A Review of Empirical Best Linear Unbiased Prediction For the Fay-Herriot Small-Area Model

A Review of Empirical Best Linear Unbiased Prediction For the Fay-Herriot Small-Area Model
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Fay-Herriot小区域模型经验最佳线性无偏预测综述

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发表时间:
2011
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通讯作者:
P. Lahiri
P. Lahiri
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文献类型:
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作者:
P. Lahiri

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Fay-Herriot模型是一种简单的混合回归模型,在小面积估算中发挥了重要作用。在本文中,我们首先激励使用经验最佳线性无偏预测(EBLUP)使用Fay-Herriot模型的几个特殊情况。然后,我们严格审查不同的问题,涉及估计和预测,包括方差分量估计和测量的不确定性ofEBLUP。
The Fay-Herriot model, a simple mixed regression model, has played an important role in small-area estimation. In this paper, we firstly motivate the use of empirical best linear unbiased predictors (EBLUP) using several special cases of the Fay-Herriot model. We then critically examine different issues involving estimation and prediction, including the variance component estimation andthe measure of uncertainty ofan EBLUP.