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Distributed Nonlocal Feedback Delays May Destabilize Fronts in Neural Fields Distributed Transmission Delays Do Not

机译:分布式非本地反馈延迟可能会使神经场中的前沿不稳定分布式传输延迟不会

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摘要

The spread of activity in neural populations is a well-known phenomenon. To understand the propagation speed and the stability of stationary fronts in neural populations, the present work considers a neural field model that involves intracortical and cortico-cortical synaptic interactions. This includes distributions of axonal transmission speeds and nonlocal feedback delays as well as general classes of synaptic interactions. The work proves the spectral stability of standing and traveling fronts subject to general transmission speeds for large classes of spatial interactions and derives conditions for the front instabilities subjected to nonlocal feedback delays. Moreover, it turns out that the uniqueness of the stationary traveling fronts guarantees its exponential stability for vanishing feedback delay. Numerical simulations complement the analytical findings.
机译:活动在神经群体中的传播是众所周知的现象。为了了解神经群体中固定前沿的传播速度和稳定性,本工作考虑了涉及皮层内和皮层-皮质突触相互作用的神经场模型。这包括轴突传输速度和非局部反馈延迟的分布以及突触相互作用的一般类别。这项工作证明了在大范围的空间相互作用中,受一般传输速度影响的站立和行驶前沿的光谱稳定性,并推论了受到非局部反馈延迟影响的前沿不稳定性的条件。此外,事实证明,静止行进前缘的独特性保证了其指数稳定性,从而消除了反馈延迟。数值模拟补充了分析结果。

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