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Zoltán Szabó

6 accepted papers

2017

An Adaptive Test of Independence with Analytic Kernel Embeddings

ICML 2017poster

A new computationally efficient dependence measure, and an adaptive statistical test of independence, are proposed. The dependence measure is the difference between analytic embeddings of the joint distribution and the product of the marginals, evaluated at a finite set of locations (features). Thes…

2016

Interpretable Distribution Features with Maximum Testing Power

NeurIPS 2016oral

Two semimetrics on probability distributions are proposed, given as the sum of differences of expectations of analytic functions evaluated at spatial or frequency locations (i.e, features). The features are chosen so as to maximize the distinguishability of the distributions, by optimizing a lower b…