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#ifndef Magnum_Math_Color_h
#define Magnum_Math_Color_h
/*
This file is part of Magnum.
Copyright © 2010, 2011, 2012, 2013, 2014, 2015, 2016, 2017, 2018, 2019,
2020, 2021, 2022 Vladimír Vondruš <mosra@centrum.cz>
Permission is hereby granted, free of charge, to any person obtaining a
copy of this software and associated documentation files (the "Software"),
to deal in the Software without restriction, including without limitation
the rights to use, copy, modify, merge, publish, distribute, sublicense,
and/or sell copies of the Software, and to permit persons to whom the
Software is furnished to do so, subject to the following conditions:
The above copyright notice and this permission notice shall be included
in all copies or substantial portions of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
DEALINGS IN THE SOFTWARE.
*/
/** @file
9 years ago
* @brief Class @ref Magnum::Math::Color3, @ref Magnum::Math::Color4, literal @link Magnum::Math::Literals::operator""_rgb() @endlink, @link Magnum::Math::Literals::operator""_rgba() @endlink, @link Magnum::Math::Literals::operator""_rgbf() @endlink, @link Magnum::Math::Literals::operator""_rgbaf() @endlink, @link Magnum::Math::Literals::operator""_srgb() @endlink, @link Magnum::Math::Literals::operator""_srgba() @endlink, @link Magnum::Math::Literals::operator""_srgbf() @endlink, @link Magnum::Math::Literals::operator""_srgbaf() @endlink
*/
#include "Magnum/Math/Matrix.h"
#include "Magnum/Math/Packing.h"
#include "Magnum/Math/Vector4.h"
#ifdef MAGNUM_BUILD_DEPRECATED
#include <tuple> /** @todo remove when Color[34]::Hsv is removed */
#endif
#if defined(CORRADE_MSVC2017_COMPATIBILITY) && !defined(CORRADE_MSVC2015_COMPATIBILITY)
/* Needed by the fullChannel() workaround */
#include "Magnum/Math/Half.h"
#endif
namespace Magnum { namespace Math {
namespace Implementation {
/* Convert color from HSV */
template<class T> typename std::enable_if<IsFloatingPoint<T>::value, Color3<T>>::type fromHsv(ColorHsv<T> hsv) {
/* Remove repeats */
hsv.hue -= floor(T(hsv.hue)/T(360))*Deg<T>(360);
if(hsv.hue < Deg<T>(0)) hsv.hue += Deg<T>(360);
int h = int(T(hsv.hue)/T(60)) % 6;
T f = T(hsv.hue)/T(60) - h;
T p = hsv.value * (T(1) - hsv.saturation);
T q = hsv.value * (T(1) - f*hsv.saturation);
T t = hsv.value * (T(1) - (T(1) - f)*hsv.saturation);
switch(h) {
case 0: return {hsv.value, t, p};
case 1: return {q, hsv.value, p};
case 2: return {p, hsv.value, t};
case 3: return {p, q, hsv.value};
case 4: return {t, p, hsv.value};
case 5: return {hsv.value, p, q};
default: CORRADE_INTERNAL_ASSERT_UNREACHABLE(); /* LCOV_EXCL_LINE */
}
}
template<class T> inline typename std::enable_if<IsIntegral<T>::value, Color3<T>>::type fromHsv(const ColorHsv<typename TypeTraits<T>::FloatingPointType>& hsv) {
return pack<Color3<T>>(fromHsv<typename TypeTraits<T>::FloatingPointType>(hsv));
}
/* Internal hue computing function */
template<class T> Deg<T> hue(const Color3<T>& color, T max, T delta) {
T deltaInv60 = T(60)/delta;
T hue(0);
if(delta != T(0)) {
if(max == color.r())
hue = (color.g()-color.b())*deltaInv60 + (color.g() < color.b() ? T(360) : T(0));
else if(max == color.g())
hue = (color.b()-color.r())*deltaInv60 + T(120);
else /* max == color.b() */
hue = (color.r()-color.g())*deltaInv60 + T(240);
}
return Deg<T>(hue);
}
/* Hue, saturation, value for floating-point types */
template<class T> inline Deg<T> hue(typename std::enable_if<IsFloatingPoint<T>::value, const Color3<T>&>::type color) {
T max = color.max();
T delta = max - color.min();
return hue(color, max, delta);
}
template<class T> inline T saturation(typename std::enable_if<IsFloatingPoint<T>::value, const Color3<T>&>::type color) {
T max = color.max();
T delta = max - color.min();
return max != T(0) ? delta/max : T(0);
}
template<class T> inline T value(typename std::enable_if<IsFloatingPoint<T>::value, const Color3<T>&>::type color) {
return color.max();
}
/* Hue, saturation, value for integral types */
template<class T> inline Deg<typename Color3<T>::FloatingPointType> hue(typename std::enable_if<IsIntegral<T>::value, const Color3<T>&>::type color) {
return hue<typename Color3<T>::FloatingPointType>(unpack<Color3<typename Color3<T>::FloatingPointType>>(color));
}
template<class T> inline typename Color3<T>::FloatingPointType saturation(typename std::enable_if<IsIntegral<T>::value, const Color3<T>&>::type& color) {
return saturation<typename Color3<T>::FloatingPointType>(unpack<Color3<typename Color3<T>::FloatingPointType>>(color));
}
template<class T> inline typename Color3<T>::FloatingPointType value(typename std::enable_if<IsIntegral<T>::value, const Color3<T>&>::type color) {
return unpack<typename Color3<T>::FloatingPointType>(color.max());
}
/* Convert color to HSV */
template<class T> inline ColorHsv<T> toHsv(typename std::enable_if<IsFloatingPoint<T>::value, const Color3<T>&>::type color) {
T max = color.max();
T delta = max - color.min();
return ColorHsv<T>{hue<typename Color3<T>::FloatingPointType>(color, max, delta), max != T(0) ? delta/max : T(0), max};
}
template<class T> inline ColorHsv<typename TypeTraits<T>::FloatingPointType> toHsv(typename std::enable_if<IsIntegral<T>::value, const Color3<T>&>::type color) {
return toHsv<typename TypeTraits<T>::FloatingPointType>(unpack<Color3<typename TypeTraits<T>::FloatingPointType>>(color));
}
/* sRGB -> RGB conversion */
template<class T> typename std::enable_if<IsFloatingPoint<T>::value, Color3<T>>::type fromSrgb(const Vector3<T>& srgb) {
constexpr const T a(T(0.055));
return lerp(srgb/T(12.92), pow((srgb + Vector3<T>{a})/(T(1.0) + a), T(2.4)), srgb > Vector3<T>(T(0.04045)));
}
template<class T> typename std::enable_if<IsFloatingPoint<T>::value, Color4<T>>::type fromSrgbAlpha(const Vector4<T>& srgbAlpha) {
return {fromSrgb<T>(srgbAlpha.rgb()), srgbAlpha.a()};
}
template<class T> inline typename std::enable_if<IsIntegral<T>::value, Color3<T>>::type fromSrgb(const Vector3<typename Color3<T>::FloatingPointType>& srgb) {
return pack<Color3<T>>(fromSrgb<typename Color3<T>::FloatingPointType>(srgb));
}
template<class T> inline typename std::enable_if<IsIntegral<T>::value, Color4<T>>::type fromSrgbAlpha(const Vector4<typename Color4<T>::FloatingPointType>& srgbAlpha) {
return {fromSrgb<T>(srgbAlpha.rgb()), pack<T>(srgbAlpha.a())};
}
template<class T, class Integral> inline Color3<T> fromSrgbIntegral(const Vector3<Integral>& srgb) {
static_assert(IsIntegral<Integral>::value, "only conversion from different integral type is supported");
return fromSrgb<T>(unpack<Vector3<typename Color3<T>::FloatingPointType>>(srgb));
}
template<class T, class Integral> inline Color4<T> fromSrgbAlphaIntegral(const Vector4<Integral>& srgbAlpha) {
static_assert(IsIntegral<Integral>::value, "only conversion from different integral type is supported");
return fromSrgbAlpha<T>(unpack<Vector4<typename Color4<T>::FloatingPointType>>(srgbAlpha));
}
/* RGB -> sRGB conversion */
template<class T> Vector3<typename Color3<T>::FloatingPointType> toSrgb(typename std::enable_if<IsFloatingPoint<T>::value, const Color3<T>&>::type rgb) {
