REVIEW 2 major objections 5 minor 53 references
Jet-by-jet EEC covariance exposes a hadronization fingerprint the mean spectrum hides.
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
2026-08-04 21:22 UTC pith:JUA7U4RJ
load-bearing objection Careful generator-level study of a genuinely new stochastic EEC observable, but the headline claim about the parton-to-hadron transition outruns what the unpaired parton/hadron samples can support. the 2 major comments →
Jet-by-jet energy correlators as stochastic probes of the parton-to-hadron transition
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 central claim is that going from a parton-level shower to a hadron-level final state changes the jet-by-jet fluctuations of binned energy-energy correlators in a characteristic way: the summed shell variance decreases and neighboring outer-angle shells become more positively correlated, TrC_had/TrC_part < 1 and DeltaL^S_adj > 0, in all 24 tested generator-radius-momentum configurations. The same mean EEC would not register the change. The paper further shows this covariance is not reducible to a few jet-level summaries: residualizing on momentum, multiplicity, total shell weight, active-shell count, and leading fraction still leaves 84-92% of the trace, and shuffle controls fail to repro
What carries the argument
The central object is the per-jet shell increment vector M_J = (M_{J,1}, ..., M_{J,K}), the binned two-point energy-energy correlator of a single jet, with M_{J,k} = sum over constituent pairs z_i z_j times an indicator that their angular separation falls in shell B_k. Retaining this vector per jet turns the EEC into a random measure over angular scale; its covariance matrix C_{k,ell}, the trace TrC, and the average neighboring-shell Pearson correlation on the fixed support 0.30 <= r/R < 1 carry the argument. These quantities receive three- and four-particle contributions because products M_k M_ell include pairs sharing one constituent or four distinct constituents. The physical mechanism te
Load-bearing premise
The load-bearing premise is that the separately generated parton- and hadron-level ensembles differ only by the parton-to-hadron transition; if decays, the 1 GeV constituent threshold, or jet-selection migration drive the sign pattern, the conclusion does not follow.
What would settle it
Generate event-paired parton/hadron samples in which each hadron-level jet is matched to its parton-level ancestor using the tagged color-connected intermediate state recommended for Herwig 7.3, then recompute Eq. (15) after removing decays, the constituent threshold, and jet-selection migration. The claim is falsified if the 24/24 sign pattern TrC_had/TrC_part < 1 and DeltaL^S_adj > 0 disappears or flips under those controlled conditions.
If this is right
- Jet-by-jet EEC covariance becomes a new ensemble-level observable: two models with nearly identical mean EECs can be separated by their fluctuation correlations.
- Because the leading eigenmode carries only about 18-20% of the covariance trace, mean-spectrum fits miss most of the fluctuation structure.
- Residualization shows that most covariance is not due to overall jet activity, so models must generate correlated fluctuations across angular shells.
- The sign of the response is common to Pythia and Herwig, while its size and angular profile differ, making it a potential hadronization model discriminator.
- The result is specific to the fixed 30-shell grid and the 0.30-1.0 support; coarser raw binning does not preserve the sign in one case.
Where Pith is reading between the lines
- Event-paired hadronization corrections would allow decomposition of the change into hadronization itself versus decays, the constituent threshold, and jet selection; preserving the sign in such a paired study would strengthen the conclusion.
- The covariance eigenspectrum and neighboring-shell response are natural tuning statistics for hadronization models, complementing mean-level observables.
- Because the observable is binning- and threshold-dependent, cross-experiment comparisons require standardized grids and thresholds.
- The absence of a common characteristic scale suggests a mixture of mechanisms; systematic scanning in radius and momentum could separate wide-angle fragmentation from boundary migration.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper proposes retaining the binned two-point energy-energy-correlator vector for each jet and studying its covariance across angular shells, rather than only its mean. It first characterizes the stochastic structure in a high-statistics Pythia sample: shell weights are sparse and non-Gaussian, the covariance is spread over many modes, and residualizing on five jet-level summaries leaves most of the covariance trace. It then compares separately generated parton- and hadron-level Pythia and Herwig samples over 24 radius/momentum configurations and reports the fixed sign pattern of Eq. (15): the hadron-level covariance trace is smaller and the average neighboring-shell correlation on 0.30 <= r/R < 1 is larger. The paper interprets this as information about the parton-to-hadron transition absent from the mean EEC.
