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dc.creatorPereira, Rafael B.-
dc.creatorPlastino, Alexandre-
dc.creatorZadrozny, Bianca-
dc.creatorMerschmann, Luiz H. C.-
dc.date.accessioned2022-06-10T15:17:57Z-
dc.date.available2022-06-10T15:17:57Z-
dc.date.issued2021-01-26-
dc.identifier.citationPEREIRA, R. B. et al. A lazy feature selection method for multi-label classification. Intelligent Data Analysis, [S.l.], v. 25, n. 1, p. 21-34, Jan. 2021. DOI: 10.3233/IDA-194878.pt_BR
dc.identifier.urihttps://content.iospress.com/articles/intelligent-data-analysis/ida194878pt_BR
dc.identifier.urihttp://repositorio.ufla.br/jspui/handle/1/50179-
dc.description.abstractIn many important application domains, such as text categorization, biomolecular analysis, scene or video classification and medical diagnosis, instances are naturally associated with more than one class label, giving rise to multi-label classification problems. This has led, in recent years, to a substantial amount of research in multi-label classification. More specifically, feature selection methods have been developed to allow the identification of relevant and informative features for multi-label classification. This work presents a new feature selection method based on the lazy feature selection paradigm and specific for the multi-label context. Experimental results show that the proposed technique is competitive when compared to multi-label feature selection techniques currently used in the literature, and is clearly more scalable, in a scenario where there is an increasing amount of data.pt_BR
dc.languageen_USpt_BR
dc.publisherIOS Presspt_BR
dc.rightsrestrictAccesspt_BR
dc.sourceIntelligent Data Analysispt_BR
dc.subjectMulti-label classificationpt_BR
dc.subjectData miningpt_BR
dc.subjectFeature selectionpt_BR
dc.titleA lazy feature selection method for multi-label classificationpt_BR
dc.typeArtigopt_BR
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