Recovering 21cm Monopole Signals Without Smoothness
arXiv:2310.06134 · doi:10.33232/001c.120555
Abstract
We expect the monopole signal at the lowest frequencies below MHz to be composed of two components: the deep Rayleigh-Jeans tail of the cosmic microwave background and two distinct features: the dark ages trough at MHz and the cosmic dawn trough at Mhz. These are hidden under orders of magnitude brighter foregrounds whose emission is approximately a power-law with a spectral index . It is usually assumed that monopole signals of interest are separable from foregrounds based on spectral smoothness. We argue that this is a difficult approach and likely impossible for the Dark Ages trough. Instead, we suggest that the fluctuations in the foreground emission around the sky should be used to build a model distribution of possible shapes of foregrounds, which can be used to constrain the presence of a monopole signal. We implement this idea using normalizing flows and show that this technique allows for efficient unsupervised detection of the amplitude, width, and center of the Dark Ages trough as well as the Rayleigh-Jeans tail of the cosmic microwave background for a sufficiently sensitive experiment. We show that achromatic and smooth response significantly helps with foreground separation. We discuss the limitations of the inherent assumptions in this method and the impact on the design of future low-frequency experiments.
v5: Accepted for publication in the Open Journal of Astrophysics
References in corpus (15)
- Cosmology at Low Frequencies: The 21 cm Transition and the High-Redshift Universe
- Testing for calibration systematics in the EDGES low-band data using Bayesian model selection
- The REACH radiometer for detecting the 21-cm hydrogen signal from redshift 7.5 to 28
- Decoding the X-ray Properties of Pre-Reionization Era Sources
- Detection of Cosmological 21 cm Emission with the Canadian Hydrogen Intensity Mapping Experiment
- A General Bayesian Framework for Foreground Modelling and Chromaticity Correction for Global 21cm Experiments
- Informing antenna design for sky-averaged 21-cm experiments using a simulated Bayesian data analysis pipeline
- Lunar Orbit Measurement of Cosmic Dawn 21 cm Global Spectrum
- Use of Time Dependent Data in Bayesian Global 21cm Foreground and Signal Modelling
- PRATUSH experiment concept and design overview
- Modelling the Galactic Foreground and Beam Chromaticity for Global 21-cm Cosmology
- A General Bayesian Framework to Account for Foreground Map Errors in Global 21-cm Experiments
- A Stimulating Explanation of the Extragalactic Radio Background
- Sky-averaged 21-cm signal extraction using multiple antennas with an SVD framework: the REACH case
- A closer look at dark photon explanations of the excess radio background