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Bayesiläinen kvantiili-kvantiili-regressio×Kvanttiili-kvanttiili (QQ) -regressio×
TieteenalaEkonometriaEkonometria
MenetelmäperheRegression modelRegression model
Syntyvuosi2015–20192015
KehittäjäBayesian QQ framework combines Sim & Zhou (2015) QQ regression with Bayesian quantile regression (Yu & Moyeed, 2001)Sim and Zhou
TyyppiNonparametric quantile regression with Bayesian estimationNonparametric quantile regression
AlkuperäislähdeSim, N., & Zhou, H. (2015). Oil prices, US stock return, and the dependence between their quantiles. Journal of Banking and Finance, 55, 1–8. DOI ↗Sim, N., & Zhou, H. (2015). Oil prices, US stock return, and the dependence between their quantiles. Journal of Banking and Finance, 55, 1-8. DOI ↗
RinnakkaisnimetBayesian QQR, Bayesian QQ regression, Bayes quantile-on-quantile, BQQ regressionQQ regression, QQ approach, quantile-on-quantile approach, nonparametric quantile regression
Liittyvät66
TiivistelmäBayesian Quantile-on-Quantile (BQQ) Regression extends the Sim-Zhou quantile-on-quantile framework by replacing frequentist local linear estimation with Bayesian posterior inference. For each pair of quantiles (theta of the outcome, tau of the predictor), the method yields a full posterior distribution over the slope, enabling uncertainty quantification across the entire bivariate quantile surface — a key advantage when sample sizes are moderate and tail quantiles are sparse.Quantile-on-quantile regression is a nonparametric technique that estimates how the quantiles of one variable depend on the quantiles of another. By combining standard quantile regression with local linear smoothing, it produces a full two-dimensional surface of slope coefficients indexed by both the quantile of the outcome and the quantile of the predictor, revealing heterogeneous and asymmetric dependency structures invisible to standard regression.
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ScholarGateVertaile menetelmiä: Bayesian Quantile-on-Quantile Regression · Quantile-on-Quantile Regression. Haettu 2026-06-17 osoitteesta https://scholargate.app/fi/compare