具有延迟相互作用的生态系统中的重排序层次复杂性。

IF 3.8 Q2 MULTIDISCIPLINARY SCIENCES
PNAS nexus Pub Date : 2025-07-14 eCollection Date: 2025-07-01 DOI:10.1093/pnasnexus/pgaf214
Bo-Wei Qin, Wenbo Sheng, Xuzhe Qian, Jürgen Kurths, Alan Hastings, Ying Cheng Lai, Wei Lin
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引用次数: 0

摘要

人们曾经认为,具有随机相互作用的大型生态系统是不稳定的,限制了它们的复杂性。因此,大型社区规模或大量互动在自然界是罕见的。后来,一个严格的等级复杂性被揭示出来:竞争和互惠群落的复杂性最低,其次是随机群落,然后是捕食者-猎物群落。近年来,人们发现了具有相同复杂性的生态系统的恢复时间层次结构,受离散时间延迟的影响。一个关键问题是,这种层次复杂性在非瞬时交互作用下是否成立。令人惊讶的是,我们发现事实并非如此。具体而言,捕食者-猎物群落的复杂性受到时间延迟的显著影响,在临界阈值处重新排序。这些变化表现出具有连续时间延迟的非单调行为,这是另一种现实的相互作用类型。我们在各种现实的生态系统中验证了我们的发现。我们的研究结果表明,将时间延迟及其适当形式等因素纳入研究,可以使我们对大型生态系统和其他生物物理系统的复杂性有更正确、更深入的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reordered hierarchical complexity in ecosystems with delayed interactions.

It was once believed that large ecosystems with random interactions are unstable, limiting their complexity. Thus, large community size or numerous interactions are rare in nature. Later, a strict hierarchical complexity was revealed: competitive and mutualistic communities have the least complexity, followed by random ones, and then predator-prey communities. Recently, a hierarchy of recovery times for ecosystems with identical complexity was found, influenced by discrete time delays. A key question is whether this hierarchical complexity holds under noninstantaneous interactions. We surprisingly show that it does not. Specifically, the complexity of predator-prey communities is significantly affected by time delays, reordering the hierarchy at a critical threshold. These changes exhibit nonmonotonic behavior with continuous time delays, another realistic interaction type. We validated our findings in various realistic ecosystems. Our results indicate that incorporating factors like time delays and their appropriate forms can lead to correct and even deeper understanding about complexity of large ecosystems and other biophysical systems.

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