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Assessing UAV-collected image overlap influence on computation time and digital surface model accuracy in olive orchards

机译:评估UAV收集的图像对橄榄果园计算时间和数字表面模型精度的影响

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Addressing the spatial and temporal variability of crops for agricultural management requires intensive and periodical information gathering from the crop fields. Unmanned Aerial Vehicle (UAV) photogrammetry is a quick and affordable method for information collecting; it provides spectral and spatial information when required with the added value of Digital Surface Models (DSMs) that reconstruct the crop structure in 3D using "structure from motion" techniques. In the full process from UAV flights to image analysis, DSM generation is one bottle-neck due to its high processing time. Despite its importance, the optimization of the required forward overlap for saving time in DSM generation has not yet been studied. UAV images were acquired at 50 and 100 m flight altitudes over two olive orchards with the aim of generating DSMs representing the tree crowns. Several DSMs created with different forward laps (in intervals of 5-6% from 58 to 97%) were evaluated in order to determine the optimal generation time according to the accuracy of tree crown measurements computed from each DSM. Based on our results, flying at 100 m altitude and with a 95% forward lap reported the best configuration. From the analysis derived from this configuration, tree volume was estimated with 95% accuracy. In addition, computing time was 85% lower in comparison to the maximum overlap studied (97%). It allowed computing the 3D features of 600 trees in a 3-ha parcel in a highly accurate and quick (a few hours after the UAV flights) manner by using a standard computer.
机译:解决农业管理作物的空间和时间变异需要从庄稼领域收集的密集和周期性信息。无人驾驶飞行器(UAV)摄影测量是一种用于信息收集的快速且价格合理的方法;它在需要时提供光谱和空间信息,当使用数字表面模型(DSMS)的附加值时使用“来自运动”技术在3D中重建裁微结构的附加值。在从UAV航班到图像分析的完整过程中,由于其高处理时间,DSM生成是一个瓶颈。尽管重要的是,尚未研究在DSM生成中节省时间所需的前瞻性重叠的优化。在两个橄榄果园的50和100米飞行中获得了UAV图像,其目的是产生代表树冠的DSM。根据从每个DSM计算的树冠测量的精度,评估使用不同前向圈的多个(间隔为5-6%)创建的几个DSMS(以58%到97%为单位),以确定最佳产生时间。根据我们的结果,在100米的高度飞行,95%的前圈报告了最佳配置。从源自该配置的分析,估计树木体积以95%的精度估计。此外,与研究的最大重叠相比,计算时间较低85%(97%)。它允许通过使用标准计算机在高度准确且快速(UAV航班之后几个小时)中计算600棵树的3D功能。

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