xref: /petsc/src/ts/interface/ts.c (revision 545a86f42b2170788b95524cf246403729bf900e)
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    Note: If you used TSSetExactFinalTime(ts,TS_EXACTFINALTIME_MATCHSTEP); this does not return the solution at the requested
1840    final time. It returns the solution at the next timestep.
1841 
1842    Level: intermediate
1843 
1844 .seealso: TSGetTimeStep(), TSGetTime(), TSGetSolveTime()
1845 
1846 .keywords: TS, timestep, get, solution
1847 @*/
1848 PetscErrorCode  TSGetSolution(TS ts,Vec *v)
1849 {
1850   PetscFunctionBegin;
1851   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
1852   PetscValidPointer(v,2);
1853   *v = ts->vec_sol;
1854   PetscFunctionReturn(0);
1855 }
1856 
1857 #undef __FUNCT__
1858 #define __FUNCT__ "TSGetCostGradients"
1859 /*@
1860    TSGetCostGradients - Returns the gradients from the TSAdjointSolve()
1861 
1862    Not Collective, but Vec returned is parallel if TS is parallel
1863 
1864    Input Parameter:
1865 .  ts - the TS context obtained from TSCreate()
1866 
1867    Output Parameter:
1868 +  lambda - vectors containing the gradients of the cost functions with respect to the ODE/DAE solution variables
1869 -  mu - vectors containing the gradients of the cost functions with respect to the problem parameters
1870 
1871    Level: intermediate
1872 
1873 .seealso: TSGetTimeStep()
1874 
1875 .keywords: TS, timestep, get, sensitivity
1876 @*/
1877 PetscErrorCode  TSGetCostGradients(TS ts,PetscInt *numcost,Vec **lambda,Vec **mu)
1878 {
1879   PetscFunctionBegin;
1880   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
1881   if (numcost) *numcost = ts->numcost;
1882   if (lambda)  *lambda  = ts->vecs_sensi;
1883   if (mu)      *mu      = ts->vecs_sensip;
1884   PetscFunctionReturn(0);
1885 }
1886 
1887 /* ----- Routines to initialize and destroy a timestepper ---- */
1888 #undef __FUNCT__
1889 #define __FUNCT__ "TSSetProblemType"
1890 /*@
1891   TSSetProblemType - Sets the type of problem to be solved.
1892 
1893   Not collective
1894 
1895   Input Parameters:
1896 + ts   - The TS
1897 - type - One of TS_LINEAR, TS_NONLINEAR where these types refer to problems of the forms
1898 .vb
1899          U_t - A U = 0      (linear)
1900          U_t - A(t) U = 0   (linear)
1901          F(t,U,U_t) = 0     (nonlinear)
1902 .ve
1903 
1904    Level: beginner
1905 
1906 .keywords: TS, problem type
1907 .seealso: TSSetUp(), TSProblemType, TS
1908 @*/
1909 PetscErrorCode  TSSetProblemType(TS ts, TSProblemType type)
1910 {
1911   PetscErrorCode ierr;
1912 
1913   PetscFunctionBegin;
1914   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
1915   ts->problem_type = type;
1916   if (type == TS_LINEAR) {
1917     SNES snes;
1918     ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
1919     ierr = SNESSetType(snes,SNESKSPONLY);CHKERRQ(ierr);
1920   }
1921   PetscFunctionReturn(0);
1922 }
1923 
1924 #undef __FUNCT__
1925 #define __FUNCT__ "TSGetProblemType"
1926 /*@C
1927   TSGetProblemType - Gets the type of problem to be solved.
1928 
1929   Not collective
1930 
1931   Input Parameter:
1932 . ts   - The TS
1933 
1934   Output Parameter:
1935 . type - One of TS_LINEAR, TS_NONLINEAR where these types refer to problems of the forms
1936 .vb
1937          M U_t = A U
1938          M(t) U_t = A(t) U
1939          F(t,U,U_t)
1940 .ve
1941 
1942    Level: beginner
1943 
1944 .keywords: TS, problem type
1945 .seealso: TSSetUp(), TSProblemType, TS
1946 @*/
1947 PetscErrorCode  TSGetProblemType(TS ts, TSProblemType *type)
1948 {
1949   PetscFunctionBegin;
1950   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
1951   PetscValidIntPointer(type,2);
1952   *type = ts->problem_type;
1953   PetscFunctionReturn(0);
1954 }
1955 
1956 #undef __FUNCT__
1957 #define __FUNCT__ "TSSetUp"
1958 /*@
1959    TSSetUp - Sets up the internal data structures for the later use
1960    of a timestepper.
1961 
1962    Collective on TS
1963 
1964    Input Parameter:
1965 .  ts - the TS context obtained from TSCreate()
1966 
1967    Notes:
1968    For basic use of the TS solvers the user need not explicitly call
1969    TSSetUp(), since these actions will automatically occur during
1970    the call to TSStep().  However, if one wishes to control this
1971    phase separately, TSSetUp() should be called after TSCreate()
1972    and optional routines of the form TSSetXXX(), but before TSStep().
1973 
1974    Level: advanced
1975 
1976 .keywords: TS, timestep, setup
1977 
1978 .seealso: TSCreate(), TSStep(), TSDestroy()
1979 @*/
1980 PetscErrorCode  TSSetUp(TS ts)
1981 {
1982   PetscErrorCode ierr;
1983   DM             dm;
1984   PetscErrorCode (*func)(SNES,Vec,Vec,void*);
1985   PetscErrorCode (*jac)(SNES,Vec,Mat,Mat,void*);
1986   TSIJacobian    ijac;
1987   TSRHSJacobian  rhsjac;
1988 
1989   PetscFunctionBegin;
1990   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
1991   if (ts->setupcalled) PetscFunctionReturn(0);
1992 
1993   ts->total_steps = 0;
1994   if (!((PetscObject)ts)->type_name) {
1995     ierr = TSSetType(ts,TSEULER);CHKERRQ(ierr);
1996   }
1997 
1998   if (!ts->vec_sol) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Must call TSSetSolution() first");
1999 
2000 
2001   if (ts->rhsjacobian.reuse) {
2002     Mat Amat,Pmat;
2003     SNES snes;
2004     ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
2005     ierr = SNESGetJacobian(snes,&Amat,&Pmat,NULL,NULL);CHKERRQ(ierr);
2006     /* Matching matrices implies that an IJacobian is NOT set, because if it had been set, the IJacobian's matrix would
2007      * have displaced the RHS matrix */
2008     if (Amat == ts->Arhs) {
2009       ierr = MatDuplicate(ts->Arhs,MAT_DO_NOT_COPY_VALUES,&Amat);CHKERRQ(ierr);
2010       ierr = SNESSetJacobian(snes,Amat,NULL,NULL,NULL);CHKERRQ(ierr);
2011       ierr = MatDestroy(&Amat);CHKERRQ(ierr);
2012     }
2013     if (Pmat == ts->Brhs) {
2014       ierr = MatDuplicate(ts->Brhs,MAT_DO_NOT_COPY_VALUES,&Pmat);CHKERRQ(ierr);
2015       ierr = SNESSetJacobian(snes,NULL,Pmat,NULL,NULL);CHKERRQ(ierr);
2016       ierr = MatDestroy(&Pmat);CHKERRQ(ierr);
2017     }
2018   }
2019   if (ts->ops->setup) {
2020     ierr = (*ts->ops->setup)(ts);CHKERRQ(ierr);
2021   }
2022 
2023   /* in the case where we've set a DMTSFunction or what have you, we need the default SNESFunction
2024    to be set right but can't do it elsewhere due to the overreliance on ctx=ts.
2025    */
2026   ierr = TSGetDM(ts,&dm);CHKERRQ(ierr);
2027   ierr = DMSNESGetFunction(dm,&func,NULL);CHKERRQ(ierr);
2028   if (!func) {
2029     ierr =DMSNESSetFunction(dm,SNESTSFormFunction,ts);CHKERRQ(ierr);
2030   }
2031   /* if the SNES doesn't have a jacobian set and the TS has an ijacobian or rhsjacobian set, set the SNES to use it.
2032      Otherwise, the SNES will use coloring internally to form the Jacobian.
2033    */
2034   ierr = DMSNESGetJacobian(dm,&jac,NULL);CHKERRQ(ierr);
2035   ierr = DMTSGetIJacobian(dm,&ijac,NULL);CHKERRQ(ierr);
2036   ierr = DMTSGetRHSJacobian(dm,&rhsjac,NULL);CHKERRQ(ierr);
2037   if (!jac && (ijac || rhsjac)) {
2038     ierr = DMSNESSetJacobian(dm,SNESTSFormJacobian,ts);CHKERRQ(ierr);
2039   }
2040   ts->setupcalled = PETSC_TRUE;
2041   PetscFunctionReturn(0);
2042 }
2043 
2044 #undef __FUNCT__
2045 #define __FUNCT__ "TSAdjointSetUp"
2046 /*@
2047    TSAdjointSetUp - Sets up the internal data structures for the later use
2048    of an adjoint solver
2049 
2050    Collective on TS
2051 
2052    Input Parameter:
2053 .  ts - the TS context obtained from TSCreate()
2054 
2055    Level: advanced
2056 
2057 .keywords: TS, timestep, setup
2058 
2059 .seealso: TSCreate(), TSAdjointStep(), TSSetCostGradients()
2060 @*/
2061 PetscErrorCode  TSAdjointSetUp(TS ts)
2062 {
2063   PetscErrorCode ierr;
2064 
2065   PetscFunctionBegin;
2066   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2067   if (ts->adjointsetupcalled) PetscFunctionReturn(0);
2068   if (!ts->vecs_sensi) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Must call TSSetCostGradients() first");
2069 
2070   if (ts->vec_costintegral) { /* if there is integral in the cost function*/
2071     ierr = VecDuplicateVecs(ts->vecs_sensi[0],ts->numcost,&ts->vecs_drdy);CHKERRQ(ierr);
2072     if (ts->vecs_sensip){
2073       ierr = VecDuplicateVecs(ts->vecs_sensip[0],ts->numcost,&ts->vecs_drdp);CHKERRQ(ierr);
2074     }
2075   }
2076 
2077   if (ts->ops->adjointsetup) {
2078     ierr = (*ts->ops->adjointsetup)(ts);CHKERRQ(ierr);
2079   }
2080   ts->adjointsetupcalled = PETSC_TRUE;
2081   PetscFunctionReturn(0);
2082 }
2083 
2084 #undef __FUNCT__
2085 #define __FUNCT__ "TSReset"
2086 /*@
2087    TSReset - Resets a TS context and removes any allocated Vecs and Mats.
2088 
2089    Collective on TS
2090 
2091    Input Parameter:
2092 .  ts - the TS context obtained from TSCreate()
2093 
2094    Level: beginner
2095 
2096 .keywords: TS, timestep, reset
2097 
2098 .seealso: TSCreate(), TSSetup(), TSDestroy()
2099 @*/
2100 PetscErrorCode  TSReset(TS ts)
2101 {
2102   PetscErrorCode ierr;
2103 
2104   PetscFunctionBegin;
2105   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2106 
2107   if (ts->ops->reset) {
2108     ierr = (*ts->ops->reset)(ts);CHKERRQ(ierr);
2109   }
2110   if (ts->snes) {ierr = SNESReset(ts->snes);CHKERRQ(ierr);}
2111   if (ts->adapt) {ierr = TSAdaptReset(ts->adapt);CHKERRQ(ierr);}
2112 
2113   ierr = MatDestroy(&ts->Arhs);CHKERRQ(ierr);
2114   ierr = MatDestroy(&ts->Brhs);CHKERRQ(ierr);
2115   ierr = VecDestroy(&ts->Frhs);CHKERRQ(ierr);
2116   ierr = VecDestroy(&ts->vec_sol);CHKERRQ(ierr);
2117   ierr = VecDestroy(&ts->vatol);CHKERRQ(ierr);
2118   ierr = VecDestroy(&ts->vrtol);CHKERRQ(ierr);
2119   ierr = VecDestroyVecs(ts->nwork,&ts->work);CHKERRQ(ierr);
2120 
2121  if (ts->vec_costintegral) {
2122     ierr = VecDestroyVecs(ts->numcost,&ts->vecs_drdy);CHKERRQ(ierr);
2123     if (ts->vecs_drdp){
2124       ierr = VecDestroyVecs(ts->numcost,&ts->vecs_drdp);CHKERRQ(ierr);
2125     }
2126   }
2127   ts->vecs_sensi  = NULL;
2128   ts->vecs_sensip = NULL;
2129   ierr = MatDestroy(&ts->Jacp);CHKERRQ(ierr);
2130   ierr = VecDestroy(&ts->vec_costintegral);CHKERRQ(ierr);
2131   ierr = VecDestroy(&ts->vec_costintegrand);CHKERRQ(ierr);
2132   ts->setupcalled = PETSC_FALSE;
2133   PetscFunctionReturn(0);
2134 }
2135 
2136 #undef __FUNCT__
2137 #define __FUNCT__ "TSDestroy"
2138 /*@
2139    TSDestroy - Destroys the timestepper context that was created
2140    with TSCreate().
2141 
2142    Collective on TS
2143 
2144    Input Parameter:
2145 .  ts - the TS context obtained from TSCreate()
2146 
2147    Level: beginner
2148 
2149 .keywords: TS, timestepper, destroy
2150 
2151 .seealso: TSCreate(), TSSetUp(), TSSolve()
2152 @*/
2153 PetscErrorCode  TSDestroy(TS *ts)
2154 {
2155   PetscErrorCode ierr;
2156 
2157   PetscFunctionBegin;
2158   if (!*ts) PetscFunctionReturn(0);
2159   PetscValidHeaderSpecific((*ts),TS_CLASSID,1);
2160   if (--((PetscObject)(*ts))->refct > 0) {*ts = 0; PetscFunctionReturn(0);}
2161 
2162   ierr = TSReset((*ts));CHKERRQ(ierr);
2163 
2164   /* if memory was published with SAWs then destroy it */
2165   ierr = PetscObjectSAWsViewOff((PetscObject)*ts);CHKERRQ(ierr);
2166   if ((*ts)->ops->destroy) {ierr = (*(*ts)->ops->destroy)((*ts));CHKERRQ(ierr);}
2167 
2168   ierr = TSTrajectoryDestroy(&(*ts)->trajectory);CHKERRQ(ierr);
2169 
2170   ierr = TSAdaptDestroy(&(*ts)->adapt);CHKERRQ(ierr);
2171   if ((*ts)->event) {
2172     ierr = TSEventMonitorDestroy(&(*ts)->event);CHKERRQ(ierr);
2173   }
2174   ierr = SNESDestroy(&(*ts)->snes);CHKERRQ(ierr);
2175   ierr = DMDestroy(&(*ts)->dm);CHKERRQ(ierr);
2176   ierr = TSMonitorCancel((*ts));CHKERRQ(ierr);
2177   ierr = TSAdjointMonitorCancel((*ts));CHKERRQ(ierr);
2178 
2179   ierr = PetscHeaderDestroy(ts);CHKERRQ(ierr);
2180   PetscFunctionReturn(0);
2181 }
2182 
2183 #undef __FUNCT__
2184 #define __FUNCT__ "TSGetSNES"
2185 /*@
2186    TSGetSNES - Returns the SNES (nonlinear solver) associated with
2187    a TS (timestepper) context. Valid only for nonlinear problems.
2188 
2189    Not Collective, but SNES is parallel if TS is parallel
2190 
2191    Input Parameter:
2192 .  ts - the TS context obtained from TSCreate()
2193 
2194    Output Parameter:
2195 .  snes - the nonlinear solver context
2196 
2197    Notes:
2198    The user can then directly manipulate the SNES context to set various
2199    options, etc.  Likewise, the user can then extract and manipulate the
2200    KSP, KSP, and PC contexts as well.
2201 
2202    TSGetSNES() does not work for integrators that do not use SNES; in
2203    this case TSGetSNES() returns NULL in snes.
2204 
2205    Level: beginner
2206 
2207 .keywords: timestep, get, SNES
2208 @*/
2209 PetscErrorCode  TSGetSNES(TS ts,SNES *snes)
2210 {
2211   PetscErrorCode ierr;
2212 
2213   PetscFunctionBegin;
2214   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2215   PetscValidPointer(snes,2);
2216   if (!ts->snes) {
2217     ierr = SNESCreate(PetscObjectComm((PetscObject)ts),&ts->snes);CHKERRQ(ierr);
2218     ierr = SNESSetFunction(ts->snes,NULL,SNESTSFormFunction,ts);CHKERRQ(ierr);
2219     ierr = PetscLogObjectParent((PetscObject)ts,(PetscObject)ts->snes);CHKERRQ(ierr);
2220     ierr = PetscObjectIncrementTabLevel((PetscObject)ts->snes,(PetscObject)ts,1);CHKERRQ(ierr);
2221     if (ts->dm) {ierr = SNESSetDM(ts->snes,ts->dm);CHKERRQ(ierr);}
2222     if (ts->problem_type == TS_LINEAR) {
2223       ierr = SNESSetType(ts->snes,SNESKSPONLY);CHKERRQ(ierr);
2224     }
2225   }
2226   *snes = ts->snes;
2227   PetscFunctionReturn(0);
2228 }
2229 
2230 #undef __FUNCT__
2231 #define __FUNCT__ "TSSetSNES"
2232 /*@
2233    TSSetSNES - Set the SNES (nonlinear solver) to be used by the timestepping context
2234 
2235    Collective
2236 
2237    Input Parameter:
2238 +  ts - the TS context obtained from TSCreate()
2239 -  snes - the nonlinear solver context
2240 
2241    Notes:
2242    Most users should have the TS created by calling TSGetSNES()
2243 
2244    Level: developer
2245 
2246 .keywords: timestep, set, SNES
2247 @*/
2248 PetscErrorCode TSSetSNES(TS ts,SNES snes)
2249 {
2250   PetscErrorCode ierr;
2251   PetscErrorCode (*func)(SNES,Vec,Mat,Mat,void*);
2252 
2253   PetscFunctionBegin;
2254   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2255   PetscValidHeaderSpecific(snes,SNES_CLASSID,2);
2256   ierr = PetscObjectReference((PetscObject)snes);CHKERRQ(ierr);
2257   ierr = SNESDestroy(&ts->snes);CHKERRQ(ierr);
2258 
2259   ts->snes = snes;
2260 
2261   ierr = SNESSetFunction(ts->snes,NULL,SNESTSFormFunction,ts);CHKERRQ(ierr);
2262   ierr = SNESGetJacobian(ts->snes,NULL,NULL,&func,NULL);CHKERRQ(ierr);
2263   if (func == SNESTSFormJacobian) {
2264     ierr = SNESSetJacobian(ts->snes,NULL,NULL,SNESTSFormJacobian,ts);CHKERRQ(ierr);
2265   }
2266   PetscFunctionReturn(0);
2267 }
2268 
2269 #undef __FUNCT__
2270 #define __FUNCT__ "TSGetKSP"
2271 /*@
2272    TSGetKSP - Returns the KSP (linear solver) associated with
2273    a TS (timestepper) context.
2274 
2275    Not Collective, but KSP is parallel if TS is parallel
2276 
2277    Input Parameter:
2278 .  ts - the TS context obtained from TSCreate()
2279 
2280    Output Parameter:
2281 .  ksp - the nonlinear solver context
2282 
2283    Notes:
2284    The user can then directly manipulate the KSP context to set various
2285    options, etc.  Likewise, the user can then extract and manipulate the
2286    KSP and PC contexts as well.
2287 
2288    TSGetKSP() does not work for integrators that do not use KSP;
2289    in this case TSGetKSP() returns NULL in ksp.
2290 
2291    Level: beginner
2292 
2293 .keywords: timestep, get, KSP
2294 @*/
2295 PetscErrorCode  TSGetKSP(TS ts,KSP *ksp)
2296 {
2297   PetscErrorCode ierr;
2298   SNES           snes;
2299 
2300   PetscFunctionBegin;
2301   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2302   PetscValidPointer(ksp,2);
2303   if (!((PetscObject)ts)->type_name) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_NULL,"KSP is not created yet. Call TSSetType() first");
2304   if (ts->problem_type != TS_LINEAR) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"Linear only; use TSGetSNES()");
2305   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
2306   ierr = SNESGetKSP(snes,ksp);CHKERRQ(ierr);
2307   PetscFunctionReturn(0);
2308 }
2309 
2310 /* ----------- Routines to set solver parameters ---------- */
2311 
2312 #undef __FUNCT__
2313 #define __FUNCT__ "TSGetDuration"
2314 /*@
2315    TSGetDuration - Gets the maximum number of timesteps to use and
2316    maximum time for iteration.
2317 
2318    Not Collective
2319 
2320    Input Parameters:
2321 +  ts       - the TS context obtained from TSCreate()
2322 .  maxsteps - maximum number of iterations to use, or NULL
2323 -  maxtime  - final time to iterate to, or NULL
2324 
2325    Level: intermediate
2326 
2327 .keywords: TS, timestep, get, maximum, iterations, time
2328 @*/
2329 PetscErrorCode  TSGetDuration(TS ts, PetscInt *maxsteps, PetscReal *maxtime)
2330 {
2331   PetscFunctionBegin;
2332   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
2333   if (maxsteps) {
2334     PetscValidIntPointer(maxsteps,2);
2335     *maxsteps = ts->max_steps;
2336   }
2337   if (maxtime) {
2338     PetscValidScalarPointer(maxtime,3);
2339     *maxtime = ts->max_time;
2340   }
2341   PetscFunctionReturn(0);
2342 }
2343 
2344 #undef __FUNCT__
2345 #define __FUNCT__ "TSSetDuration"
2346 /*@
2347    TSSetDuration - Sets the maximum number of timesteps to use and
2348    maximum time for iteration.
2349 
2350    Logically Collective on TS
2351 
2352    Input Parameters:
2353 +  ts - the TS context obtained from TSCreate()
2354 .  maxsteps - maximum number of iterations to use
2355 -  maxtime - final time to iterate to
2356 
2357    Options Database Keys:
2358 .  -ts_max_steps <maxsteps> - Sets maxsteps
2359 .  -ts_final_time <maxtime> - Sets maxtime
2360 
2361    Notes:
2362    The default maximum number of iterations is 5000. Default time is 5.0
2363 
2364    Level: intermediate
2365 
2366 .keywords: TS, timestep, set, maximum, iterations
2367 
2368 .seealso: TSSetExactFinalTime()
2369 @*/
2370 PetscErrorCode  TSSetDuration(TS ts,PetscInt maxsteps,PetscReal maxtime)
2371 {
2372   PetscFunctionBegin;
2373   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2374   PetscValidLogicalCollectiveInt(ts,maxsteps,2);
2375   PetscValidLogicalCollectiveReal(ts,maxtime,2);
2376   if (maxsteps >= 0) ts->max_steps = maxsteps;
2377   if (maxtime != PETSC_DEFAULT) ts->max_time = maxtime;
2378   PetscFunctionReturn(0);
2379 }
2380 
2381 #undef __FUNCT__
2382 #define __FUNCT__ "TSSetSolution"
2383 /*@
2384    TSSetSolution - Sets the initial solution vector
2385    for use by the TS routines.
2386 
2387    Logically Collective on TS and Vec
2388 
2389    Input Parameters:
2390 +  ts - the TS context obtained from TSCreate()
2391 -  u - the solution vector
2392 
2393    Level: beginner
2394 
2395 .keywords: TS, timestep, set, solution, initial conditions
2396 @*/
2397 PetscErrorCode  TSSetSolution(TS ts,Vec u)
2398 {
2399   PetscErrorCode ierr;
2400   DM             dm;
2401 
2402   PetscFunctionBegin;
2403   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2404   PetscValidHeaderSpecific(u,VEC_CLASSID,2);
2405   ierr = PetscObjectReference((PetscObject)u);CHKERRQ(ierr);
2406   ierr = VecDestroy(&ts->vec_sol);CHKERRQ(ierr);
2407 
2408   ts->vec_sol = u;
2409 
2410   ierr = TSGetDM(ts,&dm);CHKERRQ(ierr);
2411   ierr = DMShellSetGlobalVector(dm,u);CHKERRQ(ierr);
2412   PetscFunctionReturn(0);
2413 }
2414 
2415 #undef __FUNCT__
2416 #define __FUNCT__ "TSAdjointSetSteps"
2417 /*@
2418    TSAdjointSetSteps - Sets the number of steps the adjoint solver should take backward in time
2419 
2420    Logically Collective on TS
2421 
2422    Input Parameters:
2423 +  ts - the TS context obtained from TSCreate()
2424 .  steps - number of steps to use
2425 
2426    Level: intermediate
2427 
2428    Notes: Normally one does not call this and TSAdjointSolve() integrates back to the original timestep. One can call this
2429           so as to integrate back to less than the original timestep
2430 
2431 .keywords: TS, timestep, set, maximum, iterations
2432 
2433 .seealso: TSSetExactFinalTime()
2434 @*/
2435 PetscErrorCode  TSAdjointSetSteps(TS ts,PetscInt steps)
2436 {
2437   PetscFunctionBegin;
2438   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2439   PetscValidLogicalCollectiveInt(ts,steps,2);
2440   if (steps < 0) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_OUTOFRANGE,"Cannot step back a negative number of steps");
2441   if (steps > ts->total_steps) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_ARG_OUTOFRANGE,"Cannot step back more than the total number of forward steps");
2442   ts->adjoint_max_steps = steps;
2443   PetscFunctionReturn(0);
2444 }
2445 
2446 #undef __FUNCT__
2447 #define __FUNCT__ "TSSetCostGradients"
2448 /*@
2449    TSSetCostGradients - Sets the initial value of the gradients of the cost function w.r.t. initial conditions and w.r.t. the problem parameters
2450       for use by the TSAdjoint routines.
2451 
2452    Logically Collective on TS and Vec
2453 
2454    Input Parameters:
2455 +  ts - the TS context obtained from TSCreate()
2456 .  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
2457 -  mu - gradients with respect to the parameters, the number of entries in these vectors is the same as the number of parameters
2458 
2459    Level: beginner
2460 
2461    Notes: the entries in these vectors must be correctly initialized with the values lamda_i = df/dy|finaltime  mu_i = df/dp|finaltime
2462 
2463 .keywords: TS, timestep, set, sensitivity, initial conditions
2464 @*/
2465 PetscErrorCode  TSSetCostGradients(TS ts,PetscInt numcost,Vec *lambda,Vec *mu)
2466 {
2467   PetscFunctionBegin;
2468   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2469   PetscValidPointer(lambda,2);
2470   ts->vecs_sensi  = lambda;
2471   ts->vecs_sensip = mu;
2472   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");
2473   ts->numcost  = numcost;
2474   PetscFunctionReturn(0);
2475 }
2476 
2477 #undef __FUNCT__
2478 #define __FUNCT__ "TSAdjointSetRHSJacobian"
2479 /*@C
2480   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.
