4.4 Article

Local Optima in Mixture Modeling

Journal

MULTIVARIATE BEHAVIORAL RESEARCH
Volume 51, Issue 4, Pages 466-481

Publisher

ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
DOI: 10.1080/00273171.2016.1160359

Keywords

Mixture modeling; local optima; EM algorithm

Funding

  1. National Institutes of Health [R01 AA023248, T32 AA013526]

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It is common knowledge that mixture models are prone to arrive at locally optimal solutions. Typically, researchers are directed to utilize several random initializations to ensure that the resulting solution is adequate. However, it is unknown what factors contribute to a large number of local optima and whether these coincide with the factors that reduce the accuracy of a mixture model. A real-data illustration and a series of simulations are presented that examine the effect of a variety of data structures on the propensity of local optima and the classification quality of the resulting solution. We show that there is a moderately strong relationship between a solution that has a high proportion of local optima and one that is poorly classified.

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