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Pengesanan Komuniti Berpemberat×Analisis Rangkaian Berbilang Lapisan×
BidangAnalisis RangkaianAnalisis Rangkaian
KeluargaMachine learningMachine learning
Tahun asal2004–20082014
PengasasNewman, M. E. J.; Blondel et al.Kivela, M.; Boccaletti, S. et al.
JenisGraph clustering / community detectionStructural network model
Sumber perintisBlondel, 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 ↗Kivela, M., Arenas, A., Barthelemy, M., Gleeson, J. P., Moreno, Y., & Porter, M. A. (2014). Multilayer networks. Journal of Complex Networks, 2(3), 203–271. DOI ↗
Aliasweighted graph clustering, community detection on weighted networks, weighted modularity optimization, WCDmultiplex networks, multi-layer network analysis, multilayer network analysis, MNA
Berkaitan66
RingkasanWeighted 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.Multiplex network analysis studies systems where the same set of nodes is connected by multiple distinct types of relationships, each represented as a separate network layer. By analyzing layers simultaneously rather than in isolation, it reveals how different relation types interact, reinforce each other, or compensate for one another across the same actors or entities.
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ScholarGateBandingkan kaedah: Weighted Community Detection · Multiplex Network Analysis. Dicapai 2026-06-17 daripada https://scholargate.app/ms/compare