Files
MeanField/libmeanfield/impl/mapping/domain_mapper.cpp
Emily Boudreaux 0f3ca8050b feat(field-support): added field support system, mid migration
currently the barotope and the pressure force operator are migrated to the new support system
2026-08-23 10:13:53 -04:00

448 lines
15 KiB
C++

module;
#include <mfem.hpp>
module mean_field;
import :mapping.types;
namespace {
double get_positive_map_jacobian(
const mean_field::mapping::DomainMapper &domain_mapper,
mfem::ElementTransformation &transformation,
const mfem::IntegrationPoint &integration_point,
mfem::DenseMatrix &map_jacobian
) {
transformation.SetIntPoint(&integration_point);
domain_mapper.ComputeJacobian(transformation, map_jacobian);
const double map_determinant = map_jacobian.Det();
MFEM_VERIFY(map_determinant > 0.0, "Domain mapping has a non-positive Jacobian determinant.");
return map_determinant;
}
} // namespace
namespace mean_field::mapping {
DomainMapper::DomainMapper(
const double r_star_ref,
const double r_inf_ref
)
: m_d(nullptr),
m_r_star_ref(r_star_ref),
m_r_inf_ref(r_inf_ref) {
InitAllScratchSpaces();
CalcIsIdentity() ? m_displacement_is_identity = true : m_displacement_is_identity = false;
}
DomainMapper::DomainMapper(
const mfem::GridFunction &d,
const double r_star_ref,
const double r_inf_ref
)
: m_d(&d),
m_dim(d.FESpace()->GetMesh()->Dimension()),
m_r_star_ref(r_star_ref),
m_r_inf_ref(r_inf_ref) {
InitAllScratchSpaces();
CalcIsIdentity() ? m_displacement_is_identity = true : m_displacement_is_identity = false;
}
bool DomainMapper::is_vacuum(const mfem::ElementTransformation &T) const {
if (T.ElementType == mfem::ElementTransformation::ELEMENT) {
return T.Attribute == m_vacuum_attr;
} else if (T.ElementType == mfem::ElementTransformation::BDR_ELEMENT) {
return T.Attribute == m_vacuum_attr - 1;
// TODO: In a more robust code this should really be read from the
// stroid API to ensure that the vacuum boundary is really 1 - the
// vacuum material attribute
}
return false;
}
void DomainMapper::SetDisplacement(const mfem::GridFunction &d) {
if (m_dim != d.FESpace()->GetMesh()->Dimension()) {
const std::string err_msg = std::format(
"Dimension mismatch: DomainMapper is initialized for dimension "
"{}, "
"but provided displacement field has "
"dimension {}.",
m_dim, d.FESpace()->GetMesh()->Dimension()
);
throw std::invalid_argument(err_msg);
}
m_d = &d;
InvalidateCache();
CalcIsIdentity() ? m_displacement_is_identity = true : m_displacement_is_identity = false;
}
bool DomainMapper::HasCompactification() const noexcept {
return std::isfinite(m_r_star_ref) && std::isfinite(m_r_inf_ref) && m_r_star_ref > 0.0 &&
m_r_inf_ref > m_r_star_ref && m_xi_clamp > 0.0 && m_xi_clamp < 1.0;
}
bool DomainMapper::HasDisplacementField() const noexcept {
return m_d != nullptr;
}
bool DomainMapper::CalcIsIdentity() const {
if (m_d == nullptr) {
return true;
}
const int local_identity = m_d->Normlinf() == 0.0 ? 1 : 0;
const auto *parallel_displacement = dynamic_cast<const mfem::ParGridFunction *>(m_d);
if (parallel_displacement == nullptr) {