constexpr const T a = T(0.055);
return lerp(rgb*T(12.92), (T(1.0) + a)*pow(rgb, T(1.0)/T(2.4)) - Vector3<T>{a}, rgb > Vector3<T>(T(0.0031308)));
}
template<class T> Vector4<typename Color4<T>::FloatingPointType> toSrgbAlpha(typename std::enable_if<IsFloatingPoint<T>::value, const Color4<T>&>::type rgba) {
return {toSrgb<T>(rgba.rgb()), rgba.a()};
}
template<class T> inline Vector3<typename Color3<T>::FloatingPointType> toSrgb(typename std::enable_if<IsIntegral<T>::value, const Color3<T>&>::type rgb) {
return toSrgb<typename Color3<T>::FloatingPointType>(unpack<Color3<typename Color3<T>::FloatingPointType>>(rgb));
}
template<class T> inline Vector4<typename Color4<T>::FloatingPointType> toSrgbAlpha(typename std::enable_if<IsIntegral<T>::value, const Color4<T>&>::type rgba) {
return {toSrgb<T>(rgba.rgb()), unpack<typename Color3<T>::FloatingPointType>(rgba.a())};
}
template<class T, class Integral> inline Vector3<Integral> toSrgbIntegral(const Color3<T>& rgb) {
static_assert(IsIntegral<Integral>::value, "only conversion from different integral type is supported");
return pack<Vector3<Integral>>(toSrgb<T>(rgb));
}
template<class T, class Integral> inline Vector4<Integral> toSrgbAlphaIntegral(const Color4<T>& rgba) {
static_assert(IsIntegral<Integral>::value, "only conversion from different integral type is supported");
return pack<Vector4<Integral>>(toSrgbAlpha<T>(rgba));
}
/* CIE XYZ -> RGB conversion */
template<class T> typename std::enable_if<IsFloatingPoint<T>::value, Color3<T>>::type fromXyz(const Vector3<T>& xyz) {
/* Taken from https://en.wikipedia.org/wiki/Talk:SRGB#Rounded_vs._Exact,
the rounded matrices from the main article don't round-trip perfectly */
return Matrix3x3<T>{
Vector3<T>{T(12831)/T(3959), T(-851781)/T(878810), T(705)/T(12673)},
Vector3<T>{T(-329)/T(214), T(1648619)/T(878810), T(-2585)/T(12673)},
Vector3<T>{T(-1974)/T(3959), T(36519)/T(878810), T(705)/T(667)}}*xyz;
}
template<class T> inline typename std::enable_if<IsIntegral<T>::value, Color3<T>>::type fromXyz(const Vector3<typename Color3<T>::FloatingPointType>& xyz) {
return pack<Color3<T>>(fromXyz<typename Color3<T>::FloatingPointType>(xyz));
}
/* RGB -> CIE XYZ conversion */
template<class T> Vector3<typename Color3<T>::FloatingPointType> toXyz(typename std::enable_if<IsFloatingPoint<T>::value, const Color3<T>&>::type rgb) {
/* Taken from https://en.wikipedia.org/wiki/Talk:SRGB#Rounded_vs._Exact,
the rounded matrices from the main article don't round-trip perfectly */
return (Matrix3x3<T>{
Vector3<T>{T(506752)/T(1228815), T(87098)/T(409605), T(7918)/T(409605)},
Vector3<T>{T(87881)/T(245763), T(175762)/T(245763), T(87881)/T(737289)},
Vector3<T>{T(12673)/T(70218), T(12673)/T(175545), T(1001167)/T(1053270)}})*rgb;
}
template<class T> inline Vector3<typename Color3<T>::FloatingPointType> toXyz(typename std::enable_if<IsIntegral<T>::value, const Color3<T>&>::type rgb) {
return toXyz<typename Color3<T>::FloatingPointType>(unpack<Color3<typename Color3<T>::FloatingPointType>>(rgb));
}
/* Value for full channel (1.0f for floats, 255 for unsigned byte) */
#if !defined(CORRADE_MSVC2017_COMPATIBILITY) || defined(CORRADE_MSVC2015_COMPATIBILITY)
/* MSVC 2017 since 15.8 crashes with the following at a constructor line that
calls this function via a default parameter. This happens only when the
/permissive- (yes, there's a dash at the end) flag is specified, which is
projects created directly using VS (enabled by default since 15.5) but not
projects using CMake. Not using SFINAE in this case makes it work. Minimal
repro case here: https://twitter.com/czmosra/status/1039446378248896513 */
template<class T> constexpr typename std::enable_if<IsFloatingPoint<T>::value, T>::type fullChannel() {
return T(1.0);
}
template<class T> constexpr typename std::enable_if<IsIntegral<T>::value, T>::type fullChannel() {
return Implementation::bitMax<T>();
}
#else
template<class T> constexpr T fullChannel() { return bitMax<T>(); }
template<> constexpr float fullChannel<float>() { return 1.0f; }
template<> constexpr Half fullChannel<Half>() {
/* This is 1.0_h, but expressible in a constexpr context */
return Half{UnsignedShort{0x3c00}};
}
template<> constexpr double fullChannel<double>() { return 1.0; }
template<> constexpr long double fullChannel<long double>() { return 1.0l; }
#endif
}
/**
10 years ago
@brief Color in linear RGB color space
The class can store either a floating-point or an integral representation of a
linear RGB color. Colors in sRGB color space should not be used directly in
calculations --- they should be converted to linear RGB using @ref fromSrgb()
/ @ref fromSrgbInt(), calculation done on the linear representation and then
converted back to sRGB using @ref toSrgb() / @ref toSrgbInt().
Integral colors are assumed to be in a packed representation where the
@f$ [0.0, 1.0] @f$ range is mapped to @f$ [0, 2^b - 1] @f$ with @f$ b @f$ being
bit count of given integer type. Note that constructor conversion between
different types (like in @ref Vector classes) doesn't do any (un)packing, you
need to use either @ref pack() / @ref unpack(), the integer variants of
@ref toSrgb() / @ref fromSrgb() or @ref toSrgbInt() / @ref fromSrgbInt()
instead:
@snippet MagnumMath.cpp Color3-pack
Conversion from and to HSV is done always using floating-point types, so hue
is always in range in range @f$ [0.0\degree, 360.0\degree] @f$, saturation and
value in range @f$ [0.0, 1.0] @f$.
@see @link operator""_rgb() @endlink, @link operator""_rgbf() @endlink,
@link operator""_srgb() @endlink, @link operator""_srgbf() @endlink,
@ref Color4, @ref Magnum::Color3, @ref Magnum::Color3h,
@ref Magnum::Color3ub, @ref Magnum::Color3us
*/
/* Not using template specialization because some internal functions are
impossible to explicitly instantiate */
template<class T> class Color3: public Vector3<T> {
public:
/**
* @brief Corresponding floating-point type
*
* For HSV and other color spaces.
*/
typedef typename TypeTraits<T>::FloatingPointType FloatingPointType;
#ifdef MAGNUM_BUILD_DEPRECATED
/** @brief @copybrief ColorHsv
* @m_deprecated_since{2019,10} Use @ref ColorHsv instead.
*/
typedef CORRADE_DEPRECATED("use ColorHsv instead") std::tuple<Deg<FloatingPointType>, FloatingPointType, FloatingPointType> Hsv;
#endif
/**
* @brief Red color
*
* Convenience alternative to e.g. @cpp Color3{red, 0.0f, 0.0f} @ce.
* With floating-point underlying type equivalent to @ref Vector3::xAxis().
* @see @ref green(), @ref blue(), @ref cyan()
*/
constexpr static Color3<T> red(T red = Implementation::fullChannel<T>()) {
return Vector3<T>::xAxis(red);
}
/**
* @brief Green color
*
* Convenience alternative to e.g. @cpp Color3(0.0f, green, 0.0f) @ce.
* With floating-point underlying type equivalent to @ref Vector3::yAxis().
* @see @ref red(), @ref blue(), @ref magenta()
*/
constexpr static Color3<T> green(T green = Implementation::fullChannel<T>()) {
return Vector3<T>::yAxis(green);
}
/**
* @brief Blue color
*
* Convenience alternative to e.g. @cpp Color3{0.0f, 0.0f, blue} @ce.
