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基于状态空间分析的脑电图同步性评估。

Assessment of EEG synchronization based on state-space analysis.

作者信息

Carmeli Cristian, Knyazeva Maria G, Innocenti Giorgio M, De Feo Oscar

机构信息

Laboratory of Nonlinear Systems, Swiss Federal Institute of Technology Lausanne, EPFL-IC-LANOS, Building EL E, Lausanne CH-1015 Switzerland.

出版信息

Neuroimage. 2005 Apr 1;25(2):339-54. doi: 10.1016/j.neuroimage.2004.11.049.

Abstract

Cortical computation involves the formation of cooperative neuronal assemblies characterized by synchronous oscillatory activity. A traditional method for the identification of synchronous neuronal assemblies has been the coherence analysis of EEG signals. Here, we suggest a new method called S estimator, whereby cortical synchrony is defined from the embedding dimension in a state-space. We first validated the method on clusters of chaotic coupled oscillators and compared its performance to that of other methods for assessing synchronization. Then nine adult subjects were studied with high-density EEG recordings, while they viewed in the two hemifields (hence with separate hemispheres) identical sinusoidal gratings either arranged collinearly and moving together, or orthogonally oriented and moving at 90 degrees . The estimated synchronization increased with the collinear gratings over a cluster of occipital electrodes spanning both hemispheres, whereas over temporo-parietal regions of both hemispheres, it decreased with the same stimulus and it increased with the orthogonal gratings. Separate calculations for different EEG frequencies showed that the occipital clusters involved synchronization in the beta band and the temporal clusters in the alpha band. The gamma band appeared to be insensitive to stimulus diversity. Different stimulus configurations, therefore, appear to cause a complex rearrangement of synchronous neuronal assemblies distributed over the cortex, in particular over the visual cortex.

摘要

皮层计算涉及以同步振荡活动为特征的协同神经元集合的形成。一种识别同步神经元集合的传统方法是对脑电图信号进行相干分析。在此,我们提出一种名为S估计器的新方法,通过该方法从状态空间中的嵌入维度来定义皮层同步性。我们首先在混沌耦合振荡器集群上验证了该方法,并将其性能与其他评估同步性的方法进行了比较。然后,对9名成年受试者进行了高密度脑电图记录研究,他们在两个半视野(因此是不同的半球)中观看相同的正弦光栅,这些光栅要么共线排列并一起移动,要么正交排列并以90度角移动。在跨越两个半球的枕叶电极集群上,估计的同步性随着共线光栅而增加,而在两个半球的颞顶区域,对于相同的刺激它降低,而对于正交光栅它增加。对不同脑电图频率的单独计算表明,枕叶集群涉及β波段的同步,颞叶集群涉及α波段的同步。γ波段似乎对刺激多样性不敏感。因此,不同的刺激配置似乎会导致分布在皮层上,特别是视觉皮层上的同步神经元集合发生复杂的重新排列。

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