作者
Athina Tzovara, Micah M Murray, Gijs Plomp, Michael H Herzog, Christoph M Michel, Marzia De Lucia
发表日期
2012/6/30
期刊
Pattern Recognition
卷号
45
期号
6
页码范围
2109-2122
出版商
Pergamon
简介
Neuroimaging studies typically compare experimental conditions using average brain responses, thereby overlooking the stimulus-related information conveyed by distributed spatio-temporal patterns of single-trial responses. Here, we take advantage of this rich information at a single-trial level to decode stimulus-related signals in two event-related potential (ERP) studies. Our method models the statistical distribution of the voltage topographies with a Gaussian Mixture Model (GMM), which reduces the dataset to a number of representative voltage topographies. The degree of presence of these topographies across trials at specific latencies is then used to classify experimental conditions. We tested the algorithm using a cross-validation procedure in two independent EEG datasets. In the first ERP study, we classified left- versus right-hemifield checkerboard stimuli for upper and lower visual hemifields. In a second …
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