REVIEW 3 major objections 4 minor 2 cited by
High-energy dynamics of QCD: Theoretical and phenomenological results
T0 review · 3 major / 4 minor · reviewed 2026-08-07 · deepseek-v4-flash
Pith's one-line read The real NLO corrections to the Higgs impact factor are computed with a physical top-quark mass and shown to reduce to the infinite-top-mass result after the rapidity divergence cancels against the BFKL counter-term.
desk verdict A serious, honest thesis whose one genuinely new result is the real NLO Higgs impact factor with finite top mass; the virtual part is deferred and the rapidity-cancellation proof needs the missing Package X expansions, but the core calculation is likely right. 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 central object is the Higgs impact factor $\Phi_{PP}^{(Hg)}$ defined by BFKL factorization, which describes the transition of a collinear parton plus a Reggeized gluon into a forward Higgs plus an extra parton, integrated over the unobserved part of the final state. The computation is carried by the off-shell $ggH$ and $gggH$ tensor form factors $F_T$, $F_L$ and $B_a,B_b,B_c$ built from massive top-quark loop integrals, together with the BFKL counter-term that cancels the rapidity divergence. The crucial mechanism is the expansion around $z_H=1$ of the six box-type coefficients, where all enhanced $\frac{1}{1-z_H}\ln(1-z_H)$ and $\frac{1}{1-z_H}\ln^2(1-z_H)$ terms cancel term by term, and the surviving $D_0$ box integral is evaluated through its asymptotic large-$s$ form, leaving the single soft-divergent $\frac{1}{1-z_H}$ term that combines with the counter-term to yield the finite Eq. (2.80).
What would settle it
Ask for the full expansion of the ten coefficients in Eq. (2.47) around $z_H=1$: if any of the $\frac{1}{1-z_H}\ln^2(1-z_H)$ or $\frac{1}{1-z_H}\ln(1-z_H)$ terms survive, the claimed finite term Eq. (2.80) would be incomplete. Alternatively, evaluate the box diagrams numerically at $z_H$ close to 1 and compare the integrand with the asymptotic $D_0$ expression (2.66).
Extended reading notes
Core claim
On the paper's own terms, the discovery is that the real part of the NLO Higgs impact factor can be evaluated keeping the full top-quark mass dependence. The amplitudes are organized into quark-initiated and gluon-initiated contributions; the gluon-initiated part is further split into triangular- and box-type diagrams. In the $z_H \to 1$ (high-rapidity) limit the naive $\ln(1-z_H)$ and $\ln^2(1-z_H)$ terms in the box coefficients cancel, leaving only the single $1/(1-z_H)$ divergence that matches the BFKL prediction and is removed by the counter-term. The final finite contribution is Eq. (2.80), proportional to $|F_T(0,-\vec p_H^2,m_t^2)|^2$, which in the infinite-top limit reproduces Ref. [60]. The paper also argues that the $s \to \infty$ and $m_t \to \infty$ limits do not commute: in the finite-mass calculation the $t$- and $s$-channel triangular diagrams are suppressed by $(1-z_H)$, and only the $u$-channel diagram contributes to the rapidity limit, whereas in the constant-coupling infinite-mass case all diagrams contribute and cancel.
Load-bearing premise
The whole consistency argument rests on the claim that the most divergent pieces of the box diagrams cancel exactly when expanded near the high-rapidity limit, a cancellation that is stated but not displayed in full.
Editorial extensions
If this is right
- The full NLO Higgs impact factor, with virtual corrections added, will enable precision BFKL-resummed predictions for forward Higgs production and Higgs-plus-jet at the LHC and the FCC, free of the infinite-top-mass approximation.
- In the kinematic region where the Higgs transverse momentum is comparable to $m_t$, the finite-mass result will differ from the effective-operator prediction in a way that can be tested by measuring transverse-momentum distributions at large rapidity separations.
- The explicit cancellation of the rapidity divergence strengthens the consistency of BFKL factorization with gluon Reggeization at NLO.
- The updated TQHL1.1 and TQ4Q1.1 fragmentation functions give concrete, DGLAP-evolved predictions for tetraquark-plus-jet rates at 14 and 100 TeV, so a comparison with LHC data will test both the tetraquark production model and the BFKL dynamics.
- The leading-order analytical cross section for diffractive di-hadron production provides the starting point for numerical CGC predictions that can be compared with saturation and non-saturation scenarios at the EIC and in ultraperipheral LHC collisions.
Reading between the lines
- If the finite-mass result survives the check of virtual corrections, it would suggest that high-energy resummations of forward-Higgs processes should be re-run at FCC energies, because the infinite-top approximation is precisely the region where large energy logarithms and top-threshold effects overlap.
- The non-commutativity of the $s \to \infty$ and $m_t \to \infty$ limits highlighted for the triangular diagrams is a caution for effective-field-theory treatments of heavy-quark loops: the same vertex that looks safe in the effective theory at leading power can change the high-energy singularity structure when mass effects are restored.
- The pattern that the gluon-initiated tetraquark fragmentation functions grow slowly with the factorization scale and help stabilize the resummed distributions suggests that similar stabilization could appear for other exotic-hadron channels, such as charmed tetraquarks or pentaquarks; this is an extrapolation beyond the thesis.
- A testable extension would be to compare the back-to-back diffractive di-hadron cross section with the CGC dipole model against the same observable computed without saturation, since the analytical expression derived here is directly amenable to that numerical comparison.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This manuscript, formatted as a PhD thesis, develops the BFKL formalism and applies it to three topics in high-energy QCD. Its central new result, in Chapter 2, is the computation of the real next-to-leading-order (NLO) corrections to the forward-Higgs impact factor in gluon-Reggeon collisions with a finite top-quark mass. The chapter derives quark- and gluon-initiated contributions, verifies gauge invariance, isolates soft, collinear, and rapidity singularities, and claims that after inclusion of the BFKL counter-term the rapidity divergence cancels, leaving the finite term in Eq. (2.80). Chapter 3 presents two new families of collinear fragmentation functions for tetraquarks (TQHL1.1 and TQ4Q1.1) and uses them in a hybrid NLLA/NLO+ factorization to produce rapidity-interval and transverse-momentum distributions at 14 and 100 TeV. Chapter 4 derives a leading-order analytic expression for diffractive di-hadron production in the CGC/saturation framework, with the GBW dipole model, and states that numerical results are still in progress.
Significance. If the Chapter 2 claim is correct, the real-emission part of the NLO Higgs impact factor with physical top mass is a meaningful advance beyond the infinite-top-mass approximation and provides a necessary ingredient for a future complete NLO impact factor. The manuscript contains several verifiable checks: agreement of the amplitudes with VBFNLO and with known helicity amplitudes, explicit gauge-invariance cancellation at q=0, and reduction to the infinite-top-mass result of Ref. [60] in the appropriate limit. The comparison with the infinite-top-mass case is a legitimate consistency check rather than a fit to the target result. Chapter 3 is strengthened by the public release of the TQHL1.1 and TQ4Q1.1 fragmentation functions and by numerical predictions obtained with the JETHAD framework. The significance of Chapter 4 is presently limited because it is explicitly an ongoing analysis with no numerical results. However, the central rapidity-divergence proof in Chapter 2 is not fully documented, and this is the main obstacle to endorsing the paper's central claim.
major comments (3)
- [Sec. 2.4.2.5, Eqs. (2.47)-(2.68)] The cancellation of all ln^2(1-z_H) and ln(1-z_H) enhanced terms among the ten coefficients contributing to the box amplitude is the load-bearing step that reduces the z_H -> 1 limit to the BFKL-compatible 1/(1-z_H) form of Eq. (2.68). The manuscript states that Package X was used, but it does not display the expansions, provide an auxiliary file, or give a reproducible derivation. This cancellation is nontrivial because the coefficients in Eq. (2.47) are linear combinations of tensor integrals with s ~ 1/(1-z_H), and several terms carry explicit (1-z_H)^{-1} prefactors. If the cancellation is incomplete, the impact factor would contain non-BFKL rapidity logarithms that the counter-term in Eq. (2.1) cannot absorb, invalidating Eq. (2.80). The authors should supply the full z_H -> 1 expansions, or a machine-readable notebook that reproduces the cancellation for all ten coefficient combinations.
- [Sec. 2.4.2.5, Eq. (2.66)] The asymptotic formula for the scalar box integral D0 in the s -> infinity limit is quoted without derivation. The expression contains logarithms of ratios involving sqrt(1 - 4 m_t^2 / m_H^2), which is imaginary for the physical values m_t = 172 GeV and m_H = 125 GeV, yet no branch convention or prescription for the analytic continuation is given. The finite remainder after the rapidity cancellation, Eq. (2.80), and the subtraction terms in Eqs. (2.70)-(2.75) depend on the precise values and phases of these logarithms. The authors should provide the derivation of Eq. (2.66), specify the branch choices, or validate the asymptotic form numerically against a direct evaluation of D0 in the z_H -> 1 limit.
- [Sec. 2.5 and Abstract] The manuscript computes only the real-emission part of the NLO impact factor; the virtual corrections are explicitly deferred to future work in Sec. 2.5. As a consequence, the claimed cancellation of soft divergences and the organization of the collinear-remnant terms in Eqs. (2.71)-(2.80) are statements about how the real part is expected to combine with the future virtual part, not a complete demonstration for the full NLO impact factor. The abstract's wording, which refers to 'demonstrating the cancellation of divergences in the full impact factor', overstates what is established. The chapter title and abstract should either explicitly restrict the claim to the real-emission contribution or the full NLO calculation should be completed.
minor comments (4)
- [Sec. 2.2.2, Eqs. (2.19)-(2.22)] The notation for the D-coefficients is introduced through the mapping in Eq. (2.20) before the tensor decomposition in Eqs. (2.21)-(2.22) is defined, which forces the reader to jump forward and back; reordering or a short defining table would improve readability.
- [Sec. 3.4, Figs. 3.12-3.15] The figure captions state that the ancillary panels show the ratio of LL/LO to NLLA/NLO+ predictions, but the main text says the panels emphasize the ratio between 'LL/LO or HE-NLO+' and NLLA/NLO+ predictions; the captions should be updated to describe exactly which ratios are plotted.
- [Sec. 3.2.2.2, Eq. (3.23)] The estimate <O_{T4b}>/<O_{T4c}> ~ 400 from (m_b alpha_s^{(b)} / m_c alpha_s^{(c)})^9 should be accompanied by the numerical values of the couplings used, since different choices for alpha_s at the respective scales can change the estimate by a large factor and thereby affect the T4b predictions.
- [Sec. 4.2.1, Eqs. (4.25)-(4.28)] The passage from Eq. (4.25) to Eq. (4.28) states that the z1 and z2 integrations can be performed analytically, but the intermediate integral identities are not shown; for a chapter that is otherwise presented as a derivation, the analytic evaluation of the z1-z2 integrals should be given or referenced explicitly.
Circularity Check
No significant circularity: central Chapter 2 derivation is an ab initio amplitude computation checked against external benchmarks; Chapter 3-4 use model parameters, not fitted circular predictions.
full rationale
The derivation chain in Chapter 2 is self-contained: the ggH and gggH amplitudes are computed from the Standard Model with FormCalc, cross-checked against VBFNLO and against known on-shell helicity amplitudes, and the infinite-top-mass limit is used only as a consistency boundary condition, not as an input that fixes the finite-m_t result. The rapidity-divergence analysis is an algebraic verification (via Package X expansions) that the ln^n(1-z_H) terms cancel among the ten coefficients and that the surviving D0 integral produces the BFKL-compatible 1/(1-z_H) term, which is then cancelled by the standard counter-term in Eq. (2.1); this is a check of BFKL factorization rather than a definitional identity. Chapter 3 contains parameter choices (e.g., <q_T^2> and LDMEs) and the use of the authors' own fragmentation functions, but these are model inputs that are not fitted to the output observables, and the hybrid-factorization formulae are standard BFKL/NLLA expressions with external PDFs/FFs. Chapter 4 presents an LO derivation from established shockwave/GBW ingredients. No equation used as an input is equivalent by construction to a claimed prediction, and no load-bearing premise rests on a self-citation chain. The absence of displayed Package X expansions is a reproducibility and verification-detail issue, not circularity.
Assumptions & free parameters
free parameters (5)
- transverse momentum width <q_T^2> for TQHL1.1 =
4 GeV^2
- hadron decay constant f_B =
0.25 GeV
- heavy quark masses m_Q =
m_c = 1.5 GeV, m_b = 4.9 GeV
- T4c LDMEs and T4b/T4c LDME ratio =
0.0347, 0.0128, 0.0211, 0.072 GeV^9; ratio ~400
- GBW dipole model parameters =
sigma_0 = 23.03 mb, lambda = 0.288, x_0 = 3.04e-4, Q_0 = 1 GeV
assumptions (6)
- domain assumption Gluon Reggeization and the factorized form of high-energy amplitudes hold in LLA and NLLA.
