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Discrimination between durum and common wheat kernels using near infrared hyperspectral imaging

机译:杜伦姆与普通小麦内核之间的歧视使用近红外高光谱成像

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摘要

According to Italian regulation, 3% of common wheat - CW (Triticum aestivum) in durum wheat - DW (Triticum durum) is the maximum permitted to produce pasta. Therefore, efficient methods for the detection of accidental or intentional contamination of DW products with CW are required. Until now, all the studies dealing with the detection of CW in DW have been mainly based on macroscopic, microscopic or molecular biology methods. In this recent work, near infrared (NIR) hyperspectral imaging was evaluated as a tool for discriminating between both species of wheat at the singulated kernel and bulk sample levels. This study involved the analysis of 77 samples of DW and 180 samples of CW. NIR images were acquired on a total of 4112 kernels at kernel level and on a total of approximately 51.4 kg of kernels at bulk level. To discriminate DW from CW, four approaches were studied based on morphological criteria, NIR spectral profile, protein content criteria and ratio of vitreous/non-vitreous kernels. Partial least squares discriminant analysis was used as a classification method for the construction of the discrimination models. Results showed that a combination of morphological and NIR spectral approaches could detect fraud in sample classification with 99% accuracy.
机译:根据意大利法规,3%的常见小麦 - CW(Triticum aestivum)在杜伦姆小麦 - DW(Triticum Durum)是允许生产意大利面的最大值。因此,需要有效地检测具有CW的DW产品的意外或有意污染的方法。到目前为止,处理DW中CW检测的所有研究主要是基于宏观,微观或分子生物学方法。在该最近的工作中,近红外(NIR)高光谱成像被评估为用于在单一的核和散装样品水平的两种小麦之间区分的工具。本研究涉及分析77个样品的DW和180个样品的CW。在籽粒水平的总共4112个内核中获得了NIR图像,并且总共约51.4千克籽粒。为了区分CW的DW,基于形态学标准,NIR光谱分布,蛋白质含量标准和玻璃体/非玻璃核的比例研究了四种方法。部分最小二乘判别分析用作用于构建辨别模型的分类方法。结果表明,形态学和NIR光谱方法的组合可以检测样品分类中的欺诈,精度为99%。

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