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Comparative Study of Fuzzy Controller Optimization with Dynamic Parameter Adjustment Based on Type 1 and Type 2 Fuzzy Logic

机译:基于1型和2型模糊逻辑的动态参数调整模糊控制器优化的比较研究

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This paper presents a comparison of fuzzy controller optimization results using dynamic parameter adjustment Type 1 (Tl) and Interval Type 2 (T2) fuzzy logic to the Firefly Algorithm (FA). The FA is used for optimizations parameters of the membership functions in the fuzzy controllers. The dynamic adjustment is applied to the randomness parameter of the search space, which represents the exploration of the method, avoiding stagnation or premature convergence. The FA generates the values that the parameters of the membership functions take for optimization use in the fuzzy systems for control. The control plants have one or more input variables that are processed and result in one or more output variables, it would be very difficult to model the human reasoning in equations to achieve a machine acquires the knowledge acquired by humans. For that reason the fuzzy logic that generates that insertion is used as if it were human reasoning.
机译:本文介绍了使用动态参数调整类型1(TL)和间隔类型2(T2)模糊逻辑的模糊控制器优化结果对萤火虫算法(FA)。该FA用于在模糊控制器中的隶属函数的优化参数。动态调整应用于搜索空间的随机性参数,这代表了该方法的探索,避免了停滞或早产。该FA生成隶属函数参数用于在模糊系统中用于控制的值。控制设备具有一个或多个输入变量,其被处理并导致一个或多个输出变量,这将是非常困难的,在方程中模拟人的推理,以实现机器获取人类获取的知识。因此,生成插入的模糊逻辑就好像它是人工推理一样。

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