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A New Mean Estimator using Auxiliary Variables for Randomized Response Models

机译:用于随机响应模型的辅助变量的新平均估计

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Randomized response models are commonly used in surveys dealing with sensitive questions such as abortion, alcoholism, sexual orientation, drug taking, annual income, tax evasion to ensure interviewee anonymity and reduce nonrespondents rates and biased responses. Starting from the pioneering work of Warner [7], many versions of RRM have been developed that can deal with quantitative responses. In this study, new mean estimator is suggested for RRM including quantitative responses. The mean square error is derived and a simulation study is performed to show the efficiency of the proposed estimator to other existing estimators in RRM.
机译:随机响应模型通常用于处理敏感问题的调查,如流产,酗酒,性取向,药物采取,年收入,避税,以确保受访者匿名,减少无应答率和偏见的反应。从华纳的开创性工作开始[7],已经制定了许多版本的RRM,可以处理定量响应。在这项研究中,建议新的平均估计器用于包括定量响应的RRM。导出均方误差并进行仿真研究以显示所提出的估计器到RRM中其他现有估计的效率。

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