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Feature Selection and Dualities in Maximum Entropy Discrimination
[article]
2013
arXiv
pre-print
Incorporating feature selection into a classification or regression method often carries a number of advantages. In this paper we formalize feature selection specifically from a discriminative perspective of improving classification/regression accuracy. The feature selection method is developed as an extension to the recently proposed maximum entropy discrimination (MED) framework. We describe MED as a flexible (Bayesian) regularization approach that subsumes, e.g., support vector
arXiv:1301.3865v1
fatcat:h6eumv4sbvcprg4jw7cxr6n7tm