Frazao Alvaro, Pinho Pedro, Albuquerque Daniel
Department of Electronics Telecommunications and Informatics (DETI), Instituto de Telecomunicações, Universidade de Aveiro, 3810-193 Aveiro, Portugal.
Águeda School of Technology and Management (ESTGA), Instituto de Telecomunicações, Universidade de Aveiro, 3750-127 Águeda, Portugal.
Sensors (Basel). 2024 Nov 29;24(23):7654. doi: 10.3390/s24237654.
In recent years, with the increased interest in smart home technology and the increased need to remotely monitor patients due to the pandemic, demand for contactless systems for vital sign measurements has also been on the rise. One of these kinds of systems are Doppler radar systems. Their design is composed of several choices that could possibly have a significant impact on their overall performance, more specifically those focused on the measurement of cardiac activity. This review, conducted using works obtained from relevant scientific databases, aims to understand the impact of these design choices on the performance of systems measuring either heart rate (HR) or heart rate variability (HRV). To that end, an analysis of the performance based on hardware architecture, carrier frequency, and measurement distance was conducted for works focusing on both of the aforementioned cardiac parameters, and signal processing trends were discussed. What was found was that the system architecture and signal processing algorithms had the most impact on the performance, with FMCW being the best performing architecture, whereas factors like carrier frequency did not have an impact.This means that newer systems can focus on cheaper, lower-frequency systems without any performance degradation, which will make research easier.
近年来,随着对智能家居技术的兴趣增加以及由于疫情导致远程监测患者的需求增加,对用于生命体征测量的非接触式系统的需求也在上升。其中一种系统是多普勒雷达系统。它们的设计由几个可能对其整体性能产生重大影响的选择组成,更具体地说是那些专注于心脏活动测量的选择。本综述使用从相关科学数据库中获取的文献进行,旨在了解这些设计选择对测量心率(HR)或心率变异性(HRV)的系统性能的影响。为此,针对专注于上述两个心脏参数的文献,基于硬件架构、载波频率和测量距离对性能进行了分析,并讨论了信号处理趋势。结果发现,系统架构和信号处理算法对性能影响最大,调频连续波(FMCW)是性能最佳的架构,而载波频率等因素则没有影响。这意味着新系统可以专注于更便宜、低频的系统而不会有任何性能下降,这将使研究更容易。