CMS-PAS-SMP-15-009 | ||
Measurement of associated Z + charm production in pp collisions at $ \sqrt{s} = $ 8 TeV | ||
CMS Collaboration | ||
July 2016 | ||
Abstract: A study of the associated production of a Z boson and one charm-quark jet (Z+c) in pp collisions at a center-of-mass energy of 8 TeV is presented. The analysis is conducted with a data sample corresponding to an integrated luminosity of 19.7 fb$^{-1}$, collected by the CMS detector at the CERN LHC. The Z-boson candidates are identified through their decay into a pair of electrons or muons. Jets originating from heavy flavour quarks are identified using semileptonic decays of c- or b-flavoured hadrons and hadronic decays of charm hadrons. The measurements are performed for heavy flavour jets in the kinematic region $p_{\rm T}^{{\rm jet}} > $ 25 GeV, ${\mid\eta^{ {\rm jet}}\mid} < $ 2.5. The Z+c production cross section is measured to be $\sigma({\rm pp} \rightarrow {\rm Z+c + X}) =$ 8.6 $\pm$ 0.5 (stat) $\pm$ 0.7 (syst) pb. The relative production of a Z boson and at least one c- or b-quark jet is analysed in terms of cross sections ratio. The ratio of the Z+c and Z+b production cross sections is measured to be $\sigma({\rm pp} \rightarrow {\rm Z+c + X})/\sigma({\rm pp} \rightarrow {\rm Z+b + X}) =$ 2.0 $\pm$ 0.2 (stat) $\pm$ 0.2 (syst). The Z+c production cross section and the cross sections ratio are also measured differentially as a function of transverse momentum of the Z boson and of the heavy flavour jet. Measurements are compared with several theoretical predictions. | ||
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These preliminary results are superseded in this paper, EPJC 78 (2018) 287. The superseded preliminary plots can be found here. |
Figures | |
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Figure 1-a:
Transverse momentum distribution of the c-tagged jet (a) and number of reconstructed secondary vertices (b) in simulated W+c and Z+c samples, and in W+c data events. Events with no reconstructed IVF vertices have at least one reconstructed vertex with the SSV vertex algorithm. The W+c distributions are presented after $ {\mathrm {OS}-\mathrm {SS}}$ subtraction. |
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Figure 1-b:
Transverse momentum distribution of the c-tagged jet (a) and number of reconstructed secondary vertices (b) in simulated W+c and Z+c samples, and in W+c data events. Events with no reconstructed IVF vertices have at least one reconstructed vertex with the SSV vertex algorithm. The W+c distributions are presented after $ {\mathrm {OS}-\mathrm {SS}}$ subtraction. |
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Figure 2-a:
Distributions of the corrected secondary vertex mass (a) and JP discriminant ($ {\mathrm {D^{\pm }}}$ mode in the (b) plot and $ {{\mathrm {D}^{\ast \pm }(2010)}}$ mode in the (c) plot), normalized to unity, in simulated W+c and Z+c, and in W+c data events. The W+c distributions are presented after $ {\mathrm {OS}-\mathrm {SS}}$ subtraction. |
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Figure 2-b:
Distributions of the corrected secondary vertex mass (a) and JP discriminant ($ {\mathrm {D^{\pm }}}$ mode in the (b) plot and $ {{\mathrm {D}^{\ast \pm }(2010)}}$ mode in the (c) plot), normalized to unity, in simulated W+c and Z+c, and in W+c data events. The W+c distributions are presented after $ {\mathrm {OS}-\mathrm {SS}}$ subtraction. |
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Figure 2-c:
Distributions of the corrected secondary vertex mass (a) and JP discriminant ($ {\mathrm {D^{\pm }}}$ mode in the (b) plot and $ {{\mathrm {D}^{\ast \pm }(2010)}}$ mode in the (c) plot), normalized to unity, in simulated W+c and Z+c, and in W+c data events. The W+c distributions are presented after $ {\mathrm {OS}-\mathrm {SS}}$ subtraction. |
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Figure 3:
Distributions of the corrected secondary vertex mass normalized to unity from simulated Z+b and data $\mathrm{ e } \mu $-${\mathrm{ t } \mathrm{ \bar{t} } } $ events. |
