Published March 2021 | Version Accepted Version + Published
Journal Article Open

Earth as a Proxy Exoplanet: Deconstructing and Reconstructing Spectrophotometric Light Curves

  • 1. ROR icon Peking University
  • 2. ROR icon California Institute of Technology
  • 3. ROR icon Jet Propulsion Lab
  • 4. ROR icon University College London

Abstract

Point-source spectrophotometric (single-point) light curves of Earth-like planets contain a surprising amount of information about the spatial features of those worlds. Spatially resolving these light curves is important for assessing time-varying surface features and the existence of an atmosphere, which in turn is critical to life on Earth and significant for determining habitability on exoplanets. Given that Earth is the only celestial body confirmed to harbor life, treating it as a proxy exoplanet by analyzing time-resolved spectral images provides a benchmark in the search for habitable exoplanets. The Earth Polychromatic Imaging Camera (EPIC) on the Deep Space Climate Observatory (DSCOVR) provides such an opportunity, with observations of ~5000 full-disk sunlit Earth images each year at 10 wavelengths with high temporal frequency. We disk-integrate these spectral images to create single-point light curves and decompose them into principal components (PCs). Using machine-learning techniques to relate the PCs to six preselected spatial features, we find that the first and fourth PCs of the single-point light curves, contributing ~83.23% of the light-curve variability, contain information about low and high clouds, respectively. Surface information relevant to the contrast between land and ocean reflectance is contained in the second PC, while individual land subtypes are not easily distinguishable (<0.1% total light-curve variation). We build an Earth model by systematically altering the spatial features to derive causal relationships to the PCs. This model can serve as a baseline for analyzing Earth-like exoplanets and guide wavelength selection and sampling strategies for future observations.

Additional Information

© 2021 The American Astronomical Society. Received 2020 September 3; revised 2020 December 10; accepted 2020 December 17; published 2021 February 16. L.G. and Y.H. are supported by the National Natural Science Foundation under grants 41530423, 41888101, and 41761144072. L.G. is also partly supported by the China Scholarship Council. A portion of this research was carried out at the Jet Propulsion Laboratory, California Institute of Technology, under a contract with the National Aeronautics and Space Administration (80NM0018D0004). D.C. and Y.L.Y. acknowledge support from the Virtual Planetary Laboratory at the University of Washington. Y.H. is also supported by the research project of Technology of Space Telescope Detecting Exoplanets and Life (D030201). G.T. was supported by the Science and Technology Funding Council of UK and UK Space Agency (ST/T001836/1, ST/V003380/1). J.H.J., S.J.B., and Y.L.Y. acknowledge funding support from the NASA Exoplanet Research Program NNH18ZDA001N-2XRP.

Attached Files

Published - Gu_2021_AJ_161_122.pdf

Accepted Version - 2012.10556.pdf

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2012.10556.pdf

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Additional details

Identifiers

Eprint ID
108150
Resolver ID
CaltechAUTHORS:20210223-090759375

Related works

Funding

National Natural Science Foundation of China
41530423
National Natural Science Foundation of China
41888101
National Natural Science Foundation of China
41761144072
China Scholarship Council
NASA
80NM0018D0004
NASA/JPL/Caltech
University of Washington
Technology of Space Telescope Detecting Exoplanets and Life
D030201
Science and Technology Facilities Council (STFC)
ST/T001836/1
Science and Technology Facilities Council (STFC)
ST/V003380/1
NASA
NNH18ZDA001N-2XRP

Dates

Created
2021-02-23
Created from EPrint's datestamp field
Updated
2021-11-16
Created from EPrint's last_modified field

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