2481 
2482   Logically Collective on TS
2483 
2484   Input Parameters:
2485 + ts   - The TS context obtained from TSCreate()
2486 - func - The function
2487 
2488   Calling sequence of func:
2489 $ func (TS ts,PetscReal t,Vec y,Mat A,void *ctx);
2490 +   t - current timestep
2491 .   y - input vector (current ODE solution)
2492 .   A - output matrix
2493 -   ctx - [optional] user-defined function context
2494 
2495   Level: intermediate
2496 
2497   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
2498 
2499 .keywords: TS, sensitivity
2500 .seealso:
2501 @*/
2502 PetscErrorCode  TSAdjointSetRHSJacobian(TS ts,Mat Amat,PetscErrorCode (*func)(TS,PetscReal,Vec,Mat,void*),void *ctx)
2503 {
2504   PetscErrorCode ierr;
2505 
2506   PetscFunctionBegin;
2507   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
2508   if (Amat) PetscValidHeaderSpecific(Amat,MAT_CLASSID,2);
2509 
2510   ts->rhsjacobianp    = func;
2511   ts->rhsjacobianpctx = ctx;
2512   if(Amat) {
2513     ierr = PetscObjectReference((PetscObject)Amat);CHKERRQ(ierr);
2514     ierr = MatDestroy(&ts->Jacp);CHKERRQ(ierr);
2515     ts->Jacp = Amat;
2516   }
2517   PetscFunctionReturn(0);
2518 }
2519 
2520 #undef __FUNCT__
2521 #define __FUNCT__ "TSAdjointComputeRHSJacobian"
2522 /*@C
2523   TSAdjointComputeRHSJacobian - Runs the user-defined Jacobian function.
2524 
2525   Collective on TS
2526 
2527   Input Parameters:
2528 . ts   - The TS context obtained from TSCreate()
2529 
2530   Level: developer
2531 
2532 .keywords: TS, sensitivity
2533 .seealso: TSAdjointSetRHSJacobian()
2534 @*/
2535 PetscErrorCode  TSAdjointComputeRHSJacobian(TS ts,PetscReal t,Vec X,Mat Amat)
2536 {
2537   PetscErrorCode ierr;
2538 
2539   PetscFunctionBegin;
2540   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2541   PetscValidHeaderSpecific(X,VEC_CLASSID,3);
2542   PetscValidPointer(Amat,4);
2543 
2544   PetscStackPush("TS user JacobianP function for sensitivity analysis");
2545   ierr = (*ts->rhsjacobianp)(ts,t,X,Amat,ts->rhsjacobianpctx); CHKERRQ(ierr);
2546   PetscStackPop;
2547   PetscFunctionReturn(0);
2548 }
2549 
2550 #undef __FUNCT__
2551 #define __FUNCT__ "TSSetCostIntegrand"
2552 /*@C
2553     TSSetCostIntegrand - Sets the routine for evaluating the integral term in one or more cost functions
2554 
2555     Logically Collective on TS
2556 
2557     Input Parameters:
2558 +   ts - the TS context obtained from TSCreate()
2559 .   numcost - number of gradients to be computed, this is the number of cost functions
2560 .   rf - routine for evaluating the integrand function
2561 .   drdyf - function that computes the gradients of the r's with respect to y,NULL if not a function y
2562 .   drdpf - function that computes the gradients of the r's with respect to p, NULL if not a function of p
2563 .   fwd - flag indicating whether to evaluate cost integral in the forward run or the adjoint run
2564 -   ctx - [optional] user-defined context for private data for the function evaluation routine (may be NULL)
2565 
2566     Calling sequence of rf:
2567 $     rf(TS ts,PetscReal t,Vec y,Vec f[],void *ctx);
2568 
2569 +   t - current timestep
2570 .   y - input vector
2571 .   f - function result; one vector entry for each cost function
2572 -   ctx - [optional] user-defined function context
2573 
2574    Calling sequence of drdyf:
2575 $    PetscErroCode drdyf(TS ts,PetscReal t,Vec y,Vec *drdy,void *ctx);
2576 
2577    Calling sequence of drdpf:
2578 $    PetscErroCode drdpf(TS ts,PetscReal t,Vec y,Vec *drdp,void *ctx);
2579 
2580     Level: intermediate
2581 
2582     Notes: For optimization there is generally a single cost function, numcost = 1. For sensitivities there may be multiple cost functions
2583 
2584 .keywords: TS, sensitivity analysis, timestep, set, quadrature, function
2585 
2586 .seealso: TSAdjointSetRHSJacobian(),TSGetCostGradients(), TSSetCostGradients()
2587 @*/
2588 PetscErrorCode  TSSetCostIntegrand(TS ts,PetscInt numcost,PetscErrorCode (*rf)(TS,PetscReal,Vec,Vec,void*),
2589                                                           PetscErrorCode (*drdyf)(TS,PetscReal,Vec,Vec*,void*),
2590                                                           PetscErrorCode (*drdpf)(TS,PetscReal,Vec,Vec*,void*),
2591                                                           PetscBool fwd,void *ctx)
2592 {
2593   PetscErrorCode ierr;
2594 
2595   PetscFunctionBegin;
2596   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2597   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()");
2598   if (!ts->numcost) ts->numcost=numcost;
2599 
2600   ts->costintegralfwd  = fwd; /* Evaluate the cost integral in forward run if fwd is true */
2601   ierr                 = VecCreateSeq(PETSC_COMM_SELF,numcost,&ts->vec_costintegral);CHKERRQ(ierr);
2602   ierr                 = VecDuplicate(ts->vec_costintegral,&ts->vec_costintegrand);CHKERRQ(ierr);
2603   ts->costintegrand    = rf;
2604   ts->costintegrandctx = ctx;
2605   ts->drdyfunction     = drdyf;
2606   ts->drdpfunction     = drdpf;
2607   PetscFunctionReturn(0);
2608 }
2609 
2610 #undef __FUNCT__
2611 #define __FUNCT__ "TSGetCostIntegral"
2612 /*@
2613    TSGetCostIntegral - Returns the values of the integral term in the cost functions.
2614    It is valid to call the routine after a backward run.
2615 
2616    Not Collective
2617 
2618    Input Parameter:
2619 .  ts - the TS context obtained from TSCreate()
2620 
2621    Output Parameter:
2622 .  v - the vector containing the integrals for each cost function
2623 
2624    Level: intermediate
2625 
2626 .seealso: TSSetCostIntegrand()
2627 
2628 .keywords: TS, sensitivity analysis
2629 @*/
2630 PetscErrorCode  TSGetCostIntegral(TS ts,Vec *v)
2631 {
2632   PetscFunctionBegin;
2633   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2634   PetscValidPointer(v,2);
2635   *v = ts->vec_costintegral;
2636   PetscFunctionReturn(0);
2637 }
2638 
2639 #undef __FUNCT__
2640 #define __FUNCT__ "TSAdjointComputeCostIntegrand"
2641 /*@
2642    TSAdjointComputeCostIntegrand - Evaluates the integral function in the cost functions.
2643 
2644    Input Parameters:
2645 +  ts - the TS context
2646 .  t - current time
2647 -  y - state vector, i.e. current solution
2648 
2649    Output Parameter:
2650 .  q - vector of size numcost to hold the outputs
2651 
2652    Note:
2653    Most users should not need to explicitly call this routine, as it
2654    is used internally within the sensitivity analysis context.
2655 
2656    Level: developer
2657 
2658 .keywords: TS, compute
2659 
2660 .seealso: TSSetCostIntegrand()
2661 @*/
2662 PetscErrorCode TSAdjointComputeCostIntegrand(TS ts,PetscReal t,Vec y,Vec q)
2663 {
2664   PetscErrorCode ierr;
2665 
2666   PetscFunctionBegin;
2667   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2668   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2669   PetscValidHeaderSpecific(q,VEC_CLASSID,4);
2670 
2671   ierr = PetscLogEventBegin(TS_FunctionEval,ts,y,q,0);CHKERRQ(ierr);
2672   if (ts->costintegrand) {
2673     PetscStackPush("TS user integrand in the cost function");
2674     ierr = (*ts->costintegrand)(ts,t,y,q,ts->costintegrandctx);CHKERRQ(ierr);
2675     PetscStackPop;
2676   } else {
2677     ierr = VecZeroEntries(q);CHKERRQ(ierr);
2678   }
2679 
2680   ierr = PetscLogEventEnd(TS_FunctionEval,ts,y,q,0);CHKERRQ(ierr);
2681   PetscFunctionReturn(0);
2682 }
2683 
2684 #undef __FUNCT__
2685 #define __FUNCT__ "TSAdjointComputeDRDYFunction"
2686 /*@
2687   TSAdjointComputeDRDYFunction - Runs the user-defined DRDY function.
2688 
2689   Collective on TS
2690 
2691   Input Parameters:
2692 . ts   - The TS context obtained from TSCreate()
2693 
2694   Notes:
2695   TSAdjointComputeDRDYFunction() is typically used for sensitivity implementation,
2696   so most users would not generally call this routine themselves.
2697 
2698   Level: developer
2699 
2700 .keywords: TS, sensitivity
2701 .seealso: TSAdjointComputeDRDYFunction()
2702 @*/
2703 PetscErrorCode  TSAdjointComputeDRDYFunction(TS ts,PetscReal t,Vec y,Vec *drdy)
2704 {
2705   PetscErrorCode ierr;
2706 
2707   PetscFunctionBegin;
2708   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2709   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2710 
2711   PetscStackPush("TS user DRDY function for sensitivity analysis");
2712   ierr = (*ts->drdyfunction)(ts,t,y,drdy,ts->costintegrandctx); CHKERRQ(ierr);
2713   PetscStackPop;
2714   PetscFunctionReturn(0);
2715 }
2716 
2717 #undef __FUNCT__
2718 #define __FUNCT__ "TSAdjointComputeDRDPFunction"
2719 /*@
2720   TSAdjointComputeDRDPFunction - Runs the user-defined DRDP function.
2721 
2722   Collective on TS
2723 
2724   Input Parameters:
2725 . ts   - The TS context obtained from TSCreate()
2726 
2727   Notes:
2728   TSDRDPFunction() is typically used for sensitivity implementation,
2729   so most users would not generally call this routine themselves.
2730 
2731   Level: developer
2732 
2733 .keywords: TS, sensitivity
2734 .seealso: TSAdjointSetDRDPFunction()
2735 @*/
2736 PetscErrorCode  TSAdjointComputeDRDPFunction(TS ts,PetscReal t,Vec y,Vec *drdp)
2737 {
2738   PetscErrorCode ierr;
2739 
2740   PetscFunctionBegin;
2741   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2742   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2743 
2744   PetscStackPush("TS user DRDP function for sensitivity analysis");
2745   ierr = (*ts->drdpfunction)(ts,t,y,drdp,ts->costintegrandctx); CHKERRQ(ierr);
2746   PetscStackPop;
2747   PetscFunctionReturn(0);
2748 }
2749 
2750 #undef __FUNCT__
2751 #define __FUNCT__ "TSSetPreStep"
2752 /*@C
2753   TSSetPreStep - Sets the general-purpose function
2754   called once at the beginning of each time step.
2755 
2756   Logically Collective on TS
2757 
2758   Input Parameters:
2759 + ts   - The TS context obtained from TSCreate()
2760 - func - The function
2761 
2762   Calling sequence of func:
2763 . func (TS ts);
2764 
2765   Level: intermediate
2766 
2767   Note:
2768   If a step is rejected, TSStep() will call this routine again before each attempt.
2769   The last completed time step number can be queried using TSGetTimeStepNumber(), the
2770   size of the step being attempted can be obtained using TSGetTimeStep().
2771 
2772 .keywords: TS, timestep
2773 .seealso: TSSetPreStage(), TSSetPostStage(), TSSetPostStep(), TSStep()
2774 @*/
2775 PetscErrorCode  TSSetPreStep(TS ts, PetscErrorCode (*func)(TS))
2776 {
2777   PetscFunctionBegin;
2778   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
2779   ts->prestep = func;
2780   PetscFunctionReturn(0);
2781 }
2782 
2783 #undef __FUNCT__
2784 #define __FUNCT__ "TSPreStep"
2785 /*@
2786   TSPreStep - Runs the user-defined pre-step function.
2787 
2788   Collective on TS
2789 
2790   Input Parameters:
2791 . ts   - The TS context obtained from TSCreate()
2792 
2793   Notes:
2794   TSPreStep() is typically used within time stepping implementations,
2795   so most users would not generally call this routine themselves.
2796 
2797   Level: developer
2798 
2799 .keywords: TS, timestep
2800 .seealso: TSSetPreStep(), TSPreStage(), TSPostStage(), TSPostStep()
2801 @*/
2802 PetscErrorCode  TSPreStep(TS ts)
2803 {
2804   PetscErrorCode ierr;
2805 
2806   PetscFunctionBegin;
2807   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2808   if (ts->prestep) {
2809     PetscStackCallStandard((*ts->prestep),(ts));
2810   }
2811   PetscFunctionReturn(0);
2812 }
2813 
2814 #undef __FUNCT__
2815 #define __FUNCT__ "TSSetPreStage"
2816 /*@C
2817   TSSetPreStage - Sets the general-purpose function
2818   called once at the beginning of each stage.
2819 
2820   Logically Collective on TS
2821 
2822   Input Parameters:
2823 + ts   - The TS context obtained from TSCreate()
2824 - func - The function
2825 
2826   Calling sequence of func:
2827 . PetscErrorCode func(TS ts, PetscReal stagetime);
2828 
2829   Level: intermediate
2830 
2831   Note:
2832   There may be several stages per time step. If the solve for a given stage fails, the step may be rejected and retried.
2833   The time step number being computed can be queried using TSGetTimeStepNumber() and the total size of the step being
2834   attempted can be obtained using TSGetTimeStep(). The time at the start of the step is available via TSGetTime().
2835 
2836 .keywords: TS, timestep
2837 .seealso: TSSetPostStage(), TSSetPreStep(), TSSetPostStep(), TSGetApplicationContext()
2838 @*/
2839 PetscErrorCode  TSSetPreStage(TS ts, PetscErrorCode (*func)(TS,PetscReal))
2840 {
2841   PetscFunctionBegin;
2842   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
2843   ts->prestage = func;
2844   PetscFunctionReturn(0);
2845 }
2846 
2847 #undef __FUNCT__
2848 #define __FUNCT__ "TSSetPostStage"
2849 /*@C
2850   TSSetPostStage - Sets the general-purpose function
2851   called once at the end of each stage.
2852 
2853   Logically Collective on TS
2854 
2855   Input Parameters:
2856 + ts   - The TS context obtained from TSCreate()
2857 - func - The function
2858 
2859   Calling sequence of func:
2860 . PetscErrorCode func(TS ts, PetscReal stagetime, PetscInt stageindex, Vec* Y);
2861 
2862   Level: intermediate
2863 
2864   Note:
2865   There may be several stages per time step. If the solve for a given stage fails, the step may be rejected and retried.
2866   The time step number being computed can be queried using TSGetTimeStepNumber() and the total size of the step being
2867   attempted can be obtained using TSGetTimeStep(). The time at the start of the step is available via TSGetTime().
2868 
2869 .keywords: TS, timestep
2870 .seealso: TSSetPreStage(), TSSetPreStep(), TSSetPostStep(), TSGetApplicationContext()
2871 @*/
2872 PetscErrorCode  TSSetPostStage(TS ts, PetscErrorCode (*func)(TS,PetscReal,PetscInt,Vec*))
2873 {
2874   PetscFunctionBegin;
2875   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
2876   ts->poststage = func;
2877   PetscFunctionReturn(0);
2878 }
2879 
2880 #undef __FUNCT__
2881 #define __FUNCT__ "TSPreStage"
2882 /*@
2883   TSPreStage - Runs the user-defined pre-stage function set using TSSetPreStage()
2884 
2885   Collective on TS
2886 
2887   Input Parameters:
2888 . ts          - The TS context obtained from TSCreate()
2889   stagetime   - The absolute time of the current stage
2890 
2891   Notes:
2892   TSPreStage() is typically used within time stepping implementations,
2893   most users would not generally call this routine themselves.
2894 
2895   Level: developer
2896 
2897 .keywords: TS, timestep
2898 .seealso: TSPostStage(), TSSetPreStep(), TSPreStep(), TSPostStep()
2899 @*/
2900 PetscErrorCode  TSPreStage(TS ts, PetscReal stagetime)
2901 {
2902   PetscErrorCode ierr;
2903 
2904   PetscFunctionBegin;
2905   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2906   if (ts->prestage) {
2907     PetscStackCallStandard((*ts->prestage),(ts,stagetime));
2908   }
2909   PetscFunctionReturn(0);
2910 }
2911 
2912 #undef __FUNCT__
2913 #define __FUNCT__ "TSPostStage"
2914 /*@
2915   TSPostStage - Runs the user-defined post-stage function set using TSSetPostStage()
2916 
2917   Collective on TS
2918 
2919   Input Parameters:
2920 . ts          - The TS context obtained from TSCreate()
2921   stagetime   - The absolute time of the current stage
2922   stageindex  - Stage number
2923   Y           - Array of vectors (of size = total number
2924                 of stages) with the stage solutions
2925 
2926   Notes:
2927   TSPostStage() is typically used within time stepping implementations,
2928   most users would not generally call this routine themselves.
2929 
2930   Level: developer
2931 
2932 .keywords: TS, timestep
2933 .seealso: TSPreStage(), TSSetPreStep(), TSPreStep(), TSPostStep()
2934 @*/
2935 PetscErrorCode  TSPostStage(TS ts, PetscReal stagetime, PetscInt stageindex, Vec *Y)
2936 {
2937   PetscErrorCode ierr;
2938 
2939   PetscFunctionBegin;
2940   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2941   if (ts->poststage) {
2942     PetscStackCallStandard((*ts->poststage),(ts,stagetime,stageindex,Y));
2943   }
2944   PetscFunctionReturn(0);
2945 }
2946 
2947 #undef __FUNCT__
2948 #define __FUNCT__ "TSSetPostStep"
2949 /*@C
2950   TSSetPostStep - Sets the general-purpose function
2951   called once at the end of each time step.
2952 
2953   Logically Collective on TS
2954 
2955   Input Parameters:
2956 + ts   - The TS context obtained from TSCreate()
2957 - func - The function
2958 
2959   Calling sequence of func:
2960 $ func (TS ts);
2961 
2962   Level: intermediate
2963 
2964 .keywords: TS, timestep
2965 .seealso: TSSetPreStep(), TSSetPreStage(), TSGetTimeStep(), TSGetTimeStepNumber(), TSGetTime()
2966 @*/
2967 PetscErrorCode  TSSetPostStep(TS ts, PetscErrorCode (*func)(TS))
2968 {
2969   PetscFunctionBegin;
2970   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
2971   ts->poststep = func;
2972   PetscFunctionReturn(0);
2973 }
2974 
2975 #undef __FUNCT__
2976 #define __FUNCT__ "TSPostStep"
2977 /*@
2978   TSPostStep - Runs the user-defined post-step function.
2979 
2980   Collective on TS
2981 
2982   Input Parameters:
2983 . ts   - The TS context obtained from TSCreate()
2984 
2985   Notes:
2986   TSPostStep() is typically used within time stepping implementations,
2987   so most users would not generally call this routine themselves.
2988 
2989   Level: developer
2990 
2991 .keywords: TS, timestep
2992 @*/
2993 PetscErrorCode  TSPostStep(TS ts)
2994 {
2995   PetscErrorCode ierr;
2996 
2997   PetscFunctionBegin;
2998   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
2999   if (ts->poststep) {
3000     PetscStackCallStandard((*ts->poststep),(ts));
3001   }
3002   PetscFunctionReturn(0);
3003 }
3004 
3005 /* ------------ Routines to set performance monitoring options ----------- */
3006 
3007 #undef __FUNCT__
3008 #define __FUNCT__ "TSMonitorSet"
3009 /*@C
3010    TSMonitorSet - Sets an ADDITIONAL function that is to be used at every
3011    timestep to display the iteration's  progress.
3012 
3013    Logically Collective on TS
3014 
3015    Input Parameters:
3016 +  ts - the TS context obtained from TSCreate()
3017 .  monitor - monitoring routine
3018 .  mctx - [optional] user-defined context for private data for the
3019              monitor routine (use NULL if no context is desired)
3020 -  monitordestroy - [optional] routine that frees monitor context
3021           (may be NULL)
3022 
3023    Calling sequence of monitor:
3024 $    int monitor(TS ts,PetscInt steps,PetscReal time,Vec u,void *mctx)
3025 
3026 +    ts - the TS context
3027 .    steps - iteration number (after the final time step the monitor routine may be called with a step of -1, this indicates the solution has been interpolated to this time)
3028 .    time - current time
3029 .    u - current iterate
3030 -    mctx - [optional] monitoring context
3031 
3032    Notes:
3033    This routine adds an additional monitor to the list of monitors that
3034    already has been loaded.
3035 
3036    Fortran notes: Only a single monitor function can be set for each TS object
3037 
3038    Level: intermediate
3039 
3040 .keywords: TS, timestep, set, monitor
3041 
3042 .seealso: TSMonitorDefault(), TSMonitorCancel()
3043 @*/
3044 PetscErrorCode  TSMonitorSet(TS ts,PetscErrorCode (*monitor)(TS,PetscInt,PetscReal,Vec,void*),void *mctx,PetscErrorCode (*mdestroy)(void**))
3045 {
3046   PetscFunctionBegin;
3047   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3048   if (ts->numbermonitors >= MAXTSMONITORS) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Too many monitors set");
3049   ts->monitor[ts->numbermonitors]          = monitor;
3050   ts->monitordestroy[ts->numbermonitors]   = mdestroy;
3051   ts->monitorcontext[ts->numbermonitors++] = (void*)mctx;
3052   PetscFunctionReturn(0);
3053 }
3054 
3055 #undef __FUNCT__
3056 #define __FUNCT__ "TSMonitorCancel"
3057 /*@C
3058    TSMonitorCancel - Clears all the monitors that have been set on a time-step object.
3059 
3060    Logically Collective on TS
3061 
3062    Input Parameters:
3063 .  ts - the TS context obtained from TSCreate()
3064 
3065    Notes:
3066    There is no way to remove a single, specific monitor.
3067 
3068    Level: intermediate
3069 
3070 .keywords: TS, timestep, set, monitor
3071 
3072 .seealso: TSMonitorDefault(), TSMonitorSet()
3073 @*/
3074 PetscErrorCode  TSMonitorCancel(TS ts)
3075 {
3076   PetscErrorCode ierr;
3077   PetscInt       i;
3078 
3079   PetscFunctionBegin;
3080   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3081   for (i=0; i<ts->numbermonitors; i++) {
3082     if (ts->monitordestroy[i]) {
3083       ierr = (*ts->monitordestroy[i])(&ts->monitorcontext[i]);CHKERRQ(ierr);
3084     }
3085   }
3086   ts->numbermonitors = 0;
3087   PetscFunctionReturn(0);
3088 }
3089 
3090 #undef __FUNCT__
3091 #define __FUNCT__ "TSMonitorDefault"
3092 /*@
3093    TSMonitorDefault - Sets the Default monitor
3094 
3095    Level: intermediate
3096 
3097 .keywords: TS, set, monitor
3098 
3099 .seealso:  TSMonitorSet()
3100 @*/
3101 PetscErrorCode TSMonitorDefault(TS ts,PetscInt step,PetscReal ptime,Vec v,void *dummy)
3102 {
3103   PetscErrorCode ierr;
3104   PetscViewer    viewer =  (PetscViewer) dummy;
3105   PetscBool      iascii,ibinary;
3106 
3107   PetscFunctionBegin;
3108   PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,4);
3109   ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERASCII,&iascii);CHKERRQ(ierr);
3110   ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERBINARY,&ibinary);CHKERRQ(ierr);
3111   if (iascii) {
3112     ierr = PetscViewerASCIIAddTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr);
3113     if (step == -1){ /* this indicates it is an interpolated solution */
3114       ierr = PetscViewerASCIIPrintf(viewer,"Interpolated solution at time %g between steps %D and %D\n",(double)ptime,ts->steps-1,ts->steps);CHKERRQ(ierr);
3115     } else {
3116       ierr = PetscViewerASCIIPrintf(viewer,"%D TS dt %g time %g%s",step,(double)ts->time_step,(double)ptime,ts->steprollback ? " (r)\n" : "\n");CHKERRQ(ierr);
3117     }
3118     ierr = PetscViewerASCIISubtractTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr);
3119   } else if (ibinary) {
3120     PetscMPIInt rank;
3121     ierr = MPI_Comm_rank(PetscObjectComm((PetscObject)viewer),&rank);CHKERRQ(ierr);
3122     if (!rank) {
3123       ierr = PetscRealView(1,&ptime,viewer);CHKERRQ(ierr);
3124     } else {
3125       ierr = PetscRealView(0,&ptime,viewer);CHKERRQ(ierr);
3126     }
3127   }
3128   PetscFunctionReturn(0);
3129 }
3130 
3131 #undef __FUNCT__
3132 #define __FUNCT__ "TSAdjointMonitorSet"
3133 /*@C
3134    TSAdjointMonitorSet - Sets an ADDITIONAL function that is to be used at every
3135    timestep to display the iteration's  progress.
3136 
3137    Logically Collective on TS
3138 
3139    Input Parameters:
3140 +  ts - the TS context obtained from TSCreate()
3141 .  adjointmonitor - monitoring routine
3142 .  adjointmctx - [optional] user-defined context for private data for the
3143              monitor routine (use NULL if no context is desired)
3144 -  adjointmonitordestroy - [optional] routine that frees monitor context
3145           (may be NULL)
3146 
3147    Calling sequence of monitor:
3148 $    int adjointmonitor(TS ts,PetscInt steps,PetscReal time,Vec u,PetscInt numcost,Vec *lambda, Vec *mu,void *adjointmctx)
3149 
3150 +    ts - the TS context
3151 .    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
3152                                been interpolated to)
3153 .    time - current time
3154 .    u - current iterate
3155 .    numcost - number of cost functionos
3156 .    lambda - sensitivities to initial conditions
3157 .    mu - sensitivities to parameters
3158 -    adjointmctx - [optional] adjoint monitoring context
3159 
3160    Notes:
3161    This routine adds an additional monitor to the list of monitors that
3162    already has been loaded.
