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Reliable precipitation nowcasting using probabilistic diffusion models

delete2024-02-27
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OA
AI
C
Congyi Nai
B
Baoxiang Pan
X
Xi Chen
Q
Qiuhong Tang
倪
倪广恒 (Guangheng Ni)
Qingyun Duan 封面图
Qingyun Duan (Qingyun Duan)
B
Bo Lu
Z
Ziniu Xiao
X
Xingcai Liu *
DOI:10.1088/1748-9326/ad2891delete
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摘要

摘要

En 中文
Precipitation nowcasting is a crucial element in current weather service systems. Data-driven methods have proven highly advantageous, due to their flexibility in utilizing detailed initial hydrometeor observations, and their capability to approximate meteorological dynamics effectively given sufficient training data. However, current data-driven methods often encounter severe approximation/optimization errors, rendering their predictions and associated uncertainty estimates unreliable. Here a probabilistic diffusion model-based precipitation nowcasting methodology is introduced, overcoming the notorious blurriness and mode collapse issues in existing practices. Diffusion models learn a sequential of neural networks to reverse a pre-defined diffusion process that generates the probability distribution of future precipitation fields. The precipitation nowcasting based on diffusion model results in a 3.7% improvement in continuous ranked probability score compared to state-of-the-art generative adversarial model-based method. Critically, diffusion model significantly enhance the reliability of forecast uncertainty estimates, evidenced in a 68% gain of spread-skill ratio skill. As a result, diffusion model provides more reliable probabilistic precipitation nowcasting, showing the potential to better support weather-related decision makings.
Keyword:
probabilistic diffusion model
ensemble forecast
nowcasting

期刊

Environmental Research Letters 封面图
Environmental Research Letters
IF:
5.6
论文数:
9.5K
被引数:
5.0W

机构

U
university of chinese academy of sciences, cas
学者数:
4.1W
论文数: 3.8W
被引数: 75
I
institute of atmospheric physics, cas
学者数:
2.8K
论文数: 2.6K
被引数: 2
C
chinese academy of sciences
学者数:
56.7W
论文数: 45.0W
被引数: 704
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引用论文

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