application, context 1663 1664 .seealso: TSSetApplicationContext() 1665 @*/ 1666 PetscErrorCode TSGetApplicationContext(TS ts,void *usrP) 1667 { 1668 PetscFunctionBegin; 1669 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1670 *(void**)usrP = ts->user; 1671 PetscFunctionReturn(0); 1672 } 1673 1674 #undef __FUNCT__ 1675 #define __FUNCT__ "TSGetTimeStepNumber" 1676 /*@ 1677 TSGetTimeStepNumber - Gets the number of time steps completed. 1678 1679 Not Collective 1680 1681 Input Parameter: 1682 . ts - the TS context obtained from TSCreate() 1683 1684 Output Parameter: 1685 . iter - number of steps completed so far 1686 1687 Level: intermediate 1688 1689 .keywords: TS, timestep, get, iteration, number 1690 .seealso: TSGetTime(), TSGetTimeStep(), TSSetPreStep(), TSSetPreStage(), TSSetPostStage(), TSSetPostStep() 1691 @*/ 1692 PetscErrorCode TSGetTimeStepNumber(TS ts,PetscInt *iter) 1693 { 1694 PetscFunctionBegin; 1695 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1696 PetscValidIntPointer(iter,2); 1697 *iter = ts->steps; 1698 PetscFunctionReturn(0); 1699 } 1700 1701 #undef __FUNCT__ 1702 #define __FUNCT__ "TSSetInitialTimeStep" 1703 /*@ 1704 TSSetInitialTimeStep - Sets the initial timestep to be used, 1705 as well as the initial time. 1706 1707 Logically Collective on TS 1708 1709 Input Parameters: 1710 + ts - the TS context obtained from TSCreate() 1711 . initial_time - the initial time 1712 - time_step - the size of the timestep 1713 1714 Level: intermediate 1715 1716 .seealso: TSSetTimeStep(), TSGetTimeStep() 1717 1718 .keywords: TS, set, initial, timestep 1719 @*/ 1720 PetscErrorCode TSSetInitialTimeStep(TS ts,PetscReal initial_time,PetscReal time_step) 1721 { 1722 PetscErrorCode ierr; 1723 1724 PetscFunctionBegin; 1725 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1726 ierr = TSSetTimeStep(ts,time_step);CHKERRQ(ierr); 1727 ierr = TSSetTime(ts,initial_time);CHKERRQ(ierr); 1728 PetscFunctionReturn(0); 1729 } 1730 1731 #undef __FUNCT__ 1732 #define __FUNCT__ "TSSetTimeStep" 1733 /*@ 1734 TSSetTimeStep - Allows one to reset the timestep at any time, 1735 useful for simple pseudo-timestepping codes. 1736 1737 Logically Collective on TS 1738 1739 Input Parameters: 1740 + ts - the TS context obtained from TSCreate() 1741 - time_step - the size of the timestep 1742 1743 Level: intermediate 1744 1745 .seealso: TSSetInitialTimeStep(), TSGetTimeStep() 1746 1747 .keywords: TS, set, timestep 1748 @*/ 1749 PetscErrorCode TSSetTimeStep(TS ts,PetscReal time_step) 1750 { 1751 PetscFunctionBegin; 1752 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1753 PetscValidLogicalCollectiveReal(ts,time_step,2); 1754 ts->time_step = time_step; 1755 ts->time_step_orig = time_step; 1756 PetscFunctionReturn(0); 1757 } 1758 1759 #undef __FUNCT__ 1760 #define __FUNCT__ "TSSetExactFinalTime" 1761 /*@ 1762 TSSetExactFinalTime - Determines whether to adapt the final time step to 1763 match the exact final time, interpolate solution to the exact final time, 1764 or just return at the final time TS computed. 1765 1766 Logically Collective on TS 1767 1768 Input Parameter: 1769 + ts - the time-step context 1770 - eftopt - exact final time option 1771 1772 $ TS_EXACTFINALTIME_STEPOVER - Don't do anything if final time is exceeded 1773 $ TS_EXACTFINALTIME_INTERPOLATE - Interpolate back to final time 1774 $ TS_EXACTFINALTIME_MATCHSTEP - Adapt final time step to match the final time 1775 1776 Options Database: 1777 . -ts_exact_final_time <stepover,interpolate,matchstep> - select the final step at runtime 1778 1779 Warning: If you use the option TS_EXACTFINALTIME_STEPOVER the solution may be at a very different time 1780 then the final time you selected. 1781 1782 Level: beginner 1783 1784 .seealso: TSExactFinalTimeOption 1785 @*/ 1786 PetscErrorCode TSSetExactFinalTime(TS ts,TSExactFinalTimeOption eftopt) 1787 { 1788 PetscFunctionBegin; 1789 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1790 PetscValidLogicalCollectiveEnum(ts,eftopt,2); 1791 ts->exact_final_time = eftopt; 1792 PetscFunctionReturn(0); 1793 } 1794 1795 #undef __FUNCT__ 1796 #define __FUNCT__ "TSGetTimeStep" 1797 /*@ 1798 TSGetTimeStep - Gets the current timestep size. 1799 1800 Not Collective 1801 1802 Input Parameter: 1803 . ts - the TS context obtained from TSCreate() 1804 1805 Output Parameter: 1806 . dt - the current timestep size 1807 1808 Level: intermediate 1809 1810 .seealso: TSSetInitialTimeStep(), TSGetTimeStep() 1811 1812 .keywords: TS, get, timestep 1813 @*/ 1814 PetscErrorCode TSGetTimeStep(TS ts,PetscReal *dt) 1815 { 1816 PetscFunctionBegin; 1817 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1818 PetscValidRealPointer(dt,2); 1819 *dt = ts->time_step; 1820 PetscFunctionReturn(0); 1821 } 1822 1823 #undef __FUNCT__ 1824 #define __FUNCT__ "TSGetSolution" 1825 /*@ 1826 TSGetSolution - Returns the solution at the present timestep. It 1827 is valid to call this routine inside the function that you are evaluating 1828 in order to move to the new timestep. This vector not changed until 1829 the solution at the next timestep has been calculated. 1830 1831 Not Collective, but Vec returned is parallel if TS is parallel 1832 1833 Input Parameter: 1834 . ts - the TS context obtained from TSCreate() 1835 1836 Output Parameter: 1837 . v - the vector containing the solution 1838 1839 Level: intermediate 1840 1841 .seealso: TSGetTimeStep() 1842 1843 .keywords: TS, timestep, get, solution 1844 @*/ 1845 PetscErrorCode TSGetSolution(TS ts,Vec *v) 1846 { 1847 PetscFunctionBegin; 1848 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1849 PetscValidPointer(v,2); 1850 *v = ts->vec_sol; 1851 PetscFunctionReturn(0); 1852 } 1853 1854 #undef __FUNCT__ 1855 #define __FUNCT__ "TSGetCostGradients" 1856 /*@ 1857 TSGetCostGradients - Returns the gradients from the TSAdjointSolve() 1858 1859 Not Collective, but Vec returned is parallel if TS is parallel 1860 1861 Input Parameter: 1862 . ts - the TS context obtained from TSCreate() 1863 1864 Output Parameter: 1865 + lambda - vectors containing the gradients of the cost functions with respect to the ODE/DAE solution variables 1866 - mu - vectors containing the gradients of the cost functions with respect to the problem parameters 1867 1868 Level: intermediate 1869 1870 .seealso: TSGetTimeStep() 1871 1872 .keywords: TS, timestep, get, sensitivity 1873 @*/ 1874 PetscErrorCode TSGetCostGradients(TS ts,PetscInt *numcost,Vec **lambda,Vec **mu) 1875 { 1876 PetscFunctionBegin; 1877 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1878 if (numcost) *numcost = ts->numcost; 1879 if (lambda) *lambda = ts->vecs_sensi; 1880 if (mu) *mu = ts->vecs_sensip; 1881 PetscFunctionReturn(0); 1882 } 1883 1884 /* ----- Routines to initialize and destroy a timestepper ---- */ 1885 #undef __FUNCT__ 1886 #define __FUNCT__ "TSSetProblemType" 1887 /*@ 1888 TSSetProblemType - Sets the type of problem to be solved. 1889 1890 Not collective 1891 1892 Input Parameters: 1893 + ts - The TS 1894 - type - One of TS_LINEAR, TS_NONLINEAR where these types refer to problems of the forms 1895 .vb 1896 U_t - A U = 0 (linear) 1897 U_t - A(t) U = 0 (linear) 1898 F(t,U,U_t) = 0 (nonlinear) 1899 .ve 1900 1901 Level: beginner 1902 1903 .keywords: TS, problem type 1904 .seealso: TSSetUp(), TSProblemType, TS 1905 @*/ 1906 PetscErrorCode TSSetProblemType(TS ts, TSProblemType type) 1907 { 1908 PetscErrorCode ierr; 1909 1910 PetscFunctionBegin; 1911 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 1912 ts->problem_type = type; 1913 if (type == TS_LINEAR) { 1914 SNES snes; 1915 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 1916 ierr = SNESSetType(snes,SNESKSPONLY);CHKERRQ(ierr); 1917 } 1918 PetscFunctionReturn(0); 1919 } 1920 1921 #undef __FUNCT__ 1922 #define __FUNCT__ "TSGetProblemType" 1923 /*@C 1924 TSGetProblemType - Gets the type of problem to be solved. 1925 1926 Not collective 1927 1928 Input Parameter: 1929 . ts - The TS 1930 1931 Output Parameter: 1932 . type - One of TS_LINEAR, TS_NONLINEAR where these types refer to problems of the forms 1933 .vb 1934 M U_t = A U 1935 M(t) U_t = A(t) U 1936 F(t,U,U_t) 1937 .ve 1938 1939 Level: beginner 1940 1941 .keywords: TS, problem type 1942 .seealso: TSSetUp(), TSProblemType, TS 1943 @*/ 1944 PetscErrorCode TSGetProblemType(TS ts, TSProblemType *type) 1945 { 1946 PetscFunctionBegin; 1947 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 1948 PetscValidIntPointer(type,2); 1949 *type = ts->problem_type; 1950 PetscFunctionReturn(0); 1951 } 1952 1953 #undef __FUNCT__ 1954 #define __FUNCT__ "TSSetUp" 1955 /*@ 1956 TSSetUp - Sets up the internal data structures for the later use 1957 of a timestepper. 1958 1959 Collective on TS 1960 1961 Input Parameter: 1962 . ts - the TS context obtained from TSCreate() 1963 1964 Notes: 1965 For basic use of the TS solvers the user need not explicitly call 1966 TSSetUp(), since these actions will automatically occur during 1967 the call to TSStep(). However, if one wishes to control this 1968 phase separately, TSSetUp() should be called after TSCreate() 1969 and optional routines of the form TSSetXXX(), but before TSStep(). 1970 1971 Level: advanced 1972 1973 .keywords: TS, timestep, setup 1974 1975 .seealso: TSCreate(), TSStep(), TSDestroy() 1976 @*/ 1977 PetscErrorCode TSSetUp(TS ts) 1978 { 1979 PetscErrorCode ierr; 1980 DM dm; 1981 PetscErrorCode (*func)(SNES,Vec,Vec,void*); 1982 PetscErrorCode (*jac)(SNES,Vec,Mat,Mat,void*); 1983 TSIJacobian ijac; 1984 TSRHSJacobian rhsjac; 1985 1986 PetscFunctionBegin; 1987 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 1988 if (ts->setupcalled) PetscFunctionReturn(0); 1989 1990 ts->total_steps = 0; 1991 if (!((PetscObject)ts)->type_name) { 1992 ierr = TSSetType(ts,TSEULER);CHKERRQ(ierr); 1993 } 1994 1995 if (!ts->vec_sol) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Must call TSSetSolution() first"); 1996 1997 1998 if (ts->rhsjacobian.reuse) { 1999 Mat Amat,Pmat; 2000 SNES snes; 2001 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 2002 ierr = SNESGetJacobian(snes,&Amat,&Pmat,NULL,NULL);CHKERRQ(ierr); 2003 /* Matching matrices implies that an IJacobian is NOT set, because if it had been set, the IJacobian's matrix would 2004 * have displaced the RHS matrix */ 2005 if (Amat == ts->Arhs) { 2006 ierr = MatDuplicate(ts->Arhs,MAT_DO_NOT_COPY_VALUES,&Amat);CHKERRQ(ierr); 2007 ierr = SNESSetJacobian(snes,Amat,NULL,NULL,NULL);CHKERRQ(ierr); 2008 ierr = MatDestroy(&Amat);CHKERRQ(ierr); 2009 } 2010 if (Pmat == ts->Brhs) { 2011 ierr = MatDuplicate(ts->Brhs,MAT_DO_NOT_COPY_VALUES,&Pmat);CHKERRQ(ierr); 2012 ierr = SNESSetJacobian(snes,NULL,Pmat,NULL,NULL);CHKERRQ(ierr); 2013 ierr = MatDestroy(&Pmat);CHKERRQ(ierr); 2014 } 2015 } 2016 if (ts->ops->setup) { 2017 ierr = (*ts->ops->setup)(ts);CHKERRQ(ierr); 2018 } 2019 2020 /* in the case where we've set a DMTSFunction or what have you, we need the default SNESFunction 2021 to be set right but can't do it elsewhere due to the overreliance on ctx=ts. 2022 */ 2023 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 2024 ierr = DMSNESGetFunction(dm,&func,NULL);CHKERRQ(ierr); 2025 if (!func) { 2026 ierr =DMSNESSetFunction(dm,SNESTSFormFunction,ts);CHKERRQ(ierr); 2027 } 2028 /* if the SNES doesn't have a jacobian set and the TS has an ijacobian or rhsjacobian set, set the SNES to use it. 2029 Otherwise, the SNES will use coloring internally to form the Jacobian. 2030 */ 2031 ierr = DMSNESGetJacobian(dm,&jac,NULL);CHKERRQ(ierr); 2032 ierr = DMTSGetIJacobian(dm,&ijac,NULL);CHKERRQ(ierr); 2033 ierr = DMTSGetRHSJacobian(dm,&rhsjac,NULL);CHKERRQ(ierr); 2034 if (!jac && (ijac || rhsjac)) { 2035 ierr = DMSNESSetJacobian(dm,SNESTSFormJacobian,ts);CHKERRQ(ierr); 2036 } 2037 ts->setupcalled = PETSC_TRUE; 2038 PetscFunctionReturn(0); 2039 } 2040 2041 #undef __FUNCT__ 2042 #define __FUNCT__ "TSAdjointSetUp" 2043 /*@ 2044 TSAdjointSetUp - Sets up the internal data structures for the later use 2045 of an adjoint solver 2046 2047 Collective on TS 2048 2049 Input Parameter: 2050 . ts - the TS context obtained from TSCreate() 2051 2052 Level: advanced 2053 2054 .keywords: TS, timestep, setup 2055 2056 .seealso: TSCreate(), TSAdjointStep(), TSSetCostGradients() 2057 @*/ 2058 PetscErrorCode TSAdjointSetUp(TS ts) 2059 { 2060 PetscErrorCode ierr; 2061 2062 PetscFunctionBegin; 2063 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2064 if (ts->adjointsetupcalled) PetscFunctionReturn(0); 2065 if (!ts->vecs_sensi) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Must call TSSetCostGradients() first"); 2066 2067 if (ts->vec_costintegral) { /* if there is integral in the cost function*/ 2068 ierr = VecDuplicateVecs(ts->vecs_sensi[0],ts->numcost,&ts->vecs_drdy);CHKERRQ(ierr); 2069 if (ts->vecs_sensip){ 2070 ierr = VecDuplicateVecs(ts->vecs_sensip[0],ts->numcost,&ts->vecs_drdp);CHKERRQ(ierr); 2071 } 2072 } 2073 2074 if (ts->ops->adjointsetup) { 2075 ierr = (*ts->ops->adjointsetup)(ts);CHKERRQ(ierr); 2076 } 2077 ts->adjointsetupcalled = PETSC_TRUE; 2078 PetscFunctionReturn(0); 2079 } 2080 2081 #undef __FUNCT__ 2082 #define __FUNCT__ "TSReset" 2083 /*@ 2084 TSReset - Resets a TS context and removes any allocated Vecs and Mats. 2085 2086 Collective on TS 2087 2088 Input Parameter: 2089 . ts - the TS context obtained from TSCreate() 2090 2091 Level: beginner 2092 2093 .keywords: TS, timestep, reset 2094 2095 .seealso: TSCreate(), TSSetup(), TSDestroy() 2096 @*/ 2097 PetscErrorCode TSReset(TS ts) 2098 { 2099 PetscErrorCode ierr; 2100 2101 PetscFunctionBegin; 2102 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2103 2104 if (ts->ops->reset) { 2105 ierr = (*ts->ops->reset)(ts);CHKERRQ(ierr); 2106 } 2107 if (ts->snes) {ierr = SNESReset(ts->snes);CHKERRQ(ierr);} 2108 if (ts->adapt) {ierr = TSAdaptReset(ts->adapt);CHKERRQ(ierr);} 2109 2110 ierr = MatDestroy(&ts->Arhs);CHKERRQ(ierr); 2111 ierr = MatDestroy(&ts->Brhs);CHKERRQ(ierr); 2112 ierr = VecDestroy(&ts->Frhs);CHKERRQ(ierr); 2113 ierr = VecDestroy(&ts->vec_sol);CHKERRQ(ierr); 2114 ierr = VecDestroy(&ts->vatol);CHKERRQ(ierr); 2115 ierr = VecDestroy(&ts->vrtol);CHKERRQ(ierr); 2116 ierr = VecDestroyVecs(ts->nwork,&ts->work);CHKERRQ(ierr); 2117 2118 if (ts->vec_costintegral) { 2119 ierr = VecDestroyVecs(ts->numcost,&ts->vecs_drdy);CHKERRQ(ierr); 2120 if (ts->vecs_drdp){ 2121 ierr = VecDestroyVecs(ts->numcost,&ts->vecs_drdp);CHKERRQ(ierr); 2122 } 2123 } 2124 ts->vecs_sensi = NULL; 2125 ts->vecs_sensip = NULL; 2126 ierr = MatDestroy(&ts->Jacp);CHKERRQ(ierr); 2127 ierr = VecDestroy(&ts->vec_costintegral);CHKERRQ(ierr); 2128 ierr = VecDestroy(&ts->vec_costintegrand);CHKERRQ(ierr); 2129 ts->setupcalled = PETSC_FALSE; 2130 PetscFunctionReturn(0); 2131 } 2132 2133 #undef __FUNCT__ 2134 #define __FUNCT__ "TSDestroy" 2135 /*@ 2136 TSDestroy - Destroys the timestepper context that was created 2137 with TSCreate(). 2138 2139 Collective on TS 2140 2141 Input Parameter: 2142 . ts - the TS context obtained from TSCreate() 2143 2144 Level: beginner 2145 2146 .keywords: TS, timestepper, destroy 2147 2148 .seealso: TSCreate(), TSSetUp(), TSSolve() 2149 @*/ 2150 PetscErrorCode TSDestroy(TS *ts) 2151 { 2152 PetscErrorCode ierr; 2153 2154 PetscFunctionBegin; 2155 if (!*ts) PetscFunctionReturn(0); 2156 PetscValidHeaderSpecific((*ts),TS_CLASSID,1); 2157 if (--((PetscObject)(*ts))->refct > 0) {*ts = 0; PetscFunctionReturn(0);} 2158 2159 ierr = TSReset((*ts));CHKERRQ(ierr); 2160 2161 /* if memory was published with SAWs then destroy it */ 2162 ierr = PetscObjectSAWsViewOff((PetscObject)*ts);CHKERRQ(ierr); 2163 if ((*ts)->ops->destroy) {ierr = (*(*ts)->ops->destroy)((*ts));CHKERRQ(ierr);} 2164 2165 ierr = TSTrajectoryDestroy(&(*ts)->trajectory);CHKERRQ(ierr); 2166 2167 ierr = TSAdaptDestroy(&(*ts)->adapt);CHKERRQ(ierr); 2168 if ((*ts)->event) { 2169 ierr = TSEventMonitorDestroy(&(*ts)->event);CHKERRQ(ierr); 2170 } 2171 ierr = SNESDestroy(&(*ts)->snes);CHKERRQ(ierr); 2172 ierr = DMDestroy(&(*ts)->dm);CHKERRQ(ierr); 2173 ierr = TSMonitorCancel((*ts));CHKERRQ(ierr); 2174 ierr = TSAdjointMonitorCancel((*ts));CHKERRQ(ierr); 2175 2176 ierr = PetscHeaderDestroy(ts);CHKERRQ(ierr); 2177 PetscFunctionReturn(0); 2178 } 2179 2180 #undef __FUNCT__ 2181 #define __FUNCT__ "TSGetSNES" 2182 /*@ 2183 TSGetSNES - Returns the SNES (nonlinear solver) associated with 2184 a TS (timestepper) context. Valid only for nonlinear problems. 2185 2186 Not Collective, but SNES is parallel if TS is parallel 2187 2188 Input Parameter: 2189 . ts - the TS context obtained from TSCreate() 2190 2191 Output Parameter: 2192 . snes - the nonlinear solver context 2193 2194 Notes: 2195 The user can then directly manipulate the SNES context to set various 2196 options, etc. Likewise, the user can then extract and manipulate the 2197 KSP, KSP, and PC contexts as well. 2198 2199 TSGetSNES() does not work for integrators that do not use SNES; in 2200 this case TSGetSNES() returns NULL in snes. 2201 2202 Level: beginner 2203 2204 .keywords: timestep, get, SNES 2205 @*/ 2206 PetscErrorCode TSGetSNES(TS ts,SNES *snes) 2207 { 2208 PetscErrorCode ierr; 2209 2210 PetscFunctionBegin; 2211 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2212 PetscValidPointer(snes,2); 2213 if (!ts->snes) { 2214 ierr = SNESCreate(PetscObjectComm((PetscObject)ts),&ts->snes);CHKERRQ(ierr); 2215 ierr = SNESSetFunction(ts->snes,NULL,SNESTSFormFunction,ts);CHKERRQ(ierr); 2216 ierr = PetscLogObjectParent((PetscObject)ts,(PetscObject)ts->snes);CHKERRQ(ierr); 2217 ierr = PetscObjectIncrementTabLevel((PetscObject)ts->snes,(PetscObject)ts,1);CHKERRQ(ierr); 2218 if (ts->dm) {ierr = SNESSetDM(ts->snes,ts->dm);CHKERRQ(ierr);} 2219 if (ts->problem_type == TS_LINEAR) { 2220 ierr = SNESSetType(ts->snes,SNESKSPONLY);CHKERRQ(ierr); 2221 } 2222 } 2223 *snes = ts->snes; 2224 PetscFunctionReturn(0); 2225 } 2226 2227 #undef __FUNCT__ 2228 #define __FUNCT__ "TSSetSNES" 2229 /*@ 2230 TSSetSNES - Set the SNES (nonlinear solver) to be used by the timestepping context 2231 2232 Collective 2233 2234 Input Parameter: 2235 + ts - the TS context obtained from TSCreate() 2236 - snes - the nonlinear solver context 2237 2238 Notes: 2239 Most users should have the TS created by calling TSGetSNES() 2240 2241 Level: developer 2242 2243 .keywords: timestep, set, SNES 2244 @*/ 2245 PetscErrorCode TSSetSNES(TS ts,SNES snes) 2246 { 2247 PetscErrorCode ierr; 2248 PetscErrorCode (*func)(SNES,Vec,Mat,Mat,void*); 2249 2250 PetscFunctionBegin; 2251 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2252 PetscValidHeaderSpecific(snes,SNES_CLASSID,2); 2253 ierr = PetscObjectReference((PetscObject)snes);CHKERRQ(ierr); 2254 ierr = SNESDestroy(&ts->snes);CHKERRQ(ierr); 2255 2256 ts->snes = snes; 2257 2258 ierr = SNESSetFunction(ts->snes,NULL,SNESTSFormFunction,ts);CHKERRQ(ierr); 2259 ierr = SNESGetJacobian(ts->snes,NULL,NULL,&func,NULL);CHKERRQ(ierr); 2260 if (func == SNESTSFormJacobian) { 2261 ierr = SNESSetJacobian(ts->snes,NULL,NULL,SNESTSFormJacobian,ts);CHKERRQ(ierr); 2262 } 2263 PetscFunctionReturn(0); 2264 } 2265 2266 #undef __FUNCT__ 2267 #define __FUNCT__ "TSGetKSP" 2268 /*@ 2269 TSGetKSP - Returns the KSP (linear solver) associated with 2270 a TS (timestepper) context. 2271 2272 Not Collective, but KSP is parallel if TS is parallel 2273 2274 Input Parameter: 2275 . ts - the TS context obtained from TSCreate() 2276 2277 Output Parameter: 2278 . ksp - the nonlinear solver context 2279 2280 Notes: 2281 The user can then directly manipulate the KSP context to set various 2282 options, etc. Likewise, the user can then extract and manipulate the 2283 KSP and PC contexts as well. 2284 2285 TSGetKSP() does not work for integrators that do not use KSP; 2286 in this case TSGetKSP() returns NULL in ksp. 2287 2288 Level: beginner 2289 2290 .keywords: timestep, get, KSP 2291 @*/ 2292 PetscErrorCode TSGetKSP(TS ts,KSP *ksp) 2293 { 2294 PetscErrorCode ierr; 2295 SNES snes; 2296 2297 PetscFunctionBegin; 2298 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2299 PetscValidPointer(ksp,2); 2300 if (!((PetscObject)ts)->type_name) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_NULL,"KSP is not created yet. Call TSSetType() first"); 2301 if (ts->problem_type != TS_LINEAR) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"Linear only; use TSGetSNES()"); 2302 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 2303 ierr = SNESGetKSP(snes,ksp);CHKERRQ(ierr); 2304 PetscFunctionReturn(0); 2305 } 2306 2307 /* ----------- Routines to set solver parameters ---------- */ 2308 2309 #undef __FUNCT__ 2310 #define __FUNCT__ "TSGetDuration" 2311 /*@ 2312 TSGetDuration - Gets the maximum number of timesteps to use and 2313 maximum time for iteration. 2314 2315 Not Collective 2316 2317 Input Parameters: 2318 + ts - the TS context obtained from TSCreate() 2319 . maxsteps - maximum number of iterations to use, or NULL 2320 - maxtime - final time to iterate to, or NULL 2321 2322 Level: intermediate 2323 2324 .keywords: TS, timestep, get, maximum, iterations, time 2325 @*/ 2326 PetscErrorCode TSGetDuration(TS ts, PetscInt *maxsteps, PetscReal *maxtime) 2327 { 2328 PetscFunctionBegin; 2329 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 2330 if (maxsteps) { 2331 PetscValidIntPointer(maxsteps,2); 2332 *maxsteps = ts->max_steps; 2333 } 2334 if (maxtime) { 2335 PetscValidScalarPointer(maxtime,3); 2336 *maxtime = ts->max_time; 2337 } 2338 PetscFunctionReturn(0); 2339 } 2340 2341 #undef __FUNCT__ 2342 #define __FUNCT__ "TSSetDuration" 2343 /*@ 2344 TSSetDuration - Sets the maximum number of timesteps to use and 2345 maximum time for iteration. 2346 2347 Logically Collective on TS 2348 2349 Input Parameters: 2350 + ts - the TS context obtained from TSCreate() 2351 . maxsteps - maximum number of iterations to use 2352 - maxtime - final time to iterate to 2353 2354 Options Database Keys: 2355 . -ts_max_steps <maxsteps> - Sets maxsteps 2356 . -ts_final_time <maxtime> - Sets maxtime 2357 2358 Notes: 2359 The default maximum number of iterations is 5000. Default time is 5.0 2360 2361 Level: intermediate 2362 2363 .keywords: TS, timestep, set, maximum, iterations 2364 2365 .seealso: TSSetExactFinalTime() 2366 @*/ 2367 PetscErrorCode TSSetDuration(TS ts,PetscInt maxsteps,PetscReal maxtime) 2368 { 2369 PetscFunctionBegin; 2370 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2371 PetscValidLogicalCollectiveInt(ts,maxsteps,2); 2372 PetscValidLogicalCollectiveReal(ts,maxtime,2); 2373 if (maxsteps >= 0) ts->max_steps = maxsteps; 2374 if (maxtime != PETSC_DEFAULT) ts->max_time = maxtime; 2375 PetscFunctionReturn(0); 2376 } 2377 2378 #undef __FUNCT__ 2379 #define __FUNCT__ "TSSetSolution" 2380 /*@ 2381 TSSetSolution - Sets the initial solution vector 2382 for use by the TS routines. 