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Fusion of HYDICE hyperspectral data with panchromatic imagery for cartographic feature extraction

机译:HYDICE高光谱数据与全色图像融合以提取地图特征

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Research at the Digital Mapping Laboratory has focused on the automated analysis of aerial imagery for cartographic feature extraction. However, it has long been the authors' belief that optimal performance in cartographic feature extraction can be obtained only by the combination, or fusion, of feature extraction systems which use differing information sources and processing methods. This paper describes experiments on the pairwise fusion of cartographic feature extraction systems; surface material maps obtained from the classification of hyper-spectral imagery, digital elevation models derived from stereo panchromatic imagery, and three-dimensional (3D) building hypotheses generated from single panchromatic images. Fusion experiments were performed on three test areas and detailed evaluations conducted. The results showed that using surface material or stereo information to focus processing of the building extraction system led to significantly better overall performance and runtimes. Utilizing building hypotheses to refine material classification showed mixed results, due partially to residual registration errors.
机译:数字制图实验室的研究集中于对航空影像进行自动分析以提取制图特征。然而,长期以来,作者一直相信,只有通过使用不同信息源和处理方法的特征提取系统的组合或融合,才能获得制图特征提取的最佳性能。本文描述了制图特征提取系统的成对融合实验。从高光谱图像的分类,从立体全色图像获得的数字高程模型以及从单个全色图像生成的三维(3D)建筑假设中获得的表面物质图。在三个测试区域进行了融合实验,并进行了详细评估。结果表明,使用表面材料或立体信息对建筑物提取系统进行聚焦处理可显着提高整体性能和运行时间。部分由于残留配准错误,利用构建假设来完善材料分类显示出混合的结果。

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