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Systematic comparison between a wireless EEG system with dry electrodes and a wired EEG system with wet electrodes

机译:具有干电极的无线EEG系统与具有湿电极的有线EEG系统之间的系统比较

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摘要

Recent advances in dry electrodes technology have facilitated the recording of EEG in situations not previously possible, thanks to the relatively swift electrode preparation and avoidance of applying gel to subject’s hair. However, to become a true alternative, these systems should be compared to state-of-the-art wet EEG systems commonly used in clinical or research applications. In our study, we conducted a systematic comparison of electrodes application speed, subject comfort, and most critically electrophysiological signal quality between the conventional and wired Biosemi EEG system using wet active electrodes and the compact and wireless F1 EEG system consisting of dry passive electrodes. All subjects (n = 27) participated in two recording sessions on separate days, one with the wet EEG system and one with the dry EEG system, in which the session order was counterbalanced across subjects. In each session, we recorded their EEG during separate rest periods with eyes open and closed followed by two versions of a serial visual presentation target detection task. Each task component allows for a neural measure reflecting different characteristics of the data, including spectral power in canonical low frequency bands, event-related potential components (specifically, the P3b), and single trial classification based on machine learning. The performance across the two systems was similar in most measures, including the P3b amplitude and topography, as well as low frequency (theta, alpha, and beta) spectral power at rest. Both EEG systems performed well above chance in the classification analysis, with a marginal advantage of the wet system over the dry. Critically, all aforementioned electrophysiological metrics showed significant positive correlations (r = 0.54–0.89) between the two EEG systems. This multitude of measures provides a comprehensive comparison that captures different aspects of EEG data, including temporal precision, frequency domain as well as multivariate patterns of activity. Taken together, our results indicate that the dry EEG system used in this experiment can effectively record electrophysiological measures commonly used across the research and clinical contexts with comparable quality to the conventional wet EEG system.
机译:干电极技术的最新进展促进了在以前不可能发生的情况下的脑电图记录,这要归功于电极制备相对较快并且避免将凝胶涂在受试者的头发上。但是,要成为真正的替代产品,应将这些系统与临床或研究应用中常用的最新湿式EEG系统进行比较。在我们的研究中,我们对使用湿式有源电极的常规和有线Biosemi EEG系统与由干式无源电极组成的紧凑型无线F1 EEG系统之间的电极应用速度,受试者舒适度以及最关键的电生理信号质量进行了系统的比较。所有受试者(n = 27)分别在不同的日期参加了两次记录会议,其中一个会议使用湿式EEG系统,另一个会议使用干式EEG系统,其中会议顺序在各个受试者之间是平衡的。在每个环节中,我们分别睁开双眼记录休息期间的脑电图,然后依次进行两个系列的视觉呈现目标检测任务。每个任务组件都可以进行神​​经测量,以反映数据的不同特征,包括规范低频频带中的频谱功率,与事件相关的潜在分量(特别是P3b)以及基于机器学习的单次试验分类。在大多数测量中,两个系统的性能相似,包括P3b幅度和形貌,以及静止时的低频(θ,α和β)光谱功率。两种EEG系统在分类​​分析中的表现均远高于偶然,与湿系统相比,干系统具有边际优势。至关重要的是,所有上述电生理指标在两个脑电图系统之间均显示出显着的正相关(r = 0.54–0.89)。多种措施提供了全面的比较,捕获了EEG数据的不同方面,包括时间精度,频域以及活动的多元模式。综上所述,我们的结果表明,该实验中使用的干式EEG系统可以有效记录整个研究和临床环境中常用的电生理学指标,其质量与传统的湿式EEG系统相当。

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