Significance. If the attribution were clean, this would be a useful new stochastic jet-substructure observable. The statistical methodology is careful: 300-event-block bootstrap, five-fold cross-fitted residualization, shell-permutation and angle-shuffle controls, and K=30/15/10 robustness checks are all present, and the paper is candid about many limitations. The sign pattern in Eq. (15) is at least a nontrivial generator-level observation that could in principle discriminate hadronization models. The main issue is that the comparison of unpaired parton- and hadron-level ensembles does not isolate hadronization from threshold acceptance, decays, and jet-selection migration, so the abstract's transition claim is stronger than the evidence supports.
major comments (2)
- [Sec. V.B/C and Eq. (11)] The central sign pattern TrC_had/TrC_part < 1 is computed from separately generated, unpaired parton- and hadron-level ensembles. Appendix A explicitly states that the Herwig parton sample is 'a post-shower snapshot rather than the tagged, color-connected intermediate state recommended for paired hadronization corrections,' and Sec. V.B concedes that 'the present samples do not separate these effects from decays, the constituent threshold, and jet-selection migration.' This is quantitatively important because the shell weights are normalized to the pre-threshold jet momentum while constituents are accepted only if pT >= 1 GeV. The hadron-level accepted-momentum fraction is therefore systematically lower. If all accepted pair weights were rescaled by a common factor f, each shell increment would scale as f^2 and its variance as f^4, producing TrC_had/TrC_part < 1 even with no change in an
- [Sec. V.C and Eq. (11)] The positive neighboring-shell response DeltaL_adj is evaluated only on the fixed support 0.30 <= r/R < 1, the outermost angular window where wide-angle decays, the constituent threshold, and jet-boundary migration are most active, as the manuscript itself notes in Sec. V.C. The claim that hadronization increases neighboring-shell correlation is therefore not isolated from these effects. Decays and threshold acceptance can also create multiple soft hadrons in the same local angular region, which would inflate Rhad_{k,k+1} without any change in the underlying fragmentation process. Additional controls are needed: for example, disabling decays, varying the constituent threshold, or comparing stable hadrons before decays. Without them, the positive sign of DeltaL_adj cannot be attributed specifically to the parton-to-hadron transition.
minor comments (5)
- [Sec. III.B/Appendix B] The statement that the support 0.30 <= r/R < 1 was selected before evaluating any hadron-minus-parton response cannot be verified externally. Since the headline DeltaL_adj depends on this support, the provenance statement should be accompanied by a preregistration-style record or by a systematic scan over inner supports, not only neighboring lower boundaries.
- [Table II] The raw K=10 one-pair response is sign-stable in only 21/24 configurations. The paper is appropriately cautious in restricting the common claim to the fixed K=30 observable, but the abstract and conclusions should carry the same restriction more explicitly.
- [Sec. IV.C] The residualization feature set includes S_J and N_active,J, which are summaries of the shell vector itself. The paper acknowledges this, but the reader should be reminded that Fres and the conditioned DeltaL_adj are not independent of the covariance being studied; they are conditional statements about the chosen predictor set.
- [Fig. 7] The third panel of Fig. 7 is a pointwise standardized difference, not a simultaneous significance map. This is stated in the text, but the color scale saturating at 10 may invite over-interpretation; consider adding a note in the caption.
- [References] Reference [18] contains a nonstandard DOI placeholder ('10.1103/tgtl-7xh9') that should be corrected before publication.
Circularity Check
No significant circularity: the central claim is a direct Monte Carlo observation with acknowledged identification caveats.
full rationale
The paper's central quantitative claim, Eq. (15), is a direct Monte Carlo observation: across 24 generator-radius-momentum configurations, the hadron-level covariance trace is smaller and the neighboring-shell correlation is larger than at parton level. No parameter is fitted to a subset and then relabeled as a prediction; the quantities are fixed-grid summaries of generated ensembles. The residualization in Sec. III B uses features that include S_J and N_active,J, which are summaries of the shell vector itself, but the paper explicitly states this is 'a residualization test rather than a full conditional-distribution estimate' and uses held-out residuals descriptively. This is a transparent statistical limitation, not a circular derivation. Similarly, the unpaired parton/hadron samples do not isolate hadronization from decays, the constituent threshold, and jet-selection migration; the paper concedes this in Sec. V B and Appendix A. That is a threat to the physical interpretation of the sign pattern, not a reduction of the result to its inputs. There are no load-bearing self-citations: the references to cumulant and hypergraph constructions are contextual, and the paper does not invoke any uniqueness theorem from prior work to force its choice. The comparison is self-contained generator-level data analysis, so no equation is equivalent to its own input by construction.