- domain assumption The NLLA impact factor is defined by Eq. (2.1) with the s_Lambda MRK/QMRK separation and the BFKL counter-term.
- standard math The off-shell ggH vertex is fully described by the two form factors F_T and F_L of Eq. (2.7) with QED-like Ward identities.
- domain assumption NLO BFKL kernel eigenvalues and NLO emission functions retain the form of Eqs. (3.29)-(3.35) when applied to heavy-flavor tetraquarks in a VFNS.
- domain assumption The dipole amplitude of the target is represented by the GBW parametrization Eq. (4.23) with fixed parameters.
- ad hoc to paper The z_H to 1 asymptotic expansions of box-type scalar integrals, including Eq. (2.66) and the cancellation of ln^2 terms, are correct as extracted with Package X.
Cite this review
Pith. "Pith review of High-energy dynamics of QCD: Theoretical and phenomenological results." pith.science (2026). https://pith.science/paper/5NZOI22M
@misc{pith2026250603222,
author = {Pith},
title = {Pith review of: High-energy dynamics of QCD: Theoretical and phenomenological results},
year = {2026},
howpublished = {\url{https://pith.science/paper/5NZOI22M}},
note = {Machine review of arXiv:2506.03222}
}
read the original abstract
This work investigates the behavior of hadronic matter in the high-energy Regge-Gribov (semi-hard) regime of Quantum Chromodynamics (QCD), accessible through current and future colliders such as the LHC, EIC, and FCC. Central to the analysis is the Balitsky-Fadin-Kuraev-Lipatov (BFKL) formalism, with detailed treatment of the BFKL equation in both leading and next-to-leading logarithmic approximations. A major focus is placed on the computation of real next-to-leading order (NLO) corrections to the Higgs boson impact factor, incorporating finite top-quark mass effects. These corrections are essential for improving precision in Higgs production processes at large rapidity separations. The study also explores the semi-inclusive production of exotic tetraquark states, employing a hybrid framework that combines collinear and BFKL dynamics within a variable-flavor number scheme. Updated fragmentation functions for bottomonium-like states are provided, offering improved predictions at 14 TeV and 100 TeV. Additionally, the work addresses diffractive di-hadron production in the small-x saturation regime using the Color Glass Condensate (CGC) formalism, presenting preliminary leading-order analytical results.
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Reference graph
Works this paper leans on
-
[60]
The next-to-leading order Higgs impact factor in the infinite top-mass limit
Francesco Giovanni Celiberto et al. “The next-to-leading order Higgs impact factor in the infinite top-mass limit”. In:JHEP 08 (2022), p. 092.doi: 10. 1007/JHEP08(2022)092. arXiv: 2205.02681 [hep-ph]
arXiv 2022
-
[1]
Deep inelastic e p scattering in perturbation theory
V. N. Gribov and L. N. Lipatov. “Deep inelastic e p scattering in perturbation theory”. In:Sov. J. Nucl. Phys.15 (1972), pp. 438–450
1972
-
[2]
Calculation of the Structure Functions for Deep Inelas- tic Scattering and e+ e- Annihilation by Perturbation Theory in Quantum Chromodynamics
Yuri L. Dokshitzer. “Calculation of the Structure Functions for Deep Inelas- tic Scattering and e+ e- Annihilation by Perturbation Theory in Quantum Chromodynamics.” In: Sov. Phys. JETP46 (1977), pp. 641–653
1977
-
[3]
Asymptotic Freedom in Parton Language
Guido Altarelli and G. Parisi. “Asymptotic Freedom in Parton Language”. In: Nucl. Phys. B126(1977),pp.298–318. doi: 10.1016/0550-3213(77)90384- 4
-
[4]
On the Pomeranchuk Sin- gularityinAsymptoticallyFreeTheories
Victor S. Fadin, E.A. Kuraev, and L.N. Lipatov. “On the Pomeranchuk Sin- gularityinAsymptoticallyFreeTheories”.In: Phys. Lett. B60(1975),pp.50–
1975
-
[5]
Multi - Reggeon Processes in the Yang-Mills Theory
E. A. Kuraev, L. N. Lipatov, and Victor S. Fadin. “Multi - Reggeon Processes in the Yang-Mills Theory”. In:Sov. Phys. JETP44 (1976), pp. 443–450
1976
-
[6]
The Pomeranchuk Sin- gularity in Nonabelian Gauge Theories
E.A. Kuraev, L.N. Lipatov, and Victor S. Fadin. “The Pomeranchuk Sin- gularity in Nonabelian Gauge Theories”. In: Sov. Phys. JETP 45 (1977), pp. 199–204
1977
-
[7]
The Pomeranchuk Singularity in Quantum Chromodynamics
I.I. Balitsky and L.N. Lipatov. “The Pomeranchuk Singularity in Quantum Chromodynamics”. In:Sov. J. Nucl. Phys.28 (1978), pp. 822–829
1978
Show all 252 references
-
[8]
Effective field theory for the small x evolution
Ian Balitsky. “Effective field theory for the small x evolution”. In:Phys. Lett. B 518 (2001), pp. 235–242.doi: 10.1016/S0370-2693(01)01041-3. arXiv: hep-ph/0105334. 119 120 BIBLIOGRAPHY
2001 arXiv
-
[9]
Operator expansion for high-energy scattering
I. Balitsky. “Operator expansion for high-energy scattering”. In:Nucl. Phys. B 463 (1996), pp. 99–160. doi: 10.1016/0550- 3213(95)00638- 9 . arXiv: hep-ph/9509348
1996 arXiv
-
[10]
Factorization for high-energy scattering
I. Balitsky. “Factorization for high-energy scattering”. In: Phys. Rev. Lett. 81 (1998), pp. 2024–2027. doi: 10 . 1103 / PhysRevLett . 81 . 2024. arXiv: hep-ph/9807434
1998 arXiv
-
[11]
Factorization and high-energy effective action
Ian Balitsky. “Factorization and high-energy effective action”. In:Phys. Rev. D 60 (1999), p. 014020.doi: 10.1103/PhysRevD.60.014020 . arXiv: hep- ph/9812311
1999
-
[12]
The BFKL equation from the Wilson renormal- ization group
Jamal Jalilian-Marian et al. “The BFKL equation from the Wilson renormal- ization group”. In:Nucl. Phys. B 504 (1997), pp. 415–431. doi: 10.1016/ S0550-3213(97)00440-9. arXiv: hep-ph/9701284
1997 arXiv
-
[13]
The Wilson renormalization group for low x physics: Towards the high density regime
Jamal Jalilian-Marian et al. “The Wilson renormalization group for low x physics: Towards the high density regime”. In: Phys. Rev. D 59 (1998), p. 014014. doi: 10.1103/PhysRevD.59.014014. arXiv: hep-ph/9706377
1998 arXiv
-
[14]
The Wilson renormalization group for low x physics: Gluon evolution at finite parton density
Jamal Jalilian-Marian, Alex Kovner, and Heribert Weigert. “The Wilson renormalization group for low x physics: Gluon evolution at finite parton density”. In: Phys. Rev. D59 (1998), p. 014015.doi: 10.1103/PhysRevD. 59.014015. arXiv: hep-ph/9709432
1998 arXiv
-
[15]
Unitarization of gluon distribution in the doubly logarithmic regime at high density
Jamal Jalilian-Marian et al. “Unitarization of gluon distribution in the doubly logarithmic regime at high density”. In:Phys. Rev. D59 (1999). [Erratum: Phys.Rev.D 59, 099903 (1999)], p. 034007. doi: 10 . 1103 / PhysRevD . 59 . 034007. arXiv: hep-ph/9807462
1999 arXiv
-
[16]
Relating differ- ent approaches to nonlinear QCD evolution at finite gluon density
Alex Kovner, J. Guilherme Milhano, and Heribert Weigert. “Relating differ- ent approaches to nonlinear QCD evolution at finite gluon density”. In:Phys. Rev. D 62 (2000), p. 114005. doi: 10.1103/PhysRevD.62.114005 . arXiv: hep-ph/0004014
2000 arXiv
-
[17]
Unitarity at small Bjorken x
Heribert Weigert. “Unitarity at small Bjorken x”. In: Nucl. Phys. A 703 (2002), pp. 823–860. doi: 10.1016/S0375-9474(01)01668-2 . arXiv: hep- ph/0004044. BIBLIOGRAPHY 121
2002
-
[18]
Nonlinear gluon evolution in the color glass condensate. 1
Edmond Iancu, Andrei Leonidov, and Larry D. McLerran. “Nonlinear gluon evolution in the color glass condensate. 1.” In:Nucl. Phys. A 692 (2001), pp. 583–645. doi: 10 . 1016 / S0375 - 9474(01 ) 00642 - X. arXiv: hep - ph / 0011241
2001
-
[19]
The Renormal- ization group equation for the color glass condensate
Edmond Iancu, Andrei Leonidov, and Larry D. McLerran. “The Renormal- ization group equation for the color glass condensate”. In:Phys. Lett. B510 (2001), pp. 133–144. doi: 10.1016/S0370-2693(01)00524-X . arXiv: hep- ph/0102009
2001
-
[20]
Nonlinear gluon evolution in the color glass conden- sate. 2
Elena Ferreiro et al. “Nonlinear gluon evolution in the color glass conden- sate. 2.” In:Nucl. Phys. A703 (2002), pp. 489–538.doi: 10.1016/S0375- 9474(01)01329-X. arXiv: hep-ph/0109115
2002 arXiv
-
[21]
Probing the high-energy dynamics of QCD: selected theo- retical and phenomenological studies
Michael Fucilla. “Probing the high-energy dynamics of QCD: selected theo- retical and phenomenological studies”. PhD thesis. Calabria U., 2023. arXiv: 2308.03393 [hep-ph]
2023 arXiv
-
[22]
J. R. Forshaw and D. A. Ross.Quantum Chromodynamics and the Pomeron. Cambridge Lecture Notes in Physics. Cambridge University Press, 1997.doi: 10.1017/CBO9780511524387
1997 doi
-
[23]
P. D. B. Collins.An Introduction to Regge Theory and High Energy Physics. CambridgeMonographsonMathematicalPhysics.CambridgeUniversityPress,
-
[24]
BFKL news
V. S. Fadin. “BFKL news”. In:LAFEX International School on High-Energy Physics (LISHEP 98) Session A: Particle Physics for High School Teachers - Session B: Advanced School in HEP - Session C: Workshop on Diffractive Physics. July 1998, pp. 742–776. arXiv:hep-ph/9807528
1998 arXiv
-
[25]
High-energy resummation in semi-hard pro- cesses at the LHC
Francesco Giovanni Celiberto. “High-energy resummation in semi-hard pro- cesses at the LHC”. PhD thesis. Calabria U., 2017. arXiv: 1707 . 04315 [hep-ph]
2017
-
[26]
Introduction to complex orbital momenta
T. E. Regge. “Introduction to complex orbital momenta”. In: Il Nuovo Ci- mento (1955-1965)14 (1959), pp. 951–976. 122 BIBLIOGRAPHY
1959
-
[27]
B. L. Ioffe, V. S. Fadin, and L. N. Lipatov.Quantum chromodynamics: Per- turbative and nonperturbative aspects. Cambridge Univ. Press, 2010. doi: 10.1017/CBO9780511711817
2010 doi
-
[28]
Quark contribution to the gluon-gluon - reggeon vertex in QCD
V. S. Fadin and R. Fiore. “Quark contribution to the gluon-gluon - reggeon vertex in QCD”. In:Phys. Lett. B294 (1992), pp. 286–292.doi: 10.1016/ 0370-2693(92)90696-2
1992
-
[29]
Radiative corrections to QCD scattering am- plitudes in a multi-Regge kinematics
V.S. Fadin and L.N. Lipatov. “Radiative corrections to QCD scattering am- plitudes in a multi-Regge kinematics”. In:Nuclear Physics B 406.1 (1993), pp. 259–292. issn: 0550-3213. doi: https : / / doi . org / 10 . 1016 / 0550 - 3213(93 ) 90168 - O. url: https : / / www . science...
