Latent Spaces for Langevin Dynamics

Published: 23 Sept 2025, Last Modified: 30 Nov 2025FPI-NEURIPS2025 PosterEveryoneRevisionsBibTeXCC BY 4.0
Track: Main Track
Keywords: molecular dyanmics, statistical mechanics, langevin dynamics, Hamiltonian
TL;DR: Provide a more general set of latent spaces for coarse grain molecular dynamics.
Abstract: In the field of machine learning coarse-grained potentials in molecular dynamics, many propagators require that the effective Hamiltonian is quadratic in momentum, thus limiting the family of coarse-graining functions. In this paper, we derive a general family of coarse-graining embedding functions for which Langevin dynamics samples correctly. These equations have significant implications for molecular simulations and pave the way for Langevin dynamics on non-geometric coarse-graining representations, such as those provided by principal components of component analysis or latent embeddings of molecules obtained from neural networks.
Submission Number: 53
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