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dc.contributorUniversitat Ramon Llull. Esade
dc.contributor.authorUnceta, Irene
dc.contributor.authorNin, Jordi
dc.contributor.authorParida, Vinit
dc.date.accessioned2025-02-27T12:42:30Z
dc.date.available2025-02-27T12:42:30Z
dc.date.issued2020
dc.identifier.issn2169-3536ca
dc.identifier.urihttp://hdl.handle.net/20.500.14342/5064
dc.description.abstractWe study copying of machine learning classifiers, an agnostic technique to replicate the decision behavior of any classifier. We develop the theory behind the problem of copying, highlighting its properties, and propose a framework to copy the decision behavior of any classifier using no prior knowledge of its parameters or training data distribution. We validate this framework through extensive experiments using data from a series of well-known problems. To further validate this concept, we use three different use cases where desiderata such as interpretability, fairness or productivization constrains need to be addressed. Results show that copies can be exploited to enhance existing solutions and improve them adding new features and characteristics.ca
dc.format.extent17 p.ca
dc.language.isoengca
dc.publisherInstitute of Electrical and Electronics Engineers Inc.ca
dc.relation.ispartofIEEE Accessca
dc.rights© L'autor/aca
dc.rightsAttribution 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subject.otherApplied machine learningca
dc.titleCopying Machine Learning Classifiersca
dc.typeinfo:eu-repo/semantics/articleca
dc.rights.accessLevelinfo:eu-repo/semantics/openAccess
dc.embargo.termscapca
dc.identifier.doihttp://doi.org/10.1109/ACCESS.2020.3020638ca
dc.description.versioninfo:eu-repo/semantics/publishedVersionca


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Except where otherwise noted, this item's license is described as http://creativecommons.org/licenses/by/4.0/
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