Electromagnetic corrections to hadronic vacuum polarization contribute significantly to the uncertainty of the Standard Model prediction of the muon anomaly, which poses conceptual and numerical challenges for ab initio lattice determinations. In this study, we compute the non-singlet contribution from intermediate Euclidean current separations in quantum chromo- and electrodynamics (QCD+QED) using C⋆ boundary conditions in two ways: either non-perturbatively by sampling the joint probability distribution directly or by perturbatively expanding from an isospin-symmetric theory. This allows us to compare the predictions and their uncertainties at a fixed lattice spacing and volume, including fully the sea quarks effects in both cases. Treating carefully the uncertainty due to tuning to the same renormalized theory with Nf = 1 + 2 + 1 quarks, albeit with unphysical masses, we find it advantageous to simulate the full QCD+QED distribution given a fixed number of samples. This study lays the ground-work for further applications of C⋆ boundary conditions to study QCD+QED at the physical point, essential for the next generation of precision tests of the Standard Model.
Null, N., Altherr, A., Campos, I., Cotellucci, A., Gruber, R., Harris, T., et al. (2025). Comparing QCD+QED via full simulation versus the RM123 method: U-spin window contribution to $${a}_{\mu }^{\text{HVP}}$$. JOURNAL OF HIGH ENERGY PHYSICS, 2025(10) [10.1007/jhep10(2025)158].
Comparing QCD+QED via full simulation versus the RM123 method: U-spin window contribution to $${a}_{\mu }^{\text{HVP}}$$
Margari, F.;Tantalo, N.;
2025-01-01
Abstract
Electromagnetic corrections to hadronic vacuum polarization contribute significantly to the uncertainty of the Standard Model prediction of the muon anomaly, which poses conceptual and numerical challenges for ab initio lattice determinations. In this study, we compute the non-singlet contribution from intermediate Euclidean current separations in quantum chromo- and electrodynamics (QCD+QED) using C⋆ boundary conditions in two ways: either non-perturbatively by sampling the joint probability distribution directly or by perturbatively expanding from an isospin-symmetric theory. This allows us to compare the predictions and their uncertainties at a fixed lattice spacing and volume, including fully the sea quarks effects in both cases. Treating carefully the uncertainty due to tuning to the same renormalized theory with Nf = 1 + 2 + 1 quarks, albeit with unphysical masses, we find it advantageous to simulate the full QCD+QED distribution given a fixed number of samples. This study lays the ground-work for further applications of C⋆ boundary conditions to study QCD+QED at the physical point, essential for the next generation of precision tests of the Standard Model.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


