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212 lines
9.7 KiB
C++
212 lines
9.7 KiB
C++
// This file is part of Eigen, a lightweight C++ template library
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// for linear algebra.
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//
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// Copyright (C) 2014 Benoit Steiner <benoit.steiner.goog@gmail.com>
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//
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// This Source Code Form is subject to the terms of the Mozilla
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// Public License v. 2.0. If a copy of the MPL was not distributed
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// with this file, You can obtain one at http://mozilla.org/MPL/2.0/.
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#ifndef EIGEN_CXX11_TENSOR_TENSOR_ASSIGN_H
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#define EIGEN_CXX11_TENSOR_TENSOR_ASSIGN_H
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// IWYU pragma: private
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#include "./InternalHeaderCheck.h"
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namespace Eigen {
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namespace internal {
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template <typename LhsXprType, typename RhsXprType>
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struct traits<TensorAssignOp<LhsXprType, RhsXprType> > {
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typedef typename LhsXprType::Scalar Scalar;
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typedef typename traits<LhsXprType>::StorageKind StorageKind;
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typedef
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typename promote_index_type<typename traits<LhsXprType>::Index, typename traits<RhsXprType>::Index>::type Index;
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typedef typename LhsXprType::Nested LhsNested;
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typedef typename RhsXprType::Nested RhsNested;
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typedef std::remove_reference_t<LhsNested> LhsNested_;
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typedef std::remove_reference_t<RhsNested> RhsNested_;
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static constexpr std::size_t NumDimensions = internal::traits<LhsXprType>::NumDimensions;
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static constexpr int Layout = internal::traits<LhsXprType>::Layout;
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typedef typename traits<LhsXprType>::PointerType PointerType;
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enum { Flags = 0 };
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};
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template <typename LhsXprType, typename RhsXprType>
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struct eval<TensorAssignOp<LhsXprType, RhsXprType>, Eigen::Dense> {
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typedef const TensorAssignOp<LhsXprType, RhsXprType>& type;
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};
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template <typename LhsXprType, typename RhsXprType>
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struct nested<TensorAssignOp<LhsXprType, RhsXprType>, 1, typename eval<TensorAssignOp<LhsXprType, RhsXprType> >::type> {
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typedef TensorAssignOp<LhsXprType, RhsXprType> type;
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};
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} // end namespace internal
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/** The tensor assignment class.
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* \ingroup CXX11_Tensor_Module
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*
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* This class is represents the assignment of the values resulting from the evaluation of
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* the rhs expression to the memory locations denoted by the lhs expression.
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*/
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template <typename LhsXprType, typename RhsXprType>
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class TensorAssignOp : public TensorBase<TensorAssignOp<LhsXprType, RhsXprType> > {
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public:
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typedef typename Eigen::internal::traits<TensorAssignOp>::Scalar Scalar;
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typedef typename Eigen::NumTraits<Scalar>::Real RealScalar;
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typedef typename LhsXprType::CoeffReturnType CoeffReturnType;
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typedef typename Eigen::internal::nested<TensorAssignOp>::type Nested;
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typedef typename Eigen::internal::traits<TensorAssignOp>::StorageKind StorageKind;
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typedef typename Eigen::internal::traits<TensorAssignOp>::Index Index;
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static constexpr int NumDims = Eigen::internal::traits<TensorAssignOp>::NumDimensions;
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EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE TensorAssignOp(LhsXprType& lhs, const RhsXprType& rhs)
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: m_lhs_xpr(lhs), m_rhs_xpr(rhs) {}
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/** \returns the nested expressions */
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EIGEN_DEVICE_FUNC internal::remove_all_t<typename LhsXprType::Nested>& lhsExpression() const {
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return *((internal::remove_all_t<typename LhsXprType::Nested>*)&m_lhs_xpr);
