Rebuild trinity visualizer from bare SDL and OpenGL to using Raylib. Added Code for serial parsing on linux. Current functionality reads incoming quaternion packet data coming in over serial and displays the values and also visualizes with a cube, connect and disconnect is implemented. Essentially rebuild the functionality of the old version with added linux support.
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#include "_vectorize.hpp"
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#include <cmath>
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#include <limits>
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namespace glm
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{
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// radians
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template<typename genType>
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GLM_FUNC_QUALIFIER GLM_CONSTEXPR genType radians(genType degrees)
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{
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GLM_STATIC_ASSERT(std::numeric_limits<genType>::is_iec559 || GLM_CONFIG_UNRESTRICTED_FLOAT, "'radians' only accept floating-point input");
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return degrees * static_cast<genType>(0.01745329251994329576923690768489);
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}
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER GLM_CONSTEXPR vec<L, T, Q> radians(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(radians, v);
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}
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// degrees
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template<typename genType>
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GLM_FUNC_QUALIFIER GLM_CONSTEXPR genType degrees(genType radians)
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{
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GLM_STATIC_ASSERT(std::numeric_limits<genType>::is_iec559 || GLM_CONFIG_UNRESTRICTED_FLOAT, "'degrees' only accept floating-point input");
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return radians * static_cast<genType>(57.295779513082320876798154814105);
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}
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER GLM_CONSTEXPR vec<L, T, Q> degrees(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(degrees, v);
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}
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// sin
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using ::std::sin;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> sin(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(sin, v);
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}
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// cos
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using std::cos;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> cos(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(cos, v);
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}
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// tan
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using std::tan;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> tan(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(tan, v);
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}
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// asin
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using std::asin;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> asin(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(asin, v);
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}
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// acos
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using std::acos;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> acos(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(acos, v);
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}
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// atan
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template<typename genType>
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GLM_FUNC_QUALIFIER genType atan(genType y, genType x)
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{
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GLM_STATIC_ASSERT(std::numeric_limits<genType>::is_iec559 || GLM_CONFIG_UNRESTRICTED_FLOAT, "'atan' only accept floating-point input");
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return ::std::atan2(y, x);
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}
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> atan(vec<L, T, Q> const& y, vec<L, T, Q> const& x)
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{
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return detail::functor2<vec, L, T, Q>::call(::std::atan2, y, x);
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}
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using std::atan;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> atan(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(atan, v);
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}
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// sinh
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using std::sinh;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> sinh(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(sinh, v);
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}
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// cosh
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using std::cosh;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> cosh(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(cosh, v);
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}
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// tanh
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using std::tanh;
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> tanh(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(tanh, v);
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}
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// asinh
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# if GLM_HAS_CXX11_STL
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using std::asinh;
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# else
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template<typename genType>
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GLM_FUNC_QUALIFIER genType asinh(genType x)
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{
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GLM_STATIC_ASSERT(std::numeric_limits<genType>::is_iec559 || GLM_CONFIG_UNRESTRICTED_FLOAT, "'asinh' only accept floating-point input");
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return (x < static_cast<genType>(0) ? static_cast<genType>(-1) : (x > static_cast<genType>(0) ? static_cast<genType>(1) : static_cast<genType>(0))) * log(std::abs(x) + sqrt(static_cast<genType>(1) + x * x));
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}
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# endif
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> asinh(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(asinh, v);
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}
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// acosh
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# if GLM_HAS_CXX11_STL
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using std::acosh;
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# else
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template<typename genType>
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GLM_FUNC_QUALIFIER genType acosh(genType x)
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{
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GLM_STATIC_ASSERT(std::numeric_limits<genType>::is_iec559 || GLM_CONFIG_UNRESTRICTED_FLOAT, "'acosh' only accept floating-point input");
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if(x < static_cast<genType>(1))
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return static_cast<genType>(0);
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return log(x + sqrt(x * x - static_cast<genType>(1)));
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}
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# endif
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> acosh(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(acosh, v);
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}
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// atanh
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# if GLM_HAS_CXX11_STL
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using std::atanh;
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# else
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template<typename genType>
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GLM_FUNC_QUALIFIER genType atanh(genType x)
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{
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GLM_STATIC_ASSERT(std::numeric_limits<genType>::is_iec559 || GLM_CONFIG_UNRESTRICTED_FLOAT, "'atanh' only accept floating-point input");
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if(std::abs(x) >= static_cast<genType>(1))
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return 0;
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return static_cast<genType>(0.5) * log((static_cast<genType>(1) + x) / (static_cast<genType>(1) - x));
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}
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# endif
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template<length_t L, typename T, qualifier Q>
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GLM_FUNC_QUALIFIER vec<L, T, Q> atanh(vec<L, T, Q> const& v)
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{
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return detail::functor1<vec, L, T, T, Q>::call(atanh, v);
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}
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}//namespace glm
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#if GLM_CONFIG_SIMD == GLM_ENABLE
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# include "func_trigonometric_simd.inl"
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#endif
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