DB white dwarfs from the LAMOST DR5 Virtual Observatory Resource

Authors
  1. Kong X.
  2. Luo A.-L.
  3. Li X.-R.
  4. Published by
    CDS
Abstract

In this study, we employ machine learning to build a catalog of DB white dwarfs (DBWDs) from the LAMOST Data Release (DR) 5. Using known DBs from SDSS DR14, we selected samples of high-quality DB spectra from the LAMOST database and applied them to train the machine learning process. Following the recognition procedure, we chose 351 DB spectra of 287 objects, 53 of which were new identifications. We then utilized all the DBWD spectra from both SDSS DR14 and LAMOST DR5 to construct DB templates for LAMOST 1D pipeline reductions. Finally, by applying DB parameter models provided by D. Koester and the distance from Gaia DR2, we calculated the effective temperatures, surface gravities and distributions of the 3D locations and velocities of all DBWDs.

Keywords
  1. White dwarf stars
  2. Effective temperature
  3. Ultraviolet photometry
  4. Radial velocity
Bibliographic source Bibcode
2019RAA....19...88K
See also HTML
https://cdsarc.cds.unistra.fr/viz-bin/cat/J/other/RAA/19.88
IVOA Identifier IVOID
ivo://CDS.VizieR/J/other/RAA/19.88

Access

Web browser access HTML
http://vizier.cds.unistra.fr/viz-bin/VizieR-2?-source=J/other/RAA/19.88
https://vizier.iucaa.in/viz-bin/VizieR-2?-source=J/other/RAA/19.88
http://vizieridia.saao.ac.za/viz-bin/VizieR-2?-source=J/other/RAA/19.88
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History

2020-11-20T10:14:25Z
Resource record created
2020-11-20T10:14:25Z
Created
2021-09-09T12:03:01Z
Updated

Contact

Name
CDS support team
Postal Address
CDS, Observatoire de Strasbourg, 11 rue de l'Universite, F-67000 Strasbourg, France
E-Mail
cds-question@unistra.fr