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Model Vektor Autoregresi Bayesian (BVAR)×Model Autoregresi Vektor (VAR)×
BidangEkonometrikaEkonometrika
KeluargaRegression modelRegression model
Tahun asal19842005
PencetusDoan, Litterman & SimsLütkepohl (textbook treatment); Sims (1980) macroeconometric tradition
TipeMultivariate time-series modelMultivariate time-series model
Sumber perintisDoan, T., Litterman, R., & Sims, C. (1984). Forecasting and conditional projection using realistic prior distributions. Econometric Reviews, 3(1), 1–100. DOI ↗Lütkepohl, H. (2005). New Introduction to Multiple Time Series Analysis. Springer. DOI ↗
AliasBVAR, Bayesian VAR, Bayesian vector autoregressive model, BVAR modelvector autoregression, VAR, VAR Modeli (Vektör Otoregresyon), vektör otoregresyon
Terkait54
RingkasanThe 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.Vector Autoregression is a multivariate time-series model that treats several interdependent series symmetrically, letting each variable depend on its own past values and the past values of all the others. It is the standard tool for capturing mutual causality and joint dynamics, developed in the modern multiple-time-series tradition treated by Lütkepohl (2005).
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ScholarGateBandingkan metode: Bayesian VAR model · VAR Model. Diakses 2026-06-19 dari https://scholargate.app/id/compare