Instrumental variable based variable selection for generalized linear models with endogenous covariates |
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Authors: | Jiting Huang |
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Affiliation: | College of Mathematics and Statistics, Hechi University, Guangxi Yizhou, China |
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Abstract: | We study the variable selection problem for a class of generalized linear models with endogenous covariates. Based on the instrumental variable adjustment technology and the smooth-threshold estimating equation (SEE) method, we propose an instrumental variable based variable selection procedure. The proposed variable selection method can attenuate the effect of endogeneity in covariates, and is easy for application in practice. Some theoretical results are also derived such as the consistency of the proposed variable selection procedure and the convergence rate of the resulting estimator. Further, some simulation studies and a real data analysis are conducted to evaluate the performance of the proposed method, and simulation results show that the proposed method is workable. |
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Keywords: | Endogenous covariate Generalized linear model Instrumental variable Variable selection |
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