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DOE OSTI · 1885485

Red Dragon: a redshift-evolving Gaussian mixture model for galaxies

Abstract

ABSTRACT Precision-era optical cluster cosmology calls for a precise definition of the red sequence (RS), consistent across redshift. To this end, we present the Red Dragon algorithm: an error-corrected multivariate Gaussian mixture model (GMM). Simultaneous use of multiple colours and smooth evolution of GMM parameters result in a continuous RS and blue cloud (BC) characterization across redshift, avoiding the discontinuities of red fraction inherent in swapping RS selection colours. Based on a mid-redshift spectroscopic sample of SDSS galaxies, an RS defined by Red Dragon selects quiescent galaxies (low specific star formation rate) with a balanced accuracy of over $90{{\ \rm per\ cent}}$. This approach to galaxy population assignment gives more natural separations between RS and BC galaxies than hard cuts in colour–magnitude or colour–colour spaces. The Red Dragon algorithm is publicly available at bitbucket.org/wkblack/red-dragon-gamma/.

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BibTeXRIS

Black, William K. (ORCID:0000000348117913), Evrard, August (ORCID:000000024876956X). 2022-07-22. Red Dragon: a redshift-evolving Gaussian mixture model for galaxies. https://doi.org/10.1093/mnras%2Fstac2052

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