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Authentication of Trappist Beers by LC-MS Fingerprints and Multivariate Data Analysis

机译:LC-MS指纹图谱和多元数据分析对特拉珀啤酒的认证

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The aim of this study was to asses the applicability of LC-MS profiling to authenticate a selected Trappist beer as part of a program on traceability funded by the European Commission. A total of 232 beers were fingerprinted and classified through multivariate data analysis. The selected beer was clearly distinguished from beers of different brands, while only 3 samples (3.5% of the test set) were wrongly classified when compared with other types of beer of the same Trappist brewery. The fingerprints were further analyzed to extract the most discriminating variables, which proved to be sufficient for classification, even using a simplified unsupervised model. This reduced fingerprint allowed us to study the influence of batch-to-batch variability on the classification model. Our results can easily be applied to different matrices and they confirmed the effectiveness of LC-MS profiling in combination with multivariate data analysis for the characterization of food products.
机译:这项研究的目的是,评估由欧洲委员会资助的可追溯性计划的一部分,以对LC-MS谱图进行鉴定来验证所选Trappist啤酒的适用性。通过多变量数据分析对总共232杯啤酒进行了指纹识别和分类。所选啤酒与不同品牌的啤酒有明显区别,而与同一Trappist啤酒厂的其他类型的啤酒相比,只有3个样品(占测试集的3.5%)被错误分类。对指纹进行了进一步分析,以提取最具区分性的变量,即使使用简化的无监督模型,事实证明也足以进行分类。减少的指纹使我们能够研究批次间变异性对分类模型的影响。我们的结果可以轻松地应用于不同的基质,并且他们证实了LC-MS分析与多变量数据分析相结合用于表征食品的有效性。

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