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Dynamic Signal Processing for Gas Sensors Based on Hilbert-Huang Transform

机译:基于希尔伯特-黄变换的气体传感器动态信号处理

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Temperature modulation has been proved to be an efficient technique for improving the selectivity and stability of gas sensors. By retrieving information from dynamic signals, new response features are obtained that confer more selectivity to metal oxide sensors. Time-frequency and transient analysis have been widely used in this kind of dynamic signal processing. These methods represent important characteristics of a signal in both time and frequency domain. In this way, essential features of the signal can be viewed and analyzed in order to identify or quantify the detected gases. Very often the fast Fourier transform and the discrete wavelet transform have been used as feature extraction tools. This work presents the application of a new signal processing technique, empirical mode decomposition and the Hilbert spectrum, in analysis of dynamic response signals of gas sensors. Using EMD method, the dynamic signals were decomposed into the intrinsic modes that coexist in the sensor system, and to have a better understanding of the nature of the gas sensing response information contained in the sensor response signals. The experimental results show that marginal spectrum can be used as useful feature for identification. By this method, the intrinsic response components to the analyte may be provided and the extracted features are simple and having intrinsic physical meaning.
机译:温度调制已被证明是一种用于改善气体传感器的选择性和稳定性的有效技术。通过从动态信号中检索信息,可以获得新的响应特征,这些特征赋予金属氧化物传感器更大的选择性。时频分析和瞬态分析已广泛用于这种动态信号处理中。这些方法代表了时域和频域中信号的重要特征。这样,可以查看和分析信号的基本特征,以便识别或量化检测到的气体。通常,快速傅里叶变换和离散小波变换已被用作特征提取工具。这项工作提出了一种新的信号处理技术,经验模态分解和希尔伯特谱在气体传感器动态响应信号分析中的应用。使用EMD方法,将动态信号分解为传感器系统中共存的固有模式,以更好地理解传感器响应信号中包含的气体传感响应信息的性质。实验结果表明,边际光谱可以用作识别的有用特征。通过这种方法,可以提供对分析物的固有响应成分,并且所提取的特征是简单的并且具有固有的物理意义。

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