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Spatial/spectral area-wise analysis for the classification of hyperspectral data

机译:空间/光谱区域 - 高光谱数据分类的明智分析

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In this paper, we propose an innovative classification method dedicated to hyperspectral images which uses both spectral information (Principal Component Analysis bands, Minimum Noise Fraction bands) and spatial information (textural features and segmentation). The process includes a segmentation as a pre-processing step, a spatial/spectral features calculation step and finally an area-wise classification. The segmentation, a region growing method, is processed according to a criterion called J-image which avoids the risks of over-segmentation by considering the homogeneity of an area at a textural level as well as a spectral level. Then several textural and spectral features are calculated for each area of the segmentation map and these areas are classified with a hierarchical ascendant classification. The method has been applied on several data sets and compared to the Gaussian Mixture Model classification. The JSEG classification process finally appeared to gives equivalent, and most of the time more accurate classification results.
机译:在本文中,我们提出了一种专用于高光谱图像的创新分类方法,它使用光谱信息(主成分分析频带,最小噪声分数频带)和空间信息(纹理特征和分段)。该过程包括作为预处理步骤的分段,空间/光谱特征计算步骤,最后是区域明智的分类。根据一种称为J-Image的标准处理分段,该区域生长方法是通过考虑在纹理水平和光谱级别的区域的均匀性来避免过分分割的风险。然后针对分割图的每个区域计算若干纹理和光谱特征,并且这些区域被分类为分层上升分类。该方法已应用于几个数据集并与高斯混合模型分类进行比较。 JSEG分类过程终于似乎提供了等同的,而大多数时间更准确的分类结果。

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