Model-Based Clustering

Author:

Gormley Isobel Claire1,Murphy Thomas Brendan12,Raftery Adrian E.3

Affiliation:

1. School of Mathematics and Statistics, University College Dublin, Dublin, Ireland;,

2. Collegium de Lyon Institut d'Études Avancées and ERIC, Université de Lyon, Lyon, France

3. Department of Statistics and Department of Sociology, University of Washington, Seattle, Washington;

Abstract

Clustering is the task of automatically gathering observations into homogeneous groups, where the number of groups is unknown. Through its basis in a statistical modeling framework, model-based clustering provides a principled and reproducible approach to clustering. In contrast to heuristic approaches, model-based clustering allows for robust approaches to parameter estimation and objective inference on the number of clusters, while providing a clustering solution that accounts for uncertainty in cluster membership. The aim of this article is to provide a review of the theory underpinning model-based clustering, to outline associated inferential approaches, and to highlight recent methodological developments that facilitate the use of model-based clustering for a broad array of data types. Since its emergence six decades ago, the literature on model-based clustering has grown rapidly, and as such, this review provides only a selection of the bibliography in this dynamic and impactful field.

Publisher

Annual Reviews

Subject

Statistics, Probability and Uncertainty,Statistics and Probability

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