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Figure 4-a:
Corrected secondary vertex mass distributions in the dielectron (a) and dimuon (b) channels. The shape of the Z+c and Z+b contributions is estimated as explained in the text. Their normalization is adjusted to the result of the signal extraction fit. |
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Figure 4-b:
Corrected secondary vertex mass distributions in the dielectron (a) and dimuon (b) channels. The shape of the Z+c and Z+b contributions is estimated as explained in the text. Their normalization is adjusted to the result of the signal extraction fit. |
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Figure 5-a:
Distributions of the JP discriminant in the dielectron (a) and dimuon (b) channels for $ {\mathrm{ Z } + \text {jets}}$ events with a $ {\mathrm {D^{\pm }}}\to {\mathrm {D^0}}\pi ^\pm _{\rm s} \to \mathrm{K} ^\mp \pi ^\pm \pi ^\pm _{\rm s}$ candidate. The shape of the Z+c and Z+b contributions is estimated as explained in the text. Their normalization is adjusted to the result of the signal extraction fit. |
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Figure 5-b:
Distributions of the JP discriminant in the dielectron (a) and dimuon (b) channels for $ {\mathrm{ Z } + \text {jets}}$ events with a $ {\mathrm {D^{\pm }}}\to {\mathrm {D^0}}\pi ^\pm _{\rm s} \to \mathrm{K} ^\mp \pi ^\pm \pi ^\pm _{\rm s}$ candidate. The shape of the Z+c and Z+b contributions is estimated as explained in the text. Their normalization is adjusted to the result of the signal extraction fit. |
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Figure 6-a:
Distributions of the JP discriminant in the dielectron (a) and dimuon (b) channels for $ {\mathrm{ Z } + \text {jets}}$ events with a $ {{\mathrm {D}^{\ast \pm }(2010)}}\to {\mathrm {D^0}}\pi ^\pm _{\rm s} \to \mathrm{K} ^\mp \pi ^\pm \pi ^\pm _{\rm s}$ candidate. The shape of the Z+c and Z+b contributions is estimated as explained in the text. Their normalization is adjusted to the result of the signal extraction fit. |
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Figure 6-b:
Distributions of the JP discriminant in the dielectron (a) and dimuon (b) channels for $ {\mathrm{ Z } + \text {jets}}$ events with a $ {{\mathrm {D}^{\ast \pm }(2010)}}\to {\mathrm {D^0}}\pi ^\pm _{\rm s} \to \mathrm{K} ^\mp \pi ^\pm \pi ^\pm _{\rm s}$ candidate. The shape of the Z+c and Z+b contributions is estimated as explained in the text. Their normalization is adjusted to the result of the signal extraction fit. |
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Figure 7:
Contributions to the systematic uncertainty in the measured Z+c cross section and in the $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio. The first three bins in the graphic show the uncertainties in the Z+c cross section in the three decay modes, semileptonic , $ {\mathrm {D^{\pm }}}$, and $ {{\mathrm {D}^{\ast \pm }(2010)}}$, calculated from the combination in the dimuon and dielectron $\mathrm{ Z } $-boson decay channels. The fourth bin shows the systematic uncertainties in the combined Z+c cross section. The last bin presents the systematic uncertainty in the $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio measured in the semileptonic mode. The uncertainty from every source is added on top of the already displayed ones according to its contribution to the total uncertainty. |
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Figure 8-a:
Differential Z+c cross section and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio as a function of the transverse momentum of the $\mathrm{ Z } $ boson (a,b) and the transverse momentum of the jet (c,d). The combination of the results in the dielectron and dimuon channels are shown. The Z+c differential cross section is shown in the (a,c) plots and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio is shown in the (b,d) plots. Statistical uncertainties in the data are shown as error bars. The solid rectangles indicate the total (statistical plus systematic) experimental uncertainty. Statistical and systematic uncertainties in the theoretical predictions are shown added in quadrature. |
