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首页> 外文期刊>Journal of Computational Science and Technology >Global Optimization by Generalized Random Tunneling Algorithm (4th Report Application to the Nonlinear Optimum Design Problem of the Mixed Design Variables)
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Global Optimization by Generalized Random Tunneling Algorithm (4th Report Application to the Nonlinear Optimum Design Problem of the Mixed Design Variables)

机译:广义随机隧道算法进行全局优化(混合设计变量的非线性最优设计问题的第四次报告应用)

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References(18) Cited-By(1) This paper presents a method to obtain the global or quasi-optimum for the discrete and continuous design variables, based on the Modified Generalized Random Tunneling Algorithm (MGRTA). By handling the discrete design variables as penalty function, the augmented objective function is constructed. As a result, all design variables can be treated as the continuous design variables. The augmented objective function becomes non-convex, and has many local minima. That is, finding optimum of discrete design variables is transformed into finding global optimum of this augmented objective function. Then the MGRTA is applied to this augmented objective function, subject to the behavior and side constraints. We also propose the new update scheme of penalty parameter for the penalty function of discrete design variables in this paper. The proposed update scheme of penalty parameter utilizes the information of the penalty function value of discrete design variables. By utilizing the characteristics of MGRTA, some optima are obtained. The validity of the proposed method is examined through typical benchmark problems.
机译:参考文献(18)Cited-By(1)本文提出了一种基于改进的广义随机隧道算法(MGRTA)的方法,用于获取离散和连续设计变量的全局或拟最佳值。通过将离散的设计变量作为惩罚函数处理,构造了增强的目标函数。结果,所有设计变量都可以视为连续设计变量。扩展目标函数变为非凸函数,并且具有许多局部最小值。也就是说,将离散设计变量的最优值转化为寻找该扩展目标函数的全局最优值。然后,根据行为和附带约束,将MGRTA应用于此扩展目标函数。本文还针对离散设计变量的惩罚函数提出了惩罚参数的更新方案。提出的惩罚参数更新方案利用离散设计变量的惩罚函数值的信息。通过利用MGRTA的特性,可以获得一些最佳值。通过典型的基准问题来检验所提出方法的有效性。

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