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A new statistical approach for the extraction of adjacency matrix from effective connectivity networks

机译:从有效连通性网络中提取邻接矩阵的新统计方法

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摘要

Graph theory is a powerful mathematical tool recently introduced in neuroscience field for quantitatively describing the main properties of investigated connectivity networks. Despite the technical advancements provided in the last few years, further investigations are needed for overcoming actual limitations in the field. In fact, the absence of a common procedure currently applied for the extraction of the adjacency matrix from a connectivity pattern has been leading to low consistency and reliability of ghaph indexes among the investigated population. In this paper we proposed a new approach for adjacency matrix extraction based on a statistical threshold as valid alternative to empirical approaches, extensively used in Neuroscience field (i.e. fixing the edge density). In particular we performed a simulation study for investigating the effects of the two different extraction approaches on the topological properties of the investigated networks. In particular, the comparison was performed on two different datasets, one composed by uncorrelated random signals (null-model) and the other one by signals acquired on a mannequin head used as a phantom (EEG null-model). The results highlighted the importance to use a statistical threshold for the adjacency matrix extraction in order to describe the real existing topological properties of the investigated networks. The use of an empirical threshold led to an erroneous definition of small-world properties for the considered connectivity patterns.
机译:图论是神经科学领域最近引入的一种强大的数学工具,用于定量描述所研究的连通性网络的主要特性。尽管最近几年提供了技术上的进步,但为了克服该领域的实际限制,仍需要进行进一步的研究。实际上,由于缺乏当前用于从连通性模式中提取邻接矩阵的通用程序,导致了被调查人群中ghaph指数的一致性和可靠性较低。在本文中,我们提出了一种基于统计阈值的邻接矩阵提取新方法,可以作为经验方法的有效替代方法,在神经科学领域得到了广泛使用(即固定边缘密度)。特别是,我们进行了模拟研究,以研究两种不同提取方法对所研究网络的拓扑特性的影响。特别是,比较是在两个不同的数据集上进行的,一个数据集由不相关的随机信号(空模型)组成,另一个数据集由在用作模型的人体模型头上获取的信号(EEG零模型)组成。结果强调了使用统计阈值进行邻接矩阵提取的重要性,以便描述所研究网络的实际现有拓扑特性。使用经验阈值会导致对所考虑的连通性模式的小世界属性的错误定义。

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