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Hyon-San Seo

Publications and source records attributed to Hyon-San Seo.

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Precision Measurements of the Electroweak Mixing Angle in the Region of the Z pole

In the Standard Model (SM), the effective leptonic weak mixing angle $\sin^2θ^\ell_{\rm eff}$ can be predicted to very high accuracy by using the experimental values of the mass of the Z boson ($M_Z$), the Fermi constant, the fine structure constant, the mass of Higgs boson, the quark masses, and the value of the Quantum Chromodynamics (QCD) strong coupling ($α_s$) at $M_Z$. Therefore, deviations of measurements from SM predictions can be indications of new physics. With recent advances in experimental and analysis techniques, measurements of $\sin^2θ^\ell_{\rm eff}$ at the Large Hadron Collider (LHC), extracted from the forward-backward asymmetry ($A_{\rm FB}$) in Drell-Yan dilepton events, are now competitive with previously published measurements at $e^+e^-$ collider experiments. We report on a more precise extraction of the effective leptonic weak mixing angle via an updated analysis of the CMS Drell-Yan $A_{\rm FB}$ measurements at 13 TeV. We obtain $\sin^2θ^\ell_{\rm eff}$=0.23154$\pm$0.00024 with additional PDF constraints from measurements of the W decay lepton charge asymmetry at 13 TeV and the W/Z cross section ratios. It is the most precise single experiment measurement to date and is in excellent agreement with the SM 2026 indirect prediction of 0.23152$\pm$0.00006.

hep-ex

Summary of the Precision Measurements of the Electroweak Mixing Angle in the Region of the Z pole

This contribution presents an overview of an improved extraction of the effective leptonic weak mixing angle, $\sin^2θ^\ell_{\mathrm{eff}}$, based on the published CMS measurement of the forward-backward asymmetry in Drell-Yan events at 13 TeV [1]. While the original CMS analysis [2] achieved a significant reduction in experimental uncertainties, its overall precision remains limited by residual uncertainties in the parton distribution functions (PDFs). This proceeding highlights the impact of incorporating complementary CMS measurements that probe different combinations of parton densities, thereby providing additional PDF constraints beyond those obtained from the asymmetry measurement alone. The improved analysis leads to a substantially reduced total uncertainty, yielding $\sin^2θ^\ell_{\mathrm{eff}} = 0.23156\pm0.00024$. This result is consistent with the Standard Model prediction and represents the most precise single determination of this parameter to date.

hep-ex