Removing systematics-induced 21-cm foreground residuals by cross-correlating filtered data
arXiv:2203.07184 · doi:10.1103/PhysRevD.106.043534
Abstract
Observations of the redshifted 21-cm signal emitted by neutral hydrogen represent a promising probe of large-scale structure in the universe. However, cosmological 21-cm signal is challenging to observe due to astrophysical foregrounds which are several orders of magnitude brighter. Traditional linear foreground removal methods can optimally remove foregrounds for a known telescope response but are sensitive to telescope systematic errors such as antenna gain and delay errors, leaving foreground contamination in the recovered signal. Non-linear methods such as principal component analysis, on the other hand, have been used successfully for foreground removal, but they lead to signal loss that is difficult to characterize and requires careful analysis. In this paper, we present a systematics-robust foreground removal technique which combines both linear and non-linear methods. We first obtain signal and foreground estimates using a linear filter. Under the assumption that the signal estimate is contaminated by foreground residuals induced by parameterizable systematic effects, we infer the systematics-induced contamination by cross-correlating the initial signal and foreground estimates. Correcting for the inferred error, we are able to subtract foreground contamination from the linearly filtered signal up to the first order in the amplitude of the telescope systematics. In simulations of an interferometric 21-cm survey, our algorithm removes foreground leakage induced by complex gain errors by one to two orders of magnitude in the power spectrum. Our technique thus eases the requirements on telescope characterization for modern and next-generation 21-cm cosmology experiments.
References in corpus (20)
- Cosmology at Low Frequencies: The 21 cm Transition and the High-Redshift Universe
- Baryon Acoustic Oscillation Intensity Mapping as a Test of Dark Energy
- Measurement of 21 cm brightness fluctuations at z ~ 0.8 in cross-correlation
- Possibility of Precise Measurement of the Cosmological Power Spectrum With a Dedicated 21cm Survey After Reionization
- A Method for 21cm Power Spectrum Estimation in the Presence of Foregrounds
- HIRAX: A Probe of Dark Energy and Radio Transients
- Blind foreground subtraction for intensity mapping experiments
- Improving the Epoch of Reionization Power Spectrum Results from Murchison Widefield Array Season 1 Observations
- Multisource Self-calibration for Sensor Arrays
- Fast Holographic Deconvolution: a new technique for precision radio interferometry
- HI constraints from the cross-correlation of eBOSS galaxies and Green Bank Telescope intensity maps
- MITEoR: A Scalable Interferometer for Precision 21 cm Cosmology
- A new MWA limit on the 21 cm Power Spectrum at Redshifts 13 17
- Imaging the redshifted 21-cm pattern around the first sources during the cosmic dawn using the SKA
- Recovery of 21 cm intensity maps with sparse component separation
- Impact of Foregrounds on HI Intensity Mapping Cross-Correlations with Optical Surveys
- Cosmological parameter forecasts for HI intensity mapping experiments using the angular power spectrum
- Absolute Calibration Strategies for the Hydrogen Epoch of Reionization Array and Their Impact on the 21 cm Power Spectrum
- Calibration and 21-cm Power Spectrum Estimation in the Presence of Antenna Beam Variations
- Direction Dependent Corrections in Polarimetric Radio Imaging I : Characterizing the effects of the primary beam on full Stokes imaging