Higher-Order Finite Difference Methods for the Tempered Fractional Laplacian
Numerical Analysis
2026-01-30 v1 Numerical Analysis
Abstract
This paper presents a general framework of high-order finite difference (HFD) schemes for the tempered fractional Laplacian (TFL) based on new generating functions obtained from the discrete symbols. Specifically, for sufficiently smooth functions, the resulting discretizations achieve high-order convergence with orders . The discrete operators lead to Toeplitz stiffness matrices, allowing efficient matrix-vector multiplications via fast algorithms. Building on these approximations, HFD methods are formulated for solving TFL equations, and their stability and convergence are rigorously analyzed. Numerical simulations confirm the effectiveness of the proposed methods, showing excellent agreement with the theoretical predictions.
Keywords
Cite
@article{arxiv.2601.21388,
title = {Higher-Order Finite Difference Methods for the Tempered Fractional Laplacian},
author = {Mingyi Wang and Dongling Wang},
journal= {arXiv preprint arXiv:2601.21388},
year = {2026}
}