* With a floating-point underlying type it's equivalent to
* @ref Vector3::zAxis().
* @see @ref red(), @ref green(), @ref yellow()
*/
constexpr static Color3<T> blue(T blue = Implementation::fullChannel<T>()) {
return Vector3<T>::zAxis(blue);
}
/**
* @brief Cyan color
*
* Convenience alternative to e.g. @cpp Color3{red, 1.0f, 1.0f} @ce.
* With a floating-point underlying type it's equivalent to
* @ref Vector3::xScale().
* @see @ref magenta(), @ref yellow(), @ref red()
*/
constexpr static Color3<T> cyan(T red = T(0)) {
return {red, Implementation::fullChannel<T>(), Implementation::fullChannel<T>()};
}
/**
* @brief Magenta color
*
* Convenience alternative to e.g. @cpp Color3{1.0f, green, 1.0f} @ce.
* With a floating-point underlying type it's equivalent to
* @ref Vector3::yScale().
* @see @ref cyan(), @ref yellow(), @ref green()
*/
constexpr static Color3<T> magenta(T green = T(0)) {
return {Implementation::fullChannel<T>(), green, Implementation::fullChannel<T>()};
}
/**
* @brief Yellow color
*
* Convenience alternative to e.g. @cpp Color3{1.0f, 1.0f, blue} @ce.
* With a floating-point underlying type it's equivalent to
* @ref Vector3::zScale().
* @see @ref cyan(), @ref magenta(), @ref red()
*/
constexpr static Color3<T> yellow(T blue = T(0)) {
return {Implementation::fullChannel<T>(), Implementation::fullChannel<T>(), blue};
}
/**
* @brief Create RGB color from HSV representation
10 years ago
* @param hsv Color in HSV color space
*
* Hue is allowed to overflow the range @f$ [0.0\degree, 360.0\degree] @f$,
* in which case it will be wrapped back to this range.
* @see @ref toHsv()
*/
static Color3<T> fromHsv(const ColorHsv<FloatingPointType>& hsv) {
return Implementation::fromHsv<T>(hsv);
}
#ifdef MAGNUM_BUILD_DEPRECATED
/** @brief @copybrief fromHsv(const ColorHsv<FloatingPointType>&)
* @m_deprecated_since{2019,10} Use @ref fromHsv(const ColorHsv<FloatingPointType>&)
* instead.
*/
static CORRADE_DEPRECATED("use fromHsv(const ColorHsv<FloatingPointType>&) instead") Color3<T> fromHsv(Deg<FloatingPointType> hue, FloatingPointType saturation, FloatingPointType value) {
return fromHsv({hue, saturation, value});
}
#endif
/**
* @brief Create linear RGB color from sRGB representation
* @param srgb Color in sRGB color space
*
* Applies inverse sRGB curve onto input, returning the input in linear
* RGB color space with D65 illuminant and 2° standard colorimetric
* observer. @f[
* \boldsymbol{c}_\mathrm{linear} = \begin{cases}
* \dfrac{\boldsymbol{c}_\mathrm{sRGB}}{12.92}, & \boldsymbol{c}_\mathrm{sRGB} \le 0.04045 \\
* \left( \dfrac{\boldsymbol{c}_\mathrm{sRGB} + a}{1 + a} \right)^{2.4}, & \boldsymbol{c}_\mathrm{sRGB} > 0.04045
* \end{cases}
* @f]
* @see @ref fromSrgb(const Vector3<Integral>&), @ref fromSrgbInt(),
* @link operator""_srgbf() @endlink, @ref toSrgb(),
* @ref Color4::fromSrgbAlpha()
*/
/* Input is a Vector3 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
static Color3<T> fromSrgb(const Vector3<FloatingPointType>& srgb) {
return Implementation::fromSrgb<T>(srgb);
}
/** @overload
* @brief Create linear RGB color from integral sRGB representation
* @param srgb Color in sRGB color space
*
* Useful in cases where you have for example an 8-bit sRGB
* representation and want to create a floating-point linear RGB color
* out of it:
*
* @snippet MagnumMath.cpp Color3-fromSrgb
*
* For conversion from a *linear* 24-bit representation (i.e, without
* applying the sRGB curve), use @ref unpack():
*
* @snippet MagnumMath.cpp Color3-unpack
*
* @see @ref fromSrgbInt(), @link operator""_srgbf() @endlink,
* @ref Color4::fromSrgbAlpha(const Vector4<Integral>&)
*/
/* Input is a Vector3 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
template<class Integral> static Color3<T> fromSrgb(const Vector3<Integral>& srgb) {
return Implementation::fromSrgbIntegral<T, Integral>(srgb);
}
/**
* @brief Create linear RGB color from 24-bit sRGB representation
* @param srgb 24-bit sRGB color
* @m_since_latest
*
* See @ref fromSrgb() for more information and @ref toSrgbInt() for an
* inverse operation. There's also a @link operator""_srgbf() @endlink
* that does this conversion directly from hexadecimal literals. The
* following two statements are equivalent:
*
* @snippet MagnumMath.cpp Color3-fromSrgbInt
*
* Note that the integral value is endian-dependent (the red channel
* being in the *last* byte on little-endian platforms), for conversion
* from endian-independent sRGB / linear representation use
* @ref fromSrgb(const Vector3<Integral>&) / @ref unpack().
* @see @ref Color4::fromSrgbAlphaInt()
*/
static Color3<T> fromSrgbInt(UnsignedInt srgb) {
return fromSrgb<UnsignedByte>({UnsignedByte(srgb >> 16),
UnsignedByte(srgb >> 8),
UnsignedByte(srgb)});
}
#ifdef MAGNUM_BUILD_DEPRECATED
/**
* @copybrief fromSrgbInt()
* @m_deprecated_since_latest Use @ref fromSrgbInt() instead.
*/
CORRADE_DEPRECATED("use fromSrgInt() instead") static Color3<T> fromSrgb(UnsignedInt srgb) {
return fromSrgbInt(srgb);
}
#endif
/**
* @brief Create RGB color from [CIE XYZ representation](https://en.wikipedia.org/wiki/CIE_1931_color_space)
* @param xyz Color in CIE XYZ color space
*
* Applies transformation matrix, returning the input in linear
* RGB color space with D65 illuminant and 2° standard colorimetric
* observer. @f[
* \begin{bmatrix} R_\mathrm{linear} \\ G_\mathrm{linear} \\ B_\mathrm{linear} \end{bmatrix} =
* \begin{bmatrix}
* 3.2406 & -1.5372 & -0.4986 \\
* -0.9689 & 1.8758 & 0.0415 \\
* 0.0557 & -0.2040 & 1.0570
* \end{bmatrix} \begin{bmatrix} X \\ Y \\ Z \end{bmatrix}
* @f]
* @see @ref toXyz(), @ref toSrgb(), @ref xyYToXyz()
*/
static Color3<T> fromXyz(const Vector3<FloatingPointType>& xyz) {
return Implementation::fromXyz<T>(xyz);
}
/**
* @brief Default constructor
*
* Equivalent to @ref Color3(ZeroInitT).
*/
constexpr /*implicit*/ Color3() noexcept: Vector3<T>{ZeroInit} {}
/**
* @brief Construct a zero color
*
* All components are set to zero.
*/
constexpr explicit Color3(ZeroInitT) noexcept: Vector3<T>{ZeroInit} {}
/** @copydoc Vector::Vector(Magnum::NoInitT) */
explicit Color3(Magnum::NoInitT) noexcept: Vector3<T>{Magnum::NoInit} {}
/**
* @brief Gray constructor
* @param rgb RGB value
*/
constexpr explicit Color3(T rgb) noexcept: Vector3<T>(rgb) {}
/**
* @brief Constructor
* @param r R value
* @param g G value
* @param b B value
*/
constexpr /*implicit*/ Color3(T r, T g, T b) noexcept: Vector3<T>(r, g, b) {}
/**
* @copydoc Vector::Vector(const Vector<size, U>&)
*
* @attention This function doesn't do any (un)packing, use either
* @ref pack() / @ref unpack() or the integer variants of
* @ref toSrgb() / @ref fromSrgb() instead. See class
* documentation for more information.
