Input signal accumulation capability of the FitzHugh-Nagumo neuron.

IF 2.7 2区 数学 Q1 MATHEMATICS, APPLIED
Chaos Pub Date : 2024-12-01 DOI:10.1063/5.0243083
A V Bukh, I A Shepelev, T E Vadivasova
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Abstract

We present numerical results on the effects of two presynaptic FitzHugh-Nagumo neurons on a postsynaptic neuron under unidirectional electrical coupling. The presynaptic neurons affect the postsynaptic neuron not simultaneously but with a certain time shift. We consider cases where the amplitudes of the presynaptic spikes can be both higher and lower than the excitation threshold level. The latter case receives the main attention in our work. We carefully examine the conditions under which the postsynaptic neuron is excited by the two asynchronous external spikes. With arbitrarily chosen parameters, the FitzHugh-Nagumo neuron is almost incapable of accumulating the energy of external signals, unlike, for example, the leaky integrate-and-fire neuron. In this case, the postsynaptic neuron only excites with a very short time delay between external impulses. However, we have discovered, for the first time, a parameter region where neuron excitation is possible even with significant time delays between presynaptic impulses with subthreshold amplitudes. We explain this effect in detail and describe the mechanism behind its occurrence. We identify the boundaries of this region in the parameter plane of time delay and coupling coefficient by varying the control parameter values of the neurons. The FitzHugh-Nagumo neuron has not previously been used as a node in spiking neural networks for training via spike-timing-dependent plasticity due to the lack of an integrate-and-fire effect. However, the detection of a certain range of parameters makes the potential application of this neuron for STDP training possible.

FitzHugh-Nagumo神经元的输入信号积累能力。
我们给出了两个突触前FitzHugh-Nagumo神经元在单向电耦合下对突触后神经元影响的数值结果。突触前神经元对突触后神经元的影响不是同时发生的,而是有一定的时移。我们考虑了突触前尖峰的振幅可以高于或低于兴奋阈值水平的情况。后一种情况在我们的工作中受到主要注意。我们仔细研究了突触后神经元被两个异步外部尖峰激发的条件。在任意选择参数的情况下,FitzHugh-Nagumo神经元几乎无法积累外部信号的能量,这与诸如泄漏的整合-激活神经元不同。在这种情况下,突触后神经元只在外部脉冲之间以很短的时间延迟兴奋。然而,我们首次发现了一个参数区域,即使在具有阈下振幅的突触前脉冲之间存在显著的时间延迟,神经元也可能被激发。我们详细解释了这种效应,并描述了其发生背后的机制。我们通过改变神经元的控制参数值,在时滞和耦合系数参数平面上确定了该区域的边界。FitzHugh-Nagumo神经元以前没有被用作尖峰神经网络的节点,通过尖峰时间依赖的可塑性进行训练,因为缺乏整合和发射效应。然而,对一定范围参数的检测使得该神经元在STDP训练中的潜在应用成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chaos
Chaos 物理-物理:数学物理
CiteScore
5.20
自引率
13.80%
发文量
448
审稿时长
2.3 months
期刊介绍: Chaos: An Interdisciplinary Journal of Nonlinear Science is a peer-reviewed journal devoted to increasing the understanding of nonlinear phenomena and describing the manifestations in a manner comprehensible to researchers from a broad spectrum of disciplines.
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