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The Robustness and the Doubly-Preferential Attachment Simulation of the Consensus Connectome Dynamics of the Human Brain

机译:人脑共有连接体动力学的鲁棒性和双优先附着模拟

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摘要

Consensus Connectome Dynamics (CCD) is a remarkable phenomenon of the human connectomes (braingraphs) that was discovered by continuously decreasing the minimum confidence-parameter at the graphical interface of the Budapest Reference Connectome Server, which depicts the cerebral connections of n = 418 subjects with a frequency-parameter k: For any k = 1, 2, …, n one can view the graph of the edges that are present in at least k connectomes. If parameter k is decreased one-by-one from k = n through k = 1 then more and more edges appear in the graph, since the inclusion condition is relaxed. The surprising observation is that the appearance of the edges is far from random: it resembles a growing, complex structure. We hypothesize that this growing structure copies the axonal development of the human brain. Here we show the robustness of the CCD phenomenon: it is almost independent of the particular choice of the set of underlying connectomes. This result shows that the CCD phenomenon is most likely a biological property of the human brain and not just a property of the data sets examined. We also present a simulation that well-describes the growth of the CCD structure: in our random graph model a doubly-preferential attachment distribution is found to mimic the CCD.
机译:共识连接组动力学(CCD)是人类连接组(大脑图)的一种显着现象,它是通过在布达佩斯参考连接组服务器的图形界面上不断减小最小置信度参数而发现的,该图描述了n = 418个受试者的大脑连接频率参数k:对于任何k = 1,2,…,n都可以查看至少k个连接组中存在的边缘的图。如果参数k从k = n到k = 1一步一步地减小,则由于包含条件得到了缓和,因此越来越多的边出现在图中。令人惊讶的观察是,边缘的外观不是随机的:它类似于不断增长的复杂结构。我们假设这种增长的结构复制了人脑的轴突发育。在这里,我们展示了CCD现象的鲁棒性:它几乎独立于底层连接组集的特定选择。该结果表明,CCD现象很可能是人脑的生物学特性,而不仅仅是检查的数据集的特性。我们还提供了一个很好地描述CCD结构增长的模拟:在我们的随机图形模型中,发现了双优先附着分布来模仿CCD。

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