Pith. sign in

REVIEW 2 major objections 3 minor 1 cited by

Measurement of $W^{\pm}$-boson differential cross-sections in proton-proton collisions with low pile-up data at $\sqrt{s} = 5.02$ TeV and $13$ TeV with the ATLAS detector

T0 review · 2 major / 3 minor · reviewed 2026-08-07 · deepseek-v4-flash

Pith's one-line read This paper reports high-precision single- and double-differential W±-boson cross sections at 5.02 and 13 TeV, shows they agree with Standard Model predictions, and demonstrates that the lepton-pseudorapidity data tighten quark parton…

desk verdict A solid new ATLAS W differential cross-section paper whose central 'agreement' claim is slightly overstated because the high-pT tail excess at 5.02 TeV is never given a pull or chi-square. read the letter →

arxiv 2502.09403 v2 pith:4KRJZBY4 submitted 2025-02-13 hep-ex

classification hep-ex
keywords Wbosonproductiondifferentialcrosssectionschargeasymmetrypartondistributionfunctionslowpile-upNNLOQCDtransverse-momentumresummationATLAS
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

The paper establishes that high-precision measurements of W±-boson production—single- and double-differential cross sections in the lepton's transverse momentum and pseudorapidity (an angular variable), plus the W-charge asymmetry—made in proton-proton collisions at centre-of-mass energies of 5.02 and 13 TeV agree with Standard Model predictions computed at next-to-next-to-leading order in the strong coupling, with transverse-momentum resummation at next-to-next-to-leading logarithmic accuracy across several parton distribution function sets. The data come from dedicated low pile-up runs, where only about two inelastic collisions occur per bunch crossing, which lets the experimental precision drop below 1% in the bulk phase space. The paper further shows, through a profiling analysis, that the single-differential cross sections as a function of lepton pseudorapidity reduce the uncertainty on quark parton distribution functions by up to a factor of two around x ≈ 0.004, mainly from the 13 TeV data. If correct, these results sharpen the proton's quark content at moderate momentum fractions and provide a stringent test of perturbative quantum chromodynamics.

What carries the argument

The analysis chain rests on an iterative Bayesian unfolding that corrects detector-level lepton distributions back to particle level, a best-linear-unbiased-estimate (BLUE) combination of the electron and muon channels, and a theoretical prediction built from a Drell-Yan program that includes NNLO QCD corrections and NNLL transverse-momentum resummation. For the PDF impact study, the paper applies a profiling technique in which a $\chi^2$ function with correlated experimental and theoretical uncertainties is minimized, effectively reoptimizing the parton distributions to the new measurements. The key object carrying the PDF sensitivity is the single-differential cross section $d\sigma/d|\eta|$, because the W-boson rapidity is strongly correlated with the momentum fraction $x$ of the initial-state partons.

What would settle it

A future measurement of $d\sigma/dp_{\mathrm{T}}$ for $W^-$ at 5.02 TeV using the full Run 2 luminosity, with a generator uncertainty estimated from a third, independently validated event generator, would settle whether the observed high-$p_{\mathrm{T}}$ excess is real or a modelling artefact.

Watch

Extended reading notes

Core claim

The central claim is that the measured W±-boson differential cross sections, defined by the lepton transverse momentum $p_{\mathrm{T}}$ and pseudorapidity $|\eta|$ in electron and muon final states, and the derived W-boson charge asymmetry, are in agreement with Standard Model predictions at NNLO in $\alpha_s$ including NNLL transverse-momentum resummation using several parton distribution function sets. The same data, when combined with a profiling technique, show that the $d\sigma/d|\eta|$ measurements constrain the up- and down-valence quark distributions, cutting their uncertainty by about a factor of two near $x \approx 0.004$, with the constraining power coming mainly from the $\sqrt{s} = 13$ TeV dataset.

Load-bearing premise

The analysis assumes that the difference between two independent Monte Carlo event generator setups, reweighted to the same PDFs, brackets the true signal-modelling uncertainty; if the true uncertainty is larger, the quoted agreement in the high-$p_{\mathrm{T}}$ tail could be too optimistic.

Editorial extensions

If this is right

  • The $d\sigma/d|\eta|$ data provide new constraints for global parton distribution fits, particularly for up- and down-valence quarks at $x \approx 0.004$, complementing earlier W/Z measurements at 7 and 8 TeV.
  • The W-charge asymmetry measurements, being more precise than the PDF-based predictions, can discriminate between competing parton distribution sets in future fits.
  • The first ATLAS double-differential measurements in $(|\eta|, p_{\mathrm{T}})$ can improve the modelling of W-boson production at high $p_{\mathrm{T}}$, where current predictions sit below the data.
  • The success of the low pile-up running mode validates it as a strategy for precision electroweak measurements in the high-luminosity era.
  • These cross sections will serve as input to next-generation QCD fits and may help resolve the long-standing strange-to-light sea-quark ratio puzzle.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • If the profiling results hold, the $d\sigma/d|\eta|$ data from two energies should be included as a single correlated dataset in future global fits; the factor-of-two gain seen here likely underestimates the full impact of a true simultaneous fit.
  • The high-$p_{\mathrm{T}}$ excess observed in the 5.02 TeV $W^-$ channel could indicate missing higher-order electroweak corrections or an underestimated recoil uncertainty; a dedicated calculation at N3LO with full QCD+EW corrections would test this.
  • The same measurement strategy could be extended to the Z-boson channel or to W production with associated jets, providing an independent handle on the strange-quark content and on the valence-quark asymmetry.
  • The charge asymmetry results, combined with the low pile-up environment, suggest that even at modest integrated luminosity the differential lepton distributions can rival much larger inclusive samples for PDF constraints.
Share X Bluesky LinkedIn Reddit HN

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, and a circularity audit.

