74 int main(
int argc,
char *argv[])
77 const char *mesh_file =
"../data/star.mesh";
79 bool static_cond =
false;
82 const char *device_config =
"cpu";
83 bool visualization =
true;
84 bool algebraic_ceed =
false;
87 args.
AddOption(&mesh_file,
"-m",
"--mesh",
90 "Finite element order (polynomial degree) or -1 for" 91 " isoparametric space.");
92 args.
AddOption(&static_cond,
"-sc",
"--static-condensation",
"-no-sc",
93 "--no-static-condensation",
"Enable static condensation.");
94 args.
AddOption(&pa,
"-pa",
"--partial-assembly",
"-no-pa",
95 "--no-partial-assembly",
"Enable Partial Assembly.");
96 args.
AddOption(&fa,
"-fa",
"--full-assembly",
"-no-fa",
97 "--no-full-assembly",
"Enable Full Assembly.");
98 args.
AddOption(&device_config,
"-d",
"--device",
99 "Device configuration string, see Device::Configure().");
101 args.
AddOption(&algebraic_ceed,
"-a",
"--algebraic",
"-no-a",
"--no-algebraic",
102 "Use algebraic Ceed solver");
104 args.
AddOption(&visualization,
"-vis",
"--visualization",
"-no-vis",
105 "--no-visualization",
106 "Enable or disable GLVis visualization.");
117 Device device(device_config);
123 Mesh mesh(mesh_file, 1, 1);
132 (int)floor(log(50000./mesh.
GetNE())/log(2.)/
dim);
133 for (
int l = 0; l < ref_levels; l++)
153 cout <<
"Using isoparametric FEs: " << fec->
Name() << endl;
161 cout <<
"Number of finite element unknowns: " 194 if (pa) {
a.SetAssemblyLevel(AssemblyLevel::PARTIAL); }
197 a.SetAssemblyLevel(AssemblyLevel::FULL);
201 a.EnableSparseMatrixSorting(Device::IsEnabled());
209 if (static_cond) {
a.EnableStaticCondensation(); }
214 a.FormLinearSystem(ess_tdof_list, x,
b, A, X, B);
216 cout <<
"Size of linear system: " << A->
Height() << endl;
221 #ifndef MFEM_USE_SUITESPARSE 224 PCG(*A, M, B, X, 1, 200, 1e-12, 0.0);
228 umf_solver.
Control[UMFPACK_ORDERING] = UMFPACK_ORDERING_METIS;
230 umf_solver.
Mult(B, X);
240 PCG(*A, M, B, X, 1, 400, 1e-12, 0.0);
245 PCG(*A, M, B, X, 1, 400, 1e-12, 0.0);
250 CG(*A, B, X, 1, 400, 1e-12, 0.0);
255 a.RecoverFEMSolution(X,
b, x);
259 ofstream mesh_ofs(
"refined.mesh");
260 mesh_ofs.precision(8);
261 mesh.
Print(mesh_ofs);
262 ofstream sol_ofs(
"sol.gf");
263 sol_ofs.precision(8);
272 sol_sock.precision(8);
273 sol_sock <<
"solution\n" << mesh << x << flush;
Class for domain integration L(v) := (f, v)
Class for grid function - Vector with associated FE space.
A coefficient that is constant across space and time.
void PrintOptions(std::ostream &out) const
Print the options.
void PrintUsage(std::ostream &out) const
Print the usage message.
Pointer to an Operator of a specified type.
T Max() const
Find the maximal element in the array, using the comparison operator < for class T.
virtual void GetEssentialTrueDofs(const Array< int > &bdr_attr_is_ess, Array< int > &ess_tdof_list, int component=-1)
Get a list of essential true dofs, ess_tdof_list, corresponding to the boundary attributes marked in ...
void Print(std::ostream &out=mfem::out)
Print the configuration of the MFEM virtual device object.
bool Good() const
Return true if the command line options were parsed successfully.
bool UsesTensorBasis(const FiniteElementSpace &fes)
Return true if the mesh contains only one topology and the elements are tensor elements.
int main(int argc, char *argv[])
Data type for Gauss-Seidel smoother of sparse matrix.
Direct sparse solver using UMFPACK.
void Parse()
Parse the command-line options. Note that this function expects all the options provided through the ...
Jacobi smoothing for a given bilinear form (no matrix necessary).
void UniformRefinement(int i, const DSTable &, int *, int *, int *)
virtual const char * Name() const
void CG(const Operator &A, const Vector &b, Vector &x, int print_iter, int max_num_iter, double RTOLERANCE, double ATOLERANCE)
Conjugate gradient method. (tolerances are squared)
void PCG(const Operator &A, Solver &B, const Vector &b, Vector &x, int print_iter, int max_num_iter, double RTOLERANCE, double ATOLERANCE)
Preconditioned conjugate gradient method. (tolerances are squared)
virtual int GetTrueVSize() const
Return the number of vector true (conforming) dofs.
Array< int > bdr_attributes
A list of all unique boundary attributes used by the Mesh.
double Control[UMFPACK_CONTROL]
Class FiniteElementSpace - responsible for providing FEM view of the mesh, mainly managing the set of...
Collection of finite elements from the same family in multiple dimensions. This class is used to matc...
void AddOption(bool *var, const char *enable_short_name, const char *enable_long_name, const char *disable_short_name, const char *disable_long_name, const char *description, bool required=false)
Add a boolean option and set 'var' to receive the value. Enable/disable tags are used to set the bool...
virtual void Mult(const Vector &b, Vector &x) const
Operator application: y=A(x).
int Height() const
Get the height (size of output) of the Operator. Synonym with NumRows().
int GetNE() const
Returns number of elements.
Wrapper for AlgebraicMultigrid object.
int Size() const
Return the logical size of the array.
virtual void Print(std::ostream &os=mfem::out) const
Arbitrary order H1-conforming (continuous) finite elements.
void GetNodes(Vector &node_coord) const
virtual void Save(std::ostream &out) const
Save the GridFunction to an output stream.
The MFEM Device class abstracts hardware devices such as GPUs, as well as programming models such as ...
virtual void SetOperator(const Operator &op)
Factorize the given Operator op which must be a SparseMatrix.