首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >LIDAR-based geometric reconstruction of boreal type forest stands at single tree level for forest and wildland fire management
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LIDAR-based geometric reconstruction of boreal type forest stands at single tree level for forest and wildland fire management

机译:基于LIDAR的单树级北方型森林的几何重建,用于森林和野外火灾管理

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摘要

Vegetation structure is an important parameter in fire risk assessment and fire behavior modeling. We present a new approach deriving the structure of the upper canopy by segmenting single trees from small footprint LIDAR data and deducing their geometric properties. The accuracy of the LIDAR data is evaluated using six geometric reference targets, with the standard deviation of the LIDAR returns on the targets being as low as 0.06 m. The segmentation is carried out by using cluster analysis on the LIDAR raw data in all three coordinate dimensions. From the segmented clusters, tree position, tree height, and crown diameter are derived and compared with field measurements. A robust linear regression of 917 tree height measurements yields a slope of 0.96 with an offset of 1 m and the adjusted R{sup}2 resulting at 0.92. However, crown diameter is not well matched by the field measurements, with R{sup}2 being as low as 0.2, which is most certainly due to random errors in the field measurements. Finally, a geometric reconstruction of the forest scene using a paraboloid model is carried out using values of tree position, tree height, crown diameter, and crown base height.
机译:植被结构是火灾风险评估和火灾行为建模的重要参数。我们提出了一种新方法,该方法通过从小足迹的LIDAR数据中分割单棵树并推导其几何特性来推导上部树冠的结构。使用六个几何参​​考目标评估LIDAR数据的准确性,目标上的LIDAR返回的标准偏差低至0.06 m。通过对所有三个坐标维度的LIDAR原始数据进行聚类分析,进行分割。从分割的群集中,得出树的位置,树的高度和树冠直径,并将其与现场测量结果进行比较。 917个树高测量值的稳健线性回归得出0.96的斜率和1 m的偏移,调整后的R {sup} 2为0.92。然而,胎冠直径不能通过现场测量很好地匹配,R {sup} 2低至0.2,这很可能是由于现场测量中的随机误差所致。最后,使用抛物面模型使用树木位置,树木高度,树冠直径和树冠基部高度的值对森林场景进行几何重建。

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