Referee Report

2 major / 3 minor

Summary. This paper reports ATLAS measurements of single-differential W±-boson production cross sections as functions of lepton pT and |η|, double-differential cross sections in (|η|, pT), and the W-boson charge asymmetry, using dedicated low-pileup data at 5.02 TeV (255 pb−1) and 13 TeV (338 pb−1). The electron and muon channels are unfolded, combined, and compared with NNLO+NNLL predictions from DYTurbo with several PDF sets. A profiling study shows that the dσ/d|η| data can reduce valence-quark PDF uncertainties by roughly a factor of two near x≈0.004. The central claim is that the measurements agree with Standard-Model predictions; however, agreement for the pT distributions is asserted only qualitatively in the high-pT region, where a mild data excess over all predictions is acknowledged.

Significance. The data set is valuable: it includes the first ATLAS measurements of dσ/dpT and of double-differential W cross sections at these center-of-mass energies, and it exploits the low-pileup runs to achieve sub-percent precision in the bulk phase space. The analysis is carefully cross-checked between electron and muon channels and against the companion measurement in Ref. [14]. The profiling study is non-circular because the PDF sets used do not include the new 5.02 and 13 TeV W data. If the quoted systematic uncertainties are correct, the η distributions provide new constraints on valence-quark PDFs around x≈0.004. The main weakness is the absence of a quantitative goodness-of-fit for the pT distributions, which directly affects the headline agreement claim.

major comments (2)
  1. [Section 8.1, Figure 5] The abstract and Section 9 state that the measurements are in agreement with the NNLO+NNLL predictions, but the agreement for dσ/dpT is not quantified. The text in Section 8.1 acknowledges that in the high-pT tail all predictions are somewhat lower than the measurement, in particular for the 5.02 TeV W− channel, and that the total uncertainty there is up to 6% at 5.02 TeV, with the signal-generator uncertainty contributing up to 5% (Section 7). No χ2, pull, or p-value is given for these pT spectra, so the reader cannot determine whether the visible excess is a one-sigma fluctuation or a genuine discrepancy. Please add a quantitative comparison (e.g., χ2/ndof computed with the full covariance, or per-bin pulls) for the pT distributions, and qualify the abstract and conclusions if the high-pT excess is found to be significant.
  2. [Section 7] The signal-generator uncertainty is estimated by comparing Powheg+Pythia with Sherpa samples that are reweighted to the same PDFs and calibrated for recoil and vertex reconstruction. This assumes that the difference between these two generators brackets the true modeling uncertainty, an assumption that is most consequential in the high-pT tail, where this uncertainty dominates and where the data sit above all predictions. The paper should either provide evidence that this two-generator spread covers the relevant modeling uncertainty (for example, comparisons with an independent shower tune or with resummed predictions), or explicitly state the caveat in the agreement claim for the high-pT region.
minor comments (3)
  1. [Abstract and Section 1] The word 'pseudorapity' should be 'pseudorapidity' in the abstract and in the corresponding sentence in the introduction.
  2. [Section 8.3, Eq. (3)] The definition of Ndata in Eq. (3) is not stated explicitly; please specify that it is the number of combined dσ/d|η| data points entering the profiling χ2.
  3. [Table 2] The layout of Table 2 is difficult to parse, especially the entries for the correlated and total χ2 rows; please format the table so that the ndof and the χ2 values for each PDF set are unambiguous.

Circularity Check

0 steps flagged · score 1.0 of 10

No significant circularity: the agreement test and PDF-impact study use predictions and PDF sets that explicitly exclude the new 5.02/13 TeV W data.

