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Screening analysis of wines using flow-batch analyzer, UV-VIS spectroscopy and chemometrics

机译:使用分批分析仪,UV-VIS光谱学和化学计量学对葡萄酒进行筛选分析

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A simple, robust, versatile, high analytical frequency method was proposed to check if a sample of wine is within the range of standards set by the manufacturer, using the UV-VIS spectroscopy, multivariate analysis and a flow-batch analyzer. Two hundred and fifty-two samples of wines were analyzed. The results from the application of Hierachical Cluster Analysis (HCA) to the matrix of the data involving all samples show the formation of fifteen types of wine. A Soft Independent Modelling of Class Analogy (SIMCA) model was constructed and used to classify the samples of the overall forecast. As a result, it is observed that the prediction was performed with a success rate of 99.2% for a confidence level of 95%. This shows that the proposed methodology can be used as an effective tool for classifying of samples of wines.
机译:提出了一种简单,可靠,通用,高分析频率的方法,以使用UV-VIS光谱,多元分析和分流分析仪检查葡萄酒样品是否在制造商设定的标准范围内。分析了252个葡萄酒样品。将层次聚类分析(HCA)应用于涉及所有样品的数据矩阵的结果表明,形成了15种葡萄酒。建立了类比的软独立建模(SIMCA)模型,并将其用于对总体预测的样本进行分类。结果,观察到以95%的置信度以99.2%的成功率进行了预测。这表明,所提出的方法可以用作对葡萄酒样品进行分类的有效工具。

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