Requirements on the gain calibration for LiteBIRD polarisation data with blind component separation
Abstract
Future cosmic microwave background (CMB) experiments are primarily targeting a detection of the primordial -mode polarisation. The faintness of this signal requires exquisite control of systematic effects which may bias the measurements. In this work, we derive requirements on the relative calibration accuracy of the overall polarisation gain () for LiteBIRD experiment, through the application of the blind Needlet Internal Linear Combination (NILC) foreground-cleaning method. We find that minimum variance techniques, as NILC, are less affected by gain calibration uncertainties than a parametric approach, which requires a proper modelling of these instrumental effects. The tightest constraints are obtained for frequency channels where the CMB signal is relatively brighter (166 GHz channel, ), while, with a parametric approach, the strictest requirements were on foreground-dominated channels. We then propagate gain calibration uncertainties, corresponding to the derived requirements, into all frequency channels simultaneously. We find that the overall impact on the estimated is lower than the required budget for LiteBIRD by almost a factor . The adopted procedure to derive requirements assumes a simple Galactic model. We therefore assess the robustness of obtained results against more realistic scenarios by injecting the gain calibration uncertainties, according to the requirements, into LiteBIRD simulated maps and assuming intermediate- and high-complexity sky models. In this case, we employ the so-called Multi-Clustering NILC (MC-NILC) foreground-cleaning pipeline and obtain that the impact of gain calibration uncertainties on is lower than the LiteBIRD gain systematics budget for the intermediate-complexity sky model. For the high-complexity case, instead, it would be necessary to tighten the requirements by a factor .
Keywords
Cite
@article{arxiv.2411.02080,
title = {Requirements on the gain calibration for LiteBIRD polarisation data with blind component separation},
author = {F. Carralot and A. Carones and N. Krachmalnicoff and T. Ghigna and A. Novelli and L. Pagano and F. Piacentini and C. Baccigalupi and D. Adak and A. Anand and J. Aumont and S. Azzoni and M. Ballardini and A. J. Banday and R. B. Barreiro and N. Bartolo and S. Basak and A. Basyrov and M. Bersanelli and M. Bortolami and T. Brinckmann and F. Cacciotti and P. Campeti and E. Carinos and F. J. Casas and K. Cheung and L. Clermont and F. Columbro and G. Conenna and G. Coppi and A. Coppolecchia and F. Cuttaia and P. de Bernardis and M. De Lucia and S. Della Torre and E. Di Giorgi and P. Diego-Palazuelos and T. Essinger-Hileman and E. Ferreira and F. Finelli and C. Franceschet and G. Galloni and M. Galloway and M. Gervasi and R. T. Génova-Santos and S. Giardiello and C. Gimeno-Amo and E. Gjerløw and A. Gruppuso and M. Hazumi and S. Henrot-Versillé and L. T. Hergt and E. Hivon and H. Ishino and B. Jost and K. Kohri and L. Lamagna and C. Leloup and M. Lembo and F. Levrier and A. I. Lonappan and M. López-Caniego and G. Luzzi and J. Macias-Perez and E. Martínez-González and S. Masi and S. Matarrese and T. Matsumura and S. Micheli and M. Monelli and L. Montier and G. Morgante and B. Mot and L. Mousset and Y. Nagano and R. Nagata and T. Namikawa and P. Natoli and I. Obata and A. Occhiuzzi and A. Paiella and D. Paoletti and G. Pascual-Cisneros and G. Patanchon and V. Pavlidou and G. Pisano and G. Polenta and L. Porcelli and G. Puglisi and N. Raffuzzi and M. Remazeilles and J. A. Rubiño-Martín and M. Ruiz-Granda and J. Sanghavi and D. Scott and M. Shiraishi and R. M. Sullivan and Y. Takase and K. Tassis and L. Terenzi and M. Tomasi and M. Tristram and L. Vacher and B. van Tent and P. Vielva and G. Weymann-Despres and E. J. Wollack and M. Zannoni and Y. Zhou},
journal= {arXiv preprint arXiv:2411.02080},
year = {2024}
}
Comments
29 pages, 11 figures