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Main Authors: Gelman, Samuel D., Cohen, Guy
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2405.04877
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author Gelman, Samuel D.
Cohen, Guy
author_facet Gelman, Samuel D.
Cohen, Guy
contents Entropy is a central concept in physics, but can be challenging to calculate even for systems that are easily simulated. This is exacerbated out of equilibrium, where generally little is known about the distribution characterizing simulated configurations. However, modern machine learning algorithms can estimate the probability density characterizing an ensemble of images, given nothing more than sample images assumed to be drawn from this distribution. We show that by mapping system configurations to images, such approaches can be adapted to the efficient estimation of the density, and therefore the entropy, from simulated or experimental data. We then use this idea to obtain entropic limit cycles in a kinetic Ising model driven by an oscillating magnetic field. Despite being a global probe, we demonstrate that this allows us to identify and characterize stochastic dynamics at parameters near the dynamical phase transition.
format Preprint
id arxiv_https___arxiv_org_abs_2405_04877
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nonequilibrium entropy from density estimation
Gelman, Samuel D.
Cohen, Guy
Statistical Mechanics
Entropy is a central concept in physics, but can be challenging to calculate even for systems that are easily simulated. This is exacerbated out of equilibrium, where generally little is known about the distribution characterizing simulated configurations. However, modern machine learning algorithms can estimate the probability density characterizing an ensemble of images, given nothing more than sample images assumed to be drawn from this distribution. We show that by mapping system configurations to images, such approaches can be adapted to the efficient estimation of the density, and therefore the entropy, from simulated or experimental data. We then use this idea to obtain entropic limit cycles in a kinetic Ising model driven by an oscillating magnetic field. Despite being a global probe, we demonstrate that this allows us to identify and characterize stochastic dynamics at parameters near the dynamical phase transition.
title Nonequilibrium entropy from density estimation
topic Statistical Mechanics
url https://arxiv.org/abs/2405.04877