田口法粒子群优化参数整定及其在电机设计中的应用

Huimin Wang, Qian Geng, Zhaowei Qiao
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引用次数: 24

摘要

粒子群优化(PSO)在计算机科学和工程领域取得了重大进展,并得到了广泛的应用。自粒子群算法问世以来,其参数整定一直是人们关注的热点。田口法作为一种鲁棒设计方法,在参数设计方面具有良好的应用价值。因此,采用田口法分析惯性权值、加速度系数、种群大小、适应度评价和种群拓扑对粒子群算法的影响,并针对不同的优化问题确定它们的最佳设置。基准函数的结果表明,最优参数设置取决于基准,所有函数在参数调优后都得到了最优解。在处理Halbach永磁电机的优化设计时也取得了较好的结果,这表明采用田口法辨识出的最佳参数整定的粒子群更适用于此类实际工程问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parameter tuning of particle swarm optimization by using Taguchi method and its application to motor design
Particle swarm optimization (PSO) has made significant progress and has been widely applied to computer science and engineering. Since its introduction, the parameter tuning of PSO has always been a hot topic. As a robust design method, the Taguchi method is known as a good tool in designing parameters. Thus the Taguchi method is adopted to analyze the effect of inertia weight, acceleration coefficients, population size, fitness evaluations, and population topology on PSO, and to identify the best settings of them for different optimization problems. The results of benchmark functions show that the optimum parameter settings depend on the benchmarks, and all the functions obtain their optimum solutions after parameter tuning. Good result are also achieved when dealing with the optimization design of a Halbach permanent magnet motor, which indicates that the PSO with best parameter settings identified by the Taguchi method is more suitable to such actual engineering problem.
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