REVIEW 2 major objections 2 minor 100 references
Automatic Semantic Alignment of Flow Pattern Representations for Exploration with Large Language Models
T0 review · 2 major / 2 minor · reviewed 2026-08-05 · deepseek-v4-flash
Pith's one-line read The paper claims that flow visualization can be queried in natural language by mapping autoencoded streamline segments into an LLM's semantic space, without manual labeling, and matching them to text through attention.
desk verdict The abstract describes a plausible CLIP-style flow-pattern alignment framework, but the supplied full text is a different arXiv paper, so there is nothing to verify. 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 load-bearing object is the projector layer that maps denoising-autoencoder flow representations into LLM embedding space, paired with an attention mechanism that scores how well a textual query matches each projected flow vector. The attention scores are what convert "language similarity" into a practical retrieval ranking for flow segments.
What would settle it
Build a benchmark of flow fields with expert-annotated ground-truth streamline segments for a fixed set of query phrases; if top-k retrieval accuracy on unseen phrases is no better than a text-blind baseline such as random or frequency-based ranking, the claimed semantic alignment is not doing the work.
Extended reading notes
Core claim
The central claim is that flow pattern representations and natural-language descriptions can be brought into the same metric space automatically. A denoising autoencoder compresses streamline segments into fixed vector representations; a projector layer then maps these vectors into the embedding space of an LLM. Because textual embeddings live in the same space, an attention mechanism can compute semantic similarity between a query phrase and each flow candidate, so the highest-scoring streamline segments can be extracted as the requested pattern. The authors present this as eliminating the manual labeling step that earlier text-based flow retrieval would require.
Load-bearing premise
The alignment learned without manually labeled pairs must genuinely capture the flow structures a user means; if the training signal correlates with something else, such as global field statistics, the attention scores will retrieve plausible-looking but semantically wrong segments.
Editorial extensions
If this is right
- Flow-domain users can issue free-form natural-language queries instead of navigating specialized flow-visualization controls.
- New flow datasets can be searched for scientifically relevant structures without building a labeled training set first, as long as the alignment space transfers.
- The same projector-plus-attention arrangement should generalize to any flow pattern that can be represented by streamline segments.
- The interactive interface makes retrieval usable by domain experts who are not visualization specialists.
Reading between the lines
- Editorial inference: the same architecture—autoencoder, projector, attention—could be applied to other scientific data types, such as scalar-field isosurfaces or vector-field glyphs, if they admit a vector encoding; the paper does not test this.
- Editorial inference: the method's success depends on the LLM's embedding space already containing usable geometry for flow vocabulary; a concrete test is whether retrieval works for rare or coined terms like "saddle point in a streamline field" without task-specific fine-tuning.
- Editorial inference: attention-based matching also opens a route to multi-modal refinement, such as combining text with spatial regions selected in the view, which the authors do not discuss.
- Editorial inference: because the alignment is claimed to be learned without manual labels, the paper should be read as claiming similarity-based retrieval, not that the model understands the causal or dynamical meaning of the flow structures.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript declares itself to be arXiv:2508.06300 (cs.HC), 'Automatic Semantic Alignment of Flow Pattern Representations for Exploration with Large Language Models.' Its abstract claims a framework that aligns streamline-based flow pattern representations with LLM embeddings via a denoising autoencoder, a projector layer, and an attention mechanism, thereby enabling text-based extraction of flow structures without manual labeling, with qualitative case studies in an interactive interface. However, the full text supplied for review is arXiv:2508.06307 (hep-ph), 'Quarkonium Parton Shower in Herwig 7,' by M.R. Masouminia and P. Richardson. This document contains NRQCD factorization theory, parton shower splitting functions, and LHC comparisons for quarkonia production. It contains no mention of flow visualization, streamline segments, autoencoders, projector layers, attention mechanisms, natural-language querying, or any component named in the abstract. Thus, the submitted manuscript—as an artifact—provides no method, derivation, implementation, or evaluation for the central claim. The only element related to the declared topic is the abstract itself, which cannot be verified or falsified from the supplied text.
