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Tighter variational representations of f-divergences via restriction to probability measures

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Ruderman, Avraham
Garcia-Garcia, Dario
Petterson, James
Reid, Mark

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Abstract

We show that the variational representations for f-divergences currently used in the literature can be tightened. This has implications to a number of methods recently proposed based on this representation. As an example application we use our tighter representation to derive a general f-divergence estimator based on two i.i.d. samples and derive the dual program for this estimator that performs well empirically. We also point out a connection between our estimator and MMD.

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Proceedings of the 29th International Conference on Machine Learning, ICML 2012

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2037-12-31
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