Computation of the string tension in four-dimensional Yang-Mills theory using large N reduction
arXiv:0908.1451 · doi:10.1016/j.physletb.2009.10.043
Abstract
Continuum reduction and Monte Carlo simulation are used to calculate the heavy quark potential and the string tension in large N Yang-Mills theory in four dimensions. The potential is calculated out to a separation of nine lattice units on a lattice with extent six in each direction.
One reference added. Typos corrected
References in corpus (5)
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Cited by in corpus (14)
- SU(N) gauge theories at large N
- Large reduction with the Twisted Eguchi-Kawai model
- Introductory lectures to large-N QCD phenomenology and lattice results
- The Hamiltonian Approach to Yang-Mills (2+1): An Expansion Scheme and Corrections to String Tension
- Large N and confining flux tubes as strings - a view from the lattice
- Rectangular Wilson Loops at Large N
- Recent results in large-N lattice gauge theories
- Spatial volume dependence for 2+1 dimensional SU(N) Yang-Mills theory
- Parton physics of the large- mesons
- The Hamiltonian Approach to Yang-Mills (2+1): An Update and Corrections to String Tension
- Two dimensional fermions in three dimensional YM
- The spatial string tension in the deconfined phase of three dimensional QCD in the large N limit
- Large-N string tension from rectangular Wilson loops
- Continuum reduction in large N gauge theories