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Distribution Effect on the Efficiency of Some Classes of Population Variance Estimators Using Information of an Auxiliary Variable Under Simple Random Sampling

机译:在简单随机采样下使用辅助变量信息的分布对某些类别级别估算器的效率

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In many sampling situations, researchers come across variety of data. These data are largely affected by the parent distribution. There are characteristics which some data share based on the parent distribution. These characteristics define their distribution as well as their behavior. The use of auxiliary variable in estimating a study variable has been on the increase. Auxiliary variable has been used in estimating population means as well as variances. The variance is very sensitive to distribution. Thus, estimating the variance using auxiliary variable might lead to some unexpected results. Hence the need to check the effect of the distribution of the performances of some selected classes of variance estimators. Twelve estimators were selected for comparison. Eight distributions were considered using simulation study. The selected distributions are: Normal, Chi-square, Uniform, Gamma, Exponential, Poisson, Geometric and Binomial. A population size of 330 was used while sample size of 30 was considered using simple random sample without replacement. The estimators were compared using Bias, and Mean Square Error. The performances of the estimators vary in some distributions. The gamma and exponential distributions showed wide variability. The performances of the estimators based on Bias is the same as that based on Mean Square Error. The Mean Square Errors were ranked. The best estimator is t_1 followed be t_(10) and t_(12). The results showed that the estimators are not distribution free.
机译:在许多抽样情况下,研究人员遇到了各种数据。这些数据很大程度上受到父分布的影响。基于父分布存在一些数据共享的特征。这些特性定义了它们的分布以及它们的行为。在估计研究变量时使用辅助变量一直在增加。辅助变量已用于估计人口手段以及差异。方差对分布非常敏感。因此,使用辅助变量估计方差可能导致一些意外结果。因此,需要检查一些选定类别方差估计器的性能分布的效果。选择了十二个估算器进行比较。使用模拟研究考虑了八个分布。所选的分布是:正常,Chi-Square,均匀,伽马,指数,泊松,几何和二项式。使用330的群体大小,而使用简单的随机样品,在没有替换的情况下考虑30的样品尺寸。使用偏差和均方误差进行比较估算器。估计器的性能在某些分布中变化。伽玛和指数分布显示出广泛的变化。基于偏置的估计器的性能与基于均方误差的相同。均值的平均方差排列。最佳估计器是T_1,后跟T_(10)和T_(12)。结果表明,估算器不可分发。

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