IEICE Transactions on Information and Systems
Online ISSN : 1745-1361
Print ISSN : 0916-8532
Special Section on Large Scale Algorithms for Learning and Optimization
Recent Advances and Trends in Large-Scale Kernel Methods
Hisashi KASHIMATsuyoshi IDÉTsuyoshi KATOMasashi SUGIYAMA
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2009 Volume E92.D Issue 7 Pages 1338-1353

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Abstract

Kernel methods such as the support vector machine are one of the most successful algorithms in modern machine learning. Their advantage is that linear algorithms are extended to non-linear scenarios in a straightforward way by the use of the kernel trick. However, naive use of kernel methods is computationally expensive since the computational complexity typically scales cubically with respect to the number of training samples. In this article, we review recent advances in the kernel methods, with emphasis on scalability for massive problems.

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© 2009 The Institute of Electronics, Information and Communication Engineers
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