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A Type-2 Fuzzy Approach to Linguistic Summarization of Data

机译:语言数据汇总的2类模糊方法

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摘要

This paper introduces an application of type-2 fuzzy sets in data linguistic summarization. The original approach by Yager (1982) based on representing natural language statements via type-1, i.e., the Zadeh fuzzy sets, is generalized with type-2 fuzzy sets applied as models of linguistically expressed quantities and/or properties of objects. Type-2 sets extend the known summarization procedures by handling fuzzy values stored in databases, and allow to represent a linguistic term via a few different membership functions (e.g., provided by different experts), which makes the method more general and human-consistent. Furthermore, quality measures for type-2 summaries are discussed in order to evaluate the informativeness of the messages generated. Finally, two prototype applications are presented and the success of the new method is discussed.
机译:本文介绍了类型2模糊集在数据语言概括中的应用。 Yager(1982)的原始方法基于通过类型1(即Zadeh模糊集)表示自然语言陈述,使用类型2模糊集作为对象的语言表达量和/或属性模型进行了概括。类型2集通过处理存储在数据库中的模糊值扩展了已知的摘要过程,并允许通过一些不同的隶属函数(例如,由不同的专家提供)来表示语言术语,这使得该方法更加通用且与人类一致。此外,讨论了类型2摘要的质量度量,以便评估所生成消息的信息性。最后,介绍了两个原型应用程序,并讨论了该新方法的成功。

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