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ベイズ的エゴネットワーク分析×ベイズ的確率的ブロックモデル×
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2010s2001–2014
提唱者Various (Bayesian SNA tradition; Krivitsky, Kolaczyk, Handcock among key contributors)Nowicki, K. & Snijders, T. A. B.; extended by Peixoto, T. P.
種類Probabilistic network modelProbabilistic generative model with Bayesian inference
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 ↗Peixoto, T. P. (2014). Efficient Monte Carlo and greedy heuristic for the inference of stochastic block models. Physical Review E, 89(1), 012804. DOI ↗
別名Bayesian personal network analysis, Bayesian egocentric network analysis, probabilistic ego network modeling, Bayesian egonetBayesian SBM, B-SBM, probabilistic block model, Bayesian community detection model
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.The Bayesian Stochastic Block Model (Bayesian SBM) is a principled probabilistic method for community detection in networks. It treats group membership as a latent variable and uses Bayesian inference to simultaneously recover block structure and select the number of communities, avoiding the resolution-limit bias that plagues modularity-based approaches.
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ScholarGate手法を比較: Bayesian Ego Network Analysis · Bayesian Stochastic Block Model. 2026-06-17に以下より取得 https://scholargate.app/ja/compare