Significance. If the framework described in the abstract were fully realized and validated, it could be a useful contribution to exploratory flow visualization, enabling natural-language access to flow structures and reducing the need for specialized interface training. The abstract articulates a plausible architecture, and the idea of aligning a learned flow representation with LLM embeddings is timely and interesting. However, the significance assessment is entirely prospective. No equations, training objective, network architecture details, dataset descriptions, quantitative evaluation, comparison baselines, or falsifiable predictions are present in the supplied full text. There is also no released code or artifact to inspect. The potential significance is real, but the evidence base is zero; the paper in its current form cannot support any substantive claim.
major comments (2)
- [Full Text (entire document)] The full text supplied for this submission is not the declared paper. It is arXiv:2508.06307, a JHEP-style paper on quarkonium parton showers in Herwig 7. None of the sections, equations, figures, or tables address flow pattern representations, LLMs, semantic alignment, the projector layer, or the attention mechanism. Consequently, the abstract's central claim—'aligns flow pattern representations with the semantic space of large language models... eliminating the need for manual labeling'—is entirely unsupported by any technical content. No derivation, no training signal, and no evaluation exist in the manuscript to check. This is a load-bearing deficiency that cannot be addressed through local revision; the wrong full text has been submitted.
- [Abstract] Even abstracting away from the full-text mismatch, the abstract alone provides no quantitative evaluation protocol. It mentions 'case studies' but gives no metrics, baselines, error bars, or comparisons. The claimed 'semantic matching' effectiveness cannot be assessed. In particular, the mechanism for learning the alignment 'without manual labeling' is not specified; if the training uses text-flow pairs in any form, the claimed label-free property and potential circularity in evaluation remain unexamined. A paper whose only evidentiary content is its abstract cannot satisfy the standard for a publishable claim.
minor comments (2)
- [General] The arXiv identifier in the header (2508.06300) does not correspond to the supplied full text (2508.06307). This is more than a typographical issue; it prevents identification of the actual submission. The authors should ensure the correct manuscript is associated with the submission.
- [Abstract] Key terms—'flow pattern representations,' 'semantic space of LLMs,' 'semantic matching'—are used informally. Even in a revised submission, these need formal definitions, and the alignment objective should be stated precisely.
Circularity Check
No circularity can be assessed: the supplied full text is a different paper (Quarkonium Parton Shower in Herwig 7) and contains no portion of the claimed derivation chain.
full rationale
The declared submission is arXiv:2508.06300 (cs.HC), 'Automatic Semantic Alignment of Flow Pattern Representations for Exploration with Large Language Models,' whose abstract claims a denoising autoencoder, projector layer, attention mechanism, and natural-language flow-pattern retrieval. However, the full text supplied is arXiv:2508.06307 (hep-ph), 'Quarkonium Parton Shower in Herwig 7,' by M.R. Masouminia and P. Richardson. None of the sections, equations, figures, or evaluation content in the supplied text concerns flow visualization, streamline autoencoders, LLM embeddings, or text-guided retrieval. Consequently, there is no derivation chain from the flow-alignment paper available to audit for circularity. Under the hard rule requiring a quoted equation or construction that reduces a claimed result to its own inputs, no circular step can be identified, and it would be inappropriate to manufacture one. The mismatch is a completeness/verification issue, not evidence of circular reasoning within the supplied artifact. Therefore the circularity score is 0.
Assumptions & free parameters
assumptions (3)
- domain assumption LLM embeddings provide a semantic space in which textual flow descriptions and visual flow pattern representations can be meaningfully compared.
- domain assumption The denoising autoencoder produces a representation of streamline segments that retains the information needed to identify flow patterns.
- domain assumption Semantic alignment can be learned without manual labeling.
Cite this review
Pith. "Pith review of Automatic Semantic Alignment of Flow Pattern Representations for Exploration with Large Language Models." pith.science (2026). https://pith.science/paper/5TOZR5WC
@misc{pith2026250806300,
author = {Pith},
title = {Pith review of: Automatic Semantic Alignment of Flow Pattern Representations for Exploration with Large Language Models},
year = {2026},
howpublished = {\url{https://pith.science/paper/5TOZR5WC}},
note = {Machine review of arXiv:2508.06300}
}
read the original abstract
Explorative flow visualization allows domain experts to analyze complex flow structures by interactively investigating flow patterns. However, traditional visual interfaces often rely on specialized graphical representations and interactions, which require additional effort to learn and use. Natural language interaction offers a more intuitive alternative, but teaching machines to recognize diverse scientific concepts and extract corresponding structures from flow data poses a significant challenge. In this paper, we introduce an automated framework that aligns flow pattern representations with the semantic space of large language models (LLMs), eliminating the need for manual labeling. Our approach encodes streamline segments using a denoising autoencoder and maps the generated flow pattern representations to LLM embeddings via a projector layer. This alignment empowers semantic matching between textual embeddings and flow representations through an attention mechanism, enabling the extraction of corresponding flow patterns based on textual descriptions. To enhance accessibility, we develop an interactive interface that allows users to query and visualize flow structures using natural language. Through case studies, we demonstrate the effectiveness of our framework in enabling intuitive and intelligent flow exploration.
