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INSTRUMENTAL-VARIABLE CALIBRATION ESTIMATION IN SURVEY SAMPLING

机译:调查采样中的仪器变量校准估计

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摘要

The prediction model, which makes effective use of auxiliary information available throughout the population, is often used to derive efficient estimation in survey sampling. To protect against failure of the assumed model, asymptotic design unbiasedness is often imposed in the prediction estimator. An instrumental-variable calibration estimator can be considered to achieve the model optimality among the class of calibration estimators that is asymptotically design unbiased. In this paper, we propose a new calibration estimator that is asymptotically equivalent to the optimal instrumental-variable calibration estimator. The resulting weights are no smaller than one and can be constructed to achieve the range restrictions. The proposed method can be extended to calibration estimation under two-phase sampling. Some numerical results are presented using the data from the 1997 National Resource Inventory of the United States.
机译:有效利用整个人口中可用的辅助信息的预测模型通常用于在调查抽样中得出有效的估计。为了防止假设的模型失效,通常在预测估计器中采用渐近设计无偏性。可以考虑使用工具变量校准估计器来实现渐近无偏设计的一系列校准估计器之间的模型最优性。在本文中,我们提出了一种渐近等效于最佳工具变量校准估计器的新校准估计器。所得的权重不小于1,可以构造为达到范围限制。该方法可以扩展到两相采样下的标定估计。使用来自1997年美国国家资源清单的数据提供了一些数值结果。

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