2383 2384 Logically Collective on TS and Vec 2385 2386 Input Parameters: 2387 + ts - the TS context obtained from TSCreate() 2388 - u - the solution vector 2389 2390 Level: beginner 2391 2392 .keywords: TS, timestep, set, solution, initial conditions 2393 @*/ 2394 PetscErrorCode TSSetSolution(TS ts,Vec u) 2395 { 2396 PetscErrorCode ierr; 2397 DM dm; 2398 2399 PetscFunctionBegin; 2400 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2401 PetscValidHeaderSpecific(u,VEC_CLASSID,2); 2402 ierr = PetscObjectReference((PetscObject)u);CHKERRQ(ierr); 2403 ierr = VecDestroy(&ts->vec_sol);CHKERRQ(ierr); 2404 2405 ts->vec_sol = u; 2406 2407 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 2408 ierr = DMShellSetGlobalVector(dm,u);CHKERRQ(ierr); 2409 PetscFunctionReturn(0); 2410 } 2411 2412 #undef __FUNCT__ 2413 #define __FUNCT__ "TSAdjointSetSteps" 2414 /*@ 2415 TSAdjointSetSteps - Sets the number of steps the adjoint solver should take backward in time 2416 2417 Logically Collective on TS 2418 2419 Input Parameters: 2420 + ts - the TS context obtained from TSCreate() 2421 . steps - number of steps to use 2422 2423 Level: intermediate 2424 2425 Notes: Normally one does not call this and TSAdjointSolve() integrates back to the original timestep. One can call this 2426 so as to integrate back to less than the original timestep 2427 2428 .keywords: TS, timestep, set, maximum, iterations 2429 2430 .seealso: TSSetExactFinalTime() 2431 @*/ 2432 PetscErrorCode TSAdjointSetSteps(TS ts,PetscInt steps) 2433 { 2434 PetscFunctionBegin; 2435 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2436 PetscValidLogicalCollectiveInt(ts,steps,2); 2437 if (steps < 0) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_OUTOFRANGE,"Cannot step back a negative number of steps"); 2438 if (steps > ts->total_steps) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_OUTOFRANGE,"Cannot step back more than the total number of forward steps"); 2439 ts->adjoint_max_steps = steps; 2440 PetscFunctionReturn(0); 2441 } 2442 2443 #undef __FUNCT__ 2444 #define __FUNCT__ "TSSetCostGradients" 2445 /*@ 2446 TSSetCostGradients - Sets the initial value of the gradients of the cost function w.r.t. initial conditions and w.r.t. the problem parameters 2447 for use by the TSAdjoint routines. 2448 2449 Logically Collective on TS and Vec 2450 2451 Input Parameters: 2452 + ts - the TS context obtained from TSCreate() 2453 . lambda - gradients with respect to the initial condition variables, the dimension and parallel layout of these vectors is the same as the ODE solution vector 2454 - mu - gradients with respect to the parameters, the number of entries in these vectors is the same as the number of parameters 2455 2456 Level: beginner 2457 2458 Notes: the entries in these vectors must be correctly initialized with the values lamda_i = df/dy|finaltime mu_i = df/dp|finaltime 2459 2460 .keywords: TS, timestep, set, sensitivity, initial conditions 2461 @*/ 2462 PetscErrorCode TSSetCostGradients(TS ts,PetscInt numcost,Vec *lambda,Vec *mu) 2463 { 2464 PetscFunctionBegin; 2465 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2466 PetscValidPointer(lambda,2); 2467 ts->vecs_sensi = lambda; 2468 ts->vecs_sensip = mu; 2469 if (ts->numcost && ts->numcost!=numcost) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"The number of cost functions (2rd parameter of TSSetCostIntegrand()) is inconsistent with the one set by TSSetCostIntegrand"); 2470 ts->numcost = numcost; 2471 PetscFunctionReturn(0); 2472 } 2473 2474 #undef __FUNCT__ 2475 #define __FUNCT__ "TSAdjointSetRHSJacobian" 2476 /*@C 2477 TSAdjointSetRHSJacobian - Sets the function that computes the Jacobian of G w.r.t. the parameters p where y_t = G(y,p,t), as well as the location to store the matrix. 2478 2479 Logically Collective on TS 2480 2481 Input Parameters: 2482 + ts - The TS context obtained from TSCreate() 2483 - func - The function 2484 2485 Calling sequence of func: 2486 $ func (TS ts,PetscReal t,Vec y,Mat A,void *ctx); 2487 + t - current timestep 2488 . y - input vector (current ODE solution) 2489 . A - output matrix 2490 - ctx - [optional] user-defined function context 2491 2492 Level: intermediate 2493 2494 Notes: Amat has the same number of rows and the same row parallel layout as u, Amat has the same number of columns and parallel layout as p 2495 2496 .keywords: TS, sensitivity 2497 .seealso: 2498 @*/ 2499 PetscErrorCode TSAdjointSetRHSJacobian(TS ts,Mat Amat,PetscErrorCode (*func)(TS,PetscReal,Vec,Mat,void*),void *ctx) 2500 { 2501 PetscErrorCode ierr; 2502 2503 PetscFunctionBegin; 2504 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 2505 if (Amat) PetscValidHeaderSpecific(Amat,MAT_CLASSID,2); 2506 2507 ts->rhsjacobianp = func; 2508 ts->rhsjacobianpctx = ctx; 2509 if(Amat) { 2510 ierr = PetscObjectReference((PetscObject)Amat);CHKERRQ(ierr); 2511 ierr = MatDestroy(&ts->Jacp);CHKERRQ(ierr); 2512 ts->Jacp = Amat; 2513 } 2514 PetscFunctionReturn(0); 2515 } 2516 2517 #undef __FUNCT__ 2518 #define __FUNCT__ "TSAdjointComputeRHSJacobian" 2519 /*@C 2520 TSAdjointComputeRHSJacobian - Runs the user-defined Jacobian function. 2521 2522 Collective on TS 2523 2524 Input Parameters: 2525 . ts - The TS context obtained from TSCreate() 2526 2527 Level: developer 2528 2529 .keywords: TS, sensitivity 2530 .seealso: TSAdjointSetRHSJacobian() 2531 @*/ 2532 PetscErrorCode TSAdjointComputeRHSJacobian(TS ts,PetscReal t,Vec X,Mat Amat) 2533 { 2534 PetscErrorCode ierr; 2535 2536 PetscFunctionBegin; 2537 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2538 PetscValidHeaderSpecific(X,VEC_CLASSID,3); 2539 PetscValidPointer(Amat,4); 2540 2541 PetscStackPush("TS user JacobianP function for sensitivity analysis"); 2542 ierr = (*ts->rhsjacobianp)(ts,t,X,Amat,ts->rhsjacobianpctx); CHKERRQ(ierr); 2543 PetscStackPop; 2544 PetscFunctionReturn(0); 2545 } 2546 2547 #undef __FUNCT__ 2548 #define __FUNCT__ "TSSetCostIntegrand" 2549 /*@C 2550 TSSetCostIntegrand - Sets the routine for evaluating the integral term in one or more cost functions 2551 2552 Logically Collective on TS 2553 2554 Input Parameters: 2555 + ts - the TS context obtained from TSCreate() 2556 . numcost - number of gradients to be computed, this is the number of cost functions 2557 . rf - routine for evaluating the integrand function 2558 . drdyf - function that computes the gradients of the r's with respect to y,NULL if not a function y 2559 . drdpf - function that computes the gradients of the r's with respect to p, NULL if not a function of p 2560 . fwd - flag indicating whether to evaluate cost integral in the forward run or the adjoint run 2561 - ctx - [optional] user-defined context for private data for the function evaluation routine (may be NULL) 2562 2563 Calling sequence of rf: 2564 $ rf(TS ts,PetscReal t,Vec y,Vec f[],void *ctx); 2565 2566 + t - current timestep 2567 . y - input vector 2568 . f - function result; one vector entry for each cost function 2569 - ctx - [optional] user-defined function context 2570 2571 Calling sequence of drdyf: 2572 $ PetscErroCode drdyf(TS ts,PetscReal t,Vec y,Vec *drdy,void *ctx); 2573 2574 Calling sequence of drdpf: 2575 $ PetscErroCode drdpf(TS ts,PetscReal t,Vec y,Vec *drdp,void *ctx); 2576 2577 Level: intermediate 2578 2579 Notes: For optimization there is generally a single cost function, numcost = 1. For sensitivities there may be multiple cost functions 2580 2581 .keywords: TS, sensitivity analysis, timestep, set, quadrature, function 2582 2583 .seealso: TSAdjointSetRHSJacobian(),TSGetCostGradients(), TSSetCostGradients() 2584 @*/ 2585 PetscErrorCode TSSetCostIntegrand(TS ts,PetscInt numcost,PetscErrorCode (*rf)(TS,PetscReal,Vec,Vec,void*), 2586 PetscErrorCode (*drdyf)(TS,PetscReal,Vec,Vec*,void*), 2587 PetscErrorCode (*drdpf)(TS,PetscReal,Vec,Vec*,void*), 2588 PetscBool fwd,void *ctx) 2589 { 2590 PetscErrorCode ierr; 2591 2592 PetscFunctionBegin; 2593 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2594 if (ts->numcost && ts->numcost!=numcost) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_USER,"The number of cost functions (2rd parameter of TSSetCostIntegrand()) is inconsistent with the one set by TSSetCostGradients()"); 2595 if (!ts->numcost) ts->numcost=numcost; 2596 2597 ts->costintegralfwd = fwd; /* Evaluate the cost integral in forward run if fwd is true */ 2598 ierr = VecCreateSeq(PETSC_COMM_SELF,numcost,&ts->vec_costintegral);CHKERRQ(ierr); 2599 ierr = VecDuplicate(ts->vec_costintegral,&ts->vec_costintegrand);CHKERRQ(ierr); 2600 ts->costintegrand = rf; 2601 ts->costintegrandctx = ctx; 2602 ts->drdyfunction = drdyf; 2603 ts->drdpfunction = drdpf; 2604 PetscFunctionReturn(0); 2605 } 2606 2607 #undef __FUNCT__ 2608 #define __FUNCT__ "TSGetCostIntegral" 2609 /*@ 2610 TSGetCostIntegral - Returns the values of the integral term in the cost functions. 2611 It is valid to call the routine after a backward run. 2612 2613 Not Collective 2614 2615 Input Parameter: 2616 . ts - the TS context obtained from TSCreate() 2617 2618 Output Parameter: 2619 . v - the vector containing the integrals for each cost function 2620 2621 Level: intermediate 2622 2623 .seealso: TSSetCostIntegrand() 2624 2625 .keywords: TS, sensitivity analysis 2626 @*/ 2627 PetscErrorCode TSGetCostIntegral(TS ts,Vec *v) 2628 { 2629 PetscFunctionBegin; 2630 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2631 PetscValidPointer(v,2); 2632 *v = ts->vec_costintegral; 2633 PetscFunctionReturn(0); 2634 } 2635 2636 #undef __FUNCT__ 2637 #define __FUNCT__ "TSAdjointComputeCostIntegrand" 2638 /*@ 2639 TSAdjointComputeCostIntegrand - Evaluates the integral function in the cost functions. 2640 2641 Input Parameters: 2642 + ts - the TS context 2643 . t - current time 2644 - y - state vector, i.e. current solution 2645 2646 Output Parameter: 2647 . q - vector of size numcost to hold the outputs 2648 2649 Note: 2650 Most users should not need to explicitly call this routine, as it 2651 is used internally within the sensitivity analysis context. 2652 2653 Level: developer 2654 2655 .keywords: TS, compute 2656 2657 .seealso: TSSetCostIntegrand() 2658 @*/ 2659 PetscErrorCode TSAdjointComputeCostIntegrand(TS ts,PetscReal t,Vec y,Vec q) 2660 { 2661 PetscErrorCode ierr; 2662 2663 PetscFunctionBegin; 2664 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2665 PetscValidHeaderSpecific(y,VEC_CLASSID,3); 2666 PetscValidHeaderSpecific(q,VEC_CLASSID,4); 2667 2668 ierr = PetscLogEventBegin(TS_FunctionEval,ts,y,q,0);CHKERRQ(ierr); 2669 if (ts->costintegrand) { 2670 PetscStackPush("TS user integrand in the cost function"); 2671 ierr = (*ts->costintegrand)(ts,t,y,q,ts->costintegrandctx);CHKERRQ(ierr); 2672 PetscStackPop; 2673 } else { 2674 ierr = VecZeroEntries(q);CHKERRQ(ierr); 2675 } 2676 2677 ierr = PetscLogEventEnd(TS_FunctionEval,ts,y,q,0);CHKERRQ(ierr); 2678 PetscFunctionReturn(0); 2679 } 2680 2681 #undef __FUNCT__ 2682 #define __FUNCT__ "TSAdjointComputeDRDYFunction" 2683 /*@ 2684 TSAdjointComputeDRDYFunction - Runs the user-defined DRDY function. 2685 2686 Collective on TS 2687 2688 Input Parameters: 2689 . ts - The TS context obtained from TSCreate() 2690 2691 Notes: 2692 TSAdjointComputeDRDYFunction() is typically used for sensitivity implementation, 2693 so most users would not generally call this routine themselves. 2694 2695 Level: developer 2696 2697 .keywords: TS, sensitivity 2698 .seealso: TSAdjointComputeDRDYFunction() 2699 @*/ 2700 PetscErrorCode TSAdjointComputeDRDYFunction(TS ts,PetscReal t,Vec y,Vec *drdy) 2701 { 2702 PetscErrorCode ierr; 2703 2704 PetscFunctionBegin; 2705 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2706 PetscValidHeaderSpecific(y,VEC_CLASSID,3); 2707 2708 PetscStackPush("TS user DRDY function for sensitivity analysis"); 2709 ierr = (*ts->drdyfunction)(ts,t,y,drdy,ts->costintegrandctx); CHKERRQ(ierr); 2710 PetscStackPop; 2711 PetscFunctionReturn(0); 2712 } 2713 2714 #undef __FUNCT__ 2715 #define __FUNCT__ "TSAdjointComputeDRDPFunction" 2716 /*@ 2717 TSAdjointComputeDRDPFunction - Runs the user-defined DRDP function. 2718 2719 Collective on TS 2720 2721 Input Parameters: 2722 . ts - The TS context obtained from TSCreate() 2723 2724 Notes: 2725 TSDRDPFunction() is typically used for sensitivity implementation, 2726 so most users would not generally call this routine themselves. 2727 2728 Level: developer 2729 2730 .keywords: TS, sensitivity 2731 .seealso: TSAdjointSetDRDPFunction() 2732 @*/ 2733 PetscErrorCode TSAdjointComputeDRDPFunction(TS ts,PetscReal t,Vec y,Vec *drdp) 2734 { 2735 PetscErrorCode ierr; 2736 2737 PetscFunctionBegin; 2738 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2739 PetscValidHeaderSpecific(y,VEC_CLASSID,3); 2740 2741 PetscStackPush("TS user DRDP function for sensitivity analysis"); 2742 ierr = (*ts->drdpfunction)(ts,t,y,drdp,ts->costintegrandctx); CHKERRQ(ierr); 2743 PetscStackPop; 2744 PetscFunctionReturn(0); 2745 } 2746 2747 #undef __FUNCT__ 2748 #define __FUNCT__ "TSSetPreStep" 2749 /*@C 2750 TSSetPreStep - Sets the general-purpose function 2751 called once at the beginning of each time step. 2752 2753 Logically Collective on TS 2754 2755 Input Parameters: 2756 + ts - The TS context obtained from TSCreate() 2757 - func - The function 2758 2759 Calling sequence of func: 2760 . func (TS ts); 2761 2762 Level: intermediate 2763 2764 Note: 2765 If a step is rejected, TSStep() will call this routine again before each attempt. 2766 The last completed time step number can be queried using TSGetTimeStepNumber(), the 2767 size of the step being attempted can be obtained using TSGetTimeStep(). 2768 2769 .keywords: TS, timestep 2770 .seealso: TSSetPreStage(), TSSetPostStage(), TSSetPostStep(), TSStep() 2771 @*/ 2772 PetscErrorCode TSSetPreStep(TS ts, PetscErrorCode (*func)(TS)) 2773 { 2774 PetscFunctionBegin; 2775 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 2776 ts->prestep = func; 2777 PetscFunctionReturn(0); 2778 } 2779 2780 #undef __FUNCT__ 2781 #define __FUNCT__ "TSPreStep" 2782 /*@ 2783 TSPreStep - Runs the user-defined pre-step function. 2784 2785 Collective on TS 2786 2787 Input Parameters: 2788 . ts - The TS context obtained from TSCreate() 2789 2790 Notes: 2791 TSPreStep() is typically used within time stepping implementations, 2792 so most users would not generally call this routine themselves. 2793 2794 Level: developer 2795 2796 .keywords: TS, timestep 2797 .seealso: TSSetPreStep(), TSPreStage(), TSPostStage(), TSPostStep() 2798 @*/ 2799 PetscErrorCode TSPreStep(TS ts) 2800 { 2801 PetscErrorCode ierr; 2802 2803 PetscFunctionBegin; 2804 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2805 if (ts->prestep) { 2806 PetscStackCallStandard((*ts->prestep),(ts)); 2807 } 2808 PetscFunctionReturn(0); 2809 } 2810 2811 #undef __FUNCT__ 2812 #define __FUNCT__ "TSSetPreStage" 2813 /*@C 2814 TSSetPreStage - Sets the general-purpose function 2815 called once at the beginning of each stage. 2816 2817 Logically Collective on TS 2818 2819 Input Parameters: 2820 + ts - The TS context obtained from TSCreate() 2821 - func - The function 2822 2823 Calling sequence of func: 2824 . PetscErrorCode func(TS ts, PetscReal stagetime); 2825 2826 Level: intermediate 2827 2828 Note: 2829 There may be several stages per time step. If the solve for a given stage fails, the step may be rejected and retried. 2830 The time step number being computed can be queried using TSGetTimeStepNumber() and the total size of the step being 2831 attempted can be obtained using TSGetTimeStep(). The time at the start of the step is available via TSGetTime(). 2832 2833 .keywords: TS, timestep 2834 .seealso: TSSetPostStage(), TSSetPreStep(), TSSetPostStep(), TSGetApplicationContext() 2835 @*/ 2836 PetscErrorCode TSSetPreStage(TS ts, PetscErrorCode (*func)(TS,PetscReal)) 2837 { 2838 PetscFunctionBegin; 2839 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 2840 ts->prestage = func; 2841 PetscFunctionReturn(0); 2842 } 2843 2844 #undef __FUNCT__ 2845 #define __FUNCT__ "TSSetPostStage" 2846 /*@C 2847 TSSetPostStage - Sets the general-purpose function 2848 called once at the end of each stage. 2849 2850 Logically Collective on TS 2851 2852 Input Parameters: 2853 + ts - The TS context obtained from TSCreate() 2854 - func - The function 2855 2856 Calling sequence of func: 2857 . PetscErrorCode func(TS ts, PetscReal stagetime, PetscInt stageindex, Vec* Y); 2858 2859 Level: intermediate 2860 2861 Note: 2862 There may be several stages per time step. If the solve for a given stage fails, the step may be rejected and retried. 2863 The time step number being computed can be queried using TSGetTimeStepNumber() and the total size of the step being 2864 attempted can be obtained using TSGetTimeStep(). The time at the start of the step is available via TSGetTime(). 2865 2866 .keywords: TS, timestep 2867 .seealso: TSSetPreStage(), TSSetPreStep(), TSSetPostStep(), TSGetApplicationContext() 2868 @*/ 2869 PetscErrorCode TSSetPostStage(TS ts, PetscErrorCode (*func)(TS,PetscReal,PetscInt,Vec*)) 2870 { 2871 PetscFunctionBegin; 2872 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 2873 ts->poststage = func; 2874 PetscFunctionReturn(0); 2875 } 2876 2877 #undef __FUNCT__ 2878 #define __FUNCT__ "TSPreStage" 2879 /*@ 2880 TSPreStage - Runs the user-defined pre-stage function set using TSSetPreStage() 2881 2882 Collective on TS 2883 2884 Input Parameters: 2885 . ts - The TS context obtained from TSCreate() 2886 stagetime - The absolute time of the current stage 2887 2888 Notes: 2889 TSPreStage() is typically used within time stepping implementations, 2890 most users would not generally call this routine themselves. 2891 2892 Level: developer 2893 2894 .keywords: TS, timestep 2895 .seealso: TSPostStage(), TSSetPreStep(), TSPreStep(), TSPostStep() 2896 @*/ 2897 PetscErrorCode TSPreStage(TS ts, PetscReal stagetime) 2898 { 2899 PetscErrorCode ierr; 2900 2901 PetscFunctionBegin; 2902 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2903 if (ts->prestage) { 2904 PetscStackCallStandard((*ts->prestage),(ts,stagetime)); 2905 } 2906 PetscFunctionReturn(0); 2907 } 2908 2909 #undef __FUNCT__ 2910 #define __FUNCT__ "TSPostStage" 2911 /*@ 2912 TSPostStage - Runs the user-defined post-stage function set using TSSetPostStage() 2913 2914 Collective on TS 2915 2916 Input Parameters: 2917 . ts - The TS context obtained from TSCreate() 2918 stagetime - The absolute time of the current stage 2919 stageindex - Stage number 2920 Y - Array of vectors (of size = total number 2921 of stages) with the stage solutions 2922 2923 Notes: 2924 TSPostStage() is typically used within time stepping implementations, 2925 most users would not generally call this routine themselves. 2926 2927 Level: developer 2928 2929 .keywords: TS, timestep 2930 .seealso: TSPreStage(), TSSetPreStep(), TSPreStep(), TSPostStep() 2931 @*/ 2932 PetscErrorCode TSPostStage(TS ts, PetscReal stagetime, PetscInt stageindex, Vec *Y) 2933 { 2934 PetscErrorCode ierr; 2935 2936 PetscFunctionBegin; 2937 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2938 if (ts->poststage) { 2939 PetscStackCallStandard((*ts->poststage),(ts,stagetime,stageindex,Y)); 2940 } 2941 PetscFunctionReturn(0); 2942 } 2943 2944 #undef __FUNCT__ 2945 #define __FUNCT__ "TSSetPostStep" 2946 /*@C 2947 TSSetPostStep - Sets the general-purpose function 2948 called once at the end of each time step. 2949 2950 Logically Collective on TS 2951 2952 Input Parameters: 2953 + ts - The TS context obtained from TSCreate() 2954 - func - The function 2955 2956 Calling sequence of func: 2957 $ func (TS ts); 2958 2959 Level: intermediate 2960 2961 .keywords: TS, timestep 2962 .seealso: TSSetPreStep(), TSSetPreStage(), TSGetTimeStep(), TSGetTimeStepNumber(), TSGetTime() 2963 @*/ 2964 PetscErrorCode TSSetPostStep(TS ts, PetscErrorCode (*func)(TS)) 2965 { 2966 PetscFunctionBegin; 2967 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 2968 ts->poststep = func; 2969 PetscFunctionReturn(0); 2970 } 2971 2972 #undef __FUNCT__ 2973 #define __FUNCT__ "TSPostStep" 2974 /*@ 2975 TSPostStep - Runs the user-defined post-step function. 2976 2977 Collective on TS 2978 2979 Input Parameters: 2980 . ts - The TS context obtained from TSCreate() 2981 2982 Notes: 2983 TSPostStep() is typically used within time stepping implementations, 2984 so most users would not generally call this routine themselves. 2985 2986 Level: developer 2987 2988 .keywords: TS, timestep 2989 @*/ 2990 PetscErrorCode TSPostStep(TS ts) 2991 { 2992 PetscErrorCode ierr; 2993 2994 PetscFunctionBegin; 2995 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 2996 if (ts->poststep) { 2997 PetscStackCallStandard((*ts->poststep),(ts)); 2998 } 2999 PetscFunctionReturn(0); 3000 } 3001 3002 /* ------------ Routines to set performance monitoring options ----------- */ 3003 3004 #undef __FUNCT__ 3005 #define __FUNCT__ "TSMonitorSet" 3006 /*@C 3007 TSMonitorSet - Sets an ADDITIONAL function that is to be used at every 3008 timestep to display the iteration's progress. 3009 3010 Logically Collective on TS 3011 3012 Input Parameters: 3013 + ts - the TS context obtained from TSCreate() 3014 . monitor - monitoring routine 3015 . mctx - [optional] user-defined context for private data for the 3016 monitor routine (use NULL if no context is desired) 3017 - monitordestroy - [optional] routine that frees monitor context 3018 (may be NULL) 3019 3020 Calling sequence of monitor: 3021 $ int monitor(TS ts,PetscInt steps,PetscReal time,Vec u,void *mctx) 3022 3023 + ts - the TS context 3024 . steps - iteration number (after the final time step the monitor routine is called with a step of -1, this is at the final time which may have 3025 been interpolated to) 3026 . time - current time 3027 . u - current iterate 3028 - mctx - [optional] monitoring context 3029 3030 Notes: 3031 This routine adds an additional monitor to the list of monitors that 3032 already has been loaded. 