论文标题

时变栖息地连通性对元社区持久性的影响

Effects of time-varying habitat connectivity on metacommunity persistence

论文作者

Bhandary, Subhendu, Biswas, Debabrata, Banerjee, Tanmoy, Dutta, Partha Sharathi

论文摘要

网络结构或连通性模式对于确定生态系统中相互作用物种之间的集体动态至关重要。关于空间种群中物种持久性的传统研究集中在静态网络结构上,尽管大多数真实的网络结构在时间上发生变化,从而形成了随时间变化的网络。这提出了一个问题,在元社区中,同步模式在网络结构中如何变化。已知物种之间的同步动力学会减少元社区的持久性。在这里,我们考虑了一个随时间变化的元社区小世界网络,该网络由每个贴片/节点中混乱的三种食物链振荡器组成。网络连通性的变化速率取决于组成振荡器的固有频率或其亚肝素,以便在连续的重新布线之间提供足够的时间来进化物种。我们发现,在一系列的耦合强度和重新布线期间,更高的重新布线概率甚至将网络从异步到同步。此外,在较小的重新布线期的网络中,平均程度(更连接的网络)的增加将异步动态推向同步。相反,在平均程度较低的网络中,更高的重新布线期将同步动力学驱动到异步,从而导致物种持久性增加。我们的结果还遵循其他生态系统模型的同步时间和鲁棒的计算。总体而言,我们的研究开辟了开发时间连通性策略以增加生态网络中物种持久性的可能性。

Network structure or connectivity pattern is critical in determining collective dynamics among interacting species in ecosystems. Conventional research on species persistence in spatial populations has focused on static network structure, though most real network structures change in time, forming time-varying networks. This raises the question, in metacommunities, how does the pattern of synchrony vary with temporal evolution in the network structure. The synchronous dynamics among species are known to reduce metacommunity persistence. Here, we consider a time-varying metacommunity small-world network consisting of a chaotic three-species food chain oscillator in each patch/node. The rate of change in the network connectivity is determined by the natural frequency or its subharmonics of the constituent oscillator to allow sufficient time for the evolution of species in between successive rewirings. We find that over a range of coupling strengths and rewiring periods, even higher rewiring probabilities drive a network from asynchrony towards synchrony. Moreover, in networks with a small rewiring period, an increase in average degree (more connected networks) pushes the asynchronous dynamics to synchrony. On the contrary, in networks with a low average degree, a higher rewiring period drives the synchronous dynamics to asynchrony resulting in increased species persistence. Our results also follow the calculation of synchronization time and robust across other ecosystem models. Overall, our study opens the possibility of developing temporal connectivity strategies to increase species persistence in ecological networks.

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