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Essential processing methods of hyperspectral images of agricultural and food products

机译:农业和食品高光谱图像的基本处理方法

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摘要

Hyperspectral images integrate spatial and spectral details together. They can provide valuable information about both external physical and internal chemical characteristics of agricultural and food products rapidly and non-destructively. Despite rapid improvements in instruments and acquisition techniques, the collected high-quality hyperspectral images still contain much useless information, like uneven illumination, background, specular reflection, and bad pixels that need to be removed. That is, hyperspectral image preprocessing is necessary for almost each hyperspectral image to get pure images or pixels, or to reduce negative influences on the subsequent detection, classification, and prediction analysis. This manuscript will enumerate some possible solutions to deal with issues mentioned above before further image analyzing. The advantages and disadvantages of different methods when dealing with a specific problem are also discussed. Obtained clean images or pure signals can be used for further data analysis. Finally, post-processing of hyperspectral images can be carried out to enhance the classification result of images or to generate chemical images/distribution maps to show spatial component concentration distributions of non-homogeneous samples.
机译:高光谱图像将空间和光谱细节集成在一起。他们可以快速且无损地提供有关农业和食品外部物理和内部化学特性的有价值的信息。尽管仪器和采集技术快速改进,所收集的高质量高光谱图像仍然包含多么无用的信息,如不均匀的照明,背景,镜面反射和需要去除的坏像素。也就是说,几乎每个高光谱图像需要高光谱图像预处理以获取纯图像或像素,或者减少对随后检测,分类和预测分析的负影响。此稿件将枚举一些可能的解决方案来处理上述问题之前的其他图像分析。还讨论了不同方法处理特定问题的方法的优点和缺点。获得的清洁图像或纯信号可用于进一步的数据分析。最后,可以执行高光谱图像的后处理以增强图像的分类结果或产生化学图像/分布图以显示非均匀样品的空间分量浓度分布。

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