Analyzing N-Point Energy Correlators inside Jets with CMS Open Data.
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P. Komiske | I. Moult | H. Zhu | J. Thaler
[1] I. Moult,et al. Renormalization group flows for track function moments , 2022, Journal of High Energy Physics.
[2] S. Prestel,et al. Disentangling soft and collinear effects in QCD parton showers , 2021, Physical Review D.
[3] G. Korchemsky,et al. On the light-ray algebra in conformal field theories , 2021, Journal of High Energy Physics.
[4] S. Elgammal,et al. Search for the production of dark matter candidates in association with heavy dimuon resonance using the CMS open data for pp collisions at $\sqrt{s}$ = 8 TeV , 2021, 2109.11274.
[5] I. Moult,et al. Extending Precision Perturbative QCD with Track Functions. , 2021, Physical review letters.
[6] Zhen Hu,et al. Exploring Uncharted Soft Displaced Vertices in Open Data , 2021, 2107.11405.
[7] G. Korchemsky,et al. Generalizing event shapes: in search of lost collider time , 2021, Journal of High Energy Physics.
[8] Hao Chen,et al. Spinning gluons from the QCD light-ray OPE , 2021, Journal of High Energy Physics.
[9] R. Verheyen,et al. Spin correlations in final-state parton showers and jet observables , 2021, The European Physical Journal C.
[10] Jun Gao,et al. Energy-energy correlation in hadronic Higgs decays: analytic results and phenomenology at NLO , 2020, Journal of High Energy Physics.
[11] B. Mistlberger,et al. The Energy-Energy Correlation in the back-to-back limit at N3LO and N3LL′ , 2020, Journal of High Energy Physics.
[12] K. Zapp,et al. Time reclustering for jet quenching studies , 2020, The European Physical Journal C.
[13] Hao Chen,et al. Quantum Interference in Jet Substructure from Spinning Gluons. , 2020, Physical review letters.
[14] D. Simmons-Duffin,et al. Transverse spin in the light-ray OPE , 2020, Journal of High Energy Physics.
[15] W. Y. Chan,et al. Optimisation of large-radius jet reconstruction for the ATLAS detector in 13 TeV proton-proton collisions , 2020, 2009.04986.
[16] Hao Chen,et al. Rethinking jets with energy correlators: Tracks, resummation, and analytic continuation , 2020, Physical Review D.
[17] K. Yan,et al. From correlation functions to event shapes in QCD , 2020, Journal of High Energy Physics.
[18] Hao Chen,et al. Three point energy correlators in the collinear limit: symmetries, dualities and analytic results , 2019, Journal of High Energy Physics.
[19] D. Ghosh,et al. Study of Di-Muon Production Process in pp Collision in CMS Data from Symmetry Scaling Perspective , 2019, 1911.09928.
[20] K. Tywoniuk,et al. Dynamical grooming of QCD jets , 2019, Physical Review D.
[21] A. H. Chan,et al. Intermittency in pseudorapidity space of pp collisions at √s $ \sqrt s $ = 7 TeV , 2019, EPJ Web of Conferences.
[22] Patrick T. Komiske,et al. Exploring the space of jets with CMS open data , 2019, Physical Review D.
[23] A. Fahim,et al. Explicit jet veto as a tool to purify the underlying event in the Drell–Yan process using CMS Open Data , 2019, Journal of Physics G: Nuclear and Particle Physics.
[24] Markus Klute,et al. Opportunities and challenges of Standard Model production cross section measurements in proton-proton collisions at √s=8 TeV using CMS Open Data , 2019, Journal of Instrumentation.
[25] D. Simmons-Duffin,et al. The light-ray OPE and conformal colliders , 2019, Journal of High Energy Physics.
[26] I. Moult,et al. Collinear limit of the energy-energy correlator , 2019, Physical Review D.
[27] Matthias Schott,et al. Testing non-standard sources of parity violation in jets at the LHC, trialled with CMS Open Data , 2019, Journal of High Energy Physics.
[28] D. Simmons-Duffin,et al. Shocks, superconvergence, and a stringy equivalence principle , 2019, Journal of High Energy Physics.
[29] Vladyslav Shtabovenko,et al. Analytic next-to-leading order calculation of energy-energy correlation in gluon-initiated Higgs decays , 2019, Journal of High Energy Physics.
