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Robustness of parameter estimation procedures in multilevel models when random effects are MEP distributed

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Author Info
Nadia Solaro (University of Milan-Bicocca, Milan, Italy)
Pier Alda Ferrari (Department of Economics, Business and Statistics)

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Abstract

In this paper we examine maximum likelihood estimation procedures in multilevel models for two level nesting structures. Usually, for fixed effects and variance components estimation, level-one error terms and random effects are assumed to be normally distributed. Nevertheless, in some circumstances this assumption might not be realistic, especially as concerns random effects. Thus we assume for random effects the family of multivariate exponential power distributions (MEP); subsequently, by means of Monte Carlo simulation procedures, we study robustness of maximum likelihood estimators under normal assumption when, actually, random effects are MEP distributed.

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Publisher Info
Paper provided by Universitá degli Studi di Milano in its series UNIMI - Research Papers in Economics, Business, and Statistics with number 1013.

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Date of creation: 03 Oct 2005
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Handle: RePEc:bep:unimip:1013

Note: oai:cdlib1:unimi-1013
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Related research
Keywords: Hierarchical data; ML and REML estimation; Multilevel model; Multivariate exponential power distribution;

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