REVIEW 2 major objections 4 minor 106 references
This search excludes long-lived stau masses between 90 and 425 GeV (mass-degenerate scenario) at 95% confidence, using a graph neural network to spot tau leptons decaying far from the proton-proton collision point.
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
T0 review · deepseek-v4-flash
2026-08-03 08:14 UTC pith:2B5W2KYZ
load-bearing objection A clean, internally consistent CMS exclusion that extends long-lived stau limits with a new GNN tagger; the displaced-tau efficiency is the one soft spot, but it is disclosed and not severe enough to sink the central claim. the 2 major comments →
Search for the pair production of long-lived supersymmetric partners of the tau lepton in proton-proton collisions at sqrt{s} = 13 TeV
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The paper's central claim is an exclusion: using a fully data-driven background estimate, the observed signal region agrees with the standard model, and 95% CL limits rule out stau masses of 126–260 GeV (maximally mixed) and 90–425 GeV (mass-degenerate) at a proper decay length of 50 mm, as well as proper decay lengths of 21–94 and 6–333 mm for a 200 GeV stau. This is achieved with DISTAU, a graph neural network that identifies hadronic tau decays displaced from the primary vertex—the first dedicated displaced-tau tagger used in an LHC search.
What carries the argument
The key machinery is DISTAU, a graph neural network based on a point-cloud architecture that scores jets by how well they match a hadronic tau decay originating away from the primary vertex, using per-particle features such as track impact parameters. The analysis also uses a binomial decomposition of events with zero, one, or two jets passing the tight tag (T0/T1/T2): the per-jet misidentification probability f, measured in W+jets control data as a function of jet pT and |dxy|, predicts the signal-region yield from the T0 and T1 counts via Equations 4–8.
Load-bearing premise
The background prediction assumes that the jet misidentification probability measured in the W+jets control region, corrected by a simulation-based flavor-composition factor of about 10%, also holds for the signal region, and that the DISTAU efficiency measured using prompt taus applies unchanged to displaced taus regardless of decay distance.
What would settle it
A single concrete test: repeat the measurement of f in the Drell-Yan control region after applying the same flavor correction; if the corrected f differs from the W+jets value by more than the 10% systematic envelope, the predicted background changes by more than its quoted uncertainty. The already-reported T1-region closure agrees, so a sharper falsifier is the 2022–2025 dataset: an excess in the signal-region bins with mT2 above 100 GeV would overturn the exclusion.
If this is right
- If correct, this rules out the considered simplified GMSB models in the excluded (m_stau, c_tau0) window, meaning any surviving stau scenario in that region must have a much smaller production cross section or a different decay length.
- The DISTAU tagger provides a reusable tool for any LHC search with displaced hadronic taus, e.g., from heavy neutral leptons or exotic Higgs decays, and the data-driven background method can be transferred to other di-object displaced searches.
- The exclusion improves on earlier long-lived stau searches in this lifetime range and is complementary to searches at very short (< 2.5 mm) and very long (> 900 mm) lifetimes, together covering a broader slice of GMSB parameter space.
Where Pith is reading between the lines
- The tagger was calibrated on prompt taus; if its efficiency falls off with decay distance more steeply than simulated, the deep end of the excluded lifetime range (hundreds of mm) is where the limit would be most susceptible to revision—a dedicated d_xy-dependent efficiency measurement would settle this.
- The same architecture should transfer to displaced hadronic jets without tau content; retraining on generic displaced jets could extend this style of search to a wide class of long-lived particles that decay hadronically.
- The result is a bound on a simplified model; a real GMSB spectrum with a heavier gravitino or with stau pair production via chargino/neutralino decays would shift the production rate, so the numerical exclusions should not be read as a universal stau limit.
- As more Run 3 data accumulate, the event categories with mT2 > 100 GeV should be watched first: a handful of events there would directly test the exclusion and the mT2 endpoint interpretation.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper presents a search for direct pair production of long-lived staus (τ~) decaying to a tau lepton and a nearly massless gravitino in CMS data corresponding to 138 fb^-1 at √s=13 TeV. The final state is two hadronically decaying tau leptons, identified with a new graph-neural-network tagger (DISTAU) designed for displaced topologies. The dominant background from jets misidentified as displaced taus is estimated from data using a misidentification probability measured in W+jets and DY control regions, applied through a T0/T1/T2 decomposition, and validated in a dedicated BRT1 region. No excess is observed; 95% CL exclusion limits are set in the (m_τ~, cτ0) plane for maximally mixed and mass-degenerate scenarios, e.g., excluding m_τ~ in the ranges 126–260 GeV and 90–425 GeV at cτ0=50 mm, and excluding cτ0 in 21–94 mm and 6–333 mm at m_τ~=200 GeV. The results improve previous limits by factors up to about 5.7.
