DocumentCode :
1848130
Title :
Bayesian estimation of the Dirichlet distribution with expectation propagation
Author :
Ma, Zhanyu
Author_Institution :
Sch. of Electr. Eng., KTH - R. Inst. of Technol., Stockholm, Sweden
fYear :
2012
fDate :
27-31 Aug. 2012
Firstpage :
689
Lastpage :
693
Abstract :
As a member of the exponential family, the Dirichlet distribution has its conjugate prior. However, since the posterior distribution is difficult to use in practical problems, Bayesian estimation of the Dirichlet distribution, in general, is not analytically tractable. To derive practically easily used prior and posterior distributions, some approximations are required to approximate both the prior and the posterior distributions so that the conjugate match between the prior and posterior distributions holds and the obtained posterior distribution is easy to be employed. To this end, we approximate the distribution of the parameters in the Dirichlet distribution by a multivariate Gaussian distribution, based on the expectation propagation (EP) framework. The EP-based method captures the correlations among the parameters and provides an easily used prior/posterior distribution. Compared to recently proposed Bayesian estimation based on the variation inference (VI) framework, the EP-based method performs better with a smaller amount of observed data and is more stable.
Keywords :
Bayes methods; Gaussian distribution; Bayesian estimation; Dirichlet distribution; VI; conjugate match; expectation propagation; expectation propagation EP; multivariate Gaussian distribution; posterior distribution; variation inference; Approximation methods; Bayesian methods; Correlation; Gaussian distribution; Maximum likelihood estimation; Shape; Vectors; Bayesian estimation; Dirichlet distribution; Expectation Propagation; Variational Inference;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference (EUSIPCO), 2012 Proceedings of the 20th European
Conference_Location :
Bucharest
ISSN :
2219-5491
Print_ISBN :
978-1-4673-1068-0
Type :
conf
Filename :
6333896
Link To Document :
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