3033 3034 Fortran notes: Only a single monitor function can be set for each TS object 3035 3036 Level: intermediate 3037 3038 .keywords: TS, timestep, set, monitor 3039 3040 .seealso: TSMonitorDefault(), TSMonitorCancel() 3041 @*/ 3042 PetscErrorCode TSMonitorSet(TS ts,PetscErrorCode (*monitor)(TS,PetscInt,PetscReal,Vec,void*),void *mctx,PetscErrorCode (*mdestroy)(void**)) 3043 { 3044 PetscFunctionBegin; 3045 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3046 if (ts->numbermonitors >= MAXTSMONITORS) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Too many monitors set"); 3047 ts->monitor[ts->numbermonitors] = monitor; 3048 ts->monitordestroy[ts->numbermonitors] = mdestroy; 3049 ts->monitorcontext[ts->numbermonitors++] = (void*)mctx; 3050 PetscFunctionReturn(0); 3051 } 3052 3053 #undef __FUNCT__ 3054 #define __FUNCT__ "TSMonitorCancel" 3055 /*@C 3056 TSMonitorCancel - Clears all the monitors that have been set on a time-step object. 3057 3058 Logically Collective on TS 3059 3060 Input Parameters: 3061 . ts - the TS context obtained from TSCreate() 3062 3063 Notes: 3064 There is no way to remove a single, specific monitor. 3065 3066 Level: intermediate 3067 3068 .keywords: TS, timestep, set, monitor 3069 3070 .seealso: TSMonitorDefault(), TSMonitorSet() 3071 @*/ 3072 PetscErrorCode TSMonitorCancel(TS ts) 3073 { 3074 PetscErrorCode ierr; 3075 PetscInt i; 3076 3077 PetscFunctionBegin; 3078 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3079 for (i=0; i<ts->numbermonitors; i++) { 3080 if (ts->monitordestroy[i]) { 3081 ierr = (*ts->monitordestroy[i])(&ts->monitorcontext[i]);CHKERRQ(ierr); 3082 } 3083 } 3084 ts->numbermonitors = 0; 3085 PetscFunctionReturn(0); 3086 } 3087 3088 #undef __FUNCT__ 3089 #define __FUNCT__ "TSMonitorDefault" 3090 /*@ 3091 TSMonitorDefault - Sets the Default monitor 3092 3093 Level: intermediate 3094 3095 .keywords: TS, set, monitor 3096 3097 .seealso: TSMonitorDefault(), TSMonitorSet() 3098 @*/ 3099 PetscErrorCode TSMonitorDefault(TS ts,PetscInt step,PetscReal ptime,Vec v,void *dummy) 3100 { 3101 PetscErrorCode ierr; 3102 PetscViewer viewer = (PetscViewer) dummy; 3103 PetscBool iascii,ibinary; 3104 3105 PetscFunctionBegin; 3106 PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,4); 3107 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERASCII,&iascii);CHKERRQ(ierr); 3108 ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERBINARY,&ibinary);CHKERRQ(ierr); 3109 if (iascii) { 3110 ierr = PetscViewerASCIIAddTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr); 3111 ierr = PetscViewerASCIIPrintf(viewer,"%D TS dt %g time %g%s",step,(double)ts->time_step,(double)ptime,ts->steprollback ? " (r)\n" : "\n");CHKERRQ(ierr); 3112 ierr = PetscViewerASCIISubtractTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr); 3113 } else if (ibinary) { 3114 PetscMPIInt rank; 3115 ierr = MPI_Comm_rank(PetscObjectComm((PetscObject)viewer),&rank);CHKERRQ(ierr); 3116 if (!rank) { 3117 ierr = PetscRealView(1,&ptime,viewer);CHKERRQ(ierr); 3118 } else { 3119 ierr = PetscRealView(0,&ptime,viewer);CHKERRQ(ierr); 3120 } 3121 } 3122 PetscFunctionReturn(0); 3123 } 3124 3125 #undef __FUNCT__ 3126 #define __FUNCT__ "TSAdjointMonitorSet" 3127 /*@C 3128 TSAdjointMonitorSet - Sets an ADDITIONAL function that is to be used at every 3129 timestep to display the iteration's progress. 3130 3131 Logically Collective on TS 3132 3133 Input Parameters: 3134 + ts - the TS context obtained from TSCreate() 3135 . adjointmonitor - monitoring routine 3136 . adjointmctx - [optional] user-defined context for private data for the 3137 monitor routine (use NULL if no context is desired) 3138 - adjointmonitordestroy - [optional] routine that frees monitor context 3139 (may be NULL) 3140 3141 Calling sequence of monitor: 3142 $ int adjointmonitor(TS ts,PetscInt steps,PetscReal time,Vec u,PetscInt numcost,Vec *lambda, Vec *mu,void *adjointmctx) 3143 3144 + ts - the TS context 3145 . steps - iteration number (after the final time step the monitor routine is called with a step of -1, this is at the final time which may have 3146 been interpolated to) 3147 . time - current time 3148 . u - current iterate 3149 . numcost - number of cost functionos 3150 . lambda - sensitivities to initial conditions 3151 . mu - sensitivities to parameters 3152 - adjointmctx - [optional] adjoint monitoring context 3153 3154 Notes: 3155 This routine adds an additional monitor to the list of monitors that 3156 already has been loaded. 3157 3158 Fortran notes: Only a single monitor function can be set for each TS object 3159 3160 Level: intermediate 3161 3162 .keywords: TS, timestep, set, adjoint, monitor 3163 3164 .seealso: TSAdjointMonitorCancel() 3165 @*/ 3166 PetscErrorCode TSAdjointMonitorSet(TS ts,PetscErrorCode (*adjointmonitor)(TS,PetscInt,PetscReal,Vec,PetscInt,Vec*,Vec*,void*),void *adjointmctx,PetscErrorCode (*adjointmdestroy)(void**)) 3167 { 3168 PetscFunctionBegin; 3169 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3170 if (ts->numberadjointmonitors >= MAXTSMONITORS) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Too many adjoint monitors set"); 3171 ts->adjointmonitor[ts->numberadjointmonitors] = adjointmonitor; 3172 ts->adjointmonitordestroy[ts->numberadjointmonitors] = adjointmdestroy; 3173 ts->adjointmonitorcontext[ts->numberadjointmonitors++] = (void*)adjointmctx; 3174 PetscFunctionReturn(0); 3175 } 3176 3177 #undef __FUNCT__ 3178 #define __FUNCT__ "TSAdjointMonitorCancel" 3179 /*@C 3180 TSAdjointMonitorCancel - Clears all the adjoint monitors that have been set on a time-step object. 3181 3182 Logically Collective on TS 3183 3184 Input Parameters: 3185 . ts - the TS context obtained from TSCreate() 3186 3187 Notes: 3188 There is no way to remove a single, specific monitor. 3189 3190 Level: intermediate 3191 3192 .keywords: TS, timestep, set, adjoint, monitor 3193 3194 .seealso: TSAdjointMonitorSet() 3195 @*/ 3196 PetscErrorCode TSAdjointMonitorCancel(TS ts) 3197 { 3198 PetscErrorCode ierr; 3199 PetscInt i; 3200 3201 PetscFunctionBegin; 3202 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3203 for (i=0; i<ts->numberadjointmonitors; i++) { 3204 if (ts->adjointmonitordestroy[i]) { 3205 ierr = (*ts->adjointmonitordestroy[i])(&ts->adjointmonitorcontext[i]);CHKERRQ(ierr); 3206 } 3207 } 3208 ts->numberadjointmonitors = 0; 3209 PetscFunctionReturn(0); 3210 } 3211 3212 #undef __FUNCT__ 3213 #define __FUNCT__ "TSAdjointMonitorDefault" 3214 /*@ 3215 TSAdjointMonitorDefault - Sets the Default monitor 3216 3217 Level: intermediate 3218 3219 .keywords: TS, set, monitor 3220 3221 .seealso: TSAdjointMonitorSet() 3222 @*/ 3223 PetscErrorCode TSAdjointMonitorDefault(TS ts,PetscInt step,PetscReal ptime,Vec v,PetscInt numcost,Vec *lambda,Vec *mu,void *dummy) 3224 { 3225 PetscErrorCode ierr; 3226 PetscViewer viewer = (PetscViewer) dummy; 3227 3228 PetscFunctionBegin; 3229 PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,4); 3230 ierr = PetscViewerASCIIAddTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr); 3231 ierr = PetscViewerASCIIPrintf(viewer,"%D TS dt %g time %g%s",step,(double)ts->time_step,(double)ptime,ts->steprollback ? " (r)\n" : "\n");CHKERRQ(ierr); 3232 ierr = PetscViewerASCIISubtractTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr); 3233 PetscFunctionReturn(0); 3234 } 3235 3236 #undef __FUNCT__ 3237 #define __FUNCT__ "TSSetRetainStages" 3238 /*@ 3239 TSSetRetainStages - Request that all stages in the upcoming step be stored so that interpolation will be available. 3240 3241 Logically Collective on TS 3242 3243 Input Argument: 3244 . ts - time stepping context 3245 3246 Output Argument: 3247 . flg - PETSC_TRUE or PETSC_FALSE 3248 3249 Level: intermediate 3250 3251 .keywords: TS, set 3252 3253 .seealso: TSInterpolate(), TSSetPostStep() 3254 @*/ 3255 PetscErrorCode TSSetRetainStages(TS ts,PetscBool flg) 3256 { 3257 PetscFunctionBegin; 3258 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3259 ts->retain_stages = flg; 3260 PetscFunctionReturn(0); 3261 } 3262 3263 #undef __FUNCT__ 3264 #define __FUNCT__ "TSInterpolate" 3265 /*@ 3266 TSInterpolate - Interpolate the solution computed during the previous step to an arbitrary location in the interval 3267 3268 Collective on TS 3269 3270 Input Argument: 3271 + ts - time stepping context 3272 - t - time to interpolate to 3273 3274 Output Argument: 3275 . U - state at given time 3276 3277 Notes: 3278 The user should call TSSetRetainStages() before taking a step in which interpolation will be requested. 3279 3280 Level: intermediate 3281 3282 Developer Notes: 3283 TSInterpolate() and the storing of previous steps/stages should be generalized to support delay differential equations and continuous adjoints. 3284 3285 .keywords: TS, set 3286 3287 .seealso: TSSetRetainStages(), TSSetPostStep() 3288 @*/ 3289 PetscErrorCode TSInterpolate(TS ts,PetscReal t,Vec U) 3290 { 3291 PetscErrorCode ierr; 3292 3293 PetscFunctionBegin; 3294 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3295 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 3296 if (t < ts->ptime - ts->time_step_prev || t > ts->ptime) SETERRQ3(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_OUTOFRANGE,"Requested time %g not in last time steps [%g,%g]",t,(double)(ts->ptime-ts->time_step_prev),(double)ts->ptime); 3297 if (!ts->ops->interpolate) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"%s does not provide interpolation",((PetscObject)ts)->type_name); 3298 ierr = (*ts->ops->interpolate)(ts,t,U);CHKERRQ(ierr); 3299 PetscFunctionReturn(0); 3300 } 3301 3302 #undef __FUNCT__ 3303 #define __FUNCT__ "TSStep" 3304 /*@ 3305 TSStep - Steps one time step 3306 3307 Collective on TS 3308 3309 Input Parameter: 3310 . ts - the TS context obtained from TSCreate() 3311 3312 Level: developer 3313 3314 Notes: 3315 The public interface for the ODE/DAE solvers is TSSolve(), you should almost for sure be using that routine and not this routine. 3316 3317 The hook set using TSSetPreStep() is called before each attempt to take the step. In general, the time step size may 3318 be changed due to adaptive error controller or solve failures. Note that steps may contain multiple stages. 3319 3320 This may over-step the final time provided in TSSetDuration() depending on the time-step used. TSSolve() interpolates to exactly the 3321 time provided in TSSetDuration(). One can use TSInterpolate() to determine an interpolated solution within the final timestep. 3322 3323 .keywords: TS, timestep, solve 3324 3325 .seealso: TSCreate(), TSSetUp(), TSDestroy(), TSSolve(), TSSetPreStep(), TSSetPreStage(), TSSetPostStage(), TSInterpolate() 3326 @*/ 3327 PetscErrorCode TSStep(TS ts) 3328 { 3329 DM dm; 3330 PetscErrorCode ierr; 3331 static PetscBool cite = PETSC_FALSE; 3332 3333 PetscFunctionBegin; 3334 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 3335 if (ts->exact_final_time == TS_EXACTFINALTIME_UNSPECIFIED) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_WRONGSTATE,"You must call TSSetExactFinalTime() or use -ts_exact_final_time <stepover,interpolate,matchstep> before calling TSStep()"); 3336 3337 ierr = PetscCitationsRegister("@techreport{tspaper,\n" 3338 " title = {{PETSc/TS}: A Modern Scalable {DAE/ODE} Solver Library},\n" 3339 " author = {Shrirang Abhyankar and Jed Brown and Emil Constantinescu and Debojyoti Ghosh and Barry F. Smith},\n" 3340 " type = {Preprint},\n" 3341 " number = {ANL/MCS-P5061-0114},\n" 3342 " institution = {Argonne National Laboratory},\n" 3343 " year = {2014}\n}\n",&cite);CHKERRQ(ierr); 3344 3345 ierr = TSGetDM(ts, &dm);CHKERRQ(ierr); 3346 ierr = TSSetUp(ts);CHKERRQ(ierr); 3347 ierr = TSTrajectorySetUp(ts->trajectory,ts);CHKERRQ(ierr); 3348 3349 ts->reason = TS_CONVERGED_ITERATING; 3350 ts->ptime_prev = ts->ptime; 3351 ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr); 3352 3353 if (!ts->ops->step) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"TSStep not implemented for type '%s'",((PetscObject)ts)->type_name); 3354 ierr = PetscLogEventBegin(TS_Step,ts,0,0,0);CHKERRQ(ierr); 3355 ierr = (*ts->ops->step)(ts);CHKERRQ(ierr); 3356 ierr = PetscLogEventEnd(TS_Step,ts,0,0,0);CHKERRQ(ierr); 3357 3358 ts->time_step_prev = ts->ptime - ts->ptime_prev; 3359 ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr); 3360 3361 if (ts->reason < 0) { 3362 if (ts->errorifstepfailed) { 3363 if (ts->reason == TS_DIVERGED_NONLINEAR_SOLVE) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s, increase -ts_max_snes_failures or make negative to attempt recovery",TSConvergedReasons[ts->reason]); 3364 else SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s",TSConvergedReasons[ts->reason]); 3365 } 3366 } else if (!ts->reason) { 3367 if (ts->steps >= ts->max_steps) ts->reason = TS_CONVERGED_ITS; 3368 else if (ts->ptime >= ts->max_time) ts->reason = TS_CONVERGED_TIME; 3369 } 3370 ts->total_steps++; 3371 ts->steprollback = PETSC_FALSE; 3372 PetscFunctionReturn(0); 3373 } 3374 3375 #undef __FUNCT__ 3376 #define __FUNCT__ "TSAdjointStep" 3377 /*@ 3378 TSAdjointStep - Steps one time step backward in the adjoint run 3379 3380 Collective on TS 3381 3382 Input Parameter: 3383 . ts - the TS context obtained from TSCreate() 3384 3385 Level: intermediate 3386 3387 .keywords: TS, adjoint, step 3388 3389 .seealso: TSAdjointSetUp(), TSAdjointSolve() 3390 @*/ 3391 PetscErrorCode TSAdjointStep(TS ts) 3392 { 3393 DM dm; 3394 PetscErrorCode ierr; 3395 3396 PetscFunctionBegin; 3397 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 3398 ierr = TSGetDM(ts, &dm);CHKERRQ(ierr); 3399 ierr = TSAdjointSetUp(ts);CHKERRQ(ierr); 3400 3401 ts->reason = TS_CONVERGED_ITERATING; 3402 ts->ptime_prev = ts->ptime; 3403 ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr); 3404 ierr = VecViewFromOptions(ts->vec_sol,(PetscObject)ts, "-ts_view_solution");CHKERRQ(ierr); 3405 3406 ierr = PetscLogEventBegin(TS_AdjointStep,ts,0,0,0);CHKERRQ(ierr); 3407 if (!ts->ops->adjointstep) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed because the adjoint of %s has not been implemented, try other time stepping methods for adjoint sensitivity analysis",((PetscObject)ts)->type_name); 3408 ierr = (*ts->ops->adjointstep)(ts);CHKERRQ(ierr); 3409 ierr = PetscLogEventEnd(TS_AdjointStep,ts,0,0,0);CHKERRQ(ierr); 3410 3411 ts->time_step_prev = ts->ptime - ts->ptime_prev; 3412 ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr); 3413 3414 if (ts->reason < 0) { 3415 if (ts->errorifstepfailed) { 3416 if (ts->reason == TS_DIVERGED_NONLINEAR_SOLVE) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s, increase -ts_max_snes_failures or make negative to attempt recovery",TSConvergedReasons[ts->reason]); 3417 else if (ts->reason == TS_DIVERGED_STEP_REJECTED) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s, increase -ts_max_reject or make negative to attempt recovery",TSConvergedReasons[ts->reason]); 3418 else SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s",TSConvergedReasons[ts->reason]); 3419 } 3420 } else if (!ts->reason) { 3421 if (ts->steps >= ts->adjoint_max_steps) ts->reason = TS_CONVERGED_ITS; 3422 } 3423 ts->total_steps--; 3424 PetscFunctionReturn(0); 3425 } 3426 3427 #undef __FUNCT__ 3428 #define __FUNCT__ "TSEvaluateStep" 3429 /*@ 3430 TSEvaluateStep - Evaluate the solution at the end of a time step with a given order of accuracy. 3431 3432 Collective on TS 3433 3434 Input Arguments: 3435 + ts - time stepping context 3436 . order - desired order of accuracy 3437 - done - whether the step was evaluated at this order (pass NULL to generate an error if not available) 3438 3439 Output Arguments: 3440 . U - state at the end of the current step 3441 3442 Level: advanced 3443 3444 Notes: 3445 This function cannot be called until all stages have been evaluated. 3446 It is normally called by adaptive controllers before a step has been accepted and may also be called by the user after TSStep() has returned. 3447 3448 .seealso: TSStep(), TSAdapt 3449 @*/ 3450 PetscErrorCode TSEvaluateStep(TS ts,PetscInt order,Vec U,PetscBool *done) 3451 { 3452 PetscErrorCode ierr; 3453 3454 PetscFunctionBegin; 3455 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3456 PetscValidType(ts,1); 3457 PetscValidHeaderSpecific(U,VEC_CLASSID,3); 3458 if (!ts->ops->evaluatestep) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"TSEvaluateStep not implemented for type '%s'",((PetscObject)ts)->type_name); 3459 ierr = (*ts->ops->evaluatestep)(ts,order,U,done);CHKERRQ(ierr); 3460 PetscFunctionReturn(0); 3461 } 3462 3463 #undef __FUNCT__ 3464 #define __FUNCT__ "TSForwardCostIntegral" 3465 /*@ 3466 TSForwardCostIntegral - Evaluate the cost integral in the forward run. 3467 3468 Collective on TS 3469 3470 Input Arguments: 3471 . ts - time stepping context 3472 3473 Level: advanced 3474 3475 Notes: 3476 This function cannot be called until TSStep() has been completed. 3477 3478 .seealso: TSSolve(), TSAdjointCostIntegral() 3479 @*/ 3480 PetscErrorCode TSForwardCostIntegral(TS ts) 3481 { 3482 PetscErrorCode ierr; 3483 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3484 if (!ts->ops->forwardintegral) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"%s does not provide integral evaluation in the forward run",((PetscObject)ts)->type_name); 3485 ierr = (*ts->ops->forwardintegral)(ts);CHKERRQ(ierr); 3486 PetscFunctionReturn(0); 3487 } 3488 3489 #undef __FUNCT__ 3490 #define __FUNCT__ "TSSolve" 3491 /*@ 3492 TSSolve - Steps the requested number of timesteps. 3493 3494 Collective on TS 3495 3496 Input Parameter: 3497 + ts - the TS context obtained from TSCreate() 3498 - u - the solution vector (can be null if TSSetSolution() was used, otherwise must contain the initial conditions) 3499 3500 Level: beginner 3501 3502 Notes: 3503 The final time returned by this function may be different from the time of the internally 3504 held state accessible by TSGetSolution() and TSGetTime() because the method may have 3505 stepped over the final time. 3506 3507 .keywords: TS, timestep, solve 3508 3509 .seealso: TSCreate(), TSSetSolution(), TSStep() 3510 @*/ 3511 PetscErrorCode TSSolve(TS ts,Vec u) 3512 { 3513 Vec solution; 3514 PetscErrorCode ierr; 3515 3516 PetscFunctionBegin; 3517 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3518 if (u) PetscValidHeaderSpecific(u,VEC_CLASSID,2); 3519 if (ts->exact_final_time == TS_EXACTFINALTIME_UNSPECIFIED) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_WRONGSTATE,"You must call TSSetExactFinalTime() or use -ts_exact_final_time <stepover,interpolate,matchstep> before calling TSSolve()"); 3520 if (ts->exact_final_time == TS_EXACTFINALTIME_MATCHSTEP && !ts->adapt) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Since TS is not adaptive you cannot use TS_EXACTFINALTIME_MATCHSTEP, suggest TS_EXACTFINALTIME_INTERPOLATE"); 3521 3522 if (ts->exact_final_time == TS_EXACTFINALTIME_INTERPOLATE) { /* Need ts->vec_sol to be distinct so it is not overwritten when we interpolate at the end */ 3523 PetscValidHeaderSpecific(u,VEC_CLASSID,2); 3524 if (!ts->vec_sol || u == ts->vec_sol) { 3525 ierr = VecDuplicate(u,&solution);CHKERRQ(ierr); 3526 ierr = TSSetSolution(ts,solution);CHKERRQ(ierr); 3527 ierr = VecDestroy(&solution);CHKERRQ(ierr); /* grant ownership */ 3528 } 3529 ierr = VecCopy(u,ts->vec_sol);CHKERRQ(ierr); 3530 } else if (u) { 3531 ierr = TSSetSolution(ts,u);CHKERRQ(ierr); 3532 } 3533 ierr = TSSetUp(ts);CHKERRQ(ierr); 3534 ierr = TSTrajectorySetUp(ts->trajectory,ts);CHKERRQ(ierr); 3535 /* reset time step and iteration counters */ 3536 ts->steps = 0; 3537 ts->ksp_its = 0; 3538 ts->snes_its = 0; 3539 ts->num_snes_failures = 0; 3540 ts->reject = 0; 3541 ts->reason = TS_CONVERGED_ITERATING; 3542 3543 ierr = TSViewFromOptions(ts,NULL,"-ts_view_pre");CHKERRQ(ierr); 3544 { 3545 DM dm; 3546 ierr = TSGetDM(ts, &dm);CHKERRQ(ierr); 3547 ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr); 3548 } 3549 3550 if (ts->ops->solve) { /* This private interface is transitional and should be removed when all implementations are updated. */ 3551 ierr = (*ts->ops->solve)(ts);CHKERRQ(ierr); 3552 ierr = VecCopy(ts->vec_sol,u);CHKERRQ(ierr); 3553 ts->solvetime = ts->ptime; 3554 } else { 3555 /* steps the requested number of timesteps. */ 3556 if (ts->steps >= ts->max_steps) ts->reason = TS_CONVERGED_ITS; 3557 else if (ts->ptime >= ts->max_time) ts->reason = TS_CONVERGED_TIME; 3558 ierr = TSTrajectorySet(ts->trajectory,ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr); 3559 if(ts->event) { 3560 ierr = TSEventMonitorInitialize(ts);CHKERRQ(ierr); 3561 } 3562 while (!ts->reason) { 3563 ierr = TSMonitor(ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr); 3564 ierr = TSStep(ts);CHKERRQ(ierr); 3565 if (!ts->steprollback && ts->vec_costintegral && ts->costintegralfwd) { 3566 ierr = TSForwardCostIntegral(ts);CHKERRQ(ierr); 3567 } 3568 if (ts->event) { 3569 ierr = TSEventMonitor(ts);CHKERRQ(ierr); 3570 } 3571 if(!ts->steprollback) { 3572 ierr = TSTrajectorySet(ts->trajectory,ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr); 3573 ierr = TSPostStep(ts);CHKERRQ(ierr); 3574 } 3575 } 3576 if (ts->exact_final_time == TS_EXACTFINALTIME_INTERPOLATE && ts->ptime > ts->max_time) { 3577 ierr = TSInterpolate(ts,ts->max_time,u);CHKERRQ(ierr); 3578 ts->solvetime = ts->max_time; 3579 solution = u; 3580 } else { 3581 if (u) {ierr = VecCopy(ts->vec_sol,u);CHKERRQ(ierr);} 3582 ts->solvetime = ts->ptime; 3583 solution = ts->vec_sol; 3584 } 3585 ierr = TSMonitor(ts,ts->steps,ts->solvetime,solution);CHKERRQ(ierr); 3586 ierr = VecViewFromOptions(solution,(PetscObject) ts,"-ts_view_solution");CHKERRQ(ierr); 3587 } 3588 3589 ierr = TSViewFromOptions(ts,NULL,"-ts_view");CHKERRQ(ierr); 3590 ierr = VecViewFromOptions(ts->vec_sol,NULL,"-ts_view_solution");CHKERRQ(ierr); 3591 ierr = PetscObjectSAWsBlock((PetscObject)ts);CHKERRQ(ierr); 3592 if (ts->adjoint_solve) { 3593 ierr = TSAdjointSolve(ts);CHKERRQ(ierr); 3594 } 3595 PetscFunctionReturn(0); 3596 } 3597 3598 #undef __FUNCT__ 3599 #define __FUNCT__ "TSAdjointCostIntegral" 3600 /*@ 3601 TSAdjointCostIntegral - Evaluate the cost integral in the adjoint run. 3602 3603 Collective on TS 3604 3605 Input Arguments: 3606 . ts - time stepping context 3607 3608 Level: advanced 3609 3610 Notes: 3611 This function cannot be called until TSAdjointStep() has been completed. 