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Large-Scale Data Classification Method Based on Machine Learning Model SCOPUS

Hao Jia

보안공학연구지원센터(IJDTA) International Journal of Database Theory and Application Vol.8 No.2 2015.04 pp.71-80

※ 원문제공기관과의 협약기간이 종료되어 열람이 제한될 수 있습니다.

Classification is to map the data item in the database into a given class. It is an important research direction in data mining. In allusion to the shortcomings of traditional classification methods, such as the decision tree, K nearest neighbor, Bayes , fuzzy logic, genetic algorithms and neural networks and so on, the support vector machine with perfect theory, strong adaptability, global optimization, short training time, good generalization performance is introduced into the classification, a machine learning model based on the SMO algorithm and RBF kernel function of the SVM is proposed to realize a classification method in this paper. This method transforms the nonlinear classification problem into linear classification problem by improving the data dimension. It can better solve the problems of the minimum error in the training set and the larger error in the test set in the traditional algorithm. Application of UCI classification experiment shows that the proposed method takes on the better convergence, faster training speed and higher classification accuracy.

 
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