arXiv · 1008.0022
Predicting criticality and dynamic range in complex networks: effects of topology
Abstract
The collective dynamics of a network of coupled excitable systems in response to an external stimulus depends on the topology of the connections in the network. Here we develop a general theoretical approach to study the effects of network topology on dynamic range, which quantifies the range of stimulus intensities resulting in distinguishable network responses. We find that the largest eigenvalue of the weighted network adjacency matrix governs the network dynamic range. Specifically, a largest eigenvalue equal to one corresponds to a critical regime with maximum dynamic range. We gain deeper insight on the effects of network topology using a nonlinear analysis in terms of additional spectral properties of the adjacency matrix. We find that homogeneous networks can reach a higher dynamic range than those with heterogeneous topology. Our analysis, confirmed by numerical simulations, generalizes previous studies in terms of the largest eigenvalue of the adjacency matrix.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Daniel B. Larremore, Woodrow L. Shew, Juan G. Restrepo. 2010-10-15. Predicting criticality and dynamic range in complex networks: effects of topology. https://doi.org/10.1103/physrevlett.106.058101
Cite the original work for its findings. Save a collection to share your selection of sources.