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956 lines
30 KiB
C++
956 lines
30 KiB
C++
//! \file mesh.h
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//! \brief Mesh types used for tallies, Shannon entropy, CMFD, etc.
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#ifndef OPENMC_MESH_H
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#define OPENMC_MESH_H
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#include <unordered_map>
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#include "hdf5.h"
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#include "pugixml.hpp"
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#include "xtensor/xtensor.hpp"
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#include <gsl/gsl-lite.hpp>
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#include "openmc/error.h"
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#include "openmc/memory.h" // for unique_ptr
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#include "openmc/particle.h"
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#include "openmc/position.h"
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#include "openmc/vector.h"
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#include "openmc/xml_interface.h"
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#ifdef DAGMC
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#include "moab/AdaptiveKDTree.hpp"
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#include "moab/Core.hpp"
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#include "moab/GeomUtil.hpp"
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#include "moab/Matrix3.hpp"
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#endif
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#ifdef LIBMESH
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#include "libmesh/bounding_box.h"
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#include "libmesh/dof_map.h"
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#include "libmesh/elem.h"
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#include "libmesh/equation_systems.h"
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#include "libmesh/exodusII_io.h"
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#include "libmesh/explicit_system.h"
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#include "libmesh/libmesh.h"
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#include "libmesh/mesh.h"
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#include "libmesh/point.h"
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#endif
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namespace openmc {
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//==============================================================================
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// Constants
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//==============================================================================
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enum class ElementType { UNSUPPORTED = -1, LINEAR_TET, LINEAR_HEX };
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//==============================================================================
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// Global variables
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//==============================================================================
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extern "C" const bool LIBMESH_ENABLED;
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class Mesh;
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namespace model {
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extern std::unordered_map<int32_t, int32_t> mesh_map;
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extern vector<unique_ptr<Mesh>> meshes;
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} // namespace model
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#ifdef LIBMESH
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namespace settings {
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// used when creating new libMesh::MeshBase instances
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extern unique_ptr<libMesh::LibMeshInit> libmesh_init;
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extern const libMesh::Parallel::Communicator* libmesh_comm;
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} // namespace settings
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#endif
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class Mesh {
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public:
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// Types, aliases
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struct MaterialVolume {
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int32_t material; //!< material index
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double volume; //!< volume in [cm^3]
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};
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// Constructors and destructor
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Mesh() = default;
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Mesh(pugi::xml_node node);
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virtual ~Mesh() = default;
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// Methods
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//! Perform any preparation needed to support use in mesh filters
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virtual void prepare_for_tallies() {};
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//! Update a position to the local coordinates of the mesh
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virtual void local_coords(Position& r) const {};
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//! Return a position in the local coordinates of the mesh
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virtual Position local_coords(const Position& r) const { return r; };
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//! Sample a position within a mesh element
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//
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//! \param[in] bin Bin value of the mesh element sampled
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//! \param[inout] seed Seed to use for random sampling
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//! \return sampled position within mesh element
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virtual Position sample_element(int32_t bin, uint64_t* seed) const = 0;
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//! Determine which bins were crossed by a particle
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//
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//! \param[in] r0 Previous position of the particle
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//! \param[in] r1 Current position of the particle
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//! \param[in] u Particle direction
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//! \param[out] bins Bins that were crossed
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//! \param[out] lengths Fraction of tracklength in each bin
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virtual void bins_crossed(Position r0, Position r1, const Direction& u,
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vector<int>& bins, vector<double>& lengths) const = 0;
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//! Determine which surface bins were crossed by a particle
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//
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//! \param[in] r0 Previous position of the particle
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//! \param[in] r1 Current position of the particle
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//! \param[in] u Particle direction
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//! \param[out] bins Surface bins that were crossed
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virtual void surface_bins_crossed(
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Position r0, Position r1, const Direction& u, vector<int>& bins) const = 0;
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//! Get bin at a given position in space
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//
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//! \param[in] r Position to get bin for
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//! \return Mesh bin
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virtual int get_bin(Position r) const = 0;
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//! Get the number of mesh cells.
