A Bayesian algorithm for model selection applied to caustic-crossing binary-lens microlensing events
arXiv:1208.0604 · doi:10.1111/j.1365-2966.2012.21813.x
Abstract
We present a full Bayesian algorithm designed to perform automated searches of the parameter space of caustic-crossing binary-lens microlensing events. This builds on previous work implementing priors derived from Galactic models and geometrical considerations. The geometrical structure of the priors divides the parameter space into well-defined boxes that we explore with multiple Monte Carlo Markov Chains. We outline our Bayesian framework and test our automated search scheme using two data sets: a synthetic lightcurve, and the observations of OGLE-2007-BLG-472 that we analysed in previous work. For the synthetic data, we recover the input parameters. For OGLE-2007-BLG-472 we find that while χ^2 is minimised for a planetary mass-ratio model with extremely long timescale, the introduction of priors and minimisation of BIC, rather than χ^2, favours a more plausible lens model, a binary star with components of 0.78 and 0.11 M_Sun at a distance of 6.3 kpc, compared to our previous result of 1.50 and 0.12 M_Sun at a distance of 1 kpc.
13 pages, 9 figures, 3 tables, MNRAS in press
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- Interferometric observation of microlensing events
- A companion on the planet/brown dwarf mass boundary on a wide orbit discovered by gravitational microlensing
- The OGLE-III planet detection efficiency from six years of microlensing observations (2003 to 2008)
- Fast computation of quadrupole and hexadecapole approximations in microlensing with a single point-source evaluation