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Towards Extraction of LIANAS from Terrestrial LIDAR Scans of Tropical Forests

机译:从热带森林的陆地LIDAR扫描中提取LIANAS

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Increased liana abundance results in reduced tree growth and increased tree mortality in tropical forest. The impact of lianas on forest-wide carbon storage has been a special interest for many researchers. The vertical and horizontal spatial distribution of lianas in tropical forest will determine the interaction with trees and the forest carbon cycle. In this study, we will introduce an algorithm to extract lianas from terrestrial laser scanning (TLS) data of a tropical forest. We developed a classification method for separating liana points from other points in a point cloud under canopy. We used a Random Forests machine learning algorithm for the classification of liana points from the other points. The leaf-wood and liana-tree classification accuracies are 90.69% and 94.42%, respectively. The results show the potential of TLS data for analysis the spatial distribution of lianas in forest stands and we explore the potential of extracting lianas from TLS point clouds.
机译:莲花丰富的增加导致热带森林中的树木增长降低和树木死亡率增加。 Lianas对许多研究人员来说是一种特别兴趣。 Lianas在热带森林中的垂直和水平空间分布将决定与树木和森林碳循环的相互作用。在本研究中,我们将介绍一种从热带森林的地面激光扫描(TLS)数据中提取Lianas的算法。我们开发了一种分类方法,用于将Liana点与云层下的点云中的其他点分开。我们使用了随机森林机器学习算法,从其他点分类了Liana点。叶子木材和莲花树分类准确性分别为90.69%和94.42%。结果表明了TLS数据的潜力,用于分析森林中Lianas的空间分布,我们探讨了从TLS点云提取莲花的潜力。

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