xref: /honee/src/setupts.c (revision 14bd2a07a64d3eb0c7fc395a41fb4052a9a41171)
1 // SPDX-FileCopyrightText: Copyright (c) 2017-2024, HONEE contributors.
2 // SPDX-License-Identifier: Apache-2.0 OR BSD-2-Clause
3 
4 /// @file
5 /// Time-stepping functions for HONEE
6 
7 #include <ceed.h>
8 #include <petscdmplex.h>
9 #include <petscts.h>
10 
11 #include <differential_filter.h>
12 #include <navierstokes.h>
13 #include <smartsim.h>
14 #include <spanstats.h>
15 #include "../qfunctions/newtonian_state.h"
16 
17 // @brief Insert Boundary values if it's a new time
18 PetscErrorCode UpdateBoundaryValues(Honee honee, Vec Q_loc, PetscReal t) {
19   PetscFunctionBeginUser;
20   if (honee->time_bc_set != t) {
21     PetscCall(DMPlexInsertBoundaryValues(honee->dm, PETSC_TRUE, Q_loc, t, NULL, NULL, NULL));
22     honee->time_bc_set = t;
23   }
24   PetscFunctionReturn(PETSC_SUCCESS);
25 }
26 
27 // RHS (Explicit time-stepper) function setup
28 //   This is the RHS of the ODE, given as u_t = G(t,u)
29 //   This function takes in a state vector Q and writes into G
30 PetscErrorCode RHS_NS(TS ts, PetscReal t, Vec Q, Vec G, void *user_data) {
31   Honee        honee = *(Honee *)user_data;
32   Ceed         ceed  = honee->ceed;
33   PetscScalar  dt;
34   Vec          Q_loc = honee->Q_loc, R;
35   PetscMemType q_mem_type;
36 
37   PetscFunctionBeginUser;
38   // Update time dependent data
39   PetscCall(UpdateBoundaryValues(honee, Q_loc, t));
40   if (honee->phys->solution_time_label)
41     PetscCallCeed(ceed, CeedOperatorSetContextDouble(honee->op_rhs_ctx->op, honee->phys->solution_time_label, &t));
42   PetscCall(TSGetTimeStep(ts, &dt));
43   if (honee->phys->timestep_size_label)
44     PetscCallCeed(ceed, CeedOperatorSetContextDouble(honee->op_rhs_ctx->op, honee->phys->timestep_size_label, &dt));
45 
46   PetscCall(DMGetNamedGlobalVector(honee->dm, "RHS Residual", &R));
47   PetscCall(DMGlobalToLocal(honee->dm, Q, INSERT_VALUES, Q_loc));
48   if (honee->app_ctx->divFdiffproj_method != DIV_DIFF_FLUX_PROJ_NONE) PetscCall(DivDiffFluxProjectionApply(honee->diff_flux_proj, Q_loc));
49   PetscCall(ApplyCeedOperatorLocalToGlobal(Q_loc, R, honee->op_rhs_ctx));
50 
51   // Inverse of the mass matrix
52   PetscCall(VecReadPetscToCeed(Q_loc, &q_mem_type, honee->q_ceed));
53   {
54     // Run PCApply manually if using ksp_type preonly -pc_type jacobi
55     // This is to avoid an AllReduce call in KSPSolve_Preonly, which causes significant slowdowns for lumped mass matrix solves.
