The anomalous magnetic moment of the muon in the Standard Model: an update
R. Aliberti, T. Aoyama, E. Balzani, A. Bashir, G. Benton, J. Bijnens, V. Biloshytskyi, T. Blum, D. Boito, M. Bruno, E. Budassi, S. Burri, L. Cappiello, C. M. Carloni Calame, M. C\`e, V. Cirigliano, D. A. Clarke, G. Colangelo, L. Cotrozzi, M. Cottini, I. Danilkin, M. Davier

TL;DR
This paper updates the Standard Model prediction for the muon anomalous magnetic moment, incorporating recent experimental and theoretical advances, and finds no current tension with experimental measurements.
Contribution
It provides a revised SM prediction for $a_\mu$ with reduced uncertainties, especially in hadronic contributions, and discusses the impact of new data and lattice-QCD results.
Findings
Updated SM prediction: $a_\mu^{SM} = 116592033(62)\times 10^{-11}$
No significant tension between SM and experimental value
Progress in hadronic light-by-light and lattice-QCD calculations
Abstract
We present the current Standard Model (SM) prediction for the muon anomalous magnetic moment, , updating the first White Paper (WP20) [1]. The pure QED and electroweak contributions have been further consolidated, while hadronic contributions continue to be responsible for the bulk of the uncertainty of the SM prediction. Significant progress has been achieved in the hadronic light-by-light scattering contribution using both the data-driven dispersive approach as well as lattice-QCD calculations, leading to a reduction of the uncertainty by almost a factor of two. The most important development since WP20 is the change in the estimate of the leading-order hadronic-vacuum-polarization (LO HVP) contribution. A new measurement of the cross section by CMD-3 has increased the tensions among data-driven dispersive evaluations of the LO HVP contribution to a level…
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