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Publikace:
On reporting performance of binary classifiers

Článekopen accesspeer-reviewedpublished
dc.contributor.authorŠkrabánek, Pavel
dc.contributor.authorDoležel, Petr
dc.date.accessioned2017-11-15T10:52:55Z
dc.date.available2017-11-15T10:52:55Z
dc.date.issued2017
dc.description.abstractIn this contribution, the question of reporting performance of binary classifiers is opened in context of the so called class imbalance problem. The class imbalance problem arises when a dataset with a highly imbalanced class distribution is used within the training or evaluation process. In such cases, only measures, which are not biased by distribution of classes in datasets, should be used; however, they cannot be chosen arbitrarily. They should be selected so that their outcomes provide desired information; and simultaneously, they should allow a full comparison of just evaluated classifier performance along, with performances of other solutions. As is shown in this article, the dilemma with reporting performance of binary classifiers can be solved using so called class balanced measures. The class balanced measures are generally applicable means, appropriate for reporting performance of binary classifiers on balanced as well as on imbalanced datasets. On the basis of the presented pieces of information, a suggestion for a generally applicable, fully-valued, reporting of binary classifiers performance is given.eng
dc.identifier.issnISSN 1211-555X (Print)
dc.identifier.issnISSN 1804-8048 (Online)
dc.identifier.urihttps://hdl.handle.net/10195/69604
dc.language.isoeng
dc.peerreviewedyeseng
dc.publicationstatuspublishedeng
dc.publisherUniverzita Pardubicecze
dc.relation.ispartofScientific papers of the University of Pardubice. Series D, Faculty of Economics and Administration. 41/2017eng
dc.rightsopen accesseng
dc.subjectmachine learningeng
dc.subjectbinary classificationeng
dc.subjectclass imbalance problemeng
dc.subjectperformance measureseng
dc.subjectreporting of resultseng
dc.subject.jelC45
dc.subject.jelC83
dc.titleOn reporting performance of binary classifierseng
dc.typeArticleeng
dspace.entity.typePublication

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