A wide-angle formulation of foreground filters for HI intensity mapping
Rahul Kothari (IIT Mandi, Western Cape U.), Roy Maartens, (Western Cape U., Portsmouth U., ICG)

TL;DR
This paper introduces a new wide-angle harmonic space formulation for foreground filtering in HI intensity mapping, accounting for large-scale effects and improving the accuracy of cosmological signal recovery.
Contribution
It develops a geometrical harmonic space approach for foreground filters that includes wide-angle effects, extending beyond the flat-sky approximation used previously.
Findings
Off-diagonal correlations are negligible in auto power spectra.
Cross power spectra show small but non-negligible off-diagonal contributions at large scales.
Signal loss decreases with smaller scales, with minor differences between single-dish and interferometer modes.
Abstract
Neutral hydrogen intensity mapping can in principle deliver rapid and large-volume cosmological surveys with exquisitely accurate redshifts that are determined directly from imaging. However, intensity maps suffer from very strong foreground contamination. Future surveys will require efficient data pipelines to remove the foregrounds and reveal the cosmological signal. It is expected that this cleaning will not remove the signal in substantial parts of the available Fourier space and that significant loss of signal due to imperfect cleaning will be confined to specific regions of Fourier space. This suggests a strategy which is useful for simplified estimates and rapid computations -- i.e., to apply foreground filters that avoid the regions where loss of signal is significant. The standard Fourier-space power spectrum and foreground filters use a flat-sky approximation and thus exclude…
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Taxonomy
TopicsOptical measurement and interference techniques · Adaptive optics and wavefront sensing · Advanced Fluorescence Microscopy Techniques
