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Bayesian Geostatistical Design

机译:贝叶斯地统计设计

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This paper describes the use of model-based geostatistics for choosing the set of sampling locations, collectively called the design, to be used in a geostatistical analysis. Two types of design situation are considered. These are retrospective design, which concerns the addition of sampling locations to, or deletion of locations from, an existing design, and prospective design, which consists of choosing positions for a new set of sampling locations. We propose a Bayesian design criterion which focuses on the goal of efficient spatial prediction whilst allowing for the fact that model parameter values are unknown. The results show that in this situation a wide range of inter-point distances should be included in the design, and the widely used regular design is often not the best choice.
机译:本文介绍了如何使用基于模型的地统计信息来选择要在地统计分析中使用的一组采样位置(统称为“设计”)。考虑两种类型的设计情况。这些是回顾性设计,涉及将采样位置添加到现有设计或从现有设计中删除位置,以及前瞻性设计,其中包括为一组新的采样位置选择位置。我们提出一种贝叶斯设计准则,该准则着重于有效空间预测的目标,同时考虑到模型参数值未知的事实。结果表明,在这种情况下,应在设计中包括大范围的点间距离,而广泛使用的常规设计通常不是最佳选择。

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