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Integrate-and-fire neurons with threshold noise: A tractable model of how interspike interval correlations affect neuronal signal transmission

机译:具有阈值噪声的“整合并发射”神经元:棘突间隔相关性如何影响神经元信号传递的易处理模型

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摘要

Many neurons exhibit interval correlations in the absence of input signals. We study the influence of these intrinsic interval correlations of model neurons on their signal transmission properties. For this purpose, we employ two simple firing models, one of which generates a renewal process, while the other leads to a nonrenewal process with negative interval correlations. Different methods to solve for spectral statistics in the presence of a weak stimulus (spike train power spectra, cross spectra, and coherence functions) are presented, and their range of validity is discussed. Using these analytical results, we explore a lower bound on the mutual information rate between output spike train and input stimulus as a function of the system’s parameters. We demonstrate that negative correlations in the baseline activity can lead to enhanced information transfer of a weak signal by means of noise shaping of the background noise spectrum. We also show that an enhancement is not compulsory—for a stimulus with power exclusively at high frequencies, the renewal model can transfer more information than the nonrenewal model does. We discuss the application of our analytical results to other problems in neuroscience. Our results are also relevant to the general problem of how a signal affects the power spectrum of a nonlinear stochastic system.
机译:在没有输入信号的情况下,许多神经元表现出区间相关性。我们研究了模型神经元的这些固有间隔相关性对其信号传输特性的影响。为此,我们采用了两个简单的触发模型,其中一个生成更新过程,而另一个导致具有负间隔相关性的非更新过程。提出了在弱刺激下(尖峰火车功率谱,交叉谱和相干函数)解决谱统计问题的不同方法,并讨论了它们的有效范围。利用这些分析结果,我们根据系统参数探索了输出尖峰序列和输入激励之间的互信息率的下限。我们证明了基线活动中的负相关可以通过背景噪声频谱的噪声整形来增强弱信号的信息传递。我们还表明,增强不是强制性的-对于仅在高频下具有功率的刺激,更新模型可以比非更新模型传递更多的信息。我们讨论了将分析结果应用于神经科学中其他问题的方法。我们的结果也与信号如何影响非线性随机系统的功率谱的一般问题有关。

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