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Determination of glucose and Hba1c values in blood from human breath by using Radial Basis Function Neural Network via electronic nose

机译:径向基函数神经网络通过电子鼻测定人呼吸血液中的葡萄糖和Hba1c值

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In this study, it is aimed to be determined glucose and HbA1c values in blood from the human breath by using electronic nose. It is known that the rate of acetone in human breath changes in diabetes. Electronic nose data is compared against glucose and HbA1c parameters in blood by using Radial Basis Function Neural Network. The minimum error rate is %24,62 for glucose parameter predictions and the minimum error rate is %14,92 for HbA1c parameter predictions. The work has been conducted in the scope of TUBITAK Project, No: 104E053.
机译:在这项研究中,旨在通过使用电子鼻从人的呼吸中确定血液中的葡萄糖和HbA1c值。众所周知,糖尿病人口中丙酮的比率会发生变化。使用径向基函数神经网络将电子鼻数据与血液中的葡萄糖和HbA1c参数进行比较。对于葡萄糖参数预测,最小错误率是%24,62,对于HbA1c参数预测,最小错误率是%14,92。这项工作是在TUBITAK项目,编号:104E053的范围内进行的。

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