论文标题

基于能量峰的方法,可以通过B-HADRON衰减长度测量顶级夸克质量

Energy-peak based method to measure top quark mass via B-hadron decay lengths

论文作者

Agashe, Kaustubh, Airen, Sagar, Franceschini, Roberto, Incandela, Joesph, Kim, Doojin, Sathyan, Deepak

论文摘要

我们使用来自其衰减的$ b $ - hadrons的衰减长度的分布来确定顶部夸克质量的方法。该技术基于我们较早的观察结果,即$ b $ Quark Energy Distribution的峰值位置。与早期的建议相比,这种“能量峰”方法相对于顶级夸克产量的运动学具有更大程度的模型独立性。 CMS实验已使用相关的$ b $ jet Energy实施了能量峰值方法,作为$ B $ Quark Energy的近似值。新方法使用$ b $ -HADRON的衰减长度,这与卷积$ b $ quark Energies有关。新的衰减长度方法的优点是它可以以逃避喷气能量表(JES)不确定性的方式应用。确实,CMS使用$ b $ - hadron衰减长度测量了顶级夸克质量,但它们没有结合能量峰值方法。因此,顶部夸克横向动量的不隔底层仍然是其结果的巨大不确定性。我们证明,使用能量峰方法,这种系统的不确定性可以忽略不计。我们表明,使用当前的LHC数据集,可以使用此方法来达到顶部夸克质量的子GEV统计不确定性。为了实现可比的系统不确定性,对于基于使用Hadron的独家或半包含可观察物的许多方法,我们发现需要比当前的碎片函数和监护体模型更明显地描述夸克 - 哈德隆过渡。

We develop a method for the determination of the top quark mass using the distribution of the decay length of the $B$-hadrons originating from its decay. This technique is based on our earlier observation regarding the location of the peak of the $b$ quark energy distribution. Such "energy-peak" methods enjoy a greater degree of model-independence with respect to the kinematics of top quark production compared to earlier proposals. The CMS experiment has implemented the energy-peak method using associated $b$-jet energy as an approximation for $b$ quark energy. The new method uses $B$-hadron decay lengths, which are related to $b$ quark energies by convolution. The advantage of the new decay length method is that it can be applied in a way that evades jet-energy scale (JES) uncertainties. Indeed, CMS has measured the top quark mass using $B$-hadron decay lengths, but they did not incorporate the energy-peak method. Therefore, mismodeling of top quark transverse momentum remains a large uncertainty in their result. We demonstrate that, using energy-peak methods, this systematic uncertainty can become negligible. We show that with the current LHC data set, a sub-GeV statistical uncertainty on the top quark mass can be attained with this method. To achieve a comparable systematic uncertainty as is true for many methods based on exclusive or semi-inclusive observables using hadrons, we find that the quark-hadron transition needs to be described significantly better than is the case with current fragmentation functions and hadronization models.

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