exoMMR: a New Python Package to Confirm and Characterize Mean Motion Resonances
Mariah G. MacDonald, Michael S. Polania Vivas, Skylar D'Angiolillo,, Ashley N. Fernandez, Tyler Quinn

TL;DR
exoMMR is a Python package designed to identify, confirm, and analyze mean motion resonances in planetary systems using N-body simulations, enabling large-scale studies of resonant exoplanetary systems.
Contribution
The paper introduces exoMMR, a new Python tool that automates the detection and analysis of mean motion resonances, expanding the capacity for large-scale resonance studies.
Findings
Confirmed over 60 new resonant pairs in Kepler/K2 and TESS data.
Demonstrated the package's ability to analyze mass-eccentricity degeneracy and planetary masses.
Identified limitations in confirming resonances in multi-planet systems.
Abstract
The study of orbital resonances allows for the constraint of planetary properties of compact systems. We can predict a system's resonances by observing the orbital periods of the planets, as planets in or near mean motion resonance have period ratios that reduce to a ratio of small numbers. However, a period ratio near commensurability does not guarantee a resonance; we must study the system's dynamics and resonant angles to confirm resonance. Because resonances require in-depth study to confirm, and because two-body resonances require a measurement of the eccentricity vector which is quite challenging, very few resonant pairs or chains have been confirmed. We thus remain in the era of small number statistics, not yet able to perform large population synthesis or informatics studies. To address this problem, we build a python package to find, confirm, and analyze mean motion resonances,…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsStellar, planetary, and galactic studies · Astrophysics and Star Formation Studies · Spectroscopy and Laser Applications
