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Quantitative evaluation of linear and nonlinear methods characterizing interdependencies between brain signals

机译:线性和非线性方法定量表征大脑信号之间的相互依赖性

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摘要

Brain functional connectivity can be characterized by the temporal evolution of correlation between signals recorded from spatially-distributed regions. It is aimed at explaining how different brain areas interact within networks involved during normal (as in cognitive tasks) or pathological (as in epilepsy) situations. Numerous techniques were introduced for assessing this connectivity. Recently, some efforts were made to compare methods performances but mainly qualitatively and for a special application. In this paper, we go further and propose a comprehensive comparison of different classes of methods (linear and nonlinear regressions, phase synchronization (PS), and generalized synchronization (GS)) based on various simulation models. For this purpose, quantitative criteria are used: in addition to mean square error (MSE) under null hypothesis (independence between two signals) and mean variance (MV) computed over all values of coupling degree in each model, we introduce a new criterion for comparing performances. Results show that the performances of the compared methods are highly depending on the hypothesis regarding the underlying model for the generation of the signals. Moreover, none of them outperforms the others in all cases and the performance hierarchy is model-dependent.
机译:脑功能连通性可以通过从空间分布区域记录的信号之间的相关性的时间演变来表征。它旨在解释在正常(如认知任务)或病理(如癫痫)情况下,所涉及的网络中不同的大脑区域如何相互作用。引入了许多技术来评估这种连通性。最近,人们进行了一些努力来比较方法的性能,但主要是定性的,并且用于特殊应用。在本文中,我们将进一步研究,并基于各种仿真模型,对不同类的方法(线性和非线性回归,相位同步(PS)和广义同步(GS))进行全面比较。为此,使用了定量标准:除了在零假设(两个信号之间的独立性)下的均方误差(MSE)和在每个模型的耦合度的所有值上计算出的均方差(MV)之外,我们还引入了新的标准比较表现。结果表明,所比较方法的性能在很大程度上取决于有关信号生成基础模型的假设。此外,它们在所有情况下都不能胜过其他方法,并且性能层次取决于模型。

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