full rationale

The claimed derivation chain is self-contained against external benchmarks. The measured cross-sections are unfolded from data using MC signal models, with the generator-related model dependence assigned as a systematic uncertainty, and then compared with DYTurbo predictions at NNLO+NNLL accuracy using five PDF sets (CT18, MSHT20, NNPDF3.1, NNPDF4.0, ATLASpdf21). The paper explicitly states that these PDF sets do not include the new measurements: 'These PDF sets are determined using datasets that include the LHC data from W-boson production at sqrt(s)=7 and 8 TeV but not at sqrt(s)=5.02 TeV and 13 TeV.' The agreement test is therefore not circular. The PDF-profiling study (Section 8.3) is presented as an expected-impact exercise: it feeds the measured dsigma/d|eta| into a chi^2-based profiling framework and shows how PDF uncertainties would shrink; because the profiled result is defined as a function of the same data, this is a transparent reweighting claim rather than a prediction derived from first principles, and the paper does not present it as an independent validation. Reliance on the companion ATLAS paper, Ref. [14], for shared analysis techniques, recoil calibration, and correlation assumptions is a self-citation, but Ref. [14] is a prior published measurement with its own data and does not supply the central agreement result, so it is not load-bearing. The acknowledged high-pT tail where 'all the predictions are somewhat lower than the measurement in particular for the 5.02 TeV W- -boson channel' is a goodness-of-fit or quantification concern (the paper gives no chi-square for dsigma/dpT), not a circularity: the data are visibly not forced into agreement with the theory. Overall, no step reduces by construction to the paper's own inputs.

Assumptions & free parameters 0 free parameters · 3 assumptions · 0 invented entities

The paper introduces no new free parameters, entities, or fundamental assumptions; it uses standard simulation, PDF, and background-estimation tooling from the literature. The key assumptions are domain assumptions about the accuracy of detector simulation, data-driven background extrapolation, and the theoretical predictions.

assumptions (3)
  • domain assumption The Monte Carlo detector simulation accurately models the response of the ATLAS detector for signal and background processes.
    Invoked in Section 6 where response matrices and purity corrections from simulated events are used to unfold the data; if the simulation is inaccurate, the unfolded cross sections would be biased.
  • domain assumption The multijet background yield in the signal region can be extrapolated from control regions using a linear function of the isolation variable, with the quadratic difference as a systematic.
    Section 5 and Figure 1; the multijet background is data-driven and this linearity is a modeling choice that affects the low-pT 13 TeV cross sections.
  • domain assumption The theory predictions at NNLO plus NNLL provide an accurate description of W production within the quoted uncertainties.
    Used throughout Section 8 to compare with data and in the PDF profiling; if the fixed-order or resummation predictions are inaccurate, the agreement conclusion could change.

how reviews work

0 comments
Cite this review

Pith. "Pith review of Measurement of $W^{\pm}$-boson differential cross-sections in proton-proton collisions with low pile-up data at $\sqrt{s} = 5.02$ TeV and $13$ TeV with the ATLAS detector." pith.science (2026). https://pith.science/paper/4KRJZBY4

@misc{pith2026250209403,
  author       = {Pith},
  title        = {Pith review of: Measurement of $W^\pm$-boson differential cross-sections in proton-proton collisions with low pile-up data at $\sqrts = 5.02$ TeV and $13$ TeV with the ATLAS detector},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/4KRJZBY4}},
  note         = {Machine review of arXiv:2502.09403}
}
abstract

High precision single-differential $W^\pm$-boson production cross-sections as a function of electron or muon transverse momentum $p_\mathrm{T}$ or their pseudorapity $\eta$, as well as double-differential cross-sections as functions of these variables, are measured in proton-proton collisions at centre-of-mass energies $\sqrt{s}=5.02$ TeV and 13 TeV. The $W$-boson charge asymmetry as a function of lepton $\eta$ is also measured. The data, collected in dedicated runs at reduced instantaneous luminosity with the ATLAS detector at the Large Hadron Collider, correspond to integrated luminosities of 255 pb$^{-1}$ at 5.02 TeV and 338 pb$^{-1}$ at 13 TeV. The measurements are in agreement with Standard-Model predictions calculated at next-to-next-to-leading-order in the strong coupling constant $\alpha_s$ including transverse-momentum resummation at next-to-next-to-leading logarithmic accuracy using several parton distribution functions. The impact of the measured differential cross-sections as a function of lepton $\eta$ on the determination of these functions is studied using a profiling technique.

Discussion (0). Continue with ORCID to comment.

Forward citations

Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Precision and rare ElectroWeak processes

    hep-ex 2025-06 conditional

    A proceedings review of LHC electroweak precision measurements, reporting consistency with Standard Model predictions across W/Z production, diboson, triboson, and vector-boson scattering processes.

Reference graph

Works this paper leans on

98 extracted references · 3 canonical work pages · cited by 1 Pith paper

  1. [14]

    ATLAS Collaboration, Precise measurements of𝑊- and𝑍-boson transverse momentum spectra with the ATLAS detector using𝑝𝑝 collisions at√𝑠= 5.02TeV and13TeV, Eur. Phys. J. C84(2024) 1126, arXiv:2404.06204 [hep-ex]

  2. [1]

    Hou et al., New CTEQ global analysis of quantum chromodynamics with high-precision data from the LHC, Phys

    T.-J. Hou et al., New CTEQ global analysis of quantum chromodynamics with high-precision data from the LHC, Phys. Rev. D103 (2021) 014013, arXiv:1912.10053 [hep-ph]

  3. [2]

    Cridge, L

    T. Cridge, L. A. Harland-Lang, A. D. Martin and R. S. Thorne, An investigation of the𝛼𝑆 and heavy quark mass dependence in the MSHT20 global PDF analysis, Eur. Phys. J. C81(2021) 744, arXiv:2106.10289 [hep-ph]. 21

