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miscellaneous_ex4.C File Reference

Go to the source code of this file.

Functions

void assemble (EquationSystems &es, const std::string &system_name)
 
int main (int argc, char **argv)
 

Function Documentation

◆ assemble()

void assemble ( EquationSystems es,
const std::string &  system_name 
)

Definition at line 239 of file miscellaneous_ex4.C.

241{
242 // Ignore unused parameter warnings when !LIBMESH_ENABLE_AMR.
243 libmesh_ignore(es, system_name);
244
245#ifdef LIBMESH_ENABLE_AMR
246 // It is a good idea to make sure we are assembling
247 // the proper system.
248 libmesh_assert_equal_to (system_name, "System");
249
250 // Get a constant reference to the mesh object.
251 const MeshBase & mesh = es.get_mesh();
252
253 // The dimension that we are running
254 const unsigned int dim = mesh.mesh_dimension();
255
256 // Get a reference to the Convection-Diffusion system object.
257 LinearImplicitSystem & system =
258 es.get_system<LinearImplicitSystem> ("System");
259
260 // Get the Finite Element type for the first (and only)
261 // variable in the system.
262 FEType fe_type = system.variable_type(0);
263
264 // Build a Finite Element object of the specified type. Since the
265 // FEBase::build() member dynamically creates memory we will
266 // store the object as a std::unique_ptr<FEBase>. This can be thought
267 // of as a pointer that will clean up after itself.
268 std::unique_ptr<FEBase> fe (FEBase::build(dim, fe_type));
269 std::unique_ptr<FEBase> fe_face (FEBase::build(dim, fe_type));
270
271 // A Gauss quadrature rule for numerical integration.
272 // Let the FEType object decide what order rule is appropriate.
273 QGauss qrule (dim, fe_type.default_quadrature_order());
274 QGauss qface (dim-1, fe_type.default_quadrature_order());
275
276 // Tell the finite element object to use our quadrature rule.
277 fe->attach_quadrature_rule (&qrule);
278 fe_face->attach_quadrature_rule (&qface);
279
280 // Here we define some references to cell-specific data that
281 // will be used to assemble the linear system. We will start
282 // with the element Jacobian * quadrature weight at each integration point.
283 const std::vector<Real> & JxW = fe->get_JxW();
284 const std::vector<Real> & JxW_face = fe_face->get_JxW();
285
286 // The element shape functions evaluated at the quadrature points.
287 const std::vector<std::vector<Real>> & phi = fe->get_phi();
288 const std::vector<std::vector<Real>> & psi = fe_face->get_phi();
289
290 // The element shape function gradients evaluated at the quadrature
291 // points.
292 const std::vector<std::vector<RealGradient>> & dphi = fe->get_dphi();
293
294 // The XY locations of the quadrature points used for face integration
295 //const std::vector<Point>& qface_points = fe_face->get_xyz();
296
297 // A reference to the DofMap object for this system. The DofMap
298 // object handles the index translation from node and element numbers
299 // to degree of freedom numbers. We will talk more about the DofMap
300 // in future examples.
301 const DofMap & dof_map = system.get_dof_map();
302
303 // Define data structures to contain the element matrix
304 // and right-hand-side vector contribution. Following
305 // basic finite element terminology we will denote these
306 // "Ke" and "Fe".
309
310 // Analogous data structures for thw two vectors v and w that form
311 // the tensor shell matrix.
314
315 // This vector will hold the degree of freedom indices for
316 // the element. These define where in the global system
317 // the element degrees of freedom get mapped.
318 std::vector<dof_id_type> dof_indices;
319
320 // The global system matrix
321 SparseMatrix<Number> & matrix = system.get_system_matrix();
322
323 // Now we will loop over all the elements in the mesh that
324 // live on the local processor. We will compute the element
325 // matrix and right-hand-side contribution. Since the mesh
326 // will be refined we want to only consider the ACTIVE elements,
327 // hence we use a variant of the active_elem_iterator.
328 for (const auto & elem : mesh.active_local_element_ptr_range())
329 {
330 // Get the degree of freedom indices for the
331 // current element. These define where in the global
332 // matrix and right-hand-side this element will
333 // contribute to.
334 dof_map.dof_indices (elem, dof_indices);
335
336 // Compute the element-specific data for the current
337 // element. This involves computing the location of the
338 // quadrature points (q_point) and the shape functions
339 // (phi, dphi) for the current element.
340 fe->reinit (elem);
341
342 // Zero the element matrix and right-hand side before
343 // summing them. We use the resize member here because
344 // the number of degrees of freedom might have changed from
345 // the last element. Note that this will be the case if the
346 // element type is different (i.e. the last element was a
347 // triangle, now we are on a quadrilateral).
348 const unsigned int n_dofs =
349 cast_int<unsigned int>(dof_indices.size());
350
351 Ke.resize (n_dofs, n_dofs);
352
353 Fe.resize (n_dofs);
354 Ve.resize (n_dofs);
355 We.resize (n_dofs);
356
357 // Now we will build the element matrix and right-hand-side.
358 // Constructing the RHS requires the solution and its
359 // gradient from the previous timestep. This myst be
360 // calculated at each quadrature point by summing the
361 // solution degree-of-freedom values by the appropriate
362 // weight functions.
363 for (unsigned int qp=0; qp<qrule.n_points(); qp++)
364 {
365 // Now compute the element matrix and RHS contributions.
366 for (unsigned int i=0; i<n_dofs; i++)
367 {
368 // The RHS contribution
369 Fe(i) += JxW[qp]*phi[i][qp];
370
371 for (unsigned int j=0; j<n_dofs; j++)
372 {
373 // The matrix contribution
374 Ke(i,j) += JxW[qp]*(
375 // Stiffness matrix
376 (dphi[i][qp]*dphi[j][qp])
377 );
378 }
379
380 // V and W are the same for this example.
