The impact of interpolation in high-resolution spectroscopy -- The overlooked role of interpolation in radial velocity extraction
A. M. Silva, D. Doshi, K. Al Moulla, E. A. S. Cristo, É. Artigau, P. T. P. Viana, N. C. Santos, J. H. C. Martins, C. M. J. Marques, S. G. Sousa, C. San Nicolas Martinez, T. L. Campante, A. Cabral, S. Cristiani
astro-ph.EP, astro-ph.IM
Submitted: 2026-06-28
Comments: 13 pages, Accepted for publication by Astronomy & Astrophysics (A&A)
Code: https://github.com/iastro-pt/sBART
License: http://creativecommons.org/licenses/by/4.0/
The gist: We explore the impact of spectral interpolation in radial velocity (RV) time-series extracted through template-based methods.
Terminology
Abstract
We explore the impact of spectral interpolation in radial velocity (RV) time-series extracted through template-based methods. We build synthetic datasets with Gaussian profiles to evaluate flux residuals and line asymmetry that are a result from changing the sampling location of the lines. We generate synthetic spectra as a sum of Gaussian functions whose parameters were determined through an observed spectrum. The s-BART pipeline was applied to them, allowing to evaluate any biases in RV extraction introduced by its internal assumptions in line shape. Lastly, we apply the s-BART pipeline to ESPRESSO observations of four stars: two that use high-cadence observations over a single night, and two that have observations spread over multiple nights. When extracting RVs from stellar spectra, we change the interpolation algorithm, used in the process of constructing the stellar template and, afterwards, during RV extraction, comparing them with RVs extracted with a widely-used cubic-spline interpolation. We find that synthetic datasets reveal systematic biases with the largest peak-to-peak amplitudes reaching about 20 m/s in low SNR cases, with the amplitude decreasing as the SNR of the spectra increases. In the extreme case of noise-free data, we still recover a systematic bias, albeit at the mm/s level, significantly smaller than the RV precision of state-of-the-art instruments. With real observations we find that those from high-cadence observations with small BERV variation are impacted by the choice of the interpolation algorithm. This impact is smaller in higher-SNR cases, where the peak-to-peak amplitude reaches about 1 m/s. In the comparatively lower-SNR case we find peak-to-peak residuals as large as about 25 m/s. In cases where the observations are spread over a larger BERV window, we find an upper limit of 20 cm/s of RV scatter for this systematic signal.
Sources
- Gaussian Process regression for astronomical time-series
- Separating planetary reflex Doppler shifts from stellar variability in the wavelength domain
- A candidate short-period sub-Earth orbiting Proxima Centauri
- kima: Exoplanet detection in radial velocities
- ESPRESSO@VLT -- On-sky performance and first results
Related papers
- PDS 70 c and SR 12 c: Observational Constraints on Giant-Planet and Satellite Formation
- Two-stage disruption of resonant chains
- Detectability of resolved hydrogen lines from the accretion shock at gas giants and their CPDs
- Binary-lens Microlensing Degeneracy: Impact on Planetary Sensitivity and Mass-ratio Function
- Atmospheric escape fractionates secondary but not primary atmospheres
- The Occurrence Rate of Nearby Planetary Companions to Hot Jupiters