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Authenticity Tracing of Apples According to Variety and Geographical Origin Based on Electronic Nose and Electronic Tongue

机译:基于电子鼻子和电子舌的品种和地理原产地,苹果的真实性追踪

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摘要

A combination of electronic nose (EN) and electronic tongue (ET) was used to trace apples according to apple variety and geographical origin by detecting the squeezed juices. A total of 126 apple samples from seven producing regions in China were analyzed. Principal component analysis (PCA) was displayed to get a primary distribution overview of samples. Linear discriminant analysis (LDA), support vector machine (SVM), and partial least squares discriminant analysis (PLS-DA) were carried out to develop discrimination models based on EN dataset, ET dataset, and the fusion dataset. All LDA, SVM, and PLS-DA models achieved satisfactory discrimination performances. The data fusion method made it possible to build a more robust classification model, and the discrimination ability was better than models based on solely EN dataset or ET dataset. The results demonstrated that EN and ET analysis combined with chemometrics was a promising approach for tracing apples and guaranteeing their authenticity.
机译:通过检测挤压的果汁,电子鼻子(EN)和电子舌和电子舌(ET)的组合用于根据苹果品种和地理来源追踪苹果。分析了中国七个生产区的126个苹果样品。显示主成分分析(PCA)以获得示例的主要分配概述。线性判别分析(LDA),支持向量机(SVM)和偏最小二乘判别分析(PLS-DA),以开发基于en DataSet,ET数据集和融合数据集的辨别模型。所有LDA,SVM和PLS-DA模型都实现了令人满意的辨别性能。数据融合方法使得可以构建更强大的分类模型,并且辨别能力优于基于IN SOLY CN DataSet或ET数据集的模型。结果表明,EN和ET分析与化学测定学结合起来是追踪苹果并保证其真实性的有希望的方法。

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