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Multivariate modeling and type-2 fuzzy sets

机译:多元建模和2类模糊集

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This paper explores the link between type-2 fuzzy sets and multivariate modeling. Elements of a space X are treated as observations fuzzily associated with values in a multivariate feature space. A category or class is likewise treated as a fuzzy allocation of feature values (possibly dependent on values in X). We observe that a type-2 fuzzy set on X generated by these two fuzzy allocations captures imprecision in the class definition and imprecision in the observations. In practice many type-2 fuzzy sets are in fact generated in this way and can therefore be interpreted as the output of a classification task. We then show that an arbitrary type-2 fuzzy set can be so constructed, by taking as a feature space a set of membership functions on X. This construction presents a new perspective on the Representation Theorem of Mendel and John. The multivariate modeling underpinning the type-2 fuzzy sets can also constrain realizable forms of membership functions. Because averaging operators such as centroid and subsethood on type-2 fuzzy sets involve a search for optima over membership functions, constraining this search can make computation easier and tighten the results. We demonstrate how the construction can be used to combine representations of concepts and how it therefore provides an additional tool, alongside standard operations such as intersection and subsethood, for concept fusion and computing with words.
机译:本文探讨了2型模糊集与多元建模之间的联系。将空间X的元素视为与多元特征空间中的值模糊关联的观察结果。类别或类同样被视为特征值的模糊分配(可能取决于X中的值)。我们观察到,由这两个模糊分配生成的X上的类型2模糊集捕获了类定义中的不精确性和观察中的不精确性。实际上,实际上以这种方式生成了许多类型2模糊集,因此可以将其解释为分类任务的输出。然后,我们表明可以通过将X上的隶属函数集作为特征空间来构造任意类型2模糊集。这种构造为Mendel和John的表示定理提供了新的视角。支持类型2模糊集的多元建模也可以约束隶属函数的可实现形式。由于对类型2模糊集的质心和子集等平均算符涉及对隶属函数的最优搜索,因此,约束此搜索可以使计算更容易并收紧结果。我们将演示如何使用构造来组合概念的表示形式,以及如何为标准融合(如交集和子集)以及概念运算和单词计算提供额外的工具。

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