3163 
3164    Fortran notes: Only a single monitor function can be set for each TS object
3165 
3166    Level: intermediate
3167 
3168 .keywords: TS, timestep, set, adjoint, monitor
3169 
3170 .seealso: TSAdjointMonitorCancel()
3171 @*/
3172 PetscErrorCode  TSAdjointMonitorSet(TS ts,PetscErrorCode (*adjointmonitor)(TS,PetscInt,PetscReal,Vec,PetscInt,Vec*,Vec*,void*),void *adjointmctx,PetscErrorCode (*adjointmdestroy)(void**))
3173 {
3174   PetscFunctionBegin;
3175   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3176   if (ts->numberadjointmonitors >= MAXTSMONITORS) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Too many adjoint monitors set");
3177   ts->adjointmonitor[ts->numberadjointmonitors]          = adjointmonitor;
3178   ts->adjointmonitordestroy[ts->numberadjointmonitors]   = adjointmdestroy;
3179   ts->adjointmonitorcontext[ts->numberadjointmonitors++] = (void*)adjointmctx;
3180   PetscFunctionReturn(0);
3181 }
3182 
3183 #undef __FUNCT__
3184 #define __FUNCT__ "TSAdjointMonitorCancel"
3185 /*@C
3186    TSAdjointMonitorCancel - Clears all the adjoint monitors that have been set on a time-step object.
3187 
3188    Logically Collective on TS
3189 
3190    Input Parameters:
3191 .  ts - the TS context obtained from TSCreate()
3192 
3193    Notes:
3194    There is no way to remove a single, specific monitor.
3195 
3196    Level: intermediate
3197 
3198 .keywords: TS, timestep, set, adjoint, monitor
3199 
3200 .seealso: TSAdjointMonitorSet()
3201 @*/
3202 PetscErrorCode  TSAdjointMonitorCancel(TS ts)
3203 {
3204   PetscErrorCode ierr;
3205   PetscInt       i;
3206 
3207   PetscFunctionBegin;
3208   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3209   for (i=0; i<ts->numberadjointmonitors; i++) {
3210     if (ts->adjointmonitordestroy[i]) {
3211       ierr = (*ts->adjointmonitordestroy[i])(&ts->adjointmonitorcontext[i]);CHKERRQ(ierr);
3212     }
3213   }
3214   ts->numberadjointmonitors = 0;
3215   PetscFunctionReturn(0);
3216 }
3217 
3218 #undef __FUNCT__
3219 #define __FUNCT__ "TSAdjointMonitorDefault"
3220 /*@
3221    TSAdjointMonitorDefault - Sets the Default monitor
3222 
3223    Level: intermediate
3224 
3225 .keywords: TS, set, monitor
3226 
3227 .seealso: TSAdjointMonitorSet()
3228 @*/
3229 PetscErrorCode TSAdjointMonitorDefault(TS ts,PetscInt step,PetscReal ptime,Vec v,PetscInt numcost,Vec *lambda,Vec *mu,void *dummy)
3230 {
3231   PetscErrorCode ierr;
3232   PetscViewer    viewer =  (PetscViewer) dummy;
3233 
3234   PetscFunctionBegin;
3235   PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,4);
3236   ierr = PetscViewerASCIIAddTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr);
3237   ierr = PetscViewerASCIIPrintf(viewer,"%D TS dt %g time %g%s",step,(double)ts->time_step,(double)ptime,ts->steprollback ? " (r)\n" : "\n");CHKERRQ(ierr);
3238   ierr = PetscViewerASCIISubtractTab(viewer,((PetscObject)ts)->tablevel);CHKERRQ(ierr);
3239   PetscFunctionReturn(0);
3240 }
3241 
3242 #undef __FUNCT__
3243 #define __FUNCT__ "TSSetRetainStages"
3244 /*@
3245    TSSetRetainStages - Request that all stages in the upcoming step be stored so that interpolation will be available.
3246 
3247    Logically Collective on TS
3248 
3249    Input Argument:
3250 .  ts - time stepping context
3251 
3252    Output Argument:
3253 .  flg - PETSC_TRUE or PETSC_FALSE
3254 
3255    Level: intermediate
3256 
3257 .keywords: TS, set
3258 
3259 .seealso: TSInterpolate(), TSSetPostStep()
3260 @*/
3261 PetscErrorCode TSSetRetainStages(TS ts,PetscBool flg)
3262 {
3263   PetscFunctionBegin;
3264   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3265   ts->retain_stages = flg;
3266   PetscFunctionReturn(0);
3267 }
3268 
3269 #undef __FUNCT__
3270 #define __FUNCT__ "TSInterpolate"
3271 /*@
3272    TSInterpolate - Interpolate the solution computed during the previous step to an arbitrary location in the interval
3273 
3274    Collective on TS
3275 
3276    Input Argument:
3277 +  ts - time stepping context
3278 -  t - time to interpolate to
3279 
3280    Output Argument:
3281 .  U - state at given time
3282 
3283    Notes:
3284    The user should call TSSetRetainStages() before taking a step in which interpolation will be requested.
3285 
3286    Level: intermediate
3287 
3288    Developer Notes:
3289    TSInterpolate() and the storing of previous steps/stages should be generalized to support delay differential equations and continuous adjoints.
3290 
3291 .keywords: TS, set
3292 
3293 .seealso: TSSetRetainStages(), TSSetPostStep()
3294 @*/
3295 PetscErrorCode TSInterpolate(TS ts,PetscReal t,Vec U)
3296 {
3297   PetscErrorCode ierr;
3298 
3299   PetscFunctionBegin;
3300   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3301   PetscValidHeaderSpecific(U,VEC_CLASSID,3);
3302   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);
3303   if (!ts->ops->interpolate) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"%s does not provide interpolation",((PetscObject)ts)->type_name);
3304   ierr = (*ts->ops->interpolate)(ts,t,U);CHKERRQ(ierr);
3305   PetscFunctionReturn(0);
3306 }
3307 
3308 #undef __FUNCT__
3309 #define __FUNCT__ "TSStep"
3310 /*@
3311    TSStep - Steps one time step
3312 
3313    Collective on TS
3314 
3315    Input Parameter:
3316 .  ts - the TS context obtained from TSCreate()
3317 
3318    Level: developer
3319 
3320    Notes:
3321    The public interface for the ODE/DAE solvers is TSSolve(), you should almost for sure be using that routine and not this routine.
3322 
3323    The hook set using TSSetPreStep() is called before each attempt to take the step. In general, the time step size may
3324    be changed due to adaptive error controller or solve failures. Note that steps may contain multiple stages.
3325 
3326    This may over-step the final time provided in TSSetDuration() depending on the time-step used. TSSolve() interpolates to exactly the
3327    time provided in TSSetDuration(). One can use TSInterpolate() to determine an interpolated solution within the final timestep.
3328 
3329 .keywords: TS, timestep, solve
3330 
3331 .seealso: TSCreate(), TSSetUp(), TSDestroy(), TSSolve(), TSSetPreStep(), TSSetPreStage(), TSSetPostStage(), TSInterpolate()
3332 @*/
3333 PetscErrorCode  TSStep(TS ts)
3334 {
3335   DM               dm;
3336   PetscErrorCode   ierr;
3337   static PetscBool cite = PETSC_FALSE;
3338 
3339   PetscFunctionBegin;
3340   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
3341   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()");
3342 
3343   ierr = PetscCitationsRegister("@techreport{tspaper,\n"
3344                                 "  title       = {{PETSc/TS}: A Modern Scalable {DAE/ODE} Solver Library},\n"
3345                                 "  author      = {Shrirang Abhyankar and Jed Brown and Emil Constantinescu and Debojyoti Ghosh and Barry F. Smith},\n"
3346                                 "  type        = {Preprint},\n"
3347                                 "  number      = {ANL/MCS-P5061-0114},\n"
3348                                 "  institution = {Argonne National Laboratory},\n"
3349                                 "  year        = {2014}\n}\n",&cite);CHKERRQ(ierr);
3350 
3351   ierr = TSGetDM(ts, &dm);CHKERRQ(ierr);
3352   ierr = TSSetUp(ts);CHKERRQ(ierr);
3353   ierr = TSTrajectorySetUp(ts->trajectory,ts);CHKERRQ(ierr);
3354 
3355   ts->reason = TS_CONVERGED_ITERATING;
3356   ts->ptime_prev = ts->ptime;
3357   ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr);
3358 
3359   if (!ts->ops->step) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"TSStep not implemented for type '%s'",((PetscObject)ts)->type_name);
3360   ierr = PetscLogEventBegin(TS_Step,ts,0,0,0);CHKERRQ(ierr);
3361   ierr = (*ts->ops->step)(ts);CHKERRQ(ierr);
3362   ierr = PetscLogEventEnd(TS_Step,ts,0,0,0);CHKERRQ(ierr);
3363 
3364   ts->time_step_prev = ts->ptime - ts->ptime_prev;
3365   ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr);
3366 
3367   if (ts->reason < 0) {
3368     if (ts->errorifstepfailed) {
3369       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]);
3370       else SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s",TSConvergedReasons[ts->reason]);
3371     }
3372   } else if (!ts->reason) {
3373     if (ts->steps >= ts->max_steps)     ts->reason = TS_CONVERGED_ITS;
3374     else if (ts->ptime >= ts->max_time) ts->reason = TS_CONVERGED_TIME;
3375   }
3376   ts->total_steps++;
3377   ts->steprollback = PETSC_FALSE;
3378   PetscFunctionReturn(0);
3379 }
3380 
3381 #undef __FUNCT__
3382 #define __FUNCT__ "TSAdjointStep"
3383 /*@
3384    TSAdjointStep - Steps one time step backward in the adjoint run
3385 
3386    Collective on TS
3387 
3388    Input Parameter:
3389 .  ts - the TS context obtained from TSCreate()
3390 
3391    Level: intermediate
3392 
3393 .keywords: TS, adjoint, step
3394 
3395 .seealso: TSAdjointSetUp(), TSAdjointSolve()
3396 @*/
3397 PetscErrorCode  TSAdjointStep(TS ts)
3398 {
3399   DM               dm;
3400   PetscErrorCode   ierr;
3401 
3402   PetscFunctionBegin;
3403   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
3404   ierr = TSGetDM(ts, &dm);CHKERRQ(ierr);
3405   ierr = TSAdjointSetUp(ts);CHKERRQ(ierr);
3406 
3407   ts->reason = TS_CONVERGED_ITERATING;
3408   ts->ptime_prev = ts->ptime;
3409   ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr);
3410   ierr = VecViewFromOptions(ts->vec_sol,(PetscObject)ts, "-ts_view_solution");CHKERRQ(ierr);
3411 
3412   ierr = PetscLogEventBegin(TS_AdjointStep,ts,0,0,0);CHKERRQ(ierr);
3413   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);
3414   ierr = (*ts->ops->adjointstep)(ts);CHKERRQ(ierr);
3415   ierr = PetscLogEventEnd(TS_AdjointStep,ts,0,0,0);CHKERRQ(ierr);
3416 
3417   ts->time_step_prev = ts->ptime - ts->ptime_prev;
3418   ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr);
3419 
3420   if (ts->reason < 0) {
3421     if (ts->errorifstepfailed) {
3422       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]);
3423       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]);
3424       else SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_NOT_CONVERGED,"TSStep has failed due to %s",TSConvergedReasons[ts->reason]);
3425     }
3426   } else if (!ts->reason) {
3427     if (ts->steps >= ts->adjoint_max_steps)     ts->reason = TS_CONVERGED_ITS;
3428   }
3429   ts->total_steps--;
3430   PetscFunctionReturn(0);
3431 }
3432 
3433 #undef __FUNCT__
3434 #define __FUNCT__ "TSEvaluateStep"
3435 /*@
3436    TSEvaluateStep - Evaluate the solution at the end of a time step with a given order of accuracy.
3437 
3438    Collective on TS
3439 
3440    Input Arguments:
3441 +  ts - time stepping context
3442 .  order - desired order of accuracy
3443 -  done - whether the step was evaluated at this order (pass NULL to generate an error if not available)
3444 
3445    Output Arguments:
3446 .  U - state at the end of the current step
3447 
3448    Level: advanced
3449 
3450    Notes:
3451    This function cannot be called until all stages have been evaluated.
3452    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.
3453 
3454 .seealso: TSStep(), TSAdapt
3455 @*/
3456 PetscErrorCode TSEvaluateStep(TS ts,PetscInt order,Vec U,PetscBool *done)
3457 {
3458   PetscErrorCode ierr;
3459 
3460   PetscFunctionBegin;
3461   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3462   PetscValidType(ts,1);
3463   PetscValidHeaderSpecific(U,VEC_CLASSID,3);
3464   if (!ts->ops->evaluatestep) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"TSEvaluateStep not implemented for type '%s'",((PetscObject)ts)->type_name);
3465   ierr = (*ts->ops->evaluatestep)(ts,order,U,done);CHKERRQ(ierr);
3466   PetscFunctionReturn(0);
3467 }
3468 
3469 #undef __FUNCT__
3470 #define __FUNCT__ "TSForwardCostIntegral"
3471 /*@
3472  TSForwardCostIntegral - Evaluate the cost integral in the forward run.
3473 
3474  Collective on TS
3475 
3476  Input Arguments:
3477  .  ts - time stepping context
3478 
3479  Level: advanced
3480 
3481  Notes:
3482  This function cannot be called until TSStep() has been completed.
3483 
3484  .seealso: TSSolve(), TSAdjointCostIntegral()
3485  @*/
3486 PetscErrorCode TSForwardCostIntegral(TS ts)
3487 {
3488     PetscErrorCode ierr;
3489     PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3490     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);
3491     ierr = (*ts->ops->forwardintegral)(ts);CHKERRQ(ierr);
3492     PetscFunctionReturn(0);
3493 }
3494 
3495 #undef __FUNCT__
3496 #define __FUNCT__ "TSSolve"
3497 /*@
3498    TSSolve - Steps the requested number of timesteps.
3499 
3500    Collective on TS
3501 
3502    Input Parameter:
3503 +  ts - the TS context obtained from TSCreate()
3504 -  u - the solution vector  (can be null if TSSetSolution() was used and TSSetExactFinalTime(ts,TS_EXACTFINALTIME_MATCHSTEP) was not used,
3505                              otherwise must contain the initial conditions and will contain the solution at the final requested time
3506 
3507    Level: beginner
3508 
3509    Notes:
3510    The final time returned by this function may be different from the time of the internally
3511    held state accessible by TSGetSolution() and TSGetTime() because the method may have
3512    stepped over the final time.
3513 
3514 .keywords: TS, timestep, solve
3515 
3516 .seealso: TSCreate(), TSSetSolution(), TSStep(), TSGetTime(), TSGetSolveTime()
3517 @*/
3518 PetscErrorCode TSSolve(TS ts,Vec u)
3519 {
3520   Vec               solution;
3521   PetscErrorCode    ierr;
3522 
3523   PetscFunctionBegin;
3524   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3525   if (u) PetscValidHeaderSpecific(u,VEC_CLASSID,2);
3526   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()");
3527   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");
3528 
3529   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 */
3530     PetscValidHeaderSpecific(u,VEC_CLASSID,2);
3531     if (!ts->vec_sol || u == ts->vec_sol) {
3532       ierr = VecDuplicate(u,&solution);CHKERRQ(ierr);
3533       ierr = TSSetSolution(ts,solution);CHKERRQ(ierr);
3534       ierr = VecDestroy(&solution);CHKERRQ(ierr); /* grant ownership */
3535     }
3536     ierr = VecCopy(u,ts->vec_sol);CHKERRQ(ierr);
3537   } else if (u) {
3538     ierr = TSSetSolution(ts,u);CHKERRQ(ierr);
3539   }
3540   ierr = TSSetUp(ts);CHKERRQ(ierr);
3541   ierr = TSTrajectorySetUp(ts->trajectory,ts);CHKERRQ(ierr);
3542   /* reset time step and iteration counters */
3543   ts->steps             = 0;
3544   ts->ksp_its           = 0;
3545   ts->snes_its          = 0;
3546   ts->num_snes_failures = 0;
3547   ts->reject            = 0;
3548   ts->reason            = TS_CONVERGED_ITERATING;
3549 
3550   ierr = TSViewFromOptions(ts,NULL,"-ts_view_pre");CHKERRQ(ierr);
3551   {
3552     DM dm;
3553     ierr = TSGetDM(ts, &dm);CHKERRQ(ierr);
3554     ierr = DMSetOutputSequenceNumber(dm, ts->steps, ts->ptime);CHKERRQ(ierr);
3555   }
3556 
3557   if (ts->ops->solve) {         /* This private interface is transitional and should be removed when all implementations are updated. */
3558     ierr = (*ts->ops->solve)(ts);CHKERRQ(ierr);
3559     ierr = VecCopy(ts->vec_sol,u);CHKERRQ(ierr);
3560     ts->solvetime = ts->ptime;
3561   } else {
3562     /* steps the requested number of timesteps. */
3563     if (ts->steps >= ts->max_steps)     ts->reason = TS_CONVERGED_ITS;
3564     else if (ts->ptime >= ts->max_time) ts->reason = TS_CONVERGED_TIME;
3565     ierr = TSTrajectorySet(ts->trajectory,ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr);
3566     if(ts->event) {
3567       ierr = TSEventMonitorInitialize(ts);CHKERRQ(ierr);
3568     }
3569     while (!ts->reason) {
3570       ierr = TSMonitor(ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr);
3571       ierr = TSStep(ts);CHKERRQ(ierr);
3572       if (!ts->steprollback && ts->vec_costintegral && ts->costintegralfwd) {
3573         ierr = TSForwardCostIntegral(ts);CHKERRQ(ierr);
3574       }
3575       if (ts->event) {
3576         ierr = TSEventMonitor(ts);CHKERRQ(ierr);
3577       }
3578       if(!ts->steprollback) {
3579         ierr = TSTrajectorySet(ts->trajectory,ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr);
3580         ierr = TSPostStep(ts);CHKERRQ(ierr);
3581       }
3582     }
3583     ierr = TSMonitor(ts,ts->steps,ts->ptime,ts->vec_sol);CHKERRQ(ierr);
3584     if (ts->exact_final_time == TS_EXACTFINALTIME_INTERPOLATE && ts->ptime > ts->max_time) {
3585       ierr = TSInterpolate(ts,ts->max_time,u);CHKERRQ(ierr);
3586       ts->solvetime = ts->max_time;
3587       solution = u;
3588       ierr = TSMonitor(ts,-1,ts->solvetime,solution);CHKERRQ(ierr);
3589     } else {
3590       if (u) {ierr = VecCopy(ts->vec_sol,u);CHKERRQ(ierr);}
3591       ts->solvetime = ts->ptime;
3592       solution = ts->vec_sol;
3593     }
3594   }
3595 
3596   ierr = TSViewFromOptions(ts,NULL,"-ts_view");CHKERRQ(ierr);
3597   ierr = VecViewFromOptions(solution,NULL,"-ts_view_solution");CHKERRQ(ierr);
3598   ierr = PetscObjectSAWsBlock((PetscObject)ts);CHKERRQ(ierr);
3599   if (ts->adjoint_solve) {
3600     ierr = TSAdjointSolve(ts);CHKERRQ(ierr);
3601   }
3602   PetscFunctionReturn(0);
3603 }
3604 
3605 #undef __FUNCT__
3606 #define __FUNCT__ "TSAdjointCostIntegral"
3607 /*@
3608  TSAdjointCostIntegral - Evaluate the cost integral in the adjoint run.
3609 
3610  Collective on TS
3611 
3612  Input Arguments:
3613  .  ts - time stepping context
3614 
3615  Level: advanced
3616 
3617  Notes:
3618  This function cannot be called until TSAdjointStep() has been completed.
3619 
3620  .seealso: TSAdjointSolve(), TSAdjointStep
3621  @*/
3622 PetscErrorCode TSAdjointCostIntegral(TS ts)
3623 {
3624     PetscErrorCode ierr;
3625     PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3626     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);
3627     ierr = (*ts->ops->adjointintegral)(ts);CHKERRQ(ierr);
3628     PetscFunctionReturn(0);
3629 }
3630 
3631 #undef __FUNCT__
3632 #define __FUNCT__ "TSAdjointSolve"
3633 /*@
3634    TSAdjointSolve - Solves the discrete ajoint problem for an ODE/DAE
3635 
3636    Collective on TS
3637 
3638    Input Parameter:
3639 .  ts - the TS context obtained from TSCreate()
3640 
3641    Options Database:
3642 . -ts_adjoint_view_solution <viewerinfo> - views the first gradient with respect to the initial conditions
3643 
3644    Level: intermediate
3645 
3646    Notes:
3647    This must be called after a call to TSSolve() that solves the forward problem
3648 
3649    By default this will integrate back to the initial time, one can use TSAdjointSetSteps() to step back to a later time
3650 
3651 .keywords: TS, timestep, solve
3652 
3653 .seealso: TSCreate(), TSSetCostGradients(), TSSetSolution(), TSAdjointStep()
3654 @*/
3655 PetscErrorCode TSAdjointSolve(TS ts)
3656 {
3657   PetscErrorCode    ierr;
3658 
3659   PetscFunctionBegin;
3660   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3661   ierr = TSAdjointSetUp(ts);CHKERRQ(ierr);
3662 
3663   /* reset time step and iteration counters */
3664   ts->steps             = 0;
3665   ts->ksp_its           = 0;
3666   ts->snes_its          = 0;
3667   ts->num_snes_failures = 0;
3668   ts->reject            = 0;
3669   ts->reason            = TS_CONVERGED_ITERATING;
3670 
3671   if (!ts->adjoint_max_steps) ts->adjoint_max_steps = ts->total_steps;
3672 
3673   if (ts->steps >= ts->adjoint_max_steps)     ts->reason = TS_CONVERGED_ITS;
3674   while (!ts->reason) {
3675     ierr = TSTrajectoryGet(ts->trajectory,ts,ts->total_steps,&ts->ptime);CHKERRQ(ierr);
3676     ierr = TSAdjointMonitor(ts,ts->total_steps,ts->ptime,ts->vec_sol,ts->numcost,ts->vecs_sensi,ts->vecs_sensip);CHKERRQ(ierr);
3677     if (ts->event) {
3678       ierr = TSAdjointEventMonitor(ts);CHKERRQ(ierr);
3679     }
3680     ierr = TSAdjointStep(ts);CHKERRQ(ierr);
3681     if (ts->vec_costintegral && !ts->costintegralfwd) {
3682       ierr = TSAdjointCostIntegral(ts);CHKERRQ(ierr);
3683     }
3684   }
3685   ierr = TSTrajectoryGet(ts->trajectory,ts,ts->total_steps,&ts->ptime);CHKERRQ(ierr);
3686   ierr = TSAdjointMonitor(ts,ts->total_steps,ts->ptime,ts->vec_sol,ts->numcost,ts->vecs_sensi,ts->vecs_sensip);CHKERRQ(ierr);
3687   ts->solvetime = ts->ptime;
3688   ierr = TSTrajectoryViewFromOptions(ts->trajectory,NULL,"-ts_trajectory_view");CHKERRQ(ierr);
3689   ierr = VecViewFromOptions(ts->vecs_sensi[0],(PetscObject) ts, "-ts_adjoint_view_solution");CHKERRQ(ierr);
3690   PetscFunctionReturn(0);
3691 }
3692 
3693 #undef __FUNCT__
3694 #define __FUNCT__ "TSMonitor"
3695 /*@C
3696    TSMonitor - Runs all user-provided monitor routines set using TSMonitorSet()
3697 
3698    Collective on TS
3699 
3700    Input Parameters:
3701 +  ts - time stepping context obtained from TSCreate()
3702 .  step - step number that has just completed
3703 .  ptime - model time of the state
3704 -  u - state at the current model time
3705 
3706    Notes:
3707    TSMonitor() is typically used automatically within the time stepping implementations.
3708    Users would almost never call this routine directly.
3709 
3710    A step of -1 indicates that the monitor is being called on a solution obtained by interpolating from computed solutions
3711 
3712    Level: developer
3713 
3714 .keywords: TS, timestep
3715 @*/
3716 PetscErrorCode TSMonitor(TS ts,PetscInt step,PetscReal ptime,Vec u)
3717 {
3718   PetscErrorCode ierr;
3719   PetscInt       i,n = ts->numbermonitors;
3720 
3721   PetscFunctionBegin;
3722   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3723   PetscValidHeaderSpecific(u,VEC_CLASSID,4);
3724   ierr = VecLockPush(u);CHKERRQ(ierr);
3725   for (i=0; i<n; i++) {
3726     ierr = (*ts->monitor[i])(ts,step,ptime,u,ts->monitorcontext[i]);CHKERRQ(ierr);
3727   }
3728   ierr = VecLockPop(u);CHKERRQ(ierr);
3729   PetscFunctionReturn(0);
3730 }
3731 
3732 #undef __FUNCT__
3733 #define __FUNCT__ "TSAdjointMonitor"
3734 /*@C
3735    TSAdjointMonitor - Runs all user-provided adjoint monitor routines set using TSAdjointMonitorSet()
3736 
3737    Collective on TS
3738 
3739    Input Parameters:
3740 +  ts - time stepping context obtained from TSCreate()
3741 .  step - step number that has just completed
3742 .  ptime - model time of the state
3743 .  u - state at the current model time
3744 .  numcost - number of cost functions (dimension of lambda  or mu)
3745 .  lambda - vectors containing the gradients of the cost functions with respect to the ODE/DAE solution variables
3746 -  mu - vectors containing the gradients of the cost functions with respect to the problem parameters
3747 
3748    Notes:
3749    TSAdjointMonitor() is typically used automatically within the time stepping implementations.
3750    Users would almost never call this routine directly.
3751 
3752    Level: developer
3753 
3754 .keywords: TS, timestep
3755 @*/
3756 PetscErrorCode TSAdjointMonitor(TS ts,PetscInt step,PetscReal ptime,Vec u,PetscInt numcost,Vec *lambda, Vec *mu)
3757 {
3758   PetscErrorCode ierr;
3759   PetscInt       i,n = ts->numberadjointmonitors;
3760 
3761   PetscFunctionBegin;
3762   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3763   PetscValidHeaderSpecific(u,VEC_CLASSID,4);
3764   ierr = VecLockPush(u);CHKERRQ(ierr);
3765   for (i=0; i<n; i++) {
3766     ierr = (*ts->adjointmonitor[i])(ts,step,ptime,u,numcost,lambda,mu,ts->adjointmonitorcontext[i]);CHKERRQ(ierr);
3767   }
3768   ierr = VecLockPop(u);CHKERRQ(ierr);
3769   PetscFunctionReturn(0);
3770 }
3771 
3772 /* ------------------------------------------------------------------------*/
3773 #undef __FUNCT__
3774 #define __FUNCT__ "TSMonitorLGCtxCreate"
3775 /*@C
3776    TSMonitorLGCtxCreate - Creates a TSMonitorLGCtx context for use with
3777    TS to monitor the solution process graphically in various ways
3778 
3779    Collective on TS
3780 
3781    Input Parameters:
3782 +  host - the X display to open, or null for the local machine
3783 .  label - the title to put in the title bar
3784 .  x, y - the screen coordinates of the upper left coordinate of the window
3785 .  m, n - the screen width and height in pixels
3786 -  howoften - if positive then determines the frequency of the plotting, if -1 then only at the final time
3787 
3788    Output Parameter:
3789 .  ctx - the context
3790 
3791    Options Database Key:
3792 +  -ts_monitor_lg_timestep - automatically sets line graph monitor
3793 .  -ts_monitor_lg_solution - monitor the solution (or certain values of the solution by calling TSMonitorLGSetDisplayVariables() or TSMonitorLGCtxSetDisplayVariables())
3794 .  -ts_monitor_lg_error -  monitor the error
3795 .  -ts_monitor_lg_ksp_iterations - monitor the number of KSP iterations needed for each timestep
3796 .  -ts_monitor_lg_snes_iterations - monitor the number of SNES iterations needed for each timestep
3797 -  -lg_use_markers <true,false> - mark the data points (at each time step) on the plot; default is true
3798 
3799    Notes:
3800    Use TSMonitorLGCtxDestroy() to destroy.
3801 
3802    One can provide a function that transforms the solution before plotting it with TSMonitorLGCtxSetTransform() or TSMonitorLGSetTransform()
3803 
3804    Many of the functions that control the monitoring have two forms: TSMonitorLGSet/GetXXXX() and TSMonitorLGCtxSet/GetXXXX() the first take a TS object as the
3805    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
3806    as the first argument.
