xref: /libCEED/examples/fluids/src/cloptions.c (revision 0f2fa9b4e1deb19c1ee4421d58b5dd7bd7f4a799)
1 // Copyright (c) 2017-2022, Lawrence Livermore National Security, LLC and other CEED contributors.
2 // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
3 //
4 // SPDX-License-Identifier: BSD-2-Clause
5 //
6 // This file is part of CEED:  http://github.com/ceed
7 
8 /// @file
9 /// Command line option processing for Navier-Stokes example using PETSc
10 
11 #include <petscdevice.h>
12 #include <petscsys.h>
13 
14 #include "../navierstokes.h"
15 
16 // Register problems to be available on the command line
17 PetscErrorCode RegisterProblems_NS(AppCtx app_ctx) {
18   app_ctx->problems = NULL;
19 
20   PetscFunctionBeginUser;
21   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "density_current", NS_DENSITY_CURRENT));
22   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "euler_vortex", NS_EULER_VORTEX));
23   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "shocktube", NS_SHOCKTUBE));
24   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "advection", NS_ADVECTION));
25   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "blasius", NS_BLASIUS));
26   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "channel", NS_CHANNEL));
27   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "gaussian_wave", NS_GAUSSIAN_WAVE));
28   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "newtonian", NS_NEWTONIAN_IG));
29   PetscCall(PetscFunctionListAdd(&app_ctx->problems, "taylor_green", NS_TAYLOR_GREEN));
30   PetscFunctionReturn(PETSC_SUCCESS);
31 }
32 
33 // Process general command line options
34 PetscErrorCode ProcessCommandLineOptions(MPI_Comm comm, AppCtx app_ctx, SimpleBC bc) {
35   PetscBool ceed_flag    = PETSC_FALSE;
36   PetscBool problem_flag = PETSC_FALSE;
37   PetscBool option_set   = PETSC_FALSE;
38 
39   PetscFunctionBeginUser;
40   PetscOptionsBegin(comm, NULL, "Navier-Stokes in PETSc with libCEED", NULL);
41 
42   PetscCall(PetscOptionsString("-ceed", "CEED resource specifier", NULL, app_ctx->ceed_resource, app_ctx->ceed_resource,
43                                sizeof(app_ctx->ceed_resource), &ceed_flag));
44 
45   app_ctx->test_type = TESTTYPE_NONE;
46   PetscCall(PetscOptionsEnum("-test_type", "Type of test to run", NULL, TestTypes, (PetscEnum)(app_ctx->test_type), (PetscEnum *)&app_ctx->test_type,
47                              NULL));
48 
49   app_ctx->test_tol = 1E-11;
50   PetscCall(PetscOptionsScalar("-compare_final_state_atol", "Test absolute tolerance", NULL, app_ctx->test_tol, &app_ctx->test_tol, NULL));
51 
52   PetscCall(PetscOptionsString("-compare_final_state_filename", "Test filename", NULL, app_ctx->test_file_path, app_ctx->test_file_path,
53                                sizeof(app_ctx->test_file_path), NULL));
54 
55   PetscCall(PetscOptionsFList("-problem", "Problem to solve", NULL, app_ctx->problems, app_ctx->problem_name, app_ctx->problem_name,
56                               sizeof(app_ctx->problem_name), &problem_flag));
57 
58   app_ctx->viz_refine = 0;
59   PetscCall(PetscOptionsInt("-viz_refine", "Regular refinement levels for visualization", NULL, app_ctx->viz_refine, &app_ctx->viz_refine, NULL));
60 
61   app_ctx->checkpoint_interval = 10;
62   app_ctx->checkpoint_vtk      = PETSC_FALSE;
63   PetscCall(PetscOptionsDeprecated("-output_freq", "-checkpoint_interval", "libCEED 0.11.1", "Use -checkpoint_vtk true to include VTK output"));
64   PetscCall(PetscOptionsInt("-output_freq", "Frequency of output, in number of steps", NULL, app_ctx->checkpoint_interval,