Significance. If correct, the result significantly extends the excluded parameter space for gauge-mediated SUSY-breaking scenarios with long-lived staus, and it is the first LHC search to use a dedicated GNN-based displaced-tau identification algorithm. The analysis is methodologically strong: the background is estimated from data rather than simulation, control-region cross-checks are provided, a full systematic-uncertainty budget is reported, and tabulated results are made available via HEPData. The main caveat is the calibration of the DISTAU efficiency using prompt taus as a proxy for displaced taus; the paper includes a signal systematic of 17–19% from this source, but the extrapolation to the large impact parameters characteristic of the signal is not directly validated in data.
major comments (2)
- [Section 4.2 / Table 3] The DISTAU efficiency scale factor is measured with prompt τ_h probes from Z→ττ in the μτ_h control region. The |d_xy| distribution of these probes is set by the short tau decay length (a few mm), whereas signal events with cτ0=50 mm produce hadronic-tau candidates with |d_xy| of order tens of mm. The text states that no d_xy dependence of the SF is observed, but it does not give the d_xy range over which this was tested. Since the SF uncertainty (0.15 per candidate, propagated to 17–19% event-level uncertainty in Table 3) is a dominant signal systematic for several mass hypotheses, an unmodeled efficiency bias at large d_xy would directly shift the quoted exclusion boundaries. Please quantify the d_xy coverage of the tag-and-probe sample, provide a simulation-based closure test of the SF at large d_xy, or add an additional uncertainty covering the extrapolation and show its effect on th
- [Section 7] The correction of 0.7±0.3 applied to the SR for the first 19 fb^-1 of 2016 data is derived from a discrepancy observed in the BRT1 validation region and attributed to APV25 saturation. This is an ad hoc, post-hoc correction, and the statement that it has a negligible effect on the final results is not demonstrated quantitatively. Please show the background prediction and the observed/expected limits with and without this correction, and discuss whether the same correction should apply to the signal efficiency or only to the background. If the effect is indeed negligible, a quantitative demonstration would remove concern; if not, the result depends on a correction whose cause is only 'possibly' identified.
minor comments (4)
- [Section 4.2 / Table 3] The text reports a per-candidate DISTAU scale-factor uncertainty of 0.15, while Table 3 quotes an event-level signal uncertainty of 17–19%. Please clarify how the per-candidate uncertainty is propagated to the two-tau event yield, including the assumed correlation between the two candidates.
- [Section 3 / Fig. 7] Section 3 states that signal samples are simulated with cτ0 values up to 600 mm, while the introduction and exclusion plots extend to 1000 mm. Please state explicitly how the limits above 600 mm are obtained (interpolation/extrapolation) and whether this affects the large-cτ0 boundary.
- [Section 5 / Eq. (3)] The mT2 definition would benefit from a sentence clarifying that 'vis1' and 'vis2' are the two τ_h^dis candidates and that the invisible particles are assumed massless, even though the gravitino mass is 1 GeV in the model.
- [General] There are several typographical inconsistencies in the rendering of stau mass (e.g., 'm eτ', 'm eτ' in the abstract and text). These should be corrected to a consistent math-mode notation. In the Fig. 3 caption, 'DY(μτ_h)' is used before being defined in the text; a brief definition in the caption would help.
Circularity Check
No significant circularity: background is predicted from orthogonal control regions and the DISTAU efficiency is calibrated in data; limits are set by profile-likelihood fits to SR counts.
full rationale
The search chain is not circular. The background estimate (Sec. 6) defines f = n_jet(WPT)/n_jet(WPL) in Eq. (4), measures it in the W+jets control region (cross-checked in the DY control region), and predicts N_T1/N_T2 in the baseline regions via Eqs. (6)-(8); no SR event count enters the measurement of f or the predictions, and the N_T21 vs N_T20 difference is propagated as a systematic uncertainty. The DISTAU efficiency correction (Sec. 4.2) is measured in the mu-tauh control region using a simultaneous invariant-mass fit; this is a data scale-factor applied to simulated signal acceptance, not a fit of the model to the observed SR. The paper itself flags the proxy limitation: 'As there are no truly signal-like tau_dis_h candidates in SM processes, the tau_h in the event serves as a proxy to evaluate the identification efficiency.' This is an extrapolation assumption, not a circular definition: it could bias the SF, but it does not make the exclusion reduce to the fitted inputs. The only self-referential input is Ref. [45] (CMS DP note) for the DISTAU tagger itself; the paper independently measures the per-candidate SF and studies its dxy dependence ('no significant dependence is observed'), so that citation is a tool/calibration reference rather than a load-bearing theorem. The 95% CL exclusions are derived from observed SR yields via a CLs profile-likelihood fit, i.e., from counts compared with the predicted background. Therefore no circular step is present; score 1 reflects only the minor self-citation in the tagger reference, which does not make the derivation circular.
