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Fusion of hyperspectral and lidar data using generalized composite kernels: A case study in Extremadura, Spain

机译:使用广义复合核聚物的高光谱和激光雷达数据的融合:西班牙埃斯特雷杜拉的案例研究

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The light detection and ranging (LiDAR) data provides very valuable information about the height of the surveyed area which can be used as a source of complementary information for the classification of hyperspectral data, in particular when it is difficult to separate complex classes. In this work, we suggest to exploit the generalized composite kernel strategy for fusion and classification of hyperspectral and LiDAR data. Our experimental results, conducted using a hyperspectral image and a LiDAR derived intensity image collected over a rural area in Extremadura, Spain, indicate that the proposed framework for the fusion of hyperspactral and LiDAR data provides significant classification results.
机译:光检测和测距(LIDAR)数据提供关于测量区域的高度的非常有价值的信息,其可以用作互补信息的互补信息来源,特别是当难以分离复杂的类时。在这项工作中,我们建议利用广义复合核心策略进行融合和分类高光谱和激光雷达数据。我们使用高光谱图像进行的实验结果,并在西班牙埃斯特雷马拉的农村地区收集的LIDAR衍生的强度图像表明,对于熔化的高度高速和LIDAR数据的融合框架提供了显着的分类结果。

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