Taxonomies for structuring models for World–Earth systems analysis of the Anthropocene: subsystems, their interactions and social–ecological feedback loops

J. Donges, W. Lucht, S. Cornell, J. Heitzig, W. Barfuss, S. Lade, Maja Schlüter
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引用次数: 22

Abstract

Abstract. In the Anthropocene, the social dynamics of human societies have become critical to understanding planetary-scale Earth system dynamics. The conceptual foundations of Earth system modelling have externalised social processes in ways that now hinder progress in understanding Earth resilience and informing governance of global environmental change. New approaches to global modelling of the human World are needed to address these challenges. The current modelling landscape is highly diverse and heterogeneous, ranging from purely biophysical Earth system models, to hybrid macro-economic integrated assessments models, to a plethora of models of socio-cultural dynamics. World–Earth models capable of simulating complex and entangled human–Earth system processes of the Anthropocene are currently not available. They will need to draw on and selectively integrate elements from the diverse range of fields and approaches; thus, future World–Earth modellers require a structured approach to identify, classify, select, combine and critique model components from multiple modelling traditions. Here, we develop taxonomies for ordering the multitude of societal and biophysical subsystems and their interactions. We suggest three taxa for modelled subsystems: (i) biophysical, where dynamics is usually represented by “natural laws” of physics, chemistry or ecology (i.e. the usual components of Earth system models); (ii) socio-cultural, dominated by processes of human behaviour, decision-making and collective social dynamics (e.g. politics, institutions, social networks and even science itself); and (iii) socio-metabolic, dealing with the material interactions of social and biophysical subsystems (e.g. human bodies, natural resources and agriculture). We show how higher-order taxonomies can be derived for classifying and describing the interactions between two or more subsystems. This then allows us to highlight the kinds of social–ecological feedback loops where new modelling efforts need to be directed. As an example, we apply the taxonomy to a stylised World–Earth system model that endogenises the socially transmitted choice of discount rates in a greenhouse gas emissions game to illustrate the effects of social–ecological feedback loops that are usually not considered in current modelling efforts. The proposed taxonomy can contribute to guiding the design and operational development of more comprehensive World–Earth models for understanding Earth resilience and charting sustainability transitions within planetary boundaries and other future trajectories in the Anthropocene.
构建人类世世界-地球系统分析模型的分类:子系统、它们之间的相互作用和社会-生态反馈回路
摘要在人类世,人类社会的社会动态已经成为理解行星尺度地球系统动力学的关键。地球系统建模的概念基础使社会过程外部化,现在阻碍了理解地球复原力和为全球环境变化治理提供信息的进展。人类世界的全球建模需要新的方法来应对这些挑战。目前的建模景观是高度多样化和异质性的,从纯粹的生物物理地球系统模型,到混合宏观经济综合评估模型,再到大量的社会文化动态模型。目前还没有能够模拟人类世复杂和纠缠的人类-地球系统过程的世界-地球模式。它们将需要利用和有选择地综合各种领域和方法的要素;因此,未来的世界-地球建模者需要一种结构化的方法来识别、分类、选择、组合和批评来自多种建模传统的模型组件。在这里,我们开发了用于排序众多社会和生物物理子系统及其相互作用的分类法。我们建议将模拟的子系统分为三个分类群:(i)生物物理,其中动力学通常由物理、化学或生态的“自然规律”表示(即地球系统模型的通常组成部分);(ii)社会文化,由人类行为、决策和集体社会动态过程(如政治、制度、社会网络甚至科学本身)主导;(iii)社会代谢,处理社会和生物物理子系统(如人体、自然资源和农业)的物质相互作用。我们将展示如何派生出用于分类和描述两个或多个子系统之间的交互的高阶分类法。这使我们能够强调社会生态反馈循环的种类,在那里需要指导新的建模工作。作为一个例子,我们将分类法应用于一个风格化的世界-地球系统模型,该模型内化了温室气体排放游戏中社会传播的贴现率选择,以说明当前建模工作中通常未考虑的社会-生态反馈循环的影响。所提出的分类方法有助于指导更全面的世界-地球模型的设计和操作开发,以了解地球的复原力,绘制地球边界内的可持续性转变和人类世的其他未来轨迹。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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