首页> 外文期刊>Computers and Electronics in Agriculture >Near-infrared hyperspectral reflectance imaging for detection of bruises on pickling cucumbers.
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Near-infrared hyperspectral reflectance imaging for detection of bruises on pickling cucumbers.

机译:近红外高光谱反射成像可检测腌制黄瓜上的瘀伤。

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摘要

Mechanical injury often causes hidden internal damage to pickling cucumbers, which lowers the quality of pickled products and can incur economic losses to the processor. A near-infrared hyperspectral imaging system was developed to capture hyperspectral images from pickling cucumbers in the spectral region of 900-1700 nm. The system consisted of an imaging spectrograph attached to an InGaAs camera with line-light fiber bundles as an illumination source. Hyperspectral images were taken from the pickling cucumbers at 0-3, and 6 days after they were subjected to dropping or rolling under load which simulated damage caused by mechanical harvesting and handling systems. Principal component analysis (PCA), band ratio, and band difference were applied in the image processing to segregate bruised cucumbers from normal cucumbers. Bruised tissue had consistently lower reflectance than normal tissue and the former increased over time. Best detection accuracies from the PCA were achieved when a bandwidth of 8.8 nm and the spectral region of 950-1350 nm were selected. The detection accuracies from the PCA decreased from 95 to 75% over the period of 6 days after bruising, which was attributed to the self-healing of the bruised tissue after mechanical injury. The best band ratio of 988 and 1085 nm had detection accuracies between 93 and 82%, whereas the best band difference of 1346 and 1425 nm had accuracies between 89 and 84%. The general classification performance analysis suggested that the band ratio and difference methods had similar performance, but they were better than the PCA..
机译:机械伤害通常会对腌制黄瓜造成潜在的内部损坏,从而降低腌制产品的质量,并可能给加工者造成经济损失。开发了近红外高光谱成像系统,以捕获900-1700 nm光谱区域中的腌制黄瓜的高光谱图像。该系统由一个附在InGaAs摄像机上的成像光谱仪组成,该摄像机以线光纤束作为照明源。高光谱图像是从0-3的腌制黄瓜中提取的,在负载下掉落或滚动6天后拍摄的,模拟了机械收割和处理系统造成的损坏。将主成分分析(PCA),谱带比率和谱带差异应用于图像处理,以将青肿的黄瓜与正常黄瓜分离。瘀伤组织的反射率始终低于正常组织,并且前者随时间增加。当选择带宽为8.8 nm和光谱范围为950-1350 nm时,PCA可获得最佳检测精度。瘀伤后6天内,PCA的检测准确度从95%下降到75%,这归因于机械损伤后瘀伤组织的自我修复。 988和1085 nm的最佳谱带比具有93至82%的检测准确度,而1346和1425 nm的最佳谱带差具有89至84%的准确度。通用分类性能分析表明,谱带比率和差异方法具有相似的性能,但是它们比PCA更好。

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