DocumentCode :
3659859
Title :
A multimodal wheelchair control system based on EEG signals and Eye tracking fusion
Author :
Fatma Ben Taher;Nader Ben Amor;Mohamed Jallouli
Author_Institution :
Ecole Nationale d´Ingnieurs de Sfax, Univrsit de Sfax, Sfax, Tunisia
fYear :
2015
Firstpage :
1
Lastpage :
8
Abstract :
Controlling an electric powered wheelchair (EPW) is not always a simple task for certain types of disabled person. For example, persons suffering from the locked in syndrome or ALS. Many researchers use the eye tracking or the brain signals as alternative ways to control the EPW. The goal of this paper is to illustrate the EPW control performance amelioration when using multi sources compared to single source control. The first part is to elaborate separate control techniques using ElectroEncephalography (EEG) then eye tracking technologies. The second part, is combining these techniques using data fusion algorithms. Finally, testing the control performance with EEG, Eye tracking and EEG/Eye tracking.
Keywords :
"Electroencephalography","Wheelchairs","Gaze tracking","Data integration","Feature extraction","Headphones"
Publisher :
ieee
Conference_Titel :
Innovations in Intelligent SysTems and Applications (INISTA), 2015 International Symposium on
Type :
conf
DOI :
10.1109/INISTA.2015.7276758
Filename :
7276758
Link To Document :
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