57 int main(
int argc,
char *argv[])
61 MPI_Init(&argc, &argv);
62 MPI_Comm_size(MPI_COMM_WORLD, &num_procs);
63 MPI_Comm_rank(MPI_COMM_WORLD, &myid);
66 const char *mesh_file =
"../data/beam-tet.mesh";
68 bool static_cond =
false;
70 const char *device_config =
"cpu";
71 bool visualization = 1;
74 args.
AddOption(&mesh_file,
"-m",
"--mesh",
77 "Finite element order (polynomial degree).");
78 args.
AddOption(&
freq,
"-f",
"--frequency",
"Set the frequency for the exact"
80 args.
AddOption(&static_cond,
"-sc",
"--static-condensation",
"-no-sc",
81 "--no-static-condensation",
"Enable static condensation.");
82 args.
AddOption(&pa,
"-pa",
"--partial-assembly",
"-no-pa",
83 "--no-partial-assembly",
"Enable Partial Assembly.");
84 args.
AddOption(&device_config,
"-d",
"--device",
85 "Device configuration string, see Device::Configure().");
86 args.
AddOption(&visualization,
"-vis",
"--visualization",
"-no-vis",
88 "Enable or disable GLVis visualization.");
108 Device device(device_config);
109 if (myid == 0) { device.
Print(); }
114 Mesh *mesh =
new Mesh(mesh_file, 1, 1);
123 int ref_levels = (int)floor(log(1000./mesh->
GetNE())/log(2.)/
dim);
124 for (
int l = 0; l < ref_levels; l++)
138 int par_ref_levels = 2;
139 for (
int l = 0; l < par_ref_levels; l++)
153 cout <<
"Number of finite element unknowns: " << size << endl;
227 cout <<
"Size of linear system: "
251 cout <<
"\n|| E_h - E ||_{L^2} = " << err <<
'\n' << endl;
258 ostringstream mesh_name, sol_name;
259 mesh_name <<
"mesh." << setfill(
'0') << setw(6) << myid;
260 sol_name <<
"sol." << setfill(
'0') << setw(6) << myid;
262 ofstream mesh_ofs(mesh_name.str().c_str());
263 mesh_ofs.precision(8);
264 pmesh->
Print(mesh_ofs);
266 ofstream sol_ofs(sol_name.str().c_str());
267 sol_ofs.precision(8);
277 sol_sock <<
"parallel " << num_procs <<
" " << myid <<
"\n";
278 sol_sock.precision(8);
279 sol_sock <<
"solution\n" << *pmesh << x << flush;
301 E(0) = sin(
kappa * x(1));
302 E(1) = sin(
kappa * x(2));
303 E(2) = sin(
kappa * x(0));
307 E(0) = sin(
kappa * x(1));
308 E(1) = sin(
kappa * x(0));
309 if (x.
Size() == 3) { E(2) = 0.0; }
325 if (x.
Size() == 3) {
f(2) = 0.0; }
int Size() const
Return the logical size of the array.
virtual void GetEssentialTrueDofs(const Array< int > &bdr_attr_is_ess, Array< int > &ess_tdof_list, int component=-1)
Conjugate gradient method.
OpType * As() const
Return the Operator pointer statically cast to a specified OpType. Similar to the method Get()...
The Auxiliary-space Maxwell Solver in hypre.
A coefficient that is constant across space and time.
virtual void Mult(const Vector &b, Vector &x) const
Operator application: y=A(x).
virtual void ReorientTetMesh()
See the remarks for the serial version in mesh.hpp.
Integrator for (curl u, curl v) for Nedelec elements.
Pointer to an Operator of a specified type.
int Size() const
Returns the size of the vector.
int GetNE() const
Returns number of elements.
virtual void Save(std::ostream &out) const
void Print(std::ostream &out=mfem::out)
Print the configuration of the MFEM virtual device object.
Abstract parallel finite element space.
virtual void ProjectCoefficient(Coefficient &coeff)
int main(int argc, char *argv[])
void SetPrintLevel(int print_lvl)
void SetPrintLevel(int print_lvl)
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 *)
void SetMaxIter(int max_it)
T Max() const
Find the maximal element in the array, using the comparison operator < for class T.
HYPRE_Int GlobalTrueVSize() const
virtual void Print(std::ostream &out=mfem::out) const
void PrintUsage(std::ostream &out) const
Print the usage message.
void SetMaxIter(int max_iter)
A general vector function coefficient.
int SpaceDimension() const
Array< int > bdr_attributes
A list of all unique boundary attributes used by the Mesh.
void SetRelTol(double rtol)
OutStream err(std::cerr)
Global stream used by the library for standard error output. Initially it uses the same std::streambu...
Base class Coefficients that optionally depend on space and time. These are used by the BilinearFormI...
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...
void f_exact(const Vector &, Vector &)
virtual double ComputeL2Error(Coefficient *exsol[], const IntegrationRule *irs[]=NULL) const
void SetPreconditioner(HypreSolver &precond)
Set the hypre solver to be used as a preconditioner.
void PrintOptions(std::ostream &out) const
Print the options.
void E_exact(const Vector &, Vector &)
for VectorFiniteElements (Nedelec, Raviart-Thomas)
virtual void SetOperator(const Operator &op)
Also calls SetOperator for the preconditioner if there is one.
Arbitrary order H(curl)-conforming Nedelec finite elements.
virtual void SetPreconditioner(Solver &pr)
This should be called before SetOperator.
Class for parallel grid function.
The MFEM Device class abstracts hardware devices such as GPUs, as well as programming models such as ...
Wrapper for hypre's ParCSR matrix class.
virtual void Mult(const HypreParVector &b, HypreParVector &x) const
Solve Ax=b with hypre's PCG.
Class for parallel meshes.
double f(const Vector &p)
double sigma(const Vector &x)
bool Good() const
Return true if the command line options were parsed successfully.