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首页> 外文期刊>Mathematical Biosciences: An International Journal >Neuron firing in driven nonlinear integrate-and-fire models
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Neuron firing in driven nonlinear integrate-and-fire models

机译:驱动的非线性积分和发射模型中的神经元发射

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Statistical properties of neuron firing are studied in the framework of a nonlinear leaky integrate-and-fire model that is driven by a slow periodic subthreshold signal. The firing events are characterized by first passage time densities. The experimentally better accessible interspike interval density generally depends on the sojourn times in a refractory state of the neuron. This aspect is not part of the integrate-and-fire model and must be modelled additionally. For a large class of refractory dynamics, a general expression for the interspike interval density is given and further evaluated for the two cases with an instantaneous resetting (i.e. no refractory state) and a refractory state possessing a deterministic lifetime. First passage time densities and interspike interval densities following from the proposed theory compare favorably with precise numerical simulations. (c) 2006 Elsevier Inc. All rights reserved.
机译:在非线性漏积分和发射模型的框架内研究神经元发射的统计特性,该模型由缓慢的周期性亚阈值信号驱动。点火事件的特征在于第一次通过时间密度。实验上更容易达到的峰值间间隔密度通常取决于神经元难治状态的停留时间。该方面不是集成和发射模型的一部分,必须进行附加建模。对于大量的耐火动力学,给出了尖峰间间隔密度的一般表达式,并针对瞬时复位(即无耐火状态)和具有确定寿命的耐火状态的两种情况进一​​步进行了评估。根据所提出的理论,首次通过时间密度和尖峰间隔密度与精确的数值模拟相比具有优势。 (c)2006 Elsevier Inc.保留所有权利。

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