Published August 2017 | Version v1
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Collinear and TMD quark and gluon densities from parton branching solution of QCD evolution equations

  • 1. Antwerpen Univ. (Belgium). Elementaire Deeltjes Fysica
  • 2. Oxford Univ. (United Kingdom). Dept. of Theoretical Physics
  • 3. Rutherford Appleton Laboratory, Chilton (United Kingdom)
  • 4. Deutsches Elektronen-Synchrotron (DESY), Hamburg (Germany)
  • 5. European Organization for Nuclear Research (CERN), Geneva (Switzerland)

Description

We study parton-branching solutions of QCD evolution equations and present a method to construct both collinear and transverse momentum dependent (TMD) parton densities from this approach. We work with next-to-leading-order (NLO) accuracy in the strong coupling. Using the unitarity picture in terms of resolvable and non-resolvable branchings, we analyze the role of the soft-gluon resolution scale in the evolution equations. For longitudinal momentum distributions, we find agreement of our numerical calculations with existing evolution programs at the level of better than 1 percent over a range of five orders of magnitude both in evolution scale and in longitudinal momentum fraction. We make predictions for the evolution of transverse momentum distributions. We perform fits to the high-precision deep inelastic scattering (DIS) structure function measurements, and we present a set of NLO TMD distributions based on the parton branching approach.

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Publishing Information

Imprint Pagination
27 p.
ISSN
0418-9833
Report number
DESY--17-118