From known to unknown unknowns through pattern-oriented modelling: Driving research towards the Medawar zone

IF 2.6 3区 环境科学与生态学 Q2 ECOLOGY Ecological Modelling Pub Date : 2024-09-10 DOI:10.1016/j.ecolmodel.2024.110853
Ming Wang , Hsiao-Hsuan Wang , Tomasz E. Koralewski , William E. Grant , Neil White , Jim Hanan , Volker Grimm
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Abstract

The metaphor of the Medawar zone describes the relationship between the difficulty of a scientific problem and the potential payoff of solving it. This zone represents the realm where questions offer high benefits relative to the effort required to address them. By harnessing the power of mechanistic modelling, scientists can navigate towards this zone, moving beyond known unknowns to discover unknown unknowns. This requires models to be realistic and reliable. Model usefulness, impact, and predictive power can be enhanced by achieving intermediate model complexity, where the trade-off between the realism and tractability of a model is optimised. To achieve these goals, we use the pattern-oriented modelling strategy (POM) to direct research into the Medawar zone by steering model structure towards intermediate complexity. We illustrate this strategy with a detailed conceptual process. Using example models from agri-ecological systems, we demonstrate how intermediate complexity can be attained through POM, and how pattern-oriented models of intermediate complexity that reproduce multiple patterns can uncover both known unknowns and unknown unknowns, which ultimately advances our understanding of complex systems and facilitates groundbreaking discoveries. In addition, we discuss the multidimensionality of the Medawar zone in the context of modelling philosophy and highlight the challenges and imperatives for achieving coherence in the modelling discipline. We emphasize the need for collaboration between end-users and modellers and the adoption of systematic modelling strategies such as POM.

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通过面向模式的建模,从已知到未知:推动对梅达瓦区的研究
梅达瓦区的比喻描述了科学问题的难度与解决该问题的潜在回报之间的关系。这一区域代表的是相对于解决问题所需的努力而言,问题能带来高收益的领域。通过利用机理建模的力量,科学家们可以朝着这一区域前进,超越已知未知,发现未知未知。这就要求模型真实可靠。模型的实用性、影响力和预测力可以通过实现中间模型复杂性来提高,在中间模型复杂性中,模型的现实性和可操作性之间的权衡得到了优化。为了实现这些目标,我们采用了以模式为导向的建模策略(POM),通过引导模型结构向中间复杂度发展来指导梅达沃区的研究。我们用一个详细的概念过程来说明这一策略。我们利用农业生态系统的示例模型,展示了如何通过 POM 实现中间复杂性,以及重现多种模式的中间复杂性模式导向模型如何揭示已知的未知和未知的未知,从而最终推进我们对复杂系统的理解并促进突破性发现。此外,我们还从建模哲学的角度讨论了梅达沃区的多维性,并强调了实现建模学科一致性的挑战和当务之急。我们强调最终用户和建模者之间需要合作,并采用系统的建模策略,如 POM。
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来源期刊
Ecological Modelling
Ecological Modelling 环境科学-生态学
CiteScore
5.60
自引率
6.50%
发文量
259
审稿时长
69 days
期刊介绍: The journal is concerned with the use of mathematical models and systems analysis for the description of ecological processes and for the sustainable management of resources. Human activity and well-being are dependent on and integrated with the functioning of ecosystems and the services they provide. We aim to understand these basic ecosystem functions using mathematical and conceptual modelling, systems analysis, thermodynamics, computer simulations, and ecological theory. This leads to a preference for process-based models embedded in theory with explicit causative agents as opposed to strictly statistical or correlative descriptions. These modelling methods can be applied to a wide spectrum of issues ranging from basic ecology to human ecology to socio-ecological systems. The journal welcomes research articles, short communications, review articles, letters to the editor, book reviews, and other communications. The journal also supports the activities of the [International Society of Ecological Modelling (ISEM)](http://www.isemna.org/).
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