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Robustni model vektorske autoregresije (Robust VAR)×Panel vektorska autoregresija (Panel VAR)×Kvantilni VAR×Strukturna vektorska autoregresija (SVAR)×
PodručjeEkonometrijaEkonometrijaEkonometrijaEkonometrija
ObiteljRegression modelRegression modelRegression modelRegression model
Godina nastanka1980s–2000s198820061980
TvoracExtensions by Lutkepohl and others building on Sims (1980) VAR frameworkHoltz-Eakin, Newey & RosenKoenker and XiaoSims (1980); identification schemes by Blanchard & Quah (1989)
VrstaMultivariate time-series model with robust estimationPanel vector autoregressionDistribution impulse responseMultivariate time series model
Temeljni izvorGoncalves, S., & Kilian, L. (2004). Bootstrapping autoregressions with conditional heteroskedasticity of unknown form. Journal of Econometrics, 123(1), 89-120. DOI ↗Holtz-Eakin, D., Newey, W. & Rosen, H. S. (1988). Estimating Vector Autoregressions with Panel Data. Econometrica, 56(6), 1371-1395. DOI ↗Koenker, R., & Xiao, Z. (2006). Quantile autoregression. Journal of the American Statistical Association, 101(475), 980-990. DOI ↗Blanchard, O. J., & Quah, D. (1989). The dynamic effects of aggregate demand and supply disturbances. American Economic Review, 79(4), 655-673. link ↗
Drugi nazivirobust VAR, outlier-robust VAR, heavy-tailed VAR, RVARPVAR, panel vector autoregression, Panel VAR (PVAR)Quantile-based impulse responseSVAR, structural vector autoregression, identified VAR, structural VAR model
Srodne5335
SažetakThe Robust VAR model extends the classical Vector Autoregression framework by replacing ordinary least squares estimation with robust estimators — such as M-estimators or median-based methods — to reduce the influence of outliers, structural breaks, and heavy-tailed shocks common in financial and macroeconomic time series.Panel VAR extends the vector autoregression model to panel data, modelling the dynamic interactions among several variables while controlling for cross-unit heterogeneity through fixed effects. It was introduced by Holtz-Eakin, Newey and Rosen in 1988 and produces impulse-response functions and variance decompositions at the panel level.Quantile VAR estimates impulse responses of multivariate systems conditional on different quantiles of the distribution, revealing how shocks propagate heterogeneously across the conditional distribution. Introduced by Koenker and Xiao (2006) and applied to risk measurement by White et al. (2015), it reveals tail behavior and contagion effects invisible to mean-based VAR analysis. This is essential for risk management and understanding how crises propagate differently than normal times.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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ScholarGateUsporedite metode: Robust VAR model · Panel VAR · Quantile VAR · Structural VAR. Preuzeto 2026-06-18 s https://scholargate.app/hr/compare