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Methods for estimating aboveground biomass and its components for Douglas-fir and lodgepole pine trees

机译:估计地上生物量及其为道格拉斯 - 冷杉和小屋松树组成的方法

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Estimating aboveground biomass and its components requires sound statistical formulation and evaluation. Using data collected from 55 destructively sampled trees in different parts of Oregon, we evaluated the performance of three groups of methods to estimate total aboveground biomass and (or) its components based on the bias and root mean squared error (RMSE) that they produced. The first group of methods used an analytical approach to estimate total and component biomass using existing equations and produced biased estimates for our dataset. The second group of methods used a system of equations fitted with seemingly unrelated regression (SUR) and were superior to the first group of methods in terms of bias and RMSE. The third group of methods predicted the proportion of biomass in each component using beta regression, Dirichlet regression, and multinomial log-linear regression. The predicted proportions were then applied to the total aboveground biomass to obtain the amount of biomass in each component. The multinomial log-linear regression approach consistently produced smaller RMSEs compared with both SUR methods. The beta and Dirichlet regressions were superior to both SUR methods except for Douglas-fir (Pseudotsuga menziesii (Mirb.) Franco) branch biomass, for which the simple SUR method produced smaller RMSE compared with the beta and Dirichlet regressions.
机译:估算地上生物量及其组成部分需要合理的统计公式和评估。利用从俄勒冈州不同地区55棵破坏性采样的树木中收集的数据,我们评估了三组方法的性能,这些方法基于它们产生的偏差和均方根误差(RMSE)估算总地上生物量和(或)其组成部分。第一组方法使用分析方法,使用现有方程估算总生物量和组分生物量,并对我们的数据集进行有偏估计。第二组方法使用了一个方程组,该方程组与看似无关的回归(SUR)相匹配,并且在偏差和RMSE方面优于第一组方法。第三组方法使用贝塔回归、狄里克莱回归和多项式对数线性回归预测生物量在各成分中的比例。然后将预测的比例应用于地上总生物量,以获得每个组分中的生物量。与两种SUR方法相比,多项式对数线性回归方法始终产生较小的RMSE。除了道格拉斯冷杉(Pseudouglas-Tsuga-menziesii,Mirb.)外,beta回归和Dirichlet回归均优于两种SUR方法Franco)分支生物量,与beta和Dirichlet回归相比,简单SUR方法产生的RMSE较小。

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