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arXiv · q-bio/0507023

Synchronization and spindle oscillation in noisy integrate-and-fire-or-burst neurons with inhibitory coupling

Abstract

We propose another integrate-and-fire model as a single neuron model. We study a globally coupled noisy integrate-and-fire model with inhibitory interaction using the Fokker-Planck equation and the Langevin equation, and find a reentrant transition of oscillatory states. Intermittent time evolutions of neuron firing are found in strongly inhibited systems. We propose another integrate-and-fire-or-burst model including the dynamics of the low-threshold Ca$^{2+}$ current based on the new integrate-and-fire model. We study a globally coupled noisy integrate-and-fire-or-burst model with inhibitory interaction using the Fokker-Planck equation, and find bistability of the tonic mode and burst mode. Doubly periodic oscillation appears in a coupled system of two neuron assemblies, which is similar to the spindle oscillation in thalamic cells.

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BibTeXRIS

H. Sakaguchi, S. Tobiishi. 2005-07-14. Synchronization and spindle oscillation in noisy integrate-and-fire-or-burst neurons with inhibitory coupling. https://doi.org/10.1143/ptp.114.539

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