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A Transient Signal Extraction Method of WO3 Gas Sensors Array to Identify Polluant Gases

机译:WO 3 气体传感器阵列瞬态信号提取识别污染气体

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摘要

Electronic nose is a system, which can determine the fingerprint of gas sample by a sensor array coupled to pattern recognition system. In this paper, a sensor array based on WO gas sensor has been described, and a feature extraction technique, including integral and primary derivative, is reported, which leads to higher classification performance as compared to the classical features: fractional resistance change and . The sensor array has been exposed to ozone, ethanol, acetone, and a mixture of ozone and ethanol while keeping the temperature constant. The data array has been normalized and auto scaled then analyzed with the principal component analysis. Results indicate that successful classifications have been gotten in the discrimination of three kinds of oxidizing and reducing gas with the proposed feature extraction method using support vector machine which shows that 97.5% were correctly discriminated with integral and primary derivate comparing the classical variable with 85%. The results of data analysis implied that coupling the extracted features in the same database would be interesting and more robust then the standards features.
机译:电子鼻是一个系统,可以通过耦合到模式识别系统的传感器阵列确定气体样本的指纹。本文描述了一种基于WO气体传感器的传感器阵列,并报道了一种包括积分和一次导数在内的特征提取技术,与经典特征相比,该技术具有更高的分类性能:分数电阻变化和。传感器阵列已暴露在臭氧,乙醇,丙酮以及臭氧和乙醇的混合物中,同时保持温度恒定。数据数组已标准化并自动缩放,然后使用主成分分析进行了分析。结果表明,利用支持向量机提出的特征提取方法,在区分三种氧化还原气体方面已获得成功的分类。结果表明,将经典变量与原始变量进行比较,正确积分和一次导数的正确识别率为97.5%。数据分析的结果表明,在同一数据库中耦合提取的特征将是有趣的,并且比标准特征更健壮。

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