Reference graph
Works this paper leans on
-
[1]
J. P. Lansberg, J/ψ, ψ ’ and Υ production at hadron colliders: A Review , Int. J. Mod. Phys. A 21 (2006) 3857–3916, [ hep-ph/0602091]
arXiv 2006
-
[2]
Brambilla et
N. Brambilla et. al. , Heavy quarkonium: progress, puzzles, and opportunities , Eur. Phys. J. C 71 (2011) 1534
2011
-
[3]
Eichten, K
E. Eichten, K. Gottfried, T. Kinoshita, K. D. Lane, and T.-M. Yan, Charmonium: The Model, Phys. Rev. D 17 (1978) 3090. [erratum: Phys. Rev. D 21, 313 (1980)]
1978
-
[4]
Godfrey and N
S. Godfrey and N. Isgur, Mesons in a Relativized Quark Model with Chromodynamics , Phys. Rev. D 32 (1985) 189–231
1985
-
[5]
Kwong, P
W. Kwong, P. B. Mackenzie, R. Rosenfeld, and J. L. Rosner, Quarkonium Spin Splittings, Meson Hyperfine Structure, and the Role of the Decay Anomalies , Phys. Rev. D 37 (1988) 3210
1988
-
[6]
Buchmuller and S
W. Buchmuller and S. H. H. Tye, Quarkonia and Quantum Chromodynamics , Phys. Rev. D 24 (1981) 132
1981
-
[7]
Eichten and F
E. Eichten and F. Feinberg, Spin Dependent Forces in QCD , Phys. Rev. D 23 (1981) 2724
1981
-
[8]
G. T. Bodwin, E. Braaten, and G. P. Lepage, Rigorous QCD analysis of inclusive annihilation and production of heavy quarkonium , Phys. Rev. D 51 (1995) 1125–1171, [hep-ph/9407339]. [Erratum: Phys.Rev.D 55, 5853 (1997)]
arXiv 1995
Show all 100 references
-
[9]
Brambilla, A
N. Brambilla, A. Pineda, J. Soto, and A. Vairo, Effective Field Theories for Heavy Quarkonium, Rev. Mod. Phys. 77 (2005) 1423, [ hep-ph/0410047]
2005 arXiv
-
[10]
SLAC-SP-017 Collaboration, J. E. Augustin et. al. , Discovery of a Narrow Resonance in e+e− Annihilation, Phys. Rev. Lett. 33 (1974) 1406–1408
1974
-
[11]
E598 Collaboration, J. J. Aubert et. al. , Experimental Observation of a Heavy Particle J, Phys. Rev. Lett. 33 (1974) 1404–1406
1974
-
[12]
J. J. Aubert et. al. , Experimental observation of a heavy Particle J , Adv. Exp. Phys. 5 (1976) 128
1976
-
[13]
Khachatryan et
CMS Collaboration, V. Khachatryan et. al. , Measurement of J/ ψ and ψ(2S) Prompt Double-Differential Cross Sections in pp Collisions at √s=7 TeV, Phys. Rev. Lett. 114 (2015), no. 19 191802, [ arXiv:1502.0415]
2015
-
[14]
A TLASCollaboration, G. Aad et. al. , Measurement of the differential cross-sections of prompt and non-prompt production of J/ψ and ψ(2S) in pp collisions at √s = 7 and 8 TeV with the ATLAS detector , Eur. Phys. J. C 76 (2016), no. 5 283, [ arXiv:1512.0365]
2016
-
[15]
D0 Collaboration, V. M. Abazov et. al. , Measurement of B0 s mixing parameters from the flavor-tagged decay B0 s → J/ψϕ, Phys. Rev. Lett. 101 (2008) 241801, [ arXiv:0802.2255]. – 34 –
2008 arXiv
-
[17]
Klopfenstein et
C. Klopfenstein et. al., Observation of the Lowest P Wave b¯b Bound States, Phys. Rev. Lett. 51 (1983) 160
1983
-
[18]
LHCb Collaboration, R. Aaij et. al. , Measurement of the ηc(1S) production cross-section in proton-proton collisions via the decay ηc(1S) → p¯p, Eur. Phys. J. C 75 (2015), no. 7 311, [arXiv:1409.3612]
2015 arXiv
-
[19]
