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Walrus: A Cross-Domain Foundation Model for Continuum Dynamics

About

Foundation models have transformed machine learning for language and vision, but achieving comparable impact in physical simulation remains a challenge. Data heterogeneity and unstable long-term dynamics inhibit learning from sufficiently diverse dynamics, while varying resolutions and dimensionalities challenge efficient training on modern hardware. Through empirical and theoretical analysis, we incorporate new approaches to mitigate these obstacles, including a harmonic-analysis-based stabilization method, load-balanced distributed 2D and 3D training strategies, and compute-adaptive tokenization. Using these tools, we develop Walrus, a transformer-based foundation model developed primarily for fluid-like continuum dynamics. Walrus is pretrained on nineteen diverse scenarios spanning astrophysics, geoscience, rheology, plasma physics, acoustics, and classical fluids. Experiments show that Walrus outperforms prior foundation models on both short and long term prediction horizons on downstream tasks and across the breadth of pretraining data, while ablation studies confirm the value of our contributions to forecast stability, training throughput, and transfer performance over conventional approaches. Code and weights are released for community use.

Michael McCabe, Payel Mukhopadhyay, Tanya Marwah, Bruno Regaldo-Saint Blancard, Francois Rozet, Cristiana Diaconu, Lucas Meyer, Kaze W. K. Wong, Hadi Sotoudeh, Alberto Bietti, Irina Espejo, Rio Fear, Siavash Golkar, Tom Hehir, Keiya Hirashima, Geraud Krawezik, Francois Lanusse, Rudy Morel, Ruben Ohana, Liam Parker, Mariel Pettee, Jeff Shen, Kyunghyun Cho, Miles Cranmer, Shirley Ho• 2025

Related benchmarks

TaskDatasetResultRank
Dynamics downstream taskISO
NRMSE Rollout Step 13
28
Autoregressive rollout predictionTheWell-ASM steps 21-60 T ∈ [21: 60] (test)
VRMSE0.056
20
Dynamics PredictionTBL
Rollout NRMSE (Step 1)0.49
14
Dynamics PredictionTBL dataset
NRMSE_ES (Step 1)2.44
14
One-step predictionTheWell RB 1.0 (test)
VRMSE0.0059
12
One-step predictionTheWell SF 1.0 (test)
VRMSE0.0012
12
One-step predictionTheWell TRL2D 1.0 (test)
VRMSE0.0831
12
One-step predictionAM (TheWell) 1.0 (test)
VRMSE0.0057
12
One-step predictionVI (TheWell) 1.0 (test)
VRMSE0.0295
12
One-step predictionHS (TheWell) 1.0 (test)
VRMSE5.00e-4
12
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