Application of Hjorth parameters in the classificationof healthy aging EEG signals
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Creator 1. Hamad Javaid
2. Krit Charupanit
3. Ekkasit Kumarnsit
4. Surapong Chatpun
Title Application of Hjorth parameters in the classificationof healthy aging EEG signals
Publisher Research and Development Office, Prince of Songkla University
Publication Year 2564
Journal Title Songklanakarin Journal of Science an Technology (SJST)
Journal Vol. 43
Journal No. 6
Page no. 1807-1814
Keyword electroencephalography, aging, Hjorth parameters, k-nearest neighbor, classification
URL Website https://rdo.psu.ac.th/sjst/index.php
ISSN 0125-3395
Abstract Aging has extensive impacts on brain cognition. In this work we proposed a method using Hjorth parameters to classifythe elderlyโs electroencephalography (EEG) signals from that of middle age group by applying K-nearest neighbor (KNN) andRandom forest (RF) classifiers. We acquired EEG of 20 healthy middle age subjects and 20 healthy elderly subjects in restingstate eyes-open for 5 minutes and eyes-closed for 5 minutes using an 8-electrodes device. Euclidean and Manhattan distancemeasures were tested using KNN. The classifier performance was evaluated by using accuracy, sensitivity, specificity, and kappastatistic. The best accuracy achieved was 91.25 %, and kappa statistic of 0.825, in eyes-closed state. In eyes-open state 90%accuracy was achieved with kappa statistic of 0.80. RF achieved 83.75% accuracy with kappa statistic of 0.675 in eyes-closedstate and 78.75% accuracy with Kappa statistic of 0.575 in eyes-open state. The KNN performed better using Manhattan distancefunction in both eyes-open and eyes-closed states. Results showed the potential of Hjorth parameters as the suitable EEG featuresin the classification of EEG aging signals.
Songklanakarin Journal of Science and Technology (SJST)

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