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OmniArch: Building Foundation Model For Scientific Computing

About

Foundation models have revolutionized language modeling, while whether this success is replicated in scientific computing remains unexplored. We present OmniArch, the first prototype aiming at solving multi-scale and multi-physics scientific computing problems with physical alignment. We addressed all three challenges with one unified architecture. Its pre-training stage contains a Fourier Encoder-decoder fading out the disharmony across separated dimensions and a Transformer backbone integrating quantities through temporal dynamics, and the novel PDE-Aligner performs physics-informed fine-tuning under flexible conditions. As far as we know, we first conduct 1D-2D-3D united pre-training on the PDEBench, and it sets not only new performance benchmarks for 1D, 2D, and 3D PDEs but also demonstrates exceptional adaptability to new physics via in-context and zero-shot learning approaches, which supports realistic engineering applications and foresight physics discovery.

Tianyu Chen, Haoyi Zhou, Ying Li, Hao Wang, Chonghan Gao, Rongye Shi, Shanghang Zhang, Jianxin Li• 2024

Related benchmarks

TaskDatasetResultRank
PDE solvingPDEBench 2D Shallow Water Equations
Relative L2 Error0.0014
11
PDE solvingPDEBench 1D Burgers
Relative L2 Error0.63
9
PDE solvingPDEBench 1D Advection
Relative L2 Error1.82
9
PDE solvingPDEBench 1D CFD
Relative L2 Error0.025
8
PDE solvingPDEBench 2D Incompressible Navier-Stokes
Relative L2 Error0.1494
8
PDE solvingPDEBench 3D Turbulent CFD
Relative L2 Error0.4531
8
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