996 lines
30 KiB
C++
996 lines
30 KiB
C++
// Copyright (c) 2012-2022 Wojciech Figat. All rights reserved.
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#pragma once
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#include "Math.h"
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#include "Engine/Core/Formatting.h"
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#include "Engine/Core/Templates.h"
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struct Double2;
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struct Double3;
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struct Double4;
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struct Quaternion;
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struct Matrix;
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struct Matrix3x3;
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struct Vector2;
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struct Vector4;
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struct Color;
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class String;
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struct Int3;
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struct Int4;
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/// <summary>
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/// Represents a three dimensional mathematical vector.
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/// </summary>
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API_STRUCT() struct FLAXENGINE_API Vector3
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{
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DECLARE_SCRIPTING_TYPE_MINIMAL(Vector3);
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public:
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union
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{
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struct
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{
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/// <summary>
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/// The X component.
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/// </summary>
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API_FIELD() float X;
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/// <summary>
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/// The Y component.
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/// </summary>
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API_FIELD() float Y;
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/// <summary>
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/// The Z component.
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/// </summary>
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API_FIELD() float Z;
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};
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// Raw values
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float Raw[3];
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};
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public:
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// Vector with all components equal zero (0, 0, 0)
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static const Vector3 Zero;
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// Vector with all components equal one (1, 1, 1)
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static const Vector3 One;
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// Vector with all components equal half (0.5, 0.5, 0.5)
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static const Vector3 Half;
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// The X unit vector (1, 0, 0)
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static const Vector3 UnitX;
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// The Y unit vector (0, 1, 0)
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static const Vector3 UnitY;
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// The Z unit vector (0, 0, 1)
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static const Vector3 UnitZ;
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// A unit vector designating up (0, 1, 0)
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static const Vector3 Up;
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// A unit vector designating down (0, -1, 0)
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static const Vector3 Down;
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// A unit vector designating a (-1, 0, 0)
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static const Vector3 Left;
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// A unit vector designating b (1, 0, 0)
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static const Vector3 Right;
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// A unit vector designating forward in a a-handed coordinate system (0, 0, 1)
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static const Vector3 Forward;
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// A unit vector designating backward in a a-handed coordinate system (0, 0, -1)
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static const Vector3 Backward;
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// A minimum Vector3
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static const Vector3 Minimum;
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// A maximum Vector3
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static const Vector3 Maximum;
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public:
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/// <summary>
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/// Empty constructor.
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/// </summary>
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Vector3()
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{
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}
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// Init
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// @param xyz Value to assign to the all components
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Vector3(float xyz)
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: X(xyz)
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, Y(xyz)
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, Z(xyz)
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{
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}
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// Init
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// @param x X component value
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// @param y Y component value
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// @param z Z component value
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Vector3(float x, float y, float z)
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: X(x)
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, Y(y)
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, Z(z)
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{
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}
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/// <summary>
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/// Init
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/// </summary>
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/// <param name="v">X, Y and Z components in an array</param>
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explicit Vector3(const float* xyz)
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: X(xyz[0])
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, Y(xyz[1])
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, Z(xyz[2])
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{
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}
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// Init
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// @param xy Vector2 with X and Y components values
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// @param z Z component value
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explicit Vector3(const Vector2& xy, float z);
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// Init
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// @param xy Vector3 value
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explicit Vector3(const Vector2& xy);
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// Init
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// @param xy Int22 with X and Y components values
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// @param z Z component value
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explicit Vector3(const Int2& xy, float z);
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// Init
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// @param xyz Int3 value
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explicit Vector3(const Int3& xyz);
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// Init
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// @param xyzw Int4 value
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explicit Vector3(const Int4& xyzw);
