IEEE Trans Biomed Circuits Syst. 2019 Feb;13(1):91-102. doi: 10.1109/TBCAS.2018.2876089. Epub 2018 Oct 15.
Functional near-infrared spectroscopy (fNIRS) has emerged as an effective brain monitoring technique to measure the hemodynamic response of the cortical surface. Its wide popularity and adoption in recent time attribute to its portability, ease of use, and flexibility in multimodal studies involving electroencephalography. While fNIRS is still emerging on various fronts including hardware, software, algorithm, and applications, it still requires overcoming several scientific challenges associated with brain monitoring in naturalistic environments where the human participants are allowed to move and required to perform various tasks stimulating brain behaviors. In response to these challenges and demands, we have developed a wearable fNIRS system, WearLight that was built upon an Internet-of-Things embedded architecture for onboard intelligence, configurability, and data transmission. In addition, we have pursued detailed research and comparative analysis on the design of the optodes encapsulating an near-infrared light source and a detector into 3-D printed material. We performed rigorous experimental studies on human participants to test reliability, signal-to-noise ratio, and configurability. Most importantly, we observed that WearLight has a capacity to measure hemodynamic responses in various setups including arterial occlusion on the forearm and frontal lobe brain activity during breathing exercises in a naturalistic environment. Our promising experimental results provide an evidence of preliminary clinical validation of WearLight. This encourages us to move toward intensive studies involving brain monitoring.
功能近红外光谱(fNIRS)已成为一种有效的大脑监测技术,可测量皮质表面的血液动力学反应。由于其便携性、易用性以及在涉及脑电图的多模态研究中的灵活性,它在最近得到了广泛的应用和采用。虽然 fNIRS 在硬件、软件、算法和应用等各个方面都在不断发展,但它仍然需要克服在自然环境中进行大脑监测所面临的一些科学挑战,在这种环境中,人类参与者可以自由移动并执行各种刺激大脑行为的任务。为了应对这些挑战和需求,我们开发了一种可穿戴式 fNIRS 系统,名为 WearLight,它基于物联网嵌入式架构,具有板载智能、可配置性和数据传输功能。此外,我们还对将近红外光源和探测器封装在 3D 打印材料中的光极设计进行了详细的研究和比较分析。我们对人类参与者进行了严格的实验研究,以测试可靠性、信噪比和可配置性。最重要的是,我们观察到 WearLight 具有在各种设置下测量血液动力学反应的能力,包括在前臂进行动脉阻塞和在自然环境中进行呼吸练习时测量额叶脑活动。我们有前景的实验结果提供了 WearLight 初步临床验证的证据。这鼓励我们进一步进行涉及大脑监测的深入研究。