Axiom & Free-Parameter Ledger
free parameters (4)
- Fixed support S = {25,...,30} (0.30 <= r/R < 1) =
six outermost of 30 logarithmic shells
- 30-shell logarithmic grid over 0.0025R <= r < R =
K = 30
- Residualization feature set and functional form =
five features, additive linear and quadratic terms
- pT representatives and occupancy thresholds for characteristic-position test =
45/55/70/90 GeV; 30 nonzero event blocks
axioms (4)
- domain assumption Pythia 8.315 (Monash) and Herwig 7.3.0 event generation faithfully represents QCD jet production at sqrt(s) = 5.02 TeV.
- domain assumption Separately generated parton- and hadron-level samples with matched configurations form a valid population-level contrast for the parton-to-hadron transition.
- domain assumption The threshold-dependent, non-collinear-safe observable still carries meaningful hadronization information despite the pT >= 1 GeV constituent cut and pre-threshold normalization.
- standard math Event-block bootstrap with 300 replicas adequately estimates sampling uncertainties for these covariance functionals.
Cite this review
Pith. "Pith review of Jet-by-jet energy correlators as stochastic probes of the parton-to-hadron transition." pith.science (2026). https://pith.science/paper/JUA7U4RJ
@misc{pith2026260801764,
author = {Pith},
title = {Pith review of: Jet-by-jet energy correlators as stochastic probes of the parton-to-hadron transition},
year = {2026},
howpublished = {\url{https://pith.science/paper/JUA7U4RJ}},
note = {Machine review of arXiv:2608.01764}
}
read the original abstract
Energy-energy correlators are usually reported as ensemble averages and therefore do not specify how different angular regions fluctuate together from jet to jet. We retain the binned two-point correlator for each jet and study the distribution and covariance of its angular-shell weights. In a high-statistics Pythia sample, the shell variables are sparse and strongly non-Gaussian, and their covariance contains nonzero cross-shell structure spread over many modes. Regressing each shell on five jet-level summaries leaves 84-92% of the covariance trace, while shell-wise permutation and constituent-angle shuffling do not reproduce the observed off-diagonal correlations. We then compare separately generated parton- and hadron-level samples in Pythia and Herwig. Across 24 generator-radius-momentum configurations, the hadron-level covariance trace is smaller and the average neighboring-shell correlation over 0.30 <= r/R < 1 is larger. The size and angular dependence of the change differ between the generators, and a characteristic-position analysis does not identify a common scale. Jet-by-jet EEC covariance thus provides information on the parton-to-hadron transition that is absent from the mean spectrum.
Figures
Reference graph
Works this paper leans on
-
[1]
C. L. Basham, L. S. Brown, S. D. Ellis, and S. T. Love, En- ergy correlations in electron-positron annihilation: Test- ing QCD, Phys. Rev. Lett.41, 1585 (1978)
work page 1978
-
[2]
A. J. Larkoski, G. P. Salam, and J. Thaler, Energy Cor- relation Functions for Jet Substructure, JHEP06(2013), 108, arXiv:1305.0007 [hep-ph]
Pith/arXiv arXiv 2013
-
[3]
L. J. Dixon, I. Moult, and H. X. Zhu, Collinear limit of the energy-energy correlator, Phys. Rev. D100, 014009 (2019), arXiv:1905.01310 [hep-ph]
Pith/arXiv arXiv 2019
-
[4]
