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#ifndef EIGEN_SCALING_H |
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#define EIGEN_SCALING_H |
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namespace Eigen { |
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namespace internal |
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{ |
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template <typename Scalar, int Dim, int Mode> |
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struct uniformscaling_times_affine_returntype |
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{ |
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enum |
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{ |
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NewMode = int(Mode) == int(Isometry) ? Affine : Mode |
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}; |
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typedef Transform <Scalar, Dim, NewMode> type; |
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}; |
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} |
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template<typename _Scalar> |
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class UniformScaling |
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{ |
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public: |
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typedef _Scalar Scalar; |
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protected: |
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Scalar m_factor; |
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public: |
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UniformScaling() {} |
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explicit inline UniformScaling(const Scalar& s) : m_factor(s) {} |
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inline const Scalar& factor() const { return m_factor; } |
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inline Scalar& factor() { return m_factor; } |
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inline UniformScaling operator* (const UniformScaling& other) const |
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{ return UniformScaling(m_factor * other.factor()); } |
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template<int Dim> |
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inline Transform<Scalar,Dim,Affine> operator* (const Translation<Scalar,Dim>& t) const; |
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template<int Dim, int Mode, int Options> |
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inline typename |
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internal::uniformscaling_times_affine_returntype<Scalar,Dim,Mode>::type |
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operator* (const Transform<Scalar, Dim, Mode, Options>& t) const |
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{ |
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typename internal::uniformscaling_times_affine_returntype<Scalar,Dim,Mode>::type res = t; |
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res.prescale(factor()); |
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return res; |
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} |
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template<typename Derived> |
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inline typename Eigen::internal::plain_matrix_type<Derived>::type operator* (const MatrixBase<Derived>& other) const |
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{ return other * m_factor; } |
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template<typename Derived,int Dim> |
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inline Matrix<Scalar,Dim,Dim> operator*(const RotationBase<Derived,Dim>& r) const |
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{ return r.toRotationMatrix() * m_factor; } |
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inline UniformScaling inverse() const |
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{ return UniformScaling(Scalar(1)/m_factor); } |
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template<typename NewScalarType> |
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inline UniformScaling<NewScalarType> cast() const |
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{ return UniformScaling<NewScalarType>(NewScalarType(m_factor)); } |
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template<typename OtherScalarType> |
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inline explicit UniformScaling(const UniformScaling<OtherScalarType>& other) |
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{ m_factor = Scalar(other.factor()); } |
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bool isApprox(const UniformScaling& other, const typename NumTraits<Scalar>::Real& prec = NumTraits<Scalar>::dummy_precision()) const |
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{ return internal::isApprox(m_factor, other.factor(), prec); } |
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}; |
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template<typename Derived,typename Scalar> |
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EIGEN_EXPR_BINARYOP_SCALAR_RETURN_TYPE(Derived,Scalar,product) |
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operator*(const MatrixBase<Derived>& matrix, const UniformScaling<Scalar>& s) |
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{ return matrix.derived() * s.factor(); } |
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inline UniformScaling<float> Scaling(float s) { return UniformScaling<float>(s); } |
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inline UniformScaling<double> Scaling(double s) { return UniformScaling<double>(s); } |
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template<typename RealScalar> |
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inline UniformScaling<std::complex<RealScalar> > Scaling(const std::complex<RealScalar>& s) |
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{ return UniformScaling<std::complex<RealScalar> >(s); } |
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template<typename Scalar> |
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inline DiagonalMatrix<Scalar,2> Scaling(const Scalar& sx, const Scalar& sy) |
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{ return DiagonalMatrix<Scalar,2>(sx, sy); } |
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template<typename Scalar> |
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inline DiagonalMatrix<Scalar,3> Scaling(const Scalar& sx, const Scalar& sy, const Scalar& sz) |
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{ return DiagonalMatrix<Scalar,3>(sx, sy, sz); } |
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template<typename Derived> |
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inline const DiagonalWrapper<const Derived> Scaling(const MatrixBase<Derived>& coeffs) |
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{ return coeffs.asDiagonal(); } |
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typedef DiagonalMatrix<float, 2> AlignedScaling2f; |
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typedef DiagonalMatrix<double,2> AlignedScaling2d; |
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typedef DiagonalMatrix<float, 3> AlignedScaling3f; |
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typedef DiagonalMatrix<double,3> AlignedScaling3d; |
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template<typename Scalar> |
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template<int Dim> |
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inline Transform<Scalar,Dim,Affine> |
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UniformScaling<Scalar>::operator* (const Translation<Scalar,Dim>& t) const |
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{ |
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Transform<Scalar,Dim,Affine> res; |
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res.matrix().setZero(); |
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res.linear().diagonal().fill(factor()); |
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res.translation() = factor() * 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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} |
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#endif |
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