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Aiding the detection of Alzheimer's disease in clinical electroencephalogram recording by selective de-noising of ocular artifacts

机译:通过对眼部伪影进行选择性降噪,帮助在临床脑电图记录中检测阿尔茨海默氏病

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Alzheimer's disease is a progressive, irreversible, neurodegenerative disease with no known cause or cure. Clinical recording of the electroencephalogram (EEG) Signal for patients with Alzheimer's disease has shown a characteristic increase in slow quantitative EEG (qEEG) frequencies and a smaller decrease in the fast activities. A commonly encountered problem in clinical practice during EEG recording is the blanking of the EEG signal due to blinking or movements of the user's eyes. Recent research on the effectiveness of the various techniques for filtering these ocular artifacts has shown that, while a significant portion of the EEG data is lost, there is also some remnant artifact subsequent to the de-noising process. Considering these aberrations, along with the fact that most of these methods require continuous monitoring of the electrooculargram (EOG) signal as well, prompted us to use Haar wavelets to accurately detect the presence of ocular artifacts and de-noise them. The remarkable performance of this technique over conventional methods guided us to extend it to clinically recorded Alzheimer's EEG signals as well. This paper describes the use of Haar wavelets for selective detection and de-noising of the ocular artifacts in clinically recorded Alzheimer's EEG signals and discusses both the errors involved as well as the drastic improvements in efficiency over conventional techniques.
机译:阿尔茨海默氏病是一种进展性,不可逆的神经退行性疾病,没有已知的病因或治愈方法。阿尔茨海默氏病患者的脑电图(EEG)信号的临床记录显示,慢定量EEG(qEEG)频率特征性增加,而快速活动则较小。在脑电图记录期间临床实践中经常遇到的问题是由于用户的眨眼或眼睛移动而导致的脑电图信号消隐。对各种用于过滤这些眼部伪影的技术的有效性的最新研究表明,尽管EEG数据丢失了很大一部分,但在去噪过程之后还存在一些残留的伪影。考虑到这些像差,以及大多数这些方法也需要连续监控眼电图(EOG)信号的事实,促使我们使用Haar小波来准确检测眼部伪影的存在并对其进行消噪。与传统方法相比,该技术的卓越性能引导我们将其扩展到临床记录的阿尔茨海默氏病的脑电信号。本文介绍了使用Haar小波对临床记录的阿尔茨海默病EEG信号中的眼部伪影进行选择性检测和去噪的方法,并讨论了所涉及的错误以及与传统技术相比效率的显着提高。

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