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Aboveground Forest Biomass Estimation with Landsat and LiDAR Data and Uncertainty Analysis of the Estimates

机译:利用Landsat和LiDAR数据估算地上森林生物量及估算的不确定性分析

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Landsat Thematic mapper (TM) image has long been the dominate data source, and recently LiDAR has offered an important new structural data stream for forest biomass estimations. On the other hand, forest biomass uncertainty analysis research has only recently obtained sufficient attention due to the difficulty in collecting reference data. This paper provides a brief overview of current forest biomass estimation methods using both TM and LiDAR data. A case study is then presented that demonstrates the forest biomass estimation methods and uncertainty analysis. Results indicate that Landsat TM data can provide adequate biomass estimates for secondary succession but are not suitable for mature forest biomass estimates due to data saturation problems. LiDAR can overcome TM’s shortcoming providing better biomass estimation performance but has not been extensively applied in practice due to data availability constraints. The uncertainty analysis indicates that various sources affect the performance of forest biomass/carbon estimation. With that said, the clear dominate sources of uncertainty are the variation of input sample plot data and data saturation problem related to optical sensors. A possible solution to increasing the confidence in forest biomass estimates is to integrate the strengths of multisensor data.
机译:长期以来,Landsat Thematic mapper(TM)图像一直是主要的数据来源,最近,LiDAR为森林生物量估计提供了重要的新结构数据流。另一方面,由于难以收集参考数据,森林生物量不确定性分析研究直到最近才引起足够的重视。本文简要概述了使用TM和LiDAR数据的当前森林生物量估算方法。然后,提供了一个案例研究,该案例演示了森林生物量估算方法和不确定性分析。结果表明,Landsat TM数据可以为次生演替提供足够的生物量估计,但由于数据饱和问题,不适合成熟的森林生物量估计。 LiDAR可以克服TM的缺点,提供更好的生物量估算性能,但由于数据可用性的限制,并未在实践中得到广泛应用。不确定性分析表明,各种来源都会影响森林生物量/碳估算的绩效。话虽如此,不确定性的明显主要来源是输入样本图数据的变化和与光学传感器有关的数据饱和问题。增强对森林生物量估计的信心的一种可能解决方案是整合多传感器数据的优势。

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