REVIEW 2 major objections 4 minor 53 references
Single Higgs boson production in association with a top quark through FCNSI
T0 review · 2 major / 4 minor · reviewed 2026-08-10 · deepseek-v4-flash
Pith's one-line read A flavor-changing top-charm-Higgs coupling, absent in the Standard Model, can be probed through pp→th+X at the HL-LHC, where a BDT analysis predicts a 5σ reach for χ_tc=5.
desk verdict A legitimate 2HDM-III sensitivity study whose central numbers don't survive internal consistency checks: Table III violates the chi_tc^2 scaling required by Eq. (22), so the luminosity projections are unsupported as written. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The flavor-violating top-charm-Higgs vertex $g_{tch}$ from Eq. (22) of the 2HDM-III, which is linear in the parameter $\chi_{tc}$ and scales as $1/\tan\beta$, is the object that drives $pp\to th+X$ production. On the analysis side, the workhorse is a boosted decision tree trained on photon $p_T$, lepton $p_T$, and jet pseudorapidity variables, which separates the signal from the dominant Standard Model backgrounds; the classifier output is then scanned to maximize the significance $S/\sqrt{S+B+(0.05B)^2}$.
What would settle it
Generate new signal samples for χ_tc=1 and χ_tc=5 with the same model implementation and event generator used in the paper, holding all other parameters fixed, and compare the cross-sections; if the ratio is not 25, the implementation does not follow the analytic coupling, and the reported 5σ reach at 2700 $fb^{-1}$ for χ_tc=5 would need to be recalculated.
Extended reading notes
Core claim
Within the two-Higgs-doublet model of type III, the authors claim that the flavor-changing neutral scalar coupling $g_{tch}$, derived in Eq. (22), is proportional to $\chi_{tc}/\tan\beta$, and that it controls the $pp\to th+X$ production cross-section. For their benchmark scenario S1 ($\tan\beta=1$, $\cos(\alpha-\beta)=0.1$), after applying a boosted decision tree to the decay chain $t\to\ell\nu_\ell b$ with $h\to\gamma\gamma$, they predict a signal significance of $5\sigma$ or more for $\chi_{tc}=5$ when the integrated luminosity reaches about $2700~\text{fb}^{-1}$ (with $5\%$ systematic uncertainty), and about $4.4\sigma$ ($4.2$ with systematics) for $\chi_{tc}=3$ at $3000~\text{fb}^{-1}$, which respects the HL-LHC projection $\text{BR}(t\to ch)<10^{-4}$. They conclude that the HL-LHC could find evidence for this new physics process, and that the BDT analysis substantially outperforms simple kinematic cuts.
Load-bearing premise
The reach projections stand on the Monte Carlo simulation implementing the model's coupling exactly as derived, so the signal rate grows with the square of the flavor parameter χ_tc; if the implementation drifts, every significance number changes.
Editorial extensions
If this is right
- With 3000 fb^-1, the HL-LHC can search for the FCNSI coupling down to χ_tc≈3, a region consistent with the projected limit BR(t→ch)<10^-4, so pp→th+X becomes a complementary direct probe of the same physics that t→ch searches constrain indirectly.
- The BDT-based selection roughly doubles the expected significance relative to the cut-based analysis described in the paper, so the classifier gain is a key part of the reach claim.
- For the most favorable benchmark, a 3-sigma hint is predicted by about 1000 fb^-1, while 5-sigma discovery requires around 2700 fb^-1 once 5% background systematics are included.
- At tanβ=3, the predicted significance is markedly lower, so the sensitivity is concentrated at small tanβ where g_tch ∝ 1/tanβ is largest.