3612 3613 .seealso: TSAdjointSolve(), TSAdjointStep 3614 @*/ 3615 PetscErrorCode TSAdjointCostIntegral(TS ts) 3616 { 3617 PetscErrorCode ierr; 3618 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3619 if (!ts->ops->adjointintegral) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"%s does not provide integral evaluation in the adjoint run",((PetscObject)ts)->type_name); 3620 ierr = (*ts->ops->adjointintegral)(ts);CHKERRQ(ierr); 3621 PetscFunctionReturn(0); 3622 } 3623 3624 #undef __FUNCT__ 3625 #define __FUNCT__ "TSAdjointSolve" 3626 /*@ 3627 TSAdjointSolve - Solves the discrete ajoint problem for an ODE/DAE 3628 3629 Collective on TS 3630 3631 Input Parameter: 3632 . ts - the TS context obtained from TSCreate() 3633 3634 Options Database: 3635 . -ts_adjoint_view_solution <viewerinfo> - views the first gradient with respect to the initial conditions 3636 3637 Level: intermediate 3638 3639 Notes: 3640 This must be called after a call to TSSolve() that solves the forward problem 3641 3642 By default this will integrate back to the initial time, one can use TSAdjointSetSteps() to step back to a later time 3643 3644 .keywords: TS, timestep, solve 3645 3646 .seealso: TSCreate(), TSSetCostGradients(), TSSetSolution(), TSAdjointStep() 3647 @*/ 3648 PetscErrorCode TSAdjointSolve(TS ts) 3649 { 3650 PetscErrorCode ierr; 3651 3652 PetscFunctionBegin; 3653 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3654 ierr = TSAdjointSetUp(ts);CHKERRQ(ierr); 3655 3656 /* reset time step and iteration counters */ 3657 ts->steps = 0; 3658 ts->ksp_its = 0; 3659 ts->snes_its = 0; 3660 ts->num_snes_failures = 0; 3661 ts->reject = 0; 3662 ts->reason = TS_CONVERGED_ITERATING; 3663 3664 if (!ts->adjoint_max_steps) ts->adjoint_max_steps = ts->total_steps; 3665 3666 if (ts->steps >= ts->adjoint_max_steps) ts->reason = TS_CONVERGED_ITS; 3667 while (!ts->reason) { 3668 ierr = TSTrajectoryGet(ts->trajectory,ts,ts->total_steps,&ts->ptime);CHKERRQ(ierr); 3669 ierr = TSAdjointMonitor(ts,ts->total_steps,ts->ptime,ts->vec_sol,ts->numcost,ts->vecs_sensi,ts->vecs_sensip);CHKERRQ(ierr); 3670 if (ts->event) { 3671 ierr = TSAdjointEventMonitor(ts);CHKERRQ(ierr); 3672 } 3673 ierr = TSAdjointStep(ts);CHKERRQ(ierr); 3674 if (ts->vec_costintegral && !ts->costintegralfwd) { 3675 ierr = TSAdjointCostIntegral(ts);CHKERRQ(ierr); 3676 } 3677 } 3678 ierr = TSTrajectoryGet(ts->trajectory,ts,ts->total_steps,&ts->ptime);CHKERRQ(ierr); 3679 ierr = TSAdjointMonitor(ts,ts->total_steps,ts->ptime,ts->vec_sol,ts->numcost,ts->vecs_sensi,ts->vecs_sensip);CHKERRQ(ierr); 3680 ts->solvetime = ts->ptime; 3681 ierr = TSTrajectoryViewFromOptions(ts->trajectory,NULL,"-tstrajectory_view");CHKERRQ(ierr); 3682 ierr = VecViewFromOptions(ts->vecs_sensi[0],(PetscObject) ts, "-ts_adjoint_view_solution");CHKERRQ(ierr); 3683 PetscFunctionReturn(0); 3684 } 3685 3686 #undef __FUNCT__ 3687 #define __FUNCT__ "TSMonitor" 3688 /*@C 3689 TSMonitor - Runs all user-provided monitor routines set using TSMonitorSet() 3690 3691 Collective on TS 3692 3693 Input Parameters: 3694 + ts - time stepping context obtained from TSCreate() 3695 . step - step number that has just completed 3696 . ptime - model time of the state 3697 - u - state at the current model time 3698 3699 Notes: 3700 TSMonitor() is typically used automatically within the time stepping implementations. 3701 Users would almost never call this routine directly. 3702 3703 Level: developer 3704 3705 .keywords: TS, timestep 3706 @*/ 3707 PetscErrorCode TSMonitor(TS ts,PetscInt step,PetscReal ptime,Vec u) 3708 { 3709 PetscErrorCode ierr; 3710 PetscInt i,n = ts->numbermonitors; 3711 3712 PetscFunctionBegin; 3713 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3714 PetscValidHeaderSpecific(u,VEC_CLASSID,4); 3715 ierr = VecLockPush(u);CHKERRQ(ierr); 3716 for (i=0; i<n; i++) { 3717 ierr = (*ts->monitor[i])(ts,step,ptime,u,ts->monitorcontext[i]);CHKERRQ(ierr); 3718 } 3719 ierr = VecLockPop(u);CHKERRQ(ierr); 3720 PetscFunctionReturn(0); 3721 } 3722 3723 #undef __FUNCT__ 3724 #define __FUNCT__ "TSAdjointMonitor" 3725 /*@C 3726 TSAdjointMonitor - Runs all user-provided adjoint monitor routines set using TSAdjointMonitorSet() 3727 3728 Collective on TS 3729 3730 Input Parameters: 3731 + ts - time stepping context obtained from TSCreate() 3732 . step - step number that has just completed 3733 . ptime - model time of the state 3734 . u - state at the current model time 3735 . numcost - number of cost functions (dimension of lambda or mu) 3736 . lambda - vectors containing the gradients of the cost functions with respect to the ODE/DAE solution variables 3737 - mu - vectors containing the gradients of the cost functions with respect to the problem parameters 3738 3739 Notes: 3740 TSAdjointMonitor() is typically used automatically within the time stepping implementations. 3741 Users would almost never call this routine directly. 3742 3743 Level: developer 3744 3745 .keywords: TS, timestep 3746 @*/ 3747 PetscErrorCode TSAdjointMonitor(TS ts,PetscInt step,PetscReal ptime,Vec u,PetscInt numcost,Vec *lambda, Vec *mu) 3748 { 3749 PetscErrorCode ierr; 3750 PetscInt i,n = ts->numberadjointmonitors; 3751 3752 PetscFunctionBegin; 3753 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3754 PetscValidHeaderSpecific(u,VEC_CLASSID,4); 3755 ierr = VecLockPush(u);CHKERRQ(ierr); 3756 for (i=0; i<n; i++) { 3757 ierr = (*ts->adjointmonitor[i])(ts,step,ptime,u,numcost,lambda,mu,ts->adjointmonitorcontext[i]);CHKERRQ(ierr); 3758 } 3759 ierr = VecLockPop(u);CHKERRQ(ierr); 3760 PetscFunctionReturn(0); 3761 } 3762 3763 /* ------------------------------------------------------------------------*/ 3764 #undef __FUNCT__ 3765 #define __FUNCT__ "TSMonitorLGCtxCreate" 3766 /*@C 3767 TSMonitorLGCtxCreate - Creates a TSMonitorLGCtx context for use with 3768 TS to monitor the solution process graphically in various ways 3769 3770 Collective on TS 3771 3772 Input Parameters: 3773 + host - the X display to open, or null for the local machine 3774 . label - the title to put in the title bar 3775 . x, y - the screen coordinates of the upper left coordinate of the window 3776 . m, n - the screen width and height in pixels 3777 - howoften - if positive then determines the frequency of the plotting, if -1 then only at the final time 3778 3779 Output Parameter: 3780 . ctx - the context 3781 3782 Options Database Key: 3783 + -ts_monitor_lg_timestep - automatically sets line graph monitor 3784 . -ts_monitor_lg_solution - monitor the solution (or certain values of the solution by calling TSMonitorLGSetDisplayVariables() or TSMonitorLGCtxSetDisplayVariables()) 3785 . -ts_monitor_lg_error - monitor the error 3786 . -ts_monitor_lg_ksp_iterations - monitor the number of KSP iterations needed for each timestep 3787 . -ts_monitor_lg_snes_iterations - monitor the number of SNES iterations needed for each timestep 3788 - -lg_use_markers <true,false> - mark the data points (at each time step) on the plot; default is true 3789 3790 Notes: 3791 Use TSMonitorLGCtxDestroy() to destroy. 3792 3793 One can provide a function that transforms the solution before plotting it with TSMonitorLGCtxSetTransform() or TSMonitorLGSetTransform() 3794 3795 Many of the functions that control the monitoring have two forms: TSMonitorLGSet/GetXXXX() and TSMonitorLGCtxSet/GetXXXX() the first take a TS object as the 3796 first argument (if that TS object does not have a TSMonitorLGCtx associated with it the function call is ignored) and the second takes a TSMonitorLGCtx object 3797 as the first argument. 3798 3799 One can control the names displayed for each solution or error variable with TSMonitorLGCtxSetVariableNames() or TSMonitorLGSetVariableNames() 3800 3801 3802 Level: intermediate 3803 3804 .keywords: TS, monitor, line graph, residual 3805 3806 .seealso: TSMonitorLGTimeStep(), TSMonitorSet(), TSMonitorLGSolution(), TSMonitorLGError(), TSMonitorDefault(), VecView(), 3807 TSMonitorLGCtxCreate(), TSMonitorLGCtxSetVariableNames(), TSMonitorLGCtxGetVariableNames(), 3808 TSMonitorLGSetVariableNames(), TSMonitorLGGetVariableNames(), TSMonitorLGSetDisplayVariables(), TSMonitorLGCtxSetDisplayVariables(), 3809 TSMonitorLGCtxSetTransform(), TSMonitorLGSetTransform(), TSMonitorLGError(), TSMonitorLGSNESIterations(), TSMonitorLGKSPIterations(), 3810 TSMonitorEnvelopeCtxCreate(), TSMonitorEnvelopeGetBounds(), TSMonitorEnvelopeCtxDestroy(), TSMonitorEnvelop() 3811 3812 @*/ 3813 PetscErrorCode TSMonitorLGCtxCreate(MPI_Comm comm,const char host[],const char label[],int x,int y,int m,int n,PetscInt howoften,TSMonitorLGCtx *ctx) 3814 { 3815 PetscDraw draw; 3816 PetscErrorCode ierr; 3817 3818 PetscFunctionBegin; 3819 ierr = PetscNew(ctx);CHKERRQ(ierr); 3820 ierr = PetscDrawCreate(comm,host,label,x,y,m,n,&draw);CHKERRQ(ierr); 3821 ierr = PetscDrawSetFromOptions(draw);CHKERRQ(ierr); 3822 ierr = PetscDrawLGCreate(draw,1,&(*ctx)->lg);CHKERRQ(ierr); 3823 ierr = PetscDrawLGSetFromOptions((*ctx)->lg);CHKERRQ(ierr); 3824 ierr = PetscDrawDestroy(&draw);CHKERRQ(ierr); 3825 (*ctx)->howoften = howoften; 3826 PetscFunctionReturn(0); 3827 } 3828 3829 #undef __FUNCT__ 3830 #define __FUNCT__ "TSMonitorLGTimeStep" 3831 PetscErrorCode TSMonitorLGTimeStep(TS ts,PetscInt step,PetscReal ptime,Vec v,void *monctx) 3832 { 3833 TSMonitorLGCtx ctx = (TSMonitorLGCtx) monctx; 3834 PetscReal x = ptime,y; 3835 PetscErrorCode ierr; 3836 3837 PetscFunctionBegin; 3838 if (!step) { 3839 PetscDrawAxis axis; 3840 ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr); 3841 ierr = PetscDrawAxisSetLabels(axis,"Timestep as function of time","Time","Time Step");CHKERRQ(ierr); 3842 ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr); 3843 } 3844 ierr = TSGetTimeStep(ts,&y);CHKERRQ(ierr); 3845 ierr = PetscDrawLGAddPoint(ctx->lg,&x,&y);CHKERRQ(ierr); 3846 if (((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason)) { 3847 ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr); 3848 ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr); 3849 } 3850 PetscFunctionReturn(0); 3851 } 3852 3853 #undef __FUNCT__ 3854 #define __FUNCT__ "TSMonitorLGCtxDestroy" 3855 /*@C 3856 TSMonitorLGCtxDestroy - Destroys a line graph context that was created 3857 with TSMonitorLGCtxCreate(). 3858 3859 Collective on TSMonitorLGCtx 3860 3861 Input Parameter: 3862 . ctx - the monitor context 3863 3864 Level: intermediate 3865 3866 .keywords: TS, monitor, line graph, destroy 3867 3868 .seealso: TSMonitorLGCtxCreate(), TSMonitorSet(), TSMonitorLGTimeStep(); 3869 @*/ 3870 PetscErrorCode TSMonitorLGCtxDestroy(TSMonitorLGCtx *ctx) 3871 { 3872 PetscErrorCode ierr; 3873 3874 PetscFunctionBegin; 3875 if ((*ctx)->transformdestroy) { 3876 ierr = ((*ctx)->transformdestroy)((*ctx)->transformctx);CHKERRQ(ierr); 3877 } 3878 ierr = PetscDrawLGDestroy(&(*ctx)->lg);CHKERRQ(ierr); 3879 ierr = PetscStrArrayDestroy(&(*ctx)->names);CHKERRQ(ierr); 3880 ierr = PetscStrArrayDestroy(&(*ctx)->displaynames);CHKERRQ(ierr); 3881 ierr = PetscFree((*ctx)->displayvariables);CHKERRQ(ierr); 3882 ierr = PetscFree((*ctx)->displayvalues);CHKERRQ(ierr); 3883 ierr = PetscFree(*ctx);CHKERRQ(ierr); 3884 PetscFunctionReturn(0); 3885 } 3886 3887 #undef __FUNCT__ 3888 #define __FUNCT__ "TSGetTime" 3889 /*@ 3890 TSGetTime - Gets the time of the most recently completed step. 3891 3892 Not Collective 3893 3894 Input Parameter: 3895 . ts - the TS context obtained from TSCreate() 3896 3897 Output Parameter: 3898 . t - the current time 3899 3900 Level: beginner 3901 3902 Note: 3903 When called during time step evaluation (e.g. during residual evaluation or via hooks set using TSSetPreStep(), 3904 TSSetPreStage(), TSSetPostStage(), or TSSetPostStep()), the time is the time at the start of the step being evaluated. 3905 3906 .seealso: TSSetInitialTimeStep(), TSGetTimeStep() 3907 3908 .keywords: TS, get, time 3909 @*/ 3910 PetscErrorCode TSGetTime(TS ts,PetscReal *t) 3911 { 3912 PetscFunctionBegin; 3913 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3914 PetscValidRealPointer(t,2); 3915 *t = ts->ptime; 3916 PetscFunctionReturn(0); 3917 } 3918 3919 #undef __FUNCT__ 3920 #define __FUNCT__ "TSGetPrevTime" 3921 /*@ 3922 TSGetPrevTime - Gets the starting time of the previously completed step. 3923 3924 Not Collective 3925 3926 Input Parameter: 3927 . ts - the TS context obtained from TSCreate() 3928 3929 Output Parameter: 3930 . t - the previous time 3931 3932 Level: beginner 3933 3934 .seealso: TSSetInitialTimeStep(), TSGetTimeStep() 3935 3936 .keywords: TS, get, time 3937 @*/ 3938 PetscErrorCode TSGetPrevTime(TS ts,PetscReal *t) 3939 { 3940 PetscFunctionBegin; 3941 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3942 PetscValidRealPointer(t,2); 3943 *t = ts->ptime_prev; 3944 PetscFunctionReturn(0); 3945 } 3946 3947 #undef __FUNCT__ 3948 #define __FUNCT__ "TSSetTime" 3949 /*@ 3950 TSSetTime - Allows one to reset the time. 3951 3952 Logically Collective on TS 3953 3954 Input Parameters: 3955 + ts - the TS context obtained from TSCreate() 3956 - time - the time 3957 3958 Level: intermediate 3959 3960 .seealso: TSGetTime(), TSSetDuration() 3961 3962 .keywords: TS, set, time 3963 @*/ 3964 PetscErrorCode TSSetTime(TS ts, PetscReal t) 3965 { 3966 PetscFunctionBegin; 3967 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 3968 PetscValidLogicalCollectiveReal(ts,t,2); 3969 ts->ptime = t; 3970 PetscFunctionReturn(0); 3971 } 3972 3973 #undef __FUNCT__ 3974 #define __FUNCT__ "TSSetOptionsPrefix" 3975 /*@C 3976 TSSetOptionsPrefix - Sets the prefix used for searching for all 3977 TS options in the database. 3978 3979 Logically Collective on TS 3980 3981 Input Parameter: 3982 + ts - The TS context 3983 - prefix - The prefix to prepend to all option names 3984 3985 Notes: 3986 A hyphen (-) must NOT be given at the beginning of the prefix name. 3987 The first character of all runtime options is AUTOMATICALLY the 3988 hyphen. 3989 3990 Level: advanced 3991 3992 .keywords: TS, set, options, prefix, database 3993 3994 .seealso: TSSetFromOptions() 3995 3996 @*/ 3997 PetscErrorCode TSSetOptionsPrefix(TS ts,const char prefix[]) 3998 { 3999 PetscErrorCode ierr; 4000 SNES snes; 4001 4002 PetscFunctionBegin; 4003 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4004 ierr = PetscObjectSetOptionsPrefix((PetscObject)ts,prefix);CHKERRQ(ierr); 4005 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 4006 ierr = SNESSetOptionsPrefix(snes,prefix);CHKERRQ(ierr); 4007 PetscFunctionReturn(0); 4008 } 4009 4010 4011 #undef __FUNCT__ 4012 #define __FUNCT__ "TSAppendOptionsPrefix" 4013 /*@C 4014 TSAppendOptionsPrefix - Appends to the prefix used for searching for all 4015 TS options in the database. 4016 4017 Logically Collective on TS 4018 4019 Input Parameter: 4020 + ts - The TS context 4021 - prefix - The prefix to prepend to all option names 4022 4023 Notes: 4024 A hyphen (-) must NOT be given at the beginning of the prefix name. 4025 The first character of all runtime options is AUTOMATICALLY the 4026 hyphen. 4027 4028 Level: advanced 4029 4030 .keywords: TS, append, options, prefix, database 4031 4032 .seealso: TSGetOptionsPrefix() 4033 4034 @*/ 4035 PetscErrorCode TSAppendOptionsPrefix(TS ts,const char prefix[]) 4036 { 4037 PetscErrorCode ierr; 4038 SNES snes; 4039 4040 PetscFunctionBegin; 4041 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4042 ierr = PetscObjectAppendOptionsPrefix((PetscObject)ts,prefix);CHKERRQ(ierr); 4043 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 4044 ierr = SNESAppendOptionsPrefix(snes,prefix);CHKERRQ(ierr); 4045 PetscFunctionReturn(0); 4046 } 4047 4048 #undef __FUNCT__ 4049 #define __FUNCT__ "TSGetOptionsPrefix" 4050 /*@C 4051 TSGetOptionsPrefix - Sets the prefix used for searching for all 4052 TS options in the database. 4053 4054 Not Collective 4055 4056 Input Parameter: 4057 . ts - The TS context 4058 4059 Output Parameter: 4060 . prefix - A pointer to the prefix string used 4061 4062 Notes: On the fortran side, the user should pass in a string 'prifix' of 4063 sufficient length to hold the prefix. 4064 4065 Level: intermediate 4066 4067 .keywords: TS, get, options, prefix, database 4068 4069 .seealso: TSAppendOptionsPrefix() 4070 @*/ 4071 PetscErrorCode TSGetOptionsPrefix(TS ts,const char *prefix[]) 4072 { 4073 PetscErrorCode ierr; 4074 4075 PetscFunctionBegin; 4076 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4077 PetscValidPointer(prefix,2); 4078 ierr = PetscObjectGetOptionsPrefix((PetscObject)ts,prefix);CHKERRQ(ierr); 4079 PetscFunctionReturn(0); 4080 } 4081 4082 #undef __FUNCT__ 4083 #define __FUNCT__ "TSGetRHSJacobian" 4084 /*@C 4085 TSGetRHSJacobian - Returns the Jacobian J at the present timestep. 4086 4087 Not Collective, but parallel objects are returned if TS is parallel 4088 4089 Input Parameter: 4090 . ts - The TS context obtained from TSCreate() 4091 4092 Output Parameters: 4093 + Amat - The (approximate) Jacobian J of G, where U_t = G(U,t) (or NULL) 4094 . Pmat - The matrix from which the preconditioner is constructed, usually the same as Amat (or NULL) 4095 . func - Function to compute the Jacobian of the RHS (or NULL) 4096 - ctx - User-defined context for Jacobian evaluation routine (or NULL) 4097 4098 Notes: You can pass in NULL for any return argument you do not need. 4099 4100 Level: intermediate 4101 4102 .seealso: TSGetTimeStep(), TSGetMatrices(), TSGetTime(), TSGetTimeStepNumber() 4103 4104 .keywords: TS, timestep, get, matrix, Jacobian 4105 @*/ 4106 PetscErrorCode TSGetRHSJacobian(TS ts,Mat *Amat,Mat *Pmat,TSRHSJacobian *func,void **ctx) 4107 { 4108 PetscErrorCode ierr; 4109 SNES snes; 4110 DM dm; 4111 4112 PetscFunctionBegin; 4113 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 4114 ierr = SNESGetJacobian(snes,Amat,Pmat,NULL,NULL);CHKERRQ(ierr); 4115 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 4116 ierr = DMTSGetRHSJacobian(dm,func,ctx);CHKERRQ(ierr); 4117 PetscFunctionReturn(0); 4118 } 4119 4120 #undef __FUNCT__ 4121 #define __FUNCT__ "TSGetIJacobian" 4122 /*@C 4123 TSGetIJacobian - Returns the implicit Jacobian at the present timestep. 4124 4125 Not Collective, but parallel objects are returned if TS is parallel 4126 4127 Input Parameter: 4128 . ts - The TS context obtained from TSCreate() 4129 4130 Output Parameters: 4131 + Amat - The (approximate) Jacobian of F(t,U,U_t) 4132 . Pmat - The matrix from which the preconditioner is constructed, often the same as Amat 4133 . f - The function to compute the matrices 4134 - ctx - User-defined context for Jacobian evaluation routine 4135 4136 Notes: You can pass in NULL for any return argument you do not need. 4137 4138 Level: advanced 4139 4140 .seealso: TSGetTimeStep(), TSGetRHSJacobian(), TSGetMatrices(), TSGetTime(), TSGetTimeStepNumber() 4141 4142 .keywords: TS, timestep, get, matrix, Jacobian 4143 @*/ 4144 PetscErrorCode TSGetIJacobian(TS ts,Mat *Amat,Mat *Pmat,TSIJacobian *f,void **ctx) 4145 { 4146 PetscErrorCode ierr; 4147 SNES snes; 4148 DM dm; 4149 4150 PetscFunctionBegin; 4151 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 4152 ierr = SNESSetUpMatrices(snes);CHKERRQ(ierr); 4153 ierr = SNESGetJacobian(snes,Amat,Pmat,NULL,NULL);CHKERRQ(ierr); 4154 ierr = TSGetDM(ts,&dm);CHKERRQ(ierr); 4155 ierr = DMTSGetIJacobian(dm,f,ctx);CHKERRQ(ierr); 4156 PetscFunctionReturn(0); 4157 } 4158 4159 4160 #undef __FUNCT__ 4161 #define __FUNCT__ "TSMonitorDrawSolution" 4162 /*@C 4163 TSMonitorDrawSolution - Monitors progress of the TS solvers by calling 4164 VecView() for the solution at each timestep 4165 4166 Collective on TS 4167 4168 Input Parameters: 4169 + ts - the TS context 4170 . step - current time-step 4171 . ptime - current time 4172 - dummy - either a viewer or NULL 4173 4174 Options Database: 4175 . -ts_monitor_draw_solution_initial - show initial solution as well as current solution 4176 4177 Notes: the initial solution and current solution are not display with a common axis scaling so generally the option -ts_monitor_draw_solution_initial 4178 will look bad 4179 4180 Level: intermediate 4181 4182 .keywords: TS, vector, monitor, view 4183 4184 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView() 4185 @*/ 4186 PetscErrorCode TSMonitorDrawSolution(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy) 4187 { 4188 PetscErrorCode ierr; 4189 TSMonitorDrawCtx ictx = (TSMonitorDrawCtx)dummy; 4190 PetscDraw draw; 4191 4192 PetscFunctionBegin; 4193 if (!step && ictx->showinitial) { 4194 if (!ictx->initialsolution) { 4195 ierr = VecDuplicate(u,&ictx->initialsolution);CHKERRQ(ierr); 4196 } 4197 ierr = VecCopy(u,ictx->initialsolution);CHKERRQ(ierr); 4198 } 4199 if (!(((ictx->howoften > 0) && (!(step % ictx->howoften))) || ((ictx->howoften == -1) && ts->reason))) PetscFunctionReturn(0); 4200 4201 if (ictx->showinitial) { 4202 PetscReal pause; 4203 ierr = PetscViewerDrawGetPause(ictx->viewer,&pause);CHKERRQ(ierr); 4204 ierr = PetscViewerDrawSetPause(ictx->viewer,0.0);CHKERRQ(ierr); 4205 ierr = VecView(ictx->initialsolution,ictx->viewer);CHKERRQ(ierr); 4206 ierr = PetscViewerDrawSetPause(ictx->viewer,pause);CHKERRQ(ierr); 4207 ierr = PetscViewerDrawSetHold(ictx->viewer,PETSC_TRUE);CHKERRQ(ierr); 4208 } 4209 ierr = VecView(u,ictx->viewer);CHKERRQ(ierr); 4210 if (ictx->showtimestepandtime) { 4211 PetscReal xl,yl,xr,yr,h; 4212 char time[32]; 4213 4214 ierr = PetscViewerDrawGetDraw(ictx->viewer,0,&draw);CHKERRQ(ierr); 4215 ierr = PetscSNPrintf(time,32,"Timestep %d Time %g",(int)step,(double)ptime);CHKERRQ(ierr); 4216 ierr = PetscDrawGetCoordinates(draw,&xl,&yl,&xr,&yr);CHKERRQ(ierr); 4217 h = yl + .95*(yr - yl); 4218 ierr = PetscDrawStringCentered(draw,.5*(xl+xr),h,PETSC_DRAW_BLACK,time);CHKERRQ(ierr); 4219 ierr = PetscDrawFlush(draw);CHKERRQ(ierr); 4220 } 4221 4222 if (ictx->showinitial) { 4223 ierr = PetscViewerDrawSetHold(ictx->viewer,PETSC_FALSE);CHKERRQ(ierr); 4224 } 4225 PetscFunctionReturn(0); 4226 } 4227 4228 #undef __FUNCT__ 4229 #define __FUNCT__ "TSAdjointMonitorDrawSensi" 4230 /*@C 4231 TSAdjointMonitorDrawSensi - Monitors progress of the adjoint TS solvers by calling 4232 VecView() for the sensitivities to initial states at each timestep 4233 4234 Collective on TS 4235 4236 Input Parameters: 4237 + ts - the TS context 4238 . step - current time-step 4239 . ptime - current time 4240 . u - current state 4241 . numcost - number of cost functions 4242 . lambda - sensitivities to initial conditions 4243 . mu - sensitivities to parameters 4244 - dummy - either a viewer or NULL 4245 4246 Level: intermediate 4247 4248 .keywords: TS, vector, adjoint, monitor, view 4249 4250 .seealso: TSAdjointMonitorSet(), TSAdjointMonitorDefault(), VecView() 4251 @*/ 4252 PetscErrorCode TSAdjointMonitorDrawSensi(TS ts,PetscInt step,PetscReal ptime,Vec u,PetscInt numcost,Vec *lambda,Vec *mu,void *dummy) 4253 { 4254 PetscErrorCode ierr; 4255 TSMonitorDrawCtx ictx = (TSMonitorDrawCtx)dummy; 4256 PetscDraw draw; 4257 PetscReal xl,yl,xr,yr,h; 4258 char time[32]; 4259 4260 PetscFunctionBegin; 4261 if (!