分层随机抽样中各种分配方案下种群均值估算器的有效类别

Manish Kumar, G. Vishwakarma
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引用次数: 0

摘要

本论文是Kumar和Vishwakarma发表的工作的延伸(印度国家科学院院刊,A部分:物理科学,90(5):933- 939,2020)。本文利用不同的样本分配方案,推导了几种著名的分层随机抽样总体均值估计量的均方误差(mse)的数学表达式。此外,还从理论上和经验上论证了各种分配方案对均值估计的影响。研究结果表明,与相等和比例分配方案相比,内曼分配方案提供了较小的方差(或MSE,视情况而定)。此外,在研究中考虑的各种分配方案下,建议的估计器类别比现有的估计器占主导地位。
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Efficient Classes of Estimators of Population Mean under Various Allocation Schemes in Stratified Random Sampling
The present paper is an extension of the work published in Kumar and Vishwakarma (Proceedings of theNational Academy of Sciences, India, Section A: Physical Sciences, 90(5): 933-939, 2020). In this paper,various sample allocation schemes are utilized to derive the mathematical expressions for mean square errors(MSEs) of several well-known estimators of population mean in stratified random sampling. Moreover, theeffects of various allocation schemes on the estimation of mean, are demonstrated theoretically as well asempirically. The findings of the study reveal that the Neyman allocation provides a smaller variance (or MSE,as the case may be) as compared to that of Equal and Proportional allocation schemes for the concernedestimators. Moreover, the proposed classes of estimators are dominant over the pre-existing estimators underthe various allocation schemes considered in the study.
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