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Non-invasive Glucose Measurement Based on Ultrasonic Transducer and Near IR Spectrometer

机译:基于超声换能器和近红外光谱仪的非侵入性葡萄糖测量

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This paper studies a noninvasive method to measure glucose level based on ultrasonic transducer and near infrared spectrometer. A series pair data of ultrasonic transducer from human finger, palm, wrist and arm are collected six times a day, and 16 spectral data of NIR spectrometer (reflection) from finger are collected by an OGTT experiment. The collected data are calibrated by using partial least squares regression and feed-forward back-propagation artificial neural network to predict the glucose level. In this study, error grid analysis is used to validate the prediction performance. In addition, the accuracy of the calibration models is improved.
机译:本文研究了基于超声换能器和近红外光谱仪测量葡萄糖水平的非侵入性方法。从人体手指,手掌,手臂和臂的超声换能器系列的系列数据,每天收集六次,并通过OGTT实验收集来自手指的NIR光谱仪(反射)的16个光谱数据。通过使用局部最小二乘回归和前馈回传播人工神经网络来校准收集的数据以预测葡萄糖水平。在本研究中,错误网格分析用于验证预测性能。此外,校准模型的准确性得到改善。

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