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Support-vector networks

by: Corinna Cortes, Vladimir Vapnik
Machine Learning, Vol. 20, No. 3. (1 September 1995), pp. 273-297, doi:10.1007/bf00994018  Key: citeulike:2016661

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Abstract

The support-vector network is a new learning machine for two-group classification problems. The machine conceptually implements the following idea: input vectors are non-linearly mapped to a very high-dimension feature space. In this feature space a linear decision surface is constructed. Special properties of the decision surface ensures high generalization ability of the learning machine. The idea behind the support-vector network was previously implemented for the restricted case where the training data can be separated without errors. We here extend this result to non-separable training data.


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