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An improved method for estimating forest canopy height using ICESat-GLAS full waveform data over sloping terrain: A case study in Changbai mountains,China
Authors:Yanqiu Xing  Alfred de Gier  Junjie Zhang  Lihai Wang
Institution:1. Centre for Forest Operations and Environment, Northeast Forestry University, No. 26 Hexing Road, 150040 Harbin, Heilongjiang, China;2. Faculty of Geo-Information Science and Earth Observation (ITC), University of Twente, Hengelosestraat 99, 7500 AA Enschede, The Netherlands;3. Department of Earth and Space Science and Engineering, York University, 4700 Keele Street, M3J 1P3, Toronto, Canada
Abstract:Light Detection And Ranging (LiDAR) has a unique capability for estimating forest canopy height, which has a direct relationship with, and can provide better understanding of the aboveground forest carbon storage. The full waveform data of the large-footprint LiDAR Geoscience Laser Altimeter System (GLAS) onboard the Ice, Cloud, and land Elevation Satellite (ICESat), combined with field measurements of forest canopy height, were employed to achieve improved estimates of forest canopy height over sloping terrain in the Changbai mountains region, China. With analyzing ground-truth experiments, the study proposed an improved model over Lefsky's model to predict maximum canopy height using the logarithmic transformation of waveform extent and elevation change as independent variables. While Lefsky's model explained 8–89% of maximum canopy height variation in the study area, the improved model explained 56–92% of variation within the 0–30° terrain slope category. The results reveal that the improved model can reduce the mixed effects caused by both sloping terrain and rough land surface, and make a significant improvement for accurately estimating maximum canopy height over sloping terrain.
Keywords:LiDAR  Full waveform  ICESat-GLAS  Forest canopy height  Sloping terrain  Changbai mountains
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