Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
9854950 | Nuclear Physics B | 2005 | 38 Pages |
Abstract
We present an algorithm to compute arbitrary multi-loop massive Feynman diagrams in the region where the typical energy scale Q is much larger than the typical mass scale M, i.e., Qâ«M, while various different energy and mass parameters may be present. In this region we perform an asymptotic expansion and, using sector decomposition, we extract the leading contributions resulting from ultraviolet and mass singularities, which consist of large logarithms ln(Q2/M2) and 1/É poles in D=4â2É dimensions. To next-to-leading accuracy, at L loops all terms of the form αLÉâklnj(Q2/M2) with j+k=2L and j+k=2Lâ1 are taken into account. This algorithm permits, in particular, to compute higher-order next-to-leading logarithmic electroweak corrections for processes involving various kinematical invariants of the order of hundreds of GeV and masses MWâ¼MZâ¼MHâ¼mt of the order of the electroweak scale, in the approximation where the masses of the light fermions are neglected.
Related Topics
Physical Sciences and Engineering
Mathematics
Mathematical Physics
Authors
A. Denner, S. Pozzorini,