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首页> 外文期刊>Journal of Computational Neuroscience >Synchronization dynamics of two coupled neural oscillators receiving shared and unshared noisy stimuli
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Synchronization dynamics of two coupled neural oscillators receiving shared and unshared noisy stimuli

机译:两个共享的和非共享的噪声刺激的耦合神经振荡器的同步动力学

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The response of neurons to external stimuli greatly depends on the intrinsic dynamics of the network. Here, the intrinsic dynamics are modeled as coupling and the external input is modeled as shared and unshared noise. We assume the neurons are repetitively firing action potentials (i.e., neural oscillators), are weakly and identically coupled, and the external noise is weak. Shared noise can induce bistability between the synchronous and anti-phase states even though the anti-phase state is the only stable state in the absence of noise. We study the Fokker-Planck equation of the system and perform an asymptotic reduction po. The ρ_0 solution is more computationally efficient than both the Monte Carlo simulations and the 2D Fokker-Planck solver, and agrees remarkably well with the full system with weak noise and weak coupling. With moderate noise and coupling, ρ_0 is still qualitatively correct despite the small noise and coupling assumption in the asymptotic reduction. Our phase model accurately predicts the behavior of a realistic synaptically coupled Morris-Lecar system.
机译:神经元对外部刺激的反应在很大程度上取决于网络的内在动力。在此,将固有动力学建模为耦合,将外部输入建模为共享和非共享噪声。我们假设神经元具有重复触发动作电位(即神经振荡器)的能力,并且耦合程度相同且微弱,并且外部噪声很弱。即使反相状态是在没有噪声的情况下唯一的稳定状态,共享噪声也会在同步状态和反相状态之间引发双稳态。我们研究系统的Fokker-Planck方程,并执行渐近约简po。 ρ_0解比Monte Carlo模拟和2D Fokker-Planck解算器都具有更高的计算效率,并且与噪声和耦合弱的整个系统非常吻合。在具有适度的噪声和耦合的情况下,尽管渐近减小中的噪声和耦合假设较小,但ρ_0在质量上仍然正确。我们的相位模型可以准确地预测现实的突触耦合Morris-Lecar系统的行为。

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