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arXiv 2017-12-07 1 views

Dimension-free PAC-Bayesian bounds for matrices, vectors, and linear least squares regression

Catoni, Olivier · Giulini, Ilaria

Original · EN

This paper is focused on dimension-free PAC-Bayesian bounds, under weak polynomial moment assumptions, allowing for heavy tailed sample distributions. It covers the estimation of the mean of a vector or a matrix, with applications to least squares linear regression. Special efforts are devoted to the estimation of Gram matrices, due to their prominent role in high-dimension data analysis.

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