Extraction and Classification of Visual Evoked Potentials Based on a Two-Stage Source Extraction Algorithm

In order to verify whether or not the EEG patterns can be classified when the subjects perceive different types of geometric figures, we perform some EEG experiments. In this paper, the evoked potentials by three types of geometric figures are extracted and classified using a series of approaches. F...

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Published inCIS 2006 : 2006 International Conference on Computational Intelligence and Security : Guangzhou, China, November 3-6, 2006 : proceedings Vol. 2; pp. 1603 - 1608
Main Authors Xiuling Wu, Liqing Zhang, Zhi-Lin Zhang, Wenjun Zhu
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.11.2006
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ISBN1424406048
9781424406043
DOI10.1109/ICCIAS.2006.295333

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Summary:In order to verify whether or not the EEG patterns can be classified when the subjects perceive different types of geometric figures, we perform some EEG experiments. In this paper, the evoked potentials by three types of geometric figures are extracted and classified using a series of approaches. First, a two-stage source extraction algorithm is proposed to extract the evoked potentials from the recorded EEG signals, and then a mutual information based feature selection method is presented to find effective features for classification. Finally, a multi-category support vector machine classifier is employed, which achieves the average classification performance of 93.2%
ISBN:1424406048
9781424406043
DOI:10.1109/ICCIAS.2006.295333