论文标题

DGLAP之外的colinear parton动力学

Collinear Parton Dynamics Beyond DGLAP

论文作者

Chen, Hao, Jaarsma, Max, Li, Yibei, Moult, Ian, Waalewijn, Wouter J., Zhu, Hua Xing

论文摘要

重新归一化组进化方程描述了量子染色体学(QCD)中数量依赖性的规模依赖性在实验数据的解释中起着核心作用。可以说,对撞机物理应用的最重要的演化方程是Dokshitzer-Gribov-Lipatov-Altarelli-Parisi(DGLAP)方程,它们描述了将夸克或gluon碎片碎片的演变成Hadroon的演变,一次只鉴定出一个单一的Hadron。近年来,对喷气机中能量流的相关性的研究已经在对撞机实验中发挥了核心作用,需要对相关性有所了解,超出了标准的DGLAP范式。在这封信中,我们得出了一个通用的翻新组方程,该方程描述了分支中相关性的共线动力学。我们在近代领先顺序(NLO)下计算此演变方程的内核,其中涉及$ 1 \至3 $拆分函数,并开发技术以数值求解它。我们表明,我们的方程式包含所有以前已知的共线进化方程,即DGLAP和多 - 二体碎片函数的演变。作为我们结果的应用,我们考虑了带电粒子上能量流的现象学上的示例,计算了$ e^+e^ - \ \ to $ hadrons in nnlo的带电颗粒的能量分数。我们的结果是提高对喷气机的共线动力学的理解的重要一步,在喷气子结构中广泛应用,从对多 - 戴隆相关性的研究到包容性(亚次)喷气生产的描述以及现代Parton淋浴者的进步。

Renormalization group evolution equations describing the scale dependence of quantities in quantum chromodynamics (QCD) play a central role in the interpretation of experimental data. Arguably the most important evolution equations for collider physics applications are the Dokshitzer-Gribov-Lipatov-Altarelli-Parisi (DGLAP) equations, which describe the evolution of a quark or gluon fragmenting into hadrons, with only a single hadron identified at a time. In recent years, the study of the correlations of energy flow within jets has come to play a central role at collider experiments, necessitating an understanding of correlations, going beyond the standard DGLAP paradigm. In this Letter we derive a general renormalization group equation describing the collinear dynamics that account for correlations in the fragmentation. We compute the kernel of this evolution equation at next-to-leading order (NLO), where it involves the $1\to 3$ splitting functions, and develop techniques to solve it numerically. We show that our equation encompasses all previously-known collinear evolution equations, namely DGLAP and the evolution of multi-hadron fragmentation functions. As an application of our results, we consider the phenomenologically-relevant example of energy flow on charged particles, computing the energy fraction in charged particles in $e^+e^- \to$ hadrons at NNLO. Our results are an important step towards improving the understanding of the collinear dynamics of jets, with broad applications in jet substructure, ranging from the study of multi-hadron correlations, to the description of inclusive (sub)jet production, and the advancement of modern parton showers.

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