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Title: Jet energy measurement and its systematic uncertainty in proton–proton collisions at √s = 7 TeV with the ATLAS detector

The jet energy scale (JES) and its systematic uncertainty are determined for jets measured with the ATLAS detector using proton–proton collision data with a centre-of-mass energy of \(\sqrt{s}=7\) TeV corresponding to an integrated luminosity of \(4.7\) \(\,\,\text{ fb }^{-1}\). Jets are reconstructed from energy deposits forming topological clusters of calorimeter cells using the anti-\(k_{t}\) algorithm with distance parameters \(R=0.4\) or \(R=0.6\), and are calibrated using MC simulations. A residual JES correction is applied to account for differences between data and MC simulations. This correction and its systematic uncertainty are estimated using a combination of in situ techniques exploiting the transverse momentum balance between a jet and a reference object such as a photon or a \(Z\) boson, for \({20} \le p_{\mathrm {T}}^\mathrm {jet}<{1000}\, ~\mathrm{GeV }\) and pseudorapidities \(|\eta |<{4.5}\). The effect of multiple proton–proton interactions is corrected for, and an uncertainty is evaluated using in situ techniques. The smallest JES uncertainty of less than 1 % is found in the central calorimeter region (\(|\eta |<{1.2}\)) for jets with \({55} \le p_{\mathrm {T}}^\mathrm {jet}<{500}\, ~\mathrm{GeV }\). For central jets at lower \(p_{\mathrm {T}}\), the uncertainty is about 3 %. A consistent JES estimate is found using measurements of the calorimeter responsemore » of single hadrons in proton–proton collisions and test-beam data, which also provide the estimate for \(p_{\mathrm {T}}^\mathrm {jet}> 1\) TeV. The calibration of forward jets is derived from dijet \(p_{\mathrm {T}}\) balance measurements. The resulting uncertainty reaches its largest value of 6 % for low-\(p_{\mathrm {T}}\) jets at \(|\eta |=4.5\). In addition, JES uncertainties due to specific event topologies, such as close-by jets or selections of event samples with an enhanced content of jets originating from light quarks or gluons, are also discussed. The magnitude of these uncertainties depends on the event sample used in a given physics analysis, but typically amounts to 0.5–3 %.« less
  1. Albert-Ludwigs-Univ., Freiburg (Germany). et al.
Publication Date:
Grant/Contract Number:
AC03-76SF00515; AC02-06CH11357; AC02-98CH10886; AC02-05CH11231; SC00112704
Accepted Manuscript
Journal Name:
European Physical Journal. C, Particles and Fields
Additional Journal Information:
Journal Volume: 75; Journal Issue: 1; Journal ID: ISSN 1434-6044
Research Org:
SLAC National Accelerator Lab., Menlo Park, CA (United States); Argonne National Lab. (ANL), Argonne, IL (United States); Brookhaven National Laboratory (BNL), Upton, NY (United States); Lawrence Berkeley National Lab. (LBNL), Berkeley, CA (United States)
Sponsoring Org:
USDOE Office of Science (SC)
Contributing Orgs:
Atlas Collaboration
Country of Publication:
United States
OSTI Identifier:
Alternate Identifier(s):
OSTI ID: 1224092; OSTI ID: 1224098