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Data fusion in electronic tongue for qualitative analysis of beers

机译:电子舌中的数据融合,用于啤酒的定性分析

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This paper presents the development of an Electronic Tongue based on two different arrays of electrochemical sensors (i.e. potentiometric and voltammetric) for the identification of three styles of beer. Conventionally, electrochemical measurements contain hundreds of records and cannot be processed directly, due to its high data dimension. Therefore, information obtained from both sensor families was prepossessed in order to extract representative features and then fused to improve the classification ability regarding to the use of single sensor data. On the one hand, Discrete Wavelet Transform and statistical procedures were employed as feature extraction techniques. On the other hand, classification model was build using Linear Discriminant Analysis and validated by Leave-one-out cross-validation procedure. Final results demonstrate that the ET employing data fusion is able to distinguish 100% of the types of beer as well as its manufacturing process.
机译:本文介绍了基于两种不同的电化学传感器阵列(即电位和伏安)的电子舌的开发,用于识别三种样式的啤酒。通常,电化学测量包含数百条记录,由于其数据量大,因此无法直接进行处理。因此,提出从两个传感器家族获得的信息,以提取代表性特征,然后融合以提高有关使用单个传感器数据的分类能力。一方面,采用离散小波变换和统计程序作为特征提取技术。另一方面,使用线性判别分析建立了分类模型,并通过留一法交叉验证程序对其进行了验证。最终结果表明,采用数据融合技术的ET能够区分100%的啤酒类型及其制造工艺。

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