  4. [3]

    Bailey, T

    S. Bailey, T. Cridge, L. A. Harland-Lang, A. D. Martin and R. S. Thorne, Parton distributions from LHC, HERA, Tevatron and fixed target data: MSHT20 PDFs, Eur. Phys. J. C81(2021) 341, arXiv:2012.04684 [hep-ph]

  5. [4]

    Cridge, L

    T. Cridge, L. A. Harland-Lang, A. D. Martin and R. S. Thorne, QED parton distribution functions in the MSHT20 fit, Eur. Phys. J. C82(2022) 90, arXiv: 2111.05357 [hep-ph]

  6. [5]

    NNPDF Collaboration, R. D. Ball et al.,Parton distributions from high-precision collider data, Eur. Phys. J. C77(2017) 663, arXiv:1706.00428 [hep-ph]

  7. [6]

    NNPDF Collaboration, R. D. Ball et al.,The path to proton structure at 1% accuracy, Eur. Phys. J. C82(2022) 428, arXiv:2109.02653 [hep-ph]

  8. [7]

    ATLAS Collaboration, Determination of the parton distribution functions of the proton using diverse ATLAS data from𝑝𝑝 collisions at√𝑠= 7, 8 and 13TeV, Eur. Phys. J. C82 (2022) 438, arXiv: 2112.11266 [hep-ex]

Show all 98 references
  1. [8]

    C. Duhr, F. Dulat and B. Mistlberger,Charged current Drell-Yan production at N3LO, JHEP11(2020) 143, arXiv:2007.13313 [hep-ph]

  2. [9]

    Chen et al., Transverse mass distribution and charge asymmetry in W boson production to third order in QCD, Phys

    X. Chen et al., Transverse mass distribution and charge asymmetry in W boson production to third order in QCD, Phys. Lett. B840 (2023) 137876, arXiv:2205.11426 [hep-ph]

  3. [10]

    Campbell and T

    J. Campbell and T. Neumann,Third order QCD predictions for fiducial W-boson production, JHEP11(2023) 127, arXiv:2308.15382 [hep-ph]

  4. [11]

    Bizoń et al.,The transverse momentum spectrum of weak gauge bosons at N3LL + NNLO, Eur

    W. Bizoń et al.,The transverse momentum spectrum of weak gauge bosons at N3LL + NNLO, Eur. Phys. J. C79(2019) 868, arXiv:1905.05171 [hep-ph]

  5. [12]

    Neumann and J

    T. Neumann and J. Campbell,Fiducial Drell-Yan production at the LHC improved by transverse-momentum resummation at N4LLp+N3LO, Phys. Rev. D107 (2023) L011506, arXiv: 2207.07056 [hep-ph]

  6. [13]

    Camarda, L

    S. Camarda, L. Cieri and G. Ferrera, Drell–Yan lepton-pair production:𝑞T resummation at N4LL+N4LO accuracy, Phys. Lett. B845 (2023) 138125, arXiv:2303.12781 [hep-ph]

  7. [15]

    CMS Collaboration,Measurement of the inclusive cross sections for𝑊 and𝑍 boson production in proton–proton collisions at√𝑠= 5.02 and 13TeV, JHEP04(2025) 162, arXiv: 2408.03744 [hep-ex]

  8. [16]

    ATLAS Collaboration, Measurements of𝑊 and𝑍 boson production in𝑝𝑝 collisions at√𝑠= 5.02TeV with the ATLAS detector, Eur. Phys. J. C79(2019) 128, arXiv: 1810.08424 [hep-ex], Erratum: Eur. Phys. J. C79(2019) 374

  9. [17]

    ATLAS Collaboration, Precision measurement and interpretation of inclusive𝑊+,𝑊− and𝑍/𝛾∗ production cross sections with the ATLAS detector, Eur. Phys. J. C77(2017) 367, arXiv: 1612.03016 [hep-ex]

  10. [18]

    ATLAS Collaboration, Measurement of the cross-section and charge asymmetry of𝑊 bosons produced in proton–proton collisions at√𝑠= 8TeV with the ATLAS detector, Eur. Phys. J. C79(2019) 760, arXiv:1904.05631 [hep-ex]. 22

  11. [19]

    CMS Collaboration, Measurement of the differential cross section and charge asymmetry for inclusive𝑝𝑝→𝑊±+𝑋 production at√𝑠= 8TeV, Eur. Phys. J. C76(2016) 469, arXiv: 1603.01803 [hep-ex]

  12. [20]

    LHCb Collaboration, Measurement of the forward𝑊 boson cross-section in𝑝𝑝 collisions at√𝑠= 7TeV, JHEP12(2014) 079, arXiv:1408.4354 [hep-ex]

  13. [21]

    LHCb Collaboration, Measurement of forward W and Z boson production in𝑝𝑝 collisions at√𝑠= 8TeV, JHEP01(2016) 155, arXiv:1511.08039 [hep-ex]

  14. [22]

    LHCb Collaboration,Measurement of forward𝑊→𝑒𝜈 production in𝑝𝑝 collisions at√𝑠= 8TeV, JHEP10(2016) 030, arXiv:1608.01484 [hep-ex]