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virtual int n_bins() const = 0;
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//! Get the number of mesh cell surfaces.
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virtual int n_surface_bins() const = 0;
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int32_t id() const { return id_; }
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//! Set the mesh ID
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void set_id(int32_t id = -1);
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//! Write mesh data to an HDF5 group
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//
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//! \param[in] group HDF5 group
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virtual void to_hdf5(hid_t group) const = 0;
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//! Find the mesh lines that intersect an axis-aligned slice plot
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//
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//! \param[in] plot_ll The lower-left coordinates of the slice plot.
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//! \param[in] plot_ur The upper-right coordinates of the slice plot.
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//! \return A pair of vectors indicating where the mesh lines lie along each
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//! of the plot's axes. For example an xy-slice plot will get back a vector
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//! of x-coordinates and another of y-coordinates. These vectors may be
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//! empty for low-dimensional meshes.
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virtual std::pair<vector<double>, vector<double>> plot(
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Position plot_ll, Position plot_ur) const = 0;
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//! Return a string representation of the mesh bin
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//
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//! \param[in] bin Mesh bin to generate a label for
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virtual std::string bin_label(int bin) const = 0;
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//! Get the volume of a mesh bin
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//
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//! \param[in] bin Bin to return the volume for
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//! \return Volume of the bin
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virtual double volume(int bin) const = 0;
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//! Volumes of all elements in the mesh in bin ordering
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vector<double> volumes() const;
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virtual std::string get_mesh_type() const = 0;
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//! Determine volume of materials within a single mesh elemenet
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//
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//! \param[in] n_sample Number of samples within each element
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//! \param[in] bin Index of mesh element
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//! \param[out] Array of (material index, volume) for desired element
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//! \param[inout] seed Pseudorandom number seed
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//! \return Number of materials within element
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int material_volumes(int n_sample, int bin, gsl::span<MaterialVolume> volumes,
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uint64_t* seed) const;
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//! Determine volume of materials within a single mesh elemenet
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//
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//! \param[in] n_sample Number of samples within each element
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//! \param[in] bin Index of mesh element
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//! \param[inout] seed Pseudorandom number seed
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//! \return Vector of (material index, volume) for desired element
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vector<MaterialVolume> material_volumes(
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int n_sample, int bin, uint64_t* seed) const;
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// Data members
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int id_ {-1}; //!< User-specified ID
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int n_dimension_ {-1}; //!< Number of dimensions
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};
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class StructuredMesh : public Mesh {
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public:
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StructuredMesh() = default;
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StructuredMesh(pugi::xml_node node) : Mesh {node} {};
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virtual ~StructuredMesh() = default;
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using MeshIndex = std::array<int, 3>;
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struct MeshDistance {
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MeshDistance() = default;
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MeshDistance(int _index, bool _max_surface, double _distance)
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: next_index {_index}, max_surface {_max_surface}, distance {_distance}
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{}
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int next_index {-1};
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bool max_surface {true};
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double distance {INFTY};
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bool operator<(const MeshDistance& o) const
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{
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return distance < o.distance;
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}
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};
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Position sample_element(int32_t bin, uint64_t* seed) const override
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{
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return sample_element(get_indices_from_bin(bin), seed);
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};
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virtual Position sample_element(const MeshIndex& ijk, uint64_t* seed) const;
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int get_bin(Position r) const override;
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int n_bins() const override;
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int n_surface_bins() const override;
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void bins_crossed(Position r0, Position r1, const Direction& u,
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vector<int>& bins, vector<double>& lengths) const override;
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void surface_bins_crossed(Position r0, Position r1, const Direction& u,
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vector<int>& bins) const override;
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//! Determine which cell or surface bins were crossed by a particle
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//
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//! \param[in] r0 Previous position of the particle
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//! \param[in] r1 Current position of the particle
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//! \param[in] u Particle direction
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//! \param[in] tally Functor that eventually stores the tally data
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template<class T>
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void raytrace_mesh(
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Position r0, Position r1, const Direction& u, T tally) const;
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//! Count number of bank sites in each mesh bin / energy bin
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//
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//! \param[in] Pointer to bank sites
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//! \param[in] Number of bank sites
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//! \param[out] Whether any bank sites are outside the mesh
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xt::xtensor<double, 1> count_sites(
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const SourceSite* bank, int64_t length, bool* outside) const;
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//! Get bin given mesh indices
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//
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//! \param[in] Array of mesh indices
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//! \return Mesh bin
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virtual int get_bin_from_indices(const MeshIndex& ijk) const;
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//! Get mesh indices given a position
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//
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//! \param[in] r Position to get indices for
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//! \param[out] in_mesh Whether position is in mesh
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//! \return Array of mesh indices
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virtual MeshIndex get_indices(Position r, bool& in_mesh) const;
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//! Get mesh indices corresponding to a mesh bin
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//
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//! \param[in] bin Mesh bin
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//! \return ijk Mesh indices
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virtual MeshIndex get_indices_from_bin(int bin) const;
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//! Get mesh index in a particular direction
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//!
