两阶段抽样下数据缺失情况下有限总体均值的预测估计

IF 1 Q3 Mathematics
Lovleen Kumar Grover, Anchal Sharma
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引用次数: 0

摘要

摘要本文研究了在两阶段抽样方案中,在研究变量缺失且第一辅助变量总体均值未知的情况下,用预测方法估计研究变量使用两个辅助变量的有限总体均值的问题。使用这种预测方法提出了四类这样的估计器。偏差和均方误差的表达式一直推导到一阶近似。本文得到了所提估计类中所涉及的常数的最优值,从而得到了所提估计类的均方误差最小。与回归型估计器(在单相和双相抽样方案下)以及它们之间的经验和图形比较,已用于评估所建议类别对不同选择的无响应单元的性能。使用5个真实数据集和3个服从正态分布的模拟数据集来评估所提出的类的性能。数值结果证实了在相对效率百分比方面,所提出的估计类优于传统回归型估计类的理论结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predictive Estimation of Finite Population Mean in Case of Missing Data Under Two-phase Sampling
Abstract The present paper deals with the problem of estimation of finite population mean of study variable using two auxiliary variables in two-phase sampling scheme using predictive approach in case of missing values of the study variable and unknown population mean of first auxiliary variable. Four classes of such estimators have been proposed using this predictive approach. The expressions of bias and mean square errors are derived up to first order of approximation. The optimal values of the constants involved in the proposed classes of estimators have been obtained and thus minimum mean square errors of the proposed classes are obtained in this study. The empirical and graphical comparisons with regression type estimators (under single phase and double phase sampling scheme) and also among themselves have been made for evaluating the performance of the proposed classes for different choices of non-responding units. Five real data sets and three simulated data sets following normal distribution have been used to evaluate the performance of the proposed classes. Numerical findings confirm the theoretical results obtained regarding superiority of proposed classes of estimators over the conventional regression type estimators in terms of percent relative efficiencies.
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来源期刊
CiteScore
2.30
自引率
0.00%
发文量
13
审稿时长
13 weeks
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