1993
-
[30]
Radiative corrections to quark quark reggeon vertex in QCD
Victor S. Fadin, R. Fiore, and A. Quartarolo. “Radiative corrections to quark quark reggeon vertex in QCD”. In:Phys. Rev. D50 (1994), pp. 2265–2276. doi: 10.1103/PhysRevD.50.2265. arXiv: hep-ph/9310252
1994 arXiv
-
[31]
Quark contribution to the reggeon - reggeon - gluon vertex in QCD
Victor S. Fadin, R. Fiore, and A. Quartarolo. “Quark contribution to the reggeon - reggeon - gluon vertex in QCD”. In: Phys. Rev. D 50 (1994), pp. 5893–5901. doi: 10.1103/PhysRevD.50.5893. arXiv: hep-th/9405127
1994 arXiv
-
[32]
Reggeization of quark quark scat- tering amplitude in QCD
V. S. Fadin, R. Fiore, and A. Quartarolo. “Reggeization of quark quark scat- tering amplitude in QCD”. In:Phys. Rev. D53 (1996), pp. 2729–2741.doi: 10.1103/PhysRevD.53.2729. arXiv: hep-ph/9506432
1996 arXiv
-
[33]
Two loop correction to the gluon trajectory in QCD
Victor S. Fadin. “Two loop correction to the gluon trajectory in QCD”. In: Phys. Atom. Nucl.58 (1995), pp. 1762–1766
1995
-
[34]
Reggeization of the amplitude of gluon- gluon scattering
M. I. Kotsky and Victor S. Fadin. “Reggeization of the amplitude of gluon- gluon scattering”. In:Phys. Atom. Nucl.59 (1996), pp. 1035–1045
1996
-
[35]
Gluon Reggeization in QCD in the next-to-leading order
Victor S. Fadin, M. I. Kotsky, and R. Fiore. “Gluon Reggeization in QCD in the next-to-leading order”. In:Phys. Lett. B 359 (1995), pp. 181–188. doi: 10.1016/0370-2693(95)01016-J
1995 doi
-
[36]
Gluon Regge trajectory in the two loop approximation
Victor S. Fadin, R. Fiore, and M. I. Kotsky. “Gluon Regge trajectory in the two loop approximation”. In:Phys. Lett. B 387 (1996), pp. 593–602. doi: 10.1016/0370-2693(96)01054-4. arXiv: hep-ph/9605357. BIBLIOGRAPHY 123
1996 arXiv
-
[37]
One loop Reggeon-Reggeon gluon vertexatarbitraryspace-timedimension
Victor S. Fadin, R. Fiore, and A. Papa. “One loop Reggeon-Reggeon gluon vertexatarbitraryspace-timedimension”.In: Phys. Rev. D63(2001),p.034001. doi: 10.1103/PhysRevD.63.034001. arXiv: hep-ph/0008006
2001 arXiv
-
[38]
One-loop Lipatov vertex in QCD with higher ϵ-accuracy
Victor S. Fadin, Michael Fucilla, and Alessandro Papa. “One-loop Lipatov vertex in QCD with higher ϵ-accuracy”. In: JHEP 04 (2023), p. 137. doi: 10.1007/JHEP04(2023)137. arXiv: 2302.09868 [hep-ph]
2023 arXiv
-
[39]
High-Energy Production of Gluons in a QuasimultiRegge Kinematics
V. S. Fadin and L. N. Lipatov. “High-Energy Production of Gluons in a QuasimultiRegge Kinematics”. In:JETP Lett.49 (1989), p. 352
1989
-
[40]
Next-to-leading corrections to the BFKL equation from the gluon and quark production
Victor S. Fadin and L. N. Lipatov. “Next-to-leading corrections to the BFKL equation from the gluon and quark production”. In:Nucl. Phys. B477 (1996), pp. 767–808. doi: 10 . 1016 / 0550 - 3213(96 ) 00334 - 3. arXiv: hep - ph / 9602287
1996
-
[41]
Gluon pair production in the quasimulti - Regge kinematics
Victor S. Fadin, M. I. Kotsky, and L. N. Lipatov. “Gluon pair production in the quasimulti - Regge kinematics”. In: (Dec. 1996). arXiv:hep-ph/9704267
1996 arXiv
-
[42]
GLUON CONTRIBUTIONS TO SMALL x HEAVY FLAVOR PRODUCTION
S. Catani, M. Ciafaloni, and F. Hautmann. “GLUON CONTRIBUTIONS TO SMALL x HEAVY FLAVOR PRODUCTION”. In:Phys. Lett. B 242 (1990), pp. 97–102.doi: 10.1016/0370-2693(90)91601-7
1990 doi
-
[43]
High-energy factorization and small x heavy flavor production
S. Catani, M. Ciafaloni, and F. Hautmann. “High-energy factorization and small x heavy flavor production”. In:Nucl. Phys. B366 (1991), pp. 135–188. doi: 10.1016/0550-3213(91)90055-3
1991 doi
-
[44]
NonAbelian q anti-q contributions to small x anomalous dimensions
G. Camici and M. Ciafaloni. “NonAbelian q anti-q contributions to small x anomalous dimensions”. In:Phys. Lett. B 386 (1996), pp. 341–349. doi: 10.1016/0370-2693(96)00962-8. arXiv: hep-ph/9606427
1996 arXiv
-
[45]
k factorization and small-x anomalous dimen- sions
G. Camici and M. Ciafaloni. “k factorization and small-x anomalous dimen- sions”. In: Nucl. Phys. B 496 (1997). [Erratum: Nucl.Phys.B 607, 431–432 (2001)], pp. 305–336.doi: 10.1016/S0550-3213(97)00261-7 . arXiv: hep- ph/9701303
1997
-
[46]
Quark - anti-quark contribution to the BFKL kernel
Victor S. Fadin et al. “Quark - anti-quark contribution to the BFKL kernel”. In: Phys. Lett. B422 (1998), pp. 287–293.doi: 10.1016/S0370-2693(98) 00044-6. arXiv: hep-ph/9711427. 124 BIBLIOGRAPHY
1998 arXiv
-
[47]
The Generalized nonforward BFKL equation and the ’bootstrap’ condition for the gluon Reggeization in the NLLA
V. S. Fadin and R. Fiore. “The Generalized nonforward BFKL equation and the ’bootstrap’ condition for the gluon Reggeization in the NLLA”. In:Phys. Lett. B440 (1998), pp. 359–366.doi: 10.1016/S0370-2693(98)01099-5
1998 doi
-
[48]
Double resummation for Higgs pro- duction
Marco Bonvini and Simone Marzani. “Double resummation for Higgs pro- duction”. In: Phys. Rev. Lett. 120.20 (2018), p. 202003. doi: 10 . 1103 / PhysRevLett.120.202003. arXiv: 1802.07758 [hep-ph]
2018 arXiv
-
[49]
Mini - jet corrections to Higgs pro- duction
Vittorio Del Duca and Carl R. Schmidt. “Mini - jet corrections to Higgs pro- duction”. In:Phys. Rev. D49 (1994), pp. 177–182.doi: 10.1103/PhysRevD. 49.177. arXiv: hep-ph/9305346
1994 arXiv
-
[50]
High-energy resummed distributions for the inclusive Higgs-plus-jet production at the LHC
Francesco Giovanni Celiberto et al. “High-energy resummed distributions for the inclusive Higgs-plus-jet production at the LHC”. In: Eur. Phys. J. C 81.4 (2021), p. 293. doi: 10 . 1140 / epjc / s10052 - 021 - 09063 - 2. arXiv: 2008.00501 [hep-ph]
2021 arXiv
-
[51]
High energy resummed predictions for the produc- tion of a Higgs boson with at least one jet
Jeppe R. Andersen et al. “High energy resummed predictions for the produc- tion of a Higgs boson with at least one jet”. In:JHEP 03 (2023), p. 001.doi: 10.1007/JHEP03(2023)001. arXiv: 2210.10671 [hep-ph]
2023 arXiv
-
[52]
doi: 10.1016/0370-2693(75)90524-9
-
[53]
Ultraforward production of a charmed hadron plus a Higgs boson in unpolarized proton collisions
Francesco Giovanni Celiberto et al. “Ultraforward production of a charmed hadron plus a Higgs boson in unpolarized proton collisions”. In:Phys. Rev. D 105.11 (2022), p. 114056. doi: 10.1103/PhysRevD.105.114056 . arXiv: 2205.13429 [hep-ph]
2022 arXiv
-
[54]
HEJ 2.2: W boson pairs and Higgs boson plus jet production at high energies
Jeppe R. Andersen et al. “HEJ 2.2: W boson pairs and Higgs boson plus jet production at high energies”. In: (Mar. 2023). arXiv:2303.15778 [hep-ph]
2023 arXiv
-
[55]
FCC-ee: The Lepton Collider: Future Circular Collider Con- ceptual Design Report Volume 2
A. Abada et al. “FCC-ee: The Lepton Collider: Future Circular Collider Con- ceptual Design Report Volume 2”. In:Eur. Phys. J. ST228.2 (2019), pp. 261–
2019
-
[56]
FCC Physics Opportunities: Future Circular Collider Con- ceptual Design Report Volume 1
A. Abada et al. “FCC Physics Opportunities: Future Circular Collider Con- ceptual Design Report Volume 1”. In:Eur. Phys. J. C79.6 (2019), p. 474. doi: 10.1140/epjc/s10052-019-6904-3
2019 doi
-
[57]
HE-LHC: The High-Energy Large Hadron Collider: Future Circular Collider Conceptual Design Report Volume 4
A. Abada et al. “HE-LHC: The High-Energy Large Hadron Collider: Future Circular Collider Conceptual Design Report Volume 4”. In:Eur. Phys. J. ST 228.5 (2019), pp. 1109–1382.doi: 10.1140/epjst/e2019-900088-6
2019 doi
-
[58]
Forward Higgs production within high energy factorization in the heavy quark limit at next-to-leading order accuracy
Martin Hentschinski, Krzysztof Kutak, and Andreas van Hameren. “Forward Higgs production within high energy factorization in the heavy quark limit at next-to-leading order accuracy”. In:Eur. Phys. J. C81.2 (2021). [Erratum: Eur. Phys. J. C 81, 262 (2021)], p. 112.doi: 10.1140/...
