Syntriod: A Robust Initial Parameter Estimator for Radial Velocity Curve Solutions Beyond Conventional Sampling Limits
Emre Barbaros, Hasan Ak, N. Filiz Ak
astro-ph.SR, astro-ph.IM
Submitted: 2026-07-27
Comments: 23 pages, 14 figures and 3 tables. Published in Publications of the Astronomical Society of the Pacific (PASP). Code will be made available on GitHub soon
Journal ref: E. Barbaros et al. (2026), PASP, 138, 074505
Code: https://github.com/EmreBarbaros/Syntriod
License: http://creativecommons.org/licenses/by/4.0/
The gist: We present Syntriod, an orbital-phase domain radial velocity (RV) template-based algorithm designed to provide robust initial orbital parameter estimates for spectroscopic binaries across diverse
Terminology
Abstract
We present Syntriod, an orbital-phase domain radial velocity (RV) template-based algorithm designed to provide robust initial orbital parameter estimates for spectroscopic binaries across diverse observational sampling conditions. Rather than performing full orbital inference, Syntriod constrains the parameter space with physically consistent solutions to guide subsequent optimization procedures. We evaluate its performance using 10,000 synthetic Keplerian orbits spanning diverse configurations and sampling regimes. For well-sampled datasets (N obs 8), Syntriod recovers orbital periods with relative accuracies of order 10-3. At the theoretical sampling limit (N obs = 6), the method maintains a 94% success rate, while classical period-search techniques like Lomb-Scargle become increasingly affected by aliasing. Even below this limit (N obs = 5), Syntriod recovers the correct orbital solution in 83% of cases, showing gradual degradation rather than catastrophic failure. We further evaluate the method on 12 real spectroscopic binary systems (HD 160934, Phi Cyg, Capella A, Kepler 16, KIC 3858884, KIC 6867766, KIC 2445134, KIC 3003991, DU Boo, HL Dra, FP Boo, and AK Her) spanning broad orbital periods and eccentricities. Syntriod consistently reproduces literature solutions even when datasets are randomly subsampled to sparse regimes. Where a full Keplerian solution becomes underconstrained (N obs 4), the algorithm transitions to linear dynamical relations, recovering parameters such as mass ratio (q) and systemic velocity (gamma) with success rates exceeding 99%. These results demonstrate that Syntriod provides reliable, computationally efficient initial parameter estimates across well-sampled and sparse regimes, making it a practical pre-solver for modern orbit-fitting pipelines and large spectroscopic surveys.
Sources
- Short note on Randi'{c} energy
- The rvfit Code: A Detailed Adaptive Simulated Annealing Code for Fitting Binaries and Exoplanets Radial Velocities
- The Dark Energy Spectroscopic Instrument (DESI)
- A Python Code to Determine Orbital Parameters of Spectroscopic Binaries
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