English

Numerical Methods for the QCD Overlap Operator IV: Hybrid Monte Carlo

High Energy Physics - Lattice 2008-12-18 v3

Abstract

The extreme computational costs of calculating the sign of the Wilson matrix within the overlap operator have so far prevented four dimensional dynamical overlap simulations on realistic lattice sizes, because the computational power required to invert the overlap operator, the time consuming part of the Hybrid Monte Carlo algorithm, is too high. In this series of papers we introduced the optimal approximation of the sign function and have been developing preconditioning and relaxation techniques which reduce the time needed for the inversion of the overlap operator by over a factor of four, bringing the simulation of dynamical overlap fermions on medium-size lattices within the range of Teraflop-computers. In this paper we adapt the HMC algorithm to overlap fermions. We approximate the matrix sign function using the Zolotarev rational approximation, treating the smallest eigenvalues of the Wilson operator exactly within the fermionic force. We then derive the fermionic force for the overlap operator, elaborating on the problem of Dirac delta-function terms from zero crossings of eigenvalues of the Wilson operator. The crossing scheme proposed shows energy violations which are better than O(Δτ2\Delta\tau^2) and thus are comparable with the violations of the standard leapfrog algorithm over the course of a trajectory. We explicitly prove that our algorithm satisfies reversibility and area conservation. Finally, we test our algorithm on small 444^4, 646^4, and 848^4 lattices at large masses.

Keywords

Cite

@article{arxiv.hep-lat/0502007,
  title  = {Numerical Methods for the QCD Overlap Operator IV: Hybrid Monte Carlo},
  author = {N. Cundy and S. Krieg and G. Arnold and A. Frommer and Th. Lippert and K. Schilling},
  journal= {arXiv preprint arXiv:hep-lat/0502007},
  year   = {2008}
}

Comments

v2 60 pages; substantial changes to all parts of the article; v3 minor revsions

R2 v1 2026-07-22T13:15:35.396Z