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Combining quasi and empirical likelihoods in generalized linear models with missing responses

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  • Liu, Tianqing
  • Yuan, Xiaohui

Abstract

By only specifying the conditional mean and variance functions of the response variable given covariates, the quasi-likelihood can produce valid semiparametric inference for regression parameter in generalized linear models (GLMs). However, in many studies, auxiliary information is available as moment restrictions of the marginal distribution of the response variable and covariates. We propose the combined quasi and empirical likelihood (CQEL) to incorporate such auxiliary information to improve the efficiency of parameter estimation of the quasi-likelihood in GLMs with missing responses. We show that, when assuming responses are missing at random (MAR), the CQEL estimator achieves better efficiency than the maximum quasi-likelihood (MQL) estimator due to utilization of the auxiliary information. When there is no auxiliary information, we show that the CQEL estimator of the mean response is more efficient than the existing imputation estimators. Based on the asymptotic property of the CQEL estimator, we also develop Wilks’ type tests and corresponding confidence regions for the regression parameter and mean response. The merits of the CQEL are further illustrated through simulation studies.

Suggested Citation

  • Liu, Tianqing & Yuan, Xiaohui, 2012. "Combining quasi and empirical likelihoods in generalized linear models with missing responses," Journal of Multivariate Analysis, Elsevier, vol. 111(C), pages 39-58.
  • Handle: RePEc:eee:jmvana:v:111:y:2012:i:c:p:39-58
    DOI: 10.1016/j.jmva.2012.05.008
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    References listed on IDEAS

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    1. Ridder, Geert & Moffitt, Robert, 2007. "The Econometrics of Data Combination," Handbook of Econometrics, in: J.J. Heckman & E.E. Leamer (ed.), Handbook of Econometrics, edition 1, volume 6, chapter 75, Elsevier.
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    3. Sanjay Chaudhuri & Mark S. Handcock & Michael S. Rendall, 2008. "Generalized linear models incorporating population level information: an empirical‐likelihood‐based approach," Journal of the Royal Statistical Society Series B, Royal Statistical Society, vol. 70(2), pages 311-328, April.
    4. Qi-Hua Wang, 2004. "Likelihood-based imputation inference for mean functionals in the presence of missing responses," Annals of the Institute of Statistical Mathematics, Springer;The Institute of Statistical Mathematics, vol. 56(3), pages 403-414, September.
    5. Qihua Wang & Pengjie Dai, 2008. "Semiparametric model-based inference in the presence of missing responses," Biometrika, Biometrika Trust, vol. 95(3), pages 721-734.
    6. Yuichi Kitamura & Gautam Tripathi & Hyungtaik Ahn, 2004. "Empirical Likelihood-Based Inference in Conditional Moment Restriction Models," Econometrica, Econometric Society, vol. 72(6), pages 1667-1714, November.
    7. Guido W. Imbens & Tony Lancaster, 1994. "Combining Micro and Macro Data in Microeconometric Models," Review of Economic Studies, Oxford University Press, vol. 61(4), pages 655-680.
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    Cited by:

    1. Tianqing Liu & Xiaohui Yuan, 2020. "Empirical likelihood-based weighted rank regression with missing covariates," Statistical Papers, Springer, vol. 61(2), pages 697-725, April.

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