K. Abe et. al. , Observation of double c¯c production in e+e− annihilation at √s ≈ 10.6 GeV, Phys. Rev. Lett. 89 (2002) 142001
2002
-
[20]
S. K. Choi et. al. , Observation of a narrow charmonium - like state in exclusive B+− → K +−π+π−J/ψ decays, Phys. Rev. Lett. 91 (2003) 262001
2003
-
[21]
Lyubushkina, ATLAS results on quarkonia and heavy flavor production, Int
A TLASCollaboration, T. Lyubushkina, ATLAS results on quarkonia and heavy flavor production, Int. J. Mod. Phys. A 35 (2020), no. 34n35 2044003
2020
-
[22]
Hayrapetyan et
CMS Collaboration, A. Hayrapetyan et. al. , Observation of double J/ ψ meson production in pPb collisions at sNN=8.16 TeV , Phys. Rev. D 110 (2024), no. 9 092002, [arXiv:2407.0322]
2024
-
[23]
LHCb Collaboration, R. Aaij et. al. , Measurement of the ψ(2S) to J/ψ cross-section ratio as a function of centrality in PbPb collisions at √sNN = 5.02 TeV , arXiv:2411.0566
-
[24]
Acharya et
ALICE Collaboration, S. Acharya et. al. , Prompt and non-prompt J /ψ production at midrapidity in Pb–Pb collisions at √sNN = 5.02 TeV , JHEP 02 (2024) 066, [arXiv:2308.1612]
2024
-
[25]
Fritzsch, Producing Heavy Quark Flavors in Hadronic Collisions: A Test of Quantum Chromodynamics, Phys
H. Fritzsch, Producing Heavy Quark Flavors in Hadronic Collisions: A Test of Quantum Chromodynamics, Phys. Lett. B 67 (1977) 217–221
1977
-
[26]
Halzen, Cvc for Gluons and Hadroproduction of Quark Flavors , Phys
F. Halzen, Cvc for Gluons and Hadroproduction of Quark Flavors , Phys. Lett. B 69 (1977) 105–108
1977
-
[27]
Guiot, A
B. Guiot, A. Radic, I. Schmidt, and K. Werner, J/ψ production at NLO with a scale-dependent color-evaporation model, Phys. Rev. D 108 (2023), no. 11 114003, [arXiv:2306.1103]
2023
-
[28]
Lee, J.-W
K. Lee, J.-W. Qiu, G. Sterman, and K. Watanabe, Subleading power corrections to heavy quarkonium production in QCD factorization approach , EPJ Web Conf. 274 (2022) 04005, [arXiv:2211.1264]
2022
-
[29]
Braaten and S
E. Braaten and S. Fleming, Color octet fragmentation and the psi-prime surplus at the Tevatron, Phys. Rev. Lett. 74 (1995) 3327–3330, [ hep-ph/9411365]
1995 arXiv
-
[30]
CDF Collaboration, F. Abe et. al. , J/ψ and ψ(2S) production in p¯p collisions at √s = 1.8 TeV, Phys. Rev. Lett. 79 (1997) 572–577
1997
-
[31]
Chatrchyan et
CMS Collaboration, S. Chatrchyan et. al. , Azimuthal Anisotropy of Charged Particles at High Transverse Momenta in PbPb Collisions at √sN N= 2.76 TeV, Phys. Rev. Lett. 109 (2012) 022301, [ arXiv:1204.1850]
2012 arXiv
-
[32]
Andronic et
A. Andronic et. al. , Heavy-flavour and quarkonium production in the LHC era: from proton–proton to heavy-ion collisions , Eur. Phys. J. C 76 (2016), no. 3 107, [arXiv:1506.0398]. – 35 –
2016
-
[33]
M. Bahr et. al. , Herwig++ Physics and Manual , Eur. Phys. J. C 58 (2008) 639–707, [arXiv:0803.0883]
2008 arXiv
-
[34]
Bellm et
J. Bellm et. al. , Herwig 7.0/Herwig++ 3.0 release note , Eur. Phys. J. C 76 (2016), no. 4 196, [arXiv:1512.0117]
2016
-
[35]
Bellm et
J. Bellm et. al. , Herwig 7.1 Release Note , arXiv:1705.0691
-
[36]
Bellm et