65                             &app_ctx->checkpoint_interval, &option_set));
66   if (option_set) app_ctx->checkpoint_vtk = PETSC_TRUE;
67   PetscCall(PetscOptionsInt("-checkpoint_interval", "Frequency of output, in number of steps", NULL, app_ctx->checkpoint_interval,
68                             &app_ctx->checkpoint_interval, NULL));
69   PetscCall(PetscOptionsBool("-checkpoint_vtk", "Include VTK (*.vtu) output at each binary checkpoint", NULL, app_ctx->checkpoint_vtk,
70                              &app_ctx->checkpoint_vtk, NULL));
71 
72   PetscCall(PetscOptionsBool("-output_add_stepnum2bin", "Add step number to the binary outputs", NULL, app_ctx->add_stepnum2bin,
73                              &app_ctx->add_stepnum2bin, NULL));
74 
75   PetscCall(PetscStrncpy(app_ctx->output_dir, ".", 2));
76   PetscCall(PetscOptionsString("-output_dir", "Output directory", NULL, app_ctx->output_dir, app_ctx->output_dir, sizeof(app_ctx->output_dir), NULL));
77 
78   app_ctx->cont_steps = 0;
79   PetscCall(PetscOptionsInt("-continue", "Continue from previous solution", NULL, app_ctx->cont_steps, &app_ctx->cont_steps, NULL));
80 
81   PetscCall(PetscStrcpy(app_ctx->cont_file, "[output_dir]/ns-solution.bin"));
82   PetscCall(PetscOptionsString("-continue_filename", "Filename to get initial condition from", NULL, app_ctx->cont_file, app_ctx->cont_file,
83                                sizeof(app_ctx->cont_file), &option_set));
84   if (!option_set) PetscCall(PetscSNPrintf(app_ctx->cont_file, sizeof app_ctx->cont_file, "%s/ns-solution.bin", app_ctx->output_dir));
85   if (option_set && app_ctx->cont_steps == 0) app_ctx->cont_steps = -1;  // Read time from file
86 
87   PetscCall(PetscStrcpy(app_ctx->cont_time_file, "[output_dir]/ns-time.bin"));
88   PetscCall(PetscOptionsString("-continue_time_filename", "Filename to get initial condition time from", NULL, app_ctx->cont_time_file,
89                                app_ctx->cont_time_file, sizeof(app_ctx->cont_time_file), &option_set));
90   if (!option_set) PetscCall(PetscSNPrintf(app_ctx->cont_time_file, sizeof app_ctx->cont_time_file, "%s/ns-time.bin", app_ctx->output_dir));
91 
92   app_ctx->degree = 1;
93   PetscCall(PetscOptionsInt("-degree", "Polynomial degree of finite elements", NULL, app_ctx->degree, &app_ctx->degree, NULL));
94 
95   app_ctx->q_extra = 0;
96   PetscCall(PetscOptionsInt("-q_extra", "Number of extra quadrature points", NULL, app_ctx->q_extra, &app_ctx->q_extra, NULL));
97 
98   {
99     PetscBool option_set;
100     char      amat_type[256] = "";
101     PetscCall(PetscOptionsFList("-amat_type", "Set the type of Amat distinct from Pmat (-dm_mat_type)", NULL, MatList, amat_type, amat_type,
102                                 sizeof(amat_type), &option_set));
103     if (option_set) PetscCall(PetscStrallocpy(amat_type, (char **)&app_ctx->amat_type));
104   }
105   PetscCall(PetscOptionsBool("-pmat_pbdiagonal", "Assemble only point-block diagonal for Pmat", NULL, app_ctx->pmat_pbdiagonal,
106                              &app_ctx->pmat_pbdiagonal, NULL));
107 
108   // Provide default ceed resource if not specified
109   if (!ceed_flag) {
110     const char *ceed_resource = "/cpu/self";
111     strncpy(app_ctx->ceed_resource, ceed_resource, 10);
112   }
113   // If we request a GPU, make sure PETSc has initialized its device (which is
114   // MPI-aware in case multiple devices are available) before CeedInit so that
115   // PETSc and libCEED agree about which device to use.
