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Planck 2015 results: VI. LFI mapmaking

  • P. A R Ade
  • , N. Aghanim
  • , M. Ashdown
  • , J. Aumont
  • , C. Baccigalupi
  • , A. J. Banday
  • , R. B. Barreiro
  • , N. Bartolo
  • , E. Battaner
  • , K. Benabed
  • , A. Benoît
  • , A. Benoit-Lévy
  • , J. P. Bernard
  • , M. Bersanelli
  • , P. Bielewicz
  • , A. Bonaldi
  • , L. Bonavera
  • , J. R. Bond
  • , J. Borrill
  • , F. R. Bouchet
  • M. Bucher, C. Burigana, R. C. Butler, E. Calabrese, J. F. Cardoso, A. Catalano, A. Chamballu, R. R. Chary, P. R. Christensen, S. Colombi, L. P L Colombo, B. P. Crill, A. Curto, F. Cuttaia, L. Danese, R. D. Davies, R. J. Davis, P. De Bernardis, A. De Rosa, G. De Zotti, J. Delabrouille, C. Dickinson, J. M. Diego, H. Dole, S. Donzelli, O. Doré, M. Douspis, A. Ducout, X. Dupac, G. Efstathiou, F. Elsner, T. A. Enßlin, H. K. Eriksen, J. Fergusson, F. Finelli, O. Forni, M. Frailis, E. Franceschi, A. Frejsel, S. Galeotta, S. Galli, K. Ganga, M. Giard, Y. Giraud-Héraud, E. Gjerløw, J. González-Nuevo, K. M. Górski, S. Gratton, A. Gregorio, A. Gruppuso, F. K. Hansen, D. Hanson, D. L. Harrison, S. Henrot-Versillé, D. Herranz, S. R. Hildebrandt, E. Hivon, M. Hobson, W. A. Holmes, A. Hornstrup, W. Hovest, K. M. Huffenberger, G. Hurier, A. H. Jaffe, T. R. Jaffe, M. Juvela, E. Keihänen*, R. Keskitalo, K. Kiiveri, T. S. Kisner, J. Knoche, M. Kunz, H. Kurki-Suonio, A. Lähteenmäki, J. M. Lamarre, A. Lasenby, M. Lattanzi, C. R. Lawrence, J. P. Leahy, R. Leonardi, J. Lesgourgues, F. Levrier, M. Liguori, P. B. Lilje, M. Linden-Vørnle, V. Lindholm, M. López-Caniego, P. M. Lubin, J. F. Macías-Pérez, G. Maggio, D. Maino, N. Mandolesi, A. Mangilli, P. G. Martin, E. Martínez-González, S. Masi, S. Matarrese, P. Mazzotta, P. McGehee, P. R. Meinhold, A. Melchiorri, L. Mendes, A. Mennella, M. Migliaccio, S. Mitra, L. Montier, G. Morgante, D. Mortlock, A. Moss, D. Munshi, J. A. Murphy, P. Naselsky, F. Nati, P. Natoli, C. B. Netterfield, H. U. Nørgaard-Nielsen, D. Novikov, I. Novikov, F. Paci, L. Pagano, D. Paoletti, B. Partridge, F. Pasian, G. Patanchon, T. J. Pearson, O. Perdereau, L. Perotto, F. Perrotta, V. Pettorino, E. Pierpaoli, D. Pietrobon, E. Pointecouteau, G. Polenta, G. W. Pratt, G. Prézeau, S. Prunet, J. L. Puget, J. P. Rachen, R. Rebolo, M. Reinecke, M. Remazeilles, A. Renzi, G. Rocha, C. Rosset, M. Rossetti, G. Roudier, J. A. Rubiño-Martín, B. Rusholme, M. Sandri, D. Santos, M. Savelainen, D. Scott, M. D. Seiffert, E. P S Shellard, L. D. Spencer, V. Stolyarov, R. Stompor, D. Sutton, A. S. Suur-Uski, J. F. Sygnet, J. A. Tauber, L. Terenzi, L. Toffolatti, M. Tomasi, M. Tristram, M. Tucci, J. Tuovinen, L. Valenziano, J. Valiviita, B. Van Tent, T. Vassallo, P. Vielva, F. Villa, L. A. Wade, B. D. Wandelt, R. Watson, I. K. Wehus, D. Yvon, A. Zacchei, A. Zonca
*Tämän työn vastaava kirjoittaja
  • Cardiff University
  • CNRS/IN2P3
  • Kavli Institute for Cosmology Cambridge
  • International School for Advanced Studies
  • IRAP
  • Instituto de Física de Cantabria (CSIC-Universidad de Cantabria)
  • Sapienza University Rome
  • Instituto Carlos I de Física Teórica y Computacional
  • UMR7095
  • IASF Bologna, Istituto Nazionale Astrofisica - Italy, INAF
  • Univ Manchester, Jodrell Bank Centre for Astrophysics, University of Manchester, Sch Phys & Astron, Jodrell Bank Ctr Astrophys
  • University of Toronto
  • University of California at Berkeley
  • Institut d 'Astrophysique de Paris
  • Université Sorbonne Paris Cité
  • Istituto di Astrofisica Spaziale e Fisica Cosmica di Bologna
  • University of Oxford
  • Telecom ParisTech
  • CNRS, Centre National de la Recherche Scientifique, Inst Astrophys Paris
  • California Institute of Technology
  • Niels Bohr Institute
  • Jet Propulsion Laboratory, California Institute of Technology
  • Jodrell Bank Centre for Astrophysics
  • Dipartimento di Fisica, Università La Sapienza, P. le A. Moro 2, 00133, Roma, Italy
  • Urbanización Villafranca Del Castillo
  • University of Cambridge
  • Max-Planck-Institut für Astrophysik
  • University of Oslo
  • Osservatorio Astronomico di Trieste
  • University of Warsaw
  • McGill University
  • Université Paris-Sud
  • Danmarks Tekniske Universitet
  • Florida State University
  • Imperial College London
  • University of Helsinki
  • Lawrence Berkeley National Laboratory
  • LERMA - Laboratoire d'Etudes du Rayonnement et de la Matiere en Astrophysique et Atmospheres
  • University of Ferrara
  • CERN
  • University of California at Santa Barbara
  • Università di Roma Tor Vergata
  • The University of Nottingham
  • National University of Ireland, Galway
  • Princeton University
  • RAS - P.N. Lebedev Physics Institute
  • Haverford College
  • Heidelberg University 
  • University of Southern California
  • Osservatorio Astronomicodi Roma
  • Instituto de Astrofísica de Canarias
  • TRIUMF
  • Special Astrophysical Observatory of the Russian AS, Nizhnij Arkhyz, Karachaevo-Cherkesia, 369167, Russia
  • ESTEC - European Space Research and Technology Centre
  • University of Geneva
  • Trinity College Dublin
  • Université Denis Diderot (Paris 7)

