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Approximately Equivariant Networks for Imperfectly Symmetric Dynamics

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arxiv 2201.11969 v4 pith:PTA3JIE7 submitted 2022-01-28 cs.LG

classification cs.LG
keywords symmetrydataequivariantnetworksapproximatelybaselinesbiasdynamical
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Incorporating symmetry as an inductive bias into neural network architecture has led to improvements in generalization, data efficiency, and physical consistency in dynamics modeling. Methods such as CNNs or equivariant neural networks use weight tying to enforce symmetries such as shift invariance or rotational equivariance. However, despite the fact that physical laws obey many symmetries, real-world dynamical data rarely conforms to strict mathematical symmetry either due to noisy or incomplete data or to symmetry breaking features in the underlying dynamical system. We explore approximately equivariant networks which are biased towards preserving symmetry but are not strictly constrained to do so. By relaxing equivariance constraints, we find that our models can outperform both baselines with no symmetry bias and baselines with overly strict symmetry in both simulated turbulence domains and real-world multi-stream jet flow.

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Cited by 1 Pith paper

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  1. Turbulence teaches equivariance to neural networks

    physics.flu-dyn 2026-02 conditional novelty 5.0 of 10

    In turbulent channel flow, more data and more isotropic flow make neural networks learn rotational equivariance implicitly, and lower equivariance error correlates with better generalization to unseen flows.

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