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Combining of Differential Evolution and Implicit Filtering Algorithm Applied to Electromagnetic Design Optimization

机译:差分进化与隐式滤波算法相结合的电磁优化设计

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Differential evolution (DE) is a population-based and stochastic search algorithm of evolutionary computation that offers three major advantages: it finds the global minimum regardless of the initial parameter values, it involves fast convergence, and it uses few control parameters. This work presents a global optimization algorithm based on DE approaches combined with local search using the implicit filtering algorithm. The implicit filtering algorithm is a projected quasi-Newton method that uses finite difference gradients. The difference increment is reduced as the optimization progresses, thereby avoiding some local minima, discontinuities, or nonsmooth regions that would trap a conventional gradient-based method. Problems involving optimization procedures of complex mathematical functions are widespread in electromagnetics. Many problems in this area can be described by nonlinear relationships, which introduce the possibility of multiple local minima. In this paper, the shape design of Loney's solenoid benchmark problem is carried out by DE approaches. The results of DE approaches are also investigated and their performance compared with those reported in the literature.
机译:差分进化算法(DE)是一种基于种群的进化计算随机搜索算法,具有以下三个主要优点:无论初始参数值如何,都能找到全局最小值;涉及快速收敛;并且使用的控制参数很少。这项工作提出了一种基于DE方法的全局优化算法,并结合了使用隐式过滤算法的局部搜索。隐式滤波算法是使用有限差分梯度的拟准牛顿法。随着优化的进行,差异增量减小,从而避免了某些局部最小值,不连续或不平滑区域,而这些区域会捕获常规的基于梯度的方法。涉及复杂数学函数的优化过程的问题在电磁学中很普遍。非线性关系可以描述该领域的许多问题,从而引入了多个局部极小值的可能性。本文采用DE方法进行了Loney螺线管基准问题的形状设计。还研究了DE方法的结果,并将其性能与文献中报道的方法进行了比较。

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