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首页> 外文期刊>International journal of remote sensing >Comparison of ALS- and UAV(SfM)-derived high-density point clouds for individual tree detection in Eucalyptus plantations
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Comparison of ALS- and UAV(SfM)-derived high-density point clouds for individual tree detection in Eucalyptus plantations

机译:桉树人工林中ALS和UAV(SfM)衍生的高密度点云用于单个树木检测的比较

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摘要

Highly accurate, rapid forest inventory techniques are needed to enable forest managers to address the increasing demand for sustainable forestry. In the last two decades, Airborne Laser Scanning (ALS) and Terrestrial Laser Scanning have become internationally established as forest mapping and monitoring methods. However, recent advances in sensors and in image processing - particularly Structure from Motion (SfM) technology - have also enabled the extraction of dense point clouds from images obtained by Digital Aerial Photography (DAP). DAP is cheaper than ALS, especially when the systems are mounted on small unmanned aerial vehicles (UAVs), and the density of the point cloud can easily reach the levels yielded by ALS devices. The main objective of this study was to evaluate and compare the usefulness of ALS-derived and UAV(SfM)-derived high-density point clouds for detecting and measuring individual tree height in Eucalyptus spp. plantations established on complex terrain. A total of 325 reference trees were measured and located in 6 square plots (400m(2)). The individual tree crown (ITC) delineation algorithm detected 311 from the ALS-derived data and 259 trees from the UAV(SfM)-derived data, representing accuracy levels of, respectively, 96% and 80%. The results suggest that at plot level, UAV(SfM)-generated point clouds are as good as ALS-derived point clouds for estimating individual tree height. Furthermore, analysis of the differences in digital elevation models at landscape level showed that the elevations of the UAV(SfM)-derived terrain surfaces were slightly higher than the ALS-derived surfaces (mean difference, 1.14m and standard deviation, 1.93m). Finally, we discuss how non-optimal UAV-image-acquisition conditions and slope terrain affect the ITC delineation process.
机译:需要高精度,快速的森林清查技术,以使森林管理者能够应对对可持续林业日益增长的需求。在过去的二十年中,机载激光扫描(ALS)和陆地激光扫描已在国际上确立为森林制图和监测方法。但是,传感器和图像处理方面的最新进展,尤其是“运动结构(SfM)”技术,也使得能够从通过数字航空摄影(DAP)获得的图像中提取密集的点云。 DAP比ALS便宜,尤其是当系统安装在小型无人飞行器(UAV)上时,点云的密度很容易达到ALS设备产生的水平。这项研究的主要目的是评估和比较ALS和UAV(SfM)衍生的高密度点云在检测和测量桉树中单个树高方面的实用性。在复杂地形上建立的人工林。总共对325棵参考树进行了测量,并将其放置在6平方公里的土地上(400m(2))。单个树冠(ITC)描绘算法从ALS派生数据中检测到311棵树,从UAV(SfM)派生数据中检测到259棵树,分别代表了96%和80%的准确度。结果表明,在样地水平上,UAV(SfM)生成的点云与ALS派生的点云在估计单个树的高度方面一样好。此外,对景观水平数字高程模型差异的分析表明,UAV(SfM)衍生的地形表面的海拔比ALS衍生的表面略高(平均差异为1.14m,标准偏差为1.93m)。最后,我们讨论了非最佳的无人机图像获取条件和斜坡地形如何影响ITC的描绘过程。

著录项

  • 来源
    《International journal of remote sensing》 |2018年第16期|5211-5235|共25页
  • 作者单位

    Univ Lisbon, Inst Super Agron, Forest Res Ctr CEF, Lisbon, Portugal;

    Univ Lisbon, Inst Super Agron, Forest Res Ctr CEF, Lisbon, Portugal;

    Univ Sao Paulo, Grp Estudos Tecnol LiDAR GET LiDAR, Dept Ciencias Florestais, Escola Super Agr Luiz de Queiroz, Piracicaba, Brazil;

    Navigator Co, RAIZ Forest & Paper Res Inst, Eixo, Portugal;

    Univ Lisbon, Inst Super Agron, Forest Res Ctr CEF, Lisbon, Portugal;

    Univ Santiago de Compostela, Dept Bot Biodiversidade & Bot Aplicada, Grp Invest Biodiversidade & Bot Aplicada GI BIOAP, Escola Politecn Super, R Benigno Ledo S-N,Campus Terra, Lugo 27002, Spain;

    Univ Santiago de Compostela, Dept Prod Vexetal & Proxectos Enxenaria, Unidade Xest Forestal Sostible GI UXFS 1837, Escola Politecn Super, R Benigno Ledo S-N,Campus Terra, Lugo 27002, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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