Εμφάνιση απλής εγγραφής

dc.creatorTasoulis, S. K.en
dc.creatorTasoulis, D. K.en
dc.creatorPlagianakos, V. P.en
dc.date.accessioned2015-11-23T10:49:35Z
dc.date.available2015-11-23T10:49:35Z
dc.date.issued2010
dc.identifier10.1109/CEC.2010.5586487
dc.identifier.isbn9781424469109
dc.identifier.urihttp://hdl.handle.net/11615/33579
dc.description.abstractWhile data clustering has a long history and a large amount of research has been devoted to the development of clustering algorithms, significant challenges still remain. One of the most important challenges in the field is dealing with high dimensional datasets. The class of clustering algorithms that utilises information from Principal Component Analysis has proven very successful in such datasets. Unlike previous approaches employing principal components, in this paper we propose a technique that uses a quality criterion to select the most important dimension (projection). This criterion permits us to formulate the problem as an optimisation task over the space of projections. However, in high dimensional spaces this problem is hard to solve and analytic solutions are not available. Thus, we tackle this problem through the use of an evolutionary algorithm. The experimental results indicate that the proposed techniques are effective in both simulated and real data scenarios. © 2010 IEEE.en
dc.source.urihttp://www.scopus.com/inward/record.url?eid=2-s2.0-79959466295&partnerID=40&md5=79debc6ed178e1039cdc770ee573ec75
dc.subjectAnalytic solutionen
dc.subjectData clusteringen
dc.subjectData setsen
dc.subjectHigh dimensional datasetsen
dc.subjectHigh dimensional spacesen
dc.subjectOptimisationsen
dc.subjectPrincipal Componentsen
dc.subjectPrincipal direction divisive partitioningen
dc.subjectQuality criteriaen
dc.subjectArtificial intelligenceen
dc.subjectCluster analysisen
dc.subjectEvolutionary algorithmsen
dc.subjectPrincipal component analysisen
dc.subjectClustering algorithmsen
dc.titleEvolutionary principal direction divisive partitioningen
dc.typeconferenceItemen


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