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📄 ffc_17.h

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      dofs[1] = 2;      dofs[2] = 3;      break;    case 2:      dofs[0] = 0;      dofs[1] = 1;      dofs[2] = 3;      break;    case 3:      dofs[0] = 0;      dofs[1] = 1;      dofs[2] = 2;      break;    }  }  /// Tabulate the local-to-local mapping of dofs on entity (d, i)  virtual void tabulate_entity_dofs(unsigned int* dofs,                                    unsigned int d, unsigned int i) const  {    throw std::runtime_error("Not implemented (introduced in UFC v1.1).");  }  /// Tabulate the coordinates of all dofs on a cell  virtual void tabulate_coordinates(double** coordinates,                                    const ufc::cell& c) const  {    const double * const * x = c.coordinates;    coordinates[0][0] = x[0][0];    coordinates[0][1] = x[0][1];    coordinates[0][2] = x[0][2];    coordinates[1][0] = x[1][0];    coordinates[1][1] = x[1][1];    coordinates[1][2] = x[1][2];    coordinates[2][0] = x[2][0];    coordinates[2][1] = x[2][1];    coordinates[2][2] = x[2][2];    coordinates[3][0] = x[3][0];    coordinates[3][1] = x[3][1];    coordinates[3][2] = x[3][2];  }  /// Return the number of sub dof maps (for a mixed element)  virtual unsigned int num_sub_dof_maps() const  {    return 1;  }  /// Create a new dof_map for sub dof map i (for a mixed element)  virtual ufc::dof_map* create_sub_dof_map(unsigned int i) const  {    return new ffc_17_dof_map_0_1();  }};/// This class defines the interface for a local-to-global mapping of/// degrees of freedom (dofs).class ffc_17_dof_map_0_2: public ufc::dof_map{private:  unsigned int __global_dimension;public:  /// Constructor  ffc_17_dof_map_0_2() : ufc::dof_map()  {    __global_dimension = 0;  }  /// Destructor  virtual ~ffc_17_dof_map_0_2()  {    // Do nothing  }  /// Return a string identifying the dof map  virtual const char* signature() const  {    return "FFC dof map for Lagrange finite element of degree 1 on a tetrahedron";  }  /// Return true iff mesh entities of topological dimension d are needed  virtual bool needs_mesh_entities(unsigned int d) const  {    switch ( d )    {    case 0:      return true;      break;    case 1:      return false;      break;    case 2:      return false;      break;    case 3:      return false;      break;    }    return false;  }  /// Initialize dof map for mesh (return true iff init_cell() is needed)  virtual bool init_mesh(const ufc::mesh& m)  {    __global_dimension = m.num_entities[0];    return false;  }  /// Initialize dof map for given cell  virtual void init_cell(const ufc::mesh& m,                         const ufc::cell& c)  {    // Do nothing  }  /// Finish initialization of dof map for cells  virtual void init_cell_finalize()  {    // Do nothing  }  /// Return the dimension of the global finite element function space  virtual unsigned int global_dimension() const  {    return __global_dimension;  }  /// Return the dimension of the local finite element function space  virtual unsigned int local_dimension() const  {    return 4;  }  // Return the geometric dimension of the coordinates this dof map provides  virtual unsigned int geometric_dimension() const  {    return 3;  }  /// Return the number of dofs on each cell facet  virtual unsigned int num_facet_dofs() const  {    return 3;  }  /// Return the number of dofs associated with each cell entity of dimension d  virtual unsigned int num_entity_dofs(unsigned int d) const  {    throw std::runtime_error("Not implemented (introduced in UFC v1.1).");  }  /// Tabulate the local-to-global mapping of dofs on a cell  virtual void tabulate_dofs(unsigned int* dofs,                             const ufc::mesh& m,                             const ufc::cell& c) const  {    dofs[0] = c.entity_indices[0][0];    dofs[1] = c.entity_indices[0][1];    dofs[2] = c.entity_indices[0][2];    dofs[3] = c.entity_indices[0][3];  }  /// Tabulate the local-to-local mapping from facet dofs to cell dofs  virtual void tabulate_facet_dofs(unsigned int* dofs,                                   unsigned int facet) const  {    switch ( facet )    {    case 0:      dofs[0] = 1;      dofs[1] = 2;      dofs[2] = 3;      break;    case 1:      dofs[0] = 0;      dofs[1] = 2;      dofs[2] = 3;      break;    case 2:      dofs[0] = 0;      dofs[1] = 1;      dofs[2] = 3;      break;    case 3:      dofs[0] = 0;      dofs[1] = 1;      dofs[2] = 2;      break;    }  }  /// Tabulate the local-to-local mapping of dofs on entity (d, i)  virtual void tabulate_entity_dofs(unsigned int* dofs,                                    unsigned int d, unsigned int i) const  {    throw std::runtime_error("Not implemented (introduced in UFC v1.1).");  }  /// Tabulate the coordinates of all dofs on a cell  virtual void tabulate_coordinates(double** coordinates,                                    const ufc::cell& c) const  {    const double * const * x = c.coordinates;    coordinates[0][0] = x[0][0];    coordinates[0][1] = x[0][1];    coordinates[0][2] = x[0][2];    coordinates[1][0] = x[1][0];    coordinates[1][1] = x[1][1];    coordinates[1][2] = x[1][2];    coordinates[2][0] = x[2][0];    coordinates[2][1] = x[2][1];    coordinates[2][2] = x[2][2];    coordinates[3][0] = x[3][0];    coordinates[3][1] = x[3][1];    coordinates[3][2] = x[3][2];  }  /// Return the number of sub dof maps (for a mixed element)  virtual unsigned int num_sub_dof_maps() const  {    return 1;  }  /// Create a new dof_map for sub dof map i (for a mixed element)  virtual ufc::dof_map* create_sub_dof_map(unsigned int i) const  {    return new ffc_17_dof_map_0_2();  }};/// This class defines the interface for a local-to-global mapping of/// degrees of freedom (dofs).class ffc_17_dof_map_0: public ufc::dof_map{private:  unsigned int __global_dimension;public:  /// Constructor  ffc_17_dof_map_0() : ufc::dof_map()  {    __global_dimension = 0;  }  /// Destructor  virtual ~ffc_17_dof_map_0()  {    // Do nothing  }  /// Return a string identifying the dof map  virtual const char* signature() const  {    return "FFC dof map for Mixed finite element: [Lagrange finite element of degree 1 on a tetrahedron, Lagrange finite element of degree 1 on a tetrahedron, Lagrange finite element of degree 1 on a tetrahedron]";  }  /// Return true iff mesh entities of topological dimension d are needed  virtual bool needs_mesh_entities(unsigned int d) const  {    switch ( d )    {    case 0:      return true;      break;    case 1:      return false;      break;    case 2:      return false;      break;    case 3:      return false;      break;    }    return false;  }  /// Initialize dof map for mesh (return true iff init_cell() is needed)  virtual bool init_mesh(const ufc::mesh& m)  {    __global_dimension = 3*m.num_entities[0];    return false;  }  /// Initialize dof map for given cell  virtual void init_cell(const ufc::mesh& m,                         const ufc::cell& c)  {    // Do nothing  }  /// Finish initialization of dof map for cells  virtual void init_cell_finalize()  {    // Do nothing  }  /// Return the dimension of the global finite element function space  virtual unsigned int global_dimension() const  {    return __global_dimension;  }  /// Return the dimension of the local finite element function space  virtual unsigned int local_dimension() const  {    return 12;  }  // Return the geometric dimension of the coordinates this dof map provides  virtual unsigned int geometric_dimension() const  {    return 3;  }  /// Return the number of dofs on each cell facet  virtual unsigned int num_facet_dofs() const  {    return 9;  }  /// Return the number of dofs associated with each cell entity of dimension d  virtual unsigned int num_entity_dofs(unsigned int d) const  {    throw std::runtime_error("Not implemented (introduced in UFC v1.1).");  }  /// Tabulate the local-to-global