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AI
2002
Springer

A re-weighting strategy for improving margins

13 years 4 months ago
A re-weighting strategy for improving margins
We present a simple general scheme for improving margins that is inspired on well known margin theory principles. The scheme is based on a sample re-weighting strategy. The very basic idea is in fact to add to the training set new replicas of samples which are not classified with a sufficient margin. As a study case, we present a new algorithm, namely TVQ, which is an instance of the proposed scheme and involves a tangent distance based 1-NN classifier implementing a sort of quantization of the tangent distance prototypes. The tangent distance models created in this way have shown a significant improvement in generalization power with respect to standard tangent models. Moreover, the obtained models were able to outperform other state of the art algorithms, such as SVM, in an OCR task. 2002 Elsevier Science B.V. All rights reserved.
Fabio Aiolli, Alessandro Sperduti
Added 16 Dec 2010
Updated 16 Dec 2010
Type Journal
Year 2002
Where AI
Authors Fabio Aiolli, Alessandro Sperduti
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