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- W112590975 abstract "We give a brief survey of regularization schemes in learning theory for the purposes of regression and classification, from, an approximation theory point of view. First, the classical method of empirical risk minimization is reviewed for regression with a general convex loss function. Next, we explain ideas and methods for the error analysis of regression algorithms generated by Tikhonov regularization schemes associated with reproducing kernel Hilbert spaces. Then binary classification algorithms given by regularization schemes are described with emphasis on support vector machines and noise conditions for distributions. Finally, we mention further topics and some open problems in learning theory." @default.
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- W112590975 date "2006-01-01" @default.
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- W112590975 title "Learning Theory: From Regression to Classification" @default.
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- W112590975 doi "https://doi.org/10.1016/s1570-579x(06)80011-x" @default.
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