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//! \param[in] r Coordinate to get index for
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//! \param[in] i Direction index
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virtual int get_index_in_direction(double r, int i) const = 0;
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//! Get the coordinate for the mesh grid boundary in the positive direction
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i Direction index
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virtual double positive_grid_boundary(const MeshIndex& ijk, int i) const
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{
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auto msg =
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fmt::format("Attempting to call positive_grid_boundary on a {} mesh.",
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get_mesh_type());
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fatal_error(msg);
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};
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//! Get the coordinate for the mesh grid boundary in the negative direction
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i Direction index
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virtual double negative_grid_boundary(const MeshIndex& ijk, int i) const
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{
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auto msg =
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fmt::format("Attempting to call negative_grid_boundary on a {} mesh.",
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get_mesh_type());
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fatal_error(msg);
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};
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//! Get the closest distance from the coordinate r to the grid surface
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//! in i direction that bounds mesh cell ijk and that is larger than l
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//! The coordinate r does not have to be inside the mesh cell ijk. In
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//! curved coordinates, multiple crossings of the same surface can happen,
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//! these are selected by the parameter l
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i direction index of grid surface
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//! \param[in] r0 position, from where to calculate the distance
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//! \param[in] u direction of flight. actual position is r0 + l * u
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//! \param[in] l actual chord length
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//! \return MeshDistance struct with closest distance, next cell index in
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//! i-direction and min/max surface indicator
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virtual MeshDistance distance_to_grid_boundary(const MeshIndex& ijk, int i,
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const Position& r0, const Direction& u, double l) const = 0;
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//! Get a label for the mesh bin
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std::string bin_label(int bin) const override;
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//! Get shape as xt::xtensor
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xt::xtensor<int, 1> get_x_shape() const;
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double volume(int bin) const override
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{
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return this->volume(get_indices_from_bin(bin));
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}
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//! Get the volume of a specified element
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//! \param[in] ijk Mesh index to return the volume for
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//! \return Volume of the bin
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virtual double volume(const MeshIndex& ijk) const = 0;
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// Data members
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xt::xtensor<double, 1> lower_left_; //!< Lower-left coordinates of mesh
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xt::xtensor<double, 1> upper_right_; //!< Upper-right coordinates of mesh
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std::array<int, 3> shape_; //!< Number of mesh elements in each dimension
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protected:
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};
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class PeriodicStructuredMesh : public StructuredMesh {
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public:
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PeriodicStructuredMesh() = default;
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PeriodicStructuredMesh(pugi::xml_node node) : StructuredMesh {node} {};
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void local_coords(Position& r) const override { r -= origin_; };
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Position local_coords(const Position& r) const override
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{
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return r - origin_;
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};
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// Data members
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Position origin_ {0.0, 0.0, 0.0}; //!< Origin of the mesh
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};
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//==============================================================================
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//! Tessellation of n-dimensional Euclidean space by congruent squares or cubes
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//==============================================================================
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class RegularMesh : public StructuredMesh {
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public:
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// Constructors
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RegularMesh() = default;
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RegularMesh(pugi::xml_node node);
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// Overridden methods
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int get_index_in_direction(double r, int i) const override;
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virtual std::string get_mesh_type() const override;
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static const std::string mesh_type;
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MeshDistance distance_to_grid_boundary(const MeshIndex& ijk, int i,
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const Position& r0, const Direction& u, double l) const override;
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std::pair<vector<double>, vector<double>> plot(
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Position plot_ll, Position plot_ur) const override;
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void to_hdf5(hid_t group) const override;
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//! Get the coordinate for the mesh grid boundary in the positive direction
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i Direction index
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double positive_grid_boundary(const MeshIndex& ijk, int i) const override;
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//! Get the coordinate for the mesh grid boundary in the negative direction
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i Direction index
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double negative_grid_boundary(const MeshIndex& ijk, int i) const override;
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//! Count number of bank sites in each mesh bin / energy bin
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//
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//! \param[in] bank Array of bank sites
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//! \param[out] Whether any bank sites are outside the mesh
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//! \return Array indicating number of sites in each mesh/energy bin
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xt::xtensor<double, 1> count_sites(
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const SourceSite* bank, int64_t length, bool* outside) const;