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// Init
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// @param xyz Vector4 value
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explicit Vector3(const Vector4& xyz);
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// Init
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// @param xy Double2 with X and Y components values
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// @param z Z component value
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explicit Vector3(const Double2& xy, float z);
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// Init
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// @param xyz Double3 value
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explicit Vector3(const Double3& xyz);
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// Init
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// @param xyzw Double4 value
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explicit Vector3(const Double4& xyzw);
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// Init
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// @param color Color value
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explicit Vector3(const Color& color);
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public:
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String ToString() const;
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public:
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// Gets a value indicting whether this instance is normalized
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bool IsNormalized() const
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{
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return Math::IsOne(X * X + Y * Y + Z * Z);
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}
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// Gets a value indicting whether this vector is zero
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bool IsZero() const
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{
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return Math::IsZero(X) && Math::IsZero(Y) && Math::IsZero(Z);
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}
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// Gets a value indicting whether any vector component is zero
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bool IsAnyZero() const
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{
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return Math::IsZero(X) || Math::IsZero(Y) || Math::IsZero(Z);
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}
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// Gets a value indicting whether this vector is one
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bool IsOne() const
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{
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return Math::IsOne(X) && Math::IsOne(Y) && Math::IsOne(Z);
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}
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// Calculates length of the vector
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// @returns Length of the vector
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float Length() const
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{
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return Math::Sqrt(X * X + Y * Y + Z * Z);
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}
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// Calculates the squared length of the vector
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// @returns The squared length of the vector
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float LengthSquared() const
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{
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return X * X + Y * Y + Z * Z;
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}
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// Calculates inverted length of the vector (1 / Length())
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float InvLength() const
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{
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return 1.0f / Length();
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}
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/// <summary>
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/// Calculates a vector with values being absolute values of that vector.
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/// </summary>
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Vector3 GetAbsolute() const
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{
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return Vector3(Math::Abs(X), Math::Abs(Y), Math::Abs(Z));
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}
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/// <summary>
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/// Calculates a vector with values being opposite to values of that vector.
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/// </summary>
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Vector3 GetNegative() const
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{
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return Vector3(-X, -Y, -Z);
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}
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/// <summary>
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/// Calculates a normalized vector that has length equal to 1.
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/// </summary>
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Vector3 GetNormalized() const
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{
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const float rcp = 1.0f / Length();
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return Vector3(X * rcp, Y * rcp, Z * rcp);
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}
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/// <summary>
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/// Returns the average arithmetic of all the components.
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/// </summary>
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float AverageArithmetic() const
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{
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return (X + Y + Z) * 0.333333334f;
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}
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/// <summary>
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/// Gets the sum of all vector components values.
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/// </summary>
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float SumValues() const
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{
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return X + Y + Z;
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}
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/// <summary>
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/// Returns the minimum value of all the components.
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/// </summary>
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float MinValue() const
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{
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return Math::Min(X, Y, Z);
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}
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/// <summary>
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/// Returns the maximum value of all the components.
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/// </summary>
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float MaxValue() const
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{
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return Math::Max(X, Y, Z);
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}
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/// <summary>
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/// Returns true if vector has one or more components is not a number (NaN).
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/// </summary>
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bool IsNaN() const
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{
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return isnan(X) || isnan(Y) || isnan(Z);
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}
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/// <summary>
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/// Returns true if vector has one or more components equal to +/- infinity.
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/// </summary>
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bool IsInfinity() const
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{
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return isinf(X) || isinf(Y) || isinf(Z);
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}
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/// <summary>
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/// Returns true if vector has one or more components equal to +/- infinity or NaN.