Reading between the lines
- The signal cross-sections in Table III scale more slowly with χ_tc than Eq. (22) dictates (S1 moves from 0.01 fb to 0.025 fb when χ_tc goes from 1 to 5, whereas the square scaling implies a factor 25). If the table reflects the generated samples, the model implementation is inconsistent with the analytic coupling; if the table is a transcription error, the χ_tc=5 significance at 2700 fb^-1 would b
- The same BDT pipeline, with the h→γγ resonance as the anchor, could be applied to flavor-violating decays of the heavier neutral scalars H0 and A0 in the same model, where the background composition is similar.
- If the upper limit on BR(t→ch) tightens below 10^-4, the allowed χ_tc shrinks; the trend in the paper's parameter scan suggests the reach would degrade roughly in proportion, so the 5σ window for χ_tc=5 and tanβ=1 would close, leaving the process as an evidence-level probe only for the smallest couplings.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript studies single Higgs boson production in association with a top quark, pp -> th + X, within the Two-Higgs-Doublet Model of type III, focusing on the final state t -> l nu b and h -> gamma gamma. The authors extract the flavor-changing coupling g_tch from the model, constrain the parameter space using the CMS upper limit on BR(t -> ch) and the projected HL-LHC limit, and perform a Monte Carlo analysis with FeynRules, MadGraph5, Pythia8, Delphes3, and a Boosted Decision Tree classifier. They claim that for tan(beta)=1, cos(alpha-beta)=0.1, and chi_tc=5, a 5-sigma signal can be reached at L_int >= 2700 fb^-1 with 5% systematic uncertainty, and that for chi_tc=3 the significance is about 4.4 at 3000 fb^-1 under the HL-LHC projection on BR(t -> ch).
Significance. If correct, the paper would provide a concrete and testable HL-LHC prospect for a direct flavor-changing neutral scalar interaction involving the top quark and the 125 GeV Higgs boson. The use of both the current CMS bound and the projected HL-LHC bound on BR(t -> ch) as anchors is appropriate, and the paper makes the BDT-based analysis reproducible in broad outline. However, the central quantitative results are internally inconsistent: the signal cross-sections in Table III do not follow the chi_tc^2 scaling required by Eq. (22), and the reported chi_tc=3 significance cannot be derived from the chi_tc=5 results under the paper's own model. These issues affect the abstract, Fig. 6, and the conclusions, so the central claim is unsupported until the Monte Carlo normalization is verified and the numbers are corrected.
major comments (2)
- [Eq. (22) and Table III] Eq. (22) defines g_tch as linear in the parameter chi_tc, and each diagram contributing to pp -> th + X contains one flavor-changing htc vertex, so for fixed tan(beta) and cos(alpha-beta) the signal cross-section must scale as chi_tc^2. Table III reports sigma(S1, chi_tc=5)/sigma(S1, chi_tc=1) = 0.025/0.01 = 2.5 and sigma(S2, chi_tc=5)/sigma(S2, chi_tc=1) = 0.014/0.004 = 3.5, both far below the required factor of 25. This is not a rounding issue; it indicates that the Monte Carlo normalization or model implementation does not follow Eq. (22). Because the luminosity projections in Fig. 6 and the abstract are built from these event samples, the absolute cross-sections and the derived significances are not credible without a corrected generation and an explicit check of the chi_tc^2 scaling.
- [Sec. III and Fig. 6] The text introduces chi_tc=3 for scenario S1 to satisfy the HL-LHC projection on BR(t -> ch), but Table III does not provide a cross-section for this value. Under the chi_tc^2 scaling that follows from Eq. (22), one would have sigma(chi_tc=3) = (3/5)^2 sigma(chi_tc=5) = 0.36 sigma(chi_tc=5). Starting from the paper's own chi_tc=5 result of a 5-sigma signal at L_int ~ 2700 fb^-1 with kappa=5%, the chi_tc=3 significance at 3000 fb^-1 should be approximately 2 sigma, not the quoted 4.4 (or 4.2 with systematics). The quoted values are part of the abstract and conclusions, so this inconsistency must be resolved by reporting the actual chi_tc=3 cross-section and recomputing the significance.
minor comments (4)
- [Eq. (21)] Equation (21) is typeset incompletely: the line breaks after "-LY = - g/(2MW)" and several parentheses are unbalanced, which makes it difficult to verify the extraction of g_tch in Eq. (22).
