Institute for Marine and Antarctic Studies and Centre for Marine Socioecology, University of Tasmania, 20 Castray Esplanade, Battery Point, Hobart, TAS 7000, Australia.
Centre for Applications in Natural Resource Mathematics (CARM), School of Mathematics and Physics, University of Queensland, St Lucia, Queensland 4072, Australia.
Trends Ecol Evol. 2017 Mar;32(3):174-186. doi: 10.1016/j.tree.2016.12.003. Epub 2017 Jan 19.
Size-based ecosystem modeling is emerging as a powerful way to assess ecosystem-level impacts of human- and environment-driven changes from individual-level processes. These models have evolved as mechanistic explanations for observed regular patterns of abundance across the marine size spectrum hypothesized to hold from bacteria to whales. Fifty years since the first size spectrum measurements, we ask how far have we come? Although recent modeling studies capture an impressive range of sizes, complexity, and real-world applications, ecosystem coverage is still only partial. We describe how this can be overcome by unifying functional traits with size spectra (which we call functional size spectra) and highlight the key knowledge gaps that need to be filled to model ecosystems from bacteria to whales.
基于大小的生态系统建模正在成为一种强大的方法,可以从个体层面的过程评估人为和环境驱动变化对生态系统层面的影响。这些模型已经发展成为对海洋大小谱中观察到的丰度规律的机械解释,这些规律被假设从细菌到鲸鱼都存在。自首次进行大小谱测量以来已经过去了 50 年,我们要问的是我们已经走了多远?尽管最近的模型研究涵盖了令人印象深刻的大小、复杂性和实际应用范围,但生态系统的覆盖范围仍然只是局部的。我们描述了如何通过将功能特征与大小谱相结合(我们称之为功能大小谱)来克服这一问题,并强调了需要填补的关键知识空白,以便从细菌到鲸鱼对生态系统进行建模。