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//! Return the volume for a given mesh index
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double volume(const MeshIndex& ijk) const override;
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// Data members
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double volume_frac_; //!< Volume fraction of each mesh element
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double element_volume_; //!< Volume of each mesh element
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xt::xtensor<double, 1> width_; //!< Width of each mesh element
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};
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class RectilinearMesh : public StructuredMesh {
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public:
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// Constructors
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RectilinearMesh() = default;
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RectilinearMesh(pugi::xml_node node);
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// Overridden methods
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int get_index_in_direction(double r, int i) const override;
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virtual std::string get_mesh_type() const override;
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static const std::string mesh_type;
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MeshDistance distance_to_grid_boundary(const MeshIndex& ijk, int i,
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const Position& r0, const Direction& u, double l) const override;
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std::pair<vector<double>, vector<double>> plot(
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Position plot_ll, Position plot_ur) const override;
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void to_hdf5(hid_t group) const override;
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//! Get the coordinate for the mesh grid boundary in the positive direction
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i Direction index
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double positive_grid_boundary(const MeshIndex& ijk, int i) const override;
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//! Get the coordinate for the mesh grid boundary in the negative direction
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//!
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//! \param[in] ijk Array of mesh indices
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//! \param[in] i Direction index
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double negative_grid_boundary(const MeshIndex& ijk, int i) const override;
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//! Return the volume for a given mesh index
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double volume(const MeshIndex& ijk) const override;
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int set_grid();
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// Data members
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array<vector<double>, 3> grid_;
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};
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class CylindricalMesh : public PeriodicStructuredMesh {
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public:
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// Constructors
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CylindricalMesh() = default;
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CylindricalMesh(pugi::xml_node node);
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// Overridden methods
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virtual MeshIndex get_indices(Position r, bool& in_mesh) const override;
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int get_index_in_direction(double r, int i) const override;
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virtual std::string get_mesh_type() const override;
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static const std::string mesh_type;
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Position sample_element(const MeshIndex& ijk, uint64_t* seed) const override;
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MeshDistance distance_to_grid_boundary(const MeshIndex& ijk, int i,
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const Position& r0, const Direction& u, double l) const override;
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std::pair<vector<double>, vector<double>> plot(
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Position plot_ll, Position plot_ur) const override;
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void to_hdf5(hid_t group) const override;
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double volume(const MeshIndex& ijk) const override;
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// grid accessors
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double r(int i) const { return grid_[0][i]; }
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double phi(int i) const { return grid_[1][i]; }
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double z(int i) const { return grid_[2][i]; }
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int set_grid();
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// Data members
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array<vector<double>, 3> grid_;
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private:
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double find_r_crossing(
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const Position& r, const Direction& u, double l, int shell) const;
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double find_phi_crossing(
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const Position& r, const Direction& u, double l, int shell) const;
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StructuredMesh::MeshDistance find_z_crossing(
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const Position& r, const Direction& u, double l, int shell) const;
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bool full_phi_ {false};
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inline int sanitize_angular_index(int idx, bool full, int N) const
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{
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if ((idx > 0) and (idx <= N)) {
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return idx;
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} else if (full) {
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return (idx + N - 1) % N + 1;
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} else {
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return 0;
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}
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}
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inline int sanitize_phi(int idx) const
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{
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return sanitize_angular_index(idx, full_phi_, shape_[1]);
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}
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};
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class SphericalMesh : public PeriodicStructuredMesh {
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public:
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// Constructors
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SphericalMesh() = default;
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SphericalMesh(pugi::xml_node node);
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// Overridden methods
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virtual MeshIndex get_indices(Position r, bool& in_mesh) const override;
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int get_index_in_direction(double r, int i) const override;
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virtual std::string get_mesh_type() const override;
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static const std::string mesh_type;
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Position sample_element(const MeshIndex& ijk, uint64_t* seed) const override;
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MeshDistance distance_to_grid_boundary(const MeshIndex& ijk, int i,
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const Position& r0, const Direction& u, double l) const override;
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std::pair<vector<double>, vector<double>> plot(
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Position plot_ll, Position plot_ur) const override;
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void to_hdf5(hid_t group) const override;