J. Bellm et. al. , Herwig 7.2 release note , Eur. Phys. J. C 80 (2020), no. 5 452, [arXiv:1912.0650]
2020
-
[37]
Bewick et
G. Bewick et. al. , Herwig 7.3 release note , Eur. Phys. J. C 84 (2024), no. 10 1053, [arXiv:2312.0517]
2024
-
[38]
M. R. Masouminia and P. Richardson, Implementation of angularly ordered electroweak parton shower in Herwig 7 , JHEP 04 (2022) 112, [ arXiv:2108.1081]
2022
-
[39]
Darvishi and M
N. Darvishi and M. R. Masouminia, Electroweak radiative corrections in precision LHC measurements of W ±/Z0+jets, Nucl. Phys. B 985 (2022) 116025, [ arXiv:2112.1548]
2022
-
[40]
Darvishi and M
N. Darvishi and M. R. Masouminia, Signature of the Maximally Symmetric 2HDM via W ±/Z-Quadruplet Productions at the LHC , Phys. Rev. D 103 (2021), no. 9 095031, [arXiv:2012.1474]
2021
-
[41]
J. L. Feng et. al. , The Forward Physics Facility at the High-Luminosity LHC , J. Phys. G 50 (2023), no. 3 030501, [ arXiv:2203.0509]
2023
-
[42]
Darvishi, J
N. Darvishi, J. I. M. R. Masouminia, Z. Nagy, P. Richardson, and D. E. Soper, Future prospects for parton showers , in Snowmass 2021 , 3, 2022. arXiv:2203.0679
2021
-
[43]
J. M. Campbell et. al. , Event generators for high-energy physics experiments , SciPost Phys. 16 (2024), no. 5 130, [ arXiv:2203.1111]
2024
-
[44]
Frixione et
S. Frixione et. al. , Initial state QED radiation aspects for future e+e− colliders, in Snowmass 2021 , 3, 2022. arXiv:2203.1255
2021
-
[45]
J.-B. Lee, M. R. Masouminia, M. H. Seymour, and U.-k. Yang, Generalized angular-order parton showers in Herwig 7 , JHEP 08 (2024) 064, [ arXiv:2312.1312]
2024
-
[46]
Kulkarni, M
S. Kulkarni, M. R. Masouminia, S. Pl¨ atzer, and D. Stafford, Dark sector showers and hadronisation in Herwig 7 , Eur. Phys. J. C 84 (2024), no. 11 1210, [ arXiv:2408.1004]
2024
-
[47]
Sjostrand, S
T. Sjostrand, S. Mrenna, and P. Z. Skands, A Brief Introduction to PYTHIA 8.1 , Comput. Phys. Commun. 178 (2008) 852–867, [ arXiv:0710.3820]
2008 arXiv
-
[48]
Sj¨ ostrand, S
T. Sj¨ ostrand, S. Ask, J. R. Christiansen, R. Corke, N. Desai, P. Ilten, S. Mrenna, S. Prestel, C. O. Rasmussen, and P. Z. Skands, An introduction to PYTHIA 8.2 , Comput. Phys. Commun. 191 (2015) 159–177, [ arXiv:1410.3012]
2015 arXiv
-
[49]
Cooke, P
N. Cooke, P. Ilten, L. L¨ onnblad, and S. Mrenna, Non-relativistic quantum chromodynamics in parton showers , Eur. Phys. J. C 84 (2024), no. 4 432, [ arXiv:2312.0520]
2024
-
[50]
E. J. Eichten and C. Quigg, Quarkonium wave functions at the origin , Phys. Rev. D 52 (1995) 1726–1728, [ hep-ph/9503356]
1995 arXiv
-
[51]
Petrelli, M
A. Petrelli, M. Cacciari, M. Greco, F. Maltoni, and M. L. Mangano, NLO production and decay of quarkonium , Nucl. Phys. B 514 (1998) 245–309, [ hep-ph/9707223]
1998 arXiv
-
[52]
G. T. Bodwin, H. S. Chung, D. Kang, J. Lee, and C. Yu, Improved determination of – 36 – color-singlet nonrelativistic QCD matrix elements for S-wave charmonium , Phys. Rev. D 77 (2008) 094017, [ arXiv:0710.0994]
2008 arXiv
-
[53]
J. H. Kuhn and E. Mirkes, QCD corrections to toponium production at hadron colliders , Phys. Rev. D 48 (1993) 179–189, [ hep-ph/9301204]
