Interpretability indices for hierarchical fuzzy systems

T. R. Razak, J. Garibaldi, Christian Wagner, A. Pourabdollah, D. Soria
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引用次数: 27

Abstract

Hierarchical fuzzy systems (HFSs) have been shown to have the potential to improve interpretability of fuzzy logic systems (FLSs). In recent years, a variety of indices have been proposed to measure the interpretability of FLSs such as the Nauck index and Fuzzy index. However, interpretability indices associated with HFSs have not so far been discussed. The structure of HFSs, with multiple layers, subsystems, and varied topologies, is the main challenge in constructing interpretability indices for HFSs. Thus, the comparison of interpretability between FLSs and HFSs — even at the index level — is still subject to open discussion. This paper begins to address these challenges by introducing extensions to the FLS Nauck and Fuzzy interpretability indices for HFSs. Using the proposed indices, we explore the concept of interpretability in relation to the different structures in FLSs and HFSs. Initial experiments on benchmark datasets show that based on the proposed indices, HFSs with equivalent function to FLSs produce higher indices, i.e. are more interpretable than their corresponding FLSs.
层次模糊系统的可解释性指标
层次模糊系统(HFSs)已被证明具有提高模糊逻辑系统(FLSs)的可解释性的潜力。近年来,人们提出了多种衡量外语可解释性的指标,如Nauck指数、Fuzzy指数等。然而,与HFSs相关的可解释性指标迄今尚未被讨论。hfs具有多层、多子系统和多种拓扑结构,这是构建hfs可解释性指标的主要挑战。因此,FLSs和hfs之间的可解释性的比较——即使在指数水平上——仍然需要公开讨论。本文通过引入FLS Nauck和hfs模糊可解释性指标的扩展来解决这些挑战。利用所提出的指标,我们探讨了可解释性的概念,并将其与外语语言和汉语语言的不同结构联系起来。在基准数据集上的初步实验表明,基于所提出的指标,与fls函数等价的hfs产生的指标更高,即比相应的fls具有更强的可解释性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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