  15. [23]

    CMS Collaboration, Measurements of the𝑊 boson rapidity, helicity, double-differential cross sections, and charge asymmetry in𝑝𝑝 collisions at√𝑠= 13TeV, Phys. Rev. D102 (2020) 092012, arXiv: 2008.04174 [hep-ex]

  16. [24]

    CMS Collaboration, Measurement of the electron charge asymmetry in inclusive𝑊 production in 𝑝𝑝 collisions at√𝑠= 7TeV, Phys. Rev. Lett.109 (2012) 111806, arXiv:1206.2598 [hep-ex]

  17. [25]

    CMS Collaboration, Measurement of the muon charge asymmetry in inclusive𝑝𝑝→𝑊+𝑋 production at√𝑠= 7TeV and an improved determination of light parton distribution functions, Phys. Rev. D90 (2014) 032004, arXiv:1312.6283 [hep-ex]

  18. [26]

    CDF Collaboration, Direct Measurement of the𝑊 Production Charge Asymmetry in𝑝 ¯𝑝 Collisions at√𝑠= 1.96 TeV, Phys. Rev. Lett.102 (2009) 181801, arXiv:0901.2169 [hep-ex]

  19. [27]

    D0 Collaboration, Measurement of the Muon Charge Asymmetry in𝑝 ¯𝑝→W+X→𝜇𝜈 + X Events at√𝑠=1.96 TeV, Phys. Rev. D88 (2013) 091102, arXiv:1309.2591 [hep-ex]

  20. [28]

    D0 Collaboration, Measurement of the electron charge asymmetry in𝑝 ¯𝑝→𝑊+𝑋→𝑒𝜈+𝑋 decays in𝑝 ¯𝑝 collisions at√𝑠= 1.96 TeV, Phys. Rev. D91 (2015) 032007, [Erratum: Phys.Rev.D 91, 079901 (2015)], arXiv: 1412.2862 [hep-ex]

  21. [29]

    CDF Collaboration, Measurement of the charge asymmetry of electrons from the decays of𝑊 bosons produced in𝑝 ¯𝑝 collisions at√𝑠= 1.96 TeV, Phys. Rev. D104 (2021) 092002, arXiv: 2107.04678 [hep-ex]

  22. [30]

    Paukkunen and P

    H. Paukkunen and P. Zurita,PDF reweighting in the Hessian matrix approach, JHEP12(2014) 100, arXiv: 1402.6623 [hep-ph]

  23. [31]

    Camarda et al., QCD analysis of𝑊- and𝑍-boson production at Tevatron, Eur

    HERAFitter developers’ team, S. Camarda et al., QCD analysis of𝑊- and𝑍-boson production at Tevatron, Eur. Phys. J. C75 (2015) 458, arXiv: 1503.05221 [hep-ph]

  24. [32]

    ATLAS Collaboration, The ATLAS Experiment at the CERN Large Hadron Collider, JINST3 (2008) S08003

  25. [33]

    ATLAS Collaboration, ATLAS Insertable B-Layer: Technical Design Report, ATLAS-TDR-19; CERN-LHCC-2010-013, 2010, url: https://cds.cern.ch/record/1291633, Addendum: ATLAS-TDR-19-ADD-1; CERN-LHCC-2012-009, 2012,url: https://cds.cern.ch/record/1451888. 23

  26. [34]

    Abbott et al.,Production and integration of the ATLAS Insertable B-Layer, JINST13 (2018) T05008, arXiv:1803.00844 [physics.ins-det]

    B. Abbott et al.,Production and integration of the ATLAS Insertable B-Layer, JINST13 (2018) T05008, arXiv:1803.00844 [physics.ins-det]

  27. [35]

    Avoni et al.,The new LUCID-2 detector for luminosity measurement and monitoring in ATLAS, JINST13 (2018) P07017

    G. Avoni et al.,The new LUCID-2 detector for luminosity measurement and monitoring in ATLAS, JINST13 (2018) P07017

  28. [36]

    ATLAS Collaboration, Performance of the ATLAS trigger system in 2015, Eur. Phys. J. C77(2017) 317, arXiv:1611.09661 [hep-ex]

  29. [37]

    ATLAS Collaboration, Software and computing for Run 3 of the ATLAS experiment at the LHC, (2024), arXiv:2404.06335 [hep-ex]

  30. [38]

    ATLAS Collaboration, Luminosity determination in𝑝𝑝 collisions at√𝑠= 13TeV using the ATLAS detector at the LHC, Eur. Phys. J. C83(2023) 982, arXiv:2212.09379 [hep-ex]

  31. [39]

    ATLAS Collaboration, Performance of electron and photon triggers in ATLAS during LHC Run 2, Eur. Phys. J. C80(2020) 47, arXiv:1909.00761 [hep-ex]

  32. [40]

    ATLAS Collaboration, Performance of the ATLAS muon triggers in Run 2, JINST15(2020) P09015, arXiv:2004.13447 [physics.ins-det]