381 Ve(i) += JxW[qp]*phi[i][qp];
382 We(i) += JxW[qp]*phi[i][qp];
383 }
384 }
385
386 // At this point the interior element integration has
387 // been completed. However, we have not yet addressed
388 // boundary conditions. For this example we will only
389 // consider simple Dirichlet boundary conditions imposed
390 // via the penalty method.
391 //
392 // The following loops over the sides of the element.
393 // If the element has no neighbor on a side then that
394 // side MUST live on a boundary of the domain.
395 {
396 // The penalty value.
397 const Real penalty = 1.e10;
398
399 // The following loops over the sides of the element.
400 // If the element has no neighbor on a side then that
401 // side MUST live on a boundary of the domain.
402 for (auto s : elem->side_index_range())
403 if (elem->neighbor_ptr(s) == nullptr)
404 {
405 fe_face->reinit(elem, s);
406
407 for (unsigned int qp=0; qp<qface.n_points(); qp++)
408 {
409 // Matrix contribution
410 for (unsigned int i=0; i<n_dofs; i++)
411 for (unsigned int j=0; j<n_dofs; j++)
412 Ke(i,j) += penalty*JxW_face[qp]*psi[i][qp]*psi[j][qp];
413 }
414 }
415 }
416
417
418 // We have now built the element matrix and RHS vector in terms
419 // of the element degrees of freedom. However, it is possible
420 // that some of the element DOFs are constrained to enforce
421 // solution continuity, i.e. they are not really "free". We need
422 // to constrain those DOFs in terms of non-constrained DOFs to
423 // ensure a continuous solution. The
424 // DofMap::constrain_element_matrix_and_vector() method does
425 // just that.
426
427 // However, constraining both the sparse matrix (and right hand
428 // side) plus the rank 1 matrix is tricky. The dof_indices
429 // vector has to be backed up for that because the constraining
430 // functions modify it.
431
432 std::vector<dof_id_type> dof_indices_backup(dof_indices);
433 dof_map.constrain_element_matrix_and_vector (Ke, Fe, dof_indices);
434 dof_indices = dof_indices_backup;
435 dof_map.constrain_element_dyad_matrix(Ve, We, dof_indices);
436
437 // The element matrix and right-hand-side are now built
438 // for this element. Add them to the global matrix and
439 // right-hand-side vector. The SparseMatrix::add_matrix()
440 // and NumericVector::add_vector() members do this for us.
441 matrix.add_matrix (Ke, dof_indices);
442 system.get_matrix("Preconditioner").add_matrix (Ke, dof_indices);
443 system.rhs->add_vector (Fe, dof_indices);
444 system.get_vector("v").add_vector(Ve, dof_indices);
445 system.get_vector("w").add_vector(We, dof_indices);
446 }
447 // Finished computing the system matrix and right-hand side.
448
449 // Matrices and vectors must be closed manually. This is necessary
450 // because the matrix is not directly used as the system matrix (in
451 // which case the solver closes it) but as a part of a shell matrix.
452 matrix.close();
453 system.get_matrix("Preconditioner").close();
454 system.rhs->close();
455 system.get_vector("v").close();
456 system.get_vector("w").close();
457
458#endif // #ifdef LIBMESH_ENABLE_AMR
459}
unsigned int dim
Defines a dense matrix for use in Finite Element-type computations.
void resize(const unsigned int new_m, const unsigned int new_n)
Resizes the matrix to the specified size and calls zero().
Defines a dense vector for use in Finite Element-type computations.
void resize(const unsigned int n)
Resize the vector.
This class handles the numbering of degrees of freedom on a mesh.
Definition dof_map.h:181
void dof_indices(const Elem *const elem, std::vector< dof_id_type > &di) const
Definition dof_map.C:2201
void constrain_element_dyad_matrix(DenseVector< Number > &v, DenseVector< Number > &w, std::vector< dof_id_type > &row_dofs, bool asymmetric_constraint_rows=true) const
Constrains a dyadic element matrix B = v w'.
Definition dof_map.h:2511
void constrain_element_matrix_and_vector(DenseMatrix< Number > &matrix, DenseVector< Number > &rhs, std::vector< dof_id_type > &elem_dofs, bool asymmetric_constraint_rows=true) const
Constrains the element matrix and vector.
Definition dof_map.h:2498
const MeshBase & get_mesh() const
const T_sys & get_system(std::string_view name) const
NumericVector< Number > * rhs
The system matrix.
static std::unique_ptr< FEGenericBase > build(const unsigned int dim, const FEType &type)
Builds a specific finite element type.
class FEType hides (possibly multiple) FEFamily and approximation orders, thereby enabling specialize...
Definition fe_type.h:197
const SparseMatrix< Number > & get_system_matrix() const
Manages consistently variables, degrees of freedom, coefficient vectors, matrices and linear solvers ...
This is the MeshBase class.
Definition mesh_base.h:81
unsigned int mesh_dimension() const
Definition mesh_base.C:430
virtual void close()=0
Calls the NumericVector's internal assembly routines, ensuring that the values are consistent across ...
virtual void add_vector(const T *v, const std::vector< numeric_index_type > &dof_indices)
Computes , where v is a pointer and each dof_indices[i] specifies where to add value v[i].
This class implements specific orders of Gauss quadrature.
Generic sparse matrix.
virtual void close()=0
Calls the SparseMatrix's internal assembly routines, ensuring that the values are consistent across p...
virtual void add_matrix(const DenseMatrix< T > &dm, const std::vector< numeric_index_type > &rows, const std::vector< numeric_index_type > &cols)=0
Add the full matrix dm to the SparseMatrix.
const SparseMatrix< Number > & get_matrix(std::string_view mat_name) const
Definition system.C:1111
const FEType & variable_type(const unsigned int i) const
Definition system.C:2721
const DofMap & get_dof_map() const
Definition system.h:2417
const NumericVector< Number > & get_vector(std::string_view vec_name) const
Definition system.C:931
MeshBase & mesh
void libmesh_ignore(const Args &...)
DIE A HORRIBLE DEATH HERE typedef LIBMESH_DEFAULT_SCALAR_TYPE Real

