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VaR/CVaR estimation under stochastic volatility models
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VaR/CVaR estimation under stochastic volatility models

CHUAN-HSIANG HAN, Wei-Han LiuTzu-Ying Chen
International Journal of Theoretical and Applied Finance, 卷.17(2), 1450009
2014

摘要

(conditional) Value-at-Risk backtesting Fourier transform method importance sampling Stochastic volatility
This paper proposes an improved procedure for stochastic volatility model estimation with an application to Value-at-Risk (VaR) and Conditional Value-at-Risk (CVaR) estimation. This improved procedure is composed of the following instrumental components: Fourier transform method for volatility estimation, and importance sampling for extreme event probability estimation. The empirical analysis is based on several foreign exchange series and the S&P 500 index data. In comparison with empirical results by RiskMetrics, historical simulation, and the GARCH(1,1) model, our improved procedure outperforms on average. © World Scientific Publishing Company.

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