4.7 Article

Enhanced signal response in globally coupled networks of bistable oscillators: Effects of mean field density and signal shape

Journal

PHYSICAL REVIEW E
Volume 107, Issue 6, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevE.107.064208

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This paper studies the effect of mean field density (MFD) on the dynamics of globally coupled bistable oscillators subjected to a weak periodic signal. The oscillators demonstrate MFD-enhanced signal amplification as MFD increases, with a maximum amplification occurring at a moderate level of MFD. The MFD-enhanced response depends on signal intensity and can efficiently amplify weak signals in practical situations with large network sizes.
This paper studies a set of globally coupled bistable oscillators, all subjected to the same weak periodic signal and identical coupling. The effect of mean field density (MFD) on global dynamics is analyzed. The oscillators switch from intra- to interwell motion as MFD increases, clearly demonstrating MFD-enhanced signal amplification. A maximum amplification also occurs at a moderate level of MFD, indicating that the response exhibits a nonmonotonic sensitivity to MFD. The MFD-enhanced response depends mainly on the signal intensity but not on the signal frequency or the network topology. The analytical investigation provides a simplified model to study the mechanism underlying this resonancelike behavior. It is shown that by modifying the bistability nature of the potential energy, the mean field density can promote well-to-well oscillations and larger amplitude motions. Finally, the robustness of this phenomenon to various signal waveforms is examined. It can therefore be used alternatively to efficiently amplify weak signals in practical situations with large network sizes.

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