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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Estimating forest canopy fuel parameters using LIDAR data
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Estimating forest canopy fuel parameters using LIDAR data

机译:使用LIDAR数据估算林冠燃料参数

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Fire researchers and resource managers are dependent upon accurate, spatially-explicit forest structure information to support the application of forest fire behavior models. In particular, reliable estimates of several critical forest canopy structure metrics, including canopy bulk density, canopy height, canopy fuel weight, and canopy base height, are required to accurately map the spatial distribution of canopy fuels and model fire behavior over the landscape. The use of airborne laser scanning (LIDAR), a high-resolution active remote sensing technology, provides for accurate and efficient measurement of three-dimensional forest structure over extensive areas. In this study, regression analysis was used to develop predictive models relating a variety of LIDAR-based metrics to the canopy fuel parameters estimated from inventory data collected at plots established within stands of varying condition within Capitol State Forest, in western Washington State. Strong relationships between LIDAR-derived metrics and field-based fuel estimates were found for all parameters [sqrt(crown fuel weight): R{sup}2 = 0.86; ln(crown bulk density): R{sup}2=0.84; canopy base height: R{sup}2 = 0.77; canopy height: R{sup}2=0.98]. A cross-validation procedure was used to assess the reliability of these models, LIDAR-based fuel prediction models can be used to develop maps of critical canopy fuel parameters over forest areas in the Pacific Northwest.
机译:火灾研究人员和资源管理人员依赖于准确的,空间明晰的森林结构信息来支持森林火灾行为模型的应用。特别是,需要对几种关键森林冠层结构度量标准(包括冠层容积密度,冠层高度,冠层燃料重量和冠层基础高度)进行可靠的估算,才能准确地绘制冠层燃料的空间分布并模拟景观上的火灾行为。机载激光扫描(LIDAR)是一种高分辨率的主动遥感技术,可以在广阔的区域内对三维森林结构进行准确而有效的测量。在这项研究中,回归分析用于建立预测模型,该模型将基于LIDAR的各种指标与冠层燃料参数相关联,冠层燃料参数是根据华盛顿州西部州议会大厦森林内条件不同的林分中建立的样地上收集的清单数据估算得出的。对于所有参数[sqrt(官方燃料重量):R {sup} 2 = 0.86;所有参数,都发现LIDAR得出的指标与基于现场的燃料估计值之间有很强的关系。 ln(冠体积密度):R {sup} 2 = 0.84;顶篷基本高度:R {sup} 2 = 0.77;顶篷高度:R {sup} 2 = 0.98]。交叉验证程序用于评估这些模型的可靠性,基于LIDAR的燃料预测模型可用于开发西北太平洋森林地区关键冠层燃料参数的地图。

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