Simplified single neuron model for robust local pulse wave velocity sensing using a tetherless bioimpedance device

IF 10.7 1区 生物学 Q1 BIOPHYSICS Biosensors and Bioelectronics Pub Date : 2024-09-18 DOI:10.1016/j.bios.2024.116793
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Abstract

Pulse arrival time (PAT), Pulse transit time (PTT), and Pulse Wave Velocity (PWV) have all been used as metrics for assessing a number of cardiovascular applications, including arterial stiffness and cuffless blood pressure monitoring. These have been measured using various sensing methods, including electrocardiogram (ECG) with photoplethysmogram (PPG), two PPG sensors, or two Bioimpedance (BioZ) sensors. Our study addresses the mathematical inaccuracies of previous bioimpedance approaches and incorporates PTT weights for the peak-peak (PTTpp), middle-middle (PTTmm), and foot-foot (PTTff) segments of the sensing signal into a single neuron model to determine a more accurate and stable PWV. In addition, we developed a tetherless bioimpedance device and compared our PTT estimation approaches, which yielded PWV across six subjects and two different arteries. Specifically, using our model, we found that the most reliable combination of weights corresponding to PTTpp, PTTmm, and PTTff was (0.260, 0.704, 0.036) for the brachial artery and (0.104, 0.858, 0.038) for radial artery. This model consistently yielded stable values across repetitions, with PWV values of 5.2 m/s, 5.3 m/s, and 5.9 m/s for the brachial artery and values of 5.8 m/s, 6.6 m/s, and 6.5 m/s for the radial artery. This system and model offer the possibility of obtaining higher reliability PTT and PWV values yielding better monitoring of cardiovascular health measures such as blood pressure and arterial stiffness.
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利用无对偶生物阻抗装置进行鲁棒性局部脉搏波速度传感的简化单神经元模型
脉搏到达时间 (PAT)、脉搏传输时间 (PTT) 和脉搏波速度 (PWV) 都被用作评估心血管应用的指标,包括动脉僵化和无袖带血压监测。这些指标是通过各种传感方法测量的,包括心电图(ECG)与光敏血流图(PPG)、两个 PPG 传感器或两个生物阻抗(BioZ)传感器。我们的研究解决了以往生物阻抗方法在数学上的不准确性,并将传感信号的峰-峰(PTTpp)、中-中(PTTmm)和足-足(PTTff)段的 PTT 权重纳入单神经元模型,以确定更准确、更稳定的脉搏波速度。此外,我们还开发了一种无拴生物阻抗装置,并比较了我们的 PTT 估算方法,得出了六个受试者和两条不同动脉的脉搏波速度。具体来说,使用我们的模型,我们发现对应于 PTTpp、PTTmm 和 PTTff 的最可靠权重组合对于肱动脉是(0.260, 0.704, 0.036),对于桡动脉是(0.104, 0.858, 0.038)。该模型在各次重复中都能获得稳定的数值,肱动脉的脉搏波速度值分别为 5.2m/s、5.3m/s 和 5.9m/s,桡动脉的脉搏波速度值分别为 5.8m/s、6.6m/s 和 6.5m/s。该系统和模型可以获得可靠性更高的 PTT 和脉搏波速度值,从而更好地监测心血管健康状况,如血压和动脉僵化。
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来源期刊
Biosensors and Bioelectronics
Biosensors and Bioelectronics 工程技术-电化学
CiteScore
20.80
自引率
7.10%
发文量
1006
审稿时长
29 days
期刊介绍: Biosensors & Bioelectronics, along with its open access companion journal Biosensors & Bioelectronics: X, is the leading international publication in the field of biosensors and bioelectronics. It covers research, design, development, and application of biosensors, which are analytical devices incorporating biological materials with physicochemical transducers. These devices, including sensors, DNA chips, electronic noses, and lab-on-a-chip, produce digital signals proportional to specific analytes. Examples include immunosensors and enzyme-based biosensors, applied in various fields such as medicine, environmental monitoring, and food industry. The journal also focuses on molecular and supramolecular structures for enhancing device performance.
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