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Quantile VAR×Cross-Quantilogram×
领域计量经济学计量经济学
方法族Regression modelRegression model
起源年份20062012
提出者Koenker and XiaoOliver Linton and Yoon-Jin Whang
类型Distribution impulse responseCorrelation measure
开创性文献Koenker, R., & Xiao, Z. (2006). Quantile autoregression. Journal of the American Statistical Association, 101(475), 980-990. DOI ↗Linton, O., & Whang, Y. J. (2012). Quantile comparisons of time series data. Journal of Econometrics, 170(2), 242-257. link ↗
别名Quantile-based impulse response
相关33
摘要Quantile VAR estimates impulse responses of multivariate systems conditional on different quantiles of the distribution, revealing how shocks propagate heterogeneously across the conditional distribution. Introduced by Koenker and Xiao (2006) and applied to risk measurement by White et al. (2015), it reveals tail behavior and contagion effects invisible to mean-based VAR analysis. This is essential for risk management and understanding how crises propagate differently than normal times.The cross-quantilogram extends the cross-correlogram concept to quantile pairs of two time series, measuring dependence at different quantile levels. Introduced by Linton and Whang (2012), it captures how shocks at specific quantile levels in one series relate to movements in another, enabling asymmetric dependence analysis. This approach is particularly valuable when downside and upside risk correlations differ materially.
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ScholarGate方法对比: Quantile VAR · Cross-Quantilogram. 于 2026-06-15 检索自 https://scholargate.app/zh/compare