Department of Electrical and Electronics Engineering, University of Cagliari, Piazza D'Armi, 09123 Cagliari, Italy.
Department of Science, Technology and Society, Scuola Universitaria Superiore IUSS, Palazzo del Broletto, Piazza della Vittoria 15, 27100 Pavia, Italy.
Sensors (Basel). 2023 Jan 9;23(2):766. doi: 10.3390/s23020766.
In an increasingly interconnected world, where electronic devices permeate every aspect of our lives, wearable systems aimed at monitoring physiological signals are rapidly taking over the sport and fitness domain, as well as biomedical fields such as rehabilitation and prosthetics. With the intent of providing a novel approach to the field, in this paper we discuss the development of a wearable system for the acquisition of EEG signals based on a portable, low-power custom PCB specifically designed to be used in combination with non-conventional ultra-conformable and imperceptible Parylene-C tattoo electrodes. The proposed system has been tested in a standard rest-state experiment, and its performance in terms of discrimination of two different states has been compared to that of a commercial wearable device for EEG signal acquisition (i.e., the Muse headset), showing comparable results. This first preliminary validation demonstrates the possibility of conveniently employing ultra-conformable tattoo-electrodes integrated portable systems for the unobtrusive acquisition of brain activity.
在一个日益互联的世界中,电子设备渗透到我们生活的方方面面,旨在监测生理信号的可穿戴系统正在迅速占领运动和健身领域以及康复和假肢等生物医学领域。本文旨在为该领域提供一种新方法,我们讨论了一种基于便携式、低功耗定制 PCB 的 EEG 信号采集可穿戴系统的开发,该系统专门设计用于与非常规的超顺应性和不可察觉的聚对二甲苯-C 纹身电极结合使用。该系统已在标准静息状态实验中进行了测试,并比较了其在区分两种不同状态方面的性能与用于 EEG 信号采集的商业可穿戴设备(即 Muse 耳机),结果相当。这第一次初步验证证明了方便地使用超顺应性纹身电极集成便携式系统进行非侵入式脑活动采集的可能性。