Open Access
August 2018 Empirical Bayes estimates for a two-way cross-classified model
Lawrence D. Brown, Gourab Mukherjee, Asaf Weinstein
Ann. Statist. 46(4): 1693-1720 (August 2018). DOI: 10.1214/17-AOS1599

Abstract

We develop an empirical Bayes procedure for estimating the cell means in an unbalanced, two-way additive model with fixed effects. We employ a hierarchical model, which reflects exchangeability of the effects within treatment and within block but not necessarily between them, as suggested before by Lindley and Smith [J. R. Stat. Soc., B 34 (1972) 1–41]. The hyperparameters of this hierarchical model, instead of considered fixed, are to be substituted with data-dependent values in such a way that the point risk of the empirical Bayes estimator is small. Our method chooses the hyperparameters by minimizing an unbiased risk estimate and is shown to be asymptotically optimal for the estimation problem defined above, under suitable conditions. The usual empirical Best Linear Unbiased Predictor (BLUP) is shown to be substantially different from the proposed method in the unbalanced case and, therefore, performs suboptimally. Our estimator is implemented through a computationally tractable algorithm that is scalable to work under large designs. The case of missing cell observations is treated as well.

Citation

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Lawrence D. Brown. Gourab Mukherjee. Asaf Weinstein. "Empirical Bayes estimates for a two-way cross-classified model." Ann. Statist. 46 (4) 1693 - 1720, August 2018. https://doi.org/10.1214/17-AOS1599

Information

Received: 1 May 2016; Revised: 1 February 2017; Published: August 2018
First available in Project Euclid: 27 June 2018

zbMATH: 06936475
MathSciNet: MR3819114
Digital Object Identifier: 10.1214/17-AOS1599

Subjects:
Primary: 62C12
Secondary: 62C25 , 62F10 , 62J07

Keywords: Empirical Bayes , empirical BLUP , oracle optimality , shrinkage estimation , Stein’s unbiased risk estimate (SURE) , two-way ANOVA

Rights: Copyright © 2018 Institute of Mathematical Statistics

Vol.46 • No. 4 • August 2018
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