Xu Edward, Vanegas Morris, Mireles Miguel, Dementyev Artem, Yucel Meryem, Carp Stefan, Fang Qianqian
Northeastern University, Department of Bioengineering, 360 Huntington Avenue, Boston, USA, 02115.
Massachusetts Institute of Technology, Media Lab, 77 Massachusetts Avenue, Cambridge, USA, 02139.
medRxiv. 2024 May 24:2024.03.01.24302838. doi: 10.1101/2024.03.01.24302838.
Functional near-infrared spectroscopy (fNIRS) presents an opportunity to study human brains in everyday activities and environments. However, achieving robust measurements under such dynamic condition remains a significant challenge.
The modular optical brain imaging (MOBI) system is designed to enhance optode-to-scalp coupling and provide real-time probe 3-D shape estimation to improve the use of fNIRS in everyday conditions.
The MOBI system utilizes a bendable and lightweight modular circuit-board design to enhance probe conformity to head surfaces and comfort for long-term wearability. Combined with automatic module connection recognition, the built-in orientation sensors on each module can be used to estimate optode 3-D positions in real-time to enable advanced tomographic data analysis and motion tracking.
Optical characterization of the MOBI detector reports a noise equivalence power (NEP) of 8.9 and 7.3 at 735 nm and 850 nm, respectively, with a dynamic range of 88 dB. The 3-D optode shape acquisition yields an average error of 4.2 mm across 25 optodes in a phantom test compared to positions acquired from a digitizer. Results for initial validations, including a cuff occlusion and a finger-tapping test, are also provided.
To the best of our knowledge, the MOBI system is the first modular fNIRS system featuring fully flexible circuit boards. The self-organizing module sensor network and automatic 3-D optode position acquisition, combined with lightweight modules (18 g/module) and ergonomic designs, would greatly aid emerging explorations of brain function in naturalistic settings.
功能近红外光谱技术(fNIRS)为在日常活动和环境中研究人类大脑提供了契机。然而,在这种动态条件下实现可靠的测量仍然是一项重大挑战。
模块化光学脑成像(MOBI)系统旨在增强光电极与头皮的耦合,并提供实时探头三维形状估计,以改善fNIRS在日常条件下的应用。
MOBI系统采用可弯曲且轻便的模块化电路板设计,以增强探头与头部表面的贴合度,并提高长期佩戴的舒适度。结合自动模块连接识别功能,每个模块上的内置方向传感器可用于实时估计光电极的三维位置,以实现先进的断层数据分析和运动跟踪。
MOBI探测器的光学特性表明,在735纳米和850纳米处的噪声等效功率(NEP)分别为8.9和7.3,动态范围为88分贝。在体模测试中,与从数字化仪获取的位置相比,25个光电极的三维形状采集平均误差为4.2毫米。还提供了包括袖带阻断和手指敲击测试在内的初步验证结果。
据我们所知,MOBI系统是首个采用完全柔性电路板的模块化fNIRS系统。自组织模块传感器网络和自动三维光电极位置采集,结合轻便的模块(每个模块18克)和符合人体工程学的设计,将极大地有助于在自然环境中对脑功能进行新的探索。