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Post-Logging Estimation of Loblolly Pine (Pinus taeda) Stump Size, Area and Population Using Imagery from a Small Unmanned Aerial System

机译:使用小型无人航空系统的影像对大火松(Pinus taeda)树桩的大小,面积和人口进行伐木后估计

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This study describes an unmanned aerial system (UAS) method for accurately estimating the number and diameters of harvested Loblolly Pine (Pinus taeda) stumps in a final harvest (often referred as clear-cut) situation. The study methods are potentially useful in initial detection, quantification of area and volume estimation of legal or illegal logging events to help estimate the volumes and value of removed pine timber. The study sites used included three adjacent pine stands in East-Central Mississippi. Using image pattern recognition algorithms, results show a counting accuracy of 77.3% and RMSE of 4.3 cm for stump diameter estimation. The study also shows that the area can be accurately estimated from the UAS collected data. Our experimental study shows that the proposed UAS survey method has the potential for wide use as a monitoring or investigation tool in the forestry and land management industries.
机译:这项研究描述了一种无人驾驶航空系统(UAS)方法,该方法可准确估算最终收成(通常称为无障碍)情况下收割的火炬松(Pinus taeda)树桩的数量和直径。该研究方法可能对合法或非法砍伐事件的初始检测,面积定量和体积估计有用,以帮助估计松木的体积和价值。研究地点包括密西西比州中东部的三个相邻的松树林。使用图像模式识别算法,结果显示树桩直径估计的计数精度为77.3%,RMSE为4.3 cm。研究还表明,可以从UAS收集的数据中准确估算出该区域。我们的实验研究表明,提出的UAS调查方法具有广泛用作林业和土地管理行业的监视或调查工具的潜力。

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