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Neutrino interaction classification with a convolutional neural network in the DUNE far detector
Univ Oxford, Oxford OX1 3RH, England..
Harish-Chandra Research Institute, Jhunsi, Allahabad 211 019, India.ORCID iD: 0000-0002-6071-8546
Fermilab Natl Accelerator Lab, POB 500, Batavia, IL 60510 USA..
Number of Authors: 9752020 (English)In: Physical Review D: covering particles, fields, gravitation, and cosmology, ISSN 2470-0010, E-ISSN 2470-0029, Vol. 102, no 9, article id 092003Article in journal (Refereed) Published
Abstract [en]

The Deep Underground Neutrino Experiment is a next-generation neutrino oscillation experiment that aims to measure CP-violation in the neutrino sector as part of a wider physics program. A deep learning approach based on a convolutional neural network has been developed to provide highly efficient and pure selections of electron neutrino and muon neutrino charged-current interactions. The electron neutrino (antineutrino) selection efficiency peaks at 90% (94%) and exceeds 85% (90%) for reconstructed neutrino energies between 2-5 GeV. The muon neutrino (antineutrino) event selection is found to have a maximum efficiency of 96% (97%) and exceeds 90% (95%) efficiency for reconstructed neutrino energies above 2 GeV. When considering all electron neutrino and antineutrino interactions as signal, a selection purity of 90% is achieved. These event selections are critical to maximize the sensitivity of the experiment to CP-violating effects.

Place, publisher, year, edition, pages
American Physical Society (APS) , 2020. Vol. 102, no 9, article id 092003
National Category
Subatomic Physics
Identifiers
URN: urn:nbn:se:kth:diva-350220DOI: 10.1103/PhysRevD.102.092003ISI: 000587596500004Scopus ID: 2-s2.0-85096669682OAI: oai:DiVA.org:kth-350220DiVA, id: diva2:1883036
Note

QC 20240708

Available from: 2024-07-08 Created: 2024-07-08 Last updated: 2024-07-08Bibliographically approved

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Choubey, Sandhya

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