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Evolutionary optimization of dynamic control problems accelerated by progressive step reduction

机译:渐进式减少逐步减少动态控制问题的进化优化

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In this paper, we describe the use of an evolutionary algorithm (EA) to solve dynamic control optimization problems in engineering. In this class of problems, a set of control variables must be manipulated over time to optimize the outcome, which is obtained by solving a set of differential equations for the state variables. A new problem-specific technique, progressive step reduction (PSR), is shown to considerably improve the efficiency of the algorithm for this application. Factorial experimentation and rigorous statistical analysis are used to determine the effects of PSR and tune the parameters of the algorithm.
机译:在本文中,我们描述了使用进化算法(EA)来解决工程中的动态控制优化问题。在这类问题中,必须随着时间的推移被操纵一组控制变量来优化,这是通过求解状态变量的一组微分方程而获得的结果。示出了一种新的特定于特定于问题的技术,逐步减少(PSR),显示用于显着提高该应用算法的效率。因子实验和严格的统计分析用于确定PSR的影响并调谐算法参数。

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