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Tests of a Particle Flow Algorithm with CALICE test beam data

  • C. Adloff
  • , J. Blaha
  • , J. J. Blaising
  • , C. Drancourt
  • , A. Espargilière
  • , R. Gaglione
  • , N. Geffroy
  • , Y. Karyotakis
  • , J. Prast
  • , G. Vouters
  • , K. Francis
  • , J. Repond
  • , J. Smith
  • , L. Xia
  • , E. Baldolemar
  • , J. Li
  • , T. Park
  • , M. Sosebee
  • , P. White
  • , J. Yu
  • T. Buanes, G. Eigen, Y. Mikami, K. Watson, T. Goto, G. Mavromanolakis, A. Thomson, R. Ward, W. Yan, D. Benchekroun, A. Hoummada, Y. Khoulaki, M. Benyamna, C. Crloganu, F. Fehr, P. Gay, S. Manen, L. Royer, C. Blazey, A. Dyshkant, R. Lima, V. Zutshi, J. Y. Hostachy, L. Morin, U. Cornett, D. David, R. Fabbri, G. Falley, K. Gadow, E. Garutti, P. Göttlicher, C. Günter, S. Karstensen, F. Krivan, A. I. Lucaci-Timoce, S. Lu, B. Lutz, I. Marchesini, N. Meyer, S. Morozov, V. Morgunov, M. Reinecke, F. Sefkow, P. Smirnov, M. Terwort, A. Vargas-Trevino, N. Wattimena, O. Wendt, N. Feege, J. Haller, S. Richter, J. Samson, P. Eckert, A. Kaplan, H. Ch Schultz-Coulon, W. Shen, R. Stamen, A. Tadday, B. Bilki, E. Norbeck, Y. Onel, W. Wilson, K. Kawagoe, S. Uozumi, D. Dauncey, A. M. Magnan, M. Wing, F. Salvatore, E. Calvo Alamillo, M. C. Fouz, J. Puerta-Pelayo, V. Balagura, B. Bobchenko, M. Chadeeva, M. Danilov, A. Epifantsev, O. Markin, R. Mizuk, E. Novikov, V. Rusinov, E. Tarkovsky, N. Kirikova, V. Kozlov, Y. Soloviev, P. Buzhan, B. Dolgoshein, A. Ilyin, V. Kantserov, V. Kaplin, A. Karakash, E. Popova, S. Smirnov, A. Frey, C. Kiesling, K. Seidel, F. Simon, C. Soldner, L. Weuste, J. Bonis, B. Bouquet, S. Callier, P. Cornebise, Ph Doublet, F. Dulucq, M. Faucci Giannelli, J. Fleury, H. Li, G. Martin-Chassard, F. Richard, Ch De La Taille, R. Pöschl, L. Raux, N. Seguin-Moreau, F. Wicek, M. Anduze, V. Boudry, J. C. Brient, D. Jeans, P. Mora De Freitas, G. Musat, M. Reinhard, M. Ruan, H. Videau, B. Bulanek, J. Zacek, J. Cvach, P. Gallus, M. Havranek, M. Janata, J. Kvasnicka, D. Lednicky, M. Marcisovsky, I. Polak, J. Popule, L. Tomasek, M. Tomasek, P. Ruzicka, P. Sicho, J. Smolik, V. Vrba, J. Zalesak, B. Belhorma, H. Ghazlane, T. Takeshita
  • Université Savoie Mont Blanc
  • Argonne National Laboratory
  • University of Texas at Arlington
  • University of Bergen
  • University of Birmingham
  • University of Cambridge
  • European Organization for Nuclear Research
  • University of Science and Technology of China
  • Université Hassan II Aïn Chock - Casablanca et LASAARE
  • Clermont-Auvergne University
  • Northern Illinois University
  • Laboratoire de Physique Subatomique et de Cosmologie de Grenoble
  • c/o DESY
  • Universität Hamburg
  • University of Heidelberg
  • University of Iowa
  • University of Kansas
  • Kobe University
  • Kyungpook National University
  • Imperial College London
  • University College London
  • Royal Holloway University of London
  • University of Sussex
  • Centro de Investigaciones Energéticas Medioambientales y Tecnológicas (CIEMAT)
  • Institute for Theoretical and Experimental Physics
  • P.N. Lebedev Physical Institute of the Russian Academy of Sciences
  • National Research Nuclear University MEPhI
  • Max-Planck-Institut für Physik
  • Georg-August-Universität Göttingen
  • Laboratoire de l'Accélérateur Linéaire
  • Charles University
  • Institute of Physics of the Czech Academy of Sciences
  • Centre National de l'Energie des Sciences Techniques Nucleaires
  • Shinshu University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

50 Citations (Scopus)

Résumé

The studies presented in this paper provide a first experimental test of the Particle Flow Algorithm (PFA) concept using data recorded in high granularity calorimeters. Pairs of overlaid pion showers from CALICE 2007 test beam data are reconstructed by the PandoraPFA program developed to implement PFA for a future lepton collider. Recovery of a neutral hadron's energy in the vicinity of a charged hadron is studied. The impact of the two overlapping hadron showers on energy resolution is investigated. The dependence of the confusion error on the distance between a 10 GeV neutral hadron and a charged pion is derived for pion energies of 10 and 30 GeV which are representative of a 100 GeV jet. The comparison of these test beam data results with Monte Carlo simulation is done for various hadron shower models within the GEANT4 framework. The results for simulated particles and for beam data are in good agreement thereby providing support for previous simulation studies of the power of Particle Flow Calorimetry at a future lepton collider.

langue originaleAnglais
Numéro d'articleP07005
journalJournal of Instrumentation
Volume6
Numéro de publication7
Les DOIs
étatPublié - 15 août 2011

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