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Understanding Spatial-Spectral Domain Interactions in Hyperspectral Unmixing using Exploratory Data Analysis

机译:了解使用探索性数据分析的高光谱解波中的空间光谱域交互

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This paper presents a visual exploratory analysis of an AVIRIS hyperspectral image to understand the interactions between the spatial and spectral domains in hyperspectral unmixing. We show how the global data cloud may not be convex due to spatial constraints on the distribution of the materials in the scene. Furthermore, we show that by segmenting the data cloud in feature space into piecewise convex segments, we can analyze individual segments and extract endmembers that better capture local structures compared to methods that look at the global cloud. Challenges remain as to how to do the cloud segmentation using machine-based approaches. However, experimental results point to the use of segmentation as a way to address the problem.
机译:本文介绍了Aviris Hyperspectral图像的视觉探索性分析,以了解高光谱解密中的空间和光谱域之间的相互作用。我们展示了由于场景中材料分布的空间限制,全局数据云可能不会被凸出。此外,我们表明,通过将数据云分段为分段凸片,我们可以分析各个段和提取终端,与看全球云的方法相比,更好地捕获本地结构。挑战仍然是如何使用基于机器的方法进行云分割。但是,实验结果指出了分割的使用作为解决问题的方法。

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