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通过静息状态同步数据采集对移动脑电图传感器和临床脑电图传感器进行比较。

Comparison of mobile and clinical EEG sensors through resting state simultaneous data collection.

作者信息

Kutafina Ekaterina, Brenner Alexander, Titgemeyer Yannic, Surges Rainer, Jonas Stephan

机构信息

Institute of Medical Informatics, Medical Faculty, RWTH Aachen University, Aachen, Germany.

Faculty of Applied Mathematics, AGH University of Science and Technology, Krakow, Poland.

出版信息

PeerJ. 2020 May 1;8:e8969. doi: 10.7717/peerj.8969. eCollection 2020.

Abstract

Development of mobile sensors brings new opportunities to medical research. In particular, mobile electroencephalography (EEG) devices can be potentially used in low cost screening for epilepsy and other neurological and psychiatric disorders. The necessary condition for such applications is thoughtful validation in the specific medical context. As part of validation and quality assurance, we developed a computer-based analysis pipeline, which aims to compare the EEG signal acquired by a mobile EEG device to the one collected by a medically approved clinical-grade EEG device. Both signals are recorded simultaneously during 30 min long sessions in resting state. The data are collected from 22 patients with epileptiform abnormalities in EEG. In order to compare two multichannel EEG signals with differently placed references and electrodes, a novel data processing pipeline is proposed. It allows deriving matching pairs of time series which are suitable for similarity assessment through Pearson correlation. The average correlation of 0.64 is achieved on a test dataset, which can be considered a promising result, taking the positions shift due to the simultaneous electrode placement into account.

摘要

移动传感器的发展为医学研究带来了新机遇。特别是,移动脑电图(EEG)设备有可能用于癫痫及其他神经和精神疾病的低成本筛查。此类应用的必要条件是在特定医学背景下进行深入验证。作为验证和质量保证的一部分,我们开发了一个基于计算机的分析流程,旨在将移动EEG设备采集的EEG信号与经医学认可的临床级EEG设备采集的信号进行比较。在静息状态下,两个信号在30分钟的时间段内同时记录。数据采集自22名脑电图有癫痫样异常的患者。为了比较两个参考点和电极位置不同的多通道EEG信号,提出了一种新颖的数据处理流程。它允许导出适合通过皮尔逊相关性进行相似性评估的时间序列匹配对。在一个测试数据集上实现了0.64的平均相关性,考虑到由于电极同时放置导致的位置偏移,这可以被认为是一个有前景的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0af/7197399/81f67cda859d/peerj-08-8969-g001.jpg

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