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首页> 外文期刊>Geoderma: An International Journal of Soil Science >A two-step modelling approach to map the occurrence and quantity of soil inorganic carbon
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A two-step modelling approach to map the occurrence and quantity of soil inorganic carbon

机译:一种映射土壤无机碳的发生和数量的两步建模方法

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Soil inorganic carbon (SIC) accounts for approximately 30-40% of global soil carbon stocks and up to 90% of total carbon stocks in arid and semi-arid regions. The quantity of SIC can vary considerably over short distances, and SIC primarily accumulates at depth as carbonates, which makes it a challenge to model and map across space. Furthermore, carbonates are not found in all soils, meaning that many datasets of SIC are zero-inflated and highly skewed compared to the distributions of other soil properties. This study uses data from a soil survey performed in 2015 to model and map subsoil (0.3-0.5 m) inorganic carbon content in a semi-arid, irrigated cotton-growing region in the lower Lachlan River valley in south-west New South Wales, Australia. A two-step mixture model is used to overcome the zero-inflated and highly skewed nature of the SIC dataset. Such an approach involves using a random forest model to initially predict the presence or absence of SIC in the study area, then using a separate model to predict SIC content using values from the dataset that are above-zero only. The two maps produced from this process are then combined to create a SIC content map. This two-step method had more accurate predictions when compared to a simple one-step modelling approach. Overall, the two-step mixture model proved useful for mapping SIC content, and shows promise for modelling other environmental properties that have a similar zero-inflated and skewed distribution.
机译:土壤无机碳(SIC)占全球土壤碳股的约30-40%,占干旱和半干旱地区总碳股的90%。 SiC的数量可以很短的距离变化,SiC主要累积为碳酸盐的深度,这使其成为模型和地图跨空间的挑战。此外,在所有土壤中未发现碳酸盐,这意味着与其他土壤特性的分布相比,许多SiC的数据集比零充气,高度倾斜。本研究利用2015年进行的土壤调查的数据在西南新南威尔士西南部的半干旱,灌溉棉花山谷中的模型和地图底土(0.3-0.5米)的无机碳含量,澳大利亚。两步混合物模型用于克服SiC数据集的零充气和高度倾斜性质。这种方法涉及使用随机林模型初步预测研究区域中的SiC的存在或不存在,然后使用单独的模型使用来自高于零的数据集的值来预测SIC内容。然后将由该过程产生的两个地图组合以创建SiC内容图。与简单的一步建模方法相比,这种两步方法具有更准确的预测。总的来说,两步混合模型可用于映射SIC含量,并显示用于建模具有类似零充气和偏斜分布的其他环境属性的承诺。

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