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Exploring cosmic origins with CORE: Mitigation of systematic effects

  • P. Natoli*
  • , M. Ashdown
  • , R. Banerji
  • , J. Borrill
  • , A. Buzzelli
  • , G. De Gasperis
  • , J. Delabrouille
  • , E. Hivon
  • , D. Molinari
  • , G. Patanchon
  • , L. Polastri
  • , M. Tomasi
  • , F. R. Bouchet
  • , S. Henrot-Versillé
  • , D. T. Hoang
  • , R. Keskitalo
  • , K. Kiiveri
  • , T. Kisner
  • , V. Lindholm
  • , D. McCarthy
  • F. Piacentini, O. Perdereau, G. Polenta, M. Tristram, A. Achucarro, P. Ade, R. Allison, C. Baccigalupi, M. Ballardini, A. J. Banday, J. Bartlett, N. Bartolo, S. Basak, D. Baumann, M. Bersanelli, A. Bonaldi, M. Bonato, F. Boulanger, T. Brinckmann, M. Bucher, C. Burigana, Z. Y. Cai, M. Calvo, C. S. Carvalho, M. G. Castellano, A. Challinor, J. Chluba, S. Clesse, I. Colantoni, A. Coppolecchia, M. Crook, G. D'Alessandro, P. De Bernardis, G. De Zotti, E. Di Valentino, J. M. Diego, J. Errard, S. Feeney, R. Fernandez-Cobos, F. Finelli, F. Forastieri, S. Galli, R. Genova-Santos, M. Gerbino, J. González-Nuevo, S. Grandis, J. Greenslade, A. Gruppuso, S. Hagstotz, S. Hanany, W. Handley, C. Hernandez-Monteagudo, C. Hervías-Caimapo, M. Hills, E. Keihänen, T. Kitching, M. Kunz, H. Kurki-Suonio, L. Lamagna, A. Lasenby, M. Lattanzi, J. Lesgourgues, A. Lewis, M. Liguori, M. López-Caniego, G. Luzzi, B. Maffei, N. Mandolesi, E. Martinez-González, C. J.A.P. Martins, S. Masi, S. Matarrese, A. Melchiorri, J. B. Melin, M. Migliaccio, A. Monfardini, M. Negrello, A. Notari, L. Pagano, A. Paiella, D. Paoletti, M. Piat, G. Pisano, A. Pollo, V. Poulin, M. Quartin, M. Remazeilles, M. Roman, G. Rossi, J. A. Rubino-Martin, L. Salvati, G. Signorelli, A. Tartari, D. Tramonte, N. Trappe, T. Trombetti, C. Tucker, J. Valiviita, R. Van De Weijgaert, B. Van Tent, V. Vennin, P. Vielva, N. Vittorio, C. Wallis, K. Young, M. Zannoni
*Corresponding author for this work
  • University of Ferrara
  • National Institute for Nuclear Physics
  • University of Cambridge
  • APC - AstroParticule et Cosmologie
  • Lawrence Berkeley National Laboratory
  • University of California at Berkeley
  • University of Rome La Sapienza
  • University of Rome Tor Vergata
  • CNRS
  • Istituto di Astrofisica Spaziale e Fisica Cosmica di Bologna
  • University of Milan
  • Université Paris-Sud
  • Vietnamese Academy of Science and Technology
  • University of Helsinki
  • Maynooth University
  • Italian Space Agency
  • Osservatorio Astronomico Roma
  • Leiden University
  • University of the Basque Country
  • Cardiff University
  • International School for Advanced Studies
  • University of Bologna
  • IRAP
  • University of Padua
  • Astronomical Observatory of Padua
  • Amrita Vishwa Vidyapeetham
  • University of Manchester
  • Tufts University
  • Institut d'Astrophysique Spatiale
  • RWTH Aachen University
  • University of Science and Technology of China
  • Université Grenoble Alpes
  • University of Lisbon
  • National Research Council of Italy
  • Rutherford Appleton Laboratory
  • Sorbonne Université
  • Instituto de Física de Cantabria
  • Laboratoire de Physique Nucléaire et de Hautes Energies
  • Center for Computational Astrophysics
  • Instituto de Astrofísica de Canarias
  • University of La Laguna
  • Stockholm University
  • NORDITA
  • University of Oviedo
  • Ludwig Maximilian University of Munich
  • Excellence Cluster ORIGINS
  • University of Minnesota Twin Cities
  • Centro de Estudios de Física del Cosmos de Aragón (CEFCA)
  • University College London
  • University of Geneva
  • University of Sussex
  • European Space Astronomy Centre
  • University of Porto
  • CEA/Saclay
  • University of Barcelona
  • Jagiellonian University in Kraków
  • National Centre for Nuclear Research
  • Université Savoie Mont Blanc
  • Universidade Federal do Rio de Janeiro
  • Sejong University
  • SRON Netherlands Institute for Space Research
  • Delft University of Technology
  • Université Paris-Sud
  • University of Portsmouth
  • University of Milan - Bicocca

Research output: Contribution to journalArticlepeer-review

22 Citations (Scopus)

Abstract

We present an analysis of the main systematic effects that could impact the measurement of CMB polarization with the proposed CORE space mission. We employ timeline-to-map simulations to verify that the CORE instrumental set-up and scanning strategy allow us to measure sky polarization to a level of accuracy adequate to the mission science goals. We also show how the CORE observations can be processed to mitigate the level of contamination by potentially worrying systematics, including intensity-to-polarization leakage due to bandpass mismatch, asymmetric main beams, pointing errors and correlated noise. We use analysis techniques that are well validated on data from current missions such as Planck to demonstrate how the residual contamination of the measurements by these effects can be brought to a level low enough not to hamper the scientific capability of the mission, nor significantly increase the overall error budget. We also present a prototype of the CORE photometric calibration pipeline, based on that used for Planck, and discuss its robustness to systematics, showing how CORE can achieve its calibration requirements. While a fine-grained assessment of the impact of systematics requires a level of knowledge of the system that can only be achieved in a future study phase, the analysis presented here strongly suggests that the main areas of concern for the CORE mission can be addressed using existing knowledge, techniques and algorithms.

Original languageEnglish
Article number022
JournalJournal of Cosmology and Astroparticle Physics
Volume2018
Issue number4
DOIs
Publication statusPublished - 5 Apr 2018
Externally publishedYes

Keywords

  • CMBR experiments
  • CMBR polarization
  • gravitational waves and CMBR polarization

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