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CMS-PAS-B2G-16-022
Search for heavy resonances decaying into a Z boson and a W boson in the $\ell^+\ell^-\mathrm{q}\bar{\mathrm{q}}$ final state
Abstract: A search for heavy resonances decaying into a pair of vector bosons is performed in the $ 2\ell 2\mathrm{q} $ final state using 12.9 fb$^{-1}$ of data collected in 2016 by the CMS experiment at the LHC in proton-proton collisions with a center-of-mass energy of $\sqrt{s}= $ 13 TeV. The final state probed involves the leptonic decay of a Z boson ($\mathrm{Z} \to \ell \ell$, with $\ell = \mathrm{e},\mu$), while the other vector boson W is reconstructed from high-momentum quark pairs detected as a single massive jet. The discriminating power of the jet mass distribution and jet substructure are exploited to suppress the amount of background from known standard model processes. The search is performed in the boosted regime for resonances with mass larger than 600 GeV up to 3000 GeV. The result is consistent with the standard model prediction and upper limits on the production cross section for spin-1 resonances are derived as a function of the resonance mass.
Figures & Tables Summary References CMS Publications
Figures

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Figure 1:
Transverse momentum of the Z boson candidate (left) and AK8 jet (right) selected in the analysis. Only events with jet mass greater than 30 GeV are shown. The shaded area represents the statistical uncertainty on the simulated samples. The ratio of data over simulation is reported at the bottom of each panel. A W' signal model hypothesis, magnified by a factor 10, is also shown.

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Figure 1-a:
Transverse momentum of the Z boson candidateselected in the analysis. Only events with jet mass greater than 30 GeV are shown. The shaded area represents the statistical uncertainty on the simulated samples. The ratio of data over simulation is reported at the bottom of each panel. A W' signal model hypothesis, magnified by a factor 10, is also shown.

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Figure 1-b:
Transverse momentum of AK8 jet selected in the analysis. Only events with jet mass greater than 30 GeV are shown. The shaded area represents the statistical uncertainty on the simulated samples. The ratio of data over simulation is reported at the bottom of each panel. A W' signal model hypothesis, magnified by a factor 10, is also shown.

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Figure 2:
The $\tau _{21}$ of the AK8 jet selected in the electron (left) and muon (right) categories. Only events with jet mass greater than 30 GeV are shown. The shaded area represents the statistical uncertainty on the simulated samples. The ratio of data over simulation is reported at the bottom of each panel. A W' signal model hypothesis, magnified by a factor 10, is also shown.

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Figure 2-a:
The $\tau _{21}$ of the AK8 jet selected in the electron category. Only events with jet mass greater than 30 GeV are shown. The shaded area represents the statistical uncertainty on the simulated samples. The ratio of data over simulation is reported at the bottom of each panel. A W' signal model hypothesis, magnified by a factor 10, is also shown.

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Figure 2-b:
The $\tau _{21}$ of the AK8 jet selected in the muon category. Only events with jet mass greater than 30 GeV are shown. The shaded area represents the statistical uncertainty on the simulated samples. The ratio of data over simulation is reported at the bottom of each panel. A W' signal model hypothesis, magnified by a factor 10, is also shown.

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Figure 3:
Signal efficiency for a W' signal model, separated by final state and purity category. The efficiency is evaluated as the fraction of generated signal events decaying in the $\ell \ell $qq final state (with $\ell = e, \mu $ depending on the considered leptonic category) passing the event selections described in Section.

