Stochastic Thermodynamics of Multiple Co-Evolving Systems—Beyond Multipartite Processes

Author:

Tasnim Farita1,Wolpert David H.2345

Affiliation:

1. Massachusetts Institute of Technology, Cambridge, MA 02139, USA

2. Santa Fe Institute, Santa Fe, NM 87501, USA

3. Complexity Science Hub, Josefstadter Straße 39, 1080 Vienna, Austria

4. Center for Bio-Social Complex Systems, Arizona State University, Tempe, AZ 85287, USA

5. International Center for Theoretical Physics, 34151 Trieste, Italy

Abstract

Many dynamical systems consist of multiple, co-evolving subsystems (i.e., they have multiple degrees of freedom). Often, the dynamics of one or more of these subsystems will not directly depend on the state of some other subsystems, resulting in a network of dependencies governing the dynamics. How does this dependency network affect the full system’s thermodynamics? Prior studies on the stochastic thermodynamics of multipartite processes have addressed this question by assuming that, in addition to the constraints of the dependency network, only one subsystem is allowed to change state at a time. However, in many real systems, such as chemical reaction networks or electronic circuits, multiple subsystems can—or must—change state together. Here, we investigate the thermodynamics of such composite processes, in which multiple subsystems are allowed to change state simultaneously. We first present new, strictly positive lower bounds on entropy production in composite processes. We then present thermodynamic uncertainty relations for information flows in composite processes. We end with strengthened speed limits for composite processes.

Funder

US NSF EAGER

Santa Fe Institute

MIT Media Lab Consortium

Publisher

MDPI AG

Subject

General Physics and Astronomy

Reference50 articles.

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3. Minimal entropy production rate of interacting systems;Wolpert;New J. Phys.,2020

4. Strengthened second law for multi-dimensional systems coupled to multiple thermodynamic reservoirs;Wolpert;Philos. Trans. R. Soc. A,2022

5. Information thermodynamics for interacting stochastic systems without bipartite structure;Chetrite;J. Stat. Mech. Theory Exp.,2019

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