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Lax-Friedrichs sweeping scheme for static Hamilton-Jacobi equations
Chiu- Yen Kao, IMA, UMN
S Osher
J L. Qian

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ABSTRACT:

We propose a simple, fast sweeping method based on the Lax-Friedrichs monotone numerical Hamiltonian to approximate viscosity solutions of arbitrary static Hamilton-Jacobi equations in any number of spatial dimensions. By using the Lax-Friedrichs numerical Hamiltonian, we can easily obtain the solution at a specific grid point in terms of its neighbors, so that a Gauss-Seidel type nonlinear iterative method can be utilized. Furthermore, by incorporating a group-wise causality principle into the Gauss-Seidel iteration by following a finite group of characteristics, we have an easy-to-implement, sweeping-type, and fast convergent numerical method. However, unlike other methods based on the Godunov numerical Hamiltonian, some computational boundary conditions are needed in the implementation. We give a simple recipe which enforces a version of discrete min-max principle. Some convergence analysis is done for the one-dimensional eikonal equation. Extensive 2-D and 3-D numerical examples illustrate the efficiency and accuracy of the new approach. To our knowledge, this is the first fast numerical method based on discretizing the Hamilton-Jacobi equation directly without assuming convexity and/or homogeneity of the Hamiltonian. (C) 2003 Elsevier Inc. All rights reserved.

SUGGESTED CITATION:
Chiu- Yen Kao, S Osher, and J L. Qian, "Lax-Friedrichs sweeping scheme for static Hamilton-Jacobi equations" (2004). Journal of Computational Physics. 196 (1), pp. 367-391. Postprint available free at: http://repositories.cdlib.org/postprints/292

REQUIRED PUBLISHER STATEMENT:
The original publication is available in the Journal of Computational Physics.

 
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