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CATSMLP : Toward a robust and interpretable multilayer perceptron with sigmoid activation functions

机译:CATSMLP:迈向具有S形激活功能的强大且可解释的多层感知器

摘要

Enhancing the robustness and interpretability of a multilayer perceptron (MLP) with a sigmoid activation function is a challenging topic. As a particular MLP, additive TS-type, MLP (ATSMLP) can be interpreted based on single-stage fuzzy IF-THEN rules, but its robustness will be degraded with the increase in the number of intermediate layers. This paper presents a new MLP model called cascaded ATSMLP (CATSMLP), where the ATSMLPs are organized in a cascaded way. The proposed CATSMLP is a universal approximator and is also proven to be functionally equivalent to a fuzzy inference system based on syllogistic fuzzy reasoning. Therefore, the CATSMLP may be interpreted based on syllogistic fuzzy reasoning in a theoretical sense. Meanwhile, due to the fact that syllogistic fuzzy reasoning has distinctive advantage over single-stage IF-THEN fuzzy reasoning in robustness, this paper proves in an indirect way that the CATSMLP is more robust than the ATSMLP in an upper-bound sense. Several experiments were conducted to confirm such a claim.
机译:具有S形激活功能的多层感知器(MLP)的鲁棒性和可解释性是一个具有挑战性的话题。作为特定的MLP,可以基于单级模糊IF-THEN规则来解释加性TS型MLP(ATSMLP),但是其鲁棒性会随着中间层数的增加而降低。本文介绍了一种称为级联ATSMLP(CATSMLP)的新MLP模型,其中ATSMLP以级联的方式进行组织。所提出的CATSMLP是通用逼近器,并且在功能上也等效于基于三段式模糊推理的模糊推理系统。因此,可以在理论上基于三段式模糊推理来解释CATSMLP。同时,由于三段式模糊推理在鲁棒性方面优于单阶段IF-THEN模糊推理,因此本文间接证明CATSMLP在上限意义上比ATSMLP鲁棒。进行了几次实验以确认这一主张。

著录项

  • 作者

    Chung FL; Wang S; Deng Z; Hu D;

  • 作者单位
  • 年度 2006
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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