Discretization-related issues in the Kardar-Parisi-Zhang equation: Consistency, Galilean-invariance violation, and fluctuation-dissipation relation

H. S. Wio, J. A. Revelli, R. R. Deza, C. Escudero, and M. S. de La Lama
Phys. Rev. E 81, 066706 – Published 29 June 2010

Abstract

In order to perform numerical simulations of the Kardar-Parisi-Zhang (KPZ) equation, in any dimensionality, a spatial discretization scheme must be prescribed. The known fact that the KPZ equation can be obtained as a result of a Hopf-Cole transformation applied to a diffusion equation (with multiplicative noise) is shown here to strongly restrict the arbitrariness in the choice of spatial discretization schemes. On one hand, the discretization prescriptions for the Laplacian and the nonlinear (KPZ) term cannot be independently chosen. On the other hand, since the discretization is an operation performed on space and the Hopf-Cole transformation is local both in space and time, the former should be the same regardless of the field to which it is applied. It is shown that whereas some discretization schemes pass both consistency tests, known examples in the literature do not. The requirement of consistency for the discretization of Lyapunov functionals is argued to be a natural and safe starting point in choosing spatial discretization schemes. We also analyze the relation between real-space and pseudospectral discrete representations. In addition we discuss the relevance of the Galilean-invariance violation in these consistent discretization schemes and the alleged conflict of standard discretization with the fluctuation-dissipation theorem, peculiar of one dimension.

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  • Received 25 January 2010

DOI:https://doi.org/10.1103/PhysRevE.81.066706

©2010 American Physical Society

Authors & Affiliations

H. S. Wio1, J. A. Revelli1, R. R. Deza2, C. Escudero3, and M. S. de La Lama4

  • 1Instituto de Física de Cantabria (UC and CSIC), Avenida de los Castros, s/n, E-39005 Santander, Spain
  • 2Instituto de Investigaciones Físicas Mar del Plata (UNMdP and CONICET), Deán Funes 3350, B7602AYL Mar del Plata, Argentina
  • 3ICMAT (CSIC-UAM-UC3M-UCM), Departamento de Matemáticas, Facultad de Ciencias, Universidad Autónoma de Madrid, Ciudad Universitaria de Cantoblanco, 28049 Madrid, Spain
  • 4Max-Planck-Institute for Dynamics and Self-Organization, Bunsenstrasse 10, 37073 Göttingen, Germany

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Issue

Vol. 81, Iss. 6 — June 2010

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