(((ictx->howoften > 0) && (!(step % ictx->howoften))) || ((ictx->howoften == -1) && ts->reason))) PetscFunctionReturn(0); 4262 4263 ierr = VecView(lambda[0],ictx->viewer);CHKERRQ(ierr); 4264 ierr = PetscViewerDrawGetDraw(ictx->viewer,0,&draw);CHKERRQ(ierr); 4265 ierr = PetscSNPrintf(time,32,"Timestep %d Time %g",(int)step,(double)ptime);CHKERRQ(ierr); 4266 ierr = PetscDrawGetCoordinates(draw,&xl,&yl,&xr,&yr);CHKERRQ(ierr); 4267 h = yl + .95*(yr - yl); 4268 ierr = PetscDrawStringCentered(draw,.5*(xl+xr),h,PETSC_DRAW_BLACK,time);CHKERRQ(ierr); 4269 ierr = PetscDrawFlush(draw);CHKERRQ(ierr); 4270 PetscFunctionReturn(0); 4271 } 4272 4273 #undef __FUNCT__ 4274 #define __FUNCT__ "TSMonitorDrawSolutionPhase" 4275 /*@C 4276 TSMonitorDrawSolutionPhase - Monitors progress of the TS solvers by plotting the solution as a phase diagram 4277 4278 Collective on TS 4279 4280 Input Parameters: 4281 + ts - the TS context 4282 . step - current time-step 4283 . ptime - current time 4284 - dummy - either a viewer or NULL 4285 4286 Level: intermediate 4287 4288 .keywords: TS, vector, monitor, view 4289 4290 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView() 4291 @*/ 4292 PetscErrorCode TSMonitorDrawSolutionPhase(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy) 4293 { 4294 PetscErrorCode ierr; 4295 TSMonitorDrawCtx ictx = (TSMonitorDrawCtx)dummy; 4296 PetscDraw draw; 4297 PetscDrawAxis axis; 4298 PetscInt n; 4299 PetscMPIInt size; 4300 PetscReal U0,U1,xl,yl,xr,yr,h; 4301 char time[32]; 4302 const PetscScalar *U; 4303 4304 PetscFunctionBegin; 4305 ierr = MPI_Comm_size(PetscObjectComm((PetscObject)ts),&size);CHKERRQ(ierr); 4306 if (size != 1) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Only allowed for sequential runs"); 4307 ierr = VecGetSize(u,&n);CHKERRQ(ierr); 4308 if (n != 2) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Only for ODEs with two unknowns"); 4309 4310 ierr = PetscViewerDrawGetDraw(ictx->viewer,0,&draw);CHKERRQ(ierr); 4311 ierr = PetscViewerDrawGetDrawAxis(ictx->viewer,0,&axis);CHKERRQ(ierr); 4312 ierr = PetscDrawAxisGetLimits(axis,&xl,&xr,&yl,&yr);CHKERRQ(ierr); 4313 if (!step) { 4314 ierr = PetscDrawClear(draw);CHKERRQ(ierr); 4315 ierr = PetscDrawAxisDraw(axis);CHKERRQ(ierr); 4316 } 4317 4318 ierr = VecGetArrayRead(u,&U);CHKERRQ(ierr); 4319 U0 = PetscRealPart(U[0]); 4320 U1 = PetscRealPart(U[1]); 4321 ierr = VecRestoreArrayRead(u,&U);CHKERRQ(ierr); 4322 if ((U0 < xl) || (U1 < yl) || (U0 > xr) || (U1 > yr)) PetscFunctionReturn(0); 4323 4324 ierr = PetscDrawCollectiveBegin(draw);CHKERRQ(ierr); 4325 ierr = PetscDrawPoint(draw,U0,U1,PETSC_DRAW_BLACK);CHKERRQ(ierr); 4326 if (ictx->showtimestepandtime) { 4327 ierr = PetscDrawGetCoordinates(draw,&xl,&yl,&xr,&yr);CHKERRQ(ierr); 4328 ierr = PetscSNPrintf(time,32,"Timestep %d Time %g",(int)step,(double)ptime);CHKERRQ(ierr); 4329 h = yl + .95*(yr - yl); 4330 ierr = PetscDrawStringCentered(draw,.5*(xl+xr),h,PETSC_DRAW_BLACK,time);CHKERRQ(ierr); 4331 } 4332 ierr = PetscDrawCollectiveEnd(draw);CHKERRQ(ierr); 4333 ierr = PetscDrawFlush(draw);CHKERRQ(ierr); 4334 ierr = PetscDrawSave(draw);CHKERRQ(ierr); 4335 PetscFunctionReturn(0); 4336 } 4337 4338 4339 #undef __FUNCT__ 4340 #define __FUNCT__ "TSMonitorDrawCtxDestroy" 4341 /*@C 4342 TSMonitorDrawCtxDestroy - Destroys the monitor context for TSMonitorDrawSolution() 4343 4344 Collective on TS 4345 4346 Input Parameters: 4347 . ctx - the monitor context 4348 4349 Level: intermediate 4350 4351 .keywords: TS, vector, monitor, view 4352 4353 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorDrawSolution(), TSMonitorDrawError() 4354 @*/ 4355 PetscErrorCode TSMonitorDrawCtxDestroy(TSMonitorDrawCtx *ictx) 4356 { 4357 PetscErrorCode ierr; 4358 4359 PetscFunctionBegin; 4360 ierr = PetscViewerDestroy(&(*ictx)->viewer);CHKERRQ(ierr); 4361 ierr = VecDestroy(&(*ictx)->initialsolution);CHKERRQ(ierr); 4362 ierr = PetscFree(*ictx);CHKERRQ(ierr); 4363 PetscFunctionReturn(0); 4364 } 4365 4366 #undef __FUNCT__ 4367 #define __FUNCT__ "TSMonitorDrawCtxCreate" 4368 /*@C 4369 TSMonitorDrawCtxCreate - Creates the monitor context for TSMonitorDrawCtx 4370 4371 Collective on TS 4372 4373 Input Parameter: 4374 . ts - time-step context 4375 4376 Output Patameter: 4377 . ctx - the monitor context 4378 4379 Options Database: 4380 . -ts_monitor_draw_solution_initial - show initial solution as well as current solution 4381 4382 Level: intermediate 4383 4384 .keywords: TS, vector, monitor, view 4385 4386 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorDrawCtx() 4387 @*/ 4388 PetscErrorCode TSMonitorDrawCtxCreate(MPI_Comm comm,const char host[],const char label[],int x,int y,int m,int n,PetscInt howoften,TSMonitorDrawCtx *ctx) 4389 { 4390 PetscErrorCode ierr; 4391 4392 PetscFunctionBegin; 4393 ierr = PetscNew(ctx);CHKERRQ(ierr); 4394 ierr = PetscViewerDrawOpen(comm,host,label,x,y,m,n,&(*ctx)->viewer);CHKERRQ(ierr); 4395 ierr = PetscViewerSetFromOptions((*ctx)->viewer);CHKERRQ(ierr); 4396 4397 (*ctx)->howoften = howoften; 4398 (*ctx)->showinitial = PETSC_FALSE; 4399 ierr = PetscOptionsGetBool(NULL,NULL,"-ts_monitor_draw_solution_initial",&(*ctx)->showinitial,NULL);CHKERRQ(ierr); 4400 4401 (*ctx)->showtimestepandtime = PETSC_FALSE; 4402 ierr = PetscOptionsGetBool(NULL,NULL,"-ts_monitor_draw_solution_show_time",&(*ctx)->showtimestepandtime,NULL);CHKERRQ(ierr); 4403 PetscFunctionReturn(0); 4404 } 4405 4406 #undef __FUNCT__ 4407 #define __FUNCT__ "TSMonitorDrawError" 4408 /*@C 4409 TSMonitorDrawError - Monitors progress of the TS solvers by calling 4410 VecView() for the error at each timestep 4411 4412 Collective on TS 4413 4414 Input Parameters: 4415 + ts - the TS context 4416 . step - current time-step 4417 . ptime - current time 4418 - dummy - either a viewer or NULL 4419 4420 Level: intermediate 4421 4422 .keywords: TS, vector, monitor, view 4423 4424 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView() 4425 @*/ 4426 PetscErrorCode TSMonitorDrawError(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy) 4427 { 4428 PetscErrorCode ierr; 4429 TSMonitorDrawCtx ctx = (TSMonitorDrawCtx)dummy; 4430 PetscViewer viewer = ctx->viewer; 4431 Vec work; 4432 4433 PetscFunctionBegin; 4434 if (!(((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason))) PetscFunctionReturn(0); 4435 ierr = VecDuplicate(u,&work);CHKERRQ(ierr); 4436 ierr = TSComputeSolutionFunction(ts,ptime,work);CHKERRQ(ierr); 4437 ierr = VecAXPY(work,-1.0,u);CHKERRQ(ierr); 4438 ierr = VecView(work,viewer);CHKERRQ(ierr); 4439 ierr = VecDestroy(&work);CHKERRQ(ierr); 4440 PetscFunctionReturn(0); 4441 } 4442 4443 #include <petsc/private/dmimpl.h> 4444 #undef __FUNCT__ 4445 #define __FUNCT__ "TSSetDM" 4446 /*@ 4447 TSSetDM - Sets the DM that may be used by some preconditioners 4448 4449 Logically Collective on TS and DM 4450 4451 Input Parameters: 4452 + ts - the preconditioner context 4453 - dm - the dm 4454 4455 Level: intermediate 4456 4457 4458 .seealso: TSGetDM(), SNESSetDM(), SNESGetDM() 4459 @*/ 4460 PetscErrorCode TSSetDM(TS ts,DM dm) 4461 { 4462 PetscErrorCode ierr; 4463 SNES snes; 4464 DMTS tsdm; 4465 4466 PetscFunctionBegin; 4467 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4468 ierr = PetscObjectReference((PetscObject)dm);CHKERRQ(ierr); 4469 if (ts->dm) { /* Move the DMTS context over to the new DM unless the new DM already has one */ 4470 if (ts->dm->dmts && !dm->dmts) { 4471 ierr = DMCopyDMTS(ts->dm,dm);CHKERRQ(ierr); 4472 ierr = DMGetDMTS(ts->dm,&tsdm);CHKERRQ(ierr); 4473 if (tsdm->originaldm == ts->dm) { /* Grant write privileges to the replacement DM */ 4474 tsdm->originaldm = dm; 4475 } 4476 } 4477 ierr = DMDestroy(&ts->dm);CHKERRQ(ierr); 4478 } 4479 ts->dm = dm; 4480 4481 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 4482 ierr = SNESSetDM(snes,dm);CHKERRQ(ierr); 4483 PetscFunctionReturn(0); 4484 } 4485 4486 #undef __FUNCT__ 4487 #define __FUNCT__ "TSGetDM" 4488 /*@ 4489 TSGetDM - Gets the DM that may be used by some preconditioners 4490 4491 Not Collective 4492 4493 Input Parameter: 4494 . ts - the preconditioner context 4495 4496 Output Parameter: 4497 . dm - the dm 4498 4499 Level: intermediate 4500 4501 4502 .seealso: TSSetDM(), SNESSetDM(), SNESGetDM() 4503 @*/ 4504 PetscErrorCode TSGetDM(TS ts,DM *dm) 4505 { 4506 PetscErrorCode ierr; 4507 4508 PetscFunctionBegin; 4509 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4510 if (!ts->dm) { 4511 ierr = DMShellCreate(PetscObjectComm((PetscObject)ts),&ts->dm);CHKERRQ(ierr); 4512 if (ts->snes) {ierr = SNESSetDM(ts->snes,ts->dm);CHKERRQ(ierr);} 4513 } 4514 *dm = ts->dm; 4515 PetscFunctionReturn(0); 4516 } 4517 4518 #undef __FUNCT__ 4519 #define __FUNCT__ "SNESTSFormFunction" 4520 /*@ 4521 SNESTSFormFunction - Function to evaluate nonlinear residual 4522 4523 Logically Collective on SNES 4524 4525 Input Parameter: 4526 + snes - nonlinear solver 4527 . U - the current state at which to evaluate the residual 4528 - ctx - user context, must be a TS 4529 4530 Output Parameter: 4531 . F - the nonlinear residual 4532 4533 Notes: 4534 This function is not normally called by users and is automatically registered with the SNES used by TS. 4535 It is most frequently passed to MatFDColoringSetFunction(). 4536 4537 Level: advanced 4538 4539 .seealso: SNESSetFunction(), MatFDColoringSetFunction() 4540 @*/ 4541 PetscErrorCode SNESTSFormFunction(SNES snes,Vec U,Vec F,void *ctx) 4542 { 4543 TS ts = (TS)ctx; 4544 PetscErrorCode ierr; 4545 4546 PetscFunctionBegin; 4547 PetscValidHeaderSpecific(snes,SNES_CLASSID,1); 4548 PetscValidHeaderSpecific(U,VEC_CLASSID,2); 4549 PetscValidHeaderSpecific(F,VEC_CLASSID,3); 4550 PetscValidHeaderSpecific(ts,TS_CLASSID,4); 4551 ierr = (ts->ops->snesfunction)(snes,U,F,ts);CHKERRQ(ierr); 4552 PetscFunctionReturn(0); 4553 } 4554 4555 #undef __FUNCT__ 4556 #define __FUNCT__ "SNESTSFormJacobian" 4557 /*@ 4558 SNESTSFormJacobian - Function to evaluate the Jacobian 4559 4560 Collective on SNES 4561 4562 Input Parameter: 4563 + snes - nonlinear solver 4564 . U - the current state at which to evaluate the residual 4565 - ctx - user context, must be a TS 4566 4567 Output Parameter: 4568 + A - the Jacobian 4569 . B - the preconditioning matrix (may be the same as A) 4570 - flag - indicates any structure change in the matrix 4571 4572 Notes: 4573 This function is not normally called by users and is automatically registered with the SNES used by TS. 4574 4575 Level: developer 4576 4577 .seealso: SNESSetJacobian() 4578 @*/ 4579 PetscErrorCode SNESTSFormJacobian(SNES snes,Vec U,Mat A,Mat B,void *ctx) 4580 { 4581 TS ts = (TS)ctx; 4582 PetscErrorCode ierr; 4583 4584 PetscFunctionBegin; 4585 PetscValidHeaderSpecific(snes,SNES_CLASSID,1); 4586 PetscValidHeaderSpecific(U,VEC_CLASSID,2); 4587 PetscValidPointer(A,3); 4588 PetscValidHeaderSpecific(A,MAT_CLASSID,3); 4589 PetscValidPointer(B,4); 4590 PetscValidHeaderSpecific(B,MAT_CLASSID,4); 4591 PetscValidHeaderSpecific(ts,TS_CLASSID,6); 4592 ierr = (ts->ops->snesjacobian)(snes,U,A,B,ts);CHKERRQ(ierr); 4593 PetscFunctionReturn(0); 4594 } 4595 4596 #undef __FUNCT__ 4597 #define __FUNCT__ "TSComputeRHSFunctionLinear" 4598 /*@C 4599 TSComputeRHSFunctionLinear - Evaluate the right hand side via the user-provided Jacobian, for linear problems Udot = A U only 4600 4601 Collective on TS 4602 4603 Input Arguments: 4604 + ts - time stepping context 4605 . t - time at which to evaluate 4606 . U - state at which to evaluate 4607 - ctx - context 4608 4609 Output Arguments: 4610 . F - right hand side 4611 4612 Level: intermediate 4613 4614 Notes: 4615 This function is intended to be passed to TSSetRHSFunction() to evaluate the right hand side for linear problems. 4616 The matrix (and optionally the evaluation context) should be passed to TSSetRHSJacobian(). 4617 4618 .seealso: TSSetRHSFunction(), TSSetRHSJacobian(), TSComputeRHSJacobianConstant() 4619 @*/ 4620 PetscErrorCode TSComputeRHSFunctionLinear(TS ts,PetscReal t,Vec U,Vec F,void *ctx) 4621 { 4622 PetscErrorCode ierr; 4623 Mat Arhs,Brhs; 4624 4625 PetscFunctionBegin; 4626 ierr = TSGetRHSMats_Private(ts,&Arhs,&Brhs);CHKERRQ(ierr); 4627 ierr = TSComputeRHSJacobian(ts,t,U,Arhs,Brhs);CHKERRQ(ierr); 4628 ierr = MatMult(Arhs,U,F);CHKERRQ(ierr); 4629 PetscFunctionReturn(0); 4630 } 4631 4632 #undef __FUNCT__ 4633 #define __FUNCT__ "TSComputeRHSJacobianConstant" 4634 /*@C 4635 TSComputeRHSJacobianConstant - Reuses a Jacobian that is time-independent. 4636 4637 Collective on TS 4638 4639 Input Arguments: 4640 + ts - time stepping context 4641 . t - time at which to evaluate 4642 . U - state at which to evaluate 4643 - ctx - context 4644 4645 Output Arguments: 4646 + A - pointer to operator 4647 . B - pointer to preconditioning matrix 4648 - flg - matrix structure flag 4649 4650 Level: intermediate 4651 4652 Notes: 4653 This function is intended to be passed to TSSetRHSJacobian() to evaluate the Jacobian for linear time-independent problems. 4654 4655 .seealso: TSSetRHSFunction(), TSSetRHSJacobian(), TSComputeRHSFunctionLinear() 4656 @*/ 4657 PetscErrorCode TSComputeRHSJacobianConstant(TS ts,PetscReal t,Vec U,Mat A,Mat B,void *ctx) 4658 { 4659 PetscFunctionBegin; 4660 PetscFunctionReturn(0); 4661 } 4662 4663 #undef __FUNCT__ 4664 #define __FUNCT__ "TSComputeIFunctionLinear" 4665 /*@C 4666 TSComputeIFunctionLinear - Evaluate the left hand side via the user-provided Jacobian, for linear problems only 4667 4668 Collective on TS 4669 4670 Input Arguments: 4671 + ts - time stepping context 4672 . t - time at which to evaluate 4673 . U - state at which to evaluate 4674 . Udot - time derivative of state vector 4675 - ctx - context 4676 4677 Output Arguments: 4678 . F - left hand side 4679 4680 Level: intermediate 4681 4682 Notes: 4683 The assumption here is that the left hand side is of the form A*Udot (and not A*Udot + B*U). For other cases, the 4684 user is required to write their own TSComputeIFunction. 4685 This function is intended to be passed to TSSetIFunction() to evaluate the left hand side for linear problems. 4686 The matrix (and optionally the evaluation context) should be passed to TSSetIJacobian(). 4687 4688 Note that using this function is NOT equivalent to using TSComputeRHSFunctionLinear() since that solves Udot = A U 4689 4690 .seealso: TSSetIFunction(), TSSetIJacobian(), TSComputeIJacobianConstant(), TSComputeRHSFunctionLinear() 4691 @*/ 4692 PetscErrorCode TSComputeIFunctionLinear(TS ts,PetscReal t,Vec U,Vec Udot,Vec F,void *ctx) 4693 { 4694 PetscErrorCode ierr; 4695 Mat A,B; 4696 4697 PetscFunctionBegin; 4698 ierr = TSGetIJacobian(ts,&A,&B,NULL,NULL);CHKERRQ(ierr); 4699 ierr = TSComputeIJacobian(ts,t,U,Udot,1.0,A,B,PETSC_TRUE);CHKERRQ(ierr); 4700 ierr = MatMult(A,Udot,F);CHKERRQ(ierr); 4701 PetscFunctionReturn(0); 4702 } 4703 4704 #undef __FUNCT__ 4705 #define __FUNCT__ "TSComputeIJacobianConstant" 4706 /*@C 4707 TSComputeIJacobianConstant - Reuses a time-independent for a semi-implicit DAE or ODE 4708 4709 Collective on TS 4710 4711 Input Arguments: 4712 + ts - time stepping context 4713 . t - time at which to evaluate 4714 . U - state at which to evaluate 4715 . Udot - time derivative of state vector 4716 . shift - shift to apply 4717 - ctx - context 4718 4719 Output Arguments: 4720 + A - pointer to operator 4721 . B - pointer to preconditioning matrix 4722 - flg - matrix structure flag 4723 4724 Level: advanced 4725 4726 Notes: 4727 This function is intended to be passed to TSSetIJacobian() to evaluate the Jacobian for linear time-independent problems. 4728 4729 It is only appropriate for problems of the form 4730 4731 $ M Udot = F(U,t) 4732 4733 where M is constant and F is non-stiff. The user must pass M to TSSetIJacobian(). The current implementation only 4734 works with IMEX time integration methods such as TSROSW and TSARKIMEX, since there is no support for de-constructing 4735 an implicit operator of the form 4736 4737 $ shift*M + J 4738 4739 where J is the Jacobian of -F(U). Support may be added in a future version of PETSc, but for now, the user must store 4740 a copy of M or reassemble it when requested. 4741 4742 .seealso: TSSetIFunction(), TSSetIJacobian(), TSComputeIFunctionLinear() 4743 @*/ 4744 PetscErrorCode TSComputeIJacobianConstant(TS ts,PetscReal t,Vec U,Vec Udot,PetscReal shift,Mat A,Mat B,void *ctx) 4745 { 4746 PetscErrorCode ierr; 4747 4748 PetscFunctionBegin; 4749 ierr = MatScale(A, shift / ts->ijacobian.shift);CHKERRQ(ierr); 4750 ts->ijacobian.shift = shift; 4751 PetscFunctionReturn(0); 4752 } 4753 4754 #undef __FUNCT__ 4755 #define __FUNCT__ "TSGetEquationType" 4756 /*@ 4757 TSGetEquationType - Gets the type of the equation that TS is solving. 4758 4759 Not Collective 4760 4761 Input Parameter: 4762 . ts - the TS context 4763 4764 Output Parameter: 4765 . equation_type - see TSEquationType 4766 4767 Level: beginner 4768 4769 .keywords: TS, equation type 4770 4771 .seealso: TSSetEquationType(), TSEquationType 4772 @*/ 4773 PetscErrorCode TSGetEquationType(TS ts,TSEquationType *equation_type) 4774 { 4775 PetscFunctionBegin; 4776 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4777 PetscValidPointer(equation_type,2); 4778 *equation_type = ts->equation_type; 4779 PetscFunctionReturn(0); 4780 } 4781 4782 #undef __FUNCT__ 4783 #define __FUNCT__ "TSSetEquationType" 4784 /*@ 4785 TSSetEquationType - Sets the type of the equation that TS is solving. 4786 4787 Not Collective 4788 4789 Input Parameter: 4790 + ts - the TS context 4791 - equation_type - see TSEquationType 4792 4793 Level: advanced 4794 4795 .keywords: TS, equation type 4796 4797 .seealso: TSGetEquationType(), TSEquationType 4798 @*/ 4799 PetscErrorCode TSSetEquationType(TS ts,TSEquationType equation_type) 4800 { 4801 PetscFunctionBegin; 4802 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4803 ts->equation_type = equation_type; 4804 PetscFunctionReturn(0); 4805 } 4806 4807 #undef __FUNCT__ 4808 #define __FUNCT__ "TSGetConvergedReason" 4809 /*@ 4810 TSGetConvergedReason - Gets the reason the TS iteration was stopped. 4811 4812 Not Collective 4813 4814 Input Parameter: 4815 . ts - the TS context 4816 4817 Output Parameter: 4818 . reason - negative value indicates diverged, positive value converged, see TSConvergedReason or the 4819 manual pages for the individual convergence tests for complete lists 4820 4821 Level: beginner 4822 4823 Notes: 4824 Can only be called after the call to TSSolve() is complete. 4825 4826 .keywords: TS, nonlinear, set, convergence, test 4827 4828 .seealso: TSSetConvergenceTest(), TSConvergedReason 4829 @*/ 4830 PetscErrorCode TSGetConvergedReason(TS ts,TSConvergedReason *reason) 4831 { 4832 PetscFunctionBegin; 4833 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4834 PetscValidPointer(reason,2); 4835 *reason = ts->reason; 4836 PetscFunctionReturn(0); 4837 } 4838 4839 #undef __FUNCT__ 4840 #define __FUNCT__ "TSSetConvergedReason" 4841 /*@ 4842 TSSetConvergedReason - Sets the reason for handling the convergence of TSSolve. 4843 4844 Not Collective 4845 4846 Input Parameter: 4847 + ts - the TS context 4848 . reason - negative value indicates diverged, positive value converged, see TSConvergedReason or the 4849 manual pages for the individual convergence tests for complete lists 4850 4851 Level: advanced 4852 4853 Notes: 4854 Can only be called during TSSolve() is active. 4855 4856 .keywords: TS, nonlinear, set, convergence, test 4857 4858 .seealso: TSConvergedReason 4859 @*/ 4860 PetscErrorCode TSSetConvergedReason(TS ts,TSConvergedReason reason) 4861 { 4862 PetscFunctionBegin; 4863 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4864 ts->reason = reason; 4865 PetscFunctionReturn(0); 4866 } 4867 4868 #undef __FUNCT__ 4869 #define __FUNCT__ "TSGetSolveTime" 4870 /*@ 4871 TSGetSolveTime - Gets the time after a call to TSSolve() 4872 4873 Not Collective 4874 4875 Input Parameter: 4876 . ts - the TS context 4877 4878 Output Parameter: 4879 . ftime - the final time. This time should correspond to the final time set with TSSetDuration() 4880 4881 Level: beginner 4882 4883 Notes: 4884 Can only be called after the call to TSSolve() is complete. 4885 4886 .keywords: TS, nonlinear, set, convergence, test 4887 4888 .seealso: TSSetConvergenceTest(), TSConvergedReason 4889 @*/ 4890 PetscErrorCode TSGetSolveTime(TS ts,PetscReal *ftime) 4891 { 4892 PetscFunctionBegin; 4893 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4894 PetscValidPointer(ftime,2); 4895 *ftime = ts->solvetime; 4896 PetscFunctionReturn(0); 4897 } 4898 4899 #undef __FUNCT__ 4900 #define __FUNCT__ "TSGetTotalSteps" 4901 /*@ 4902 TSGetTotalSteps - Gets the total number of steps done since the last call to TSSetUp() or TSCreate() 4903 4904 Not Collective 4905 4906 Input Parameter: 4907 . ts - the TS context 4908 4909 Output Parameter: 4910 . steps - the number of steps 4911 4912 Level: beginner 4913 4914 Notes: 4915 Includes the number of steps for all calls to TSSolve() since TSSetUp() was called 4916 4917 .keywords: TS, nonlinear, set, convergence, test 4918 4919 .seealso: TSSetConvergenceTest(), TSConvergedReason 4920 @*/ 4921 PetscErrorCode TSGetTotalSteps(TS ts,PetscInt *steps) 4922 { 4923 PetscFunctionBegin; 4924 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4925 PetscValidPointer(steps,2); 4926 *steps = ts->total_steps; 4927 PetscFunctionReturn(0); 4928 } 4929 4930 #undef __FUNCT__ 4931 #define __FUNCT__ "TSGetSNESIterations" 4932 /*@ 4933 TSGetSNESIterations - Gets the total number of nonlinear iterations 4934 used by the time integrator. 