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Using multiband correlation models for the invariant recognition of 3-D hyperspectral textures

机译:使用多频带相关模型对3-D高光谱纹理进行不变识别

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摘要

We develop a method for the recognition of three-dimensional (3-D) textures in hyperspectral images. Textures are modeled using subspaces of multiband correlation functions that represent texture variability over a range of solar angles and atmospheric conditions. These subspace models are used to enable texture recognition that is invariant to these environmental variables. The multiband correlation model captures within and between spectral band spatial characteristics. We present a method that can be used to optimize the selection of the multiband correlation functions for a given texture discrimination problem. We demonstrate the effectiveness of the approach using texture recognition experiments that consider 2016 texture samples from 168 hyperspectral images that were synthesized for a 3-D scene over a range of conditions. The results show that 3-D textures can be accurately recognized over a wide range of conditions using a small number of multiband correlation functions.
机译:我们开发了一种用于识别高光谱图像中的三维(3-D)纹理的方法。使用多带相关函数的子空间对纹理进行建模,该子空间表示在太阳角和大气条件范围内的纹理变化。这些子空间模型用于启用对这些环境变量不变的纹理识别。多频带相关模型捕获光谱带空间特征之内和之间。我们提出了一种方法,可以针对给定的纹理识别问题优化多频带相关函数的选择。我们使用纹理识别实验证明了该方法的有效性,该实验考虑了168个高光谱图像的2016个纹理样本,这些图像是针对一系列条件下的3-D场景合成的。结果表明,使用少量的多频带相关函数可以在很宽的条件下准确识别3-D纹理。

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