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}
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EIGEN_DEVICE_FUNC const internal::remove_all_t<typename RhsXprType::Nested>& rhsExpression() const {
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return m_rhs_xpr;
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}
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protected:
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internal::remove_all_t<typename LhsXprType::Nested>& m_lhs_xpr;
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const internal::remove_all_t<typename RhsXprType::Nested>& m_rhs_xpr;
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};
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template <typename LeftArgType, typename RightArgType, typename Device>
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struct TensorEvaluator<const TensorAssignOp<LeftArgType, RightArgType>, Device> {
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typedef TensorAssignOp<LeftArgType, RightArgType> XprType;
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typedef typename XprType::Index Index;
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typedef typename XprType::Scalar Scalar;
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typedef typename XprType::CoeffReturnType CoeffReturnType;
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typedef typename PacketType<CoeffReturnType, Device>::type PacketReturnType;
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typedef typename TensorEvaluator<RightArgType, Device>::Dimensions Dimensions;
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typedef StorageMemory<CoeffReturnType, Device> Storage;
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typedef typename Storage::Type EvaluatorPointerType;
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static constexpr int PacketSize = PacketType<CoeffReturnType, Device>::size;
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static constexpr int NumDims = XprType::NumDims;
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static constexpr int Layout = TensorEvaluator<LeftArgType, Device>::Layout;
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enum {
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IsAligned =
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int(TensorEvaluator<LeftArgType, Device>::IsAligned) & int(TensorEvaluator<RightArgType, Device>::IsAligned),
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PacketAccess = int(TensorEvaluator<LeftArgType, Device>::PacketAccess) &
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int(TensorEvaluator<RightArgType, Device>::PacketAccess),
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BlockAccess = int(TensorEvaluator<LeftArgType, Device>::BlockAccess) &
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int(TensorEvaluator<RightArgType, Device>::BlockAccess),
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PreferBlockAccess = int(TensorEvaluator<LeftArgType, Device>::PreferBlockAccess) |
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int(TensorEvaluator<RightArgType, Device>::PreferBlockAccess),
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RawAccess = TensorEvaluator<LeftArgType, Device>::RawAccess
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};
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//===- Tensor block evaluation strategy (see TensorBlock.h) -------------===//
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typedef internal::TensorBlockDescriptor<NumDims, Index> TensorBlockDesc;
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typedef internal::TensorBlockScratchAllocator<Device> TensorBlockScratch;
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typedef typename TensorEvaluator<const RightArgType, Device>::TensorBlock RightTensorBlock;
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//===--------------------------------------------------------------------===//
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TensorEvaluator(const XprType& op, const Device& device)
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: m_leftImpl(op.lhsExpression(), device), m_rightImpl(op.rhsExpression(), device) {
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EIGEN_STATIC_ASSERT((static_cast<int>(TensorEvaluator<LeftArgType, Device>::Layout) ==
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static_cast<int>(TensorEvaluator<RightArgType, Device>::Layout)),
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YOU_MADE_A_PROGRAMMING_MISTAKE);
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}
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EIGEN_DEVICE_FUNC const Dimensions& dimensions() const {
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// The dimensions of the lhs and the rhs tensors should be equal to prevent
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// overflows and ensure the result is fully initialized.
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// TODO: use left impl instead if right impl dimensions are known at compile time.
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return m_rightImpl.dimensions();
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}
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EIGEN_STRONG_INLINE bool evalSubExprsIfNeeded(EvaluatorPointerType) {
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eigen_assert(dimensions_match(m_leftImpl.dimensions(), m_rightImpl.dimensions()));
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m_leftImpl.evalSubExprsIfNeeded(NULL);
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// If the lhs provides raw access to its storage area (i.e. if m_leftImpl.data() returns a non
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// null value), attempt to evaluate the rhs expression in place. Returns true iff in place
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// evaluation isn't supported and the caller still needs to manually assign the values generated
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// by the rhs to the lhs.