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Figure 4:
Functional forms modeling the ${m_\text {j}}$ distributions extracted from a fit to data (Z+jets) or derived from simulation (Top and VV) in the electron (top) and muon (bottom) channels, for the high (left) and low (right) purity categories. The shaded area represents the Z+jets distribution uncertainty. The bottom panels report the pulls distribution between data and SM background expectation $(N^{data}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 4-a:
Functional forms modeling the ${m_\text {j}}$ distributions extracted from a fit to data (Z+jets) or derived from simulation (Top and VV) in the electron muon channel, for the high purity category. The shaded area represents the Z+jets distribution uncertainty. The bottom panel reports the pulls distribution between data and SM background expectation $(N^{data}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 4-b:
Functional forms modeling the ${m_\text {j}}$ distributions extracted from a fit to data (Z+jets) or derived from simulation (Top and VV) in the electron channel, for the low purity category. The shaded area represents the Z+jets distribution uncertainty. The bottom panel reports the pulls distribution between data and SM background expectation $(N^{data}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 4-c:
Functional forms modeling the ${m_\text {j}}$ distributions extracted from a fit to data (Z+jets) or derived from simulation (Top and VV) in the muon channel, for the high purity category. The shaded area represents the Z+jets distribution uncertainty. The bottom panel reports the pulls distribution between data and SM background expectation $(N^{data}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 4-d:
Functional forms modeling the ${m_\text {j}}$ distributions extracted from a fit to data (Z+jets) or derived from simulation (Top and VV) in the muon channel, for the low purity category. The shaded area represents the Z+jets distribution uncertainty. The bottom panel reports the pulls distribution between data and SM background expectation $(N^{data}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 5:
Expected and observed events on the resonance candidate mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ distributions in the electron (top) and muon (bottom) channels, and separately for the high (left) and low purity (right) categories. The shaded area represents the shape uncertainty on the Z+jets background. The bottom panels report the pulls distribution between data and SM background expectation $(N^{obs}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 5-a:
Expected and observed events on the resonance candidate mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ distributions in the electron channel, and separately for the high purity category. The shaded area represents the shape uncertainty on the Z+jets background. The bottom panels report the pulls distribution between data and SM background expectation $(N^{obs}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 5-b:
Expected and observed events on the resonance candidate mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ distributions in the electron channel, and separately for the low purity category. The shaded area represents the shape uncertainty on the Z+jets background. The bottom panels report the pulls distribution between data and SM background expectation $(N^{obs}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 5-c:
Expected and observed events on the resonance candidate mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ distributions in the muon channel, and separately for the high purity category. The shaded area represents the shape uncertainty on the Z+jets background. The bottom panels report the pulls distribution between data and SM background expectation $(N^{obs}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 5-d:
Expected and observed events on the resonance candidate mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ distributions in the muon channel, and separately for the low purity category. The shaded area represents the shape uncertainty on the Z+jets background. The bottom panels report the pulls distribution between data and SM background expectation $(N^{obs}-N^{bkg})/\sigma $, where $\sigma $ is the normalized Poisson error on the data.

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Figure 6:
Reconstructed signal mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ for different generated mass ${m_{ {\mathrm {X}} }}$ hypotheses of a W' signal, modeled with a Crystal Ball function, and separately by final state: electron (top) and muon (bottom) channels, and separately for the high (left) and low purity (right) categories. The distributions are normalized to unit area.

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Figure 6-a:
Reconstructed signal mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ for different generated mass ${m_{ {\mathrm {X}} }}$ hypotheses of a W' signal, modeled with a Crystal Ball function, and separately by final state: electron channel, and separately for the high purity category. The distributions are normalized to unit area.

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Figure 6-b:
Reconstructed signal mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ for different generated mass ${m_{ {\mathrm {X}} }}$ hypotheses of a W' signal, modeled with a Crystal Ball function, and separately by final state: electron channel, and separately for the low purity category. The distributions are normalized to unit area.

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Figure 6-c:
Reconstructed signal mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ for different generated mass ${m_{ {\mathrm {X}} }}$ hypotheses of a W' signal, modeled with a Crystal Ball function, and separately by final state: muon channel, and separately for the high purity category. The distributions are normalized to unit area.

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Figure 6-d:
Reconstructed signal mass ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ for different generated mass ${m_{ {\mathrm {X}} }}$ hypotheses of a W' signal, modeled with a Crystal Ball function, and separately by final state: muon channel, and separately for the low purity category. The distributions are normalized to unit area.

