4.7 Article

Exponential Runge-Kutta Parareal for non-diffusive equations

期刊

JOURNAL OF COMPUTATIONAL PHYSICS
卷 497, 期 -, 页码 -

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcp.2023.112623

关键词

Parareal; Parallel-in-time; Exponential integrators; Stability and convergence; Non-diffusive; Hyperbolic

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Parareal is a parallel-in-time algorithm that combines a coarse and fine propagator within a parallel iteration, leading to significantly reduced computational time compared to serial time-stepping methods. This paper explores the use of exponential integrators within the Parareal iteration to solve non-diffusive equations. Numerical experiments and linear analysis are conducted to evaluate the stability and convergence properties of the exponential Parareal iteration. Results demonstrate that the exponential Parareal methods offer improved time-to-solution compared to serial exponential integrators for certain non-diffusive equations.
Parareal is a well-known parallel-in-time algorithm that combines a coarse and fine propagator within a parallel iteration. It allows for large-scale parallelism that leads to significantly reduced computational time compared to serial time-stepping methods. However, like many parallel-in-time methods it can fail to converge when applied to non-diffusive equations such as hyperbolic systems or dispersive nonlinear wave equations. This paper explores the use of exponential integrators within the Parareal iteration. Exponential integrators are particularly interesting candidates for Parareal because of their ability to resolve fast-moving waves, even at the large stepsizes used by coarse propagators. This work begins with an introduction to exponential Parareal integrators followed by several motivating numerical experiments involving the nonlinear Schrodinger equation. These experiments are then analyzed using linear analysis that approximates the stability and convergence properties of the exponential Parareal iteration on nonlinear problems. The paper concludes with two additional numerical experiments involving the dispersive Kadomtsev-Petviashvili equation and the hyperbolic Vlasov-Poisson equation. These experiments demonstrate that exponential Parareal methods offer improved time-to -solution compared to serial exponential integrators when solving certain non-diffusive equations.

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