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Publication Detail
A Kernel Test for Three-Variable Interactions
  • Publication Type:
    Conference
  • Authors:
    Sejdinovic D, Gretton A, Bergsma W
  • Publication date:
    10/06/2013
  • Keywords:
    stat.ME, stat.ME, stat.ML
Abstract
We introduce kernel nonparametric tests for Lancaster three-variable interaction and for total independence, using embeddings of signed measures into a reproducing kernel Hilbert space. The resulting test statistics are straightforward to compute, and are used in powerful interaction tests, which are consistent against all alternatives for a large family of reproducing kernels. We show the Lancaster test to be sensitive to cases where two independent causes individually have weak influence on a third dependent variable, but their combined effect has a strong influence. This makes the Lancaster test especially suited to finding structure in directed graphical models, where it outperforms competing nonparametric tests in detecting such V-structures.
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