- [Eq. (16)] In Eq. (16), the expression for B_f contains a repeated factor "(r2 + r2 - 1)" where one of the factors presumably should involve r1 or r3; please correct this typographical error.
- [Table III] Table III lists only chi_tc=1 and chi_tc=5, although chi_tc=3 is used later in Sec. III and in the abstract; a row for chi_tc=3 with its uncertainty should be added.
- [Fig. 6 caption] The caption of Fig. 6 does not state which curves correspond to kappa=0 and kappa=5% for both scenarios; the reader must infer this from the text.
Circularity Check
No circular derivation: chi_tc is an externally constrained free parameter and the pp->th projection is an independent MC calculation; the Table III scaling violation against Eq. (22) is a correctness concern, not circularity.
full rationale
The central prediction is a collider projection for pp->th+X in the 2HDM-III. The coupling g_tch in Eq. (22) is linear in the free parameter chi_tc, but chi_tc is not fitted to the predicted signal; it is constrained externally using the CMS upper limit BR(t->ch)<0.00046 and the HL-LHC projection BR(t->ch)<1e-4, then scanned at chi_tc=1,3,5. The signal cross-sections in Table III are Monte Carlo outputs from FeynRules/MadGraph/Pythia/Delphes, and the significance is computed with the standard formula S/sqrt(S+B+(0.05B)^2) using SM background cross-sections from MC. Thus no fitted parameter is renamed as a prediction, and no self-citation is used to forbid alternatives. The earlier work by the same group cited for the four-zero texture ansatz and for parameter-space constraints (Refs. [13,28,30]) supplies stated assumptions and external-constraint summaries, not the target result itself, so the self-citations are not load-bearing in a circular sense. One genuine quantitative concern is internal consistency rather than circularity: Eq. (22) implies sigma ~ chi_tc^2 at fixed tan(beta) and cos(alpha-beta), yet Table III gives S1 0.01->0.025 fb and S2 0.004->0.014 fb when chi_tc goes 1->5, factors of roughly 2.5-3.5 instead of 25. This suggests a possible MC normalization or model-file implementation error and undermines the quoted luminosities, but it does not make the derivation circular.
Assumptions & free parameters
free parameters (3)
- chi_tc (chi~u_tc) =
1, 3, 5
- tan(beta) =
1 and 3
- cos(alpha - beta) =
0.1
assumptions (5)
- domain assumption The FeynRules/MadGraph/Pythia/Delphes chain with the HL-LHC Delphes card gives an accurate simulation of signal and backgrounds at the HL-LHC.
- domain assumption The BDT trained on Monte Carlo transfers to real data without overtraining, validated by a KS value in [0,1].
- domain assumption The backgrounds listed in Table IV are the dominant ones for the h to gamma gamma, lepton plus b-jet final state.
- domain assumption The light Higgs h behaves as a SM-like Higgs for BR(h to gamma gamma) and kinematics.
- domain assumption The four-zero texture, Hermitian Yukawa ansatz from Refs. [27,28,13] and the constraints from Ref. [30] are valid.
