Kim Minjae, Yoo Seungjae, Kim Chul
Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology, Daehak-ro, Daejeon, 34141 Republic of Korea.
KAIST Institute for Health Science and Technology, Korea Advanced Institute of Science and Technology, Daehak-ro, Daejeon, 34141 Republic of Korea.
Biomed Eng Lett. 2022 Jun 6;12(3):239-250. doi: 10.1007/s13534-022-00232-0. eCollection 2022 Aug.
As more people desire at-home diagnosis and treatment for their health improvement, healthcare devices have become more wearable, comfortable, and easy to use. In that sense, the miniaturization of electroencephalography (EEG) systems is a major challenge for developing daily-life healthcare devices. Recently, because of the intertwined relationship between EEG recording and processing, co-research of EEG recording hardware and data processing has been emphasized for whole-in-one miniaturized EEG systems. This paper introduces miniaturization techniques in analog-front-end hardware and processing algorithms for such EEG systems. To miniaturize EEG recording hardware, various types of compact electrodes and mm-sized integrated circuits (IC) techniques including artifact rejection are studied to record accurate EEG signals in a much smaller manner. Active electrode and in-ear EEG technologies are also researched to make small-form-factor EEG measurement structures. Furthermore, miniaturization techniques for EEG processing are discussed including channel selection techniques that reduce the number of required electrode channel and hardware implementation of processing algorithms that simplify the EEG processing stage.
随着越来越多的人希望通过在家进行诊断和治疗来改善健康状况,医疗保健设备变得更加可穿戴、舒适且易于使用。从这个意义上说,脑电图(EEG)系统的小型化是开发日常生活医疗保健设备的一项重大挑战。最近,由于EEG记录与处理之间存在相互交织的关系,对于一体化小型化EEG系统而言,EEG记录硬件与数据处理的联合研究受到了重视。本文介绍了此类EEG系统在模拟前端硬件和处理算法方面的小型化技术。为了使EEG记录硬件小型化,研究了各种类型的紧凑型电极以及包括伪迹抑制在内的毫米级集成电路(IC)技术,以便以更小的尺寸记录准确的EEG信号。还研究了有源电极和入耳式EEG技术,以制造小尺寸的EEG测量结构。此外,还讨论了EEG处理的小型化技术,包括减少所需电极通道数量的通道选择技术以及简化EEG处理阶段的处理算法的硬件实现。