Bayesian power spectrum estimation with modelling of systematic effects in delay-fringe rate space

Fuente: arXiv
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Main Authors: Dutta, Sohini, Bull, Philip, Burba, Jacob, Wilensky, Michael J., Zhang, Zheng, Nasirudin, Ainulnabilah
Format: Preprint
Published: 2026
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author Dutta, Sohini
Bull, Philip
Burba, Jacob
Wilensky, Michael J.
Zhang, Zheng
Nasirudin, Ainulnabilah
author_facet Dutta, Sohini
Bull, Philip
Burba, Jacob
Wilensky, Michael J.
Zhang, Zheng
Nasirudin, Ainulnabilah
contents Observing the Epoch of Reionisation using 21cm radio interferometry has proven to be a challenging task. Extraction of the extremely faint redshifted signal is complicated by the presence of bright foregrounds, radio frequency interference (RFI), and systematic artefacts. We discuss the challenge of accounting for systematic effects, particularly cable reflections, that appear in the visibility data obtained from 21cm interferometers. Cable reflections cause attenuated copies of the foreground signal to appear outside the 'foreground wedge' region in which foreground contamination is supposed to be localised. We build on the hydra-pspec Gibbs sampler to implement a model of the systematics as a multiplicative effect in delay-fringe rate space. We include this model in the inference of the joint posterior distribution, in addition to the 21cm signal, its power spectrum, and foregrounds. This allows the systematics contribution to be marginalised, rather than filtering it out and causing additional signal loss. We demonstrate the method on simulated visibility data for a single baseline, showing that the 21cm delay power spectrum can be recovered well regardless of the location of the systematics in delay-fringe rate space. Our implementation is suitable for modelling other multiplicative factors on the visibilities, e.g. residual gain errors.
format Preprint
id arxiv_https___arxiv_org_abs_2604_26885
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Bayesian power spectrum estimation with modelling of systematic effects in delay-fringe rate space
Dutta, Sohini
Bull, Philip
Burba, Jacob
Wilensky, Michael J.
Zhang, Zheng
Nasirudin, Ainulnabilah
Cosmology and Nongalactic Astrophysics
Instrumentation and Methods for Astrophysics
Observing the Epoch of Reionisation using 21cm radio interferometry has proven to be a challenging task. Extraction of the extremely faint redshifted signal is complicated by the presence of bright foregrounds, radio frequency interference (RFI), and systematic artefacts. We discuss the challenge of accounting for systematic effects, particularly cable reflections, that appear in the visibility data obtained from 21cm interferometers. Cable reflections cause attenuated copies of the foreground signal to appear outside the 'foreground wedge' region in which foreground contamination is supposed to be localised. We build on the hydra-pspec Gibbs sampler to implement a model of the systematics as a multiplicative effect in delay-fringe rate space. We include this model in the inference of the joint posterior distribution, in addition to the 21cm signal, its power spectrum, and foregrounds. This allows the systematics contribution to be marginalised, rather than filtering it out and causing additional signal loss. We demonstrate the method on simulated visibility data for a single baseline, showing that the 21cm delay power spectrum can be recovered well regardless of the location of the systematics in delay-fringe rate space. Our implementation is suitable for modelling other multiplicative factors on the visibilities, e.g. residual gain errors.
title Bayesian power spectrum estimation with modelling of systematic effects in delay-fringe rate space
topic Cosmology and Nongalactic Astrophysics
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2604.26885