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Slope angle estimation method based on sparse subspace clustering for probe safe landing

机译:基于稀疏子空间聚类的倾斜角度估计方法探测安全降落

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摘要

To avoid planetary probes landing on steep slopes where they may slip or tip over, a new method of slope angle estimation based on sparse subspace clustering is proposed to improve accuracy. First, a coordinate system is defined and established to describe the measured data of light detection and ranging (LIDAR). Second, this data is processed and expressed with a sparse representation. Third, on this basis, the data is made to cluster to determine which subspace it belongs to. Fourth, eliminating outliers in subspace, the correct data points are used for the fitting planes. Finally, the vectors normal to the planes arc obtained using the plane model, and the angle between the normal vectors is obtained through calculation. Based on the geometric relationship, this angle is equal in value to the slope angle. The proposed method was tested in a series of experiments. The experimental results show that this method can effectively estimate the slope angle, can overcome the influence of noise and obtain an exact slope angle. Compared with other methods, this method can minimize the measuring errors and further improve the estimation accuracy of the slope angle.
机译:为避免行星探头在陡峭的斜坡上降落,在那里它们可以滑倒或尖端,提出了一种基于稀疏子空间聚类的斜率角度估计方法,以提高精度。首先,定义并建立坐标系,以描述光检测和测距(LIDAR)的测量数据。其次,处理并以稀疏表示处理并表示此数据。第三,在此基础上,将数据进行群集以确定它所属的子空间。第四,消除子空间中的异常值,正确的数据点用于配件平面。最后,使用平面模型获得的平面弧线的矢量,通过计算获得正常向量之间的角度。基于几何关系,该角度与斜角的值相等。在一系列实验中测试了该方法。实验结果表明,该方法可以有效地估计斜角角度,可以克服噪声的影响并获得精确的倾斜角度。与其他方法相比,该方法可以最小化测量误差并进一步提高倾斜角的估计精度。

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