Intrepid2
Intrepid2_HGRAD_TET_C2_FEM.hpp
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48
49#ifndef __INTREPID2_HGRAD_TET_C2_FEM_HPP__
50#define __INTREPID2_HGRAD_TET_C2_FEM_HPP__
51
52#include "Intrepid2_Basis.hpp"
54
55namespace Intrepid2 {
56
100
101 namespace Impl {
102
107 public:
108 typedef struct Tetrahedron<10> cell_topology_type;
112 template<EOperator opType>
113 struct Serial {
114 template<typename OutputViewType,
115 typename inputViewType>
116 KOKKOS_INLINE_FUNCTION
117 static void
118 getValues( OutputViewType output,
119 const inputViewType input );
120
121 };
122
123 template<typename DeviceType,
124 typename outputValueValueType, class ...outputValueProperties,
125 typename inputPointValueType, class ...inputPointProperties>
126 static void
127 getValues( Kokkos::DynRankView<outputValueValueType,outputValueProperties...> outputValues,
128 const Kokkos::DynRankView<inputPointValueType, inputPointProperties...> inputPoints,
129 const EOperator operatorType);
130
134 template<typename outputValueViewType,
135 typename inputPointViewType,
136 EOperator opType>
137 struct Functor {
138 outputValueViewType _outputValues;
139 const inputPointViewType _inputPoints;
140
141 KOKKOS_INLINE_FUNCTION
142 Functor( outputValueViewType outputValues_,
143 inputPointViewType inputPoints_ )
144 : _outputValues(outputValues_), _inputPoints(inputPoints_) {}
145
146 KOKKOS_INLINE_FUNCTION
147 void operator()(const ordinal_type pt) const {
148 switch (opType) {
149 case OPERATOR_VALUE : {
150 auto output = Kokkos::subview( _outputValues, Kokkos::ALL(), pt );
151 const auto input = Kokkos::subview( _inputPoints, pt, Kokkos::ALL() );
152 Serial<opType>::getValues( output, input );
153 break;
154 }
155 case OPERATOR_GRAD :
156 case OPERATOR_D1 :
157 case OPERATOR_D2 :
158 case OPERATOR_MAX : {
159 auto output = Kokkos::subview( _outputValues, Kokkos::ALL(), pt, Kokkos::ALL() );
160 const auto input = Kokkos::subview( _inputPoints, pt, Kokkos::ALL() );
161 Serial<opType>::getValues( output, input );
162 break;
163 }
164 default: {
165 INTREPID2_TEST_FOR_ABORT( opType != OPERATOR_VALUE &&
166 opType != OPERATOR_GRAD &&
167 opType != OPERATOR_MAX,
168 ">>> ERROR: (Intrepid2::Basis_HGRAD_TET_C2_FEM::Serial::getValues) operator is not supported");
169 }
170 }
171 }
172 };
173 };
174 }
175
176 template<typename DeviceType = void,
177 typename outputValueType = double,
178 typename pointValueType = double>
179 class Basis_HGRAD_TET_C2_FEM : public Basis<DeviceType,outputValueType,pointValueType> {
180 public:
184
188
192
193 using Basis<DeviceType,outputValueType,pointValueType>::getValues;
194
195 virtual
196 void
197 getValues( OutputViewType outputValues,
198 const PointViewType inputPoints,
199 const EOperator operatorType = OPERATOR_VALUE ) const override {
200#ifdef HAVE_INTREPID2_DEBUG
201 // Verify arguments
203 inputPoints,
204 operatorType,
205 this->getBaseCellTopology(),
206 this->getCardinality() );
207#endif
208 Impl::Basis_HGRAD_TET_C2_FEM::
209 getValues<DeviceType>( outputValues,
210 inputPoints,
211 operatorType );
212 }
213
214 virtual
215 void
216 getDofCoords( ScalarViewType dofCoords ) const override {
217#ifdef HAVE_INTREPID2_DEBUG
218 // Verify rank of output array.
219 INTREPID2_TEST_FOR_EXCEPTION( dofCoords.rank() != 2, std::invalid_argument,
220 ">>> ERROR: (Intrepid2::Basis_HGRAD_TET_C2_FEM::getDofCoords) rank = 2 required for dofCoords array");
221 // Verify 0th dimension of output array.
222 INTREPID2_TEST_FOR_EXCEPTION( static_cast<ordinal_type>(dofCoords.extent(0)) != this->getCardinality(), std::invalid_argument,
223 ">>> ERROR: (Intrepid2::Basis_HGRAD_TET_C2_FEM::getDofCoords) mismatch in number of dof and 0th dimension of dofCoords array");
224 // Verify 1st dimension of output array.
