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Coupling proton transfer reaction-mass spectrometry with linear discriminant analysis: a case study.

机译:质子转移反应质谱与线性判别分析的耦合:一个案例研究。

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Proton transfer reaction-mass spectrometry (PTR-MS) measurements on single intact strawberry fruits were combined with an appropriate data analysis based on compression of spectrometric data followed by class modeling. In a first experiment 8 of 9 different strawberry varieties measured on the third to fourth day after harvest could be successfully distinguished by linear discriminant analysis (LDA) on PTR-MS spectra compressed by discriminant partial least squares (dPLS). In a second experiment two varieties were investigated as to whether different growing conditions (open field, tunnel), location, and/or harvesting time can affect the proposed classification method. Internal cross-validation gives 27 successes of 28 tests for the 9 varieties experiment and 100% for the 2 clones experiment (30 samples). For one clone, present in both experiments, the models developed for one experiment were successfully tested with the homogeneous independent data of the other with success rates of 100% (3 of 3) and 93% (14 of 15), respectively. This is an indication that the proposed combination of PTR-MS with discriminant analysis and class modeling provides a new and valuable tool for product classification in agroindustrial applications.
机译:对单个完整草莓果实的质子转移反应质谱(PTR-MS)测量与基于光谱数据压缩的适当数据分析相结合,然后进行类建模。在第一个实验中,可以在通过判别偏最小二乘(dPLS)压缩的PTR-MS光谱上通过线性判别分析(LDA)成功地区分收获后第三至第四天测得的9个不同草莓品种中的8个。在第二个实验中,研究了两个变种,以确定不同的生长条件(开阔地,隧道),位置和/或收获时间是否会影响建议的分类方法。内部交叉验证对9个品种实验给出了28个测试的27个成功案例,对两个克隆实验给出了100%的成功(30个样本)。对于两个实验中都存在的一个克隆,成功地用另一个的同类独立数据测试了一个实验开发的模型,成功率分别为100%(3分之3)和93%(14分之15)。这表明,拟议的PTR-MS与判别分析和分类建模的组合为农业工业应用中的产品分类提供了一种新的有价值的工具。

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