Speeding up low-mass planetary microlensing simulations and modelling: the Caustic Region Of INfluence
arXiv:1311.1050 · doi:10.1088/0004-637X/790/2/142
Abstract
Extensive simulations of planetary microlensing are necessary both before and after a survey is conducted: before to design and optimize the survey and after to understand its detection efficiency. The major bottleneck in such computations is the computation of lightcurves. However, for low-mass planets most of these computations are wasteful, as most lightcurves do not contain detectable planetary signatures. In this paper I develop a parameterization of the binary microlens that is conducive to avoiding lightcurve computations. I empirically find analytic expressions describing the limits of the parameter space that contain the vast majority of low-mass planet detections. Through a large scale simulation I measure the (in)completeness of the parameterization and the speed-up it is possible to achieve. For Earth-mass planets in a wide range of orbits it is possible to speed up simulations by a factor of - (depending on the survey's annual duty-cycle) at the cost of missing percent of detections (which is actually a smaller loss than for the arbitrary parameter limits typically applied in microlensing simulations). The benefits of the parameterization probably outweigh the costs for planets below . For planets at the sensitivity limit of AFTA-WFIRST, simulation speed-ups of a factor or more are possible.
9 pages, 8 figures, 3 tables
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- A Fast Approximate Approach to Microlensing Survey Analysis
- Fast computation of quadrupole and hexadecapole approximations in microlensing with a single point-source evaluation
- Classifying High-cadence Microlensing Light Curves I; Defining Features
- MAGIC: Microlensing Analysis Guided by Intelligent Computation
- The impact of the free-floating planet (FFP) mass function on the event rate for the accurate microlensing parallax determination: application to Euclid and Roman parallax observation
- Microlensing path parametrization for Earth-like Exoplanet detection around solar mass stars