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Classification of individual cotton seeds with respect to variety using near-infrared hyperspectral imaging

机译:使用近红外高光谱成像对棉花种子进行分类

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This paper proposes the use of Near Infrared Hyperspectral Imaging (NIR-HSI) as a new strategy for fast and non-destructive classification of cotton seeds with respect to variety. A total of 807 seeds of four different cotton varieties are employed in this study. For classification purposes, each seed is represented by an average spectrum obtained by coaveraging the pixel spectra of the NIR-HSI image. Conventional NIR and VIS-NIR spectra are also employed for comparison. By using Partial-Least-Squares Discriminant Analysis (PLS-DA), correct classification rates of 98.0%, 89.7% and 91.7% were achieved in the NIR-HSI, conventional NIR and conventional VIS-NIR datasets. The superiority of the NIR-HSI system can be ascribed to a more comprehensive scan of the seed area, as compared to the conventional VIS-NIR spectrometer.
机译:本文提出使用近红外高光谱成像(NIR-HSI)作为针对棉种进行快速和无损分类的新策略。这项研究共使用了四种不同棉花品种的807种种子。为了分类的目的,每个种子由通过对NIR-HSI图像的像素光谱求平均而获得的平均光谱表示。常规的NIR和VIS-NIR光谱也用于比较。通过使用偏最小二乘判别分析(PLS-DA),在NIR-HSI,常规NIR和常规VIS-NIR数据集中,正确分类率达到98.0%,89.7%和91.7%。与常规VIS-NIR光谱仪相比,NIR-HSI系统的优越性可以归因于种子区域的更全面扫描。

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