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Type 2 uncertainty in knowledge representation and reasoning

机译:在知识表示和推理中键入2不确定性

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Type 2 fuzziness exists both in knowledge representation and approximate reasoning. First, it has been shown that acquisition of membership functions, whether (1) they are obtained by subjective measurement experiments, such as direct or reverse rating procedures or else (2) they are obtained with the application of fuzzy clustering methods, we can capture Type 2 membership functions. Type 2 fuzziness can be represented either with interval-valued Type 2 or with "full" Type 2 membership functions, which specify gradations between the upper and lower bounds of the interval of its variation. Secondly, it has been shown that the combination of linguistic values with linguistic operators, "AND", "OR", "IMP", etc., as opposed to crisp connectives that are known as t-norms and t-conorms and standard negation, lead to the generation of Fuzzy Disjunctive and Conjunctive Canonical Forms, FDCF and FCCF, respectively. In this paper, we discuss how one captures Type 2 representation and how one executes Type 2 reasoning that rests on Type 1 representation. This entails interval-valued Type 2 consequences. Furthermore we demonstrate some of its consequences.
机译:在知识表示和近似推理中存在2型模糊性。首先,已经证明,获取会员函数,是否通过主观测量实验获得(1),例如直接或反向评级程序或(2),通过应用模糊聚类方法获得,我们可以捕获类型2隶属函数。类型2模糊性可以用间隔值2或具有“完整”2型隶属函数表示,该函数函数指定其变化间隔的上限和下限之间的灰度。其次,已经表明,语言值与语言运算符,“和”,“或”,“Imp”等相反,与被称为T-NOMA和T-Conorms和标准否定的酥脆连接相反,导致模糊分离和联合规范形式,FDCF和FCCF的产生。在本文中,我们讨论了一个捕获类型2表示以及如何在1类型1表示上执行的类型2推理。这需要间隔值2型后果。此外,我们展示了一些后果。

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