Auto-correlation functions of astrophysical processes, and their relation to Gaussian processes; Application to radial velocities of different starspot configurations
arXiv:2012.01862 · doi:10.1051/0004-6361/202039594
Abstract
Accounting for the effects of stellar magnetic phenomena is indispensable to fully exploit radial velocities (RVs). Correlated time variations are often mitigated by Gaussian processes (GP). They rely on fitting kernel functions that are motivated on mathematical grounds, and whose physical interpretation is often elusive. We aim to establish a connection between stellar activity affecting RVs and their correlations with physical parameters, and compare this connection with kernels used in the literature. We use simple activity models to investigate the relationship between the physical processes generating the signals and the covariances typically found in data, and to demonstrate the qualitative behaviour of this relationship. We use the StarSim code to calculate RVs of an M dwarf with different realistic evolving spot configurations. Their auto-correlation functions (ACF) show a very specific behaviour and are related to the kernel. GP regression is performed using a quasi-periodic (QP) and harmonic oscillator kernels. Comparison of the resulting kernels with the exact ACFs allows us to cross-match the kernel hyper-parameters with the introduced physical values, study the overall capabilities of the kernels, and improve their definition. We find that the QP kernel provides a more straightforward interpretation of the physics. It is able to consistently recover both the introduced rotation period P and the spot lifetime. Our study indicates that the performance can be enhanced by fixing the form factor w and adding a physically motivated cosine term with period P/2, where the contribution to the ACF for the different spot configurations differs significantly. The new quasi-periodic with cosine kernel leads to significantly better model likelihoods, can potentially distinguish between different spot configurations, and can thereby improve the sensitivity of RV exoplanet searches.
References in corpus (25)
- emcee: The MCMC Hammer
- Fast and scalable Gaussian process modeling with applications to astronomical time series
- Planets and Stellar Activity: Hide and Seek in the CoRoT-7 system
- Large-scale magnetic topologies of late M dwarfs
- Large-scale magnetic topologies of mid-M dwarfs
- A Gaussian process framework for modelling stellar activity signals in radial velocity data
- A dynamically-packed planetary system around GJ667C with three super-Earths in its habitable zone
- Large-scale magnetic topologies of early M dwarfs
- Planetary detection limits taking into account stellar noise. I. Observational strategies to reduce stellar oscillation and granulation effects
- The CARMENES search for exoplanets around M dwarfs: High-resolution optical and near-infrared spectroscopy of 324 survey stars
- A candidate super-Earth planet orbiting near the snow line of Barnard's star
- The HARPS search for southern extra-solar planets I. HD330075 b: a new 'hot Jupiter'
- The impact of red noise in radial velocity planet searches: Only three planets orbiting GJ581?
- Radial-Velocity Fitting Challenge. II. First results of the analysis of the data set
- Kepler-21b: A rocky planet around a V = 8.25 magnitude star
- Modeling the RV jitter of early M dwarfs using tomographic imaging
- The effect of M dwarf starspot activity on low-mass planet detection thresholds
- HARPS-N Solar Radial-Velocity Variations Are Dominated By Large, Bright Magnetic Regions
- Stellar activity as noise in exoplanet detection II. Application to M dwarfs
- HADES RV Programme with HARPS-N at TNG. VII. Rotation and activity of M-Dwarfs from time-series high-resolution spectroscopy of chromospheric indicators
- Modelling the photosphere of active stars for planet detection and characterization
- Magnetic activity on AB Doradus: Temporal evolution of starspots and differential rotation from 1988 to 1994
- The HADES RV Programme with HARPS-N@TNG - GJ 3998: An early M-dwarf hosting a system of Super-Earths
- GJ1214: Rotation period, starspots, and uncertainty on the optical slope of the transmission spectrum
- Four-colour photometry of EY Dra: a study of an ultra-fast rotating active dM1-2e star
Cited by in corpus (22)
- A candidate short-period sub-Earth orbiting Proxima Centauri
- Quasi-periodic Gaussian Processes for stellar activity: from physical to kernel parameters
- The GAPS Programme with HARPS-N at TNG. XXXVII. A precise density measurement of the young ultra-short period planet TOI-1807 b
- Mapping stellar surfaces II: An interpretable Gaussian process model for light curves
- Statistical methods for exoplanet detection with radial velocities
- The CARMENES search for exoplanets around M dwarfs: Stable radial-velocity variations at the rotation period of AD~Leonis -- A test case study of current limitations to treating stellar activity
- The CARMENES search for exoplanets around M dwarfs: Benchmarking the impact of activity in high-precision radial velocity measurements
- The CARMENES search for exoplanets around M dwarfs. A long-period planet around GJ 1151 measured with CARMENES and HARPS-N data
- A sub-Earth-mass planet orbiting Barnard's star
- The CARMENES search for exoplanets around M dwarfs. Two terrestrial planets orbiting G 264-012 and one terrestrial planet orbiting Gl 393
- The GAPS Programme at TNG XLII. A characterisation study of the multi-planet system around the 400 Myr-old star HD 63433 (TOI-1726)
- Gaussian processes for radial velocity modeling Better rotation periods and planetary parameters with the quasi-periodic kernel and constrained priors
- Magnitude-squared coherence: A powerful tool for disentangling Doppler planet discoveries from stellar activity
- Short term variability of DS Tuc A observed with TESS
- A Machine Learning approach for correcting radial velocities using physical observables
- A quarter century of spectroscopic monitoring of the nearby M dwarf Gl 514. A super-Earth on an eccentric orbit moving in and out of the habitable zone
- GJ 3090 b: one of the most favourable mini-Neptune for atmospheric characterisation
- Improving Earth-like planet detection in radial velocity using deep learning
- Planetary companions orbiting the M dwarfs GJ 724 and GJ 3988. A CARMENES and IRD collaboration
- HADES RV Programme with HARPS-N at TNG XIII. A sub-Neptune around the M dwarf GJ 720 A
- Two sub-Neptunes around the M dwarf TOI-1470
- HADES RV programme with HARPS-N at TNG XIV. A candidate super-Earth orbiting the M-dwarf GJ 9689 with a period close to half the stellar rotation period