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Quality control of saffron and evaluation of potential adulteration by means of thin layer chromatography-image analysis and chemometrics methods

机译:藏红花的质量控制与薄层色谱 - 图像分析和化学计量方法评价潜在掺假

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Saffron (Crocus sativus) stigmas as a flavoring commodity command a very high price in international food markets and, as a result, are a candidate for various kinds of fraud. This paper reports on the use of thin layer chromatography combined with image analysis (TLC-IA) and chemometrics techniques for validating the authenticity of saffron and rapidly identifying the type of adulterants. This method includes several pre-processing steps, such as correcting the general baseline (using the asymmetric least squares (AsLS) algorithm), converting the images to RGB chromatographic channels, and removing the shifts and concavity of spots (using a correlation optimization warping (COW) algorithm) prior to image analysis of saffron thin layer chromatography patterns. After employing the preprocessing sequence, different unsupervised multivariate data analysis (i.e. principal component analysis (PCA) and k-means) and supervised chemometric methods (i.e. partial least squares discrimination analysis (PLS-DA), variable selection (loading weight and variable importance in projection (VIP)) and linear discriminant analysis (LDA)) were applied to validate the authenticity of saffron and to classify the types of adulterants. As a result, quality control of Iranian sourced saffron in the international food market became possible. (C) 2018 Elsevier Ltd. All rights reserved.
机译:番红花(番红花Sativus)剧场作为国际食物市场的调味商品指挥价格非常高,因此是各种欺诈的候选人。本文有关使用薄层色谱和图像分析(TLC-IA)和化学计量技术的使用报告,用于验证藏红花的真实性,并迅速识别掺假类型。该方法包括若干预处理步骤,例如校正一般基线(使用不对称最小二乘(ASL)算法),将图像转换为RGB色谱频道,并去除斑点的偏移和凹陷(使用相关优化翘曲(母牛)算法)在藏红花薄层色谱图案的图像分析之前。在采用预处理序列之后,不同无监督的多变量数据分析(即主成分分析(PCA)和K均值)和监督化学计量方法(即偏最小二乘辨别分析(PLS-DA),可变选择(加载权重和可变重要性投影(VIP))和线性判别分析(LDA))被应用于验证藏红花的真实性,并分类掺假类型的类型。因此,国际食品市场中伊朗采购藏红花的质量控制变得可能。 (c)2018年elestvier有限公司保留所有权利。

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