Analysis of EOG signals using wavelet transform for detecting eye blinks

M. Reddy, B. Narasimha, E. Suresh, K. S. Rao
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引用次数: 34

Abstract

Eye ball movements are vital signs in some of the neurological disorders and it can be tracked by acquiring electrooculogram (EOG) signals. EOG is an obtrusive, inexpensive and non-invasive means of recording eye ball movements. The source for EOG signal is cornea-retinal potential (CRP) and is generated due to the movements of eye balls within the conductive environment of the skull. While recording the EOG signal, it will be contaminated by electromyography (EMG) signal. As the EOG is a non stationary signal, the multi resolution analysis using wavelet decomposition offers the best solution to denoise the EOG signal. In this paper, the author proposed a new wavelet based method to detect eye ball moments from signal conditioned EOG. Comparative wavelet analysis is performed by considering different statistical measures. Test results reveal that the Symlet based method provides better efficacy in eliminating noise from EOG signals.
用小波变换分析眼电信号检测眨眼
眼球运动是一些神经系统疾病的重要体征,它可以通过获取眼电图(EOG)信号来跟踪。EOG是一种引人注目的、廉价的、无创的记录眼球运动的方法。EOG信号的来源是角膜-视网膜电位(CRP),它是由于眼球在颅骨导电环境中的运动而产生的。在记录脑电图信号时,会受到肌电信号的干扰。由于EOG是非平稳信号,采用小波分解的多分辨率分析方法是EOG信号去噪的最佳方法。本文提出了一种基于小波变换的人眼眼球矩检测方法。通过考虑不同的统计度量,进行了小波比较分析。实验结果表明,基于Symlet的方法能够较好地去除EOG信号中的噪声。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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