mirror of
https://github.com/NohamR/RMHook-Win.git
synced 2026-05-25 19:59:46 +00:00
386 lines
8.5 KiB
C++
386 lines
8.5 KiB
C++
// Copyright (C) 2021 The Qt Company Ltd.
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// SPDX-License-Identifier: LicenseRef-Qt-Commercial OR LGPL-3.0-only OR GPL-2.0-only OR GPL-3.0-only
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#ifndef QMATH_H
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#define QMATH_H
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#if 0
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#pragma qt_class(QtMath)
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#endif
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#include <QtCore/qglobal.h>
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#include <QtCore/qalgorithms.h>
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#if __has_include(<bit>) && __cplusplus > 201703L
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#include <bit>
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#endif
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#ifndef _USE_MATH_DEFINES
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# define _USE_MATH_DEFINES
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# define undef_USE_MATH_DEFINES
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#endif
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#include <cmath>
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#ifdef undef_USE_MATH_DEFINES
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# undef _USE_MATH_DEFINES
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# undef undef_USE_MATH_DEFINES
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#endif
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QT_BEGIN_NAMESPACE
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#define QT_SINE_TABLE_SIZE 256
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extern Q_CORE_EXPORT const qreal qt_sine_table[QT_SINE_TABLE_SIZE];
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template <typename T> int qCeil(T v)
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{
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using std::ceil;
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return int(ceil(v));
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}
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template <typename T> int qFloor(T v)
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{
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using std::floor;
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return int(floor(v));
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}
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template <typename T> auto qFabs(T v)
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{
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using std::fabs;
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return fabs(v);
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}
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template <typename T> auto qSin(T v)
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{
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using std::sin;
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return sin(v);
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}
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template <typename T> auto qCos(T v)
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{
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using std::cos;
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return cos(v);
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}
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template <typename T> auto qTan(T v)
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{
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using std::tan;
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return tan(v);
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}
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template <typename T> auto qAcos(T v)
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{
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using std::acos;
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return acos(v);
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}
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template <typename T> auto qAsin(T v)
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{
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using std::asin;
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return asin(v);
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}
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template <typename T> auto qAtan(T v)
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{
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using std::atan;
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return atan(v);
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}
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template <typename T1, typename T2> auto qAtan2(T1 y, T2 x)
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{
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using std::atan2;
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return atan2(y, x);
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}
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template <typename T> auto qSqrt(T v)
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{
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using std::sqrt;
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return sqrt(v);
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}
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namespace QtPrivate {
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template <typename R, typename F> // For qfloat16 to specialize
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struct QHypotType { using type = decltype(std::hypot(R(1), F(1))); };
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// Implements hypot() without limiting number of arguments:
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template <typename T>
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class QHypotHelper
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{
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T scale, total;
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template <typename F> friend class QHypotHelper;
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QHypotHelper(T first, T prior) : scale(first), total(prior) {}
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public:
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QHypotHelper(T first) : scale(qAbs(first)), total(1) {}
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T result() const
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{ return qIsFinite(scale) ? scale > 0 ? scale * T(qSqrt(total)) : T(0) : scale; }
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template<typename F, typename ...Fs>
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auto add(F first, Fs... rest) const
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{ return add(first).add(rest...); }
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template<typename F, typename R = typename QHypotType<T, F>::type>
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QHypotHelper<R> add(F next) const
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{
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if (qIsInf(scale) || (qIsNaN(scale) && !qIsInf(next)))
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return QHypotHelper<R>(scale, R(1));
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if (qIsNaN(next))
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return QHypotHelper<R>(next, R(1));
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const R val = qAbs(next);
