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A Proposal to Compensate Platform Attitude Deviation's Impact on Laser Point Cloud From Airborne LiDAR

机译:补偿机载LiDAR平台姿态偏差对激光点云的影响的建议

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摘要

The attitude deviations of an airborne stabilized platform have significant impact on the distribution and point density of the laser point cloud obtained from airborne LiDAR. On one hand, the attitude deviations can cause the laser point cloud to horizontally shift along the scanning direction, leading to the coverage area deviating from the target terrain and resulting in missing scan of some important topography. On the other hand, the attitude deviations can cause the point density to be nonuniform, further deteriorating the elevation accuracy of the digital surface model (DSM) reconstructed from the laser point cloud. Among the three attitude deviations of the airborne stabilized platform, the roll and pitch deviations have more significant impact than the heading deviation. Thus, it is of practical importance to take appropriate steps to compensate the attitude deviations of the airborne stabilized platform, especially for the roll and pitch deviations. In this paper, firstly, an attitude compensation device was designed to compensate the impact of both the roll and pitch deviations in real time. Then, through numerical simulation and semi-physical simulation experiments, the compensation effectiveness of the device was evaluated. The experimental results show that the device can effectively compensate the roll and pitch deviations. After the compensation of the roll and pitch deviations, offsets of the distribution of the laser point cloud were well corrected, and the elevation accuracy of the reconstructed DSM was improved.
机译:机载稳定平台的姿态偏差对从机载LiDAR获得的激光点云的分布和点密度有重大影响。一方面,姿态偏差会导致激光点云沿扫描方向水平移动,从而导致覆盖区域偏离目标地形,并导致某些重要地形的扫描丢失。另一方面,姿态偏差可能导致点密度不均匀,从而进一步降低了从激光点云重建的数字表面模型(DSM)的高程精度。在机载稳定平台的三个姿态偏差中,侧倾和俯仰偏差比航向偏差具有更大的影响。因此,采取适当的步骤来补偿机载稳定平台的姿态偏差,特别是对于侧倾和俯仰偏差,具有实际意义。在本文中,首先,设计了一种姿态补偿装置来实时补偿侧倾和俯仰偏差的影响。然后,通过数值模拟和半物理模拟实验,评估了该装置的补偿效果。实验结果表明,该装置可以有效补偿侧倾和俯仰偏差。在补偿侧倾和俯仰偏差之后,可以很好地校正激光点云分布的偏移,并提高了重建的DSM的仰角精度。

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