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Estimation of forest surface fuel load using airborne LiDAR data

机译:使用机载LiDAR数据估算森林表面燃料负荷

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摘要

Accurately describing forest surface fuel load is significant for understanding bushfire behaviour and suppression difficulties, predicting ongoing fires for operational activities, as well as assessing potential fire hazards. In this study, the Light Detection and Ranging (LiDAR) data was used to estimate surface fuel load, due to its ability to provide three-dimensional information to quantify forest structural characteristics with high spatial accuracies. Firstly, the multilayered eucalypt forest vegetation was stratified by identifying the cut point of the mixture distribution of LiDAR point density through a non-parametric fitting strategy as well as derivative functions. Secondly, the LiDAR indices of heights, intensity, topography, and canopy density were extracted. Thirdly, these LiDAR indices, forest type and previous fire disturbances were then used to develop two predictive models to estimate surface fuel load through multiple regression analysis. Model 1 was developed based on LiDAR indices, which produced a R~2 value of 0.63. Model 2 (R~2 = 0.8) was derived from LiDAR indices, forest type and previous fire disturbances. The accurate and consistent spatial variation in surface fuel load derived from both models could be used to assist fire authorities in guiding fire hazard-reduction burns and fire suppressions in the Upper Yarra Reservoir area, Victoria, Australia.
机译:准确描述森林表面的燃料负荷对于了解丛林大火的行为和抑制困难,预测运营活动中正在发生的大火以及评估潜在的火灾隐患具有重要意义。在这项研究中,光探测和测距(LiDAR)数据用于估计表面燃料负荷,这是因为它能够提供三维信息来量化具有高空间精度的森林结构特征。首先,通过非参数拟合策略和导数函数,通过识别LiDAR点密度的混合分布的切点,对多层桉树森林植被进行了分层。其次,提取高度,强度,地形和冠层密度的LiDAR指数。第三,然后使用这些LiDAR指数,森林类型和先前的火灾干扰来开发两个预测模型,以通过多元回归分析估算地表燃料负荷。模型1是基于LiDAR指数开发的,其R〜2值为0.63。模型2(R〜2 = 0.8)是根据LiDAR指数,森林类型和先前的火灾干扰得出的。从这两个模型得出的表面燃料负荷的准确一致的空间变化可用于协助消防局指导澳大利亚维多利亚州上亚拉水库地区的减少火灾隐患和灭火。

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  • 来源
  • 会议地点 Edinburgh(GB)
  • 作者单位

    School of Earth, Atmosphere Environment, Faulty of Science, Monash University, Wellington Rd, Clayton, VIC, Australia 3168,Bushfire Natural Hazards CRC, Albert St, East Melbourne, VIC, Australia 3002;

    School of Earth, Atmosphere Environment, Faulty of Science, Monash University, Wellington Rd, Clayton, VIC, Australia 3168;

    Bushfire Natural Hazards CRC, Albert St, East Melbourne, VIC, Australia 3002,Fenner School of Environment Society, College of Medicine, Biology Environment, Australian National University, Canberra, ACT, Australia 2601;

    School of Earth, Atmosphere Environment, Faulty of Science, Monash University, Wellington Rd, Clayton, VIC, Australia 3168,Bushfire Natural Hazards CRC, Albert St, East Melbourne, VIC, Australia 3002;

    School of Earth, Atmosphere Environment, Faulty of Science, Monash University, Wellington Rd, Clayton, VIC, Australia 3168,Bushfire Natural Hazards CRC, Albert St, East Melbourne, VIC, Australia 3002;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    airborne LiDAR; surface fuel load; mixture distribution; multiple regression;

    机译:机载激光雷达表面燃料负荷;混合物分布多重回归;

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