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加权介数中心性×加权社会网络分析×
领域网络分析网络分析
方法族Machine learningMachine learning
起源年份20102004–2010
提出者Opsahl, T.; Agneessens, F.; Skvoretz, J. (extending Freeman 1977 and Brandes 2001)Barrat, A.; Opsahl, T. et al.
类型Centrality measure (path-based)Network analysis framework
开创性文献Opsahl, T., Agneessens, F., & Skvoretz, J. (2010). Node centrality in weighted networks: Generalizing degree and shortest paths. Social Networks, 32(3), 245–251. DOI ↗Barrat, A., Barthélemy, M., Pastor-Satorras, R., & Vespignani, A. (2004). The architecture of complex weighted networks. Proceedings of the National Academy of Sciences, 101(11), 3747–3752. DOI ↗
别名WBC, weighted shortest-path betweenness, edge-weighted betweenness, geodesic betweenness (weighted)Weighted SNA, valued network analysis, tie-strength network analysis, weighted graph analysis
相关66
摘要Weighted Betweenness Centrality extends Freeman's betweenness measure to edge-weighted graphs by routing shortest paths through a tunable transformation of edge weights. Nodes that sit on many high-value shortest paths receive high scores, identifying brokers and bridges in social, biological, and information networks where tie strength matters.Weighted Social Network Analysis extends classical SNA by assigning numeric values — weights — to ties between actors, capturing tie strength, interaction frequency, or resource flow. Rather than treating all connections as equal, it reveals who holds privileged positions by virtue of the intensity, not merely the existence, of their relationships.
ScholarGate数据集
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  3. PUBLISHED

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ScholarGate方法对比: Weighted Betweenness Centrality · Weighted Social Network Analysis. 于 2026-06-18 检索自 https://scholargate.app/zh/compare