scholarly journals A Survey on EEG Feature Extraction and Feature Classification methods in Brain Computer Interface

IJARCCE ◽  
2017 ◽  
Vol 6 (4) ◽  
pp. 700-706
Author(s):  
Mangala Gowri S G ◽  
Cyril Prasanna Raj P
Author(s):  
Alessandro B. Benevides ◽  
Mário Sarcinelli-Filho ◽  
Teodiano F. Bastos Filho

This paper presents the classification of three mental tasks, using the EEG signal and simulating a real-time process, what is known as pseudo-online technique. The Bayesian classifier is used to recognize the mental tasks, the feature extraction uses the Power Spectral Density, and the Sammon map is used to visualize the class separation. The choice of the EEG channel and sampling frequency is based on the Kullback-Leibler symmetric divergence and a reclassification model is proposed to stabilize the classifications.


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