Measure Based Regularization

Bousquet, Olivier, Chapelle, Olivier, Hein, Matthias

Neural Information Processing Systems 

We address in this paper the question of how the knowledge of the marginal distribution P (x) can be incorporated in a learning algorithm. We suggest three theoretical methods for taking into account this distribution for regularization and provide links to existing graph-based semi-supervised learning algorithms. We also propose practical implementations.

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