Article (Scientific journals)
Improving mid-infrared thermal background subtraction with principal component analysis
Rousseau, Hélène; Ertel, S.; Defrere, Denis et al.
2024In Astronomy and Astrophysics, 687, p. 147
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Keywords :
Methods: data analysis; Methods: numerical; Techniques: image processing; Techniques: interferometric; Techniques: photometric; Background subtraction; Ground based; Method: numerical; Methods. Data analysis; Midinfrared; Principal-component analysis; Technique: interferometric; Thermal background; Astronomy and Astrophysics; Space and Planetary Science
Abstract :
[en] Context. Ground-based large-aperture telescopes, interferometers, and future extremely large telescopes equipped with adaptive optics (AO) systems provide angular resolution and high-contrast performance superior to space-based telescopes at thermal infrared wavelengths. Their sensitivity, however, is critically limited by the high thermal background inherent to ground-based observations in this wavelength regime. Aims. We aim to improve the subtraction quality of the thermal infrared background from ground-based observations using principal component analysis (PCA). Methods. We used data obtained with the Nulling-Optimized Mid-Infrared Camera on the Large Binocular Telescope Interferometer as a proxy for general high-sensitivity AO-assisted ground-based data. We applied both a classical background subtraction-using the mean of dedicated background observations-and a new background subtraction based on a PCA of the background observations. We compared the performances of these two methods in both high-contrast imaging and aperture photometry. Results. Compared to the classical approach for background subtraction, PCA background subtraction delivers up to two times better contrasts down to the diffraction limit of the LBT's primary aperture (i.e., 350 mas in N-band), that is, in the case of high-contrast imaging. An improvement factor between two and three was obtained over the mean background retrieval within the diffraction limit in the case of aperture photometry. Conclusions. The PCA background subtraction significantly improves the sensitivity of ground-based thermal infrared imaging observations. When apply to LBTI's nulling interferometry data, we expect the method to improve the sensitivity by a similar factor of two to three. This study paves the way to maximizing the potential of future infrared ground-based instruments and facilities, such as the future 30m-class telescopes.
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Rousseau, Hélène ;  Université de Liège - ULiège > Aérospatiale et Mécanique (A&M) ; Large Binocular Telescope Observatory, University of Arizona, Tucson, United States
Ertel, S. ;  Large Binocular Telescope Observatory, University of Arizona, Tucson, United States ; Department of Astronomy and Steward Observatory, University of Arizona, Tucson, United States
Defrere, Denis  ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Planetary & Stellar systems Imaging Laboratory ; Institute of Astronomy, Ku Leuven, Leuven, Belgium
Faramaz, V.;  Large Binocular Telescope Observatory, University of Arizona, Tucson, United States ; Department of Astronomy and Steward Observatory, University of Arizona, Tucson, United States
Wagner, K.;  Large Binocular Telescope Observatory, University of Arizona, Tucson, United States ; Department of Astronomy and Steward Observatory, University of Arizona, Tucson, United States
Language :
English
Title :
Improving mid-infrared thermal background subtraction with principal component analysis
Alternative titles :
[fr] Améliorer la soustraction du background thermique en infrarouge moyen avec l'analyse en composantes principales
Original title :
[en] Improving mid-infrared thermal background subtraction with principal component analysis
Publication date :
05 July 2024
Journal title :
Astronomy and Astrophysics
ISSN :
0004-6361
eISSN :
1432-0746
Publisher :
EDP Sciences
Volume :
687
Pages :
A147
Peer reviewed :
Peer Reviewed verified by ORBi
Funders :
NASA - National Aeronautics and Space Administration
ERC - European Research Council
Funding text :
H.R., S.E., and V.F. are supported by the National Aeronautics and Space Administration through the Exoplanet Research Program (Grant No. 80NSSC21K0394). D.D. acknowledges the support from the European Research Council (ERC) under the European Union\u2019s Horizon 2020 research and innovation program (grant agreement CoG\u2013866070).
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