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// 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) 2009 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_SKEWSYMMETRICMATRIX3_H
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#define EIGEN_SKEWSYMMETRICMATRIX3_H
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2023-08-21 16:25:22 +00:00
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// IWYU pragma: private
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#include "./InternalHeaderCheck.h"
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namespace Eigen {
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/** \class SkewSymmetricBase
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* \ingroup Core_Module
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*
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* \brief Base class for skew symmetric matrices and expressions
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*
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* This is the base class that is inherited by SkewSymmetricMatrix3 and related expression
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* types, which internally use a three vector for storing the entries. SkewSymmetric
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* types always represent square three times three matrices.
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*
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* This implementations follows class DiagonalMatrix
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*
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* \tparam Derived is the derived type, a SkewSymmetricMatrix3 or SkewSymmetricWrapper.
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*
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* \sa class SkewSymmetricMatrix3, class SkewSymmetricWrapper
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*/
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template <typename Derived>
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class SkewSymmetricBase : public EigenBase<Derived> {
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public:
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typedef typename internal::traits<Derived>::SkewSymmetricVectorType SkewSymmetricVectorType;
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typedef typename SkewSymmetricVectorType::Scalar Scalar;
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typedef typename SkewSymmetricVectorType::RealScalar RealScalar;
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typedef typename internal::traits<Derived>::StorageKind StorageKind;
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typedef typename internal::traits<Derived>::StorageIndex StorageIndex;
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enum {
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RowsAtCompileTime = SkewSymmetricVectorType::SizeAtCompileTime,
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ColsAtCompileTime = SkewSymmetricVectorType::SizeAtCompileTime,
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MaxRowsAtCompileTime = SkewSymmetricVectorType::MaxSizeAtCompileTime,
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MaxColsAtCompileTime = SkewSymmetricVectorType::MaxSizeAtCompileTime,
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IsVectorAtCompileTime = 0,
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Flags = NoPreferredStorageOrderBit
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};
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typedef Matrix<Scalar, RowsAtCompileTime, ColsAtCompileTime, 0, MaxRowsAtCompileTime, MaxColsAtCompileTime>
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DenseMatrixType;
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typedef DenseMatrixType DenseType;
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typedef SkewSymmetricMatrix3<Scalar> PlainObject;
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/** \returns a reference to the derived object. */
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EIGEN_DEVICE_FUNC inline const Derived& derived() const { return *static_cast<const Derived*>(this); }
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/** \returns a const reference to the derived object. */
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EIGEN_DEVICE_FUNC inline Derived& derived() { return *static_cast<Derived*>(this); }
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/**
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* Constructs a dense matrix from \c *this. Note, this directly returns a dense matrix type,
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* not an expression.
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* \returns A dense matrix, with its entries set from the the derived object. */
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EIGEN_DEVICE_FUNC DenseMatrixType toDenseMatrix() const { return derived(); }
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/** Determinant vanishes */
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EIGEN_DEVICE_FUNC EIGEN_CONSTEXPR inline Scalar determinant() const { return 0; }
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/** A.transpose() = -A */
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EIGEN_DEVICE_FUNC PlainObject transpose() const { return (-vector()).asSkewSymmetric(); }
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/** \returns the exponential of this matrix using Rodrigues’ formula */
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EIGEN_DEVICE_FUNC DenseMatrixType exponential() const {
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DenseMatrixType retVal = DenseMatrixType::Identity();
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const SkewSymmetricVectorType& v = vector();
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if (v.isZero()) {
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return retVal;
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}
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const Scalar norm2 = v.squaredNorm();
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const Scalar norm = numext::sqrt(norm2);
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retVal += ((((1 - numext::cos(norm)) / norm2) * derived()) * derived()) +
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(numext::sin(norm) / norm) * derived().toDenseMatrix();
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return retVal;
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}
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/** \returns a reference to the derived object's vector of coefficients. */
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EIGEN_DEVICE_FUNC inline const SkewSymmetricVectorType& vector() const { return derived().vector(); }
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/** \returns a const reference to the derived object's vector of coefficients. */
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EIGEN_DEVICE_FUNC inline SkewSymmetricVectorType& vector() { return derived().vector(); }