Axiom & Free-Parameter Ledger
free parameters (3)
- 2016 early-data correction factor =
0.7 ± 0.3
- DISTAU efficiency scale factor (per year) =
within 10% of unity; uncertainty 0.15
- Jet misidentification probability f (pT, |dxy| bins) =
approx. 10-20% in pT bins; 5-10% and 30-40% in |dxy| bins depending on period
axioms (7)
- domain assumption GMSB simplified model: stau is the NLSP and decays as stau -> tau + gravitino with m_gravitino = 1 GeV and 100% branching ratio.
- domain assumption R-parity is conserved, so the gravitino LSP is stable and escapes the detector.
- domain assumption Stau pair production cross sections are taken from NLO+NLL pQCD calculations (Resummino) with NNPDF PDFs.
- domain assumption The DISTAU tagger, trained on simulated displaced-tau jets and QCD jets, generalizes to data after per-year scale factors.
- domain assumption Background jets in the signal region have misidentification probabilities related to those measured in W+jets/DY control regions by a simulation-based correction of ~10%.
- domain assumption The two tau-displaced candidates' misidentification probabilities factorize as in Eqs. (5a)-(5c).
- domain assumption Leptons and genuine tau leptons misidentified as displaced taus contribute negligibly (<0.1 events per bin).
read the original abstract
Gauge-mediated supersymmetry-breaking models provide a strong motivation to search for a supersymmetric partner of the tau lepton (stau) with a macroscopic lifetime. Long-lived stau decays produce tau leptons that are displaced from the primary proton-proton interaction vertex, leading to an unconventional signature. This paper presents a search for the direct production of long-lived staus decaying within the CMS tracker volume in proton-proton collisions at $\sqrt{s}$ = 13 TeV, performed for the first time with an identification algorithm based on a graph neural network dedicated to displaced tau leptons. The data sample, corresponding to an integrated luminosity of 138 fb$^{-1}$, was recorded with the CMS experiment at the CERN LHC between 2016 and 2018. This search excludes, at 95% confidence level, stau masses, $m_\tilde{\tau}$, in the 126$-$260 (90$-$425) GeV range for a proper decay length of 50 mm in the maximally mixed (mass-degenerate) scenario, while for $m_\tilde{\tau} $ = 200 GeV, stau proper decay lengths are excluded in the range 21$-$94 (6$-$333) mm. These results improve the exclusion limits compared to previous searches, and extend the parameter space explored in the context of supersymmetry.
Figures
Reference graph
Works this paper leans on
-
[1]
P . Ramond, “Dual theory for free fermions”,Phys. Rev. D3(1971) 2415, doi:10.1103/PhysRevD.3.2415
-
[2]
Extension of the algebra of Poincar´e group generators and violation of p invariance
Yu. A. Golfand and E. P . Likhtman, “Extension of the algebra of Poincar´e group generators and violation of p invariance”,JETP Lett.13(1971) 323, doi:10.1142/9789814542340_0001
-
[3]
Factorizable dual model of pions
A. Neveu and J. H. Schwarz, “Factorizable dual model of pions”,Nucl. Phys. B31 (1971) 86,doi:10.1016/0550-3213(71)90448-2
-
[4]
Possible universal neutrino interaction
D. V . Volkov and V . P . Akulov, “Possible universal neutrino interaction”,JETP Lett.16 (1972) 438
1972
-
[5]
A Lagrangian model invariant under supergauge transformations
J. Wess and B. Zumino, “A Lagrangian model invariant under supergauge transformations”,Phys. Lett. B49(1974) 52, doi:10.1016/0370-2693(74)90578-4
-
[6]