H. Chen, I. Moult, X. Zhang, and H. X. Zhu, Rethinking jets with energy correlators: Tracks, resummation, and analytic continuation, Phys. Rev. D102, 054012 (2020), arXiv:2004.11381 [hep-ph]
Pith/arXiv arXiv 2020
-
[5]
I. Moult and H. X. Zhu, Energy Correlators: A Jour- ney From Theory to Experiment, arXiv e-prints (2025), arXiv:2506.09119 [hep-ph]
Pith/arXiv arXiv 2025
-
[6]
H. Chen, M.-X. Luo, I. Moult, T.-Z. Yang, X. Zhang, and H. X. Zhu, Three point energy correlators in the collinear limit: symmetries, dualities and analytic results, JHEP 08(2020), 028, arXiv:1912.11050 [hep-ph]
Pith/arXiv arXiv 2020
-
[7]
H. Chen, I. Moult, J. Sandor, and H. X. Zhu, Celestial blocks and transverse spin in the three-point energy cor- relator, JHEP09(2022), 199, arXiv:2202.04085 [hep-ph]
Pith/arXiv arXiv 2022
-
[8]
T.-Z. Yang and X. Zhang, Analytic Computation of three- point energy correlator in QCD, JHEP09(2022), 006, arXiv:2208.01051 [hep-ph]
Pith/arXiv arXiv 2022
-
[9]
D. Neill, G. Vita, I. Vitev, and H. X. Zhu, Energy-Energy Correlators for Precision QCD, inSnowmass 2021(2022) arXiv:2203.07113 [hep-ph]
Pith/arXiv arXiv 2021
-
[10]
A. Gao, H. T. Li, I. Moult, and H. X. Zhu, The trans- verse energy-energy correlator at next-to-next-to-next-to- leading logarithm, JHEP09(2024), 072, arXiv:2312.16408 [hep-ph]
Pith/arXiv arXiv 2024
-
[11]
K. Lee, Y. Li, Z. Xu, and X. Zhang, Projected Energy Correlators: Two-Loop Jet Functions and NNLL Resum- mation, arXiv e-prints (2026), arXiv:2606.02714 [hep-ph]
Pith/arXiv arXiv 2026
-
[12]
FastEEC: Fast Evaluation of N-point Energy Correlators
A. Budhraja and W. J. Waalewijn, FastEEC: Fast eval- uation of N-point energy correlators, Phys. Lett. B861, 139276 (2025), arXiv:2406.08577 [hep-ph]
work page internal anchor Pith review Pith/arXiv arXiv 2025
-
[13]
A. Budhraja, H. Chen, and W. J. Waalewijn, ν-point en- ergy correlators with FastEEC: Small-x physics from LHC jets, Phys. Lett. B861, 139239 (2025), arXiv:2409.12235 [hep-ph]
Pith/arXiv arXiv 2025
-
[14]
S. Alipour-fard, A. Budhraja, J. Thaler, and W. J. Waalewijn, New Angles on Energy Correlators, Phys. Rev. Lett.134, 231902 (2025), arXiv:2410.16368 [hep-ph]
Pith/arXiv arXiv 2025
-
[15]
S. Alipour-fard and W. J. Waalewijn, Energy correlators beyond angles, JHEP07(2025), 043, arXiv:2501.17218 [hep-ph]
arXiv 2025
-
[16]
Z. Mi and Z. Wang, One-point energy correlator inside jets, JHEP11(2025), 090, arXiv:2507.21613 [hep-ph]
Pith/arXiv arXiv 2025
-
[17]
A. Hayrapetyanet al.(CMS), Measurement of Energy Correlators inside Jets and Determination of the Strong Coupling αS(mZ), Phys. Rev. Lett.133, 071903 (2024), arXiv:2402.13864 [hep-ex]
Pith/arXiv arXiv 2024
-
[18]
ALICE Collaboration, Exposing the parton-hadron tran- sition within jets with energy-energy correlators in pp collisions at √s = 5.02 TeV, Phys. Rev. D 10.1103/tgtl- 7xh9 (2026), accepted for publication, arXiv:2409.12687 [hep-ex]
Pith/arXiv arXiv 2026
-
[19]
B. E. Aboonaet al.(STAR), Measurement of Two- Point Energy Correlators within Jets in p+p Collisions at √s = 200 GeV, Phys. Rev. Lett.135, 111901 (2025), arXiv:2502.15925 [hep-ex]
Pith/arXiv arXiv 2025
-
[20]
S. Acharyaet al.(ALICE), Energy-energy correlators in charm-tagged jets in proton-proton collisions at √s=13 TeV, arXiv e-prints (2025), arXiv:2504.03431 [hep-ex]
Pith/arXiv arXiv 2025
-
[21]