*/
template<class U> constexpr explicit Color3(const Vector<3, U>& other) noexcept: Vector3<T>(other) {}
/** @brief Construct color from external representation */
template<class U, class V =
#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Causes ICE */
decltype(Implementation::VectorConverter<3, T, U>::from(std::declval<U>()))
#else
decltype(Implementation::VectorConverter<3, T, U>())
#endif
>
constexpr explicit Color3(const U& other): Vector3<T>(Implementation::VectorConverter<3, T, U>::from(other)) {}
/** @brief Copy constructor */
constexpr /*implicit*/ Color3(const Vector<3, T>& other) noexcept: Vector3<T>(other) {}
/**
10 years ago
* @brief Convert to HSV representation
*
* @see @ref hue(), @ref saturation(), @ref value(), @ref fromHsv()
*/
ColorHsv<FloatingPointType> toHsv() const {
return Implementation::toHsv<T>(*this);
}
/**
* @brief Hue
* @return Hue in range @f$ [0.0\degree, 360.0\degree] @f$.
*
* @see @ref saturation(), @ref value(), @ref toHsv(), @ref fromHsv()
*/
Deg<FloatingPointType> hue() const {
return Deg<FloatingPointType>(Implementation::hue<T>(*this));
}
/**
* @brief Saturation
* @return Saturation in range @f$ [0.0, 1.0] @f$.
*
* @see @ref hue(), @ref value(), @ref toHsv(), @ref fromHsv()
*/
FloatingPointType saturation() const {
return Implementation::saturation<T>(*this);
}
/**
* @brief Value
* @return Value in range @f$ [0.0, 1.0] @f$.
*
* @see @ref hue(), @ref saturation(), @ref toHsv(), @ref fromHsv()
*/
FloatingPointType value() const {
return Implementation::value<T>(*this);
}
/**
* @brief Convert to sRGB representation
*
* Assuming the color is in linear RGB with D65 illuminant and 2°
* standard colorimetric observer, applies sRGB curve onto it,
* returning the color represented in sRGB color space: @f[
* \boldsymbol{c}_\mathrm{sRGB} = \begin{cases}
* 12.92C_\mathrm{linear}, & \boldsymbol{c}_\mathrm{linear} \le 0.0031308 \\
* (1 + a) \boldsymbol{c}_\mathrm{linear}^{1/2.4}-a, & \boldsymbol{c}_\mathrm{linear} > 0.0031308
* \end{cases}
* @f]
* @see @ref fromSrgb(), @ref toSrgbInt(), @ref Color4::toSrgbAlpha()
*/
Vector3<FloatingPointType> toSrgb() const {
return Implementation::toSrgb<T>(*this);
}
/** @overload
* @brief Convert to integral sRGB representation
*
* Useful in cases where you have a floating-point linear RGB color and
* want to create for example an 8-bit sRGB representation out of it:
*
* @snippet MagnumMath.cpp Color3-toSrgb
*
* For conversion to a *linear* 24-bit representation (i.e, without
* applying the sRGB curve), use @ref pack():
*
* @snippet MagnumMath.cpp Color3-pack
*
* @see @ref toSrgbInt(), @ref Color4::toSrgbAlpha()
*/
template<class Integral> Vector3<Integral> toSrgb() const {
return Implementation::toSrgbIntegral<T, Integral>(*this);
}
/**
* @brief Convert to 24-bit integral sRGB representation
*
* See @ref toSrgb() const for more information. Note that the integral
* value is endian-dependent (the red channel being in the *last* byte
* on little-endian platforms), for conversion to an endian-independent
* sRGB / linear representation use @ref toSrgb() const / @ref pack().
* @see @ref Color4::toSrgbAlphaInt()
*/
UnsignedInt toSrgbInt() const {
const auto srgb = toSrgb<UnsignedByte>();
return (srgb[0] << 16) | (srgb[1] << 8) | srgb[2];
}
/**
* @brief Convert to [CIE XYZ representation](https://en.wikipedia.org/wiki/CIE_1931_color_space)
*
* Assuming the color is in linear RGB with D65 illuminant and 2°
* standard colorimetric observer, applies transformation matrix,
* returning the color in CIE XYZ color space. @f[
* \begin{bmatrix} X \\ Y \\ Z \end{bmatrix} =
* \begin{bmatrix}
* 0.4124 & 0.3576 & 0.1805 \\
* 0.2126 & 0.7152 & 0.0722 \\
* 0.0193 & 0.1192 & 0.9505
* \end{bmatrix}
* \begin{bmatrix} R_\mathrm{linear} \\ G_\mathrm{linear} \\ B_\mathrm{linear} \end{bmatrix}
* @f]
*
* Please note that @ref x(), @ref y() and @ref z() *do not* correspond
* to primaries in CIE XYZ color space, but are rather aliases to
* @ref r(), @ref g() and @ref b().
* @see @ref fromXyz(), @ref fromSrgb(), @ref xyzToXyY()
*/
Vector3<FloatingPointType> toXyz() const {
return Implementation::toXyz<T>(*this);
}
MAGNUM_VECTOR_SUBCLASS_IMPLEMENTATION(3, Color3)
};
#ifndef DOXYGEN_GENERATING_OUTPUT
MAGNUM_VECTORn_OPERATOR_IMPLEMENTATION(3, Color3)
#endif
/**
10 years ago
@brief Color in linear RGBA color space
See @ref Color3 for more information.
@see @link operator""_rgba() @endlink, @link operator""_rgbaf() @endlink,
@link operator""_srgba() @endlink, @link operator""_srgbaf() @endlink,
@ref Magnum::Color4, @ref Magnum::Color4h, @ref Magnum::Color4ub,
@ref Magnum::Color4us
*/
/* Not using template specialization because some internal functions are
impossible to explicitly instantiate */
#ifndef DOXYGEN_GENERATING_OUTPUT
template<class T>
#else
template<class T = Float>
#endif
class Color4: public Vector4<T> {
public:
/** @copydoc Color3::FloatingPointType */
typedef typename Color3<T>::FloatingPointType FloatingPointType;
#ifdef MAGNUM_BUILD_DEPRECATED
/** @brief @copybrief ColorHsv
* @m_deprecated_since{2019,10} Use @ref ColorHsv instead.
*/
typedef CORRADE_DEPRECATED("use ColorHsv instead") std::tuple<Deg<FloatingPointType>, FloatingPointType, FloatingPointType> Hsv;
#endif
/**
* @brief Red color
*
* Convenience alternative to e.g. @cpp Color4{red, 0.0f, 0.0f, alpha} @ce.
* @see @ref green(), @ref blue(), @ref cyan()
*/
constexpr static Color4<T> red(T red = Implementation::fullChannel<T>(), T alpha = Implementation::fullChannel<T>()) {
return {red, T(0), T(0), alpha};
}
/**
* @brief Green color
*
* Convenience alternative to e.g. @cpp Color4{0.0f, green, 0.0f, alpha} @ce.
* @see @ref red(), @ref blue(), @ref magenta()
*/
constexpr static Color4<T> green(T green = Implementation::fullChannel<T>(), T alpha = Implementation::fullChannel<T>()) {
return {T(0), green, T(0), alpha};
}
/**
* @brief Blue color
*
* Convenience alternative to e.g. @cpp Color4{0.0f, 0.0f, blue, alpha} @ce.
* @see @ref red(), @ref green(), @ref yellow()
*/
constexpr static Color4<T> blue(T blue = Implementation::fullChannel<T>(), T alpha = Implementation::fullChannel<T>()) {
return {T(0), T(0), blue, alpha};
}
/**
* @brief Cyan color
*
* Convenience alternative to e.g. @cpp Color4{red, 1.0f, 1.0f, alpha} @ce.
* @see @ref magenta(), @ref yellow(), @ref red()
*/
constexpr static Color4<T> cyan(T red = T(0), T alpha = Implementation::fullChannel<T>()) {
return {red, Implementation::fullChannel<T>(), Implementation::fullChannel<T>(), alpha};
}
/**
* @brief Magenta color
*
* Convenience alternative to e.g. @cpp Color4{1.0f, green, 1.0f, alpha} @ce.
* @see @ref cyan(), @ref yellow(), @ref green()
*/
constexpr static Color4<T> magenta(T green = T(0), T alpha = Implementation::fullChannel<T>()) {
return {Implementation::fullChannel<T>(), green, Implementation::fullChannel<T>(), alpha};
}
/**
* @brief Yellow color
*
* Convenience alternative to e.g. @cpp Color4{1.0f, 1.0f, blue, alpha} @ce.