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double r(int i) const { return grid_[0][i]; }
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double theta(int i) const { return grid_[1][i]; }
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double phi(int i) const { return grid_[2][i]; }
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int set_grid();
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// Data members
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array<vector<double>, 3> grid_;
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private:
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double find_r_crossing(
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const Position& r, const Direction& u, double l, int shell) const;
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double find_theta_crossing(
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const Position& r, const Direction& u, double l, int shell) const;
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double find_phi_crossing(
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const Position& r, const Direction& u, double l, int shell) const;
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bool full_theta_ {false};
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bool full_phi_ {false};
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inline int sanitize_angular_index(int idx, bool full, int N) const
|
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{
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if ((idx > 0) and (idx <= N)) {
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return idx;
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} else if (full) {
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return (idx + N - 1) % N + 1;
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} else {
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return 0;
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}
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}
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double volume(const MeshIndex& ijk) const override;
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inline int sanitize_theta(int idx) const
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{
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return sanitize_angular_index(idx, full_theta_, shape_[1]);
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}
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inline int sanitize_phi(int idx) const
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{
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return sanitize_angular_index(idx, full_phi_, shape_[2]);
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}
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};
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// Abstract class for unstructured meshes
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class UnstructuredMesh : public Mesh {
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public:
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// Constructors
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UnstructuredMesh() {};
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UnstructuredMesh(pugi::xml_node node);
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UnstructuredMesh(const std::string& filename);
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static const std::string mesh_type;
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virtual std::string get_mesh_type() const override;
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// Overridden Methods
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void surface_bins_crossed(Position r0, Position r1, const Direction& u,
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vector<int>& bins) const override;
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void to_hdf5(hid_t group) const override;
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std::string bin_label(int bin) const override;
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// Methods
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//! Add a variable to the mesh instance
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virtual void add_score(const std::string& var_name) = 0;
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//! Remove tally data from the instance
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virtual void remove_scores() = 0;
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//! Set the value of a bin for a variable on the internal
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// mesh instance
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virtual void set_score_data(const std::string& var_name,
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const vector<double>& values, const vector<double>& std_dev) = 0;
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//! Write the unstructured mesh to file
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//
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//! \param[in] filename Base of the file to write
|
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virtual void write(const std::string& base_filename) const = 0;
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//! Retrieve a centroid for the mesh cell
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//
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//! \param[in] bin Bin to return the centroid for
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//! \return The centroid of the bin
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virtual Position centroid(int bin) const = 0;
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//! Get the number of vertices in the mesh
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//
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//! \return Number of vertices
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virtual int n_vertices() const = 0;
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|
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//! Retrieve a vertex of the mesh
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//
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//! \param[in] vertex ID
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//! \return vertex coordinates
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virtual Position vertex(int id) const = 0;
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|
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//! Retrieve connectivity of a mesh element
|
|
//
|
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//! \param[in] element ID
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//! \return element connectivity as IDs of the vertices
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virtual std::vector<int> connectivity(int id) const = 0;
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|
|
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//! Get the library used for this unstructured mesh
|
|
virtual std::string library() const = 0;
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|
|
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// Data members
|
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bool output_ {
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true}; //!< Write tallies onto the unstructured mesh at the end of a run
|
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std::string filename_; //!< Path to unstructured mesh file
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|
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ElementType element_type(int bin) const;
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|
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protected:
|
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//! Set the length multiplier to apply to each point in the mesh
|
|
void set_length_multiplier(const double length_multiplier);
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|
|
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// Data members
|
|
double length_multiplier_ {
|
|
1.0}; //!< Constant multiplication factor to apply to mesh coordinates
|
|
bool specified_length_multiplier_ {false};
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|
|
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//! Sample barycentric coordinates given a seed and the vertex positions and
|
|
//! return the sampled position
|
|
//
|
|
//! \param[in] coords Coordinates of the tetrahedron
|
|
//! \param[in] seed Random number generation seed
|
|
//! \return Sampled position within the tetrahedron
|
|
Position sample_tet(std::array<Position, 4> coords, uint64_t* seed) const;
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|
|
|
private:
|
|
//! Setup method for the mesh. Builds data structures,
|
|
//! sets up element mapping, creates bounding boxes, etc.
