论文标题
多路复用网络中的方向性引起的唯一超扩散
Unique superdiffusion induced by directionality in multiplex networks
论文作者
论文摘要
多层网络框架已经有助于描述和揭示相互作用的复杂系统中的许多新颖和不可预见的身体行为和制度。但是,大多数现有研究都是建立在无向多层网络上的,而自然界中大多数复杂的系统都表现出了定向的相互作用。在这里,我们提出了一个框架,以分析由至少一个有向层组成的多层网络上的扩散动力学。我们严格地表明,多层网络中的方向性可以从根本上改变扩散动力学的行为:从单调(在无向系统中)到相对于层中耦合强度的非单调扩散。此外,对于某些多层网络配置,方向性可以诱导层间耦合的中间值诱导独特的超级延误状态,其中,其中扩散速度甚至比与未方向系统的理论限制相对应的速度更快,即,从每层层的集成网络中获得的扩散网络的扩散。从理论上讲,我们从理论上和数字上表明,超扩散的存在完全取决于每一层的方向性以及层之间的拓扑重叠。我们进一步提供了显示超扩散的多层网络的公式。我们的结果突出了将相互作用的方向性纳入多级网络系统中的重要性,并提供了一个框架,以分析具有方向性的互连复杂系统的动态过程。
The multilayer network framework has served to describe and uncover a number of novel and unforeseen physical behaviors and regimes in interacting complex systems. However, the majority of existing studies are built on undirected multilayer networks while most complex systems in nature exhibit directed interactions. Here, we propose a framework to analyze diffusive dynamics on multilayer networks consisting of at least one directed layer. We rigorously demonstrate that directionality in multilayer networks can fundamentally change the behavior of diffusive dynamics: from monotonic (in undirected systems) to non-monotonic diffusion with respect to the interlayer coupling strength. Moreover, for certain multilayer network configurations, the directionality can induce a unique superdiffusion regime for intermediate values of the interlayer coupling, wherein the diffusion is even faster than that corresponding to the theoretical limit for undirected systems, i.e., the diffusion in the integrated network obtained from the aggregation of each layer. We theoretically and numerically show that the existence of superdiffusion is fully determined by the directionality of each layer and the topological overlap between layers. We further provide a formulation of multilayer networks displaying superdiffusion. Our results highlight the significance of incorporating the interacting directionality in multilevel networked systems and provide a framework to analyze dynamical processes on interconnected complex systems with directionality.