3807 
3808    One can control the names displayed for each solution or error variable with TSMonitorLGCtxSetVariableNames() or TSMonitorLGSetVariableNames()
3809 
3810 
3811    Level: intermediate
3812 
3813 .keywords: TS, monitor, line graph, residual
3814 
3815 .seealso: TSMonitorLGTimeStep(), TSMonitorSet(), TSMonitorLGSolution(), TSMonitorLGError(), TSMonitorDefault(), VecView(),
3816            TSMonitorLGCtxCreate(), TSMonitorLGCtxSetVariableNames(), TSMonitorLGCtxGetVariableNames(),
3817            TSMonitorLGSetVariableNames(), TSMonitorLGGetVariableNames(), TSMonitorLGSetDisplayVariables(), TSMonitorLGCtxSetDisplayVariables(),
3818            TSMonitorLGCtxSetTransform(), TSMonitorLGSetTransform(), TSMonitorLGError(), TSMonitorLGSNESIterations(), TSMonitorLGKSPIterations(),
3819            TSMonitorEnvelopeCtxCreate(), TSMonitorEnvelopeGetBounds(), TSMonitorEnvelopeCtxDestroy(), TSMonitorEnvelop()
3820 
3821 @*/
3822 PetscErrorCode  TSMonitorLGCtxCreate(MPI_Comm comm,const char host[],const char label[],int x,int y,int m,int n,PetscInt howoften,TSMonitorLGCtx *ctx)
3823 {
3824   PetscDraw      draw;
3825   PetscErrorCode ierr;
3826 
3827   PetscFunctionBegin;
3828   ierr = PetscNew(ctx);CHKERRQ(ierr);
3829   ierr = PetscDrawCreate(comm,host,label,x,y,m,n,&draw);CHKERRQ(ierr);
3830   ierr = PetscDrawSetFromOptions(draw);CHKERRQ(ierr);
3831   ierr = PetscDrawLGCreate(draw,1,&(*ctx)->lg);CHKERRQ(ierr);
3832   ierr = PetscDrawLGSetFromOptions((*ctx)->lg);CHKERRQ(ierr);
3833   ierr = PetscDrawDestroy(&draw);CHKERRQ(ierr);
3834   (*ctx)->howoften = howoften;
3835   PetscFunctionReturn(0);
3836 }
3837 
3838 #undef __FUNCT__
3839 #define __FUNCT__ "TSMonitorLGTimeStep"
3840 PetscErrorCode TSMonitorLGTimeStep(TS ts,PetscInt step,PetscReal ptime,Vec v,void *monctx)
3841 {
3842   TSMonitorLGCtx ctx = (TSMonitorLGCtx) monctx;
3843   PetscReal      x   = ptime,y;
3844   PetscErrorCode ierr;
3845 
3846   PetscFunctionBegin;
3847   if (step < 0) PetscFunctionReturn(0); /* -1 indicates an interpolated solution */
3848   if (!step) {
3849     PetscDrawAxis axis;
3850     ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr);
3851     ierr = PetscDrawAxisSetLabels(axis,"Timestep as function of time","Time","Time Step");CHKERRQ(ierr);
3852     ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr);
3853   }
3854   ierr = TSGetTimeStep(ts,&y);CHKERRQ(ierr);
3855   ierr = PetscDrawLGAddPoint(ctx->lg,&x,&y);CHKERRQ(ierr);
3856   if (((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason)) {
3857     ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr);
3858     ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr);
3859   }
3860   PetscFunctionReturn(0);
3861 }
3862 
3863 #undef __FUNCT__
3864 #define __FUNCT__ "TSMonitorLGCtxDestroy"
3865 /*@C
3866    TSMonitorLGCtxDestroy - Destroys a line graph context that was created
3867    with TSMonitorLGCtxCreate().
3868 
3869    Collective on TSMonitorLGCtx
3870 
3871    Input Parameter:
3872 .  ctx - the monitor context
3873 
3874    Level: intermediate
3875 
3876 .keywords: TS, monitor, line graph, destroy
3877 
3878 .seealso: TSMonitorLGCtxCreate(),  TSMonitorSet(), TSMonitorLGTimeStep();
3879 @*/
3880 PetscErrorCode  TSMonitorLGCtxDestroy(TSMonitorLGCtx *ctx)
3881 {
3882   PetscErrorCode ierr;
3883 
3884   PetscFunctionBegin;
3885   if ((*ctx)->transformdestroy) {
3886     ierr = ((*ctx)->transformdestroy)((*ctx)->transformctx);CHKERRQ(ierr);
3887   }
3888   ierr = PetscDrawLGDestroy(&(*ctx)->lg);CHKERRQ(ierr);
3889   ierr = PetscStrArrayDestroy(&(*ctx)->names);CHKERRQ(ierr);
3890   ierr = PetscStrArrayDestroy(&(*ctx)->displaynames);CHKERRQ(ierr);
3891   ierr = PetscFree((*ctx)->displayvariables);CHKERRQ(ierr);
3892   ierr = PetscFree((*ctx)->displayvalues);CHKERRQ(ierr);
3893   ierr = PetscFree(*ctx);CHKERRQ(ierr);
3894   PetscFunctionReturn(0);
3895 }
3896 
3897 #undef __FUNCT__
3898 #define __FUNCT__ "TSGetTime"
3899 /*@
3900    TSGetTime - Gets the time of the most recently completed step.
3901 
3902    Not Collective
3903 
3904    Input Parameter:
3905 .  ts - the TS context obtained from TSCreate()
3906 
3907    Output Parameter:
3908 .  t  - the current time. This time may not corresponds to the final time set with TSSetDuration(), use TSGetSolveTime().
3909 
3910    Level: beginner
3911 
3912    Note:
3913    When called during time step evaluation (e.g. during residual evaluation or via hooks set using TSSetPreStep(),
3914    TSSetPreStage(), TSSetPostStage(), or TSSetPostStep()), the time is the time at the start of the step being evaluated.
3915 
3916 .seealso: TSSetInitialTimeStep(), TSGetTimeStep(), TSGetSolveTime()
3917 
3918 .keywords: TS, get, time
3919 @*/
3920 PetscErrorCode  TSGetTime(TS ts,PetscReal *t)
3921 {
3922   PetscFunctionBegin;
3923   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3924   PetscValidRealPointer(t,2);
3925   *t = ts->ptime;
3926   PetscFunctionReturn(0);
3927 }
3928 
3929 #undef __FUNCT__
3930 #define __FUNCT__ "TSGetPrevTime"
3931 /*@
3932    TSGetPrevTime - Gets the starting time of the previously completed step.
3933 
3934    Not Collective
3935 
3936    Input Parameter:
3937 .  ts - the TS context obtained from TSCreate()
3938 
3939    Output Parameter:
3940 .  t  - the previous time
3941 
3942    Level: beginner
3943 
3944 .seealso: TSSetInitialTimeStep(), TSGetTimeStep()
3945 
3946 .keywords: TS, get, time
3947 @*/
3948 PetscErrorCode  TSGetPrevTime(TS ts,PetscReal *t)
3949 {
3950   PetscFunctionBegin;
3951   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3952   PetscValidRealPointer(t,2);
3953   *t = ts->ptime_prev;
3954   PetscFunctionReturn(0);
3955 }
3956 
3957 #undef __FUNCT__
3958 #define __FUNCT__ "TSSetTime"
3959 /*@
3960    TSSetTime - Allows one to reset the time.
3961 
3962    Logically Collective on TS
3963 
3964    Input Parameters:
3965 +  ts - the TS context obtained from TSCreate()
3966 -  time - the time
3967 
3968    Level: intermediate
3969 
3970 .seealso: TSGetTime(), TSSetDuration()
3971 
3972 .keywords: TS, set, time
3973 @*/
3974 PetscErrorCode  TSSetTime(TS ts, PetscReal t)
3975 {
3976   PetscFunctionBegin;
3977   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
3978   PetscValidLogicalCollectiveReal(ts,t,2);
3979   ts->ptime = t;
3980   PetscFunctionReturn(0);
3981 }
3982 
3983 #undef __FUNCT__
3984 #define __FUNCT__ "TSSetOptionsPrefix"
3985 /*@C
3986    TSSetOptionsPrefix - Sets the prefix used for searching for all
3987    TS options in the database.
3988 
3989    Logically Collective on TS
3990 
3991    Input Parameter:
3992 +  ts     - The TS context
3993 -  prefix - The prefix to prepend to all option names
3994 
3995    Notes:
3996    A hyphen (-) must NOT be given at the beginning of the prefix name.
3997    The first character of all runtime options is AUTOMATICALLY the
3998    hyphen.
3999 
4000    Level: advanced
4001 
4002 .keywords: TS, set, options, prefix, database
4003 
4004 .seealso: TSSetFromOptions()
4005 
4006 @*/
4007 PetscErrorCode  TSSetOptionsPrefix(TS ts,const char prefix[])
4008 {
4009   PetscErrorCode ierr;
4010   SNES           snes;
4011 
4012   PetscFunctionBegin;
4013   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4014   ierr = PetscObjectSetOptionsPrefix((PetscObject)ts,prefix);CHKERRQ(ierr);
4015   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
4016   ierr = SNESSetOptionsPrefix(snes,prefix);CHKERRQ(ierr);
4017   PetscFunctionReturn(0);
4018 }
4019 
4020 
4021 #undef __FUNCT__
4022 #define __FUNCT__ "TSAppendOptionsPrefix"
4023 /*@C
4024    TSAppendOptionsPrefix - Appends to the prefix used for searching for all
4025    TS options in the database.
4026 
4027    Logically Collective on TS
4028 
4029    Input Parameter:
4030 +  ts     - The TS context
4031 -  prefix - The prefix to prepend to all option names
4032 
4033    Notes:
4034    A hyphen (-) must NOT be given at the beginning of the prefix name.
4035    The first character of all runtime options is AUTOMATICALLY the
4036    hyphen.
4037 
4038    Level: advanced
4039 
4040 .keywords: TS, append, options, prefix, database
4041 
4042 .seealso: TSGetOptionsPrefix()
4043 
4044 @*/
4045 PetscErrorCode  TSAppendOptionsPrefix(TS ts,const char prefix[])
4046 {
4047   PetscErrorCode ierr;
4048   SNES           snes;
4049 
4050   PetscFunctionBegin;
4051   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4052   ierr = PetscObjectAppendOptionsPrefix((PetscObject)ts,prefix);CHKERRQ(ierr);
4053   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
4054   ierr = SNESAppendOptionsPrefix(snes,prefix);CHKERRQ(ierr);
4055   PetscFunctionReturn(0);
4056 }
4057 
4058 #undef __FUNCT__
4059 #define __FUNCT__ "TSGetOptionsPrefix"
4060 /*@C
4061    TSGetOptionsPrefix - Sets the prefix used for searching for all
4062    TS options in the database.
4063 
4064    Not Collective
4065 
4066    Input Parameter:
4067 .  ts - The TS context
4068 
4069    Output Parameter:
4070 .  prefix - A pointer to the prefix string used
4071 
4072    Notes: On the fortran side, the user should pass in a string 'prifix' of
4073    sufficient length to hold the prefix.
4074 
4075    Level: intermediate
4076 
4077 .keywords: TS, get, options, prefix, database
4078 
4079 .seealso: TSAppendOptionsPrefix()
4080 @*/
4081 PetscErrorCode  TSGetOptionsPrefix(TS ts,const char *prefix[])
4082 {
4083   PetscErrorCode ierr;
4084 
4085   PetscFunctionBegin;
4086   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4087   PetscValidPointer(prefix,2);
4088   ierr = PetscObjectGetOptionsPrefix((PetscObject)ts,prefix);CHKERRQ(ierr);
4089   PetscFunctionReturn(0);
4090 }
4091 
4092 #undef __FUNCT__
4093 #define __FUNCT__ "TSGetRHSJacobian"
4094 /*@C
4095    TSGetRHSJacobian - Returns the Jacobian J at the present timestep.
4096 
4097    Not Collective, but parallel objects are returned if TS is parallel
4098 
4099    Input Parameter:
4100 .  ts  - The TS context obtained from TSCreate()
4101 
4102    Output Parameters:
4103 +  Amat - The (approximate) Jacobian J of G, where U_t = G(U,t)  (or NULL)
4104 .  Pmat - The matrix from which the preconditioner is constructed, usually the same as Amat  (or NULL)
4105 .  func - Function to compute the Jacobian of the RHS  (or NULL)
4106 -  ctx - User-defined context for Jacobian evaluation routine  (or NULL)
4107 
4108    Notes: You can pass in NULL for any return argument you do not need.
4109 
4110    Level: intermediate
4111 
4112 .seealso: TSGetTimeStep(), TSGetMatrices(), TSGetTime(), TSGetTimeStepNumber()
4113 
4114 .keywords: TS, timestep, get, matrix, Jacobian
4115 @*/
4116 PetscErrorCode  TSGetRHSJacobian(TS ts,Mat *Amat,Mat *Pmat,TSRHSJacobian *func,void **ctx)
4117 {
4118   PetscErrorCode ierr;
4119   SNES           snes;
4120   DM             dm;
4121 
4122   PetscFunctionBegin;
4123   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
4124   ierr = SNESGetJacobian(snes,Amat,Pmat,NULL,NULL);CHKERRQ(ierr);
4125   ierr = TSGetDM(ts,&dm);CHKERRQ(ierr);
4126   ierr = DMTSGetRHSJacobian(dm,func,ctx);CHKERRQ(ierr);
4127   PetscFunctionReturn(0);
4128 }
4129 
4130 #undef __FUNCT__
4131 #define __FUNCT__ "TSGetIJacobian"
4132 /*@C
4133    TSGetIJacobian - Returns the implicit Jacobian at the present timestep.
4134 
4135    Not Collective, but parallel objects are returned if TS is parallel
4136 
4137    Input Parameter:
4138 .  ts  - The TS context obtained from TSCreate()
4139 
4140    Output Parameters:
4141 +  Amat  - The (approximate) Jacobian of F(t,U,U_t)
4142 .  Pmat - The matrix from which the preconditioner is constructed, often the same as Amat
4143 .  f   - The function to compute the matrices
4144 - ctx - User-defined context for Jacobian evaluation routine
4145 
4146    Notes: You can pass in NULL for any return argument you do not need.
4147 
4148    Level: advanced
4149 
4150 .seealso: TSGetTimeStep(), TSGetRHSJacobian(), TSGetMatrices(), TSGetTime(), TSGetTimeStepNumber()
4151 
4152 .keywords: TS, timestep, get, matrix, Jacobian
4153 @*/
4154 PetscErrorCode  TSGetIJacobian(TS ts,Mat *Amat,Mat *Pmat,TSIJacobian *f,void **ctx)
4155 {
4156   PetscErrorCode ierr;
4157   SNES           snes;
4158   DM             dm;
4159 
4160   PetscFunctionBegin;
4161   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
4162   ierr = SNESSetUpMatrices(snes);CHKERRQ(ierr);
4163   ierr = SNESGetJacobian(snes,Amat,Pmat,NULL,NULL);CHKERRQ(ierr);
4164   ierr = TSGetDM(ts,&dm);CHKERRQ(ierr);
4165   ierr = DMTSGetIJacobian(dm,f,ctx);CHKERRQ(ierr);
4166   PetscFunctionReturn(0);
4167 }
4168 
4169 
4170 #undef __FUNCT__
4171 #define __FUNCT__ "TSMonitorDrawSolution"
4172 /*@C
4173    TSMonitorDrawSolution - Monitors progress of the TS solvers by calling
4174    VecView() for the solution at each timestep
4175 
4176    Collective on TS
4177 
4178    Input Parameters:
4179 +  ts - the TS context
4180 .  step - current time-step
4181 .  ptime - current time
4182 -  dummy - either a viewer or NULL
4183 
4184    Options Database:
4185 .   -ts_monitor_draw_solution_initial - show initial solution as well as current solution
4186 
4187    Notes: the initial solution and current solution are not display with a common axis scaling so generally the option -ts_monitor_draw_solution_initial
4188        will look bad
4189 
4190    Level: intermediate
4191 
4192 .keywords: TS,  vector, monitor, view
4193 
4194 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView()
4195 @*/
4196 PetscErrorCode  TSMonitorDrawSolution(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy)
4197 {
4198   PetscErrorCode   ierr;
4199   TSMonitorDrawCtx ictx = (TSMonitorDrawCtx)dummy;
4200   PetscDraw        draw;
4201 
4202   PetscFunctionBegin;
4203   if (!step && ictx->showinitial) {
4204     if (!ictx->initialsolution) {
4205       ierr = VecDuplicate(u,&ictx->initialsolution);CHKERRQ(ierr);
4206     }
4207     ierr = VecCopy(u,ictx->initialsolution);CHKERRQ(ierr);
4208   }
4209   if (!(((ictx->howoften > 0) && (!(step % ictx->howoften))) || ((ictx->howoften == -1) && ts->reason))) PetscFunctionReturn(0);
4210 
4211   if (ictx->showinitial) {
4212     PetscReal pause;
4213     ierr = PetscViewerDrawGetPause(ictx->viewer,&pause);CHKERRQ(ierr);
4214     ierr = PetscViewerDrawSetPause(ictx->viewer,0.0);CHKERRQ(ierr);
4215     ierr = VecView(ictx->initialsolution,ictx->viewer);CHKERRQ(ierr);
4216     ierr = PetscViewerDrawSetPause(ictx->viewer,pause);CHKERRQ(ierr);
4217     ierr = PetscViewerDrawSetHold(ictx->viewer,PETSC_TRUE);CHKERRQ(ierr);
4218   }
4219   ierr = VecView(u,ictx->viewer);CHKERRQ(ierr);
4220   if (ictx->showtimestepandtime) {
4221     PetscReal xl,yl,xr,yr,h;
4222     char      time[32];
4223 
4224     ierr = PetscViewerDrawGetDraw(ictx->viewer,0,&draw);CHKERRQ(ierr);
4225     ierr = PetscSNPrintf(time,32,"Timestep %d Time %g",(int)step,(double)ptime);CHKERRQ(ierr);
4226     ierr = PetscDrawGetCoordinates(draw,&xl,&yl,&xr,&yr);CHKERRQ(ierr);
4227     h    = yl + .95*(yr - yl);
4228     ierr = PetscDrawStringCentered(draw,.5*(xl+xr),h,PETSC_DRAW_BLACK,time);CHKERRQ(ierr);
4229     ierr = PetscDrawFlush(draw);CHKERRQ(ierr);
4230   }
4231 
4232   if (ictx->showinitial) {
4233     ierr = PetscViewerDrawSetHold(ictx->viewer,PETSC_FALSE);CHKERRQ(ierr);
4234   }
4235   PetscFunctionReturn(0);
4236 }
4237 
4238 #undef __FUNCT__
4239 #define __FUNCT__ "TSAdjointMonitorDrawSensi"
4240 /*@C
4241    TSAdjointMonitorDrawSensi - Monitors progress of the adjoint TS solvers by calling
4242    VecView() for the sensitivities to initial states at each timestep
4243 
4244    Collective on TS
4245 
4246    Input Parameters:
4247 +  ts - the TS context
4248 .  step - current time-step
4249 .  ptime - current time
4250 .  u - current state
4251 .  numcost - number of cost functions
4252 .  lambda - sensitivities to initial conditions
4253 .  mu - sensitivities to parameters
4254 -  dummy - either a viewer or NULL
4255 
4256    Level: intermediate
4257 
4258 .keywords: TS,  vector, adjoint, monitor, view
4259 
4260 .seealso: TSAdjointMonitorSet(), TSAdjointMonitorDefault(), VecView()
4261 @*/
4262 PetscErrorCode  TSAdjointMonitorDrawSensi(TS ts,PetscInt step,PetscReal ptime,Vec u,PetscInt numcost,Vec *lambda,Vec *mu,void *dummy)
4263 {
4264   PetscErrorCode   ierr;
4265   TSMonitorDrawCtx ictx = (TSMonitorDrawCtx)dummy;
4266   PetscDraw        draw;
4267   PetscReal        xl,yl,xr,yr,h;
4268   char             time[32];
4269 
4270   PetscFunctionBegin;
4271   if (!(((ictx->howoften > 0) && (!(step % ictx->howoften))) || ((ictx->howoften == -1) && ts->reason))) PetscFunctionReturn(0);
4272 
4273   ierr = VecView(lambda[0],ictx->viewer);CHKERRQ(ierr);
4274   ierr = PetscViewerDrawGetDraw(ictx->viewer,0,&draw);CHKERRQ(ierr);
4275   ierr = PetscSNPrintf(time,32,"Timestep %d Time %g",(int)step,(double)ptime);CHKERRQ(ierr);
4276   ierr = PetscDrawGetCoordinates(draw,&xl,&yl,&xr,&yr);CHKERRQ(ierr);
4277   h    = yl + .95*(yr - yl);
4278   ierr = PetscDrawStringCentered(draw,.5*(xl+xr),h,PETSC_DRAW_BLACK,time);CHKERRQ(ierr);
4279   ierr = PetscDrawFlush(draw);CHKERRQ(ierr);
4280   PetscFunctionReturn(0);
4281 }
4282 
4283 #undef __FUNCT__
4284 #define __FUNCT__ "TSMonitorDrawSolutionPhase"
4285 /*@C
4286    TSMonitorDrawSolutionPhase - Monitors progress of the TS solvers by plotting the solution as a phase diagram
4287 
4288    Collective on TS
4289 
4290    Input Parameters:
4291 +  ts - the TS context
4292 .  step - current time-step
4293 .  ptime - current time
4294 -  dummy - either a viewer or NULL
4295 
4296    Level: intermediate
4297 
4298 .keywords: TS,  vector, monitor, view
4299 
4300 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView()
4301 @*/
4302 PetscErrorCode  TSMonitorDrawSolutionPhase(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy)
4303 {
4304   PetscErrorCode    ierr;
4305   TSMonitorDrawCtx  ictx = (TSMonitorDrawCtx)dummy;
4306   PetscDraw         draw;
4307   PetscDrawAxis     axis;
4308   PetscInt          n;
4309   PetscMPIInt       size;
4310   PetscReal         U0,U1,xl,yl,xr,yr,h;
4311   char              time[32];
4312   const PetscScalar *U;
4313 
4314   PetscFunctionBegin;
4315   ierr = MPI_Comm_size(PetscObjectComm((PetscObject)ts),&size);CHKERRQ(ierr);
4316   if (size != 1) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Only allowed for sequential runs");
4317   ierr = VecGetSize(u,&n);CHKERRQ(ierr);
4318   if (n != 2) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Only for ODEs with two unknowns");
4319 
4320   ierr = PetscViewerDrawGetDraw(ictx->viewer,0,&draw);CHKERRQ(ierr);
4321   ierr = PetscViewerDrawGetDrawAxis(ictx->viewer,0,&axis);CHKERRQ(ierr);
4322   ierr = PetscDrawAxisGetLimits(axis,&xl,&xr,&yl,&yr);CHKERRQ(ierr);
4323   if (!step) {
4324     ierr = PetscDrawClear(draw);CHKERRQ(ierr);
4325     ierr = PetscDrawAxisDraw(axis);CHKERRQ(ierr);
4326   }
4327 
4328   ierr = VecGetArrayRead(u,&U);CHKERRQ(ierr);
4329   U0 = PetscRealPart(U[0]);
4330   U1 = PetscRealPart(U[1]);
4331   ierr = VecRestoreArrayRead(u,&U);CHKERRQ(ierr);
4332   if ((U0 < xl) || (U1 < yl) || (U0 > xr) || (U1 > yr)) PetscFunctionReturn(0);
4333 
4334   ierr = PetscDrawCollectiveBegin(draw);CHKERRQ(ierr);
4335   ierr = PetscDrawPoint(draw,U0,U1,PETSC_DRAW_BLACK);CHKERRQ(ierr);
4336   if (ictx->showtimestepandtime) {
4337     ierr = PetscDrawGetCoordinates(draw,&xl,&yl,&xr,&yr);CHKERRQ(ierr);
4338     ierr = PetscSNPrintf(time,32,"Timestep %d Time %g",(int)step,(double)ptime);CHKERRQ(ierr);
4339     h    = yl + .95*(yr - yl);
4340     ierr = PetscDrawStringCentered(draw,.5*(xl+xr),h,PETSC_DRAW_BLACK,time);CHKERRQ(ierr);
4341   }
4342   ierr = PetscDrawCollectiveEnd(draw);CHKERRQ(ierr);
4343   ierr = PetscDrawFlush(draw);CHKERRQ(ierr);
4344   ierr = PetscDrawSave(draw);CHKERRQ(ierr);
4345   PetscFunctionReturn(0);
4346 }
4347 
4348 
4349 #undef __FUNCT__
4350 #define __FUNCT__ "TSMonitorDrawCtxDestroy"
4351 /*@C
4352    TSMonitorDrawCtxDestroy - Destroys the monitor context for TSMonitorDrawSolution()
4353 
4354    Collective on TS
4355 
4356    Input Parameters:
4357 .    ctx - the monitor context
4358 
4359    Level: intermediate
4360 
4361 .keywords: TS,  vector, monitor, view
4362 
4363 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorDrawSolution(), TSMonitorDrawError()
4364 @*/
4365 PetscErrorCode  TSMonitorDrawCtxDestroy(TSMonitorDrawCtx *ictx)
4366 {
4367   PetscErrorCode ierr;
4368 
4369   PetscFunctionBegin;
4370   ierr = PetscViewerDestroy(&(*ictx)->viewer);CHKERRQ(ierr);
4371   ierr = VecDestroy(&(*ictx)->initialsolution);CHKERRQ(ierr);
4372   ierr = PetscFree(*ictx);CHKERRQ(ierr);
4373   PetscFunctionReturn(0);
4374 }
4375 
4376 #undef __FUNCT__
4377 #define __FUNCT__ "TSMonitorDrawCtxCreate"
4378 /*@C
4379    TSMonitorDrawCtxCreate - Creates the monitor context for TSMonitorDrawCtx
4380 
4381    Collective on TS
4382 
4383    Input Parameter:
4384 .    ts - time-step context
4385 
4386    Output Patameter:
4387 .    ctx - the monitor context
4388 
4389    Options Database:
4390 .   -ts_monitor_draw_solution_initial - show initial solution as well as current solution
4391 
4392    Level: intermediate
4393 
4394 .keywords: TS,  vector, monitor, view
4395 
4396 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorDrawCtx()
4397 @*/
4398 PetscErrorCode  TSMonitorDrawCtxCreate(MPI_Comm comm,const char host[],const char label[],int x,int y,int m,int n,PetscInt howoften,TSMonitorDrawCtx *ctx)
4399 {
4400   PetscErrorCode   ierr;
4401 
4402   PetscFunctionBegin;
4403   ierr = PetscNew(ctx);CHKERRQ(ierr);
4404   ierr = PetscViewerDrawOpen(comm,host,label,x,y,m,n,&(*ctx)->viewer);CHKERRQ(ierr);
4405   ierr = PetscViewerSetFromOptions((*ctx)->viewer);CHKERRQ(ierr);
4406 
4407   (*ctx)->howoften    = howoften;
4408   (*ctx)->showinitial = PETSC_FALSE;
4409   ierr = PetscOptionsGetBool(NULL,NULL,"-ts_monitor_draw_solution_initial",&(*ctx)->showinitial,NULL);CHKERRQ(ierr);
4410 
4411   (*ctx)->showtimestepandtime = PETSC_FALSE;
4412   ierr = PetscOptionsGetBool(NULL,NULL,"-ts_monitor_draw_solution_show_time",&(*ctx)->showtimestepandtime,NULL);CHKERRQ(ierr);
4413   PetscFunctionReturn(0);
4414 }
4415 
4416 #undef __FUNCT__
4417 #define __FUNCT__ "TSMonitorDrawError"
4418 /*@C
4419    TSMonitorDrawError - Monitors progress of the TS solvers by calling
4420    VecView() for the error at each timestep
4421 
4422    Collective on TS
4423 
4424    Input Parameters:
4425 +  ts - the TS context
4426 .  step - current time-step
4427 .  ptime - current time
4428 -  dummy - either a viewer or NULL
4429 
4430    Level: intermediate
4431 
4432 .keywords: TS,  vector, monitor, view
4433 
4434 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView()
4435 @*/
4436 PetscErrorCode  TSMonitorDrawError(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy)
4437 {
4438   PetscErrorCode   ierr;
4439   TSMonitorDrawCtx ctx    = (TSMonitorDrawCtx)dummy;
4440   PetscViewer      viewer = ctx->viewer;
4441   Vec              work;
4442 
4443   PetscFunctionBegin;
4444   if (!(((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason))) PetscFunctionReturn(0);
4445   ierr = VecDuplicate(u,&work);CHKERRQ(ierr);
4446   ierr = TSComputeSolutionFunction(ts,ptime,work);CHKERRQ(ierr);
4447   ierr = VecAXPY(work,-1.0,u);CHKERRQ(ierr);
4448   ierr = VecView(work,viewer);CHKERRQ(ierr);
4449   ierr = VecDestroy(&work);CHKERRQ(ierr);
4450   PetscFunctionReturn(0);
4451 }
4452 
4453 #include <petsc/private/dmimpl.h>
4454 #undef __FUNCT__
4455 #define __FUNCT__ "TSSetDM"
4456 /*@
4457    TSSetDM - Sets the DM that may be used by some preconditioners
4458 
4459    Logically Collective on TS and DM
4460 
4461    Input Parameters:
4462 +  ts - the preconditioner context
4463 -  dm - the dm
4464 
4465    Level: intermediate
4466 
4467 
4468 .seealso: TSGetDM(), SNESSetDM(), SNESGetDM()
4469 @*/
4470 PetscErrorCode  TSSetDM(TS ts,DM dm)
4471 {
4472   PetscErrorCode ierr;
4473   SNES           snes;
4474   DMTS           tsdm;
4475 
4476   PetscFunctionBegin;
4477   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4478   ierr = PetscObjectReference((PetscObject)dm);CHKERRQ(ierr);
4479   if (ts->dm) {               /* Move the DMTS context over to the new DM unless the new DM already has one */
4480     if (ts->dm->dmts && !dm->dmts) {
4481       ierr = DMCopyDMTS(ts->dm,dm);CHKERRQ(ierr);
4482       ierr = DMGetDMTS(ts->dm,&tsdm);CHKERRQ(ierr);
4483       if (tsdm->originaldm == ts->dm) { /* Grant write privileges to the replacement DM */
4484         tsdm->originaldm = dm;
4485       }
4486     }
4487     ierr = DMDestroy(&ts->dm);CHKERRQ(ierr);
4488   }
4489   ts->dm = dm;
4490 
4491   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
4492   ierr = SNESSetDM(snes,dm);CHKERRQ(ierr);
4493   PetscFunctionReturn(0);
4494 }
4495 
4496 #undef __FUNCT__
4497 #define __FUNCT__ "TSGetDM"
4498 /*@
4499    TSGetDM - Gets the DM that may be used by some preconditioners
4500 
4501    Not Collective
4502 
4503    Input Parameter:
4504 . ts - the preconditioner context
4505 
4506    Output Parameter:
4507 .  dm - the dm
4508 
4509    Level: intermediate
4510 
4511 
4512 .seealso: TSSetDM(), SNESSetDM(), SNESGetDM()
4513 @*/
4514 PetscErrorCode  TSGetDM(TS ts,DM *dm)
4515 {
4516   PetscErrorCode ierr;
4517 
4518   PetscFunctionBegin;
4519   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4520   if (!ts->dm) {
4521     ierr = DMShellCreate(PetscObjectComm((PetscObject)ts),&ts->dm);CHKERRQ(ierr);
4522     if (ts->snes) {ierr = SNESSetDM(ts->snes,ts->dm);CHKERRQ(ierr);}
4523   }
4524   *dm = ts->dm;
4525   PetscFunctionReturn(0);
4526 }
4527 
4528 #undef __FUNCT__
4529 #define __FUNCT__ "SNESTSFormFunction"
