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Analýza časových znalostných grafov×Analýza časových sociálnych sietí×
OdborAnalýza sietíAnalýza sietí
RodinaMachine learningMachine learning
Rok vzniku2017–20182000s–2010s
TvorcaTrivedi, R. et al.; Dasgupta, S. S. et al.Moody, J.; Holme, P.; Saramäki, J.
TypTemporal graph embedding and reasoningLongitudinal network analysis
Pôvodný zdrojTrivedi, R., Dai, H., Wang, Y., & Song, L. (2017). Know-Evolve: Deep temporal reasoning for dynamic knowledge graphs. Proceedings of the 34th International Conference on Machine Learning (ICML), pp. 3462–3471. link ↗Holme, P., & Saramäki, J. (2012). Temporal networks. Physics Reports, 519(3), 97–125. DOI ↗
Ďalšie názvyTKG analysis, temporal KG analysis, dynamic knowledge graph analysis, time-aware knowledge graph analysisTSNA, longitudinal social network analysis, time-varying network analysis, dynamic SNA
Príbuzné54
ZhrnutieTemporal Knowledge Graph Analysis extends standard knowledge graph methods to data where facts and relationships carry timestamps or validity intervals. It enables reasoning about how entities and relations evolve over time, supporting tasks such as link prediction for future facts, temporal relation classification, and event forecasting in dynamic relational data.Temporal Social Network Analysis (TSNA) extends classic social network analysis by treating networks as time-varying structures. Rather than aggregating all ties into a single static snapshot, TSNA tracks when ties form, persist, and dissolve, enabling researchers to study how social structures evolve and how dynamic connectivity shapes diffusion, influence, and inequality over time.
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ScholarGatePorovnať metódy: Temporal Knowledge Graph Analysis · Temporal Social Network Analysis. Získané 2026-06-17 z https://scholargate.app/sk/compare