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/// </summary>
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bool IsNanOrInfinity() const
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{
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return IsInfinity() || IsNaN();
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}
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public:
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/// <summary>
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/// Performs vector normalization (scales vector up to unit length)
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/// </summary>
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void Normalize()
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{
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const float length = Length();
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if (!Math::IsZero(length))
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{
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const float inv = 1.0f / length;
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X *= inv;
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Y *= inv;
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Z *= inv;
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}
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}
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/// <summary>
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/// Performs fast vector normalization (scales vector up to unit length)
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/// </summary>
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void NormalizeFast()
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{
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const float inv = 1.0f / Length();
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X *= inv;
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Y *= inv;
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Z *= inv;
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}
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/// <summary>
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/// Sets all vector components to the absolute values
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/// </summary>
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void Absolute()
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{
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X = Math::Abs(X);
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Y = Math::Abs(Y);
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Z = Math::Abs(Z);
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}
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/// <summary>
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/// Negates all components of that vector
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/// </summary>
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void Negate()
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{
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X = -X;
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Y = -Y;
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Z = -Z;
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}
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/// <summary>
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/// When this vector contains Euler angles (degrees), ensure that angles are between +/-180
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/// </summary>
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void UnwindEuler();
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public:
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// Arithmetic operators with Vector3
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Vector3 operator+(const Vector3& b) const
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{
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return Add(*this, b);
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}
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Vector3 operator-(const Vector3& b) const
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{
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return Subtract(*this, b);
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}
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Vector3 operator*(const Vector3& b) const
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{
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return Multiply(*this, b);
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}
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Vector3 operator/(const Vector3& b) const
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{
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return Divide(*this, b);
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}
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Vector3 operator-() const
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{
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return Vector3(-X, -Y, -Z);
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}
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Vector3 operator^(const Vector3& b) const
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{
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return Cross(*this, b);
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}
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float operator|(const Vector3& b) const
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{
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return Dot(*this, b);
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}
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// op= operators with Vector3
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Vector3& operator+=(const Vector3& b)
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{
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*this = Add(*this, b);
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return *this;
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}
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Vector3& operator-=(const Vector3& b)
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{
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*this = Subtract(*this, b);
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return *this;
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}
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Vector3& operator*=(const Vector3& b)
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{
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*this = Multiply(*this, b);
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return *this;
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}
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Vector3& operator/=(const Vector3& b)
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{
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*this = Divide(*this, b);
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return *this;
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}
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// Arithmetic operators with float
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Vector3 operator+(float b) const
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{
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return Add(*this, b);
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}
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Vector3 operator-(float b) const
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{
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return Subtract(*this, b);
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}
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Vector3 operator*(float b) const
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{
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return Multiply(*this, b);
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}
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Vector3 operator/(float b) const
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{
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return Divide(*this, b);
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}
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// op= operators with float
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Vector3& operator+=(float b)
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{
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*this = Add(*this, b);
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return *this;
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}
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Vector3& operator-=(float b)
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{
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*this = Subtract(*this, b);
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return *this;
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}
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Vector3& operator*=(float b)
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{
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*this = Multiply(*this, b);
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return *this;
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}
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Vector3& operator/=(float b)
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{
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*this = Divide(*this, b);
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return *this;
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}
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// Comparison operators
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bool operator==(const Vector3& b) const
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{
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return X == b.X && Y == b.Y && Z == b.Z;
