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Machine Learning for Molecular Simulation

delete2020-04-20
delete562
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OA
AI
N
Noe, Frank *
A
Alexandre Tkatchenko
K
Klaus-Robert Müller
C
Clementi, Cecilia
DOI:10.1146/annurev-physchem-042018-052331delete
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Abstract

Abstract

En 中文
Machine learning (ML) is transforming all areas of science. The complex and time-consuming calculations in molecular simulations are particularly suitable for anML revolution and have already been profoundly affected by the application of existing ML methods. Here we review recent ML methods for molecular simulation, with particular focus on (deep) neural networks for the prediction of quantum-mechanical energies and forces, on coarse-grained molecular dynamics, on the extraction of free energy surfaces and kinetics, and on generative network approaches to sample molecular equilibrium structures and compute thermodynamics. To explain these methods and illustrate open methodological problems, we review some important principles of molecular physics and describe how they can be incorporated into ML structures. Finally, we identify and describe a list of open challenges for the interface between ML and molecular simulation.
Keywords:
machine learning
neural networks
molecular simulation
quantum mechanics
coarse graining
kinetics
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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Annual Review of Physical Chemistry cover
Annual Review of Physical Chemistry
IF:
11.7
Papers:
1.5K
Citations:
8.9K

Organization

F
Free University of Berlin
Scholars:
3.8W
Papers: 3.2W
Citations: 51
T
Technical University of Berlin
Scholars:
1.3W
Papers: 1.1W
Citations: 18
U
university of luxembourg
Scholars:
5.2K
Papers: 4.8K
Citations: 4
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