Supergauge transformations in four dimensions
J. Wess and B. Zumino, “Supergauge transformations in four dimensions”,Nucl. Phys. B 70(1974) 39,doi:10.1016/0550-3213(74)90355-1. 22
-
[7]
Supergauge invariant extension of the Higgs mechanism and a model for the electron and its neutrino
P . Fayet, “Supergauge invariant extension of the Higgs mechanism and a model for the electron and its neutrino”,Nucl. Phys. B90(1975) 104, doi:10.1016/0550-3213(75)90636-7
-
[8]
Supersymmetry, supergravity and particle physics
H. P . Nilles, “Supersymmetry, supergravity and particle physics”,Phys. Rept.110(1984) 1,doi:10.1016/0370-1573(84)90008-5
-
[9]
Naturalness, chiral symmetry, and spontaneous chiral symmetry breaking
G. ’t Hooft, “Naturalness, chiral symmetry, and spontaneous chiral symmetry breaking”,NATO Sci. Ser. B59(1980) 135,doi:10.1007/978-1-4684-7571-5_9
-
[10]
Dynamical breaking of supersymmetry
E. Witten, “Dynamical breaking of supersymmetry”,Nucl. Phys. B188(1981) 513, doi:10.1016/0550-3213(81)90006-7
-
[11]
M. Dine, W. Fischler, and M. Srednicki, “Supersymmetric technicolor”,Nucl. Phys. B 189(1981) 575,doi:10.1016/0550-3213(81)90582-4
-
[12]
S. Dimopoulos and S. Raby, “Supercolor”,Nucl. Phys. B192(1981) 353, doi:10.1016/0550-3213(81)90430-2
-
[13]
Softly broken supersymmetry and SU(5)
S. Dimopoulos and H. Georgi, “Softly broken supersymmetry and SU(5)”,Nucl. Phys. B 193(1981) 150,doi:10.1016/0550-3213(81)90522-8
-
[14]
R. K. Kaul and P . Majumdar, “Cancellation of quadratically divergent mass corrections in globally supersymmetric spontaneously broken gauge theories”,Nucl. Phys. B199 (1982) 36,doi:10.1016/0550-3213(82)90565-X
-
[15]
ATLAS Collaboration, “Observation of a new particle in the search for the standard model Higgs boson with the ATLAS detector at the LHC”,Phys. Lett. B716(2012) 1, doi:10.1016/j.physletb.2012.08.020,arXiv:1207.7214
Pith/arXiv arXiv 2012
-
[16]
Observation of a new boson at a mass of 125 GeV with the CMS experiment at the LHC
CMS Collaboration, “Observation of a new boson at a mass of 125 GeV with the CMS experiment at the LHC”,Phys. Lett. B716(2012) 30, doi:10.1016/j.physletb.2012.08.021,arXiv:1207.7235
Pith/arXiv arXiv 2012
-
[17]
Observation of a new boson with mass near 125 GeV in ppcollisions at √s= 7 and 8 TeV
CMS Collaboration, “Observation of a new boson with mass near 125 GeV in ppcollisions at √s= 7 and 8 TeV”,JHEP06(2013) 081, doi:10.1007/JHEP06(2013)081,arXiv:1303.4571
Pith/arXiv arXiv 2013
-
[18]
ATLAS Collaboration, “Measurement of the Higgs boson mass from the H→γγand H→ZZ ∗ →4ℓchannels with the ATLAS detector using 25 fb −1 ofppcollision data”, Phys. Rev. D90(2014) 052004,doi:10.1103/PhysRevD.90.052004, arXiv:1406.3827
Pith/arXiv arXiv 2014
-
[19]
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”,Eur. Phys. J. C75(2015) 212, doi:10.1140/epjc/s10052-015-3351-7,arXiv:1412.8662
Pith/arXiv arXiv 2015
-
[20]
ATLAS and CMS Collaborations, “Combined measurement of the Higgs boson mass in pp collisions at √s=7 and 8 TeV with the ATLAS and CMS experiments”,Phys. Rev. Lett.114(2015) 191803,doi:10.1103/PhysRevLett.114.191803, arXiv:1503.07589. References 23
Pith/arXiv arXiv 2015
-
[21]
G. R. Farrar and P . Fayet, “Phenomenology of the production, decay, and detection of new hadronic states associated with supersymmetry”,Phys. Lett. B76(1978) 575, doi:10.1016/0370-2693(78)90858-4
-
[22]
Light scalar top quarks and supersymmetric dark matter
C. Boehm, A. Djouadi, and M. Drees, “Light scalar top quarks and supersymmetric dark matter”,Phys. Rev. D62(2000) 035012,doi:10.1103/PhysRevD.62.035012, arXiv:hep-ph/9911496
