脑电图
静息状态功能磁共振成像
大脑活动与冥想
神经科学
地方政府
心理学
同时性
动力学(音乐)
人工智能
模式识别(心理学)
计算机科学
物理
教育学
经典力学
作者
Christoph M. Michel,Thomas Koenig
出处
期刊:NeuroImage
[Elsevier BV]
日期:2017-12-02
卷期号:180 (Pt B): 577-593
被引量:1318
标识
DOI:10.1016/j.neuroimage.2017.11.062
摘要
The present review discusses a well-established method for characterizing resting-state activity of the human brain using multichannel electroencephalography (EEG). This method involves the examination of electrical microstates in the brain, which are defined as successive short time periods during which the configuration of the scalp potential field remains semi-stable, suggesting quasi-simultaneity of activity among the nodes of large-scale networks. A few prototypic microstates, which occur in a repetitive sequence across time, can be reliably identified across participants. Researchers have proposed that these microstates represent the basic building blocks of the chain of spontaneous conscious mental processes, and that their occurrence and temporal dynamics determine the quality of mentation. Several studies have further demonstrated that disturbances of mental processes associated with neurological and psychiatric conditions manifest as changes in the temporal dynamics of specific microstates. Combined EEG-fMRI studies and EEG source imaging studies have indicated that EEG microstates are closely associated with resting-state networks as identified using fMRI. The scale-free properties of the time series of EEG microstates explain why similar networks can be observed at such different time scales. The present review will provide an overview of these EEG microstates, available methods for analysis, the functional interpretations of findings regarding these microstates, and their behavioral and clinical correlates. • EEG microstates are short time periods of stable scalp potential fields. • EEG microstates are generated by a network of approximately simultaneously active sources. • EEG microstates might represent the neural correlates of the contents of consciousness. • The temporal dynamics of EEG microstates is altered in cognitive and mental diseases.
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