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if (!(scale > 0) || qIsInf(next))
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return QHypotHelper<R>(val, R(1));
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if (!(val > 0))
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return QHypotHelper<R>(scale, total);
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if (val > scale) {
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const R ratio = scale / next;
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return QHypotHelper<R>(val, total * ratio * ratio + R(1));
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}
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const R ratio = next / scale;
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return QHypotHelper<R>(scale, total + ratio * ratio);
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}
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};
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} // QtPrivate
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template<typename F, typename ...Fs>
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auto qHypot(F first, Fs... rest)
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{
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return QtPrivate::QHypotHelper<F>(first).add(rest...).result();
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}
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// However, where possible, use the standard library implementations:
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template <typename Tx, typename Ty>
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auto qHypot(Tx x, Ty y)
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{
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// C99 has hypot(), hence C++11 has std::hypot()
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using std::hypot;
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return hypot(x, y);
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}
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#if defined(__cpp_lib_hypot) && __cpp_lib_hypot >= 201603L // Expected to be true
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template <typename Tx, typename Ty, typename Tz>
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auto qHypot(Tx x, Ty y, Tz z)
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{
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using std::hypot;
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return hypot(x, y, z);
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}
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#endif // else: no need to over-ride the arbitrarily-many-arg form
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template <typename T> auto qLn(T v)
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{
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using std::log;
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return log(v);
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}
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template <typename T> auto qExp(T v)
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{
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using std::exp;
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return exp(v);
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}
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template <typename T1, typename T2> auto qPow(T1 x, T2 y)
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{
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using std::pow;
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return pow(x, y);
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}
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// TODO: use template variables (e.g. Qt::pi<type>) for these once we have C++14 support:
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#ifndef M_E
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#define M_E (2.7182818284590452354)
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#endif
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#ifndef M_LOG2E
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#define M_LOG2E (1.4426950408889634074)
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#endif
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#ifndef M_LOG10E
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#define M_LOG10E (0.43429448190325182765)
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#endif
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#ifndef M_LN2
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#define M_LN2 (0.69314718055994530942)
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#endif
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#ifndef M_LN10
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#define M_LN10 (2.30258509299404568402)
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#endif
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#ifndef M_PI
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#define M_PI (3.14159265358979323846)
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#endif
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#ifndef M_PI_2
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#define M_PI_2 (1.57079632679489661923)
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#endif
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#ifndef M_PI_4
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#define M_PI_4 (0.78539816339744830962)
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#endif
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#ifndef M_1_PI
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#define M_1_PI (0.31830988618379067154)
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#endif
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#ifndef M_2_PI
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#define M_2_PI (0.63661977236758134308)
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#endif
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#ifndef M_2_SQRTPI
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#define M_2_SQRTPI (1.12837916709551257390)
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#endif
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#ifndef M_SQRT2
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#define M_SQRT2 (1.41421356237309504880)
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#endif
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#ifndef M_SQRT1_2
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#define M_SQRT1_2 (0.70710678118654752440)
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#endif
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inline qreal qFastSin(qreal x)
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{
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int si = int(x * (0.5 * QT_SINE_TABLE_SIZE / M_PI)); // Would be more accurate with qRound, but slower.
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qreal d = x - si * (2.0 * M_PI / QT_SINE_TABLE_SIZE);
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int ci = si + QT_SINE_TABLE_SIZE / 4;
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si &= QT_SINE_TABLE_SIZE - 1;
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ci &= QT_SINE_TABLE_SIZE - 1;
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return qt_sine_table[si] + (qt_sine_table[ci] - 0.5 * qt_sine_table[si] * d) * d;
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}
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inline qreal qFastCos(qreal x)
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{
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int ci = int(x * (0.5 * QT_SINE_TABLE_SIZE / M_PI)); // Would be more accurate with qRound, but slower.
