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首页> 外文期刊>Journal of Agricultural, Biological, and Environmental Statistics >The Use of Calibration Weighting for Variance Estimation Under Systematic Sampling: Applications to Forest Cover Assessment
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The Use of Calibration Weighting for Variance Estimation Under Systematic Sampling: Applications to Forest Cover Assessment

机译:系统采样下的校准加权对方差估算:森林覆盖评估的应用

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The purpose of this note is to propose a variance estimator under non-measurable designs that exploits the existence of an auxiliary variable well correlated with the survey variable of interest. Under non-measurable designs, the Sen–Yates–Grundy variance estimator generates a downward bias that can be reduced using a calibration weighting based on the auxiliary variable. Conditions of approximate unbiasedness for the resulting calibration estimator are given. The application to systematic sampling is considered. The proposal proves to be effective for estimating the variance of the forest cover estimator in remote sensing-based surveys, owing to the strong correlation between the reference data, available from a systematic sample, and the satellite map data, available for the whole population and hence exploited as an auxiliary variable. Supplementary materials accompanying this paper appear online.
机译:本说明的目的是提出在非可测量设计下的方差估计器,该方案估计器利用与感兴趣的调查变量相关的辅助变量良好的存在。 在非可测量的设计下,SEN-YATES-Grundy方差估计器产生向下偏置,可以使用基于辅助变量的校准加权来减少。 给出了所得校准估计器的近似无偏见的条件。 考虑了系统采样的应用。 该提案证明,由于参考数据与系统样本可获得的参考数据和卫星地图数据,可用于整个人口的卫星地图数据,估算森林覆盖估计器的差异是有效的。 因此被利用为辅助变量。 本文随附的补充材料在线出现。

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