Predictions for the Top-Quark Forward-Backward Asymmetry at High Invariant Pair Mass Using the Principle of Maximum Conformality
Sheng-Quan Wang, Xing-Gang Wu, Zong-Guo Si, Stanley J. Brodsky

TL;DR
This paper applies the Principle of Maximum Conformality to top-quark forward-backward asymmetry predictions, resolving renormalization ambiguities and predicting an increasing-decreasing behavior in asymmetry at high invariant masses, which can be tested experimentally.
Contribution
The paper introduces the use of PMC for top-quark asymmetry predictions, providing scheme-independent results and revealing a novel behavior not seen with conventional scale-setting.
Findings
PMC removes renormalization scheme and scale ambiguities.
Predicted asymmetry shows increasing-decreasing behavior at high invariant mass.
Results can be tested with future LHC measurements.
Abstract
The D0 collaboration at FermiLab has recently measured the top-quark pair forward-backward asymmetry in reactions as a function of the invariant mass . The D0 result for is smaller than obtained for small values of , which may indicate an "increasing-decreasing" behavior for . This behavior is not explained using conventional renormalization scale-setting, even by a next-to-next-to-leading order (NLO) QCD calculation -- one predicts a monotonically increasing behavior. In the conventional scale-setting method, one simply guesses a single renormalization scale for the argument of the QCD running coupling and then varies it over an arbitrary range. However, the conventional method has inherent…
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