Unsupervised Analysis of Event-Related Potentials (ERPs) During an Emotional Go/NoGo Task

Lecture Notes in Artificial Intelligence(2017)

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摘要
We propose a framework for an unsupervised analysis of electroencephalography (EEG) data based on possibilistic clustering, including a preliminary noise and artefact rejection. The proposed data flow identifies the existing similarities in a set of segments of EEG signals and their grouping according to relevant experimental conditions. The analysis is applied to a set of event-related potentials (ERPs) recorded during the performance of an emotional Go/NoGo task. We show that the clusterization rate of trials in two experimental conditions is able to characterize the participants. The extension of the method and its generalization is discussed.
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关键词
EEG,ERP,Possibilistic clustering,Decoding,Brain activity
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