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A Multi-Scale Deep Learning Framework for Projecting Weather Extremes

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arxiv 2210.12137 v1 pith:VHCLDJUQ submitted 2022-10-21 cs.LG physics.ao-ph

classification cs.LGphysics.ao-ph
keywords climateextremesframeworkscalesweathercoarseoutputaccurately
verification ladder T0 review T1 audit T2 compute T3 formal
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Weather extremes are a major societal and economic hazard, claiming thousands of lives and causing billions of dollars in damage every year. Under climate change, their impact and intensity are expected to worsen significantly. Unfortunately, general circulation models (GCMs), which are currently the primary tool for climate projections, cannot characterize weather extremes accurately. To address this, we present a multi-resolution deep-learning framework that, firstly, corrects a GCM's biases by matching low-order and tail statistics of its output with observations at coarse scales; and secondly, increases the level of detail of the debiased GCM output by reconstructing the finer scales as a function of the coarse scales. We use the proposed framework to generate statistically realistic realizations of the climate over Western Europe from a simple GCM corrected using observational atmospheric reanalysis. We also discuss implications for probabilistic risk assessment of natural disasters in a changing climate.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. TAUDiff: Highly efficient kilometer-scale downscaling using generative diffusion models

    cs.LG 2024-12 conditional novelty 6.0 of 10

    TAUDiff combines a spatio-temporal mean model with a small correction diffusion model to downscale wind fields to about 5 km with spectral accuracy and about 4 minutes per simulated year.

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