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On Improving Ratio/Product Estimator by Ratio/Product-cum-Mean-per-Unit Estimator Targeting More Efficient Use of Auxiliary Information

机译:以比率/产品暨平均每单位估计量为目标的比率/产品估计量的改进,以更有效地利用辅助信息

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To achieve a more efficient use of auxiliary information we propose single-parameter ratio/product-cum-mean-per-unit estimators for a finite population mean in a simple random sample without replacement when the magnitude of the correlation coefficient is not very high (less than or equal to 0.7). The first order large sample approximation to the bias and the mean square error of our proposed estimators are obtained. We use simulation to compare our estimators with the well-known sample mean, ratio, and product estimators, as well as the classical linear regression estimator for efficient use of auxiliary information. The results are conforming to our motivating aim behind our proposition.
机译:为了更有效地利用辅助信息,我们提出了一个简单的随机样本中的有限总体均值的单参数比率/乘积暨平均每单位估计量,而当相关系数的幅度不是很高时(小于或等于0.7)。获得了我们提出的估计量的偏差的一阶大样本近似值和均方误差。我们使用模拟将我们的估计量与众所周知的样本均值,比率和乘积估计量以及经典的线性回归估计量进行比较,以有效利用辅助信息。结果符合我们主张背后的激励目标。

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