Robust Learning of Mixtures of Gaussians

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Authors Daniel M. Kane arXiv ID 2007.05912 Category cs.DS: Data Structures & Algorithms Cross-listed cs.LG, math.ST Citations 23 Venue ACM-SIAM Symposium on Discrete Algorithms Last Checked 3 months ago
Abstract
We resolve one of the major outstanding problems in robust statistics. In particular, if $X$ is an evenly weighted mixture of two arbitrary $d$-dimensional Gaussians, we devise a polynomial time algorithm that given access to samples from $X$ an $\eps$-fraction of which have been adversarially corrupted, learns $X$ to error $\poly(\eps)$ in total variation distance.
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