论文标题

使用$ \ sqrt {s} = 13〜 \ mathrm {tev} $在cms中探测QCD

Probing QCD using top quark pair production at $\sqrt{s} = 13~\mathrm{TeV}$ in CMS

论文作者

Defranchis, Matteo M.

论文摘要

可以使用顶级Quark-Antiquark对生产横截面的测量值,$σ_\ Mathrm {t \ bar {t}} $,可用于约束强耦合常数,$α_{s} $,Top Quark Mass,$ M_ \ mathrm {T} $,以及parton functions(Parton functions(pdffffffffffffffffffffffffff f fly)。在这张海报中,提出了CMS协作发布的两个最新相关结果。分析是使用质子 - 蛋白质碰撞数据在2016年在CERN LHC上记录的13个TEV的质量中心能量进行的,对应于$ 35.9〜 \ MATHRM {fb^{ - 1}} $的集成发光度。在第一个中,使用近代到next to-next-next-next-next-next-next-next-next-next to-next-next-next to-next-next-next-next to-next-next-next-next-next-next-next-next-next-next-next-next to-next ofertical订单理论预测。在第二个中,执行了标准化的三差$ \ mathrm {t \ bar {t}} $交叉部分的测量;然后将结果与HERA深弹性散射数据一起使用,以同时确定$α_{s} $,$ m_ \ mathrm {t} $和pdfs,并在临近领先的顺序上执行。结果,Gluon PDF的不确定性及其与$α_{s} $的相关性在高部分动量分数下大大降低,这是由$ \ mathrm {t \ bar {t}} $生产探测的运动范围。迄今为止,结果还得出了最精确的夸克杆质量的确定。

Measurements of the top quark-antiquark pair production cross section, $σ_\mathrm{t\bar{t}}$, can be used to constrain the strong coupling constant, $α_{S}$, the top quark mass, $m_\mathrm{t}$, and the parton distribution functions (PDFs). In this poster, the two most recent relevant results published by the CMS Collaboration are presented. The analyses are performed using proton-proton collision data at a centre-of-mass energy of 13 TeV recorded by the CMS detector at the CERN LHC in 2016, corresponding to an integrated luminosity of $35.9~\mathrm{fb^{-1}}$. In the first one, $α_{S}$ and $m_\mathrm{t}$ are extracted independently from a measurement of the inclusive $σ_\mathrm{t\bar{t}}$, using next-to-next-to-leading order theoretical predictions. In the second, a measurement of the normalized triple-differential $\mathrm{t\bar{t}}$ cross section is performed; the result is then used together with HERA deep-inelastic scattering data to perform a simultaneous determination of $α_{S}$, $m_\mathrm{t}$, and the PDFs, at next-to-leading order. As a result, the uncertainty in the gluon PDF and its correlation with $α_{S}$ are significantly reduced at high parton momentum fraction, the kinematic range probed by $\mathrm{t\bar{t}}$ production. The result also yields the most precise determination of the top quark pole mass, to date.

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