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A precise non-invasive blood glucose measurement system using NIR spectroscopy and Huber's regression model

机译:使用NIR光谱和Huber回归模型的精确无创血糖测量系统

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摘要

Diabetes is one of the prominent diseases around the world. Presently, invasive techniques need a finger prick blood sample . A repetitively painful procedure that produces the chance of infection. To resolve this issue, non-invasive measurement approach is proposed. In this paper, an efficient NIR wave based optical detection system is proposed with optimized post-processing regression model. After real-time data analysis, it has been found that the coefficient of determination (R2) is improved with the value of 0.9084 using proposed regression model. Mean absolute derivative is also increased with 3.87mg/dl corresponding to predicted blood glucose concentration. Mean absolute relative difference has exceeded to 3.25%, and average error is improved with 3.77% using proposed regression model. Average accuaracy has been analyzed 94-95% for predicted blood glucose concentration.
机译:糖尿病是世界上最重要的疾病之一。目前,侵入性技术需要手指刺血样。反复痛苦的过程会导致感染机会。为了解决这个问题,提出了无创测量方法。本文提出了一种有效的基于近红外波的光学检测系统,该系统具有优化的后处理回归模型。经过实时数据分析,发现使用建议的回归模型可以将确定系数(R2)提高到0.9084。平均绝对导数也增加了3.87mg / dl,对应于预测的血糖浓度。使用建议的回归模型,平均绝对相对差异已超过3.25%,平均误差提高了3.77%。已对94-95%的预测血糖浓度进行了平均准确度分析。

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