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Space-time areal mixture model: relabeling algorithm and model selection issues

Authors
Hossain, MMLawson, ABCai, BChoi, JLiu, JKirby, R.S
Issue Date
Mar-2014
Publisher
WILEY-BLACKWELL
Keywords
space-time mixture model; homogeneous covariate effect; relabeling algorithm; loss function; DIC
Citation
ENVIRONMETRICS, v.25, no.2, pp.84 - 96
Indexed
SCIE
SCOPUS
Journal Title
ENVIRONMETRICS
Volume
25
Number
2
Start Page
84
End Page
96
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/160577
DOI
10.1002/env.2265
ISSN
1180-4009
Abstract
With the growing popularity of spatial mixture models in cluster analysis, model selection criteria have become an established tool in the search for parsimony. However, the label-switching problem is often inherent in Bayesian implementation of mixture models, and a variety of relabeling algorithms have been proposed. We use a space-time mixture of Poisson regression models with homogeneous covariate effects to illustrate that the best model selected by using model selection criteria does not always support the model that is chosen by the optimal relabeling algorithm. The results are illustrated for real and simulated datasets. The objective is to make the reader aware that if the purpose of statistical modeling is to identify clusters, applying a relabeling algorithm to the model with the best fit may not generate the optimal relabeling.
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