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A New Fuzzy Set Merging Technique Using Inclusion-Based Fuzzy Clustering

机译:基于包含的模糊聚类的一种新的模糊集合并技术

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This paper proposes a new method of merging parameterized fuzzy sets based on clustering in the parameters space, taking into account the degree of inclusion of each fuzzy set in the cluster prototypes. The merger method is applied to fuzzy rule base simplification by automatically replacing the fuzzy sets corresponding to a given cluster with that pertaining to cluster prototype. The feasibility and the performance of the proposed method are studied using an application in mobile robot navigation. The results indicate that the proposed merging and rule base simplification approach leads to good navigation performance in the application considered and to fuzzy models that are interpretable by experts. In this paper, we concentrate mainly on fuzzy systems with Gaussian membership functions, but the general approach can also be applied to other parameterized fuzzy sets.
机译:考虑到聚类原型中每个模糊集的包含程度,本文提出了一种基于参数空间中聚类的参数化模糊集合并的新方法。通过将与给定聚类相对应的模糊集自动替换为与聚类原型相关的模糊集,将合并方法应用于模糊规则库的简化。通过在移动机器人导航中的应用研究了该方法的可行性和性能。结果表明,所提出的合并和基于规则的简化方法在所考虑的应用程序中具有良好的导航性能,并导致专家可以解释的模糊模型。在本文中,我们主要集中于具有高斯隶属函数的模糊系统,但是一般方法也可以应用于其他参数化模糊集。

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