489 lines
12 KiB
C++
489 lines
12 KiB
C++
// Copyright (C) 2015 Jérôme Leclercq
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// This file is part of the "Nazara Engine - Mathematics module"
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// For conditions of distribution and use, see copyright notice in Config.hpp
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#include <Nazara/Core/Algorithm.hpp>
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#include <Nazara/Core/StringStream.hpp>
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#include <Nazara/Math/Algorithm.hpp>
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#include <cstring>
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#include <Nazara/Core/Debug.hpp>
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///DOC: Pour que les coins soient valides, la méthode Update doit être appelée
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#define F(a) static_cast<T>(a)
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namespace Nz
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{
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/*!
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* \ingroup math
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* \class Nz::OrientedBox
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* \brief Math class that represents an oriented three dimensional box
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*
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* \remark You need to call Update not to have undefined behaviour
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*/
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/*!
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* \brief Constructs a OrientedBox object from its position and sizes
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*
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* \param X X component of position
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* \param Y Y component of position
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* \param Z Z component of position
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* \param Width Width of the box (following X)
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* \param Height Height of the box (following Y)
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* \param Depth Depth of the box (following Z)
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*/
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template<typename T>
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OrientedBox<T>::OrientedBox(T X, T Y, T Z, T Width, T Height, T Depth)
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{
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Set(X, Y, Z, Width, Height, Depth);
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}
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/*!
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* \brief Constructs a OrientedBox object from a box
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*
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* \param box Box<T> object
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*/
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template<typename T>
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OrientedBox<T>::OrientedBox(const Box<T>& box)
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{
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Set(box);
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}
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/*!
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* \brief Constructs a OrientedBox object from two vectors representing point of the space
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* (X, Y, Z) will be the components minimum of the two vectors and the (width, height, depth) will be the components maximum - minimum
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*
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* \param vec1 First point
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* \param vec2 Second point
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*/
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template<typename T>
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OrientedBox<T>::OrientedBox(const Vector3<T>& vec1, const Vector3<T>& vec2)
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{
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Set(vec1, vec2);
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}
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/*!
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* \brief Constructs a OrientedBox object from another type of OrientedBox
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*
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* \param orientedBox OrientedBox of type U to convert to type T
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*/
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template<typename T>
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template<typename U>
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OrientedBox<T>::OrientedBox(const OrientedBox<U>& orientedBox)
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{
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Set(orientedBox);
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}
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/*!
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* \brief Gets the Vector3 for the corner
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* \return The position of the corner of the oriented box according to enum BoxCorner
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*
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* \param corner Enumeration of type BoxCorner
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*
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* \remark If enumeration is not defined in BoxCorner, a NazaraError is thrown and a Vector3 uninitialised is returned
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*/
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template<typename T>
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const Vector3<T>& OrientedBox<T>::GetCorner(BoxCorner corner) const
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{
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#ifdef NAZARA_DEBUG
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if (corner > BoxCorner_Max)
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{
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NazaraError("Corner not handled (0x" + String::Number(corner, 16) + ')');
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static Vector3<T> dummy;
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return dummy;
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}
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#endif
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return m_corners[corner];
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}
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/*!
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* \brief Checks whether this oriented box is valid
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* \return true if the oriented box has a strictly positive width, height and depth
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*/
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template<typename T>
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bool OrientedBox<T>::IsValid() const
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{
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return localBox.IsValid();
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}
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/*!
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* \brief Makes the oriented box position (0, 0, 0) and lengths (0, 0, 0)
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* \return A reference to this oriented box with position (0, 0, 0) and lengths (0, 0, 0)
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*
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* \see Zero
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*/
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template<typename T>
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OrientedBox<T>& OrientedBox<T>::MakeZero()
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{
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localBox.MakeZero();
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return *this;
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}
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/*!
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* \brief Sets the components of the oriented box
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* \return A reference to this oriented box
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*
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* \param X X position
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* \param Y Y position
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* \param Z Z position
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* \param Width Width of the oriented box (following X)
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* \param Height Height of the oriented box (following Y)
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* \param Depth Depth of the oriented box (following Z)
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*/
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template<typename T>
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OrientedBox<T>& OrientedBox<T>::Set(T X, T Y, T Z, T Width, T Height, T Depth)
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{
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localBox.Set(X, Y, Z, Width, Height, Depth);
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return *this;
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}
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/*!
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* \brief Sets the components of the oriented box from a box
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* \return A reference to this oriented box
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*
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* \param box Box<T> object
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*/
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template<typename T>
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OrientedBox<T>& OrientedBox<T>::Set(const Box<T>& box)
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{
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localBox.Set(box);
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return *this;
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}
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/*!
