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Spatial modelling of soil water holding capacity improves models of plant distributions in mountain landscapes

机译:土壤水持有能力的空间建模改进了山地景观植物分布模型

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AimsThe aims of this study were: 1) to test a new methodology to overcome the issue of the predictive capacity of soil water availability in geographic space due to measurement scarcity, 2) to model and generalize soil water availability spatially to a whole region, and 3) to test its predictive capacity in plant SDMs.MethodsFirst, we modelled the measured Soil Water Holding Capacity (SWHC at different pFs) of 24 soils in a focal research area, using a weighted ensemble of small bivariate models (ESM). We then used these models to predict 256 locations of a larger region and used the differences in these pF predictions to calculate three different indices of soil water availability for plants (SWAP. These SWAP variables were added one by one to a set of conventional topo-climatic predictors to model 104 plant species distributions.ResultsWe showed that adding SWAP to the SDMs could improve our ability to predict plant species distributions, and more specifically, pF1.8-pF4.2 became the third most important predictor across all plant models.ConclusionsSoil water availability can contribute a significant increase in the predictive power of plant distribution models, by identifying important additional abiotic information to describe plant ecological niches.
机译:本研究的AIMSTHE目标是:1)测试一种新方法,以克服由于测量稀缺而导致地理空间中土壤水可用性预测能力问题的问题,2)在空间上模拟和概括整个地区的土壤水可用性,以及3)在植物SDMS中测试其预测能力。方法,我们使用小型双变量模型(ESM)的加权集合,将测量的土壤水持续能力(SWHC在不同PFS上的不同PFS)。然后我们使用这些模型来预测较大区域的256个位置,并使用这些PF预测的差异来计算植物的土壤水可用性的三种不同索引(交换。这些交换变量逐一加入一组传统的Topo-气候预测因子到Model 104植物物种分布。培训百合展示向SDMS添加交换可以提高我们预测植物物种分布的能力,更具体地,PF1.8-PF4.2成为所有植物模型的第三个最重要的预测因子.ConclusionsseIL通过确定重要的额外非生物信息来描述植物生态利基,水可用性可以有助于植物分布模型的预测力量增加。

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