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Sökning: id:"swepub:oai:DiVA.org:kth-341744" > 21-cm signal from t...

21-cm signal from the Epoch of Reionization : a machine learning upgrade to foreground removal with Gaussian process regression

Acharya, Anshuman (författare)
Max-Planck-Institut für Astrophysik, Garching D-85748, Germany
Mertens, Florent (författare)
LERMA, Observatoire de Paris, PSL Research University, CNRS, Sorbonne Université, Paris F-75014, France
Ciardi, Benedetta (författare)
Max-Planck-Institut für Astrophysik, Garching D-85748, Germany
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Ghara, Raghunath (författare)
Astrophysics Research Centre, Open University of Israel, Ra'anana 4353701, Israel
Koopmans, Léon V.E. (författare)
Kapteyn Astronomical Institute, University of Groningen, PO Box 800, Groningen NL-9700AV, the Netherlands, PO Box 800
Giri, Sambit K., 1993- (författare)
Stockholms universitet,Nordiska institutet för teoretisk fysik (Nordita)
Hothi, Ian (författare)
LERMA, Observatoire de Paris, PSL Research University, CNRS, Sorbonne Université, Paris F-75014, France; Laboratoire de Physique de l'ENS, ENS, Université PSL, CNRS, Sorbonne Université, Universitée Paris Cité, Paris F-75005, France
Ma, Qing Bo (författare)
School of Physics and Electronic Science, Guizhou Normal University, Guiyang 550001, P. R. China; Guizhou Provincial Key Laboratory of Radio Astronomy and Data Processing, Guizhou Normal University, Guiyang 550001, P. R. China
Mellema, Garrelt (författare)
Stockholms universitet,Institutionen för astronomi,Oskar Klein-centrum för kosmopartikelfysik (OKC)
Munshi, Satyapan (författare)
Kapteyn Astronomical Institute, University of Groningen, PO Box 800, Groningen NL-9700AV, the Netherlands, PO Box 800
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 (creator_code:org_t)
Oxford University Press (OUP), 2024
2024
Engelska.
Ingår i: Monthly notices of the Royal Astronomical Society. - : Oxford University Press (OUP). - 0035-8711 .- 1365-2966. ; 527:3, s. 7835-7846
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • In recent years, a Gaussian process regression (GPR)-based framework has been developed for foreground mitigation from data collected by the LOw-Frequency ARray (LOFAR), to measure the 21-cm signal power spectrum from the Epoch of Reionization (EoR) and cosmic dawn. However, it has been noted that through this method there can be a significant amount of signal loss if the EoR signal covariance is misestimated. To obtain better covariance models, we propose to use a kernel trained on the grizzly simulations using a Variational Auto-Encoder (VAE)-based algorithm. In this work, we explore the abilities of this machine learning-based kernel (VAE kernel) used with GPR, by testing it on mock signals from a variety of simulations, exploring noise levels corresponding to ≈10 nights (≈141 h) and ≈100 nights (≈1410 h) of observations with LOFAR. Our work suggests the possibility of successful extraction of the 21-cm signal within 2σ uncertainty in most cases using the VAE kernel, with better recovery of both shape and power than with previously used covariance models. We also explore the role of the excess noise component identified in past applications of GPR and additionally analyse the possibility of redshift dependence on the performance of the VAE kernel. The latter allows us to prepare for future LOFAR observations at a range of redshifts, as well as compare with results from other telescopes.

Ämnesord

NATURVETENSKAP  -- Fysik -- Astronomi, astrofysik och kosmologi (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Astronomy, Astrophysics and Cosmology (hsv//eng)

Nyckelord

cosmology: observations
dark ages
reionization
first stars
methods: data analysis - techniques: interferometric

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