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    Steady-state equilibrium and nonequilibrium noisy network dynamics

    Pik-Yin Lai (黎璧賢)*

    • *Contact author: pylai@phy.ncu.edu.tw

    Phys. Rev. E 113, 064148 – Published 23 June, 2026

    DOI: https://doi.org/10.1103/xt9k-bn1z

    Abstract

    The fluctuating dynamics of a network about its stable, noise-free steady state are theoretically investigated. Various causes of nonequilibrium dynamics are identified in terms of the properties and symmetry of the network connections and the noise covariance matrices. Several equivalent conditions are derived for the dynamics of the noisy network at equilibrium. In particular, nonequilibrium steady state (NESS) dynamics are analyzed in terms of the steady-state probability current and the drift velocity relative to the effective potential surface. Conventional physical Brownian dynamics for overdamped fluctuating dynamics is analyzed from the perspective of the linearized fluctuating noisy network dynamics. Connection with the network reconstruction from time-series data is discussed. It is demonstrated that the overdamped Brownian dynamics in the physical system is a special case of the general noisy directed network in a NESS. Furthermore, a general fluctuation-dissipation relation is derived for the general nonequilibrium noisy network dynamics. These theoretical results are verified by numerical simulations.

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