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@ -710,4 +710,191 @@ namespace glm |
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t2 = -T2; |
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t3 = -T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleYXZ(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[2][0], M[2][2]); |
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T C2 = glm::sqrt(M[0][1]*M[0][1] + M[1][1]*M[1][1]); |
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T T2 = glm::atan2<T, defaultp>(-M[2][1], C2); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(S1*M[1][2] - C1*M[1][0], C1*M[0][0] - S1*M[0][2]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleXZX(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[0][2], M[0][1]); |
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T S2 = glm::sqrt(M[1][0]*M[1][0] + M[2][0]*M[2][0]); |
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T T2 = glm::atan2<T, defaultp>(S2, M[0][0]); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(C1*M[1][2] - S1*M[1][1], C1*M[2][2] - S1*M[2][1]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleXYX(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[0][1], -M[0][2]); |
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T S2 = glm::sqrt(M[1][0]*M[1][0] + M[2][0]*M[2][0]); |
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T T2 = glm::atan2<T, defaultp>(S2, M[0][0]); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(-C1*M[2][1] - S1*M[2][2], C1*M[1][1] + S1*M[1][2]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleYXY(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[1][0], M[1][2]); |
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T S2 = glm::sqrt(M[0][1]*M[0][1] + M[2][1]*M[2][1]); |
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T T2 = glm::atan2<T, defaultp>(S2, M[1][1]); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(C1*M[2][0] - S1*M[2][2], C1*M[0][0] - S1*M[0][2]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleYZY(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[1][2], -M[1][0]); |
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T S2 = glm::sqrt(M[0][1]*M[0][1] + M[2][1]*M[2][1]); |
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T T2 = glm::atan2<T, defaultp>(S2, M[1][1]); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(-S1*M[0][0] - C1*M[0][2], S1*M[2][0] + C1*M[2][2]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleZYZ(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[2][1], M[2][0]); |
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T S2 = glm::sqrt(M[0][2]*M[0][2] + M[1][2]*M[1][2]); |
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T T2 = glm::atan2<T, defaultp>(S2, M[2][2]); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(C1*M[0][1] - S1*M[0][0], C1*M[1][1] - S1*M[1][0]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleZXZ(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[2][0], -M[2][1]); |
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T S2 = glm::sqrt(M[0][2]*M[0][2] + M[1][2]*M[1][2]); |
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T T2 = glm::atan2<T, defaultp>(S2, M[2][2]); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(-C1*M[1][0] - S1*M[1][1], C1*M[0][0] + S1*M[0][1]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleXZY(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[1][2], M[1][1]); |
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T C2 = glm::sqrt(M[0][0]*M[0][0] + M[2][0]*M[2][0]); |
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T T2 = glm::atan2<T, defaultp>(-M[1][0], C2); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(S1*M[0][1] - C1*M[0][2], C1*M[2][2] - S1*M[2][1]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleYZX(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(-M[0][2], M[0][0]); |
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T C2 = glm::sqrt(M[1][1]*M[1][1] + M[2][1]*M[2][1]); |
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T T2 = glm::atan2<T, defaultp>(M[0][1], C2); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(S1*M[1][0] + C1*M[1][2], S1*M[2][0] + C1*M[2][2]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleZYX(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(M[0][1], M[0][0]); |
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T C2 = glm::sqrt(M[1][2]*M[1][2] + M[2][2]*M[2][2]); |
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T T2 = glm::atan2<T, defaultp>(-M[0][2], C2); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(S1*M[2][0] - C1*M[2][1], C1*M[1][1] - S1*M[1][0]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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template <typename T> |
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GLM_FUNC_QUALIFIER void extractEulerAngleZXY(mat<4, 4, T, defaultp> const & M, |
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T & t1, |
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T & t2, |
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T & t3) |
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{ |
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T T1 = glm::atan2<T, defaultp>(-M[1][0], M[1][1]); |
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T C2 = glm::sqrt(M[0][2]*M[0][2] + M[2][2]*M[2][2]); |
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T T2 = glm::atan2<T, defaultp>(M[1][2], C2); |
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T S1 = glm::sin(T1); |
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T C1 = glm::cos(T1); |
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T T3 = glm::atan2<T, defaultp>(C1*M[2][0] + S1*M[2][1], C1*M[0][0] + S1*M[0][1]); |
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t1 = T1; |
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t2 = T2; |
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t3 = T3; |
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} |
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}//namespace glm |
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