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Spatial Hierarchical Modeling of Precipitation Extremes From a Regional Climate Model

机译:基于区域气候模型的极端降水的空间分层建模

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The goal of this work is to characterize the extreme precipitation simulated by a regional climate model (RCM) over its spatial domain. For this purpose, we develop a Bayesian hierarchical model. Since extreme value analyses typically only use data considered to be extreme, the hierarchical approach is particularly useful as it sensibly pools the limited data from neighboring locations. We simultaneously model the data from both a control and future run of the RCM which allows for easy inference about projected change. Additionally, this hierarchical model is the first to spatially model the shape parameter which characterizes the nature of the distribution’s tail. Our hierarchical model shows that for the winter season, the RCM indicates a general increase in 100-year precipitation return levels for most of the study region. For the summer season, the RCM surprisingly indicates a significant decrease in the 100-year precipitation return level.
机译:这项工作的目的是表征区域气候模型(RCM)在其空间范围内模拟的极端降水。为此,我们开发了贝叶斯分层模型。由于极值分析通常仅使用被认为是极值的数据,因此分层方法特别有用,因为它明智地从相邻位置汇总了有限的数据。我们同时对来自RCM的控制和未来运行的数据进行建模,从而可以轻松推断出预计的变更。此外,这种分层模型是第一个对形状参数进行空间建模的模型,该形状参数表征了分布尾巴的性质。我们的分层模型显示,在冬季,RCM表示大多数研究区域的100年降水返回水平普遍增加。对于夏季,RCM令人惊讶地表明100年降水返回水平显着下降。

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