Quantifying dissipation in flocking dynamics: When tracking internal states matters

Fuente: arXiv
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Main Authors: Proesmans, Karel, Falasco, Gianmaria, Mohite, Atul Tanaji, Esposito, Massimiliano, Fodor, Étienne
Format: Preprint
Published: 2025
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author Proesmans, Karel
Falasco, Gianmaria
Mohite, Atul Tanaji
Esposito, Massimiliano
Fodor, Étienne
author_facet Proesmans, Karel
Falasco, Gianmaria
Mohite, Atul Tanaji
Esposito, Massimiliano
Fodor, Étienne
contents Aligning self-propelled particles undergo a nonequilibrium flocking transition from apolar to polar phases as their interactions become stronger. We propose a thermodynamically consistent lattice model, in which the internal state of the particles biases their diffusion, to capture such a transition. Changes of internal states and jumps between lattice sites obey local detailed balance with respect to the same interaction energy. We unveil a crossover between two regimes: for weak interactions, the dissipation is maximal, and partial inference (namely, based on discarding the dynamics of internal states) leads to a severe underestimation; for strong interactions, the dissipation is reduced, and partial inference captures most of the dissipation. Finally, we reveal that the macroscopic dissipation, evaluated at the hydrodynamic level, coincides with the microscopic dissipation upon coarse-graining. We argue that this correspondence stems from a generic mapping of active lattice models with local detailed balance into a specific class of non-ideal reaction-diffusion systems.
format Preprint
id arxiv_https___arxiv_org_abs_2505_13113
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantifying dissipation in flocking dynamics: When tracking internal states matters
Proesmans, Karel
Falasco, Gianmaria
Mohite, Atul Tanaji
Esposito, Massimiliano
Fodor, Étienne
Statistical Mechanics
Aligning self-propelled particles undergo a nonequilibrium flocking transition from apolar to polar phases as their interactions become stronger. We propose a thermodynamically consistent lattice model, in which the internal state of the particles biases their diffusion, to capture such a transition. Changes of internal states and jumps between lattice sites obey local detailed balance with respect to the same interaction energy. We unveil a crossover between two regimes: for weak interactions, the dissipation is maximal, and partial inference (namely, based on discarding the dynamics of internal states) leads to a severe underestimation; for strong interactions, the dissipation is reduced, and partial inference captures most of the dissipation. Finally, we reveal that the macroscopic dissipation, evaluated at the hydrodynamic level, coincides with the microscopic dissipation upon coarse-graining. We argue that this correspondence stems from a generic mapping of active lattice models with local detailed balance into a specific class of non-ideal reaction-diffusion systems.
title Quantifying dissipation in flocking dynamics: When tracking internal states matters
topic Statistical Mechanics
url https://arxiv.org/abs/2505.13113