Cite this review
Pith. "Pith review of Single Higgs boson production in association with a top quark through FCNSI." pith.science (2026). https://pith.science/paper/MPCB3XHB
@misc{pith2026241220242,
author = {Pith},
title = {Pith review of: Single Higgs boson production in association with a top quark through FCNSI},
year = {2026},
howpublished = {\url{https://pith.science/paper/MPCB3XHB}},
note = {Machine review of arXiv:2412.20242}
}
abstract
We study the production and possible detection of a single Higgs boson in association with a top quark in proton-proton collisions ($pp \to th + X$) at the High-Luminosity Large Hadron Collider. This process absent in the Standard Model is predicted by other models such as the Two-Higgs Doublet Model of type III, which is the theoretical framework adopted in this work. Promising results are found for specific scenarios of the model parameter space, which consist mainly of the parameters $\tan\beta$, $\cos(\alpha-\beta)$ and the parameter $\chi_{tc}$, responsible for the Flavor-Changing Neutral Scalar Interactions (FCNSI). Using the machine learning \textit{Boosted Decision Trees} algorithm and considering a systematic uncertainty of $5\%$, we predict \textit{signal significances} at level of $5\sigma$ for $\tan\beta=1$, $\cos(\alpha-\beta)=0.1$, $\chi_{tc}=5$, and integrated luminosities {$\mathcal{L}_{\rm int}\gtrsim2700~fb^{-1}$}. Likewise, we also predict a \textit{signal significance} $\sigma\approx 4.4$ for $\tan\beta=1$, $\cos(\alpha-\beta)=0.1$, $\chi_{tc}=3$, and integrated luminosities $\mathcal{L}_{\rm int} = 3000~fb^{-1}$, which consider the upper limit given by HL-LHC projection on $\mathcal{BR}(t\to ch)$.
Figures
Figures from the paper (3 more)
Reference graph
Works this paper leans on
-
[1]
Cosine of the difference of mixing angles: cos( α − β),
-
[2]
Ratio of the VEV’s: tan β,
-
[3]
The parameter that changes flavor χtc (χtc ≡ ˜χu tc). The observables we consider to constraint are the following: • LHC Higgs boson data [31, 32], • Neutral meson physics B0 s → µ+µ− [33], B0 d → µ+µ− [33], • ℓi → ℓjℓk ¯ℓk and ℓi → ℓjγ [34], • Muon anomalous magnetic moment aµ [35]. The only parameter we did not consider in Ref. [30] is the matrix elemen...
work page 2024
-
[4]
Georges Aad et al. Observation of a new particle in the search for the Standard Model Higgs boson with the ATLAS detector at the LHC. Phys. Lett., B716:1–29, 2012
work page 2012
-
[5]
Observation of a new boson with mass near 125 GeV in pp collisions at √s = 7 and 8 TeV
Serguei Chatrchyan et al. Observation of a new boson with mass near 125 GeV in pp collisions at √s = 7 and 8 TeV. JHEP, 06:081, 2013
work page 2013
-
[6]
Peter W. Higgs. Broken symmetries and the masses of gauge bosons. Phys. Rev. Lett., 13:508–509, Oct 1964
work page 1964
-
[7]
F. Englert and R. Brout. Broken symmetry and the mass of gauge vector mesons. Phys. Rev. Lett., 13:321–323, Aug 1964
work page 1964
-
[8]
T. S. Virdee. Beyond the standard model of particle physics. Phil. Trans. Roy. Soc. Lond. A, 374(2075):20150259, 2016
work page 2016
Show all 53 references
-
[9]
Lectures on physics beyond the standard model
Hyun Min Lee. Lectures on physics beyond the standard model. arXiv, 1907.12409, 2019
