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graphcast-operational model trained by Google DeepMind, a ¼°, 13-level version of GraphCast trained on the ERA5 dataset and fine-tuned on the HERS initial conditions dataset (both available from WeatherBench 2). The checkpoints here were fine-tuned on the HRES initial conditions dataset, with a batch size of 8 and the following training curriculum (cosine schedule, warmup 512 samples or 64 batches):| Length | Batches | Peak LR | End LR |
|---|---|---|---|
| 1 step (6h) | 25,000 | 2.5e-5 | 1.25e-7 |
| 2 steps (12h) | 2,500 | 2.5e-6 | 7.5e-8 |
| 4 steps (24h) | 2,500 | 2.5e-6 | 7.5e-8 |
| 8 steps (48h) | 1,250 | 2.5e-6 | 7.5e-8 |
| 12 steps (72h) | 1,250 | 2.5e-6 | 7.5e-8 |
params/ar{1,12} directories, the former containing the checkpoints after the end of the first training stage and the latter containing the final checkpoints. The models trained are:graphcast-operational checkpoint, the checkpoints retain the CC-BY-ND-SA 4.0 license.