56     // See https://gitlab.com/petsc/petsc/-/merge_requests/8048 for more details and a possible fix
57     PC        pc;
58     PetscBool ispreonly, isjacobi;
59     PetscCall(KSPGetPC(honee->mass_ksp, &pc));
60     PetscCall(PetscObjectTypeCompare((PetscObject)honee->mass_ksp, KSPPREONLY, &ispreonly));
61     PetscCall(PetscObjectTypeCompare((PetscObject)pc, PCJACOBI, &isjacobi));
62     if (ispreonly && isjacobi) PetscCall(PCApply(pc, R, G));
63     else PetscCall(KSPSolve(honee->mass_ksp, R, G));
64   }
65   PetscCall(VecReadCeedToPetsc(honee->q_ceed, q_mem_type, Q_loc));
66 
67   PetscCall(DMRestoreNamedGlobalVector(honee->dm, "RHS Residual", &R));
68   PetscFunctionReturn(PETSC_SUCCESS);
69 }
70 
71 // Surface forces function setup
72 static PetscErrorCode Surface_Forces_NS(DM dm, Vec G_loc, PetscInt num_walls, const PetscInt walls[], PetscScalar *reaction_force) {
73   DMLabel            face_label;
74   const PetscScalar *g_array;
75   PetscInt           dim  = 3;
76   MPI_Comm           comm = PetscObjectComm((PetscObject)dm);
77   PetscSection       section;
78 
79   PetscFunctionBeginUser;
80   PetscCall(DMGetLabel(dm, "Face Sets", &face_label));
81   PetscCall(VecGetArrayRead(G_loc, &g_array));
82   for (PetscInt w = 0; w < num_walls; w++) {
83     const PetscInt wall = walls[w], *points;
84     IS             wall_is;
85     PetscInt       num_points, num_comp = 0;
86 
87     PetscCall(DMLabelGetStratumIS(face_label, wall, &wall_is));
88     if (!wall_is) continue;  // No wall points on this process, skip
89 
90     PetscCall(DMGetLocalSection(dm, &section));
91     PetscCall(PetscSectionGetFieldComponents(section, 0, &num_comp));
92     PetscCall(ISGetSize(wall_is, &num_points));
93     PetscCall(ISGetIndices(wall_is, &points));
94     for (PetscInt i = 0; i < num_points; i++) {
95       const PetscInt           p = points[i];
96       const StateConservative *r;
97       PetscInt                 dof;
98 
99       PetscCall(DMPlexPointLocalRead(dm, p, g_array, &r));
100       PetscCall(PetscSectionGetDof(section, p, &dof));
101       for (PetscInt node = 0; node < dof / num_comp; node++) {
102         for (PetscInt j = 0; j < dim; j++) {
103           reaction_force[w * dim + j] -= r[node].momentum[j];
104         }
105       }
106     }
107     PetscCall(ISRestoreIndices(wall_is, &points));
108     PetscCall(ISDestroy(&wall_is));
109   }
110   PetscCallMPI(MPIU_Allreduce(MPI_IN_PLACE, reaction_force, dim * num_walls, MPIU_SCALAR, MPI_SUM, comm));
111   PetscCall(VecRestoreArrayRead(G_loc, &g_array));
112   PetscFunctionReturn(PETSC_SUCCESS);
113 }
114 
115 // Implicit time-stepper function setup
116 PetscErrorCode IFunction_NS(TS ts, PetscReal t, Vec Q, Vec Q_dot, Vec G, void *user_data) {
117   Honee        honee = *(Honee *)user_data;
118   Ceed         ceed  = honee->ceed;
119   PetscScalar  dt;
120   Vec          Q_loc = honee->Q_loc, Q_dot_loc = honee->Q_dot_loc, G_loc;
121   PetscMemType q_mem_type, q_dot_mem_type, g_mem_type;
122 
123   PetscFunctionBeginUser;
124   PetscCall(DMGlobalToLocalBegin(honee->dm, Q_dot, INSERT_VALUES, Q_dot_loc));
125   PetscCall(DMGetNamedLocalVector(honee->dm, "ResidualLocal", &G_loc));
126 
127   // Update time dependent data
128   PetscCall(UpdateBoundaryValues(honee, Q_loc, t));
129   if (honee->phys->solution_time_label) PetscCallCeed(ceed, CeedOperatorSetContextDouble(honee->op_ifunction, honee->phys->solution_time_label, &t));
130   PetscCall(TSGetTimeStep(ts, &dt));