* @see @ref cyan(), @ref magenta(), @ref red()
*/
constexpr static Color4<T> yellow(T blue = T(0), T alpha = Implementation::fullChannel<T>()) {
return {Implementation::fullChannel<T>(), Implementation::fullChannel<T>(), blue, alpha};
}
/**
10 years ago
* @brief Create RGB color from HSV representation
10 years ago
* @param hsv Color in HSV color space
* @param a Alpha value, defaults to @cpp 1.0 @ce for
* floating-point types and maximum positive value for integral
* types
10 years ago
*
* Hue can overflow the range @f$ [0.0, 360.0] @f$.
* @see @ref toHsv()
*/
static Color4<T> fromHsv(const ColorHsv<FloatingPointType>& hsv, T a = Implementation::fullChannel<T>()) {
return Color4<T>(Implementation::fromHsv<T>(hsv), a);
}
#ifdef MAGNUM_BUILD_DEPRECATED
/** @brief @copybrief fromHsv(const ColorHsv<FloatingPointType>&, T)
* @m_deprecated_since{2019,10} Use @ref fromHsv(const ColorHsv<FloatingPointType>&, T)
* instead.
*/
static CORRADE_DEPRECATED("use fromHsv(const ColorHsv<FloatingPointType>&, T) instead") Color4<T> fromHsv(Deg<FloatingPointType> hue, FloatingPointType saturation, FloatingPointType value, T alpha = Implementation::fullChannel<T>()) {
return fromHsv({hue, saturation, value}, alpha);
}
#endif
/**
* @brief Create linear RGBA color from sRGB + alpha representation
* @param srgbAlpha Color in sRGB color space with linear alpha
*
* Applies inverse sRGB curve onto RGB channels of the input, alpha
* channel is assumed to be linear. See @ref Color3::fromSrgb() for
* more information.
* @see @link operator""_srgbaf @endlink, @ref toSrgbAlpha()
*/
/* Input is a Vector4 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
static Color4<T> fromSrgbAlpha(const Vector4<FloatingPointType>& srgbAlpha) {
return {Implementation::fromSrgbAlpha<T>(srgbAlpha)};
}
/** @overload
* @brief Create linear RGB color from integral sRGB + alpha representation
* @param srgbAlpha Color in sRGB color space with linear alpha
*
* Useful in cases where you have for example an 8-bit sRGB + alpha
* representation and want to create a floating-point linear RGBA color
* out of it:
*
* @snippet MagnumMath.cpp Color4-fromSrgbAlpha
*
* For conversion from a *linear* 32-bit representation (i.e, without
* applying the sRGB curve), use @ref unpack():
*
* @snippet MagnumMath.cpp Color4-unpack
*
* @see @ref fromSrgbAlphaInt(UnsignedInt)
*/
/* Input is a Vector4 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
template<class Integral> static Color4<T> fromSrgbAlpha(const Vector4<Integral>& srgbAlpha) {
return {Implementation::fromSrgbAlphaIntegral<T, Integral>(srgbAlpha)};
}
/**
* @brief Create linear RGBA color from sRGB representation
* @param srgb Color in sRGB color space
* @param a Alpha value, defaults to @cpp 1.0 @ce for
* floating-point types and maximum positive value for integral
* types
*
* Applies inverse sRGB curve onto RGB channels of the input. Alpha
* value is taken as-is. See @ref Color3::fromSrgb() for more
* information.
* @see @link operator""_srgbaf @endlink, @ref toSrgbAlpha()
*/
/* Input is a Vector3 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
static Color4<T> fromSrgb(const Vector3<FloatingPointType>& srgb, T a = Implementation::fullChannel<T>()) {
return {Implementation::fromSrgb<T>(srgb), a};
}
/** @overload
* @brief Create linear RGB color from integral sRGB representation
* @param srgb Color in sRGB color space
* @param a Linear alpha value, defaults to @cpp 1.0 @ce for
* floating-point types and maximum positive value for integral
* types
*
* Same as above, but with alpha as a separate parameter.
* @see @ref fromSrgbInt(UnsignedInt, T)
*/
/* Input is a Vector3 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
template<class Integral> static Color4<T> fromSrgb(const Vector3<Integral>& srgb, T a = Implementation::fullChannel<T>()) {
return {Implementation::fromSrgbIntegral<T, Integral>(srgb), a};
}
/**
* @brief Create linear RGBA color from 32-bit sRGB + alpha representation
* @param srgbAlpha 32-bit sRGB color with linear alpha
* @m_since_latest
*
* See @ref Color3::fromSrgbInt() for more information and
* @ref toSrgbAlphaInt() for an inverse operation. There's also a
* @link operator""_srgbaf() @endlink that does this conversion
* directly from hexadecimal literals. The following two statements are
* equivalent:
*
* @snippet MagnumMath.cpp Color4-fromSrgbAlphaInt
*
* Note that the integral value is endian-dependent (the red channel
* being in the *last* byte on little-endian platforms), for conversion
* from an endian-independent sRGB / linear representation use
* @ref fromSrgbAlpha(const Vector4<Integral>&) / @ref unpack().
*/
static Color4<T> fromSrgbAlphaInt(UnsignedInt srgbAlpha) {
return fromSrgbAlpha<UnsignedByte>({UnsignedByte(srgbAlpha >> 24),
UnsignedByte(srgbAlpha >> 16),
UnsignedByte(srgbAlpha >> 8),
UnsignedByte(srgbAlpha)});
}
#ifdef MAGNUM_BUILD_DEPRECATED
/**
* @copybrief fromSrgbAlphaInt()
* @m_deprecated_since_latest Use @ref fromSrgbAlphaInt() instead.
*/
CORRADE_DEPRECATED("use fromSrgInt() instead") static Color4<T> fromSrgbAlpha(UnsignedInt srgb) {
return fromSrgbAlphaInt(srgb);
}
#endif
/**
* @brief Create linear RGBA color from 32-bit sRGB + alpha representation
* @param srgb 24-bit sRGB color
* @param a Linear alpha value, defaults to @cpp 1.0 @ce for
* floating-point types and maximum positive value for integral
* types
*
* Same as above, but with alpha as a separate parameter.
*/
static Color4<T> fromSrgbInt(UnsignedInt srgb, T a = Implementation::fullChannel<T>()) {
return fromSrgb<UnsignedByte>({UnsignedByte(srgb >> 16),
UnsignedByte(srgb >> 8),
UnsignedByte(srgb)}, a);
}
#ifdef MAGNUM_BUILD_DEPRECATED
/**
* @copybrief fromSrgbInt()
* @m_deprecated_since_latest Use @ref fromSrgbInt() instead.
*/
CORRADE_DEPRECATED("use fromSrgInt() instead") static Color4<T> fromSrgb(UnsignedInt srgb, T a = Implementation::fullChannel<T>()) {
return fromSrgbInt(srgb, a);
}
#endif
/**
* @brief Create RGBA color from [CIE XYZ representation](https://en.wikipedia.org/wiki/CIE_1931_color_space)
* @param xyz Color in CIE XYZ color space
* @param a Alpha value, defaults to @cpp 1.0 @ce for
* floating-point types and maximum positive value for integral
* types
*
* Applies transformation matrix, returning the input in linear RGB
* color space. See @ref Color3::fromXyz() for more information.
* @see @ref toXyz(), @ref toSrgbAlpha(), @ref xyYToXyz()
*/
static Color4<T> fromXyz(const Vector3<FloatingPointType> xyz, T a = Implementation::fullChannel<T>()) {
return {Implementation::fromXyz<T>(xyz), a};
}
/**
* @brief Default constructor
*
* Equivalent to @ref Color4(ZeroInitT).
*/
constexpr /*implicit*/ Color4() noexcept: Vector4<T>{ZeroInit} {}
/**
* @brief Construct a zero color
*
* All components are set to zero.
*/
constexpr explicit Color4(ZeroInitT) noexcept: Vector4<T>{ZeroInit} {}
/** @copydoc Vector::Vector(NoInitT) */
explicit Color4(Magnum::NoInitT) noexcept: Vector4<T>{Magnum::NoInit} {}
/**
* @copydoc Color3::Color3(T)
* @param alpha Alpha value, defaults to @cpp 1.0 @ce for
* floating-point types and maximum positive value for integral
* types
*/
constexpr explicit Color4(T rgb, T alpha = Implementation::fullChannel<T>()) noexcept: Vector4<T>(rgb, rgb, rgb, alpha) {}
/**
* @brief Constructor
* @param r R value
* @param g G value
* @param b B value
* @param a A value, defaults to @cpp 1.0 @ce for floating-point
* types and maximum positive value for integral types.
