Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/4588
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dc.contributor.authorGuo, Yien
dc.contributor.authorGao, Junbinen
dc.contributor.authorKwan, Paul Hingen
local.source.editorEditor(s): IEEE: Institute of Electrical and Electronics Engineersen
dc.date.accessioned2010-02-11T16:21:00Z-
dc.date.issued2007-
dc.identifier.citationProceedings of the 2007 International Conference on Machine Learning and Cybernetics, p. 19-24en
dc.identifier.isbn9781424409730en
dc.identifier.urihttps://hdl.handle.net/1959.11/4588-
dc.description.abstractTwin kernel embedding (TKE) is a powerful non-vectorial data reduction algorithm proposed for advanced applications in clustering and visualization, manifold learning, etc. Due to the requirement of online processing in many cutting edge research problems involving highly structured data like DNA, protein sequences and biometric features that are non-vectorial in nature, learning the out-of-sample (OOS) mapping becomes a necessity. To address this, we propose constrained TKE, which is an OOS extension of TKE capable of learning such a mapping function. This is achieved by including the mapping in the objective function optimized by the TKE algorithm. More broadly, this mapping function can be applied in other data reduction methods as an OOS extension. Furthermore, to improve the accuracy of predictions in case where new samples are presented in batch, a refinement strategy is introduced by exploiting the similarity between new samples which is often ignored by other methods. Experimental results on the Reuters-21578 text collection confirmed the usefulness of the proposed method.en
dc.languageenen
dc.publisherInstitute of Electrical and Electronics Engineers (IEEE)en
dc.relation.ispartofProceedings of the 2007 International Conference on Machine Learning and Cyberneticsen
dc.titleLearning out-of sample mapping in non-vectorial data reduction using constrained twin kernel embeddingen
dc.typeConference Publicationen
dc.relation.conferenceICMLC 2007: 2007 International Conference on Machine Learning and Cyberneticsen
dc.identifier.doi10.1109/ICMLC.2007.4370108en
dc.subject.keywordsPattern Recognition and Data Miningen
local.contributor.firstnameYien
local.contributor.firstnameJunbinen
local.contributor.firstnamePaul Hingen
local.subject.for2008080109 Pattern Recognition and Data Miningen
local.subject.seo2008890201 Application Software Packages (excl. Computer Games)en
local.profile.schoolSchool of Science and Technologyen
local.profile.schoolSchool of Science and Technologyen
local.profile.emailyguo4@une.edu.auen
local.profile.emailjgao@une.edu.auen
local.profile.emailwkwan2@une.edu.auen
local.output.categoryE1en
local.record.placeauen
local.record.institutionUniversity of New Englanden
local.identifier.epublicationsrecordpes:5534en
local.date.conference19th - 22nd August, 2007en
local.conference.placeHong Kongen
local.publisher.placeLos Alamitos, United States of Americaen
local.format.startpage19en
local.format.endpage24en
local.peerreviewedYesen
local.contributor.lastnameGuoen
local.contributor.lastnameGaoen
local.contributor.lastnameKwanen
dc.identifier.staffune-id:yguo4en
dc.identifier.staffune-id:jgaoen
dc.identifier.staffune-id:wkwan2en
local.profile.roleauthoren
local.profile.roleauthoren
local.profile.roleauthoren
local.identifier.unepublicationidune:4698en
dc.identifier.academiclevelAcademicen
dc.identifier.academiclevelAcademicen
dc.identifier.academiclevelAcademicen
local.title.maintitleLearning out-of sample mapping in non-vectorial data reduction using constrained twin kernel embeddingen
local.output.categorydescriptionE1 Refereed Scholarly Conference Publicationen
local.conference.detailsICMLC 2007: 2007 International Conference on Machine Learning and Cybernetics, Hong Kong, China, 19th - 22nd August 2007en
local.search.authorGuo, Yien
local.search.authorGao, Junbinen
local.search.authorKwan, Paul Hingen
local.uneassociationUnknownen
local.year.published2007en
local.date.start2007-08-19-
local.date.end2007-08-22-
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