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Hyperspectral imaging for mushroom (agaricus bisporus) quality monitoring

机译:用于蘑菇(姬松茸)质量监测的高光谱成像

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摘要

A method for mushroom quality grading based on hyperspectral image analysis in the wavelength range 400-1000 nm is presented. Different spectral and spatial pretreatments were investigated to reduce the effect of sample curvature on hyperspectral data. Algorithms based on chemometric techniques (Principal Component Analysis and Partial Least Squares Discriminant Analysis) and image processing methods (masking, thresholding, morphological operations) were developed for pixel classification in hyperspectral images.
机译:提出了一种基于波长范围400-1000nm的高光谱图像分析的蘑菇质量分级方法。研究了不同的光谱和空间预处理,以减少样品曲率对高光谱数据的影响。基于化学计量技术的算法(主成分分析和局部最小二乘判别分析)和图像处理方法(掩蔽,阈值,形态操作),用于高光谱图像中的像素分类。

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