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베이지안 ARCH 모형×Bayesian TGARCH (Threshold GARCH with Bayesian Estimation)×
분야계량경제학계량경제학
계열Regression modelRegression model
기원 연도1982 (ARCH); 1989 (Bayesian estimation)1994 / 2008
창시자Robert F. Engle (ARCH, 1982); Bayesian treatment: John Geweke (1989)Zakoian (1994) for TGARCH; Bayesian estimation formalized by Ardia (2008)
유형Volatility model with Bayesian inferenceVolatility model with asymmetric threshold and Bayesian inference
원전Engle, R. F. (1982). Autoregressive conditional heteroscedasticity with estimates of the variance of United Kingdom inflation. Econometrica, 50(4), 987–1007. DOI ↗Zakoian, J.-M. (1994). Threshold heteroskedastic models. Journal of Economic Dynamics and Control, 18(5), 931-955. DOI ↗
별칭Bayesian ARCH, ARCH with Bayesian estimation, Bayesian conditional heteroskedasticity model, B-ARCHBayesian TGARCH, Bayesian GJR-GARCH, Threshold GARCH with Bayesian estimation, TGARCH-B
관련66
요약The Bayesian ARCH model estimates Engle's Autoregressive Conditional Heteroskedasticity specification within a Bayesian framework. Instead of maximising a likelihood, it combines a prior distribution over the volatility parameters with the data likelihood to obtain a full posterior distribution, providing richer uncertainty quantification than classical maximum-likelihood ARCH.Bayesian TGARCH combines the Threshold GARCH volatility model — which captures the asymmetric response of volatility to positive versus negative shocks — with full Bayesian inference via Markov Chain Monte Carlo sampling. The result is a principled, uncertainty-aware framework for modeling leverage effects and fat-tailed financial returns.
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