Search in weighted complex networks
classification
❄️ cond-mat.stat-mech
cond-mat.dis-nn
keywords
networkssearchcomplexedgelocalnodeweightedweights
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We study trade-offs presented by local search algorithms in complex networks which are heterogeneous in edge weights and node degree. We show that search based on a network measure, local betweenness centrality (LBC), utilizes the heterogeneity of both node degrees and edge weights to perform the best in scale-free weighted networks. The search based on LBC is universal and performs well in a large class of complex networks.
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