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* \brief Sets the components of the oriented box with components from another
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* \return A reference to this oriented box
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*
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* \param orientedBox The other OrientedBox
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*/
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template<typename T>
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OrientedBox<T>& OrientedBox<T>::Set(const OrientedBox& orientedBox)
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{
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std::memcpy(this, &orientedBox, sizeof(OrientedBox));
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return *this;
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}
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/*!
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* \brief Sets a OrientedBox object from two vectors representing point of the space
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* (X, Y, Z) will be the components minimum of the two vectors and the (width, height, depth) will be the components maximum - minimum
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*
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* \param vec1 First point
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* \param vec2 Second point
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*/
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template<typename T>
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OrientedBox<T>& OrientedBox<T>::Set(const Vector3<T>& vec1, const Vector3<T>& vec2)
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{
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localBox.Set(vec1, vec2);
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return *this;
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}
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/*!
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* \brief Sets the components of the orientedBox from another type of OrientedBox
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* \return A reference to this orientedBox
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*
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* \param orientedBox OrientedBox of type U to convert its components
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*/
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template<typename T>
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template<typename U>
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OrientedBox<T>& OrientedBox<T>::Set(const OrientedBox<U>& orientedBox)
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{
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for (unsigned int i = 0; i <= BoxCorner_Max; ++i)
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m_corners[i].Set(orientedBox(i));
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localBox.Set(orientedBox.localBox);
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return *this;
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}
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/*!
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* \brief Gives a string representation
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* \return A string representation of the object: "OrientedBox(...)"
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*/
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template<typename T>
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String OrientedBox<T>::ToString() const
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{
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StringStream ss;
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return ss << "OrientedBox(FLB: " << m_corners[BoxCorner_FarLeftBottom].ToString() << "\n"
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<< " FLT: " << m_corners[BoxCorner_FarLeftTop].ToString() << "\n"
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<< " FRB: " << m_corners[BoxCorner_FarRightBottom].ToString() << "\n"
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<< " FRT: " << m_corners[BoxCorner_FarRightTop].ToString() << "\n"
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<< " NLB: " << m_corners[BoxCorner_NearLeftBottom].ToString() << "\n"
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<< " NLT: " << m_corners[BoxCorner_NearLeftTop].ToString() << "\n"
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<< " NRB: " << m_corners[BoxCorner_NearRightBottom].ToString() << "\n"
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<< " NRT: " << m_corners[BoxCorner_NearRightTop].ToString() << ")\n";
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}
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/*!
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* \brief Updates the corners of the box
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*
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* \param transformMatrix Matrix4 which represents the transformation to apply on the local box
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*/
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template<typename T>
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void OrientedBox<T>::Update(const Matrix4<T>& transformMatrix)
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{
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for (unsigned int i = 0; i <= BoxCorner_Max; ++i)
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m_corners[i] = transformMatrix.Transform(localBox.GetCorner(static_cast<BoxCorner>(i)));
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}
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/*!
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* \brief Updates the corners of the box
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*
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* \param translation Vector3 which represents the translation to apply on the local box
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*/
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template<typename T>
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void OrientedBox<T>::Update(const Vector3<T>& translation)
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{
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for (unsigned int i = 0; i <= BoxCorner_Max; ++i)
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m_corners[i] = localBox.GetCorner(static_cast<BoxCorner>(i)) + translation;
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}
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/*!
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* \brief Converts oriented box to pointer of Vector3 to its own corners
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* \return A pointer to the own corners
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*
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* \remark Access to index greather than BoxCorner_Max is undefined behavior
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*/
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template<typename T>
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OrientedBox<T>::operator Vector3<T>* ()
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{
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return &m_corners[0];
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}
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/*!
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* \brief Converts oriented box to pointer of Vector3 to its own corners
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* \return A const pointer to the own corners
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*
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* \remark Access to index greather than BoxCorner_Max is undefined behavior
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*/
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template<typename T>
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OrientedBox<T>::operator const Vector3<T>* () const
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{
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return &m_corners[0];
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}
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/*!
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* \brief Gets the ith corner of the oriented box
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* \return A reference to this corner
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*
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* \remark Produce a NazaraError if you try to access to index greather than BoxCorner_Max with NAZARA_MATH_SAFE defined. If not, it is undefined behaviour
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* \throw std::out_of_range if NAZARA_MATH_SAFE is defined and you try to acces to index greather than BoxCorner_Max
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*/
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template<typename T>
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Vector3<T>& OrientedBox<T>::operator()(unsigned int i)
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{
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#if NAZARA_MATH_SAFE
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if (i > BoxCorner_Max)
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{
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StringStream ss;
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ss << "Index out of range: (" << i << " >= " << BoxCorner_Max << ")";
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NazaraError(ss);
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throw std::out_of_range(ss.ToString());
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}
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#endif
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return m_corners[i];
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}
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/*!