225 INTREPID2_TEST_FOR_EXCEPTION( dofCoords.extent(1) != this->getBaseCellTopology().getDimension(), std::invalid_argument,
226 ">>> ERROR: (Intrepid2::Basis_HGRAD_TET_C2_FEM::getDofCoords) incorrect reference cell (1st) dimension in dofCoords array");
227#endif
228 Kokkos::deep_copy(dofCoords, this->dofCoords_);
229 }
230
231
232 virtual
233 void
234 getDofCoeffs( ScalarViewType dofCoeffs ) const override {
235#ifdef HAVE_INTREPID2_DEBUG
236 // Verify rank of output array.
237 INTREPID2_TEST_FOR_EXCEPTION( dofCoeffs.rank() != 1, std::invalid_argument,
238 ">>> ERROR: (Intrepid2::Basis_HGRAD_TET_C2_FEM::getdofCoeffs) rank = 1 required for dofCoeffs array");
239 // Verify 0th dimension of output array.
240 INTREPID2_TEST_FOR_EXCEPTION( static_cast<ordinal_type>(dofCoeffs.extent(0)) != this->getCardinality(), std::invalid_argument,
241 ">>> ERROR: (Intrepid2::Basis_HGRAD_TET_C2_FEM::getdofCoeffs) mismatch in number of dof and 0th dimension of dofCoeffs array");
242#endif
243 Kokkos::deep_copy(dofCoeffs, 1.0);
244 }
245
246 virtual
247 const char*
248 getName() const override {
249 return "Intrepid2_HGRAD_TET_C2_FEM";
250 }
251
261 getSubCellRefBasis(const ordinal_type subCellDim, const ordinal_type subCellOrd) const override{
262 if(subCellDim == 1) {
264 } else if(subCellDim == 2) {
266 }
267
268 INTREPID2_TEST_FOR_EXCEPTION(true,std::invalid_argument,"Input parameters out of bounds");
269 }
270
275 };
276}// namespace Intrepid2
277
279
280#endif
Header file for the abstract base class Intrepid2::Basis.
void getValues_HGRAD_Args(const outputValueViewType outputValues, const inputPointViewType inputPoints, const EOperator operatorType, const shards::CellTopology cellTopo, const ordinal_type basisCard)
Runtime check of the arguments for the getValues method in an HGRAD-conforming FEM basis....
Teuchos::RCP< Basis< DeviceType, OutputType, PointType > > BasisPtr
Basis Pointer.
Definition file for FEM basis functions of degree 2 for H(grad) functions on TET cells.
Header file for the Intrepid2::Basis_HGRAD_TRI_C2_FEM class.
Implementation of the default H(grad)-compatible FEM basis of degree 2 on Line cell.
virtual void getDofCoords(ScalarViewType dofCoords) const override
Returns spatial locations (coordinates) of degrees of freedom on the reference cell.
virtual void getValues(OutputViewType outputValues, const PointViewType inputPoints, const EOperator operatorType=OPERATOR_VALUE) const override
Evaluation of a FEM basis on a reference cell.
virtual void getDofCoeffs(ScalarViewType dofCoeffs) const override
Coefficients for computing degrees of freedom for Lagrangian basis If P is an element of the space sp...
virtual const char * getName() const override
Returns basis name.
BasisPtr< typename Kokkos::HostSpace::device_type, outputValueType, pointValueType > getHostBasis() const override
Creates and returns a Basis object whose DeviceType template argument is Kokkos::HostSpace::device_ty...
BasisPtr< DeviceType, outputValueType, pointValueType > getSubCellRefBasis(const ordinal_type subCellDim, const ordinal_type subCellOrd) const override
returns the basis associated to a subCell.
Implementation of the default H(grad)-compatible FEM basis of degree 2 on Triangle cell.
Kokkos::DynRankView< PointValueType, Kokkos::LayoutStride, DeviceType > PointViewType
View type for input points.
Kokkos::DynRankView< OutputValueType, Kokkos::LayoutStride, DeviceType > OutputViewType
View type for basis value output.
Kokkos::View< ordinal_type ***, typename ExecutionSpace::array_layout, Kokkos::HostSpace > OrdinalTypeArray3DHost
View type for 3d host array.
Kokkos::DynRankView< scalarType, Kokkos::LayoutStride, DeviceType > ScalarViewType
View type for scalars.
Kokkos::DynRankView< scalarType, DeviceType > dofCoords_
Kokkos::View< ordinal_type **, typename ExecutionSpace::array_layout, Kokkos::HostSpace > OrdinalTypeArray2DHost
View type for 2d host array.
shards::CellTopology getBaseCellTopology() const
Kokkos::View< ordinal_type *, typename ExecutionSpace::array_layout, Kokkos::HostSpace > OrdinalTypeArray1DHost
View type for 1d host array.
See Intrepid2::Basis_HGRAD_TET_C2_FEM.