Prediction of Learning Disabilities in School Age Children using SVM and Decision Tree

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Prediction of Learning Disabilities in School Age Children using SVM and Decision Tree

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dc.contributor.author Kannan, Balakrishnan
dc.contributor.author Julie, David M
dc.date.accessioned 2014-07-22T06:23:30Z
dc.date.available 2014-07-22T06:23:30Z
dc.date.issued 2011
dc.identifier.issn 0975-9646
dc.identifier.uri http://dyuthi.cusat.ac.in/purl/4202
dc.description (IJCSIT) International Journal of Computer Science and Information Technologies, Vol. 2 (2) , 2011, 829-835 en_US
dc.description.abstract This paper highlights the prediction of Learning Disabilities (LD) in school-age children using two classification methods, Support Vector Machine (SVM) and Decision Tree (DT), with an emphasis on applications of data mining. About 10% of children enrolled in school have a learning disability. Learning disability prediction in school age children is a very complicated task because it tends to be identified in elementary school where there is no one sign to be identified. By using any of the two classification methods, SVM and DT, we can easily and accurately predict LD in any child. Also, we can determine the merits and demerits of these two classifiers and the best one can be selected for the use in the relevant field. In this study, Sequential Minimal Optimization (SMO) algorithm is used in performing SVM and J48 algorithm is used in constructing decision trees. en_US
dc.description.sponsorship Cochin University of Science & Technology en_US
dc.language.iso en en_US
dc.subject Decision Tree en_US
dc.subject Hyper Plane en_US
dc.subject Learning Disability en_US
dc.subject Polykernel en_US
dc.subject Support Vector Machine en_US
dc.title Prediction of Learning Disabilities in School Age Children using SVM and Decision Tree en_US
dc.type Article en_US


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