Emergent synchrony in oscillator networks with adaptive arbitrary-order interactions

Fuente: arXiv
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Main Authors: Biswas, Dhrubajyoti, Banerjee, Arpan
Format: Preprint
Published: 2025
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author Biswas, Dhrubajyoti
Banerjee, Arpan
author_facet Biswas, Dhrubajyoti
Banerjee, Arpan
contents Dynamics of complex systems are often driven by interactions that extend beyond pairwise links, underscoring the need to establish a correspondence between interpretable system parameters and emergent phenomena in hypergraph-based networks. The current work formulates an adaptive Kuramoto model that incorporates hyperedges of arbitrary order and explores their effects on synchronization. By deriving the exact order parameter dynamics in the thermodynamic limit, analytical expressions governing the collective dynamics are obtained. Subsequent numerics confirm the analytical predictions, in addition to capturing qualitatively different dynamical regimes and phase transitions. Further investigations based on order parameter distributions demonstrate how fluctuations, arising due to finite system size, can influence the long-term system dynamics. These results provide important insights and can have diverse applications, such as designing optimal surgical procedures for drug-resistant epilepsy and identifying the sources of rumours in a social network.
format Preprint
id arxiv_https___arxiv_org_abs_2511_06766
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Emergent synchrony in oscillator networks with adaptive arbitrary-order interactions
Biswas, Dhrubajyoti
Banerjee, Arpan
Adaptation and Self-Organizing Systems
Dynamics of complex systems are often driven by interactions that extend beyond pairwise links, underscoring the need to establish a correspondence between interpretable system parameters and emergent phenomena in hypergraph-based networks. The current work formulates an adaptive Kuramoto model that incorporates hyperedges of arbitrary order and explores their effects on synchronization. By deriving the exact order parameter dynamics in the thermodynamic limit, analytical expressions governing the collective dynamics are obtained. Subsequent numerics confirm the analytical predictions, in addition to capturing qualitatively different dynamical regimes and phase transitions. Further investigations based on order parameter distributions demonstrate how fluctuations, arising due to finite system size, can influence the long-term system dynamics. These results provide important insights and can have diverse applications, such as designing optimal surgical procedures for drug-resistant epilepsy and identifying the sources of rumours in a social network.
title Emergent synchrony in oscillator networks with adaptive arbitrary-order interactions
topic Adaptation and Self-Organizing Systems
url https://arxiv.org/abs/2511.06766