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Penetration Depth Measurement of Near-Infrared Hyperspectral Imaging Light for Milk Powder

机译:奶粉的近红外高光谱成像光的穿透深度测量

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摘要

The increasingly common application of the near-infrared (NIR) hyperspectral imaging technique to the analysis of food powders has led to the need for optical characterization of samples. This study was aimed at exploring the feasibility of quantifying penetration depth of NIR hyperspectral imaging light for milk powder. Hyperspectral NIR reflectance images were collected for eight different milk powder products that included five brands of non-fat milk powder and three brands of whole milk powder. For each milk powder, five different powder depths ranging from 1 mm–5 mm were prepared on the top of a base layer of melamine, to test spectral-based detection of the melamine through the milk. A relationship was established between the NIR reflectance spectra (937.5–1653.7 nm) and the penetration depth was investigated by means of the partial least squares-discriminant analysis (PLS-DA) technique to classify pixels as being milk-only or a mixture of milk and melamine. With increasing milk depth, classification model accuracy was gradually decreased. The results from the 1-mm, 2-mm and 3-mm models showed that the average classification accuracy of the validation set for milk-melamine samples was reduced from 99.86% down to 94.93% as the milk depth increased from 1 mm–3 mm. As the milk depth increased to 4 mm and 5 mm, model performance deteriorated further to accuracies as low as 81.83% and 58.26%, respectively. The results suggest that a 2-mm sample depth is recommended for the screening/evaluation of milk powders using an online NIR hyperspectral imaging system similar to that used in this study.
机译:近红外(NIR)高光谱成像技术在食品粉末分析中的日益普遍的应用导致对样品进行光学表征的需求。这项研究的目的是探索量化乳粉近红外高光谱成像光的穿透深度的可行性。收集了八种不同奶粉产品的高光谱NIR反射率图像,其中包括五个品牌的脱脂奶粉和三个品牌的全脂奶粉。对于每种奶粉,在三聚氰胺基础层的顶部准备了五种不同的粉末深度,范围从1 mm至5 mm,以测试通过光谱检测牛奶中的三聚氰胺。在NIR反射光谱(937.5–1653.7 nm)之间建立了关系,并通过偏最小二乘判别分析(PLS-DA)技术研究了穿透深度,以将像素分类为纯牛奶或牛奶混合物和三聚氰胺。随着牛奶深度的增加,分类模型的准确性逐渐降低。 1-mm,2-mm和3-mm模型的结果表明,随着牛奶深度从1 mm–3的增加,牛奶-三聚氰胺样品验证集的平均分类准确性从99.86%降低到94.93%。毫米随着牛奶深度增加到4毫米和5毫米,模型性能进一步恶化,精确度分别降至81.83%和58.26%。结果表明,建议使用与本研究类似的在线NIR高光谱成像系统,对2 mm的样品深度进行乳粉的筛查/评估。

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