return local_identity == 1;
}
int global_identity = 0;
MPI_Allreduce(
&local_identity, &global_identity, 1, MPI_INT, MPI_MIN, parallel_displacement->ParFESpace()->GetComm()
);
return global_identity == 1;
}
void DomainMapper::ResetDisplacement() {
m_d = nullptr;
InvalidateCache();
CalcIsIdentity() ? m_displacement_is_identity = true : m_displacement_is_identity = false;
}
void DomainMapper::ComputeJacobian(
mfem::ElementTransformation &T,
mfem::DenseMatrix &J
) const {
J.SetSize(m_dim, m_dim);
J = 0.0;
m_J_D = 0.0;
if (!HasDisplacementField()) {
for (int i = 0; i < m_dim; ++i) {
m_J_D(i, i) = 1.0; // Identity mapping
}
} else {
UpdateElementCache(T);
m_dshape.SetSize(m_fe->GetDof(), m_dim);
m_fe->CalcPhysDShape(T, m_dshape);
mfem::MultAtB(m_dof_mat, m_dshape, m_J_D);
for (int i = 0; i < m_dim; ++i) {
m_J_D(i, i) += 1.0;
}
}
if (is_vacuum(T)) {
T.Transform(T.GetIntPoint(), m_x_ref);
if (!HasDisplacementField()) {
m_x_disp = m_x_ref;
} else {
m_shape.SetSize(m_fe->GetDof());
m_fe->CalcShape(T.GetIntPoint(), m_shape);
m_dof_mat.MultTranspose(m_shape, m_d_val);
add(m_x_ref, m_d_val, m_x_disp);
}
ComputeKelvinJacobian(m_x_ref, m_x_disp, m_J_D, J);
} else {
J = m_J_D;
}
}
double DomainMapper::ComputeDetJ(
mfem::ElementTransformation &T,
const mfem::IntegrationPoint &ip
) const {
if (!HasDisplacementField() && !is_vacuum(T))
return 1.0; // If no mapping, the determinant of the Jacobian is 1
T.SetIntPoint(&ip);
mfem::DenseMatrix J;
ComputeJacobian(T, J);
return J.Det();
}
void DomainMapper::ComputeMappedDiffusionTensor(
mfem::ElementTransformation &T,
mfem::DenseMatrix &D
) const {
ComputeJacobian(T, m_J_temp);
const double detJ = m_J_temp.Det();
mfem::CalcInverse(m_J_temp, m_JInv_temp);
D.SetSize(m_dim, m_dim);
mfem::MultABt(m_JInv_temp, m_JInv_temp, D);
D *= fabs(detJ);
}
void DomainMapper::ComputeInverseJacobian(
mfem::ElementTransformation &T,
mfem::DenseMatrix &JInv
) const {
ComputeJacobian(T, m_J_temp);
JInv.SetSize(m_dim, m_dim);
mfem::CalcInverse(m_J_temp, JInv);
}
VolumeQuadratureContext DomainMapper::GetQuadratureContext(
mfem::ElementTransformation &T,
const mfem::IntegrationPoint &ip
) const {
const int dim = T.GetSpaceDim();
mfem::DenseMatrix J_map(dim, dim), J_inv(dim, dim);
ComputeJacobian(T, J_map);
mfem::DenseMatrix J_full(dim, dim);
mfem::Mult(J_map, T.Jacobian(), J_full);
mfem::CalcInverse(J_full, J_inv);
const double detJ = std::fabs(ComputeDetJ(T, ip));
const double weight = ip.weight * T.Weight() * detJ;
return {.J_inv = J_inv, .detJ = detJ, .weight = weight};
}
FaceQuadratureContext DomainMapper::GetFaceQuadratureContext(
mfem::FaceElementTransformations &T,
const mfem::IntegrationPoint &ip
) const {
const int dim = T.GetSpaceDim();
T.SetAllIntPoints(&ip);
mfem::Vector n_raw(dim);
mfem::CalcOrtho(T.Jacobian(), n_raw);
if (!HasDisplacementField() && !is_vacuum(T)) {
const double n_raw_mag = n_raw.Norml2();
mfem::Vector n_unit(dim);
n_unit = n_raw;
n_unit /= n_raw_mag;
return FaceQuadratureContext{.normal = n_unit, .ds = ip.weight * n_raw_mag, .v_dot_n_scale = 1.0};
}