1993 arXiv
-
[54]
G. P. Lepage, L. Magnea, C. Nakhleh, U. Magnea, and K. Hornbostel, Improved nonrelativistic QCD for heavy quark physics , Phys. Rev. D 46 (1992) 4052–4067, [hep-lat/9205007]
1992 arXiv
-
[55]
P. L. Cho and A. K. Leibovich, Color octet quarkonia production , Phys. Rev. D 53 (1996) 150–162, [hep-ph/9505329]
1996 arXiv
-
[56]
Beneke and I
M. Beneke and I. Z. Rothstein, Hadroproduction of quarkonia in fixed target experiments , Phys. Rev. D 54 (1996) 2005, [ hep-ph/9603400]. [Erratum: Phys.Rev.D 54, 7082 (1996)]
1996 arXiv
-
[57]
Colquhoun, R
B. Colquhoun, R. J. Dowdall, C. T. H. Davies, K. Hornbostel, and G. P. Lepage, Υ and Υ′ Leptonic Widths, ab µ and mb from full lattice QCD , Phys. Rev. D 91 (2015), no. 7 074514, [arXiv:1408.5768]
2015 arXiv
-
[58]
M. A. Shifman, A. I. Vainshtein, and V. I. Zakharov, QCD and Resonance Physics: Applications, Nucl. Phys. B 147 (1979) 448–518
1979
-
[59]
Braaten, K.-m
E. Braaten, K.-m. Cheung, and T. C. Yuan, Z0 decay into charmonium via charm quark fragmentation, Phys. Rev. D 48 (1993) 4230–4235, [ hep-ph/9302307]
1993 arXiv
-
[60]
Chen, Perturbative QCD predictions for the fragmentation functions of the P wave mesons with two heavy quarks , Phys
Y.-Q. Chen, Perturbative QCD predictions for the fragmentation functions of the P wave mesons with two heavy quarks , Phys. Rev. D 48 (1993) 5181–5189
1993
-
[61]
T. C. Yuan, Perturbative QCD fragmentation functions for production of P wave mesons with charm and beauty , Phys. Rev. D 50 (1994) 5664–5675, [ hep-ph/9405348]
1994 arXiv
-
[62]
Cheung and T
K.-m. Cheung and T. C. Yuan, Heavy quark fragmentation functions for d wave quarkonium and charmed beauty mesons , Phys. Rev. D 53 (1996) 3591–3603, [ hep-ph/9510208]
1996 arXiv
-
[63]
Braaten and T
E. Braaten and T. C. Yuan, Gluon fragmentation into heavy quarkonium , Phys. Rev. Lett. 71 (1993) 1673–1676, [ hep-ph/9303205]
1993 arXiv
-
[64]
L. D. Landau, On the angular momentum of a system of two photons , Dokl. Akad. Nauk SSSR 60 (1948), no. 2 207–209
1948
-
[65]
Yang, Selection Rules for the Dematerialization of a Particle Into Two Photons , Phys
C.-N. Yang, Selection Rules for the Dematerialization of a Particle Into Two Photons , Phys. Rev. 77 (1950) 242–245
1950
-
[66]
P. L. Cho and A. K. Leibovich, Color octet quarkonia production. 2. , Phys. Rev. D 53 (1996) 6203–6217, [ hep-ph/9511315]
1996 arXiv
-
[67]
Cacciari and M
M. Cacciari and M. Greco, J/ψ production via fragmentation at the Tevatron , Phys. Rev. Lett. 73 (1994) 1586–1589, [ hep-ph/9405241]
1994 arXiv
-
[68]
Braaten and T
E. Braaten and T. C. Yuan, Gluon fragmentation into P wave heavy quarkonium , Phys. Rev. D 50 (1994) 3176–3180, [ hep-ph/9403401]
1994 arXiv
-
[69]
G. C. Nayak, J.-W. Qiu, and G. F. Sterman, Fragmentation, factorization and infrared poles in heavy quarkonium production , Phys. Lett. B 613 (2005) 45–51, [ hep-ph/0501235]
2005 arXiv
-
[70]
B. A. Kniehl, D. V. Vasin, and V. A. Saleev, Charmonium production at high energy in the kT -factorization approach, Phys. Rev. D 73 (2006) 074022, [ hep-ph/0602179]. – 37 –
