English

Exploring cosmic origins with CORE: mitigation of systematic effects

Cosmology and Nongalactic Astrophysics 2019-08-13 v1 Instrumentation and Methods for Astrophysics

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.

Keywords

Cite

@article{arxiv.1707.04224,
  title  = {Exploring cosmic origins with CORE: mitigation of systematic effects},
  author = {P. Natoli and M. Ashdown and R. Banerji and J. Borrill and A. Buzzelli and G. de Gasperis and J. Delabrouille and E. Hivon and D. Molinari and G. Patanchon and L. Polastri and M. Tomasi and F. R. Bouchet and S. Henrot-Versillé and D. T. Hoang and R. Keskitalo and K. Kiiveri and T. Kisner and V. Lindholm and D. McCarthy and F. Piacentini and O. Perdereau and G. Polenta and M. Tristram and A. Achucarro and P. Ade and R. Allison and C. Baccigalupi and M. Ballardini and A. J. Banday and J. Bartlett and N. Bartolo and S. Basak and J. Baselmans and D. Baumann and M. Bersanelli and A. Bonaldi and M. Bonato and F. Boulanger and T. Brinckmann and M. Bucher and C. Burigana and Z. -Y. Cai and M. Calvo and C. -S. Carvalho and G. Castellano and A. Challinor and J. Chluba and S. Clesse and I. Colantoni and A. Coppolecchia and M. Crook and G. D'Alessandro and P. de Bernardis and G. De Zotti and E. Di Valentino and J. -M. Diego and J. Errard and S. Feeney and R. Fernandez-Cobos and F. Finelli and F. Forastieri and S. Galli and R. Genova-Santos and M. Gerbino and J. Gonzalez-Nuevo and S. Grandis and J. Greenslade and A. Gruppuso and S. Hagstotz and S. Hanany and W. Handley and C. Hernandez-Monteagudo and C. Hervias-Caimapo and M. Hills and E. Keihänen and T. Kitching and M. Kunz and H. Kurki-Suonio and L. Lamagna and A. Lasenby and M. Lattanzi and J. Lesgourgues and A. Lewis and M. Liguori and M. López-Caniego and G. Luzzi and B. Maffei and N. Mandolesi and E. Martinez-Gonzalez and C. J. A. P. Martins and S. Masi and A. Melchiorri and J. -B. Melin and M. Migliaccio and A. Monfardini and M. Negrello and A. Notari and L. Pagano and A. Paiella and D. Paoletti and M. Piat and G. Pisano and A. Pollo and V. Poulin and M. Quartin and M. Remazeilles and M. Roman and G. Rossi and J. -A. Rubino-Martin and L. Salvati and G. Signorelli and A. Tartari and D. Tramonte and N. Trappe and T. Trombetti and C. Tucker and J. Valiviita and R. Van de Weijgaert and B. van Tent and V. Vennin and P. Vielva and N. Vittorio and C. Wallis and K. Young and M. Zannoni},
  journal= {arXiv preprint arXiv:1707.04224},
  year   = {2019}
}

Comments

54 pages, 26 figures, 3 tables

R2 v1 2026-06-22T20:46:14.317Z