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Using generalized doubly robust estimator to estimate average treatment effects of multiple treatments in observational studies
Authors:Chunhao Tu  Woon Yuen Koh  Shuo Jiao
Institution:1. College of Pharmacy , University of New England , 716 Stevens Avenue, Portland , ME , 04103 , USA ctu@une.edu;3. Department of Mathematical Sciences , University of New England , Biddeford , ME , 04005 , USA;4. Fred Hutchinson Cancer Research Center , Division of Public Health , Seattle , WA , 98109 , USA
Abstract:The generalized doubly robust estimator is proposed for estimating the average treatment effect (ATE) of multiple treatments based on the generalized propensity score (GPS). In medical researches where observational studies are conducted, estimations of ATEs are usually biased since the covariate distributions could be unbalanced among treatments. To overcome this problem, Imbens The role of the propensity score in estimating dose-response functions, Biometrika 87 (2000), pp. 706–710] and Feng et al. Generalized propensity score for estimating the average treatment effect of multiple treatments, Stat. Med. (2011), in press. Available at: http://onlinelibrary.wiley.com/doi/10.1002/sim.4168/abstract] proposed weighted estimators that are extensions of a ratio estimator based on GPS to estimate ATEs with multiple treatments. However, the ratio estimator always produces a larger empirical sample variance than the doubly robust estimator, which estimates an ATE between two treatments based on the estimated propensity score (PS). We conduct a simulation study to compare the performance of our proposed estimator with Imbens’ and Feng et al.’s estimators, and simulation results show that our proposed estimator outperforms their estimators in terms of bias, empirical sample variance and mean-squared error of the estimated ATEs.
Keywords:average treatment effect  doubly robust estimator  generalized propensity score  inverse probability of treatment weighted  observational study
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