Manifold learning in atomistic simulations: a conceptual review

Author:

Rydzewski JakubORCID,Chen MingORCID,Valsson OmarORCID

Abstract

Abstract Analyzing large volumes of high-dimensional data requires dimensionality reduction: finding meaningful low-dimensional structures hidden in their high-dimensional observations. Such practice is needed in atomistic simulations of complex systems where even thousands of degrees of freedom are sampled. An abundance of such data makes gaining insight into a specific physical problem strenuous. Our primary aim in this review is to focus on unsupervised machine learning methods that can be used on simulation data to find a low-dimensional manifold providing a collective and informative characterization of the studied process. Such manifolds can be used for sampling long-timescale processes and free-energy estimation. We describe methods that can work on datasets from standard and enhanced sampling atomistic simulations. Unlike recent reviews on manifold learning for atomistic simulations, we consider only methods that construct low-dimensional manifolds based on Markov transition probabilities between high-dimensional samples. We discuss these techniques from a conceptual point of view, including their underlying theoretical frameworks and possible limitations.

Funder

North Texas Startup Funding

National Science Center in Poland

Ministry of Science and Higher Education in Poland

Purdue Startup Funding

Polish Science Foundation

Publisher

IOP Publishing

Subject

Artificial Intelligence,Human-Computer Interaction,Software

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