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首页> 外文期刊>International journal of applied earth observation and geoinformation >Bayesian hierarchical ANOVA of regional climate-change projections from NARCCAP phase II
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Bayesian hierarchical ANOVA of regional climate-change projections from NARCCAP phase II

机译:NARCCAP第二阶段对区域气候变化预测的贝叶斯分层ANOVA

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摘要

We consider current (1971-2000) and future (2041-2070) average seasonal surface temperature fields from two regional climate models (RCMs) driven by the same atmosphere-ocean general circulation model (GCM) in the North American Regional Climate Change Assessment Program (NARCCAP) Phase II experiment. We analyze the difference between future and current temperature fields for each RCM and include the factor of season, the factor of RCM, and their interaction in a two-way ANOVA model. Noticing that classical ANOVA approaches do not account for spatial dependence, we assume that the main effects and interactions are spatial processes that follow the Spatial Random Effects (SRE) model. This enables us to model the spatial variability through fixed spatial basis functions, and the computations associated with an ANOVA of high-resolution RCM outputs can be carried out without having to resort to approximations. We call the resulting model a spatial two-way ANOVA model. We implement it in a Bayesian framework, and we investigate the variability of climate-change projections over seasons, RCMs, and their interactions. We find that projected temperatures in North America are credibly higher, that the associated warming effects differ in spatial areas and in seasons, and that they are of much larger magnitude than the variability between RCMs.
机译:我们在北美区域气候变化评估计划中考虑了由相同的大气-海洋总循环模型(GCM)驱动的两个区域气候模型(RCM)的当前(1971-2000)和未来(2041-2070)平均季节表面温度场(NARCCAP)第二阶段实验。我们分析了每个RCM的未来温度场和当前温度场之间的差异,并在双向ANOVA模型中包括季节因子,RCM因子及其相互作用。注意到经典ANOVA方法不能解决空间依赖性,我们假设主要影响和相互作用是遵循空间随机影响(SRE)模型的空间过程。这使我们能够通过固定的空间基函数对空间变异性进行建模,并且可以执行与高分辨率RCM输出的ANOVA相关的计算,而不必求助于近似值。我们称结果模型为空间双向ANOVA模型。我们在贝叶斯框架中实施该方法,并研究季节,RCM及其相互作用之间气候变化预测的变化。我们发现,北美的预计温度确实更高,相关的变暖效应在空间区域和季节上都不同,并且其幅度远大于RCM之间的差异。

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