English

High precision tests of QCD without scale or scheme ambiguities

High Energy Physics - Phenomenology 2023-11-30 v2 High Energy Physics - Theory

Abstract

A key issue in making precise predictions in QCD is the uncertainty in setting the renormalization scale μR\mu_R and thus determining the correct values of the QCD running coupling αs(μR2)\alpha_s(\mu_R^2) at each order in the perturbative expansion of a QCD observable. It has often been conventional to simply set the renormalization scale to the typical scale of the process QQ and vary it in the range μR[Q/2,2Q]\mu_R \in [Q/2,2Q] in order to estimate the theoretical error. This is the practice of Conventional Scale Setting (CSS). The resulting CSS prediction will however depend on the theorist's choice of renormalization scheme and the resulting pQCD series will diverge factorially. It will also disagree with renormalization scale setting used in QED and electroweak theory thus precluding grand unification. A solution to the renormalization scale-setting problem is offered by the Principle of Maximum Conformality (PMC), which provides a systematic way to eliminate the renormalization scale-and-scheme dependence in perturbative calculations. The PMC method has rigorous theoretical foundations, it satisfies Renormalization Group Invariance (RGI) and preserves all self-consistency conditions derived from the renormalization group. The PMC cancels the renormalon growth, reduces to the Gell-Mann--Low scheme in the NC0N_C\to 0 Abelian limit and leads to scale- and scheme-invariant results. The PMC has now been successfully applied to many high-energy processes. In this article we summarize recent developments and results in solving the renormalization scale and scheme ambiguities in perturbative QCD. [full abstract is in the paper].

Keywords

Cite

@article{arxiv.2307.03951,
  title  = {High precision tests of QCD without scale or scheme ambiguities},
  author = {Leonardo Di Giustino and Stanley J. Brodsky and Philip G. Ratcliffe and Xing-Gang Wu and Sheng-Quan Wang},
  journal= {arXiv preprint arXiv:2307.03951},
  year   = {2023}
}

Comments

83 pages ; 22 figures; Review article published on Prog. Part. Nucl. Phys. arXiv admin note: substantial text overlap with arXiv:2205.03689