高光谱与激光雷达数据整合与分类

Maria Angeles Garcia-Sopo, A. Cuartero, P. G. Rodríguez, A. Plaza
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引用次数: 4

摘要

光探测与测距(LiDAR)是一项应用于不同领域(测绘、城市土地覆盖、农业、林业等)的技术。激光雷达数据的巨大潜力在于其高度测量的高精度。由数百个(几乎连续的)光谱通道组成的高光谱图像也可以具有高达每像素1-5米的空间分辨率。在这项工作中,我们提出通过将激光雷达信息添加到高光谱数据立方体中并校正几何畸变来整合高光谱和激光雷达数据。在将两个数据集以相同的格式排列之后,我们分析了每个数据源获得的误差,以确定采用的最终分辨率是否是执行数据融合的最合适的分辨率。我们在埃斯特雷马杜拉地区的实验结果表明,整合高光谱和激光雷达数据后,分类效果有所改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hyperspectral and lidar data integration and classification
Light Detection and Ranging (LiDAR) is a technology used in different topic (mapping, urban land cover, agriculture, forestry, etc.). The great potential of LiDAR data lies in its high accuracy in the measurement of heights. Hyperspectral images, which comprise hundreds of (nearly contiguous) spectral channels, can also have spatial resolution of up to 1-5 meters per pixel. In this work, we propose to integrate both hyperspectral and LiDAR data by adding the LiDAR information to the hyperspectral data cube and correcting the geometric distortions. After arranging both data sets in the same format, we analyzed the errors obtained for each data source in order to determine if the final resolution adopted was the most appropriate one for performing data fusion. Our experimental results, in an area of Extremadura, indicate improvements in the classification after integrating the hyperspectral and LiDAR data.
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