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An Automatic Tree Skeleton Extracting Method Based on Point Cloud of Terrestrial Laser Scanner

机译:基于地面激光扫描仪点云的自动树骨架提取方法

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摘要

Tree skeleton could describe the shape and topological structure of a tree, which are useful to forest researchers. Terrestrial laser scanner (TLS) can scan trees with high accuracy and speed to acquire the point cloud data, which could be used to extract tree skeletons. An adaptive extracting method of tree skeleton based on the point cloud data of TLS was proposed in this paper. The point cloud data were segmented by artificial filtration and k-means clustering, and the point cloud data of trunk and branches remained to extract skeleton. Then the skeleton nodes were calculated by using breadth first search (BFS) method, quantifying method, and clustering method. Based on their connectivity, the skeleton nodes were connected to generate the tree skeleton, which would be smoothed by using Laplace smoothing method. In this paper, the point cloud data of a toona tree and peach tree were used to test the proposed method and for comparing the proposed method with the shortest path method to illustrate the robustness and superiority of the method. The experimental results showed that the shape of tree skeleton extracted was consistent with the real tree, which showed the method proposed in the paper is effective and feasible.
机译:树骨架可以描述树的形状和拓扑结构,这对森林研究人员有用。陆地激光扫描仪(TLS)可以高精度和速度扫描树木,以获取点云数据,可用于提取树骨架。本文提出了一种基于TLS点云数据的树骨架的自适应提取方法。点云数据被人工过滤和K-means聚类分割,剩下的躯干和分支的点云数据仍有提取骨架。然后通过使用宽度第一搜索(BFS)方法,量化方法和聚类方法来计算骨架节点。基于它们的连接,连接骨架节点以产生树骨架,这将通过使用拉普拉斯平滑方法进行平滑。在本文中,用于测试所提出的方法和将所提出的方法与最短路径方法进行比较来测试该方法的点云数据,以说明该方法的鲁棒性和优越性。实验结果表明,提取的树骨架的形状与真实树一致,其显示本文提出的方法是有效可行的。

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