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Recent progress in log-concave density estimation

10 September 2017
R. Samworth
ArXiv (abs)PDFHTML
Abstract

In recent years, log-concave density estimation via maximum likelihood estimation has emerged as a fascinating alternative to traditional nonparametric smoothing techniques, such as kernel density estimation, which require the choice of one or more bandwidths. The purpose of this article is to describe some of the properties of the class of log-concave densities on Rd\mathbb{R}^dRd which make it so attractive from a statistical perspective, and to outline the latest methodological, theoretical and computational advances in the area.

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