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Figure 8-b:
Differential Z+c cross section and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio as a function of the transverse momentum of the $\mathrm{ Z } $ boson (a,b) and the transverse momentum of the jet (c,d). The combination of the results in the dielectron and dimuon channels are shown. The Z+c differential cross section is shown in the (a,c) plots and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio is shown in the (b,d) plots. Statistical uncertainties in the data are shown as error bars. The solid rectangles indicate the total (statistical plus systematic) experimental uncertainty. Statistical and systematic uncertainties in the theoretical predictions are shown added in quadrature. |
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Figure 8-c:
Differential Z+c cross section and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio as a function of the transverse momentum of the $\mathrm{ Z } $ boson (a,b) and the transverse momentum of the jet (c,d). The combination of the results in the dielectron and dimuon channels are shown. The Z+c differential cross section is shown in the (a,c) plots and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio is shown in the (b,d) plots. Statistical uncertainties in the data are shown as error bars. The solid rectangles indicate the total (statistical plus systematic) experimental uncertainty. Statistical and systematic uncertainties in the theoretical predictions are shown added in quadrature. |
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Figure 8-d:
Differential Z+c cross section and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio as a function of the transverse momentum of the $\mathrm{ Z } $ boson (a,b) and the transverse momentum of the jet (c,d). The combination of the results in the dielectron and dimuon channels are shown. The Z+c differential cross section is shown in the (a,c) plots and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio is shown in the (b,d) plots. Statistical uncertainties in the data are shown as error bars. The solid rectangles indicate the total (statistical plus systematic) experimental uncertainty. Statistical and systematic uncertainties in the theoretical predictions are shown added in quadrature. |
Tables | |
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Table 1:
Cross section $ {\sigma ( \mathrm{Z+c})}$, and cross sections ratio $ {\sigma ( \mathrm{Z+c})}/ {\sigma ( {\mathrm{ Z } + \mathrm{ b } })}$ in the three categories of this analysis and in the two Z-boson decay channels. $N^{\rm signal}_{ \mathrm{Z+c}}$ and $N^{\rm signal}_{ {\mathrm{ Z } + \mathrm{ b } }}$ are the yields of Z+c and Z+b events extracted from the fit to the corrected secondary vertex mass (semileptonic mode) or JP discriminant ($ {\mathrm {D^{\pm }}}$ and $ {{\mathrm {D}^{\ast \pm }(2010)}}$ modes) distributions. The factors ${\cal C}$ that correct the selection inefficiencies are also given. They include the relevant branching fraction for the corresponding channel. All uncertainties quoted in the table are statistical except for the measured cross sections and cross sections ratio where the first uncertainty is statistical and the second one is the estimated systematic uncertainty from the sources discussed in the text. |
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Table 2:
