What it is
Aurora is a foundation model for the Earth system, trained on more than one million hours of diverse geophysical data. After modest fine-tuning it outperforms operational forecasting systems on air quality, ocean waves, tropical cyclone tracks, and high-resolution weather. It does so at orders of magnitude lower computational cost than the traditional numerical models it competes with.
Why it matters
A single pretrained model beating specialized operational forecasts across four distinct domains suggests the foundation-model approach that reshaped language now applies to geoscience. The collapse in compute cost matters as much as the accuracy: cheap, fast forecasts widen access to high-quality weather and climate information.
Underlined numbers link to their source. Every metric and quoted figure is listed under Sources and data below.
Filed underweather forecasting, foundation models, Earth system, climate AI, Aurora
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