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/** \returns the number of rows. */
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EIGEN_DEVICE_FUNC EIGEN_CONSTEXPR inline Index rows() const { return 3; }
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/** \returns the number of columns. */
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EIGEN_DEVICE_FUNC EIGEN_CONSTEXPR inline Index cols() const { return 3; }
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/** \returns the matrix product of \c *this by the dense matrix, \a matrix */
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template <typename MatrixDerived>
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EIGEN_DEVICE_FUNC Product<Derived, MatrixDerived, LazyProduct> operator*(
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const MatrixBase<MatrixDerived>& matrix) const {
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return Product<Derived, MatrixDerived, LazyProduct>(derived(), matrix.derived());
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}
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/** \returns the matrix product of \c *this by the skew symmetric matrix, \a matrix */
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template <typename MatrixDerived>
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EIGEN_DEVICE_FUNC Product<Derived, MatrixDerived, LazyProduct> operator*(
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const SkewSymmetricBase<MatrixDerived>& matrix) const {
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return Product<Derived, MatrixDerived, LazyProduct>(derived(), matrix.derived());
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}
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template <typename OtherDerived>
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using SkewSymmetricProductReturnType = SkewSymmetricWrapper<const EIGEN_CWISE_BINARY_RETURN_TYPE(
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SkewSymmetricVectorType, typename OtherDerived::SkewSymmetricVectorType, product)>;
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/** \returns the wedge product of \c *this by the skew symmetric matrix \a other
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* A wedge B = AB - BA */
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template <typename OtherDerived>
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EIGEN_DEVICE_FUNC SkewSymmetricProductReturnType<OtherDerived> wedge(
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const SkewSymmetricBase<OtherDerived>& other) const {
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return vector().cross(other.vector()).asSkewSymmetric();
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}
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using SkewSymmetricScaleReturnType =
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SkewSymmetricWrapper<const EIGEN_EXPR_BINARYOP_SCALAR_RETURN_TYPE(SkewSymmetricVectorType, Scalar, product)>;
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/** \returns the product of \c *this by the scalar \a scalar */
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EIGEN_DEVICE_FUNC inline SkewSymmetricScaleReturnType operator*(const Scalar& scalar) const {
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return (vector() * scalar).asSkewSymmetric();
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}
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using ScaleSkewSymmetricReturnType =
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SkewSymmetricWrapper<const EIGEN_SCALAR_BINARYOP_EXPR_RETURN_TYPE(Scalar, SkewSymmetricVectorType, product)>;
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/** \returns the product of a scalar and the skew symmetric matrix \a other */
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EIGEN_DEVICE_FUNC friend inline ScaleSkewSymmetricReturnType operator*(const Scalar& scalar,
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const SkewSymmetricBase& other) {
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return (scalar * other.vector()).asSkewSymmetric();
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}
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template <typename OtherDerived>
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using SkewSymmetricSumReturnType = SkewSymmetricWrapper<const EIGEN_CWISE_BINARY_RETURN_TYPE(
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SkewSymmetricVectorType, typename OtherDerived::SkewSymmetricVectorType, sum)>;
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/** \returns the sum of \c *this and the skew symmetric matrix \a other */
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template <typename OtherDerived>
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EIGEN_DEVICE_FUNC inline SkewSymmetricSumReturnType<OtherDerived> operator+(
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const SkewSymmetricBase<OtherDerived>& other) const {
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return (vector() + other.vector()).asSkewSymmetric();
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}
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template <typename OtherDerived>
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using SkewSymmetricDifferenceReturnType = SkewSymmetricWrapper<const EIGEN_CWISE_BINARY_RETURN_TYPE(
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SkewSymmetricVectorType, typename OtherDerived::SkewSymmetricVectorType, difference)>;
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/** \returns the difference of \c *this and the skew symmetric matrix \a other */
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template <typename OtherDerived>
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EIGEN_DEVICE_FUNC inline SkewSymmetricDifferenceReturnType<OtherDerived> operator-(
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const SkewSymmetricBase<OtherDerived>& other) const {
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return (vector() - other.vector()).asSkewSymmetric();
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}
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};
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/** \class SkewSymmetricMatrix3
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* \ingroup Core_Module
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*
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* \brief Represents a 3x3 skew symmetric matrix with its storage
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*
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* \tparam Scalar_ the type of coefficients
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*
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* \sa class SkewSymmetricBase, class SkewSymmetricWrapper
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*/
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namespace internal {
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template <typename Scalar_>
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struct traits<SkewSymmetricMatrix3<Scalar_>> : traits<Matrix<Scalar_, 3, 3, 0, 3, 3>> {
