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Information filtering by synchronous spikes in a neural population

机译:通过神经种群中的同步尖峰进行信息过滤

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摘要

Information about time-dependent sensory stimuli is encoded by the spike trains of neurons. Here we consider a population of uncoupled but noisy neurons (each subject to some intrinsic noise) that are driven by a common broadband signal. We ask specifically how much information is encoded in the synchronous activity of the population and how this information transfer is distributed with respect to frequency bands. In order to obtain some insight into the mechanism of information filtering effects found previously in the literature, we develop a mathematical framework to calculate the coherence of the synchronous output with the common stimulus for populations of simple neuron models. Within this frame, the synchronous activity is treated as the product of filtered versions of the spike trains of a subset of neurons. We compare our results for the simple cases of (1) a Poisson neuron with a rate modulation and (2) an LIF neuron with intrinsic white current noise and a current stimulus. For the Poisson neuron, formulas are particularly simple but show only a low-pass behavior of the coherence of synchronous activity. For the LIF model, in contrast, the coherence function of the synchronous activity shows a clear peak at high frequencies, comparable to recent experimental findings. We uncover the mechanism for this shift in the maximum of the coherence and discuss some biological implications of our findings.
机译:关于时间相关的感觉刺激的信息由神经元的尖峰序列编码。在这里,我们考虑了由共同的宽带信号驱动的一群未耦合但嘈杂的神经元(每个神经元都受到一些固有噪声)的影响。我们具体询问在人口的同步活动中编码了多少信息,以及该信息传递相对于频带如何分布。为了深入了解先前文献中发现的信息过滤效果的机制,我们开发了一个数学框架来计算简单神经元模型群体的同步输出与通用刺激的相干性。在此框架内,同步活动被视为神经元子集的尖峰序列的过滤版本的乘积。我们比较了以下简单情况的结果:(1)具有速率调制的泊松神经元和(2)具有固有白电流噪声和电流刺激的LIF神经元。对于泊松神经元,公式特别简单,但仅显示同步活动相关性的低通行为。相比之下,对于LIF模型,同步活动的相干函数在高频下显示一个清晰的峰值,与最近的实验结果相当。我们揭示了这种变化的最大一致性,并讨论了我们发现的生物学意义。

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