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Detection and quantification of peanut traces in wheat flour by near infrared hyperspectral imaging spectroscopy using principal-component analysis

机译:基于主成分分析的近红外高光谱成像光谱法检测和定量测定小麦粉中的痕量花生

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The use of a common environment for processing different powder foods in the industry has increased the risk of finding peanut traces in powder foods. The analytical methods commonly used for detection of peanut such as enzyme-linked immunosorbent assay (ELISA) and real-time polymerase chain reaction (RT-PCR) represent high specificity and sensitivity but are destructive and time-consuming, and require highly skilled experimenters. The feasibility of NIR hyperspectral imaging WISH is studied for the detection of peanut traces down to 0.01% by weight. A principal-component analysis IPCA) was carried out on a dataset of peanut and flour spectra. The obtained Loadings were applied to the HSI images of adulterated wheat flour samples with peanut traces. As a result, HSI images were reduced to score images with enhanced contrast between peanut and flour particles. Finally, a threshold was fixed in score images to obtain a binary classification image, and the percentage of peanut adulteration was compared with the percentage of pixels identified as peanut particles. This study allowed the detection of traces of peanut down to 0.01% and quantification of peanut adulteration from 10% to 0.1% with a coefficient of determination (r(2)) of 0.946. These results show the feasibility of using HSI systems for the detection of peanut traces in conjunction with chemical procedures, such as RT-PCR and ELISA to facilitate enhanced quality-control surveillance on food-product processing lines.
机译:在工业中使用通用环境加工不同的粉状食品增加了在粉状食品中发现花生痕迹的风险。通常用于检测花生的分析方法(例如酶联免疫吸附测定(ELISA)和实时聚合酶链反应(RT-PCR))具有很高的特异性和敏感性,但具有破坏性且耗时,需要高技能的实验人员。研究了近红外高光谱成像WISH用于检测低至0.01%重量的花生痕迹的可行性。对花生和面粉光谱数据集进行了主成分分析(IPCA)。将获得的载荷应用于掺有花生痕迹的掺假小麦粉样品的HSI图像。结果,HSI图像被缩小以评分花生和面粉颗粒之间对比度增强的图像。最后,在得分图像中固定阈值以获得二元分类图像,并将花生掺假百分比与识别为花生颗粒的像素百分比进行比较。这项研究允许检测到痕量花生的含量降至0.01%,定量定量从10%到0.1%的花生掺杂,测定系数(r(2))为0.946。这些结果表明,结合化学程序(例如RT-PCR和ELISA)使用HSI系统检测花生中的痕迹的可行性,以促进食品生产线上对质量控制的监控。

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