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Survivor statistics and damage spreading on social network with power-law degree distributions
Authors:Z.Z. Guo  K.Y. Szeto
Affiliation:1. Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Hong Kong, China;2. Department of Physics, Inner Mongolia Normal University, Hohhot 010022, China
Abstract:Damage spreading(DS) of the random graph networks with power-law degree distributions is investigated using Glauber dynamics. Various subgraphs defined by the probability of acquaintance show distinct features in DS as measured by Hamming distance. A heuristic understanding of the long-time value of damage is achieved through an analysis of the survivor statistics. All survivors are dynamical, flipping in unison for the controlled sample and the damaged sample. Verification of these dynamic survivors is achieved through the introduction of a new measure of self-damage.
Keywords:Damage spreading   Network   Monte Carlo method   Glauber dynamics
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