  33. [41]

    ATLAS Collaboration, The ATLAS inner detector trigger performance in𝑝𝑝 collisions at13TeV during LHC Run 2, Eur. Phys. J. C82(2022) 206, arXiv:2107.02485 [hep-ex]

  34. [42]

    ATLAS Collaboration, The ATLAS Simulation Infrastructure, Eur. Phys. J. C70(2010) 823, arXiv: 1005.4568 [physics.ins-det]

  35. [43]

    Agostinelli et al.,Geant4 – a simulation toolkit, Nucl

    S. Agostinelli et al.,Geant4 – a simulation toolkit, Nucl. Instrum. Meth. A506 (2003) 250

  36. [44]

    Sjöstrand, S

    T. Sjöstrand, S. Mrenna and P. Skands,A brief introduction to PYTHIA 8.1, Comput. Phys. Commun.178 (2008) 852, arXiv:0710.3820 [hep-ph]

  37. [45]

    NNPDF Collaboration, R. D. Ball et al.,Parton distributions with LHC data, Nucl. Phys. B867 (2013) 244, arXiv:1207.1303 [hep-ph]

  38. [46]

    ATLAS Collaboration, The Pythia 8 A3 tune description of ATLAS minimum bias and inelastic measurements incorporating the Donnachie–Landshoff diffractive model, ATL-PHYS-PUB-2016-017, 2016,url: https://cds.cern.ch/record/2206965

  39. [47]

    Nason, A new method for combining NLO QCD with shower Monte Carlo algorithms, JHEP 11(2004) 040, arXiv:hep-ph/0409146

    P. Nason, A new method for combining NLO QCD with shower Monte Carlo algorithms, JHEP 11(2004) 040, arXiv:hep-ph/0409146

  40. [48]

    Frixione, P

    S. Frixione, P. Nason and C. Oleari, Matching NLO QCD computations with parton shower simulations: the POWHEG method, JHEP 11(2007) 070, arXiv:0709.2092 [hep-ph]

  41. [49]

    Alioli, P

    S. Alioli, P. Nason, C. Oleari and E. Re, NLO vector-boson production matched with shower in POWHEG, JHEP07 (2008) 060, arXiv: 0805.4802 [hep-ph]

  42. [50]

    Alioli, P

    S. Alioli, P. Nason, C. Oleari and E. Re,A general framework for implementing NLO calculations in shower Monte Carlo programs: the POWHEG BOX, JHEP06 (2010) 043, arXiv: 1002.2581 [hep-ph]

  43. [51]

    Lai et al.,New parton distributions for collider physics, Phys

    H.-L. Lai et al.,New parton distributions for collider physics, Phys. Rev. D82(2010) 074024, arXiv: 1007.2241 [hep-ph]. 24

  44. [52]

    Sjöstrand et al.,An introduction to PYTHIA 8.2, Comput

    T. Sjöstrand et al.,An introduction to PYTHIA 8.2, Comput. Phys. Commun.191 (2015) 159, arXiv: 1410.3012 [hep-ph]

  45. [53]

    ATLAS Collaboration, Measurement of the𝑍/𝛾∗ boson transverse momentum distribution in𝑝𝑝 collisions at√𝑠= 7TeV with the ATLAS detector, JHEP09(2014) 145, arXiv: 1406.3660 [hep-ex]

  46. [54]

    Golonka and Z

    P. Golonka and Z. Was, PHOTOS Monte Carlo: a precision tool for QED corrections in𝑍 and𝑊 decays, Eur. Phys. J. C45(2006) 97, arXiv:hep-ph/0506026

  47. [55]

    Bothmann et al.,Event generation with Sherpa 2.2, SciPost Phys.7(2019) 034, arXiv: 1905.09127 [hep-ph]

    E. Bothmann et al.,Event generation with Sherpa 2.2, SciPost Phys.7(2019) 034, arXiv: 1905.09127 [hep-ph]

  48. [56]

    NNPDF Collaboration, R. D. Ball et al.,Parton distributions for the LHC run II, JHEP04(2015) 040, arXiv:1410.8849 [hep-ph]

  49. [57]

    Gleisberg and S

    T. Gleisberg and S. Höche,Comix, a new matrix element generator, JHEP12(2008) 039, arXiv: 0808.3674 [hep-ph]

  50. [58]

    Buccioni et al.,OpenLoops 2, Eur

    F. Buccioni et al.,OpenLoops 2, Eur. Phys. J. C79(2019) 866, arXiv:1907.13071 [hep-ph]

  51. [59]

    Cascioli, P

    F. Cascioli, P. Maierhöfer and S. Pozzorini,Scattering Amplitudes with Open Loops, Phys. Rev. Lett.108 (2012) 111601, arXiv:1111.5206 [hep-ph]

  52. [60]

    Denner, S

    A. Denner, S. Dittmaier and L. Hofer, Collier: A fortran-based complex one-loop library in extended regularizations, Comput. Phys. Commun.212 (2017) 220, arXiv:1604.06792 [hep-ph]

  53. [61]

