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Longitudinal Data Analysis for Discrete and Continuous Outcomes

Scott L. Zeger; Kung‐Yee Liang · Biometrics · 1986

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Longitudinal data sets are comprised of repeated observations of an outcome and a set of covariates for each of many subjects. One objective of statistical analysis is to describe the marginal expectation of the outcome variable as a function of the covariates while accounting for the correlation among the repeated observations for a given subject. This paper proposes a unifying approach to such analysis for a variety of discrete and continuous outcomes. A class of generalized estimating equations (GEEs) for the regression parameters is proposed. The equations are extensions of those used in quasi-likelihood (Wedderburn, 1974, Biometrika 61, 439-447) methods. The GEEs have solutions which are consistent and asymptotically Gaussian even when the time dependence is misspecified as we often expect. A consistent variance estimate is presented. We illustrate the use of the GEE approach with longitudinal data from a study of the effect of mothers' stress on children's morbidity.

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APA 7

Zeger, S. L. & Liang, K. (1986). Longitudinal Data Analysis for Discrete and Continuous Outcomes. https://doi.org/10.2307/2531248

MLA

Zeger, Scott L, and Kung‐Yee Liang. "Longitudinal Data Analysis for Discrete and Continuous Outcomes." 1986. https://doi.org/10.2307/2531248.

Chicago

Zeger, Scott L. and Kung‐Yee Liang. 1986. "Longitudinal Data Analysis for Discrete and Continuous Outcomes.". https://doi.org/10.2307/2531248.

Harvard

Zeger, S. L. and Liang, K. 1986, Longitudinal Data Analysis for Discrete and Continuous Outcomes, Biometrics, available at: https://doi.org/10.2307/2531248 [Accessed 10 Aug. 2026].

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Title
Longitudinal Data Analysis for Discrete and Continuous Outcomes
Author / contributors
Scott L. Zeger; Kung‐Yee Liang
Publisher
Biometrics
Publication year
1986
Language
English

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