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Slow switching in globally coupled oscillators: robustness and occurrence through delayed coupling.
1Department of Physics, Graduate School of Sciences, Kyoto University, Kyoto 606-8502, Japan. kori@ton.scphys.kyoto-u.ac.jp
Summary
Globally coupled oscillators exhibit slow switching dynamics due to heteroclinic loops. Introducing time delay robustly induces these loops, leading to collective state changes when perturbed.
Area of Science:
- Physics
- Nonlinear Dynamics
- Complex Systems
Background:
- Collective dynamics in globally coupled oscillators are crucial for understanding complex systems.
- Slow switching, a specific collective behavior, was initially observed in phase oscillator models.
- This phenomenon involves transitions between clustered states mediated by heteroclinic loops.
Purpose of the Study:
- To investigate the emergence of slow switching in a broader range of oscillator models, including those with amplitude dynamics.
- To demonstrate that heteroclinic loops arise robustly in homogeneous populations of globally coupled oscillators.
- To explore the role of time delay and perturbations in inducing and triggering slow switching.
Main Methods:
- Analysis of oscillator models with amplitude degrees of freedom.
- Mathematical investigation of heteroclinic loop formation in homogeneous populations.
- Introduction of time delay to induce heteroclinic loops and study bifurcations (transcritical, saddle-node).
- Perturbation analysis using a vector model with weak noise and symmetry-breaking forces.
Main Results:
- Slow switching dynamics are not limited to phase oscillators but can occur in models with amplitude dynamics.
- Heteroclinic loops are shown to form inevitably and persist robustly in globally coupled oscillator populations.
- Time-delayed coupling readily induces heteroclinic loops, characterized by specific bifurcation types.
- Weak perturbations, such as noise, can trigger slow switching in systems exhibiting heteroclinic loops.
Conclusions:
- Heteroclinic loops provide a general mechanism for slow switching in globally coupled oscillators.
- Time delay is a key factor in robustly generating these loops, even in systems tending towards synchrony.
- The study expands the understanding of collective dynamics in coupled oscillator systems and their sensitivity to perturbations.