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Chapter

Bayesian Generalized Linear Models for Inference About Small Areas

Chapter

Bayesian Generalized Linear Models for Inference About Small Areas

DOI link for Bayesian Generalized Linear Models for Inference About Small Areas

Bayesian Generalized Linear Models for Inference About Small Areas book

Bayesian Generalized Linear Models for Inference About Small Areas

DOI link for Bayesian Generalized Linear Models for Inference About Small Areas

Bayesian Generalized Linear Models for Inference About Small Areas book

Edited ByDipak K. Dey, Sujit K. Ghosh, Bani K. Mallick
BookGeneralized Linear Models

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Edition 1st Edition
First Published 2000
Imprint CRC Press
Pages 22
eBook ISBN 9780429182402

ABSTRACT

Small area estimation is concerned with the estimation of parameters corresponding to small geographical areas or subpopulations when the underlying theme is to pool the data from other areas to estimate the parameters for a particular area. Interest in small area estimation has grown tremendously in recent years, more so after the elegant review paper of Ghosh and Rao (1994). More sophisticated models are being constructed to take care of many sources of variation, and these models can include both discrete data and continuous data. As can be envisioned there is a fairly large literature on continuous data models while the literature on discrete data models is very scanty. The literature on generalized linear models is relatively large, but the literature on Bayesian generalized linear models for small area estimation is limited.

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