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Comparison of different analytical classification scenarios: application for the geographical origin of edible palm oil by sterolic (NP) HPLC fingerprinting

机译:不同分析分类方案的比较:通过固醇(NP)HPLC指纹图谱在食用棕榈油的地理来源中的应用

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摘要

This work shows how the best scenario, which applies two chemometric classifiers on different analytical datasets from the same sample set, could be chosen according to the classification results. To this end, several classification quality features such as sensitivity (or recall), specificity, positive (or precision) and negative predictive values, Youden index, positive and negative likelihood ratios, F-measure (or F-score), discriminant power, efficiency (or accuracy), AUC (area under the receiver operating curve), Matthews correlation coefficient, Kappa coefficient, overall agreement probability, overall agreement probability from chance and overall Kappa coefficient are described and discussed. As an application example, two sterolic chromatographic fingerprints obtained from two different normal-phase HPLC systems are used to discern the geographical origin (South-East Asia, West Africa and South America) of edible palm oil. In each case, two conventional and well-known chemometric classification methods are applied: soft independent modelling by class analogy (SIMCA) and partial least squares-discriminant analysis (PLS-DA).
机译:这项工作显示了如何根据分类结果选择将两个化学计量分类器应用于来自同一样品集的不同分析数据集的最佳方案。为此,我们提供了几种分类质量功能,例如敏感性(或召回率),特异性,阳性(或精密度)和阴性预测值,Youden指数,阳性和阴性似然比,F量度(或F评分),判别力,描述并讨论了效率(或准确性),AUC(接收器工作曲线下的面积),Matthews相关系数,Kappa系数,总体一致性概率,偶然性的总体一致性概率和总体Kappa系数。作为一个应用实例,从两个不同的正相HPLC系统获得的两个立体色谱指纹图谱可用于辨别食用棕榈油的地理来源(东南亚,西非和南美)。在每种情况下,都应用了两种常规的和众所周知的化学计量学分类方法:通过类比进行软独立建模(SIMCA)和偏最小二乘判别分析(PLS-DA)。

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