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Consensus via penalty functions for decision making in ensembles in fuzzy rule-based classification systems

机译:通过惩罚函数的共识,以在基于模糊规则的分类系统中的集合中的决策

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摘要

The aim of this paper is to propose a consensus method via penalty functions for decision making in ensembles of fuzzy rule-based classification systems (FRBCSs). For that, we first introduce a method based on overlap indices for building confidence and support measures, which are usually used to evaluate the degree of certainty or interest of a certain association rule. Those overlap indices (a generalizations of the Zadeh's consistency index between two fuzzy sets) are built using overlap functions, which are a special kind of non necessarily associative aggregation functions proposed for applications related to the overlap problem and/or when the associativity property is not demanded. Then, we introduce a new FRM for the FRBCS, considering different overlap indices, which generalizes the classical methods. By considering several overlap indices and aggregation functions, we generate fuzzy rule-based ensembles, providing different results. For the decision making related to the selection of the best class, we introduce a consensus method for classification, based on penalty functions. We also present theoretical results related to the developed methods. A detailed example of a generation of fuzzy rule-based ensembles based on the proposed approach, and the decision making by consensus via penalty functions, is presented. (C) 2017 Elsevier B.V. All rights reserved.
机译:本文的目的是通过惩罚函数提出共识方法,以便在基于模糊规则的分类系统(FRBCS)的集合中的决策。为此,我们首先介绍一种基于重叠索引的方法,用于建立置信度和支持措施,通常用于评估某个关联规则的确定性或兴趣。这些重叠索引(两个模糊集之间的Zadeh的一致性索引的概括)是使用重叠函数构建的,这是针对与重叠问题相关的应用程序和/或当关联属性没有的应用程序的特殊类型的非必要关联聚合函数要求。然后,考虑到不同的重叠索引,我们为FRBC推出了新的FRM,这概括了经典方法。通过考虑多个重叠索引和聚合函数,我们生成基于模糊的规则的合奏,提供不同的结果。对于与选择最佳类别相关的决策,我们基于惩罚功能介绍了分类的共识方法。我们还提出了与开发方法相关的理论结果。提出了一种基于所提出的方法的模糊规则的合奏的详细示例,以及通过惩罚函数的共识的决策。 (c)2017 Elsevier B.v.保留所有权利。

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