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  4. Unsupervised Method for Correlated Noise Removal for Multi-Wavelength Exoplanet Transit Observations
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Unsupervised Method for Correlated Noise Removal for Multi-Wavelength Exoplanet Transit Observations

Journal
Publications of the Astronomical Society of the Pacific
ISSN
0004-6280
Date Issued
2017
Author(s)
Soto-Gomez, J  
DOI
https://doi.org/10.1088/1538-3873/aa70df
Abstract
Exoplanetary atmospheric observations require an exquisite precision in the measurement of the relative flux among wavelengths. In this paper, we aim to provide a new adaptive method to treat light curves before fitting transit parameters in order to minimize systematic effects that affect, for instance, ground-based observations of exo-atmospheres. We propose a neural-network-based method that uses a reference built from the data itself with parameters that are chosen in an unsupervised fashion. To improve the performance of proposed method, K-means clustering and Silhouette criteria are used for identifying similar wavelengths in each cluster. We also constrain under which circumstances our method improves the measurement of planetary-to-stellar radius ratio without producing significant systematic offset. We tested our method in high quality data from WASP-19b and lowquality data from GJ-1214. We succeed in providing smaller error bars for the former when using JKTEBOP, but GJ-1214 light curve was beyond the capabilities of this method to improve as it was expected from our validation tests. © 2017. The Astronomical Society of the Pacific. All rights reserved.
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