2021 arXiv
-
[59]
FCC-hh: The Hadron Collider: Future Circular Collider Conceptual Design Report Volume 3
A. Abada et al. “FCC-hh: The Hadron Collider: Future Circular Collider Conceptual Design Report Volume 3”. In:Eur. Phys. J. ST 228.4 (2019), pp. 755–1107. doi: 10.1140/epjst/e2019-900087-0. BIBLIOGRAPHY 125
2019 doi
-
[61]
Basics of QCD for the LHC: pp → H + X as a case study
F. Maltoni. “Basics of QCD for the LHC: pp → H + X as a case study”. In: CERN Yellow Rep. School Proc.2 (2018). Ed. by M. Mulders and C. Z. Yuan, pp. 41–67.doi: 10.23730/CYRSP-2018-002.41
2018 doi
-
[62]
Computingone-loopcorrectionstoeffectiveverticeswith two scales in the EFT for Multi-Regge processes in QCD
MaximA.Nefedov.“Computingone-loopcorrectionstoeffectiveverticeswith two scales in the EFT for Multi-Regge processes in QCD”. In:Nucl. Phys. B 946 (2019), p. 114715.doi: 10.1016/j.nuclphysb.2019.114715. arXiv: 1902.11030 [hep-ph]
2019
-
[63]
High-energy emissions of light mesons plus heavy flavor at the LHC and the Forward Physics Facility
Francesco Giovanni Celiberto. “High-energy emissions of light mesons plus heavy flavor at the LHC and the Forward Physics Facility”. In:Phys. Rev. D 105.11 (2022), p. 114008. doi: 10.1103/PhysRevD.105.114008 . arXiv: 2204.06497 [hep-ph]
2022 arXiv
-
[64]
Vector Quarkonia at the LHC with Jethad: A High-Energy Viewpoint
Francesco Giovanni Celiberto. “Vector Quarkonia at the LHC with Jethad: A High-Energy Viewpoint”. In:Universe 9.7 (2023), p. 324.doi: 10.3390/ universe9070324. arXiv: 2305.14295 [hep-ph]
2023
-
[65]
Hunting BFKL in semi-hard reactions at the LHC
Francesco Giovanni Celiberto. “Hunting BFKL in semi-hard reactions at the LHC”. In:Eur. Phys. J. C81.8 (2021), p. 691.doi: 10.1140/epjc/s10052- 021-09384-2. arXiv: 2008.07378 [hep-ph]
2021 arXiv
-
[66]
Forward & Far-Forward Heavy Hadrons with JETHAD: A High-energy Viewpoint
Francesco Giovanni Celiberto. “Forward & Far-Forward Heavy Hadrons with JETHAD: A High-energy Viewpoint”. In:Particles 7 (2024), p. 3.doi: 10. 3390/particles7030029. arXiv: 2405.09526 [hep-ph]
2024
-
[67]
Mueller–Navelet Jets at LHC: BFKL Versus High-Energy DGLAP
Francesco Giovanni Celiberto et al. “Mueller–Navelet Jets at LHC: BFKL Versus High-Energy DGLAP”. In:Eur. Phys. J. C75.6 (2015), p. 292.doi: 10.1140/epjc/s10052-015-3522-6. arXiv: 1504.08233 [hep-ph]
2015 arXiv
-
[68]
Exotic Tetraquarks at the HL-LHC with JETHAD: A High-Energy Viewpoint
Francesco Giovanni Celiberto. “Exotic Tetraquarks at the HL-LHC with JETHAD: A High-Energy Viewpoint”. In: Symmetry 16.5 (2024), p. 550. doi: 10.3390/sym16050550. arXiv: 2403.15639 [hep-ph]. 126 BIBLIOGRAPHY
2024
-
[69]
Bottom-flavored inclusive emissions in the variable-flavor number scheme: A high-energy analysis
Francesco Giovanni Celiberto et al. “Bottom-flavored inclusive emissions in the variable-flavor number scheme: A high-energy analysis”. In:Phys. Rev. D 104.11 (2021), p. 114007. doi: 10.1103/PhysRevD.104.114007 . arXiv: 2109.11875 [hep-ph]
2021 arXiv
-
[70]
Diffractivesemi-hardpro- duction of aJ/ψ or aΥ from single-parton fragmentation plus a jet in hybrid factorization
FrancescoGiovanniCelibertoandMichaelFucilla.“Diffractivesemi-hardpro- duction of aJ/ψ or aΥ from single-parton fragmentation plus a jet in hybrid factorization”. In:Eur. Phys. J. C82.10 (2022), p. 929.doi: 10.1140/epjc/ s10052-022-10818-8. arXiv: 2202.12227 [hep-ph]
2022 arXiv
-
[71]
High-energy resummation inΛc baryon production
Francesco Giovanni Celiberto et al. “High-energy resummation inΛc baryon production”. In: Eur. Phys. J. C81.8 (2021), p. 780.doi: 10.1140/epjc/ s10052-021-09448-3. arXiv: 2105.06432 [hep-ph]
2021 arXiv
-
[72]
On the break- down of eikonal approximation and survival of Reggeization in presence of dimension-5 Higgs-gluon coupling
Michael Fucilla, Maxim A. Nefedov, and Alessandro Papa. “On the break- down of eikonal approximation and survival of Reggeization in presence of dimension-5 Higgs-gluon coupling”. In: JHEP 04 (2024), p. 078. doi: 10 . 1007/JHEP04(2024)078. arXiv: 2401.17843 [hep-ph]
2024 arXiv
-
[73]
The next-to-leading order Higgs impact factor at physical top mass: the real corrections
Francesco Giovanni Celiberto et al. “The next-to-leading order Higgs impact factor at physical top mass: the real corrections”. In:JHEP 12 (2024), p. 061. doi: 10.1007/JHEP12(2024)061. arXiv: 2409.20354 [hep-ph]
2024 arXiv
-
[74]
TheHiggsImpactFactoratNext-to-leadingOrder
MichaelFucilla.“TheHiggsImpactFactoratNext-to-leadingOrder”.In: Acta Phys. Polon. Supp.16.5 (2023), p. 44.doi: 10.5506/APhysPolBSupp.16.5- A44. arXiv: 2212.01794 [hep-ph]
2023 arXiv
-
[75]
Automatized one loop calculations in four- dimensions and D-dimensions
T. Hahn and M. Perez-Victoria. “Automatized one loop calculations in four- dimensions and D-dimensions”. In: Comput. Phys. Commun. 118 (1999), pp. 153–165. doi: 10 . 1016 / S0010 - 4655(98 ) 00173 - 8. arXiv: hep - ph / 9807565
1999
-
[76]
One Loop Corrections for e+ e- Annihi- lation Into mu+ mu- in the Weinberg Model
G. Passarino and M. J. G. Veltman. “One Loop Corrections for e+ e- Annihi- lation Into mu+ mu- in the Weinberg Model”. In:Nucl. Phys. B160 (1979), pp. 151–207. doi: 10.1016/0550-3213(79)90234-7
1979 doi
-
[77]
Gluon fusion contributions to H + 2 jet production
V. Del Duca et al. “Gluon fusion contributions to H + 2 jet production”. In: Nucl. Phys. B616 (2001), pp. 367–399.doi: 10.1016/S0550-3213(01) 00446-1. arXiv: hep-ph/0108030. BIBLIOGRAPHY 127
2001 arXiv
-
[78]
Release Note – VBFNLO 3.0
Julien Baglio et al. “Release Note – VBFNLO 3.0”. In: (May 2024). arXiv: 2405.06990 [hep-ph]
2024 arXiv
-
[79]
Higgs Boson Production at Large Trans- verse Momentum in Hadronic Collisions
U. Baur and E. W. Nigel Glover. “Higgs Boson Production at Large Trans- verse Momentum in Hadronic Collisions”. In: Nucl. Phys. B 339 (1990), pp. 38–66. doi: 10.1016/0550-3213(90)90532-I
1990 doi
-
[80]
VBFNLO: A parton level Monte Carlo for processes with electroweak bosons – Manual for Version 3.0
J. Baglio et al. “VBFNLO: A parton level Monte Carlo for processes with electroweak bosons – Manual for Version 3.0”. In: (July 2011). arXiv:1107. 4038 [hep-ph]
2011
-
[81]
Kinematical limits on Higgs boson production via gluon fusion in association with jets
V. Del Duca et al. “Kinematical limits on Higgs boson production via gluon fusion in association with jets”. In:Phys. Rev. D67 (2003), p. 073003.doi: 10.1103/PhysRevD.67.073003. arXiv: hep-ph/0301013
2003 arXiv
-
[82]
Mueller Navelet jets at LHC - complete NLL BFKL calcu- lation
D. Colferai et al. “Mueller Navelet jets at LHC - complete NLL BFKL calcu- lation”. In:JHEP 12 (2010), p. 026.doi: 10.1007/JHEP12(2010)026. arXiv: 1002.1365 [hep-ph]
2010 arXiv
-
[83]
Feynman diagrams and cutting rules
J. S. Rozowsky. “Feynman diagrams and cutting rules”. In: (Sept. 1997). arXiv: hep-ph/9709423
1997 arXiv
-
[84]
Hybrid kT - factorization and impact factors at NLO
Andreas van Hameren, Leszek Motyka, and Grzegorz Ziarko. “Hybrid kT - factorization and impact factors at NLO”. In:JHEP 11 (2022), p. 103.doi: 10.1007/JHEP11(2022)103. arXiv: 2205.09585 [hep-ph]. 128 BIBLIOGRAPHY
2022 arXiv
-
[85]
Forward Drell- Yan and backward jet production as a probe of the BFKL dynamics
Krzysztof Golec-Biernat, Leszek Motyka, and Tomasz Stebel. “Forward Drell- Yan and backward jet production as a probe of the BFKL dynamics”. In: JHEP 12 (2018), p. 091. doi: 10 . 1007 / JHEP12(2018 ) 091. arXiv: 1811 . 04361 [hep-ph]
2018
-
[86]
Inclusive production of a heavy-light dijet system in hybrid high-energy and collinear factorization
Andrèe Dafne Bolognino et al. “Inclusive production of a heavy-light dijet system in hybrid high-energy and collinear factorization”. In:Phys. Rev. D 103.9 (2021), p. 094004.doi: 10.1103/PhysRevD.103.094004. arXiv: 2103. 07396 [hep-ph]
2021 doi
-
[87]
Resummation phenomenology and PDF determination for precision QCD at the LHC
Federico Silvetti. “Resummation phenomenology and PDF determination for precision QCD at the LHC”. PhD thesis. Università degli Studi di Roma ”La Sapienza”, Italy, Rome U., 2023. arXiv:2403.20315 [hep-ph]
2023 arXiv
-
[88]
Towards the resummation of high-energy next-to-leading logarithms in QCD
Anna Rinaudo. “Towards the resummation of high-energy next-to-leading logarithms in QCD”. PhD thesis. Università degli studi di Genova, Italy, Genoa U., 2024
2024
-
[89]
Differential heavy quark pair produc- tion at small x
Federico Silvetti and Marco Bonvini. “Differential heavy quark pair produc- tion at small x”. In:Eur. Phys. J. C83.4 (2023), p. 267.doi: 10.1140/epjc/ s10052-023-11326-z. arXiv: 2211.10142 [hep-ph]
2023 arXiv
-
[90]
High-energy resummation in heavy-quark pair hadroproduction
Andrèe Dafne Bolognino et al. “High-energy resummation in heavy-quark pair hadroproduction”. In: Eur. Phys. J. C 79.11 (2019), p. 939. doi: 10. 1140/epjc/s10052-019-7392-1. arXiv: 1909.03068 [hep-ph]
2019 arXiv
-
[91]
Bottomonium-like states in proton collisions: Fragmentation and resummation
Francesco Giovanni Celiberto and Gabriele Gatto. “Bottomonium-like states in proton collisions: Fragmentation and resummation”. In: (Dec. 2024). arXiv: 2412.10549 [hep-ph]
2024 arXiv
-
[92]
Forward J/ψ and very backward jet inclusive produc- tion at the LHC
R. Boussarie et al. “Forward J/ψ and very backward jet inclusive produc- tion at the LHC”. In:Phys. Rev. D97.1 (2018), p. 014008.doi: 10.1103/ PhysRevD.97.014008. arXiv: 1709.01380 [hep-ph]
2018 arXiv
-
[93]
Fully charmed tetraquarks from LHC to FCC: natural stability from fragmenta- tion
Francesco Giovanni Celiberto, Gabriele Gatto, and Alessandro Papa. “Fully charmed tetraquarks from LHC to FCC: natural stability from fragmenta- tion”. In:Eur. Phys. J. C84.10 (2024), p. 1071.doi: 10.1140/epjc/s10052- 024-13345-w. arXiv: 2405.14773 [hep-ph]. BIBLIOGRAPHY 129
2024 arXiv
-
[94]
Fragmentation of Hadrons from Heavy Quark Partons
Mahiko Suzuki. “Fragmentation of Hadrons from Heavy Quark Partons”. In: Phys. Lett. B71(1977),pp.139–141. doi: 10.1016/0370-2693(77)90761-4
1977 doi
-
[95]
A high-energy QCD portal to exotic matter: Heavy-light tetraquarks at the HL-LHC
Francesco Giovanni Celiberto and Alessandro Papa. “A high-energy QCD portal to exotic matter: Heavy-light tetraquarks at the HL-LHC”. In:Phys. Lett. B 848 (2024), p. 138406. doi: 10.1016/j.physletb.2023.138406 . arXiv: 2308.00809 [hep-ph]
2024
-
[96]
Perturbative Quantum Chromodynamic Prediction for the Heavy Quark Fragmentation Function
