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Tuning of fuzzy controller for an open-loop unstable system: a genetic approach

机译:开环不稳定系统的模糊控制器整定:一种遗传方法

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The design, test and evaluation of an optimized fuzzy logic controller (OFLC) is reported in this paper. With the aid of genetic algorithms (GA), the rule-based of an otherwise standard fuzzy logic controller (FLC) is obtained. This is achieved by deriving a tailor-made encoding scheme, initialization, crossover and mutation of rule table into strings of integers. GA is implemented such that the existing knowledge of the system is utilized to increase the speed of optimization. The OFLC is successfully applied to control an open-loop unstable system - the ball-and-beam balance system - on a hardware test-bed. A Kalman filter controller (KFC) and a manually tuned fuzzy logic controller (MFLC) are also developed for the test-bed and the performances of the three controllers are compared. The experiment reveals that improved robustness with shorter design cycle can be achieved by integrating GA into an FLC.
机译:本文报道了一种优化的模糊逻辑控制器(OFLC)的设计,测试和评估。借助遗传算法(GA),可以获得基于规则的其他标准模糊逻辑控制器(FLC)。这是通过派生定制的编码方案,将规则表初始化,交叉和将其变异为整数字符串来实现的。实施GA,以便利用系统的现有知识来提高优化速度。 OFLC已成功应用于在硬件测试台上控制开环不稳定系统-球梁平衡系统。还为测试台开发了卡尔曼滤波器控制器(KFC)和手动调整的模糊逻辑控制器(MFLC),并比较了这三个控制器的性能。实验表明,通过将GA集成到FLC中,可以缩短设计周期,提高鲁棒性。

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