131   if (honee->phys->timestep_size_label) PetscCallCeed(ceed, CeedOperatorSetContextDouble(honee->op_ifunction, honee->phys->timestep_size_label, &dt));
132 
133   // Global-to-local
134   PetscCall(DMGlobalToLocalBegin(honee->dm, Q, INSERT_VALUES, Q_loc));
135   PetscCall(DMGlobalToLocalEnd(honee->dm, Q, INSERT_VALUES, Q_loc));
136   if (honee->app_ctx->divFdiffproj_method != DIV_DIFF_FLUX_PROJ_NONE) PetscCall(DivDiffFluxProjectionApply(honee->diff_flux_proj, Q_loc));
137   PetscCall(DMGlobalToLocalEnd(honee->dm, Q_dot, INSERT_VALUES, Q_dot_loc));
138 
139   // Place PETSc vectors in CEED vectors
140   PetscCall(VecReadPetscToCeed(Q_loc, &q_mem_type, honee->q_ceed));
141   PetscCall(VecReadPetscToCeed(Q_dot_loc, &q_dot_mem_type, honee->q_dot_ceed));
142   PetscCall(VecPetscToCeed(G_loc, &g_mem_type, honee->g_ceed));
143 
144   // Apply CEED operator
145   PetscCall(PetscLogEventBegin(HONEE_CeedOperatorApply, Q, G, 0, 0));
146   PetscCall(PetscLogGpuTimeBegin());
147   PetscCallCeed(honee->ceed, CeedOperatorApply(honee->op_ifunction, honee->q_ceed, honee->g_ceed, CEED_REQUEST_IMMEDIATE));
148   PetscCall(PetscLogGpuTimeEnd());
149   PetscCall(PetscLogEventEnd(HONEE_CeedOperatorApply, Q, G, 0, 0));
150 
151   // Restore vectors
152   PetscCall(VecReadCeedToPetsc(honee->q_ceed, q_mem_type, Q_loc));
153   PetscCall(VecReadCeedToPetsc(honee->q_dot_ceed, q_dot_mem_type, Q_dot_loc));
154   PetscCall(VecCeedToPetsc(honee->g_ceed, g_mem_type, G_loc));
155 
156   if (honee->app_ctx->sgs_model_type == SGS_MODEL_DATA_DRIVEN) {
157     PetscCall(SgsDDApplyIFunction(honee, Q_loc, G_loc));
158   }
159 
160   // Local-to-Global
161   PetscCall(VecZeroEntries(G));
162   PetscCall(DMLocalToGlobal(honee->dm, G_loc, ADD_VALUES, G));
163 
164   // Restore vectors
165   PetscCall(DMRestoreNamedLocalVector(honee->dm, "ResidualLocal", &G_loc));
166   PetscFunctionReturn(PETSC_SUCCESS);
167 }
168 
169 PetscErrorCode FormIJacobian_NS(TS ts, PetscReal t, Vec Q, Vec Q_dot, PetscReal shift, Mat J, Mat J_pre, void *user_data) {
170   Honee     honee = *(Honee *)user_data;
171   PetscBool J_is_matceed, J_is_mffd, J_pre_is_matceed, J_pre_is_mffd;
172 
173   PetscFunctionBeginUser;
174   PetscCall(PetscObjectTypeCompare((PetscObject)J, MATMFFD, &J_is_mffd));
175   PetscCall(PetscObjectTypeCompare((PetscObject)J, MATCEED, &J_is_matceed));
176   PetscCall(PetscObjectTypeCompare((PetscObject)J_pre, MATMFFD, &J_pre_is_mffd));
177   PetscCall(PetscObjectTypeCompare((PetscObject)J_pre, MATCEED, &J_pre_is_matceed));
178 
179   PetscCall(MatCeedSetContextReal(honee->mat_ijacobian, "ijacobian time shift", shift));
180 
181   if (J_is_matceed || J_is_mffd) {
182     PetscCall(MatAssemblyBegin(J, MAT_FINAL_ASSEMBLY));
183     PetscCall(MatAssemblyEnd(J, MAT_FINAL_ASSEMBLY));
184   } else PetscCall(MatCeedAssembleCOO(honee->mat_ijacobian, J));
185 
186   if (J_pre_is_matceed && J != J_pre) {
187     PetscCall(MatAssemblyBegin(J_pre, MAT_FINAL_ASSEMBLY));
188     PetscCall(MatAssemblyEnd(J_pre, MAT_FINAL_ASSEMBLY));
189   } else if (!J_pre_is_matceed && !J_pre_is_mffd && J != J_pre) {
190     PetscCall(MatCeedAssembleCOO(honee->mat_ijacobian, J_pre));
191   }
192   PetscFunctionReturn(PETSC_SUCCESS);
193 }
194 
195 PetscErrorCode WriteOutput(Honee honee, Vec Q, PetscInt step_no, PetscScalar time) {
196   Vec         Q_loc;
197   char        file_path[PETSC_MAX_PATH_LEN];
198   PetscViewer viewer;
199 
200   PetscFunctionBeginUser;
