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베이지안 네트워크 확산 분석×베이즈 확률적 블록 모델×
분야네트워크 분석네트워크 분석
계열Machine learningMachine learning
기원 연도2010s2001–2014
창시자Gomez Rodriguez, M.; Leskovec, J.; and related network science communityNowicki, K. & Snijders, T. A. B.; extended by Peixoto, T. P.
유형Probabilistic inference on network spreading processesProbabilistic generative model with Bayesian inference
원전Gomez Rodriguez, M., Leskovec, J., & Scholkopf, B. (2012). Structure and Dynamics of Information Pathways in Online Media. Proceedings of the 6th ACM International Conference on Web Search and Data Mining (WSDM), 23–32. 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 ↗
별칭Bayesian diffusion model, probabilistic network diffusion, Bayesian spreading process inference, BNDABayesian SBM, B-SBM, probabilistic block model, Bayesian community detection model
관련55
요약Bayesian Network Diffusion Analysis applies Bayesian probabilistic inference to the study of how information, diseases, behaviors, or innovations propagate through a network. By placing priors over diffusion parameters and updating them with observed cascade data, it quantifies transmission rates, identifies influential spreaders, reconstructs latent propagation pathways, and provides full uncertainty estimates — all within a principled statistical framework.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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ScholarGate방법 비교: Bayesian Network Diffusion Analysis · Bayesian Stochastic Block Model. 2026-06-15에 다음에서 검색함: https://scholargate.app/ko/compare