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#ifndef Magnum_Math_Bezier_h
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#define Magnum_Math_Bezier_h
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/*
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This file is part of Magnum.
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Copyright © 2010, 2011, 2012, 2013, 2014, 2015, 2016, 2017
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Vladimír Vondruš <mosra@centrum.cz>
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Copyright © 2016 Ashwin Ravichandran <ashwinravichandran24@gmail.com>
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Permission is hereby granted, free of charge, to any person obtaining a
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copy of this software and associated documentation files (the "Software"),
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to deal in the Software without restriction, including without limitation
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the rights to use, copy, modify, merge, publish, distribute, sublicense,
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and/or sell copies of the Software, and to permit persons to whom the
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Software is furnished to do so, subject to the following conditions:
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The above copyright notice and this permission notice shall be included
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in all copies or substantial portions of the Software.
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THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
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THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
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FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
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DEALINGS IN THE SOFTWARE.
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*/
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/** @file
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* @brief Class @ref Magnum::Math::Bezier, alias @ref Magnum::Math::QuadraticBezier, @ref Magnum::Math::QuadraticBezier2D, @ref Magnum::Math::QuadraticBezier3D, @ref Magnum::Math::CubicBezier, @ref Magnum::Math::CubicBezier2D, @ref Magnum::Math::CubicBezier3D
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*/
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#include <array>
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#include "Magnum/Math/Vector.h"
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namespace Magnum { namespace Math {
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namespace Implementation {
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template<UnsignedInt, UnsignedInt, class, class> struct BezierConverter;
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}
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/**
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@brief Bézier curve
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@tparam order Order of Bézier curve
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@tparam dimensions Dimensions of control points
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@tparam T Underlying data type
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Implementation of M-order N-dimensional
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[Bézier Curve](https://en.wikipedia.org/wiki/B%C3%A9zier_curve).
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@see @ref QuadraticBezier, @ref CubicBezier, @ref QuadraticBezier2D,
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@ref QuadraticBezier3D, @ref CubicBezier2D, @ref CubicBezier3D
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*/
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template<UnsignedInt order, UnsignedInt dimensions, class T> class Bezier {
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static_assert(order != 0, "Bezier cannot have zero order");
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template<UnsignedInt, UnsignedInt, class> friend class Bezier;
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public:
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typedef T Type; /**< @brief Underlying data type */
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enum: UnsignedInt {
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Order = order, /**< Order of Bézier curve */
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Dimensions = dimensions /**< Dimensions of control points */
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};
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/**
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* @brief Default constructor
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*
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* Construct the curve with all control points being zero vectors.
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*/
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constexpr /*implicit*/ Bezier(ZeroInitT = ZeroInit) noexcept
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/** @todoc remove workaround when doxygen is sane */
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#ifndef DOXYGEN_GENERATING_OUTPUT
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: Bezier<order, dimensions, T>{typename Implementation::GenerateSequence<order + 1>::Type{}, ZeroInit}
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#endif
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{}
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/** @brief Construct Bézier without initializing the contents */
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explicit Bezier(NoInitT) noexcept
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/** @todoc remove workaround when doxygen is sane */
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#ifndef DOXYGEN_GENERATING_OUTPUT
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: Bezier<order, dimensions, T>{typename Implementation::GenerateSequence<order + 1>::Type{}, NoInit}
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#endif
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{}
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/** @brief Construct Bézier curve with given array of control points */
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template<typename... U> constexpr Bezier(const Vector<dimensions, T>& first, U... next) noexcept: _data{first, next...} {
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static_assert(sizeof...(U) + 1 == order + 1, "Wrong number of arguments");
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}
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/**
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* @brief Construct Bézier curve from another of different type
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*
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* Performs only default casting on the values, no rounding or
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* anything else.
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*/
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template<class U> constexpr explicit Bezier(const Bezier<order, dimensions, U>& other) noexcept: Bezier{typename Implementation::GenerateSequence<order + 1>::Type(), other} {}
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/** @brief Construct Bézier from external representation */
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template<class U, class V = decltype(Implementation::BezierConverter<order, dimensions, T, U>::from(std::declval<U>()))> constexpr explicit Bezier(const U& other) noexcept: Bezier<order, dimensions, T>{Implementation::BezierConverter<order, dimensions, T, U>::from(other)} {}
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/** @brief Convert Bézier to external representation */
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template<class U, class V = decltype(Implementation::BezierConverter<order, dimensions, T, U>::to(std::declval<Bezier<order, dimensions, T>>()))> constexpr explicit operator U() const {
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return Implementation::BezierConverter<order, dimensions, T, U>::to(*this);
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}
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/** @brief Equality comparison */
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bool operator==(const Bezier<order, dimensions, T>& other) const {
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for(std::size_t i = 0; i != order + 1; ++i)
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if((*this)[i] != other[i]) return false;
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return true;
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}
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/** @brief Non-equality comparison */
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bool operator!=(const Bezier<order, dimensions, T>& other) const {
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return !operator==(other);
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}
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/**
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* @brief Control point access
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*
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* @p i should not be larger than @ref Order.