201   if (honee->app_ctx->checkpoint_vtk) {
202     // Set up output
203     PetscCall(DMGetLocalVector(honee->dm, &Q_loc));
204     PetscCall(PetscObjectSetName((PetscObject)Q_loc, "StateVec"));
205     PetscCall(VecZeroEntries(Q_loc));
206     PetscCall(DMGlobalToLocal(honee->dm, Q, INSERT_VALUES, Q_loc));
207 
208     // Output
209     PetscCall(PetscSNPrintf(file_path, sizeof file_path, "%s/ns-%03" PetscInt_FMT ".vtu", honee->app_ctx->output_dir, step_no));
210 
211     PetscCall(PetscViewerVTKOpen(PetscObjectComm((PetscObject)Q), file_path, FILE_MODE_WRITE, &viewer));
212     PetscCall(VecView(Q_loc, viewer));
213     PetscCall(PetscViewerDestroy(&viewer));
214     if (honee->dm_viz) {
215       Vec         Q_refined, Q_refined_loc;
216       char        file_path_refined[PETSC_MAX_PATH_LEN];
217       PetscViewer viewer_refined;
218 
219       PetscCall(DMGetGlobalVector(honee->dm_viz, &Q_refined));
220       PetscCall(DMGetLocalVector(honee->dm_viz, &Q_refined_loc));
221       PetscCall(PetscObjectSetName((PetscObject)Q_refined_loc, "Refined"));
222 
223       PetscCall(MatInterpolate(honee->interp_viz, Q, Q_refined));
224       PetscCall(VecZeroEntries(Q_refined_loc));
225       PetscCall(DMGlobalToLocal(honee->dm_viz, Q_refined, INSERT_VALUES, Q_refined_loc));
226 
227       PetscCall(
228           PetscSNPrintf(file_path_refined, sizeof file_path_refined, "%s/nsrefined-%03" PetscInt_FMT ".vtu", honee->app_ctx->output_dir, step_no));
229 
230       PetscCall(PetscViewerVTKOpen(PetscObjectComm((PetscObject)Q_refined), file_path_refined, FILE_MODE_WRITE, &viewer_refined));
231       PetscCall(VecView(Q_refined_loc, viewer_refined));
232       PetscCall(DMRestoreLocalVector(honee->dm_viz, &Q_refined_loc));
233       PetscCall(DMRestoreGlobalVector(honee->dm_viz, &Q_refined));
234       PetscCall(PetscViewerDestroy(&viewer_refined));
235     }
236     PetscCall(DMRestoreLocalVector(honee->dm, &Q_loc));
237   }
238 
239   // Save data in a binary file for continuation of simulations
240   if (honee->app_ctx->add_stepnum2bin) {
241     PetscCall(PetscSNPrintf(file_path, sizeof file_path, "%s/ns-solution-%" PetscInt_FMT ".bin", honee->app_ctx->output_dir, step_no));
242   } else {
243     PetscCall(PetscSNPrintf(file_path, sizeof file_path, "%s/ns-solution.bin", honee->app_ctx->output_dir));
244   }
245   PetscCall(PetscViewerBinaryOpen(honee->comm, file_path, FILE_MODE_WRITE, &viewer));
246 
247   time /= honee->units->second;  // Dimensionalize time back
248   PetscCall(HoneeWriteBinaryVec(viewer, Q, time, step_no));
249   PetscCall(PetscViewerDestroy(&viewer));
250   PetscFunctionReturn(PETSC_SUCCESS);
251 }
252 
253 // CSV Monitor
254 PetscErrorCode TSMonitor_WallForce(TS ts, PetscInt step_no, PetscReal time, Vec Q, void *ctx) {
255   Honee             honee = ctx;
256   Vec               G_loc;
257   PetscInt          num_wall = honee->app_ctx->wall_forces.num_wall, dim = 3;
258   const PetscInt   *walls  = honee->app_ctx->wall_forces.walls;
259   PetscViewer       viewer = honee->app_ctx->wall_forces.viewer;
260   PetscViewerFormat format = honee->app_ctx->wall_forces.viewer_format;
261   PetscScalar      *reaction_force;
262   PetscBool         is_ascii;
263 
264   PetscFunctionBeginUser;
265   if (!viewer) PetscFunctionReturn(PETSC_SUCCESS);
266   PetscCall(DMGetNamedLocalVector(honee->dm, "ResidualLocal", &G_loc));
267   PetscCall(PetscCalloc1(num_wall * dim, &reaction_force));
