JOURNAL ARTICLE

Empirical likelihood for nonlinear regression models with nonignorable missing responses

Zhihuang YangNiansheng Tang

Year: 2020 Journal:   Canadian Journal of Statistics Vol: 48 (3)Pages: 386-416   Publisher: Wiley

Abstract

Abstract This article develops three empirical likelihood (EL) approaches to estimate parameters in nonlinear regression models in the presence of nonignorable missing responses. These are based on the inverse probability weighted (IPW) method, the augmented IPW (AIPW) method and the imputation technique. A logistic regression model is adopted to specify the propensity score. Maximum likelihood estimation is used to estimate parameters in the propensity score by combining the idea of importance sampling and imputing estimating equations. Under some regularity conditions, we obtain the asymptotic properties of the maximum EL estimators of these unknown parameters. Simulation studies are conducted to investigate the finite sample performance of our proposed estimation procedures. Empirical results provide evidence that the AIPW procedure exhibits better performance than the other two procedures. Data from a survey conducted in 2002 are used to illustrate the proposed estimation procedure. The Canadian Journal of Statistics 48: 386–416; 2020 © 2020 Statistical Society of Canada

Keywords:
Imputation (statistics) Statistics Estimator Missing data Logistic regression Propensity score matching Empirical likelihood Inverse probability Mathematics Econometrics Inverse probability weighting Regression analysis Regression Computer science Bayesian probability

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Citation History

Topics

Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Distribution Estimation and Applications
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Methods and Inference
Physical Sciences →  Mathematics →  Statistics and Probability

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