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qreal d = x - ci * (2.0 * M_PI / QT_SINE_TABLE_SIZE);
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int si = ci + QT_SINE_TABLE_SIZE / 4;
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si &= QT_SINE_TABLE_SIZE - 1;
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ci &= QT_SINE_TABLE_SIZE - 1;
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return qt_sine_table[si] - (qt_sine_table[ci] + 0.5 * qt_sine_table[si] * d) * d;
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}
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constexpr inline float qDegreesToRadians(float degrees)
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{
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return degrees * float(M_PI / 180);
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}
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constexpr inline double qDegreesToRadians(double degrees)
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{
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return degrees * (M_PI / 180);
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}
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constexpr inline long double qDegreesToRadians(long double degrees)
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{
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return degrees * (M_PI / 180);
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}
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template <typename T, std::enable_if_t<std::is_integral_v<T>, bool> = true>
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constexpr inline double qDegreesToRadians(T degrees)
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{
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return qDegreesToRadians(static_cast<double>(degrees));
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}
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constexpr inline float qRadiansToDegrees(float radians)
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{
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return radians * float(180 / M_PI);
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}
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constexpr inline double qRadiansToDegrees(double radians)
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{
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return radians * (180 / M_PI);
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}
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constexpr inline long double qRadiansToDegrees(long double radians)
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{
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return radians * (180 / M_PI);
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}
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// A qRadiansToDegrees(Integral) overload isn't here; it's extremely
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// questionable that someone is manipulating quantities in radians
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// using integral datatypes...
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namespace QtPrivate {
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constexpr inline quint32 qConstexprNextPowerOfTwo(quint32 v)
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{
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v |= v >> 1;
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v |= v >> 2;
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v |= v >> 4;
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v |= v >> 8;
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v |= v >> 16;
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++v;
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return v;
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}
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constexpr inline quint64 qConstexprNextPowerOfTwo(quint64 v)
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{
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v |= v >> 1;
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v |= v >> 2;
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v |= v >> 4;
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v |= v >> 8;
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v |= v >> 16;
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v |= v >> 32;
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++v;
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return v;
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}
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constexpr inline quint32 qConstexprNextPowerOfTwo(qint32 v)
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{
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return qConstexprNextPowerOfTwo(quint32(v));
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}
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constexpr inline quint64 qConstexprNextPowerOfTwo(qint64 v)
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{
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return qConstexprNextPowerOfTwo(quint64(v));
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}
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} // namespace QtPrivate
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constexpr inline quint32 qNextPowerOfTwo(quint32 v)
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{
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Q_ASSERT(static_cast<qint32>(v) >= 0); // There is a next power of two
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#if defined(__cpp_lib_int_pow2) && __cpp_lib_int_pow2 >= 202002L
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return std::bit_ceil(v + 1);
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#elif defined(QT_HAS_BUILTIN_CLZ)
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if (v == 0)
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return 1;
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return 2U << (31 ^ QAlgorithmsPrivate::qt_builtin_clz(v));
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#else
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return QtPrivate::qConstexprNextPowerOfTwo(v);
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#endif
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}
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constexpr inline quint64 qNextPowerOfTwo(quint64 v)
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{
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Q_ASSERT(static_cast<qint64>(v) >= 0); // There is a next power of two
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#if defined(__cpp_lib_int_pow2) && __cpp_lib_int_pow2 >= 202002L
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return std::bit_ceil(v + 1);
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#elif defined(QT_HAS_BUILTIN_CLZLL)
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if (v == 0)
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return 1;
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return Q_UINT64_C(2) << (63 ^ QAlgorithmsPrivate::qt_builtin_clzll(v));
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#else
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return QtPrivate::qConstexprNextPowerOfTwo(v);
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#endif
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}
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constexpr inline quint32 qNextPowerOfTwo(qint32 v)
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{
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return qNextPowerOfTwo(quint32(v));
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}
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constexpr inline quint64 qNextPowerOfTwo(qint64 v)
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{
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return qNextPowerOfTwo(quint64(v));
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}
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constexpr inline unsigned long qNextPowerOfTwo(unsigned long v)
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{
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return qNextPowerOfTwo(QIntegerForSizeof<long>::Unsigned(v));
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}
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constexpr inline unsigned long qNextPowerOfTwo(long v)
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{
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return qNextPowerOfTwo(QIntegerForSizeof<long>::Unsigned(v));
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}
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QT_END_NAMESPACE
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#endif // QMATH_H
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