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Analyse des réseaux temporels pondérés×Détection pondérée de communautés×
DomaineAnalyse de réseauxAnalyse de réseaux
FamilleMachine learningMachine learning
Année d'origine2004–20122004–2008
Auteur d'origineHolme, P. & Saramaki, J. (temporal networks); Barrat et al. (weighted networks)Newman, M. E. J.; Blondel et al.
TypeNetwork analysis techniqueGraph clustering / community detection
Source fondatriceHolme, P. & Saramaki, J. (2012). Temporal networks. Physics Reports, 519(3), 97–125. DOI ↗Blondel, 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 ↗
AliasWTNA, weighted time-varying network analysis, weighted dynamic network analysis, weighted evolving network analysisweighted graph clustering, community detection on weighted networks, weighted modularity optimization, WCD
Apparentées66
RésuméWeighted temporal network analysis studies networks whose edges carry numerical weights — representing interaction strength, frequency, or intensity — and whose structure changes over time. It combines the time-varying perspective of temporal network analysis with the quantitative precision of weighted graph metrics, revealing not only when connections exist but how strong they are at each moment.Weighted 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.
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ScholarGateComparer des méthodes: Weighted Temporal Network Analysis · Weighted Community Detection. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare