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A study of an electronic nose for detection of lung cancer based on a virtual SAW gas sensors array and imaging recognition method

机译:基于虚拟声表面波气体传感器阵列和成像识别方法的肺癌电子鼻检测研究

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摘要

In this paper, we propose an electronic nose for non-invasive detection and diagnosis of lung cancer based on a kind of virtual array of surface acoustic wave (SAW) gas sensors and an imaging recognition method. It includes a gas path constructed from a two-bag system, solid phase micro extraction (SPME) and a capillary column to pre-concentrate and separate volatile organic compounds (VOCs) in patients' exhaled air. A pair of SAW sensors, one coated with a thin polyisobutylene (PIB) film, is used to detect chemical compounds. Eleven VOCs that are validated as the markers of lung cancer according to a pathology study can be detected qualitatively and quantitatively by this electronic nose. Then, an improved artificial neural network (ANN) algorithm combined with an imaging method is proposed for the recognition of patients. In addition, the concept of a virtual sensors array based on SAW sensors using a capillary column separation technique and imaging is also proposed to simulate a large scale of sensor array response. Finally this e-nose is calibrated by these 11 VOCs separated in three concentrations and is used to diagnose lung cancer patients in Run Run Shaw hospital. The experimental results show that this kind of electronic nose is effective in the recognition of lung cancer patients.
机译:在本文中,我们提出了一种基于表面声波(SAW)气体传感器虚拟阵列和成像识别方法的用于非侵入性检测和诊断肺癌的电子鼻。它包括一条由两袋系统,固相微萃取(SPME)和毛细管柱组成的气体路径,用于预浓缩和分离患者呼出空气中的挥发性有机化合物(VOC)。一对SAW传感器(其中一个涂有聚异丁烯(PIB)薄膜)用于检测化合物。通过该电子鼻可以定性和定量地检测出根据病理研究被确认为肺癌标志物的11种VOC。然后,提出了一种改进的人工神经网络算法和一种成像方法相结合的患者识别方法。此外,还提出了使用毛细管柱分离技术和成像技术基于声表面波传感器的虚拟传感器阵列的概念,以模拟大规模的传感器阵列响应。最后,通过分离为三种浓度的这11种VOC来校准该电子鼻,并用于在Run Run Shaw医院诊断肺癌患者。实验结果表明,这种电子鼻可有效识别肺癌患者。

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