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Dolado-Lütkepohl Granger kausalitetstest×Vektor Autoregression (VAR) Model×
FagområdeØkonometriØkonometri
FamilieHypothesis testRegression model
Oprindelsesår19962005
OphavspersonJuan Dolado & Helmut LütkepohlLütkepohl (textbook treatment); Sims (1980) macroeconometric tradition
TypeModified Wald test for Granger causality in possibly integrated or cointegrated VAR systemsMultivariate time-series model
Oprindelig kildeDolado, J. J., & Lütkepohl, H. (1996). Making Wald tests work for cointegrated VAR systems. Econometric Reviews, 15(4), 369–386. DOI ↗Lütkepohl, H. (2005). New Introduction to Multiple Time Series Analysis. Springer. DOI ↗
AliasserDL Causality Test, Modified Wald Causality Test, Augmented VAR Causality Test, Dolado-Lütkepohl Testivector autoregression, VAR, VAR Modeli (Vektör Otoregresyon), vektör otoregresyon
Relaterede24
ResuméThe Dolado-Lütkepohl (DL) test, introduced by Dolado and Lütkepohl (1996), is a modified Wald procedure for testing Granger causality in vector autoregressive (VAR) systems whose variables may be integrated or cointegrated. By fitting a VAR of slightly higher order than necessary and restricting the Wald statistic to the first p lag blocks, the test recovers the standard chi-squared limiting distribution without requiring pre-testing for cointegration or transformation to error-correction form.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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ScholarGateSammenlign metoder: Dolado-Lütkepohl Causality · VAR Model. Hentet 2026-06-19 fra https://scholargate.app/da/compare