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Mathematical modelling and simulation analysis of a modified Butterworth van Dyke circuit model for non-invasive diabetes detection

机译:修正的Butterworth van Dyke回路模型用于非侵入性糖尿病检测的数学建模和仿真分析

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摘要

In recent times, there is an intense need for a reliable non-invasive diabetes prediction system. Some of the researches in this field suggest that acetone gas in breath has a good correlation to blood glucose levels. Hence, acetone is emerging as a promising bio-marker in diabetes prediction. In this study, acetone levels are measured using quartz crystal microbalance sensor that has wide-scale application as a bio-sensor. It is a piezoelectric sensor which is used to detect and quantify mass variations. The resonant frequency of the sensor changes when there is a deposition of mass on the surface of the crystal. The shift in resonant frequency is directly proportional to the change in the mass concentration. To estimate the performance of this sensor, it is required to understand the sensor's electrical characteristics such as its conductance gain and admittance. This study studies these characteristics and evaluates the behaviour of the sensor in the presence of various acetone concentrations in breath sample for healthy, type 1 and type 2 diabetic subjects.
机译:近年来,强烈需要可靠的非侵入性糖尿病预测系统。该领域的一些研究表明,呼吸中的丙酮气体与血糖水平具有良好的相关性。因此,丙酮正在成为糖尿病预测中有希望的生物标志物。在这项研究中,使用石英晶体微量天平传感器作为生物传感器具有广泛的应用来测量丙酮水平。它是一种压电传感器,用于检测和量化质量变化。当在晶体表面上有质量沉积时,传感器的共振频率会发生变化。共振频率的变化与质量浓度的变化成正比。要估算此传感器的性能,需要了解传感器的电气特性,例如电导增益和导纳。这项研究研究了这些特征,并评估了健康,1型和2型糖尿病患者在呼吸样品中存在各种丙酮浓度时传感器的行为。

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