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Байесовская иерархическая модель временных рядов×Динамическая байесовская сеть×
ОбластьБайесовские методыБайесовские методы
СемействоBayesian methodsBayesian methods
Год появления1989–19971989
Автор методаWest & Harrison (dynamic models); Gelman et al. (hierarchical Bayesian framework)Thomas Dean & Keiji Kanazawa
ТипBayesian hierarchical model for time seriesprobabilistic graphical model for sequences
Основополагающий источникWest, M. & Harrison, J. (1997). Bayesian Forecasting and Dynamic Models (2nd ed.). Springer. ISBN: 978-0387947259Dean, T. & Kanazawa, K. (1989). A model for reasoning about persistence and causation. Computational Intelligence, 5(3), 142–150. DOI ↗
Другие названияTSBHM, Bayesian hierarchical time series, hierarchical dynamic Bayesian model, multilevel Bayesian time seriesDBN, temporal Bayesian network, dynamic probabilistic graphical model, two-slice temporal Bayesian network
Связанные65
СводкаA time series Bayesian hierarchical model combines the hierarchical (multilevel) Bayesian framework with a dynamic state-space structure to analyse temporal data collected on multiple units or groups. Priors encode beliefs about both within-unit dynamics and cross-unit variation, and the posterior is obtained via MCMC or sequential Monte Carlo, yielding full probabilistic forecasts with calibrated uncertainty.A Dynamic Bayesian Network (DBN) extends a standard Bayesian network over time by representing how a set of random variables evolve across discrete time steps. It captures both the conditional independence structure among variables at each instant and the probabilistic dependencies between consecutive time slices, enabling principled reasoning about temporal processes under uncertainty.
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  3. PUBLISHED
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  3. PUBLISHED

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ScholarGateСравнение методов: Time series Bayesian hierarchical model · Dynamic Bayesian Network. Получено 2026-06-17 из https://scholargate.app/ru/compare