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Figure 7:
Observed and expected 95% CL upper limit on $\sigma _{ \mathrm{W}'} \times {\mathcal {B}}(\mathrm{W}'\to {\mathrm{ Z } } {\mathrm {W}})$ as a function of the resonance mass for a narrow spin-1 resonance , including all statistical and systematic uncertainties. The electron and muon channels and high and low purity categories are combined together. The green and yellow bands are the ${\pm }1$ and ${\pm }$2 standard deviation uncertainty bands on the expected limit. Theoretical predictions for W' produced in the framework of HVT model A and model B are also shown.
Tables

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Table 1:
Expected and observed number of events in the SR (65 $< {m_\text {j}} <$ 105 GeV). The uncertainties originating from the fit and the top and diboson ${m_\text {j}}$ distributions are reported separately, as well as the difference in normalization between the nominal and the alternative function choice.

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Table 2:
Summary of systematic uncertainties for backgrounds and signal samples. The uncertainty sources propagated to the ${m_{ { {\mathrm {V}} {\mathrm{ Z } } } }}$ shape are marked with a tick. In the case a systematic uncertainty depends in the resonance mass (for signal) or on the category (for background), the extreme values are reported in the table.
Summary
This article describes a search for a heavy resonance with mass between 600 GeV and 3 TeV, decaying into a Z boson and a W boson. The data collected at $ \sqrt{s} = $ 13 TeV during the 2016 operations by the CMS experiment at LHC Run-2 are analyzed. The data set size corresponds to an integrated luminosity of 12.9 fb$^{-1}$. The final state explored consists in the leptonic decays of the Z boson into an electron or muon pair, and the decay of the W boson into a pair of collimated quarks. Depending on the resonance mass, upper limits of 12-370 fb are set on the cross section of a spin-1 HVT W' signal multiplied by the ZW branching ratio. The results of the present analysis do not confirm the mild excess consistent with a mass hypothesis of 650 GeV observed by the CMS collaboration [56], and are comparable with the most recent results of the ATLAS collaboration [57].
References
1 ATLAS Collaboration Observation of a new particle in the search for the Standard Model Higgs boson with the ATLAS detector at the LHC PLB 716 (2012) 1 1207.7214
2 CMS Collaboration Observation of a new boson at a mass of 125 GeV with the CMS experiment at the LHC PLB 716 (2012) 30 CMS-HIG-12-028
1207.7235
3 CMS Collaboration Observation of a new boson with mass near 125 GeV in pp collisions at $ \sqrt{s} = $ 7 and 8 TeV JHEP 06 (2013) 081 CMS-HIG-12-036
1303.4571
4 CMS Collaboration Precise determination of the mass of the Higgs boson and tests of compatibility of its couplings with the standard model predictions using proton collisions at 7 and 8 TeV EPJC 75 (2015) 212 CMS-HIG-14-009
1412.8662
5 ATLAS Collaboration Measurement of the Higgs boson mass from the $ H\rightarrow{}\gamma{}\gamma{} $ and $ H\rightarrow{}Z{Z}^{*}\rightarrow{}4\ell{} $ channels in $ pp $ collisions at center-of-mass energies of 7 and 8 TeV with the ATLAS detector PRD 90 (2014) 052004 1406.3827
6 ATLAS Collaboration Evidence for the spin-0 nature of the Higgs boson using ATLAS data PLB 726 (2013) 120 1307.1432
7 CMS and ATLAS Collaborations Combined Measurement of the Higgs Boson Mass in $ pp $ Collisions at $ \sqrt{s} = $ 7 and 8 TeV with the ATLAS and CMS Experiments PRL 114 (2015) 191803 1503.07589