// Nanson's Formula
// (https://en.wikiversity.org/wiki/Continuum_mechanics/Volume_change_and_area_change)
// Since the displacement field lives in H1 it should be irrelevant if
// we pick Elem1 or Elem2
mfem::DenseMatrix J_map(dim, dim);
ComputeJacobian(*T.Elem1, J_map);
const double detJ_map = J_map.Det();
mfem::DenseMatrix J_map_inv(dim, dim);
mfem::CalcInverse(J_map, J_map_inv);
mfem::Vector n_phys(dim);
J_map_inv.MultTranspose(n_raw, n_phys);
n_phys *= detJ_map;
const double n_phys_mag = n_phys.Norml2();
mfem::Vector n_unit(dim);
n_unit = n_phys;
n_unit /= n_phys_mag;
const double n_raw_mag = n_raw.Norml2();
return FaceQuadratureContext{
.normal = n_unit, .ds = ip.weight * n_raw_mag, .v_dot_n_scale = n_phys_mag / n_raw_mag
};
}
void DomainMapper::GetPhysicalPoint(
mfem::ElementTransformation &T,
const mfem::IntegrationPoint &ip,
mfem::Vector &x_phys
) const {
x_phys.SetSize(m_dim);
T.Transform(ip, m_x_ref);
if (!HasDisplacementField()) {
x_phys = m_x_ref;
} else {
UpdateElementCache(T);
m_shape.SetSize(m_fe->GetDof());
m_fe->CalcShape(ip, m_shape);
m_dof_mat.MultTranspose(m_shape, m_d_val);
add(m_x_ref, m_d_val, x_phys);
}
if (is_vacuum(T)) {
ApplyKelvinMapping(m_x_ref, x_phys);
}
}
void DomainMapper::GetVectorValue(
const int i,
const mfem::IntegrationPoint &ip,
mfem::Vector &val
) const {
m_d->GetVectorValue(i, ip, val);
}
void DomainMapper::MapHDivFluxToPhysical(
mfem::ElementTransformation &transformation,
const mfem::IntegrationPoint &integration_point,
const mfem::Vector &reference_flux,
mfem::Vector &physical_flux
) const {
MFEM_VERIFY(reference_flux.Size() == m_dim, "The reference H(div) flux has the wrong dimension.");
mfem::DenseMatrix map_jacobian(m_dim, m_dim);
const double map_determinant =
get_positive_map_jacobian(*this, transformation, integration_point, map_jacobian);
mfem::Vector mapped_flux(m_dim);
map_jacobian.Mult(reference_flux, mapped_flux);
mapped_flux /= map_determinant;
physical_flux = mapped_flux;
}
void DomainMapper::MapPhysicalFluxToHDivReference(
mfem::ElementTransformation &transformation,
const mfem::IntegrationPoint &integration_point,
const mfem::Vector &physical_flux,
mfem::Vector &reference_flux
) const {
MFEM_VERIFY(physical_flux.Size() == m_dim, "The physical flux has the wrong dimension.");
mfem::DenseMatrix map_jacobian(m_dim, m_dim);
const double map_determinant =
get_positive_map_jacobian(*this, transformation, integration_point, map_jacobian);
mfem::DenseMatrix inverse_map_jacobian(m_dim, m_dim);
mfem::CalcInverse(map_jacobian, inverse_map_jacobian);
mfem::Vector mapped_flux(m_dim);
inverse_map_jacobian.Mult(physical_flux, mapped_flux);
mapped_flux *= map_determinant;
reference_flux = mapped_flux;
}
void DomainMapper::MapReferenceGradientToPhysical(
mfem::ElementTransformation &transformation,
const mfem::IntegrationPoint &integration_point,
const mfem::Vector &reference_gradient,
mfem::Vector &physical_gradient
) const {
MFEM_VERIFY(reference_gradient.Size() == m_dim, "The reference gradient has the wrong dimension.");
mfem::DenseMatrix map_jacobian(m_dim, m_dim);
