Numerical approximation of BSDEs using local polynomial drivers and branching processes
Numerical Analysis
2017-07-31 v2
Abstract
We propose a new numerical scheme for Backward Stochastic Differential Equations based on branching processes. We approximate an arbitrary (Lipschitz) driver by local polynomials and then use a Picard iteration scheme. Each step of the Picard iteration can be solved by using a representation in terms of branching diffusion systems, thus avoiding the need for a fine time discretization. In contrast to the previous literature on the numerical resolution of BSDEs based on branching processes, we prove the convergence of our numerical scheme without limitation on the time horizon. Numerical simulations are provided to illustrate the performance of the algorithm.
Keywords
Cite
@article{arxiv.1612.06790,
title = {Numerical approximation of BSDEs using local polynomial drivers and branching processes},
author = {Bruno Bouchard and Xiaolu Tan and Xavier Warin and Yiyi Zou},
journal= {arXiv preprint arXiv:1612.06790},
year = {2017}
}
Comments
28 pages