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typedef Matrix<Scalar_, 3, 1, 0, 3, 1> SkewSymmetricVectorType;
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typedef SkewSymmetricShape StorageKind;
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enum { Flags = LvalueBit | NoPreferredStorageOrderBit | NestByRefBit };
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};
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} // namespace internal
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template <typename Scalar_>
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class SkewSymmetricMatrix3 : public SkewSymmetricBase<SkewSymmetricMatrix3<Scalar_>> {
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public:
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#ifndef EIGEN_PARSED_BY_DOXYGEN
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typedef typename internal::traits<SkewSymmetricMatrix3>::SkewSymmetricVectorType SkewSymmetricVectorType;
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typedef const SkewSymmetricMatrix3& Nested;
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typedef Scalar_ Scalar;
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typedef typename internal::traits<SkewSymmetricMatrix3>::StorageKind StorageKind;
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typedef typename internal::traits<SkewSymmetricMatrix3>::StorageIndex StorageIndex;
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#endif
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protected:
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SkewSymmetricVectorType m_vector;
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public:
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/** const version of vector(). */
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EIGEN_DEVICE_FUNC inline const SkewSymmetricVectorType& vector() const { return m_vector; }
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/** \returns a reference to the stored vector of coefficients. */
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EIGEN_DEVICE_FUNC inline SkewSymmetricVectorType& vector() { return m_vector; }
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/** Default constructor without initialization */
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EIGEN_DEVICE_FUNC inline SkewSymmetricMatrix3() {}
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/** Constructor from three scalars */
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EIGEN_DEVICE_FUNC inline SkewSymmetricMatrix3(const Scalar& x, const Scalar& y, const Scalar& z)
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: m_vector(x, y, z) {}
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/** \brief Constructs a SkewSymmetricMatrix3 from an r-value vector type */
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EIGEN_DEVICE_FUNC explicit inline SkewSymmetricMatrix3(SkewSymmetricVectorType&& vec) : m_vector(std::move(vec)) {}
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/** generic constructor from expression of the coefficients */
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template <typename OtherDerived>
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EIGEN_DEVICE_FUNC explicit inline SkewSymmetricMatrix3(const MatrixBase<OtherDerived>& other) : m_vector(other) {}
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/** Copy constructor. */
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template <typename OtherDerived>
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EIGEN_DEVICE_FUNC inline SkewSymmetricMatrix3(const SkewSymmetricBase<OtherDerived>& other)
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: m_vector(other.vector()) {}
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#ifndef EIGEN_PARSED_BY_DOXYGEN
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/** copy constructor. prevent a default copy constructor from hiding the other templated constructor */
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inline SkewSymmetricMatrix3(const SkewSymmetricMatrix3& other) : m_vector(other.vector()) {}
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#endif
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/** Copy operator. */
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template <typename OtherDerived>
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EIGEN_DEVICE_FUNC SkewSymmetricMatrix3& operator=(const SkewSymmetricBase<OtherDerived>& other) {
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m_vector = other.vector();
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return *this;
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}
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#ifndef EIGEN_PARSED_BY_DOXYGEN
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/** This is a special case of the templated operator=. Its purpose is to
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* prevent a default operator= from hiding the templated operator=.
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*/
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EIGEN_DEVICE_FUNC SkewSymmetricMatrix3& operator=(const SkewSymmetricMatrix3& other) {
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m_vector = other.vector();
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return *this;
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}
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#endif
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typedef SkewSymmetricWrapper<const CwiseNullaryOp<internal::scalar_constant_op<Scalar>, SkewSymmetricVectorType>>
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InitializeReturnType;
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/** Initializes a skew symmetric matrix with coefficients set to zero */
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EIGEN_DEVICE_FUNC static InitializeReturnType Zero() { return SkewSymmetricVectorType::Zero().asSkewSymmetric(); }
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/** Sets all coefficients to zero. */
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EIGEN_DEVICE_FUNC inline void setZero() { m_vector.setZero(); }
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};
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/** \class SkewSymmetricWrapper
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* \ingroup Core_Module
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*
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* \brief Expression of a skew symmetric matrix
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*
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* \tparam SkewSymmetricVectorType_ the type of the vector of coefficients
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*
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* This class is an expression of a skew symmetric matrix, but not storing its own vector of coefficients,
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* instead wrapping an existing vector expression. It is the return type of MatrixBase::asSkewSymmetric()
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* and most of the time this is the only way that it is used.