Differential cross section $ {d\sigma ( \mathrm{Z+c})/ {\mathrm {d}}{ {p_{\mathrm {T}}} ^{\mathrm{ Z } }} }$, and cross section ratio $( {d\sigma ( \mathrm{Z+c})/ {\mathrm {d}}{ {p_{\mathrm {T}}} ^{\mathrm{ Z } }} })/( {d\sigma ( {\mathrm{ Z } + \mathrm{ b } })/ {\mathrm {d}}{ {p_{\mathrm {T}}} ^{\mathrm{ Z } }} })$ in the semileptonic mode and in the two Z-boson decay channels. $N^{\rm signal}_{ \mathrm{Z+c}}$ and $N^{\rm signal}_{ {\mathrm{ Z } + \mathrm{ b } }}$ are the yields of Z+c and Z+b events extracted from the fit. All uncertainties quoted in the table are statistical except for the measured cross sections and cross sections ratio where the first uncertainty is statistical and the second one is the estimated systematic uncertainty from the sources discussed in the text. |
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Table 3:
Differential cross section $ {d\sigma ( \mathrm{Z+c})/ {\mathrm {d}}{ {p_{\mathrm {T}}} ^{\text {jet}}} }$, and cross section ratio $( {d\sigma ( \mathrm{Z+c})/ {\mathrm {d}}{ {p_{\mathrm {T}}} ^{\text {jet}}} })/( {d\sigma ( {\mathrm{ Z } + \mathrm{ b } })/ {\mathrm {d}}{ {p_{\mathrm {T}}} ^{\text {jet}}} })$ in the semileptonic mode and in the two Z-boson decay channels. $N^{\rm signal}_{ \mathrm{Z+c}}$ and $N^{\rm signal}_{ {\mathrm{ Z } + \mathrm{ b } }}$ are the yields of Z+c and Z+b events extracted from the fit. All uncertainties quoted in the table are statistical except for the measured cross sections and cross sections ratio where the first uncertainty is statistical and the second one is the estimated systematic uncertainty from the sources discussed in the text. |
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Table 4:
Differential Z+c cross section and $ \mathrm{Z+c}/ {\mathrm{ Z } + \mathrm{ b } }$ cross sections ratio. The first block presents the differential measurements as a function of the transverse momentum of the Z boson. The second block shows the cross section and ratio as a function of the transverse momentum of the jet with heavy flavour content. The first uncertainty is the statistical and the second one is the systematic uncertainty arising from the sources discussed in the text. |
Summary |
The cross section of the production of a Z boson associated with at least one jet originated by a c-quark in pp collisions at a center-of-mass energy of 8 TeV is measured with a data sample corresponding to an integrated luminosity of 19.7 $\pm$ 0.5 fb$^{-1}$. The cross sections ratio of the production of a Z boson and at least one c- or b-quark jet is also determined. The measurements are performed in the kinematic region with two leptons with $p_{\mathrm{T}}^{\ell} >$ 20 GeV, pseudorapidity $|\eta^{\ell}| < $ 2.1, and dilepton invariant mass 71 $ < m_{\ell\ell} < $ 111 GeV, and a HF-quark jet with $p_{\mathrm{T}}^{\text jet} > $ 25 GeV, $ | \eta^{\text{jet}} | < $ 2.5, and separated from the leptons from the Z-boson candidate by a distance $\Delta R (\text{jet},\ell) >$ 0.5. The measured Z+c production cross section is $\sigma( \mathrm{ pp \to Zc }) =$ 8.6 $\pm$ 0.5 (stat) $\pm$ 0.7 (syst) pb, and the cross sections ratio is $\sigma(\mathrm{ pp \to Zc })/\sigma(\mathrm{ pp \to Zb }) =$ 2.0 $\pm$ 0.2 (stat) $\pm$ 0.2 (syst). Both, the Z+c production cross section and the cross sections ratio are measured inclusively and differentially as a function of transverse momentum of the Z boson and of the heavy flavour jet. The measurements are in agreement with the LO predictions from MadGraph and NLO predictions from aMCatNLO. Predictions from the MCFM program are lower than the measured Z+c cross section, both inclusive and differentially. A better description is reached in terms of the Z+c/Z+b cross sections ratio. |
References | ||||
1 | CDF Collaboration | Search for the Flavor Changing Neutral Current Decay $ t \to Zq $ in $ p\bar{p} $ Collisions at $ \sqrt{s} = 1.96 $ TeV | PRL 101 (2008) 192002 | 0805.2109 |
2 | D0 Collaboration | Search for flavor changing neutral currents in decays of top quarks | PLB 701 (2011) 313 | 1103.4574 |
3 | ATLAS Collaboration | Search for pair-produced third-generation squarks decaying via charm quarks or in compressed supersymmetric scenarios in $ pp $ collisions at $ \sqrt{s}=8 $TeV with the ATLAS detector | PRD 90 (2014), no. 5, 052008 | 1407.0608 |