4530 /*@
4531    SNESTSFormFunction - Function to evaluate nonlinear residual
4532 
4533    Logically Collective on SNES
4534 
4535    Input Parameter:
4536 + snes - nonlinear solver
4537 . U - the current state at which to evaluate the residual
4538 - ctx - user context, must be a TS
4539 
4540    Output Parameter:
4541 . F - the nonlinear residual
4542 
4543    Notes:
4544    This function is not normally called by users and is automatically registered with the SNES used by TS.
4545    It is most frequently passed to MatFDColoringSetFunction().
4546 
4547    Level: advanced
4548 
4549 .seealso: SNESSetFunction(), MatFDColoringSetFunction()
4550 @*/
4551 PetscErrorCode  SNESTSFormFunction(SNES snes,Vec U,Vec F,void *ctx)
4552 {
4553   TS             ts = (TS)ctx;
4554   PetscErrorCode ierr;
4555 
4556   PetscFunctionBegin;
4557   PetscValidHeaderSpecific(snes,SNES_CLASSID,1);
4558   PetscValidHeaderSpecific(U,VEC_CLASSID,2);
4559   PetscValidHeaderSpecific(F,VEC_CLASSID,3);
4560   PetscValidHeaderSpecific(ts,TS_CLASSID,4);
4561   ierr = (ts->ops->snesfunction)(snes,U,F,ts);CHKERRQ(ierr);
4562   PetscFunctionReturn(0);
4563 }
4564 
4565 #undef __FUNCT__
4566 #define __FUNCT__ "SNESTSFormJacobian"
4567 /*@
4568    SNESTSFormJacobian - Function to evaluate the Jacobian
4569 
4570    Collective on SNES
4571 
4572    Input Parameter:
4573 + snes - nonlinear solver
4574 . U - the current state at which to evaluate the residual
4575 - ctx - user context, must be a TS
4576 
4577    Output Parameter:
4578 + A - the Jacobian
4579 . B - the preconditioning matrix (may be the same as A)
4580 - flag - indicates any structure change in the matrix
4581 
4582    Notes:
4583    This function is not normally called by users and is automatically registered with the SNES used by TS.
4584 
4585    Level: developer
4586 
4587 .seealso: SNESSetJacobian()
4588 @*/
4589 PetscErrorCode  SNESTSFormJacobian(SNES snes,Vec U,Mat A,Mat B,void *ctx)
4590 {
4591   TS             ts = (TS)ctx;
4592   PetscErrorCode ierr;
4593 
4594   PetscFunctionBegin;
4595   PetscValidHeaderSpecific(snes,SNES_CLASSID,1);
4596   PetscValidHeaderSpecific(U,VEC_CLASSID,2);
4597   PetscValidPointer(A,3);
4598   PetscValidHeaderSpecific(A,MAT_CLASSID,3);
4599   PetscValidPointer(B,4);
4600   PetscValidHeaderSpecific(B,MAT_CLASSID,4);
4601   PetscValidHeaderSpecific(ts,TS_CLASSID,6);
4602   ierr = (ts->ops->snesjacobian)(snes,U,A,B,ts);CHKERRQ(ierr);
4603   PetscFunctionReturn(0);
4604 }
4605 
4606 #undef __FUNCT__
4607 #define __FUNCT__ "TSComputeRHSFunctionLinear"
4608 /*@C
4609    TSComputeRHSFunctionLinear - Evaluate the right hand side via the user-provided Jacobian, for linear problems Udot = A U only
4610 
4611    Collective on TS
4612 
4613    Input Arguments:
4614 +  ts - time stepping context
4615 .  t - time at which to evaluate
4616 .  U - state at which to evaluate
4617 -  ctx - context
4618 
4619    Output Arguments:
4620 .  F - right hand side
4621 
4622    Level: intermediate
4623 
4624    Notes:
4625    This function is intended to be passed to TSSetRHSFunction() to evaluate the right hand side for linear problems.
4626    The matrix (and optionally the evaluation context) should be passed to TSSetRHSJacobian().
4627 
4628 .seealso: TSSetRHSFunction(), TSSetRHSJacobian(), TSComputeRHSJacobianConstant()
4629 @*/
4630 PetscErrorCode TSComputeRHSFunctionLinear(TS ts,PetscReal t,Vec U,Vec F,void *ctx)
4631 {
4632   PetscErrorCode ierr;
4633   Mat            Arhs,Brhs;
4634 
4635   PetscFunctionBegin;
4636   ierr = TSGetRHSMats_Private(ts,&Arhs,&Brhs);CHKERRQ(ierr);
4637   ierr = TSComputeRHSJacobian(ts,t,U,Arhs,Brhs);CHKERRQ(ierr);
4638   ierr = MatMult(Arhs,U,F);CHKERRQ(ierr);
4639   PetscFunctionReturn(0);
4640 }
4641 
4642 #undef __FUNCT__
4643 #define __FUNCT__ "TSComputeRHSJacobianConstant"
4644 /*@C
4645    TSComputeRHSJacobianConstant - Reuses a Jacobian that is time-independent.
4646 
4647    Collective on TS
4648 
4649    Input Arguments:
4650 +  ts - time stepping context
4651 .  t - time at which to evaluate
4652 .  U - state at which to evaluate
4653 -  ctx - context
4654 
4655    Output Arguments:
4656 +  A - pointer to operator
4657 .  B - pointer to preconditioning matrix
4658 -  flg - matrix structure flag
4659 
4660    Level: intermediate
4661 
4662    Notes:
4663    This function is intended to be passed to TSSetRHSJacobian() to evaluate the Jacobian for linear time-independent problems.
4664 
4665 .seealso: TSSetRHSFunction(), TSSetRHSJacobian(), TSComputeRHSFunctionLinear()
4666 @*/
4667 PetscErrorCode TSComputeRHSJacobianConstant(TS ts,PetscReal t,Vec U,Mat A,Mat B,void *ctx)
4668 {
4669   PetscFunctionBegin;
4670   PetscFunctionReturn(0);
4671 }
4672 
4673 #undef __FUNCT__
4674 #define __FUNCT__ "TSComputeIFunctionLinear"
4675 /*@C
4676    TSComputeIFunctionLinear - Evaluate the left hand side via the user-provided Jacobian, for linear problems only
4677 
4678    Collective on TS
4679 
4680    Input Arguments:
4681 +  ts - time stepping context
4682 .  t - time at which to evaluate
4683 .  U - state at which to evaluate
4684 .  Udot - time derivative of state vector
4685 -  ctx - context
4686 
4687    Output Arguments:
4688 .  F - left hand side
4689 
4690    Level: intermediate
4691 
4692    Notes:
4693    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
4694    user is required to write their own TSComputeIFunction.
4695    This function is intended to be passed to TSSetIFunction() to evaluate the left hand side for linear problems.
4696    The matrix (and optionally the evaluation context) should be passed to TSSetIJacobian().
4697 
4698    Note that using this function is NOT equivalent to using TSComputeRHSFunctionLinear() since that solves Udot = A U
4699 
4700 .seealso: TSSetIFunction(), TSSetIJacobian(), TSComputeIJacobianConstant(), TSComputeRHSFunctionLinear()
4701 @*/
4702 PetscErrorCode TSComputeIFunctionLinear(TS ts,PetscReal t,Vec U,Vec Udot,Vec F,void *ctx)
4703 {
4704   PetscErrorCode ierr;
4705   Mat            A,B;
4706 
4707   PetscFunctionBegin;
4708   ierr = TSGetIJacobian(ts,&A,&B,NULL,NULL);CHKERRQ(ierr);
4709   ierr = TSComputeIJacobian(ts,t,U,Udot,1.0,A,B,PETSC_TRUE);CHKERRQ(ierr);
4710   ierr = MatMult(A,Udot,F);CHKERRQ(ierr);
4711   PetscFunctionReturn(0);
4712 }
4713 
4714 #undef __FUNCT__
4715 #define __FUNCT__ "TSComputeIJacobianConstant"
4716 /*@C
4717    TSComputeIJacobianConstant - Reuses a time-independent for a semi-implicit DAE or ODE
4718 
4719    Collective on TS
4720 
4721    Input Arguments:
4722 +  ts - time stepping context
4723 .  t - time at which to evaluate
4724 .  U - state at which to evaluate
4725 .  Udot - time derivative of state vector
4726 .  shift - shift to apply
4727 -  ctx - context
4728 
4729    Output Arguments:
4730 +  A - pointer to operator
4731 .  B - pointer to preconditioning matrix
4732 -  flg - matrix structure flag
4733 
4734    Level: advanced
4735 
4736    Notes:
4737    This function is intended to be passed to TSSetIJacobian() to evaluate the Jacobian for linear time-independent problems.
4738 
4739    It is only appropriate for problems of the form
4740 
4741 $     M Udot = F(U,t)
4742 
4743   where M is constant and F is non-stiff.  The user must pass M to TSSetIJacobian().  The current implementation only
4744   works with IMEX time integration methods such as TSROSW and TSARKIMEX, since there is no support for de-constructing
4745   an implicit operator of the form
4746 
4747 $    shift*M + J
4748 
4749   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
4750   a copy of M or reassemble it when requested.
4751 
4752 .seealso: TSSetIFunction(), TSSetIJacobian(), TSComputeIFunctionLinear()
4753 @*/
4754 PetscErrorCode TSComputeIJacobianConstant(TS ts,PetscReal t,Vec U,Vec Udot,PetscReal shift,Mat A,Mat B,void *ctx)
4755 {
4756   PetscErrorCode ierr;
4757 
4758   PetscFunctionBegin;
4759   ierr = MatScale(A, shift / ts->ijacobian.shift);CHKERRQ(ierr);
4760   ts->ijacobian.shift = shift;
4761   PetscFunctionReturn(0);
4762 }
4763 
4764 #undef __FUNCT__
4765 #define __FUNCT__ "TSGetEquationType"
4766 /*@
4767    TSGetEquationType - Gets the type of the equation that TS is solving.
4768 
4769    Not Collective
4770 
4771    Input Parameter:
4772 .  ts - the TS context
4773 
4774    Output Parameter:
4775 .  equation_type - see TSEquationType
4776 
4777    Level: beginner
4778 
4779 .keywords: TS, equation type
4780 
4781 .seealso: TSSetEquationType(), TSEquationType
4782 @*/
4783 PetscErrorCode  TSGetEquationType(TS ts,TSEquationType *equation_type)
4784 {
4785   PetscFunctionBegin;
4786   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4787   PetscValidPointer(equation_type,2);
4788   *equation_type = ts->equation_type;
4789   PetscFunctionReturn(0);
4790 }
4791 
4792 #undef __FUNCT__
4793 #define __FUNCT__ "TSSetEquationType"
4794 /*@
4795    TSSetEquationType - Sets the type of the equation that TS is solving.
4796 
4797    Not Collective
4798 
4799    Input Parameter:
4800 +  ts - the TS context
4801 -  equation_type - see TSEquationType
4802 
4803    Level: advanced
4804 
4805 .keywords: TS, equation type
4806 
4807 .seealso: TSGetEquationType(), TSEquationType
4808 @*/
4809 PetscErrorCode  TSSetEquationType(TS ts,TSEquationType equation_type)
4810 {
4811   PetscFunctionBegin;
4812   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4813   ts->equation_type = equation_type;
4814   PetscFunctionReturn(0);
4815 }
4816 
4817 #undef __FUNCT__
4818 #define __FUNCT__ "TSGetConvergedReason"
4819 /*@
4820    TSGetConvergedReason - Gets the reason the TS iteration was stopped.
4821 
4822    Not Collective
4823 
4824    Input Parameter:
4825 .  ts - the TS context
4826 
4827    Output Parameter:
4828 .  reason - negative value indicates diverged, positive value converged, see TSConvergedReason or the
4829             manual pages for the individual convergence tests for complete lists
4830 
4831    Level: beginner
4832 
4833    Notes:
4834    Can only be called after the call to TSSolve() is complete.
4835 
4836 .keywords: TS, nonlinear, set, convergence, test
4837 
4838 .seealso: TSSetConvergenceTest(), TSConvergedReason
4839 @*/
4840 PetscErrorCode  TSGetConvergedReason(TS ts,TSConvergedReason *reason)
4841 {
4842   PetscFunctionBegin;
4843   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4844   PetscValidPointer(reason,2);
4845   *reason = ts->reason;
4846   PetscFunctionReturn(0);
4847 }
4848 
4849 #undef __FUNCT__
4850 #define __FUNCT__ "TSSetConvergedReason"
4851 /*@
4852    TSSetConvergedReason - Sets the reason for handling the convergence of TSSolve.
4853 
4854    Not Collective
4855 
4856    Input Parameter:
4857 +  ts - the TS context
4858 .  reason - negative value indicates diverged, positive value converged, see TSConvergedReason or the
4859             manual pages for the individual convergence tests for complete lists
4860 
4861    Level: advanced
4862 
4863    Notes:
4864    Can only be called during TSSolve() is active.
4865 
4866 .keywords: TS, nonlinear, set, convergence, test
4867 
4868 .seealso: TSConvergedReason
4869 @*/
4870 PetscErrorCode  TSSetConvergedReason(TS ts,TSConvergedReason reason)
4871 {
4872   PetscFunctionBegin;
4873   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4874   ts->reason = reason;
4875   PetscFunctionReturn(0);
4876 }
4877 
4878 #undef __FUNCT__
4879 #define __FUNCT__ "TSGetSolveTime"
4880 /*@
4881    TSGetSolveTime - Gets the time after a call to TSSolve()
4882 
4883    Not Collective
4884 
4885    Input Parameter:
4886 .  ts - the TS context
4887 
4888    Output Parameter:
4889 .  ftime - the final time. This time corresponds to the final time set with TSSetDuration()
4890 
4891    Level: beginner
4892 
4893    Notes:
4894    Can only be called after the call to TSSolve() is complete.
4895 
4896 .keywords: TS, nonlinear, set, convergence, test
4897 
4898 .seealso: TSSetConvergenceTest(), TSConvergedReason
4899 @*/
4900 PetscErrorCode  TSGetSolveTime(TS ts,PetscReal *ftime)
4901 {
4902   PetscFunctionBegin;
4903   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4904   PetscValidPointer(ftime,2);
4905   *ftime = ts->solvetime;
4906   PetscFunctionReturn(0);
4907 }
4908 
4909 #undef __FUNCT__
4910 #define __FUNCT__ "TSGetTotalSteps"
4911 /*@
4912    TSGetTotalSteps - Gets the total number of steps done since the last call to TSSetUp() or TSCreate()
4913 
4914    Not Collective
4915 
4916    Input Parameter:
4917 .  ts - the TS context
4918 
4919    Output Parameter:
4920 .  steps - the number of steps
4921 
4922    Level: beginner
4923 
4924    Notes:
4925    Includes the number of steps for all calls to TSSolve() since TSSetUp() was called
4926 
4927 .keywords: TS, nonlinear, set, convergence, test
4928 
4929 .seealso: TSSetConvergenceTest(), TSConvergedReason
4930 @*/
4931 PetscErrorCode  TSGetTotalSteps(TS ts,PetscInt *steps)
4932 {
4933   PetscFunctionBegin;
4934   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4935   PetscValidPointer(steps,2);
4936   *steps = ts->total_steps;
4937   PetscFunctionReturn(0);
4938 }
4939 
4940 #undef __FUNCT__
4941 #define __FUNCT__ "TSGetSNESIterations"
4942 /*@
4943    TSGetSNESIterations - Gets the total number of nonlinear iterations
4944    used by the time integrator.
4945 
4946    Not Collective
4947 
4948    Input Parameter:
4949 .  ts - TS context
4950 
4951    Output Parameter:
4952 .  nits - number of nonlinear iterations
4953 
4954    Notes:
4955    This counter is reset to zero for each successive call to TSSolve().
4956 
4957    Level: intermediate
4958 
4959 .keywords: TS, get, number, nonlinear, iterations
4960 
4961 .seealso:  TSGetKSPIterations()
4962 @*/
4963 PetscErrorCode TSGetSNESIterations(TS ts,PetscInt *nits)
4964 {
4965   PetscFunctionBegin;
4966   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4967   PetscValidIntPointer(nits,2);
4968   *nits = ts->snes_its;
4969   PetscFunctionReturn(0);
4970 }
4971 
4972 #undef __FUNCT__
4973 #define __FUNCT__ "TSGetKSPIterations"
4974 /*@
4975    TSGetKSPIterations - Gets the total number of linear iterations
4976    used by the time integrator.