mapping of dofs on a cell  virtual void tabulate_dofs(unsigned int* dofs,                             const ufc::mesh& m,                             const ufc::cell& c) const  {    dofs[0] = c.entity_indices[0][0];    dofs[1] = c.entity_indices[0][1];    dofs[2] = c.entity_indices[0][2];    dofs[3] = c.entity_indices[0][3];    unsigned int offset = m.num_entities[0];    dofs[4] = offset + c.entity_indices[0][0];    dofs[5] = offset + c.entity_indices[0][1];    dofs[6] = offset + c.entity_indices[0][2];    dofs[7] = offset + c.entity_indices[0][3];    offset = offset + m.num_entities[0];    dofs[8] = offset + c.entity_indices[0][0];    dofs[9] = offset + c.entity_indices[0][1];    dofs[10] = offset + c.entity_indices[0][2];    dofs[11] = offset + c.entity_indices[0][3];  }  /// Tabulate the local-to-local mapping from facet dofs to cell dofs  virtual void tabulate_facet_dofs(unsigned int* dofs,                                   unsigned int facet) const  {    switch ( facet )    {    case 0:      dofs[0] = 1;      dofs[1] = 2;      dofs[2] = 3;      dofs[3] = 5;      dofs[4] = 6;      dofs[5] = 7;      dofs[6] = 9;      dofs[7] = 10;      dofs[8] = 11;      break;    case 1:      dofs[0] = 0;      dofs[1] = 2;      dofs[2] = 3;      dofs[3] = 4;      dofs[4] = 6;      dofs[5] = 7;      dofs[6] = 8;      dofs[7] = 10;      dofs[8] = 11;      break;    case 2:      dofs[0] = 0;      dofs[1] = 1;      dofs[2] = 3;      dofs[3] = 4;      dofs[4] = 5;      dofs[5] = 7;      dofs[6] = 8;      dofs[7] = 9;      dofs[8] = 11;      break;    case 3:      dofs[0] = 0;      dofs[1] = 1;      dofs[2] = 2;      dofs[3] = 4;      dofs[4] = 5;      dofs[5] = 6;      dofs[6] = 8;      dofs[7] = 9;      dofs[8] = 10;      break;    }  }  /// Tabulate the local-to-local mapping of dofs on entity (d, i)  virtual void tabulate_entity_dofs(unsigned int* dofs,                                    unsigned int d, unsigned int i) const  {    throw std::runtime_error("Not implemented (introduced in UFC v1.1).");  }  /// Tabulate the coordinates of all dofs on a cell  virtual void tabulate_coordinates(double** coordinates,                                    const ufc::cell& c) const  {    const double * const * x = c.coordinates;    coordinates[0][0] = x[0][0];    coordinates[0][1] = x[0][1];    coordinates[0][2] = x[0][2];    coordinates[1][0] = x[1][0];    coordinates[1][1] = x[1][1];    coordinates[1][2] = x[1][2];    coordinates[2][0] = x[2][0];    coordinates[2][1] = x[2][1];    coordinates[2][2] = x[2][2];    coordinates[3][0] = x[3][0];    coordinates[3][1] = x[3][1];    coordinates[3][2] = x[3][2];    coordinates[4][0] = x[0][0];    coordinates[4][1] = x[0][1];    coordinates[4][2] = x[0][2];    coordinates[5][0] = x[1][0];    coordinates[5][1] = x[1][1];    coordinates[5][2] = x[1][2];    coordinates[6][0] = x[2][0];    coordinates[6][1] = x[2][1];    coordinates[6][2] = x[2][2];    coordinates[7][0] = x[3][0];    coordinates[7][1] = x[3][1];    coordinates[7][2] = x[3][2];    coordinates[8][0] = x[0][0];    coordinates[8][1] = x[0][1];    coordinates[8][2] = x[0][2];    coordinates[9][0] = x[1][0];    coordinates[9][1] = x[1][1];    coordinates[9][2] = x[1][2];    coordinates[10][0] = x[2][0];    coordinates[10][1] = x[2][1];    coordinates[10][2] = x[2][2];    coordinates[11][0] = x[3][0];    coordinates[11][1] = x[3][1];    coordinates[11][2] = x[3][2];  }  /// Return the number of sub dof maps (for a mixed element)  virtual unsigned int num_sub_dof_maps() const  {    return 3;  }  /// Create a new dof_map for sub dof map i (for a mixed element)  virtual ufc::dof_map* create_sub_dof_map(unsigned int i) const  {    switch ( i )    {    case 0:      return new ffc_17_dof_map_0_0();      break;    case 1:      return new ffc_17_dof_map_0_1();      break;    case 2:      return new ffc_17_dof_map_0_2();      break;    }    return 0;  }};#endif

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