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  4. Classification of EEG Signals Using Dempster Shafer Theory and a K-Nearest Neighbor Classifier
 
conference paper

Classification of EEG Signals Using Dempster Shafer Theory and a K-Nearest Neighbor Classifier

Yazdani, Ashkan  
•
Hoffmann, Ulrich  
•
Ebrahimi, Touradj  
2009
The 4th International IEEE EMBS Conference on Neural Engineering
The 4th International IEEE EMBS Conference on Neural Engineering

A brain computer interface (BCI) is a communication system, which translates brain activity into commands for a computer or other devices. Nearly all BCIs contain as a core component a classification algorithm, which is employed to discriminate different brain activities using previously recorded examples of brain activity. In this paper, we study the classification accuracy achievable with a k-nearest neighbor (KNN) method based on Dempster- Shafer theory. To extract features from the electroencephalogram (EEG) signals, autoregressive (AR) models and wavelet decomposition are used. To test the classification method an EEG dataset containing signals recorded during the performance of five different mental tasks is used. We show that the Dempster-Shafer KNN classifier achieves a higher correct classification rate than the classical voting KNN classifier and the distance- weighted KNN classifier.

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Type
conference paper
DOI
10.1109/NER.2009.5109299
Web of Science ID

WOS:000274650800080

Author(s)
Yazdani, Ashkan  
Hoffmann, Ulrich  
Ebrahimi, Touradj  
Date Issued

2009

Publisher

IEEE

Published in
The 4th International IEEE EMBS Conference on Neural Engineering
Start page

327

End page

330

Subjects

Dempster Shafer theory

•

BCI

•

nearest neighbor

•

classification

•

EEG

URL

URL

http://www.fulton.asu.edu/~ne2009/
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GR-EB  
Event nameEvent placeEvent date
The 4th International IEEE EMBS Conference on Neural Engineering

Antalya

April 29- May 2, 2009

Available on Infoscience
March 16, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/36129
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