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HP Filter×Décomposition STL : Décomposition Saisonnier-Tendance par Loess×
DomaineÉconométrieÉconométrie
FamilleProcess / pipelineProcess / pipeline
Année d'origine19971990
Auteur d'origineRobert Hodrick & Edward PrescottCleveland, Cleveland, McRae & Terpenning
TypePenalized least-squares smoothernonparametric iterative smoother
Source fondatriceHodrick, R. J., & Prescott, E. C. (1997). Postwar U.S. business cycles: An empirical investigation. Journal of Money, Credit and Banking, 29(1), 1–16. DOI ↗Cleveland, R. B., Cleveland, W. S., McRae, J. E., & Terpenning, I. (1990). STL: A seasonal-trend decomposition procedure based on loess. Journal of Official Statistics, 6(1), 3–73. link ↗
AliasHodrick-Prescott Filter, HP Decomposition, Trend-Cycle Filter, HP FiltresiSeasonal-Trend Decomposition using Loess, STL filtering, Loess-based seasonal decomposition, Mevsimsel-Trend Ayrıştırma (STL)
Apparentées33
RésuméThe Hodrick-Prescott (HP) filter is a penalized least-squares technique used in macroeconomics and empirical finance to decompose a time series into a smooth long-run trend component and a short-run cyclical component. Introduced by Hodrick and Prescott (1997) using postwar U.S. business cycle data, it has become one of the most widely applied filters in business cycle analysis, monetary policy research, and applied econometrics.STL Decomposition, introduced by Cleveland, Cleveland, McRae, and Terpenning (1990), is a nonparametric procedure that separates a time series into three additive components — trend, seasonal, and remainder — using iterative locally weighted regression (loess). Widely used in economics, meteorology, and data science, it handles time series of any periodicity and is robust to the presence of outliers, making it a highly flexible alternative to classical decomposition methods.
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ScholarGateComparer des méthodes: HP Filter · STL Decomposition. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare