Impact of neutral fluxes and signal significance optimization on semi-exclusive production via deep learning training
arXiv:2609.26928 · doi:10.1140/epjc/s10052-026-15416-6
Abstract
Photon flux benchmark models and recent experimental estimates of pomeron energy fluxes and structure functions are implemented in Monte Carlo simulations to assess their impact on physical observables and signal strength uncertainty for the yet-to-be-observed semi-exclusive production in proton-proton () collisions at Large Hadron Collider (LHC) and Future Circular Collider (FCC) energies. The expected cross sections increase by factors of approximately 50 and 22 for pomeron-induced and photon-induced processes, respectively, from LHC to FCC energies. TensorFlow deep neural networks discriminate semi-exclusive processes from the non-peripheral background, achieving a test area under the receiver operating characteristic curve (AUC) of for the photon-induced signal. At detector level, using the CMS detector geometry at CERN, the minimum Hadronic Forward energy observable is identified as the most effective discriminator against this background. For low-pileup data, an Asimov dataset analysis incorporating statistical uncertainties and systematic contributions from pomeron and photon schemes predicts a significance of for pomeron-induced and photon-induced production with integrated luminosities of 1 and 4.7 , respectively. The systematic contributions to the total uncertainty are 25.1% and 7.6%, respectively. These results highlight the potential for experimental observation using Run 2 and Run 3 LHC data and for further studies within the LHC forward physics program.
27 pages, 17 figures
References in corpus (25)
- SciPy 1.0--Fundamental Algorithms for Scientific Computing in Python
- LHAPDF6: parton density access in the LHC precision era
- The CMS statistical analysis and combination tool: COMBINE
- Measurement of diffraction dissociation cross sections in pp collisions at sqrt(s) = 7 TeV
- A comprehensive guide to the physics and usage of PYTHIA 8.3
- Observation of in proton-proton collisions and limits on the anomalous electromagnetic moments of the lepton
- Selected topics in diffraction with protons and nuclei: past, present, and future
- Hard diffraction in photoproduction with Pythia 8
- Criteria for projected discovery and exclusion sensitivities of counting experiments
- Challenging exclusive top quark pair production at low and high luminosity LHC
- Measurement of the top quark mass using a profile likelihood approach with the lepton+jets final states in proton-proton collisions at = 13 TeV
- Two-particle azimuthal correlations in p interactions using pPb collisions at = 8.16 TeV
- Proton reconstruction with the CMS-TOTEM Precision Proton Spectrometer
- Science and Project Planning for the Forward Physics Facility in Preparation for the 2024-2026 European Particle Physics Strategy Update
- Measurement of single-diffractive dijet production in proton-proton collisions at 8 TeV with the CMS and TOTEM experiments
- Determination of diffractive PDFs from global QCD analysis of inclusive diffractive DIS and dijet cross-section measurements at HERA
- Diffractive production in collisions at the LHC
- Top quark effective couplings from top-pair tagged photoproduction in collisions
- Search for central exclusive production of top quark pairs in proton-proton collisions at = 13 TeV with tagged protons
- Diffractive and photon-induced production of top quark
- Physics perspectives of a CMS near-beam proton spectrometer at the HL-LHC
- Photoproduction of vector mesons: from ultraperipheral to semi-central heavy ion collisions
- Overview of ATLAS forward proton detectors for LHC Run 3 and plans for the HL-LHC
- Effective Field Theory Factorization for Diffraction
- Exploring the impact of high-precision top-quark pair production data on the structure of the proton at the LHC