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}
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bool operator!=(const Vector3& b) const
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{
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return X != b.X || Y != b.Y || Z != b.Z;
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}
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bool operator>(const Vector3& b) const
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{
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return X > b.X && Y > b.Y && Z > b.Z;
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}
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bool operator>=(const Vector3& b) const
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{
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return X >= b.X && Y >= b.Y && Z >= b.Z;
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}
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bool operator<(const Vector3& b) const
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{
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return X < b.X && Y < b.Y && Z < b.Z;
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}
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bool operator<=(const Vector3& b) const
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{
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return X <= b.X && Y <= b.Y && Z <= b.Z;
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}
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public:
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static bool NearEqual(const Vector3& a, const Vector3& b)
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{
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return Math::NearEqual(a.X, b.X) && Math::NearEqual(a.Y, b.Y) && Math::NearEqual(a.Z, b.Z);
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}
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static bool NearEqual(const Vector3& a, const Vector3& b, float epsilon)
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{
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return Math::NearEqual(a.X, b.X, epsilon) && Math::NearEqual(a.Y, b.Y, epsilon) && Math::NearEqual(a.Z, b.Z, epsilon);
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}
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public:
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static void Add(const Vector3& a, const Vector3& b, Vector3& result)
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{
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result.X = a.X + b.X;
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result.Y = a.Y + b.Y;
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result.Z = a.Z + b.Z;
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}
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static Vector3 Add(const Vector3& a, const Vector3& b)
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{
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Vector3 result;
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Add(a, b, result);
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return result;
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}
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static void Subtract(const Vector3& a, const Vector3& b, Vector3& result)
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{
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result.X = a.X - b.X;
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result.Y = a.Y - b.Y;
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result.Z = a.Z - b.Z;
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}
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static Vector3 Subtract(const Vector3& a, const Vector3& b)
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{
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Vector3 result;
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Subtract(a, b, result);
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return result;
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}
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static Vector3 Multiply(const Vector3& a, const Vector3& b)
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{
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return Vector3(a.X * b.X, a.Y * b.Y, a.Z * b.Z);
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}
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static void Multiply(const Vector3& a, const Vector3& b, Vector3& result)
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{
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result = Vector3(a.X * b.X, a.Y * b.Y, a.Z * b.Z);
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}
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static Vector3 Multiply(const Vector3& a, float b)
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{
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return Vector3(a.X * b, a.Y * b, a.Z * b);
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}
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static Vector3 Divide(const Vector3& a, const Vector3& b)
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{
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return Vector3(a.X / b.X, a.Y / b.Y, a.Z / b.Z);
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}
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static void Divide(const Vector3& a, const Vector3& b, Vector3& result)
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{
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result = Vector3(a.X / b.X, a.Y / b.Y, a.Z / b.Z);
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}
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static Vector3 Divide(const Vector3& a, float b)
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{
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return Vector3(a.X / b, a.Y / b, a.Z / b);
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}
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static Vector3 Floor(const Vector3& v);
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static Vector3 Frac(const Vector3& v);
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public:
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// Restricts a value to be within a specified range
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// @param value The value to clamp
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// @param min The minimum value,
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// @param max The maximum value
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// @returns Clamped value
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static Vector3 Clamp(const Vector3& value, const Vector3& min, const Vector3& max)
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{
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return Vector3(Math::Clamp(value.X, min.X, max.X), Math::Clamp(value.Y, min.Y, max.Y), Math::Clamp(value.Z, min.Z, max.Z));
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}
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// Restricts a value to be within a specified range
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// @param value The value to clamp
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// @param min The minimum value,
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// @param max The maximum value
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// @param result When the method completes, contains the clamped value
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static void Clamp(const Vector3& value, const Vector3& min, const Vector3& max, Vector3& result)
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{
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result = Vector3(Math::Clamp(value.X, min.X, max.X), Math::Clamp(value.Y, min.Y, max.Y), Math::Clamp(value.Z, min.Z, max.Z));
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}
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// Calculates the distance between two vectors
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// @param value1 The first vector
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// @param value2 The second vector
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// @returns The distance between the two vectors
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static float Distance(const Vector3& value1, const Vector3& value2)
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{
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const float x = value1.X - value2.X;
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const float y = value1.Y - value2.Y;
|
|
const float z = value1.Z - value2.Z;
|
|
return Math::Sqrt(x * x + y * y + z * z);
|
|
}
|
|
|
|
// Calculates the squared distance between two vectors
|
|
// @param value1 The first vector
|
|
// @param value2 The second vector
|
|
// @returns The squared distance between the two vectors
|
|
static float DistanceSquared(const Vector3& value1, const Vector3& value2)
|
|
{
|
|
const float x = value1.X - value2.X;
|
|
const float y = value1.Y - value2.Y;
|
|
const float z = value1.Z - value2.Z;
|
|
return x * x + y * y + z * z;
|
|
}
|
|
|
|
// Performs vector normalization (scales vector up to unit length)
|
|
// @param inout Input vector to normalize
|
|
// @returns Output vector that is normalized (has unit length)
|
|
static Vector3 Normalize(const Vector3& input)
|
|
{
|
|
Vector3 output = input;
|
|
const float length = input.Length();
|
|
if (Math::Abs(length) >= ZeroTolerance)
|
|
{
|
|
const float inv = 1.0f / length;
|
|
output.X *= inv;
|
|
output.Y *= inv;
|
|
output.Z *= inv;
|
|
}
|
|
return output;
|
|
}
|
|
|
|
// Performs vector normalization (scales vector up to unit length). This is a faster version that does not performs check for length equal 0 (it assumes that input vector is not empty).
|
|
// @param inout Input vector to normalize (cannot be zero).
