Robust multiclass kernel-based classifiers

被引:1
|
作者
Santosa, Budi
Trafalis, Theodore B. [1 ]
机构
[1] Univ Oklahoma, Sch Ind Engn, Norman, OK 73019 USA
[2] Sepuluh Nopember Inst Technol, Dept Ind Engn, Surabaya, Indonesia
关键词
feasibility approach; generalization error; kernel; minimax probability machine; multiclass; robust; support vector machine; uncertainty;
D O I
10.1007/s10589-007-9042-z
中图分类号
C93 [管理学]; O22 [运筹学];
学科分类号
070105 ; 12 ; 1201 ; 1202 ; 120202 ;
摘要
In this research, a robust optimization approach applied to multiclass support vector machines (SVMs) is investigated. Two new kernel based-methods are developed to address data with input uncertainty where each data point is inside a sphere of uncertainty. The models are called robust SVM and robust feasibility approach model (Robust-FA) respectively. The two models are compared in terms of robustness and generalization error. The models are compared to robust Minimax Probability Machine (MPM) in terms of generalization behavior for several data sets. It is shown that the Robust-SVM performs better than robust MPM.
引用
收藏
页码:261 / 279
页数:19
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