8 CMS Collaboration Search for a pseudoscalar boson decaying into a Z boson and the 125 GeV Higgs boson in $ \ell^+\ell^- b\overline{b} $ final states PLB 748 (2015) 221--243 CMS-HIG-14-011
1504.04710
9 CMS Collaboration Search for a massive resonance decaying into a Higgs boson and a W or Z boson in hadronic final states in proton-proton collisions at $ \sqrt{s} = $ 8 TeV JHEP 02 (2016) 145, , Submitted to JHEP CMS-EXO-14-009
1506.01443
10 CMS Collaboration Search for Narrow High-Mass Resonances in Proton-Proton Collisions at $ \sqrt{s} = $ 8 TeV Decaying to a Z and a Higgs Boson PLB 748 (2015) 255--277 CMS-EXO-13-007
1502.04994
11 CMS Collaboration Search for massive WH resonances decaying into the $ \ell \nu \mathrm{b} \overline{\mathrm{b}} $ final state at $ \sqrt{s} = $ 8 TeV EPJC76 (2016), no. 5, 237 CMS-EXO-14-010
1601.06431
12 CMS Collaboration Search for massive resonances decaying into pairs of boosted W and Z bosons at $ \sqrt{s} = $ 13 TeV CMS-PAS-EXO-15-002 CMS-PAS-EXO-15-002
13 CMS Collaboration Collaboration Search for new resonances decaying to $ \mathrm{WW}/\mathrm{WZ} \to \ell\nu \mathrm{qq} $ Technical Report CMS-PAS-B2G-16-020, CERN, Geneva
14 CMS Collaboration Collaboration Search for massive resonances decaying into WW, WZ, ZZ, qW and qZ in the dijet final state at $ \sqrt{s} = $ 13 TeV using 2016 data Technical Report CMS-PAS-B2G-16-021, CERN, Geneva
15 CMS Collaboration Search for heavy resonances decaying into a vector boson and a Higgs boson in the ($ \ell\ell $, $ \ell\nu $, $ \nu\nu $) bb final state CMS-PAS-B2G-16-003 CMS-PAS-B2G-16-003
16 V. D. Barger, W.-Y. Keung, and E. Ma A Gauge Model With Light $ W $ and $ Z $ Bosons PRD 22 (1980) 727
17 E. Salvioni, G. Villadoro, and F. Zwirner Minimal Z' models: present bounds and early LHC reach JHEP 09 (2009) 068 0909.1320
18 C. Grojean, E. Salvioni, and R. Torre A weakly constrained W' at the early LHC JHEP 07 (2011) 002 1103.2761
19 R. Contino, D. Pappadopulo, D. Marzocca, and R. Rattazzi On the effect of resonances in composite Higgs phenomenology JHEP 11 (2011) 1--50
20 D. Marzocca, M. Serone, and J. Shu General composite Higgs models JHEP 12 (2012) 1--52
21 B. Bellazzini, C. Csaki, and J. Serra Composite Higgses EPJC 74 (2014) 2766 1401.2457
22 T. Han, H. E. Logan, B. McElrath, and L.-T. Wang Phenomenology of the little Higgs model PRD 67 (2003) 095004 hep-ph/0301040
23 M. Schmaltz and D. Tucker-Smith LITTLE HIGGS THEORIES Annual Review of Nuclear and Particle Science 55 (2005) 229--270
24 M. Perelstein Little Higgs models and their phenomenology Progress in Particle and Nuclear Physics 58 (2007) 247 -- 291
25 D. Pappadopulo, A. Thamm, R. Torre, and A. Wulzer Heavy vector triplets: bridging theory and data JHEP 14 (2014) 1--50 1402.4431
26 J. Alwall et al. The automated computation of tree-level and next-to-leading order differential cross sections, and their matching to parton shower simulations JHEP 07 (2014) 079 1405.0301
27 Y. Li and F. Petriello Combining QCD and electroweak corrections to dilepton production in FEWZ PRD 86 (2012) 094034 1208.5967
28 S. Kallweit et al. NLO QCD+EW predictions for V+jets including off-shell vector-boson decays and multijet merging 1511.08692
29 P. Nason A New method for combining NLO QCD with shower Monte Carlo algorithms JHEP 11 (2004) 040 hep-ph/0409146
30 S. Frixione, P. Nason, and C. Oleari Matching NLO QCD computations with Parton Shower simulations: the POWHEG method JHEP 11 (2007) 070 0709.2092
