论文标题

随机整合网络的动力学

Dynamics of stochastic integrate-and-fire networks

论文作者

Ocker, Gabriel Koch

论文摘要

通常通过神经种群活动的现场理论来理解感官,运动和认知功能的神经动力学。经典的神经场理论源自单个神经元的高度简化模型,而生物神经元是高度复杂的细胞。整合神经元模型平衡生物物理细节和分析性障碍性。在这里,我们为与随机尖峰发射的集成和开火神经元网络开发了统计场理论。这揭示了针对自洽的更新过程的精确映射,以及这些网络活动的新均值字段理论。平均场理论具有速率依赖性泄漏,近似于膜电压的尖峰驱动的重置。这引起了同质和兴奋性抑制性脉搏耦合网络中静态状态和活性状态之间的双重性。现场理论框架还将波动校正暴露于平均场理论。我们发现,由于尖峰重置,波动抑制了活性。然后,我们检查尖峰重置和复发性抑制在稳定网络活性中的作用。我们计算抑制性稳定的相图,并发现抑制稳定的状态发生在广泛的参数空间区域,这与各种大脑区域抑制性稳定的实验报告一致。波动缩小了抑制性稳定区域的范围,这与它们通过尖峰重置抑制活性的作用一致。

The neural dynamics generating sensory, motor, and cognitive functions are commonly understood through field theories for neural population activity. Classic neural field theories are derived from highly simplified models of individual neurons, while biological neurons are highly complex cells. Integrate-and-fire neuron models balance biophysical detail and analytical tractability. Here, we develop a statistical field theory for networks of integrate-and-fire neurons with stochastic spike emission. This reveals an exact mapping to a self-consistent renewal process and a new mean field theory for the activity in these networks. The mean field theory has a rate-dependent leak, approximating the spike-driven resets of the membrane voltage. This gives rise to bistability between quiescent and active states in homogenous and excitatory-inhibitory pulse-coupled networks. The field-theoretic framework also exposes fluctuation corrections to the mean field theory. We find that due to the spike reset, fluctuations suppress activity. We then examine the roles of spike resets and recurrent inhibition in stabilizing network activity. We calculate the phase diagram for inhibitory stabilization and find that an inhibition-stabilized regime occurs in wide regions of parameter space, consistent with experimental reports of inhibitory stabilization in diverse brain regions. Fluctuations narrow the region of inhibitory stabilization, consistent with their role in suppressing activity through spike resets.

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