|
|
// @returns Output vector that is normalized (has unit length)
|
|
static Vector3 NormalizeFast(const Vector3& input)
|
|
{
|
|
const float inv = 1.0f / input.Length();
|
|
return Vector3(input.X * inv, input.Y * inv, input.Z * inv);
|
|
}
|
|
|
|
// Performs vector normalization (scales vector up to unit length)
|
|
// @param inout Input vector to normalize
|
|
// @param output Output vector that is normalized (has unit length)
|
|
static FORCE_INLINE void Normalize(const Vector3& input, Vector3& result)
|
|
{
|
|
result = Normalize(input);
|
|
}
|
|
|
|
// dot product with another vector
|
|
static float Dot(const Vector3& a, const Vector3& b)
|
|
{
|
|
return a.X * b.X + a.Y * b.Y + a.Z * b.Z;
|
|
}
|
|
|
|
// Calculates the cross product of two vectors
|
|
// @param a First source vector
|
|
// @param b Second source vector
|
|
// @param result When the method completes, contains the cross product of the two vectors
|
|
static void Cross(const Vector3& a, const Vector3& b, Vector3& result)
|
|
{
|
|
result = Vector3(a.Y * b.Z - a.Z * b.Y,a.Z * b.X - a.X * b.Z,a.X * b.Y - a.Y * b.X);
|
|
}
|
|
|
|
// Calculates the cross product of two vectors
|
|
// @param a First source vector
|
|
// @param b Second source vector
|
|
// @returns Cross product of the two vectors
|
|
static Vector3 Cross(const Vector3& a, const Vector3& b)
|
|
{
|
|
return Vector3(a.Y * b.Z - a.Z * b.Y,a.Z * b.X - a.X * b.Z,a.X * b.Y - a.Y * b.X);
|
|
}
|
|
|
|
// Performs a linear interpolation between two vectors
|
|
// @param start Start vector
|
|
// @param end End vector
|
|
// @param amount Value between 0 and 1 indicating the weight of end
|
|
// @param result When the method completes, contains the linear interpolation of the two vectors
|
|
static void Lerp(const Vector3& start, const Vector3& end, float amount, Vector3& result)
|
|
{
|
|
result.X = Math::Lerp(start.X, end.X, amount);
|
|
result.Y = Math::Lerp(start.Y, end.Y, amount);
|
|
result.Z = Math::Lerp(start.Z, end.Z, amount);
|
|
}
|
|
|
|
// <summary>
|
|
// Performs a linear interpolation between two vectors.
|
|
// </summary>
|
|
// @param start Start vector,
|
|
// @param end End vector,
|
|
// @param amount Value between 0 and 1 indicating the weight of @paramref end"/>,
|
|
// @returns The linear interpolation of the two vectors
|
|
static Vector3 Lerp(const Vector3& start, const Vector3& end, float amount)
|
|
{
|
|
Vector3 result;
|
|
Lerp(start, end, amount, result);
|
|
return result;
|
|
}
|
|
|
|
// Performs a cubic interpolation between two vectors
|
|
// @param start Start vector
|
|
// @param end End vector
|
|
// @param amount Value between 0 and 1 indicating the weight of end
|
|
// @param result When the method completes, contains the cubic interpolation of the two vectors
|
|
static void SmoothStep(const Vector3& start, const Vector3& end, float amount, Vector3& result)
|
|
{
|
|
amount = Math::SmoothStep(amount);
|
|
Lerp(start, end, amount, result);
|
|
}
|
|
|
|
// Performs a Hermite spline interpolation.
