Abstract

A measurement of the double-differential inclusive jet cross section as a function of jet transverse momentum p_{mathrm {T}} and absolute jet rapidity |y | is presented. The analysis is based on proton–proton collisions collected by the CMS experiment at the LHC at a centre-of-mass energy of 13,text {TeV}. The data samples correspond to integrated luminosities of 71 and 44,text {pb}^text {-1} for |y |<3 and 3.2<|y |<4.7, respectively. Jets are reconstructed with the anti-k_{mathrm {t}} clustering algorithm for two jet sizes, R, of 0.7 and 0.4, in a phase space region covering jet p_{mathrm {T}} up to 2,text {TeV} and jet rapidity up to |y | = 4.7. Predictions of perturbative quantum chromodynamics at next-to-leading order precision, complemented with electroweak and nonperturbative corrections, are used to compute the absolute scale and the shape of the inclusive jet cross section. The cross section difference in R, when going to a smaller jet size of 0.4, is best described by Monte Carlo event generators with next-to-leading order predictions matched to parton showering, hadronisation, and multiparton interactions. In the phase space accessible with the new data, this measurement provides a first indication that jet physics is as well understood at sqrt{s}=13,text {TeV} as at smaller centre-of-mass energies.

Highlights

  • Quantum chromodynamics (QCD) is the fundamental theory describing strong interactions among partons, i.e.quarks and gluons

  • A measurement of the double-differential cross section as a function of jet pT and absolute rapidity |y| is presented for two jet sizes √R = 0.4 and 0.7 using data from proton–proton collisions at s = 13 TeV collected with the CMS detector

  • Data samples corresponding to integrated luminosities of 71 and 44 pb−1 are used for absolute rapidities |y| < 3 and for the forward region 3.2 < |y| < 4.7, respectively

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Summary

Introduction

Quantum chromodynamics (QCD) is the fundamental theory describing strong interactions among partons, i.e.quarks and gluons. Inclusive jet production (p + p → jet + X) is a key process to test predictions of perturbative QCD (pQCD) over a wide region in phase space. The parton-level calculations must be complemented with corrections for nonperturbative (NP) effects that involve the modeling of hadronisation (HAD) and multiparton interactions (MPI). The measurements at 2.76 and 7 TeV centre-ofmass energies were found to be in agreement with calculations at next-to-leading order (NLO) in the strong coupling constant αS over a wide range of jet transverse momentum pT and rapidity y. R = 0.4 as a new CMS default jet size that replaces the previous one of 0.5 in LHC Run 1 analyses will allow direct comparisons between jet measurements made by ATLAS and CMS. Event generators that combine leading-order (LO) or NLO pQCD with the modeling of parton showers (PS), HAD, and MPI

The CMS detector
Event selection and jet reconstruction
Measurement of the double-differential inclusive jet cross section
Predictions from fixed-order calculations in pQCD
Comparison of theoretical predictions and data
Findings
Summary
Full Text
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