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Pricing the Volatility Risk Premium with a Discrete Stochastic Volatility Model (CROSBI ID 297761)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Posedel Šimović, Petra ; Tafro, Azra Pricing the Volatility Risk Premium with a Discrete Stochastic Volatility Model // Mathematics, 9 (2021), 17; 2038, 15. doi: 10.3390/math9172038

Podaci o odgovornosti

Posedel Šimović, Petra ; Tafro, Azra

engleski

Pricing the Volatility Risk Premium with a Discrete Stochastic Volatility Model

Investors’ decisions on capital markets depend on their anticipation and preferences about risk, and volatility is one of the most common measures of risk. This paper proposes a method of estimating the market price of volatility risk by incorporating both conditional heteroscedasticity and nonlinear effects in market returns, while accounting for asymmetric shocks. We develop a model that allows dynamic risk premiums for the underlying asset and for the volatility of the asset under the physical measure. Specifically, a nonlinear in mean time series model combining the asymmetric autoregressive conditional heteroscedastic model with leverage (NGARCH) is adapted for modeling return dynamics. The local risk- neutral valuation relationship is used to model investors’ preferences of volatility risk. The transition probabilities governing the evolution of the price of the underlying asset are adjusted for investors’ attitude towards risk, presenting the asset returns as a function of the risk premium. Numerical studies on asset return data show the significance of market shocks and levels of asymmetry in pricing the volatility risk. Estimated premiums could be used in option pricing models, turning options markets into volatility trading markets, and in measuring reactions to market shocks.

volatility risk premium ; stochastic volatility ; NGARCH model ; diffusion limit ; news impact curve

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Podaci o izdanju

9 (17)

2021.

2038

15

objavljeno

2227-7390

10.3390/math9172038

Povezanost rada

Matematika

Poveznice
Indeksiranost