Skip to main navigation Skip to search Skip to main content

RV-exoplanet eccentricities: Good, Beta, and Best

  • A. T. Stevenson*
  • , C. A. Haswell
  • , J. P. Faria
  • , J. R. Barnes
  • , J. K. Barstow
  • , H. Dickinson
  • , Matthew Standing
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

117 Downloads (Pure)

Abstract

We examine the eccentricity distribution(s) of radial velocity (RV) detected exoplanets. Previously, the eccentricity distribution was found to be described well by a Beta distribution with shape parameters a=0.867andb=3.03⁠. Increasing the sample size by a factor of 2.25, we find that the cumulative distribution function regression method now prefers a mixture model of Rayleigh + Exponential distributions over the Beta distribution, with an increase in Bayesian evidence of Δln⁡Z∼77 (⁠12.6σ⁠). Using probability density function regression, the eccentricity distribution is best described by a Gamma distribution, with a Rayleigh + Exponential mixture a close second. The mixture model parameters, α=0.68±0.05,λ=3.32±0.25, and σ=0.11±0.01⁠, are consistent between methods. We corroborate findings that exoplanet eccentricities are drawn from independent parent distributions when splitting the sample by period, mass, and multiplicity. Systems with a known outer massive companion provide no positive evidence for an eccentricity distribution distinct from those without. We quantitatively show M-dwarf hosted planets share a common eccentricity distribution with those orbiting FGK-type stars. We release our python code, eccentriciPy, which allows bespoke tailoring of the input archive to create more relevant priors for particular problems in RV planet discovery and characterization. We re-characterized example planets using either traditional Beta, or updated priors, finding differences for recovery of low-amplitude multisignal systems. We explore the effects of a variety of prior choices. The accurate determination of small but non-zero eccentricity values has wide-ranging implications for modelling the structure and evolution of planets and their atmospheres due to the energy dissipated by tidal flexing.

Original languageEnglish
Pages (from-to)727-754
Number of pages28
JournalMonthly Notices of the Royal Astronomical Society
Volume539
Issue number2
DOIs
Publication statusPublished - 27 Mar 2025

Fingerprint

Dive into the research topics of 'RV-exoplanet eccentricities: Good, Beta, and Best'. Together they form a unique fingerprint.

Cite this