English

Finite difference schemes for the tempered fractional Laplacian

Numerical Analysis 2019-01-04 v1

Abstract

The second and all higher order moments of the β\beta-stable L\'{e}vy process diverge, the feature of which is sometimes referred to as shortcoming of the model when applied to physical processes. So, a parameter λ\lambda is introduced to exponentially temper the L\'{e}vy process. The generator of the new process is tempered fractional Laplacian (Δ+λ)β/2(\Delta+\lambda)^{\beta/2} [W.H. Deng, B.Y. Li, W.Y. Tian, and P.W. Zhang, Multiscale Model. Simul., in press, 2017]. In this paper, we first design the finite difference schemes for the tempered fractional Laplacian equation with the generalized Dirichlet type boundary condition, their accuracy depending on the regularity of the exact solution on Ωˉ\bar{\Omega}. Then the techniques of effectively solving the resulting algebraic equation are presented, and the performances of the schemes are demonstrated by several numerical examples.

Keywords

Cite

@article{arxiv.1711.05056,
  title  = {Finite difference schemes for the tempered fractional Laplacian},
  author = {Z. Z. Zhang and W. H. Deng and H. T. Fan},
  journal= {arXiv preprint arXiv:1711.05056},
  year   = {2019}
}

Comments

25 pages, 2 figures