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A systematic method for design of multivariable fuzzy logic control systems

机译:多变量模糊逻辑控制系统设计的系统方法

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This paper proposes a systematic method to design a multivariable fuzzy logic controller for large-scale nonlinear systems. In designing a fuzzy logic controller, the major task is to determine fuzzy rule bases, membership functions of input/output variables, and input/output scaling factors. In this work, the fuzzy rule base is generated by a rule-generated function, which is based on the negative gradient of a system performance index; the membership functions of isosceles triangle of input/output variables are fixed in the same cardinality and only the input/output scaling factors are generated from a genetic algorithm based on a fitness function. As a result, the searching space of parameters is narrowed down to a small space, the multivariable fuzzy logic controller can quickly constructed, and the fuzzy rules and the scaling factors can easily be determined. The performance of the proposed method is examined by computer simulations on a Puma 560 system and a two-inverted pendulum system.
机译:本文提出了一种系统化的方法来设计用于大型非线性系统的多变量模糊逻辑控制器。在设计模糊逻辑控制器时,主要任务是确定模糊规则库,输入/输出变量的隶属函数以及输入/输出缩放因子。在这项工作中,模糊规则库是由规则生成函数生成的,该函数基于系统性能指标的负梯度。输入/输出变量的等腰三角形的隶属函数固定在相同的基数上,仅基于适应性函数的遗传算法生成输入/输出比例因子。结果,将参数的搜索空间缩小到很小的空间,可以快速构造多变量模糊逻辑控制器,并且可以容易地确定模糊规则和比例因子。通过在Puma 560系统和两倒立摆系统上的计算机仿真来检验所提出方法的性能。

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