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Biomass Estimation Using 3D Data from Unmanned Aerial Vehicle Imagery in a Tropical Woodland

机译:使用来自热带林地的无人机图像的3D数据进行生物量估计

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Application of 3D data derived from images captured using unmanned aerial vehicles (UAVs) in forest biomass estimation has shown great potential in reducing costs and improving the estimates. However, such data have never been tested in miombo woodlands. UAV-based biomass estimation relies on the availability of reliable digital terrain models (DTMs). The main objective of this study was to evaluate application of 3D data derived from UAV imagery in biomass estimation and to compare impacts of DTMs generated based on different methods and parameter settings. Biomass was modeled using data acquired from 107 sample plots in a forest reserve in miombo woodlands of Malawi. The results indicated that there are no significant differences ( p = 0.985) between tested DTMs except for that based on shuttle radar topography mission (SRTM). A model developed using unsupervised ground filtering based on a grid search approach, had the smallest root mean square error (RMSE) of 46.7% of a mean biomass value of 38.99 Mg·ha ?1 . Amongst the independent variables, maximum canopy height ( Hmax ) was the most frequently selected. In addition, all models included spectral variables incorporating the three color bands red, green and blue. The study has demonstrated that UAV acquired image data can be used in biomass estimation in miombo woodlands using automatically generated DTMs.
机译:从无人飞行器(UAV)捕获的图像得出的3D数据在森林生物量估计中的应用已显示出在降低成本和改进估计方面的巨大潜力。但是,此类数据从未在密欧博林地进行过测试。基于无人机的生物量估计依赖于可靠的数字地形模型(DTM)的可用性。这项研究的主要目的是评估从无人机图像获得的3D数据在生物量估计中的应用,并比较基于不同方法和参数设置生成的DTM的影响。使用从马拉维米伦博林地的森林保护区的107个样地获得的数据对生物质进行了建模。结果表明,除了基于航天飞机雷达地形任务(SRTM)的DTM之外,测试的DTM之间没有显着差异(p = 0.985)。使用基于网格搜索方法的无监督地面滤波开发的模型,具有38.99 Mg·ha?1的平均生物量值的最小均方根误差(RMSE)为46.7%。在自变量中,最大树冠高度(Hmax)是最常选择的。此外,所有模型都包含结合了红色,绿色和蓝色三个色带的光谱变量。该研究表明,使用自动生成的DTM,无人机获取的图像数据可用于Miombo林地的生物量估算。

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