Open Access
Open access
Entropy, volume 26, issue 12, pages 1050

Cascades Towards Noise-Induced Transitions on Networks Revealed Using Information Flows

Casper van Elteren 1, 2
Rick Quax 1, 2
Peter Sloot 1, 2, 3
Publication typeJournal Article
Publication date2024-12-04
Journal: Entropy
scimago Q2
SJR0.541
CiteScore4.9
Impact factor2.1
ISSN10994300
PubMed ID:  39766679
Abstract

Complex networks, from neuronal assemblies to social systems, can exhibit abrupt, system-wide transitions without external forcing. These endogenously generated “noise-induced transitions” emerge from the intricate interplay between network structure and local dynamics, yet their underlying mechanisms remain elusive. Our study unveils two critical roles that nodes play in catalyzing these transitions within dynamical networks governed by the Boltzmann–Gibbs distribution. We introduce the concept of “initiator nodes”, which absorb and propagate short-lived fluctuations, temporarily destabilizing their neighbors. This process initiates a domino effect, where the stability of a node inversely correlates with the number of destabilized neighbors required to tip it. As the system approaches a tipping point, we identify “stabilizer nodes” that encode the system’s long-term memory, ultimately reversing the domino effect and settling the network into a new stable attractor. Through targeted interventions, we demonstrate how these roles can be manipulated to either promote or inhibit systemic transitions. Our findings provide a novel framework for understanding and potentially controlling endogenously generated metastable behavior in complex networks. This approach opens new avenues for predicting and managing critical transitions in diverse fields, from neuroscience to social dynamics and beyond.

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