Hall Travis, Lie Donald Y C, Nguyen Tam Q, Mayeda Jill C, Lie Paul E, Lopez Jerry, Banister Ron E
Department of Electrical and Computer Engineering, Texas Tech University, Lubbock, TX 79409-3102, USA.
Texas Tech University Health Sciences Center, Texas Tech University, Lubbock, TX 79430, USA.
Sensors (Basel). 2017 Nov 15;17(11):2632. doi: 10.3390/s17112632.
It has been the dream of many scientists and engineers to realize a non-contact remote sensing system that can perform continuous, accurate and long-term monitoring of human vital signs as we have seen in many Sci-Fi movies. Having an intelligible sensor system that can measure and record key vital signs (such as heart rates and respiration rates) remotely and continuously without touching the patients, for example, can be an invaluable tool for physicians who need to make rapid life-and-death decisions. Such a sensor system can also effectively help physicians and patients making better informed decisions when patients' long-term vital signs data is available. Therefore, there has been a lot of research activities on developing a non-contact sensor system that can monitor a patient's vital signs and quickly transmit the information to healthcare professionals. Doppler-based radio-frequency (RF) non-contact vital signs (NCVS) monitoring system are particularly attractive for long term vital signs monitoring because there are no wires, electrodes, wearable devices, nor any contact-based sensors involved so the subjects may not be even aware of the ubiquitous monitoring. In this paper, we will provide a brief review on some latest development on NCVS sensors and compare them against a few novel and intelligent phased-array Doppler-based RF NCVS biosensors we have built in our labs. Some of our NCVS sensor tests were performed within a clutter-free anechoic chamber to mitigate the environmental clutters, while most tests were conducted within the typical Herman-Miller type office cubicle setting to mimic a more practical monitoring environment. Additionally, we will show the measurement data to demonstrate the feasibility of long-term NCVS monitoring. The measured data strongly suggests that our latest phased array NCVS system should be able to perform long-term vital signs monitoring intelligently and robustly, especially for situations where the subject is sleeping without hectic movements nearby.
正如我们在许多科幻电影中看到的那样,实现一个能够对人类生命体征进行连续、准确和长期监测的非接触式遥感系统,一直是许多科学家和工程师的梦想。例如,拥有一个能够在不接触患者的情况下远程连续测量和记录关键生命体征(如心率和呼吸率)的智能传感器系统,对于需要做出快速生死决策的医生来说,可能是一个非常宝贵的工具。当有患者的长期生命体征数据时,这样的传感器系统还可以有效地帮助医生和患者做出更明智的决策。因此,在开发一种能够监测患者生命体征并将信息快速传输给医疗保健专业人员的非接触式传感器系统方面,已经开展了大量的研究活动。基于多普勒的射频(RF)非接触生命体征(NCVS)监测系统对于长期生命体征监测特别有吸引力,因为它不涉及电线、电极、可穿戴设备或任何基于接触的传感器,所以受试者甚至可能没有意识到这种无处不在的监测。在本文中,我们将简要回顾NCVS传感器的一些最新进展,并将它们与我们实验室构建的一些新颖的智能相控阵多普勒射频NCVS生物传感器进行比较。我们的一些NCVS传感器测试是在无杂波的消声室内进行的,以减轻环境杂波的影响,而大多数测试是在典型的Herman-Miller型办公隔间环境中进行的,以模拟更实际的监测环境。此外,我们将展示测量数据,以证明长期NCVS监测的可行性。测量数据有力地表明,我们最新的相控阵NCVS系统应该能够智能且稳健地进行长期生命体征监测,特别是在受试者睡眠且附近没有剧烈运动的情况下。