Development and Characterization of Ear-EEG for Real-Life Brain-Monitoring

S. L. Kappel
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引用次数: 7

Abstract

Functional brain monitoring methods for neuroscience and medical diagnostics have until recently been limited to laboratory settings. However, there is a great potential for studying the human brain in the everyday life, with measurements performed in more realistic real-life settings. Electroencephalography (EEG) can be measured in real-life using wearable EEG equipment. Current wearable EEG devices are typically based on scalp electrodes, causing the devices to be visible and often uncomfortable to wear for long-term recordings. Ear-EEG is a method where EEG is recorded from electrodes placed in the ear. The Ear-EEG supports non-invasive long-term recordings of EEG in real-life in a discreet way. This Ph.D. project concerns the characterization and development of ear-EEG for real-life brain-monitoring. This was addressed through characterization of physiological artifacts in real-life settings, development and characterization of dry-contact electrodes for real-life ear-EEG acquisition, measurements of ear-EEG in real-life, and development of a method for mapping cortical sources to the ear. Characterization of physiological artifacts showed a similar artifact level for recordings from ear electrodes and temporal lobe scalp electrodes. Dry-contact electrodes and flexible earpieces were developed to increase the comfort and user-friendliness of the ear-EEG. In addition, electronic instrumentation was developed to allow implementation in a hearing-aid-sized ear-EEG device. Ear-EEG measurements performed in real-life settings with the dry-contact electrodes, were comparable to temporal lobe scalp EEG, when referenced to a Cz scalp electrode. However, the recordings showed that further development of the earpieces and electrodes are needed to obtain a satisfying recording quality, when the reference is located close to or in the ear. Mapping of the electric fields from well-defined cortical sources to the ear, showed good agreement with previous ear-EEG studies and has the potential to provide valuable information for future development of the ear-EEG method. The Ph.D. project showed that ear-EEG measurements can be performed in real-life, with dry-contact electrodes. The brain processes studied, were established with comparable clarity on recordings from temporal lobe scalp and ear electrodes. With further development of the earpieces, electrodes, and electronic instrumentation, it appears to be realistic to implement ear-EEG into unobtrusive and user-friendly devices for monitoring of human brain processes in real-life.
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用于真实脑监测的耳脑电图的发展和特征
直到最近,用于神经科学和医学诊断的功能性脑监测方法还仅限于实验室设置。然而,在日常生活中研究人类大脑有很大的潜力,可以在更现实的现实环境中进行测量。脑电图(EEG)可以在现实生活中使用可穿戴脑电图设备进行测量。目前的可穿戴脑电图设备通常基于头皮电极,导致设备可见,并且在长期记录时佩戴通常不舒服。耳脑电图是一种通过放置在耳中的电极记录脑电图的方法。耳-EEG支持在现实生活中以谨慎的方式对EEG进行非侵入性长期记录。本博士项目涉及耳脑电图的特征和发展,用于现实生活中的大脑监测。这是通过对现实生活中生理人工产物的表征、用于现实生活耳eeg采集的干接触电极的开发和表征、现实生活中耳eeg的测量以及将皮质源映射到耳朵的方法的开发来解决的。生理伪影的表征表明,耳电极和颞叶头皮电极记录的伪影水平相似。干接触电极和柔性耳塞的发展,以增加舒适性和用户友好的耳朵-脑电图。此外,开发了电子仪器,允许在助听器大小的耳-脑电图设备中实现。当参考Cz头皮电极时,在现实环境中使用干接触电极进行的耳EEG测量与颞叶头皮EEG相当。然而,录音表明,当参考点位于耳朵附近或耳朵内时,耳机和电极需要进一步发展才能获得令人满意的记录质量。从定义明确的皮层源到耳朵的电场映射,与先前的耳- eeg研究结果很好地吻合,并有可能为耳- eeg方法的未来发展提供有价值的信息。博士项目表明,耳朵-脑电图测量可以在现实生活中进行,使用干接触电极。通过颞叶、头皮和耳部电极的记录,可以清晰地确定所研究的大脑过程。随着耳机、电极和电子仪器的进一步发展,将耳-脑电图实现为不引人注目和用户友好的设备,以监测现实生活中的人类大脑过程似乎是现实的。
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