Improving the usability of gaknn framework

dc.contributor.authorKempitiya, T
dc.contributor.editorPerera, I
dc.contributor.editorMeedeniya, D
dc.contributor.editorPerera, S
dc.date.accessioned2022-12-12T05:17:36Z
dc.date.available2022-12-12T05:17:36Z
dc.date.issued2014-09
dc.description.abstractK nearest neighbour classification (KNN) is a popular non parametric and lazy algorithm for classification. gaKnn framework is a implementation of the KNN algorithm combine with genetic algorithm. It provides genetic algorithm optimization for KNN algorithm which will optimize the weight values for each attribute and k value. In this paper, I proposed improvements for the current implementation of the gaKnn framework to improve its usability and performance using kd tree to improve the KNN algorithm, different data and file type usage and regression algorithm based on k nearest neighbour. Mainly it introduce three modules for the current implementation of the gaKnn framework namely csv file reader and writer module, large dataset module and KNN regression module.en_US
dc.identifier.citation************en_US
dc.identifier.conferenceProceedings of the CSE Symposium 2014en_US
dc.identifier.departmentDepartment of Computer Science and Engineeringen_US
dc.identifier.emailthimal.10@cse.mrt.ac.lken_US
dc.identifier.facultyEngineeringen_US
dc.identifier.pgnospp. 29-32en_US
dc.identifier.placeMoratuwa, Sri Lanka.en_US
dc.identifier.proceedingProceedings of the CSE Symposium 2014en_US
dc.identifier.urihttp://dl.lib.uom.lk/handle/123/19751
dc.identifier.year2014en_US
dc.language.isoenen_US
dc.publisherDepartment of Computer Science and Engineering, University of Moratuwa.en_US
dc.subjectK nearest neighbouren_US
dc.subjectRegressionen_US
dc.subjectKd treeen_US
dc.titleImproving the usability of gaknn frameworken_US
dc.typeConference-Full-texten_US

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