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Identification and Evaluation of Composition in Food Powder Using Point-Scan Raman Spectral Imaging

机译:点扫描拉曼光谱成像技术鉴定和评估食品粉中的成分

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This study used Raman spectral imaging coupled with self-modeling mixture analysis (SMA) for identification of three components mixed into a complex food powder mixture. Vanillin, melamine, and sugar were mixed together at 10 different concentration level (1% to 10%, w/w) into powdered non-dairy creamer. SMA was used to decompose the complex multi-component spectra and extract the pure component spectra and corresponding contribution images. Spectral information divergence (SID) values of the extracted pure component spectra and reference component spectra were computed to identify the components corresponding to the extracted spectra. The contribution images obtained via SMA were used to create Raman chemical images of the mixtures samples, to which threshold values were applied to obtain binary detection images of the components at all concentration levels. The detected numbers of pixels of each component in the binary images was found to be strongly correlated with the actual sample concentrations (correlation coefficient of 0.99 for all components). The results show that this method can be used for simultaneous identification of different components and estimation of their concentrations for authentication or quantitative inspection purposes.
机译:这项研究使用拉曼光谱成像和自建模混合物分析(SMA)来识别混合到复杂食品粉末混合物中的三种成分。将香兰素,三聚氰胺和糖以10种不同的浓度水平(1%至10%,w / w)混合在一起,制成粉末状非乳制奶精。 SMA用于分解复杂的多组分光谱,并提取纯组分光谱和相应的贡献图像。计算提取的纯组分光谱和参考组分光谱的光谱信息散度(SID)值,以识别与提取的光谱相对应的组分。通过SMA获得的贡献图像用于创建混合物样品的拉曼化学图像,对其施加阈值以获取所有浓度水平下的组分的二元检测图像。发现二进制图像中每种成分的检测像素数与实际样品浓度高度相关(所有成分的相关系数均为0.99)。结果表明,该方法可用于同时鉴定不同成分并估算其浓度,以进行鉴定或定量检查。

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