116   if (strncmp(app_ctx->ceed_resource, "/gpu", 4) == 0) PetscCall(PetscDeviceInitialize(PETSC_DEVICE_DEFAULT()));
117 
118   // Provide default problem if not specified
119   if (!problem_flag) {
120     const char *problem_name = "density_current";
121     strncpy(app_ctx->problem_name, problem_name, 16);
122   }
123 
124   // Wall Boundary Conditions
125   bc->num_wall = 16;
126   PetscBool flg;
127   PetscCall(PetscOptionsIntArray("-bc_wall", "Face IDs to apply wall BC", NULL, bc->walls, &bc->num_wall, NULL));
128   bc->num_comps = 5;
129   PetscCall(PetscOptionsIntArray("-wall_comps", "An array of constrained component numbers", NULL, bc->wall_comps, &bc->num_comps, &flg));
130   // Slip Boundary Conditions
131   for (PetscInt j = 0; j < 3; j++) {
132     bc->num_slip[j] = 16;
133     PetscBool   flg;
134     const char *flags[3] = {"-bc_slip_x", "-bc_slip_y", "-bc_slip_z"};
135     PetscCall(PetscOptionsIntArray(flags[j], "Face IDs to apply slip BC", NULL, bc->slips[j], &bc->num_slip[j], &flg));
136     if (flg) bc->user_bc = PETSC_TRUE;
137   }
138 
139   // Error if wall and slip BCs are set on the same face
140   if (bc->user_bc) {
141     for (PetscInt c = 0; c < 3; c++) {
142       for (PetscInt s = 0; s < bc->num_slip[c]; s++) {
143         for (PetscInt w = 0; w < bc->num_wall; w++) {
144           PetscCheck(bc->slips[c][s] != bc->walls[w], PETSC_COMM_SELF, PETSC_ERR_ARG_WRONG,
145                      "Boundary condition already set on face %" PetscInt_FMT "!\n", bc->walls[w]);
146         }
147       }
148     }
149   }
150   app_ctx->wall_forces.num_wall = bc->num_wall;
151   PetscMalloc1(bc->num_wall, &app_ctx->wall_forces.walls);
152   PetscCall(PetscArraycpy(app_ctx->wall_forces.walls, bc->walls, bc->num_wall));
153 
154   // Inflow BCs
155   bc->num_inflow = 16;
156   PetscCall(PetscOptionsIntArray("-bc_inflow", "Face IDs to apply inflow BC", NULL, bc->inflows, &bc->num_inflow, NULL));
157   // Outflow BCs
158   bc->num_outflow = 16;
159   PetscCall(PetscOptionsIntArray("-bc_outflow", "Face IDs to apply outflow BC", NULL, bc->outflows, &bc->num_outflow, NULL));
160   // Freestream BCs
161   bc->num_freestream = 16;
162   PetscCall(PetscOptionsIntArray("-bc_freestream", "Face IDs to apply freestream BC", NULL, bc->freestreams, &bc->num_freestream, NULL));
163 
164   // Statistics Options
165   app_ctx->turb_spanstats_collect_interval = 1;
166   PetscCall(PetscOptionsInt("-ts_monitor_turbulence_spanstats_collect_interval", "Number of timesteps between statistics collection", NULL,
167                             app_ctx->turb_spanstats_collect_interval, &app_ctx->turb_spanstats_collect_interval, NULL));
168 
169   app_ctx->turb_spanstats_viewer_interval = -1;
170   PetscCall(PetscOptionsInt("-ts_monitor_turbulence_spanstats_viewer_interval", "Number of timesteps between statistics viewer writing", NULL,
171                             app_ctx->turb_spanstats_viewer_interval, &app_ctx->turb_spanstats_viewer_interval, NULL));
172 
173   PetscCall(PetscOptionsViewer("-ts_monitor_turbulence_spanstats_viewer", "Viewer for the statistics", NULL, &app_ctx->turb_spanstats_viewer,
174                                &app_ctx->turb_spanstats_viewer_format, &app_ctx->turb_spanstats_enable));
175 
176   PetscCall(PetscOptionsViewer("-ts_monitor_wall_force", "Viewer for force on each (no-slip) wall", NULL, &app_ctx->wall_forces.viewer,
177                                &app_ctx->wall_forces.viewer_format, NULL));
178 
179   // SGS Model Options
180   app_ctx->sgs_model_type = SGS_MODEL_NONE;
181   PetscCall(PetscOptionsEnum("-sgs_model_type", "Subgrid Stress Model type", NULL, SGSModelTypes, (PetscEnum)app_ctx->sgs_model_type,
182                              (PetscEnum *)&app_ctx->sgs_model_type, NULL));
183 
184   PetscCall(PetscOptionsBool("-diff_filter_monitor", "Enable differential filtering TSMonitor", NULL, app_ctx->diff_filter_monitor,
185                              &app_ctx->diff_filter_monitor, NULL));
186 
187   // Mesh Transformation Options
188   app_ctx->mesh_transform_type = MESH_TRANSFORM_NONE;
189   PetscCall(PetscOptionsEnum("-mesh_transform", "Mesh transform to perform", NULL, MeshTransformTypes, (PetscEnum)app_ctx->mesh_transform_type,
190                              (PetscEnum *)&app_ctx->mesh_transform_type, NULL));
191 
192   PetscCall(
193       PetscOptionsBool("-sgs_train_enable", "Enable Data-Driven SGS training", NULL, app_ctx->sgs_train_enable, &app_ctx->sgs_train_enable, NULL));
194 
195   PetscOptionsEnd();
196   PetscFunctionReturn(PETSC_SUCCESS);
197 }
198