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Dynamic properties of simulated brain network models and empirical resting-state data

机译:模拟脑网络模型和经验静息状态数据的动态特性

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摘要

Brain network models (BNMs) have become a promising theoretical framework for simulating signals that are representative of whole-brain activity such as resting-state fMRI. However, it has been difficult to compare the complex brain activity obtained from simulations to empirical data. Previous studies have used simple metrics to characterize coordination between regions such as functional connectivity. We extend this by applying various different dynamic analysis tools that are currently used to understand empirical resting-state fMRI (rs-fMRI) to the simulated data. We show that certain properties correspond to the structural connectivity input that is shared between the models, and certain dynamic properties relate more to the mathematical description of the brain network model. We conclude that the dynamic properties that explicitly examine patterns of signal as a function of time rather than spatial coordination between different brain regions in the rs-fMRI signal seem to provide the largest contrasts between different BNMs and the unknown empirical dynamical system. Our results will be useful in constraining and developing more realistic simulations of whole-brain activity.
机译:脑网络模型(BNM)已成为一种有前途的理论框架,用于模拟代表全脑活动(如静止状态fMRI)的信号。但是,很难将模拟获得的复杂大脑活动与经验数据进行比较。先前的研究使用简单的指标来表征区域之间的协调,例如功能连接性。我们通过应用各种不同的动态分析工具(目前用于了解经验静息状态fMRI(rs-fMRI))对模拟数据进行扩展。我们显示某些属性对应于模型之间共享的结构连接性输入,某些动态属性更多地与大脑网络模型的数学描述有关。我们得出的结论是,根据时间函数而不是rs-fMRI信号的不同大脑区域之间的空间协调来明确检查信号模式的动态特性似乎提供了不同BNM与未知经验动力系统之间的最大对比。我们的结果将有助于约束和开发更现实的全脑活动模拟。

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