[30] K. Yan,et al. Energy-energy correlation in N=4 super Yang-Mills theory at next-to-next-to-leading order , 2019, Physical Review D.
[31] Wei Xue,et al. Searching in CMS open data for dimuon resonances with substantial transverse momentum , 2019, Physical Review D.
[32] Jesse Thaler,et al. Metric Space of Collider Events. , 2019, Physical review letters.
[33] M. Spannowsky,et al. Looking Inside Jets , 2019, Lecture Notes in Physics.
[34] P. Komiske,et al. An operational definition of quark and gluon jets , 2018, Journal of High Energy Physics.
[35] Matthew Nguyen,et al. Novel tools and observables for jet physics in heavy-ion collisions , 2018, Journal of Physics G: Nuclear and Particle Physics.
[36] J. Thaler,et al. Aspects of track-assisted mass , 2018, Journal of High Energy Physics.
[37] D. Simmons-Duffin,et al. Light-ray operators in conformal field theory , 2018, Journal of High Energy Physics.
[38] Vladyslav Shtabovenko,et al. Analytical Computation of Energy-Energy Correlation at Next-to-Leading Order in QCD. , 2018, Physical review letters.
[39] G. Salam,et al. Probing the Time Structure of the Quark-Gluon Plasma with Top Quarks. , 2017, Physical review letters.
[40] B. Nachman,et al. Jet substructure at the Large Hadron Collider: A review of recent advances in theory and machine learning , 2017, Physics Reports.
[41] A. S. Mete,et al. Jet reconstruction and performance using particle flow with the ATLAS Detector , 2017, The European physical journal. C, Particles and fields.
[42] Atlas Collaboration. Determination of the strong coupling constant $$\alpha _\mathrm {s}$$ α s from transvers , 2017, 1707.02562.
[43] F. Krauss,et al. Implementing NLO DGLAP evolution in parton showers , 2017, Journal of High Energy Physics.
[44] S. Hoche,et al. Triple collinear emissions in parton showers , 2017, 1705.00742.
[45] Wei Xue,et al. Jet Substructure Studies with CMS Open Data , 2017, 1704.05842.
[46] M. Procura,et al. Generalized fragmentation functions for fractal jet observables , 2017, Journal of High Energy Physics.
[47] A. Tripathee,et al. Exposing the QCD Splitting Function with CMS Open Data. , 2017, Physical review letters.
[48] P. Skands,et al. A framework for second-order parton showers , 2016, 1611.00013.
[49] Thomas Hartman,et al. Averaged null energy condition from causality , 2016, Journal of High Energy Physics.
[50] F. Ringer,et al. Jet substructure using semi-inclusive jet functions in SCET , 2016, 1606.07063.
[51] F. Ringer,et al. The semi-inclusive jet function in SCET and small radius resummation for inclusive jet production , 2016, 1606.06732.
[52] Onkar Parrikar,et al. Modular Hamiltonians for deformed half-spaces and the averaged null energy condition , 2016, 1605.08072.
[53] P. Calabrese,et al. Real-time confinement following a quantum quench to a non-integrable model , 2016, Nature Physics.
[54] Peter Skands,et al. An introduction to PYTHIA 8.2 , 2014, Comput. Phys. Commun..
[55] G.P.Korchemsky,et al. N=4 superconformal Ward identities for correlation functions , 2014, 1409.2502.
[56] G. Korchemsky,et al. N=4 superconformal Ward identities for correlation functions , 2014 .
[57] G. Korchemsky,et al. From correlation functions to event shapes , 2013, 1309.0769.
[58] C. Collaboration,et al. Description and performance of track and primary-vertex reconstruction with the CMS tracker , 2014, 1405.6569.
[59] G. Soyez,et al. Soft drop , 2014, 1402.2657.
[60] G. Korchemsky,et al. Energy-energy correlations in n=4 supersymmetric Yang-Mills theory. , 2013, Physical review letters.
[61] G. Korchemsky,et al. Event shapes in N = 4 super-Yang-Mills theory , 2013, 1309.1424.
[62] G. Salam,et al. Towards an understanding of jet substructure , 2013, 1307.0007.
[63] M. Procura,et al. Calculating Track Thrust with Track Functions , 2013, 1306.6630.
[64] M. Procura,et al. Calculating track-based observables for the LHC. , 2013, Physical review letters.
[65] I. Stewart,et al. Power corrections to event shapes with mass-dependent operators , 2012, 1209.3781.
