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Modèle de Moyenne Mobile Non Linéaire (NMA)×Modèle autorégressif à transition lisse (STAR)×
DomaineÉconométrieÉconométrie
FamilleRegression modelRegression model
Année d'origine19781994
Auteur d'origineGranger & Andersen (bilinear/NMA framework); Tong (nonlinear time series theory)Teräsvirta (1994); van Dijk, Teräsvirta & Franses (2002)
TypeNonlinear time series modelNonlinear time-series regime-switching model
Source fondatriceGranger, C. W. J., & Andersen, A. P. (1978). An Introduction to Bilinear Time Series Models. Vandenhoeck and Ruprecht, Gottingen. link ↗Teräsvirta, T. (1994). Specification, Estimation, and Evaluation of Smooth Transition Autoregressive Models. Journal of the American Statistical Association, 89(425), 208–218. DOI ↗
AliasNMA model, nonlinear moving average, NLMA model, nonlinear MAsmooth transition autoregressive model, LSTAR, ESTAR, logistic STAR
Apparentées44
RésuméThe Nonlinear Moving Average (NMA) model extends the classical linear MA model by allowing the current observation to depend on past innovations through a nonlinear function rather than a simple weighted sum. It is used in time series analysis when error shocks transmit to outcomes in an asymmetric or state-dependent fashion.The Smooth Transition Autoregressive (STAR) model is a nonlinear time-series model, developed in Teräsvirta's 1994 framework, that lets the dynamics move smoothly rather than abruptly between two regimes. The logistic variant (LSTAR) captures asymmetric business cycles and the exponential variant (ESTAR) captures purchasing-power-parity deviations.
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ScholarGateComparer des méthodes: Nonlinear MA model · STAR Model. Consulté le 2026-06-17 sur https://scholargate.app/fr/compare