4977 
4978    Not Collective
4979 
4980    Input Parameter:
4981 .  ts - TS context
4982 
4983    Output Parameter:
4984 .  lits - number of linear iterations
4985 
4986    Notes:
4987    This counter is reset to zero for each successive call to TSSolve().
4988 
4989    Level: intermediate
4990 
4991 .keywords: TS, get, number, linear, iterations
4992 
4993 .seealso:  TSGetSNESIterations(), SNESGetKSPIterations()
4994 @*/
4995 PetscErrorCode TSGetKSPIterations(TS ts,PetscInt *lits)
4996 {
4997   PetscFunctionBegin;
4998   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
4999   PetscValidIntPointer(lits,2);
5000   *lits = ts->ksp_its;
5001   PetscFunctionReturn(0);
5002 }
5003 
5004 #undef __FUNCT__
5005 #define __FUNCT__ "TSGetStepRejections"
5006 /*@
5007    TSGetStepRejections - Gets the total number of rejected steps.
5008 
5009    Not Collective
5010 
5011    Input Parameter:
5012 .  ts - TS context
5013 
5014    Output Parameter:
5015 .  rejects - number of steps rejected
5016 
5017    Notes:
5018    This counter is reset to zero for each successive call to TSSolve().
5019 
5020    Level: intermediate
5021 
5022 .keywords: TS, get, number
5023 
5024 .seealso:  TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetSNESFailures(), TSSetMaxSNESFailures(), TSSetErrorIfStepFails()
5025 @*/
5026 PetscErrorCode TSGetStepRejections(TS ts,PetscInt *rejects)
5027 {
5028   PetscFunctionBegin;
5029   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5030   PetscValidIntPointer(rejects,2);
5031   *rejects = ts->reject;
5032   PetscFunctionReturn(0);
5033 }
5034 
5035 #undef __FUNCT__
5036 #define __FUNCT__ "TSGetSNESFailures"
5037 /*@
5038    TSGetSNESFailures - Gets the total number of failed SNES solves
5039 
5040    Not Collective
5041 
5042    Input Parameter:
5043 .  ts - TS context
5044 
5045    Output Parameter:
5046 .  fails - number of failed nonlinear solves
5047 
5048    Notes:
5049    This counter is reset to zero for each successive call to TSSolve().
5050 
5051    Level: intermediate
5052 
5053 .keywords: TS, get, number
5054 
5055 .seealso:  TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetStepRejections(), TSSetMaxSNESFailures()
5056 @*/
5057 PetscErrorCode TSGetSNESFailures(TS ts,PetscInt *fails)
5058 {
5059   PetscFunctionBegin;
5060   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5061   PetscValidIntPointer(fails,2);
5062   *fails = ts->num_snes_failures;
5063   PetscFunctionReturn(0);
5064 }
5065 
5066 #undef __FUNCT__
5067 #define __FUNCT__ "TSSetMaxStepRejections"
5068 /*@
5069    TSSetMaxStepRejections - Sets the maximum number of step rejections before a step fails
5070 
5071    Not Collective
5072 
5073    Input Parameter:
5074 +  ts - TS context
5075 -  rejects - maximum number of rejected steps, pass -1 for unlimited
5076 
5077    Notes:
5078    The counter is reset to zero for each step
5079 
5080    Options Database Key:
5081  .  -ts_max_reject - Maximum number of step rejections before a step fails
5082 
5083    Level: intermediate
5084 
5085 .keywords: TS, set, maximum, number
5086 
5087 .seealso:  TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxSNESFailures(), TSGetStepRejections(), TSGetSNESFailures(), TSSetErrorIfStepFails(), TSGetConvergedReason()
5088 @*/
5089 PetscErrorCode TSSetMaxStepRejections(TS ts,PetscInt rejects)
5090 {
5091   PetscFunctionBegin;
5092   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5093   ts->max_reject = rejects;
5094   PetscFunctionReturn(0);
5095 }
5096 
5097 #undef __FUNCT__
5098 #define __FUNCT__ "TSSetMaxSNESFailures"
5099 /*@
5100    TSSetMaxSNESFailures - Sets the maximum number of failed SNES solves
5101 
5102    Not Collective
5103 
5104    Input Parameter:
5105 +  ts - TS context
5106 -  fails - maximum number of failed nonlinear solves, pass -1 for unlimited
5107 
5108    Notes:
5109    The counter is reset to zero for each successive call to TSSolve().
5110 
5111    Options Database Key:
5112  .  -ts_max_snes_failures - Maximum number of nonlinear solve failures
5113 
5114    Level: intermediate
5115 
5116 .keywords: TS, set, maximum, number
5117 
5118 .seealso:  TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetStepRejections(), TSGetSNESFailures(), SNESGetConvergedReason(), TSGetConvergedReason()
5119 @*/
5120 PetscErrorCode TSSetMaxSNESFailures(TS ts,PetscInt fails)
5121 {
5122   PetscFunctionBegin;
5123   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5124   ts->max_snes_failures = fails;
5125   PetscFunctionReturn(0);
5126 }
5127 
5128 #undef __FUNCT__
5129 #define __FUNCT__ "TSSetErrorIfStepFails"
5130 /*@
5131    TSSetErrorIfStepFails - Error if no step succeeds
5132 
5133    Not Collective
5134 
5135    Input Parameter:
5136 +  ts - TS context
5137 -  err - PETSC_TRUE to error if no step succeeds, PETSC_FALSE to return without failure
5138 
5139    Options Database Key:
5140  .  -ts_error_if_step_fails - Error if no step succeeds
5141 
5142    Level: intermediate
5143 
5144 .keywords: TS, set, error
5145 
5146 .seealso:  TSGetSNESIterations(), TSGetKSPIterations(), TSSetMaxStepRejections(), TSGetStepRejections(), TSGetSNESFailures(), TSSetErrorIfStepFails(), TSGetConvergedReason()
5147 @*/
5148 PetscErrorCode TSSetErrorIfStepFails(TS ts,PetscBool err)
5149 {
5150   PetscFunctionBegin;
5151   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5152   ts->errorifstepfailed = err;
5153   PetscFunctionReturn(0);
5154 }
5155 
5156 #undef __FUNCT__
5157 #define __FUNCT__ "TSMonitorSolution"
5158 /*@C
5159    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
5160 
5161    Collective on TS
5162 
5163    Input Parameters:
5164 +  ts - the TS context
5165 .  step - current time-step
5166 .  ptime - current time
5167 .  u - current state
5168 -  viewer - binary viewer
5169 
5170    Level: intermediate
5171 
5172 .keywords: TS,  vector, monitor, view
5173 
5174 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView()
5175 @*/
5176 PetscErrorCode  TSMonitorSolution(TS ts,PetscInt step,PetscReal ptime,Vec u,void *viewer)
5177 {
5178   PetscErrorCode ierr;
5179   PetscViewer    v = (PetscViewer)viewer;
5180 
5181   PetscFunctionBegin;
5182   ierr = VecView(u,v);CHKERRQ(ierr);
5183   PetscFunctionReturn(0);
5184 }
5185 
5186 #undef __FUNCT__
5187 #define __FUNCT__ "TSMonitorSolutionVTK"
5188 /*@C
5189    TSMonitorSolutionVTK - Monitors progress of the TS solvers by VecView() for the solution at each timestep.
5190 
5191    Collective on TS
5192 
5193    Input Parameters:
5194 +  ts - the TS context
5195 .  step - current time-step
5196 .  ptime - current time
5197 .  u - current state
5198 -  filenametemplate - string containing a format specifier for the integer time step (e.g. %03D)
5199 
5200    Level: intermediate
5201 
5202    Notes:
5203    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.
5204    These are named according to the file name template.
5205 
5206    This function is normally passed as an argument to TSMonitorSet() along with TSMonitorSolutionVTKDestroy().
5207 
5208 .keywords: TS,  vector, monitor, view
5209 
5210 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView()
5211 @*/
5212 PetscErrorCode TSMonitorSolutionVTK(TS ts,PetscInt step,PetscReal ptime,Vec u,void *filenametemplate)
5213 {
5214   PetscErrorCode ierr;
5215   char           filename[PETSC_MAX_PATH_LEN];
5216   PetscViewer    viewer;
5217 
5218   PetscFunctionBegin;
5219   if (step < 0) PetscFunctionReturn(0); /* -1 indicates interpolated solution */
5220   ierr = PetscSNPrintf(filename,sizeof(filename),(const char*)filenametemplate,step);CHKERRQ(ierr);
5221   ierr = PetscViewerVTKOpen(PetscObjectComm((PetscObject)ts),filename,FILE_MODE_WRITE,&viewer);CHKERRQ(ierr);
5222   ierr = VecView(u,viewer);CHKERRQ(ierr);
5223   ierr = PetscViewerDestroy(&viewer);CHKERRQ(ierr);
5224   PetscFunctionReturn(0);
5225 }
5226 
5227 #undef __FUNCT__
5228 #define __FUNCT__ "TSMonitorSolutionVTKDestroy"
5229 /*@C
5230    TSMonitorSolutionVTKDestroy - Destroy context for monitoring
5231 
5232    Collective on TS
5233 
5234    Input Parameters:
5235 .  filenametemplate - string containing a format specifier for the integer time step (e.g. %03D)
5236 
5237    Level: intermediate
5238 
5239    Note:
5240    This function is normally passed to TSMonitorSet() along with TSMonitorSolutionVTK().
5241 
5242 .keywords: TS,  vector, monitor, view
5243 
5244 .seealso: TSMonitorSet(), TSMonitorSolutionVTK()
5245 @*/
5246 PetscErrorCode TSMonitorSolutionVTKDestroy(void *filenametemplate)
5247 {
5248   PetscErrorCode ierr;
5249 
5250   PetscFunctionBegin;
5251   ierr = PetscFree(*(char**)filenametemplate);CHKERRQ(ierr);
5252   PetscFunctionReturn(0);
5253 }
5254 
5255 #undef __FUNCT__
5256 #define __FUNCT__ "TSGetAdapt"
5257 /*@
5258    TSGetAdapt - Get the adaptive controller context for the current method
5259 
5260    Collective on TS if controller has not been created yet
5261 
5262    Input Arguments:
5263 .  ts - time stepping context
5264 
5265    Output Arguments:
5266 .  adapt - adaptive controller
5267 
5268    Level: intermediate
5269 
5270 .seealso: TSAdapt, TSAdaptSetType(), TSAdaptChoose()
5271 @*/
5272 PetscErrorCode TSGetAdapt(TS ts,TSAdapt *adapt)
5273 {
5274   PetscErrorCode ierr;
5275 
5276   PetscFunctionBegin;
5277   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5278   if (adapt) PetscValidPointer(adapt,2);
5279   if (!ts->adapt) {
5280     ierr = TSAdaptCreate(PetscObjectComm((PetscObject)ts),&ts->adapt);CHKERRQ(ierr);
5281     ierr = PetscLogObjectParent((PetscObject)ts,(PetscObject)ts->adapt);CHKERRQ(ierr);
5282     ierr = PetscObjectIncrementTabLevel((PetscObject)ts->adapt,(PetscObject)ts,1);CHKERRQ(ierr);
5283   }
5284   if (adapt) *adapt = ts->adapt;
5285   PetscFunctionReturn(0);
5286 }
5287 
5288 #undef __FUNCT__
5289 #define __FUNCT__ "TSSetTolerances"
5290 /*@
5291    TSSetTolerances - Set tolerances for local truncation error when using adaptive controller
5292 
5293    Logically Collective
5294 
5295    Input Arguments:
5296 +  ts - time integration context
5297 .  atol - scalar absolute tolerances, PETSC_DECIDE to leave current value
5298 .  vatol - vector of absolute tolerances or NULL, used in preference to atol if present
5299 .  rtol - scalar relative tolerances, PETSC_DECIDE to leave current value
5300 -  vrtol - vector of relative tolerances or NULL, used in preference to atol if present
5301 
5302    Options Database keys:
5303 +  -ts_rtol <rtol> - relative tolerance for local truncation error
5304 -  -ts_atol <atol> Absolute tolerance for local truncation error
5305 
5306    Notes:
5307    With PETSc's implicit schemes for DAE problems, the calculation of the local truncation error
5308    (LTE) includes both the differential and the algebraic variables. If one wants the LTE to be
5309    computed only for the differential or the algebraic part then this can be done using the vector of
5310    tolerances vatol. For example, by setting the tolerance vector with the desired tolerance for the
5311    differential part and infinity for the algebraic part, the LTE calculation will include only the
5312    differential variables.
5313 
5314    Level: beginner
5315 
5316 .seealso: TS, TSAdapt, TSVecNormWRMS(), TSGetTolerances()
5317 @*/
5318 PetscErrorCode TSSetTolerances(TS ts,PetscReal atol,Vec vatol,PetscReal rtol,Vec vrtol)
5319 {
5320   PetscErrorCode ierr;
5321 
5322   PetscFunctionBegin;
5323   if (atol != PETSC_DECIDE && atol != PETSC_DEFAULT) ts->atol = atol;
5324   if (vatol) {
5325     ierr = PetscObjectReference((PetscObject)vatol);CHKERRQ(ierr);
5326     ierr = VecDestroy(&ts->vatol);CHKERRQ(ierr);
5327 
5328     ts->vatol = vatol;
5329   }
5330   if (rtol != PETSC_DECIDE && rtol != PETSC_DEFAULT) ts->rtol = rtol;
5331   if (vrtol) {
5332     ierr = PetscObjectReference((PetscObject)vrtol);CHKERRQ(ierr);
5333     ierr = VecDestroy(&ts->vrtol);CHKERRQ(ierr);
5334 
5335     ts->vrtol = vrtol;
5336   }
5337   PetscFunctionReturn(0);
5338 }
5339 
5340 #undef __FUNCT__
5341 #define __FUNCT__ "TSGetTolerances"
5342 /*@
5343    TSGetTolerances - Get tolerances for local truncation error when using adaptive controller
5344 
5345    Logically Collective
5346 
5347    Input Arguments:
5348 .  ts - time integration context
5349 
5350    Output Arguments:
5351 +  atol - scalar absolute tolerances, NULL to ignore
5352 .  vatol - vector of absolute tolerances, NULL to ignore
5353 .  rtol - scalar relative tolerances, NULL to ignore
5354 -  vrtol - vector of relative tolerances, NULL to ignore
5355 
5356    Level: beginner
5357 
5358 .seealso: TS, TSAdapt, TSVecNormWRMS(), TSSetTolerances()
5359 @*/
5360 PetscErrorCode TSGetTolerances(TS ts,PetscReal *atol,Vec *vatol,PetscReal *rtol,Vec *vrtol)
5361 {
5362   PetscFunctionBegin;
5363   if (atol)  *atol  = ts->atol;
5364   if (vatol) *vatol = ts->vatol;
5365   if (rtol)  *rtol  = ts->rtol;
5366   if (vrtol) *vrtol = ts->vrtol;
5367   PetscFunctionReturn(0);
5368 }
5369 
5370 #undef __FUNCT__
5371 #define __FUNCT__ "TSErrorWeightedNorm2"
5372 /*@
5373    TSErrorWeightedNorm2 - compute a weighted 2-norm of the difference between two state vectors
5374 
5375    Collective on TS
5376 
5377    Input Arguments:
5378 +  ts - time stepping context
5379 .  U - state vector, usually ts->vec_sol
5380 -  Y - state vector to be compared to U
5381 
5382    Output Arguments:
5383 .  norm - weighted norm, a value of 1.0 is considered small
5384 
5385    Level: developer
5386 
5387 .seealso: TSErrorWeightedNorm(), TSErrorWeightedNormInfinity()
5388 @*/
5389 PetscErrorCode TSErrorWeightedNorm2(TS ts,Vec U,Vec Y,PetscReal *norm)
5390 {
5391   PetscErrorCode    ierr;
5392   PetscInt          i,n,N,rstart;
5393   const PetscScalar *u,*y;
5394   PetscReal         sum,gsum;
5395   PetscReal         tol;
5396 
5397   PetscFunctionBegin;
5398   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5399   PetscValidHeaderSpecific(U,VEC_CLASSID,2);
5400   PetscValidHeaderSpecific(Y,VEC_CLASSID,3);
5401   PetscValidType(U,2);
5402   PetscValidType(Y,3);
5403   PetscCheckSameComm(U,2,Y,3);
5404   PetscValidPointer(norm,4);
5405   if (U == Y) SETERRQ(PetscObjectComm((PetscObject)U),PETSC_ERR_ARG_IDN,"U and Y cannot be the same vector");
5406 
5407   ierr = VecGetSize(U,&N);CHKERRQ(ierr);
5408   ierr = VecGetLocalSize(U,&n);CHKERRQ(ierr);
5409   ierr = VecGetOwnershipRange(U,&rstart,NULL);CHKERRQ(ierr);
5410   ierr = VecGetArrayRead(U,&u);CHKERRQ(ierr);
5411   ierr = VecGetArrayRead(Y,&y);CHKERRQ(ierr);
5412   sum  = 0.;
5413   if (ts->vatol && ts->vrtol) {
5414     const PetscScalar *atol,*rtol;
5415     ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5416     ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5417     for (i=0; i<n; i++) {
5418       tol = PetscRealPart(atol[i]) + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5419       sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol);
5420     }
5421     ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5422     ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5423   } else if (ts->vatol) {       /* vector atol, scalar rtol */
5424     const PetscScalar *atol;
5425     ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5426     for (i=0; i<n; i++) {
5427       tol = PetscRealPart(atol[i]) + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5428       sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol);
5429     }
5430     ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5431   } else if (ts->vrtol) {       /* scalar atol, vector rtol */
5432     const PetscScalar *rtol;
5433     ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5434     for (i=0; i<n; i++) {
5435       tol = ts->atol + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5436       sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol);
5437     }
5438     ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5439   } else {                      /* scalar atol, scalar rtol */
5440     for (i=0; i<n; i++) {
5441       tol = ts->atol + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5442       sum += PetscSqr(PetscAbsScalar(y[i] - u[i]) / tol);
5443     }
5444   }
5445   ierr = VecRestoreArrayRead(U,&u);CHKERRQ(ierr);
5446   ierr = VecRestoreArrayRead(Y,&y);CHKERRQ(ierr);
5447 
5448   ierr  = MPIU_Allreduce(&sum,&gsum,1,MPIU_REAL,MPIU_SUM,PetscObjectComm((PetscObject)ts));CHKERRQ(ierr);
5449   *norm = PetscSqrtReal(gsum / N);
5450 
5451   if (PetscIsInfOrNanScalar(*norm)) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_FP,"Infinite or not-a-number generated in norm");
5452   PetscFunctionReturn(0);
5453 }
5454 
5455 #undef __FUNCT__
5456 #define __FUNCT__ "TSErrorWeightedNormInfinity"
5457 /*@
5458    TSErrorWeightedNormInfinity - compute a weighted infinity-norm of the difference between two state vectors
5459 
5460    Collective on TS
5461 
5462    Input Arguments:
5463 +  ts - time stepping context
5464 .  U - state vector, usually ts->vec_sol
5465 -  Y - state vector to be compared to U
5466 
5467    Output Arguments:
5468 .  norm - weighted norm, a value of 1.0 is considered small
5469 
5470    Level: developer
5471 
5472 .seealso: TSErrorWeightedNorm(), TSErrorWeightedNorm2()
5473 @*/
5474 PetscErrorCode TSErrorWeightedNormInfinity(TS ts,Vec U,Vec Y,PetscReal *norm)
5475 {
5476   PetscErrorCode    ierr;
5477   PetscInt          i,n,N,rstart,k;
5478   const PetscScalar *u,*y;
5479   PetscReal         max,gmax;
5480   PetscReal         tol;
5481 
5482   PetscFunctionBegin;
5483   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5484   PetscValidHeaderSpecific(U,VEC_CLASSID,2);
5485   PetscValidHeaderSpecific(Y,VEC_CLASSID,3);
5486   PetscValidType(U,2);
5487   PetscValidType(Y,3);
5488   PetscCheckSameComm(U,2,Y,3);
5489   PetscValidPointer(norm,4);
5490   if (U == Y) SETERRQ(PetscObjectComm((PetscObject)U),PETSC_ERR_ARG_IDN,"U and Y cannot be the same vector");
5491 
5492   ierr = VecGetSize(U,&N);CHKERRQ(ierr);
5493   ierr = VecGetLocalSize(U,&n);CHKERRQ(ierr);
5494   ierr = VecGetOwnershipRange(U,&rstart,NULL);CHKERRQ(ierr);
5495   ierr = VecGetArrayRead(U,&u);CHKERRQ(ierr);
5496   ierr = VecGetArrayRead(Y,&y);CHKERRQ(ierr);
5497   if (ts->vatol && ts->vrtol) {
5498     const PetscScalar *atol,*rtol;
5499     ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5500     ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5501     k = 0;
5502     tol = PetscRealPart(atol[k]) + PetscRealPart(rtol[k]) * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k]));
5503     max = PetscAbsScalar(y[k] - u[k]) / tol;
5504     for (i=1; i<n; i++) {
5505       tol = PetscRealPart(atol[i]) + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5506       max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol);
5507     }
5508     ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5509     ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5510   } else if (ts->vatol) {       /* vector atol, scalar rtol */
5511     const PetscScalar *atol;
5512     ierr = VecGetArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5513     k = 0;
5514     tol = PetscRealPart(atol[k]) + ts->rtol * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k]));
5515     max = PetscAbsScalar(y[k] - u[k]) / tol;
5516     for (i=1; i<n; i++) {
5517       tol = PetscRealPart(atol[i]) + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5518       max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol);
5519     }
5520     ierr = VecRestoreArrayRead(ts->vatol,&atol);CHKERRQ(ierr);
5521   } else if (ts->vrtol) {       /* scalar atol, vector rtol */
5522     const PetscScalar *rtol;
5523     ierr = VecGetArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5524     k = 0;
5525     tol = ts->atol + PetscRealPart(rtol[k]) * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k]));
5526     max = PetscAbsScalar(y[k] - u[k]) / tol;
5527     for (i=1; i<n; i++) {
5528       tol = ts->atol + PetscRealPart(rtol[i]) * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5529       max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol);
5530     }
5531     ierr = VecRestoreArrayRead(ts->vrtol,&rtol);CHKERRQ(ierr);
5532   } else {                      /* scalar atol, scalar rtol */
5533     k = 0;
5534     tol = ts->atol + ts->rtol * PetscMax(PetscAbsScalar(u[k]),PetscAbsScalar(y[k]));
5535     max = PetscAbsScalar(y[k] - u[k]) / tol;
5536     for (i=1; i<n; i++) {
5537       tol = ts->atol + ts->rtol * PetscMax(PetscAbsScalar(u[i]),PetscAbsScalar(y[i]));
5538       max = PetscMax(max,PetscAbsScalar(y[i] - u[i]) / tol);
5539     }
5540   }
5541   ierr = VecRestoreArrayRead(U,&u);CHKERRQ(ierr);
5542   ierr = VecRestoreArrayRead(Y,&y);CHKERRQ(ierr);
5543 
5544   ierr  = MPIU_Allreduce(&max,&gmax,1,MPIU_REAL,MPIU_MAX,PetscObjectComm((PetscObject)ts));CHKERRQ(ierr);
5545   *norm = gmax;
5546 
5547   if (PetscIsInfOrNanScalar(*norm)) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_FP,"Infinite or not-a-number generated in norm");
5548   PetscFunctionReturn(0);
5549 }
5550 
5551 #undef __FUNCT__
5552 #define __FUNCT__ "TSErrorWeightedNorm"
5553 /*@
5554    TSErrorWeightedNorm - compute a weighted norm of the difference between two state vectors
5555 
5556    Collective on TS
5557 
5558    Input Arguments:
5559 +  ts - time stepping context
5560 .  U - state vector, usually ts->vec_sol
5561 .  Y - state vector to be compared to U
5562 -  wnormtype - norm type, either NORM_2 or NORM_INFINITY
5563 
5564    Output Arguments:
5565 .  norm - weighted norm, a value of 1.0 is considered small
5566 
5567 
5568    Options Database Keys:
5569 .  -ts_adapt_wnormtype <wnormtype> - 2, INFINITY
5570 
5571    Level: developer
5572 
5573 .seealso: TSErrorWeightedNormInfinity(), TSErrorWeightedNorm2()
5574 @*/
5575 PetscErrorCode TSErrorWeightedNorm(TS ts,Vec U,Vec Y,NormType wnormtype,PetscReal *norm)
5576 {
5577   PetscErrorCode ierr;
5578 
5579   PetscFunctionBegin;
5580   if (wnormtype == NORM_2) {
5581     ierr = TSErrorWeightedNorm2(ts,U,Y,norm);CHKERRQ(ierr);
5582   } else if(wnormtype == NORM_INFINITY) {
5583     ierr = TSErrorWeightedNormInfinity(ts,U,Y,norm);CHKERRQ(ierr);
5584   } else SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"No support for norm type %s",NormTypes[wnormtype]);
5585   PetscFunctionReturn(0);
5586 }
5587 
5588 #undef __FUNCT__
5589 #define __FUNCT__ "TSSetCFLTimeLocal"
5590 /*@
5591    TSSetCFLTimeLocal - Set the local CFL constraint relative to forward Euler
5592 
5593    Logically Collective on TS
5594 
5595    Input Arguments:
5596 +  ts - time stepping context
5597 -  cfltime - maximum stable time step if using forward Euler (value can be different on each process)
5598 
5599    Note:
5600    After calling this function, the global CFL time can be obtained by calling TSGetCFLTime()
5601 
5602    Level: intermediate
5603 
5604 .seealso: TSGetCFLTime(), TSADAPTCFL
5605 @*/
5606 PetscErrorCode TSSetCFLTimeLocal(TS ts,PetscReal cfltime)
5607 {
5608   PetscFunctionBegin;
5609   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5610   ts->cfltime_local = cfltime;
5611   ts->cfltime       = -1.;
5612   PetscFunctionReturn(0);
5613 }
5614 
5615 #undef __FUNCT__
5616 #define __FUNCT__ "TSGetCFLTime"
5617 /*@
5618    TSGetCFLTime - Get the maximum stable time step according to CFL criteria applied to forward Euler
5619 
5620    Collective on TS
5621 
5622    Input Arguments:
5623 .  ts - time stepping context
5624 
5625    Output Arguments:
5626 .  cfltime - maximum stable time step for forward Euler
5627 
5628    Level: advanced
5629 
5630 .seealso: TSSetCFLTimeLocal()
5631 @*/
5632 PetscErrorCode TSGetCFLTime(TS ts,PetscReal *cfltime)
5633 {
5634   PetscErrorCode ierr;
5635 
5636   PetscFunctionBegin;
5637   if (ts->cfltime < 0) {
5638     ierr = MPIU_Allreduce(&ts->cfltime_local,&ts->cfltime,1,MPIU_REAL,MPIU_MIN,PetscObjectComm((PetscObject)ts));CHKERRQ(ierr);
5639   }
5640   *cfltime = ts->cfltime;
5641   PetscFunctionReturn(0);
5642 }
5643 
5644 #undef __FUNCT__
5645 #define __FUNCT__ "TSVISetVariableBounds"
5646 /*@
5647    TSVISetVariableBounds - Sets the lower and upper bounds for the solution vector. xl <= x <= xu
5648 
5649    Input Parameters:
5650 .  ts   - the TS context.
5651 .  xl   - lower bound.
5652 .  xu   - upper bound.
5653 
5654    Notes:
5655    If this routine is not called then the lower and upper bounds are set to
5656    PETSC_NINFINITY and PETSC_INFINITY respectively during SNESSetUp().
5657 
5658    Level: advanced
5659 
5660 @*/
5661 PetscErrorCode TSVISetVariableBounds(TS ts, Vec xl, Vec xu)
5662 {
5663   PetscErrorCode ierr;
5664   SNES           snes;
5665 
5666   PetscFunctionBegin;
5667   ierr = TSGetSNES(ts,&snes);CHKERRQ(ierr);
5668   ierr = SNESVISetVariableBounds(snes,xl,xu);CHKERRQ(ierr);
5669   PetscFunctionReturn(0);
5670 }
5671 
5672 #if defined(PETSC_HAVE_MATLAB_ENGINE)
5673 #include <mex.h>
5674 
5675 typedef struct {char *funcname; mxArray *ctx;} TSMatlabContext;
5676 
5677 #undef __FUNCT__
5678 #define __FUNCT__ "TSComputeFunction_Matlab"
5679 /*
5680    TSComputeFunction_Matlab - Calls the function that has been set with
5681                          TSSetFunctionMatlab().
5682 
5683    Collective on TS
5684 
5685    Input Parameters:
5686 +  snes - the TS context
5687 -  u - input vector
5688 
5689    Output Parameter:
5690 .  y - function vector, as set by TSSetFunction()
5691 
5692    Notes:
5693    TSComputeFunction() is typically used within nonlinear solvers
5694    implementations, so most users would not generally call this routine
5695    themselves.
