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Eigen-feature analysis of weighted covariance matrices for LiDAR point cloud classification

机译:LiDAR点云分类的加权协方差矩阵的特征特征分析

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摘要

The features used in the separation of different objects are important for successful point cloud classification. Eigen-features from a covariance matrix of a point set with the sample mean are commonly used geometric features that can describe the local geometric characteristics of a point cloud and indicate whether the local geometry is linear, planar, or spherical. However, eigen-features calculated by the principal component analysis of a covariance matrix are sensitive to LiDAR data with inherent noise and incomplete shapes because of the non-robust statistical analysis. To obtain reliable eigen-features from LiDAR data and to improve classification accuracy, we introduce a method of analyzing local geometric characteristics of a point cloud by using a weighted covariance matrix with a geometric median. Each point is assigned a weight to represent its spatial contribution in the weighted principal component analysis and to estimate the geometric median which can be regarded as a localized center of a shape. In the experiments, qualitative and quantitative analyses on airborne LiDAR data and simulated point clouds show a clear improvement of the proposed method compared with the standard eigen-features. The classification accuracy is improved by 1.6-4.5% using a supervised classifier.
机译:用于分离不同对象的功能对于成功进行点云分类很重要。来自点集的协方差矩阵与样本均值的特征特征是常用的几何特征,可以描述点云的局部几何特征并指示局部几何形状是线性,平面还是球形。但是,通过协方差矩阵的主成分分析计算出的特征特征对具有固有噪声和不完整形状的LiDAR数据敏感,因为统计分析不可靠。为了从LiDAR数据中获得可靠的特征量并提高分类精度,我们引入了一种通过使用具有几何中位数的加权协方差矩阵来分析点云的局部几何特征的方法。为每个点分配一个权重,以表示其在加权主成分分析中的空间贡献,并估计可以视为形状局部中心的几何中位数。在实验中,对机载LiDAR数据和模拟点云的定性和定量分析表明,与标准特征相比,该方法具有明显的改进。使用监督分类器可将分类精度提高1.6-4.5%。

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