论文标题

单位化NLO合并的规模和方案变化

Scale and Scheme Variations in Unitarized NLO Merging

论文作者

Gellersen, Leif, Prestel, Stefan

论文摘要

具有明确定义的不确定性估计值的精确背景预测对于解释对撞机物理的测量和计划未来的高能撞机实验至关重要。在预测喷气式可观察物的包容性测量中估计扰动不确定性尤其重要,这些预测旨在在很大程度上对非扰动效应不敏感,例如束 - 重击的结构,多方散射或强壮的结构。在这项研究中,我们将使用毕达氏菌事件发生器作为我们的车辆,讨论定义单位化近级多重射流合并预测的扰动不确定性时可能的凹坑。为此,我们考虑了单位化NLO合并方案的不同选择,以及计算不同部分中重新归一化量表的一致变化。这样的合并讨论允许将规模变化对误差预算的贡献与由于通常假定固定的算法选择而导致的其他贡献的贡献。不同合并方案的规模不确定性频段在很大程度上重叠,但是不同方案中的“中心”预测之间的差异即使对于非常分离的Jets,也可以与规模不确定性相提并论,或者在分离良好的喷气机中,或者比尺度的不确定性大于尺度的不确定性。这些变化在毕曲亚中的可用性将在未来的精确背景计算中对扰动不确定性进行更多系统的研究。

Precision background predictions with well-defined uncertainty estimates are important for interpreting collider-physics measurements and for planning future high-energy collider experiments. It is especially important to estimate the perturbative uncertainties in predictions of inclusive measurements of jet observables, that are designed to be largely insensitive to non-perturbative effects such as the structure of beam-remnants, multi-parton scattering or hadronization. In this study, we discuss possible pit-falls in defining the perturbative uncertainty of unitarized next-to-leading order multi-jet merged predictions, using the PYTHIA event generator as our vehicle. For this purpose, we consider different choices of unitarized NLO merging schemes as well as consistent variations of renormalization scales in different parts of the calculation. Such a combined discussion allows to rank the contribution of scale variations to the error budget in comparison to other contributions due to algorithmic choices that are often assumed fixed. The scale uncertainty bands of different merging schemes largely overlap, but differences between the "central" predictions in different schemes can remain comparable to scale uncertainties even for very well-separated jets, or be larger than scale uncertainties in transition regions between calculations of different jet multiplicity. The availability of these variations within PYTHIA will enable more systematic studies of perturbative uncertainties in precision background calculations in the future.

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