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A Photogrammetric Workflow for the Creation of a Forest Canopy Height Model from Small Unmanned Aerial System Imagery

机译:利用小型无人机航空影像创建森林冠层高度模型的摄影工作流程

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The recent development of operational small unmanned aerial systems (UASs) opens the door for their extensive use in forest mapping, as both the spatial and temporal resolution of UAS imagery better suit local-scale investigation than traditional remote sensing tools. This article focuses on the use of combined photogrammetry and “Structure from Motion” approaches in order to model the forest canopy surface from low-altitude aerial images. An original workflow, using the open source and free photogrammetric toolbox, MICMAC (acronym for Multi Image Matches for Auto Correlation Methods), was set up to create a digital canopy surface model of deciduous stands. In combination with a co-registered light detection and ranging (LiDAR) digital terrain model, the elevation of vegetation was determined, and the resulting hybrid photo/LiDAR canopy height model was compared to data from a LiDAR canopy height model and from forest inventory data. Linear regressions predicting dominant height and individual height from plot metrics and crown metrics showed that the photogrammetric canopy height model was of good quality for deciduous stands. Although photogrammetric reconstruction significantly smooths the canopy surface, the use of this workflow has the potential to take full advantage of the flexible revisit period of drones in order to refresh the LiDAR canopy height model and to collect dense multitemporal canopy height series.
机译:小型操作性无人机系统(UAS)的最新发展为其在森林制图中的广泛应用打开了大门,因为与传统的遥感工具相比,UAS图像的时空分辨率都更适合本地规模的调查。本文重点介绍组合摄影测量法和“运动构造”方法的使用,以便根据低空航拍图像对森林冠层表面进行建模。使用开源和免费的摄影测量工具箱MICMAC(自动关联方法的多图像匹配的缩写)建立了原始工作流程,以创建落叶林的数字树冠表面模型。结合共同注册的光检测和测距(LiDAR)数字地形模型,确定植被的海拔高度,并将所得的混合照片/ LiDAR冠层高度模型与来自LiDAR冠层高度模型和森林清单数据的数据进行比较。线性回归从地块量度和树冠量度预测优势高度和个体高度,表明摄影测量的冠层高度模型对于落叶林具有良好的质量。尽管摄影测量重建可以显着平滑机盖表面,但使用此工作流程有可能充分利用无人机的灵活重访时间,以刷新LiDAR机盖高度模型并收集密集的多时间机盖高度序列。

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