|
|
// @param value1 First source position vector
|
|
// @param tangent1 First source tangent vector
|
|
// @param value2 Second source position vector
|
|
// @param tangent2 Second source tangent vector
|
|
// @param amount Weighting factor,
|
|
// @param result When the method completes, contains the result of the Hermite spline interpolation,
|
|
static void Hermite(const Vector3& value1, const Vector3& tangent1, const Vector3& value2, const Vector3& tangent2, float amount, Vector3& result);
|
|
|
|
// Returns the reflection of a vector off a surface that has the specified normal
|
|
// @param vector The source vector
|
|
// @param normal Normal of the surface
|
|
// @param result When the method completes, contains the reflected vector
|
|
static void Reflect(const Vector3& vector, const Vector3& normal, Vector3& result);
|
|
|
|
// Transforms a 3D vector by the given Quaternion rotation
|
|
// @param vector The vector to rotate
|
|
// @param rotation The Quaternion rotation to apply
|
|
// @param result When the method completes, contains the transformed Vector4
|
|
static void Transform(const Vector3& vector, const Quaternion& rotation, Vector3& result);
|
|
|
|
// Transforms a 3D vector by the given Quaternion rotation
|
|
// @param vector The vector to rotate
|
|
// @param rotation The Quaternion rotation to apply
|
|
// @returns The transformed Vector4
|
|
static Vector3 Transform(const Vector3& vector, const Quaternion& rotation);
|
|
|
|
// Transforms a 3D vector by the given matrix
|
|
// @param vector The source vector
|
|
// @param transform The transformation matrix
|
|
// @param result When the method completes, contains the transformed Vector3
|
|
static void Transform(const Vector3& vector, const Matrix& transform, Vector3& result);
|
|
|
|
// Transforms a 3D vectors by the given matrix
|
|
// @param vectors The source vectors
|
|
// @param transform The transformation matrix
|
|
// @param results When the method completes, contains the transformed Vector3s
|
|
// @param vectorsCount Amount of vectors to transform
|
|
static void Transform(const Vector3* vectors, const Matrix& transform, Vector3* results, int32 vectorsCount);
|
|
|
|
// Transforms a 3D vector by the given matrix
|
|
// @param vector The source vector
|
|
// @param transform The transformation matrix
|
|
// @param result When the method completes, contains the transformed Vector3
|
|
static void Transform(const Vector3& vector, const Matrix3x3& transform, Vector3& result);
|
|
|
|
// Transforms a 3D vector by the given matrix
|
|
// @param vector The source vector
|
|
// @param transform The transformation matrix
|
|
// @returns Transformed Vector3
|
|
static Vector3 Transform(const Vector3& vector, const Matrix& transform);
|
|
|
|
// Transforms a 3D vector by the given matrix
|
|
// @param vector The source vector
|
|
// @param transform The transformation matrix
|
|
// @param result When the method completes, contains the transformed Vector4
|
|
static void Transform(const Vector3& vector, const Matrix& transform, Vector4& result);
|
|
|
|
// Performs a coordinate transformation using the given matrix
|
|
// @param coordinate The coordinate vector to transform
|
|
// @param transform The transformation matrix
|
|
// @param result When the method completes, contains the transformed coordinates
|
|
static void TransformCoordinate(const Vector3& coordinate, const Matrix& transform, Vector3& result);
|
|
|
|
// Performs a normal transformation using the given matrix
|
|
// @param normal The normal vector to transform
|
|
// @param transform The transformation matrix
|
|
// @param result When the method completes, contains the transformed normal
|
|
static void TransformNormal(const Vector3& normal, const Matrix& transform, Vector3& result);
|
|
|
|
// Returns a vector containing the largest components of the specified vectors
|
|
// @param a The first source vector
|
|
// @param b The second source vector
|
|
// @param result When the method completes, contains an new vector composed of the largest components of the source vectors
|
|
static Vector3 Max(const Vector3& a, const Vector3& b)
|
|
{
|
|
return Vector3(a.X > b.X ? a.X : b.X, a.Y > b.Y ? a.Y : b.Y, a.Z > b.Z ? a.Z : b.Z);
|
|
}
|
|
|
|
// Returns a vector containing the smallest components of the specified vectors
|
|
// @param a The first source vector
|
|
// @param b The second source vector
|
|
// @param result When the method completes, contains an new vector composed of the smallest components of the source vectors
|
|
static Vector3 Min(const Vector3& a, const Vector3& b)
|
|
{
|
|
return Vector3(a.X < b.X ? a.X : b.X, a.Y < b.Y ? a.Y : b.Y, a.Z < b.Z ? a.Z : b.Z);
|
|
}
|
|
|
|
// Returns a vector containing the largest components of the specified vectors
|
|
// @param a The first source vector
|
|
// @param b The second source vector
|
|
// @param result When the method completes, contains an new vector composed of the largest components of the source vectors
|
|
static void Max(const Vector3& a, const Vector3& b, Vector3& result)
|
|
{
|
|
result = Vector3(a.X > b.X ? a.X : b.X, a.Y > b.Y ? a.Y : b.Y, a.Z > b.Z ? a.Z : b.Z);
|
|
}
|
|
|
|
// Returns a vector containing the smallest components of the specified vectors
|
|
// @param a The first source vector
|
|
// @param b The second source vector
|
|
// @param result When the method completes, contains an new vector composed of the smallest components of the source vectors
|
|
static void Min(const Vector3& a, const Vector3& b, Vector3& result)
|
|
{
|
|
result = Vector3(a.X < b.X ? a.X : b.X, a.Y < b.Y ? a.Y : b.Y, a.Z < b.Z ? a.Z : b.Z);
|
|
}
|
|
|
|
/// <summary>
|
|
/// Projects a vector onto another vector.
