Pricing European Options under Stochastic Volatility Models: Case of five-Parameter Variance-Gamma Process
Abstract
The paper builds a Variance-Gamma (VG) model with five parameters: location (), symmetry (), volatility (), shape (), and scale (); and studies its application to the pricing of European options. The results of our analysis show that the five-parameter VG model is a stochastic volatility model with a Ornstein-Uhlenbeck type process; the associated L\'evy density of the VG model is a KoBoL family of order , intensity , and steepness parameters and ; and the VG process converges asymptotically in distribution to a L\'evy process driven by a normal distribution with mean and variance . The data used for empirical analysis were obtained by fitting the five-parameter Variance-Gamma (VG) model to the underlying distribution of the daily SPY ETF data. Regarding the application of the five-parameter VG model, the twelve-point rule Composite Newton-Cotes Quadrature and Fractional Fast Fourier (FRFT) algorithms were implemented to compute the European option price. Compared to the Black-Scholes (BS) model, empirical evidence shows that the VG option price is underpriced for out-of-the-money (OTM) options and overpriced for in-the-money (ITM) options. Both models produce almost the same option pricing results for deep out-of-the-money (OTM) and deep-in-the-money (ITM) options
Cite
@article{arxiv.2201.03378,
title = {Pricing European Options under Stochastic Volatility Models: Case of five-Parameter Variance-Gamma Process},
author = {A. H. Nzokem},
journal= {arXiv preprint arXiv:2201.03378},
year = {2023}
}
Comments
28 pages