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February 8, 2026Journal of High Energy Physics0 citationsOpen Access

Color-glass condensate beyond the Gaussian approximation

JPJani Penttala

Key Points

  • The goal is to extend the existing Gaussian model for color density to a more generalized function and to compute Wilson-line correlators within this framework.
  • Generalized Gaussian model for color density in light-cone coordinates
  • Computation of physical Wilson-line correlators
  • Exploration of stable probability distributions for color density
  • Modified dipole amplitude behavior from quadratic to power law
  • The power law is determined by the stability parameter of the distribution
  • The model is now applicable for numerical studies in high-energy nuclear physics

Abstract

A bstract In the high-energy limit, perturbative calculations in QCD are conveniently done using the dipole picture which factorizes the scattering amplitude into a perturbative part and the nonperturbative scattering off the nuclear target, described using correlators of Wilson lines. These correlators can be computed in the color-glass condensate effective field theory by using a Gaussian model for the color density of the target. In this work, we generalize the Gaussian model to a generic function that is local in the light-cone coordinates, and show how to compute physical Wilson-line correlators in this model. We also consider a simple model for the color density based on stable probability distributions and show that the small-dipole behavior of the dipole amplitude is modified from quadratic to a power law, where the power is given by the stability parameter of the distribution. This generalization of the Gaussian model is suitable for numerical applications in the high-energy limit and can be used in future phenomenological studies of the nuclear structure.

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Cite This Study

Jani Penttala (2026) studied this question.

synapsesocial.com/papers/698828850fc35cd7a88481b3https://doi.org/10.1007/jhep02(2026)059
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