4935 4936 Not Collective 4937 4938 Input Parameter: 4939 . ts - TS context 4940 4941 Output Parameter: 4942 . nits - number of nonlinear iterations 4943 4944 Notes: 4945 This counter is reset to zero for each successive call to TSSolve(). 4946 4947 Level: intermediate 4948 4949 .keywords: TS, get, number, nonlinear, iterations 4950 4951 .seealso: TSGetKSPIterations() 4952 @*/ 4953 PetscErrorCode TSGetSNESIterations(TS ts,PetscInt *nits) 4954 { 4955 PetscFunctionBegin; 4956 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4957 PetscValidIntPointer(nits,2); 4958 *nits = ts->snes_its; 4959 PetscFunctionReturn(0); 4960 } 4961 4962 #undef __FUNCT__ 4963 #define __FUNCT__ "TSGetKSPIterations" 4964 /*@ 4965 TSGetKSPIterations - Gets the total number of linear iterations 4966 used by the time integrator. 4967 4968 Not Collective 4969 4970 Input Parameter: 4971 . ts - TS context 4972 4973 Output Parameter: 4974 . lits - number of linear iterations 4975 4976 Notes: 4977 This counter is reset to zero for each successive call to TSSolve(). 4978 4979 Level: intermediate 4980 4981 .keywords: TS, get, number, linear, iterations 4982 4983 .seealso: TSGetSNESIterations(), SNESGetKSPIterations() 4984 @*/ 4985 PetscErrorCode TSGetKSPIterations(TS ts,PetscInt *lits) 4986 { 4987 PetscFunctionBegin; 4988 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 4989 PetscValidIntPointer(lits,2); 4990 *lits = ts->ksp_its; 4991 PetscFunctionReturn(0); 4992 } 4993 4994 #undef __FUNCT__ 4995 #define __FUNCT__ "TSGetStepRejections" 4996 /*@ 4997 TSGetStepRejections - Gets the total number of rejected steps. 4998 4999 Not Collective 5000 5001 Input Parameter: 5002 . ts - TS context 5003 5004 Output Parameter: 5005 . rejects - number of steps rejected 5006 5007 Notes: 5008 This counter is reset to zero for each successive call to TSSolve(). 5009 5010 Level: intermediate 5011 5012 .keywords: TS, get, number 5013 5014 .seealso: TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetSNESFailures(), TSSetMaxSNESFailures(), TSSetErrorIfStepFails() 5015 @*/ 5016 PetscErrorCode TSGetStepRejections(TS ts,PetscInt *rejects) 5017 { 5018 PetscFunctionBegin; 5019 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5020 PetscValidIntPointer(rejects,2); 5021 *rejects = ts->reject; 5022 PetscFunctionReturn(0); 5023 } 5024 5025 #undef __FUNCT__ 5026 #define __FUNCT__ "TSGetSNESFailures" 5027 /*@ 5028 TSGetSNESFailures - Gets the total number of failed SNES solves 5029 5030 Not Collective 5031 5032 Input Parameter: 5033 . ts - TS context 5034 5035 Output Parameter: 5036 . fails - number of failed nonlinear solves 5037 5038 Notes: 5039 This counter is reset to zero for each successive call to TSSolve(). 5040 5041 Level: intermediate 5042 5043 .keywords: TS, get, number 5044 5045 .seealso: TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetStepRejections(), TSSetMaxSNESFailures() 5046 @*/ 5047 PetscErrorCode TSGetSNESFailures(TS ts,PetscInt *fails) 5048 { 5049 PetscFunctionBegin; 5050 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5051 PetscValidIntPointer(fails,2); 5052 *fails = ts->num_snes_failures; 5053 PetscFunctionReturn(0); 5054 } 5055 5056 #undef __FUNCT__ 5057 #define __FUNCT__ "TSSetMaxStepRejections" 5058 /*@ 5059 TSSetMaxStepRejections - Sets the maximum number of step rejections before a step fails 5060 5061 Not Collective 5062 5063 Input Parameter: 5064 + ts - TS context 5065 - rejects - maximum number of rejected steps, pass -1 for unlimited 5066 5067 Notes: 5068 The counter is reset to zero for each step 5069 5070 Options Database Key: 5071 . -ts_max_reject - Maximum number of step rejections before a step fails 5072 5073 Level: intermediate 5074 5075 .keywords: TS, set, maximum, number 5076 5077 .seealso: TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxSNESFailures(), TSGetStepRejections(), TSGetSNESFailures(), TSSetErrorIfStepFails(), TSGetConvergedReason() 5078 @*/ 5079 PetscErrorCode TSSetMaxStepRejections(TS ts,PetscInt rejects) 5080 { 5081 PetscFunctionBegin; 5082 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5083 ts->max_reject = rejects; 5084 PetscFunctionReturn(0); 5085 } 5086 5087 #undef __FUNCT__ 5088 #define __FUNCT__ "TSSetMaxSNESFailures" 5089 /*@ 5090 TSSetMaxSNESFailures - Sets the maximum number of failed SNES solves 5091 5092 Not Collective 5093 5094 Input Parameter: 5095 + ts - TS context 5096 - fails - maximum number of failed nonlinear solves, pass -1 for unlimited 5097 5098 Notes: 5099 The counter is reset to zero for each successive call to TSSolve(). 5100 5101 Options Database Key: 5102 . -ts_max_snes_failures - Maximum number of nonlinear solve failures 5103 5104 Level: intermediate 5105 5106 .keywords: TS, set, maximum, number 5107 5108 .seealso: TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetStepRejections(), TSGetSNESFailures(), SNESGetConvergedReason(), TSGetConvergedReason() 5109 @*/ 5110 PetscErrorCode TSSetMaxSNESFailures(TS ts,PetscInt fails) 5111 { 5112 PetscFunctionBegin; 5113 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5114 ts->max_snes_failures = fails; 5115 PetscFunctionReturn(0); 5116 } 5117 5118 #undef __FUNCT__ 5119 #define __FUNCT__ "TSSetErrorIfStepFails" 5120 /*@ 5121 TSSetErrorIfStepFails - Error if no step succeeds 5122 5123 Not Collective 5124 5125 Input Parameter: 5126 + ts - TS context 5127 - err - PETSC_TRUE to error if no step succeeds, PETSC_FALSE to return without failure 5128 5129 Options Database Key: 5130 . -ts_error_if_step_fails - Error if no step succeeds 5131 5132 Level: intermediate 5133 5134 .keywords: TS, set, error 5135 5136 .seealso: TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetStepRejections(), TSGetSNESFailures(), TSSetErrorIfStepFails(), TSGetConvergedReason() 5137 @*/ 5138 PetscErrorCode TSSetErrorIfStepFails(TS ts,PetscBool err) 5139 { 5140 PetscFunctionBegin; 5141 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5142 ts->errorifstepfailed = err; 5143 PetscFunctionReturn(0); 5144 } 5145 5146 #undef __FUNCT__ 5147 #define __FUNCT__ "TSMonitorSolution" 5148 /*@C 5149 TSMonitorSolution - Monitors progress of the TS solvers by VecView() for the solution at each timestep. Normally the viewer is a binary file or a PetscDraw object 5150 5151 Collective on TS 5152 5153 Input Parameters: 5154 + ts - the TS context 5155 . step - current time-step 5156 . ptime - current time 5157 . u - current state 5158 - viewer - binary viewer 5159 5160 Level: intermediate 5161 5162 .keywords: TS, vector, monitor, view 5163 5164 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView() 5165 @*/ 5166 PetscErrorCode TSMonitorSolution(TS ts,PetscInt step,PetscReal ptime,Vec u,void *viewer) 5167 { 5168 PetscErrorCode ierr; 5169 PetscViewer v = (PetscViewer)viewer; 5170 5171 PetscFunctionBegin; 5172 ierr = VecView(u,v);CHKERRQ(ierr); 5173 PetscFunctionReturn(0); 5174 } 5175 5176 #undef __FUNCT__ 5177 #define __FUNCT__ "TSMonitorSolutionVTK" 5178 /*@C 5179 TSMonitorSolutionVTK - Monitors progress of the TS solvers by VecView() for the solution at each timestep. 5180 5181 Collective on TS 5182 5183 Input Parameters: 5184 + ts - the TS context 5185 . step - current time-step 5186 . ptime - current time 5187 . u - current state 5188 - filenametemplate - string containing a format specifier for the integer time step (e.g. %03D) 5189 5190 Level: intermediate 5191 5192 Notes: 5193 The VTK format does not allow writing multiple time steps in the same file, therefore a different file will be written for each time step. 5194 These are named according to the file name template. 5195 5196 This function is normally passed as an argument to TSMonitorSet() along with TSMonitorSolutionVTKDestroy(). 5197 5198 .keywords: TS, vector, monitor, view 5199 5200 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView() 5201 @*/ 5202 PetscErrorCode TSMonitorSolutionVTK(TS ts,PetscInt step,PetscReal ptime,Vec u,void *filenametemplate) 5203 { 5204 PetscErrorCode ierr; 5205 char filename[PETSC_MAX_PATH_LEN]; 5206 PetscViewer viewer; 5207 5208 PetscFunctionBegin; 5209 ierr = PetscSNPrintf(filename,sizeof(filename),(const char*)filenametemplate,step);CHKERRQ(ierr); 5210 ierr = PetscViewerVTKOpen(PetscObjectComm((PetscObject)ts),filename,FILE_MODE_WRITE,&viewer);CHKERRQ(ierr); 5211 ierr = VecView(u,viewer);CHKERRQ(ierr); 5212 ierr = PetscViewerDestroy(&viewer);CHKERRQ(ierr); 5213 PetscFunctionReturn(0); 5214 } 5215 5216 #undef __FUNCT__ 5217 #define __FUNCT__ "TSMonitorSolutionVTKDestroy" 5218 /*@C 5219 TSMonitorSolutionVTKDestroy - Destroy context for monitoring 5220 5221 Collective on TS 5222 5223 Input Parameters: 5224 . filenametemplate - string containing a format specifier for the integer time step (e.g. %03D) 5225 5226 Level: intermediate 5227 5228 Note: 5229 This function is normally passed to TSMonitorSet() along with TSMonitorSolutionVTK(). 5230 5231 .keywords: TS, vector, monitor, view 5232 5233 .seealso: TSMonitorSet(), TSMonitorSolutionVTK() 5234 @*/ 5235 PetscErrorCode TSMonitorSolutionVTKDestroy(void *filenametemplate) 5236 { 5237 PetscErrorCode ierr; 5238 5239 PetscFunctionBegin; 5240 ierr = PetscFree(*(char**)filenametemplate);CHKERRQ(ierr); 5241 PetscFunctionReturn(0); 5242 } 5243 5244 #undef __FUNCT__ 5245 #define __FUNCT__ "TSGetAdapt" 5246 /*@ 5247 TSGetAdapt - Get the adaptive controller context for the current method 5248 5249 Collective on TS if controller has not been created yet 5250 5251 Input Arguments: 5252 . ts - time stepping context 5253 5254 Output Arguments: 5255 . adapt - adaptive controller 5256 5257 Level: intermediate 5258 5259 .seealso: TSAdapt, TSAdaptSetType(), TSAdaptChoose() 5260 @*/ 5261 PetscErrorCode TSGetAdapt(TS ts,TSAdapt *adapt) 5262 { 5263 PetscErrorCode ierr; 5264 5265 PetscFunctionBegin; 5266 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5267 if (adapt) PetscValidPointer(adapt,2); 5268 if (!ts->adapt) { 5269 ierr = TSAdaptCreate(PetscObjectComm((PetscObject)ts),&ts->adapt);CHKERRQ(ierr); 5270 ierr = PetscLogObjectParent((PetscObject)ts,(PetscObject)ts->adapt);CHKERRQ(ierr); 5271 ierr = PetscObjectIncrementTabLevel((PetscObject)ts->adapt,(PetscObject)ts,1);CHKERRQ(ierr); 5272 } 5273 if (adapt) *adapt = ts->adapt; 5274 PetscFunctionReturn(0); 5275 } 5276 5277 #undef __FUNCT__ 5278 #define __FUNCT__ "TSSetTolerances" 5279 /*@ 5280 TSSetTolerances - Set tolerances for local truncation error when using adaptive controller 5281 5282 Logically Collective 5283 5284 Input Arguments: 5285 + ts - time integration context 5286 . atol - scalar absolute tolerances, PETSC_DECIDE to leave current value 5287 . vatol - vector of absolute tolerances or NULL, used in preference to atol if present 5288 . rtol - scalar relative tolerances, PETSC_DECIDE to leave current value 5289 - vrtol - vector of relative tolerances or NULL, used in preference to atol if present 5290 5291 Options Database keys: 5292 + -ts_rtol <rtol> - relative tolerance for local truncation error 5293 - -ts_atol <atol> Absolute tolerance for local truncation error 5294 5295 Notes: 5296 With PETSc's implicit schemes for DAE problems, the calculation of the local truncation error 5297 (LTE) includes both the differential and the algebraic variables. If one wants the LTE to be 5298 computed only for the differential or the algebraic part then this can be done using the vector of 5299 tolerances vatol. For example, by setting the tolerance vector with the desired tolerance for the 5300 differential part and infinity for the algebraic part, the LTE calculation will include only the 5301 differential variables. 5302 5303 Level: beginner 5304 5305 .seealso: TS, TSAdapt, TSVecNormWRMS(), TSGetTolerances() 5306 @*/ 5307 PetscErrorCode TSSetTolerances(TS ts,PetscReal atol,Vec vatol,PetscReal rtol,Vec vrtol) 5308 { 5309 PetscErrorCode ierr; 5310 5311 PetscFunctionBegin; 5312 if (atol != PETSC_DECIDE && atol != PETSC_DEFAULT) ts->atol = atol; 5313 if (vatol) { 5314 ierr = PetscObjectReference((PetscObject)vatol);CHKERRQ(ierr); 5315 ierr = VecDestroy(&ts->vatol);CHKERRQ(ierr); 5316 5317 ts->vatol = vatol; 5318 } 5319 if (rtol != PETSC_DECIDE && rtol != PETSC_DEFAULT) ts->rtol = rtol; 5320 if (vrtol) { 5321 ierr = PetscObjectReference((PetscObject)vrtol);CHKERRQ(ierr); 5322 ierr = VecDestroy(&ts->vrtol);CHKERRQ(ierr); 5323 5324 ts->vrtol = vrtol; 5325 } 5326 PetscFunctionReturn(0); 5327 } 5328 5329 #undef __FUNCT__ 5330 #define __FUNCT__ "TSGetTolerances" 5331 /*@ 5332 TSGetTolerances - Get tolerances for local truncation error when using adaptive controller 5333 5334 Logically Collective 5335 5336 Input Arguments: 5337 . ts - time integration context 5338 5339 Output Arguments: 5340 + atol - scalar absolute tolerances, NULL to ignore 5341 . vatol - vector of absolute tolerances, NULL to ignore 5342 . rtol - scalar relative tolerances, NULL to ignore 5343 - vrtol - vector of relative tolerances, NULL to ignore 5344 5345 Level: beginner 5346 5347 .seealso: TS, TSAdapt, TSVecNormWRMS(), TSSetTolerances() 5348 @*/ 5349 PetscErrorCode TSGetTolerances(TS ts,PetscReal *atol,Vec *vatol,PetscReal *rtol,Vec *vrtol) 5350 { 5351 PetscFunctionBegin; 5352 if (atol) *atol = ts->atol; 5353 if (vatol) *vatol = ts->vatol; 5354 if (rtol) *rtol = ts->rtol; 5355 if (vrtol) *vrtol = ts->vrtol; 5356 PetscFunctionReturn(0); 5357 } 5358 5359 #undef __FUNCT__ 5360 #define __FUNCT__ "TSErrorWeightedNorm2" 5361 /*@ 5362 TSErrorWeightedNorm2 - compute a weighted 2-norm of the difference between two state vectors 5363 5364 Collective on TS 5365 5366 Input Arguments: 5367 + ts - time stepping context 5368 . U - state vector, usually ts->vec_sol 5369 - Y - state vector to be compared to U 5370 5371 Output Arguments: 5372 . norm - weighted norm, a value of 1.0 is considered small 5373 5374 Level: developer 5375 5376 .seealso: TSErrorWeightedNorm(), TSErrorWeightedNormInfinity() 5377 @*/ 5378 PetscErrorCode TSErrorWeightedNorm2(TS ts,Vec U,Vec Y,PetscReal *norm) 5379 { 5380 PetscErrorCode ierr; 5381 PetscInt i,n,N,rstart; 5382 const PetscScalar *u,*y; 5383 PetscReal sum,gsum; 5384 PetscReal tol; 5385 5386 PetscFunctionBegin; 5387 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5388 PetscValidHeaderSpecific(U,VEC_CLASSID,2); 5389 PetscValidHeaderSpecific(Y,VEC_CLASSID,3); 5390 PetscValidType(U,2); 5391 PetscValidType(Y,3); 5392 PetscCheckSameComm(U,2,Y,3); 5393 PetscValidPointer(norm,4); 5394 if (U == Y) SETERRQ(PetscObjectComm((PetscObject)U),PETSC_ERR_ARG_IDN,"U and Y cannot be the same vector"); 5395 5396 ierr = VecGetSize(U,&N);CHKERRQ(ierr); 5397 ierr = VecGetLocalSize(U,&n);CHKERRQ(ierr); 5398 ierr = VecGetOwnershipRange(U,&rstart,NULL);CHKERRQ(ierr); 5399 ierr = VecGetArrayRead(U,&u);CHKERRQ(ierr); 5400 ierr = VecGetArrayRead(Y,&y);CHKERRQ(ierr); 5401 sum = 0.; 5402 if (ts->vatol && ts->vrtol) { 5403 const PetscScalar *atol,*rtol; 5404 ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5405 ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5406 for (i=0; i<n; i++) { 5407 tol = PetscRealPart(atol[i]) + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5408 sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol); 5409 } 5410 ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5411 ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5412 } else if (ts->vatol) { /* vector atol, scalar rtol */ 5413 const PetscScalar *atol; 5414 ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5415 for (i=0; i<n; i++) { 5416 tol = PetscRealPart(atol[i]) + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5417 sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol); 5418 } 5419 ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5420 } else if (ts->vrtol) { /* scalar atol, vector rtol */ 5421 const PetscScalar *rtol; 5422 ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5423 for (i=0; i<n; i++) { 5424 tol = ts->atol + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5425 sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol); 5426 } 5427 ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5428 } else { /* scalar atol, scalar rtol */ 5429 for (i=0; i<n; i++) { 5430 tol = ts->atol + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5431 sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol); 5432 } 5433 } 5434 ierr = VecRestoreArrayRead(U,&u);CHKERRQ(ierr); 5435 ierr = VecRestoreArrayRead(Y,&y);CHKERRQ(ierr); 5436 5437 ierr = MPIU_Allreduce(&sum,&gsum,1,MPIU_REAL,MPIU_SUM,PetscObjectComm((PetscObject)ts));CHKERRQ(ierr); 5438 *norm = PetscSqrtReal(gsum / N); 5439 5440 if (PetscIsInfOrNanScalar(*norm)) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_FP,"Infinite or not-a-number generated in norm"); 5441 PetscFunctionReturn(0); 5442 } 5443 5444 #undef __FUNCT__ 5445 #define __FUNCT__ "TSErrorWeightedNormInfinity" 5446 /*@ 5447 TSErrorWeightedNormInfinity - compute a weighted infinity-norm of the difference between two state vectors 5448 5449 Collective on TS 5450 5451 Input Arguments: 5452 + ts - time stepping context 5453 . U - state vector, usually ts->vec_sol 5454 - Y - state vector to be compared to U 5455 5456 Output Arguments: 5457 . norm - weighted norm, a value of 1.0 is considered small 5458 5459 Level: developer 5460 5461 .seealso: TSErrorWeightedNorm(), TSErrorWeightedNorm2() 5462 @*/ 5463 PetscErrorCode TSErrorWeightedNormInfinity(TS ts,Vec U,Vec Y,PetscReal *norm) 5464 { 5465 PetscErrorCode ierr; 5466 PetscInt i,n,N,rstart,k; 5467 const PetscScalar *u,*y; 5468 PetscReal max,gmax; 5469 PetscReal tol; 5470 5471 PetscFunctionBegin; 5472 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5473 PetscValidHeaderSpecific(U,VEC_CLASSID,2); 5474 PetscValidHeaderSpecific(Y,VEC_CLASSID,3); 5475 PetscValidType(U,2); 5476 PetscValidType(Y,3); 5477 PetscCheckSameComm(U,2,Y,3); 5478 PetscValidPointer(norm,4); 5479 if (U == Y) SETERRQ(PetscObjectComm((PetscObject)U),PETSC_ERR_ARG_IDN,"U and Y cannot be the same vector"); 5480 5481 ierr = VecGetSize(U,&N);CHKERRQ(ierr); 5482 ierr = VecGetLocalSize(U,&n);CHKERRQ(ierr); 5483 ierr = VecGetOwnershipRange(U,&rstart,NULL);CHKERRQ(ierr); 5484 ierr = VecGetArrayRead(U,&u);CHKERRQ(ierr); 5485 ierr = VecGetArrayRead(Y,&y);CHKERRQ(ierr); 5486 if (ts->vatol && ts->vrtol) { 5487 const PetscScalar *atol,*rtol; 5488 ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5489 ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5490 k = 0; 5491 tol = PetscRealPart(atol[k]) + PetscRealPart(rtol[k]) * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k])); 5492 max = PetscAbsScalar(y[k] - u[k]) / tol; 5493 for (i=1; i<n; i++) { 5494 tol = PetscRealPart(atol[i]) + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5495 max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol); 5496 } 5497 ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5498 ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5499 } else if (ts->vatol) { /* vector atol, scalar rtol */ 5500 const PetscScalar *atol; 5501 ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5502 k = 0; 5503 tol = PetscRealPart(atol[k]) + ts->rtol * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k])); 5504 max = PetscAbsScalar(y[k] - u[k]) / tol; 5505 for (i=1; i<n; i++) { 5506 tol = PetscRealPart(atol[i]) + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5507 max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol); 5508 } 5509 ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr); 5510 } else if (ts->vrtol) { /* scalar atol, vector rtol */ 5511 const PetscScalar *rtol; 5512 ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5513 k = 0; 5514 tol = ts->atol + PetscRealPart(rtol[k]) * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k])); 5515 max = PetscAbsScalar(y[k] - u[k]) / tol; 5516 for (i=1; i<n; i++) { 5517 tol = ts->atol + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5518 max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol); 5519 } 5520 ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr); 5521 } else { /* scalar atol, scalar rtol */ 5522 k = 0; 5523 tol = ts->atol + ts->rtol * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k])); 5524 max = PetscAbsScalar(y[k] - u[k]) / tol; 5525 for (i=1; i<n; i++) { 5526 tol = ts->atol + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i])); 5527 max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol); 5528 } 5529 } 5530 ierr = VecRestoreArrayRead(U,&u);CHKERRQ(ierr); 5531 ierr = VecRestoreArrayRead(Y,&y);CHKERRQ(ierr); 5532 5533 ierr = MPIU_Allreduce(&max,&gmax,1,MPIU_REAL,MPIU_MAX,PetscObjectComm((PetscObject)ts));CHKERRQ(ierr); 5534 *norm = gmax; 5535 5536 if (PetscIsInfOrNanScalar(*norm)) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_FP,"Infinite or not-a-number generated in norm"); 5537 PetscFunctionReturn(0); 5538 } 5539 5540 #undef __FUNCT__ 5541 #define __FUNCT__ "TSErrorWeightedNorm" 5542 /*@ 5543 TSErrorWeightedNorm - compute a weighted norm of the difference between two state vectors 5544 5545 Collective on TS 5546 5547 Input Arguments: 5548 + ts - time stepping context 5549 . U - state vector, usually ts->vec_sol 5550 . Y - state vector to be compared to U 5551 - wnormtype - norm type, either NORM_2 or NORM_INFINITY 5552 5553 Output Arguments: 5554 . norm - weighted norm, a value of 1.0 is considered small 5555 5556 5557 Options Database Keys: 5558 . -ts_adapt_wnormtype <wnormtype> - 2, INFINITY 5559 5560 Level: developer 5561 5562 .seealso: TSErrorWeightedNormInfinity(), TSErrorWeightedNorm2() 5563 @*/ 5564 PetscErrorCode TSErrorWeightedNorm(TS ts,Vec U,Vec Y,NormType wnormtype,PetscReal *norm) 5565 { 5566 PetscErrorCode ierr; 5567 5568 PetscFunctionBegin; 5569 if (wnormtype == NORM_2) { 5570 ierr = TSErrorWeightedNorm2(ts,U,Y,norm);CHKERRQ(ierr); 5571 } else if(wnormtype == NORM_INFINITY) { 5572 ierr = TSErrorWeightedNormInfinity(ts,U,Y,norm);CHKERRQ(ierr); 5573 } else SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"No support for norm type %s",NormTypes[wnormtype]); 5574 PetscFunctionReturn(0); 5575 } 5576 5577 #undef __FUNCT__ 5578 #define __FUNCT__ "TSSetCFLTimeLocal" 5579 /*@ 5580 TSSetCFLTimeLocal - Set the local CFL constraint relative to forward Euler 5581 5582 Logically Collective on TS 5583 5584 Input Arguments: 5585 + ts - time stepping context 5586 - cfltime - maximum stable time step if using forward Euler (value can be different on each process) 5587 5588 Note: 5589 After calling this function, the global CFL time can be obtained by calling TSGetCFLTime() 5590 5591 Level: intermediate 5592 5593 .seealso: TSGetCFLTime(), TSADAPTCFL 5594 @*/ 5595 PetscErrorCode TSSetCFLTimeLocal(TS ts,PetscReal cfltime) 5596 { 5597 PetscFunctionBegin; 5598 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5599 ts->cfltime_local = cfltime; 5600 ts->cfltime = -1.; 5601 PetscFunctionReturn(0); 5602 } 5603 5604 #undef __FUNCT__ 5605 #define __FUNCT__ "TSGetCFLTime" 5606 /*@ 5607 TSGetCFLTime - Get the maximum stable time step according to CFL criteria applied to forward Euler 5608 5609 Collective on TS 5610 5611 Input Arguments: 5612 . ts - time stepping context 5613 5614 Output Arguments: 5615 . cfltime - maximum stable time step for forward Euler 5616 5617 Level: advanced 5618 5619 .seealso: TSSetCFLTimeLocal() 5620 @*/ 5621 PetscErrorCode TSGetCFLTime(TS ts,PetscReal *cfltime) 5622 { 5623 PetscErrorCode ierr; 5624 5625 PetscFunctionBegin; 5626 if (ts->cfltime < 0) { 5627 ierr = MPIU_Allreduce(&ts->cfltime_local,&ts->cfltime,1,MPIU_REAL,MPIU_MIN,PetscObjectComm((PetscObject)ts));CHKERRQ(ierr); 5628 } 5629 *cfltime = ts->cfltime; 5630 PetscFunctionReturn(0); 5631 } 5632 5633 #undef __FUNCT__ 5634 #define __FUNCT__ "TSVISetVariableBounds" 5635 /*@ 5636 TSVISetVariableBounds - Sets the lower and upper bounds for the solution vector. xl <= x <= xu 5637 5638 Input Parameters: 5639 . ts - the TS context. 