F. Amiri and Chueng-Ryong Ji. “Perturbative Quantum Chromodynamic Prediction for the Heavy Quark Fragmentation Function”. In:Phys. Lett. B 195 (1987), pp. 593–598.doi: 10.1016/0370-2693(87)91579-6
1987 doi
-
[97]
Groundstateheavytetraquark production in heavy quark fragmentation
S.MohammadMoosaviNejadandNahidAmiri.“Groundstateheavytetraquark production in heavy quark fragmentation”. In:Phys. Rev. D 105.3 (2022), p. 034001. doi: 10 . 1103 / PhysRevD . 105 . 034001. arXiv: 2110 . 15251 [hep-ph]
2022
-
[98]
Spin Property of Heavy Hadron in Heavy Quark Fragmen- tation: A Simple Model
Mahiko Suzuki. “Spin Property of Heavy Hadron in Heavy Quark Fragmen- tation: A Simple Model”. In:Phys. Rev. D33 (1986), p. 676.doi: 10.1103/ PhysRevD.33.676
1986
-
[99]
Snowmass 2021 White Paper: Electron Ion Collider for High Energy Physics
R. Abdul Khalek et al. “Snowmass 2021 White Paper: Electron Ion Collider for High Energy Physics”. In: (Mar. 2022). arXiv:2203.13199 [hep-ph]
2021 arXiv
-
[100]
White Paper on Forward Physics, BFKL, Satu- ration Physics and Diffraction
Martin Hentschinski et al. “White Paper on Forward Physics, BFKL, Satu- ration Physics and Diffraction”. In:Acta Phys. Polon. B54.3 (2023), 3–A2. doi: 10.5506/APhysPolB.54.3-A2. arXiv: 2203.08129 [hep-ph]
2023 arXiv
-
[101]
Science Requirements and Detector Concepts for the Electron-Ion Collider: EIC Yellow Report
R. Abdul Khalek et al. “Science Requirements and Detector Concepts for the Electron-Ion Collider: EIC Yellow Report”. In:Nucl. Phys. A 1026 (2022), p. 122447. doi: 10.1016/j.nuclphysa.2022.122447 . arXiv: 2103.05419 [physics.ins-det]
2022
-
[102]
The case for an EIC Theory Alliance: Theoretical Chal- lenges of the EIC
Raktim Abir et al. “The case for an EIC Theory Alliance: Theoretical Chal- lenges of the EIC”. In: (May 2023). arXiv:2305.14572 [hep-ph]
2023
-
[103]
ArtificialIntelligencefortheElectronIonCollider(AI4EIC)
C.Allaireetal.“ArtificialIntelligencefortheElectronIonCollider(AI4EIC)”. In: Comput. Softw. Big Sci. 8 (2024), p. 5. doi: 10 . 1007 / s41781 - 024 - 00113-4. arXiv: 2307.08593 [physics.acc-ph]. 130 BIBLIOGRAPHY
2024
-
[104]
Snowmass 2021 Whitepaper: Proton Structure at the Precision Frontier
S. Amoroso et al. “Snowmass 2021 Whitepaper: Proton Structure at the Precision Frontier”. In:Acta Phys. Polon. B53.12 (2022), 12–A1. doi: 10. 5506/APhysPolB.53.12-A1. arXiv: 2203.13923 [hep-ph]
2022 arXiv
-
[105]
Observationofanexoticnarrowdoublycharmedtetraquark
RoelAaijetal.“Observationofanexoticnarrowdoublycharmedtetraquark”. In: Nature Phys. 18.7 (2022), pp. 751–754. doi: 10 . 1038 / s41567 - 022 - 01614-y. arXiv: 2109.01038 [hep-ex]
2022
-
[106]
Study of the doubly charmed tetraquark T + cc
Roel Aaij et al. “Study of the doubly charmed tetraquark T + cc”. In: Nature Commun. 13.1 (2022), p. 3351.doi: 10.1038/s41467-022-30206-w. arXiv: 2109.01056 [hep-ex]
2022
-
[107]
Observation of a narrow charmonium-like state in exclusive B± → K ±π+π−J/ψ decays
S. K. Choi et al. “Observation of a narrow charmonium-like state in exclusive B± → K ±π+π−J/ψ decays”. In:Phys. Rev. Lett.91 (2003), p. 262001.doi: 10.1103/PhysRevLett.91.262001. arXiv: hep-ex/0309032
2003 arXiv
-
[108]
Nonrelativistictreatmentoffully-heavytetraquarksasdiquark- antidiquark states
HalilMutuk.“Nonrelativistictreatmentoffully-heavytetraquarksasdiquark- antidiquark states”. In:Eur. Phys. J. C81.4 (2021), p. 367.doi: 10.1140/ epjc/s10052-021-09176-8. arXiv: 2104.11823 [hep-ph]
2021 arXiv
-
[109]
Analysis of the X(3872), Zc(3900) and Zc(3885) as axial-vector tetraquark states with QCD sum rules
Zhi-Gang Wang and Tao Huang. “Analysis of the X(3872), Zc(3900) and Zc(3885) as axial-vector tetraquark states with QCD sum rules”. In:Phys. Rev. D 89.5 (2014), p. 054019.doi: 10.1103/PhysRevD.89.054019. arXiv: 1310.2422 [hep-ph]
2014 arXiv
-
[110]
Diquark-antidiquarks with hidden or open charm and the nature of X(3872)
L. Maiani et al. “Diquark-antidiquarks with hidden or open charm and the nature of X(3872)”. In:Phys. Rev. D71 (2005), p. 014028.doi: 10.1103/ PhysRevD.71.014028. arXiv: hep-ph/0412098
2005 arXiv
-
[111]
From the deuteron to deusons, an analysis of deuteron - like meson meson bound states
Nils A. Tornqvist. “From the deuteron to deusons, an analysis of deuteron - like meson meson bound states”. In:Z. Phys. C61 (1994), pp. 525–537.doi: 10.1007/BF01413192. arXiv: hep-ph/9310247
1994 arXiv
-
[112]
Low-energy universality and the new charmonium resonance at 3870-MeV
Eric Braaten and Masaoki Kusunoki. “Low-energy universality and the new charmonium resonance at 3870-MeV”. In:Phys. Rev. D69 (2004), p. 074005. doi: 10.1103/PhysRevD.69.074005. arXiv: hep-ph/0311147. BIBLIOGRAPHY 131
2004 arXiv
-
[113]
Radiative decays of X(3872) discriminate between the molecular and compact interpretations
B. Grinstein, L. Maiani, and A. D. Polosa. “Radiative decays of X(3872) discriminate between the molecular and compact interpretations”. In:Phys. Rev. D109.7 (2024), p. 074009.doi: 10.1103/PhysRevD.109.074009. arXiv: 2401.11623 [hep-ph]
2024 arXiv
-
[114]
The role of the pion in the lineshape of the X(3872)
Angelo Esposito et al. “The role of the pion in the lineshape of the X(3872)”. In: Phys. Lett. B847 (2023), p. 138285.doi: 10.1016/j.physletb.2023. 138285. arXiv: 2307.11400 [hep-ph]
2023 arXiv
-
[115]
Hadro-Charmonium
S. Dubynskiy and M. B. Voloshin. “Hadro-Charmonium”. In:Phys. Lett. B 666 (2008), pp. 344–346.doi: 10.1016/j.physletb.2008.07.086 . arXiv: 0803.2224 [hep-ph]
2008 arXiv
-
[116]
ConsequencesofHeavyQuarkSymmetriesforHadronic Molecules
Feng-KunGuoetal.“ConsequencesofHeavyQuarkSymmetriesforHadronic Molecules”. In:Phys. Rev. D88 (2013), p. 054007.doi: 10.1103/PhysRevD. 88.054007. arXiv: 1303.6608 [hep-ph]
2013 arXiv
-
[117]
Hidden-charm and bottom tetra- and pen- taquarks with strangeness in the hadro-quarkonium and compact tetraquark models
J. Ferretti and E. Santopinto. “Hidden-charm and bottom tetra- and pen- taquarks with strangeness in the hadro-quarkonium and compact tetraquark models”. In: JHEP 04 (2020), p. 119. doi: 10 . 1007 / JHEP04(2020 ) 119. arXiv: 2001.01067 [hep-ph]
2020 arXiv
-
[118]
The 3, 4, and 5-flavor NNLO Parton from Deep-Inelastic- ScatteringDataandatHadronColliders
S. Alekhin et al. “The 3, 4, and 5-flavor NNLO Parton from Deep-Inelastic- ScatteringDataandatHadronColliders”.In: Phys. Rev. D81(2010),p.014032. doi: 10.1103/PhysRevD.81.014032. arXiv: 0908.2766 [hep-ph]
2010 arXiv
-
[119]
Zc(3900) - what is inside?
M. B. Voloshin. “ Zc(3900) - what is inside?” In:Phys. Rev. D87.9 (2013), p.091501. doi: 10.1103/PhysRevD.87.091501.arXiv: 1304.0380 [hep-ph]
2013 arXiv
-
[120]
Large pT hadroproductionofheavyquarks
MatteoCacciariandMarioGreco.“Large pT hadroproductionofheavyquarks”. In: Nucl. Phys. B 421 (1994), pp. 530–544.doi: 10.1016/0550-3213(94) 90515-0. arXiv: hep-ph/9311260
1994 arXiv
-
[121]
Charm electroproduction viewed in the variable flavor number scheme versus fixed order perturbation theory
M. Buza et al. “Charm electroproduction viewed in the variable flavor number scheme versus fixed order perturbation theory”. In:Eur. Phys. J. C1 (1998), pp. 301–320. doi: 10.1007/BF01245820. arXiv: hep-ph/9612398
1998 arXiv
-
[122]
The Fragmentation function for heavy quarks in QCD
B. Mele and P. Nason. “The Fragmentation function for heavy quarks in QCD”. In: Nucl. Phys. B 361 (1991). [Erratum: Nucl.Phys.B 921, 841–842 (2017)], pp. 626–644.doi: 10.1016/0550-3213(91)90597-Q
1991 doi
-
[123]
Heavy quarks in deep-inelastic scattering
Stefano Forte et al. “Heavy quarks in deep-inelastic scattering”. In: Nucl. Phys. B834 (2010), pp. 116–162.doi: 10.1016/j.nuclphysb.2010.03.014. arXiv: 1001.2312 [hep-ph]
2010 arXiv
-
[124]
The Variable Flavor Number Scheme at Next-to-Leading Order
J. Blümlein et al. “The Variable Flavor Number Scheme at Next-to-Leading Order”.In: Phys. Lett. B782(2018),pp.362–366. doi: 10.1016/j.physletb. 2018.05.054. arXiv: 1804.03129 [hep-ph]
2018 arXiv
-
[125]
Treatment of heavy quarks in deeply inelastic scattering
Michael Krämer, Fredrick I. Olness, and Davison E. Soper. “Treatment of heavy quarks in deeply inelastic scattering”. In: Phys. Rev. D 62 (2000), p. 096007. doi: 10.1103/PhysRevD.62.096007. arXiv: hep-ph/0003035. 132 BIBLIOGRAPHY
2000 arXiv
-
[126]
An Ordered analysis of heavy flavor pro- duction in deep inelastic scattering
R. S. Thorne and R. G. Roberts. “An Ordered analysis of heavy flavor pro- duction in deep inelastic scattering”. In:Phys. Rev. D57 (1998), pp. 6871–
1998
-
[127]
Effective Lagrangians for Bound State Problems in QED, QCD, and Other Field Theories
W. E. Caswell and G. P. Lepage. “Effective Lagrangians for Bound State Problems in QED, QCD, and Other Field Theories”. In:Phys. Lett. B 167 (1986), pp. 437–442.doi: 10.1016/0370-2693(86)91297-9
1986 doi
-
[128]
Leptoproduction of heavy quarks. 2. A Unified QCD formulation of charged and neutral current processes from fixed target to collider energies
M. A. G. Aivazis et al. “Leptoproduction of heavy quarks. 2. A Unified QCD formulation of charged and neutral current processes from fixed target to collider energies”. In:Phys. Rev. D50 (1994), pp. 3102–3118.doi: 10.1103/ PhysRevD.50.3102. arXiv: hep-ph/9312319
1994 arXiv
-
[129]
Rigorous QCD analysis of inclusive annihilation and production of heavy quarkonium
Geoffrey T. Bodwin, Eric Braaten, and G. Peter Lepage. “Rigorous QCD analysis of inclusive annihilation and production of heavy quarkonium”. In: Phys. Rev. D51 (1995). [Erratum: Phys.Rev.D 55, 5853 (1997)], pp. 1125–
1995
-
[130]
Color octet quarkonia production
Peter L. Cho and Adam K. Leibovich. “Color octet quarkonia production”. In: Phys. Rev. D53 (1996), pp. 150–162.doi: 10.1103/PhysRevD.53.150. arXiv: hep-ph/9505329
1996 arXiv
-
[131]
Color octet quarkonia production. 2
Peter L. Cho and Adam K. Leibovich. “Color octet quarkonia production. 2.” In:Phys. Rev. D53 (1996), pp. 6203–6217.doi: 10.1103/PhysRevD.53
1996 doi
-
[132]
Heavy quark bound states in lattice QCD
B. A. Thacker and G. Peter Lepage. “Heavy quark bound states in lattice QCD”. In: Phys. Rev. D43 (1991), pp. 196–208.doi: 10.1103/PhysRevD. 43.196
1991 doi
-
[133]
Comparison of the color- evaporation model and the NRQCD factorization approach in charmonium production
Geoffrey T. Bodwin, Eric Braaten, and Jungil Lee. “Comparison of the color- evaporation model and the NRQCD factorization approach in charmonium production”. In:Phys. Rev. D72 (2005), p. 014004.doi: 10.1103/PhysRevD. 72.014004. arXiv: hep-ph/0504014
