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Spatial Filtering of EEG Signals to Identify Periodic Brain Activity Patterns

机译:脑电信号的空间过滤,以识别周期性的大脑活动模式

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Long-lasting periodic sensory stimulation is increasingly used in neuroscience to study, using electroencephalography (EEG), the cortical processes underlying perception in different modalities. This kind of stimulation can elicit synchronized periodic activity at the stimulation frequency in neuronal populations responding to the stimulus, referred to as a steady-state response (SSR). While the frequency analysis of EEG recordings is particularly well suited to capture this activity, it is limited by the intrinsic noisy nature of EEG signals and the low signal-to-noise ratio (SNR) of some responses. This paper compares and adapts spatial filtering methods for periodicity maximization to enhance the SNR of periodic EEG responses, a key condition to generalize their use as a research or clinical tool. This approach uncovers both temporal dynamics and spatial topographic patterns of SSRs, and is validated using EEG data from 15 healthy subjects exposed to periodic cool and warm stimuli.
机译:在神经科学中,越来越多地使用持久的周期性感觉刺激来使用脑电图(EEG)研究以不同方式感知的皮层过程。这种刺激可以在响应刺激的神经元群体中以刺激频率引发同步的周期性活动,称为稳态响应(SSR)。虽然EEG记录的频率分析特别适合捕获此活动,但它受到EEG信号的固有噪声特性和某些响应的低信噪比(SNR)的限制。本文对空间滤波方法进行了比较和调整,以实现周期性最大化,以增强周期性脑电信号响应的信噪比,这是推广将其用作研究或临床工具的关键条件。该方法揭示了SSR的时间动态和空间地形图,并使用来自15名健康受试者的EEG数据进行了验证,这些数据来自暴露于周期性冷热刺激的健康受试者。

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