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مدل DCC-GARCH فوریه×مدل GARCH (پیش‌بینی نوسانات)×
حوزهاقتصادسنجیاقتصادسنجی
خانوادهRegression modelRegression model
سال پیدایش2002 (DCC-GARCH); Fourier extension applied from mid-2010s onward1986
پدیدآورEngle (2002) for DCC-GARCH; Fourier extension by Gallant (1981) and later applied in financial econometricsTim Bollerslev
نوعMultivariate volatility model with smooth structural breaksConditional volatility model
منبع بنیادینEngle, R. (2002). Dynamic conditional correlations: A simple class of multivariate generalized autoregressive conditional heteroskedasticity models. Journal of Business and Economic Statistics, 20(3), 339-350. link ↗Bollerslev, T. (1986). Generalized Autoregressive Conditional Heteroskedasticity. Journal of Econometrics, 31(3), 307–327. DOI ↗
نام‌های دیگرFourier DCC-GARCH, Fourier-augmented DCC-GARCH, DCC-GARCH with Fourier terms, smooth structural break DCC-GARCHGARCH, GARCH(1,1), conditional volatility model, GARCH Modeli (Oynaklık Tahmini)
مرتبط55
خلاصهThe Fourier DCC-GARCH model extends Engle's Dynamic Conditional Correlation GARCH framework by embedding Fourier trigonometric terms in the conditional mean or variance equations. This allows the model to approximate smooth, gradual structural shifts in volatility dynamics and inter-asset correlations without requiring knowledge of the number or timing of break points.The Generalized Autoregressive Conditional Heteroskedasticity (GARCH) model, introduced by Tim Bollerslev in 1986, models the time-varying conditional variance of a financial time series. It captures volatility clustering and the ARCH effect, and is the standard tool for estimating risk and volatility in return series.
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ScholarGateمقایسهٔ روش‌ها: Fourier DCC-GARCH · GARCH Model. بازیابی‌شده در 2026-06-18 از https://scholargate.app/fa/compare