Hierarchical bayes small area estimation under an area level model with applications to horticultural survey data


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Article type :

Review Article

Author :

Nageena Nazir, S. A. Mir and M. Iqbal Jeelani

Volume :

9

Issue :

1

Abstract :

In this paper we studied Bayesian aspect of small area estimation using Area level model. We proposed and evaluated new prior distribution for the area level model, for the variance component rather than uniform prior. The proposed model is implemented using the MCMC method for fully Bayesian inference. Laplace approximation is used to obtain accurate approximations to the posterior moments. We apply the proposed model to the analysis of horticultural data and results from the model are compared with frequestist approach and with Bayesian model of uniform prior in terms of average relative bias, average squared relative bias and average absolute bias. The numerical results obtained highlighted the superiority of using the proposed prior over the uniform prior.

Keyword :

Small area estimation, Area level model, Hierarchical bayes
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