College of Mathematics and Information Science, Shaanxi Normal University, Xián 710062, People's Republic of China.
Chaos. 2011 Dec;21(4):047522. doi: 10.1063/1.3629984.
This paper focuses on a paced genetic regulatory small-world network with time-delayed coupling. How the dynamical behaviors including temporal resonance and spatial synchronization evolve under the influence of time-delay and connection topology is explored through numerical simulations. We reveal the phenomenon of delay-induced resonance when the network topology is fixed. For a fixed time-delay, temporal resonance is shown to be degraded by increasing the rewiring probability of the network. On the other hand, for small rewiring probability, temporal resonance can be enhanced by an appropriately tuned small delay but degraded by a large delay, while conversely, temporal resonance is always reduced by time-delay for large rewiring probability. Finally, an optimal spatial synchrony is detected by a proper combination of time-delay and connection topology.
本文聚焦于具有时滞耦合的 paced 遗传调控小世界网络。通过数值模拟,探讨了在时滞和连接拓扑结构的影响下,包括时间共振和空间同步在内的动力学行为如何演变。我们揭示了在网络拓扑结构固定的情况下,时滞诱导共振的现象。对于固定的时滞,随着网络重连概率的增加,时间共振会被削弱。另一方面,对于较小的重连概率,通过适当调整小的时滞可以增强时间共振,但大的时滞会使其劣化,而对于较大的重连概率,时间共振总是随着时滞的增加而减少。最后,通过适当组合时滞和连接拓扑结构,检测到了最优的空间同步。