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Generalized ratio-type and ratio-exponential-type estimators for population mean under modified Horvitz-Thompson estimator in adaptive cluster sampling

机译:自适应簇抽样中改进的Horvitz-Thompson估计量下总体均值的广义比率类型和比率指数类型估计

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摘要

In the present article, we propose the generalized ratio-type and generalized ratio-exponential-type estimators for population mean in adaptive cluster sampling (ACS) under modified Horvitz-Thompson estimator. The proposed estimators utilize the auxiliary information in combination of conventional measures (coefficient of skewness, coefficient of variation, correlation coefficient, covariance, coefficient of kurtosis) and robust measures (tri-mean, Hodges-Lehmann, mid-range) to increase the efficiency of the estimators. Properties of the proposed estimators are discussed using the first order of approximation. The simulation study is conducted to evaluate the performances of the estimators. The results reveal that the proposed estimators are more efficient than competing estimators for population mean in ACS under both modified Hansen-Hurwitz and Horvitz-Thompson estimators.
机译:在本文中,我们提出了经过改进的Horvitz-Thompson估计量下自适应聚类抽样(ACS)中总体均值的广义比率类型和广义比率指数类型的估计量。拟议的估算器结合常规信息(偏度系数,变异系数,相关系数,协方差,峰度系数)和鲁棒性度量(三均值,Hodges-Lehmann,中间范围)结合使用辅助信息来提高效率估计量使用一阶逼近来讨论所提出的估计量的性质。进行仿真研究以评估估计器的性能。结果表明,在改良的Hansen-Hurwitz和Horvitz-Thompson估计量下,拟议的估计量比ACS中总体均值的竞争估计量更有效。

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