English

Efficiency of message transmission using biased random walks in complex networks in the presence of traps

Physics and Society 2015-06-19 v1

Abstract

We study the problem of a particle/message that travels as a biased random walk towards a target node in a network in the presence of traps. The bias is represented as the probability pp of the particle to travel along the shortest path to the target node. The efficiency of the transmission process is expressed through the fraction fgf_g of particles that succeed to reach the target without being trapped. By relating fgf_g with the number SS of nodes visited before reaching the target, we firstly show that, for the unbiased random walk, fgf_g is inversely proportional to both the concentration cc of traps and the size NN of the network. For the case of biased walks, a simple approximation of SS provides an analytical solution that describes well the behavior of fgf_g, especially for p>0.5p>0.5. Also, it is shown that for a given value of the bias pp, when the concentration of traps is less than a threshold value equal to the inverse of the Mean First Passage Time (MFPT) between two randomly chosen nodes of the network, the efficiency of transmission is unaffected by the presence of traps and almost all the particles arrive at the target. As a consequence, for a given concentration of traps, we can estimate the minimum bias that is needed to have unaffected transmission, especially in the case of Random Regular (RR), Erd\H{o}s-R\'{e}nyi (ER) and Scale-Free (SF) networks, where an exact expression (RR and ER) or an upper bound (SF) of the MFPT is known analytically. We also study analytically and numerically, the fraction fgf_g of particles that reach the target on SF networks, where a single trap is placed on the highest degree node. For the unbiased random walk, we find that fgN1/(γ1)f_g \sim N^{-1/(\gamma-1)}, where γ\gamma is the power law exponent of the SF network.

Keywords

Cite

@article{arxiv.1406.2437,
  title  = {Efficiency of message transmission using biased random walks in complex networks in the presence of traps},
  author = {Loukas Skarpalezos and Aristotelis Kittas and Panos Argyrakis and Reuven Cohen and Shlomo Havlin},
  journal= {arXiv preprint arXiv:1406.2437},
  year   = {2015}
}

Comments

15 pages, 8 figures