JOURNAL ARTICLE

INCOMPLETE DATA IN GENERALIZED LINEAR MODELS WITH CONTINUOUS COVARIATES

Joseph G. BrahimSanford Weisberg

Year: 1992 Journal:   Australian Journal of Statistics Vol: 34 (3)Pages: 461-470   Publisher: Wiley

Abstract

Summary This paper proposes a method for estimating the parameters in a generalized linear model with missing covariates. The missing covariates are assumed to come from a continuous distribution, and are assumed to be missing at random. In particular, Gaussian quadrature methods are used on the E‐step of the EM algorithm, leading to an approximate EM algorithm. The parameters are then estimated using the weighted EM procedure given in Ibrahim (1990). This approximate EM procedure leads to approximate maximum likelihood estimates, whose standard errors and asymptotic properties are given. The proposed procedure is illustrated on a data set.

Keywords:
Covariate Mathematics Missing data Applied mathematics Generalized linear model Expectation–maximization algorithm Data set Statistics Gaussian Maximum likelihood Algorithm

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Citation History

Topics

Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Soil Geostatistics and Mapping
Physical Sciences →  Environmental Science →  Environmental Engineering
Bayesian Methods and Mixture Models
Physical Sciences →  Computer Science →  Artificial Intelligence

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