Gaia Data Release 3: Cross-match of Gaia sources with variable objects from the literature
P. Gavras, L. Rimoldini, K. Nienartowicz, G. Jevardat de Fombelle, B., Holl, P. \'Abrah\'am, M. Audard, M. Carnerero, G. Clementini, J. De Ridder,, E. Distefano, P. Garcia-Lario, A. Garofalo, \'A. K\'osp\'al, K. Kruszy\'nska,, M. Kun, I. Lecoeur-Ta\"ibi, G. Marton, T. Mazeh

TL;DR
This paper presents a comprehensive cross-matched catalog of Gaia DR3 sources with known variable objects from literature, covering diverse variability types and aiding in machine learning and validation efforts.
Contribution
It provides a large, curated dataset of variable and non-variable objects cross-matched with Gaia DR3, tailored for variability detection and classification tasks.
Findings
Catalog includes 7.84 million Gaia sources with variability info.
Contains 1.2 million non-variable objects and 1.7 million galaxies.
Features over 100 variability types and subtypes.
Abstract
Context. In the current ever increasing data volumes of astronomical surveys, automated methods are essential. Objects of known classes from the literature are necessary for training supervised machine learning algorithms, as well as for verification/validation of their results. Aims.The primary goal of this work is to provide a comprehensive data set of known variable objects from the literature cross-matched with \textit{Gaia}~DR3 sources, including a large number of both variability types and representatives, in order to cover as much as possible sky regions and magnitude ranges relevant to each class. In addition, non-variable objects from selected surveys are targeted to probe their variability in \textit{Gaia} and possible use as standards. This data set can be the base for a training set applicable in variability detection, classification, and validation. MethodsA statistical…
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Taxonomy
TopicsAstronomy and Astrophysical Research