2005 arXiv
-
[134]
Fragmentation production of fully-charmed tetraquarks at the LHC
Feng Feng et al. “Fragmentation production of fully-charmed tetraquarks at the LHC”. In: Phys. Rev. D 106.11 (2022), p. 114029. doi: 10 . 1103 / PhysRevD.106.114029. arXiv: 2009.08450 [hep-ph]
2022 arXiv
-
[135]
Producing fully-charmed tetraquarks via charm quark fragmentation in colliders
Xiao-Wei Bai et al. “Producing fully-charmed tetraquarks via charm quark fragmentation in colliders”. In: JHEP 09 (2024), p. 002. doi: 10 . 1007 / JHEP09(2024)002. arXiv: 2404.13889 [hep-ph]
2024 arXiv
-
[136]
e+ e- pair annihilation and deep inelastic e p scattering in perturbation theory
V. N. Gribov and L. N. Lipatov. “e+ e- pair annihilation and deep inelastic e p scattering in perturbation theory”. In: Sov. J. Nucl. Phys. 15 (1972), pp. 675–684
1972
-
[137]
The parton model and perturbation theory
L. N. Lipatov. “The parton model and perturbation theory”. In:Yad. Fiz.20 (1974), pp. 181–198
1974
-
[138]
Psi-prime polarization due to color octet quarkonia production
Adam K. Leibovich. “Psi-prime polarization due to color octet quarkonia production”. In: Phys. Rev. D 56 (1997), pp. 4412–4415. doi: 10 . 1103 / PhysRevD.56.4412. arXiv: hep-ph/9610381
1997 arXiv
-
[139]
Collinear subtractions in hadroproduction of heavy quarks
B. A. Kniehl et al. “Collinear subtractions in hadroproduction of heavy quarks”. In: Eur. Phys. J. C41 (2005), pp. 199–212.doi: 10.1140/epjc/ s2005-02200-7. arXiv: hep-ph/0502194
2005 arXiv
-
[140]
Revisiting the D-meson hadroproduc- tion in general-mass variable flavour number scheme
Ilkka Helenius and Hannu Paukkunen. “Revisiting the D-meson hadroproduc- tion in general-mass variable flavour number scheme”. In:JHEP 05 (2018), p. 196. doi: 10.1007/JHEP05(2018)196. arXiv: 1804.03557 [hep-ph]
2018 arXiv
-
[141]
B-meson hadroproduction in the SACOT-mT scheme
Ilkka Helenius and Hannu Paukkunen. “B-meson hadroproduction in the SACOT-mT scheme”.In: JHEP 07(2023),p.054. doi: 10.1007/JHEP07(2023)
2023 doi
-
[142]
Next-to-leading QCD calculation of the heavy quark fragmentation function
B. Mele and P. Nason. “Next-to-leading QCD calculation of the heavy quark fragmentation function”. In: Phys. Lett. B 245 (1990), pp. 635–639. doi: 10.1016/0370-2693(90)90704-A
1990 doi
-
[143]
O (alpha-s**2) contributions to the longitudinal fragmentation function in e+ e- annihilation
P. J. Rijken and W. L. van Neerven. “O (alpha-s**2) contributions to the longitudinal fragmentation function in e+ e- annihilation”. In:Phys. Lett. B 386 (1996), pp. 422–428. doi: 10 . 1016 / 0370 - 2693(96 ) 00898 - 2. arXiv: hep-ph/9604436
1996 arXiv
-
[144]
Charmed mesons fragmentation functions
M. Cacciari et al. “Charmed mesons fragmentation functions”. In:Phys. Rev. D 55 (1997), pp. 2736–2740. doi: 10 . 1103 / PhysRevD . 55 . 2736. arXiv: hep-ph/9608213
1997 arXiv
-
[145]
O (alpha**2(s)) Timelike Wilson Coefficients for Parton-Fragmentation Functions in Mellin Space
J. Blumlein and V. Ravindran. “O (alpha**2(s)) Timelike Wilson Coefficients for Parton-Fragmentation Functions in Mellin Space”. In:Nucl. Phys. B749 (2006), pp. 1–24. doi: 10.1016/j.nuclphysb.2006.04.032 . arXiv: hep- ph/0604019
2006
-
[146]
Perturbative heavy quark fragmenta- tion function through O(α2 s)
Kirill Melnikov and Alexander Mitov. “Perturbative heavy quark fragmenta- tion function through O(α2 s)”. In: Phys. Rev. D 70 (2004), p. 034027. doi: 10.1103/PhysRevD.70.034027. arXiv: hep-ph/0404143
2004 arXiv
-
[147]
Perturbative heavy quark fragmentation function through O(α2 s): Gluon initiated contribution
Alexander Mitov. “Perturbative heavy quark fragmentation function through O(α2 s): Gluon initiated contribution”. In:Phys. Rev. D71 (2005), p. 054021. doi: 10.1103/PhysRevD.71.054021. arXiv: hep-ph/0410205
2005 arXiv
- [148]
-
[149]
Inelastic Photoproduction of J/psi and Upsilon by Gluons
Edmond L. Berger and Daniel L. Jones. “Inelastic Photoproduction of J/psi and Upsilon by Gluons”. In:Phys. Rev. D 23 (1981), pp. 1521–1530. doi: 10.1103/PhysRevD.23.1521
1981 doi
-
[150]
Hadronic Production of J/psi and Upsilon: Trans- verse Momentum Distributions
R. Baier and R. Ruckl. “Hadronic Production of J/psi and Upsilon: Trans- verse Momentum Distributions”. In:Phys. Lett. B102 (1981), pp. 364–370. doi: 10.1016/0370-2693(81)90636-5. BIBLIOGRAPHY 135
1981 doi
-
[151]
QCD Corrections to Semi-Inclusive Hadron Production in Electron-Positron Annihilation at Two Loops
Alexander Mitov and Sven-Olaf Moch. “QCD Corrections to Semi-Inclusive Hadron Production in Electron-Positron Annihilation at Two Loops”. In: Nucl. Phys. B751 (2006), pp. 18–52.doi: 10.1016/j.nuclphysb.2006.05
2006 doi
-
[152]
arXiv: hep-ph/0604160
-
[153]
Lifetime of B− c Constrains Explanations for Anomalies in B → D(∗)τ ν
Rodrigo Alonso, Benjamín Grinstein, and Jorge Martin Camalich. “Lifetime of B− c Constrains Explanations for Anomalies in B → D(∗)τ ν”. In: Phys. Rev. Lett.118.8 (2017), p. 081802.doi: 10.1103/PhysRevLett.118.081802. arXiv: 1611.06676 [hep-ph]
2017 arXiv
-
[154]
A novel determination of the Bc lifetime
Jason Aebischer and Benjamín Grinstein. “A novel determination of the Bc lifetime”. In:Phys. Lett. B834 (2022), p. 137435.doi: 10.1016/j.physletb. 2022.137435. arXiv: 2108.10285 [hep-ph]
2022
-
[155]
Standard Model prediction of the Bc lifetime
Jason Aebischer and Benjamín Grinstein. “Standard Model prediction of the Bc lifetime”. In:JHEP 07 (2021), p. 130.doi: 10.1007/JHEP07(2021)130. arXiv: 2105.02988 [hep-ph]
2021 arXiv
-
[156]
Time-Like heavy-flavour thresholds for fragmentation functions: the light-quark matching condition at NNLO
Christian Biello and Leonardo Bonino. “Time-Like heavy-flavour thresholds for fragmentation functions: the light-quark matching condition at NNLO”. In: Eur. Phys. J. C84.11 (2024), p. 1192.doi: 10.1140/epjc/s10052-024- 13532-9. arXiv: 2407.07623 [hep-ph]
2024 arXiv
-
[157]
The Systematics of Quarkonium Production at the LHC and Double Parton Fragmentation
Sean Fleming et al. “The Systematics of Quarkonium Production at the LHC and Double Parton Fragmentation”. In:Phys. Rev. D86 (2012), p. 094012. doi: 10.1103/PhysRevD.86.094012. arXiv: 1207.2578 [hep-ph]
2012 arXiv
-
[158]
Heavy Quarkonium Production at Collider Energies: Factorization and Evolution
Zhong-Bo Kang et al. “Heavy Quarkonium Production at Collider Energies: Factorization and Evolution”. In:Phys. Rev. D90.3 (2014), p. 034006.doi: 10.1103/PhysRevD.90.034006. arXiv: 1401.0923 [hep-ph]
2014 arXiv
-
[159]
Rigorous QCD pre- dictions for decays of P wave quarkonia
Geoffrey T. Bodwin, Eric Braaten, and G. Peter Lepage. “Rigorous QCD pre- dictions for decays of P wave quarkonia”. In:Phys. Rev. D46 (1992), R1914– R1918. doi: 10.1103/PhysRevD.46.R1914. arXiv: hep-lat/9205006
1992 arXiv
-
[160]
Singular Binding Depen- dence in the Hadronic Widths of 1++ and 1+- Heavy Quark anti-Quark Bound States
Riccardo Barbieri, Raoul Gatto, and E. Remiddi. “Singular Binding Depen- dence in the Hadronic Widths of 1++ and 1+- Heavy Quark anti-Quark Bound States”. In:Phys. Lett. B61 (1976), pp. 465–468.doi: 10.1016/0370- 2693(76)90729-2
1976 doi
-
[161]
Towards Quarkonium Fragmentation from NRQCDinaVariable-FlavorNumberScheme
Francesco Giovanni Celiberto. “Towards Quarkonium Fragmentation from NRQCDinaVariable-FlavorNumberScheme”.In: 58th Rencontres de Moriond on QCD and High Energy Interactions.May2024.arXiv: 2405.08221 [hep-ph]
-
[162]
Quarkonium fragmentation in a variable- flavor number scheme: Towards NRFF1.0
Francesco Giovanni Celiberto. “Quarkonium fragmentation in a variable- flavor number scheme: Towards NRFF1.0”. In:PoS DIS2024 (2025), p. 168. doi: 10.22323/1.469.0168. arXiv: 2406.10779 [hep-ph]
2025 arXiv
-
[163]
On the quarkonium-in-jet collinear fragmen- tation at moderate-to-large transverse momentum
Francesco Giovanni Celiberto. “On the quarkonium-in-jet collinear fragmen- tation at moderate-to-large transverse momentum”. In:Diffraction and Low-x
-
[164]
Spectroscopy of Bc mesons and the possibility of finding exotic Bc-like structures
Pablo G. Ortega et al. “Spectroscopy of Bc mesons and the possibility of finding exotic Bc-like structures”. In:Eur. Phys. J. C 80.3 (2020), p. 223. doi: 10.1140/epjc/s10052-020-7764-6. arXiv: 2001.08093 [hep-ph]
2020 arXiv
-
[165]
Z0 decay into charmonium via charm quark fragmentation
Eric Braaten, King-man Cheung, and Tzu Chiang Yuan. “Z0 decay into charmonium via charm quark fragmentation”. In:Phys. Rev. D 48 (1993), pp. 4230–4235. doi: 10.1103/PhysRevD.48.4230. arXiv: hep-ph/9302307
1993 arXiv
-
[166]
QCD NLO fragmentation functions for c or b ¯ quark to Bc or Bc* meson and their application
Xu-Chang Zheng et al. “QCD NLO fragmentation functions for c or b ¯ quark to Bc or Bc* meson and their application”. In:Phys. Rev. D 100.3 (2019), p. 034004.doi: 10.1103/PhysRevD.100.034004. arXiv:1901.03477 [hep-ph]
2019 arXiv
-
[167]
Proper TMD factorization for quarkonia production: pp → ηc,b as a study case
Miguel G. Echevarria. “Proper TMD factorization for quarkonia production: pp → ηc,b as a study case”. In: JHEP 10 (2019), p. 144. doi: 10 . 1007 / JHEP10(2019)144. arXiv: 1907.06494 [hep-ph]. 136 BIBLIOGRAPHY
2019 arXiv
-
[168]
Transverse momentum dependent shape function for J/ψ production in SIDIS
Daniël Boer et al. “Transverse momentum dependent shape function for J/ψ production in SIDIS”. In: JHEP 08 (2023), p. 105. doi: 10 . 1007 / JHEP08(2023)105. arXiv: 2304.09473 [hep-ph]
2023 arXiv
-
[169]
High-energy QCD dynamics from bottom fla- vor fragmentation at the Hi-Lumi LHC
Francesco Giovanni Celiberto. “High-energy QCD dynamics from bottom fla- vor fragmentation at the Hi-Lumi LHC”. In:Eur. Phys. J. C 84.4 (2024), p. 384. doi: 10 . 1140 / epjc / s10052 - 024 - 12704 - x. arXiv: 2401 . 01410 [hep-ph]
2024
-
[170]
Precision measurement ofCP violation inB0 s → J/ψK +K − decays
Roel Aaij et al. “Precision measurement ofCP violation inB0 s → J/ψK +K − decays”.In: Phys. Rev. Lett.114.4(2015),p.041801. doi: 10.1103/PhysRevLett. 114.041801. arXiv: 1411.3104 [hep-ex]
2015 arXiv
-
[171]
Measurement of the b-quark production cross-section in 7 and 13 TeV pp collisions
Roel Aaij et al. “Measurement of the b-quark production cross-section in 7 and 13 TeV pp collisions”. In: Phys. Rev. Lett. 118.5 (2017). [Erratum: Phys.Rev.Lett. 119, 169901 (2017)], p. 052002.doi: 10.1103/PhysRevLett. 118.052002. arXiv: 1612.05140 [hep-ex]
2017 arXiv
-
[172]
