Open Access BASE2019

In situ calibration of large-radius jet energy and mass in 13 TeV proton–proton collisions with the ATLAS detector

Aaboud, M; Aad, G; Abbott, B; Abdinov, O; Abeloos, B; Abhayasinghe, D.K; Abidi, S.H; AbouZeid, O.S; Abraham, N.L; Abramowicz, H; Abreu, H; Rizzi, C; Rodriguez Bosca, S; Rodriguez Perez, A; Rodriguez Rodriguez, D; Rosten, R; Ruiz Martínez, Arantxa; Salt, José; Sánchez Martínez, Javier; Soldevila, Urmila; Terron, J; Abulaiti, Y; Terzo, S; Tripiana, M.F; Valero, Alberto; Valls Ferrer, Juan Antonio; Van Daalen, T.R; Vazquez Furelos, D; Volpi, G; Vos, Marcel; Zaidan, R; Barranco, Laura; Adachi, S; Miñano Moya, M; Santra, A; Acharya, B.S; Adam, L; Adamczyk, L; Adelman, J; Adersberger, M; Adiguzel, A; Adye, T; Affolder, A.A; Afik, Y; Agheorghiesei, C; Aguilar-Saavedra, José Antonio; Ahmadov, F; Aielli, G; Akatsuka, S; Åkesson, T.P.A; Akilli, E; Akimov, A.V; Alberghi, G.L; Albert, Jan; Albicocco, P; Alconada Verzini, M.J; Alderweireldt, S; Aleksa, M; Aleksandrov, I.N; Alexa, C; Alexopoulos, T; Alhroob, M; Ali, B; Alimonti, G; Alison, J; Alkire, S.P; Allaire, C; Allbrooke, B.M.M; Allen, B.W; Allport, P.P; Aloisio, A; Álvarez Piqueras, D; Aparisi, Pozo, J.A; Bailey, A.J; Barreiro Alonso, Fernando; Bosman, M; Cabrera, Susana; Calvente Lopez, S; Casado, M.P; Castillo, F.L; Castillo Mª Victoria; Cavallaro, E; Cavalli-Sforza, M; Cerda Alberich, L; Costa, María José; Cueto, A; Del Peso, J; Escobar, Carlos; Estrada, Oscar; Ferrer, Antonio; Fiorini, L; Fischer, C; Förster, F.A; Fullana, Esteban; Fuster, Juan; García García, Carmen; García Navarro, José Enrique; Gerbaudo, D; Gkougkousis, E.L; Glasman, C; Glatzer, J; González de la Hoz, Santiago; Grinstein, S; Higón, Emilio; Jimenez Pena, Javier; Juste Rozas, A; Korolkov, I; Lacasta Llácer, Carlos; Lange, J.C; Lopez Paz, I; Lozano Bahilo, José J; Madaffari, Daniele; Mamuzic, Judita; Martí García, Salvador; Martinez, M; Melini, Davide; Mir, L.M; Mitsou, Vasiliki A; Pacheco Pages, A; Padilla Aranda, C; Pedraza López, Sebastián; Riu, I

Abstract

The response of the ATLAS detector to large-radius jets is measured in situ using 36.2 fb−1 of s√=13 TeV proton–proton collisions provided by the LHC and recorded by the ATLAS experiment during 2015 and 2016. The jet energy scale is measured in events where the jet recoils against a reference object, which can be either a calibrated photon, a reconstructed Z boson, or a system of well-measured small-radius jets. The jet energy resolution and a calibration of forward jets are derived using dijet balance measurements. The jet mass response is measured with two methods: using mass peaks formed by W bosons and top quarks with large transverse momenta and by comparing the jet mass measured using the energy deposited in the calorimeter with that using the momenta of charged-particle tracks. The transverse momentum and mass responses in simulations are found to be about 2–3% higher than in data. This difference is adjusted for with a correction factor. The results of the different methods are combined to yield a calibration over a large range of transverse momenta (pT). The precision of the relative jet energy scale is 1–2% for 200 GeV < pT < 2 TeV, while that of the mass scale is 2–10%. The ratio of the energy resolutions in data and simulation is measured to a precision of 10–15% over the same pT range. ; We acknowledge the support of ANPCyT, Argentina; YerPhI, Armenia; ARC, Australia; BMWFW and FWF, Austria; ANAS, Azerbaijan; SSTC, Belarus; CNPq and FAPESP, Brazil; NSERC, NRC and CFI, Canada; CERN; CONICYT, Chile; CAS, MOST and NSFC, China; COLCIENCIAS, Colombia; MSMT CR, MPO CR and VSC CR, Czech Republic; DNRF and DNSRC, Denmark; IN2P3-CNRS, CEA-DRF/IRFU, France; SRNSFG, Georgia; BMBF, HGF, and MPG, Germany; GSRT, Greece; RGC, Hong Kong SAR, China; ISF and Benoziyo Center, Israel; INFN, Italy; MEXT and JSPS, Japan; CNRST, Morocco; NWO, Netherlands; RCN, Norway; MNiSW and NCN, Poland; FCT, Portugal; MNE/IFA, Romania; MES of Russia and NRC KI, Russian Federation; JINR; MESTD, Serbia; MSSR, Slovakia; ARRS and MIZŠ, Slovenia; DST/NRF, South Africa; MINECO, Spain; SRC and Wallenberg Foundation, Sweden; SERI, SNSF and Cantons of Bern and Geneva, Switzerland; MOST, Taiwan; TAEK, Turkey; STFC, United Kingdom; DOE and NSF, United States of America. In addition, individual groups and members have received support from BCKDF, CANARIE, CRC and Compute Canada, Canada; COST, ERC, ERDF, Horizon 2020, and Marie Skłodowska-Curie Actions, European Union; Investissements d' Avenir Labex and Idex, ANR, France; DFG and AvH Foundation, Germany; Herakleitos, Thales and Aristeia programmes co-financed by EU-ESF and the Greek NSRF, Greece; BSF-NSF and GIF, Israel; CERCA Programme Generalitat de Catalunya, Spain; The Royal Society and Leverhulme Trust, United Kingdom. The crucial computing support from all WLCG partners is acknowledged gratefully, in particular from CERN, the ATLAS Tier-1 facilities at TRIUMF (Canada), NDGF (Denmark, Norway, Sweden), CC-IN2P3 (France), KIT/GridKA (Germany), INFN-CNAF (Italy), NL-T1 (Netherlands), PIC (Spain), ASGC (Taiwan), RAL (UK) and BNL (USA), the Tier-2 facilities worldwide and large non-WLCG resource providers. Major contributors of computing resources are listed in Ref. [77]. ; Peer reviewed

Languages

English

Publisher

Springer Nature

DOI

10.1140/epjc/s10052-019-6632-8

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