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Trung bình mô hình Bayes động×Suy luận biến phân động (Dynamic Variational Inference)×
Lĩnh vựcBayesBayes
HọBayesian methodsBayesian methods
Năm ra đời20102014–2015
Người khởi xướngRaftery, Karny & EttlerBayer, Osendorfer, Krishnan and colleagues
Loạidynamic ensemble / model combinationBayesian approximate inference
Công trình gốcRaftery, A. E., Karny, M., & Ettler, P. (2010). Online prediction under model uncertainty via dynamic model averaging: Application to a cold rolling mill. Technometrics, 52(1), 52-66. DOI ↗Krishnan, R. G., Shalit, U., & Sontag, D. (2015). Deep Kalman Filters. NIPS 2015 Workshop on Advances in Approximate Bayesian Inference. link ↗
Tên gọi khácDMA, dynamic model averaging, time-varying BMA, online Bayesian model averagingsequential variational inference, temporal variational inference, variational inference for state-space models, DVI
Liên quan66
Tóm tắtDynamic Bayesian Model Averaging (DMA) extends standard Bayesian model averaging to settings where the best predictive model may change over time. It maintains a probability distribution over a set of competing models and updates that distribution sequentially as new observations arrive, allowing model weights to evolve rather than remaining fixed across the entire sample.Dynamic variational inference extends the variational inference framework to sequential and time-series settings by positing a structured approximate posterior that respects the temporal ordering of latent states. It jointly learns a generative model of how hidden states evolve over time and a recognition network that maps observed sequences back to those latent states, optimising a sequential evidence lower bound (ELBO).
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ScholarGateSo sánh phương pháp: Dynamic Bayesian Model Averaging · Dynamic Variational Inference. Truy cập ngày 2026-06-17 từ https://scholargate.app/vi/compare