Publication | Closed Access
A Parameterized Probabilistic Model of Network Evolution for Supervised Link Prediction
138
Citations
23
References
2006
Year
EngineeringInteraction NetworkNetwork AnalysisLink PredictionComputational Social ScienceNetwork EvolutionData ScienceData MiningBiological NetworkLink AnalysisSocial Network AnalysisParameterized Probabilistic ModelKnowledge DiscoveryComputer ScienceTopological FeaturesLink TypeSupervised Link PredictionNetwork ScienceGraph TheoryComputational BiologyBusinessSystems Biology
We introduce a new approach to the problem of link prediction for network structured domains, such as the Web, social networks, and biological networks. Our approach is based on the topological features of network structures, not on the node features. We present a novel parameterized probabilistic model of network evolution and derive an efficient incremental learning algorithm for such models, which is then used to predict links among the nodes. We show some promising experimental results using biological network data sets.
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