Abstract

In order to improve the theoretical prediction of the electron anomalous magnetic moment $a_e$ we have carried out a new numerical evaluation of the 389 integrals of Set V, which represent 6,354 Feynman vertex diagrams without lepton loops. During this work, we found that one of the integrals, called $X024$, was given a wrong value in the previous calculation due to an incorrect assignment of integration variables. The correction of this error causes a shift of $-1.25$ to the Set~V contribution, and hence to the tenth-order universal (i.e., mass-independent) term $ A_1^{(10)}$. The previous evaluation of all other 388 integrals is free from errors and consistent with the new evaluation. Combining the new and the old (excluding $X024$) calculations statistically, we obtain $7.606~(192) (\alpha/\pi)^5$ as the best estimate of the Set V contribution. Including the contribution of the diagrams with fermion loops, the improved tenth-order universal term becomes $A_1^{(10)}=6.678~(192)$. Adding hadronic and electroweak contributions leads to the theoretical prediction $a_e (\text{theory}) =1~159~652~182.032~(720)\times 10^{-12}$. From this and the best measurement of $a_e$, we obtain the inverse fine-structure constant $\alpha^{-1}(a_e) = 137.035~999~1491~(331)$. The theoretical prediction of the muon anomalous magnetic moment is also affected by the update of QED contribution and the new value of $\alpha$, but the shift is much smaller than the theoretical uncertainty.

Highlights

  • AND SUMMARYIn 1947 the electron magnetic moment anomaly ae 1⁄4 ðg − 2Þ=2 was discovered in an atomic physics experiment [1], which was soon understood as the effect of radiative correction by the newly formulated quantum electrodynamics (QED) [2]

  • We found that one of the integrals, called X024, was given a wrong value in the previous calculation due to an incorrect assignment of integration variables

  • During the new evaluation we found a programming error in the previous evaluation of X024

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Summary

INTRODUCTION

In 1947 the electron magnetic moment anomaly ae 1⁄4 ðg − 2Þ=2 was discovered in an atomic physics experiment [1], which was soon understood as the effect of radiative correction by the newly formulated quantum electrodynamics (QED) [2]. Að110Þ1⁄2Set I–IV; VIŠ 1⁄4 −0.930 42 ð361Þ ð15Þ to (14), we obtain an updated value of the tenth-order massindependent contribution: Að110Þ 1⁄4 6.675 ð192Þ; ð16Þ where the uncertainty comes entirely from the numerical integration of Set Vand is reduced by 43% compared to that in (11). This is the main result of our paper. If we assume that the theory of ae is correct, by equating the formula Eq (18) to the measured value Eq (1), we obtain an α which is more precise than that of (19): α−1ðae∶2017Þ 1⁄4 137.035 999 1491 ð15Þð14Þð330Þ; ð21Þ where the uncertainties come from the tenth-order QED, the hadronic correction, and the experiment. The details of the updates of aμ are given in the Appendix

PREPARATION OF SET V FOR NUMERICAL EVALUATION
NUMERICAL INTEGRATION OF ΔM10 BY VEGAS
MAPPING OF FEYNMAN PARAMETERS
MAPPING ERROR IN X024 CORRECTED
RESIDUAL RENORMALIZATION TERMS
Findings
CONCLUSION
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