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Representations in neural network based empirical potentials

delete2017-07-12
delete48
PRE
AI
E
Ekin D. Cubuk *
B
Brad D. Malone
B
Berk Onat
A
Amos Waterland
E
Efthimios Kaxiras
DOI:10.1063/1.4990503delete
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摘要

摘要

En 中文
Many structural and mechanical properties of crystals, glasses, and biological macromolecules can be modeled from the local interactions between atoms. These interactions ultimately derive from the quantum nature of electrons, which can be prohibitively expensive to simulate. Machine learning has the potential to revolutionize materials modeling due to its ability to efficiently approximate complex functions. For example, neural networks can be trained to reproduce results of density functional theory calculations at a much lower cost. However, how neural networks reach their predictions is not well understood, which has led to them being used as a black box tool. This lack of understanding is not desirable especially for applications of neural networks in scientific inquiry. We argue that machine learning models trained on physical systems can be used as more than just approximations since they had to learn physical concepts in order to reproduce the labels they were trained on. We use dimensionality reduction techniques to study in detail the representation of silicon atoms at different stages in a neural network, which provides insight into how a neural network learns to model atomic interactions. Published by AIP Publishing.
Keyword:
AB-INITIO
MOLECULAR-DYNAMICS
SILICON
RELAXATION
MECHANISM
CLUSTERS
METALS
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期刊

Journal of Chemical Physics 封面图
Journal of Chemical Physics
IF:
3.1
论文数:
7.2W
被引数:
23.2W

机构

H
Harvard University
学者数:
26.5W
论文数: 22.0W
被引数: 28.7W
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