|
|
virtual void initialize() = 0;
|
|
};
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|
|
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#ifdef DAGMC
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|
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class MOABMesh : public UnstructuredMesh {
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|
public:
|
|
// Constructors
|
|
MOABMesh() = default;
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|
MOABMesh(pugi::xml_node);
|
|
MOABMesh(const std::string& filename, double length_multiplier = 1.0);
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MOABMesh(std::shared_ptr<moab::Interface> external_mbi);
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|
|
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static const std::string mesh_lib_type;
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|
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// Overridden Methods
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|
|
|
//! Perform any preparation needed to support use in mesh filters
|
|
void prepare_for_tallies() override;
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|
|
|
Position sample_element(int32_t bin, uint64_t* seed) const override;
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|
|
|
void bins_crossed(Position r0, Position r1, const Direction& u,
|
|
vector<int>& bins, vector<double>& lengths) const override;
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|
|
|
int get_bin(Position r) const override;
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|
|
|
int n_bins() const override;
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|
|
|
int n_surface_bins() const override;
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|
|
|
std::pair<vector<double>, vector<double>> plot(
|
|
Position plot_ll, Position plot_ur) const override;
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|
|
|
std::string library() const override;
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|
|
|
//! Add a score to the mesh instance
|
|
void add_score(const std::string& score) override;
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|
|
|
//! Remove all scores from the mesh instance
|
|
void remove_scores() override;
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|
|
|
//! Set data for a score
|
|
void set_score_data(const std::string& score, const vector<double>& values,
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|
const vector<double>& std_dev) override;
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|
|
|
//! Write the mesh with any current tally data
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|
void write(const std::string& base_filename) const override;
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|
|
|
Position centroid(int bin) const override;
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|
|
|
int n_vertices() const override;
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|
|
|
Position vertex(int id) const override;
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|
|
|
std::vector<int> connectivity(int id) const override;
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|
|
|
//! Get the volume of a mesh bin
|
|
//
|
|
//! \param[in] bin Bin to return the volume for
|
|
//! \return Volume of the bin
|
|
double volume(int bin) const override;
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|
|
|
private:
|
|
void initialize() override;
|
|
|
|
// Methods
|
|
|
|
//! Create the MOAB interface pointer
|
|
void create_interface();
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|
|
|
//! Find all intersections with faces of the mesh.
|
|
//
|
|
//! \param[in] start Staring location
|
|
//! \param[in] dir Normalized particle direction
|
|
//! \param[in] track_len length of particle track
|
|
//! \param[out] Mesh intersections
|
|
void intersect_track(const moab::CartVect& start, const moab::CartVect& dir,
|
|
double track_len, vector<double>& hits) const;
|
|
|
|
//! Calculate the volume for a given tetrahedron handle.
