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首页> 外文期刊>Journal of Theoretical Biology >Effect of an exponentially decaying threshold on the firing statistics of a stochastic integrate-and-fire neuron
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Effect of an exponentially decaying threshold on the firing statistics of a stochastic integrate-and-fire neuron

机译:指数衰减阈值对随机积分并发射神经元发射统计的影响

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We study a white-noise driven integrate-and-fire (IF) neuron with a time-dependent threshold. We give analytical expressions for mean and variance of the interspike interval assuming that the modification of the threshold value is small. It is shown that the variability of the interval can become both smaller or larger than in the case of constant threshold depending on the decay rate of threshold. We also show that the relative variability is minimal for a certain finite decay rate of the threshold. Furthermore, for slow threshold decay the leaky IF model shows a minimum in the coefficient of variation whenever the firing rate of the neuron matches the decay rate of the threshold. This novel effect can be seen if the firing rate is changed by varying the noise intensity or the mean input current. (C) 2004 Elsevier Ltd. All rights reserved.
机译:我们研究具有随时间变化的阈值的白噪声驱动的积分与发射(IF)神经元。假设阈值的修改较小,我们给出了尖峰间隔的均值和方差的解析表达式。结果表明,根据阈值的衰减率,与恒定阈值的情况相比,间隔的可变性可以变得更大或更小。我们还表明,对于阈值的某个有限衰减率,相对变异性最小。此外,对于缓慢的阈值衰减,每当神经元的激发速率与阈值的衰减速率匹配时,泄漏的IF模型就会显示出最小的变化系数。如果通过改变噪声强度或平均输入电流来改变点火速率,则可以看到这种新颖的效果。 (C)2004 Elsevier Ltd.保留所有权利。

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