get_positive_map_jacobian(*this, transformation, integration_point, map_jacobian);
mfem::DenseMatrix inverse_map_jacobian(m_dim, m_dim);
mfem::CalcInverse(map_jacobian, inverse_map_jacobian);
mfem::Vector mapped_gradient(m_dim);
inverse_map_jacobian.MultTranspose(reference_gradient, mapped_gradient);
physical_gradient = mapped_gradient;
}
const mfem::GridFunction *DomainMapper::GetDisplacement() const {
return m_d;
}
double DomainMapper::GetPhysInfRadius() const {
return 1.0 - m_xi_clamp;
}
size_t DomainMapper::GetCacheHits() const {
return m_cache_hits;
}
size_t DomainMapper::GetCacheMisses() const {
return m_cache_misses;
}
double DomainMapper::GetCacheHitRate() const {
return (static_cast<double>(m_cache_hits)) / static_cast<double>(m_cache_misses + m_cache_hits);
}
void DomainMapper::ResetCacheStats() const {
m_cache_hits = 0;
m_cache_misses = 0;
}
void DomainMapper::InitAllScratchSpaces() const {
m_J_D.SetSize(m_dim, m_dim);
m_J_temp.SetSize(m_dim, m_dim);
m_JInv_temp.SetSize(m_dim, m_dim);
m_x_ref.SetSize(m_dim);
m_x_disp.SetSize(m_dim);
m_d_val.SetSize(m_dim);
}
void DomainMapper::ApplyKelvinMapping(
const mfem::Vector &x_ref,
mfem::Vector &x_phys
) const {
const double r_ref = x_ref.Norml2();
double xi = (r_ref - m_r_star_ref) / (m_r_inf_ref - m_r_star_ref);
xi = std::clamp(xi, 0.0, m_xi_clamp);
const double factor = m_r_star_ref / (r_ref * (1 - xi));
x_phys *= factor;
}
void DomainMapper::ComputeKelvinJacobian(
const mfem::Vector &x_ref,
const mfem::Vector &x_disp,
const mfem::DenseMatrix &J_D,
mfem::DenseMatrix &J
) const {
const double r_ref = x_ref.Norml2();
const double delta_R = m_r_inf_ref - m_r_star_ref;
double xi = (r_ref - m_r_star_ref) / delta_R;
xi = std::clamp(xi, 0.0, m_xi_clamp);
const double denom = 1.0 - xi;
const double k = m_r_star_ref / (r_ref * denom);
const double dk_dr =
m_r_star_ref * ((1.0 / (delta_R * r_ref * denom * denom)) - (1.0 / (r_ref * r_ref * denom)));
J.SetSize(m_dim, m_dim);
const double outer_factor = dk_dr / r_ref;
for (int i = 0; i < m_dim; ++i) {
for (int j = 0; j < m_dim; ++j) {
J(i, j) = outer_factor * x_disp(i) * x_ref(j) + k * J_D(i, j);
}
}
}
void DomainMapper::InvalidateCache() const {
m_cached_elem_id = -1;
}
void DomainMapper::UpdateElementCache(const mfem::ElementTransformation &T) const {
if (!HasDisplacementField())
return;
if (T.ElementNo != m_cached_elem_id || T.ElementType != m_cached_elem_type) {
m_cache_misses++;
m_cached_elem_id = T.ElementNo;
m_cached_elem_type = T.ElementType;
const mfem::FiniteElementSpace *fes = m_d->FESpace();
mfem::Array<int> vdofs;
if (T.ElementType == mfem::ElementTransformation::ELEMENT) {
m_fe = fes->GetFE(m_cached_elem_id);
fes->GetElementVDofs(m_cached_elem_id, vdofs);
} else {
m_fe = fes->GetBE(m_cached_elem_id);
fes->GetBdrElementVDofs(m_cached_elem_id, vdofs);
}
m_d->GetSubVector(vdofs, m_elem_dofs);
const int nd = m_fe->GetDof();
const int vd = fes->GetVDim();
m_dof_mat.UseExternalData(m_elem_dofs.GetData(), nd, vd);
} else {
m_cache_hits++;
}
}
} // namespace mean_field::mapping