module; #include "mean_field.h" #include module mean_field; namespace mean_field::physics { double compute_moment_of_inertia( const fem::FEM &fem, const mfem::GridFunction &rho_ref ) { double local_I = 0.0; for (int i = 0; i < fem.mesh->GetNE(); i++) { if (fem.mesh->GetAttribute(i) == 3) continue; mfem::ElementTransformation *T = fem.mesh->GetElementTransformation(i); using DensityField = field::Field; const quadrature::Query query = DensityField::make_query( quadrature::QuadratureRole::diagnostic, T->OrderW(), std::array{2}, utils::DOMAINS::STELLAR, quadrature::MappingKind::general ); const mfem::IntegrationRule &ir = *fem.quadratureFactory->get(query, T->GetGeometryType()) .integration_rule; for (int j = 0; j < ir.GetNPoints(); j++) { const mfem::IntegrationPoint &ip = ir.IntPoint(j); T->SetIntPoint(&ip); const double rho_hat = rho_ref.GetValue(i, ip); mfem::Vector x_phys; fem.mapping->GetPhysicalPoint(*T, ip, x_phys); const double r_cyl_sq = x_phys(0) * x_phys(0) + x_phys(1) * x_phys(1); const double detJ = std::fabs(fem.mapping->ComputeDetJ(*T, ip)); const double weight = T->Weight() * ip.weight * detJ; local_I += rho_hat * r_cyl_sq * weight; } } double global_I = 0.0; MPI_Allreduce( &local_I, &global_I, 1, MPI_DOUBLE, MPI_SUM, fem.mesh->GetComm() ); return global_I; } } // namespace mean_field::physics