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Measurements of Higgs boson properties in the diphoton decay channel with 36 fb$^{-1}$ of $pp$ collision data at $\sqrt{s} = 13$ TeV with the ATLAS detector

The collaboration
Phys.Rev.D 98 (2018) 052005, 2018.

Abstract (data abstract)
Measurements of cross sections and differential distributions for Higgs production in the diphoton channel are presented based on 36.1 fb-1 proton-proton collisions at sqrt(s)=13 TeV.

• #### Table 1

Data from Fig. 26a

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Measured differential cross section with associated uncertainties as a function of PT(2GAMMA). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 26b

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Measured differential cross section with associated uncertainties as a function of YRAP(2GAMMA). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 36a

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Measured differential cross section with associated uncertainties as a function of PTTHRUST(2GAMMA). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 28a

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Measured differential cross section with associated uncertainties as a function of COS(THETA*). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 36b

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Measured differential cross section with associated uncertainties as a function of DELTAYRAP(2GAMMA). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 25a

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Measured differential cross section with associated uncertainties as a function of MULT(JET,PT>30 GEV). Each systematic uncertainty sources is fully uncorrelated...

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Data from Fig. 25b

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Measured differential cross section with associated uncertainties as a function of MULT(JET,PT>50 GEV). Each systematic uncertainty sources is fully uncorrelated...

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Data from Fig. 27a

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Measured differential cross section with associated uncertainties as a function of PT(JET1). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 27c

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Measured differential cross section with associated uncertainties as a function of PT(JET2). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 37a

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Measured differential cross section with associated uncertainties as a function of HT. Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 27b

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Measured differential cross section with associated uncertainties as a function of YRAP(JET1). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 27d

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Measured differential cross section with associated uncertainties as a function of YRAP(JET2). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 29c

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Measured differential cross section with associated uncertainties as a function of M(2JET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 29a

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Measured differential cross section with associated uncertainties as a function of DELTAYRAP(2JET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 37b

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Measured differential cross section with associated uncertainties as a function of ABSDPHI(2JET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 28b

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Measured differential cross section with associated uncertainties as a function of DPHI(2JET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 37c

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Measured differential cross section with associated uncertainties as a function of PT(2GAMMA2JET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 29b

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Measured differential cross section with associated uncertainties as a function of DPHI(2GAMMA,2JET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 38a

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Measured differential cross section with associated uncertainties as a function of TAUJET. Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 38b

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Measured differential cross section with associated uncertainties as a function of SUM(TAUJET). Each systematic uncertainty sources is fully uncorrelated with...

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Data from Fig. 30a

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Measured differential cross section with associated uncertainties as a function of PT(2GAMMA) [NJET=0,PT>30 GEV]. Each systematic uncertainty sources is fully...

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Data from Fig. 30a

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Measured differential cross section with associated uncertainties as a function of PT(2GAMMA) [NJET=1,PT>30 GEV]. Each systematic uncertainty sources is fully...

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Data from Fig. 30a

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Measured differential cross section with associated uncertainties as a function of PT(2GAMMA) [NJET=2,PT>30 GEV]. Each systematic uncertainty sources is fully...

• #### Table 24

Data from Fig. 30a

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Measured differential cross section with associated uncertainties as a function of PT(2GAMMA) [NJET>=3,PT>30 GEV]. Each systematic uncertainty sources is fully...

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Data from Fig. 24

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The measured cross sections or cross section limits of the diphoton, VBF-enhanced, Nlepton $\geq$ 1, high $E_{T}^{miss}$, and ttH-enhanced fiducial...

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Data from Fig. 30b

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Measured differential cross section with associated uncertainties as a function of diphoton transverse momentum in bins of ABS(COS(THETA*)). Each systematic...

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Data from Tab. 24

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Non-perturbative correction factors in percent accounting for the impact of hadronisation and the underlying event activity for all measured variables...

• #### Table 28

Data from Tab. 23

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Isolation efficiencies in percent for gluon fusion $H\rightarrow\gamma\gamma$ for each fiducial region/variable bin measured in this analysis. The isolation efficiency...

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Data from Tab. 25

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Combined non-perturbative (Table 27) and particle-level isolation correction factors (Table 28) in percent accounting for the impact of hadronisation and...

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Data from Tab. 22

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Diphoton kinematic acceptances in percent for gluon-gluon fusion for the diphoton fiducial region and all differential variable bins studied in...

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Data from Fig. 20

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observed statistical correlations between pTyy, Njets, mjj, |DeltaPhijj| and pTj1

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Data from Figs. 20, 24, 25, 26, 27, 28, 29, 30, 30, 30, 36, 37 and 38

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ggH default MC + XH predictions

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Data from Figs. 20, 24, 25, 26, 27, 28, 29, 30, 30, 30, 36, 37 and 38

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XH ( = VBF + VH + ttH + bbH ) MC predictions

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Data from Tab. 9

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Best-fit values and uncertainties of the production-mode cross sections times branching ratio.

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Data from Tab. 11

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Best-fit values and uncertainties of the simplified template cross sections times branching ratio.

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Data from Fig. 17

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Observed correlations between the measured simplified template cross sections, including both the statistical and systematic uncertainties.

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Data from Tab. 21

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Best-fit values and uncertainties of the simplified template cross sections times branching ratio.

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Data from Fig. 40 left

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Observed correlations between the measured simplified template cross sections, including both the statistical and systematic uncertainties.

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Data from Fig. 43 top

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Observed correlations between the measured simplified template cross sections, including both the statistical and systematic uncertainties.