5696 
5697    Level: developer
5698 
5699 .keywords: TS, nonlinear, compute, function
5700 
5701 .seealso: TSSetFunction(), TSGetFunction()
5702 */
5703 PetscErrorCode  TSComputeFunction_Matlab(TS snes,PetscReal time,Vec u,Vec udot,Vec y, void *ctx)
5704 {
5705   PetscErrorCode  ierr;
5706   TSMatlabContext *sctx = (TSMatlabContext*)ctx;
5707   int             nlhs  = 1,nrhs = 7;
5708   mxArray         *plhs[1],*prhs[7];
5709   long long int   lx = 0,lxdot = 0,ly = 0,ls = 0;
5710 
5711   PetscFunctionBegin;
5712   PetscValidHeaderSpecific(snes,TS_CLASSID,1);
5713   PetscValidHeaderSpecific(u,VEC_CLASSID,3);
5714   PetscValidHeaderSpecific(udot,VEC_CLASSID,4);
5715   PetscValidHeaderSpecific(y,VEC_CLASSID,5);
5716   PetscCheckSameComm(snes,1,u,3);
5717   PetscCheckSameComm(snes,1,y,5);
5718 
5719   ierr = PetscMemcpy(&ls,&snes,sizeof(snes));CHKERRQ(ierr);
5720   ierr = PetscMemcpy(&lx,&u,sizeof(u));CHKERRQ(ierr);
5721   ierr = PetscMemcpy(&lxdot,&udot,sizeof(udot));CHKERRQ(ierr);
5722   ierr = PetscMemcpy(&ly,&y,sizeof(u));CHKERRQ(ierr);
5723 
5724   prhs[0] =  mxCreateDoubleScalar((double)ls);
5725   prhs[1] =  mxCreateDoubleScalar(time);
5726   prhs[2] =  mxCreateDoubleScalar((double)lx);
5727   prhs[3] =  mxCreateDoubleScalar((double)lxdot);
5728   prhs[4] =  mxCreateDoubleScalar((double)ly);
5729   prhs[5] =  mxCreateString(sctx->funcname);
5730   prhs[6] =  sctx->ctx;
5731   ierr    =  mexCallMATLAB(nlhs,plhs,nrhs,prhs,"PetscTSComputeFunctionInternal");CHKERRQ(ierr);
5732   ierr    =  mxGetScalar(plhs[0]);CHKERRQ(ierr);
5733   mxDestroyArray(prhs[0]);
5734   mxDestroyArray(prhs[1]);
5735   mxDestroyArray(prhs[2]);
5736   mxDestroyArray(prhs[3]);
5737   mxDestroyArray(prhs[4]);
5738   mxDestroyArray(prhs[5]);
5739   mxDestroyArray(plhs[0]);
5740   PetscFunctionReturn(0);
5741 }
5742 
5743 
5744 #undef __FUNCT__
5745 #define __FUNCT__ "TSSetFunctionMatlab"
5746 /*
5747    TSSetFunctionMatlab - Sets the function evaluation routine and function
5748    vector for use by the TS routines in solving ODEs
5749    equations from MATLAB. Here the function is a string containing the name of a MATLAB function
5750 
5751    Logically Collective on TS
5752 
5753    Input Parameters:
5754 +  ts - the TS context
5755 -  func - function evaluation routine
5756 
5757    Calling sequence of func:
5758 $    func (TS ts,PetscReal time,Vec u,Vec udot,Vec f,void *ctx);
5759 
5760    Level: beginner
5761 
5762 .keywords: TS, nonlinear, set, function
5763 
5764 .seealso: TSGetFunction(), TSComputeFunction(), TSSetJacobian(), TSSetFunction()
5765 */
5766 PetscErrorCode  TSSetFunctionMatlab(TS ts,const char *func,mxArray *ctx)
5767 {
5768   PetscErrorCode  ierr;
5769   TSMatlabContext *sctx;
5770 
5771   PetscFunctionBegin;
5772   /* currently sctx is memory bleed */
5773   ierr = PetscMalloc(sizeof(TSMatlabContext),&sctx);CHKERRQ(ierr);
5774   ierr = PetscStrallocpy(func,&sctx->funcname);CHKERRQ(ierr);
5775   /*
5776      This should work, but it doesn't
5777   sctx->ctx = ctx;
5778   mexMakeArrayPersistent(sctx->ctx);
5779   */
5780   sctx->ctx = mxDuplicateArray(ctx);
5781 
5782   ierr = TSSetIFunction(ts,NULL,TSComputeFunction_Matlab,sctx);CHKERRQ(ierr);
5783   PetscFunctionReturn(0);
5784 }
5785 
5786 #undef __FUNCT__
5787 #define __FUNCT__ "TSComputeJacobian_Matlab"
5788 /*
5789    TSComputeJacobian_Matlab - Calls the function that has been set with
5790                          TSSetJacobianMatlab().
5791 
5792    Collective on TS
5793 
5794    Input Parameters:
5795 +  ts - the TS context
5796 .  u - input vector
5797 .  A, B - the matrices
5798 -  ctx - user context
5799 
5800    Level: developer
5801 
5802 .keywords: TS, nonlinear, compute, function
5803 
5804 .seealso: TSSetFunction(), TSGetFunction()
5805 @*/
5806 PetscErrorCode  TSComputeJacobian_Matlab(TS ts,PetscReal time,Vec u,Vec udot,PetscReal shift,Mat A,Mat B,void *ctx)
5807 {
5808   PetscErrorCode  ierr;
5809   TSMatlabContext *sctx = (TSMatlabContext*)ctx;
5810   int             nlhs  = 2,nrhs = 9;
5811   mxArray         *plhs[2],*prhs[9];
5812   long long int   lx = 0,lxdot = 0,lA = 0,ls = 0, lB = 0;
5813 
5814   PetscFunctionBegin;
5815   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5816   PetscValidHeaderSpecific(u,VEC_CLASSID,3);
5817 
5818   /* call Matlab function in ctx with arguments u and y */
5819 
5820   ierr = PetscMemcpy(&ls,&ts,sizeof(ts));CHKERRQ(ierr);
5821   ierr = PetscMemcpy(&lx,&u,sizeof(u));CHKERRQ(ierr);
5822   ierr = PetscMemcpy(&lxdot,&udot,sizeof(u));CHKERRQ(ierr);
5823   ierr = PetscMemcpy(&lA,A,sizeof(u));CHKERRQ(ierr);
5824   ierr = PetscMemcpy(&lB,B,sizeof(u));CHKERRQ(ierr);
5825 
5826   prhs[0] =  mxCreateDoubleScalar((double)ls);
5827   prhs[1] =  mxCreateDoubleScalar((double)time);
5828   prhs[2] =  mxCreateDoubleScalar((double)lx);
5829   prhs[3] =  mxCreateDoubleScalar((double)lxdot);
5830   prhs[4] =  mxCreateDoubleScalar((double)shift);
5831   prhs[5] =  mxCreateDoubleScalar((double)lA);
5832   prhs[6] =  mxCreateDoubleScalar((double)lB);
5833   prhs[7] =  mxCreateString(sctx->funcname);
5834   prhs[8] =  sctx->ctx;
5835   ierr    =  mexCallMATLAB(nlhs,plhs,nrhs,prhs,"PetscTSComputeJacobianInternal");CHKERRQ(ierr);
5836   ierr    =  mxGetScalar(plhs[0]);CHKERRQ(ierr);
5837   mxDestroyArray(prhs[0]);
5838   mxDestroyArray(prhs[1]);
5839   mxDestroyArray(prhs[2]);
5840   mxDestroyArray(prhs[3]);
5841   mxDestroyArray(prhs[4]);
5842   mxDestroyArray(prhs[5]);
5843   mxDestroyArray(prhs[6]);
5844   mxDestroyArray(prhs[7]);
5845   mxDestroyArray(plhs[0]);
5846   mxDestroyArray(plhs[1]);
5847   PetscFunctionReturn(0);
5848 }
5849 
5850 
5851 #undef __FUNCT__
5852 #define __FUNCT__ "TSSetJacobianMatlab"
5853 /*
5854    TSSetJacobianMatlab - Sets the Jacobian function evaluation routine and two empty Jacobian matrices
5855    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
5856 
5857    Logically Collective on TS
5858 
5859    Input Parameters:
5860 +  ts - the TS context
5861 .  A,B - Jacobian matrices
5862 .  func - function evaluation routine
5863 -  ctx - user context
5864 
5865    Calling sequence of func:
5866 $    flag = func (TS ts,PetscReal time,Vec u,Vec udot,Mat A,Mat B,void *ctx);
5867 
5868 
5869    Level: developer
5870 
5871 .keywords: TS, nonlinear, set, function
5872 
5873 .seealso: TSGetFunction(), TSComputeFunction(), TSSetJacobian(), TSSetFunction()
5874 */
5875 PetscErrorCode  TSSetJacobianMatlab(TS ts,Mat A,Mat B,const char *func,mxArray *ctx)
5876 {
5877   PetscErrorCode  ierr;
5878   TSMatlabContext *sctx;
5879 
5880   PetscFunctionBegin;
5881   /* currently sctx is memory bleed */
5882   ierr = PetscMalloc(sizeof(TSMatlabContext),&sctx);CHKERRQ(ierr);
5883   ierr = PetscStrallocpy(func,&sctx->funcname);CHKERRQ(ierr);
5884   /*
5885      This should work, but it doesn't
5886   sctx->ctx = ctx;
5887   mexMakeArrayPersistent(sctx->ctx);
5888   */
5889   sctx->ctx = mxDuplicateArray(ctx);
5890 
5891   ierr = TSSetIJacobian(ts,A,B,TSComputeJacobian_Matlab,sctx);CHKERRQ(ierr);
5892   PetscFunctionReturn(0);
5893 }
5894 
5895 #undef __FUNCT__
5896 #define __FUNCT__ "TSMonitor_Matlab"
5897 /*
5898    TSMonitor_Matlab - Calls the function that has been set with TSMonitorSetMatlab().
5899 
5900    Collective on TS
5901 
5902 .seealso: TSSetFunction(), TSGetFunction()
5903 @*/
5904 PetscErrorCode  TSMonitor_Matlab(TS ts,PetscInt it, PetscReal time,Vec u, void *ctx)
5905 {
5906   PetscErrorCode  ierr;
5907   TSMatlabContext *sctx = (TSMatlabContext*)ctx;
5908   int             nlhs  = 1,nrhs = 6;
5909   mxArray         *plhs[1],*prhs[6];
5910   long long int   lx = 0,ls = 0;
5911 
5912   PetscFunctionBegin;
5913   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
5914   PetscValidHeaderSpecific(u,VEC_CLASSID,4);
5915 
5916   ierr = PetscMemcpy(&ls,&ts,sizeof(ts));CHKERRQ(ierr);
5917   ierr = PetscMemcpy(&lx,&u,sizeof(u));CHKERRQ(ierr);
5918 
5919   prhs[0] =  mxCreateDoubleScalar((double)ls);
5920   prhs[1] =  mxCreateDoubleScalar((double)it);
5921   prhs[2] =  mxCreateDoubleScalar((double)time);
5922   prhs[3] =  mxCreateDoubleScalar((double)lx);
5923   prhs[4] =  mxCreateString(sctx->funcname);
5924   prhs[5] =  sctx->ctx;
5925   ierr    =  mexCallMATLAB(nlhs,plhs,nrhs,prhs,"PetscTSMonitorInternal");CHKERRQ(ierr);
5926   ierr    =  mxGetScalar(plhs[0]);CHKERRQ(ierr);
5927   mxDestroyArray(prhs[0]);
5928   mxDestroyArray(prhs[1]);
5929   mxDestroyArray(prhs[2]);
5930   mxDestroyArray(prhs[3]);
5931   mxDestroyArray(prhs[4]);
5932   mxDestroyArray(plhs[0]);
5933   PetscFunctionReturn(0);
5934 }
5935 
5936 
5937 #undef __FUNCT__
5938 #define __FUNCT__ "TSMonitorSetMatlab"
5939 /*
5940    TSMonitorSetMatlab - Sets the monitor function from Matlab
5941 
5942    Level: developer
5943 
5944 .keywords: TS, nonlinear, set, function
5945 
5946 .seealso: TSGetFunction(), TSComputeFunction(), TSSetJacobian(), TSSetFunction()
5947 */
5948 PetscErrorCode  TSMonitorSetMatlab(TS ts,const char *func,mxArray *ctx)
5949 {
5950   PetscErrorCode  ierr;
5951   TSMatlabContext *sctx;
5952 
5953   PetscFunctionBegin;
5954   /* currently sctx is memory bleed */
5955   ierr = PetscMalloc(sizeof(TSMatlabContext),&sctx);CHKERRQ(ierr);
5956   ierr = PetscStrallocpy(func,&sctx->funcname);CHKERRQ(ierr);
5957   /*
5958      This should work, but it doesn't
5959   sctx->ctx = ctx;
5960   mexMakeArrayPersistent(sctx->ctx);
5961   */
5962   sctx->ctx = mxDuplicateArray(ctx);
5963 
5964   ierr = TSMonitorSet(ts,TSMonitor_Matlab,sctx,NULL);CHKERRQ(ierr);
5965   PetscFunctionReturn(0);
5966 }
5967 #endif
5968 
5969 #undef __FUNCT__
5970 #define __FUNCT__ "TSMonitorLGSolution"
5971 /*@C
5972    TSMonitorLGSolution - Monitors progress of the TS solvers by plotting each component of the solution vector
5973        in a time based line graph
5974 
5975    Collective on TS
5976 
5977    Input Parameters:
5978 +  ts - the TS context
5979 .  step - current time-step
5980 .  ptime - current time
5981 .  u - current solution
5982 -  dctx - the TSMonitorLGCtx object that contains all the options for the monitoring, this is created with TSMonitorLGCtxCreate()
5983 
5984    Options Database:
5985 .   -ts_monitor_lg_solution_variables
5986 
5987    Level: intermediate
5988 
5989    Notes: Each process in a parallel run displays its component solutions in a separate window
5990 
5991 .keywords: TS,  vector, monitor, view
5992 
5993 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGCtxCreate(), TSMonitorLGCtxSetVariableNames(), TSMonitorLGCtxGetVariableNames(),
5994            TSMonitorLGSetVariableNames(), TSMonitorLGGetVariableNames(), TSMonitorLGSetDisplayVariables(), TSMonitorLGCtxSetDisplayVariables(),
5995            TSMonitorLGCtxSetTransform(), TSMonitorLGSetTransform(), TSMonitorLGError(), TSMonitorLGSNESIterations(), TSMonitorLGKSPIterations(),
5996            TSMonitorEnvelopeCtxCreate(), TSMonitorEnvelopeGetBounds(), TSMonitorEnvelopeCtxDestroy(), TSMonitorEnvelop()
5997 @*/
5998 PetscErrorCode  TSMonitorLGSolution(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dctx)
5999 {
6000   PetscErrorCode    ierr;
6001   TSMonitorLGCtx    ctx = (TSMonitorLGCtx)dctx;
6002   const PetscScalar *yy;
6003   Vec               v;
6004 
6005   PetscFunctionBegin;
6006   if (step < 0) PetscFunctionReturn(0); /* -1 indicates interpolated solution */
6007   if (!step) {
6008     PetscDrawAxis axis;
6009     PetscInt      dim;
6010     ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr);
6011     ierr = PetscDrawAxisSetLabels(axis,"Solution as function of time","Time","Solution");CHKERRQ(ierr);
6012     if (ctx->names && !ctx->displaynames) {
6013       char      **displaynames;
6014       PetscBool flg;
6015       ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr);
6016       ierr = PetscMalloc((dim+1)*sizeof(char*),&displaynames);CHKERRQ(ierr);
6017       ierr = PetscMemzero(displaynames,(dim+1)*sizeof(char*));CHKERRQ(ierr);
6018       ierr = PetscOptionsGetStringArray(((PetscObject)ts)->options,((PetscObject)ts)->prefix,"-ts_monitor_lg_solution_variables",displaynames,&dim,&flg);CHKERRQ(ierr);
6019       if (flg) {
6020         ierr = TSMonitorLGCtxSetDisplayVariables(ctx,(const char *const *)displaynames);CHKERRQ(ierr);
6021       }
6022       ierr = PetscStrArrayDestroy(&displaynames);CHKERRQ(ierr);
6023     }
6024     if (ctx->displaynames) {
6025       ierr = PetscDrawLGSetDimension(ctx->lg,ctx->ndisplayvariables);CHKERRQ(ierr);
6026       ierr = PetscDrawLGSetLegend(ctx->lg,(const char *const *)ctx->displaynames);CHKERRQ(ierr);
6027     } else if (ctx->names) {
6028       ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr);
6029       ierr = PetscDrawLGSetDimension(ctx->lg,dim);CHKERRQ(ierr);
6030       ierr = PetscDrawLGSetLegend(ctx->lg,(const char *const *)ctx->names);CHKERRQ(ierr);
6031     } else {
6032       ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr);
6033       ierr = PetscDrawLGSetDimension(ctx->lg,dim);CHKERRQ(ierr);
6034     }
6035     ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr);
6036   }
6037 
6038   if (!ctx->transform) v = u;
6039   else {ierr = (*ctx->transform)(ctx->transformctx,u,&v);CHKERRQ(ierr);}
6040   ierr = VecGetArrayRead(v,&yy);CHKERRQ(ierr);
6041   if (ctx->displaynames) {
6042     PetscInt i;
6043     for (i=0; i<ctx->ndisplayvariables; i++)
6044       ctx->displayvalues[i] = PetscRealPart(yy[ctx->displayvariables[i]]);
6045     ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,ctx->displayvalues);CHKERRQ(ierr);
6046   } else {
6047 #if defined(PETSC_USE_COMPLEX)
6048     PetscInt  i,n;
6049     PetscReal *yreal;
6050     ierr = VecGetLocalSize(v,&n);CHKERRQ(ierr);
6051     ierr = PetscMalloc1(n,&yreal);CHKERRQ(ierr);
6052     for (i=0; i<n; i++) yreal[i] = PetscRealPart(yy[i]);
6053     ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yreal);CHKERRQ(ierr);
6054     ierr = PetscFree(yreal);CHKERRQ(ierr);
6055 #else
6056     ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yy);CHKERRQ(ierr);
6057 #endif
6058   }
6059   ierr = VecRestoreArrayRead(v,&yy);CHKERRQ(ierr);
6060   if (ctx->transform) {ierr = VecDestroy(&v);CHKERRQ(ierr);}
6061 
6062   if (((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason)) {
6063     ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr);
6064     ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr);
6065   }
6066   PetscFunctionReturn(0);
6067 }
6068 
6069 
6070 #undef __FUNCT__
6071 #define __FUNCT__ "TSMonitorLGSetVariableNames"
6072 /*@C
6073    TSMonitorLGSetVariableNames - Sets the name of each component in the solution vector so that it may be displayed in the plot
6074 
6075    Collective on TS
6076 
6077    Input Parameters:
6078 +  ts - the TS context
6079 -  names - the names of the components, final string must be NULL
6080 
6081    Level: intermediate
6082 
6083    Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored
6084 
6085 .keywords: TS,  vector, monitor, view
6086 
6087 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables(), TSMonitorLGCtxSetVariableNames()
6088 @*/
6089 PetscErrorCode  TSMonitorLGSetVariableNames(TS ts,const char * const *names)
6090 {
6091   PetscErrorCode    ierr;
6092   PetscInt          i;
6093 
6094   PetscFunctionBegin;
6095   for (i=0; i<ts->numbermonitors; i++) {
6096     if (ts->monitor[i] == TSMonitorLGSolution) {
6097       ierr = TSMonitorLGCtxSetVariableNames((TSMonitorLGCtx)ts->monitorcontext[i],names);CHKERRQ(ierr);
6098       break;
6099     }
6100   }
6101   PetscFunctionReturn(0);
6102 }
6103 
6104 #undef __FUNCT__
6105 #define __FUNCT__ "TSMonitorLGCtxSetVariableNames"
6106 /*@C
6107    TSMonitorLGCtxSetVariableNames - Sets the name of each component in the solution vector so that it may be displayed in the plot
6108 
6109    Collective on TS
6110 
6111    Input Parameters:
6112 +  ts - the TS context
6113 -  names - the names of the components, final string must be NULL
6114 
6115    Level: intermediate
6116 
6117 .keywords: TS,  vector, monitor, view
6118 
6119 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables(), TSMonitorLGSetVariableNames()
6120 @*/
6121 PetscErrorCode  TSMonitorLGCtxSetVariableNames(TSMonitorLGCtx ctx,const char * const *names)
6122 {
6123   PetscErrorCode    ierr;
6124 
6125   PetscFunctionBegin;
6126   ierr = PetscStrArrayDestroy(&ctx->names);CHKERRQ(ierr);
6127   ierr = PetscStrArrayallocpy(names,&ctx->names);CHKERRQ(ierr);
6128   PetscFunctionReturn(0);
6129 }
6130 
6131 #undef __FUNCT__
6132 #define __FUNCT__ "TSMonitorLGGetVariableNames"
6133 /*@C
6134    TSMonitorLGGetVariableNames - Gets the name of each component in the solution vector so that it may be displayed in the plot
6135 
6136    Collective on TS
6137 
6138    Input Parameter:
6139 .  ts - the TS context
6140 
6141    Output Parameter:
6142 .  names - the names of the components, final string must be NULL
6143 
6144    Level: intermediate
6145 
6146    Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored
6147 
6148 .keywords: TS,  vector, monitor, view
6149 
6150 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables()
6151 @*/
6152 PetscErrorCode  TSMonitorLGGetVariableNames(TS ts,const char *const **names)
6153 {
6154   PetscInt       i;
6155 
6156   PetscFunctionBegin;
6157   *names = NULL;
6158   for (i=0; i<ts->numbermonitors; i++) {
6159     if (ts->monitor[i] == TSMonitorLGSolution) {
6160       TSMonitorLGCtx  ctx = (TSMonitorLGCtx) ts->monitorcontext[i];
6161       *names = (const char *const *)ctx->names;
6162       break;
6163     }
6164   }
6165   PetscFunctionReturn(0);
6166 }
6167 
6168 #undef __FUNCT__
6169 #define __FUNCT__ "TSMonitorLGCtxSetDisplayVariables"
6170 /*@C
6171    TSMonitorLGCtxSetDisplayVariables - Sets the variables that are to be display in the monitor
6172 
6173    Collective on TS
6174 
6175    Input Parameters:
6176 +  ctx - the TSMonitorLG context
6177 .  displaynames - the names of the components, final string must be NULL
6178 
6179    Level: intermediate
6180 
6181 .keywords: TS,  vector, monitor, view
6182 
6183 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames()
6184 @*/
6185 PetscErrorCode  TSMonitorLGCtxSetDisplayVariables(TSMonitorLGCtx ctx,const char * const *displaynames)
6186 {
6187   PetscInt          j = 0,k;
6188   PetscErrorCode    ierr;
6189 
6190   PetscFunctionBegin;
6191   if (!ctx->names) PetscFunctionReturn(0);
6192   ierr = PetscStrArrayDestroy(&ctx->displaynames);CHKERRQ(ierr);
6193   ierr = PetscStrArrayallocpy(displaynames,&ctx->displaynames);CHKERRQ(ierr);
6194   while (displaynames[j]) j++;
6195   ctx->ndisplayvariables = j;
6196   ierr = PetscMalloc1(ctx->ndisplayvariables,&ctx->displayvariables);CHKERRQ(ierr);
6197   ierr = PetscMalloc1(ctx->ndisplayvariables,&ctx->displayvalues);CHKERRQ(ierr);
6198   j = 0;
6199   while (displaynames[j]) {
6200     k = 0;
6201     while (ctx->names[k]) {
6202       PetscBool flg;
6203       ierr = PetscStrcmp(displaynames[j],ctx->names[k],&flg);CHKERRQ(ierr);
6204       if (flg) {
6205         ctx->displayvariables[j] = k;
6206         break;
6207       }
6208       k++;
6209     }
6210     j++;
6211   }
6212   PetscFunctionReturn(0);
6213 }
6214 
6215 
6216 #undef __FUNCT__
6217 #define __FUNCT__ "TSMonitorLGSetDisplayVariables"
6218 /*@C
6219    TSMonitorLGSetDisplayVariables - Sets the variables that are to be display in the monitor
6220 
6221    Collective on TS
6222 
6223    Input Parameters:
6224 +  ts - the TS context
6225 .  displaynames - the names of the components, final string must be NULL
6226 
6227    Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored
6228 
6229    Level: intermediate
6230 
6231 .keywords: TS,  vector, monitor, view
6232 
6233 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames()
6234 @*/
6235 PetscErrorCode  TSMonitorLGSetDisplayVariables(TS ts,const char * const *displaynames)
6236 {
6237   PetscInt          i;
6238   PetscErrorCode    ierr;
6239 
6240   PetscFunctionBegin;
6241   for (i=0; i<ts->numbermonitors; i++) {
6242     if (ts->monitor[i] == TSMonitorLGSolution) {
6243       ierr = TSMonitorLGCtxSetDisplayVariables((TSMonitorLGCtx)ts->monitorcontext[i],displaynames);CHKERRQ(ierr);
6244       break;
6245     }
6246   }
6247   PetscFunctionReturn(0);
6248 }
6249 
6250 #undef __FUNCT__
6251 #define __FUNCT__ "TSMonitorLGSetTransform"
6252 /*@C
6253    TSMonitorLGSetTransform - Solution vector will be transformed by provided function before being displayed
6254 
6255    Collective on TS
6256 
6257    Input Parameters:
6258 +  ts - the TS context
6259 .  transform - the transform function
6260 .  destroy - function to destroy the optional context
6261 -  ctx - optional context used by transform function
6262 
6263    Notes: If the TS object does not have a TSMonitorLGCtx associated with it then this function is ignored
6264 
6265    Level: intermediate
6266 
6267 .keywords: TS,  vector, monitor, view
6268 
6269 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames(), TSMonitorLGCtxSetTransform()
6270 @*/
6271 PetscErrorCode  TSMonitorLGSetTransform(TS ts,PetscErrorCode (*transform)(void*,Vec,Vec*),PetscErrorCode (*destroy)(void*),void *tctx)
6272 {
6273   PetscInt          i;
6274   PetscErrorCode    ierr;
6275 
6276   PetscFunctionBegin;
6277   for (i=0; i<ts->numbermonitors; i++) {
6278     if (ts->monitor[i] == TSMonitorLGSolution) {
6279       ierr = TSMonitorLGCtxSetTransform((TSMonitorLGCtx)ts->monitorcontext[i],transform,destroy,tctx);CHKERRQ(ierr);
6280     }
6281   }
6282   PetscFunctionReturn(0);
6283 }
6284 
6285 #undef __FUNCT__
6286 #define __FUNCT__ "TSMonitorLGCtxSetTransform"
6287 /*@C
6288    TSMonitorLGCtxSetTransform - Solution vector will be transformed by provided function before being displayed
6289 
6290    Collective on TSLGCtx
6291 
6292    Input Parameters:
6293 +  ts - the TS context
6294 .  transform - the transform function
6295 .  destroy - function to destroy the optional context
6296 -  ctx - optional context used by transform function
6297 
6298    Level: intermediate
6299 
6300 .keywords: TS,  vector, monitor, view
6301 
6302 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetVariableNames(), TSMonitorLGSetTransform()
6303 @*/
6304 PetscErrorCode  TSMonitorLGCtxSetTransform(TSMonitorLGCtx ctx,PetscErrorCode (*transform)(void*,Vec,Vec*),PetscErrorCode (*destroy)(void*),void *tctx)
6305 {
6306   PetscFunctionBegin;
6307   ctx->transform    = transform;
6308   ctx->transformdestroy = destroy;
6309   ctx->transformctx = tctx;
6310   PetscFunctionReturn(0);
6311 }
6312 
6313 #undef __FUNCT__
6314 #define __FUNCT__ "TSMonitorLGError"
6315 /*@C
6316    TSMonitorLGError - Monitors progress of the TS solvers by plotting each component of the solution vector
6317        in a time based line graph
6318 
6319    Collective on TS
6320 
6321    Input Parameters:
6322 +  ts - the TS context
6323 .  step - current time-step
6324 .  ptime - current time
6325 .  u - current solution
6326 -  dctx - TSMonitorLGCtx object created with TSMonitorLGCtxCreate()
