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Potential of high-resolution ALOS-PALSAR mosaic texture for aboveground forest carbon tracking in tropical region

机译:高分辨率ALOS-PALSAR马赛克纹理在热带地区地上森林碳追踪中的潜力

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Estimating accurate aboveground forest carbon stocks (AFCS) is always challenging in tropical regions due to the complex mosaic of forest structure and species diversity. This study evaluates the potential of high-resolution ALOS/PALSAR mosaics data in the tropical forests of central Sumatra to improve AFCS estimates. The study region has an average AFCS (47% of the aboveground biomass) of 66 Mg C ha(-1) with a range of 1 to 334 Mg C ha-1 and consists of natural forests including peat swamp, dry moist, regrowth, and mangrove, and plantation forests including rubber, acacia, oil palm, and coconut. Field measurements of AFCS were carried out in 87 (ha(-1)) plots, where half of them were from plantation forests. Various possibilities including direct gamma naught back-scatters and their ratios and various types of textures of dual polarized mosaics from the years 2009 and 2010 were examined applying regression modeling in a five step framework. R-2, variable inflation factor (VIF), p-value, and root mean square errors (RMSE) were the major indicators considered for selection of best model in the calibration process. The potential models selected were cross validated by the leave-one-out (LOO) method where R-2, RMSE, mean deviation (MD), and Nash-Sutcliffe Efficiency (NSE, model performance indicator) were examined. The results indicate that a simple combination of backscatters and their ratios provides an AFCS estimate with a RMSE of 45 Mg C ha(-1), more efficient than the average of field measured AFCS (NSE of 0.54), and R-2 of 0.63. Inclusion of appropriate texture parameters derived from the high-resolution PALSAR mosaics further increases the potential for AFCS estimation by increasing R-2 and model performance (NSE) to 0.84 and 0.83, respectively and decreasing the uncertainty to 28 Mg C ha(-1). This SAR based method offers the low cost wall-to-wall forest carbon mapping with a high level of accuracy in the dense tropical forest regions of Southeast Asia where other methods are still rare. (C) 2015 Elsevier Inc All rights reserved.
机译:由于森林结构和物种多样性复杂,估计热带地区准确的地上森林碳储量(AFCS)一直是一项挑战。这项研究评估了苏门答腊中部热带森林中高分辨率ALOS / PALSAR镶嵌数据对改善AFCS估计的潜力。研究区域的平均AFCS(占地面生物量的47%)为66 Mg C ha(-1),范围为1至334 Mg C ha-1,由天然森林组成,包括泥炭沼泽,干燥潮湿,再生长,以及红树林和人工林,包括橡胶,金合欢,油棕和椰子。 AFCS的现场测量是在87个(ha(-1))样地中进行的,其中一半来自人工林。使用五步框架中的回归模型,研究了包括直接伽马零背向散射及其比率以及2009年和2010年的双极化马赛克的各种类型的纹理的各种可能性。 R-2,可变膨胀因子(VIF),p值和均方根误差(RMSE)是在校准过程中选择最佳模型的主要指标。所选的潜在模型通过留一法(LOO)方法进行交叉验证,其中检验了R-2,RMSE,平均偏差(MD)和纳什-苏克利夫效率(NSE-模型性能指标)。结果表明,反向散射及其比率的简单组合可提供AFCS估计值,RMSE为45 Mg C ha(-1),比现场实测AFCS的平均值(NSE为0.54)和R-2为0.63更有效。通过将R-2和模型性能(NSE)分别提高到0.84和0.83,并将不确定度降低到28 Mg C ha(-1),包括从高分辨率PALSAR马赛克中得出的适当纹理参数进一步增加了AFCS估计的潜力。 。这种基于SAR的方法在东南亚茂密的热带森林地区提供了低成本的墙到墙森林碳制图,并且精度很高,而其他方法仍然很少。 (C)2015 Elsevier Inc保留所有权利。

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