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Design and Implementation of Oral Odor Detection System for Diabetic Patients

机译:糖尿病患者口腔异味检测系统的设计与实现

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摘要

The oral odor of human beings is directly related to the disease of the human body. The content of acetone inthe exhaled gas can be used as an important basis for judging diabetes. Based on the electronic nose (enose)technology, this paper optimizes the metal oxide semiconductor gas sensor array in the gas collectionsystem to design a non-invasive early oral odor detection system for diabetes. The original data is reduced indimension by principal component analysis algorithm and artificial neural network algorithm. The experimentalresults show that the oral odor detection system has high identification and accuracy for the content ofacetone in the exhaled gas. The accuracy of sample identification on fasting is 85%, and the accuracy rate isup to 98% one hour after meal, and it is 92% two hours after meal. This study provides theoretical guidancefor early non-invasive diagnosis of diabetes.
机译:人的口腔异味与人体疾病直接相关。丙酮含量 呼出气可以作为判断糖尿病的重要依据。基于电子鼻(鼻) 技术,本文对气体收集中的金属氧化物半导体气体传感器阵列进行了优化 系统设计用于糖尿病的非侵入性早期口腔异味检测系统。原始数据在 主成分分析算法和人工神经网络算法对维数进行计算。实验性 结果表明,口腔异味检测系统具有较高的识别率和准确性。 呼出气体中的丙酮。禁食时样本识别的准确度为85%,准确率为 饭后一小时可达98%,饭后两小时可达92%。这项研究提供了理论指导 用于糖尿病的早期非侵入性诊断。

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