Towards a Self-calibrating, Empirical, Light-Weight Model for Tellurics in High-Resolution Spectra
arXiv:1903.08350 · doi:10.3847/1538-3881/ab0d86
Abstract
To discover Earth analogs around other stars, next generation spectrographs must measure radial velocity (RV) with 10 cm/s precision. To achieve 10cm/s precision, however, the effects of telluric contamination must be accounted for. The standard approaches to telluric removal are: (a) observing a standard star and (b) using a radiative transfer code. Observing standard stars, however, takes valuable observing time away from science targets. Radiative transfer codes, meanwhile, rely on imprecise line data in the HITRAN database (typical line position uncertainties range from a few to several hundred m/s) and require difficult-to-obtain measurements of water vapor column density for best performance. To address these issues, we present SELENITE: a SELf-calibrating, Empricial, Light-Weight liNear regressIon TElluric model for high-resolution spectra. The model exploits two simple observations: (a) water tellurics grow proportionally to precipitable water vapor and therefore proportionally to each other and (b) non-water tellurics grow proportionally to airmass. Water tellurics can be identified by looking for pixels whose growth correlates with a known calibration water telluric and modelled by regression against it, and likewise non-water tellurics with airmass. The model doesn't require line data, water vapor measurements and additional observations (beyond one-time calibration observations), achieves fits with a reduced chi squared of 1.17 on B stars and 2.95 on K dwarfs, and leaves residuals of 1% (B stars) and 1.1% (K dwarfs) of continuum. Fitting takes seconds on laptop PCs: SELENITE is light-weight enough to guide observing runs.
References in corpus (6)
- Molecfit: A general tool for telluric absorption correction. I. Method and application to ESO instruments
- Correcting for Telluric Absorption: Methods, Case Studies, and Release of the TelFit Code
- The SDSS-HET Survey of Kepler Eclipsing Binaries: Spectroscopic Dynamical Masses of the Kepler-16 Circumbinary Planet Hosts
- Telluric-line subtraction in high-accuracy velocimetry: a PCA-based approach
- Impact of micro-telluric lines on precise radial velocities and its correction
- Disentangling telluric lines in stellar spectra
Cited by in corpus (17)
- YARARA: Significant improvement of RV precision through post-processing of spectral time-series
- The EXPRES Stellar Signals Project II. State of the Field in Disentangling Photospheric Velocities
- Automatic model-based telluric correction for the ESPRESSO data reduction software. Model description and application to radial velocity computation
- EXPRES I. HD~3651 an Ideal RV Benchmark
- Modeling the Echelle Spectra Continuum with Alpha Shapes and Local Regression Fitting
- The obliquity and atmosphere of the ultra-hot Jupiter TOI-1431b (MASCARA-5b): A misaligned orbit and no signs of atomic ormolecular absorptions
- The CARMENES search for exoplanets around M dwarfs. Telluric absorption corrected high S/N optical and near-infrared template spectra of 382 M dwarf stars
- Unsigned magnetic flux proxy from solar optical intensity spectra
- The Measured Impact of Chromatic Atmospheric Effects on Barycentric Corrections: Results from the EXtreme PREcision Spectrograph
- A Stellar Activity F-statistic for Exoplanet Surveys (SAFE)
- The Effects of Telluric Contamination in Iodine Calibrated Precise Radial Velocities
- Improved precision of radial velocity measurements after correction for telluric absorption
- viper: High-precision radial velocities from the optical to the infrared (Reaching 3 m/s in the K band of CRIRES+ with telluric modelling)
- The Lowell Observatory Solar Telescope: A fiber feed into the EXtreme PREcision Spectrometer
- Doppler-Shifted Alkali D Absorption as Indirect Evidence for Exomoons
- A Hermite-Gaussian Based Radial Velocity Estimation Method
- Confirmation of Fe I on MASCARA-5 b's Dayside Observed With EXPRES