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A local-global principle for nonequilibrium steady states. | LitMetric

A local-global principle for nonequilibrium steady states.

Proc Natl Acad Sci U S A

School of Computer Science, Georgia Institute of Technology, Atlanta, GA 30332.

Published: October 2024

AI Article Synopsis

  • - The concept of thermal equilibrium favors lower energy configurations, aiding in the understanding of self-organization in stable systems, but lacks this framework in nonequilibrium situations.
  • - Recent studies indicate that a property known as "rattling" can predict outcomes in some nonequilibrium systems, suggesting a new principle for understanding their self-organization.
  • - The authors develop a theory linking rattling to Markov processes, revealing that it applies more broadly than previously thought, and can describe both equilibrium and nonequilibrium systems through local-global relationships.

Article Abstract

The global steady state of a system in thermal equilibrium exponentially favors configurations with lesser energy. This principle is a powerful explanation of self-organization because energy is a local property of configurations. For nonequilibrium systems, there is no such property for which an analogous principle holds, hence no common explanation of the diverse forms of self-organization they exhibit. However, a flurry of recent empirical results has shown that a local property of configurations called "rattling" predicts the steady states of some nonequilibrium systems, leading to claims of a far-reaching principle of nonequilibrium self-organization. But for which nonequilibrium systems is rattling accurate, and why? We develop a theory of rattling in terms of Markov processes that gives simple and precise answers to these key questions. Our results show that rattling predicts a broader class of nonequilibrium steady states than has been claimed and for different reasons than have been suggested. Its predictions hold to an extent determined by the relative variance of, and correlation between, the local and global "parts" of a steady state. We show how these quantities characterize the local-global relationships of various random walks on random graphs, spin-glass dynamics, and models of animal collective behavior. Surprisingly, we find that the core idea of rattling is so general as to apply to equilibrium and nonequilibrium systems alike.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11494328PMC
http://dx.doi.org/10.1073/pnas.2411731121DOI Listing

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