4 | ATLAS Collaboration | Search for Scalar Charm Quark Pair Production in $ pp $ Collisions at $ \sqrt{s}= $ 8 TeV with the ATLAS Detector | PRL 114 (2015), no. 16, 161801 | 1501.01325 |
5 | S. J. Brodsky et al. | A review of the intrinsic heavy quark content of the nucleon | Adv. High Energy Phys. 2015 (2015) 231547 | 1504.06287 |
6 | P.-H. Beauchemin, V. A. Bednyakov, G. I. Lykasov, and \relax Yu. \relax Yu. Stepanenko | Search for intrinsic charm in vector boson production accompanied by heavy flavor jets | PRD 92 (2015), no. 3, 034014 | 1410.2616 |
7 | G. Bailas and V. P. Goncalves | Phenomenological implications of the intrinsic charm in the $ Z $ boson production at the LHC | EPJC 76 (2016) 105 | 1512.06007 |
8 | A. V. Lipatov, G. I. Lykasov, \relax Yu. \relax Yu. Stepanenko, and V. A. Bednyakov | Probing proton intrinsic charm in photon or Z boson production accompanied by heavy jets at LHC | 1606.04882 | |
9 | T. Boettcher, P. Ilten, and M. Williams | Direct probe of the intrinsic charm content of the proton | PRD 93 (2016), no. 7, 074008 | 1512.06666 |
10 | NNPDF Collaboration | A Determination of the Charm Content of the Proton | 1605.06515 | |
11 | D0 Collaboration | Measurement of associated production of Z bosons with charm quark jets in $ p\bar{p} $ collisions at $ \sqrt{s}=1.96 $ TeV | PRL 112 (2014), no. 4, 042001 | 1308.4384 |
12 | CDF Collaboration | Measurement of vector boson plus $ D^{*}(2010)^+ $ meson production in $ \bar{p}p $ collisions at $ \sqrt{s}=1.96\, {\rm TeV} $ | PRD 93 (2016), no. 5, 052012 | 1508.06980 |
13 | LHCb Collaboration | Observation of associated production of a Z boson with a D meson in the forward region | JHEP 04 (2014) 091 | 1401.3245 |
14 | 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 |
15 | CMS Collaboration | Performance of electron reconstruction and selection with the CMS detector in proton-proton collisions at $ \sqrt{s} = 8 $$ TeV $ | JINST 10 (2015), no. 06, P06005 | CMS-EGM-13-001 1502.02701 |
16 | CMS Collaboration | Particle-Flow Event Reconstruction in CMS and Performance for Jets, Taus, and MET | ||
17 | CMS Collaboration | Particle-flow commissioning with muons and electrons from J/Psi, and W events at 7 TeV | ||
18 | M. Cacciari, G. P. Salam, and G. Soyez | The Anti-k(t) jet clustering algorithm | JHEP 04 (2008) 063 | 0802.1189 |
19 | CMS Collaboration | Determination of Jet Energy Calibration and Transverse Momentum Resolution in CMS | JINST 6 (2011) P11002 | CMS-JME-10-011 1107.4277 |
20 | CMS Collaboration | Jet energy scale and resolution in the CMS experiment in pp collisions at 8 TeV | CMS-JME-13-004 1607.03663 |
|
21 | J. Alwall et al. | MadGraph 5 : Going Beyond | JHEP 06 (2011) 128 | 1106.0522 |
22 | T. Sjostrand, S. Mrenna, and P. Z. Skands | PYTHIA 6.4 Physics and Manual | JHEP 05 (2006) 026 | hep-ph/0603175 |
23 | J. Pumplin et al. | New generation of parton distributions with uncertainties from global QCD analysis | JHEP 07 (2002) 012 | hep-ph/0201195 |
24 | J. M. Campbell, R. K. Ellis, P. Nason, and E. Re | Top-pair production and decay at NLO matched with parton showers | JHEP 04 (2015) 114 | 1412.1828 |
25 | P. Nason | A New method for combining NLO QCD with shower Monte Carlo algorithms | JHEP 11 (2004) 040 | hep-ph/0409146 |
26 | S. Frixione, P. Nason, and C. Oleari | Matching NLO QCD computations with Parton Shower simulations: the POWHEG method | JHEP 11 (2007) 070 | 0709.2092 |
27 | 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 |
28 | J. Gao et al. | The CT10 NNLO Global Analysis of QCD | PRD 89 (2014) 033009 | 1302.6246 |
29 | R. Field | Early LHC Underlying Event Data - Findings and Surprises | in Hadron collider physics. Proceedings, 22nd Conference, HCP 2010, Toronto, Canada, August 23-27, 2010 2010 | 1010.3558 |
30 | A. Buckley et al. | Systematic event generator tuning for the LHC | EPJC 65 (2010) 331 | 0907.2973 |
31 | GEANT4 Collaboration | GEANT4: A Simulation toolkit | Nucl. Instrum. and Methods A 506 (2003) 250--303 | |
