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A bottom-up approach to segment individual deciduous trees using leaf-off lidar point cloud data

机译:自下而上的方法使用叶状激光雷达点云数据分割单个落叶树

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摘要

Light Detection and Ranging (Lidar) can generate three-dimensional (3D) point cloud which can be used to characterize horizontal and vertical forest structure, so it has become a popular tool for forest research. Recently, various methods based on top-down scheme have been developed to segment individual tree from lidar data. Some of these methods, such as the one developed by Li et al. (2012), can obtain the accuracy up to 90% when applied in coniferous forests. However, the accuracy will decrease when they are applied in deciduous forest because the interlacing tree branches can increase the difficulty to determine the tree top. In order to solve challenges of the tree segmentation in deciduous forests, we develop a new bottom-up method based on the intensity and 3D structure of leaf-off lidar point cloud data in this study. We applied our algorithm to segment trees in a forest at the Shavers Creek Watershed in Pennsylvania. Three indices were used to assess the accuracy of our method: recall, precision and F-score. The results show that the algorithm can detect 84% of the tree (recall), 97% of the segmented trees are correct (precision) and the overall F-score is 90%. The result implies that our method has good potential for segmenting individual trees in deciduous broadleaf forest.
机译:激光探测与测距(Lidar)可以生成三维(3D)点云,可用于表征水平和垂直森林结构,因此它已成为森林研究的一种流行工具。近来,已经开发了基于自顶向下方案的各种方法来从激光雷达数据中分割单个树。这些方法中的一些方法,例如Li等人开发的方法。 (2012年),在针叶林中使用时,可以获得高达90%的精度。但是,将它们应用于落叶林时,准确性会降低,因为交错的树枝会增加确定树顶的难度。为了解决落叶林中树木分割的挑战,本研究基于叶子型激光雷达点云数据的强度和3D结构,开发了一种新的自下而上的方法。我们将算法应用于宾夕法尼亚州Shavers Creek流域的森林中的树木分割。使用三个指标来评估我们方法的准确性:召回率,准确性和F得分。结果表明,该算法可以检测出84%的树(召回率),有97%的分割树是正确的(精度),总F分数为90%。结果表明,我们的方法具有很好的分割落叶阔叶林中单个树木的潜力。

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  • 作者单位

    State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China,School of Engineering, University of California at Merced, Merced, CA 95343, USA;

    State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China,School of Engineering, University of California, 5200 North Lake Road, Merced, CA 95343, USA;

    School of Engineering, University of California at Merced, Merced, CA 95343, USA;

    School of Engineering, University of California at Merced, Merced, CA 95343, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lidar; Deciduous forest; Tree segmentation; Intensity; 3-D structure; Bottom-up;

    机译:激光雷达落叶林;树分割强度;3-D结构;自下而上;
  • 入库时间 2022-08-18 03:34:14

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