Fuzzy control with fuzzy inputs: the need for new rule semantics

D. Driankov, Rainer Palm, H. Hellendoorn
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引用次数: 16

Abstract

The standard computation taking place in a fuzzy logic controller proceeds from crisp inputs and via the consecutive steps of fuzzification, inference, and defuzzification computes a crisp control output. However, this computational practice simplifies to an extent the actual developments taking place in the closed loop. In reality, the knowledge about the current values of the controller input is very often available via sensory measurements. In this case, one has to take into account the negative side effects that come up with the use of sensors, in particular the presence of noisy measurements. In the paper the authors consider one particular way of dealing with noisy controller inputs, namely transforming the noise-distribution into a fuzzy set and then feeding back the so obtained fuzzy signal to the controller input. Adopting this approach requires that the shape of the input fuzzy signal should be reflected as much as possible in the output fuzzy signal so that important noise characteristics are preserved. In the paper the authors describe the requirements on the shape of the fuzzy output signal given a certain fuzzy input signal and show that the existing semantics for fuzzy IF-THEN rules do not satisfy these requirements. The authors propose new semantics for such rules which together with max-min composition produces the desired results.<>
带有模糊输入的模糊控制:需要新的规则语义
在模糊逻辑控制器中进行的标准计算从清晰的输入开始,并通过模糊化、推理和去模糊化的连续步骤计算出清晰的控制输出。然而,这种计算实践在一定程度上简化了在闭环中发生的实际发展。在现实中,关于控制器输入的电流值的知识通常是通过感官测量获得的。在这种情况下,人们必须考虑到使用传感器带来的负面影响,特别是存在噪声测量。本文考虑了一种处理控制器输入噪声的特殊方法,即将噪声分布转化为模糊集,然后将得到的模糊信号反馈给控制器输入。采用这种方法要求在输出的模糊信号中尽可能地反映输入模糊信号的形状,从而保留重要的噪声特性。本文描述了给定模糊输入信号时对模糊输出信号形状的要求,并指出现有的模糊IF-THEN规则语义不能满足这些要求。作者为这些规则提出了新的语义,与最大最小组合一起产生期望的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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