Finite mixtures of multivariate Poisson distributions with application |
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Authors: | Dimitris Karlis Loukia Meligkotsidou |
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Affiliation: | 1. Department of Statistics, Athens University of Economics & Business, 76, Patission Str., 10434 Athens, Greece;2. Department of Mathematics and Statistics, Lancaster University, Lancaster LA1 4YF, UK |
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Abstract: | In the present paper we examine finite mixtures of multivariate Poisson distributions as an alternative class of models for multivariate count data. The proposed models allow for both overdispersion in the marginal distributions and negative correlation, while they are computationally tractable using standard ideas from finite mixture modelling. An EM type algorithm for maximum likelihood (ML) estimation of the parameters is developed. The identifiability of this class of mixtures is proved. Properties of ML estimators are derived. A real data application concerning model based clustering for multivariate count data related to different types of crime is presented to illustrate the practical potential of the proposed class of models. |
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Keywords: | 60E05 62H30 |
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