217 lines
7.5 KiB
Plaintext
217 lines
7.5 KiB
Plaintext
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FEM setup_fem(const std::string& filename, const bool verbose) {
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FEM fem;
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fem.mesh = std::make_unique<mfem::Mesh>(filename, 0, 0);
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fem.mesh->EnsureNodes();
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int dim = fem.mesh->Dimension();
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fem.H1_fec = std::make_unique<mfem::H1_FECollection>(2, dim);
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fem.H1_fes = std::make_unique<mfem::FiniteElementSpace>(fem.mesh.get(), fem.H1_fec.get());
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fem.Vec_H1_fes = std::make_unique<mfem::FiniteElementSpace>(fem.mesh.get(), fem.H1_fec.get(), dim, mfem::Ordering::byNODES);
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fem.block_offsets.SetSize(3);
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fem.block_offsets[0] = 0;
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fem.block_offsets[1] = fem.H1_fes->GetTrueVSize();
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fem.block_offsets[2] = fem.H1_fes->GetTrueVSize() + fem.Vec_H1_fes->GetTrueVSize();
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fem.com.SetSize(dim); fem.com = 0.0;
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fem.Q.SetSize(dim, dim); fem.Q = 0.0;
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return fem;
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}
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void view_mesh(const std::string& host, int port, const mfem::Mesh& mesh, const mfem::GridFunction& gf, const std::string& title) {
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mfem::socketstream sol_sock(host.c_str(), port);
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if (!sol_sock.is_open()) return;
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sol_sock << "solution\n" << mesh << gf;
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sol_sock << "window_title '" << title << "'\n" << std::flush;
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}
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double domain_integrate_grid_function(const FEM& fem, const mfem::GridFunction& gf) {
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mfem::LinearForm lf(fem.H1_fes.get());
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mfem::GridFunctionCoefficient gf_c(&gf);
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lf.AddDomainIntegrator(new mfem::DomainLFIntegrator(gf_c));
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lf.Assemble();
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return lf.Sum();
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}
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mfem::Vector get_com(const FEM& fem, const mfem::GridFunction &rho) {
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const int dim = fem.mesh->Dimension();
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mfem::Vector com(dim);
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com = 0.0;
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double total_mass = 0.0;
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for (int i = 0; i < fem.H1_fes->GetNE(); ++i) {
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mfem::ElementTransformation *trans = fem.H1_fes->GetElementTransformation(i);
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const mfem::IntegrationRule &ir = mfem::IntRules.Get(trans->GetGeometryType(), fem.H1_fes->GetOrder(0) + trans->OrderW());
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for (int j = 0; j < ir.GetNPoints(); ++j) {
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const mfem::IntegrationPoint &ip = ir.IntPoint(j);
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trans->SetIntPoint(&ip);
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double weight = trans->Weight() * ip.weight;
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double rho_val = rho.GetValue(i, ip);
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mfem::Vector phys_point(dim);
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trans->Transform(ip, phys_point);
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const double mass_term = rho_val * weight;
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total_mass += mass_term;
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for (int d = 0; d < dim; ++d) {
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com(d) += phys_point(d) * mass_term;
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}
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}
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}
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com /= total_mass;
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return com;
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}
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double centrifugal_potential(const mfem::Vector& x, double omega) {
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const double s2 = std::pow(x(0), 2) + std::pow(x(1), 2);
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return -0.5 * s2 * std::pow(omega, 2);
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}
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double get_moment_of_inertia(const FEM& fem, const mfem::GridFunction& rho) {
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auto s2_func = [](const mfem::Vector& x) {
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return std::pow(x(0), 2) + std::pow(x(1), 2);
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};
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mfem::FunctionCoefficient s2_coeff(s2_func);
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mfem::GridFunctionCoefficient rho_coeff(&rho);
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mfem::ProductCoefficient I_integrand ( rho_coeff, s2_coeff );
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mfem::LinearForm I_lf(fem.H1_fes.get());
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I_lf.AddDomainIntegrator(new mfem::DomainLFIntegrator(I_integrand));
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I_lf.Assemble();
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return I_lf.Sum();
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}
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std::unique_ptr<mfem::GridFunction> grav_potential(const FEM& fem, const Args &args, const mfem::GridFunction& rho) {
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auto phi = std::make_unique<mfem::GridFunction>(fem.H1_fes.get());
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mfem::Array<int> ess_bdr(fem.mesh->bdr_attributes.Max());
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ess_bdr = 1;
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mfem::GridFunctionCoefficient rho_coeff(&rho);
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double total_mass = domain_integrate_grid_function(fem, rho);
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auto grav_potential = [&fem, &total_mass](const mfem::Vector& x) {
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return l2_multipole_potential(fem, total_mass, x);
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};
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mfem::FunctionCoefficient phi_bdr_coeff(grav_potential);
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mfem::Array<int> ess_tdof_list;
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fem.H1_fes->GetEssentialTrueDofs(ess_bdr, ess_tdof_list);
