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High-Throughput 3-D Monitoring of Agricultural-Tree Plantations with Unmanned Aerial Vehicle (UAV) Technology

机译:利用无人机技术对农林人工林进行高通量3D监测

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摘要

The geometric features of agricultural trees such as canopy area, tree height and crown volume provide useful information about plantation status and crop production. However, these variables are mostly estimated after a time-consuming and hard field work and applying equations that treat the trees as geometric solids, which produce inconsistent results. As an alternative, this work presents an innovative procedure for computing the 3-dimensional geometric features of individual trees and tree-rows by applying two consecutive phases: 1) generation of Digital Surface Models with Unmanned Aerial Vehicle (UAV) technology and 2) use of object-based image analysis techniques. Our UAV-based procedure produced successful results both in single-tree and in tree-row plantations, reporting up to 97% accuracy on area quantification and minimal deviations compared to in-field estimations of tree heights and crown volumes. The maps generated could be used to understand the linkages between tree grown and field-related factors or to optimize crop management operations in the context of precision agriculture with relevant agro-environmental implications.
机译:农业树木的几何特征(如冠层面积,树木高度和树冠体积)提供了有关种植状况和作物产量的有用信息。但是,这些变量大多数是在费时,艰苦的工作之后并应用将树木视为几何实体的方程式估算的,从而产生不一致的结果。作为替代方案,这项工作提出了一种创新的程序,可以通过应用两个连续的阶段来计算单个树木和行的3维几何特征:1)使用无人飞行器(UAV)技术生成数字表面模型,以及2)使用基于对象的图像分析技术。我们的基于UAV的程序在单树和行树人工林中均取得了成功的结果,与现场估计树高和树冠体积相比,面积量化的准确性高达97%,偏差最小。生成的地图可用于了解树木生长和田间相关因素之间的联系,或者在具有相关农业环境影响的精准农业中优化作物管理操作。

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