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Score-based denoising for atomic structure identification
Physicsnpj Computational Materials

Score-based denoising for atomic structure identification

T. Hsu, B. Sadigh, et al.

Discover a groundbreaking method to eliminate thermal vibrations from atomistic simulations, enhancing crystal order visibility without losing defect-related disorder. This innovative approach, developed by Tim Hsu and colleagues at Lawrence Livermore National Laboratory, demonstrates impeccable accuracy on benchmark datasets.... show more
Abstract
We propose an effective method for removing thermal vibrations that complicate the task of analyzing complex dynamics in atomistic simulation of condensed matter. Our method iteratively subtracts thermal noises or perturbations in atomic positions using a denoising score function trained on synthetically noised but otherwise perfect crystal lattices. The resulting denoised structures clearly reveal underlying crystal order while retaining disorder associated with crystal defects. Purely geometric, agnostic to interatomic potentials, and trained without inputs from explicit simulations, our denoiser can be applied to simulation data generated from vastly different interatomic interactions. The denoiser is shown to improve existing classification methods, such as common neighbor analysis and polyhedral template matching, reaching perfect classification accuracy on a recent benchmark dataset of thermally perturbed structures up to the melting point. Demonstrated here in a wide variety of atomistic simulation contexts, the denoiser is general, robust, and readily extendable to delineate order from disorder in structurally and chemically complex materials.
Publisher
npj Computational Materials
Published On
Jul 18, 2024
Authors
Tim Hsu, Babak Sadigh, Nicolas Bertin, Cheol Woo Park, James Chapman, Vasily Bulatov, Fei Zhou
Tags
thermal vibrationsatomistic simulationscondensed matterdenoising score functiondefectsclassification methodssymmetry
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