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*/
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Vector<dimensions, T>& operator[](std::size_t i) { return _data[i]; }
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/* returns const& so [][] operations are also constexpr */
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constexpr const Vector<dimensions, T>& operator[](std::size_t i) const { return _data[i]; } /**< @overload */
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/**
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* @brief Interpolate the curve at given position
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*
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* Returns point on the curve for given interpolation factor. Uses
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* the [De Casteljau's algorithm](https://en.wikipedia.org/wiki/De_Casteljau%27s_algorithm).
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* @see @ref subdivide()
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*/
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Vector<dimensions, T> value(Float t) const {
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return calculateIntermediatePoints(t)[0][order];
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}
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/**
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* @brief Subdivide the curve at given position
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*
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* Returns two Bézier curves following the original curve, split at
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* given interpolation factor. Uses the [De Casteljau's algorithm](https://en.wikipedia.org/wiki/De_Casteljau%27s_algorithm).
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* @see @ref value()
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*/
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std::pair<Bezier<order, dimensions, T>, Bezier<order, dimensions, T>> subdivide(Float t) const {
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const auto iPoints = calculateIntermediatePoints(t);
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Bezier<order, dimensions, T> left, right;
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for(std::size_t i = 0; i <= order; ++i)
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left[i] = iPoints[0][i];
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for(std::size_t i = 0, j = order; i <= order; --j, ++i)
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right[i] = iPoints[i][j];
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return {left, right};
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}
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private:
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/* Implementation for Bezier<order, dimensions, T>::Bezier(const Bezier<order, dimensions, U>&) */
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template<class U, std::size_t ...sequence> constexpr explicit Bezier(Implementation::Sequence<sequence...>, const Bezier<order, dimensions, U>& other) noexcept: _data{Vector<dimensions, T>(other._data[sequence])...} {}
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/* Implementation for Bezier<order, dimensions, T>::Bezier(ZeroInitT) and Bezier<order, dimensions, T>::Bezier(NoInitT) */
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/* MSVC 2015 can't handle {} here */
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template<class U, std::size_t ...sequence> constexpr explicit Bezier(Implementation::Sequence<sequence...>, U): _data{Vector<dimensions, T>((static_cast<void>(sequence), U{typename U::Init{}}))...} {}
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/* Calculates and returns all intermediate points generated when using De Casteljau's algorithm */
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std::array<Bezier<order, dimensions, T>, order + 1> calculateIntermediatePoints(Float t) const {
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std::array<Bezier<order, dimensions, T>, order + 1> iPoints;
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for(std::size_t i = 0; i <= order; ++i) {
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iPoints[i][0] = _data[i];
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}
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for(std::size_t r = 1; r <= order; ++r) {
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for(std::size_t i = 0; i <= order - r; ++i) {
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iPoints[i][r] = (1 - t)*iPoints[i][r - 1] + t*iPoints[i + 1][r - 1];
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}
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}
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return iPoints;
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}
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Vector<dimensions, T> _data[order + 1];
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};
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/**
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@brief Quadratic Bézier curve
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Convenience alternative to @cpp Bezier<2, dimensions, T> @ce. See @ref Bezier
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for more information.
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@see @ref QuadraticBezier2D, @ref QuadraticBezier3D
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*/
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#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Multiple definitions still broken */
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template<UnsignedInt dimensions, class T> using QuadraticBezier = Bezier<2, dimensions, T>;
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#endif
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/**
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@brief Two-dimensional quadratic Bézier curve
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Convenience alternative to @cpp QuadraticBezier<2, T> @ce. See
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@ref QuadraticBezier and @ref Bezier for more information.
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@see @ref QuadraticBezier3D, @ref Magnum::QuadraticBezier2D,
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@ref Magnum::QuadraticBezier2Dd
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*/
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#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Multiple definitions still broken */
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template<class T> using QuadraticBezier2D = QuadraticBezier<2, T>;
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#endif
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/**
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@brief Three-dimensional quadratic Bézier curve
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Convenience alternative to @cpp QuadraticBezier<3, T> @ce. See
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@ref QuadraticBezier and @ref Bezier for more information.
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@see @ref QuadraticBezier2D, @ref Magnum::QuadraticBezier3D,
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@ref Magnum::QuadraticBezier3Dd
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*/
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#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Multiple definitions still broken */
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template<class T> using QuadraticBezier3D = QuadraticBezier<3, T>;
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#endif
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/**
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@brief Cubic Bézier curve
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Convenience alternative to @cpp Bezier<3, dimensions, T> @ce. See @ref Bezier
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for more information.
