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闪电般快速的对流展望:利用基于全球人工智能的天气模型预测严重对流环境。

Lightning-Fast Convective Outlooks: Predicting Severe Convective Environments With Global AI-Based Weather Models.

作者信息

Feldmann Monika, Beucler Tom, Gomez Milton, Martius Olivia

机构信息

Institute of Geography Oeschger Centre for Climate Change Research University of Bern Bern Switzerland.

Faculty of Geosciences and Environment Expertise Center for Climate Extremes University of Lausanne Lausanne Switzerland.

出版信息

Geophys Res Lett. 2024 Nov 28;51(22):e2024GL110960. doi: 10.1029/2024GL110960. Epub 2024 Nov 21.

Abstract

Severe convective storms are among the most dangerous weather phenomena and accurate forecasts mitigate their impacts. The recently released suite of AI-based weather models produces medium-range forecasts within seconds, with a skill similar to state-of-the-art operational forecasts for variables on single levels. However, predicting severe thunderstorm environments requires accurate combinations of dynamic and thermodynamic variables and the vertical structure of the atmosphere. Advancing the assessment of AI-models toward process-based evaluations lays the foundation for hazard-driven applications. We assess the forecast skill of the top-performing AI-models GraphCast, Pangu-Weather and FourCastNet for convective parameters at lead-times up to 10 days against reanalysis and ECMWF's operational numerical weather prediction model IFS. In a case study and seasonal analyses, we see the best performance by GraphCast and Pangu-Weather: these models match or even exceed the performance of IFS for instability and shear. This opens opportunities for fast and inexpensive predictions of severe weather environments.

摘要

强烈对流风暴是最危险的天气现象之一,准确的预报可以减轻其影响。最近发布的一套基于人工智能的天气模型能在数秒内生成中期预报,其技能水平与针对单一层面变量的最先进业务预报相当。然而,预测强烈雷暴环境需要动态和热力学变量以及大气垂直结构的精确组合。将人工智能模型的评估推进到基于过程的评估为灾害驱动型应用奠定了基础。我们针对再分析数据以及欧洲中期天气预报中心(ECMWF)的业务数值天气预报模型IFS,评估了表现最佳的人工智能模型GraphCast、盘古气象和四元预报网(FourCastNet)在提前10天的对流参数预报技能。在一个案例研究和季节分析中,我们看到GraphCast和盘古气象表现最佳:这些模型在不稳定度和切变方面的表现与IFS相当,甚至超过了IFS。这为快速且低成本的恶劣天气环境预测带来了机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/142c/11579977/79e9e412f197/GRL-51-0-g001.jpg

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