Anomalous Transport in Complex Networks
ORAL
Abstract
To study transport properties of complex networks, we analyze the equivalent conductance $G$ between two arbitrarily chosen nodes of random scale-free networks with degree distribution $P(k)\sim k^{-\lambda}$ in which each link has the same unit resistance. We predict a broad range of values of $G$, with a power-law tail distribution $\Phi_{\rm SF}(G)\sim G^{-g_G}$, where $g_G=2\lambda -1$, and confirm our predictions by simulations. The power-law tail in $\Phi_{\rm SF}(G)$ leads to large values of $G$, thereby significantly improving the transport in scale-free networks, compared to Erd\H{o}s-R\'{e}nyi random graphs where the tail of the conductivity distribution decays exponentially. Based on a simple physical ``transport backbone'' picture we show that the conductances are well approximated by $ck_Ak_B/(k_A+k_B)$ for any pair of nodes $A$ and $B$ with degrees $k_A$ and $k_B$. Thus, a single parameter $c$ characterizes transport on scale-free networks.
–
Authors
-
Eduardo Lopez
Center for Polymer Studies, Boston University
-
Sergey Buldyrev
Yeshiva University
-
Shlomo Havlin
Bar-Ilan University, Ramat Gan, Israel, Minerva Center and Department of Physics Bar-Ilan University, 52900 Ramat-Gan, Israel, Bar-Ilan University, Israel
-
H. Eugene Stanley
Center for Polymer Studies, Boston University, Boston University