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向量误差修正模型 (VECM)×自回归积分滑动平均模型 (ARIMA)×
领域计量经济学计量经济学
方法族Regression modelRegression model
起源年份19871970
提出者Robert F. Engle and Clive W. J. GrangerGeorge Box and Gwilym Jenkins
类型Multivariate time-series modelTime series forecasting model
开创性文献Engle, R. F., & Granger, C. W. J. (1987). Co-integration and error correction: Representation, estimation, and testing. Econometrica, 55(2), 251–276. DOI ↗Box, G. E. P., & Jenkins, G. M. (1970). Time Series Analysis: Forecasting and Control. Holden-Day. link ↗
别名VECM, error correction VAR, cointegrated VAR, vector equilibrium correction modelARIMA, Box-Jenkins model, integrated ARMA, ARIMA(p,d,q)
相关56
摘要The Vector Error Correction Model extends the Vector Autoregression (VAR) framework to a system of variables that share one or more long-run equilibrium relationships. It jointly models short-run dynamics and the speed at which each variable corrects back toward equilibrium after a shock, making it the standard tool for analysing cointegrated multivariate time series.The ARIMA(p,d,q) model is the standard workhorse for univariate time series forecasting. It combines autoregressive terms (past values), differencing to induce stationarity, and moving average terms (past shocks) into a unified linear framework. Developed by Box and Jenkins (1970), it remains one of the most widely applied models in econometrics and applied statistics.
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  3. PUBLISHED

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ScholarGate方法对比: Vector Error Correction Model · ARIMA model. 于 2026-06-15 检索自 https://scholargate.app/zh/compare