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Introducing a Markov chain-based time calibration procedure for multi-channel particle detectors: application to the SuperFGD and ToF detectors of the T2K experiment

  • S. Abe
  • , H. Alarakia-Charles
  • , I. Alekseev
  • , C. Alt
  • , T. Arai
  • , T. Arihara
  • , S. Arimoto
  • , A. M. Artikov
  • , Y. Awataguchi
  • , N. Babu
  • , V. Baranov
  • , G. Barr
  • , D. Barrow
  • , L. Bartoszek
  • , L. Bernardi
  • , L. Berns
  • , S. Bhattacharjee
  • , A. V. Boikov
  • , A. Blanchet
  • , A. Blondel
  • A. Bonnemaison, S. Bordoni, M. H. Bui, T. H. Bui, F. Cadoux, S. Cap, A. Cauchois, J. Chakrani, P. S. Chong, A. Chvirova, P. Collard, M. Danilov, C. Davis, V. Davouloury, Yu I. Davydov, A. Dergacheva, C. Domangue, D. Douqa, T. A. Doyle, O. Drapier, A. Eguchi, J. Elias, G. Erofeev, Y. Favre, D. Fedorova, S. Fedotov, D. Ferlewicz, Y. Fujii, R. Fujita, Y. Furui, F. Gastaldi, A. Gendotti, A. Germer, L. Giannessi, C. Giganti, V. Glagolev, R. Guillaumat, G. Ha, N. C. Hastings, I. Heitkamp, J. Hu, C. Husi, A. K. Ichikawa, T. H. Ishida, A. Izmaylov, K. Iwamoto, M. Jakkapu, C. Jesús-Valls, J. Y. Ji, P. Jonsson, C. K. Jung, H. Kakuno, V. S. Kasturi, M. Kawaue, P. T. Keener, M. Khabibullin, N. V. Khomutov, A. Khotjantsev, T. Kikawa, H. Kikutani, N. V. Kirichkov, A. Klustová, H. Kobayashi, T. Kobayashi, L. Koch, S. Kodama, A. O. Kolesnikov, M. Kolupanova, A. Korzenev, T. Koto, Y. Kudenko, S. Kuribayashi, T. Kutter, M. Lachat, K. Lachner, M. Lamers James, D. Last, N. Latham, M. Lawe, T. A. Le, D. Leon Silverio, B. Li, W. Li, C. Lin, M. Louzir, T. Lux, K. K. Mahtani, S. Manly, D. A. Martinez Caicedo, N. Mashin, T. Matsubara, C. Mauger, K. S. McFarland, C. McGrew, J. McKean, A. Mefodiev, E. Miller, O. Mineev, A. Minamino, A. L. Moreno, A. Muñoz, T. Nakadaira, K. Nakagiri, T. Nakaya, J. Nanni, L. Nicolas, A. D. Nguyen, D. T. Nguyen, H. Nguyen, V. Nguyen, E. Noah Messomo, T. Nosek, H. M. O'Keeffe, T. Ogawa, W. Okinaga, L. Osu, V. Paolone, G. Pelleriti, L. Pickering, M. A. Ramírez, M. Reh, G. Reina, C. Riccio, S. Roth, A. Rubbia, F. Saadi, K. Sakashita, N. Sallin, S. Samani, F. Sanchez, T. Schefke, C. Schloesser, D. Sgalaberna, A. Shaikovskiy, A. Shvartsman, Y. Shiraishi, N. Shvarev, N. Skrobova, D. Smyczek, M. Smy, A. Speers, D. Svirida, M. Ta, S. Tairafune, M. Tani, H. Tanigawa, A. Teklu, S. Tereshchenko, V. V. Tereshchenko, T. Thaiduc, T. Tsushima, M. Tzanov, Y. Uchida, I. I. Vasilyev, E. Villa, T. Vladisavljevic, D. Wakabayashi, H. Wallace, A. Weber, N. Whitney, C. Wret, Y. Xu, Y. Yang, N. Yershov, A. J.P. Yrey, M. Yokoyama, Y. Yoshimoto, X. Y. Zhao, H. Zheng, H. Zhong, T. Zhu, E. D. Zimmerman, M. Zito
  • University of Tokyo
  • Lancaster University
  • P.N. Lebedev Physical Institute of the Russian Academy of Sciences
  • ETH Zurich
  • Tokyo Metropolitan University
  • Kyoto University
  • Joint Institute for Nuclear Research, Dubna
  • Louisiana State University
  • University of Oxford
  • Université Paris-Sud
  • Tohoku University
  • University of Geneva
  • Sorbonne Université
  • Vietnam Academy of Science and Technology
  • Hanoi University of Science
  • University of Pennsylvania School of Arts and Sciences
  • Institute for Nuclear Research of the Russian Academy of Sciences
  • IGFL, Université de Lyon, Université Lyon 1
  • University of Rochester
  • High Energy Accelerator Research Organization (KEK)
  • European Organization for Nuclear Research
  • Stony Brook University
  • Imperial College London
  • Johannes Gutenberg University
  • Moscow Institute of Physics and Technology
  • National Research Nuclear University MEPhI
  • University of Warwick
  • King's College London
  • Vietnam Atomic Energy Institute
  • South Dakota School of Mines and Technology
  • The Barcelona Institute of Science and Technology
  • Yokohama National University
  • National Centre for Nuclear Research (NCBJ)
  • University of Pittsburgh
  • CCLRC Rutherford Appleton Laboratory
  • University of Colorado Boulder
  • RWTH Aachen University
  • Okayama University
  • Long Beach VA and University of California
  • Boston University
  • Royal Holloway University of London
  • Kobe University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Inter-channel mis-synchronisation can be a limiting factor to the time resolution of high performance timing detectors with multiple readout channels and independent electronics units. In these systems, time calibration methods employed must be able to efficiently correct for minimal mis-synchronisation between channels and achieve the best detector performance. We present an iterative time calibration method based on Markov Chains, suitable for detector systems with multiple readout channels. Starting from correlated hit pairs alone, and without requiring an external reference time measurement, the method solves for fixed per-channel offsets, with precision limited only by the intrinsic single-channel resolution. A mathematical proof that the method is able to find the correct time offsets to be assigned to each detector channel in order to achieve inter-channel synchronisation is given, and it is shown that the number of iterations to reach convergence within the desired precision is controllable with a single parameter. Numerical studies are used to confirm unbiased recovery of true offsets. Finally, the application of the calibration method to the Super Fine-Grained Detector (SuperFGD) and the Time of Flight (TOF) detector at the upgraded T2K near detector (ND280) shows good improvement in overall timing resolution, demonstrating the effectiveness in a real-world scenario and scalability.

langue originaleAnglais
Numéro d'articleP10030
journalJournal of Instrumentation
Volume20
Numéro de publication10
Les DOIs
étatPublié - 1 oct. 2025
Modification externeOui

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