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Remote sensing and probabilistic sampling based forest inventory method

机译:基于遥感和概率抽样的森林清查方法

摘要

A remote sensing and probabilistic sampling based forest inventory method can correlate aerial data, such as LiDAR, CIR, and/or Hyperspectral data with actual sampled and measured ground data to facilitate obtainment, e.g., prediction, of a more accurate forest inventory. The resulting inventory can represent an empirical description of the height, DBH and species of every tree within the sample area. The use of probabilistic sampling methods can greatly improve the accuracy and reliability of the forest inventory.
机译:基于遥感和概率采样的森林清查方法可以将诸如LiDAR,CIR和/或高光谱数据之类的航空数据与实际采样和测量的地面数据相关联,以促进例如更准确的森林清查的获得。得出的清单可以代表对样本区域内每棵树的高度,DBH和种类的经验描述。概率抽样方法的使用可以大大提高森林资源清查的准确性和可靠性。

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