首页> 外文会议>IFSA(International Fuzzy Systems Association); 2007; >An Ant Colony Optimization plug-in to Enhance the Interpretability of Fuzzy Rule Bases with Exceptions
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An Ant Colony Optimization plug-in to Enhance the Interpretability of Fuzzy Rule Bases with Exceptions

机译:蚁群优化插件,可增强带例外的模糊规则库的可解释性

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摘要

Usually, fuzzy rules contain in the antecedent propositions that restrict a variable to a fuzzy value by means of an equal-to predicate. We propose to improve the interpretability of fuzzy models by extending the syntax of their rules. With this aim, on one hand, new predicates are considered in the rule antecedents and, on the other hand, rules can be associated with exceptions that modify the output of those rules in a region of their covered input space. The method stems from an initial fuzzy model described with the usual fuzzy rules and uses an ACO algorithm to search the optimal set of extended rules that describes this model.
机译:通常,模糊规则在先行命题中包含通过相等谓词将变量限制为模糊值的命题。我们建议通过扩展规则的语法来提高模糊模型的可解释性。出于这个目的,一方面,在规则先例中考虑了新的谓词,另一方面,可以将规则与例外相关联,这些例外会修改这些规则在其覆盖的输入空间区域中的输出。该方法源自使用常规模糊规则描述的初始模糊模型,并使用ACO算法搜索描述该模型的最佳扩展规则集。

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