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Model ARIMA (Autoregressive Integrated Moving Average)×Test de Bai-Perron de Múltiples Ruptures Estructurales×
CampEconometriaEconometria
FamíliaRegression modelHypothesis test
Any d'origen19701998
Autor originalGeorge Box and Gwilym JenkinsJushan Bai & Pierre Perron
TipusTime series forecasting modelSequential hypothesis test for multiple structural breaks
Font seminalBox, G. E. P., & Jenkins, G. M. (1970). Time Series Analysis: Forecasting and Control. Holden-Day. link ↗Bai, J., & Perron, P. (1998). Estimating and testing linear models with multiple structural changes. Econometrica, 66(1), 47–78. DOI ↗
ÀliesARIMA, Box-Jenkins model, integrated ARMA, ARIMA(p,d,q)Bai-Perron Multiple Break Test, Multiple Structural Change Test, Sequential Structural Break Test, Çoklu Yapısal Kırılma Testi
Relacionats62
ResumThe 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.The Bai-Perron test, introduced by Jushan Bai and Pierre Perron in their landmark 1998 Econometrica paper, is a least-squares-based procedure for detecting, estimating, and testing the number of structural breaks in a linear regression model estimated on time-series data. Unlike single-break tests, it simultaneously identifies multiple change-points in a sample, providing economists and empirical researchers with a rigorous, data-driven way to locate parameter instability across time.
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ScholarGateCompara mètodes: ARIMA model · Bai-Perron Test. Recuperat el 2026-06-18 de https://scholargate.app/ca/compare