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Graph analysis of the human connectome: Promise, progress, and pitfalls

机译:人体连接图的图形分析:承诺,进展和陷阱

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摘要

The human brain is a complex, interconnected network par excellence. Accurate and informative mapping of this human connectome has become a central goal of neuroscience. At the heart of this endeavor is the notion that brain connectivity can be abstracted to a graph of nodes, representing neural elements (e.g., neurons, brain regions), linked by edges, representing some measure of structural, functional or causal interaction between nodes. Such a representation brings connectomic data into the realm of graph theory, affording a rich repertoire of mathematical tools and concepts that can be used to characterize diverse anatomical and dynamical properties of brain networks. Although this approach has tremendous potential - and has seen rapid uptake in the neuroimaging community - it also has a number of pitfalls and unresolved challenges which can, if not approached with due caution, undermine the explanatory potential of the endeavor. We review these pitfalls, the prevailing solutions to overcome them, and the challenges at the forefront of the field.
机译:人脑是一个复杂的,相互联系的网络。准确,信息丰富的人体连接图谱绘制已成为神经科学的中心目标。这项工作的核心思想是,大脑的连接性可以抽象为节点图,代表节点之间的结构,功能或因果相互作用的某种量度,这些图由边缘链接,代表神经元(例如,神经元,大脑区域)。这种表示法将连接组学数据带入图论领域,提供了丰富的数学工具和概念,可用于表征大脑网络的各种解剖学和动力学特性。尽管这种方法具有巨大的潜力-并且已经在神经影像学界迅速被采用-但它也存在许多陷阱和未解决的挑战,如果不采取适当的谨慎态度,可能会破坏这项努力的解释潜力。我们回顾了这些陷阱,克服这些陷阱的现行解决方案以及该领域的前沿挑战。

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