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Maximum Likelihood Estimates for Gaussian Mixtures Are Transcendental

27 August 2015
Carlos Améndola
Mathias Drton
Bernd Sturmfels
ArXiv (abs)PDFHTML
Abstract

Gaussian mixture models are central to classical statistics, widely used in the information sciences, and have a rich mathematical structure. We examine their maximum likelihood estimates through the lens of algebraic statistics. The MLE is not an algebraic function of the data, so there is no notion of ML degree for these models. The critical points of the likelihood function are transcendental, and there is no bound on their number, even for mixtures of two univariate Gaussians.

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