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*
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* \sa class SkewSymmetricMatrix3, class SkewSymmetricBase, MatrixBase::asSkewSymmetric()
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*/
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namespace internal {
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template <typename SkewSymmetricVectorType_>
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struct traits<SkewSymmetricWrapper<SkewSymmetricVectorType_>> {
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typedef SkewSymmetricVectorType_ SkewSymmetricVectorType;
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typedef typename SkewSymmetricVectorType::Scalar Scalar;
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typedef typename SkewSymmetricVectorType::StorageIndex StorageIndex;
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typedef SkewSymmetricShape StorageKind;
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typedef typename traits<SkewSymmetricVectorType>::XprKind XprKind;
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enum {
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RowsAtCompileTime = SkewSymmetricVectorType::SizeAtCompileTime,
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ColsAtCompileTime = SkewSymmetricVectorType::SizeAtCompileTime,
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MaxRowsAtCompileTime = SkewSymmetricVectorType::MaxSizeAtCompileTime,
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MaxColsAtCompileTime = SkewSymmetricVectorType::MaxSizeAtCompileTime,
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Flags = (traits<SkewSymmetricVectorType>::Flags & LvalueBit) | NoPreferredStorageOrderBit
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};
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};
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} // namespace internal
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2023-11-29 11:12:48 +00:00
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2022-09-08 20:44:40 +00:00
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template <typename SkewSymmetricVectorType_>
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class SkewSymmetricWrapper : public SkewSymmetricBase<SkewSymmetricWrapper<SkewSymmetricVectorType_>>,
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internal::no_assignment_operator {
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2023-11-29 11:12:48 +00:00
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public:
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2022-09-08 20:44:40 +00:00
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#ifndef EIGEN_PARSED_BY_DOXYGEN
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typedef SkewSymmetricVectorType_ SkewSymmetricVectorType;
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typedef SkewSymmetricWrapper Nested;
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2023-11-29 11:12:48 +00:00
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#endif
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2022-09-08 20:44:40 +00:00
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/** Constructor from expression of coefficients to wrap. */
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EIGEN_DEVICE_FUNC explicit inline SkewSymmetricWrapper(SkewSymmetricVectorType& a_vector) : m_vector(a_vector) {}
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2023-11-29 11:12:48 +00:00
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2022-09-08 20:44:40 +00:00
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/** \returns a const reference to the wrapped expression of coefficients. */
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EIGEN_DEVICE_FUNC const SkewSymmetricVectorType& vector() const { return m_vector; }
|
2023-11-29 11:12:48 +00:00
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2022-09-08 20:44:40 +00:00
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protected:
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typename SkewSymmetricVectorType::Nested m_vector;
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};
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/** \returns a pseudo-expression of a skew symmetric matrix with *this as vector of coefficients
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*
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* \only_for_vectors
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*
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* \sa class SkewSymmetricWrapper, class SkewSymmetricMatrix3, vector(), isSkewSymmetric()
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**/
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|
template <typename Derived>
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EIGEN_DEVICE_FUNC inline const SkewSymmetricWrapper<const Derived> MatrixBase<Derived>::asSkewSymmetric() const {
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|
return SkewSymmetricWrapper<const Derived>(derived());
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}
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/** \returns true if *this is approximately equal to a skew symmetric matrix,
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|
* within the precision given by \a prec.
