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Fuzzy rule interpolation based on the ratio of fuzziness of interval type-2 fuzzy sets

机译:基于区间2型模糊集模糊比的模糊规则插值

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In recent years, some fuzzy rule interpolation methods have been presented for sparse fuzzy rule-based systems based on interval type-2 fuzzy sets. However, the existing methods have the drawbacks that they cannot guarantee the convexity of the fuzzy interpolated result and may generate the same fuzzy inter polated results with respect to different observations. Moreover, they also cannot deal with fuzzy rule interpolation with bell-shaped interval type-2 fuzzy sets. In this paper, we present a new method for fuzzy rule interpolation for sparse fuzzy rule-based systems based on the ratio of fuzziness of interval type-2 fuzzy sets. The proposed method can overcome the drawbacks of the existing methods. First, it calculates the weights of the closest fuzzy rules with respect to the observation to obtain an intermediate consequence fuzzy set. Then, it uses the ratio of fuzziness of interval type-2 fuzzy sets to infer the fuzzy interpolated result based on the intermediate consequence fuzzy set. We also use some examples to com pare the fuzzy interpolated results of the proposed method with the results by the existing methods. The experimental results show that the proposed fuzzy rule interpolation method gets more reasonable results than the existing methods.
机译:近年来,针对基于间隔2型模糊集的稀疏基于模糊规则的系统,提出了一些模糊规则插值方法。然而,现有方法的缺点是它们不能保证模糊插值结果的凸性,并且对于不同的观察结果可能会产生相同的模糊插值结果。而且,它们还不能处理带有钟形间隔类型2模糊集的模糊规则插值。在本文中,我们提出了一种基于区间2型模糊集的模糊比的稀疏模糊规则系统模糊规则插值的新方法。所提出的方法可以克服现有方法的缺点。首先,它针对观察结果计算最接近的模糊规则的权重,以获得中间结果模糊集。然后,使用区间类型2模糊集的模糊度比率,基于中间结果模糊集来推断模糊插值结果。我们还使用一些示例将提出的方法的模糊插值结果与现有方法的结果进行比较。实验结果表明,所提出的模糊规则插值方法比现有方法获得了更为合理的结果。

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