Review of Particle Physics
P. A. Zyla et al. “Review of Particle Physics”. In: PTEP 2020.8 (2020), p. 083C01. doi: 10.1093/ptep/ptaa104
2020 doi
-
[173]
Gluonfragmentationintoheavyquarko- nium
EricBraatenandTzuChiangYuan.“Gluonfragmentationintoheavyquarko- nium”.In: Phys. Rev. Lett.71(1993),pp.1673–1676. doi: 10.1103/PhysRevLett. 71.1673. arXiv: hep-ph/9303205
1993 arXiv
-
[174]
APFEL Web: a web-based application for the graph- ical visualization of parton distribution functions
Stefano Carrazza et al. “APFEL Web: a web-based application for the graph- ical visualization of parton distribution functions”. In:J. Phys. G42.5 (2015), p. 057001. doi: 10 . 1088 / 0954 - 3899 / 42 / 5 / 057001. arXiv: 1410 . 5456 [hep-ph]
2015
-
[175]
APFEL++: A new PDF evolution library in C++
Valerio Bertone. “APFEL++: A new PDF evolution library in C++”. In: PoS DIS2017 (2018). Ed. by Uta Klein, p. 201.doi: 10.22323/1.297.0201. arXiv: 1708.00911 [hep-ph]
2018 arXiv
-
[176]
Fragmentation functions for gluon into Bc or B∗ c meson
Xu-Chang Zheng, Chao-Hsi Chang, and Xing-Gang Wu. “Fragmentation functions for gluon into Bc or B∗ c meson”. In:JHEP 05 (2022), p. 036.doi: 10.1007/JHEP05(2022)036. arXiv: 2112.10520 [hep-ph]
2022 arXiv
-
[177]
Thehigh-energyspectrumofQCDfrominclu- sive emissions of charmed B-mesons
FrancescoGiovanniCeliberto.“Thehigh-energyspectrumofQCDfrominclu- sive emissions of charmed B-mesons”. In:Phys. Lett. B835 (2022), p. 137554. doi: 10.1016/j.physletb.2022.137554. arXiv: 2206.09413 [hep-ph]. BIBLIOGRAPHY 137
2022
-
[178]
High energy resummation in dihadron produc- tion at the LHC
Francesco G. Celiberto et al. “High energy resummation in dihadron produc- tion at the LHC”. In:Phys. Rev. D94.3 (2016), p. 034013.doi: 10.1103/ PhysRevD.94.034013. arXiv: 1604.08013 [hep-ph]
2016 arXiv
-
[179]
Dihadron production at the LHC: full next-to-leading BFKL calculation
Francesco Giovanni Celiberto et al. “Dihadron production at the LHC: full next-to-leading BFKL calculation”. In:Eur. Phys. J. C77.6 (2017), p. 382. doi: 10.1140/epjc/s10052-017-4949-8. arXiv: 1701.05077 [hep-ph]
2017 arXiv
-
[180]
Emergence of high-energy dynamics from cascade-baryon detections at the LHC
Francesco Giovanni Celiberto. “Emergence of high-energy dynamics from cascade-baryon detections at the LHC”. In: Eur. Phys. J. C 83.4 (2023), p. 332. doi: 10 . 1140 / epjc / s10052 - 023 - 11417 - x. arXiv: 2208 . 14577 [hep-ph]
2023
-
[181]
Masses of fully heavy tetraquarks QQ ¯Q ¯Q in an extended relativized quark model
Qi-Fang Lü, Dian-Yong Chen, and Yu-Bing Dong. “Masses of fully heavy tetraquarks QQ ¯Q ¯Q in an extended relativized quark model”. In:Eur. Phys. J. C 80.9 (2020), p. 871.doi: 10.1140/epjc/s10052-020-08454-1. arXiv: 2006.14445 [hep-ph]
2020 arXiv
-
[182]
APFEL: A PDF Evolu- tion Library with QED corrections
Valerio Bertone, Stefano Carrazza, and Juan Rojo. “APFEL: A PDF Evolu- tion Library with QED corrections”. In:Comput. Phys. Commun.185 (2014), pp. 1647–1668. doi: 10 . 1016 / j . cpc . 2014 . 03 . 007. arXiv: 1310 . 1394 [hep-ph]
2014
-
[183]
Mueller-Navelet small-cone jets at LHC in next- to-leading BFKL
Francesco Caporale et al. “Mueller-Navelet small-cone jets at LHC in next- to-leading BFKL”. In:Nucl. Phys. B877 (2013), pp. 73–94.doi: 10.1016/ j.nuclphysb.2013.09.013. arXiv: 1211.7225 [hep-ph]
2013 arXiv
-
[184]
NLO corrections to the BFKL equation in QCD and in supersymmetric gauge theories
A. V. Kotikov and L. N. Lipatov. “NLO corrections to the BFKL equation in QCD and in supersymmetric gauge theories”. In:Nucl. Phys. B582 (2000), pp. 19–43.doi: 10.1016/S0550-3213(00)00329-1. arXiv:hep-ph/0004008
2000 arXiv
-
[185]
EKO: evolution kernel operators
Alessandro Candido, Felix Hekhorn, and Giacomo Magni. “EKO: evolution kernel operators”. In:Eur. Phys. J. C82.10 (2022), p. 976.doi: 10.1140/ epjc/s10052-022-10878-w. arXiv: 2202.02338 [hep-ph]
2022 arXiv
-
[186]
DGLAP evolution of parton distribu- tions at approximate N3LO
Felix Hekhorn and Giacomo Magni. “DGLAP evolution of parton distribu- tions at approximate N3LO”. In: (June 2023). arXiv:2306.15294 [hep-ph]. 138 BIBLIOGRAPHY
2023 arXiv
-
[187]
The path to proton structure at 1% accuracy
Richard D. Ball et al. “The path to proton structure at 1% accuracy”. In:Eur. Phys. J. C82.5 (2022), p. 428.doi: 10.1140/epjc/s10052-022-10328-7 . arXiv: 2109.02653 [hep-ph]
2022 arXiv
-
[188]
LHAPDF6: parton density access in the LHC precision era
Andy Buckley et al. “LHAPDF6: parton density access in the LHC precision era”. In: Eur. Phys. J. C 75 (2015), p. 132. doi: 10.1140/epjc/s10052- 015-3318-8. arXiv: 1412.7420 [hep-ph]
2015 arXiv
-
[189]
Anisotropy in Dijet Production in Exclusive and Inclusive Processes
Yoshitaka Hatta et al. “Anisotropy in Dijet Production in Exclusive and Inclusive Processes”. In:Phys. Rev. Lett.126.14 (2021), p. 142001.doi: 10. 1103/PhysRevLett.126.142001. arXiv: 2010.10774 [hep-ph]
2021 arXiv
-
[190]
Azimuthal angular asymmetry of soft gluon radiation in jet production
Yoshitaka Hatta et al. “Azimuthal angular asymmetry of soft gluon radiation in jet production”. In:Phys. Rev. D104.5 (2021), p. 054037.doi: 10.1103/ PhysRevD.104.054037. arXiv: 2106.05307 [hep-ph]
2021 arXiv
-
[191]
Inclusive production of fully charmed tetraquarks at the LHC
Feng Feng et al. “Inclusive production of fully charmed tetraquarks at the LHC”. In:Phys. Rev. D108.5 (2023), p. L051501.doi: 10.1103/PhysRevD. 108.L051501. arXiv: 2304.11142 [hep-ph]
2023 arXiv
-
[192]
Dijet photoproduction at low x at next-to-leading order and its back-to-back limit
Pieter Taels et al. “Dijet photoproduction at low x at next-to-leading order and its back-to-back limit”. In: JHEP 10 (2022), p. 184. doi: 10 . 1007 / JHEP10(2022)184. arXiv: 2204.11650 [hep-ph]
2022 arXiv
-
[193]
Small-radius jets to all orders in QCD
Mrinal Dasgupta et al. “Small-radius jets to all orders in QCD”. In:JHEP 04 (2015), p. 039. doi: 10 . 1007 / JHEP04(2015 ) 039. arXiv: 1411 . 5182 [hep-ph]
2015
-
[194]
Inclusive production of a pair of hadrons separated by a large interval of rapidity in proton collisions
Dmitry Yu. Ivanov and Alessandro Papa. “Inclusive production of a pair of hadrons separated by a large interval of rapidity in proton collisions”. In: JHEP 07 (2012), p. 045.doi: 10.1007/JHEP07(2012)045. arXiv:1205.6068 [hep-ph]
2012 arXiv
-
[195]
An open-source machine learning framework for global analyses of parton distributions
Richard D. Ball et al. “An open-source machine learning framework for global analyses of parton distributions”. In:Eur. Phys. J. C81.10 (2021), p. 958. doi: 10.1140/epjc/s10052-021-09747-9. arXiv: 2109.02671 [hep-ph]. BIBLIOGRAPHY 139
2021 arXiv
-
[196]
Jet-vetoedHiggscrosssectioningluonfusionatN 3LO+NNLL with small-R resummation
AndreaBanfietal.“Jet-vetoedHiggscrosssectioningluonfusionatN 3LO+NNLL with small-R resummation”. In: JHEP 04 (2016), p. 049. doi: 10 . 1007 / JHEP04(2016)049. arXiv: 1511.02886 [hep-ph]. 140 BIBLIOGRAPHY
2016 arXiv
-
[197]
Threshold and jet radius joint resummation for single-inclusive jet production
Xiaohui Liu, Sven-Olaf Moch, and Felix Ringer. “Threshold and jet radius joint resummation for single-inclusive jet production”. In:Phys. Rev. Lett. 119.21 (2017), p. 212001.doi: 10.1103/PhysRevLett.119.212001 . arXiv: 1708.04641 [hep-ph]
2017 arXiv
-
[198]
QCD resummation for hadronic final states
Gionata Luisoni and Simone Marzani. “QCD resummation for hadronic final states”. In:J. Phys. G42.10 (2015), p. 103101.doi: 10.1088/0954-3899/ 42/10/103101. arXiv: 1505.04084 [hep-ph]
2015 arXiv
-
[199]
Jet angularities in Z+jet production at the LHC
Simone Caletti et al. “Jet angularities in Z+jet production at the LHC”. In: JHEP 07 (2021), p. 076. doi: 10 . 1007 / JHEP07(2021 ) 076. arXiv: 2104 . 06920 [hep-ph]
2021
-
[200]
Back-to-back inclusive dijets in DIS at small x: Sudakov suppression and gluon saturation at NLO
Paul Caucal et al. “Back-to-back inclusive dijets in DIS at small x: Sudakov suppression and gluon saturation at NLO”. In:JHEP 11 (2022), p. 169.doi: 10.1007/JHEP11(2022)169. arXiv: 2208.13872 [hep-ph]
2022 arXiv
-
[201]
Evidence for intrinsic charm quarks in the proton
Richard D. Ball et al. “Evidence for intrinsic charm quarks in the proton”. In: Nature 608.7923 (2022), pp. 483–487.doi: 10.1038/s41586-022-04998-2 . arXiv: 2208.08372 [hep-ph]
2022 arXiv
-
[202]
The Intrinsic Charm of the Proton
S. J. Brodsky et al. “The Intrinsic Charm of the Proton”. In:Phys. Lett. B 93 (1980), pp. 451–455.doi: 10.1016/0370-2693(80)90364-0
1980 doi
-
[203]
Inclusivejetspectrumforsmall-radiusjets
MrinalDasguptaetal.“Inclusivejetspectrumforsmall-radiusjets”.In: JHEP 06 (2016), p. 057. doi: 10 . 1007 / JHEP06(2016 ) 057. arXiv: 1602 . 01110 [hep-ph]
2016
-
[204]
Higgs and Z-boson production with a jet veto
Andrea Banfi et al. “Higgs and Z-boson production with a jet veto”. In:Phys. Rev. Lett.109 (2012), p. 202001.doi: 10.1103/PhysRevLett.109.202001. arXiv: 1206.4998 [hep-ph]
2012 arXiv
-
[205]
A Determination of the Charm Content of the Proton
Richard D. Ball et al. “A Determination of the Charm Content of the Proton”. In: Eur. Phys. J. C76.11 (2016), p. 647.doi: 10.1140/epjc/s10052-016- 4469-y. arXiv: 1605.06515 [hep-ph]
2016 arXiv
-
[206]
CT14 Intrinsic Charm Parton Distribution Functions from CTEQ-TEA Global Analysis
Tie-Jiun Hou et al. “CT14 Intrinsic Charm Parton Distribution Functions from CTEQ-TEA Global Analysis”. In:JHEP 02 (2018), p. 059. doi: 10. 1007/JHEP02(2018)059. arXiv: 1707.00657 [hep-ph]. BIBLIOGRAPHY 141
2018 arXiv
-
[207]
The persistent nonperturbative charm enigma
Marco Guzzi et al. “The persistent nonperturbative charm enigma”. In:Phys. Lett. B 843 (2023), p. 137975. doi: 10.1016/j.physletb.2023.137975 . arXiv: 2211.01387 [hep-ph]
2023
-
[208]
Intrinsic charm quark valence distribution of the proton
Richard D. Ball et al. “Intrinsic charm quark valence distribution of the proton”. In:Phys. Rev. D109.9 (2024), p. L091501.doi: 10.1103/PhysRevD. 109.L091501. arXiv: 2311.00743 [hep-ph]
2024 arXiv
-
[209]
Phenomenology of jet angularities at the LHC
Daniel Reichelt et al. “Phenomenology of jet angularities at the LHC”. In: JHEP 03 (2022), p. 131. doi: 10 . 1007 / JHEP03(2022 ) 131. arXiv: 2112 . 09545 [hep-ph]
2022
-
[210]
Semihard Processes in QCD
L. V. Gribov, E. M. Levin, and M. G. Ryskin. “Semihard Processes in QCD”. In: Phys. Rept.100 (1983), pp. 1–150.doi: 10.1016/0370-1573(83)90022- 4
1983 doi
-
[211]
