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A new gases identification method based on noise spectroscopy using metal-oxide gas sensors

机译:基于噪声光谱的金属氧化物气体传感器气体识别新方法

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Electronic nose is a system, which can be used to identify the nature of gases using a sensors array. In this paper, we propose to present an electronic nose (E-nose) based on noise spectroscopy of metal-oxide (MOX) gas sensor response. After measuring the power density spectrum (PDS) of the gas sensor noise generated when the sensor is exposed to the tested gas, the obtained signal (PDS) is plotted and computed in order to extract a new feature that will be considered as a gas signature and used to identify the gas. The data array composed of eight measures (four different concentrations for nitrogen dioxide and ozone) and three variables (three sensors) has been inserted into principal component analysis (PCA) process. Results indicate that successful classifications have been gotten in the discrimination of two sort of gas using support vector machine (SVM) which shows 100% of success rate. The result of data analysis demonstrates that the E-nose technology combined with noise spectroscopy could be perfectly applied to identify pollutant gases.
机译:电子鼻是一个系统,可以使用传感器阵列来识别气体的性质。在本文中,我们建议提出一种基于金属氧化物(MOX)气体传感器响应噪声谱的电子鼻(E-nose)。在测量了将传感器暴露于被测气体时产生的气体传感器噪声的功率密度谱(PDS)之后,对获得的信号(PDS)进行绘图和计算,以提取出将被视为气体特征的新特征并用来识别气体。由八种测量(二氧化氮和臭氧的四种不同浓度)和三个变量(三个传感器)组成的数据阵列已被插入到主成分分析(PCA)过程中。结果表明,使用支持向量机(SVM)对两种气体进行判别已获得成功的分类,显示成功率达100%。数据分析结果表明,电子鼻技术与噪声光谱技术相结合可以完美地用于识别污染物气体。

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