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MCMC Louvain for Online Community Detection

Published 5 Dec 2016 in cs.SI, physics.soc-ph, and stat.ML | (1612.01489v1)

Abstract: We introduce a novel algorithm of community detection that maintains dynamically a community structure of a large network that evolves with time. The algorithm maximizes the modularity index thanks to the construction of a randomized hierarchical clustering based on a Monte Carlo Markov Chain (MCMC) method. Interestingly, it could be seen as a dynamization of Louvain algorithm (see Blondel et Al, 2008) where the aggregation step is replaced by the hierarchical instrumental probability.

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