利用小型高光谱激光雷达回波分析和探索空间和光谱信息

Jia-jie Dong, Shi-long Xu, Yu-hao Xia
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引用次数: 0

摘要

全波形高光谱光探测与测距(FWHSL)对于在激光扫描过程中获取空间和光谱信息至关重要。两个相邻目标之间的距离、覆盖率、入射角和目标反射率这四个主要影响因素决定了 FWHSL 返回的信息。以往的研究主要集中在相邻距离、入射角度和反射率的影响上,而我们则关注激光足迹中目标的覆盖率。我们提出了一种新颖的多光谱波形分解方法,包括用于单波长波形分解的 Trust-Region 算法、用于筛选分解结果的 3σ 规则以及多光谱波形分解之间的校正,从而从多光谱回波中获得精确的空间和光谱信息,对于 4ns 脉宽的激光雷达信号,当相邻距离为 40cm 时,分解误差小于 0.3cm。我们发现回波的强度和重叠率与覆盖率密切相关,这可能会加快点云信息提取和目标识别的进度。
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Analysis and exploration of spatial and spectral information with small-footprint hyperspectral lidar returns
Full-waveform hyperspectral light detection and ranging (FWHSL) is vital in retrieving spatial and spectral information during laser scanning. Four main influence factors, the distance between two neighbor targets, the coverage ratio, the incident angle, and the target's reflectance, determine the information of the FWHSL returns. Previous studies mainly focus on the influence of the neighbor distance, incident angle, and reflectance, while we focus on the coverage ratio of the targets in a laser footprint. We propose a novel multispectral waveform decomposition method, including the Trust-Region algorithm for single wavelength waveform decomposition, 3σ rule for screening decomposition results and correction between multispectral waveform decomposition, to obtain the accurate spatial and spectral information from the multispectral returns, which realizes the decomposition error less than 0.3cm when the neighbor distance is 40cm, for a 4ns pulse width LiDAR signal. We find the intensity and overlapped ratio of the returns are strongly related to the coverage ratio, which may accelerate the progress in point cloud information extraction and target recognition.
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