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A Filtering Algorithm of Airborne LiDAR Points Cloud Based on Least Square

机译:基于最小二乘的机载LiDAR点云滤波算法

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Filtering algorithm based on least square method can get digital elevation model of high precision, but the filtering effect is poor if non-ground point set is big. In order to solve this problem, points of smaller elevation are used to initial curved surface fitting, which has smaller calculation compared with fitting by all points. The curved surface is closer to the ground, making it conducive to the subsequent iteration. Only ground point set is processed in the subsequent iteration, so the processing is simple. The experimental results show that the algorithm has smaller error and can filter out large part of non-ground points effectively.
机译:基于最小二乘法的滤波算法可以得到高精度的数字高程模型,但如果非地面点集较大,则滤波效果较差。为了解决该问题,将高程较小的点用于初始曲面拟合,与所有点的拟合相比,计算量较小。曲面更靠近地面,有利于后续迭代。在后续迭代中仅处理地面点集,因此处理很简单。实验结果表明,该算法误差较小,可以有效滤除大部分非接地点。

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