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Automated Mapping of Woody Debris over Harvested Forest Plantations Using UAVs, High-Resolution Imagery, and Machine Learning

机译:使用无人机,高分辨率图像和机器学习在已砍伐的人工林上自动绘制木质碎片的地图

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Surveying of woody debris left over from harvesting operations on managed forests is an important step in monitoring site quality, managing the extraction of residues and reconciling differences in pre-harvest inventories and actual timber yields. Traditional methods for post-harvest survey involving manual assessment of debris on the ground over small sample plots are labor-intensive, time-consuming, and do not scale well to heterogeneous landscapes. In this paper, we propose and evaluate new automated methods for the collection and interpretation of high-resolution, Unmanned Aerial Vehicle (UAV)-borne imagery over post-harvested forests for estimating quantities of fine and coarse woody debris. Using high-resolution, geo-registered color mosaics generated from UAV-borne images, we develop manual and automated processing methods for detecting, segmenting and counting both fine and coarse woody debris, including tree stumps, exploiting state-of-the-art machine learning and image processing techniques. Results are presented using imagery over a post-harvested compartment in a Pinus radiata plantation and demonstrate the capacity for both manual image annotations and automated image processing to accurately detect and quantify coarse woody debris and stumps left over after harvest, providing a cost-effective and scalable survey method for forest managers.
机译:调查经营林中伐木作业留下的木屑是监测场地质量,管理残留物提取以及调和收割前存货量和实际木材产量之间差异的重要步骤。收获后调查的传统方法涉及在小样地上人工评估地面上的碎片,这是劳动密集型的,耗时的,并且无法很好地适应异构景观。在本文中,我们提出并评估了一种新的自动化方法,用于收集和解释采伐后森林上高分辨率,无人飞行器(UAV)承载的图像,以估计细木屑和粗木屑的数量。利用从无人机传播的影像生成的高分辨率,地理定位的彩色马赛克,我们开发了手动和自动处理方法,用于检测,分割和计数包括树桩在内的细小和粗糙的木屑,并利用最新的机器学习和图像处理技术。结果显示在松树人工林采伐后隔间的图像上,显示了手动图像注释和自动图像处理功能,可以准确地检测和量化收获后剩余的粗木屑和残渣,从而提供了经济高效的解决方案。森林经营者的可扩展调查方法。

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