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Increasing the accuracy and resolution of precipitation forecasts using deep generative models

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arxiv 2203.12297 v1 pith:GTUJFPS2 submitted 2022-03-23 stat.ML cs.LGstat.AP

classification stat.MLcs.LGstat.AP
keywords forecastsmodelshigh-resolutiongenerativeglobalregionalcorrectorgandeep
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Accurately forecasting extreme rainfall is notoriously difficult, but is also ever more crucial for society as climate change increases the frequency of such extremes. Global numerical weather prediction models often fail to capture extremes, and are produced at too low a resolution to be actionable, while regional, high-resolution models are hugely expensive both in computation and labour. In this paper we explore the use of deep generative models to simultaneously correct and downscale (super-resolve) global ensemble forecasts over the Continental US. Specifically, using fine-grained radar observations as our ground truth, we train a conditional Generative Adversarial Network -- coined CorrectorGAN -- via a custom training procedure and augmented loss function, to produce ensembles of high-resolution, bias-corrected forecasts based on coarse, global precipitation forecasts in addition to other relevant meteorological fields. Our model outperforms an interpolation baseline, as well as super-resolution-only and CNN-based univariate methods, and approaches the performance of an operational regional high-resolution model across an array of established probabilistic metrics. Crucially, CorrectorGAN, once trained, produces predictions in seconds on a single machine. These results raise exciting questions about the necessity of regional models, and whether data-driven downscaling and correction methods can be transferred to data-poor regions that so far have had no access to high-resolution forecasts.

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  1. Global spatio-temporal downscaling of ERA5 precipitation through generative AI

    physics.ao-ph 2024-11 conditional novelty 6.0 of 10

    A conditional GAN downscales ERA5 precipitation from 24 km/hourly to 2 km/10-minute resolution, with realistic small-scale patterns and extremes in Germany, the US, and Australia.

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