Asteroseismic modelling of main-sequence solar-like stars and Kepler exoplanet host stars with the FICO procedure I. Catalogue of fundamental stellar properties
arXiv:2604.27842 · doi:10.1051/0004-6361/202557377
Abstract
We present detailed asteroseismic modelling of 95 main-sequence solar-like stars and Kepler exoplanet host stars using the FICO procedure, a three-step method that combines forward and inverse techniques that enables precise inference of fundamental stellar parameters such as mass, radius, age, and mean density. We applied the FICO procedure to a catalogue of stars with high-quality asteroseismic and classical observations, and compared its results against literature values. We also compared its performance with direct frequency fitting using semi-empirical surface corrections. The FICO procedure achieved statistical precisions of 2.3%, 0.82%, 6.9%, and 0.49% in mass, radius, age, and mean density, respectively on average, well within PLATO quality requirements. We reconfirmed that surface-independent methods more effectively mitigate biases inherent to semi-empirical surface corrections, particularly for stars more massive than 1.15 Msun or above 6050 K. Two regimes were identified: near-solar conditions, where both approaches perform similarly, and higher-mass stars, where surface-independent methods consistently outperform direct fitting methods. While our results are consistent with literature values, we observed age biases (~11.5% on average for the Kepler LEGACY sample) that are comparable to the PLATO accuracy requirement of 10% for a Sun-like star, and therefore not negligible in that context. The FICO procedure provides a robust framework for high-precision stellar characterisation in the PLATO era. Its hybrid architecture effectively addresses surface effects, making it a promising tool for the accurate determination of exoplanet host-star properties. Our findings also highlight the importance of carefully selecting and validating the physical assumptions embedded in stellar models, particularly in the context of next-generation space missions such as PLATO.
Accepted for publication in Astronomy and Astrophysics
References in corpus (41)
- The Transiting Exoplanet Survey Satellite
- Estimating distances from parallaxes. V: Geometric and photogeometric distances to 1.47 billion stars in Gaia Early Data Release 3
- The K2 Mission: Characterization and Early results
- Gaia Early Data Release 3: Parallax bias versus magnitude, colour, and position
- The chemical make-up of the Sun: A 2020 vision
- Helioseismology and Solar Abundances
- Correcting stellar oscillation frequencies for near-surface effects
- Standing on the shoulders of Dwarfs: the Kepler asteroseismic LEGACY sample II - radii, masses, and ages
- Synthetic Stellar Photometry - I. General considerations and new transformations for broad-band systems
- Standing on the shoulders of Dwarfs: the asteroseismic LEGACY sample I - oscillation mode parameters
- A new correction of stellar oscillation frequencies for near-surface effects
- Asteroseismology of solar-type stars
- Tidal dissipation in evolving low-mass and solar-type stars with predictions for planetary orbital decay
- A Stellar Model-fitting Pipeline for Asteroseismic Data from the Kepler Mission
- AIMS - A new tool for stellar parameter determinations using asteroseismic constraints
- Fundamental Parameters of Main-Sequence Stars in an Instant with Machine Learning
- Synthetic Stellar Photometry - II. Testing the bolometric flux scale, and tables of bolometric corrections for the Hipparcos/Tycho, Pan-STARRS1, SkyMapper and JWST systems
- Star-planet interactions: II. Is planet engulfment the origin of fast rotating red giants?
- The BAyesian STellar Algorithm (BASTA): a fitting tool for stellar studies, asteroseismology, exoplanets, and Galactic archaeology
- Reinvestigating Cen AB in light of asteroseismic forward and inverse methods
- How accurate are stellar ages based on stellar models ? I. The impact of stellar models uncertainties
- The CubeSpec space mission. I. Asteroseismology of massive stars from time series optical spectroscopy: science requirements and target list prioritisation
- Stellar acoustic radii, mean densities and ages from seismic inversion techniques
- Dynamical tide in stellar radiative zones. General formalism and evolution for low-mass stars
- In-depth study of 16CygB using inversion techniques
- Asteroseismic Inference of Subgiant Evolutionary Parameters with Deep Learning
- Influence of magnetic activity on the determination of stellar parameters through asteroseismology
- Testing angular momentum transport processes with asteroseismology of solar-type main-sequence stars
- Kepler-93: a testbed for detailed seismic modelling and orbital evolution of super-earths around solar-like stars
- Thorough characterisation of the 16 Cygni system. Part II. Seismic inversions of the internal structure
- Revisiting Kepler-444. II. Rotational, orbital and high-energy fluxes evolution of the system
- Impact of magnetic activity on inferred stellar properties of main sequence Sun-like stars
- Imprint of the magnetic activity cycle on solar asteroseismic characterisation based on 26 years of GOLF and BiSON data
- Helioseismic inference of the solar radiative opacity
- Asteroseismic modelling strategies in the PLATO era I. Mean density inversions and direct treatment of the seismic information
- Constraints on planetary tidal dissipation from a detailed study of Kepler 91b
- Coralie radial-velocity search for companions around evolved stars (CASCADES) III. A new Jupiter host-star: in-depth analysis of HD 29399 using TESS data
- Influence of the magnetic activity cycle on mean density and acoustic radius inversions
- The stellar activity-rotation-age relationship under the lens of asteroseismology
- Study with WhoSGlAd of the acoustic depth of the helium glitch across the seismic HR diagram and its impact on the inferred helium abundance
- Frequency separation ratios do not suppress magnetic activity effects in solar-like stars