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arXiv:1011.4142 [hep-th]AbstractReferencesReviewsResources

General formula for symmetry factors of Feynman diagrams

L. T. Hue, H. T. Hung, H. N. Long

Published 2010-11-18, updated 2012-03-23Version 2

General formula for symmetry factors (S-factor) of Feynman diagrams containing fields with high spins is derived. We prove that symmetry factors of Feynman diagrams of well-known theories do not depend on spins of fields. In contributions to S-factors, self-conjugate fields and non self-conjugate fields play the same roles as real scalar fields and complex scalar fields, respectively. Thus, the formula of S-factors for scalar theories --- theories include only real and complex scalar fields --- works on all well-known theories of fields with high spins.Two interesting consequences deduced from our result are : (i) S-factors of all external connected diagrams consisting of only vertices with three different fields, e.g., spinor QED, are equal to unity; (ii) some diagrams with different topologies can contribute the same factor, leading to the result that the inverse S-factor for the total contribution is the sum of inverse S-factors, i.e., 1/S = \sum_i (1/S_i).

Comments: 22 pages, wick.sty needed, revised version, reference added, accepted in Reports on Mathematical Physics
Journal: Reports on Mathematical Physics, 69 (2012), 331-351
Categories: hep-th
Subjects: 12.39.St, 11.15.Bt
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