|
|
/// </summary>
|
|
/// <param name="vector">The vector to project.</param>
|
|
/// <param name="onNormal">The projection normal vector.</param>
|
|
/// <returns>The projected vector.</returns>
|
|
static Vector3 Project(const Vector3& vector, const Vector3& onNormal);
|
|
|
|
/// <summary>
|
|
/// Projects a vector onto a plane defined by a normal orthogonal to the plane.
|
|
/// </summary>
|
|
/// <param name="vector">The vector to project.</param>
|
|
/// <param name="planeNormal">The plane normal vector.</param>
|
|
/// <returns>The projected vector.</returns>
|
|
static Vector3 ProjectOnPlane(const Vector3& vector, const Vector3& planeNormal)
|
|
{
|
|
return vector - Project(vector, planeNormal);
|
|
}
|
|
|
|
// Projects a 3D vector from object space into screen space
|
|
// @param vector The vector to project
|
|
// @param x The X position of the viewport
|
|
// @param y The Y position of the viewport
|
|
// @param width The width of the viewport
|
|
// @param height The height of the viewport
|
|
// @param minZ The minimum depth of the viewport
|
|
// @param maxZ The maximum depth of the viewport
|
|
// @param worldViewProjection The combined world-view-projection matrix
|
|
// @param result When the method completes, contains the vector in screen space
|
|
static void Project(const Vector3& vector, float x, float y, float width, float height, float minZ, float maxZ, const Matrix& worldViewProjection, Vector3& result);
|
|
|
|
// Projects a 3D vector from object space into screen space
|
|
// @param vector The vector to project
|
|
// @param x The X position of the viewport
|
|
// @param y The Y position of the viewport
|
|
// @param width The width of the viewport
|
|
// @param height The height of the viewport
|
|
// @param minZ The minimum depth of the viewport
|
|
// @param maxZ The maximum depth of the viewport
|
|
// @param worldViewProjection The combined world-view-projection matrix
|
|
// @returns The vector in screen space
|
|
static Vector3 Project(const Vector3& vector, float x, float y, float width, float height, float minZ, float maxZ, const Matrix& worldViewProjection)
|
|
{
|
|
Vector3 result;
|
|
Project(vector, x, y, width, height, minZ, maxZ, worldViewProjection, result);
|
|
return result;
|
|
}
|
|
|
|
// Projects a 3D vector from screen space into object space
|
|
// @param vector The vector to project
|
|
// @param x The X position of the viewport
|
|
// @param y The Y position of the viewport
|
|
// @param width The width of the viewport
|
|
// @param height The height of the viewport
|
|
// @param minZ The minimum depth of the viewport
|
|
// @param maxZ The maximum depth of the viewport
|
|
// @param worldViewProjection The combined world-view-projection matrix
|
|
// @param result When the method completes, contains the vector in object space
|
|
static void Unproject(const Vector3& vector, float x, float y, float width, float height, float minZ, float maxZ, const Matrix& worldViewProjection, Vector3& result);
|
|
|
|
// Projects a 3D vector from screen space into object space
|
|
// @param vector The vector to project
|
|
// @param x The X position of the viewport
|
|
// @param y The Y position of the viewport
|
|
// @param width The width of the viewport
|
|
// @param height The height of the viewport
|
|
// @param minZ The minimum depth of the viewport
|
|
// @param maxZ The maximum depth of the viewport
|
|
// @param worldViewProjection The combined world-view-projection matrix
|
|
// @returns The vector in object space
|
|
static Vector3 Unproject(const Vector3& vector, float x, float y, float width, float height, float minZ, float maxZ, const Matrix& worldViewProjection)
|
|
{
|
|
Vector3 result;
|
|
Unproject(vector, x, y, width, height, minZ, maxZ, worldViewProjection, result);
|
|
return result;
|
|
}
|
|
|
|
/// <summary>
|
|
/// Creates an orthonormal basis from a basis with at least two orthogonal vectors.
