Advancing molecular simulation with equivariant interatomic potentials

Nature Reviews Physics(2023)

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摘要
Deep learning has the potential to accelerate atomistic simulations, but existing models suffer from a lack of robustness, sample efficiency, and accuracy. Simon Batzner, Albert Musaelian, and Boris Kozinsky outline how exploiting the symmetry of Euclidean space offers a new way to address these challenges.
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molecular simulation,equivariant interatomic potentials
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