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同时估计人类大脑的均值内和方差内因果连接组。

Simultaneous estimation of the in-mean and in-variance causal connectomes of the human brain.

作者信息

Duggento A, Passamonti L, Guerrisi M, Toschi N

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2017 Jul;2017:4371-4374. doi: 10.1109/EMBC.2017.8037824.

Abstract

In recent years, the study of the human connectome (i.e. of statistical relationships between non spatially contiguous neurophysiological events in the human brain) has been enormously fuelled by technological advances in high-field functional magnetic resonance imaging (fMRI) as well as by coordinated world wide data-collection efforts like the Human Connectome Project (HCP). In this context, Granger Causality (GC) approaches have recently been employed to incorporate information about the directionality of the influence exerted by a brain region on another. However, while fluctuations in the Blood Oxygenation Level Dependent (BOLD) signal at rest also contain important information about the physiological processes that underlie neurovascular coupling and associations between disjoint brain regions, so far all connectivity estimation frameworks have focused on central tendencies, hence completely disregarding so-called in-variance causality (i.e. the directed influence of the volatility of one signal on the volatility of another). In this paper, we develop a framework for simultaneous estimation of both in-mean and in-variance causality in complex networks. We validate our approach using synthetic data from complex ensembles of coupled nonlinear oscillators, and successively employ HCP data to provide the very first estimate of the in-variance connectome of the human brain.

摘要

近年来,高场功能磁共振成像(fMRI)技术的进步以及像人类连接组计划(HCP)这样的全球范围协同数据收集工作,极大地推动了人类连接组的研究(即人类大脑中空间上不相邻的神经生理事件之间的统计关系)。在此背景下,格兰杰因果关系(GC)方法最近被用于纳入有关一个脑区对另一个脑区施加影响的方向性信息。然而,尽管静息状态下的血氧水平依赖(BOLD)信号波动也包含有关神经血管耦合以及不相连脑区之间关联的生理过程的重要信息,但到目前为止,所有的连接性估计框架都集中在中心趋势上,因此完全忽略了所谓的方差因果关系(即一个信号的波动性对另一个信号波动性的定向影响)。在本文中,我们开发了一个用于同时估计复杂网络中均值因果关系和方差因果关系的框架。我们使用来自耦合非线性振荡器复杂集合的合成数据验证了我们的方法,并相继使用HCP数据首次提供了人类大脑方差连接组的估计。

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