*/
constexpr /*implicit*/ Color4(T r, T g, T b, T a = Implementation::fullChannel<T>()) noexcept: Vector4<T>(r, g, b, a) {}
/**
* @brief Constructor
* @param rgb Three-component color
* @param a A value
*/
/* Not marked as explicit, because conversion from Color3 to Color4
is fairly common, nearly always with A set to 1 */
constexpr /*implicit*/ Color4(const Vector3<T>& rgb, T a = Implementation::fullChannel<T>()) noexcept: Vector4<T>(rgb[0], rgb[1], rgb[2], a) {}
/**
* @copydoc Vector::Vector(const Vector<size, U>&)
*
* @attention This function doesn't do any (un)packing, use either
* @ref pack() / @ref unpack() or the integer variants of
* @ref toSrgbAlpha() / @ref fromSrgbAlpha() instead. See
* @ref Color3 class documentation for more information.
*/
template<class U> constexpr explicit Color4(const Vector<4, U>& other) noexcept: Vector4<T>(other) {}
/** @brief Construct color from external representation */
template<class U, class V =
#ifndef CORRADE_MSVC2015_COMPATIBILITY /* Causes ICE */
decltype(Implementation::VectorConverter<4, T, U>::from(std::declval<U>()))
#else
decltype(Implementation::VectorConverter<4, T, U>())
#endif
>
constexpr explicit Color4(const U& other): Vector4<T>(Implementation::VectorConverter<4, T, U>::from(other)) {}
/** @brief Copy constructor */
constexpr /*implicit*/ Color4(const Vector<4, T>& other) noexcept: Vector4<T>(other) {}
10 years ago
/**
* @brief Convert to HSV representation
*
* The alpha channel is not subject to any conversion, so it is
* ignored.
* @see @ref hue(), @ref saturation(), @ref value(), @ref a(),
* @ref fromHsv()
10 years ago
*/
ColorHsv<FloatingPointType> toHsv() const {
return Implementation::toHsv<T>(Vector4<T>::rgb());
}
/** @copydoc Color3::hue() */
Deg<FloatingPointType> hue() const {
return Implementation::hue<T>(Vector4<T>::rgb());
}
/** @copydoc Color3::saturation() */
FloatingPointType saturation() const {
return Implementation::saturation<T>(Vector4<T>::rgb());
}
/** @copydoc Color3::value() */
FloatingPointType value() const {
return Implementation::value<T>(Vector4<T>::rgb());
}
/**
* @brief Convert to sRGB + alpha representation
*
* Assuming the color is in linear RGB, applies sRGB curve onto the RGB
* channels, returning the color represented in sRGB color space. Alpha
* channel is kept linear. See @ref Color3::toSrgb() for more
* information.
*
* @see @ref fromSrgbAlpha(), @ref toSrgbAlphaInt()
*/
Vector4<FloatingPointType> toSrgbAlpha() const {
return Implementation::toSrgbAlpha<T>(*this);
}
/** @overload
* @brief Convert to integral sRGB + alpha representation
*
* Useful in cases where you have a floating-point linear RGBA color
* and want to create for example an 8-bit sRGB + alpha representation
* out of it:
*
* @snippet MagnumMath.cpp Color4-toSrgbAlpha
*
* For conversion to a *linear* 32-bit representation (i.e, without
* applying the sRGB curve), use @ref pack():
*
* @snippet MagnumMath.cpp Color4-pack
*
* @see @ref toSrgbAlphaInt()
*/
template<class Integral> Vector4<Integral> toSrgbAlpha() const {
return Implementation::toSrgbAlphaIntegral<T, Integral>(*this);
}
/**
* @brief Convert to 32-bit integral sRGB + linear alpha representation
*
* See @ref Color3::toSrgb() const for more information. Use @ref rgb()
* together with @ref Color3::toSrgbInt() to output a 24-bit sRGB
* color. Note that the integral value is endian-dependent (the red
* channel being in the *last* byte on little-endian platforms), for
* conversion to an endian-independent sRGB / linear representation use
* @ref toSrgbAlpha() const / @ref pack().
*/
UnsignedInt toSrgbAlphaInt() const {
const auto srgbAlpha = toSrgbAlpha<UnsignedByte>();
return (srgbAlpha[0] << 24) | (srgbAlpha[1] << 16) | (srgbAlpha[2] << 8) | srgbAlpha[3];
}
/**
* @brief Convert to [CIE XYZ representation](https://en.wikipedia.org/wiki/CIE_1931_color_space)
*
* Assuming the color is in linear RGB, applies transformation matrix,
* returning the color in CIE XYZ color space. The alpha channel is not
* subject to any conversion, so it is ignored. See @ref Color3::toXyz()
* for more information.
*
* Please note that @ref xyz(), @ref x(), @ref y() and @ref z() *do not*
* correspond to primaries in CIE XYZ color space, but are rather
* aliases to @ref rgb(), @ref r(), @ref g() and @ref b().
* @see @ref fromXyz(), @ref xyzToXyY()
*/
Vector3<FloatingPointType> toXyz() const {
return Implementation::toXyz<T>(rgb());
}
/* Overloads to remove WTF-factor from return types */
#ifndef DOXYGEN_GENERATING_OUTPUT
Color3<T>& xyz() { return Color3<T>::from(Vector4<T>::data()); }
constexpr const Color3<T> xyz() const { return Vector4<T>::xyz(); }
Color3<T>& rgb() { return xyz(); }
constexpr const Color3<T> rgb() const { return xyz(); }
#endif
MAGNUM_VECTOR_SUBCLASS_IMPLEMENTATION(4, Color4)
};
/** @relatesalso Color3
@brief Convert color from [CIE xyY representation](https://en.wikipedia.org/wiki/CIE_1931_color_space#CIE_xy_chromaticity_diagram_and_the_CIE_xyY_color_space) to CIE XYZ
@f[
\begin{array}{rcl}
X & = & \dfrac{Y}{y}x \\
Z & = & \dfrac{Y}{y}(1 - x - y)
\end{array}
@f]
@see @ref xyzToXyY(), @ref Color3::fromXyz(), @ref Color3::toXyz()
*/
template<class T> inline Vector3<T> xyYToXyz(const Vector3<T>& xyY) {
return {xyY[0]*xyY[2]/xyY[1], xyY[2], (T(1) - xyY[0] - xyY[1])*xyY[2]/xyY[1]};
}
/** @relatesalso Color3
@brief Convert color from CIE XYZ representation to [CIE xyY](https://en.wikipedia.org/wiki/CIE_1931_color_space#CIE_xy_chromaticity_diagram_and_the_CIE_xyY_color_space)
@f[
\begin{array}{rcl}
x & = & \dfrac{X}{X + Y + Z} \\
y & = & \dfrac{Y}{X + Y + Z}
\end{array}
@f]
@see @ref xyYToXyz(), @ref Color3::fromXyz(), @ref Color3::toXyz()
*/
template<class T> inline Vector3<T> xyzToXyY(const Vector3<T>& xyz) {
return {xyz.xy()/xyz.sum(), xyz.y()};
}
/**
@brief HSV color
@m_since{2019,10}
Storage-only type with just the usual constructors and (non-)equality
comparison.
@see @ref Color3::fromHsv(), @ref Color3::toHsv(), @ref Color4::fromHsv(),
@ref Color4::toHsv()
*/
template<class T> struct ColorHsv {
/**
* @brief Default constructor
*
* Equivalent to @ref ColorHsv(ZeroInitT).
*/
constexpr /*implicit*/ ColorHsv() noexcept: hue{}, saturation{}, value{} {}
/**
* @brief Construct a zero color
*
* All members are set to zero.
*/
constexpr explicit ColorHsv(ZeroInitT) noexcept: hue{}, saturation{}, value{} {}
/** @brief Construct without initializing the contents */
explicit ColorHsv(Magnum::NoInitT) noexcept: hue{Magnum::NoInit} /* and the others not */ {}
/** @brief Constructor */
constexpr /*implicit*/ ColorHsv(Deg<T> hue, T saturation, T value) noexcept: hue{hue}, saturation{saturation}, value{value} {}
/**
* @brief Construct from different type
*
* Performs only default casting on the values, no rounding or
* anything else.