|
|
//
|
|
// \param[in] tet MOAB EntityHandle of the tetrahedron
|
|
double tet_volume(moab::EntityHandle tet) const;
|
|
|
|
//! Find the tetrahedron for the given location if
|
|
//! one exists
|
|
//
|
|
//! \param[in]
|
|
//! \return MOAB EntityHandle of tet
|
|
moab::EntityHandle get_tet(const Position& r) const;
|
|
|
|
//! Return the containing tet given a position
|
|
moab::EntityHandle get_tet(const moab::CartVect& r) const
|
|
{
|
|
return get_tet(Position(r[0], r[1], r[2]));
|
|
};
|
|
|
|
//! Check for point containment within a tet; uses
|
|
//! pre-computed barycentric data.
|
|
//
|
|
//! \param[in] r Position to check
|
|
//! \param[in] MOAB terahedron to check
|
|
//! \return True if r is inside, False if r is outside
|
|
bool point_in_tet(const moab::CartVect& r, moab::EntityHandle tet) const;
|
|
|
|
//! Compute barycentric coordinate data for all tetrahedra
|
|
//! in the mesh.
|
|
//
|
|
//! \param[in] tets MOAB Range of tetrahedral elements
|
|
void compute_barycentric_data(const moab::Range& tets);
|
|
|
|
//! Translate a MOAB EntityHandle to its corresponding bin.
|
|
//
|
|
//! \param[in] eh MOAB EntityHandle to translate
|
|
//! \return Mesh bin
|
|
int get_bin_from_ent_handle(moab::EntityHandle eh) const;
|
|
|
|
//! Translate a bin to its corresponding MOAB EntityHandle
|
|
//! for the tetrahedron representing that bin.
|
|
//
|
|
//! \param[in] bin Bin value to translate
|
|
//! \return MOAB EntityHandle of tet
|
|
moab::EntityHandle get_ent_handle_from_bin(int bin) const;
|
|
|
|
//! Get a vertex index into the global range from a handle
|
|
int get_vert_idx_from_handle(moab::EntityHandle vert) const;
|
|
|
|
//! Get the bin for a given mesh cell index
|
|
//
|
|
//! \param[in] idx Index of the mesh cell.
|
|
//! \return Mesh bin
|
|
int get_bin_from_index(int idx) const;
|
|
|
|
//! Get the mesh cell index for a given position
|
|
//
|
|
//! \param[in] r Position to get index for
|
|
//! \param[in,out] in_mesh Whether position is in the mesh
|
|
int get_index(const Position& r, bool* in_mesh) const;
|
|
|
|
//! Get the mesh cell index from a bin
|
|
//
|
|
//! \param[in] bin Bin to get the index for
|
|
//! \return Index of the bin
|
|
int get_index_from_bin(int bin) const;
|
|
|
|
//! Build a KDTree for all tetrahedra in the mesh. All
|
|
//! triangles representing 2D faces of the mesh are
|
|
//! added to the tree as well.
|
|
//
|
|
//! \param[in] all_tets MOAB Range of tetrahedra for the tree
|
|
void build_kdtree(const moab::Range& all_tets);
|
|
|
|
//! Get the tags for a score from the mesh instance
|
|
//! or create them if they are not there
|
|
//
|
|
//! \param[in] score Name of the score
|
|
//! \return The MOAB value and error tag handles, respectively
|
|
std::pair<moab::Tag, moab::Tag> get_score_tags(std::string score) const;
|
|
|
|
// Data members
|
|
moab::Range ehs_; //!< Range of tetrahedra EntityHandle's in the mesh
|
|
moab::Range verts_; //!< Range of vertex EntityHandle's in the mesh
|
|
moab::EntityHandle tetset_; //!< EntitySet containing all tetrahedra
|
|
moab::EntityHandle kdtree_root_; //!< Root of the MOAB KDTree
|
|
std::shared_ptr<moab::Interface> mbi_; //!< MOAB instance
|
|
unique_ptr<moab::AdaptiveKDTree> kdtree_; //!< MOAB KDTree instance
|
|
vector<moab::Matrix3> baryc_data_; //!< Barycentric data for tetrahedra
|
|
vector<std::string> tag_names_; //!< Names of score tags added to the mesh
|
|
};
|
|
|
|
#endif
|
|
|