References libMesh::SparseMatrix< T >::add_matrix(), libMesh::NumericVector< T >::add_vector(), libMesh::FEGenericBase< OutputType >::build(), libMesh::NumericVector< T >::close(), libMesh::SparseMatrix< T >::close(), libMesh::DofMap::constrain_element_dyad_matrix(), libMesh::DofMap::constrain_element_matrix_and_vector(), dim, libMesh::DofMap::dof_indices(), libMesh::System::get_dof_map(), libMesh::System::get_matrix(), libMesh::EquationSystems::get_mesh(), libMesh::EquationSystems::get_system(), libMesh::ImplicitSystem::get_system_matrix(), libMesh::System::get_vector(), libMesh::libmesh_ignore(), mesh, libMesh::MeshBase::mesh_dimension(), libMesh::QBase::n_points(), libMesh::Real, libMesh::DenseVector< T >::resize(), libMesh::DenseMatrix< T >::resize(), libMesh::ExplicitSystem::rhs, and libMesh::System::variable_type().

Referenced by main().

◆ main()

int main ( int  argc,
char **  argv 
)

Definition at line 90 of file miscellaneous_ex4.C.

91{
92 // Initialize libMesh.
93 LibMeshInit init (argc, argv);
94
95#if !defined(LIBMESH_ENABLE_AMR)
96 libmesh_example_requires(false, "--enable-amr");
97#else
98 libmesh_example_requires(libMesh::default_solver_package() == PETSC_SOLVERS, "--enable-petsc");
99
100 // Brief message to the user regarding the program name
101 // and command line arguments.
102
103 libMesh::out << "Running: " << argv[0];
104
105 for (int i=1; i<argc; i++)
106 libMesh::out << " " << argv[i];
107
108 libMesh::out << std::endl << std::endl;
109
110 // Skip this 2D example if libMesh was compiled as 1D-only.
111 libmesh_example_requires(2 <= LIBMESH_DIM, "2D support");
112
113 // Create a mesh, with dimension to be overridden later, distributed
114 // across the default MPI communicator.
115 Mesh mesh(init.comm());
116
117 // Create an equation systems object.
118 EquationSystems equation_systems (mesh);
119
120 // Get command line arguments for mesh size
121 GetPot input(argc, argv);
122
123 const unsigned int nx = input("nx", 16);
124 const unsigned int ny = input("ny", 16);
125
127 nx,
128 ny,
129 -1., 1.,
130 -1., 1.,
131 QUAD4);
132
133 LinearImplicitSystem & system =
134 equation_systems.add_system<LinearImplicitSystem>
135 ("System");
136
137 // Adds the variable "u" to "System". "u"
138 // will be approximated using first-order approximation.
139 system.add_variable ("u", FIRST);
140
141 // Also, we need to add two vectors. The tensor matrix v*w^T of
142 // these two vectors will be part of the system matrix.
143 system.add_vector("v", false);
144 system.add_vector("w", false);
145
146 // We need an additional matrix to be used for preconditioning since
147 // a shell matrix is not suitable for that.
148 system.add_matrix("Preconditioner");
149
150 // Give the system a pointer to the matrix assembly function.
152
153 // Initialize the data structures for the equation system.
154 equation_systems.init ();
155
156 // Prints information about the system to the screen.
157 equation_systems.print_info();
158
159 equation_systems.parameters.set<unsigned int>
160 ("linear solver maximum iterations") = 250;
161 equation_systems.parameters.set<Real>
162 ("linear solver tolerance") = TOLERANCE;
163
164 // Refine arbitrarily some elements.
165 for (unsigned int i=0; i<2; i++)
166 {
167 MeshRefinement mesh_refinement(mesh);
168 for (auto & elem : mesh.element_ptr_range())
169 {
170 if (elem->active())
171 {
172 if ((elem->id()%20)>8)
173 elem->set_refinement_flag(Elem::REFINE);
174 else
175 elem->set_refinement_flag(Elem::DO_NOTHING);
176 }
177 else
178 elem->set_refinement_flag(Elem::INACTIVE);
179 }
180 mesh_refinement.refine_elements();
181 equation_systems.reinit();
182 }
183
184 // Prints information about the system to the screen.
185 equation_systems.print_info();
186
187 // Before assembling the matrix, we have to clear the two
188 // vectors that form the tensor matrix (since this is not performed
189 // automatically).
190 system.get_vector("v").init(system.n_dofs(), system.n_local_dofs());
191 system.get_vector("w").init(system.n_dofs(), system.n_local_dofs());
192
193 // We need a shell matrix to solve. There is currently no way to
194 // store the shell matrix in the system. We just create it locally
195 // here (a shell matrix does not occupy much memory).
