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ベイズ的エゴネットワーク分析×ベイズ社会ネットワーク分析×
分野ネットワーク分析ネットワーク分析
系統Machine learningMachine learning
提唱年2010s2002
提唱者Various (Bayesian SNA tradition; Krivitsky, Kolaczyk, Handcock among key contributors)Hoff, P. D.; Raftery, A. E.; Handcock, M. S.
種類Probabilistic network modelProbabilistic / Bayesian network model
原典Krivitsky, P. N., & Kolaczyk, E. D. (2015). On the question of effective sample size in network modeling: An asymptotic inquiry. Statistical Science, 30(2), 184–198. DOI ↗Hoff, P. D., Raftery, A. E., & Handcock, M. S. (2002). Latent space approaches to social network analysis. Journal of the American Statistical Association, 97(460), 1090–1098. DOI ↗
別名Bayesian personal network analysis, Bayesian egocentric network analysis, probabilistic ego network modeling, Bayesian egonetBayesian SNA, Bayesian network modeling, probabilistic social network analysis, Bayesian relational modeling
関連55
概要Bayesian ego network analysis applies probabilistic inference to ego-centered (personal) network data, combining a likelihood model for the ego's local network with prior distributions over network parameters. The result is a full posterior distribution that quantifies uncertainty about structural features such as alter composition, tie density, and network size — rather than producing point estimates alone.Bayesian Social Network Analysis applies Bayesian probabilistic inference to relational data, placing prior distributions over network parameters and updating them with observed tie data to yield full posterior distributions over structural features, tie probabilities, and latent actor positions. It enables principled uncertainty quantification in network models, making it especially valuable when data are sparse, partially observed, or subject to measurement error.
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ScholarGate手法を比較: Bayesian Ego Network Analysis · Bayesian Social Network Analysis. 2026-06-17に以下より取得 https://scholargate.app/ja/compare