[66] C. Collaboration,et al. Shape, transverse size, and charged-hadron multiplicity of jets in pp collisions at sqrt(s) = 7 TeV , 2012, 1204.3170.
[67] M. Cacciari,et al. FastJet user manual , 2011, 1111.6097.
[68] C. Collaboration,et al. Determination of Jet Energy Calibration and Transverse Momentum Resolution in CMS , 2011, 1107.4277.
[69] Lian-tao Wang,et al. Jet trimming , 2009, 0912.1342.
[70] M. Procura,et al. Quark fragmentation within an identified jet , 2009, 0911.4980.
[71] João Paulo Teixeira,et al. The CMS experiment at the CERN LHC , 2008 .
[72] David E Kaplan,et al. Top-Tagging: A Method for Identifying Boosted Hadronic Tops , 2008 .
[73] E. Iancu,et al. Jet evolution in the N = 4 SYM plasma at strong coupling , 2008, 0803.2481.
[74] J. Maldacena,et al. Conformal collider physics: energy and charge correlations , 2008, 0803.1467.
[75] M. Cacciari,et al. The anti-$k_t$ jet clustering algorithm , 2008, 0802.1189.
[76] C. Bauer,et al. Factorization of e+e- event shape distributions with hadronic final states in soft collinear effective theory , 2008, 0801.4569.
[77] M. Strassler. Why Unparticle Models with Mass Gaps are Examples of Hidden Valleys , 2008, 0801.0629.
[78] M. Cacciari,et al. Dispelling the N3 myth for the kt jet-finder , 2005, hep-ph/0512210.
[79] G.P.Korchemsky,et al. Power corrections to event shapes and factorization , 1999, hep-ph/9902341.
[80] G. Sterman,et al. Power corrections and nonlocal operators , 1997, hep-ph/9708346.
[81] F. Tkachov,et al. Jets and quantum field theory , 1996 .
[82] G. Sterman,et al. Nonperturbative corrections in resummed cross sections , 1995 .
[83] Burke,et al. Measurement of alpha s(MZ2) from hadronic event observables at the Z0 resonance. , 1995, Physical review. D, Particles and fields.
[84] P. K. Malhotra,et al. Determination of alpha-s from hadronic event shapes measured on the Z0 resonance , 1992 .
[85] R. Wald,et al. General proof of the averaged null energy condition for a massless scalar field in two-dimensional curved spacetime. , 1991, Physical review. D, Particles and fields.
[86] Klinkhammer,et al. Averaged energy conditions for free scalar fields in flat spacetime. , 1991, Physical review. D, Particles and fields.
[87] Y. Kato,et al. Measurements of αs in e+e− annihilation at √s=53.3 GeV and 59.5 GeV , 1989 .
[88] J. Baines,et al. Measurements of energy correlations ine+e−→hadrons , 1984 .
[89] M. Davier,et al. Analysis of the energy weighted angular correlations in hadronice+e− annihilations at 22 and 34 GeV , 1982 .
[90] B. Webber,et al. Transverse Momentum Moments of Hadron Distributions in {QCD} Jets , 1981 .
[91] F. Low,et al. Tensor analysis of hadronic jets in quantum chromodynamics , 1979 .
[92] G. Veneziano,et al. Jet calculus: A simple algorithm for resolving QCD jets , 1979 .
[93] S. D. Ellis,et al. Energy correlations in perturbative quantum chromodynamics: A conjecture for all orders , 1979 .
[94] S. D. Ellis,et al. Energy correlations in electron-positron annihilation in quantum chromodynamics: Asymptotically free perturbation theory , 1979 .
[95] F. Tipler. Energy conditions and spacetime singularities , 1978 .
[96] S. D. Ellis,et al. Electron-positron annihilation energy pattern in quantum chromodynamics: Asymptotically free perturbation theory , 1978 .
[97] G. Parisi. Superinclusive cross sections , 1978 .
[98] J. Ellis,et al. Search for gluons in e+e− annihilation , 1976 .
[99] S. Brodsky,et al. Statistical Model for Electron-Positron Annihilation into Hadrons , 1970 .
[100] G. Korchemsky,et al. Four-point correlation function of stress-energy tensors in N = 4 superconformal theories , 2015 .
[101] J. Butterworth,et al. Ju n 20 08 Jet substructure as a new Higgs search channel at the LHC , 2008 .