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Cited 16 time in webofscience Cited 23 time in scopus
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An unsupervised eye blink artifact detection method for real-time electroencephalogram processing

Authors
Chang, Won-DuLim, Jeong-HwanIm, Chang-Hwan
Issue Date
Mar-2016
Publisher
IOP PUBLISHING LTD
Keywords
electroencephalogram (EEG); electrooculogram (EOG); ocular artifact; eye blink
Citation
PHYSIOLOGICAL MEASUREMENT, v.37, no.3, pp.401 - 417
Indexed
SCIE
SCOPUS
Journal Title
PHYSIOLOGICAL MEASUREMENT
Volume
37
Number
3
Start Page
401
End Page
417
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/23912
DOI
10.1088/0967-3334/37/3/401
ISSN
0967-3334
Abstract
Electroencephalogram (EEG) is easily contaminated by unwanted physiological artifacts, among which electrooculogram (EOG) artifacts due to eye blinking are known to be most dominant. The eye blink artifacts are reported to affect theta and alpha rhythms of frontal EEG signals, and hard to be accurately detected in an unsupervised way due to large individual variability. In this study, we propose a new method for detecting eye blink artifacts automatically in real time without using any labeled training data. The proposed method combined our previous method for detecting eye blink artifacts based on digital filters with an automatic thresholding algorithm. The proposed method was evaluated using EEG data acquired from 24 participants. Two conventional algorithms were implemented and their performances were compared with that of the proposed method. The main contributions of this study are (1) confirming that individual thresholding is necessary for artifact detection, (2) proposing a novel algorithm structure to detect blink artifacts in a real-time environment without any a priori knowledge, and (3) demonstrating that the length of training data can be minimized through the use of a real-time adaption procedure.
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COLLEGE OF ENGINEERING (서울 바이오메디컬공학전공)
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