|
|
/// </summary>
|
|
/// <param name="xAxis">The X axis.</param>
|
|
/// <param name="yAxis">The y axis.</param>
|
|
/// <param name="zAxis">The z axis.</param>
|
|
static void CreateOrthonormalBasis(Vector3& xAxis, Vector3& yAxis, Vector3& zAxis);
|
|
|
|
/// <summary>
|
|
/// Finds the best arbitrary axis vectors to represent U and V axes of a plane, by using this vector as the normal of the plane.
|
|
/// </summary>
|
|
/// <param name="firstAxis">The reference to first axis.</param>
|
|
/// <param name="secondAxis">The reference to second axis.</param>
|
|
void FindBestAxisVectors(Vector3& firstAxis, Vector3& secondAxis) const;
|
|
|
|
static Vector3 Round(const Vector3& v)
|
|
{
|
|
return Vector3(
|
|
Math::Round(v.X),
|
|
Math::Round(v.Y),
|
|
Math::Round(v.Z)
|
|
);
|
|
}
|
|
|
|
static Vector3 Ceil(const Vector3& v)
|
|
{
|
|
return Vector3(
|
|
Math::Ceil(v.X),
|
|
Math::Ceil(v.Y),
|
|
Math::Ceil(v.Z)
|
|
);
|
|
}
|
|
|
|
static Vector3 Abs(const Vector3& v)
|
|
{
|
|
return Vector3(Math::Abs(v.X), Math::Abs(v.Y), Math::Abs(v.Z));
|
|
}
|
|
|
|
/// <summary>
|
|
/// Calculates the area of the triangle.
|
|
/// </summary>
|
|
/// <param name="v0">The first triangle vertex.</param>
|
|
/// <param name="v1">The second triangle vertex.</param>
|
|
/// <param name="v2">The third triangle vertex.</param>
|
|
/// <returns>The triangle area.</returns>
|
|
static float TriangleArea(const Vector3& v0, const Vector3& v1, const Vector3& v2);
|
|
|
|
/// <summary>
|
|
/// Calculates the angle (in radians) between from and to. This is always the smallest value.
|
|
/// </summary>
|
|
/// <param name="from">The first vector.</param>
|
|
/// <param name="to">The second vector.</param>
|
|
/// <returns>The angle (in radians).</returns>
|
|
static float Angle(const Vector3& from, const Vector3& to);
|
|
|
|
};
|
|
|
|
inline Vector3 operator+(float a, const Vector3& b)
|
|
{
|
|
return b + a;
|
|
}
|
|
|
|
inline Vector3 operator-(float a, const Vector3& b)
|
|
{
|
|
return Vector3(a) - b;
|
|
}
|
|
|
|
inline Vector3 operator*(float a, const Vector3& b)
|
|
{
|
|
return b * a;
|
|
}
|
|
|
|
inline Vector3 operator/(float a, const Vector3& b)
|
|
{
|
|
return Vector3(a) / b;
|
|
}
|
|
|
|
namespace Math
|
|
{
|
|
FORCE_INLINE static bool NearEqual(const Vector3& a, const Vector3& b)
|
|
{
|
|
return Vector3::NearEqual(a, b);
|
|
}
|
|
}
|
|
|
|
template<>
|
|
struct TIsPODType<Vector3>
|
|
{
|
|
enum { Value = true };
|
|
};
|
|
|
|
DEFINE_DEFAULT_FORMATTING(Vector3, "X:{0} Y:{1} Z:{2}", v.X, v.Y, v.Z);
|