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Estimating crown diameters in urban forests with Unmanned Aerial System-based photogrammetric point clouds

机译:基于无人机系统的摄影点云估计城市森林的树冠直径

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摘要

Field measurements are the main source of information when determining stand parameters, which are essential to produce an effective forest management plan. However, conducting terrestrial measurements is neither time- nor cost-efficient in most cases. In recent years, the advent of sophisticated remote sensing technologies has enabled the extraction of accurate and robust information about the physical characteristics of trees. Crown diameter is one of the most important stand parameters that should be measured or estimated. This study proposes a Polynomial Fitting Based (PFB) methodology to estimate crown diameters of urban trees with Unmanned Aerial System (UAS)-based data. Crown diameters estimated with the PFB methodology were compared not only to a reference data but also to those estimated based on five widely used image segmentation algorithms, which were the Mean Shift Segmentation (MSS), Morphological Profiles Based Segmentation (MPBS), Multiresolution Segmentation (MRS), Seeded Region Growing Segmentation (SRGS) and Watershed Segmentation (WS). Quantitative investigations revealed that the PFB approach outperformed the other segmentation-based approaches. The PFB approach estimated the crown diameters with root-mean-square errors (RMSE) ranging from 0.69 m to 0.92 m. The PFB methodology was found to be a practical and robust approach for the estimation of crown diameters, which plays a very significant role in effective forest management.
机译:实地测量是确定林分参数时的主要信息来源,而林分参数对于制定有效的森林管理计划至关重要。但是,在大多数情况下,进行地面测量既不节省时间也不节省成本。近年来,复杂的遥感技术的出现使得能够提取有关树木物理特性的准确而可靠的信息。齿冠直径是应测量或估计的最重要的机架参数之一。这项研究提出了一种基于多项式拟合(PFB)的方法,利用基于无人机系统(UAS)的数据估算城市树木的树冠直径。使用PFB方法估算的牙冠直径不仅与参考数据进行了比较,而且还与基于五种广泛使用的图像分割算法(均值平移分割(MSS),基于形态学轮廓的分割(MPBS),多分辨率分割( MRS),种子区域生长分割(SRGS)和分水岭分割(WS)。定量调查显示,PFB方法优于其他基于细分的方法。 PFB方法估计的牙冠直径具有0.69 m至0.92 m的均方根误差(RMSE)。人们发现,PFB方法是一种实用而可靠的方法,可用于估算树冠直径,在有效的森林管理中发挥着非常重要的作用。

著录项

  • 来源
    《International journal of remote sensing》 |2019年第2期|468-505|共38页
  • 作者

    Yilmaz Volkan; Gungor Oguz;

  • 作者单位

    Karadeniz Tech Univ, Dept Geomat, TR-61080 Trabzon, Turkey;

    Karadeniz Tech Univ, Dept Geomat, TR-61080 Trabzon, Turkey;

  • 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
  • 关键词

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