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arXiv · hep-ph/0106025

Precision Determination of the Pion Form Factor and Calculation of the Muon $g-2$

Abstract

We perform a new calculation of the hadronic contributions, $a({\rm Hadronic})$ to the anomalous magnetic moment of the muon, $a_μ$. For the low energy contributions of order $α^2$ we carry over an analysis of the pion form factor $F_π(t)$ using recent data both on $e^+e^-\toπ^+π^-$ and $τ^+\to \barν_τπ^+π^0$. In this analysis we take into account that the phase of the form factor is equal to that of $ππ$ scattering. This allows us to profit fully from analyticity properties so we can use also experimental information on $F_π(t)$ at spacelike $t$. At higher energy we use QCD to supplement experimental data, including the recent measurements of $e^+e^-\to {\rm hadrons}$ both around 1 GeV and near the $\bar{c}c$ threshold. This yields a precise determination of the $O(α^2)$ and $O(α^2)+O(α^3)$ hadronic part of the photon vacuum polarization pieces, $$10^{11}\times a^{(2)}({\rm h.v.p.})=6 909\pm64;\quad 10^{11}\times a^{(2+3)}({\rm h.v.p.})=7 002\pm66$$ As byproducts we also get the masses and widths of the $ρ^0, ρ^+$, and very accurate values for the charge radius and second coefficient of the pion. Adding the remaining order $α^3$ hadronic contributions we find $$10^{11}\times a^{\rm theory}(\hbox{Hadronic})= 6 993\pm69\quad(e^+e^- + τ+ {\rm spacel.})$$ The figures given are obtained including $τ$ decay data. This is to be compared with the recent experimental value, $$10^{11}\times a^{\rm exp.}(\hbox{Hadronic})=7 174\pm150.$$

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BibTeXRIS

J. F. de Troconiz, F. J. Yndurain. 2002-01-21. Precision Determination of the Pion Form Factor and Calculation of the Muon $g-2$. https://doi.org/10.1103/physrevd.65.093001

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