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180 lines
6.3 KiB
C++
180 lines
6.3 KiB
C++
// This file is part of Eigen, a lightweight C++ template library
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// for linear algebra. Eigen itself is part of the KDE project.
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//
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// Copyright (C) 2008 Gael Guennebaud <g.gael@free.fr>
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//
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// Eigen is free software; you can redistribute it and/or
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// modify it under the terms of the GNU Lesser General Public
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// License as published by the Free Software Foundation; either
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// version 3 of the License, or (at your option) any later version.
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//
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// Alternatively, you can redistribute it and/or
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// modify it under the terms of the GNU General Public License as
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// published by the Free Software Foundation; either version 2 of
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// the License, or (at your option) any later version.
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//
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// Eigen is distributed in the hope that it will be useful, but WITHOUT ANY
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// WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS
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// FOR A PARTICULAR PURPOSE. See the GNU Lesser General Public License or the
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// GNU General Public License for more details.
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//
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// You should have received a copy of the GNU Lesser General Public
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// License and a copy of the GNU General Public License along with
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// Eigen. If not, see <http://www.gnu.org/licenses/>.
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// no include guard, we'll include this twice from All.h from Eigen2Support, and it's internal anyway
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/** \geometry_module \ingroup Geometry_Module
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*
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* \class Scaling
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*
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* \brief Represents a possibly non uniform scaling transformation
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*
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* \param _Scalar the scalar type, i.e., the type of the coefficients.
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* \param _Dim the dimension of the space, can be a compile time value or Dynamic
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*
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* \note This class is not aimed to be used to store a scaling transformation,
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* but rather to make easier the constructions and updates of Transform objects.
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*
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* \sa class Translation, class Transform
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*/
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template<typename _Scalar, int _Dim>
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class Scaling
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{
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public:
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EIGEN_MAKE_ALIGNED_OPERATOR_NEW_IF_VECTORIZABLE_FIXED_SIZE(_Scalar,_Dim)
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/** dimension of the space */
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enum { Dim = _Dim };
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/** the scalar type of the coefficients */
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typedef _Scalar Scalar;
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/** corresponding vector type */
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typedef Matrix<Scalar,Dim,1> VectorType;
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/** corresponding linear transformation matrix type */
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typedef Matrix<Scalar,Dim,Dim> LinearMatrixType;
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/** corresponding translation type */
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typedef Translation<Scalar,Dim> TranslationType;
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/** corresponding affine transformation type */
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typedef Transform<Scalar,Dim> TransformType;
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protected:
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VectorType m_coeffs;
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public:
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/** Default constructor without initialization. */
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Scaling() {}
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/** Constructs and initialize a uniform scaling transformation */
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explicit inline Scaling(const Scalar& s) { m_coeffs.setConstant(s); }
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/** 2D only */
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inline Scaling(const Scalar& sx, const Scalar& sy)
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{
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ei_assert(Dim==2);
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m_coeffs.x() = sx;
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m_coeffs.y() = sy;
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}
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/** 3D only */
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inline Scaling(const Scalar& sx, const Scalar& sy, const Scalar& sz)
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{
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ei_assert(Dim==3);
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m_coeffs.x() = sx;
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m_coeffs.y() = sy;
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m_coeffs.z() = sz;
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}
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/** Constructs and initialize the scaling transformation from a vector of scaling coefficients */
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explicit inline Scaling(const VectorType& coeffs) : m_coeffs(coeffs) {}
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const VectorType& coeffs() const { return m_coeffs; }
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VectorType& coeffs() { return m_coeffs; }
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/** Concatenates two scaling */
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inline Scaling operator* (const Scaling& other) const
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{ return Scaling(coeffs().cwise() * other.coeffs()); }
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/** Concatenates a scaling and a translation */
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inline TransformType operator* (const TranslationType& t) const;
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/** Concatenates a scaling and an affine transformation */
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inline TransformType operator* (const TransformType& t) const;
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/** Concatenates a scaling and a linear transformation matrix */
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// TODO returns an expression
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inline LinearMatrixType operator* (const LinearMatrixType& other) const
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{ return coeffs().asDiagonal() * other; }
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/** Concatenates a linear transformation matrix and a scaling */
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// TODO returns an expression
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friend inline LinearMatrixType operator* (const LinearMatrixType& other, const Scaling& s)
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{ return other * s.coeffs().asDiagonal(); }
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template<typename Derived>
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inline LinearMatrixType operator*(const RotationBase<Derived,Dim>& r) const
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{ return *this * r.toRotationMatrix(); }
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/** Applies scaling to vector */
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inline VectorType operator* (const VectorType& other) const
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{ return coeffs().asDiagonal() * other; }
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/** \returns the inverse scaling */
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inline Scaling inverse() const
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{ return Scaling(coeffs().cwise().inverse()); }
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inline Scaling& operator=(const Scaling& other)
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{
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m_coeffs = other.m_coeffs;
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return *this;
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}
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/** \returns \c *this with scalar type casted to \a NewScalarType
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*
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* Note that if \a NewScalarType is equal to the current scalar type of \c *this
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* then this function smartly returns a const reference to \c *this.
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*/
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template<typename NewScalarType>
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inline typename internal::cast_return_type<Scaling,Scaling<NewScalarType,Dim> >::type cast() const
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{ return typename internal::cast_return_type<Scaling,Scaling<NewScalarType,Dim> >::type(*this); }
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/** Copy constructor with scalar type conversion */
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template<typename OtherScalarType>
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inline explicit Scaling(const Scaling<OtherScalarType,Dim>& other)
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{ m_coeffs = other.coeffs().template cast<Scalar>(); }
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/** \returns \c true if \c *this is approximately equal to \a other, within the precision
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* determined by \a prec.
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*
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* \sa MatrixBase::isApprox() */
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bool isApprox(const Scaling& other, typename NumTraits<Scalar>::Real prec = precision<Scalar>()) const
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{ return m_coeffs.isApprox(other.m_coeffs, prec); }
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};
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/** \addtogroup Geometry_Module */
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//@{
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typedef Scaling<float, 2> Scaling2f;
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typedef Scaling<double,2> Scaling2d;
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typedef Scaling<float, 3> Scaling3f;
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typedef Scaling<double,3> Scaling3d;
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//@}
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template<typename Scalar, int Dim>
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inline typename Scaling<Scalar,Dim>::TransformType
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Scaling<Scalar,Dim>::operator* (const TranslationType& t) const
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{
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TransformType res;
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res.matrix().setZero();
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res.linear().diagonal() = coeffs();
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res.translation() = m_coeffs.cwise() * t.vector();
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res(Dim,Dim) = Scalar(1);
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return res;
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}
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template<typename Scalar, int Dim>
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inline typename Scaling<Scalar,Dim>::TransformType
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Scaling<Scalar,Dim>::operator* (const TransformType& t) const
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{
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TransformType res = t;
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res.prescale(m_coeffs);
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return res;
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}
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