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Universality of eigenvector delocalization and the nature of the SIS phase transition in multiplex networks

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arxiv 2005.08074 v1 pith:UFGZO7XE submitted 2020-05-16 physics.soc-ph cond-mat.stat-mech

Universality of eigenvector delocalization and the nature of the SIS phase transition in multiplex networks

classification physics.soc-ph cond-mat.stat-mech
keywords transitionmultiplexeigenvectornaturenetworkspropertiesstructuraluniversal
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Universal spectral properties of multiplex networks allow us to assess the nature of the transition between disease-free and endemic phases in the SIS epidemic spreading model. In a multiplex network, depending on a coupling parameter, $p$, the inverse participation ratio ($IPR$) of the leading eigenvector of the adjacency matrix can be in two different structural regimes: (i) layer-localized and (ii) delocalized. Here we formalize the structural transition point, $p^*$, between these two regimes, showing that there are universal properties regarding both the layer size $n$ and the layer configurations. Namely, we show that $IPR \sim n^{-\delta}$, with $\delta\approx 1$, and revealed an approximately linear relationship between $p^*$ and the difference between the layers' average degrees. Furthermore, we showed that this multiplex structural transition is intrinsically connected with the nature of the SIS phase transition, allowing us to both understand and quantify the phenomenon. As these results are related to the universal properties of the leading eigenvector, we expect that our findings might be relevant to other dynamical processes in complex networks.

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