首页> 外文期刊>Proceedings of the National Academy of Sciences, India, Section A. Physical Sciences >Generalized Classes of Regression-Cum-Ratio Estimators of Population Mean in Stratified Random Sampling
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Generalized Classes of Regression-Cum-Ratio Estimators of Population Mean in Stratified Random Sampling

机译:广义的类Regression-Cum-Ratio估计总体均值的分层随机抽样

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In this paper, classes of separate and combined regression-cum-ratio estimators have been proposed for estimating the finite population mean in stratified random sampling. The expressions for biases and mean square errors (MSEs) of the proposed classes have been derived to the first order of approximation. It has also been verified that the proposed classes of estimators, at their optimum conditions, are equivalent to the separate regression estimator. The proposed classes of estimators have been compared with the other existing estimators using MSE criterion, and the conditions under which the proposed classes perform better have been obtained. Numerical illustrations are given in support of theoretical findings. Relevance of the work The estimation theory is relevant to various interdisciplinary areas of research including economics, clinical trials, population studies, engineering, agriculture, etc. Also, the problem of estimation of mean is of huge importance in research, for instance, the estimation of: average agricultural production, average life span of persons in a region, mean concentration of dissolved minerals in water, and much more. For the estimation of mean, several design-based approaches are being widely used, for instance, simple random sampling, stratified random sampling, two-phase sampling, etc. If the population under study is homogeneous, then the simple random sampling design is used at the estimation stage. However, in various practical situations, the research study is based on the heterogeneous population, and in that case the stratified random sampling procedure is preferable over the simple random sampling. Considering the above fact, an attempt has been made in this paper to develop the classes of generalized estimators for the mean of the variable under study using stratified random sampling.
机译:在这篇文章中,类的分离和结合regression-cum-ratio估计已经提出了估算有限的人口意味着在分层随机抽样。偏差和均方误差的表达式(为了)提议的类派生的一阶近似。验证,提出了类的估计,在最优条件下,相当于单独的回归估计量。提出了类的估计相比与其他现有的评估人员使用MSE准则和条件提出类表现得更好获得的。理论研究结果的支持。估计理论与各种相关工作跨学科的研究领域包括人口经济学、临床试验、研究,工程、农业等。意思是估计的巨大重要性例如,研究的估计:平均农业生产,平均寿命的人在一个地区,平均浓度溶解的矿物质的水,和更多。估计的意思是,一些设计方法被广泛使用,例如,简单随机抽样、分层随机两阶段抽样,抽样等。人口正在研究是均匀的,那么简单随机抽样设计时使用评估阶段。情况下,研究基于异构的人口,在这种情况下分层随机抽样程序比简单随机抽样。考虑到上述事实,企图本文开发的类广义的均值估计使用分层随机变量下的研究抽样。

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