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Inference under pivotal sampling: Properties, variance estimation, and application to tesselation for spatial sampling

机译:关键采样下的推断:属性,方差估计和用于空间采样的Tesselation的应用

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摘要

Unequal probability sampling is commonly used for sample selection. In the context of spatial sampling, the variables of interest often present a positive spatial correlation, so that it is intuitively relevant to select spatially balanced samples. In this article, we study the properties of pivotal sampling and propose an application to tesselation for spatial sampling. We also propose a simple conservative variance estimator. We show that the proposed sampling design is spatially well balanced, with good statistical properties and is computationally very efficient.
机译:不平等概率采样通常用于样品选择。在空间采样的背景下,感兴趣的变量通常存在正空间相关性,从而直观地与选择空间平衡的样本相关。在本文中,我们研究了关键取样的性质,并提出了一种在胸膜内进行空间采样的应用。我们还提出了一个简单的保守方案估算器。我们表明,所提出的采样设计是空间平衡的,具有良好的统计特性,并且计算地非常有效。

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