J. Holguin, I. Moult, A. Pathak, M. Procura, R. Sch¨ ofbeck, and D. Schwarz, Using the W Boson as a Standard Candle to Reach the Top: Calibrating Energy-Correlator-Based Top Mass Measurements, Phys. Rev. Lett.134, 231903 (2025), arXiv:2311.02157 [hep-ph]
Pith/arXiv arXiv 2025
-
[22]
J. Holguin, I. Moult, A. Pathak, M. Procura, R. Sch¨ ofbeck, and D. Schwarz, Top quark mass extractions from energy correlators: a feasibility study, JHEP04(2025), 072, arXiv:2407.12900 [hep-ph]
Pith/arXiv arXiv 2025
-
[23]
H. Chen, I. Moult, J. Thaler, and H. X. Zhu, Non- Gaussianities in collider energy flux, JHEP07(2022), 146, arXiv:2205.02857 [hep-ph]
Pith/arXiv arXiv 2022
-
[24]
P. T. Komiske, E. M. Metodiev, and J. Thaler, Energy flow polynomials: A complete linear basis for jet substructure, JHEP04(2018), 013, arXiv:1712.07124 [hep-ph]
Pith/arXiv arXiv 2018
-
[25]
P. T. Komiske, I. Moult, J. Thaler, and H. X. Zhu, Analyzing N-Point Energy Correlators inside Jets with CMS Open Data, Phys. Rev. Lett.130, 051901 (2023), arXiv:2201.07800 [hep-ph]
Pith/arXiv arXiv 2023
-
[26]
W. Zhao, V. Koch, and F. Yuan, Particle Correlations in Jets, arXiv e-prints (2025), arXiv:2507.18790 [hep-ph]
Pith/arXiv arXiv 2025
-
[27]
P. Duan, W. Ke, G.-Y. Qin, and L. Wang, Uncover the correlation between jet energy correlators and multiplicity fluctuations, arXiv e-prints (2026), arXiv:2604.01102 [hep- ph]
arXiv 2026
-
[28]
A. Bal, M. Klute, B. Maier, and M. Spannowsky, From Information Geometry to Jet Substructure: A Triality of Cumulant Tensors, Energy Correlators, and Hypergraphs, arXiv e-prints (2026), arXiv:2605.03063 [hep-ph]
Pith/arXiv arXiv 2026
-
[29]
Dissecting Parton Showers with Multi-Point Energy Correlators
M. Gonzalez, P. Harris, K. Lee, I. Moult, and S. Roth- man, Dissecting Parton Showers with Multi-Point Energy Correlators, arXiv e-prints (2026), arXiv:2607.07792 [hep- ph]
work page internal anchor Pith review Pith/arXiv arXiv 2026
-
[30]
S. T. Schindler, I. W. Stewart, and Z. Sun, Renormalons in the energy-energy correlator, JHEP10(2023), 187, [Erratum: JHEP 10, 175 (2024)], arXiv:2305.19311 [hep- ph]
Pith/arXiv arXiv 2023
-
[31]
K. Lee, A. Pathak, I. W. Stewart, and Z. Sun, Nonpertur- bative Effects in Energy Correlators: From Characterizing Confinement Transition to Improvingαs Extraction, Phys. Rev. Lett.133, 231902 (2024), arXiv:2405.19396 [hep-ph]
Pith/arXiv arXiv 2024
-
[32]
H. Chen, P. F. Monni, Z. Xu, and H. X. Zhu, Scaling Violation in Power Corrections to Energy Correlators from the Light-Ray Operator Product Expansion, Phys. Rev. Lett.133, 231901 (2024), arXiv:2406.06668 [hep-ph]
Pith/arXiv arXiv 2024
-
[33]
Y. Li, I. Moult, S. S. van Velzen, W. J. Waalewijn, and H. X. Zhu, Extending Precision Perturbative QCD with Track Functions, Phys. Rev. Lett.128, 182001 (2022), arXiv:2108.01674 [hep-ph]
Pith/arXiv arXiv 2022
-
[34]
M. Jaarsma, Y. Li, I. Moult, W. Waalewijn, and H. X. Zhu, Renormalization group flows for track function moments, JHEP06(2022), 139, arXiv:2201.05166 [hep-ph]
Pith/arXiv arXiv 2022
-
[35]
M. Jaarsma, Y. Li, I. Moult, W. J. Waalewijn, and H. X. Zhu, Energy correlators on tracks: resumma- tion and non-perturbative effects, JHEP12(2023), 087, 14 arXiv:2307.15739 [hep-ph]
Pith/arXiv arXiv 2023
-
[36]
K. Lee and I. Moult, Energy Correlators Taking Charge, arXiv e-prints (2023), arXiv:2308.00746 [hep-ph]
Pith/arXiv arXiv 2023
-
[37]
