A general stability-driven approach for the refinement of multi-planet systems
M. Stalport, J.-B. Delisle, S. Udry, E. C. Matthews, V. Bourrier, A., Leleu

TL;DR
This paper introduces a fast, stability-driven method using the NAFF chaos indicator to refine orbital parameters of multi-planet systems, improving accuracy while reducing computational costs compared to traditional N-body simulations.
Contribution
It presents a novel, efficient approach coupling parameter space exploration with NAFF for stability analysis, calibrated without extra cost, applicable to diverse multi-planet systems.
Findings
Validated on HD 45364 and HD 202696 systems.
Improved orbital parameter and mass estimates.
Demonstrated effectiveness on systems with different architectures.
Abstract
Over the past years, the amount of detected multi-planet systems significantly grew, an important sub-class of which being the compact configurations. A precise knowledge of them is crucial to understand the conditions with which planetary systems form and evolve. However, observations often leave these systems with large uncertainties, notably on the orbital eccentricities. This is especially prominent for systems with low-mass planets detected with Radial Velocities (RV), the amount of which is more and more important in the exoplanet population. It is becoming a common approach to refine these parameters with the help of orbital stability arguments. Such dynamical techniques can be computationally expensive. In this work we use an alternative procedure faster by orders of magnitude than classical N-body integration approaches. We couple a reliable exploration of the parameter…
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