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A Land System representation for global assessments and land-use modeling

机译:用于全球评估和土地利用建模的土地系统代表

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Current global scale land-change models used for integrated assessments and climate modeling are based on classifications of land cover. However, land-use management intensity and livestock keeping are also important aspects of land use, and are an integrated part of land systems. This article aims to classify, map, and to characterize Land Systems (LS) at a global scale and analyze the spatial determinants of these systems. Besides proposing such a classification, the article tests if global assessments can be based on globally uniform allocation rules. Land cover, livestock, and agricultural intensity data are used to map LS using a hierarchical classification method. Logistic regressions are used to analyze variation in spatial determinants of LS. The analysis of the spatial determinants of LS indicates strong associations between LS and a range of socioeconomic and biophysical indicators of human-environment interactions. The set of identified spatial determinants of a LS differs among regions and scales, especially for (mosaic) cropland systems, grassland systems with livestock, and settlements. (Semi-)Natural LS have more similar spatial determinants across regions and scales. Using LS in global models is expected to result in a more accurate representation of land use capturing important aspects of land systems and land architecture: the variation in land cover and the link between land-use intensity and landscape composition. Because the set of most important spatial determinants of LS varies among regions and scales, land-change models that include the human drivers of land change are best parameterized at sub-global level, where similar biophysical, socioeconomic and cultural conditions prevail in the specific regions.
机译:当前用于综合评估和气候模拟的全球规模土地变化模型是基于土地覆盖的分类。但是,土地利用管理强度和牲畜饲养也是土地利用的重要方面,并且是土地系统的组成部分。本文旨在在全球范围内对土地系统(LS)进行分类,映射和特征化,并分析这些系统的空间决定因素。除了提出这样的分类,本文还测试了全局评估是否可以基于全局统一的分配规则。土地覆盖,牲畜和农业强度数据用于使用分层分类方法绘制LS。 Logistic回归用于分析LS空间决定因素的变化。对LS的空间决定因素的分析表明,LS与人类与环境相互作用的一系列社会经济和生物物理指标之间有着很强的联系。最小二乘的确定的空间决定因素集在区域和规模之间是不同的,尤其是对于(马赛克)农田系统,带牲畜的草地系统和定居点而言。 (半)自然LS在区域和尺度上具有更多相似的空间决定因素。在全球模型中使用LS有望导致更准确地表示土地利用,从而反映土地系统和土地建筑的重要方面:土地覆盖的变化以及土地利用强度与景观构成之间的联系。由于LS的最重要的空间决定因素集随地区和规模的不同而变化,因此最好在亚全球范围内对包括土地变化的人类驱动因素在内的土地变化模型进行参数化,在特定区域中存在类似的生物物理,社会经济和文化条件。

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