Testing Properties of Multiple Distributions with Few Samples

November 17, 2019 Β· Declared Dead Β· πŸ› Information Technology Convergence and Services

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Authors Maryam Aliakbarpour, Sandeep Silwal arXiv ID 1911.07324 Category cs.DS: Data Structures & Algorithms Cross-listed cs.DM, cs.LG, stat.ML Citations 3 Venue Information Technology Convergence and Services Last Checked 4 months ago
Abstract
We propose a new setting for testing properties of distributions while receiving samples from several distributions, but few samples per distribution. Given samples from $s$ distributions, $p_1, p_2, \ldots, p_s$, we design testers for the following problems: (1) Uniformity Testing: Testing whether all the $p_i$'s are uniform or $Ξ΅$-far from being uniform in $\ell_1$-distance (2) Identity Testing: Testing whether all the $p_i$'s are equal to an explicitly given distribution $q$ or $Ξ΅$-far from $q$ in $\ell_1$-distance, and (3) Closeness Testing: Testing whether all the $p_i$'s are equal to a distribution $q$ which we have sample access to, or $Ξ΅$-far from $q$ in $\ell_1$-distance. By assuming an additional natural condition about the source distributions, we provide sample optimal testers for all of these problems.
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