Pith/arXiv arXiv 2000
-
[23]
Dark matter, light stops and electroweak baryogenesis
C. Bal ´azs, M. Carena, and C. E. M. Wagner, “Dark matter, light stops and electroweak baryogenesis”,Phys. Rev. D70(2004) 015007,doi:10.1103/PhysRevD.70.015007, arXiv:hep-ph/403224
-
[24]
G. Jungman, M. Kamionkowski, and K. Griest, “Supersymmetric dark matter”,Phys. Rept.267(1996) 195,doi:10.1016/0370-1573(95)00058-5, arXiv:hep-ph/9506380
Pith/arXiv arXiv 1996
-
[25]
Particle Data Group, S. Navas et al., “Review of particle physics”,Phys. Rev. D110 (2024) 030001,doi:10.1103/PhysRevD.110.030001
-
[26]
Theories with gauge mediated supersymmetry breaking
G. F. Giudice and R. Rattazzi, “Theories with gauge mediated supersymmetry breaking”,Phys. Rept.322(1999) 419,doi:10.1016/S0370-1573(99)00042-3, arXiv:hep-ph/9801271
Pith/arXiv arXiv 1999
-
[27]
P . Meade, N. Seiberg, and D. Shih, “General gauge mediation”,Prog. Theor. Phys. Suppl. 177(2009) 143,doi:10.1143/PTPS.177.143,arXiv:0801.3278
Pith/arXiv arXiv 2009
-
[28]
Long-lived staus and displaced leptons at the LHC
J. A. Evans and J. Shelton, “Long-lived staus and displaced leptons at the LHC”,JHEP 04(2016) 056,doi:10.1007/JHEP04(2016)056,arXiv:1601.01326
Pith/arXiv arXiv 2016
-
[29]
Search for scalar leptons ine +e− collisions at center-of-mass energies up to 209 GeV
ALEPH Collaboration, “Search for scalar leptons ine +e− collisions at center-of-mass energies up to 209 GeV”,Phys. Lett. B526(2002) 206, doi:10.1016/S0370-2693(01)01494-0,arXiv:hep-ex/0112011
Pith/arXiv arXiv 2002
-
[30]
DELPHI Collaboration, “Searches for supersymmetric particles ine +e− collisions up to 208 GeV and interpretation of the results within the MSSM”,Eur. Phys. J. C31(2003) 421,doi:10.1140/epjc/s2003-01355-5,arXiv:hep-ex/0311019
Pith/arXiv arXiv 2003
-
[31]
Search for scalar leptons and scalar quarks at LEP
L3 Collaboration, “Search for scalar leptons and scalar quarks at LEP”,Phys. Lett. B580 (2004) 37,doi:10.1016/j.physletb.2003.10.010,arXiv:hep-ex/0310007
Pith/arXiv arXiv 2004
-
[32]
OPAL Collaboration, “Search for anomalous production of dilepton events with missing transverse momentum in e+ e- collisions at √s=183–209 GeV”,Eur. Phys. J. C32 (2004) 453,doi:10.1140/epjc/s2003-01466-y,arXiv:hep-ex/0309014
Pith/arXiv arXiv 2004
-
[33]
ATLAS Collaboration, “Search for direct stau production in events with two hadronic τ-leptons in √s=13 TeVppcollisions with the ATLAS detector”,Phys. Rev. D101 (2020) 032009,doi:10.1103/PhysRevD.101.032009,arXiv:1911.06660
Pith/arXiv arXiv 2020
-
[34]
CMS Collaboration, “Search for direct pair production of supersymmetric partners to theτlepton in proton-proton collisions at √s=13 TeV”,Eur. Phys. J. C80(2020) 189, doi:10.1140/epjc/s10052-020-7739-7,arXiv:1907.13179
Pith/arXiv arXiv 2020
-
[35]
Search for displaced leptons in √s=13 TeVppcollisions with the ATLAS detector
ATLAS Collaboration, “Search for displaced leptons in √s=13 TeVppcollisions with the ATLAS detector”,Phys. Rev. Lett.127(2021) 051802, doi:10.1103/PhysRevLett.127.051802,arXiv:2011.07812. 24
Pith/arXiv arXiv 2021
-
[36]
CMS Collaboration, “Search for direct pair production of supersymmetric partners ofτ leptons in the final state with two hadronically decayingτleptons and missing transverse momentum in proton-proton collisions at √s= 13 TeV”,Phys. Rev. D108 (2023) 012011,doi:10.1103/PhysRevD.108.012011,arXiv:2207.02254
Pith/arXiv arXiv 2023
-
[37]
