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Laika temporālās multiplikācijas tīklu analīze×Dinamiskā kopienu noteikšana×
NozareTīklu analīzeTīklu analīze
SaimeMachine learningMachine learning
Izcelsmes gads2012–20142010 (key formalization); earlier work 2002–2009
AutorsKivela, M.; Holme, P.; Saramaki, J. (among foundational contributors)Mucha, P. J. et al. (key formalization); earlier work by Girvan & Newman (2002)
TipsStructural and dynamic network analysisGraph clustering / community discovery
PirmavotsKivela, 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 ↗Mucha, P. J., Richardson, T., Macon, K., Porter, M. A., & Onnela, J.-P. (2010). Community structure in time-dependent, multiscale, and multiplex networks. Science, 328(5980), 876–878. DOI ↗
Citi nosaukumiTMNA, time-varying multiplex network analysis, dynamic multiplex network analysis, temporal multilayer network analysisDCD, temporal community detection, evolving community detection, dynamic graph clustering
Saistītās55
KopsavilkumsTemporal multiplex network analysis studies relational systems in which actors are connected by multiple distinct types of relationships that all evolve over time. By simultaneously tracking layer heterogeneity and temporal dynamics, the method reveals how different interaction channels co-evolve, which actors hold persistent cross-layer influence, and how structural changes propagate across relationship types and time periods.Dynamic community detection identifies groups of densely connected nodes in networks that evolve over time, tracking how communities form, merge, split, and dissolve across temporal snapshots. Developed to extend static modularity optimization to time-varying structures, it is widely used in social, biological, and communication network research.
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ScholarGateSalīdzināt metodes: Temporal Multiplex Network Analysis · Dynamic Community Detection. Izgūts 2026-06-17 no https://scholargate.app/lv/compare