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Doubly Robust Inference With Nonprobability Survey Samples

机译:对非可行性调查样本的双重强大推断

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摘要

We establish a general framework for statistical inferences with nonprobability survey samples when relevant auxiliary information is available from a probability survey sample. We develop a rigorous procedure for estimating the propensity scores for units in the nonprobability sample, and construct doubly robust estimators for the finite population mean. Variance estimation is discussed under the proposed framework. Results from simulation studies show the robustness and the efficiency of our proposed estimators as compared to existing methods. The proposed method is used to analyze a nonprobability survey sample collected by the Pew Research Center with auxiliary information from the Behavioral Risk Factor Surveillance System and the Current Population Survey. Our results illustrate a general approach to inference with nonprobability samples and highlight the importance and usefulness of auxiliary information from probability survey samples. for this article are available online.
机译:当概率调查样本可获得相关辅助信息时,我们建立了与非可行性调查样本的统计推论的一般框架。我们开发了一个严格的程序,用于估算非可变样品中单位的倾向分数,并为有限群体构建双重稳健估计。在提议的框架下讨论了方差估计。仿真研究结果表明,与现有方法相比,我们所提出的估计的稳健性和效率。所提出的方法用于分析PEW研究中心收集的非可移植性调查样本,具有来自行为风险因素监测系统和当前人口调查的辅助信息。我们的结果说明了推断不可能性样本的一般方法,并突出概率调查样本的辅助信息的重要性和有用性。本文可在线获取。

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