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Improved Exponential Type Estimators of the Mean of a Sensitive Variable in the Presence of Nonsensitive Auxiliary Information

机译:存在非敏感辅助信息时敏感变量均值的改进指数型估计

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摘要

Recently, Koyuncu etal. (2013) proposed an exponential type estimator to improve the efficiency of mean estimator based on randomized response technique. In this article, we propose an improved exponential type estimator which is more efficient than the Koyuncu etal. (2013) estimator, which in turn was shown to be more efficient than the usual mean estimator, ratio estimator, regression estimator, and the Gupta etal. (2012) estimator. Under simple random sampling without replacement (SRSWOR) scheme, bias and mean square error expressions for the proposed estimator are obtained up to first order of approximation and comparisons are made with the Koyuncu etal. (2013) estimator. A simulation study is used to observe the performances of these two estimators. Theoretical findings are also supported by a numerical example with real data. We also show how to, extend the proposed estimator to the case when more than one auxiliary variable is available.
机译:最近,Koyuncu等人。 (2013年)提出了一种基于随机响应技术的指数型估计器,以提高均值估计器的效率。在本文中,我们提出了一种改进的指数类型估计器,该估计器比Koyuncu等人更有效。 (2013)估计器,这反过来比通常的均值估计器,比率估计器,回归估计器和Gupta等人更有效。 (2012)估算者。在简单的无替换随机抽样(SRSWOR)方案下,对于拟议的估计量,可以得到偏差和均方误差表达式,直到近似一阶为止,然后与Koyuncu等进行了比较。 (2013年)估算者。仿真研究用于观察这两个估计量的性能。具有实际数据的数值示例也支持理论发现。我们还展示了如何在多个辅助变量可用的情况下将拟议的估算器扩展到这种情况。

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