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dc.contributor.authorLim, Eng Aik
dc.date.accessioned2010-11-28T02:26:23Z
dc.date.available2010-11-28T02:26:23Z
dc.date.issued2010-06-02
dc.identifier.citationVol.4(8), p.395-400en_US
dc.identifier.urihttp://dspace.unimap.edu.my/123456789/10330
dc.description1st Regional Conference on Applied and Engineering Mathematics (RCAEM-I) 2010 organized by Universiti Malaysia Perlis (UniMAP) and co-organized by Universiti Sains Malaysia (USM) & Universiti Kebangsaan Malaysia (UKM), 2nd - 3rd June 2010 at Eastern & Oriental Hotel, Penang.en_US
dc.description.abstractThis paper introduces an improved unsupervised clustering algorithm, named Kernel-Induced Bubble Agglomeration. In this paper, the conventional Bubble Agglomeration algorithm is extended by calculating the Euclidean distance of each data point based on a kernel-induced distance instead of the conventional sum-of-squares distance. The kernel function is a generalization of the distance metric that measures the distance between two data points as the data points are mapped into a high dimensional space. By using a kernel function, data that are not easily separable in the original space can be clustered into homogeneous groups in the implicitly transformed high dimensional feature space. Application of the conventional Bubble Agglomeration algorithm and the Kernel-induced Bubble Agglomeration algorithm to well-known data sets showed the superiority of the proposed approach.en_US
dc.language.isoenen_US
dc.publisherUniversiti Malaysia Perlis (UniMAP)en_US
dc.relation.ispartofseriesProceedings of the 1st Regional Conference on Applied and Engineering Mathematics (RCAEM-I) 2010en_US
dc.subjectKernel functionen_US
dc.subjectBubble Agglomerationen_US
dc.subjectEuclidean distanceen_US
dc.subjectData classificationen_US
dc.subjectSimilarity measureen_US
dc.subjectRegional Conference on Applied and Engineering Mathematics (RCAEM)en_US
dc.titleKernel-Induced Bubble Agglomeration Algorithm for unsupervised classification: An improved clustering methodology without prior informationen_US
dc.typeWorking Paperen_US
dc.publisher.departmentInstitut Matematik Kejuruteraanen_US
dc.contributor.urlealim@unimap.edu.myen_US


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