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Residual Corrective Diffusion Modeling for Km-scale Atmospheric Downscaling

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arxiv 2309.15214 v4 pith:SZHXABKA submitted 2023-09-24 cs.LG physics.ao-ph

classification cs.LGphysics.ao-ph
keywords corrdiffglobalmodelweatherdatadiffusionkm-scaleresolution
verification ladder T0 review T1 audit T2 compute T3 formal
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The state of the art for physical hazard prediction from weather and climate requires expensive km-scale numerical simulations driven by coarser resolution global inputs. Here, a generative diffusion architecture is explored for downscaling such global inputs to km-scale, as a cost-effective machine learning alternative. The model is trained to predict 2km data from a regional weather model over Taiwan, conditioned on a 25km global reanalysis. To address the large resolution ratio, different physics involved at different scales and prediction of channels beyond those in the input data, we employ a two-step approach where a UNet predicts the mean and a corrector diffusion (CorrDiff) model predicts the residual. CorrDiff exhibits encouraging skill in bulk MAE and CRPS scores. The predicted spectra and distributions from CorrDiff faithfully recover important power law relationships in the target data. Case studies of coherent weather phenomena show that CorrDiff can help sharpen wind and temperature gradients that co-locate with intense rainfall in cold front, and can help intensify typhoons and synthesize rain band structures. Calibration of model uncertainty remains challenging. The prospect of unifying methods like CorrDiff with coarser resolution global weather models implies a potential for global-to-regional multi-scale machine learning simulation.

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Cited by 3 Pith papers

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  3. How Hyper-Datafication Impacts the Sustainability Costs in Frontier AI

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    Hyper-datafication in frontier AI increases resource consumption and redistributes environmental burdens, labor risks, and representational harms toward the Global South, data workers, and under-represented cultures, ...

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