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Separating Cognitive Processes with Principal Components Analysis of EEG Time-Frequency Distributions

机译:脑电时频分布主成分分析的认知过程分离

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Measurement of EEG event-related potential (ERP) data has been most commonly undertaken in the time-domain, which can be complicated to interpret when separable activity overlaps in time. When the overlapping activity has distinct frequency characteristics, however, time-frequency (TF) signal processing techniques can be useful. The current report utilized ERP data from a cognitive task producing typical feedback-related negativity (FRN) and P300 ERP components which overlap in time. TF transforms were computed using the binomial reduced interference distribution (RID), and the resulting TF activity was then characterized using principal components analysis (PCA). Consistent with previous work, results indicate that the FRN was more related to theta activity (3-7 Hz) and P300 more to delta activity (below 3 Hz). At the same time, both time-domain measures were shown to be mixtures of TF theta and delta activity, highlighting the difficulties with overlapping activity. The TF theta and delta measures, on the other hand, were largely independent from each other, but also independently indexed the feedback stimulus parameters investigated. Results support the view that TF decomposition can greatly improve separation of overlapping EEG/ERP activity relevant to cognitive models of performance monitoring.
机译:脑电事件相关电位(ERP)数据的测量最通常是在时域进行的,当可分离的活动在时间上重叠时,可能难以解释。但是,当重叠活动具有明显的频率特性时,时频(TF)信号处理技术可能会有用。本报告利用了来自认知任务的ERP数据,该任务产生了典型的与反馈相关的负面信息(FRN)和P300 ERP组件,这些组件在时间上重叠。使用二项式减少干扰分布(RID)计算TF变换,然后使用主成分分析(PCA)表征所得的TF活性。与以前的工作一致,结果表明FRN与θ活性(3-7 Hz)更加相关,而P300与δ活性(3 Hz以下)则更相关。同时,两个时域度量均显示为TF theta和delta活动的混合,突出了活动重叠的困难。另一方面,TF theta和delta量度在很大程度上彼此独立,但也独立地索引了所研究的反馈刺激参数。结果支持这样一种观点,即TF分解可以大大改善与绩效监测认知模型相关的重叠EEG / ERP活动的分离。

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