Vibrational Stabilization of Cluster Synchronization in Oscillator Networks
arXiv:2509.17111 · doi:10.1109/OJCSYS.2023.3331195
Abstract
Cluster synchronization is of great importance for the normal functioning of numerous technological and natural systems. Deviations from normal cluster synchronization patterns are closely associated with various malfunctions, such as neurological disorders in the brain. Therefore, it is crucial to restore normal system functions by stabilizing the appropriate cluster synchronization patterns. Most existing studies focus on designing controllers based on state measurements to achieve system stabilization. However, in many real-world scenarios, measuring system states in real time, such as neuronal activity in the brain, poses significant challenges, rendering the stabilization of such systems difficult. To overcome this challenge, in this paper, we employ an open-loop control strategy, vibrational control, which does not require any state measurements. We establish some sufficient conditions under which vibrational inputs stabilize cluster synchronization. Further, we provide a tractable approach to design vibrational control. Finally, numerical experiments are conducted to demonstrate our theoretical findings.
14 pages, 6 figures
References in corpus (10)
- Symmetries, Cluster Synchronization, and Isolated Desynchronization in Complex Networks
- Graph partitions and cluster synchronization in networks of oscillators
- Stable Chimeras and Independently Synchronizable Clusters
- Stability Conditions for Cluster Synchronization in Networks of Heterogeneous Kuramoto Oscillators
- Functional Control of Oscillator Networks
- Exploiting nodes symmetries to control synchronization and consensus patterns in multiagent systems
- A Framework to Control Functional Connectivity in the Human Brain
- Mediated Remote Synchronization of Kuramoto-Sakaguchi Oscillators: the Number of Mediators Matters
- Analyzing states beyond full synchronization on hypergraphs requires methods beyond projected networks
- Network and Phase Symmetries Reveal That Amplitude Dynamics Stabilize Decoupled Oscillator Clusters