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A class-separability-based method for multi/hyperspectral image color visualization

机译:基于类可分性的多/高光谱图像颜色可视化方法

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In this paper, a new color visualization technique for multi- and hyperspectral images is proposed. This method is based on a maximization of the perceptual distance between the scene endmembers as well as natural constancy of the resulting images. The stretched CMF principle is used to transform reflectance into values in the CIE L*a*b* colorspace combined with an a priori known segmentation map for separability enhancement between classes. Boundaries are set in the a*b* subspace to balance the natural palette of colors in order to ease interpretation by a human expert. Convincing results on two different images are shown.
机译:本文提出了一种用于多光谱和高光谱图像的彩色可视化新技术。此方法基于场景末端成员之间的感知距离的最大化以及所得图像的自然恒定性。扩展的CMF原理用于将反射率转换为CIE L * a * b *颜色空间中的值,并与先验已知的分割图相结合,以增强类之间的可分离性。边界设置在a * b *子空间中,以平衡自然的色彩调色板,从而简化人类专家的解释。显示了两个不同图像的令人信服的结果。

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