31 S. Alioli, P. Nason, C. Oleari, and E. Re A general framework for implementing NLO calculations in shower Monte Carlo programs: the POWHEG BOX JHEP 06 (2010) 043 1002.2581
32 M. Czakon and A. Mitov Top++: A Program for the Calculation of the Top-Pair Cross-Section at Hadron Colliders CPC 185 (2014) 2930 1112.5675
33 T. Sj\"ostrand, S. Mrenna, and P. Z. Skands A Brief Introduction to PYTHIA 8.1 CPC 178 (2008) 852--867 0710.3820
34 T. Sj\"ostrand, S. Mrenna, and P. Skands PYTHIA 6.4 physics and manual JHEP 05 (2006) 026 hep-ph/0603175
35 P. Skands, S. Carrazza, and J. Rojo Tuning PYTHIA 8.1: the Monash 2013 Tune EPJC 74 (2014) 3024 1404.5630
36 NNPDF Collaboration Parton distributions for the LHC Run II JHEP 04 (2015) 040 1410.8849
37 GEANT4 Collaboration GEANT4: A Simulation toolkit NIMA 506 (2003) 250--303
38 CMS Collaboration The CMS experiment at the CERN LHC JINST 3 (2008) S08004 CMS-00-001
39 CMS Collaboration Description and performance of track and primary-vertex reconstruction with the CMS tracker JINST 9 (2014) P10009 CMS-TRK-11-001
1405.6569
40 CMS Collaboration Performance of CMS muon reconstruction in $ pp $ collision events at $ \sqrt{s} = $ 7 TeV JINST 7 (2012) P10002 CMS-MUO-10-004
1206.4071
41 CMS Collaboration Particle-flow event reconstruction in CMS and performance for jets, taus, and $ E_{\mathrm{T}}^{\text{miss}} $ CDS
42 CMS Collaboration Commissioning of the particle-flow event with the first LHC collisions recorded in the CMS detector CDS
43 CMS Collaboration Performance of electron reconstruction and selection with the CMS detector in proton-proton collisions at $ \sqrt{s} = $ 8 TeV JINST 10 (2015) P06005 CMS-EGM-13-001
1502.02701
44 M. Cacciari, G. P. Salam, and G. Soyez The anti-$ k_t $ jet clustering algorithm JHEP 04 (2008) 063 0802.1189
45 M. Cacciari, G. P. Salam, and G. Soyez FastJet user manual EPJC 72 (2012) 1896 1111.6097
46 CMS Collaboration Determination of Jet Energy Calibration and Transverse Momentum Resolution in CMS JINST 6 (2011) P11002 CMS-JME-10-011
1107.4277
47 M. Dasgupta, A. Fregoso, S. Marzani, and G. P. Salam Towards an understanding of jet substructure JHEP 09 (2013) 029 1307.0007
48 A. J. Larkoski, S. Marzani, G. Soyez, and J. Thaler Soft Drop JHEP 05 (2014) 146 1402.2657
49 D. Bertolini, P. Harris, M. Low, and N. Tran Pileup per particle identification JHEP 2014 (2014), no. 10, 1--22
50 CMS Collaboration Identification techniques for highly boosted W bosons that decay into hadrons JHEP 12 (2014) 017 CMS-JME-13-006
1410.4227
51 M. J. Oreglia Study of the Reactions Psi-Prime Meson to Gamma, Gamma, Psi Ph.D. Thesis, Stanford University, Dissertation Abstracts International, Volume 41-11, Stanford University
52 A. L. Read Presentation of search results: the $ CL_s $ technique JPG 28 (2002) 2693
53 T. Junk Confidence level computation for combining searches with small statistics NIMA 434 (1999) 435 hep-ex/9902006
54 CMS and ATLAS Collaborations Procedure for the LHC Higgs boson search combination in Summer 2011 CMS-NOTE-2011-005
55 G. Cowan, K. Cranmer, E. Gross, and O. Vitells Asymptotic formulae for likelihood-based tests of new physics EPJC 71 (2011) 1554, , [Erratum: Eur. Phys. J.C73,2501(2013)] 1007.1727
56 CMS Collaboration Collaboration Search for diboson resonances in the semileptonic $ \mathrm{X}\rightarrow\mathrm{Z}\mathrm{V}\rightarrow\ell^+\ell^- \mathrm{q}\bar{\mathrm{q}} $ final state at $ \sqrt{s} = $ 13 TeV with CMS
57 ATLAS Collaboration Searches for heavy diboson resonances in $ pp $ collisions at $ \sqrt{s} = $ 13 TeV with the ATLAS detector JHEP 09 (2016) 173 1606.04833
Compact Muon Solenoid
LHC, CERN