Tutkimustuotos: LehtiartikkeliArticleScientificvertaisarvioitu

56 Viittaukset (Web of Science)
99 Lataukset (Pure)

Abstrakti

This paper describes the mapmaking procedure applied to Planck Low Frequency Instrument (LFI) data. The mapmaking step takes as input the calibrated timelines and pointing information. The main products are sky maps of I, Q, and U Stokes components. For the first time, we present polarization maps at LFI frequencies. The mapmaking algorithm is based on a destriping technique, which is enhanced with a noise prior. The Galactic region is masked to reduce errors arising from bandpass mismatch and high signal gradients. We apply horn-uniform radiometer weights to reduce the effects of beam-shape mismatch. The algorithm is the same as used for the 2013 release, apart from small changes in parameter settings. We validate the procedure through simulations. Special emphasis is put on the control of systematics, which is particularly important for accurate polarization analysis. We also produce low-resolution versions of the maps and corresponding noise covariance matrices. These serve as input in later analysis steps and parameter estimation. The noise covariance matrices are validated through noise Monte Carlo simulations. The residual noise in the map products is characterized through analysis of half-ring maps, noise covariance matrices, and simulations.

AlkuperäiskieliEnglanti
ArtikkeliA6
Sivumäärä23
JulkaisuAstronomy & Astrophysics
Vuosikerta594
DOI - pysyväislinkit
TilaJulkaistu - 1 lokak. 2016
OKM-julkaisutyyppiA1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

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