32 | Y. Li and F. Petriello | Combining QCD and electroweak corrections to dilepton production in FEWZ | PRD 86 (2012) 094034 | 1208.5967 |
33 | A. D. Martin, W. J. Stirling, R. S. Thorne, and G. Watt | Parton distributions for the LHC | EPJC 63 (2009) 189 | 0901.0002 |
34 | J. M. Campbell and R. Ellis | MCFM for the Tevatron and the LHC | NPPS 205 (2010) 10 | 1007.3492 |
35 | M. Czakon, P. Fiedler, and A. Mitov | The total top quark pair production cross-section at hadron colliders through $ {\cal O}(\alpha_{\rm S}^4) $ | PRL 110 (2013) 252004 | 1303.6254 |
36 | CMS Collaboration | Measurement of the Inclusive W and Z Production Cross Sections in $ pp $ Collisions at $ \sqrt{s}=7 $ TeV | JHEP 10 (2011) 132 | CMS-EWK-10-005 1107.4789 |
37 | CMS Collaboration | Identification of b-quark jets with the CMS experiment | JINST 8 (2013) P04013 | CMS-BTV-12-001 1211.4462 |
38 | CMS Collaboration | Measurement of $ B\bar{B} $ Angular Correlations based on Secondary Vertex Reconstruction at $ \sqrt{s}=7 $ TeV | JHEP 03 (2011) 136 | CMS-BPH-10-010 1102.3194 |
39 | CMS Collaboration | Measurement of the cross section and angular correlations for associated production of a Z boson with b hadrons in pp collisions at $ \sqrt{s} = $ 7 TeV | JHEP 12 (2013) 039 | CMS-EWK-11-015 1310.1349 |
40 | Particle Data Group, K.A. Olive et al. | Review of Particle Physics | CPC 38 (2014) 090001 | |
41 | L. Gladilin | Fragmentation fractions of $ c $ and $ b $ quarks into charmed hadrons at LEP | EPJC 75 (2015) 19 | 1404.3888 |
42 | OPAL Collaboration | Measurement of $ {\rm f}({\rm c}\to {\rm D}^{*} + X) $, $ {\rm f}({\rm b}\to {\rm D}^{*}+ X) $ and $ \Gamma({\rm c\bar c})/\Gamma({\rm had}) $ using $ {\rm D}^{*\pm} $ mesons | EPJC 1 (1998) 439 | hep-ex/9708021 |
43 | ALEPH Collaboration | Study of charm production in Z decays | EPJC 16 (2000) 597 | hep-ex/9909032 |
44 | DELPHI Collaboration | Determination of $ P({\rm c}\to {\rm D}^{*+}) $ and $ BR({\rm c}\to\ell^+) $ at LEP 1 | EPJC 12 (2000) 209 | |
45 | R. Fr\"uhwirth, R. Kubinec, W. Mitaroff, and M. Regler | Vertex reconstruction and track bundling at the LEP collider using robust algorithms | Comp. Phys. Comm. 96 (1996) 189 | |
46 | CMS Collaboration | Measurement of associated W + charm production in pp collisions at $ \sqrt{s} $ = 7 TeV | JHEP 02 (2014) 013 | CMS-SMP-12-002 1310.1138 |
47 | CMS Collaboration | Performance of b tagging at sqrt(s)=8 TeV in multijet, ttbar and boosted topology events | ||
48 | LHCb Collaboration | Identification of beauty and charm quark jets at LHCb | JINST 10 (2015), no. 06, P06013 | 1504.07670 |
49 | R. D. Ball et al. | Parton distributions with LHC data | Nucl. Phys. B 867 (2013) 244--289 | 1207.1303 |
50 | CMS Collaboration | Absolute Calibration of the Luminosity Measurement at CMS: Winter 2012 Update | CDS | |
51 | 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 |
52 | T. Sjostrand, S. Mrenna, and P. Z. Skands | A Brief Introduction to PYTHIA 8.1 | CPC 178 (2008) 852--867 | 0710.3820 |
53 | CMS Collaboration | Event generator tunes obtained from underlying event and multiparton scattering measurements | EPJC 76 (2016) 155 | CMS-GEN-14-001 1512.00815 |
54 | R. Frederix and S. Frixione | Merging meets matching in MC@NLO | JHEP 12 (2012) 061 | 1209.6215 |
55 | NNPDF Collaboration | Parton distributions for the LHC Run II | JHEP 04 (2015) 040 | 1410.8849 |
56 | R. Frederix et al. | Four-lepton production at hadron colliders: aMC@NLO predictions with theoretical uncertainties | JHEP 02 (2012) 099 | 1110.4738 |
57 | J. M. Campbell, R. K. Ellis, F. Maltoni, and S. Willenbrock | Associated production of a $ Z $ Boson and a single heavy quark jet | PRD 69 (2004) 074021 | hep-ph/0312024 |
58 | J. M. Campbell, R. K. Ellis, F. Maltoni, and S. Willenbrock | Production of a $ Z $ boson and two jets with one heavy-quark tag | PRD 73 (2006) 054007, , [Erratum: Phys. Rev. D 77,019903(2008)] | hep-ph/0510362 |
59 | A. Buckley et al. | LHAPDF6: parton density access in the LHC precision era | EPJC 75 (2015) 132 | 1412.7420 |
Compact Muon Solenoid LHC, CERN |