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Pusat Kesederhanaan Pelbagai Lapisan×Deteksi Komunitas Berlapis×
BidangAnalisis RangkaianAnalisis Rangkaian
KeluargaMachine learningMachine learning
Tahun asal2013–20142010–2014
PengasasDe Domenico, M.; Kivelä, M.; Arenas, A. et al.Mucha, P. J. et al.; Kivela, M. et al.
JenisCentrality measure (multilayer extension)Community detection algorithm for multilayer networks
Sumber perintisDe Domenico, M., Solé-Ribalta, A., Cozzo, E., Kivelä, M., Moreno, Y., Porter, M. A., Gómez, S., & Arenas, A. (2013). Mathematical formulation of multilayer networks. Physical Review X, 3(4), 041022. 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 ↗
AliasMBC, multilayer geodesic betweenness, tensorial betweenness centrality, interlayer betweenness centralitymultilayer clustering, multiplex community detection, cross-layer community detection, MCD
Berkaitan55
RingkasanMultilayer betweenness centrality extends the classical betweenness measure to networks with multiple types of relationships — or layers — by computing how often a node lies on shortest paths that can traverse any layer or switch between layers. It identifies brokers and bridges whose influence spans distinct interaction domains simultaneously.Multilayer community detection identifies groups of nodes that are densely connected across multiple types of relationships simultaneously. By coupling layers of a network — such as friendship, advice, and collaboration ties — it finds communities that are coherent not just within one relation type but across all of them, revealing structure that single-layer analysis would miss.
ScholarGateSet data
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ScholarGateBandingkan kaedah: Multilayer Betweenness Centrality · Multilayer Community Detection. Dicapai 2026-06-17 daripada https://scholargate.app/ms/compare