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  A Kernel Statistical Test of Independence

Gretton, A., Fukumizu, K., Teo CH, Song L, Schölkopf, B., & Smola, A. (2008). A Kernel Statistical Test of Independence. Advances in Neural Information Processing Systems 20: 21st Annual Conference on Neural Information Processing Systems 2007, 585-592.

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 Creators:
Gretton, A1, Author           
Fukumizu, K1, Author           
Teo CH, Song L, Schölkopf, B1, Author           
Smola, AJ, Author
Platt, Editor
J.C., Editor
Koller, D., Editor
Singer, Y., Editor
Roweis, S., Editor
Affiliations:
1Department Empirical Inference, Max Planck Institute for Biological Cybernetics, Max Planck Society, ou_1497795              

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 Abstract: Whereas kernel measures of independence have been widely applied in machine learning (notably in kernel ICA), there is as yet no method to determine whether they have detected statistically significant dependence. We provide a novel test of the independence hypothesis for one particular kernel independence measure, the Hilbert-Schmidt independence criterion (HSIC). The resulting test costs O(m^2), where m is the sample size. We demonstrate that this test outperforms established contingency table-based tests. Finally, we show the HSIC test also applies to text (and to structured data more generally), for which no other independence test presently exists.

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 Dates: 2008-09
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: ISBN: 978-1-605-60352-0
URI: http://nips.cc/Conferences/2007/
BibTex Citekey: 4928
 Degree: -

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Title: Twenty-First Annual Conference on Neural Information Processing Systems (NIPS 2007)
Place of Event: Vancouver, BC, Canada
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Title: Advances in Neural Information Processing Systems 20: 21st Annual Conference on Neural Information Processing Systems 2007
Source Genre: Journal
 Creator(s):
Affiliations:
Publ. Info: Red Hook, NY, USA : Curran
Pages: - Volume / Issue: - Sequence Number: - Start / End Page: 585 - 592 Identifier: -