1907 arXiv
-
[10]
Beyond the standard model
Katrina Miller. Beyond the standard model. Symmetry Magazine, n.d
-
[11]
Beyond sm physics and searches for susy at the lhc
Dris Boubaa, Gaber Faisel, and Shaaban Khalil. Beyond sm physics and searches for susy at the lhc. arXiv, 2005.08069, 2020
2005 arXiv
-
[12]
Anomalies in particle physics and their implications for physics beyond the standard model
Andreas Crivellin and Bruce Mellado. Anomalies in particle physics and their implications for physics beyond the standard model. Nature Rev. Phys., 6(5):294–309, 2024
2024
-
[13]
Atwood, L
D. Atwood, L. Reina, and A. Soni. Flavor changing neutral currents in the two higgs doublet model type iii. Physical Review D, 55:3156–3176, 1997
1997
-
[14]
F´ elix-Beltr´ an, F
O. F´ elix-Beltr´ an, F. Gonz´ alez-Canales, J. Hern´ andez-S´ anchez, S. Moretti, R. Noriega-Papaqui, and A. Rosado. Analysis of the quark sector in the 2HDM with a four-zero Yukawa texture using the most recent data on the 13 CKM matrix. Phys. Lett. B, 742:347–352, 2015
2015
-
[15]
Generalized 2HDM with wrong-sign lepton-Yukawa coupling, in light of gµ − 2 and lepton flavor violation at the future LHC
Nivedita Ghosh and Jayita Lahiri. Generalized 2HDM with wrong-sign lepton-Yukawa coupling, in light of gµ − 2 and lepton flavor violation at the future LHC. Eur. Phys. J. C, 81(12):1074, 2021
2021
-
[16]
Arroyo-Ure˜ na, J
Marco A. Arroyo-Ure˜ na, J. Lorenzo Diaz-Cruz, Enrique D ´ ıaz, and Javier A. Orduz-Ducuara. Flavor violating Higgs signals in the Texturized Two-Higgs Doublet Model (THDM-Tx). Chin. Phys. C, 40(12):123103, 2016
2016
-
[17]
S. L. Glashow, J. Iliopoulos, and L. Maiani. Weak Interactions with Lepton-Hadron Symmetry. Phys. Rev. D, 2:1285–1292, 1970
1970
-
[18]
Georges Aad et al. Search for flavour-changing neutral current interactions of the top quark and the Higgs boson in events with a pair of τ -leptons in pp collisions at √s = 13 TeV with the ATLAS detector. JHEP, 2306:155, 2023
2023
-
[19]
Search for flavor-changing neutral current interactions of the top quark mediated by a Higgs boson in proton-proton collisions at 13 TeV
Aram Hayrapetyan et al. Search for flavor-changing neutral current interactions of the top quark mediated by a Higgs boson in proton-proton collisions at 13 TeV. 7 2024
2024
-
[20]
J. A. Aguilar-Saavedra and G. C. Branco. Probing top flavor changing neutral scalar couplings at the CERN LHC. Phys. Lett. B, 495:347–356, 2000
2000
-
[21]
Flavour-Changing Neutral Scalar Interactions of the Top Quark.Universe, 8(11):609, 2022
Nuno Filipe Castro and Kirill Skovpen. Flavour-Changing Neutral Scalar Interactions of the Top Quark.Universe, 8(11):609, 2022
2022
-
[22]
Searches for the FCNC couplings from top-Higgs associated production signal with h → γγ at the LHC
Yao-Bei Liu and Zhen-Jun Xiao. Searches for the FCNC couplings from top-Higgs associated production signal with h → γγ at the LHC. Phys. Lett. B, 763:458–464, 2016
2016
-
[23]
Apollinari, O
G. Apollinari, O. Br¨ uning, T. Nakamoto, and Lucio Rossi. High Luminosity Large Hadron Collider HL-LHC. CERN Yellow Rep., (5):1–19, 2015
2015
-
[24]