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auto laplacian = std::make_unique<mfem::BilinearForm>(fem.H1_fes.get());
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laplacian->AddDomainIntegrator(new mfem::DiffusionIntegrator());
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laplacian->Assemble();
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laplacian->Finalize();
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mfem::ConstantCoefficient four_pi_G(-4.0 * M_PI * G);
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mfem::ProductCoefficient rhs_coeff(rho_coeff, four_pi_G);
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mfem::LinearForm b(fem.H1_fes.get());
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b.AddDomainIntegrator(new mfem::DomainLFIntegrator(rhs_coeff));
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b.Assemble();
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mfem::OperatorPtr A;
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mfem::Vector B, X;
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laplacian->FormLinearSystem(ess_tdof_list, *phi, b, A, X, B);
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mfem::GSSmoother prec;
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mfem::CGSolver cg;
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cg.SetPreconditioner(prec);
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cg.SetOperator(*A);
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cg.SetRelTol(args.p.tol);
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cg.SetMaxIter(args.p.max_iters);
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cg.SetPrintLevel(0);
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cg.Mult(B, X);
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laplacian->RecoverFEMSolution(X, b, *phi);
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return phi;
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}
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std::unique_ptr<mfem::GridFunction> get_potential(const FEM &fem, const Args &args, const mfem::GridFunction &rho) {
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auto phi = grav_potential(fem, args, rho);
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mfem::GridFunctionCoefficient rho_coeff(&rho);
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if (args.r.enabled) {
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auto rot = [&args](const mfem::Vector& x) {
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return centrifugal_potential(x, args.r.omega);
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};
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mfem::FunctionCoefficient centrifugal_coeff(rot);
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mfem::GridFunction centrifugal_gf(fem.H1_fes.get());
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centrifugal_gf.ProjectCoefficient(centrifugal_coeff);
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(*phi) += centrifugal_gf;
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}
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return phi;
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}
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mfem::DenseMatrix compute_quadrupole_moment_tensor(const FEM& fem, const mfem::GridFunction& rho, const mfem::Vector& com) {
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const int dim = fem.mesh->Dimension();
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mfem::DenseMatrix Q(dim, dim);
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Q = 0.0;
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for (int i = 0; i < fem.H1_fes->GetNE(); ++i) {
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mfem::ElementTransformation *trans = fem.mesh->GetElementTransformation(i);
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const mfem::IntegrationRule &ir = mfem::IntRules.Get(trans->GetGeometryType(), 2 * fem.H1_fes->GetOrder(0) + trans->OrderW());
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for (int j = 0; j < ir.GetNPoints(); ++j) {
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const mfem::IntegrationPoint &ip = ir.IntPoint(j);
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trans->SetIntPoint(&ip);
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const double weight = trans->Weight() * ip.weight;
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const double rho_val = rho.GetValue(i, ip);
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mfem::Vector phys_point(dim);
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trans->Transform(ip, phys_point);
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mfem::Vector x_prime(dim);
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double r_sq = 0.0;
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for (int d = 0; d < dim; ++d) {
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x_prime(d) = phys_point(d) - com(d);
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r_sq += x_prime(d) * x_prime(d);
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}
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for (int m = 0; m < dim; ++m) {
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for (int n = 0; n < dim; ++n) {
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const double delta = (m == n) ? 1.0 : 0.0;
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const double contrib = 3.0 * x_prime(m) * x_prime(n) - delta * r_sq;
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Q(m, n) += rho_val * contrib * weight;
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}
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}
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}
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}
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return Q;
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}
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double l2_multipole_potential(const FEM &fem, const double total_mass, const mfem::Vector &x) {
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const double r = x.Norml2();
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if (r < 1e-12) return 0.0;
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const int dim = fem.mesh->Dimension();
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mfem::Vector n(x);
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n /= r;
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double l2_mult_factor = 0.0;
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for (int i = 0; i < dim; ++i) {
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for (int j = 0; j < dim; ++j) {
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l2_mult_factor += fem.Q(i, j) * n(i) * n(j);
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}
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}
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const double l2_contrib = (G / (2.0 * std::pow(r, 3))) * l2_mult_factor;
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const double l0_contrib = -G * total_mass / r;
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// l1 contribution is zero for a system centered on its COM
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return l0_contrib + l2_contrib;
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}
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void ConserveMass(const FEM& fem, mfem::GridFunction& rho, double target_mass) {
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const double current_mass = domain_integrate_grid_function(fem, rho);
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if (current_mass > 1e-15) rho *= (target_mass / current_mass);
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}
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