A minimal implementation of Yang-Mills theory on a digital quantum computer
Abstract
We present a minimal implementation of SU() pure Yang-Mills theory in dimensions for digital quantum simulation, designed to enable quantum advantage. Building on the orbifold lattice simulation protocol with logarithmic scaling in the local Hilbert-space truncation, we introduce further simplified Hamiltonians. Furthermore, we test simple methods that improve the convergence to the infinite mass limit, thereby removing the requirement of a large scalar mass to obtain the Kogut-Susskind Hamiltonian. For the SU(2) theory, we can cut the resource requirement further by utilizing the embedding of into . Monte Carlo simulations of the Euclidean path integral were used to benchmark the accuracy of these new analytical improvements to the theory. These results provide further support for the noncompact-variable-based approach as a practical framework for quantum simulation of non-Abelian gauge theories.
Keywords
Cite
@article{arxiv.2604.15132,
title = {A minimal implementation of Yang-Mills theory on a digital quantum computer},
author = {Georg Bergner and Masanori Hanada and Emanuele Mendicelli},
journal= {arXiv preprint arXiv:2604.15132},
year = {2026}
}