G. C. Branco, P. M. Ferreira, L. Lavoura, M. N. Rebelo, Marc Sher, and Joao P. Silva. Theory and phenomenology of two-Higgs-doublet models. Phys. Rept., 516:1–102, 2012
2012
-
[25]
Lorenzo D ´ ıaz-Cruz
J. Lorenzo D ´ ıaz-Cruz. The Higgs profile in the standard model and beyond.Rev. Mex. Fis., 65(5):419–439, 2019
2019
-
[26]
P. A. Zyla et al. Review of Particle Physics. PTEP, 2020(8):083C01, 2020
2020
-
[27]
Ashry, S
M. Ashry, S. Khalil, and S. Moretti. Searching for a heavy neutral CP-even Higgs boson in the BLSSM at the LHC Run 3 and HL-LHC. Eur. Phys. J. C, 84(4):433, 2024
2024
-
[28]
Kuday, H
S. Kuday, H. Saygın, ˙I. Ho¸ s, and F. C ¸ etin. Projections for Neutral Di-Boson and Di-Higgs Interactions at FCC-he Collider. Nucl. Phys. B, 932:1–14, 2018
2018
-
[29]
Hern´ andez-S´ anchez, Stefano Moretti, and Alfonso Rosado
Siba Prasad Das, Marek Nowakowski, J. Hern´ andez-S´ anchez, Stefano Moretti, and Alfonso Rosado. Neutral and Charged Higgs boson phenomenology at the LHeC and FCC-eh. In 38th International Symposium on Physics in Collision, page 5, 12 2018
2018
-
[30]
J. L. D ´ ıaz-Cruz, R. Noriega-Papaqui, and A. Rosado. Mass matrix ansatz and lepton flavor violation in the two-higgs doublet model-iii. Phys. Rev. D, 69:095002, May 2004
2004
-
[31]
J. L. D ´ ıaz-Cruz, R. Noriega-Papaqui, and A. Rosado. Measuring the fermionic couplings of the higgs boson at future colliders as a probe of a nonminimal flavor structure. Physical Review D, 71(1), January 2005
2005
-
[32]
Hernandez-Sanchez, S
J. Hernandez-Sanchez, S. Moretti, R. Noriega-Papaqui, and A. Rosado. Off-diagonal terms in Yukawa textures of the Type-III 2-Higgs doublet model and light charged Higgs boson phenomenology. JHEP, 07:044, 2013
2013
-
[33]
M. A. Arroyo-Ure˜ na, E. A. Herrera-Chac´ on, S. Rosado-Navarro, and Humberto Salazar. Hunting for a charged Higgs boson pair in proton-proton collisions. Phys. Rev. D, 111(1):015023, 2025
2025
-
[34]
Search for lepton flavour violating decays of the Higgs boson to µτ and eτ in proton- proton collisions at √s = 13 TeV
Albert M Sirunyan et al. Search for lepton flavour violating decays of the Higgs boson to µτ and eτ in proton- proton collisions at √s = 13 TeV. JHEP, 06:001, 2018
2018
-
[35]
Searches for lepton-flavour-violating decays of the Higgs boson in √s = 13 TeV pp collisions with the ATLAS detector
Georges Aad et al. Searches for lepton-flavour-violating decays of the Higgs boson in √s = 13 TeV pp collisions with the ATLAS detector. Phys. Lett. B, 800:135069, 2020
2020
-
[36]
Measurement of the B0 S → µ+µ− decay properties and search for the B0 → µ+µ− decay in proton-proton collisions at √s = 13 TeV
Armen Tumasyan et al. Measurement of the B0 S → µ+µ− decay properties and search for the B0 → µ+µ− decay in proton-proton collisions at √s = 13 TeV. Phys. Lett. B, 842:137955, 2023
2023
-
[37]
R. L. Workman and others (Particle Data Group). Review of Particle Physics. Prog. Theor. Exp. Phys., 2022:083C01, 2022. 14
2022
-
[38]
Abi et al
B. Abi et al. Measurement of the Positive Muon Anomalous Magnetic Moment to 0.46 ppm. Phys. Rev. Lett., 126(14):141801, 2021
2021
-
[39]
Azzi et al
P. Azzi et al. Report from Working Group 1: Standard Model Physics at the HL-LHC and HE-LHC. CERN Yellow Rep. Monogr., 7:1–220, 2019
