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Model ARIMA (Autoregressive Integrated Moving Average)×Model Korekcji Błędów Wektorowych (VECM)×
DziedzinaEkonometriaEkonometria
RodzinaRegression modelRegression model
Rok powstania20151987
TwórcaBox & Jenkins (Box-Jenkins methodology)Engle & Granger
TypUnivariate time-series modelMultivariate time-series model
Źródło pierwotneBox, G. E. P., Jenkins, G. M., Reinsel, G. C. & Ljung, G. M. (2015). Time Series Analysis: Forecasting and Control (5th ed.). Wiley. ISBN: 978-1118675021Engle, R. F. & Granger, C. W. J. (1987). Co-Integration and Error Correction: Representation, Estimation, and Testing. Econometrica, 55(2), 251-276. DOI ↗
Inne nazwyBox-Jenkins model, ARIMA(p,d,q), ARIMA Modelivector error correction model, error correction model, cointegration model, VECM (Vektör Hata Düzeltme Modeli)
Pokrewne54
PodsumowanieARIMA is a univariate time-series forecasting model that combines autoregressive, integrated (differencing), and moving-average components to predict a single continuous series from its own past. It is the centrepiece of the Box-Jenkins methodology set out in Box, Jenkins, Reinsel & Ljung's Time Series Analysis (5th ed., 2015).The Vector Error Correction Model is a multivariate time-series model for cointegrated series that captures both their short-run dynamics and their long-run equilibrium relationship. It was introduced by Engle and Granger in 1987 as part of the cointegration and error-correction framework.
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ScholarGatePorównaj metody: ARIMA · VECM. Pobrano 2026-06-18 z https://scholargate.app/pl/compare