268   PetscCall(Surface_Forces_NS(honee->dm, G_loc, num_wall, walls, reaction_force));
269   PetscCall(DMRestoreNamedLocalVector(honee->dm, "ResidualLocal", &G_loc));
270 
271   PetscCall(PetscObjectTypeCompare((PetscObject)viewer, PETSCVIEWERASCII, &is_ascii));
272 
273   if (is_ascii) {
274     if (format == PETSC_VIEWER_ASCII_CSV && !honee->app_ctx->wall_forces.header_written) {
275       PetscCall(PetscViewerASCIIPrintf(viewer, "Step,Time,Wall,ForceX,ForceY,ForceZ\n"));
276       honee->app_ctx->wall_forces.header_written = PETSC_TRUE;
277     }
278     for (PetscInt w = 0; w < num_wall; w++) {
279       PetscInt wall = walls[w];
280       if (format == PETSC_VIEWER_ASCII_CSV) {
281         PetscCall(PetscViewerASCIIPrintf(viewer, "%" PetscInt_FMT ",%g,%" PetscInt_FMT ",%g,%g,%g\n", step_no, time, wall,
282                                          reaction_force[w * dim + 0], reaction_force[w * dim + 1], reaction_force[w * dim + 2]));
283 
284       } else {
285         PetscCall(PetscViewerASCIIPrintf(viewer, "Wall %" PetscInt_FMT " Forces: Force_x = %12g, Force_y = %12g, Force_z = %12g\n", wall,
286                                          reaction_force[w * dim + 0], reaction_force[w * dim + 1], reaction_force[w * dim + 2]));
287       }
288     }
289   }
290   PetscCall(PetscFree(reaction_force));
291   PetscFunctionReturn(PETSC_SUCCESS);
292 }
293 
294 // User provided TS Monitor
295 PetscErrorCode TSMonitor_NS(TS ts, PetscInt step_no, PetscReal time, Vec Q, void *ctx) {
296   Honee honee = ctx;
297 
298   PetscFunctionBeginUser;
299   // Print every 'checkpoint_interval' steps
300   if (honee->app_ctx->checkpoint_interval <= 0 || step_no % honee->app_ctx->checkpoint_interval != 0 ||
301       (honee->app_ctx->cont_steps == step_no && step_no != 0)) {
302     PetscFunctionReturn(PETSC_SUCCESS);
303   }
304 
305   PetscCall(WriteOutput(honee, Q, step_no, time));
306   PetscFunctionReturn(PETSC_SUCCESS);
307 }
308 
309 PetscErrorCode TSPostStep_CheckStep(TS ts) {
310   Honee     honee;
311   PetscReal norm;
312   PetscInt  step;
313   Vec       Q;
314 
315   PetscFunctionBeginUser;
316   PetscCall(TSGetApplicationContext(ts, &honee));
317   PetscCall(TSGetStepNumber(ts, &step));
318   PetscCall(TSGetSolution(ts, &Q));
319   if (step % honee->app_ctx->check_step_interval) PetscFunctionReturn(PETSC_SUCCESS);
320   PetscCall(VecNorm(Q, NORM_1, &norm));
321   if (PetscIsInfOrNanReal(norm)) {
322     PetscCall(PetscPrintf(PetscObjectComm((PetscObject)ts), "Solution diverged: Nans found in solution\n"));
323     PetscCall(TSSetConvergedReason(ts, TS_DIVERGED_NONLINEAR_SOLVE));
324   }
325   PetscFunctionReturn(PETSC_SUCCESS);
326 }
327 
328 PetscErrorCode TSPostStep_MaxWallTime(TS ts) {
329   Honee       honee;
330   PetscInt    step;
331   PetscMPIInt rank;
332   MPI_Comm    comm;
333   PetscBool   is_wall_time_exceeded = PETSC_FALSE;
334 
335   PetscFunctionBeginUser;
336   PetscCall(TSGetApplicationContext(ts, &honee));
337   PetscCall(TSGetStepNumber(ts, &step));
338   if (step % honee->max_wall_time_interval) PetscFunctionReturn(PETSC_SUCCESS);
339   PetscCall(PetscObjectGetComm((PetscObject)ts, &comm));
340   PetscCallMPI(MPI_Comm_rank(comm, &rank));
341   if (rank == 0) is_wall_time_exceeded = time(NULL) > honee->max_wall_time ? PETSC_TRUE : PETSC_FALSE;
342   // Must broadcast to avoid race condition
343   PetscCallMPI(MPI_Bcast(&is_wall_time_exceeded, 1, MPIU_BOOL, 0, comm));
344   if (PetscUnlikely(is_wall_time_exceeded)) {
