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Mapping from structure to dynamics : a unified view of dynamical processes on networks

机译:从结构到动态的映射:网络动态过程的统一视图

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摘要

Although it is unambiguously agreed that structure plays a fundamental role in shaping the collective dynamics of complex systems, how structure determines dynamics exactly still remains unclear. We investigate a general computational transformation by which we can map the network topology directly to the dynamical patterns emergent on it—independent of the nature of the dynamical processes. Remarkably, we find that many seemingly different dynamical processes on networks, such as coupled oscillators, ensemble neuron firing, epidemic spreading and diffusion can all be understood and unified through this same procedure. Utilizing the inherent multiscale nature of this structure-dynamics transformation, we further define a multiscale complexity measure, which can quantify the functional diversity a general network can support at different organization levels using only its structure. We find that a wide variety of topological features observed in real networks, such as modularity, hierarchy, degree heterogeneity and mixing all result in higher complexity. This result suggests that the demand for functional diversity is driving the structural evolution of physical networks.
机译:尽管明确同意结构在塑造复杂系统的集体动力学中起着基本作用,但是仍然不清楚结构如何确定动力学。我们研究了一种通用的计算转换,通过该转换,我们可以将网络拓扑直接映射到出现在其上的动态模式,而与动态过程的性质无关。值得注意的是,我们发现网络上许多看似不同的动力学过程,例如耦合振荡器,集合神经元激发,流行性传播和扩散,都可以通过同一过程来理解和统一。利用这种结构动力学转换的固有多尺度性质,我们进一步定义了多尺度复杂性度量,该度量可以量化仅使用其结构的通用网络可以在不同组织级别支持的功能多样性。我们发现,在实际网络中观察到的各种各样的拓扑特征,例如模块性,层次结构,程度异质性和混合性,都会导致更高的复杂性。该结果表明,对功能多样性的需求正在推动物理网络的结构演进。

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