2006 arXiv
-
[71]
A. F. Falk, M. E. Luke, M. J. Savage, and M. B. Wise, Heavy quark fragmentation to baryons containing two heavy quarks , Phys. Rev. D 49 (1994) 555–558, [ hep-ph/9305315]
1994 arXiv
-
[72]
J. P. Ma and Z. G. Si, Factorization approach for inclusive production of doubly heavy baryon, Phys. Lett. B 568 (2003) 135–145, [ hep-ph/0305079]
2003 arXiv
-
[73]
H.-X. Chen, Q. Mao, W. Chen, X. Liu, and S.-L. Zhu, Establishing low-lying doubly charmed baryons, Phys. Rev. D 96 (2017), no. 3 031501, [ arXiv:1707.0177]. [Erratum: Phys.Rev.D 96, 119902 (2017)]
2017
-
[74]
Chatrchyan et
CMS Collaboration, S. Chatrchyan et. al. , J/ψ and ψ2S production in pp collisions at√s = 7 TeV, JHEP 02 (2012) 011, [ arXiv:1111.1557]
2012 arXiv
-
[75]
Khachatryan et
CMS Collaboration, V. Khachatryan et. al., Measurements of the Υ(1S), Υ(2S), and Υ(3S) differential cross sections in pp collisions at √s = 7 TeV, Phys. Lett. B 749 (2015) 14–34, [arXiv:1501.0775]
2015
-
[76]
Abelev et
ALICE Collaboration, B. Abelev et. al. , Inclusive J/ψ production in pp collisions at√s = 2.76 TeV, Phys. Lett. B 718 (2012) 295–306, [ arXiv:1203.3641]. [Erratum: Phys.Lett.B 748, 472–473 (2015)]
2012
-
[77]
Acharya et
ALICE Collaboration, S. Acharya et. al. , Inclusive J/ ψ production at mid-rapidity in pp collisions at √s = 5.02 TeV , JHEP 10 (2019) 084, [ arXiv:1905.0721]
2019
-
[78]
E. J. Eichten and C. Quigg, Quarkonium wave functions at the origin: an update , arXiv:1904.1154
1904
-
[79]
Particle Data GroupCollaboration, R. L. Workman et. al. , Review of Particle Physics , PTEP 2022 (2022) 083C01
2022
-
[80]
Navas et
Particle Data GroupCollaboration, S. Navas et. al. , Review of particle physics , Phys. Rev. D 110 (2024), no. 3 030001
2024
-
[81]
Buckley, J
A. Buckley, J. Butterworth, D. Grellscheid, H. Hoeth, L. Lonnblad, J. Monk, H. Schulz, and F. Siegert, Rivet user manual , Comput. Phys. Commun. 184 (2013) 2803–2819, [arXiv:1003.0694]
2013 arXiv
-
[82]
Bierlich, A
C. Bierlich, A. Buckley, J. M. Butterworth, C. Gutschow, L. Lonnblad, T. Procter, P. Richardson, and Y. Yeh, Robust independent validation of experiment and theory: Rivet version 4 release note , SciPost Phys. Codeb. 36 (2024) 1, [ arXiv:2404.1598]
2024
-
[83]
Buckley, L
A. Buckley, L. Corpe, M. Filipovich, C. Gutschow, N. Rozinsky, S. Thor, Y. Yeh, and J. Yellen, Consistent, multidimensional differential histogramming and summary statistics with YODA 2 , arXiv:2312.1507
-
[84]
Aaboud et
A TLASCollaboration, M. Aaboud et. al. , Measurement of quarkonium production in proton–lead and proton–proton collisions at 5.02 TeV with the ATLAS detector , Eur. Phys. J. C 78 (2018), no. 3 171, [ arXiv:1709.0308]
2018
-
[85]
G. Aad et. al. , Measurement of the differential cross-sections of prompt and non-prompt production of J/ψ and ψ(2S) in pp collisions at √s = 7 and 8 TeV with the ATLAS detector, JHEP 10 (2015) 085
2015
-
[86]
