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Model Bayesowski VAR (BVAR)×Wektorowa Autoregresja Strukturalna (SVAR)×
DziedzinaEkonometriaEkonometria
RodzinaRegression modelRegression model
Rok powstania19841980
TwórcaDoan, Litterman & SimsSims (1980); identification schemes by Blanchard & Quah (1989)
TypMultivariate time-series modelMultivariate time series model
Źródło pierwotneDoan, T., Litterman, R., & Sims, C. (1984). Forecasting and conditional projection using realistic prior distributions. Econometric Reviews, 3(1), 1–100. DOI ↗Blanchard, O. J., & Quah, D. (1989). The dynamic effects of aggregate demand and supply disturbances. American Economic Review, 79(4), 655-673. link ↗
Inne nazwyBVAR, Bayesian VAR, Bayesian vector autoregressive model, BVAR modelSVAR, structural vector autoregression, identified VAR, structural VAR model
Pokrewne55
PodsumowanieThe 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.Structural VAR extends the reduced-form VAR by imposing economic theory-based restrictions that identify orthogonal structural shocks. This allows researchers to disentangle the causal effects of distinct economic disturbances — such as supply versus demand shocks — and trace their dynamic propagation through a system of variables via impulse response functions and forecast error variance decompositions.
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  1. v1
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  3. PUBLISHED

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ScholarGatePorównaj metody: Bayesian VAR model · Structural VAR. Pobrano 2026-06-15 z https://scholargate.app/pl/compare