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dc.contributor.authorHou, Jian
dc.contributor.authorLiu, Wei-Xue
dc.contributor.authorKarimi, Hamid Reza
dc.date.accessioned2015-03-09T13:33:10Z
dc.date.available2015-03-09T13:33:10Z
dc.date.issued2014
dc.identifier.citationHou, J., Liu, W. X., & Karimi, H. R. (2014). Sampling based average classifier fusion. Mathematical Problems in Engineering, 2014. doi: 10.1155/2014/369613nb_NO
dc.identifier.issn1024123X
dc.identifier.urihttp://hdl.handle.net/11250/278751
dc.descriptionPublished version of an article in the journal: Mathematical Problems in Engineering. Also available from the publisher at: http://dx.doi.org/10.1155/2014/369613nb_NO
dc.description.abstractClassifier fusion is used to combine multiple classification decisions and improve classification performance. While various classifier fusion algorithms have been proposed in literature, average fusion is almost always selected as the baseline for comparison. Little is done on exploring the potential of average fusion and proposing a better baseline. In this paper we empirically investigate the behavior of soft labels and classifiers in average fusion. As a result, we find that; by proper sampling of soft labels and classifiers, the average fusion performance can be evidently improved. This result presents sampling based average fusion as a better baseline; that is, a newly proposed classifier fusion algorithm should at least perform better than this baseline in order to demonstrate its effectiveness. © 2014 Jian Hou et al.nb_NO
dc.language.isoengnb_NO
dc.publisherHindawinb_NO
dc.rightsNavngivelse 3.0 Norge*
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/no/*
dc.titleSampling based average classifier fusionnb_NO
dc.typeJournal articlenb_NO
dc.typePeer reviewednb_NO
dc.subject.nsiVDP::Mathematics and natural science: 400::Information and communication science: 420nb_NO
dc.source.pagenumber6 p.nb_NO
dc.source.journalMathematical Problems in Engineeringnb_NO
dc.identifier.doi10.1155/2014/369613


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