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A Unified FastMemory-Saving Time-SteppingMethod for Fractional Operators and Its Applications

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摘要 Time-dependent fractional partial differential equations typically require huge amounts of memory and computational time,especially for long-time integration,which taxes computational resources heavily for high-dimensional problems.Here,we first analyze existing numerical methods of sum-of-exponentials for approximating the kernel function in constant-order fractional operators,and identify the current pitfalls of such methods.In order to overcome the pitfalls,an improved sum-of-exponentials is developed and verified.We also present several sumof-exponentials for the approximation of the kernel function in variable-order fractional operators.Subsequently,based on the sum-of-exponentials,we propose a unified framework for fast time-stepping methods for fractional integral and derivative operators of constant and variable orders.We test the fast method based on several benchmark problems,including fractional initial value problems,the time-fractional Allen-Cahn equation in two and three spatial dimensions,and the Schr¨odinger equation with nonreflecting boundary conditions,demonstrating the efficiency and robustness of the proposed method.The results show that the present fast method significantly reduces the storage and computational cost especially for long-time integration problems.
出处 《Numerical Mathematics(Theory,Methods and Applications)》 SCIE CSCD 2022年第3期679-714,共36页 高等学校计算数学学报(英文版)
基金 supported by the NSF of China(Nos.12171283,12071301,12120101001) the National Key R&D Program of China(2021YFA1000202) the startup fund from Shandong University(No.11140082063130) the Shanghai Municipal Science and Technology Commission(No.20JC1412500) the science challenge project(No.TZ2018001).
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