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Atmospheric Invariants for Hyperspectral Image Correction

机译:用于高光谱图像校正的大气不变量

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摘要

The degrading effect of the atmosphere on hyperspectral imagery has long been recognised as a major issue in applying techniques such as spectrally-matched filters to hyperspectral data. There are a number of algorithms available in the literature for the correction of hyperspectral data. However most of these approaches rely either on identifying objects within a scene (e.g. water whose spectral characteristics are known) or by measuring the relative effects of certain absorption features and using this to construct a model of the atmosphere which can then be used to correct the image. In the work presented here, we propose an alternative approach which makes use of the fact that the effective number of degrees of freedom in the atmosphere (transmission, path radiance and downwelling radiance with respect to wavelength) is often substantially less than the number of degrees of freedom in the spectra of interest. This allows the definition of a fixed set of invariant features (which may be linear or non-linear) from which reflectance spectra can be approximately reconstructed irrespective of the particular atmosphere. The technique is demonstrated on a range of data across the visible to near infra-red, mid-wave and long-wave infra-red regions, where its performance is quantified.
机译:长期以来,人们一直认为大气对高光谱图像的降解作用是将光谱匹配滤波器等技术应用于高光谱数据的主要问题。文献中有许多算法可用于校正高光谱数据。但是,这些方法大多数都依赖于识别场景中的物体(例如,其光谱特性已知的水)或通过测量某些吸收特征的相对影响,并使用其来构建大气模型,然后可用于校正大气质量。图片。在这里提出的工作中,我们提出了一种替代方法,该方法利用了以下事实:大气中的有效自由度(相对于波长的透射,路径辐射和向下辐射的辐射)通常大大小于次数感兴趣的光谱中的自由度。这允许定义固定的一组不变特征(可以是线性的或非线性的),从中可以近似地重建反射光谱,而与特定的大气无关。这项技术在可见光到近红外,中波和长波红外区域的一系列数据上得到了证明,这些区域的性能得到了量化。

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