LHCb Collaboration, R. Aaij et. al. , Measurement of the ηc(1S) production cross-section in pp collisions at √s = 13 TeV, Eur. Phys. J. C 80 (2020), no. 3 191, [ arXiv:1911.0332]
2020
-
[87]
LHCb Collaboration, R. Aaij et. al. , Measurement of J/ψ production in pp collisions at√s = 2.76 TeV, JHEP 02 (2013) 041, [ arXiv:1212.1045]. – 38 –
2013 arXiv
-
[88]
CMS Collaboration, A. M. Sirunyan et. al. , Measurement of prompt and nonprompt J/ψ production in pp and pPb collisions at √sNN = 5.02 TeV, Eur. Phys. J. C 77 (2017), no. 4 269, [arXiv:1702.0146]
2017
-
[89]
LHCb Collaboration, R. Aaij et. al. , Measurement of J/ψ production cross-sections in pp collisions at √s = 5 TeV, JHEP 11 (2021) 181, [ arXiv:2109.0022]
2021
-
[90]
A TLASCollaboration, G. Aad et. al. , Measurement of the differential cross-sections of inclusive, prompt and non-prompt J/ψ production in proton-proton collisions at √s = 7 TeV, Nucl. Phys. B 850 (2011) 387–444, [ arXiv:1104.3038]
2011 arXiv
-
[91]
LHCb Collaboration, R. Aaij et. al. , Measurement of J/ψ polarization in pp collisions at√s = 7 TeV, Eur. Phys. J. C 73 (2013), no. 11 2631, [ arXiv:1307.6379]
2013 arXiv
-
[92]
LHCb Collaboration, R. Aaij et. al. , Measurement of J/ψ production in pp collisions at√s = 7 TeV, Eur. Phys. J. C 71 (2011) 1645, [ arXiv:1103.0423]
2011 arXiv
-
[93]
LHCb Collaboration, R. Aaij et. al. , Production of J/psi and Upsilon mesons in pp collisions at sqrt(s) = 8 TeV , JHEP 06 (2013) 064, [ arXiv:1304.6977]
2013 arXiv
-
[94]
Acharya et
ALICE Collaboration, S. Acharya et. al. , Inclusive J/ ψ production at midrapidity in pp collisions at √s = 13 TeV, arXiv:2108.0190
-
[95]
Acharya et
ALICE Collaboration, S. Acharya et. al. , Energy dependence of forward-rapidity J/ψ and ψ(2S) production in pp collisions at the LHC , Eur. Phys. J. C 77 (2017), no. 6 392, [arXiv:1702.0055]
2017
-
[96]
CMS Collaboration, A. M. Sirunyan et. al. , Measurement of quarkonium production cross sections in pp collisions at √s = 13 TeV, Phys. Lett. B 780 (2018) 251–272, [arXiv:1710.1100]
2018
-
[97]
CMS Collaboration, A. M. Sirunyan et. al. , Measurement of prompt ψ(2S) production cross sections in proton-lead and proton-proton collisions at √sNN = 5.02 TeV, Phys. Lett. B 790 (2019) 509–532, [ arXiv:1805.0224]
2019
-
[98]
A TLASCollaboration, G. Aad et. al. , Measurement of Upsilon production in 7 TeV pp collisions at ATLAS , Phys. Rev. D 87 (2013), no. 5 052004, [ arXiv:1211.7255]
2013 arXiv
-
[99]
Chatrchyan et
CMS Collaboration, S. Chatrchyan et. al. , Measurement of the Υ(1S), Υ(2S), and Υ(3S) Cross Sections in pp Collisions at √s = 7 TeV , Phys. Lett. B 727 (2013) 101–125, [arXiv:1303.5900]
2013 arXiv
-
[100]
Chatrchyan et
CMS Collaboration, S. Chatrchyan et. al. , Measurement of the Y (1S), Y(2S) and Y (3S) Polarizations in pp Collisions at √s = 7 TeV, Phys. Rev. Lett. 110 (2013), no. 8 081802, [arXiv:1209.2922]
2013 arXiv
-
[101]
LHCb Collaboration, R. Aaij et. al. , Measurement of Upsilon production in pp collisions at√s = 7 TeV , Eur. Phys. J. C 72 (2012) 2025, [ arXiv:1202.6579]. – 39 –
2012 arXiv
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