Recovering the wedge modes lost to 21-cm foregrounds

Author:

Gagnon-Hartman Samuel12,Cui Yue13,Liu Adrian1ORCID,Ravanbakhsh Siamak45

Affiliation:

1. Department of Physics and McGill Space Institute, McGill University, Montreal, Quebec H3A 2T8, Canada

2. Department of Physics and Astronomy, Bishop’s University, 2600 College Street, Sherbrooke J1M 1Z7, Canada

3. University of Electronic Science and Technology of China, 2006 Xiyuan Ave., West High-tech Zone, Chengdu, Sichuan, China

4. School of Computer Science, McGill University, 845 Sherbrooke Street, Montreal H3A 0G4, Canada

5. MILA - Quebec AI Institute, 6666 St Urbain St, Montreal, Quebec H2S 3H1, Canada

Abstract

ABSTRACT One of the critical challenges facing imaging studies of the 21-cm signal at the Epoch of Reionization (EoR) is the separation of astrophysical foreground contamination. These foregrounds are known to lie in a wedge-shaped region of (k⊥, k∥) Fourier space. Removing these Fourier modes excises the foregrounds at grave expense to image fidelity, since the cosmological information at these modes is also removed by the wedge filter. However, the 21-cm EoR signal is non-Gaussian, meaning that the lost wedge modes are correlated to the surviving modes by some covariance matrix. We have developed a machine learning-based method that exploits this information to identify ionized regions within a wedge-filtered image. Our method reliably identifies the largest ionized regions and can reconstruct their shape, size, and location within an image. We further demonstrate that our method remains viable when instrumental effects are accounted for, using the Hydrogen EoR Array and the Square Kilometre Array as fiducial instruments. The ability to recover spatial information from wedge-filtered images unlocks the potential for imaging studies using current- and next-generation instruments without relying on detailed models of the astrophysical foregrounds themselves.

Funder

NSERC

CIFAR

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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