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Vægtet fællesskabsdetektion×Vægtet Social Netværksanalyse×
FagområdeNetværksanalyseNetværksanalyse
FamilieMachine learningMachine learning
Oprindelsesår2004–20082004–2010
OphavspersonNewman, M. E. J.; Blondel et al.Barrat, A.; Opsahl, T. et al.
TypeGraph clustering / community detectionNetwork analysis framework
Oprindelig kildeBlondel, V. D., Guillaume, J.-L., Lambiotte, R., & Lefebvre, E. (2008). Fast unfolding of communities in large networks. Journal of Statistical Mechanics: Theory and Experiment, 2008(10), P10008. DOI ↗Barrat, A., Barthélemy, M., Pastor-Satorras, R., & Vespignani, A. (2004). The architecture of complex weighted networks. Proceedings of the National Academy of Sciences, 101(11), 3747–3752. DOI ↗
Aliasserweighted graph clustering, community detection on weighted networks, weighted modularity optimization, WCDWeighted SNA, valued network analysis, tie-strength network analysis, weighted graph analysis
Relaterede66
ResuméWeighted community detection identifies densely connected groups — communities — in networks where edges carry numeric strengths (weights). By incorporating edge weights into the modularity function, it reveals structure that binary adjacency alone would miss: two nodes connected by a strong tie are treated as more similar than two nodes linked by a weak one. The Louvain algorithm is the dominant practical implementation.Weighted Social Network Analysis extends classical SNA by assigning numeric values — weights — to ties between actors, capturing tie strength, interaction frequency, or resource flow. Rather than treating all connections as equal, it reveals who holds privileged positions by virtue of the intensity, not merely the existence, of their relationships.
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ScholarGateSammenlign metoder: Weighted Community Detection · Weighted Social Network Analysis. Hentet 2026-06-18 fra https://scholargate.app/da/compare