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Fuzzy rule classifiers for multi-label classification

机译:用于多标签分类的模糊规则分类器

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In this paper we investigate the use of fuzzy rule-based classifiers for multi-label classification. This classification task deals with problems where more than one label could be assigned simultaneously to a given instance. We concentrate on problem transformation methods, which use different strategies to transform a multi-label problem into a different single-label classification problems. This transformation make it possible to use almost any single label learner as base-classifiers, thus benefiting from the rich miscellany of algorithms available for this task. Fuzzy rules provide both interpretability and flexibility to model the vagueness among different labels. Empirical results using six datasets, four different problem transformation methods, eight base-classifiers, and five different performance measure shows the suitability of fuzzy rules for this task.
机译:在本文中,我们研究了基于模糊规则的分类器在多标签分类中的应用。此分类任务处理的问题是,一个给定实例可以同时分配多个标签。我们专注于问题转换方法,该方法使用不同的策略将多标签问题转换为不同的单标签分类问题。这种转换使得几乎可以将任何单个标签学习器用作基本分类器,从而受益于可用于此任务的丰富算法。模糊规则提供了可解释性和灵活性,可以对不同标签之间的模糊性进行建模。使用六个数据集,四个不同的问题转换方法,八个基本分类器和五个不同的性能度量的经验结果表明,模糊规则适用于此任务。

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