APOGEE Net: An Expanded Spectral Model of Both Low-mass and High-mass Stars

Author:

Sprague DaniORCID,Culhane Connor,Kounkel MarinaORCID,Olney Richard,Covey K. R.ORCID,Hutchinson BrianORCID,Lingg RyanORCID,Stassun Keivan G.ORCID,Román-Zúñiga Carlos G.ORCID,Roman-Lopes AlexandreORCID,Nidever DavidORCID,Beaton Rachael L.ORCID,Borissova JuraORCID,Stutz AmeliaORCID,Stringfellow Guy S.ORCID,Ramírez Karla PeñaORCID,Ramírez-Preciado ValeriaORCID,Hernández JesúsORCID,Kim Jinyoung SerenaORCID,Lane Richard R.ORCID

Abstract

Abstract We train a convolutional neural network, APOGEE Net, to predict T eff, log g , and, for some stars, [Fe/H], based on the APOGEE spectra. This is the first pipeline adapted for these data that is capable of estimating these parameters in a self-consistent manner not only for low-mass stars, (such as main-sequence dwarfs, pre-main-sequence stars, and red giants), but also high-mass stars with T eff in excess of 50,000 K, including hot dwarfs and blue supergiants. The catalog of ∼650,000 stars presented in this paper allows for a detailed investigation of the star-forming history of not just the Milky Way, but also of the Magellanic clouds, as different type of objects tracing different parts of these galaxies can be more cleanly selected through their distinct placement in T eff log g parameter space than in previous APOGEE catalogs produced through different pipelines.

Publisher

American Astronomical Society

Subject

Space and Planetary Science,Astronomy and Astrophysics

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