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Applications of Effective Field Theories for Precision Calculations at e⁺e⁻ Colliders

机译:有效场理论在电子对撞机精度计算中的应用

摘要

Effective field theories can be used to describe measurements at e⁺e⁻ colliders over a wide kinematic range while allowing reliable error predictions and systematic extensions. We show this in two physical situations. First, we give a factorization formula for the e⁺e⁻ thrust distribution dσ/dτ with thrust T and τ = 1 − T based on soft collinear effective theory. The result is applicable for all τ, i.e. in the peak, tail, and far-tail regions. We present a global analysis of all available thrust distribution data measured at center-of-mass energies Q = 35 to 207 GeV in the tail region, where a two parameter fit to the strong coupling constant α(s)(m(Z)) and the leading power correction parameter Ω₁ suffices. We find α(s)(m(Z)) = 0.1135 ± (0.0002)expt ± (0.0005)hadr ± (0.0009)pert, with x²/dof = 0.91, where the displayed 1-sigma errors are the total experimental error, the hadronization uncertainty, and the perturbative theory uncertainty, respectively. In addition, we consider cumulants of the thrust distribution using predictions of the full spectrum for thrust. From a global fit to the first thrust moment we extract α(s)(m(Z)) and Ω₁. We obtain α(s)(m(Z)) = 0.1140 ± (0.0004)exp ± (0.0013)hadr ± (0.0007)pert which is compatible with the value from our tail region fit. The n-th thrust cumulants for n ≥ 2 are completely insensitive to Ω₁, and therefore a good instrument for extracting information on higher order power corrections, Ω'(n)/Qⁿ, from moment data. We find (˜Ω₂)^1/2 = 0.74 ± (0.11)exp ± (0.09)pert GeV. Second, we study the differential cross section dσ/dx of e⁺e⁻-collisions producing a heavy hadron with energy fraction x of the beam energy in the center-of-mass frame. Using a sequence of effective field theories we give a definition of the heavy quark fragmentation function in the endpoint region x → 1. From the perspective of our effective field theory approach we revisit the heavy quark fragmentation function away from the endpoint and outline how to develop a description of the heavy quark fragmentation function valid for all x. Our analysis is focused on Z-boson decays producing one B-meson. Finally, we will give a short outlook of how we want to apply our approach to determine the leading nonperturbative power corrections of the b-quark fragmentation function from LEP experiments.
机译:有效的场论可用于描述在较大运动学范围内对撞机的测量,同时允许可靠的误差预测和系统的扩展。我们在两种物理情况下展示这一点。首先,基于软共线有效理论,给出推力为T且τ= 1-T的e⁺e⁻推力分布dσ/dτ的分解公式。该结果适用于所有τ,即在峰,尾和远尾区域。我们对尾部区域在质心能量Q = 35到207 GeV处测得的所有可用推力分布数据进行了全局分析,其中两个参数适合强耦合常数α(s)(m(Z))前导功率校正参数Ω就足够了。我们发现α(s)(m(Z))= 0.1135±(0.0002)expt±(0.0005)hadr±(0.0009)pert,x²/ dof = 0.91,其中显示的1-sigma误差是总实验误差,强子化不确定性和微扰理论不确定性。另外,我们使用推力全谱的预测来考虑推力分布的累积量。从整体拟合到第一推力矩,我们提取出α(s)(m(Z))和Ω₁。我们获得α(s)(m(Z))= 0.1140±(0.0004)exp±(0.0013)hadr±(0.0007)pert,这与我们的尾部区域拟合得出的值兼容。 n≥2的第n个推力累积量对Ω₁完全不敏感,因此是从矩量数据中提取有关高阶功率校正Ω'(n)/Qⁿ的信息的良好工具。我们发现(〜Ω2)^ 1/2 = 0.74±(0.11)exp±(0.09)pert GeV。其次,我们研究了产生重强子的e⁺e⁻碰撞的微分截面dσ/ dx,该重子在质心中心的能量为束能量的x。使用一系列有效的场理论,我们给出了端点区域x→1中的重夸克碎片函数的定义。从我们的有效场论方法的角度出发,我们从端点重新审视了重夸克碎片函数,并概述了如何发展对所有x有效的重夸克碎片函数的描述。我们的分析集中于产生一个B介子的Z玻色子衰变。最后,我们将简要介绍如何应用我们的方法来确定LEP实验中b夸克碎片函数的主要非扰动校正。

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    Fickinger Michael;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en
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