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Học Liên kết Bayes (Bayesian Federated Learning) kết hợp học liên kết×Học chuyển giao Bayes×
Lĩnh vựcHọc máyHọc máy
HọMachine learningMachine learning
Năm ra đời20192006–2010
Người khởi xướngYurochkin, M. et al.; McMahan, H. B. et al. (foundational federated learning)Raina, R.; Ng, A. Y.; Koller, D. (and subsequent community)
LoạiProbabilistic federated ensembleProbabilistic transfer / domain adaptation framework
Công trình gốcYurochkin, M., Agarwal, M., Ghosh, S., Greenewald, K., Hoang, N., & Khazaeni, Y. (2019). Bayesian Nonparametric Federated Learning of Neural Networks. Proceedings of the 36th International Conference on Machine Learning (ICML 2019), PMLR 97, 7101–7110. link ↗Raina, R., Ng, A. Y., & Koller, D. (2006). Constructing informative priors using transfer learning. In Proceedings of the 23rd International Conference on Machine Learning (ICML), pp. 713–720. ACM. link ↗
Tên gọi khácBFL, probabilistic federated learning, Bayesian nonparametric federated learning, federated Bayesian inferenceBTL, Bayesian domain adaptation, probabilistic transfer learning, Bayesian knowledge transfer
Liên quan54
Tóm tắtBayesian Federated Learning combines federated learning — where model training is distributed across multiple clients without sharing raw data — with Bayesian inference, so that each client maintains a posterior distribution over model parameters rather than a single point estimate. This yields principled uncertainty quantification and more robust model aggregation across heterogeneous, privacy-preserving data silos.Bayesian Transfer Learning is a probabilistic framework that uses knowledge from a data-rich source domain to construct informative priors for a model trained on a data-scarce target domain. By encoding source-domain knowledge as prior distributions over parameters, the framework lets the model generalize well on the target task even with very limited labeled examples.
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ScholarGateSo sánh phương pháp: Bayesian Federated Learning · Bayesian Transfer Learning. Truy cập ngày 2026-06-15 từ https://scholargate.app/vi/compare