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Inhibition of rhythmic neural spiking by noise: the occurrence of a minimum in activity with increasing noise

机译:噪声抑制节律性神经突增:随着噪声的增加,活动量最小

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The effects of noise on neuronal dynamical systems are of much current interest. Here, we investigate noise-induced changes in the rhythmic firing activity of single Hodgkin-Huxley neurons. With additive input current, there is, in the absence of noise, a critical mean value μ=μ_c above which sustained periodic firing occurs. With initial conditions as resting values, for a range of values of the mean μ near the critical value, we have found that the firing rate is greatly reduced by noise, even of quite small amplitudes. Furthermore, the firing rate may undergo a pronounced minimum as the noise increases. This behavior has the opposite character to stochastic resonance and coherence resonance. We found that these phenomena occurred even when the initial conditions were chosen randomly or when the noise was switched on at a random time, indicating the robustness of the results. We also examined the effects of conductance-based noise on Hodgkin-Huxley neurons and obtained similar results, leading to the conclusion that the phenomena occur across a wide range of neuronal dynamical systems. Further, these phenomena will occur in diverse applications where a stable limit cycle coexists with a stable focus.
机译:噪声对神经元动力系统的影响是当前引起广泛关注的问题。在这里,我们调查了单个霍奇金-赫克斯利神经元的节奏激发活动中的噪声诱导的变化。在添加输入电流的情况下,在没有噪声的情况下,存在一个临界平均值μ=μ_c,在该临界平均值之上,会出现持续的周期性点火。在初始条件为静止值的情况下,对于接近临界值的平均μ值范围,我们发现,即使幅度很小,噪声也会大大降低点火速度。此外,随着噪声的增加,点火速率可能会经历明显的最小值。这种行为具有与随机共振和相干共振相反的特征。我们发现,即使随机选择初始条件或在随机时间打开噪声,也会出现这些现象,表明结果的可靠性。我们还检查了基于电导的噪声对霍奇金-赫克斯利(Hodgkin-Huxley)神经元的影响,并获得了相似的结果,从而得出结论,该现象发生在广泛的神经元动力学系统中。此外,这些现象将在稳定的极限循环与稳定的焦点并存的各种应用中发生。

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