X. Liu, W. Vogelsang, F. Yuan, and H. X. Zhu, Universal- ity in the Near-Side Energy-Energy Correlator, Phys. Rev. Lett.134, 151901 (2025), arXiv:2410.16371 [hep-ph]
Pith/arXiv arXiv 2025
-
[38]
V. Chekhovskyet al.(CMS), Observation of nuclear modification of energy-energy correlators inside jets in heavy ion collisions, Phys. Lett. B866, 139556 (2025), arXiv:2503.19993 [nucl-ex]
Pith/arXiv arXiv 2025
-
[39]
C. Andres, F. Dominguez, J. Holguin, C. Marquet, and I. Moult, Towards an interpretation of the first measure- ments of energy correlators in the quark-gluon plasma, JHEP03(2025), 166, arXiv:2407.07936 [hep-ph]
Pith/arXiv arXiv 2025
-
[40]
H. Bossi, A. S. Kudinoor, I. Moult, D. Pablos, A. Rai, and K. Rajagopal, Imaging the wakes of jets with energy-energy-energy correlators, JHEP12(2024), 073, arXiv:2407.13818 [hep-ph]
Pith/arXiv arXiv 2024
-
[41]
B. Singh and V. Vaidya, Factorization for energy-energy correlator in heavy ion collision, JHEP06(2025), 071, arXiv:2408.02753 [hep-ph]
Pith/arXiv arXiv 2025
-
[42]
J. Barata, Z.-B. Kang, X. Mayo L´ opez, and J. Pent- tala, Energy-Energy Correlator for Jet Production in pp and pA Collisions, Phys. Rev. Lett.134, 251903 (2025), arXiv:2411.11782 [hep-ph]
Pith/arXiv arXiv 2025
-
[43]
J. Barata, I. Moult, A. V. Sadofyev, and J. M. Silva, Dis- secting Jet Modification in the QGP with Multi-Point En- ergy Correlators, arXiv e-prints (2025), arXiv:2503.13603 [hep-ph]
Pith/arXiv arXiv 2025
-
[44]
C. Andres, J. Holguin, R. Kunnawalkam Elayavalli, and J. Viinikainen, Minimizing Selection Bias in Inclusive Jets in Heavy-Ion Collisions with Energy Correlators, Phys. Rev. Lett.134, 082303 (2025), arXiv:2409.07514 [hep-ph]
Pith/arXiv arXiv 2025
-
[45]
M. Cacciari, G. P. Salam, and G. Soyez, The anti- kt jet clustering algorithm, JHEP04(2008), 063, arXiv:0802.1189 [hep-ph]
Pith/arXiv arXiv 2008
-
[46]
M. Cacciari, G. P. Salam, and G. Soyez, FastJet User Manual, Eur. Phys. J. C72, 1896 (2012), arXiv:1111.6097 [hep-ph]
Pith/arXiv arXiv 2012
-
[47]
Bierlichet al., A comprehensive guide to the physics and usage of PYTHIA 8.3, SciPost Phys
C. Bierlichet al., A comprehensive guide to the physics and usage of PYTHIA 8.3, SciPost Phys. Codeb.2022, 8 (2022), arXiv:2203.11601 [hep-ph]
Pith/arXiv arXiv 2022
-
[48]
Bierlichet al., Codebase release 8.3 for PYTHIA, Sci- Post Phys
C. Bierlichet al., Codebase release 8.3 for PYTHIA, Sci- Post Phys. Codebases 8-r8.3 (2022)
work page 2022
-
[49]
P. Skands, S. Carrazza, and J. Rojo, Tuning PYTHIA 8.1: the Monash 2013 Tune, Eur. Phys. J. C74, 3024 (2014), arXiv:1404.5630 [hep-ph]
Pith/arXiv arXiv 2013
-
[50]
Bellmet al., Herwig 7.2 release note, Eur
J. Bellmet al., Herwig 7.2 release note, Eur. Phys. J. C 80, 452 (2020), arXiv:1912.06509 [hep-ph]
Pith/arXiv arXiv 2020
-
[51]
Bewicket al., Herwig 7.3 release note, Eur
G. Bewicket al., Herwig 7.3 release note, Eur. Phys. J. C84, 1053 (2024), arXiv:2312.05175 [hep-ph]
Pith/arXiv arXiv 2024
-
[52]
H. Chen, M. Jaarsma, Y. Li, I. Moult, W. J. Waalewijn, and H. X. Zhu, Multi-collinear splitting ker- nels for track function evolution, JHEP07(2023), 185, arXiv:2210.10058 [hep-ph]
Pith/arXiv arXiv 2023
-
[53]
H. Chen, M. Jaarsma, Y. Li, I. Moult, W. J. Waalewijn, and H. X. Zhu, Collinear parton dynamics beyond Dokshitzer-Gribov-Lipatov-Altarelli-Parisi frame- work, Phys. Rev. D111, 076021 (2025), arXiv:2210.10061 [hep-ph]
Pith/arXiv arXiv 2025
discussion (0)
Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.