Universum Learning for SVM Regression

May 27, 2016 ยท Declared Dead ยท ๐Ÿ› IEEE International Joint Conference on Neural Network

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Authors Sauptik Dhar, Vladimir Cherkassky arXiv ID 1605.08497 Category cs.LG: Machine Learning Citations 6 Venue IEEE International Joint Conference on Neural Network Last Checked 5 months ago
Abstract
This paper extends the idea of Universum learning [18, 19] to regression problems. We propose new Universum-SVM formulation for regression problems that incorporates a priori knowledge in the form of additional data samples. These additional data samples or Universum belong to the same application domain as the training samples, but they follow a different distribution. Several empirical comparisons are presented to illustrate the utility of the proposed approach.
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