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Estimating tree heights with images from an unmanned aerial vehicle

机译:用无人驾驶飞机的图像估算树高

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ABSTRACT Unmanned aerial vehicles (UAV) have been used in a variety of fields in the last decade. In forestry, they have been used to estimate tree heights and crowns with different sensors. This approach, with a consumer-grade onboard system camera, is becoming popular because it is cheaper and faster than traditional photogrammetric methods and UAV-light detecting and ranging systems (UAV-LiDAR). In this study, UAV-based imagery reconstruction, processing, and local maximum filter methods are used to obtain individual tree heights from a coniferous urban forest. A low-cost onboard camera and a UAV with a 96-cm wingspan made it possible to acquire high resolution aerial images (6.41????cm average ground sampling distance), ortho-images, digital elevation models, and point clouds in one flight. Canopy height model, obtained by extracting the digital surface model from the digital terrain model, was filtered locally based on the pixel-based window size using the provided algorithm. For accuracy assessment, ground-based tree height measurements were made. There was a high 94% correlation and a root-mean-square error of 28????cm. This study highlights the accuracy of the method and compares favourably to more expensive methods.
机译:摘要无人机在过去十年中已用于许多领域。在林业中,已使用不同的传感器估算树木的高度和树冠。这种具有消费级车载系统摄像头的方法正变得越来越流行,因为它比传统的摄影测量方法和无人机光检测和测距系统(UAV-LiDAR)便宜且快捷。在这项研究中,基于无人机的图像重建,处理和局部最大滤波方法被用于从针叶城市森林中获得单个树的高度。低成本的机载相机和翼展为96厘米的无人机使在一台相机上可以获取高分辨率的航拍图像(平均地面采样距离为6.41 ???? cm),正像,数字高程模型和点云飞行。通过从提供的算法中基于像素的窗口大小,对通过从数字地形模型中提取数字表面模型获得的树冠高度模型进行了局部过滤。为了进行准确性评估,对地面的树高进行了测量。有很高的94%相关性,均方根误差为28Ω·cm。这项研究突出了该方法的准确性,并与较昂贵的方法进行了比较。

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