Graph Atomic Cluster Expansion for semilocal interactions beyond equivariant message passing

Fuente: arXiv
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Main Authors: Bochkarev, Anton, Lysogorskiy, Yury, Drautz, Ralf
Format: Preprint
Published: 2023
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author Bochkarev, Anton
Lysogorskiy, Yury
Drautz, Ralf
author_facet Bochkarev, Anton
Lysogorskiy, Yury
Drautz, Ralf
contents The Atomic Cluster Expansion provides local, complete basis functions that enable efficient parametrization of many-atom interactions. We extend the Atomic Cluster Expansion to incorporate graph basis functions. This naturally leads to representations that enable the efficient description of semilocal interactions in physically and chemically transparent form. Simplification of the graph expansion by tensor decomposition results in an iterative procedure that comprises current message-passing machine learning interatomic potentials. We demonstrate the accuracy and efficiency of the graph Atomic Cluster Expansion for a number of small molecules, clusters and a general-purpose model for carbon. We further show that the graph Atomic Cluster Expansion scales linearly with number of neighbors and layer depth of the graph basis functions.
format Preprint
id arxiv_https___arxiv_org_abs_2311_16326
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Graph Atomic Cluster Expansion for semilocal interactions beyond equivariant message passing
Bochkarev, Anton
Lysogorskiy, Yury
Drautz, Ralf
Materials Science
The Atomic Cluster Expansion provides local, complete basis functions that enable efficient parametrization of many-atom interactions. We extend the Atomic Cluster Expansion to incorporate graph basis functions. This naturally leads to representations that enable the efficient description of semilocal interactions in physically and chemically transparent form. Simplification of the graph expansion by tensor decomposition results in an iterative procedure that comprises current message-passing machine learning interatomic potentials. We demonstrate the accuracy and efficiency of the graph Atomic Cluster Expansion for a number of small molecules, clusters and a general-purpose model for carbon. We further show that the graph Atomic Cluster Expansion scales linearly with number of neighbors and layer depth of the graph basis functions.
title Graph Atomic Cluster Expansion for semilocal interactions beyond equivariant message passing
topic Materials Science
url https://arxiv.org/abs/2311.16326