CMS Collaboration, “Search for long-lived particles decaying to leptons with large impact parameter in proton–proton collisions at √s=13 TeV”,Eur. Phys. J. C82(2022) 153,doi:10.1140/epjc/s10052-022-10027-3,arXiv:2110.04809
Pith/arXiv arXiv 2022
-
[38]
ATLAS Collaboration, “Search for electroweak production of supersymmetric particles in final states with twoτ-leptons in √s= 13 TeV pp collisions with the ATLAS detector”, JHEP05(2024) 150,doi:10.1007/JHEP05(2024)150,arXiv:2402.00603
Pith/arXiv arXiv 2024
-
[39]
ATLAS Collaboration, “Search for long-lived charged particles using large specific ionisation loss and time of flight in 140 fb−1 of pp collisions at √s= 13 TeV with the ATLAS detector”,JHEP07(2025) 140,doi:10.1007/JHEP07(2025)140, arXiv:2502.06694
arXiv 2025
-
[40]
ATLAS Collaboration, “Search for the direct production of charginos, neutralinos and staus in final states with at least two hadronically decaying taus and missing transverse momentum inppcollisions at √s= 8 TeV with the ATLAS detector”,JHEP10(2014) 096,doi:10.1007/JHEP10(2014)096,arXiv:1407.0350
Pith/arXiv arXiv 2014
-
[41]
ATLAS Collaboration, “Search for the electroweak production of supersymmetric particles in √s=8 TeVppcollisions with the ATLAS detector”,Phys. Rev. D93(2016) 052002,doi:10.1103/PhysRevD.93.052002,arXiv:1509.07152
Pith/arXiv arXiv 2016
-
[42]
CMS Collaboration, “Search for electroweak production of charginos in final states with twoτleptons in pp collisions at √s=8 TeV”,JHEP04(2017) 018, doi:10.1007/JHEP04(2017)018,arXiv:1610.04870
Pith/arXiv arXiv 2017
-
[43]
CMS Collaboration, “Performance of reconstruction and identification ofτleptons decaying to hadrons and vτ in pp collisions at √s=13 TeV”,JINST13(2018) P10005, doi:10.1088/1748-0221/13/10/p10005,arXiv:1809.02816
Pith/arXiv arXiv 2018
-
[44]
Identification of hadronic tau lepton decays using a deep neural network
CMS Collaboration, “Identification of hadronic tau lepton decays using a deep neural network”,JINST17(2022) P07023,doi:10.1088/1748-0221/17/07/P07023, arXiv:2201.08458
Pith/arXiv arXiv 2022
-
[45]
Tau lepton identification in displaced topologies using machine learning at CMS
CMS Collaboration, “Tau lepton identification in displaced topologies using machine learning at CMS”, CMS Detector Performance Summary CMS-DP-2024-053, 2024
2024
-
[46]
Simplified models for a first characterization of new physics at the LHC
J. Alwall, P . Schuster, and N. Toro, “Simplified models for a first characterization of new physics at the LHC”,Phys. Rev. D79(2009) 075020, doi:10.1103/PhysRevD.79.075020,arXiv:0810.3921
Pith/arXiv arXiv 2009
-
[47]
Simplified models for LHC new physics searches
LHC New Physics Working Group, “Simplified models for LHC new physics searches”, J. Phys. G39(2012) 105005,doi:10.1088/0954-3899/39/10/105005, arXiv:1105.2838
Pith/arXiv arXiv 2012
-
[48]
Jet tagging via particle clouds
H. Qu and L. Gouskos, “Jet tagging via particle clouds”,Phys. Rev. D101(2020) 056019, doi:10.1103/PhysRevD.101.056019,arXiv:1902.08570
Pith/arXiv arXiv 2020
-
[49]
HEPData record for this analysis, 2025.doi:10.17182/hepdata.166010. References 25
-
[50]
The CMS experiment at the CERN LHC
CMS Collaboration, “The CMS experiment at the CERN LHC”,JINST3(2008) S08004, doi:10.1088/1748-0221/3/08/S08004
-
[51]
Development of the CMS detector for the CERN LHC Run 3
CMS Collaboration, “Development of the CMS detector for the CERN LHC Run 3”, JINST19(2024) P05064,doi:10.1088/1748-0221/19/05/P05064, arXiv:2309.05466
Pith/arXiv arXiv 2024
-