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|
*/
|
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|
template <typename Derived>
|
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|
|
bool MatrixBase<Derived>::isSkewSymmetric(const RealScalar& prec) const {
|
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|
|
if (cols() != rows()) return false;
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|
|
return (this->transpose() + *this).isZero(prec);
|
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|
|
}
|
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|
/** \returns the matrix product of \c *this by the skew symmetric matrix \skew.
|
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|
|
*/
|
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|
|
template <typename Derived>
|
|
|
|
|
|
template <typename SkewDerived>
|
|
|
|
|
|
EIGEN_DEVICE_FUNC inline const Product<Derived, SkewDerived, LazyProduct> MatrixBase<Derived>::operator*(
|
|
|
|
|
|
const SkewSymmetricBase<SkewDerived>& skew) const {
|
|
|
|
|
|
return Product<Derived, SkewDerived, LazyProduct>(derived(), skew.derived());
|
|
|
|
|
|
}
|
|
|
|
|
|
|
|
|
|
|
|
namespace internal {
|
|
|
|
|
|
|
|
|
|
|
|
template <>
|
|
|
|
|
|
struct storage_kind_to_shape<SkewSymmetricShape> {
|
|
|
|
|
|
typedef SkewSymmetricShape Shape;
|
|
|
|
|
|
};
|
|
|
|
|
|
|
|
|
|
|
|
struct SkewSymmetric2Dense {};
|
|
|
|
|
|
|
|
|
|
|
|
template <>
|
|
|
|
|
|
struct AssignmentKind<DenseShape, SkewSymmetricShape> {
|
|
|
|
|
|
typedef SkewSymmetric2Dense Kind;
|
|
|
|
|
|
};
|
|
|
|
|
|
|
|
|
|
|
|
// SkewSymmetric matrix to Dense assignment
|
|
|
|
|
|
template <typename DstXprType, typename SrcXprType, typename Functor>
|
|
|
|
|
|
struct Assignment<DstXprType, SrcXprType, Functor, SkewSymmetric2Dense> {
|
2023-02-06 22:52:39 +00:00
|
|
|
|
EIGEN_DEVICE_FUNC static void run(
|
2022-09-08 20:44:40 +00:00
|
|
|
|
DstXprType& dst, const SrcXprType& src,
|
|
|
|
|
|
const internal::assign_op<typename DstXprType::Scalar, typename SrcXprType::Scalar>& /*func*/) {
|
|
|
|
|
|
if ((dst.rows() != 3) || (dst.cols() != 3)) {
|
|
|
|
|
|
dst.resize(3, 3);
|
|
|
|
|
|
}
|
|
|
|
|
|
dst.diagonal().setZero();
|
|
|
|
|
|
const typename SrcXprType::SkewSymmetricVectorType v = src.vector();
|
|
|
|
|
|
dst(0, 1) = -v(2);
|
|
|
|
|
|
dst(1, 0) = v(2);
|
|
|
|
|
|
dst(0, 2) = v(1);
|
|
|
|
|
|
dst(2, 0) = -v(1);
|
|
|
|
|
|
dst(1, 2) = -v(0);
|
|
|
|
|
|
dst(2, 1) = v(0);
|
|
|
|
|
|
}
|
2023-02-06 22:52:39 +00:00
|
|
|
|
EIGEN_DEVICE_FUNC static void run(
|
2022-09-08 20:44:40 +00:00
|
|
|
|
DstXprType& dst, const SrcXprType& src,
|
|
|
|
|
|
const internal::add_assign_op<typename DstXprType::Scalar, typename SrcXprType::Scalar>& /*func*/) {
|
|
|
|
|
|
dst.vector() += src.vector();
|
|
|
|
|
|
}
|
2023-02-06 22:52:39 +00:00
|
|
|
|
|
|
|
|
|
|
EIGEN_DEVICE_FUNC static void run(
|
2022-09-08 20:44:40 +00:00
|
|
|
|
DstXprType& dst, const SrcXprType& src,
|
|
|
|
|
|
const internal::sub_assign_op<typename DstXprType::Scalar, typename SrcXprType::Scalar>& /*func*/) {
|
|
|
|
|
|
dst.vector() -= src.vector();
|
|
|
|
|
|
}
|
|
|
|
|
|
};
|
|
|
|
|
|
|
|
|
|
|
|
} // namespace internal
|
|
|
|
|
|
|
|
|
|
|
|
} // end namespace Eigen
|
|
|
|
|
|
|
|
|
|
|
|
#endif // EIGEN_SKEWSYMMETRICMATRIX3_H
|