Renormalization Group Flows for Track Function Moments
Max Jaarsma, Yibei Li, Ian Moult, Wouter Waalewijn, Hua Xing Zhu

TL;DR
This paper derives the renormalization group evolution equations for higher moments of track functions, enabling detailed analysis of energy flow correlations in jet substructure measurements at hadron colliders.
Contribution
It provides the first derivation of RG equations for higher moments of track functions, including their mixing and evolution up to six-point correlations.
Findings
RG equations for track function moments derived up to sixth order
Energy conservation leads to shift symmetry simplifying evolution equations
Results enable precision analysis of multi-point energy flow correlations
Abstract
Track functions describe the collective effect of the fragmentation of quarks and gluons into charged hadrons, making them a key ingredient for jet substructure measurements at hadron colliders, where track-based measurements offer superior angular resolution. The first moment of the track function, describing the average energy deposited in charged particles, is a simple and well-studied object. However, measurements of higher-point correlations of energy flow necessitate a characterization of fluctuations in the hadronization process, described theoretically by higher moments of the track function. In this paper we derive the structure of the renormalization group (RG) evolution equations for track function moments. We show that energy conservation gives rise to a shift symmetry that allows the evolution equations to be written in terms of cumulants, , and the difference…
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