345     PetscCall(PetscPrintf(PetscObjectComm((PetscObject)ts), "Stopping TSSolve: Set max wall time exceeded\n"));
346     PetscCall(TSSetConvergedReason(ts, TS_CONVERGED_USER));
347   }
348   PetscFunctionReturn(PETSC_SUCCESS);
349 }
350 
351 /**
352   @brief TSPostStep for HONEE
353 
354   `TSSetPostStep()` only accepts a single function argument, so this function groups together all post-step
355   functionality needed for HONEE features
356 
357   @param[in] ts TS object
358 **/
359 PetscErrorCode TSPostStep_Honee(TS ts) {
360   Honee honee;
361 
362   PetscFunctionBeginUser;
363   PetscCall(TSGetApplicationContext(ts, &honee));
364   if (honee->max_wall_time > 0) PetscCall(TSPostStep_MaxWallTime(ts));
365   if (honee->app_ctx->sgs_train_enable) PetscCall(TSPostStep_SGS_DD_Training(ts));
366   if (honee->app_ctx->check_step_interval > 0) PetscCall(TSPostStep_CheckStep(ts));
367   PetscFunctionReturn(PETSC_SUCCESS);
368 }
369 
370 /**
371   @brief Save `TSEvaluationSolutions()` to file defined by `-ts_eval_solutions_view`
372 
373   Intended to be used with `TSSetEvaluationTimes()`/`-ts_eval_times`
374 
375   @param[in] ts TS object that has the evaluation solutions
376 **/
377 static PetscErrorCode HoneeTSEvaluationSolutions(TS ts) {
378   MPI_Comm          comm = PetscObjectComm((PetscObject)ts);
379   const PetscReal  *sol_times;
380   PetscReal         orig_time;
381   PetscInt          num_sols, orig_step;
382   Vec              *sol_vecs;
383   DM                dm;
384   PetscBool         is_viewer_set;
385   PetscViewer       viewer;
386   PetscViewerFormat format;
387 
388   PetscFunctionBeginUser;
389   PetscCall(TSGetEvaluationSolutions(ts, &num_sols, &sol_times, &sol_vecs));
390   if (num_sols == 0) PetscFunctionReturn(PETSC_SUCCESS);
391   PetscCall(TSGetDM(ts, &dm));
392   PetscCall(DMGetOutputSequenceNumber(dm, &orig_step, &orig_time));
393 
394   const char *option = "-ts_eval_solutions_view";
395   PetscCall(PetscOptionsCreateViewer(comm, NULL, NULL, option, &viewer, &format, &is_viewer_set));
396   if (!is_viewer_set) {
397     PetscCall(PetscPrintf(comm, "\n\nWARNING: Viewer not set for TSEvaluationSolutions. Set %s to save this data. Now throwing it away!\n", option));
398     PetscFunctionReturn(PETSC_SUCCESS);
399   }
400   for (PetscInt i = 0; i < num_sols; i++) {
401     PetscCall(DMSetOutputSequenceNumber(dm, i, sol_times[i]));
402     PetscCall(VecView(sol_vecs[i], viewer));
403   }
404   PetscCall(PetscViewerPopFormat(viewer));
405   PetscCall(PetscViewerDestroy(&viewer));
406   PetscFunctionReturn(PETSC_SUCCESS);
407 }
408 
409 // TS: Create, setup, and solve
410 PetscErrorCode TSSolve_NS(DM dm, Honee honee, AppCtx app_ctx, Physics phys, ProblemData problem, Vec Q, PetscScalar *f_time, TS *ts) {
411   MPI_Comm    comm = honee->comm;
412   TSAdapt     adapt;
413   PetscScalar final_time;
414 
415   PetscFunctionBeginUser;
416   PetscCall(TSCreate(comm, ts));
417   PetscCall(TSSetDM(*ts, dm));
418   PetscCall(TSSetApplicationContext(*ts, honee));
419   if (phys->implicit) {
420     PetscCall(TSSetType(*ts, TSBDF));
421     if (honee->op_ifunction) {
422       PetscCall(TSSetIFunction(*ts, NULL, IFunction_NS, &honee));
423     } else {  // Implicit integrators can fall back to using an RHSFunction
424       PetscCall(TSSetRHSFunction(*ts, NULL, RHS_NS, &honee));
425     }
426     if (honee->mat_ijacobian) {
427       PetscCall(DMTSSetIJacobian(dm, FormIJacobian_NS, &honee));
428     }
429   } else {