5640 . xl - lower bound. 5641 . xu - upper bound. 5642 5643 Notes: 5644 If this routine is not called then the lower and upper bounds are set to 5645 PETSC_NINFINITY and PETSC_INFINITY respectively during SNESSetUp(). 5646 5647 Level: advanced 5648 5649 @*/ 5650 PetscErrorCode TSVISetVariableBounds(TS ts, Vec xl, Vec xu) 5651 { 5652 PetscErrorCode ierr; 5653 SNES snes; 5654 5655 PetscFunctionBegin; 5656 ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr); 5657 ierr = SNESVISetVariableBounds(snes,xl,xu);CHKERRQ(ierr); 5658 PetscFunctionReturn(0); 5659 } 5660 5661 #if defined(PETSC_HAVE_MATLAB_ENGINE) 5662 #include <mex.h> 5663 5664 typedef struct {char *funcname; mxArray *ctx;} TSMatlabContext; 5665 5666 #undef __FUNCT__ 5667 #define __FUNCT__ "TSComputeFunction_Matlab" 5668 /* 5669 TSComputeFunction_Matlab - Calls the function that has been set with 5670 TSSetFunctionMatlab(). 5671 5672 Collective on TS 5673 5674 Input Parameters: 5675 + snes - the TS context 5676 - u - input vector 5677 5678 Output Parameter: 5679 . y - function vector, as set by TSSetFunction() 5680 5681 Notes: 5682 TSComputeFunction() is typically used within nonlinear solvers 5683 implementations, so most users would not generally call this routine 5684 themselves. 5685 5686 Level: developer 5687 5688 .keywords: TS, nonlinear, compute, function 5689 5690 .seealso: TSSetFunction(), TSGetFunction() 5691 */ 5692 PetscErrorCode TSComputeFunction_Matlab(TS snes,PetscReal time,Vec u,Vec udot,Vec y, void *ctx) 5693 { 5694 PetscErrorCode ierr; 5695 TSMatlabContext *sctx = (TSMatlabContext*)ctx; 5696 int nlhs = 1,nrhs = 7; 5697 mxArray *plhs[1],*prhs[7]; 5698 long long int lx = 0,lxdot = 0,ly = 0,ls = 0; 5699 5700 PetscFunctionBegin; 5701 PetscValidHeaderSpecific(snes,TS_CLASSID,1); 5702 PetscValidHeaderSpecific(u,VEC_CLASSID,3); 5703 PetscValidHeaderSpecific(udot,VEC_CLASSID,4); 5704 PetscValidHeaderSpecific(y,VEC_CLASSID,5); 5705 PetscCheckSameComm(snes,1,u,3); 5706 PetscCheckSameComm(snes,1,y,5); 5707 5708 ierr = PetscMemcpy(&ls,&snes,sizeof(snes));CHKERRQ(ierr); 5709 ierr = PetscMemcpy(&lx,&u,sizeof(u));CHKERRQ(ierr); 5710 ierr = PetscMemcpy(&lxdot,&udot,sizeof(udot));CHKERRQ(ierr); 5711 ierr = PetscMemcpy(&ly,&y,sizeof(u));CHKERRQ(ierr); 5712 5713 prhs[0] = mxCreateDoubleScalar((double)ls); 5714 prhs[1] = mxCreateDoubleScalar(time); 5715 prhs[2] = mxCreateDoubleScalar((double)lx); 5716 prhs[3] = mxCreateDoubleScalar((double)lxdot); 5717 prhs[4] = mxCreateDoubleScalar((double)ly); 5718 prhs[5] = mxCreateString(sctx->funcname); 5719 prhs[6] = sctx->ctx; 5720 ierr = mexCallMATLAB(nlhs,plhs,nrhs,prhs,"PetscTSComputeFunctionInternal");CHKERRQ(ierr); 5721 ierr = mxGetScalar(plhs[0]);CHKERRQ(ierr); 5722 mxDestroyArray(prhs[0]); 5723 mxDestroyArray(prhs[1]); 5724 mxDestroyArray(prhs[2]); 5725 mxDestroyArray(prhs[3]); 5726 mxDestroyArray(prhs[4]); 5727 mxDestroyArray(prhs[5]); 5728 mxDestroyArray(plhs[0]); 5729 PetscFunctionReturn(0); 5730 } 5731 5732 5733 #undef __FUNCT__ 5734 #define __FUNCT__ "TSSetFunctionMatlab" 5735 /* 5736 TSSetFunctionMatlab - Sets the function evaluation routine and function 5737 vector for use by the TS routines in solving ODEs 5738 equations from MATLAB. Here the function is a string containing the name of a MATLAB function 5739 5740 Logically Collective on TS 5741 5742 Input Parameters: 5743 + ts - the TS context 5744 - func - function evaluation routine 5745 5746 Calling sequence of func: 5747 $ func (TS ts,PetscReal time,Vec u,Vec udot,Vec f,void *ctx); 5748 5749 Level: beginner 5750 5751 .keywords: TS, nonlinear, set, function 5752 5753 .seealso: TSGetFunction(), TSComputeFunction(), TSSetJacobian(), TSSetFunction() 5754 */ 5755 PetscErrorCode TSSetFunctionMatlab(TS ts,const char *func,mxArray *ctx) 5756 { 5757 PetscErrorCode ierr; 5758 TSMatlabContext *sctx; 5759 5760 PetscFunctionBegin; 5761 /* currently sctx is memory bleed */ 5762 ierr = PetscMalloc(sizeof(TSMatlabContext),&sctx);CHKERRQ(ierr); 5763 ierr = PetscStrallocpy(func,&sctx->funcname);CHKERRQ(ierr); 5764 /* 5765 This should work, but it doesn't 5766 sctx->ctx = ctx; 5767 mexMakeArrayPersistent(sctx->ctx); 5768 */ 5769 sctx->ctx = mxDuplicateArray(ctx); 5770 5771 ierr = TSSetIFunction(ts,NULL,TSComputeFunction_Matlab,sctx);CHKERRQ(ierr); 5772 PetscFunctionReturn(0); 5773 } 5774 5775 #undef __FUNCT__ 5776 #define __FUNCT__ "TSComputeJacobian_Matlab" 5777 /* 5778 TSComputeJacobian_Matlab - Calls the function that has been set with 5779 TSSetJacobianMatlab(). 5780 5781 Collective on TS 5782 5783 Input Parameters: 5784 + ts - the TS context 5785 . u - input vector 5786 . A, B - the matrices 5787 - ctx - user context 5788 5789 Level: developer 5790 5791 .keywords: TS, nonlinear, compute, function 5792 5793 .seealso: TSSetFunction(), TSGetFunction() 5794 @*/ 5795 PetscErrorCode TSComputeJacobian_Matlab(TS ts,PetscReal time,Vec u,Vec udot,PetscReal shift,Mat A,Mat B,void *ctx) 5796 { 5797 PetscErrorCode ierr; 5798 TSMatlabContext *sctx = (TSMatlabContext*)ctx; 5799 int nlhs = 2,nrhs = 9; 5800 mxArray *plhs[2],*prhs[9]; 5801 long long int lx = 0,lxdot = 0,lA = 0,ls = 0, lB = 0; 5802 5803 PetscFunctionBegin; 5804 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5805 PetscValidHeaderSpecific(u,VEC_CLASSID,3); 5806 5807 /* call Matlab function in ctx with arguments u and y */ 5808 5809 ierr = PetscMemcpy(&ls,&ts,sizeof(ts));CHKERRQ(ierr); 5810 ierr = PetscMemcpy(&lx,&u,sizeof(u));CHKERRQ(ierr); 5811 ierr = PetscMemcpy(&lxdot,&udot,sizeof(u));CHKERRQ(ierr); 5812 ierr = PetscMemcpy(&lA,A,sizeof(u));CHKERRQ(ierr); 5813 ierr = PetscMemcpy(&lB,B,sizeof(u));CHKERRQ(ierr); 5814 5815 prhs[0] = mxCreateDoubleScalar((double)ls); 5816 prhs[1] = mxCreateDoubleScalar((double)time); 5817 prhs[2] = mxCreateDoubleScalar((double)lx); 5818 prhs[3] = mxCreateDoubleScalar((double)lxdot); 5819 prhs[4] = mxCreateDoubleScalar((double)shift); 5820 prhs[5] = mxCreateDoubleScalar((double)lA); 5821 prhs[6] = mxCreateDoubleScalar((double)lB); 5822 prhs[7] = mxCreateString(sctx->funcname); 5823 prhs[8] = sctx->ctx; 5824 ierr = mexCallMATLAB(nlhs,plhs,nrhs,prhs,"PetscTSComputeJacobianInternal");CHKERRQ(ierr); 5825 ierr = mxGetScalar(plhs[0]);CHKERRQ(ierr); 5826 mxDestroyArray(prhs[0]); 5827 mxDestroyArray(prhs[1]); 5828 mxDestroyArray(prhs[2]); 5829 mxDestroyArray(prhs[3]); 5830 mxDestroyArray(prhs[4]); 5831 mxDestroyArray(prhs[5]); 5832 mxDestroyArray(prhs[6]); 5833 mxDestroyArray(prhs[7]); 5834 mxDestroyArray(plhs[0]); 5835 mxDestroyArray(plhs[1]); 5836 PetscFunctionReturn(0); 5837 } 5838 5839 5840 #undef __FUNCT__ 5841 #define __FUNCT__ "TSSetJacobianMatlab" 5842 /* 5843 TSSetJacobianMatlab - Sets the Jacobian function evaluation routine and two empty Jacobian matrices 5844 vector for use by the TS routines in solving ODEs from MATLAB. Here the function is a string containing the name of a MATLAB function 5845 5846 Logically Collective on TS 5847 5848 Input Parameters: 5849 + ts - the TS context 5850 . A,B - Jacobian matrices 5851 . func - function evaluation routine 5852 - ctx - user context 5853 5854 Calling sequence of func: 5855 $ flag = func (TS ts,PetscReal time,Vec u,Vec udot,Mat A,Mat B,void *ctx); 5856 5857 5858 Level: developer 5859 5860 .keywords: TS, nonlinear, set, function 5861 5862 .seealso: TSGetFunction(), TSComputeFunction(), TSSetJacobian(), TSSetFunction() 5863 */ 5864 PetscErrorCode TSSetJacobianMatlab(TS ts,Mat A,Mat B,const char *func,mxArray *ctx) 5865 { 5866 PetscErrorCode ierr; 5867 TSMatlabContext *sctx; 5868 5869 PetscFunctionBegin; 5870 /* currently sctx is memory bleed */ 5871 ierr = PetscMalloc(sizeof(TSMatlabContext),&sctx);CHKERRQ(ierr); 5872 ierr = PetscStrallocpy(func,&sctx->funcname);CHKERRQ(ierr); 5873 /* 5874 This should work, but it doesn't 5875 sctx->ctx = ctx; 5876 mexMakeArrayPersistent(sctx->ctx); 5877 */ 5878 sctx->ctx = mxDuplicateArray(ctx); 5879 5880 ierr = TSSetIJacobian(ts,A,B,TSComputeJacobian_Matlab,sctx);CHKERRQ(ierr); 5881 PetscFunctionReturn(0); 5882 } 5883 5884 #undef __FUNCT__ 5885 #define __FUNCT__ "TSMonitor_Matlab" 5886 /* 5887 TSMonitor_Matlab - Calls the function that has been set with TSMonitorSetMatlab(). 5888 5889 Collective on TS 5890 5891 .seealso: TSSetFunction(), TSGetFunction() 5892 @*/ 5893 PetscErrorCode TSMonitor_Matlab(TS ts,PetscInt it, PetscReal time,Vec u, void *ctx) 5894 { 5895 PetscErrorCode ierr; 5896 TSMatlabContext *sctx = (TSMatlabContext*)ctx; 5897 int nlhs = 1,nrhs = 6; 5898 mxArray *plhs[1],*prhs[6]; 5899 long long int lx = 0,ls = 0; 5900 5901 PetscFunctionBegin; 5902 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 5903 PetscValidHeaderSpecific(u,VEC_CLASSID,4); 5904 5905 ierr = PetscMemcpy(&ls,&ts,sizeof(ts));CHKERRQ(ierr); 5906 ierr = PetscMemcpy(&lx,&u,sizeof(u));CHKERRQ(ierr); 5907 5908 prhs[0] = mxCreateDoubleScalar((double)ls); 5909 prhs[1] = mxCreateDoubleScalar((double)it); 5910 prhs[2] = mxCreateDoubleScalar((double)time); 5911 prhs[3] = mxCreateDoubleScalar((double)lx); 5912 prhs[4] = mxCreateString(sctx->funcname); 5913 prhs[5] = sctx->ctx; 5914 ierr = mexCallMATLAB(nlhs,plhs,nrhs,prhs,"PetscTSMonitorInternal");CHKERRQ(ierr); 5915 ierr = mxGetScalar(plhs[0]);CHKERRQ(ierr); 5916 mxDestroyArray(prhs[0]); 5917 mxDestroyArray(prhs[1]); 5918 mxDestroyArray(prhs[2]); 5919 mxDestroyArray(prhs[3]); 5920 mxDestroyArray(prhs[4]); 5921 mxDestroyArray(plhs[0]); 5922 PetscFunctionReturn(0); 5923 } 5924 5925 5926 #undef __FUNCT__ 5927 #define __FUNCT__ "TSMonitorSetMatlab" 5928 /* 5929 TSMonitorSetMatlab - Sets the monitor function from Matlab 5930 5931 Level: developer 5932 5933 .keywords: TS, nonlinear, set, function 5934 5935 .seealso: TSGetFunction(), TSComputeFunction(), TSSetJacobian(), TSSetFunction() 5936 */ 5937 PetscErrorCode TSMonitorSetMatlab(TS ts,const char *func,mxArray *ctx) 5938 { 5939 PetscErrorCode ierr; 5940 TSMatlabContext *sctx; 5941 5942 PetscFunctionBegin; 5943 /* currently sctx is memory bleed */ 5944 ierr = PetscMalloc(sizeof(TSMatlabContext),&sctx);CHKERRQ(ierr); 5945 ierr = PetscStrallocpy(func,&sctx->funcname);CHKERRQ(ierr); 5946 /* 5947 This should work, but it doesn't 5948 sctx->ctx = ctx; 5949 mexMakeArrayPersistent(sctx->ctx); 5950 */ 5951 sctx->ctx = mxDuplicateArray(ctx); 5952 5953 ierr = TSMonitorSet(ts,TSMonitor_Matlab,sctx,NULL);CHKERRQ(ierr); 5954 PetscFunctionReturn(0); 5955 } 5956 #endif 5957 5958 #undef __FUNCT__ 5959 #define __FUNCT__ "TSMonitorLGSolution" 5960 /*@C 5961 TSMonitorLGSolution - Monitors progress of the TS solvers by plotting each component of the solution vector 5962 in a time based line graph 5963 5964 Collective on TS 5965 5966 Input Parameters: 5967 + ts - the TS context 5968 . step - current time-step 5969 . ptime - current time 5970 . u - current solution 5971 - dctx - the TSMonitorLGCtx object that contains all the options for the monitoring, this is created with TSMonitorLGCtxCreate() 5972 5973 Options Database: 5974 . -ts_monitor_lg_solution_variables 5975 5976 Level: intermediate 5977 5978 Notes: Each process in a parallel run displays its component solutions in a separate window 5979 5980 .keywords: TS, vector, monitor, view 5981 5982 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGCtxCreate(), TSMonitorLGCtxSetVariableNames(), TSMonitorLGCtxGetVariableNames(), 5983 TSMonitorLGSetVariableNames(), TSMonitorLGGetVariableNames(), TSMonitorLGSetDisplayVariables(), TSMonitorLGCtxSetDisplayVariables(), 5984 TSMonitorLGCtxSetTransform(), TSMonitorLGSetTransform(), TSMonitorLGError(), TSMonitorLGSNESIterations(), TSMonitorLGKSPIterations(), 5985 TSMonitorEnvelopeCtxCreate(), TSMonitorEnvelopeGetBounds(), TSMonitorEnvelopeCtxDestroy(), TSMonitorEnvelop() 5986 @*/ 5987 PetscErrorCode TSMonitorLGSolution(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dctx) 5988 { 5989 PetscErrorCode ierr; 5990 TSMonitorLGCtx ctx = (TSMonitorLGCtx)dctx; 5991 const PetscScalar *yy; 5992 Vec v; 5993 5994 PetscFunctionBegin; 5995 if (!step) { 5996 PetscDrawAxis axis; 5997 PetscInt dim; 5998 ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr); 5999 ierr = PetscDrawAxisSetLabels(axis,"Solution as function of time","Time","Solution");CHKERRQ(ierr); 6000 if (ctx->names && !ctx->displaynames) { 6001 char **displaynames; 6002 PetscBool flg; 6003 ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr); 6004 ierr = PetscMalloc((dim+1)*sizeof(char*),&displaynames);CHKERRQ(ierr); 6005 ierr = PetscMemzero(displaynames,(dim+1)*sizeof(char*));CHKERRQ(ierr); 6006 ierr = PetscOptionsGetStringArray(((PetscObject)ts)->options,((PetscObject)ts)->prefix,"-ts_monitor_lg_solution_variables",displaynames,&dim,&flg);CHKERRQ(ierr); 6007 if (flg) { 6008 ierr = TSMonitorLGCtxSetDisplayVariables(ctx,(const char *const *)displaynames);CHKERRQ(ierr); 6009 } 6010 ierr = PetscStrArrayDestroy(&displaynames);CHKERRQ(ierr); 6011 } 6012 if (ctx->displaynames) { 6013 ierr = PetscDrawLGSetDimension(ctx->lg,ctx->ndisplayvariables);CHKERRQ(ierr); 6014 ierr = PetscDrawLGSetLegend(ctx->lg,(const char *const *)ctx->displaynames);CHKERRQ(ierr); 6015 } else if (ctx->names) { 6016 ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr); 6017 ierr = PetscDrawLGSetDimension(ctx->lg,dim);CHKERRQ(ierr); 6018 ierr = PetscDrawLGSetLegend(ctx->lg,(const char *const *)ctx->names);CHKERRQ(ierr); 6019 } else { 6020 ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr); 6021 ierr = PetscDrawLGSetDimension(ctx->lg,dim);CHKERRQ(ierr); 6022 } 6023 ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr); 6024 } 6025 6026 if (!ctx->transform) v = u; 6027 else {ierr = (*ctx->transform)(ctx->transformctx,u,&v);CHKERRQ(ierr);} 6028 ierr = VecGetArrayRead(v,&yy);CHKERRQ(ierr); 6029 if (ctx->displaynames) { 6030 PetscInt i; 6031 for (i=0; i<ctx->ndisplayvariables; i++) 6032 ctx->displayvalues[i] = PetscRealPart(yy[ctx->displayvariables[i]]); 6033 ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,ctx->displayvalues);CHKERRQ(ierr); 6034 } else { 6035 #if defined(PETSC_USE_COMPLEX) 6036 PetscInt i,n; 6037 PetscReal *yreal; 6038 ierr = VecGetLocalSize(v,&n);CHKERRQ(ierr); 6039 ierr = PetscMalloc1(n,&yreal);CHKERRQ(ierr); 6040 for (i=0; i<n; i++) yreal[i] = PetscRealPart(yy[i]); 6041 ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yreal);CHKERRQ(ierr); 6042 ierr = PetscFree(yreal);CHKERRQ(ierr); 6043 #else 6044 ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yy);CHKERRQ(ierr); 6045 #endif 6046 } 6047 ierr = VecRestoreArrayRead(v,&yy);CHKERRQ(ierr); 6048 if (ctx->transform) {ierr = VecDestroy(&v);CHKERRQ(ierr);} 6049 6050 if (((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason)) { 6051 ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr); 6052 ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr); 6053 } 6054 PetscFunctionReturn(0); 6055 } 6056 6057 6058 #undef __FUNCT__ 6059 #define __FUNCT__ "TSMonitorLGSetVariableNames" 6060 /*@C 6061 TSMonitorLGSetVariableNames - Sets the name of each component in the solution vector so that it may be displayed in the plot 6062 6063 Collective on TS 6064 6065 Input Parameters: 6066 + ts - the TS context 6067 - names - the names of the components, final string must be NULL 6068 6069 Level: intermediate 6070 6071 Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored 6072 6073 .keywords: TS, vector, monitor, view 6074 6075 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables(), TSMonitorLGCtxSetVariableNames() 6076 @*/ 6077 PetscErrorCode TSMonitorLGSetVariableNames(TS ts,const char * const *names) 6078 { 6079 PetscErrorCode ierr; 6080 PetscInt i; 6081 6082 PetscFunctionBegin; 6083 for (i=0; i<ts->numbermonitors; i++) { 6084 if (ts->monitor[i] == TSMonitorLGSolution) { 6085 ierr = TSMonitorLGCtxSetVariableNames((TSMonitorLGCtx)ts->monitorcontext[i],names);CHKERRQ(ierr); 6086 break; 6087 } 6088 } 6089 PetscFunctionReturn(0); 6090 } 6091 6092 #undef __FUNCT__ 6093 #define __FUNCT__ "TSMonitorLGCtxSetVariableNames" 6094 /*@C 6095 TSMonitorLGCtxSetVariableNames - Sets the name of each component in the solution vector so that it may be displayed in the plot 6096 6097 Collective on TS 6098 6099 Input Parameters: 6100 + ts - the TS context 6101 - names - the names of the components, final string must be NULL 6102 6103 Level: intermediate 6104 6105 .keywords: TS, vector, monitor, view 6106 6107 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables(), TSMonitorLGSetVariableNames() 6108 @*/ 6109 PetscErrorCode TSMonitorLGCtxSetVariableNames(TSMonitorLGCtx ctx,const char * const *names) 6110 { 6111 PetscErrorCode ierr; 6112 6113 PetscFunctionBegin; 6114 ierr = PetscStrArrayDestroy(&ctx->names);CHKERRQ(ierr); 6115 ierr = PetscStrArrayallocpy(names,&ctx->names);CHKERRQ(ierr); 6116 PetscFunctionReturn(0); 6117 } 6118 6119 #undef __FUNCT__ 6120 #define __FUNCT__ "TSMonitorLGGetVariableNames" 6121 /*@C 6122 TSMonitorLGGetVariableNames - Gets the name of each component in the solution vector so that it may be displayed in the plot 6123 6124 Collective on TS 6125 6126 Input Parameter: 6127 . ts - the TS context 6128 6129 Output Parameter: 6130 . names - the names of the components, final string must be NULL 6131 6132 Level: intermediate 6133 6134 Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored 6135 6136 .keywords: TS, vector, monitor, view 6137 6138 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables() 6139 @*/ 6140 PetscErrorCode TSMonitorLGGetVariableNames(TS ts,const char *const **names) 6141 { 6142 PetscInt i; 6143 6144 PetscFunctionBegin; 6145 *names = NULL; 6146 for (i=0; i<ts->numbermonitors; i++) { 6147 if (ts->monitor[i] == TSMonitorLGSolution) { 6148 TSMonitorLGCtx ctx = (TSMonitorLGCtx) ts->monitorcontext[i]; 6149 *names = (const char *const *)ctx->names; 6150 break; 6151 } 6152 } 6153 PetscFunctionReturn(0); 6154 } 6155 6156 #undef __FUNCT__ 6157 #define __FUNCT__ "TSMonitorLGCtxSetDisplayVariables" 6158 /*@C 6159 TSMonitorLGCtxSetDisplayVariables - Sets the variables that are to be display in the monitor 6160 6161 Collective on TS 6162 6163 Input Parameters: 6164 + ctx - the TSMonitorLG context 6165 . displaynames - the names of the components, final string must be NULL 6166 6167 Level: intermediate 6168 6169 .keywords: TS, vector, monitor, view 6170 6171 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames() 6172 @*/ 6173 PetscErrorCode TSMonitorLGCtxSetDisplayVariables(TSMonitorLGCtx ctx,const char * const *displaynames) 6174 { 6175 PetscInt j = 0,k; 6176 PetscErrorCode ierr; 6177 6178 PetscFunctionBegin; 6179 if (!ctx->names) PetscFunctionReturn(0); 6180 ierr = PetscStrArrayDestroy(&ctx->displaynames);CHKERRQ(ierr); 6181 ierr = PetscStrArrayallocpy(displaynames,&ctx->displaynames);CHKERRQ(ierr); 6182 while (displaynames[j]) j++; 6183 ctx->ndisplayvariables = j; 6184 ierr = PetscMalloc1(ctx->ndisplayvariables,&ctx->displayvariables);CHKERRQ(ierr); 6185 ierr = PetscMalloc1(ctx->ndisplayvariables,&ctx->displayvalues);CHKERRQ(ierr); 6186 j = 0; 6187 while (displaynames[j]) { 6188 k = 0; 6189 while (ctx->names[k]) { 6190 PetscBool flg; 6191 ierr = PetscStrcmp(displaynames[j],ctx->names[k],&flg);CHKERRQ(ierr); 6192 if (flg) { 6193 ctx->displayvariables[j] = k; 6194 break; 6195 } 6196 k++; 6197 } 6198 j++; 6199 } 6200 PetscFunctionReturn(0); 6201 } 6202 6203 6204 #undef __FUNCT__ 6205 #define __FUNCT__ "TSMonitorLGSetDisplayVariables" 6206 /*@C 6207 TSMonitorLGSetDisplayVariables - Sets the variables that are to be display in the monitor 6208 6209 Collective on TS 6210 6211 Input Parameters: 6212 + ts - the TS context 6213 . displaynames - the names of the components, final string must be NULL 6214 6215 Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored 6216 6217 Level: intermediate 6218 6219 .keywords: TS, vector, monitor, view 6220 6221 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames() 6222 @*/ 6223 PetscErrorCode TSMonitorLGSetDisplayVariables(TS ts,const char * const *displaynames) 6224 { 6225 PetscInt i; 6226 PetscErrorCode ierr; 6227 6228 PetscFunctionBegin; 6229 for (i=0; i<ts->numbermonitors; i++) { 6230 if (ts->monitor[i] == TSMonitorLGSolution) { 6231 ierr = TSMonitorLGCtxSetDisplayVariables((TSMonitorLGCtx)ts->monitorcontext[i],displaynames);CHKERRQ(ierr); 6232 break; 6233 } 6234 } 6235 PetscFunctionReturn(0); 6236 } 6237 6238 #undef __FUNCT__ 6239 #define __FUNCT__ "TSMonitorLGSetTransform" 6240 /*@C 6241 TSMonitorLGSetTransform - Solution vector will be transformed by provided function before being displayed 6242 6243 Collective on TS 6244 6245 Input Parameters: 6246 + ts - the TS context 6247 . transform - the transform function 6248 . destroy - function to destroy the optional context 6249 - ctx - optional context used by transform function 6250 6251 Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored 6252 6253 Level: intermediate 6254 6255 .keywords: TS, vector, monitor, view 6256 6257 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames(), TSMonitorLGCtxSetTransform() 6258 @*/ 6259 PetscErrorCode TSMonitorLGSetTransform(TS ts,PetscErrorCode (*transform)(void*,Vec,Vec*),PetscErrorCode (*destroy)(void*),void *tctx) 6260 { 6261 PetscInt i; 6262 PetscErrorCode ierr; 6263 6264 PetscFunctionBegin; 6265 for (i=0; i<ts->numbermonitors; i++) { 6266 if (ts->monitor[i] == TSMonitorLGSolution) { 6267 ierr = TSMonitorLGCtxSetTransform((TSMonitorLGCtx)ts->monitorcontext[i],transform,destroy,tctx);CHKERRQ(ierr); 6268 } 6269 } 6270 PetscFunctionReturn(0); 6271 } 6272 6273 #undef __FUNCT__ 6274 #define __FUNCT__ "TSMonitorLGCtxSetTransform" 6275 /*@C 6276 TSMonitorLGCtxSetTransform - Solution vector will be transformed by provided function before being displayed 6277 6278 Collective on TSLGCtx 6279 6280 Input Parameters: 6281 + ts - the TS context 6282 . transform - the transform function 6283 . destroy - function to destroy the optional context 6284 - ctx - optional context used by transform function 6285 6286 Level: intermediate 6287 6288 .keywords: TS, vector, monitor, view 6289 6290 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames(), TSMonitorLGSetTransform() 6291 @*/ 6292 PetscErrorCode TSMonitorLGCtxSetTransform(TSMonitorLGCtx ctx,PetscErrorCode (*transform)(void*,Vec,Vec*),PetscErrorCode (*destroy)(void*),void *tctx) 6293 { 6294 PetscFunctionBegin; 6295 ctx->transform = transform; 6296 ctx->transformdestroy = destroy; 6297 ctx->transformctx = tctx; 6298 PetscFunctionReturn(0); 6299 } 6300 6301 #undef __FUNCT__ 6302 #define __FUNCT__ "TSMonitorLGError" 6303 /*@C 6304 TSMonitorLGError - Monitors progress of the TS solvers by plotting each component of the solution vector 6305 in a time based line graph 6306 6307 Collective on TS 6308 6309 Input Parameters: 6310 + ts - the TS context 6311 . step - current time-step 6312 . ptime - current time 6313 . u - current solution 6314 - dctx - TSMonitorLGCtx object created with TSMonitorLGCtxCreate() 6315 6316 Level: intermediate 6317 6318 Notes: Each process in a parallel run displays its component errors in a separate window 6319 6320 The user must provide the solution using TSSetSolutionFunction() to use this monitor. 