cs.AI updates on arXiv.org 07月15日 12:26
EPT-2 Technical Report
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本文介绍了EPT-2模型,作为地球物理变压器(EPT)家族的最新成员,其在预测能源相关变量方面优于前代模型,并在概率预测方面显著超越ECMWF ENS,同时降低计算成本。

arXiv:2507.09703v1 Announce Type: cross Abstract: We present EPT-2, the latest iteration in our Earth Physics Transformer (EPT) family of foundation AI models for Earth system forecasting. EPT-2 delivers substantial improvements over its predecessor, EPT-1.5, and sets a new state of the art in predicting energy-relevant variables-including 10m and 100m wind speed, 2m temperature, and surface solar radiation-across the full 0-240h forecast horizon. It consistently outperforms leading AI weather models such as Microsoft Aurora, as well as the operational numerical forecast system IFS HRES from the European Centre for Medium-Range Weather Forecasts (ECMWF). In parallel, we introduce a perturbation-based ensemble model of EPT-2 for probabilistic forecasting, called EPT-2e. Remarkably, EPT-2e significantly surpasses the ECMWF ENS mean-long considered the gold standard for medium- to longrange forecasting-while operating at a fraction of the computational cost. EPT models, as well as third-party forecasts, are accessible via the app.jua.ai platform.

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EPT-2模型 地球系统预测 概率预测 ECMWF ENS AI模型
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