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Random-Effects Models for Longitudinal Data

Nan M. Laird; James H. Ware · Biometrics · 1982

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Models for the analysis of longitudinal data must recognize the relationship between serial observations on the same unit. Multivariate models with general covariance structure are often difficult to apply to highly unbalanced data, whereas two-stage random-effects models can be used easily. In two-stage models, the probability distributions for the response vectors of different individuals belong to a single family, but some random-effects parameters vary across individuals, with a distribution specified at the second stage. A general family of models is discussed, which includes both growth models and repeated-measures models as special cases. A unified approach to fitting these models, based on a combination of empirical Bayes and maximum likelihood estimation of model parameters and using the EM algorithm, is discussed. Two examples are taken from a current epidemiological study of the health effects of air pollution.

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APA 7

Laird, N. M. & Ware, J. H. (1982). Random-Effects Models for Longitudinal Data. https://doi.org/10.2307/2529876

MLA

Laird, Nan M, and James H. Ware. "Random-Effects Models for Longitudinal Data." 1982. https://doi.org/10.2307/2529876.

Chicago

Laird, Nan M. and James H. Ware. 1982. "Random-Effects Models for Longitudinal Data.". https://doi.org/10.2307/2529876.

Harvard

Laird, N. M. and Ware, J. H. 1982, Random-Effects Models for Longitudinal Data, Biometrics, available at: https://doi.org/10.2307/2529876 [Accessed 7 Aug. 2026].

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Title
Random-Effects Models for Longitudinal Data
Author / contributors
Nan M. Laird; James H. Ware
Publisher
Biometrics
Publication year
1982
Language
Italian

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