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Байесовская авторегрессионная (AR) модель×Модель Байесовского векторного авторегрессионного анализа (BVAR)×
ОбластьЭконометрикаЭконометрика
СемействоRegression modelRegression model
Год появления19711984
Автор методаArnold Zellner; foundational Bayesian time-series work by West & HarrisonDoan, Litterman & Sims
ТипBayesian time-series modelMultivariate time-series model
Основополагающий источникZellner, A. (1971). An Introduction to Bayesian Inference in Econometrics. Wiley. ISBN: 978-0471169376Doan, T., Litterman, R., & Sims, C. (1984). Forecasting and conditional projection using realistic prior distributions. Econometric Reviews, 3(1), 1–100. DOI ↗
Другие названияBayesian autoregressive model, BAR model, Bayesian AR, Bayesian time-series autoregressionBVAR, Bayesian VAR, Bayesian vector autoregressive model, BVAR model
Связанные65
СводкаThe Bayesian AR model estimates an autoregressive time-series process by combining a likelihood derived from the AR structure with prior distributions over the lag coefficients and error variance. Rather than producing single point estimates, it yields full posterior distributions, enabling principled uncertainty quantification and probabilistic forecasting.The Bayesian Vector Autoregression (BVAR) model extends the classical VAR framework by incorporating prior beliefs about the model coefficients. Priors — most commonly the Minnesota prior — shrink VAR coefficients toward economically sensible values, dramatically reducing overfitting and improving out-of-sample forecast accuracy even when the number of variables is large.
ScholarGateНабор данных
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  2. 2 Источники
  3. PUBLISHED
  1. v1
  2. 2 Источники
  3. PUBLISHED

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ScholarGateСравнение методов: Bayesian AR model · Bayesian VAR model. Получено 2026-06-15 из https://scholargate.app/ru/compare