*/
template<class U> constexpr explicit ColorHsv(const ColorHsv<U>& other) noexcept: hue{other.hue}, saturation{T(other.saturation)}, value{T(other.value)} {}
#ifdef MAGNUM_BUILD_DEPRECATED
/**
* @brief Construct from @ref Color3::Hsv
* @m_deprecated_since{2019,10} Use @ref ColorHsv instead of
* @ref Color3::Hsv
*/
constexpr CORRADE_DEPRECATED("use ColorHsv instead of Color3::Hsv") /*implicit*/ ColorHsv(std::tuple<Deg<T>, T, T> hsv) noexcept:
hue{std::get<0>(hsv)}, saturation{std::get<1>(hsv)}, value{std::get<2>(hsv)} {}
/**
* @brief Convert to @ref Color3::Hsv
* @m_deprecated_since{2019,10} Use @ref ColorHsv instead of
* @ref Color3::Hsv
*/
constexpr CORRADE_DEPRECATED("use ColorHsv instead of Color3::Hsv") /*implicit*/ operator std::tuple<Deg<T>, T, T>() const {
return std::make_tuple(hue, saturation, value);
}
/** @overload */ /* for std::tie() */
CORRADE_DEPRECATED("use ColorHsv instead of Color3::Hsv") /*implicit*/ operator std::tuple<Deg<T>&, T&, T&>() {
return std::tuple<Deg<T>&, T&, T&>{hue, saturation, value};
}
/** @overload */ /* for std::tie() */
constexpr CORRADE_DEPRECATED("use ColorHsv instead of Color3::Hsv") /*implicit*/ operator std::tuple<const Deg<T>&, const T&, const T&>() const {
return std::tuple<const Deg<T>&, const T&, const T&>{hue, saturation, value};
}
#endif
/** @brief Equality comparison */
bool operator==(const ColorHsv<T>& other) const {
return hue == other.hue &&
TypeTraits<T>::equals(saturation, other.saturation) &&
TypeTraits<T>::equals(value, other.value);
}
/** @brief Non-equality comparison */
bool operator!=(const ColorHsv<T>& other) const {
return !operator==(other);
}
/** @brief Hue, in range @f$ [0.0, 360.0] @f$ */
Deg<T> hue;
/** @brief Saturation, in range @f$ [0.0, 1.0] @f$ */
T saturation;
/** @brief Value, in range @f$ [0.0, 1.0] @f$ */
T value;
};
#ifndef CORRADE_NO_DEBUG
/** @debugoperator{ColorHsv} */
template<class T> Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug& debug, const ColorHsv<T>& value) {
return debug << "ColorHsv(" << Corrade::Utility::Debug::nospace << value.hue
<< Corrade::Utility::Debug::nospace << "," << value.saturation
<< Corrade::Utility::Debug::nospace << "," << value.value
<< Corrade::Utility::Debug::nospace << ")";
}
/* Explicit instantiation for commonly used types */
#ifndef DOXYGEN_GENERATING_OUTPUT
extern template MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug&, const ColorHsv<Float>&);
#endif
#endif
#ifndef DOXYGEN_GENERATING_OUTPUT
MAGNUM_VECTORn_OPERATOR_IMPLEMENTATION(4, Color4)
#endif
namespace Literals {
/** @relatesalso Magnum::Math::Color3
@brief 8bit-per-channel linear RGB literal
Unpacks the literal into three 8-bit values. Example usage:
@snippet MagnumMath.cpp _rgb
@attention 8bit-per-channel colors are commonly treated as being in sRGB color
space, which is not directly usable in calculations and has to be converted
to linear RGB first. To convey such meaning, use the @link operator""_srgb() @endlink
literal instead.
@see @link operator""_rgba() @endlink, @link operator""_rgbf() @endlink
@m_keywords{_rgb rgb}
*/
constexpr Color3<UnsignedByte> operator "" _rgb(unsigned long long value) {
return {UnsignedByte(value >> 16), UnsignedByte(value >> 8), UnsignedByte(value)};
}
/** @relatesalso Magnum::Math::Color3
@brief 8bit-per-channel sRGB literal
Unpacks the literal into three 8-bit values without any colorspace conversion.
Behaves identically to @link operator""_rgb() @endlink though it doesn't
return a @ref Color3 type to indicate that the resulting value is not linear
RGB. Use this literal to document that given value is in sRGB. Example usage:
@snippet MagnumMath.cpp _srgb
@attention Note that colors in sRGB representation should not be used directly
in calculations --- they should be converted to linear RGB, calculation
done on the linear representation and then converted back to sRGB. Use the
@link operator""_srgbf() @endlink literal if you want to get a linear RGB
representation directly or convert the value using @ref Color3::fromSrgb()
/ @ref Color3::fromSrgbInt().
@see @link operator""_srgba() @endlink, @link operator""_rgb() @endlink
@m_keywords{_srgb srgb}
*/
/* Output is a Vector3 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
constexpr Vector3<UnsignedByte> operator "" _srgb(unsigned long long value) {
return {UnsignedByte(value >> 16), UnsignedByte(value >> 8), UnsignedByte(value)};
}
/** @relatesalso Magnum::Math::Color4
@brief 8bit-per-channel linear RGBA literal
Unpacks the literal into four 8-bit values. Example usage:
@snippet MagnumMath.cpp _rgba
@attention 8bit-per-channel colors are commonly treated as being in sRGB color
space, which is not directly usable in calculations and has to be converted
to linear RGB first. To convey such meaning, use the @link operator""_srgba() @endlink
literal instead.
@see @link operator""_rgb() @endlink, @link operator""_rgbaf() @endlink
@m_keywords{_rgba rgba}
*/
constexpr Color4<UnsignedByte> operator "" _rgba(unsigned long long value) {
return {UnsignedByte(value >> 24), UnsignedByte(value >> 16), UnsignedByte(value >> 8), UnsignedByte(value)};
}
/** @relatesalso Magnum::Math::Color4
@brief 8bit-per-channel sRGB + alpha literal
Unpacks the literal into four 8-bit values without any colorspace conversion.
Behaves identically to @link operator""_rgba() @endlink though it doesn't
return a @ref Color4 type to indicate that the resulting value is not linear
RGBA. Use this literal to document that given value is in sRGB + alpha. Example
usage:
@snippet MagnumMath.cpp _srgba
@attention Note that colors in sRGB representation should not be used directly
in calculations --- they should be converted to linear RGB, calculation
done on the linear representation and then converted back to sRGB. Use the
@link operator""_srgbaf() @endlink literal if you want to get a linear RGBA
representation directly or convert the value using
@ref Color4::fromSrgbAlpha() / @ref Color4::fromSrgbAlphaInt().
@see @link operator""_srgb() @endlink, @link operator""_rgba() @endlink
@m_keywords{_srgba srgba}
*/
/* Output is a Vector3 to hint that it doesn't have any (additive,
multiplicative) semantics of a linear RGB color */
constexpr Vector4<UnsignedByte> operator "" _srgba(unsigned long long value) {
return {UnsignedByte(value >> 24), UnsignedByte(value >> 16), UnsignedByte(value >> 8), UnsignedByte(value)};
}
/** @relatesalso Magnum::Math::Color3
@brief Float linear RGB literal
Unpacks the 8-bit values into three floats. Example usage:
@snippet MagnumMath.cpp _rgbf
@attention 8bit-per-channel colors are commonly treated as being in sRGB color
space, which is not directly usable in calculations and has to be converted
to linear RGB first. In that case use the @link operator""_srgbf() @endlink
literal instead.