430     PetscCheck(honee->op_rhs_ctx, comm, PETSC_ERR_ARG_NULL, "Problem does not provide RHSFunction");
431     PetscCall(TSSetType(*ts, TSRK));
432     PetscCall(TSRKSetType(*ts, TSRK5F));
433     PetscCall(TSSetRHSFunction(*ts, NULL, RHS_NS, &honee));
434   }
435   PetscCall(TSSetMaxTime(*ts, 500. * honee->units->second));
436   PetscCall(TSSetExactFinalTime(*ts, TS_EXACTFINALTIME_STEPOVER));
437   if (app_ctx->test_type == TESTTYPE_NONE) PetscCall(TSSetErrorIfStepFails(*ts, PETSC_FALSE));
438   PetscCall(TSSetTimeStep(*ts, 1.e-2 * honee->units->second));
439   PetscCall(TSGetAdapt(*ts, &adapt));
440   PetscCall(TSAdaptSetStepLimits(adapt, 1.e-12 * honee->units->second, 1.e2 * honee->units->second));
441   PetscCall(TSSetFromOptions(*ts));
442   if (honee->mat_ijacobian) {
443     if (app_ctx->amat_type && !strcmp(app_ctx->amat_type, MATSHELL)) {
444       SNES snes;
445       KSP  ksp;
446       Mat  Pmat, Amat;
447 
448       PetscCall(TSGetSNES(*ts, &snes));
449       PetscCall(SNESGetKSP(snes, &ksp));
450       PetscCall(CreateSolveOperatorsFromMatCeed(ksp, honee->mat_ijacobian, PETSC_FALSE, &Amat, &Pmat));
451       PetscCall(TSSetIJacobian(*ts, honee->mat_ijacobian, Pmat, NULL, NULL));
452       PetscCall(MatDestroy(&Amat));
453       PetscCall(MatDestroy(&Pmat));
454     }
455   }
456   honee->time_bc_set = -1.0;  // require all BCs be updated
457   if (app_ctx->cont_steps) {  // continue from previous timestep data
458     PetscCall(TSSetTime(*ts, app_ctx->cont_time * honee->units->second));
459     PetscCall(TSSetStepNumber(*ts, app_ctx->cont_steps));
460   }
461 
462   PetscBool add_ksp_postsolve_residual = PETSC_FALSE;
463   PetscCall(PetscOptionsGetBool(NULL, NULL, "-ksp_post_solve_residual", &add_ksp_postsolve_residual, NULL));
464   if (add_ksp_postsolve_residual) {
465     SNES snes;
466     KSP  ksp;
467 
468     PetscCall(TSGetSNES(*ts, &snes));
469     PetscCall(SNESGetKSP(snes, &ksp));
470     PetscCall(KSPSetResidualHistory(ksp, NULL, PETSC_DECIDE, PETSC_TRUE));
471     PetscCall(KSPSetPostSolve(ksp, KSPPostSolve_Honee, NULL));
472   }
473   if (honee->set_poststep) PetscCall(TSSetPostStep(*ts, TSPostStep_Honee));
474   if (app_ctx->test_type == TESTTYPE_NONE) PetscCall(TSMonitorSet(*ts, TSMonitor_NS, honee, NULL));
475   if (app_ctx->wall_forces.viewer) PetscCall(TSMonitorSet(*ts, TSMonitor_WallForce, honee, NULL));
476 
477   PetscOptionsBegin(comm, NULL, "HONEE TS Monitor Options", NULL);
478   PetscCall(TSMonitorSetFromOptions(*ts, "-ts_monitor_total_kinetic_energy", "Monitor total kinetic energy balance terms in the domain", NULL,
479                                     TSMonitor_TotalKineticEnergy, SetupMontiorTotalKineticEnergy));
480   PetscCall(TSMonitorSetFromOptions(*ts, "-ts_monitor_cfl", "Monitor element CFL statistics", NULL, TSMonitor_Cfl, SetupMontiorCfl));
481 
482   PetscCall(
483       PetscOptionsDeprecated("-ts_monitor_turbulence_spanstats_viewer_interval", "-ts_monitor_spanstats_turbulence_interval", "HONEE 0.0", NULL));
484   PetscCall(PetscOptionsDeprecated("-ts_monitor_turbulence_spanstats_viewer", "-ts_monitor_spanstats_turbulence", "HONEE 0.0", NULL));
485   PetscCall(TSMonitorSetFromOptions(*ts, "-ts_monitor_spanstats_turbulence", "Setup spanwise statistics collection", NULL,
486                                     TSMonitor_SpanwiseStatisticsTurbulence, SpanwiseStatisticsSetup_Turbulence));
487   PetscCall(TSMonitorSetFromOptions(*ts, "-ts_monitor_spanstats_cflpe", "Setup spanwise statistics collection of CFL and Pe", NULL,
