Published January 10, 2015 | Version Published + Submitted
Journal Article Open

A Machine-learning Method to Infer Fundamental Stellar Parameters from Photometric Light Curves

  • 1. ROR icon Jet Propulsion Lab
  • 2. ROR icon California Institute of Technology
  • 3. ROR icon University of California, Berkeley
  • 4. ROR icon Lawrence Berkeley National Laboratory
  • 5. ROR icon Chungnam National University
  • 6. ROR icon Arizona State University
  • 7. ROR icon Smithsonian Astrophysical Observatory
  • 8. ROR icon University of Arizona

Abstract

A fundamental challenge for wide-field imaging surveys is obtaining follow-up spectroscopic observations: there are >10^9 photometrically cataloged sources, yet modern spectroscopic surveys are limited to ~few× 10^6 targets. As we approach the Large Synoptic Survey Telescope era, new algorithmic solutions are required to cope with the data deluge. Here we report the development of a machine-learning framework capable of inferring fundamental stellar parameters (T_(eff), log g, and [Fe/H]) using photometric-brightness variations and color alone. A training set is constructed from a systematic spectroscopic survey of variables with Hectospec/Multi-Mirror Telescope. In sum, the training set includes ~9000 spectra, for which stellar parameters are measured using the SEGUE Stellar Parameters Pipeline (SSPP). We employed the random forest algorithm to perform a non-parametric regression that predicts T_(eff), log g, and [Fe/H] from photometric time-domain observations. Our final optimized model produces a cross-validated rms error (RMSE) of 165 K, 0.39 dex, and 0.33 dex for T_(eff), log g, and [Fe/H], respectively. Examining the subset of sources for which the SSPP measurements are most reliable, the RMSE reduces to 125 K, 0.37 dex, and 0.27 dex, respectively, comparable to what is achievable via low-resolution spectroscopy. For variable stars this represents a ≈12%-20% improvement in RMSE relative to models trained with single-epoch photometric colors. As an application of our method, we estimate stellar parameters for ~54,000 known variables. We argue that this method may convert photometric time-domain surveys into pseudo-spectrographic engines, enabling the construction of extremely detailed maps of the Milky Way, its structure, and history.

Additional Information

© 2015 American Astronomical Society. All rights reserved. Received 21 August 2014. Published 8 January 2015. This work has made extensive use of the online data and tools made available by the SDSS collaboration. We are particularly grateful to Ž. Ivezić and collaborators at the University of Washington for making their calibrated light curves of Stripe 82 sources publicly available. We thank B.D. Bue for a fruitful conversation concerning regression bias. We also thank the anonymous referee for several useful comments that have helped to improve this paper. A.A.M. acknowledges support for this work by NASA from a Hubble Fellowship grant: HST-HF-51325.01, awarded by STScI, operated by AURA, Inc., for NASA, under contract NAS 5-26555. J.S.B. acknowledges support from an NSF-CDI grant 0941742. JAE gratefully acknowledges support from an Alfred P. Sloan Research Fellowship. Part of the research was carried out at the Jet Propulsion Laboratory, California Institute of Technology, under a contract with NASA. Observations reported here were obtained at the MMT Observatory, a joint facility of the University of Arizona and the Smithsonian Institution. Facilities: Sloan, MMT (Hectospec)

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Published - 0004-637X_798_2_122.pdf

Submitted - 1411.1073v1.pdf

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Additional details

Identifiers

Eprint ID
56523
Resolver ID
CaltechAUTHORS:20150409-103354053

Related works

Funding

NASA Hubble Fellowship STScI
HST-HF-51325.01
NASA
NAS 5-26555
NSF
CDI-0941742
Alfred P. Sloan Foundation
NASA/JPL/Caltech

Dates

Created
2015-04-09
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Updated
2021-11-10
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