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Mapping secondary forest succession on abandoned agricultural land with LiDAR point clouds and terrestrial photography

机译:利用LiDAR点云和陆地摄影绘制废弃农田上的次生森林演替图

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摘要

Secondary forest succession on abandoned agricultural land has played a significant role in land cover changes in Europe over the past several decades. However, it is difficult to quantify over large areas. In this paper, we present a conceptual framework for mapping forest succession patterns using vegetation structure information derived from LiDAR data supported by national topographic vector data. This work was performed in the Szczawnica commune in the Polish Carpathians. Using object-based image analysis segments of no vegetation, and sparse/dense low/medium/high vegetation were distinguished and subsequently compared to the national topographic dataset to delineate agricultural land that is covered by vegetation, which indicates secondary succession on abandoned fields. The results showed that 18.7% of the arable land and 40.4% of grasslands, that is 31.0% of the agricultural land in the Szczawnica commune, may currently be experiencing secondary forest succession. The overall accuracy of the approach was assessed using georeferenced terrestrial photographs and was found to be 95.0%. The results of this study indicate that the proposed methodology can potentially be applied in large-scale mapping of secondary forest succession patterns on abandoned land in mountain areas.
机译:在过去的几十年中,废弃农田上的次生森林演替在欧洲土地覆盖变化中发挥了重要作用。但是,很难对大面积进行量化。在本文中,我们提出了一个概念框架,该框架使用从国家地形矢量数据支持的LiDAR数据中获取的植被结构信息来绘制森林演替格局。这项工作是在波兰喀尔巴阡山脉的Szczawnica镇进行的。使用基于对象的图像分析,将没有植被的部分和稀疏/密集的低/中/高植被区分开,然后与国家地形数据集进行比较,以描绘出植被覆盖的农业用地,这表明在废弃土地上发生了二次演替。结果表明,Szczawnica镇的耕地面积的18.7%和草地的40.4%,即农业用地的31.0%,目前可能正在经历次生森林演替。使用地理参考地面照片评估了该方法的整体准确性,发现为95.0%。这项研究的结果表明,所提出的方法可以潜在地应用于山区荒地上次生森林演替模式的大规模制图。

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