6321 6322 Options Database Keys: 6323 . -ts_monitor_lg_error - create a graphical monitor of error history 6324 6325 .keywords: TS, vector, monitor, view 6326 6327 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSSetSolutionFunction() 6328 @*/ 6329 PetscErrorCode TSMonitorLGError(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy) 6330 { 6331 PetscErrorCode ierr; 6332 TSMonitorLGCtx ctx = (TSMonitorLGCtx)dummy; 6333 const PetscScalar *yy; 6334 Vec y; 6335 6336 PetscFunctionBegin; 6337 if (!step) { 6338 PetscDrawAxis axis; 6339 PetscInt dim; 6340 ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr); 6341 ierr = PetscDrawAxisSetLabels(axis,"Error in solution as function of time","Time","Solution");CHKERRQ(ierr); 6342 ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr); 6343 ierr = PetscDrawLGSetDimension(ctx->lg,dim);CHKERRQ(ierr); 6344 ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr); 6345 } 6346 ierr = VecDuplicate(u,&y);CHKERRQ(ierr); 6347 ierr = TSComputeSolutionFunction(ts,ptime,y);CHKERRQ(ierr); 6348 ierr = VecAXPY(y,-1.0,u);CHKERRQ(ierr); 6349 ierr = VecGetArrayRead(y,&yy);CHKERRQ(ierr); 6350 #if defined(PETSC_USE_COMPLEX) 6351 { 6352 PetscReal *yreal; 6353 PetscInt i,n; 6354 ierr = VecGetLocalSize(y,&n);CHKERRQ(ierr); 6355 ierr = PetscMalloc1(n,&yreal);CHKERRQ(ierr); 6356 for (i=0; i<n; i++) yreal[i] = PetscRealPart(yy[i]); 6357 ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yreal);CHKERRQ(ierr); 6358 ierr = PetscFree(yreal);CHKERRQ(ierr); 6359 } 6360 #else 6361 ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yy);CHKERRQ(ierr); 6362 #endif 6363 ierr = VecRestoreArrayRead(y,&yy);CHKERRQ(ierr); 6364 ierr = VecDestroy(&y);CHKERRQ(ierr); 6365 if (((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason)) { 6366 ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr); 6367 ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr); 6368 } 6369 PetscFunctionReturn(0); 6370 } 6371 6372 #undef __FUNCT__ 6373 #define __FUNCT__ "TSMonitorLGSNESIterations" 6374 PetscErrorCode TSMonitorLGSNESIterations(TS ts,PetscInt n,PetscReal ptime,Vec v,void *monctx) 6375 { 6376 TSMonitorLGCtx ctx = (TSMonitorLGCtx) monctx; 6377 PetscReal x = ptime,y; 6378 PetscErrorCode ierr; 6379 PetscInt its; 6380 6381 PetscFunctionBegin; 6382 if (!n) { 6383 PetscDrawAxis axis; 6384 ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr); 6385 ierr = PetscDrawAxisSetLabels(axis,"Nonlinear iterations as function of time","Time","SNES Iterations");CHKERRQ(ierr); 6386 ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr); 6387 ctx->snes_its = 0; 6388 } 6389 ierr = TSGetSNESIterations(ts,&its);CHKERRQ(ierr); 6390 y = its - ctx->snes_its; 6391 ierr = PetscDrawLGAddPoint(ctx->lg,&x,&y);CHKERRQ(ierr); 6392 if (((ctx->howoften > 0) && (!(n % ctx->howoften)) && (n > -1)) || ((ctx->howoften == -1) && (n == -1))) { 6393 ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr); 6394 ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr); 6395 } 6396 ctx->snes_its = its; 6397 PetscFunctionReturn(0); 6398 } 6399 6400 #undef __FUNCT__ 6401 #define __FUNCT__ "TSMonitorLGKSPIterations" 6402 PetscErrorCode TSMonitorLGKSPIterations(TS ts,PetscInt n,PetscReal ptime,Vec v,void *monctx) 6403 { 6404 TSMonitorLGCtx ctx = (TSMonitorLGCtx) monctx; 6405 PetscReal x = ptime,y; 6406 PetscErrorCode ierr; 6407 PetscInt its; 6408 6409 PetscFunctionBegin; 6410 if (!n) { 6411 PetscDrawAxis axis; 6412 ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr); 6413 ierr = PetscDrawAxisSetLabels(axis,"Linear iterations as function of time","Time","KSP Iterations");CHKERRQ(ierr); 6414 ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr); 6415 ctx->ksp_its = 0; 6416 } 6417 ierr = TSGetKSPIterations(ts,&its);CHKERRQ(ierr); 6418 y = its - ctx->ksp_its; 6419 ierr = PetscDrawLGAddPoint(ctx->lg,&x,&y);CHKERRQ(ierr); 6420 if (((ctx->howoften > 0) && (!(n % ctx->howoften)) && (n > -1)) || ((ctx->howoften == -1) && (n == -1))) { 6421 ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr); 6422 ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr); 6423 } 6424 ctx->ksp_its = its; 6425 PetscFunctionReturn(0); 6426 } 6427 6428 #undef __FUNCT__ 6429 #define __FUNCT__ "TSComputeLinearStability" 6430 /*@ 6431 TSComputeLinearStability - computes the linear stability function at a point 6432 6433 Collective on TS and Vec 6434 6435 Input Parameters: 6436 + ts - the TS context 6437 - xr,xi - real and imaginary part of input arguments 6438 6439 Output Parameters: 6440 . yr,yi - real and imaginary part of function value 6441 6442 Level: developer 6443 6444 .keywords: TS, compute 6445 6446 .seealso: TSSetRHSFunction(), TSComputeIFunction() 6447 @*/ 6448 PetscErrorCode TSComputeLinearStability(TS ts,PetscReal xr,PetscReal xi,PetscReal *yr,PetscReal *yi) 6449 { 6450 PetscErrorCode ierr; 6451 6452 PetscFunctionBegin; 6453 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 6454 if (!ts->ops->linearstability) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Linearized stability function not provided for this method"); 6455 ierr = (*ts->ops->linearstability)(ts,xr,xi,yr,yi);CHKERRQ(ierr); 6456 PetscFunctionReturn(0); 6457 } 6458 6459 /* ------------------------------------------------------------------------*/ 6460 #undef __FUNCT__ 6461 #define __FUNCT__ "TSMonitorEnvelopeCtxCreate" 6462 /*@C 6463 TSMonitorEnvelopeCtxCreate - Creates a context for use with TSMonitorEnvelope() 6464 6465 Collective on TS 6466 6467 Input Parameters: 6468 . ts - the ODE solver object 6469 6470 Output Parameter: 6471 . ctx - the context 6472 6473 Level: intermediate 6474 6475 .keywords: TS, monitor, line graph, residual, seealso 6476 6477 .seealso: TSMonitorLGTimeStep(), TSMonitorSet(), TSMonitorLGSolution(), TSMonitorLGError() 6478 6479 @*/ 6480 PetscErrorCode TSMonitorEnvelopeCtxCreate(TS ts,TSMonitorEnvelopeCtx *ctx) 6481 { 6482 PetscErrorCode ierr; 6483 6484 PetscFunctionBegin; 6485 ierr = PetscNew(ctx);CHKERRQ(ierr); 6486 PetscFunctionReturn(0); 6487 } 6488 6489 #undef __FUNCT__ 6490 #define __FUNCT__ "TSMonitorEnvelope" 6491 /*@C 6492 TSMonitorEnvelope - Monitors the maximum and minimum value of each component of the solution 6493 6494 Collective on TS 6495 6496 Input Parameters: 6497 + ts - the TS context 6498 . step - current time-step 6499 . ptime - current time 6500 . u - current solution 6501 - dctx - the envelope context 6502 6503 Options Database: 6504 . -ts_monitor_envelope 6505 6506 Level: intermediate 6507 6508 Notes: after a solve you can use TSMonitorEnvelopeGetBounds() to access the envelope 6509 6510 .keywords: TS, vector, monitor, view 6511 6512 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorEnvelopeGetBounds(), TSMonitorEnvelopeCtxCreate() 6513 @*/ 6514 PetscErrorCode TSMonitorEnvelope(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dctx) 6515 { 6516 PetscErrorCode ierr; 6517 TSMonitorEnvelopeCtx ctx = (TSMonitorEnvelopeCtx)dctx; 6518 6519 PetscFunctionBegin; 6520 if (!ctx->max) { 6521 ierr = VecDuplicate(u,&ctx->max);CHKERRQ(ierr); 6522 ierr = VecDuplicate(u,&ctx->min);CHKERRQ(ierr); 6523 ierr = VecCopy(u,ctx->max);CHKERRQ(ierr); 6524 ierr = VecCopy(u,ctx->min);CHKERRQ(ierr); 6525 } else { 6526 ierr = VecPointwiseMax(ctx->max,u,ctx->max);CHKERRQ(ierr); 6527 ierr = VecPointwiseMin(ctx->min,u,ctx->min);CHKERRQ(ierr); 6528 } 6529 PetscFunctionReturn(0); 6530 } 6531 6532 6533 #undef __FUNCT__ 6534 #define __FUNCT__ "TSMonitorEnvelopeGetBounds" 6535 /*@C 6536 TSMonitorEnvelopeGetBounds - Gets the bounds for the components of the solution 6537 6538 Collective on TS 6539 6540 Input Parameter: 6541 . ts - the TS context 6542 6543 Output Parameter: 6544 + max - the maximum values 6545 - min - the minimum values 6546 6547 Notes: If the TS does not have a TSMonitorEnvelopeCtx associated with it then this function is ignored 6548 6549 Level: intermediate 6550 6551 .keywords: TS, vector, monitor, view 6552 6553 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables() 6554 @*/ 6555 PetscErrorCode TSMonitorEnvelopeGetBounds(TS ts,Vec *max,Vec *min) 6556 { 6557 PetscInt i; 6558 6559 PetscFunctionBegin; 6560 if (max) *max = NULL; 6561 if (min) *min = NULL; 6562 for (i=0; i<ts->numbermonitors; i++) { 6563 if (ts->monitor[i] == TSMonitorEnvelope) { 6564 TSMonitorEnvelopeCtx ctx = (TSMonitorEnvelopeCtx) ts->monitorcontext[i]; 6565 if (max) *max = ctx->max; 6566 if (min) *min = ctx->min; 6567 break; 6568 } 6569 } 6570 PetscFunctionReturn(0); 6571 } 6572 6573 #undef __FUNCT__ 6574 #define __FUNCT__ "TSMonitorEnvelopeCtxDestroy" 6575 /*@C 6576 TSMonitorEnvelopeCtxDestroy - Destroys a context that was created with TSMonitorEnvelopeCtxCreate(). 6577 6578 Collective on TSMonitorEnvelopeCtx 6579 6580 Input Parameter: 6581 . ctx - the monitor context 6582 6583 Level: intermediate 6584 6585 .keywords: TS, monitor, line graph, destroy 6586 6587 .seealso: TSMonitorLGCtxCreate(), TSMonitorSet(), TSMonitorLGTimeStep() 6588 @*/ 6589 PetscErrorCode TSMonitorEnvelopeCtxDestroy(TSMonitorEnvelopeCtx *ctx) 6590 { 6591 PetscErrorCode ierr; 6592 6593 PetscFunctionBegin; 6594 ierr = VecDestroy(&(*ctx)->min);CHKERRQ(ierr); 6595 ierr = VecDestroy(&(*ctx)->max);CHKERRQ(ierr); 6596 ierr = PetscFree(*ctx);CHKERRQ(ierr); 6597 PetscFunctionReturn(0); 6598 } 6599 6600 #undef __FUNCT__ 6601 #define __FUNCT__ "TSRollBack" 6602 /*@ 6603 TSRollBack - Rolls back one time step 6604 6605 Collective on TS 6606 6607 Input Parameter: 6608 . ts - the TS context obtained from TSCreate() 6609 6610 Level: advanced 6611 6612 .keywords: TS, timestep, rollback 6613 6614 .seealso: TSCreate(), TSSetUp(), TSDestroy(), TSSolve(), TSSetPreStep(), TSSetPreStage(), TSInterpolate() 6615 @*/ 6616 PetscErrorCode TSRollBack(TS ts) 6617 { 6618 PetscErrorCode ierr; 6619 6620 PetscFunctionBegin; 6621 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 6622 6623 if (!ts->ops->rollback) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"TSRollBack not implemented for type '%s'",((PetscObject)ts)->type_name); 6624 ierr = (*ts->ops->rollback)(ts);CHKERRQ(ierr); 6625 ts->time_step = ts->ptime - ts->ptime_prev; 6626 ts->ptime = ts->ptime_prev; 6627 ts->steprollback = PETSC_TRUE; /* Flag to indicate that the step is rollbacked */ 6628 PetscFunctionReturn(0); 6629 } 6630 6631 #undef __FUNCT__ 6632 #define __FUNCT__ "TSGetStages" 6633 /*@ 6634 TSGetStages - Get the number of stages and stage values 6635 6636 Input Parameter: 6637 . ts - the TS context obtained from TSCreate() 6638 6639 Level: advanced 6640 6641 .keywords: TS, getstages 6642 6643 .seealso: TSCreate() 6644 @*/ 6645 PetscErrorCode TSGetStages(TS ts,PetscInt *ns, Vec **Y) 6646 { 6647 PetscErrorCode ierr; 6648 6649 PetscFunctionBegin; 6650 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 6651 PetscValidPointer(ns,2); 6652 6653 if (!ts->ops->getstages) *ns=0; 6654 else { 6655 ierr = (*ts->ops->getstages)(ts,ns,Y);CHKERRQ(ierr); 6656 } 6657 PetscFunctionReturn(0); 6658 } 6659 6660 #undef __FUNCT__ 6661 #define __FUNCT__ "TSComputeIJacobianDefaultColor" 6662 /*@C 6663 TSComputeIJacobianDefaultColor - Computes the Jacobian using finite differences and coloring to exploit matrix sparsity. 6664 6665 Collective on SNES 6666 6667 Input Parameters: 6668 + ts - the TS context 6669 . t - current timestep 6670 . U - state vector 6671 . Udot - time derivative of state vector 6672 . shift - shift to apply, see note below 6673 - ctx - an optional user context 6674 6675 Output Parameters: 6676 + J - Jacobian matrix (not altered in this routine) 6677 - B - newly computed Jacobian matrix to use with preconditioner (generally the same as J) 6678 6679 Level: intermediate 6680 6681 Notes: 6682 If F(t,U,Udot)=0 is the DAE, the required Jacobian is 6683 6684 dF/dU + shift*dF/dUdot 6685 6686 Most users should not need to explicitly call this routine, as it 6687 is used internally within the nonlinear solvers. 6688 6689 This will first try to get the coloring from the DM. If the DM type has no coloring 6690 routine, then it will try to get the coloring from the matrix. This requires that the 6691 matrix have nonzero entries precomputed. 6692 6693 .keywords: TS, finite differences, Jacobian, coloring, sparse 6694 .seealso: TSSetIJacobian(), MatFDColoringCreate(), MatFDColoringSetFunction() 6695 @*/ 6696 PetscErrorCode TSComputeIJacobianDefaultColor(TS ts,PetscReal t,Vec U,Vec Udot,PetscReal shift,Mat J,Mat B,void *ctx) 6697 { 6698 SNES snes; 6699 MatFDColoring color; 6700 PetscBool hascolor, matcolor = PETSC_FALSE; 6701 PetscErrorCode ierr; 6702 6703 PetscFunctionBegin; 6704 ierr = PetscOptionsGetBool(((PetscObject)ts)->options,((PetscObject) ts)->prefix, "-ts_fd_color_use_mat", &matcolor, NULL);CHKERRQ(ierr); 6705 ierr = PetscObjectQuery((PetscObject) B, "TSMatFDColoring", (PetscObject *) &color);CHKERRQ(ierr); 6706 if (!color) { 6707 DM dm; 6708 ISColoring iscoloring; 6709 6710 ierr = TSGetDM(ts, &dm);CHKERRQ(ierr); 6711 ierr = DMHasColoring(dm, &hascolor);CHKERRQ(ierr); 6712 if (hascolor && !matcolor) { 6713 ierr = DMCreateColoring(dm, IS_COLORING_GLOBAL, &iscoloring);CHKERRQ(ierr); 6714 ierr = MatFDColoringCreate(B, iscoloring, &color);CHKERRQ(ierr); 6715 ierr = MatFDColoringSetFunction(color, (PetscErrorCode (*)(void)) SNESTSFormFunction, (void *) ts);CHKERRQ(ierr); 6716 ierr = MatFDColoringSetFromOptions(color);CHKERRQ(ierr); 6717 ierr = MatFDColoringSetUp(B, iscoloring, color);CHKERRQ(ierr); 6718 ierr = ISColoringDestroy(&iscoloring);CHKERRQ(ierr); 6719 } else { 6720 MatColoring mc; 6721 6722 ierr = MatColoringCreate(B, &mc);CHKERRQ(ierr); 6723 ierr = MatColoringSetDistance(mc, 2);CHKERRQ(ierr); 6724 ierr = MatColoringSetType(mc, MATCOLORINGSL);CHKERRQ(ierr); 6725 ierr = MatColoringSetFromOptions(mc);CHKERRQ(ierr); 6726 ierr = MatColoringApply(mc, &iscoloring);CHKERRQ(ierr); 6727 ierr = MatColoringDestroy(&mc);CHKERRQ(ierr); 6728 ierr = MatFDColoringCreate(B, iscoloring, &color);CHKERRQ(ierr); 6729 ierr = MatFDColoringSetFunction(color, (PetscErrorCode (*)(void)) SNESTSFormFunction, (void *) ts);CHKERRQ(ierr); 6730 ierr = MatFDColoringSetFromOptions(color);CHKERRQ(ierr); 6731 ierr = MatFDColoringSetUp(B, iscoloring, color);CHKERRQ(ierr); 6732 ierr = ISColoringDestroy(&iscoloring);CHKERRQ(ierr); 6733 } 6734 ierr = PetscObjectCompose((PetscObject) B, "TSMatFDColoring", (PetscObject) color);CHKERRQ(ierr); 6735 ierr = PetscObjectDereference((PetscObject) color);CHKERRQ(ierr); 6736 } 6737 ierr = TSGetSNES(ts, &snes);CHKERRQ(ierr); 6738 ierr = MatFDColoringApply(B, color, U, snes);CHKERRQ(ierr); 6739 if (J != B) { 6740 ierr = MatAssemblyBegin(J, MAT_FINAL_ASSEMBLY);CHKERRQ(ierr); 6741 ierr = MatAssemblyEnd(J, MAT_FINAL_ASSEMBLY);CHKERRQ(ierr); 6742 } 6743 PetscFunctionReturn(0); 6744 } 6745 6746 #undef __FUNCT__ 6747 #define __FUNCT__ "TSSetFunctionDomainError" 6748 /*@ 6749 TSSetFunctionDomainError - Set the function testing if the current state vector is valid 6750 6751 Input Parameters: 6752 ts - the TS context 6753 func - function called within TSFunctionDomainError 6754 6755 Level: intermediate 6756 6757 .keywords: TS, state, domain 6758 .seealso: TSAdaptCheckStage(), TSFunctionDomainError() 6759 @*/ 6760 6761 PetscErrorCode TSSetFunctionDomainError(TS ts, PetscErrorCode (*func)(TS,PetscReal,Vec,PetscBool*)) 6762 { 6763 PetscFunctionBegin; 6764 PetscValidHeaderSpecific(ts, TS_CLASSID,1); 6765 ts->functiondomainerror = func; 6766 PetscFunctionReturn(0); 6767 } 6768 6769 #undef __FUNCT__ 6770 #define __FUNCT__ "TSFunctionDomainError" 6771 /*@ 6772 TSFunctionDomainError - Check if the current state is valid 6773 6774 Input Parameters: 6775 ts - the TS context 6776 stagetime - time of the simulation 6777 Y - state vector to check. 6778 6779 Output Parameter: 6780 accept - Set to PETSC_FALSE if the current state vector is valid. 6781 6782 Note: 6783 This function should be used to ensure the state is in a valid part of the space. 6784 For example, one can ensure here all values are positive. 6785 6786 Level: advanced 6787 @*/ 6788 PetscErrorCode TSFunctionDomainError(TS ts,PetscReal stagetime,Vec Y,PetscBool* accept) 6789 { 6790 PetscErrorCode ierr; 6791 6792 PetscFunctionBegin; 6793 6794 PetscValidHeaderSpecific(ts,TS_CLASSID,1); 6795 *accept = PETSC_TRUE; 6796 if (ts->functiondomainerror) { 6797 PetscStackCallStandard((*ts->functiondomainerror),(ts,stagetime,Y,accept)); 6798 } 6799 PetscFunctionReturn(0); 6800 } 6801 6802 #undef __FUNCT__ 6803 #define __FUNCT__ "TSClone" 6804 /*@C 6805 TSClone - This function clones a time step object. 6806 6807 Collective on MPI_Comm 6808 6809 Input Parameter: 6810 . tsin - The input TS 6811 6812 Output Parameter: 6813 . tsout - The output TS (cloned) 6814 6815 Notes: 6816 This function is used to create a clone of a TS object. It is used in ARKIMEX for initializing the slope for first stage explicit methods. It will likely be replaced in the future with a mechanism of switching methods on the fly. 6817 6818 When using TSDestroy() on a clone the user has to first reset the correct TS reference in the embedded SNES object: e.g.: by running SNES snes_dup=NULL; TSGetSNES(ts,&snes_dup); ierr = TSSetSNES(ts,snes_dup); 6819 6820 Level: developer 6821 6822 .keywords: TS, clone 6823 .seealso: TSCreate(), TSSetType(), TSSetUp(), TSDestroy(), TSSetProblemType() 6824 @*/ 6825 PetscErrorCode TSClone(TS tsin, TS *tsout) 6826 { 6827 TS t; 6828 PetscErrorCode ierr; 6829 SNES snes_start; 6830 DM dm; 6831 TSType type; 6832 6833 PetscFunctionBegin; 6834 PetscValidPointer(tsin,1); 6835 *tsout = NULL; 6836 6837 ierr = PetscHeaderCreate(t, TS_CLASSID, "TS", "Time stepping", "TS", PetscObjectComm((PetscObject)tsin), TSDestroy, TSView);CHKERRQ(ierr); 6838 6839 /* General TS description */ 6840 t->numbermonitors = 0; 6841 t->setupcalled = 0; 6842 t->ksp_its = 0; 6843 t->snes_its = 0; 6844 t->nwork = 0; 6845 t->rhsjacobian.time = -1e20; 6846 t->rhsjacobian.scale = 1.; 6847 t->ijacobian.shift = 1.; 6848 6849 ierr = TSGetSNES(tsin,&snes_start); CHKERRQ(ierr); 6850 ierr = TSSetSNES(t,snes_start); CHKERRQ(ierr); 6851 6852 ierr = TSGetDM(tsin,&dm); CHKERRQ(ierr); 6853 ierr = TSSetDM(t,dm); CHKERRQ(ierr); 6854 6855 t->adapt=tsin->adapt; 6856 PetscObjectReference((PetscObject)t->adapt); 6857 6858 t->problem_type = tsin->problem_type; 6859 t->ptime = tsin->ptime; 6860 t->time_step = tsin->time_step; 6861 t->time_step_orig = tsin->time_step_orig; 6862 t->max_time = tsin->max_time; 6863 t->steps = tsin->steps; 6864 t->max_steps = tsin->max_steps; 6865 t->equation_type = tsin->equation_type; 6866 t->atol = tsin->atol; 6867 t->rtol = tsin->rtol; 6868 t->max_snes_failures = tsin->max_snes_failures; 6869 t->max_reject = tsin->max_reject; 6870 t->errorifstepfailed = tsin->errorifstepfailed; 6871 6872 ierr = TSGetType(tsin,&type); CHKERRQ(ierr); 6873 ierr = TSSetType(t,type); CHKERRQ(ierr); 6874 6875 t->vec_sol = NULL; 6876 6877 t->cfltime = tsin->cfltime; 6878 t->cfltime_local = tsin->cfltime_local; 6879 t->exact_final_time = tsin->exact_final_time; 6880 6881 ierr = PetscMemcpy(t->ops,tsin->ops,sizeof(struct _TSOps));CHKERRQ(ierr); 6882 6883 if (((PetscObject)tsin)->fortran_func_pointers) { 6884 PetscInt i; 6885 ierr = PetscMalloc((10)*sizeof(void(*)(void)),&((PetscObject)t)->fortran_func_pointers);CHKERRQ(ierr); 6886 for (i=0; i<10; i++) { 6887 ((PetscObject)t)->fortran_func_pointers[i] = ((PetscObject)tsin)->fortran_func_pointers[i]; 6888 } 6889 } 6890 *tsout = t; 6891 PetscFunctionReturn(0); 6892 } 6893