paper

On normalization of QCD effects in electroweak corrections

arXiv:hep-ph/9401357 · doi:10.1103/PhysRevD.51.5251

Abstract

We point out that, contrary to some recent claims, there is no intrinsic long-distance uncertainty in perturbative calculation of the QCD effects in the $t \tb$ and $t \bb$ loops giving the electroweak corrections proportional to . If these corrections are expressed in terms of the ``on-shell" mass , the only ambiguity arising is that associated with the definition of the ``on-shell" mass of a quark. The latter is entirely eliminated if the result is expressed in terms of defined at short distances. Applying the Brodsky-Lepage-Mackenzie criterion for determining the natural scale for normalization of $\as$, we find that using the ``on-shell" mass makes this scale numerically small in units of . Specifically, we find that by this criterion the first QCD correction to the terms is determined by $\as^\msb(0.15 m_t)$. Naturally, a full calculation of three-loop graphs is needed to completely quantify the scale.

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