Compară metode
Examinează metodele selectate una lângă alta; rândurile care diferă sunt evidențiate.
| Testul de cauzalitate Granger× | Testul Augmented Dickey-Fuller (ADF) pentru rădăcină unitară× | |
|---|---|---|
| Domeniu | Econometrie | Econometrie |
| Familie | Regression model | Regression model |
| Anul apariției≠ | 1969 | 1979–1984 |
| Autorul original≠ | Clive W. J. Granger | Said & Dickey (1984); building on Dickey & Fuller (1979) |
| Tip≠ | Causality test (F-test on VAR) | Hypothesis test (unit root) |
| Sursa seminală≠ | Granger, C. W. J. (1969). Investigating Causal Relations by Econometric Models and Cross-spectral Methods. Econometrica, 37(3), 424–438. DOI ↗ | Said, S. E., & Dickey, D. A. (1984). Testing for unit roots in autoregressive-moving average models of unknown order. Biometrika, 71(3), 599–607. DOI ↗ |
| Denumiri alternative | Granger test, GC test, predictive causality test, Granger non-causality test | ADF test, ADF unit root test, Dickey-Fuller test (augmented), Said-Dickey test |
| Înrudite | 5 | 5 |
| Rezumat≠ | The Granger causality test is a statistical hypothesis test that determines whether past values of one time series help predict future values of another, beyond what that series' own past already explains. Introduced by Clive Granger in 1969, it is the standard approach for assessing predictive causality in VAR-based time-series analysis. | The Augmented Dickey-Fuller test is the standard procedure for determining whether a univariate time series contains a unit root — that is, whether the series is non-stationary. It extends the original Dickey-Fuller test by including lagged difference terms that absorb serial correlation in the residuals, making the test valid for a wide range of time-series processes encountered in economics and finance. |
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