Parareal Algorithms for Stochastic Maxwell Equations Driven by Multiplicative Noise

Fuente: arXiv
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Hauptverfasser: Zhang, Liying, Zhang, Qi, Ji, Lihai
Format: Preprint
Veröffentlicht: 2025
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author Zhang, Liying
Zhang, Qi
Ji, Lihai
author_facet Zhang, Liying
Zhang, Qi
Ji, Lihai
contents This paper investigates the parareal algorithms for solving the stochastic Maxwell equations driven by multiplicative noise, focusing on their convergence, computational efficiency and numerical performance. The algorithms use the stochastic exponential integrator as the coarse propagator, while both the exact integrator and the stochastic exponential integrator are used as fine propagators. Theoretical analysis shows that the mean square convergence rates of the two algorithms selected above are proportional to $k/2$, depending on the iteration number of the algorithms. Numerical experiments validate these theoretical findings, demonstrating that larger iteration numbers $k$ improve convergence rates, while larger damping coefficients $σ$ accelerate the convergence of the algorithms. Furthermore, the algorithms maintain high accuracy and computational efficiency, highlighting their significant advantages over traditional exponential methods in long-term simulations.
format Preprint
id arxiv_https___arxiv_org_abs_2502_02473
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Parareal Algorithms for Stochastic Maxwell Equations Driven by Multiplicative Noise
Zhang, Liying
Zhang, Qi
Ji, Lihai
Numerical Analysis
This paper investigates the parareal algorithms for solving the stochastic Maxwell equations driven by multiplicative noise, focusing on their convergence, computational efficiency and numerical performance. The algorithms use the stochastic exponential integrator as the coarse propagator, while both the exact integrator and the stochastic exponential integrator are used as fine propagators. Theoretical analysis shows that the mean square convergence rates of the two algorithms selected above are proportional to $k/2$, depending on the iteration number of the algorithms. Numerical experiments validate these theoretical findings, demonstrating that larger iteration numbers $k$ improve convergence rates, while larger damping coefficients $σ$ accelerate the convergence of the algorithms. Furthermore, the algorithms maintain high accuracy and computational efficiency, highlighting their significant advantages over traditional exponential methods in long-term simulations.
title Parareal Algorithms for Stochastic Maxwell Equations Driven by Multiplicative Noise
topic Numerical Analysis
url https://arxiv.org/abs/2502.02473