|
#ifdef LIBMESH
|
|
|
|
class LibMesh : public UnstructuredMesh {
|
|
public:
|
|
// Constructors
|
|
LibMesh(pugi::xml_node node);
|
|
LibMesh(const std::string& filename, double length_multiplier = 1.0);
|
|
LibMesh(libMesh::MeshBase& input_mesh, double length_multiplier = 1.0);
|
|
|
|
static const std::string mesh_lib_type;
|
|
|
|
// Overridden Methods
|
|
void bins_crossed(Position r0, Position r1, const Direction& u,
|
|
vector<int>& bins, vector<double>& lengths) const override;
|
|
|
|
Position sample_element(int32_t bin, uint64_t* seed) const override;
|
|
|
|
int get_bin(Position r) const override;
|
|
|
|
int n_bins() const override;
|
|
|
|
int n_surface_bins() const override;
|
|
|
|
std::pair<vector<double>, vector<double>> plot(
|
|
Position plot_ll, Position plot_ur) const override;
|
|
|
|
std::string library() const override;
|
|
|
|
void add_score(const std::string& var_name) override;
|
|
|
|
void remove_scores() override;
|
|
|
|
void set_score_data(const std::string& var_name, const vector<double>& values,
|
|
const vector<double>& std_dev) override;
|
|
|
|
void write(const std::string& base_filename) const override;
|
|
|
|
Position centroid(int bin) const override;
|
|
|
|
int n_vertices() const override;
|
|
|
|
Position vertex(int id) const override;
|
|
|
|
std::vector<int> connectivity(int id) const override;
|
|
|
|
//! Get the volume of a mesh bin
|
|
//
|
|
//! \param[in] bin Bin to return the volume for
|
|
//! \return Volume of the bin
|
|
double volume(int bin) const override;
|
|
|
|
libMesh::MeshBase* mesh_ptr() const { return m_; };
|
|
|
|
private:
|
|
void initialize() override;
|
|
void set_mesh_pointer_from_filename(const std::string& filename);
|
|
|
|
// Methods
|
|
|
|
//! Translate a bin value to an element reference
|
|
const libMesh::Elem& get_element_from_bin(int bin) const;
|
|
|
|
//! Translate an element pointer to a bin index
|
|
int get_bin_from_element(const libMesh::Elem* elem) const;
|
|
|
|
// Data members
|
|
unique_ptr<libMesh::MeshBase> unique_m_ =
|
|
nullptr; //!< pointer to the libMesh MeshBase instance, only used if mesh is
|
|
//!< created inside OpenMC
|
|
libMesh::MeshBase* m_; //!< pointer to libMesh MeshBase instance, always set
|
|
//!< during intialization
|
|
vector<unique_ptr<libMesh::PointLocatorBase>>
|
|
pl_; //!< per-thread point locators
|
|
unique_ptr<libMesh::EquationSystems>
|
|
equation_systems_; //!< pointer to the equation systems of the mesh
|
|
std::string
|
|
eq_system_name_; //!< name of the equation system holding OpenMC results
|
|
std::unordered_map<std::string, unsigned int>
|
|
variable_map_; //!< mapping of variable names (tally scores) to libMesh
|
|
//!< variable numbers
|
|
libMesh::BoundingBox bbox_; //!< bounding box of the mesh
|
|
libMesh::dof_id_type
|
|
first_element_id_; //!< id of the first element in the mesh
|
|
};
|
|
|
|
#endif
|
|
|
|
//==============================================================================
|
|
// Non-member functions
|
|
//==============================================================================
|
|
|
|
//! Read meshes from either settings/tallies
|
|
//
|
|
//! \param[in] root XML node
|
|
void read_meshes(pugi::xml_node root);
|
|
|
|
//! Write mesh data to an HDF5 group
|
|
//
|
|
//! \param[in] group HDF5 group
|
|
void meshes_to_hdf5(hid_t group);
|
|
|
|
void free_memory_mesh();
|
|
|
|
} // namespace openmc
|
|
|
|
#endif // OPENMC_MESH_H
|