English

Applying polynomial filtering to mass preconditioned Hybrid Monte Carlo

High Energy Physics - Lattice 2017-04-07 v2

Abstract

The use of mass preconditioning or Hasenbusch filtering in modern Hybrid Monte Carlo simulations is common. At light quark masses, multiple filters (three or more) are typically used to reduce the cost of generating dynamical gauge fields; however, the task of tuning a large number of Hasenbusch mass terms is non-trivial. The use of short polynomial approximations to the inverse has been shown to provide an effective UV filter for HMC simulations. In this work we investigate the application of polynomial filtering to the mass preconditioned Hybrid Monte Carlo algorithm as a means of introducing many time scales into the molecular dynamics integration with a simplified parameter tuning process. A generalized multi-scale integration scheme that permits arbitrary step- sizes and can be applied to Omelyan-style integrators is also introduced. We find that polynomial-filtered mass-preconditioning (PF-MP) performs as well as or better than standard mass preconditioning, with significantly less fine tuning required.

Keywords

Cite

@article{arxiv.1609.02652,
  title  = {Applying polynomial filtering to mass preconditioned Hybrid Monte Carlo},
  author = {Taylor Haar and Waseem Kamleh and James Zanotti and Yoshifumi Nakamura},
  journal= {arXiv preprint arXiv:1609.02652},
  year   = {2017}
}

Comments

33 pages, 16 figures, 8 tables; updated to reflect accepted manuscript