2022
DOI: 10.48550/arxiv.2207.13019
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A Riemannian Stochastic Representation for Quantifying Model Uncertainties in Molecular Dynamics Simulations

Abstract: A Riemannian stochastic representation of model uncertainties in molecular dynamics is proposed. The approach relies on a reduced-order model, the projection basis of which is randomized on a subset of the Stiefel manifold characterized by a set of linear constraints defining, e.g., Dirichlet boundary conditions in the physical space. We first show that these constraints are, indeed, preserved through Riemannian pushforward and pullback actions to, and from, the tangent space to the manifold at any admissible … Show more

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