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A Hybrid Monte Carlo and Finite Difference Method for Option Pricing

Authors
Jeong, DaraeYoo, MinhyunYoo, ChangwooKim, Junseok
Issue Date
1월-2019
Publisher
SPRINGER
Keywords
Black-Scholes equation; Finite difference method; Option pricing; Boundary condition; Monte Carlo simulation
Citation
COMPUTATIONAL ECONOMICS, v.53, no.1, pp.111 - 124
Indexed
SCIE
SSCI
SCOPUS
Journal Title
COMPUTATIONAL ECONOMICS
Volume
53
Number
1
Start Page
111
End Page
124
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/68851
DOI
10.1007/s10614-017-9730-4
ISSN
0927-7099
Abstract
We propose an accurate, efficient, and robust hybrid finite difference method, with a Monte Carlo boundary condition, for solving the Black-Scholes equations. The proposed method uses a far-field boundary value obtained from a Monte Carlo simulation, and can be applied to problems with non-linear payoffs at the boundary location. Numerical tests on power, powered, and two-asset European call option pricing problems are presented. Through these numerical simulations, we show that the proposed boundary treatment yields better accuracy and robustness than the most commonly used linear boundary condition. Furthermore, the proposed hybrid method is general, which means it can be applied to other types of option pricing problems. In particular, the proposed Monte Carlo boundary condition algorithm can be implemented easily in the code of the existing finite difference method, with a small modification.
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