The Simons Observatory: Combining cross-spectral foreground cleaning with multitracer B -mode delensing for improved constraints on inflation

Author:

Hertig Emilie12ORCID,Wolz Kevin3,Namikawa Toshiya4,Lizancos Antón Baleato556,Azzoni Susanna7,Abril-Cabezas Irene12,Alonso David3,Baccigalupi Carlo891011,Calabrese Erminia12,Challinor Anthony121,Errard Josquin13,Fabbian Giulio12,Hervías-Caimapo Carlos14,Jost Baptiste44,Krachmalnicoff Nicoletta8911,Lonappan Anto I.15,Morshed Magdy1316,Pagano Luca171819,Sherwin Blake12,

Affiliation:

1. University of Cambridge

2. Kavli Institute for Cosmology Cambridge

3. University of Oxford

4. The University of Tokyo

5. UC Berkeley

6. Lawrence Berkeley National Laboratory

7. Princeton University

8. The International School for Advanced Studies (SISSA)

9. The National Institute for Nuclear Physics (INFN)

10. The National Institute for Astrophysics (INAF)

11. The Institute for Fundamental Physics of the Universe (IFPU)

12. Cardiff University

13. Université Paris Cité

14. Pontificia Universidad Católica de Chile

15. Universita di Roma Tor Vergata

16. CNRS-UCB International Research Laboratory Centre Pierre Binétruy

17. Università degli Studi di Ferrara

18. Istituto Nazionale di Fisica Nucleare, Sezione di Ferrara

19. Univ. Paris-Saclay

Abstract

The Simons Observatory (SO), due to start full science operations in early 2025, aims to set tight constraints on inflationary physics by inferring the tensor-to-scalar ratio r from measurements of cosmic microwave background (CMB) polarization B-modes. Its nominal design including three small-aperture telescopes (SATs) targets a precision σ(r=0)0.003 without delensing. Achieving this goal and further reducing uncertainties requires a thorough understanding and mitigation of other large-scale B-mode sources such as Galactic foregrounds and weak gravitational lensing. We present an analysis pipeline aiming to estimate r by including delensing within a cross-spectral likelihood, and demonstrate it for the first time on SO-like simulations accounting for various levels of foreground complexity, inhomogeneous noise and partial sky coverage. As introduced in an earlier SO delensing paper, lensing B-modes are synthesized using internal CMB lensing reconstructions as well as -like cosmic infrared background maps and LSST-like galaxy density maps. We then extend SO’s power-spectrum-based foreground-cleaning algorithm to include all auto- and cross-spectra between the lensing template and the SAT B-modes in the likelihood function. This allows us to constrain r and the parameters of our foreground model simultaneously. Within this framework, we demonstrate the equivalence of map-based and cross-spectral delensing and use it to motivate an optimized pixel-weighting scheme for power spectrum estimation. We start by validating our pipeline in the simplistic case of uniform foreground spectral energy distributions. In the absence of primordial B-modes, we find that the 1σ statistical uncertainty on r, σ(r), decreases by 37% as a result of delensing. Tensor modes at the level of r=0.01 are successfully detected by our pipeline. Even when using more realistic foreground models including spatial variations in the dust and synchrotron spectral properties, we obtain unbiased estimates of r both with and without delensing by employing the moment-expansion method. In this case, uncertainties are increased due to the higher number of model parameters, and delensing-related improvements range between 27% and 31%. These results constitute the first realistic assessment of the delensing performance at SO’s nominal sensitivity level. Published by the American Physical Society 2024

Funder

National Energy Research Scientific Computing Center

U.S. Department of Energy

Simons Foundation

Bill and Melinda Gates Foundation

Japan Society for the Promotion of Science

Agenzia Spaziale Italiana

Horizon 2020 Framework Programme

H2020 European Research Council

Gates Cambridge Scholarship

Fundación Mauricio y Carlota Botton

Cambridge International Trust

Beecroft Trust

National Institute for Nuclear Phyiscs

COSMOS network

Publisher

American Physical Society (APS)

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