2019
-
[40]
Artificial Intelligence for High Energy Physics, Chapter 2: Boosted Decision Trees, pages 9–58
Yann Coadou. Artificial Intelligence for High Energy Physics, Chapter 2: Boosted Decision Trees, pages 9–58. World Scientific Publishing, 2022
2022
-
[41]
The Elements of Statistical Learning
Trevor Hastie, Robert Tibshirani, and Jerome Friedman. The Elements of Statistical Learning. Springer, 2009
2009
-
[42]
Harlander, S.Y
R.V. Harlander, S.Y. Klein, and M. Lipp. Feyngame. Computer Physics Communications, 256:107465, 2020
2020
-
[43]
Christensen, C´ eline Degrande, Claude Duhr, and Benjamin Fuks
Adam Alloul, Neil D. Christensen, C´ eline Degrande, Claude Duhr, and Benjamin Fuks. FeynRules 2.0 - A complete toolbox for tree-level phenomenology. Comput. Phys. Commun., 185:2250–2300, 2014
2014
-
[44]
Alwall, R
J. Alwall, R. Frederix, S. Frixione, V. Hirschi, F. Maltoni, O. Mattelaer, H. S. Shao, T. Stelzer, P. Torrielli, and M. Zaro. The automated computation of tree-level and next-to-leading order differential cross sections, and their matching to parton shower simulations. JHEP, 0...
2014
-
[45]
Christiansen, Richard Corke, Nishita Desai, Philip Ilten, Stephen Mrenna, Stefan Prestel, Christine O
Torbj¨ orn Sj¨ ostrand, Stefan Ask, Jesper R. Christiansen, Richard Corke, Nishita Desai, Philip Ilten, Stephen Mrenna, Stefan Prestel, Christine O. Rasmussen, and Peter Z. Skands. An introduction to PYTHIA 8.2.Comput. Phys. Commun., 191:159–177, 2015
2015
-
[46]
de Favereau, C
J. de Favereau, C. Delaere, P. Demin, A. Giammanco, V. Lema ˆ ıtre, A. Mertens, and M. Selvaggi. DELPHES 3, A modular framework for fast simulation of a generic collider experiment. JHEP, 02:057, 2014
2014
-
[47]
Beta card for HL-LHC and HE-LHC studies, 2017
Michele Selvaggi. Beta card for HL-LHC and HE-LHC studies, 2017
2017
-
[48]
Salam, and Gregory Soyez
Matteo Cacciari, Gavin P. Salam, and Gregory Soyez. FastJet User Manual. Eur. Phys. J. C, 72:1896, 2012
2012
-
[49]
Salam, and Gregory Soyez
Matteo Cacciari, Gavin P. Salam, and Gregory Soyez. The anti- kt jet clustering algorithm. JHEP, 04:063, 2008
2008
-
[50]
Fast b-tagging at the high-level trigger of the ATLAS experiment in LHC Run 3
Georges Aad et al. Fast b-tagging at the high-level trigger of the ATLAS experiment in LHC Run 3. JINST, 18(11):P11006, 2023
2023
-
[51]
MadAnalysis 5, A User-Friendly Framework for Collider Phenomenology
Eric Conte, Benjamin Fuks, and Guillaume Serret. MadAnalysis 5, A User-Friendly Framework for Collider Phenomenology. Comput. Phys. Commun., 184:222–256, 2013
2013
-
[52]
Statistics, pages 117–143
Glen Cowan. Statistics, pages 117–143. Springer International Publishing, Cham, 2021
2021
-
[53]
Expected sensitivity of ATLAS to FCNC top quark decays t → Zu and t → Hq at the High Luminosity LHC
Georges Aad et al. Expected sensitivity of ATLAS to FCNC top quark decays t → Zu and t → Hq at the High Luminosity LHC. Technical report, CERN, Geneva, 2016. All figures including auxiliary figures are available at https://atlas.web.cern.ch/Atlas/GROUPS/PHYSICS/PUBNOTES/ATL-PH...
2016
Reviewed August 10, 2026 · model on record in the stance chip above.
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