Exact Identity Linking Entropy Production and Mutual Information

Fuente: arXiv
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Main Authors: Cho, Doohyeong, Jeong, Hawoong
Format: Preprint
Published: 2025
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author Cho, Doohyeong
Jeong, Hawoong
author_facet Cho, Doohyeong
Jeong, Hawoong
contents We establish an exact identity for overdamped Langevin dynamics: the total entropy production rate equals four times the mutual information rate between an infinitesimal displacement and its time midpoint, plus a mean flow term. This yields a forward-only characterization of irreversibility. As a corollary, for additive bipartite systems, the chain rule directly yields a canonical nonnegative decomposition of subsystem entropy production into self and interaction components. The self term coincides with apparent entropy production, while the interaction term captures the dissipative cost of dependence and sharpens the learning rate bound. In a proof-of-concept application to red blood cell flickering, the decomposition reveals the thermodynamic structure of mechanical irreversibility. Overall, our results recast entropy production as a decomposable information-theoretic structure.
format Preprint
id arxiv_https___arxiv_org_abs_2512_24877
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exact Identity Linking Entropy Production and Mutual Information
Cho, Doohyeong
Jeong, Hawoong
Statistical Mechanics
Biological Physics
Data Analysis, Statistics and Probability
We establish an exact identity for overdamped Langevin dynamics: the total entropy production rate equals four times the mutual information rate between an infinitesimal displacement and its time midpoint, plus a mean flow term. This yields a forward-only characterization of irreversibility. As a corollary, for additive bipartite systems, the chain rule directly yields a canonical nonnegative decomposition of subsystem entropy production into self and interaction components. The self term coincides with apparent entropy production, while the interaction term captures the dissipative cost of dependence and sharpens the learning rate bound. In a proof-of-concept application to red blood cell flickering, the decomposition reveals the thermodynamic structure of mechanical irreversibility. Overall, our results recast entropy production as a decomposable information-theoretic structure.
title Exact Identity Linking Entropy Production and Mutual Information
topic Statistical Mechanics
Biological Physics
Data Analysis, Statistics and Probability
url https://arxiv.org/abs/2512.24877