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首页> 外文期刊>Journal of Neuroscience Methods >The string method of burst identification in neuronal spike trains.
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The string method of burst identification in neuronal spike trains.

机译:神经元尖峰序列中脉冲串识别的字符串方法。

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摘要

The activity state of neuronal networks can be characterized by the spatial-temporal grouping of their action potentials given a sufficiently large simultaneous recording sample. A sequence of action potentials (spike train) often has high frequency spike episodes that are generally called bursts. However, bursts are difficult to quantify and require operational definitions that reflect the type of activity and the interest of the experimenter. This paper presents a simple method for defining bursts as strings of spikes with only two parameters: a minimum number of spikes per burst and a maximum interspike interval. These two values represent a simple parameterization that is adequate for the description of temporal grouping in spike trains. Because this method has a minimal computation time, it allows implementation of burst analysis in real-time, including statistical changes in burst variables, histograms of burst types, and patterns in combinations of burst variables.
机译:在给定足够大的同时记录样本的情况下,神经元网络的活动状态可以通过其动作电位的时空分组来表征。一系列动作电位(尖峰序列)通常具有高频尖峰发作,通常称为爆发。但是,爆发难以量化,并且需要反映活动类型和实验者兴趣的操作定义。本文提出了一种简单的方法,可将突发定义为只有两个参数的突发字符串:每个突发的最小突发数量和最大突发间隔。这两个值表示一个简单的参数化,足以描述尖峰序列中的时间分组。由于此方法的计算时间最短,因此可以实时执行突发分析,包括突发变量的统计变化,突发类型的直方图以及突发变量组合中的模式。

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