Please use this identifier to cite or link to this item: https://ptsldigital.ukm.my/jspui/handle/123456789/395028
Title: Functional link PSO neural network based classification of EEG mental task signals
Authors: Hema C.R.
Paulraj M.P.
S.Yaacob
A.H. Adom
Nagarajan R
Conference Name: International Symposium on Information Technology
Keywords: PSO neural network
EEG mental task
Brain machine interface
Conference Date: 26/08/2008
Conference Location: Kuala Lumpur Convention Centre
Abstract: Classification of EEG mental task signals is a technique in the design of Brain machine interface (BMI). A BAI can provide a digital channel for communication in the absence of the biological channels and are used to rehabilitate patients with neurodegenerative diseases, a condition in which all motor movements are impaired including speech leaving the patients totally locked-in. BMI are designed using the electrical activity of the brain detected by scalp EEG electrodes. In this paper five different mental tasks from two subjects were studied, combinations of two tasks are used in the classification process. A novel functional link neural network trained by a PSO algorithm is proposed for classification of the EEG signals. Principal component analysis features are used in the training and testing of the neural network. The average classification accuracies were observed to vary from 80.25% to 93% for the 10 different task combinations for each of the subjects. The proposed network has an average training time of 0.16 sec. The results obtained validate the performance of the proposed algorithm for mental task classification.
Pages: 7
Call Number: T58.5.C634 2008 kat sem j.3
Publisher: Institute of Electrical and Electronics Engineers (IEEE),Piscataway, US
URI: https://ptsldigital.ukm.my/jspui/handle/123456789/395028
Appears in Collections:Seminar Papers/ Proceedings / Kertas Kerja Seminar/ Prosiding

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