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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >FT-Raman and NIR spectroscopy data fusion strategy for multivariate qualitative analysis of food fraud
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FT-Raman and NIR spectroscopy data fusion strategy for multivariate qualitative analysis of food fraud

机译:FT-拉曼光谱和近红外光谱数据融合策略用于食品欺诈的多定性分析

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Two data fusion strategies (high- and mid-level) combined with a multivariate classification approach (Soft Independent Modelling of Class Analogy, SIMCA) have been applied to take advantage of the synergistic effect of the information obtained from two spectroscopic techniques: FT-Raman and NIR. Mid-level data fusion consists of merging some of the previous selected variables from the spectra obtained from each spectroscopic technique and then applying the classification technique. High-level data fusion combines the SIMCA classification results obtained individually from each spectroscopic technique. Of the possible ways to make the necessary combinations, we decided to use fuzzy aggregation connective operators. As a case study, we considered the possible adulteration of hazelnut paste with almond. Using the two-class SIMCA approach, class 1 consisted of unadulterated hazelnut samples and class 2 of samples adulterated with almond. Models performance was also studied with samples adulterated with chickpea. The results show that data fusion is an effective strategy since the performance parameters are better than the individual ones: sensitivity and specificity values between 75% and 100% for the individual techniques and between 96-100% and 88-100% for the mid- and high-level data fusion strategies, respectively. (C) 2016 Elsevier B.V. All rights reserved.
机译:两种数据融合策略(高级和中级)与多元分类方法(类比的软件独立建模,SIMCA)相结合已被利用,以利用从两种光谱技术获得的信息的协同效应:FT-拉曼光谱和NIR。中级数据融合包括合并从每种光谱技术获得的光谱中先前选择的一些变量,然后应用分类技术。高级数据融合结合了从每种光谱技术分别获得的SIMCA分类结果。在进行必要组合的可能方法中,我们决定使用模糊聚合连接算子。作为案例研究,我们考虑了将榛子酱和杏仁掺假的可能性。使用两类SIMCA方法,第1类由未掺杂的榛子样品组成,第2类由掺有杏仁的样品组成。还用掺有鹰嘴豆的样品研究了模型性能。结果表明,数据融合是一种有效的策略,因为性能参数要优于单个参数:灵敏度和特异性值在单个技术中介于75%和100%之间,在中值之间介于96-100%和88-100%之间。和高级数据融合策略。 (C)2016 Elsevier B.V.保留所有权利。

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