196 SumShellMatrix<Number> shellMatrix(system.comm());
197 TensorShellMatrix<Number> shellMatrix0(system.get_vector("v"), system.get_vector("w"));
198 shellMatrix.matrices.push_back(&shellMatrix0);
199 SparseShellMatrix<Number> shellMatrix1(*system.matrix);
200 shellMatrix.matrices.push_back(&shellMatrix1);
201
202 // Attach that to the system.
203 system.attach_shell_matrix(&shellMatrix);
204
205 // Reset the preconditioning matrix to zero (for the system matrix,
206 // the same thing is done automatically).
207 system.get_matrix("Preconditioner").zero();
208
209 // Assemble & solve the linear system
210 system.solve();
211
212 // Detach the shell matrix from the system since it will go out of
213 // scope. Nobody should solve the system outside this function.
214 system.detach_shell_matrix();
215
216 // Print a nice message.
217 libMesh::out << "Solved linear system in "
218 << system.n_linear_iterations()
219 << " iterations, residual norm is "
220 << system.final_linear_residual()
221 << "."
222 << std::endl;
223
224#if defined(LIBMESH_HAVE_VTK) && !defined(LIBMESH_ENABLE_PARMESH)
225 // Write result to file.
226 VTKIO(mesh).write_equation_systems ("out.pvtu", equation_systems);
227#endif // #ifdef LIBMESH_HAVE_VTK
228
229#endif // #ifndef LIBMESH_ENABLE_AMR
230
231 return 0;
232}
This is the EquationSystems class.
SparseMatrix< Number > * matrix
The system matrix.
The LibMeshInit class, when constructed, initializes the dependent libraries (e.g.
Definition libmesh.h:92
void attach_shell_matrix(ShellMatrix< Number > *shell_matrix)
This function enables the user to provide a shell matrix, i.e.
virtual void solve() override
Assembles & solves the linear system A*x=b.
void detach_shell_matrix()
Detaches a shell matrix.
virtual void write_equation_systems(const std::string &, const EquationSystems &, const std::set< std::string > *system_names=nullptr)
This method implements writing a mesh with data to a specified file where the data is taken from the ...
Definition mesh_output.C:31
Implements (adaptive) mesh refinement algorithms for a MeshBase.
The Mesh class is a thin wrapper, around the ReplicatedMesh class by default.
Definition mesh.h:51
virtual void init(const numeric_index_type n, const numeric_index_type n_local, const bool fast=false, const ParallelType ptype=AUTOMATIC)=0
Change the dimension of the vector to n.
const Parallel::Communicator & comm() const
virtual void zero()=0
Set all entries to 0.
This class allows to use any SparseMatrix object as a shell matrix.
This class combines any number of shell matrices to a single shell matrix by summing them together.
SparseMatrix< Number > & add_matrix(std::string_view mat_name, ParallelType type=PARALLEL, MatrixBuildType mat_build_type=MatrixBuildType::AUTOMATIC)
Adds the additional matrix mat_name to this system.
Definition system.C:998
dof_id_type n_dofs() const
Definition system.C:118
void attach_assemble_function(void fptr(EquationSystems &es, const std::string &name))
Register a user function to use in assembling the system matrix and RHS.
Definition system.C:1959
unsigned int add_variable(std::string_view var, const FEType &type, const std::set< subdomain_id_type > *const active_subdomains=nullptr)
Adds the variable var to the list of variables for this system.
Definition system.C:1344
NumericVector< Number > & add_vector(std::string_view vec_name, const bool projections=true, const ParallelType type=PARALLEL)
Adds the additional vector vec_name to this system.
Definition system.C:756
dof_id_type n_local_dofs() const
Definition system.C:155
Shell matrix that is given by a tensor product of two vectors, i.e.
This class implements reading and writing meshes in the VTK format.
Definition vtk_io.h:62
void assemble(EquationSystems &es, const std::string &system_name)
void build_square(UnstructuredMesh &mesh, const unsigned int nx, const unsigned int ny, const Real xmin=0., const Real xmax=1., const Real ymin=0., const Real ymax=1., const ElemType type=INVALID_ELEM, const bool gauss_lobatto_grid=false)
A specialized build_cube() for 2D meshes.
void init(triangulateio &t)
Initializes the fields of t to nullptr/0 as necessary.
SolverPackage default_solver_package()
Definition libmesh.C:1064
OStreamProxy out
static constexpr Real TOLERANCE

