Decoupling process for better synchronizability on scale-free networks
- 13 October 2006
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 74 (4) , 047102
- https://doi.org/10.1103/physreve.74.047102
Abstract
We propose a decoupling process performed in scale-free networks to enhance the synchronizability of the network, together with preserving the scale-free structure. Simulation results show that the decoupling process can effectively promote the network synchronizability, which is measured in terms of eigenratio of the coupling matrix. Moreover, we investigate the correlation between some important structural properties and the collective synchronization, and find that the maximum vertex betweenness seems to be the most strongly correlated with the synchronizability among the major structural features considered. We explain the effect of the decoupling process from a viewpoint of coupling information transmission. Our work provides some evidence that the dynamics of synchronization is related to that of information or vehicle traffic. Because of the low cost in modifying the coupling network, the decoupling process may have potential applications.Keywords
This publication has 26 references indexed in Scilit:
- Complex networks: Structure and dynamicsPhysics Reports, 2006
- The “New” Science of NetworksAnnual Review of Sociology, 2004
- Evolution and Structure of the InternetPublished by Cambridge University Press (CUP) ,2004
- Spontaneous structure formation in a network of dynamic elementsPhysical Review E, 2003
- The Structure and Function of Complex NetworksSIAM Review, 2003
- Coexistence of Regular and Irregular Dynamics in Complex Networks of Pulse-Coupled OscillatorsPhysical Review Letters, 2002
- Evolution of networksAdvances in Physics, 2002
- COMPLEX NETWORKS: TOPOLOGY, DYNAMICS AND SYNCHRONIZATIONInternational Journal of Bifurcation and Chaos, 2002
- Statistical mechanics of complex networksReviews of Modern Physics, 2002
- Fast Response and Temporal Coherent Oscillations in Small-World NetworksPhysical Review Letters, 2000