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131 lines
5.8 KiB
C++
131 lines
5.8 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) 2008 Gael Guennebaud <gael.guennebaud@inria.fr>
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// Copyright (C) 2007-2009 Benoit Jacob <jacob.benoit.1@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_DIAGONALPRODUCT_H
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#define EIGEN_DIAGONALPRODUCT_H
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namespace Eigen {
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namespace internal {
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template<typename MatrixType, typename DiagonalType, int ProductOrder>
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struct traits<DiagonalProduct<MatrixType, DiagonalType, ProductOrder> >
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: traits<MatrixType>
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{
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typedef typename scalar_product_traits<typename MatrixType::Scalar, typename DiagonalType::Scalar>::ReturnType Scalar;
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enum {
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RowsAtCompileTime = MatrixType::RowsAtCompileTime,
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ColsAtCompileTime = MatrixType::ColsAtCompileTime,
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MaxRowsAtCompileTime = MatrixType::MaxRowsAtCompileTime,
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MaxColsAtCompileTime = MatrixType::MaxColsAtCompileTime,
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_StorageOrder = MatrixType::Flags & RowMajorBit ? RowMajor : ColMajor,
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_ScalarAccessOnDiag = !((int(_StorageOrder) == ColMajor && int(ProductOrder) == OnTheLeft)
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||(int(_StorageOrder) == RowMajor && int(ProductOrder) == OnTheRight)),
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_SameTypes = is_same<typename MatrixType::Scalar, typename DiagonalType::Scalar>::value,
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// FIXME currently we need same types, but in the future the next rule should be the one
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//_Vectorizable = bool(int(MatrixType::Flags)&PacketAccessBit) && ((!_PacketOnDiag) || (_SameTypes && bool(int(DiagonalType::DiagonalVectorType::Flags)&PacketAccessBit))),
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_Vectorizable = bool(int(MatrixType::Flags)&PacketAccessBit) && _SameTypes && (_ScalarAccessOnDiag || (bool(int(DiagonalType::DiagonalVectorType::Flags)&PacketAccessBit))),
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_LinearAccessMask = (RowsAtCompileTime==1 || ColsAtCompileTime==1) ? LinearAccessBit : 0,
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Flags = ((HereditaryBits|_LinearAccessMask) & (unsigned int)(MatrixType::Flags)) | (_Vectorizable ? PacketAccessBit : 0) | AlignedBit,//(int(MatrixType::Flags)&int(DiagonalType::DiagonalVectorType::Flags)&AlignedBit),
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CoeffReadCost = NumTraits<Scalar>::MulCost + MatrixType::CoeffReadCost + DiagonalType::DiagonalVectorType::CoeffReadCost
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};
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};
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}
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template<typename MatrixType, typename DiagonalType, int ProductOrder>
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class DiagonalProduct : internal::no_assignment_operator,
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public MatrixBase<DiagonalProduct<MatrixType, DiagonalType, ProductOrder> >
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{
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public:
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typedef MatrixBase<DiagonalProduct> Base;
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EIGEN_DENSE_PUBLIC_INTERFACE(DiagonalProduct)
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inline DiagonalProduct(const MatrixType& matrix, const DiagonalType& diagonal)
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: m_matrix(matrix), m_diagonal(diagonal)
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{
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eigen_assert(diagonal.diagonal().size() == (ProductOrder == OnTheLeft ? matrix.rows() : matrix.cols()));
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}
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EIGEN_STRONG_INLINE Index rows() const { return m_matrix.rows(); }
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EIGEN_STRONG_INLINE Index cols() const { return m_matrix.cols(); }
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EIGEN_STRONG_INLINE const Scalar coeff(Index row, Index col) const
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{
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return m_diagonal.diagonal().coeff(ProductOrder == OnTheLeft ? row : col) * m_matrix.coeff(row, col);
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}
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EIGEN_STRONG_INLINE const Scalar coeff(Index idx) const
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{
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enum {
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StorageOrder = int(MatrixType::Flags) & RowMajorBit ? RowMajor : ColMajor
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};
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return coeff(int(StorageOrder)==ColMajor?idx:0,int(StorageOrder)==ColMajor?0:idx);
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}
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template<int LoadMode>
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EIGEN_STRONG_INLINE PacketScalar packet(Index row, Index col) const
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{
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enum {
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StorageOrder = Flags & RowMajorBit ? RowMajor : ColMajor
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};
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const Index indexInDiagonalVector = ProductOrder == OnTheLeft ? row : col;
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return packet_impl<LoadMode>(row,col,indexInDiagonalVector,typename internal::conditional<
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((int(StorageOrder) == RowMajor && int(ProductOrder) == OnTheLeft)
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||(int(StorageOrder) == ColMajor && int(ProductOrder) == OnTheRight)), internal::true_type, internal::false_type>::type());
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}
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template<int LoadMode>
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EIGEN_STRONG_INLINE PacketScalar packet(Index idx) const
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{
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enum {
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StorageOrder = int(MatrixType::Flags) & RowMajorBit ? RowMajor : ColMajor
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};
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return packet<LoadMode>(int(StorageOrder)==ColMajor?idx:0,int(StorageOrder)==ColMajor?0:idx);
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}
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protected:
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template<int LoadMode>
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EIGEN_STRONG_INLINE PacketScalar packet_impl(Index row, Index col, Index id, internal::true_type) const
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{
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return internal::pmul(m_matrix.template packet<LoadMode>(row, col),
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internal::pset1<PacketScalar>(m_diagonal.diagonal().coeff(id)));
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}
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template<int LoadMode>
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EIGEN_STRONG_INLINE PacketScalar packet_impl(Index row, Index col, Index id, internal::false_type) const
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{
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enum {
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InnerSize = (MatrixType::Flags & RowMajorBit) ? MatrixType::ColsAtCompileTime : MatrixType::RowsAtCompileTime,
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DiagonalVectorPacketLoadMode = (LoadMode == Aligned && (((InnerSize%16) == 0) || (int(DiagonalType::DiagonalVectorType::Flags)&AlignedBit)==AlignedBit) ? Aligned : Unaligned)
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};
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return internal::pmul(m_matrix.template packet<LoadMode>(row, col),
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m_diagonal.diagonal().template packet<DiagonalVectorPacketLoadMode>(id));
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}
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typename MatrixType::Nested m_matrix;
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typename DiagonalType::Nested m_diagonal;
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};
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/** \returns the diagonal matrix product of \c *this by the diagonal matrix \a diagonal.
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*/
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template<typename Derived>
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template<typename DiagonalDerived>
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inline const DiagonalProduct<Derived, DiagonalDerived, OnTheRight>
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MatrixBase<Derived>::operator*(const DiagonalBase<DiagonalDerived> &a_diagonal) const
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{
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return DiagonalProduct<Derived, DiagonalDerived, OnTheRight>(derived(), a_diagonal.derived());
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}
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} // end namespace Eigen
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#endif // EIGEN_DIAGONALPRODUCT_H
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