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Probing ExoMiner for Effectiveness against False Alarms in Kepler DataWe present a study on the effectiveness of ExoMiner against False Alarms in Kepler data. ExoMiner is a deep learning model that was used to validate around 370 Kepler Objects of Interest. We follow the analysis conducted in Coughlin et al (2017) “DR25 Robovetter Completeness and Effectiveness” for Robovetter, a rule-based model used to vet TCEs for this data release and automatically generate the Q1-Q17 DR 25 KOI Table. The ExoMiner model is trained on observed transit data from Kepler Q1-Q17 DR25 and evaluated on Kepler inverted and scrambled data. The results provide a more comprehensive insight into the capacities and limitations of ExoMiner, especially the vetting of not-transit-like signals and, more generally, the use of deep learning models to model transit photometry data for vetting and validation purposes.
Document ID
20240000227
Acquisition Source
Ames Research Center
Document Type
Presentation
Authors
Miguel Martinho
(Universities Space Research Association Columbia, United States)
Hamed Valizadegan
(Universities Space Research Association Columbia, United States)
Jon Jenkins
(Search for Extraterrestrial Intelligence Mountain View, United States)
Steve Bryson
(Ames Research Center Mountain View, United States)
Douglas Caldwell
(Search for Extraterrestrial Intelligence Mountain View, United States)
Joseph Twicken
(Search for Extraterrestrial Intelligence Mountain View, United States)
Date Acquired
January 7, 2024
Subject Category
Space Sciences (General)
Astronomy
Astrophysics
Meeting Information
Meeting: 243rd Meeting of the American Astronomical Society
Location: New Orleans, LA
Country: US
Start Date: January 7, 2024
End Date: January 11, 2024
Sponsors: American Astronomical Society
Funding Number(s)
TASK: 517
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
NASA Peer Committee
Keywords
exoplanet
Kepler
simulated data
scrambled data
inverted data
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