6327 
6328    Level: intermediate
6329 
6330    Notes: Each process in a parallel run displays its component errors in a separate window
6331 
6332    The user must provide the solution using TSSetSolutionFunction() to use this monitor.
6333 
6334    Options Database Keys:
6335 .  -ts_monitor_lg_error - create a graphical monitor of error history
6336 
6337 .keywords: TS,  vector, monitor, view
6338 
6339 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSSetSolutionFunction()
6340 @*/
6341 PetscErrorCode  TSMonitorLGError(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dummy)
6342 {
6343   PetscErrorCode    ierr;
6344   TSMonitorLGCtx    ctx = (TSMonitorLGCtx)dummy;
6345   const PetscScalar *yy;
6346   Vec               y;
6347 
6348   PetscFunctionBegin;
6349   if (!step) {
6350     PetscDrawAxis axis;
6351     PetscInt      dim;
6352     ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr);
6353     ierr = PetscDrawAxisSetLabels(axis,"Error in solution as function of time","Time","Solution");CHKERRQ(ierr);
6354     ierr = VecGetLocalSize(u,&dim);CHKERRQ(ierr);
6355     ierr = PetscDrawLGSetDimension(ctx->lg,dim);CHKERRQ(ierr);
6356     ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr);
6357   }
6358   ierr = VecDuplicate(u,&y);CHKERRQ(ierr);
6359   ierr = TSComputeSolutionFunction(ts,ptime,y);CHKERRQ(ierr);
6360   ierr = VecAXPY(y,-1.0,u);CHKERRQ(ierr);
6361   ierr = VecGetArrayRead(y,&yy);CHKERRQ(ierr);
6362 #if defined(PETSC_USE_COMPLEX)
6363   {
6364     PetscReal *yreal;
6365     PetscInt  i,n;
6366     ierr = VecGetLocalSize(y,&n);CHKERRQ(ierr);
6367     ierr = PetscMalloc1(n,&yreal);CHKERRQ(ierr);
6368     for (i=0; i<n; i++) yreal[i] = PetscRealPart(yy[i]);
6369     ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yreal);CHKERRQ(ierr);
6370     ierr = PetscFree(yreal);CHKERRQ(ierr);
6371   }
6372 #else
6373   ierr = PetscDrawLGAddCommonPoint(ctx->lg,ptime,yy);CHKERRQ(ierr);
6374 #endif
6375   ierr = VecRestoreArrayRead(y,&yy);CHKERRQ(ierr);
6376   ierr = VecDestroy(&y);CHKERRQ(ierr);
6377   if (((ctx->howoften > 0) && (!(step % ctx->howoften))) || ((ctx->howoften == -1) && ts->reason)) {
6378     ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr);
6379     ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr);
6380   }
6381   PetscFunctionReturn(0);
6382 }
6383 
6384 #undef __FUNCT__
6385 #define __FUNCT__ "TSMonitorLGSNESIterations"
6386 PetscErrorCode TSMonitorLGSNESIterations(TS ts,PetscInt n,PetscReal ptime,Vec v,void *monctx)
6387 {
6388   TSMonitorLGCtx ctx = (TSMonitorLGCtx) monctx;
6389   PetscReal      x   = ptime,y;
6390   PetscErrorCode ierr;
6391   PetscInt       its;
6392 
6393   PetscFunctionBegin;
6394   if (n < 0) PetscFunctionReturn(0); /* -1 indicates interpolated solution */
6395   if (!n) {
6396     PetscDrawAxis axis;
6397     ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr);
6398     ierr = PetscDrawAxisSetLabels(axis,"Nonlinear iterations as function of time","Time","SNES Iterations");CHKERRQ(ierr);
6399     ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr);
6400     ctx->snes_its = 0;
6401   }
6402   ierr = TSGetSNESIterations(ts,&its);CHKERRQ(ierr);
6403   y    = its - ctx->snes_its;
6404   ierr = PetscDrawLGAddPoint(ctx->lg,&x,&y);CHKERRQ(ierr);
6405   if (((ctx->howoften > 0) && (!(n % ctx->howoften)) && (n > -1)) || ((ctx->howoften == -1) && (n == -1))) {
6406     ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr);
6407     ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr);
6408   }
6409   ctx->snes_its = its;
6410   PetscFunctionReturn(0);
6411 }
6412 
6413 #undef __FUNCT__
6414 #define __FUNCT__ "TSMonitorLGKSPIterations"
6415 PetscErrorCode TSMonitorLGKSPIterations(TS ts,PetscInt n,PetscReal ptime,Vec v,void *monctx)
6416 {
6417   TSMonitorLGCtx ctx = (TSMonitorLGCtx) monctx;
6418   PetscReal      x   = ptime,y;
6419   PetscErrorCode ierr;
6420   PetscInt       its;
6421 
6422   PetscFunctionBegin;
6423   if (n < 0) PetscFunctionReturn(0); /* -1 indicates interpolated solution */
6424   if (!n) {
6425     PetscDrawAxis axis;
6426     ierr = PetscDrawLGGetAxis(ctx->lg,&axis);CHKERRQ(ierr);
6427     ierr = PetscDrawAxisSetLabels(axis,"Linear iterations as function of time","Time","KSP Iterations");CHKERRQ(ierr);
6428     ierr = PetscDrawLGReset(ctx->lg);CHKERRQ(ierr);
6429     ctx->ksp_its = 0;
6430   }
6431   ierr = TSGetKSPIterations(ts,&its);CHKERRQ(ierr);
6432   y    = its - ctx->ksp_its;
6433   ierr = PetscDrawLGAddPoint(ctx->lg,&x,&y);CHKERRQ(ierr);
6434   if (((ctx->howoften > 0) && (!(n % ctx->howoften)) && (n > -1)) || ((ctx->howoften == -1) && (n == -1))) {
6435     ierr = PetscDrawLGDraw(ctx->lg);CHKERRQ(ierr);
6436     ierr = PetscDrawLGSave(ctx->lg);CHKERRQ(ierr);
6437   }
6438   ctx->ksp_its = its;
6439   PetscFunctionReturn(0);
6440 }
6441 
6442 #undef __FUNCT__
6443 #define __FUNCT__ "TSComputeLinearStability"
6444 /*@
6445    TSComputeLinearStability - computes the linear stability function at a point
6446 
6447    Collective on TS and Vec
6448 
6449    Input Parameters:
6450 +  ts - the TS context
6451 -  xr,xi - real and imaginary part of input arguments
6452 
6453    Output Parameters:
6454 .  yr,yi - real and imaginary part of function value
6455 
6456    Level: developer
6457 
6458 .keywords: TS, compute
6459 
6460 .seealso: TSSetRHSFunction(), TSComputeIFunction()
6461 @*/
6462 PetscErrorCode TSComputeLinearStability(TS ts,PetscReal xr,PetscReal xi,PetscReal *yr,PetscReal *yi)
6463 {
6464   PetscErrorCode ierr;
6465 
6466   PetscFunctionBegin;
6467   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
6468   if (!ts->ops->linearstability) SETERRQ(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"Linearized stability function not provided for this method");
6469   ierr = (*ts->ops->linearstability)(ts,xr,xi,yr,yi);CHKERRQ(ierr);
6470   PetscFunctionReturn(0);
6471 }
6472 
6473 /* ------------------------------------------------------------------------*/
6474 #undef __FUNCT__
6475 #define __FUNCT__ "TSMonitorEnvelopeCtxCreate"
6476 /*@C
6477    TSMonitorEnvelopeCtxCreate - Creates a context for use with TSMonitorEnvelope()
6478 
6479    Collective on TS
6480 
6481    Input Parameters:
6482 .  ts  - the ODE solver object
6483 
6484    Output Parameter:
6485 .  ctx - the context
6486 
6487    Level: intermediate
6488 
6489 .keywords: TS, monitor, line graph, residual, seealso
6490 
6491 .seealso: TSMonitorLGTimeStep(), TSMonitorSet(), TSMonitorLGSolution(), TSMonitorLGError()
6492 
6493 @*/
6494 PetscErrorCode  TSMonitorEnvelopeCtxCreate(TS ts,TSMonitorEnvelopeCtx *ctx)
6495 {
6496   PetscErrorCode ierr;
6497 
6498   PetscFunctionBegin;
6499   ierr = PetscNew(ctx);CHKERRQ(ierr);
6500   PetscFunctionReturn(0);
6501 }
6502 
6503 #undef __FUNCT__
6504 #define __FUNCT__ "TSMonitorEnvelope"
6505 /*@C
6506    TSMonitorEnvelope - Monitors the maximum and minimum value of each component of the solution
6507 
6508    Collective on TS
6509 
6510    Input Parameters:
6511 +  ts - the TS context
6512 .  step - current time-step
6513 .  ptime - current time
6514 .  u  - current solution
6515 -  dctx - the envelope context
6516 
6517    Options Database:
6518 .  -ts_monitor_envelope
6519 
6520    Level: intermediate
6521 
6522    Notes: after a solve you can use TSMonitorEnvelopeGetBounds() to access the envelope
6523 
6524 .keywords: TS,  vector, monitor, view
6525 
6526 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorEnvelopeGetBounds(), TSMonitorEnvelopeCtxCreate()
6527 @*/
6528 PetscErrorCode  TSMonitorEnvelope(TS ts,PetscInt step,PetscReal ptime,Vec u,void *dctx)
6529 {
6530   PetscErrorCode       ierr;
6531   TSMonitorEnvelopeCtx ctx = (TSMonitorEnvelopeCtx)dctx;
6532 
6533   PetscFunctionBegin;
6534   if (!ctx->max) {
6535     ierr = VecDuplicate(u,&ctx->max);CHKERRQ(ierr);
6536     ierr = VecDuplicate(u,&ctx->min);CHKERRQ(ierr);
6537     ierr = VecCopy(u,ctx->max);CHKERRQ(ierr);
6538     ierr = VecCopy(u,ctx->min);CHKERRQ(ierr);
6539   } else {
6540     ierr = VecPointwiseMax(ctx->max,u,ctx->max);CHKERRQ(ierr);
6541     ierr = VecPointwiseMin(ctx->min,u,ctx->min);CHKERRQ(ierr);
6542   }
6543   PetscFunctionReturn(0);
6544 }
6545 
6546 
6547 #undef __FUNCT__
6548 #define __FUNCT__ "TSMonitorEnvelopeGetBounds"
6549 /*@C
6550    TSMonitorEnvelopeGetBounds - Gets the bounds for the components of the solution
6551 
6552    Collective on TS
6553 
6554    Input Parameter:
6555 .  ts - the TS context
6556 
6557    Output Parameter:
6558 +  max - the maximum values
6559 -  min - the minimum values
6560 
6561    Notes: If the TS does not have a TSMonitorEnvelopeCtx associated with it then this function is ignored
6562 
6563    Level: intermediate
6564 
6565 .keywords: TS,  vector, monitor, view
6566 
6567 .seealso: TSMonitorSet(), TSMonitorDefault(), VecView(), TSMonitorLGSetDisplayVariables()
6568 @*/
6569 PetscErrorCode  TSMonitorEnvelopeGetBounds(TS ts,Vec *max,Vec *min)
6570 {
6571   PetscInt i;
6572 
6573   PetscFunctionBegin;
6574   if (max) *max = NULL;
6575   if (min) *min = NULL;
6576   for (i=0; i<ts->numbermonitors; i++) {
6577     if (ts->monitor[i] == TSMonitorEnvelope) {
6578       TSMonitorEnvelopeCtx  ctx = (TSMonitorEnvelopeCtx) ts->monitorcontext[i];
6579       if (max) *max = ctx->max;
6580       if (min) *min = ctx->min;
6581       break;
6582     }
6583   }
6584   PetscFunctionReturn(0);
6585 }
6586 
6587 #undef __FUNCT__
6588 #define __FUNCT__ "TSMonitorEnvelopeCtxDestroy"
6589 /*@C
6590    TSMonitorEnvelopeCtxDestroy - Destroys a context that was created  with TSMonitorEnvelopeCtxCreate().
6591 
6592    Collective on TSMonitorEnvelopeCtx
6593 
6594    Input Parameter:
6595 .  ctx - the monitor context
6596 
6597    Level: intermediate
6598 
6599 .keywords: TS, monitor, line graph, destroy
6600 
6601 .seealso: TSMonitorLGCtxCreate(),  TSMonitorSet(), TSMonitorLGTimeStep()
6602 @*/
6603 PetscErrorCode  TSMonitorEnvelopeCtxDestroy(TSMonitorEnvelopeCtx *ctx)
6604 {
6605   PetscErrorCode ierr;
6606 
6607   PetscFunctionBegin;
6608   ierr = VecDestroy(&(*ctx)->min);CHKERRQ(ierr);
6609   ierr = VecDestroy(&(*ctx)->max);CHKERRQ(ierr);
6610   ierr = PetscFree(*ctx);CHKERRQ(ierr);
6611   PetscFunctionReturn(0);
6612 }
6613 
6614 #undef __FUNCT__
6615 #define __FUNCT__ "TSRollBack"
6616 /*@
6617    TSRollBack - Rolls back one time step
6618 
6619    Collective on TS
6620 
6621    Input Parameter:
6622 .  ts - the TS context obtained from TSCreate()
6623 
6624    Level: advanced
6625 
6626 .keywords: TS, timestep, rollback
6627 
6628 .seealso: TSCreate(), TSSetUp(), TSDestroy(), TSSolve(), TSSetPreStep(), TSSetPreStage(), TSInterpolate()
6629 @*/
6630 PetscErrorCode  TSRollBack(TS ts)
6631 {
6632   PetscErrorCode ierr;
6633 
6634   PetscFunctionBegin;
6635   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
6636 
6637   if (!ts->ops->rollback) SETERRQ1(PetscObjectComm((PetscObject)ts),PETSC_ERR_SUP,"TSRollBack not implemented for type '%s'",((PetscObject)ts)->type_name);
6638   ierr = (*ts->ops->rollback)(ts);CHKERRQ(ierr);
6639   ts->time_step = ts->ptime - ts->ptime_prev;
6640   ts->ptime = ts->ptime_prev;
6641   ts->steprollback = PETSC_TRUE; /* Flag to indicate that the step is rollbacked */
6642   PetscFunctionReturn(0);
6643 }
6644 
6645 #undef __FUNCT__
6646 #define __FUNCT__ "TSGetStages"
6647 /*@
6648    TSGetStages - Get the number of stages and stage values
6649 
6650    Input Parameter:
6651 .  ts - the TS context obtained from TSCreate()
6652 
6653    Level: advanced
6654 
6655 .keywords: TS, getstages
6656 
6657 .seealso: TSCreate()
6658 @*/
6659 PetscErrorCode  TSGetStages(TS ts,PetscInt *ns, Vec **Y)
6660 {
6661   PetscErrorCode ierr;
6662 
6663   PetscFunctionBegin;
6664   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
6665   PetscValidPointer(ns,2);
6666 
6667   if (!ts->ops->getstages) *ns=0;
6668   else {
6669     ierr = (*ts->ops->getstages)(ts,ns,Y);CHKERRQ(ierr);
6670   }
6671   PetscFunctionReturn(0);
6672 }
6673 
6674 #undef __FUNCT__
6675 #define __FUNCT__ "TSComputeIJacobianDefaultColor"
6676 /*@C
6677   TSComputeIJacobianDefaultColor - Computes the Jacobian using finite differences and coloring to exploit matrix sparsity.
6678 
6679   Collective on SNES
6680 
6681   Input Parameters:
6682 + ts - the TS context
6683 . t - current timestep
6684 . U - state vector
6685 . Udot - time derivative of state vector
6686 . shift - shift to apply, see note below
6687 - ctx - an optional user context
6688 
6689   Output Parameters:
6690 + J - Jacobian matrix (not altered in this routine)
6691 - B - newly computed Jacobian matrix to use with preconditioner (generally the same as J)
6692 
6693   Level: intermediate
6694 
6695   Notes:
6696   If F(t,U,Udot)=0 is the DAE, the required Jacobian is
6697 
6698   dF/dU + shift*dF/dUdot
6699 
6700   Most users should not need to explicitly call this routine, as it
6701   is used internally within the nonlinear solvers.
6702 
6703   This will first try to get the coloring from the DM.  If the DM type has no coloring
6704   routine, then it will try to get the coloring from the matrix.  This requires that the
6705   matrix have nonzero entries precomputed.
6706 
6707 .keywords: TS, finite differences, Jacobian, coloring, sparse
6708 .seealso: TSSetIJacobian(), MatFDColoringCreate(), MatFDColoringSetFunction()
6709 @*/
6710 PetscErrorCode TSComputeIJacobianDefaultColor(TS ts,PetscReal t,Vec U,Vec Udot,PetscReal shift,Mat J,Mat B,void *ctx)
6711 {
6712   SNES           snes;
6713   MatFDColoring  color;
6714   PetscBool      hascolor, matcolor = PETSC_FALSE;
6715   PetscErrorCode ierr;
6716 
6717   PetscFunctionBegin;
6718   ierr = PetscOptionsGetBool(((PetscObject)ts)->options,((PetscObject) ts)->prefix, "-ts_fd_color_use_mat", &matcolor, NULL);CHKERRQ(ierr);
6719   ierr = PetscObjectQuery((PetscObject) B, "TSMatFDColoring", (PetscObject *) &color);CHKERRQ(ierr);
6720   if (!color) {
6721     DM         dm;
6722     ISColoring iscoloring;
6723 
6724     ierr = TSGetDM(ts, &dm);CHKERRQ(ierr);
6725     ierr = DMHasColoring(dm, &hascolor);CHKERRQ(ierr);
6726     if (hascolor && !matcolor) {
6727       ierr = DMCreateColoring(dm, IS_COLORING_GLOBAL, &iscoloring);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     } else {
6734       MatColoring mc;
6735 
6736       ierr = MatColoringCreate(B, &mc);CHKERRQ(ierr);
6737       ierr = MatColoringSetDistance(mc, 2);CHKERRQ(ierr);
6738       ierr = MatColoringSetType(mc, MATCOLORINGSL);CHKERRQ(ierr);
6739       ierr = MatColoringSetFromOptions(mc);CHKERRQ(ierr);
6740       ierr = MatColoringApply(mc, &iscoloring);CHKERRQ(ierr);
6741       ierr = MatColoringDestroy(&mc);CHKERRQ(ierr);
6742       ierr = MatFDColoringCreate(B, iscoloring, &color);CHKERRQ(ierr);
6743       ierr = MatFDColoringSetFunction(color, (PetscErrorCode (*)(void)) SNESTSFormFunction, (void *) ts);CHKERRQ(ierr);
6744       ierr = MatFDColoringSetFromOptions(color);CHKERRQ(ierr);
6745       ierr = MatFDColoringSetUp(B, iscoloring, color);CHKERRQ(ierr);
6746       ierr = ISColoringDestroy(&iscoloring);CHKERRQ(ierr);
6747     }
6748     ierr = PetscObjectCompose((PetscObject) B, "TSMatFDColoring", (PetscObject) color);CHKERRQ(ierr);
6749     ierr = PetscObjectDereference((PetscObject) color);CHKERRQ(ierr);
6750   }
6751   ierr = TSGetSNES(ts, &snes);CHKERRQ(ierr);
6752   ierr = MatFDColoringApply(B, color, U, snes);CHKERRQ(ierr);
6753   if (J != B) {
6754     ierr = MatAssemblyBegin(J, MAT_FINAL_ASSEMBLY);CHKERRQ(ierr);
6755     ierr = MatAssemblyEnd(J, MAT_FINAL_ASSEMBLY);CHKERRQ(ierr);
6756   }
6757   PetscFunctionReturn(0);
6758 }
6759 
6760 #undef __FUNCT__
6761 #define __FUNCT__ "TSSetFunctionDomainError"
6762 /*@
6763     TSSetFunctionDomainError - Set the function testing if the current state vector is valid
6764 
6765     Input Parameters:
6766     ts - the TS context
6767     func - function called within TSFunctionDomainError
6768 
6769     Level: intermediate
6770 
6771 .keywords: TS, state, domain
6772 .seealso: TSAdaptCheckStage(), TSFunctionDomainError()
6773 @*/
6774 
6775 PetscErrorCode TSSetFunctionDomainError(TS ts, PetscErrorCode (*func)(TS,PetscReal,Vec,PetscBool*))
6776 {
6777   PetscFunctionBegin;
6778   PetscValidHeaderSpecific(ts, TS_CLASSID,1);
6779   ts->functiondomainerror = func;
6780   PetscFunctionReturn(0);
6781 }
6782 
6783 #undef __FUNCT__
6784 #define __FUNCT__ "TSFunctionDomainError"
6785 /*@
6786     TSFunctionDomainError - Check if the current state is valid
6787 
6788     Input Parameters:
6789     ts - the TS context
6790     stagetime - time of the simulation
6791     Y - state vector to check.
6792 
6793     Output Parameter:
6794     accept - Set to PETSC_FALSE if the current state vector is valid.
6795 
6796     Note:
6797     This function should be used to ensure the state is in a valid part of the space.
6798     For example, one can ensure here all values are positive.
6799 
6800     Level: advanced
6801 @*/
6802 PetscErrorCode TSFunctionDomainError(TS ts,PetscReal stagetime,Vec Y,PetscBool* accept)
6803 {
6804   PetscErrorCode ierr;
6805 
6806   PetscFunctionBegin;
6807 
6808   PetscValidHeaderSpecific(ts,TS_CLASSID,1);
6809   *accept = PETSC_TRUE;
6810   if (ts->functiondomainerror) {
6811     PetscStackCallStandard((*ts->functiondomainerror),(ts,stagetime,Y,accept));
6812   }
6813   PetscFunctionReturn(0);
6814 }
6815 
6816 #undef  __FUNCT__
6817 #define __FUNCT__ "TSClone"
6818 /*@C
6819   TSClone - This function clones a time step object.
6820 
6821   Collective on MPI_Comm
6822 
6823   Input Parameter:
6824 . tsin    - The input TS
6825 
6826   Output Parameter:
6827 . tsout   - The output TS (cloned)
6828 
6829   Notes:
6830   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.
6831 
6832   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);
6833 
6834   Level: developer
6835 
6836 .keywords: TS, clone
6837 .seealso: TSCreate(), TSSetType(), TSSetUp(), TSDestroy(), TSSetProblemType()
6838 @*/
6839 PetscErrorCode  TSClone(TS tsin, TS *tsout)
6840 {
6841   TS             t;
6842   PetscErrorCode ierr;
6843   SNES           snes_start;
6844   DM             dm;
6845   TSType         type;
6846 
6847   PetscFunctionBegin;
6848   PetscValidPointer(tsin,1);
6849   *tsout = NULL;
6850 
6851   ierr = PetscHeaderCreate(t, TS_CLASSID, "TS", "Time stepping", "TS", PetscObjectComm((PetscObject)tsin), TSDestroy, TSView);CHKERRQ(ierr);
6852 
6853   /* General TS description */
6854   t->numbermonitors    = 0;
6855   t->setupcalled       = 0;
6856   t->ksp_its           = 0;
6857   t->snes_its          = 0;
6858   t->nwork             = 0;
6859   t->rhsjacobian.time  = -1e20;
6860   t->rhsjacobian.scale = 1.;
6861   t->ijacobian.shift   = 1.;
6862 
6863   ierr = TSGetSNES(tsin,&snes_start);                   CHKERRQ(ierr);
6864   ierr = TSSetSNES(t,snes_start);                       CHKERRQ(ierr);
6865 
6866   ierr = TSGetDM(tsin,&dm);                             CHKERRQ(ierr);
6867   ierr = TSSetDM(t,dm);                                 CHKERRQ(ierr);
6868 
6869   t->adapt=tsin->adapt;
6870   PetscObjectReference((PetscObject)t->adapt);
6871 
6872   t->problem_type      = tsin->problem_type;
6873   t->ptime             = tsin->ptime;
6874   t->time_step         = tsin->time_step;
6875   t->time_step_orig    = tsin->time_step_orig;
6876   t->max_time          = tsin->max_time;
6877   t->steps             = tsin->steps;
6878   t->max_steps         = tsin->max_steps;
6879   t->equation_type     = tsin->equation_type;
6880   t->atol              = tsin->atol;
6881   t->rtol              = tsin->rtol;
6882   t->max_snes_failures = tsin->max_snes_failures;
6883   t->max_reject        = tsin->max_reject;
6884   t->errorifstepfailed = tsin->errorifstepfailed;
6885 
6886   ierr = TSGetType(tsin,&type); CHKERRQ(ierr);
6887   ierr = TSSetType(t,type);     CHKERRQ(ierr);
6888 
6889   t->vec_sol           = NULL;
6890 
6891   t->cfltime          = tsin->cfltime;
6892   t->cfltime_local    = tsin->cfltime_local;
6893   t->exact_final_time = tsin->exact_final_time;
6894 
6895   ierr = PetscMemcpy(t->ops,tsin->ops,sizeof(struct _TSOps));CHKERRQ(ierr);
6896 
6897   if (((PetscObject)tsin)->fortran_func_pointers) {
6898     PetscInt i;
6899     ierr = PetscMalloc((10)*sizeof(void(*)(void)),&((PetscObject)t)->fortran_func_pointers);CHKERRQ(ierr);
6900     for (i=0; i<10; i++) {
6901       ((PetscObject)t)->fortran_func_pointers[i] = ((PetscObject)tsin)->fortran_func_pointers[i];
6902     }
6903   }
6904   *tsout = t;
6905   PetscFunctionReturn(0);
6906 }
6907