Measurement and Qcd Analysis of Double-Differential Inclusive Jet Cross Sections in Pp Collisions at ?s=8 Tev and Cross Section Ratios To 2.76 and 7 Tev
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Karapınar, Güler
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Abstract
A measurement of the double-differential inclusive jet cross section as a function of the jet transverse momentum pT and the absolute jet rapidity |y| is presented. Data from LHC proton-proton collisions at s=8 TeV, corresponding to an integrated luminosity of 19.7 fb−1, have been collected with the CMS detector. Jets are reconstructed using the anti-kT clustering algorithm with a size parameter of 0.7 in a phase space region covering jet pT from 74 GeV up to 2.5 TeV and jet absolute rapidity up to |y| = 3.0. The low-pT jet range between 21 and 74 GeV is also studied up to |y| = 4.7, using a dedicated data sample corresponding to an integrated luminosity of 5.6 pb−1. The measured jet cross section is corrected for detector effects and compared with the predictions from perturbative QCD at next-to-leading order (NLO) using various sets of parton distribution functions (PDF). Cross section ratios to the corresponding measurements performed at 2.76 and 7 TeV are presented. From the measured double-differential jet cross section, the value of the strong coupling constant evaluated at the Z mass is αS(MZ) = 0.1164− 0.0043 + 0.0060, where the errors include the PDF, scale, nonperturbative effects and experimental uncertainties, using the CT10 NLO PDFs. Improved constraints on PDFs based on the inclusive jet cross section measurement are presented.[Figure not available: see fulltext.]
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Large Hadron Collider (LHC), Compact Muon Solenoid, Quantum Chromodynamics (QCD), Compact Muon Solenoid, parton: distribution function, cross section: ratio, Hadron-Hadron scattering (experiments); Jet physics; Jets; protonproton scattering; QCD;, jet: transverse momentum, Large Hadron Collider (LHC), transverse momentum dependence, proton-proton scattering, High Energy Physics - Experiment, rapidity dependence, Physics, Particles & Fields, COLLIDER, strong interaction: coupling constant, Hadron-Hadron scattering (experiments), Jets, info:eu-repo/classification/ddc/530, protonproton scattering, 8000 GeV-cms, 02 Physical Sciences, CMS, Physics, ddc:530, higher-order: 1, Jet Physics, Nuclear & Particles Physics, CERN LHC Coll, Hadron-Hadron Scattering (Experiments), Q1 Science (General) / természettudomány általában, proton- proton scattering, Jet physics, Quantum Chromodynamics (QCD), Physical Sciences, Proton-proton scattering, jets, p p: scattering, Nuclear and High Energy Physics, 530 Physics, Particles & Fields, 10192 Physics Institute, PARTON DENSITIES, 530, differential cross section: measured, Hadron-Hadron scattering (experiments); Jet physics; QCD; Jets; proton-proton scattering, phase space, Proton-Proton Scattering, strong coupling, SCATTERING, Hadron-Hadron scattering (experiments); Jet physics; Jets; protonproton scattering; QCD, 3106 Nuclear and High Energy Physics, quantum chromodynamics: perturbation theory, ЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Физика, 01 Mathematical Sciences, Science & Technology, hep-ex, Hadron-Hadron scattering (experiments); Jet physics; QCD; Jets;; proton-proton scattering, Jets protonproton scattering, Hadron-Hadron scattering (experiments); Jet physics; Jets; protonproton scattering; QCD; Nuclear and High Energy Physics, effect: nonperturbative, 3-LOOP SPLITTING FUNCTIONS, LEADING ORDER, 500, Jet physic, Qcd, QCD, EVOLUTION, Physics and Astronomy, Hadron-Hadron scattering (experiments); Jet physics; Jets; protonproton scattering; QCD; High Energy Physics - Experiment; High Energy Physics - Experiment; Nuclear and High Energy Physics, LHC, CMS, Jet, jet: rapidity, p p: colliding beams, experimental results
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01 natural sciences, 0103 physical sciences
Citation
Khachatryan, V., Sirunyan, A.M., Tumasyan, A., Adam, W., Asilar, E., Bergauer, T.,...CMS Collaboration (2017). Measurement and QCD analysis of double-differential inclusive jet cross sections in pp collisions at √s=8 TeV and cross section ratios to 2.76 and 7 TeV. Journal of High Energy Physics, 2017(3). doi:10.1007/JHEP03(2017)156
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