[52]
Performance of the CMS level-1 trigger in proton-proton collisions at √s=13 TeV
CMS Collaboration, “Performance of the CMS level-1 trigger in proton-proton collisions at √s=13 TeV”,JINST15(2020) P10017, doi:10.1088/1748-0221/15/10/P10017,arXiv:2006.10165
Pith/arXiv arXiv 2020
-
[53]
CMS Collaboration, “The CMS trigger system”,JINST12(2017) P01020, doi:10.1088/1748-0221/12/01/P01020,arXiv:1609.02366
Pith/arXiv arXiv 2017
-
[54]
Performance of the CMS high-level trigger during LHC Run 2
CMS Collaboration, “Performance of the CMS high-level trigger during LHC Run 2”, JINST19(2024) P11021,doi:10.1088/1748-0221/19/11/P11021, arXiv:2410.17038
Pith/arXiv arXiv 2024
-
[55]
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,doi:10.1007/JHEP07(2014)079,arXiv:1405.0301
Pith/arXiv arXiv 2014
-
[56]
Parton distributions for the LHC Run II
NNPDF Collaboration, “Parton distributions for the LHC Run II”,JHEP04(2015) 040, doi:10.1007/JHEP04(2015)040,arXiv:1410.8849
Pith/arXiv arXiv 2015
-
[57]
Parton distributions from high-precision collider data
NNPDF Collaboration, “Parton distributions from high-precision collider data”,Eur. Phys. J. C77(2017) 663,doi:10.1140/epjc/s10052-017-5199-5, arXiv:1706.00428
Pith/arXiv arXiv 2017
-
[58]
Revisiting slepton pair production at the Large Hadron Collider
B. Fuks, M. Klasen, D. R. Lamprea, and M. Rothering, “Revisiting slepton pair production at the Large Hadron Collider”,JHEP01(2014) 168, doi:10.1007/JHEP01(2014)168,arXiv:1310.2621
Pith/arXiv arXiv 2014
-
[59]
Precision predictions for electroweak superpartner production at hadron colliders with Resummino
B. Fuks, M. Klasen, D. R. Lamprea, and M. Rothering, “Precision predictions for electroweak superpartner production at hadron colliders with Resummino”,Eur. Phys. J. C73(2013) 2480,doi:10.1140/epjc/s10052-013-2480-0,arXiv:1304.0790
Pith/arXiv arXiv 2013
-
[60]
Electroweak superpartner production at 13.6 Tev with Resummino
J. Fiaschi, B. Fuks, M. Klasen, and A. Neuwirth, “Electroweak superpartner production at 13.6 Tev with Resummino”,Eur. Phys. J. C83(2023) 707, doi:10.1140/epjc/s10052-023-11888-y,arXiv:2304.11915
Pith/arXiv arXiv 2023
-
[61]
Slepton pair production at the LHC in NLO+NLL with resummation-improved parton densities
J. Fiaschi and M. Klasen, “Slepton pair production at the LHC in NLO+NLL with resummation-improved parton densities”,JHEP03(2018) 094, doi:10.1007/JHEP03(2018)094,arXiv:1801.10357
Pith/arXiv arXiv 2018
-
[62]
Joint resummation for slepton pair production at hadron colliders
G. Bozzi, B. Fuks, and M. Klasen, “Joint resummation for slepton pair production at hadron colliders”,Nucl. Phys. B794(2008) 46, doi:10.1016/j.nuclphysb.2007.10.021,arXiv:0709.3057
Pith/arXiv arXiv 2008
-
[63]
Transverse-momentum resummation for slepton-pair production at the CERN LHC
G. Bozzi, B. Fuks, and M. Klasen, “Transverse-momentum resummation for slepton-pair production at the CERN LHC”,Phys. Rev. D74(2006) 015001, doi:10.1103/PhysRevD.74.015001,arXiv:hep-ph/0603074
Pith/arXiv arXiv 2006
-
[64]
A. P . Neuwirth, “HEPi”, 2024.doi:10.5281/zenodo.8430836. 26
-
[65]
C. Oleari, “The POWHEG-BOX”,Nucl. Phys. B Proc. Suppl.205-206(2010) 36, doi:10.1016/j.nuclphysbps.2010.08.016,arXiv:1007.3893
Pith/arXiv arXiv 2010
-
[66]
A new method for combining NLO QCD with shower Monte Carlo algorithms
P . Nason, “A new method for combining NLO QCD with shower Monte Carlo algorithms”,JHEP11(2004) 040,doi:10.1088/1126-6708/2004/11/040, arXiv:hep-ph/0409146
Pith/arXiv arXiv 2004
-
