Novel AIRTrode-based wearable electrode supports long-term, online brain-computer interface operations.

Deland H Liu, Ju-Chun Hsieh, Hussein Alawieh, Satyam Kumar, Fumiaki Iwane, Ilya Pyatnitskiy, Zoya J Ahmad, Huiliang Wang, José Del R Millán
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Abstract

Objective.Non-invasive electroencephalograms (EEG)-based brain-computer interfaces (BCIs) play a crucial role in a diverse range of applications, including motor rehabilitation, assistive and communication technologies, holding potential promise to benefit users across various clinical spectrums. Effective integration of these applications into daily life requires systems that provide stable and reliable BCI control for extended periods. Our prior research introduced the AIRTrode, a self-adhesive (A), injectable (I), and room-temperature (RT) spontaneously-crosslinked hydrogel electrode (AIRTrode). The AIRTrode has shown lower skin-contact impedance and greater stability than dry electrodes and, unlike wet gel electrodes, does not dry out after just a few hours, enhancing its suitability for long-term application. This study aims to demonstrate the efficacy of AIRTrodes in facilitating reliable, stable and long-term online EEG-based BCI operations.Approach.In this study, four healthy participants utilized AIRTrodes in two BCI control tasks-continuous and discrete-across two sessions separated by six hours. Throughout this duration, the AIRTrodes remained attached to the participants' heads. In the continuous task, participants controlled the BCI through decoding of upper-limb motor imagery (MI). In the discrete task, the control was based on decoding of error-related potentials (ErrPs).Main Results.Using AIRTrodes, participants demonstrated consistently reliable online BCI performance across both sessions and tasks. The physiological signals captured during MI and ErrPs tasks were valid and remained stable over sessions. Lastly, both the BCI performances and physiological signals captured were comparable with those from freshly applied, research-grade wet gel electrodes, the latter requiring inconvenient re-application at the start of the second session.Significance.AIRTrodes show great potential promise for integrating non-invasive BCIs into everyday settings due to their ability to support consistent BCI performances over extended periods. This technology could significantly enhance the usability of BCIs in real-world applications, facilitating continuous, all-day functionality that was previously challenging with existing electrode technologies.

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基于 AIRTrode 的新型可穿戴电极支持长期在线脑机接口操作。
目的:基于无创脑电图(EEG)的脑机接口(bci)在包括运动康复、辅助和通信技术在内的各种应用中发挥着至关重要的作用,使各种临床领域的用户受益。将这些应用程序有效地集成到日常生活中,需要系统提供长时间稳定可靠的BCI控制。我们之前的研究介绍了AIRTrode,一种自粘(a)、可注射(I)和室温(RT)自发交联水凝胶电极(AIRTrode)。与干电极相比,AIRTrode具有更低的皮肤接触阻抗和更高的稳定性,并且与湿凝胶电极不同,它在几个小时后不会变干,从而增强了其长期应用的适用性。本研究旨在证明AIRTrodes在促进可靠、稳定和长期的基于脑电图的脑机接口手术方面的功效。方法:在这项研究中,四名健康的参与者在两个BCI控制任务中使用AIRTrodes -连续和离散-跨越两个间隔6小时的会话。在这段时间内,AIRTrodes一直附着在参与者的头上。在连续任务中,被试通过解码上肢运动意象(MI)来控制脑机接口。在离散任务中,控制基于错误相关电位(ErrPs)的解码。主要结果:使用AIRTrodes,参与者在会话和任务中都表现出始终可靠的在线BCI性能。在MI和errp任务中捕获的生理信号是有效的,并且在会话中保持稳定。最后,BCI性能和捕获的生理信号与新应用的研究级湿凝胶电极相当,后者需要在第二阶段开始时重新应用,这很不方便。意义:AIRTrodes显示出将无创脑机接口集成到日常设置中的巨大潜力,因为它们能够长时间支持一致的脑机接口性能。这项技术可以显著提高bci在实际应用中的可用性,促进连续的、全天的功能,这是以前现有电极技术所面临的挑战。
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