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A multiscale morphological algorithm for improvements to canopy height models

机译:用于改进冠层高度模型的多尺度形态算法

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摘要

Pixels with distinctively lower elevation values than the surrounding pixels in a canopy height model (CHM) e.g. pixels representing a pit, often lead to the underestimation of tree heights. To rectify the underestimation, this paper presents a novel multiscale CHM improvement algorithm. A multiscale Laplacian operator, a multiscale-based morphological closing operator and a multiscale median filtering operator were applied to a 1-m resolution CHM to detect and replace pit pixels. The root-mean-squared error (RMSE) and the mean absolute error (MAE) before and after the improvement were computed by comparing the CHMs with field measurements. The improvement is evident as the RMSE decreased from 0.699 m to 0.390 m and the MAE decreased from 0.364 m to 0.243 m. Furthermore, individual-tree-extraction algorithms, namely the variable-area-local maxima algorithm and the individual-tree-crown-delineation algorithm, demonstrated that the proposed algorithm increases the accuracy of the estimation of tree heights.
机译:具有与顶层高度模型(CHM)中的周围像素的升高值的像素。代表坑的像素通常导致低估树高度。为了纠正低估,本文提出了一种新型多尺度CHM改进算法。多尺度Laplacian操作员,一种基于多尺度的形态学关闭操作员和多尺度中值滤波操作员被应用于1米的分辨率CHM以检测和更换凹坑像素。通过将CHM与现场测量进行比较来计算改进之前和之后的根均平方误差(RMSE)和平均绝对误差(MAE)。随着RMSE从0.699米降低至0.390米,MAE从0.364μm降低至0.243μm,改善是显而易见的。此外,单独的树提取算法,即可变区域局部最大算法和单独的树冠描绘算法,证明了所提出的算法增加了树高度估计的准确性。

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  • 来源
    《Computers & geosciences》 |2019年第9期|20-31|共12页
  • 作者单位

    Univ New South Wales Sch Civil & Environm Engn Sydney NSW 2052 Australia;

    Univ New South Wales Sch Civil & Environm Engn Sydney NSW 2052 Australia;

    Univ New South Wales Sch Civil & Environm Engn Sydney NSW 2052 Australia;

    Australian Natl Univ Fenner Sch Environm & Soc Canberra ACT 2601 Australia|Bushfire & Nat Hazards Cooperat Res Ctr Melbourne Vic Australia;

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

    Multiscale; Morphological; Canopy height model; Lidar; Forest;

    机译:MultiSscale;形态学;冠层高度模型;LIDAR;森林;

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