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A parameter-optimized analytic fuzzy controller based on a genetic algorithm

机译:基于遗传算法的参数优化的分析模糊控制器

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A fuzzy controller based on analytic rules, which can self-adjust the fuzzy rules online, has good performance. That can change the output of the controller by modifying the fuzzy rules. An improved structure of a fuzzy controller based on analytic rules was proposed, and a modifying function aiming to regulate the fuzzy rules dynamically was introduced. The novel approach can effectively alleviate the contradictions between speediness and overshoot. Moreover, the genetic algorithm was applied to optimize five parameters of the fuzzy controller simultaneously. The steps required in seeking optimized parameters are presented. Simulation was conducted to show the efficiency of the proposed approach.
机译:基于分析规则的模糊控制器,可以在线自我调整模糊规则,具有良好的性能。可以通过修改模糊规则来更改控制器的输出。提出了一种基于分析规则的模糊控制器的改进结构,旨在动态地调节模糊规则的修改功能。新颖的方法可以有效缓解快速和过冲之间的矛盾。此外,应用遗传算法以同时优化模糊控制器的五个参数。提出了寻求优化参数所需的步骤。进行了仿真以表明提出的方法的效率。

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