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The relationships between the identified critical nodes within DTI-based brain structural network using hub measurements and vulnerability measurement

机译:具有集线器测量和漏洞测量的基于DTI基脑结构网络中识别的关键节点之间的关系

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Network analysis of human brain connectivity based on graph theory has consistently identified sets of regions that are critically important for enabling efficient information integration and communication, especially for the understanding of cognitive functions, the discoveries of aging effects and the network change due to brain diseases. Two major approaches, hub measurement (HM) and vulnerability measurement (VM), have been proposed to detect these 'important nodes' within brain network organization. However, the relationship between the spatial localization and the number of these identified nodes found using HM and VM approaches respectively is still unknown. In this study, we aim to figure out the relationships between the identified critical nodes of brain network based on various HM and VM methods with DTI-based structural brain network. Two factors of parcellation atlases and level of scale are also considered to address the effects in the definition of these nodes. From the results, the great consistency is existed between the node identification using HM and VM approaches in the same atlases, but the divergence between different atlases and level of node scale.
机译:基于图表理论的人脑连接网络分析一直确定了一组区域,对实现有效的信息集成和通信,特别是对于认知功能的理解,衰老效应的发现和由于脑疾病而言的发现。已经提出了两种主要方法,集线器测量(HM)和漏洞测量(VM),以检测脑网络组织内的这些“重要节点”。然而,空间定位与使用HM和VM方法发现的这些所识别节点的数量之间的关系仍然未知。在这项研究中,我们的目标是基于各种HM和VM方法弄清楚基于DTI的结构脑网络的各种HM和VM方法识别脑网络的临界节点之间的关系。另外两个局部地图集和比例水平也被认为是解决这些节点的定义中的影响。从结果中,使用HM和VM方法在相同的地图集中的节点标识之间存在巨大一致性,但不同的atlase与节点级别之间的发散。

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