Physics > Chemical Physics
[Submitted on 25 Aug 2023 (v1), last revised 3 Oct 2023 (this version, v2)]
Title:Physics-inspired Equivariant Descriptors of Non-bonded Interactions
View PDFAbstract:One essential ingredient in many machine learning (ML) based methods for atomistic modeling of materials and molecules is the use of locality. While allowing better system-size scaling, this systematically neglects long-range (LR) effects, such as electrostatics or dispersion interaction. We present an extension of the long distance equivariant (LODE) framework that can handle diverse LR interactions in a consistent way, and seamlessly integrates with preexisting methods by building new sets of atom centered features. We provide a direct physical interpretation of these using the multipole expansion, which allows for simpler and more efficient implementations. The framework is applied to simple toy systems as proof of concept, and a heterogeneous set of molecular dimers to push the method to its limits. By generalizing LODE to arbitrary asymptotic behaviors, we provide a coherent approach to treat arbitrary two- and many-body non-bonded interactions in the data-driven modeling of matter.
Submission history
From: Michele Ceriotti [view email][v1] Fri, 25 Aug 2023 07:04:16 UTC (3,069 KB)
[v2] Tue, 3 Oct 2023 18:18:23 UTC (2,718 KB)
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