* bugprone-throw-keyword-missing * bugprone-unhandled-self-assignment * bugprone-suspicious-string-compare * bugprone-reserved-identifier * bugprone-narrowing-conversions * bugprone-macro-parentheses * bugprone-implicit-widening-of-multiplication-result * bugprone-exception-escape * bugprone-copy-constructor-init
231 lines
6.2 KiB
C++
231 lines
6.2 KiB
C++
/***************************************************************************
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* Copyright (c) 2022 Werner Mayer <wmayer[at]users.sourceforge.net> *
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* *
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* This file is part of the FreeCAD CAx development system. *
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* *
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* This library is free software; you can redistribute it and/or *
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* modify it under the terms of the GNU Library General Public *
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* License as published by the Free Software Foundation; either *
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* version 2 of the License, or (at your option) any later version. *
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* *
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* This library is distributed in the hope that it will be useful, *
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* but WITHOUT ANY WARRANTY; without even the implied warranty of *
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *
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* GNU Library General Public License for more details. *
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* *
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* You should have received a copy of the GNU Library General Public *
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* License along with this library; see the file COPYING.LIB. If not, *
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* write to the Free Software Foundation, Inc., 59 Temple Place, *
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* Suite 330, Boston, MA 02111-1307, USA *
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* *
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***************************************************************************/
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#ifndef BASE_PRECISION_H
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#define BASE_PRECISION_H
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#include <cmath>
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namespace Base
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{
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// The methods are copied from OCC's Precision class
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class Precision
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{
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public:
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/*!
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* \brief Angular
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* Returns the recommended precision value when checking the equality of two angles (given in
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* radians). \return
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*/
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static double Angular()
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{
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return 1.e-12;
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}
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/*!
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* \brief Confusion
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* Returns the recommended precision value when checking coincidence of two points in real
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* space. \return
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*/
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static double Confusion()
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{
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return 1.e-7;
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}
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/*!
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* \brief SquareConfusion
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* Returns square of \ref Confusion.
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* \return
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*/
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static double SquareConfusion()
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{
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return Confusion() * Confusion();
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}
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/*!
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* \brief Intersection
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* Returns the precision value in real space, frequently
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* used by intersection algorithms to decide that a solution is reached.
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* \return
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*/
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static double Intersection()
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{
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return Confusion() * 0.01;
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}
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/*!
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* \brief Approximation
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* Returns the precision value in real space, frequently used
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* by approximation algorithms.
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* \return
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*/
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static double Approximation()
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{
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return Confusion() * 10.0;
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}
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/*!
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* \brief Parametric
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* Convert a real space precision to a parametric space precision.
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* \param P
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* \param T
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* \return
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*/
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static double Parametric(const double P, const double T)
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{
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return P / T;
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}
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/*!
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* \brief PConfusion
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* Returns a precision value in parametric space.
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* \param T
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* \return
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*/
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static double PConfusion(const double T)
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{
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return Parametric(Confusion(), T);
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}
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/*!
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* \brief PConfusion
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* Used to test distances in parametric space on a default curve.
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* \return
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*/
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static double PConfusion()
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{
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return Parametric(Confusion());
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}
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/*!
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* \brief SquarePConfusion
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* Returns square of \ref PConfusion.
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* \return
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*/
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static double SquarePConfusion()
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{
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return PConfusion() * PConfusion();
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}
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/*!
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* \brief PIntersection
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* Returns a precision value in parametric space, which may be used by intersection algorithms,
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* to decide that a solution is reached.
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* \param T
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* \return
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*/
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static double PIntersection(const double T)
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{
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return Parametric(Intersection(), T);
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}
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/*!
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* \brief PApproximation
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* Returns a precision value in parametric space, which may be used by approximation
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* algorithms. \param T \return
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*/
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static double PApproximation(const double T)
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{
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return Parametric(Approximation(), T);
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}
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/*!
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* \brief Parametric
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* Convert a real space precision to a parametric space precision on a default curve.
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* \param P
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* \return
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*/
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static double Parametric(const double P)
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{
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return Parametric(P, 100.0);
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}
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/*!
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* \brief PIntersection
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* Used for Intersections in parametric space on a default curve.
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* \return
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*/
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static double PIntersection()
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{
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return Parametric(Intersection());
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}
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/*!
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* \brief PApproximation
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* Used for Approximations in parametric space on a default curve.
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* \return
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*/
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static double PApproximation()
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{
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return Parametric(Approximation());
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}
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/*!
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* \brief IsInfinite
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* Returns True if R may be considered as an infinite number. Currently Abs(R) > 1e100
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* \param R
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* \return
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*/
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static bool IsInfinite(const double R)
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{
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return std::fabs(R) >= (0.5 * Precision::Infinite());
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}
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/*!
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* \brief IsPositiveInfinite
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* Returns True if R may be considered as a positive infinite number. Currently R > 1e100
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* \param R
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* \return
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*/
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static bool IsPositiveInfinite(const double R)
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{
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return R >= (0.5 * Precision::Infinite());
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}
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/*!
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* \brief IsNegativeInfinite
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* Returns True if R may be considered as a negative infinite number. Currently R < -1e100
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* \param R
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* \return
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*/
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static bool IsNegativeInfinite(const double R)
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{
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return R <= -(0.5 * Precision::Infinite());
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}
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/*!
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* \brief Infinite
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* Returns a big number that can be considered as infinite. Use -Infinite() for a negative
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* big number. \return
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*/
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static double Infinite()
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{
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return 2.e+100;
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}
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};
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} // namespace Base
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#endif // BASE_PRECISION_H
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