ESA-Ariel Data Challenge NeurIPS 2022: Introduction to exo-atmospheric studies and presentation of the Atmospheric Big Challenge (ABC) Database
Quentin Changeat, Kai Hou Yip

TL;DR
This paper introduces the Atmospheric Big Challenge (ABC) Database, a comprehensive resource for exoplanet atmospheric studies, facilitating machine learning applications in inverse modeling, and demonstrates its utility through the NeurIPS Ariel ML Data Challenge 2022.
Contribution
The paper presents a large, organized, publicly available database of exoplanet atmospheric models and posterior distributions, supporting ML research and benchmarking in the field.
Findings
Created 105,887 forward models and 26,109 posterior distributions.
Demonstrated the database's application in the NeurIPS Ariel ML Data Challenge 2022.
Provided an accessible introduction to atmospheric studies for non-experts.
Abstract
This is an exciting era for exo-planetary exploration. The recently launched JWST, and other upcoming space missions such as Ariel, Twinkle and ELTs are set to bring fresh insights to the convoluted processes of planetary formation and evolution and its connections to atmospheric compositions. However, with new opportunities come new challenges. The field of exoplanet atmospheres is already struggling with the incoming volume and quality of data, and machine learning (ML) techniques lands itself as a promising alternative. Developing techniques of this kind is an inter-disciplinary task, one that requires domain knowledge of the field, access to relevant tools and expert insights on the capability and limitations of current ML models. These stringent requirements have so far limited the developments of ML in the field to a few isolated initiatives. In this paper, We present the…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Geological and Geophysical Studies · Atmospheric Ozone and Climate
