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局部网络拓扑对脉冲神经网络模型功能重建的影响。

Effects of local network topology on the functional reconstruction of spiking neural network models.

作者信息

Akin Myles, Onderdonk Alexander, Guo Yixin

机构信息

Department of Mathematics, Drexel University, Chestnut Street, Philadelphia, USA.

出版信息

Appl Netw Sci. 2017;2(1):22. doi: 10.1007/s41109-017-0044-1. Epub 2017 Jul 18.

DOI:10.1007/s41109-017-0044-1
PMID:30443577
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6214275/
Abstract

The representation of information flow through structural networks, as depicted by functional networks, does not coincide exactly with the anatomical configuration of the networks. Model free correlation methods including transfer entropy (TE) and a Gaussian convolution-based correlation method (CC) detect functional networks, i.e. temporal correlations in spiking activity among neurons, and depict information flow as a graph. The influence of synaptic topology on these functional correlations is not well-understood, though nonrandom features of the resulting functional structure (e.g. small-worldedness, motifs) are believed to play a crucial role in information-processing. We apply TE and CC to simulated networks with prescribed small-world and recurrence properties to obtain functional reconstructions which we compare with the underlying synaptic structure using multiplex networks. In particular, we examine the effects of the surrounding local synaptic circuitry on functional correlations by comparing dyadic and triadic subgraphs within the structural and functional graphs in order to explain recurring patterns of information flow on the level of individual neurons. Statistical significance is demonstrated by employing randomized null models and -scores, and results are obtained for functional networks reconstructed across a range of correlation-threshold values. From these results, we observe that certain triadic structural subgraphs have strong influence over functional topology.

摘要

如功能网络所描绘的,通过结构网络的信息流表示与网络的解剖结构并不完全一致。包括转移熵(TE)和基于高斯卷积的相关方法(CC)在内的无模型相关方法可检测功能网络,即神经元之间尖峰活动的时间相关性,并将信息流描绘为一个图。尽管人们认为所得功能结构的非随机特征(如小世界特性、基序)在信息处理中起着关键作用,但突触拓扑对这些功能相关性的影响尚未得到很好的理解。我们将TE和CC应用于具有规定小世界和递归特性的模拟网络,以获得功能重建,然后使用多重网络将其与潜在的突触结构进行比较。特别是,我们通过比较结构和功能图中的二元和三元子图,研究周围局部突触电路对功能相关性的影响,以便在单个神经元水平上解释信息流的重复模式。通过使用随机零模型和得分来证明统计显著性,并获得了在一系列相关阈值下重建的功能网络的结果。从这些结果中,我们观察到某些三元结构子图对功能拓扑有很强的影响。

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