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* \brief Gets the ith corner of the oriented box
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* \return A reference to this corner
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*
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* \remark Produce a NazaraError if you try to access to index greather than BoxCorner_Max with NAZARA_MATH_SAFE defined. If not, it is undefined behaviour
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* \throw std::out_of_range if NAZARA_MATH_SAFE is defined and you try to acces to index greather than BoxCorner_Max
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*/
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template<typename T>
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Vector3<T> OrientedBox<T>::operator()(unsigned int i) const
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{
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#if NAZARA_MATH_SAFE
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if (i > BoxCorner_Max)
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{
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StringStream ss;
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ss << "Index out of range: (" << i << " >= " << BoxCorner_Max << ")";
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NazaraError(ss);
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throw std::out_of_range(ss.ToString());
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}
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#endif
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return m_corners[i];
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}
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/*!
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* \brief Multiplies the lengths with the scalar
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* \return A OrientedBox where the position is the same and width, height and depth are the product of the old width, height and depth and the scalar
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*
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* \param scale The scalar to multiply width, height and depth with
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*/
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template<typename T>
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OrientedBox<T> OrientedBox<T>::operator*(T scalar) const
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{
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OrientedBox box(*this);
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box *= scalar;
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return box;
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}
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/*!
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* \brief Multiplies the lengths of this oriented box with the scalar
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* \return A reference to this oriented box where lengths are the product of these lengths and the scalar
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*
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* \param scalar The scalar to multiply width, height and depth with
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*/
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template<typename T>
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OrientedBox<T>& OrientedBox<T>::operator*=(T scalar)
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{
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localBox *= scalar;
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return *this;
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}
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/*!
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* \brief Compares the oriented box to other one
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* \return true if the two oriented boxes are the same
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*
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* \param box Other oriented box to compare with
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*/
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template<typename T>
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bool OrientedBox<T>::operator==(const OrientedBox& box) const
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{
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return localBox == box.localBox;
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}
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/*!
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* \brief Compares the oriented box to other one
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* \return false if the two oriented boxes are the same
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*
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* \param box Other oriented box to compare with
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*/
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template<typename T>
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bool OrientedBox<T>::operator!=(const OrientedBox& box) const
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{
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return !operator==(box);
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}
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/*!
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* \brief Interpolates the oriented box to other one with a factor of interpolation
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* \return A new oriented box which is the interpolation of two oriented boxes
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*
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* \param from Initial oriented box
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* \param to Target oriented box
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* \param interpolation Factor of interpolation
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*
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* \remark interpolation is meant to be between 0 and 1, other values are potentially undefined behavior
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* \remark With NAZARA_DEBUG, a NazaraError is thrown and Zero() is returned
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*
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* \see Lerp
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*/
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template<typename T>
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OrientedBox<T> OrientedBox<T>::Lerp(const OrientedBox& from, const OrientedBox& to, T interpolation)
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{
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OrientedBox orientedBox;
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orientedBox.Set(Box<T>::Lerp(from.localBox, to.localBox, interpolation));
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return orientedBox;
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}
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/*!
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* \brief Shorthand for the oriented box (0, 0, 0, 0, 0, 0)
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* \return A oriented box with position (0, 0, 0) and lengths (0, 0, 0)
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*
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* \see MakeZero
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*/
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template<typename T>
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OrientedBox<T> OrientedBox<T>::Zero()
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{
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OrientedBox orientedBox;
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orientedBox.MakeZero();
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return orientedBox;
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}
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/*!
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* \brief Serializes a OrientedBox
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* \return true if successfully serialized
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*
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* \param context Serialization context
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* \param obb Input oriented box
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*
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* \remark Does not save OBB corners
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*/
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template<typename T>
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bool Serialize(SerializationContext& context, const OrientedBox<T>& obb)
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{
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if (!Serialize(context, obb.localBox))
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return false;
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return true;
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}
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/*!
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* \brief Unserializes a Matrix4
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* \return true if successfully unserialized
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*
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* \param context Serialization context
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* \param obb Output oriented box
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*
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* \remark The resulting oriented box corners will *not* be updated, a call to Update is required
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*/
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template<typename T>
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bool Unserialize(SerializationContext& context, OrientedBox<T>* obb)
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{
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if (!Unserialize(context, &obb->localBox))
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return false;
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return true;
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}
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}
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/*!
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* \brief Output operator
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* \return The stream
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*
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* \param out The stream
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* \param orientedBox The orientedBox to output
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*/
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template<typename T>
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std::ostream& operator<<(std::ostream& out, const Nz::OrientedBox<T>& orientedBox)
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{
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return out << orientedBox.ToString();
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}
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#undef F
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#include <Nazara/Core/DebugOff.hpp>
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