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@see @ref CubicBezier2D, @ref CubicBezier3D
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*/
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#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Multiple definitions still broken */
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template<UnsignedInt dimensions, class T> using CubicBezier = Bezier<3, dimensions, T>;
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#endif
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/**
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@brief Two-dimensional cubic Bézier curve
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Convenience alternative to @cpp CubicBezier<2, T> @ce. See @ref CubicBezier and
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@ref Bezier for more information.
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@see @ref CubicBezier3D, @ref Magnum::CubicBezier2D,
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@ref Magnum::CubicBezier2Dd
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*/
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#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Multiple definitions still broken */
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template<class T> using CubicBezier2D = CubicBezier<2, T>;
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#endif
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/**
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@brief Three-dimensional cubic Bézier curve
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Convenience alternative to @cpp CubicBezier<3, T> @ce. See @ref CubicBezier and
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@ref Bezier for more information.
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@see @ref CubicBezier2D, @ref Magnum::CubicBezier3D,
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@ref Magnum::CubicBezier3Dd
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*/
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#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Multiple definitions still broken */
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template<class T> using CubicBezier3D = CubicBezier<3, T>;
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#endif
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/** @debugoperator{Magnum::Math::Bezier} */
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template<UnsignedInt order, UnsignedInt dimensions, class T> Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug& debug, const Bezier<order, dimensions, T>& value) {
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debug << "Bezier(" << Corrade::Utility::Debug::nospace;
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for(UnsignedInt o = 0; o != order + 1; ++o) {
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debug << (o ? ", {" : "{") << Corrade::Utility::Debug::nospace << value[o][0] << Corrade::Utility::Debug::nospace;
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for(UnsignedInt i = 1; i != dimensions; ++i)
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debug << "," << value[o][i] << Corrade::Utility::Debug::nospace;
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debug << "}" << Corrade::Utility::Debug::nospace;
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}
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return debug << ")";
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}
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/* Explicit instantiation for commonly used types */
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#ifndef DOXYGEN_GENERATING_OUTPUT
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<2, 2, Float>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<2, 3, Float>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<3, 2, Float>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<3, 3, Float>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<2, 2, Double>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<2, 3, Double>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<3, 2, Double>&);
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extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const Bezier<3, 3, Double>&);
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#endif
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}}
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namespace Corrade { namespace Utility {
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/** @configurationvalue{Magnum::Math::Bezier} */
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template<Magnum::UnsignedInt order, Magnum::UnsignedInt dimensions, class T> struct ConfigurationValue<Magnum::Math::Bezier<order, dimensions, T>> {
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ConfigurationValue() = delete;
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/** @brief Writes elements separated with spaces */
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static std::string toString(const Magnum::Math::Bezier<order, dimensions, T>& value, ConfigurationValueFlags flags) {
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std::string output;
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for(std::size_t o = 0; o != order + 1; ++o) {
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for(std::size_t i = 0; i != dimensions; ++i) {
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if(!output.empty()) output += ' ';
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output += ConfigurationValue<T>::toString(value[o][i], flags);
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}
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}
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return output;
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}
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/** @brief Reads elements separated with whitespace */
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static Magnum::Math::Bezier<order, dimensions, T> fromString(const std::string& stringValue, ConfigurationValueFlags flags) {
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Magnum::Math::Bezier<order, dimensions, T> result;
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|
std::size_t oldpos = 0, pos = std::string::npos, i = 0;
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do {
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pos = stringValue.find(' ', oldpos);
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|
|
std::string part = stringValue.substr(oldpos, pos-oldpos);
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|
|
if(!part.empty()) {
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|
result[i/dimensions][i%dimensions] = ConfigurationValue<T>::fromString(part, flags);
|
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|
|
++i;
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|
}
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|
oldpos = pos+1;
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|
|
} while(pos != std::string::npos);
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|
|
return result;
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|
|
}
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};
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/* Explicit instantiation for commonly used types */
|
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|
|
|
#if !defined(DOXYGEN_GENERATING_OUTPUT) && !defined(__MINGW32__)
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|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<2, 2, Magnum::Float>>;
|
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|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<2, 3, Magnum::Float>>;
|
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|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<3, 2, Magnum::Float>>;
|
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|
|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<3, 3, Magnum::Float>>;
|
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|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<2, 2, Magnum::Double>>;
|
|
|
|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<2, 3, Magnum::Double>>;
|
|
|
|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<3, 2, Magnum::Double>>;
|
|
|
|
|
extern template struct MAGNUM_EXPORT ConfigurationValue<Magnum::Math::Bezier<3, 3, Magnum::Double>>;
|
|
|
|
|
#endif
|
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|
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|
|
|
|
|
}}
|
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|
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|
|
#endif
|
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|