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Erosion of synchronization: Coupling heterogeneity and network structure

  • Per Sebastian Skardal
  • , Dane Taylor
  • , Jie Sun
  • , Alex Arenas
  • Trinity College Hartford
  • Universidad Rovira i Virgili
  • Clarkson University

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

We study the dynamics of network-coupled phase oscillators in the presence of coupling frustration. It was recently demonstrated that in heterogeneous network topologies, the presence of coupling frustration causes perfect phase synchronization to become unattainable even in the limit of infinite coupling strength. Here, we consider the important case of heterogeneous coupling functions and extend previous results by deriving analytical predictions for the total erosion of synchronization. Our analytical results are given in terms of basic quantities related to the network structure and coupling frustration. In addition to fully heterogeneous coupling, where each individual interaction is allowed to be distinct, we also consider partially heterogeneous coupling and homogeneous coupling in which the coupling functions are either unique to each oscillator or identical for all network interactions, respectively. We demonstrate the validity of our theory with numerical simulations of multiple network models, and highlight the interesting effects that various coupling choices and network models have on the total erosion of synchronization. Finally, we consider some special network structures with well-known spectral properties, which allows us to derive further analytical results.

Original languageEnglish
Pages (from-to)40-48
Number of pages9
JournalPhysica D: Nonlinear Phenomena
Volume323-324
DOIs
StatePublished - Jun 1 2016

Keywords

  • Complex networks
  • Nonlinear dynamics
  • Synchronization

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