488                                     TSMonitor_SpanwiseStatisticsCflPe, SpanwiseStatisticsSetup_CflPe));
489   PetscCall(TSMonitorSetFromOptions(*ts, "-diff_filter_monitor", "Run differential filtering for every timestep (used for testing)", NULL,
490                                     TSMonitor_DifferentialFilter, TSMonitor_DifferentialFilterSetup));
491   PetscCall(TSMonitorSetFromOptions(*ts, "-ts_monitor_smartsim_solution", "Write solution to SmartSim database", NULL, TSMonitor_SmartSimSolution,
492                                     TSMonitor_SmartSimSolutionSetup));
493   PetscOptionsEnd();
494 
495   if (app_ctx->sgs_train_enable) PetscCall(TSMonitorSet(*ts, TSMonitor_SGS_DD_Training, honee, NULL));
496 
497   if (app_ctx->test_type == TESTTYPE_NONE) PetscCall(PrintRunInfo(honee, honee->phys, problem, *ts));
498   if (honee->mass_ksp) PetscCall(KSPViewFromOptions(honee->mass_ksp, NULL, "-ksp_view_pre_ts_solve"));
499 
500   // Solve
501   PetscReal start_time;
502   PetscInt  start_step;
503   PetscCall(TSGetTime(*ts, &start_time));
504   PetscCall(TSGetStepNumber(*ts, &start_step));
505 
506   PetscCall(PetscLogDefaultBegin());  // So we can use PetscLogStageGetPerfInfo without -log_view
507   PetscPreLoadBegin(PETSC_FALSE, "HONEE Solve");
508   PetscCall(TSSetTime(*ts, start_time));
509   PetscCall(TSSetStepNumber(*ts, start_step));
510   if (PetscPreLoadingOn) {
511     // LCOV_EXCL_START
512     SNES      snes;
513     KSP       ksp;
514     Vec       Q_preload;
515     PetscReal rtol_snes, rtol_ksp;
516     PetscCall(VecDuplicate(Q, &Q_preload));
517     PetscCall(VecCopy(Q, Q_preload));
518     PetscCall(TSGetSNES(*ts, &snes));
519     PetscCall(SNESGetTolerances(snes, NULL, &rtol_snes, NULL, NULL, NULL));
520     PetscCall(SNESSetTolerances(snes, PETSC_CURRENT, .99, PETSC_CURRENT, PETSC_CURRENT, PETSC_CURRENT));
521     PetscCall(SNESGetKSP(snes, &ksp));
522     PetscCall(KSPGetTolerances(ksp, &rtol_ksp, NULL, NULL, NULL));
523     PetscCall(KSPSetTolerances(ksp, .99, PETSC_CURRENT, PETSC_CURRENT, PETSC_CURRENT));
524     PetscCall(TSSetSolution(*ts, Q_preload));
525     PetscCall(TSStep(*ts));
526     PetscCall(SNESSetTolerances(snes, PETSC_CURRENT, rtol_snes, PETSC_CURRENT, PETSC_CURRENT, PETSC_CURRENT));
527     PetscCall(KSPSetTolerances(ksp, rtol_ksp, PETSC_CURRENT, PETSC_CURRENT, PETSC_CURRENT));
528     PetscCall(VecDestroy(&Q_preload));
529     // LCOV_EXCL_STOP
530   } else {
531     PetscCall(PetscBarrier((PetscObject)*ts));
532     PetscCall(TSSolve(*ts, Q));
533   }
534   PetscPreLoadEnd();
535 
536   PetscCall(TSGetSolveTime(*ts, &final_time));
537   *f_time = final_time;
538 
539   if (app_ctx->test_type == TESTTYPE_NONE) {
540     PetscInt           step_no;
541     PetscLogStage      stage_id;
542     PetscEventPerfInfo stage_perf;
543 
544     PetscCall(TSGetStepNumber(*ts, &step_no));
545     if (honee->app_ctx->checkpoint_interval > 0 || honee->app_ctx->checkpoint_interval == -1) {
546       PetscCall(WriteOutput(honee, Q, step_no, final_time));
547     }
548     PetscCall(HoneeTSEvaluationSolutions(*ts));
549 
550     PetscCall(PetscLogStageGetId("HONEE Solve", &stage_id));
551     PetscCall(PetscLogStageGetPerfInfo(stage_id, &stage_perf));
552     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "Time taken for solution (sec): %g\n", stage_perf.time));
553   }
554   PetscFunctionReturn(PETSC_SUCCESS);
555 }
556