Bayesian inference on sparse multinomial data using smoothed Dirichlet distribution with an application to COVID-19 data

Author:

Wickramasinghe Lahiru1,Leblanc Alexandre2,Muthukumarana Saman2

Affiliation:

1. Department of Mathematics and Statistics, University of Winnipeg, Winnipeg, Canada

2. Department of Statistics, University of Manitoba, Winnipeg, Canada

Abstract

We develop a Bayesian approach for estimating multinomial cell probabilities using a smoothed Dirichlet prior. The most important feature of the smoothed Dirichlet prior is that it forces the probabilities of neighboring cells to be closer to each other than under the standard Dirichlet prior. We propose a shrinkage-type estimator using this Bayesian approach to estimate multinomial cell probabilities. The proposed estimator allows us to borrow information across other multinomial populations and cell categories simultaneously to improve the estimation of cell probabilities, especially in a context of sparsity with ordered categories. We demonstrate the proposed approach using COVID-19 data and estimate the distribution of positive COVID-19 cases across age groups for Canadian health regions. Our approach allows improved estimation in smaller health regions where few cases have been observed.

Publisher

IOS Press

Subject

Applied Mathematics,Modeling and Simulation,Statistics and Probability

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Smoothed Dirichlet Distribution;Journal of Statistical Theory and Applications;2023-09-11

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