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Very Slow EEG Fluctuations Predict the Dynamics of Stimulus Detection and Oscillation Amplitudes in Humans

机译:很慢的脑电图波动预测人类的刺激检测和振荡振幅的动力学。

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摘要

Our ability to perceive weak signals is correlated among consecutive trials and fluctuates slowly over time. Although this “streaking effect” has been known for decades, the underlying neural network phenomena have remained largely unidentified. We examined the dynamics of human behavioral performance and its correlation with infraslow (0.01–0.1 Hz) fluctuations in ongoing brain activity. Full-band electroencephalography revealed prominent infraslow fluctuations during the execution of a somatosensory detection task. Similar fluctuations were predominant also in the dynamics of behavioral performance. The subjects' ability to detect the sensory stimuli was strongly correlated with the phase, but not with the amplitude of the infraslow EEG fluctuations. These data thus reveal a direct electrophysiological correlate for the slow fluctuations in human psychophysical performance. We then examined the correlation between the phase of infraslow EEG fluctuations and the amplitude of 1–40 Hz neuronal oscillations in six frequency bands. Like the behavioral performance, the amplitudes in these frequency bands were robustly correlated with the phase of the infraslow fluctuations. These data hence suggest that the infraslow fluctuations reflect the excitability dynamics of cortical networks. We conclude that ongoing 0.01–0.1 Hz EEG fluctuations are prominent and functionally significant during execution of cognitive tasks.
机译:我们感知弱信号的能力在连续的试验中相互关联,并且随着时间的推移而缓慢波动。尽管这种“条纹效应”已为人所知数十年,但潜在的神经网络现象在很大程度上仍未被发现。我们研究了人类行为表现的动力学及其与正在进行的大脑活动中的次慢波(0.01–0.1 Hz)波动的相关性。全波段脑电图显示在执行体感检测任务期间,存在显着的次红外线缓慢波动。类似的波动也是行为表现动力学的主要因素。受试者检测感觉刺激的能力与相位密切相关,但与超低速EEG波动幅度无关。因此,这些数据揭示了人类心理生理机能缓慢波动的直接电生理相关性。然后,我们在6个频带中检查了超低速EEG波动的相位与1–40 Hz神经元振荡幅度之间的相关性。像行为表现一样,这些频带中的振幅与超慢波动的相位密切相关。因此,这些数据表明,超低波动反映了皮质网络的兴奋性动态。我们得出结论,在执行认知任务期间,持续的0.01–0.1 Hz脑电图波动很明显,并且在功能上也很重要。

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