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过程明确模型揭示了生物多样性模式的结构和动态。

Process-explicit models reveal the structure and dynamics of biodiversity patterns.

机构信息

The Environment Institute, School of Biological Sciences, University of Adelaide, Adelaide, Australia.

Center for Macroecology, Evolution, and Climate, GLOBE Institute, University of Copenhagen, Copenhagen, Denmark.

出版信息

Sci Adv. 2022 Aug 5;8(31):eabj2271. doi: 10.1126/sciadv.abj2271.

Abstract

With ever-growing data availability and computational power at our disposal, we now have the capacity to use process-explicit models more widely to reveal the ecological and evolutionary mechanisms responsible for spatiotemporal patterns of biodiversity. Most research questions focused on the distribution of diversity cannot be answered experimentally, because many important environmental drivers and biological constraints operate at large spatiotemporal scales. However, we can encode proposed mechanisms into models, observe the patterns they produce in virtual environments, and validate these patterns against real-world data or theoretical expectations. This approach can advance understanding of generalizable mechanisms responsible for the distributions of organisms, communities, and ecosystems in space and time, advancing basic and applied science. We review recent developments in process-explicit models and how they have improved knowledge of the distribution and dynamics of life on Earth, enabling biodiversity to be better understood and managed through a deeper recognition of the processes that shape genetic, species, and ecosystem diversity.

摘要

随着数据可用性和计算能力的不断增长,我们现在有能力更广泛地使用过程明确模型来揭示导致生物多样性时空模式的生态和进化机制。大多数关注多样性分布的研究问题无法通过实验来回答,因为许多重要的环境驱动因素和生物限制因素在很大的时空尺度上起作用。然而,我们可以将提出的机制编码到模型中,观察它们在虚拟环境中产生的模式,并根据实际数据或理论预期来验证这些模式。这种方法可以促进对生物、群落和生态系统在空间和时间上分布的普遍机制的理解,推进基础和应用科学。我们回顾了过程明确模型的最新进展,以及它们如何提高对地球上生命分布和动态的认识,使我们能够更好地理解和管理生物多样性,通过更深入地认识塑造基因、物种和生态系统多样性的过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c6cb/9355350/10634d9774a0/sciadv.abj2271-f1.jpg

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