Small x F(2) structure function of a nucleus including multiple pomeron exchanges
Yuri V. Kovchegov. “Small x F(2) structure function of a nucleus including multiple pomeron exchanges”. In:Phys. Rev. D 60 (1999), p. 034008. doi: 10.1103/PhysRevD.60.034008. arXiv: hep-ph/9901281
1999 arXiv
-
[212]
A review of the intrinsic heavy quark content of the nucleon
S. J. Brodsky et al. “A review of the intrinsic heavy quark content of the nucleon”. In:Adv. High Energy Phys.2015 (2015), p. 231547.doi: 10.1155/ 2015/231547. arXiv: 1504.06287 [hep-ph]
2015 arXiv
-
[213]
New limits on intrinsic charm in the nucleon from global analysis of parton distributions
P. Jimenez-Delgado et al. “New limits on intrinsic charm in the nucleon from global analysis of parton distributions”. In: Phys. Rev. Lett. 114.8 (2015), p. 082002. doi: 10 . 1103 / PhysRevLett . 114 . 082002. arXiv: 1408 . 1708 [hep-ph]
2015
-
[214]
Searching for saturation in forward dijet production at the LHC
A. van Hameren et al. “Searching for saturation in forward dijet production at the LHC”. In:Eur. Phys. J. C83.10 (2023), p. 947.doi: 10.1140/epjc/ s10052-023-12120-7. arXiv: 2306.17513 [hep-ph]
2023 arXiv
-
[215]
Back-to-Back Inclusive Dijets in Deep Inelastic Scattering at Small x: Complete NLO Results and Predictions
Paul Caucal et al. “Back-to-Back Inclusive Dijets in Deep Inelastic Scattering at Small x: Complete NLO Results and Predictions”. In:Phys. Rev. Lett. 132.8 (2024), p. 081902. doi: 10.1103/PhysRevLett.132.081902 . arXiv: 2308.00022 [hep-ph]. 142 BIBLIOGRAPHY
2024 arXiv
-
[216]
One-loop Factorization for Inclusive Hadron Production inpA Collisions in the Saturation Formal- ism
Giovanni A. Chirilli, Bo-Wen Xiao, and Feng Yuan. “One-loop Factorization for Inclusive Hadron Production inpA Collisions in the Saturation Formal- ism”. In:Phys. Rev. Lett.108 (2012), p. 122301.doi: 10.1103/PhysRevLett. 108.122301. arXiv: 1112.1061 [hep-ph]
2012 arXiv
-
[217]
Massive Quarks at One Loop in the Dipole Picture of Deep Inelastic Scattering
G. Beuf, T. Lappi, and R. Paatelainen. “Massive Quarks at One Loop in the Dipole Picture of Deep Inelastic Scattering”. In:Phys. Rev. Lett.129.7 (2022), p. 072001. doi: 10 . 1103 / PhysRevLett . 129 . 072001. arXiv: 2112 . 03158 [hep-ph]
2022
-
[218]
Asymptotic behavior and subtractions in the Mandelstam representation
Marcel Froissart. “Asymptotic behavior and subtractions in the Mandelstam representation”. In: Phys. Rev. 123 (1961), pp. 1053–1057. doi: 10 .1103 / PhysRev.123.1053
1961
-
[219]
Next-to-LeadingOrder Computation ofExclusiveDiffrac- tive Light Vector Meson Production in a Saturation Framework
R. Boussarieetal. “Next-to-LeadingOrder Computation ofExclusiveDiffrac- tive Light Vector Meson Production in a Saturation Framework”. In:Phys. Rev. Lett.119.7 (2017), p. 072002.doi: 10.1103/PhysRevLett.119.072002. arXiv: 1612.08026 [hep-ph]
2017 arXiv
-
[220]
Complete calculation of exclusive heavy vector meson production at next-to-leading order in the dipole pic- ture
Heikki Mäntysaari and Jani Penttala. “Complete calculation of exclusive heavy vector meson production at next-to-leading order in the dipole pic- ture”. In:JHEP 08 (2022), p. 247.doi: 10.1007/JHEP08(2022)247. arXiv: 2204.14031 [hep-ph]
2022 arXiv
-
[221]
Unitarization of the BFKL pomeron on a nucleus
Yuri V. Kovchegov. “Unitarization of the BFKL pomeron on a nucleus”. In: Phys. Rev. D 61 (2000), p. 074018. doi: 10.1103/PhysRevD.61.074018 . arXiv: hep-ph/9905214
2000 arXiv
-
[222]
NLOimpactfactorforinclusivephoton +dijet production ine+A DIS at smallx
KaushikRoyandRajuVenugopalan.“NLOimpactfactorforinclusivephoton +dijet production ine+A DIS at smallx”. In:Phys. Rev. D101.3 (2020), p. 034028. doi: 10.1103/PhysRevD.101.034028. arXiv: 1911.04530 [hep-ph]
2020 arXiv
-
[223]
Twist corrections to exclusive vector meson produc- tion in a saturation framework
Renaud Boussarie et al. “Twist corrections to exclusive vector meson produc- tion in a saturation framework”. In:Phys. Rev. D 111.1 (2025), p. 014032. doi: 10.1103/PhysRevD.111.014032. arXiv: 2407.18115 [hep-ph]. BIBLIOGRAPHY 143
2025 arXiv
-
[224]
Probing Gluonic Saturation in Deeply Virtual Me- son Production beyond Leading Power
Renaud Boussarie et al. “Probing Gluonic Saturation in Deeply Virtual Me- son Production beyond Leading Power”. In:Phys. Rev. Lett.134.4 (2025), p. 041901. doi: 10 . 1103 / PhysRevLett . 134 . 041901. arXiv: 2407 . 18203 [hep-ph]
2025
-
[225]
Exclusive leptoproduction of a light vector meson at the twist-3 in a GTMD framework
Renaud Boussarie et al. “Exclusive leptoproduction of a light vector meson at the twist-3 in a GTMD framework”. In:Diffraction and Low-x 2024. Jan
2024
-
[226]
Semi-inclusive Deep Inelas- tic Scattering at small x
Cyrille Marquet, Bo-Wen Xiao, and Feng Yuan. “Semi-inclusive Deep Inelas- tic Scattering at small x”. In:Phys. Lett. B 682 (2009), pp. 207–211. doi: 10.1016/j.physletb.2009.10.099. arXiv: 0906.1454 [hep-ph]
2009 arXiv
-
[227]
Forward production of a Drell-Yan pair and a jet at small x at next-to-leading order
Pieter Taels. “Forward production of a Drell-Yan pair and a jet at small x at next-to-leading order”. In: JHEP 01 (2024), p. 005. doi: 10 . 1007 / JHEP01(2024)005. arXiv: 2308.02449 [hep-ph]
2024 arXiv
-
[228]
Probing Parton Sat- uration and the Gluon Dipole via Diffractive Jet Production at the Electron- Ion Collider
E. Iancu, A. H. Mueller, and D. N. Triantafyllopoulos. “Probing Parton Sat- uration and the Gluon Dipole via Diffractive Jet Production at the Electron- Ion Collider”. In:Phys. Rev. Lett.128.20 (2022), p. 202001.doi: 10.1103/ PhysRevLett.128.202001. arXiv: 2112.06353 [hep-ph]
2022 arXiv
-
[229]
Probing the Small- x Gluon Tomography in Correlated Hard Diffractive Dijet Production in Deep Inelas- tic Scattering
Yoshitaka Hatta, Bo-Wen Xiao, and Feng Yuan. “Probing the Small- x Gluon Tomography in Correlated Hard Diffractive Dijet Production in Deep Inelas- tic Scattering”. In:Phys. Rev. Lett.116.20 (2016), p. 202301.doi: 10.1103/ PhysRevLett.116.202301. arXiv: 1601.01585 [hep-ph]
2016 arXiv
-
[230]
Photoproduction of ηcγ pairs in CGC framework
M. Siddikov et al. “Photoproduction of ηcγ pairs in CGC framework”. In: (Nov. 2024). arXiv:2411.05545 [hep-ph]
2024 arXiv
-
[231]
Photon-odderon interference in exclusiveχc charmonium production at the Electron-Ion Collider
Sanjin Benić et al. “Photon-odderon interference in exclusiveχc charmonium production at the Electron-Ion Collider”. In: Phys. Rev. D 110.1 (2024), p. 014025. doi: 10 . 1103 / PhysRevD . 110 . 014025. arXiv: 2402 . 19134 [hep-ph]
2024
-
[232]
Towards a complete next-to-logarithmic description of forward exclusive diffractive dijet electroproduction at HERA: real correc- tions
R. Boussarie et al. “Towards a complete next-to-logarithmic description of forward exclusive diffractive dijet electroproduction at HERA: real correc- tions”. In:Phys. Rev. D100.7 (2019), p. 074020.doi: 10.1103/PhysRevD. 100.074020. arXiv: 1905.07371 [hep-ph]
2019 arXiv
-
[233]
Diffractive single hadron production in a saturation frameworkattheNLO
Michael Fucilla et al. “Diffractive single hadron production in a saturation frameworkattheNLO”.In: JHEP 02(2024),p.165. doi: 10.1007/JHEP02(2024)
2024 doi
-
[234]
Gluon tomography through diffractive processes in a saturation framework
Michael Fucilla et al. “Gluon tomography through diffractive processes in a saturation framework”. In:PoS DIS2024 (2025), p. 090.doi: 10.22323/1. 469.0090. arXiv: 2408.09805 [hep-ph]
2025 arXiv
-
[235]
NLO computation of diffractive di-hadron production in a saturation framework
Michael Fucilla et al. “NLO computation of diffractive di-hadron production in a saturation framework”. In: JHEP 03 (2023), p. 159. doi: 10 . 1007 / JHEP03(2023)159. arXiv: 2211.05774 [hep-ph]
2023 arXiv
-
[236]
Diffractive Di-hadron Production at NLO Within the Shockwave Formalism
Michael Fucilla et al. “Diffractive Di-hadron Production at NLO Within the Shockwave Formalism”. In:Acta Phys. Polon. Supp.16.5 (2023), p. 21.doi: 10.5506/APhysPolBSupp.16.5-A21. arXiv: 2211.04390 [hep-ph]
2023 arXiv
-
[237]
Semi-inclusive diffractive deep inelastic scattering at small x
Yoshitaka Hatta, Bo-Wen Xiao, and Feng Yuan. “Semi-inclusive diffractive deep inelastic scattering at small x”. In:Phys. Rev. D106.9 (2022), p. 094015. doi: 10.1103/PhysRevD.106.094015. arXiv: 2205.08060 [hep-ph]
2022 arXiv
-
[238]
Foundations of Perturbative QCD
John Collins. Foundations of Perturbative QCD. Vol. 32. Cambridge Uni- versity Press, 2011. isbn: 978-1-009-40184-5, 978-1-009-40183-8, 978-1-009- 40182-1. doi: 10.1017/9781009401845
2011 doi
-
[239]
Processes Involving Fragmentation Functions Beyond the Leading Order in QCD
Guido Altarelli et al. “Processes Involving Fragmentation Functions Beyond the Leading Order in QCD”. In:Nucl. Phys. B160 (1979), pp. 301–329.doi: 10.1016/0550-3213(79)90062-2
1979 doi
-
[240]
Impact factor for high-energy two and three jets diffrac- tive production
R. Boussarie et al. “Impact factor for high-energy two and three jets diffrac- tive production”. In:JHEP 09 (2014), p. 026.doi: 10.1007/JHEP09(2014)
2014 doi
-
[241]
arXiv: 1405.7676 [hep-ph]
-
[242]
On the one loopγ(∗) → qq impact factor and the exclusive diffractive cross sections for the production of two or three jets
R. Boussarie et al. “On the one loopγ(∗) → qq impact factor and the exclusive diffractive cross sections for the production of two or three jets”. In:JHEP 11 (2016), p. 149. doi: 10 . 1007 / JHEP11(2016 ) 149. arXiv: 1606 . 00419 [hep-ph]. 144 BIBLIOGRAPHY
2016
-
[245]
arXiv: 2310.11066 [hep-ph]
-
[249]
Diffractive single and di-hadron production at NLO in a saturation framework
Michael Fucilla et al. “Diffractive single and di-hadron production at NLO in a saturation framework”. In:PoS EPS-HEP2023 (2024), p. 201.doi: 10. 22323/1.449.0201. arXiv: 2311.00383 [hep-ph]
2024 arXiv
-
[252]
Saturation effects in deep in- elastic scattering at low Q**2 and its implications on diffraction
Krzysztof J. Golec-Biernat and M. Wusthoff. “Saturation effects in deep in- elastic scattering at low Q**2 and its implications on diffraction”. In:Phys. Rev. D 59 (1998), p. 014017. doi: 10.1103/PhysRevD.59.014017 . arXiv: hep-ph/9807513
1998 arXiv
-
[623]
doi: 10.1140/epjst/e2019-900045-4
- [1171]
-
[1977]
doi: 10.1017/CBO9780511897603
-
[2024]
Dec. 2024. arXiv:2412.05661 [hep-ph]
2024 arXiv
-
[2025]
arXiv: 2501.08143 [hep-ph]
- [6203]
- [6898]
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