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Biomass Modelling of Androstachys johnsonii Prain: A Comparison of Three Methods to Enforce Additivity

机译:约翰逊Androstachys Prain的生物量建模:三种实现加性的方法的比较。

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摘要

Three methods of enforcing additivity of tree component biomass estimates into total tree biomass estimates for Androstachys johnsonii Prain were studied and compared, namely, the conventional (CON) method (a method that consists of using the same independent variables for all tree component models, and for total tree model, and the same weights to enforce additivity), seemingly unrelated regression (SUR) with parameter restriction, and nonlinear seemingly unrelated regression (NSUR) with parameter restriction. The CON method was found to be statistically superior to any other method of enforcing additivity, yielding excellent fit statistics and unbiased biomass estimates. The NSUR method ranked second best but was found to be biased. The SUR methodwas found to be the worst; it exhibited large bias and had a poor fit for the biomass. Therefore, we recommend that only the CON and NSUR methods should be used for further estimates, provided that their limitations are considered, that is, exclusion of contemporaneous correlations for the CON method and consideration of the significant bias of the NSUR method.
机译:研究并比较了三种将树种生物量估计值与树种总生物量估计值相加的方法,即常规(CON)方法(该方法包括对所有树种模型使用相同的独立变量,以及对于总树模型,并且具有相同的权重以强制执行可加性),带有参数限制的看似无关的回归(SUR)和带有参数限制的非线性看似无关的回归(NSUR)。发现CON方法在统计学上优于任何其他强制加性的方法,可产生出色的拟合统计量和无偏量的生物量估计值。 NSUR方法排名第二,但被发现存在偏见。发现SUR方法最差。它表现出较大的偏差,并且对生物质的适应性很差。因此,我们建议仅使用CON和NSUR方法进行进一步估计,前提是要考虑它们的局限性,即排除CON方法的同期相关性,并考虑NSUR方法的显着偏差。

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