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Analysis of methods for representing 3D structures in hyperspectral images

机译:在高光谱图像中代表3D结构的方法分析

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We develop new models for the spectral/spatial representation of regions with three-dimensional structure in hyperspectral images. We show that traditional spectral/spatial models lead to ambiguities when classifying these regions due, in part, to changes that occur as the environmental conditions change. The new models characterize the variation of vectors that are derived using spectral/spatial filters as the scene conditions change. These models are compared with multiband generalizations of feature vectors derived from co-occurrence matrices. A feature-selection technique is used to reduce the dimensionality of the model for detection and classification tasks. The utility of several subsets of combined spectral/spatial features is compared for the classification of thousands of forest regions that are generated using DIRSIG over a broad range of conditions.
机译:我们开发新模型,用于高光谱图像中具有三维结构的区域的光谱/空间表示。我们表明,在将这些地区分类到环境条件发生变化时,传统的光谱/空间模型会导致含糊不清的歧义。新模型表征了在场景条件改变时使用频谱/空间过滤器导出的矢量变化。将这些模型与来自共发生矩阵的特征向量的多频带概括进行了比较。使用特征选择技术来降低检测和分类任务模型的维度。将多个子集合谱/空间特征的效用进行比较,以便在广泛的条件下使用Dirsig产生的数千个森林区域的分类。

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