Performance-based sub-selection of CMIP6 models for impact assessments in Europe

T. Palmer, C. McSweeney, B. Booth, Matthew D. K. Priestley, P. Davini, L. Brunner, L. Borchert, M. Menary
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引用次数: 6

Abstract

Abstract. We have created a performance-based assessment of CMIP6 models for Europe that can be used to inform the sub-selection of models for this region. Our assessment covers criteria indicative of the ability of individual models to capture a range of large-scale processes that are important for the representation of present-day European climate. We use this study to provide examples of how this performance-based assessment may be applied to a multi-model ensemble of CMIP6 models to (a) filter the ensemble for performance against these climatological and processed-based criteria and (b) create a smaller subset of models based on performance that also maintains model diversity and the filtered projection range as far as possible. Filtering by excluding the least-realistic models leads to higher-sensitivity models remaining in the ensemble as an emergent consequence of the assessment. This results in both the 25th percentile and the median of the projected temperature range being shifted towards greater warming for the filtered set of models. We also weight the unfiltered ensemble against global trends. In contrast, this shifts the distribution towards less warming. This highlights a tension for regional model selection in terms of selection based on regional climate processes versus the global mean warming trend.
CMIP6模型在欧洲影响评估中基于性能的子选择
摘要我们为欧洲CMIP6模型创建了一个基于绩效的评估,可用于为该地区的模型子选择提供信息。我们的评估涵盖了指示单个模型捕捉一系列大规模过程的能力的标准,这些过程对当今欧洲气候的代表性很重要。我们利用这项研究提供了如何将这种基于性能的评估应用于CMIP6模型的多模型集合的例子,以(a)根据这些基于气候和处理的标准对集合的性能进行过滤,以及(b)根据性能创建较小的模型子集,同时尽可能保持模型多样性和过滤后的投影范围。通过排除最不真实的模型进行过滤会导致更高灵敏度的模型保留在集合中,作为评估的紧急结果。这导致预测温度范围的第25个百分位数和中值都朝着过滤后的一组模型的更大变暖方向移动。我们还将未经过滤的组合与全球趋势进行权衡。相比之下,这使分布向变暖程度较低的方向转变。这突出了基于区域气候过程与全球平均变暖趋势的区域模式选择的紧张关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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