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(Neural Computation. 2005;17:2508-2529.)
© 2005 The MIT Press


Letter

Geometrical Properties of Nu Support Vector Machines with Different Norms

Kazushi Ikeda

kazushi{at}i.kyoto-u.ac.jp, Graduate School of Informatics, Kyoto University, Sakyo, Kyoto 606-8501 Japan

Noboru Murata

noboru.murata{at}eb.waseda.ac.jp, School of Science and Engineering, Waseda University, Shinjuku, Tokyo 169-8555 Japan

By employing the L1 or L{infty} norms in maximizing margins, support vector machines (SVMs) result in a linear programming problem that requires a lower computational load compared to SVMs with the L2 norm. However, how the change of norm affects the generalization ability of SVMs has not been clarified so far except for numerical experiments. In this letter, the geometrical meaning of SVMs with the Lp norm is investigated, and the SVM solutions are shown to have rather little dependency on p.




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K. IKEDA
Geometrical Properties of Lifting-Up in the Nu Support Vector Machines
IEICE Trans D: Information, February 1, 2006; E89-D(2): 847 - 852.
[Abstract] [PDF]




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