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Tijdsvariërende parameter paneeldata-analyse×State Space Model (Kalman Filter)×
VakgebiedEconometrieEconometrie
FamilieRegression modelRegression model
Jaar van ontstaan1960–20031990
GrondleggerCheng Hsiao (panel treatment); Kalman (state-space foundation)Harvey; Durbin & Koopman (state space treatment); Kalman filter
TypeDynamic panel modelState space time series model
Oorspronkelijke bronHsiao, C. (2003). Analysis of Panel Data (2nd ed.). Cambridge University Press. ISBN: 978-0521522717Harvey, A. C. (1990). Forecasting, Structural Time Series Models and the Kalman Filter. Cambridge University Press. DOI ↗
AliassenTVP panel model, time-varying coefficient panel model, state-space panel regression, random coefficient panel modelstate space, Kalman filter, unobserved components model, Durum Uzayı Modeli (State Space / Kalman Filter)
Verwant54
SamenvattingTime-varying parameter (TVP) panel data analysis extends standard panel regression by allowing the slope coefficients to evolve over time for each unit. Instead of assuming a single fixed or random coefficient, the model lets each unit's relationship between predictors and outcome shift period by period, capturing structural change, learning effects, and heterogeneous dynamics across individuals and time.A state space model is a general time series framework that describes a series through unobserved (latent) state variables linked by a measurement equation and a transition equation, with the states estimated in real time by the Kalman filter. Developed in the state space tradition of Harvey (1990) and Durbin & Koopman (2012), it nests ARIMA and exponential smoothing as special cases.
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  1. v1
  2. 2 Bronnen
  3. PUBLISHED

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ScholarGateMethoden vergelijken: Time-varying Parameter Panel Data Analysis · State Space Model. Geraadpleegd op 2026-06-15 via https://scholargate.app/nl/compare