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A Metal Oxide Gas Sensors Array for Lung Cancer Diagnosis Through Exhaled Breath Analysis

机译:通过呼出气分析诊断肺癌的金属氧化物气体传感器阵列

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Lung cancer high mortality rate is mainly related to late-stage tumor diagnosis. Survival rates and treatments could be greatly improved with an effective early diagnosis. Volatile organic compounds (VOCs) in exhaled breath have been known for long to be linked to the presence of a disease. Exhaled breath analysis for early diagnosis of lung cancer represents a non-invasive, low-cost and user-friendly approach. In this paper we present the design and development of an electronic nose based on a metal oxide sensors array for the early diagnosis of lung cancer. Breath samples collected from healthy controls (n=10) and lung cancer subjects (n=6) were analyzed by the electronic nose, and classification was performed using an artificial neural network (ANN). A sensitivity of 85.7%, specificity of 100%, and accuracy of 93.8% were reached with leave one out cross validation (LOOCV). The presented device demonstrates that a simple, cost-effective, and non-invasive approach based on exhaled breath analysis has the potential to be of great help in decreasing lung cancer mortality.
机译:肺癌高死亡率主要与晚期肿瘤的诊断有关。有效的早期诊断可以大大提高生存率和治疗方法。长期以来,呼出气中的挥发性有机化合物(VOC)与疾病的存在有关。呼气分析用于肺癌的早期诊断代表了一种非侵入性,低成本且用户友好的方法。在本文中,我们介绍了基于金属氧化物传感器阵列的电子鼻的设计和开发,用于肺癌的早期诊断。通过电子鼻分析从健康对照(n = 10)和肺癌受试者(n = 6)收集的呼吸样品,并使用人工神经网络(ANN)进行分类。留一法交叉验证(LOOCV)达到了85.7%的灵敏度,100%的特异性和93.8%的准确度。提出的设备证明,基于呼气分析的简单,经济高效且非侵入性的方法在降低肺癌死亡率方面具有巨大的潜力。

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