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Sigmoidal 突触学习在混沌 FitzHugh-Nagumo 模型中产生相互稳定。

Sigmoidal synaptic learning produces mutual stabilization in chaotic FitzHugh-Nagumo model.

机构信息

Integrated Applied Mathematics Program, Department of Mathematics and Statistics, University of New Hampshire, Durham, New Hampshire 03824, USA.

出版信息

Chaos. 2020 Jun;30(6):063108. doi: 10.1063/5.0002328.

Abstract

This paper investigates the interaction between two coupled neurons at the terminal end of a long chain of neurons. Specifically, we examine a bidirectional, two-cell FitzHugh-Nagumo neural model capable of exhibiting chaotic dynamics. Analysis of this model shows how mutual stabilization of the chaotic dynamics can occur through sigmoidal synaptic learning. Initially, this paper begins with a bifurcation analysis of an adapted version of a previously studied FitzHugh-Nagumo model that indicates regions of periodic and chaotic behaviors. Through allowing the synaptic properties to change dynamically via neural learning, it is shown how the system can evolve from chaotic to stable periodic behavior. The driving factor between this transition is representative of a stimulus coming down a long neural pathway. The result that two chaotic neurons can mutually stabilize via a synaptic learning implies that this may be a mechanism whereby neurons can transition from a disordered, chaotic state to a stable, ordered periodic state that persists. This approach shows that even at the simplest level of two terminal neurons, chaotic behavior can become stable, sustained periodic behavior. This is achieved without the need for a large network of neurons.

摘要

本文研究了长链神经元末端的两个耦合神经元之间的相互作用。具体来说,我们研究了一种能够表现出混沌动力学的双向、双细胞 FitzHugh-Nagumo 神经模型。对该模型的分析表明,通过双曲正切突触学习,混沌动力学的相互稳定是如何发生的。本文首先从之前研究的 FitzHugh-Nagumo 模型的一个自适应版本的分岔分析开始,该分析表明了周期和混沌行为的区域。通过允许突触特性通过神经学习动态变化,展示了系统如何从混沌到稳定的周期行为演变。这种转变的驱动因素代表了沿着长神经通路的刺激。两个混沌神经元通过突触学习相互稳定的结果表明,这可能是神经元从无序、混沌状态过渡到稳定、有序的持续周期状态的一种机制。这种方法表明,即使在最简单的两个末端神经元水平上,混沌行为也可以变得稳定、持续的周期性行为。这是在不需要大量神经元网络的情况下实现的。

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