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May 6, 2026Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

Differential Velocity Cumulative Distribution (DVCD): An Efficient Statistical Method for Binary Star Analysis in Large Stellar Catalogs Using Radial Velocities

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LFLuo FengChinese Academy of SciencesYZY ZHAOZhejiang Chinese Medical UniversityLCLiu Chao

Key Points

  • This research aims to develop and validate the Differential Velocity Cumulative Distribution (DVCD) method for analyzing binary stars.
  • Developed the DVCD algorithm for radial velocity data analysis.
  • Applied DVCD on red giant samples from APOGEE DR16.
  • Divided dataset into subsets based on log g and M/H.
  • DVCD method shows superior accuracy and efficiency compared to existing methods.
  • Achieved computation time reductions of 10^−4 to 10^−5 under equivalent conditions.
  • Found fbin decreases with lower surface gravity and higher metallicity.

Abstract

Abstract Binary stars are fundamental to astrophysics, offering crucial insights into stellar evolution, galactic dynamics, and fundamental physics. Nevertheless, the high dimensionality of orbital parameters and observational constraints poses significant challenges for statistically characterizing their properties. In this study, we present a novel algorithm called the Differential Velocity Cumulative Distribution (DVCD) for analyzing binary star systems using radial velocity data. The DVCD method exhibits superior accuracy and computational efficiency compared to existing approaches, achieving computation time reductions of 10−4 to 10−5 under equivalent conditions. We applied the DVCD algorithm to red giant samples from APOGEE DR16, dividing the dataset into 16 subsets based on log g and M/H. Our findings reveal that the fbin decreases with decreasing surface gravity and increasing metallicity, offering valuable constraints on the evolutionary processes of binary stars. This study underscores the potential of the DVCD method for large-scale statistical analyses of binary systems.

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Cite This Study

Feng et al. (2026) studied this question.

synapsesocial.com/papers/69faa1eb04f884e66b532a30https://doi.org/10.1093/mnras/stag575
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