@see @link operator""_rgbaf() @endlink, @link operator""_rgb() @endlink
@m_keywords{_rgbf rgbf}
*/
inline Color3<Float> operator "" _rgbf(unsigned long long value) {
return Math::unpack<Color3<Float>>(Color3<UnsignedByte>{UnsignedByte(value >> 16), UnsignedByte(value >> 8), UnsignedByte(value)});
}
/** @relatesalso Magnum::Math::Color3
@brief Float sRGB literal
Calls @ref Color3::fromSrgbInt() on the literal value. Example usage:
@snippet MagnumMath.cpp _srgbf
@see @link operator""_srgbaf() @endlink, @link operator""_srgb() @endlink,
@link operator""_rgbf() @endlink
@m_keywords{_srgbf srgbf}
*/
inline Color3<Float> operator "" _srgbf(unsigned long long value) {
return Color3<Float>::fromSrgbInt(UnsignedInt(value));
}
/** @relatesalso Magnum::Math::Color4
@brief Float linear RGBA literal
Unpacks the 8-bit values into four floats. Example usage:
@snippet MagnumMath.cpp _rgbaf
@attention 8bit-per-channel colors are commonly treated as being in sRGB color
space, which is not directly usable in calculations and has to be converted
to linear RGB first. In that case use the @link operator""_srgbaf() @endlink
literal instead.
@see @link operator""_rgbf() @endlink, @link operator""_rgba() @endlink
@m_keywords{_rgbaf rgbaf}
*/
inline Color4<Float> operator "" _rgbaf(unsigned long long value) {
return Math::unpack<Color4<Float>>(Color4<UnsignedByte>{UnsignedByte(value >> 24), UnsignedByte(value >> 16), UnsignedByte(value >> 8), UnsignedByte(value)});
}
/** @relatesalso Magnum::Math::Color4
@brief Float sRGB + alpha literal
Calls @ref Color4::fromSrgbAlphaInt() on the literal value. Example usage:
@snippet MagnumMath.cpp _srgbaf
@see @link operator""_srgbf() @endlink, @link operator""_srgba() @endlink,
@link operator""_rgbaf() @endlink
@m_keywords{_srgbaf srgbaf}
*/
inline Color4<Float> operator "" _srgbaf(unsigned long long value) {
return Color4<Float>::fromSrgbAlphaInt(UnsignedInt(value));
}
}
#ifndef CORRADE_NO_DEBUG
/**
@debugoperator{Color3}
If @ref Corrade::Utility::Debug::Flag::Color is enabled or
@ref Corrade::Utility::Debug::color was set immediately before, prints the
value as an ANSI 24bit color escape sequence using two successive Unicode block
characters (to have it roughly square). To preserve at least some information
when text is copied, the square consists of one of the five
@cb{.shell-session} @ce shades, however the color is set for both
foreground and background so the actual block character is indistinguishable
when seen on a terminal.
If @ref Corrade::Utility::Debug::Flag::Color is enabled and
@ref Corrade::Utility::Debug::Flag::DisableColors is set, only the shaded
character is used, without any ANSI color escape sequence.
If @ref Corrade::Utility::Debug::Flag::Color is not enabled, the value is
printed as a hex color (e.g. @cb{.shell-session} #ff33aa @ce). Other underlying
types are handled by @ref operator<<(Corrade::Utility::Debug&, const Vector<size, T>&).
For example, the following snippet:
@snippet MagnumMath.cpp Color3-debug
<b></b>
@m_class{m-noindent}
prints the following on terminals that support it:
@include MathColor3-debug.ansi
*/
MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug& debug, const Color3<UnsignedByte>& value);
/**
@debugoperator{Color4}
If @ref Corrade::Utility::Debug::Flag::Color is enabled or
@ref Corrade::Utility::Debug::color was set immediately before, prints the
value as an ANSI 24bit color escape sequence using two successive Unicode block
characters (to have it roughly square). To preserve at least some information
when text is copied, the square consists of one of the five
@cb{.shell-session} @ce shades. The square shade is calculated as a
product of @ref Color4::value() and @ref Color4::a(). If calculated color value
is less than alpha, the colored square has the color set for both background
and foreground, otherwise the background is left at the default.
If @ref Corrade::Utility::Debug::Flag::Color is enabled and
@ref Corrade::Utility::Debug::Flag::DisableColors is set, only the shaded
character is used, without any ANSI color escape sequence.
If @ref Corrade::Utility::Debug::Flag::Color is not enabled, the value is
printed as a hex color (e.g. @cb{.shell-session} #ff33aaff @ce). Other
underlying types are handled by @ref operator<<(Corrade::Utility::Debug&, const Vector<size, T>&).
For example, the following snippet:
@snippet MagnumMath.cpp Color4-debug
<b></b>
@m_class{m-noindent}
prints the following on terminals that support it:
@include MathColor4-debug.ansi
*/
MAGNUM_EXPORT Corrade::Utility::Debug& operator<<(Corrade::Utility::Debug& debug, const Color4<UnsignedByte>& value);
#endif
namespace Implementation {
template<class T> struct TypeForSize<3, Color3<T>> { typedef Color3<T> Type; };
template<class T> struct TypeForSize<3, Color4<T>> { typedef Color3<T> Type; };
template<class T> struct TypeForSize<4, Color3<T>> { typedef Color4<T> Type; };
template<class T> struct TypeForSize<4, Color4<T>> { typedef Color4<T> Type; };
template<class T> struct StrictWeakOrdering<Color3<T>>: StrictWeakOrdering<Vector<3, T>> {};
template<class T> struct StrictWeakOrdering<Color4<T>>: StrictWeakOrdering<Vector<4, T>> {};
}
}}
namespace Corrade { namespace Utility {
#if !defined(CORRADE_NO_TWEAKABLE) && (defined(DOXYGEN_GENERATING_OUTPUT) || defined(CORRADE_TARGET_UNIX) || (defined(CORRADE_TARGET_WINDOWS) && !defined(CORRADE_TARGET_WINDOWS_RT)) || defined(CORRADE_TARGET_EMSCRIPTEN))
/**
@tweakableliteral{Magnum::Math::Color3}
Parses the @link Magnum::Math::Literals::operator""_rgb @endlink and
@link Magnum::Math::Literals::operator""_srgb @endlink literals.
@experimental
*/
template<> struct MAGNUM_EXPORT TweakableParser<Magnum::Math::Color3<Magnum::UnsignedByte>> {
TweakableParser() = delete;
/** @brief Parse the value */
static Containers::Pair<TweakableState, Magnum::Math::Color3<Magnum::UnsignedByte>> parse(Containers::StringView value);
};
#ifndef DOXYGEN_GENERATING_OUTPUT
template<> struct MAGNUM_EXPORT TweakableParser<Magnum::Math::Vector3<Magnum::UnsignedByte>>: TweakableParser<Magnum::Math::Color3<Magnum::UnsignedByte>> {};
#endif
/**
@tweakableliteral{Magnum::Math::Color4}
Parses the @link Magnum::Math::Literals::operator""_rgba @endlink and
@link Magnum::Math::Literals::operator""_srgba @endlink literals.
@experimental
*/
template<> struct MAGNUM_EXPORT TweakableParser<Magnum::Math::Color4<Magnum::UnsignedByte>> {
TweakableParser() = delete;
/** @brief Parse the value */
static Containers::Pair<TweakableState, Magnum::Math::Color4<Magnum::UnsignedByte>> parse(Containers::StringView value);
};
#ifndef DOXYGEN_GENERATING_OUTPUT
template<> struct MAGNUM_EXPORT TweakableParser<Magnum::Math::Vector4<Magnum::UnsignedByte>>: TweakableParser<Magnum::Math::Color4<Magnum::UnsignedByte>> {};
#endif
/**
@tweakableliteral{Magnum::Math::Color3}
Parses the @link Magnum::Math::Literals::operator""_rgbf @endlink and
@link Magnum::Math::Literals::operator""_srgbf @endlink literals.
@experimental
*/
template<> struct MAGNUM_EXPORT TweakableParser<Magnum::Math::Color3<Magnum::Float>> {
TweakableParser() = delete;
/** @brief Parse the value */
static Containers::Pair<TweakableState, Magnum::Math::Color3<Magnum::Float>> parse(Containers::StringView value);
};
/**
@tweakableliteral{Magnum::Math::Color4}
Parses the @link Magnum::Math::Literals::operator""_rgbaf @endlink and
@link Magnum::Math::Literals::operator""_srgbaf @endlink literals.
@experimental
*/
template<> struct MAGNUM_EXPORT TweakableParser<Magnum::Math::Color4<Magnum::Float>> {
TweakableParser() = delete;
/** @brief Parse the value */
static Containers::Pair<TweakableState, Magnum::Math::Color4<Magnum::Float>> parse(Containers::StringView value);
};
#endif
}}
#endif