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TREEDETECTION: AUTOMATIC TREE DETECTION USING UAV-BASED DATA

机译:树木检测:使用基于无人机的数据进行自动树木检测

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In this study it is presented a toolbox built in ArcGIS using ArcPy designed to automatically detect trees in high resolution data obtained from Unmanned Aerial Vehicles (UAV). The toolbox, TreeDetection, contains a tool called TreeDetect, which requires three parameters: a raster input, a conversion factor and an output folder. Three other optional parameters can be changed to improve the detection according to characteristics of the forest and raster source. We tested the TreeDetect tool in three study sites: a young Eucalyptus plantation; adult Eucalyptus and Pinus stands; and a Mixed Hardwood natural forest. We also tested distinct raster inputs, according to the data availability in each site. The tool was considered efficient to detect the trees in the three study areas. The detection accuracy was lower in the natural stand, as expected considering the complex structure of this forest type. All the raster input rested provided satisfactory results, but in the homogeneous stand the Digital Surface Model (DSM) was not as effective as the spectral bands. Furthermore, research can be performed with emphasis in different sensors and band combinations, as well in the parameters’ selection.
机译:在这项研究中,展示了使用ArcPy在ArcGIS中构建的工具箱,该工具箱旨在自动检测从无人机(UAV)获得的高分辨率数据中的树木。工具箱TreeDetection包含一个名为TreeDetect的工具,该工具需要三个参数:栅格输入,转换因子和输出文件夹。可以更改其他三个可选参数,以根据森林和栅格源的特性来改进检测。我们在三个研究地点测试了TreeDetect工具:一个年轻的桉树种植园;成年的桉树和松树林;和混合硬木天然林。根据每个站点的数据可用性,我们还测试了不同的栅格输入。该工具被认为可以有效地检测出三个研究区域中的树木。考虑到这种森林类型的复杂结构,在天然林中的检测精度较低。休息的所有栅格输入都提供了令人满意的结果,但是在同构支架中,数字表面模型(DSM)的效果不如光谱带。此外,可以重点研究不同的传感器和频段组合以及参数的选择。

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