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SVM CLASSIFICATION:ITS CONTENTS AND CHALLENGES 被引量:6
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作者 YueShihong LiPing haopeiyi 《Applied Mathematics(A Journal of Chinese Universities)》 SCIE CSCD 2003年第3期332-342,共11页
SVM (support vector machines) have become an increasingly popular tool for machine learning tasks involving classification,regression or novelty detection.In particular,they exhibit good generalization performance on ... SVM (support vector machines) have become an increasingly popular tool for machine learning tasks involving classification,regression or novelty detection.In particular,they exhibit good generalization performance on many real issues and the approach is properly motivated theoretically.There are relatively a few free parameters to adjust and the architecture of the learning machine does not need to be found by experimentation.In this paper,survey of the key contents on this subject,focusing on the most well-known models based on kernel substitution,namely SVM,as well as the activated fields at present and the development tendency,is presented. 展开更多
关键词 kernel methods mathematical programming SVM
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