    Schumann and F

    S. Schumann and F. Krauss, A parton shower algorithm based on Catani–Seymour dipole factorisation, JHEP03(2008) 038, arXiv: 0709.1027 [hep-ph]

  54. [62]

    Höche, F

    S. Höche, F. Krauss, M. Schönherr and F. Siegert, A critical appraisal of NLO+PS matching methods, JHEP09 (2012) 049, arXiv: 1111.1220 [hep-ph]

  55. [63]

    Höche, F

    S. Höche, F. Krauss, M. Schönherr and F. Siegert, QCD matrix elements + parton showers. The NLO case, JHEP04(2013) 027, arXiv: 1207.5030 [hep-ph]

  56. [64]

    Catani, F

    S. Catani, F. Krauss, B. R. Webber and R. Kuhn,QCD Matrix Elements + Parton Showers, JHEP 11(2001) 063, arXiv:hep-ph/0109231

  57. [65]

    Höche, F

    S. Höche, F. Krauss, S. Schumann and F. Siegert,QCD matrix elements and truncated showers, JHEP 05(2009) 053, arXiv:0903.1219 [hep-ph]

  58. [66]

    Camarda et al.,DYTurbo: Fast predictions for Drell-Yan processes, Eur

    S. Camarda et al.,DYTurbo: Fast predictions for Drell-Yan processes, Eur. Phys. J. C80(2020) 251, [Erratum: Eur. Phys. J. C 80, 440 (2020)], arXiv: 1910.07049 [hep-ph]

  59. [67]

    Camarda, L

    S. Camarda, L. Cieri and G. Ferrera,Drell–Yan lepton-pair production:𝑞𝑇 resummation at N3LL accuracy and fiducial cross sections at N3LO, Phys. Rev. D104 (2021) L111503, arXiv: 2103.04974 [hep-ph]

  60. [68]

    Camarda, L

    S. Camarda, L. Cieri and G. Ferrera, Fiducial perturbative power corrections within theq𝑇 subtraction formalism, Eur. Phys. J. C82(2022) 575, arXiv:2111.14509 [hep-ph]. 25

  61. [69]

    Catani and M

    S. Catani and M. Grazzini,Next-to-Next-to-Leading-Order Subtraction Formalism in Hadron Collisions and its Application to Higgs-boson Production at the Large Hadron Collider, Phys. Rev. Lett.98(2007) 222002, arXiv:hep-ph/0703012 [hep-ph]

  62. [70]

    Catani, L

    S. Catani, L. Cieri, G. Ferrera, D. de Florian and M. Grazzini,Vector Boson Production at Hadron Colliders: A Fully Exclusive QCD Calculation at Next-to-Next-to-Leading Order, Phys. Rev. Lett.103 (2009) 082001, arXiv:0903.2120 [hep-ph]

  63. [71]

    L. A. Harland-Lang, A. D. Martin, P. Motylinski and R. S. Thorne, Parton distributions in the LHC era: MMHT 2014 PDFs, Eur. Phys. J. C75(2015) 204, arXiv: 1412.3989 [hep-ph]

  64. [72]

    ATLAS Collaboration, Multi-Boson Simulation for13TeV ATLAS Analyses, ATL-PHYS-PUB-2017-005, 2017,url: https://cds.cern.ch/record/2261933

  65. [73]

    ATLAS Collaboration, Study of top-quark pair modelling and uncertainties using ATLAS measurements at√𝑠= 13TeV, ATL-PHYS-PUB-2020-023, 2020,url: https://cds.cern.ch/record/2730443

  66. [74]

    Beneke, P

    M. Beneke, P. Falgari, S. Klein and C. Schwinn, Hadronic top-quark pair production with NNLL threshold resummation, Nucl. Phys. B855 (2012) 695, arXiv:1109.1536 [hep-ph]

  67. [75]

    Czakon, P

    M. Czakon, P. Fiedler and A. Mitov, Total Top-Quark Pair-Production Cross Section at Hadron Colliders ThroughO(𝛼4 𝑆), Phys. Rev. Lett.110 (2013) 252004, arXiv:1303.6254 [hep-ph]

  68. [76]

    Czakon and A

    M. Czakon and A. Mitov, Top++: A program for the calculation of the top-pair cross-section at hadron colliders, Comput. Phys. Commun.185 (2014) 2930, arXiv:1112.5675 [hep-ph]

  69. [77]

    ATLAS Collaboration,Vertex Reconstruction Performance of the ATLAS Detector at√𝑠= 13 TeV, ATL-PHYS-PUB-2015-026, 2015,url: https://cds.cern.ch/record/2037717

  70. [78]

    ATLAS Collaboration, Electron and photon performance measurements with the ATLAS detector using the 2015–2017 LHC proton–proton collision data, JINST14(2019) P12006, arXiv: 1908.00005 [hep-ex]

  71. [79]

    ATLAS Collaboration, Muon reconstruction and identification efficiency in ATLAS using the full Run 2𝑝𝑝 collision data set at√𝑠= 13TeV, Eur. Phys. J. C81(2021) 578, arXiv: 2012.00578 [hep-ex]

