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Discrimination of Chinese Liquors Based on Electronic Nose and Fuzzy Discriminant Principal Component Analysis

机译:基于电子鼻和模糊判别主成分分析的白酒鉴别

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摘要

The detection of liquor quality is an important process in the liquor industry, and the quality of Chinese liquors is partly determined by the aromas of the liquors. The electronic nose (e-nose) refers to an artificial olfactory technology. The e-nose system can quickly detect different types of Chinese liquors according to their aromas. In this study, an e-nose system was designed to identify six types of Chinese liquors, and a novel feature extraction algorithm, called fuzzy discriminant principal component analysis (FDPCA), was developed for feature extraction from e-nose signals by combining discriminant principal component analysis (DPCA) and fuzzy set theory. In addition, principal component analysis (PCA), DPCA, K-nearest neighbor (KNN) classifier, leave-one-out (LOO) strategy and k-fold cross-validation (k = 5, 10, 20, 25) were employed in the e-nose system. The maximum classification accuracy of feature extraction for Chinese liquors was 98.378% using FDPCA, showing this algorithm to be extremely effective. The experimental results indicate that an e-nose system coupled with FDPCA is a feasible method for classifying Chinese liquors.
机译:白酒质量的检测是白酒工业中的重要过程,而中国白酒的质量部分取决于白酒的香气。电子鼻(电子鼻)是指人工嗅觉技术。电子鼻系统可以根据它们的香气快速检测不同类型的白酒。在这项研究中,设计了一种电子鼻系统来识别六种白酒,并开发了一种新的特征提取算法,称为模糊判别主成分分析(FDPCA),通过结合判别原理从电子鼻信号中提取特征成分分析(DPCA)和模糊集理论。此外,采用了主成分分析(PCA),DPCA,K近邻(KNN)分类器,留一法(LOO)策略和k倍交叉验证(k = 5、10、20、25)在电子鼻系统中。使用FDPCA进行白酒特征提取的最大分类精度为98.378%,表明该算法非常有效。实验结果表明,电子鼻系统与FDPCA结合是一种可行的白酒分类方法。

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