[67]
Matching NLO QCD computations with parton shower simulations: the POWHEG method
S. Frixione, P . Nason, and C. Oleari, “Matching NLO QCD computations with parton shower simulations: the POWHEG method”,JHEP11(2007) 070, doi:10.1088/1126-6708/2007/11/070,arXiv:0709.2092
Pith/arXiv arXiv 2007
-
[68]
A general framework for implementing NLO calculations in shower Monte Carlo programs: the POWHEG BOX
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,doi:10.1007/JHEP06(2010)043,arXiv:1002.2581
Pith/arXiv arXiv 2010
-
[69]
A positive-weight next-to-leading-order Monte Carlo for heavy flavour hadroproduction
S. Frixione, P . Nason, and G. Ridolfi, “A positive-weight next-to-leading-order Monte Carlo for heavy flavour hadroproduction”,JHEP09(2007) 126, doi:10.1088/1126-6708/2007/09/126,arXiv:0707.3088
Pith/arXiv arXiv 2007
-
[70]
GEANT4 Collaboration, “GEANT4 – a simulation toolkit”,Nucl. Instrum. Meth. A506 (2003) 250,doi:10.1016/S0168-9002(03)01368-8
-
[71]
T. Sj ¨ostrand et al., “An introduction to PYTHIA 8.2”,Comput. Phys. Commun.191 (2015) 159,doi:10.1016/j.cpc.2015.01.024,arXiv:1410.3012
Pith/arXiv arXiv 2015
-
[72]
Extraction and validation of a new set of CMS PYTHIA8 tunes from underlying-event measurements
CMS Collaboration, “Extraction and validation of a new set of CMS PYTHIA8 tunes from underlying-event measurements”,Eur. Phys. J. C80(2020) 4, doi:10.1140/epjc/s10052-019-7499-4,arXiv:1903.12179
Pith/arXiv arXiv 2020
-
[73]
Particle-flow reconstruction and global event description with the CMS detector
CMS Collaboration, “Particle-flow reconstruction and global event description with the CMS detector”,JINST12(2017) P10003,doi:10.1088/1748-0221/12/10/P10003, arXiv:1706.04965
Pith/arXiv arXiv 2017
-
[74]
Technical proposal for the Phase-II upgrade of the Compact Muon Solenoid
CMS Collaboration, “Technical proposal for the Phase-II upgrade of the Compact Muon Solenoid”, CMS Technical proposal CERN-LHCC-2015-010, CMS-TDR-15-02, 2015
2015
-
[75]
The anti-kT jet clustering algorithm
M. Cacciari, G. P . Salam, and G. Soyez, “The anti-kT jet clustering algorithm”,JHEP04 (2008) 063,doi:10.1088/1126-6708/2008/04/063,arXiv:0802.1189
Pith/arXiv arXiv 2008
-
[76]
M. Cacciari, G. P . Salam, and G. Soyez, “FastJet user manual”,Eur. Phys. J. C72(2012) 1896,doi:10.1140/epjc/s10052-012-1896-2,arXiv:1111.6097
Pith/arXiv arXiv 2012
-
[77]
Jet energy scale and resolution in the CMS experiment in pp collisions at 8 TeV
CMS Collaboration, “Jet energy scale and resolution in the CMS experiment in pp collisions at 8 TeV”,JINST12(2017) P02014, doi:10.1088/1748-0221/12/02/P02014,arXiv:1607.03663
Pith/arXiv arXiv 2017
-
[78]
Jet algorithms performance in 13 TeV data
CMS Collaboration, “Jet algorithms performance in 13 TeV data”, CMS Physics Analysis Summary CMS-PAS-JME-16-003, 2017
2017
-
[79]
Identification of heavy-flavour jets with the CMS detector in pp collisions at 13 TeV
CMS Collaboration, “Identification of heavy-flavour jets with the CMS detector in pp collisions at 13 TeV”,JINST13(2018) P05011, doi:10.1088/1748-0221/13/05/P05011,arXiv:1712.07158
Pith/arXiv arXiv 2018
-
[80]
Performance summary of AK4 jet b tagging with data from proton-proton collisions at 13 TeV with the CMS detector
CMS Collaboration, “Performance summary of AK4 jet b tagging with data from proton-proton collisions at 13 TeV with the CMS detector”, CMS Detector Performance Note CMS-DP-2023-005, 2023. References 27
2023
discussion (0)
Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.