  72. [80]

    ATLAS Collaboration, Jet reconstruction and performance using particle flow with the ATLAS Detector, Eur. Phys. J. C77(2017) 466, arXiv:1703.10485 [hep-ex]

  73. [81]

    ATLAS Collaboration, Jet energy scale and resolution measured in proton–proton collisions at√𝑠= 13TeV with the ATLAS detector, Eur. Phys. J. C81(2021) 689, arXiv: 2007.02645 [hep-ex]

  74. [82]

    D’Agostini, A multidimensional unfolding method based on Bayes’ theorem, Nucl

    G. D’Agostini, A multidimensional unfolding method based on Bayes’ theorem, Nucl. Instrum. Meth. A362 (1995) 487

  75. [83]

    D’Agostini, Improved iterative Bayesian unfolding, (2010), arXiv: 1010.0632 [physics.data-an]

    G. D’Agostini, Improved iterative Bayesian unfolding, (2010), arXiv: 1010.0632 [physics.data-an]. 26

  76. [84]

    Dembinski, M

    H. Dembinski, M. Schmelling and R. Waldi, Application of the Iterated Weighted Least-Squares Fit to counting experiments, Nucl. Instrum. Meth. A940 (2019) 135, arXiv:1807.07911 [physics.data-an]

  77. [85]

    Lyons, D

    L. Lyons, D. Gibaut and P. Clifford, How to Combine Correlated Estimates of a Single Physical Quantity, Nucl. Instrum. Meth. A270 (1988) 110

  78. [86]

    Valassi, Combining correlated measurements of several different physical quantities, Nucl

    A. Valassi, Combining correlated measurements of several different physical quantities, Nucl. Instrum. Meth. A500 (2003) 391

  79. [87]

    ATLAS Collaboration,Studies of the muon momentum calibration and performance of the ATLAS detector with𝑝𝑝 collisions at√𝑠= 13TeV, Eur. Phys. J. C83 (2023) 686, arXiv: 2212.07338 [hep-ex]

  80. [88]

    ATLAS Collaboration, Measurement of inclusive jet and dijet cross-sections in proton–proton collisions at√𝑠= 13TeV with the ATLAS detector, JHEP05 (2018) 195, arXiv: 1711.02692 [hep-ex]

  81. [89]

    ATLAS Collaboration, Evaluating statistical uncertainties and correlations using the bootstrap method, ATL-PHYS-PUB-2021-011, 2021,url: https://cds.cern.ch/record/2759945

  82. [90]

    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, JHEP07(2014) 079, arXiv: 1405.0301 [hep-ph]

  83. [91]

    Carli et al.,A posteriori inclusion of parton density functions in NLO QCD final-state calculations at hadron colliders: the APPLGRID Project, Eur

    T. Carli et al.,A posteriori inclusion of parton density functions in NLO QCD final-state calculations at hadron colliders: the APPLGRID Project, Eur. Phys. J. C66 (2010) 503, arXiv: 0911.2985 [hep-ph]

  84. [92]

    Bertone, R

    V. Bertone, R. Frederix, S. Frixione, J. Rojo and M. Sutton, aMCfast: automation of fast NLO computations for PDF fits, JHEP08(2014) 166, arXiv: 1406.7693 [hep-ph]

  85. [93]

    H1 Collaboration, A precision measurement of the inclusive𝑒𝑝 scattering cross section at HERA, Eur. Phys. J. C64(2009) 561, arXiv:0904.3513 [hep-ex]

  86. [94]

    H1 and ZEUS collaborations,Combination and QCD analysis of charm and beauty production cross-section measurements in deep inelastic𝑒𝑝 scattering at HERA, Eur. Phys. J. C78 (2018) 473, arXiv: 1804.01019 [hep-ex]

  87. [95]

    Alekhin et al.,HERAFitter, Open Source QCD Fit Project, 2015, arXiv:1410.4412 [hep-ph]

    S. Alekhin et al.,HERAFitter, Open Source QCD Fit Project, 2015, arXiv:1410.4412 [hep-ph]

  88. [96]

    ATLAS Collaboration, Measurement of the production of a𝑊 boson in association with a charm quark in𝑝𝑝 collisions at√𝑠= 7TeV with the ATLAS detector, JHEP05 (2014) 068, arXiv: 1402.6263 [hep-ex]

  89. [97]

    ATLAS Collaboration,Determination of the parton distribution functions of the proton from ATLAS measurements of differential𝑊± and𝑍 boson production in association with jets, JHEP07(2021) 223, arXiv:2101.05095 [hep-ex]

  90. [98]

    Demokritos

    ATLAS Collaboration, ATLAS Computing Acknowledgements, ATL-SOFT-PUB-2025-001, 2025, url: https://cds.cern.ch/record/2922210. 27 The ATLAS Collaboration G. Aad 104, E. Aakvaag 17, B. Abbott 123, S. Abdelhameed 119a, K. Abeling 55, N.J. Abicht 49, S.H. Abidi 30, M. Aboelela 45, ...

Pith tools

Reviewed August 7, 2026 · model on record in the stance chip above.