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Intelligent optimization algorithm for global convergence of non-convex functions based on improved fuzzy algorithm

机译:基于改进模糊算法的非凸函数全局融合智能优化算法

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摘要

The traditional global convergence optimization algorithm is prone to premature convergence and slowconvergence in the face of complex non-convex function. To this end, a new intelligent optimization algorithm based on improved fuzzy algorithm for global convergence of non-convex function is proposed. The general model of the optimal problem is designed and the general model of non-convex function is established. The genetic algorithm is used to optimize the non-convex function, and the global convergence of the current non-convex function is analyzed. It is found that the global convergence of non-convex function is actually based on the optimization of crossover probability and mutation probability to decide the convergence of genetic algorithm, so as to improve the global convergence. A fuzzy controller is designed, which determines the input and output variables and their membership functions, establishes fuzzy rules and anti-fuzzing process to control the crossover rate. The fuzzy control of mutation rate is similar to the crossover rate, but the difference is that the new fuzzy control rule is needed. The experimental results show that the proposed algorithm can effectively optimize the global convergence of non-convex function.
机译:传统的全局收敛优化算法在复杂的非凸起功能面上容易发生过早收敛和慢折聚。为此,提出了一种基于改进的非凸函数的全局收敛性的基于改进模糊算法的新的智能优化算法。设计了最佳问题的一般模型,并建立了非凸函数的一般模型。遗传算法用于优化非凸函数,分析了当前非凸函数的全局收敛性。结果发现,非凸函数的全局融合实际上基于交叉概率和突变概率来决定遗传算法的收敛性的优化,从而提高全局收敛。设计了模糊控制器,该控制器确定了输入和输出变量及其隶属函数,建立模糊规则和防模型过程以控制交叉速率。突变率的模糊控制与交叉速率类似,但不同之处在于需要新的模糊控制规则。实验结果表明,该算法可以有效地优化非凸函数的全局融合。

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