Constraining Reionization Morphology and Source Properties with 21cm-Galaxy Cross-Correlation Surveys
Abstract
Cross-correlations between 21cm observations and galaxy surveys provide a powerful probe of reionization by reducing foreground sensitivity while linking ionization morphology to galaxies. We quantify the constraining power of 21cm-Galaxy cross-power spectra for inferring neutral hydrogen fraction and mean overdensity , exploring dependence on field of view, redshift precision , and minimum halo mass . We employ our simulation-based inference framework EoRFlow for likelihood-free parameter estimation. Mock observations include thermal noise for 100h SKA-Low with foreground avoidance and realistic galaxy survey effects. For a fiducial survey (, , ), cross-power spectra yield unbiased constraints with posterior volumes (PV) of 10% relative to priors. Cross-power measurements reduce PV by 20-30% versus 21cm auto-power alone. With foreground avoidance, spectroscopic redshift precision is essential; photometric redshifts render cross-correlations uninformative. Notably, cross-power spectra constrain ionizing source properties, the escape fraction and star formation efficiency , which remain degenerate in auto-power (PV 60%). Tight constraints require either deep surveys detecting faint galaxies () with moderate foregrounds, or conservative mass limits with optimistic foreground removal (PV 15%). 21cm-Galaxy cross-correlations enhance morphology constraints beyond auto-power while enabling previously inaccessible source property constraints. Realizing full potential requires precise redshifts and either faint galaxy detection limits or improved 21cm foreground cleaning.
Keywords
Cite
@article{arxiv.2601.18627,
title = {Constraining Reionization Morphology and Source Properties with 21cm-Galaxy Cross-Correlation Surveys},
author = {Yannic Pietschke and Anne Hutter and Caroline Heneka},
journal= {arXiv preprint arXiv:2601.18627},
year = {2026}
}
Comments
12 pages, 6 figures, prepared for submission to A&A