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The fundamental problem of gibbs sampler in mixture models

عنوان مقاله: The fundamental problem of gibbs sampler in mixture models
شناسه ملی مقاله: JR_SJPAS-3-8_001
منتشر شده در شماره 8 دوره 3 فصل August در سال 1393
مشخصات نویسندگان مقاله:

g.h gholami - Department of Mathematics, Faculty of science, Urmia University, Urmia, IRAN.Corresponding author; Department of Mathematics, Faculty of science, Urmia University, Urmia, IRAN.
a etemadi - Department of Mathematics, Urmia Branch, Islamic Azad University, Urmia, IRAN.
h rasi - Department of Statistics, Faculty of Mathematics, Tabriz University, Tabriz, IRAN.

خلاصه مقاله:
The mixture models were firstly studied by Pearson in 1894. These models are strong tools, through which the complicated systems can be analyzed in a wide range of disciplines such as As-tronomy, Economics, Mechanics, etc. although the structure of these models is apparently simple, it is very complicated to obtain maximum likelihood estimators and Bayesian ones in particular and it needs to be approximated in most cases. In this paper, we apply the Gibbs Sampling in order to approximate the Bayesian Estimator in Mixture models, present the Gibbs algorithms for the family of exponential distributions and finally, we would show the disadvantage of this algorithm through an example.

کلمات کلیدی:
Gibbs sampler , Mixture models , Latent variable , Posterior distribution , Prior distribution

صفحه اختصاصی مقاله و دریافت فایل کامل: https://civilica.com/doc/406238/