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Statistical characterization of hyperspectral background clutter in the reflective spectral region

机译:反射光谱区域中高光谱背景杂波的统计表征

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摘要

Hyperspectral imaging systems for daylight operation measure and analyze reflected and scattered radiation in p-spectral channels covering the reflective infrared region 0.4-2.5 (mu)m. Consequently, the p-dimensional joint distribution of background clutter is required to design and evaluate optimum hyperspectral imaging processors. In this paper, we develop statistical models for the spectral variability of natural hyperspectral backgrounds using the class of elliptically contoured distributions. We demonstrate, using data from the NASA AVIRIS sensor, that models based on the multivariate t-elliptically contoured distribution capture with sufficient accuracy the statistical characteristics of natural hyperspectral backgrounds that are relevant to target detection applications.
机译:用于日光操作的高光谱成像系统可测量和分析覆盖反射红外区域0.4-2.5μm的p光谱通道中的反射和散射辐射。因此,背景杂波的p维联合分布是设计和评估最佳高光谱成像处理器所必需的。在本文中,我们使用椭圆轮廓分布类别开发了自然高光谱背景光谱变异性的统计模型。我们使用来自NASA AVIRIS传感器的数据证明,基于多元t椭圆轮廓分布的模型能够以足够的精度捕获与目标检测应用相关的自然高光谱背景的统计特征。

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