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Improving Performance of Evolutionary Algorithms with Application to Fuzzy Control of Truck Backer-Upper System

机译:改进的进化算法性能在卡车后备厢系统模糊控制中的应用

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摘要

We propose a method to improve the performance of evolutionary algorithms (EA). The proposed approach defines operators which can modify the performance of EA, including Levy distribution function as a strategy parameters adaptation, calculating mean point for finding proper region of breeding offspring, and shifting strategy parameters to change the sequence of these parameters. Thereafter, a set of benchmark cost functions is utilized to compare the results of the proposed method with some other well-known algorithms. It is shown that the speed and accuracy of EA are increased accordingly. Finally, this method is exploited to optimize fuzzy control of truck backer-upper system.
机译:我们提出了一种改善进化算法(EA)性能的方法。所提出的方法定义了可以修改EA性能的算子,包括Levy分布函数作为策略参数适应,计算均值以找到合适的繁殖后代区域以及转移策略参数以更改这些参数的顺序。此后,利用一组基准成本函数将所提出的方法的结果与其他一些众所周知的算法进行比较。结果表明,EA的速度和准确性相应提高。最后,该方法被用于优化卡车后备系统的模糊控制。

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