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Interpretability of linguistic fuzzy rule-based systems: An overview of interpretability measures

机译:基于语言模糊规则的系统的可解释性:可解释性度量的概述

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摘要

Linguistic fuzzy modelling, developed by linguistic fuzzy rule-based systems, allows us to deal with the modelling of systems by building a linguistic model which could become interpretable by human beings. Linguistic fuzzy modelling comes with two contradictory requirements: interpretability and accuracy. In recent years the interest of researchers in obtaining more interpretable linguistic fuzzy models has grown. Whereas the measures of accuracy are straightforward and well-known, interpretability measures are difficult to define since interpretability depends on several factors; mainly the model structure, the number of rules, the number of features, the number of linguistic terms, the shape of the fuzzy sets, etc. Moreover, due to the subjectivity of the concept the choice of appropriate interpretability measures is still an open problem. In this paper, we present an overview of the proposed interpretability measures and techniques for obtaining more interpretable linguistic fuzzy rule-based systems. To this end, we will propose a taxonomy based on a double axis: "Complexity versus semantic interpretability" considering the two main kinds of measures; and "rule base versus fuzzy partitions" considering the different components of the knowledge base to which both kinds of measures can be applied. The main aim is to provide a well established framework in order to facilitate a better understanding of the topic and well founded future works.
机译:语言模糊建模是由基于语言模糊规则的系统开发的,它使我们能够通过构建可以被人类解释的语言模型来处理系统建模。语言模糊建模具有两个矛盾的要求:可解释性和准确性。近年来,研究人员对获得更多可解释的语言模糊模型的兴趣日益增长。准确性的度量是直接而众所周知的,而可解释性的度量则难以定义,因为可解释性取决于多个因素。主要是模型的结构,规则的数量,特征的数量,语言术语的数量,模糊集的形状等。而且,由于概念的主观性,选择适当的可解释性措施仍然是一个未解决的问题。在本文中,我们对提出的可解释性措施和技术进行了概述,以获取更多可解释的基于语言模糊规则的系统。为此,我们将基于双轴提出一种分类法:“复杂性与语义可解释性”,其中考虑了两种主要措施;和“规则基础与模糊分区”,考虑了可以将两种措施都应用到的知识库的不同组成部分。主要目的是提供一个完善的框架,以促进对该主题的更好理解和有根据的未来作品。

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