Finite-time fluctuations in the degree statistics of growing networks
classification
❄️ cond-mat.stat-mech
physics.soc-ph
keywords
attachmentdegreefinite-sizefinite-timegrowingmodelsnetworksstatistics
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This paper presents a comprehensive analysis of the degree statistics in models for growing networks where new nodes enter one at a time and attach to one earlier node according to a stochastic rule. The models with uniform attachment, linear attachment (the Barab\'asi-Albert model), and generalized preferential attachment with initial attractiveness are successively considered. The main emphasis is on finite-size (i.e., finite-time) effects, which are shown to exhibit different behaviors in three regimes of the size-degree plane: stationary, finite-size scaling, large deviations.
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