Hydrogen intensity mapping with MeerKAT: Preserving cosmological signal by optimising contaminant separation

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Hauptverfasser: Carucci, Isabella P., Bernal, José L., Cunnington, Steven, Santos, Mario G., Wang, Jingying, Fonseca, José, Grainge, Keith, Irfan, Melis O., Li, Yichao, Pourtsidou, Alkistis, Spinelli, Marta, Wolz, Laura
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Veröffentlicht: 2024
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author Carucci, Isabella P.
Bernal, José L.
Cunnington, Steven
Santos, Mario G.
Wang, Jingying
Fonseca, José
Grainge, Keith
Irfan, Melis O.
Li, Yichao
Pourtsidou, Alkistis
Spinelli, Marta
Wolz, Laura
author_facet Carucci, Isabella P.
Bernal, José L.
Cunnington, Steven
Santos, Mario G.
Wang, Jingying
Fonseca, José
Grainge, Keith
Irfan, Melis O.
Li, Yichao
Pourtsidou, Alkistis
Spinelli, Marta
Wolz, Laura
contents Removing contaminants is a delicate, yet crucial step in neutral hydrogen (HI) intensity mapping and often considered the technique's greatest challenge. Here, we address this challenge by analysing HI intensity maps of about $100$ deg$^2$ at redshift $z\approx0.4$ collected by the MeerKAT radio telescope, an SKA Observatory (SKAO) precursor, with a combined 10.5-hour observation. Using unsupervised statistical methods, we removed the contaminating foreground emission and systematically tested, step-by-step, some common pre-processing choices to facilitate the cleaning process. We also introduced and tested a novel multiscale approach: the data were redundantly decomposed into subsets referring to different spatial scales (large and small), where the cleaning procedure was performed independently. We confirm the detection of the HI cosmological signal in cross-correlation with an ancillary galactic data set, without the need to correct for signal loss. In the best set-up we achieved, we were able to constrain the HI distribution through the combination of its cosmic abundance ($Ω_{HI}$) and linear clustering bias ($b_{HI}$) up to a cross-correlation coefficient ($r$). We measured $Ω_{HI}b_{HI}r = [0.93 \pm 0.17]\,\times\,10^{-3}$ with a $\approx6σ$ confidence, which is independent of scale cuts at both edges of the probed scale range ($0.04 \lesssim k \lesssim 0.3 \,h$ Mpc$^{-1}$), corroborating its robustness. Our new pipeline has successfully found an optimal compromise in separating contaminants without incurring a catastrophic signal loss. This development instills an added degree of confidence in the outstanding science we can deliver with MeerKAT on the path towards HI intensity mapping surveys with the full SKAO.
format Preprint
id arxiv_https___arxiv_org_abs_2412_06750
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Hydrogen intensity mapping with MeerKAT: Preserving cosmological signal by optimising contaminant separation
Carucci, Isabella P.
Bernal, José L.
Cunnington, Steven
Santos, Mario G.
Wang, Jingying
Fonseca, José
Grainge, Keith
Irfan, Melis O.
Li, Yichao
Pourtsidou, Alkistis
Spinelli, Marta
Wolz, Laura
Cosmology and Nongalactic Astrophysics
Instrumentation and Methods for Astrophysics
Removing contaminants is a delicate, yet crucial step in neutral hydrogen (HI) intensity mapping and often considered the technique's greatest challenge. Here, we address this challenge by analysing HI intensity maps of about $100$ deg$^2$ at redshift $z\approx0.4$ collected by the MeerKAT radio telescope, an SKA Observatory (SKAO) precursor, with a combined 10.5-hour observation. Using unsupervised statistical methods, we removed the contaminating foreground emission and systematically tested, step-by-step, some common pre-processing choices to facilitate the cleaning process. We also introduced and tested a novel multiscale approach: the data were redundantly decomposed into subsets referring to different spatial scales (large and small), where the cleaning procedure was performed independently. We confirm the detection of the HI cosmological signal in cross-correlation with an ancillary galactic data set, without the need to correct for signal loss. In the best set-up we achieved, we were able to constrain the HI distribution through the combination of its cosmic abundance ($Ω_{HI}$) and linear clustering bias ($b_{HI}$) up to a cross-correlation coefficient ($r$). We measured $Ω_{HI}b_{HI}r = [0.93 \pm 0.17]\,\times\,10^{-3}$ with a $\approx6σ$ confidence, which is independent of scale cuts at both edges of the probed scale range ($0.04 \lesssim k \lesssim 0.3 \,h$ Mpc$^{-1}$), corroborating its robustness. Our new pipeline has successfully found an optimal compromise in separating contaminants without incurring a catastrophic signal loss. This development instills an added degree of confidence in the outstanding science we can deliver with MeerKAT on the path towards HI intensity mapping surveys with the full SKAO.
title Hydrogen intensity mapping with MeerKAT: Preserving cosmological signal by optimising contaminant separation
topic Cosmology and Nongalactic Astrophysics
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2412.06750