Local infrared safety in time-ordered perturbation theory
arXiv:2309.13023 · doi:10.1007/JHEP02(2024)101
Abstract
We develop a general expression for weighted cross sections in leptonic annihilation to hadrons based on time-ordered perturbation theory (TOPT). The analytic behavior of the resulting integrals over spatial momenta can be analyzed in the language of Landau equations and infrared (IR) power counting. For any infrared-safe weight, the cancellation of infrared divergences is implemented locally at the integrand level, and in principle can be evaluated numerically in four dimensions. We go on to show that it is possible to eliminate unphysical singularities that appear in time-ordered perturbation theory for arbitrary amplitudes. This is done by reorganizing TOPT into an equivalent form that combines classes of time orderings into a ``partially time-ordered perturbation theory". Applying the formalism to leptonic annihilation, we show how to derive diagrammatic expressions with only physical unitarity cuts.
61 pages, 9 figures
References in corpus (8)
- From loops to trees by-passing Feynman's theorem
- Four-dimensional unsubtraction with massive particles
- May the four be with you: Novel IR-subtraction methods to tackle NNLO calculations
- On the singular behaviour of scattering amplitudes in quantum field theory
- Exposing the threshold structure of loop integrals
- Locally finite two-loop QCD amplitudes from IR universality for electroweak production
- Flow-oriented perturbation theory
- Path description of coordinate-space amplitudes
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