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BCI competition 2003 - Data set IIb: Support vector machines for the P300 speller paradigm
ISSN
0018-9294
Date Issued
2004
Author(s)
DOI
10.1109/TBME.2004.826698
Abstract
We propose an approach to analyze data from the P300 speller paradigm using the machine-learning technique support vector machines. In a conservative classification scheme, we found the correct solution after five repetitions. While the classification within the competition is designed for offline analysis, our approach is also well-suited for a real-world online solution: It is fast, requires only 10 electrode positions and demands only a small amount of preprocessing.