Shot-noise cojumps: exact simulation and option pricing
We consider a parsimonious framework of jump-diffusion models for price dynamics with stochastic price volatilities and stochastic jump intensities in continuous time. They account for conditional heteroscedasticity and also incorporate key features appearing in financial time series of price volatilities and jump intensities, such as persistence of contemporaneous jumps (cojumps), mean reversion and feedback effects. More precisely, the stochastic variance and stochastic intensity are jointly modelled by a generalised bivariate shot-noise process sharing common jump arrivals with any non-negative jump-size distributions. This framework covers many classical and important models in the literature. The main contribution of this paper is that, we develop a very efficient scheme for its exact simulation based on perfect decomposition where neither numerical inversion nor acceptance/rejection scheme is required, which means that it is not only accurate but also the efficiency would not be sensitive to the parameter choice. Extensive numerical implementations and tests are reported to demonstrate the accuracy and effectiveness of this scheme. Our algorithm substantially outperforms the classical discretisation scheme. Moreover, we unbiasedly estimate the prices of discrete-barrier European options to show the applicability and flexibility of our algorithms.
| Item Type | Article |
|---|---|
| Copyright holders | © 2021 Operational Research Society |
| Departments | LSE > Academic Departments > Statistics |
| DOI | 10.1080/01605682.2022.2077660 |
| Date Deposited | 04 Aug 2021 |
| Acceptance Date | 08 May 2022 |
| URI | https://researchonline.lse.ac.uk/id/eprint/111537 |
Explore Further
- C63 - Computational Techniques
- C15 - Statistical Simulation Methods; Monte Carlo Methods; Bootstrap Methods
- G13 - Contingent Pricing; Futures Pricing
- https://www.lse.ac.uk/Statistics/People/Professor-Angelos-Dassios (Author)
- https://www.scopus.com/pages/publications/85131208149 (Scopus publication)
- https://www.tandfonline.com/toc/tjor20/current (Official URL)