References libMesh::System::add_matrix(), libMesh::EquationSystems::add_system(), libMesh::System::add_variable(), libMesh::System::add_vector(), assemble(), libMesh::System::attach_assemble_function(), libMesh::LinearImplicitSystem::attach_shell_matrix(), libMesh::MeshTools::Generation::build_square(), libMesh::ParallelObject::comm(), libMesh::default_solver_package(), libMesh::LinearImplicitSystem::detach_shell_matrix(), libMesh::Elem::DO_NOTHING, libMesh::LinearImplicitSystem::final_linear_residual(), libMesh::FIRST, libMesh::System::get_matrix(), libMesh::System::get_vector(), libMesh::Elem::INACTIVE, libMesh::EquationSystems::init(), libMesh::NumericVector< T >::init(), main(), libMesh::SumShellMatrix< T >::matrices, libMesh::ImplicitSystem::matrix, mesh, libMesh::System::n_dofs(), libMesh::LinearImplicitSystem::n_linear_iterations(), libMesh::System::n_local_dofs(), libMesh::out, libMesh::EquationSystems::parameters, libMesh::PETSC_SOLVERS, libMesh::EquationSystems::print_info(), libMesh::QUAD4, libMesh::Real, libMesh::Elem::REFINE, libMesh::MeshRefinement::refine_elements(), libMesh::EquationSystems::reinit(), libMesh::Parameters::set(), libMesh::LinearImplicitSystem::solve(), libMesh::TOLERANCE, libMesh::MeshOutput< MT >::write_equation_systems(), and libMesh::SparseMatrix< T >::zero().