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. 2006 Oct;44(10):931-5.
doi: 10.1007/s11517-006-0107-4. Epub 2006 Sep 12.

Adaptive feature extraction for EEG signal classification

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Adaptive feature extraction for EEG signal classification

Shiliang Sun et al. Med Biol Eng Comput. 2006 Oct.

Abstract

One challenge in the current research of brain-computer interfaces (BCIs) is how to classify time-varying electroencephalographic (EEG) signals as accurately as possible. In this paper, we address this problem from the aspect of updating feature extractors and propose an adaptive feature extractor, namely adaptive common spatial patterns (ACSP). Through the weighed update of signal covariances, the most discriminative features related to the current brain states are extracted by the method of multi-class common spatial patterns (CSP). Pseudo-online simulations of EEG signal classification with a support vector machine (SVM) classifier for multi-class mental imagery tasks show the effectiveness of the proposed adaptive feature extractor.

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