Department of Electronics and Informatics (ETRO), Vrije Universiteit Brussel (VUB), 1050 Brussels, Belgium.
Department of Biomedical Engineering, Universidad de Oriente, Santiago de Cuba 90500, Cuba.
Sensors (Basel). 2023 Jul 24;23(14):6628. doi: 10.3390/s23146628.
Photoplethysmography (PPG) is widely used to assess cardiovascular health. However, its usage and standardization are limited by the impact of variable contact force and temperature, which influence the accuracy and reliability of the measurements. Although some studies have evaluated the impact of these phenomena on signal amplitude, there is still a lack of knowledge about how these perturbations can distort the signal morphology, especially for multi-wavelength PPG (MW-PPG) measurements. This work presents a modular multi-parametric sensor system that integrates continuous and real-time acquisition of MW-PPG, contact force, and temperature signals. The implemented design solution allows for a comprehensive characterization of the effects of the variations in these phenomena on the contour of the MW-PPG signal. Furthermore, a dynamic DC cancellation circuitry was implemented to improve measurement resolution and obtain high-quality raw multi-parametric data. The accuracy of the MW-PPG signal acquisition was assessed using a synthesized reference PPG optical signal. The performance of the contact force and temperature sensors was evaluated as well. To determine the overall quality of the multi-parametric measurement, an in vivo measurement on the index finger of a volunteer was performed. The results indicate a high precision and accuracy in the measurements, wherein the capacity of the system to obtain high-resolution and low-distortion MW-PPG signals is highlighted. These findings will contribute to developing new signal-processing approaches, advancing the accuracy and robustness of PPG-based systems, and bridging existing gaps in the literature.
光电容积脉搏波描记法(PPG)被广泛用于评估心血管健康。然而,由于接触力和温度的变化会影响测量的准确性和可靠性,其使用和标准化受到限制。虽然有些研究已经评估了这些现象对信号幅度的影响,但对于多波长光电容积脉搏波(MW-PPG)测量,仍然缺乏关于这些干扰如何改变信号形态的知识。本工作提出了一种模块化的多参数传感器系统,该系统集成了 MW-PPG、接触力和温度信号的连续实时采集。所实现的设计解决方案允许全面表征这些现象变化对 MW-PPG 信号轮廓的影响。此外,还实现了动态直流消除电路,以提高测量分辨率并获得高质量的原始多参数数据。使用合成参考 PPG 光学信号评估 MW-PPG 信号采集的准确性。还评估了接触力和温度传感器的性能。为了确定多参数测量的整体质量,在志愿者的食指上进行了体内测量。结果表明,测量具有高精度和准确性,突出了系统获取高分辨率、低失真 MW-PPG 信号的能力。这些发现将有助于开发新的信号处理方法,提高基于 PPG 的系统的准确性和稳健性,并弥合文献中的现有差距。