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Multivariate estimation for accurate and logically consistent forest-attributes maps at macroscales

机译:用于准确和逻辑上一致的森林 - 属性在宏观上的多变量估计

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摘要

Spatially explicit wall-to-wall forest-attributes information is critically important for designing management strategies resilient to climate-induced uncertainties. Multivariate estimation methods that link forest attributes and auxiliary variables at full-information locations can be used to estimate the forest attributes for locations with only auxiliary variables information. However, trade-offs between estimation accuracies versus logical consistency among estimated attributes may occur. This is particularly likely for macroscales (i.e., &= 1 Mha) with large forest-attributes variances and wide spacing between full-information locations. We examined these trade-offs for similar to 390 Mha of Canada's boreal zone using variable-space nearest-neighbours imputation versus two modelling methods (i.e., a system of simultaneous nonlinear models and kriging with external drift). We found logical consistency among estimated forest attributes (i.e., crown closure, average height and age, volume per hectare, species percentages) using (i) k &= 2 nearest neighbours or (ii) careful model selection for the modelling methods. Of these logically consistent methods, kriging with external drift was the most accurate, but implementing this for a macroscale is computationally more difficult. This extra cost is justified given the importance of assessing strategies under expected climate changes in Canada's boreal forest and in other forest regions.
机译:空间显式的墙壁到墙森林 - 属性信息对于设计管理策略适应气候诱导的不确定性来说至关重要。在全信息位置链接林属性和辅助变量的多变量估计方法可用于估计仅具有辅助变量信息的林属性。但是,可能会发生估计准确性之间的权衡与估计属性之间的逻辑一致性。对于大型森林属性差异和全信息位置之间的宽间距,这尤其可能是宏观(即,& = 1 mha)。我们使用可变空间最近的邻居估算与两种建模方法(即同时非线性模型和带有外部漂移的Kriging系统,审查了这些权衡的这些权衡。我们发现使用(i)k& = 2最近邻居或(ii)用于建模方法的仔细模型选择的估计森林属性之间的逻辑一致性。在这些逻辑上一致的方法中,带有外部漂移的克里格是最准确的,但是为宏观实现这一点是计算更困难的。鉴于加拿大在加拿大的北方林和其他森林地区的预期气候变化下评估策略的重要性,这种额外的成本是合理的。

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