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Forest Aboveground Biomass Estimation using ICESat/GLAS and Imagery Remote Sensing Data in the Greater Mekong Subregion: 1st result from Yunnan Province, China

机译:森林地上的生物量估计,使用ICESAT / GLAS和Imagery遥感数据在大湄公河次区域:1ST云南省,中国

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This study aims to develop a forest aboveground biomass (AGB) mapping method in the Greater Mekong Subregion (GMS). Vertical structure of forest parameters of two forest farms in Yunnan province, China were derive using airborne LiDAR system (ALS). Regression models were built between field data of forest AGB and percentiles of canopy height, canopy density which derived from ALS point cloud data. The high accuracy ALS estimated forest aboveground biomass (AGB) were used as training data for building forest AGB estimation model with ICESat GLAS waveform indices. Then the forest ABG was estimated at ICESat GLAS footprint level in the whole province. The regression tree and MAXENT methods were investigated to extend the AGB estimation from GLAS footprint to continuous mapping using imagery remote sensing data of ENVISAT MERIS and EOS MODIS data. The preliminary results showed that: 1) The integrated method based on field measurements, airborne and spaceborne LiDAR data can be used to estimate forest aboveground biomass effectively. 2) The estimation agreed well with inventory based results, and the average difference was about 10%. 3) Both regression tree and MAXENT methods predicted AGB spatial distribution well. 4) These methods will be investigated further and used to the entire Greater Mekong Subregion with more reference training data.
机译:本研究旨在在大型湄公河次区域(GMS)中开发地上地上生物量(AGB)映射方法。云南省两个森林农场森林参数的垂直结构,云南省使用空中激光雷达系统(ALS)获得。回归模型是建造在森林AGB的现场数据和占顶篷高度百分比的百分比之间,该冠层密度来自ALS点云数据。高精度ALS估计的森林地上生物量(AGB)用作建立森林AGB估计模型的培训数据,具有ICESAT GLAS波形指数。然后森林ABG估计全省的ICESAT GLAS足迹水平。研究了回归树和最大方法以将GLAS覆盖范围扩展到使用Envisat Meris和EOS Modis数据的图像遥感数据的连续映射。初步结果表明:1)基于现场测量的综合方法,空中和星载LIDAR数据可用于有效地估算地上生物量的森林。 2)估计与库存结果良好均匀,平均差异约为10%。 3)两种回归树和最大方法都预测了AGB空间分布。 4)将进一步调查这些方法,并用更多的参考培训数据向整个大湄公河次区域进行。

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