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<dc:creator>Martínez Cagigal, Víctor</dc:creator>
<dc:creator>SantaMaría Vazquez, Eduardo</dc:creator>
<dc:creator>Hornero Sánchez, Roberto</dc:creator>
<dc:date>2018</dc:date>
<dc:description>Producción Científica</dc:description>
<dc:description>Channel selection procedures are essential to reduce the&#xd;
curse of dimensionality in Brain-Computer Interface&#xd;
systems. However, these selection is not trivial, due to&#xd;
the fact that there are 2Nc possible subsets for an Nc&#xd;
channel cap. The aim of this study is to propose a novel&#xd;
multi-objective hybrid algorithm to simultaneously: (i) reduce&#xd;
the required number of channels and (ii) increase the&#xd;
accuracy of the system. The method, which integrates&#xd;
novel concepts based on dedicated searching and deterministic&#xd;
initialization, returns a set of pareto-optimal&#xd;
channel sets. Tested with 4 healthy subjects, the results&#xd;
show that the proposed algorithm is able to reach higher&#xd;
accuracies (97.00%) than the classic MOPSO (96.60%),&#xd;
the common 8-channel set (95.25%) and the full set of 16&#xd;
channels (96.00%). Moreover, these accuracies have been&#xd;
obtained using less number of channels, making the&#xd;
proposed method suitable for its application in BCI&#xd;
systems.</dc:description>
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<dc:language>eng</dc:language>
<dc:title>A Novel Hybrid Swarm Algorithm for P300-Based BCI Channel Selection</dc:title>
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