JOURNAL ARTICLE

Generalized linear models with ordinally‐observed covariates

Timothy R. Johnson

Year: 2006 Journal:   British Journal of Mathematical and Statistical Psychology Vol: 59 (2)Pages: 275-300   Publisher: Wiley

Abstract

An ordinally‐observed variable is a variable that is only partially observed through an ordinal surrogate. Although statistical models for ordinally‐observed response variables are well known, relatively little attention has been given to the problem of ordinally‐observed regressors. In this paper I show that if surrogates to ordinally‐observed covariates are used as regressors in a generalized linear model then the resulting measurement error in the covariates can compromise the consistency of point estimators and standard errors for the effects of fully‐observed regressors. To properly account for this measurement error when making inferences concerning the fully‐observed regressors, I propose a general modelling framework for generalized linear models with ordinally‐observed covariates. I discuss issues of model specification, identification, and estimation, and illustrate these with examples.

Keywords:
Covariate Estimator Econometrics Consistency (knowledge bases) Variable (mathematics) Identification (biology) Omitted-variable bias Computer science Linear model Point (geometry) Statistics Mathematics Ecology

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7
Cited By
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FWCI (Field Weighted Citation Impact)
61
Refs
0.21
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Citation History

Topics

Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Advanced Statistical Methods and Models
Physical Sciences →  Mathematics →  Statistics and Probability
Bayesian Modeling and Causal Inference
Physical Sciences →  Computer Science →  Artificial Intelligence

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