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return m_rightImpl.evalSubExprsIfNeeded(m_leftImpl.data());
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}
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#ifdef EIGEN_USE_THREADS
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template <typename EvalSubExprsCallback>
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EIGEN_STRONG_INLINE void evalSubExprsIfNeededAsync(EvaluatorPointerType, EvalSubExprsCallback done) {
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m_leftImpl.evalSubExprsIfNeededAsync(nullptr, [this, done](bool) {
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m_rightImpl.evalSubExprsIfNeededAsync(m_leftImpl.data(), [done](bool need_assign) { done(need_assign); });
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});
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}
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#endif // EIGEN_USE_THREADS
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EIGEN_STRONG_INLINE void cleanup() {
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m_leftImpl.cleanup();
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m_rightImpl.cleanup();
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}
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EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE void evalScalar(Index i) const {
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m_leftImpl.coeffRef(i) = m_rightImpl.coeff(i);
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}
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EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE void evalPacket(Index i) const {
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const int LhsStoreMode = TensorEvaluator<LeftArgType, Device>::IsAligned ? Aligned : Unaligned;
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const int RhsLoadMode = TensorEvaluator<RightArgType, Device>::IsAligned ? Aligned : Unaligned;
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m_leftImpl.template writePacket<LhsStoreMode>(i, m_rightImpl.template packet<RhsLoadMode>(i));
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}
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EIGEN_DEVICE_FUNC CoeffReturnType coeff(Index index) const { return m_leftImpl.coeff(index); }
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template <int LoadMode>
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EIGEN_DEVICE_FUNC PacketReturnType packet(Index index) const {
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return m_leftImpl.template packet<LoadMode>(index);
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}
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EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE TensorOpCost costPerCoeff(bool vectorized) const {
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// We assume that evalPacket or evalScalar is called to perform the
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// assignment and account for the cost of the write here, but reduce left
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// cost by one load because we are using m_leftImpl.coeffRef.
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TensorOpCost left = m_leftImpl.costPerCoeff(vectorized);
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return m_rightImpl.costPerCoeff(vectorized) +
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TensorOpCost(numext::maxi(0.0, left.bytes_loaded() - sizeof(CoeffReturnType)), left.bytes_stored(),
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left.compute_cycles()) +
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TensorOpCost(0, sizeof(CoeffReturnType), 0, vectorized, PacketSize);
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}
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EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE internal::TensorBlockResourceRequirements getResourceRequirements() const {
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return internal::TensorBlockResourceRequirements::merge(m_leftImpl.getResourceRequirements(),
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m_rightImpl.getResourceRequirements());
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}
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EIGEN_DEVICE_FUNC EIGEN_STRONG_INLINE void evalBlock(TensorBlockDesc& desc, TensorBlockScratch& scratch) {
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if (TensorEvaluator<LeftArgType, Device>::RawAccess && m_leftImpl.data() != NULL) {
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// If destination has raw data access, we pass it as a potential
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// destination for a block descriptor evaluation.
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desc.template AddDestinationBuffer<Layout>(
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/*dst_base=*/m_leftImpl.data() + desc.offset(),
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/*dst_strides=*/internal::strides<Layout>(m_leftImpl.dimensions()));
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}
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RightTensorBlock block = m_rightImpl.block(desc, scratch, /*root_of_expr_ast=*/true);
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// If block was evaluated into a destination, there is no need to do assignment.
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if (block.kind() != internal::TensorBlockKind::kMaterializedInOutput) {
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m_leftImpl.writeBlock(desc, block);
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}
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block.cleanup();
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}
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EIGEN_DEVICE_FUNC EvaluatorPointerType data() const { return m_leftImpl.data(); }
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private:
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TensorEvaluator<LeftArgType, Device> m_leftImpl;
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TensorEvaluator<RightArgType, Device> m_rightImpl;
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};
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} // namespace Eigen
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#endif // EIGEN_CXX11_TENSOR_TENSOR_ASSIGN_H
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